1 //===---- CGBuiltin.cpp - Emit LLVM Code for builtins ---------------------===// 2 // 3 // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions. 4 // See https://llvm.org/LICENSE.txt for license information. 5 // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception 6 // 7 //===----------------------------------------------------------------------===// 8 // 9 // This contains code to emit Builtin calls as LLVM code. 10 // 11 //===----------------------------------------------------------------------===// 12 13 #include "CGCUDARuntime.h" 14 #include "CGCXXABI.h" 15 #include "CGObjCRuntime.h" 16 #include "CGOpenCLRuntime.h" 17 #include "CGRecordLayout.h" 18 #include "CodeGenFunction.h" 19 #include "CodeGenModule.h" 20 #include "ConstantEmitter.h" 21 #include "PatternInit.h" 22 #include "TargetInfo.h" 23 #include "clang/AST/ASTContext.h" 24 #include "clang/AST/Attr.h" 25 #include "clang/AST/Decl.h" 26 #include "clang/AST/OSLog.h" 27 #include "clang/Basic/TargetBuiltins.h" 28 #include "clang/Basic/TargetInfo.h" 29 #include "clang/CodeGen/CGFunctionInfo.h" 30 #include "llvm/ADT/APFloat.h" 31 #include "llvm/ADT/APInt.h" 32 #include "llvm/ADT/SmallPtrSet.h" 33 #include "llvm/ADT/StringExtras.h" 34 #include "llvm/Analysis/ValueTracking.h" 35 #include "llvm/IR/DataLayout.h" 36 #include "llvm/IR/InlineAsm.h" 37 #include "llvm/IR/Intrinsics.h" 38 #include "llvm/IR/IntrinsicsAArch64.h" 39 #include "llvm/IR/IntrinsicsAMDGPU.h" 40 #include "llvm/IR/IntrinsicsARM.h" 41 #include "llvm/IR/IntrinsicsBPF.h" 42 #include "llvm/IR/IntrinsicsHexagon.h" 43 #include "llvm/IR/IntrinsicsNVPTX.h" 44 #include "llvm/IR/IntrinsicsPowerPC.h" 45 #include "llvm/IR/IntrinsicsR600.h" 46 #include "llvm/IR/IntrinsicsRISCV.h" 47 #include "llvm/IR/IntrinsicsS390.h" 48 #include "llvm/IR/IntrinsicsWebAssembly.h" 49 #include "llvm/IR/IntrinsicsX86.h" 50 #include "llvm/IR/MDBuilder.h" 51 #include "llvm/IR/MatrixBuilder.h" 52 #include "llvm/Support/ConvertUTF.h" 53 #include "llvm/Support/ScopedPrinter.h" 54 #include "llvm/Support/X86TargetParser.h" 55 #include <sstream> 56 57 using namespace clang; 58 using namespace CodeGen; 59 using namespace llvm; 60 61 static 62 int64_t clamp(int64_t Value, int64_t Low, int64_t High) { 63 return std::min(High, std::max(Low, Value)); 64 } 65 66 static void initializeAlloca(CodeGenFunction &CGF, AllocaInst *AI, Value *Size, 67 Align AlignmentInBytes) { 68 ConstantInt *Byte; 69 switch (CGF.getLangOpts().getTrivialAutoVarInit()) { 70 case LangOptions::TrivialAutoVarInitKind::Uninitialized: 71 // Nothing to initialize. 72 return; 73 case LangOptions::TrivialAutoVarInitKind::Zero: 74 Byte = CGF.Builder.getInt8(0x00); 75 break; 76 case LangOptions::TrivialAutoVarInitKind::Pattern: { 77 llvm::Type *Int8 = llvm::IntegerType::getInt8Ty(CGF.CGM.getLLVMContext()); 78 Byte = llvm::dyn_cast<llvm::ConstantInt>( 79 initializationPatternFor(CGF.CGM, Int8)); 80 break; 81 } 82 } 83 if (CGF.CGM.stopAutoInit()) 84 return; 85 auto *I = CGF.Builder.CreateMemSet(AI, Byte, Size, AlignmentInBytes); 86 I->addAnnotationMetadata("auto-init"); 87 } 88 89 /// getBuiltinLibFunction - Given a builtin id for a function like 90 /// "__builtin_fabsf", return a Function* for "fabsf". 91 llvm::Constant *CodeGenModule::getBuiltinLibFunction(const FunctionDecl *FD, 92 unsigned BuiltinID) { 93 assert(Context.BuiltinInfo.isLibFunction(BuiltinID)); 94 95 // Get the name, skip over the __builtin_ prefix (if necessary). 96 StringRef Name; 97 GlobalDecl D(FD); 98 99 // TODO: This list should be expanded or refactored after all GCC-compatible 100 // std libcall builtins are implemented. 101 static SmallDenseMap<unsigned, StringRef, 8> F128Builtins{ 102 {Builtin::BI__builtin_printf, "__printfieee128"}, 103 {Builtin::BI__builtin_vsnprintf, "__vsnprintfieee128"}, 104 {Builtin::BI__builtin_vsprintf, "__vsprintfieee128"}, 105 {Builtin::BI__builtin_sprintf, "__sprintfieee128"}, 106 {Builtin::BI__builtin_snprintf, "__snprintfieee128"}, 107 {Builtin::BI__builtin_fprintf, "__fprintfieee128"}, 108 {Builtin::BI__builtin_nexttowardf128, "__nexttowardieee128"}, 109 }; 110 111 // If the builtin has been declared explicitly with an assembler label, 112 // use the mangled name. This differs from the plain label on platforms 113 // that prefix labels. 114 if (FD->hasAttr<AsmLabelAttr>()) 115 Name = getMangledName(D); 116 else { 117 // TODO: This mutation should also be applied to other targets other than 118 // PPC, after backend supports IEEE 128-bit style libcalls. 119 if (getTriple().isPPC64() && 120 &getTarget().getLongDoubleFormat() == &llvm::APFloat::IEEEquad() && 121 F128Builtins.find(BuiltinID) != F128Builtins.end()) 122 Name = F128Builtins[BuiltinID]; 123 else 124 Name = Context.BuiltinInfo.getName(BuiltinID) + 10; 125 } 126 127 llvm::FunctionType *Ty = 128 cast<llvm::FunctionType>(getTypes().ConvertType(FD->getType())); 129 130 return GetOrCreateLLVMFunction(Name, Ty, D, /*ForVTable=*/false); 131 } 132 133 /// Emit the conversions required to turn the given value into an 134 /// integer of the given size. 135 static Value *EmitToInt(CodeGenFunction &CGF, llvm::Value *V, 136 QualType T, llvm::IntegerType *IntType) { 137 V = CGF.EmitToMemory(V, T); 138 139 if (V->getType()->isPointerTy()) 140 return CGF.Builder.CreatePtrToInt(V, IntType); 141 142 assert(V->getType() == IntType); 143 return V; 144 } 145 146 static Value *EmitFromInt(CodeGenFunction &CGF, llvm::Value *V, 147 QualType T, llvm::Type *ResultType) { 148 V = CGF.EmitFromMemory(V, T); 149 150 if (ResultType->isPointerTy()) 151 return CGF.Builder.CreateIntToPtr(V, ResultType); 152 153 assert(V->getType() == ResultType); 154 return V; 155 } 156 157 /// Utility to insert an atomic instruction based on Intrinsic::ID 158 /// and the expression node. 159 static Value *MakeBinaryAtomicValue( 160 CodeGenFunction &CGF, llvm::AtomicRMWInst::BinOp Kind, const CallExpr *E, 161 AtomicOrdering Ordering = AtomicOrdering::SequentiallyConsistent) { 162 QualType T = E->getType(); 163 assert(E->getArg(0)->getType()->isPointerType()); 164 assert(CGF.getContext().hasSameUnqualifiedType(T, 165 E->getArg(0)->getType()->getPointeeType())); 166 assert(CGF.getContext().hasSameUnqualifiedType(T, E->getArg(1)->getType())); 167 168 llvm::Value *DestPtr = CGF.EmitScalarExpr(E->getArg(0)); 169 unsigned AddrSpace = DestPtr->getType()->getPointerAddressSpace(); 170 171 llvm::IntegerType *IntType = 172 llvm::IntegerType::get(CGF.getLLVMContext(), 173 CGF.getContext().getTypeSize(T)); 174 llvm::Type *IntPtrType = IntType->getPointerTo(AddrSpace); 175 176 llvm::Value *Args[2]; 177 Args[0] = CGF.Builder.CreateBitCast(DestPtr, IntPtrType); 178 Args[1] = CGF.EmitScalarExpr(E->getArg(1)); 179 llvm::Type *ValueType = Args[1]->getType(); 180 Args[1] = EmitToInt(CGF, Args[1], T, IntType); 181 182 llvm::Value *Result = CGF.Builder.CreateAtomicRMW( 183 Kind, Args[0], Args[1], Ordering); 184 return EmitFromInt(CGF, Result, T, ValueType); 185 } 186 187 static Value *EmitNontemporalStore(CodeGenFunction &CGF, const CallExpr *E) { 188 Value *Val = CGF.EmitScalarExpr(E->getArg(0)); 189 Value *Address = CGF.EmitScalarExpr(E->getArg(1)); 190 191 // Convert the type of the pointer to a pointer to the stored type. 192 Val = CGF.EmitToMemory(Val, E->getArg(0)->getType()); 193 unsigned SrcAddrSpace = Address->getType()->getPointerAddressSpace(); 194 Value *BC = CGF.Builder.CreateBitCast( 195 Address, llvm::PointerType::get(Val->getType(), SrcAddrSpace), "cast"); 196 LValue LV = CGF.MakeNaturalAlignAddrLValue(BC, E->getArg(0)->getType()); 197 LV.setNontemporal(true); 198 CGF.EmitStoreOfScalar(Val, LV, false); 199 return nullptr; 200 } 201 202 static Value *EmitNontemporalLoad(CodeGenFunction &CGF, const CallExpr *E) { 203 Value *Address = CGF.EmitScalarExpr(E->getArg(0)); 204 205 LValue LV = CGF.MakeNaturalAlignAddrLValue(Address, E->getType()); 206 LV.setNontemporal(true); 207 return CGF.EmitLoadOfScalar(LV, E->getExprLoc()); 208 } 209 210 static RValue EmitBinaryAtomic(CodeGenFunction &CGF, 211 llvm::AtomicRMWInst::BinOp Kind, 212 const CallExpr *E) { 213 return RValue::get(MakeBinaryAtomicValue(CGF, Kind, E)); 214 } 215 216 /// Utility to insert an atomic instruction based Intrinsic::ID and 217 /// the expression node, where the return value is the result of the 218 /// operation. 219 static RValue EmitBinaryAtomicPost(CodeGenFunction &CGF, 220 llvm::AtomicRMWInst::BinOp Kind, 221 const CallExpr *E, 222 Instruction::BinaryOps Op, 223 bool Invert = false) { 224 QualType T = E->getType(); 225 assert(E->getArg(0)->getType()->isPointerType()); 226 assert(CGF.getContext().hasSameUnqualifiedType(T, 227 E->getArg(0)->getType()->getPointeeType())); 228 assert(CGF.getContext().hasSameUnqualifiedType(T, E->getArg(1)->getType())); 229 230 llvm::Value *DestPtr = CGF.EmitScalarExpr(E->getArg(0)); 231 unsigned AddrSpace = DestPtr->getType()->getPointerAddressSpace(); 232 233 llvm::IntegerType *IntType = 234 llvm::IntegerType::get(CGF.getLLVMContext(), 235 CGF.getContext().getTypeSize(T)); 236 llvm::Type *IntPtrType = IntType->getPointerTo(AddrSpace); 237 238 llvm::Value *Args[2]; 239 Args[1] = CGF.EmitScalarExpr(E->getArg(1)); 240 llvm::Type *ValueType = Args[1]->getType(); 241 Args[1] = EmitToInt(CGF, Args[1], T, IntType); 242 Args[0] = CGF.Builder.CreateBitCast(DestPtr, IntPtrType); 243 244 llvm::Value *Result = CGF.Builder.CreateAtomicRMW( 245 Kind, Args[0], Args[1], llvm::AtomicOrdering::SequentiallyConsistent); 246 Result = CGF.Builder.CreateBinOp(Op, Result, Args[1]); 247 if (Invert) 248 Result = 249 CGF.Builder.CreateBinOp(llvm::Instruction::Xor, Result, 250 llvm::ConstantInt::getAllOnesValue(IntType)); 251 Result = EmitFromInt(CGF, Result, T, ValueType); 252 return RValue::get(Result); 253 } 254 255 /// Utility to insert an atomic cmpxchg instruction. 256 /// 257 /// @param CGF The current codegen function. 258 /// @param E Builtin call expression to convert to cmpxchg. 259 /// arg0 - address to operate on 260 /// arg1 - value to compare with 261 /// arg2 - new value 262 /// @param ReturnBool Specifies whether to return success flag of 263 /// cmpxchg result or the old value. 264 /// 265 /// @returns result of cmpxchg, according to ReturnBool 266 /// 267 /// Note: In order to lower Microsoft's _InterlockedCompareExchange* intrinsics 268 /// invoke the function EmitAtomicCmpXchgForMSIntrin. 269 static Value *MakeAtomicCmpXchgValue(CodeGenFunction &CGF, const CallExpr *E, 270 bool ReturnBool) { 271 QualType T = ReturnBool ? E->getArg(1)->getType() : E->getType(); 272 llvm::Value *DestPtr = CGF.EmitScalarExpr(E->getArg(0)); 273 unsigned AddrSpace = DestPtr->getType()->getPointerAddressSpace(); 274 275 llvm::IntegerType *IntType = llvm::IntegerType::get( 276 CGF.getLLVMContext(), CGF.getContext().getTypeSize(T)); 277 llvm::Type *IntPtrType = IntType->getPointerTo(AddrSpace); 278 279 Value *Args[3]; 280 Args[0] = CGF.Builder.CreateBitCast(DestPtr, IntPtrType); 281 Args[1] = CGF.EmitScalarExpr(E->getArg(1)); 282 llvm::Type *ValueType = Args[1]->getType(); 283 Args[1] = EmitToInt(CGF, Args[1], T, IntType); 284 Args[2] = EmitToInt(CGF, CGF.EmitScalarExpr(E->getArg(2)), T, IntType); 285 286 Value *Pair = CGF.Builder.CreateAtomicCmpXchg( 287 Args[0], Args[1], Args[2], llvm::AtomicOrdering::SequentiallyConsistent, 288 llvm::AtomicOrdering::SequentiallyConsistent); 289 if (ReturnBool) 290 // Extract boolean success flag and zext it to int. 291 return CGF.Builder.CreateZExt(CGF.Builder.CreateExtractValue(Pair, 1), 292 CGF.ConvertType(E->getType())); 293 else 294 // Extract old value and emit it using the same type as compare value. 295 return EmitFromInt(CGF, CGF.Builder.CreateExtractValue(Pair, 0), T, 296 ValueType); 297 } 298 299 /// This function should be invoked to emit atomic cmpxchg for Microsoft's 300 /// _InterlockedCompareExchange* intrinsics which have the following signature: 301 /// T _InterlockedCompareExchange(T volatile *Destination, 302 /// T Exchange, 303 /// T Comparand); 304 /// 305 /// Whereas the llvm 'cmpxchg' instruction has the following syntax: 306 /// cmpxchg *Destination, Comparand, Exchange. 307 /// So we need to swap Comparand and Exchange when invoking 308 /// CreateAtomicCmpXchg. That is the reason we could not use the above utility 309 /// function MakeAtomicCmpXchgValue since it expects the arguments to be 310 /// already swapped. 311 312 static 313 Value *EmitAtomicCmpXchgForMSIntrin(CodeGenFunction &CGF, const CallExpr *E, 314 AtomicOrdering SuccessOrdering = AtomicOrdering::SequentiallyConsistent) { 315 assert(E->getArg(0)->getType()->isPointerType()); 316 assert(CGF.getContext().hasSameUnqualifiedType( 317 E->getType(), E->getArg(0)->getType()->getPointeeType())); 318 assert(CGF.getContext().hasSameUnqualifiedType(E->getType(), 319 E->getArg(1)->getType())); 320 assert(CGF.getContext().hasSameUnqualifiedType(E->getType(), 321 E->getArg(2)->getType())); 322 323 auto *Destination = CGF.EmitScalarExpr(E->getArg(0)); 324 auto *Comparand = CGF.EmitScalarExpr(E->getArg(2)); 325 auto *Exchange = CGF.EmitScalarExpr(E->getArg(1)); 326 327 // For Release ordering, the failure ordering should be Monotonic. 328 auto FailureOrdering = SuccessOrdering == AtomicOrdering::Release ? 329 AtomicOrdering::Monotonic : 330 SuccessOrdering; 331 332 // The atomic instruction is marked volatile for consistency with MSVC. This 333 // blocks the few atomics optimizations that LLVM has. If we want to optimize 334 // _Interlocked* operations in the future, we will have to remove the volatile 335 // marker. 336 auto *Result = CGF.Builder.CreateAtomicCmpXchg( 337 Destination, Comparand, Exchange, 338 SuccessOrdering, FailureOrdering); 339 Result->setVolatile(true); 340 return CGF.Builder.CreateExtractValue(Result, 0); 341 } 342 343 // 64-bit Microsoft platforms support 128 bit cmpxchg operations. They are 344 // prototyped like this: 345 // 346 // unsigned char _InterlockedCompareExchange128...( 347 // __int64 volatile * _Destination, 348 // __int64 _ExchangeHigh, 349 // __int64 _ExchangeLow, 350 // __int64 * _ComparandResult); 351 static Value *EmitAtomicCmpXchg128ForMSIntrin(CodeGenFunction &CGF, 352 const CallExpr *E, 353 AtomicOrdering SuccessOrdering) { 354 assert(E->getNumArgs() == 4); 355 llvm::Value *Destination = CGF.EmitScalarExpr(E->getArg(0)); 356 llvm::Value *ExchangeHigh = CGF.EmitScalarExpr(E->getArg(1)); 357 llvm::Value *ExchangeLow = CGF.EmitScalarExpr(E->getArg(2)); 358 llvm::Value *ComparandPtr = CGF.EmitScalarExpr(E->getArg(3)); 359 360 assert(Destination->getType()->isPointerTy()); 361 assert(!ExchangeHigh->getType()->isPointerTy()); 362 assert(!ExchangeLow->getType()->isPointerTy()); 363 assert(ComparandPtr->getType()->isPointerTy()); 364 365 // For Release ordering, the failure ordering should be Monotonic. 366 auto FailureOrdering = SuccessOrdering == AtomicOrdering::Release 367 ? AtomicOrdering::Monotonic 368 : SuccessOrdering; 369 370 // Convert to i128 pointers and values. 371 llvm::Type *Int128Ty = llvm::IntegerType::get(CGF.getLLVMContext(), 128); 372 llvm::Type *Int128PtrTy = Int128Ty->getPointerTo(); 373 Destination = CGF.Builder.CreateBitCast(Destination, Int128PtrTy); 374 Address ComparandResult(CGF.Builder.CreateBitCast(ComparandPtr, Int128PtrTy), 375 CGF.getContext().toCharUnitsFromBits(128)); 376 377 // (((i128)hi) << 64) | ((i128)lo) 378 ExchangeHigh = CGF.Builder.CreateZExt(ExchangeHigh, Int128Ty); 379 ExchangeLow = CGF.Builder.CreateZExt(ExchangeLow, Int128Ty); 380 ExchangeHigh = 381 CGF.Builder.CreateShl(ExchangeHigh, llvm::ConstantInt::get(Int128Ty, 64)); 382 llvm::Value *Exchange = CGF.Builder.CreateOr(ExchangeHigh, ExchangeLow); 383 384 // Load the comparand for the instruction. 385 llvm::Value *Comparand = CGF.Builder.CreateLoad(ComparandResult); 386 387 auto *CXI = CGF.Builder.CreateAtomicCmpXchg(Destination, Comparand, Exchange, 388 SuccessOrdering, FailureOrdering); 389 390 // The atomic instruction is marked volatile for consistency with MSVC. This 391 // blocks the few atomics optimizations that LLVM has. If we want to optimize 392 // _Interlocked* operations in the future, we will have to remove the volatile 393 // marker. 394 CXI->setVolatile(true); 395 396 // Store the result as an outparameter. 397 CGF.Builder.CreateStore(CGF.Builder.CreateExtractValue(CXI, 0), 398 ComparandResult); 399 400 // Get the success boolean and zero extend it to i8. 401 Value *Success = CGF.Builder.CreateExtractValue(CXI, 1); 402 return CGF.Builder.CreateZExt(Success, CGF.Int8Ty); 403 } 404 405 static Value *EmitAtomicIncrementValue(CodeGenFunction &CGF, const CallExpr *E, 406 AtomicOrdering Ordering = AtomicOrdering::SequentiallyConsistent) { 407 assert(E->getArg(0)->getType()->isPointerType()); 408 409 auto *IntTy = CGF.ConvertType(E->getType()); 410 auto *Result = CGF.Builder.CreateAtomicRMW( 411 AtomicRMWInst::Add, 412 CGF.EmitScalarExpr(E->getArg(0)), 413 ConstantInt::get(IntTy, 1), 414 Ordering); 415 return CGF.Builder.CreateAdd(Result, ConstantInt::get(IntTy, 1)); 416 } 417 418 static Value *EmitAtomicDecrementValue(CodeGenFunction &CGF, const CallExpr *E, 419 AtomicOrdering Ordering = AtomicOrdering::SequentiallyConsistent) { 420 assert(E->getArg(0)->getType()->isPointerType()); 421 422 auto *IntTy = CGF.ConvertType(E->getType()); 423 auto *Result = CGF.Builder.CreateAtomicRMW( 424 AtomicRMWInst::Sub, 425 CGF.EmitScalarExpr(E->getArg(0)), 426 ConstantInt::get(IntTy, 1), 427 Ordering); 428 return CGF.Builder.CreateSub(Result, ConstantInt::get(IntTy, 1)); 429 } 430 431 // Build a plain volatile load. 432 static Value *EmitISOVolatileLoad(CodeGenFunction &CGF, const CallExpr *E) { 433 Value *Ptr = CGF.EmitScalarExpr(E->getArg(0)); 434 QualType ElTy = E->getArg(0)->getType()->getPointeeType(); 435 CharUnits LoadSize = CGF.getContext().getTypeSizeInChars(ElTy); 436 llvm::Type *ITy = 437 llvm::IntegerType::get(CGF.getLLVMContext(), LoadSize.getQuantity() * 8); 438 Ptr = CGF.Builder.CreateBitCast(Ptr, ITy->getPointerTo()); 439 llvm::LoadInst *Load = CGF.Builder.CreateAlignedLoad(ITy, Ptr, LoadSize); 440 Load->setVolatile(true); 441 return Load; 442 } 443 444 // Build a plain volatile store. 445 static Value *EmitISOVolatileStore(CodeGenFunction &CGF, const CallExpr *E) { 446 Value *Ptr = CGF.EmitScalarExpr(E->getArg(0)); 447 Value *Value = CGF.EmitScalarExpr(E->getArg(1)); 448 QualType ElTy = E->getArg(0)->getType()->getPointeeType(); 449 CharUnits StoreSize = CGF.getContext().getTypeSizeInChars(ElTy); 450 llvm::Type *ITy = 451 llvm::IntegerType::get(CGF.getLLVMContext(), StoreSize.getQuantity() * 8); 452 Ptr = CGF.Builder.CreateBitCast(Ptr, ITy->getPointerTo()); 453 llvm::StoreInst *Store = 454 CGF.Builder.CreateAlignedStore(Value, Ptr, StoreSize); 455 Store->setVolatile(true); 456 return Store; 457 } 458 459 // Emit a simple mangled intrinsic that has 1 argument and a return type 460 // matching the argument type. Depending on mode, this may be a constrained 461 // floating-point intrinsic. 462 static Value *emitUnaryMaybeConstrainedFPBuiltin(CodeGenFunction &CGF, 463 const CallExpr *E, unsigned IntrinsicID, 464 unsigned ConstrainedIntrinsicID) { 465 llvm::Value *Src0 = CGF.EmitScalarExpr(E->getArg(0)); 466 467 if (CGF.Builder.getIsFPConstrained()) { 468 CodeGenFunction::CGFPOptionsRAII FPOptsRAII(CGF, E); 469 Function *F = CGF.CGM.getIntrinsic(ConstrainedIntrinsicID, Src0->getType()); 470 return CGF.Builder.CreateConstrainedFPCall(F, { Src0 }); 471 } else { 472 Function *F = CGF.CGM.getIntrinsic(IntrinsicID, Src0->getType()); 473 return CGF.Builder.CreateCall(F, Src0); 474 } 475 } 476 477 // Emit an intrinsic that has 2 operands of the same type as its result. 478 // Depending on mode, this may be a constrained floating-point intrinsic. 479 static Value *emitBinaryMaybeConstrainedFPBuiltin(CodeGenFunction &CGF, 480 const CallExpr *E, unsigned IntrinsicID, 481 unsigned ConstrainedIntrinsicID) { 482 llvm::Value *Src0 = CGF.EmitScalarExpr(E->getArg(0)); 483 llvm::Value *Src1 = CGF.EmitScalarExpr(E->getArg(1)); 484 485 if (CGF.Builder.getIsFPConstrained()) { 486 CodeGenFunction::CGFPOptionsRAII FPOptsRAII(CGF, E); 487 Function *F = CGF.CGM.getIntrinsic(ConstrainedIntrinsicID, Src0->getType()); 488 return CGF.Builder.CreateConstrainedFPCall(F, { Src0, Src1 }); 489 } else { 490 Function *F = CGF.CGM.getIntrinsic(IntrinsicID, Src0->getType()); 491 return CGF.Builder.CreateCall(F, { Src0, Src1 }); 492 } 493 } 494 495 // Emit an intrinsic that has 3 operands of the same type as its result. 496 // Depending on mode, this may be a constrained floating-point intrinsic. 497 static Value *emitTernaryMaybeConstrainedFPBuiltin(CodeGenFunction &CGF, 498 const CallExpr *E, unsigned IntrinsicID, 499 unsigned ConstrainedIntrinsicID) { 500 llvm::Value *Src0 = CGF.EmitScalarExpr(E->getArg(0)); 501 llvm::Value *Src1 = CGF.EmitScalarExpr(E->getArg(1)); 502 llvm::Value *Src2 = CGF.EmitScalarExpr(E->getArg(2)); 503 504 if (CGF.Builder.getIsFPConstrained()) { 505 CodeGenFunction::CGFPOptionsRAII FPOptsRAII(CGF, E); 506 Function *F = CGF.CGM.getIntrinsic(ConstrainedIntrinsicID, Src0->getType()); 507 return CGF.Builder.CreateConstrainedFPCall(F, { Src0, Src1, Src2 }); 508 } else { 509 Function *F = CGF.CGM.getIntrinsic(IntrinsicID, Src0->getType()); 510 return CGF.Builder.CreateCall(F, { Src0, Src1, Src2 }); 511 } 512 } 513 514 // Emit an intrinsic where all operands are of the same type as the result. 515 // Depending on mode, this may be a constrained floating-point intrinsic. 516 static Value *emitCallMaybeConstrainedFPBuiltin(CodeGenFunction &CGF, 517 unsigned IntrinsicID, 518 unsigned ConstrainedIntrinsicID, 519 llvm::Type *Ty, 520 ArrayRef<Value *> Args) { 521 Function *F; 522 if (CGF.Builder.getIsFPConstrained()) 523 F = CGF.CGM.getIntrinsic(ConstrainedIntrinsicID, Ty); 524 else 525 F = CGF.CGM.getIntrinsic(IntrinsicID, Ty); 526 527 if (CGF.Builder.getIsFPConstrained()) 528 return CGF.Builder.CreateConstrainedFPCall(F, Args); 529 else 530 return CGF.Builder.CreateCall(F, Args); 531 } 532 533 // Emit a simple mangled intrinsic that has 1 argument and a return type 534 // matching the argument type. 535 static Value *emitUnaryBuiltin(CodeGenFunction &CGF, 536 const CallExpr *E, 537 unsigned IntrinsicID) { 538 llvm::Value *Src0 = CGF.EmitScalarExpr(E->getArg(0)); 539 540 Function *F = CGF.CGM.getIntrinsic(IntrinsicID, Src0->getType()); 541 return CGF.Builder.CreateCall(F, Src0); 542 } 543 544 // Emit an intrinsic that has 2 operands of the same type as its result. 545 static Value *emitBinaryBuiltin(CodeGenFunction &CGF, 546 const CallExpr *E, 547 unsigned IntrinsicID) { 548 llvm::Value *Src0 = CGF.EmitScalarExpr(E->getArg(0)); 549 llvm::Value *Src1 = CGF.EmitScalarExpr(E->getArg(1)); 550 551 Function *F = CGF.CGM.getIntrinsic(IntrinsicID, Src0->getType()); 552 return CGF.Builder.CreateCall(F, { Src0, Src1 }); 553 } 554 555 // Emit an intrinsic that has 3 operands of the same type as its result. 556 static Value *emitTernaryBuiltin(CodeGenFunction &CGF, 557 const CallExpr *E, 558 unsigned IntrinsicID) { 559 llvm::Value *Src0 = CGF.EmitScalarExpr(E->getArg(0)); 560 llvm::Value *Src1 = CGF.EmitScalarExpr(E->getArg(1)); 561 llvm::Value *Src2 = CGF.EmitScalarExpr(E->getArg(2)); 562 563 Function *F = CGF.CGM.getIntrinsic(IntrinsicID, Src0->getType()); 564 return CGF.Builder.CreateCall(F, { Src0, Src1, Src2 }); 565 } 566 567 // Emit an intrinsic that has 1 float or double operand, and 1 integer. 568 static Value *emitFPIntBuiltin(CodeGenFunction &CGF, 569 const CallExpr *E, 570 unsigned IntrinsicID) { 571 llvm::Value *Src0 = CGF.EmitScalarExpr(E->getArg(0)); 572 llvm::Value *Src1 = CGF.EmitScalarExpr(E->getArg(1)); 573 574 Function *F = CGF.CGM.getIntrinsic(IntrinsicID, Src0->getType()); 575 return CGF.Builder.CreateCall(F, {Src0, Src1}); 576 } 577 578 // Emit an intrinsic that has overloaded integer result and fp operand. 579 static Value * 580 emitMaybeConstrainedFPToIntRoundBuiltin(CodeGenFunction &CGF, const CallExpr *E, 581 unsigned IntrinsicID, 582 unsigned ConstrainedIntrinsicID) { 583 llvm::Type *ResultType = CGF.ConvertType(E->getType()); 584 llvm::Value *Src0 = CGF.EmitScalarExpr(E->getArg(0)); 585 586 if (CGF.Builder.getIsFPConstrained()) { 587 CodeGenFunction::CGFPOptionsRAII FPOptsRAII(CGF, E); 588 Function *F = CGF.CGM.getIntrinsic(ConstrainedIntrinsicID, 589 {ResultType, Src0->getType()}); 590 return CGF.Builder.CreateConstrainedFPCall(F, {Src0}); 591 } else { 592 Function *F = 593 CGF.CGM.getIntrinsic(IntrinsicID, {ResultType, Src0->getType()}); 594 return CGF.Builder.CreateCall(F, Src0); 595 } 596 } 597 598 /// EmitFAbs - Emit a call to @llvm.fabs(). 599 static Value *EmitFAbs(CodeGenFunction &CGF, Value *V) { 600 Function *F = CGF.CGM.getIntrinsic(Intrinsic::fabs, V->getType()); 601 llvm::CallInst *Call = CGF.Builder.CreateCall(F, V); 602 Call->setDoesNotAccessMemory(); 603 return Call; 604 } 605 606 /// Emit the computation of the sign bit for a floating point value. Returns 607 /// the i1 sign bit value. 608 static Value *EmitSignBit(CodeGenFunction &CGF, Value *V) { 609 LLVMContext &C = CGF.CGM.getLLVMContext(); 610 611 llvm::Type *Ty = V->getType(); 612 int Width = Ty->getPrimitiveSizeInBits(); 613 llvm::Type *IntTy = llvm::IntegerType::get(C, Width); 614 V = CGF.Builder.CreateBitCast(V, IntTy); 615 if (Ty->isPPC_FP128Ty()) { 616 // We want the sign bit of the higher-order double. The bitcast we just 617 // did works as if the double-double was stored to memory and then 618 // read as an i128. The "store" will put the higher-order double in the 619 // lower address in both little- and big-Endian modes, but the "load" 620 // will treat those bits as a different part of the i128: the low bits in 621 // little-Endian, the high bits in big-Endian. Therefore, on big-Endian 622 // we need to shift the high bits down to the low before truncating. 623 Width >>= 1; 624 if (CGF.getTarget().isBigEndian()) { 625 Value *ShiftCst = llvm::ConstantInt::get(IntTy, Width); 626 V = CGF.Builder.CreateLShr(V, ShiftCst); 627 } 628 // We are truncating value in order to extract the higher-order 629 // double, which we will be using to extract the sign from. 630 IntTy = llvm::IntegerType::get(C, Width); 631 V = CGF.Builder.CreateTrunc(V, IntTy); 632 } 633 Value *Zero = llvm::Constant::getNullValue(IntTy); 634 return CGF.Builder.CreateICmpSLT(V, Zero); 635 } 636 637 static RValue emitLibraryCall(CodeGenFunction &CGF, const FunctionDecl *FD, 638 const CallExpr *E, llvm::Constant *calleeValue) { 639 CGCallee callee = CGCallee::forDirect(calleeValue, GlobalDecl(FD)); 640 return CGF.EmitCall(E->getCallee()->getType(), callee, E, ReturnValueSlot()); 641 } 642 643 /// Emit a call to llvm.{sadd,uadd,ssub,usub,smul,umul}.with.overflow.* 644 /// depending on IntrinsicID. 645 /// 646 /// \arg CGF The current codegen function. 647 /// \arg IntrinsicID The ID for the Intrinsic we wish to generate. 648 /// \arg X The first argument to the llvm.*.with.overflow.*. 649 /// \arg Y The second argument to the llvm.*.with.overflow.*. 650 /// \arg Carry The carry returned by the llvm.*.with.overflow.*. 651 /// \returns The result (i.e. sum/product) returned by the intrinsic. 652 static llvm::Value *EmitOverflowIntrinsic(CodeGenFunction &CGF, 653 const llvm::Intrinsic::ID IntrinsicID, 654 llvm::Value *X, llvm::Value *Y, 655 llvm::Value *&Carry) { 656 // Make sure we have integers of the same width. 657 assert(X->getType() == Y->getType() && 658 "Arguments must be the same type. (Did you forget to make sure both " 659 "arguments have the same integer width?)"); 660 661 Function *Callee = CGF.CGM.getIntrinsic(IntrinsicID, X->getType()); 662 llvm::Value *Tmp = CGF.Builder.CreateCall(Callee, {X, Y}); 663 Carry = CGF.Builder.CreateExtractValue(Tmp, 1); 664 return CGF.Builder.CreateExtractValue(Tmp, 0); 665 } 666 667 static Value *emitRangedBuiltin(CodeGenFunction &CGF, 668 unsigned IntrinsicID, 669 int low, int high) { 670 llvm::MDBuilder MDHelper(CGF.getLLVMContext()); 671 llvm::MDNode *RNode = MDHelper.createRange(APInt(32, low), APInt(32, high)); 672 Function *F = CGF.CGM.getIntrinsic(IntrinsicID, {}); 673 llvm::Instruction *Call = CGF.Builder.CreateCall(F); 674 Call->setMetadata(llvm::LLVMContext::MD_range, RNode); 675 return Call; 676 } 677 678 namespace { 679 struct WidthAndSignedness { 680 unsigned Width; 681 bool Signed; 682 }; 683 } 684 685 static WidthAndSignedness 686 getIntegerWidthAndSignedness(const clang::ASTContext &context, 687 const clang::QualType Type) { 688 assert(Type->isIntegerType() && "Given type is not an integer."); 689 unsigned Width = Type->isBooleanType() ? 1 690 : Type->isBitIntType() ? context.getIntWidth(Type) 691 : context.getTypeInfo(Type).Width; 692 bool Signed = Type->isSignedIntegerType(); 693 return {Width, Signed}; 694 } 695 696 // Given one or more integer types, this function produces an integer type that 697 // encompasses them: any value in one of the given types could be expressed in 698 // the encompassing type. 699 static struct WidthAndSignedness 700 EncompassingIntegerType(ArrayRef<struct WidthAndSignedness> Types) { 701 assert(Types.size() > 0 && "Empty list of types."); 702 703 // If any of the given types is signed, we must return a signed type. 704 bool Signed = false; 705 for (const auto &Type : Types) { 706 Signed |= Type.Signed; 707 } 708 709 // The encompassing type must have a width greater than or equal to the width 710 // of the specified types. Additionally, if the encompassing type is signed, 711 // its width must be strictly greater than the width of any unsigned types 712 // given. 713 unsigned Width = 0; 714 for (const auto &Type : Types) { 715 unsigned MinWidth = Type.Width + (Signed && !Type.Signed); 716 if (Width < MinWidth) { 717 Width = MinWidth; 718 } 719 } 720 721 return {Width, Signed}; 722 } 723 724 Value *CodeGenFunction::EmitVAStartEnd(Value *ArgValue, bool IsStart) { 725 llvm::Type *DestType = Int8PtrTy; 726 if (ArgValue->getType() != DestType) 727 ArgValue = 728 Builder.CreateBitCast(ArgValue, DestType, ArgValue->getName().data()); 729 730 Intrinsic::ID inst = IsStart ? Intrinsic::vastart : Intrinsic::vaend; 731 return Builder.CreateCall(CGM.getIntrinsic(inst), ArgValue); 732 } 733 734 /// Checks if using the result of __builtin_object_size(p, @p From) in place of 735 /// __builtin_object_size(p, @p To) is correct 736 static bool areBOSTypesCompatible(int From, int To) { 737 // Note: Our __builtin_object_size implementation currently treats Type=0 and 738 // Type=2 identically. Encoding this implementation detail here may make 739 // improving __builtin_object_size difficult in the future, so it's omitted. 740 return From == To || (From == 0 && To == 1) || (From == 3 && To == 2); 741 } 742 743 static llvm::Value * 744 getDefaultBuiltinObjectSizeResult(unsigned Type, llvm::IntegerType *ResType) { 745 return ConstantInt::get(ResType, (Type & 2) ? 0 : -1, /*isSigned=*/true); 746 } 747 748 llvm::Value * 749 CodeGenFunction::evaluateOrEmitBuiltinObjectSize(const Expr *E, unsigned Type, 750 llvm::IntegerType *ResType, 751 llvm::Value *EmittedE, 752 bool IsDynamic) { 753 uint64_t ObjectSize; 754 if (!E->tryEvaluateObjectSize(ObjectSize, getContext(), Type)) 755 return emitBuiltinObjectSize(E, Type, ResType, EmittedE, IsDynamic); 756 return ConstantInt::get(ResType, ObjectSize, /*isSigned=*/true); 757 } 758 759 /// Returns a Value corresponding to the size of the given expression. 760 /// This Value may be either of the following: 761 /// - A llvm::Argument (if E is a param with the pass_object_size attribute on 762 /// it) 763 /// - A call to the @llvm.objectsize intrinsic 764 /// 765 /// EmittedE is the result of emitting `E` as a scalar expr. If it's non-null 766 /// and we wouldn't otherwise try to reference a pass_object_size parameter, 767 /// we'll call @llvm.objectsize on EmittedE, rather than emitting E. 768 llvm::Value * 769 CodeGenFunction::emitBuiltinObjectSize(const Expr *E, unsigned Type, 770 llvm::IntegerType *ResType, 771 llvm::Value *EmittedE, bool IsDynamic) { 772 // We need to reference an argument if the pointer is a parameter with the 773 // pass_object_size attribute. 774 if (auto *D = dyn_cast<DeclRefExpr>(E->IgnoreParenImpCasts())) { 775 auto *Param = dyn_cast<ParmVarDecl>(D->getDecl()); 776 auto *PS = D->getDecl()->getAttr<PassObjectSizeAttr>(); 777 if (Param != nullptr && PS != nullptr && 778 areBOSTypesCompatible(PS->getType(), Type)) { 779 auto Iter = SizeArguments.find(Param); 780 assert(Iter != SizeArguments.end()); 781 782 const ImplicitParamDecl *D = Iter->second; 783 auto DIter = LocalDeclMap.find(D); 784 assert(DIter != LocalDeclMap.end()); 785 786 return EmitLoadOfScalar(DIter->second, /*Volatile=*/false, 787 getContext().getSizeType(), E->getBeginLoc()); 788 } 789 } 790 791 // LLVM can't handle Type=3 appropriately, and __builtin_object_size shouldn't 792 // evaluate E for side-effects. In either case, we shouldn't lower to 793 // @llvm.objectsize. 794 if (Type == 3 || (!EmittedE && E->HasSideEffects(getContext()))) 795 return getDefaultBuiltinObjectSizeResult(Type, ResType); 796 797 Value *Ptr = EmittedE ? EmittedE : EmitScalarExpr(E); 798 assert(Ptr->getType()->isPointerTy() && 799 "Non-pointer passed to __builtin_object_size?"); 800 801 Function *F = 802 CGM.getIntrinsic(Intrinsic::objectsize, {ResType, Ptr->getType()}); 803 804 // LLVM only supports 0 and 2, make sure that we pass along that as a boolean. 805 Value *Min = Builder.getInt1((Type & 2) != 0); 806 // For GCC compatibility, __builtin_object_size treat NULL as unknown size. 807 Value *NullIsUnknown = Builder.getTrue(); 808 Value *Dynamic = Builder.getInt1(IsDynamic); 809 return Builder.CreateCall(F, {Ptr, Min, NullIsUnknown, Dynamic}); 810 } 811 812 namespace { 813 /// A struct to generically describe a bit test intrinsic. 814 struct BitTest { 815 enum ActionKind : uint8_t { TestOnly, Complement, Reset, Set }; 816 enum InterlockingKind : uint8_t { 817 Unlocked, 818 Sequential, 819 Acquire, 820 Release, 821 NoFence 822 }; 823 824 ActionKind Action; 825 InterlockingKind Interlocking; 826 bool Is64Bit; 827 828 static BitTest decodeBitTestBuiltin(unsigned BuiltinID); 829 }; 830 } // namespace 831 832 BitTest BitTest::decodeBitTestBuiltin(unsigned BuiltinID) { 833 switch (BuiltinID) { 834 // Main portable variants. 835 case Builtin::BI_bittest: 836 return {TestOnly, Unlocked, false}; 837 case Builtin::BI_bittestandcomplement: 838 return {Complement, Unlocked, false}; 839 case Builtin::BI_bittestandreset: 840 return {Reset, Unlocked, false}; 841 case Builtin::BI_bittestandset: 842 return {Set, Unlocked, false}; 843 case Builtin::BI_interlockedbittestandreset: 844 return {Reset, Sequential, false}; 845 case Builtin::BI_interlockedbittestandset: 846 return {Set, Sequential, false}; 847 848 // X86-specific 64-bit variants. 849 case Builtin::BI_bittest64: 850 return {TestOnly, Unlocked, true}; 851 case Builtin::BI_bittestandcomplement64: 852 return {Complement, Unlocked, true}; 853 case Builtin::BI_bittestandreset64: 854 return {Reset, Unlocked, true}; 855 case Builtin::BI_bittestandset64: 856 return {Set, Unlocked, true}; 857 case Builtin::BI_interlockedbittestandreset64: 858 return {Reset, Sequential, true}; 859 case Builtin::BI_interlockedbittestandset64: 860 return {Set, Sequential, true}; 861 862 // ARM/AArch64-specific ordering variants. 863 case Builtin::BI_interlockedbittestandset_acq: 864 return {Set, Acquire, false}; 865 case Builtin::BI_interlockedbittestandset_rel: 866 return {Set, Release, false}; 867 case Builtin::BI_interlockedbittestandset_nf: 868 return {Set, NoFence, false}; 869 case Builtin::BI_interlockedbittestandreset_acq: 870 return {Reset, Acquire, false}; 871 case Builtin::BI_interlockedbittestandreset_rel: 872 return {Reset, Release, false}; 873 case Builtin::BI_interlockedbittestandreset_nf: 874 return {Reset, NoFence, false}; 875 } 876 llvm_unreachable("expected only bittest intrinsics"); 877 } 878 879 static char bitActionToX86BTCode(BitTest::ActionKind A) { 880 switch (A) { 881 case BitTest::TestOnly: return '\0'; 882 case BitTest::Complement: return 'c'; 883 case BitTest::Reset: return 'r'; 884 case BitTest::Set: return 's'; 885 } 886 llvm_unreachable("invalid action"); 887 } 888 889 static llvm::Value *EmitX86BitTestIntrinsic(CodeGenFunction &CGF, 890 BitTest BT, 891 const CallExpr *E, Value *BitBase, 892 Value *BitPos) { 893 char Action = bitActionToX86BTCode(BT.Action); 894 char SizeSuffix = BT.Is64Bit ? 'q' : 'l'; 895 896 // Build the assembly. 897 SmallString<64> Asm; 898 raw_svector_ostream AsmOS(Asm); 899 if (BT.Interlocking != BitTest::Unlocked) 900 AsmOS << "lock "; 901 AsmOS << "bt"; 902 if (Action) 903 AsmOS << Action; 904 AsmOS << SizeSuffix << " $2, ($1)"; 905 906 // Build the constraints. FIXME: We should support immediates when possible. 907 std::string Constraints = "={@ccc},r,r,~{cc},~{memory}"; 908 std::string MachineClobbers = CGF.getTarget().getClobbers(); 909 if (!MachineClobbers.empty()) { 910 Constraints += ','; 911 Constraints += MachineClobbers; 912 } 913 llvm::IntegerType *IntType = llvm::IntegerType::get( 914 CGF.getLLVMContext(), 915 CGF.getContext().getTypeSize(E->getArg(1)->getType())); 916 llvm::Type *IntPtrType = IntType->getPointerTo(); 917 llvm::FunctionType *FTy = 918 llvm::FunctionType::get(CGF.Int8Ty, {IntPtrType, IntType}, false); 919 920 llvm::InlineAsm *IA = 921 llvm::InlineAsm::get(FTy, Asm, Constraints, /*hasSideEffects=*/true); 922 return CGF.Builder.CreateCall(IA, {BitBase, BitPos}); 923 } 924 925 static llvm::AtomicOrdering 926 getBitTestAtomicOrdering(BitTest::InterlockingKind I) { 927 switch (I) { 928 case BitTest::Unlocked: return llvm::AtomicOrdering::NotAtomic; 929 case BitTest::Sequential: return llvm::AtomicOrdering::SequentiallyConsistent; 930 case BitTest::Acquire: return llvm::AtomicOrdering::Acquire; 931 case BitTest::Release: return llvm::AtomicOrdering::Release; 932 case BitTest::NoFence: return llvm::AtomicOrdering::Monotonic; 933 } 934 llvm_unreachable("invalid interlocking"); 935 } 936 937 /// Emit a _bittest* intrinsic. These intrinsics take a pointer to an array of 938 /// bits and a bit position and read and optionally modify the bit at that 939 /// position. The position index can be arbitrarily large, i.e. it can be larger 940 /// than 31 or 63, so we need an indexed load in the general case. 941 static llvm::Value *EmitBitTestIntrinsic(CodeGenFunction &CGF, 942 unsigned BuiltinID, 943 const CallExpr *E) { 944 Value *BitBase = CGF.EmitScalarExpr(E->getArg(0)); 945 Value *BitPos = CGF.EmitScalarExpr(E->getArg(1)); 946 947 BitTest BT = BitTest::decodeBitTestBuiltin(BuiltinID); 948 949 // X86 has special BT, BTC, BTR, and BTS instructions that handle the array 950 // indexing operation internally. Use them if possible. 951 if (CGF.getTarget().getTriple().isX86()) 952 return EmitX86BitTestIntrinsic(CGF, BT, E, BitBase, BitPos); 953 954 // Otherwise, use generic code to load one byte and test the bit. Use all but 955 // the bottom three bits as the array index, and the bottom three bits to form 956 // a mask. 957 // Bit = BitBaseI8[BitPos >> 3] & (1 << (BitPos & 0x7)) != 0; 958 Value *ByteIndex = CGF.Builder.CreateAShr( 959 BitPos, llvm::ConstantInt::get(BitPos->getType(), 3), "bittest.byteidx"); 960 Value *BitBaseI8 = CGF.Builder.CreatePointerCast(BitBase, CGF.Int8PtrTy); 961 Address ByteAddr(CGF.Builder.CreateInBoundsGEP(CGF.Int8Ty, BitBaseI8, 962 ByteIndex, "bittest.byteaddr"), 963 CharUnits::One()); 964 Value *PosLow = 965 CGF.Builder.CreateAnd(CGF.Builder.CreateTrunc(BitPos, CGF.Int8Ty), 966 llvm::ConstantInt::get(CGF.Int8Ty, 0x7)); 967 968 // The updating instructions will need a mask. 969 Value *Mask = nullptr; 970 if (BT.Action != BitTest::TestOnly) { 971 Mask = CGF.Builder.CreateShl(llvm::ConstantInt::get(CGF.Int8Ty, 1), PosLow, 972 "bittest.mask"); 973 } 974 975 // Check the action and ordering of the interlocked intrinsics. 976 llvm::AtomicOrdering Ordering = getBitTestAtomicOrdering(BT.Interlocking); 977 978 Value *OldByte = nullptr; 979 if (Ordering != llvm::AtomicOrdering::NotAtomic) { 980 // Emit a combined atomicrmw load/store operation for the interlocked 981 // intrinsics. 982 llvm::AtomicRMWInst::BinOp RMWOp = llvm::AtomicRMWInst::Or; 983 if (BT.Action == BitTest::Reset) { 984 Mask = CGF.Builder.CreateNot(Mask); 985 RMWOp = llvm::AtomicRMWInst::And; 986 } 987 OldByte = CGF.Builder.CreateAtomicRMW(RMWOp, ByteAddr.getPointer(), Mask, 988 Ordering); 989 } else { 990 // Emit a plain load for the non-interlocked intrinsics. 991 OldByte = CGF.Builder.CreateLoad(ByteAddr, "bittest.byte"); 992 Value *NewByte = nullptr; 993 switch (BT.Action) { 994 case BitTest::TestOnly: 995 // Don't store anything. 996 break; 997 case BitTest::Complement: 998 NewByte = CGF.Builder.CreateXor(OldByte, Mask); 999 break; 1000 case BitTest::Reset: 1001 NewByte = CGF.Builder.CreateAnd(OldByte, CGF.Builder.CreateNot(Mask)); 1002 break; 1003 case BitTest::Set: 1004 NewByte = CGF.Builder.CreateOr(OldByte, Mask); 1005 break; 1006 } 1007 if (NewByte) 1008 CGF.Builder.CreateStore(NewByte, ByteAddr); 1009 } 1010 1011 // However we loaded the old byte, either by plain load or atomicrmw, shift 1012 // the bit into the low position and mask it to 0 or 1. 1013 Value *ShiftedByte = CGF.Builder.CreateLShr(OldByte, PosLow, "bittest.shr"); 1014 return CGF.Builder.CreateAnd( 1015 ShiftedByte, llvm::ConstantInt::get(CGF.Int8Ty, 1), "bittest.res"); 1016 } 1017 1018 static llvm::Value *emitPPCLoadReserveIntrinsic(CodeGenFunction &CGF, 1019 unsigned BuiltinID, 1020 const CallExpr *E) { 1021 Value *Addr = CGF.EmitScalarExpr(E->getArg(0)); 1022 1023 SmallString<64> Asm; 1024 raw_svector_ostream AsmOS(Asm); 1025 llvm::IntegerType *RetType = CGF.Int32Ty; 1026 1027 switch (BuiltinID) { 1028 case clang::PPC::BI__builtin_ppc_ldarx: 1029 AsmOS << "ldarx "; 1030 RetType = CGF.Int64Ty; 1031 break; 1032 case clang::PPC::BI__builtin_ppc_lwarx: 1033 AsmOS << "lwarx "; 1034 RetType = CGF.Int32Ty; 1035 break; 1036 case clang::PPC::BI__builtin_ppc_lharx: 1037 AsmOS << "lharx "; 1038 RetType = CGF.Int16Ty; 1039 break; 1040 case clang::PPC::BI__builtin_ppc_lbarx: 1041 AsmOS << "lbarx "; 1042 RetType = CGF.Int8Ty; 1043 break; 1044 default: 1045 llvm_unreachable("Expected only PowerPC load reserve intrinsics"); 1046 } 1047 1048 AsmOS << "$0, ${1:y}"; 1049 1050 std::string Constraints = "=r,*Z,~{memory}"; 1051 std::string MachineClobbers = CGF.getTarget().getClobbers(); 1052 if (!MachineClobbers.empty()) { 1053 Constraints += ','; 1054 Constraints += MachineClobbers; 1055 } 1056 1057 llvm::Type *IntPtrType = RetType->getPointerTo(); 1058 llvm::FunctionType *FTy = 1059 llvm::FunctionType::get(RetType, {IntPtrType}, false); 1060 1061 llvm::InlineAsm *IA = 1062 llvm::InlineAsm::get(FTy, Asm, Constraints, /*hasSideEffects=*/true); 1063 return CGF.Builder.CreateCall(IA, {Addr}); 1064 } 1065 1066 namespace { 1067 enum class MSVCSetJmpKind { 1068 _setjmpex, 1069 _setjmp3, 1070 _setjmp 1071 }; 1072 } 1073 1074 /// MSVC handles setjmp a bit differently on different platforms. On every 1075 /// architecture except 32-bit x86, the frame address is passed. On x86, extra 1076 /// parameters can be passed as variadic arguments, but we always pass none. 1077 static RValue EmitMSVCRTSetJmp(CodeGenFunction &CGF, MSVCSetJmpKind SJKind, 1078 const CallExpr *E) { 1079 llvm::Value *Arg1 = nullptr; 1080 llvm::Type *Arg1Ty = nullptr; 1081 StringRef Name; 1082 bool IsVarArg = false; 1083 if (SJKind == MSVCSetJmpKind::_setjmp3) { 1084 Name = "_setjmp3"; 1085 Arg1Ty = CGF.Int32Ty; 1086 Arg1 = llvm::ConstantInt::get(CGF.IntTy, 0); 1087 IsVarArg = true; 1088 } else { 1089 Name = SJKind == MSVCSetJmpKind::_setjmp ? "_setjmp" : "_setjmpex"; 1090 Arg1Ty = CGF.Int8PtrTy; 1091 if (CGF.getTarget().getTriple().getArch() == llvm::Triple::aarch64) { 1092 Arg1 = CGF.Builder.CreateCall( 1093 CGF.CGM.getIntrinsic(Intrinsic::sponentry, CGF.AllocaInt8PtrTy)); 1094 } else 1095 Arg1 = CGF.Builder.CreateCall( 1096 CGF.CGM.getIntrinsic(Intrinsic::frameaddress, CGF.AllocaInt8PtrTy), 1097 llvm::ConstantInt::get(CGF.Int32Ty, 0)); 1098 } 1099 1100 // Mark the call site and declaration with ReturnsTwice. 1101 llvm::Type *ArgTypes[2] = {CGF.Int8PtrTy, Arg1Ty}; 1102 llvm::AttributeList ReturnsTwiceAttr = llvm::AttributeList::get( 1103 CGF.getLLVMContext(), llvm::AttributeList::FunctionIndex, 1104 llvm::Attribute::ReturnsTwice); 1105 llvm::FunctionCallee SetJmpFn = CGF.CGM.CreateRuntimeFunction( 1106 llvm::FunctionType::get(CGF.IntTy, ArgTypes, IsVarArg), Name, 1107 ReturnsTwiceAttr, /*Local=*/true); 1108 1109 llvm::Value *Buf = CGF.Builder.CreateBitOrPointerCast( 1110 CGF.EmitScalarExpr(E->getArg(0)), CGF.Int8PtrTy); 1111 llvm::Value *Args[] = {Buf, Arg1}; 1112 llvm::CallBase *CB = CGF.EmitRuntimeCallOrInvoke(SetJmpFn, Args); 1113 CB->setAttributes(ReturnsTwiceAttr); 1114 return RValue::get(CB); 1115 } 1116 1117 // Many of MSVC builtins are on x64, ARM and AArch64; to avoid repeating code, 1118 // we handle them here. 1119 enum class CodeGenFunction::MSVCIntrin { 1120 _BitScanForward, 1121 _BitScanReverse, 1122 _InterlockedAnd, 1123 _InterlockedDecrement, 1124 _InterlockedExchange, 1125 _InterlockedExchangeAdd, 1126 _InterlockedExchangeSub, 1127 _InterlockedIncrement, 1128 _InterlockedOr, 1129 _InterlockedXor, 1130 _InterlockedExchangeAdd_acq, 1131 _InterlockedExchangeAdd_rel, 1132 _InterlockedExchangeAdd_nf, 1133 _InterlockedExchange_acq, 1134 _InterlockedExchange_rel, 1135 _InterlockedExchange_nf, 1136 _InterlockedCompareExchange_acq, 1137 _InterlockedCompareExchange_rel, 1138 _InterlockedCompareExchange_nf, 1139 _InterlockedCompareExchange128, 1140 _InterlockedCompareExchange128_acq, 1141 _InterlockedCompareExchange128_rel, 1142 _InterlockedCompareExchange128_nf, 1143 _InterlockedOr_acq, 1144 _InterlockedOr_rel, 1145 _InterlockedOr_nf, 1146 _InterlockedXor_acq, 1147 _InterlockedXor_rel, 1148 _InterlockedXor_nf, 1149 _InterlockedAnd_acq, 1150 _InterlockedAnd_rel, 1151 _InterlockedAnd_nf, 1152 _InterlockedIncrement_acq, 1153 _InterlockedIncrement_rel, 1154 _InterlockedIncrement_nf, 1155 _InterlockedDecrement_acq, 1156 _InterlockedDecrement_rel, 1157 _InterlockedDecrement_nf, 1158 __fastfail, 1159 }; 1160 1161 static Optional<CodeGenFunction::MSVCIntrin> 1162 translateArmToMsvcIntrin(unsigned BuiltinID) { 1163 using MSVCIntrin = CodeGenFunction::MSVCIntrin; 1164 switch (BuiltinID) { 1165 default: 1166 return None; 1167 case ARM::BI_BitScanForward: 1168 case ARM::BI_BitScanForward64: 1169 return MSVCIntrin::_BitScanForward; 1170 case ARM::BI_BitScanReverse: 1171 case ARM::BI_BitScanReverse64: 1172 return MSVCIntrin::_BitScanReverse; 1173 case ARM::BI_InterlockedAnd64: 1174 return MSVCIntrin::_InterlockedAnd; 1175 case ARM::BI_InterlockedExchange64: 1176 return MSVCIntrin::_InterlockedExchange; 1177 case ARM::BI_InterlockedExchangeAdd64: 1178 return MSVCIntrin::_InterlockedExchangeAdd; 1179 case ARM::BI_InterlockedExchangeSub64: 1180 return MSVCIntrin::_InterlockedExchangeSub; 1181 case ARM::BI_InterlockedOr64: 1182 return MSVCIntrin::_InterlockedOr; 1183 case ARM::BI_InterlockedXor64: 1184 return MSVCIntrin::_InterlockedXor; 1185 case ARM::BI_InterlockedDecrement64: 1186 return MSVCIntrin::_InterlockedDecrement; 1187 case ARM::BI_InterlockedIncrement64: 1188 return MSVCIntrin::_InterlockedIncrement; 1189 case ARM::BI_InterlockedExchangeAdd8_acq: 1190 case ARM::BI_InterlockedExchangeAdd16_acq: 1191 case ARM::BI_InterlockedExchangeAdd_acq: 1192 case ARM::BI_InterlockedExchangeAdd64_acq: 1193 return MSVCIntrin::_InterlockedExchangeAdd_acq; 1194 case ARM::BI_InterlockedExchangeAdd8_rel: 1195 case ARM::BI_InterlockedExchangeAdd16_rel: 1196 case ARM::BI_InterlockedExchangeAdd_rel: 1197 case ARM::BI_InterlockedExchangeAdd64_rel: 1198 return MSVCIntrin::_InterlockedExchangeAdd_rel; 1199 case ARM::BI_InterlockedExchangeAdd8_nf: 1200 case ARM::BI_InterlockedExchangeAdd16_nf: 1201 case ARM::BI_InterlockedExchangeAdd_nf: 1202 case ARM::BI_InterlockedExchangeAdd64_nf: 1203 return MSVCIntrin::_InterlockedExchangeAdd_nf; 1204 case ARM::BI_InterlockedExchange8_acq: 1205 case ARM::BI_InterlockedExchange16_acq: 1206 case ARM::BI_InterlockedExchange_acq: 1207 case ARM::BI_InterlockedExchange64_acq: 1208 return MSVCIntrin::_InterlockedExchange_acq; 1209 case ARM::BI_InterlockedExchange8_rel: 1210 case ARM::BI_InterlockedExchange16_rel: 1211 case ARM::BI_InterlockedExchange_rel: 1212 case ARM::BI_InterlockedExchange64_rel: 1213 return MSVCIntrin::_InterlockedExchange_rel; 1214 case ARM::BI_InterlockedExchange8_nf: 1215 case ARM::BI_InterlockedExchange16_nf: 1216 case ARM::BI_InterlockedExchange_nf: 1217 case ARM::BI_InterlockedExchange64_nf: 1218 return MSVCIntrin::_InterlockedExchange_nf; 1219 case ARM::BI_InterlockedCompareExchange8_acq: 1220 case ARM::BI_InterlockedCompareExchange16_acq: 1221 case ARM::BI_InterlockedCompareExchange_acq: 1222 case ARM::BI_InterlockedCompareExchange64_acq: 1223 return MSVCIntrin::_InterlockedCompareExchange_acq; 1224 case ARM::BI_InterlockedCompareExchange8_rel: 1225 case ARM::BI_InterlockedCompareExchange16_rel: 1226 case ARM::BI_InterlockedCompareExchange_rel: 1227 case ARM::BI_InterlockedCompareExchange64_rel: 1228 return MSVCIntrin::_InterlockedCompareExchange_rel; 1229 case ARM::BI_InterlockedCompareExchange8_nf: 1230 case ARM::BI_InterlockedCompareExchange16_nf: 1231 case ARM::BI_InterlockedCompareExchange_nf: 1232 case ARM::BI_InterlockedCompareExchange64_nf: 1233 return MSVCIntrin::_InterlockedCompareExchange_nf; 1234 case ARM::BI_InterlockedOr8_acq: 1235 case ARM::BI_InterlockedOr16_acq: 1236 case ARM::BI_InterlockedOr_acq: 1237 case ARM::BI_InterlockedOr64_acq: 1238 return MSVCIntrin::_InterlockedOr_acq; 1239 case ARM::BI_InterlockedOr8_rel: 1240 case ARM::BI_InterlockedOr16_rel: 1241 case ARM::BI_InterlockedOr_rel: 1242 case ARM::BI_InterlockedOr64_rel: 1243 return MSVCIntrin::_InterlockedOr_rel; 1244 case ARM::BI_InterlockedOr8_nf: 1245 case ARM::BI_InterlockedOr16_nf: 1246 case ARM::BI_InterlockedOr_nf: 1247 case ARM::BI_InterlockedOr64_nf: 1248 return MSVCIntrin::_InterlockedOr_nf; 1249 case ARM::BI_InterlockedXor8_acq: 1250 case ARM::BI_InterlockedXor16_acq: 1251 case ARM::BI_InterlockedXor_acq: 1252 case ARM::BI_InterlockedXor64_acq: 1253 return MSVCIntrin::_InterlockedXor_acq; 1254 case ARM::BI_InterlockedXor8_rel: 1255 case ARM::BI_InterlockedXor16_rel: 1256 case ARM::BI_InterlockedXor_rel: 1257 case ARM::BI_InterlockedXor64_rel: 1258 return MSVCIntrin::_InterlockedXor_rel; 1259 case ARM::BI_InterlockedXor8_nf: 1260 case ARM::BI_InterlockedXor16_nf: 1261 case ARM::BI_InterlockedXor_nf: 1262 case ARM::BI_InterlockedXor64_nf: 1263 return MSVCIntrin::_InterlockedXor_nf; 1264 case ARM::BI_InterlockedAnd8_acq: 1265 case ARM::BI_InterlockedAnd16_acq: 1266 case ARM::BI_InterlockedAnd_acq: 1267 case ARM::BI_InterlockedAnd64_acq: 1268 return MSVCIntrin::_InterlockedAnd_acq; 1269 case ARM::BI_InterlockedAnd8_rel: 1270 case ARM::BI_InterlockedAnd16_rel: 1271 case ARM::BI_InterlockedAnd_rel: 1272 case ARM::BI_InterlockedAnd64_rel: 1273 return MSVCIntrin::_InterlockedAnd_rel; 1274 case ARM::BI_InterlockedAnd8_nf: 1275 case ARM::BI_InterlockedAnd16_nf: 1276 case ARM::BI_InterlockedAnd_nf: 1277 case ARM::BI_InterlockedAnd64_nf: 1278 return MSVCIntrin::_InterlockedAnd_nf; 1279 case ARM::BI_InterlockedIncrement16_acq: 1280 case ARM::BI_InterlockedIncrement_acq: 1281 case ARM::BI_InterlockedIncrement64_acq: 1282 return MSVCIntrin::_InterlockedIncrement_acq; 1283 case ARM::BI_InterlockedIncrement16_rel: 1284 case ARM::BI_InterlockedIncrement_rel: 1285 case ARM::BI_InterlockedIncrement64_rel: 1286 return MSVCIntrin::_InterlockedIncrement_rel; 1287 case ARM::BI_InterlockedIncrement16_nf: 1288 case ARM::BI_InterlockedIncrement_nf: 1289 case ARM::BI_InterlockedIncrement64_nf: 1290 return MSVCIntrin::_InterlockedIncrement_nf; 1291 case ARM::BI_InterlockedDecrement16_acq: 1292 case ARM::BI_InterlockedDecrement_acq: 1293 case ARM::BI_InterlockedDecrement64_acq: 1294 return MSVCIntrin::_InterlockedDecrement_acq; 1295 case ARM::BI_InterlockedDecrement16_rel: 1296 case ARM::BI_InterlockedDecrement_rel: 1297 case ARM::BI_InterlockedDecrement64_rel: 1298 return MSVCIntrin::_InterlockedDecrement_rel; 1299 case ARM::BI_InterlockedDecrement16_nf: 1300 case ARM::BI_InterlockedDecrement_nf: 1301 case ARM::BI_InterlockedDecrement64_nf: 1302 return MSVCIntrin::_InterlockedDecrement_nf; 1303 } 1304 llvm_unreachable("must return from switch"); 1305 } 1306 1307 static Optional<CodeGenFunction::MSVCIntrin> 1308 translateAarch64ToMsvcIntrin(unsigned BuiltinID) { 1309 using MSVCIntrin = CodeGenFunction::MSVCIntrin; 1310 switch (BuiltinID) { 1311 default: 1312 return None; 1313 case AArch64::BI_BitScanForward: 1314 case AArch64::BI_BitScanForward64: 1315 return MSVCIntrin::_BitScanForward; 1316 case AArch64::BI_BitScanReverse: 1317 case AArch64::BI_BitScanReverse64: 1318 return MSVCIntrin::_BitScanReverse; 1319 case AArch64::BI_InterlockedAnd64: 1320 return MSVCIntrin::_InterlockedAnd; 1321 case AArch64::BI_InterlockedExchange64: 1322 return MSVCIntrin::_InterlockedExchange; 1323 case AArch64::BI_InterlockedExchangeAdd64: 1324 return MSVCIntrin::_InterlockedExchangeAdd; 1325 case AArch64::BI_InterlockedExchangeSub64: 1326 return MSVCIntrin::_InterlockedExchangeSub; 1327 case AArch64::BI_InterlockedOr64: 1328 return MSVCIntrin::_InterlockedOr; 1329 case AArch64::BI_InterlockedXor64: 1330 return MSVCIntrin::_InterlockedXor; 1331 case AArch64::BI_InterlockedDecrement64: 1332 return MSVCIntrin::_InterlockedDecrement; 1333 case AArch64::BI_InterlockedIncrement64: 1334 return MSVCIntrin::_InterlockedIncrement; 1335 case AArch64::BI_InterlockedExchangeAdd8_acq: 1336 case AArch64::BI_InterlockedExchangeAdd16_acq: 1337 case AArch64::BI_InterlockedExchangeAdd_acq: 1338 case AArch64::BI_InterlockedExchangeAdd64_acq: 1339 return MSVCIntrin::_InterlockedExchangeAdd_acq; 1340 case AArch64::BI_InterlockedExchangeAdd8_rel: 1341 case AArch64::BI_InterlockedExchangeAdd16_rel: 1342 case AArch64::BI_InterlockedExchangeAdd_rel: 1343 case AArch64::BI_InterlockedExchangeAdd64_rel: 1344 return MSVCIntrin::_InterlockedExchangeAdd_rel; 1345 case AArch64::BI_InterlockedExchangeAdd8_nf: 1346 case AArch64::BI_InterlockedExchangeAdd16_nf: 1347 case AArch64::BI_InterlockedExchangeAdd_nf: 1348 case AArch64::BI_InterlockedExchangeAdd64_nf: 1349 return MSVCIntrin::_InterlockedExchangeAdd_nf; 1350 case AArch64::BI_InterlockedExchange8_acq: 1351 case AArch64::BI_InterlockedExchange16_acq: 1352 case AArch64::BI_InterlockedExchange_acq: 1353 case AArch64::BI_InterlockedExchange64_acq: 1354 return MSVCIntrin::_InterlockedExchange_acq; 1355 case AArch64::BI_InterlockedExchange8_rel: 1356 case AArch64::BI_InterlockedExchange16_rel: 1357 case AArch64::BI_InterlockedExchange_rel: 1358 case AArch64::BI_InterlockedExchange64_rel: 1359 return MSVCIntrin::_InterlockedExchange_rel; 1360 case AArch64::BI_InterlockedExchange8_nf: 1361 case AArch64::BI_InterlockedExchange16_nf: 1362 case AArch64::BI_InterlockedExchange_nf: 1363 case AArch64::BI_InterlockedExchange64_nf: 1364 return MSVCIntrin::_InterlockedExchange_nf; 1365 case AArch64::BI_InterlockedCompareExchange8_acq: 1366 case AArch64::BI_InterlockedCompareExchange16_acq: 1367 case AArch64::BI_InterlockedCompareExchange_acq: 1368 case AArch64::BI_InterlockedCompareExchange64_acq: 1369 return MSVCIntrin::_InterlockedCompareExchange_acq; 1370 case AArch64::BI_InterlockedCompareExchange8_rel: 1371 case AArch64::BI_InterlockedCompareExchange16_rel: 1372 case AArch64::BI_InterlockedCompareExchange_rel: 1373 case AArch64::BI_InterlockedCompareExchange64_rel: 1374 return MSVCIntrin::_InterlockedCompareExchange_rel; 1375 case AArch64::BI_InterlockedCompareExchange8_nf: 1376 case AArch64::BI_InterlockedCompareExchange16_nf: 1377 case AArch64::BI_InterlockedCompareExchange_nf: 1378 case AArch64::BI_InterlockedCompareExchange64_nf: 1379 return MSVCIntrin::_InterlockedCompareExchange_nf; 1380 case AArch64::BI_InterlockedCompareExchange128: 1381 return MSVCIntrin::_InterlockedCompareExchange128; 1382 case AArch64::BI_InterlockedCompareExchange128_acq: 1383 return MSVCIntrin::_InterlockedCompareExchange128_acq; 1384 case AArch64::BI_InterlockedCompareExchange128_nf: 1385 return MSVCIntrin::_InterlockedCompareExchange128_nf; 1386 case AArch64::BI_InterlockedCompareExchange128_rel: 1387 return MSVCIntrin::_InterlockedCompareExchange128_rel; 1388 case AArch64::BI_InterlockedOr8_acq: 1389 case AArch64::BI_InterlockedOr16_acq: 1390 case AArch64::BI_InterlockedOr_acq: 1391 case AArch64::BI_InterlockedOr64_acq: 1392 return MSVCIntrin::_InterlockedOr_acq; 1393 case AArch64::BI_InterlockedOr8_rel: 1394 case AArch64::BI_InterlockedOr16_rel: 1395 case AArch64::BI_InterlockedOr_rel: 1396 case AArch64::BI_InterlockedOr64_rel: 1397 return MSVCIntrin::_InterlockedOr_rel; 1398 case AArch64::BI_InterlockedOr8_nf: 1399 case AArch64::BI_InterlockedOr16_nf: 1400 case AArch64::BI_InterlockedOr_nf: 1401 case AArch64::BI_InterlockedOr64_nf: 1402 return MSVCIntrin::_InterlockedOr_nf; 1403 case AArch64::BI_InterlockedXor8_acq: 1404 case AArch64::BI_InterlockedXor16_acq: 1405 case AArch64::BI_InterlockedXor_acq: 1406 case AArch64::BI_InterlockedXor64_acq: 1407 return MSVCIntrin::_InterlockedXor_acq; 1408 case AArch64::BI_InterlockedXor8_rel: 1409 case AArch64::BI_InterlockedXor16_rel: 1410 case AArch64::BI_InterlockedXor_rel: 1411 case AArch64::BI_InterlockedXor64_rel: 1412 return MSVCIntrin::_InterlockedXor_rel; 1413 case AArch64::BI_InterlockedXor8_nf: 1414 case AArch64::BI_InterlockedXor16_nf: 1415 case AArch64::BI_InterlockedXor_nf: 1416 case AArch64::BI_InterlockedXor64_nf: 1417 return MSVCIntrin::_InterlockedXor_nf; 1418 case AArch64::BI_InterlockedAnd8_acq: 1419 case AArch64::BI_InterlockedAnd16_acq: 1420 case AArch64::BI_InterlockedAnd_acq: 1421 case AArch64::BI_InterlockedAnd64_acq: 1422 return MSVCIntrin::_InterlockedAnd_acq; 1423 case AArch64::BI_InterlockedAnd8_rel: 1424 case AArch64::BI_InterlockedAnd16_rel: 1425 case AArch64::BI_InterlockedAnd_rel: 1426 case AArch64::BI_InterlockedAnd64_rel: 1427 return MSVCIntrin::_InterlockedAnd_rel; 1428 case AArch64::BI_InterlockedAnd8_nf: 1429 case AArch64::BI_InterlockedAnd16_nf: 1430 case AArch64::BI_InterlockedAnd_nf: 1431 case AArch64::BI_InterlockedAnd64_nf: 1432 return MSVCIntrin::_InterlockedAnd_nf; 1433 case AArch64::BI_InterlockedIncrement16_acq: 1434 case AArch64::BI_InterlockedIncrement_acq: 1435 case AArch64::BI_InterlockedIncrement64_acq: 1436 return MSVCIntrin::_InterlockedIncrement_acq; 1437 case AArch64::BI_InterlockedIncrement16_rel: 1438 case AArch64::BI_InterlockedIncrement_rel: 1439 case AArch64::BI_InterlockedIncrement64_rel: 1440 return MSVCIntrin::_InterlockedIncrement_rel; 1441 case AArch64::BI_InterlockedIncrement16_nf: 1442 case AArch64::BI_InterlockedIncrement_nf: 1443 case AArch64::BI_InterlockedIncrement64_nf: 1444 return MSVCIntrin::_InterlockedIncrement_nf; 1445 case AArch64::BI_InterlockedDecrement16_acq: 1446 case AArch64::BI_InterlockedDecrement_acq: 1447 case AArch64::BI_InterlockedDecrement64_acq: 1448 return MSVCIntrin::_InterlockedDecrement_acq; 1449 case AArch64::BI_InterlockedDecrement16_rel: 1450 case AArch64::BI_InterlockedDecrement_rel: 1451 case AArch64::BI_InterlockedDecrement64_rel: 1452 return MSVCIntrin::_InterlockedDecrement_rel; 1453 case AArch64::BI_InterlockedDecrement16_nf: 1454 case AArch64::BI_InterlockedDecrement_nf: 1455 case AArch64::BI_InterlockedDecrement64_nf: 1456 return MSVCIntrin::_InterlockedDecrement_nf; 1457 } 1458 llvm_unreachable("must return from switch"); 1459 } 1460 1461 static Optional<CodeGenFunction::MSVCIntrin> 1462 translateX86ToMsvcIntrin(unsigned BuiltinID) { 1463 using MSVCIntrin = CodeGenFunction::MSVCIntrin; 1464 switch (BuiltinID) { 1465 default: 1466 return None; 1467 case clang::X86::BI_BitScanForward: 1468 case clang::X86::BI_BitScanForward64: 1469 return MSVCIntrin::_BitScanForward; 1470 case clang::X86::BI_BitScanReverse: 1471 case clang::X86::BI_BitScanReverse64: 1472 return MSVCIntrin::_BitScanReverse; 1473 case clang::X86::BI_InterlockedAnd64: 1474 return MSVCIntrin::_InterlockedAnd; 1475 case clang::X86::BI_InterlockedCompareExchange128: 1476 return MSVCIntrin::_InterlockedCompareExchange128; 1477 case clang::X86::BI_InterlockedExchange64: 1478 return MSVCIntrin::_InterlockedExchange; 1479 case clang::X86::BI_InterlockedExchangeAdd64: 1480 return MSVCIntrin::_InterlockedExchangeAdd; 1481 case clang::X86::BI_InterlockedExchangeSub64: 1482 return MSVCIntrin::_InterlockedExchangeSub; 1483 case clang::X86::BI_InterlockedOr64: 1484 return MSVCIntrin::_InterlockedOr; 1485 case clang::X86::BI_InterlockedXor64: 1486 return MSVCIntrin::_InterlockedXor; 1487 case clang::X86::BI_InterlockedDecrement64: 1488 return MSVCIntrin::_InterlockedDecrement; 1489 case clang::X86::BI_InterlockedIncrement64: 1490 return MSVCIntrin::_InterlockedIncrement; 1491 } 1492 llvm_unreachable("must return from switch"); 1493 } 1494 1495 // Emit an MSVC intrinsic. Assumes that arguments have *not* been evaluated. 1496 Value *CodeGenFunction::EmitMSVCBuiltinExpr(MSVCIntrin BuiltinID, 1497 const CallExpr *E) { 1498 switch (BuiltinID) { 1499 case MSVCIntrin::_BitScanForward: 1500 case MSVCIntrin::_BitScanReverse: { 1501 Address IndexAddress(EmitPointerWithAlignment(E->getArg(0))); 1502 Value *ArgValue = EmitScalarExpr(E->getArg(1)); 1503 1504 llvm::Type *ArgType = ArgValue->getType(); 1505 llvm::Type *IndexType = IndexAddress.getElementType(); 1506 llvm::Type *ResultType = ConvertType(E->getType()); 1507 1508 Value *ArgZero = llvm::Constant::getNullValue(ArgType); 1509 Value *ResZero = llvm::Constant::getNullValue(ResultType); 1510 Value *ResOne = llvm::ConstantInt::get(ResultType, 1); 1511 1512 BasicBlock *Begin = Builder.GetInsertBlock(); 1513 BasicBlock *End = createBasicBlock("bitscan_end", this->CurFn); 1514 Builder.SetInsertPoint(End); 1515 PHINode *Result = Builder.CreatePHI(ResultType, 2, "bitscan_result"); 1516 1517 Builder.SetInsertPoint(Begin); 1518 Value *IsZero = Builder.CreateICmpEQ(ArgValue, ArgZero); 1519 BasicBlock *NotZero = createBasicBlock("bitscan_not_zero", this->CurFn); 1520 Builder.CreateCondBr(IsZero, End, NotZero); 1521 Result->addIncoming(ResZero, Begin); 1522 1523 Builder.SetInsertPoint(NotZero); 1524 1525 if (BuiltinID == MSVCIntrin::_BitScanForward) { 1526 Function *F = CGM.getIntrinsic(Intrinsic::cttz, ArgType); 1527 Value *ZeroCount = Builder.CreateCall(F, {ArgValue, Builder.getTrue()}); 1528 ZeroCount = Builder.CreateIntCast(ZeroCount, IndexType, false); 1529 Builder.CreateStore(ZeroCount, IndexAddress, false); 1530 } else { 1531 unsigned ArgWidth = cast<llvm::IntegerType>(ArgType)->getBitWidth(); 1532 Value *ArgTypeLastIndex = llvm::ConstantInt::get(IndexType, ArgWidth - 1); 1533 1534 Function *F = CGM.getIntrinsic(Intrinsic::ctlz, ArgType); 1535 Value *ZeroCount = Builder.CreateCall(F, {ArgValue, Builder.getTrue()}); 1536 ZeroCount = Builder.CreateIntCast(ZeroCount, IndexType, false); 1537 Value *Index = Builder.CreateNSWSub(ArgTypeLastIndex, ZeroCount); 1538 Builder.CreateStore(Index, IndexAddress, false); 1539 } 1540 Builder.CreateBr(End); 1541 Result->addIncoming(ResOne, NotZero); 1542 1543 Builder.SetInsertPoint(End); 1544 return Result; 1545 } 1546 case MSVCIntrin::_InterlockedAnd: 1547 return MakeBinaryAtomicValue(*this, AtomicRMWInst::And, E); 1548 case MSVCIntrin::_InterlockedExchange: 1549 return MakeBinaryAtomicValue(*this, AtomicRMWInst::Xchg, E); 1550 case MSVCIntrin::_InterlockedExchangeAdd: 1551 return MakeBinaryAtomicValue(*this, AtomicRMWInst::Add, E); 1552 case MSVCIntrin::_InterlockedExchangeSub: 1553 return MakeBinaryAtomicValue(*this, AtomicRMWInst::Sub, E); 1554 case MSVCIntrin::_InterlockedOr: 1555 return MakeBinaryAtomicValue(*this, AtomicRMWInst::Or, E); 1556 case MSVCIntrin::_InterlockedXor: 1557 return MakeBinaryAtomicValue(*this, AtomicRMWInst::Xor, E); 1558 case MSVCIntrin::_InterlockedExchangeAdd_acq: 1559 return MakeBinaryAtomicValue(*this, AtomicRMWInst::Add, E, 1560 AtomicOrdering::Acquire); 1561 case MSVCIntrin::_InterlockedExchangeAdd_rel: 1562 return MakeBinaryAtomicValue(*this, AtomicRMWInst::Add, E, 1563 AtomicOrdering::Release); 1564 case MSVCIntrin::_InterlockedExchangeAdd_nf: 1565 return MakeBinaryAtomicValue(*this, AtomicRMWInst::Add, E, 1566 AtomicOrdering::Monotonic); 1567 case MSVCIntrin::_InterlockedExchange_acq: 1568 return MakeBinaryAtomicValue(*this, AtomicRMWInst::Xchg, E, 1569 AtomicOrdering::Acquire); 1570 case MSVCIntrin::_InterlockedExchange_rel: 1571 return MakeBinaryAtomicValue(*this, AtomicRMWInst::Xchg, E, 1572 AtomicOrdering::Release); 1573 case MSVCIntrin::_InterlockedExchange_nf: 1574 return MakeBinaryAtomicValue(*this, AtomicRMWInst::Xchg, E, 1575 AtomicOrdering::Monotonic); 1576 case MSVCIntrin::_InterlockedCompareExchange_acq: 1577 return EmitAtomicCmpXchgForMSIntrin(*this, E, AtomicOrdering::Acquire); 1578 case MSVCIntrin::_InterlockedCompareExchange_rel: 1579 return EmitAtomicCmpXchgForMSIntrin(*this, E, AtomicOrdering::Release); 1580 case MSVCIntrin::_InterlockedCompareExchange_nf: 1581 return EmitAtomicCmpXchgForMSIntrin(*this, E, AtomicOrdering::Monotonic); 1582 case MSVCIntrin::_InterlockedCompareExchange128: 1583 return EmitAtomicCmpXchg128ForMSIntrin( 1584 *this, E, AtomicOrdering::SequentiallyConsistent); 1585 case MSVCIntrin::_InterlockedCompareExchange128_acq: 1586 return EmitAtomicCmpXchg128ForMSIntrin(*this, E, AtomicOrdering::Acquire); 1587 case MSVCIntrin::_InterlockedCompareExchange128_rel: 1588 return EmitAtomicCmpXchg128ForMSIntrin(*this, E, AtomicOrdering::Release); 1589 case MSVCIntrin::_InterlockedCompareExchange128_nf: 1590 return EmitAtomicCmpXchg128ForMSIntrin(*this, E, AtomicOrdering::Monotonic); 1591 case MSVCIntrin::_InterlockedOr_acq: 1592 return MakeBinaryAtomicValue(*this, AtomicRMWInst::Or, E, 1593 AtomicOrdering::Acquire); 1594 case MSVCIntrin::_InterlockedOr_rel: 1595 return MakeBinaryAtomicValue(*this, AtomicRMWInst::Or, E, 1596 AtomicOrdering::Release); 1597 case MSVCIntrin::_InterlockedOr_nf: 1598 return MakeBinaryAtomicValue(*this, AtomicRMWInst::Or, E, 1599 AtomicOrdering::Monotonic); 1600 case MSVCIntrin::_InterlockedXor_acq: 1601 return MakeBinaryAtomicValue(*this, AtomicRMWInst::Xor, E, 1602 AtomicOrdering::Acquire); 1603 case MSVCIntrin::_InterlockedXor_rel: 1604 return MakeBinaryAtomicValue(*this, AtomicRMWInst::Xor, E, 1605 AtomicOrdering::Release); 1606 case MSVCIntrin::_InterlockedXor_nf: 1607 return MakeBinaryAtomicValue(*this, AtomicRMWInst::Xor, E, 1608 AtomicOrdering::Monotonic); 1609 case MSVCIntrin::_InterlockedAnd_acq: 1610 return MakeBinaryAtomicValue(*this, AtomicRMWInst::And, E, 1611 AtomicOrdering::Acquire); 1612 case MSVCIntrin::_InterlockedAnd_rel: 1613 return MakeBinaryAtomicValue(*this, AtomicRMWInst::And, E, 1614 AtomicOrdering::Release); 1615 case MSVCIntrin::_InterlockedAnd_nf: 1616 return MakeBinaryAtomicValue(*this, AtomicRMWInst::And, E, 1617 AtomicOrdering::Monotonic); 1618 case MSVCIntrin::_InterlockedIncrement_acq: 1619 return EmitAtomicIncrementValue(*this, E, AtomicOrdering::Acquire); 1620 case MSVCIntrin::_InterlockedIncrement_rel: 1621 return EmitAtomicIncrementValue(*this, E, AtomicOrdering::Release); 1622 case MSVCIntrin::_InterlockedIncrement_nf: 1623 return EmitAtomicIncrementValue(*this, E, AtomicOrdering::Monotonic); 1624 case MSVCIntrin::_InterlockedDecrement_acq: 1625 return EmitAtomicDecrementValue(*this, E, AtomicOrdering::Acquire); 1626 case MSVCIntrin::_InterlockedDecrement_rel: 1627 return EmitAtomicDecrementValue(*this, E, AtomicOrdering::Release); 1628 case MSVCIntrin::_InterlockedDecrement_nf: 1629 return EmitAtomicDecrementValue(*this, E, AtomicOrdering::Monotonic); 1630 1631 case MSVCIntrin::_InterlockedDecrement: 1632 return EmitAtomicDecrementValue(*this, E); 1633 case MSVCIntrin::_InterlockedIncrement: 1634 return EmitAtomicIncrementValue(*this, E); 1635 1636 case MSVCIntrin::__fastfail: { 1637 // Request immediate process termination from the kernel. The instruction 1638 // sequences to do this are documented on MSDN: 1639 // https://msdn.microsoft.com/en-us/library/dn774154.aspx 1640 llvm::Triple::ArchType ISA = getTarget().getTriple().getArch(); 1641 StringRef Asm, Constraints; 1642 switch (ISA) { 1643 default: 1644 ErrorUnsupported(E, "__fastfail call for this architecture"); 1645 break; 1646 case llvm::Triple::x86: 1647 case llvm::Triple::x86_64: 1648 Asm = "int $$0x29"; 1649 Constraints = "{cx}"; 1650 break; 1651 case llvm::Triple::thumb: 1652 Asm = "udf #251"; 1653 Constraints = "{r0}"; 1654 break; 1655 case llvm::Triple::aarch64: 1656 Asm = "brk #0xF003"; 1657 Constraints = "{w0}"; 1658 } 1659 llvm::FunctionType *FTy = llvm::FunctionType::get(VoidTy, {Int32Ty}, false); 1660 llvm::InlineAsm *IA = 1661 llvm::InlineAsm::get(FTy, Asm, Constraints, /*hasSideEffects=*/true); 1662 llvm::AttributeList NoReturnAttr = llvm::AttributeList::get( 1663 getLLVMContext(), llvm::AttributeList::FunctionIndex, 1664 llvm::Attribute::NoReturn); 1665 llvm::CallInst *CI = Builder.CreateCall(IA, EmitScalarExpr(E->getArg(0))); 1666 CI->setAttributes(NoReturnAttr); 1667 return CI; 1668 } 1669 } 1670 llvm_unreachable("Incorrect MSVC intrinsic!"); 1671 } 1672 1673 namespace { 1674 // ARC cleanup for __builtin_os_log_format 1675 struct CallObjCArcUse final : EHScopeStack::Cleanup { 1676 CallObjCArcUse(llvm::Value *object) : object(object) {} 1677 llvm::Value *object; 1678 1679 void Emit(CodeGenFunction &CGF, Flags flags) override { 1680 CGF.EmitARCIntrinsicUse(object); 1681 } 1682 }; 1683 } 1684 1685 Value *CodeGenFunction::EmitCheckedArgForBuiltin(const Expr *E, 1686 BuiltinCheckKind Kind) { 1687 assert((Kind == BCK_CLZPassedZero || Kind == BCK_CTZPassedZero) 1688 && "Unsupported builtin check kind"); 1689 1690 Value *ArgValue = EmitScalarExpr(E); 1691 if (!SanOpts.has(SanitizerKind::Builtin) || !getTarget().isCLZForZeroUndef()) 1692 return ArgValue; 1693 1694 SanitizerScope SanScope(this); 1695 Value *Cond = Builder.CreateICmpNE( 1696 ArgValue, llvm::Constant::getNullValue(ArgValue->getType())); 1697 EmitCheck(std::make_pair(Cond, SanitizerKind::Builtin), 1698 SanitizerHandler::InvalidBuiltin, 1699 {EmitCheckSourceLocation(E->getExprLoc()), 1700 llvm::ConstantInt::get(Builder.getInt8Ty(), Kind)}, 1701 None); 1702 return ArgValue; 1703 } 1704 1705 /// Get the argument type for arguments to os_log_helper. 1706 static CanQualType getOSLogArgType(ASTContext &C, int Size) { 1707 QualType UnsignedTy = C.getIntTypeForBitwidth(Size * 8, /*Signed=*/false); 1708 return C.getCanonicalType(UnsignedTy); 1709 } 1710 1711 llvm::Function *CodeGenFunction::generateBuiltinOSLogHelperFunction( 1712 const analyze_os_log::OSLogBufferLayout &Layout, 1713 CharUnits BufferAlignment) { 1714 ASTContext &Ctx = getContext(); 1715 1716 llvm::SmallString<64> Name; 1717 { 1718 raw_svector_ostream OS(Name); 1719 OS << "__os_log_helper"; 1720 OS << "_" << BufferAlignment.getQuantity(); 1721 OS << "_" << int(Layout.getSummaryByte()); 1722 OS << "_" << int(Layout.getNumArgsByte()); 1723 for (const auto &Item : Layout.Items) 1724 OS << "_" << int(Item.getSizeByte()) << "_" 1725 << int(Item.getDescriptorByte()); 1726 } 1727 1728 if (llvm::Function *F = CGM.getModule().getFunction(Name)) 1729 return F; 1730 1731 llvm::SmallVector<QualType, 4> ArgTys; 1732 FunctionArgList Args; 1733 Args.push_back(ImplicitParamDecl::Create( 1734 Ctx, nullptr, SourceLocation(), &Ctx.Idents.get("buffer"), Ctx.VoidPtrTy, 1735 ImplicitParamDecl::Other)); 1736 ArgTys.emplace_back(Ctx.VoidPtrTy); 1737 1738 for (unsigned int I = 0, E = Layout.Items.size(); I < E; ++I) { 1739 char Size = Layout.Items[I].getSizeByte(); 1740 if (!Size) 1741 continue; 1742 1743 QualType ArgTy = getOSLogArgType(Ctx, Size); 1744 Args.push_back(ImplicitParamDecl::Create( 1745 Ctx, nullptr, SourceLocation(), 1746 &Ctx.Idents.get(std::string("arg") + llvm::to_string(I)), ArgTy, 1747 ImplicitParamDecl::Other)); 1748 ArgTys.emplace_back(ArgTy); 1749 } 1750 1751 QualType ReturnTy = Ctx.VoidTy; 1752 1753 // The helper function has linkonce_odr linkage to enable the linker to merge 1754 // identical functions. To ensure the merging always happens, 'noinline' is 1755 // attached to the function when compiling with -Oz. 1756 const CGFunctionInfo &FI = 1757 CGM.getTypes().arrangeBuiltinFunctionDeclaration(ReturnTy, Args); 1758 llvm::FunctionType *FuncTy = CGM.getTypes().GetFunctionType(FI); 1759 llvm::Function *Fn = llvm::Function::Create( 1760 FuncTy, llvm::GlobalValue::LinkOnceODRLinkage, Name, &CGM.getModule()); 1761 Fn->setVisibility(llvm::GlobalValue::HiddenVisibility); 1762 CGM.SetLLVMFunctionAttributes(GlobalDecl(), FI, Fn, /*IsThunk=*/false); 1763 CGM.SetLLVMFunctionAttributesForDefinition(nullptr, Fn); 1764 Fn->setDoesNotThrow(); 1765 1766 // Attach 'noinline' at -Oz. 1767 if (CGM.getCodeGenOpts().OptimizeSize == 2) 1768 Fn->addFnAttr(llvm::Attribute::NoInline); 1769 1770 auto NL = ApplyDebugLocation::CreateEmpty(*this); 1771 StartFunction(GlobalDecl(), ReturnTy, Fn, FI, Args); 1772 1773 // Create a scope with an artificial location for the body of this function. 1774 auto AL = ApplyDebugLocation::CreateArtificial(*this); 1775 1776 CharUnits Offset; 1777 Address BufAddr(Builder.CreateLoad(GetAddrOfLocalVar(Args[0]), "buf"), 1778 BufferAlignment); 1779 Builder.CreateStore(Builder.getInt8(Layout.getSummaryByte()), 1780 Builder.CreateConstByteGEP(BufAddr, Offset++, "summary")); 1781 Builder.CreateStore(Builder.getInt8(Layout.getNumArgsByte()), 1782 Builder.CreateConstByteGEP(BufAddr, Offset++, "numArgs")); 1783 1784 unsigned I = 1; 1785 for (const auto &Item : Layout.Items) { 1786 Builder.CreateStore( 1787 Builder.getInt8(Item.getDescriptorByte()), 1788 Builder.CreateConstByteGEP(BufAddr, Offset++, "argDescriptor")); 1789 Builder.CreateStore( 1790 Builder.getInt8(Item.getSizeByte()), 1791 Builder.CreateConstByteGEP(BufAddr, Offset++, "argSize")); 1792 1793 CharUnits Size = Item.size(); 1794 if (!Size.getQuantity()) 1795 continue; 1796 1797 Address Arg = GetAddrOfLocalVar(Args[I]); 1798 Address Addr = Builder.CreateConstByteGEP(BufAddr, Offset, "argData"); 1799 Addr = Builder.CreateBitCast(Addr, Arg.getPointer()->getType(), 1800 "argDataCast"); 1801 Builder.CreateStore(Builder.CreateLoad(Arg), Addr); 1802 Offset += Size; 1803 ++I; 1804 } 1805 1806 FinishFunction(); 1807 1808 return Fn; 1809 } 1810 1811 RValue CodeGenFunction::emitBuiltinOSLogFormat(const CallExpr &E) { 1812 assert(E.getNumArgs() >= 2 && 1813 "__builtin_os_log_format takes at least 2 arguments"); 1814 ASTContext &Ctx = getContext(); 1815 analyze_os_log::OSLogBufferLayout Layout; 1816 analyze_os_log::computeOSLogBufferLayout(Ctx, &E, Layout); 1817 Address BufAddr = EmitPointerWithAlignment(E.getArg(0)); 1818 llvm::SmallVector<llvm::Value *, 4> RetainableOperands; 1819 1820 // Ignore argument 1, the format string. It is not currently used. 1821 CallArgList Args; 1822 Args.add(RValue::get(BufAddr.getPointer()), Ctx.VoidPtrTy); 1823 1824 for (const auto &Item : Layout.Items) { 1825 int Size = Item.getSizeByte(); 1826 if (!Size) 1827 continue; 1828 1829 llvm::Value *ArgVal; 1830 1831 if (Item.getKind() == analyze_os_log::OSLogBufferItem::MaskKind) { 1832 uint64_t Val = 0; 1833 for (unsigned I = 0, E = Item.getMaskType().size(); I < E; ++I) 1834 Val |= ((uint64_t)Item.getMaskType()[I]) << I * 8; 1835 ArgVal = llvm::Constant::getIntegerValue(Int64Ty, llvm::APInt(64, Val)); 1836 } else if (const Expr *TheExpr = Item.getExpr()) { 1837 ArgVal = EmitScalarExpr(TheExpr, /*Ignore*/ false); 1838 1839 // If a temporary object that requires destruction after the full 1840 // expression is passed, push a lifetime-extended cleanup to extend its 1841 // lifetime to the end of the enclosing block scope. 1842 auto LifetimeExtendObject = [&](const Expr *E) { 1843 E = E->IgnoreParenCasts(); 1844 // Extend lifetimes of objects returned by function calls and message 1845 // sends. 1846 1847 // FIXME: We should do this in other cases in which temporaries are 1848 // created including arguments of non-ARC types (e.g., C++ 1849 // temporaries). 1850 if (isa<CallExpr>(E) || isa<ObjCMessageExpr>(E)) 1851 return true; 1852 return false; 1853 }; 1854 1855 if (TheExpr->getType()->isObjCRetainableType() && 1856 getLangOpts().ObjCAutoRefCount && LifetimeExtendObject(TheExpr)) { 1857 assert(getEvaluationKind(TheExpr->getType()) == TEK_Scalar && 1858 "Only scalar can be a ObjC retainable type"); 1859 if (!isa<Constant>(ArgVal)) { 1860 CleanupKind Cleanup = getARCCleanupKind(); 1861 QualType Ty = TheExpr->getType(); 1862 Address Alloca = Address::invalid(); 1863 Address Addr = CreateMemTemp(Ty, "os.log.arg", &Alloca); 1864 ArgVal = EmitARCRetain(Ty, ArgVal); 1865 Builder.CreateStore(ArgVal, Addr); 1866 pushLifetimeExtendedDestroy(Cleanup, Alloca, Ty, 1867 CodeGenFunction::destroyARCStrongPrecise, 1868 Cleanup & EHCleanup); 1869 1870 // Push a clang.arc.use call to ensure ARC optimizer knows that the 1871 // argument has to be alive. 1872 if (CGM.getCodeGenOpts().OptimizationLevel != 0) 1873 pushCleanupAfterFullExpr<CallObjCArcUse>(Cleanup, ArgVal); 1874 } 1875 } 1876 } else { 1877 ArgVal = Builder.getInt32(Item.getConstValue().getQuantity()); 1878 } 1879 1880 unsigned ArgValSize = 1881 CGM.getDataLayout().getTypeSizeInBits(ArgVal->getType()); 1882 llvm::IntegerType *IntTy = llvm::Type::getIntNTy(getLLVMContext(), 1883 ArgValSize); 1884 ArgVal = Builder.CreateBitOrPointerCast(ArgVal, IntTy); 1885 CanQualType ArgTy = getOSLogArgType(Ctx, Size); 1886 // If ArgVal has type x86_fp80, zero-extend ArgVal. 1887 ArgVal = Builder.CreateZExtOrBitCast(ArgVal, ConvertType(ArgTy)); 1888 Args.add(RValue::get(ArgVal), ArgTy); 1889 } 1890 1891 const CGFunctionInfo &FI = 1892 CGM.getTypes().arrangeBuiltinFunctionCall(Ctx.VoidTy, Args); 1893 llvm::Function *F = CodeGenFunction(CGM).generateBuiltinOSLogHelperFunction( 1894 Layout, BufAddr.getAlignment()); 1895 EmitCall(FI, CGCallee::forDirect(F), ReturnValueSlot(), Args); 1896 return RValue::get(BufAddr.getPointer()); 1897 } 1898 1899 static bool isSpecialUnsignedMultiplySignedResult( 1900 unsigned BuiltinID, WidthAndSignedness Op1Info, WidthAndSignedness Op2Info, 1901 WidthAndSignedness ResultInfo) { 1902 return BuiltinID == Builtin::BI__builtin_mul_overflow && 1903 Op1Info.Width == Op2Info.Width && Op2Info.Width == ResultInfo.Width && 1904 !Op1Info.Signed && !Op2Info.Signed && ResultInfo.Signed; 1905 } 1906 1907 static RValue EmitCheckedUnsignedMultiplySignedResult( 1908 CodeGenFunction &CGF, const clang::Expr *Op1, WidthAndSignedness Op1Info, 1909 const clang::Expr *Op2, WidthAndSignedness Op2Info, 1910 const clang::Expr *ResultArg, QualType ResultQTy, 1911 WidthAndSignedness ResultInfo) { 1912 assert(isSpecialUnsignedMultiplySignedResult( 1913 Builtin::BI__builtin_mul_overflow, Op1Info, Op2Info, ResultInfo) && 1914 "Cannot specialize this multiply"); 1915 1916 llvm::Value *V1 = CGF.EmitScalarExpr(Op1); 1917 llvm::Value *V2 = CGF.EmitScalarExpr(Op2); 1918 1919 llvm::Value *HasOverflow; 1920 llvm::Value *Result = EmitOverflowIntrinsic( 1921 CGF, llvm::Intrinsic::umul_with_overflow, V1, V2, HasOverflow); 1922 1923 // The intrinsic call will detect overflow when the value is > UINT_MAX, 1924 // however, since the original builtin had a signed result, we need to report 1925 // an overflow when the result is greater than INT_MAX. 1926 auto IntMax = llvm::APInt::getSignedMaxValue(ResultInfo.Width); 1927 llvm::Value *IntMaxValue = llvm::ConstantInt::get(Result->getType(), IntMax); 1928 1929 llvm::Value *IntMaxOverflow = CGF.Builder.CreateICmpUGT(Result, IntMaxValue); 1930 HasOverflow = CGF.Builder.CreateOr(HasOverflow, IntMaxOverflow); 1931 1932 bool isVolatile = 1933 ResultArg->getType()->getPointeeType().isVolatileQualified(); 1934 Address ResultPtr = CGF.EmitPointerWithAlignment(ResultArg); 1935 CGF.Builder.CreateStore(CGF.EmitToMemory(Result, ResultQTy), ResultPtr, 1936 isVolatile); 1937 return RValue::get(HasOverflow); 1938 } 1939 1940 /// Determine if a binop is a checked mixed-sign multiply we can specialize. 1941 static bool isSpecialMixedSignMultiply(unsigned BuiltinID, 1942 WidthAndSignedness Op1Info, 1943 WidthAndSignedness Op2Info, 1944 WidthAndSignedness ResultInfo) { 1945 return BuiltinID == Builtin::BI__builtin_mul_overflow && 1946 std::max(Op1Info.Width, Op2Info.Width) >= ResultInfo.Width && 1947 Op1Info.Signed != Op2Info.Signed; 1948 } 1949 1950 /// Emit a checked mixed-sign multiply. This is a cheaper specialization of 1951 /// the generic checked-binop irgen. 1952 static RValue 1953 EmitCheckedMixedSignMultiply(CodeGenFunction &CGF, const clang::Expr *Op1, 1954 WidthAndSignedness Op1Info, const clang::Expr *Op2, 1955 WidthAndSignedness Op2Info, 1956 const clang::Expr *ResultArg, QualType ResultQTy, 1957 WidthAndSignedness ResultInfo) { 1958 assert(isSpecialMixedSignMultiply(Builtin::BI__builtin_mul_overflow, Op1Info, 1959 Op2Info, ResultInfo) && 1960 "Not a mixed-sign multipliction we can specialize"); 1961 1962 // Emit the signed and unsigned operands. 1963 const clang::Expr *SignedOp = Op1Info.Signed ? Op1 : Op2; 1964 const clang::Expr *UnsignedOp = Op1Info.Signed ? Op2 : Op1; 1965 llvm::Value *Signed = CGF.EmitScalarExpr(SignedOp); 1966 llvm::Value *Unsigned = CGF.EmitScalarExpr(UnsignedOp); 1967 unsigned SignedOpWidth = Op1Info.Signed ? Op1Info.Width : Op2Info.Width; 1968 unsigned UnsignedOpWidth = Op1Info.Signed ? Op2Info.Width : Op1Info.Width; 1969 1970 // One of the operands may be smaller than the other. If so, [s|z]ext it. 1971 if (SignedOpWidth < UnsignedOpWidth) 1972 Signed = CGF.Builder.CreateSExt(Signed, Unsigned->getType(), "op.sext"); 1973 if (UnsignedOpWidth < SignedOpWidth) 1974 Unsigned = CGF.Builder.CreateZExt(Unsigned, Signed->getType(), "op.zext"); 1975 1976 llvm::Type *OpTy = Signed->getType(); 1977 llvm::Value *Zero = llvm::Constant::getNullValue(OpTy); 1978 Address ResultPtr = CGF.EmitPointerWithAlignment(ResultArg); 1979 llvm::Type *ResTy = ResultPtr.getElementType(); 1980 unsigned OpWidth = std::max(Op1Info.Width, Op2Info.Width); 1981 1982 // Take the absolute value of the signed operand. 1983 llvm::Value *IsNegative = CGF.Builder.CreateICmpSLT(Signed, Zero); 1984 llvm::Value *AbsOfNegative = CGF.Builder.CreateSub(Zero, Signed); 1985 llvm::Value *AbsSigned = 1986 CGF.Builder.CreateSelect(IsNegative, AbsOfNegative, Signed); 1987 1988 // Perform a checked unsigned multiplication. 1989 llvm::Value *UnsignedOverflow; 1990 llvm::Value *UnsignedResult = 1991 EmitOverflowIntrinsic(CGF, llvm::Intrinsic::umul_with_overflow, AbsSigned, 1992 Unsigned, UnsignedOverflow); 1993 1994 llvm::Value *Overflow, *Result; 1995 if (ResultInfo.Signed) { 1996 // Signed overflow occurs if the result is greater than INT_MAX or lesser 1997 // than INT_MIN, i.e when |Result| > (INT_MAX + IsNegative). 1998 auto IntMax = 1999 llvm::APInt::getSignedMaxValue(ResultInfo.Width).zextOrSelf(OpWidth); 2000 llvm::Value *MaxResult = 2001 CGF.Builder.CreateAdd(llvm::ConstantInt::get(OpTy, IntMax), 2002 CGF.Builder.CreateZExt(IsNegative, OpTy)); 2003 llvm::Value *SignedOverflow = 2004 CGF.Builder.CreateICmpUGT(UnsignedResult, MaxResult); 2005 Overflow = CGF.Builder.CreateOr(UnsignedOverflow, SignedOverflow); 2006 2007 // Prepare the signed result (possibly by negating it). 2008 llvm::Value *NegativeResult = CGF.Builder.CreateNeg(UnsignedResult); 2009 llvm::Value *SignedResult = 2010 CGF.Builder.CreateSelect(IsNegative, NegativeResult, UnsignedResult); 2011 Result = CGF.Builder.CreateTrunc(SignedResult, ResTy); 2012 } else { 2013 // Unsigned overflow occurs if the result is < 0 or greater than UINT_MAX. 2014 llvm::Value *Underflow = CGF.Builder.CreateAnd( 2015 IsNegative, CGF.Builder.CreateIsNotNull(UnsignedResult)); 2016 Overflow = CGF.Builder.CreateOr(UnsignedOverflow, Underflow); 2017 if (ResultInfo.Width < OpWidth) { 2018 auto IntMax = 2019 llvm::APInt::getMaxValue(ResultInfo.Width).zext(OpWidth); 2020 llvm::Value *TruncOverflow = CGF.Builder.CreateICmpUGT( 2021 UnsignedResult, llvm::ConstantInt::get(OpTy, IntMax)); 2022 Overflow = CGF.Builder.CreateOr(Overflow, TruncOverflow); 2023 } 2024 2025 // Negate the product if it would be negative in infinite precision. 2026 Result = CGF.Builder.CreateSelect( 2027 IsNegative, CGF.Builder.CreateNeg(UnsignedResult), UnsignedResult); 2028 2029 Result = CGF.Builder.CreateTrunc(Result, ResTy); 2030 } 2031 assert(Overflow && Result && "Missing overflow or result"); 2032 2033 bool isVolatile = 2034 ResultArg->getType()->getPointeeType().isVolatileQualified(); 2035 CGF.Builder.CreateStore(CGF.EmitToMemory(Result, ResultQTy), ResultPtr, 2036 isVolatile); 2037 return RValue::get(Overflow); 2038 } 2039 2040 static llvm::Value *dumpRecord(CodeGenFunction &CGF, QualType RType, 2041 Value *&RecordPtr, CharUnits Align, 2042 llvm::FunctionCallee Func, int Lvl) { 2043 ASTContext &Context = CGF.getContext(); 2044 RecordDecl *RD = RType->castAs<RecordType>()->getDecl()->getDefinition(); 2045 std::string Pad = std::string(Lvl * 4, ' '); 2046 2047 Value *GString = 2048 CGF.Builder.CreateGlobalStringPtr(RType.getAsString() + " {\n"); 2049 Value *Res = CGF.Builder.CreateCall(Func, {GString}); 2050 2051 static llvm::DenseMap<QualType, const char *> Types; 2052 if (Types.empty()) { 2053 Types[Context.CharTy] = "%c"; 2054 Types[Context.BoolTy] = "%d"; 2055 Types[Context.SignedCharTy] = "%hhd"; 2056 Types[Context.UnsignedCharTy] = "%hhu"; 2057 Types[Context.IntTy] = "%d"; 2058 Types[Context.UnsignedIntTy] = "%u"; 2059 Types[Context.LongTy] = "%ld"; 2060 Types[Context.UnsignedLongTy] = "%lu"; 2061 Types[Context.LongLongTy] = "%lld"; 2062 Types[Context.UnsignedLongLongTy] = "%llu"; 2063 Types[Context.ShortTy] = "%hd"; 2064 Types[Context.UnsignedShortTy] = "%hu"; 2065 Types[Context.VoidPtrTy] = "%p"; 2066 Types[Context.FloatTy] = "%f"; 2067 Types[Context.DoubleTy] = "%f"; 2068 Types[Context.LongDoubleTy] = "%Lf"; 2069 Types[Context.getPointerType(Context.CharTy)] = "%s"; 2070 Types[Context.getPointerType(Context.getConstType(Context.CharTy))] = "%s"; 2071 } 2072 2073 for (const auto *FD : RD->fields()) { 2074 Value *FieldPtr = RecordPtr; 2075 if (RD->isUnion()) 2076 FieldPtr = CGF.Builder.CreatePointerCast( 2077 FieldPtr, CGF.ConvertType(Context.getPointerType(FD->getType()))); 2078 else 2079 FieldPtr = CGF.Builder.CreateStructGEP(CGF.ConvertType(RType), FieldPtr, 2080 FD->getFieldIndex()); 2081 2082 GString = CGF.Builder.CreateGlobalStringPtr( 2083 llvm::Twine(Pad) 2084 .concat(FD->getType().getAsString()) 2085 .concat(llvm::Twine(' ')) 2086 .concat(FD->getNameAsString()) 2087 .concat(" : ") 2088 .str()); 2089 Value *TmpRes = CGF.Builder.CreateCall(Func, {GString}); 2090 Res = CGF.Builder.CreateAdd(Res, TmpRes); 2091 2092 QualType CanonicalType = 2093 FD->getType().getUnqualifiedType().getCanonicalType(); 2094 2095 // We check whether we are in a recursive type 2096 if (CanonicalType->isRecordType()) { 2097 TmpRes = dumpRecord(CGF, CanonicalType, FieldPtr, Align, Func, Lvl + 1); 2098 Res = CGF.Builder.CreateAdd(TmpRes, Res); 2099 continue; 2100 } 2101 2102 // We try to determine the best format to print the current field 2103 llvm::Twine Format = Types.find(CanonicalType) == Types.end() 2104 ? Types[Context.VoidPtrTy] 2105 : Types[CanonicalType]; 2106 2107 Address FieldAddress = Address(FieldPtr, Align); 2108 FieldPtr = CGF.Builder.CreateLoad(FieldAddress); 2109 2110 // FIXME Need to handle bitfield here 2111 GString = CGF.Builder.CreateGlobalStringPtr( 2112 Format.concat(llvm::Twine('\n')).str()); 2113 TmpRes = CGF.Builder.CreateCall(Func, {GString, FieldPtr}); 2114 Res = CGF.Builder.CreateAdd(Res, TmpRes); 2115 } 2116 2117 GString = CGF.Builder.CreateGlobalStringPtr(Pad + "}\n"); 2118 Value *TmpRes = CGF.Builder.CreateCall(Func, {GString}); 2119 Res = CGF.Builder.CreateAdd(Res, TmpRes); 2120 return Res; 2121 } 2122 2123 static bool 2124 TypeRequiresBuiltinLaunderImp(const ASTContext &Ctx, QualType Ty, 2125 llvm::SmallPtrSetImpl<const Decl *> &Seen) { 2126 if (const auto *Arr = Ctx.getAsArrayType(Ty)) 2127 Ty = Ctx.getBaseElementType(Arr); 2128 2129 const auto *Record = Ty->getAsCXXRecordDecl(); 2130 if (!Record) 2131 return false; 2132 2133 // We've already checked this type, or are in the process of checking it. 2134 if (!Seen.insert(Record).second) 2135 return false; 2136 2137 assert(Record->hasDefinition() && 2138 "Incomplete types should already be diagnosed"); 2139 2140 if (Record->isDynamicClass()) 2141 return true; 2142 2143 for (FieldDecl *F : Record->fields()) { 2144 if (TypeRequiresBuiltinLaunderImp(Ctx, F->getType(), Seen)) 2145 return true; 2146 } 2147 return false; 2148 } 2149 2150 /// Determine if the specified type requires laundering by checking if it is a 2151 /// dynamic class type or contains a subobject which is a dynamic class type. 2152 static bool TypeRequiresBuiltinLaunder(CodeGenModule &CGM, QualType Ty) { 2153 if (!CGM.getCodeGenOpts().StrictVTablePointers) 2154 return false; 2155 llvm::SmallPtrSet<const Decl *, 16> Seen; 2156 return TypeRequiresBuiltinLaunderImp(CGM.getContext(), Ty, Seen); 2157 } 2158 2159 RValue CodeGenFunction::emitRotate(const CallExpr *E, bool IsRotateRight) { 2160 llvm::Value *Src = EmitScalarExpr(E->getArg(0)); 2161 llvm::Value *ShiftAmt = EmitScalarExpr(E->getArg(1)); 2162 2163 // The builtin's shift arg may have a different type than the source arg and 2164 // result, but the LLVM intrinsic uses the same type for all values. 2165 llvm::Type *Ty = Src->getType(); 2166 ShiftAmt = Builder.CreateIntCast(ShiftAmt, Ty, false); 2167 2168 // Rotate is a special case of LLVM funnel shift - 1st 2 args are the same. 2169 unsigned IID = IsRotateRight ? Intrinsic::fshr : Intrinsic::fshl; 2170 Function *F = CGM.getIntrinsic(IID, Ty); 2171 return RValue::get(Builder.CreateCall(F, { Src, Src, ShiftAmt })); 2172 } 2173 2174 // Map math builtins for long-double to f128 version. 2175 static unsigned mutateLongDoubleBuiltin(unsigned BuiltinID) { 2176 switch (BuiltinID) { 2177 #define MUTATE_LDBL(func) \ 2178 case Builtin::BI__builtin_##func##l: \ 2179 return Builtin::BI__builtin_##func##f128; 2180 MUTATE_LDBL(sqrt) 2181 MUTATE_LDBL(cbrt) 2182 MUTATE_LDBL(fabs) 2183 MUTATE_LDBL(log) 2184 MUTATE_LDBL(log2) 2185 MUTATE_LDBL(log10) 2186 MUTATE_LDBL(log1p) 2187 MUTATE_LDBL(logb) 2188 MUTATE_LDBL(exp) 2189 MUTATE_LDBL(exp2) 2190 MUTATE_LDBL(expm1) 2191 MUTATE_LDBL(fdim) 2192 MUTATE_LDBL(hypot) 2193 MUTATE_LDBL(ilogb) 2194 MUTATE_LDBL(pow) 2195 MUTATE_LDBL(fmin) 2196 MUTATE_LDBL(fmax) 2197 MUTATE_LDBL(ceil) 2198 MUTATE_LDBL(trunc) 2199 MUTATE_LDBL(rint) 2200 MUTATE_LDBL(nearbyint) 2201 MUTATE_LDBL(round) 2202 MUTATE_LDBL(floor) 2203 MUTATE_LDBL(lround) 2204 MUTATE_LDBL(llround) 2205 MUTATE_LDBL(lrint) 2206 MUTATE_LDBL(llrint) 2207 MUTATE_LDBL(fmod) 2208 MUTATE_LDBL(modf) 2209 MUTATE_LDBL(nan) 2210 MUTATE_LDBL(nans) 2211 MUTATE_LDBL(inf) 2212 MUTATE_LDBL(fma) 2213 MUTATE_LDBL(sin) 2214 MUTATE_LDBL(cos) 2215 MUTATE_LDBL(tan) 2216 MUTATE_LDBL(sinh) 2217 MUTATE_LDBL(cosh) 2218 MUTATE_LDBL(tanh) 2219 MUTATE_LDBL(asin) 2220 MUTATE_LDBL(acos) 2221 MUTATE_LDBL(atan) 2222 MUTATE_LDBL(asinh) 2223 MUTATE_LDBL(acosh) 2224 MUTATE_LDBL(atanh) 2225 MUTATE_LDBL(atan2) 2226 MUTATE_LDBL(erf) 2227 MUTATE_LDBL(erfc) 2228 MUTATE_LDBL(ldexp) 2229 MUTATE_LDBL(frexp) 2230 MUTATE_LDBL(huge_val) 2231 MUTATE_LDBL(copysign) 2232 MUTATE_LDBL(nextafter) 2233 MUTATE_LDBL(nexttoward) 2234 MUTATE_LDBL(remainder) 2235 MUTATE_LDBL(remquo) 2236 MUTATE_LDBL(scalbln) 2237 MUTATE_LDBL(scalbn) 2238 MUTATE_LDBL(tgamma) 2239 MUTATE_LDBL(lgamma) 2240 #undef MUTATE_LDBL 2241 default: 2242 return BuiltinID; 2243 } 2244 } 2245 2246 RValue CodeGenFunction::EmitBuiltinExpr(const GlobalDecl GD, unsigned BuiltinID, 2247 const CallExpr *E, 2248 ReturnValueSlot ReturnValue) { 2249 const FunctionDecl *FD = GD.getDecl()->getAsFunction(); 2250 // See if we can constant fold this builtin. If so, don't emit it at all. 2251 Expr::EvalResult Result; 2252 if (E->EvaluateAsRValue(Result, CGM.getContext()) && 2253 !Result.hasSideEffects()) { 2254 if (Result.Val.isInt()) 2255 return RValue::get(llvm::ConstantInt::get(getLLVMContext(), 2256 Result.Val.getInt())); 2257 if (Result.Val.isFloat()) 2258 return RValue::get(llvm::ConstantFP::get(getLLVMContext(), 2259 Result.Val.getFloat())); 2260 } 2261 2262 // If current long-double semantics is IEEE 128-bit, replace math builtins 2263 // of long-double with f128 equivalent. 2264 // TODO: This mutation should also be applied to other targets other than PPC, 2265 // after backend supports IEEE 128-bit style libcalls. 2266 if (getTarget().getTriple().isPPC64() && 2267 &getTarget().getLongDoubleFormat() == &llvm::APFloat::IEEEquad()) 2268 BuiltinID = mutateLongDoubleBuiltin(BuiltinID); 2269 2270 // If the builtin has been declared explicitly with an assembler label, 2271 // disable the specialized emitting below. Ideally we should communicate the 2272 // rename in IR, or at least avoid generating the intrinsic calls that are 2273 // likely to get lowered to the renamed library functions. 2274 const unsigned BuiltinIDIfNoAsmLabel = 2275 FD->hasAttr<AsmLabelAttr>() ? 0 : BuiltinID; 2276 2277 // There are LLVM math intrinsics/instructions corresponding to math library 2278 // functions except the LLVM op will never set errno while the math library 2279 // might. Also, math builtins have the same semantics as their math library 2280 // twins. Thus, we can transform math library and builtin calls to their 2281 // LLVM counterparts if the call is marked 'const' (known to never set errno). 2282 if (FD->hasAttr<ConstAttr>()) { 2283 switch (BuiltinIDIfNoAsmLabel) { 2284 case Builtin::BIceil: 2285 case Builtin::BIceilf: 2286 case Builtin::BIceill: 2287 case Builtin::BI__builtin_ceil: 2288 case Builtin::BI__builtin_ceilf: 2289 case Builtin::BI__builtin_ceilf16: 2290 case Builtin::BI__builtin_ceill: 2291 case Builtin::BI__builtin_ceilf128: 2292 return RValue::get(emitUnaryMaybeConstrainedFPBuiltin(*this, E, 2293 Intrinsic::ceil, 2294 Intrinsic::experimental_constrained_ceil)); 2295 2296 case Builtin::BIcopysign: 2297 case Builtin::BIcopysignf: 2298 case Builtin::BIcopysignl: 2299 case Builtin::BI__builtin_copysign: 2300 case Builtin::BI__builtin_copysignf: 2301 case Builtin::BI__builtin_copysignf16: 2302 case Builtin::BI__builtin_copysignl: 2303 case Builtin::BI__builtin_copysignf128: 2304 return RValue::get(emitBinaryBuiltin(*this, E, Intrinsic::copysign)); 2305 2306 case Builtin::BIcos: 2307 case Builtin::BIcosf: 2308 case Builtin::BIcosl: 2309 case Builtin::BI__builtin_cos: 2310 case Builtin::BI__builtin_cosf: 2311 case Builtin::BI__builtin_cosf16: 2312 case Builtin::BI__builtin_cosl: 2313 case Builtin::BI__builtin_cosf128: 2314 return RValue::get(emitUnaryMaybeConstrainedFPBuiltin(*this, E, 2315 Intrinsic::cos, 2316 Intrinsic::experimental_constrained_cos)); 2317 2318 case Builtin::BIexp: 2319 case Builtin::BIexpf: 2320 case Builtin::BIexpl: 2321 case Builtin::BI__builtin_exp: 2322 case Builtin::BI__builtin_expf: 2323 case Builtin::BI__builtin_expf16: 2324 case Builtin::BI__builtin_expl: 2325 case Builtin::BI__builtin_expf128: 2326 return RValue::get(emitUnaryMaybeConstrainedFPBuiltin(*this, E, 2327 Intrinsic::exp, 2328 Intrinsic::experimental_constrained_exp)); 2329 2330 case Builtin::BIexp2: 2331 case Builtin::BIexp2f: 2332 case Builtin::BIexp2l: 2333 case Builtin::BI__builtin_exp2: 2334 case Builtin::BI__builtin_exp2f: 2335 case Builtin::BI__builtin_exp2f16: 2336 case Builtin::BI__builtin_exp2l: 2337 case Builtin::BI__builtin_exp2f128: 2338 return RValue::get(emitUnaryMaybeConstrainedFPBuiltin(*this, E, 2339 Intrinsic::exp2, 2340 Intrinsic::experimental_constrained_exp2)); 2341 2342 case Builtin::BIfabs: 2343 case Builtin::BIfabsf: 2344 case Builtin::BIfabsl: 2345 case Builtin::BI__builtin_fabs: 2346 case Builtin::BI__builtin_fabsf: 2347 case Builtin::BI__builtin_fabsf16: 2348 case Builtin::BI__builtin_fabsl: 2349 case Builtin::BI__builtin_fabsf128: 2350 return RValue::get(emitUnaryBuiltin(*this, E, Intrinsic::fabs)); 2351 2352 case Builtin::BIfloor: 2353 case Builtin::BIfloorf: 2354 case Builtin::BIfloorl: 2355 case Builtin::BI__builtin_floor: 2356 case Builtin::BI__builtin_floorf: 2357 case Builtin::BI__builtin_floorf16: 2358 case Builtin::BI__builtin_floorl: 2359 case Builtin::BI__builtin_floorf128: 2360 return RValue::get(emitUnaryMaybeConstrainedFPBuiltin(*this, E, 2361 Intrinsic::floor, 2362 Intrinsic::experimental_constrained_floor)); 2363 2364 case Builtin::BIfma: 2365 case Builtin::BIfmaf: 2366 case Builtin::BIfmal: 2367 case Builtin::BI__builtin_fma: 2368 case Builtin::BI__builtin_fmaf: 2369 case Builtin::BI__builtin_fmaf16: 2370 case Builtin::BI__builtin_fmal: 2371 case Builtin::BI__builtin_fmaf128: 2372 return RValue::get(emitTernaryMaybeConstrainedFPBuiltin(*this, E, 2373 Intrinsic::fma, 2374 Intrinsic::experimental_constrained_fma)); 2375 2376 case Builtin::BIfmax: 2377 case Builtin::BIfmaxf: 2378 case Builtin::BIfmaxl: 2379 case Builtin::BI__builtin_fmax: 2380 case Builtin::BI__builtin_fmaxf: 2381 case Builtin::BI__builtin_fmaxf16: 2382 case Builtin::BI__builtin_fmaxl: 2383 case Builtin::BI__builtin_fmaxf128: 2384 return RValue::get(emitBinaryMaybeConstrainedFPBuiltin(*this, E, 2385 Intrinsic::maxnum, 2386 Intrinsic::experimental_constrained_maxnum)); 2387 2388 case Builtin::BIfmin: 2389 case Builtin::BIfminf: 2390 case Builtin::BIfminl: 2391 case Builtin::BI__builtin_fmin: 2392 case Builtin::BI__builtin_fminf: 2393 case Builtin::BI__builtin_fminf16: 2394 case Builtin::BI__builtin_fminl: 2395 case Builtin::BI__builtin_fminf128: 2396 return RValue::get(emitBinaryMaybeConstrainedFPBuiltin(*this, E, 2397 Intrinsic::minnum, 2398 Intrinsic::experimental_constrained_minnum)); 2399 2400 // fmod() is a special-case. It maps to the frem instruction rather than an 2401 // LLVM intrinsic. 2402 case Builtin::BIfmod: 2403 case Builtin::BIfmodf: 2404 case Builtin::BIfmodl: 2405 case Builtin::BI__builtin_fmod: 2406 case Builtin::BI__builtin_fmodf: 2407 case Builtin::BI__builtin_fmodf16: 2408 case Builtin::BI__builtin_fmodl: 2409 case Builtin::BI__builtin_fmodf128: { 2410 CodeGenFunction::CGFPOptionsRAII FPOptsRAII(*this, E); 2411 Value *Arg1 = EmitScalarExpr(E->getArg(0)); 2412 Value *Arg2 = EmitScalarExpr(E->getArg(1)); 2413 return RValue::get(Builder.CreateFRem(Arg1, Arg2, "fmod")); 2414 } 2415 2416 case Builtin::BIlog: 2417 case Builtin::BIlogf: 2418 case Builtin::BIlogl: 2419 case Builtin::BI__builtin_log: 2420 case Builtin::BI__builtin_logf: 2421 case Builtin::BI__builtin_logf16: 2422 case Builtin::BI__builtin_logl: 2423 case Builtin::BI__builtin_logf128: 2424 return RValue::get(emitUnaryMaybeConstrainedFPBuiltin(*this, E, 2425 Intrinsic::log, 2426 Intrinsic::experimental_constrained_log)); 2427 2428 case Builtin::BIlog10: 2429 case Builtin::BIlog10f: 2430 case Builtin::BIlog10l: 2431 case Builtin::BI__builtin_log10: 2432 case Builtin::BI__builtin_log10f: 2433 case Builtin::BI__builtin_log10f16: 2434 case Builtin::BI__builtin_log10l: 2435 case Builtin::BI__builtin_log10f128: 2436 return RValue::get(emitUnaryMaybeConstrainedFPBuiltin(*this, E, 2437 Intrinsic::log10, 2438 Intrinsic::experimental_constrained_log10)); 2439 2440 case Builtin::BIlog2: 2441 case Builtin::BIlog2f: 2442 case Builtin::BIlog2l: 2443 case Builtin::BI__builtin_log2: 2444 case Builtin::BI__builtin_log2f: 2445 case Builtin::BI__builtin_log2f16: 2446 case Builtin::BI__builtin_log2l: 2447 case Builtin::BI__builtin_log2f128: 2448 return RValue::get(emitUnaryMaybeConstrainedFPBuiltin(*this, E, 2449 Intrinsic::log2, 2450 Intrinsic::experimental_constrained_log2)); 2451 2452 case Builtin::BInearbyint: 2453 case Builtin::BInearbyintf: 2454 case Builtin::BInearbyintl: 2455 case Builtin::BI__builtin_nearbyint: 2456 case Builtin::BI__builtin_nearbyintf: 2457 case Builtin::BI__builtin_nearbyintl: 2458 case Builtin::BI__builtin_nearbyintf128: 2459 return RValue::get(emitUnaryMaybeConstrainedFPBuiltin(*this, E, 2460 Intrinsic::nearbyint, 2461 Intrinsic::experimental_constrained_nearbyint)); 2462 2463 case Builtin::BIpow: 2464 case Builtin::BIpowf: 2465 case Builtin::BIpowl: 2466 case Builtin::BI__builtin_pow: 2467 case Builtin::BI__builtin_powf: 2468 case Builtin::BI__builtin_powf16: 2469 case Builtin::BI__builtin_powl: 2470 case Builtin::BI__builtin_powf128: 2471 return RValue::get(emitBinaryMaybeConstrainedFPBuiltin(*this, E, 2472 Intrinsic::pow, 2473 Intrinsic::experimental_constrained_pow)); 2474 2475 case Builtin::BIrint: 2476 case Builtin::BIrintf: 2477 case Builtin::BIrintl: 2478 case Builtin::BI__builtin_rint: 2479 case Builtin::BI__builtin_rintf: 2480 case Builtin::BI__builtin_rintf16: 2481 case Builtin::BI__builtin_rintl: 2482 case Builtin::BI__builtin_rintf128: 2483 return RValue::get(emitUnaryMaybeConstrainedFPBuiltin(*this, E, 2484 Intrinsic::rint, 2485 Intrinsic::experimental_constrained_rint)); 2486 2487 case Builtin::BIround: 2488 case Builtin::BIroundf: 2489 case Builtin::BIroundl: 2490 case Builtin::BI__builtin_round: 2491 case Builtin::BI__builtin_roundf: 2492 case Builtin::BI__builtin_roundf16: 2493 case Builtin::BI__builtin_roundl: 2494 case Builtin::BI__builtin_roundf128: 2495 return RValue::get(emitUnaryMaybeConstrainedFPBuiltin(*this, E, 2496 Intrinsic::round, 2497 Intrinsic::experimental_constrained_round)); 2498 2499 case Builtin::BIsin: 2500 case Builtin::BIsinf: 2501 case Builtin::BIsinl: 2502 case Builtin::BI__builtin_sin: 2503 case Builtin::BI__builtin_sinf: 2504 case Builtin::BI__builtin_sinf16: 2505 case Builtin::BI__builtin_sinl: 2506 case Builtin::BI__builtin_sinf128: 2507 return RValue::get(emitUnaryMaybeConstrainedFPBuiltin(*this, E, 2508 Intrinsic::sin, 2509 Intrinsic::experimental_constrained_sin)); 2510 2511 case Builtin::BIsqrt: 2512 case Builtin::BIsqrtf: 2513 case Builtin::BIsqrtl: 2514 case Builtin::BI__builtin_sqrt: 2515 case Builtin::BI__builtin_sqrtf: 2516 case Builtin::BI__builtin_sqrtf16: 2517 case Builtin::BI__builtin_sqrtl: 2518 case Builtin::BI__builtin_sqrtf128: 2519 return RValue::get(emitUnaryMaybeConstrainedFPBuiltin(*this, E, 2520 Intrinsic::sqrt, 2521 Intrinsic::experimental_constrained_sqrt)); 2522 2523 case Builtin::BItrunc: 2524 case Builtin::BItruncf: 2525 case Builtin::BItruncl: 2526 case Builtin::BI__builtin_trunc: 2527 case Builtin::BI__builtin_truncf: 2528 case Builtin::BI__builtin_truncf16: 2529 case Builtin::BI__builtin_truncl: 2530 case Builtin::BI__builtin_truncf128: 2531 return RValue::get(emitUnaryMaybeConstrainedFPBuiltin(*this, E, 2532 Intrinsic::trunc, 2533 Intrinsic::experimental_constrained_trunc)); 2534 2535 case Builtin::BIlround: 2536 case Builtin::BIlroundf: 2537 case Builtin::BIlroundl: 2538 case Builtin::BI__builtin_lround: 2539 case Builtin::BI__builtin_lroundf: 2540 case Builtin::BI__builtin_lroundl: 2541 case Builtin::BI__builtin_lroundf128: 2542 return RValue::get(emitMaybeConstrainedFPToIntRoundBuiltin( 2543 *this, E, Intrinsic::lround, 2544 Intrinsic::experimental_constrained_lround)); 2545 2546 case Builtin::BIllround: 2547 case Builtin::BIllroundf: 2548 case Builtin::BIllroundl: 2549 case Builtin::BI__builtin_llround: 2550 case Builtin::BI__builtin_llroundf: 2551 case Builtin::BI__builtin_llroundl: 2552 case Builtin::BI__builtin_llroundf128: 2553 return RValue::get(emitMaybeConstrainedFPToIntRoundBuiltin( 2554 *this, E, Intrinsic::llround, 2555 Intrinsic::experimental_constrained_llround)); 2556 2557 case Builtin::BIlrint: 2558 case Builtin::BIlrintf: 2559 case Builtin::BIlrintl: 2560 case Builtin::BI__builtin_lrint: 2561 case Builtin::BI__builtin_lrintf: 2562 case Builtin::BI__builtin_lrintl: 2563 case Builtin::BI__builtin_lrintf128: 2564 return RValue::get(emitMaybeConstrainedFPToIntRoundBuiltin( 2565 *this, E, Intrinsic::lrint, 2566 Intrinsic::experimental_constrained_lrint)); 2567 2568 case Builtin::BIllrint: 2569 case Builtin::BIllrintf: 2570 case Builtin::BIllrintl: 2571 case Builtin::BI__builtin_llrint: 2572 case Builtin::BI__builtin_llrintf: 2573 case Builtin::BI__builtin_llrintl: 2574 case Builtin::BI__builtin_llrintf128: 2575 return RValue::get(emitMaybeConstrainedFPToIntRoundBuiltin( 2576 *this, E, Intrinsic::llrint, 2577 Intrinsic::experimental_constrained_llrint)); 2578 2579 default: 2580 break; 2581 } 2582 } 2583 2584 switch (BuiltinIDIfNoAsmLabel) { 2585 default: break; 2586 case Builtin::BI__builtin___CFStringMakeConstantString: 2587 case Builtin::BI__builtin___NSStringMakeConstantString: 2588 return RValue::get(ConstantEmitter(*this).emitAbstract(E, E->getType())); 2589 case Builtin::BI__builtin_stdarg_start: 2590 case Builtin::BI__builtin_va_start: 2591 case Builtin::BI__va_start: 2592 case Builtin::BI__builtin_va_end: 2593 return RValue::get( 2594 EmitVAStartEnd(BuiltinID == Builtin::BI__va_start 2595 ? EmitScalarExpr(E->getArg(0)) 2596 : EmitVAListRef(E->getArg(0)).getPointer(), 2597 BuiltinID != Builtin::BI__builtin_va_end)); 2598 case Builtin::BI__builtin_va_copy: { 2599 Value *DstPtr = EmitVAListRef(E->getArg(0)).getPointer(); 2600 Value *SrcPtr = EmitVAListRef(E->getArg(1)).getPointer(); 2601 2602 llvm::Type *Type = Int8PtrTy; 2603 2604 DstPtr = Builder.CreateBitCast(DstPtr, Type); 2605 SrcPtr = Builder.CreateBitCast(SrcPtr, Type); 2606 return RValue::get(Builder.CreateCall(CGM.getIntrinsic(Intrinsic::vacopy), 2607 {DstPtr, SrcPtr})); 2608 } 2609 case Builtin::BI__builtin_abs: 2610 case Builtin::BI__builtin_labs: 2611 case Builtin::BI__builtin_llabs: { 2612 // X < 0 ? -X : X 2613 // The negation has 'nsw' because abs of INT_MIN is undefined. 2614 Value *ArgValue = EmitScalarExpr(E->getArg(0)); 2615 Value *NegOp = Builder.CreateNSWNeg(ArgValue, "neg"); 2616 Constant *Zero = llvm::Constant::getNullValue(ArgValue->getType()); 2617 Value *CmpResult = Builder.CreateICmpSLT(ArgValue, Zero, "abscond"); 2618 Value *Result = Builder.CreateSelect(CmpResult, NegOp, ArgValue, "abs"); 2619 return RValue::get(Result); 2620 } 2621 case Builtin::BI__builtin_complex: { 2622 Value *Real = EmitScalarExpr(E->getArg(0)); 2623 Value *Imag = EmitScalarExpr(E->getArg(1)); 2624 return RValue::getComplex({Real, Imag}); 2625 } 2626 case Builtin::BI__builtin_conj: 2627 case Builtin::BI__builtin_conjf: 2628 case Builtin::BI__builtin_conjl: 2629 case Builtin::BIconj: 2630 case Builtin::BIconjf: 2631 case Builtin::BIconjl: { 2632 ComplexPairTy ComplexVal = EmitComplexExpr(E->getArg(0)); 2633 Value *Real = ComplexVal.first; 2634 Value *Imag = ComplexVal.second; 2635 Imag = Builder.CreateFNeg(Imag, "neg"); 2636 return RValue::getComplex(std::make_pair(Real, Imag)); 2637 } 2638 case Builtin::BI__builtin_creal: 2639 case Builtin::BI__builtin_crealf: 2640 case Builtin::BI__builtin_creall: 2641 case Builtin::BIcreal: 2642 case Builtin::BIcrealf: 2643 case Builtin::BIcreall: { 2644 ComplexPairTy ComplexVal = EmitComplexExpr(E->getArg(0)); 2645 return RValue::get(ComplexVal.first); 2646 } 2647 2648 case Builtin::BI__builtin_dump_struct: { 2649 llvm::Type *LLVMIntTy = getTypes().ConvertType(getContext().IntTy); 2650 llvm::FunctionType *LLVMFuncType = llvm::FunctionType::get( 2651 LLVMIntTy, {llvm::Type::getInt8PtrTy(getLLVMContext())}, true); 2652 2653 Value *Func = EmitScalarExpr(E->getArg(1)->IgnoreImpCasts()); 2654 CharUnits Arg0Align = EmitPointerWithAlignment(E->getArg(0)).getAlignment(); 2655 2656 const Expr *Arg0 = E->getArg(0)->IgnoreImpCasts(); 2657 QualType Arg0Type = Arg0->getType()->getPointeeType(); 2658 2659 Value *RecordPtr = EmitScalarExpr(Arg0); 2660 Value *Res = dumpRecord(*this, Arg0Type, RecordPtr, Arg0Align, 2661 {LLVMFuncType, Func}, 0); 2662 return RValue::get(Res); 2663 } 2664 2665 case Builtin::BI__builtin_preserve_access_index: { 2666 // Only enabled preserved access index region when debuginfo 2667 // is available as debuginfo is needed to preserve user-level 2668 // access pattern. 2669 if (!getDebugInfo()) { 2670 CGM.Error(E->getExprLoc(), "using builtin_preserve_access_index() without -g"); 2671 return RValue::get(EmitScalarExpr(E->getArg(0))); 2672 } 2673 2674 // Nested builtin_preserve_access_index() not supported 2675 if (IsInPreservedAIRegion) { 2676 CGM.Error(E->getExprLoc(), "nested builtin_preserve_access_index() not supported"); 2677 return RValue::get(EmitScalarExpr(E->getArg(0))); 2678 } 2679 2680 IsInPreservedAIRegion = true; 2681 Value *Res = EmitScalarExpr(E->getArg(0)); 2682 IsInPreservedAIRegion = false; 2683 return RValue::get(Res); 2684 } 2685 2686 case Builtin::BI__builtin_cimag: 2687 case Builtin::BI__builtin_cimagf: 2688 case Builtin::BI__builtin_cimagl: 2689 case Builtin::BIcimag: 2690 case Builtin::BIcimagf: 2691 case Builtin::BIcimagl: { 2692 ComplexPairTy ComplexVal = EmitComplexExpr(E->getArg(0)); 2693 return RValue::get(ComplexVal.second); 2694 } 2695 2696 case Builtin::BI__builtin_clrsb: 2697 case Builtin::BI__builtin_clrsbl: 2698 case Builtin::BI__builtin_clrsbll: { 2699 // clrsb(x) -> clz(x < 0 ? ~x : x) - 1 or 2700 Value *ArgValue = EmitScalarExpr(E->getArg(0)); 2701 2702 llvm::Type *ArgType = ArgValue->getType(); 2703 Function *F = CGM.getIntrinsic(Intrinsic::ctlz, ArgType); 2704 2705 llvm::Type *ResultType = ConvertType(E->getType()); 2706 Value *Zero = llvm::Constant::getNullValue(ArgType); 2707 Value *IsNeg = Builder.CreateICmpSLT(ArgValue, Zero, "isneg"); 2708 Value *Inverse = Builder.CreateNot(ArgValue, "not"); 2709 Value *Tmp = Builder.CreateSelect(IsNeg, Inverse, ArgValue); 2710 Value *Ctlz = Builder.CreateCall(F, {Tmp, Builder.getFalse()}); 2711 Value *Result = Builder.CreateSub(Ctlz, llvm::ConstantInt::get(ArgType, 1)); 2712 Result = Builder.CreateIntCast(Result, ResultType, /*isSigned*/true, 2713 "cast"); 2714 return RValue::get(Result); 2715 } 2716 case Builtin::BI__builtin_ctzs: 2717 case Builtin::BI__builtin_ctz: 2718 case Builtin::BI__builtin_ctzl: 2719 case Builtin::BI__builtin_ctzll: { 2720 Value *ArgValue = EmitCheckedArgForBuiltin(E->getArg(0), BCK_CTZPassedZero); 2721 2722 llvm::Type *ArgType = ArgValue->getType(); 2723 Function *F = CGM.getIntrinsic(Intrinsic::cttz, ArgType); 2724 2725 llvm::Type *ResultType = ConvertType(E->getType()); 2726 Value *ZeroUndef = Builder.getInt1(getTarget().isCLZForZeroUndef()); 2727 Value *Result = Builder.CreateCall(F, {ArgValue, ZeroUndef}); 2728 if (Result->getType() != ResultType) 2729 Result = Builder.CreateIntCast(Result, ResultType, /*isSigned*/true, 2730 "cast"); 2731 return RValue::get(Result); 2732 } 2733 case Builtin::BI__builtin_clzs: 2734 case Builtin::BI__builtin_clz: 2735 case Builtin::BI__builtin_clzl: 2736 case Builtin::BI__builtin_clzll: { 2737 Value *ArgValue = EmitCheckedArgForBuiltin(E->getArg(0), BCK_CLZPassedZero); 2738 2739 llvm::Type *ArgType = ArgValue->getType(); 2740 Function *F = CGM.getIntrinsic(Intrinsic::ctlz, ArgType); 2741 2742 llvm::Type *ResultType = ConvertType(E->getType()); 2743 Value *ZeroUndef = Builder.getInt1(getTarget().isCLZForZeroUndef()); 2744 Value *Result = Builder.CreateCall(F, {ArgValue, ZeroUndef}); 2745 if (Result->getType() != ResultType) 2746 Result = Builder.CreateIntCast(Result, ResultType, /*isSigned*/true, 2747 "cast"); 2748 return RValue::get(Result); 2749 } 2750 case Builtin::BI__builtin_ffs: 2751 case Builtin::BI__builtin_ffsl: 2752 case Builtin::BI__builtin_ffsll: { 2753 // ffs(x) -> x ? cttz(x) + 1 : 0 2754 Value *ArgValue = EmitScalarExpr(E->getArg(0)); 2755 2756 llvm::Type *ArgType = ArgValue->getType(); 2757 Function *F = CGM.getIntrinsic(Intrinsic::cttz, ArgType); 2758 2759 llvm::Type *ResultType = ConvertType(E->getType()); 2760 Value *Tmp = 2761 Builder.CreateAdd(Builder.CreateCall(F, {ArgValue, Builder.getTrue()}), 2762 llvm::ConstantInt::get(ArgType, 1)); 2763 Value *Zero = llvm::Constant::getNullValue(ArgType); 2764 Value *IsZero = Builder.CreateICmpEQ(ArgValue, Zero, "iszero"); 2765 Value *Result = Builder.CreateSelect(IsZero, Zero, Tmp, "ffs"); 2766 if (Result->getType() != ResultType) 2767 Result = Builder.CreateIntCast(Result, ResultType, /*isSigned*/true, 2768 "cast"); 2769 return RValue::get(Result); 2770 } 2771 case Builtin::BI__builtin_parity: 2772 case Builtin::BI__builtin_parityl: 2773 case Builtin::BI__builtin_parityll: { 2774 // parity(x) -> ctpop(x) & 1 2775 Value *ArgValue = EmitScalarExpr(E->getArg(0)); 2776 2777 llvm::Type *ArgType = ArgValue->getType(); 2778 Function *F = CGM.getIntrinsic(Intrinsic::ctpop, ArgType); 2779 2780 llvm::Type *ResultType = ConvertType(E->getType()); 2781 Value *Tmp = Builder.CreateCall(F, ArgValue); 2782 Value *Result = Builder.CreateAnd(Tmp, llvm::ConstantInt::get(ArgType, 1)); 2783 if (Result->getType() != ResultType) 2784 Result = Builder.CreateIntCast(Result, ResultType, /*isSigned*/true, 2785 "cast"); 2786 return RValue::get(Result); 2787 } 2788 case Builtin::BI__lzcnt16: 2789 case Builtin::BI__lzcnt: 2790 case Builtin::BI__lzcnt64: { 2791 Value *ArgValue = EmitScalarExpr(E->getArg(0)); 2792 2793 llvm::Type *ArgType = ArgValue->getType(); 2794 Function *F = CGM.getIntrinsic(Intrinsic::ctlz, ArgType); 2795 2796 llvm::Type *ResultType = ConvertType(E->getType()); 2797 Value *Result = Builder.CreateCall(F, {ArgValue, Builder.getFalse()}); 2798 if (Result->getType() != ResultType) 2799 Result = Builder.CreateIntCast(Result, ResultType, /*isSigned*/true, 2800 "cast"); 2801 return RValue::get(Result); 2802 } 2803 case Builtin::BI__popcnt16: 2804 case Builtin::BI__popcnt: 2805 case Builtin::BI__popcnt64: 2806 case Builtin::BI__builtin_popcount: 2807 case Builtin::BI__builtin_popcountl: 2808 case Builtin::BI__builtin_popcountll: { 2809 Value *ArgValue = EmitScalarExpr(E->getArg(0)); 2810 2811 llvm::Type *ArgType = ArgValue->getType(); 2812 Function *F = CGM.getIntrinsic(Intrinsic::ctpop, ArgType); 2813 2814 llvm::Type *ResultType = ConvertType(E->getType()); 2815 Value *Result = Builder.CreateCall(F, ArgValue); 2816 if (Result->getType() != ResultType) 2817 Result = Builder.CreateIntCast(Result, ResultType, /*isSigned*/true, 2818 "cast"); 2819 return RValue::get(Result); 2820 } 2821 case Builtin::BI__builtin_unpredictable: { 2822 // Always return the argument of __builtin_unpredictable. LLVM does not 2823 // handle this builtin. Metadata for this builtin should be added directly 2824 // to instructions such as branches or switches that use it. 2825 return RValue::get(EmitScalarExpr(E->getArg(0))); 2826 } 2827 case Builtin::BI__builtin_expect: { 2828 Value *ArgValue = EmitScalarExpr(E->getArg(0)); 2829 llvm::Type *ArgType = ArgValue->getType(); 2830 2831 Value *ExpectedValue = EmitScalarExpr(E->getArg(1)); 2832 // Don't generate llvm.expect on -O0 as the backend won't use it for 2833 // anything. 2834 // Note, we still IRGen ExpectedValue because it could have side-effects. 2835 if (CGM.getCodeGenOpts().OptimizationLevel == 0) 2836 return RValue::get(ArgValue); 2837 2838 Function *FnExpect = CGM.getIntrinsic(Intrinsic::expect, ArgType); 2839 Value *Result = 2840 Builder.CreateCall(FnExpect, {ArgValue, ExpectedValue}, "expval"); 2841 return RValue::get(Result); 2842 } 2843 case Builtin::BI__builtin_expect_with_probability: { 2844 Value *ArgValue = EmitScalarExpr(E->getArg(0)); 2845 llvm::Type *ArgType = ArgValue->getType(); 2846 2847 Value *ExpectedValue = EmitScalarExpr(E->getArg(1)); 2848 llvm::APFloat Probability(0.0); 2849 const Expr *ProbArg = E->getArg(2); 2850 bool EvalSucceed = ProbArg->EvaluateAsFloat(Probability, CGM.getContext()); 2851 assert(EvalSucceed && "probability should be able to evaluate as float"); 2852 (void)EvalSucceed; 2853 bool LoseInfo = false; 2854 Probability.convert(llvm::APFloat::IEEEdouble(), 2855 llvm::RoundingMode::Dynamic, &LoseInfo); 2856 llvm::Type *Ty = ConvertType(ProbArg->getType()); 2857 Constant *Confidence = ConstantFP::get(Ty, Probability); 2858 // Don't generate llvm.expect.with.probability on -O0 as the backend 2859 // won't use it for anything. 2860 // Note, we still IRGen ExpectedValue because it could have side-effects. 2861 if (CGM.getCodeGenOpts().OptimizationLevel == 0) 2862 return RValue::get(ArgValue); 2863 2864 Function *FnExpect = 2865 CGM.getIntrinsic(Intrinsic::expect_with_probability, ArgType); 2866 Value *Result = Builder.CreateCall( 2867 FnExpect, {ArgValue, ExpectedValue, Confidence}, "expval"); 2868 return RValue::get(Result); 2869 } 2870 case Builtin::BI__builtin_assume_aligned: { 2871 const Expr *Ptr = E->getArg(0); 2872 Value *PtrValue = EmitScalarExpr(Ptr); 2873 Value *OffsetValue = 2874 (E->getNumArgs() > 2) ? EmitScalarExpr(E->getArg(2)) : nullptr; 2875 2876 Value *AlignmentValue = EmitScalarExpr(E->getArg(1)); 2877 ConstantInt *AlignmentCI = cast<ConstantInt>(AlignmentValue); 2878 if (AlignmentCI->getValue().ugt(llvm::Value::MaximumAlignment)) 2879 AlignmentCI = ConstantInt::get(AlignmentCI->getType(), 2880 llvm::Value::MaximumAlignment); 2881 2882 emitAlignmentAssumption(PtrValue, Ptr, 2883 /*The expr loc is sufficient.*/ SourceLocation(), 2884 AlignmentCI, OffsetValue); 2885 return RValue::get(PtrValue); 2886 } 2887 case Builtin::BI__assume: 2888 case Builtin::BI__builtin_assume: { 2889 if (E->getArg(0)->HasSideEffects(getContext())) 2890 return RValue::get(nullptr); 2891 2892 Value *ArgValue = EmitScalarExpr(E->getArg(0)); 2893 Function *FnAssume = CGM.getIntrinsic(Intrinsic::assume); 2894 return RValue::get(Builder.CreateCall(FnAssume, ArgValue)); 2895 } 2896 case Builtin::BI__arithmetic_fence: { 2897 // Create the builtin call if FastMath is selected, and the target 2898 // supports the builtin, otherwise just return the argument. 2899 CodeGenFunction::CGFPOptionsRAII FPOptsRAII(*this, E); 2900 llvm::FastMathFlags FMF = Builder.getFastMathFlags(); 2901 bool isArithmeticFenceEnabled = 2902 FMF.allowReassoc() && 2903 getContext().getTargetInfo().checkArithmeticFenceSupported(); 2904 QualType ArgType = E->getArg(0)->getType(); 2905 if (ArgType->isComplexType()) { 2906 if (isArithmeticFenceEnabled) { 2907 QualType ElementType = ArgType->castAs<ComplexType>()->getElementType(); 2908 ComplexPairTy ComplexVal = EmitComplexExpr(E->getArg(0)); 2909 Value *Real = Builder.CreateArithmeticFence(ComplexVal.first, 2910 ConvertType(ElementType)); 2911 Value *Imag = Builder.CreateArithmeticFence(ComplexVal.second, 2912 ConvertType(ElementType)); 2913 return RValue::getComplex(std::make_pair(Real, Imag)); 2914 } 2915 ComplexPairTy ComplexVal = EmitComplexExpr(E->getArg(0)); 2916 Value *Real = ComplexVal.first; 2917 Value *Imag = ComplexVal.second; 2918 return RValue::getComplex(std::make_pair(Real, Imag)); 2919 } 2920 Value *ArgValue = EmitScalarExpr(E->getArg(0)); 2921 if (isArithmeticFenceEnabled) 2922 return RValue::get( 2923 Builder.CreateArithmeticFence(ArgValue, ConvertType(ArgType))); 2924 return RValue::get(ArgValue); 2925 } 2926 case Builtin::BI__builtin_bswap16: 2927 case Builtin::BI__builtin_bswap32: 2928 case Builtin::BI__builtin_bswap64: { 2929 return RValue::get(emitUnaryBuiltin(*this, E, Intrinsic::bswap)); 2930 } 2931 case Builtin::BI__builtin_bitreverse8: 2932 case Builtin::BI__builtin_bitreverse16: 2933 case Builtin::BI__builtin_bitreverse32: 2934 case Builtin::BI__builtin_bitreverse64: { 2935 return RValue::get(emitUnaryBuiltin(*this, E, Intrinsic::bitreverse)); 2936 } 2937 case Builtin::BI__builtin_rotateleft8: 2938 case Builtin::BI__builtin_rotateleft16: 2939 case Builtin::BI__builtin_rotateleft32: 2940 case Builtin::BI__builtin_rotateleft64: 2941 case Builtin::BI_rotl8: // Microsoft variants of rotate left 2942 case Builtin::BI_rotl16: 2943 case Builtin::BI_rotl: 2944 case Builtin::BI_lrotl: 2945 case Builtin::BI_rotl64: 2946 return emitRotate(E, false); 2947 2948 case Builtin::BI__builtin_rotateright8: 2949 case Builtin::BI__builtin_rotateright16: 2950 case Builtin::BI__builtin_rotateright32: 2951 case Builtin::BI__builtin_rotateright64: 2952 case Builtin::BI_rotr8: // Microsoft variants of rotate right 2953 case Builtin::BI_rotr16: 2954 case Builtin::BI_rotr: 2955 case Builtin::BI_lrotr: 2956 case Builtin::BI_rotr64: 2957 return emitRotate(E, true); 2958 2959 case Builtin::BI__builtin_constant_p: { 2960 llvm::Type *ResultType = ConvertType(E->getType()); 2961 2962 const Expr *Arg = E->getArg(0); 2963 QualType ArgType = Arg->getType(); 2964 // FIXME: The allowance for Obj-C pointers and block pointers is historical 2965 // and likely a mistake. 2966 if (!ArgType->isIntegralOrEnumerationType() && !ArgType->isFloatingType() && 2967 !ArgType->isObjCObjectPointerType() && !ArgType->isBlockPointerType()) 2968 // Per the GCC documentation, only numeric constants are recognized after 2969 // inlining. 2970 return RValue::get(ConstantInt::get(ResultType, 0)); 2971 2972 if (Arg->HasSideEffects(getContext())) 2973 // The argument is unevaluated, so be conservative if it might have 2974 // side-effects. 2975 return RValue::get(ConstantInt::get(ResultType, 0)); 2976 2977 Value *ArgValue = EmitScalarExpr(Arg); 2978 if (ArgType->isObjCObjectPointerType()) { 2979 // Convert Objective-C objects to id because we cannot distinguish between 2980 // LLVM types for Obj-C classes as they are opaque. 2981 ArgType = CGM.getContext().getObjCIdType(); 2982 ArgValue = Builder.CreateBitCast(ArgValue, ConvertType(ArgType)); 2983 } 2984 Function *F = 2985 CGM.getIntrinsic(Intrinsic::is_constant, ConvertType(ArgType)); 2986 Value *Result = Builder.CreateCall(F, ArgValue); 2987 if (Result->getType() != ResultType) 2988 Result = Builder.CreateIntCast(Result, ResultType, /*isSigned*/false); 2989 return RValue::get(Result); 2990 } 2991 case Builtin::BI__builtin_dynamic_object_size: 2992 case Builtin::BI__builtin_object_size: { 2993 unsigned Type = 2994 E->getArg(1)->EvaluateKnownConstInt(getContext()).getZExtValue(); 2995 auto *ResType = cast<llvm::IntegerType>(ConvertType(E->getType())); 2996 2997 // We pass this builtin onto the optimizer so that it can figure out the 2998 // object size in more complex cases. 2999 bool IsDynamic = BuiltinID == Builtin::BI__builtin_dynamic_object_size; 3000 return RValue::get(emitBuiltinObjectSize(E->getArg(0), Type, ResType, 3001 /*EmittedE=*/nullptr, IsDynamic)); 3002 } 3003 case Builtin::BI__builtin_prefetch: { 3004 Value *Locality, *RW, *Address = EmitScalarExpr(E->getArg(0)); 3005 // FIXME: Technically these constants should of type 'int', yes? 3006 RW = (E->getNumArgs() > 1) ? EmitScalarExpr(E->getArg(1)) : 3007 llvm::ConstantInt::get(Int32Ty, 0); 3008 Locality = (E->getNumArgs() > 2) ? EmitScalarExpr(E->getArg(2)) : 3009 llvm::ConstantInt::get(Int32Ty, 3); 3010 Value *Data = llvm::ConstantInt::get(Int32Ty, 1); 3011 Function *F = CGM.getIntrinsic(Intrinsic::prefetch, Address->getType()); 3012 return RValue::get(Builder.CreateCall(F, {Address, RW, Locality, Data})); 3013 } 3014 case Builtin::BI__builtin_readcyclecounter: { 3015 Function *F = CGM.getIntrinsic(Intrinsic::readcyclecounter); 3016 return RValue::get(Builder.CreateCall(F)); 3017 } 3018 case Builtin::BI__builtin___clear_cache: { 3019 Value *Begin = EmitScalarExpr(E->getArg(0)); 3020 Value *End = EmitScalarExpr(E->getArg(1)); 3021 Function *F = CGM.getIntrinsic(Intrinsic::clear_cache); 3022 return RValue::get(Builder.CreateCall(F, {Begin, End})); 3023 } 3024 case Builtin::BI__builtin_trap: 3025 return RValue::get(EmitTrapCall(Intrinsic::trap)); 3026 case Builtin::BI__debugbreak: 3027 return RValue::get(EmitTrapCall(Intrinsic::debugtrap)); 3028 case Builtin::BI__builtin_unreachable: { 3029 EmitUnreachable(E->getExprLoc()); 3030 3031 // We do need to preserve an insertion point. 3032 EmitBlock(createBasicBlock("unreachable.cont")); 3033 3034 return RValue::get(nullptr); 3035 } 3036 3037 case Builtin::BI__builtin_powi: 3038 case Builtin::BI__builtin_powif: 3039 case Builtin::BI__builtin_powil: { 3040 llvm::Value *Src0 = EmitScalarExpr(E->getArg(0)); 3041 llvm::Value *Src1 = EmitScalarExpr(E->getArg(1)); 3042 3043 if (Builder.getIsFPConstrained()) { 3044 CodeGenFunction::CGFPOptionsRAII FPOptsRAII(*this, E); 3045 Function *F = CGM.getIntrinsic(Intrinsic::experimental_constrained_powi, 3046 Src0->getType()); 3047 return RValue::get(Builder.CreateConstrainedFPCall(F, { Src0, Src1 })); 3048 } 3049 3050 Function *F = CGM.getIntrinsic(Intrinsic::powi, 3051 { Src0->getType(), Src1->getType() }); 3052 return RValue::get(Builder.CreateCall(F, { Src0, Src1 })); 3053 } 3054 case Builtin::BI__builtin_isgreater: 3055 case Builtin::BI__builtin_isgreaterequal: 3056 case Builtin::BI__builtin_isless: 3057 case Builtin::BI__builtin_islessequal: 3058 case Builtin::BI__builtin_islessgreater: 3059 case Builtin::BI__builtin_isunordered: { 3060 // Ordered comparisons: we know the arguments to these are matching scalar 3061 // floating point values. 3062 CodeGenFunction::CGFPOptionsRAII FPOptsRAII(*this, E); 3063 // FIXME: for strictfp/IEEE-754 we need to not trap on SNaN here. 3064 Value *LHS = EmitScalarExpr(E->getArg(0)); 3065 Value *RHS = EmitScalarExpr(E->getArg(1)); 3066 3067 switch (BuiltinID) { 3068 default: llvm_unreachable("Unknown ordered comparison"); 3069 case Builtin::BI__builtin_isgreater: 3070 LHS = Builder.CreateFCmpOGT(LHS, RHS, "cmp"); 3071 break; 3072 case Builtin::BI__builtin_isgreaterequal: 3073 LHS = Builder.CreateFCmpOGE(LHS, RHS, "cmp"); 3074 break; 3075 case Builtin::BI__builtin_isless: 3076 LHS = Builder.CreateFCmpOLT(LHS, RHS, "cmp"); 3077 break; 3078 case Builtin::BI__builtin_islessequal: 3079 LHS = Builder.CreateFCmpOLE(LHS, RHS, "cmp"); 3080 break; 3081 case Builtin::BI__builtin_islessgreater: 3082 LHS = Builder.CreateFCmpONE(LHS, RHS, "cmp"); 3083 break; 3084 case Builtin::BI__builtin_isunordered: 3085 LHS = Builder.CreateFCmpUNO(LHS, RHS, "cmp"); 3086 break; 3087 } 3088 // ZExt bool to int type. 3089 return RValue::get(Builder.CreateZExt(LHS, ConvertType(E->getType()))); 3090 } 3091 case Builtin::BI__builtin_isnan: { 3092 CodeGenFunction::CGFPOptionsRAII FPOptsRAII(*this, E); 3093 Value *V = EmitScalarExpr(E->getArg(0)); 3094 llvm::Type *Ty = V->getType(); 3095 const llvm::fltSemantics &Semantics = Ty->getFltSemantics(); 3096 if (!Builder.getIsFPConstrained() || 3097 Builder.getDefaultConstrainedExcept() == fp::ebIgnore || 3098 !Ty->isIEEE()) { 3099 V = Builder.CreateFCmpUNO(V, V, "cmp"); 3100 return RValue::get(Builder.CreateZExt(V, ConvertType(E->getType()))); 3101 } 3102 3103 if (Value *Result = getTargetHooks().testFPKind(V, BuiltinID, Builder, CGM)) 3104 return RValue::get(Result); 3105 3106 // NaN has all exp bits set and a non zero significand. Therefore: 3107 // isnan(V) == ((exp mask - (abs(V) & exp mask)) < 0) 3108 unsigned bitsize = Ty->getScalarSizeInBits(); 3109 llvm::IntegerType *IntTy = Builder.getIntNTy(bitsize); 3110 Value *IntV = Builder.CreateBitCast(V, IntTy); 3111 APInt AndMask = APInt::getSignedMaxValue(bitsize); 3112 Value *AbsV = 3113 Builder.CreateAnd(IntV, llvm::ConstantInt::get(IntTy, AndMask)); 3114 APInt ExpMask = APFloat::getInf(Semantics).bitcastToAPInt(); 3115 Value *Sub = 3116 Builder.CreateSub(llvm::ConstantInt::get(IntTy, ExpMask), AbsV); 3117 // V = sign bit (Sub) <=> V = (Sub < 0) 3118 V = Builder.CreateLShr(Sub, llvm::ConstantInt::get(IntTy, bitsize - 1)); 3119 if (bitsize > 32) 3120 V = Builder.CreateTrunc(V, ConvertType(E->getType())); 3121 return RValue::get(V); 3122 } 3123 3124 case Builtin::BI__builtin_elementwise_abs: { 3125 Value *Op0 = EmitScalarExpr(E->getArg(0)); 3126 Value *Result; 3127 if (Op0->getType()->isIntOrIntVectorTy()) 3128 Result = Builder.CreateBinaryIntrinsic( 3129 llvm::Intrinsic::abs, Op0, Builder.getFalse(), nullptr, "elt.abs"); 3130 else 3131 Result = Builder.CreateUnaryIntrinsic(llvm::Intrinsic::fabs, Op0, nullptr, 3132 "elt.abs"); 3133 return RValue::get(Result); 3134 } 3135 3136 case Builtin::BI__builtin_elementwise_ceil: { 3137 Value *Op0 = EmitScalarExpr(E->getArg(0)); 3138 Value *Result = Builder.CreateUnaryIntrinsic(llvm::Intrinsic::ceil, Op0, 3139 nullptr, "elt.ceil"); 3140 return RValue::get(Result); 3141 } 3142 3143 case Builtin::BI__builtin_elementwise_max: { 3144 Value *Op0 = EmitScalarExpr(E->getArg(0)); 3145 Value *Op1 = EmitScalarExpr(E->getArg(1)); 3146 Value *Result; 3147 if (Op0->getType()->isIntOrIntVectorTy()) { 3148 QualType Ty = E->getArg(0)->getType(); 3149 if (auto *VecTy = Ty->getAs<VectorType>()) 3150 Ty = VecTy->getElementType(); 3151 Result = Builder.CreateBinaryIntrinsic(Ty->isSignedIntegerType() 3152 ? llvm::Intrinsic::smax 3153 : llvm::Intrinsic::umax, 3154 Op0, Op1, nullptr, "elt.max"); 3155 } else 3156 Result = Builder.CreateMaxNum(Op0, Op1, "elt.max"); 3157 return RValue::get(Result); 3158 } 3159 case Builtin::BI__builtin_elementwise_min: { 3160 Value *Op0 = EmitScalarExpr(E->getArg(0)); 3161 Value *Op1 = EmitScalarExpr(E->getArg(1)); 3162 Value *Result; 3163 if (Op0->getType()->isIntOrIntVectorTy()) { 3164 QualType Ty = E->getArg(0)->getType(); 3165 if (auto *VecTy = Ty->getAs<VectorType>()) 3166 Ty = VecTy->getElementType(); 3167 Result = Builder.CreateBinaryIntrinsic(Ty->isSignedIntegerType() 3168 ? llvm::Intrinsic::smin 3169 : llvm::Intrinsic::umin, 3170 Op0, Op1, nullptr, "elt.min"); 3171 } else 3172 Result = Builder.CreateMinNum(Op0, Op1, "elt.min"); 3173 return RValue::get(Result); 3174 } 3175 3176 case Builtin::BI__builtin_reduce_max: { 3177 auto GetIntrinsicID = [](QualType QT, llvm::Type *IrTy) { 3178 if (IrTy->isIntOrIntVectorTy()) { 3179 if (auto *VecTy = QT->getAs<VectorType>()) 3180 QT = VecTy->getElementType(); 3181 if (QT->isSignedIntegerType()) 3182 return llvm::Intrinsic::vector_reduce_smax; 3183 else 3184 return llvm::Intrinsic::vector_reduce_umax; 3185 } 3186 return llvm::Intrinsic::vector_reduce_fmax; 3187 }; 3188 Value *Op0 = EmitScalarExpr(E->getArg(0)); 3189 Value *Result = Builder.CreateUnaryIntrinsic( 3190 GetIntrinsicID(E->getArg(0)->getType(), Op0->getType()), Op0, nullptr, 3191 "rdx.min"); 3192 return RValue::get(Result); 3193 } 3194 3195 case Builtin::BI__builtin_reduce_min: { 3196 auto GetIntrinsicID = [](QualType QT, llvm::Type *IrTy) { 3197 if (IrTy->isIntOrIntVectorTy()) { 3198 if (auto *VecTy = QT->getAs<VectorType>()) 3199 QT = VecTy->getElementType(); 3200 if (QT->isSignedIntegerType()) 3201 return llvm::Intrinsic::vector_reduce_smin; 3202 else 3203 return llvm::Intrinsic::vector_reduce_umin; 3204 } 3205 return llvm::Intrinsic::vector_reduce_fmin; 3206 }; 3207 Value *Op0 = EmitScalarExpr(E->getArg(0)); 3208 Value *Result = Builder.CreateUnaryIntrinsic( 3209 GetIntrinsicID(E->getArg(0)->getType(), Op0->getType()), Op0, nullptr, 3210 "rdx.min"); 3211 return RValue::get(Result); 3212 } 3213 3214 case Builtin::BI__builtin_reduce_xor: { 3215 Value *Op0 = EmitScalarExpr(E->getArg(0)); 3216 Value *Result = Builder.CreateUnaryIntrinsic( 3217 llvm::Intrinsic::vector_reduce_xor, Op0, nullptr, "rdx.xor"); 3218 return RValue::get(Result); 3219 } 3220 3221 case Builtin::BI__builtin_matrix_transpose: { 3222 const auto *MatrixTy = E->getArg(0)->getType()->getAs<ConstantMatrixType>(); 3223 Value *MatValue = EmitScalarExpr(E->getArg(0)); 3224 MatrixBuilder<CGBuilderTy> MB(Builder); 3225 Value *Result = MB.CreateMatrixTranspose(MatValue, MatrixTy->getNumRows(), 3226 MatrixTy->getNumColumns()); 3227 return RValue::get(Result); 3228 } 3229 3230 case Builtin::BI__builtin_matrix_column_major_load: { 3231 MatrixBuilder<CGBuilderTy> MB(Builder); 3232 // Emit everything that isn't dependent on the first parameter type 3233 Value *Stride = EmitScalarExpr(E->getArg(3)); 3234 const auto *ResultTy = E->getType()->getAs<ConstantMatrixType>(); 3235 auto *PtrTy = E->getArg(0)->getType()->getAs<PointerType>(); 3236 assert(PtrTy && "arg0 must be of pointer type"); 3237 bool IsVolatile = PtrTy->getPointeeType().isVolatileQualified(); 3238 3239 Address Src = EmitPointerWithAlignment(E->getArg(0)); 3240 EmitNonNullArgCheck(RValue::get(Src.getPointer()), E->getArg(0)->getType(), 3241 E->getArg(0)->getExprLoc(), FD, 0); 3242 Value *Result = MB.CreateColumnMajorLoad( 3243 Src.getPointer(), Align(Src.getAlignment().getQuantity()), Stride, 3244 IsVolatile, ResultTy->getNumRows(), ResultTy->getNumColumns(), 3245 "matrix"); 3246 return RValue::get(Result); 3247 } 3248 3249 case Builtin::BI__builtin_matrix_column_major_store: { 3250 MatrixBuilder<CGBuilderTy> MB(Builder); 3251 Value *Matrix = EmitScalarExpr(E->getArg(0)); 3252 Address Dst = EmitPointerWithAlignment(E->getArg(1)); 3253 Value *Stride = EmitScalarExpr(E->getArg(2)); 3254 3255 const auto *MatrixTy = E->getArg(0)->getType()->getAs<ConstantMatrixType>(); 3256 auto *PtrTy = E->getArg(1)->getType()->getAs<PointerType>(); 3257 assert(PtrTy && "arg1 must be of pointer type"); 3258 bool IsVolatile = PtrTy->getPointeeType().isVolatileQualified(); 3259 3260 EmitNonNullArgCheck(RValue::get(Dst.getPointer()), E->getArg(1)->getType(), 3261 E->getArg(1)->getExprLoc(), FD, 0); 3262 Value *Result = MB.CreateColumnMajorStore( 3263 Matrix, Dst.getPointer(), Align(Dst.getAlignment().getQuantity()), 3264 Stride, IsVolatile, MatrixTy->getNumRows(), MatrixTy->getNumColumns()); 3265 return RValue::get(Result); 3266 } 3267 3268 case Builtin::BIfinite: 3269 case Builtin::BI__finite: 3270 case Builtin::BIfinitef: 3271 case Builtin::BI__finitef: 3272 case Builtin::BIfinitel: 3273 case Builtin::BI__finitel: 3274 case Builtin::BI__builtin_isinf: 3275 case Builtin::BI__builtin_isfinite: { 3276 // isinf(x) --> fabs(x) == infinity 3277 // isfinite(x) --> fabs(x) != infinity 3278 // x != NaN via the ordered compare in either case. 3279 CodeGenFunction::CGFPOptionsRAII FPOptsRAII(*this, E); 3280 Value *V = EmitScalarExpr(E->getArg(0)); 3281 llvm::Type *Ty = V->getType(); 3282 if (!Builder.getIsFPConstrained() || 3283 Builder.getDefaultConstrainedExcept() == fp::ebIgnore || 3284 !Ty->isIEEE()) { 3285 Value *Fabs = EmitFAbs(*this, V); 3286 Constant *Infinity = ConstantFP::getInfinity(V->getType()); 3287 CmpInst::Predicate Pred = (BuiltinID == Builtin::BI__builtin_isinf) 3288 ? CmpInst::FCMP_OEQ 3289 : CmpInst::FCMP_ONE; 3290 Value *FCmp = Builder.CreateFCmp(Pred, Fabs, Infinity, "cmpinf"); 3291 return RValue::get(Builder.CreateZExt(FCmp, ConvertType(E->getType()))); 3292 } 3293 3294 if (Value *Result = getTargetHooks().testFPKind(V, BuiltinID, Builder, CGM)) 3295 return RValue::get(Result); 3296 3297 // Inf values have all exp bits set and a zero significand. Therefore: 3298 // isinf(V) == ((V << 1) == ((exp mask) << 1)) 3299 // isfinite(V) == ((V << 1) < ((exp mask) << 1)) using unsigned comparison 3300 unsigned bitsize = Ty->getScalarSizeInBits(); 3301 llvm::IntegerType *IntTy = Builder.getIntNTy(bitsize); 3302 Value *IntV = Builder.CreateBitCast(V, IntTy); 3303 Value *Shl1 = Builder.CreateShl(IntV, 1); 3304 const llvm::fltSemantics &Semantics = Ty->getFltSemantics(); 3305 APInt ExpMask = APFloat::getInf(Semantics).bitcastToAPInt(); 3306 Value *ExpMaskShl1 = llvm::ConstantInt::get(IntTy, ExpMask.shl(1)); 3307 if (BuiltinID == Builtin::BI__builtin_isinf) 3308 V = Builder.CreateICmpEQ(Shl1, ExpMaskShl1); 3309 else 3310 V = Builder.CreateICmpULT(Shl1, ExpMaskShl1); 3311 return RValue::get(Builder.CreateZExt(V, ConvertType(E->getType()))); 3312 } 3313 3314 case Builtin::BI__builtin_isinf_sign: { 3315 // isinf_sign(x) -> fabs(x) == infinity ? (signbit(x) ? -1 : 1) : 0 3316 CodeGenFunction::CGFPOptionsRAII FPOptsRAII(*this, E); 3317 // FIXME: for strictfp/IEEE-754 we need to not trap on SNaN here. 3318 Value *Arg = EmitScalarExpr(E->getArg(0)); 3319 Value *AbsArg = EmitFAbs(*this, Arg); 3320 Value *IsInf = Builder.CreateFCmpOEQ( 3321 AbsArg, ConstantFP::getInfinity(Arg->getType()), "isinf"); 3322 Value *IsNeg = EmitSignBit(*this, Arg); 3323 3324 llvm::Type *IntTy = ConvertType(E->getType()); 3325 Value *Zero = Constant::getNullValue(IntTy); 3326 Value *One = ConstantInt::get(IntTy, 1); 3327 Value *NegativeOne = ConstantInt::get(IntTy, -1); 3328 Value *SignResult = Builder.CreateSelect(IsNeg, NegativeOne, One); 3329 Value *Result = Builder.CreateSelect(IsInf, SignResult, Zero); 3330 return RValue::get(Result); 3331 } 3332 3333 case Builtin::BI__builtin_isnormal: { 3334 // isnormal(x) --> x == x && fabsf(x) < infinity && fabsf(x) >= float_min 3335 CodeGenFunction::CGFPOptionsRAII FPOptsRAII(*this, E); 3336 // FIXME: for strictfp/IEEE-754 we need to not trap on SNaN here. 3337 Value *V = EmitScalarExpr(E->getArg(0)); 3338 Value *Eq = Builder.CreateFCmpOEQ(V, V, "iseq"); 3339 3340 Value *Abs = EmitFAbs(*this, V); 3341 Value *IsLessThanInf = 3342 Builder.CreateFCmpULT(Abs, ConstantFP::getInfinity(V->getType()),"isinf"); 3343 APFloat Smallest = APFloat::getSmallestNormalized( 3344 getContext().getFloatTypeSemantics(E->getArg(0)->getType())); 3345 Value *IsNormal = 3346 Builder.CreateFCmpUGE(Abs, ConstantFP::get(V->getContext(), Smallest), 3347 "isnormal"); 3348 V = Builder.CreateAnd(Eq, IsLessThanInf, "and"); 3349 V = Builder.CreateAnd(V, IsNormal, "and"); 3350 return RValue::get(Builder.CreateZExt(V, ConvertType(E->getType()))); 3351 } 3352 3353 case Builtin::BI__builtin_flt_rounds: { 3354 Function *F = CGM.getIntrinsic(Intrinsic::flt_rounds); 3355 3356 llvm::Type *ResultType = ConvertType(E->getType()); 3357 Value *Result = Builder.CreateCall(F); 3358 if (Result->getType() != ResultType) 3359 Result = Builder.CreateIntCast(Result, ResultType, /*isSigned*/true, 3360 "cast"); 3361 return RValue::get(Result); 3362 } 3363 3364 case Builtin::BI__builtin_fpclassify: { 3365 CodeGenFunction::CGFPOptionsRAII FPOptsRAII(*this, E); 3366 // FIXME: for strictfp/IEEE-754 we need to not trap on SNaN here. 3367 Value *V = EmitScalarExpr(E->getArg(5)); 3368 llvm::Type *Ty = ConvertType(E->getArg(5)->getType()); 3369 3370 // Create Result 3371 BasicBlock *Begin = Builder.GetInsertBlock(); 3372 BasicBlock *End = createBasicBlock("fpclassify_end", this->CurFn); 3373 Builder.SetInsertPoint(End); 3374 PHINode *Result = 3375 Builder.CreatePHI(ConvertType(E->getArg(0)->getType()), 4, 3376 "fpclassify_result"); 3377 3378 // if (V==0) return FP_ZERO 3379 Builder.SetInsertPoint(Begin); 3380 Value *IsZero = Builder.CreateFCmpOEQ(V, Constant::getNullValue(Ty), 3381 "iszero"); 3382 Value *ZeroLiteral = EmitScalarExpr(E->getArg(4)); 3383 BasicBlock *NotZero = createBasicBlock("fpclassify_not_zero", this->CurFn); 3384 Builder.CreateCondBr(IsZero, End, NotZero); 3385 Result->addIncoming(ZeroLiteral, Begin); 3386 3387 // if (V != V) return FP_NAN 3388 Builder.SetInsertPoint(NotZero); 3389 Value *IsNan = Builder.CreateFCmpUNO(V, V, "cmp"); 3390 Value *NanLiteral = EmitScalarExpr(E->getArg(0)); 3391 BasicBlock *NotNan = createBasicBlock("fpclassify_not_nan", this->CurFn); 3392 Builder.CreateCondBr(IsNan, End, NotNan); 3393 Result->addIncoming(NanLiteral, NotZero); 3394 3395 // if (fabs(V) == infinity) return FP_INFINITY 3396 Builder.SetInsertPoint(NotNan); 3397 Value *VAbs = EmitFAbs(*this, V); 3398 Value *IsInf = 3399 Builder.CreateFCmpOEQ(VAbs, ConstantFP::getInfinity(V->getType()), 3400 "isinf"); 3401 Value *InfLiteral = EmitScalarExpr(E->getArg(1)); 3402 BasicBlock *NotInf = createBasicBlock("fpclassify_not_inf", this->CurFn); 3403 Builder.CreateCondBr(IsInf, End, NotInf); 3404 Result->addIncoming(InfLiteral, NotNan); 3405 3406 // if (fabs(V) >= MIN_NORMAL) return FP_NORMAL else FP_SUBNORMAL 3407 Builder.SetInsertPoint(NotInf); 3408 APFloat Smallest = APFloat::getSmallestNormalized( 3409 getContext().getFloatTypeSemantics(E->getArg(5)->getType())); 3410 Value *IsNormal = 3411 Builder.CreateFCmpUGE(VAbs, ConstantFP::get(V->getContext(), Smallest), 3412 "isnormal"); 3413 Value *NormalResult = 3414 Builder.CreateSelect(IsNormal, EmitScalarExpr(E->getArg(2)), 3415 EmitScalarExpr(E->getArg(3))); 3416 Builder.CreateBr(End); 3417 Result->addIncoming(NormalResult, NotInf); 3418 3419 // return Result 3420 Builder.SetInsertPoint(End); 3421 return RValue::get(Result); 3422 } 3423 3424 case Builtin::BIalloca: 3425 case Builtin::BI_alloca: 3426 case Builtin::BI__builtin_alloca: { 3427 Value *Size = EmitScalarExpr(E->getArg(0)); 3428 const TargetInfo &TI = getContext().getTargetInfo(); 3429 // The alignment of the alloca should correspond to __BIGGEST_ALIGNMENT__. 3430 const Align SuitableAlignmentInBytes = 3431 CGM.getContext() 3432 .toCharUnitsFromBits(TI.getSuitableAlign()) 3433 .getAsAlign(); 3434 AllocaInst *AI = Builder.CreateAlloca(Builder.getInt8Ty(), Size); 3435 AI->setAlignment(SuitableAlignmentInBytes); 3436 initializeAlloca(*this, AI, Size, SuitableAlignmentInBytes); 3437 return RValue::get(AI); 3438 } 3439 3440 case Builtin::BI__builtin_alloca_with_align: { 3441 Value *Size = EmitScalarExpr(E->getArg(0)); 3442 Value *AlignmentInBitsValue = EmitScalarExpr(E->getArg(1)); 3443 auto *AlignmentInBitsCI = cast<ConstantInt>(AlignmentInBitsValue); 3444 unsigned AlignmentInBits = AlignmentInBitsCI->getZExtValue(); 3445 const Align AlignmentInBytes = 3446 CGM.getContext().toCharUnitsFromBits(AlignmentInBits).getAsAlign(); 3447 AllocaInst *AI = Builder.CreateAlloca(Builder.getInt8Ty(), Size); 3448 AI->setAlignment(AlignmentInBytes); 3449 initializeAlloca(*this, AI, Size, AlignmentInBytes); 3450 return RValue::get(AI); 3451 } 3452 3453 case Builtin::BIbzero: 3454 case Builtin::BI__builtin_bzero: { 3455 Address Dest = EmitPointerWithAlignment(E->getArg(0)); 3456 Value *SizeVal = EmitScalarExpr(E->getArg(1)); 3457 EmitNonNullArgCheck(RValue::get(Dest.getPointer()), E->getArg(0)->getType(), 3458 E->getArg(0)->getExprLoc(), FD, 0); 3459 Builder.CreateMemSet(Dest, Builder.getInt8(0), SizeVal, false); 3460 return RValue::get(nullptr); 3461 } 3462 case Builtin::BImemcpy: 3463 case Builtin::BI__builtin_memcpy: 3464 case Builtin::BImempcpy: 3465 case Builtin::BI__builtin_mempcpy: { 3466 Address Dest = EmitPointerWithAlignment(E->getArg(0)); 3467 Address Src = EmitPointerWithAlignment(E->getArg(1)); 3468 Value *SizeVal = EmitScalarExpr(E->getArg(2)); 3469 EmitNonNullArgCheck(RValue::get(Dest.getPointer()), E->getArg(0)->getType(), 3470 E->getArg(0)->getExprLoc(), FD, 0); 3471 EmitNonNullArgCheck(RValue::get(Src.getPointer()), E->getArg(1)->getType(), 3472 E->getArg(1)->getExprLoc(), FD, 1); 3473 Builder.CreateMemCpy(Dest, Src, SizeVal, false); 3474 if (BuiltinID == Builtin::BImempcpy || 3475 BuiltinID == Builtin::BI__builtin_mempcpy) 3476 return RValue::get(Builder.CreateInBoundsGEP(Dest.getElementType(), 3477 Dest.getPointer(), SizeVal)); 3478 else 3479 return RValue::get(Dest.getPointer()); 3480 } 3481 3482 case Builtin::BI__builtin_memcpy_inline: { 3483 Address Dest = EmitPointerWithAlignment(E->getArg(0)); 3484 Address Src = EmitPointerWithAlignment(E->getArg(1)); 3485 uint64_t Size = 3486 E->getArg(2)->EvaluateKnownConstInt(getContext()).getZExtValue(); 3487 EmitNonNullArgCheck(RValue::get(Dest.getPointer()), E->getArg(0)->getType(), 3488 E->getArg(0)->getExprLoc(), FD, 0); 3489 EmitNonNullArgCheck(RValue::get(Src.getPointer()), E->getArg(1)->getType(), 3490 E->getArg(1)->getExprLoc(), FD, 1); 3491 Builder.CreateMemCpyInline(Dest, Src, Size); 3492 return RValue::get(nullptr); 3493 } 3494 3495 case Builtin::BI__builtin_char_memchr: 3496 BuiltinID = Builtin::BI__builtin_memchr; 3497 break; 3498 3499 case Builtin::BI__builtin___memcpy_chk: { 3500 // fold __builtin_memcpy_chk(x, y, cst1, cst2) to memcpy iff cst1<=cst2. 3501 Expr::EvalResult SizeResult, DstSizeResult; 3502 if (!E->getArg(2)->EvaluateAsInt(SizeResult, CGM.getContext()) || 3503 !E->getArg(3)->EvaluateAsInt(DstSizeResult, CGM.getContext())) 3504 break; 3505 llvm::APSInt Size = SizeResult.Val.getInt(); 3506 llvm::APSInt DstSize = DstSizeResult.Val.getInt(); 3507 if (Size.ugt(DstSize)) 3508 break; 3509 Address Dest = EmitPointerWithAlignment(E->getArg(0)); 3510 Address Src = EmitPointerWithAlignment(E->getArg(1)); 3511 Value *SizeVal = llvm::ConstantInt::get(Builder.getContext(), Size); 3512 Builder.CreateMemCpy(Dest, Src, SizeVal, false); 3513 return RValue::get(Dest.getPointer()); 3514 } 3515 3516 case Builtin::BI__builtin_objc_memmove_collectable: { 3517 Address DestAddr = EmitPointerWithAlignment(E->getArg(0)); 3518 Address SrcAddr = EmitPointerWithAlignment(E->getArg(1)); 3519 Value *SizeVal = EmitScalarExpr(E->getArg(2)); 3520 CGM.getObjCRuntime().EmitGCMemmoveCollectable(*this, 3521 DestAddr, SrcAddr, SizeVal); 3522 return RValue::get(DestAddr.getPointer()); 3523 } 3524 3525 case Builtin::BI__builtin___memmove_chk: { 3526 // fold __builtin_memmove_chk(x, y, cst1, cst2) to memmove iff cst1<=cst2. 3527 Expr::EvalResult SizeResult, DstSizeResult; 3528 if (!E->getArg(2)->EvaluateAsInt(SizeResult, CGM.getContext()) || 3529 !E->getArg(3)->EvaluateAsInt(DstSizeResult, CGM.getContext())) 3530 break; 3531 llvm::APSInt Size = SizeResult.Val.getInt(); 3532 llvm::APSInt DstSize = DstSizeResult.Val.getInt(); 3533 if (Size.ugt(DstSize)) 3534 break; 3535 Address Dest = EmitPointerWithAlignment(E->getArg(0)); 3536 Address Src = EmitPointerWithAlignment(E->getArg(1)); 3537 Value *SizeVal = llvm::ConstantInt::get(Builder.getContext(), Size); 3538 Builder.CreateMemMove(Dest, Src, SizeVal, false); 3539 return RValue::get(Dest.getPointer()); 3540 } 3541 3542 case Builtin::BImemmove: 3543 case Builtin::BI__builtin_memmove: { 3544 Address Dest = EmitPointerWithAlignment(E->getArg(0)); 3545 Address Src = EmitPointerWithAlignment(E->getArg(1)); 3546 Value *SizeVal = EmitScalarExpr(E->getArg(2)); 3547 EmitNonNullArgCheck(RValue::get(Dest.getPointer()), E->getArg(0)->getType(), 3548 E->getArg(0)->getExprLoc(), FD, 0); 3549 EmitNonNullArgCheck(RValue::get(Src.getPointer()), E->getArg(1)->getType(), 3550 E->getArg(1)->getExprLoc(), FD, 1); 3551 Builder.CreateMemMove(Dest, Src, SizeVal, false); 3552 return RValue::get(Dest.getPointer()); 3553 } 3554 case Builtin::BImemset: 3555 case Builtin::BI__builtin_memset: { 3556 Address Dest = EmitPointerWithAlignment(E->getArg(0)); 3557 Value *ByteVal = Builder.CreateTrunc(EmitScalarExpr(E->getArg(1)), 3558 Builder.getInt8Ty()); 3559 Value *SizeVal = EmitScalarExpr(E->getArg(2)); 3560 EmitNonNullArgCheck(RValue::get(Dest.getPointer()), E->getArg(0)->getType(), 3561 E->getArg(0)->getExprLoc(), FD, 0); 3562 Builder.CreateMemSet(Dest, ByteVal, SizeVal, false); 3563 return RValue::get(Dest.getPointer()); 3564 } 3565 case Builtin::BI__builtin___memset_chk: { 3566 // fold __builtin_memset_chk(x, y, cst1, cst2) to memset iff cst1<=cst2. 3567 Expr::EvalResult SizeResult, DstSizeResult; 3568 if (!E->getArg(2)->EvaluateAsInt(SizeResult, CGM.getContext()) || 3569 !E->getArg(3)->EvaluateAsInt(DstSizeResult, CGM.getContext())) 3570 break; 3571 llvm::APSInt Size = SizeResult.Val.getInt(); 3572 llvm::APSInt DstSize = DstSizeResult.Val.getInt(); 3573 if (Size.ugt(DstSize)) 3574 break; 3575 Address Dest = EmitPointerWithAlignment(E->getArg(0)); 3576 Value *ByteVal = Builder.CreateTrunc(EmitScalarExpr(E->getArg(1)), 3577 Builder.getInt8Ty()); 3578 Value *SizeVal = llvm::ConstantInt::get(Builder.getContext(), Size); 3579 Builder.CreateMemSet(Dest, ByteVal, SizeVal, false); 3580 return RValue::get(Dest.getPointer()); 3581 } 3582 case Builtin::BI__builtin_wmemchr: { 3583 // The MSVC runtime library does not provide a definition of wmemchr, so we 3584 // need an inline implementation. 3585 if (!getTarget().getTriple().isOSMSVCRT()) 3586 break; 3587 3588 llvm::Type *WCharTy = ConvertType(getContext().WCharTy); 3589 Value *Str = EmitScalarExpr(E->getArg(0)); 3590 Value *Chr = EmitScalarExpr(E->getArg(1)); 3591 Value *Size = EmitScalarExpr(E->getArg(2)); 3592 3593 BasicBlock *Entry = Builder.GetInsertBlock(); 3594 BasicBlock *CmpEq = createBasicBlock("wmemchr.eq"); 3595 BasicBlock *Next = createBasicBlock("wmemchr.next"); 3596 BasicBlock *Exit = createBasicBlock("wmemchr.exit"); 3597 Value *SizeEq0 = Builder.CreateICmpEQ(Size, ConstantInt::get(SizeTy, 0)); 3598 Builder.CreateCondBr(SizeEq0, Exit, CmpEq); 3599 3600 EmitBlock(CmpEq); 3601 PHINode *StrPhi = Builder.CreatePHI(Str->getType(), 2); 3602 StrPhi->addIncoming(Str, Entry); 3603 PHINode *SizePhi = Builder.CreatePHI(SizeTy, 2); 3604 SizePhi->addIncoming(Size, Entry); 3605 CharUnits WCharAlign = 3606 getContext().getTypeAlignInChars(getContext().WCharTy); 3607 Value *StrCh = Builder.CreateAlignedLoad(WCharTy, StrPhi, WCharAlign); 3608 Value *FoundChr = Builder.CreateConstInBoundsGEP1_32(WCharTy, StrPhi, 0); 3609 Value *StrEqChr = Builder.CreateICmpEQ(StrCh, Chr); 3610 Builder.CreateCondBr(StrEqChr, Exit, Next); 3611 3612 EmitBlock(Next); 3613 Value *NextStr = Builder.CreateConstInBoundsGEP1_32(WCharTy, StrPhi, 1); 3614 Value *NextSize = Builder.CreateSub(SizePhi, ConstantInt::get(SizeTy, 1)); 3615 Value *NextSizeEq0 = 3616 Builder.CreateICmpEQ(NextSize, ConstantInt::get(SizeTy, 0)); 3617 Builder.CreateCondBr(NextSizeEq0, Exit, CmpEq); 3618 StrPhi->addIncoming(NextStr, Next); 3619 SizePhi->addIncoming(NextSize, Next); 3620 3621 EmitBlock(Exit); 3622 PHINode *Ret = Builder.CreatePHI(Str->getType(), 3); 3623 Ret->addIncoming(llvm::Constant::getNullValue(Str->getType()), Entry); 3624 Ret->addIncoming(llvm::Constant::getNullValue(Str->getType()), Next); 3625 Ret->addIncoming(FoundChr, CmpEq); 3626 return RValue::get(Ret); 3627 } 3628 case Builtin::BI__builtin_wmemcmp: { 3629 // The MSVC runtime library does not provide a definition of wmemcmp, so we 3630 // need an inline implementation. 3631 if (!getTarget().getTriple().isOSMSVCRT()) 3632 break; 3633 3634 llvm::Type *WCharTy = ConvertType(getContext().WCharTy); 3635 3636 Value *Dst = EmitScalarExpr(E->getArg(0)); 3637 Value *Src = EmitScalarExpr(E->getArg(1)); 3638 Value *Size = EmitScalarExpr(E->getArg(2)); 3639 3640 BasicBlock *Entry = Builder.GetInsertBlock(); 3641 BasicBlock *CmpGT = createBasicBlock("wmemcmp.gt"); 3642 BasicBlock *CmpLT = createBasicBlock("wmemcmp.lt"); 3643 BasicBlock *Next = createBasicBlock("wmemcmp.next"); 3644 BasicBlock *Exit = createBasicBlock("wmemcmp.exit"); 3645 Value *SizeEq0 = Builder.CreateICmpEQ(Size, ConstantInt::get(SizeTy, 0)); 3646 Builder.CreateCondBr(SizeEq0, Exit, CmpGT); 3647 3648 EmitBlock(CmpGT); 3649 PHINode *DstPhi = Builder.CreatePHI(Dst->getType(), 2); 3650 DstPhi->addIncoming(Dst, Entry); 3651 PHINode *SrcPhi = Builder.CreatePHI(Src->getType(), 2); 3652 SrcPhi->addIncoming(Src, Entry); 3653 PHINode *SizePhi = Builder.CreatePHI(SizeTy, 2); 3654 SizePhi->addIncoming(Size, Entry); 3655 CharUnits WCharAlign = 3656 getContext().getTypeAlignInChars(getContext().WCharTy); 3657 Value *DstCh = Builder.CreateAlignedLoad(WCharTy, DstPhi, WCharAlign); 3658 Value *SrcCh = Builder.CreateAlignedLoad(WCharTy, SrcPhi, WCharAlign); 3659 Value *DstGtSrc = Builder.CreateICmpUGT(DstCh, SrcCh); 3660 Builder.CreateCondBr(DstGtSrc, Exit, CmpLT); 3661 3662 EmitBlock(CmpLT); 3663 Value *DstLtSrc = Builder.CreateICmpULT(DstCh, SrcCh); 3664 Builder.CreateCondBr(DstLtSrc, Exit, Next); 3665 3666 EmitBlock(Next); 3667 Value *NextDst = Builder.CreateConstInBoundsGEP1_32(WCharTy, DstPhi, 1); 3668 Value *NextSrc = Builder.CreateConstInBoundsGEP1_32(WCharTy, SrcPhi, 1); 3669 Value *NextSize = Builder.CreateSub(SizePhi, ConstantInt::get(SizeTy, 1)); 3670 Value *NextSizeEq0 = 3671 Builder.CreateICmpEQ(NextSize, ConstantInt::get(SizeTy, 0)); 3672 Builder.CreateCondBr(NextSizeEq0, Exit, CmpGT); 3673 DstPhi->addIncoming(NextDst, Next); 3674 SrcPhi->addIncoming(NextSrc, Next); 3675 SizePhi->addIncoming(NextSize, Next); 3676 3677 EmitBlock(Exit); 3678 PHINode *Ret = Builder.CreatePHI(IntTy, 4); 3679 Ret->addIncoming(ConstantInt::get(IntTy, 0), Entry); 3680 Ret->addIncoming(ConstantInt::get(IntTy, 1), CmpGT); 3681 Ret->addIncoming(ConstantInt::get(IntTy, -1), CmpLT); 3682 Ret->addIncoming(ConstantInt::get(IntTy, 0), Next); 3683 return RValue::get(Ret); 3684 } 3685 case Builtin::BI__builtin_dwarf_cfa: { 3686 // The offset in bytes from the first argument to the CFA. 3687 // 3688 // Why on earth is this in the frontend? Is there any reason at 3689 // all that the backend can't reasonably determine this while 3690 // lowering llvm.eh.dwarf.cfa()? 3691 // 3692 // TODO: If there's a satisfactory reason, add a target hook for 3693 // this instead of hard-coding 0, which is correct for most targets. 3694 int32_t Offset = 0; 3695 3696 Function *F = CGM.getIntrinsic(Intrinsic::eh_dwarf_cfa); 3697 return RValue::get(Builder.CreateCall(F, 3698 llvm::ConstantInt::get(Int32Ty, Offset))); 3699 } 3700 case Builtin::BI__builtin_return_address: { 3701 Value *Depth = ConstantEmitter(*this).emitAbstract(E->getArg(0), 3702 getContext().UnsignedIntTy); 3703 Function *F = CGM.getIntrinsic(Intrinsic::returnaddress); 3704 return RValue::get(Builder.CreateCall(F, Depth)); 3705 } 3706 case Builtin::BI_ReturnAddress: { 3707 Function *F = CGM.getIntrinsic(Intrinsic::returnaddress); 3708 return RValue::get(Builder.CreateCall(F, Builder.getInt32(0))); 3709 } 3710 case Builtin::BI__builtin_frame_address: { 3711 Value *Depth = ConstantEmitter(*this).emitAbstract(E->getArg(0), 3712 getContext().UnsignedIntTy); 3713 Function *F = CGM.getIntrinsic(Intrinsic::frameaddress, AllocaInt8PtrTy); 3714 return RValue::get(Builder.CreateCall(F, Depth)); 3715 } 3716 case Builtin::BI__builtin_extract_return_addr: { 3717 Value *Address = EmitScalarExpr(E->getArg(0)); 3718 Value *Result = getTargetHooks().decodeReturnAddress(*this, Address); 3719 return RValue::get(Result); 3720 } 3721 case Builtin::BI__builtin_frob_return_addr: { 3722 Value *Address = EmitScalarExpr(E->getArg(0)); 3723 Value *Result = getTargetHooks().encodeReturnAddress(*this, Address); 3724 return RValue::get(Result); 3725 } 3726 case Builtin::BI__builtin_dwarf_sp_column: { 3727 llvm::IntegerType *Ty 3728 = cast<llvm::IntegerType>(ConvertType(E->getType())); 3729 int Column = getTargetHooks().getDwarfEHStackPointer(CGM); 3730 if (Column == -1) { 3731 CGM.ErrorUnsupported(E, "__builtin_dwarf_sp_column"); 3732 return RValue::get(llvm::UndefValue::get(Ty)); 3733 } 3734 return RValue::get(llvm::ConstantInt::get(Ty, Column, true)); 3735 } 3736 case Builtin::BI__builtin_init_dwarf_reg_size_table: { 3737 Value *Address = EmitScalarExpr(E->getArg(0)); 3738 if (getTargetHooks().initDwarfEHRegSizeTable(*this, Address)) 3739 CGM.ErrorUnsupported(E, "__builtin_init_dwarf_reg_size_table"); 3740 return RValue::get(llvm::UndefValue::get(ConvertType(E->getType()))); 3741 } 3742 case Builtin::BI__builtin_eh_return: { 3743 Value *Int = EmitScalarExpr(E->getArg(0)); 3744 Value *Ptr = EmitScalarExpr(E->getArg(1)); 3745 3746 llvm::IntegerType *IntTy = cast<llvm::IntegerType>(Int->getType()); 3747 assert((IntTy->getBitWidth() == 32 || IntTy->getBitWidth() == 64) && 3748 "LLVM's __builtin_eh_return only supports 32- and 64-bit variants"); 3749 Function *F = 3750 CGM.getIntrinsic(IntTy->getBitWidth() == 32 ? Intrinsic::eh_return_i32 3751 : Intrinsic::eh_return_i64); 3752 Builder.CreateCall(F, {Int, Ptr}); 3753 Builder.CreateUnreachable(); 3754 3755 // We do need to preserve an insertion point. 3756 EmitBlock(createBasicBlock("builtin_eh_return.cont")); 3757 3758 return RValue::get(nullptr); 3759 } 3760 case Builtin::BI__builtin_unwind_init: { 3761 Function *F = CGM.getIntrinsic(Intrinsic::eh_unwind_init); 3762 return RValue::get(Builder.CreateCall(F)); 3763 } 3764 case Builtin::BI__builtin_extend_pointer: { 3765 // Extends a pointer to the size of an _Unwind_Word, which is 3766 // uint64_t on all platforms. Generally this gets poked into a 3767 // register and eventually used as an address, so if the 3768 // addressing registers are wider than pointers and the platform 3769 // doesn't implicitly ignore high-order bits when doing 3770 // addressing, we need to make sure we zext / sext based on 3771 // the platform's expectations. 3772 // 3773 // See: http://gcc.gnu.org/ml/gcc-bugs/2002-02/msg00237.html 3774 3775 // Cast the pointer to intptr_t. 3776 Value *Ptr = EmitScalarExpr(E->getArg(0)); 3777 Value *Result = Builder.CreatePtrToInt(Ptr, IntPtrTy, "extend.cast"); 3778 3779 // If that's 64 bits, we're done. 3780 if (IntPtrTy->getBitWidth() == 64) 3781 return RValue::get(Result); 3782 3783 // Otherwise, ask the codegen data what to do. 3784 if (getTargetHooks().extendPointerWithSExt()) 3785 return RValue::get(Builder.CreateSExt(Result, Int64Ty, "extend.sext")); 3786 else 3787 return RValue::get(Builder.CreateZExt(Result, Int64Ty, "extend.zext")); 3788 } 3789 case Builtin::BI__builtin_setjmp: { 3790 // Buffer is a void**. 3791 Address Buf = EmitPointerWithAlignment(E->getArg(0)); 3792 3793 // Store the frame pointer to the setjmp buffer. 3794 Value *FrameAddr = Builder.CreateCall( 3795 CGM.getIntrinsic(Intrinsic::frameaddress, AllocaInt8PtrTy), 3796 ConstantInt::get(Int32Ty, 0)); 3797 Builder.CreateStore(FrameAddr, Buf); 3798 3799 // Store the stack pointer to the setjmp buffer. 3800 Value *StackAddr = 3801 Builder.CreateCall(CGM.getIntrinsic(Intrinsic::stacksave)); 3802 Address StackSaveSlot = Builder.CreateConstInBoundsGEP(Buf, 2); 3803 Builder.CreateStore(StackAddr, StackSaveSlot); 3804 3805 // Call LLVM's EH setjmp, which is lightweight. 3806 Function *F = CGM.getIntrinsic(Intrinsic::eh_sjlj_setjmp); 3807 Buf = Builder.CreateBitCast(Buf, Int8PtrTy); 3808 return RValue::get(Builder.CreateCall(F, Buf.getPointer())); 3809 } 3810 case Builtin::BI__builtin_longjmp: { 3811 Value *Buf = EmitScalarExpr(E->getArg(0)); 3812 Buf = Builder.CreateBitCast(Buf, Int8PtrTy); 3813 3814 // Call LLVM's EH longjmp, which is lightweight. 3815 Builder.CreateCall(CGM.getIntrinsic(Intrinsic::eh_sjlj_longjmp), Buf); 3816 3817 // longjmp doesn't return; mark this as unreachable. 3818 Builder.CreateUnreachable(); 3819 3820 // We do need to preserve an insertion point. 3821 EmitBlock(createBasicBlock("longjmp.cont")); 3822 3823 return RValue::get(nullptr); 3824 } 3825 case Builtin::BI__builtin_launder: { 3826 const Expr *Arg = E->getArg(0); 3827 QualType ArgTy = Arg->getType()->getPointeeType(); 3828 Value *Ptr = EmitScalarExpr(Arg); 3829 if (TypeRequiresBuiltinLaunder(CGM, ArgTy)) 3830 Ptr = Builder.CreateLaunderInvariantGroup(Ptr); 3831 3832 return RValue::get(Ptr); 3833 } 3834 case Builtin::BI__sync_fetch_and_add: 3835 case Builtin::BI__sync_fetch_and_sub: 3836 case Builtin::BI__sync_fetch_and_or: 3837 case Builtin::BI__sync_fetch_and_and: 3838 case Builtin::BI__sync_fetch_and_xor: 3839 case Builtin::BI__sync_fetch_and_nand: 3840 case Builtin::BI__sync_add_and_fetch: 3841 case Builtin::BI__sync_sub_and_fetch: 3842 case Builtin::BI__sync_and_and_fetch: 3843 case Builtin::BI__sync_or_and_fetch: 3844 case Builtin::BI__sync_xor_and_fetch: 3845 case Builtin::BI__sync_nand_and_fetch: 3846 case Builtin::BI__sync_val_compare_and_swap: 3847 case Builtin::BI__sync_bool_compare_and_swap: 3848 case Builtin::BI__sync_lock_test_and_set: 3849 case Builtin::BI__sync_lock_release: 3850 case Builtin::BI__sync_swap: 3851 llvm_unreachable("Shouldn't make it through sema"); 3852 case Builtin::BI__sync_fetch_and_add_1: 3853 case Builtin::BI__sync_fetch_and_add_2: 3854 case Builtin::BI__sync_fetch_and_add_4: 3855 case Builtin::BI__sync_fetch_and_add_8: 3856 case Builtin::BI__sync_fetch_and_add_16: 3857 return EmitBinaryAtomic(*this, llvm::AtomicRMWInst::Add, E); 3858 case Builtin::BI__sync_fetch_and_sub_1: 3859 case Builtin::BI__sync_fetch_and_sub_2: 3860 case Builtin::BI__sync_fetch_and_sub_4: 3861 case Builtin::BI__sync_fetch_and_sub_8: 3862 case Builtin::BI__sync_fetch_and_sub_16: 3863 return EmitBinaryAtomic(*this, llvm::AtomicRMWInst::Sub, E); 3864 case Builtin::BI__sync_fetch_and_or_1: 3865 case Builtin::BI__sync_fetch_and_or_2: 3866 case Builtin::BI__sync_fetch_and_or_4: 3867 case Builtin::BI__sync_fetch_and_or_8: 3868 case Builtin::BI__sync_fetch_and_or_16: 3869 return EmitBinaryAtomic(*this, llvm::AtomicRMWInst::Or, E); 3870 case Builtin::BI__sync_fetch_and_and_1: 3871 case Builtin::BI__sync_fetch_and_and_2: 3872 case Builtin::BI__sync_fetch_and_and_4: 3873 case Builtin::BI__sync_fetch_and_and_8: 3874 case Builtin::BI__sync_fetch_and_and_16: 3875 return EmitBinaryAtomic(*this, llvm::AtomicRMWInst::And, E); 3876 case Builtin::BI__sync_fetch_and_xor_1: 3877 case Builtin::BI__sync_fetch_and_xor_2: 3878 case Builtin::BI__sync_fetch_and_xor_4: 3879 case Builtin::BI__sync_fetch_and_xor_8: 3880 case Builtin::BI__sync_fetch_and_xor_16: 3881 return EmitBinaryAtomic(*this, llvm::AtomicRMWInst::Xor, E); 3882 case Builtin::BI__sync_fetch_and_nand_1: 3883 case Builtin::BI__sync_fetch_and_nand_2: 3884 case Builtin::BI__sync_fetch_and_nand_4: 3885 case Builtin::BI__sync_fetch_and_nand_8: 3886 case Builtin::BI__sync_fetch_and_nand_16: 3887 return EmitBinaryAtomic(*this, llvm::AtomicRMWInst::Nand, E); 3888 3889 // Clang extensions: not overloaded yet. 3890 case Builtin::BI__sync_fetch_and_min: 3891 return EmitBinaryAtomic(*this, llvm::AtomicRMWInst::Min, E); 3892 case Builtin::BI__sync_fetch_and_max: 3893 return EmitBinaryAtomic(*this, llvm::AtomicRMWInst::Max, E); 3894 case Builtin::BI__sync_fetch_and_umin: 3895 return EmitBinaryAtomic(*this, llvm::AtomicRMWInst::UMin, E); 3896 case Builtin::BI__sync_fetch_and_umax: 3897 return EmitBinaryAtomic(*this, llvm::AtomicRMWInst::UMax, E); 3898 3899 case Builtin::BI__sync_add_and_fetch_1: 3900 case Builtin::BI__sync_add_and_fetch_2: 3901 case Builtin::BI__sync_add_and_fetch_4: 3902 case Builtin::BI__sync_add_and_fetch_8: 3903 case Builtin::BI__sync_add_and_fetch_16: 3904 return EmitBinaryAtomicPost(*this, llvm::AtomicRMWInst::Add, E, 3905 llvm::Instruction::Add); 3906 case Builtin::BI__sync_sub_and_fetch_1: 3907 case Builtin::BI__sync_sub_and_fetch_2: 3908 case Builtin::BI__sync_sub_and_fetch_4: 3909 case Builtin::BI__sync_sub_and_fetch_8: 3910 case Builtin::BI__sync_sub_and_fetch_16: 3911 return EmitBinaryAtomicPost(*this, llvm::AtomicRMWInst::Sub, E, 3912 llvm::Instruction::Sub); 3913 case Builtin::BI__sync_and_and_fetch_1: 3914 case Builtin::BI__sync_and_and_fetch_2: 3915 case Builtin::BI__sync_and_and_fetch_4: 3916 case Builtin::BI__sync_and_and_fetch_8: 3917 case Builtin::BI__sync_and_and_fetch_16: 3918 return EmitBinaryAtomicPost(*this, llvm::AtomicRMWInst::And, E, 3919 llvm::Instruction::And); 3920 case Builtin::BI__sync_or_and_fetch_1: 3921 case Builtin::BI__sync_or_and_fetch_2: 3922 case Builtin::BI__sync_or_and_fetch_4: 3923 case Builtin::BI__sync_or_and_fetch_8: 3924 case Builtin::BI__sync_or_and_fetch_16: 3925 return EmitBinaryAtomicPost(*this, llvm::AtomicRMWInst::Or, E, 3926 llvm::Instruction::Or); 3927 case Builtin::BI__sync_xor_and_fetch_1: 3928 case Builtin::BI__sync_xor_and_fetch_2: 3929 case Builtin::BI__sync_xor_and_fetch_4: 3930 case Builtin::BI__sync_xor_and_fetch_8: 3931 case Builtin::BI__sync_xor_and_fetch_16: 3932 return EmitBinaryAtomicPost(*this, llvm::AtomicRMWInst::Xor, E, 3933 llvm::Instruction::Xor); 3934 case Builtin::BI__sync_nand_and_fetch_1: 3935 case Builtin::BI__sync_nand_and_fetch_2: 3936 case Builtin::BI__sync_nand_and_fetch_4: 3937 case Builtin::BI__sync_nand_and_fetch_8: 3938 case Builtin::BI__sync_nand_and_fetch_16: 3939 return EmitBinaryAtomicPost(*this, llvm::AtomicRMWInst::Nand, E, 3940 llvm::Instruction::And, true); 3941 3942 case Builtin::BI__sync_val_compare_and_swap_1: 3943 case Builtin::BI__sync_val_compare_and_swap_2: 3944 case Builtin::BI__sync_val_compare_and_swap_4: 3945 case Builtin::BI__sync_val_compare_and_swap_8: 3946 case Builtin::BI__sync_val_compare_and_swap_16: 3947 return RValue::get(MakeAtomicCmpXchgValue(*this, E, false)); 3948 3949 case Builtin::BI__sync_bool_compare_and_swap_1: 3950 case Builtin::BI__sync_bool_compare_and_swap_2: 3951 case Builtin::BI__sync_bool_compare_and_swap_4: 3952 case Builtin::BI__sync_bool_compare_and_swap_8: 3953 case Builtin::BI__sync_bool_compare_and_swap_16: 3954 return RValue::get(MakeAtomicCmpXchgValue(*this, E, true)); 3955 3956 case Builtin::BI__sync_swap_1: 3957 case Builtin::BI__sync_swap_2: 3958 case Builtin::BI__sync_swap_4: 3959 case Builtin::BI__sync_swap_8: 3960 case Builtin::BI__sync_swap_16: 3961 return EmitBinaryAtomic(*this, llvm::AtomicRMWInst::Xchg, E); 3962 3963 case Builtin::BI__sync_lock_test_and_set_1: 3964 case Builtin::BI__sync_lock_test_and_set_2: 3965 case Builtin::BI__sync_lock_test_and_set_4: 3966 case Builtin::BI__sync_lock_test_and_set_8: 3967 case Builtin::BI__sync_lock_test_and_set_16: 3968 return EmitBinaryAtomic(*this, llvm::AtomicRMWInst::Xchg, E); 3969 3970 case Builtin::BI__sync_lock_release_1: 3971 case Builtin::BI__sync_lock_release_2: 3972 case Builtin::BI__sync_lock_release_4: 3973 case Builtin::BI__sync_lock_release_8: 3974 case Builtin::BI__sync_lock_release_16: { 3975 Value *Ptr = EmitScalarExpr(E->getArg(0)); 3976 QualType ElTy = E->getArg(0)->getType()->getPointeeType(); 3977 CharUnits StoreSize = getContext().getTypeSizeInChars(ElTy); 3978 llvm::Type *ITy = llvm::IntegerType::get(getLLVMContext(), 3979 StoreSize.getQuantity() * 8); 3980 Ptr = Builder.CreateBitCast(Ptr, ITy->getPointerTo()); 3981 llvm::StoreInst *Store = 3982 Builder.CreateAlignedStore(llvm::Constant::getNullValue(ITy), Ptr, 3983 StoreSize); 3984 Store->setAtomic(llvm::AtomicOrdering::Release); 3985 return RValue::get(nullptr); 3986 } 3987 3988 case Builtin::BI__sync_synchronize: { 3989 // We assume this is supposed to correspond to a C++0x-style 3990 // sequentially-consistent fence (i.e. this is only usable for 3991 // synchronization, not device I/O or anything like that). This intrinsic 3992 // is really badly designed in the sense that in theory, there isn't 3993 // any way to safely use it... but in practice, it mostly works 3994 // to use it with non-atomic loads and stores to get acquire/release 3995 // semantics. 3996 Builder.CreateFence(llvm::AtomicOrdering::SequentiallyConsistent); 3997 return RValue::get(nullptr); 3998 } 3999 4000 case Builtin::BI__builtin_nontemporal_load: 4001 return RValue::get(EmitNontemporalLoad(*this, E)); 4002 case Builtin::BI__builtin_nontemporal_store: 4003 return RValue::get(EmitNontemporalStore(*this, E)); 4004 case Builtin::BI__c11_atomic_is_lock_free: 4005 case Builtin::BI__atomic_is_lock_free: { 4006 // Call "bool __atomic_is_lock_free(size_t size, void *ptr)". For the 4007 // __c11 builtin, ptr is 0 (indicating a properly-aligned object), since 4008 // _Atomic(T) is always properly-aligned. 4009 const char *LibCallName = "__atomic_is_lock_free"; 4010 CallArgList Args; 4011 Args.add(RValue::get(EmitScalarExpr(E->getArg(0))), 4012 getContext().getSizeType()); 4013 if (BuiltinID == Builtin::BI__atomic_is_lock_free) 4014 Args.add(RValue::get(EmitScalarExpr(E->getArg(1))), 4015 getContext().VoidPtrTy); 4016 else 4017 Args.add(RValue::get(llvm::Constant::getNullValue(VoidPtrTy)), 4018 getContext().VoidPtrTy); 4019 const CGFunctionInfo &FuncInfo = 4020 CGM.getTypes().arrangeBuiltinFunctionCall(E->getType(), Args); 4021 llvm::FunctionType *FTy = CGM.getTypes().GetFunctionType(FuncInfo); 4022 llvm::FunctionCallee Func = CGM.CreateRuntimeFunction(FTy, LibCallName); 4023 return EmitCall(FuncInfo, CGCallee::forDirect(Func), 4024 ReturnValueSlot(), Args); 4025 } 4026 4027 case Builtin::BI__atomic_test_and_set: { 4028 // Look at the argument type to determine whether this is a volatile 4029 // operation. The parameter type is always volatile. 4030 QualType PtrTy = E->getArg(0)->IgnoreImpCasts()->getType(); 4031 bool Volatile = 4032 PtrTy->castAs<PointerType>()->getPointeeType().isVolatileQualified(); 4033 4034 Value *Ptr = EmitScalarExpr(E->getArg(0)); 4035 unsigned AddrSpace = Ptr->getType()->getPointerAddressSpace(); 4036 Ptr = Builder.CreateBitCast(Ptr, Int8Ty->getPointerTo(AddrSpace)); 4037 Value *NewVal = Builder.getInt8(1); 4038 Value *Order = EmitScalarExpr(E->getArg(1)); 4039 if (isa<llvm::ConstantInt>(Order)) { 4040 int ord = cast<llvm::ConstantInt>(Order)->getZExtValue(); 4041 AtomicRMWInst *Result = nullptr; 4042 switch (ord) { 4043 case 0: // memory_order_relaxed 4044 default: // invalid order 4045 Result = Builder.CreateAtomicRMW(llvm::AtomicRMWInst::Xchg, Ptr, NewVal, 4046 llvm::AtomicOrdering::Monotonic); 4047 break; 4048 case 1: // memory_order_consume 4049 case 2: // memory_order_acquire 4050 Result = Builder.CreateAtomicRMW(llvm::AtomicRMWInst::Xchg, Ptr, NewVal, 4051 llvm::AtomicOrdering::Acquire); 4052 break; 4053 case 3: // memory_order_release 4054 Result = Builder.CreateAtomicRMW(llvm::AtomicRMWInst::Xchg, Ptr, NewVal, 4055 llvm::AtomicOrdering::Release); 4056 break; 4057 case 4: // memory_order_acq_rel 4058 4059 Result = Builder.CreateAtomicRMW(llvm::AtomicRMWInst::Xchg, Ptr, NewVal, 4060 llvm::AtomicOrdering::AcquireRelease); 4061 break; 4062 case 5: // memory_order_seq_cst 4063 Result = Builder.CreateAtomicRMW( 4064 llvm::AtomicRMWInst::Xchg, Ptr, NewVal, 4065 llvm::AtomicOrdering::SequentiallyConsistent); 4066 break; 4067 } 4068 Result->setVolatile(Volatile); 4069 return RValue::get(Builder.CreateIsNotNull(Result, "tobool")); 4070 } 4071 4072 llvm::BasicBlock *ContBB = createBasicBlock("atomic.continue", CurFn); 4073 4074 llvm::BasicBlock *BBs[5] = { 4075 createBasicBlock("monotonic", CurFn), 4076 createBasicBlock("acquire", CurFn), 4077 createBasicBlock("release", CurFn), 4078 createBasicBlock("acqrel", CurFn), 4079 createBasicBlock("seqcst", CurFn) 4080 }; 4081 llvm::AtomicOrdering Orders[5] = { 4082 llvm::AtomicOrdering::Monotonic, llvm::AtomicOrdering::Acquire, 4083 llvm::AtomicOrdering::Release, llvm::AtomicOrdering::AcquireRelease, 4084 llvm::AtomicOrdering::SequentiallyConsistent}; 4085 4086 Order = Builder.CreateIntCast(Order, Builder.getInt32Ty(), false); 4087 llvm::SwitchInst *SI = Builder.CreateSwitch(Order, BBs[0]); 4088 4089 Builder.SetInsertPoint(ContBB); 4090 PHINode *Result = Builder.CreatePHI(Int8Ty, 5, "was_set"); 4091 4092 for (unsigned i = 0; i < 5; ++i) { 4093 Builder.SetInsertPoint(BBs[i]); 4094 AtomicRMWInst *RMW = Builder.CreateAtomicRMW(llvm::AtomicRMWInst::Xchg, 4095 Ptr, NewVal, Orders[i]); 4096 RMW->setVolatile(Volatile); 4097 Result->addIncoming(RMW, BBs[i]); 4098 Builder.CreateBr(ContBB); 4099 } 4100 4101 SI->addCase(Builder.getInt32(0), BBs[0]); 4102 SI->addCase(Builder.getInt32(1), BBs[1]); 4103 SI->addCase(Builder.getInt32(2), BBs[1]); 4104 SI->addCase(Builder.getInt32(3), BBs[2]); 4105 SI->addCase(Builder.getInt32(4), BBs[3]); 4106 SI->addCase(Builder.getInt32(5), BBs[4]); 4107 4108 Builder.SetInsertPoint(ContBB); 4109 return RValue::get(Builder.CreateIsNotNull(Result, "tobool")); 4110 } 4111 4112 case Builtin::BI__atomic_clear: { 4113 QualType PtrTy = E->getArg(0)->IgnoreImpCasts()->getType(); 4114 bool Volatile = 4115 PtrTy->castAs<PointerType>()->getPointeeType().isVolatileQualified(); 4116 4117 Address Ptr = EmitPointerWithAlignment(E->getArg(0)); 4118 unsigned AddrSpace = Ptr.getPointer()->getType()->getPointerAddressSpace(); 4119 Ptr = Builder.CreateBitCast(Ptr, Int8Ty->getPointerTo(AddrSpace)); 4120 Value *NewVal = Builder.getInt8(0); 4121 Value *Order = EmitScalarExpr(E->getArg(1)); 4122 if (isa<llvm::ConstantInt>(Order)) { 4123 int ord = cast<llvm::ConstantInt>(Order)->getZExtValue(); 4124 StoreInst *Store = Builder.CreateStore(NewVal, Ptr, Volatile); 4125 switch (ord) { 4126 case 0: // memory_order_relaxed 4127 default: // invalid order 4128 Store->setOrdering(llvm::AtomicOrdering::Monotonic); 4129 break; 4130 case 3: // memory_order_release 4131 Store->setOrdering(llvm::AtomicOrdering::Release); 4132 break; 4133 case 5: // memory_order_seq_cst 4134 Store->setOrdering(llvm::AtomicOrdering::SequentiallyConsistent); 4135 break; 4136 } 4137 return RValue::get(nullptr); 4138 } 4139 4140 llvm::BasicBlock *ContBB = createBasicBlock("atomic.continue", CurFn); 4141 4142 llvm::BasicBlock *BBs[3] = { 4143 createBasicBlock("monotonic", CurFn), 4144 createBasicBlock("release", CurFn), 4145 createBasicBlock("seqcst", CurFn) 4146 }; 4147 llvm::AtomicOrdering Orders[3] = { 4148 llvm::AtomicOrdering::Monotonic, llvm::AtomicOrdering::Release, 4149 llvm::AtomicOrdering::SequentiallyConsistent}; 4150 4151 Order = Builder.CreateIntCast(Order, Builder.getInt32Ty(), false); 4152 llvm::SwitchInst *SI = Builder.CreateSwitch(Order, BBs[0]); 4153 4154 for (unsigned i = 0; i < 3; ++i) { 4155 Builder.SetInsertPoint(BBs[i]); 4156 StoreInst *Store = Builder.CreateStore(NewVal, Ptr, Volatile); 4157 Store->setOrdering(Orders[i]); 4158 Builder.CreateBr(ContBB); 4159 } 4160 4161 SI->addCase(Builder.getInt32(0), BBs[0]); 4162 SI->addCase(Builder.getInt32(3), BBs[1]); 4163 SI->addCase(Builder.getInt32(5), BBs[2]); 4164 4165 Builder.SetInsertPoint(ContBB); 4166 return RValue::get(nullptr); 4167 } 4168 4169 case Builtin::BI__atomic_thread_fence: 4170 case Builtin::BI__atomic_signal_fence: 4171 case Builtin::BI__c11_atomic_thread_fence: 4172 case Builtin::BI__c11_atomic_signal_fence: { 4173 llvm::SyncScope::ID SSID; 4174 if (BuiltinID == Builtin::BI__atomic_signal_fence || 4175 BuiltinID == Builtin::BI__c11_atomic_signal_fence) 4176 SSID = llvm::SyncScope::SingleThread; 4177 else 4178 SSID = llvm::SyncScope::System; 4179 Value *Order = EmitScalarExpr(E->getArg(0)); 4180 if (isa<llvm::ConstantInt>(Order)) { 4181 int ord = cast<llvm::ConstantInt>(Order)->getZExtValue(); 4182 switch (ord) { 4183 case 0: // memory_order_relaxed 4184 default: // invalid order 4185 break; 4186 case 1: // memory_order_consume 4187 case 2: // memory_order_acquire 4188 Builder.CreateFence(llvm::AtomicOrdering::Acquire, SSID); 4189 break; 4190 case 3: // memory_order_release 4191 Builder.CreateFence(llvm::AtomicOrdering::Release, SSID); 4192 break; 4193 case 4: // memory_order_acq_rel 4194 Builder.CreateFence(llvm::AtomicOrdering::AcquireRelease, SSID); 4195 break; 4196 case 5: // memory_order_seq_cst 4197 Builder.CreateFence(llvm::AtomicOrdering::SequentiallyConsistent, SSID); 4198 break; 4199 } 4200 return RValue::get(nullptr); 4201 } 4202 4203 llvm::BasicBlock *AcquireBB, *ReleaseBB, *AcqRelBB, *SeqCstBB; 4204 AcquireBB = createBasicBlock("acquire", CurFn); 4205 ReleaseBB = createBasicBlock("release", CurFn); 4206 AcqRelBB = createBasicBlock("acqrel", CurFn); 4207 SeqCstBB = createBasicBlock("seqcst", CurFn); 4208 llvm::BasicBlock *ContBB = createBasicBlock("atomic.continue", CurFn); 4209 4210 Order = Builder.CreateIntCast(Order, Builder.getInt32Ty(), false); 4211 llvm::SwitchInst *SI = Builder.CreateSwitch(Order, ContBB); 4212 4213 Builder.SetInsertPoint(AcquireBB); 4214 Builder.CreateFence(llvm::AtomicOrdering::Acquire, SSID); 4215 Builder.CreateBr(ContBB); 4216 SI->addCase(Builder.getInt32(1), AcquireBB); 4217 SI->addCase(Builder.getInt32(2), AcquireBB); 4218 4219 Builder.SetInsertPoint(ReleaseBB); 4220 Builder.CreateFence(llvm::AtomicOrdering::Release, SSID); 4221 Builder.CreateBr(ContBB); 4222 SI->addCase(Builder.getInt32(3), ReleaseBB); 4223 4224 Builder.SetInsertPoint(AcqRelBB); 4225 Builder.CreateFence(llvm::AtomicOrdering::AcquireRelease, SSID); 4226 Builder.CreateBr(ContBB); 4227 SI->addCase(Builder.getInt32(4), AcqRelBB); 4228 4229 Builder.SetInsertPoint(SeqCstBB); 4230 Builder.CreateFence(llvm::AtomicOrdering::SequentiallyConsistent, SSID); 4231 Builder.CreateBr(ContBB); 4232 SI->addCase(Builder.getInt32(5), SeqCstBB); 4233 4234 Builder.SetInsertPoint(ContBB); 4235 return RValue::get(nullptr); 4236 } 4237 4238 case Builtin::BI__builtin_signbit: 4239 case Builtin::BI__builtin_signbitf: 4240 case Builtin::BI__builtin_signbitl: { 4241 return RValue::get( 4242 Builder.CreateZExt(EmitSignBit(*this, EmitScalarExpr(E->getArg(0))), 4243 ConvertType(E->getType()))); 4244 } 4245 case Builtin::BI__warn_memset_zero_len: 4246 return RValue::getIgnored(); 4247 case Builtin::BI__annotation: { 4248 // Re-encode each wide string to UTF8 and make an MDString. 4249 SmallVector<Metadata *, 1> Strings; 4250 for (const Expr *Arg : E->arguments()) { 4251 const auto *Str = cast<StringLiteral>(Arg->IgnoreParenCasts()); 4252 assert(Str->getCharByteWidth() == 2); 4253 StringRef WideBytes = Str->getBytes(); 4254 std::string StrUtf8; 4255 if (!convertUTF16ToUTF8String( 4256 makeArrayRef(WideBytes.data(), WideBytes.size()), StrUtf8)) { 4257 CGM.ErrorUnsupported(E, "non-UTF16 __annotation argument"); 4258 continue; 4259 } 4260 Strings.push_back(llvm::MDString::get(getLLVMContext(), StrUtf8)); 4261 } 4262 4263 // Build and MDTuple of MDStrings and emit the intrinsic call. 4264 llvm::Function *F = 4265 CGM.getIntrinsic(llvm::Intrinsic::codeview_annotation, {}); 4266 MDTuple *StrTuple = MDTuple::get(getLLVMContext(), Strings); 4267 Builder.CreateCall(F, MetadataAsValue::get(getLLVMContext(), StrTuple)); 4268 return RValue::getIgnored(); 4269 } 4270 case Builtin::BI__builtin_annotation: { 4271 llvm::Value *AnnVal = EmitScalarExpr(E->getArg(0)); 4272 llvm::Function *F = CGM.getIntrinsic(llvm::Intrinsic::annotation, 4273 AnnVal->getType()); 4274 4275 // Get the annotation string, go through casts. Sema requires this to be a 4276 // non-wide string literal, potentially casted, so the cast<> is safe. 4277 const Expr *AnnotationStrExpr = E->getArg(1)->IgnoreParenCasts(); 4278 StringRef Str = cast<StringLiteral>(AnnotationStrExpr)->getString(); 4279 return RValue::get( 4280 EmitAnnotationCall(F, AnnVal, Str, E->getExprLoc(), nullptr)); 4281 } 4282 case Builtin::BI__builtin_addcb: 4283 case Builtin::BI__builtin_addcs: 4284 case Builtin::BI__builtin_addc: 4285 case Builtin::BI__builtin_addcl: 4286 case Builtin::BI__builtin_addcll: 4287 case Builtin::BI__builtin_subcb: 4288 case Builtin::BI__builtin_subcs: 4289 case Builtin::BI__builtin_subc: 4290 case Builtin::BI__builtin_subcl: 4291 case Builtin::BI__builtin_subcll: { 4292 4293 // We translate all of these builtins from expressions of the form: 4294 // int x = ..., y = ..., carryin = ..., carryout, result; 4295 // result = __builtin_addc(x, y, carryin, &carryout); 4296 // 4297 // to LLVM IR of the form: 4298 // 4299 // %tmp1 = call {i32, i1} @llvm.uadd.with.overflow.i32(i32 %x, i32 %y) 4300 // %tmpsum1 = extractvalue {i32, i1} %tmp1, 0 4301 // %carry1 = extractvalue {i32, i1} %tmp1, 1 4302 // %tmp2 = call {i32, i1} @llvm.uadd.with.overflow.i32(i32 %tmpsum1, 4303 // i32 %carryin) 4304 // %result = extractvalue {i32, i1} %tmp2, 0 4305 // %carry2 = extractvalue {i32, i1} %tmp2, 1 4306 // %tmp3 = or i1 %carry1, %carry2 4307 // %tmp4 = zext i1 %tmp3 to i32 4308 // store i32 %tmp4, i32* %carryout 4309 4310 // Scalarize our inputs. 4311 llvm::Value *X = EmitScalarExpr(E->getArg(0)); 4312 llvm::Value *Y = EmitScalarExpr(E->getArg(1)); 4313 llvm::Value *Carryin = EmitScalarExpr(E->getArg(2)); 4314 Address CarryOutPtr = EmitPointerWithAlignment(E->getArg(3)); 4315 4316 // Decide if we are lowering to a uadd.with.overflow or usub.with.overflow. 4317 llvm::Intrinsic::ID IntrinsicId; 4318 switch (BuiltinID) { 4319 default: llvm_unreachable("Unknown multiprecision builtin id."); 4320 case Builtin::BI__builtin_addcb: 4321 case Builtin::BI__builtin_addcs: 4322 case Builtin::BI__builtin_addc: 4323 case Builtin::BI__builtin_addcl: 4324 case Builtin::BI__builtin_addcll: 4325 IntrinsicId = llvm::Intrinsic::uadd_with_overflow; 4326 break; 4327 case Builtin::BI__builtin_subcb: 4328 case Builtin::BI__builtin_subcs: 4329 case Builtin::BI__builtin_subc: 4330 case Builtin::BI__builtin_subcl: 4331 case Builtin::BI__builtin_subcll: 4332 IntrinsicId = llvm::Intrinsic::usub_with_overflow; 4333 break; 4334 } 4335 4336 // Construct our resulting LLVM IR expression. 4337 llvm::Value *Carry1; 4338 llvm::Value *Sum1 = EmitOverflowIntrinsic(*this, IntrinsicId, 4339 X, Y, Carry1); 4340 llvm::Value *Carry2; 4341 llvm::Value *Sum2 = EmitOverflowIntrinsic(*this, IntrinsicId, 4342 Sum1, Carryin, Carry2); 4343 llvm::Value *CarryOut = Builder.CreateZExt(Builder.CreateOr(Carry1, Carry2), 4344 X->getType()); 4345 Builder.CreateStore(CarryOut, CarryOutPtr); 4346 return RValue::get(Sum2); 4347 } 4348 4349 case Builtin::BI__builtin_add_overflow: 4350 case Builtin::BI__builtin_sub_overflow: 4351 case Builtin::BI__builtin_mul_overflow: { 4352 const clang::Expr *LeftArg = E->getArg(0); 4353 const clang::Expr *RightArg = E->getArg(1); 4354 const clang::Expr *ResultArg = E->getArg(2); 4355 4356 clang::QualType ResultQTy = 4357 ResultArg->getType()->castAs<PointerType>()->getPointeeType(); 4358 4359 WidthAndSignedness LeftInfo = 4360 getIntegerWidthAndSignedness(CGM.getContext(), LeftArg->getType()); 4361 WidthAndSignedness RightInfo = 4362 getIntegerWidthAndSignedness(CGM.getContext(), RightArg->getType()); 4363 WidthAndSignedness ResultInfo = 4364 getIntegerWidthAndSignedness(CGM.getContext(), ResultQTy); 4365 4366 // Handle mixed-sign multiplication as a special case, because adding 4367 // runtime or backend support for our generic irgen would be too expensive. 4368 if (isSpecialMixedSignMultiply(BuiltinID, LeftInfo, RightInfo, ResultInfo)) 4369 return EmitCheckedMixedSignMultiply(*this, LeftArg, LeftInfo, RightArg, 4370 RightInfo, ResultArg, ResultQTy, 4371 ResultInfo); 4372 4373 if (isSpecialUnsignedMultiplySignedResult(BuiltinID, LeftInfo, RightInfo, 4374 ResultInfo)) 4375 return EmitCheckedUnsignedMultiplySignedResult( 4376 *this, LeftArg, LeftInfo, RightArg, RightInfo, ResultArg, ResultQTy, 4377 ResultInfo); 4378 4379 WidthAndSignedness EncompassingInfo = 4380 EncompassingIntegerType({LeftInfo, RightInfo, ResultInfo}); 4381 4382 llvm::Type *EncompassingLLVMTy = 4383 llvm::IntegerType::get(CGM.getLLVMContext(), EncompassingInfo.Width); 4384 4385 llvm::Type *ResultLLVMTy = CGM.getTypes().ConvertType(ResultQTy); 4386 4387 llvm::Intrinsic::ID IntrinsicId; 4388 switch (BuiltinID) { 4389 default: 4390 llvm_unreachable("Unknown overflow builtin id."); 4391 case Builtin::BI__builtin_add_overflow: 4392 IntrinsicId = EncompassingInfo.Signed 4393 ? llvm::Intrinsic::sadd_with_overflow 4394 : llvm::Intrinsic::uadd_with_overflow; 4395 break; 4396 case Builtin::BI__builtin_sub_overflow: 4397 IntrinsicId = EncompassingInfo.Signed 4398 ? llvm::Intrinsic::ssub_with_overflow 4399 : llvm::Intrinsic::usub_with_overflow; 4400 break; 4401 case Builtin::BI__builtin_mul_overflow: 4402 IntrinsicId = EncompassingInfo.Signed 4403 ? llvm::Intrinsic::smul_with_overflow 4404 : llvm::Intrinsic::umul_with_overflow; 4405 break; 4406 } 4407 4408 llvm::Value *Left = EmitScalarExpr(LeftArg); 4409 llvm::Value *Right = EmitScalarExpr(RightArg); 4410 Address ResultPtr = EmitPointerWithAlignment(ResultArg); 4411 4412 // Extend each operand to the encompassing type. 4413 Left = Builder.CreateIntCast(Left, EncompassingLLVMTy, LeftInfo.Signed); 4414 Right = Builder.CreateIntCast(Right, EncompassingLLVMTy, RightInfo.Signed); 4415 4416 // Perform the operation on the extended values. 4417 llvm::Value *Overflow, *Result; 4418 Result = EmitOverflowIntrinsic(*this, IntrinsicId, Left, Right, Overflow); 4419 4420 if (EncompassingInfo.Width > ResultInfo.Width) { 4421 // The encompassing type is wider than the result type, so we need to 4422 // truncate it. 4423 llvm::Value *ResultTrunc = Builder.CreateTrunc(Result, ResultLLVMTy); 4424 4425 // To see if the truncation caused an overflow, we will extend 4426 // the result and then compare it to the original result. 4427 llvm::Value *ResultTruncExt = Builder.CreateIntCast( 4428 ResultTrunc, EncompassingLLVMTy, ResultInfo.Signed); 4429 llvm::Value *TruncationOverflow = 4430 Builder.CreateICmpNE(Result, ResultTruncExt); 4431 4432 Overflow = Builder.CreateOr(Overflow, TruncationOverflow); 4433 Result = ResultTrunc; 4434 } 4435 4436 // Finally, store the result using the pointer. 4437 bool isVolatile = 4438 ResultArg->getType()->getPointeeType().isVolatileQualified(); 4439 Builder.CreateStore(EmitToMemory(Result, ResultQTy), ResultPtr, isVolatile); 4440 4441 return RValue::get(Overflow); 4442 } 4443 4444 case Builtin::BI__builtin_uadd_overflow: 4445 case Builtin::BI__builtin_uaddl_overflow: 4446 case Builtin::BI__builtin_uaddll_overflow: 4447 case Builtin::BI__builtin_usub_overflow: 4448 case Builtin::BI__builtin_usubl_overflow: 4449 case Builtin::BI__builtin_usubll_overflow: 4450 case Builtin::BI__builtin_umul_overflow: 4451 case Builtin::BI__builtin_umull_overflow: 4452 case Builtin::BI__builtin_umulll_overflow: 4453 case Builtin::BI__builtin_sadd_overflow: 4454 case Builtin::BI__builtin_saddl_overflow: 4455 case Builtin::BI__builtin_saddll_overflow: 4456 case Builtin::BI__builtin_ssub_overflow: 4457 case Builtin::BI__builtin_ssubl_overflow: 4458 case Builtin::BI__builtin_ssubll_overflow: 4459 case Builtin::BI__builtin_smul_overflow: 4460 case Builtin::BI__builtin_smull_overflow: 4461 case Builtin::BI__builtin_smulll_overflow: { 4462 4463 // We translate all of these builtins directly to the relevant llvm IR node. 4464 4465 // Scalarize our inputs. 4466 llvm::Value *X = EmitScalarExpr(E->getArg(0)); 4467 llvm::Value *Y = EmitScalarExpr(E->getArg(1)); 4468 Address SumOutPtr = EmitPointerWithAlignment(E->getArg(2)); 4469 4470 // Decide which of the overflow intrinsics we are lowering to: 4471 llvm::Intrinsic::ID IntrinsicId; 4472 switch (BuiltinID) { 4473 default: llvm_unreachable("Unknown overflow builtin id."); 4474 case Builtin::BI__builtin_uadd_overflow: 4475 case Builtin::BI__builtin_uaddl_overflow: 4476 case Builtin::BI__builtin_uaddll_overflow: 4477 IntrinsicId = llvm::Intrinsic::uadd_with_overflow; 4478 break; 4479 case Builtin::BI__builtin_usub_overflow: 4480 case Builtin::BI__builtin_usubl_overflow: 4481 case Builtin::BI__builtin_usubll_overflow: 4482 IntrinsicId = llvm::Intrinsic::usub_with_overflow; 4483 break; 4484 case Builtin::BI__builtin_umul_overflow: 4485 case Builtin::BI__builtin_umull_overflow: 4486 case Builtin::BI__builtin_umulll_overflow: 4487 IntrinsicId = llvm::Intrinsic::umul_with_overflow; 4488 break; 4489 case Builtin::BI__builtin_sadd_overflow: 4490 case Builtin::BI__builtin_saddl_overflow: 4491 case Builtin::BI__builtin_saddll_overflow: 4492 IntrinsicId = llvm::Intrinsic::sadd_with_overflow; 4493 break; 4494 case Builtin::BI__builtin_ssub_overflow: 4495 case Builtin::BI__builtin_ssubl_overflow: 4496 case Builtin::BI__builtin_ssubll_overflow: 4497 IntrinsicId = llvm::Intrinsic::ssub_with_overflow; 4498 break; 4499 case Builtin::BI__builtin_smul_overflow: 4500 case Builtin::BI__builtin_smull_overflow: 4501 case Builtin::BI__builtin_smulll_overflow: 4502 IntrinsicId = llvm::Intrinsic::smul_with_overflow; 4503 break; 4504 } 4505 4506 4507 llvm::Value *Carry; 4508 llvm::Value *Sum = EmitOverflowIntrinsic(*this, IntrinsicId, X, Y, Carry); 4509 Builder.CreateStore(Sum, SumOutPtr); 4510 4511 return RValue::get(Carry); 4512 } 4513 case Builtin::BI__builtin_addressof: 4514 return RValue::get(EmitLValue(E->getArg(0)).getPointer(*this)); 4515 case Builtin::BI__builtin_function_start: 4516 return RValue::get(CGM.GetFunctionStart( 4517 E->getArg(0)->getAsBuiltinConstantDeclRef(CGM.getContext()))); 4518 case Builtin::BI__builtin_operator_new: 4519 return EmitBuiltinNewDeleteCall( 4520 E->getCallee()->getType()->castAs<FunctionProtoType>(), E, false); 4521 case Builtin::BI__builtin_operator_delete: 4522 return EmitBuiltinNewDeleteCall( 4523 E->getCallee()->getType()->castAs<FunctionProtoType>(), E, true); 4524 4525 case Builtin::BI__builtin_is_aligned: 4526 return EmitBuiltinIsAligned(E); 4527 case Builtin::BI__builtin_align_up: 4528 return EmitBuiltinAlignTo(E, true); 4529 case Builtin::BI__builtin_align_down: 4530 return EmitBuiltinAlignTo(E, false); 4531 4532 case Builtin::BI__noop: 4533 // __noop always evaluates to an integer literal zero. 4534 return RValue::get(ConstantInt::get(IntTy, 0)); 4535 case Builtin::BI__builtin_call_with_static_chain: { 4536 const CallExpr *Call = cast<CallExpr>(E->getArg(0)); 4537 const Expr *Chain = E->getArg(1); 4538 return EmitCall(Call->getCallee()->getType(), 4539 EmitCallee(Call->getCallee()), Call, ReturnValue, 4540 EmitScalarExpr(Chain)); 4541 } 4542 case Builtin::BI_InterlockedExchange8: 4543 case Builtin::BI_InterlockedExchange16: 4544 case Builtin::BI_InterlockedExchange: 4545 case Builtin::BI_InterlockedExchangePointer: 4546 return RValue::get( 4547 EmitMSVCBuiltinExpr(MSVCIntrin::_InterlockedExchange, E)); 4548 case Builtin::BI_InterlockedCompareExchangePointer: 4549 case Builtin::BI_InterlockedCompareExchangePointer_nf: { 4550 llvm::Type *RTy; 4551 llvm::IntegerType *IntType = 4552 IntegerType::get(getLLVMContext(), 4553 getContext().getTypeSize(E->getType())); 4554 llvm::Type *IntPtrType = IntType->getPointerTo(); 4555 4556 llvm::Value *Destination = 4557 Builder.CreateBitCast(EmitScalarExpr(E->getArg(0)), IntPtrType); 4558 4559 llvm::Value *Exchange = EmitScalarExpr(E->getArg(1)); 4560 RTy = Exchange->getType(); 4561 Exchange = Builder.CreatePtrToInt(Exchange, IntType); 4562 4563 llvm::Value *Comparand = 4564 Builder.CreatePtrToInt(EmitScalarExpr(E->getArg(2)), IntType); 4565 4566 auto Ordering = 4567 BuiltinID == Builtin::BI_InterlockedCompareExchangePointer_nf ? 4568 AtomicOrdering::Monotonic : AtomicOrdering::SequentiallyConsistent; 4569 4570 auto Result = Builder.CreateAtomicCmpXchg(Destination, Comparand, Exchange, 4571 Ordering, Ordering); 4572 Result->setVolatile(true); 4573 4574 return RValue::get(Builder.CreateIntToPtr(Builder.CreateExtractValue(Result, 4575 0), 4576 RTy)); 4577 } 4578 case Builtin::BI_InterlockedCompareExchange8: 4579 case Builtin::BI_InterlockedCompareExchange16: 4580 case Builtin::BI_InterlockedCompareExchange: 4581 case Builtin::BI_InterlockedCompareExchange64: 4582 return RValue::get(EmitAtomicCmpXchgForMSIntrin(*this, E)); 4583 case Builtin::BI_InterlockedIncrement16: 4584 case Builtin::BI_InterlockedIncrement: 4585 return RValue::get( 4586 EmitMSVCBuiltinExpr(MSVCIntrin::_InterlockedIncrement, E)); 4587 case Builtin::BI_InterlockedDecrement16: 4588 case Builtin::BI_InterlockedDecrement: 4589 return RValue::get( 4590 EmitMSVCBuiltinExpr(MSVCIntrin::_InterlockedDecrement, E)); 4591 case Builtin::BI_InterlockedAnd8: 4592 case Builtin::BI_InterlockedAnd16: 4593 case Builtin::BI_InterlockedAnd: 4594 return RValue::get(EmitMSVCBuiltinExpr(MSVCIntrin::_InterlockedAnd, E)); 4595 case Builtin::BI_InterlockedExchangeAdd8: 4596 case Builtin::BI_InterlockedExchangeAdd16: 4597 case Builtin::BI_InterlockedExchangeAdd: 4598 return RValue::get( 4599 EmitMSVCBuiltinExpr(MSVCIntrin::_InterlockedExchangeAdd, E)); 4600 case Builtin::BI_InterlockedExchangeSub8: 4601 case Builtin::BI_InterlockedExchangeSub16: 4602 case Builtin::BI_InterlockedExchangeSub: 4603 return RValue::get( 4604 EmitMSVCBuiltinExpr(MSVCIntrin::_InterlockedExchangeSub, E)); 4605 case Builtin::BI_InterlockedOr8: 4606 case Builtin::BI_InterlockedOr16: 4607 case Builtin::BI_InterlockedOr: 4608 return RValue::get(EmitMSVCBuiltinExpr(MSVCIntrin::_InterlockedOr, E)); 4609 case Builtin::BI_InterlockedXor8: 4610 case Builtin::BI_InterlockedXor16: 4611 case Builtin::BI_InterlockedXor: 4612 return RValue::get(EmitMSVCBuiltinExpr(MSVCIntrin::_InterlockedXor, E)); 4613 4614 case Builtin::BI_bittest64: 4615 case Builtin::BI_bittest: 4616 case Builtin::BI_bittestandcomplement64: 4617 case Builtin::BI_bittestandcomplement: 4618 case Builtin::BI_bittestandreset64: 4619 case Builtin::BI_bittestandreset: 4620 case Builtin::BI_bittestandset64: 4621 case Builtin::BI_bittestandset: 4622 case Builtin::BI_interlockedbittestandreset: 4623 case Builtin::BI_interlockedbittestandreset64: 4624 case Builtin::BI_interlockedbittestandset64: 4625 case Builtin::BI_interlockedbittestandset: 4626 case Builtin::BI_interlockedbittestandset_acq: 4627 case Builtin::BI_interlockedbittestandset_rel: 4628 case Builtin::BI_interlockedbittestandset_nf: 4629 case Builtin::BI_interlockedbittestandreset_acq: 4630 case Builtin::BI_interlockedbittestandreset_rel: 4631 case Builtin::BI_interlockedbittestandreset_nf: 4632 return RValue::get(EmitBitTestIntrinsic(*this, BuiltinID, E)); 4633 4634 // These builtins exist to emit regular volatile loads and stores not 4635 // affected by the -fms-volatile setting. 4636 case Builtin::BI__iso_volatile_load8: 4637 case Builtin::BI__iso_volatile_load16: 4638 case Builtin::BI__iso_volatile_load32: 4639 case Builtin::BI__iso_volatile_load64: 4640 return RValue::get(EmitISOVolatileLoad(*this, E)); 4641 case Builtin::BI__iso_volatile_store8: 4642 case Builtin::BI__iso_volatile_store16: 4643 case Builtin::BI__iso_volatile_store32: 4644 case Builtin::BI__iso_volatile_store64: 4645 return RValue::get(EmitISOVolatileStore(*this, E)); 4646 4647 case Builtin::BI__exception_code: 4648 case Builtin::BI_exception_code: 4649 return RValue::get(EmitSEHExceptionCode()); 4650 case Builtin::BI__exception_info: 4651 case Builtin::BI_exception_info: 4652 return RValue::get(EmitSEHExceptionInfo()); 4653 case Builtin::BI__abnormal_termination: 4654 case Builtin::BI_abnormal_termination: 4655 return RValue::get(EmitSEHAbnormalTermination()); 4656 case Builtin::BI_setjmpex: 4657 if (getTarget().getTriple().isOSMSVCRT() && E->getNumArgs() == 1 && 4658 E->getArg(0)->getType()->isPointerType()) 4659 return EmitMSVCRTSetJmp(*this, MSVCSetJmpKind::_setjmpex, E); 4660 break; 4661 case Builtin::BI_setjmp: 4662 if (getTarget().getTriple().isOSMSVCRT() && E->getNumArgs() == 1 && 4663 E->getArg(0)->getType()->isPointerType()) { 4664 if (getTarget().getTriple().getArch() == llvm::Triple::x86) 4665 return EmitMSVCRTSetJmp(*this, MSVCSetJmpKind::_setjmp3, E); 4666 else if (getTarget().getTriple().getArch() == llvm::Triple::aarch64) 4667 return EmitMSVCRTSetJmp(*this, MSVCSetJmpKind::_setjmpex, E); 4668 return EmitMSVCRTSetJmp(*this, MSVCSetJmpKind::_setjmp, E); 4669 } 4670 break; 4671 4672 case Builtin::BI__GetExceptionInfo: { 4673 if (llvm::GlobalVariable *GV = 4674 CGM.getCXXABI().getThrowInfo(FD->getParamDecl(0)->getType())) 4675 return RValue::get(llvm::ConstantExpr::getBitCast(GV, CGM.Int8PtrTy)); 4676 break; 4677 } 4678 4679 case Builtin::BI__fastfail: 4680 return RValue::get(EmitMSVCBuiltinExpr(MSVCIntrin::__fastfail, E)); 4681 4682 case Builtin::BI__builtin_coro_size: { 4683 auto & Context = getContext(); 4684 auto SizeTy = Context.getSizeType(); 4685 auto T = Builder.getIntNTy(Context.getTypeSize(SizeTy)); 4686 Function *F = CGM.getIntrinsic(Intrinsic::coro_size, T); 4687 return RValue::get(Builder.CreateCall(F)); 4688 } 4689 4690 case Builtin::BI__builtin_coro_id: 4691 return EmitCoroutineIntrinsic(E, Intrinsic::coro_id); 4692 case Builtin::BI__builtin_coro_promise: 4693 return EmitCoroutineIntrinsic(E, Intrinsic::coro_promise); 4694 case Builtin::BI__builtin_coro_resume: 4695 return EmitCoroutineIntrinsic(E, Intrinsic::coro_resume); 4696 case Builtin::BI__builtin_coro_frame: 4697 return EmitCoroutineIntrinsic(E, Intrinsic::coro_frame); 4698 case Builtin::BI__builtin_coro_noop: 4699 return EmitCoroutineIntrinsic(E, Intrinsic::coro_noop); 4700 case Builtin::BI__builtin_coro_free: 4701 return EmitCoroutineIntrinsic(E, Intrinsic::coro_free); 4702 case Builtin::BI__builtin_coro_destroy: 4703 return EmitCoroutineIntrinsic(E, Intrinsic::coro_destroy); 4704 case Builtin::BI__builtin_coro_done: 4705 return EmitCoroutineIntrinsic(E, Intrinsic::coro_done); 4706 case Builtin::BI__builtin_coro_alloc: 4707 return EmitCoroutineIntrinsic(E, Intrinsic::coro_alloc); 4708 case Builtin::BI__builtin_coro_begin: 4709 return EmitCoroutineIntrinsic(E, Intrinsic::coro_begin); 4710 case Builtin::BI__builtin_coro_end: 4711 return EmitCoroutineIntrinsic(E, Intrinsic::coro_end); 4712 case Builtin::BI__builtin_coro_suspend: 4713 return EmitCoroutineIntrinsic(E, Intrinsic::coro_suspend); 4714 4715 // OpenCL v2.0 s6.13.16.2, Built-in pipe read and write functions 4716 case Builtin::BIread_pipe: 4717 case Builtin::BIwrite_pipe: { 4718 Value *Arg0 = EmitScalarExpr(E->getArg(0)), 4719 *Arg1 = EmitScalarExpr(E->getArg(1)); 4720 CGOpenCLRuntime OpenCLRT(CGM); 4721 Value *PacketSize = OpenCLRT.getPipeElemSize(E->getArg(0)); 4722 Value *PacketAlign = OpenCLRT.getPipeElemAlign(E->getArg(0)); 4723 4724 // Type of the generic packet parameter. 4725 unsigned GenericAS = 4726 getContext().getTargetAddressSpace(LangAS::opencl_generic); 4727 llvm::Type *I8PTy = llvm::PointerType::get( 4728 llvm::Type::getInt8Ty(getLLVMContext()), GenericAS); 4729 4730 // Testing which overloaded version we should generate the call for. 4731 if (2U == E->getNumArgs()) { 4732 const char *Name = (BuiltinID == Builtin::BIread_pipe) ? "__read_pipe_2" 4733 : "__write_pipe_2"; 4734 // Creating a generic function type to be able to call with any builtin or 4735 // user defined type. 4736 llvm::Type *ArgTys[] = {Arg0->getType(), I8PTy, Int32Ty, Int32Ty}; 4737 llvm::FunctionType *FTy = llvm::FunctionType::get( 4738 Int32Ty, llvm::ArrayRef<llvm::Type *>(ArgTys), false); 4739 Value *BCast = Builder.CreatePointerCast(Arg1, I8PTy); 4740 return RValue::get( 4741 EmitRuntimeCall(CGM.CreateRuntimeFunction(FTy, Name), 4742 {Arg0, BCast, PacketSize, PacketAlign})); 4743 } else { 4744 assert(4 == E->getNumArgs() && 4745 "Illegal number of parameters to pipe function"); 4746 const char *Name = (BuiltinID == Builtin::BIread_pipe) ? "__read_pipe_4" 4747 : "__write_pipe_4"; 4748 4749 llvm::Type *ArgTys[] = {Arg0->getType(), Arg1->getType(), Int32Ty, I8PTy, 4750 Int32Ty, Int32Ty}; 4751 Value *Arg2 = EmitScalarExpr(E->getArg(2)), 4752 *Arg3 = EmitScalarExpr(E->getArg(3)); 4753 llvm::FunctionType *FTy = llvm::FunctionType::get( 4754 Int32Ty, llvm::ArrayRef<llvm::Type *>(ArgTys), false); 4755 Value *BCast = Builder.CreatePointerCast(Arg3, I8PTy); 4756 // We know the third argument is an integer type, but we may need to cast 4757 // it to i32. 4758 if (Arg2->getType() != Int32Ty) 4759 Arg2 = Builder.CreateZExtOrTrunc(Arg2, Int32Ty); 4760 return RValue::get( 4761 EmitRuntimeCall(CGM.CreateRuntimeFunction(FTy, Name), 4762 {Arg0, Arg1, Arg2, BCast, PacketSize, PacketAlign})); 4763 } 4764 } 4765 // OpenCL v2.0 s6.13.16 ,s9.17.3.5 - Built-in pipe reserve read and write 4766 // functions 4767 case Builtin::BIreserve_read_pipe: 4768 case Builtin::BIreserve_write_pipe: 4769 case Builtin::BIwork_group_reserve_read_pipe: 4770 case Builtin::BIwork_group_reserve_write_pipe: 4771 case Builtin::BIsub_group_reserve_read_pipe: 4772 case Builtin::BIsub_group_reserve_write_pipe: { 4773 // Composing the mangled name for the function. 4774 const char *Name; 4775 if (BuiltinID == Builtin::BIreserve_read_pipe) 4776 Name = "__reserve_read_pipe"; 4777 else if (BuiltinID == Builtin::BIreserve_write_pipe) 4778 Name = "__reserve_write_pipe"; 4779 else if (BuiltinID == Builtin::BIwork_group_reserve_read_pipe) 4780 Name = "__work_group_reserve_read_pipe"; 4781 else if (BuiltinID == Builtin::BIwork_group_reserve_write_pipe) 4782 Name = "__work_group_reserve_write_pipe"; 4783 else if (BuiltinID == Builtin::BIsub_group_reserve_read_pipe) 4784 Name = "__sub_group_reserve_read_pipe"; 4785 else 4786 Name = "__sub_group_reserve_write_pipe"; 4787 4788 Value *Arg0 = EmitScalarExpr(E->getArg(0)), 4789 *Arg1 = EmitScalarExpr(E->getArg(1)); 4790 llvm::Type *ReservedIDTy = ConvertType(getContext().OCLReserveIDTy); 4791 CGOpenCLRuntime OpenCLRT(CGM); 4792 Value *PacketSize = OpenCLRT.getPipeElemSize(E->getArg(0)); 4793 Value *PacketAlign = OpenCLRT.getPipeElemAlign(E->getArg(0)); 4794 4795 // Building the generic function prototype. 4796 llvm::Type *ArgTys[] = {Arg0->getType(), Int32Ty, Int32Ty, Int32Ty}; 4797 llvm::FunctionType *FTy = llvm::FunctionType::get( 4798 ReservedIDTy, llvm::ArrayRef<llvm::Type *>(ArgTys), false); 4799 // We know the second argument is an integer type, but we may need to cast 4800 // it to i32. 4801 if (Arg1->getType() != Int32Ty) 4802 Arg1 = Builder.CreateZExtOrTrunc(Arg1, Int32Ty); 4803 return RValue::get(EmitRuntimeCall(CGM.CreateRuntimeFunction(FTy, Name), 4804 {Arg0, Arg1, PacketSize, PacketAlign})); 4805 } 4806 // OpenCL v2.0 s6.13.16, s9.17.3.5 - Built-in pipe commit read and write 4807 // functions 4808 case Builtin::BIcommit_read_pipe: 4809 case Builtin::BIcommit_write_pipe: 4810 case Builtin::BIwork_group_commit_read_pipe: 4811 case Builtin::BIwork_group_commit_write_pipe: 4812 case Builtin::BIsub_group_commit_read_pipe: 4813 case Builtin::BIsub_group_commit_write_pipe: { 4814 const char *Name; 4815 if (BuiltinID == Builtin::BIcommit_read_pipe) 4816 Name = "__commit_read_pipe"; 4817 else if (BuiltinID == Builtin::BIcommit_write_pipe) 4818 Name = "__commit_write_pipe"; 4819 else if (BuiltinID == Builtin::BIwork_group_commit_read_pipe) 4820 Name = "__work_group_commit_read_pipe"; 4821 else if (BuiltinID == Builtin::BIwork_group_commit_write_pipe) 4822 Name = "__work_group_commit_write_pipe"; 4823 else if (BuiltinID == Builtin::BIsub_group_commit_read_pipe) 4824 Name = "__sub_group_commit_read_pipe"; 4825 else 4826 Name = "__sub_group_commit_write_pipe"; 4827 4828 Value *Arg0 = EmitScalarExpr(E->getArg(0)), 4829 *Arg1 = EmitScalarExpr(E->getArg(1)); 4830 CGOpenCLRuntime OpenCLRT(CGM); 4831 Value *PacketSize = OpenCLRT.getPipeElemSize(E->getArg(0)); 4832 Value *PacketAlign = OpenCLRT.getPipeElemAlign(E->getArg(0)); 4833 4834 // Building the generic function prototype. 4835 llvm::Type *ArgTys[] = {Arg0->getType(), Arg1->getType(), Int32Ty, Int32Ty}; 4836 llvm::FunctionType *FTy = 4837 llvm::FunctionType::get(llvm::Type::getVoidTy(getLLVMContext()), 4838 llvm::ArrayRef<llvm::Type *>(ArgTys), false); 4839 4840 return RValue::get(EmitRuntimeCall(CGM.CreateRuntimeFunction(FTy, Name), 4841 {Arg0, Arg1, PacketSize, PacketAlign})); 4842 } 4843 // OpenCL v2.0 s6.13.16.4 Built-in pipe query functions 4844 case Builtin::BIget_pipe_num_packets: 4845 case Builtin::BIget_pipe_max_packets: { 4846 const char *BaseName; 4847 const auto *PipeTy = E->getArg(0)->getType()->castAs<PipeType>(); 4848 if (BuiltinID == Builtin::BIget_pipe_num_packets) 4849 BaseName = "__get_pipe_num_packets"; 4850 else 4851 BaseName = "__get_pipe_max_packets"; 4852 std::string Name = std::string(BaseName) + 4853 std::string(PipeTy->isReadOnly() ? "_ro" : "_wo"); 4854 4855 // Building the generic function prototype. 4856 Value *Arg0 = EmitScalarExpr(E->getArg(0)); 4857 CGOpenCLRuntime OpenCLRT(CGM); 4858 Value *PacketSize = OpenCLRT.getPipeElemSize(E->getArg(0)); 4859 Value *PacketAlign = OpenCLRT.getPipeElemAlign(E->getArg(0)); 4860 llvm::Type *ArgTys[] = {Arg0->getType(), Int32Ty, Int32Ty}; 4861 llvm::FunctionType *FTy = llvm::FunctionType::get( 4862 Int32Ty, llvm::ArrayRef<llvm::Type *>(ArgTys), false); 4863 4864 return RValue::get(EmitRuntimeCall(CGM.CreateRuntimeFunction(FTy, Name), 4865 {Arg0, PacketSize, PacketAlign})); 4866 } 4867 4868 // OpenCL v2.0 s6.13.9 - Address space qualifier functions. 4869 case Builtin::BIto_global: 4870 case Builtin::BIto_local: 4871 case Builtin::BIto_private: { 4872 auto Arg0 = EmitScalarExpr(E->getArg(0)); 4873 auto NewArgT = llvm::PointerType::get(Int8Ty, 4874 CGM.getContext().getTargetAddressSpace(LangAS::opencl_generic)); 4875 auto NewRetT = llvm::PointerType::get(Int8Ty, 4876 CGM.getContext().getTargetAddressSpace( 4877 E->getType()->getPointeeType().getAddressSpace())); 4878 auto FTy = llvm::FunctionType::get(NewRetT, {NewArgT}, false); 4879 llvm::Value *NewArg; 4880 if (Arg0->getType()->getPointerAddressSpace() != 4881 NewArgT->getPointerAddressSpace()) 4882 NewArg = Builder.CreateAddrSpaceCast(Arg0, NewArgT); 4883 else 4884 NewArg = Builder.CreateBitOrPointerCast(Arg0, NewArgT); 4885 auto NewName = std::string("__") + E->getDirectCallee()->getName().str(); 4886 auto NewCall = 4887 EmitRuntimeCall(CGM.CreateRuntimeFunction(FTy, NewName), {NewArg}); 4888 return RValue::get(Builder.CreateBitOrPointerCast(NewCall, 4889 ConvertType(E->getType()))); 4890 } 4891 4892 // OpenCL v2.0, s6.13.17 - Enqueue kernel function. 4893 // It contains four different overload formats specified in Table 6.13.17.1. 4894 case Builtin::BIenqueue_kernel: { 4895 StringRef Name; // Generated function call name 4896 unsigned NumArgs = E->getNumArgs(); 4897 4898 llvm::Type *QueueTy = ConvertType(getContext().OCLQueueTy); 4899 llvm::Type *GenericVoidPtrTy = Builder.getInt8PtrTy( 4900 getContext().getTargetAddressSpace(LangAS::opencl_generic)); 4901 4902 llvm::Value *Queue = EmitScalarExpr(E->getArg(0)); 4903 llvm::Value *Flags = EmitScalarExpr(E->getArg(1)); 4904 LValue NDRangeL = EmitAggExprToLValue(E->getArg(2)); 4905 llvm::Value *Range = NDRangeL.getAddress(*this).getPointer(); 4906 llvm::Type *RangeTy = NDRangeL.getAddress(*this).getType(); 4907 4908 if (NumArgs == 4) { 4909 // The most basic form of the call with parameters: 4910 // queue_t, kernel_enqueue_flags_t, ndrange_t, block(void) 4911 Name = "__enqueue_kernel_basic"; 4912 llvm::Type *ArgTys[] = {QueueTy, Int32Ty, RangeTy, GenericVoidPtrTy, 4913 GenericVoidPtrTy}; 4914 llvm::FunctionType *FTy = llvm::FunctionType::get( 4915 Int32Ty, llvm::ArrayRef<llvm::Type *>(ArgTys), false); 4916 4917 auto Info = 4918 CGM.getOpenCLRuntime().emitOpenCLEnqueuedBlock(*this, E->getArg(3)); 4919 llvm::Value *Kernel = 4920 Builder.CreatePointerCast(Info.Kernel, GenericVoidPtrTy); 4921 llvm::Value *Block = 4922 Builder.CreatePointerCast(Info.BlockArg, GenericVoidPtrTy); 4923 4924 AttrBuilder B; 4925 B.addByValAttr(NDRangeL.getAddress(*this).getElementType()); 4926 llvm::AttributeList ByValAttrSet = 4927 llvm::AttributeList::get(CGM.getModule().getContext(), 3U, B); 4928 4929 auto RTCall = 4930 EmitRuntimeCall(CGM.CreateRuntimeFunction(FTy, Name, ByValAttrSet), 4931 {Queue, Flags, Range, Kernel, Block}); 4932 RTCall->setAttributes(ByValAttrSet); 4933 return RValue::get(RTCall); 4934 } 4935 assert(NumArgs >= 5 && "Invalid enqueue_kernel signature"); 4936 4937 // Create a temporary array to hold the sizes of local pointer arguments 4938 // for the block. \p First is the position of the first size argument. 4939 auto CreateArrayForSizeVar = [=](unsigned First) 4940 -> std::tuple<llvm::Value *, llvm::Value *, llvm::Value *> { 4941 llvm::APInt ArraySize(32, NumArgs - First); 4942 QualType SizeArrayTy = getContext().getConstantArrayType( 4943 getContext().getSizeType(), ArraySize, nullptr, ArrayType::Normal, 4944 /*IndexTypeQuals=*/0); 4945 auto Tmp = CreateMemTemp(SizeArrayTy, "block_sizes"); 4946 llvm::Value *TmpPtr = Tmp.getPointer(); 4947 llvm::Value *TmpSize = EmitLifetimeStart( 4948 CGM.getDataLayout().getTypeAllocSize(Tmp.getElementType()), TmpPtr); 4949 llvm::Value *ElemPtr; 4950 // Each of the following arguments specifies the size of the corresponding 4951 // argument passed to the enqueued block. 4952 auto *Zero = llvm::ConstantInt::get(IntTy, 0); 4953 for (unsigned I = First; I < NumArgs; ++I) { 4954 auto *Index = llvm::ConstantInt::get(IntTy, I - First); 4955 auto *GEP = Builder.CreateGEP(Tmp.getElementType(), TmpPtr, 4956 {Zero, Index}); 4957 if (I == First) 4958 ElemPtr = GEP; 4959 auto *V = 4960 Builder.CreateZExtOrTrunc(EmitScalarExpr(E->getArg(I)), SizeTy); 4961 Builder.CreateAlignedStore( 4962 V, GEP, CGM.getDataLayout().getPrefTypeAlign(SizeTy)); 4963 } 4964 return std::tie(ElemPtr, TmpSize, TmpPtr); 4965 }; 4966 4967 // Could have events and/or varargs. 4968 if (E->getArg(3)->getType()->isBlockPointerType()) { 4969 // No events passed, but has variadic arguments. 4970 Name = "__enqueue_kernel_varargs"; 4971 auto Info = 4972 CGM.getOpenCLRuntime().emitOpenCLEnqueuedBlock(*this, E->getArg(3)); 4973 llvm::Value *Kernel = 4974 Builder.CreatePointerCast(Info.Kernel, GenericVoidPtrTy); 4975 auto *Block = Builder.CreatePointerCast(Info.BlockArg, GenericVoidPtrTy); 4976 llvm::Value *ElemPtr, *TmpSize, *TmpPtr; 4977 std::tie(ElemPtr, TmpSize, TmpPtr) = CreateArrayForSizeVar(4); 4978 4979 // Create a vector of the arguments, as well as a constant value to 4980 // express to the runtime the number of variadic arguments. 4981 llvm::Value *const Args[] = {Queue, Flags, 4982 Range, Kernel, 4983 Block, ConstantInt::get(IntTy, NumArgs - 4), 4984 ElemPtr}; 4985 llvm::Type *const ArgTys[] = { 4986 QueueTy, IntTy, RangeTy, GenericVoidPtrTy, 4987 GenericVoidPtrTy, IntTy, ElemPtr->getType()}; 4988 4989 llvm::FunctionType *FTy = llvm::FunctionType::get(Int32Ty, ArgTys, false); 4990 auto Call = RValue::get( 4991 EmitRuntimeCall(CGM.CreateRuntimeFunction(FTy, Name), Args)); 4992 if (TmpSize) 4993 EmitLifetimeEnd(TmpSize, TmpPtr); 4994 return Call; 4995 } 4996 // Any calls now have event arguments passed. 4997 if (NumArgs >= 7) { 4998 llvm::Type *EventTy = ConvertType(getContext().OCLClkEventTy); 4999 llvm::PointerType *EventPtrTy = EventTy->getPointerTo( 5000 CGM.getContext().getTargetAddressSpace(LangAS::opencl_generic)); 5001 5002 llvm::Value *NumEvents = 5003 Builder.CreateZExtOrTrunc(EmitScalarExpr(E->getArg(3)), Int32Ty); 5004 5005 // Since SemaOpenCLBuiltinEnqueueKernel allows fifth and sixth arguments 5006 // to be a null pointer constant (including `0` literal), we can take it 5007 // into account and emit null pointer directly. 5008 llvm::Value *EventWaitList = nullptr; 5009 if (E->getArg(4)->isNullPointerConstant( 5010 getContext(), Expr::NPC_ValueDependentIsNotNull)) { 5011 EventWaitList = llvm::ConstantPointerNull::get(EventPtrTy); 5012 } else { 5013 EventWaitList = E->getArg(4)->getType()->isArrayType() 5014 ? EmitArrayToPointerDecay(E->getArg(4)).getPointer() 5015 : EmitScalarExpr(E->getArg(4)); 5016 // Convert to generic address space. 5017 EventWaitList = Builder.CreatePointerCast(EventWaitList, EventPtrTy); 5018 } 5019 llvm::Value *EventRet = nullptr; 5020 if (E->getArg(5)->isNullPointerConstant( 5021 getContext(), Expr::NPC_ValueDependentIsNotNull)) { 5022 EventRet = llvm::ConstantPointerNull::get(EventPtrTy); 5023 } else { 5024 EventRet = 5025 Builder.CreatePointerCast(EmitScalarExpr(E->getArg(5)), EventPtrTy); 5026 } 5027 5028 auto Info = 5029 CGM.getOpenCLRuntime().emitOpenCLEnqueuedBlock(*this, E->getArg(6)); 5030 llvm::Value *Kernel = 5031 Builder.CreatePointerCast(Info.Kernel, GenericVoidPtrTy); 5032 llvm::Value *Block = 5033 Builder.CreatePointerCast(Info.BlockArg, GenericVoidPtrTy); 5034 5035 std::vector<llvm::Type *> ArgTys = { 5036 QueueTy, Int32Ty, RangeTy, Int32Ty, 5037 EventPtrTy, EventPtrTy, GenericVoidPtrTy, GenericVoidPtrTy}; 5038 5039 std::vector<llvm::Value *> Args = {Queue, Flags, Range, 5040 NumEvents, EventWaitList, EventRet, 5041 Kernel, Block}; 5042 5043 if (NumArgs == 7) { 5044 // Has events but no variadics. 5045 Name = "__enqueue_kernel_basic_events"; 5046 llvm::FunctionType *FTy = llvm::FunctionType::get( 5047 Int32Ty, llvm::ArrayRef<llvm::Type *>(ArgTys), false); 5048 return RValue::get( 5049 EmitRuntimeCall(CGM.CreateRuntimeFunction(FTy, Name), 5050 llvm::ArrayRef<llvm::Value *>(Args))); 5051 } 5052 // Has event info and variadics 5053 // Pass the number of variadics to the runtime function too. 5054 Args.push_back(ConstantInt::get(Int32Ty, NumArgs - 7)); 5055 ArgTys.push_back(Int32Ty); 5056 Name = "__enqueue_kernel_events_varargs"; 5057 5058 llvm::Value *ElemPtr, *TmpSize, *TmpPtr; 5059 std::tie(ElemPtr, TmpSize, TmpPtr) = CreateArrayForSizeVar(7); 5060 Args.push_back(ElemPtr); 5061 ArgTys.push_back(ElemPtr->getType()); 5062 5063 llvm::FunctionType *FTy = llvm::FunctionType::get( 5064 Int32Ty, llvm::ArrayRef<llvm::Type *>(ArgTys), false); 5065 auto Call = 5066 RValue::get(EmitRuntimeCall(CGM.CreateRuntimeFunction(FTy, Name), 5067 llvm::ArrayRef<llvm::Value *>(Args))); 5068 if (TmpSize) 5069 EmitLifetimeEnd(TmpSize, TmpPtr); 5070 return Call; 5071 } 5072 LLVM_FALLTHROUGH; 5073 } 5074 // OpenCL v2.0 s6.13.17.6 - Kernel query functions need bitcast of block 5075 // parameter. 5076 case Builtin::BIget_kernel_work_group_size: { 5077 llvm::Type *GenericVoidPtrTy = Builder.getInt8PtrTy( 5078 getContext().getTargetAddressSpace(LangAS::opencl_generic)); 5079 auto Info = 5080 CGM.getOpenCLRuntime().emitOpenCLEnqueuedBlock(*this, E->getArg(0)); 5081 Value *Kernel = Builder.CreatePointerCast(Info.Kernel, GenericVoidPtrTy); 5082 Value *Arg = Builder.CreatePointerCast(Info.BlockArg, GenericVoidPtrTy); 5083 return RValue::get(EmitRuntimeCall( 5084 CGM.CreateRuntimeFunction( 5085 llvm::FunctionType::get(IntTy, {GenericVoidPtrTy, GenericVoidPtrTy}, 5086 false), 5087 "__get_kernel_work_group_size_impl"), 5088 {Kernel, Arg})); 5089 } 5090 case Builtin::BIget_kernel_preferred_work_group_size_multiple: { 5091 llvm::Type *GenericVoidPtrTy = Builder.getInt8PtrTy( 5092 getContext().getTargetAddressSpace(LangAS::opencl_generic)); 5093 auto Info = 5094 CGM.getOpenCLRuntime().emitOpenCLEnqueuedBlock(*this, E->getArg(0)); 5095 Value *Kernel = Builder.CreatePointerCast(Info.Kernel, GenericVoidPtrTy); 5096 Value *Arg = Builder.CreatePointerCast(Info.BlockArg, GenericVoidPtrTy); 5097 return RValue::get(EmitRuntimeCall( 5098 CGM.CreateRuntimeFunction( 5099 llvm::FunctionType::get(IntTy, {GenericVoidPtrTy, GenericVoidPtrTy}, 5100 false), 5101 "__get_kernel_preferred_work_group_size_multiple_impl"), 5102 {Kernel, Arg})); 5103 } 5104 case Builtin::BIget_kernel_max_sub_group_size_for_ndrange: 5105 case Builtin::BIget_kernel_sub_group_count_for_ndrange: { 5106 llvm::Type *GenericVoidPtrTy = Builder.getInt8PtrTy( 5107 getContext().getTargetAddressSpace(LangAS::opencl_generic)); 5108 LValue NDRangeL = EmitAggExprToLValue(E->getArg(0)); 5109 llvm::Value *NDRange = NDRangeL.getAddress(*this).getPointer(); 5110 auto Info = 5111 CGM.getOpenCLRuntime().emitOpenCLEnqueuedBlock(*this, E->getArg(1)); 5112 Value *Kernel = Builder.CreatePointerCast(Info.Kernel, GenericVoidPtrTy); 5113 Value *Block = Builder.CreatePointerCast(Info.BlockArg, GenericVoidPtrTy); 5114 const char *Name = 5115 BuiltinID == Builtin::BIget_kernel_max_sub_group_size_for_ndrange 5116 ? "__get_kernel_max_sub_group_size_for_ndrange_impl" 5117 : "__get_kernel_sub_group_count_for_ndrange_impl"; 5118 return RValue::get(EmitRuntimeCall( 5119 CGM.CreateRuntimeFunction( 5120 llvm::FunctionType::get( 5121 IntTy, {NDRange->getType(), GenericVoidPtrTy, GenericVoidPtrTy}, 5122 false), 5123 Name), 5124 {NDRange, Kernel, Block})); 5125 } 5126 5127 case Builtin::BI__builtin_store_half: 5128 case Builtin::BI__builtin_store_halff: { 5129 Value *Val = EmitScalarExpr(E->getArg(0)); 5130 Address Address = EmitPointerWithAlignment(E->getArg(1)); 5131 Value *HalfVal = Builder.CreateFPTrunc(Val, Builder.getHalfTy()); 5132 return RValue::get(Builder.CreateStore(HalfVal, Address)); 5133 } 5134 case Builtin::BI__builtin_load_half: { 5135 Address Address = EmitPointerWithAlignment(E->getArg(0)); 5136 Value *HalfVal = Builder.CreateLoad(Address); 5137 return RValue::get(Builder.CreateFPExt(HalfVal, Builder.getDoubleTy())); 5138 } 5139 case Builtin::BI__builtin_load_halff: { 5140 Address Address = EmitPointerWithAlignment(E->getArg(0)); 5141 Value *HalfVal = Builder.CreateLoad(Address); 5142 return RValue::get(Builder.CreateFPExt(HalfVal, Builder.getFloatTy())); 5143 } 5144 case Builtin::BIprintf: 5145 if (getTarget().getTriple().isNVPTX() || 5146 getTarget().getTriple().isAMDGCN()) { 5147 if (getLangOpts().OpenMPIsDevice) 5148 return EmitOpenMPDevicePrintfCallExpr(E); 5149 if (getTarget().getTriple().isNVPTX()) 5150 return EmitNVPTXDevicePrintfCallExpr(E); 5151 if (getTarget().getTriple().isAMDGCN() && getLangOpts().HIP) 5152 return EmitAMDGPUDevicePrintfCallExpr(E); 5153 } 5154 5155 break; 5156 case Builtin::BI__builtin_canonicalize: 5157 case Builtin::BI__builtin_canonicalizef: 5158 case Builtin::BI__builtin_canonicalizef16: 5159 case Builtin::BI__builtin_canonicalizel: 5160 return RValue::get(emitUnaryBuiltin(*this, E, Intrinsic::canonicalize)); 5161 5162 case Builtin::BI__builtin_thread_pointer: { 5163 if (!getContext().getTargetInfo().isTLSSupported()) 5164 CGM.ErrorUnsupported(E, "__builtin_thread_pointer"); 5165 // Fall through - it's already mapped to the intrinsic by GCCBuiltin. 5166 break; 5167 } 5168 case Builtin::BI__builtin_os_log_format: 5169 return emitBuiltinOSLogFormat(*E); 5170 5171 case Builtin::BI__xray_customevent: { 5172 if (!ShouldXRayInstrumentFunction()) 5173 return RValue::getIgnored(); 5174 5175 if (!CGM.getCodeGenOpts().XRayInstrumentationBundle.has( 5176 XRayInstrKind::Custom)) 5177 return RValue::getIgnored(); 5178 5179 if (const auto *XRayAttr = CurFuncDecl->getAttr<XRayInstrumentAttr>()) 5180 if (XRayAttr->neverXRayInstrument() && !AlwaysEmitXRayCustomEvents()) 5181 return RValue::getIgnored(); 5182 5183 Function *F = CGM.getIntrinsic(Intrinsic::xray_customevent); 5184 auto FTy = F->getFunctionType(); 5185 auto Arg0 = E->getArg(0); 5186 auto Arg0Val = EmitScalarExpr(Arg0); 5187 auto Arg0Ty = Arg0->getType(); 5188 auto PTy0 = FTy->getParamType(0); 5189 if (PTy0 != Arg0Val->getType()) { 5190 if (Arg0Ty->isArrayType()) 5191 Arg0Val = EmitArrayToPointerDecay(Arg0).getPointer(); 5192 else 5193 Arg0Val = Builder.CreatePointerCast(Arg0Val, PTy0); 5194 } 5195 auto Arg1 = EmitScalarExpr(E->getArg(1)); 5196 auto PTy1 = FTy->getParamType(1); 5197 if (PTy1 != Arg1->getType()) 5198 Arg1 = Builder.CreateTruncOrBitCast(Arg1, PTy1); 5199 return RValue::get(Builder.CreateCall(F, {Arg0Val, Arg1})); 5200 } 5201 5202 case Builtin::BI__xray_typedevent: { 5203 // TODO: There should be a way to always emit events even if the current 5204 // function is not instrumented. Losing events in a stream can cripple 5205 // a trace. 5206 if (!ShouldXRayInstrumentFunction()) 5207 return RValue::getIgnored(); 5208 5209 if (!CGM.getCodeGenOpts().XRayInstrumentationBundle.has( 5210 XRayInstrKind::Typed)) 5211 return RValue::getIgnored(); 5212 5213 if (const auto *XRayAttr = CurFuncDecl->getAttr<XRayInstrumentAttr>()) 5214 if (XRayAttr->neverXRayInstrument() && !AlwaysEmitXRayTypedEvents()) 5215 return RValue::getIgnored(); 5216 5217 Function *F = CGM.getIntrinsic(Intrinsic::xray_typedevent); 5218 auto FTy = F->getFunctionType(); 5219 auto Arg0 = EmitScalarExpr(E->getArg(0)); 5220 auto PTy0 = FTy->getParamType(0); 5221 if (PTy0 != Arg0->getType()) 5222 Arg0 = Builder.CreateTruncOrBitCast(Arg0, PTy0); 5223 auto Arg1 = E->getArg(1); 5224 auto Arg1Val = EmitScalarExpr(Arg1); 5225 auto Arg1Ty = Arg1->getType(); 5226 auto PTy1 = FTy->getParamType(1); 5227 if (PTy1 != Arg1Val->getType()) { 5228 if (Arg1Ty->isArrayType()) 5229 Arg1Val = EmitArrayToPointerDecay(Arg1).getPointer(); 5230 else 5231 Arg1Val = Builder.CreatePointerCast(Arg1Val, PTy1); 5232 } 5233 auto Arg2 = EmitScalarExpr(E->getArg(2)); 5234 auto PTy2 = FTy->getParamType(2); 5235 if (PTy2 != Arg2->getType()) 5236 Arg2 = Builder.CreateTruncOrBitCast(Arg2, PTy2); 5237 return RValue::get(Builder.CreateCall(F, {Arg0, Arg1Val, Arg2})); 5238 } 5239 5240 case Builtin::BI__builtin_ms_va_start: 5241 case Builtin::BI__builtin_ms_va_end: 5242 return RValue::get( 5243 EmitVAStartEnd(EmitMSVAListRef(E->getArg(0)).getPointer(), 5244 BuiltinID == Builtin::BI__builtin_ms_va_start)); 5245 5246 case Builtin::BI__builtin_ms_va_copy: { 5247 // Lower this manually. We can't reliably determine whether or not any 5248 // given va_copy() is for a Win64 va_list from the calling convention 5249 // alone, because it's legal to do this from a System V ABI function. 5250 // With opaque pointer types, we won't have enough information in LLVM 5251 // IR to determine this from the argument types, either. Best to do it 5252 // now, while we have enough information. 5253 Address DestAddr = EmitMSVAListRef(E->getArg(0)); 5254 Address SrcAddr = EmitMSVAListRef(E->getArg(1)); 5255 5256 llvm::Type *BPP = Int8PtrPtrTy; 5257 5258 DestAddr = Address(Builder.CreateBitCast(DestAddr.getPointer(), BPP, "cp"), 5259 Int8PtrTy, DestAddr.getAlignment()); 5260 SrcAddr = Address(Builder.CreateBitCast(SrcAddr.getPointer(), BPP, "ap"), 5261 Int8PtrTy, SrcAddr.getAlignment()); 5262 5263 Value *ArgPtr = Builder.CreateLoad(SrcAddr, "ap.val"); 5264 return RValue::get(Builder.CreateStore(ArgPtr, DestAddr)); 5265 } 5266 5267 case Builtin::BI__builtin_get_device_side_mangled_name: { 5268 auto Name = CGM.getCUDARuntime().getDeviceSideName( 5269 cast<DeclRefExpr>(E->getArg(0)->IgnoreImpCasts())->getDecl()); 5270 auto Str = CGM.GetAddrOfConstantCString(Name, ""); 5271 llvm::Constant *Zeros[] = {llvm::ConstantInt::get(SizeTy, 0), 5272 llvm::ConstantInt::get(SizeTy, 0)}; 5273 auto *Ptr = llvm::ConstantExpr::getGetElementPtr(Str.getElementType(), 5274 Str.getPointer(), Zeros); 5275 return RValue::get(Ptr); 5276 } 5277 } 5278 5279 // If this is an alias for a lib function (e.g. __builtin_sin), emit 5280 // the call using the normal call path, but using the unmangled 5281 // version of the function name. 5282 if (getContext().BuiltinInfo.isLibFunction(BuiltinID)) 5283 return emitLibraryCall(*this, FD, E, 5284 CGM.getBuiltinLibFunction(FD, BuiltinID)); 5285 5286 // If this is a predefined lib function (e.g. malloc), emit the call 5287 // using exactly the normal call path. 5288 if (getContext().BuiltinInfo.isPredefinedLibFunction(BuiltinID)) 5289 return emitLibraryCall(*this, FD, E, 5290 cast<llvm::Constant>(EmitScalarExpr(E->getCallee()))); 5291 5292 // Check that a call to a target specific builtin has the correct target 5293 // features. 5294 // This is down here to avoid non-target specific builtins, however, if 5295 // generic builtins start to require generic target features then we 5296 // can move this up to the beginning of the function. 5297 checkTargetFeatures(E, FD); 5298 5299 if (unsigned VectorWidth = getContext().BuiltinInfo.getRequiredVectorWidth(BuiltinID)) 5300 LargestVectorWidth = std::max(LargestVectorWidth, VectorWidth); 5301 5302 // See if we have a target specific intrinsic. 5303 const char *Name = getContext().BuiltinInfo.getName(BuiltinID); 5304 Intrinsic::ID IntrinsicID = Intrinsic::not_intrinsic; 5305 StringRef Prefix = 5306 llvm::Triple::getArchTypePrefix(getTarget().getTriple().getArch()); 5307 if (!Prefix.empty()) { 5308 IntrinsicID = Intrinsic::getIntrinsicForGCCBuiltin(Prefix.data(), Name); 5309 // NOTE we don't need to perform a compatibility flag check here since the 5310 // intrinsics are declared in Builtins*.def via LANGBUILTIN which filter the 5311 // MS builtins via ALL_MS_LANGUAGES and are filtered earlier. 5312 if (IntrinsicID == Intrinsic::not_intrinsic) 5313 IntrinsicID = Intrinsic::getIntrinsicForMSBuiltin(Prefix.data(), Name); 5314 } 5315 5316 if (IntrinsicID != Intrinsic::not_intrinsic) { 5317 SmallVector<Value*, 16> Args; 5318 5319 // Find out if any arguments are required to be integer constant 5320 // expressions. 5321 unsigned ICEArguments = 0; 5322 ASTContext::GetBuiltinTypeError Error; 5323 getContext().GetBuiltinType(BuiltinID, Error, &ICEArguments); 5324 assert(Error == ASTContext::GE_None && "Should not codegen an error"); 5325 5326 Function *F = CGM.getIntrinsic(IntrinsicID); 5327 llvm::FunctionType *FTy = F->getFunctionType(); 5328 5329 for (unsigned i = 0, e = E->getNumArgs(); i != e; ++i) { 5330 Value *ArgValue; 5331 // If this is a normal argument, just emit it as a scalar. 5332 if ((ICEArguments & (1 << i)) == 0) { 5333 ArgValue = EmitScalarExpr(E->getArg(i)); 5334 } else { 5335 // If this is required to be a constant, constant fold it so that we 5336 // know that the generated intrinsic gets a ConstantInt. 5337 ArgValue = llvm::ConstantInt::get( 5338 getLLVMContext(), 5339 *E->getArg(i)->getIntegerConstantExpr(getContext())); 5340 } 5341 5342 // If the intrinsic arg type is different from the builtin arg type 5343 // we need to do a bit cast. 5344 llvm::Type *PTy = FTy->getParamType(i); 5345 if (PTy != ArgValue->getType()) { 5346 // XXX - vector of pointers? 5347 if (auto *PtrTy = dyn_cast<llvm::PointerType>(PTy)) { 5348 if (PtrTy->getAddressSpace() != 5349 ArgValue->getType()->getPointerAddressSpace()) { 5350 ArgValue = Builder.CreateAddrSpaceCast( 5351 ArgValue, 5352 ArgValue->getType()->getPointerTo(PtrTy->getAddressSpace())); 5353 } 5354 } 5355 5356 assert(PTy->canLosslesslyBitCastTo(FTy->getParamType(i)) && 5357 "Must be able to losslessly bit cast to param"); 5358 ArgValue = Builder.CreateBitCast(ArgValue, PTy); 5359 } 5360 5361 Args.push_back(ArgValue); 5362 } 5363 5364 Value *V = Builder.CreateCall(F, Args); 5365 QualType BuiltinRetType = E->getType(); 5366 5367 llvm::Type *RetTy = VoidTy; 5368 if (!BuiltinRetType->isVoidType()) 5369 RetTy = ConvertType(BuiltinRetType); 5370 5371 if (RetTy != V->getType()) { 5372 // XXX - vector of pointers? 5373 if (auto *PtrTy = dyn_cast<llvm::PointerType>(RetTy)) { 5374 if (PtrTy->getAddressSpace() != V->getType()->getPointerAddressSpace()) { 5375 V = Builder.CreateAddrSpaceCast( 5376 V, V->getType()->getPointerTo(PtrTy->getAddressSpace())); 5377 } 5378 } 5379 5380 assert(V->getType()->canLosslesslyBitCastTo(RetTy) && 5381 "Must be able to losslessly bit cast result type"); 5382 V = Builder.CreateBitCast(V, RetTy); 5383 } 5384 5385 return RValue::get(V); 5386 } 5387 5388 // Some target-specific builtins can have aggregate return values, e.g. 5389 // __builtin_arm_mve_vld2q_u32. So if the result is an aggregate, force 5390 // ReturnValue to be non-null, so that the target-specific emission code can 5391 // always just emit into it. 5392 TypeEvaluationKind EvalKind = getEvaluationKind(E->getType()); 5393 if (EvalKind == TEK_Aggregate && ReturnValue.isNull()) { 5394 Address DestPtr = CreateMemTemp(E->getType(), "agg.tmp"); 5395 ReturnValue = ReturnValueSlot(DestPtr, false); 5396 } 5397 5398 // Now see if we can emit a target-specific builtin. 5399 if (Value *V = EmitTargetBuiltinExpr(BuiltinID, E, ReturnValue)) { 5400 switch (EvalKind) { 5401 case TEK_Scalar: 5402 return RValue::get(V); 5403 case TEK_Aggregate: 5404 return RValue::getAggregate(ReturnValue.getValue(), 5405 ReturnValue.isVolatile()); 5406 case TEK_Complex: 5407 llvm_unreachable("No current target builtin returns complex"); 5408 } 5409 llvm_unreachable("Bad evaluation kind in EmitBuiltinExpr"); 5410 } 5411 5412 ErrorUnsupported(E, "builtin function"); 5413 5414 // Unknown builtin, for now just dump it out and return undef. 5415 return GetUndefRValue(E->getType()); 5416 } 5417 5418 static Value *EmitTargetArchBuiltinExpr(CodeGenFunction *CGF, 5419 unsigned BuiltinID, const CallExpr *E, 5420 ReturnValueSlot ReturnValue, 5421 llvm::Triple::ArchType Arch) { 5422 switch (Arch) { 5423 case llvm::Triple::arm: 5424 case llvm::Triple::armeb: 5425 case llvm::Triple::thumb: 5426 case llvm::Triple::thumbeb: 5427 return CGF->EmitARMBuiltinExpr(BuiltinID, E, ReturnValue, Arch); 5428 case llvm::Triple::aarch64: 5429 case llvm::Triple::aarch64_32: 5430 case llvm::Triple::aarch64_be: 5431 return CGF->EmitAArch64BuiltinExpr(BuiltinID, E, Arch); 5432 case llvm::Triple::bpfeb: 5433 case llvm::Triple::bpfel: 5434 return CGF->EmitBPFBuiltinExpr(BuiltinID, E); 5435 case llvm::Triple::x86: 5436 case llvm::Triple::x86_64: 5437 return CGF->EmitX86BuiltinExpr(BuiltinID, E); 5438 case llvm::Triple::ppc: 5439 case llvm::Triple::ppcle: 5440 case llvm::Triple::ppc64: 5441 case llvm::Triple::ppc64le: 5442 return CGF->EmitPPCBuiltinExpr(BuiltinID, E); 5443 case llvm::Triple::r600: 5444 case llvm::Triple::amdgcn: 5445 return CGF->EmitAMDGPUBuiltinExpr(BuiltinID, E); 5446 case llvm::Triple::systemz: 5447 return CGF->EmitSystemZBuiltinExpr(BuiltinID, E); 5448 case llvm::Triple::nvptx: 5449 case llvm::Triple::nvptx64: 5450 return CGF->EmitNVPTXBuiltinExpr(BuiltinID, E); 5451 case llvm::Triple::wasm32: 5452 case llvm::Triple::wasm64: 5453 return CGF->EmitWebAssemblyBuiltinExpr(BuiltinID, E); 5454 case llvm::Triple::hexagon: 5455 return CGF->EmitHexagonBuiltinExpr(BuiltinID, E); 5456 case llvm::Triple::riscv32: 5457 case llvm::Triple::riscv64: 5458 return CGF->EmitRISCVBuiltinExpr(BuiltinID, E, ReturnValue); 5459 default: 5460 return nullptr; 5461 } 5462 } 5463 5464 Value *CodeGenFunction::EmitTargetBuiltinExpr(unsigned BuiltinID, 5465 const CallExpr *E, 5466 ReturnValueSlot ReturnValue) { 5467 if (getContext().BuiltinInfo.isAuxBuiltinID(BuiltinID)) { 5468 assert(getContext().getAuxTargetInfo() && "Missing aux target info"); 5469 return EmitTargetArchBuiltinExpr( 5470 this, getContext().BuiltinInfo.getAuxBuiltinID(BuiltinID), E, 5471 ReturnValue, getContext().getAuxTargetInfo()->getTriple().getArch()); 5472 } 5473 5474 return EmitTargetArchBuiltinExpr(this, BuiltinID, E, ReturnValue, 5475 getTarget().getTriple().getArch()); 5476 } 5477 5478 static llvm::FixedVectorType *GetNeonType(CodeGenFunction *CGF, 5479 NeonTypeFlags TypeFlags, 5480 bool HasLegalHalfType = true, 5481 bool V1Ty = false, 5482 bool AllowBFloatArgsAndRet = true) { 5483 int IsQuad = TypeFlags.isQuad(); 5484 switch (TypeFlags.getEltType()) { 5485 case NeonTypeFlags::Int8: 5486 case NeonTypeFlags::Poly8: 5487 return llvm::FixedVectorType::get(CGF->Int8Ty, V1Ty ? 1 : (8 << IsQuad)); 5488 case NeonTypeFlags::Int16: 5489 case NeonTypeFlags::Poly16: 5490 return llvm::FixedVectorType::get(CGF->Int16Ty, V1Ty ? 1 : (4 << IsQuad)); 5491 case NeonTypeFlags::BFloat16: 5492 if (AllowBFloatArgsAndRet) 5493 return llvm::FixedVectorType::get(CGF->BFloatTy, V1Ty ? 1 : (4 << IsQuad)); 5494 else 5495 return llvm::FixedVectorType::get(CGF->Int16Ty, V1Ty ? 1 : (4 << IsQuad)); 5496 case NeonTypeFlags::Float16: 5497 if (HasLegalHalfType) 5498 return llvm::FixedVectorType::get(CGF->HalfTy, V1Ty ? 1 : (4 << IsQuad)); 5499 else 5500 return llvm::FixedVectorType::get(CGF->Int16Ty, V1Ty ? 1 : (4 << IsQuad)); 5501 case NeonTypeFlags::Int32: 5502 return llvm::FixedVectorType::get(CGF->Int32Ty, V1Ty ? 1 : (2 << IsQuad)); 5503 case NeonTypeFlags::Int64: 5504 case NeonTypeFlags::Poly64: 5505 return llvm::FixedVectorType::get(CGF->Int64Ty, V1Ty ? 1 : (1 << IsQuad)); 5506 case NeonTypeFlags::Poly128: 5507 // FIXME: i128 and f128 doesn't get fully support in Clang and llvm. 5508 // There is a lot of i128 and f128 API missing. 5509 // so we use v16i8 to represent poly128 and get pattern matched. 5510 return llvm::FixedVectorType::get(CGF->Int8Ty, 16); 5511 case NeonTypeFlags::Float32: 5512 return llvm::FixedVectorType::get(CGF->FloatTy, V1Ty ? 1 : (2 << IsQuad)); 5513 case NeonTypeFlags::Float64: 5514 return llvm::FixedVectorType::get(CGF->DoubleTy, V1Ty ? 1 : (1 << IsQuad)); 5515 } 5516 llvm_unreachable("Unknown vector element type!"); 5517 } 5518 5519 static llvm::VectorType *GetFloatNeonType(CodeGenFunction *CGF, 5520 NeonTypeFlags IntTypeFlags) { 5521 int IsQuad = IntTypeFlags.isQuad(); 5522 switch (IntTypeFlags.getEltType()) { 5523 case NeonTypeFlags::Int16: 5524 return llvm::FixedVectorType::get(CGF->HalfTy, (4 << IsQuad)); 5525 case NeonTypeFlags::Int32: 5526 return llvm::FixedVectorType::get(CGF->FloatTy, (2 << IsQuad)); 5527 case NeonTypeFlags::Int64: 5528 return llvm::FixedVectorType::get(CGF->DoubleTy, (1 << IsQuad)); 5529 default: 5530 llvm_unreachable("Type can't be converted to floating-point!"); 5531 } 5532 } 5533 5534 Value *CodeGenFunction::EmitNeonSplat(Value *V, Constant *C, 5535 const ElementCount &Count) { 5536 Value *SV = llvm::ConstantVector::getSplat(Count, C); 5537 return Builder.CreateShuffleVector(V, V, SV, "lane"); 5538 } 5539 5540 Value *CodeGenFunction::EmitNeonSplat(Value *V, Constant *C) { 5541 ElementCount EC = cast<llvm::VectorType>(V->getType())->getElementCount(); 5542 return EmitNeonSplat(V, C, EC); 5543 } 5544 5545 Value *CodeGenFunction::EmitNeonCall(Function *F, SmallVectorImpl<Value*> &Ops, 5546 const char *name, 5547 unsigned shift, bool rightshift) { 5548 unsigned j = 0; 5549 for (Function::const_arg_iterator ai = F->arg_begin(), ae = F->arg_end(); 5550 ai != ae; ++ai, ++j) { 5551 if (F->isConstrainedFPIntrinsic()) 5552 if (ai->getType()->isMetadataTy()) 5553 continue; 5554 if (shift > 0 && shift == j) 5555 Ops[j] = EmitNeonShiftVector(Ops[j], ai->getType(), rightshift); 5556 else 5557 Ops[j] = Builder.CreateBitCast(Ops[j], ai->getType(), name); 5558 } 5559 5560 if (F->isConstrainedFPIntrinsic()) 5561 return Builder.CreateConstrainedFPCall(F, Ops, name); 5562 else 5563 return Builder.CreateCall(F, Ops, name); 5564 } 5565 5566 Value *CodeGenFunction::EmitNeonShiftVector(Value *V, llvm::Type *Ty, 5567 bool neg) { 5568 int SV = cast<ConstantInt>(V)->getSExtValue(); 5569 return ConstantInt::get(Ty, neg ? -SV : SV); 5570 } 5571 5572 // Right-shift a vector by a constant. 5573 Value *CodeGenFunction::EmitNeonRShiftImm(Value *Vec, Value *Shift, 5574 llvm::Type *Ty, bool usgn, 5575 const char *name) { 5576 llvm::VectorType *VTy = cast<llvm::VectorType>(Ty); 5577 5578 int ShiftAmt = cast<ConstantInt>(Shift)->getSExtValue(); 5579 int EltSize = VTy->getScalarSizeInBits(); 5580 5581 Vec = Builder.CreateBitCast(Vec, Ty); 5582 5583 // lshr/ashr are undefined when the shift amount is equal to the vector 5584 // element size. 5585 if (ShiftAmt == EltSize) { 5586 if (usgn) { 5587 // Right-shifting an unsigned value by its size yields 0. 5588 return llvm::ConstantAggregateZero::get(VTy); 5589 } else { 5590 // Right-shifting a signed value by its size is equivalent 5591 // to a shift of size-1. 5592 --ShiftAmt; 5593 Shift = ConstantInt::get(VTy->getElementType(), ShiftAmt); 5594 } 5595 } 5596 5597 Shift = EmitNeonShiftVector(Shift, Ty, false); 5598 if (usgn) 5599 return Builder.CreateLShr(Vec, Shift, name); 5600 else 5601 return Builder.CreateAShr(Vec, Shift, name); 5602 } 5603 5604 enum { 5605 AddRetType = (1 << 0), 5606 Add1ArgType = (1 << 1), 5607 Add2ArgTypes = (1 << 2), 5608 5609 VectorizeRetType = (1 << 3), 5610 VectorizeArgTypes = (1 << 4), 5611 5612 InventFloatType = (1 << 5), 5613 UnsignedAlts = (1 << 6), 5614 5615 Use64BitVectors = (1 << 7), 5616 Use128BitVectors = (1 << 8), 5617 5618 Vectorize1ArgType = Add1ArgType | VectorizeArgTypes, 5619 VectorRet = AddRetType | VectorizeRetType, 5620 VectorRetGetArgs01 = 5621 AddRetType | Add2ArgTypes | VectorizeRetType | VectorizeArgTypes, 5622 FpCmpzModifiers = 5623 AddRetType | VectorizeRetType | Add1ArgType | InventFloatType 5624 }; 5625 5626 namespace { 5627 struct ARMVectorIntrinsicInfo { 5628 const char *NameHint; 5629 unsigned BuiltinID; 5630 unsigned LLVMIntrinsic; 5631 unsigned AltLLVMIntrinsic; 5632 uint64_t TypeModifier; 5633 5634 bool operator<(unsigned RHSBuiltinID) const { 5635 return BuiltinID < RHSBuiltinID; 5636 } 5637 bool operator<(const ARMVectorIntrinsicInfo &TE) const { 5638 return BuiltinID < TE.BuiltinID; 5639 } 5640 }; 5641 } // end anonymous namespace 5642 5643 #define NEONMAP0(NameBase) \ 5644 { #NameBase, NEON::BI__builtin_neon_ ## NameBase, 0, 0, 0 } 5645 5646 #define NEONMAP1(NameBase, LLVMIntrinsic, TypeModifier) \ 5647 { #NameBase, NEON:: BI__builtin_neon_ ## NameBase, \ 5648 Intrinsic::LLVMIntrinsic, 0, TypeModifier } 5649 5650 #define NEONMAP2(NameBase, LLVMIntrinsic, AltLLVMIntrinsic, TypeModifier) \ 5651 { #NameBase, NEON:: BI__builtin_neon_ ## NameBase, \ 5652 Intrinsic::LLVMIntrinsic, Intrinsic::AltLLVMIntrinsic, \ 5653 TypeModifier } 5654 5655 static const ARMVectorIntrinsicInfo ARMSIMDIntrinsicMap [] = { 5656 NEONMAP1(__a32_vcvt_bf16_v, arm_neon_vcvtfp2bf, 0), 5657 NEONMAP0(splat_lane_v), 5658 NEONMAP0(splat_laneq_v), 5659 NEONMAP0(splatq_lane_v), 5660 NEONMAP0(splatq_laneq_v), 5661 NEONMAP2(vabd_v, arm_neon_vabdu, arm_neon_vabds, Add1ArgType | UnsignedAlts), 5662 NEONMAP2(vabdq_v, arm_neon_vabdu, arm_neon_vabds, Add1ArgType | UnsignedAlts), 5663 NEONMAP1(vabs_v, arm_neon_vabs, 0), 5664 NEONMAP1(vabsq_v, arm_neon_vabs, 0), 5665 NEONMAP0(vadd_v), 5666 NEONMAP0(vaddhn_v), 5667 NEONMAP0(vaddq_v), 5668 NEONMAP1(vaesdq_v, arm_neon_aesd, 0), 5669 NEONMAP1(vaeseq_v, arm_neon_aese, 0), 5670 NEONMAP1(vaesimcq_v, arm_neon_aesimc, 0), 5671 NEONMAP1(vaesmcq_v, arm_neon_aesmc, 0), 5672 NEONMAP1(vbfdot_v, arm_neon_bfdot, 0), 5673 NEONMAP1(vbfdotq_v, arm_neon_bfdot, 0), 5674 NEONMAP1(vbfmlalbq_v, arm_neon_bfmlalb, 0), 5675 NEONMAP1(vbfmlaltq_v, arm_neon_bfmlalt, 0), 5676 NEONMAP1(vbfmmlaq_v, arm_neon_bfmmla, 0), 5677 NEONMAP1(vbsl_v, arm_neon_vbsl, AddRetType), 5678 NEONMAP1(vbslq_v, arm_neon_vbsl, AddRetType), 5679 NEONMAP1(vcadd_rot270_v, arm_neon_vcadd_rot270, Add1ArgType), 5680 NEONMAP1(vcadd_rot90_v, arm_neon_vcadd_rot90, Add1ArgType), 5681 NEONMAP1(vcaddq_rot270_v, arm_neon_vcadd_rot270, Add1ArgType), 5682 NEONMAP1(vcaddq_rot90_v, arm_neon_vcadd_rot90, Add1ArgType), 5683 NEONMAP1(vcage_v, arm_neon_vacge, 0), 5684 NEONMAP1(vcageq_v, arm_neon_vacge, 0), 5685 NEONMAP1(vcagt_v, arm_neon_vacgt, 0), 5686 NEONMAP1(vcagtq_v, arm_neon_vacgt, 0), 5687 NEONMAP1(vcale_v, arm_neon_vacge, 0), 5688 NEONMAP1(vcaleq_v, arm_neon_vacge, 0), 5689 NEONMAP1(vcalt_v, arm_neon_vacgt, 0), 5690 NEONMAP1(vcaltq_v, arm_neon_vacgt, 0), 5691 NEONMAP0(vceqz_v), 5692 NEONMAP0(vceqzq_v), 5693 NEONMAP0(vcgez_v), 5694 NEONMAP0(vcgezq_v), 5695 NEONMAP0(vcgtz_v), 5696 NEONMAP0(vcgtzq_v), 5697 NEONMAP0(vclez_v), 5698 NEONMAP0(vclezq_v), 5699 NEONMAP1(vcls_v, arm_neon_vcls, Add1ArgType), 5700 NEONMAP1(vclsq_v, arm_neon_vcls, Add1ArgType), 5701 NEONMAP0(vcltz_v), 5702 NEONMAP0(vcltzq_v), 5703 NEONMAP1(vclz_v, ctlz, Add1ArgType), 5704 NEONMAP1(vclzq_v, ctlz, Add1ArgType), 5705 NEONMAP1(vcnt_v, ctpop, Add1ArgType), 5706 NEONMAP1(vcntq_v, ctpop, Add1ArgType), 5707 NEONMAP1(vcvt_f16_f32, arm_neon_vcvtfp2hf, 0), 5708 NEONMAP0(vcvt_f16_v), 5709 NEONMAP1(vcvt_f32_f16, arm_neon_vcvthf2fp, 0), 5710 NEONMAP0(vcvt_f32_v), 5711 NEONMAP2(vcvt_n_f16_v, arm_neon_vcvtfxu2fp, arm_neon_vcvtfxs2fp, 0), 5712 NEONMAP2(vcvt_n_f32_v, arm_neon_vcvtfxu2fp, arm_neon_vcvtfxs2fp, 0), 5713 NEONMAP1(vcvt_n_s16_v, arm_neon_vcvtfp2fxs, 0), 5714 NEONMAP1(vcvt_n_s32_v, arm_neon_vcvtfp2fxs, 0), 5715 NEONMAP1(vcvt_n_s64_v, arm_neon_vcvtfp2fxs, 0), 5716 NEONMAP1(vcvt_n_u16_v, arm_neon_vcvtfp2fxu, 0), 5717 NEONMAP1(vcvt_n_u32_v, arm_neon_vcvtfp2fxu, 0), 5718 NEONMAP1(vcvt_n_u64_v, arm_neon_vcvtfp2fxu, 0), 5719 NEONMAP0(vcvt_s16_v), 5720 NEONMAP0(vcvt_s32_v), 5721 NEONMAP0(vcvt_s64_v), 5722 NEONMAP0(vcvt_u16_v), 5723 NEONMAP0(vcvt_u32_v), 5724 NEONMAP0(vcvt_u64_v), 5725 NEONMAP1(vcvta_s16_v, arm_neon_vcvtas, 0), 5726 NEONMAP1(vcvta_s32_v, arm_neon_vcvtas, 0), 5727 NEONMAP1(vcvta_s64_v, arm_neon_vcvtas, 0), 5728 NEONMAP1(vcvta_u16_v, arm_neon_vcvtau, 0), 5729 NEONMAP1(vcvta_u32_v, arm_neon_vcvtau, 0), 5730 NEONMAP1(vcvta_u64_v, arm_neon_vcvtau, 0), 5731 NEONMAP1(vcvtaq_s16_v, arm_neon_vcvtas, 0), 5732 NEONMAP1(vcvtaq_s32_v, arm_neon_vcvtas, 0), 5733 NEONMAP1(vcvtaq_s64_v, arm_neon_vcvtas, 0), 5734 NEONMAP1(vcvtaq_u16_v, arm_neon_vcvtau, 0), 5735 NEONMAP1(vcvtaq_u32_v, arm_neon_vcvtau, 0), 5736 NEONMAP1(vcvtaq_u64_v, arm_neon_vcvtau, 0), 5737 NEONMAP1(vcvth_bf16_f32, arm_neon_vcvtbfp2bf, 0), 5738 NEONMAP1(vcvtm_s16_v, arm_neon_vcvtms, 0), 5739 NEONMAP1(vcvtm_s32_v, arm_neon_vcvtms, 0), 5740 NEONMAP1(vcvtm_s64_v, arm_neon_vcvtms, 0), 5741 NEONMAP1(vcvtm_u16_v, arm_neon_vcvtmu, 0), 5742 NEONMAP1(vcvtm_u32_v, arm_neon_vcvtmu, 0), 5743 NEONMAP1(vcvtm_u64_v, arm_neon_vcvtmu, 0), 5744 NEONMAP1(vcvtmq_s16_v, arm_neon_vcvtms, 0), 5745 NEONMAP1(vcvtmq_s32_v, arm_neon_vcvtms, 0), 5746 NEONMAP1(vcvtmq_s64_v, arm_neon_vcvtms, 0), 5747 NEONMAP1(vcvtmq_u16_v, arm_neon_vcvtmu, 0), 5748 NEONMAP1(vcvtmq_u32_v, arm_neon_vcvtmu, 0), 5749 NEONMAP1(vcvtmq_u64_v, arm_neon_vcvtmu, 0), 5750 NEONMAP1(vcvtn_s16_v, arm_neon_vcvtns, 0), 5751 NEONMAP1(vcvtn_s32_v, arm_neon_vcvtns, 0), 5752 NEONMAP1(vcvtn_s64_v, arm_neon_vcvtns, 0), 5753 NEONMAP1(vcvtn_u16_v, arm_neon_vcvtnu, 0), 5754 NEONMAP1(vcvtn_u32_v, arm_neon_vcvtnu, 0), 5755 NEONMAP1(vcvtn_u64_v, arm_neon_vcvtnu, 0), 5756 NEONMAP1(vcvtnq_s16_v, arm_neon_vcvtns, 0), 5757 NEONMAP1(vcvtnq_s32_v, arm_neon_vcvtns, 0), 5758 NEONMAP1(vcvtnq_s64_v, arm_neon_vcvtns, 0), 5759 NEONMAP1(vcvtnq_u16_v, arm_neon_vcvtnu, 0), 5760 NEONMAP1(vcvtnq_u32_v, arm_neon_vcvtnu, 0), 5761 NEONMAP1(vcvtnq_u64_v, arm_neon_vcvtnu, 0), 5762 NEONMAP1(vcvtp_s16_v, arm_neon_vcvtps, 0), 5763 NEONMAP1(vcvtp_s32_v, arm_neon_vcvtps, 0), 5764 NEONMAP1(vcvtp_s64_v, arm_neon_vcvtps, 0), 5765 NEONMAP1(vcvtp_u16_v, arm_neon_vcvtpu, 0), 5766 NEONMAP1(vcvtp_u32_v, arm_neon_vcvtpu, 0), 5767 NEONMAP1(vcvtp_u64_v, arm_neon_vcvtpu, 0), 5768 NEONMAP1(vcvtpq_s16_v, arm_neon_vcvtps, 0), 5769 NEONMAP1(vcvtpq_s32_v, arm_neon_vcvtps, 0), 5770 NEONMAP1(vcvtpq_s64_v, arm_neon_vcvtps, 0), 5771 NEONMAP1(vcvtpq_u16_v, arm_neon_vcvtpu, 0), 5772 NEONMAP1(vcvtpq_u32_v, arm_neon_vcvtpu, 0), 5773 NEONMAP1(vcvtpq_u64_v, arm_neon_vcvtpu, 0), 5774 NEONMAP0(vcvtq_f16_v), 5775 NEONMAP0(vcvtq_f32_v), 5776 NEONMAP2(vcvtq_n_f16_v, arm_neon_vcvtfxu2fp, arm_neon_vcvtfxs2fp, 0), 5777 NEONMAP2(vcvtq_n_f32_v, arm_neon_vcvtfxu2fp, arm_neon_vcvtfxs2fp, 0), 5778 NEONMAP1(vcvtq_n_s16_v, arm_neon_vcvtfp2fxs, 0), 5779 NEONMAP1(vcvtq_n_s32_v, arm_neon_vcvtfp2fxs, 0), 5780 NEONMAP1(vcvtq_n_s64_v, arm_neon_vcvtfp2fxs, 0), 5781 NEONMAP1(vcvtq_n_u16_v, arm_neon_vcvtfp2fxu, 0), 5782 NEONMAP1(vcvtq_n_u32_v, arm_neon_vcvtfp2fxu, 0), 5783 NEONMAP1(vcvtq_n_u64_v, arm_neon_vcvtfp2fxu, 0), 5784 NEONMAP0(vcvtq_s16_v), 5785 NEONMAP0(vcvtq_s32_v), 5786 NEONMAP0(vcvtq_s64_v), 5787 NEONMAP0(vcvtq_u16_v), 5788 NEONMAP0(vcvtq_u32_v), 5789 NEONMAP0(vcvtq_u64_v), 5790 NEONMAP2(vdot_v, arm_neon_udot, arm_neon_sdot, 0), 5791 NEONMAP2(vdotq_v, arm_neon_udot, arm_neon_sdot, 0), 5792 NEONMAP0(vext_v), 5793 NEONMAP0(vextq_v), 5794 NEONMAP0(vfma_v), 5795 NEONMAP0(vfmaq_v), 5796 NEONMAP2(vhadd_v, arm_neon_vhaddu, arm_neon_vhadds, Add1ArgType | UnsignedAlts), 5797 NEONMAP2(vhaddq_v, arm_neon_vhaddu, arm_neon_vhadds, Add1ArgType | UnsignedAlts), 5798 NEONMAP2(vhsub_v, arm_neon_vhsubu, arm_neon_vhsubs, Add1ArgType | UnsignedAlts), 5799 NEONMAP2(vhsubq_v, arm_neon_vhsubu, arm_neon_vhsubs, Add1ArgType | UnsignedAlts), 5800 NEONMAP0(vld1_dup_v), 5801 NEONMAP1(vld1_v, arm_neon_vld1, 0), 5802 NEONMAP1(vld1_x2_v, arm_neon_vld1x2, 0), 5803 NEONMAP1(vld1_x3_v, arm_neon_vld1x3, 0), 5804 NEONMAP1(vld1_x4_v, arm_neon_vld1x4, 0), 5805 NEONMAP0(vld1q_dup_v), 5806 NEONMAP1(vld1q_v, arm_neon_vld1, 0), 5807 NEONMAP1(vld1q_x2_v, arm_neon_vld1x2, 0), 5808 NEONMAP1(vld1q_x3_v, arm_neon_vld1x3, 0), 5809 NEONMAP1(vld1q_x4_v, arm_neon_vld1x4, 0), 5810 NEONMAP1(vld2_dup_v, arm_neon_vld2dup, 0), 5811 NEONMAP1(vld2_lane_v, arm_neon_vld2lane, 0), 5812 NEONMAP1(vld2_v, arm_neon_vld2, 0), 5813 NEONMAP1(vld2q_dup_v, arm_neon_vld2dup, 0), 5814 NEONMAP1(vld2q_lane_v, arm_neon_vld2lane, 0), 5815 NEONMAP1(vld2q_v, arm_neon_vld2, 0), 5816 NEONMAP1(vld3_dup_v, arm_neon_vld3dup, 0), 5817 NEONMAP1(vld3_lane_v, arm_neon_vld3lane, 0), 5818 NEONMAP1(vld3_v, arm_neon_vld3, 0), 5819 NEONMAP1(vld3q_dup_v, arm_neon_vld3dup, 0), 5820 NEONMAP1(vld3q_lane_v, arm_neon_vld3lane, 0), 5821 NEONMAP1(vld3q_v, arm_neon_vld3, 0), 5822 NEONMAP1(vld4_dup_v, arm_neon_vld4dup, 0), 5823 NEONMAP1(vld4_lane_v, arm_neon_vld4lane, 0), 5824 NEONMAP1(vld4_v, arm_neon_vld4, 0), 5825 NEONMAP1(vld4q_dup_v, arm_neon_vld4dup, 0), 5826 NEONMAP1(vld4q_lane_v, arm_neon_vld4lane, 0), 5827 NEONMAP1(vld4q_v, arm_neon_vld4, 0), 5828 NEONMAP2(vmax_v, arm_neon_vmaxu, arm_neon_vmaxs, Add1ArgType | UnsignedAlts), 5829 NEONMAP1(vmaxnm_v, arm_neon_vmaxnm, Add1ArgType), 5830 NEONMAP1(vmaxnmq_v, arm_neon_vmaxnm, Add1ArgType), 5831 NEONMAP2(vmaxq_v, arm_neon_vmaxu, arm_neon_vmaxs, Add1ArgType | UnsignedAlts), 5832 NEONMAP2(vmin_v, arm_neon_vminu, arm_neon_vmins, Add1ArgType | UnsignedAlts), 5833 NEONMAP1(vminnm_v, arm_neon_vminnm, Add1ArgType), 5834 NEONMAP1(vminnmq_v, arm_neon_vminnm, Add1ArgType), 5835 NEONMAP2(vminq_v, arm_neon_vminu, arm_neon_vmins, Add1ArgType | UnsignedAlts), 5836 NEONMAP2(vmmlaq_v, arm_neon_ummla, arm_neon_smmla, 0), 5837 NEONMAP0(vmovl_v), 5838 NEONMAP0(vmovn_v), 5839 NEONMAP1(vmul_v, arm_neon_vmulp, Add1ArgType), 5840 NEONMAP0(vmull_v), 5841 NEONMAP1(vmulq_v, arm_neon_vmulp, Add1ArgType), 5842 NEONMAP2(vpadal_v, arm_neon_vpadalu, arm_neon_vpadals, UnsignedAlts), 5843 NEONMAP2(vpadalq_v, arm_neon_vpadalu, arm_neon_vpadals, UnsignedAlts), 5844 NEONMAP1(vpadd_v, arm_neon_vpadd, Add1ArgType), 5845 NEONMAP2(vpaddl_v, arm_neon_vpaddlu, arm_neon_vpaddls, UnsignedAlts), 5846 NEONMAP2(vpaddlq_v, arm_neon_vpaddlu, arm_neon_vpaddls, UnsignedAlts), 5847 NEONMAP1(vpaddq_v, arm_neon_vpadd, Add1ArgType), 5848 NEONMAP2(vpmax_v, arm_neon_vpmaxu, arm_neon_vpmaxs, Add1ArgType | UnsignedAlts), 5849 NEONMAP2(vpmin_v, arm_neon_vpminu, arm_neon_vpmins, Add1ArgType | UnsignedAlts), 5850 NEONMAP1(vqabs_v, arm_neon_vqabs, Add1ArgType), 5851 NEONMAP1(vqabsq_v, arm_neon_vqabs, Add1ArgType), 5852 NEONMAP2(vqadd_v, uadd_sat, sadd_sat, Add1ArgType | UnsignedAlts), 5853 NEONMAP2(vqaddq_v, uadd_sat, sadd_sat, Add1ArgType | UnsignedAlts), 5854 NEONMAP2(vqdmlal_v, arm_neon_vqdmull, sadd_sat, 0), 5855 NEONMAP2(vqdmlsl_v, arm_neon_vqdmull, ssub_sat, 0), 5856 NEONMAP1(vqdmulh_v, arm_neon_vqdmulh, Add1ArgType), 5857 NEONMAP1(vqdmulhq_v, arm_neon_vqdmulh, Add1ArgType), 5858 NEONMAP1(vqdmull_v, arm_neon_vqdmull, Add1ArgType), 5859 NEONMAP2(vqmovn_v, arm_neon_vqmovnu, arm_neon_vqmovns, Add1ArgType | UnsignedAlts), 5860 NEONMAP1(vqmovun_v, arm_neon_vqmovnsu, Add1ArgType), 5861 NEONMAP1(vqneg_v, arm_neon_vqneg, Add1ArgType), 5862 NEONMAP1(vqnegq_v, arm_neon_vqneg, Add1ArgType), 5863 NEONMAP1(vqrdmulh_v, arm_neon_vqrdmulh, Add1ArgType), 5864 NEONMAP1(vqrdmulhq_v, arm_neon_vqrdmulh, Add1ArgType), 5865 NEONMAP2(vqrshl_v, arm_neon_vqrshiftu, arm_neon_vqrshifts, Add1ArgType | UnsignedAlts), 5866 NEONMAP2(vqrshlq_v, arm_neon_vqrshiftu, arm_neon_vqrshifts, Add1ArgType | UnsignedAlts), 5867 NEONMAP2(vqshl_n_v, arm_neon_vqshiftu, arm_neon_vqshifts, UnsignedAlts), 5868 NEONMAP2(vqshl_v, arm_neon_vqshiftu, arm_neon_vqshifts, Add1ArgType | UnsignedAlts), 5869 NEONMAP2(vqshlq_n_v, arm_neon_vqshiftu, arm_neon_vqshifts, UnsignedAlts), 5870 NEONMAP2(vqshlq_v, arm_neon_vqshiftu, arm_neon_vqshifts, Add1ArgType | UnsignedAlts), 5871 NEONMAP1(vqshlu_n_v, arm_neon_vqshiftsu, 0), 5872 NEONMAP1(vqshluq_n_v, arm_neon_vqshiftsu, 0), 5873 NEONMAP2(vqsub_v, usub_sat, ssub_sat, Add1ArgType | UnsignedAlts), 5874 NEONMAP2(vqsubq_v, usub_sat, ssub_sat, Add1ArgType | UnsignedAlts), 5875 NEONMAP1(vraddhn_v, arm_neon_vraddhn, Add1ArgType), 5876 NEONMAP2(vrecpe_v, arm_neon_vrecpe, arm_neon_vrecpe, 0), 5877 NEONMAP2(vrecpeq_v, arm_neon_vrecpe, arm_neon_vrecpe, 0), 5878 NEONMAP1(vrecps_v, arm_neon_vrecps, Add1ArgType), 5879 NEONMAP1(vrecpsq_v, arm_neon_vrecps, Add1ArgType), 5880 NEONMAP2(vrhadd_v, arm_neon_vrhaddu, arm_neon_vrhadds, Add1ArgType | UnsignedAlts), 5881 NEONMAP2(vrhaddq_v, arm_neon_vrhaddu, arm_neon_vrhadds, Add1ArgType | UnsignedAlts), 5882 NEONMAP1(vrnd_v, arm_neon_vrintz, Add1ArgType), 5883 NEONMAP1(vrnda_v, arm_neon_vrinta, Add1ArgType), 5884 NEONMAP1(vrndaq_v, arm_neon_vrinta, Add1ArgType), 5885 NEONMAP0(vrndi_v), 5886 NEONMAP0(vrndiq_v), 5887 NEONMAP1(vrndm_v, arm_neon_vrintm, Add1ArgType), 5888 NEONMAP1(vrndmq_v, arm_neon_vrintm, Add1ArgType), 5889 NEONMAP1(vrndn_v, arm_neon_vrintn, Add1ArgType), 5890 NEONMAP1(vrndnq_v, arm_neon_vrintn, Add1ArgType), 5891 NEONMAP1(vrndp_v, arm_neon_vrintp, Add1ArgType), 5892 NEONMAP1(vrndpq_v, arm_neon_vrintp, Add1ArgType), 5893 NEONMAP1(vrndq_v, arm_neon_vrintz, Add1ArgType), 5894 NEONMAP1(vrndx_v, arm_neon_vrintx, Add1ArgType), 5895 NEONMAP1(vrndxq_v, arm_neon_vrintx, Add1ArgType), 5896 NEONMAP2(vrshl_v, arm_neon_vrshiftu, arm_neon_vrshifts, Add1ArgType | UnsignedAlts), 5897 NEONMAP2(vrshlq_v, arm_neon_vrshiftu, arm_neon_vrshifts, Add1ArgType | UnsignedAlts), 5898 NEONMAP2(vrshr_n_v, arm_neon_vrshiftu, arm_neon_vrshifts, UnsignedAlts), 5899 NEONMAP2(vrshrq_n_v, arm_neon_vrshiftu, arm_neon_vrshifts, UnsignedAlts), 5900 NEONMAP2(vrsqrte_v, arm_neon_vrsqrte, arm_neon_vrsqrte, 0), 5901 NEONMAP2(vrsqrteq_v, arm_neon_vrsqrte, arm_neon_vrsqrte, 0), 5902 NEONMAP1(vrsqrts_v, arm_neon_vrsqrts, Add1ArgType), 5903 NEONMAP1(vrsqrtsq_v, arm_neon_vrsqrts, Add1ArgType), 5904 NEONMAP1(vrsubhn_v, arm_neon_vrsubhn, Add1ArgType), 5905 NEONMAP1(vsha1su0q_v, arm_neon_sha1su0, 0), 5906 NEONMAP1(vsha1su1q_v, arm_neon_sha1su1, 0), 5907 NEONMAP1(vsha256h2q_v, arm_neon_sha256h2, 0), 5908 NEONMAP1(vsha256hq_v, arm_neon_sha256h, 0), 5909 NEONMAP1(vsha256su0q_v, arm_neon_sha256su0, 0), 5910 NEONMAP1(vsha256su1q_v, arm_neon_sha256su1, 0), 5911 NEONMAP0(vshl_n_v), 5912 NEONMAP2(vshl_v, arm_neon_vshiftu, arm_neon_vshifts, Add1ArgType | UnsignedAlts), 5913 NEONMAP0(vshll_n_v), 5914 NEONMAP0(vshlq_n_v), 5915 NEONMAP2(vshlq_v, arm_neon_vshiftu, arm_neon_vshifts, Add1ArgType | UnsignedAlts), 5916 NEONMAP0(vshr_n_v), 5917 NEONMAP0(vshrn_n_v), 5918 NEONMAP0(vshrq_n_v), 5919 NEONMAP1(vst1_v, arm_neon_vst1, 0), 5920 NEONMAP1(vst1_x2_v, arm_neon_vst1x2, 0), 5921 NEONMAP1(vst1_x3_v, arm_neon_vst1x3, 0), 5922 NEONMAP1(vst1_x4_v, arm_neon_vst1x4, 0), 5923 NEONMAP1(vst1q_v, arm_neon_vst1, 0), 5924 NEONMAP1(vst1q_x2_v, arm_neon_vst1x2, 0), 5925 NEONMAP1(vst1q_x3_v, arm_neon_vst1x3, 0), 5926 NEONMAP1(vst1q_x4_v, arm_neon_vst1x4, 0), 5927 NEONMAP1(vst2_lane_v, arm_neon_vst2lane, 0), 5928 NEONMAP1(vst2_v, arm_neon_vst2, 0), 5929 NEONMAP1(vst2q_lane_v, arm_neon_vst2lane, 0), 5930 NEONMAP1(vst2q_v, arm_neon_vst2, 0), 5931 NEONMAP1(vst3_lane_v, arm_neon_vst3lane, 0), 5932 NEONMAP1(vst3_v, arm_neon_vst3, 0), 5933 NEONMAP1(vst3q_lane_v, arm_neon_vst3lane, 0), 5934 NEONMAP1(vst3q_v, arm_neon_vst3, 0), 5935 NEONMAP1(vst4_lane_v, arm_neon_vst4lane, 0), 5936 NEONMAP1(vst4_v, arm_neon_vst4, 0), 5937 NEONMAP1(vst4q_lane_v, arm_neon_vst4lane, 0), 5938 NEONMAP1(vst4q_v, arm_neon_vst4, 0), 5939 NEONMAP0(vsubhn_v), 5940 NEONMAP0(vtrn_v), 5941 NEONMAP0(vtrnq_v), 5942 NEONMAP0(vtst_v), 5943 NEONMAP0(vtstq_v), 5944 NEONMAP1(vusdot_v, arm_neon_usdot, 0), 5945 NEONMAP1(vusdotq_v, arm_neon_usdot, 0), 5946 NEONMAP1(vusmmlaq_v, arm_neon_usmmla, 0), 5947 NEONMAP0(vuzp_v), 5948 NEONMAP0(vuzpq_v), 5949 NEONMAP0(vzip_v), 5950 NEONMAP0(vzipq_v) 5951 }; 5952 5953 static const ARMVectorIntrinsicInfo AArch64SIMDIntrinsicMap[] = { 5954 NEONMAP1(__a64_vcvtq_low_bf16_v, aarch64_neon_bfcvtn, 0), 5955 NEONMAP0(splat_lane_v), 5956 NEONMAP0(splat_laneq_v), 5957 NEONMAP0(splatq_lane_v), 5958 NEONMAP0(splatq_laneq_v), 5959 NEONMAP1(vabs_v, aarch64_neon_abs, 0), 5960 NEONMAP1(vabsq_v, aarch64_neon_abs, 0), 5961 NEONMAP0(vadd_v), 5962 NEONMAP0(vaddhn_v), 5963 NEONMAP0(vaddq_p128), 5964 NEONMAP0(vaddq_v), 5965 NEONMAP1(vaesdq_v, aarch64_crypto_aesd, 0), 5966 NEONMAP1(vaeseq_v, aarch64_crypto_aese, 0), 5967 NEONMAP1(vaesimcq_v, aarch64_crypto_aesimc, 0), 5968 NEONMAP1(vaesmcq_v, aarch64_crypto_aesmc, 0), 5969 NEONMAP2(vbcaxq_v, aarch64_crypto_bcaxu, aarch64_crypto_bcaxs, Add1ArgType | UnsignedAlts), 5970 NEONMAP1(vbfdot_v, aarch64_neon_bfdot, 0), 5971 NEONMAP1(vbfdotq_v, aarch64_neon_bfdot, 0), 5972 NEONMAP1(vbfmlalbq_v, aarch64_neon_bfmlalb, 0), 5973 NEONMAP1(vbfmlaltq_v, aarch64_neon_bfmlalt, 0), 5974 NEONMAP1(vbfmmlaq_v, aarch64_neon_bfmmla, 0), 5975 NEONMAP1(vcadd_rot270_v, aarch64_neon_vcadd_rot270, Add1ArgType), 5976 NEONMAP1(vcadd_rot90_v, aarch64_neon_vcadd_rot90, Add1ArgType), 5977 NEONMAP1(vcaddq_rot270_v, aarch64_neon_vcadd_rot270, Add1ArgType), 5978 NEONMAP1(vcaddq_rot90_v, aarch64_neon_vcadd_rot90, Add1ArgType), 5979 NEONMAP1(vcage_v, aarch64_neon_facge, 0), 5980 NEONMAP1(vcageq_v, aarch64_neon_facge, 0), 5981 NEONMAP1(vcagt_v, aarch64_neon_facgt, 0), 5982 NEONMAP1(vcagtq_v, aarch64_neon_facgt, 0), 5983 NEONMAP1(vcale_v, aarch64_neon_facge, 0), 5984 NEONMAP1(vcaleq_v, aarch64_neon_facge, 0), 5985 NEONMAP1(vcalt_v, aarch64_neon_facgt, 0), 5986 NEONMAP1(vcaltq_v, aarch64_neon_facgt, 0), 5987 NEONMAP0(vceqz_v), 5988 NEONMAP0(vceqzq_v), 5989 NEONMAP0(vcgez_v), 5990 NEONMAP0(vcgezq_v), 5991 NEONMAP0(vcgtz_v), 5992 NEONMAP0(vcgtzq_v), 5993 NEONMAP0(vclez_v), 5994 NEONMAP0(vclezq_v), 5995 NEONMAP1(vcls_v, aarch64_neon_cls, Add1ArgType), 5996 NEONMAP1(vclsq_v, aarch64_neon_cls, Add1ArgType), 5997 NEONMAP0(vcltz_v), 5998 NEONMAP0(vcltzq_v), 5999 NEONMAP1(vclz_v, ctlz, Add1ArgType), 6000 NEONMAP1(vclzq_v, ctlz, Add1ArgType), 6001 NEONMAP1(vcmla_rot180_v, aarch64_neon_vcmla_rot180, Add1ArgType), 6002 NEONMAP1(vcmla_rot270_v, aarch64_neon_vcmla_rot270, Add1ArgType), 6003 NEONMAP1(vcmla_rot90_v, aarch64_neon_vcmla_rot90, Add1ArgType), 6004 NEONMAP1(vcmla_v, aarch64_neon_vcmla_rot0, Add1ArgType), 6005 NEONMAP1(vcmlaq_rot180_v, aarch64_neon_vcmla_rot180, Add1ArgType), 6006 NEONMAP1(vcmlaq_rot270_v, aarch64_neon_vcmla_rot270, Add1ArgType), 6007 NEONMAP1(vcmlaq_rot90_v, aarch64_neon_vcmla_rot90, Add1ArgType), 6008 NEONMAP1(vcmlaq_v, aarch64_neon_vcmla_rot0, Add1ArgType), 6009 NEONMAP1(vcnt_v, ctpop, Add1ArgType), 6010 NEONMAP1(vcntq_v, ctpop, Add1ArgType), 6011 NEONMAP1(vcvt_f16_f32, aarch64_neon_vcvtfp2hf, 0), 6012 NEONMAP0(vcvt_f16_v), 6013 NEONMAP1(vcvt_f32_f16, aarch64_neon_vcvthf2fp, 0), 6014 NEONMAP0(vcvt_f32_v), 6015 NEONMAP2(vcvt_n_f16_v, aarch64_neon_vcvtfxu2fp, aarch64_neon_vcvtfxs2fp, 0), 6016 NEONMAP2(vcvt_n_f32_v, aarch64_neon_vcvtfxu2fp, aarch64_neon_vcvtfxs2fp, 0), 6017 NEONMAP2(vcvt_n_f64_v, aarch64_neon_vcvtfxu2fp, aarch64_neon_vcvtfxs2fp, 0), 6018 NEONMAP1(vcvt_n_s16_v, aarch64_neon_vcvtfp2fxs, 0), 6019 NEONMAP1(vcvt_n_s32_v, aarch64_neon_vcvtfp2fxs, 0), 6020 NEONMAP1(vcvt_n_s64_v, aarch64_neon_vcvtfp2fxs, 0), 6021 NEONMAP1(vcvt_n_u16_v, aarch64_neon_vcvtfp2fxu, 0), 6022 NEONMAP1(vcvt_n_u32_v, aarch64_neon_vcvtfp2fxu, 0), 6023 NEONMAP1(vcvt_n_u64_v, aarch64_neon_vcvtfp2fxu, 0), 6024 NEONMAP0(vcvtq_f16_v), 6025 NEONMAP0(vcvtq_f32_v), 6026 NEONMAP1(vcvtq_high_bf16_v, aarch64_neon_bfcvtn2, 0), 6027 NEONMAP2(vcvtq_n_f16_v, aarch64_neon_vcvtfxu2fp, aarch64_neon_vcvtfxs2fp, 0), 6028 NEONMAP2(vcvtq_n_f32_v, aarch64_neon_vcvtfxu2fp, aarch64_neon_vcvtfxs2fp, 0), 6029 NEONMAP2(vcvtq_n_f64_v, aarch64_neon_vcvtfxu2fp, aarch64_neon_vcvtfxs2fp, 0), 6030 NEONMAP1(vcvtq_n_s16_v, aarch64_neon_vcvtfp2fxs, 0), 6031 NEONMAP1(vcvtq_n_s32_v, aarch64_neon_vcvtfp2fxs, 0), 6032 NEONMAP1(vcvtq_n_s64_v, aarch64_neon_vcvtfp2fxs, 0), 6033 NEONMAP1(vcvtq_n_u16_v, aarch64_neon_vcvtfp2fxu, 0), 6034 NEONMAP1(vcvtq_n_u32_v, aarch64_neon_vcvtfp2fxu, 0), 6035 NEONMAP1(vcvtq_n_u64_v, aarch64_neon_vcvtfp2fxu, 0), 6036 NEONMAP1(vcvtx_f32_v, aarch64_neon_fcvtxn, AddRetType | Add1ArgType), 6037 NEONMAP2(vdot_v, aarch64_neon_udot, aarch64_neon_sdot, 0), 6038 NEONMAP2(vdotq_v, aarch64_neon_udot, aarch64_neon_sdot, 0), 6039 NEONMAP2(veor3q_v, aarch64_crypto_eor3u, aarch64_crypto_eor3s, Add1ArgType | UnsignedAlts), 6040 NEONMAP0(vext_v), 6041 NEONMAP0(vextq_v), 6042 NEONMAP0(vfma_v), 6043 NEONMAP0(vfmaq_v), 6044 NEONMAP1(vfmlal_high_v, aarch64_neon_fmlal2, 0), 6045 NEONMAP1(vfmlal_low_v, aarch64_neon_fmlal, 0), 6046 NEONMAP1(vfmlalq_high_v, aarch64_neon_fmlal2, 0), 6047 NEONMAP1(vfmlalq_low_v, aarch64_neon_fmlal, 0), 6048 NEONMAP1(vfmlsl_high_v, aarch64_neon_fmlsl2, 0), 6049 NEONMAP1(vfmlsl_low_v, aarch64_neon_fmlsl, 0), 6050 NEONMAP1(vfmlslq_high_v, aarch64_neon_fmlsl2, 0), 6051 NEONMAP1(vfmlslq_low_v, aarch64_neon_fmlsl, 0), 6052 NEONMAP2(vhadd_v, aarch64_neon_uhadd, aarch64_neon_shadd, Add1ArgType | UnsignedAlts), 6053 NEONMAP2(vhaddq_v, aarch64_neon_uhadd, aarch64_neon_shadd, Add1ArgType | UnsignedAlts), 6054 NEONMAP2(vhsub_v, aarch64_neon_uhsub, aarch64_neon_shsub, Add1ArgType | UnsignedAlts), 6055 NEONMAP2(vhsubq_v, aarch64_neon_uhsub, aarch64_neon_shsub, Add1ArgType | UnsignedAlts), 6056 NEONMAP1(vld1_x2_v, aarch64_neon_ld1x2, 0), 6057 NEONMAP1(vld1_x3_v, aarch64_neon_ld1x3, 0), 6058 NEONMAP1(vld1_x4_v, aarch64_neon_ld1x4, 0), 6059 NEONMAP1(vld1q_x2_v, aarch64_neon_ld1x2, 0), 6060 NEONMAP1(vld1q_x3_v, aarch64_neon_ld1x3, 0), 6061 NEONMAP1(vld1q_x4_v, aarch64_neon_ld1x4, 0), 6062 NEONMAP2(vmmlaq_v, aarch64_neon_ummla, aarch64_neon_smmla, 0), 6063 NEONMAP0(vmovl_v), 6064 NEONMAP0(vmovn_v), 6065 NEONMAP1(vmul_v, aarch64_neon_pmul, Add1ArgType), 6066 NEONMAP1(vmulq_v, aarch64_neon_pmul, Add1ArgType), 6067 NEONMAP1(vpadd_v, aarch64_neon_addp, Add1ArgType), 6068 NEONMAP2(vpaddl_v, aarch64_neon_uaddlp, aarch64_neon_saddlp, UnsignedAlts), 6069 NEONMAP2(vpaddlq_v, aarch64_neon_uaddlp, aarch64_neon_saddlp, UnsignedAlts), 6070 NEONMAP1(vpaddq_v, aarch64_neon_addp, Add1ArgType), 6071 NEONMAP1(vqabs_v, aarch64_neon_sqabs, Add1ArgType), 6072 NEONMAP1(vqabsq_v, aarch64_neon_sqabs, Add1ArgType), 6073 NEONMAP2(vqadd_v, aarch64_neon_uqadd, aarch64_neon_sqadd, Add1ArgType | UnsignedAlts), 6074 NEONMAP2(vqaddq_v, aarch64_neon_uqadd, aarch64_neon_sqadd, Add1ArgType | UnsignedAlts), 6075 NEONMAP2(vqdmlal_v, aarch64_neon_sqdmull, aarch64_neon_sqadd, 0), 6076 NEONMAP2(vqdmlsl_v, aarch64_neon_sqdmull, aarch64_neon_sqsub, 0), 6077 NEONMAP1(vqdmulh_lane_v, aarch64_neon_sqdmulh_lane, 0), 6078 NEONMAP1(vqdmulh_laneq_v, aarch64_neon_sqdmulh_laneq, 0), 6079 NEONMAP1(vqdmulh_v, aarch64_neon_sqdmulh, Add1ArgType), 6080 NEONMAP1(vqdmulhq_lane_v, aarch64_neon_sqdmulh_lane, 0), 6081 NEONMAP1(vqdmulhq_laneq_v, aarch64_neon_sqdmulh_laneq, 0), 6082 NEONMAP1(vqdmulhq_v, aarch64_neon_sqdmulh, Add1ArgType), 6083 NEONMAP1(vqdmull_v, aarch64_neon_sqdmull, Add1ArgType), 6084 NEONMAP2(vqmovn_v, aarch64_neon_uqxtn, aarch64_neon_sqxtn, Add1ArgType | UnsignedAlts), 6085 NEONMAP1(vqmovun_v, aarch64_neon_sqxtun, Add1ArgType), 6086 NEONMAP1(vqneg_v, aarch64_neon_sqneg, Add1ArgType), 6087 NEONMAP1(vqnegq_v, aarch64_neon_sqneg, Add1ArgType), 6088 NEONMAP1(vqrdmulh_lane_v, aarch64_neon_sqrdmulh_lane, 0), 6089 NEONMAP1(vqrdmulh_laneq_v, aarch64_neon_sqrdmulh_laneq, 0), 6090 NEONMAP1(vqrdmulh_v, aarch64_neon_sqrdmulh, Add1ArgType), 6091 NEONMAP1(vqrdmulhq_lane_v, aarch64_neon_sqrdmulh_lane, 0), 6092 NEONMAP1(vqrdmulhq_laneq_v, aarch64_neon_sqrdmulh_laneq, 0), 6093 NEONMAP1(vqrdmulhq_v, aarch64_neon_sqrdmulh, Add1ArgType), 6094 NEONMAP2(vqrshl_v, aarch64_neon_uqrshl, aarch64_neon_sqrshl, Add1ArgType | UnsignedAlts), 6095 NEONMAP2(vqrshlq_v, aarch64_neon_uqrshl, aarch64_neon_sqrshl, Add1ArgType | UnsignedAlts), 6096 NEONMAP2(vqshl_n_v, aarch64_neon_uqshl, aarch64_neon_sqshl, UnsignedAlts), 6097 NEONMAP2(vqshl_v, aarch64_neon_uqshl, aarch64_neon_sqshl, Add1ArgType | UnsignedAlts), 6098 NEONMAP2(vqshlq_n_v, aarch64_neon_uqshl, aarch64_neon_sqshl,UnsignedAlts), 6099 NEONMAP2(vqshlq_v, aarch64_neon_uqshl, aarch64_neon_sqshl, Add1ArgType | UnsignedAlts), 6100 NEONMAP1(vqshlu_n_v, aarch64_neon_sqshlu, 0), 6101 NEONMAP1(vqshluq_n_v, aarch64_neon_sqshlu, 0), 6102 NEONMAP2(vqsub_v, aarch64_neon_uqsub, aarch64_neon_sqsub, Add1ArgType | UnsignedAlts), 6103 NEONMAP2(vqsubq_v, aarch64_neon_uqsub, aarch64_neon_sqsub, Add1ArgType | UnsignedAlts), 6104 NEONMAP1(vraddhn_v, aarch64_neon_raddhn, Add1ArgType), 6105 NEONMAP1(vrax1q_v, aarch64_crypto_rax1, 0), 6106 NEONMAP2(vrecpe_v, aarch64_neon_frecpe, aarch64_neon_urecpe, 0), 6107 NEONMAP2(vrecpeq_v, aarch64_neon_frecpe, aarch64_neon_urecpe, 0), 6108 NEONMAP1(vrecps_v, aarch64_neon_frecps, Add1ArgType), 6109 NEONMAP1(vrecpsq_v, aarch64_neon_frecps, Add1ArgType), 6110 NEONMAP2(vrhadd_v, aarch64_neon_urhadd, aarch64_neon_srhadd, Add1ArgType | UnsignedAlts), 6111 NEONMAP2(vrhaddq_v, aarch64_neon_urhadd, aarch64_neon_srhadd, Add1ArgType | UnsignedAlts), 6112 NEONMAP1(vrnd32x_v, aarch64_neon_frint32x, Add1ArgType), 6113 NEONMAP1(vrnd32xq_v, aarch64_neon_frint32x, Add1ArgType), 6114 NEONMAP1(vrnd32z_v, aarch64_neon_frint32z, Add1ArgType), 6115 NEONMAP1(vrnd32zq_v, aarch64_neon_frint32z, Add1ArgType), 6116 NEONMAP1(vrnd64x_v, aarch64_neon_frint64x, Add1ArgType), 6117 NEONMAP1(vrnd64xq_v, aarch64_neon_frint64x, Add1ArgType), 6118 NEONMAP1(vrnd64z_v, aarch64_neon_frint64z, Add1ArgType), 6119 NEONMAP1(vrnd64zq_v, aarch64_neon_frint64z, Add1ArgType), 6120 NEONMAP0(vrndi_v), 6121 NEONMAP0(vrndiq_v), 6122 NEONMAP2(vrshl_v, aarch64_neon_urshl, aarch64_neon_srshl, Add1ArgType | UnsignedAlts), 6123 NEONMAP2(vrshlq_v, aarch64_neon_urshl, aarch64_neon_srshl, Add1ArgType | UnsignedAlts), 6124 NEONMAP2(vrshr_n_v, aarch64_neon_urshl, aarch64_neon_srshl, UnsignedAlts), 6125 NEONMAP2(vrshrq_n_v, aarch64_neon_urshl, aarch64_neon_srshl, UnsignedAlts), 6126 NEONMAP2(vrsqrte_v, aarch64_neon_frsqrte, aarch64_neon_ursqrte, 0), 6127 NEONMAP2(vrsqrteq_v, aarch64_neon_frsqrte, aarch64_neon_ursqrte, 0), 6128 NEONMAP1(vrsqrts_v, aarch64_neon_frsqrts, Add1ArgType), 6129 NEONMAP1(vrsqrtsq_v, aarch64_neon_frsqrts, Add1ArgType), 6130 NEONMAP1(vrsubhn_v, aarch64_neon_rsubhn, Add1ArgType), 6131 NEONMAP1(vsha1su0q_v, aarch64_crypto_sha1su0, 0), 6132 NEONMAP1(vsha1su1q_v, aarch64_crypto_sha1su1, 0), 6133 NEONMAP1(vsha256h2q_v, aarch64_crypto_sha256h2, 0), 6134 NEONMAP1(vsha256hq_v, aarch64_crypto_sha256h, 0), 6135 NEONMAP1(vsha256su0q_v, aarch64_crypto_sha256su0, 0), 6136 NEONMAP1(vsha256su1q_v, aarch64_crypto_sha256su1, 0), 6137 NEONMAP1(vsha512h2q_v, aarch64_crypto_sha512h2, 0), 6138 NEONMAP1(vsha512hq_v, aarch64_crypto_sha512h, 0), 6139 NEONMAP1(vsha512su0q_v, aarch64_crypto_sha512su0, 0), 6140 NEONMAP1(vsha512su1q_v, aarch64_crypto_sha512su1, 0), 6141 NEONMAP0(vshl_n_v), 6142 NEONMAP2(vshl_v, aarch64_neon_ushl, aarch64_neon_sshl, Add1ArgType | UnsignedAlts), 6143 NEONMAP0(vshll_n_v), 6144 NEONMAP0(vshlq_n_v), 6145 NEONMAP2(vshlq_v, aarch64_neon_ushl, aarch64_neon_sshl, Add1ArgType | UnsignedAlts), 6146 NEONMAP0(vshr_n_v), 6147 NEONMAP0(vshrn_n_v), 6148 NEONMAP0(vshrq_n_v), 6149 NEONMAP1(vsm3partw1q_v, aarch64_crypto_sm3partw1, 0), 6150 NEONMAP1(vsm3partw2q_v, aarch64_crypto_sm3partw2, 0), 6151 NEONMAP1(vsm3ss1q_v, aarch64_crypto_sm3ss1, 0), 6152 NEONMAP1(vsm3tt1aq_v, aarch64_crypto_sm3tt1a, 0), 6153 NEONMAP1(vsm3tt1bq_v, aarch64_crypto_sm3tt1b, 0), 6154 NEONMAP1(vsm3tt2aq_v, aarch64_crypto_sm3tt2a, 0), 6155 NEONMAP1(vsm3tt2bq_v, aarch64_crypto_sm3tt2b, 0), 6156 NEONMAP1(vsm4ekeyq_v, aarch64_crypto_sm4ekey, 0), 6157 NEONMAP1(vsm4eq_v, aarch64_crypto_sm4e, 0), 6158 NEONMAP1(vst1_x2_v, aarch64_neon_st1x2, 0), 6159 NEONMAP1(vst1_x3_v, aarch64_neon_st1x3, 0), 6160 NEONMAP1(vst1_x4_v, aarch64_neon_st1x4, 0), 6161 NEONMAP1(vst1q_x2_v, aarch64_neon_st1x2, 0), 6162 NEONMAP1(vst1q_x3_v, aarch64_neon_st1x3, 0), 6163 NEONMAP1(vst1q_x4_v, aarch64_neon_st1x4, 0), 6164 NEONMAP0(vsubhn_v), 6165 NEONMAP0(vtst_v), 6166 NEONMAP0(vtstq_v), 6167 NEONMAP1(vusdot_v, aarch64_neon_usdot, 0), 6168 NEONMAP1(vusdotq_v, aarch64_neon_usdot, 0), 6169 NEONMAP1(vusmmlaq_v, aarch64_neon_usmmla, 0), 6170 NEONMAP1(vxarq_v, aarch64_crypto_xar, 0), 6171 }; 6172 6173 static const ARMVectorIntrinsicInfo AArch64SISDIntrinsicMap[] = { 6174 NEONMAP1(vabdd_f64, aarch64_sisd_fabd, Add1ArgType), 6175 NEONMAP1(vabds_f32, aarch64_sisd_fabd, Add1ArgType), 6176 NEONMAP1(vabsd_s64, aarch64_neon_abs, Add1ArgType), 6177 NEONMAP1(vaddlv_s32, aarch64_neon_saddlv, AddRetType | Add1ArgType), 6178 NEONMAP1(vaddlv_u32, aarch64_neon_uaddlv, AddRetType | Add1ArgType), 6179 NEONMAP1(vaddlvq_s32, aarch64_neon_saddlv, AddRetType | Add1ArgType), 6180 NEONMAP1(vaddlvq_u32, aarch64_neon_uaddlv, AddRetType | Add1ArgType), 6181 NEONMAP1(vaddv_f32, aarch64_neon_faddv, AddRetType | Add1ArgType), 6182 NEONMAP1(vaddv_s32, aarch64_neon_saddv, AddRetType | Add1ArgType), 6183 NEONMAP1(vaddv_u32, aarch64_neon_uaddv, AddRetType | Add1ArgType), 6184 NEONMAP1(vaddvq_f32, aarch64_neon_faddv, AddRetType | Add1ArgType), 6185 NEONMAP1(vaddvq_f64, aarch64_neon_faddv, AddRetType | Add1ArgType), 6186 NEONMAP1(vaddvq_s32, aarch64_neon_saddv, AddRetType | Add1ArgType), 6187 NEONMAP1(vaddvq_s64, aarch64_neon_saddv, AddRetType | Add1ArgType), 6188 NEONMAP1(vaddvq_u32, aarch64_neon_uaddv, AddRetType | Add1ArgType), 6189 NEONMAP1(vaddvq_u64, aarch64_neon_uaddv, AddRetType | Add1ArgType), 6190 NEONMAP1(vcaged_f64, aarch64_neon_facge, AddRetType | Add1ArgType), 6191 NEONMAP1(vcages_f32, aarch64_neon_facge, AddRetType | Add1ArgType), 6192 NEONMAP1(vcagtd_f64, aarch64_neon_facgt, AddRetType | Add1ArgType), 6193 NEONMAP1(vcagts_f32, aarch64_neon_facgt, AddRetType | Add1ArgType), 6194 NEONMAP1(vcaled_f64, aarch64_neon_facge, AddRetType | Add1ArgType), 6195 NEONMAP1(vcales_f32, aarch64_neon_facge, AddRetType | Add1ArgType), 6196 NEONMAP1(vcaltd_f64, aarch64_neon_facgt, AddRetType | Add1ArgType), 6197 NEONMAP1(vcalts_f32, aarch64_neon_facgt, AddRetType | Add1ArgType), 6198 NEONMAP1(vcvtad_s64_f64, aarch64_neon_fcvtas, AddRetType | Add1ArgType), 6199 NEONMAP1(vcvtad_u64_f64, aarch64_neon_fcvtau, AddRetType | Add1ArgType), 6200 NEONMAP1(vcvtas_s32_f32, aarch64_neon_fcvtas, AddRetType | Add1ArgType), 6201 NEONMAP1(vcvtas_u32_f32, aarch64_neon_fcvtau, AddRetType | Add1ArgType), 6202 NEONMAP1(vcvtd_n_f64_s64, aarch64_neon_vcvtfxs2fp, AddRetType | Add1ArgType), 6203 NEONMAP1(vcvtd_n_f64_u64, aarch64_neon_vcvtfxu2fp, AddRetType | Add1ArgType), 6204 NEONMAP1(vcvtd_n_s64_f64, aarch64_neon_vcvtfp2fxs, AddRetType | Add1ArgType), 6205 NEONMAP1(vcvtd_n_u64_f64, aarch64_neon_vcvtfp2fxu, AddRetType | Add1ArgType), 6206 NEONMAP1(vcvtd_s64_f64, aarch64_neon_fcvtzs, AddRetType | Add1ArgType), 6207 NEONMAP1(vcvtd_u64_f64, aarch64_neon_fcvtzu, AddRetType | Add1ArgType), 6208 NEONMAP1(vcvth_bf16_f32, aarch64_neon_bfcvt, 0), 6209 NEONMAP1(vcvtmd_s64_f64, aarch64_neon_fcvtms, AddRetType | Add1ArgType), 6210 NEONMAP1(vcvtmd_u64_f64, aarch64_neon_fcvtmu, AddRetType | Add1ArgType), 6211 NEONMAP1(vcvtms_s32_f32, aarch64_neon_fcvtms, AddRetType | Add1ArgType), 6212 NEONMAP1(vcvtms_u32_f32, aarch64_neon_fcvtmu, AddRetType | Add1ArgType), 6213 NEONMAP1(vcvtnd_s64_f64, aarch64_neon_fcvtns, AddRetType | Add1ArgType), 6214 NEONMAP1(vcvtnd_u64_f64, aarch64_neon_fcvtnu, AddRetType | Add1ArgType), 6215 NEONMAP1(vcvtns_s32_f32, aarch64_neon_fcvtns, AddRetType | Add1ArgType), 6216 NEONMAP1(vcvtns_u32_f32, aarch64_neon_fcvtnu, AddRetType | Add1ArgType), 6217 NEONMAP1(vcvtpd_s64_f64, aarch64_neon_fcvtps, AddRetType | Add1ArgType), 6218 NEONMAP1(vcvtpd_u64_f64, aarch64_neon_fcvtpu, AddRetType | Add1ArgType), 6219 NEONMAP1(vcvtps_s32_f32, aarch64_neon_fcvtps, AddRetType | Add1ArgType), 6220 NEONMAP1(vcvtps_u32_f32, aarch64_neon_fcvtpu, AddRetType | Add1ArgType), 6221 NEONMAP1(vcvts_n_f32_s32, aarch64_neon_vcvtfxs2fp, AddRetType | Add1ArgType), 6222 NEONMAP1(vcvts_n_f32_u32, aarch64_neon_vcvtfxu2fp, AddRetType | Add1ArgType), 6223 NEONMAP1(vcvts_n_s32_f32, aarch64_neon_vcvtfp2fxs, AddRetType | Add1ArgType), 6224 NEONMAP1(vcvts_n_u32_f32, aarch64_neon_vcvtfp2fxu, AddRetType | Add1ArgType), 6225 NEONMAP1(vcvts_s32_f32, aarch64_neon_fcvtzs, AddRetType | Add1ArgType), 6226 NEONMAP1(vcvts_u32_f32, aarch64_neon_fcvtzu, AddRetType | Add1ArgType), 6227 NEONMAP1(vcvtxd_f32_f64, aarch64_sisd_fcvtxn, 0), 6228 NEONMAP1(vmaxnmv_f32, aarch64_neon_fmaxnmv, AddRetType | Add1ArgType), 6229 NEONMAP1(vmaxnmvq_f32, aarch64_neon_fmaxnmv, AddRetType | Add1ArgType), 6230 NEONMAP1(vmaxnmvq_f64, aarch64_neon_fmaxnmv, AddRetType | Add1ArgType), 6231 NEONMAP1(vmaxv_f32, aarch64_neon_fmaxv, AddRetType | Add1ArgType), 6232 NEONMAP1(vmaxv_s32, aarch64_neon_smaxv, AddRetType | Add1ArgType), 6233 NEONMAP1(vmaxv_u32, aarch64_neon_umaxv, AddRetType | Add1ArgType), 6234 NEONMAP1(vmaxvq_f32, aarch64_neon_fmaxv, AddRetType | Add1ArgType), 6235 NEONMAP1(vmaxvq_f64, aarch64_neon_fmaxv, AddRetType | Add1ArgType), 6236 NEONMAP1(vmaxvq_s32, aarch64_neon_smaxv, AddRetType | Add1ArgType), 6237 NEONMAP1(vmaxvq_u32, aarch64_neon_umaxv, AddRetType | Add1ArgType), 6238 NEONMAP1(vminnmv_f32, aarch64_neon_fminnmv, AddRetType | Add1ArgType), 6239 NEONMAP1(vminnmvq_f32, aarch64_neon_fminnmv, AddRetType | Add1ArgType), 6240 NEONMAP1(vminnmvq_f64, aarch64_neon_fminnmv, AddRetType | Add1ArgType), 6241 NEONMAP1(vminv_f32, aarch64_neon_fminv, AddRetType | Add1ArgType), 6242 NEONMAP1(vminv_s32, aarch64_neon_sminv, AddRetType | Add1ArgType), 6243 NEONMAP1(vminv_u32, aarch64_neon_uminv, AddRetType | Add1ArgType), 6244 NEONMAP1(vminvq_f32, aarch64_neon_fminv, AddRetType | Add1ArgType), 6245 NEONMAP1(vminvq_f64, aarch64_neon_fminv, AddRetType | Add1ArgType), 6246 NEONMAP1(vminvq_s32, aarch64_neon_sminv, AddRetType | Add1ArgType), 6247 NEONMAP1(vminvq_u32, aarch64_neon_uminv, AddRetType | Add1ArgType), 6248 NEONMAP1(vmull_p64, aarch64_neon_pmull64, 0), 6249 NEONMAP1(vmulxd_f64, aarch64_neon_fmulx, Add1ArgType), 6250 NEONMAP1(vmulxs_f32, aarch64_neon_fmulx, Add1ArgType), 6251 NEONMAP1(vpaddd_s64, aarch64_neon_uaddv, AddRetType | Add1ArgType), 6252 NEONMAP1(vpaddd_u64, aarch64_neon_uaddv, AddRetType | Add1ArgType), 6253 NEONMAP1(vpmaxnmqd_f64, aarch64_neon_fmaxnmv, AddRetType | Add1ArgType), 6254 NEONMAP1(vpmaxnms_f32, aarch64_neon_fmaxnmv, AddRetType | Add1ArgType), 6255 NEONMAP1(vpmaxqd_f64, aarch64_neon_fmaxv, AddRetType | Add1ArgType), 6256 NEONMAP1(vpmaxs_f32, aarch64_neon_fmaxv, AddRetType | Add1ArgType), 6257 NEONMAP1(vpminnmqd_f64, aarch64_neon_fminnmv, AddRetType | Add1ArgType), 6258 NEONMAP1(vpminnms_f32, aarch64_neon_fminnmv, AddRetType | Add1ArgType), 6259 NEONMAP1(vpminqd_f64, aarch64_neon_fminv, AddRetType | Add1ArgType), 6260 NEONMAP1(vpmins_f32, aarch64_neon_fminv, AddRetType | Add1ArgType), 6261 NEONMAP1(vqabsb_s8, aarch64_neon_sqabs, Vectorize1ArgType | Use64BitVectors), 6262 NEONMAP1(vqabsd_s64, aarch64_neon_sqabs, Add1ArgType), 6263 NEONMAP1(vqabsh_s16, aarch64_neon_sqabs, Vectorize1ArgType | Use64BitVectors), 6264 NEONMAP1(vqabss_s32, aarch64_neon_sqabs, Add1ArgType), 6265 NEONMAP1(vqaddb_s8, aarch64_neon_sqadd, Vectorize1ArgType | Use64BitVectors), 6266 NEONMAP1(vqaddb_u8, aarch64_neon_uqadd, Vectorize1ArgType | Use64BitVectors), 6267 NEONMAP1(vqaddd_s64, aarch64_neon_sqadd, Add1ArgType), 6268 NEONMAP1(vqaddd_u64, aarch64_neon_uqadd, Add1ArgType), 6269 NEONMAP1(vqaddh_s16, aarch64_neon_sqadd, Vectorize1ArgType | Use64BitVectors), 6270 NEONMAP1(vqaddh_u16, aarch64_neon_uqadd, Vectorize1ArgType | Use64BitVectors), 6271 NEONMAP1(vqadds_s32, aarch64_neon_sqadd, Add1ArgType), 6272 NEONMAP1(vqadds_u32, aarch64_neon_uqadd, Add1ArgType), 6273 NEONMAP1(vqdmulhh_s16, aarch64_neon_sqdmulh, Vectorize1ArgType | Use64BitVectors), 6274 NEONMAP1(vqdmulhs_s32, aarch64_neon_sqdmulh, Add1ArgType), 6275 NEONMAP1(vqdmullh_s16, aarch64_neon_sqdmull, VectorRet | Use128BitVectors), 6276 NEONMAP1(vqdmulls_s32, aarch64_neon_sqdmulls_scalar, 0), 6277 NEONMAP1(vqmovnd_s64, aarch64_neon_scalar_sqxtn, AddRetType | Add1ArgType), 6278 NEONMAP1(vqmovnd_u64, aarch64_neon_scalar_uqxtn, AddRetType | Add1ArgType), 6279 NEONMAP1(vqmovnh_s16, aarch64_neon_sqxtn, VectorRet | Use64BitVectors), 6280 NEONMAP1(vqmovnh_u16, aarch64_neon_uqxtn, VectorRet | Use64BitVectors), 6281 NEONMAP1(vqmovns_s32, aarch64_neon_sqxtn, VectorRet | Use64BitVectors), 6282 NEONMAP1(vqmovns_u32, aarch64_neon_uqxtn, VectorRet | Use64BitVectors), 6283 NEONMAP1(vqmovund_s64, aarch64_neon_scalar_sqxtun, AddRetType | Add1ArgType), 6284 NEONMAP1(vqmovunh_s16, aarch64_neon_sqxtun, VectorRet | Use64BitVectors), 6285 NEONMAP1(vqmovuns_s32, aarch64_neon_sqxtun, VectorRet | Use64BitVectors), 6286 NEONMAP1(vqnegb_s8, aarch64_neon_sqneg, Vectorize1ArgType | Use64BitVectors), 6287 NEONMAP1(vqnegd_s64, aarch64_neon_sqneg, Add1ArgType), 6288 NEONMAP1(vqnegh_s16, aarch64_neon_sqneg, Vectorize1ArgType | Use64BitVectors), 6289 NEONMAP1(vqnegs_s32, aarch64_neon_sqneg, Add1ArgType), 6290 NEONMAP1(vqrdmulhh_s16, aarch64_neon_sqrdmulh, Vectorize1ArgType | Use64BitVectors), 6291 NEONMAP1(vqrdmulhs_s32, aarch64_neon_sqrdmulh, Add1ArgType), 6292 NEONMAP1(vqrshlb_s8, aarch64_neon_sqrshl, Vectorize1ArgType | Use64BitVectors), 6293 NEONMAP1(vqrshlb_u8, aarch64_neon_uqrshl, Vectorize1ArgType | Use64BitVectors), 6294 NEONMAP1(vqrshld_s64, aarch64_neon_sqrshl, Add1ArgType), 6295 NEONMAP1(vqrshld_u64, aarch64_neon_uqrshl, Add1ArgType), 6296 NEONMAP1(vqrshlh_s16, aarch64_neon_sqrshl, Vectorize1ArgType | Use64BitVectors), 6297 NEONMAP1(vqrshlh_u16, aarch64_neon_uqrshl, Vectorize1ArgType | Use64BitVectors), 6298 NEONMAP1(vqrshls_s32, aarch64_neon_sqrshl, Add1ArgType), 6299 NEONMAP1(vqrshls_u32, aarch64_neon_uqrshl, Add1ArgType), 6300 NEONMAP1(vqrshrnd_n_s64, aarch64_neon_sqrshrn, AddRetType), 6301 NEONMAP1(vqrshrnd_n_u64, aarch64_neon_uqrshrn, AddRetType), 6302 NEONMAP1(vqrshrnh_n_s16, aarch64_neon_sqrshrn, VectorRet | Use64BitVectors), 6303 NEONMAP1(vqrshrnh_n_u16, aarch64_neon_uqrshrn, VectorRet | Use64BitVectors), 6304 NEONMAP1(vqrshrns_n_s32, aarch64_neon_sqrshrn, VectorRet | Use64BitVectors), 6305 NEONMAP1(vqrshrns_n_u32, aarch64_neon_uqrshrn, VectorRet | Use64BitVectors), 6306 NEONMAP1(vqrshrund_n_s64, aarch64_neon_sqrshrun, AddRetType), 6307 NEONMAP1(vqrshrunh_n_s16, aarch64_neon_sqrshrun, VectorRet | Use64BitVectors), 6308 NEONMAP1(vqrshruns_n_s32, aarch64_neon_sqrshrun, VectorRet | Use64BitVectors), 6309 NEONMAP1(vqshlb_n_s8, aarch64_neon_sqshl, Vectorize1ArgType | Use64BitVectors), 6310 NEONMAP1(vqshlb_n_u8, aarch64_neon_uqshl, Vectorize1ArgType | Use64BitVectors), 6311 NEONMAP1(vqshlb_s8, aarch64_neon_sqshl, Vectorize1ArgType | Use64BitVectors), 6312 NEONMAP1(vqshlb_u8, aarch64_neon_uqshl, Vectorize1ArgType | Use64BitVectors), 6313 NEONMAP1(vqshld_s64, aarch64_neon_sqshl, Add1ArgType), 6314 NEONMAP1(vqshld_u64, aarch64_neon_uqshl, Add1ArgType), 6315 NEONMAP1(vqshlh_n_s16, aarch64_neon_sqshl, Vectorize1ArgType | Use64BitVectors), 6316 NEONMAP1(vqshlh_n_u16, aarch64_neon_uqshl, Vectorize1ArgType | Use64BitVectors), 6317 NEONMAP1(vqshlh_s16, aarch64_neon_sqshl, Vectorize1ArgType | Use64BitVectors), 6318 NEONMAP1(vqshlh_u16, aarch64_neon_uqshl, Vectorize1ArgType | Use64BitVectors), 6319 NEONMAP1(vqshls_n_s32, aarch64_neon_sqshl, Add1ArgType), 6320 NEONMAP1(vqshls_n_u32, aarch64_neon_uqshl, Add1ArgType), 6321 NEONMAP1(vqshls_s32, aarch64_neon_sqshl, Add1ArgType), 6322 NEONMAP1(vqshls_u32, aarch64_neon_uqshl, Add1ArgType), 6323 NEONMAP1(vqshlub_n_s8, aarch64_neon_sqshlu, Vectorize1ArgType | Use64BitVectors), 6324 NEONMAP1(vqshluh_n_s16, aarch64_neon_sqshlu, Vectorize1ArgType | Use64BitVectors), 6325 NEONMAP1(vqshlus_n_s32, aarch64_neon_sqshlu, Add1ArgType), 6326 NEONMAP1(vqshrnd_n_s64, aarch64_neon_sqshrn, AddRetType), 6327 NEONMAP1(vqshrnd_n_u64, aarch64_neon_uqshrn, AddRetType), 6328 NEONMAP1(vqshrnh_n_s16, aarch64_neon_sqshrn, VectorRet | Use64BitVectors), 6329 NEONMAP1(vqshrnh_n_u16, aarch64_neon_uqshrn, VectorRet | Use64BitVectors), 6330 NEONMAP1(vqshrns_n_s32, aarch64_neon_sqshrn, VectorRet | Use64BitVectors), 6331 NEONMAP1(vqshrns_n_u32, aarch64_neon_uqshrn, VectorRet | Use64BitVectors), 6332 NEONMAP1(vqshrund_n_s64, aarch64_neon_sqshrun, AddRetType), 6333 NEONMAP1(vqshrunh_n_s16, aarch64_neon_sqshrun, VectorRet | Use64BitVectors), 6334 NEONMAP1(vqshruns_n_s32, aarch64_neon_sqshrun, VectorRet | Use64BitVectors), 6335 NEONMAP1(vqsubb_s8, aarch64_neon_sqsub, Vectorize1ArgType | Use64BitVectors), 6336 NEONMAP1(vqsubb_u8, aarch64_neon_uqsub, Vectorize1ArgType | Use64BitVectors), 6337 NEONMAP1(vqsubd_s64, aarch64_neon_sqsub, Add1ArgType), 6338 NEONMAP1(vqsubd_u64, aarch64_neon_uqsub, Add1ArgType), 6339 NEONMAP1(vqsubh_s16, aarch64_neon_sqsub, Vectorize1ArgType | Use64BitVectors), 6340 NEONMAP1(vqsubh_u16, aarch64_neon_uqsub, Vectorize1ArgType | Use64BitVectors), 6341 NEONMAP1(vqsubs_s32, aarch64_neon_sqsub, Add1ArgType), 6342 NEONMAP1(vqsubs_u32, aarch64_neon_uqsub, Add1ArgType), 6343 NEONMAP1(vrecped_f64, aarch64_neon_frecpe, Add1ArgType), 6344 NEONMAP1(vrecpes_f32, aarch64_neon_frecpe, Add1ArgType), 6345 NEONMAP1(vrecpxd_f64, aarch64_neon_frecpx, Add1ArgType), 6346 NEONMAP1(vrecpxs_f32, aarch64_neon_frecpx, Add1ArgType), 6347 NEONMAP1(vrshld_s64, aarch64_neon_srshl, Add1ArgType), 6348 NEONMAP1(vrshld_u64, aarch64_neon_urshl, Add1ArgType), 6349 NEONMAP1(vrsqrted_f64, aarch64_neon_frsqrte, Add1ArgType), 6350 NEONMAP1(vrsqrtes_f32, aarch64_neon_frsqrte, Add1ArgType), 6351 NEONMAP1(vrsqrtsd_f64, aarch64_neon_frsqrts, Add1ArgType), 6352 NEONMAP1(vrsqrtss_f32, aarch64_neon_frsqrts, Add1ArgType), 6353 NEONMAP1(vsha1cq_u32, aarch64_crypto_sha1c, 0), 6354 NEONMAP1(vsha1h_u32, aarch64_crypto_sha1h, 0), 6355 NEONMAP1(vsha1mq_u32, aarch64_crypto_sha1m, 0), 6356 NEONMAP1(vsha1pq_u32, aarch64_crypto_sha1p, 0), 6357 NEONMAP1(vshld_s64, aarch64_neon_sshl, Add1ArgType), 6358 NEONMAP1(vshld_u64, aarch64_neon_ushl, Add1ArgType), 6359 NEONMAP1(vslid_n_s64, aarch64_neon_vsli, Vectorize1ArgType), 6360 NEONMAP1(vslid_n_u64, aarch64_neon_vsli, Vectorize1ArgType), 6361 NEONMAP1(vsqaddb_u8, aarch64_neon_usqadd, Vectorize1ArgType | Use64BitVectors), 6362 NEONMAP1(vsqaddd_u64, aarch64_neon_usqadd, Add1ArgType), 6363 NEONMAP1(vsqaddh_u16, aarch64_neon_usqadd, Vectorize1ArgType | Use64BitVectors), 6364 NEONMAP1(vsqadds_u32, aarch64_neon_usqadd, Add1ArgType), 6365 NEONMAP1(vsrid_n_s64, aarch64_neon_vsri, Vectorize1ArgType), 6366 NEONMAP1(vsrid_n_u64, aarch64_neon_vsri, Vectorize1ArgType), 6367 NEONMAP1(vuqaddb_s8, aarch64_neon_suqadd, Vectorize1ArgType | Use64BitVectors), 6368 NEONMAP1(vuqaddd_s64, aarch64_neon_suqadd, Add1ArgType), 6369 NEONMAP1(vuqaddh_s16, aarch64_neon_suqadd, Vectorize1ArgType | Use64BitVectors), 6370 NEONMAP1(vuqadds_s32, aarch64_neon_suqadd, Add1ArgType), 6371 // FP16 scalar intrinisics go here. 6372 NEONMAP1(vabdh_f16, aarch64_sisd_fabd, Add1ArgType), 6373 NEONMAP1(vcvtah_s32_f16, aarch64_neon_fcvtas, AddRetType | Add1ArgType), 6374 NEONMAP1(vcvtah_s64_f16, aarch64_neon_fcvtas, AddRetType | Add1ArgType), 6375 NEONMAP1(vcvtah_u32_f16, aarch64_neon_fcvtau, AddRetType | Add1ArgType), 6376 NEONMAP1(vcvtah_u64_f16, aarch64_neon_fcvtau, AddRetType | Add1ArgType), 6377 NEONMAP1(vcvth_n_f16_s32, aarch64_neon_vcvtfxs2fp, AddRetType | Add1ArgType), 6378 NEONMAP1(vcvth_n_f16_s64, aarch64_neon_vcvtfxs2fp, AddRetType | Add1ArgType), 6379 NEONMAP1(vcvth_n_f16_u32, aarch64_neon_vcvtfxu2fp, AddRetType | Add1ArgType), 6380 NEONMAP1(vcvth_n_f16_u64, aarch64_neon_vcvtfxu2fp, AddRetType | Add1ArgType), 6381 NEONMAP1(vcvth_n_s32_f16, aarch64_neon_vcvtfp2fxs, AddRetType | Add1ArgType), 6382 NEONMAP1(vcvth_n_s64_f16, aarch64_neon_vcvtfp2fxs, AddRetType | Add1ArgType), 6383 NEONMAP1(vcvth_n_u32_f16, aarch64_neon_vcvtfp2fxu, AddRetType | Add1ArgType), 6384 NEONMAP1(vcvth_n_u64_f16, aarch64_neon_vcvtfp2fxu, AddRetType | Add1ArgType), 6385 NEONMAP1(vcvth_s32_f16, aarch64_neon_fcvtzs, AddRetType | Add1ArgType), 6386 NEONMAP1(vcvth_s64_f16, aarch64_neon_fcvtzs, AddRetType | Add1ArgType), 6387 NEONMAP1(vcvth_u32_f16, aarch64_neon_fcvtzu, AddRetType | Add1ArgType), 6388 NEONMAP1(vcvth_u64_f16, aarch64_neon_fcvtzu, AddRetType | Add1ArgType), 6389 NEONMAP1(vcvtmh_s32_f16, aarch64_neon_fcvtms, AddRetType | Add1ArgType), 6390 NEONMAP1(vcvtmh_s64_f16, aarch64_neon_fcvtms, AddRetType | Add1ArgType), 6391 NEONMAP1(vcvtmh_u32_f16, aarch64_neon_fcvtmu, AddRetType | Add1ArgType), 6392 NEONMAP1(vcvtmh_u64_f16, aarch64_neon_fcvtmu, AddRetType | Add1ArgType), 6393 NEONMAP1(vcvtnh_s32_f16, aarch64_neon_fcvtns, AddRetType | Add1ArgType), 6394 NEONMAP1(vcvtnh_s64_f16, aarch64_neon_fcvtns, AddRetType | Add1ArgType), 6395 NEONMAP1(vcvtnh_u32_f16, aarch64_neon_fcvtnu, AddRetType | Add1ArgType), 6396 NEONMAP1(vcvtnh_u64_f16, aarch64_neon_fcvtnu, AddRetType | Add1ArgType), 6397 NEONMAP1(vcvtph_s32_f16, aarch64_neon_fcvtps, AddRetType | Add1ArgType), 6398 NEONMAP1(vcvtph_s64_f16, aarch64_neon_fcvtps, AddRetType | Add1ArgType), 6399 NEONMAP1(vcvtph_u32_f16, aarch64_neon_fcvtpu, AddRetType | Add1ArgType), 6400 NEONMAP1(vcvtph_u64_f16, aarch64_neon_fcvtpu, AddRetType | Add1ArgType), 6401 NEONMAP1(vmulxh_f16, aarch64_neon_fmulx, Add1ArgType), 6402 NEONMAP1(vrecpeh_f16, aarch64_neon_frecpe, Add1ArgType), 6403 NEONMAP1(vrecpxh_f16, aarch64_neon_frecpx, Add1ArgType), 6404 NEONMAP1(vrsqrteh_f16, aarch64_neon_frsqrte, Add1ArgType), 6405 NEONMAP1(vrsqrtsh_f16, aarch64_neon_frsqrts, Add1ArgType), 6406 }; 6407 6408 #undef NEONMAP0 6409 #undef NEONMAP1 6410 #undef NEONMAP2 6411 6412 #define SVEMAP1(NameBase, LLVMIntrinsic, TypeModifier) \ 6413 { \ 6414 #NameBase, SVE::BI__builtin_sve_##NameBase, Intrinsic::LLVMIntrinsic, 0, \ 6415 TypeModifier \ 6416 } 6417 6418 #define SVEMAP2(NameBase, TypeModifier) \ 6419 { #NameBase, SVE::BI__builtin_sve_##NameBase, 0, 0, TypeModifier } 6420 static const ARMVectorIntrinsicInfo AArch64SVEIntrinsicMap[] = { 6421 #define GET_SVE_LLVM_INTRINSIC_MAP 6422 #include "clang/Basic/arm_sve_builtin_cg.inc" 6423 #include "clang/Basic/BuiltinsAArch64NeonSVEBridge_cg.def" 6424 #undef GET_SVE_LLVM_INTRINSIC_MAP 6425 }; 6426 6427 #undef SVEMAP1 6428 #undef SVEMAP2 6429 6430 static bool NEONSIMDIntrinsicsProvenSorted = false; 6431 6432 static bool AArch64SIMDIntrinsicsProvenSorted = false; 6433 static bool AArch64SISDIntrinsicsProvenSorted = false; 6434 static bool AArch64SVEIntrinsicsProvenSorted = false; 6435 6436 static const ARMVectorIntrinsicInfo * 6437 findARMVectorIntrinsicInMap(ArrayRef<ARMVectorIntrinsicInfo> IntrinsicMap, 6438 unsigned BuiltinID, bool &MapProvenSorted) { 6439 6440 #ifndef NDEBUG 6441 if (!MapProvenSorted) { 6442 assert(llvm::is_sorted(IntrinsicMap)); 6443 MapProvenSorted = true; 6444 } 6445 #endif 6446 6447 const ARMVectorIntrinsicInfo *Builtin = 6448 llvm::lower_bound(IntrinsicMap, BuiltinID); 6449 6450 if (Builtin != IntrinsicMap.end() && Builtin->BuiltinID == BuiltinID) 6451 return Builtin; 6452 6453 return nullptr; 6454 } 6455 6456 Function *CodeGenFunction::LookupNeonLLVMIntrinsic(unsigned IntrinsicID, 6457 unsigned Modifier, 6458 llvm::Type *ArgType, 6459 const CallExpr *E) { 6460 int VectorSize = 0; 6461 if (Modifier & Use64BitVectors) 6462 VectorSize = 64; 6463 else if (Modifier & Use128BitVectors) 6464 VectorSize = 128; 6465 6466 // Return type. 6467 SmallVector<llvm::Type *, 3> Tys; 6468 if (Modifier & AddRetType) { 6469 llvm::Type *Ty = ConvertType(E->getCallReturnType(getContext())); 6470 if (Modifier & VectorizeRetType) 6471 Ty = llvm::FixedVectorType::get( 6472 Ty, VectorSize ? VectorSize / Ty->getPrimitiveSizeInBits() : 1); 6473 6474 Tys.push_back(Ty); 6475 } 6476 6477 // Arguments. 6478 if (Modifier & VectorizeArgTypes) { 6479 int Elts = VectorSize ? VectorSize / ArgType->getPrimitiveSizeInBits() : 1; 6480 ArgType = llvm::FixedVectorType::get(ArgType, Elts); 6481 } 6482 6483 if (Modifier & (Add1ArgType | Add2ArgTypes)) 6484 Tys.push_back(ArgType); 6485 6486 if (Modifier & Add2ArgTypes) 6487 Tys.push_back(ArgType); 6488 6489 if (Modifier & InventFloatType) 6490 Tys.push_back(FloatTy); 6491 6492 return CGM.getIntrinsic(IntrinsicID, Tys); 6493 } 6494 6495 static Value *EmitCommonNeonSISDBuiltinExpr( 6496 CodeGenFunction &CGF, const ARMVectorIntrinsicInfo &SISDInfo, 6497 SmallVectorImpl<Value *> &Ops, const CallExpr *E) { 6498 unsigned BuiltinID = SISDInfo.BuiltinID; 6499 unsigned int Int = SISDInfo.LLVMIntrinsic; 6500 unsigned Modifier = SISDInfo.TypeModifier; 6501 const char *s = SISDInfo.NameHint; 6502 6503 switch (BuiltinID) { 6504 case NEON::BI__builtin_neon_vcled_s64: 6505 case NEON::BI__builtin_neon_vcled_u64: 6506 case NEON::BI__builtin_neon_vcles_f32: 6507 case NEON::BI__builtin_neon_vcled_f64: 6508 case NEON::BI__builtin_neon_vcltd_s64: 6509 case NEON::BI__builtin_neon_vcltd_u64: 6510 case NEON::BI__builtin_neon_vclts_f32: 6511 case NEON::BI__builtin_neon_vcltd_f64: 6512 case NEON::BI__builtin_neon_vcales_f32: 6513 case NEON::BI__builtin_neon_vcaled_f64: 6514 case NEON::BI__builtin_neon_vcalts_f32: 6515 case NEON::BI__builtin_neon_vcaltd_f64: 6516 // Only one direction of comparisons actually exist, cmle is actually a cmge 6517 // with swapped operands. The table gives us the right intrinsic but we 6518 // still need to do the swap. 6519 std::swap(Ops[0], Ops[1]); 6520 break; 6521 } 6522 6523 assert(Int && "Generic code assumes a valid intrinsic"); 6524 6525 // Determine the type(s) of this overloaded AArch64 intrinsic. 6526 const Expr *Arg = E->getArg(0); 6527 llvm::Type *ArgTy = CGF.ConvertType(Arg->getType()); 6528 Function *F = CGF.LookupNeonLLVMIntrinsic(Int, Modifier, ArgTy, E); 6529 6530 int j = 0; 6531 ConstantInt *C0 = ConstantInt::get(CGF.SizeTy, 0); 6532 for (Function::const_arg_iterator ai = F->arg_begin(), ae = F->arg_end(); 6533 ai != ae; ++ai, ++j) { 6534 llvm::Type *ArgTy = ai->getType(); 6535 if (Ops[j]->getType()->getPrimitiveSizeInBits() == 6536 ArgTy->getPrimitiveSizeInBits()) 6537 continue; 6538 6539 assert(ArgTy->isVectorTy() && !Ops[j]->getType()->isVectorTy()); 6540 // The constant argument to an _n_ intrinsic always has Int32Ty, so truncate 6541 // it before inserting. 6542 Ops[j] = CGF.Builder.CreateTruncOrBitCast( 6543 Ops[j], cast<llvm::VectorType>(ArgTy)->getElementType()); 6544 Ops[j] = 6545 CGF.Builder.CreateInsertElement(UndefValue::get(ArgTy), Ops[j], C0); 6546 } 6547 6548 Value *Result = CGF.EmitNeonCall(F, Ops, s); 6549 llvm::Type *ResultType = CGF.ConvertType(E->getType()); 6550 if (ResultType->getPrimitiveSizeInBits().getFixedSize() < 6551 Result->getType()->getPrimitiveSizeInBits().getFixedSize()) 6552 return CGF.Builder.CreateExtractElement(Result, C0); 6553 6554 return CGF.Builder.CreateBitCast(Result, ResultType, s); 6555 } 6556 6557 Value *CodeGenFunction::EmitCommonNeonBuiltinExpr( 6558 unsigned BuiltinID, unsigned LLVMIntrinsic, unsigned AltLLVMIntrinsic, 6559 const char *NameHint, unsigned Modifier, const CallExpr *E, 6560 SmallVectorImpl<llvm::Value *> &Ops, Address PtrOp0, Address PtrOp1, 6561 llvm::Triple::ArchType Arch) { 6562 // Get the last argument, which specifies the vector type. 6563 const Expr *Arg = E->getArg(E->getNumArgs() - 1); 6564 Optional<llvm::APSInt> NeonTypeConst = 6565 Arg->getIntegerConstantExpr(getContext()); 6566 if (!NeonTypeConst) 6567 return nullptr; 6568 6569 // Determine the type of this overloaded NEON intrinsic. 6570 NeonTypeFlags Type(NeonTypeConst->getZExtValue()); 6571 bool Usgn = Type.isUnsigned(); 6572 bool Quad = Type.isQuad(); 6573 const bool HasLegalHalfType = getTarget().hasLegalHalfType(); 6574 const bool AllowBFloatArgsAndRet = 6575 getTargetHooks().getABIInfo().allowBFloatArgsAndRet(); 6576 6577 llvm::FixedVectorType *VTy = 6578 GetNeonType(this, Type, HasLegalHalfType, false, AllowBFloatArgsAndRet); 6579 llvm::Type *Ty = VTy; 6580 if (!Ty) 6581 return nullptr; 6582 6583 auto getAlignmentValue32 = [&](Address addr) -> Value* { 6584 return Builder.getInt32(addr.getAlignment().getQuantity()); 6585 }; 6586 6587 unsigned Int = LLVMIntrinsic; 6588 if ((Modifier & UnsignedAlts) && !Usgn) 6589 Int = AltLLVMIntrinsic; 6590 6591 switch (BuiltinID) { 6592 default: break; 6593 case NEON::BI__builtin_neon_splat_lane_v: 6594 case NEON::BI__builtin_neon_splat_laneq_v: 6595 case NEON::BI__builtin_neon_splatq_lane_v: 6596 case NEON::BI__builtin_neon_splatq_laneq_v: { 6597 auto NumElements = VTy->getElementCount(); 6598 if (BuiltinID == NEON::BI__builtin_neon_splatq_lane_v) 6599 NumElements = NumElements * 2; 6600 if (BuiltinID == NEON::BI__builtin_neon_splat_laneq_v) 6601 NumElements = NumElements.divideCoefficientBy(2); 6602 6603 Ops[0] = Builder.CreateBitCast(Ops[0], VTy); 6604 return EmitNeonSplat(Ops[0], cast<ConstantInt>(Ops[1]), NumElements); 6605 } 6606 case NEON::BI__builtin_neon_vpadd_v: 6607 case NEON::BI__builtin_neon_vpaddq_v: 6608 // We don't allow fp/int overloading of intrinsics. 6609 if (VTy->getElementType()->isFloatingPointTy() && 6610 Int == Intrinsic::aarch64_neon_addp) 6611 Int = Intrinsic::aarch64_neon_faddp; 6612 break; 6613 case NEON::BI__builtin_neon_vabs_v: 6614 case NEON::BI__builtin_neon_vabsq_v: 6615 if (VTy->getElementType()->isFloatingPointTy()) 6616 return EmitNeonCall(CGM.getIntrinsic(Intrinsic::fabs, Ty), Ops, "vabs"); 6617 return EmitNeonCall(CGM.getIntrinsic(LLVMIntrinsic, Ty), Ops, "vabs"); 6618 case NEON::BI__builtin_neon_vadd_v: 6619 case NEON::BI__builtin_neon_vaddq_v: { 6620 llvm::Type *VTy = llvm::FixedVectorType::get(Int8Ty, Quad ? 16 : 8); 6621 Ops[0] = Builder.CreateBitCast(Ops[0], VTy); 6622 Ops[1] = Builder.CreateBitCast(Ops[1], VTy); 6623 Ops[0] = Builder.CreateXor(Ops[0], Ops[1]); 6624 return Builder.CreateBitCast(Ops[0], Ty); 6625 } 6626 case NEON::BI__builtin_neon_vaddhn_v: { 6627 llvm::FixedVectorType *SrcTy = 6628 llvm::FixedVectorType::getExtendedElementVectorType(VTy); 6629 6630 // %sum = add <4 x i32> %lhs, %rhs 6631 Ops[0] = Builder.CreateBitCast(Ops[0], SrcTy); 6632 Ops[1] = Builder.CreateBitCast(Ops[1], SrcTy); 6633 Ops[0] = Builder.CreateAdd(Ops[0], Ops[1], "vaddhn"); 6634 6635 // %high = lshr <4 x i32> %sum, <i32 16, i32 16, i32 16, i32 16> 6636 Constant *ShiftAmt = 6637 ConstantInt::get(SrcTy, SrcTy->getScalarSizeInBits() / 2); 6638 Ops[0] = Builder.CreateLShr(Ops[0], ShiftAmt, "vaddhn"); 6639 6640 // %res = trunc <4 x i32> %high to <4 x i16> 6641 return Builder.CreateTrunc(Ops[0], VTy, "vaddhn"); 6642 } 6643 case NEON::BI__builtin_neon_vcale_v: 6644 case NEON::BI__builtin_neon_vcaleq_v: 6645 case NEON::BI__builtin_neon_vcalt_v: 6646 case NEON::BI__builtin_neon_vcaltq_v: 6647 std::swap(Ops[0], Ops[1]); 6648 LLVM_FALLTHROUGH; 6649 case NEON::BI__builtin_neon_vcage_v: 6650 case NEON::BI__builtin_neon_vcageq_v: 6651 case NEON::BI__builtin_neon_vcagt_v: 6652 case NEON::BI__builtin_neon_vcagtq_v: { 6653 llvm::Type *Ty; 6654 switch (VTy->getScalarSizeInBits()) { 6655 default: llvm_unreachable("unexpected type"); 6656 case 32: 6657 Ty = FloatTy; 6658 break; 6659 case 64: 6660 Ty = DoubleTy; 6661 break; 6662 case 16: 6663 Ty = HalfTy; 6664 break; 6665 } 6666 auto *VecFlt = llvm::FixedVectorType::get(Ty, VTy->getNumElements()); 6667 llvm::Type *Tys[] = { VTy, VecFlt }; 6668 Function *F = CGM.getIntrinsic(LLVMIntrinsic, Tys); 6669 return EmitNeonCall(F, Ops, NameHint); 6670 } 6671 case NEON::BI__builtin_neon_vceqz_v: 6672 case NEON::BI__builtin_neon_vceqzq_v: 6673 return EmitAArch64CompareBuiltinExpr(Ops[0], Ty, ICmpInst::FCMP_OEQ, 6674 ICmpInst::ICMP_EQ, "vceqz"); 6675 case NEON::BI__builtin_neon_vcgez_v: 6676 case NEON::BI__builtin_neon_vcgezq_v: 6677 return EmitAArch64CompareBuiltinExpr(Ops[0], Ty, ICmpInst::FCMP_OGE, 6678 ICmpInst::ICMP_SGE, "vcgez"); 6679 case NEON::BI__builtin_neon_vclez_v: 6680 case NEON::BI__builtin_neon_vclezq_v: 6681 return EmitAArch64CompareBuiltinExpr(Ops[0], Ty, ICmpInst::FCMP_OLE, 6682 ICmpInst::ICMP_SLE, "vclez"); 6683 case NEON::BI__builtin_neon_vcgtz_v: 6684 case NEON::BI__builtin_neon_vcgtzq_v: 6685 return EmitAArch64CompareBuiltinExpr(Ops[0], Ty, ICmpInst::FCMP_OGT, 6686 ICmpInst::ICMP_SGT, "vcgtz"); 6687 case NEON::BI__builtin_neon_vcltz_v: 6688 case NEON::BI__builtin_neon_vcltzq_v: 6689 return EmitAArch64CompareBuiltinExpr(Ops[0], Ty, ICmpInst::FCMP_OLT, 6690 ICmpInst::ICMP_SLT, "vcltz"); 6691 case NEON::BI__builtin_neon_vclz_v: 6692 case NEON::BI__builtin_neon_vclzq_v: 6693 // We generate target-independent intrinsic, which needs a second argument 6694 // for whether or not clz of zero is undefined; on ARM it isn't. 6695 Ops.push_back(Builder.getInt1(getTarget().isCLZForZeroUndef())); 6696 break; 6697 case NEON::BI__builtin_neon_vcvt_f32_v: 6698 case NEON::BI__builtin_neon_vcvtq_f32_v: 6699 Ops[0] = Builder.CreateBitCast(Ops[0], Ty); 6700 Ty = GetNeonType(this, NeonTypeFlags(NeonTypeFlags::Float32, false, Quad), 6701 HasLegalHalfType); 6702 return Usgn ? Builder.CreateUIToFP(Ops[0], Ty, "vcvt") 6703 : Builder.CreateSIToFP(Ops[0], Ty, "vcvt"); 6704 case NEON::BI__builtin_neon_vcvt_f16_v: 6705 case NEON::BI__builtin_neon_vcvtq_f16_v: 6706 Ops[0] = Builder.CreateBitCast(Ops[0], Ty); 6707 Ty = GetNeonType(this, NeonTypeFlags(NeonTypeFlags::Float16, false, Quad), 6708 HasLegalHalfType); 6709 return Usgn ? Builder.CreateUIToFP(Ops[0], Ty, "vcvt") 6710 : Builder.CreateSIToFP(Ops[0], Ty, "vcvt"); 6711 case NEON::BI__builtin_neon_vcvt_n_f16_v: 6712 case NEON::BI__builtin_neon_vcvt_n_f32_v: 6713 case NEON::BI__builtin_neon_vcvt_n_f64_v: 6714 case NEON::BI__builtin_neon_vcvtq_n_f16_v: 6715 case NEON::BI__builtin_neon_vcvtq_n_f32_v: 6716 case NEON::BI__builtin_neon_vcvtq_n_f64_v: { 6717 llvm::Type *Tys[2] = { GetFloatNeonType(this, Type), Ty }; 6718 Int = Usgn ? LLVMIntrinsic : AltLLVMIntrinsic; 6719 Function *F = CGM.getIntrinsic(Int, Tys); 6720 return EmitNeonCall(F, Ops, "vcvt_n"); 6721 } 6722 case NEON::BI__builtin_neon_vcvt_n_s16_v: 6723 case NEON::BI__builtin_neon_vcvt_n_s32_v: 6724 case NEON::BI__builtin_neon_vcvt_n_u16_v: 6725 case NEON::BI__builtin_neon_vcvt_n_u32_v: 6726 case NEON::BI__builtin_neon_vcvt_n_s64_v: 6727 case NEON::BI__builtin_neon_vcvt_n_u64_v: 6728 case NEON::BI__builtin_neon_vcvtq_n_s16_v: 6729 case NEON::BI__builtin_neon_vcvtq_n_s32_v: 6730 case NEON::BI__builtin_neon_vcvtq_n_u16_v: 6731 case NEON::BI__builtin_neon_vcvtq_n_u32_v: 6732 case NEON::BI__builtin_neon_vcvtq_n_s64_v: 6733 case NEON::BI__builtin_neon_vcvtq_n_u64_v: { 6734 llvm::Type *Tys[2] = { Ty, GetFloatNeonType(this, Type) }; 6735 Function *F = CGM.getIntrinsic(LLVMIntrinsic, Tys); 6736 return EmitNeonCall(F, Ops, "vcvt_n"); 6737 } 6738 case NEON::BI__builtin_neon_vcvt_s32_v: 6739 case NEON::BI__builtin_neon_vcvt_u32_v: 6740 case NEON::BI__builtin_neon_vcvt_s64_v: 6741 case NEON::BI__builtin_neon_vcvt_u64_v: 6742 case NEON::BI__builtin_neon_vcvt_s16_v: 6743 case NEON::BI__builtin_neon_vcvt_u16_v: 6744 case NEON::BI__builtin_neon_vcvtq_s32_v: 6745 case NEON::BI__builtin_neon_vcvtq_u32_v: 6746 case NEON::BI__builtin_neon_vcvtq_s64_v: 6747 case NEON::BI__builtin_neon_vcvtq_u64_v: 6748 case NEON::BI__builtin_neon_vcvtq_s16_v: 6749 case NEON::BI__builtin_neon_vcvtq_u16_v: { 6750 Ops[0] = Builder.CreateBitCast(Ops[0], GetFloatNeonType(this, Type)); 6751 return Usgn ? Builder.CreateFPToUI(Ops[0], Ty, "vcvt") 6752 : Builder.CreateFPToSI(Ops[0], Ty, "vcvt"); 6753 } 6754 case NEON::BI__builtin_neon_vcvta_s16_v: 6755 case NEON::BI__builtin_neon_vcvta_s32_v: 6756 case NEON::BI__builtin_neon_vcvta_s64_v: 6757 case NEON::BI__builtin_neon_vcvta_u16_v: 6758 case NEON::BI__builtin_neon_vcvta_u32_v: 6759 case NEON::BI__builtin_neon_vcvta_u64_v: 6760 case NEON::BI__builtin_neon_vcvtaq_s16_v: 6761 case NEON::BI__builtin_neon_vcvtaq_s32_v: 6762 case NEON::BI__builtin_neon_vcvtaq_s64_v: 6763 case NEON::BI__builtin_neon_vcvtaq_u16_v: 6764 case NEON::BI__builtin_neon_vcvtaq_u32_v: 6765 case NEON::BI__builtin_neon_vcvtaq_u64_v: 6766 case NEON::BI__builtin_neon_vcvtn_s16_v: 6767 case NEON::BI__builtin_neon_vcvtn_s32_v: 6768 case NEON::BI__builtin_neon_vcvtn_s64_v: 6769 case NEON::BI__builtin_neon_vcvtn_u16_v: 6770 case NEON::BI__builtin_neon_vcvtn_u32_v: 6771 case NEON::BI__builtin_neon_vcvtn_u64_v: 6772 case NEON::BI__builtin_neon_vcvtnq_s16_v: 6773 case NEON::BI__builtin_neon_vcvtnq_s32_v: 6774 case NEON::BI__builtin_neon_vcvtnq_s64_v: 6775 case NEON::BI__builtin_neon_vcvtnq_u16_v: 6776 case NEON::BI__builtin_neon_vcvtnq_u32_v: 6777 case NEON::BI__builtin_neon_vcvtnq_u64_v: 6778 case NEON::BI__builtin_neon_vcvtp_s16_v: 6779 case NEON::BI__builtin_neon_vcvtp_s32_v: 6780 case NEON::BI__builtin_neon_vcvtp_s64_v: 6781 case NEON::BI__builtin_neon_vcvtp_u16_v: 6782 case NEON::BI__builtin_neon_vcvtp_u32_v: 6783 case NEON::BI__builtin_neon_vcvtp_u64_v: 6784 case NEON::BI__builtin_neon_vcvtpq_s16_v: 6785 case NEON::BI__builtin_neon_vcvtpq_s32_v: 6786 case NEON::BI__builtin_neon_vcvtpq_s64_v: 6787 case NEON::BI__builtin_neon_vcvtpq_u16_v: 6788 case NEON::BI__builtin_neon_vcvtpq_u32_v: 6789 case NEON::BI__builtin_neon_vcvtpq_u64_v: 6790 case NEON::BI__builtin_neon_vcvtm_s16_v: 6791 case NEON::BI__builtin_neon_vcvtm_s32_v: 6792 case NEON::BI__builtin_neon_vcvtm_s64_v: 6793 case NEON::BI__builtin_neon_vcvtm_u16_v: 6794 case NEON::BI__builtin_neon_vcvtm_u32_v: 6795 case NEON::BI__builtin_neon_vcvtm_u64_v: 6796 case NEON::BI__builtin_neon_vcvtmq_s16_v: 6797 case NEON::BI__builtin_neon_vcvtmq_s32_v: 6798 case NEON::BI__builtin_neon_vcvtmq_s64_v: 6799 case NEON::BI__builtin_neon_vcvtmq_u16_v: 6800 case NEON::BI__builtin_neon_vcvtmq_u32_v: 6801 case NEON::BI__builtin_neon_vcvtmq_u64_v: { 6802 llvm::Type *Tys[2] = { Ty, GetFloatNeonType(this, Type) }; 6803 return EmitNeonCall(CGM.getIntrinsic(LLVMIntrinsic, Tys), Ops, NameHint); 6804 } 6805 case NEON::BI__builtin_neon_vcvtx_f32_v: { 6806 llvm::Type *Tys[2] = { VTy->getTruncatedElementVectorType(VTy), Ty}; 6807 return EmitNeonCall(CGM.getIntrinsic(LLVMIntrinsic, Tys), Ops, NameHint); 6808 6809 } 6810 case NEON::BI__builtin_neon_vext_v: 6811 case NEON::BI__builtin_neon_vextq_v: { 6812 int CV = cast<ConstantInt>(Ops[2])->getSExtValue(); 6813 SmallVector<int, 16> Indices; 6814 for (unsigned i = 0, e = VTy->getNumElements(); i != e; ++i) 6815 Indices.push_back(i+CV); 6816 6817 Ops[0] = Builder.CreateBitCast(Ops[0], Ty); 6818 Ops[1] = Builder.CreateBitCast(Ops[1], Ty); 6819 return Builder.CreateShuffleVector(Ops[0], Ops[1], Indices, "vext"); 6820 } 6821 case NEON::BI__builtin_neon_vfma_v: 6822 case NEON::BI__builtin_neon_vfmaq_v: { 6823 Ops[0] = Builder.CreateBitCast(Ops[0], Ty); 6824 Ops[1] = Builder.CreateBitCast(Ops[1], Ty); 6825 Ops[2] = Builder.CreateBitCast(Ops[2], Ty); 6826 6827 // NEON intrinsic puts accumulator first, unlike the LLVM fma. 6828 return emitCallMaybeConstrainedFPBuiltin( 6829 *this, Intrinsic::fma, Intrinsic::experimental_constrained_fma, Ty, 6830 {Ops[1], Ops[2], Ops[0]}); 6831 } 6832 case NEON::BI__builtin_neon_vld1_v: 6833 case NEON::BI__builtin_neon_vld1q_v: { 6834 llvm::Type *Tys[] = {Ty, Int8PtrTy}; 6835 Ops.push_back(getAlignmentValue32(PtrOp0)); 6836 return EmitNeonCall(CGM.getIntrinsic(LLVMIntrinsic, Tys), Ops, "vld1"); 6837 } 6838 case NEON::BI__builtin_neon_vld1_x2_v: 6839 case NEON::BI__builtin_neon_vld1q_x2_v: 6840 case NEON::BI__builtin_neon_vld1_x3_v: 6841 case NEON::BI__builtin_neon_vld1q_x3_v: 6842 case NEON::BI__builtin_neon_vld1_x4_v: 6843 case NEON::BI__builtin_neon_vld1q_x4_v: { 6844 llvm::Type *PTy = llvm::PointerType::getUnqual(VTy->getElementType()); 6845 Ops[1] = Builder.CreateBitCast(Ops[1], PTy); 6846 llvm::Type *Tys[2] = { VTy, PTy }; 6847 Function *F = CGM.getIntrinsic(LLVMIntrinsic, Tys); 6848 Ops[1] = Builder.CreateCall(F, Ops[1], "vld1xN"); 6849 Ty = llvm::PointerType::getUnqual(Ops[1]->getType()); 6850 Ops[0] = Builder.CreateBitCast(Ops[0], Ty); 6851 return Builder.CreateDefaultAlignedStore(Ops[1], Ops[0]); 6852 } 6853 case NEON::BI__builtin_neon_vld2_v: 6854 case NEON::BI__builtin_neon_vld2q_v: 6855 case NEON::BI__builtin_neon_vld3_v: 6856 case NEON::BI__builtin_neon_vld3q_v: 6857 case NEON::BI__builtin_neon_vld4_v: 6858 case NEON::BI__builtin_neon_vld4q_v: 6859 case NEON::BI__builtin_neon_vld2_dup_v: 6860 case NEON::BI__builtin_neon_vld2q_dup_v: 6861 case NEON::BI__builtin_neon_vld3_dup_v: 6862 case NEON::BI__builtin_neon_vld3q_dup_v: 6863 case NEON::BI__builtin_neon_vld4_dup_v: 6864 case NEON::BI__builtin_neon_vld4q_dup_v: { 6865 llvm::Type *Tys[] = {Ty, Int8PtrTy}; 6866 Function *F = CGM.getIntrinsic(LLVMIntrinsic, Tys); 6867 Value *Align = getAlignmentValue32(PtrOp1); 6868 Ops[1] = Builder.CreateCall(F, {Ops[1], Align}, NameHint); 6869 Ty = llvm::PointerType::getUnqual(Ops[1]->getType()); 6870 Ops[0] = Builder.CreateBitCast(Ops[0], Ty); 6871 return Builder.CreateDefaultAlignedStore(Ops[1], Ops[0]); 6872 } 6873 case NEON::BI__builtin_neon_vld1_dup_v: 6874 case NEON::BI__builtin_neon_vld1q_dup_v: { 6875 Value *V = UndefValue::get(Ty); 6876 Ty = llvm::PointerType::getUnqual(VTy->getElementType()); 6877 PtrOp0 = Builder.CreateBitCast(PtrOp0, Ty); 6878 LoadInst *Ld = Builder.CreateLoad(PtrOp0); 6879 llvm::Constant *CI = ConstantInt::get(SizeTy, 0); 6880 Ops[0] = Builder.CreateInsertElement(V, Ld, CI); 6881 return EmitNeonSplat(Ops[0], CI); 6882 } 6883 case NEON::BI__builtin_neon_vld2_lane_v: 6884 case NEON::BI__builtin_neon_vld2q_lane_v: 6885 case NEON::BI__builtin_neon_vld3_lane_v: 6886 case NEON::BI__builtin_neon_vld3q_lane_v: 6887 case NEON::BI__builtin_neon_vld4_lane_v: 6888 case NEON::BI__builtin_neon_vld4q_lane_v: { 6889 llvm::Type *Tys[] = {Ty, Int8PtrTy}; 6890 Function *F = CGM.getIntrinsic(LLVMIntrinsic, Tys); 6891 for (unsigned I = 2; I < Ops.size() - 1; ++I) 6892 Ops[I] = Builder.CreateBitCast(Ops[I], Ty); 6893 Ops.push_back(getAlignmentValue32(PtrOp1)); 6894 Ops[1] = Builder.CreateCall(F, makeArrayRef(Ops).slice(1), NameHint); 6895 Ty = llvm::PointerType::getUnqual(Ops[1]->getType()); 6896 Ops[0] = Builder.CreateBitCast(Ops[0], Ty); 6897 return Builder.CreateDefaultAlignedStore(Ops[1], Ops[0]); 6898 } 6899 case NEON::BI__builtin_neon_vmovl_v: { 6900 llvm::FixedVectorType *DTy = 6901 llvm::FixedVectorType::getTruncatedElementVectorType(VTy); 6902 Ops[0] = Builder.CreateBitCast(Ops[0], DTy); 6903 if (Usgn) 6904 return Builder.CreateZExt(Ops[0], Ty, "vmovl"); 6905 return Builder.CreateSExt(Ops[0], Ty, "vmovl"); 6906 } 6907 case NEON::BI__builtin_neon_vmovn_v: { 6908 llvm::FixedVectorType *QTy = 6909 llvm::FixedVectorType::getExtendedElementVectorType(VTy); 6910 Ops[0] = Builder.CreateBitCast(Ops[0], QTy); 6911 return Builder.CreateTrunc(Ops[0], Ty, "vmovn"); 6912 } 6913 case NEON::BI__builtin_neon_vmull_v: 6914 // FIXME: the integer vmull operations could be emitted in terms of pure 6915 // LLVM IR (2 exts followed by a mul). Unfortunately LLVM has a habit of 6916 // hoisting the exts outside loops. Until global ISel comes along that can 6917 // see through such movement this leads to bad CodeGen. So we need an 6918 // intrinsic for now. 6919 Int = Usgn ? Intrinsic::arm_neon_vmullu : Intrinsic::arm_neon_vmulls; 6920 Int = Type.isPoly() ? (unsigned)Intrinsic::arm_neon_vmullp : Int; 6921 return EmitNeonCall(CGM.getIntrinsic(Int, Ty), Ops, "vmull"); 6922 case NEON::BI__builtin_neon_vpadal_v: 6923 case NEON::BI__builtin_neon_vpadalq_v: { 6924 // The source operand type has twice as many elements of half the size. 6925 unsigned EltBits = VTy->getElementType()->getPrimitiveSizeInBits(); 6926 llvm::Type *EltTy = 6927 llvm::IntegerType::get(getLLVMContext(), EltBits / 2); 6928 auto *NarrowTy = 6929 llvm::FixedVectorType::get(EltTy, VTy->getNumElements() * 2); 6930 llvm::Type *Tys[2] = { Ty, NarrowTy }; 6931 return EmitNeonCall(CGM.getIntrinsic(Int, Tys), Ops, NameHint); 6932 } 6933 case NEON::BI__builtin_neon_vpaddl_v: 6934 case NEON::BI__builtin_neon_vpaddlq_v: { 6935 // The source operand type has twice as many elements of half the size. 6936 unsigned EltBits = VTy->getElementType()->getPrimitiveSizeInBits(); 6937 llvm::Type *EltTy = llvm::IntegerType::get(getLLVMContext(), EltBits / 2); 6938 auto *NarrowTy = 6939 llvm::FixedVectorType::get(EltTy, VTy->getNumElements() * 2); 6940 llvm::Type *Tys[2] = { Ty, NarrowTy }; 6941 return EmitNeonCall(CGM.getIntrinsic(Int, Tys), Ops, "vpaddl"); 6942 } 6943 case NEON::BI__builtin_neon_vqdmlal_v: 6944 case NEON::BI__builtin_neon_vqdmlsl_v: { 6945 SmallVector<Value *, 2> MulOps(Ops.begin() + 1, Ops.end()); 6946 Ops[1] = 6947 EmitNeonCall(CGM.getIntrinsic(LLVMIntrinsic, Ty), MulOps, "vqdmlal"); 6948 Ops.resize(2); 6949 return EmitNeonCall(CGM.getIntrinsic(AltLLVMIntrinsic, Ty), Ops, NameHint); 6950 } 6951 case NEON::BI__builtin_neon_vqdmulhq_lane_v: 6952 case NEON::BI__builtin_neon_vqdmulh_lane_v: 6953 case NEON::BI__builtin_neon_vqrdmulhq_lane_v: 6954 case NEON::BI__builtin_neon_vqrdmulh_lane_v: { 6955 auto *RTy = cast<llvm::FixedVectorType>(Ty); 6956 if (BuiltinID == NEON::BI__builtin_neon_vqdmulhq_lane_v || 6957 BuiltinID == NEON::BI__builtin_neon_vqrdmulhq_lane_v) 6958 RTy = llvm::FixedVectorType::get(RTy->getElementType(), 6959 RTy->getNumElements() * 2); 6960 llvm::Type *Tys[2] = { 6961 RTy, GetNeonType(this, NeonTypeFlags(Type.getEltType(), false, 6962 /*isQuad*/ false))}; 6963 return EmitNeonCall(CGM.getIntrinsic(Int, Tys), Ops, NameHint); 6964 } 6965 case NEON::BI__builtin_neon_vqdmulhq_laneq_v: 6966 case NEON::BI__builtin_neon_vqdmulh_laneq_v: 6967 case NEON::BI__builtin_neon_vqrdmulhq_laneq_v: 6968 case NEON::BI__builtin_neon_vqrdmulh_laneq_v: { 6969 llvm::Type *Tys[2] = { 6970 Ty, GetNeonType(this, NeonTypeFlags(Type.getEltType(), false, 6971 /*isQuad*/ true))}; 6972 return EmitNeonCall(CGM.getIntrinsic(Int, Tys), Ops, NameHint); 6973 } 6974 case NEON::BI__builtin_neon_vqshl_n_v: 6975 case NEON::BI__builtin_neon_vqshlq_n_v: 6976 return EmitNeonCall(CGM.getIntrinsic(Int, Ty), Ops, "vqshl_n", 6977 1, false); 6978 case NEON::BI__builtin_neon_vqshlu_n_v: 6979 case NEON::BI__builtin_neon_vqshluq_n_v: 6980 return EmitNeonCall(CGM.getIntrinsic(Int, Ty), Ops, "vqshlu_n", 6981 1, false); 6982 case NEON::BI__builtin_neon_vrecpe_v: 6983 case NEON::BI__builtin_neon_vrecpeq_v: 6984 case NEON::BI__builtin_neon_vrsqrte_v: 6985 case NEON::BI__builtin_neon_vrsqrteq_v: 6986 Int = Ty->isFPOrFPVectorTy() ? LLVMIntrinsic : AltLLVMIntrinsic; 6987 return EmitNeonCall(CGM.getIntrinsic(Int, Ty), Ops, NameHint); 6988 case NEON::BI__builtin_neon_vrndi_v: 6989 case NEON::BI__builtin_neon_vrndiq_v: 6990 Int = Builder.getIsFPConstrained() 6991 ? Intrinsic::experimental_constrained_nearbyint 6992 : Intrinsic::nearbyint; 6993 return EmitNeonCall(CGM.getIntrinsic(Int, Ty), Ops, NameHint); 6994 case NEON::BI__builtin_neon_vrshr_n_v: 6995 case NEON::BI__builtin_neon_vrshrq_n_v: 6996 return EmitNeonCall(CGM.getIntrinsic(Int, Ty), Ops, "vrshr_n", 6997 1, true); 6998 case NEON::BI__builtin_neon_vsha512hq_v: 6999 case NEON::BI__builtin_neon_vsha512h2q_v: 7000 case NEON::BI__builtin_neon_vsha512su0q_v: 7001 case NEON::BI__builtin_neon_vsha512su1q_v: { 7002 Function *F = CGM.getIntrinsic(Int); 7003 return EmitNeonCall(F, Ops, ""); 7004 } 7005 case NEON::BI__builtin_neon_vshl_n_v: 7006 case NEON::BI__builtin_neon_vshlq_n_v: 7007 Ops[1] = EmitNeonShiftVector(Ops[1], Ty, false); 7008 return Builder.CreateShl(Builder.CreateBitCast(Ops[0],Ty), Ops[1], 7009 "vshl_n"); 7010 case NEON::BI__builtin_neon_vshll_n_v: { 7011 llvm::FixedVectorType *SrcTy = 7012 llvm::FixedVectorType::getTruncatedElementVectorType(VTy); 7013 Ops[0] = Builder.CreateBitCast(Ops[0], SrcTy); 7014 if (Usgn) 7015 Ops[0] = Builder.CreateZExt(Ops[0], VTy); 7016 else 7017 Ops[0] = Builder.CreateSExt(Ops[0], VTy); 7018 Ops[1] = EmitNeonShiftVector(Ops[1], VTy, false); 7019 return Builder.CreateShl(Ops[0], Ops[1], "vshll_n"); 7020 } 7021 case NEON::BI__builtin_neon_vshrn_n_v: { 7022 llvm::FixedVectorType *SrcTy = 7023 llvm::FixedVectorType::getExtendedElementVectorType(VTy); 7024 Ops[0] = Builder.CreateBitCast(Ops[0], SrcTy); 7025 Ops[1] = EmitNeonShiftVector(Ops[1], SrcTy, false); 7026 if (Usgn) 7027 Ops[0] = Builder.CreateLShr(Ops[0], Ops[1]); 7028 else 7029 Ops[0] = Builder.CreateAShr(Ops[0], Ops[1]); 7030 return Builder.CreateTrunc(Ops[0], Ty, "vshrn_n"); 7031 } 7032 case NEON::BI__builtin_neon_vshr_n_v: 7033 case NEON::BI__builtin_neon_vshrq_n_v: 7034 return EmitNeonRShiftImm(Ops[0], Ops[1], Ty, Usgn, "vshr_n"); 7035 case NEON::BI__builtin_neon_vst1_v: 7036 case NEON::BI__builtin_neon_vst1q_v: 7037 case NEON::BI__builtin_neon_vst2_v: 7038 case NEON::BI__builtin_neon_vst2q_v: 7039 case NEON::BI__builtin_neon_vst3_v: 7040 case NEON::BI__builtin_neon_vst3q_v: 7041 case NEON::BI__builtin_neon_vst4_v: 7042 case NEON::BI__builtin_neon_vst4q_v: 7043 case NEON::BI__builtin_neon_vst2_lane_v: 7044 case NEON::BI__builtin_neon_vst2q_lane_v: 7045 case NEON::BI__builtin_neon_vst3_lane_v: 7046 case NEON::BI__builtin_neon_vst3q_lane_v: 7047 case NEON::BI__builtin_neon_vst4_lane_v: 7048 case NEON::BI__builtin_neon_vst4q_lane_v: { 7049 llvm::Type *Tys[] = {Int8PtrTy, Ty}; 7050 Ops.push_back(getAlignmentValue32(PtrOp0)); 7051 return EmitNeonCall(CGM.getIntrinsic(Int, Tys), Ops, ""); 7052 } 7053 case NEON::BI__builtin_neon_vsm3partw1q_v: 7054 case NEON::BI__builtin_neon_vsm3partw2q_v: 7055 case NEON::BI__builtin_neon_vsm3ss1q_v: 7056 case NEON::BI__builtin_neon_vsm4ekeyq_v: 7057 case NEON::BI__builtin_neon_vsm4eq_v: { 7058 Function *F = CGM.getIntrinsic(Int); 7059 return EmitNeonCall(F, Ops, ""); 7060 } 7061 case NEON::BI__builtin_neon_vsm3tt1aq_v: 7062 case NEON::BI__builtin_neon_vsm3tt1bq_v: 7063 case NEON::BI__builtin_neon_vsm3tt2aq_v: 7064 case NEON::BI__builtin_neon_vsm3tt2bq_v: { 7065 Function *F = CGM.getIntrinsic(Int); 7066 Ops[3] = Builder.CreateZExt(Ops[3], Int64Ty); 7067 return EmitNeonCall(F, Ops, ""); 7068 } 7069 case NEON::BI__builtin_neon_vst1_x2_v: 7070 case NEON::BI__builtin_neon_vst1q_x2_v: 7071 case NEON::BI__builtin_neon_vst1_x3_v: 7072 case NEON::BI__builtin_neon_vst1q_x3_v: 7073 case NEON::BI__builtin_neon_vst1_x4_v: 7074 case NEON::BI__builtin_neon_vst1q_x4_v: { 7075 llvm::Type *PTy = llvm::PointerType::getUnqual(VTy->getElementType()); 7076 // TODO: Currently in AArch32 mode the pointer operand comes first, whereas 7077 // in AArch64 it comes last. We may want to stick to one or another. 7078 if (Arch == llvm::Triple::aarch64 || Arch == llvm::Triple::aarch64_be || 7079 Arch == llvm::Triple::aarch64_32) { 7080 llvm::Type *Tys[2] = { VTy, PTy }; 7081 std::rotate(Ops.begin(), Ops.begin() + 1, Ops.end()); 7082 return EmitNeonCall(CGM.getIntrinsic(LLVMIntrinsic, Tys), Ops, ""); 7083 } 7084 llvm::Type *Tys[2] = { PTy, VTy }; 7085 return EmitNeonCall(CGM.getIntrinsic(LLVMIntrinsic, Tys), Ops, ""); 7086 } 7087 case NEON::BI__builtin_neon_vsubhn_v: { 7088 llvm::FixedVectorType *SrcTy = 7089 llvm::FixedVectorType::getExtendedElementVectorType(VTy); 7090 7091 // %sum = add <4 x i32> %lhs, %rhs 7092 Ops[0] = Builder.CreateBitCast(Ops[0], SrcTy); 7093 Ops[1] = Builder.CreateBitCast(Ops[1], SrcTy); 7094 Ops[0] = Builder.CreateSub(Ops[0], Ops[1], "vsubhn"); 7095 7096 // %high = lshr <4 x i32> %sum, <i32 16, i32 16, i32 16, i32 16> 7097 Constant *ShiftAmt = 7098 ConstantInt::get(SrcTy, SrcTy->getScalarSizeInBits() / 2); 7099 Ops[0] = Builder.CreateLShr(Ops[0], ShiftAmt, "vsubhn"); 7100 7101 // %res = trunc <4 x i32> %high to <4 x i16> 7102 return Builder.CreateTrunc(Ops[0], VTy, "vsubhn"); 7103 } 7104 case NEON::BI__builtin_neon_vtrn_v: 7105 case NEON::BI__builtin_neon_vtrnq_v: { 7106 Ops[0] = Builder.CreateBitCast(Ops[0], llvm::PointerType::getUnqual(Ty)); 7107 Ops[1] = Builder.CreateBitCast(Ops[1], Ty); 7108 Ops[2] = Builder.CreateBitCast(Ops[2], Ty); 7109 Value *SV = nullptr; 7110 7111 for (unsigned vi = 0; vi != 2; ++vi) { 7112 SmallVector<int, 16> Indices; 7113 for (unsigned i = 0, e = VTy->getNumElements(); i != e; i += 2) { 7114 Indices.push_back(i+vi); 7115 Indices.push_back(i+e+vi); 7116 } 7117 Value *Addr = Builder.CreateConstInBoundsGEP1_32(Ty, Ops[0], vi); 7118 SV = Builder.CreateShuffleVector(Ops[1], Ops[2], Indices, "vtrn"); 7119 SV = Builder.CreateDefaultAlignedStore(SV, Addr); 7120 } 7121 return SV; 7122 } 7123 case NEON::BI__builtin_neon_vtst_v: 7124 case NEON::BI__builtin_neon_vtstq_v: { 7125 Ops[0] = Builder.CreateBitCast(Ops[0], Ty); 7126 Ops[1] = Builder.CreateBitCast(Ops[1], Ty); 7127 Ops[0] = Builder.CreateAnd(Ops[0], Ops[1]); 7128 Ops[0] = Builder.CreateICmp(ICmpInst::ICMP_NE, Ops[0], 7129 ConstantAggregateZero::get(Ty)); 7130 return Builder.CreateSExt(Ops[0], Ty, "vtst"); 7131 } 7132 case NEON::BI__builtin_neon_vuzp_v: 7133 case NEON::BI__builtin_neon_vuzpq_v: { 7134 Ops[0] = Builder.CreateBitCast(Ops[0], llvm::PointerType::getUnqual(Ty)); 7135 Ops[1] = Builder.CreateBitCast(Ops[1], Ty); 7136 Ops[2] = Builder.CreateBitCast(Ops[2], Ty); 7137 Value *SV = nullptr; 7138 7139 for (unsigned vi = 0; vi != 2; ++vi) { 7140 SmallVector<int, 16> Indices; 7141 for (unsigned i = 0, e = VTy->getNumElements(); i != e; ++i) 7142 Indices.push_back(2*i+vi); 7143 7144 Value *Addr = Builder.CreateConstInBoundsGEP1_32(Ty, Ops[0], vi); 7145 SV = Builder.CreateShuffleVector(Ops[1], Ops[2], Indices, "vuzp"); 7146 SV = Builder.CreateDefaultAlignedStore(SV, Addr); 7147 } 7148 return SV; 7149 } 7150 case NEON::BI__builtin_neon_vxarq_v: { 7151 Function *F = CGM.getIntrinsic(Int); 7152 Ops[2] = Builder.CreateZExt(Ops[2], Int64Ty); 7153 return EmitNeonCall(F, Ops, ""); 7154 } 7155 case NEON::BI__builtin_neon_vzip_v: 7156 case NEON::BI__builtin_neon_vzipq_v: { 7157 Ops[0] = Builder.CreateBitCast(Ops[0], llvm::PointerType::getUnqual(Ty)); 7158 Ops[1] = Builder.CreateBitCast(Ops[1], Ty); 7159 Ops[2] = Builder.CreateBitCast(Ops[2], Ty); 7160 Value *SV = nullptr; 7161 7162 for (unsigned vi = 0; vi != 2; ++vi) { 7163 SmallVector<int, 16> Indices; 7164 for (unsigned i = 0, e = VTy->getNumElements(); i != e; i += 2) { 7165 Indices.push_back((i + vi*e) >> 1); 7166 Indices.push_back(((i + vi*e) >> 1)+e); 7167 } 7168 Value *Addr = Builder.CreateConstInBoundsGEP1_32(Ty, Ops[0], vi); 7169 SV = Builder.CreateShuffleVector(Ops[1], Ops[2], Indices, "vzip"); 7170 SV = Builder.CreateDefaultAlignedStore(SV, Addr); 7171 } 7172 return SV; 7173 } 7174 case NEON::BI__builtin_neon_vdot_v: 7175 case NEON::BI__builtin_neon_vdotq_v: { 7176 auto *InputTy = 7177 llvm::FixedVectorType::get(Int8Ty, Ty->getPrimitiveSizeInBits() / 8); 7178 llvm::Type *Tys[2] = { Ty, InputTy }; 7179 Int = Usgn ? LLVMIntrinsic : AltLLVMIntrinsic; 7180 return EmitNeonCall(CGM.getIntrinsic(Int, Tys), Ops, "vdot"); 7181 } 7182 case NEON::BI__builtin_neon_vfmlal_low_v: 7183 case NEON::BI__builtin_neon_vfmlalq_low_v: { 7184 auto *InputTy = 7185 llvm::FixedVectorType::get(HalfTy, Ty->getPrimitiveSizeInBits() / 16); 7186 llvm::Type *Tys[2] = { Ty, InputTy }; 7187 return EmitNeonCall(CGM.getIntrinsic(Int, Tys), Ops, "vfmlal_low"); 7188 } 7189 case NEON::BI__builtin_neon_vfmlsl_low_v: 7190 case NEON::BI__builtin_neon_vfmlslq_low_v: { 7191 auto *InputTy = 7192 llvm::FixedVectorType::get(HalfTy, Ty->getPrimitiveSizeInBits() / 16); 7193 llvm::Type *Tys[2] = { Ty, InputTy }; 7194 return EmitNeonCall(CGM.getIntrinsic(Int, Tys), Ops, "vfmlsl_low"); 7195 } 7196 case NEON::BI__builtin_neon_vfmlal_high_v: 7197 case NEON::BI__builtin_neon_vfmlalq_high_v: { 7198 auto *InputTy = 7199 llvm::FixedVectorType::get(HalfTy, Ty->getPrimitiveSizeInBits() / 16); 7200 llvm::Type *Tys[2] = { Ty, InputTy }; 7201 return EmitNeonCall(CGM.getIntrinsic(Int, Tys), Ops, "vfmlal_high"); 7202 } 7203 case NEON::BI__builtin_neon_vfmlsl_high_v: 7204 case NEON::BI__builtin_neon_vfmlslq_high_v: { 7205 auto *InputTy = 7206 llvm::FixedVectorType::get(HalfTy, Ty->getPrimitiveSizeInBits() / 16); 7207 llvm::Type *Tys[2] = { Ty, InputTy }; 7208 return EmitNeonCall(CGM.getIntrinsic(Int, Tys), Ops, "vfmlsl_high"); 7209 } 7210 case NEON::BI__builtin_neon_vmmlaq_v: { 7211 auto *InputTy = 7212 llvm::FixedVectorType::get(Int8Ty, Ty->getPrimitiveSizeInBits() / 8); 7213 llvm::Type *Tys[2] = { Ty, InputTy }; 7214 Int = Usgn ? LLVMIntrinsic : AltLLVMIntrinsic; 7215 return EmitNeonCall(CGM.getIntrinsic(Int, Tys), Ops, "vmmla"); 7216 } 7217 case NEON::BI__builtin_neon_vusmmlaq_v: { 7218 auto *InputTy = 7219 llvm::FixedVectorType::get(Int8Ty, Ty->getPrimitiveSizeInBits() / 8); 7220 llvm::Type *Tys[2] = { Ty, InputTy }; 7221 return EmitNeonCall(CGM.getIntrinsic(Int, Tys), Ops, "vusmmla"); 7222 } 7223 case NEON::BI__builtin_neon_vusdot_v: 7224 case NEON::BI__builtin_neon_vusdotq_v: { 7225 auto *InputTy = 7226 llvm::FixedVectorType::get(Int8Ty, Ty->getPrimitiveSizeInBits() / 8); 7227 llvm::Type *Tys[2] = { Ty, InputTy }; 7228 return EmitNeonCall(CGM.getIntrinsic(Int, Tys), Ops, "vusdot"); 7229 } 7230 case NEON::BI__builtin_neon_vbfdot_v: 7231 case NEON::BI__builtin_neon_vbfdotq_v: { 7232 llvm::Type *InputTy = 7233 llvm::FixedVectorType::get(BFloatTy, Ty->getPrimitiveSizeInBits() / 16); 7234 llvm::Type *Tys[2] = { Ty, InputTy }; 7235 return EmitNeonCall(CGM.getIntrinsic(Int, Tys), Ops, "vbfdot"); 7236 } 7237 case NEON::BI__builtin_neon___a32_vcvt_bf16_v: { 7238 llvm::Type *Tys[1] = { Ty }; 7239 Function *F = CGM.getIntrinsic(Int, Tys); 7240 return EmitNeonCall(F, Ops, "vcvtfp2bf"); 7241 } 7242 7243 } 7244 7245 assert(Int && "Expected valid intrinsic number"); 7246 7247 // Determine the type(s) of this overloaded AArch64 intrinsic. 7248 Function *F = LookupNeonLLVMIntrinsic(Int, Modifier, Ty, E); 7249 7250 Value *Result = EmitNeonCall(F, Ops, NameHint); 7251 llvm::Type *ResultType = ConvertType(E->getType()); 7252 // AArch64 intrinsic one-element vector type cast to 7253 // scalar type expected by the builtin 7254 return Builder.CreateBitCast(Result, ResultType, NameHint); 7255 } 7256 7257 Value *CodeGenFunction::EmitAArch64CompareBuiltinExpr( 7258 Value *Op, llvm::Type *Ty, const CmpInst::Predicate Fp, 7259 const CmpInst::Predicate Ip, const Twine &Name) { 7260 llvm::Type *OTy = Op->getType(); 7261 7262 // FIXME: this is utterly horrific. We should not be looking at previous 7263 // codegen context to find out what needs doing. Unfortunately TableGen 7264 // currently gives us exactly the same calls for vceqz_f32 and vceqz_s32 7265 // (etc). 7266 if (BitCastInst *BI = dyn_cast<BitCastInst>(Op)) 7267 OTy = BI->getOperand(0)->getType(); 7268 7269 Op = Builder.CreateBitCast(Op, OTy); 7270 if (OTy->getScalarType()->isFloatingPointTy()) { 7271 Op = Builder.CreateFCmp(Fp, Op, Constant::getNullValue(OTy)); 7272 } else { 7273 Op = Builder.CreateICmp(Ip, Op, Constant::getNullValue(OTy)); 7274 } 7275 return Builder.CreateSExt(Op, Ty, Name); 7276 } 7277 7278 static Value *packTBLDVectorList(CodeGenFunction &CGF, ArrayRef<Value *> Ops, 7279 Value *ExtOp, Value *IndexOp, 7280 llvm::Type *ResTy, unsigned IntID, 7281 const char *Name) { 7282 SmallVector<Value *, 2> TblOps; 7283 if (ExtOp) 7284 TblOps.push_back(ExtOp); 7285 7286 // Build a vector containing sequential number like (0, 1, 2, ..., 15) 7287 SmallVector<int, 16> Indices; 7288 auto *TblTy = cast<llvm::FixedVectorType>(Ops[0]->getType()); 7289 for (unsigned i = 0, e = TblTy->getNumElements(); i != e; ++i) { 7290 Indices.push_back(2*i); 7291 Indices.push_back(2*i+1); 7292 } 7293 7294 int PairPos = 0, End = Ops.size() - 1; 7295 while (PairPos < End) { 7296 TblOps.push_back(CGF.Builder.CreateShuffleVector(Ops[PairPos], 7297 Ops[PairPos+1], Indices, 7298 Name)); 7299 PairPos += 2; 7300 } 7301 7302 // If there's an odd number of 64-bit lookup table, fill the high 64-bit 7303 // of the 128-bit lookup table with zero. 7304 if (PairPos == End) { 7305 Value *ZeroTbl = ConstantAggregateZero::get(TblTy); 7306 TblOps.push_back(CGF.Builder.CreateShuffleVector(Ops[PairPos], 7307 ZeroTbl, Indices, Name)); 7308 } 7309 7310 Function *TblF; 7311 TblOps.push_back(IndexOp); 7312 TblF = CGF.CGM.getIntrinsic(IntID, ResTy); 7313 7314 return CGF.EmitNeonCall(TblF, TblOps, Name); 7315 } 7316 7317 Value *CodeGenFunction::GetValueForARMHint(unsigned BuiltinID) { 7318 unsigned Value; 7319 switch (BuiltinID) { 7320 default: 7321 return nullptr; 7322 case ARM::BI__builtin_arm_nop: 7323 Value = 0; 7324 break; 7325 case ARM::BI__builtin_arm_yield: 7326 case ARM::BI__yield: 7327 Value = 1; 7328 break; 7329 case ARM::BI__builtin_arm_wfe: 7330 case ARM::BI__wfe: 7331 Value = 2; 7332 break; 7333 case ARM::BI__builtin_arm_wfi: 7334 case ARM::BI__wfi: 7335 Value = 3; 7336 break; 7337 case ARM::BI__builtin_arm_sev: 7338 case ARM::BI__sev: 7339 Value = 4; 7340 break; 7341 case ARM::BI__builtin_arm_sevl: 7342 case ARM::BI__sevl: 7343 Value = 5; 7344 break; 7345 } 7346 7347 return Builder.CreateCall(CGM.getIntrinsic(Intrinsic::arm_hint), 7348 llvm::ConstantInt::get(Int32Ty, Value)); 7349 } 7350 7351 enum SpecialRegisterAccessKind { 7352 NormalRead, 7353 VolatileRead, 7354 Write, 7355 }; 7356 7357 // Generates the IR for the read/write special register builtin, 7358 // ValueType is the type of the value that is to be written or read, 7359 // RegisterType is the type of the register being written to or read from. 7360 static Value *EmitSpecialRegisterBuiltin(CodeGenFunction &CGF, 7361 const CallExpr *E, 7362 llvm::Type *RegisterType, 7363 llvm::Type *ValueType, 7364 SpecialRegisterAccessKind AccessKind, 7365 StringRef SysReg = "") { 7366 // write and register intrinsics only support 32 and 64 bit operations. 7367 assert((RegisterType->isIntegerTy(32) || RegisterType->isIntegerTy(64)) 7368 && "Unsupported size for register."); 7369 7370 CodeGen::CGBuilderTy &Builder = CGF.Builder; 7371 CodeGen::CodeGenModule &CGM = CGF.CGM; 7372 LLVMContext &Context = CGM.getLLVMContext(); 7373 7374 if (SysReg.empty()) { 7375 const Expr *SysRegStrExpr = E->getArg(0)->IgnoreParenCasts(); 7376 SysReg = cast<clang::StringLiteral>(SysRegStrExpr)->getString(); 7377 } 7378 7379 llvm::Metadata *Ops[] = { llvm::MDString::get(Context, SysReg) }; 7380 llvm::MDNode *RegName = llvm::MDNode::get(Context, Ops); 7381 llvm::Value *Metadata = llvm::MetadataAsValue::get(Context, RegName); 7382 7383 llvm::Type *Types[] = { RegisterType }; 7384 7385 bool MixedTypes = RegisterType->isIntegerTy(64) && ValueType->isIntegerTy(32); 7386 assert(!(RegisterType->isIntegerTy(32) && ValueType->isIntegerTy(64)) 7387 && "Can't fit 64-bit value in 32-bit register"); 7388 7389 if (AccessKind != Write) { 7390 assert(AccessKind == NormalRead || AccessKind == VolatileRead); 7391 llvm::Function *F = CGM.getIntrinsic( 7392 AccessKind == VolatileRead ? llvm::Intrinsic::read_volatile_register 7393 : llvm::Intrinsic::read_register, 7394 Types); 7395 llvm::Value *Call = Builder.CreateCall(F, Metadata); 7396 7397 if (MixedTypes) 7398 // Read into 64 bit register and then truncate result to 32 bit. 7399 return Builder.CreateTrunc(Call, ValueType); 7400 7401 if (ValueType->isPointerTy()) 7402 // Have i32/i64 result (Call) but want to return a VoidPtrTy (i8*). 7403 return Builder.CreateIntToPtr(Call, ValueType); 7404 7405 return Call; 7406 } 7407 7408 llvm::Function *F = CGM.getIntrinsic(llvm::Intrinsic::write_register, Types); 7409 llvm::Value *ArgValue = CGF.EmitScalarExpr(E->getArg(1)); 7410 if (MixedTypes) { 7411 // Extend 32 bit write value to 64 bit to pass to write. 7412 ArgValue = Builder.CreateZExt(ArgValue, RegisterType); 7413 return Builder.CreateCall(F, { Metadata, ArgValue }); 7414 } 7415 7416 if (ValueType->isPointerTy()) { 7417 // Have VoidPtrTy ArgValue but want to return an i32/i64. 7418 ArgValue = Builder.CreatePtrToInt(ArgValue, RegisterType); 7419 return Builder.CreateCall(F, { Metadata, ArgValue }); 7420 } 7421 7422 return Builder.CreateCall(F, { Metadata, ArgValue }); 7423 } 7424 7425 /// Return true if BuiltinID is an overloaded Neon intrinsic with an extra 7426 /// argument that specifies the vector type. 7427 static bool HasExtraNeonArgument(unsigned BuiltinID) { 7428 switch (BuiltinID) { 7429 default: break; 7430 case NEON::BI__builtin_neon_vget_lane_i8: 7431 case NEON::BI__builtin_neon_vget_lane_i16: 7432 case NEON::BI__builtin_neon_vget_lane_bf16: 7433 case NEON::BI__builtin_neon_vget_lane_i32: 7434 case NEON::BI__builtin_neon_vget_lane_i64: 7435 case NEON::BI__builtin_neon_vget_lane_f32: 7436 case NEON::BI__builtin_neon_vgetq_lane_i8: 7437 case NEON::BI__builtin_neon_vgetq_lane_i16: 7438 case NEON::BI__builtin_neon_vgetq_lane_bf16: 7439 case NEON::BI__builtin_neon_vgetq_lane_i32: 7440 case NEON::BI__builtin_neon_vgetq_lane_i64: 7441 case NEON::BI__builtin_neon_vgetq_lane_f32: 7442 case NEON::BI__builtin_neon_vduph_lane_bf16: 7443 case NEON::BI__builtin_neon_vduph_laneq_bf16: 7444 case NEON::BI__builtin_neon_vset_lane_i8: 7445 case NEON::BI__builtin_neon_vset_lane_i16: 7446 case NEON::BI__builtin_neon_vset_lane_bf16: 7447 case NEON::BI__builtin_neon_vset_lane_i32: 7448 case NEON::BI__builtin_neon_vset_lane_i64: 7449 case NEON::BI__builtin_neon_vset_lane_f32: 7450 case NEON::BI__builtin_neon_vsetq_lane_i8: 7451 case NEON::BI__builtin_neon_vsetq_lane_i16: 7452 case NEON::BI__builtin_neon_vsetq_lane_bf16: 7453 case NEON::BI__builtin_neon_vsetq_lane_i32: 7454 case NEON::BI__builtin_neon_vsetq_lane_i64: 7455 case NEON::BI__builtin_neon_vsetq_lane_f32: 7456 case NEON::BI__builtin_neon_vsha1h_u32: 7457 case NEON::BI__builtin_neon_vsha1cq_u32: 7458 case NEON::BI__builtin_neon_vsha1pq_u32: 7459 case NEON::BI__builtin_neon_vsha1mq_u32: 7460 case NEON::BI__builtin_neon_vcvth_bf16_f32: 7461 case clang::ARM::BI_MoveToCoprocessor: 7462 case clang::ARM::BI_MoveToCoprocessor2: 7463 return false; 7464 } 7465 return true; 7466 } 7467 7468 Value *CodeGenFunction::EmitARMBuiltinExpr(unsigned BuiltinID, 7469 const CallExpr *E, 7470 ReturnValueSlot ReturnValue, 7471 llvm::Triple::ArchType Arch) { 7472 if (auto Hint = GetValueForARMHint(BuiltinID)) 7473 return Hint; 7474 7475 if (BuiltinID == ARM::BI__emit) { 7476 bool IsThumb = getTarget().getTriple().getArch() == llvm::Triple::thumb; 7477 llvm::FunctionType *FTy = 7478 llvm::FunctionType::get(VoidTy, /*Variadic=*/false); 7479 7480 Expr::EvalResult Result; 7481 if (!E->getArg(0)->EvaluateAsInt(Result, CGM.getContext())) 7482 llvm_unreachable("Sema will ensure that the parameter is constant"); 7483 7484 llvm::APSInt Value = Result.Val.getInt(); 7485 uint64_t ZExtValue = Value.zextOrTrunc(IsThumb ? 16 : 32).getZExtValue(); 7486 7487 llvm::InlineAsm *Emit = 7488 IsThumb ? InlineAsm::get(FTy, ".inst.n 0x" + utohexstr(ZExtValue), "", 7489 /*hasSideEffects=*/true) 7490 : InlineAsm::get(FTy, ".inst 0x" + utohexstr(ZExtValue), "", 7491 /*hasSideEffects=*/true); 7492 7493 return Builder.CreateCall(Emit); 7494 } 7495 7496 if (BuiltinID == ARM::BI__builtin_arm_dbg) { 7497 Value *Option = EmitScalarExpr(E->getArg(0)); 7498 return Builder.CreateCall(CGM.getIntrinsic(Intrinsic::arm_dbg), Option); 7499 } 7500 7501 if (BuiltinID == ARM::BI__builtin_arm_prefetch) { 7502 Value *Address = EmitScalarExpr(E->getArg(0)); 7503 Value *RW = EmitScalarExpr(E->getArg(1)); 7504 Value *IsData = EmitScalarExpr(E->getArg(2)); 7505 7506 // Locality is not supported on ARM target 7507 Value *Locality = llvm::ConstantInt::get(Int32Ty, 3); 7508 7509 Function *F = CGM.getIntrinsic(Intrinsic::prefetch, Address->getType()); 7510 return Builder.CreateCall(F, {Address, RW, Locality, IsData}); 7511 } 7512 7513 if (BuiltinID == ARM::BI__builtin_arm_rbit) { 7514 llvm::Value *Arg = EmitScalarExpr(E->getArg(0)); 7515 return Builder.CreateCall( 7516 CGM.getIntrinsic(Intrinsic::bitreverse, Arg->getType()), Arg, "rbit"); 7517 } 7518 7519 if (BuiltinID == ARM::BI__builtin_arm_cls) { 7520 llvm::Value *Arg = EmitScalarExpr(E->getArg(0)); 7521 return Builder.CreateCall(CGM.getIntrinsic(Intrinsic::arm_cls), Arg, "cls"); 7522 } 7523 if (BuiltinID == ARM::BI__builtin_arm_cls64) { 7524 llvm::Value *Arg = EmitScalarExpr(E->getArg(0)); 7525 return Builder.CreateCall(CGM.getIntrinsic(Intrinsic::arm_cls64), Arg, 7526 "cls"); 7527 } 7528 7529 if (BuiltinID == ARM::BI__clear_cache) { 7530 assert(E->getNumArgs() == 2 && "__clear_cache takes 2 arguments"); 7531 const FunctionDecl *FD = E->getDirectCallee(); 7532 Value *Ops[2]; 7533 for (unsigned i = 0; i < 2; i++) 7534 Ops[i] = EmitScalarExpr(E->getArg(i)); 7535 llvm::Type *Ty = CGM.getTypes().ConvertType(FD->getType()); 7536 llvm::FunctionType *FTy = cast<llvm::FunctionType>(Ty); 7537 StringRef Name = FD->getName(); 7538 return EmitNounwindRuntimeCall(CGM.CreateRuntimeFunction(FTy, Name), Ops); 7539 } 7540 7541 if (BuiltinID == ARM::BI__builtin_arm_mcrr || 7542 BuiltinID == ARM::BI__builtin_arm_mcrr2) { 7543 Function *F; 7544 7545 switch (BuiltinID) { 7546 default: llvm_unreachable("unexpected builtin"); 7547 case ARM::BI__builtin_arm_mcrr: 7548 F = CGM.getIntrinsic(Intrinsic::arm_mcrr); 7549 break; 7550 case ARM::BI__builtin_arm_mcrr2: 7551 F = CGM.getIntrinsic(Intrinsic::arm_mcrr2); 7552 break; 7553 } 7554 7555 // MCRR{2} instruction has 5 operands but 7556 // the intrinsic has 4 because Rt and Rt2 7557 // are represented as a single unsigned 64 7558 // bit integer in the intrinsic definition 7559 // but internally it's represented as 2 32 7560 // bit integers. 7561 7562 Value *Coproc = EmitScalarExpr(E->getArg(0)); 7563 Value *Opc1 = EmitScalarExpr(E->getArg(1)); 7564 Value *RtAndRt2 = EmitScalarExpr(E->getArg(2)); 7565 Value *CRm = EmitScalarExpr(E->getArg(3)); 7566 7567 Value *C1 = llvm::ConstantInt::get(Int64Ty, 32); 7568 Value *Rt = Builder.CreateTruncOrBitCast(RtAndRt2, Int32Ty); 7569 Value *Rt2 = Builder.CreateLShr(RtAndRt2, C1); 7570 Rt2 = Builder.CreateTruncOrBitCast(Rt2, Int32Ty); 7571 7572 return Builder.CreateCall(F, {Coproc, Opc1, Rt, Rt2, CRm}); 7573 } 7574 7575 if (BuiltinID == ARM::BI__builtin_arm_mrrc || 7576 BuiltinID == ARM::BI__builtin_arm_mrrc2) { 7577 Function *F; 7578 7579 switch (BuiltinID) { 7580 default: llvm_unreachable("unexpected builtin"); 7581 case ARM::BI__builtin_arm_mrrc: 7582 F = CGM.getIntrinsic(Intrinsic::arm_mrrc); 7583 break; 7584 case ARM::BI__builtin_arm_mrrc2: 7585 F = CGM.getIntrinsic(Intrinsic::arm_mrrc2); 7586 break; 7587 } 7588 7589 Value *Coproc = EmitScalarExpr(E->getArg(0)); 7590 Value *Opc1 = EmitScalarExpr(E->getArg(1)); 7591 Value *CRm = EmitScalarExpr(E->getArg(2)); 7592 Value *RtAndRt2 = Builder.CreateCall(F, {Coproc, Opc1, CRm}); 7593 7594 // Returns an unsigned 64 bit integer, represented 7595 // as two 32 bit integers. 7596 7597 Value *Rt = Builder.CreateExtractValue(RtAndRt2, 1); 7598 Value *Rt1 = Builder.CreateExtractValue(RtAndRt2, 0); 7599 Rt = Builder.CreateZExt(Rt, Int64Ty); 7600 Rt1 = Builder.CreateZExt(Rt1, Int64Ty); 7601 7602 Value *ShiftCast = llvm::ConstantInt::get(Int64Ty, 32); 7603 RtAndRt2 = Builder.CreateShl(Rt, ShiftCast, "shl", true); 7604 RtAndRt2 = Builder.CreateOr(RtAndRt2, Rt1); 7605 7606 return Builder.CreateBitCast(RtAndRt2, ConvertType(E->getType())); 7607 } 7608 7609 if (BuiltinID == ARM::BI__builtin_arm_ldrexd || 7610 ((BuiltinID == ARM::BI__builtin_arm_ldrex || 7611 BuiltinID == ARM::BI__builtin_arm_ldaex) && 7612 getContext().getTypeSize(E->getType()) == 64) || 7613 BuiltinID == ARM::BI__ldrexd) { 7614 Function *F; 7615 7616 switch (BuiltinID) { 7617 default: llvm_unreachable("unexpected builtin"); 7618 case ARM::BI__builtin_arm_ldaex: 7619 F = CGM.getIntrinsic(Intrinsic::arm_ldaexd); 7620 break; 7621 case ARM::BI__builtin_arm_ldrexd: 7622 case ARM::BI__builtin_arm_ldrex: 7623 case ARM::BI__ldrexd: 7624 F = CGM.getIntrinsic(Intrinsic::arm_ldrexd); 7625 break; 7626 } 7627 7628 Value *LdPtr = EmitScalarExpr(E->getArg(0)); 7629 Value *Val = Builder.CreateCall(F, Builder.CreateBitCast(LdPtr, Int8PtrTy), 7630 "ldrexd"); 7631 7632 Value *Val0 = Builder.CreateExtractValue(Val, 1); 7633 Value *Val1 = Builder.CreateExtractValue(Val, 0); 7634 Val0 = Builder.CreateZExt(Val0, Int64Ty); 7635 Val1 = Builder.CreateZExt(Val1, Int64Ty); 7636 7637 Value *ShiftCst = llvm::ConstantInt::get(Int64Ty, 32); 7638 Val = Builder.CreateShl(Val0, ShiftCst, "shl", true /* nuw */); 7639 Val = Builder.CreateOr(Val, Val1); 7640 return Builder.CreateBitCast(Val, ConvertType(E->getType())); 7641 } 7642 7643 if (BuiltinID == ARM::BI__builtin_arm_ldrex || 7644 BuiltinID == ARM::BI__builtin_arm_ldaex) { 7645 Value *LoadAddr = EmitScalarExpr(E->getArg(0)); 7646 7647 QualType Ty = E->getType(); 7648 llvm::Type *RealResTy = ConvertType(Ty); 7649 llvm::Type *PtrTy = llvm::IntegerType::get( 7650 getLLVMContext(), getContext().getTypeSize(Ty))->getPointerTo(); 7651 LoadAddr = Builder.CreateBitCast(LoadAddr, PtrTy); 7652 7653 Function *F = CGM.getIntrinsic(BuiltinID == ARM::BI__builtin_arm_ldaex 7654 ? Intrinsic::arm_ldaex 7655 : Intrinsic::arm_ldrex, 7656 PtrTy); 7657 Value *Val = Builder.CreateCall(F, LoadAddr, "ldrex"); 7658 7659 if (RealResTy->isPointerTy()) 7660 return Builder.CreateIntToPtr(Val, RealResTy); 7661 else { 7662 llvm::Type *IntResTy = llvm::IntegerType::get( 7663 getLLVMContext(), CGM.getDataLayout().getTypeSizeInBits(RealResTy)); 7664 Val = Builder.CreateTruncOrBitCast(Val, IntResTy); 7665 return Builder.CreateBitCast(Val, RealResTy); 7666 } 7667 } 7668 7669 if (BuiltinID == ARM::BI__builtin_arm_strexd || 7670 ((BuiltinID == ARM::BI__builtin_arm_stlex || 7671 BuiltinID == ARM::BI__builtin_arm_strex) && 7672 getContext().getTypeSize(E->getArg(0)->getType()) == 64)) { 7673 Function *F = CGM.getIntrinsic(BuiltinID == ARM::BI__builtin_arm_stlex 7674 ? Intrinsic::arm_stlexd 7675 : Intrinsic::arm_strexd); 7676 llvm::Type *STy = llvm::StructType::get(Int32Ty, Int32Ty); 7677 7678 Address Tmp = CreateMemTemp(E->getArg(0)->getType()); 7679 Value *Val = EmitScalarExpr(E->getArg(0)); 7680 Builder.CreateStore(Val, Tmp); 7681 7682 Address LdPtr = Builder.CreateBitCast(Tmp,llvm::PointerType::getUnqual(STy)); 7683 Val = Builder.CreateLoad(LdPtr); 7684 7685 Value *Arg0 = Builder.CreateExtractValue(Val, 0); 7686 Value *Arg1 = Builder.CreateExtractValue(Val, 1); 7687 Value *StPtr = Builder.CreateBitCast(EmitScalarExpr(E->getArg(1)), Int8PtrTy); 7688 return Builder.CreateCall(F, {Arg0, Arg1, StPtr}, "strexd"); 7689 } 7690 7691 if (BuiltinID == ARM::BI__builtin_arm_strex || 7692 BuiltinID == ARM::BI__builtin_arm_stlex) { 7693 Value *StoreVal = EmitScalarExpr(E->getArg(0)); 7694 Value *StoreAddr = EmitScalarExpr(E->getArg(1)); 7695 7696 QualType Ty = E->getArg(0)->getType(); 7697 llvm::Type *StoreTy = llvm::IntegerType::get(getLLVMContext(), 7698 getContext().getTypeSize(Ty)); 7699 StoreAddr = Builder.CreateBitCast(StoreAddr, StoreTy->getPointerTo()); 7700 7701 if (StoreVal->getType()->isPointerTy()) 7702 StoreVal = Builder.CreatePtrToInt(StoreVal, Int32Ty); 7703 else { 7704 llvm::Type *IntTy = llvm::IntegerType::get( 7705 getLLVMContext(), 7706 CGM.getDataLayout().getTypeSizeInBits(StoreVal->getType())); 7707 StoreVal = Builder.CreateBitCast(StoreVal, IntTy); 7708 StoreVal = Builder.CreateZExtOrBitCast(StoreVal, Int32Ty); 7709 } 7710 7711 Function *F = CGM.getIntrinsic(BuiltinID == ARM::BI__builtin_arm_stlex 7712 ? Intrinsic::arm_stlex 7713 : Intrinsic::arm_strex, 7714 StoreAddr->getType()); 7715 return Builder.CreateCall(F, {StoreVal, StoreAddr}, "strex"); 7716 } 7717 7718 if (BuiltinID == ARM::BI__builtin_arm_clrex) { 7719 Function *F = CGM.getIntrinsic(Intrinsic::arm_clrex); 7720 return Builder.CreateCall(F); 7721 } 7722 7723 // CRC32 7724 Intrinsic::ID CRCIntrinsicID = Intrinsic::not_intrinsic; 7725 switch (BuiltinID) { 7726 case ARM::BI__builtin_arm_crc32b: 7727 CRCIntrinsicID = Intrinsic::arm_crc32b; break; 7728 case ARM::BI__builtin_arm_crc32cb: 7729 CRCIntrinsicID = Intrinsic::arm_crc32cb; break; 7730 case ARM::BI__builtin_arm_crc32h: 7731 CRCIntrinsicID = Intrinsic::arm_crc32h; break; 7732 case ARM::BI__builtin_arm_crc32ch: 7733 CRCIntrinsicID = Intrinsic::arm_crc32ch; break; 7734 case ARM::BI__builtin_arm_crc32w: 7735 case ARM::BI__builtin_arm_crc32d: 7736 CRCIntrinsicID = Intrinsic::arm_crc32w; break; 7737 case ARM::BI__builtin_arm_crc32cw: 7738 case ARM::BI__builtin_arm_crc32cd: 7739 CRCIntrinsicID = Intrinsic::arm_crc32cw; break; 7740 } 7741 7742 if (CRCIntrinsicID != Intrinsic::not_intrinsic) { 7743 Value *Arg0 = EmitScalarExpr(E->getArg(0)); 7744 Value *Arg1 = EmitScalarExpr(E->getArg(1)); 7745 7746 // crc32{c,}d intrinsics are implemnted as two calls to crc32{c,}w 7747 // intrinsics, hence we need different codegen for these cases. 7748 if (BuiltinID == ARM::BI__builtin_arm_crc32d || 7749 BuiltinID == ARM::BI__builtin_arm_crc32cd) { 7750 Value *C1 = llvm::ConstantInt::get(Int64Ty, 32); 7751 Value *Arg1a = Builder.CreateTruncOrBitCast(Arg1, Int32Ty); 7752 Value *Arg1b = Builder.CreateLShr(Arg1, C1); 7753 Arg1b = Builder.CreateTruncOrBitCast(Arg1b, Int32Ty); 7754 7755 Function *F = CGM.getIntrinsic(CRCIntrinsicID); 7756 Value *Res = Builder.CreateCall(F, {Arg0, Arg1a}); 7757 return Builder.CreateCall(F, {Res, Arg1b}); 7758 } else { 7759 Arg1 = Builder.CreateZExtOrBitCast(Arg1, Int32Ty); 7760 7761 Function *F = CGM.getIntrinsic(CRCIntrinsicID); 7762 return Builder.CreateCall(F, {Arg0, Arg1}); 7763 } 7764 } 7765 7766 if (BuiltinID == ARM::BI__builtin_arm_rsr || 7767 BuiltinID == ARM::BI__builtin_arm_rsr64 || 7768 BuiltinID == ARM::BI__builtin_arm_rsrp || 7769 BuiltinID == ARM::BI__builtin_arm_wsr || 7770 BuiltinID == ARM::BI__builtin_arm_wsr64 || 7771 BuiltinID == ARM::BI__builtin_arm_wsrp) { 7772 7773 SpecialRegisterAccessKind AccessKind = Write; 7774 if (BuiltinID == ARM::BI__builtin_arm_rsr || 7775 BuiltinID == ARM::BI__builtin_arm_rsr64 || 7776 BuiltinID == ARM::BI__builtin_arm_rsrp) 7777 AccessKind = VolatileRead; 7778 7779 bool IsPointerBuiltin = BuiltinID == ARM::BI__builtin_arm_rsrp || 7780 BuiltinID == ARM::BI__builtin_arm_wsrp; 7781 7782 bool Is64Bit = BuiltinID == ARM::BI__builtin_arm_rsr64 || 7783 BuiltinID == ARM::BI__builtin_arm_wsr64; 7784 7785 llvm::Type *ValueType; 7786 llvm::Type *RegisterType; 7787 if (IsPointerBuiltin) { 7788 ValueType = VoidPtrTy; 7789 RegisterType = Int32Ty; 7790 } else if (Is64Bit) { 7791 ValueType = RegisterType = Int64Ty; 7792 } else { 7793 ValueType = RegisterType = Int32Ty; 7794 } 7795 7796 return EmitSpecialRegisterBuiltin(*this, E, RegisterType, ValueType, 7797 AccessKind); 7798 } 7799 7800 // Handle MSVC intrinsics before argument evaluation to prevent double 7801 // evaluation. 7802 if (Optional<MSVCIntrin> MsvcIntId = translateArmToMsvcIntrin(BuiltinID)) 7803 return EmitMSVCBuiltinExpr(*MsvcIntId, E); 7804 7805 // Deal with MVE builtins 7806 if (Value *Result = EmitARMMVEBuiltinExpr(BuiltinID, E, ReturnValue, Arch)) 7807 return Result; 7808 // Handle CDE builtins 7809 if (Value *Result = EmitARMCDEBuiltinExpr(BuiltinID, E, ReturnValue, Arch)) 7810 return Result; 7811 7812 // Find out if any arguments are required to be integer constant 7813 // expressions. 7814 unsigned ICEArguments = 0; 7815 ASTContext::GetBuiltinTypeError Error; 7816 getContext().GetBuiltinType(BuiltinID, Error, &ICEArguments); 7817 assert(Error == ASTContext::GE_None && "Should not codegen an error"); 7818 7819 auto getAlignmentValue32 = [&](Address addr) -> Value* { 7820 return Builder.getInt32(addr.getAlignment().getQuantity()); 7821 }; 7822 7823 Address PtrOp0 = Address::invalid(); 7824 Address PtrOp1 = Address::invalid(); 7825 SmallVector<Value*, 4> Ops; 7826 bool HasExtraArg = HasExtraNeonArgument(BuiltinID); 7827 unsigned NumArgs = E->getNumArgs() - (HasExtraArg ? 1 : 0); 7828 for (unsigned i = 0, e = NumArgs; i != e; i++) { 7829 if (i == 0) { 7830 switch (BuiltinID) { 7831 case NEON::BI__builtin_neon_vld1_v: 7832 case NEON::BI__builtin_neon_vld1q_v: 7833 case NEON::BI__builtin_neon_vld1q_lane_v: 7834 case NEON::BI__builtin_neon_vld1_lane_v: 7835 case NEON::BI__builtin_neon_vld1_dup_v: 7836 case NEON::BI__builtin_neon_vld1q_dup_v: 7837 case NEON::BI__builtin_neon_vst1_v: 7838 case NEON::BI__builtin_neon_vst1q_v: 7839 case NEON::BI__builtin_neon_vst1q_lane_v: 7840 case NEON::BI__builtin_neon_vst1_lane_v: 7841 case NEON::BI__builtin_neon_vst2_v: 7842 case NEON::BI__builtin_neon_vst2q_v: 7843 case NEON::BI__builtin_neon_vst2_lane_v: 7844 case NEON::BI__builtin_neon_vst2q_lane_v: 7845 case NEON::BI__builtin_neon_vst3_v: 7846 case NEON::BI__builtin_neon_vst3q_v: 7847 case NEON::BI__builtin_neon_vst3_lane_v: 7848 case NEON::BI__builtin_neon_vst3q_lane_v: 7849 case NEON::BI__builtin_neon_vst4_v: 7850 case NEON::BI__builtin_neon_vst4q_v: 7851 case NEON::BI__builtin_neon_vst4_lane_v: 7852 case NEON::BI__builtin_neon_vst4q_lane_v: 7853 // Get the alignment for the argument in addition to the value; 7854 // we'll use it later. 7855 PtrOp0 = EmitPointerWithAlignment(E->getArg(0)); 7856 Ops.push_back(PtrOp0.getPointer()); 7857 continue; 7858 } 7859 } 7860 if (i == 1) { 7861 switch (BuiltinID) { 7862 case NEON::BI__builtin_neon_vld2_v: 7863 case NEON::BI__builtin_neon_vld2q_v: 7864 case NEON::BI__builtin_neon_vld3_v: 7865 case NEON::BI__builtin_neon_vld3q_v: 7866 case NEON::BI__builtin_neon_vld4_v: 7867 case NEON::BI__builtin_neon_vld4q_v: 7868 case NEON::BI__builtin_neon_vld2_lane_v: 7869 case NEON::BI__builtin_neon_vld2q_lane_v: 7870 case NEON::BI__builtin_neon_vld3_lane_v: 7871 case NEON::BI__builtin_neon_vld3q_lane_v: 7872 case NEON::BI__builtin_neon_vld4_lane_v: 7873 case NEON::BI__builtin_neon_vld4q_lane_v: 7874 case NEON::BI__builtin_neon_vld2_dup_v: 7875 case NEON::BI__builtin_neon_vld2q_dup_v: 7876 case NEON::BI__builtin_neon_vld3_dup_v: 7877 case NEON::BI__builtin_neon_vld3q_dup_v: 7878 case NEON::BI__builtin_neon_vld4_dup_v: 7879 case NEON::BI__builtin_neon_vld4q_dup_v: 7880 // Get the alignment for the argument in addition to the value; 7881 // we'll use it later. 7882 PtrOp1 = EmitPointerWithAlignment(E->getArg(1)); 7883 Ops.push_back(PtrOp1.getPointer()); 7884 continue; 7885 } 7886 } 7887 7888 if ((ICEArguments & (1 << i)) == 0) { 7889 Ops.push_back(EmitScalarExpr(E->getArg(i))); 7890 } else { 7891 // If this is required to be a constant, constant fold it so that we know 7892 // that the generated intrinsic gets a ConstantInt. 7893 Ops.push_back(llvm::ConstantInt::get( 7894 getLLVMContext(), 7895 *E->getArg(i)->getIntegerConstantExpr(getContext()))); 7896 } 7897 } 7898 7899 switch (BuiltinID) { 7900 default: break; 7901 7902 case NEON::BI__builtin_neon_vget_lane_i8: 7903 case NEON::BI__builtin_neon_vget_lane_i16: 7904 case NEON::BI__builtin_neon_vget_lane_i32: 7905 case NEON::BI__builtin_neon_vget_lane_i64: 7906 case NEON::BI__builtin_neon_vget_lane_bf16: 7907 case NEON::BI__builtin_neon_vget_lane_f32: 7908 case NEON::BI__builtin_neon_vgetq_lane_i8: 7909 case NEON::BI__builtin_neon_vgetq_lane_i16: 7910 case NEON::BI__builtin_neon_vgetq_lane_i32: 7911 case NEON::BI__builtin_neon_vgetq_lane_i64: 7912 case NEON::BI__builtin_neon_vgetq_lane_bf16: 7913 case NEON::BI__builtin_neon_vgetq_lane_f32: 7914 case NEON::BI__builtin_neon_vduph_lane_bf16: 7915 case NEON::BI__builtin_neon_vduph_laneq_bf16: 7916 return Builder.CreateExtractElement(Ops[0], Ops[1], "vget_lane"); 7917 7918 case NEON::BI__builtin_neon_vrndns_f32: { 7919 Value *Arg = EmitScalarExpr(E->getArg(0)); 7920 llvm::Type *Tys[] = {Arg->getType()}; 7921 Function *F = CGM.getIntrinsic(Intrinsic::arm_neon_vrintn, Tys); 7922 return Builder.CreateCall(F, {Arg}, "vrndn"); } 7923 7924 case NEON::BI__builtin_neon_vset_lane_i8: 7925 case NEON::BI__builtin_neon_vset_lane_i16: 7926 case NEON::BI__builtin_neon_vset_lane_i32: 7927 case NEON::BI__builtin_neon_vset_lane_i64: 7928 case NEON::BI__builtin_neon_vset_lane_bf16: 7929 case NEON::BI__builtin_neon_vset_lane_f32: 7930 case NEON::BI__builtin_neon_vsetq_lane_i8: 7931 case NEON::BI__builtin_neon_vsetq_lane_i16: 7932 case NEON::BI__builtin_neon_vsetq_lane_i32: 7933 case NEON::BI__builtin_neon_vsetq_lane_i64: 7934 case NEON::BI__builtin_neon_vsetq_lane_bf16: 7935 case NEON::BI__builtin_neon_vsetq_lane_f32: 7936 return Builder.CreateInsertElement(Ops[1], Ops[0], Ops[2], "vset_lane"); 7937 7938 case NEON::BI__builtin_neon_vsha1h_u32: 7939 return EmitNeonCall(CGM.getIntrinsic(Intrinsic::arm_neon_sha1h), Ops, 7940 "vsha1h"); 7941 case NEON::BI__builtin_neon_vsha1cq_u32: 7942 return EmitNeonCall(CGM.getIntrinsic(Intrinsic::arm_neon_sha1c), Ops, 7943 "vsha1h"); 7944 case NEON::BI__builtin_neon_vsha1pq_u32: 7945 return EmitNeonCall(CGM.getIntrinsic(Intrinsic::arm_neon_sha1p), Ops, 7946 "vsha1h"); 7947 case NEON::BI__builtin_neon_vsha1mq_u32: 7948 return EmitNeonCall(CGM.getIntrinsic(Intrinsic::arm_neon_sha1m), Ops, 7949 "vsha1h"); 7950 7951 case NEON::BI__builtin_neon_vcvth_bf16_f32: { 7952 return EmitNeonCall(CGM.getIntrinsic(Intrinsic::arm_neon_vcvtbfp2bf), Ops, 7953 "vcvtbfp2bf"); 7954 } 7955 7956 // The ARM _MoveToCoprocessor builtins put the input register value as 7957 // the first argument, but the LLVM intrinsic expects it as the third one. 7958 case ARM::BI_MoveToCoprocessor: 7959 case ARM::BI_MoveToCoprocessor2: { 7960 Function *F = CGM.getIntrinsic(BuiltinID == ARM::BI_MoveToCoprocessor ? 7961 Intrinsic::arm_mcr : Intrinsic::arm_mcr2); 7962 return Builder.CreateCall(F, {Ops[1], Ops[2], Ops[0], 7963 Ops[3], Ops[4], Ops[5]}); 7964 } 7965 } 7966 7967 // Get the last argument, which specifies the vector type. 7968 assert(HasExtraArg); 7969 const Expr *Arg = E->getArg(E->getNumArgs()-1); 7970 Optional<llvm::APSInt> Result = Arg->getIntegerConstantExpr(getContext()); 7971 if (!Result) 7972 return nullptr; 7973 7974 if (BuiltinID == ARM::BI__builtin_arm_vcvtr_f || 7975 BuiltinID == ARM::BI__builtin_arm_vcvtr_d) { 7976 // Determine the overloaded type of this builtin. 7977 llvm::Type *Ty; 7978 if (BuiltinID == ARM::BI__builtin_arm_vcvtr_f) 7979 Ty = FloatTy; 7980 else 7981 Ty = DoubleTy; 7982 7983 // Determine whether this is an unsigned conversion or not. 7984 bool usgn = Result->getZExtValue() == 1; 7985 unsigned Int = usgn ? Intrinsic::arm_vcvtru : Intrinsic::arm_vcvtr; 7986 7987 // Call the appropriate intrinsic. 7988 Function *F = CGM.getIntrinsic(Int, Ty); 7989 return Builder.CreateCall(F, Ops, "vcvtr"); 7990 } 7991 7992 // Determine the type of this overloaded NEON intrinsic. 7993 NeonTypeFlags Type = Result->getZExtValue(); 7994 bool usgn = Type.isUnsigned(); 7995 bool rightShift = false; 7996 7997 llvm::FixedVectorType *VTy = 7998 GetNeonType(this, Type, getTarget().hasLegalHalfType(), false, 7999 getTarget().hasBFloat16Type()); 8000 llvm::Type *Ty = VTy; 8001 if (!Ty) 8002 return nullptr; 8003 8004 // Many NEON builtins have identical semantics and uses in ARM and 8005 // AArch64. Emit these in a single function. 8006 auto IntrinsicMap = makeArrayRef(ARMSIMDIntrinsicMap); 8007 const ARMVectorIntrinsicInfo *Builtin = findARMVectorIntrinsicInMap( 8008 IntrinsicMap, BuiltinID, NEONSIMDIntrinsicsProvenSorted); 8009 if (Builtin) 8010 return EmitCommonNeonBuiltinExpr( 8011 Builtin->BuiltinID, Builtin->LLVMIntrinsic, Builtin->AltLLVMIntrinsic, 8012 Builtin->NameHint, Builtin->TypeModifier, E, Ops, PtrOp0, PtrOp1, Arch); 8013 8014 unsigned Int; 8015 switch (BuiltinID) { 8016 default: return nullptr; 8017 case NEON::BI__builtin_neon_vld1q_lane_v: 8018 // Handle 64-bit integer elements as a special case. Use shuffles of 8019 // one-element vectors to avoid poor code for i64 in the backend. 8020 if (VTy->getElementType()->isIntegerTy(64)) { 8021 // Extract the other lane. 8022 Ops[1] = Builder.CreateBitCast(Ops[1], Ty); 8023 int Lane = cast<ConstantInt>(Ops[2])->getZExtValue(); 8024 Value *SV = llvm::ConstantVector::get(ConstantInt::get(Int32Ty, 1-Lane)); 8025 Ops[1] = Builder.CreateShuffleVector(Ops[1], Ops[1], SV); 8026 // Load the value as a one-element vector. 8027 Ty = llvm::FixedVectorType::get(VTy->getElementType(), 1); 8028 llvm::Type *Tys[] = {Ty, Int8PtrTy}; 8029 Function *F = CGM.getIntrinsic(Intrinsic::arm_neon_vld1, Tys); 8030 Value *Align = getAlignmentValue32(PtrOp0); 8031 Value *Ld = Builder.CreateCall(F, {Ops[0], Align}); 8032 // Combine them. 8033 int Indices[] = {1 - Lane, Lane}; 8034 return Builder.CreateShuffleVector(Ops[1], Ld, Indices, "vld1q_lane"); 8035 } 8036 LLVM_FALLTHROUGH; 8037 case NEON::BI__builtin_neon_vld1_lane_v: { 8038 Ops[1] = Builder.CreateBitCast(Ops[1], Ty); 8039 PtrOp0 = Builder.CreateElementBitCast(PtrOp0, VTy->getElementType()); 8040 Value *Ld = Builder.CreateLoad(PtrOp0); 8041 return Builder.CreateInsertElement(Ops[1], Ld, Ops[2], "vld1_lane"); 8042 } 8043 case NEON::BI__builtin_neon_vqrshrn_n_v: 8044 Int = 8045 usgn ? Intrinsic::arm_neon_vqrshiftnu : Intrinsic::arm_neon_vqrshiftns; 8046 return EmitNeonCall(CGM.getIntrinsic(Int, Ty), Ops, "vqrshrn_n", 8047 1, true); 8048 case NEON::BI__builtin_neon_vqrshrun_n_v: 8049 return EmitNeonCall(CGM.getIntrinsic(Intrinsic::arm_neon_vqrshiftnsu, Ty), 8050 Ops, "vqrshrun_n", 1, true); 8051 case NEON::BI__builtin_neon_vqshrn_n_v: 8052 Int = usgn ? Intrinsic::arm_neon_vqshiftnu : Intrinsic::arm_neon_vqshiftns; 8053 return EmitNeonCall(CGM.getIntrinsic(Int, Ty), Ops, "vqshrn_n", 8054 1, true); 8055 case NEON::BI__builtin_neon_vqshrun_n_v: 8056 return EmitNeonCall(CGM.getIntrinsic(Intrinsic::arm_neon_vqshiftnsu, Ty), 8057 Ops, "vqshrun_n", 1, true); 8058 case NEON::BI__builtin_neon_vrecpe_v: 8059 case NEON::BI__builtin_neon_vrecpeq_v: 8060 return EmitNeonCall(CGM.getIntrinsic(Intrinsic::arm_neon_vrecpe, Ty), 8061 Ops, "vrecpe"); 8062 case NEON::BI__builtin_neon_vrshrn_n_v: 8063 return EmitNeonCall(CGM.getIntrinsic(Intrinsic::arm_neon_vrshiftn, Ty), 8064 Ops, "vrshrn_n", 1, true); 8065 case NEON::BI__builtin_neon_vrsra_n_v: 8066 case NEON::BI__builtin_neon_vrsraq_n_v: 8067 Ops[0] = Builder.CreateBitCast(Ops[0], Ty); 8068 Ops[1] = Builder.CreateBitCast(Ops[1], Ty); 8069 Ops[2] = EmitNeonShiftVector(Ops[2], Ty, true); 8070 Int = usgn ? Intrinsic::arm_neon_vrshiftu : Intrinsic::arm_neon_vrshifts; 8071 Ops[1] = Builder.CreateCall(CGM.getIntrinsic(Int, Ty), {Ops[1], Ops[2]}); 8072 return Builder.CreateAdd(Ops[0], Ops[1], "vrsra_n"); 8073 case NEON::BI__builtin_neon_vsri_n_v: 8074 case NEON::BI__builtin_neon_vsriq_n_v: 8075 rightShift = true; 8076 LLVM_FALLTHROUGH; 8077 case NEON::BI__builtin_neon_vsli_n_v: 8078 case NEON::BI__builtin_neon_vsliq_n_v: 8079 Ops[2] = EmitNeonShiftVector(Ops[2], Ty, rightShift); 8080 return EmitNeonCall(CGM.getIntrinsic(Intrinsic::arm_neon_vshiftins, Ty), 8081 Ops, "vsli_n"); 8082 case NEON::BI__builtin_neon_vsra_n_v: 8083 case NEON::BI__builtin_neon_vsraq_n_v: 8084 Ops[0] = Builder.CreateBitCast(Ops[0], Ty); 8085 Ops[1] = EmitNeonRShiftImm(Ops[1], Ops[2], Ty, usgn, "vsra_n"); 8086 return Builder.CreateAdd(Ops[0], Ops[1]); 8087 case NEON::BI__builtin_neon_vst1q_lane_v: 8088 // Handle 64-bit integer elements as a special case. Use a shuffle to get 8089 // a one-element vector and avoid poor code for i64 in the backend. 8090 if (VTy->getElementType()->isIntegerTy(64)) { 8091 Ops[1] = Builder.CreateBitCast(Ops[1], Ty); 8092 Value *SV = llvm::ConstantVector::get(cast<llvm::Constant>(Ops[2])); 8093 Ops[1] = Builder.CreateShuffleVector(Ops[1], Ops[1], SV); 8094 Ops[2] = getAlignmentValue32(PtrOp0); 8095 llvm::Type *Tys[] = {Int8PtrTy, Ops[1]->getType()}; 8096 return Builder.CreateCall(CGM.getIntrinsic(Intrinsic::arm_neon_vst1, 8097 Tys), Ops); 8098 } 8099 LLVM_FALLTHROUGH; 8100 case NEON::BI__builtin_neon_vst1_lane_v: { 8101 Ops[1] = Builder.CreateBitCast(Ops[1], Ty); 8102 Ops[1] = Builder.CreateExtractElement(Ops[1], Ops[2]); 8103 Ty = llvm::PointerType::getUnqual(Ops[1]->getType()); 8104 auto St = Builder.CreateStore(Ops[1], Builder.CreateBitCast(PtrOp0, Ty)); 8105 return St; 8106 } 8107 case NEON::BI__builtin_neon_vtbl1_v: 8108 return EmitNeonCall(CGM.getIntrinsic(Intrinsic::arm_neon_vtbl1), 8109 Ops, "vtbl1"); 8110 case NEON::BI__builtin_neon_vtbl2_v: 8111 return EmitNeonCall(CGM.getIntrinsic(Intrinsic::arm_neon_vtbl2), 8112 Ops, "vtbl2"); 8113 case NEON::BI__builtin_neon_vtbl3_v: 8114 return EmitNeonCall(CGM.getIntrinsic(Intrinsic::arm_neon_vtbl3), 8115 Ops, "vtbl3"); 8116 case NEON::BI__builtin_neon_vtbl4_v: 8117 return EmitNeonCall(CGM.getIntrinsic(Intrinsic::arm_neon_vtbl4), 8118 Ops, "vtbl4"); 8119 case NEON::BI__builtin_neon_vtbx1_v: 8120 return EmitNeonCall(CGM.getIntrinsic(Intrinsic::arm_neon_vtbx1), 8121 Ops, "vtbx1"); 8122 case NEON::BI__builtin_neon_vtbx2_v: 8123 return EmitNeonCall(CGM.getIntrinsic(Intrinsic::arm_neon_vtbx2), 8124 Ops, "vtbx2"); 8125 case NEON::BI__builtin_neon_vtbx3_v: 8126 return EmitNeonCall(CGM.getIntrinsic(Intrinsic::arm_neon_vtbx3), 8127 Ops, "vtbx3"); 8128 case NEON::BI__builtin_neon_vtbx4_v: 8129 return EmitNeonCall(CGM.getIntrinsic(Intrinsic::arm_neon_vtbx4), 8130 Ops, "vtbx4"); 8131 } 8132 } 8133 8134 template<typename Integer> 8135 static Integer GetIntegerConstantValue(const Expr *E, ASTContext &Context) { 8136 return E->getIntegerConstantExpr(Context)->getExtValue(); 8137 } 8138 8139 static llvm::Value *SignOrZeroExtend(CGBuilderTy &Builder, llvm::Value *V, 8140 llvm::Type *T, bool Unsigned) { 8141 // Helper function called by Tablegen-constructed ARM MVE builtin codegen, 8142 // which finds it convenient to specify signed/unsigned as a boolean flag. 8143 return Unsigned ? Builder.CreateZExt(V, T) : Builder.CreateSExt(V, T); 8144 } 8145 8146 static llvm::Value *MVEImmediateShr(CGBuilderTy &Builder, llvm::Value *V, 8147 uint32_t Shift, bool Unsigned) { 8148 // MVE helper function for integer shift right. This must handle signed vs 8149 // unsigned, and also deal specially with the case where the shift count is 8150 // equal to the lane size. In LLVM IR, an LShr with that parameter would be 8151 // undefined behavior, but in MVE it's legal, so we must convert it to code 8152 // that is not undefined in IR. 8153 unsigned LaneBits = cast<llvm::VectorType>(V->getType()) 8154 ->getElementType() 8155 ->getPrimitiveSizeInBits(); 8156 if (Shift == LaneBits) { 8157 // An unsigned shift of the full lane size always generates zero, so we can 8158 // simply emit a zero vector. A signed shift of the full lane size does the 8159 // same thing as shifting by one bit fewer. 8160 if (Unsigned) 8161 return llvm::Constant::getNullValue(V->getType()); 8162 else 8163 --Shift; 8164 } 8165 return Unsigned ? Builder.CreateLShr(V, Shift) : Builder.CreateAShr(V, Shift); 8166 } 8167 8168 static llvm::Value *ARMMVEVectorSplat(CGBuilderTy &Builder, llvm::Value *V) { 8169 // MVE-specific helper function for a vector splat, which infers the element 8170 // count of the output vector by knowing that MVE vectors are all 128 bits 8171 // wide. 8172 unsigned Elements = 128 / V->getType()->getPrimitiveSizeInBits(); 8173 return Builder.CreateVectorSplat(Elements, V); 8174 } 8175 8176 static llvm::Value *ARMMVEVectorReinterpret(CGBuilderTy &Builder, 8177 CodeGenFunction *CGF, 8178 llvm::Value *V, 8179 llvm::Type *DestType) { 8180 // Convert one MVE vector type into another by reinterpreting its in-register 8181 // format. 8182 // 8183 // Little-endian, this is identical to a bitcast (which reinterprets the 8184 // memory format). But big-endian, they're not necessarily the same, because 8185 // the register and memory formats map to each other differently depending on 8186 // the lane size. 8187 // 8188 // We generate a bitcast whenever we can (if we're little-endian, or if the 8189 // lane sizes are the same anyway). Otherwise we fall back to an IR intrinsic 8190 // that performs the different kind of reinterpretation. 8191 if (CGF->getTarget().isBigEndian() && 8192 V->getType()->getScalarSizeInBits() != DestType->getScalarSizeInBits()) { 8193 return Builder.CreateCall( 8194 CGF->CGM.getIntrinsic(Intrinsic::arm_mve_vreinterpretq, 8195 {DestType, V->getType()}), 8196 V); 8197 } else { 8198 return Builder.CreateBitCast(V, DestType); 8199 } 8200 } 8201 8202 static llvm::Value *VectorUnzip(CGBuilderTy &Builder, llvm::Value *V, bool Odd) { 8203 // Make a shufflevector that extracts every other element of a vector (evens 8204 // or odds, as desired). 8205 SmallVector<int, 16> Indices; 8206 unsigned InputElements = 8207 cast<llvm::FixedVectorType>(V->getType())->getNumElements(); 8208 for (unsigned i = 0; i < InputElements; i += 2) 8209 Indices.push_back(i + Odd); 8210 return Builder.CreateShuffleVector(V, Indices); 8211 } 8212 8213 static llvm::Value *VectorZip(CGBuilderTy &Builder, llvm::Value *V0, 8214 llvm::Value *V1) { 8215 // Make a shufflevector that interleaves two vectors element by element. 8216 assert(V0->getType() == V1->getType() && "Can't zip different vector types"); 8217 SmallVector<int, 16> Indices; 8218 unsigned InputElements = 8219 cast<llvm::FixedVectorType>(V0->getType())->getNumElements(); 8220 for (unsigned i = 0; i < InputElements; i++) { 8221 Indices.push_back(i); 8222 Indices.push_back(i + InputElements); 8223 } 8224 return Builder.CreateShuffleVector(V0, V1, Indices); 8225 } 8226 8227 template<unsigned HighBit, unsigned OtherBits> 8228 static llvm::Value *ARMMVEConstantSplat(CGBuilderTy &Builder, llvm::Type *VT) { 8229 // MVE-specific helper function to make a vector splat of a constant such as 8230 // UINT_MAX or INT_MIN, in which all bits below the highest one are equal. 8231 llvm::Type *T = cast<llvm::VectorType>(VT)->getElementType(); 8232 unsigned LaneBits = T->getPrimitiveSizeInBits(); 8233 uint32_t Value = HighBit << (LaneBits - 1); 8234 if (OtherBits) 8235 Value |= (1UL << (LaneBits - 1)) - 1; 8236 llvm::Value *Lane = llvm::ConstantInt::get(T, Value); 8237 return ARMMVEVectorSplat(Builder, Lane); 8238 } 8239 8240 static llvm::Value *ARMMVEVectorElementReverse(CGBuilderTy &Builder, 8241 llvm::Value *V, 8242 unsigned ReverseWidth) { 8243 // MVE-specific helper function which reverses the elements of a 8244 // vector within every (ReverseWidth)-bit collection of lanes. 8245 SmallVector<int, 16> Indices; 8246 unsigned LaneSize = V->getType()->getScalarSizeInBits(); 8247 unsigned Elements = 128 / LaneSize; 8248 unsigned Mask = ReverseWidth / LaneSize - 1; 8249 for (unsigned i = 0; i < Elements; i++) 8250 Indices.push_back(i ^ Mask); 8251 return Builder.CreateShuffleVector(V, Indices); 8252 } 8253 8254 Value *CodeGenFunction::EmitARMMVEBuiltinExpr(unsigned BuiltinID, 8255 const CallExpr *E, 8256 ReturnValueSlot ReturnValue, 8257 llvm::Triple::ArchType Arch) { 8258 enum class CustomCodeGen { VLD24, VST24 } CustomCodeGenType; 8259 Intrinsic::ID IRIntr; 8260 unsigned NumVectors; 8261 8262 // Code autogenerated by Tablegen will handle all the simple builtins. 8263 switch (BuiltinID) { 8264 #include "clang/Basic/arm_mve_builtin_cg.inc" 8265 8266 // If we didn't match an MVE builtin id at all, go back to the 8267 // main EmitARMBuiltinExpr. 8268 default: 8269 return nullptr; 8270 } 8271 8272 // Anything that breaks from that switch is an MVE builtin that 8273 // needs handwritten code to generate. 8274 8275 switch (CustomCodeGenType) { 8276 8277 case CustomCodeGen::VLD24: { 8278 llvm::SmallVector<Value *, 4> Ops; 8279 llvm::SmallVector<llvm::Type *, 4> Tys; 8280 8281 auto MvecCType = E->getType(); 8282 auto MvecLType = ConvertType(MvecCType); 8283 assert(MvecLType->isStructTy() && 8284 "Return type for vld[24]q should be a struct"); 8285 assert(MvecLType->getStructNumElements() == 1 && 8286 "Return-type struct for vld[24]q should have one element"); 8287 auto MvecLTypeInner = MvecLType->getStructElementType(0); 8288 assert(MvecLTypeInner->isArrayTy() && 8289 "Return-type struct for vld[24]q should contain an array"); 8290 assert(MvecLTypeInner->getArrayNumElements() == NumVectors && 8291 "Array member of return-type struct vld[24]q has wrong length"); 8292 auto VecLType = MvecLTypeInner->getArrayElementType(); 8293 8294 Tys.push_back(VecLType); 8295 8296 auto Addr = E->getArg(0); 8297 Ops.push_back(EmitScalarExpr(Addr)); 8298 Tys.push_back(ConvertType(Addr->getType())); 8299 8300 Function *F = CGM.getIntrinsic(IRIntr, makeArrayRef(Tys)); 8301 Value *LoadResult = Builder.CreateCall(F, Ops); 8302 Value *MvecOut = UndefValue::get(MvecLType); 8303 for (unsigned i = 0; i < NumVectors; ++i) { 8304 Value *Vec = Builder.CreateExtractValue(LoadResult, i); 8305 MvecOut = Builder.CreateInsertValue(MvecOut, Vec, {0, i}); 8306 } 8307 8308 if (ReturnValue.isNull()) 8309 return MvecOut; 8310 else 8311 return Builder.CreateStore(MvecOut, ReturnValue.getValue()); 8312 } 8313 8314 case CustomCodeGen::VST24: { 8315 llvm::SmallVector<Value *, 4> Ops; 8316 llvm::SmallVector<llvm::Type *, 4> Tys; 8317 8318 auto Addr = E->getArg(0); 8319 Ops.push_back(EmitScalarExpr(Addr)); 8320 Tys.push_back(ConvertType(Addr->getType())); 8321 8322 auto MvecCType = E->getArg(1)->getType(); 8323 auto MvecLType = ConvertType(MvecCType); 8324 assert(MvecLType->isStructTy() && "Data type for vst2q should be a struct"); 8325 assert(MvecLType->getStructNumElements() == 1 && 8326 "Data-type struct for vst2q should have one element"); 8327 auto MvecLTypeInner = MvecLType->getStructElementType(0); 8328 assert(MvecLTypeInner->isArrayTy() && 8329 "Data-type struct for vst2q should contain an array"); 8330 assert(MvecLTypeInner->getArrayNumElements() == NumVectors && 8331 "Array member of return-type struct vld[24]q has wrong length"); 8332 auto VecLType = MvecLTypeInner->getArrayElementType(); 8333 8334 Tys.push_back(VecLType); 8335 8336 AggValueSlot MvecSlot = CreateAggTemp(MvecCType); 8337 EmitAggExpr(E->getArg(1), MvecSlot); 8338 auto Mvec = Builder.CreateLoad(MvecSlot.getAddress()); 8339 for (unsigned i = 0; i < NumVectors; i++) 8340 Ops.push_back(Builder.CreateExtractValue(Mvec, {0, i})); 8341 8342 Function *F = CGM.getIntrinsic(IRIntr, makeArrayRef(Tys)); 8343 Value *ToReturn = nullptr; 8344 for (unsigned i = 0; i < NumVectors; i++) { 8345 Ops.push_back(llvm::ConstantInt::get(Int32Ty, i)); 8346 ToReturn = Builder.CreateCall(F, Ops); 8347 Ops.pop_back(); 8348 } 8349 return ToReturn; 8350 } 8351 } 8352 llvm_unreachable("unknown custom codegen type."); 8353 } 8354 8355 Value *CodeGenFunction::EmitARMCDEBuiltinExpr(unsigned BuiltinID, 8356 const CallExpr *E, 8357 ReturnValueSlot ReturnValue, 8358 llvm::Triple::ArchType Arch) { 8359 switch (BuiltinID) { 8360 default: 8361 return nullptr; 8362 #include "clang/Basic/arm_cde_builtin_cg.inc" 8363 } 8364 } 8365 8366 static Value *EmitAArch64TblBuiltinExpr(CodeGenFunction &CGF, unsigned BuiltinID, 8367 const CallExpr *E, 8368 SmallVectorImpl<Value *> &Ops, 8369 llvm::Triple::ArchType Arch) { 8370 unsigned int Int = 0; 8371 const char *s = nullptr; 8372 8373 switch (BuiltinID) { 8374 default: 8375 return nullptr; 8376 case NEON::BI__builtin_neon_vtbl1_v: 8377 case NEON::BI__builtin_neon_vqtbl1_v: 8378 case NEON::BI__builtin_neon_vqtbl1q_v: 8379 case NEON::BI__builtin_neon_vtbl2_v: 8380 case NEON::BI__builtin_neon_vqtbl2_v: 8381 case NEON::BI__builtin_neon_vqtbl2q_v: 8382 case NEON::BI__builtin_neon_vtbl3_v: 8383 case NEON::BI__builtin_neon_vqtbl3_v: 8384 case NEON::BI__builtin_neon_vqtbl3q_v: 8385 case NEON::BI__builtin_neon_vtbl4_v: 8386 case NEON::BI__builtin_neon_vqtbl4_v: 8387 case NEON::BI__builtin_neon_vqtbl4q_v: 8388 break; 8389 case NEON::BI__builtin_neon_vtbx1_v: 8390 case NEON::BI__builtin_neon_vqtbx1_v: 8391 case NEON::BI__builtin_neon_vqtbx1q_v: 8392 case NEON::BI__builtin_neon_vtbx2_v: 8393 case NEON::BI__builtin_neon_vqtbx2_v: 8394 case NEON::BI__builtin_neon_vqtbx2q_v: 8395 case NEON::BI__builtin_neon_vtbx3_v: 8396 case NEON::BI__builtin_neon_vqtbx3_v: 8397 case NEON::BI__builtin_neon_vqtbx3q_v: 8398 case NEON::BI__builtin_neon_vtbx4_v: 8399 case NEON::BI__builtin_neon_vqtbx4_v: 8400 case NEON::BI__builtin_neon_vqtbx4q_v: 8401 break; 8402 } 8403 8404 assert(E->getNumArgs() >= 3); 8405 8406 // Get the last argument, which specifies the vector type. 8407 const Expr *Arg = E->getArg(E->getNumArgs() - 1); 8408 Optional<llvm::APSInt> Result = Arg->getIntegerConstantExpr(CGF.getContext()); 8409 if (!Result) 8410 return nullptr; 8411 8412 // Determine the type of this overloaded NEON intrinsic. 8413 NeonTypeFlags Type = Result->getZExtValue(); 8414 llvm::FixedVectorType *Ty = GetNeonType(&CGF, Type); 8415 if (!Ty) 8416 return nullptr; 8417 8418 CodeGen::CGBuilderTy &Builder = CGF.Builder; 8419 8420 // AArch64 scalar builtins are not overloaded, they do not have an extra 8421 // argument that specifies the vector type, need to handle each case. 8422 switch (BuiltinID) { 8423 case NEON::BI__builtin_neon_vtbl1_v: { 8424 return packTBLDVectorList(CGF, makeArrayRef(Ops).slice(0, 1), nullptr, 8425 Ops[1], Ty, Intrinsic::aarch64_neon_tbl1, 8426 "vtbl1"); 8427 } 8428 case NEON::BI__builtin_neon_vtbl2_v: { 8429 return packTBLDVectorList(CGF, makeArrayRef(Ops).slice(0, 2), nullptr, 8430 Ops[2], Ty, Intrinsic::aarch64_neon_tbl1, 8431 "vtbl1"); 8432 } 8433 case NEON::BI__builtin_neon_vtbl3_v: { 8434 return packTBLDVectorList(CGF, makeArrayRef(Ops).slice(0, 3), nullptr, 8435 Ops[3], Ty, Intrinsic::aarch64_neon_tbl2, 8436 "vtbl2"); 8437 } 8438 case NEON::BI__builtin_neon_vtbl4_v: { 8439 return packTBLDVectorList(CGF, makeArrayRef(Ops).slice(0, 4), nullptr, 8440 Ops[4], Ty, Intrinsic::aarch64_neon_tbl2, 8441 "vtbl2"); 8442 } 8443 case NEON::BI__builtin_neon_vtbx1_v: { 8444 Value *TblRes = 8445 packTBLDVectorList(CGF, makeArrayRef(Ops).slice(1, 1), nullptr, Ops[2], 8446 Ty, Intrinsic::aarch64_neon_tbl1, "vtbl1"); 8447 8448 llvm::Constant *EightV = ConstantInt::get(Ty, 8); 8449 Value *CmpRes = Builder.CreateICmp(ICmpInst::ICMP_UGE, Ops[2], EightV); 8450 CmpRes = Builder.CreateSExt(CmpRes, Ty); 8451 8452 Value *EltsFromInput = Builder.CreateAnd(CmpRes, Ops[0]); 8453 Value *EltsFromTbl = Builder.CreateAnd(Builder.CreateNot(CmpRes), TblRes); 8454 return Builder.CreateOr(EltsFromInput, EltsFromTbl, "vtbx"); 8455 } 8456 case NEON::BI__builtin_neon_vtbx2_v: { 8457 return packTBLDVectorList(CGF, makeArrayRef(Ops).slice(1, 2), Ops[0], 8458 Ops[3], Ty, Intrinsic::aarch64_neon_tbx1, 8459 "vtbx1"); 8460 } 8461 case NEON::BI__builtin_neon_vtbx3_v: { 8462 Value *TblRes = 8463 packTBLDVectorList(CGF, makeArrayRef(Ops).slice(1, 3), nullptr, Ops[4], 8464 Ty, Intrinsic::aarch64_neon_tbl2, "vtbl2"); 8465 8466 llvm::Constant *TwentyFourV = ConstantInt::get(Ty, 24); 8467 Value *CmpRes = Builder.CreateICmp(ICmpInst::ICMP_UGE, Ops[4], 8468 TwentyFourV); 8469 CmpRes = Builder.CreateSExt(CmpRes, Ty); 8470 8471 Value *EltsFromInput = Builder.CreateAnd(CmpRes, Ops[0]); 8472 Value *EltsFromTbl = Builder.CreateAnd(Builder.CreateNot(CmpRes), TblRes); 8473 return Builder.CreateOr(EltsFromInput, EltsFromTbl, "vtbx"); 8474 } 8475 case NEON::BI__builtin_neon_vtbx4_v: { 8476 return packTBLDVectorList(CGF, makeArrayRef(Ops).slice(1, 4), Ops[0], 8477 Ops[5], Ty, Intrinsic::aarch64_neon_tbx2, 8478 "vtbx2"); 8479 } 8480 case NEON::BI__builtin_neon_vqtbl1_v: 8481 case NEON::BI__builtin_neon_vqtbl1q_v: 8482 Int = Intrinsic::aarch64_neon_tbl1; s = "vtbl1"; break; 8483 case NEON::BI__builtin_neon_vqtbl2_v: 8484 case NEON::BI__builtin_neon_vqtbl2q_v: { 8485 Int = Intrinsic::aarch64_neon_tbl2; s = "vtbl2"; break; 8486 case NEON::BI__builtin_neon_vqtbl3_v: 8487 case NEON::BI__builtin_neon_vqtbl3q_v: 8488 Int = Intrinsic::aarch64_neon_tbl3; s = "vtbl3"; break; 8489 case NEON::BI__builtin_neon_vqtbl4_v: 8490 case NEON::BI__builtin_neon_vqtbl4q_v: 8491 Int = Intrinsic::aarch64_neon_tbl4; s = "vtbl4"; break; 8492 case NEON::BI__builtin_neon_vqtbx1_v: 8493 case NEON::BI__builtin_neon_vqtbx1q_v: 8494 Int = Intrinsic::aarch64_neon_tbx1; s = "vtbx1"; break; 8495 case NEON::BI__builtin_neon_vqtbx2_v: 8496 case NEON::BI__builtin_neon_vqtbx2q_v: 8497 Int = Intrinsic::aarch64_neon_tbx2; s = "vtbx2"; break; 8498 case NEON::BI__builtin_neon_vqtbx3_v: 8499 case NEON::BI__builtin_neon_vqtbx3q_v: 8500 Int = Intrinsic::aarch64_neon_tbx3; s = "vtbx3"; break; 8501 case NEON::BI__builtin_neon_vqtbx4_v: 8502 case NEON::BI__builtin_neon_vqtbx4q_v: 8503 Int = Intrinsic::aarch64_neon_tbx4; s = "vtbx4"; break; 8504 } 8505 } 8506 8507 if (!Int) 8508 return nullptr; 8509 8510 Function *F = CGF.CGM.getIntrinsic(Int, Ty); 8511 return CGF.EmitNeonCall(F, Ops, s); 8512 } 8513 8514 Value *CodeGenFunction::vectorWrapScalar16(Value *Op) { 8515 auto *VTy = llvm::FixedVectorType::get(Int16Ty, 4); 8516 Op = Builder.CreateBitCast(Op, Int16Ty); 8517 Value *V = UndefValue::get(VTy); 8518 llvm::Constant *CI = ConstantInt::get(SizeTy, 0); 8519 Op = Builder.CreateInsertElement(V, Op, CI); 8520 return Op; 8521 } 8522 8523 /// SVEBuiltinMemEltTy - Returns the memory element type for this memory 8524 /// access builtin. Only required if it can't be inferred from the base pointer 8525 /// operand. 8526 llvm::Type *CodeGenFunction::SVEBuiltinMemEltTy(const SVETypeFlags &TypeFlags) { 8527 switch (TypeFlags.getMemEltType()) { 8528 case SVETypeFlags::MemEltTyDefault: 8529 return getEltType(TypeFlags); 8530 case SVETypeFlags::MemEltTyInt8: 8531 return Builder.getInt8Ty(); 8532 case SVETypeFlags::MemEltTyInt16: 8533 return Builder.getInt16Ty(); 8534 case SVETypeFlags::MemEltTyInt32: 8535 return Builder.getInt32Ty(); 8536 case SVETypeFlags::MemEltTyInt64: 8537 return Builder.getInt64Ty(); 8538 } 8539 llvm_unreachable("Unknown MemEltType"); 8540 } 8541 8542 llvm::Type *CodeGenFunction::getEltType(const SVETypeFlags &TypeFlags) { 8543 switch (TypeFlags.getEltType()) { 8544 default: 8545 llvm_unreachable("Invalid SVETypeFlag!"); 8546 8547 case SVETypeFlags::EltTyInt8: 8548 return Builder.getInt8Ty(); 8549 case SVETypeFlags::EltTyInt16: 8550 return Builder.getInt16Ty(); 8551 case SVETypeFlags::EltTyInt32: 8552 return Builder.getInt32Ty(); 8553 case SVETypeFlags::EltTyInt64: 8554 return Builder.getInt64Ty(); 8555 8556 case SVETypeFlags::EltTyFloat16: 8557 return Builder.getHalfTy(); 8558 case SVETypeFlags::EltTyFloat32: 8559 return Builder.getFloatTy(); 8560 case SVETypeFlags::EltTyFloat64: 8561 return Builder.getDoubleTy(); 8562 8563 case SVETypeFlags::EltTyBFloat16: 8564 return Builder.getBFloatTy(); 8565 8566 case SVETypeFlags::EltTyBool8: 8567 case SVETypeFlags::EltTyBool16: 8568 case SVETypeFlags::EltTyBool32: 8569 case SVETypeFlags::EltTyBool64: 8570 return Builder.getInt1Ty(); 8571 } 8572 } 8573 8574 // Return the llvm predicate vector type corresponding to the specified element 8575 // TypeFlags. 8576 llvm::ScalableVectorType * 8577 CodeGenFunction::getSVEPredType(const SVETypeFlags &TypeFlags) { 8578 switch (TypeFlags.getEltType()) { 8579 default: llvm_unreachable("Unhandled SVETypeFlag!"); 8580 8581 case SVETypeFlags::EltTyInt8: 8582 return llvm::ScalableVectorType::get(Builder.getInt1Ty(), 16); 8583 case SVETypeFlags::EltTyInt16: 8584 return llvm::ScalableVectorType::get(Builder.getInt1Ty(), 8); 8585 case SVETypeFlags::EltTyInt32: 8586 return llvm::ScalableVectorType::get(Builder.getInt1Ty(), 4); 8587 case SVETypeFlags::EltTyInt64: 8588 return llvm::ScalableVectorType::get(Builder.getInt1Ty(), 2); 8589 8590 case SVETypeFlags::EltTyBFloat16: 8591 return llvm::ScalableVectorType::get(Builder.getInt1Ty(), 8); 8592 case SVETypeFlags::EltTyFloat16: 8593 return llvm::ScalableVectorType::get(Builder.getInt1Ty(), 8); 8594 case SVETypeFlags::EltTyFloat32: 8595 return llvm::ScalableVectorType::get(Builder.getInt1Ty(), 4); 8596 case SVETypeFlags::EltTyFloat64: 8597 return llvm::ScalableVectorType::get(Builder.getInt1Ty(), 2); 8598 8599 case SVETypeFlags::EltTyBool8: 8600 return llvm::ScalableVectorType::get(Builder.getInt1Ty(), 16); 8601 case SVETypeFlags::EltTyBool16: 8602 return llvm::ScalableVectorType::get(Builder.getInt1Ty(), 8); 8603 case SVETypeFlags::EltTyBool32: 8604 return llvm::ScalableVectorType::get(Builder.getInt1Ty(), 4); 8605 case SVETypeFlags::EltTyBool64: 8606 return llvm::ScalableVectorType::get(Builder.getInt1Ty(), 2); 8607 } 8608 } 8609 8610 // Return the llvm vector type corresponding to the specified element TypeFlags. 8611 llvm::ScalableVectorType * 8612 CodeGenFunction::getSVEType(const SVETypeFlags &TypeFlags) { 8613 switch (TypeFlags.getEltType()) { 8614 default: 8615 llvm_unreachable("Invalid SVETypeFlag!"); 8616 8617 case SVETypeFlags::EltTyInt8: 8618 return llvm::ScalableVectorType::get(Builder.getInt8Ty(), 16); 8619 case SVETypeFlags::EltTyInt16: 8620 return llvm::ScalableVectorType::get(Builder.getInt16Ty(), 8); 8621 case SVETypeFlags::EltTyInt32: 8622 return llvm::ScalableVectorType::get(Builder.getInt32Ty(), 4); 8623 case SVETypeFlags::EltTyInt64: 8624 return llvm::ScalableVectorType::get(Builder.getInt64Ty(), 2); 8625 8626 case SVETypeFlags::EltTyFloat16: 8627 return llvm::ScalableVectorType::get(Builder.getHalfTy(), 8); 8628 case SVETypeFlags::EltTyBFloat16: 8629 return llvm::ScalableVectorType::get(Builder.getBFloatTy(), 8); 8630 case SVETypeFlags::EltTyFloat32: 8631 return llvm::ScalableVectorType::get(Builder.getFloatTy(), 4); 8632 case SVETypeFlags::EltTyFloat64: 8633 return llvm::ScalableVectorType::get(Builder.getDoubleTy(), 2); 8634 8635 case SVETypeFlags::EltTyBool8: 8636 return llvm::ScalableVectorType::get(Builder.getInt1Ty(), 16); 8637 case SVETypeFlags::EltTyBool16: 8638 return llvm::ScalableVectorType::get(Builder.getInt1Ty(), 8); 8639 case SVETypeFlags::EltTyBool32: 8640 return llvm::ScalableVectorType::get(Builder.getInt1Ty(), 4); 8641 case SVETypeFlags::EltTyBool64: 8642 return llvm::ScalableVectorType::get(Builder.getInt1Ty(), 2); 8643 } 8644 } 8645 8646 llvm::Value * 8647 CodeGenFunction::EmitSVEAllTruePred(const SVETypeFlags &TypeFlags) { 8648 Function *Ptrue = 8649 CGM.getIntrinsic(Intrinsic::aarch64_sve_ptrue, getSVEPredType(TypeFlags)); 8650 return Builder.CreateCall(Ptrue, {Builder.getInt32(/*SV_ALL*/ 31)}); 8651 } 8652 8653 constexpr unsigned SVEBitsPerBlock = 128; 8654 8655 static llvm::ScalableVectorType *getSVEVectorForElementType(llvm::Type *EltTy) { 8656 unsigned NumElts = SVEBitsPerBlock / EltTy->getScalarSizeInBits(); 8657 return llvm::ScalableVectorType::get(EltTy, NumElts); 8658 } 8659 8660 // Reinterpret the input predicate so that it can be used to correctly isolate 8661 // the elements of the specified datatype. 8662 Value *CodeGenFunction::EmitSVEPredicateCast(Value *Pred, 8663 llvm::ScalableVectorType *VTy) { 8664 auto *RTy = llvm::VectorType::get(IntegerType::get(getLLVMContext(), 1), VTy); 8665 if (Pred->getType() == RTy) 8666 return Pred; 8667 8668 unsigned IntID; 8669 llvm::Type *IntrinsicTy; 8670 switch (VTy->getMinNumElements()) { 8671 default: 8672 llvm_unreachable("unsupported element count!"); 8673 case 2: 8674 case 4: 8675 case 8: 8676 IntID = Intrinsic::aarch64_sve_convert_from_svbool; 8677 IntrinsicTy = RTy; 8678 break; 8679 case 16: 8680 IntID = Intrinsic::aarch64_sve_convert_to_svbool; 8681 IntrinsicTy = Pred->getType(); 8682 break; 8683 } 8684 8685 Function *F = CGM.getIntrinsic(IntID, IntrinsicTy); 8686 Value *C = Builder.CreateCall(F, Pred); 8687 assert(C->getType() == RTy && "Unexpected return type!"); 8688 return C; 8689 } 8690 8691 Value *CodeGenFunction::EmitSVEGatherLoad(const SVETypeFlags &TypeFlags, 8692 SmallVectorImpl<Value *> &Ops, 8693 unsigned IntID) { 8694 auto *ResultTy = getSVEType(TypeFlags); 8695 auto *OverloadedTy = 8696 llvm::ScalableVectorType::get(SVEBuiltinMemEltTy(TypeFlags), ResultTy); 8697 8698 // At the ACLE level there's only one predicate type, svbool_t, which is 8699 // mapped to <n x 16 x i1>. However, this might be incompatible with the 8700 // actual type being loaded. For example, when loading doubles (i64) the 8701 // predicated should be <n x 2 x i1> instead. At the IR level the type of 8702 // the predicate and the data being loaded must match. Cast accordingly. 8703 Ops[0] = EmitSVEPredicateCast(Ops[0], OverloadedTy); 8704 8705 Function *F = nullptr; 8706 if (Ops[1]->getType()->isVectorTy()) 8707 // This is the "vector base, scalar offset" case. In order to uniquely 8708 // map this built-in to an LLVM IR intrinsic, we need both the return type 8709 // and the type of the vector base. 8710 F = CGM.getIntrinsic(IntID, {OverloadedTy, Ops[1]->getType()}); 8711 else 8712 // This is the "scalar base, vector offset case". The type of the offset 8713 // is encoded in the name of the intrinsic. We only need to specify the 8714 // return type in order to uniquely map this built-in to an LLVM IR 8715 // intrinsic. 8716 F = CGM.getIntrinsic(IntID, OverloadedTy); 8717 8718 // Pass 0 when the offset is missing. This can only be applied when using 8719 // the "vector base" addressing mode for which ACLE allows no offset. The 8720 // corresponding LLVM IR always requires an offset. 8721 if (Ops.size() == 2) { 8722 assert(Ops[1]->getType()->isVectorTy() && "Scalar base requires an offset"); 8723 Ops.push_back(ConstantInt::get(Int64Ty, 0)); 8724 } 8725 8726 // For "vector base, scalar index" scale the index so that it becomes a 8727 // scalar offset. 8728 if (!TypeFlags.isByteIndexed() && Ops[1]->getType()->isVectorTy()) { 8729 unsigned BytesPerElt = 8730 OverloadedTy->getElementType()->getScalarSizeInBits() / 8; 8731 Value *Scale = ConstantInt::get(Int64Ty, BytesPerElt); 8732 Ops[2] = Builder.CreateMul(Ops[2], Scale); 8733 } 8734 8735 Value *Call = Builder.CreateCall(F, Ops); 8736 8737 // The following sext/zext is only needed when ResultTy != OverloadedTy. In 8738 // other cases it's folded into a nop. 8739 return TypeFlags.isZExtReturn() ? Builder.CreateZExt(Call, ResultTy) 8740 : Builder.CreateSExt(Call, ResultTy); 8741 } 8742 8743 Value *CodeGenFunction::EmitSVEScatterStore(const SVETypeFlags &TypeFlags, 8744 SmallVectorImpl<Value *> &Ops, 8745 unsigned IntID) { 8746 auto *SrcDataTy = getSVEType(TypeFlags); 8747 auto *OverloadedTy = 8748 llvm::ScalableVectorType::get(SVEBuiltinMemEltTy(TypeFlags), SrcDataTy); 8749 8750 // In ACLE the source data is passed in the last argument, whereas in LLVM IR 8751 // it's the first argument. Move it accordingly. 8752 Ops.insert(Ops.begin(), Ops.pop_back_val()); 8753 8754 Function *F = nullptr; 8755 if (Ops[2]->getType()->isVectorTy()) 8756 // This is the "vector base, scalar offset" case. In order to uniquely 8757 // map this built-in to an LLVM IR intrinsic, we need both the return type 8758 // and the type of the vector base. 8759 F = CGM.getIntrinsic(IntID, {OverloadedTy, Ops[2]->getType()}); 8760 else 8761 // This is the "scalar base, vector offset case". The type of the offset 8762 // is encoded in the name of the intrinsic. We only need to specify the 8763 // return type in order to uniquely map this built-in to an LLVM IR 8764 // intrinsic. 8765 F = CGM.getIntrinsic(IntID, OverloadedTy); 8766 8767 // Pass 0 when the offset is missing. This can only be applied when using 8768 // the "vector base" addressing mode for which ACLE allows no offset. The 8769 // corresponding LLVM IR always requires an offset. 8770 if (Ops.size() == 3) { 8771 assert(Ops[1]->getType()->isVectorTy() && "Scalar base requires an offset"); 8772 Ops.push_back(ConstantInt::get(Int64Ty, 0)); 8773 } 8774 8775 // Truncation is needed when SrcDataTy != OverloadedTy. In other cases it's 8776 // folded into a nop. 8777 Ops[0] = Builder.CreateTrunc(Ops[0], OverloadedTy); 8778 8779 // At the ACLE level there's only one predicate type, svbool_t, which is 8780 // mapped to <n x 16 x i1>. However, this might be incompatible with the 8781 // actual type being stored. For example, when storing doubles (i64) the 8782 // predicated should be <n x 2 x i1> instead. At the IR level the type of 8783 // the predicate and the data being stored must match. Cast accordingly. 8784 Ops[1] = EmitSVEPredicateCast(Ops[1], OverloadedTy); 8785 8786 // For "vector base, scalar index" scale the index so that it becomes a 8787 // scalar offset. 8788 if (!TypeFlags.isByteIndexed() && Ops[2]->getType()->isVectorTy()) { 8789 unsigned BytesPerElt = 8790 OverloadedTy->getElementType()->getScalarSizeInBits() / 8; 8791 Value *Scale = ConstantInt::get(Int64Ty, BytesPerElt); 8792 Ops[3] = Builder.CreateMul(Ops[3], Scale); 8793 } 8794 8795 return Builder.CreateCall(F, Ops); 8796 } 8797 8798 Value *CodeGenFunction::EmitSVEGatherPrefetch(const SVETypeFlags &TypeFlags, 8799 SmallVectorImpl<Value *> &Ops, 8800 unsigned IntID) { 8801 // The gather prefetches are overloaded on the vector input - this can either 8802 // be the vector of base addresses or vector of offsets. 8803 auto *OverloadedTy = dyn_cast<llvm::ScalableVectorType>(Ops[1]->getType()); 8804 if (!OverloadedTy) 8805 OverloadedTy = cast<llvm::ScalableVectorType>(Ops[2]->getType()); 8806 8807 // Cast the predicate from svbool_t to the right number of elements. 8808 Ops[0] = EmitSVEPredicateCast(Ops[0], OverloadedTy); 8809 8810 // vector + imm addressing modes 8811 if (Ops[1]->getType()->isVectorTy()) { 8812 if (Ops.size() == 3) { 8813 // Pass 0 for 'vector+imm' when the index is omitted. 8814 Ops.push_back(ConstantInt::get(Int64Ty, 0)); 8815 8816 // The sv_prfop is the last operand in the builtin and IR intrinsic. 8817 std::swap(Ops[2], Ops[3]); 8818 } else { 8819 // Index needs to be passed as scaled offset. 8820 llvm::Type *MemEltTy = SVEBuiltinMemEltTy(TypeFlags); 8821 unsigned BytesPerElt = MemEltTy->getPrimitiveSizeInBits() / 8; 8822 Value *Scale = ConstantInt::get(Int64Ty, BytesPerElt); 8823 Ops[2] = Builder.CreateMul(Ops[2], Scale); 8824 } 8825 } 8826 8827 Function *F = CGM.getIntrinsic(IntID, OverloadedTy); 8828 return Builder.CreateCall(F, Ops); 8829 } 8830 8831 Value *CodeGenFunction::EmitSVEStructLoad(const SVETypeFlags &TypeFlags, 8832 SmallVectorImpl<Value*> &Ops, 8833 unsigned IntID) { 8834 llvm::ScalableVectorType *VTy = getSVEType(TypeFlags); 8835 auto VecPtrTy = llvm::PointerType::getUnqual(VTy); 8836 auto EltPtrTy = llvm::PointerType::getUnqual(VTy->getElementType()); 8837 8838 unsigned N; 8839 switch (IntID) { 8840 case Intrinsic::aarch64_sve_ld2: 8841 N = 2; 8842 break; 8843 case Intrinsic::aarch64_sve_ld3: 8844 N = 3; 8845 break; 8846 case Intrinsic::aarch64_sve_ld4: 8847 N = 4; 8848 break; 8849 default: 8850 llvm_unreachable("unknown intrinsic!"); 8851 } 8852 auto RetTy = llvm::VectorType::get(VTy->getElementType(), 8853 VTy->getElementCount() * N); 8854 8855 Value *Predicate = EmitSVEPredicateCast(Ops[0], VTy); 8856 Value *BasePtr= Builder.CreateBitCast(Ops[1], VecPtrTy); 8857 Value *Offset = Ops.size() > 2 ? Ops[2] : Builder.getInt32(0); 8858 BasePtr = Builder.CreateGEP(VTy, BasePtr, Offset); 8859 BasePtr = Builder.CreateBitCast(BasePtr, EltPtrTy); 8860 8861 Function *F = CGM.getIntrinsic(IntID, {RetTy, Predicate->getType()}); 8862 return Builder.CreateCall(F, { Predicate, BasePtr }); 8863 } 8864 8865 Value *CodeGenFunction::EmitSVEStructStore(const SVETypeFlags &TypeFlags, 8866 SmallVectorImpl<Value*> &Ops, 8867 unsigned IntID) { 8868 llvm::ScalableVectorType *VTy = getSVEType(TypeFlags); 8869 auto VecPtrTy = llvm::PointerType::getUnqual(VTy); 8870 auto EltPtrTy = llvm::PointerType::getUnqual(VTy->getElementType()); 8871 8872 unsigned N; 8873 switch (IntID) { 8874 case Intrinsic::aarch64_sve_st2: 8875 N = 2; 8876 break; 8877 case Intrinsic::aarch64_sve_st3: 8878 N = 3; 8879 break; 8880 case Intrinsic::aarch64_sve_st4: 8881 N = 4; 8882 break; 8883 default: 8884 llvm_unreachable("unknown intrinsic!"); 8885 } 8886 auto TupleTy = 8887 llvm::VectorType::get(VTy->getElementType(), VTy->getElementCount() * N); 8888 8889 Value *Predicate = EmitSVEPredicateCast(Ops[0], VTy); 8890 Value *BasePtr = Builder.CreateBitCast(Ops[1], VecPtrTy); 8891 Value *Offset = Ops.size() > 3 ? Ops[2] : Builder.getInt32(0); 8892 Value *Val = Ops.back(); 8893 BasePtr = Builder.CreateGEP(VTy, BasePtr, Offset); 8894 BasePtr = Builder.CreateBitCast(BasePtr, EltPtrTy); 8895 8896 // The llvm.aarch64.sve.st2/3/4 intrinsics take legal part vectors, so we 8897 // need to break up the tuple vector. 8898 SmallVector<llvm::Value*, 5> Operands; 8899 Function *FExtr = 8900 CGM.getIntrinsic(Intrinsic::aarch64_sve_tuple_get, {VTy, TupleTy}); 8901 for (unsigned I = 0; I < N; ++I) 8902 Operands.push_back(Builder.CreateCall(FExtr, {Val, Builder.getInt32(I)})); 8903 Operands.append({Predicate, BasePtr}); 8904 8905 Function *F = CGM.getIntrinsic(IntID, { VTy }); 8906 return Builder.CreateCall(F, Operands); 8907 } 8908 8909 // SVE2's svpmullb and svpmullt builtins are similar to the svpmullb_pair and 8910 // svpmullt_pair intrinsics, with the exception that their results are bitcast 8911 // to a wider type. 8912 Value *CodeGenFunction::EmitSVEPMull(const SVETypeFlags &TypeFlags, 8913 SmallVectorImpl<Value *> &Ops, 8914 unsigned BuiltinID) { 8915 // Splat scalar operand to vector (intrinsics with _n infix) 8916 if (TypeFlags.hasSplatOperand()) { 8917 unsigned OpNo = TypeFlags.getSplatOperand(); 8918 Ops[OpNo] = EmitSVEDupX(Ops[OpNo]); 8919 } 8920 8921 // The pair-wise function has a narrower overloaded type. 8922 Function *F = CGM.getIntrinsic(BuiltinID, Ops[0]->getType()); 8923 Value *Call = Builder.CreateCall(F, {Ops[0], Ops[1]}); 8924 8925 // Now bitcast to the wider result type. 8926 llvm::ScalableVectorType *Ty = getSVEType(TypeFlags); 8927 return EmitSVEReinterpret(Call, Ty); 8928 } 8929 8930 Value *CodeGenFunction::EmitSVEMovl(const SVETypeFlags &TypeFlags, 8931 ArrayRef<Value *> Ops, unsigned BuiltinID) { 8932 llvm::Type *OverloadedTy = getSVEType(TypeFlags); 8933 Function *F = CGM.getIntrinsic(BuiltinID, OverloadedTy); 8934 return Builder.CreateCall(F, {Ops[0], Builder.getInt32(0)}); 8935 } 8936 8937 Value *CodeGenFunction::EmitSVEPrefetchLoad(const SVETypeFlags &TypeFlags, 8938 SmallVectorImpl<Value *> &Ops, 8939 unsigned BuiltinID) { 8940 auto *MemEltTy = SVEBuiltinMemEltTy(TypeFlags); 8941 auto *VectorTy = getSVEVectorForElementType(MemEltTy); 8942 auto *MemoryTy = llvm::ScalableVectorType::get(MemEltTy, VectorTy); 8943 8944 Value *Predicate = EmitSVEPredicateCast(Ops[0], MemoryTy); 8945 Value *BasePtr = Ops[1]; 8946 8947 // Implement the index operand if not omitted. 8948 if (Ops.size() > 3) { 8949 BasePtr = Builder.CreateBitCast(BasePtr, MemoryTy->getPointerTo()); 8950 BasePtr = Builder.CreateGEP(MemoryTy, BasePtr, Ops[2]); 8951 } 8952 8953 // Prefetch intriniscs always expect an i8* 8954 BasePtr = Builder.CreateBitCast(BasePtr, llvm::PointerType::getUnqual(Int8Ty)); 8955 Value *PrfOp = Ops.back(); 8956 8957 Function *F = CGM.getIntrinsic(BuiltinID, Predicate->getType()); 8958 return Builder.CreateCall(F, {Predicate, BasePtr, PrfOp}); 8959 } 8960 8961 Value *CodeGenFunction::EmitSVEMaskedLoad(const CallExpr *E, 8962 llvm::Type *ReturnTy, 8963 SmallVectorImpl<Value *> &Ops, 8964 unsigned BuiltinID, 8965 bool IsZExtReturn) { 8966 QualType LangPTy = E->getArg(1)->getType(); 8967 llvm::Type *MemEltTy = CGM.getTypes().ConvertType( 8968 LangPTy->castAs<PointerType>()->getPointeeType()); 8969 8970 // The vector type that is returned may be different from the 8971 // eventual type loaded from memory. 8972 auto VectorTy = cast<llvm::ScalableVectorType>(ReturnTy); 8973 auto MemoryTy = llvm::ScalableVectorType::get(MemEltTy, VectorTy); 8974 8975 Value *Predicate = EmitSVEPredicateCast(Ops[0], MemoryTy); 8976 Value *BasePtr = Builder.CreateBitCast(Ops[1], MemoryTy->getPointerTo()); 8977 Value *Offset = Ops.size() > 2 ? Ops[2] : Builder.getInt32(0); 8978 BasePtr = Builder.CreateGEP(MemoryTy, BasePtr, Offset); 8979 8980 BasePtr = Builder.CreateBitCast(BasePtr, MemEltTy->getPointerTo()); 8981 Function *F = CGM.getIntrinsic(BuiltinID, MemoryTy); 8982 Value *Load = Builder.CreateCall(F, {Predicate, BasePtr}); 8983 8984 return IsZExtReturn ? Builder.CreateZExt(Load, VectorTy) 8985 : Builder.CreateSExt(Load, VectorTy); 8986 } 8987 8988 Value *CodeGenFunction::EmitSVEMaskedStore(const CallExpr *E, 8989 SmallVectorImpl<Value *> &Ops, 8990 unsigned BuiltinID) { 8991 QualType LangPTy = E->getArg(1)->getType(); 8992 llvm::Type *MemEltTy = CGM.getTypes().ConvertType( 8993 LangPTy->castAs<PointerType>()->getPointeeType()); 8994 8995 // The vector type that is stored may be different from the 8996 // eventual type stored to memory. 8997 auto VectorTy = cast<llvm::ScalableVectorType>(Ops.back()->getType()); 8998 auto MemoryTy = llvm::ScalableVectorType::get(MemEltTy, VectorTy); 8999 9000 Value *Predicate = EmitSVEPredicateCast(Ops[0], MemoryTy); 9001 Value *BasePtr = Builder.CreateBitCast(Ops[1], MemoryTy->getPointerTo()); 9002 Value *Offset = Ops.size() == 4 ? Ops[2] : Builder.getInt32(0); 9003 BasePtr = Builder.CreateGEP(MemoryTy, BasePtr, Offset); 9004 9005 // Last value is always the data 9006 llvm::Value *Val = Builder.CreateTrunc(Ops.back(), MemoryTy); 9007 9008 BasePtr = Builder.CreateBitCast(BasePtr, MemEltTy->getPointerTo()); 9009 Function *F = CGM.getIntrinsic(BuiltinID, MemoryTy); 9010 return Builder.CreateCall(F, {Val, Predicate, BasePtr}); 9011 } 9012 9013 // Limit the usage of scalable llvm IR generated by the ACLE by using the 9014 // sve dup.x intrinsic instead of IRBuilder::CreateVectorSplat. 9015 Value *CodeGenFunction::EmitSVEDupX(Value *Scalar, llvm::Type *Ty) { 9016 auto F = CGM.getIntrinsic(Intrinsic::aarch64_sve_dup_x, Ty); 9017 return Builder.CreateCall(F, Scalar); 9018 } 9019 9020 Value *CodeGenFunction::EmitSVEDupX(Value* Scalar) { 9021 return EmitSVEDupX(Scalar, getSVEVectorForElementType(Scalar->getType())); 9022 } 9023 9024 Value *CodeGenFunction::EmitSVEReinterpret(Value *Val, llvm::Type *Ty) { 9025 // FIXME: For big endian this needs an additional REV, or needs a separate 9026 // intrinsic that is code-generated as a no-op, because the LLVM bitcast 9027 // instruction is defined as 'bitwise' equivalent from memory point of 9028 // view (when storing/reloading), whereas the svreinterpret builtin 9029 // implements bitwise equivalent cast from register point of view. 9030 // LLVM CodeGen for a bitcast must add an explicit REV for big-endian. 9031 return Builder.CreateBitCast(Val, Ty); 9032 } 9033 9034 static void InsertExplicitZeroOperand(CGBuilderTy &Builder, llvm::Type *Ty, 9035 SmallVectorImpl<Value *> &Ops) { 9036 auto *SplatZero = Constant::getNullValue(Ty); 9037 Ops.insert(Ops.begin(), SplatZero); 9038 } 9039 9040 static void InsertExplicitUndefOperand(CGBuilderTy &Builder, llvm::Type *Ty, 9041 SmallVectorImpl<Value *> &Ops) { 9042 auto *SplatUndef = UndefValue::get(Ty); 9043 Ops.insert(Ops.begin(), SplatUndef); 9044 } 9045 9046 SmallVector<llvm::Type *, 2> 9047 CodeGenFunction::getSVEOverloadTypes(const SVETypeFlags &TypeFlags, 9048 llvm::Type *ResultType, 9049 ArrayRef<Value *> Ops) { 9050 if (TypeFlags.isOverloadNone()) 9051 return {}; 9052 9053 llvm::Type *DefaultType = getSVEType(TypeFlags); 9054 9055 if (TypeFlags.isOverloadWhile()) 9056 return {DefaultType, Ops[1]->getType()}; 9057 9058 if (TypeFlags.isOverloadWhileRW()) 9059 return {getSVEPredType(TypeFlags), Ops[0]->getType()}; 9060 9061 if (TypeFlags.isOverloadCvt() || TypeFlags.isTupleSet()) 9062 return {Ops[0]->getType(), Ops.back()->getType()}; 9063 9064 if (TypeFlags.isTupleCreate() || TypeFlags.isTupleGet()) 9065 return {ResultType, Ops[0]->getType()}; 9066 9067 assert(TypeFlags.isOverloadDefault() && "Unexpected value for overloads"); 9068 return {DefaultType}; 9069 } 9070 9071 Value *CodeGenFunction::EmitAArch64SVEBuiltinExpr(unsigned BuiltinID, 9072 const CallExpr *E) { 9073 // Find out if any arguments are required to be integer constant expressions. 9074 unsigned ICEArguments = 0; 9075 ASTContext::GetBuiltinTypeError Error; 9076 getContext().GetBuiltinType(BuiltinID, Error, &ICEArguments); 9077 assert(Error == ASTContext::GE_None && "Should not codegen an error"); 9078 9079 llvm::Type *Ty = ConvertType(E->getType()); 9080 if (BuiltinID >= SVE::BI__builtin_sve_reinterpret_s8_s8 && 9081 BuiltinID <= SVE::BI__builtin_sve_reinterpret_f64_f64) { 9082 Value *Val = EmitScalarExpr(E->getArg(0)); 9083 return EmitSVEReinterpret(Val, Ty); 9084 } 9085 9086 llvm::SmallVector<Value *, 4> Ops; 9087 for (unsigned i = 0, e = E->getNumArgs(); i != e; i++) { 9088 if ((ICEArguments & (1 << i)) == 0) 9089 Ops.push_back(EmitScalarExpr(E->getArg(i))); 9090 else { 9091 // If this is required to be a constant, constant fold it so that we know 9092 // that the generated intrinsic gets a ConstantInt. 9093 Optional<llvm::APSInt> Result = 9094 E->getArg(i)->getIntegerConstantExpr(getContext()); 9095 assert(Result && "Expected argument to be a constant"); 9096 9097 // Immediates for SVE llvm intrinsics are always 32bit. We can safely 9098 // truncate because the immediate has been range checked and no valid 9099 // immediate requires more than a handful of bits. 9100 *Result = Result->extOrTrunc(32); 9101 Ops.push_back(llvm::ConstantInt::get(getLLVMContext(), *Result)); 9102 } 9103 } 9104 9105 auto *Builtin = findARMVectorIntrinsicInMap(AArch64SVEIntrinsicMap, BuiltinID, 9106 AArch64SVEIntrinsicsProvenSorted); 9107 SVETypeFlags TypeFlags(Builtin->TypeModifier); 9108 if (TypeFlags.isLoad()) 9109 return EmitSVEMaskedLoad(E, Ty, Ops, Builtin->LLVMIntrinsic, 9110 TypeFlags.isZExtReturn()); 9111 else if (TypeFlags.isStore()) 9112 return EmitSVEMaskedStore(E, Ops, Builtin->LLVMIntrinsic); 9113 else if (TypeFlags.isGatherLoad()) 9114 return EmitSVEGatherLoad(TypeFlags, Ops, Builtin->LLVMIntrinsic); 9115 else if (TypeFlags.isScatterStore()) 9116 return EmitSVEScatterStore(TypeFlags, Ops, Builtin->LLVMIntrinsic); 9117 else if (TypeFlags.isPrefetch()) 9118 return EmitSVEPrefetchLoad(TypeFlags, Ops, Builtin->LLVMIntrinsic); 9119 else if (TypeFlags.isGatherPrefetch()) 9120 return EmitSVEGatherPrefetch(TypeFlags, Ops, Builtin->LLVMIntrinsic); 9121 else if (TypeFlags.isStructLoad()) 9122 return EmitSVEStructLoad(TypeFlags, Ops, Builtin->LLVMIntrinsic); 9123 else if (TypeFlags.isStructStore()) 9124 return EmitSVEStructStore(TypeFlags, Ops, Builtin->LLVMIntrinsic); 9125 else if (TypeFlags.isUndef()) 9126 return UndefValue::get(Ty); 9127 else if (Builtin->LLVMIntrinsic != 0) { 9128 if (TypeFlags.getMergeType() == SVETypeFlags::MergeZeroExp) 9129 InsertExplicitZeroOperand(Builder, Ty, Ops); 9130 9131 if (TypeFlags.getMergeType() == SVETypeFlags::MergeAnyExp) 9132 InsertExplicitUndefOperand(Builder, Ty, Ops); 9133 9134 // Some ACLE builtins leave out the argument to specify the predicate 9135 // pattern, which is expected to be expanded to an SV_ALL pattern. 9136 if (TypeFlags.isAppendSVALL()) 9137 Ops.push_back(Builder.getInt32(/*SV_ALL*/ 31)); 9138 if (TypeFlags.isInsertOp1SVALL()) 9139 Ops.insert(&Ops[1], Builder.getInt32(/*SV_ALL*/ 31)); 9140 9141 // Predicates must match the main datatype. 9142 for (unsigned i = 0, e = Ops.size(); i != e; ++i) 9143 if (auto PredTy = dyn_cast<llvm::VectorType>(Ops[i]->getType())) 9144 if (PredTy->getElementType()->isIntegerTy(1)) 9145 Ops[i] = EmitSVEPredicateCast(Ops[i], getSVEType(TypeFlags)); 9146 9147 // Splat scalar operand to vector (intrinsics with _n infix) 9148 if (TypeFlags.hasSplatOperand()) { 9149 unsigned OpNo = TypeFlags.getSplatOperand(); 9150 Ops[OpNo] = EmitSVEDupX(Ops[OpNo]); 9151 } 9152 9153 if (TypeFlags.isReverseCompare()) 9154 std::swap(Ops[1], Ops[2]); 9155 9156 if (TypeFlags.isReverseUSDOT()) 9157 std::swap(Ops[1], Ops[2]); 9158 9159 // Predicated intrinsics with _z suffix need a select w/ zeroinitializer. 9160 if (TypeFlags.getMergeType() == SVETypeFlags::MergeZero) { 9161 llvm::Type *OpndTy = Ops[1]->getType(); 9162 auto *SplatZero = Constant::getNullValue(OpndTy); 9163 Function *Sel = CGM.getIntrinsic(Intrinsic::aarch64_sve_sel, OpndTy); 9164 Ops[1] = Builder.CreateCall(Sel, {Ops[0], Ops[1], SplatZero}); 9165 } 9166 9167 Function *F = CGM.getIntrinsic(Builtin->LLVMIntrinsic, 9168 getSVEOverloadTypes(TypeFlags, Ty, Ops)); 9169 Value *Call = Builder.CreateCall(F, Ops); 9170 9171 // Predicate results must be converted to svbool_t. 9172 if (auto PredTy = dyn_cast<llvm::VectorType>(Call->getType())) 9173 if (PredTy->getScalarType()->isIntegerTy(1)) 9174 Call = EmitSVEPredicateCast(Call, cast<llvm::ScalableVectorType>(Ty)); 9175 9176 return Call; 9177 } 9178 9179 switch (BuiltinID) { 9180 default: 9181 return nullptr; 9182 9183 case SVE::BI__builtin_sve_svmov_b_z: { 9184 // svmov_b_z(pg, op) <=> svand_b_z(pg, op, op) 9185 SVETypeFlags TypeFlags(Builtin->TypeModifier); 9186 llvm::Type* OverloadedTy = getSVEType(TypeFlags); 9187 Function *F = CGM.getIntrinsic(Intrinsic::aarch64_sve_and_z, OverloadedTy); 9188 return Builder.CreateCall(F, {Ops[0], Ops[1], Ops[1]}); 9189 } 9190 9191 case SVE::BI__builtin_sve_svnot_b_z: { 9192 // svnot_b_z(pg, op) <=> sveor_b_z(pg, op, pg) 9193 SVETypeFlags TypeFlags(Builtin->TypeModifier); 9194 llvm::Type* OverloadedTy = getSVEType(TypeFlags); 9195 Function *F = CGM.getIntrinsic(Intrinsic::aarch64_sve_eor_z, OverloadedTy); 9196 return Builder.CreateCall(F, {Ops[0], Ops[1], Ops[0]}); 9197 } 9198 9199 case SVE::BI__builtin_sve_svmovlb_u16: 9200 case SVE::BI__builtin_sve_svmovlb_u32: 9201 case SVE::BI__builtin_sve_svmovlb_u64: 9202 return EmitSVEMovl(TypeFlags, Ops, Intrinsic::aarch64_sve_ushllb); 9203 9204 case SVE::BI__builtin_sve_svmovlb_s16: 9205 case SVE::BI__builtin_sve_svmovlb_s32: 9206 case SVE::BI__builtin_sve_svmovlb_s64: 9207 return EmitSVEMovl(TypeFlags, Ops, Intrinsic::aarch64_sve_sshllb); 9208 9209 case SVE::BI__builtin_sve_svmovlt_u16: 9210 case SVE::BI__builtin_sve_svmovlt_u32: 9211 case SVE::BI__builtin_sve_svmovlt_u64: 9212 return EmitSVEMovl(TypeFlags, Ops, Intrinsic::aarch64_sve_ushllt); 9213 9214 case SVE::BI__builtin_sve_svmovlt_s16: 9215 case SVE::BI__builtin_sve_svmovlt_s32: 9216 case SVE::BI__builtin_sve_svmovlt_s64: 9217 return EmitSVEMovl(TypeFlags, Ops, Intrinsic::aarch64_sve_sshllt); 9218 9219 case SVE::BI__builtin_sve_svpmullt_u16: 9220 case SVE::BI__builtin_sve_svpmullt_u64: 9221 case SVE::BI__builtin_sve_svpmullt_n_u16: 9222 case SVE::BI__builtin_sve_svpmullt_n_u64: 9223 return EmitSVEPMull(TypeFlags, Ops, Intrinsic::aarch64_sve_pmullt_pair); 9224 9225 case SVE::BI__builtin_sve_svpmullb_u16: 9226 case SVE::BI__builtin_sve_svpmullb_u64: 9227 case SVE::BI__builtin_sve_svpmullb_n_u16: 9228 case SVE::BI__builtin_sve_svpmullb_n_u64: 9229 return EmitSVEPMull(TypeFlags, Ops, Intrinsic::aarch64_sve_pmullb_pair); 9230 9231 case SVE::BI__builtin_sve_svdup_n_b8: 9232 case SVE::BI__builtin_sve_svdup_n_b16: 9233 case SVE::BI__builtin_sve_svdup_n_b32: 9234 case SVE::BI__builtin_sve_svdup_n_b64: { 9235 Value *CmpNE = 9236 Builder.CreateICmpNE(Ops[0], Constant::getNullValue(Ops[0]->getType())); 9237 llvm::ScalableVectorType *OverloadedTy = getSVEType(TypeFlags); 9238 Value *Dup = EmitSVEDupX(CmpNE, OverloadedTy); 9239 return EmitSVEPredicateCast(Dup, cast<llvm::ScalableVectorType>(Ty)); 9240 } 9241 9242 case SVE::BI__builtin_sve_svdupq_n_b8: 9243 case SVE::BI__builtin_sve_svdupq_n_b16: 9244 case SVE::BI__builtin_sve_svdupq_n_b32: 9245 case SVE::BI__builtin_sve_svdupq_n_b64: 9246 case SVE::BI__builtin_sve_svdupq_n_u8: 9247 case SVE::BI__builtin_sve_svdupq_n_s8: 9248 case SVE::BI__builtin_sve_svdupq_n_u64: 9249 case SVE::BI__builtin_sve_svdupq_n_f64: 9250 case SVE::BI__builtin_sve_svdupq_n_s64: 9251 case SVE::BI__builtin_sve_svdupq_n_u16: 9252 case SVE::BI__builtin_sve_svdupq_n_f16: 9253 case SVE::BI__builtin_sve_svdupq_n_bf16: 9254 case SVE::BI__builtin_sve_svdupq_n_s16: 9255 case SVE::BI__builtin_sve_svdupq_n_u32: 9256 case SVE::BI__builtin_sve_svdupq_n_f32: 9257 case SVE::BI__builtin_sve_svdupq_n_s32: { 9258 // These builtins are implemented by storing each element to an array and using 9259 // ld1rq to materialize a vector. 9260 unsigned NumOpnds = Ops.size(); 9261 9262 bool IsBoolTy = 9263 cast<llvm::VectorType>(Ty)->getElementType()->isIntegerTy(1); 9264 9265 // For svdupq_n_b* the element type of is an integer of type 128/numelts, 9266 // so that the compare can use the width that is natural for the expected 9267 // number of predicate lanes. 9268 llvm::Type *EltTy = Ops[0]->getType(); 9269 if (IsBoolTy) 9270 EltTy = IntegerType::get(getLLVMContext(), SVEBitsPerBlock / NumOpnds); 9271 9272 SmallVector<llvm::Value *, 16> VecOps; 9273 for (unsigned I = 0; I < NumOpnds; ++I) 9274 VecOps.push_back(Builder.CreateZExt(Ops[I], EltTy)); 9275 Value *Vec = BuildVector(VecOps); 9276 9277 SVETypeFlags TypeFlags(Builtin->TypeModifier); 9278 Value *Pred = EmitSVEAllTruePred(TypeFlags); 9279 9280 llvm::Type *OverloadedTy = getSVEVectorForElementType(EltTy); 9281 Value *InsertSubVec = Builder.CreateInsertVector( 9282 OverloadedTy, UndefValue::get(OverloadedTy), Vec, Builder.getInt64(0)); 9283 9284 Function *F = 9285 CGM.getIntrinsic(Intrinsic::aarch64_sve_dupq_lane, OverloadedTy); 9286 Value *DupQLane = 9287 Builder.CreateCall(F, {InsertSubVec, Builder.getInt64(0)}); 9288 9289 if (!IsBoolTy) 9290 return DupQLane; 9291 9292 // For svdupq_n_b* we need to add an additional 'cmpne' with '0'. 9293 F = CGM.getIntrinsic(NumOpnds == 2 ? Intrinsic::aarch64_sve_cmpne 9294 : Intrinsic::aarch64_sve_cmpne_wide, 9295 OverloadedTy); 9296 Value *Call = Builder.CreateCall( 9297 F, {Pred, DupQLane, EmitSVEDupX(Builder.getInt64(0))}); 9298 return EmitSVEPredicateCast(Call, cast<llvm::ScalableVectorType>(Ty)); 9299 } 9300 9301 case SVE::BI__builtin_sve_svpfalse_b: 9302 return ConstantInt::getFalse(Ty); 9303 9304 case SVE::BI__builtin_sve_svlen_bf16: 9305 case SVE::BI__builtin_sve_svlen_f16: 9306 case SVE::BI__builtin_sve_svlen_f32: 9307 case SVE::BI__builtin_sve_svlen_f64: 9308 case SVE::BI__builtin_sve_svlen_s8: 9309 case SVE::BI__builtin_sve_svlen_s16: 9310 case SVE::BI__builtin_sve_svlen_s32: 9311 case SVE::BI__builtin_sve_svlen_s64: 9312 case SVE::BI__builtin_sve_svlen_u8: 9313 case SVE::BI__builtin_sve_svlen_u16: 9314 case SVE::BI__builtin_sve_svlen_u32: 9315 case SVE::BI__builtin_sve_svlen_u64: { 9316 SVETypeFlags TF(Builtin->TypeModifier); 9317 auto VTy = cast<llvm::VectorType>(getSVEType(TF)); 9318 auto *NumEls = 9319 llvm::ConstantInt::get(Ty, VTy->getElementCount().getKnownMinValue()); 9320 9321 Function *F = CGM.getIntrinsic(Intrinsic::vscale, Ty); 9322 return Builder.CreateMul(NumEls, Builder.CreateCall(F)); 9323 } 9324 9325 case SVE::BI__builtin_sve_svtbl2_u8: 9326 case SVE::BI__builtin_sve_svtbl2_s8: 9327 case SVE::BI__builtin_sve_svtbl2_u16: 9328 case SVE::BI__builtin_sve_svtbl2_s16: 9329 case SVE::BI__builtin_sve_svtbl2_u32: 9330 case SVE::BI__builtin_sve_svtbl2_s32: 9331 case SVE::BI__builtin_sve_svtbl2_u64: 9332 case SVE::BI__builtin_sve_svtbl2_s64: 9333 case SVE::BI__builtin_sve_svtbl2_f16: 9334 case SVE::BI__builtin_sve_svtbl2_bf16: 9335 case SVE::BI__builtin_sve_svtbl2_f32: 9336 case SVE::BI__builtin_sve_svtbl2_f64: { 9337 SVETypeFlags TF(Builtin->TypeModifier); 9338 auto VTy = cast<llvm::VectorType>(getSVEType(TF)); 9339 auto TupleTy = llvm::VectorType::getDoubleElementsVectorType(VTy); 9340 Function *FExtr = 9341 CGM.getIntrinsic(Intrinsic::aarch64_sve_tuple_get, {VTy, TupleTy}); 9342 Value *V0 = Builder.CreateCall(FExtr, {Ops[0], Builder.getInt32(0)}); 9343 Value *V1 = Builder.CreateCall(FExtr, {Ops[0], Builder.getInt32(1)}); 9344 Function *F = CGM.getIntrinsic(Intrinsic::aarch64_sve_tbl2, VTy); 9345 return Builder.CreateCall(F, {V0, V1, Ops[1]}); 9346 } 9347 9348 case SVE::BI__builtin_sve_svset_neonq_s8: 9349 case SVE::BI__builtin_sve_svset_neonq_s16: 9350 case SVE::BI__builtin_sve_svset_neonq_s32: 9351 case SVE::BI__builtin_sve_svset_neonq_s64: 9352 case SVE::BI__builtin_sve_svset_neonq_u8: 9353 case SVE::BI__builtin_sve_svset_neonq_u16: 9354 case SVE::BI__builtin_sve_svset_neonq_u32: 9355 case SVE::BI__builtin_sve_svset_neonq_u64: 9356 case SVE::BI__builtin_sve_svset_neonq_f16: 9357 case SVE::BI__builtin_sve_svset_neonq_f32: 9358 case SVE::BI__builtin_sve_svset_neonq_f64: 9359 case SVE::BI__builtin_sve_svset_neonq_bf16: { 9360 return Builder.CreateInsertVector(Ty, Ops[0], Ops[1], Builder.getInt64(0)); 9361 } 9362 9363 case SVE::BI__builtin_sve_svget_neonq_s8: 9364 case SVE::BI__builtin_sve_svget_neonq_s16: 9365 case SVE::BI__builtin_sve_svget_neonq_s32: 9366 case SVE::BI__builtin_sve_svget_neonq_s64: 9367 case SVE::BI__builtin_sve_svget_neonq_u8: 9368 case SVE::BI__builtin_sve_svget_neonq_u16: 9369 case SVE::BI__builtin_sve_svget_neonq_u32: 9370 case SVE::BI__builtin_sve_svget_neonq_u64: 9371 case SVE::BI__builtin_sve_svget_neonq_f16: 9372 case SVE::BI__builtin_sve_svget_neonq_f32: 9373 case SVE::BI__builtin_sve_svget_neonq_f64: 9374 case SVE::BI__builtin_sve_svget_neonq_bf16: { 9375 return Builder.CreateExtractVector(Ty, Ops[0], Builder.getInt64(0)); 9376 } 9377 9378 case SVE::BI__builtin_sve_svdup_neonq_s8: 9379 case SVE::BI__builtin_sve_svdup_neonq_s16: 9380 case SVE::BI__builtin_sve_svdup_neonq_s32: 9381 case SVE::BI__builtin_sve_svdup_neonq_s64: 9382 case SVE::BI__builtin_sve_svdup_neonq_u8: 9383 case SVE::BI__builtin_sve_svdup_neonq_u16: 9384 case SVE::BI__builtin_sve_svdup_neonq_u32: 9385 case SVE::BI__builtin_sve_svdup_neonq_u64: 9386 case SVE::BI__builtin_sve_svdup_neonq_f16: 9387 case SVE::BI__builtin_sve_svdup_neonq_f32: 9388 case SVE::BI__builtin_sve_svdup_neonq_f64: 9389 case SVE::BI__builtin_sve_svdup_neonq_bf16: { 9390 Value *Insert = Builder.CreateInsertVector(Ty, UndefValue::get(Ty), Ops[0], 9391 Builder.getInt64(0)); 9392 return Builder.CreateIntrinsic(Intrinsic::aarch64_sve_dupq_lane, {Ty}, 9393 {Insert, Builder.getInt64(0)}); 9394 } 9395 } 9396 9397 /// Should not happen 9398 return nullptr; 9399 } 9400 9401 Value *CodeGenFunction::EmitAArch64BuiltinExpr(unsigned BuiltinID, 9402 const CallExpr *E, 9403 llvm::Triple::ArchType Arch) { 9404 if (BuiltinID >= AArch64::FirstSVEBuiltin && 9405 BuiltinID <= AArch64::LastSVEBuiltin) 9406 return EmitAArch64SVEBuiltinExpr(BuiltinID, E); 9407 9408 unsigned HintID = static_cast<unsigned>(-1); 9409 switch (BuiltinID) { 9410 default: break; 9411 case AArch64::BI__builtin_arm_nop: 9412 HintID = 0; 9413 break; 9414 case AArch64::BI__builtin_arm_yield: 9415 case AArch64::BI__yield: 9416 HintID = 1; 9417 break; 9418 case AArch64::BI__builtin_arm_wfe: 9419 case AArch64::BI__wfe: 9420 HintID = 2; 9421 break; 9422 case AArch64::BI__builtin_arm_wfi: 9423 case AArch64::BI__wfi: 9424 HintID = 3; 9425 break; 9426 case AArch64::BI__builtin_arm_sev: 9427 case AArch64::BI__sev: 9428 HintID = 4; 9429 break; 9430 case AArch64::BI__builtin_arm_sevl: 9431 case AArch64::BI__sevl: 9432 HintID = 5; 9433 break; 9434 } 9435 9436 if (HintID != static_cast<unsigned>(-1)) { 9437 Function *F = CGM.getIntrinsic(Intrinsic::aarch64_hint); 9438 return Builder.CreateCall(F, llvm::ConstantInt::get(Int32Ty, HintID)); 9439 } 9440 9441 if (BuiltinID == AArch64::BI__builtin_arm_prefetch) { 9442 Value *Address = EmitScalarExpr(E->getArg(0)); 9443 Value *RW = EmitScalarExpr(E->getArg(1)); 9444 Value *CacheLevel = EmitScalarExpr(E->getArg(2)); 9445 Value *RetentionPolicy = EmitScalarExpr(E->getArg(3)); 9446 Value *IsData = EmitScalarExpr(E->getArg(4)); 9447 9448 Value *Locality = nullptr; 9449 if (cast<llvm::ConstantInt>(RetentionPolicy)->isZero()) { 9450 // Temporal fetch, needs to convert cache level to locality. 9451 Locality = llvm::ConstantInt::get(Int32Ty, 9452 -cast<llvm::ConstantInt>(CacheLevel)->getValue() + 3); 9453 } else { 9454 // Streaming fetch. 9455 Locality = llvm::ConstantInt::get(Int32Ty, 0); 9456 } 9457 9458 // FIXME: We need AArch64 specific LLVM intrinsic if we want to specify 9459 // PLDL3STRM or PLDL2STRM. 9460 Function *F = CGM.getIntrinsic(Intrinsic::prefetch, Address->getType()); 9461 return Builder.CreateCall(F, {Address, RW, Locality, IsData}); 9462 } 9463 9464 if (BuiltinID == AArch64::BI__builtin_arm_rbit) { 9465 assert((getContext().getTypeSize(E->getType()) == 32) && 9466 "rbit of unusual size!"); 9467 llvm::Value *Arg = EmitScalarExpr(E->getArg(0)); 9468 return Builder.CreateCall( 9469 CGM.getIntrinsic(Intrinsic::bitreverse, Arg->getType()), Arg, "rbit"); 9470 } 9471 if (BuiltinID == AArch64::BI__builtin_arm_rbit64) { 9472 assert((getContext().getTypeSize(E->getType()) == 64) && 9473 "rbit of unusual size!"); 9474 llvm::Value *Arg = EmitScalarExpr(E->getArg(0)); 9475 return Builder.CreateCall( 9476 CGM.getIntrinsic(Intrinsic::bitreverse, Arg->getType()), Arg, "rbit"); 9477 } 9478 9479 if (BuiltinID == AArch64::BI__builtin_arm_cls) { 9480 llvm::Value *Arg = EmitScalarExpr(E->getArg(0)); 9481 return Builder.CreateCall(CGM.getIntrinsic(Intrinsic::aarch64_cls), Arg, 9482 "cls"); 9483 } 9484 if (BuiltinID == AArch64::BI__builtin_arm_cls64) { 9485 llvm::Value *Arg = EmitScalarExpr(E->getArg(0)); 9486 return Builder.CreateCall(CGM.getIntrinsic(Intrinsic::aarch64_cls64), Arg, 9487 "cls"); 9488 } 9489 9490 if (BuiltinID == AArch64::BI__builtin_arm_frint32zf || 9491 BuiltinID == AArch64::BI__builtin_arm_frint32z) { 9492 llvm::Value *Arg = EmitScalarExpr(E->getArg(0)); 9493 llvm::Type *Ty = Arg->getType(); 9494 return Builder.CreateCall(CGM.getIntrinsic(Intrinsic::aarch64_frint32z, Ty), 9495 Arg, "frint32z"); 9496 } 9497 9498 if (BuiltinID == AArch64::BI__builtin_arm_frint64zf || 9499 BuiltinID == AArch64::BI__builtin_arm_frint64z) { 9500 llvm::Value *Arg = EmitScalarExpr(E->getArg(0)); 9501 llvm::Type *Ty = Arg->getType(); 9502 return Builder.CreateCall(CGM.getIntrinsic(Intrinsic::aarch64_frint64z, Ty), 9503 Arg, "frint64z"); 9504 } 9505 9506 if (BuiltinID == AArch64::BI__builtin_arm_frint32xf || 9507 BuiltinID == AArch64::BI__builtin_arm_frint32x) { 9508 llvm::Value *Arg = EmitScalarExpr(E->getArg(0)); 9509 llvm::Type *Ty = Arg->getType(); 9510 return Builder.CreateCall(CGM.getIntrinsic(Intrinsic::aarch64_frint32x, Ty), 9511 Arg, "frint32x"); 9512 } 9513 9514 if (BuiltinID == AArch64::BI__builtin_arm_frint64xf || 9515 BuiltinID == AArch64::BI__builtin_arm_frint64x) { 9516 llvm::Value *Arg = EmitScalarExpr(E->getArg(0)); 9517 llvm::Type *Ty = Arg->getType(); 9518 return Builder.CreateCall(CGM.getIntrinsic(Intrinsic::aarch64_frint64x, Ty), 9519 Arg, "frint64x"); 9520 } 9521 9522 if (BuiltinID == AArch64::BI__builtin_arm_jcvt) { 9523 assert((getContext().getTypeSize(E->getType()) == 32) && 9524 "__jcvt of unusual size!"); 9525 llvm::Value *Arg = EmitScalarExpr(E->getArg(0)); 9526 return Builder.CreateCall( 9527 CGM.getIntrinsic(Intrinsic::aarch64_fjcvtzs), Arg); 9528 } 9529 9530 if (BuiltinID == AArch64::BI__builtin_arm_ld64b || 9531 BuiltinID == AArch64::BI__builtin_arm_st64b || 9532 BuiltinID == AArch64::BI__builtin_arm_st64bv || 9533 BuiltinID == AArch64::BI__builtin_arm_st64bv0) { 9534 llvm::Value *MemAddr = EmitScalarExpr(E->getArg(0)); 9535 llvm::Value *ValPtr = EmitScalarExpr(E->getArg(1)); 9536 9537 if (BuiltinID == AArch64::BI__builtin_arm_ld64b) { 9538 // Load from the address via an LLVM intrinsic, receiving a 9539 // tuple of 8 i64 words, and store each one to ValPtr. 9540 Function *F = CGM.getIntrinsic(Intrinsic::aarch64_ld64b); 9541 llvm::Value *Val = Builder.CreateCall(F, MemAddr); 9542 llvm::Value *ToRet; 9543 for (size_t i = 0; i < 8; i++) { 9544 llvm::Value *ValOffsetPtr = 9545 Builder.CreateGEP(Int64Ty, ValPtr, Builder.getInt32(i)); 9546 Address Addr(ValOffsetPtr, CharUnits::fromQuantity(8)); 9547 ToRet = Builder.CreateStore(Builder.CreateExtractValue(Val, i), Addr); 9548 } 9549 return ToRet; 9550 } else { 9551 // Load 8 i64 words from ValPtr, and store them to the address 9552 // via an LLVM intrinsic. 9553 SmallVector<llvm::Value *, 9> Args; 9554 Args.push_back(MemAddr); 9555 for (size_t i = 0; i < 8; i++) { 9556 llvm::Value *ValOffsetPtr = 9557 Builder.CreateGEP(Int64Ty, ValPtr, Builder.getInt32(i)); 9558 Address Addr(ValOffsetPtr, CharUnits::fromQuantity(8)); 9559 Args.push_back(Builder.CreateLoad(Addr)); 9560 } 9561 9562 auto Intr = (BuiltinID == AArch64::BI__builtin_arm_st64b 9563 ? Intrinsic::aarch64_st64b 9564 : BuiltinID == AArch64::BI__builtin_arm_st64bv 9565 ? Intrinsic::aarch64_st64bv 9566 : Intrinsic::aarch64_st64bv0); 9567 Function *F = CGM.getIntrinsic(Intr); 9568 return Builder.CreateCall(F, Args); 9569 } 9570 } 9571 9572 if (BuiltinID == AArch64::BI__builtin_arm_rndr || 9573 BuiltinID == AArch64::BI__builtin_arm_rndrrs) { 9574 9575 auto Intr = (BuiltinID == AArch64::BI__builtin_arm_rndr 9576 ? Intrinsic::aarch64_rndr 9577 : Intrinsic::aarch64_rndrrs); 9578 Function *F = CGM.getIntrinsic(Intr); 9579 llvm::Value *Val = Builder.CreateCall(F); 9580 Value *RandomValue = Builder.CreateExtractValue(Val, 0); 9581 Value *Status = Builder.CreateExtractValue(Val, 1); 9582 9583 Address MemAddress = EmitPointerWithAlignment(E->getArg(0)); 9584 Builder.CreateStore(RandomValue, MemAddress); 9585 Status = Builder.CreateZExt(Status, Int32Ty); 9586 return Status; 9587 } 9588 9589 if (BuiltinID == AArch64::BI__clear_cache) { 9590 assert(E->getNumArgs() == 2 && "__clear_cache takes 2 arguments"); 9591 const FunctionDecl *FD = E->getDirectCallee(); 9592 Value *Ops[2]; 9593 for (unsigned i = 0; i < 2; i++) 9594 Ops[i] = EmitScalarExpr(E->getArg(i)); 9595 llvm::Type *Ty = CGM.getTypes().ConvertType(FD->getType()); 9596 llvm::FunctionType *FTy = cast<llvm::FunctionType>(Ty); 9597 StringRef Name = FD->getName(); 9598 return EmitNounwindRuntimeCall(CGM.CreateRuntimeFunction(FTy, Name), Ops); 9599 } 9600 9601 if ((BuiltinID == AArch64::BI__builtin_arm_ldrex || 9602 BuiltinID == AArch64::BI__builtin_arm_ldaex) && 9603 getContext().getTypeSize(E->getType()) == 128) { 9604 Function *F = CGM.getIntrinsic(BuiltinID == AArch64::BI__builtin_arm_ldaex 9605 ? Intrinsic::aarch64_ldaxp 9606 : Intrinsic::aarch64_ldxp); 9607 9608 Value *LdPtr = EmitScalarExpr(E->getArg(0)); 9609 Value *Val = Builder.CreateCall(F, Builder.CreateBitCast(LdPtr, Int8PtrTy), 9610 "ldxp"); 9611 9612 Value *Val0 = Builder.CreateExtractValue(Val, 1); 9613 Value *Val1 = Builder.CreateExtractValue(Val, 0); 9614 llvm::Type *Int128Ty = llvm::IntegerType::get(getLLVMContext(), 128); 9615 Val0 = Builder.CreateZExt(Val0, Int128Ty); 9616 Val1 = Builder.CreateZExt(Val1, Int128Ty); 9617 9618 Value *ShiftCst = llvm::ConstantInt::get(Int128Ty, 64); 9619 Val = Builder.CreateShl(Val0, ShiftCst, "shl", true /* nuw */); 9620 Val = Builder.CreateOr(Val, Val1); 9621 return Builder.CreateBitCast(Val, ConvertType(E->getType())); 9622 } else if (BuiltinID == AArch64::BI__builtin_arm_ldrex || 9623 BuiltinID == AArch64::BI__builtin_arm_ldaex) { 9624 Value *LoadAddr = EmitScalarExpr(E->getArg(0)); 9625 9626 QualType Ty = E->getType(); 9627 llvm::Type *RealResTy = ConvertType(Ty); 9628 llvm::Type *PtrTy = llvm::IntegerType::get( 9629 getLLVMContext(), getContext().getTypeSize(Ty))->getPointerTo(); 9630 LoadAddr = Builder.CreateBitCast(LoadAddr, PtrTy); 9631 9632 Function *F = CGM.getIntrinsic(BuiltinID == AArch64::BI__builtin_arm_ldaex 9633 ? Intrinsic::aarch64_ldaxr 9634 : Intrinsic::aarch64_ldxr, 9635 PtrTy); 9636 Value *Val = Builder.CreateCall(F, LoadAddr, "ldxr"); 9637 9638 if (RealResTy->isPointerTy()) 9639 return Builder.CreateIntToPtr(Val, RealResTy); 9640 9641 llvm::Type *IntResTy = llvm::IntegerType::get( 9642 getLLVMContext(), CGM.getDataLayout().getTypeSizeInBits(RealResTy)); 9643 Val = Builder.CreateTruncOrBitCast(Val, IntResTy); 9644 return Builder.CreateBitCast(Val, RealResTy); 9645 } 9646 9647 if ((BuiltinID == AArch64::BI__builtin_arm_strex || 9648 BuiltinID == AArch64::BI__builtin_arm_stlex) && 9649 getContext().getTypeSize(E->getArg(0)->getType()) == 128) { 9650 Function *F = CGM.getIntrinsic(BuiltinID == AArch64::BI__builtin_arm_stlex 9651 ? Intrinsic::aarch64_stlxp 9652 : Intrinsic::aarch64_stxp); 9653 llvm::Type *STy = llvm::StructType::get(Int64Ty, Int64Ty); 9654 9655 Address Tmp = CreateMemTemp(E->getArg(0)->getType()); 9656 EmitAnyExprToMem(E->getArg(0), Tmp, Qualifiers(), /*init*/ true); 9657 9658 Tmp = Builder.CreateBitCast(Tmp, llvm::PointerType::getUnqual(STy)); 9659 llvm::Value *Val = Builder.CreateLoad(Tmp); 9660 9661 Value *Arg0 = Builder.CreateExtractValue(Val, 0); 9662 Value *Arg1 = Builder.CreateExtractValue(Val, 1); 9663 Value *StPtr = Builder.CreateBitCast(EmitScalarExpr(E->getArg(1)), 9664 Int8PtrTy); 9665 return Builder.CreateCall(F, {Arg0, Arg1, StPtr}, "stxp"); 9666 } 9667 9668 if (BuiltinID == AArch64::BI__builtin_arm_strex || 9669 BuiltinID == AArch64::BI__builtin_arm_stlex) { 9670 Value *StoreVal = EmitScalarExpr(E->getArg(0)); 9671 Value *StoreAddr = EmitScalarExpr(E->getArg(1)); 9672 9673 QualType Ty = E->getArg(0)->getType(); 9674 llvm::Type *StoreTy = llvm::IntegerType::get(getLLVMContext(), 9675 getContext().getTypeSize(Ty)); 9676 StoreAddr = Builder.CreateBitCast(StoreAddr, StoreTy->getPointerTo()); 9677 9678 if (StoreVal->getType()->isPointerTy()) 9679 StoreVal = Builder.CreatePtrToInt(StoreVal, Int64Ty); 9680 else { 9681 llvm::Type *IntTy = llvm::IntegerType::get( 9682 getLLVMContext(), 9683 CGM.getDataLayout().getTypeSizeInBits(StoreVal->getType())); 9684 StoreVal = Builder.CreateBitCast(StoreVal, IntTy); 9685 StoreVal = Builder.CreateZExtOrBitCast(StoreVal, Int64Ty); 9686 } 9687 9688 Function *F = CGM.getIntrinsic(BuiltinID == AArch64::BI__builtin_arm_stlex 9689 ? Intrinsic::aarch64_stlxr 9690 : Intrinsic::aarch64_stxr, 9691 StoreAddr->getType()); 9692 return Builder.CreateCall(F, {StoreVal, StoreAddr}, "stxr"); 9693 } 9694 9695 if (BuiltinID == AArch64::BI__getReg) { 9696 Expr::EvalResult Result; 9697 if (!E->getArg(0)->EvaluateAsInt(Result, CGM.getContext())) 9698 llvm_unreachable("Sema will ensure that the parameter is constant"); 9699 9700 llvm::APSInt Value = Result.Val.getInt(); 9701 LLVMContext &Context = CGM.getLLVMContext(); 9702 std::string Reg = Value == 31 ? "sp" : "x" + toString(Value, 10); 9703 9704 llvm::Metadata *Ops[] = {llvm::MDString::get(Context, Reg)}; 9705 llvm::MDNode *RegName = llvm::MDNode::get(Context, Ops); 9706 llvm::Value *Metadata = llvm::MetadataAsValue::get(Context, RegName); 9707 9708 llvm::Function *F = 9709 CGM.getIntrinsic(llvm::Intrinsic::read_register, {Int64Ty}); 9710 return Builder.CreateCall(F, Metadata); 9711 } 9712 9713 if (BuiltinID == AArch64::BI__builtin_arm_clrex) { 9714 Function *F = CGM.getIntrinsic(Intrinsic::aarch64_clrex); 9715 return Builder.CreateCall(F); 9716 } 9717 9718 if (BuiltinID == AArch64::BI_ReadWriteBarrier) 9719 return Builder.CreateFence(llvm::AtomicOrdering::SequentiallyConsistent, 9720 llvm::SyncScope::SingleThread); 9721 9722 // CRC32 9723 Intrinsic::ID CRCIntrinsicID = Intrinsic::not_intrinsic; 9724 switch (BuiltinID) { 9725 case AArch64::BI__builtin_arm_crc32b: 9726 CRCIntrinsicID = Intrinsic::aarch64_crc32b; break; 9727 case AArch64::BI__builtin_arm_crc32cb: 9728 CRCIntrinsicID = Intrinsic::aarch64_crc32cb; break; 9729 case AArch64::BI__builtin_arm_crc32h: 9730 CRCIntrinsicID = Intrinsic::aarch64_crc32h; break; 9731 case AArch64::BI__builtin_arm_crc32ch: 9732 CRCIntrinsicID = Intrinsic::aarch64_crc32ch; break; 9733 case AArch64::BI__builtin_arm_crc32w: 9734 CRCIntrinsicID = Intrinsic::aarch64_crc32w; break; 9735 case AArch64::BI__builtin_arm_crc32cw: 9736 CRCIntrinsicID = Intrinsic::aarch64_crc32cw; break; 9737 case AArch64::BI__builtin_arm_crc32d: 9738 CRCIntrinsicID = Intrinsic::aarch64_crc32x; break; 9739 case AArch64::BI__builtin_arm_crc32cd: 9740 CRCIntrinsicID = Intrinsic::aarch64_crc32cx; break; 9741 } 9742 9743 if (CRCIntrinsicID != Intrinsic::not_intrinsic) { 9744 Value *Arg0 = EmitScalarExpr(E->getArg(0)); 9745 Value *Arg1 = EmitScalarExpr(E->getArg(1)); 9746 Function *F = CGM.getIntrinsic(CRCIntrinsicID); 9747 9748 llvm::Type *DataTy = F->getFunctionType()->getParamType(1); 9749 Arg1 = Builder.CreateZExtOrBitCast(Arg1, DataTy); 9750 9751 return Builder.CreateCall(F, {Arg0, Arg1}); 9752 } 9753 9754 // Memory Tagging Extensions (MTE) Intrinsics 9755 Intrinsic::ID MTEIntrinsicID = Intrinsic::not_intrinsic; 9756 switch (BuiltinID) { 9757 case AArch64::BI__builtin_arm_irg: 9758 MTEIntrinsicID = Intrinsic::aarch64_irg; break; 9759 case AArch64::BI__builtin_arm_addg: 9760 MTEIntrinsicID = Intrinsic::aarch64_addg; break; 9761 case AArch64::BI__builtin_arm_gmi: 9762 MTEIntrinsicID = Intrinsic::aarch64_gmi; break; 9763 case AArch64::BI__builtin_arm_ldg: 9764 MTEIntrinsicID = Intrinsic::aarch64_ldg; break; 9765 case AArch64::BI__builtin_arm_stg: 9766 MTEIntrinsicID = Intrinsic::aarch64_stg; break; 9767 case AArch64::BI__builtin_arm_subp: 9768 MTEIntrinsicID = Intrinsic::aarch64_subp; break; 9769 } 9770 9771 if (MTEIntrinsicID != Intrinsic::not_intrinsic) { 9772 llvm::Type *T = ConvertType(E->getType()); 9773 9774 if (MTEIntrinsicID == Intrinsic::aarch64_irg) { 9775 Value *Pointer = EmitScalarExpr(E->getArg(0)); 9776 Value *Mask = EmitScalarExpr(E->getArg(1)); 9777 9778 Pointer = Builder.CreatePointerCast(Pointer, Int8PtrTy); 9779 Mask = Builder.CreateZExt(Mask, Int64Ty); 9780 Value *RV = Builder.CreateCall( 9781 CGM.getIntrinsic(MTEIntrinsicID), {Pointer, Mask}); 9782 return Builder.CreatePointerCast(RV, T); 9783 } 9784 if (MTEIntrinsicID == Intrinsic::aarch64_addg) { 9785 Value *Pointer = EmitScalarExpr(E->getArg(0)); 9786 Value *TagOffset = EmitScalarExpr(E->getArg(1)); 9787 9788 Pointer = Builder.CreatePointerCast(Pointer, Int8PtrTy); 9789 TagOffset = Builder.CreateZExt(TagOffset, Int64Ty); 9790 Value *RV = Builder.CreateCall( 9791 CGM.getIntrinsic(MTEIntrinsicID), {Pointer, TagOffset}); 9792 return Builder.CreatePointerCast(RV, T); 9793 } 9794 if (MTEIntrinsicID == Intrinsic::aarch64_gmi) { 9795 Value *Pointer = EmitScalarExpr(E->getArg(0)); 9796 Value *ExcludedMask = EmitScalarExpr(E->getArg(1)); 9797 9798 ExcludedMask = Builder.CreateZExt(ExcludedMask, Int64Ty); 9799 Pointer = Builder.CreatePointerCast(Pointer, Int8PtrTy); 9800 return Builder.CreateCall( 9801 CGM.getIntrinsic(MTEIntrinsicID), {Pointer, ExcludedMask}); 9802 } 9803 // Although it is possible to supply a different return 9804 // address (first arg) to this intrinsic, for now we set 9805 // return address same as input address. 9806 if (MTEIntrinsicID == Intrinsic::aarch64_ldg) { 9807 Value *TagAddress = EmitScalarExpr(E->getArg(0)); 9808 TagAddress = Builder.CreatePointerCast(TagAddress, Int8PtrTy); 9809 Value *RV = Builder.CreateCall( 9810 CGM.getIntrinsic(MTEIntrinsicID), {TagAddress, TagAddress}); 9811 return Builder.CreatePointerCast(RV, T); 9812 } 9813 // Although it is possible to supply a different tag (to set) 9814 // to this intrinsic (as first arg), for now we supply 9815 // the tag that is in input address arg (common use case). 9816 if (MTEIntrinsicID == Intrinsic::aarch64_stg) { 9817 Value *TagAddress = EmitScalarExpr(E->getArg(0)); 9818 TagAddress = Builder.CreatePointerCast(TagAddress, Int8PtrTy); 9819 return Builder.CreateCall( 9820 CGM.getIntrinsic(MTEIntrinsicID), {TagAddress, TagAddress}); 9821 } 9822 if (MTEIntrinsicID == Intrinsic::aarch64_subp) { 9823 Value *PointerA = EmitScalarExpr(E->getArg(0)); 9824 Value *PointerB = EmitScalarExpr(E->getArg(1)); 9825 PointerA = Builder.CreatePointerCast(PointerA, Int8PtrTy); 9826 PointerB = Builder.CreatePointerCast(PointerB, Int8PtrTy); 9827 return Builder.CreateCall( 9828 CGM.getIntrinsic(MTEIntrinsicID), {PointerA, PointerB}); 9829 } 9830 } 9831 9832 if (BuiltinID == AArch64::BI__builtin_arm_rsr || 9833 BuiltinID == AArch64::BI__builtin_arm_rsr64 || 9834 BuiltinID == AArch64::BI__builtin_arm_rsrp || 9835 BuiltinID == AArch64::BI__builtin_arm_wsr || 9836 BuiltinID == AArch64::BI__builtin_arm_wsr64 || 9837 BuiltinID == AArch64::BI__builtin_arm_wsrp) { 9838 9839 SpecialRegisterAccessKind AccessKind = Write; 9840 if (BuiltinID == AArch64::BI__builtin_arm_rsr || 9841 BuiltinID == AArch64::BI__builtin_arm_rsr64 || 9842 BuiltinID == AArch64::BI__builtin_arm_rsrp) 9843 AccessKind = VolatileRead; 9844 9845 bool IsPointerBuiltin = BuiltinID == AArch64::BI__builtin_arm_rsrp || 9846 BuiltinID == AArch64::BI__builtin_arm_wsrp; 9847 9848 bool Is64Bit = BuiltinID != AArch64::BI__builtin_arm_rsr && 9849 BuiltinID != AArch64::BI__builtin_arm_wsr; 9850 9851 llvm::Type *ValueType; 9852 llvm::Type *RegisterType = Int64Ty; 9853 if (IsPointerBuiltin) { 9854 ValueType = VoidPtrTy; 9855 } else if (Is64Bit) { 9856 ValueType = Int64Ty; 9857 } else { 9858 ValueType = Int32Ty; 9859 } 9860 9861 return EmitSpecialRegisterBuiltin(*this, E, RegisterType, ValueType, 9862 AccessKind); 9863 } 9864 9865 if (BuiltinID == AArch64::BI_ReadStatusReg || 9866 BuiltinID == AArch64::BI_WriteStatusReg) { 9867 LLVMContext &Context = CGM.getLLVMContext(); 9868 9869 unsigned SysReg = 9870 E->getArg(0)->EvaluateKnownConstInt(getContext()).getZExtValue(); 9871 9872 std::string SysRegStr; 9873 llvm::raw_string_ostream(SysRegStr) << 9874 ((1 << 1) | ((SysReg >> 14) & 1)) << ":" << 9875 ((SysReg >> 11) & 7) << ":" << 9876 ((SysReg >> 7) & 15) << ":" << 9877 ((SysReg >> 3) & 15) << ":" << 9878 ( SysReg & 7); 9879 9880 llvm::Metadata *Ops[] = { llvm::MDString::get(Context, SysRegStr) }; 9881 llvm::MDNode *RegName = llvm::MDNode::get(Context, Ops); 9882 llvm::Value *Metadata = llvm::MetadataAsValue::get(Context, RegName); 9883 9884 llvm::Type *RegisterType = Int64Ty; 9885 llvm::Type *Types[] = { RegisterType }; 9886 9887 if (BuiltinID == AArch64::BI_ReadStatusReg) { 9888 llvm::Function *F = CGM.getIntrinsic(llvm::Intrinsic::read_register, Types); 9889 9890 return Builder.CreateCall(F, Metadata); 9891 } 9892 9893 llvm::Function *F = CGM.getIntrinsic(llvm::Intrinsic::write_register, Types); 9894 llvm::Value *ArgValue = EmitScalarExpr(E->getArg(1)); 9895 9896 return Builder.CreateCall(F, { Metadata, ArgValue }); 9897 } 9898 9899 if (BuiltinID == AArch64::BI_AddressOfReturnAddress) { 9900 llvm::Function *F = 9901 CGM.getIntrinsic(Intrinsic::addressofreturnaddress, AllocaInt8PtrTy); 9902 return Builder.CreateCall(F); 9903 } 9904 9905 if (BuiltinID == AArch64::BI__builtin_sponentry) { 9906 llvm::Function *F = CGM.getIntrinsic(Intrinsic::sponentry, AllocaInt8PtrTy); 9907 return Builder.CreateCall(F); 9908 } 9909 9910 if (BuiltinID == AArch64::BI__mulh || BuiltinID == AArch64::BI__umulh) { 9911 llvm::Type *ResType = ConvertType(E->getType()); 9912 llvm::Type *Int128Ty = llvm::IntegerType::get(getLLVMContext(), 128); 9913 9914 bool IsSigned = BuiltinID == AArch64::BI__mulh; 9915 Value *LHS = 9916 Builder.CreateIntCast(EmitScalarExpr(E->getArg(0)), Int128Ty, IsSigned); 9917 Value *RHS = 9918 Builder.CreateIntCast(EmitScalarExpr(E->getArg(1)), Int128Ty, IsSigned); 9919 9920 Value *MulResult, *HigherBits; 9921 if (IsSigned) { 9922 MulResult = Builder.CreateNSWMul(LHS, RHS); 9923 HigherBits = Builder.CreateAShr(MulResult, 64); 9924 } else { 9925 MulResult = Builder.CreateNUWMul(LHS, RHS); 9926 HigherBits = Builder.CreateLShr(MulResult, 64); 9927 } 9928 HigherBits = Builder.CreateIntCast(HigherBits, ResType, IsSigned); 9929 9930 return HigherBits; 9931 } 9932 9933 // Handle MSVC intrinsics before argument evaluation to prevent double 9934 // evaluation. 9935 if (Optional<MSVCIntrin> MsvcIntId = translateAarch64ToMsvcIntrin(BuiltinID)) 9936 return EmitMSVCBuiltinExpr(*MsvcIntId, E); 9937 9938 // Find out if any arguments are required to be integer constant 9939 // expressions. 9940 unsigned ICEArguments = 0; 9941 ASTContext::GetBuiltinTypeError Error; 9942 getContext().GetBuiltinType(BuiltinID, Error, &ICEArguments); 9943 assert(Error == ASTContext::GE_None && "Should not codegen an error"); 9944 9945 llvm::SmallVector<Value*, 4> Ops; 9946 Address PtrOp0 = Address::invalid(); 9947 for (unsigned i = 0, e = E->getNumArgs() - 1; i != e; i++) { 9948 if (i == 0) { 9949 switch (BuiltinID) { 9950 case NEON::BI__builtin_neon_vld1_v: 9951 case NEON::BI__builtin_neon_vld1q_v: 9952 case NEON::BI__builtin_neon_vld1_dup_v: 9953 case NEON::BI__builtin_neon_vld1q_dup_v: 9954 case NEON::BI__builtin_neon_vld1_lane_v: 9955 case NEON::BI__builtin_neon_vld1q_lane_v: 9956 case NEON::BI__builtin_neon_vst1_v: 9957 case NEON::BI__builtin_neon_vst1q_v: 9958 case NEON::BI__builtin_neon_vst1_lane_v: 9959 case NEON::BI__builtin_neon_vst1q_lane_v: 9960 // Get the alignment for the argument in addition to the value; 9961 // we'll use it later. 9962 PtrOp0 = EmitPointerWithAlignment(E->getArg(0)); 9963 Ops.push_back(PtrOp0.getPointer()); 9964 continue; 9965 } 9966 } 9967 if ((ICEArguments & (1 << i)) == 0) { 9968 Ops.push_back(EmitScalarExpr(E->getArg(i))); 9969 } else { 9970 // If this is required to be a constant, constant fold it so that we know 9971 // that the generated intrinsic gets a ConstantInt. 9972 Ops.push_back(llvm::ConstantInt::get( 9973 getLLVMContext(), 9974 *E->getArg(i)->getIntegerConstantExpr(getContext()))); 9975 } 9976 } 9977 9978 auto SISDMap = makeArrayRef(AArch64SISDIntrinsicMap); 9979 const ARMVectorIntrinsicInfo *Builtin = findARMVectorIntrinsicInMap( 9980 SISDMap, BuiltinID, AArch64SISDIntrinsicsProvenSorted); 9981 9982 if (Builtin) { 9983 Ops.push_back(EmitScalarExpr(E->getArg(E->getNumArgs() - 1))); 9984 Value *Result = EmitCommonNeonSISDBuiltinExpr(*this, *Builtin, Ops, E); 9985 assert(Result && "SISD intrinsic should have been handled"); 9986 return Result; 9987 } 9988 9989 const Expr *Arg = E->getArg(E->getNumArgs()-1); 9990 NeonTypeFlags Type(0); 9991 if (Optional<llvm::APSInt> Result = Arg->getIntegerConstantExpr(getContext())) 9992 // Determine the type of this overloaded NEON intrinsic. 9993 Type = NeonTypeFlags(Result->getZExtValue()); 9994 9995 bool usgn = Type.isUnsigned(); 9996 bool quad = Type.isQuad(); 9997 9998 // Handle non-overloaded intrinsics first. 9999 switch (BuiltinID) { 10000 default: break; 10001 case NEON::BI__builtin_neon_vabsh_f16: 10002 Ops.push_back(EmitScalarExpr(E->getArg(0))); 10003 return EmitNeonCall(CGM.getIntrinsic(Intrinsic::fabs, HalfTy), Ops, "vabs"); 10004 case NEON::BI__builtin_neon_vaddq_p128: { 10005 llvm::Type *Ty = GetNeonType(this, NeonTypeFlags::Poly128); 10006 Ops.push_back(EmitScalarExpr(E->getArg(1))); 10007 Ops[0] = Builder.CreateBitCast(Ops[0], Ty); 10008 Ops[1] = Builder.CreateBitCast(Ops[1], Ty); 10009 Ops[0] = Builder.CreateXor(Ops[0], Ops[1]); 10010 llvm::Type *Int128Ty = llvm::Type::getIntNTy(getLLVMContext(), 128); 10011 return Builder.CreateBitCast(Ops[0], Int128Ty); 10012 } 10013 case NEON::BI__builtin_neon_vldrq_p128: { 10014 llvm::Type *Int128Ty = llvm::Type::getIntNTy(getLLVMContext(), 128); 10015 llvm::Type *Int128PTy = llvm::PointerType::get(Int128Ty, 0); 10016 Value *Ptr = Builder.CreateBitCast(EmitScalarExpr(E->getArg(0)), Int128PTy); 10017 return Builder.CreateAlignedLoad(Int128Ty, Ptr, 10018 CharUnits::fromQuantity(16)); 10019 } 10020 case NEON::BI__builtin_neon_vstrq_p128: { 10021 llvm::Type *Int128PTy = llvm::Type::getIntNPtrTy(getLLVMContext(), 128); 10022 Value *Ptr = Builder.CreateBitCast(Ops[0], Int128PTy); 10023 return Builder.CreateDefaultAlignedStore(EmitScalarExpr(E->getArg(1)), Ptr); 10024 } 10025 case NEON::BI__builtin_neon_vcvts_f32_u32: 10026 case NEON::BI__builtin_neon_vcvtd_f64_u64: 10027 usgn = true; 10028 LLVM_FALLTHROUGH; 10029 case NEON::BI__builtin_neon_vcvts_f32_s32: 10030 case NEON::BI__builtin_neon_vcvtd_f64_s64: { 10031 Ops.push_back(EmitScalarExpr(E->getArg(0))); 10032 bool Is64 = Ops[0]->getType()->getPrimitiveSizeInBits() == 64; 10033 llvm::Type *InTy = Is64 ? Int64Ty : Int32Ty; 10034 llvm::Type *FTy = Is64 ? DoubleTy : FloatTy; 10035 Ops[0] = Builder.CreateBitCast(Ops[0], InTy); 10036 if (usgn) 10037 return Builder.CreateUIToFP(Ops[0], FTy); 10038 return Builder.CreateSIToFP(Ops[0], FTy); 10039 } 10040 case NEON::BI__builtin_neon_vcvth_f16_u16: 10041 case NEON::BI__builtin_neon_vcvth_f16_u32: 10042 case NEON::BI__builtin_neon_vcvth_f16_u64: 10043 usgn = true; 10044 LLVM_FALLTHROUGH; 10045 case NEON::BI__builtin_neon_vcvth_f16_s16: 10046 case NEON::BI__builtin_neon_vcvth_f16_s32: 10047 case NEON::BI__builtin_neon_vcvth_f16_s64: { 10048 Ops.push_back(EmitScalarExpr(E->getArg(0))); 10049 llvm::Type *FTy = HalfTy; 10050 llvm::Type *InTy; 10051 if (Ops[0]->getType()->getPrimitiveSizeInBits() == 64) 10052 InTy = Int64Ty; 10053 else if (Ops[0]->getType()->getPrimitiveSizeInBits() == 32) 10054 InTy = Int32Ty; 10055 else 10056 InTy = Int16Ty; 10057 Ops[0] = Builder.CreateBitCast(Ops[0], InTy); 10058 if (usgn) 10059 return Builder.CreateUIToFP(Ops[0], FTy); 10060 return Builder.CreateSIToFP(Ops[0], FTy); 10061 } 10062 case NEON::BI__builtin_neon_vcvtah_u16_f16: 10063 case NEON::BI__builtin_neon_vcvtmh_u16_f16: 10064 case NEON::BI__builtin_neon_vcvtnh_u16_f16: 10065 case NEON::BI__builtin_neon_vcvtph_u16_f16: 10066 case NEON::BI__builtin_neon_vcvth_u16_f16: 10067 case NEON::BI__builtin_neon_vcvtah_s16_f16: 10068 case NEON::BI__builtin_neon_vcvtmh_s16_f16: 10069 case NEON::BI__builtin_neon_vcvtnh_s16_f16: 10070 case NEON::BI__builtin_neon_vcvtph_s16_f16: 10071 case NEON::BI__builtin_neon_vcvth_s16_f16: { 10072 unsigned Int; 10073 llvm::Type* InTy = Int32Ty; 10074 llvm::Type* FTy = HalfTy; 10075 llvm::Type *Tys[2] = {InTy, FTy}; 10076 Ops.push_back(EmitScalarExpr(E->getArg(0))); 10077 switch (BuiltinID) { 10078 default: llvm_unreachable("missing builtin ID in switch!"); 10079 case NEON::BI__builtin_neon_vcvtah_u16_f16: 10080 Int = Intrinsic::aarch64_neon_fcvtau; break; 10081 case NEON::BI__builtin_neon_vcvtmh_u16_f16: 10082 Int = Intrinsic::aarch64_neon_fcvtmu; break; 10083 case NEON::BI__builtin_neon_vcvtnh_u16_f16: 10084 Int = Intrinsic::aarch64_neon_fcvtnu; break; 10085 case NEON::BI__builtin_neon_vcvtph_u16_f16: 10086 Int = Intrinsic::aarch64_neon_fcvtpu; break; 10087 case NEON::BI__builtin_neon_vcvth_u16_f16: 10088 Int = Intrinsic::aarch64_neon_fcvtzu; break; 10089 case NEON::BI__builtin_neon_vcvtah_s16_f16: 10090 Int = Intrinsic::aarch64_neon_fcvtas; break; 10091 case NEON::BI__builtin_neon_vcvtmh_s16_f16: 10092 Int = Intrinsic::aarch64_neon_fcvtms; break; 10093 case NEON::BI__builtin_neon_vcvtnh_s16_f16: 10094 Int = Intrinsic::aarch64_neon_fcvtns; break; 10095 case NEON::BI__builtin_neon_vcvtph_s16_f16: 10096 Int = Intrinsic::aarch64_neon_fcvtps; break; 10097 case NEON::BI__builtin_neon_vcvth_s16_f16: 10098 Int = Intrinsic::aarch64_neon_fcvtzs; break; 10099 } 10100 Ops[0] = EmitNeonCall(CGM.getIntrinsic(Int, Tys), Ops, "fcvt"); 10101 return Builder.CreateTrunc(Ops[0], Int16Ty); 10102 } 10103 case NEON::BI__builtin_neon_vcaleh_f16: 10104 case NEON::BI__builtin_neon_vcalth_f16: 10105 case NEON::BI__builtin_neon_vcageh_f16: 10106 case NEON::BI__builtin_neon_vcagth_f16: { 10107 unsigned Int; 10108 llvm::Type* InTy = Int32Ty; 10109 llvm::Type* FTy = HalfTy; 10110 llvm::Type *Tys[2] = {InTy, FTy}; 10111 Ops.push_back(EmitScalarExpr(E->getArg(1))); 10112 switch (BuiltinID) { 10113 default: llvm_unreachable("missing builtin ID in switch!"); 10114 case NEON::BI__builtin_neon_vcageh_f16: 10115 Int = Intrinsic::aarch64_neon_facge; break; 10116 case NEON::BI__builtin_neon_vcagth_f16: 10117 Int = Intrinsic::aarch64_neon_facgt; break; 10118 case NEON::BI__builtin_neon_vcaleh_f16: 10119 Int = Intrinsic::aarch64_neon_facge; std::swap(Ops[0], Ops[1]); break; 10120 case NEON::BI__builtin_neon_vcalth_f16: 10121 Int = Intrinsic::aarch64_neon_facgt; std::swap(Ops[0], Ops[1]); break; 10122 } 10123 Ops[0] = EmitNeonCall(CGM.getIntrinsic(Int, Tys), Ops, "facg"); 10124 return Builder.CreateTrunc(Ops[0], Int16Ty); 10125 } 10126 case NEON::BI__builtin_neon_vcvth_n_s16_f16: 10127 case NEON::BI__builtin_neon_vcvth_n_u16_f16: { 10128 unsigned Int; 10129 llvm::Type* InTy = Int32Ty; 10130 llvm::Type* FTy = HalfTy; 10131 llvm::Type *Tys[2] = {InTy, FTy}; 10132 Ops.push_back(EmitScalarExpr(E->getArg(1))); 10133 switch (BuiltinID) { 10134 default: llvm_unreachable("missing builtin ID in switch!"); 10135 case NEON::BI__builtin_neon_vcvth_n_s16_f16: 10136 Int = Intrinsic::aarch64_neon_vcvtfp2fxs; break; 10137 case NEON::BI__builtin_neon_vcvth_n_u16_f16: 10138 Int = Intrinsic::aarch64_neon_vcvtfp2fxu; break; 10139 } 10140 Ops[0] = EmitNeonCall(CGM.getIntrinsic(Int, Tys), Ops, "fcvth_n"); 10141 return Builder.CreateTrunc(Ops[0], Int16Ty); 10142 } 10143 case NEON::BI__builtin_neon_vcvth_n_f16_s16: 10144 case NEON::BI__builtin_neon_vcvth_n_f16_u16: { 10145 unsigned Int; 10146 llvm::Type* FTy = HalfTy; 10147 llvm::Type* InTy = Int32Ty; 10148 llvm::Type *Tys[2] = {FTy, InTy}; 10149 Ops.push_back(EmitScalarExpr(E->getArg(1))); 10150 switch (BuiltinID) { 10151 default: llvm_unreachable("missing builtin ID in switch!"); 10152 case NEON::BI__builtin_neon_vcvth_n_f16_s16: 10153 Int = Intrinsic::aarch64_neon_vcvtfxs2fp; 10154 Ops[0] = Builder.CreateSExt(Ops[0], InTy, "sext"); 10155 break; 10156 case NEON::BI__builtin_neon_vcvth_n_f16_u16: 10157 Int = Intrinsic::aarch64_neon_vcvtfxu2fp; 10158 Ops[0] = Builder.CreateZExt(Ops[0], InTy); 10159 break; 10160 } 10161 return EmitNeonCall(CGM.getIntrinsic(Int, Tys), Ops, "fcvth_n"); 10162 } 10163 case NEON::BI__builtin_neon_vpaddd_s64: { 10164 auto *Ty = llvm::FixedVectorType::get(Int64Ty, 2); 10165 Value *Vec = EmitScalarExpr(E->getArg(0)); 10166 // The vector is v2f64, so make sure it's bitcast to that. 10167 Vec = Builder.CreateBitCast(Vec, Ty, "v2i64"); 10168 llvm::Value *Idx0 = llvm::ConstantInt::get(SizeTy, 0); 10169 llvm::Value *Idx1 = llvm::ConstantInt::get(SizeTy, 1); 10170 Value *Op0 = Builder.CreateExtractElement(Vec, Idx0, "lane0"); 10171 Value *Op1 = Builder.CreateExtractElement(Vec, Idx1, "lane1"); 10172 // Pairwise addition of a v2f64 into a scalar f64. 10173 return Builder.CreateAdd(Op0, Op1, "vpaddd"); 10174 } 10175 case NEON::BI__builtin_neon_vpaddd_f64: { 10176 auto *Ty = llvm::FixedVectorType::get(DoubleTy, 2); 10177 Value *Vec = EmitScalarExpr(E->getArg(0)); 10178 // The vector is v2f64, so make sure it's bitcast to that. 10179 Vec = Builder.CreateBitCast(Vec, Ty, "v2f64"); 10180 llvm::Value *Idx0 = llvm::ConstantInt::get(SizeTy, 0); 10181 llvm::Value *Idx1 = llvm::ConstantInt::get(SizeTy, 1); 10182 Value *Op0 = Builder.CreateExtractElement(Vec, Idx0, "lane0"); 10183 Value *Op1 = Builder.CreateExtractElement(Vec, Idx1, "lane1"); 10184 // Pairwise addition of a v2f64 into a scalar f64. 10185 return Builder.CreateFAdd(Op0, Op1, "vpaddd"); 10186 } 10187 case NEON::BI__builtin_neon_vpadds_f32: { 10188 auto *Ty = llvm::FixedVectorType::get(FloatTy, 2); 10189 Value *Vec = EmitScalarExpr(E->getArg(0)); 10190 // The vector is v2f32, so make sure it's bitcast to that. 10191 Vec = Builder.CreateBitCast(Vec, Ty, "v2f32"); 10192 llvm::Value *Idx0 = llvm::ConstantInt::get(SizeTy, 0); 10193 llvm::Value *Idx1 = llvm::ConstantInt::get(SizeTy, 1); 10194 Value *Op0 = Builder.CreateExtractElement(Vec, Idx0, "lane0"); 10195 Value *Op1 = Builder.CreateExtractElement(Vec, Idx1, "lane1"); 10196 // Pairwise addition of a v2f32 into a scalar f32. 10197 return Builder.CreateFAdd(Op0, Op1, "vpaddd"); 10198 } 10199 case NEON::BI__builtin_neon_vceqzd_s64: 10200 case NEON::BI__builtin_neon_vceqzd_f64: 10201 case NEON::BI__builtin_neon_vceqzs_f32: 10202 case NEON::BI__builtin_neon_vceqzh_f16: 10203 Ops.push_back(EmitScalarExpr(E->getArg(0))); 10204 return EmitAArch64CompareBuiltinExpr( 10205 Ops[0], ConvertType(E->getCallReturnType(getContext())), 10206 ICmpInst::FCMP_OEQ, ICmpInst::ICMP_EQ, "vceqz"); 10207 case NEON::BI__builtin_neon_vcgezd_s64: 10208 case NEON::BI__builtin_neon_vcgezd_f64: 10209 case NEON::BI__builtin_neon_vcgezs_f32: 10210 case NEON::BI__builtin_neon_vcgezh_f16: 10211 Ops.push_back(EmitScalarExpr(E->getArg(0))); 10212 return EmitAArch64CompareBuiltinExpr( 10213 Ops[0], ConvertType(E->getCallReturnType(getContext())), 10214 ICmpInst::FCMP_OGE, ICmpInst::ICMP_SGE, "vcgez"); 10215 case NEON::BI__builtin_neon_vclezd_s64: 10216 case NEON::BI__builtin_neon_vclezd_f64: 10217 case NEON::BI__builtin_neon_vclezs_f32: 10218 case NEON::BI__builtin_neon_vclezh_f16: 10219 Ops.push_back(EmitScalarExpr(E->getArg(0))); 10220 return EmitAArch64CompareBuiltinExpr( 10221 Ops[0], ConvertType(E->getCallReturnType(getContext())), 10222 ICmpInst::FCMP_OLE, ICmpInst::ICMP_SLE, "vclez"); 10223 case NEON::BI__builtin_neon_vcgtzd_s64: 10224 case NEON::BI__builtin_neon_vcgtzd_f64: 10225 case NEON::BI__builtin_neon_vcgtzs_f32: 10226 case NEON::BI__builtin_neon_vcgtzh_f16: 10227 Ops.push_back(EmitScalarExpr(E->getArg(0))); 10228 return EmitAArch64CompareBuiltinExpr( 10229 Ops[0], ConvertType(E->getCallReturnType(getContext())), 10230 ICmpInst::FCMP_OGT, ICmpInst::ICMP_SGT, "vcgtz"); 10231 case NEON::BI__builtin_neon_vcltzd_s64: 10232 case NEON::BI__builtin_neon_vcltzd_f64: 10233 case NEON::BI__builtin_neon_vcltzs_f32: 10234 case NEON::BI__builtin_neon_vcltzh_f16: 10235 Ops.push_back(EmitScalarExpr(E->getArg(0))); 10236 return EmitAArch64CompareBuiltinExpr( 10237 Ops[0], ConvertType(E->getCallReturnType(getContext())), 10238 ICmpInst::FCMP_OLT, ICmpInst::ICMP_SLT, "vcltz"); 10239 10240 case NEON::BI__builtin_neon_vceqzd_u64: { 10241 Ops.push_back(EmitScalarExpr(E->getArg(0))); 10242 Ops[0] = Builder.CreateBitCast(Ops[0], Int64Ty); 10243 Ops[0] = 10244 Builder.CreateICmpEQ(Ops[0], llvm::Constant::getNullValue(Int64Ty)); 10245 return Builder.CreateSExt(Ops[0], Int64Ty, "vceqzd"); 10246 } 10247 case NEON::BI__builtin_neon_vceqd_f64: 10248 case NEON::BI__builtin_neon_vcled_f64: 10249 case NEON::BI__builtin_neon_vcltd_f64: 10250 case NEON::BI__builtin_neon_vcged_f64: 10251 case NEON::BI__builtin_neon_vcgtd_f64: { 10252 llvm::CmpInst::Predicate P; 10253 switch (BuiltinID) { 10254 default: llvm_unreachable("missing builtin ID in switch!"); 10255 case NEON::BI__builtin_neon_vceqd_f64: P = llvm::FCmpInst::FCMP_OEQ; break; 10256 case NEON::BI__builtin_neon_vcled_f64: P = llvm::FCmpInst::FCMP_OLE; break; 10257 case NEON::BI__builtin_neon_vcltd_f64: P = llvm::FCmpInst::FCMP_OLT; break; 10258 case NEON::BI__builtin_neon_vcged_f64: P = llvm::FCmpInst::FCMP_OGE; break; 10259 case NEON::BI__builtin_neon_vcgtd_f64: P = llvm::FCmpInst::FCMP_OGT; break; 10260 } 10261 Ops.push_back(EmitScalarExpr(E->getArg(1))); 10262 Ops[0] = Builder.CreateBitCast(Ops[0], DoubleTy); 10263 Ops[1] = Builder.CreateBitCast(Ops[1], DoubleTy); 10264 Ops[0] = Builder.CreateFCmp(P, Ops[0], Ops[1]); 10265 return Builder.CreateSExt(Ops[0], Int64Ty, "vcmpd"); 10266 } 10267 case NEON::BI__builtin_neon_vceqs_f32: 10268 case NEON::BI__builtin_neon_vcles_f32: 10269 case NEON::BI__builtin_neon_vclts_f32: 10270 case NEON::BI__builtin_neon_vcges_f32: 10271 case NEON::BI__builtin_neon_vcgts_f32: { 10272 llvm::CmpInst::Predicate P; 10273 switch (BuiltinID) { 10274 default: llvm_unreachable("missing builtin ID in switch!"); 10275 case NEON::BI__builtin_neon_vceqs_f32: P = llvm::FCmpInst::FCMP_OEQ; break; 10276 case NEON::BI__builtin_neon_vcles_f32: P = llvm::FCmpInst::FCMP_OLE; break; 10277 case NEON::BI__builtin_neon_vclts_f32: P = llvm::FCmpInst::FCMP_OLT; break; 10278 case NEON::BI__builtin_neon_vcges_f32: P = llvm::FCmpInst::FCMP_OGE; break; 10279 case NEON::BI__builtin_neon_vcgts_f32: P = llvm::FCmpInst::FCMP_OGT; break; 10280 } 10281 Ops.push_back(EmitScalarExpr(E->getArg(1))); 10282 Ops[0] = Builder.CreateBitCast(Ops[0], FloatTy); 10283 Ops[1] = Builder.CreateBitCast(Ops[1], FloatTy); 10284 Ops[0] = Builder.CreateFCmp(P, Ops[0], Ops[1]); 10285 return Builder.CreateSExt(Ops[0], Int32Ty, "vcmpd"); 10286 } 10287 case NEON::BI__builtin_neon_vceqh_f16: 10288 case NEON::BI__builtin_neon_vcleh_f16: 10289 case NEON::BI__builtin_neon_vclth_f16: 10290 case NEON::BI__builtin_neon_vcgeh_f16: 10291 case NEON::BI__builtin_neon_vcgth_f16: { 10292 llvm::CmpInst::Predicate P; 10293 switch (BuiltinID) { 10294 default: llvm_unreachable("missing builtin ID in switch!"); 10295 case NEON::BI__builtin_neon_vceqh_f16: P = llvm::FCmpInst::FCMP_OEQ; break; 10296 case NEON::BI__builtin_neon_vcleh_f16: P = llvm::FCmpInst::FCMP_OLE; break; 10297 case NEON::BI__builtin_neon_vclth_f16: P = llvm::FCmpInst::FCMP_OLT; break; 10298 case NEON::BI__builtin_neon_vcgeh_f16: P = llvm::FCmpInst::FCMP_OGE; break; 10299 case NEON::BI__builtin_neon_vcgth_f16: P = llvm::FCmpInst::FCMP_OGT; break; 10300 } 10301 Ops.push_back(EmitScalarExpr(E->getArg(1))); 10302 Ops[0] = Builder.CreateBitCast(Ops[0], HalfTy); 10303 Ops[1] = Builder.CreateBitCast(Ops[1], HalfTy); 10304 Ops[0] = Builder.CreateFCmp(P, Ops[0], Ops[1]); 10305 return Builder.CreateSExt(Ops[0], Int16Ty, "vcmpd"); 10306 } 10307 case NEON::BI__builtin_neon_vceqd_s64: 10308 case NEON::BI__builtin_neon_vceqd_u64: 10309 case NEON::BI__builtin_neon_vcgtd_s64: 10310 case NEON::BI__builtin_neon_vcgtd_u64: 10311 case NEON::BI__builtin_neon_vcltd_s64: 10312 case NEON::BI__builtin_neon_vcltd_u64: 10313 case NEON::BI__builtin_neon_vcged_u64: 10314 case NEON::BI__builtin_neon_vcged_s64: 10315 case NEON::BI__builtin_neon_vcled_u64: 10316 case NEON::BI__builtin_neon_vcled_s64: { 10317 llvm::CmpInst::Predicate P; 10318 switch (BuiltinID) { 10319 default: llvm_unreachable("missing builtin ID in switch!"); 10320 case NEON::BI__builtin_neon_vceqd_s64: 10321 case NEON::BI__builtin_neon_vceqd_u64:P = llvm::ICmpInst::ICMP_EQ;break; 10322 case NEON::BI__builtin_neon_vcgtd_s64:P = llvm::ICmpInst::ICMP_SGT;break; 10323 case NEON::BI__builtin_neon_vcgtd_u64:P = llvm::ICmpInst::ICMP_UGT;break; 10324 case NEON::BI__builtin_neon_vcltd_s64:P = llvm::ICmpInst::ICMP_SLT;break; 10325 case NEON::BI__builtin_neon_vcltd_u64:P = llvm::ICmpInst::ICMP_ULT;break; 10326 case NEON::BI__builtin_neon_vcged_u64:P = llvm::ICmpInst::ICMP_UGE;break; 10327 case NEON::BI__builtin_neon_vcged_s64:P = llvm::ICmpInst::ICMP_SGE;break; 10328 case NEON::BI__builtin_neon_vcled_u64:P = llvm::ICmpInst::ICMP_ULE;break; 10329 case NEON::BI__builtin_neon_vcled_s64:P = llvm::ICmpInst::ICMP_SLE;break; 10330 } 10331 Ops.push_back(EmitScalarExpr(E->getArg(1))); 10332 Ops[0] = Builder.CreateBitCast(Ops[0], Int64Ty); 10333 Ops[1] = Builder.CreateBitCast(Ops[1], Int64Ty); 10334 Ops[0] = Builder.CreateICmp(P, Ops[0], Ops[1]); 10335 return Builder.CreateSExt(Ops[0], Int64Ty, "vceqd"); 10336 } 10337 case NEON::BI__builtin_neon_vtstd_s64: 10338 case NEON::BI__builtin_neon_vtstd_u64: { 10339 Ops.push_back(EmitScalarExpr(E->getArg(1))); 10340 Ops[0] = Builder.CreateBitCast(Ops[0], Int64Ty); 10341 Ops[1] = Builder.CreateBitCast(Ops[1], Int64Ty); 10342 Ops[0] = Builder.CreateAnd(Ops[0], Ops[1]); 10343 Ops[0] = Builder.CreateICmp(ICmpInst::ICMP_NE, Ops[0], 10344 llvm::Constant::getNullValue(Int64Ty)); 10345 return Builder.CreateSExt(Ops[0], Int64Ty, "vtstd"); 10346 } 10347 case NEON::BI__builtin_neon_vset_lane_i8: 10348 case NEON::BI__builtin_neon_vset_lane_i16: 10349 case NEON::BI__builtin_neon_vset_lane_i32: 10350 case NEON::BI__builtin_neon_vset_lane_i64: 10351 case NEON::BI__builtin_neon_vset_lane_bf16: 10352 case NEON::BI__builtin_neon_vset_lane_f32: 10353 case NEON::BI__builtin_neon_vsetq_lane_i8: 10354 case NEON::BI__builtin_neon_vsetq_lane_i16: 10355 case NEON::BI__builtin_neon_vsetq_lane_i32: 10356 case NEON::BI__builtin_neon_vsetq_lane_i64: 10357 case NEON::BI__builtin_neon_vsetq_lane_bf16: 10358 case NEON::BI__builtin_neon_vsetq_lane_f32: 10359 Ops.push_back(EmitScalarExpr(E->getArg(2))); 10360 return Builder.CreateInsertElement(Ops[1], Ops[0], Ops[2], "vset_lane"); 10361 case NEON::BI__builtin_neon_vset_lane_f64: 10362 // The vector type needs a cast for the v1f64 variant. 10363 Ops[1] = 10364 Builder.CreateBitCast(Ops[1], llvm::FixedVectorType::get(DoubleTy, 1)); 10365 Ops.push_back(EmitScalarExpr(E->getArg(2))); 10366 return Builder.CreateInsertElement(Ops[1], Ops[0], Ops[2], "vset_lane"); 10367 case NEON::BI__builtin_neon_vsetq_lane_f64: 10368 // The vector type needs a cast for the v2f64 variant. 10369 Ops[1] = 10370 Builder.CreateBitCast(Ops[1], llvm::FixedVectorType::get(DoubleTy, 2)); 10371 Ops.push_back(EmitScalarExpr(E->getArg(2))); 10372 return Builder.CreateInsertElement(Ops[1], Ops[0], Ops[2], "vset_lane"); 10373 10374 case NEON::BI__builtin_neon_vget_lane_i8: 10375 case NEON::BI__builtin_neon_vdupb_lane_i8: 10376 Ops[0] = 10377 Builder.CreateBitCast(Ops[0], llvm::FixedVectorType::get(Int8Ty, 8)); 10378 return Builder.CreateExtractElement(Ops[0], EmitScalarExpr(E->getArg(1)), 10379 "vget_lane"); 10380 case NEON::BI__builtin_neon_vgetq_lane_i8: 10381 case NEON::BI__builtin_neon_vdupb_laneq_i8: 10382 Ops[0] = 10383 Builder.CreateBitCast(Ops[0], llvm::FixedVectorType::get(Int8Ty, 16)); 10384 return Builder.CreateExtractElement(Ops[0], EmitScalarExpr(E->getArg(1)), 10385 "vgetq_lane"); 10386 case NEON::BI__builtin_neon_vget_lane_i16: 10387 case NEON::BI__builtin_neon_vduph_lane_i16: 10388 Ops[0] = 10389 Builder.CreateBitCast(Ops[0], llvm::FixedVectorType::get(Int16Ty, 4)); 10390 return Builder.CreateExtractElement(Ops[0], EmitScalarExpr(E->getArg(1)), 10391 "vget_lane"); 10392 case NEON::BI__builtin_neon_vgetq_lane_i16: 10393 case NEON::BI__builtin_neon_vduph_laneq_i16: 10394 Ops[0] = 10395 Builder.CreateBitCast(Ops[0], llvm::FixedVectorType::get(Int16Ty, 8)); 10396 return Builder.CreateExtractElement(Ops[0], EmitScalarExpr(E->getArg(1)), 10397 "vgetq_lane"); 10398 case NEON::BI__builtin_neon_vget_lane_i32: 10399 case NEON::BI__builtin_neon_vdups_lane_i32: 10400 Ops[0] = 10401 Builder.CreateBitCast(Ops[0], llvm::FixedVectorType::get(Int32Ty, 2)); 10402 return Builder.CreateExtractElement(Ops[0], EmitScalarExpr(E->getArg(1)), 10403 "vget_lane"); 10404 case NEON::BI__builtin_neon_vdups_lane_f32: 10405 Ops[0] = 10406 Builder.CreateBitCast(Ops[0], llvm::FixedVectorType::get(FloatTy, 2)); 10407 return Builder.CreateExtractElement(Ops[0], EmitScalarExpr(E->getArg(1)), 10408 "vdups_lane"); 10409 case NEON::BI__builtin_neon_vgetq_lane_i32: 10410 case NEON::BI__builtin_neon_vdups_laneq_i32: 10411 Ops[0] = 10412 Builder.CreateBitCast(Ops[0], llvm::FixedVectorType::get(Int32Ty, 4)); 10413 return Builder.CreateExtractElement(Ops[0], EmitScalarExpr(E->getArg(1)), 10414 "vgetq_lane"); 10415 case NEON::BI__builtin_neon_vget_lane_i64: 10416 case NEON::BI__builtin_neon_vdupd_lane_i64: 10417 Ops[0] = 10418 Builder.CreateBitCast(Ops[0], llvm::FixedVectorType::get(Int64Ty, 1)); 10419 return Builder.CreateExtractElement(Ops[0], EmitScalarExpr(E->getArg(1)), 10420 "vget_lane"); 10421 case NEON::BI__builtin_neon_vdupd_lane_f64: 10422 Ops[0] = 10423 Builder.CreateBitCast(Ops[0], llvm::FixedVectorType::get(DoubleTy, 1)); 10424 return Builder.CreateExtractElement(Ops[0], EmitScalarExpr(E->getArg(1)), 10425 "vdupd_lane"); 10426 case NEON::BI__builtin_neon_vgetq_lane_i64: 10427 case NEON::BI__builtin_neon_vdupd_laneq_i64: 10428 Ops[0] = 10429 Builder.CreateBitCast(Ops[0], llvm::FixedVectorType::get(Int64Ty, 2)); 10430 return Builder.CreateExtractElement(Ops[0], EmitScalarExpr(E->getArg(1)), 10431 "vgetq_lane"); 10432 case NEON::BI__builtin_neon_vget_lane_f32: 10433 Ops[0] = 10434 Builder.CreateBitCast(Ops[0], llvm::FixedVectorType::get(FloatTy, 2)); 10435 return Builder.CreateExtractElement(Ops[0], EmitScalarExpr(E->getArg(1)), 10436 "vget_lane"); 10437 case NEON::BI__builtin_neon_vget_lane_f64: 10438 Ops[0] = 10439 Builder.CreateBitCast(Ops[0], llvm::FixedVectorType::get(DoubleTy, 1)); 10440 return Builder.CreateExtractElement(Ops[0], EmitScalarExpr(E->getArg(1)), 10441 "vget_lane"); 10442 case NEON::BI__builtin_neon_vgetq_lane_f32: 10443 case NEON::BI__builtin_neon_vdups_laneq_f32: 10444 Ops[0] = 10445 Builder.CreateBitCast(Ops[0], llvm::FixedVectorType::get(FloatTy, 4)); 10446 return Builder.CreateExtractElement(Ops[0], EmitScalarExpr(E->getArg(1)), 10447 "vgetq_lane"); 10448 case NEON::BI__builtin_neon_vgetq_lane_f64: 10449 case NEON::BI__builtin_neon_vdupd_laneq_f64: 10450 Ops[0] = 10451 Builder.CreateBitCast(Ops[0], llvm::FixedVectorType::get(DoubleTy, 2)); 10452 return Builder.CreateExtractElement(Ops[0], EmitScalarExpr(E->getArg(1)), 10453 "vgetq_lane"); 10454 case NEON::BI__builtin_neon_vaddh_f16: 10455 Ops.push_back(EmitScalarExpr(E->getArg(1))); 10456 return Builder.CreateFAdd(Ops[0], Ops[1], "vaddh"); 10457 case NEON::BI__builtin_neon_vsubh_f16: 10458 Ops.push_back(EmitScalarExpr(E->getArg(1))); 10459 return Builder.CreateFSub(Ops[0], Ops[1], "vsubh"); 10460 case NEON::BI__builtin_neon_vmulh_f16: 10461 Ops.push_back(EmitScalarExpr(E->getArg(1))); 10462 return Builder.CreateFMul(Ops[0], Ops[1], "vmulh"); 10463 case NEON::BI__builtin_neon_vdivh_f16: 10464 Ops.push_back(EmitScalarExpr(E->getArg(1))); 10465 return Builder.CreateFDiv(Ops[0], Ops[1], "vdivh"); 10466 case NEON::BI__builtin_neon_vfmah_f16: 10467 // NEON intrinsic puts accumulator first, unlike the LLVM fma. 10468 return emitCallMaybeConstrainedFPBuiltin( 10469 *this, Intrinsic::fma, Intrinsic::experimental_constrained_fma, HalfTy, 10470 {EmitScalarExpr(E->getArg(1)), EmitScalarExpr(E->getArg(2)), Ops[0]}); 10471 case NEON::BI__builtin_neon_vfmsh_f16: { 10472 // FIXME: This should be an fneg instruction: 10473 Value *Zero = llvm::ConstantFP::getZeroValueForNegation(HalfTy); 10474 Value* Sub = Builder.CreateFSub(Zero, EmitScalarExpr(E->getArg(1)), "vsubh"); 10475 10476 // NEON intrinsic puts accumulator first, unlike the LLVM fma. 10477 return emitCallMaybeConstrainedFPBuiltin( 10478 *this, Intrinsic::fma, Intrinsic::experimental_constrained_fma, HalfTy, 10479 {Sub, EmitScalarExpr(E->getArg(2)), Ops[0]}); 10480 } 10481 case NEON::BI__builtin_neon_vaddd_s64: 10482 case NEON::BI__builtin_neon_vaddd_u64: 10483 return Builder.CreateAdd(Ops[0], EmitScalarExpr(E->getArg(1)), "vaddd"); 10484 case NEON::BI__builtin_neon_vsubd_s64: 10485 case NEON::BI__builtin_neon_vsubd_u64: 10486 return Builder.CreateSub(Ops[0], EmitScalarExpr(E->getArg(1)), "vsubd"); 10487 case NEON::BI__builtin_neon_vqdmlalh_s16: 10488 case NEON::BI__builtin_neon_vqdmlslh_s16: { 10489 SmallVector<Value *, 2> ProductOps; 10490 ProductOps.push_back(vectorWrapScalar16(Ops[1])); 10491 ProductOps.push_back(vectorWrapScalar16(EmitScalarExpr(E->getArg(2)))); 10492 auto *VTy = llvm::FixedVectorType::get(Int32Ty, 4); 10493 Ops[1] = EmitNeonCall(CGM.getIntrinsic(Intrinsic::aarch64_neon_sqdmull, VTy), 10494 ProductOps, "vqdmlXl"); 10495 Constant *CI = ConstantInt::get(SizeTy, 0); 10496 Ops[1] = Builder.CreateExtractElement(Ops[1], CI, "lane0"); 10497 10498 unsigned AccumInt = BuiltinID == NEON::BI__builtin_neon_vqdmlalh_s16 10499 ? Intrinsic::aarch64_neon_sqadd 10500 : Intrinsic::aarch64_neon_sqsub; 10501 return EmitNeonCall(CGM.getIntrinsic(AccumInt, Int32Ty), Ops, "vqdmlXl"); 10502 } 10503 case NEON::BI__builtin_neon_vqshlud_n_s64: { 10504 Ops.push_back(EmitScalarExpr(E->getArg(1))); 10505 Ops[1] = Builder.CreateZExt(Ops[1], Int64Ty); 10506 return EmitNeonCall(CGM.getIntrinsic(Intrinsic::aarch64_neon_sqshlu, Int64Ty), 10507 Ops, "vqshlu_n"); 10508 } 10509 case NEON::BI__builtin_neon_vqshld_n_u64: 10510 case NEON::BI__builtin_neon_vqshld_n_s64: { 10511 unsigned Int = BuiltinID == NEON::BI__builtin_neon_vqshld_n_u64 10512 ? Intrinsic::aarch64_neon_uqshl 10513 : Intrinsic::aarch64_neon_sqshl; 10514 Ops.push_back(EmitScalarExpr(E->getArg(1))); 10515 Ops[1] = Builder.CreateZExt(Ops[1], Int64Ty); 10516 return EmitNeonCall(CGM.getIntrinsic(Int, Int64Ty), Ops, "vqshl_n"); 10517 } 10518 case NEON::BI__builtin_neon_vrshrd_n_u64: 10519 case NEON::BI__builtin_neon_vrshrd_n_s64: { 10520 unsigned Int = BuiltinID == NEON::BI__builtin_neon_vrshrd_n_u64 10521 ? Intrinsic::aarch64_neon_urshl 10522 : Intrinsic::aarch64_neon_srshl; 10523 Ops.push_back(EmitScalarExpr(E->getArg(1))); 10524 int SV = cast<ConstantInt>(Ops[1])->getSExtValue(); 10525 Ops[1] = ConstantInt::get(Int64Ty, -SV); 10526 return EmitNeonCall(CGM.getIntrinsic(Int, Int64Ty), Ops, "vrshr_n"); 10527 } 10528 case NEON::BI__builtin_neon_vrsrad_n_u64: 10529 case NEON::BI__builtin_neon_vrsrad_n_s64: { 10530 unsigned Int = BuiltinID == NEON::BI__builtin_neon_vrsrad_n_u64 10531 ? Intrinsic::aarch64_neon_urshl 10532 : Intrinsic::aarch64_neon_srshl; 10533 Ops[1] = Builder.CreateBitCast(Ops[1], Int64Ty); 10534 Ops.push_back(Builder.CreateNeg(EmitScalarExpr(E->getArg(2)))); 10535 Ops[1] = Builder.CreateCall(CGM.getIntrinsic(Int, Int64Ty), 10536 {Ops[1], Builder.CreateSExt(Ops[2], Int64Ty)}); 10537 return Builder.CreateAdd(Ops[0], Builder.CreateBitCast(Ops[1], Int64Ty)); 10538 } 10539 case NEON::BI__builtin_neon_vshld_n_s64: 10540 case NEON::BI__builtin_neon_vshld_n_u64: { 10541 llvm::ConstantInt *Amt = cast<ConstantInt>(EmitScalarExpr(E->getArg(1))); 10542 return Builder.CreateShl( 10543 Ops[0], ConstantInt::get(Int64Ty, Amt->getZExtValue()), "shld_n"); 10544 } 10545 case NEON::BI__builtin_neon_vshrd_n_s64: { 10546 llvm::ConstantInt *Amt = cast<ConstantInt>(EmitScalarExpr(E->getArg(1))); 10547 return Builder.CreateAShr( 10548 Ops[0], ConstantInt::get(Int64Ty, std::min(static_cast<uint64_t>(63), 10549 Amt->getZExtValue())), 10550 "shrd_n"); 10551 } 10552 case NEON::BI__builtin_neon_vshrd_n_u64: { 10553 llvm::ConstantInt *Amt = cast<ConstantInt>(EmitScalarExpr(E->getArg(1))); 10554 uint64_t ShiftAmt = Amt->getZExtValue(); 10555 // Right-shifting an unsigned value by its size yields 0. 10556 if (ShiftAmt == 64) 10557 return ConstantInt::get(Int64Ty, 0); 10558 return Builder.CreateLShr(Ops[0], ConstantInt::get(Int64Ty, ShiftAmt), 10559 "shrd_n"); 10560 } 10561 case NEON::BI__builtin_neon_vsrad_n_s64: { 10562 llvm::ConstantInt *Amt = cast<ConstantInt>(EmitScalarExpr(E->getArg(2))); 10563 Ops[1] = Builder.CreateAShr( 10564 Ops[1], ConstantInt::get(Int64Ty, std::min(static_cast<uint64_t>(63), 10565 Amt->getZExtValue())), 10566 "shrd_n"); 10567 return Builder.CreateAdd(Ops[0], Ops[1]); 10568 } 10569 case NEON::BI__builtin_neon_vsrad_n_u64: { 10570 llvm::ConstantInt *Amt = cast<ConstantInt>(EmitScalarExpr(E->getArg(2))); 10571 uint64_t ShiftAmt = Amt->getZExtValue(); 10572 // Right-shifting an unsigned value by its size yields 0. 10573 // As Op + 0 = Op, return Ops[0] directly. 10574 if (ShiftAmt == 64) 10575 return Ops[0]; 10576 Ops[1] = Builder.CreateLShr(Ops[1], ConstantInt::get(Int64Ty, ShiftAmt), 10577 "shrd_n"); 10578 return Builder.CreateAdd(Ops[0], Ops[1]); 10579 } 10580 case NEON::BI__builtin_neon_vqdmlalh_lane_s16: 10581 case NEON::BI__builtin_neon_vqdmlalh_laneq_s16: 10582 case NEON::BI__builtin_neon_vqdmlslh_lane_s16: 10583 case NEON::BI__builtin_neon_vqdmlslh_laneq_s16: { 10584 Ops[2] = Builder.CreateExtractElement(Ops[2], EmitScalarExpr(E->getArg(3)), 10585 "lane"); 10586 SmallVector<Value *, 2> ProductOps; 10587 ProductOps.push_back(vectorWrapScalar16(Ops[1])); 10588 ProductOps.push_back(vectorWrapScalar16(Ops[2])); 10589 auto *VTy = llvm::FixedVectorType::get(Int32Ty, 4); 10590 Ops[1] = EmitNeonCall(CGM.getIntrinsic(Intrinsic::aarch64_neon_sqdmull, VTy), 10591 ProductOps, "vqdmlXl"); 10592 Constant *CI = ConstantInt::get(SizeTy, 0); 10593 Ops[1] = Builder.CreateExtractElement(Ops[1], CI, "lane0"); 10594 Ops.pop_back(); 10595 10596 unsigned AccInt = (BuiltinID == NEON::BI__builtin_neon_vqdmlalh_lane_s16 || 10597 BuiltinID == NEON::BI__builtin_neon_vqdmlalh_laneq_s16) 10598 ? Intrinsic::aarch64_neon_sqadd 10599 : Intrinsic::aarch64_neon_sqsub; 10600 return EmitNeonCall(CGM.getIntrinsic(AccInt, Int32Ty), Ops, "vqdmlXl"); 10601 } 10602 case NEON::BI__builtin_neon_vqdmlals_s32: 10603 case NEON::BI__builtin_neon_vqdmlsls_s32: { 10604 SmallVector<Value *, 2> ProductOps; 10605 ProductOps.push_back(Ops[1]); 10606 ProductOps.push_back(EmitScalarExpr(E->getArg(2))); 10607 Ops[1] = 10608 EmitNeonCall(CGM.getIntrinsic(Intrinsic::aarch64_neon_sqdmulls_scalar), 10609 ProductOps, "vqdmlXl"); 10610 10611 unsigned AccumInt = BuiltinID == NEON::BI__builtin_neon_vqdmlals_s32 10612 ? Intrinsic::aarch64_neon_sqadd 10613 : Intrinsic::aarch64_neon_sqsub; 10614 return EmitNeonCall(CGM.getIntrinsic(AccumInt, Int64Ty), Ops, "vqdmlXl"); 10615 } 10616 case NEON::BI__builtin_neon_vqdmlals_lane_s32: 10617 case NEON::BI__builtin_neon_vqdmlals_laneq_s32: 10618 case NEON::BI__builtin_neon_vqdmlsls_lane_s32: 10619 case NEON::BI__builtin_neon_vqdmlsls_laneq_s32: { 10620 Ops[2] = Builder.CreateExtractElement(Ops[2], EmitScalarExpr(E->getArg(3)), 10621 "lane"); 10622 SmallVector<Value *, 2> ProductOps; 10623 ProductOps.push_back(Ops[1]); 10624 ProductOps.push_back(Ops[2]); 10625 Ops[1] = 10626 EmitNeonCall(CGM.getIntrinsic(Intrinsic::aarch64_neon_sqdmulls_scalar), 10627 ProductOps, "vqdmlXl"); 10628 Ops.pop_back(); 10629 10630 unsigned AccInt = (BuiltinID == NEON::BI__builtin_neon_vqdmlals_lane_s32 || 10631 BuiltinID == NEON::BI__builtin_neon_vqdmlals_laneq_s32) 10632 ? Intrinsic::aarch64_neon_sqadd 10633 : Intrinsic::aarch64_neon_sqsub; 10634 return EmitNeonCall(CGM.getIntrinsic(AccInt, Int64Ty), Ops, "vqdmlXl"); 10635 } 10636 case NEON::BI__builtin_neon_vget_lane_bf16: 10637 case NEON::BI__builtin_neon_vduph_lane_bf16: 10638 case NEON::BI__builtin_neon_vduph_lane_f16: { 10639 return Builder.CreateExtractElement(Ops[0], EmitScalarExpr(E->getArg(1)), 10640 "vget_lane"); 10641 } 10642 case NEON::BI__builtin_neon_vgetq_lane_bf16: 10643 case NEON::BI__builtin_neon_vduph_laneq_bf16: 10644 case NEON::BI__builtin_neon_vduph_laneq_f16: { 10645 return Builder.CreateExtractElement(Ops[0], EmitScalarExpr(E->getArg(1)), 10646 "vgetq_lane"); 10647 } 10648 10649 case AArch64::BI_InterlockedAdd: { 10650 Value *Arg0 = EmitScalarExpr(E->getArg(0)); 10651 Value *Arg1 = EmitScalarExpr(E->getArg(1)); 10652 AtomicRMWInst *RMWI = Builder.CreateAtomicRMW( 10653 AtomicRMWInst::Add, Arg0, Arg1, 10654 llvm::AtomicOrdering::SequentiallyConsistent); 10655 return Builder.CreateAdd(RMWI, Arg1); 10656 } 10657 } 10658 10659 llvm::FixedVectorType *VTy = GetNeonType(this, Type); 10660 llvm::Type *Ty = VTy; 10661 if (!Ty) 10662 return nullptr; 10663 10664 // Not all intrinsics handled by the common case work for AArch64 yet, so only 10665 // defer to common code if it's been added to our special map. 10666 Builtin = findARMVectorIntrinsicInMap(AArch64SIMDIntrinsicMap, BuiltinID, 10667 AArch64SIMDIntrinsicsProvenSorted); 10668 10669 if (Builtin) 10670 return EmitCommonNeonBuiltinExpr( 10671 Builtin->BuiltinID, Builtin->LLVMIntrinsic, Builtin->AltLLVMIntrinsic, 10672 Builtin->NameHint, Builtin->TypeModifier, E, Ops, 10673 /*never use addresses*/ Address::invalid(), Address::invalid(), Arch); 10674 10675 if (Value *V = EmitAArch64TblBuiltinExpr(*this, BuiltinID, E, Ops, Arch)) 10676 return V; 10677 10678 unsigned Int; 10679 switch (BuiltinID) { 10680 default: return nullptr; 10681 case NEON::BI__builtin_neon_vbsl_v: 10682 case NEON::BI__builtin_neon_vbslq_v: { 10683 llvm::Type *BitTy = llvm::VectorType::getInteger(VTy); 10684 Ops[0] = Builder.CreateBitCast(Ops[0], BitTy, "vbsl"); 10685 Ops[1] = Builder.CreateBitCast(Ops[1], BitTy, "vbsl"); 10686 Ops[2] = Builder.CreateBitCast(Ops[2], BitTy, "vbsl"); 10687 10688 Ops[1] = Builder.CreateAnd(Ops[0], Ops[1], "vbsl"); 10689 Ops[2] = Builder.CreateAnd(Builder.CreateNot(Ops[0]), Ops[2], "vbsl"); 10690 Ops[0] = Builder.CreateOr(Ops[1], Ops[2], "vbsl"); 10691 return Builder.CreateBitCast(Ops[0], Ty); 10692 } 10693 case NEON::BI__builtin_neon_vfma_lane_v: 10694 case NEON::BI__builtin_neon_vfmaq_lane_v: { // Only used for FP types 10695 // The ARM builtins (and instructions) have the addend as the first 10696 // operand, but the 'fma' intrinsics have it last. Swap it around here. 10697 Value *Addend = Ops[0]; 10698 Value *Multiplicand = Ops[1]; 10699 Value *LaneSource = Ops[2]; 10700 Ops[0] = Multiplicand; 10701 Ops[1] = LaneSource; 10702 Ops[2] = Addend; 10703 10704 // Now adjust things to handle the lane access. 10705 auto *SourceTy = BuiltinID == NEON::BI__builtin_neon_vfmaq_lane_v 10706 ? llvm::FixedVectorType::get(VTy->getElementType(), 10707 VTy->getNumElements() / 2) 10708 : VTy; 10709 llvm::Constant *cst = cast<Constant>(Ops[3]); 10710 Value *SV = llvm::ConstantVector::getSplat(VTy->getElementCount(), cst); 10711 Ops[1] = Builder.CreateBitCast(Ops[1], SourceTy); 10712 Ops[1] = Builder.CreateShuffleVector(Ops[1], Ops[1], SV, "lane"); 10713 10714 Ops.pop_back(); 10715 Int = Builder.getIsFPConstrained() ? Intrinsic::experimental_constrained_fma 10716 : Intrinsic::fma; 10717 return EmitNeonCall(CGM.getIntrinsic(Int, Ty), Ops, "fmla"); 10718 } 10719 case NEON::BI__builtin_neon_vfma_laneq_v: { 10720 auto *VTy = cast<llvm::FixedVectorType>(Ty); 10721 // v1f64 fma should be mapped to Neon scalar f64 fma 10722 if (VTy && VTy->getElementType() == DoubleTy) { 10723 Ops[0] = Builder.CreateBitCast(Ops[0], DoubleTy); 10724 Ops[1] = Builder.CreateBitCast(Ops[1], DoubleTy); 10725 llvm::FixedVectorType *VTy = 10726 GetNeonType(this, NeonTypeFlags(NeonTypeFlags::Float64, false, true)); 10727 Ops[2] = Builder.CreateBitCast(Ops[2], VTy); 10728 Ops[2] = Builder.CreateExtractElement(Ops[2], Ops[3], "extract"); 10729 Value *Result; 10730 Result = emitCallMaybeConstrainedFPBuiltin( 10731 *this, Intrinsic::fma, Intrinsic::experimental_constrained_fma, 10732 DoubleTy, {Ops[1], Ops[2], Ops[0]}); 10733 return Builder.CreateBitCast(Result, Ty); 10734 } 10735 Ops[0] = Builder.CreateBitCast(Ops[0], Ty); 10736 Ops[1] = Builder.CreateBitCast(Ops[1], Ty); 10737 10738 auto *STy = llvm::FixedVectorType::get(VTy->getElementType(), 10739 VTy->getNumElements() * 2); 10740 Ops[2] = Builder.CreateBitCast(Ops[2], STy); 10741 Value *SV = llvm::ConstantVector::getSplat(VTy->getElementCount(), 10742 cast<ConstantInt>(Ops[3])); 10743 Ops[2] = Builder.CreateShuffleVector(Ops[2], Ops[2], SV, "lane"); 10744 10745 return emitCallMaybeConstrainedFPBuiltin( 10746 *this, Intrinsic::fma, Intrinsic::experimental_constrained_fma, Ty, 10747 {Ops[2], Ops[1], Ops[0]}); 10748 } 10749 case NEON::BI__builtin_neon_vfmaq_laneq_v: { 10750 Ops[0] = Builder.CreateBitCast(Ops[0], Ty); 10751 Ops[1] = Builder.CreateBitCast(Ops[1], Ty); 10752 10753 Ops[2] = Builder.CreateBitCast(Ops[2], Ty); 10754 Ops[2] = EmitNeonSplat(Ops[2], cast<ConstantInt>(Ops[3])); 10755 return emitCallMaybeConstrainedFPBuiltin( 10756 *this, Intrinsic::fma, Intrinsic::experimental_constrained_fma, Ty, 10757 {Ops[2], Ops[1], Ops[0]}); 10758 } 10759 case NEON::BI__builtin_neon_vfmah_lane_f16: 10760 case NEON::BI__builtin_neon_vfmas_lane_f32: 10761 case NEON::BI__builtin_neon_vfmah_laneq_f16: 10762 case NEON::BI__builtin_neon_vfmas_laneq_f32: 10763 case NEON::BI__builtin_neon_vfmad_lane_f64: 10764 case NEON::BI__builtin_neon_vfmad_laneq_f64: { 10765 Ops.push_back(EmitScalarExpr(E->getArg(3))); 10766 llvm::Type *Ty = ConvertType(E->getCallReturnType(getContext())); 10767 Ops[2] = Builder.CreateExtractElement(Ops[2], Ops[3], "extract"); 10768 return emitCallMaybeConstrainedFPBuiltin( 10769 *this, Intrinsic::fma, Intrinsic::experimental_constrained_fma, Ty, 10770 {Ops[1], Ops[2], Ops[0]}); 10771 } 10772 case NEON::BI__builtin_neon_vmull_v: 10773 // FIXME: improve sharing scheme to cope with 3 alternative LLVM intrinsics. 10774 Int = usgn ? Intrinsic::aarch64_neon_umull : Intrinsic::aarch64_neon_smull; 10775 if (Type.isPoly()) Int = Intrinsic::aarch64_neon_pmull; 10776 return EmitNeonCall(CGM.getIntrinsic(Int, Ty), Ops, "vmull"); 10777 case NEON::BI__builtin_neon_vmax_v: 10778 case NEON::BI__builtin_neon_vmaxq_v: 10779 // FIXME: improve sharing scheme to cope with 3 alternative LLVM intrinsics. 10780 Int = usgn ? Intrinsic::aarch64_neon_umax : Intrinsic::aarch64_neon_smax; 10781 if (Ty->isFPOrFPVectorTy()) Int = Intrinsic::aarch64_neon_fmax; 10782 return EmitNeonCall(CGM.getIntrinsic(Int, Ty), Ops, "vmax"); 10783 case NEON::BI__builtin_neon_vmaxh_f16: { 10784 Ops.push_back(EmitScalarExpr(E->getArg(1))); 10785 Int = Intrinsic::aarch64_neon_fmax; 10786 return EmitNeonCall(CGM.getIntrinsic(Int, HalfTy), Ops, "vmax"); 10787 } 10788 case NEON::BI__builtin_neon_vmin_v: 10789 case NEON::BI__builtin_neon_vminq_v: 10790 // FIXME: improve sharing scheme to cope with 3 alternative LLVM intrinsics. 10791 Int = usgn ? Intrinsic::aarch64_neon_umin : Intrinsic::aarch64_neon_smin; 10792 if (Ty->isFPOrFPVectorTy()) Int = Intrinsic::aarch64_neon_fmin; 10793 return EmitNeonCall(CGM.getIntrinsic(Int, Ty), Ops, "vmin"); 10794 case NEON::BI__builtin_neon_vminh_f16: { 10795 Ops.push_back(EmitScalarExpr(E->getArg(1))); 10796 Int = Intrinsic::aarch64_neon_fmin; 10797 return EmitNeonCall(CGM.getIntrinsic(Int, HalfTy), Ops, "vmin"); 10798 } 10799 case NEON::BI__builtin_neon_vabd_v: 10800 case NEON::BI__builtin_neon_vabdq_v: 10801 // FIXME: improve sharing scheme to cope with 3 alternative LLVM intrinsics. 10802 Int = usgn ? Intrinsic::aarch64_neon_uabd : Intrinsic::aarch64_neon_sabd; 10803 if (Ty->isFPOrFPVectorTy()) Int = Intrinsic::aarch64_neon_fabd; 10804 return EmitNeonCall(CGM.getIntrinsic(Int, Ty), Ops, "vabd"); 10805 case NEON::BI__builtin_neon_vpadal_v: 10806 case NEON::BI__builtin_neon_vpadalq_v: { 10807 unsigned ArgElts = VTy->getNumElements(); 10808 llvm::IntegerType *EltTy = cast<IntegerType>(VTy->getElementType()); 10809 unsigned BitWidth = EltTy->getBitWidth(); 10810 auto *ArgTy = llvm::FixedVectorType::get( 10811 llvm::IntegerType::get(getLLVMContext(), BitWidth / 2), 2 * ArgElts); 10812 llvm::Type* Tys[2] = { VTy, ArgTy }; 10813 Int = usgn ? Intrinsic::aarch64_neon_uaddlp : Intrinsic::aarch64_neon_saddlp; 10814 SmallVector<llvm::Value*, 1> TmpOps; 10815 TmpOps.push_back(Ops[1]); 10816 Function *F = CGM.getIntrinsic(Int, Tys); 10817 llvm::Value *tmp = EmitNeonCall(F, TmpOps, "vpadal"); 10818 llvm::Value *addend = Builder.CreateBitCast(Ops[0], tmp->getType()); 10819 return Builder.CreateAdd(tmp, addend); 10820 } 10821 case NEON::BI__builtin_neon_vpmin_v: 10822 case NEON::BI__builtin_neon_vpminq_v: 10823 // FIXME: improve sharing scheme to cope with 3 alternative LLVM intrinsics. 10824 Int = usgn ? Intrinsic::aarch64_neon_uminp : Intrinsic::aarch64_neon_sminp; 10825 if (Ty->isFPOrFPVectorTy()) Int = Intrinsic::aarch64_neon_fminp; 10826 return EmitNeonCall(CGM.getIntrinsic(Int, Ty), Ops, "vpmin"); 10827 case NEON::BI__builtin_neon_vpmax_v: 10828 case NEON::BI__builtin_neon_vpmaxq_v: 10829 // FIXME: improve sharing scheme to cope with 3 alternative LLVM intrinsics. 10830 Int = usgn ? Intrinsic::aarch64_neon_umaxp : Intrinsic::aarch64_neon_smaxp; 10831 if (Ty->isFPOrFPVectorTy()) Int = Intrinsic::aarch64_neon_fmaxp; 10832 return EmitNeonCall(CGM.getIntrinsic(Int, Ty), Ops, "vpmax"); 10833 case NEON::BI__builtin_neon_vminnm_v: 10834 case NEON::BI__builtin_neon_vminnmq_v: 10835 Int = Intrinsic::aarch64_neon_fminnm; 10836 return EmitNeonCall(CGM.getIntrinsic(Int, Ty), Ops, "vminnm"); 10837 case NEON::BI__builtin_neon_vminnmh_f16: 10838 Ops.push_back(EmitScalarExpr(E->getArg(1))); 10839 Int = Intrinsic::aarch64_neon_fminnm; 10840 return EmitNeonCall(CGM.getIntrinsic(Int, HalfTy), Ops, "vminnm"); 10841 case NEON::BI__builtin_neon_vmaxnm_v: 10842 case NEON::BI__builtin_neon_vmaxnmq_v: 10843 Int = Intrinsic::aarch64_neon_fmaxnm; 10844 return EmitNeonCall(CGM.getIntrinsic(Int, Ty), Ops, "vmaxnm"); 10845 case NEON::BI__builtin_neon_vmaxnmh_f16: 10846 Ops.push_back(EmitScalarExpr(E->getArg(1))); 10847 Int = Intrinsic::aarch64_neon_fmaxnm; 10848 return EmitNeonCall(CGM.getIntrinsic(Int, HalfTy), Ops, "vmaxnm"); 10849 case NEON::BI__builtin_neon_vrecpss_f32: { 10850 Ops.push_back(EmitScalarExpr(E->getArg(1))); 10851 return EmitNeonCall(CGM.getIntrinsic(Intrinsic::aarch64_neon_frecps, FloatTy), 10852 Ops, "vrecps"); 10853 } 10854 case NEON::BI__builtin_neon_vrecpsd_f64: 10855 Ops.push_back(EmitScalarExpr(E->getArg(1))); 10856 return EmitNeonCall(CGM.getIntrinsic(Intrinsic::aarch64_neon_frecps, DoubleTy), 10857 Ops, "vrecps"); 10858 case NEON::BI__builtin_neon_vrecpsh_f16: 10859 Ops.push_back(EmitScalarExpr(E->getArg(1))); 10860 return EmitNeonCall(CGM.getIntrinsic(Intrinsic::aarch64_neon_frecps, HalfTy), 10861 Ops, "vrecps"); 10862 case NEON::BI__builtin_neon_vqshrun_n_v: 10863 Int = Intrinsic::aarch64_neon_sqshrun; 10864 return EmitNeonCall(CGM.getIntrinsic(Int, Ty), Ops, "vqshrun_n"); 10865 case NEON::BI__builtin_neon_vqrshrun_n_v: 10866 Int = Intrinsic::aarch64_neon_sqrshrun; 10867 return EmitNeonCall(CGM.getIntrinsic(Int, Ty), Ops, "vqrshrun_n"); 10868 case NEON::BI__builtin_neon_vqshrn_n_v: 10869 Int = usgn ? Intrinsic::aarch64_neon_uqshrn : Intrinsic::aarch64_neon_sqshrn; 10870 return EmitNeonCall(CGM.getIntrinsic(Int, Ty), Ops, "vqshrn_n"); 10871 case NEON::BI__builtin_neon_vrshrn_n_v: 10872 Int = Intrinsic::aarch64_neon_rshrn; 10873 return EmitNeonCall(CGM.getIntrinsic(Int, Ty), Ops, "vrshrn_n"); 10874 case NEON::BI__builtin_neon_vqrshrn_n_v: 10875 Int = usgn ? Intrinsic::aarch64_neon_uqrshrn : Intrinsic::aarch64_neon_sqrshrn; 10876 return EmitNeonCall(CGM.getIntrinsic(Int, Ty), Ops, "vqrshrn_n"); 10877 case NEON::BI__builtin_neon_vrndah_f16: { 10878 Ops.push_back(EmitScalarExpr(E->getArg(0))); 10879 Int = Builder.getIsFPConstrained() 10880 ? Intrinsic::experimental_constrained_round 10881 : Intrinsic::round; 10882 return EmitNeonCall(CGM.getIntrinsic(Int, HalfTy), Ops, "vrnda"); 10883 } 10884 case NEON::BI__builtin_neon_vrnda_v: 10885 case NEON::BI__builtin_neon_vrndaq_v: { 10886 Int = Builder.getIsFPConstrained() 10887 ? Intrinsic::experimental_constrained_round 10888 : Intrinsic::round; 10889 return EmitNeonCall(CGM.getIntrinsic(Int, Ty), Ops, "vrnda"); 10890 } 10891 case NEON::BI__builtin_neon_vrndih_f16: { 10892 Ops.push_back(EmitScalarExpr(E->getArg(0))); 10893 Int = Builder.getIsFPConstrained() 10894 ? Intrinsic::experimental_constrained_nearbyint 10895 : Intrinsic::nearbyint; 10896 return EmitNeonCall(CGM.getIntrinsic(Int, HalfTy), Ops, "vrndi"); 10897 } 10898 case NEON::BI__builtin_neon_vrndmh_f16: { 10899 Ops.push_back(EmitScalarExpr(E->getArg(0))); 10900 Int = Builder.getIsFPConstrained() 10901 ? Intrinsic::experimental_constrained_floor 10902 : Intrinsic::floor; 10903 return EmitNeonCall(CGM.getIntrinsic(Int, HalfTy), Ops, "vrndm"); 10904 } 10905 case NEON::BI__builtin_neon_vrndm_v: 10906 case NEON::BI__builtin_neon_vrndmq_v: { 10907 Int = Builder.getIsFPConstrained() 10908 ? Intrinsic::experimental_constrained_floor 10909 : Intrinsic::floor; 10910 return EmitNeonCall(CGM.getIntrinsic(Int, Ty), Ops, "vrndm"); 10911 } 10912 case NEON::BI__builtin_neon_vrndnh_f16: { 10913 Ops.push_back(EmitScalarExpr(E->getArg(0))); 10914 Int = Builder.getIsFPConstrained() 10915 ? Intrinsic::experimental_constrained_roundeven 10916 : Intrinsic::roundeven; 10917 return EmitNeonCall(CGM.getIntrinsic(Int, HalfTy), Ops, "vrndn"); 10918 } 10919 case NEON::BI__builtin_neon_vrndn_v: 10920 case NEON::BI__builtin_neon_vrndnq_v: { 10921 Int = Builder.getIsFPConstrained() 10922 ? Intrinsic::experimental_constrained_roundeven 10923 : Intrinsic::roundeven; 10924 return EmitNeonCall(CGM.getIntrinsic(Int, Ty), Ops, "vrndn"); 10925 } 10926 case NEON::BI__builtin_neon_vrndns_f32: { 10927 Ops.push_back(EmitScalarExpr(E->getArg(0))); 10928 Int = Builder.getIsFPConstrained() 10929 ? Intrinsic::experimental_constrained_roundeven 10930 : Intrinsic::roundeven; 10931 return EmitNeonCall(CGM.getIntrinsic(Int, FloatTy), Ops, "vrndn"); 10932 } 10933 case NEON::BI__builtin_neon_vrndph_f16: { 10934 Ops.push_back(EmitScalarExpr(E->getArg(0))); 10935 Int = Builder.getIsFPConstrained() 10936 ? Intrinsic::experimental_constrained_ceil 10937 : Intrinsic::ceil; 10938 return EmitNeonCall(CGM.getIntrinsic(Int, HalfTy), Ops, "vrndp"); 10939 } 10940 case NEON::BI__builtin_neon_vrndp_v: 10941 case NEON::BI__builtin_neon_vrndpq_v: { 10942 Int = Builder.getIsFPConstrained() 10943 ? Intrinsic::experimental_constrained_ceil 10944 : Intrinsic::ceil; 10945 return EmitNeonCall(CGM.getIntrinsic(Int, Ty), Ops, "vrndp"); 10946 } 10947 case NEON::BI__builtin_neon_vrndxh_f16: { 10948 Ops.push_back(EmitScalarExpr(E->getArg(0))); 10949 Int = Builder.getIsFPConstrained() 10950 ? Intrinsic::experimental_constrained_rint 10951 : Intrinsic::rint; 10952 return EmitNeonCall(CGM.getIntrinsic(Int, HalfTy), Ops, "vrndx"); 10953 } 10954 case NEON::BI__builtin_neon_vrndx_v: 10955 case NEON::BI__builtin_neon_vrndxq_v: { 10956 Int = Builder.getIsFPConstrained() 10957 ? Intrinsic::experimental_constrained_rint 10958 : Intrinsic::rint; 10959 return EmitNeonCall(CGM.getIntrinsic(Int, Ty), Ops, "vrndx"); 10960 } 10961 case NEON::BI__builtin_neon_vrndh_f16: { 10962 Ops.push_back(EmitScalarExpr(E->getArg(0))); 10963 Int = Builder.getIsFPConstrained() 10964 ? Intrinsic::experimental_constrained_trunc 10965 : Intrinsic::trunc; 10966 return EmitNeonCall(CGM.getIntrinsic(Int, HalfTy), Ops, "vrndz"); 10967 } 10968 case NEON::BI__builtin_neon_vrnd32x_v: 10969 case NEON::BI__builtin_neon_vrnd32xq_v: { 10970 Ops.push_back(EmitScalarExpr(E->getArg(0))); 10971 Int = Intrinsic::aarch64_neon_frint32x; 10972 return EmitNeonCall(CGM.getIntrinsic(Int, Ty), Ops, "vrnd32x"); 10973 } 10974 case NEON::BI__builtin_neon_vrnd32z_v: 10975 case NEON::BI__builtin_neon_vrnd32zq_v: { 10976 Ops.push_back(EmitScalarExpr(E->getArg(0))); 10977 Int = Intrinsic::aarch64_neon_frint32z; 10978 return EmitNeonCall(CGM.getIntrinsic(Int, Ty), Ops, "vrnd32z"); 10979 } 10980 case NEON::BI__builtin_neon_vrnd64x_v: 10981 case NEON::BI__builtin_neon_vrnd64xq_v: { 10982 Ops.push_back(EmitScalarExpr(E->getArg(0))); 10983 Int = Intrinsic::aarch64_neon_frint64x; 10984 return EmitNeonCall(CGM.getIntrinsic(Int, Ty), Ops, "vrnd64x"); 10985 } 10986 case NEON::BI__builtin_neon_vrnd64z_v: 10987 case NEON::BI__builtin_neon_vrnd64zq_v: { 10988 Ops.push_back(EmitScalarExpr(E->getArg(0))); 10989 Int = Intrinsic::aarch64_neon_frint64z; 10990 return EmitNeonCall(CGM.getIntrinsic(Int, Ty), Ops, "vrnd64z"); 10991 } 10992 case NEON::BI__builtin_neon_vrnd_v: 10993 case NEON::BI__builtin_neon_vrndq_v: { 10994 Int = Builder.getIsFPConstrained() 10995 ? Intrinsic::experimental_constrained_trunc 10996 : Intrinsic::trunc; 10997 return EmitNeonCall(CGM.getIntrinsic(Int, Ty), Ops, "vrndz"); 10998 } 10999 case NEON::BI__builtin_neon_vcvt_f64_v: 11000 case NEON::BI__builtin_neon_vcvtq_f64_v: 11001 Ops[0] = Builder.CreateBitCast(Ops[0], Ty); 11002 Ty = GetNeonType(this, NeonTypeFlags(NeonTypeFlags::Float64, false, quad)); 11003 return usgn ? Builder.CreateUIToFP(Ops[0], Ty, "vcvt") 11004 : Builder.CreateSIToFP(Ops[0], Ty, "vcvt"); 11005 case NEON::BI__builtin_neon_vcvt_f64_f32: { 11006 assert(Type.getEltType() == NeonTypeFlags::Float64 && quad && 11007 "unexpected vcvt_f64_f32 builtin"); 11008 NeonTypeFlags SrcFlag = NeonTypeFlags(NeonTypeFlags::Float32, false, false); 11009 Ops[0] = Builder.CreateBitCast(Ops[0], GetNeonType(this, SrcFlag)); 11010 11011 return Builder.CreateFPExt(Ops[0], Ty, "vcvt"); 11012 } 11013 case NEON::BI__builtin_neon_vcvt_f32_f64: { 11014 assert(Type.getEltType() == NeonTypeFlags::Float32 && 11015 "unexpected vcvt_f32_f64 builtin"); 11016 NeonTypeFlags SrcFlag = NeonTypeFlags(NeonTypeFlags::Float64, false, true); 11017 Ops[0] = Builder.CreateBitCast(Ops[0], GetNeonType(this, SrcFlag)); 11018 11019 return Builder.CreateFPTrunc(Ops[0], Ty, "vcvt"); 11020 } 11021 case NEON::BI__builtin_neon_vcvt_s32_v: 11022 case NEON::BI__builtin_neon_vcvt_u32_v: 11023 case NEON::BI__builtin_neon_vcvt_s64_v: 11024 case NEON::BI__builtin_neon_vcvt_u64_v: 11025 case NEON::BI__builtin_neon_vcvt_s16_v: 11026 case NEON::BI__builtin_neon_vcvt_u16_v: 11027 case NEON::BI__builtin_neon_vcvtq_s32_v: 11028 case NEON::BI__builtin_neon_vcvtq_u32_v: 11029 case NEON::BI__builtin_neon_vcvtq_s64_v: 11030 case NEON::BI__builtin_neon_vcvtq_u64_v: 11031 case NEON::BI__builtin_neon_vcvtq_s16_v: 11032 case NEON::BI__builtin_neon_vcvtq_u16_v: { 11033 Int = 11034 usgn ? Intrinsic::aarch64_neon_fcvtzu : Intrinsic::aarch64_neon_fcvtzs; 11035 llvm::Type *Tys[2] = {Ty, GetFloatNeonType(this, Type)}; 11036 return EmitNeonCall(CGM.getIntrinsic(Int, Tys), Ops, "vcvtz"); 11037 } 11038 case NEON::BI__builtin_neon_vcvta_s16_v: 11039 case NEON::BI__builtin_neon_vcvta_u16_v: 11040 case NEON::BI__builtin_neon_vcvta_s32_v: 11041 case NEON::BI__builtin_neon_vcvtaq_s16_v: 11042 case NEON::BI__builtin_neon_vcvtaq_s32_v: 11043 case NEON::BI__builtin_neon_vcvta_u32_v: 11044 case NEON::BI__builtin_neon_vcvtaq_u16_v: 11045 case NEON::BI__builtin_neon_vcvtaq_u32_v: 11046 case NEON::BI__builtin_neon_vcvta_s64_v: 11047 case NEON::BI__builtin_neon_vcvtaq_s64_v: 11048 case NEON::BI__builtin_neon_vcvta_u64_v: 11049 case NEON::BI__builtin_neon_vcvtaq_u64_v: { 11050 Int = usgn ? Intrinsic::aarch64_neon_fcvtau : Intrinsic::aarch64_neon_fcvtas; 11051 llvm::Type *Tys[2] = { Ty, GetFloatNeonType(this, Type) }; 11052 return EmitNeonCall(CGM.getIntrinsic(Int, Tys), Ops, "vcvta"); 11053 } 11054 case NEON::BI__builtin_neon_vcvtm_s16_v: 11055 case NEON::BI__builtin_neon_vcvtm_s32_v: 11056 case NEON::BI__builtin_neon_vcvtmq_s16_v: 11057 case NEON::BI__builtin_neon_vcvtmq_s32_v: 11058 case NEON::BI__builtin_neon_vcvtm_u16_v: 11059 case NEON::BI__builtin_neon_vcvtm_u32_v: 11060 case NEON::BI__builtin_neon_vcvtmq_u16_v: 11061 case NEON::BI__builtin_neon_vcvtmq_u32_v: 11062 case NEON::BI__builtin_neon_vcvtm_s64_v: 11063 case NEON::BI__builtin_neon_vcvtmq_s64_v: 11064 case NEON::BI__builtin_neon_vcvtm_u64_v: 11065 case NEON::BI__builtin_neon_vcvtmq_u64_v: { 11066 Int = usgn ? Intrinsic::aarch64_neon_fcvtmu : Intrinsic::aarch64_neon_fcvtms; 11067 llvm::Type *Tys[2] = { Ty, GetFloatNeonType(this, Type) }; 11068 return EmitNeonCall(CGM.getIntrinsic(Int, Tys), Ops, "vcvtm"); 11069 } 11070 case NEON::BI__builtin_neon_vcvtn_s16_v: 11071 case NEON::BI__builtin_neon_vcvtn_s32_v: 11072 case NEON::BI__builtin_neon_vcvtnq_s16_v: 11073 case NEON::BI__builtin_neon_vcvtnq_s32_v: 11074 case NEON::BI__builtin_neon_vcvtn_u16_v: 11075 case NEON::BI__builtin_neon_vcvtn_u32_v: 11076 case NEON::BI__builtin_neon_vcvtnq_u16_v: 11077 case NEON::BI__builtin_neon_vcvtnq_u32_v: 11078 case NEON::BI__builtin_neon_vcvtn_s64_v: 11079 case NEON::BI__builtin_neon_vcvtnq_s64_v: 11080 case NEON::BI__builtin_neon_vcvtn_u64_v: 11081 case NEON::BI__builtin_neon_vcvtnq_u64_v: { 11082 Int = usgn ? Intrinsic::aarch64_neon_fcvtnu : Intrinsic::aarch64_neon_fcvtns; 11083 llvm::Type *Tys[2] = { Ty, GetFloatNeonType(this, Type) }; 11084 return EmitNeonCall(CGM.getIntrinsic(Int, Tys), Ops, "vcvtn"); 11085 } 11086 case NEON::BI__builtin_neon_vcvtp_s16_v: 11087 case NEON::BI__builtin_neon_vcvtp_s32_v: 11088 case NEON::BI__builtin_neon_vcvtpq_s16_v: 11089 case NEON::BI__builtin_neon_vcvtpq_s32_v: 11090 case NEON::BI__builtin_neon_vcvtp_u16_v: 11091 case NEON::BI__builtin_neon_vcvtp_u32_v: 11092 case NEON::BI__builtin_neon_vcvtpq_u16_v: 11093 case NEON::BI__builtin_neon_vcvtpq_u32_v: 11094 case NEON::BI__builtin_neon_vcvtp_s64_v: 11095 case NEON::BI__builtin_neon_vcvtpq_s64_v: 11096 case NEON::BI__builtin_neon_vcvtp_u64_v: 11097 case NEON::BI__builtin_neon_vcvtpq_u64_v: { 11098 Int = usgn ? Intrinsic::aarch64_neon_fcvtpu : Intrinsic::aarch64_neon_fcvtps; 11099 llvm::Type *Tys[2] = { Ty, GetFloatNeonType(this, Type) }; 11100 return EmitNeonCall(CGM.getIntrinsic(Int, Tys), Ops, "vcvtp"); 11101 } 11102 case NEON::BI__builtin_neon_vmulx_v: 11103 case NEON::BI__builtin_neon_vmulxq_v: { 11104 Int = Intrinsic::aarch64_neon_fmulx; 11105 return EmitNeonCall(CGM.getIntrinsic(Int, Ty), Ops, "vmulx"); 11106 } 11107 case NEON::BI__builtin_neon_vmulxh_lane_f16: 11108 case NEON::BI__builtin_neon_vmulxh_laneq_f16: { 11109 // vmulx_lane should be mapped to Neon scalar mulx after 11110 // extracting the scalar element 11111 Ops.push_back(EmitScalarExpr(E->getArg(2))); 11112 Ops[1] = Builder.CreateExtractElement(Ops[1], Ops[2], "extract"); 11113 Ops.pop_back(); 11114 Int = Intrinsic::aarch64_neon_fmulx; 11115 return EmitNeonCall(CGM.getIntrinsic(Int, HalfTy), Ops, "vmulx"); 11116 } 11117 case NEON::BI__builtin_neon_vmul_lane_v: 11118 case NEON::BI__builtin_neon_vmul_laneq_v: { 11119 // v1f64 vmul_lane should be mapped to Neon scalar mul lane 11120 bool Quad = false; 11121 if (BuiltinID == NEON::BI__builtin_neon_vmul_laneq_v) 11122 Quad = true; 11123 Ops[0] = Builder.CreateBitCast(Ops[0], DoubleTy); 11124 llvm::FixedVectorType *VTy = 11125 GetNeonType(this, NeonTypeFlags(NeonTypeFlags::Float64, false, Quad)); 11126 Ops[1] = Builder.CreateBitCast(Ops[1], VTy); 11127 Ops[1] = Builder.CreateExtractElement(Ops[1], Ops[2], "extract"); 11128 Value *Result = Builder.CreateFMul(Ops[0], Ops[1]); 11129 return Builder.CreateBitCast(Result, Ty); 11130 } 11131 case NEON::BI__builtin_neon_vnegd_s64: 11132 return Builder.CreateNeg(EmitScalarExpr(E->getArg(0)), "vnegd"); 11133 case NEON::BI__builtin_neon_vnegh_f16: 11134 return Builder.CreateFNeg(EmitScalarExpr(E->getArg(0)), "vnegh"); 11135 case NEON::BI__builtin_neon_vpmaxnm_v: 11136 case NEON::BI__builtin_neon_vpmaxnmq_v: { 11137 Int = Intrinsic::aarch64_neon_fmaxnmp; 11138 return EmitNeonCall(CGM.getIntrinsic(Int, Ty), Ops, "vpmaxnm"); 11139 } 11140 case NEON::BI__builtin_neon_vpminnm_v: 11141 case NEON::BI__builtin_neon_vpminnmq_v: { 11142 Int = Intrinsic::aarch64_neon_fminnmp; 11143 return EmitNeonCall(CGM.getIntrinsic(Int, Ty), Ops, "vpminnm"); 11144 } 11145 case NEON::BI__builtin_neon_vsqrth_f16: { 11146 Ops.push_back(EmitScalarExpr(E->getArg(0))); 11147 Int = Builder.getIsFPConstrained() 11148 ? Intrinsic::experimental_constrained_sqrt 11149 : Intrinsic::sqrt; 11150 return EmitNeonCall(CGM.getIntrinsic(Int, HalfTy), Ops, "vsqrt"); 11151 } 11152 case NEON::BI__builtin_neon_vsqrt_v: 11153 case NEON::BI__builtin_neon_vsqrtq_v: { 11154 Int = Builder.getIsFPConstrained() 11155 ? Intrinsic::experimental_constrained_sqrt 11156 : Intrinsic::sqrt; 11157 Ops[0] = Builder.CreateBitCast(Ops[0], Ty); 11158 return EmitNeonCall(CGM.getIntrinsic(Int, Ty), Ops, "vsqrt"); 11159 } 11160 case NEON::BI__builtin_neon_vrbit_v: 11161 case NEON::BI__builtin_neon_vrbitq_v: { 11162 Int = Intrinsic::bitreverse; 11163 return EmitNeonCall(CGM.getIntrinsic(Int, Ty), Ops, "vrbit"); 11164 } 11165 case NEON::BI__builtin_neon_vaddv_u8: 11166 // FIXME: These are handled by the AArch64 scalar code. 11167 usgn = true; 11168 LLVM_FALLTHROUGH; 11169 case NEON::BI__builtin_neon_vaddv_s8: { 11170 Int = usgn ? Intrinsic::aarch64_neon_uaddv : Intrinsic::aarch64_neon_saddv; 11171 Ty = Int32Ty; 11172 VTy = llvm::FixedVectorType::get(Int8Ty, 8); 11173 llvm::Type *Tys[2] = { Ty, VTy }; 11174 Ops.push_back(EmitScalarExpr(E->getArg(0))); 11175 Ops[0] = EmitNeonCall(CGM.getIntrinsic(Int, Tys), Ops, "vaddv"); 11176 return Builder.CreateTrunc(Ops[0], Int8Ty); 11177 } 11178 case NEON::BI__builtin_neon_vaddv_u16: 11179 usgn = true; 11180 LLVM_FALLTHROUGH; 11181 case NEON::BI__builtin_neon_vaddv_s16: { 11182 Int = usgn ? Intrinsic::aarch64_neon_uaddv : Intrinsic::aarch64_neon_saddv; 11183 Ty = Int32Ty; 11184 VTy = llvm::FixedVectorType::get(Int16Ty, 4); 11185 llvm::Type *Tys[2] = { Ty, VTy }; 11186 Ops.push_back(EmitScalarExpr(E->getArg(0))); 11187 Ops[0] = EmitNeonCall(CGM.getIntrinsic(Int, Tys), Ops, "vaddv"); 11188 return Builder.CreateTrunc(Ops[0], Int16Ty); 11189 } 11190 case NEON::BI__builtin_neon_vaddvq_u8: 11191 usgn = true; 11192 LLVM_FALLTHROUGH; 11193 case NEON::BI__builtin_neon_vaddvq_s8: { 11194 Int = usgn ? Intrinsic::aarch64_neon_uaddv : Intrinsic::aarch64_neon_saddv; 11195 Ty = Int32Ty; 11196 VTy = llvm::FixedVectorType::get(Int8Ty, 16); 11197 llvm::Type *Tys[2] = { Ty, VTy }; 11198 Ops.push_back(EmitScalarExpr(E->getArg(0))); 11199 Ops[0] = EmitNeonCall(CGM.getIntrinsic(Int, Tys), Ops, "vaddv"); 11200 return Builder.CreateTrunc(Ops[0], Int8Ty); 11201 } 11202 case NEON::BI__builtin_neon_vaddvq_u16: 11203 usgn = true; 11204 LLVM_FALLTHROUGH; 11205 case NEON::BI__builtin_neon_vaddvq_s16: { 11206 Int = usgn ? Intrinsic::aarch64_neon_uaddv : Intrinsic::aarch64_neon_saddv; 11207 Ty = Int32Ty; 11208 VTy = llvm::FixedVectorType::get(Int16Ty, 8); 11209 llvm::Type *Tys[2] = { Ty, VTy }; 11210 Ops.push_back(EmitScalarExpr(E->getArg(0))); 11211 Ops[0] = EmitNeonCall(CGM.getIntrinsic(Int, Tys), Ops, "vaddv"); 11212 return Builder.CreateTrunc(Ops[0], Int16Ty); 11213 } 11214 case NEON::BI__builtin_neon_vmaxv_u8: { 11215 Int = Intrinsic::aarch64_neon_umaxv; 11216 Ty = Int32Ty; 11217 VTy = llvm::FixedVectorType::get(Int8Ty, 8); 11218 llvm::Type *Tys[2] = { Ty, VTy }; 11219 Ops.push_back(EmitScalarExpr(E->getArg(0))); 11220 Ops[0] = EmitNeonCall(CGM.getIntrinsic(Int, Tys), Ops, "vmaxv"); 11221 return Builder.CreateTrunc(Ops[0], Int8Ty); 11222 } 11223 case NEON::BI__builtin_neon_vmaxv_u16: { 11224 Int = Intrinsic::aarch64_neon_umaxv; 11225 Ty = Int32Ty; 11226 VTy = llvm::FixedVectorType::get(Int16Ty, 4); 11227 llvm::Type *Tys[2] = { Ty, VTy }; 11228 Ops.push_back(EmitScalarExpr(E->getArg(0))); 11229 Ops[0] = EmitNeonCall(CGM.getIntrinsic(Int, Tys), Ops, "vmaxv"); 11230 return Builder.CreateTrunc(Ops[0], Int16Ty); 11231 } 11232 case NEON::BI__builtin_neon_vmaxvq_u8: { 11233 Int = Intrinsic::aarch64_neon_umaxv; 11234 Ty = Int32Ty; 11235 VTy = llvm::FixedVectorType::get(Int8Ty, 16); 11236 llvm::Type *Tys[2] = { Ty, VTy }; 11237 Ops.push_back(EmitScalarExpr(E->getArg(0))); 11238 Ops[0] = EmitNeonCall(CGM.getIntrinsic(Int, Tys), Ops, "vmaxv"); 11239 return Builder.CreateTrunc(Ops[0], Int8Ty); 11240 } 11241 case NEON::BI__builtin_neon_vmaxvq_u16: { 11242 Int = Intrinsic::aarch64_neon_umaxv; 11243 Ty = Int32Ty; 11244 VTy = llvm::FixedVectorType::get(Int16Ty, 8); 11245 llvm::Type *Tys[2] = { Ty, VTy }; 11246 Ops.push_back(EmitScalarExpr(E->getArg(0))); 11247 Ops[0] = EmitNeonCall(CGM.getIntrinsic(Int, Tys), Ops, "vmaxv"); 11248 return Builder.CreateTrunc(Ops[0], Int16Ty); 11249 } 11250 case NEON::BI__builtin_neon_vmaxv_s8: { 11251 Int = Intrinsic::aarch64_neon_smaxv; 11252 Ty = Int32Ty; 11253 VTy = llvm::FixedVectorType::get(Int8Ty, 8); 11254 llvm::Type *Tys[2] = { Ty, VTy }; 11255 Ops.push_back(EmitScalarExpr(E->getArg(0))); 11256 Ops[0] = EmitNeonCall(CGM.getIntrinsic(Int, Tys), Ops, "vmaxv"); 11257 return Builder.CreateTrunc(Ops[0], Int8Ty); 11258 } 11259 case NEON::BI__builtin_neon_vmaxv_s16: { 11260 Int = Intrinsic::aarch64_neon_smaxv; 11261 Ty = Int32Ty; 11262 VTy = llvm::FixedVectorType::get(Int16Ty, 4); 11263 llvm::Type *Tys[2] = { Ty, VTy }; 11264 Ops.push_back(EmitScalarExpr(E->getArg(0))); 11265 Ops[0] = EmitNeonCall(CGM.getIntrinsic(Int, Tys), Ops, "vmaxv"); 11266 return Builder.CreateTrunc(Ops[0], Int16Ty); 11267 } 11268 case NEON::BI__builtin_neon_vmaxvq_s8: { 11269 Int = Intrinsic::aarch64_neon_smaxv; 11270 Ty = Int32Ty; 11271 VTy = llvm::FixedVectorType::get(Int8Ty, 16); 11272 llvm::Type *Tys[2] = { Ty, VTy }; 11273 Ops.push_back(EmitScalarExpr(E->getArg(0))); 11274 Ops[0] = EmitNeonCall(CGM.getIntrinsic(Int, Tys), Ops, "vmaxv"); 11275 return Builder.CreateTrunc(Ops[0], Int8Ty); 11276 } 11277 case NEON::BI__builtin_neon_vmaxvq_s16: { 11278 Int = Intrinsic::aarch64_neon_smaxv; 11279 Ty = Int32Ty; 11280 VTy = llvm::FixedVectorType::get(Int16Ty, 8); 11281 llvm::Type *Tys[2] = { Ty, VTy }; 11282 Ops.push_back(EmitScalarExpr(E->getArg(0))); 11283 Ops[0] = EmitNeonCall(CGM.getIntrinsic(Int, Tys), Ops, "vmaxv"); 11284 return Builder.CreateTrunc(Ops[0], Int16Ty); 11285 } 11286 case NEON::BI__builtin_neon_vmaxv_f16: { 11287 Int = Intrinsic::aarch64_neon_fmaxv; 11288 Ty = HalfTy; 11289 VTy = llvm::FixedVectorType::get(HalfTy, 4); 11290 llvm::Type *Tys[2] = { Ty, VTy }; 11291 Ops.push_back(EmitScalarExpr(E->getArg(0))); 11292 Ops[0] = EmitNeonCall(CGM.getIntrinsic(Int, Tys), Ops, "vmaxv"); 11293 return Builder.CreateTrunc(Ops[0], HalfTy); 11294 } 11295 case NEON::BI__builtin_neon_vmaxvq_f16: { 11296 Int = Intrinsic::aarch64_neon_fmaxv; 11297 Ty = HalfTy; 11298 VTy = llvm::FixedVectorType::get(HalfTy, 8); 11299 llvm::Type *Tys[2] = { Ty, VTy }; 11300 Ops.push_back(EmitScalarExpr(E->getArg(0))); 11301 Ops[0] = EmitNeonCall(CGM.getIntrinsic(Int, Tys), Ops, "vmaxv"); 11302 return Builder.CreateTrunc(Ops[0], HalfTy); 11303 } 11304 case NEON::BI__builtin_neon_vminv_u8: { 11305 Int = Intrinsic::aarch64_neon_uminv; 11306 Ty = Int32Ty; 11307 VTy = llvm::FixedVectorType::get(Int8Ty, 8); 11308 llvm::Type *Tys[2] = { Ty, VTy }; 11309 Ops.push_back(EmitScalarExpr(E->getArg(0))); 11310 Ops[0] = EmitNeonCall(CGM.getIntrinsic(Int, Tys), Ops, "vminv"); 11311 return Builder.CreateTrunc(Ops[0], Int8Ty); 11312 } 11313 case NEON::BI__builtin_neon_vminv_u16: { 11314 Int = Intrinsic::aarch64_neon_uminv; 11315 Ty = Int32Ty; 11316 VTy = llvm::FixedVectorType::get(Int16Ty, 4); 11317 llvm::Type *Tys[2] = { Ty, VTy }; 11318 Ops.push_back(EmitScalarExpr(E->getArg(0))); 11319 Ops[0] = EmitNeonCall(CGM.getIntrinsic(Int, Tys), Ops, "vminv"); 11320 return Builder.CreateTrunc(Ops[0], Int16Ty); 11321 } 11322 case NEON::BI__builtin_neon_vminvq_u8: { 11323 Int = Intrinsic::aarch64_neon_uminv; 11324 Ty = Int32Ty; 11325 VTy = llvm::FixedVectorType::get(Int8Ty, 16); 11326 llvm::Type *Tys[2] = { Ty, VTy }; 11327 Ops.push_back(EmitScalarExpr(E->getArg(0))); 11328 Ops[0] = EmitNeonCall(CGM.getIntrinsic(Int, Tys), Ops, "vminv"); 11329 return Builder.CreateTrunc(Ops[0], Int8Ty); 11330 } 11331 case NEON::BI__builtin_neon_vminvq_u16: { 11332 Int = Intrinsic::aarch64_neon_uminv; 11333 Ty = Int32Ty; 11334 VTy = llvm::FixedVectorType::get(Int16Ty, 8); 11335 llvm::Type *Tys[2] = { Ty, VTy }; 11336 Ops.push_back(EmitScalarExpr(E->getArg(0))); 11337 Ops[0] = EmitNeonCall(CGM.getIntrinsic(Int, Tys), Ops, "vminv"); 11338 return Builder.CreateTrunc(Ops[0], Int16Ty); 11339 } 11340 case NEON::BI__builtin_neon_vminv_s8: { 11341 Int = Intrinsic::aarch64_neon_sminv; 11342 Ty = Int32Ty; 11343 VTy = llvm::FixedVectorType::get(Int8Ty, 8); 11344 llvm::Type *Tys[2] = { Ty, VTy }; 11345 Ops.push_back(EmitScalarExpr(E->getArg(0))); 11346 Ops[0] = EmitNeonCall(CGM.getIntrinsic(Int, Tys), Ops, "vminv"); 11347 return Builder.CreateTrunc(Ops[0], Int8Ty); 11348 } 11349 case NEON::BI__builtin_neon_vminv_s16: { 11350 Int = Intrinsic::aarch64_neon_sminv; 11351 Ty = Int32Ty; 11352 VTy = llvm::FixedVectorType::get(Int16Ty, 4); 11353 llvm::Type *Tys[2] = { Ty, VTy }; 11354 Ops.push_back(EmitScalarExpr(E->getArg(0))); 11355 Ops[0] = EmitNeonCall(CGM.getIntrinsic(Int, Tys), Ops, "vminv"); 11356 return Builder.CreateTrunc(Ops[0], Int16Ty); 11357 } 11358 case NEON::BI__builtin_neon_vminvq_s8: { 11359 Int = Intrinsic::aarch64_neon_sminv; 11360 Ty = Int32Ty; 11361 VTy = llvm::FixedVectorType::get(Int8Ty, 16); 11362 llvm::Type *Tys[2] = { Ty, VTy }; 11363 Ops.push_back(EmitScalarExpr(E->getArg(0))); 11364 Ops[0] = EmitNeonCall(CGM.getIntrinsic(Int, Tys), Ops, "vminv"); 11365 return Builder.CreateTrunc(Ops[0], Int8Ty); 11366 } 11367 case NEON::BI__builtin_neon_vminvq_s16: { 11368 Int = Intrinsic::aarch64_neon_sminv; 11369 Ty = Int32Ty; 11370 VTy = llvm::FixedVectorType::get(Int16Ty, 8); 11371 llvm::Type *Tys[2] = { Ty, VTy }; 11372 Ops.push_back(EmitScalarExpr(E->getArg(0))); 11373 Ops[0] = EmitNeonCall(CGM.getIntrinsic(Int, Tys), Ops, "vminv"); 11374 return Builder.CreateTrunc(Ops[0], Int16Ty); 11375 } 11376 case NEON::BI__builtin_neon_vminv_f16: { 11377 Int = Intrinsic::aarch64_neon_fminv; 11378 Ty = HalfTy; 11379 VTy = llvm::FixedVectorType::get(HalfTy, 4); 11380 llvm::Type *Tys[2] = { Ty, VTy }; 11381 Ops.push_back(EmitScalarExpr(E->getArg(0))); 11382 Ops[0] = EmitNeonCall(CGM.getIntrinsic(Int, Tys), Ops, "vminv"); 11383 return Builder.CreateTrunc(Ops[0], HalfTy); 11384 } 11385 case NEON::BI__builtin_neon_vminvq_f16: { 11386 Int = Intrinsic::aarch64_neon_fminv; 11387 Ty = HalfTy; 11388 VTy = llvm::FixedVectorType::get(HalfTy, 8); 11389 llvm::Type *Tys[2] = { Ty, VTy }; 11390 Ops.push_back(EmitScalarExpr(E->getArg(0))); 11391 Ops[0] = EmitNeonCall(CGM.getIntrinsic(Int, Tys), Ops, "vminv"); 11392 return Builder.CreateTrunc(Ops[0], HalfTy); 11393 } 11394 case NEON::BI__builtin_neon_vmaxnmv_f16: { 11395 Int = Intrinsic::aarch64_neon_fmaxnmv; 11396 Ty = HalfTy; 11397 VTy = llvm::FixedVectorType::get(HalfTy, 4); 11398 llvm::Type *Tys[2] = { Ty, VTy }; 11399 Ops.push_back(EmitScalarExpr(E->getArg(0))); 11400 Ops[0] = EmitNeonCall(CGM.getIntrinsic(Int, Tys), Ops, "vmaxnmv"); 11401 return Builder.CreateTrunc(Ops[0], HalfTy); 11402 } 11403 case NEON::BI__builtin_neon_vmaxnmvq_f16: { 11404 Int = Intrinsic::aarch64_neon_fmaxnmv; 11405 Ty = HalfTy; 11406 VTy = llvm::FixedVectorType::get(HalfTy, 8); 11407 llvm::Type *Tys[2] = { Ty, VTy }; 11408 Ops.push_back(EmitScalarExpr(E->getArg(0))); 11409 Ops[0] = EmitNeonCall(CGM.getIntrinsic(Int, Tys), Ops, "vmaxnmv"); 11410 return Builder.CreateTrunc(Ops[0], HalfTy); 11411 } 11412 case NEON::BI__builtin_neon_vminnmv_f16: { 11413 Int = Intrinsic::aarch64_neon_fminnmv; 11414 Ty = HalfTy; 11415 VTy = llvm::FixedVectorType::get(HalfTy, 4); 11416 llvm::Type *Tys[2] = { Ty, VTy }; 11417 Ops.push_back(EmitScalarExpr(E->getArg(0))); 11418 Ops[0] = EmitNeonCall(CGM.getIntrinsic(Int, Tys), Ops, "vminnmv"); 11419 return Builder.CreateTrunc(Ops[0], HalfTy); 11420 } 11421 case NEON::BI__builtin_neon_vminnmvq_f16: { 11422 Int = Intrinsic::aarch64_neon_fminnmv; 11423 Ty = HalfTy; 11424 VTy = llvm::FixedVectorType::get(HalfTy, 8); 11425 llvm::Type *Tys[2] = { Ty, VTy }; 11426 Ops.push_back(EmitScalarExpr(E->getArg(0))); 11427 Ops[0] = EmitNeonCall(CGM.getIntrinsic(Int, Tys), Ops, "vminnmv"); 11428 return Builder.CreateTrunc(Ops[0], HalfTy); 11429 } 11430 case NEON::BI__builtin_neon_vmul_n_f64: { 11431 Ops[0] = Builder.CreateBitCast(Ops[0], DoubleTy); 11432 Value *RHS = Builder.CreateBitCast(EmitScalarExpr(E->getArg(1)), DoubleTy); 11433 return Builder.CreateFMul(Ops[0], RHS); 11434 } 11435 case NEON::BI__builtin_neon_vaddlv_u8: { 11436 Int = Intrinsic::aarch64_neon_uaddlv; 11437 Ty = Int32Ty; 11438 VTy = llvm::FixedVectorType::get(Int8Ty, 8); 11439 llvm::Type *Tys[2] = { Ty, VTy }; 11440 Ops.push_back(EmitScalarExpr(E->getArg(0))); 11441 Ops[0] = EmitNeonCall(CGM.getIntrinsic(Int, Tys), Ops, "vaddlv"); 11442 return Builder.CreateTrunc(Ops[0], Int16Ty); 11443 } 11444 case NEON::BI__builtin_neon_vaddlv_u16: { 11445 Int = Intrinsic::aarch64_neon_uaddlv; 11446 Ty = Int32Ty; 11447 VTy = llvm::FixedVectorType::get(Int16Ty, 4); 11448 llvm::Type *Tys[2] = { Ty, VTy }; 11449 Ops.push_back(EmitScalarExpr(E->getArg(0))); 11450 return EmitNeonCall(CGM.getIntrinsic(Int, Tys), Ops, "vaddlv"); 11451 } 11452 case NEON::BI__builtin_neon_vaddlvq_u8: { 11453 Int = Intrinsic::aarch64_neon_uaddlv; 11454 Ty = Int32Ty; 11455 VTy = llvm::FixedVectorType::get(Int8Ty, 16); 11456 llvm::Type *Tys[2] = { Ty, VTy }; 11457 Ops.push_back(EmitScalarExpr(E->getArg(0))); 11458 Ops[0] = EmitNeonCall(CGM.getIntrinsic(Int, Tys), Ops, "vaddlv"); 11459 return Builder.CreateTrunc(Ops[0], Int16Ty); 11460 } 11461 case NEON::BI__builtin_neon_vaddlvq_u16: { 11462 Int = Intrinsic::aarch64_neon_uaddlv; 11463 Ty = Int32Ty; 11464 VTy = llvm::FixedVectorType::get(Int16Ty, 8); 11465 llvm::Type *Tys[2] = { Ty, VTy }; 11466 Ops.push_back(EmitScalarExpr(E->getArg(0))); 11467 return EmitNeonCall(CGM.getIntrinsic(Int, Tys), Ops, "vaddlv"); 11468 } 11469 case NEON::BI__builtin_neon_vaddlv_s8: { 11470 Int = Intrinsic::aarch64_neon_saddlv; 11471 Ty = Int32Ty; 11472 VTy = llvm::FixedVectorType::get(Int8Ty, 8); 11473 llvm::Type *Tys[2] = { Ty, VTy }; 11474 Ops.push_back(EmitScalarExpr(E->getArg(0))); 11475 Ops[0] = EmitNeonCall(CGM.getIntrinsic(Int, Tys), Ops, "vaddlv"); 11476 return Builder.CreateTrunc(Ops[0], Int16Ty); 11477 } 11478 case NEON::BI__builtin_neon_vaddlv_s16: { 11479 Int = Intrinsic::aarch64_neon_saddlv; 11480 Ty = Int32Ty; 11481 VTy = llvm::FixedVectorType::get(Int16Ty, 4); 11482 llvm::Type *Tys[2] = { Ty, VTy }; 11483 Ops.push_back(EmitScalarExpr(E->getArg(0))); 11484 return EmitNeonCall(CGM.getIntrinsic(Int, Tys), Ops, "vaddlv"); 11485 } 11486 case NEON::BI__builtin_neon_vaddlvq_s8: { 11487 Int = Intrinsic::aarch64_neon_saddlv; 11488 Ty = Int32Ty; 11489 VTy = llvm::FixedVectorType::get(Int8Ty, 16); 11490 llvm::Type *Tys[2] = { Ty, VTy }; 11491 Ops.push_back(EmitScalarExpr(E->getArg(0))); 11492 Ops[0] = EmitNeonCall(CGM.getIntrinsic(Int, Tys), Ops, "vaddlv"); 11493 return Builder.CreateTrunc(Ops[0], Int16Ty); 11494 } 11495 case NEON::BI__builtin_neon_vaddlvq_s16: { 11496 Int = Intrinsic::aarch64_neon_saddlv; 11497 Ty = Int32Ty; 11498 VTy = llvm::FixedVectorType::get(Int16Ty, 8); 11499 llvm::Type *Tys[2] = { Ty, VTy }; 11500 Ops.push_back(EmitScalarExpr(E->getArg(0))); 11501 return EmitNeonCall(CGM.getIntrinsic(Int, Tys), Ops, "vaddlv"); 11502 } 11503 case NEON::BI__builtin_neon_vsri_n_v: 11504 case NEON::BI__builtin_neon_vsriq_n_v: { 11505 Int = Intrinsic::aarch64_neon_vsri; 11506 llvm::Function *Intrin = CGM.getIntrinsic(Int, Ty); 11507 return EmitNeonCall(Intrin, Ops, "vsri_n"); 11508 } 11509 case NEON::BI__builtin_neon_vsli_n_v: 11510 case NEON::BI__builtin_neon_vsliq_n_v: { 11511 Int = Intrinsic::aarch64_neon_vsli; 11512 llvm::Function *Intrin = CGM.getIntrinsic(Int, Ty); 11513 return EmitNeonCall(Intrin, Ops, "vsli_n"); 11514 } 11515 case NEON::BI__builtin_neon_vsra_n_v: 11516 case NEON::BI__builtin_neon_vsraq_n_v: 11517 Ops[0] = Builder.CreateBitCast(Ops[0], Ty); 11518 Ops[1] = EmitNeonRShiftImm(Ops[1], Ops[2], Ty, usgn, "vsra_n"); 11519 return Builder.CreateAdd(Ops[0], Ops[1]); 11520 case NEON::BI__builtin_neon_vrsra_n_v: 11521 case NEON::BI__builtin_neon_vrsraq_n_v: { 11522 Int = usgn ? Intrinsic::aarch64_neon_urshl : Intrinsic::aarch64_neon_srshl; 11523 SmallVector<llvm::Value*,2> TmpOps; 11524 TmpOps.push_back(Ops[1]); 11525 TmpOps.push_back(Ops[2]); 11526 Function* F = CGM.getIntrinsic(Int, Ty); 11527 llvm::Value *tmp = EmitNeonCall(F, TmpOps, "vrshr_n", 1, true); 11528 Ops[0] = Builder.CreateBitCast(Ops[0], VTy); 11529 return Builder.CreateAdd(Ops[0], tmp); 11530 } 11531 case NEON::BI__builtin_neon_vld1_v: 11532 case NEON::BI__builtin_neon_vld1q_v: { 11533 Ops[0] = Builder.CreateBitCast(Ops[0], llvm::PointerType::getUnqual(VTy)); 11534 return Builder.CreateAlignedLoad(VTy, Ops[0], PtrOp0.getAlignment()); 11535 } 11536 case NEON::BI__builtin_neon_vst1_v: 11537 case NEON::BI__builtin_neon_vst1q_v: 11538 Ops[0] = Builder.CreateBitCast(Ops[0], llvm::PointerType::getUnqual(VTy)); 11539 Ops[1] = Builder.CreateBitCast(Ops[1], VTy); 11540 return Builder.CreateAlignedStore(Ops[1], Ops[0], PtrOp0.getAlignment()); 11541 case NEON::BI__builtin_neon_vld1_lane_v: 11542 case NEON::BI__builtin_neon_vld1q_lane_v: { 11543 Ops[1] = Builder.CreateBitCast(Ops[1], Ty); 11544 Ty = llvm::PointerType::getUnqual(VTy->getElementType()); 11545 Ops[0] = Builder.CreateBitCast(Ops[0], Ty); 11546 Ops[0] = Builder.CreateAlignedLoad(VTy->getElementType(), Ops[0], 11547 PtrOp0.getAlignment()); 11548 return Builder.CreateInsertElement(Ops[1], Ops[0], Ops[2], "vld1_lane"); 11549 } 11550 case NEON::BI__builtin_neon_vld1_dup_v: 11551 case NEON::BI__builtin_neon_vld1q_dup_v: { 11552 Value *V = UndefValue::get(Ty); 11553 Ty = llvm::PointerType::getUnqual(VTy->getElementType()); 11554 Ops[0] = Builder.CreateBitCast(Ops[0], Ty); 11555 Ops[0] = Builder.CreateAlignedLoad(VTy->getElementType(), Ops[0], 11556 PtrOp0.getAlignment()); 11557 llvm::Constant *CI = ConstantInt::get(Int32Ty, 0); 11558 Ops[0] = Builder.CreateInsertElement(V, Ops[0], CI); 11559 return EmitNeonSplat(Ops[0], CI); 11560 } 11561 case NEON::BI__builtin_neon_vst1_lane_v: 11562 case NEON::BI__builtin_neon_vst1q_lane_v: 11563 Ops[1] = Builder.CreateBitCast(Ops[1], Ty); 11564 Ops[1] = Builder.CreateExtractElement(Ops[1], Ops[2]); 11565 Ty = llvm::PointerType::getUnqual(Ops[1]->getType()); 11566 return Builder.CreateAlignedStore(Ops[1], Builder.CreateBitCast(Ops[0], Ty), 11567 PtrOp0.getAlignment()); 11568 case NEON::BI__builtin_neon_vld2_v: 11569 case NEON::BI__builtin_neon_vld2q_v: { 11570 llvm::Type *PTy = llvm::PointerType::getUnqual(VTy); 11571 Ops[1] = Builder.CreateBitCast(Ops[1], PTy); 11572 llvm::Type *Tys[2] = { VTy, PTy }; 11573 Function *F = CGM.getIntrinsic(Intrinsic::aarch64_neon_ld2, Tys); 11574 Ops[1] = Builder.CreateCall(F, Ops[1], "vld2"); 11575 Ops[0] = Builder.CreateBitCast(Ops[0], 11576 llvm::PointerType::getUnqual(Ops[1]->getType())); 11577 return Builder.CreateDefaultAlignedStore(Ops[1], Ops[0]); 11578 } 11579 case NEON::BI__builtin_neon_vld3_v: 11580 case NEON::BI__builtin_neon_vld3q_v: { 11581 llvm::Type *PTy = llvm::PointerType::getUnqual(VTy); 11582 Ops[1] = Builder.CreateBitCast(Ops[1], PTy); 11583 llvm::Type *Tys[2] = { VTy, PTy }; 11584 Function *F = CGM.getIntrinsic(Intrinsic::aarch64_neon_ld3, Tys); 11585 Ops[1] = Builder.CreateCall(F, Ops[1], "vld3"); 11586 Ops[0] = Builder.CreateBitCast(Ops[0], 11587 llvm::PointerType::getUnqual(Ops[1]->getType())); 11588 return Builder.CreateDefaultAlignedStore(Ops[1], Ops[0]); 11589 } 11590 case NEON::BI__builtin_neon_vld4_v: 11591 case NEON::BI__builtin_neon_vld4q_v: { 11592 llvm::Type *PTy = llvm::PointerType::getUnqual(VTy); 11593 Ops[1] = Builder.CreateBitCast(Ops[1], PTy); 11594 llvm::Type *Tys[2] = { VTy, PTy }; 11595 Function *F = CGM.getIntrinsic(Intrinsic::aarch64_neon_ld4, Tys); 11596 Ops[1] = Builder.CreateCall(F, Ops[1], "vld4"); 11597 Ops[0] = Builder.CreateBitCast(Ops[0], 11598 llvm::PointerType::getUnqual(Ops[1]->getType())); 11599 return Builder.CreateDefaultAlignedStore(Ops[1], Ops[0]); 11600 } 11601 case NEON::BI__builtin_neon_vld2_dup_v: 11602 case NEON::BI__builtin_neon_vld2q_dup_v: { 11603 llvm::Type *PTy = 11604 llvm::PointerType::getUnqual(VTy->getElementType()); 11605 Ops[1] = Builder.CreateBitCast(Ops[1], PTy); 11606 llvm::Type *Tys[2] = { VTy, PTy }; 11607 Function *F = CGM.getIntrinsic(Intrinsic::aarch64_neon_ld2r, Tys); 11608 Ops[1] = Builder.CreateCall(F, Ops[1], "vld2"); 11609 Ops[0] = Builder.CreateBitCast(Ops[0], 11610 llvm::PointerType::getUnqual(Ops[1]->getType())); 11611 return Builder.CreateDefaultAlignedStore(Ops[1], Ops[0]); 11612 } 11613 case NEON::BI__builtin_neon_vld3_dup_v: 11614 case NEON::BI__builtin_neon_vld3q_dup_v: { 11615 llvm::Type *PTy = 11616 llvm::PointerType::getUnqual(VTy->getElementType()); 11617 Ops[1] = Builder.CreateBitCast(Ops[1], PTy); 11618 llvm::Type *Tys[2] = { VTy, PTy }; 11619 Function *F = CGM.getIntrinsic(Intrinsic::aarch64_neon_ld3r, Tys); 11620 Ops[1] = Builder.CreateCall(F, Ops[1], "vld3"); 11621 Ops[0] = Builder.CreateBitCast(Ops[0], 11622 llvm::PointerType::getUnqual(Ops[1]->getType())); 11623 return Builder.CreateDefaultAlignedStore(Ops[1], Ops[0]); 11624 } 11625 case NEON::BI__builtin_neon_vld4_dup_v: 11626 case NEON::BI__builtin_neon_vld4q_dup_v: { 11627 llvm::Type *PTy = 11628 llvm::PointerType::getUnqual(VTy->getElementType()); 11629 Ops[1] = Builder.CreateBitCast(Ops[1], PTy); 11630 llvm::Type *Tys[2] = { VTy, PTy }; 11631 Function *F = CGM.getIntrinsic(Intrinsic::aarch64_neon_ld4r, Tys); 11632 Ops[1] = Builder.CreateCall(F, Ops[1], "vld4"); 11633 Ops[0] = Builder.CreateBitCast(Ops[0], 11634 llvm::PointerType::getUnqual(Ops[1]->getType())); 11635 return Builder.CreateDefaultAlignedStore(Ops[1], Ops[0]); 11636 } 11637 case NEON::BI__builtin_neon_vld2_lane_v: 11638 case NEON::BI__builtin_neon_vld2q_lane_v: { 11639 llvm::Type *Tys[2] = { VTy, Ops[1]->getType() }; 11640 Function *F = CGM.getIntrinsic(Intrinsic::aarch64_neon_ld2lane, Tys); 11641 std::rotate(Ops.begin() + 1, Ops.begin() + 2, Ops.end()); 11642 Ops[1] = Builder.CreateBitCast(Ops[1], Ty); 11643 Ops[2] = Builder.CreateBitCast(Ops[2], Ty); 11644 Ops[3] = Builder.CreateZExt(Ops[3], Int64Ty); 11645 Ops[1] = Builder.CreateCall(F, makeArrayRef(Ops).slice(1), "vld2_lane"); 11646 Ty = llvm::PointerType::getUnqual(Ops[1]->getType()); 11647 Ops[0] = Builder.CreateBitCast(Ops[0], Ty); 11648 return Builder.CreateDefaultAlignedStore(Ops[1], Ops[0]); 11649 } 11650 case NEON::BI__builtin_neon_vld3_lane_v: 11651 case NEON::BI__builtin_neon_vld3q_lane_v: { 11652 llvm::Type *Tys[2] = { VTy, Ops[1]->getType() }; 11653 Function *F = CGM.getIntrinsic(Intrinsic::aarch64_neon_ld3lane, Tys); 11654 std::rotate(Ops.begin() + 1, Ops.begin() + 2, Ops.end()); 11655 Ops[1] = Builder.CreateBitCast(Ops[1], Ty); 11656 Ops[2] = Builder.CreateBitCast(Ops[2], Ty); 11657 Ops[3] = Builder.CreateBitCast(Ops[3], Ty); 11658 Ops[4] = Builder.CreateZExt(Ops[4], Int64Ty); 11659 Ops[1] = Builder.CreateCall(F, makeArrayRef(Ops).slice(1), "vld3_lane"); 11660 Ty = llvm::PointerType::getUnqual(Ops[1]->getType()); 11661 Ops[0] = Builder.CreateBitCast(Ops[0], Ty); 11662 return Builder.CreateDefaultAlignedStore(Ops[1], Ops[0]); 11663 } 11664 case NEON::BI__builtin_neon_vld4_lane_v: 11665 case NEON::BI__builtin_neon_vld4q_lane_v: { 11666 llvm::Type *Tys[2] = { VTy, Ops[1]->getType() }; 11667 Function *F = CGM.getIntrinsic(Intrinsic::aarch64_neon_ld4lane, Tys); 11668 std::rotate(Ops.begin() + 1, Ops.begin() + 2, Ops.end()); 11669 Ops[1] = Builder.CreateBitCast(Ops[1], Ty); 11670 Ops[2] = Builder.CreateBitCast(Ops[2], Ty); 11671 Ops[3] = Builder.CreateBitCast(Ops[3], Ty); 11672 Ops[4] = Builder.CreateBitCast(Ops[4], Ty); 11673 Ops[5] = Builder.CreateZExt(Ops[5], Int64Ty); 11674 Ops[1] = Builder.CreateCall(F, makeArrayRef(Ops).slice(1), "vld4_lane"); 11675 Ty = llvm::PointerType::getUnqual(Ops[1]->getType()); 11676 Ops[0] = Builder.CreateBitCast(Ops[0], Ty); 11677 return Builder.CreateDefaultAlignedStore(Ops[1], Ops[0]); 11678 } 11679 case NEON::BI__builtin_neon_vst2_v: 11680 case NEON::BI__builtin_neon_vst2q_v: { 11681 std::rotate(Ops.begin(), Ops.begin() + 1, Ops.end()); 11682 llvm::Type *Tys[2] = { VTy, Ops[2]->getType() }; 11683 return EmitNeonCall(CGM.getIntrinsic(Intrinsic::aarch64_neon_st2, Tys), 11684 Ops, ""); 11685 } 11686 case NEON::BI__builtin_neon_vst2_lane_v: 11687 case NEON::BI__builtin_neon_vst2q_lane_v: { 11688 std::rotate(Ops.begin(), Ops.begin() + 1, Ops.end()); 11689 Ops[2] = Builder.CreateZExt(Ops[2], Int64Ty); 11690 llvm::Type *Tys[2] = { VTy, Ops[3]->getType() }; 11691 return EmitNeonCall(CGM.getIntrinsic(Intrinsic::aarch64_neon_st2lane, Tys), 11692 Ops, ""); 11693 } 11694 case NEON::BI__builtin_neon_vst3_v: 11695 case NEON::BI__builtin_neon_vst3q_v: { 11696 std::rotate(Ops.begin(), Ops.begin() + 1, Ops.end()); 11697 llvm::Type *Tys[2] = { VTy, Ops[3]->getType() }; 11698 return EmitNeonCall(CGM.getIntrinsic(Intrinsic::aarch64_neon_st3, Tys), 11699 Ops, ""); 11700 } 11701 case NEON::BI__builtin_neon_vst3_lane_v: 11702 case NEON::BI__builtin_neon_vst3q_lane_v: { 11703 std::rotate(Ops.begin(), Ops.begin() + 1, Ops.end()); 11704 Ops[3] = Builder.CreateZExt(Ops[3], Int64Ty); 11705 llvm::Type *Tys[2] = { VTy, Ops[4]->getType() }; 11706 return EmitNeonCall(CGM.getIntrinsic(Intrinsic::aarch64_neon_st3lane, Tys), 11707 Ops, ""); 11708 } 11709 case NEON::BI__builtin_neon_vst4_v: 11710 case NEON::BI__builtin_neon_vst4q_v: { 11711 std::rotate(Ops.begin(), Ops.begin() + 1, Ops.end()); 11712 llvm::Type *Tys[2] = { VTy, Ops[4]->getType() }; 11713 return EmitNeonCall(CGM.getIntrinsic(Intrinsic::aarch64_neon_st4, Tys), 11714 Ops, ""); 11715 } 11716 case NEON::BI__builtin_neon_vst4_lane_v: 11717 case NEON::BI__builtin_neon_vst4q_lane_v: { 11718 std::rotate(Ops.begin(), Ops.begin() + 1, Ops.end()); 11719 Ops[4] = Builder.CreateZExt(Ops[4], Int64Ty); 11720 llvm::Type *Tys[2] = { VTy, Ops[5]->getType() }; 11721 return EmitNeonCall(CGM.getIntrinsic(Intrinsic::aarch64_neon_st4lane, Tys), 11722 Ops, ""); 11723 } 11724 case NEON::BI__builtin_neon_vtrn_v: 11725 case NEON::BI__builtin_neon_vtrnq_v: { 11726 Ops[0] = Builder.CreateBitCast(Ops[0], llvm::PointerType::getUnqual(Ty)); 11727 Ops[1] = Builder.CreateBitCast(Ops[1], Ty); 11728 Ops[2] = Builder.CreateBitCast(Ops[2], Ty); 11729 Value *SV = nullptr; 11730 11731 for (unsigned vi = 0; vi != 2; ++vi) { 11732 SmallVector<int, 16> Indices; 11733 for (unsigned i = 0, e = VTy->getNumElements(); i != e; i += 2) { 11734 Indices.push_back(i+vi); 11735 Indices.push_back(i+e+vi); 11736 } 11737 Value *Addr = Builder.CreateConstInBoundsGEP1_32(Ty, Ops[0], vi); 11738 SV = Builder.CreateShuffleVector(Ops[1], Ops[2], Indices, "vtrn"); 11739 SV = Builder.CreateDefaultAlignedStore(SV, Addr); 11740 } 11741 return SV; 11742 } 11743 case NEON::BI__builtin_neon_vuzp_v: 11744 case NEON::BI__builtin_neon_vuzpq_v: { 11745 Ops[0] = Builder.CreateBitCast(Ops[0], llvm::PointerType::getUnqual(Ty)); 11746 Ops[1] = Builder.CreateBitCast(Ops[1], Ty); 11747 Ops[2] = Builder.CreateBitCast(Ops[2], Ty); 11748 Value *SV = nullptr; 11749 11750 for (unsigned vi = 0; vi != 2; ++vi) { 11751 SmallVector<int, 16> Indices; 11752 for (unsigned i = 0, e = VTy->getNumElements(); i != e; ++i) 11753 Indices.push_back(2*i+vi); 11754 11755 Value *Addr = Builder.CreateConstInBoundsGEP1_32(Ty, Ops[0], vi); 11756 SV = Builder.CreateShuffleVector(Ops[1], Ops[2], Indices, "vuzp"); 11757 SV = Builder.CreateDefaultAlignedStore(SV, Addr); 11758 } 11759 return SV; 11760 } 11761 case NEON::BI__builtin_neon_vzip_v: 11762 case NEON::BI__builtin_neon_vzipq_v: { 11763 Ops[0] = Builder.CreateBitCast(Ops[0], llvm::PointerType::getUnqual(Ty)); 11764 Ops[1] = Builder.CreateBitCast(Ops[1], Ty); 11765 Ops[2] = Builder.CreateBitCast(Ops[2], Ty); 11766 Value *SV = nullptr; 11767 11768 for (unsigned vi = 0; vi != 2; ++vi) { 11769 SmallVector<int, 16> Indices; 11770 for (unsigned i = 0, e = VTy->getNumElements(); i != e; i += 2) { 11771 Indices.push_back((i + vi*e) >> 1); 11772 Indices.push_back(((i + vi*e) >> 1)+e); 11773 } 11774 Value *Addr = Builder.CreateConstInBoundsGEP1_32(Ty, Ops[0], vi); 11775 SV = Builder.CreateShuffleVector(Ops[1], Ops[2], Indices, "vzip"); 11776 SV = Builder.CreateDefaultAlignedStore(SV, Addr); 11777 } 11778 return SV; 11779 } 11780 case NEON::BI__builtin_neon_vqtbl1q_v: { 11781 return EmitNeonCall(CGM.getIntrinsic(Intrinsic::aarch64_neon_tbl1, Ty), 11782 Ops, "vtbl1"); 11783 } 11784 case NEON::BI__builtin_neon_vqtbl2q_v: { 11785 return EmitNeonCall(CGM.getIntrinsic(Intrinsic::aarch64_neon_tbl2, Ty), 11786 Ops, "vtbl2"); 11787 } 11788 case NEON::BI__builtin_neon_vqtbl3q_v: { 11789 return EmitNeonCall(CGM.getIntrinsic(Intrinsic::aarch64_neon_tbl3, Ty), 11790 Ops, "vtbl3"); 11791 } 11792 case NEON::BI__builtin_neon_vqtbl4q_v: { 11793 return EmitNeonCall(CGM.getIntrinsic(Intrinsic::aarch64_neon_tbl4, Ty), 11794 Ops, "vtbl4"); 11795 } 11796 case NEON::BI__builtin_neon_vqtbx1q_v: { 11797 return EmitNeonCall(CGM.getIntrinsic(Intrinsic::aarch64_neon_tbx1, Ty), 11798 Ops, "vtbx1"); 11799 } 11800 case NEON::BI__builtin_neon_vqtbx2q_v: { 11801 return EmitNeonCall(CGM.getIntrinsic(Intrinsic::aarch64_neon_tbx2, Ty), 11802 Ops, "vtbx2"); 11803 } 11804 case NEON::BI__builtin_neon_vqtbx3q_v: { 11805 return EmitNeonCall(CGM.getIntrinsic(Intrinsic::aarch64_neon_tbx3, Ty), 11806 Ops, "vtbx3"); 11807 } 11808 case NEON::BI__builtin_neon_vqtbx4q_v: { 11809 return EmitNeonCall(CGM.getIntrinsic(Intrinsic::aarch64_neon_tbx4, Ty), 11810 Ops, "vtbx4"); 11811 } 11812 case NEON::BI__builtin_neon_vsqadd_v: 11813 case NEON::BI__builtin_neon_vsqaddq_v: { 11814 Int = Intrinsic::aarch64_neon_usqadd; 11815 return EmitNeonCall(CGM.getIntrinsic(Int, Ty), Ops, "vsqadd"); 11816 } 11817 case NEON::BI__builtin_neon_vuqadd_v: 11818 case NEON::BI__builtin_neon_vuqaddq_v: { 11819 Int = Intrinsic::aarch64_neon_suqadd; 11820 return EmitNeonCall(CGM.getIntrinsic(Int, Ty), Ops, "vuqadd"); 11821 } 11822 } 11823 } 11824 11825 Value *CodeGenFunction::EmitBPFBuiltinExpr(unsigned BuiltinID, 11826 const CallExpr *E) { 11827 assert((BuiltinID == BPF::BI__builtin_preserve_field_info || 11828 BuiltinID == BPF::BI__builtin_btf_type_id || 11829 BuiltinID == BPF::BI__builtin_preserve_type_info || 11830 BuiltinID == BPF::BI__builtin_preserve_enum_value) && 11831 "unexpected BPF builtin"); 11832 11833 // A sequence number, injected into IR builtin functions, to 11834 // prevent CSE given the only difference of the funciton 11835 // may just be the debuginfo metadata. 11836 static uint32_t BuiltinSeqNum; 11837 11838 switch (BuiltinID) { 11839 default: 11840 llvm_unreachable("Unexpected BPF builtin"); 11841 case BPF::BI__builtin_preserve_field_info: { 11842 const Expr *Arg = E->getArg(0); 11843 bool IsBitField = Arg->IgnoreParens()->getObjectKind() == OK_BitField; 11844 11845 if (!getDebugInfo()) { 11846 CGM.Error(E->getExprLoc(), 11847 "using __builtin_preserve_field_info() without -g"); 11848 return IsBitField ? EmitLValue(Arg).getBitFieldPointer() 11849 : EmitLValue(Arg).getPointer(*this); 11850 } 11851 11852 // Enable underlying preserve_*_access_index() generation. 11853 bool OldIsInPreservedAIRegion = IsInPreservedAIRegion; 11854 IsInPreservedAIRegion = true; 11855 Value *FieldAddr = IsBitField ? EmitLValue(Arg).getBitFieldPointer() 11856 : EmitLValue(Arg).getPointer(*this); 11857 IsInPreservedAIRegion = OldIsInPreservedAIRegion; 11858 11859 ConstantInt *C = cast<ConstantInt>(EmitScalarExpr(E->getArg(1))); 11860 Value *InfoKind = ConstantInt::get(Int64Ty, C->getSExtValue()); 11861 11862 // Built the IR for the preserve_field_info intrinsic. 11863 llvm::Function *FnGetFieldInfo = llvm::Intrinsic::getDeclaration( 11864 &CGM.getModule(), llvm::Intrinsic::bpf_preserve_field_info, 11865 {FieldAddr->getType()}); 11866 return Builder.CreateCall(FnGetFieldInfo, {FieldAddr, InfoKind}); 11867 } 11868 case BPF::BI__builtin_btf_type_id: 11869 case BPF::BI__builtin_preserve_type_info: { 11870 if (!getDebugInfo()) { 11871 CGM.Error(E->getExprLoc(), "using builtin function without -g"); 11872 return nullptr; 11873 } 11874 11875 const Expr *Arg0 = E->getArg(0); 11876 llvm::DIType *DbgInfo = getDebugInfo()->getOrCreateStandaloneType( 11877 Arg0->getType(), Arg0->getExprLoc()); 11878 11879 ConstantInt *Flag = cast<ConstantInt>(EmitScalarExpr(E->getArg(1))); 11880 Value *FlagValue = ConstantInt::get(Int64Ty, Flag->getSExtValue()); 11881 Value *SeqNumVal = ConstantInt::get(Int32Ty, BuiltinSeqNum++); 11882 11883 llvm::Function *FnDecl; 11884 if (BuiltinID == BPF::BI__builtin_btf_type_id) 11885 FnDecl = llvm::Intrinsic::getDeclaration( 11886 &CGM.getModule(), llvm::Intrinsic::bpf_btf_type_id, {}); 11887 else 11888 FnDecl = llvm::Intrinsic::getDeclaration( 11889 &CGM.getModule(), llvm::Intrinsic::bpf_preserve_type_info, {}); 11890 CallInst *Fn = Builder.CreateCall(FnDecl, {SeqNumVal, FlagValue}); 11891 Fn->setMetadata(LLVMContext::MD_preserve_access_index, DbgInfo); 11892 return Fn; 11893 } 11894 case BPF::BI__builtin_preserve_enum_value: { 11895 if (!getDebugInfo()) { 11896 CGM.Error(E->getExprLoc(), "using builtin function without -g"); 11897 return nullptr; 11898 } 11899 11900 const Expr *Arg0 = E->getArg(0); 11901 llvm::DIType *DbgInfo = getDebugInfo()->getOrCreateStandaloneType( 11902 Arg0->getType(), Arg0->getExprLoc()); 11903 11904 // Find enumerator 11905 const auto *UO = cast<UnaryOperator>(Arg0->IgnoreParens()); 11906 const auto *CE = cast<CStyleCastExpr>(UO->getSubExpr()); 11907 const auto *DR = cast<DeclRefExpr>(CE->getSubExpr()); 11908 const auto *Enumerator = cast<EnumConstantDecl>(DR->getDecl()); 11909 11910 auto &InitVal = Enumerator->getInitVal(); 11911 std::string InitValStr; 11912 if (InitVal.isNegative() || InitVal > uint64_t(INT64_MAX)) 11913 InitValStr = std::to_string(InitVal.getSExtValue()); 11914 else 11915 InitValStr = std::to_string(InitVal.getZExtValue()); 11916 std::string EnumStr = Enumerator->getNameAsString() + ":" + InitValStr; 11917 Value *EnumStrVal = Builder.CreateGlobalStringPtr(EnumStr); 11918 11919 ConstantInt *Flag = cast<ConstantInt>(EmitScalarExpr(E->getArg(1))); 11920 Value *FlagValue = ConstantInt::get(Int64Ty, Flag->getSExtValue()); 11921 Value *SeqNumVal = ConstantInt::get(Int32Ty, BuiltinSeqNum++); 11922 11923 llvm::Function *IntrinsicFn = llvm::Intrinsic::getDeclaration( 11924 &CGM.getModule(), llvm::Intrinsic::bpf_preserve_enum_value, {}); 11925 CallInst *Fn = 11926 Builder.CreateCall(IntrinsicFn, {SeqNumVal, EnumStrVal, FlagValue}); 11927 Fn->setMetadata(LLVMContext::MD_preserve_access_index, DbgInfo); 11928 return Fn; 11929 } 11930 } 11931 } 11932 11933 llvm::Value *CodeGenFunction:: 11934 BuildVector(ArrayRef<llvm::Value*> Ops) { 11935 assert((Ops.size() & (Ops.size() - 1)) == 0 && 11936 "Not a power-of-two sized vector!"); 11937 bool AllConstants = true; 11938 for (unsigned i = 0, e = Ops.size(); i != e && AllConstants; ++i) 11939 AllConstants &= isa<Constant>(Ops[i]); 11940 11941 // If this is a constant vector, create a ConstantVector. 11942 if (AllConstants) { 11943 SmallVector<llvm::Constant*, 16> CstOps; 11944 for (unsigned i = 0, e = Ops.size(); i != e; ++i) 11945 CstOps.push_back(cast<Constant>(Ops[i])); 11946 return llvm::ConstantVector::get(CstOps); 11947 } 11948 11949 // Otherwise, insertelement the values to build the vector. 11950 Value *Result = llvm::UndefValue::get( 11951 llvm::FixedVectorType::get(Ops[0]->getType(), Ops.size())); 11952 11953 for (unsigned i = 0, e = Ops.size(); i != e; ++i) 11954 Result = Builder.CreateInsertElement(Result, Ops[i], Builder.getInt32(i)); 11955 11956 return Result; 11957 } 11958 11959 // Convert the mask from an integer type to a vector of i1. 11960 static Value *getMaskVecValue(CodeGenFunction &CGF, Value *Mask, 11961 unsigned NumElts) { 11962 11963 auto *MaskTy = llvm::FixedVectorType::get( 11964 CGF.Builder.getInt1Ty(), 11965 cast<IntegerType>(Mask->getType())->getBitWidth()); 11966 Value *MaskVec = CGF.Builder.CreateBitCast(Mask, MaskTy); 11967 11968 // If we have less than 8 elements, then the starting mask was an i8 and 11969 // we need to extract down to the right number of elements. 11970 if (NumElts < 8) { 11971 int Indices[4]; 11972 for (unsigned i = 0; i != NumElts; ++i) 11973 Indices[i] = i; 11974 MaskVec = CGF.Builder.CreateShuffleVector(MaskVec, MaskVec, 11975 makeArrayRef(Indices, NumElts), 11976 "extract"); 11977 } 11978 return MaskVec; 11979 } 11980 11981 static Value *EmitX86MaskedStore(CodeGenFunction &CGF, ArrayRef<Value *> Ops, 11982 Align Alignment) { 11983 // Cast the pointer to right type. 11984 Value *Ptr = CGF.Builder.CreateBitCast(Ops[0], 11985 llvm::PointerType::getUnqual(Ops[1]->getType())); 11986 11987 Value *MaskVec = getMaskVecValue( 11988 CGF, Ops[2], 11989 cast<llvm::FixedVectorType>(Ops[1]->getType())->getNumElements()); 11990 11991 return CGF.Builder.CreateMaskedStore(Ops[1], Ptr, Alignment, MaskVec); 11992 } 11993 11994 static Value *EmitX86MaskedLoad(CodeGenFunction &CGF, ArrayRef<Value *> Ops, 11995 Align Alignment) { 11996 // Cast the pointer to right type. 11997 llvm::Type *Ty = Ops[1]->getType(); 11998 Value *Ptr = 11999 CGF.Builder.CreateBitCast(Ops[0], llvm::PointerType::getUnqual(Ty)); 12000 12001 Value *MaskVec = getMaskVecValue( 12002 CGF, Ops[2], cast<llvm::FixedVectorType>(Ty)->getNumElements()); 12003 12004 return CGF.Builder.CreateMaskedLoad(Ty, Ptr, Alignment, MaskVec, Ops[1]); 12005 } 12006 12007 static Value *EmitX86ExpandLoad(CodeGenFunction &CGF, 12008 ArrayRef<Value *> Ops) { 12009 auto *ResultTy = cast<llvm::VectorType>(Ops[1]->getType()); 12010 llvm::Type *PtrTy = ResultTy->getElementType(); 12011 12012 // Cast the pointer to element type. 12013 Value *Ptr = CGF.Builder.CreateBitCast(Ops[0], 12014 llvm::PointerType::getUnqual(PtrTy)); 12015 12016 Value *MaskVec = getMaskVecValue( 12017 CGF, Ops[2], cast<FixedVectorType>(ResultTy)->getNumElements()); 12018 12019 llvm::Function *F = CGF.CGM.getIntrinsic(Intrinsic::masked_expandload, 12020 ResultTy); 12021 return CGF.Builder.CreateCall(F, { Ptr, MaskVec, Ops[1] }); 12022 } 12023 12024 static Value *EmitX86CompressExpand(CodeGenFunction &CGF, 12025 ArrayRef<Value *> Ops, 12026 bool IsCompress) { 12027 auto *ResultTy = cast<llvm::FixedVectorType>(Ops[1]->getType()); 12028 12029 Value *MaskVec = getMaskVecValue(CGF, Ops[2], ResultTy->getNumElements()); 12030 12031 Intrinsic::ID IID = IsCompress ? Intrinsic::x86_avx512_mask_compress 12032 : Intrinsic::x86_avx512_mask_expand; 12033 llvm::Function *F = CGF.CGM.getIntrinsic(IID, ResultTy); 12034 return CGF.Builder.CreateCall(F, { Ops[0], Ops[1], MaskVec }); 12035 } 12036 12037 static Value *EmitX86CompressStore(CodeGenFunction &CGF, 12038 ArrayRef<Value *> Ops) { 12039 auto *ResultTy = cast<llvm::FixedVectorType>(Ops[1]->getType()); 12040 llvm::Type *PtrTy = ResultTy->getElementType(); 12041 12042 // Cast the pointer to element type. 12043 Value *Ptr = CGF.Builder.CreateBitCast(Ops[0], 12044 llvm::PointerType::getUnqual(PtrTy)); 12045 12046 Value *MaskVec = getMaskVecValue(CGF, Ops[2], ResultTy->getNumElements()); 12047 12048 llvm::Function *F = CGF.CGM.getIntrinsic(Intrinsic::masked_compressstore, 12049 ResultTy); 12050 return CGF.Builder.CreateCall(F, { Ops[1], Ptr, MaskVec }); 12051 } 12052 12053 static Value *EmitX86MaskLogic(CodeGenFunction &CGF, Instruction::BinaryOps Opc, 12054 ArrayRef<Value *> Ops, 12055 bool InvertLHS = false) { 12056 unsigned NumElts = Ops[0]->getType()->getIntegerBitWidth(); 12057 Value *LHS = getMaskVecValue(CGF, Ops[0], NumElts); 12058 Value *RHS = getMaskVecValue(CGF, Ops[1], NumElts); 12059 12060 if (InvertLHS) 12061 LHS = CGF.Builder.CreateNot(LHS); 12062 12063 return CGF.Builder.CreateBitCast(CGF.Builder.CreateBinOp(Opc, LHS, RHS), 12064 Ops[0]->getType()); 12065 } 12066 12067 static Value *EmitX86FunnelShift(CodeGenFunction &CGF, Value *Op0, Value *Op1, 12068 Value *Amt, bool IsRight) { 12069 llvm::Type *Ty = Op0->getType(); 12070 12071 // Amount may be scalar immediate, in which case create a splat vector. 12072 // Funnel shifts amounts are treated as modulo and types are all power-of-2 so 12073 // we only care about the lowest log2 bits anyway. 12074 if (Amt->getType() != Ty) { 12075 unsigned NumElts = cast<llvm::FixedVectorType>(Ty)->getNumElements(); 12076 Amt = CGF.Builder.CreateIntCast(Amt, Ty->getScalarType(), false); 12077 Amt = CGF.Builder.CreateVectorSplat(NumElts, Amt); 12078 } 12079 12080 unsigned IID = IsRight ? Intrinsic::fshr : Intrinsic::fshl; 12081 Function *F = CGF.CGM.getIntrinsic(IID, Ty); 12082 return CGF.Builder.CreateCall(F, {Op0, Op1, Amt}); 12083 } 12084 12085 static Value *EmitX86vpcom(CodeGenFunction &CGF, ArrayRef<Value *> Ops, 12086 bool IsSigned) { 12087 Value *Op0 = Ops[0]; 12088 Value *Op1 = Ops[1]; 12089 llvm::Type *Ty = Op0->getType(); 12090 uint64_t Imm = cast<llvm::ConstantInt>(Ops[2])->getZExtValue() & 0x7; 12091 12092 CmpInst::Predicate Pred; 12093 switch (Imm) { 12094 case 0x0: 12095 Pred = IsSigned ? ICmpInst::ICMP_SLT : ICmpInst::ICMP_ULT; 12096 break; 12097 case 0x1: 12098 Pred = IsSigned ? ICmpInst::ICMP_SLE : ICmpInst::ICMP_ULE; 12099 break; 12100 case 0x2: 12101 Pred = IsSigned ? ICmpInst::ICMP_SGT : ICmpInst::ICMP_UGT; 12102 break; 12103 case 0x3: 12104 Pred = IsSigned ? ICmpInst::ICMP_SGE : ICmpInst::ICMP_UGE; 12105 break; 12106 case 0x4: 12107 Pred = ICmpInst::ICMP_EQ; 12108 break; 12109 case 0x5: 12110 Pred = ICmpInst::ICMP_NE; 12111 break; 12112 case 0x6: 12113 return llvm::Constant::getNullValue(Ty); // FALSE 12114 case 0x7: 12115 return llvm::Constant::getAllOnesValue(Ty); // TRUE 12116 default: 12117 llvm_unreachable("Unexpected XOP vpcom/vpcomu predicate"); 12118 } 12119 12120 Value *Cmp = CGF.Builder.CreateICmp(Pred, Op0, Op1); 12121 Value *Res = CGF.Builder.CreateSExt(Cmp, Ty); 12122 return Res; 12123 } 12124 12125 static Value *EmitX86Select(CodeGenFunction &CGF, 12126 Value *Mask, Value *Op0, Value *Op1) { 12127 12128 // If the mask is all ones just return first argument. 12129 if (const auto *C = dyn_cast<Constant>(Mask)) 12130 if (C->isAllOnesValue()) 12131 return Op0; 12132 12133 Mask = getMaskVecValue( 12134 CGF, Mask, cast<llvm::FixedVectorType>(Op0->getType())->getNumElements()); 12135 12136 return CGF.Builder.CreateSelect(Mask, Op0, Op1); 12137 } 12138 12139 static Value *EmitX86ScalarSelect(CodeGenFunction &CGF, 12140 Value *Mask, Value *Op0, Value *Op1) { 12141 // If the mask is all ones just return first argument. 12142 if (const auto *C = dyn_cast<Constant>(Mask)) 12143 if (C->isAllOnesValue()) 12144 return Op0; 12145 12146 auto *MaskTy = llvm::FixedVectorType::get( 12147 CGF.Builder.getInt1Ty(), Mask->getType()->getIntegerBitWidth()); 12148 Mask = CGF.Builder.CreateBitCast(Mask, MaskTy); 12149 Mask = CGF.Builder.CreateExtractElement(Mask, (uint64_t)0); 12150 return CGF.Builder.CreateSelect(Mask, Op0, Op1); 12151 } 12152 12153 static Value *EmitX86MaskedCompareResult(CodeGenFunction &CGF, Value *Cmp, 12154 unsigned NumElts, Value *MaskIn) { 12155 if (MaskIn) { 12156 const auto *C = dyn_cast<Constant>(MaskIn); 12157 if (!C || !C->isAllOnesValue()) 12158 Cmp = CGF.Builder.CreateAnd(Cmp, getMaskVecValue(CGF, MaskIn, NumElts)); 12159 } 12160 12161 if (NumElts < 8) { 12162 int Indices[8]; 12163 for (unsigned i = 0; i != NumElts; ++i) 12164 Indices[i] = i; 12165 for (unsigned i = NumElts; i != 8; ++i) 12166 Indices[i] = i % NumElts + NumElts; 12167 Cmp = CGF.Builder.CreateShuffleVector( 12168 Cmp, llvm::Constant::getNullValue(Cmp->getType()), Indices); 12169 } 12170 12171 return CGF.Builder.CreateBitCast(Cmp, 12172 IntegerType::get(CGF.getLLVMContext(), 12173 std::max(NumElts, 8U))); 12174 } 12175 12176 static Value *EmitX86MaskedCompare(CodeGenFunction &CGF, unsigned CC, 12177 bool Signed, ArrayRef<Value *> Ops) { 12178 assert((Ops.size() == 2 || Ops.size() == 4) && 12179 "Unexpected number of arguments"); 12180 unsigned NumElts = 12181 cast<llvm::FixedVectorType>(Ops[0]->getType())->getNumElements(); 12182 Value *Cmp; 12183 12184 if (CC == 3) { 12185 Cmp = Constant::getNullValue( 12186 llvm::FixedVectorType::get(CGF.Builder.getInt1Ty(), NumElts)); 12187 } else if (CC == 7) { 12188 Cmp = Constant::getAllOnesValue( 12189 llvm::FixedVectorType::get(CGF.Builder.getInt1Ty(), NumElts)); 12190 } else { 12191 ICmpInst::Predicate Pred; 12192 switch (CC) { 12193 default: llvm_unreachable("Unknown condition code"); 12194 case 0: Pred = ICmpInst::ICMP_EQ; break; 12195 case 1: Pred = Signed ? ICmpInst::ICMP_SLT : ICmpInst::ICMP_ULT; break; 12196 case 2: Pred = Signed ? ICmpInst::ICMP_SLE : ICmpInst::ICMP_ULE; break; 12197 case 4: Pred = ICmpInst::ICMP_NE; break; 12198 case 5: Pred = Signed ? ICmpInst::ICMP_SGE : ICmpInst::ICMP_UGE; break; 12199 case 6: Pred = Signed ? ICmpInst::ICMP_SGT : ICmpInst::ICMP_UGT; break; 12200 } 12201 Cmp = CGF.Builder.CreateICmp(Pred, Ops[0], Ops[1]); 12202 } 12203 12204 Value *MaskIn = nullptr; 12205 if (Ops.size() == 4) 12206 MaskIn = Ops[3]; 12207 12208 return EmitX86MaskedCompareResult(CGF, Cmp, NumElts, MaskIn); 12209 } 12210 12211 static Value *EmitX86ConvertToMask(CodeGenFunction &CGF, Value *In) { 12212 Value *Zero = Constant::getNullValue(In->getType()); 12213 return EmitX86MaskedCompare(CGF, 1, true, { In, Zero }); 12214 } 12215 12216 static Value *EmitX86ConvertIntToFp(CodeGenFunction &CGF, const CallExpr *E, 12217 ArrayRef<Value *> Ops, bool IsSigned) { 12218 unsigned Rnd = cast<llvm::ConstantInt>(Ops[3])->getZExtValue(); 12219 llvm::Type *Ty = Ops[1]->getType(); 12220 12221 Value *Res; 12222 if (Rnd != 4) { 12223 Intrinsic::ID IID = IsSigned ? Intrinsic::x86_avx512_sitofp_round 12224 : Intrinsic::x86_avx512_uitofp_round; 12225 Function *F = CGF.CGM.getIntrinsic(IID, { Ty, Ops[0]->getType() }); 12226 Res = CGF.Builder.CreateCall(F, { Ops[0], Ops[3] }); 12227 } else { 12228 CodeGenFunction::CGFPOptionsRAII FPOptsRAII(CGF, E); 12229 Res = IsSigned ? CGF.Builder.CreateSIToFP(Ops[0], Ty) 12230 : CGF.Builder.CreateUIToFP(Ops[0], Ty); 12231 } 12232 12233 return EmitX86Select(CGF, Ops[2], Res, Ops[1]); 12234 } 12235 12236 // Lowers X86 FMA intrinsics to IR. 12237 static Value *EmitX86FMAExpr(CodeGenFunction &CGF, const CallExpr *E, 12238 ArrayRef<Value *> Ops, unsigned BuiltinID, 12239 bool IsAddSub) { 12240 12241 bool Subtract = false; 12242 Intrinsic::ID IID = Intrinsic::not_intrinsic; 12243 switch (BuiltinID) { 12244 default: break; 12245 case clang::X86::BI__builtin_ia32_vfmsubph512_mask3: 12246 Subtract = true; 12247 LLVM_FALLTHROUGH; 12248 case clang::X86::BI__builtin_ia32_vfmaddph512_mask: 12249 case clang::X86::BI__builtin_ia32_vfmaddph512_maskz: 12250 case clang::X86::BI__builtin_ia32_vfmaddph512_mask3: 12251 IID = llvm::Intrinsic::x86_avx512fp16_vfmadd_ph_512; 12252 break; 12253 case clang::X86::BI__builtin_ia32_vfmsubaddph512_mask3: 12254 Subtract = true; 12255 LLVM_FALLTHROUGH; 12256 case clang::X86::BI__builtin_ia32_vfmaddsubph512_mask: 12257 case clang::X86::BI__builtin_ia32_vfmaddsubph512_maskz: 12258 case clang::X86::BI__builtin_ia32_vfmaddsubph512_mask3: 12259 IID = llvm::Intrinsic::x86_avx512fp16_vfmaddsub_ph_512; 12260 break; 12261 case clang::X86::BI__builtin_ia32_vfmsubps512_mask3: 12262 Subtract = true; 12263 LLVM_FALLTHROUGH; 12264 case clang::X86::BI__builtin_ia32_vfmaddps512_mask: 12265 case clang::X86::BI__builtin_ia32_vfmaddps512_maskz: 12266 case clang::X86::BI__builtin_ia32_vfmaddps512_mask3: 12267 IID = llvm::Intrinsic::x86_avx512_vfmadd_ps_512; break; 12268 case clang::X86::BI__builtin_ia32_vfmsubpd512_mask3: 12269 Subtract = true; 12270 LLVM_FALLTHROUGH; 12271 case clang::X86::BI__builtin_ia32_vfmaddpd512_mask: 12272 case clang::X86::BI__builtin_ia32_vfmaddpd512_maskz: 12273 case clang::X86::BI__builtin_ia32_vfmaddpd512_mask3: 12274 IID = llvm::Intrinsic::x86_avx512_vfmadd_pd_512; break; 12275 case clang::X86::BI__builtin_ia32_vfmsubaddps512_mask3: 12276 Subtract = true; 12277 LLVM_FALLTHROUGH; 12278 case clang::X86::BI__builtin_ia32_vfmaddsubps512_mask: 12279 case clang::X86::BI__builtin_ia32_vfmaddsubps512_maskz: 12280 case clang::X86::BI__builtin_ia32_vfmaddsubps512_mask3: 12281 IID = llvm::Intrinsic::x86_avx512_vfmaddsub_ps_512; 12282 break; 12283 case clang::X86::BI__builtin_ia32_vfmsubaddpd512_mask3: 12284 Subtract = true; 12285 LLVM_FALLTHROUGH; 12286 case clang::X86::BI__builtin_ia32_vfmaddsubpd512_mask: 12287 case clang::X86::BI__builtin_ia32_vfmaddsubpd512_maskz: 12288 case clang::X86::BI__builtin_ia32_vfmaddsubpd512_mask3: 12289 IID = llvm::Intrinsic::x86_avx512_vfmaddsub_pd_512; 12290 break; 12291 } 12292 12293 Value *A = Ops[0]; 12294 Value *B = Ops[1]; 12295 Value *C = Ops[2]; 12296 12297 if (Subtract) 12298 C = CGF.Builder.CreateFNeg(C); 12299 12300 Value *Res; 12301 12302 // Only handle in case of _MM_FROUND_CUR_DIRECTION/4 (no rounding). 12303 if (IID != Intrinsic::not_intrinsic && 12304 (cast<llvm::ConstantInt>(Ops.back())->getZExtValue() != (uint64_t)4 || 12305 IsAddSub)) { 12306 Function *Intr = CGF.CGM.getIntrinsic(IID); 12307 Res = CGF.Builder.CreateCall(Intr, {A, B, C, Ops.back() }); 12308 } else { 12309 llvm::Type *Ty = A->getType(); 12310 Function *FMA; 12311 if (CGF.Builder.getIsFPConstrained()) { 12312 CodeGenFunction::CGFPOptionsRAII FPOptsRAII(CGF, E); 12313 FMA = CGF.CGM.getIntrinsic(Intrinsic::experimental_constrained_fma, Ty); 12314 Res = CGF.Builder.CreateConstrainedFPCall(FMA, {A, B, C}); 12315 } else { 12316 FMA = CGF.CGM.getIntrinsic(Intrinsic::fma, Ty); 12317 Res = CGF.Builder.CreateCall(FMA, {A, B, C}); 12318 } 12319 } 12320 12321 // Handle any required masking. 12322 Value *MaskFalseVal = nullptr; 12323 switch (BuiltinID) { 12324 case clang::X86::BI__builtin_ia32_vfmaddph512_mask: 12325 case clang::X86::BI__builtin_ia32_vfmaddps512_mask: 12326 case clang::X86::BI__builtin_ia32_vfmaddpd512_mask: 12327 case clang::X86::BI__builtin_ia32_vfmaddsubph512_mask: 12328 case clang::X86::BI__builtin_ia32_vfmaddsubps512_mask: 12329 case clang::X86::BI__builtin_ia32_vfmaddsubpd512_mask: 12330 MaskFalseVal = Ops[0]; 12331 break; 12332 case clang::X86::BI__builtin_ia32_vfmaddph512_maskz: 12333 case clang::X86::BI__builtin_ia32_vfmaddps512_maskz: 12334 case clang::X86::BI__builtin_ia32_vfmaddpd512_maskz: 12335 case clang::X86::BI__builtin_ia32_vfmaddsubph512_maskz: 12336 case clang::X86::BI__builtin_ia32_vfmaddsubps512_maskz: 12337 case clang::X86::BI__builtin_ia32_vfmaddsubpd512_maskz: 12338 MaskFalseVal = Constant::getNullValue(Ops[0]->getType()); 12339 break; 12340 case clang::X86::BI__builtin_ia32_vfmsubph512_mask3: 12341 case clang::X86::BI__builtin_ia32_vfmaddph512_mask3: 12342 case clang::X86::BI__builtin_ia32_vfmsubps512_mask3: 12343 case clang::X86::BI__builtin_ia32_vfmaddps512_mask3: 12344 case clang::X86::BI__builtin_ia32_vfmsubpd512_mask3: 12345 case clang::X86::BI__builtin_ia32_vfmaddpd512_mask3: 12346 case clang::X86::BI__builtin_ia32_vfmsubaddph512_mask3: 12347 case clang::X86::BI__builtin_ia32_vfmaddsubph512_mask3: 12348 case clang::X86::BI__builtin_ia32_vfmsubaddps512_mask3: 12349 case clang::X86::BI__builtin_ia32_vfmaddsubps512_mask3: 12350 case clang::X86::BI__builtin_ia32_vfmsubaddpd512_mask3: 12351 case clang::X86::BI__builtin_ia32_vfmaddsubpd512_mask3: 12352 MaskFalseVal = Ops[2]; 12353 break; 12354 } 12355 12356 if (MaskFalseVal) 12357 return EmitX86Select(CGF, Ops[3], Res, MaskFalseVal); 12358 12359 return Res; 12360 } 12361 12362 static Value *EmitScalarFMAExpr(CodeGenFunction &CGF, const CallExpr *E, 12363 MutableArrayRef<Value *> Ops, Value *Upper, 12364 bool ZeroMask = false, unsigned PTIdx = 0, 12365 bool NegAcc = false) { 12366 unsigned Rnd = 4; 12367 if (Ops.size() > 4) 12368 Rnd = cast<llvm::ConstantInt>(Ops[4])->getZExtValue(); 12369 12370 if (NegAcc) 12371 Ops[2] = CGF.Builder.CreateFNeg(Ops[2]); 12372 12373 Ops[0] = CGF.Builder.CreateExtractElement(Ops[0], (uint64_t)0); 12374 Ops[1] = CGF.Builder.CreateExtractElement(Ops[1], (uint64_t)0); 12375 Ops[2] = CGF.Builder.CreateExtractElement(Ops[2], (uint64_t)0); 12376 Value *Res; 12377 if (Rnd != 4) { 12378 Intrinsic::ID IID; 12379 12380 switch (Ops[0]->getType()->getPrimitiveSizeInBits()) { 12381 case 16: 12382 IID = Intrinsic::x86_avx512fp16_vfmadd_f16; 12383 break; 12384 case 32: 12385 IID = Intrinsic::x86_avx512_vfmadd_f32; 12386 break; 12387 case 64: 12388 IID = Intrinsic::x86_avx512_vfmadd_f64; 12389 break; 12390 default: 12391 llvm_unreachable("Unexpected size"); 12392 } 12393 Res = CGF.Builder.CreateCall(CGF.CGM.getIntrinsic(IID), 12394 {Ops[0], Ops[1], Ops[2], Ops[4]}); 12395 } else if (CGF.Builder.getIsFPConstrained()) { 12396 CodeGenFunction::CGFPOptionsRAII FPOptsRAII(CGF, E); 12397 Function *FMA = CGF.CGM.getIntrinsic( 12398 Intrinsic::experimental_constrained_fma, Ops[0]->getType()); 12399 Res = CGF.Builder.CreateConstrainedFPCall(FMA, Ops.slice(0, 3)); 12400 } else { 12401 Function *FMA = CGF.CGM.getIntrinsic(Intrinsic::fma, Ops[0]->getType()); 12402 Res = CGF.Builder.CreateCall(FMA, Ops.slice(0, 3)); 12403 } 12404 // If we have more than 3 arguments, we need to do masking. 12405 if (Ops.size() > 3) { 12406 Value *PassThru = ZeroMask ? Constant::getNullValue(Res->getType()) 12407 : Ops[PTIdx]; 12408 12409 // If we negated the accumulator and the its the PassThru value we need to 12410 // bypass the negate. Conveniently Upper should be the same thing in this 12411 // case. 12412 if (NegAcc && PTIdx == 2) 12413 PassThru = CGF.Builder.CreateExtractElement(Upper, (uint64_t)0); 12414 12415 Res = EmitX86ScalarSelect(CGF, Ops[3], Res, PassThru); 12416 } 12417 return CGF.Builder.CreateInsertElement(Upper, Res, (uint64_t)0); 12418 } 12419 12420 static Value *EmitX86Muldq(CodeGenFunction &CGF, bool IsSigned, 12421 ArrayRef<Value *> Ops) { 12422 llvm::Type *Ty = Ops[0]->getType(); 12423 // Arguments have a vXi32 type so cast to vXi64. 12424 Ty = llvm::FixedVectorType::get(CGF.Int64Ty, 12425 Ty->getPrimitiveSizeInBits() / 64); 12426 Value *LHS = CGF.Builder.CreateBitCast(Ops[0], Ty); 12427 Value *RHS = CGF.Builder.CreateBitCast(Ops[1], Ty); 12428 12429 if (IsSigned) { 12430 // Shift left then arithmetic shift right. 12431 Constant *ShiftAmt = ConstantInt::get(Ty, 32); 12432 LHS = CGF.Builder.CreateShl(LHS, ShiftAmt); 12433 LHS = CGF.Builder.CreateAShr(LHS, ShiftAmt); 12434 RHS = CGF.Builder.CreateShl(RHS, ShiftAmt); 12435 RHS = CGF.Builder.CreateAShr(RHS, ShiftAmt); 12436 } else { 12437 // Clear the upper bits. 12438 Constant *Mask = ConstantInt::get(Ty, 0xffffffff); 12439 LHS = CGF.Builder.CreateAnd(LHS, Mask); 12440 RHS = CGF.Builder.CreateAnd(RHS, Mask); 12441 } 12442 12443 return CGF.Builder.CreateMul(LHS, RHS); 12444 } 12445 12446 // Emit a masked pternlog intrinsic. This only exists because the header has to 12447 // use a macro and we aren't able to pass the input argument to a pternlog 12448 // builtin and a select builtin without evaluating it twice. 12449 static Value *EmitX86Ternlog(CodeGenFunction &CGF, bool ZeroMask, 12450 ArrayRef<Value *> Ops) { 12451 llvm::Type *Ty = Ops[0]->getType(); 12452 12453 unsigned VecWidth = Ty->getPrimitiveSizeInBits(); 12454 unsigned EltWidth = Ty->getScalarSizeInBits(); 12455 Intrinsic::ID IID; 12456 if (VecWidth == 128 && EltWidth == 32) 12457 IID = Intrinsic::x86_avx512_pternlog_d_128; 12458 else if (VecWidth == 256 && EltWidth == 32) 12459 IID = Intrinsic::x86_avx512_pternlog_d_256; 12460 else if (VecWidth == 512 && EltWidth == 32) 12461 IID = Intrinsic::x86_avx512_pternlog_d_512; 12462 else if (VecWidth == 128 && EltWidth == 64) 12463 IID = Intrinsic::x86_avx512_pternlog_q_128; 12464 else if (VecWidth == 256 && EltWidth == 64) 12465 IID = Intrinsic::x86_avx512_pternlog_q_256; 12466 else if (VecWidth == 512 && EltWidth == 64) 12467 IID = Intrinsic::x86_avx512_pternlog_q_512; 12468 else 12469 llvm_unreachable("Unexpected intrinsic"); 12470 12471 Value *Ternlog = CGF.Builder.CreateCall(CGF.CGM.getIntrinsic(IID), 12472 Ops.drop_back()); 12473 Value *PassThru = ZeroMask ? ConstantAggregateZero::get(Ty) : Ops[0]; 12474 return EmitX86Select(CGF, Ops[4], Ternlog, PassThru); 12475 } 12476 12477 static Value *EmitX86SExtMask(CodeGenFunction &CGF, Value *Op, 12478 llvm::Type *DstTy) { 12479 unsigned NumberOfElements = 12480 cast<llvm::FixedVectorType>(DstTy)->getNumElements(); 12481 Value *Mask = getMaskVecValue(CGF, Op, NumberOfElements); 12482 return CGF.Builder.CreateSExt(Mask, DstTy, "vpmovm2"); 12483 } 12484 12485 // Emit binary intrinsic with the same type used in result/args. 12486 static Value *EmitX86BinaryIntrinsic(CodeGenFunction &CGF, 12487 ArrayRef<Value *> Ops, Intrinsic::ID IID) { 12488 llvm::Function *F = CGF.CGM.getIntrinsic(IID, Ops[0]->getType()); 12489 return CGF.Builder.CreateCall(F, {Ops[0], Ops[1]}); 12490 } 12491 12492 Value *CodeGenFunction::EmitX86CpuIs(const CallExpr *E) { 12493 const Expr *CPUExpr = E->getArg(0)->IgnoreParenCasts(); 12494 StringRef CPUStr = cast<clang::StringLiteral>(CPUExpr)->getString(); 12495 return EmitX86CpuIs(CPUStr); 12496 } 12497 12498 // Convert F16 halfs to floats. 12499 static Value *EmitX86CvtF16ToFloatExpr(CodeGenFunction &CGF, 12500 ArrayRef<Value *> Ops, 12501 llvm::Type *DstTy) { 12502 assert((Ops.size() == 1 || Ops.size() == 3 || Ops.size() == 4) && 12503 "Unknown cvtph2ps intrinsic"); 12504 12505 // If the SAE intrinsic doesn't use default rounding then we can't upgrade. 12506 if (Ops.size() == 4 && cast<llvm::ConstantInt>(Ops[3])->getZExtValue() != 4) { 12507 Function *F = 12508 CGF.CGM.getIntrinsic(Intrinsic::x86_avx512_mask_vcvtph2ps_512); 12509 return CGF.Builder.CreateCall(F, {Ops[0], Ops[1], Ops[2], Ops[3]}); 12510 } 12511 12512 unsigned NumDstElts = cast<llvm::FixedVectorType>(DstTy)->getNumElements(); 12513 Value *Src = Ops[0]; 12514 12515 // Extract the subvector. 12516 if (NumDstElts != 12517 cast<llvm::FixedVectorType>(Src->getType())->getNumElements()) { 12518 assert(NumDstElts == 4 && "Unexpected vector size"); 12519 Src = CGF.Builder.CreateShuffleVector(Src, ArrayRef<int>{0, 1, 2, 3}); 12520 } 12521 12522 // Bitcast from vXi16 to vXf16. 12523 auto *HalfTy = llvm::FixedVectorType::get( 12524 llvm::Type::getHalfTy(CGF.getLLVMContext()), NumDstElts); 12525 Src = CGF.Builder.CreateBitCast(Src, HalfTy); 12526 12527 // Perform the fp-extension. 12528 Value *Res = CGF.Builder.CreateFPExt(Src, DstTy, "cvtph2ps"); 12529 12530 if (Ops.size() >= 3) 12531 Res = EmitX86Select(CGF, Ops[2], Res, Ops[1]); 12532 return Res; 12533 } 12534 12535 // Convert a BF16 to a float. 12536 static Value *EmitX86CvtBF16ToFloatExpr(CodeGenFunction &CGF, 12537 const CallExpr *E, 12538 ArrayRef<Value *> Ops) { 12539 llvm::Type *Int32Ty = CGF.Builder.getInt32Ty(); 12540 Value *ZeroExt = CGF.Builder.CreateZExt(Ops[0], Int32Ty); 12541 Value *Shl = CGF.Builder.CreateShl(ZeroExt, 16); 12542 llvm::Type *ResultType = CGF.ConvertType(E->getType()); 12543 Value *BitCast = CGF.Builder.CreateBitCast(Shl, ResultType); 12544 return BitCast; 12545 } 12546 12547 Value *CodeGenFunction::EmitX86CpuIs(StringRef CPUStr) { 12548 12549 llvm::Type *Int32Ty = Builder.getInt32Ty(); 12550 12551 // Matching the struct layout from the compiler-rt/libgcc structure that is 12552 // filled in: 12553 // unsigned int __cpu_vendor; 12554 // unsigned int __cpu_type; 12555 // unsigned int __cpu_subtype; 12556 // unsigned int __cpu_features[1]; 12557 llvm::Type *STy = llvm::StructType::get(Int32Ty, Int32Ty, Int32Ty, 12558 llvm::ArrayType::get(Int32Ty, 1)); 12559 12560 // Grab the global __cpu_model. 12561 llvm::Constant *CpuModel = CGM.CreateRuntimeVariable(STy, "__cpu_model"); 12562 cast<llvm::GlobalValue>(CpuModel)->setDSOLocal(true); 12563 12564 // Calculate the index needed to access the correct field based on the 12565 // range. Also adjust the expected value. 12566 unsigned Index; 12567 unsigned Value; 12568 std::tie(Index, Value) = StringSwitch<std::pair<unsigned, unsigned>>(CPUStr) 12569 #define X86_VENDOR(ENUM, STRING) \ 12570 .Case(STRING, {0u, static_cast<unsigned>(llvm::X86::ENUM)}) 12571 #define X86_CPU_TYPE_ALIAS(ENUM, ALIAS) \ 12572 .Case(ALIAS, {1u, static_cast<unsigned>(llvm::X86::ENUM)}) 12573 #define X86_CPU_TYPE(ENUM, STR) \ 12574 .Case(STR, {1u, static_cast<unsigned>(llvm::X86::ENUM)}) 12575 #define X86_CPU_SUBTYPE(ENUM, STR) \ 12576 .Case(STR, {2u, static_cast<unsigned>(llvm::X86::ENUM)}) 12577 #include "llvm/Support/X86TargetParser.def" 12578 .Default({0, 0}); 12579 assert(Value != 0 && "Invalid CPUStr passed to CpuIs"); 12580 12581 // Grab the appropriate field from __cpu_model. 12582 llvm::Value *Idxs[] = {ConstantInt::get(Int32Ty, 0), 12583 ConstantInt::get(Int32Ty, Index)}; 12584 llvm::Value *CpuValue = Builder.CreateGEP(STy, CpuModel, Idxs); 12585 CpuValue = Builder.CreateAlignedLoad(Int32Ty, CpuValue, 12586 CharUnits::fromQuantity(4)); 12587 12588 // Check the value of the field against the requested value. 12589 return Builder.CreateICmpEQ(CpuValue, 12590 llvm::ConstantInt::get(Int32Ty, Value)); 12591 } 12592 12593 Value *CodeGenFunction::EmitX86CpuSupports(const CallExpr *E) { 12594 const Expr *FeatureExpr = E->getArg(0)->IgnoreParenCasts(); 12595 StringRef FeatureStr = cast<StringLiteral>(FeatureExpr)->getString(); 12596 return EmitX86CpuSupports(FeatureStr); 12597 } 12598 12599 Value *CodeGenFunction::EmitX86CpuSupports(ArrayRef<StringRef> FeatureStrs) { 12600 return EmitX86CpuSupports(llvm::X86::getCpuSupportsMask(FeatureStrs)); 12601 } 12602 12603 llvm::Value *CodeGenFunction::EmitX86CpuSupports(uint64_t FeaturesMask) { 12604 uint32_t Features1 = Lo_32(FeaturesMask); 12605 uint32_t Features2 = Hi_32(FeaturesMask); 12606 12607 Value *Result = Builder.getTrue(); 12608 12609 if (Features1 != 0) { 12610 // Matching the struct layout from the compiler-rt/libgcc structure that is 12611 // filled in: 12612 // unsigned int __cpu_vendor; 12613 // unsigned int __cpu_type; 12614 // unsigned int __cpu_subtype; 12615 // unsigned int __cpu_features[1]; 12616 llvm::Type *STy = llvm::StructType::get(Int32Ty, Int32Ty, Int32Ty, 12617 llvm::ArrayType::get(Int32Ty, 1)); 12618 12619 // Grab the global __cpu_model. 12620 llvm::Constant *CpuModel = CGM.CreateRuntimeVariable(STy, "__cpu_model"); 12621 cast<llvm::GlobalValue>(CpuModel)->setDSOLocal(true); 12622 12623 // Grab the first (0th) element from the field __cpu_features off of the 12624 // global in the struct STy. 12625 Value *Idxs[] = {Builder.getInt32(0), Builder.getInt32(3), 12626 Builder.getInt32(0)}; 12627 Value *CpuFeatures = Builder.CreateGEP(STy, CpuModel, Idxs); 12628 Value *Features = Builder.CreateAlignedLoad(Int32Ty, CpuFeatures, 12629 CharUnits::fromQuantity(4)); 12630 12631 // Check the value of the bit corresponding to the feature requested. 12632 Value *Mask = Builder.getInt32(Features1); 12633 Value *Bitset = Builder.CreateAnd(Features, Mask); 12634 Value *Cmp = Builder.CreateICmpEQ(Bitset, Mask); 12635 Result = Builder.CreateAnd(Result, Cmp); 12636 } 12637 12638 if (Features2 != 0) { 12639 llvm::Constant *CpuFeatures2 = CGM.CreateRuntimeVariable(Int32Ty, 12640 "__cpu_features2"); 12641 cast<llvm::GlobalValue>(CpuFeatures2)->setDSOLocal(true); 12642 12643 Value *Features = Builder.CreateAlignedLoad(Int32Ty, CpuFeatures2, 12644 CharUnits::fromQuantity(4)); 12645 12646 // Check the value of the bit corresponding to the feature requested. 12647 Value *Mask = Builder.getInt32(Features2); 12648 Value *Bitset = Builder.CreateAnd(Features, Mask); 12649 Value *Cmp = Builder.CreateICmpEQ(Bitset, Mask); 12650 Result = Builder.CreateAnd(Result, Cmp); 12651 } 12652 12653 return Result; 12654 } 12655 12656 Value *CodeGenFunction::EmitX86CpuInit() { 12657 llvm::FunctionType *FTy = llvm::FunctionType::get(VoidTy, 12658 /*Variadic*/ false); 12659 llvm::FunctionCallee Func = 12660 CGM.CreateRuntimeFunction(FTy, "__cpu_indicator_init"); 12661 cast<llvm::GlobalValue>(Func.getCallee())->setDSOLocal(true); 12662 cast<llvm::GlobalValue>(Func.getCallee()) 12663 ->setDLLStorageClass(llvm::GlobalValue::DefaultStorageClass); 12664 return Builder.CreateCall(Func); 12665 } 12666 12667 Value *CodeGenFunction::EmitX86BuiltinExpr(unsigned BuiltinID, 12668 const CallExpr *E) { 12669 if (BuiltinID == X86::BI__builtin_cpu_is) 12670 return EmitX86CpuIs(E); 12671 if (BuiltinID == X86::BI__builtin_cpu_supports) 12672 return EmitX86CpuSupports(E); 12673 if (BuiltinID == X86::BI__builtin_cpu_init) 12674 return EmitX86CpuInit(); 12675 12676 // Handle MSVC intrinsics before argument evaluation to prevent double 12677 // evaluation. 12678 if (Optional<MSVCIntrin> MsvcIntId = translateX86ToMsvcIntrin(BuiltinID)) 12679 return EmitMSVCBuiltinExpr(*MsvcIntId, E); 12680 12681 SmallVector<Value*, 4> Ops; 12682 bool IsMaskFCmp = false; 12683 bool IsConjFMA = false; 12684 12685 // Find out if any arguments are required to be integer constant expressions. 12686 unsigned ICEArguments = 0; 12687 ASTContext::GetBuiltinTypeError Error; 12688 getContext().GetBuiltinType(BuiltinID, Error, &ICEArguments); 12689 assert(Error == ASTContext::GE_None && "Should not codegen an error"); 12690 12691 for (unsigned i = 0, e = E->getNumArgs(); i != e; i++) { 12692 // If this is a normal argument, just emit it as a scalar. 12693 if ((ICEArguments & (1 << i)) == 0) { 12694 Ops.push_back(EmitScalarExpr(E->getArg(i))); 12695 continue; 12696 } 12697 12698 // If this is required to be a constant, constant fold it so that we know 12699 // that the generated intrinsic gets a ConstantInt. 12700 Ops.push_back(llvm::ConstantInt::get( 12701 getLLVMContext(), *E->getArg(i)->getIntegerConstantExpr(getContext()))); 12702 } 12703 12704 // These exist so that the builtin that takes an immediate can be bounds 12705 // checked by clang to avoid passing bad immediates to the backend. Since 12706 // AVX has a larger immediate than SSE we would need separate builtins to 12707 // do the different bounds checking. Rather than create a clang specific 12708 // SSE only builtin, this implements eight separate builtins to match gcc 12709 // implementation. 12710 auto getCmpIntrinsicCall = [this, &Ops](Intrinsic::ID ID, unsigned Imm) { 12711 Ops.push_back(llvm::ConstantInt::get(Int8Ty, Imm)); 12712 llvm::Function *F = CGM.getIntrinsic(ID); 12713 return Builder.CreateCall(F, Ops); 12714 }; 12715 12716 // For the vector forms of FP comparisons, translate the builtins directly to 12717 // IR. 12718 // TODO: The builtins could be removed if the SSE header files used vector 12719 // extension comparisons directly (vector ordered/unordered may need 12720 // additional support via __builtin_isnan()). 12721 auto getVectorFCmpIR = [this, &Ops, E](CmpInst::Predicate Pred, 12722 bool IsSignaling) { 12723 CodeGenFunction::CGFPOptionsRAII FPOptsRAII(*this, E); 12724 Value *Cmp; 12725 if (IsSignaling) 12726 Cmp = Builder.CreateFCmpS(Pred, Ops[0], Ops[1]); 12727 else 12728 Cmp = Builder.CreateFCmp(Pred, Ops[0], Ops[1]); 12729 llvm::VectorType *FPVecTy = cast<llvm::VectorType>(Ops[0]->getType()); 12730 llvm::VectorType *IntVecTy = llvm::VectorType::getInteger(FPVecTy); 12731 Value *Sext = Builder.CreateSExt(Cmp, IntVecTy); 12732 return Builder.CreateBitCast(Sext, FPVecTy); 12733 }; 12734 12735 switch (BuiltinID) { 12736 default: return nullptr; 12737 case X86::BI_mm_prefetch: { 12738 Value *Address = Ops[0]; 12739 ConstantInt *C = cast<ConstantInt>(Ops[1]); 12740 Value *RW = ConstantInt::get(Int32Ty, (C->getZExtValue() >> 2) & 0x1); 12741 Value *Locality = ConstantInt::get(Int32Ty, C->getZExtValue() & 0x3); 12742 Value *Data = ConstantInt::get(Int32Ty, 1); 12743 Function *F = CGM.getIntrinsic(Intrinsic::prefetch, Address->getType()); 12744 return Builder.CreateCall(F, {Address, RW, Locality, Data}); 12745 } 12746 case X86::BI_mm_clflush: { 12747 return Builder.CreateCall(CGM.getIntrinsic(Intrinsic::x86_sse2_clflush), 12748 Ops[0]); 12749 } 12750 case X86::BI_mm_lfence: { 12751 return Builder.CreateCall(CGM.getIntrinsic(Intrinsic::x86_sse2_lfence)); 12752 } 12753 case X86::BI_mm_mfence: { 12754 return Builder.CreateCall(CGM.getIntrinsic(Intrinsic::x86_sse2_mfence)); 12755 } 12756 case X86::BI_mm_sfence: { 12757 return Builder.CreateCall(CGM.getIntrinsic(Intrinsic::x86_sse_sfence)); 12758 } 12759 case X86::BI_mm_pause: { 12760 return Builder.CreateCall(CGM.getIntrinsic(Intrinsic::x86_sse2_pause)); 12761 } 12762 case X86::BI__rdtsc: { 12763 return Builder.CreateCall(CGM.getIntrinsic(Intrinsic::x86_rdtsc)); 12764 } 12765 case X86::BI__builtin_ia32_rdtscp: { 12766 Value *Call = Builder.CreateCall(CGM.getIntrinsic(Intrinsic::x86_rdtscp)); 12767 Builder.CreateDefaultAlignedStore(Builder.CreateExtractValue(Call, 1), 12768 Ops[0]); 12769 return Builder.CreateExtractValue(Call, 0); 12770 } 12771 case X86::BI__builtin_ia32_lzcnt_u16: 12772 case X86::BI__builtin_ia32_lzcnt_u32: 12773 case X86::BI__builtin_ia32_lzcnt_u64: { 12774 Function *F = CGM.getIntrinsic(Intrinsic::ctlz, Ops[0]->getType()); 12775 return Builder.CreateCall(F, {Ops[0], Builder.getInt1(false)}); 12776 } 12777 case X86::BI__builtin_ia32_tzcnt_u16: 12778 case X86::BI__builtin_ia32_tzcnt_u32: 12779 case X86::BI__builtin_ia32_tzcnt_u64: { 12780 Function *F = CGM.getIntrinsic(Intrinsic::cttz, Ops[0]->getType()); 12781 return Builder.CreateCall(F, {Ops[0], Builder.getInt1(false)}); 12782 } 12783 case X86::BI__builtin_ia32_undef128: 12784 case X86::BI__builtin_ia32_undef256: 12785 case X86::BI__builtin_ia32_undef512: 12786 // The x86 definition of "undef" is not the same as the LLVM definition 12787 // (PR32176). We leave optimizing away an unnecessary zero constant to the 12788 // IR optimizer and backend. 12789 // TODO: If we had a "freeze" IR instruction to generate a fixed undef 12790 // value, we should use that here instead of a zero. 12791 return llvm::Constant::getNullValue(ConvertType(E->getType())); 12792 case X86::BI__builtin_ia32_vec_init_v8qi: 12793 case X86::BI__builtin_ia32_vec_init_v4hi: 12794 case X86::BI__builtin_ia32_vec_init_v2si: 12795 return Builder.CreateBitCast(BuildVector(Ops), 12796 llvm::Type::getX86_MMXTy(getLLVMContext())); 12797 case X86::BI__builtin_ia32_vec_ext_v2si: 12798 case X86::BI__builtin_ia32_vec_ext_v16qi: 12799 case X86::BI__builtin_ia32_vec_ext_v8hi: 12800 case X86::BI__builtin_ia32_vec_ext_v4si: 12801 case X86::BI__builtin_ia32_vec_ext_v4sf: 12802 case X86::BI__builtin_ia32_vec_ext_v2di: 12803 case X86::BI__builtin_ia32_vec_ext_v32qi: 12804 case X86::BI__builtin_ia32_vec_ext_v16hi: 12805 case X86::BI__builtin_ia32_vec_ext_v8si: 12806 case X86::BI__builtin_ia32_vec_ext_v4di: { 12807 unsigned NumElts = 12808 cast<llvm::FixedVectorType>(Ops[0]->getType())->getNumElements(); 12809 uint64_t Index = cast<ConstantInt>(Ops[1])->getZExtValue(); 12810 Index &= NumElts - 1; 12811 // These builtins exist so we can ensure the index is an ICE and in range. 12812 // Otherwise we could just do this in the header file. 12813 return Builder.CreateExtractElement(Ops[0], Index); 12814 } 12815 case X86::BI__builtin_ia32_vec_set_v16qi: 12816 case X86::BI__builtin_ia32_vec_set_v8hi: 12817 case X86::BI__builtin_ia32_vec_set_v4si: 12818 case X86::BI__builtin_ia32_vec_set_v2di: 12819 case X86::BI__builtin_ia32_vec_set_v32qi: 12820 case X86::BI__builtin_ia32_vec_set_v16hi: 12821 case X86::BI__builtin_ia32_vec_set_v8si: 12822 case X86::BI__builtin_ia32_vec_set_v4di: { 12823 unsigned NumElts = 12824 cast<llvm::FixedVectorType>(Ops[0]->getType())->getNumElements(); 12825 unsigned Index = cast<ConstantInt>(Ops[2])->getZExtValue(); 12826 Index &= NumElts - 1; 12827 // These builtins exist so we can ensure the index is an ICE and in range. 12828 // Otherwise we could just do this in the header file. 12829 return Builder.CreateInsertElement(Ops[0], Ops[1], Index); 12830 } 12831 case X86::BI_mm_setcsr: 12832 case X86::BI__builtin_ia32_ldmxcsr: { 12833 Address Tmp = CreateMemTemp(E->getArg(0)->getType()); 12834 Builder.CreateStore(Ops[0], Tmp); 12835 return Builder.CreateCall(CGM.getIntrinsic(Intrinsic::x86_sse_ldmxcsr), 12836 Builder.CreateBitCast(Tmp.getPointer(), Int8PtrTy)); 12837 } 12838 case X86::BI_mm_getcsr: 12839 case X86::BI__builtin_ia32_stmxcsr: { 12840 Address Tmp = CreateMemTemp(E->getType()); 12841 Builder.CreateCall(CGM.getIntrinsic(Intrinsic::x86_sse_stmxcsr), 12842 Builder.CreateBitCast(Tmp.getPointer(), Int8PtrTy)); 12843 return Builder.CreateLoad(Tmp, "stmxcsr"); 12844 } 12845 case X86::BI__builtin_ia32_xsave: 12846 case X86::BI__builtin_ia32_xsave64: 12847 case X86::BI__builtin_ia32_xrstor: 12848 case X86::BI__builtin_ia32_xrstor64: 12849 case X86::BI__builtin_ia32_xsaveopt: 12850 case X86::BI__builtin_ia32_xsaveopt64: 12851 case X86::BI__builtin_ia32_xrstors: 12852 case X86::BI__builtin_ia32_xrstors64: 12853 case X86::BI__builtin_ia32_xsavec: 12854 case X86::BI__builtin_ia32_xsavec64: 12855 case X86::BI__builtin_ia32_xsaves: 12856 case X86::BI__builtin_ia32_xsaves64: 12857 case X86::BI__builtin_ia32_xsetbv: 12858 case X86::BI_xsetbv: { 12859 Intrinsic::ID ID; 12860 #define INTRINSIC_X86_XSAVE_ID(NAME) \ 12861 case X86::BI__builtin_ia32_##NAME: \ 12862 ID = Intrinsic::x86_##NAME; \ 12863 break 12864 switch (BuiltinID) { 12865 default: llvm_unreachable("Unsupported intrinsic!"); 12866 INTRINSIC_X86_XSAVE_ID(xsave); 12867 INTRINSIC_X86_XSAVE_ID(xsave64); 12868 INTRINSIC_X86_XSAVE_ID(xrstor); 12869 INTRINSIC_X86_XSAVE_ID(xrstor64); 12870 INTRINSIC_X86_XSAVE_ID(xsaveopt); 12871 INTRINSIC_X86_XSAVE_ID(xsaveopt64); 12872 INTRINSIC_X86_XSAVE_ID(xrstors); 12873 INTRINSIC_X86_XSAVE_ID(xrstors64); 12874 INTRINSIC_X86_XSAVE_ID(xsavec); 12875 INTRINSIC_X86_XSAVE_ID(xsavec64); 12876 INTRINSIC_X86_XSAVE_ID(xsaves); 12877 INTRINSIC_X86_XSAVE_ID(xsaves64); 12878 INTRINSIC_X86_XSAVE_ID(xsetbv); 12879 case X86::BI_xsetbv: 12880 ID = Intrinsic::x86_xsetbv; 12881 break; 12882 } 12883 #undef INTRINSIC_X86_XSAVE_ID 12884 Value *Mhi = Builder.CreateTrunc( 12885 Builder.CreateLShr(Ops[1], ConstantInt::get(Int64Ty, 32)), Int32Ty); 12886 Value *Mlo = Builder.CreateTrunc(Ops[1], Int32Ty); 12887 Ops[1] = Mhi; 12888 Ops.push_back(Mlo); 12889 return Builder.CreateCall(CGM.getIntrinsic(ID), Ops); 12890 } 12891 case X86::BI__builtin_ia32_xgetbv: 12892 case X86::BI_xgetbv: 12893 return Builder.CreateCall(CGM.getIntrinsic(Intrinsic::x86_xgetbv), Ops); 12894 case X86::BI__builtin_ia32_storedqudi128_mask: 12895 case X86::BI__builtin_ia32_storedqusi128_mask: 12896 case X86::BI__builtin_ia32_storedquhi128_mask: 12897 case X86::BI__builtin_ia32_storedquqi128_mask: 12898 case X86::BI__builtin_ia32_storeupd128_mask: 12899 case X86::BI__builtin_ia32_storeups128_mask: 12900 case X86::BI__builtin_ia32_storedqudi256_mask: 12901 case X86::BI__builtin_ia32_storedqusi256_mask: 12902 case X86::BI__builtin_ia32_storedquhi256_mask: 12903 case X86::BI__builtin_ia32_storedquqi256_mask: 12904 case X86::BI__builtin_ia32_storeupd256_mask: 12905 case X86::BI__builtin_ia32_storeups256_mask: 12906 case X86::BI__builtin_ia32_storedqudi512_mask: 12907 case X86::BI__builtin_ia32_storedqusi512_mask: 12908 case X86::BI__builtin_ia32_storedquhi512_mask: 12909 case X86::BI__builtin_ia32_storedquqi512_mask: 12910 case X86::BI__builtin_ia32_storeupd512_mask: 12911 case X86::BI__builtin_ia32_storeups512_mask: 12912 return EmitX86MaskedStore(*this, Ops, Align(1)); 12913 12914 case X86::BI__builtin_ia32_storesh128_mask: 12915 case X86::BI__builtin_ia32_storess128_mask: 12916 case X86::BI__builtin_ia32_storesd128_mask: 12917 return EmitX86MaskedStore(*this, Ops, Align(1)); 12918 12919 case X86::BI__builtin_ia32_vpopcntb_128: 12920 case X86::BI__builtin_ia32_vpopcntd_128: 12921 case X86::BI__builtin_ia32_vpopcntq_128: 12922 case X86::BI__builtin_ia32_vpopcntw_128: 12923 case X86::BI__builtin_ia32_vpopcntb_256: 12924 case X86::BI__builtin_ia32_vpopcntd_256: 12925 case X86::BI__builtin_ia32_vpopcntq_256: 12926 case X86::BI__builtin_ia32_vpopcntw_256: 12927 case X86::BI__builtin_ia32_vpopcntb_512: 12928 case X86::BI__builtin_ia32_vpopcntd_512: 12929 case X86::BI__builtin_ia32_vpopcntq_512: 12930 case X86::BI__builtin_ia32_vpopcntw_512: { 12931 llvm::Type *ResultType = ConvertType(E->getType()); 12932 llvm::Function *F = CGM.getIntrinsic(Intrinsic::ctpop, ResultType); 12933 return Builder.CreateCall(F, Ops); 12934 } 12935 case X86::BI__builtin_ia32_cvtmask2b128: 12936 case X86::BI__builtin_ia32_cvtmask2b256: 12937 case X86::BI__builtin_ia32_cvtmask2b512: 12938 case X86::BI__builtin_ia32_cvtmask2w128: 12939 case X86::BI__builtin_ia32_cvtmask2w256: 12940 case X86::BI__builtin_ia32_cvtmask2w512: 12941 case X86::BI__builtin_ia32_cvtmask2d128: 12942 case X86::BI__builtin_ia32_cvtmask2d256: 12943 case X86::BI__builtin_ia32_cvtmask2d512: 12944 case X86::BI__builtin_ia32_cvtmask2q128: 12945 case X86::BI__builtin_ia32_cvtmask2q256: 12946 case X86::BI__builtin_ia32_cvtmask2q512: 12947 return EmitX86SExtMask(*this, Ops[0], ConvertType(E->getType())); 12948 12949 case X86::BI__builtin_ia32_cvtb2mask128: 12950 case X86::BI__builtin_ia32_cvtb2mask256: 12951 case X86::BI__builtin_ia32_cvtb2mask512: 12952 case X86::BI__builtin_ia32_cvtw2mask128: 12953 case X86::BI__builtin_ia32_cvtw2mask256: 12954 case X86::BI__builtin_ia32_cvtw2mask512: 12955 case X86::BI__builtin_ia32_cvtd2mask128: 12956 case X86::BI__builtin_ia32_cvtd2mask256: 12957 case X86::BI__builtin_ia32_cvtd2mask512: 12958 case X86::BI__builtin_ia32_cvtq2mask128: 12959 case X86::BI__builtin_ia32_cvtq2mask256: 12960 case X86::BI__builtin_ia32_cvtq2mask512: 12961 return EmitX86ConvertToMask(*this, Ops[0]); 12962 12963 case X86::BI__builtin_ia32_cvtdq2ps512_mask: 12964 case X86::BI__builtin_ia32_cvtqq2ps512_mask: 12965 case X86::BI__builtin_ia32_cvtqq2pd512_mask: 12966 case X86::BI__builtin_ia32_vcvtw2ph512_mask: 12967 case X86::BI__builtin_ia32_vcvtdq2ph512_mask: 12968 case X86::BI__builtin_ia32_vcvtqq2ph512_mask: 12969 return EmitX86ConvertIntToFp(*this, E, Ops, /*IsSigned*/ true); 12970 case X86::BI__builtin_ia32_cvtudq2ps512_mask: 12971 case X86::BI__builtin_ia32_cvtuqq2ps512_mask: 12972 case X86::BI__builtin_ia32_cvtuqq2pd512_mask: 12973 case X86::BI__builtin_ia32_vcvtuw2ph512_mask: 12974 case X86::BI__builtin_ia32_vcvtudq2ph512_mask: 12975 case X86::BI__builtin_ia32_vcvtuqq2ph512_mask: 12976 return EmitX86ConvertIntToFp(*this, E, Ops, /*IsSigned*/ false); 12977 12978 case X86::BI__builtin_ia32_vfmaddss3: 12979 case X86::BI__builtin_ia32_vfmaddsd3: 12980 case X86::BI__builtin_ia32_vfmaddsh3_mask: 12981 case X86::BI__builtin_ia32_vfmaddss3_mask: 12982 case X86::BI__builtin_ia32_vfmaddsd3_mask: 12983 return EmitScalarFMAExpr(*this, E, Ops, Ops[0]); 12984 case X86::BI__builtin_ia32_vfmaddss: 12985 case X86::BI__builtin_ia32_vfmaddsd: 12986 return EmitScalarFMAExpr(*this, E, Ops, 12987 Constant::getNullValue(Ops[0]->getType())); 12988 case X86::BI__builtin_ia32_vfmaddsh3_maskz: 12989 case X86::BI__builtin_ia32_vfmaddss3_maskz: 12990 case X86::BI__builtin_ia32_vfmaddsd3_maskz: 12991 return EmitScalarFMAExpr(*this, E, Ops, Ops[0], /*ZeroMask*/ true); 12992 case X86::BI__builtin_ia32_vfmaddsh3_mask3: 12993 case X86::BI__builtin_ia32_vfmaddss3_mask3: 12994 case X86::BI__builtin_ia32_vfmaddsd3_mask3: 12995 return EmitScalarFMAExpr(*this, E, Ops, Ops[2], /*ZeroMask*/ false, 2); 12996 case X86::BI__builtin_ia32_vfmsubsh3_mask3: 12997 case X86::BI__builtin_ia32_vfmsubss3_mask3: 12998 case X86::BI__builtin_ia32_vfmsubsd3_mask3: 12999 return EmitScalarFMAExpr(*this, E, Ops, Ops[2], /*ZeroMask*/ false, 2, 13000 /*NegAcc*/ true); 13001 case X86::BI__builtin_ia32_vfmaddph: 13002 case X86::BI__builtin_ia32_vfmaddps: 13003 case X86::BI__builtin_ia32_vfmaddpd: 13004 case X86::BI__builtin_ia32_vfmaddph256: 13005 case X86::BI__builtin_ia32_vfmaddps256: 13006 case X86::BI__builtin_ia32_vfmaddpd256: 13007 case X86::BI__builtin_ia32_vfmaddph512_mask: 13008 case X86::BI__builtin_ia32_vfmaddph512_maskz: 13009 case X86::BI__builtin_ia32_vfmaddph512_mask3: 13010 case X86::BI__builtin_ia32_vfmaddps512_mask: 13011 case X86::BI__builtin_ia32_vfmaddps512_maskz: 13012 case X86::BI__builtin_ia32_vfmaddps512_mask3: 13013 case X86::BI__builtin_ia32_vfmsubps512_mask3: 13014 case X86::BI__builtin_ia32_vfmaddpd512_mask: 13015 case X86::BI__builtin_ia32_vfmaddpd512_maskz: 13016 case X86::BI__builtin_ia32_vfmaddpd512_mask3: 13017 case X86::BI__builtin_ia32_vfmsubpd512_mask3: 13018 case X86::BI__builtin_ia32_vfmsubph512_mask3: 13019 return EmitX86FMAExpr(*this, E, Ops, BuiltinID, /*IsAddSub*/ false); 13020 case X86::BI__builtin_ia32_vfmaddsubph512_mask: 13021 case X86::BI__builtin_ia32_vfmaddsubph512_maskz: 13022 case X86::BI__builtin_ia32_vfmaddsubph512_mask3: 13023 case X86::BI__builtin_ia32_vfmsubaddph512_mask3: 13024 case X86::BI__builtin_ia32_vfmaddsubps512_mask: 13025 case X86::BI__builtin_ia32_vfmaddsubps512_maskz: 13026 case X86::BI__builtin_ia32_vfmaddsubps512_mask3: 13027 case X86::BI__builtin_ia32_vfmsubaddps512_mask3: 13028 case X86::BI__builtin_ia32_vfmaddsubpd512_mask: 13029 case X86::BI__builtin_ia32_vfmaddsubpd512_maskz: 13030 case X86::BI__builtin_ia32_vfmaddsubpd512_mask3: 13031 case X86::BI__builtin_ia32_vfmsubaddpd512_mask3: 13032 return EmitX86FMAExpr(*this, E, Ops, BuiltinID, /*IsAddSub*/ true); 13033 13034 case X86::BI__builtin_ia32_movdqa32store128_mask: 13035 case X86::BI__builtin_ia32_movdqa64store128_mask: 13036 case X86::BI__builtin_ia32_storeaps128_mask: 13037 case X86::BI__builtin_ia32_storeapd128_mask: 13038 case X86::BI__builtin_ia32_movdqa32store256_mask: 13039 case X86::BI__builtin_ia32_movdqa64store256_mask: 13040 case X86::BI__builtin_ia32_storeaps256_mask: 13041 case X86::BI__builtin_ia32_storeapd256_mask: 13042 case X86::BI__builtin_ia32_movdqa32store512_mask: 13043 case X86::BI__builtin_ia32_movdqa64store512_mask: 13044 case X86::BI__builtin_ia32_storeaps512_mask: 13045 case X86::BI__builtin_ia32_storeapd512_mask: 13046 return EmitX86MaskedStore( 13047 *this, Ops, 13048 getContext().getTypeAlignInChars(E->getArg(1)->getType()).getAsAlign()); 13049 13050 case X86::BI__builtin_ia32_loadups128_mask: 13051 case X86::BI__builtin_ia32_loadups256_mask: 13052 case X86::BI__builtin_ia32_loadups512_mask: 13053 case X86::BI__builtin_ia32_loadupd128_mask: 13054 case X86::BI__builtin_ia32_loadupd256_mask: 13055 case X86::BI__builtin_ia32_loadupd512_mask: 13056 case X86::BI__builtin_ia32_loaddquqi128_mask: 13057 case X86::BI__builtin_ia32_loaddquqi256_mask: 13058 case X86::BI__builtin_ia32_loaddquqi512_mask: 13059 case X86::BI__builtin_ia32_loaddquhi128_mask: 13060 case X86::BI__builtin_ia32_loaddquhi256_mask: 13061 case X86::BI__builtin_ia32_loaddquhi512_mask: 13062 case X86::BI__builtin_ia32_loaddqusi128_mask: 13063 case X86::BI__builtin_ia32_loaddqusi256_mask: 13064 case X86::BI__builtin_ia32_loaddqusi512_mask: 13065 case X86::BI__builtin_ia32_loaddqudi128_mask: 13066 case X86::BI__builtin_ia32_loaddqudi256_mask: 13067 case X86::BI__builtin_ia32_loaddqudi512_mask: 13068 return EmitX86MaskedLoad(*this, Ops, Align(1)); 13069 13070 case X86::BI__builtin_ia32_loadsh128_mask: 13071 case X86::BI__builtin_ia32_loadss128_mask: 13072 case X86::BI__builtin_ia32_loadsd128_mask: 13073 return EmitX86MaskedLoad(*this, Ops, Align(1)); 13074 13075 case X86::BI__builtin_ia32_loadaps128_mask: 13076 case X86::BI__builtin_ia32_loadaps256_mask: 13077 case X86::BI__builtin_ia32_loadaps512_mask: 13078 case X86::BI__builtin_ia32_loadapd128_mask: 13079 case X86::BI__builtin_ia32_loadapd256_mask: 13080 case X86::BI__builtin_ia32_loadapd512_mask: 13081 case X86::BI__builtin_ia32_movdqa32load128_mask: 13082 case X86::BI__builtin_ia32_movdqa32load256_mask: 13083 case X86::BI__builtin_ia32_movdqa32load512_mask: 13084 case X86::BI__builtin_ia32_movdqa64load128_mask: 13085 case X86::BI__builtin_ia32_movdqa64load256_mask: 13086 case X86::BI__builtin_ia32_movdqa64load512_mask: 13087 return EmitX86MaskedLoad( 13088 *this, Ops, 13089 getContext().getTypeAlignInChars(E->getArg(1)->getType()).getAsAlign()); 13090 13091 case X86::BI__builtin_ia32_expandloaddf128_mask: 13092 case X86::BI__builtin_ia32_expandloaddf256_mask: 13093 case X86::BI__builtin_ia32_expandloaddf512_mask: 13094 case X86::BI__builtin_ia32_expandloadsf128_mask: 13095 case X86::BI__builtin_ia32_expandloadsf256_mask: 13096 case X86::BI__builtin_ia32_expandloadsf512_mask: 13097 case X86::BI__builtin_ia32_expandloaddi128_mask: 13098 case X86::BI__builtin_ia32_expandloaddi256_mask: 13099 case X86::BI__builtin_ia32_expandloaddi512_mask: 13100 case X86::BI__builtin_ia32_expandloadsi128_mask: 13101 case X86::BI__builtin_ia32_expandloadsi256_mask: 13102 case X86::BI__builtin_ia32_expandloadsi512_mask: 13103 case X86::BI__builtin_ia32_expandloadhi128_mask: 13104 case X86::BI__builtin_ia32_expandloadhi256_mask: 13105 case X86::BI__builtin_ia32_expandloadhi512_mask: 13106 case X86::BI__builtin_ia32_expandloadqi128_mask: 13107 case X86::BI__builtin_ia32_expandloadqi256_mask: 13108 case X86::BI__builtin_ia32_expandloadqi512_mask: 13109 return EmitX86ExpandLoad(*this, Ops); 13110 13111 case X86::BI__builtin_ia32_compressstoredf128_mask: 13112 case X86::BI__builtin_ia32_compressstoredf256_mask: 13113 case X86::BI__builtin_ia32_compressstoredf512_mask: 13114 case X86::BI__builtin_ia32_compressstoresf128_mask: 13115 case X86::BI__builtin_ia32_compressstoresf256_mask: 13116 case X86::BI__builtin_ia32_compressstoresf512_mask: 13117 case X86::BI__builtin_ia32_compressstoredi128_mask: 13118 case X86::BI__builtin_ia32_compressstoredi256_mask: 13119 case X86::BI__builtin_ia32_compressstoredi512_mask: 13120 case X86::BI__builtin_ia32_compressstoresi128_mask: 13121 case X86::BI__builtin_ia32_compressstoresi256_mask: 13122 case X86::BI__builtin_ia32_compressstoresi512_mask: 13123 case X86::BI__builtin_ia32_compressstorehi128_mask: 13124 case X86::BI__builtin_ia32_compressstorehi256_mask: 13125 case X86::BI__builtin_ia32_compressstorehi512_mask: 13126 case X86::BI__builtin_ia32_compressstoreqi128_mask: 13127 case X86::BI__builtin_ia32_compressstoreqi256_mask: 13128 case X86::BI__builtin_ia32_compressstoreqi512_mask: 13129 return EmitX86CompressStore(*this, Ops); 13130 13131 case X86::BI__builtin_ia32_expanddf128_mask: 13132 case X86::BI__builtin_ia32_expanddf256_mask: 13133 case X86::BI__builtin_ia32_expanddf512_mask: 13134 case X86::BI__builtin_ia32_expandsf128_mask: 13135 case X86::BI__builtin_ia32_expandsf256_mask: 13136 case X86::BI__builtin_ia32_expandsf512_mask: 13137 case X86::BI__builtin_ia32_expanddi128_mask: 13138 case X86::BI__builtin_ia32_expanddi256_mask: 13139 case X86::BI__builtin_ia32_expanddi512_mask: 13140 case X86::BI__builtin_ia32_expandsi128_mask: 13141 case X86::BI__builtin_ia32_expandsi256_mask: 13142 case X86::BI__builtin_ia32_expandsi512_mask: 13143 case X86::BI__builtin_ia32_expandhi128_mask: 13144 case X86::BI__builtin_ia32_expandhi256_mask: 13145 case X86::BI__builtin_ia32_expandhi512_mask: 13146 case X86::BI__builtin_ia32_expandqi128_mask: 13147 case X86::BI__builtin_ia32_expandqi256_mask: 13148 case X86::BI__builtin_ia32_expandqi512_mask: 13149 return EmitX86CompressExpand(*this, Ops, /*IsCompress*/false); 13150 13151 case X86::BI__builtin_ia32_compressdf128_mask: 13152 case X86::BI__builtin_ia32_compressdf256_mask: 13153 case X86::BI__builtin_ia32_compressdf512_mask: 13154 case X86::BI__builtin_ia32_compresssf128_mask: 13155 case X86::BI__builtin_ia32_compresssf256_mask: 13156 case X86::BI__builtin_ia32_compresssf512_mask: 13157 case X86::BI__builtin_ia32_compressdi128_mask: 13158 case X86::BI__builtin_ia32_compressdi256_mask: 13159 case X86::BI__builtin_ia32_compressdi512_mask: 13160 case X86::BI__builtin_ia32_compresssi128_mask: 13161 case X86::BI__builtin_ia32_compresssi256_mask: 13162 case X86::BI__builtin_ia32_compresssi512_mask: 13163 case X86::BI__builtin_ia32_compresshi128_mask: 13164 case X86::BI__builtin_ia32_compresshi256_mask: 13165 case X86::BI__builtin_ia32_compresshi512_mask: 13166 case X86::BI__builtin_ia32_compressqi128_mask: 13167 case X86::BI__builtin_ia32_compressqi256_mask: 13168 case X86::BI__builtin_ia32_compressqi512_mask: 13169 return EmitX86CompressExpand(*this, Ops, /*IsCompress*/true); 13170 13171 case X86::BI__builtin_ia32_gather3div2df: 13172 case X86::BI__builtin_ia32_gather3div2di: 13173 case X86::BI__builtin_ia32_gather3div4df: 13174 case X86::BI__builtin_ia32_gather3div4di: 13175 case X86::BI__builtin_ia32_gather3div4sf: 13176 case X86::BI__builtin_ia32_gather3div4si: 13177 case X86::BI__builtin_ia32_gather3div8sf: 13178 case X86::BI__builtin_ia32_gather3div8si: 13179 case X86::BI__builtin_ia32_gather3siv2df: 13180 case X86::BI__builtin_ia32_gather3siv2di: 13181 case X86::BI__builtin_ia32_gather3siv4df: 13182 case X86::BI__builtin_ia32_gather3siv4di: 13183 case X86::BI__builtin_ia32_gather3siv4sf: 13184 case X86::BI__builtin_ia32_gather3siv4si: 13185 case X86::BI__builtin_ia32_gather3siv8sf: 13186 case X86::BI__builtin_ia32_gather3siv8si: 13187 case X86::BI__builtin_ia32_gathersiv8df: 13188 case X86::BI__builtin_ia32_gathersiv16sf: 13189 case X86::BI__builtin_ia32_gatherdiv8df: 13190 case X86::BI__builtin_ia32_gatherdiv16sf: 13191 case X86::BI__builtin_ia32_gathersiv8di: 13192 case X86::BI__builtin_ia32_gathersiv16si: 13193 case X86::BI__builtin_ia32_gatherdiv8di: 13194 case X86::BI__builtin_ia32_gatherdiv16si: { 13195 Intrinsic::ID IID; 13196 switch (BuiltinID) { 13197 default: llvm_unreachable("Unexpected builtin"); 13198 case X86::BI__builtin_ia32_gather3div2df: 13199 IID = Intrinsic::x86_avx512_mask_gather3div2_df; 13200 break; 13201 case X86::BI__builtin_ia32_gather3div2di: 13202 IID = Intrinsic::x86_avx512_mask_gather3div2_di; 13203 break; 13204 case X86::BI__builtin_ia32_gather3div4df: 13205 IID = Intrinsic::x86_avx512_mask_gather3div4_df; 13206 break; 13207 case X86::BI__builtin_ia32_gather3div4di: 13208 IID = Intrinsic::x86_avx512_mask_gather3div4_di; 13209 break; 13210 case X86::BI__builtin_ia32_gather3div4sf: 13211 IID = Intrinsic::x86_avx512_mask_gather3div4_sf; 13212 break; 13213 case X86::BI__builtin_ia32_gather3div4si: 13214 IID = Intrinsic::x86_avx512_mask_gather3div4_si; 13215 break; 13216 case X86::BI__builtin_ia32_gather3div8sf: 13217 IID = Intrinsic::x86_avx512_mask_gather3div8_sf; 13218 break; 13219 case X86::BI__builtin_ia32_gather3div8si: 13220 IID = Intrinsic::x86_avx512_mask_gather3div8_si; 13221 break; 13222 case X86::BI__builtin_ia32_gather3siv2df: 13223 IID = Intrinsic::x86_avx512_mask_gather3siv2_df; 13224 break; 13225 case X86::BI__builtin_ia32_gather3siv2di: 13226 IID = Intrinsic::x86_avx512_mask_gather3siv2_di; 13227 break; 13228 case X86::BI__builtin_ia32_gather3siv4df: 13229 IID = Intrinsic::x86_avx512_mask_gather3siv4_df; 13230 break; 13231 case X86::BI__builtin_ia32_gather3siv4di: 13232 IID = Intrinsic::x86_avx512_mask_gather3siv4_di; 13233 break; 13234 case X86::BI__builtin_ia32_gather3siv4sf: 13235 IID = Intrinsic::x86_avx512_mask_gather3siv4_sf; 13236 break; 13237 case X86::BI__builtin_ia32_gather3siv4si: 13238 IID = Intrinsic::x86_avx512_mask_gather3siv4_si; 13239 break; 13240 case X86::BI__builtin_ia32_gather3siv8sf: 13241 IID = Intrinsic::x86_avx512_mask_gather3siv8_sf; 13242 break; 13243 case X86::BI__builtin_ia32_gather3siv8si: 13244 IID = Intrinsic::x86_avx512_mask_gather3siv8_si; 13245 break; 13246 case X86::BI__builtin_ia32_gathersiv8df: 13247 IID = Intrinsic::x86_avx512_mask_gather_dpd_512; 13248 break; 13249 case X86::BI__builtin_ia32_gathersiv16sf: 13250 IID = Intrinsic::x86_avx512_mask_gather_dps_512; 13251 break; 13252 case X86::BI__builtin_ia32_gatherdiv8df: 13253 IID = Intrinsic::x86_avx512_mask_gather_qpd_512; 13254 break; 13255 case X86::BI__builtin_ia32_gatherdiv16sf: 13256 IID = Intrinsic::x86_avx512_mask_gather_qps_512; 13257 break; 13258 case X86::BI__builtin_ia32_gathersiv8di: 13259 IID = Intrinsic::x86_avx512_mask_gather_dpq_512; 13260 break; 13261 case X86::BI__builtin_ia32_gathersiv16si: 13262 IID = Intrinsic::x86_avx512_mask_gather_dpi_512; 13263 break; 13264 case X86::BI__builtin_ia32_gatherdiv8di: 13265 IID = Intrinsic::x86_avx512_mask_gather_qpq_512; 13266 break; 13267 case X86::BI__builtin_ia32_gatherdiv16si: 13268 IID = Intrinsic::x86_avx512_mask_gather_qpi_512; 13269 break; 13270 } 13271 13272 unsigned MinElts = std::min( 13273 cast<llvm::FixedVectorType>(Ops[0]->getType())->getNumElements(), 13274 cast<llvm::FixedVectorType>(Ops[2]->getType())->getNumElements()); 13275 Ops[3] = getMaskVecValue(*this, Ops[3], MinElts); 13276 Function *Intr = CGM.getIntrinsic(IID); 13277 return Builder.CreateCall(Intr, Ops); 13278 } 13279 13280 case X86::BI__builtin_ia32_scattersiv8df: 13281 case X86::BI__builtin_ia32_scattersiv16sf: 13282 case X86::BI__builtin_ia32_scatterdiv8df: 13283 case X86::BI__builtin_ia32_scatterdiv16sf: 13284 case X86::BI__builtin_ia32_scattersiv8di: 13285 case X86::BI__builtin_ia32_scattersiv16si: 13286 case X86::BI__builtin_ia32_scatterdiv8di: 13287 case X86::BI__builtin_ia32_scatterdiv16si: 13288 case X86::BI__builtin_ia32_scatterdiv2df: 13289 case X86::BI__builtin_ia32_scatterdiv2di: 13290 case X86::BI__builtin_ia32_scatterdiv4df: 13291 case X86::BI__builtin_ia32_scatterdiv4di: 13292 case X86::BI__builtin_ia32_scatterdiv4sf: 13293 case X86::BI__builtin_ia32_scatterdiv4si: 13294 case X86::BI__builtin_ia32_scatterdiv8sf: 13295 case X86::BI__builtin_ia32_scatterdiv8si: 13296 case X86::BI__builtin_ia32_scattersiv2df: 13297 case X86::BI__builtin_ia32_scattersiv2di: 13298 case X86::BI__builtin_ia32_scattersiv4df: 13299 case X86::BI__builtin_ia32_scattersiv4di: 13300 case X86::BI__builtin_ia32_scattersiv4sf: 13301 case X86::BI__builtin_ia32_scattersiv4si: 13302 case X86::BI__builtin_ia32_scattersiv8sf: 13303 case X86::BI__builtin_ia32_scattersiv8si: { 13304 Intrinsic::ID IID; 13305 switch (BuiltinID) { 13306 default: llvm_unreachable("Unexpected builtin"); 13307 case X86::BI__builtin_ia32_scattersiv8df: 13308 IID = Intrinsic::x86_avx512_mask_scatter_dpd_512; 13309 break; 13310 case X86::BI__builtin_ia32_scattersiv16sf: 13311 IID = Intrinsic::x86_avx512_mask_scatter_dps_512; 13312 break; 13313 case X86::BI__builtin_ia32_scatterdiv8df: 13314 IID = Intrinsic::x86_avx512_mask_scatter_qpd_512; 13315 break; 13316 case X86::BI__builtin_ia32_scatterdiv16sf: 13317 IID = Intrinsic::x86_avx512_mask_scatter_qps_512; 13318 break; 13319 case X86::BI__builtin_ia32_scattersiv8di: 13320 IID = Intrinsic::x86_avx512_mask_scatter_dpq_512; 13321 break; 13322 case X86::BI__builtin_ia32_scattersiv16si: 13323 IID = Intrinsic::x86_avx512_mask_scatter_dpi_512; 13324 break; 13325 case X86::BI__builtin_ia32_scatterdiv8di: 13326 IID = Intrinsic::x86_avx512_mask_scatter_qpq_512; 13327 break; 13328 case X86::BI__builtin_ia32_scatterdiv16si: 13329 IID = Intrinsic::x86_avx512_mask_scatter_qpi_512; 13330 break; 13331 case X86::BI__builtin_ia32_scatterdiv2df: 13332 IID = Intrinsic::x86_avx512_mask_scatterdiv2_df; 13333 break; 13334 case X86::BI__builtin_ia32_scatterdiv2di: 13335 IID = Intrinsic::x86_avx512_mask_scatterdiv2_di; 13336 break; 13337 case X86::BI__builtin_ia32_scatterdiv4df: 13338 IID = Intrinsic::x86_avx512_mask_scatterdiv4_df; 13339 break; 13340 case X86::BI__builtin_ia32_scatterdiv4di: 13341 IID = Intrinsic::x86_avx512_mask_scatterdiv4_di; 13342 break; 13343 case X86::BI__builtin_ia32_scatterdiv4sf: 13344 IID = Intrinsic::x86_avx512_mask_scatterdiv4_sf; 13345 break; 13346 case X86::BI__builtin_ia32_scatterdiv4si: 13347 IID = Intrinsic::x86_avx512_mask_scatterdiv4_si; 13348 break; 13349 case X86::BI__builtin_ia32_scatterdiv8sf: 13350 IID = Intrinsic::x86_avx512_mask_scatterdiv8_sf; 13351 break; 13352 case X86::BI__builtin_ia32_scatterdiv8si: 13353 IID = Intrinsic::x86_avx512_mask_scatterdiv8_si; 13354 break; 13355 case X86::BI__builtin_ia32_scattersiv2df: 13356 IID = Intrinsic::x86_avx512_mask_scattersiv2_df; 13357 break; 13358 case X86::BI__builtin_ia32_scattersiv2di: 13359 IID = Intrinsic::x86_avx512_mask_scattersiv2_di; 13360 break; 13361 case X86::BI__builtin_ia32_scattersiv4df: 13362 IID = Intrinsic::x86_avx512_mask_scattersiv4_df; 13363 break; 13364 case X86::BI__builtin_ia32_scattersiv4di: 13365 IID = Intrinsic::x86_avx512_mask_scattersiv4_di; 13366 break; 13367 case X86::BI__builtin_ia32_scattersiv4sf: 13368 IID = Intrinsic::x86_avx512_mask_scattersiv4_sf; 13369 break; 13370 case X86::BI__builtin_ia32_scattersiv4si: 13371 IID = Intrinsic::x86_avx512_mask_scattersiv4_si; 13372 break; 13373 case X86::BI__builtin_ia32_scattersiv8sf: 13374 IID = Intrinsic::x86_avx512_mask_scattersiv8_sf; 13375 break; 13376 case X86::BI__builtin_ia32_scattersiv8si: 13377 IID = Intrinsic::x86_avx512_mask_scattersiv8_si; 13378 break; 13379 } 13380 13381 unsigned MinElts = std::min( 13382 cast<llvm::FixedVectorType>(Ops[2]->getType())->getNumElements(), 13383 cast<llvm::FixedVectorType>(Ops[3]->getType())->getNumElements()); 13384 Ops[1] = getMaskVecValue(*this, Ops[1], MinElts); 13385 Function *Intr = CGM.getIntrinsic(IID); 13386 return Builder.CreateCall(Intr, Ops); 13387 } 13388 13389 case X86::BI__builtin_ia32_vextractf128_pd256: 13390 case X86::BI__builtin_ia32_vextractf128_ps256: 13391 case X86::BI__builtin_ia32_vextractf128_si256: 13392 case X86::BI__builtin_ia32_extract128i256: 13393 case X86::BI__builtin_ia32_extractf64x4_mask: 13394 case X86::BI__builtin_ia32_extractf32x4_mask: 13395 case X86::BI__builtin_ia32_extracti64x4_mask: 13396 case X86::BI__builtin_ia32_extracti32x4_mask: 13397 case X86::BI__builtin_ia32_extractf32x8_mask: 13398 case X86::BI__builtin_ia32_extracti32x8_mask: 13399 case X86::BI__builtin_ia32_extractf32x4_256_mask: 13400 case X86::BI__builtin_ia32_extracti32x4_256_mask: 13401 case X86::BI__builtin_ia32_extractf64x2_256_mask: 13402 case X86::BI__builtin_ia32_extracti64x2_256_mask: 13403 case X86::BI__builtin_ia32_extractf64x2_512_mask: 13404 case X86::BI__builtin_ia32_extracti64x2_512_mask: { 13405 auto *DstTy = cast<llvm::FixedVectorType>(ConvertType(E->getType())); 13406 unsigned NumElts = DstTy->getNumElements(); 13407 unsigned SrcNumElts = 13408 cast<llvm::FixedVectorType>(Ops[0]->getType())->getNumElements(); 13409 unsigned SubVectors = SrcNumElts / NumElts; 13410 unsigned Index = cast<ConstantInt>(Ops[1])->getZExtValue(); 13411 assert(llvm::isPowerOf2_32(SubVectors) && "Expected power of 2 subvectors"); 13412 Index &= SubVectors - 1; // Remove any extra bits. 13413 Index *= NumElts; 13414 13415 int Indices[16]; 13416 for (unsigned i = 0; i != NumElts; ++i) 13417 Indices[i] = i + Index; 13418 13419 Value *Res = Builder.CreateShuffleVector(Ops[0], 13420 makeArrayRef(Indices, NumElts), 13421 "extract"); 13422 13423 if (Ops.size() == 4) 13424 Res = EmitX86Select(*this, Ops[3], Res, Ops[2]); 13425 13426 return Res; 13427 } 13428 case X86::BI__builtin_ia32_vinsertf128_pd256: 13429 case X86::BI__builtin_ia32_vinsertf128_ps256: 13430 case X86::BI__builtin_ia32_vinsertf128_si256: 13431 case X86::BI__builtin_ia32_insert128i256: 13432 case X86::BI__builtin_ia32_insertf64x4: 13433 case X86::BI__builtin_ia32_insertf32x4: 13434 case X86::BI__builtin_ia32_inserti64x4: 13435 case X86::BI__builtin_ia32_inserti32x4: 13436 case X86::BI__builtin_ia32_insertf32x8: 13437 case X86::BI__builtin_ia32_inserti32x8: 13438 case X86::BI__builtin_ia32_insertf32x4_256: 13439 case X86::BI__builtin_ia32_inserti32x4_256: 13440 case X86::BI__builtin_ia32_insertf64x2_256: 13441 case X86::BI__builtin_ia32_inserti64x2_256: 13442 case X86::BI__builtin_ia32_insertf64x2_512: 13443 case X86::BI__builtin_ia32_inserti64x2_512: { 13444 unsigned DstNumElts = 13445 cast<llvm::FixedVectorType>(Ops[0]->getType())->getNumElements(); 13446 unsigned SrcNumElts = 13447 cast<llvm::FixedVectorType>(Ops[1]->getType())->getNumElements(); 13448 unsigned SubVectors = DstNumElts / SrcNumElts; 13449 unsigned Index = cast<ConstantInt>(Ops[2])->getZExtValue(); 13450 assert(llvm::isPowerOf2_32(SubVectors) && "Expected power of 2 subvectors"); 13451 Index &= SubVectors - 1; // Remove any extra bits. 13452 Index *= SrcNumElts; 13453 13454 int Indices[16]; 13455 for (unsigned i = 0; i != DstNumElts; ++i) 13456 Indices[i] = (i >= SrcNumElts) ? SrcNumElts + (i % SrcNumElts) : i; 13457 13458 Value *Op1 = Builder.CreateShuffleVector(Ops[1], 13459 makeArrayRef(Indices, DstNumElts), 13460 "widen"); 13461 13462 for (unsigned i = 0; i != DstNumElts; ++i) { 13463 if (i >= Index && i < (Index + SrcNumElts)) 13464 Indices[i] = (i - Index) + DstNumElts; 13465 else 13466 Indices[i] = i; 13467 } 13468 13469 return Builder.CreateShuffleVector(Ops[0], Op1, 13470 makeArrayRef(Indices, DstNumElts), 13471 "insert"); 13472 } 13473 case X86::BI__builtin_ia32_pmovqd512_mask: 13474 case X86::BI__builtin_ia32_pmovwb512_mask: { 13475 Value *Res = Builder.CreateTrunc(Ops[0], Ops[1]->getType()); 13476 return EmitX86Select(*this, Ops[2], Res, Ops[1]); 13477 } 13478 case X86::BI__builtin_ia32_pmovdb512_mask: 13479 case X86::BI__builtin_ia32_pmovdw512_mask: 13480 case X86::BI__builtin_ia32_pmovqw512_mask: { 13481 if (const auto *C = dyn_cast<Constant>(Ops[2])) 13482 if (C->isAllOnesValue()) 13483 return Builder.CreateTrunc(Ops[0], Ops[1]->getType()); 13484 13485 Intrinsic::ID IID; 13486 switch (BuiltinID) { 13487 default: llvm_unreachable("Unsupported intrinsic!"); 13488 case X86::BI__builtin_ia32_pmovdb512_mask: 13489 IID = Intrinsic::x86_avx512_mask_pmov_db_512; 13490 break; 13491 case X86::BI__builtin_ia32_pmovdw512_mask: 13492 IID = Intrinsic::x86_avx512_mask_pmov_dw_512; 13493 break; 13494 case X86::BI__builtin_ia32_pmovqw512_mask: 13495 IID = Intrinsic::x86_avx512_mask_pmov_qw_512; 13496 break; 13497 } 13498 13499 Function *Intr = CGM.getIntrinsic(IID); 13500 return Builder.CreateCall(Intr, Ops); 13501 } 13502 case X86::BI__builtin_ia32_pblendw128: 13503 case X86::BI__builtin_ia32_blendpd: 13504 case X86::BI__builtin_ia32_blendps: 13505 case X86::BI__builtin_ia32_blendpd256: 13506 case X86::BI__builtin_ia32_blendps256: 13507 case X86::BI__builtin_ia32_pblendw256: 13508 case X86::BI__builtin_ia32_pblendd128: 13509 case X86::BI__builtin_ia32_pblendd256: { 13510 unsigned NumElts = 13511 cast<llvm::FixedVectorType>(Ops[0]->getType())->getNumElements(); 13512 unsigned Imm = cast<llvm::ConstantInt>(Ops[2])->getZExtValue(); 13513 13514 int Indices[16]; 13515 // If there are more than 8 elements, the immediate is used twice so make 13516 // sure we handle that. 13517 for (unsigned i = 0; i != NumElts; ++i) 13518 Indices[i] = ((Imm >> (i % 8)) & 0x1) ? NumElts + i : i; 13519 13520 return Builder.CreateShuffleVector(Ops[0], Ops[1], 13521 makeArrayRef(Indices, NumElts), 13522 "blend"); 13523 } 13524 case X86::BI__builtin_ia32_pshuflw: 13525 case X86::BI__builtin_ia32_pshuflw256: 13526 case X86::BI__builtin_ia32_pshuflw512: { 13527 uint32_t Imm = cast<llvm::ConstantInt>(Ops[1])->getZExtValue(); 13528 auto *Ty = cast<llvm::FixedVectorType>(Ops[0]->getType()); 13529 unsigned NumElts = Ty->getNumElements(); 13530 13531 // Splat the 8-bits of immediate 4 times to help the loop wrap around. 13532 Imm = (Imm & 0xff) * 0x01010101; 13533 13534 int Indices[32]; 13535 for (unsigned l = 0; l != NumElts; l += 8) { 13536 for (unsigned i = 0; i != 4; ++i) { 13537 Indices[l + i] = l + (Imm & 3); 13538 Imm >>= 2; 13539 } 13540 for (unsigned i = 4; i != 8; ++i) 13541 Indices[l + i] = l + i; 13542 } 13543 13544 return Builder.CreateShuffleVector(Ops[0], makeArrayRef(Indices, NumElts), 13545 "pshuflw"); 13546 } 13547 case X86::BI__builtin_ia32_pshufhw: 13548 case X86::BI__builtin_ia32_pshufhw256: 13549 case X86::BI__builtin_ia32_pshufhw512: { 13550 uint32_t Imm = cast<llvm::ConstantInt>(Ops[1])->getZExtValue(); 13551 auto *Ty = cast<llvm::FixedVectorType>(Ops[0]->getType()); 13552 unsigned NumElts = Ty->getNumElements(); 13553 13554 // Splat the 8-bits of immediate 4 times to help the loop wrap around. 13555 Imm = (Imm & 0xff) * 0x01010101; 13556 13557 int Indices[32]; 13558 for (unsigned l = 0; l != NumElts; l += 8) { 13559 for (unsigned i = 0; i != 4; ++i) 13560 Indices[l + i] = l + i; 13561 for (unsigned i = 4; i != 8; ++i) { 13562 Indices[l + i] = l + 4 + (Imm & 3); 13563 Imm >>= 2; 13564 } 13565 } 13566 13567 return Builder.CreateShuffleVector(Ops[0], makeArrayRef(Indices, NumElts), 13568 "pshufhw"); 13569 } 13570 case X86::BI__builtin_ia32_pshufd: 13571 case X86::BI__builtin_ia32_pshufd256: 13572 case X86::BI__builtin_ia32_pshufd512: 13573 case X86::BI__builtin_ia32_vpermilpd: 13574 case X86::BI__builtin_ia32_vpermilps: 13575 case X86::BI__builtin_ia32_vpermilpd256: 13576 case X86::BI__builtin_ia32_vpermilps256: 13577 case X86::BI__builtin_ia32_vpermilpd512: 13578 case X86::BI__builtin_ia32_vpermilps512: { 13579 uint32_t Imm = cast<llvm::ConstantInt>(Ops[1])->getZExtValue(); 13580 auto *Ty = cast<llvm::FixedVectorType>(Ops[0]->getType()); 13581 unsigned NumElts = Ty->getNumElements(); 13582 unsigned NumLanes = Ty->getPrimitiveSizeInBits() / 128; 13583 unsigned NumLaneElts = NumElts / NumLanes; 13584 13585 // Splat the 8-bits of immediate 4 times to help the loop wrap around. 13586 Imm = (Imm & 0xff) * 0x01010101; 13587 13588 int Indices[16]; 13589 for (unsigned l = 0; l != NumElts; l += NumLaneElts) { 13590 for (unsigned i = 0; i != NumLaneElts; ++i) { 13591 Indices[i + l] = (Imm % NumLaneElts) + l; 13592 Imm /= NumLaneElts; 13593 } 13594 } 13595 13596 return Builder.CreateShuffleVector(Ops[0], makeArrayRef(Indices, NumElts), 13597 "permil"); 13598 } 13599 case X86::BI__builtin_ia32_shufpd: 13600 case X86::BI__builtin_ia32_shufpd256: 13601 case X86::BI__builtin_ia32_shufpd512: 13602 case X86::BI__builtin_ia32_shufps: 13603 case X86::BI__builtin_ia32_shufps256: 13604 case X86::BI__builtin_ia32_shufps512: { 13605 uint32_t Imm = cast<llvm::ConstantInt>(Ops[2])->getZExtValue(); 13606 auto *Ty = cast<llvm::FixedVectorType>(Ops[0]->getType()); 13607 unsigned NumElts = Ty->getNumElements(); 13608 unsigned NumLanes = Ty->getPrimitiveSizeInBits() / 128; 13609 unsigned NumLaneElts = NumElts / NumLanes; 13610 13611 // Splat the 8-bits of immediate 4 times to help the loop wrap around. 13612 Imm = (Imm & 0xff) * 0x01010101; 13613 13614 int Indices[16]; 13615 for (unsigned l = 0; l != NumElts; l += NumLaneElts) { 13616 for (unsigned i = 0; i != NumLaneElts; ++i) { 13617 unsigned Index = Imm % NumLaneElts; 13618 Imm /= NumLaneElts; 13619 if (i >= (NumLaneElts / 2)) 13620 Index += NumElts; 13621 Indices[l + i] = l + Index; 13622 } 13623 } 13624 13625 return Builder.CreateShuffleVector(Ops[0], Ops[1], 13626 makeArrayRef(Indices, NumElts), 13627 "shufp"); 13628 } 13629 case X86::BI__builtin_ia32_permdi256: 13630 case X86::BI__builtin_ia32_permdf256: 13631 case X86::BI__builtin_ia32_permdi512: 13632 case X86::BI__builtin_ia32_permdf512: { 13633 unsigned Imm = cast<llvm::ConstantInt>(Ops[1])->getZExtValue(); 13634 auto *Ty = cast<llvm::FixedVectorType>(Ops[0]->getType()); 13635 unsigned NumElts = Ty->getNumElements(); 13636 13637 // These intrinsics operate on 256-bit lanes of four 64-bit elements. 13638 int Indices[8]; 13639 for (unsigned l = 0; l != NumElts; l += 4) 13640 for (unsigned i = 0; i != 4; ++i) 13641 Indices[l + i] = l + ((Imm >> (2 * i)) & 0x3); 13642 13643 return Builder.CreateShuffleVector(Ops[0], makeArrayRef(Indices, NumElts), 13644 "perm"); 13645 } 13646 case X86::BI__builtin_ia32_palignr128: 13647 case X86::BI__builtin_ia32_palignr256: 13648 case X86::BI__builtin_ia32_palignr512: { 13649 unsigned ShiftVal = cast<llvm::ConstantInt>(Ops[2])->getZExtValue() & 0xff; 13650 13651 unsigned NumElts = 13652 cast<llvm::FixedVectorType>(Ops[0]->getType())->getNumElements(); 13653 assert(NumElts % 16 == 0); 13654 13655 // If palignr is shifting the pair of vectors more than the size of two 13656 // lanes, emit zero. 13657 if (ShiftVal >= 32) 13658 return llvm::Constant::getNullValue(ConvertType(E->getType())); 13659 13660 // If palignr is shifting the pair of input vectors more than one lane, 13661 // but less than two lanes, convert to shifting in zeroes. 13662 if (ShiftVal > 16) { 13663 ShiftVal -= 16; 13664 Ops[1] = Ops[0]; 13665 Ops[0] = llvm::Constant::getNullValue(Ops[0]->getType()); 13666 } 13667 13668 int Indices[64]; 13669 // 256-bit palignr operates on 128-bit lanes so we need to handle that 13670 for (unsigned l = 0; l != NumElts; l += 16) { 13671 for (unsigned i = 0; i != 16; ++i) { 13672 unsigned Idx = ShiftVal + i; 13673 if (Idx >= 16) 13674 Idx += NumElts - 16; // End of lane, switch operand. 13675 Indices[l + i] = Idx + l; 13676 } 13677 } 13678 13679 return Builder.CreateShuffleVector(Ops[1], Ops[0], 13680 makeArrayRef(Indices, NumElts), 13681 "palignr"); 13682 } 13683 case X86::BI__builtin_ia32_alignd128: 13684 case X86::BI__builtin_ia32_alignd256: 13685 case X86::BI__builtin_ia32_alignd512: 13686 case X86::BI__builtin_ia32_alignq128: 13687 case X86::BI__builtin_ia32_alignq256: 13688 case X86::BI__builtin_ia32_alignq512: { 13689 unsigned NumElts = 13690 cast<llvm::FixedVectorType>(Ops[0]->getType())->getNumElements(); 13691 unsigned ShiftVal = cast<llvm::ConstantInt>(Ops[2])->getZExtValue() & 0xff; 13692 13693 // Mask the shift amount to width of a vector. 13694 ShiftVal &= NumElts - 1; 13695 13696 int Indices[16]; 13697 for (unsigned i = 0; i != NumElts; ++i) 13698 Indices[i] = i + ShiftVal; 13699 13700 return Builder.CreateShuffleVector(Ops[1], Ops[0], 13701 makeArrayRef(Indices, NumElts), 13702 "valign"); 13703 } 13704 case X86::BI__builtin_ia32_shuf_f32x4_256: 13705 case X86::BI__builtin_ia32_shuf_f64x2_256: 13706 case X86::BI__builtin_ia32_shuf_i32x4_256: 13707 case X86::BI__builtin_ia32_shuf_i64x2_256: 13708 case X86::BI__builtin_ia32_shuf_f32x4: 13709 case X86::BI__builtin_ia32_shuf_f64x2: 13710 case X86::BI__builtin_ia32_shuf_i32x4: 13711 case X86::BI__builtin_ia32_shuf_i64x2: { 13712 unsigned Imm = cast<llvm::ConstantInt>(Ops[2])->getZExtValue(); 13713 auto *Ty = cast<llvm::FixedVectorType>(Ops[0]->getType()); 13714 unsigned NumElts = Ty->getNumElements(); 13715 unsigned NumLanes = Ty->getPrimitiveSizeInBits() == 512 ? 4 : 2; 13716 unsigned NumLaneElts = NumElts / NumLanes; 13717 13718 int Indices[16]; 13719 for (unsigned l = 0; l != NumElts; l += NumLaneElts) { 13720 unsigned Index = (Imm % NumLanes) * NumLaneElts; 13721 Imm /= NumLanes; // Discard the bits we just used. 13722 if (l >= (NumElts / 2)) 13723 Index += NumElts; // Switch to other source. 13724 for (unsigned i = 0; i != NumLaneElts; ++i) { 13725 Indices[l + i] = Index + i; 13726 } 13727 } 13728 13729 return Builder.CreateShuffleVector(Ops[0], Ops[1], 13730 makeArrayRef(Indices, NumElts), 13731 "shuf"); 13732 } 13733 13734 case X86::BI__builtin_ia32_vperm2f128_pd256: 13735 case X86::BI__builtin_ia32_vperm2f128_ps256: 13736 case X86::BI__builtin_ia32_vperm2f128_si256: 13737 case X86::BI__builtin_ia32_permti256: { 13738 unsigned Imm = cast<llvm::ConstantInt>(Ops[2])->getZExtValue(); 13739 unsigned NumElts = 13740 cast<llvm::FixedVectorType>(Ops[0]->getType())->getNumElements(); 13741 13742 // This takes a very simple approach since there are two lanes and a 13743 // shuffle can have 2 inputs. So we reserve the first input for the first 13744 // lane and the second input for the second lane. This may result in 13745 // duplicate sources, but this can be dealt with in the backend. 13746 13747 Value *OutOps[2]; 13748 int Indices[8]; 13749 for (unsigned l = 0; l != 2; ++l) { 13750 // Determine the source for this lane. 13751 if (Imm & (1 << ((l * 4) + 3))) 13752 OutOps[l] = llvm::ConstantAggregateZero::get(Ops[0]->getType()); 13753 else if (Imm & (1 << ((l * 4) + 1))) 13754 OutOps[l] = Ops[1]; 13755 else 13756 OutOps[l] = Ops[0]; 13757 13758 for (unsigned i = 0; i != NumElts/2; ++i) { 13759 // Start with ith element of the source for this lane. 13760 unsigned Idx = (l * NumElts) + i; 13761 // If bit 0 of the immediate half is set, switch to the high half of 13762 // the source. 13763 if (Imm & (1 << (l * 4))) 13764 Idx += NumElts/2; 13765 Indices[(l * (NumElts/2)) + i] = Idx; 13766 } 13767 } 13768 13769 return Builder.CreateShuffleVector(OutOps[0], OutOps[1], 13770 makeArrayRef(Indices, NumElts), 13771 "vperm"); 13772 } 13773 13774 case X86::BI__builtin_ia32_pslldqi128_byteshift: 13775 case X86::BI__builtin_ia32_pslldqi256_byteshift: 13776 case X86::BI__builtin_ia32_pslldqi512_byteshift: { 13777 unsigned ShiftVal = cast<llvm::ConstantInt>(Ops[1])->getZExtValue() & 0xff; 13778 auto *ResultType = cast<llvm::FixedVectorType>(Ops[0]->getType()); 13779 // Builtin type is vXi64 so multiply by 8 to get bytes. 13780 unsigned NumElts = ResultType->getNumElements() * 8; 13781 13782 // If pslldq is shifting the vector more than 15 bytes, emit zero. 13783 if (ShiftVal >= 16) 13784 return llvm::Constant::getNullValue(ResultType); 13785 13786 int Indices[64]; 13787 // 256/512-bit pslldq operates on 128-bit lanes so we need to handle that 13788 for (unsigned l = 0; l != NumElts; l += 16) { 13789 for (unsigned i = 0; i != 16; ++i) { 13790 unsigned Idx = NumElts + i - ShiftVal; 13791 if (Idx < NumElts) Idx -= NumElts - 16; // end of lane, switch operand. 13792 Indices[l + i] = Idx + l; 13793 } 13794 } 13795 13796 auto *VecTy = llvm::FixedVectorType::get(Int8Ty, NumElts); 13797 Value *Cast = Builder.CreateBitCast(Ops[0], VecTy, "cast"); 13798 Value *Zero = llvm::Constant::getNullValue(VecTy); 13799 Value *SV = Builder.CreateShuffleVector(Zero, Cast, 13800 makeArrayRef(Indices, NumElts), 13801 "pslldq"); 13802 return Builder.CreateBitCast(SV, Ops[0]->getType(), "cast"); 13803 } 13804 case X86::BI__builtin_ia32_psrldqi128_byteshift: 13805 case X86::BI__builtin_ia32_psrldqi256_byteshift: 13806 case X86::BI__builtin_ia32_psrldqi512_byteshift: { 13807 unsigned ShiftVal = cast<llvm::ConstantInt>(Ops[1])->getZExtValue() & 0xff; 13808 auto *ResultType = cast<llvm::FixedVectorType>(Ops[0]->getType()); 13809 // Builtin type is vXi64 so multiply by 8 to get bytes. 13810 unsigned NumElts = ResultType->getNumElements() * 8; 13811 13812 // If psrldq is shifting the vector more than 15 bytes, emit zero. 13813 if (ShiftVal >= 16) 13814 return llvm::Constant::getNullValue(ResultType); 13815 13816 int Indices[64]; 13817 // 256/512-bit psrldq operates on 128-bit lanes so we need to handle that 13818 for (unsigned l = 0; l != NumElts; l += 16) { 13819 for (unsigned i = 0; i != 16; ++i) { 13820 unsigned Idx = i + ShiftVal; 13821 if (Idx >= 16) Idx += NumElts - 16; // end of lane, switch operand. 13822 Indices[l + i] = Idx + l; 13823 } 13824 } 13825 13826 auto *VecTy = llvm::FixedVectorType::get(Int8Ty, NumElts); 13827 Value *Cast = Builder.CreateBitCast(Ops[0], VecTy, "cast"); 13828 Value *Zero = llvm::Constant::getNullValue(VecTy); 13829 Value *SV = Builder.CreateShuffleVector(Cast, Zero, 13830 makeArrayRef(Indices, NumElts), 13831 "psrldq"); 13832 return Builder.CreateBitCast(SV, ResultType, "cast"); 13833 } 13834 case X86::BI__builtin_ia32_kshiftliqi: 13835 case X86::BI__builtin_ia32_kshiftlihi: 13836 case X86::BI__builtin_ia32_kshiftlisi: 13837 case X86::BI__builtin_ia32_kshiftlidi: { 13838 unsigned ShiftVal = cast<llvm::ConstantInt>(Ops[1])->getZExtValue() & 0xff; 13839 unsigned NumElts = Ops[0]->getType()->getIntegerBitWidth(); 13840 13841 if (ShiftVal >= NumElts) 13842 return llvm::Constant::getNullValue(Ops[0]->getType()); 13843 13844 Value *In = getMaskVecValue(*this, Ops[0], NumElts); 13845 13846 int Indices[64]; 13847 for (unsigned i = 0; i != NumElts; ++i) 13848 Indices[i] = NumElts + i - ShiftVal; 13849 13850 Value *Zero = llvm::Constant::getNullValue(In->getType()); 13851 Value *SV = Builder.CreateShuffleVector(Zero, In, 13852 makeArrayRef(Indices, NumElts), 13853 "kshiftl"); 13854 return Builder.CreateBitCast(SV, Ops[0]->getType()); 13855 } 13856 case X86::BI__builtin_ia32_kshiftriqi: 13857 case X86::BI__builtin_ia32_kshiftrihi: 13858 case X86::BI__builtin_ia32_kshiftrisi: 13859 case X86::BI__builtin_ia32_kshiftridi: { 13860 unsigned ShiftVal = cast<llvm::ConstantInt>(Ops[1])->getZExtValue() & 0xff; 13861 unsigned NumElts = Ops[0]->getType()->getIntegerBitWidth(); 13862 13863 if (ShiftVal >= NumElts) 13864 return llvm::Constant::getNullValue(Ops[0]->getType()); 13865 13866 Value *In = getMaskVecValue(*this, Ops[0], NumElts); 13867 13868 int Indices[64]; 13869 for (unsigned i = 0; i != NumElts; ++i) 13870 Indices[i] = i + ShiftVal; 13871 13872 Value *Zero = llvm::Constant::getNullValue(In->getType()); 13873 Value *SV = Builder.CreateShuffleVector(In, Zero, 13874 makeArrayRef(Indices, NumElts), 13875 "kshiftr"); 13876 return Builder.CreateBitCast(SV, Ops[0]->getType()); 13877 } 13878 case X86::BI__builtin_ia32_movnti: 13879 case X86::BI__builtin_ia32_movnti64: 13880 case X86::BI__builtin_ia32_movntsd: 13881 case X86::BI__builtin_ia32_movntss: { 13882 llvm::MDNode *Node = llvm::MDNode::get( 13883 getLLVMContext(), llvm::ConstantAsMetadata::get(Builder.getInt32(1))); 13884 13885 Value *Ptr = Ops[0]; 13886 Value *Src = Ops[1]; 13887 13888 // Extract the 0'th element of the source vector. 13889 if (BuiltinID == X86::BI__builtin_ia32_movntsd || 13890 BuiltinID == X86::BI__builtin_ia32_movntss) 13891 Src = Builder.CreateExtractElement(Src, (uint64_t)0, "extract"); 13892 13893 // Convert the type of the pointer to a pointer to the stored type. 13894 Value *BC = Builder.CreateBitCast( 13895 Ptr, llvm::PointerType::getUnqual(Src->getType()), "cast"); 13896 13897 // Unaligned nontemporal store of the scalar value. 13898 StoreInst *SI = Builder.CreateDefaultAlignedStore(Src, BC); 13899 SI->setMetadata(CGM.getModule().getMDKindID("nontemporal"), Node); 13900 SI->setAlignment(llvm::Align(1)); 13901 return SI; 13902 } 13903 // Rotate is a special case of funnel shift - 1st 2 args are the same. 13904 case X86::BI__builtin_ia32_vprotb: 13905 case X86::BI__builtin_ia32_vprotw: 13906 case X86::BI__builtin_ia32_vprotd: 13907 case X86::BI__builtin_ia32_vprotq: 13908 case X86::BI__builtin_ia32_vprotbi: 13909 case X86::BI__builtin_ia32_vprotwi: 13910 case X86::BI__builtin_ia32_vprotdi: 13911 case X86::BI__builtin_ia32_vprotqi: 13912 case X86::BI__builtin_ia32_prold128: 13913 case X86::BI__builtin_ia32_prold256: 13914 case X86::BI__builtin_ia32_prold512: 13915 case X86::BI__builtin_ia32_prolq128: 13916 case X86::BI__builtin_ia32_prolq256: 13917 case X86::BI__builtin_ia32_prolq512: 13918 case X86::BI__builtin_ia32_prolvd128: 13919 case X86::BI__builtin_ia32_prolvd256: 13920 case X86::BI__builtin_ia32_prolvd512: 13921 case X86::BI__builtin_ia32_prolvq128: 13922 case X86::BI__builtin_ia32_prolvq256: 13923 case X86::BI__builtin_ia32_prolvq512: 13924 return EmitX86FunnelShift(*this, Ops[0], Ops[0], Ops[1], false); 13925 case X86::BI__builtin_ia32_prord128: 13926 case X86::BI__builtin_ia32_prord256: 13927 case X86::BI__builtin_ia32_prord512: 13928 case X86::BI__builtin_ia32_prorq128: 13929 case X86::BI__builtin_ia32_prorq256: 13930 case X86::BI__builtin_ia32_prorq512: 13931 case X86::BI__builtin_ia32_prorvd128: 13932 case X86::BI__builtin_ia32_prorvd256: 13933 case X86::BI__builtin_ia32_prorvd512: 13934 case X86::BI__builtin_ia32_prorvq128: 13935 case X86::BI__builtin_ia32_prorvq256: 13936 case X86::BI__builtin_ia32_prorvq512: 13937 return EmitX86FunnelShift(*this, Ops[0], Ops[0], Ops[1], true); 13938 case X86::BI__builtin_ia32_selectb_128: 13939 case X86::BI__builtin_ia32_selectb_256: 13940 case X86::BI__builtin_ia32_selectb_512: 13941 case X86::BI__builtin_ia32_selectw_128: 13942 case X86::BI__builtin_ia32_selectw_256: 13943 case X86::BI__builtin_ia32_selectw_512: 13944 case X86::BI__builtin_ia32_selectd_128: 13945 case X86::BI__builtin_ia32_selectd_256: 13946 case X86::BI__builtin_ia32_selectd_512: 13947 case X86::BI__builtin_ia32_selectq_128: 13948 case X86::BI__builtin_ia32_selectq_256: 13949 case X86::BI__builtin_ia32_selectq_512: 13950 case X86::BI__builtin_ia32_selectph_128: 13951 case X86::BI__builtin_ia32_selectph_256: 13952 case X86::BI__builtin_ia32_selectph_512: 13953 case X86::BI__builtin_ia32_selectps_128: 13954 case X86::BI__builtin_ia32_selectps_256: 13955 case X86::BI__builtin_ia32_selectps_512: 13956 case X86::BI__builtin_ia32_selectpd_128: 13957 case X86::BI__builtin_ia32_selectpd_256: 13958 case X86::BI__builtin_ia32_selectpd_512: 13959 return EmitX86Select(*this, Ops[0], Ops[1], Ops[2]); 13960 case X86::BI__builtin_ia32_selectsh_128: 13961 case X86::BI__builtin_ia32_selectss_128: 13962 case X86::BI__builtin_ia32_selectsd_128: { 13963 Value *A = Builder.CreateExtractElement(Ops[1], (uint64_t)0); 13964 Value *B = Builder.CreateExtractElement(Ops[2], (uint64_t)0); 13965 A = EmitX86ScalarSelect(*this, Ops[0], A, B); 13966 return Builder.CreateInsertElement(Ops[1], A, (uint64_t)0); 13967 } 13968 case X86::BI__builtin_ia32_cmpb128_mask: 13969 case X86::BI__builtin_ia32_cmpb256_mask: 13970 case X86::BI__builtin_ia32_cmpb512_mask: 13971 case X86::BI__builtin_ia32_cmpw128_mask: 13972 case X86::BI__builtin_ia32_cmpw256_mask: 13973 case X86::BI__builtin_ia32_cmpw512_mask: 13974 case X86::BI__builtin_ia32_cmpd128_mask: 13975 case X86::BI__builtin_ia32_cmpd256_mask: 13976 case X86::BI__builtin_ia32_cmpd512_mask: 13977 case X86::BI__builtin_ia32_cmpq128_mask: 13978 case X86::BI__builtin_ia32_cmpq256_mask: 13979 case X86::BI__builtin_ia32_cmpq512_mask: { 13980 unsigned CC = cast<llvm::ConstantInt>(Ops[2])->getZExtValue() & 0x7; 13981 return EmitX86MaskedCompare(*this, CC, true, Ops); 13982 } 13983 case X86::BI__builtin_ia32_ucmpb128_mask: 13984 case X86::BI__builtin_ia32_ucmpb256_mask: 13985 case X86::BI__builtin_ia32_ucmpb512_mask: 13986 case X86::BI__builtin_ia32_ucmpw128_mask: 13987 case X86::BI__builtin_ia32_ucmpw256_mask: 13988 case X86::BI__builtin_ia32_ucmpw512_mask: 13989 case X86::BI__builtin_ia32_ucmpd128_mask: 13990 case X86::BI__builtin_ia32_ucmpd256_mask: 13991 case X86::BI__builtin_ia32_ucmpd512_mask: 13992 case X86::BI__builtin_ia32_ucmpq128_mask: 13993 case X86::BI__builtin_ia32_ucmpq256_mask: 13994 case X86::BI__builtin_ia32_ucmpq512_mask: { 13995 unsigned CC = cast<llvm::ConstantInt>(Ops[2])->getZExtValue() & 0x7; 13996 return EmitX86MaskedCompare(*this, CC, false, Ops); 13997 } 13998 case X86::BI__builtin_ia32_vpcomb: 13999 case X86::BI__builtin_ia32_vpcomw: 14000 case X86::BI__builtin_ia32_vpcomd: 14001 case X86::BI__builtin_ia32_vpcomq: 14002 return EmitX86vpcom(*this, Ops, true); 14003 case X86::BI__builtin_ia32_vpcomub: 14004 case X86::BI__builtin_ia32_vpcomuw: 14005 case X86::BI__builtin_ia32_vpcomud: 14006 case X86::BI__builtin_ia32_vpcomuq: 14007 return EmitX86vpcom(*this, Ops, false); 14008 14009 case X86::BI__builtin_ia32_kortestcqi: 14010 case X86::BI__builtin_ia32_kortestchi: 14011 case X86::BI__builtin_ia32_kortestcsi: 14012 case X86::BI__builtin_ia32_kortestcdi: { 14013 Value *Or = EmitX86MaskLogic(*this, Instruction::Or, Ops); 14014 Value *C = llvm::Constant::getAllOnesValue(Ops[0]->getType()); 14015 Value *Cmp = Builder.CreateICmpEQ(Or, C); 14016 return Builder.CreateZExt(Cmp, ConvertType(E->getType())); 14017 } 14018 case X86::BI__builtin_ia32_kortestzqi: 14019 case X86::BI__builtin_ia32_kortestzhi: 14020 case X86::BI__builtin_ia32_kortestzsi: 14021 case X86::BI__builtin_ia32_kortestzdi: { 14022 Value *Or = EmitX86MaskLogic(*this, Instruction::Or, Ops); 14023 Value *C = llvm::Constant::getNullValue(Ops[0]->getType()); 14024 Value *Cmp = Builder.CreateICmpEQ(Or, C); 14025 return Builder.CreateZExt(Cmp, ConvertType(E->getType())); 14026 } 14027 14028 case X86::BI__builtin_ia32_ktestcqi: 14029 case X86::BI__builtin_ia32_ktestzqi: 14030 case X86::BI__builtin_ia32_ktestchi: 14031 case X86::BI__builtin_ia32_ktestzhi: 14032 case X86::BI__builtin_ia32_ktestcsi: 14033 case X86::BI__builtin_ia32_ktestzsi: 14034 case X86::BI__builtin_ia32_ktestcdi: 14035 case X86::BI__builtin_ia32_ktestzdi: { 14036 Intrinsic::ID IID; 14037 switch (BuiltinID) { 14038 default: llvm_unreachable("Unsupported intrinsic!"); 14039 case X86::BI__builtin_ia32_ktestcqi: 14040 IID = Intrinsic::x86_avx512_ktestc_b; 14041 break; 14042 case X86::BI__builtin_ia32_ktestzqi: 14043 IID = Intrinsic::x86_avx512_ktestz_b; 14044 break; 14045 case X86::BI__builtin_ia32_ktestchi: 14046 IID = Intrinsic::x86_avx512_ktestc_w; 14047 break; 14048 case X86::BI__builtin_ia32_ktestzhi: 14049 IID = Intrinsic::x86_avx512_ktestz_w; 14050 break; 14051 case X86::BI__builtin_ia32_ktestcsi: 14052 IID = Intrinsic::x86_avx512_ktestc_d; 14053 break; 14054 case X86::BI__builtin_ia32_ktestzsi: 14055 IID = Intrinsic::x86_avx512_ktestz_d; 14056 break; 14057 case X86::BI__builtin_ia32_ktestcdi: 14058 IID = Intrinsic::x86_avx512_ktestc_q; 14059 break; 14060 case X86::BI__builtin_ia32_ktestzdi: 14061 IID = Intrinsic::x86_avx512_ktestz_q; 14062 break; 14063 } 14064 14065 unsigned NumElts = Ops[0]->getType()->getIntegerBitWidth(); 14066 Value *LHS = getMaskVecValue(*this, Ops[0], NumElts); 14067 Value *RHS = getMaskVecValue(*this, Ops[1], NumElts); 14068 Function *Intr = CGM.getIntrinsic(IID); 14069 return Builder.CreateCall(Intr, {LHS, RHS}); 14070 } 14071 14072 case X86::BI__builtin_ia32_kaddqi: 14073 case X86::BI__builtin_ia32_kaddhi: 14074 case X86::BI__builtin_ia32_kaddsi: 14075 case X86::BI__builtin_ia32_kadddi: { 14076 Intrinsic::ID IID; 14077 switch (BuiltinID) { 14078 default: llvm_unreachable("Unsupported intrinsic!"); 14079 case X86::BI__builtin_ia32_kaddqi: 14080 IID = Intrinsic::x86_avx512_kadd_b; 14081 break; 14082 case X86::BI__builtin_ia32_kaddhi: 14083 IID = Intrinsic::x86_avx512_kadd_w; 14084 break; 14085 case X86::BI__builtin_ia32_kaddsi: 14086 IID = Intrinsic::x86_avx512_kadd_d; 14087 break; 14088 case X86::BI__builtin_ia32_kadddi: 14089 IID = Intrinsic::x86_avx512_kadd_q; 14090 break; 14091 } 14092 14093 unsigned NumElts = Ops[0]->getType()->getIntegerBitWidth(); 14094 Value *LHS = getMaskVecValue(*this, Ops[0], NumElts); 14095 Value *RHS = getMaskVecValue(*this, Ops[1], NumElts); 14096 Function *Intr = CGM.getIntrinsic(IID); 14097 Value *Res = Builder.CreateCall(Intr, {LHS, RHS}); 14098 return Builder.CreateBitCast(Res, Ops[0]->getType()); 14099 } 14100 case X86::BI__builtin_ia32_kandqi: 14101 case X86::BI__builtin_ia32_kandhi: 14102 case X86::BI__builtin_ia32_kandsi: 14103 case X86::BI__builtin_ia32_kanddi: 14104 return EmitX86MaskLogic(*this, Instruction::And, Ops); 14105 case X86::BI__builtin_ia32_kandnqi: 14106 case X86::BI__builtin_ia32_kandnhi: 14107 case X86::BI__builtin_ia32_kandnsi: 14108 case X86::BI__builtin_ia32_kandndi: 14109 return EmitX86MaskLogic(*this, Instruction::And, Ops, true); 14110 case X86::BI__builtin_ia32_korqi: 14111 case X86::BI__builtin_ia32_korhi: 14112 case X86::BI__builtin_ia32_korsi: 14113 case X86::BI__builtin_ia32_kordi: 14114 return EmitX86MaskLogic(*this, Instruction::Or, Ops); 14115 case X86::BI__builtin_ia32_kxnorqi: 14116 case X86::BI__builtin_ia32_kxnorhi: 14117 case X86::BI__builtin_ia32_kxnorsi: 14118 case X86::BI__builtin_ia32_kxnordi: 14119 return EmitX86MaskLogic(*this, Instruction::Xor, Ops, true); 14120 case X86::BI__builtin_ia32_kxorqi: 14121 case X86::BI__builtin_ia32_kxorhi: 14122 case X86::BI__builtin_ia32_kxorsi: 14123 case X86::BI__builtin_ia32_kxordi: 14124 return EmitX86MaskLogic(*this, Instruction::Xor, Ops); 14125 case X86::BI__builtin_ia32_knotqi: 14126 case X86::BI__builtin_ia32_knothi: 14127 case X86::BI__builtin_ia32_knotsi: 14128 case X86::BI__builtin_ia32_knotdi: { 14129 unsigned NumElts = Ops[0]->getType()->getIntegerBitWidth(); 14130 Value *Res = getMaskVecValue(*this, Ops[0], NumElts); 14131 return Builder.CreateBitCast(Builder.CreateNot(Res), 14132 Ops[0]->getType()); 14133 } 14134 case X86::BI__builtin_ia32_kmovb: 14135 case X86::BI__builtin_ia32_kmovw: 14136 case X86::BI__builtin_ia32_kmovd: 14137 case X86::BI__builtin_ia32_kmovq: { 14138 // Bitcast to vXi1 type and then back to integer. This gets the mask 14139 // register type into the IR, but might be optimized out depending on 14140 // what's around it. 14141 unsigned NumElts = Ops[0]->getType()->getIntegerBitWidth(); 14142 Value *Res = getMaskVecValue(*this, Ops[0], NumElts); 14143 return Builder.CreateBitCast(Res, Ops[0]->getType()); 14144 } 14145 14146 case X86::BI__builtin_ia32_kunpckdi: 14147 case X86::BI__builtin_ia32_kunpcksi: 14148 case X86::BI__builtin_ia32_kunpckhi: { 14149 unsigned NumElts = Ops[0]->getType()->getIntegerBitWidth(); 14150 Value *LHS = getMaskVecValue(*this, Ops[0], NumElts); 14151 Value *RHS = getMaskVecValue(*this, Ops[1], NumElts); 14152 int Indices[64]; 14153 for (unsigned i = 0; i != NumElts; ++i) 14154 Indices[i] = i; 14155 14156 // First extract half of each vector. This gives better codegen than 14157 // doing it in a single shuffle. 14158 LHS = Builder.CreateShuffleVector(LHS, LHS, 14159 makeArrayRef(Indices, NumElts / 2)); 14160 RHS = Builder.CreateShuffleVector(RHS, RHS, 14161 makeArrayRef(Indices, NumElts / 2)); 14162 // Concat the vectors. 14163 // NOTE: Operands are swapped to match the intrinsic definition. 14164 Value *Res = Builder.CreateShuffleVector(RHS, LHS, 14165 makeArrayRef(Indices, NumElts)); 14166 return Builder.CreateBitCast(Res, Ops[0]->getType()); 14167 } 14168 14169 case X86::BI__builtin_ia32_vplzcntd_128: 14170 case X86::BI__builtin_ia32_vplzcntd_256: 14171 case X86::BI__builtin_ia32_vplzcntd_512: 14172 case X86::BI__builtin_ia32_vplzcntq_128: 14173 case X86::BI__builtin_ia32_vplzcntq_256: 14174 case X86::BI__builtin_ia32_vplzcntq_512: { 14175 Function *F = CGM.getIntrinsic(Intrinsic::ctlz, Ops[0]->getType()); 14176 return Builder.CreateCall(F, {Ops[0],Builder.getInt1(false)}); 14177 } 14178 case X86::BI__builtin_ia32_sqrtss: 14179 case X86::BI__builtin_ia32_sqrtsd: { 14180 Value *A = Builder.CreateExtractElement(Ops[0], (uint64_t)0); 14181 Function *F; 14182 if (Builder.getIsFPConstrained()) { 14183 CodeGenFunction::CGFPOptionsRAII FPOptsRAII(*this, E); 14184 F = CGM.getIntrinsic(Intrinsic::experimental_constrained_sqrt, 14185 A->getType()); 14186 A = Builder.CreateConstrainedFPCall(F, {A}); 14187 } else { 14188 F = CGM.getIntrinsic(Intrinsic::sqrt, A->getType()); 14189 A = Builder.CreateCall(F, {A}); 14190 } 14191 return Builder.CreateInsertElement(Ops[0], A, (uint64_t)0); 14192 } 14193 case X86::BI__builtin_ia32_sqrtsh_round_mask: 14194 case X86::BI__builtin_ia32_sqrtsd_round_mask: 14195 case X86::BI__builtin_ia32_sqrtss_round_mask: { 14196 unsigned CC = cast<llvm::ConstantInt>(Ops[4])->getZExtValue(); 14197 // Support only if the rounding mode is 4 (AKA CUR_DIRECTION), 14198 // otherwise keep the intrinsic. 14199 if (CC != 4) { 14200 Intrinsic::ID IID; 14201 14202 switch (BuiltinID) { 14203 default: 14204 llvm_unreachable("Unsupported intrinsic!"); 14205 case X86::BI__builtin_ia32_sqrtsh_round_mask: 14206 IID = Intrinsic::x86_avx512fp16_mask_sqrt_sh; 14207 break; 14208 case X86::BI__builtin_ia32_sqrtsd_round_mask: 14209 IID = Intrinsic::x86_avx512_mask_sqrt_sd; 14210 break; 14211 case X86::BI__builtin_ia32_sqrtss_round_mask: 14212 IID = Intrinsic::x86_avx512_mask_sqrt_ss; 14213 break; 14214 } 14215 return Builder.CreateCall(CGM.getIntrinsic(IID), Ops); 14216 } 14217 Value *A = Builder.CreateExtractElement(Ops[1], (uint64_t)0); 14218 Function *F; 14219 if (Builder.getIsFPConstrained()) { 14220 CodeGenFunction::CGFPOptionsRAII FPOptsRAII(*this, E); 14221 F = CGM.getIntrinsic(Intrinsic::experimental_constrained_sqrt, 14222 A->getType()); 14223 A = Builder.CreateConstrainedFPCall(F, A); 14224 } else { 14225 F = CGM.getIntrinsic(Intrinsic::sqrt, A->getType()); 14226 A = Builder.CreateCall(F, A); 14227 } 14228 Value *Src = Builder.CreateExtractElement(Ops[2], (uint64_t)0); 14229 A = EmitX86ScalarSelect(*this, Ops[3], A, Src); 14230 return Builder.CreateInsertElement(Ops[0], A, (uint64_t)0); 14231 } 14232 case X86::BI__builtin_ia32_sqrtpd256: 14233 case X86::BI__builtin_ia32_sqrtpd: 14234 case X86::BI__builtin_ia32_sqrtps256: 14235 case X86::BI__builtin_ia32_sqrtps: 14236 case X86::BI__builtin_ia32_sqrtph256: 14237 case X86::BI__builtin_ia32_sqrtph: 14238 case X86::BI__builtin_ia32_sqrtph512: 14239 case X86::BI__builtin_ia32_sqrtps512: 14240 case X86::BI__builtin_ia32_sqrtpd512: { 14241 if (Ops.size() == 2) { 14242 unsigned CC = cast<llvm::ConstantInt>(Ops[1])->getZExtValue(); 14243 // Support only if the rounding mode is 4 (AKA CUR_DIRECTION), 14244 // otherwise keep the intrinsic. 14245 if (CC != 4) { 14246 Intrinsic::ID IID; 14247 14248 switch (BuiltinID) { 14249 default: 14250 llvm_unreachable("Unsupported intrinsic!"); 14251 case X86::BI__builtin_ia32_sqrtph512: 14252 IID = Intrinsic::x86_avx512fp16_sqrt_ph_512; 14253 break; 14254 case X86::BI__builtin_ia32_sqrtps512: 14255 IID = Intrinsic::x86_avx512_sqrt_ps_512; 14256 break; 14257 case X86::BI__builtin_ia32_sqrtpd512: 14258 IID = Intrinsic::x86_avx512_sqrt_pd_512; 14259 break; 14260 } 14261 return Builder.CreateCall(CGM.getIntrinsic(IID), Ops); 14262 } 14263 } 14264 if (Builder.getIsFPConstrained()) { 14265 CodeGenFunction::CGFPOptionsRAII FPOptsRAII(*this, E); 14266 Function *F = CGM.getIntrinsic(Intrinsic::experimental_constrained_sqrt, 14267 Ops[0]->getType()); 14268 return Builder.CreateConstrainedFPCall(F, Ops[0]); 14269 } else { 14270 Function *F = CGM.getIntrinsic(Intrinsic::sqrt, Ops[0]->getType()); 14271 return Builder.CreateCall(F, Ops[0]); 14272 } 14273 } 14274 case X86::BI__builtin_ia32_pabsb128: 14275 case X86::BI__builtin_ia32_pabsw128: 14276 case X86::BI__builtin_ia32_pabsd128: 14277 case X86::BI__builtin_ia32_pabsb256: 14278 case X86::BI__builtin_ia32_pabsw256: 14279 case X86::BI__builtin_ia32_pabsd256: 14280 case X86::BI__builtin_ia32_pabsq128: 14281 case X86::BI__builtin_ia32_pabsq256: 14282 case X86::BI__builtin_ia32_pabsb512: 14283 case X86::BI__builtin_ia32_pabsw512: 14284 case X86::BI__builtin_ia32_pabsd512: 14285 case X86::BI__builtin_ia32_pabsq512: { 14286 Function *F = CGM.getIntrinsic(Intrinsic::abs, Ops[0]->getType()); 14287 return Builder.CreateCall(F, {Ops[0], Builder.getInt1(false)}); 14288 } 14289 case X86::BI__builtin_ia32_pmaxsb128: 14290 case X86::BI__builtin_ia32_pmaxsw128: 14291 case X86::BI__builtin_ia32_pmaxsd128: 14292 case X86::BI__builtin_ia32_pmaxsq128: 14293 case X86::BI__builtin_ia32_pmaxsb256: 14294 case X86::BI__builtin_ia32_pmaxsw256: 14295 case X86::BI__builtin_ia32_pmaxsd256: 14296 case X86::BI__builtin_ia32_pmaxsq256: 14297 case X86::BI__builtin_ia32_pmaxsb512: 14298 case X86::BI__builtin_ia32_pmaxsw512: 14299 case X86::BI__builtin_ia32_pmaxsd512: 14300 case X86::BI__builtin_ia32_pmaxsq512: 14301 return EmitX86BinaryIntrinsic(*this, Ops, Intrinsic::smax); 14302 case X86::BI__builtin_ia32_pmaxub128: 14303 case X86::BI__builtin_ia32_pmaxuw128: 14304 case X86::BI__builtin_ia32_pmaxud128: 14305 case X86::BI__builtin_ia32_pmaxuq128: 14306 case X86::BI__builtin_ia32_pmaxub256: 14307 case X86::BI__builtin_ia32_pmaxuw256: 14308 case X86::BI__builtin_ia32_pmaxud256: 14309 case X86::BI__builtin_ia32_pmaxuq256: 14310 case X86::BI__builtin_ia32_pmaxub512: 14311 case X86::BI__builtin_ia32_pmaxuw512: 14312 case X86::BI__builtin_ia32_pmaxud512: 14313 case X86::BI__builtin_ia32_pmaxuq512: 14314 return EmitX86BinaryIntrinsic(*this, Ops, Intrinsic::umax); 14315 case X86::BI__builtin_ia32_pminsb128: 14316 case X86::BI__builtin_ia32_pminsw128: 14317 case X86::BI__builtin_ia32_pminsd128: 14318 case X86::BI__builtin_ia32_pminsq128: 14319 case X86::BI__builtin_ia32_pminsb256: 14320 case X86::BI__builtin_ia32_pminsw256: 14321 case X86::BI__builtin_ia32_pminsd256: 14322 case X86::BI__builtin_ia32_pminsq256: 14323 case X86::BI__builtin_ia32_pminsb512: 14324 case X86::BI__builtin_ia32_pminsw512: 14325 case X86::BI__builtin_ia32_pminsd512: 14326 case X86::BI__builtin_ia32_pminsq512: 14327 return EmitX86BinaryIntrinsic(*this, Ops, Intrinsic::smin); 14328 case X86::BI__builtin_ia32_pminub128: 14329 case X86::BI__builtin_ia32_pminuw128: 14330 case X86::BI__builtin_ia32_pminud128: 14331 case X86::BI__builtin_ia32_pminuq128: 14332 case X86::BI__builtin_ia32_pminub256: 14333 case X86::BI__builtin_ia32_pminuw256: 14334 case X86::BI__builtin_ia32_pminud256: 14335 case X86::BI__builtin_ia32_pminuq256: 14336 case X86::BI__builtin_ia32_pminub512: 14337 case X86::BI__builtin_ia32_pminuw512: 14338 case X86::BI__builtin_ia32_pminud512: 14339 case X86::BI__builtin_ia32_pminuq512: 14340 return EmitX86BinaryIntrinsic(*this, Ops, Intrinsic::umin); 14341 14342 case X86::BI__builtin_ia32_pmuludq128: 14343 case X86::BI__builtin_ia32_pmuludq256: 14344 case X86::BI__builtin_ia32_pmuludq512: 14345 return EmitX86Muldq(*this, /*IsSigned*/false, Ops); 14346 14347 case X86::BI__builtin_ia32_pmuldq128: 14348 case X86::BI__builtin_ia32_pmuldq256: 14349 case X86::BI__builtin_ia32_pmuldq512: 14350 return EmitX86Muldq(*this, /*IsSigned*/true, Ops); 14351 14352 case X86::BI__builtin_ia32_pternlogd512_mask: 14353 case X86::BI__builtin_ia32_pternlogq512_mask: 14354 case X86::BI__builtin_ia32_pternlogd128_mask: 14355 case X86::BI__builtin_ia32_pternlogd256_mask: 14356 case X86::BI__builtin_ia32_pternlogq128_mask: 14357 case X86::BI__builtin_ia32_pternlogq256_mask: 14358 return EmitX86Ternlog(*this, /*ZeroMask*/false, Ops); 14359 14360 case X86::BI__builtin_ia32_pternlogd512_maskz: 14361 case X86::BI__builtin_ia32_pternlogq512_maskz: 14362 case X86::BI__builtin_ia32_pternlogd128_maskz: 14363 case X86::BI__builtin_ia32_pternlogd256_maskz: 14364 case X86::BI__builtin_ia32_pternlogq128_maskz: 14365 case X86::BI__builtin_ia32_pternlogq256_maskz: 14366 return EmitX86Ternlog(*this, /*ZeroMask*/true, Ops); 14367 14368 case X86::BI__builtin_ia32_vpshldd128: 14369 case X86::BI__builtin_ia32_vpshldd256: 14370 case X86::BI__builtin_ia32_vpshldd512: 14371 case X86::BI__builtin_ia32_vpshldq128: 14372 case X86::BI__builtin_ia32_vpshldq256: 14373 case X86::BI__builtin_ia32_vpshldq512: 14374 case X86::BI__builtin_ia32_vpshldw128: 14375 case X86::BI__builtin_ia32_vpshldw256: 14376 case X86::BI__builtin_ia32_vpshldw512: 14377 return EmitX86FunnelShift(*this, Ops[0], Ops[1], Ops[2], false); 14378 14379 case X86::BI__builtin_ia32_vpshrdd128: 14380 case X86::BI__builtin_ia32_vpshrdd256: 14381 case X86::BI__builtin_ia32_vpshrdd512: 14382 case X86::BI__builtin_ia32_vpshrdq128: 14383 case X86::BI__builtin_ia32_vpshrdq256: 14384 case X86::BI__builtin_ia32_vpshrdq512: 14385 case X86::BI__builtin_ia32_vpshrdw128: 14386 case X86::BI__builtin_ia32_vpshrdw256: 14387 case X86::BI__builtin_ia32_vpshrdw512: 14388 // Ops 0 and 1 are swapped. 14389 return EmitX86FunnelShift(*this, Ops[1], Ops[0], Ops[2], true); 14390 14391 case X86::BI__builtin_ia32_vpshldvd128: 14392 case X86::BI__builtin_ia32_vpshldvd256: 14393 case X86::BI__builtin_ia32_vpshldvd512: 14394 case X86::BI__builtin_ia32_vpshldvq128: 14395 case X86::BI__builtin_ia32_vpshldvq256: 14396 case X86::BI__builtin_ia32_vpshldvq512: 14397 case X86::BI__builtin_ia32_vpshldvw128: 14398 case X86::BI__builtin_ia32_vpshldvw256: 14399 case X86::BI__builtin_ia32_vpshldvw512: 14400 return EmitX86FunnelShift(*this, Ops[0], Ops[1], Ops[2], false); 14401 14402 case X86::BI__builtin_ia32_vpshrdvd128: 14403 case X86::BI__builtin_ia32_vpshrdvd256: 14404 case X86::BI__builtin_ia32_vpshrdvd512: 14405 case X86::BI__builtin_ia32_vpshrdvq128: 14406 case X86::BI__builtin_ia32_vpshrdvq256: 14407 case X86::BI__builtin_ia32_vpshrdvq512: 14408 case X86::BI__builtin_ia32_vpshrdvw128: 14409 case X86::BI__builtin_ia32_vpshrdvw256: 14410 case X86::BI__builtin_ia32_vpshrdvw512: 14411 // Ops 0 and 1 are swapped. 14412 return EmitX86FunnelShift(*this, Ops[1], Ops[0], Ops[2], true); 14413 14414 // Reductions 14415 case X86::BI__builtin_ia32_reduce_add_d512: 14416 case X86::BI__builtin_ia32_reduce_add_q512: { 14417 Function *F = 14418 CGM.getIntrinsic(Intrinsic::vector_reduce_add, Ops[0]->getType()); 14419 return Builder.CreateCall(F, {Ops[0]}); 14420 } 14421 case X86::BI__builtin_ia32_reduce_and_d512: 14422 case X86::BI__builtin_ia32_reduce_and_q512: { 14423 Function *F = 14424 CGM.getIntrinsic(Intrinsic::vector_reduce_and, Ops[0]->getType()); 14425 return Builder.CreateCall(F, {Ops[0]}); 14426 } 14427 case X86::BI__builtin_ia32_reduce_fadd_pd512: 14428 case X86::BI__builtin_ia32_reduce_fadd_ps512: 14429 case X86::BI__builtin_ia32_reduce_fadd_ph512: 14430 case X86::BI__builtin_ia32_reduce_fadd_ph256: 14431 case X86::BI__builtin_ia32_reduce_fadd_ph128: { 14432 Function *F = 14433 CGM.getIntrinsic(Intrinsic::vector_reduce_fadd, Ops[1]->getType()); 14434 Builder.getFastMathFlags().setAllowReassoc(); 14435 return Builder.CreateCall(F, {Ops[0], Ops[1]}); 14436 } 14437 case X86::BI__builtin_ia32_reduce_fmul_pd512: 14438 case X86::BI__builtin_ia32_reduce_fmul_ps512: 14439 case X86::BI__builtin_ia32_reduce_fmul_ph512: 14440 case X86::BI__builtin_ia32_reduce_fmul_ph256: 14441 case X86::BI__builtin_ia32_reduce_fmul_ph128: { 14442 Function *F = 14443 CGM.getIntrinsic(Intrinsic::vector_reduce_fmul, Ops[1]->getType()); 14444 Builder.getFastMathFlags().setAllowReassoc(); 14445 return Builder.CreateCall(F, {Ops[0], Ops[1]}); 14446 } 14447 case X86::BI__builtin_ia32_reduce_fmax_pd512: 14448 case X86::BI__builtin_ia32_reduce_fmax_ps512: 14449 case X86::BI__builtin_ia32_reduce_fmax_ph512: 14450 case X86::BI__builtin_ia32_reduce_fmax_ph256: 14451 case X86::BI__builtin_ia32_reduce_fmax_ph128: { 14452 Function *F = 14453 CGM.getIntrinsic(Intrinsic::vector_reduce_fmax, Ops[0]->getType()); 14454 Builder.getFastMathFlags().setNoNaNs(); 14455 return Builder.CreateCall(F, {Ops[0]}); 14456 } 14457 case X86::BI__builtin_ia32_reduce_fmin_pd512: 14458 case X86::BI__builtin_ia32_reduce_fmin_ps512: 14459 case X86::BI__builtin_ia32_reduce_fmin_ph512: 14460 case X86::BI__builtin_ia32_reduce_fmin_ph256: 14461 case X86::BI__builtin_ia32_reduce_fmin_ph128: { 14462 Function *F = 14463 CGM.getIntrinsic(Intrinsic::vector_reduce_fmin, Ops[0]->getType()); 14464 Builder.getFastMathFlags().setNoNaNs(); 14465 return Builder.CreateCall(F, {Ops[0]}); 14466 } 14467 case X86::BI__builtin_ia32_reduce_mul_d512: 14468 case X86::BI__builtin_ia32_reduce_mul_q512: { 14469 Function *F = 14470 CGM.getIntrinsic(Intrinsic::vector_reduce_mul, Ops[0]->getType()); 14471 return Builder.CreateCall(F, {Ops[0]}); 14472 } 14473 case X86::BI__builtin_ia32_reduce_or_d512: 14474 case X86::BI__builtin_ia32_reduce_or_q512: { 14475 Function *F = 14476 CGM.getIntrinsic(Intrinsic::vector_reduce_or, Ops[0]->getType()); 14477 return Builder.CreateCall(F, {Ops[0]}); 14478 } 14479 case X86::BI__builtin_ia32_reduce_smax_d512: 14480 case X86::BI__builtin_ia32_reduce_smax_q512: { 14481 Function *F = 14482 CGM.getIntrinsic(Intrinsic::vector_reduce_smax, Ops[0]->getType()); 14483 return Builder.CreateCall(F, {Ops[0]}); 14484 } 14485 case X86::BI__builtin_ia32_reduce_smin_d512: 14486 case X86::BI__builtin_ia32_reduce_smin_q512: { 14487 Function *F = 14488 CGM.getIntrinsic(Intrinsic::vector_reduce_smin, Ops[0]->getType()); 14489 return Builder.CreateCall(F, {Ops[0]}); 14490 } 14491 case X86::BI__builtin_ia32_reduce_umax_d512: 14492 case X86::BI__builtin_ia32_reduce_umax_q512: { 14493 Function *F = 14494 CGM.getIntrinsic(Intrinsic::vector_reduce_umax, Ops[0]->getType()); 14495 return Builder.CreateCall(F, {Ops[0]}); 14496 } 14497 case X86::BI__builtin_ia32_reduce_umin_d512: 14498 case X86::BI__builtin_ia32_reduce_umin_q512: { 14499 Function *F = 14500 CGM.getIntrinsic(Intrinsic::vector_reduce_umin, Ops[0]->getType()); 14501 return Builder.CreateCall(F, {Ops[0]}); 14502 } 14503 14504 // 3DNow! 14505 case X86::BI__builtin_ia32_pswapdsf: 14506 case X86::BI__builtin_ia32_pswapdsi: { 14507 llvm::Type *MMXTy = llvm::Type::getX86_MMXTy(getLLVMContext()); 14508 Ops[0] = Builder.CreateBitCast(Ops[0], MMXTy, "cast"); 14509 llvm::Function *F = CGM.getIntrinsic(Intrinsic::x86_3dnowa_pswapd); 14510 return Builder.CreateCall(F, Ops, "pswapd"); 14511 } 14512 case X86::BI__builtin_ia32_rdrand16_step: 14513 case X86::BI__builtin_ia32_rdrand32_step: 14514 case X86::BI__builtin_ia32_rdrand64_step: 14515 case X86::BI__builtin_ia32_rdseed16_step: 14516 case X86::BI__builtin_ia32_rdseed32_step: 14517 case X86::BI__builtin_ia32_rdseed64_step: { 14518 Intrinsic::ID ID; 14519 switch (BuiltinID) { 14520 default: llvm_unreachable("Unsupported intrinsic!"); 14521 case X86::BI__builtin_ia32_rdrand16_step: 14522 ID = Intrinsic::x86_rdrand_16; 14523 break; 14524 case X86::BI__builtin_ia32_rdrand32_step: 14525 ID = Intrinsic::x86_rdrand_32; 14526 break; 14527 case X86::BI__builtin_ia32_rdrand64_step: 14528 ID = Intrinsic::x86_rdrand_64; 14529 break; 14530 case X86::BI__builtin_ia32_rdseed16_step: 14531 ID = Intrinsic::x86_rdseed_16; 14532 break; 14533 case X86::BI__builtin_ia32_rdseed32_step: 14534 ID = Intrinsic::x86_rdseed_32; 14535 break; 14536 case X86::BI__builtin_ia32_rdseed64_step: 14537 ID = Intrinsic::x86_rdseed_64; 14538 break; 14539 } 14540 14541 Value *Call = Builder.CreateCall(CGM.getIntrinsic(ID)); 14542 Builder.CreateDefaultAlignedStore(Builder.CreateExtractValue(Call, 0), 14543 Ops[0]); 14544 return Builder.CreateExtractValue(Call, 1); 14545 } 14546 case X86::BI__builtin_ia32_addcarryx_u32: 14547 case X86::BI__builtin_ia32_addcarryx_u64: 14548 case X86::BI__builtin_ia32_subborrow_u32: 14549 case X86::BI__builtin_ia32_subborrow_u64: { 14550 Intrinsic::ID IID; 14551 switch (BuiltinID) { 14552 default: llvm_unreachable("Unsupported intrinsic!"); 14553 case X86::BI__builtin_ia32_addcarryx_u32: 14554 IID = Intrinsic::x86_addcarry_32; 14555 break; 14556 case X86::BI__builtin_ia32_addcarryx_u64: 14557 IID = Intrinsic::x86_addcarry_64; 14558 break; 14559 case X86::BI__builtin_ia32_subborrow_u32: 14560 IID = Intrinsic::x86_subborrow_32; 14561 break; 14562 case X86::BI__builtin_ia32_subborrow_u64: 14563 IID = Intrinsic::x86_subborrow_64; 14564 break; 14565 } 14566 14567 Value *Call = Builder.CreateCall(CGM.getIntrinsic(IID), 14568 { Ops[0], Ops[1], Ops[2] }); 14569 Builder.CreateDefaultAlignedStore(Builder.CreateExtractValue(Call, 1), 14570 Ops[3]); 14571 return Builder.CreateExtractValue(Call, 0); 14572 } 14573 14574 case X86::BI__builtin_ia32_fpclassps128_mask: 14575 case X86::BI__builtin_ia32_fpclassps256_mask: 14576 case X86::BI__builtin_ia32_fpclassps512_mask: 14577 case X86::BI__builtin_ia32_fpclassph128_mask: 14578 case X86::BI__builtin_ia32_fpclassph256_mask: 14579 case X86::BI__builtin_ia32_fpclassph512_mask: 14580 case X86::BI__builtin_ia32_fpclasspd128_mask: 14581 case X86::BI__builtin_ia32_fpclasspd256_mask: 14582 case X86::BI__builtin_ia32_fpclasspd512_mask: { 14583 unsigned NumElts = 14584 cast<llvm::FixedVectorType>(Ops[0]->getType())->getNumElements(); 14585 Value *MaskIn = Ops[2]; 14586 Ops.erase(&Ops[2]); 14587 14588 Intrinsic::ID ID; 14589 switch (BuiltinID) { 14590 default: llvm_unreachable("Unsupported intrinsic!"); 14591 case X86::BI__builtin_ia32_fpclassph128_mask: 14592 ID = Intrinsic::x86_avx512fp16_fpclass_ph_128; 14593 break; 14594 case X86::BI__builtin_ia32_fpclassph256_mask: 14595 ID = Intrinsic::x86_avx512fp16_fpclass_ph_256; 14596 break; 14597 case X86::BI__builtin_ia32_fpclassph512_mask: 14598 ID = Intrinsic::x86_avx512fp16_fpclass_ph_512; 14599 break; 14600 case X86::BI__builtin_ia32_fpclassps128_mask: 14601 ID = Intrinsic::x86_avx512_fpclass_ps_128; 14602 break; 14603 case X86::BI__builtin_ia32_fpclassps256_mask: 14604 ID = Intrinsic::x86_avx512_fpclass_ps_256; 14605 break; 14606 case X86::BI__builtin_ia32_fpclassps512_mask: 14607 ID = Intrinsic::x86_avx512_fpclass_ps_512; 14608 break; 14609 case X86::BI__builtin_ia32_fpclasspd128_mask: 14610 ID = Intrinsic::x86_avx512_fpclass_pd_128; 14611 break; 14612 case X86::BI__builtin_ia32_fpclasspd256_mask: 14613 ID = Intrinsic::x86_avx512_fpclass_pd_256; 14614 break; 14615 case X86::BI__builtin_ia32_fpclasspd512_mask: 14616 ID = Intrinsic::x86_avx512_fpclass_pd_512; 14617 break; 14618 } 14619 14620 Value *Fpclass = Builder.CreateCall(CGM.getIntrinsic(ID), Ops); 14621 return EmitX86MaskedCompareResult(*this, Fpclass, NumElts, MaskIn); 14622 } 14623 14624 case X86::BI__builtin_ia32_vp2intersect_q_512: 14625 case X86::BI__builtin_ia32_vp2intersect_q_256: 14626 case X86::BI__builtin_ia32_vp2intersect_q_128: 14627 case X86::BI__builtin_ia32_vp2intersect_d_512: 14628 case X86::BI__builtin_ia32_vp2intersect_d_256: 14629 case X86::BI__builtin_ia32_vp2intersect_d_128: { 14630 unsigned NumElts = 14631 cast<llvm::FixedVectorType>(Ops[0]->getType())->getNumElements(); 14632 Intrinsic::ID ID; 14633 14634 switch (BuiltinID) { 14635 default: llvm_unreachable("Unsupported intrinsic!"); 14636 case X86::BI__builtin_ia32_vp2intersect_q_512: 14637 ID = Intrinsic::x86_avx512_vp2intersect_q_512; 14638 break; 14639 case X86::BI__builtin_ia32_vp2intersect_q_256: 14640 ID = Intrinsic::x86_avx512_vp2intersect_q_256; 14641 break; 14642 case X86::BI__builtin_ia32_vp2intersect_q_128: 14643 ID = Intrinsic::x86_avx512_vp2intersect_q_128; 14644 break; 14645 case X86::BI__builtin_ia32_vp2intersect_d_512: 14646 ID = Intrinsic::x86_avx512_vp2intersect_d_512; 14647 break; 14648 case X86::BI__builtin_ia32_vp2intersect_d_256: 14649 ID = Intrinsic::x86_avx512_vp2intersect_d_256; 14650 break; 14651 case X86::BI__builtin_ia32_vp2intersect_d_128: 14652 ID = Intrinsic::x86_avx512_vp2intersect_d_128; 14653 break; 14654 } 14655 14656 Value *Call = Builder.CreateCall(CGM.getIntrinsic(ID), {Ops[0], Ops[1]}); 14657 Value *Result = Builder.CreateExtractValue(Call, 0); 14658 Result = EmitX86MaskedCompareResult(*this, Result, NumElts, nullptr); 14659 Builder.CreateDefaultAlignedStore(Result, Ops[2]); 14660 14661 Result = Builder.CreateExtractValue(Call, 1); 14662 Result = EmitX86MaskedCompareResult(*this, Result, NumElts, nullptr); 14663 return Builder.CreateDefaultAlignedStore(Result, Ops[3]); 14664 } 14665 14666 case X86::BI__builtin_ia32_vpmultishiftqb128: 14667 case X86::BI__builtin_ia32_vpmultishiftqb256: 14668 case X86::BI__builtin_ia32_vpmultishiftqb512: { 14669 Intrinsic::ID ID; 14670 switch (BuiltinID) { 14671 default: llvm_unreachable("Unsupported intrinsic!"); 14672 case X86::BI__builtin_ia32_vpmultishiftqb128: 14673 ID = Intrinsic::x86_avx512_pmultishift_qb_128; 14674 break; 14675 case X86::BI__builtin_ia32_vpmultishiftqb256: 14676 ID = Intrinsic::x86_avx512_pmultishift_qb_256; 14677 break; 14678 case X86::BI__builtin_ia32_vpmultishiftqb512: 14679 ID = Intrinsic::x86_avx512_pmultishift_qb_512; 14680 break; 14681 } 14682 14683 return Builder.CreateCall(CGM.getIntrinsic(ID), Ops); 14684 } 14685 14686 case X86::BI__builtin_ia32_vpshufbitqmb128_mask: 14687 case X86::BI__builtin_ia32_vpshufbitqmb256_mask: 14688 case X86::BI__builtin_ia32_vpshufbitqmb512_mask: { 14689 unsigned NumElts = 14690 cast<llvm::FixedVectorType>(Ops[0]->getType())->getNumElements(); 14691 Value *MaskIn = Ops[2]; 14692 Ops.erase(&Ops[2]); 14693 14694 Intrinsic::ID ID; 14695 switch (BuiltinID) { 14696 default: llvm_unreachable("Unsupported intrinsic!"); 14697 case X86::BI__builtin_ia32_vpshufbitqmb128_mask: 14698 ID = Intrinsic::x86_avx512_vpshufbitqmb_128; 14699 break; 14700 case X86::BI__builtin_ia32_vpshufbitqmb256_mask: 14701 ID = Intrinsic::x86_avx512_vpshufbitqmb_256; 14702 break; 14703 case X86::BI__builtin_ia32_vpshufbitqmb512_mask: 14704 ID = Intrinsic::x86_avx512_vpshufbitqmb_512; 14705 break; 14706 } 14707 14708 Value *Shufbit = Builder.CreateCall(CGM.getIntrinsic(ID), Ops); 14709 return EmitX86MaskedCompareResult(*this, Shufbit, NumElts, MaskIn); 14710 } 14711 14712 // packed comparison intrinsics 14713 case X86::BI__builtin_ia32_cmpeqps: 14714 case X86::BI__builtin_ia32_cmpeqpd: 14715 return getVectorFCmpIR(CmpInst::FCMP_OEQ, /*IsSignaling*/false); 14716 case X86::BI__builtin_ia32_cmpltps: 14717 case X86::BI__builtin_ia32_cmpltpd: 14718 return getVectorFCmpIR(CmpInst::FCMP_OLT, /*IsSignaling*/true); 14719 case X86::BI__builtin_ia32_cmpleps: 14720 case X86::BI__builtin_ia32_cmplepd: 14721 return getVectorFCmpIR(CmpInst::FCMP_OLE, /*IsSignaling*/true); 14722 case X86::BI__builtin_ia32_cmpunordps: 14723 case X86::BI__builtin_ia32_cmpunordpd: 14724 return getVectorFCmpIR(CmpInst::FCMP_UNO, /*IsSignaling*/false); 14725 case X86::BI__builtin_ia32_cmpneqps: 14726 case X86::BI__builtin_ia32_cmpneqpd: 14727 return getVectorFCmpIR(CmpInst::FCMP_UNE, /*IsSignaling*/false); 14728 case X86::BI__builtin_ia32_cmpnltps: 14729 case X86::BI__builtin_ia32_cmpnltpd: 14730 return getVectorFCmpIR(CmpInst::FCMP_UGE, /*IsSignaling*/true); 14731 case X86::BI__builtin_ia32_cmpnleps: 14732 case X86::BI__builtin_ia32_cmpnlepd: 14733 return getVectorFCmpIR(CmpInst::FCMP_UGT, /*IsSignaling*/true); 14734 case X86::BI__builtin_ia32_cmpordps: 14735 case X86::BI__builtin_ia32_cmpordpd: 14736 return getVectorFCmpIR(CmpInst::FCMP_ORD, /*IsSignaling*/false); 14737 case X86::BI__builtin_ia32_cmpph128_mask: 14738 case X86::BI__builtin_ia32_cmpph256_mask: 14739 case X86::BI__builtin_ia32_cmpph512_mask: 14740 case X86::BI__builtin_ia32_cmpps128_mask: 14741 case X86::BI__builtin_ia32_cmpps256_mask: 14742 case X86::BI__builtin_ia32_cmpps512_mask: 14743 case X86::BI__builtin_ia32_cmppd128_mask: 14744 case X86::BI__builtin_ia32_cmppd256_mask: 14745 case X86::BI__builtin_ia32_cmppd512_mask: 14746 IsMaskFCmp = true; 14747 LLVM_FALLTHROUGH; 14748 case X86::BI__builtin_ia32_cmpps: 14749 case X86::BI__builtin_ia32_cmpps256: 14750 case X86::BI__builtin_ia32_cmppd: 14751 case X86::BI__builtin_ia32_cmppd256: { 14752 // Lowering vector comparisons to fcmp instructions, while 14753 // ignoring signalling behaviour requested 14754 // ignoring rounding mode requested 14755 // This is only possible if fp-model is not strict and FENV_ACCESS is off. 14756 14757 // The third argument is the comparison condition, and integer in the 14758 // range [0, 31] 14759 unsigned CC = cast<llvm::ConstantInt>(Ops[2])->getZExtValue() & 0x1f; 14760 14761 // Lowering to IR fcmp instruction. 14762 // Ignoring requested signaling behaviour, 14763 // e.g. both _CMP_GT_OS & _CMP_GT_OQ are translated to FCMP_OGT. 14764 FCmpInst::Predicate Pred; 14765 bool IsSignaling; 14766 // Predicates for 16-31 repeat the 0-15 predicates. Only the signalling 14767 // behavior is inverted. We'll handle that after the switch. 14768 switch (CC & 0xf) { 14769 case 0x00: Pred = FCmpInst::FCMP_OEQ; IsSignaling = false; break; 14770 case 0x01: Pred = FCmpInst::FCMP_OLT; IsSignaling = true; break; 14771 case 0x02: Pred = FCmpInst::FCMP_OLE; IsSignaling = true; break; 14772 case 0x03: Pred = FCmpInst::FCMP_UNO; IsSignaling = false; break; 14773 case 0x04: Pred = FCmpInst::FCMP_UNE; IsSignaling = false; break; 14774 case 0x05: Pred = FCmpInst::FCMP_UGE; IsSignaling = true; break; 14775 case 0x06: Pred = FCmpInst::FCMP_UGT; IsSignaling = true; break; 14776 case 0x07: Pred = FCmpInst::FCMP_ORD; IsSignaling = false; break; 14777 case 0x08: Pred = FCmpInst::FCMP_UEQ; IsSignaling = false; break; 14778 case 0x09: Pred = FCmpInst::FCMP_ULT; IsSignaling = true; break; 14779 case 0x0a: Pred = FCmpInst::FCMP_ULE; IsSignaling = true; break; 14780 case 0x0b: Pred = FCmpInst::FCMP_FALSE; IsSignaling = false; break; 14781 case 0x0c: Pred = FCmpInst::FCMP_ONE; IsSignaling = false; break; 14782 case 0x0d: Pred = FCmpInst::FCMP_OGE; IsSignaling = true; break; 14783 case 0x0e: Pred = FCmpInst::FCMP_OGT; IsSignaling = true; break; 14784 case 0x0f: Pred = FCmpInst::FCMP_TRUE; IsSignaling = false; break; 14785 default: llvm_unreachable("Unhandled CC"); 14786 } 14787 14788 // Invert the signalling behavior for 16-31. 14789 if (CC & 0x10) 14790 IsSignaling = !IsSignaling; 14791 14792 // If the predicate is true or false and we're using constrained intrinsics, 14793 // we don't have a compare intrinsic we can use. Just use the legacy X86 14794 // specific intrinsic. 14795 // If the intrinsic is mask enabled and we're using constrained intrinsics, 14796 // use the legacy X86 specific intrinsic. 14797 if (Builder.getIsFPConstrained() && 14798 (Pred == FCmpInst::FCMP_TRUE || Pred == FCmpInst::FCMP_FALSE || 14799 IsMaskFCmp)) { 14800 14801 Intrinsic::ID IID; 14802 switch (BuiltinID) { 14803 default: llvm_unreachable("Unexpected builtin"); 14804 case X86::BI__builtin_ia32_cmpps: 14805 IID = Intrinsic::x86_sse_cmp_ps; 14806 break; 14807 case X86::BI__builtin_ia32_cmpps256: 14808 IID = Intrinsic::x86_avx_cmp_ps_256; 14809 break; 14810 case X86::BI__builtin_ia32_cmppd: 14811 IID = Intrinsic::x86_sse2_cmp_pd; 14812 break; 14813 case X86::BI__builtin_ia32_cmppd256: 14814 IID = Intrinsic::x86_avx_cmp_pd_256; 14815 break; 14816 case X86::BI__builtin_ia32_cmpps512_mask: 14817 IID = Intrinsic::x86_avx512_mask_cmp_ps_512; 14818 break; 14819 case X86::BI__builtin_ia32_cmppd512_mask: 14820 IID = Intrinsic::x86_avx512_mask_cmp_pd_512; 14821 break; 14822 case X86::BI__builtin_ia32_cmpps128_mask: 14823 IID = Intrinsic::x86_avx512_mask_cmp_ps_128; 14824 break; 14825 case X86::BI__builtin_ia32_cmpps256_mask: 14826 IID = Intrinsic::x86_avx512_mask_cmp_ps_256; 14827 break; 14828 case X86::BI__builtin_ia32_cmppd128_mask: 14829 IID = Intrinsic::x86_avx512_mask_cmp_pd_128; 14830 break; 14831 case X86::BI__builtin_ia32_cmppd256_mask: 14832 IID = Intrinsic::x86_avx512_mask_cmp_pd_256; 14833 break; 14834 } 14835 14836 Function *Intr = CGM.getIntrinsic(IID); 14837 if (IsMaskFCmp) { 14838 unsigned NumElts = 14839 cast<llvm::FixedVectorType>(Ops[0]->getType())->getNumElements(); 14840 Ops[3] = getMaskVecValue(*this, Ops[3], NumElts); 14841 Value *Cmp = Builder.CreateCall(Intr, Ops); 14842 return EmitX86MaskedCompareResult(*this, Cmp, NumElts, nullptr); 14843 } 14844 14845 return Builder.CreateCall(Intr, Ops); 14846 } 14847 14848 // Builtins without the _mask suffix return a vector of integers 14849 // of the same width as the input vectors 14850 if (IsMaskFCmp) { 14851 // We ignore SAE if strict FP is disabled. We only keep precise 14852 // exception behavior under strict FP. 14853 // NOTE: If strict FP does ever go through here a CGFPOptionsRAII 14854 // object will be required. 14855 unsigned NumElts = 14856 cast<llvm::FixedVectorType>(Ops[0]->getType())->getNumElements(); 14857 Value *Cmp; 14858 if (IsSignaling) 14859 Cmp = Builder.CreateFCmpS(Pred, Ops[0], Ops[1]); 14860 else 14861 Cmp = Builder.CreateFCmp(Pred, Ops[0], Ops[1]); 14862 return EmitX86MaskedCompareResult(*this, Cmp, NumElts, Ops[3]); 14863 } 14864 14865 return getVectorFCmpIR(Pred, IsSignaling); 14866 } 14867 14868 // SSE scalar comparison intrinsics 14869 case X86::BI__builtin_ia32_cmpeqss: 14870 return getCmpIntrinsicCall(Intrinsic::x86_sse_cmp_ss, 0); 14871 case X86::BI__builtin_ia32_cmpltss: 14872 return getCmpIntrinsicCall(Intrinsic::x86_sse_cmp_ss, 1); 14873 case X86::BI__builtin_ia32_cmpless: 14874 return getCmpIntrinsicCall(Intrinsic::x86_sse_cmp_ss, 2); 14875 case X86::BI__builtin_ia32_cmpunordss: 14876 return getCmpIntrinsicCall(Intrinsic::x86_sse_cmp_ss, 3); 14877 case X86::BI__builtin_ia32_cmpneqss: 14878 return getCmpIntrinsicCall(Intrinsic::x86_sse_cmp_ss, 4); 14879 case X86::BI__builtin_ia32_cmpnltss: 14880 return getCmpIntrinsicCall(Intrinsic::x86_sse_cmp_ss, 5); 14881 case X86::BI__builtin_ia32_cmpnless: 14882 return getCmpIntrinsicCall(Intrinsic::x86_sse_cmp_ss, 6); 14883 case X86::BI__builtin_ia32_cmpordss: 14884 return getCmpIntrinsicCall(Intrinsic::x86_sse_cmp_ss, 7); 14885 case X86::BI__builtin_ia32_cmpeqsd: 14886 return getCmpIntrinsicCall(Intrinsic::x86_sse2_cmp_sd, 0); 14887 case X86::BI__builtin_ia32_cmpltsd: 14888 return getCmpIntrinsicCall(Intrinsic::x86_sse2_cmp_sd, 1); 14889 case X86::BI__builtin_ia32_cmplesd: 14890 return getCmpIntrinsicCall(Intrinsic::x86_sse2_cmp_sd, 2); 14891 case X86::BI__builtin_ia32_cmpunordsd: 14892 return getCmpIntrinsicCall(Intrinsic::x86_sse2_cmp_sd, 3); 14893 case X86::BI__builtin_ia32_cmpneqsd: 14894 return getCmpIntrinsicCall(Intrinsic::x86_sse2_cmp_sd, 4); 14895 case X86::BI__builtin_ia32_cmpnltsd: 14896 return getCmpIntrinsicCall(Intrinsic::x86_sse2_cmp_sd, 5); 14897 case X86::BI__builtin_ia32_cmpnlesd: 14898 return getCmpIntrinsicCall(Intrinsic::x86_sse2_cmp_sd, 6); 14899 case X86::BI__builtin_ia32_cmpordsd: 14900 return getCmpIntrinsicCall(Intrinsic::x86_sse2_cmp_sd, 7); 14901 14902 // f16c half2float intrinsics 14903 case X86::BI__builtin_ia32_vcvtph2ps: 14904 case X86::BI__builtin_ia32_vcvtph2ps256: 14905 case X86::BI__builtin_ia32_vcvtph2ps_mask: 14906 case X86::BI__builtin_ia32_vcvtph2ps256_mask: 14907 case X86::BI__builtin_ia32_vcvtph2ps512_mask: { 14908 CodeGenFunction::CGFPOptionsRAII FPOptsRAII(*this, E); 14909 return EmitX86CvtF16ToFloatExpr(*this, Ops, ConvertType(E->getType())); 14910 } 14911 14912 // AVX512 bf16 intrinsics 14913 case X86::BI__builtin_ia32_cvtneps2bf16_128_mask: { 14914 Ops[2] = getMaskVecValue( 14915 *this, Ops[2], 14916 cast<llvm::FixedVectorType>(Ops[0]->getType())->getNumElements()); 14917 Intrinsic::ID IID = Intrinsic::x86_avx512bf16_mask_cvtneps2bf16_128; 14918 return Builder.CreateCall(CGM.getIntrinsic(IID), Ops); 14919 } 14920 case X86::BI__builtin_ia32_cvtsbf162ss_32: 14921 return EmitX86CvtBF16ToFloatExpr(*this, E, Ops); 14922 14923 case X86::BI__builtin_ia32_cvtneps2bf16_256_mask: 14924 case X86::BI__builtin_ia32_cvtneps2bf16_512_mask: { 14925 Intrinsic::ID IID; 14926 switch (BuiltinID) { 14927 default: llvm_unreachable("Unsupported intrinsic!"); 14928 case X86::BI__builtin_ia32_cvtneps2bf16_256_mask: 14929 IID = Intrinsic::x86_avx512bf16_cvtneps2bf16_256; 14930 break; 14931 case X86::BI__builtin_ia32_cvtneps2bf16_512_mask: 14932 IID = Intrinsic::x86_avx512bf16_cvtneps2bf16_512; 14933 break; 14934 } 14935 Value *Res = Builder.CreateCall(CGM.getIntrinsic(IID), Ops[0]); 14936 return EmitX86Select(*this, Ops[2], Res, Ops[1]); 14937 } 14938 14939 case X86::BI__emul: 14940 case X86::BI__emulu: { 14941 llvm::Type *Int64Ty = llvm::IntegerType::get(getLLVMContext(), 64); 14942 bool isSigned = (BuiltinID == X86::BI__emul); 14943 Value *LHS = Builder.CreateIntCast(Ops[0], Int64Ty, isSigned); 14944 Value *RHS = Builder.CreateIntCast(Ops[1], Int64Ty, isSigned); 14945 return Builder.CreateMul(LHS, RHS, "", !isSigned, isSigned); 14946 } 14947 case X86::BI__mulh: 14948 case X86::BI__umulh: 14949 case X86::BI_mul128: 14950 case X86::BI_umul128: { 14951 llvm::Type *ResType = ConvertType(E->getType()); 14952 llvm::Type *Int128Ty = llvm::IntegerType::get(getLLVMContext(), 128); 14953 14954 bool IsSigned = (BuiltinID == X86::BI__mulh || BuiltinID == X86::BI_mul128); 14955 Value *LHS = Builder.CreateIntCast(Ops[0], Int128Ty, IsSigned); 14956 Value *RHS = Builder.CreateIntCast(Ops[1], Int128Ty, IsSigned); 14957 14958 Value *MulResult, *HigherBits; 14959 if (IsSigned) { 14960 MulResult = Builder.CreateNSWMul(LHS, RHS); 14961 HigherBits = Builder.CreateAShr(MulResult, 64); 14962 } else { 14963 MulResult = Builder.CreateNUWMul(LHS, RHS); 14964 HigherBits = Builder.CreateLShr(MulResult, 64); 14965 } 14966 HigherBits = Builder.CreateIntCast(HigherBits, ResType, IsSigned); 14967 14968 if (BuiltinID == X86::BI__mulh || BuiltinID == X86::BI__umulh) 14969 return HigherBits; 14970 14971 Address HighBitsAddress = EmitPointerWithAlignment(E->getArg(2)); 14972 Builder.CreateStore(HigherBits, HighBitsAddress); 14973 return Builder.CreateIntCast(MulResult, ResType, IsSigned); 14974 } 14975 14976 case X86::BI__faststorefence: { 14977 return Builder.CreateFence(llvm::AtomicOrdering::SequentiallyConsistent, 14978 llvm::SyncScope::System); 14979 } 14980 case X86::BI__shiftleft128: 14981 case X86::BI__shiftright128: { 14982 llvm::Function *F = CGM.getIntrinsic( 14983 BuiltinID == X86::BI__shiftleft128 ? Intrinsic::fshl : Intrinsic::fshr, 14984 Int64Ty); 14985 // Flip low/high ops and zero-extend amount to matching type. 14986 // shiftleft128(Low, High, Amt) -> fshl(High, Low, Amt) 14987 // shiftright128(Low, High, Amt) -> fshr(High, Low, Amt) 14988 std::swap(Ops[0], Ops[1]); 14989 Ops[2] = Builder.CreateZExt(Ops[2], Int64Ty); 14990 return Builder.CreateCall(F, Ops); 14991 } 14992 case X86::BI_ReadWriteBarrier: 14993 case X86::BI_ReadBarrier: 14994 case X86::BI_WriteBarrier: { 14995 return Builder.CreateFence(llvm::AtomicOrdering::SequentiallyConsistent, 14996 llvm::SyncScope::SingleThread); 14997 } 14998 14999 case X86::BI_AddressOfReturnAddress: { 15000 Function *F = 15001 CGM.getIntrinsic(Intrinsic::addressofreturnaddress, AllocaInt8PtrTy); 15002 return Builder.CreateCall(F); 15003 } 15004 case X86::BI__stosb: { 15005 // We treat __stosb as a volatile memset - it may not generate "rep stosb" 15006 // instruction, but it will create a memset that won't be optimized away. 15007 return Builder.CreateMemSet(Ops[0], Ops[1], Ops[2], Align(1), true); 15008 } 15009 case X86::BI__ud2: 15010 // llvm.trap makes a ud2a instruction on x86. 15011 return EmitTrapCall(Intrinsic::trap); 15012 case X86::BI__int2c: { 15013 // This syscall signals a driver assertion failure in x86 NT kernels. 15014 llvm::FunctionType *FTy = llvm::FunctionType::get(VoidTy, false); 15015 llvm::InlineAsm *IA = 15016 llvm::InlineAsm::get(FTy, "int $$0x2c", "", /*hasSideEffects=*/true); 15017 llvm::AttributeList NoReturnAttr = llvm::AttributeList::get( 15018 getLLVMContext(), llvm::AttributeList::FunctionIndex, 15019 llvm::Attribute::NoReturn); 15020 llvm::CallInst *CI = Builder.CreateCall(IA); 15021 CI->setAttributes(NoReturnAttr); 15022 return CI; 15023 } 15024 case X86::BI__readfsbyte: 15025 case X86::BI__readfsword: 15026 case X86::BI__readfsdword: 15027 case X86::BI__readfsqword: { 15028 llvm::Type *IntTy = ConvertType(E->getType()); 15029 Value *Ptr = 15030 Builder.CreateIntToPtr(Ops[0], llvm::PointerType::get(IntTy, 257)); 15031 LoadInst *Load = Builder.CreateAlignedLoad( 15032 IntTy, Ptr, getContext().getTypeAlignInChars(E->getType())); 15033 Load->setVolatile(true); 15034 return Load; 15035 } 15036 case X86::BI__readgsbyte: 15037 case X86::BI__readgsword: 15038 case X86::BI__readgsdword: 15039 case X86::BI__readgsqword: { 15040 llvm::Type *IntTy = ConvertType(E->getType()); 15041 Value *Ptr = 15042 Builder.CreateIntToPtr(Ops[0], llvm::PointerType::get(IntTy, 256)); 15043 LoadInst *Load = Builder.CreateAlignedLoad( 15044 IntTy, Ptr, getContext().getTypeAlignInChars(E->getType())); 15045 Load->setVolatile(true); 15046 return Load; 15047 } 15048 case X86::BI__builtin_ia32_paddsb512: 15049 case X86::BI__builtin_ia32_paddsw512: 15050 case X86::BI__builtin_ia32_paddsb256: 15051 case X86::BI__builtin_ia32_paddsw256: 15052 case X86::BI__builtin_ia32_paddsb128: 15053 case X86::BI__builtin_ia32_paddsw128: 15054 return EmitX86BinaryIntrinsic(*this, Ops, Intrinsic::sadd_sat); 15055 case X86::BI__builtin_ia32_paddusb512: 15056 case X86::BI__builtin_ia32_paddusw512: 15057 case X86::BI__builtin_ia32_paddusb256: 15058 case X86::BI__builtin_ia32_paddusw256: 15059 case X86::BI__builtin_ia32_paddusb128: 15060 case X86::BI__builtin_ia32_paddusw128: 15061 return EmitX86BinaryIntrinsic(*this, Ops, Intrinsic::uadd_sat); 15062 case X86::BI__builtin_ia32_psubsb512: 15063 case X86::BI__builtin_ia32_psubsw512: 15064 case X86::BI__builtin_ia32_psubsb256: 15065 case X86::BI__builtin_ia32_psubsw256: 15066 case X86::BI__builtin_ia32_psubsb128: 15067 case X86::BI__builtin_ia32_psubsw128: 15068 return EmitX86BinaryIntrinsic(*this, Ops, Intrinsic::ssub_sat); 15069 case X86::BI__builtin_ia32_psubusb512: 15070 case X86::BI__builtin_ia32_psubusw512: 15071 case X86::BI__builtin_ia32_psubusb256: 15072 case X86::BI__builtin_ia32_psubusw256: 15073 case X86::BI__builtin_ia32_psubusb128: 15074 case X86::BI__builtin_ia32_psubusw128: 15075 return EmitX86BinaryIntrinsic(*this, Ops, Intrinsic::usub_sat); 15076 case X86::BI__builtin_ia32_encodekey128_u32: { 15077 Intrinsic::ID IID = Intrinsic::x86_encodekey128; 15078 15079 Value *Call = Builder.CreateCall(CGM.getIntrinsic(IID), {Ops[0], Ops[1]}); 15080 15081 for (int i = 0; i < 3; ++i) { 15082 Value *Extract = Builder.CreateExtractValue(Call, i + 1); 15083 Value *Ptr = Builder.CreateConstGEP1_32(Int8Ty, Ops[2], i * 16); 15084 Ptr = Builder.CreateBitCast( 15085 Ptr, llvm::PointerType::getUnqual(Extract->getType())); 15086 Builder.CreateAlignedStore(Extract, Ptr, Align(1)); 15087 } 15088 15089 return Builder.CreateExtractValue(Call, 0); 15090 } 15091 case X86::BI__builtin_ia32_encodekey256_u32: { 15092 Intrinsic::ID IID = Intrinsic::x86_encodekey256; 15093 15094 Value *Call = 15095 Builder.CreateCall(CGM.getIntrinsic(IID), {Ops[0], Ops[1], Ops[2]}); 15096 15097 for (int i = 0; i < 4; ++i) { 15098 Value *Extract = Builder.CreateExtractValue(Call, i + 1); 15099 Value *Ptr = Builder.CreateConstGEP1_32(Int8Ty, Ops[3], i * 16); 15100 Ptr = Builder.CreateBitCast( 15101 Ptr, llvm::PointerType::getUnqual(Extract->getType())); 15102 Builder.CreateAlignedStore(Extract, Ptr, Align(1)); 15103 } 15104 15105 return Builder.CreateExtractValue(Call, 0); 15106 } 15107 case X86::BI__builtin_ia32_aesenc128kl_u8: 15108 case X86::BI__builtin_ia32_aesdec128kl_u8: 15109 case X86::BI__builtin_ia32_aesenc256kl_u8: 15110 case X86::BI__builtin_ia32_aesdec256kl_u8: { 15111 Intrinsic::ID IID; 15112 StringRef BlockName; 15113 switch (BuiltinID) { 15114 default: 15115 llvm_unreachable("Unexpected builtin"); 15116 case X86::BI__builtin_ia32_aesenc128kl_u8: 15117 IID = Intrinsic::x86_aesenc128kl; 15118 BlockName = "aesenc128kl"; 15119 break; 15120 case X86::BI__builtin_ia32_aesdec128kl_u8: 15121 IID = Intrinsic::x86_aesdec128kl; 15122 BlockName = "aesdec128kl"; 15123 break; 15124 case X86::BI__builtin_ia32_aesenc256kl_u8: 15125 IID = Intrinsic::x86_aesenc256kl; 15126 BlockName = "aesenc256kl"; 15127 break; 15128 case X86::BI__builtin_ia32_aesdec256kl_u8: 15129 IID = Intrinsic::x86_aesdec256kl; 15130 BlockName = "aesdec256kl"; 15131 break; 15132 } 15133 15134 Value *Call = Builder.CreateCall(CGM.getIntrinsic(IID), {Ops[1], Ops[2]}); 15135 15136 BasicBlock *NoError = 15137 createBasicBlock(BlockName + "_no_error", this->CurFn); 15138 BasicBlock *Error = createBasicBlock(BlockName + "_error", this->CurFn); 15139 BasicBlock *End = createBasicBlock(BlockName + "_end", this->CurFn); 15140 15141 Value *Ret = Builder.CreateExtractValue(Call, 0); 15142 Value *Succ = Builder.CreateTrunc(Ret, Builder.getInt1Ty()); 15143 Value *Out = Builder.CreateExtractValue(Call, 1); 15144 Builder.CreateCondBr(Succ, NoError, Error); 15145 15146 Builder.SetInsertPoint(NoError); 15147 Builder.CreateDefaultAlignedStore(Out, Ops[0]); 15148 Builder.CreateBr(End); 15149 15150 Builder.SetInsertPoint(Error); 15151 Constant *Zero = llvm::Constant::getNullValue(Out->getType()); 15152 Builder.CreateDefaultAlignedStore(Zero, Ops[0]); 15153 Builder.CreateBr(End); 15154 15155 Builder.SetInsertPoint(End); 15156 return Builder.CreateExtractValue(Call, 0); 15157 } 15158 case X86::BI__builtin_ia32_aesencwide128kl_u8: 15159 case X86::BI__builtin_ia32_aesdecwide128kl_u8: 15160 case X86::BI__builtin_ia32_aesencwide256kl_u8: 15161 case X86::BI__builtin_ia32_aesdecwide256kl_u8: { 15162 Intrinsic::ID IID; 15163 StringRef BlockName; 15164 switch (BuiltinID) { 15165 case X86::BI__builtin_ia32_aesencwide128kl_u8: 15166 IID = Intrinsic::x86_aesencwide128kl; 15167 BlockName = "aesencwide128kl"; 15168 break; 15169 case X86::BI__builtin_ia32_aesdecwide128kl_u8: 15170 IID = Intrinsic::x86_aesdecwide128kl; 15171 BlockName = "aesdecwide128kl"; 15172 break; 15173 case X86::BI__builtin_ia32_aesencwide256kl_u8: 15174 IID = Intrinsic::x86_aesencwide256kl; 15175 BlockName = "aesencwide256kl"; 15176 break; 15177 case X86::BI__builtin_ia32_aesdecwide256kl_u8: 15178 IID = Intrinsic::x86_aesdecwide256kl; 15179 BlockName = "aesdecwide256kl"; 15180 break; 15181 } 15182 15183 llvm::Type *Ty = FixedVectorType::get(Builder.getInt64Ty(), 2); 15184 Value *InOps[9]; 15185 InOps[0] = Ops[2]; 15186 for (int i = 0; i != 8; ++i) { 15187 Value *Ptr = Builder.CreateConstGEP1_32(Ty, Ops[1], i); 15188 InOps[i + 1] = Builder.CreateAlignedLoad(Ty, Ptr, Align(16)); 15189 } 15190 15191 Value *Call = Builder.CreateCall(CGM.getIntrinsic(IID), InOps); 15192 15193 BasicBlock *NoError = 15194 createBasicBlock(BlockName + "_no_error", this->CurFn); 15195 BasicBlock *Error = createBasicBlock(BlockName + "_error", this->CurFn); 15196 BasicBlock *End = createBasicBlock(BlockName + "_end", this->CurFn); 15197 15198 Value *Ret = Builder.CreateExtractValue(Call, 0); 15199 Value *Succ = Builder.CreateTrunc(Ret, Builder.getInt1Ty()); 15200 Builder.CreateCondBr(Succ, NoError, Error); 15201 15202 Builder.SetInsertPoint(NoError); 15203 for (int i = 0; i != 8; ++i) { 15204 Value *Extract = Builder.CreateExtractValue(Call, i + 1); 15205 Value *Ptr = Builder.CreateConstGEP1_32(Extract->getType(), Ops[0], i); 15206 Builder.CreateAlignedStore(Extract, Ptr, Align(16)); 15207 } 15208 Builder.CreateBr(End); 15209 15210 Builder.SetInsertPoint(Error); 15211 for (int i = 0; i != 8; ++i) { 15212 Value *Out = Builder.CreateExtractValue(Call, i + 1); 15213 Constant *Zero = llvm::Constant::getNullValue(Out->getType()); 15214 Value *Ptr = Builder.CreateConstGEP1_32(Out->getType(), Ops[0], i); 15215 Builder.CreateAlignedStore(Zero, Ptr, Align(16)); 15216 } 15217 Builder.CreateBr(End); 15218 15219 Builder.SetInsertPoint(End); 15220 return Builder.CreateExtractValue(Call, 0); 15221 } 15222 case X86::BI__builtin_ia32_vfcmaddcph512_mask: 15223 IsConjFMA = true; 15224 LLVM_FALLTHROUGH; 15225 case X86::BI__builtin_ia32_vfmaddcph512_mask: { 15226 Intrinsic::ID IID = IsConjFMA 15227 ? Intrinsic::x86_avx512fp16_mask_vfcmadd_cph_512 15228 : Intrinsic::x86_avx512fp16_mask_vfmadd_cph_512; 15229 Value *Call = Builder.CreateCall(CGM.getIntrinsic(IID), Ops); 15230 return EmitX86Select(*this, Ops[3], Call, Ops[0]); 15231 } 15232 case X86::BI__builtin_ia32_vfcmaddcsh_round_mask: 15233 IsConjFMA = true; 15234 LLVM_FALLTHROUGH; 15235 case X86::BI__builtin_ia32_vfmaddcsh_round_mask: { 15236 Intrinsic::ID IID = IsConjFMA ? Intrinsic::x86_avx512fp16_mask_vfcmadd_csh 15237 : Intrinsic::x86_avx512fp16_mask_vfmadd_csh; 15238 Value *Call = Builder.CreateCall(CGM.getIntrinsic(IID), Ops); 15239 Value *And = Builder.CreateAnd(Ops[3], llvm::ConstantInt::get(Int8Ty, 1)); 15240 return EmitX86Select(*this, And, Call, Ops[0]); 15241 } 15242 case X86::BI__builtin_ia32_vfcmaddcsh_round_mask3: 15243 IsConjFMA = true; 15244 LLVM_FALLTHROUGH; 15245 case X86::BI__builtin_ia32_vfmaddcsh_round_mask3: { 15246 Intrinsic::ID IID = IsConjFMA ? Intrinsic::x86_avx512fp16_mask_vfcmadd_csh 15247 : Intrinsic::x86_avx512fp16_mask_vfmadd_csh; 15248 Value *Call = Builder.CreateCall(CGM.getIntrinsic(IID), Ops); 15249 static constexpr int Mask[] = {0, 5, 6, 7}; 15250 return Builder.CreateShuffleVector(Call, Ops[2], Mask); 15251 } 15252 } 15253 } 15254 15255 Value *CodeGenFunction::EmitPPCBuiltinExpr(unsigned BuiltinID, 15256 const CallExpr *E) { 15257 SmallVector<Value*, 4> Ops; 15258 15259 for (unsigned i = 0, e = E->getNumArgs(); i != e; i++) { 15260 if (E->getArg(i)->getType()->isArrayType()) 15261 Ops.push_back(EmitArrayToPointerDecay(E->getArg(i)).getPointer()); 15262 else 15263 Ops.push_back(EmitScalarExpr(E->getArg(i))); 15264 } 15265 15266 Intrinsic::ID ID = Intrinsic::not_intrinsic; 15267 15268 switch (BuiltinID) { 15269 default: return nullptr; 15270 15271 // __builtin_ppc_get_timebase is GCC 4.8+'s PowerPC-specific name for what we 15272 // call __builtin_readcyclecounter. 15273 case PPC::BI__builtin_ppc_get_timebase: 15274 return Builder.CreateCall(CGM.getIntrinsic(Intrinsic::readcyclecounter)); 15275 15276 // vec_ld, vec_xl_be, vec_lvsl, vec_lvsr 15277 case PPC::BI__builtin_altivec_lvx: 15278 case PPC::BI__builtin_altivec_lvxl: 15279 case PPC::BI__builtin_altivec_lvebx: 15280 case PPC::BI__builtin_altivec_lvehx: 15281 case PPC::BI__builtin_altivec_lvewx: 15282 case PPC::BI__builtin_altivec_lvsl: 15283 case PPC::BI__builtin_altivec_lvsr: 15284 case PPC::BI__builtin_vsx_lxvd2x: 15285 case PPC::BI__builtin_vsx_lxvw4x: 15286 case PPC::BI__builtin_vsx_lxvd2x_be: 15287 case PPC::BI__builtin_vsx_lxvw4x_be: 15288 case PPC::BI__builtin_vsx_lxvl: 15289 case PPC::BI__builtin_vsx_lxvll: 15290 { 15291 if(BuiltinID == PPC::BI__builtin_vsx_lxvl || 15292 BuiltinID == PPC::BI__builtin_vsx_lxvll){ 15293 Ops[0] = Builder.CreateBitCast(Ops[0], Int8PtrTy); 15294 }else { 15295 Ops[1] = Builder.CreateBitCast(Ops[1], Int8PtrTy); 15296 Ops[0] = Builder.CreateGEP(Int8Ty, Ops[1], Ops[0]); 15297 Ops.pop_back(); 15298 } 15299 15300 switch (BuiltinID) { 15301 default: llvm_unreachable("Unsupported ld/lvsl/lvsr intrinsic!"); 15302 case PPC::BI__builtin_altivec_lvx: 15303 ID = Intrinsic::ppc_altivec_lvx; 15304 break; 15305 case PPC::BI__builtin_altivec_lvxl: 15306 ID = Intrinsic::ppc_altivec_lvxl; 15307 break; 15308 case PPC::BI__builtin_altivec_lvebx: 15309 ID = Intrinsic::ppc_altivec_lvebx; 15310 break; 15311 case PPC::BI__builtin_altivec_lvehx: 15312 ID = Intrinsic::ppc_altivec_lvehx; 15313 break; 15314 case PPC::BI__builtin_altivec_lvewx: 15315 ID = Intrinsic::ppc_altivec_lvewx; 15316 break; 15317 case PPC::BI__builtin_altivec_lvsl: 15318 ID = Intrinsic::ppc_altivec_lvsl; 15319 break; 15320 case PPC::BI__builtin_altivec_lvsr: 15321 ID = Intrinsic::ppc_altivec_lvsr; 15322 break; 15323 case PPC::BI__builtin_vsx_lxvd2x: 15324 ID = Intrinsic::ppc_vsx_lxvd2x; 15325 break; 15326 case PPC::BI__builtin_vsx_lxvw4x: 15327 ID = Intrinsic::ppc_vsx_lxvw4x; 15328 break; 15329 case PPC::BI__builtin_vsx_lxvd2x_be: 15330 ID = Intrinsic::ppc_vsx_lxvd2x_be; 15331 break; 15332 case PPC::BI__builtin_vsx_lxvw4x_be: 15333 ID = Intrinsic::ppc_vsx_lxvw4x_be; 15334 break; 15335 case PPC::BI__builtin_vsx_lxvl: 15336 ID = Intrinsic::ppc_vsx_lxvl; 15337 break; 15338 case PPC::BI__builtin_vsx_lxvll: 15339 ID = Intrinsic::ppc_vsx_lxvll; 15340 break; 15341 } 15342 llvm::Function *F = CGM.getIntrinsic(ID); 15343 return Builder.CreateCall(F, Ops, ""); 15344 } 15345 15346 // vec_st, vec_xst_be 15347 case PPC::BI__builtin_altivec_stvx: 15348 case PPC::BI__builtin_altivec_stvxl: 15349 case PPC::BI__builtin_altivec_stvebx: 15350 case PPC::BI__builtin_altivec_stvehx: 15351 case PPC::BI__builtin_altivec_stvewx: 15352 case PPC::BI__builtin_vsx_stxvd2x: 15353 case PPC::BI__builtin_vsx_stxvw4x: 15354 case PPC::BI__builtin_vsx_stxvd2x_be: 15355 case PPC::BI__builtin_vsx_stxvw4x_be: 15356 case PPC::BI__builtin_vsx_stxvl: 15357 case PPC::BI__builtin_vsx_stxvll: 15358 { 15359 if(BuiltinID == PPC::BI__builtin_vsx_stxvl || 15360 BuiltinID == PPC::BI__builtin_vsx_stxvll ){ 15361 Ops[1] = Builder.CreateBitCast(Ops[1], Int8PtrTy); 15362 }else { 15363 Ops[2] = Builder.CreateBitCast(Ops[2], Int8PtrTy); 15364 Ops[1] = Builder.CreateGEP(Int8Ty, Ops[2], Ops[1]); 15365 Ops.pop_back(); 15366 } 15367 15368 switch (BuiltinID) { 15369 default: llvm_unreachable("Unsupported st intrinsic!"); 15370 case PPC::BI__builtin_altivec_stvx: 15371 ID = Intrinsic::ppc_altivec_stvx; 15372 break; 15373 case PPC::BI__builtin_altivec_stvxl: 15374 ID = Intrinsic::ppc_altivec_stvxl; 15375 break; 15376 case PPC::BI__builtin_altivec_stvebx: 15377 ID = Intrinsic::ppc_altivec_stvebx; 15378 break; 15379 case PPC::BI__builtin_altivec_stvehx: 15380 ID = Intrinsic::ppc_altivec_stvehx; 15381 break; 15382 case PPC::BI__builtin_altivec_stvewx: 15383 ID = Intrinsic::ppc_altivec_stvewx; 15384 break; 15385 case PPC::BI__builtin_vsx_stxvd2x: 15386 ID = Intrinsic::ppc_vsx_stxvd2x; 15387 break; 15388 case PPC::BI__builtin_vsx_stxvw4x: 15389 ID = Intrinsic::ppc_vsx_stxvw4x; 15390 break; 15391 case PPC::BI__builtin_vsx_stxvd2x_be: 15392 ID = Intrinsic::ppc_vsx_stxvd2x_be; 15393 break; 15394 case PPC::BI__builtin_vsx_stxvw4x_be: 15395 ID = Intrinsic::ppc_vsx_stxvw4x_be; 15396 break; 15397 case PPC::BI__builtin_vsx_stxvl: 15398 ID = Intrinsic::ppc_vsx_stxvl; 15399 break; 15400 case PPC::BI__builtin_vsx_stxvll: 15401 ID = Intrinsic::ppc_vsx_stxvll; 15402 break; 15403 } 15404 llvm::Function *F = CGM.getIntrinsic(ID); 15405 return Builder.CreateCall(F, Ops, ""); 15406 } 15407 case PPC::BI__builtin_vsx_ldrmb: { 15408 // Essentially boils down to performing an unaligned VMX load sequence so 15409 // as to avoid crossing a page boundary and then shuffling the elements 15410 // into the right side of the vector register. 15411 int64_t NumBytes = cast<ConstantInt>(Ops[1])->getZExtValue(); 15412 llvm::Type *ResTy = ConvertType(E->getType()); 15413 bool IsLE = getTarget().isLittleEndian(); 15414 15415 // If the user wants the entire vector, just load the entire vector. 15416 if (NumBytes == 16) { 15417 Value *BC = Builder.CreateBitCast(Ops[0], ResTy->getPointerTo()); 15418 Value *LD = 15419 Builder.CreateLoad(Address(BC, ResTy, CharUnits::fromQuantity(1))); 15420 if (!IsLE) 15421 return LD; 15422 15423 // Reverse the bytes on LE. 15424 SmallVector<int, 16> RevMask; 15425 for (int Idx = 0; Idx < 16; Idx++) 15426 RevMask.push_back(15 - Idx); 15427 return Builder.CreateShuffleVector(LD, LD, RevMask); 15428 } 15429 15430 llvm::Function *Lvx = CGM.getIntrinsic(Intrinsic::ppc_altivec_lvx); 15431 llvm::Function *Lvs = CGM.getIntrinsic(IsLE ? Intrinsic::ppc_altivec_lvsr 15432 : Intrinsic::ppc_altivec_lvsl); 15433 llvm::Function *Vperm = CGM.getIntrinsic(Intrinsic::ppc_altivec_vperm); 15434 Value *HiMem = Builder.CreateGEP( 15435 Int8Ty, Ops[0], ConstantInt::get(Ops[1]->getType(), NumBytes - 1)); 15436 Value *LoLd = Builder.CreateCall(Lvx, Ops[0], "ld.lo"); 15437 Value *HiLd = Builder.CreateCall(Lvx, HiMem, "ld.hi"); 15438 Value *Mask1 = Builder.CreateCall(Lvs, Ops[0], "mask1"); 15439 15440 Ops.clear(); 15441 Ops.push_back(IsLE ? HiLd : LoLd); 15442 Ops.push_back(IsLE ? LoLd : HiLd); 15443 Ops.push_back(Mask1); 15444 Value *AllElts = Builder.CreateCall(Vperm, Ops, "shuffle1"); 15445 Constant *Zero = llvm::Constant::getNullValue(IsLE ? ResTy : AllElts->getType()); 15446 15447 if (IsLE) { 15448 SmallVector<int, 16> Consts; 15449 for (int Idx = 0; Idx < 16; Idx++) { 15450 int Val = (NumBytes - Idx - 1 >= 0) ? (NumBytes - Idx - 1) 15451 : 16 - (NumBytes - Idx); 15452 Consts.push_back(Val); 15453 } 15454 return Builder.CreateShuffleVector(Builder.CreateBitCast(AllElts, ResTy), 15455 Zero, Consts); 15456 } 15457 SmallVector<Constant *, 16> Consts; 15458 for (int Idx = 0; Idx < 16; Idx++) 15459 Consts.push_back(Builder.getInt8(NumBytes + Idx)); 15460 Value *Mask2 = ConstantVector::get(Consts); 15461 return Builder.CreateBitCast( 15462 Builder.CreateCall(Vperm, {Zero, AllElts, Mask2}, "shuffle2"), ResTy); 15463 } 15464 case PPC::BI__builtin_vsx_strmb: { 15465 int64_t NumBytes = cast<ConstantInt>(Ops[1])->getZExtValue(); 15466 bool IsLE = getTarget().isLittleEndian(); 15467 auto StoreSubVec = [&](unsigned Width, unsigned Offset, unsigned EltNo) { 15468 // Storing the whole vector, simply store it on BE and reverse bytes and 15469 // store on LE. 15470 if (Width == 16) { 15471 Value *BC = 15472 Builder.CreateBitCast(Ops[0], Ops[2]->getType()->getPointerTo()); 15473 Value *StVec = Ops[2]; 15474 if (IsLE) { 15475 SmallVector<int, 16> RevMask; 15476 for (int Idx = 0; Idx < 16; Idx++) 15477 RevMask.push_back(15 - Idx); 15478 StVec = Builder.CreateShuffleVector(Ops[2], Ops[2], RevMask); 15479 } 15480 return Builder.CreateStore( 15481 StVec, Address(BC, Ops[2]->getType(), CharUnits::fromQuantity(1))); 15482 } 15483 auto *ConvTy = Int64Ty; 15484 unsigned NumElts = 0; 15485 switch (Width) { 15486 default: 15487 llvm_unreachable("width for stores must be a power of 2"); 15488 case 8: 15489 ConvTy = Int64Ty; 15490 NumElts = 2; 15491 break; 15492 case 4: 15493 ConvTy = Int32Ty; 15494 NumElts = 4; 15495 break; 15496 case 2: 15497 ConvTy = Int16Ty; 15498 NumElts = 8; 15499 break; 15500 case 1: 15501 ConvTy = Int8Ty; 15502 NumElts = 16; 15503 break; 15504 } 15505 Value *Vec = Builder.CreateBitCast( 15506 Ops[2], llvm::FixedVectorType::get(ConvTy, NumElts)); 15507 Value *Ptr = Builder.CreateGEP(Int8Ty, Ops[0], 15508 ConstantInt::get(Int64Ty, Offset)); 15509 Value *PtrBC = Builder.CreateBitCast(Ptr, ConvTy->getPointerTo()); 15510 Value *Elt = Builder.CreateExtractElement(Vec, EltNo); 15511 if (IsLE && Width > 1) { 15512 Function *F = CGM.getIntrinsic(Intrinsic::bswap, ConvTy); 15513 Elt = Builder.CreateCall(F, Elt); 15514 } 15515 return Builder.CreateStore( 15516 Elt, Address(PtrBC, ConvTy, CharUnits::fromQuantity(1))); 15517 }; 15518 unsigned Stored = 0; 15519 unsigned RemainingBytes = NumBytes; 15520 Value *Result; 15521 if (NumBytes == 16) 15522 return StoreSubVec(16, 0, 0); 15523 if (NumBytes >= 8) { 15524 Result = StoreSubVec(8, NumBytes - 8, IsLE ? 0 : 1); 15525 RemainingBytes -= 8; 15526 Stored += 8; 15527 } 15528 if (RemainingBytes >= 4) { 15529 Result = StoreSubVec(4, NumBytes - Stored - 4, 15530 IsLE ? (Stored >> 2) : 3 - (Stored >> 2)); 15531 RemainingBytes -= 4; 15532 Stored += 4; 15533 } 15534 if (RemainingBytes >= 2) { 15535 Result = StoreSubVec(2, NumBytes - Stored - 2, 15536 IsLE ? (Stored >> 1) : 7 - (Stored >> 1)); 15537 RemainingBytes -= 2; 15538 Stored += 2; 15539 } 15540 if (RemainingBytes) 15541 Result = 15542 StoreSubVec(1, NumBytes - Stored - 1, IsLE ? Stored : 15 - Stored); 15543 return Result; 15544 } 15545 // Square root 15546 case PPC::BI__builtin_vsx_xvsqrtsp: 15547 case PPC::BI__builtin_vsx_xvsqrtdp: { 15548 llvm::Type *ResultType = ConvertType(E->getType()); 15549 Value *X = EmitScalarExpr(E->getArg(0)); 15550 if (Builder.getIsFPConstrained()) { 15551 llvm::Function *F = CGM.getIntrinsic( 15552 Intrinsic::experimental_constrained_sqrt, ResultType); 15553 return Builder.CreateConstrainedFPCall(F, X); 15554 } else { 15555 llvm::Function *F = CGM.getIntrinsic(Intrinsic::sqrt, ResultType); 15556 return Builder.CreateCall(F, X); 15557 } 15558 } 15559 // Count leading zeros 15560 case PPC::BI__builtin_altivec_vclzb: 15561 case PPC::BI__builtin_altivec_vclzh: 15562 case PPC::BI__builtin_altivec_vclzw: 15563 case PPC::BI__builtin_altivec_vclzd: { 15564 llvm::Type *ResultType = ConvertType(E->getType()); 15565 Value *X = EmitScalarExpr(E->getArg(0)); 15566 Value *Undef = ConstantInt::get(Builder.getInt1Ty(), false); 15567 Function *F = CGM.getIntrinsic(Intrinsic::ctlz, ResultType); 15568 return Builder.CreateCall(F, {X, Undef}); 15569 } 15570 case PPC::BI__builtin_altivec_vctzb: 15571 case PPC::BI__builtin_altivec_vctzh: 15572 case PPC::BI__builtin_altivec_vctzw: 15573 case PPC::BI__builtin_altivec_vctzd: { 15574 llvm::Type *ResultType = ConvertType(E->getType()); 15575 Value *X = EmitScalarExpr(E->getArg(0)); 15576 Value *Undef = ConstantInt::get(Builder.getInt1Ty(), false); 15577 Function *F = CGM.getIntrinsic(Intrinsic::cttz, ResultType); 15578 return Builder.CreateCall(F, {X, Undef}); 15579 } 15580 case PPC::BI__builtin_altivec_vec_replace_elt: 15581 case PPC::BI__builtin_altivec_vec_replace_unaligned: { 15582 // The third argument of vec_replace_elt and vec_replace_unaligned must 15583 // be a compile time constant and will be emitted either to the vinsw 15584 // or vinsd instruction. 15585 ConstantInt *ArgCI = dyn_cast<ConstantInt>(Ops[2]); 15586 assert(ArgCI && 15587 "Third Arg to vinsw/vinsd intrinsic must be a constant integer!"); 15588 llvm::Type *ResultType = ConvertType(E->getType()); 15589 llvm::Function *F = nullptr; 15590 Value *Call = nullptr; 15591 int64_t ConstArg = ArgCI->getSExtValue(); 15592 unsigned ArgWidth = Ops[1]->getType()->getPrimitiveSizeInBits(); 15593 bool Is32Bit = false; 15594 assert((ArgWidth == 32 || ArgWidth == 64) && "Invalid argument width"); 15595 // The input to vec_replace_elt is an element index, not a byte index. 15596 if (BuiltinID == PPC::BI__builtin_altivec_vec_replace_elt) 15597 ConstArg *= ArgWidth / 8; 15598 if (ArgWidth == 32) { 15599 Is32Bit = true; 15600 // When the second argument is 32 bits, it can either be an integer or 15601 // a float. The vinsw intrinsic is used in this case. 15602 F = CGM.getIntrinsic(Intrinsic::ppc_altivec_vinsw); 15603 // Fix the constant according to endianess. 15604 if (getTarget().isLittleEndian()) 15605 ConstArg = 12 - ConstArg; 15606 } else { 15607 // When the second argument is 64 bits, it can either be a long long or 15608 // a double. The vinsd intrinsic is used in this case. 15609 F = CGM.getIntrinsic(Intrinsic::ppc_altivec_vinsd); 15610 // Fix the constant for little endian. 15611 if (getTarget().isLittleEndian()) 15612 ConstArg = 8 - ConstArg; 15613 } 15614 Ops[2] = ConstantInt::getSigned(Int32Ty, ConstArg); 15615 // Depending on ArgWidth, the input vector could be a float or a double. 15616 // If the input vector is a float type, bitcast the inputs to integers. Or, 15617 // if the input vector is a double, bitcast the inputs to 64-bit integers. 15618 if (!Ops[1]->getType()->isIntegerTy(ArgWidth)) { 15619 Ops[0] = Builder.CreateBitCast( 15620 Ops[0], Is32Bit ? llvm::FixedVectorType::get(Int32Ty, 4) 15621 : llvm::FixedVectorType::get(Int64Ty, 2)); 15622 Ops[1] = Builder.CreateBitCast(Ops[1], Is32Bit ? Int32Ty : Int64Ty); 15623 } 15624 // Emit the call to vinsw or vinsd. 15625 Call = Builder.CreateCall(F, Ops); 15626 // Depending on the builtin, bitcast to the approriate result type. 15627 if (BuiltinID == PPC::BI__builtin_altivec_vec_replace_elt && 15628 !Ops[1]->getType()->isIntegerTy()) 15629 return Builder.CreateBitCast(Call, ResultType); 15630 else if (BuiltinID == PPC::BI__builtin_altivec_vec_replace_elt && 15631 Ops[1]->getType()->isIntegerTy()) 15632 return Call; 15633 else 15634 return Builder.CreateBitCast(Call, 15635 llvm::FixedVectorType::get(Int8Ty, 16)); 15636 } 15637 case PPC::BI__builtin_altivec_vpopcntb: 15638 case PPC::BI__builtin_altivec_vpopcnth: 15639 case PPC::BI__builtin_altivec_vpopcntw: 15640 case PPC::BI__builtin_altivec_vpopcntd: { 15641 llvm::Type *ResultType = ConvertType(E->getType()); 15642 Value *X = EmitScalarExpr(E->getArg(0)); 15643 llvm::Function *F = CGM.getIntrinsic(Intrinsic::ctpop, ResultType); 15644 return Builder.CreateCall(F, X); 15645 } 15646 case PPC::BI__builtin_altivec_vadduqm: 15647 case PPC::BI__builtin_altivec_vsubuqm: { 15648 llvm::Type *Int128Ty = llvm::IntegerType::get(getLLVMContext(), 128); 15649 Ops[0] = 15650 Builder.CreateBitCast(Ops[0], llvm::FixedVectorType::get(Int128Ty, 1)); 15651 Ops[1] = 15652 Builder.CreateBitCast(Ops[1], llvm::FixedVectorType::get(Int128Ty, 1)); 15653 if (BuiltinID == PPC::BI__builtin_altivec_vadduqm) 15654 return Builder.CreateAdd(Ops[0], Ops[1], "vadduqm"); 15655 else 15656 return Builder.CreateSub(Ops[0], Ops[1], "vsubuqm"); 15657 } 15658 // Rotate and insert under mask operation. 15659 // __rldimi(rs, is, shift, mask) 15660 // (rotl64(rs, shift) & mask) | (is & ~mask) 15661 // __rlwimi(rs, is, shift, mask) 15662 // (rotl(rs, shift) & mask) | (is & ~mask) 15663 case PPC::BI__builtin_ppc_rldimi: 15664 case PPC::BI__builtin_ppc_rlwimi: { 15665 llvm::Type *Ty = Ops[0]->getType(); 15666 Function *F = CGM.getIntrinsic(Intrinsic::fshl, Ty); 15667 if (BuiltinID == PPC::BI__builtin_ppc_rldimi) 15668 Ops[2] = Builder.CreateZExt(Ops[2], Int64Ty); 15669 Value *Shift = Builder.CreateCall(F, {Ops[0], Ops[0], Ops[2]}); 15670 Value *X = Builder.CreateAnd(Shift, Ops[3]); 15671 Value *Y = Builder.CreateAnd(Ops[1], Builder.CreateNot(Ops[3])); 15672 return Builder.CreateOr(X, Y); 15673 } 15674 // Rotate and insert under mask operation. 15675 // __rlwnm(rs, shift, mask) 15676 // rotl(rs, shift) & mask 15677 case PPC::BI__builtin_ppc_rlwnm: { 15678 llvm::Type *Ty = Ops[0]->getType(); 15679 Function *F = CGM.getIntrinsic(Intrinsic::fshl, Ty); 15680 Value *Shift = Builder.CreateCall(F, {Ops[0], Ops[0], Ops[1]}); 15681 return Builder.CreateAnd(Shift, Ops[2]); 15682 } 15683 case PPC::BI__builtin_ppc_poppar4: 15684 case PPC::BI__builtin_ppc_poppar8: { 15685 llvm::Type *ArgType = Ops[0]->getType(); 15686 Function *F = CGM.getIntrinsic(Intrinsic::ctpop, ArgType); 15687 Value *Tmp = Builder.CreateCall(F, Ops[0]); 15688 15689 llvm::Type *ResultType = ConvertType(E->getType()); 15690 Value *Result = Builder.CreateAnd(Tmp, llvm::ConstantInt::get(ArgType, 1)); 15691 if (Result->getType() != ResultType) 15692 Result = Builder.CreateIntCast(Result, ResultType, /*isSigned*/true, 15693 "cast"); 15694 return Result; 15695 } 15696 case PPC::BI__builtin_ppc_cmpb: { 15697 if (getTarget().getTriple().isPPC64()) { 15698 Function *F = 15699 CGM.getIntrinsic(Intrinsic::ppc_cmpb, {Int64Ty, Int64Ty, Int64Ty}); 15700 return Builder.CreateCall(F, Ops, "cmpb"); 15701 } 15702 // For 32 bit, emit the code as below: 15703 // %conv = trunc i64 %a to i32 15704 // %conv1 = trunc i64 %b to i32 15705 // %shr = lshr i64 %a, 32 15706 // %conv2 = trunc i64 %shr to i32 15707 // %shr3 = lshr i64 %b, 32 15708 // %conv4 = trunc i64 %shr3 to i32 15709 // %0 = tail call i32 @llvm.ppc.cmpb32(i32 %conv, i32 %conv1) 15710 // %conv5 = zext i32 %0 to i64 15711 // %1 = tail call i32 @llvm.ppc.cmpb32(i32 %conv2, i32 %conv4) 15712 // %conv614 = zext i32 %1 to i64 15713 // %shl = shl nuw i64 %conv614, 32 15714 // %or = or i64 %shl, %conv5 15715 // ret i64 %or 15716 Function *F = 15717 CGM.getIntrinsic(Intrinsic::ppc_cmpb, {Int32Ty, Int32Ty, Int32Ty}); 15718 Value *ArgOneLo = Builder.CreateTrunc(Ops[0], Int32Ty); 15719 Value *ArgTwoLo = Builder.CreateTrunc(Ops[1], Int32Ty); 15720 Constant *ShiftAmt = ConstantInt::get(Int64Ty, 32); 15721 Value *ArgOneHi = 15722 Builder.CreateTrunc(Builder.CreateLShr(Ops[0], ShiftAmt), Int32Ty); 15723 Value *ArgTwoHi = 15724 Builder.CreateTrunc(Builder.CreateLShr(Ops[1], ShiftAmt), Int32Ty); 15725 Value *ResLo = Builder.CreateZExt( 15726 Builder.CreateCall(F, {ArgOneLo, ArgTwoLo}, "cmpb"), Int64Ty); 15727 Value *ResHiShift = Builder.CreateZExt( 15728 Builder.CreateCall(F, {ArgOneHi, ArgTwoHi}, "cmpb"), Int64Ty); 15729 Value *ResHi = Builder.CreateShl(ResHiShift, ShiftAmt); 15730 return Builder.CreateOr(ResLo, ResHi); 15731 } 15732 // Copy sign 15733 case PPC::BI__builtin_vsx_xvcpsgnsp: 15734 case PPC::BI__builtin_vsx_xvcpsgndp: { 15735 llvm::Type *ResultType = ConvertType(E->getType()); 15736 Value *X = EmitScalarExpr(E->getArg(0)); 15737 Value *Y = EmitScalarExpr(E->getArg(1)); 15738 ID = Intrinsic::copysign; 15739 llvm::Function *F = CGM.getIntrinsic(ID, ResultType); 15740 return Builder.CreateCall(F, {X, Y}); 15741 } 15742 // Rounding/truncation 15743 case PPC::BI__builtin_vsx_xvrspip: 15744 case PPC::BI__builtin_vsx_xvrdpip: 15745 case PPC::BI__builtin_vsx_xvrdpim: 15746 case PPC::BI__builtin_vsx_xvrspim: 15747 case PPC::BI__builtin_vsx_xvrdpi: 15748 case PPC::BI__builtin_vsx_xvrspi: 15749 case PPC::BI__builtin_vsx_xvrdpic: 15750 case PPC::BI__builtin_vsx_xvrspic: 15751 case PPC::BI__builtin_vsx_xvrdpiz: 15752 case PPC::BI__builtin_vsx_xvrspiz: { 15753 llvm::Type *ResultType = ConvertType(E->getType()); 15754 Value *X = EmitScalarExpr(E->getArg(0)); 15755 if (BuiltinID == PPC::BI__builtin_vsx_xvrdpim || 15756 BuiltinID == PPC::BI__builtin_vsx_xvrspim) 15757 ID = Builder.getIsFPConstrained() 15758 ? Intrinsic::experimental_constrained_floor 15759 : Intrinsic::floor; 15760 else if (BuiltinID == PPC::BI__builtin_vsx_xvrdpi || 15761 BuiltinID == PPC::BI__builtin_vsx_xvrspi) 15762 ID = Builder.getIsFPConstrained() 15763 ? Intrinsic::experimental_constrained_round 15764 : Intrinsic::round; 15765 else if (BuiltinID == PPC::BI__builtin_vsx_xvrdpic || 15766 BuiltinID == PPC::BI__builtin_vsx_xvrspic) 15767 ID = Builder.getIsFPConstrained() 15768 ? Intrinsic::experimental_constrained_rint 15769 : Intrinsic::rint; 15770 else if (BuiltinID == PPC::BI__builtin_vsx_xvrdpip || 15771 BuiltinID == PPC::BI__builtin_vsx_xvrspip) 15772 ID = Builder.getIsFPConstrained() 15773 ? Intrinsic::experimental_constrained_ceil 15774 : Intrinsic::ceil; 15775 else if (BuiltinID == PPC::BI__builtin_vsx_xvrdpiz || 15776 BuiltinID == PPC::BI__builtin_vsx_xvrspiz) 15777 ID = Builder.getIsFPConstrained() 15778 ? Intrinsic::experimental_constrained_trunc 15779 : Intrinsic::trunc; 15780 llvm::Function *F = CGM.getIntrinsic(ID, ResultType); 15781 return Builder.getIsFPConstrained() ? Builder.CreateConstrainedFPCall(F, X) 15782 : Builder.CreateCall(F, X); 15783 } 15784 15785 // Absolute value 15786 case PPC::BI__builtin_vsx_xvabsdp: 15787 case PPC::BI__builtin_vsx_xvabssp: { 15788 llvm::Type *ResultType = ConvertType(E->getType()); 15789 Value *X = EmitScalarExpr(E->getArg(0)); 15790 llvm::Function *F = CGM.getIntrinsic(Intrinsic::fabs, ResultType); 15791 return Builder.CreateCall(F, X); 15792 } 15793 15794 // Fastmath by default 15795 case PPC::BI__builtin_ppc_recipdivf: 15796 case PPC::BI__builtin_ppc_recipdivd: 15797 case PPC::BI__builtin_ppc_rsqrtf: 15798 case PPC::BI__builtin_ppc_rsqrtd: { 15799 FastMathFlags FMF = Builder.getFastMathFlags(); 15800 Builder.getFastMathFlags().setFast(); 15801 llvm::Type *ResultType = ConvertType(E->getType()); 15802 Value *X = EmitScalarExpr(E->getArg(0)); 15803 15804 if (BuiltinID == PPC::BI__builtin_ppc_recipdivf || 15805 BuiltinID == PPC::BI__builtin_ppc_recipdivd) { 15806 Value *Y = EmitScalarExpr(E->getArg(1)); 15807 Value *FDiv = Builder.CreateFDiv(X, Y, "recipdiv"); 15808 Builder.getFastMathFlags() &= (FMF); 15809 return FDiv; 15810 } 15811 auto *One = ConstantFP::get(ResultType, 1.0); 15812 llvm::Function *F = CGM.getIntrinsic(Intrinsic::sqrt, ResultType); 15813 Value *FDiv = Builder.CreateFDiv(One, Builder.CreateCall(F, X), "rsqrt"); 15814 Builder.getFastMathFlags() &= (FMF); 15815 return FDiv; 15816 } 15817 case PPC::BI__builtin_ppc_alignx: { 15818 ConstantInt *AlignmentCI = cast<ConstantInt>(Ops[0]); 15819 if (AlignmentCI->getValue().ugt(llvm::Value::MaximumAlignment)) 15820 AlignmentCI = ConstantInt::get(AlignmentCI->getType(), 15821 llvm::Value::MaximumAlignment); 15822 15823 emitAlignmentAssumption(Ops[1], E->getArg(1), 15824 /*The expr loc is sufficient.*/ SourceLocation(), 15825 AlignmentCI, nullptr); 15826 return Ops[1]; 15827 } 15828 case PPC::BI__builtin_ppc_rdlam: { 15829 llvm::Type *Ty = Ops[0]->getType(); 15830 Value *ShiftAmt = Builder.CreateIntCast(Ops[1], Ty, false); 15831 Function *F = CGM.getIntrinsic(Intrinsic::fshl, Ty); 15832 Value *Rotate = Builder.CreateCall(F, {Ops[0], Ops[0], ShiftAmt}); 15833 return Builder.CreateAnd(Rotate, Ops[2]); 15834 } 15835 case PPC::BI__builtin_ppc_load2r: { 15836 Function *F = CGM.getIntrinsic(Intrinsic::ppc_load2r); 15837 Ops[0] = Builder.CreateBitCast(Ops[0], Int8PtrTy); 15838 Value *LoadIntrinsic = Builder.CreateCall(F, Ops); 15839 return Builder.CreateTrunc(LoadIntrinsic, Int16Ty); 15840 } 15841 // FMA variations 15842 case PPC::BI__builtin_vsx_xvmaddadp: 15843 case PPC::BI__builtin_vsx_xvmaddasp: 15844 case PPC::BI__builtin_vsx_xvnmaddadp: 15845 case PPC::BI__builtin_vsx_xvnmaddasp: 15846 case PPC::BI__builtin_vsx_xvmsubadp: 15847 case PPC::BI__builtin_vsx_xvmsubasp: 15848 case PPC::BI__builtin_vsx_xvnmsubadp: 15849 case PPC::BI__builtin_vsx_xvnmsubasp: { 15850 llvm::Type *ResultType = ConvertType(E->getType()); 15851 Value *X = EmitScalarExpr(E->getArg(0)); 15852 Value *Y = EmitScalarExpr(E->getArg(1)); 15853 Value *Z = EmitScalarExpr(E->getArg(2)); 15854 llvm::Function *F; 15855 if (Builder.getIsFPConstrained()) 15856 F = CGM.getIntrinsic(Intrinsic::experimental_constrained_fma, ResultType); 15857 else 15858 F = CGM.getIntrinsic(Intrinsic::fma, ResultType); 15859 switch (BuiltinID) { 15860 case PPC::BI__builtin_vsx_xvmaddadp: 15861 case PPC::BI__builtin_vsx_xvmaddasp: 15862 if (Builder.getIsFPConstrained()) 15863 return Builder.CreateConstrainedFPCall(F, {X, Y, Z}); 15864 else 15865 return Builder.CreateCall(F, {X, Y, Z}); 15866 case PPC::BI__builtin_vsx_xvnmaddadp: 15867 case PPC::BI__builtin_vsx_xvnmaddasp: 15868 if (Builder.getIsFPConstrained()) 15869 return Builder.CreateFNeg( 15870 Builder.CreateConstrainedFPCall(F, {X, Y, Z}), "neg"); 15871 else 15872 return Builder.CreateFNeg(Builder.CreateCall(F, {X, Y, Z}), "neg"); 15873 case PPC::BI__builtin_vsx_xvmsubadp: 15874 case PPC::BI__builtin_vsx_xvmsubasp: 15875 if (Builder.getIsFPConstrained()) 15876 return Builder.CreateConstrainedFPCall( 15877 F, {X, Y, Builder.CreateFNeg(Z, "neg")}); 15878 else 15879 return Builder.CreateCall(F, {X, Y, Builder.CreateFNeg(Z, "neg")}); 15880 case PPC::BI__builtin_vsx_xvnmsubadp: 15881 case PPC::BI__builtin_vsx_xvnmsubasp: 15882 if (Builder.getIsFPConstrained()) 15883 return Builder.CreateFNeg( 15884 Builder.CreateConstrainedFPCall( 15885 F, {X, Y, Builder.CreateFNeg(Z, "neg")}), 15886 "neg"); 15887 else 15888 return Builder.CreateFNeg( 15889 Builder.CreateCall(F, {X, Y, Builder.CreateFNeg(Z, "neg")}), 15890 "neg"); 15891 } 15892 llvm_unreachable("Unknown FMA operation"); 15893 return nullptr; // Suppress no-return warning 15894 } 15895 15896 case PPC::BI__builtin_vsx_insertword: { 15897 llvm::Function *F = CGM.getIntrinsic(Intrinsic::ppc_vsx_xxinsertw); 15898 15899 // Third argument is a compile time constant int. It must be clamped to 15900 // to the range [0, 12]. 15901 ConstantInt *ArgCI = dyn_cast<ConstantInt>(Ops[2]); 15902 assert(ArgCI && 15903 "Third arg to xxinsertw intrinsic must be constant integer"); 15904 const int64_t MaxIndex = 12; 15905 int64_t Index = clamp(ArgCI->getSExtValue(), 0, MaxIndex); 15906 15907 // The builtin semantics don't exactly match the xxinsertw instructions 15908 // semantics (which ppc_vsx_xxinsertw follows). The builtin extracts the 15909 // word from the first argument, and inserts it in the second argument. The 15910 // instruction extracts the word from its second input register and inserts 15911 // it into its first input register, so swap the first and second arguments. 15912 std::swap(Ops[0], Ops[1]); 15913 15914 // Need to cast the second argument from a vector of unsigned int to a 15915 // vector of long long. 15916 Ops[1] = 15917 Builder.CreateBitCast(Ops[1], llvm::FixedVectorType::get(Int64Ty, 2)); 15918 15919 if (getTarget().isLittleEndian()) { 15920 // Reverse the double words in the vector we will extract from. 15921 Ops[0] = 15922 Builder.CreateBitCast(Ops[0], llvm::FixedVectorType::get(Int64Ty, 2)); 15923 Ops[0] = Builder.CreateShuffleVector(Ops[0], Ops[0], ArrayRef<int>{1, 0}); 15924 15925 // Reverse the index. 15926 Index = MaxIndex - Index; 15927 } 15928 15929 // Intrinsic expects the first arg to be a vector of int. 15930 Ops[0] = 15931 Builder.CreateBitCast(Ops[0], llvm::FixedVectorType::get(Int32Ty, 4)); 15932 Ops[2] = ConstantInt::getSigned(Int32Ty, Index); 15933 return Builder.CreateCall(F, Ops); 15934 } 15935 15936 case PPC::BI__builtin_vsx_extractuword: { 15937 llvm::Function *F = CGM.getIntrinsic(Intrinsic::ppc_vsx_xxextractuw); 15938 15939 // Intrinsic expects the first argument to be a vector of doublewords. 15940 Ops[0] = 15941 Builder.CreateBitCast(Ops[0], llvm::FixedVectorType::get(Int64Ty, 2)); 15942 15943 // The second argument is a compile time constant int that needs to 15944 // be clamped to the range [0, 12]. 15945 ConstantInt *ArgCI = dyn_cast<ConstantInt>(Ops[1]); 15946 assert(ArgCI && 15947 "Second Arg to xxextractuw intrinsic must be a constant integer!"); 15948 const int64_t MaxIndex = 12; 15949 int64_t Index = clamp(ArgCI->getSExtValue(), 0, MaxIndex); 15950 15951 if (getTarget().isLittleEndian()) { 15952 // Reverse the index. 15953 Index = MaxIndex - Index; 15954 Ops[1] = ConstantInt::getSigned(Int32Ty, Index); 15955 15956 // Emit the call, then reverse the double words of the results vector. 15957 Value *Call = Builder.CreateCall(F, Ops); 15958 15959 Value *ShuffleCall = 15960 Builder.CreateShuffleVector(Call, Call, ArrayRef<int>{1, 0}); 15961 return ShuffleCall; 15962 } else { 15963 Ops[1] = ConstantInt::getSigned(Int32Ty, Index); 15964 return Builder.CreateCall(F, Ops); 15965 } 15966 } 15967 15968 case PPC::BI__builtin_vsx_xxpermdi: { 15969 ConstantInt *ArgCI = dyn_cast<ConstantInt>(Ops[2]); 15970 assert(ArgCI && "Third arg must be constant integer!"); 15971 15972 unsigned Index = ArgCI->getZExtValue(); 15973 Ops[0] = 15974 Builder.CreateBitCast(Ops[0], llvm::FixedVectorType::get(Int64Ty, 2)); 15975 Ops[1] = 15976 Builder.CreateBitCast(Ops[1], llvm::FixedVectorType::get(Int64Ty, 2)); 15977 15978 // Account for endianness by treating this as just a shuffle. So we use the 15979 // same indices for both LE and BE in order to produce expected results in 15980 // both cases. 15981 int ElemIdx0 = (Index & 2) >> 1; 15982 int ElemIdx1 = 2 + (Index & 1); 15983 15984 int ShuffleElts[2] = {ElemIdx0, ElemIdx1}; 15985 Value *ShuffleCall = 15986 Builder.CreateShuffleVector(Ops[0], Ops[1], ShuffleElts); 15987 QualType BIRetType = E->getType(); 15988 auto RetTy = ConvertType(BIRetType); 15989 return Builder.CreateBitCast(ShuffleCall, RetTy); 15990 } 15991 15992 case PPC::BI__builtin_vsx_xxsldwi: { 15993 ConstantInt *ArgCI = dyn_cast<ConstantInt>(Ops[2]); 15994 assert(ArgCI && "Third argument must be a compile time constant"); 15995 unsigned Index = ArgCI->getZExtValue() & 0x3; 15996 Ops[0] = 15997 Builder.CreateBitCast(Ops[0], llvm::FixedVectorType::get(Int32Ty, 4)); 15998 Ops[1] = 15999 Builder.CreateBitCast(Ops[1], llvm::FixedVectorType::get(Int32Ty, 4)); 16000 16001 // Create a shuffle mask 16002 int ElemIdx0; 16003 int ElemIdx1; 16004 int ElemIdx2; 16005 int ElemIdx3; 16006 if (getTarget().isLittleEndian()) { 16007 // Little endian element N comes from element 8+N-Index of the 16008 // concatenated wide vector (of course, using modulo arithmetic on 16009 // the total number of elements). 16010 ElemIdx0 = (8 - Index) % 8; 16011 ElemIdx1 = (9 - Index) % 8; 16012 ElemIdx2 = (10 - Index) % 8; 16013 ElemIdx3 = (11 - Index) % 8; 16014 } else { 16015 // Big endian ElemIdx<N> = Index + N 16016 ElemIdx0 = Index; 16017 ElemIdx1 = Index + 1; 16018 ElemIdx2 = Index + 2; 16019 ElemIdx3 = Index + 3; 16020 } 16021 16022 int ShuffleElts[4] = {ElemIdx0, ElemIdx1, ElemIdx2, ElemIdx3}; 16023 Value *ShuffleCall = 16024 Builder.CreateShuffleVector(Ops[0], Ops[1], ShuffleElts); 16025 QualType BIRetType = E->getType(); 16026 auto RetTy = ConvertType(BIRetType); 16027 return Builder.CreateBitCast(ShuffleCall, RetTy); 16028 } 16029 16030 case PPC::BI__builtin_pack_vector_int128: { 16031 bool isLittleEndian = getTarget().isLittleEndian(); 16032 Value *UndefValue = 16033 llvm::UndefValue::get(llvm::FixedVectorType::get(Ops[0]->getType(), 2)); 16034 Value *Res = Builder.CreateInsertElement( 16035 UndefValue, Ops[0], (uint64_t)(isLittleEndian ? 1 : 0)); 16036 Res = Builder.CreateInsertElement(Res, Ops[1], 16037 (uint64_t)(isLittleEndian ? 0 : 1)); 16038 return Builder.CreateBitCast(Res, ConvertType(E->getType())); 16039 } 16040 16041 case PPC::BI__builtin_unpack_vector_int128: { 16042 ConstantInt *Index = cast<ConstantInt>(Ops[1]); 16043 Value *Unpacked = Builder.CreateBitCast( 16044 Ops[0], llvm::FixedVectorType::get(ConvertType(E->getType()), 2)); 16045 16046 if (getTarget().isLittleEndian()) 16047 Index = ConstantInt::get(Index->getType(), 1 - Index->getZExtValue()); 16048 16049 return Builder.CreateExtractElement(Unpacked, Index); 16050 } 16051 16052 case PPC::BI__builtin_ppc_sthcx: { 16053 llvm::Function *F = CGM.getIntrinsic(Intrinsic::ppc_sthcx); 16054 Ops[0] = Builder.CreateBitCast(Ops[0], Int8PtrTy); 16055 Ops[1] = Builder.CreateSExt(Ops[1], Int32Ty); 16056 return Builder.CreateCall(F, Ops); 16057 } 16058 16059 // The PPC MMA builtins take a pointer to a __vector_quad as an argument. 16060 // Some of the MMA instructions accumulate their result into an existing 16061 // accumulator whereas the others generate a new accumulator. So we need to 16062 // use custom code generation to expand a builtin call with a pointer to a 16063 // load (if the corresponding instruction accumulates its result) followed by 16064 // the call to the intrinsic and a store of the result. 16065 #define CUSTOM_BUILTIN(Name, Intr, Types, Accumulate) \ 16066 case PPC::BI__builtin_##Name: 16067 #include "clang/Basic/BuiltinsPPC.def" 16068 { 16069 // The first argument of these two builtins is a pointer used to store their 16070 // result. However, the llvm intrinsics return their result in multiple 16071 // return values. So, here we emit code extracting these values from the 16072 // intrinsic results and storing them using that pointer. 16073 if (BuiltinID == PPC::BI__builtin_mma_disassemble_acc || 16074 BuiltinID == PPC::BI__builtin_vsx_disassemble_pair || 16075 BuiltinID == PPC::BI__builtin_mma_disassemble_pair) { 16076 unsigned NumVecs = 2; 16077 auto Intrinsic = Intrinsic::ppc_vsx_disassemble_pair; 16078 if (BuiltinID == PPC::BI__builtin_mma_disassemble_acc) { 16079 NumVecs = 4; 16080 Intrinsic = Intrinsic::ppc_mma_disassemble_acc; 16081 } 16082 llvm::Function *F = CGM.getIntrinsic(Intrinsic); 16083 Address Addr = EmitPointerWithAlignment(E->getArg(1)); 16084 Value *Vec = Builder.CreateLoad(Addr); 16085 Value *Call = Builder.CreateCall(F, {Vec}); 16086 llvm::Type *VTy = llvm::FixedVectorType::get(Int8Ty, 16); 16087 Value *Ptr = Builder.CreateBitCast(Ops[0], VTy->getPointerTo()); 16088 for (unsigned i=0; i<NumVecs; i++) { 16089 Value *Vec = Builder.CreateExtractValue(Call, i); 16090 llvm::ConstantInt* Index = llvm::ConstantInt::get(IntTy, i); 16091 Value *GEP = Builder.CreateInBoundsGEP(VTy, Ptr, Index); 16092 Builder.CreateAlignedStore(Vec, GEP, MaybeAlign(16)); 16093 } 16094 return Call; 16095 } 16096 if (BuiltinID == PPC::BI__builtin_vsx_build_pair || 16097 BuiltinID == PPC::BI__builtin_mma_build_acc) { 16098 // Reverse the order of the operands for LE, so the 16099 // same builtin call can be used on both LE and BE 16100 // without the need for the programmer to swap operands. 16101 // The operands are reversed starting from the second argument, 16102 // the first operand is the pointer to the pair/accumulator 16103 // that is being built. 16104 if (getTarget().isLittleEndian()) 16105 std::reverse(Ops.begin() + 1, Ops.end()); 16106 } 16107 bool Accumulate; 16108 switch (BuiltinID) { 16109 #define CUSTOM_BUILTIN(Name, Intr, Types, Acc) \ 16110 case PPC::BI__builtin_##Name: \ 16111 ID = Intrinsic::ppc_##Intr; \ 16112 Accumulate = Acc; \ 16113 break; 16114 #include "clang/Basic/BuiltinsPPC.def" 16115 } 16116 if (BuiltinID == PPC::BI__builtin_vsx_lxvp || 16117 BuiltinID == PPC::BI__builtin_vsx_stxvp || 16118 BuiltinID == PPC::BI__builtin_mma_lxvp || 16119 BuiltinID == PPC::BI__builtin_mma_stxvp) { 16120 if (BuiltinID == PPC::BI__builtin_vsx_lxvp || 16121 BuiltinID == PPC::BI__builtin_mma_lxvp) { 16122 Ops[1] = Builder.CreateBitCast(Ops[1], Int8PtrTy); 16123 Ops[0] = Builder.CreateGEP(Int8Ty, Ops[1], Ops[0]); 16124 } else { 16125 Ops[2] = Builder.CreateBitCast(Ops[2], Int8PtrTy); 16126 Ops[1] = Builder.CreateGEP(Int8Ty, Ops[2], Ops[1]); 16127 } 16128 Ops.pop_back(); 16129 llvm::Function *F = CGM.getIntrinsic(ID); 16130 return Builder.CreateCall(F, Ops, ""); 16131 } 16132 SmallVector<Value*, 4> CallOps; 16133 if (Accumulate) { 16134 Address Addr = EmitPointerWithAlignment(E->getArg(0)); 16135 Value *Acc = Builder.CreateLoad(Addr); 16136 CallOps.push_back(Acc); 16137 } 16138 for (unsigned i=1; i<Ops.size(); i++) 16139 CallOps.push_back(Ops[i]); 16140 llvm::Function *F = CGM.getIntrinsic(ID); 16141 Value *Call = Builder.CreateCall(F, CallOps); 16142 return Builder.CreateAlignedStore(Call, Ops[0], MaybeAlign(64)); 16143 } 16144 16145 case PPC::BI__builtin_ppc_compare_and_swap: 16146 case PPC::BI__builtin_ppc_compare_and_swaplp: { 16147 Address Addr = EmitPointerWithAlignment(E->getArg(0)); 16148 Address OldValAddr = EmitPointerWithAlignment(E->getArg(1)); 16149 Value *OldVal = Builder.CreateLoad(OldValAddr); 16150 QualType AtomicTy = E->getArg(0)->getType()->getPointeeType(); 16151 LValue LV = MakeAddrLValue(Addr, AtomicTy); 16152 auto Pair = EmitAtomicCompareExchange( 16153 LV, RValue::get(OldVal), RValue::get(Ops[2]), E->getExprLoc(), 16154 llvm::AtomicOrdering::Monotonic, llvm::AtomicOrdering::Monotonic, true); 16155 // Unlike c11's atomic_compare_exchange, accroding to 16156 // https://www.ibm.com/docs/en/xl-c-and-cpp-aix/16.1?topic=functions-compare-swap-compare-swaplp 16157 // > In either case, the contents of the memory location specified by addr 16158 // > are copied into the memory location specified by old_val_addr. 16159 // But it hasn't specified storing to OldValAddr is atomic or not and 16160 // which order to use. Now following XL's codegen, treat it as a normal 16161 // store. 16162 Value *LoadedVal = Pair.first.getScalarVal(); 16163 Builder.CreateStore(LoadedVal, OldValAddr); 16164 return Builder.CreateZExt(Pair.second, Builder.getInt32Ty()); 16165 } 16166 case PPC::BI__builtin_ppc_fetch_and_add: 16167 case PPC::BI__builtin_ppc_fetch_and_addlp: { 16168 return MakeBinaryAtomicValue(*this, AtomicRMWInst::Add, E, 16169 llvm::AtomicOrdering::Monotonic); 16170 } 16171 case PPC::BI__builtin_ppc_fetch_and_and: 16172 case PPC::BI__builtin_ppc_fetch_and_andlp: { 16173 return MakeBinaryAtomicValue(*this, AtomicRMWInst::And, E, 16174 llvm::AtomicOrdering::Monotonic); 16175 } 16176 16177 case PPC::BI__builtin_ppc_fetch_and_or: 16178 case PPC::BI__builtin_ppc_fetch_and_orlp: { 16179 return MakeBinaryAtomicValue(*this, AtomicRMWInst::Or, E, 16180 llvm::AtomicOrdering::Monotonic); 16181 } 16182 case PPC::BI__builtin_ppc_fetch_and_swap: 16183 case PPC::BI__builtin_ppc_fetch_and_swaplp: { 16184 return MakeBinaryAtomicValue(*this, AtomicRMWInst::Xchg, E, 16185 llvm::AtomicOrdering::Monotonic); 16186 } 16187 case PPC::BI__builtin_ppc_ldarx: 16188 case PPC::BI__builtin_ppc_lwarx: 16189 case PPC::BI__builtin_ppc_lharx: 16190 case PPC::BI__builtin_ppc_lbarx: 16191 return emitPPCLoadReserveIntrinsic(*this, BuiltinID, E); 16192 case PPC::BI__builtin_ppc_mfspr: { 16193 llvm::Type *RetType = CGM.getDataLayout().getTypeSizeInBits(VoidPtrTy) == 32 16194 ? Int32Ty 16195 : Int64Ty; 16196 Function *F = CGM.getIntrinsic(Intrinsic::ppc_mfspr, RetType); 16197 return Builder.CreateCall(F, Ops); 16198 } 16199 case PPC::BI__builtin_ppc_mtspr: { 16200 llvm::Type *RetType = CGM.getDataLayout().getTypeSizeInBits(VoidPtrTy) == 32 16201 ? Int32Ty 16202 : Int64Ty; 16203 Function *F = CGM.getIntrinsic(Intrinsic::ppc_mtspr, RetType); 16204 return Builder.CreateCall(F, Ops); 16205 } 16206 case PPC::BI__builtin_ppc_popcntb: { 16207 Value *ArgValue = EmitScalarExpr(E->getArg(0)); 16208 llvm::Type *ArgType = ArgValue->getType(); 16209 Function *F = CGM.getIntrinsic(Intrinsic::ppc_popcntb, {ArgType, ArgType}); 16210 return Builder.CreateCall(F, Ops, "popcntb"); 16211 } 16212 case PPC::BI__builtin_ppc_mtfsf: { 16213 // The builtin takes a uint32 that needs to be cast to an 16214 // f64 to be passed to the intrinsic. 16215 Value *Cast = Builder.CreateUIToFP(Ops[1], DoubleTy); 16216 llvm::Function *F = CGM.getIntrinsic(Intrinsic::ppc_mtfsf); 16217 return Builder.CreateCall(F, {Ops[0], Cast}, ""); 16218 } 16219 16220 case PPC::BI__builtin_ppc_swdiv_nochk: 16221 case PPC::BI__builtin_ppc_swdivs_nochk: { 16222 FastMathFlags FMF = Builder.getFastMathFlags(); 16223 Builder.getFastMathFlags().setFast(); 16224 Value *FDiv = Builder.CreateFDiv(Ops[0], Ops[1], "swdiv_nochk"); 16225 Builder.getFastMathFlags() &= (FMF); 16226 return FDiv; 16227 } 16228 case PPC::BI__builtin_ppc_fric: 16229 return RValue::get(emitUnaryMaybeConstrainedFPBuiltin( 16230 *this, E, Intrinsic::rint, 16231 Intrinsic::experimental_constrained_rint)) 16232 .getScalarVal(); 16233 case PPC::BI__builtin_ppc_frim: 16234 case PPC::BI__builtin_ppc_frims: 16235 return RValue::get(emitUnaryMaybeConstrainedFPBuiltin( 16236 *this, E, Intrinsic::floor, 16237 Intrinsic::experimental_constrained_floor)) 16238 .getScalarVal(); 16239 case PPC::BI__builtin_ppc_frin: 16240 case PPC::BI__builtin_ppc_frins: 16241 return RValue::get(emitUnaryMaybeConstrainedFPBuiltin( 16242 *this, E, Intrinsic::round, 16243 Intrinsic::experimental_constrained_round)) 16244 .getScalarVal(); 16245 case PPC::BI__builtin_ppc_frip: 16246 case PPC::BI__builtin_ppc_frips: 16247 return RValue::get(emitUnaryMaybeConstrainedFPBuiltin( 16248 *this, E, Intrinsic::ceil, 16249 Intrinsic::experimental_constrained_ceil)) 16250 .getScalarVal(); 16251 case PPC::BI__builtin_ppc_friz: 16252 case PPC::BI__builtin_ppc_frizs: 16253 return RValue::get(emitUnaryMaybeConstrainedFPBuiltin( 16254 *this, E, Intrinsic::trunc, 16255 Intrinsic::experimental_constrained_trunc)) 16256 .getScalarVal(); 16257 case PPC::BI__builtin_ppc_fsqrt: 16258 case PPC::BI__builtin_ppc_fsqrts: 16259 return RValue::get(emitUnaryMaybeConstrainedFPBuiltin( 16260 *this, E, Intrinsic::sqrt, 16261 Intrinsic::experimental_constrained_sqrt)) 16262 .getScalarVal(); 16263 case PPC::BI__builtin_ppc_test_data_class: { 16264 llvm::Type *ArgType = EmitScalarExpr(E->getArg(0))->getType(); 16265 unsigned IntrinsicID; 16266 if (ArgType->isDoubleTy()) 16267 IntrinsicID = Intrinsic::ppc_test_data_class_d; 16268 else if (ArgType->isFloatTy()) 16269 IntrinsicID = Intrinsic::ppc_test_data_class_f; 16270 else 16271 llvm_unreachable("Invalid Argument Type"); 16272 return Builder.CreateCall(CGM.getIntrinsic(IntrinsicID), Ops, 16273 "test_data_class"); 16274 } 16275 case PPC::BI__builtin_ppc_swdiv: 16276 case PPC::BI__builtin_ppc_swdivs: 16277 return Builder.CreateFDiv(Ops[0], Ops[1], "swdiv"); 16278 } 16279 } 16280 16281 namespace { 16282 // If \p E is not null pointer, insert address space cast to match return 16283 // type of \p E if necessary. 16284 Value *EmitAMDGPUDispatchPtr(CodeGenFunction &CGF, 16285 const CallExpr *E = nullptr) { 16286 auto *F = CGF.CGM.getIntrinsic(Intrinsic::amdgcn_dispatch_ptr); 16287 auto *Call = CGF.Builder.CreateCall(F); 16288 Call->addRetAttr( 16289 Attribute::getWithDereferenceableBytes(Call->getContext(), 64)); 16290 Call->addRetAttr(Attribute::getWithAlignment(Call->getContext(), Align(4))); 16291 if (!E) 16292 return Call; 16293 QualType BuiltinRetType = E->getType(); 16294 auto *RetTy = cast<llvm::PointerType>(CGF.ConvertType(BuiltinRetType)); 16295 if (RetTy == Call->getType()) 16296 return Call; 16297 return CGF.Builder.CreateAddrSpaceCast(Call, RetTy); 16298 } 16299 16300 // \p Index is 0, 1, and 2 for x, y, and z dimension, respectively. 16301 Value *EmitAMDGPUWorkGroupSize(CodeGenFunction &CGF, unsigned Index) { 16302 const unsigned XOffset = 4; 16303 auto *DP = EmitAMDGPUDispatchPtr(CGF); 16304 // Indexing the HSA kernel_dispatch_packet struct. 16305 auto *Offset = llvm::ConstantInt::get(CGF.Int32Ty, XOffset + Index * 2); 16306 auto *GEP = CGF.Builder.CreateGEP(CGF.Int8Ty, DP, Offset); 16307 auto *DstTy = 16308 CGF.Int16Ty->getPointerTo(GEP->getType()->getPointerAddressSpace()); 16309 auto *Cast = CGF.Builder.CreateBitCast(GEP, DstTy); 16310 auto *LD = CGF.Builder.CreateLoad( 16311 Address(Cast, CGF.Int16Ty, CharUnits::fromQuantity(2))); 16312 llvm::MDBuilder MDHelper(CGF.getLLVMContext()); 16313 llvm::MDNode *RNode = MDHelper.createRange(APInt(16, 1), 16314 APInt(16, CGF.getTarget().getMaxOpenCLWorkGroupSize() + 1)); 16315 LD->setMetadata(llvm::LLVMContext::MD_range, RNode); 16316 LD->setMetadata(llvm::LLVMContext::MD_invariant_load, 16317 llvm::MDNode::get(CGF.getLLVMContext(), None)); 16318 return LD; 16319 } 16320 16321 // \p Index is 0, 1, and 2 for x, y, and z dimension, respectively. 16322 Value *EmitAMDGPUGridSize(CodeGenFunction &CGF, unsigned Index) { 16323 const unsigned XOffset = 12; 16324 auto *DP = EmitAMDGPUDispatchPtr(CGF); 16325 // Indexing the HSA kernel_dispatch_packet struct. 16326 auto *Offset = llvm::ConstantInt::get(CGF.Int32Ty, XOffset + Index * 4); 16327 auto *GEP = CGF.Builder.CreateGEP(CGF.Int8Ty, DP, Offset); 16328 auto *DstTy = 16329 CGF.Int32Ty->getPointerTo(GEP->getType()->getPointerAddressSpace()); 16330 auto *Cast = CGF.Builder.CreateBitCast(GEP, DstTy); 16331 auto *LD = CGF.Builder.CreateLoad( 16332 Address(Cast, CGF.Int32Ty, CharUnits::fromQuantity(4))); 16333 LD->setMetadata(llvm::LLVMContext::MD_invariant_load, 16334 llvm::MDNode::get(CGF.getLLVMContext(), None)); 16335 return LD; 16336 } 16337 } // namespace 16338 16339 // For processing memory ordering and memory scope arguments of various 16340 // amdgcn builtins. 16341 // \p Order takes a C++11 comptabile memory-ordering specifier and converts 16342 // it into LLVM's memory ordering specifier using atomic C ABI, and writes 16343 // to \p AO. \p Scope takes a const char * and converts it into AMDGCN 16344 // specific SyncScopeID and writes it to \p SSID. 16345 bool CodeGenFunction::ProcessOrderScopeAMDGCN(Value *Order, Value *Scope, 16346 llvm::AtomicOrdering &AO, 16347 llvm::SyncScope::ID &SSID) { 16348 if (isa<llvm::ConstantInt>(Order)) { 16349 int ord = cast<llvm::ConstantInt>(Order)->getZExtValue(); 16350 16351 // Map C11/C++11 memory ordering to LLVM memory ordering 16352 assert(llvm::isValidAtomicOrderingCABI(ord)); 16353 switch (static_cast<llvm::AtomicOrderingCABI>(ord)) { 16354 case llvm::AtomicOrderingCABI::acquire: 16355 case llvm::AtomicOrderingCABI::consume: 16356 AO = llvm::AtomicOrdering::Acquire; 16357 break; 16358 case llvm::AtomicOrderingCABI::release: 16359 AO = llvm::AtomicOrdering::Release; 16360 break; 16361 case llvm::AtomicOrderingCABI::acq_rel: 16362 AO = llvm::AtomicOrdering::AcquireRelease; 16363 break; 16364 case llvm::AtomicOrderingCABI::seq_cst: 16365 AO = llvm::AtomicOrdering::SequentiallyConsistent; 16366 break; 16367 case llvm::AtomicOrderingCABI::relaxed: 16368 AO = llvm::AtomicOrdering::Monotonic; 16369 break; 16370 } 16371 16372 StringRef scp; 16373 llvm::getConstantStringInfo(Scope, scp); 16374 SSID = getLLVMContext().getOrInsertSyncScopeID(scp); 16375 return true; 16376 } 16377 return false; 16378 } 16379 16380 Value *CodeGenFunction::EmitAMDGPUBuiltinExpr(unsigned BuiltinID, 16381 const CallExpr *E) { 16382 llvm::AtomicOrdering AO = llvm::AtomicOrdering::SequentiallyConsistent; 16383 llvm::SyncScope::ID SSID; 16384 switch (BuiltinID) { 16385 case AMDGPU::BI__builtin_amdgcn_div_scale: 16386 case AMDGPU::BI__builtin_amdgcn_div_scalef: { 16387 // Translate from the intrinsics's struct return to the builtin's out 16388 // argument. 16389 16390 Address FlagOutPtr = EmitPointerWithAlignment(E->getArg(3)); 16391 16392 llvm::Value *X = EmitScalarExpr(E->getArg(0)); 16393 llvm::Value *Y = EmitScalarExpr(E->getArg(1)); 16394 llvm::Value *Z = EmitScalarExpr(E->getArg(2)); 16395 16396 llvm::Function *Callee = CGM.getIntrinsic(Intrinsic::amdgcn_div_scale, 16397 X->getType()); 16398 16399 llvm::Value *Tmp = Builder.CreateCall(Callee, {X, Y, Z}); 16400 16401 llvm::Value *Result = Builder.CreateExtractValue(Tmp, 0); 16402 llvm::Value *Flag = Builder.CreateExtractValue(Tmp, 1); 16403 16404 llvm::Type *RealFlagType = FlagOutPtr.getElementType(); 16405 16406 llvm::Value *FlagExt = Builder.CreateZExt(Flag, RealFlagType); 16407 Builder.CreateStore(FlagExt, FlagOutPtr); 16408 return Result; 16409 } 16410 case AMDGPU::BI__builtin_amdgcn_div_fmas: 16411 case AMDGPU::BI__builtin_amdgcn_div_fmasf: { 16412 llvm::Value *Src0 = EmitScalarExpr(E->getArg(0)); 16413 llvm::Value *Src1 = EmitScalarExpr(E->getArg(1)); 16414 llvm::Value *Src2 = EmitScalarExpr(E->getArg(2)); 16415 llvm::Value *Src3 = EmitScalarExpr(E->getArg(3)); 16416 16417 llvm::Function *F = CGM.getIntrinsic(Intrinsic::amdgcn_div_fmas, 16418 Src0->getType()); 16419 llvm::Value *Src3ToBool = Builder.CreateIsNotNull(Src3); 16420 return Builder.CreateCall(F, {Src0, Src1, Src2, Src3ToBool}); 16421 } 16422 16423 case AMDGPU::BI__builtin_amdgcn_ds_swizzle: 16424 return emitBinaryBuiltin(*this, E, Intrinsic::amdgcn_ds_swizzle); 16425 case AMDGPU::BI__builtin_amdgcn_mov_dpp8: 16426 return emitBinaryBuiltin(*this, E, Intrinsic::amdgcn_mov_dpp8); 16427 case AMDGPU::BI__builtin_amdgcn_mov_dpp: 16428 case AMDGPU::BI__builtin_amdgcn_update_dpp: { 16429 llvm::SmallVector<llvm::Value *, 6> Args; 16430 for (unsigned I = 0; I != E->getNumArgs(); ++I) 16431 Args.push_back(EmitScalarExpr(E->getArg(I))); 16432 assert(Args.size() == 5 || Args.size() == 6); 16433 if (Args.size() == 5) 16434 Args.insert(Args.begin(), llvm::UndefValue::get(Args[0]->getType())); 16435 Function *F = 16436 CGM.getIntrinsic(Intrinsic::amdgcn_update_dpp, Args[0]->getType()); 16437 return Builder.CreateCall(F, Args); 16438 } 16439 case AMDGPU::BI__builtin_amdgcn_div_fixup: 16440 case AMDGPU::BI__builtin_amdgcn_div_fixupf: 16441 case AMDGPU::BI__builtin_amdgcn_div_fixuph: 16442 return emitTernaryBuiltin(*this, E, Intrinsic::amdgcn_div_fixup); 16443 case AMDGPU::BI__builtin_amdgcn_trig_preop: 16444 case AMDGPU::BI__builtin_amdgcn_trig_preopf: 16445 return emitFPIntBuiltin(*this, E, Intrinsic::amdgcn_trig_preop); 16446 case AMDGPU::BI__builtin_amdgcn_rcp: 16447 case AMDGPU::BI__builtin_amdgcn_rcpf: 16448 case AMDGPU::BI__builtin_amdgcn_rcph: 16449 return emitUnaryBuiltin(*this, E, Intrinsic::amdgcn_rcp); 16450 case AMDGPU::BI__builtin_amdgcn_sqrt: 16451 case AMDGPU::BI__builtin_amdgcn_sqrtf: 16452 case AMDGPU::BI__builtin_amdgcn_sqrth: 16453 return emitUnaryBuiltin(*this, E, Intrinsic::amdgcn_sqrt); 16454 case AMDGPU::BI__builtin_amdgcn_rsq: 16455 case AMDGPU::BI__builtin_amdgcn_rsqf: 16456 case AMDGPU::BI__builtin_amdgcn_rsqh: 16457 return emitUnaryBuiltin(*this, E, Intrinsic::amdgcn_rsq); 16458 case AMDGPU::BI__builtin_amdgcn_rsq_clamp: 16459 case AMDGPU::BI__builtin_amdgcn_rsq_clampf: 16460 return emitUnaryBuiltin(*this, E, Intrinsic::amdgcn_rsq_clamp); 16461 case AMDGPU::BI__builtin_amdgcn_sinf: 16462 case AMDGPU::BI__builtin_amdgcn_sinh: 16463 return emitUnaryBuiltin(*this, E, Intrinsic::amdgcn_sin); 16464 case AMDGPU::BI__builtin_amdgcn_cosf: 16465 case AMDGPU::BI__builtin_amdgcn_cosh: 16466 return emitUnaryBuiltin(*this, E, Intrinsic::amdgcn_cos); 16467 case AMDGPU::BI__builtin_amdgcn_dispatch_ptr: 16468 return EmitAMDGPUDispatchPtr(*this, E); 16469 case AMDGPU::BI__builtin_amdgcn_log_clampf: 16470 return emitUnaryBuiltin(*this, E, Intrinsic::amdgcn_log_clamp); 16471 case AMDGPU::BI__builtin_amdgcn_ldexp: 16472 case AMDGPU::BI__builtin_amdgcn_ldexpf: 16473 case AMDGPU::BI__builtin_amdgcn_ldexph: 16474 return emitFPIntBuiltin(*this, E, Intrinsic::amdgcn_ldexp); 16475 case AMDGPU::BI__builtin_amdgcn_frexp_mant: 16476 case AMDGPU::BI__builtin_amdgcn_frexp_mantf: 16477 case AMDGPU::BI__builtin_amdgcn_frexp_manth: 16478 return emitUnaryBuiltin(*this, E, Intrinsic::amdgcn_frexp_mant); 16479 case AMDGPU::BI__builtin_amdgcn_frexp_exp: 16480 case AMDGPU::BI__builtin_amdgcn_frexp_expf: { 16481 Value *Src0 = EmitScalarExpr(E->getArg(0)); 16482 Function *F = CGM.getIntrinsic(Intrinsic::amdgcn_frexp_exp, 16483 { Builder.getInt32Ty(), Src0->getType() }); 16484 return Builder.CreateCall(F, Src0); 16485 } 16486 case AMDGPU::BI__builtin_amdgcn_frexp_exph: { 16487 Value *Src0 = EmitScalarExpr(E->getArg(0)); 16488 Function *F = CGM.getIntrinsic(Intrinsic::amdgcn_frexp_exp, 16489 { Builder.getInt16Ty(), Src0->getType() }); 16490 return Builder.CreateCall(F, Src0); 16491 } 16492 case AMDGPU::BI__builtin_amdgcn_fract: 16493 case AMDGPU::BI__builtin_amdgcn_fractf: 16494 case AMDGPU::BI__builtin_amdgcn_fracth: 16495 return emitUnaryBuiltin(*this, E, Intrinsic::amdgcn_fract); 16496 case AMDGPU::BI__builtin_amdgcn_lerp: 16497 return emitTernaryBuiltin(*this, E, Intrinsic::amdgcn_lerp); 16498 case AMDGPU::BI__builtin_amdgcn_ubfe: 16499 return emitTernaryBuiltin(*this, E, Intrinsic::amdgcn_ubfe); 16500 case AMDGPU::BI__builtin_amdgcn_sbfe: 16501 return emitTernaryBuiltin(*this, E, Intrinsic::amdgcn_sbfe); 16502 case AMDGPU::BI__builtin_amdgcn_uicmp: 16503 case AMDGPU::BI__builtin_amdgcn_uicmpl: 16504 case AMDGPU::BI__builtin_amdgcn_sicmp: 16505 case AMDGPU::BI__builtin_amdgcn_sicmpl: { 16506 llvm::Value *Src0 = EmitScalarExpr(E->getArg(0)); 16507 llvm::Value *Src1 = EmitScalarExpr(E->getArg(1)); 16508 llvm::Value *Src2 = EmitScalarExpr(E->getArg(2)); 16509 16510 // FIXME-GFX10: How should 32 bit mask be handled? 16511 Function *F = CGM.getIntrinsic(Intrinsic::amdgcn_icmp, 16512 { Builder.getInt64Ty(), Src0->getType() }); 16513 return Builder.CreateCall(F, { Src0, Src1, Src2 }); 16514 } 16515 case AMDGPU::BI__builtin_amdgcn_fcmp: 16516 case AMDGPU::BI__builtin_amdgcn_fcmpf: { 16517 llvm::Value *Src0 = EmitScalarExpr(E->getArg(0)); 16518 llvm::Value *Src1 = EmitScalarExpr(E->getArg(1)); 16519 llvm::Value *Src2 = EmitScalarExpr(E->getArg(2)); 16520 16521 // FIXME-GFX10: How should 32 bit mask be handled? 16522 Function *F = CGM.getIntrinsic(Intrinsic::amdgcn_fcmp, 16523 { Builder.getInt64Ty(), Src0->getType() }); 16524 return Builder.CreateCall(F, { Src0, Src1, Src2 }); 16525 } 16526 case AMDGPU::BI__builtin_amdgcn_class: 16527 case AMDGPU::BI__builtin_amdgcn_classf: 16528 case AMDGPU::BI__builtin_amdgcn_classh: 16529 return emitFPIntBuiltin(*this, E, Intrinsic::amdgcn_class); 16530 case AMDGPU::BI__builtin_amdgcn_fmed3f: 16531 case AMDGPU::BI__builtin_amdgcn_fmed3h: 16532 return emitTernaryBuiltin(*this, E, Intrinsic::amdgcn_fmed3); 16533 case AMDGPU::BI__builtin_amdgcn_ds_append: 16534 case AMDGPU::BI__builtin_amdgcn_ds_consume: { 16535 Intrinsic::ID Intrin = BuiltinID == AMDGPU::BI__builtin_amdgcn_ds_append ? 16536 Intrinsic::amdgcn_ds_append : Intrinsic::amdgcn_ds_consume; 16537 Value *Src0 = EmitScalarExpr(E->getArg(0)); 16538 Function *F = CGM.getIntrinsic(Intrin, { Src0->getType() }); 16539 return Builder.CreateCall(F, { Src0, Builder.getFalse() }); 16540 } 16541 case AMDGPU::BI__builtin_amdgcn_ds_faddf: 16542 case AMDGPU::BI__builtin_amdgcn_ds_fminf: 16543 case AMDGPU::BI__builtin_amdgcn_ds_fmaxf: { 16544 Intrinsic::ID Intrin; 16545 switch (BuiltinID) { 16546 case AMDGPU::BI__builtin_amdgcn_ds_faddf: 16547 Intrin = Intrinsic::amdgcn_ds_fadd; 16548 break; 16549 case AMDGPU::BI__builtin_amdgcn_ds_fminf: 16550 Intrin = Intrinsic::amdgcn_ds_fmin; 16551 break; 16552 case AMDGPU::BI__builtin_amdgcn_ds_fmaxf: 16553 Intrin = Intrinsic::amdgcn_ds_fmax; 16554 break; 16555 } 16556 llvm::Value *Src0 = EmitScalarExpr(E->getArg(0)); 16557 llvm::Value *Src1 = EmitScalarExpr(E->getArg(1)); 16558 llvm::Value *Src2 = EmitScalarExpr(E->getArg(2)); 16559 llvm::Value *Src3 = EmitScalarExpr(E->getArg(3)); 16560 llvm::Value *Src4 = EmitScalarExpr(E->getArg(4)); 16561 llvm::Function *F = CGM.getIntrinsic(Intrin, { Src1->getType() }); 16562 llvm::FunctionType *FTy = F->getFunctionType(); 16563 llvm::Type *PTy = FTy->getParamType(0); 16564 Src0 = Builder.CreatePointerBitCastOrAddrSpaceCast(Src0, PTy); 16565 return Builder.CreateCall(F, { Src0, Src1, Src2, Src3, Src4 }); 16566 } 16567 case AMDGPU::BI__builtin_amdgcn_global_atomic_fadd_f64: 16568 case AMDGPU::BI__builtin_amdgcn_global_atomic_fadd_f32: 16569 case AMDGPU::BI__builtin_amdgcn_global_atomic_fadd_v2f16: 16570 case AMDGPU::BI__builtin_amdgcn_global_atomic_fmin_f64: 16571 case AMDGPU::BI__builtin_amdgcn_global_atomic_fmax_f64: 16572 case AMDGPU::BI__builtin_amdgcn_flat_atomic_fadd_f64: 16573 case AMDGPU::BI__builtin_amdgcn_flat_atomic_fmin_f64: 16574 case AMDGPU::BI__builtin_amdgcn_flat_atomic_fmax_f64: { 16575 Intrinsic::ID IID; 16576 llvm::Type *ArgTy = llvm::Type::getDoubleTy(getLLVMContext()); 16577 switch (BuiltinID) { 16578 case AMDGPU::BI__builtin_amdgcn_global_atomic_fadd_f32: 16579 ArgTy = llvm::Type::getFloatTy(getLLVMContext()); 16580 IID = Intrinsic::amdgcn_global_atomic_fadd; 16581 break; 16582 case AMDGPU::BI__builtin_amdgcn_global_atomic_fadd_v2f16: 16583 ArgTy = llvm::FixedVectorType::get( 16584 llvm::Type::getHalfTy(getLLVMContext()), 2); 16585 IID = Intrinsic::amdgcn_global_atomic_fadd; 16586 break; 16587 case AMDGPU::BI__builtin_amdgcn_global_atomic_fadd_f64: 16588 IID = Intrinsic::amdgcn_global_atomic_fadd; 16589 break; 16590 case AMDGPU::BI__builtin_amdgcn_global_atomic_fmin_f64: 16591 IID = Intrinsic::amdgcn_global_atomic_fmin; 16592 break; 16593 case AMDGPU::BI__builtin_amdgcn_global_atomic_fmax_f64: 16594 IID = Intrinsic::amdgcn_global_atomic_fmax; 16595 break; 16596 case AMDGPU::BI__builtin_amdgcn_flat_atomic_fadd_f64: 16597 IID = Intrinsic::amdgcn_flat_atomic_fadd; 16598 break; 16599 case AMDGPU::BI__builtin_amdgcn_flat_atomic_fmin_f64: 16600 IID = Intrinsic::amdgcn_flat_atomic_fmin; 16601 break; 16602 case AMDGPU::BI__builtin_amdgcn_flat_atomic_fmax_f64: 16603 IID = Intrinsic::amdgcn_flat_atomic_fmax; 16604 break; 16605 } 16606 llvm::Value *Addr = EmitScalarExpr(E->getArg(0)); 16607 llvm::Value *Val = EmitScalarExpr(E->getArg(1)); 16608 llvm::Function *F = 16609 CGM.getIntrinsic(IID, {ArgTy, Addr->getType(), Val->getType()}); 16610 return Builder.CreateCall(F, {Addr, Val}); 16611 } 16612 case AMDGPU::BI__builtin_amdgcn_ds_atomic_fadd_f64: 16613 case AMDGPU::BI__builtin_amdgcn_ds_atomic_fadd_f32: { 16614 Intrinsic::ID IID; 16615 llvm::Type *ArgTy; 16616 switch (BuiltinID) { 16617 case AMDGPU::BI__builtin_amdgcn_ds_atomic_fadd_f32: 16618 ArgTy = llvm::Type::getFloatTy(getLLVMContext()); 16619 IID = Intrinsic::amdgcn_ds_fadd; 16620 break; 16621 case AMDGPU::BI__builtin_amdgcn_ds_atomic_fadd_f64: 16622 ArgTy = llvm::Type::getDoubleTy(getLLVMContext()); 16623 IID = Intrinsic::amdgcn_ds_fadd; 16624 break; 16625 } 16626 llvm::Value *Addr = EmitScalarExpr(E->getArg(0)); 16627 llvm::Value *Val = EmitScalarExpr(E->getArg(1)); 16628 llvm::Constant *ZeroI32 = llvm::ConstantInt::getIntegerValue( 16629 llvm::Type::getInt32Ty(getLLVMContext()), APInt(32, 0, true)); 16630 llvm::Constant *ZeroI1 = llvm::ConstantInt::getIntegerValue( 16631 llvm::Type::getInt1Ty(getLLVMContext()), APInt(1, 0)); 16632 llvm::Function *F = CGM.getIntrinsic(IID, {ArgTy}); 16633 return Builder.CreateCall(F, {Addr, Val, ZeroI32, ZeroI32, ZeroI1}); 16634 } 16635 case AMDGPU::BI__builtin_amdgcn_read_exec: { 16636 CallInst *CI = cast<CallInst>( 16637 EmitSpecialRegisterBuiltin(*this, E, Int64Ty, Int64Ty, NormalRead, "exec")); 16638 CI->setConvergent(); 16639 return CI; 16640 } 16641 case AMDGPU::BI__builtin_amdgcn_read_exec_lo: 16642 case AMDGPU::BI__builtin_amdgcn_read_exec_hi: { 16643 StringRef RegName = BuiltinID == AMDGPU::BI__builtin_amdgcn_read_exec_lo ? 16644 "exec_lo" : "exec_hi"; 16645 CallInst *CI = cast<CallInst>( 16646 EmitSpecialRegisterBuiltin(*this, E, Int32Ty, Int32Ty, NormalRead, RegName)); 16647 CI->setConvergent(); 16648 return CI; 16649 } 16650 case AMDGPU::BI__builtin_amdgcn_image_bvh_intersect_ray: 16651 case AMDGPU::BI__builtin_amdgcn_image_bvh_intersect_ray_h: 16652 case AMDGPU::BI__builtin_amdgcn_image_bvh_intersect_ray_l: 16653 case AMDGPU::BI__builtin_amdgcn_image_bvh_intersect_ray_lh: { 16654 llvm::Value *NodePtr = EmitScalarExpr(E->getArg(0)); 16655 llvm::Value *RayExtent = EmitScalarExpr(E->getArg(1)); 16656 llvm::Value *RayOrigin = EmitScalarExpr(E->getArg(2)); 16657 llvm::Value *RayDir = EmitScalarExpr(E->getArg(3)); 16658 llvm::Value *RayInverseDir = EmitScalarExpr(E->getArg(4)); 16659 llvm::Value *TextureDescr = EmitScalarExpr(E->getArg(5)); 16660 16661 // The builtins take these arguments as vec4 where the last element is 16662 // ignored. The intrinsic takes them as vec3. 16663 RayOrigin = Builder.CreateShuffleVector(RayOrigin, RayOrigin, 16664 ArrayRef<int>{0, 1, 2}); 16665 RayDir = 16666 Builder.CreateShuffleVector(RayDir, RayDir, ArrayRef<int>{0, 1, 2}); 16667 RayInverseDir = Builder.CreateShuffleVector(RayInverseDir, RayInverseDir, 16668 ArrayRef<int>{0, 1, 2}); 16669 16670 Function *F = CGM.getIntrinsic(Intrinsic::amdgcn_image_bvh_intersect_ray, 16671 {NodePtr->getType(), RayDir->getType()}); 16672 return Builder.CreateCall(F, {NodePtr, RayExtent, RayOrigin, RayDir, 16673 RayInverseDir, TextureDescr}); 16674 } 16675 16676 // amdgcn workitem 16677 case AMDGPU::BI__builtin_amdgcn_workitem_id_x: 16678 return emitRangedBuiltin(*this, Intrinsic::amdgcn_workitem_id_x, 0, 1024); 16679 case AMDGPU::BI__builtin_amdgcn_workitem_id_y: 16680 return emitRangedBuiltin(*this, Intrinsic::amdgcn_workitem_id_y, 0, 1024); 16681 case AMDGPU::BI__builtin_amdgcn_workitem_id_z: 16682 return emitRangedBuiltin(*this, Intrinsic::amdgcn_workitem_id_z, 0, 1024); 16683 16684 // amdgcn workgroup size 16685 case AMDGPU::BI__builtin_amdgcn_workgroup_size_x: 16686 return EmitAMDGPUWorkGroupSize(*this, 0); 16687 case AMDGPU::BI__builtin_amdgcn_workgroup_size_y: 16688 return EmitAMDGPUWorkGroupSize(*this, 1); 16689 case AMDGPU::BI__builtin_amdgcn_workgroup_size_z: 16690 return EmitAMDGPUWorkGroupSize(*this, 2); 16691 16692 // amdgcn grid size 16693 case AMDGPU::BI__builtin_amdgcn_grid_size_x: 16694 return EmitAMDGPUGridSize(*this, 0); 16695 case AMDGPU::BI__builtin_amdgcn_grid_size_y: 16696 return EmitAMDGPUGridSize(*this, 1); 16697 case AMDGPU::BI__builtin_amdgcn_grid_size_z: 16698 return EmitAMDGPUGridSize(*this, 2); 16699 16700 // r600 intrinsics 16701 case AMDGPU::BI__builtin_r600_recipsqrt_ieee: 16702 case AMDGPU::BI__builtin_r600_recipsqrt_ieeef: 16703 return emitUnaryBuiltin(*this, E, Intrinsic::r600_recipsqrt_ieee); 16704 case AMDGPU::BI__builtin_r600_read_tidig_x: 16705 return emitRangedBuiltin(*this, Intrinsic::r600_read_tidig_x, 0, 1024); 16706 case AMDGPU::BI__builtin_r600_read_tidig_y: 16707 return emitRangedBuiltin(*this, Intrinsic::r600_read_tidig_y, 0, 1024); 16708 case AMDGPU::BI__builtin_r600_read_tidig_z: 16709 return emitRangedBuiltin(*this, Intrinsic::r600_read_tidig_z, 0, 1024); 16710 case AMDGPU::BI__builtin_amdgcn_alignbit: { 16711 llvm::Value *Src0 = EmitScalarExpr(E->getArg(0)); 16712 llvm::Value *Src1 = EmitScalarExpr(E->getArg(1)); 16713 llvm::Value *Src2 = EmitScalarExpr(E->getArg(2)); 16714 Function *F = CGM.getIntrinsic(Intrinsic::fshr, Src0->getType()); 16715 return Builder.CreateCall(F, { Src0, Src1, Src2 }); 16716 } 16717 16718 case AMDGPU::BI__builtin_amdgcn_fence: { 16719 if (ProcessOrderScopeAMDGCN(EmitScalarExpr(E->getArg(0)), 16720 EmitScalarExpr(E->getArg(1)), AO, SSID)) 16721 return Builder.CreateFence(AO, SSID); 16722 LLVM_FALLTHROUGH; 16723 } 16724 case AMDGPU::BI__builtin_amdgcn_atomic_inc32: 16725 case AMDGPU::BI__builtin_amdgcn_atomic_inc64: 16726 case AMDGPU::BI__builtin_amdgcn_atomic_dec32: 16727 case AMDGPU::BI__builtin_amdgcn_atomic_dec64: { 16728 unsigned BuiltinAtomicOp; 16729 llvm::Type *ResultType = ConvertType(E->getType()); 16730 16731 switch (BuiltinID) { 16732 case AMDGPU::BI__builtin_amdgcn_atomic_inc32: 16733 case AMDGPU::BI__builtin_amdgcn_atomic_inc64: 16734 BuiltinAtomicOp = Intrinsic::amdgcn_atomic_inc; 16735 break; 16736 case AMDGPU::BI__builtin_amdgcn_atomic_dec32: 16737 case AMDGPU::BI__builtin_amdgcn_atomic_dec64: 16738 BuiltinAtomicOp = Intrinsic::amdgcn_atomic_dec; 16739 break; 16740 } 16741 16742 Value *Ptr = EmitScalarExpr(E->getArg(0)); 16743 Value *Val = EmitScalarExpr(E->getArg(1)); 16744 16745 llvm::Function *F = 16746 CGM.getIntrinsic(BuiltinAtomicOp, {ResultType, Ptr->getType()}); 16747 16748 if (ProcessOrderScopeAMDGCN(EmitScalarExpr(E->getArg(2)), 16749 EmitScalarExpr(E->getArg(3)), AO, SSID)) { 16750 16751 // llvm.amdgcn.atomic.inc and llvm.amdgcn.atomic.dec expects ordering and 16752 // scope as unsigned values 16753 Value *MemOrder = Builder.getInt32(static_cast<int>(AO)); 16754 Value *MemScope = Builder.getInt32(static_cast<int>(SSID)); 16755 16756 QualType PtrTy = E->getArg(0)->IgnoreImpCasts()->getType(); 16757 bool Volatile = 16758 PtrTy->castAs<PointerType>()->getPointeeType().isVolatileQualified(); 16759 Value *IsVolatile = Builder.getInt1(static_cast<bool>(Volatile)); 16760 16761 return Builder.CreateCall(F, {Ptr, Val, MemOrder, MemScope, IsVolatile}); 16762 } 16763 LLVM_FALLTHROUGH; 16764 } 16765 default: 16766 return nullptr; 16767 } 16768 } 16769 16770 /// Handle a SystemZ function in which the final argument is a pointer 16771 /// to an int that receives the post-instruction CC value. At the LLVM level 16772 /// this is represented as a function that returns a {result, cc} pair. 16773 static Value *EmitSystemZIntrinsicWithCC(CodeGenFunction &CGF, 16774 unsigned IntrinsicID, 16775 const CallExpr *E) { 16776 unsigned NumArgs = E->getNumArgs() - 1; 16777 SmallVector<Value *, 8> Args(NumArgs); 16778 for (unsigned I = 0; I < NumArgs; ++I) 16779 Args[I] = CGF.EmitScalarExpr(E->getArg(I)); 16780 Address CCPtr = CGF.EmitPointerWithAlignment(E->getArg(NumArgs)); 16781 Function *F = CGF.CGM.getIntrinsic(IntrinsicID); 16782 Value *Call = CGF.Builder.CreateCall(F, Args); 16783 Value *CC = CGF.Builder.CreateExtractValue(Call, 1); 16784 CGF.Builder.CreateStore(CC, CCPtr); 16785 return CGF.Builder.CreateExtractValue(Call, 0); 16786 } 16787 16788 Value *CodeGenFunction::EmitSystemZBuiltinExpr(unsigned BuiltinID, 16789 const CallExpr *E) { 16790 switch (BuiltinID) { 16791 case SystemZ::BI__builtin_tbegin: { 16792 Value *TDB = EmitScalarExpr(E->getArg(0)); 16793 Value *Control = llvm::ConstantInt::get(Int32Ty, 0xff0c); 16794 Function *F = CGM.getIntrinsic(Intrinsic::s390_tbegin); 16795 return Builder.CreateCall(F, {TDB, Control}); 16796 } 16797 case SystemZ::BI__builtin_tbegin_nofloat: { 16798 Value *TDB = EmitScalarExpr(E->getArg(0)); 16799 Value *Control = llvm::ConstantInt::get(Int32Ty, 0xff0c); 16800 Function *F = CGM.getIntrinsic(Intrinsic::s390_tbegin_nofloat); 16801 return Builder.CreateCall(F, {TDB, Control}); 16802 } 16803 case SystemZ::BI__builtin_tbeginc: { 16804 Value *TDB = llvm::ConstantPointerNull::get(Int8PtrTy); 16805 Value *Control = llvm::ConstantInt::get(Int32Ty, 0xff08); 16806 Function *F = CGM.getIntrinsic(Intrinsic::s390_tbeginc); 16807 return Builder.CreateCall(F, {TDB, Control}); 16808 } 16809 case SystemZ::BI__builtin_tabort: { 16810 Value *Data = EmitScalarExpr(E->getArg(0)); 16811 Function *F = CGM.getIntrinsic(Intrinsic::s390_tabort); 16812 return Builder.CreateCall(F, Builder.CreateSExt(Data, Int64Ty, "tabort")); 16813 } 16814 case SystemZ::BI__builtin_non_tx_store: { 16815 Value *Address = EmitScalarExpr(E->getArg(0)); 16816 Value *Data = EmitScalarExpr(E->getArg(1)); 16817 Function *F = CGM.getIntrinsic(Intrinsic::s390_ntstg); 16818 return Builder.CreateCall(F, {Data, Address}); 16819 } 16820 16821 // Vector builtins. Note that most vector builtins are mapped automatically 16822 // to target-specific LLVM intrinsics. The ones handled specially here can 16823 // be represented via standard LLVM IR, which is preferable to enable common 16824 // LLVM optimizations. 16825 16826 case SystemZ::BI__builtin_s390_vpopctb: 16827 case SystemZ::BI__builtin_s390_vpopcth: 16828 case SystemZ::BI__builtin_s390_vpopctf: 16829 case SystemZ::BI__builtin_s390_vpopctg: { 16830 llvm::Type *ResultType = ConvertType(E->getType()); 16831 Value *X = EmitScalarExpr(E->getArg(0)); 16832 Function *F = CGM.getIntrinsic(Intrinsic::ctpop, ResultType); 16833 return Builder.CreateCall(F, X); 16834 } 16835 16836 case SystemZ::BI__builtin_s390_vclzb: 16837 case SystemZ::BI__builtin_s390_vclzh: 16838 case SystemZ::BI__builtin_s390_vclzf: 16839 case SystemZ::BI__builtin_s390_vclzg: { 16840 llvm::Type *ResultType = ConvertType(E->getType()); 16841 Value *X = EmitScalarExpr(E->getArg(0)); 16842 Value *Undef = ConstantInt::get(Builder.getInt1Ty(), false); 16843 Function *F = CGM.getIntrinsic(Intrinsic::ctlz, ResultType); 16844 return Builder.CreateCall(F, {X, Undef}); 16845 } 16846 16847 case SystemZ::BI__builtin_s390_vctzb: 16848 case SystemZ::BI__builtin_s390_vctzh: 16849 case SystemZ::BI__builtin_s390_vctzf: 16850 case SystemZ::BI__builtin_s390_vctzg: { 16851 llvm::Type *ResultType = ConvertType(E->getType()); 16852 Value *X = EmitScalarExpr(E->getArg(0)); 16853 Value *Undef = ConstantInt::get(Builder.getInt1Ty(), false); 16854 Function *F = CGM.getIntrinsic(Intrinsic::cttz, ResultType); 16855 return Builder.CreateCall(F, {X, Undef}); 16856 } 16857 16858 case SystemZ::BI__builtin_s390_vfsqsb: 16859 case SystemZ::BI__builtin_s390_vfsqdb: { 16860 llvm::Type *ResultType = ConvertType(E->getType()); 16861 Value *X = EmitScalarExpr(E->getArg(0)); 16862 if (Builder.getIsFPConstrained()) { 16863 Function *F = CGM.getIntrinsic(Intrinsic::experimental_constrained_sqrt, ResultType); 16864 return Builder.CreateConstrainedFPCall(F, { X }); 16865 } else { 16866 Function *F = CGM.getIntrinsic(Intrinsic::sqrt, ResultType); 16867 return Builder.CreateCall(F, X); 16868 } 16869 } 16870 case SystemZ::BI__builtin_s390_vfmasb: 16871 case SystemZ::BI__builtin_s390_vfmadb: { 16872 llvm::Type *ResultType = ConvertType(E->getType()); 16873 Value *X = EmitScalarExpr(E->getArg(0)); 16874 Value *Y = EmitScalarExpr(E->getArg(1)); 16875 Value *Z = EmitScalarExpr(E->getArg(2)); 16876 if (Builder.getIsFPConstrained()) { 16877 Function *F = CGM.getIntrinsic(Intrinsic::experimental_constrained_fma, ResultType); 16878 return Builder.CreateConstrainedFPCall(F, {X, Y, Z}); 16879 } else { 16880 Function *F = CGM.getIntrinsic(Intrinsic::fma, ResultType); 16881 return Builder.CreateCall(F, {X, Y, Z}); 16882 } 16883 } 16884 case SystemZ::BI__builtin_s390_vfmssb: 16885 case SystemZ::BI__builtin_s390_vfmsdb: { 16886 llvm::Type *ResultType = ConvertType(E->getType()); 16887 Value *X = EmitScalarExpr(E->getArg(0)); 16888 Value *Y = EmitScalarExpr(E->getArg(1)); 16889 Value *Z = EmitScalarExpr(E->getArg(2)); 16890 if (Builder.getIsFPConstrained()) { 16891 Function *F = CGM.getIntrinsic(Intrinsic::experimental_constrained_fma, ResultType); 16892 return Builder.CreateConstrainedFPCall(F, {X, Y, Builder.CreateFNeg(Z, "neg")}); 16893 } else { 16894 Function *F = CGM.getIntrinsic(Intrinsic::fma, ResultType); 16895 return Builder.CreateCall(F, {X, Y, Builder.CreateFNeg(Z, "neg")}); 16896 } 16897 } 16898 case SystemZ::BI__builtin_s390_vfnmasb: 16899 case SystemZ::BI__builtin_s390_vfnmadb: { 16900 llvm::Type *ResultType = ConvertType(E->getType()); 16901 Value *X = EmitScalarExpr(E->getArg(0)); 16902 Value *Y = EmitScalarExpr(E->getArg(1)); 16903 Value *Z = EmitScalarExpr(E->getArg(2)); 16904 if (Builder.getIsFPConstrained()) { 16905 Function *F = CGM.getIntrinsic(Intrinsic::experimental_constrained_fma, ResultType); 16906 return Builder.CreateFNeg(Builder.CreateConstrainedFPCall(F, {X, Y, Z}), "neg"); 16907 } else { 16908 Function *F = CGM.getIntrinsic(Intrinsic::fma, ResultType); 16909 return Builder.CreateFNeg(Builder.CreateCall(F, {X, Y, Z}), "neg"); 16910 } 16911 } 16912 case SystemZ::BI__builtin_s390_vfnmssb: 16913 case SystemZ::BI__builtin_s390_vfnmsdb: { 16914 llvm::Type *ResultType = ConvertType(E->getType()); 16915 Value *X = EmitScalarExpr(E->getArg(0)); 16916 Value *Y = EmitScalarExpr(E->getArg(1)); 16917 Value *Z = EmitScalarExpr(E->getArg(2)); 16918 if (Builder.getIsFPConstrained()) { 16919 Function *F = CGM.getIntrinsic(Intrinsic::experimental_constrained_fma, ResultType); 16920 Value *NegZ = Builder.CreateFNeg(Z, "sub"); 16921 return Builder.CreateFNeg(Builder.CreateConstrainedFPCall(F, {X, Y, NegZ})); 16922 } else { 16923 Function *F = CGM.getIntrinsic(Intrinsic::fma, ResultType); 16924 Value *NegZ = Builder.CreateFNeg(Z, "neg"); 16925 return Builder.CreateFNeg(Builder.CreateCall(F, {X, Y, NegZ})); 16926 } 16927 } 16928 case SystemZ::BI__builtin_s390_vflpsb: 16929 case SystemZ::BI__builtin_s390_vflpdb: { 16930 llvm::Type *ResultType = ConvertType(E->getType()); 16931 Value *X = EmitScalarExpr(E->getArg(0)); 16932 Function *F = CGM.getIntrinsic(Intrinsic::fabs, ResultType); 16933 return Builder.CreateCall(F, X); 16934 } 16935 case SystemZ::BI__builtin_s390_vflnsb: 16936 case SystemZ::BI__builtin_s390_vflndb: { 16937 llvm::Type *ResultType = ConvertType(E->getType()); 16938 Value *X = EmitScalarExpr(E->getArg(0)); 16939 Function *F = CGM.getIntrinsic(Intrinsic::fabs, ResultType); 16940 return Builder.CreateFNeg(Builder.CreateCall(F, X), "neg"); 16941 } 16942 case SystemZ::BI__builtin_s390_vfisb: 16943 case SystemZ::BI__builtin_s390_vfidb: { 16944 llvm::Type *ResultType = ConvertType(E->getType()); 16945 Value *X = EmitScalarExpr(E->getArg(0)); 16946 // Constant-fold the M4 and M5 mask arguments. 16947 llvm::APSInt M4 = *E->getArg(1)->getIntegerConstantExpr(getContext()); 16948 llvm::APSInt M5 = *E->getArg(2)->getIntegerConstantExpr(getContext()); 16949 // Check whether this instance can be represented via a LLVM standard 16950 // intrinsic. We only support some combinations of M4 and M5. 16951 Intrinsic::ID ID = Intrinsic::not_intrinsic; 16952 Intrinsic::ID CI; 16953 switch (M4.getZExtValue()) { 16954 default: break; 16955 case 0: // IEEE-inexact exception allowed 16956 switch (M5.getZExtValue()) { 16957 default: break; 16958 case 0: ID = Intrinsic::rint; 16959 CI = Intrinsic::experimental_constrained_rint; break; 16960 } 16961 break; 16962 case 4: // IEEE-inexact exception suppressed 16963 switch (M5.getZExtValue()) { 16964 default: break; 16965 case 0: ID = Intrinsic::nearbyint; 16966 CI = Intrinsic::experimental_constrained_nearbyint; break; 16967 case 1: ID = Intrinsic::round; 16968 CI = Intrinsic::experimental_constrained_round; break; 16969 case 5: ID = Intrinsic::trunc; 16970 CI = Intrinsic::experimental_constrained_trunc; break; 16971 case 6: ID = Intrinsic::ceil; 16972 CI = Intrinsic::experimental_constrained_ceil; break; 16973 case 7: ID = Intrinsic::floor; 16974 CI = Intrinsic::experimental_constrained_floor; break; 16975 } 16976 break; 16977 } 16978 if (ID != Intrinsic::not_intrinsic) { 16979 if (Builder.getIsFPConstrained()) { 16980 Function *F = CGM.getIntrinsic(CI, ResultType); 16981 return Builder.CreateConstrainedFPCall(F, X); 16982 } else { 16983 Function *F = CGM.getIntrinsic(ID, ResultType); 16984 return Builder.CreateCall(F, X); 16985 } 16986 } 16987 switch (BuiltinID) { // FIXME: constrained version? 16988 case SystemZ::BI__builtin_s390_vfisb: ID = Intrinsic::s390_vfisb; break; 16989 case SystemZ::BI__builtin_s390_vfidb: ID = Intrinsic::s390_vfidb; break; 16990 default: llvm_unreachable("Unknown BuiltinID"); 16991 } 16992 Function *F = CGM.getIntrinsic(ID); 16993 Value *M4Value = llvm::ConstantInt::get(getLLVMContext(), M4); 16994 Value *M5Value = llvm::ConstantInt::get(getLLVMContext(), M5); 16995 return Builder.CreateCall(F, {X, M4Value, M5Value}); 16996 } 16997 case SystemZ::BI__builtin_s390_vfmaxsb: 16998 case SystemZ::BI__builtin_s390_vfmaxdb: { 16999 llvm::Type *ResultType = ConvertType(E->getType()); 17000 Value *X = EmitScalarExpr(E->getArg(0)); 17001 Value *Y = EmitScalarExpr(E->getArg(1)); 17002 // Constant-fold the M4 mask argument. 17003 llvm::APSInt M4 = *E->getArg(2)->getIntegerConstantExpr(getContext()); 17004 // Check whether this instance can be represented via a LLVM standard 17005 // intrinsic. We only support some values of M4. 17006 Intrinsic::ID ID = Intrinsic::not_intrinsic; 17007 Intrinsic::ID CI; 17008 switch (M4.getZExtValue()) { 17009 default: break; 17010 case 4: ID = Intrinsic::maxnum; 17011 CI = Intrinsic::experimental_constrained_maxnum; break; 17012 } 17013 if (ID != Intrinsic::not_intrinsic) { 17014 if (Builder.getIsFPConstrained()) { 17015 Function *F = CGM.getIntrinsic(CI, ResultType); 17016 return Builder.CreateConstrainedFPCall(F, {X, Y}); 17017 } else { 17018 Function *F = CGM.getIntrinsic(ID, ResultType); 17019 return Builder.CreateCall(F, {X, Y}); 17020 } 17021 } 17022 switch (BuiltinID) { 17023 case SystemZ::BI__builtin_s390_vfmaxsb: ID = Intrinsic::s390_vfmaxsb; break; 17024 case SystemZ::BI__builtin_s390_vfmaxdb: ID = Intrinsic::s390_vfmaxdb; break; 17025 default: llvm_unreachable("Unknown BuiltinID"); 17026 } 17027 Function *F = CGM.getIntrinsic(ID); 17028 Value *M4Value = llvm::ConstantInt::get(getLLVMContext(), M4); 17029 return Builder.CreateCall(F, {X, Y, M4Value}); 17030 } 17031 case SystemZ::BI__builtin_s390_vfminsb: 17032 case SystemZ::BI__builtin_s390_vfmindb: { 17033 llvm::Type *ResultType = ConvertType(E->getType()); 17034 Value *X = EmitScalarExpr(E->getArg(0)); 17035 Value *Y = EmitScalarExpr(E->getArg(1)); 17036 // Constant-fold the M4 mask argument. 17037 llvm::APSInt M4 = *E->getArg(2)->getIntegerConstantExpr(getContext()); 17038 // Check whether this instance can be represented via a LLVM standard 17039 // intrinsic. We only support some values of M4. 17040 Intrinsic::ID ID = Intrinsic::not_intrinsic; 17041 Intrinsic::ID CI; 17042 switch (M4.getZExtValue()) { 17043 default: break; 17044 case 4: ID = Intrinsic::minnum; 17045 CI = Intrinsic::experimental_constrained_minnum; break; 17046 } 17047 if (ID != Intrinsic::not_intrinsic) { 17048 if (Builder.getIsFPConstrained()) { 17049 Function *F = CGM.getIntrinsic(CI, ResultType); 17050 return Builder.CreateConstrainedFPCall(F, {X, Y}); 17051 } else { 17052 Function *F = CGM.getIntrinsic(ID, ResultType); 17053 return Builder.CreateCall(F, {X, Y}); 17054 } 17055 } 17056 switch (BuiltinID) { 17057 case SystemZ::BI__builtin_s390_vfminsb: ID = Intrinsic::s390_vfminsb; break; 17058 case SystemZ::BI__builtin_s390_vfmindb: ID = Intrinsic::s390_vfmindb; break; 17059 default: llvm_unreachable("Unknown BuiltinID"); 17060 } 17061 Function *F = CGM.getIntrinsic(ID); 17062 Value *M4Value = llvm::ConstantInt::get(getLLVMContext(), M4); 17063 return Builder.CreateCall(F, {X, Y, M4Value}); 17064 } 17065 17066 case SystemZ::BI__builtin_s390_vlbrh: 17067 case SystemZ::BI__builtin_s390_vlbrf: 17068 case SystemZ::BI__builtin_s390_vlbrg: { 17069 llvm::Type *ResultType = ConvertType(E->getType()); 17070 Value *X = EmitScalarExpr(E->getArg(0)); 17071 Function *F = CGM.getIntrinsic(Intrinsic::bswap, ResultType); 17072 return Builder.CreateCall(F, X); 17073 } 17074 17075 // Vector intrinsics that output the post-instruction CC value. 17076 17077 #define INTRINSIC_WITH_CC(NAME) \ 17078 case SystemZ::BI__builtin_##NAME: \ 17079 return EmitSystemZIntrinsicWithCC(*this, Intrinsic::NAME, E) 17080 17081 INTRINSIC_WITH_CC(s390_vpkshs); 17082 INTRINSIC_WITH_CC(s390_vpksfs); 17083 INTRINSIC_WITH_CC(s390_vpksgs); 17084 17085 INTRINSIC_WITH_CC(s390_vpklshs); 17086 INTRINSIC_WITH_CC(s390_vpklsfs); 17087 INTRINSIC_WITH_CC(s390_vpklsgs); 17088 17089 INTRINSIC_WITH_CC(s390_vceqbs); 17090 INTRINSIC_WITH_CC(s390_vceqhs); 17091 INTRINSIC_WITH_CC(s390_vceqfs); 17092 INTRINSIC_WITH_CC(s390_vceqgs); 17093 17094 INTRINSIC_WITH_CC(s390_vchbs); 17095 INTRINSIC_WITH_CC(s390_vchhs); 17096 INTRINSIC_WITH_CC(s390_vchfs); 17097 INTRINSIC_WITH_CC(s390_vchgs); 17098 17099 INTRINSIC_WITH_CC(s390_vchlbs); 17100 INTRINSIC_WITH_CC(s390_vchlhs); 17101 INTRINSIC_WITH_CC(s390_vchlfs); 17102 INTRINSIC_WITH_CC(s390_vchlgs); 17103 17104 INTRINSIC_WITH_CC(s390_vfaebs); 17105 INTRINSIC_WITH_CC(s390_vfaehs); 17106 INTRINSIC_WITH_CC(s390_vfaefs); 17107 17108 INTRINSIC_WITH_CC(s390_vfaezbs); 17109 INTRINSIC_WITH_CC(s390_vfaezhs); 17110 INTRINSIC_WITH_CC(s390_vfaezfs); 17111 17112 INTRINSIC_WITH_CC(s390_vfeebs); 17113 INTRINSIC_WITH_CC(s390_vfeehs); 17114 INTRINSIC_WITH_CC(s390_vfeefs); 17115 17116 INTRINSIC_WITH_CC(s390_vfeezbs); 17117 INTRINSIC_WITH_CC(s390_vfeezhs); 17118 INTRINSIC_WITH_CC(s390_vfeezfs); 17119 17120 INTRINSIC_WITH_CC(s390_vfenebs); 17121 INTRINSIC_WITH_CC(s390_vfenehs); 17122 INTRINSIC_WITH_CC(s390_vfenefs); 17123 17124 INTRINSIC_WITH_CC(s390_vfenezbs); 17125 INTRINSIC_WITH_CC(s390_vfenezhs); 17126 INTRINSIC_WITH_CC(s390_vfenezfs); 17127 17128 INTRINSIC_WITH_CC(s390_vistrbs); 17129 INTRINSIC_WITH_CC(s390_vistrhs); 17130 INTRINSIC_WITH_CC(s390_vistrfs); 17131 17132 INTRINSIC_WITH_CC(s390_vstrcbs); 17133 INTRINSIC_WITH_CC(s390_vstrchs); 17134 INTRINSIC_WITH_CC(s390_vstrcfs); 17135 17136 INTRINSIC_WITH_CC(s390_vstrczbs); 17137 INTRINSIC_WITH_CC(s390_vstrczhs); 17138 INTRINSIC_WITH_CC(s390_vstrczfs); 17139 17140 INTRINSIC_WITH_CC(s390_vfcesbs); 17141 INTRINSIC_WITH_CC(s390_vfcedbs); 17142 INTRINSIC_WITH_CC(s390_vfchsbs); 17143 INTRINSIC_WITH_CC(s390_vfchdbs); 17144 INTRINSIC_WITH_CC(s390_vfchesbs); 17145 INTRINSIC_WITH_CC(s390_vfchedbs); 17146 17147 INTRINSIC_WITH_CC(s390_vftcisb); 17148 INTRINSIC_WITH_CC(s390_vftcidb); 17149 17150 INTRINSIC_WITH_CC(s390_vstrsb); 17151 INTRINSIC_WITH_CC(s390_vstrsh); 17152 INTRINSIC_WITH_CC(s390_vstrsf); 17153 17154 INTRINSIC_WITH_CC(s390_vstrszb); 17155 INTRINSIC_WITH_CC(s390_vstrszh); 17156 INTRINSIC_WITH_CC(s390_vstrszf); 17157 17158 #undef INTRINSIC_WITH_CC 17159 17160 default: 17161 return nullptr; 17162 } 17163 } 17164 17165 namespace { 17166 // Helper classes for mapping MMA builtins to particular LLVM intrinsic variant. 17167 struct NVPTXMmaLdstInfo { 17168 unsigned NumResults; // Number of elements to load/store 17169 // Intrinsic IDs for row/col variants. 0 if particular layout is unsupported. 17170 unsigned IID_col; 17171 unsigned IID_row; 17172 }; 17173 17174 #define MMA_INTR(geom_op_type, layout) \ 17175 Intrinsic::nvvm_wmma_##geom_op_type##_##layout##_stride 17176 #define MMA_LDST(n, geom_op_type) \ 17177 { n, MMA_INTR(geom_op_type, col), MMA_INTR(geom_op_type, row) } 17178 17179 static NVPTXMmaLdstInfo getNVPTXMmaLdstInfo(unsigned BuiltinID) { 17180 switch (BuiltinID) { 17181 // FP MMA loads 17182 case NVPTX::BI__hmma_m16n16k16_ld_a: 17183 return MMA_LDST(8, m16n16k16_load_a_f16); 17184 case NVPTX::BI__hmma_m16n16k16_ld_b: 17185 return MMA_LDST(8, m16n16k16_load_b_f16); 17186 case NVPTX::BI__hmma_m16n16k16_ld_c_f16: 17187 return MMA_LDST(4, m16n16k16_load_c_f16); 17188 case NVPTX::BI__hmma_m16n16k16_ld_c_f32: 17189 return MMA_LDST(8, m16n16k16_load_c_f32); 17190 case NVPTX::BI__hmma_m32n8k16_ld_a: 17191 return MMA_LDST(8, m32n8k16_load_a_f16); 17192 case NVPTX::BI__hmma_m32n8k16_ld_b: 17193 return MMA_LDST(8, m32n8k16_load_b_f16); 17194 case NVPTX::BI__hmma_m32n8k16_ld_c_f16: 17195 return MMA_LDST(4, m32n8k16_load_c_f16); 17196 case NVPTX::BI__hmma_m32n8k16_ld_c_f32: 17197 return MMA_LDST(8, m32n8k16_load_c_f32); 17198 case NVPTX::BI__hmma_m8n32k16_ld_a: 17199 return MMA_LDST(8, m8n32k16_load_a_f16); 17200 case NVPTX::BI__hmma_m8n32k16_ld_b: 17201 return MMA_LDST(8, m8n32k16_load_b_f16); 17202 case NVPTX::BI__hmma_m8n32k16_ld_c_f16: 17203 return MMA_LDST(4, m8n32k16_load_c_f16); 17204 case NVPTX::BI__hmma_m8n32k16_ld_c_f32: 17205 return MMA_LDST(8, m8n32k16_load_c_f32); 17206 17207 // Integer MMA loads 17208 case NVPTX::BI__imma_m16n16k16_ld_a_s8: 17209 return MMA_LDST(2, m16n16k16_load_a_s8); 17210 case NVPTX::BI__imma_m16n16k16_ld_a_u8: 17211 return MMA_LDST(2, m16n16k16_load_a_u8); 17212 case NVPTX::BI__imma_m16n16k16_ld_b_s8: 17213 return MMA_LDST(2, m16n16k16_load_b_s8); 17214 case NVPTX::BI__imma_m16n16k16_ld_b_u8: 17215 return MMA_LDST(2, m16n16k16_load_b_u8); 17216 case NVPTX::BI__imma_m16n16k16_ld_c: 17217 return MMA_LDST(8, m16n16k16_load_c_s32); 17218 case NVPTX::BI__imma_m32n8k16_ld_a_s8: 17219 return MMA_LDST(4, m32n8k16_load_a_s8); 17220 case NVPTX::BI__imma_m32n8k16_ld_a_u8: 17221 return MMA_LDST(4, m32n8k16_load_a_u8); 17222 case NVPTX::BI__imma_m32n8k16_ld_b_s8: 17223 return MMA_LDST(1, m32n8k16_load_b_s8); 17224 case NVPTX::BI__imma_m32n8k16_ld_b_u8: 17225 return MMA_LDST(1, m32n8k16_load_b_u8); 17226 case NVPTX::BI__imma_m32n8k16_ld_c: 17227 return MMA_LDST(8, m32n8k16_load_c_s32); 17228 case NVPTX::BI__imma_m8n32k16_ld_a_s8: 17229 return MMA_LDST(1, m8n32k16_load_a_s8); 17230 case NVPTX::BI__imma_m8n32k16_ld_a_u8: 17231 return MMA_LDST(1, m8n32k16_load_a_u8); 17232 case NVPTX::BI__imma_m8n32k16_ld_b_s8: 17233 return MMA_LDST(4, m8n32k16_load_b_s8); 17234 case NVPTX::BI__imma_m8n32k16_ld_b_u8: 17235 return MMA_LDST(4, m8n32k16_load_b_u8); 17236 case NVPTX::BI__imma_m8n32k16_ld_c: 17237 return MMA_LDST(8, m8n32k16_load_c_s32); 17238 17239 // Sub-integer MMA loads. 17240 // Only row/col layout is supported by A/B fragments. 17241 case NVPTX::BI__imma_m8n8k32_ld_a_s4: 17242 return {1, 0, MMA_INTR(m8n8k32_load_a_s4, row)}; 17243 case NVPTX::BI__imma_m8n8k32_ld_a_u4: 17244 return {1, 0, MMA_INTR(m8n8k32_load_a_u4, row)}; 17245 case NVPTX::BI__imma_m8n8k32_ld_b_s4: 17246 return {1, MMA_INTR(m8n8k32_load_b_s4, col), 0}; 17247 case NVPTX::BI__imma_m8n8k32_ld_b_u4: 17248 return {1, MMA_INTR(m8n8k32_load_b_u4, col), 0}; 17249 case NVPTX::BI__imma_m8n8k32_ld_c: 17250 return MMA_LDST(2, m8n8k32_load_c_s32); 17251 case NVPTX::BI__bmma_m8n8k128_ld_a_b1: 17252 return {1, 0, MMA_INTR(m8n8k128_load_a_b1, row)}; 17253 case NVPTX::BI__bmma_m8n8k128_ld_b_b1: 17254 return {1, MMA_INTR(m8n8k128_load_b_b1, col), 0}; 17255 case NVPTX::BI__bmma_m8n8k128_ld_c: 17256 return MMA_LDST(2, m8n8k128_load_c_s32); 17257 17258 // Double MMA loads 17259 case NVPTX::BI__dmma_m8n8k4_ld_a: 17260 return MMA_LDST(1, m8n8k4_load_a_f64); 17261 case NVPTX::BI__dmma_m8n8k4_ld_b: 17262 return MMA_LDST(1, m8n8k4_load_b_f64); 17263 case NVPTX::BI__dmma_m8n8k4_ld_c: 17264 return MMA_LDST(2, m8n8k4_load_c_f64); 17265 17266 // Alternate float MMA loads 17267 case NVPTX::BI__mma_bf16_m16n16k16_ld_a: 17268 return MMA_LDST(4, m16n16k16_load_a_bf16); 17269 case NVPTX::BI__mma_bf16_m16n16k16_ld_b: 17270 return MMA_LDST(4, m16n16k16_load_b_bf16); 17271 case NVPTX::BI__mma_bf16_m8n32k16_ld_a: 17272 return MMA_LDST(2, m8n32k16_load_a_bf16); 17273 case NVPTX::BI__mma_bf16_m8n32k16_ld_b: 17274 return MMA_LDST(8, m8n32k16_load_b_bf16); 17275 case NVPTX::BI__mma_bf16_m32n8k16_ld_a: 17276 return MMA_LDST(8, m32n8k16_load_a_bf16); 17277 case NVPTX::BI__mma_bf16_m32n8k16_ld_b: 17278 return MMA_LDST(2, m32n8k16_load_b_bf16); 17279 case NVPTX::BI__mma_tf32_m16n16k8_ld_a: 17280 return MMA_LDST(4, m16n16k8_load_a_tf32); 17281 case NVPTX::BI__mma_tf32_m16n16k8_ld_b: 17282 return MMA_LDST(2, m16n16k8_load_b_tf32); 17283 case NVPTX::BI__mma_tf32_m16n16k8_ld_c: 17284 return MMA_LDST(8, m16n16k8_load_c_f32); 17285 17286 // NOTE: We need to follow inconsitent naming scheme used by NVCC. Unlike 17287 // PTX and LLVM IR where stores always use fragment D, NVCC builtins always 17288 // use fragment C for both loads and stores. 17289 // FP MMA stores. 17290 case NVPTX::BI__hmma_m16n16k16_st_c_f16: 17291 return MMA_LDST(4, m16n16k16_store_d_f16); 17292 case NVPTX::BI__hmma_m16n16k16_st_c_f32: 17293 return MMA_LDST(8, m16n16k16_store_d_f32); 17294 case NVPTX::BI__hmma_m32n8k16_st_c_f16: 17295 return MMA_LDST(4, m32n8k16_store_d_f16); 17296 case NVPTX::BI__hmma_m32n8k16_st_c_f32: 17297 return MMA_LDST(8, m32n8k16_store_d_f32); 17298 case NVPTX::BI__hmma_m8n32k16_st_c_f16: 17299 return MMA_LDST(4, m8n32k16_store_d_f16); 17300 case NVPTX::BI__hmma_m8n32k16_st_c_f32: 17301 return MMA_LDST(8, m8n32k16_store_d_f32); 17302 17303 // Integer and sub-integer MMA stores. 17304 // Another naming quirk. Unlike other MMA builtins that use PTX types in the 17305 // name, integer loads/stores use LLVM's i32. 17306 case NVPTX::BI__imma_m16n16k16_st_c_i32: 17307 return MMA_LDST(8, m16n16k16_store_d_s32); 17308 case NVPTX::BI__imma_m32n8k16_st_c_i32: 17309 return MMA_LDST(8, m32n8k16_store_d_s32); 17310 case NVPTX::BI__imma_m8n32k16_st_c_i32: 17311 return MMA_LDST(8, m8n32k16_store_d_s32); 17312 case NVPTX::BI__imma_m8n8k32_st_c_i32: 17313 return MMA_LDST(2, m8n8k32_store_d_s32); 17314 case NVPTX::BI__bmma_m8n8k128_st_c_i32: 17315 return MMA_LDST(2, m8n8k128_store_d_s32); 17316 17317 // Double MMA store 17318 case NVPTX::BI__dmma_m8n8k4_st_c_f64: 17319 return MMA_LDST(2, m8n8k4_store_d_f64); 17320 17321 // Alternate float MMA store 17322 case NVPTX::BI__mma_m16n16k8_st_c_f32: 17323 return MMA_LDST(8, m16n16k8_store_d_f32); 17324 17325 default: 17326 llvm_unreachable("Unknown MMA builtin"); 17327 } 17328 } 17329 #undef MMA_LDST 17330 #undef MMA_INTR 17331 17332 17333 struct NVPTXMmaInfo { 17334 unsigned NumEltsA; 17335 unsigned NumEltsB; 17336 unsigned NumEltsC; 17337 unsigned NumEltsD; 17338 17339 // Variants are ordered by layout-A/layout-B/satf, where 'row' has priority 17340 // over 'col' for layout. The index of non-satf variants is expected to match 17341 // the undocumented layout constants used by CUDA's mma.hpp. 17342 std::array<unsigned, 8> Variants; 17343 17344 unsigned getMMAIntrinsic(int Layout, bool Satf) { 17345 unsigned Index = Layout + 4 * Satf; 17346 if (Index >= Variants.size()) 17347 return 0; 17348 return Variants[Index]; 17349 } 17350 }; 17351 17352 // Returns an intrinsic that matches Layout and Satf for valid combinations of 17353 // Layout and Satf, 0 otherwise. 17354 static NVPTXMmaInfo getNVPTXMmaInfo(unsigned BuiltinID) { 17355 // clang-format off 17356 #define MMA_VARIANTS(geom, type) \ 17357 Intrinsic::nvvm_wmma_##geom##_mma_row_row_##type, \ 17358 Intrinsic::nvvm_wmma_##geom##_mma_row_col_##type, \ 17359 Intrinsic::nvvm_wmma_##geom##_mma_col_row_##type, \ 17360 Intrinsic::nvvm_wmma_##geom##_mma_col_col_##type 17361 #define MMA_SATF_VARIANTS(geom, type) \ 17362 MMA_VARIANTS(geom, type), \ 17363 Intrinsic::nvvm_wmma_##geom##_mma_row_row_##type##_satfinite, \ 17364 Intrinsic::nvvm_wmma_##geom##_mma_row_col_##type##_satfinite, \ 17365 Intrinsic::nvvm_wmma_##geom##_mma_col_row_##type##_satfinite, \ 17366 Intrinsic::nvvm_wmma_##geom##_mma_col_col_##type##_satfinite 17367 // Sub-integer MMA only supports row.col layout. 17368 #define MMA_VARIANTS_I4(geom, type) \ 17369 0, \ 17370 Intrinsic::nvvm_wmma_##geom##_mma_row_col_##type, \ 17371 0, \ 17372 0, \ 17373 0, \ 17374 Intrinsic::nvvm_wmma_##geom##_mma_row_col_##type##_satfinite, \ 17375 0, \ 17376 0 17377 // b1 MMA does not support .satfinite. 17378 #define MMA_VARIANTS_B1_XOR(geom, type) \ 17379 0, \ 17380 Intrinsic::nvvm_wmma_##geom##_mma_xor_popc_row_col_##type, \ 17381 0, \ 17382 0, \ 17383 0, \ 17384 0, \ 17385 0, \ 17386 0 17387 #define MMA_VARIANTS_B1_AND(geom, type) \ 17388 0, \ 17389 Intrinsic::nvvm_wmma_##geom##_mma_and_popc_row_col_##type, \ 17390 0, \ 17391 0, \ 17392 0, \ 17393 0, \ 17394 0, \ 17395 0 17396 // clang-format on 17397 switch (BuiltinID) { 17398 // FP MMA 17399 // Note that 'type' argument of MMA_SATF_VARIANTS uses D_C notation, while 17400 // NumEltsN of return value are ordered as A,B,C,D. 17401 case NVPTX::BI__hmma_m16n16k16_mma_f16f16: 17402 return {8, 8, 4, 4, {{MMA_SATF_VARIANTS(m16n16k16, f16_f16)}}}; 17403 case NVPTX::BI__hmma_m16n16k16_mma_f32f16: 17404 return {8, 8, 4, 8, {{MMA_SATF_VARIANTS(m16n16k16, f32_f16)}}}; 17405 case NVPTX::BI__hmma_m16n16k16_mma_f16f32: 17406 return {8, 8, 8, 4, {{MMA_SATF_VARIANTS(m16n16k16, f16_f32)}}}; 17407 case NVPTX::BI__hmma_m16n16k16_mma_f32f32: 17408 return {8, 8, 8, 8, {{MMA_SATF_VARIANTS(m16n16k16, f32_f32)}}}; 17409 case NVPTX::BI__hmma_m32n8k16_mma_f16f16: 17410 return {8, 8, 4, 4, {{MMA_SATF_VARIANTS(m32n8k16, f16_f16)}}}; 17411 case NVPTX::BI__hmma_m32n8k16_mma_f32f16: 17412 return {8, 8, 4, 8, {{MMA_SATF_VARIANTS(m32n8k16, f32_f16)}}}; 17413 case NVPTX::BI__hmma_m32n8k16_mma_f16f32: 17414 return {8, 8, 8, 4, {{MMA_SATF_VARIANTS(m32n8k16, f16_f32)}}}; 17415 case NVPTX::BI__hmma_m32n8k16_mma_f32f32: 17416 return {8, 8, 8, 8, {{MMA_SATF_VARIANTS(m32n8k16, f32_f32)}}}; 17417 case NVPTX::BI__hmma_m8n32k16_mma_f16f16: 17418 return {8, 8, 4, 4, {{MMA_SATF_VARIANTS(m8n32k16, f16_f16)}}}; 17419 case NVPTX::BI__hmma_m8n32k16_mma_f32f16: 17420 return {8, 8, 4, 8, {{MMA_SATF_VARIANTS(m8n32k16, f32_f16)}}}; 17421 case NVPTX::BI__hmma_m8n32k16_mma_f16f32: 17422 return {8, 8, 8, 4, {{MMA_SATF_VARIANTS(m8n32k16, f16_f32)}}}; 17423 case NVPTX::BI__hmma_m8n32k16_mma_f32f32: 17424 return {8, 8, 8, 8, {{MMA_SATF_VARIANTS(m8n32k16, f32_f32)}}}; 17425 17426 // Integer MMA 17427 case NVPTX::BI__imma_m16n16k16_mma_s8: 17428 return {2, 2, 8, 8, {{MMA_SATF_VARIANTS(m16n16k16, s8)}}}; 17429 case NVPTX::BI__imma_m16n16k16_mma_u8: 17430 return {2, 2, 8, 8, {{MMA_SATF_VARIANTS(m16n16k16, u8)}}}; 17431 case NVPTX::BI__imma_m32n8k16_mma_s8: 17432 return {4, 1, 8, 8, {{MMA_SATF_VARIANTS(m32n8k16, s8)}}}; 17433 case NVPTX::BI__imma_m32n8k16_mma_u8: 17434 return {4, 1, 8, 8, {{MMA_SATF_VARIANTS(m32n8k16, u8)}}}; 17435 case NVPTX::BI__imma_m8n32k16_mma_s8: 17436 return {1, 4, 8, 8, {{MMA_SATF_VARIANTS(m8n32k16, s8)}}}; 17437 case NVPTX::BI__imma_m8n32k16_mma_u8: 17438 return {1, 4, 8, 8, {{MMA_SATF_VARIANTS(m8n32k16, u8)}}}; 17439 17440 // Sub-integer MMA 17441 case NVPTX::BI__imma_m8n8k32_mma_s4: 17442 return {1, 1, 2, 2, {{MMA_VARIANTS_I4(m8n8k32, s4)}}}; 17443 case NVPTX::BI__imma_m8n8k32_mma_u4: 17444 return {1, 1, 2, 2, {{MMA_VARIANTS_I4(m8n8k32, u4)}}}; 17445 case NVPTX::BI__bmma_m8n8k128_mma_xor_popc_b1: 17446 return {1, 1, 2, 2, {{MMA_VARIANTS_B1_XOR(m8n8k128, b1)}}}; 17447 case NVPTX::BI__bmma_m8n8k128_mma_and_popc_b1: 17448 return {1, 1, 2, 2, {{MMA_VARIANTS_B1_AND(m8n8k128, b1)}}}; 17449 17450 // Double MMA 17451 case NVPTX::BI__dmma_m8n8k4_mma_f64: 17452 return {1, 1, 2, 2, {{MMA_VARIANTS(m8n8k4, f64)}}}; 17453 17454 // Alternate FP MMA 17455 case NVPTX::BI__mma_bf16_m16n16k16_mma_f32: 17456 return {4, 4, 8, 8, {{MMA_VARIANTS(m16n16k16, bf16)}}}; 17457 case NVPTX::BI__mma_bf16_m8n32k16_mma_f32: 17458 return {2, 8, 8, 8, {{MMA_VARIANTS(m8n32k16, bf16)}}}; 17459 case NVPTX::BI__mma_bf16_m32n8k16_mma_f32: 17460 return {8, 2, 8, 8, {{MMA_VARIANTS(m32n8k16, bf16)}}}; 17461 case NVPTX::BI__mma_tf32_m16n16k8_mma_f32: 17462 return {4, 4, 8, 8, {{MMA_VARIANTS(m16n16k8, tf32)}}}; 17463 default: 17464 llvm_unreachable("Unexpected builtin ID."); 17465 } 17466 #undef MMA_VARIANTS 17467 #undef MMA_SATF_VARIANTS 17468 #undef MMA_VARIANTS_I4 17469 #undef MMA_VARIANTS_B1_AND 17470 #undef MMA_VARIANTS_B1_XOR 17471 } 17472 17473 } // namespace 17474 17475 Value * 17476 CodeGenFunction::EmitNVPTXBuiltinExpr(unsigned BuiltinID, const CallExpr *E) { 17477 auto MakeLdg = [&](unsigned IntrinsicID) { 17478 Value *Ptr = EmitScalarExpr(E->getArg(0)); 17479 clang::CharUnits Align = 17480 CGM.getNaturalPointeeTypeAlignment(E->getArg(0)->getType()); 17481 return Builder.CreateCall( 17482 CGM.getIntrinsic(IntrinsicID, {Ptr->getType()->getPointerElementType(), 17483 Ptr->getType()}), 17484 {Ptr, ConstantInt::get(Builder.getInt32Ty(), Align.getQuantity())}); 17485 }; 17486 auto MakeScopedAtomic = [&](unsigned IntrinsicID) { 17487 Value *Ptr = EmitScalarExpr(E->getArg(0)); 17488 return Builder.CreateCall( 17489 CGM.getIntrinsic(IntrinsicID, {Ptr->getType()->getPointerElementType(), 17490 Ptr->getType()}), 17491 {Ptr, EmitScalarExpr(E->getArg(1))}); 17492 }; 17493 switch (BuiltinID) { 17494 case NVPTX::BI__nvvm_atom_add_gen_i: 17495 case NVPTX::BI__nvvm_atom_add_gen_l: 17496 case NVPTX::BI__nvvm_atom_add_gen_ll: 17497 return MakeBinaryAtomicValue(*this, llvm::AtomicRMWInst::Add, E); 17498 17499 case NVPTX::BI__nvvm_atom_sub_gen_i: 17500 case NVPTX::BI__nvvm_atom_sub_gen_l: 17501 case NVPTX::BI__nvvm_atom_sub_gen_ll: 17502 return MakeBinaryAtomicValue(*this, llvm::AtomicRMWInst::Sub, E); 17503 17504 case NVPTX::BI__nvvm_atom_and_gen_i: 17505 case NVPTX::BI__nvvm_atom_and_gen_l: 17506 case NVPTX::BI__nvvm_atom_and_gen_ll: 17507 return MakeBinaryAtomicValue(*this, llvm::AtomicRMWInst::And, E); 17508 17509 case NVPTX::BI__nvvm_atom_or_gen_i: 17510 case NVPTX::BI__nvvm_atom_or_gen_l: 17511 case NVPTX::BI__nvvm_atom_or_gen_ll: 17512 return MakeBinaryAtomicValue(*this, llvm::AtomicRMWInst::Or, E); 17513 17514 case NVPTX::BI__nvvm_atom_xor_gen_i: 17515 case NVPTX::BI__nvvm_atom_xor_gen_l: 17516 case NVPTX::BI__nvvm_atom_xor_gen_ll: 17517 return MakeBinaryAtomicValue(*this, llvm::AtomicRMWInst::Xor, E); 17518 17519 case NVPTX::BI__nvvm_atom_xchg_gen_i: 17520 case NVPTX::BI__nvvm_atom_xchg_gen_l: 17521 case NVPTX::BI__nvvm_atom_xchg_gen_ll: 17522 return MakeBinaryAtomicValue(*this, llvm::AtomicRMWInst::Xchg, E); 17523 17524 case NVPTX::BI__nvvm_atom_max_gen_i: 17525 case NVPTX::BI__nvvm_atom_max_gen_l: 17526 case NVPTX::BI__nvvm_atom_max_gen_ll: 17527 return MakeBinaryAtomicValue(*this, llvm::AtomicRMWInst::Max, E); 17528 17529 case NVPTX::BI__nvvm_atom_max_gen_ui: 17530 case NVPTX::BI__nvvm_atom_max_gen_ul: 17531 case NVPTX::BI__nvvm_atom_max_gen_ull: 17532 return MakeBinaryAtomicValue(*this, llvm::AtomicRMWInst::UMax, E); 17533 17534 case NVPTX::BI__nvvm_atom_min_gen_i: 17535 case NVPTX::BI__nvvm_atom_min_gen_l: 17536 case NVPTX::BI__nvvm_atom_min_gen_ll: 17537 return MakeBinaryAtomicValue(*this, llvm::AtomicRMWInst::Min, E); 17538 17539 case NVPTX::BI__nvvm_atom_min_gen_ui: 17540 case NVPTX::BI__nvvm_atom_min_gen_ul: 17541 case NVPTX::BI__nvvm_atom_min_gen_ull: 17542 return MakeBinaryAtomicValue(*this, llvm::AtomicRMWInst::UMin, E); 17543 17544 case NVPTX::BI__nvvm_atom_cas_gen_i: 17545 case NVPTX::BI__nvvm_atom_cas_gen_l: 17546 case NVPTX::BI__nvvm_atom_cas_gen_ll: 17547 // __nvvm_atom_cas_gen_* should return the old value rather than the 17548 // success flag. 17549 return MakeAtomicCmpXchgValue(*this, E, /*ReturnBool=*/false); 17550 17551 case NVPTX::BI__nvvm_atom_add_gen_f: 17552 case NVPTX::BI__nvvm_atom_add_gen_d: { 17553 Value *Ptr = EmitScalarExpr(E->getArg(0)); 17554 Value *Val = EmitScalarExpr(E->getArg(1)); 17555 return Builder.CreateAtomicRMW(llvm::AtomicRMWInst::FAdd, Ptr, Val, 17556 AtomicOrdering::SequentiallyConsistent); 17557 } 17558 17559 case NVPTX::BI__nvvm_atom_inc_gen_ui: { 17560 Value *Ptr = EmitScalarExpr(E->getArg(0)); 17561 Value *Val = EmitScalarExpr(E->getArg(1)); 17562 Function *FnALI32 = 17563 CGM.getIntrinsic(Intrinsic::nvvm_atomic_load_inc_32, Ptr->getType()); 17564 return Builder.CreateCall(FnALI32, {Ptr, Val}); 17565 } 17566 17567 case NVPTX::BI__nvvm_atom_dec_gen_ui: { 17568 Value *Ptr = EmitScalarExpr(E->getArg(0)); 17569 Value *Val = EmitScalarExpr(E->getArg(1)); 17570 Function *FnALD32 = 17571 CGM.getIntrinsic(Intrinsic::nvvm_atomic_load_dec_32, Ptr->getType()); 17572 return Builder.CreateCall(FnALD32, {Ptr, Val}); 17573 } 17574 17575 case NVPTX::BI__nvvm_ldg_c: 17576 case NVPTX::BI__nvvm_ldg_c2: 17577 case NVPTX::BI__nvvm_ldg_c4: 17578 case NVPTX::BI__nvvm_ldg_s: 17579 case NVPTX::BI__nvvm_ldg_s2: 17580 case NVPTX::BI__nvvm_ldg_s4: 17581 case NVPTX::BI__nvvm_ldg_i: 17582 case NVPTX::BI__nvvm_ldg_i2: 17583 case NVPTX::BI__nvvm_ldg_i4: 17584 case NVPTX::BI__nvvm_ldg_l: 17585 case NVPTX::BI__nvvm_ldg_ll: 17586 case NVPTX::BI__nvvm_ldg_ll2: 17587 case NVPTX::BI__nvvm_ldg_uc: 17588 case NVPTX::BI__nvvm_ldg_uc2: 17589 case NVPTX::BI__nvvm_ldg_uc4: 17590 case NVPTX::BI__nvvm_ldg_us: 17591 case NVPTX::BI__nvvm_ldg_us2: 17592 case NVPTX::BI__nvvm_ldg_us4: 17593 case NVPTX::BI__nvvm_ldg_ui: 17594 case NVPTX::BI__nvvm_ldg_ui2: 17595 case NVPTX::BI__nvvm_ldg_ui4: 17596 case NVPTX::BI__nvvm_ldg_ul: 17597 case NVPTX::BI__nvvm_ldg_ull: 17598 case NVPTX::BI__nvvm_ldg_ull2: 17599 // PTX Interoperability section 2.2: "For a vector with an even number of 17600 // elements, its alignment is set to number of elements times the alignment 17601 // of its member: n*alignof(t)." 17602 return MakeLdg(Intrinsic::nvvm_ldg_global_i); 17603 case NVPTX::BI__nvvm_ldg_f: 17604 case NVPTX::BI__nvvm_ldg_f2: 17605 case NVPTX::BI__nvvm_ldg_f4: 17606 case NVPTX::BI__nvvm_ldg_d: 17607 case NVPTX::BI__nvvm_ldg_d2: 17608 return MakeLdg(Intrinsic::nvvm_ldg_global_f); 17609 17610 case NVPTX::BI__nvvm_atom_cta_add_gen_i: 17611 case NVPTX::BI__nvvm_atom_cta_add_gen_l: 17612 case NVPTX::BI__nvvm_atom_cta_add_gen_ll: 17613 return MakeScopedAtomic(Intrinsic::nvvm_atomic_add_gen_i_cta); 17614 case NVPTX::BI__nvvm_atom_sys_add_gen_i: 17615 case NVPTX::BI__nvvm_atom_sys_add_gen_l: 17616 case NVPTX::BI__nvvm_atom_sys_add_gen_ll: 17617 return MakeScopedAtomic(Intrinsic::nvvm_atomic_add_gen_i_sys); 17618 case NVPTX::BI__nvvm_atom_cta_add_gen_f: 17619 case NVPTX::BI__nvvm_atom_cta_add_gen_d: 17620 return MakeScopedAtomic(Intrinsic::nvvm_atomic_add_gen_f_cta); 17621 case NVPTX::BI__nvvm_atom_sys_add_gen_f: 17622 case NVPTX::BI__nvvm_atom_sys_add_gen_d: 17623 return MakeScopedAtomic(Intrinsic::nvvm_atomic_add_gen_f_sys); 17624 case NVPTX::BI__nvvm_atom_cta_xchg_gen_i: 17625 case NVPTX::BI__nvvm_atom_cta_xchg_gen_l: 17626 case NVPTX::BI__nvvm_atom_cta_xchg_gen_ll: 17627 return MakeScopedAtomic(Intrinsic::nvvm_atomic_exch_gen_i_cta); 17628 case NVPTX::BI__nvvm_atom_sys_xchg_gen_i: 17629 case NVPTX::BI__nvvm_atom_sys_xchg_gen_l: 17630 case NVPTX::BI__nvvm_atom_sys_xchg_gen_ll: 17631 return MakeScopedAtomic(Intrinsic::nvvm_atomic_exch_gen_i_sys); 17632 case NVPTX::BI__nvvm_atom_cta_max_gen_i: 17633 case NVPTX::BI__nvvm_atom_cta_max_gen_ui: 17634 case NVPTX::BI__nvvm_atom_cta_max_gen_l: 17635 case NVPTX::BI__nvvm_atom_cta_max_gen_ul: 17636 case NVPTX::BI__nvvm_atom_cta_max_gen_ll: 17637 case NVPTX::BI__nvvm_atom_cta_max_gen_ull: 17638 return MakeScopedAtomic(Intrinsic::nvvm_atomic_max_gen_i_cta); 17639 case NVPTX::BI__nvvm_atom_sys_max_gen_i: 17640 case NVPTX::BI__nvvm_atom_sys_max_gen_ui: 17641 case NVPTX::BI__nvvm_atom_sys_max_gen_l: 17642 case NVPTX::BI__nvvm_atom_sys_max_gen_ul: 17643 case NVPTX::BI__nvvm_atom_sys_max_gen_ll: 17644 case NVPTX::BI__nvvm_atom_sys_max_gen_ull: 17645 return MakeScopedAtomic(Intrinsic::nvvm_atomic_max_gen_i_sys); 17646 case NVPTX::BI__nvvm_atom_cta_min_gen_i: 17647 case NVPTX::BI__nvvm_atom_cta_min_gen_ui: 17648 case NVPTX::BI__nvvm_atom_cta_min_gen_l: 17649 case NVPTX::BI__nvvm_atom_cta_min_gen_ul: 17650 case NVPTX::BI__nvvm_atom_cta_min_gen_ll: 17651 case NVPTX::BI__nvvm_atom_cta_min_gen_ull: 17652 return MakeScopedAtomic(Intrinsic::nvvm_atomic_min_gen_i_cta); 17653 case NVPTX::BI__nvvm_atom_sys_min_gen_i: 17654 case NVPTX::BI__nvvm_atom_sys_min_gen_ui: 17655 case NVPTX::BI__nvvm_atom_sys_min_gen_l: 17656 case NVPTX::BI__nvvm_atom_sys_min_gen_ul: 17657 case NVPTX::BI__nvvm_atom_sys_min_gen_ll: 17658 case NVPTX::BI__nvvm_atom_sys_min_gen_ull: 17659 return MakeScopedAtomic(Intrinsic::nvvm_atomic_min_gen_i_sys); 17660 case NVPTX::BI__nvvm_atom_cta_inc_gen_ui: 17661 return MakeScopedAtomic(Intrinsic::nvvm_atomic_inc_gen_i_cta); 17662 case NVPTX::BI__nvvm_atom_cta_dec_gen_ui: 17663 return MakeScopedAtomic(Intrinsic::nvvm_atomic_dec_gen_i_cta); 17664 case NVPTX::BI__nvvm_atom_sys_inc_gen_ui: 17665 return MakeScopedAtomic(Intrinsic::nvvm_atomic_inc_gen_i_sys); 17666 case NVPTX::BI__nvvm_atom_sys_dec_gen_ui: 17667 return MakeScopedAtomic(Intrinsic::nvvm_atomic_dec_gen_i_sys); 17668 case NVPTX::BI__nvvm_atom_cta_and_gen_i: 17669 case NVPTX::BI__nvvm_atom_cta_and_gen_l: 17670 case NVPTX::BI__nvvm_atom_cta_and_gen_ll: 17671 return MakeScopedAtomic(Intrinsic::nvvm_atomic_and_gen_i_cta); 17672 case NVPTX::BI__nvvm_atom_sys_and_gen_i: 17673 case NVPTX::BI__nvvm_atom_sys_and_gen_l: 17674 case NVPTX::BI__nvvm_atom_sys_and_gen_ll: 17675 return MakeScopedAtomic(Intrinsic::nvvm_atomic_and_gen_i_sys); 17676 case NVPTX::BI__nvvm_atom_cta_or_gen_i: 17677 case NVPTX::BI__nvvm_atom_cta_or_gen_l: 17678 case NVPTX::BI__nvvm_atom_cta_or_gen_ll: 17679 return MakeScopedAtomic(Intrinsic::nvvm_atomic_or_gen_i_cta); 17680 case NVPTX::BI__nvvm_atom_sys_or_gen_i: 17681 case NVPTX::BI__nvvm_atom_sys_or_gen_l: 17682 case NVPTX::BI__nvvm_atom_sys_or_gen_ll: 17683 return MakeScopedAtomic(Intrinsic::nvvm_atomic_or_gen_i_sys); 17684 case NVPTX::BI__nvvm_atom_cta_xor_gen_i: 17685 case NVPTX::BI__nvvm_atom_cta_xor_gen_l: 17686 case NVPTX::BI__nvvm_atom_cta_xor_gen_ll: 17687 return MakeScopedAtomic(Intrinsic::nvvm_atomic_xor_gen_i_cta); 17688 case NVPTX::BI__nvvm_atom_sys_xor_gen_i: 17689 case NVPTX::BI__nvvm_atom_sys_xor_gen_l: 17690 case NVPTX::BI__nvvm_atom_sys_xor_gen_ll: 17691 return MakeScopedAtomic(Intrinsic::nvvm_atomic_xor_gen_i_sys); 17692 case NVPTX::BI__nvvm_atom_cta_cas_gen_i: 17693 case NVPTX::BI__nvvm_atom_cta_cas_gen_l: 17694 case NVPTX::BI__nvvm_atom_cta_cas_gen_ll: { 17695 Value *Ptr = EmitScalarExpr(E->getArg(0)); 17696 return Builder.CreateCall( 17697 CGM.getIntrinsic( 17698 Intrinsic::nvvm_atomic_cas_gen_i_cta, 17699 {Ptr->getType()->getPointerElementType(), Ptr->getType()}), 17700 {Ptr, EmitScalarExpr(E->getArg(1)), EmitScalarExpr(E->getArg(2))}); 17701 } 17702 case NVPTX::BI__nvvm_atom_sys_cas_gen_i: 17703 case NVPTX::BI__nvvm_atom_sys_cas_gen_l: 17704 case NVPTX::BI__nvvm_atom_sys_cas_gen_ll: { 17705 Value *Ptr = EmitScalarExpr(E->getArg(0)); 17706 return Builder.CreateCall( 17707 CGM.getIntrinsic( 17708 Intrinsic::nvvm_atomic_cas_gen_i_sys, 17709 {Ptr->getType()->getPointerElementType(), Ptr->getType()}), 17710 {Ptr, EmitScalarExpr(E->getArg(1)), EmitScalarExpr(E->getArg(2))}); 17711 } 17712 case NVPTX::BI__nvvm_match_all_sync_i32p: 17713 case NVPTX::BI__nvvm_match_all_sync_i64p: { 17714 Value *Mask = EmitScalarExpr(E->getArg(0)); 17715 Value *Val = EmitScalarExpr(E->getArg(1)); 17716 Address PredOutPtr = EmitPointerWithAlignment(E->getArg(2)); 17717 Value *ResultPair = Builder.CreateCall( 17718 CGM.getIntrinsic(BuiltinID == NVPTX::BI__nvvm_match_all_sync_i32p 17719 ? Intrinsic::nvvm_match_all_sync_i32p 17720 : Intrinsic::nvvm_match_all_sync_i64p), 17721 {Mask, Val}); 17722 Value *Pred = Builder.CreateZExt(Builder.CreateExtractValue(ResultPair, 1), 17723 PredOutPtr.getElementType()); 17724 Builder.CreateStore(Pred, PredOutPtr); 17725 return Builder.CreateExtractValue(ResultPair, 0); 17726 } 17727 17728 // FP MMA loads 17729 case NVPTX::BI__hmma_m16n16k16_ld_a: 17730 case NVPTX::BI__hmma_m16n16k16_ld_b: 17731 case NVPTX::BI__hmma_m16n16k16_ld_c_f16: 17732 case NVPTX::BI__hmma_m16n16k16_ld_c_f32: 17733 case NVPTX::BI__hmma_m32n8k16_ld_a: 17734 case NVPTX::BI__hmma_m32n8k16_ld_b: 17735 case NVPTX::BI__hmma_m32n8k16_ld_c_f16: 17736 case NVPTX::BI__hmma_m32n8k16_ld_c_f32: 17737 case NVPTX::BI__hmma_m8n32k16_ld_a: 17738 case NVPTX::BI__hmma_m8n32k16_ld_b: 17739 case NVPTX::BI__hmma_m8n32k16_ld_c_f16: 17740 case NVPTX::BI__hmma_m8n32k16_ld_c_f32: 17741 // Integer MMA loads. 17742 case NVPTX::BI__imma_m16n16k16_ld_a_s8: 17743 case NVPTX::BI__imma_m16n16k16_ld_a_u8: 17744 case NVPTX::BI__imma_m16n16k16_ld_b_s8: 17745 case NVPTX::BI__imma_m16n16k16_ld_b_u8: 17746 case NVPTX::BI__imma_m16n16k16_ld_c: 17747 case NVPTX::BI__imma_m32n8k16_ld_a_s8: 17748 case NVPTX::BI__imma_m32n8k16_ld_a_u8: 17749 case NVPTX::BI__imma_m32n8k16_ld_b_s8: 17750 case NVPTX::BI__imma_m32n8k16_ld_b_u8: 17751 case NVPTX::BI__imma_m32n8k16_ld_c: 17752 case NVPTX::BI__imma_m8n32k16_ld_a_s8: 17753 case NVPTX::BI__imma_m8n32k16_ld_a_u8: 17754 case NVPTX::BI__imma_m8n32k16_ld_b_s8: 17755 case NVPTX::BI__imma_m8n32k16_ld_b_u8: 17756 case NVPTX::BI__imma_m8n32k16_ld_c: 17757 // Sub-integer MMA loads. 17758 case NVPTX::BI__imma_m8n8k32_ld_a_s4: 17759 case NVPTX::BI__imma_m8n8k32_ld_a_u4: 17760 case NVPTX::BI__imma_m8n8k32_ld_b_s4: 17761 case NVPTX::BI__imma_m8n8k32_ld_b_u4: 17762 case NVPTX::BI__imma_m8n8k32_ld_c: 17763 case NVPTX::BI__bmma_m8n8k128_ld_a_b1: 17764 case NVPTX::BI__bmma_m8n8k128_ld_b_b1: 17765 case NVPTX::BI__bmma_m8n8k128_ld_c: 17766 // Double MMA loads. 17767 case NVPTX::BI__dmma_m8n8k4_ld_a: 17768 case NVPTX::BI__dmma_m8n8k4_ld_b: 17769 case NVPTX::BI__dmma_m8n8k4_ld_c: 17770 // Alternate float MMA loads. 17771 case NVPTX::BI__mma_bf16_m16n16k16_ld_a: 17772 case NVPTX::BI__mma_bf16_m16n16k16_ld_b: 17773 case NVPTX::BI__mma_bf16_m8n32k16_ld_a: 17774 case NVPTX::BI__mma_bf16_m8n32k16_ld_b: 17775 case NVPTX::BI__mma_bf16_m32n8k16_ld_a: 17776 case NVPTX::BI__mma_bf16_m32n8k16_ld_b: 17777 case NVPTX::BI__mma_tf32_m16n16k8_ld_a: 17778 case NVPTX::BI__mma_tf32_m16n16k8_ld_b: 17779 case NVPTX::BI__mma_tf32_m16n16k8_ld_c: { 17780 Address Dst = EmitPointerWithAlignment(E->getArg(0)); 17781 Value *Src = EmitScalarExpr(E->getArg(1)); 17782 Value *Ldm = EmitScalarExpr(E->getArg(2)); 17783 Optional<llvm::APSInt> isColMajorArg = 17784 E->getArg(3)->getIntegerConstantExpr(getContext()); 17785 if (!isColMajorArg) 17786 return nullptr; 17787 bool isColMajor = isColMajorArg->getSExtValue(); 17788 NVPTXMmaLdstInfo II = getNVPTXMmaLdstInfo(BuiltinID); 17789 unsigned IID = isColMajor ? II.IID_col : II.IID_row; 17790 if (IID == 0) 17791 return nullptr; 17792 17793 Value *Result = 17794 Builder.CreateCall(CGM.getIntrinsic(IID, Src->getType()), {Src, Ldm}); 17795 17796 // Save returned values. 17797 assert(II.NumResults); 17798 if (II.NumResults == 1) { 17799 Builder.CreateAlignedStore(Result, Dst.getPointer(), 17800 CharUnits::fromQuantity(4)); 17801 } else { 17802 for (unsigned i = 0; i < II.NumResults; ++i) { 17803 Builder.CreateAlignedStore( 17804 Builder.CreateBitCast(Builder.CreateExtractValue(Result, i), 17805 Dst.getElementType()), 17806 Builder.CreateGEP(Dst.getElementType(), Dst.getPointer(), 17807 llvm::ConstantInt::get(IntTy, i)), 17808 CharUnits::fromQuantity(4)); 17809 } 17810 } 17811 return Result; 17812 } 17813 17814 case NVPTX::BI__hmma_m16n16k16_st_c_f16: 17815 case NVPTX::BI__hmma_m16n16k16_st_c_f32: 17816 case NVPTX::BI__hmma_m32n8k16_st_c_f16: 17817 case NVPTX::BI__hmma_m32n8k16_st_c_f32: 17818 case NVPTX::BI__hmma_m8n32k16_st_c_f16: 17819 case NVPTX::BI__hmma_m8n32k16_st_c_f32: 17820 case NVPTX::BI__imma_m16n16k16_st_c_i32: 17821 case NVPTX::BI__imma_m32n8k16_st_c_i32: 17822 case NVPTX::BI__imma_m8n32k16_st_c_i32: 17823 case NVPTX::BI__imma_m8n8k32_st_c_i32: 17824 case NVPTX::BI__bmma_m8n8k128_st_c_i32: 17825 case NVPTX::BI__dmma_m8n8k4_st_c_f64: 17826 case NVPTX::BI__mma_m16n16k8_st_c_f32: { 17827 Value *Dst = EmitScalarExpr(E->getArg(0)); 17828 Address Src = EmitPointerWithAlignment(E->getArg(1)); 17829 Value *Ldm = EmitScalarExpr(E->getArg(2)); 17830 Optional<llvm::APSInt> isColMajorArg = 17831 E->getArg(3)->getIntegerConstantExpr(getContext()); 17832 if (!isColMajorArg) 17833 return nullptr; 17834 bool isColMajor = isColMajorArg->getSExtValue(); 17835 NVPTXMmaLdstInfo II = getNVPTXMmaLdstInfo(BuiltinID); 17836 unsigned IID = isColMajor ? II.IID_col : II.IID_row; 17837 if (IID == 0) 17838 return nullptr; 17839 Function *Intrinsic = 17840 CGM.getIntrinsic(IID, Dst->getType()); 17841 llvm::Type *ParamType = Intrinsic->getFunctionType()->getParamType(1); 17842 SmallVector<Value *, 10> Values = {Dst}; 17843 for (unsigned i = 0; i < II.NumResults; ++i) { 17844 Value *V = Builder.CreateAlignedLoad( 17845 Src.getElementType(), 17846 Builder.CreateGEP(Src.getElementType(), Src.getPointer(), 17847 llvm::ConstantInt::get(IntTy, i)), 17848 CharUnits::fromQuantity(4)); 17849 Values.push_back(Builder.CreateBitCast(V, ParamType)); 17850 } 17851 Values.push_back(Ldm); 17852 Value *Result = Builder.CreateCall(Intrinsic, Values); 17853 return Result; 17854 } 17855 17856 // BI__hmma_m16n16k16_mma_<Dtype><CType>(d, a, b, c, layout, satf) --> 17857 // Intrinsic::nvvm_wmma_m16n16k16_mma_sync<layout A,B><DType><CType><Satf> 17858 case NVPTX::BI__hmma_m16n16k16_mma_f16f16: 17859 case NVPTX::BI__hmma_m16n16k16_mma_f32f16: 17860 case NVPTX::BI__hmma_m16n16k16_mma_f32f32: 17861 case NVPTX::BI__hmma_m16n16k16_mma_f16f32: 17862 case NVPTX::BI__hmma_m32n8k16_mma_f16f16: 17863 case NVPTX::BI__hmma_m32n8k16_mma_f32f16: 17864 case NVPTX::BI__hmma_m32n8k16_mma_f32f32: 17865 case NVPTX::BI__hmma_m32n8k16_mma_f16f32: 17866 case NVPTX::BI__hmma_m8n32k16_mma_f16f16: 17867 case NVPTX::BI__hmma_m8n32k16_mma_f32f16: 17868 case NVPTX::BI__hmma_m8n32k16_mma_f32f32: 17869 case NVPTX::BI__hmma_m8n32k16_mma_f16f32: 17870 case NVPTX::BI__imma_m16n16k16_mma_s8: 17871 case NVPTX::BI__imma_m16n16k16_mma_u8: 17872 case NVPTX::BI__imma_m32n8k16_mma_s8: 17873 case NVPTX::BI__imma_m32n8k16_mma_u8: 17874 case NVPTX::BI__imma_m8n32k16_mma_s8: 17875 case NVPTX::BI__imma_m8n32k16_mma_u8: 17876 case NVPTX::BI__imma_m8n8k32_mma_s4: 17877 case NVPTX::BI__imma_m8n8k32_mma_u4: 17878 case NVPTX::BI__bmma_m8n8k128_mma_xor_popc_b1: 17879 case NVPTX::BI__bmma_m8n8k128_mma_and_popc_b1: 17880 case NVPTX::BI__dmma_m8n8k4_mma_f64: 17881 case NVPTX::BI__mma_bf16_m16n16k16_mma_f32: 17882 case NVPTX::BI__mma_bf16_m8n32k16_mma_f32: 17883 case NVPTX::BI__mma_bf16_m32n8k16_mma_f32: 17884 case NVPTX::BI__mma_tf32_m16n16k8_mma_f32: { 17885 Address Dst = EmitPointerWithAlignment(E->getArg(0)); 17886 Address SrcA = EmitPointerWithAlignment(E->getArg(1)); 17887 Address SrcB = EmitPointerWithAlignment(E->getArg(2)); 17888 Address SrcC = EmitPointerWithAlignment(E->getArg(3)); 17889 Optional<llvm::APSInt> LayoutArg = 17890 E->getArg(4)->getIntegerConstantExpr(getContext()); 17891 if (!LayoutArg) 17892 return nullptr; 17893 int Layout = LayoutArg->getSExtValue(); 17894 if (Layout < 0 || Layout > 3) 17895 return nullptr; 17896 llvm::APSInt SatfArg; 17897 if (BuiltinID == NVPTX::BI__bmma_m8n8k128_mma_xor_popc_b1 || 17898 BuiltinID == NVPTX::BI__bmma_m8n8k128_mma_and_popc_b1) 17899 SatfArg = 0; // .b1 does not have satf argument. 17900 else if (Optional<llvm::APSInt> OptSatfArg = 17901 E->getArg(5)->getIntegerConstantExpr(getContext())) 17902 SatfArg = *OptSatfArg; 17903 else 17904 return nullptr; 17905 bool Satf = SatfArg.getSExtValue(); 17906 NVPTXMmaInfo MI = getNVPTXMmaInfo(BuiltinID); 17907 unsigned IID = MI.getMMAIntrinsic(Layout, Satf); 17908 if (IID == 0) // Unsupported combination of Layout/Satf. 17909 return nullptr; 17910 17911 SmallVector<Value *, 24> Values; 17912 Function *Intrinsic = CGM.getIntrinsic(IID); 17913 llvm::Type *AType = Intrinsic->getFunctionType()->getParamType(0); 17914 // Load A 17915 for (unsigned i = 0; i < MI.NumEltsA; ++i) { 17916 Value *V = Builder.CreateAlignedLoad( 17917 SrcA.getElementType(), 17918 Builder.CreateGEP(SrcA.getElementType(), SrcA.getPointer(), 17919 llvm::ConstantInt::get(IntTy, i)), 17920 CharUnits::fromQuantity(4)); 17921 Values.push_back(Builder.CreateBitCast(V, AType)); 17922 } 17923 // Load B 17924 llvm::Type *BType = Intrinsic->getFunctionType()->getParamType(MI.NumEltsA); 17925 for (unsigned i = 0; i < MI.NumEltsB; ++i) { 17926 Value *V = Builder.CreateAlignedLoad( 17927 SrcB.getElementType(), 17928 Builder.CreateGEP(SrcB.getElementType(), SrcB.getPointer(), 17929 llvm::ConstantInt::get(IntTy, i)), 17930 CharUnits::fromQuantity(4)); 17931 Values.push_back(Builder.CreateBitCast(V, BType)); 17932 } 17933 // Load C 17934 llvm::Type *CType = 17935 Intrinsic->getFunctionType()->getParamType(MI.NumEltsA + MI.NumEltsB); 17936 for (unsigned i = 0; i < MI.NumEltsC; ++i) { 17937 Value *V = Builder.CreateAlignedLoad( 17938 SrcC.getElementType(), 17939 Builder.CreateGEP(SrcC.getElementType(), SrcC.getPointer(), 17940 llvm::ConstantInt::get(IntTy, i)), 17941 CharUnits::fromQuantity(4)); 17942 Values.push_back(Builder.CreateBitCast(V, CType)); 17943 } 17944 Value *Result = Builder.CreateCall(Intrinsic, Values); 17945 llvm::Type *DType = Dst.getElementType(); 17946 for (unsigned i = 0; i < MI.NumEltsD; ++i) 17947 Builder.CreateAlignedStore( 17948 Builder.CreateBitCast(Builder.CreateExtractValue(Result, i), DType), 17949 Builder.CreateGEP(Dst.getElementType(), Dst.getPointer(), 17950 llvm::ConstantInt::get(IntTy, i)), 17951 CharUnits::fromQuantity(4)); 17952 return Result; 17953 } 17954 default: 17955 return nullptr; 17956 } 17957 } 17958 17959 namespace { 17960 struct BuiltinAlignArgs { 17961 llvm::Value *Src = nullptr; 17962 llvm::Type *SrcType = nullptr; 17963 llvm::Value *Alignment = nullptr; 17964 llvm::Value *Mask = nullptr; 17965 llvm::IntegerType *IntType = nullptr; 17966 17967 BuiltinAlignArgs(const CallExpr *E, CodeGenFunction &CGF) { 17968 QualType AstType = E->getArg(0)->getType(); 17969 if (AstType->isArrayType()) 17970 Src = CGF.EmitArrayToPointerDecay(E->getArg(0)).getPointer(); 17971 else 17972 Src = CGF.EmitScalarExpr(E->getArg(0)); 17973 SrcType = Src->getType(); 17974 if (SrcType->isPointerTy()) { 17975 IntType = IntegerType::get( 17976 CGF.getLLVMContext(), 17977 CGF.CGM.getDataLayout().getIndexTypeSizeInBits(SrcType)); 17978 } else { 17979 assert(SrcType->isIntegerTy()); 17980 IntType = cast<llvm::IntegerType>(SrcType); 17981 } 17982 Alignment = CGF.EmitScalarExpr(E->getArg(1)); 17983 Alignment = CGF.Builder.CreateZExtOrTrunc(Alignment, IntType, "alignment"); 17984 auto *One = llvm::ConstantInt::get(IntType, 1); 17985 Mask = CGF.Builder.CreateSub(Alignment, One, "mask"); 17986 } 17987 }; 17988 } // namespace 17989 17990 /// Generate (x & (y-1)) == 0. 17991 RValue CodeGenFunction::EmitBuiltinIsAligned(const CallExpr *E) { 17992 BuiltinAlignArgs Args(E, *this); 17993 llvm::Value *SrcAddress = Args.Src; 17994 if (Args.SrcType->isPointerTy()) 17995 SrcAddress = 17996 Builder.CreateBitOrPointerCast(Args.Src, Args.IntType, "src_addr"); 17997 return RValue::get(Builder.CreateICmpEQ( 17998 Builder.CreateAnd(SrcAddress, Args.Mask, "set_bits"), 17999 llvm::Constant::getNullValue(Args.IntType), "is_aligned")); 18000 } 18001 18002 /// Generate (x & ~(y-1)) to align down or ((x+(y-1)) & ~(y-1)) to align up. 18003 /// Note: For pointer types we can avoid ptrtoint/inttoptr pairs by using the 18004 /// llvm.ptrmask instrinsic (with a GEP before in the align_up case). 18005 /// TODO: actually use ptrmask once most optimization passes know about it. 18006 RValue CodeGenFunction::EmitBuiltinAlignTo(const CallExpr *E, bool AlignUp) { 18007 BuiltinAlignArgs Args(E, *this); 18008 llvm::Value *SrcAddr = Args.Src; 18009 if (Args.Src->getType()->isPointerTy()) 18010 SrcAddr = Builder.CreatePtrToInt(Args.Src, Args.IntType, "intptr"); 18011 llvm::Value *SrcForMask = SrcAddr; 18012 if (AlignUp) { 18013 // When aligning up we have to first add the mask to ensure we go over the 18014 // next alignment value and then align down to the next valid multiple. 18015 // By adding the mask, we ensure that align_up on an already aligned 18016 // value will not change the value. 18017 SrcForMask = Builder.CreateAdd(SrcForMask, Args.Mask, "over_boundary"); 18018 } 18019 // Invert the mask to only clear the lower bits. 18020 llvm::Value *InvertedMask = Builder.CreateNot(Args.Mask, "inverted_mask"); 18021 llvm::Value *Result = 18022 Builder.CreateAnd(SrcForMask, InvertedMask, "aligned_result"); 18023 if (Args.Src->getType()->isPointerTy()) { 18024 /// TODO: Use ptrmask instead of ptrtoint+gep once it is optimized well. 18025 // Result = Builder.CreateIntrinsic( 18026 // Intrinsic::ptrmask, {Args.SrcType, SrcForMask->getType(), Args.IntType}, 18027 // {SrcForMask, NegatedMask}, nullptr, "aligned_result"); 18028 Result->setName("aligned_intptr"); 18029 llvm::Value *Difference = Builder.CreateSub(Result, SrcAddr, "diff"); 18030 // The result must point to the same underlying allocation. This means we 18031 // can use an inbounds GEP to enable better optimization. 18032 Value *Base = EmitCastToVoidPtr(Args.Src); 18033 if (getLangOpts().isSignedOverflowDefined()) 18034 Result = Builder.CreateGEP(Int8Ty, Base, Difference, "aligned_result"); 18035 else 18036 Result = EmitCheckedInBoundsGEP(Int8Ty, Base, Difference, 18037 /*SignedIndices=*/true, 18038 /*isSubtraction=*/!AlignUp, 18039 E->getExprLoc(), "aligned_result"); 18040 Result = Builder.CreatePointerCast(Result, Args.SrcType); 18041 // Emit an alignment assumption to ensure that the new alignment is 18042 // propagated to loads/stores, etc. 18043 emitAlignmentAssumption(Result, E, E->getExprLoc(), Args.Alignment); 18044 } 18045 assert(Result->getType() == Args.SrcType); 18046 return RValue::get(Result); 18047 } 18048 18049 Value *CodeGenFunction::EmitWebAssemblyBuiltinExpr(unsigned BuiltinID, 18050 const CallExpr *E) { 18051 switch (BuiltinID) { 18052 case WebAssembly::BI__builtin_wasm_memory_size: { 18053 llvm::Type *ResultType = ConvertType(E->getType()); 18054 Value *I = EmitScalarExpr(E->getArg(0)); 18055 Function *Callee = 18056 CGM.getIntrinsic(Intrinsic::wasm_memory_size, ResultType); 18057 return Builder.CreateCall(Callee, I); 18058 } 18059 case WebAssembly::BI__builtin_wasm_memory_grow: { 18060 llvm::Type *ResultType = ConvertType(E->getType()); 18061 Value *Args[] = {EmitScalarExpr(E->getArg(0)), 18062 EmitScalarExpr(E->getArg(1))}; 18063 Function *Callee = 18064 CGM.getIntrinsic(Intrinsic::wasm_memory_grow, ResultType); 18065 return Builder.CreateCall(Callee, Args); 18066 } 18067 case WebAssembly::BI__builtin_wasm_tls_size: { 18068 llvm::Type *ResultType = ConvertType(E->getType()); 18069 Function *Callee = CGM.getIntrinsic(Intrinsic::wasm_tls_size, ResultType); 18070 return Builder.CreateCall(Callee); 18071 } 18072 case WebAssembly::BI__builtin_wasm_tls_align: { 18073 llvm::Type *ResultType = ConvertType(E->getType()); 18074 Function *Callee = CGM.getIntrinsic(Intrinsic::wasm_tls_align, ResultType); 18075 return Builder.CreateCall(Callee); 18076 } 18077 case WebAssembly::BI__builtin_wasm_tls_base: { 18078 Function *Callee = CGM.getIntrinsic(Intrinsic::wasm_tls_base); 18079 return Builder.CreateCall(Callee); 18080 } 18081 case WebAssembly::BI__builtin_wasm_throw: { 18082 Value *Tag = EmitScalarExpr(E->getArg(0)); 18083 Value *Obj = EmitScalarExpr(E->getArg(1)); 18084 Function *Callee = CGM.getIntrinsic(Intrinsic::wasm_throw); 18085 return Builder.CreateCall(Callee, {Tag, Obj}); 18086 } 18087 case WebAssembly::BI__builtin_wasm_rethrow: { 18088 Function *Callee = CGM.getIntrinsic(Intrinsic::wasm_rethrow); 18089 return Builder.CreateCall(Callee); 18090 } 18091 case WebAssembly::BI__builtin_wasm_memory_atomic_wait32: { 18092 Value *Addr = EmitScalarExpr(E->getArg(0)); 18093 Value *Expected = EmitScalarExpr(E->getArg(1)); 18094 Value *Timeout = EmitScalarExpr(E->getArg(2)); 18095 Function *Callee = CGM.getIntrinsic(Intrinsic::wasm_memory_atomic_wait32); 18096 return Builder.CreateCall(Callee, {Addr, Expected, Timeout}); 18097 } 18098 case WebAssembly::BI__builtin_wasm_memory_atomic_wait64: { 18099 Value *Addr = EmitScalarExpr(E->getArg(0)); 18100 Value *Expected = EmitScalarExpr(E->getArg(1)); 18101 Value *Timeout = EmitScalarExpr(E->getArg(2)); 18102 Function *Callee = CGM.getIntrinsic(Intrinsic::wasm_memory_atomic_wait64); 18103 return Builder.CreateCall(Callee, {Addr, Expected, Timeout}); 18104 } 18105 case WebAssembly::BI__builtin_wasm_memory_atomic_notify: { 18106 Value *Addr = EmitScalarExpr(E->getArg(0)); 18107 Value *Count = EmitScalarExpr(E->getArg(1)); 18108 Function *Callee = CGM.getIntrinsic(Intrinsic::wasm_memory_atomic_notify); 18109 return Builder.CreateCall(Callee, {Addr, Count}); 18110 } 18111 case WebAssembly::BI__builtin_wasm_trunc_s_i32_f32: 18112 case WebAssembly::BI__builtin_wasm_trunc_s_i32_f64: 18113 case WebAssembly::BI__builtin_wasm_trunc_s_i64_f32: 18114 case WebAssembly::BI__builtin_wasm_trunc_s_i64_f64: { 18115 Value *Src = EmitScalarExpr(E->getArg(0)); 18116 llvm::Type *ResT = ConvertType(E->getType()); 18117 Function *Callee = 18118 CGM.getIntrinsic(Intrinsic::wasm_trunc_signed, {ResT, Src->getType()}); 18119 return Builder.CreateCall(Callee, {Src}); 18120 } 18121 case WebAssembly::BI__builtin_wasm_trunc_u_i32_f32: 18122 case WebAssembly::BI__builtin_wasm_trunc_u_i32_f64: 18123 case WebAssembly::BI__builtin_wasm_trunc_u_i64_f32: 18124 case WebAssembly::BI__builtin_wasm_trunc_u_i64_f64: { 18125 Value *Src = EmitScalarExpr(E->getArg(0)); 18126 llvm::Type *ResT = ConvertType(E->getType()); 18127 Function *Callee = CGM.getIntrinsic(Intrinsic::wasm_trunc_unsigned, 18128 {ResT, Src->getType()}); 18129 return Builder.CreateCall(Callee, {Src}); 18130 } 18131 case WebAssembly::BI__builtin_wasm_trunc_saturate_s_i32_f32: 18132 case WebAssembly::BI__builtin_wasm_trunc_saturate_s_i32_f64: 18133 case WebAssembly::BI__builtin_wasm_trunc_saturate_s_i64_f32: 18134 case WebAssembly::BI__builtin_wasm_trunc_saturate_s_i64_f64: 18135 case WebAssembly::BI__builtin_wasm_trunc_saturate_s_i32x4_f32x4: { 18136 Value *Src = EmitScalarExpr(E->getArg(0)); 18137 llvm::Type *ResT = ConvertType(E->getType()); 18138 Function *Callee = 18139 CGM.getIntrinsic(Intrinsic::fptosi_sat, {ResT, Src->getType()}); 18140 return Builder.CreateCall(Callee, {Src}); 18141 } 18142 case WebAssembly::BI__builtin_wasm_trunc_saturate_u_i32_f32: 18143 case WebAssembly::BI__builtin_wasm_trunc_saturate_u_i32_f64: 18144 case WebAssembly::BI__builtin_wasm_trunc_saturate_u_i64_f32: 18145 case WebAssembly::BI__builtin_wasm_trunc_saturate_u_i64_f64: 18146 case WebAssembly::BI__builtin_wasm_trunc_saturate_u_i32x4_f32x4: { 18147 Value *Src = EmitScalarExpr(E->getArg(0)); 18148 llvm::Type *ResT = ConvertType(E->getType()); 18149 Function *Callee = 18150 CGM.getIntrinsic(Intrinsic::fptoui_sat, {ResT, Src->getType()}); 18151 return Builder.CreateCall(Callee, {Src}); 18152 } 18153 case WebAssembly::BI__builtin_wasm_min_f32: 18154 case WebAssembly::BI__builtin_wasm_min_f64: 18155 case WebAssembly::BI__builtin_wasm_min_f32x4: 18156 case WebAssembly::BI__builtin_wasm_min_f64x2: { 18157 Value *LHS = EmitScalarExpr(E->getArg(0)); 18158 Value *RHS = EmitScalarExpr(E->getArg(1)); 18159 Function *Callee = 18160 CGM.getIntrinsic(Intrinsic::minimum, ConvertType(E->getType())); 18161 return Builder.CreateCall(Callee, {LHS, RHS}); 18162 } 18163 case WebAssembly::BI__builtin_wasm_max_f32: 18164 case WebAssembly::BI__builtin_wasm_max_f64: 18165 case WebAssembly::BI__builtin_wasm_max_f32x4: 18166 case WebAssembly::BI__builtin_wasm_max_f64x2: { 18167 Value *LHS = EmitScalarExpr(E->getArg(0)); 18168 Value *RHS = EmitScalarExpr(E->getArg(1)); 18169 Function *Callee = 18170 CGM.getIntrinsic(Intrinsic::maximum, ConvertType(E->getType())); 18171 return Builder.CreateCall(Callee, {LHS, RHS}); 18172 } 18173 case WebAssembly::BI__builtin_wasm_pmin_f32x4: 18174 case WebAssembly::BI__builtin_wasm_pmin_f64x2: { 18175 Value *LHS = EmitScalarExpr(E->getArg(0)); 18176 Value *RHS = EmitScalarExpr(E->getArg(1)); 18177 Function *Callee = 18178 CGM.getIntrinsic(Intrinsic::wasm_pmin, ConvertType(E->getType())); 18179 return Builder.CreateCall(Callee, {LHS, RHS}); 18180 } 18181 case WebAssembly::BI__builtin_wasm_pmax_f32x4: 18182 case WebAssembly::BI__builtin_wasm_pmax_f64x2: { 18183 Value *LHS = EmitScalarExpr(E->getArg(0)); 18184 Value *RHS = EmitScalarExpr(E->getArg(1)); 18185 Function *Callee = 18186 CGM.getIntrinsic(Intrinsic::wasm_pmax, ConvertType(E->getType())); 18187 return Builder.CreateCall(Callee, {LHS, RHS}); 18188 } 18189 case WebAssembly::BI__builtin_wasm_ceil_f32x4: 18190 case WebAssembly::BI__builtin_wasm_floor_f32x4: 18191 case WebAssembly::BI__builtin_wasm_trunc_f32x4: 18192 case WebAssembly::BI__builtin_wasm_nearest_f32x4: 18193 case WebAssembly::BI__builtin_wasm_ceil_f64x2: 18194 case WebAssembly::BI__builtin_wasm_floor_f64x2: 18195 case WebAssembly::BI__builtin_wasm_trunc_f64x2: 18196 case WebAssembly::BI__builtin_wasm_nearest_f64x2: { 18197 unsigned IntNo; 18198 switch (BuiltinID) { 18199 case WebAssembly::BI__builtin_wasm_ceil_f32x4: 18200 case WebAssembly::BI__builtin_wasm_ceil_f64x2: 18201 IntNo = Intrinsic::ceil; 18202 break; 18203 case WebAssembly::BI__builtin_wasm_floor_f32x4: 18204 case WebAssembly::BI__builtin_wasm_floor_f64x2: 18205 IntNo = Intrinsic::floor; 18206 break; 18207 case WebAssembly::BI__builtin_wasm_trunc_f32x4: 18208 case WebAssembly::BI__builtin_wasm_trunc_f64x2: 18209 IntNo = Intrinsic::trunc; 18210 break; 18211 case WebAssembly::BI__builtin_wasm_nearest_f32x4: 18212 case WebAssembly::BI__builtin_wasm_nearest_f64x2: 18213 IntNo = Intrinsic::nearbyint; 18214 break; 18215 default: 18216 llvm_unreachable("unexpected builtin ID"); 18217 } 18218 Value *Value = EmitScalarExpr(E->getArg(0)); 18219 Function *Callee = CGM.getIntrinsic(IntNo, ConvertType(E->getType())); 18220 return Builder.CreateCall(Callee, Value); 18221 } 18222 case WebAssembly::BI__builtin_wasm_swizzle_i8x16: { 18223 Value *Src = EmitScalarExpr(E->getArg(0)); 18224 Value *Indices = EmitScalarExpr(E->getArg(1)); 18225 Function *Callee = CGM.getIntrinsic(Intrinsic::wasm_swizzle); 18226 return Builder.CreateCall(Callee, {Src, Indices}); 18227 } 18228 case WebAssembly::BI__builtin_wasm_add_sat_s_i8x16: 18229 case WebAssembly::BI__builtin_wasm_add_sat_u_i8x16: 18230 case WebAssembly::BI__builtin_wasm_add_sat_s_i16x8: 18231 case WebAssembly::BI__builtin_wasm_add_sat_u_i16x8: 18232 case WebAssembly::BI__builtin_wasm_sub_sat_s_i8x16: 18233 case WebAssembly::BI__builtin_wasm_sub_sat_u_i8x16: 18234 case WebAssembly::BI__builtin_wasm_sub_sat_s_i16x8: 18235 case WebAssembly::BI__builtin_wasm_sub_sat_u_i16x8: { 18236 unsigned IntNo; 18237 switch (BuiltinID) { 18238 case WebAssembly::BI__builtin_wasm_add_sat_s_i8x16: 18239 case WebAssembly::BI__builtin_wasm_add_sat_s_i16x8: 18240 IntNo = Intrinsic::sadd_sat; 18241 break; 18242 case WebAssembly::BI__builtin_wasm_add_sat_u_i8x16: 18243 case WebAssembly::BI__builtin_wasm_add_sat_u_i16x8: 18244 IntNo = Intrinsic::uadd_sat; 18245 break; 18246 case WebAssembly::BI__builtin_wasm_sub_sat_s_i8x16: 18247 case WebAssembly::BI__builtin_wasm_sub_sat_s_i16x8: 18248 IntNo = Intrinsic::wasm_sub_sat_signed; 18249 break; 18250 case WebAssembly::BI__builtin_wasm_sub_sat_u_i8x16: 18251 case WebAssembly::BI__builtin_wasm_sub_sat_u_i16x8: 18252 IntNo = Intrinsic::wasm_sub_sat_unsigned; 18253 break; 18254 default: 18255 llvm_unreachable("unexpected builtin ID"); 18256 } 18257 Value *LHS = EmitScalarExpr(E->getArg(0)); 18258 Value *RHS = EmitScalarExpr(E->getArg(1)); 18259 Function *Callee = CGM.getIntrinsic(IntNo, ConvertType(E->getType())); 18260 return Builder.CreateCall(Callee, {LHS, RHS}); 18261 } 18262 case WebAssembly::BI__builtin_wasm_abs_i8x16: 18263 case WebAssembly::BI__builtin_wasm_abs_i16x8: 18264 case WebAssembly::BI__builtin_wasm_abs_i32x4: 18265 case WebAssembly::BI__builtin_wasm_abs_i64x2: { 18266 Value *Vec = EmitScalarExpr(E->getArg(0)); 18267 Value *Neg = Builder.CreateNeg(Vec, "neg"); 18268 Constant *Zero = llvm::Constant::getNullValue(Vec->getType()); 18269 Value *ICmp = Builder.CreateICmpSLT(Vec, Zero, "abscond"); 18270 return Builder.CreateSelect(ICmp, Neg, Vec, "abs"); 18271 } 18272 case WebAssembly::BI__builtin_wasm_min_s_i8x16: 18273 case WebAssembly::BI__builtin_wasm_min_u_i8x16: 18274 case WebAssembly::BI__builtin_wasm_max_s_i8x16: 18275 case WebAssembly::BI__builtin_wasm_max_u_i8x16: 18276 case WebAssembly::BI__builtin_wasm_min_s_i16x8: 18277 case WebAssembly::BI__builtin_wasm_min_u_i16x8: 18278 case WebAssembly::BI__builtin_wasm_max_s_i16x8: 18279 case WebAssembly::BI__builtin_wasm_max_u_i16x8: 18280 case WebAssembly::BI__builtin_wasm_min_s_i32x4: 18281 case WebAssembly::BI__builtin_wasm_min_u_i32x4: 18282 case WebAssembly::BI__builtin_wasm_max_s_i32x4: 18283 case WebAssembly::BI__builtin_wasm_max_u_i32x4: { 18284 Value *LHS = EmitScalarExpr(E->getArg(0)); 18285 Value *RHS = EmitScalarExpr(E->getArg(1)); 18286 Value *ICmp; 18287 switch (BuiltinID) { 18288 case WebAssembly::BI__builtin_wasm_min_s_i8x16: 18289 case WebAssembly::BI__builtin_wasm_min_s_i16x8: 18290 case WebAssembly::BI__builtin_wasm_min_s_i32x4: 18291 ICmp = Builder.CreateICmpSLT(LHS, RHS); 18292 break; 18293 case WebAssembly::BI__builtin_wasm_min_u_i8x16: 18294 case WebAssembly::BI__builtin_wasm_min_u_i16x8: 18295 case WebAssembly::BI__builtin_wasm_min_u_i32x4: 18296 ICmp = Builder.CreateICmpULT(LHS, RHS); 18297 break; 18298 case WebAssembly::BI__builtin_wasm_max_s_i8x16: 18299 case WebAssembly::BI__builtin_wasm_max_s_i16x8: 18300 case WebAssembly::BI__builtin_wasm_max_s_i32x4: 18301 ICmp = Builder.CreateICmpSGT(LHS, RHS); 18302 break; 18303 case WebAssembly::BI__builtin_wasm_max_u_i8x16: 18304 case WebAssembly::BI__builtin_wasm_max_u_i16x8: 18305 case WebAssembly::BI__builtin_wasm_max_u_i32x4: 18306 ICmp = Builder.CreateICmpUGT(LHS, RHS); 18307 break; 18308 default: 18309 llvm_unreachable("unexpected builtin ID"); 18310 } 18311 return Builder.CreateSelect(ICmp, LHS, RHS); 18312 } 18313 case WebAssembly::BI__builtin_wasm_avgr_u_i8x16: 18314 case WebAssembly::BI__builtin_wasm_avgr_u_i16x8: { 18315 Value *LHS = EmitScalarExpr(E->getArg(0)); 18316 Value *RHS = EmitScalarExpr(E->getArg(1)); 18317 Function *Callee = CGM.getIntrinsic(Intrinsic::wasm_avgr_unsigned, 18318 ConvertType(E->getType())); 18319 return Builder.CreateCall(Callee, {LHS, RHS}); 18320 } 18321 case WebAssembly::BI__builtin_wasm_q15mulr_sat_s_i16x8: { 18322 Value *LHS = EmitScalarExpr(E->getArg(0)); 18323 Value *RHS = EmitScalarExpr(E->getArg(1)); 18324 Function *Callee = CGM.getIntrinsic(Intrinsic::wasm_q15mulr_sat_signed); 18325 return Builder.CreateCall(Callee, {LHS, RHS}); 18326 } 18327 case WebAssembly::BI__builtin_wasm_extadd_pairwise_i8x16_s_i16x8: 18328 case WebAssembly::BI__builtin_wasm_extadd_pairwise_i8x16_u_i16x8: 18329 case WebAssembly::BI__builtin_wasm_extadd_pairwise_i16x8_s_i32x4: 18330 case WebAssembly::BI__builtin_wasm_extadd_pairwise_i16x8_u_i32x4: { 18331 Value *Vec = EmitScalarExpr(E->getArg(0)); 18332 unsigned IntNo; 18333 switch (BuiltinID) { 18334 case WebAssembly::BI__builtin_wasm_extadd_pairwise_i8x16_s_i16x8: 18335 case WebAssembly::BI__builtin_wasm_extadd_pairwise_i16x8_s_i32x4: 18336 IntNo = Intrinsic::wasm_extadd_pairwise_signed; 18337 break; 18338 case WebAssembly::BI__builtin_wasm_extadd_pairwise_i8x16_u_i16x8: 18339 case WebAssembly::BI__builtin_wasm_extadd_pairwise_i16x8_u_i32x4: 18340 IntNo = Intrinsic::wasm_extadd_pairwise_unsigned; 18341 break; 18342 default: 18343 llvm_unreachable("unexptected builtin ID"); 18344 } 18345 18346 Function *Callee = CGM.getIntrinsic(IntNo, ConvertType(E->getType())); 18347 return Builder.CreateCall(Callee, Vec); 18348 } 18349 case WebAssembly::BI__builtin_wasm_bitselect: { 18350 Value *V1 = EmitScalarExpr(E->getArg(0)); 18351 Value *V2 = EmitScalarExpr(E->getArg(1)); 18352 Value *C = EmitScalarExpr(E->getArg(2)); 18353 Function *Callee = 18354 CGM.getIntrinsic(Intrinsic::wasm_bitselect, ConvertType(E->getType())); 18355 return Builder.CreateCall(Callee, {V1, V2, C}); 18356 } 18357 case WebAssembly::BI__builtin_wasm_dot_s_i32x4_i16x8: { 18358 Value *LHS = EmitScalarExpr(E->getArg(0)); 18359 Value *RHS = EmitScalarExpr(E->getArg(1)); 18360 Function *Callee = CGM.getIntrinsic(Intrinsic::wasm_dot); 18361 return Builder.CreateCall(Callee, {LHS, RHS}); 18362 } 18363 case WebAssembly::BI__builtin_wasm_popcnt_i8x16: { 18364 Value *Vec = EmitScalarExpr(E->getArg(0)); 18365 Function *Callee = 18366 CGM.getIntrinsic(Intrinsic::ctpop, ConvertType(E->getType())); 18367 return Builder.CreateCall(Callee, {Vec}); 18368 } 18369 case WebAssembly::BI__builtin_wasm_any_true_v128: 18370 case WebAssembly::BI__builtin_wasm_all_true_i8x16: 18371 case WebAssembly::BI__builtin_wasm_all_true_i16x8: 18372 case WebAssembly::BI__builtin_wasm_all_true_i32x4: 18373 case WebAssembly::BI__builtin_wasm_all_true_i64x2: { 18374 unsigned IntNo; 18375 switch (BuiltinID) { 18376 case WebAssembly::BI__builtin_wasm_any_true_v128: 18377 IntNo = Intrinsic::wasm_anytrue; 18378 break; 18379 case WebAssembly::BI__builtin_wasm_all_true_i8x16: 18380 case WebAssembly::BI__builtin_wasm_all_true_i16x8: 18381 case WebAssembly::BI__builtin_wasm_all_true_i32x4: 18382 case WebAssembly::BI__builtin_wasm_all_true_i64x2: 18383 IntNo = Intrinsic::wasm_alltrue; 18384 break; 18385 default: 18386 llvm_unreachable("unexpected builtin ID"); 18387 } 18388 Value *Vec = EmitScalarExpr(E->getArg(0)); 18389 Function *Callee = CGM.getIntrinsic(IntNo, Vec->getType()); 18390 return Builder.CreateCall(Callee, {Vec}); 18391 } 18392 case WebAssembly::BI__builtin_wasm_bitmask_i8x16: 18393 case WebAssembly::BI__builtin_wasm_bitmask_i16x8: 18394 case WebAssembly::BI__builtin_wasm_bitmask_i32x4: 18395 case WebAssembly::BI__builtin_wasm_bitmask_i64x2: { 18396 Value *Vec = EmitScalarExpr(E->getArg(0)); 18397 Function *Callee = 18398 CGM.getIntrinsic(Intrinsic::wasm_bitmask, Vec->getType()); 18399 return Builder.CreateCall(Callee, {Vec}); 18400 } 18401 case WebAssembly::BI__builtin_wasm_abs_f32x4: 18402 case WebAssembly::BI__builtin_wasm_abs_f64x2: { 18403 Value *Vec = EmitScalarExpr(E->getArg(0)); 18404 Function *Callee = CGM.getIntrinsic(Intrinsic::fabs, Vec->getType()); 18405 return Builder.CreateCall(Callee, {Vec}); 18406 } 18407 case WebAssembly::BI__builtin_wasm_sqrt_f32x4: 18408 case WebAssembly::BI__builtin_wasm_sqrt_f64x2: { 18409 Value *Vec = EmitScalarExpr(E->getArg(0)); 18410 Function *Callee = CGM.getIntrinsic(Intrinsic::sqrt, Vec->getType()); 18411 return Builder.CreateCall(Callee, {Vec}); 18412 } 18413 case WebAssembly::BI__builtin_wasm_narrow_s_i8x16_i16x8: 18414 case WebAssembly::BI__builtin_wasm_narrow_u_i8x16_i16x8: 18415 case WebAssembly::BI__builtin_wasm_narrow_s_i16x8_i32x4: 18416 case WebAssembly::BI__builtin_wasm_narrow_u_i16x8_i32x4: { 18417 Value *Low = EmitScalarExpr(E->getArg(0)); 18418 Value *High = EmitScalarExpr(E->getArg(1)); 18419 unsigned IntNo; 18420 switch (BuiltinID) { 18421 case WebAssembly::BI__builtin_wasm_narrow_s_i8x16_i16x8: 18422 case WebAssembly::BI__builtin_wasm_narrow_s_i16x8_i32x4: 18423 IntNo = Intrinsic::wasm_narrow_signed; 18424 break; 18425 case WebAssembly::BI__builtin_wasm_narrow_u_i8x16_i16x8: 18426 case WebAssembly::BI__builtin_wasm_narrow_u_i16x8_i32x4: 18427 IntNo = Intrinsic::wasm_narrow_unsigned; 18428 break; 18429 default: 18430 llvm_unreachable("unexpected builtin ID"); 18431 } 18432 Function *Callee = 18433 CGM.getIntrinsic(IntNo, {ConvertType(E->getType()), Low->getType()}); 18434 return Builder.CreateCall(Callee, {Low, High}); 18435 } 18436 case WebAssembly::BI__builtin_wasm_trunc_sat_zero_s_f64x2_i32x4: 18437 case WebAssembly::BI__builtin_wasm_trunc_sat_zero_u_f64x2_i32x4: { 18438 Value *Vec = EmitScalarExpr(E->getArg(0)); 18439 unsigned IntNo; 18440 switch (BuiltinID) { 18441 case WebAssembly::BI__builtin_wasm_trunc_sat_zero_s_f64x2_i32x4: 18442 IntNo = Intrinsic::fptosi_sat; 18443 break; 18444 case WebAssembly::BI__builtin_wasm_trunc_sat_zero_u_f64x2_i32x4: 18445 IntNo = Intrinsic::fptoui_sat; 18446 break; 18447 default: 18448 llvm_unreachable("unexpected builtin ID"); 18449 } 18450 llvm::Type *SrcT = Vec->getType(); 18451 llvm::Type *TruncT = 18452 SrcT->getWithNewType(llvm::IntegerType::get(getLLVMContext(), 32)); 18453 Function *Callee = CGM.getIntrinsic(IntNo, {TruncT, SrcT}); 18454 Value *Trunc = Builder.CreateCall(Callee, Vec); 18455 Value *Splat = Builder.CreateVectorSplat(2, Builder.getInt32(0)); 18456 Value *ConcatMask = 18457 llvm::ConstantVector::get({Builder.getInt32(0), Builder.getInt32(1), 18458 Builder.getInt32(2), Builder.getInt32(3)}); 18459 return Builder.CreateShuffleVector(Trunc, Splat, ConcatMask); 18460 } 18461 case WebAssembly::BI__builtin_wasm_shuffle_i8x16: { 18462 Value *Ops[18]; 18463 size_t OpIdx = 0; 18464 Ops[OpIdx++] = EmitScalarExpr(E->getArg(0)); 18465 Ops[OpIdx++] = EmitScalarExpr(E->getArg(1)); 18466 while (OpIdx < 18) { 18467 Optional<llvm::APSInt> LaneConst = 18468 E->getArg(OpIdx)->getIntegerConstantExpr(getContext()); 18469 assert(LaneConst && "Constant arg isn't actually constant?"); 18470 Ops[OpIdx++] = llvm::ConstantInt::get(getLLVMContext(), *LaneConst); 18471 } 18472 Function *Callee = CGM.getIntrinsic(Intrinsic::wasm_shuffle); 18473 return Builder.CreateCall(Callee, Ops); 18474 } 18475 case WebAssembly::BI__builtin_wasm_fma_f32x4: 18476 case WebAssembly::BI__builtin_wasm_fms_f32x4: 18477 case WebAssembly::BI__builtin_wasm_fma_f64x2: 18478 case WebAssembly::BI__builtin_wasm_fms_f64x2: { 18479 Value *A = EmitScalarExpr(E->getArg(0)); 18480 Value *B = EmitScalarExpr(E->getArg(1)); 18481 Value *C = EmitScalarExpr(E->getArg(2)); 18482 unsigned IntNo; 18483 switch (BuiltinID) { 18484 case WebAssembly::BI__builtin_wasm_fma_f32x4: 18485 case WebAssembly::BI__builtin_wasm_fma_f64x2: 18486 IntNo = Intrinsic::wasm_fma; 18487 break; 18488 case WebAssembly::BI__builtin_wasm_fms_f32x4: 18489 case WebAssembly::BI__builtin_wasm_fms_f64x2: 18490 IntNo = Intrinsic::wasm_fms; 18491 break; 18492 default: 18493 llvm_unreachable("unexpected builtin ID"); 18494 } 18495 Function *Callee = CGM.getIntrinsic(IntNo, A->getType()); 18496 return Builder.CreateCall(Callee, {A, B, C}); 18497 } 18498 case WebAssembly::BI__builtin_wasm_laneselect_i8x16: 18499 case WebAssembly::BI__builtin_wasm_laneselect_i16x8: 18500 case WebAssembly::BI__builtin_wasm_laneselect_i32x4: 18501 case WebAssembly::BI__builtin_wasm_laneselect_i64x2: { 18502 Value *A = EmitScalarExpr(E->getArg(0)); 18503 Value *B = EmitScalarExpr(E->getArg(1)); 18504 Value *C = EmitScalarExpr(E->getArg(2)); 18505 Function *Callee = 18506 CGM.getIntrinsic(Intrinsic::wasm_laneselect, A->getType()); 18507 return Builder.CreateCall(Callee, {A, B, C}); 18508 } 18509 case WebAssembly::BI__builtin_wasm_relaxed_swizzle_i8x16: { 18510 Value *Src = EmitScalarExpr(E->getArg(0)); 18511 Value *Indices = EmitScalarExpr(E->getArg(1)); 18512 Function *Callee = CGM.getIntrinsic(Intrinsic::wasm_relaxed_swizzle); 18513 return Builder.CreateCall(Callee, {Src, Indices}); 18514 } 18515 case WebAssembly::BI__builtin_wasm_relaxed_min_f32x4: 18516 case WebAssembly::BI__builtin_wasm_relaxed_max_f32x4: 18517 case WebAssembly::BI__builtin_wasm_relaxed_min_f64x2: 18518 case WebAssembly::BI__builtin_wasm_relaxed_max_f64x2: { 18519 Value *LHS = EmitScalarExpr(E->getArg(0)); 18520 Value *RHS = EmitScalarExpr(E->getArg(1)); 18521 unsigned IntNo; 18522 switch (BuiltinID) { 18523 case WebAssembly::BI__builtin_wasm_relaxed_min_f32x4: 18524 case WebAssembly::BI__builtin_wasm_relaxed_min_f64x2: 18525 IntNo = Intrinsic::wasm_relaxed_min; 18526 break; 18527 case WebAssembly::BI__builtin_wasm_relaxed_max_f32x4: 18528 case WebAssembly::BI__builtin_wasm_relaxed_max_f64x2: 18529 IntNo = Intrinsic::wasm_relaxed_max; 18530 break; 18531 default: 18532 llvm_unreachable("unexpected builtin ID"); 18533 } 18534 Function *Callee = CGM.getIntrinsic(IntNo, LHS->getType()); 18535 return Builder.CreateCall(Callee, {LHS, RHS}); 18536 } 18537 case WebAssembly::BI__builtin_wasm_relaxed_trunc_s_i32x4_f32x4: 18538 case WebAssembly::BI__builtin_wasm_relaxed_trunc_u_i32x4_f32x4: 18539 case WebAssembly::BI__builtin_wasm_relaxed_trunc_zero_s_i32x4_f64x2: 18540 case WebAssembly::BI__builtin_wasm_relaxed_trunc_zero_u_i32x4_f64x2: { 18541 Value *Vec = EmitScalarExpr(E->getArg(0)); 18542 unsigned IntNo; 18543 switch (BuiltinID) { 18544 case WebAssembly::BI__builtin_wasm_relaxed_trunc_s_i32x4_f32x4: 18545 IntNo = Intrinsic::wasm_relaxed_trunc_signed; 18546 break; 18547 case WebAssembly::BI__builtin_wasm_relaxed_trunc_u_i32x4_f32x4: 18548 IntNo = Intrinsic::wasm_relaxed_trunc_unsigned; 18549 break; 18550 case WebAssembly::BI__builtin_wasm_relaxed_trunc_zero_s_i32x4_f64x2: 18551 IntNo = Intrinsic::wasm_relaxed_trunc_zero_signed; 18552 break; 18553 case WebAssembly::BI__builtin_wasm_relaxed_trunc_zero_u_i32x4_f64x2: 18554 IntNo = Intrinsic::wasm_relaxed_trunc_zero_unsigned; 18555 break; 18556 default: 18557 llvm_unreachable("unexpected builtin ID"); 18558 } 18559 Function *Callee = CGM.getIntrinsic(IntNo); 18560 return Builder.CreateCall(Callee, {Vec}); 18561 } 18562 default: 18563 return nullptr; 18564 } 18565 } 18566 18567 static std::pair<Intrinsic::ID, unsigned> 18568 getIntrinsicForHexagonNonGCCBuiltin(unsigned BuiltinID) { 18569 struct Info { 18570 unsigned BuiltinID; 18571 Intrinsic::ID IntrinsicID; 18572 unsigned VecLen; 18573 }; 18574 Info Infos[] = { 18575 #define CUSTOM_BUILTIN_MAPPING(x,s) \ 18576 { Hexagon::BI__builtin_HEXAGON_##x, Intrinsic::hexagon_##x, s }, 18577 CUSTOM_BUILTIN_MAPPING(L2_loadrub_pci, 0) 18578 CUSTOM_BUILTIN_MAPPING(L2_loadrb_pci, 0) 18579 CUSTOM_BUILTIN_MAPPING(L2_loadruh_pci, 0) 18580 CUSTOM_BUILTIN_MAPPING(L2_loadrh_pci, 0) 18581 CUSTOM_BUILTIN_MAPPING(L2_loadri_pci, 0) 18582 CUSTOM_BUILTIN_MAPPING(L2_loadrd_pci, 0) 18583 CUSTOM_BUILTIN_MAPPING(L2_loadrub_pcr, 0) 18584 CUSTOM_BUILTIN_MAPPING(L2_loadrb_pcr, 0) 18585 CUSTOM_BUILTIN_MAPPING(L2_loadruh_pcr, 0) 18586 CUSTOM_BUILTIN_MAPPING(L2_loadrh_pcr, 0) 18587 CUSTOM_BUILTIN_MAPPING(L2_loadri_pcr, 0) 18588 CUSTOM_BUILTIN_MAPPING(L2_loadrd_pcr, 0) 18589 CUSTOM_BUILTIN_MAPPING(S2_storerb_pci, 0) 18590 CUSTOM_BUILTIN_MAPPING(S2_storerh_pci, 0) 18591 CUSTOM_BUILTIN_MAPPING(S2_storerf_pci, 0) 18592 CUSTOM_BUILTIN_MAPPING(S2_storeri_pci, 0) 18593 CUSTOM_BUILTIN_MAPPING(S2_storerd_pci, 0) 18594 CUSTOM_BUILTIN_MAPPING(S2_storerb_pcr, 0) 18595 CUSTOM_BUILTIN_MAPPING(S2_storerh_pcr, 0) 18596 CUSTOM_BUILTIN_MAPPING(S2_storerf_pcr, 0) 18597 CUSTOM_BUILTIN_MAPPING(S2_storeri_pcr, 0) 18598 CUSTOM_BUILTIN_MAPPING(S2_storerd_pcr, 0) 18599 // Legacy builtins that take a vector in place of a vector predicate. 18600 CUSTOM_BUILTIN_MAPPING(V6_vmaskedstoreq, 64) 18601 CUSTOM_BUILTIN_MAPPING(V6_vmaskedstorenq, 64) 18602 CUSTOM_BUILTIN_MAPPING(V6_vmaskedstorentq, 64) 18603 CUSTOM_BUILTIN_MAPPING(V6_vmaskedstorentnq, 64) 18604 CUSTOM_BUILTIN_MAPPING(V6_vmaskedstoreq_128B, 128) 18605 CUSTOM_BUILTIN_MAPPING(V6_vmaskedstorenq_128B, 128) 18606 CUSTOM_BUILTIN_MAPPING(V6_vmaskedstorentq_128B, 128) 18607 CUSTOM_BUILTIN_MAPPING(V6_vmaskedstorentnq_128B, 128) 18608 #include "clang/Basic/BuiltinsHexagonMapCustomDep.def" 18609 #undef CUSTOM_BUILTIN_MAPPING 18610 }; 18611 18612 auto CmpInfo = [] (Info A, Info B) { return A.BuiltinID < B.BuiltinID; }; 18613 static const bool SortOnce = (llvm::sort(Infos, CmpInfo), true); 18614 (void)SortOnce; 18615 18616 const Info *F = std::lower_bound(std::begin(Infos), std::end(Infos), 18617 Info{BuiltinID, 0, 0}, CmpInfo); 18618 if (F == std::end(Infos) || F->BuiltinID != BuiltinID) 18619 return {Intrinsic::not_intrinsic, 0}; 18620 18621 return {F->IntrinsicID, F->VecLen}; 18622 } 18623 18624 Value *CodeGenFunction::EmitHexagonBuiltinExpr(unsigned BuiltinID, 18625 const CallExpr *E) { 18626 Intrinsic::ID ID; 18627 unsigned VecLen; 18628 std::tie(ID, VecLen) = getIntrinsicForHexagonNonGCCBuiltin(BuiltinID); 18629 18630 auto MakeCircOp = [this, E](unsigned IntID, bool IsLoad) { 18631 // The base pointer is passed by address, so it needs to be loaded. 18632 Address A = EmitPointerWithAlignment(E->getArg(0)); 18633 Address BP = Address(Builder.CreateBitCast( 18634 A.getPointer(), Int8PtrPtrTy), Int8PtrTy, A.getAlignment()); 18635 llvm::Value *Base = Builder.CreateLoad(BP); 18636 // The treatment of both loads and stores is the same: the arguments for 18637 // the builtin are the same as the arguments for the intrinsic. 18638 // Load: 18639 // builtin(Base, Inc, Mod, Start) -> intr(Base, Inc, Mod, Start) 18640 // builtin(Base, Mod, Start) -> intr(Base, Mod, Start) 18641 // Store: 18642 // builtin(Base, Inc, Mod, Val, Start) -> intr(Base, Inc, Mod, Val, Start) 18643 // builtin(Base, Mod, Val, Start) -> intr(Base, Mod, Val, Start) 18644 SmallVector<llvm::Value*,5> Ops = { Base }; 18645 for (unsigned i = 1, e = E->getNumArgs(); i != e; ++i) 18646 Ops.push_back(EmitScalarExpr(E->getArg(i))); 18647 18648 llvm::Value *Result = Builder.CreateCall(CGM.getIntrinsic(IntID), Ops); 18649 // The load intrinsics generate two results (Value, NewBase), stores 18650 // generate one (NewBase). The new base address needs to be stored. 18651 llvm::Value *NewBase = IsLoad ? Builder.CreateExtractValue(Result, 1) 18652 : Result; 18653 llvm::Value *LV = Builder.CreateBitCast( 18654 EmitScalarExpr(E->getArg(0)), NewBase->getType()->getPointerTo()); 18655 Address Dest = EmitPointerWithAlignment(E->getArg(0)); 18656 llvm::Value *RetVal = 18657 Builder.CreateAlignedStore(NewBase, LV, Dest.getAlignment()); 18658 if (IsLoad) 18659 RetVal = Builder.CreateExtractValue(Result, 0); 18660 return RetVal; 18661 }; 18662 18663 // Handle the conversion of bit-reverse load intrinsics to bit code. 18664 // The intrinsic call after this function only reads from memory and the 18665 // write to memory is dealt by the store instruction. 18666 auto MakeBrevLd = [this, E](unsigned IntID, llvm::Type *DestTy) { 18667 // The intrinsic generates one result, which is the new value for the base 18668 // pointer. It needs to be returned. The result of the load instruction is 18669 // passed to intrinsic by address, so the value needs to be stored. 18670 llvm::Value *BaseAddress = 18671 Builder.CreateBitCast(EmitScalarExpr(E->getArg(0)), Int8PtrTy); 18672 18673 // Expressions like &(*pt++) will be incremented per evaluation. 18674 // EmitPointerWithAlignment and EmitScalarExpr evaluates the expression 18675 // per call. 18676 Address DestAddr = EmitPointerWithAlignment(E->getArg(1)); 18677 DestAddr = Address(Builder.CreateBitCast(DestAddr.getPointer(), Int8PtrTy), 18678 Int8Ty, DestAddr.getAlignment()); 18679 llvm::Value *DestAddress = DestAddr.getPointer(); 18680 18681 // Operands are Base, Dest, Modifier. 18682 // The intrinsic format in LLVM IR is defined as 18683 // { ValueType, i8* } (i8*, i32). 18684 llvm::Value *Result = Builder.CreateCall( 18685 CGM.getIntrinsic(IntID), {BaseAddress, EmitScalarExpr(E->getArg(2))}); 18686 18687 // The value needs to be stored as the variable is passed by reference. 18688 llvm::Value *DestVal = Builder.CreateExtractValue(Result, 0); 18689 18690 // The store needs to be truncated to fit the destination type. 18691 // While i32 and i64 are natively supported on Hexagon, i8 and i16 needs 18692 // to be handled with stores of respective destination type. 18693 DestVal = Builder.CreateTrunc(DestVal, DestTy); 18694 18695 llvm::Value *DestForStore = 18696 Builder.CreateBitCast(DestAddress, DestVal->getType()->getPointerTo()); 18697 Builder.CreateAlignedStore(DestVal, DestForStore, DestAddr.getAlignment()); 18698 // The updated value of the base pointer is returned. 18699 return Builder.CreateExtractValue(Result, 1); 18700 }; 18701 18702 auto V2Q = [this, VecLen] (llvm::Value *Vec) { 18703 Intrinsic::ID ID = VecLen == 128 ? Intrinsic::hexagon_V6_vandvrt_128B 18704 : Intrinsic::hexagon_V6_vandvrt; 18705 return Builder.CreateCall(CGM.getIntrinsic(ID), 18706 {Vec, Builder.getInt32(-1)}); 18707 }; 18708 auto Q2V = [this, VecLen] (llvm::Value *Pred) { 18709 Intrinsic::ID ID = VecLen == 128 ? Intrinsic::hexagon_V6_vandqrt_128B 18710 : Intrinsic::hexagon_V6_vandqrt; 18711 return Builder.CreateCall(CGM.getIntrinsic(ID), 18712 {Pred, Builder.getInt32(-1)}); 18713 }; 18714 18715 switch (BuiltinID) { 18716 // These intrinsics return a tuple {Vector, VectorPred} in LLVM IR, 18717 // and the corresponding C/C++ builtins use loads/stores to update 18718 // the predicate. 18719 case Hexagon::BI__builtin_HEXAGON_V6_vaddcarry: 18720 case Hexagon::BI__builtin_HEXAGON_V6_vaddcarry_128B: 18721 case Hexagon::BI__builtin_HEXAGON_V6_vsubcarry: 18722 case Hexagon::BI__builtin_HEXAGON_V6_vsubcarry_128B: { 18723 // Get the type from the 0-th argument. 18724 llvm::Type *VecType = ConvertType(E->getArg(0)->getType()); 18725 Address PredAddr = Builder.CreateElementBitCast( 18726 EmitPointerWithAlignment(E->getArg(2)), VecType); 18727 llvm::Value *PredIn = V2Q(Builder.CreateLoad(PredAddr)); 18728 llvm::Value *Result = Builder.CreateCall(CGM.getIntrinsic(ID), 18729 {EmitScalarExpr(E->getArg(0)), EmitScalarExpr(E->getArg(1)), PredIn}); 18730 18731 llvm::Value *PredOut = Builder.CreateExtractValue(Result, 1); 18732 Builder.CreateAlignedStore(Q2V(PredOut), PredAddr.getPointer(), 18733 PredAddr.getAlignment()); 18734 return Builder.CreateExtractValue(Result, 0); 18735 } 18736 18737 case Hexagon::BI__builtin_HEXAGON_V6_vmaskedstoreq: 18738 case Hexagon::BI__builtin_HEXAGON_V6_vmaskedstorenq: 18739 case Hexagon::BI__builtin_HEXAGON_V6_vmaskedstorentq: 18740 case Hexagon::BI__builtin_HEXAGON_V6_vmaskedstorentnq: 18741 case Hexagon::BI__builtin_HEXAGON_V6_vmaskedstoreq_128B: 18742 case Hexagon::BI__builtin_HEXAGON_V6_vmaskedstorenq_128B: 18743 case Hexagon::BI__builtin_HEXAGON_V6_vmaskedstorentq_128B: 18744 case Hexagon::BI__builtin_HEXAGON_V6_vmaskedstorentnq_128B: { 18745 SmallVector<llvm::Value*,4> Ops; 18746 const Expr *PredOp = E->getArg(0); 18747 // There will be an implicit cast to a boolean vector. Strip it. 18748 if (auto *Cast = dyn_cast<ImplicitCastExpr>(PredOp)) { 18749 if (Cast->getCastKind() == CK_BitCast) 18750 PredOp = Cast->getSubExpr(); 18751 Ops.push_back(V2Q(EmitScalarExpr(PredOp))); 18752 } 18753 for (int i = 1, e = E->getNumArgs(); i != e; ++i) 18754 Ops.push_back(EmitScalarExpr(E->getArg(i))); 18755 return Builder.CreateCall(CGM.getIntrinsic(ID), Ops); 18756 } 18757 18758 case Hexagon::BI__builtin_HEXAGON_L2_loadrub_pci: 18759 case Hexagon::BI__builtin_HEXAGON_L2_loadrb_pci: 18760 case Hexagon::BI__builtin_HEXAGON_L2_loadruh_pci: 18761 case Hexagon::BI__builtin_HEXAGON_L2_loadrh_pci: 18762 case Hexagon::BI__builtin_HEXAGON_L2_loadri_pci: 18763 case Hexagon::BI__builtin_HEXAGON_L2_loadrd_pci: 18764 case Hexagon::BI__builtin_HEXAGON_L2_loadrub_pcr: 18765 case Hexagon::BI__builtin_HEXAGON_L2_loadrb_pcr: 18766 case Hexagon::BI__builtin_HEXAGON_L2_loadruh_pcr: 18767 case Hexagon::BI__builtin_HEXAGON_L2_loadrh_pcr: 18768 case Hexagon::BI__builtin_HEXAGON_L2_loadri_pcr: 18769 case Hexagon::BI__builtin_HEXAGON_L2_loadrd_pcr: 18770 return MakeCircOp(ID, /*IsLoad=*/true); 18771 case Hexagon::BI__builtin_HEXAGON_S2_storerb_pci: 18772 case Hexagon::BI__builtin_HEXAGON_S2_storerh_pci: 18773 case Hexagon::BI__builtin_HEXAGON_S2_storerf_pci: 18774 case Hexagon::BI__builtin_HEXAGON_S2_storeri_pci: 18775 case Hexagon::BI__builtin_HEXAGON_S2_storerd_pci: 18776 case Hexagon::BI__builtin_HEXAGON_S2_storerb_pcr: 18777 case Hexagon::BI__builtin_HEXAGON_S2_storerh_pcr: 18778 case Hexagon::BI__builtin_HEXAGON_S2_storerf_pcr: 18779 case Hexagon::BI__builtin_HEXAGON_S2_storeri_pcr: 18780 case Hexagon::BI__builtin_HEXAGON_S2_storerd_pcr: 18781 return MakeCircOp(ID, /*IsLoad=*/false); 18782 case Hexagon::BI__builtin_brev_ldub: 18783 return MakeBrevLd(Intrinsic::hexagon_L2_loadrub_pbr, Int8Ty); 18784 case Hexagon::BI__builtin_brev_ldb: 18785 return MakeBrevLd(Intrinsic::hexagon_L2_loadrb_pbr, Int8Ty); 18786 case Hexagon::BI__builtin_brev_lduh: 18787 return MakeBrevLd(Intrinsic::hexagon_L2_loadruh_pbr, Int16Ty); 18788 case Hexagon::BI__builtin_brev_ldh: 18789 return MakeBrevLd(Intrinsic::hexagon_L2_loadrh_pbr, Int16Ty); 18790 case Hexagon::BI__builtin_brev_ldw: 18791 return MakeBrevLd(Intrinsic::hexagon_L2_loadri_pbr, Int32Ty); 18792 case Hexagon::BI__builtin_brev_ldd: 18793 return MakeBrevLd(Intrinsic::hexagon_L2_loadrd_pbr, Int64Ty); 18794 } // switch 18795 18796 return nullptr; 18797 } 18798 18799 Value *CodeGenFunction::EmitRISCVBuiltinExpr(unsigned BuiltinID, 18800 const CallExpr *E, 18801 ReturnValueSlot ReturnValue) { 18802 SmallVector<Value *, 4> Ops; 18803 llvm::Type *ResultType = ConvertType(E->getType()); 18804 18805 for (unsigned i = 0, e = E->getNumArgs(); i != e; i++) 18806 Ops.push_back(EmitScalarExpr(E->getArg(i))); 18807 18808 Intrinsic::ID ID = Intrinsic::not_intrinsic; 18809 unsigned NF = 1; 18810 constexpr unsigned TAIL_UNDISTURBED = 0; 18811 18812 // Required for overloaded intrinsics. 18813 llvm::SmallVector<llvm::Type *, 2> IntrinsicTypes; 18814 switch (BuiltinID) { 18815 default: llvm_unreachable("unexpected builtin ID"); 18816 case RISCV::BI__builtin_riscv_orc_b_32: 18817 case RISCV::BI__builtin_riscv_orc_b_64: 18818 case RISCV::BI__builtin_riscv_clmul: 18819 case RISCV::BI__builtin_riscv_clmulh: 18820 case RISCV::BI__builtin_riscv_clmulr: 18821 case RISCV::BI__builtin_riscv_bcompress_32: 18822 case RISCV::BI__builtin_riscv_bcompress_64: 18823 case RISCV::BI__builtin_riscv_bdecompress_32: 18824 case RISCV::BI__builtin_riscv_bdecompress_64: 18825 case RISCV::BI__builtin_riscv_grev_32: 18826 case RISCV::BI__builtin_riscv_grev_64: 18827 case RISCV::BI__builtin_riscv_gorc_32: 18828 case RISCV::BI__builtin_riscv_gorc_64: 18829 case RISCV::BI__builtin_riscv_shfl_32: 18830 case RISCV::BI__builtin_riscv_shfl_64: 18831 case RISCV::BI__builtin_riscv_unshfl_32: 18832 case RISCV::BI__builtin_riscv_unshfl_64: 18833 case RISCV::BI__builtin_riscv_xperm_n: 18834 case RISCV::BI__builtin_riscv_xperm_b: 18835 case RISCV::BI__builtin_riscv_xperm_h: 18836 case RISCV::BI__builtin_riscv_xperm_w: 18837 case RISCV::BI__builtin_riscv_crc32_b: 18838 case RISCV::BI__builtin_riscv_crc32_h: 18839 case RISCV::BI__builtin_riscv_crc32_w: 18840 case RISCV::BI__builtin_riscv_crc32_d: 18841 case RISCV::BI__builtin_riscv_crc32c_b: 18842 case RISCV::BI__builtin_riscv_crc32c_h: 18843 case RISCV::BI__builtin_riscv_crc32c_w: 18844 case RISCV::BI__builtin_riscv_crc32c_d: { 18845 switch (BuiltinID) { 18846 default: llvm_unreachable("unexpected builtin ID"); 18847 // Zbb 18848 case RISCV::BI__builtin_riscv_orc_b_32: 18849 case RISCV::BI__builtin_riscv_orc_b_64: 18850 ID = Intrinsic::riscv_orc_b; 18851 break; 18852 18853 // Zbc 18854 case RISCV::BI__builtin_riscv_clmul: 18855 ID = Intrinsic::riscv_clmul; 18856 break; 18857 case RISCV::BI__builtin_riscv_clmulh: 18858 ID = Intrinsic::riscv_clmulh; 18859 break; 18860 case RISCV::BI__builtin_riscv_clmulr: 18861 ID = Intrinsic::riscv_clmulr; 18862 break; 18863 18864 // Zbe 18865 case RISCV::BI__builtin_riscv_bcompress_32: 18866 case RISCV::BI__builtin_riscv_bcompress_64: 18867 ID = Intrinsic::riscv_bcompress; 18868 break; 18869 case RISCV::BI__builtin_riscv_bdecompress_32: 18870 case RISCV::BI__builtin_riscv_bdecompress_64: 18871 ID = Intrinsic::riscv_bdecompress; 18872 break; 18873 18874 // Zbp 18875 case RISCV::BI__builtin_riscv_grev_32: 18876 case RISCV::BI__builtin_riscv_grev_64: 18877 ID = Intrinsic::riscv_grev; 18878 break; 18879 case RISCV::BI__builtin_riscv_gorc_32: 18880 case RISCV::BI__builtin_riscv_gorc_64: 18881 ID = Intrinsic::riscv_gorc; 18882 break; 18883 case RISCV::BI__builtin_riscv_shfl_32: 18884 case RISCV::BI__builtin_riscv_shfl_64: 18885 ID = Intrinsic::riscv_shfl; 18886 break; 18887 case RISCV::BI__builtin_riscv_unshfl_32: 18888 case RISCV::BI__builtin_riscv_unshfl_64: 18889 ID = Intrinsic::riscv_unshfl; 18890 break; 18891 case RISCV::BI__builtin_riscv_xperm_n: 18892 ID = Intrinsic::riscv_xperm_n; 18893 break; 18894 case RISCV::BI__builtin_riscv_xperm_b: 18895 ID = Intrinsic::riscv_xperm_b; 18896 break; 18897 case RISCV::BI__builtin_riscv_xperm_h: 18898 ID = Intrinsic::riscv_xperm_h; 18899 break; 18900 case RISCV::BI__builtin_riscv_xperm_w: 18901 ID = Intrinsic::riscv_xperm_w; 18902 break; 18903 18904 // Zbr 18905 case RISCV::BI__builtin_riscv_crc32_b: 18906 ID = Intrinsic::riscv_crc32_b; 18907 break; 18908 case RISCV::BI__builtin_riscv_crc32_h: 18909 ID = Intrinsic::riscv_crc32_h; 18910 break; 18911 case RISCV::BI__builtin_riscv_crc32_w: 18912 ID = Intrinsic::riscv_crc32_w; 18913 break; 18914 case RISCV::BI__builtin_riscv_crc32_d: 18915 ID = Intrinsic::riscv_crc32_d; 18916 break; 18917 case RISCV::BI__builtin_riscv_crc32c_b: 18918 ID = Intrinsic::riscv_crc32c_b; 18919 break; 18920 case RISCV::BI__builtin_riscv_crc32c_h: 18921 ID = Intrinsic::riscv_crc32c_h; 18922 break; 18923 case RISCV::BI__builtin_riscv_crc32c_w: 18924 ID = Intrinsic::riscv_crc32c_w; 18925 break; 18926 case RISCV::BI__builtin_riscv_crc32c_d: 18927 ID = Intrinsic::riscv_crc32c_d; 18928 break; 18929 } 18930 18931 IntrinsicTypes = {ResultType}; 18932 break; 18933 } 18934 // Vector builtins are handled from here. 18935 #include "clang/Basic/riscv_vector_builtin_cg.inc" 18936 } 18937 18938 assert(ID != Intrinsic::not_intrinsic); 18939 18940 llvm::Function *F = CGM.getIntrinsic(ID, IntrinsicTypes); 18941 return Builder.CreateCall(F, Ops, ""); 18942 } 18943