1 //===- InstCombineCalls.cpp -----------------------------------------------===// 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 file implements the visitCall, visitInvoke, and visitCallBr functions. 10 // 11 //===----------------------------------------------------------------------===// 12 13 #include "InstCombineInternal.h" 14 #include "llvm/ADT/APFloat.h" 15 #include "llvm/ADT/APInt.h" 16 #include "llvm/ADT/APSInt.h" 17 #include "llvm/ADT/ArrayRef.h" 18 #include "llvm/ADT/FloatingPointMode.h" 19 #include "llvm/ADT/None.h" 20 #include "llvm/ADT/Optional.h" 21 #include "llvm/ADT/STLExtras.h" 22 #include "llvm/ADT/SmallVector.h" 23 #include "llvm/ADT/Statistic.h" 24 #include "llvm/ADT/Twine.h" 25 #include "llvm/Analysis/AliasAnalysis.h" 26 #include "llvm/Analysis/AssumeBundleQueries.h" 27 #include "llvm/Analysis/AssumptionCache.h" 28 #include "llvm/Analysis/InstructionSimplify.h" 29 #include "llvm/Analysis/Loads.h" 30 #include "llvm/Analysis/MemoryBuiltins.h" 31 #include "llvm/Analysis/TargetTransformInfo.h" 32 #include "llvm/Analysis/ValueTracking.h" 33 #include "llvm/Analysis/VectorUtils.h" 34 #include "llvm/IR/Attributes.h" 35 #include "llvm/IR/BasicBlock.h" 36 #include "llvm/IR/Constant.h" 37 #include "llvm/IR/Constants.h" 38 #include "llvm/IR/DataLayout.h" 39 #include "llvm/IR/DerivedTypes.h" 40 #include "llvm/IR/Function.h" 41 #include "llvm/IR/GlobalVariable.h" 42 #include "llvm/IR/InstrTypes.h" 43 #include "llvm/IR/Instruction.h" 44 #include "llvm/IR/Instructions.h" 45 #include "llvm/IR/IntrinsicInst.h" 46 #include "llvm/IR/Intrinsics.h" 47 #include "llvm/IR/IntrinsicsAArch64.h" 48 #include "llvm/IR/IntrinsicsAMDGPU.h" 49 #include "llvm/IR/IntrinsicsARM.h" 50 #include "llvm/IR/IntrinsicsHexagon.h" 51 #include "llvm/IR/LLVMContext.h" 52 #include "llvm/IR/Metadata.h" 53 #include "llvm/IR/PatternMatch.h" 54 #include "llvm/IR/Statepoint.h" 55 #include "llvm/IR/Type.h" 56 #include "llvm/IR/User.h" 57 #include "llvm/IR/Value.h" 58 #include "llvm/IR/ValueHandle.h" 59 #include "llvm/Support/AtomicOrdering.h" 60 #include "llvm/Support/Casting.h" 61 #include "llvm/Support/CommandLine.h" 62 #include "llvm/Support/Compiler.h" 63 #include "llvm/Support/Debug.h" 64 #include "llvm/Support/ErrorHandling.h" 65 #include "llvm/Support/KnownBits.h" 66 #include "llvm/Support/MathExtras.h" 67 #include "llvm/Support/raw_ostream.h" 68 #include "llvm/Transforms/InstCombine/InstCombineWorklist.h" 69 #include "llvm/Transforms/InstCombine/InstCombiner.h" 70 #include "llvm/Transforms/Utils/Local.h" 71 #include "llvm/Transforms/Utils/SimplifyLibCalls.h" 72 #include <algorithm> 73 #include <cassert> 74 #include <cstdint> 75 #include <cstring> 76 #include <utility> 77 #include <vector> 78 79 using namespace llvm; 80 using namespace PatternMatch; 81 82 #define DEBUG_TYPE "instcombine" 83 84 STATISTIC(NumSimplified, "Number of library calls simplified"); 85 86 static cl::opt<unsigned> GuardWideningWindow( 87 "instcombine-guard-widening-window", 88 cl::init(3), 89 cl::desc("How wide an instruction window to bypass looking for " 90 "another guard")); 91 92 /// Return the specified type promoted as it would be to pass though a va_arg 93 /// area. 94 static Type *getPromotedType(Type *Ty) { 95 if (IntegerType* ITy = dyn_cast<IntegerType>(Ty)) { 96 if (ITy->getBitWidth() < 32) 97 return Type::getInt32Ty(Ty->getContext()); 98 } 99 return Ty; 100 } 101 102 Instruction *InstCombinerImpl::SimplifyAnyMemTransfer(AnyMemTransferInst *MI) { 103 Align DstAlign = getKnownAlignment(MI->getRawDest(), DL, MI, &AC, &DT); 104 MaybeAlign CopyDstAlign = MI->getDestAlign(); 105 if (!CopyDstAlign || *CopyDstAlign < DstAlign) { 106 MI->setDestAlignment(DstAlign); 107 return MI; 108 } 109 110 Align SrcAlign = getKnownAlignment(MI->getRawSource(), DL, MI, &AC, &DT); 111 MaybeAlign CopySrcAlign = MI->getSourceAlign(); 112 if (!CopySrcAlign || *CopySrcAlign < SrcAlign) { 113 MI->setSourceAlignment(SrcAlign); 114 return MI; 115 } 116 117 // If we have a store to a location which is known constant, we can conclude 118 // that the store must be storing the constant value (else the memory 119 // wouldn't be constant), and this must be a noop. 120 if (AA->pointsToConstantMemory(MI->getDest())) { 121 // Set the size of the copy to 0, it will be deleted on the next iteration. 122 MI->setLength(Constant::getNullValue(MI->getLength()->getType())); 123 return MI; 124 } 125 126 // If MemCpyInst length is 1/2/4/8 bytes then replace memcpy with 127 // load/store. 128 ConstantInt *MemOpLength = dyn_cast<ConstantInt>(MI->getLength()); 129 if (!MemOpLength) return nullptr; 130 131 // Source and destination pointer types are always "i8*" for intrinsic. See 132 // if the size is something we can handle with a single primitive load/store. 133 // A single load+store correctly handles overlapping memory in the memmove 134 // case. 135 uint64_t Size = MemOpLength->getLimitedValue(); 136 assert(Size && "0-sized memory transferring should be removed already."); 137 138 if (Size > 8 || (Size&(Size-1))) 139 return nullptr; // If not 1/2/4/8 bytes, exit. 140 141 // If it is an atomic and alignment is less than the size then we will 142 // introduce the unaligned memory access which will be later transformed 143 // into libcall in CodeGen. This is not evident performance gain so disable 144 // it now. 145 if (isa<AtomicMemTransferInst>(MI)) 146 if (*CopyDstAlign < Size || *CopySrcAlign < Size) 147 return nullptr; 148 149 // Use an integer load+store unless we can find something better. 150 unsigned SrcAddrSp = 151 cast<PointerType>(MI->getArgOperand(1)->getType())->getAddressSpace(); 152 unsigned DstAddrSp = 153 cast<PointerType>(MI->getArgOperand(0)->getType())->getAddressSpace(); 154 155 IntegerType* IntType = IntegerType::get(MI->getContext(), Size<<3); 156 Type *NewSrcPtrTy = PointerType::get(IntType, SrcAddrSp); 157 Type *NewDstPtrTy = PointerType::get(IntType, DstAddrSp); 158 159 // If the memcpy has metadata describing the members, see if we can get the 160 // TBAA tag describing our copy. 161 MDNode *CopyMD = nullptr; 162 if (MDNode *M = MI->getMetadata(LLVMContext::MD_tbaa)) { 163 CopyMD = M; 164 } else if (MDNode *M = MI->getMetadata(LLVMContext::MD_tbaa_struct)) { 165 if (M->getNumOperands() == 3 && M->getOperand(0) && 166 mdconst::hasa<ConstantInt>(M->getOperand(0)) && 167 mdconst::extract<ConstantInt>(M->getOperand(0))->isZero() && 168 M->getOperand(1) && 169 mdconst::hasa<ConstantInt>(M->getOperand(1)) && 170 mdconst::extract<ConstantInt>(M->getOperand(1))->getValue() == 171 Size && 172 M->getOperand(2) && isa<MDNode>(M->getOperand(2))) 173 CopyMD = cast<MDNode>(M->getOperand(2)); 174 } 175 176 Value *Src = Builder.CreateBitCast(MI->getArgOperand(1), NewSrcPtrTy); 177 Value *Dest = Builder.CreateBitCast(MI->getArgOperand(0), NewDstPtrTy); 178 LoadInst *L = Builder.CreateLoad(IntType, Src); 179 // Alignment from the mem intrinsic will be better, so use it. 180 L->setAlignment(*CopySrcAlign); 181 if (CopyMD) 182 L->setMetadata(LLVMContext::MD_tbaa, CopyMD); 183 MDNode *LoopMemParallelMD = 184 MI->getMetadata(LLVMContext::MD_mem_parallel_loop_access); 185 if (LoopMemParallelMD) 186 L->setMetadata(LLVMContext::MD_mem_parallel_loop_access, LoopMemParallelMD); 187 MDNode *AccessGroupMD = MI->getMetadata(LLVMContext::MD_access_group); 188 if (AccessGroupMD) 189 L->setMetadata(LLVMContext::MD_access_group, AccessGroupMD); 190 191 StoreInst *S = Builder.CreateStore(L, Dest); 192 // Alignment from the mem intrinsic will be better, so use it. 193 S->setAlignment(*CopyDstAlign); 194 if (CopyMD) 195 S->setMetadata(LLVMContext::MD_tbaa, CopyMD); 196 if (LoopMemParallelMD) 197 S->setMetadata(LLVMContext::MD_mem_parallel_loop_access, LoopMemParallelMD); 198 if (AccessGroupMD) 199 S->setMetadata(LLVMContext::MD_access_group, AccessGroupMD); 200 201 if (auto *MT = dyn_cast<MemTransferInst>(MI)) { 202 // non-atomics can be volatile 203 L->setVolatile(MT->isVolatile()); 204 S->setVolatile(MT->isVolatile()); 205 } 206 if (isa<AtomicMemTransferInst>(MI)) { 207 // atomics have to be unordered 208 L->setOrdering(AtomicOrdering::Unordered); 209 S->setOrdering(AtomicOrdering::Unordered); 210 } 211 212 // Set the size of the copy to 0, it will be deleted on the next iteration. 213 MI->setLength(Constant::getNullValue(MemOpLength->getType())); 214 return MI; 215 } 216 217 Instruction *InstCombinerImpl::SimplifyAnyMemSet(AnyMemSetInst *MI) { 218 const Align KnownAlignment = 219 getKnownAlignment(MI->getDest(), DL, MI, &AC, &DT); 220 MaybeAlign MemSetAlign = MI->getDestAlign(); 221 if (!MemSetAlign || *MemSetAlign < KnownAlignment) { 222 MI->setDestAlignment(KnownAlignment); 223 return MI; 224 } 225 226 // If we have a store to a location which is known constant, we can conclude 227 // that the store must be storing the constant value (else the memory 228 // wouldn't be constant), and this must be a noop. 229 if (AA->pointsToConstantMemory(MI->getDest())) { 230 // Set the size of the copy to 0, it will be deleted on the next iteration. 231 MI->setLength(Constant::getNullValue(MI->getLength()->getType())); 232 return MI; 233 } 234 235 // Extract the length and alignment and fill if they are constant. 236 ConstantInt *LenC = dyn_cast<ConstantInt>(MI->getLength()); 237 ConstantInt *FillC = dyn_cast<ConstantInt>(MI->getValue()); 238 if (!LenC || !FillC || !FillC->getType()->isIntegerTy(8)) 239 return nullptr; 240 const uint64_t Len = LenC->getLimitedValue(); 241 assert(Len && "0-sized memory setting should be removed already."); 242 const Align Alignment = assumeAligned(MI->getDestAlignment()); 243 244 // If it is an atomic and alignment is less than the size then we will 245 // introduce the unaligned memory access which will be later transformed 246 // into libcall in CodeGen. This is not evident performance gain so disable 247 // it now. 248 if (isa<AtomicMemSetInst>(MI)) 249 if (Alignment < Len) 250 return nullptr; 251 252 // memset(s,c,n) -> store s, c (for n=1,2,4,8) 253 if (Len <= 8 && isPowerOf2_32((uint32_t)Len)) { 254 Type *ITy = IntegerType::get(MI->getContext(), Len*8); // n=1 -> i8. 255 256 Value *Dest = MI->getDest(); 257 unsigned DstAddrSp = cast<PointerType>(Dest->getType())->getAddressSpace(); 258 Type *NewDstPtrTy = PointerType::get(ITy, DstAddrSp); 259 Dest = Builder.CreateBitCast(Dest, NewDstPtrTy); 260 261 // Extract the fill value and store. 262 uint64_t Fill = FillC->getZExtValue()*0x0101010101010101ULL; 263 StoreInst *S = Builder.CreateStore(ConstantInt::get(ITy, Fill), Dest, 264 MI->isVolatile()); 265 S->setAlignment(Alignment); 266 if (isa<AtomicMemSetInst>(MI)) 267 S->setOrdering(AtomicOrdering::Unordered); 268 269 // Set the size of the copy to 0, it will be deleted on the next iteration. 270 MI->setLength(Constant::getNullValue(LenC->getType())); 271 return MI; 272 } 273 274 return nullptr; 275 } 276 277 // TODO, Obvious Missing Transforms: 278 // * Narrow width by halfs excluding zero/undef lanes 279 Value *InstCombinerImpl::simplifyMaskedLoad(IntrinsicInst &II) { 280 Value *LoadPtr = II.getArgOperand(0); 281 const Align Alignment = 282 cast<ConstantInt>(II.getArgOperand(1))->getAlignValue(); 283 284 // If the mask is all ones or undefs, this is a plain vector load of the 1st 285 // argument. 286 if (maskIsAllOneOrUndef(II.getArgOperand(2))) 287 return Builder.CreateAlignedLoad(II.getType(), LoadPtr, Alignment, 288 "unmaskedload"); 289 290 // If we can unconditionally load from this address, replace with a 291 // load/select idiom. TODO: use DT for context sensitive query 292 if (isDereferenceableAndAlignedPointer(LoadPtr, II.getType(), Alignment, 293 II.getModule()->getDataLayout(), &II, 294 nullptr)) { 295 Value *LI = Builder.CreateAlignedLoad(II.getType(), LoadPtr, Alignment, 296 "unmaskedload"); 297 return Builder.CreateSelect(II.getArgOperand(2), LI, II.getArgOperand(3)); 298 } 299 300 return nullptr; 301 } 302 303 // TODO, Obvious Missing Transforms: 304 // * Single constant active lane -> store 305 // * Narrow width by halfs excluding zero/undef lanes 306 Instruction *InstCombinerImpl::simplifyMaskedStore(IntrinsicInst &II) { 307 auto *ConstMask = dyn_cast<Constant>(II.getArgOperand(3)); 308 if (!ConstMask) 309 return nullptr; 310 311 // If the mask is all zeros, this instruction does nothing. 312 if (ConstMask->isNullValue()) 313 return eraseInstFromFunction(II); 314 315 // If the mask is all ones, this is a plain vector store of the 1st argument. 316 if (ConstMask->isAllOnesValue()) { 317 Value *StorePtr = II.getArgOperand(1); 318 Align Alignment = cast<ConstantInt>(II.getArgOperand(2))->getAlignValue(); 319 return new StoreInst(II.getArgOperand(0), StorePtr, false, Alignment); 320 } 321 322 // Use masked off lanes to simplify operands via SimplifyDemandedVectorElts 323 APInt DemandedElts = possiblyDemandedEltsInMask(ConstMask); 324 APInt UndefElts(DemandedElts.getBitWidth(), 0); 325 if (Value *V = SimplifyDemandedVectorElts(II.getOperand(0), 326 DemandedElts, UndefElts)) 327 return replaceOperand(II, 0, V); 328 329 return nullptr; 330 } 331 332 // TODO, Obvious Missing Transforms: 333 // * Single constant active lane load -> load 334 // * Dereferenceable address & few lanes -> scalarize speculative load/selects 335 // * Adjacent vector addresses -> masked.load 336 // * Narrow width by halfs excluding zero/undef lanes 337 // * Vector splat address w/known mask -> scalar load 338 // * Vector incrementing address -> vector masked load 339 Instruction *InstCombinerImpl::simplifyMaskedGather(IntrinsicInst &II) { 340 return nullptr; 341 } 342 343 // TODO, Obvious Missing Transforms: 344 // * Single constant active lane -> store 345 // * Adjacent vector addresses -> masked.store 346 // * Narrow store width by halfs excluding zero/undef lanes 347 // * Vector splat address w/known mask -> scalar store 348 // * Vector incrementing address -> vector masked store 349 Instruction *InstCombinerImpl::simplifyMaskedScatter(IntrinsicInst &II) { 350 auto *ConstMask = dyn_cast<Constant>(II.getArgOperand(3)); 351 if (!ConstMask) 352 return nullptr; 353 354 // If the mask is all zeros, a scatter does nothing. 355 if (ConstMask->isNullValue()) 356 return eraseInstFromFunction(II); 357 358 // Use masked off lanes to simplify operands via SimplifyDemandedVectorElts 359 APInt DemandedElts = possiblyDemandedEltsInMask(ConstMask); 360 APInt UndefElts(DemandedElts.getBitWidth(), 0); 361 if (Value *V = SimplifyDemandedVectorElts(II.getOperand(0), 362 DemandedElts, UndefElts)) 363 return replaceOperand(II, 0, V); 364 if (Value *V = SimplifyDemandedVectorElts(II.getOperand(1), 365 DemandedElts, UndefElts)) 366 return replaceOperand(II, 1, V); 367 368 return nullptr; 369 } 370 371 /// This function transforms launder.invariant.group and strip.invariant.group 372 /// like: 373 /// launder(launder(%x)) -> launder(%x) (the result is not the argument) 374 /// launder(strip(%x)) -> launder(%x) 375 /// strip(strip(%x)) -> strip(%x) (the result is not the argument) 376 /// strip(launder(%x)) -> strip(%x) 377 /// This is legal because it preserves the most recent information about 378 /// the presence or absence of invariant.group. 379 static Instruction *simplifyInvariantGroupIntrinsic(IntrinsicInst &II, 380 InstCombinerImpl &IC) { 381 auto *Arg = II.getArgOperand(0); 382 auto *StrippedArg = Arg->stripPointerCasts(); 383 auto *StrippedInvariantGroupsArg = Arg->stripPointerCastsAndInvariantGroups(); 384 if (StrippedArg == StrippedInvariantGroupsArg) 385 return nullptr; // No launders/strips to remove. 386 387 Value *Result = nullptr; 388 389 if (II.getIntrinsicID() == Intrinsic::launder_invariant_group) 390 Result = IC.Builder.CreateLaunderInvariantGroup(StrippedInvariantGroupsArg); 391 else if (II.getIntrinsicID() == Intrinsic::strip_invariant_group) 392 Result = IC.Builder.CreateStripInvariantGroup(StrippedInvariantGroupsArg); 393 else 394 llvm_unreachable( 395 "simplifyInvariantGroupIntrinsic only handles launder and strip"); 396 if (Result->getType()->getPointerAddressSpace() != 397 II.getType()->getPointerAddressSpace()) 398 Result = IC.Builder.CreateAddrSpaceCast(Result, II.getType()); 399 if (Result->getType() != II.getType()) 400 Result = IC.Builder.CreateBitCast(Result, II.getType()); 401 402 return cast<Instruction>(Result); 403 } 404 405 static Instruction *foldCttzCtlz(IntrinsicInst &II, InstCombinerImpl &IC) { 406 assert((II.getIntrinsicID() == Intrinsic::cttz || 407 II.getIntrinsicID() == Intrinsic::ctlz) && 408 "Expected cttz or ctlz intrinsic"); 409 bool IsTZ = II.getIntrinsicID() == Intrinsic::cttz; 410 Value *Op0 = II.getArgOperand(0); 411 Value *X; 412 // ctlz(bitreverse(x)) -> cttz(x) 413 // cttz(bitreverse(x)) -> ctlz(x) 414 if (match(Op0, m_BitReverse(m_Value(X)))) { 415 Intrinsic::ID ID = IsTZ ? Intrinsic::ctlz : Intrinsic::cttz; 416 Function *F = Intrinsic::getDeclaration(II.getModule(), ID, II.getType()); 417 return CallInst::Create(F, {X, II.getArgOperand(1)}); 418 } 419 420 if (IsTZ) { 421 // cttz(-x) -> cttz(x) 422 if (match(Op0, m_Neg(m_Value(X)))) 423 return IC.replaceOperand(II, 0, X); 424 425 // cttz(abs(x)) -> cttz(x) 426 // cttz(nabs(x)) -> cttz(x) 427 Value *Y; 428 SelectPatternFlavor SPF = matchSelectPattern(Op0, X, Y).Flavor; 429 if (SPF == SPF_ABS || SPF == SPF_NABS) 430 return IC.replaceOperand(II, 0, X); 431 } 432 433 KnownBits Known = IC.computeKnownBits(Op0, 0, &II); 434 435 // Create a mask for bits above (ctlz) or below (cttz) the first known one. 436 unsigned PossibleZeros = IsTZ ? Known.countMaxTrailingZeros() 437 : Known.countMaxLeadingZeros(); 438 unsigned DefiniteZeros = IsTZ ? Known.countMinTrailingZeros() 439 : Known.countMinLeadingZeros(); 440 441 // If all bits above (ctlz) or below (cttz) the first known one are known 442 // zero, this value is constant. 443 // FIXME: This should be in InstSimplify because we're replacing an 444 // instruction with a constant. 445 if (PossibleZeros == DefiniteZeros) { 446 auto *C = ConstantInt::get(Op0->getType(), DefiniteZeros); 447 return IC.replaceInstUsesWith(II, C); 448 } 449 450 // If the input to cttz/ctlz is known to be non-zero, 451 // then change the 'ZeroIsUndef' parameter to 'true' 452 // because we know the zero behavior can't affect the result. 453 if (!Known.One.isNullValue() || 454 isKnownNonZero(Op0, IC.getDataLayout(), 0, &IC.getAssumptionCache(), &II, 455 &IC.getDominatorTree())) { 456 if (!match(II.getArgOperand(1), m_One())) 457 return IC.replaceOperand(II, 1, IC.Builder.getTrue()); 458 } 459 460 // Add range metadata since known bits can't completely reflect what we know. 461 // TODO: Handle splat vectors. 462 auto *IT = dyn_cast<IntegerType>(Op0->getType()); 463 if (IT && IT->getBitWidth() != 1 && !II.getMetadata(LLVMContext::MD_range)) { 464 Metadata *LowAndHigh[] = { 465 ConstantAsMetadata::get(ConstantInt::get(IT, DefiniteZeros)), 466 ConstantAsMetadata::get(ConstantInt::get(IT, PossibleZeros + 1))}; 467 II.setMetadata(LLVMContext::MD_range, 468 MDNode::get(II.getContext(), LowAndHigh)); 469 return &II; 470 } 471 472 return nullptr; 473 } 474 475 static Instruction *foldCtpop(IntrinsicInst &II, InstCombinerImpl &IC) { 476 assert(II.getIntrinsicID() == Intrinsic::ctpop && 477 "Expected ctpop intrinsic"); 478 Type *Ty = II.getType(); 479 unsigned BitWidth = Ty->getScalarSizeInBits(); 480 Value *Op0 = II.getArgOperand(0); 481 Value *X; 482 483 // ctpop(bitreverse(x)) -> ctpop(x) 484 // ctpop(bswap(x)) -> ctpop(x) 485 if (match(Op0, m_BitReverse(m_Value(X))) || match(Op0, m_BSwap(m_Value(X)))) 486 return IC.replaceOperand(II, 0, X); 487 488 // ctpop(x | -x) -> bitwidth - cttz(x, false) 489 if (Op0->hasOneUse() && 490 match(Op0, m_c_Or(m_Value(X), m_Neg(m_Deferred(X))))) { 491 Function *F = 492 Intrinsic::getDeclaration(II.getModule(), Intrinsic::cttz, Ty); 493 auto *Cttz = IC.Builder.CreateCall(F, {X, IC.Builder.getFalse()}); 494 auto *Bw = ConstantInt::get(Ty, APInt(BitWidth, BitWidth)); 495 return IC.replaceInstUsesWith(II, IC.Builder.CreateSub(Bw, Cttz)); 496 } 497 498 // ctpop(~x & (x - 1)) -> cttz(x, false) 499 if (match(Op0, 500 m_c_And(m_Not(m_Value(X)), m_Add(m_Deferred(X), m_AllOnes())))) { 501 Function *F = 502 Intrinsic::getDeclaration(II.getModule(), Intrinsic::cttz, Ty); 503 return CallInst::Create(F, {X, IC.Builder.getFalse()}); 504 } 505 506 // FIXME: Try to simplify vectors of integers. 507 auto *IT = dyn_cast<IntegerType>(Ty); 508 if (!IT) 509 return nullptr; 510 511 KnownBits Known(BitWidth); 512 IC.computeKnownBits(Op0, Known, 0, &II); 513 514 unsigned MinCount = Known.countMinPopulation(); 515 unsigned MaxCount = Known.countMaxPopulation(); 516 517 // Add range metadata since known bits can't completely reflect what we know. 518 if (IT->getBitWidth() != 1 && !II.getMetadata(LLVMContext::MD_range)) { 519 Metadata *LowAndHigh[] = { 520 ConstantAsMetadata::get(ConstantInt::get(IT, MinCount)), 521 ConstantAsMetadata::get(ConstantInt::get(IT, MaxCount + 1))}; 522 II.setMetadata(LLVMContext::MD_range, 523 MDNode::get(II.getContext(), LowAndHigh)); 524 return &II; 525 } 526 527 return nullptr; 528 } 529 530 /// Convert a table lookup to shufflevector if the mask is constant. 531 /// This could benefit tbl1 if the mask is { 7,6,5,4,3,2,1,0 }, in 532 /// which case we could lower the shufflevector with rev64 instructions 533 /// as it's actually a byte reverse. 534 static Value *simplifyNeonTbl1(const IntrinsicInst &II, 535 InstCombiner::BuilderTy &Builder) { 536 // Bail out if the mask is not a constant. 537 auto *C = dyn_cast<Constant>(II.getArgOperand(1)); 538 if (!C) 539 return nullptr; 540 541 auto *VecTy = cast<VectorType>(II.getType()); 542 unsigned NumElts = VecTy->getNumElements(); 543 544 // Only perform this transformation for <8 x i8> vector types. 545 if (!VecTy->getElementType()->isIntegerTy(8) || NumElts != 8) 546 return nullptr; 547 548 int Indexes[8]; 549 550 for (unsigned I = 0; I < NumElts; ++I) { 551 Constant *COp = C->getAggregateElement(I); 552 553 if (!COp || !isa<ConstantInt>(COp)) 554 return nullptr; 555 556 Indexes[I] = cast<ConstantInt>(COp)->getLimitedValue(); 557 558 // Make sure the mask indices are in range. 559 if ((unsigned)Indexes[I] >= NumElts) 560 return nullptr; 561 } 562 563 auto *V1 = II.getArgOperand(0); 564 auto *V2 = Constant::getNullValue(V1->getType()); 565 return Builder.CreateShuffleVector(V1, V2, makeArrayRef(Indexes)); 566 } 567 568 // Returns true iff the 2 intrinsics have the same operands, limiting the 569 // comparison to the first NumOperands. 570 static bool haveSameOperands(const IntrinsicInst &I, const IntrinsicInst &E, 571 unsigned NumOperands) { 572 assert(I.getNumArgOperands() >= NumOperands && "Not enough operands"); 573 assert(E.getNumArgOperands() >= NumOperands && "Not enough operands"); 574 for (unsigned i = 0; i < NumOperands; i++) 575 if (I.getArgOperand(i) != E.getArgOperand(i)) 576 return false; 577 return true; 578 } 579 580 // Remove trivially empty start/end intrinsic ranges, i.e. a start 581 // immediately followed by an end (ignoring debuginfo or other 582 // start/end intrinsics in between). As this handles only the most trivial 583 // cases, tracking the nesting level is not needed: 584 // 585 // call @llvm.foo.start(i1 0) 586 // call @llvm.foo.start(i1 0) ; This one won't be skipped: it will be removed 587 // call @llvm.foo.end(i1 0) 588 // call @llvm.foo.end(i1 0) ; &I 589 static bool 590 removeTriviallyEmptyRange(IntrinsicInst &EndI, InstCombinerImpl &IC, 591 std::function<bool(const IntrinsicInst &)> IsStart) { 592 // We start from the end intrinsic and scan backwards, so that InstCombine 593 // has already processed (and potentially removed) all the instructions 594 // before the end intrinsic. 595 BasicBlock::reverse_iterator BI(EndI), BE(EndI.getParent()->rend()); 596 for (; BI != BE; ++BI) { 597 if (auto *I = dyn_cast<IntrinsicInst>(&*BI)) { 598 if (isa<DbgInfoIntrinsic>(I) || 599 I->getIntrinsicID() == EndI.getIntrinsicID()) 600 continue; 601 if (IsStart(*I)) { 602 if (haveSameOperands(EndI, *I, EndI.getNumArgOperands())) { 603 IC.eraseInstFromFunction(*I); 604 IC.eraseInstFromFunction(EndI); 605 return true; 606 } 607 // Skip start intrinsics that don't pair with this end intrinsic. 608 continue; 609 } 610 } 611 break; 612 } 613 614 return false; 615 } 616 617 Instruction *InstCombinerImpl::visitVAEndInst(VAEndInst &I) { 618 removeTriviallyEmptyRange(I, *this, [](const IntrinsicInst &I) { 619 return I.getIntrinsicID() == Intrinsic::vastart || 620 I.getIntrinsicID() == Intrinsic::vacopy; 621 }); 622 return nullptr; 623 } 624 625 static Instruction *canonicalizeConstantArg0ToArg1(CallInst &Call) { 626 assert(Call.getNumArgOperands() > 1 && "Need at least 2 args to swap"); 627 Value *Arg0 = Call.getArgOperand(0), *Arg1 = Call.getArgOperand(1); 628 if (isa<Constant>(Arg0) && !isa<Constant>(Arg1)) { 629 Call.setArgOperand(0, Arg1); 630 Call.setArgOperand(1, Arg0); 631 return &Call; 632 } 633 return nullptr; 634 } 635 636 /// Creates a result tuple for an overflow intrinsic \p II with a given 637 /// \p Result and a constant \p Overflow value. 638 static Instruction *createOverflowTuple(IntrinsicInst *II, Value *Result, 639 Constant *Overflow) { 640 Constant *V[] = {UndefValue::get(Result->getType()), Overflow}; 641 StructType *ST = cast<StructType>(II->getType()); 642 Constant *Struct = ConstantStruct::get(ST, V); 643 return InsertValueInst::Create(Struct, Result, 0); 644 } 645 646 Instruction * 647 InstCombinerImpl::foldIntrinsicWithOverflowCommon(IntrinsicInst *II) { 648 WithOverflowInst *WO = cast<WithOverflowInst>(II); 649 Value *OperationResult = nullptr; 650 Constant *OverflowResult = nullptr; 651 if (OptimizeOverflowCheck(WO->getBinaryOp(), WO->isSigned(), WO->getLHS(), 652 WO->getRHS(), *WO, OperationResult, OverflowResult)) 653 return createOverflowTuple(WO, OperationResult, OverflowResult); 654 return nullptr; 655 } 656 657 /// CallInst simplification. This mostly only handles folding of intrinsic 658 /// instructions. For normal calls, it allows visitCallBase to do the heavy 659 /// lifting. 660 Instruction *InstCombinerImpl::visitCallInst(CallInst &CI) { 661 // Don't try to simplify calls without uses. It will not do anything useful, 662 // but will result in the following folds being skipped. 663 if (!CI.use_empty()) 664 if (Value *V = SimplifyCall(&CI, SQ.getWithInstruction(&CI))) 665 return replaceInstUsesWith(CI, V); 666 667 if (isFreeCall(&CI, &TLI)) 668 return visitFree(CI); 669 670 // If the caller function is nounwind, mark the call as nounwind, even if the 671 // callee isn't. 672 if (CI.getFunction()->doesNotThrow() && !CI.doesNotThrow()) { 673 CI.setDoesNotThrow(); 674 return &CI; 675 } 676 677 IntrinsicInst *II = dyn_cast<IntrinsicInst>(&CI); 678 if (!II) return visitCallBase(CI); 679 680 // For atomic unordered mem intrinsics if len is not a positive or 681 // not a multiple of element size then behavior is undefined. 682 if (auto *AMI = dyn_cast<AtomicMemIntrinsic>(II)) 683 if (ConstantInt *NumBytes = dyn_cast<ConstantInt>(AMI->getLength())) 684 if (NumBytes->getSExtValue() < 0 || 685 (NumBytes->getZExtValue() % AMI->getElementSizeInBytes() != 0)) { 686 CreateNonTerminatorUnreachable(AMI); 687 assert(AMI->getType()->isVoidTy() && 688 "non void atomic unordered mem intrinsic"); 689 return eraseInstFromFunction(*AMI); 690 } 691 692 // Intrinsics cannot occur in an invoke or a callbr, so handle them here 693 // instead of in visitCallBase. 694 if (auto *MI = dyn_cast<AnyMemIntrinsic>(II)) { 695 bool Changed = false; 696 697 // memmove/cpy/set of zero bytes is a noop. 698 if (Constant *NumBytes = dyn_cast<Constant>(MI->getLength())) { 699 if (NumBytes->isNullValue()) 700 return eraseInstFromFunction(CI); 701 702 if (ConstantInt *CI = dyn_cast<ConstantInt>(NumBytes)) 703 if (CI->getZExtValue() == 1) { 704 // Replace the instruction with just byte operations. We would 705 // transform other cases to loads/stores, but we don't know if 706 // alignment is sufficient. 707 } 708 } 709 710 // No other transformations apply to volatile transfers. 711 if (auto *M = dyn_cast<MemIntrinsic>(MI)) 712 if (M->isVolatile()) 713 return nullptr; 714 715 // If we have a memmove and the source operation is a constant global, 716 // then the source and dest pointers can't alias, so we can change this 717 // into a call to memcpy. 718 if (auto *MMI = dyn_cast<AnyMemMoveInst>(MI)) { 719 if (GlobalVariable *GVSrc = dyn_cast<GlobalVariable>(MMI->getSource())) 720 if (GVSrc->isConstant()) { 721 Module *M = CI.getModule(); 722 Intrinsic::ID MemCpyID = 723 isa<AtomicMemMoveInst>(MMI) 724 ? Intrinsic::memcpy_element_unordered_atomic 725 : Intrinsic::memcpy; 726 Type *Tys[3] = { CI.getArgOperand(0)->getType(), 727 CI.getArgOperand(1)->getType(), 728 CI.getArgOperand(2)->getType() }; 729 CI.setCalledFunction(Intrinsic::getDeclaration(M, MemCpyID, Tys)); 730 Changed = true; 731 } 732 } 733 734 if (AnyMemTransferInst *MTI = dyn_cast<AnyMemTransferInst>(MI)) { 735 // memmove(x,x,size) -> noop. 736 if (MTI->getSource() == MTI->getDest()) 737 return eraseInstFromFunction(CI); 738 } 739 740 // If we can determine a pointer alignment that is bigger than currently 741 // set, update the alignment. 742 if (auto *MTI = dyn_cast<AnyMemTransferInst>(MI)) { 743 if (Instruction *I = SimplifyAnyMemTransfer(MTI)) 744 return I; 745 } else if (auto *MSI = dyn_cast<AnyMemSetInst>(MI)) { 746 if (Instruction *I = SimplifyAnyMemSet(MSI)) 747 return I; 748 } 749 750 if (Changed) return II; 751 } 752 753 // For fixed width vector result intrinsics, use the generic demanded vector 754 // support. 755 if (auto *IIFVTy = dyn_cast<FixedVectorType>(II->getType())) { 756 auto VWidth = IIFVTy->getNumElements(); 757 APInt UndefElts(VWidth, 0); 758 APInt AllOnesEltMask(APInt::getAllOnesValue(VWidth)); 759 if (Value *V = SimplifyDemandedVectorElts(II, AllOnesEltMask, UndefElts)) { 760 if (V != II) 761 return replaceInstUsesWith(*II, V); 762 return II; 763 } 764 } 765 766 Intrinsic::ID IID = II->getIntrinsicID(); 767 switch (IID) { 768 case Intrinsic::objectsize: 769 if (Value *V = lowerObjectSizeCall(II, DL, &TLI, /*MustSucceed=*/false)) 770 return replaceInstUsesWith(CI, V); 771 return nullptr; 772 case Intrinsic::abs: { 773 Value *IIOperand = II->getArgOperand(0); 774 // abs(-x) -> abs(x) 775 // TODO: Copy nsw if it was present on the neg? 776 Value *X; 777 if (match(IIOperand, m_Neg(m_Value(X)))) 778 return replaceOperand(*II, 0, X); 779 780 break; 781 } 782 case Intrinsic::bswap: { 783 Value *IIOperand = II->getArgOperand(0); 784 Value *X = nullptr; 785 786 // bswap(trunc(bswap(x))) -> trunc(lshr(x, c)) 787 if (match(IIOperand, m_Trunc(m_BSwap(m_Value(X))))) { 788 unsigned C = X->getType()->getPrimitiveSizeInBits() - 789 IIOperand->getType()->getPrimitiveSizeInBits(); 790 Value *CV = ConstantInt::get(X->getType(), C); 791 Value *V = Builder.CreateLShr(X, CV); 792 return new TruncInst(V, IIOperand->getType()); 793 } 794 break; 795 } 796 case Intrinsic::masked_load: 797 if (Value *SimplifiedMaskedOp = simplifyMaskedLoad(*II)) 798 return replaceInstUsesWith(CI, SimplifiedMaskedOp); 799 break; 800 case Intrinsic::masked_store: 801 return simplifyMaskedStore(*II); 802 case Intrinsic::masked_gather: 803 return simplifyMaskedGather(*II); 804 case Intrinsic::masked_scatter: 805 return simplifyMaskedScatter(*II); 806 case Intrinsic::launder_invariant_group: 807 case Intrinsic::strip_invariant_group: 808 if (auto *SkippedBarrier = simplifyInvariantGroupIntrinsic(*II, *this)) 809 return replaceInstUsesWith(*II, SkippedBarrier); 810 break; 811 case Intrinsic::powi: 812 if (ConstantInt *Power = dyn_cast<ConstantInt>(II->getArgOperand(1))) { 813 // 0 and 1 are handled in instsimplify 814 815 // powi(x, -1) -> 1/x 816 if (Power->isMinusOne()) 817 return BinaryOperator::CreateFDiv(ConstantFP::get(CI.getType(), 1.0), 818 II->getArgOperand(0)); 819 // powi(x, 2) -> x*x 820 if (Power->equalsInt(2)) 821 return BinaryOperator::CreateFMul(II->getArgOperand(0), 822 II->getArgOperand(0)); 823 } 824 break; 825 826 case Intrinsic::cttz: 827 case Intrinsic::ctlz: 828 if (auto *I = foldCttzCtlz(*II, *this)) 829 return I; 830 break; 831 832 case Intrinsic::ctpop: 833 if (auto *I = foldCtpop(*II, *this)) 834 return I; 835 break; 836 837 case Intrinsic::fshl: 838 case Intrinsic::fshr: { 839 Value *Op0 = II->getArgOperand(0), *Op1 = II->getArgOperand(1); 840 Type *Ty = II->getType(); 841 unsigned BitWidth = Ty->getScalarSizeInBits(); 842 Constant *ShAmtC; 843 if (match(II->getArgOperand(2), m_Constant(ShAmtC)) && 844 !isa<ConstantExpr>(ShAmtC) && !ShAmtC->containsConstantExpression()) { 845 // Canonicalize a shift amount constant operand to modulo the bit-width. 846 Constant *WidthC = ConstantInt::get(Ty, BitWidth); 847 Constant *ModuloC = ConstantExpr::getURem(ShAmtC, WidthC); 848 if (ModuloC != ShAmtC) 849 return replaceOperand(*II, 2, ModuloC); 850 851 assert(ConstantExpr::getICmp(ICmpInst::ICMP_UGT, WidthC, ShAmtC) == 852 ConstantInt::getTrue(CmpInst::makeCmpResultType(Ty)) && 853 "Shift amount expected to be modulo bitwidth"); 854 855 // Canonicalize funnel shift right by constant to funnel shift left. This 856 // is not entirely arbitrary. For historical reasons, the backend may 857 // recognize rotate left patterns but miss rotate right patterns. 858 if (IID == Intrinsic::fshr) { 859 // fshr X, Y, C --> fshl X, Y, (BitWidth - C) 860 Constant *LeftShiftC = ConstantExpr::getSub(WidthC, ShAmtC); 861 Module *Mod = II->getModule(); 862 Function *Fshl = Intrinsic::getDeclaration(Mod, Intrinsic::fshl, Ty); 863 return CallInst::Create(Fshl, { Op0, Op1, LeftShiftC }); 864 } 865 assert(IID == Intrinsic::fshl && 866 "All funnel shifts by simple constants should go left"); 867 868 // fshl(X, 0, C) --> shl X, C 869 // fshl(X, undef, C) --> shl X, C 870 if (match(Op1, m_ZeroInt()) || match(Op1, m_Undef())) 871 return BinaryOperator::CreateShl(Op0, ShAmtC); 872 873 // fshl(0, X, C) --> lshr X, (BW-C) 874 // fshl(undef, X, C) --> lshr X, (BW-C) 875 if (match(Op0, m_ZeroInt()) || match(Op0, m_Undef())) 876 return BinaryOperator::CreateLShr(Op1, 877 ConstantExpr::getSub(WidthC, ShAmtC)); 878 879 // fshl i16 X, X, 8 --> bswap i16 X (reduce to more-specific form) 880 if (Op0 == Op1 && BitWidth == 16 && match(ShAmtC, m_SpecificInt(8))) { 881 Module *Mod = II->getModule(); 882 Function *Bswap = Intrinsic::getDeclaration(Mod, Intrinsic::bswap, Ty); 883 return CallInst::Create(Bswap, { Op0 }); 884 } 885 } 886 887 // Left or right might be masked. 888 if (SimplifyDemandedInstructionBits(*II)) 889 return &CI; 890 891 // The shift amount (operand 2) of a funnel shift is modulo the bitwidth, 892 // so only the low bits of the shift amount are demanded if the bitwidth is 893 // a power-of-2. 894 if (!isPowerOf2_32(BitWidth)) 895 break; 896 APInt Op2Demanded = APInt::getLowBitsSet(BitWidth, Log2_32_Ceil(BitWidth)); 897 KnownBits Op2Known(BitWidth); 898 if (SimplifyDemandedBits(II, 2, Op2Demanded, Op2Known)) 899 return &CI; 900 break; 901 } 902 case Intrinsic::uadd_with_overflow: 903 case Intrinsic::sadd_with_overflow: { 904 if (Instruction *I = canonicalizeConstantArg0ToArg1(CI)) 905 return I; 906 if (Instruction *I = foldIntrinsicWithOverflowCommon(II)) 907 return I; 908 909 // Given 2 constant operands whose sum does not overflow: 910 // uaddo (X +nuw C0), C1 -> uaddo X, C0 + C1 911 // saddo (X +nsw C0), C1 -> saddo X, C0 + C1 912 Value *X; 913 const APInt *C0, *C1; 914 Value *Arg0 = II->getArgOperand(0); 915 Value *Arg1 = II->getArgOperand(1); 916 bool IsSigned = IID == Intrinsic::sadd_with_overflow; 917 bool HasNWAdd = IsSigned ? match(Arg0, m_NSWAdd(m_Value(X), m_APInt(C0))) 918 : match(Arg0, m_NUWAdd(m_Value(X), m_APInt(C0))); 919 if (HasNWAdd && match(Arg1, m_APInt(C1))) { 920 bool Overflow; 921 APInt NewC = 922 IsSigned ? C1->sadd_ov(*C0, Overflow) : C1->uadd_ov(*C0, Overflow); 923 if (!Overflow) 924 return replaceInstUsesWith( 925 *II, Builder.CreateBinaryIntrinsic( 926 IID, X, ConstantInt::get(Arg1->getType(), NewC))); 927 } 928 break; 929 } 930 931 case Intrinsic::umul_with_overflow: 932 case Intrinsic::smul_with_overflow: 933 if (Instruction *I = canonicalizeConstantArg0ToArg1(CI)) 934 return I; 935 LLVM_FALLTHROUGH; 936 937 case Intrinsic::usub_with_overflow: 938 if (Instruction *I = foldIntrinsicWithOverflowCommon(II)) 939 return I; 940 break; 941 942 case Intrinsic::ssub_with_overflow: { 943 if (Instruction *I = foldIntrinsicWithOverflowCommon(II)) 944 return I; 945 946 Constant *C; 947 Value *Arg0 = II->getArgOperand(0); 948 Value *Arg1 = II->getArgOperand(1); 949 // Given a constant C that is not the minimum signed value 950 // for an integer of a given bit width: 951 // 952 // ssubo X, C -> saddo X, -C 953 if (match(Arg1, m_Constant(C)) && C->isNotMinSignedValue()) { 954 Value *NegVal = ConstantExpr::getNeg(C); 955 // Build a saddo call that is equivalent to the discovered 956 // ssubo call. 957 return replaceInstUsesWith( 958 *II, Builder.CreateBinaryIntrinsic(Intrinsic::sadd_with_overflow, 959 Arg0, NegVal)); 960 } 961 962 break; 963 } 964 965 case Intrinsic::uadd_sat: 966 case Intrinsic::sadd_sat: 967 if (Instruction *I = canonicalizeConstantArg0ToArg1(CI)) 968 return I; 969 LLVM_FALLTHROUGH; 970 case Intrinsic::usub_sat: 971 case Intrinsic::ssub_sat: { 972 SaturatingInst *SI = cast<SaturatingInst>(II); 973 Type *Ty = SI->getType(); 974 Value *Arg0 = SI->getLHS(); 975 Value *Arg1 = SI->getRHS(); 976 977 // Make use of known overflow information. 978 OverflowResult OR = computeOverflow(SI->getBinaryOp(), SI->isSigned(), 979 Arg0, Arg1, SI); 980 switch (OR) { 981 case OverflowResult::MayOverflow: 982 break; 983 case OverflowResult::NeverOverflows: 984 if (SI->isSigned()) 985 return BinaryOperator::CreateNSW(SI->getBinaryOp(), Arg0, Arg1); 986 else 987 return BinaryOperator::CreateNUW(SI->getBinaryOp(), Arg0, Arg1); 988 case OverflowResult::AlwaysOverflowsLow: { 989 unsigned BitWidth = Ty->getScalarSizeInBits(); 990 APInt Min = APSInt::getMinValue(BitWidth, !SI->isSigned()); 991 return replaceInstUsesWith(*SI, ConstantInt::get(Ty, Min)); 992 } 993 case OverflowResult::AlwaysOverflowsHigh: { 994 unsigned BitWidth = Ty->getScalarSizeInBits(); 995 APInt Max = APSInt::getMaxValue(BitWidth, !SI->isSigned()); 996 return replaceInstUsesWith(*SI, ConstantInt::get(Ty, Max)); 997 } 998 } 999 1000 // ssub.sat(X, C) -> sadd.sat(X, -C) if C != MIN 1001 Constant *C; 1002 if (IID == Intrinsic::ssub_sat && match(Arg1, m_Constant(C)) && 1003 C->isNotMinSignedValue()) { 1004 Value *NegVal = ConstantExpr::getNeg(C); 1005 return replaceInstUsesWith( 1006 *II, Builder.CreateBinaryIntrinsic( 1007 Intrinsic::sadd_sat, Arg0, NegVal)); 1008 } 1009 1010 // sat(sat(X + Val2) + Val) -> sat(X + (Val+Val2)) 1011 // sat(sat(X - Val2) - Val) -> sat(X - (Val+Val2)) 1012 // if Val and Val2 have the same sign 1013 if (auto *Other = dyn_cast<IntrinsicInst>(Arg0)) { 1014 Value *X; 1015 const APInt *Val, *Val2; 1016 APInt NewVal; 1017 bool IsUnsigned = 1018 IID == Intrinsic::uadd_sat || IID == Intrinsic::usub_sat; 1019 if (Other->getIntrinsicID() == IID && 1020 match(Arg1, m_APInt(Val)) && 1021 match(Other->getArgOperand(0), m_Value(X)) && 1022 match(Other->getArgOperand(1), m_APInt(Val2))) { 1023 if (IsUnsigned) 1024 NewVal = Val->uadd_sat(*Val2); 1025 else if (Val->isNonNegative() == Val2->isNonNegative()) { 1026 bool Overflow; 1027 NewVal = Val->sadd_ov(*Val2, Overflow); 1028 if (Overflow) { 1029 // Both adds together may add more than SignedMaxValue 1030 // without saturating the final result. 1031 break; 1032 } 1033 } else { 1034 // Cannot fold saturated addition with different signs. 1035 break; 1036 } 1037 1038 return replaceInstUsesWith( 1039 *II, Builder.CreateBinaryIntrinsic( 1040 IID, X, ConstantInt::get(II->getType(), NewVal))); 1041 } 1042 } 1043 break; 1044 } 1045 1046 case Intrinsic::minnum: 1047 case Intrinsic::maxnum: 1048 case Intrinsic::minimum: 1049 case Intrinsic::maximum: { 1050 if (Instruction *I = canonicalizeConstantArg0ToArg1(CI)) 1051 return I; 1052 Value *Arg0 = II->getArgOperand(0); 1053 Value *Arg1 = II->getArgOperand(1); 1054 Value *X, *Y; 1055 if (match(Arg0, m_FNeg(m_Value(X))) && match(Arg1, m_FNeg(m_Value(Y))) && 1056 (Arg0->hasOneUse() || Arg1->hasOneUse())) { 1057 // If both operands are negated, invert the call and negate the result: 1058 // min(-X, -Y) --> -(max(X, Y)) 1059 // max(-X, -Y) --> -(min(X, Y)) 1060 Intrinsic::ID NewIID; 1061 switch (IID) { 1062 case Intrinsic::maxnum: 1063 NewIID = Intrinsic::minnum; 1064 break; 1065 case Intrinsic::minnum: 1066 NewIID = Intrinsic::maxnum; 1067 break; 1068 case Intrinsic::maximum: 1069 NewIID = Intrinsic::minimum; 1070 break; 1071 case Intrinsic::minimum: 1072 NewIID = Intrinsic::maximum; 1073 break; 1074 default: 1075 llvm_unreachable("unexpected intrinsic ID"); 1076 } 1077 Value *NewCall = Builder.CreateBinaryIntrinsic(NewIID, X, Y, II); 1078 Instruction *FNeg = UnaryOperator::CreateFNeg(NewCall); 1079 FNeg->copyIRFlags(II); 1080 return FNeg; 1081 } 1082 1083 // m(m(X, C2), C1) -> m(X, C) 1084 const APFloat *C1, *C2; 1085 if (auto *M = dyn_cast<IntrinsicInst>(Arg0)) { 1086 if (M->getIntrinsicID() == IID && match(Arg1, m_APFloat(C1)) && 1087 ((match(M->getArgOperand(0), m_Value(X)) && 1088 match(M->getArgOperand(1), m_APFloat(C2))) || 1089 (match(M->getArgOperand(1), m_Value(X)) && 1090 match(M->getArgOperand(0), m_APFloat(C2))))) { 1091 APFloat Res(0.0); 1092 switch (IID) { 1093 case Intrinsic::maxnum: 1094 Res = maxnum(*C1, *C2); 1095 break; 1096 case Intrinsic::minnum: 1097 Res = minnum(*C1, *C2); 1098 break; 1099 case Intrinsic::maximum: 1100 Res = maximum(*C1, *C2); 1101 break; 1102 case Intrinsic::minimum: 1103 Res = minimum(*C1, *C2); 1104 break; 1105 default: 1106 llvm_unreachable("unexpected intrinsic ID"); 1107 } 1108 Instruction *NewCall = Builder.CreateBinaryIntrinsic( 1109 IID, X, ConstantFP::get(Arg0->getType(), Res), II); 1110 // TODO: Conservatively intersecting FMF. If Res == C2, the transform 1111 // was a simplification (so Arg0 and its original flags could 1112 // propagate?) 1113 NewCall->andIRFlags(M); 1114 return replaceInstUsesWith(*II, NewCall); 1115 } 1116 } 1117 1118 Value *ExtSrc0; 1119 Value *ExtSrc1; 1120 1121 // minnum (fpext x), (fpext y) -> minnum x, y 1122 // maxnum (fpext x), (fpext y) -> maxnum x, y 1123 if (match(II->getArgOperand(0), m_OneUse(m_FPExt(m_Value(ExtSrc0)))) && 1124 match(II->getArgOperand(1), m_OneUse(m_FPExt(m_Value(ExtSrc1)))) && 1125 ExtSrc0->getType() == ExtSrc1->getType()) { 1126 Function *F = Intrinsic::getDeclaration( 1127 II->getModule(), II->getIntrinsicID(), {ExtSrc0->getType()}); 1128 CallInst *NewCall = Builder.CreateCall(F, { ExtSrc0, ExtSrc1 }); 1129 NewCall->copyFastMathFlags(II); 1130 NewCall->takeName(II); 1131 return new FPExtInst(NewCall, II->getType()); 1132 } 1133 1134 break; 1135 } 1136 case Intrinsic::fmuladd: { 1137 // Canonicalize fast fmuladd to the separate fmul + fadd. 1138 if (II->isFast()) { 1139 BuilderTy::FastMathFlagGuard Guard(Builder); 1140 Builder.setFastMathFlags(II->getFastMathFlags()); 1141 Value *Mul = Builder.CreateFMul(II->getArgOperand(0), 1142 II->getArgOperand(1)); 1143 Value *Add = Builder.CreateFAdd(Mul, II->getArgOperand(2)); 1144 Add->takeName(II); 1145 return replaceInstUsesWith(*II, Add); 1146 } 1147 1148 // Try to simplify the underlying FMul. 1149 if (Value *V = SimplifyFMulInst(II->getArgOperand(0), II->getArgOperand(1), 1150 II->getFastMathFlags(), 1151 SQ.getWithInstruction(II))) { 1152 auto *FAdd = BinaryOperator::CreateFAdd(V, II->getArgOperand(2)); 1153 FAdd->copyFastMathFlags(II); 1154 return FAdd; 1155 } 1156 1157 LLVM_FALLTHROUGH; 1158 } 1159 case Intrinsic::fma: { 1160 if (Instruction *I = canonicalizeConstantArg0ToArg1(CI)) 1161 return I; 1162 1163 // fma fneg(x), fneg(y), z -> fma x, y, z 1164 Value *Src0 = II->getArgOperand(0); 1165 Value *Src1 = II->getArgOperand(1); 1166 Value *X, *Y; 1167 if (match(Src0, m_FNeg(m_Value(X))) && match(Src1, m_FNeg(m_Value(Y)))) { 1168 replaceOperand(*II, 0, X); 1169 replaceOperand(*II, 1, Y); 1170 return II; 1171 } 1172 1173 // fma fabs(x), fabs(x), z -> fma x, x, z 1174 if (match(Src0, m_FAbs(m_Value(X))) && 1175 match(Src1, m_FAbs(m_Specific(X)))) { 1176 replaceOperand(*II, 0, X); 1177 replaceOperand(*II, 1, X); 1178 return II; 1179 } 1180 1181 // Try to simplify the underlying FMul. We can only apply simplifications 1182 // that do not require rounding. 1183 if (Value *V = SimplifyFMAFMul(II->getArgOperand(0), II->getArgOperand(1), 1184 II->getFastMathFlags(), 1185 SQ.getWithInstruction(II))) { 1186 auto *FAdd = BinaryOperator::CreateFAdd(V, II->getArgOperand(2)); 1187 FAdd->copyFastMathFlags(II); 1188 return FAdd; 1189 } 1190 1191 // fma x, y, 0 -> fmul x, y 1192 // This is always valid for -0.0, but requires nsz for +0.0 as 1193 // -0.0 + 0.0 = 0.0, which would not be the same as the fmul on its own. 1194 if (match(II->getArgOperand(2), m_NegZeroFP()) || 1195 (match(II->getArgOperand(2), m_PosZeroFP()) && 1196 II->getFastMathFlags().noSignedZeros())) 1197 return BinaryOperator::CreateFMulFMF(Src0, Src1, II); 1198 1199 break; 1200 } 1201 case Intrinsic::copysign: { 1202 Value *Mag = II->getArgOperand(0), *Sign = II->getArgOperand(1); 1203 if (SignBitMustBeZero(Sign, &TLI)) { 1204 // If we know that the sign argument is positive, reduce to FABS: 1205 // copysign Mag, +Sign --> fabs Mag 1206 Value *Fabs = Builder.CreateUnaryIntrinsic(Intrinsic::fabs, Mag, II); 1207 return replaceInstUsesWith(*II, Fabs); 1208 } 1209 // TODO: There should be a ValueTracking sibling like SignBitMustBeOne. 1210 const APFloat *C; 1211 if (match(Sign, m_APFloat(C)) && C->isNegative()) { 1212 // If we know that the sign argument is negative, reduce to FNABS: 1213 // copysign Mag, -Sign --> fneg (fabs Mag) 1214 Value *Fabs = Builder.CreateUnaryIntrinsic(Intrinsic::fabs, Mag, II); 1215 return replaceInstUsesWith(*II, Builder.CreateFNegFMF(Fabs, II)); 1216 } 1217 1218 // Propagate sign argument through nested calls: 1219 // copysign Mag, (copysign ?, X) --> copysign Mag, X 1220 Value *X; 1221 if (match(Sign, m_Intrinsic<Intrinsic::copysign>(m_Value(), m_Value(X)))) 1222 return replaceOperand(*II, 1, X); 1223 1224 // Peek through changes of magnitude's sign-bit. This call rewrites those: 1225 // copysign (fabs X), Sign --> copysign X, Sign 1226 // copysign (fneg X), Sign --> copysign X, Sign 1227 if (match(Mag, m_FAbs(m_Value(X))) || match(Mag, m_FNeg(m_Value(X)))) 1228 return replaceOperand(*II, 0, X); 1229 1230 break; 1231 } 1232 case Intrinsic::fabs: { 1233 Value *Cond, *TVal, *FVal; 1234 if (match(II->getArgOperand(0), 1235 m_Select(m_Value(Cond), m_Value(TVal), m_Value(FVal)))) { 1236 // fabs (select Cond, TrueC, FalseC) --> select Cond, AbsT, AbsF 1237 if (isa<Constant>(TVal) && isa<Constant>(FVal)) { 1238 CallInst *AbsT = Builder.CreateCall(II->getCalledFunction(), {TVal}); 1239 CallInst *AbsF = Builder.CreateCall(II->getCalledFunction(), {FVal}); 1240 return SelectInst::Create(Cond, AbsT, AbsF); 1241 } 1242 // fabs (select Cond, -FVal, FVal) --> fabs FVal 1243 if (match(TVal, m_FNeg(m_Specific(FVal)))) 1244 return replaceOperand(*II, 0, FVal); 1245 // fabs (select Cond, TVal, -TVal) --> fabs TVal 1246 if (match(FVal, m_FNeg(m_Specific(TVal)))) 1247 return replaceOperand(*II, 0, TVal); 1248 } 1249 1250 LLVM_FALLTHROUGH; 1251 } 1252 case Intrinsic::ceil: 1253 case Intrinsic::floor: 1254 case Intrinsic::round: 1255 case Intrinsic::roundeven: 1256 case Intrinsic::nearbyint: 1257 case Intrinsic::rint: 1258 case Intrinsic::trunc: { 1259 Value *ExtSrc; 1260 if (match(II->getArgOperand(0), m_OneUse(m_FPExt(m_Value(ExtSrc))))) { 1261 // Narrow the call: intrinsic (fpext x) -> fpext (intrinsic x) 1262 Value *NarrowII = Builder.CreateUnaryIntrinsic(IID, ExtSrc, II); 1263 return new FPExtInst(NarrowII, II->getType()); 1264 } 1265 break; 1266 } 1267 case Intrinsic::cos: 1268 case Intrinsic::amdgcn_cos: { 1269 Value *X; 1270 Value *Src = II->getArgOperand(0); 1271 if (match(Src, m_FNeg(m_Value(X))) || match(Src, m_FAbs(m_Value(X)))) { 1272 // cos(-x) -> cos(x) 1273 // cos(fabs(x)) -> cos(x) 1274 return replaceOperand(*II, 0, X); 1275 } 1276 break; 1277 } 1278 case Intrinsic::sin: { 1279 Value *X; 1280 if (match(II->getArgOperand(0), m_OneUse(m_FNeg(m_Value(X))))) { 1281 // sin(-x) --> -sin(x) 1282 Value *NewSin = Builder.CreateUnaryIntrinsic(Intrinsic::sin, X, II); 1283 Instruction *FNeg = UnaryOperator::CreateFNeg(NewSin); 1284 FNeg->copyFastMathFlags(II); 1285 return FNeg; 1286 } 1287 break; 1288 } 1289 1290 case Intrinsic::arm_neon_vtbl1: 1291 case Intrinsic::aarch64_neon_tbl1: 1292 if (Value *V = simplifyNeonTbl1(*II, Builder)) 1293 return replaceInstUsesWith(*II, V); 1294 break; 1295 1296 case Intrinsic::arm_neon_vmulls: 1297 case Intrinsic::arm_neon_vmullu: 1298 case Intrinsic::aarch64_neon_smull: 1299 case Intrinsic::aarch64_neon_umull: { 1300 Value *Arg0 = II->getArgOperand(0); 1301 Value *Arg1 = II->getArgOperand(1); 1302 1303 // Handle mul by zero first: 1304 if (isa<ConstantAggregateZero>(Arg0) || isa<ConstantAggregateZero>(Arg1)) { 1305 return replaceInstUsesWith(CI, ConstantAggregateZero::get(II->getType())); 1306 } 1307 1308 // Check for constant LHS & RHS - in this case we just simplify. 1309 bool Zext = (IID == Intrinsic::arm_neon_vmullu || 1310 IID == Intrinsic::aarch64_neon_umull); 1311 VectorType *NewVT = cast<VectorType>(II->getType()); 1312 if (Constant *CV0 = dyn_cast<Constant>(Arg0)) { 1313 if (Constant *CV1 = dyn_cast<Constant>(Arg1)) { 1314 CV0 = ConstantExpr::getIntegerCast(CV0, NewVT, /*isSigned=*/!Zext); 1315 CV1 = ConstantExpr::getIntegerCast(CV1, NewVT, /*isSigned=*/!Zext); 1316 1317 return replaceInstUsesWith(CI, ConstantExpr::getMul(CV0, CV1)); 1318 } 1319 1320 // Couldn't simplify - canonicalize constant to the RHS. 1321 std::swap(Arg0, Arg1); 1322 } 1323 1324 // Handle mul by one: 1325 if (Constant *CV1 = dyn_cast<Constant>(Arg1)) 1326 if (ConstantInt *Splat = 1327 dyn_cast_or_null<ConstantInt>(CV1->getSplatValue())) 1328 if (Splat->isOne()) 1329 return CastInst::CreateIntegerCast(Arg0, II->getType(), 1330 /*isSigned=*/!Zext); 1331 1332 break; 1333 } 1334 case Intrinsic::arm_neon_aesd: 1335 case Intrinsic::arm_neon_aese: 1336 case Intrinsic::aarch64_crypto_aesd: 1337 case Intrinsic::aarch64_crypto_aese: { 1338 Value *DataArg = II->getArgOperand(0); 1339 Value *KeyArg = II->getArgOperand(1); 1340 1341 // Try to use the builtin XOR in AESE and AESD to eliminate a prior XOR 1342 Value *Data, *Key; 1343 if (match(KeyArg, m_ZeroInt()) && 1344 match(DataArg, m_Xor(m_Value(Data), m_Value(Key)))) { 1345 replaceOperand(*II, 0, Data); 1346 replaceOperand(*II, 1, Key); 1347 return II; 1348 } 1349 break; 1350 } 1351 case Intrinsic::hexagon_V6_vandvrt: 1352 case Intrinsic::hexagon_V6_vandvrt_128B: { 1353 // Simplify Q -> V -> Q conversion. 1354 if (auto Op0 = dyn_cast<IntrinsicInst>(II->getArgOperand(0))) { 1355 Intrinsic::ID ID0 = Op0->getIntrinsicID(); 1356 if (ID0 != Intrinsic::hexagon_V6_vandqrt && 1357 ID0 != Intrinsic::hexagon_V6_vandqrt_128B) 1358 break; 1359 Value *Bytes = Op0->getArgOperand(1), *Mask = II->getArgOperand(1); 1360 uint64_t Bytes1 = computeKnownBits(Bytes, 0, Op0).One.getZExtValue(); 1361 uint64_t Mask1 = computeKnownBits(Mask, 0, II).One.getZExtValue(); 1362 // Check if every byte has common bits in Bytes and Mask. 1363 uint64_t C = Bytes1 & Mask1; 1364 if ((C & 0xFF) && (C & 0xFF00) && (C & 0xFF0000) && (C & 0xFF000000)) 1365 return replaceInstUsesWith(*II, Op0->getArgOperand(0)); 1366 } 1367 break; 1368 } 1369 case Intrinsic::stackrestore: { 1370 // If the save is right next to the restore, remove the restore. This can 1371 // happen when variable allocas are DCE'd. 1372 if (IntrinsicInst *SS = dyn_cast<IntrinsicInst>(II->getArgOperand(0))) { 1373 if (SS->getIntrinsicID() == Intrinsic::stacksave) { 1374 // Skip over debug info. 1375 if (SS->getNextNonDebugInstruction() == II) { 1376 return eraseInstFromFunction(CI); 1377 } 1378 } 1379 } 1380 1381 // Scan down this block to see if there is another stack restore in the 1382 // same block without an intervening call/alloca. 1383 BasicBlock::iterator BI(II); 1384 Instruction *TI = II->getParent()->getTerminator(); 1385 bool CannotRemove = false; 1386 for (++BI; &*BI != TI; ++BI) { 1387 if (isa<AllocaInst>(BI)) { 1388 CannotRemove = true; 1389 break; 1390 } 1391 if (CallInst *BCI = dyn_cast<CallInst>(BI)) { 1392 if (auto *II2 = dyn_cast<IntrinsicInst>(BCI)) { 1393 // If there is a stackrestore below this one, remove this one. 1394 if (II2->getIntrinsicID() == Intrinsic::stackrestore) 1395 return eraseInstFromFunction(CI); 1396 1397 // Bail if we cross over an intrinsic with side effects, such as 1398 // llvm.stacksave, or llvm.read_register. 1399 if (II2->mayHaveSideEffects()) { 1400 CannotRemove = true; 1401 break; 1402 } 1403 } else { 1404 // If we found a non-intrinsic call, we can't remove the stack 1405 // restore. 1406 CannotRemove = true; 1407 break; 1408 } 1409 } 1410 } 1411 1412 // If the stack restore is in a return, resume, or unwind block and if there 1413 // are no allocas or calls between the restore and the return, nuke the 1414 // restore. 1415 if (!CannotRemove && (isa<ReturnInst>(TI) || isa<ResumeInst>(TI))) 1416 return eraseInstFromFunction(CI); 1417 break; 1418 } 1419 case Intrinsic::lifetime_end: 1420 // Asan needs to poison memory to detect invalid access which is possible 1421 // even for empty lifetime range. 1422 if (II->getFunction()->hasFnAttribute(Attribute::SanitizeAddress) || 1423 II->getFunction()->hasFnAttribute(Attribute::SanitizeMemory) || 1424 II->getFunction()->hasFnAttribute(Attribute::SanitizeHWAddress)) 1425 break; 1426 1427 if (removeTriviallyEmptyRange(*II, *this, [](const IntrinsicInst &I) { 1428 return I.getIntrinsicID() == Intrinsic::lifetime_start; 1429 })) 1430 return nullptr; 1431 break; 1432 case Intrinsic::assume: { 1433 Value *IIOperand = II->getArgOperand(0); 1434 // Remove an assume if it is followed by an identical assume. 1435 // TODO: Do we need this? Unless there are conflicting assumptions, the 1436 // computeKnownBits(IIOperand) below here eliminates redundant assumes. 1437 Instruction *Next = II->getNextNonDebugInstruction(); 1438 if (match(Next, m_Intrinsic<Intrinsic::assume>(m_Specific(IIOperand)))) 1439 return eraseInstFromFunction(CI); 1440 1441 // Canonicalize assume(a && b) -> assume(a); assume(b); 1442 // Note: New assumption intrinsics created here are registered by 1443 // the InstCombineIRInserter object. 1444 FunctionType *AssumeIntrinsicTy = II->getFunctionType(); 1445 Value *AssumeIntrinsic = II->getCalledOperand(); 1446 Value *A, *B; 1447 if (match(IIOperand, m_And(m_Value(A), m_Value(B)))) { 1448 Builder.CreateCall(AssumeIntrinsicTy, AssumeIntrinsic, A, II->getName()); 1449 Builder.CreateCall(AssumeIntrinsicTy, AssumeIntrinsic, B, II->getName()); 1450 return eraseInstFromFunction(*II); 1451 } 1452 // assume(!(a || b)) -> assume(!a); assume(!b); 1453 if (match(IIOperand, m_Not(m_Or(m_Value(A), m_Value(B))))) { 1454 Builder.CreateCall(AssumeIntrinsicTy, AssumeIntrinsic, 1455 Builder.CreateNot(A), II->getName()); 1456 Builder.CreateCall(AssumeIntrinsicTy, AssumeIntrinsic, 1457 Builder.CreateNot(B), II->getName()); 1458 return eraseInstFromFunction(*II); 1459 } 1460 1461 // assume( (load addr) != null ) -> add 'nonnull' metadata to load 1462 // (if assume is valid at the load) 1463 CmpInst::Predicate Pred; 1464 Instruction *LHS; 1465 if (match(IIOperand, m_ICmp(Pred, m_Instruction(LHS), m_Zero())) && 1466 Pred == ICmpInst::ICMP_NE && LHS->getOpcode() == Instruction::Load && 1467 LHS->getType()->isPointerTy() && 1468 isValidAssumeForContext(II, LHS, &DT)) { 1469 MDNode *MD = MDNode::get(II->getContext(), None); 1470 LHS->setMetadata(LLVMContext::MD_nonnull, MD); 1471 return eraseInstFromFunction(*II); 1472 1473 // TODO: apply nonnull return attributes to calls and invokes 1474 // TODO: apply range metadata for range check patterns? 1475 } 1476 1477 // If there is a dominating assume with the same condition as this one, 1478 // then this one is redundant, and should be removed. 1479 KnownBits Known(1); 1480 computeKnownBits(IIOperand, Known, 0, II); 1481 if (Known.isAllOnes() && isAssumeWithEmptyBundle(*II)) 1482 return eraseInstFromFunction(*II); 1483 1484 // Update the cache of affected values for this assumption (we might be 1485 // here because we just simplified the condition). 1486 AC.updateAffectedValues(II); 1487 break; 1488 } 1489 case Intrinsic::experimental_gc_statepoint: { 1490 GCStatepointInst &GCSP = *cast<GCStatepointInst>(II); 1491 SmallPtrSet<Value *, 32> LiveGcValues; 1492 for (const GCRelocateInst *Reloc : GCSP.getGCRelocates()) { 1493 GCRelocateInst &GCR = *const_cast<GCRelocateInst *>(Reloc); 1494 1495 // Remove the relocation if unused. 1496 if (GCR.use_empty()) { 1497 eraseInstFromFunction(GCR); 1498 continue; 1499 } 1500 1501 Value *DerivedPtr = GCR.getDerivedPtr(); 1502 Value *BasePtr = GCR.getBasePtr(); 1503 1504 // Undef is undef, even after relocation. 1505 if (isa<UndefValue>(DerivedPtr) || isa<UndefValue>(BasePtr)) { 1506 replaceInstUsesWith(GCR, UndefValue::get(GCR.getType())); 1507 eraseInstFromFunction(GCR); 1508 continue; 1509 } 1510 1511 if (auto *PT = dyn_cast<PointerType>(GCR.getType())) { 1512 // The relocation of null will be null for most any collector. 1513 // TODO: provide a hook for this in GCStrategy. There might be some 1514 // weird collector this property does not hold for. 1515 if (isa<ConstantPointerNull>(DerivedPtr)) { 1516 // Use null-pointer of gc_relocate's type to replace it. 1517 replaceInstUsesWith(GCR, ConstantPointerNull::get(PT)); 1518 eraseInstFromFunction(GCR); 1519 continue; 1520 } 1521 1522 // isKnownNonNull -> nonnull attribute 1523 if (!GCR.hasRetAttr(Attribute::NonNull) && 1524 isKnownNonZero(DerivedPtr, DL, 0, &AC, II, &DT)) { 1525 GCR.addAttribute(AttributeList::ReturnIndex, Attribute::NonNull); 1526 // We discovered new fact, re-check users. 1527 Worklist.pushUsersToWorkList(GCR); 1528 } 1529 } 1530 1531 // If we have two copies of the same pointer in the statepoint argument 1532 // list, canonicalize to one. This may let us common gc.relocates. 1533 if (GCR.getBasePtr() == GCR.getDerivedPtr() && 1534 GCR.getBasePtrIndex() != GCR.getDerivedPtrIndex()) { 1535 auto *OpIntTy = GCR.getOperand(2)->getType(); 1536 GCR.setOperand(2, ConstantInt::get(OpIntTy, GCR.getBasePtrIndex())); 1537 } 1538 1539 // TODO: bitcast(relocate(p)) -> relocate(bitcast(p)) 1540 // Canonicalize on the type from the uses to the defs 1541 1542 // TODO: relocate((gep p, C, C2, ...)) -> gep(relocate(p), C, C2, ...) 1543 LiveGcValues.insert(BasePtr); 1544 LiveGcValues.insert(DerivedPtr); 1545 } 1546 Optional<OperandBundleUse> Bundle = 1547 GCSP.getOperandBundle(LLVMContext::OB_gc_live); 1548 unsigned NumOfGCLives = LiveGcValues.size(); 1549 if (!Bundle.hasValue() || NumOfGCLives == Bundle->Inputs.size()) 1550 break; 1551 // We can reduce the size of gc live bundle. 1552 DenseMap<Value *, unsigned> Val2Idx; 1553 std::vector<Value *> NewLiveGc; 1554 for (unsigned I = 0, E = Bundle->Inputs.size(); I < E; ++I) { 1555 Value *V = Bundle->Inputs[I]; 1556 if (Val2Idx.count(V)) 1557 continue; 1558 if (LiveGcValues.count(V)) { 1559 Val2Idx[V] = NewLiveGc.size(); 1560 NewLiveGc.push_back(V); 1561 } else 1562 Val2Idx[V] = NumOfGCLives; 1563 } 1564 // Update all gc.relocates 1565 for (const GCRelocateInst *Reloc : GCSP.getGCRelocates()) { 1566 GCRelocateInst &GCR = *const_cast<GCRelocateInst *>(Reloc); 1567 Value *BasePtr = GCR.getBasePtr(); 1568 assert(Val2Idx.count(BasePtr) && Val2Idx[BasePtr] != NumOfGCLives && 1569 "Missed live gc for base pointer"); 1570 auto *OpIntTy1 = GCR.getOperand(1)->getType(); 1571 GCR.setOperand(1, ConstantInt::get(OpIntTy1, Val2Idx[BasePtr])); 1572 Value *DerivedPtr = GCR.getDerivedPtr(); 1573 assert(Val2Idx.count(DerivedPtr) && Val2Idx[DerivedPtr] != NumOfGCLives && 1574 "Missed live gc for derived pointer"); 1575 auto *OpIntTy2 = GCR.getOperand(2)->getType(); 1576 GCR.setOperand(2, ConstantInt::get(OpIntTy2, Val2Idx[DerivedPtr])); 1577 } 1578 // Create new statepoint instruction. 1579 OperandBundleDef NewBundle("gc-live", NewLiveGc); 1580 if (isa<CallInst>(II)) 1581 return CallInst::CreateWithReplacedBundle(cast<CallInst>(II), NewBundle); 1582 else 1583 return InvokeInst::CreateWithReplacedBundle(cast<InvokeInst>(II), 1584 NewBundle); 1585 break; 1586 } 1587 case Intrinsic::experimental_guard: { 1588 // Is this guard followed by another guard? We scan forward over a small 1589 // fixed window of instructions to handle common cases with conditions 1590 // computed between guards. 1591 Instruction *NextInst = II->getNextNonDebugInstruction(); 1592 for (unsigned i = 0; i < GuardWideningWindow; i++) { 1593 // Note: Using context-free form to avoid compile time blow up 1594 if (!isSafeToSpeculativelyExecute(NextInst)) 1595 break; 1596 NextInst = NextInst->getNextNonDebugInstruction(); 1597 } 1598 Value *NextCond = nullptr; 1599 if (match(NextInst, 1600 m_Intrinsic<Intrinsic::experimental_guard>(m_Value(NextCond)))) { 1601 Value *CurrCond = II->getArgOperand(0); 1602 1603 // Remove a guard that it is immediately preceded by an identical guard. 1604 // Otherwise canonicalize guard(a); guard(b) -> guard(a & b). 1605 if (CurrCond != NextCond) { 1606 Instruction *MoveI = II->getNextNonDebugInstruction(); 1607 while (MoveI != NextInst) { 1608 auto *Temp = MoveI; 1609 MoveI = MoveI->getNextNonDebugInstruction(); 1610 Temp->moveBefore(II); 1611 } 1612 replaceOperand(*II, 0, Builder.CreateAnd(CurrCond, NextCond)); 1613 } 1614 eraseInstFromFunction(*NextInst); 1615 return II; 1616 } 1617 break; 1618 } 1619 default: { 1620 // Handle target specific intrinsics 1621 Optional<Instruction *> V = targetInstCombineIntrinsic(*II); 1622 if (V.hasValue()) 1623 return V.getValue(); 1624 break; 1625 } 1626 } 1627 return visitCallBase(*II); 1628 } 1629 1630 // Fence instruction simplification 1631 Instruction *InstCombinerImpl::visitFenceInst(FenceInst &FI) { 1632 // Remove identical consecutive fences. 1633 Instruction *Next = FI.getNextNonDebugInstruction(); 1634 if (auto *NFI = dyn_cast<FenceInst>(Next)) 1635 if (FI.isIdenticalTo(NFI)) 1636 return eraseInstFromFunction(FI); 1637 return nullptr; 1638 } 1639 1640 // InvokeInst simplification 1641 Instruction *InstCombinerImpl::visitInvokeInst(InvokeInst &II) { 1642 return visitCallBase(II); 1643 } 1644 1645 // CallBrInst simplification 1646 Instruction *InstCombinerImpl::visitCallBrInst(CallBrInst &CBI) { 1647 return visitCallBase(CBI); 1648 } 1649 1650 /// If this cast does not affect the value passed through the varargs area, we 1651 /// can eliminate the use of the cast. 1652 static bool isSafeToEliminateVarargsCast(const CallBase &Call, 1653 const DataLayout &DL, 1654 const CastInst *const CI, 1655 const int ix) { 1656 if (!CI->isLosslessCast()) 1657 return false; 1658 1659 // If this is a GC intrinsic, avoid munging types. We need types for 1660 // statepoint reconstruction in SelectionDAG. 1661 // TODO: This is probably something which should be expanded to all 1662 // intrinsics since the entire point of intrinsics is that 1663 // they are understandable by the optimizer. 1664 if (isa<GCStatepointInst>(Call) || isa<GCRelocateInst>(Call) || 1665 isa<GCResultInst>(Call)) 1666 return false; 1667 1668 // The size of ByVal or InAlloca arguments is derived from the type, so we 1669 // can't change to a type with a different size. If the size were 1670 // passed explicitly we could avoid this check. 1671 if (!Call.isPassPointeeByValueArgument(ix)) 1672 return true; 1673 1674 Type* SrcTy = 1675 cast<PointerType>(CI->getOperand(0)->getType())->getElementType(); 1676 Type *DstTy = Call.isByValArgument(ix) 1677 ? Call.getParamByValType(ix) 1678 : cast<PointerType>(CI->getType())->getElementType(); 1679 if (!SrcTy->isSized() || !DstTy->isSized()) 1680 return false; 1681 if (DL.getTypeAllocSize(SrcTy) != DL.getTypeAllocSize(DstTy)) 1682 return false; 1683 return true; 1684 } 1685 1686 Instruction *InstCombinerImpl::tryOptimizeCall(CallInst *CI) { 1687 if (!CI->getCalledFunction()) return nullptr; 1688 1689 auto InstCombineRAUW = [this](Instruction *From, Value *With) { 1690 replaceInstUsesWith(*From, With); 1691 }; 1692 auto InstCombineErase = [this](Instruction *I) { 1693 eraseInstFromFunction(*I); 1694 }; 1695 LibCallSimplifier Simplifier(DL, &TLI, ORE, BFI, PSI, InstCombineRAUW, 1696 InstCombineErase); 1697 if (Value *With = Simplifier.optimizeCall(CI, Builder)) { 1698 ++NumSimplified; 1699 return CI->use_empty() ? CI : replaceInstUsesWith(*CI, With); 1700 } 1701 1702 return nullptr; 1703 } 1704 1705 static IntrinsicInst *findInitTrampolineFromAlloca(Value *TrampMem) { 1706 // Strip off at most one level of pointer casts, looking for an alloca. This 1707 // is good enough in practice and simpler than handling any number of casts. 1708 Value *Underlying = TrampMem->stripPointerCasts(); 1709 if (Underlying != TrampMem && 1710 (!Underlying->hasOneUse() || Underlying->user_back() != TrampMem)) 1711 return nullptr; 1712 if (!isa<AllocaInst>(Underlying)) 1713 return nullptr; 1714 1715 IntrinsicInst *InitTrampoline = nullptr; 1716 for (User *U : TrampMem->users()) { 1717 IntrinsicInst *II = dyn_cast<IntrinsicInst>(U); 1718 if (!II) 1719 return nullptr; 1720 if (II->getIntrinsicID() == Intrinsic::init_trampoline) { 1721 if (InitTrampoline) 1722 // More than one init_trampoline writes to this value. Give up. 1723 return nullptr; 1724 InitTrampoline = II; 1725 continue; 1726 } 1727 if (II->getIntrinsicID() == Intrinsic::adjust_trampoline) 1728 // Allow any number of calls to adjust.trampoline. 1729 continue; 1730 return nullptr; 1731 } 1732 1733 // No call to init.trampoline found. 1734 if (!InitTrampoline) 1735 return nullptr; 1736 1737 // Check that the alloca is being used in the expected way. 1738 if (InitTrampoline->getOperand(0) != TrampMem) 1739 return nullptr; 1740 1741 return InitTrampoline; 1742 } 1743 1744 static IntrinsicInst *findInitTrampolineFromBB(IntrinsicInst *AdjustTramp, 1745 Value *TrampMem) { 1746 // Visit all the previous instructions in the basic block, and try to find a 1747 // init.trampoline which has a direct path to the adjust.trampoline. 1748 for (BasicBlock::iterator I = AdjustTramp->getIterator(), 1749 E = AdjustTramp->getParent()->begin(); 1750 I != E;) { 1751 Instruction *Inst = &*--I; 1752 if (IntrinsicInst *II = dyn_cast<IntrinsicInst>(I)) 1753 if (II->getIntrinsicID() == Intrinsic::init_trampoline && 1754 II->getOperand(0) == TrampMem) 1755 return II; 1756 if (Inst->mayWriteToMemory()) 1757 return nullptr; 1758 } 1759 return nullptr; 1760 } 1761 1762 // Given a call to llvm.adjust.trampoline, find and return the corresponding 1763 // call to llvm.init.trampoline if the call to the trampoline can be optimized 1764 // to a direct call to a function. Otherwise return NULL. 1765 static IntrinsicInst *findInitTrampoline(Value *Callee) { 1766 Callee = Callee->stripPointerCasts(); 1767 IntrinsicInst *AdjustTramp = dyn_cast<IntrinsicInst>(Callee); 1768 if (!AdjustTramp || 1769 AdjustTramp->getIntrinsicID() != Intrinsic::adjust_trampoline) 1770 return nullptr; 1771 1772 Value *TrampMem = AdjustTramp->getOperand(0); 1773 1774 if (IntrinsicInst *IT = findInitTrampolineFromAlloca(TrampMem)) 1775 return IT; 1776 if (IntrinsicInst *IT = findInitTrampolineFromBB(AdjustTramp, TrampMem)) 1777 return IT; 1778 return nullptr; 1779 } 1780 1781 static void annotateAnyAllocSite(CallBase &Call, const TargetLibraryInfo *TLI) { 1782 unsigned NumArgs = Call.getNumArgOperands(); 1783 ConstantInt *Op0C = dyn_cast<ConstantInt>(Call.getOperand(0)); 1784 ConstantInt *Op1C = 1785 (NumArgs == 1) ? nullptr : dyn_cast<ConstantInt>(Call.getOperand(1)); 1786 // Bail out if the allocation size is zero (or an invalid alignment of zero 1787 // with aligned_alloc). 1788 if ((Op0C && Op0C->isNullValue()) || (Op1C && Op1C->isNullValue())) 1789 return; 1790 1791 if (isMallocLikeFn(&Call, TLI) && Op0C) { 1792 if (isOpNewLikeFn(&Call, TLI)) 1793 Call.addAttribute(AttributeList::ReturnIndex, 1794 Attribute::getWithDereferenceableBytes( 1795 Call.getContext(), Op0C->getZExtValue())); 1796 else 1797 Call.addAttribute(AttributeList::ReturnIndex, 1798 Attribute::getWithDereferenceableOrNullBytes( 1799 Call.getContext(), Op0C->getZExtValue())); 1800 } else if (isAlignedAllocLikeFn(&Call, TLI) && Op1C) { 1801 Call.addAttribute(AttributeList::ReturnIndex, 1802 Attribute::getWithDereferenceableOrNullBytes( 1803 Call.getContext(), Op1C->getZExtValue())); 1804 // Add alignment attribute if alignment is a power of two constant. 1805 if (Op0C && Op0C->getValue().ult(llvm::Value::MaximumAlignment)) { 1806 uint64_t AlignmentVal = Op0C->getZExtValue(); 1807 if (llvm::isPowerOf2_64(AlignmentVal)) 1808 Call.addAttribute(AttributeList::ReturnIndex, 1809 Attribute::getWithAlignment(Call.getContext(), 1810 Align(AlignmentVal))); 1811 } 1812 } else if (isReallocLikeFn(&Call, TLI) && Op1C) { 1813 Call.addAttribute(AttributeList::ReturnIndex, 1814 Attribute::getWithDereferenceableOrNullBytes( 1815 Call.getContext(), Op1C->getZExtValue())); 1816 } else if (isCallocLikeFn(&Call, TLI) && Op0C && Op1C) { 1817 bool Overflow; 1818 const APInt &N = Op0C->getValue(); 1819 APInt Size = N.umul_ov(Op1C->getValue(), Overflow); 1820 if (!Overflow) 1821 Call.addAttribute(AttributeList::ReturnIndex, 1822 Attribute::getWithDereferenceableOrNullBytes( 1823 Call.getContext(), Size.getZExtValue())); 1824 } else if (isStrdupLikeFn(&Call, TLI)) { 1825 uint64_t Len = GetStringLength(Call.getOperand(0)); 1826 if (Len) { 1827 // strdup 1828 if (NumArgs == 1) 1829 Call.addAttribute(AttributeList::ReturnIndex, 1830 Attribute::getWithDereferenceableOrNullBytes( 1831 Call.getContext(), Len)); 1832 // strndup 1833 else if (NumArgs == 2 && Op1C) 1834 Call.addAttribute( 1835 AttributeList::ReturnIndex, 1836 Attribute::getWithDereferenceableOrNullBytes( 1837 Call.getContext(), std::min(Len, Op1C->getZExtValue() + 1))); 1838 } 1839 } 1840 } 1841 1842 /// Improvements for call, callbr and invoke instructions. 1843 Instruction *InstCombinerImpl::visitCallBase(CallBase &Call) { 1844 if (isAllocationFn(&Call, &TLI)) 1845 annotateAnyAllocSite(Call, &TLI); 1846 1847 bool Changed = false; 1848 1849 // Mark any parameters that are known to be non-null with the nonnull 1850 // attribute. This is helpful for inlining calls to functions with null 1851 // checks on their arguments. 1852 SmallVector<unsigned, 4> ArgNos; 1853 unsigned ArgNo = 0; 1854 1855 for (Value *V : Call.args()) { 1856 if (V->getType()->isPointerTy() && 1857 !Call.paramHasAttr(ArgNo, Attribute::NonNull) && 1858 isKnownNonZero(V, DL, 0, &AC, &Call, &DT)) 1859 ArgNos.push_back(ArgNo); 1860 ArgNo++; 1861 } 1862 1863 assert(ArgNo == Call.arg_size() && "sanity check"); 1864 1865 if (!ArgNos.empty()) { 1866 AttributeList AS = Call.getAttributes(); 1867 LLVMContext &Ctx = Call.getContext(); 1868 AS = AS.addParamAttribute(Ctx, ArgNos, 1869 Attribute::get(Ctx, Attribute::NonNull)); 1870 Call.setAttributes(AS); 1871 Changed = true; 1872 } 1873 1874 // If the callee is a pointer to a function, attempt to move any casts to the 1875 // arguments of the call/callbr/invoke. 1876 Value *Callee = Call.getCalledOperand(); 1877 if (!isa<Function>(Callee) && transformConstExprCastCall(Call)) 1878 return nullptr; 1879 1880 if (Function *CalleeF = dyn_cast<Function>(Callee)) { 1881 // Remove the convergent attr on calls when the callee is not convergent. 1882 if (Call.isConvergent() && !CalleeF->isConvergent() && 1883 !CalleeF->isIntrinsic()) { 1884 LLVM_DEBUG(dbgs() << "Removing convergent attr from instr " << Call 1885 << "\n"); 1886 Call.setNotConvergent(); 1887 return &Call; 1888 } 1889 1890 // If the call and callee calling conventions don't match, this call must 1891 // be unreachable, as the call is undefined. 1892 if (CalleeF->getCallingConv() != Call.getCallingConv() && 1893 // Only do this for calls to a function with a body. A prototype may 1894 // not actually end up matching the implementation's calling conv for a 1895 // variety of reasons (e.g. it may be written in assembly). 1896 !CalleeF->isDeclaration()) { 1897 Instruction *OldCall = &Call; 1898 CreateNonTerminatorUnreachable(OldCall); 1899 // If OldCall does not return void then replaceAllUsesWith undef. 1900 // This allows ValueHandlers and custom metadata to adjust itself. 1901 if (!OldCall->getType()->isVoidTy()) 1902 replaceInstUsesWith(*OldCall, UndefValue::get(OldCall->getType())); 1903 if (isa<CallInst>(OldCall)) 1904 return eraseInstFromFunction(*OldCall); 1905 1906 // We cannot remove an invoke or a callbr, because it would change thexi 1907 // CFG, just change the callee to a null pointer. 1908 cast<CallBase>(OldCall)->setCalledFunction( 1909 CalleeF->getFunctionType(), 1910 Constant::getNullValue(CalleeF->getType())); 1911 return nullptr; 1912 } 1913 } 1914 1915 if ((isa<ConstantPointerNull>(Callee) && 1916 !NullPointerIsDefined(Call.getFunction())) || 1917 isa<UndefValue>(Callee)) { 1918 // If Call does not return void then replaceAllUsesWith undef. 1919 // This allows ValueHandlers and custom metadata to adjust itself. 1920 if (!Call.getType()->isVoidTy()) 1921 replaceInstUsesWith(Call, UndefValue::get(Call.getType())); 1922 1923 if (Call.isTerminator()) { 1924 // Can't remove an invoke or callbr because we cannot change the CFG. 1925 return nullptr; 1926 } 1927 1928 // This instruction is not reachable, just remove it. 1929 CreateNonTerminatorUnreachable(&Call); 1930 return eraseInstFromFunction(Call); 1931 } 1932 1933 if (IntrinsicInst *II = findInitTrampoline(Callee)) 1934 return transformCallThroughTrampoline(Call, *II); 1935 1936 PointerType *PTy = cast<PointerType>(Callee->getType()); 1937 FunctionType *FTy = cast<FunctionType>(PTy->getElementType()); 1938 if (FTy->isVarArg()) { 1939 int ix = FTy->getNumParams(); 1940 // See if we can optimize any arguments passed through the varargs area of 1941 // the call. 1942 for (auto I = Call.arg_begin() + FTy->getNumParams(), E = Call.arg_end(); 1943 I != E; ++I, ++ix) { 1944 CastInst *CI = dyn_cast<CastInst>(*I); 1945 if (CI && isSafeToEliminateVarargsCast(Call, DL, CI, ix)) { 1946 replaceUse(*I, CI->getOperand(0)); 1947 1948 // Update the byval type to match the argument type. 1949 if (Call.isByValArgument(ix)) { 1950 Call.removeParamAttr(ix, Attribute::ByVal); 1951 Call.addParamAttr( 1952 ix, Attribute::getWithByValType( 1953 Call.getContext(), 1954 CI->getOperand(0)->getType()->getPointerElementType())); 1955 } 1956 Changed = true; 1957 } 1958 } 1959 } 1960 1961 if (isa<InlineAsm>(Callee) && !Call.doesNotThrow()) { 1962 // Inline asm calls cannot throw - mark them 'nounwind'. 1963 Call.setDoesNotThrow(); 1964 Changed = true; 1965 } 1966 1967 // Try to optimize the call if possible, we require DataLayout for most of 1968 // this. None of these calls are seen as possibly dead so go ahead and 1969 // delete the instruction now. 1970 if (CallInst *CI = dyn_cast<CallInst>(&Call)) { 1971 Instruction *I = tryOptimizeCall(CI); 1972 // If we changed something return the result, etc. Otherwise let 1973 // the fallthrough check. 1974 if (I) return eraseInstFromFunction(*I); 1975 } 1976 1977 if (!Call.use_empty() && !Call.isMustTailCall()) 1978 if (Value *ReturnedArg = Call.getReturnedArgOperand()) { 1979 Type *CallTy = Call.getType(); 1980 Type *RetArgTy = ReturnedArg->getType(); 1981 if (RetArgTy->canLosslesslyBitCastTo(CallTy)) 1982 return replaceInstUsesWith( 1983 Call, Builder.CreateBitOrPointerCast(ReturnedArg, CallTy)); 1984 } 1985 1986 if (isAllocLikeFn(&Call, &TLI)) 1987 return visitAllocSite(Call); 1988 1989 return Changed ? &Call : nullptr; 1990 } 1991 1992 /// If the callee is a constexpr cast of a function, attempt to move the cast to 1993 /// the arguments of the call/callbr/invoke. 1994 bool InstCombinerImpl::transformConstExprCastCall(CallBase &Call) { 1995 auto *Callee = 1996 dyn_cast<Function>(Call.getCalledOperand()->stripPointerCasts()); 1997 if (!Callee) 1998 return false; 1999 2000 // If this is a call to a thunk function, don't remove the cast. Thunks are 2001 // used to transparently forward all incoming parameters and outgoing return 2002 // values, so it's important to leave the cast in place. 2003 if (Callee->hasFnAttribute("thunk")) 2004 return false; 2005 2006 // If this is a musttail call, the callee's prototype must match the caller's 2007 // prototype with the exception of pointee types. The code below doesn't 2008 // implement that, so we can't do this transform. 2009 // TODO: Do the transform if it only requires adding pointer casts. 2010 if (Call.isMustTailCall()) 2011 return false; 2012 2013 Instruction *Caller = &Call; 2014 const AttributeList &CallerPAL = Call.getAttributes(); 2015 2016 // Okay, this is a cast from a function to a different type. Unless doing so 2017 // would cause a type conversion of one of our arguments, change this call to 2018 // be a direct call with arguments casted to the appropriate types. 2019 FunctionType *FT = Callee->getFunctionType(); 2020 Type *OldRetTy = Caller->getType(); 2021 Type *NewRetTy = FT->getReturnType(); 2022 2023 // Check to see if we are changing the return type... 2024 if (OldRetTy != NewRetTy) { 2025 2026 if (NewRetTy->isStructTy()) 2027 return false; // TODO: Handle multiple return values. 2028 2029 if (!CastInst::isBitOrNoopPointerCastable(NewRetTy, OldRetTy, DL)) { 2030 if (Callee->isDeclaration()) 2031 return false; // Cannot transform this return value. 2032 2033 if (!Caller->use_empty() && 2034 // void -> non-void is handled specially 2035 !NewRetTy->isVoidTy()) 2036 return false; // Cannot transform this return value. 2037 } 2038 2039 if (!CallerPAL.isEmpty() && !Caller->use_empty()) { 2040 AttrBuilder RAttrs(CallerPAL, AttributeList::ReturnIndex); 2041 if (RAttrs.overlaps(AttributeFuncs::typeIncompatible(NewRetTy))) 2042 return false; // Attribute not compatible with transformed value. 2043 } 2044 2045 // If the callbase is an invoke/callbr instruction, and the return value is 2046 // used by a PHI node in a successor, we cannot change the return type of 2047 // the call because there is no place to put the cast instruction (without 2048 // breaking the critical edge). Bail out in this case. 2049 if (!Caller->use_empty()) { 2050 if (InvokeInst *II = dyn_cast<InvokeInst>(Caller)) 2051 for (User *U : II->users()) 2052 if (PHINode *PN = dyn_cast<PHINode>(U)) 2053 if (PN->getParent() == II->getNormalDest() || 2054 PN->getParent() == II->getUnwindDest()) 2055 return false; 2056 // FIXME: Be conservative for callbr to avoid a quadratic search. 2057 if (isa<CallBrInst>(Caller)) 2058 return false; 2059 } 2060 } 2061 2062 unsigned NumActualArgs = Call.arg_size(); 2063 unsigned NumCommonArgs = std::min(FT->getNumParams(), NumActualArgs); 2064 2065 // Prevent us turning: 2066 // declare void @takes_i32_inalloca(i32* inalloca) 2067 // call void bitcast (void (i32*)* @takes_i32_inalloca to void (i32)*)(i32 0) 2068 // 2069 // into: 2070 // call void @takes_i32_inalloca(i32* null) 2071 // 2072 // Similarly, avoid folding away bitcasts of byval calls. 2073 if (Callee->getAttributes().hasAttrSomewhere(Attribute::InAlloca) || 2074 Callee->getAttributes().hasAttrSomewhere(Attribute::Preallocated) || 2075 Callee->getAttributes().hasAttrSomewhere(Attribute::ByVal)) 2076 return false; 2077 2078 auto AI = Call.arg_begin(); 2079 for (unsigned i = 0, e = NumCommonArgs; i != e; ++i, ++AI) { 2080 Type *ParamTy = FT->getParamType(i); 2081 Type *ActTy = (*AI)->getType(); 2082 2083 if (!CastInst::isBitOrNoopPointerCastable(ActTy, ParamTy, DL)) 2084 return false; // Cannot transform this parameter value. 2085 2086 if (AttrBuilder(CallerPAL.getParamAttributes(i)) 2087 .overlaps(AttributeFuncs::typeIncompatible(ParamTy))) 2088 return false; // Attribute not compatible with transformed value. 2089 2090 if (Call.isInAllocaArgument(i)) 2091 return false; // Cannot transform to and from inalloca. 2092 2093 // If the parameter is passed as a byval argument, then we have to have a 2094 // sized type and the sized type has to have the same size as the old type. 2095 if (ParamTy != ActTy && CallerPAL.hasParamAttribute(i, Attribute::ByVal)) { 2096 PointerType *ParamPTy = dyn_cast<PointerType>(ParamTy); 2097 if (!ParamPTy || !ParamPTy->getElementType()->isSized()) 2098 return false; 2099 2100 Type *CurElTy = Call.getParamByValType(i); 2101 if (DL.getTypeAllocSize(CurElTy) != 2102 DL.getTypeAllocSize(ParamPTy->getElementType())) 2103 return false; 2104 } 2105 } 2106 2107 if (Callee->isDeclaration()) { 2108 // Do not delete arguments unless we have a function body. 2109 if (FT->getNumParams() < NumActualArgs && !FT->isVarArg()) 2110 return false; 2111 2112 // If the callee is just a declaration, don't change the varargsness of the 2113 // call. We don't want to introduce a varargs call where one doesn't 2114 // already exist. 2115 PointerType *APTy = cast<PointerType>(Call.getCalledOperand()->getType()); 2116 if (FT->isVarArg()!=cast<FunctionType>(APTy->getElementType())->isVarArg()) 2117 return false; 2118 2119 // If both the callee and the cast type are varargs, we still have to make 2120 // sure the number of fixed parameters are the same or we have the same 2121 // ABI issues as if we introduce a varargs call. 2122 if (FT->isVarArg() && 2123 cast<FunctionType>(APTy->getElementType())->isVarArg() && 2124 FT->getNumParams() != 2125 cast<FunctionType>(APTy->getElementType())->getNumParams()) 2126 return false; 2127 } 2128 2129 if (FT->getNumParams() < NumActualArgs && FT->isVarArg() && 2130 !CallerPAL.isEmpty()) { 2131 // In this case we have more arguments than the new function type, but we 2132 // won't be dropping them. Check that these extra arguments have attributes 2133 // that are compatible with being a vararg call argument. 2134 unsigned SRetIdx; 2135 if (CallerPAL.hasAttrSomewhere(Attribute::StructRet, &SRetIdx) && 2136 SRetIdx > FT->getNumParams()) 2137 return false; 2138 } 2139 2140 // Okay, we decided that this is a safe thing to do: go ahead and start 2141 // inserting cast instructions as necessary. 2142 SmallVector<Value *, 8> Args; 2143 SmallVector<AttributeSet, 8> ArgAttrs; 2144 Args.reserve(NumActualArgs); 2145 ArgAttrs.reserve(NumActualArgs); 2146 2147 // Get any return attributes. 2148 AttrBuilder RAttrs(CallerPAL, AttributeList::ReturnIndex); 2149 2150 // If the return value is not being used, the type may not be compatible 2151 // with the existing attributes. Wipe out any problematic attributes. 2152 RAttrs.remove(AttributeFuncs::typeIncompatible(NewRetTy)); 2153 2154 LLVMContext &Ctx = Call.getContext(); 2155 AI = Call.arg_begin(); 2156 for (unsigned i = 0; i != NumCommonArgs; ++i, ++AI) { 2157 Type *ParamTy = FT->getParamType(i); 2158 2159 Value *NewArg = *AI; 2160 if ((*AI)->getType() != ParamTy) 2161 NewArg = Builder.CreateBitOrPointerCast(*AI, ParamTy); 2162 Args.push_back(NewArg); 2163 2164 // Add any parameter attributes. 2165 if (CallerPAL.hasParamAttribute(i, Attribute::ByVal)) { 2166 AttrBuilder AB(CallerPAL.getParamAttributes(i)); 2167 AB.addByValAttr(NewArg->getType()->getPointerElementType()); 2168 ArgAttrs.push_back(AttributeSet::get(Ctx, AB)); 2169 } else 2170 ArgAttrs.push_back(CallerPAL.getParamAttributes(i)); 2171 } 2172 2173 // If the function takes more arguments than the call was taking, add them 2174 // now. 2175 for (unsigned i = NumCommonArgs; i != FT->getNumParams(); ++i) { 2176 Args.push_back(Constant::getNullValue(FT->getParamType(i))); 2177 ArgAttrs.push_back(AttributeSet()); 2178 } 2179 2180 // If we are removing arguments to the function, emit an obnoxious warning. 2181 if (FT->getNumParams() < NumActualArgs) { 2182 // TODO: if (!FT->isVarArg()) this call may be unreachable. PR14722 2183 if (FT->isVarArg()) { 2184 // Add all of the arguments in their promoted form to the arg list. 2185 for (unsigned i = FT->getNumParams(); i != NumActualArgs; ++i, ++AI) { 2186 Type *PTy = getPromotedType((*AI)->getType()); 2187 Value *NewArg = *AI; 2188 if (PTy != (*AI)->getType()) { 2189 // Must promote to pass through va_arg area! 2190 Instruction::CastOps opcode = 2191 CastInst::getCastOpcode(*AI, false, PTy, false); 2192 NewArg = Builder.CreateCast(opcode, *AI, PTy); 2193 } 2194 Args.push_back(NewArg); 2195 2196 // Add any parameter attributes. 2197 ArgAttrs.push_back(CallerPAL.getParamAttributes(i)); 2198 } 2199 } 2200 } 2201 2202 AttributeSet FnAttrs = CallerPAL.getFnAttributes(); 2203 2204 if (NewRetTy->isVoidTy()) 2205 Caller->setName(""); // Void type should not have a name. 2206 2207 assert((ArgAttrs.size() == FT->getNumParams() || FT->isVarArg()) && 2208 "missing argument attributes"); 2209 AttributeList NewCallerPAL = AttributeList::get( 2210 Ctx, FnAttrs, AttributeSet::get(Ctx, RAttrs), ArgAttrs); 2211 2212 SmallVector<OperandBundleDef, 1> OpBundles; 2213 Call.getOperandBundlesAsDefs(OpBundles); 2214 2215 CallBase *NewCall; 2216 if (InvokeInst *II = dyn_cast<InvokeInst>(Caller)) { 2217 NewCall = Builder.CreateInvoke(Callee, II->getNormalDest(), 2218 II->getUnwindDest(), Args, OpBundles); 2219 } else if (CallBrInst *CBI = dyn_cast<CallBrInst>(Caller)) { 2220 NewCall = Builder.CreateCallBr(Callee, CBI->getDefaultDest(), 2221 CBI->getIndirectDests(), Args, OpBundles); 2222 } else { 2223 NewCall = Builder.CreateCall(Callee, Args, OpBundles); 2224 cast<CallInst>(NewCall)->setTailCallKind( 2225 cast<CallInst>(Caller)->getTailCallKind()); 2226 } 2227 NewCall->takeName(Caller); 2228 NewCall->setCallingConv(Call.getCallingConv()); 2229 NewCall->setAttributes(NewCallerPAL); 2230 2231 // Preserve prof metadata if any. 2232 NewCall->copyMetadata(*Caller, {LLVMContext::MD_prof}); 2233 2234 // Insert a cast of the return type as necessary. 2235 Instruction *NC = NewCall; 2236 Value *NV = NC; 2237 if (OldRetTy != NV->getType() && !Caller->use_empty()) { 2238 if (!NV->getType()->isVoidTy()) { 2239 NV = NC = CastInst::CreateBitOrPointerCast(NC, OldRetTy); 2240 NC->setDebugLoc(Caller->getDebugLoc()); 2241 2242 // If this is an invoke/callbr instruction, we should insert it after the 2243 // first non-phi instruction in the normal successor block. 2244 if (InvokeInst *II = dyn_cast<InvokeInst>(Caller)) { 2245 BasicBlock::iterator I = II->getNormalDest()->getFirstInsertionPt(); 2246 InsertNewInstBefore(NC, *I); 2247 } else if (CallBrInst *CBI = dyn_cast<CallBrInst>(Caller)) { 2248 BasicBlock::iterator I = CBI->getDefaultDest()->getFirstInsertionPt(); 2249 InsertNewInstBefore(NC, *I); 2250 } else { 2251 // Otherwise, it's a call, just insert cast right after the call. 2252 InsertNewInstBefore(NC, *Caller); 2253 } 2254 Worklist.pushUsersToWorkList(*Caller); 2255 } else { 2256 NV = UndefValue::get(Caller->getType()); 2257 } 2258 } 2259 2260 if (!Caller->use_empty()) 2261 replaceInstUsesWith(*Caller, NV); 2262 else if (Caller->hasValueHandle()) { 2263 if (OldRetTy == NV->getType()) 2264 ValueHandleBase::ValueIsRAUWd(Caller, NV); 2265 else 2266 // We cannot call ValueIsRAUWd with a different type, and the 2267 // actual tracked value will disappear. 2268 ValueHandleBase::ValueIsDeleted(Caller); 2269 } 2270 2271 eraseInstFromFunction(*Caller); 2272 return true; 2273 } 2274 2275 /// Turn a call to a function created by init_trampoline / adjust_trampoline 2276 /// intrinsic pair into a direct call to the underlying function. 2277 Instruction * 2278 InstCombinerImpl::transformCallThroughTrampoline(CallBase &Call, 2279 IntrinsicInst &Tramp) { 2280 Value *Callee = Call.getCalledOperand(); 2281 Type *CalleeTy = Callee->getType(); 2282 FunctionType *FTy = Call.getFunctionType(); 2283 AttributeList Attrs = Call.getAttributes(); 2284 2285 // If the call already has the 'nest' attribute somewhere then give up - 2286 // otherwise 'nest' would occur twice after splicing in the chain. 2287 if (Attrs.hasAttrSomewhere(Attribute::Nest)) 2288 return nullptr; 2289 2290 Function *NestF = cast<Function>(Tramp.getArgOperand(1)->stripPointerCasts()); 2291 FunctionType *NestFTy = NestF->getFunctionType(); 2292 2293 AttributeList NestAttrs = NestF->getAttributes(); 2294 if (!NestAttrs.isEmpty()) { 2295 unsigned NestArgNo = 0; 2296 Type *NestTy = nullptr; 2297 AttributeSet NestAttr; 2298 2299 // Look for a parameter marked with the 'nest' attribute. 2300 for (FunctionType::param_iterator I = NestFTy->param_begin(), 2301 E = NestFTy->param_end(); 2302 I != E; ++NestArgNo, ++I) { 2303 AttributeSet AS = NestAttrs.getParamAttributes(NestArgNo); 2304 if (AS.hasAttribute(Attribute::Nest)) { 2305 // Record the parameter type and any other attributes. 2306 NestTy = *I; 2307 NestAttr = AS; 2308 break; 2309 } 2310 } 2311 2312 if (NestTy) { 2313 std::vector<Value*> NewArgs; 2314 std::vector<AttributeSet> NewArgAttrs; 2315 NewArgs.reserve(Call.arg_size() + 1); 2316 NewArgAttrs.reserve(Call.arg_size()); 2317 2318 // Insert the nest argument into the call argument list, which may 2319 // mean appending it. Likewise for attributes. 2320 2321 { 2322 unsigned ArgNo = 0; 2323 auto I = Call.arg_begin(), E = Call.arg_end(); 2324 do { 2325 if (ArgNo == NestArgNo) { 2326 // Add the chain argument and attributes. 2327 Value *NestVal = Tramp.getArgOperand(2); 2328 if (NestVal->getType() != NestTy) 2329 NestVal = Builder.CreateBitCast(NestVal, NestTy, "nest"); 2330 NewArgs.push_back(NestVal); 2331 NewArgAttrs.push_back(NestAttr); 2332 } 2333 2334 if (I == E) 2335 break; 2336 2337 // Add the original argument and attributes. 2338 NewArgs.push_back(*I); 2339 NewArgAttrs.push_back(Attrs.getParamAttributes(ArgNo)); 2340 2341 ++ArgNo; 2342 ++I; 2343 } while (true); 2344 } 2345 2346 // The trampoline may have been bitcast to a bogus type (FTy). 2347 // Handle this by synthesizing a new function type, equal to FTy 2348 // with the chain parameter inserted. 2349 2350 std::vector<Type*> NewTypes; 2351 NewTypes.reserve(FTy->getNumParams()+1); 2352 2353 // Insert the chain's type into the list of parameter types, which may 2354 // mean appending it. 2355 { 2356 unsigned ArgNo = 0; 2357 FunctionType::param_iterator I = FTy->param_begin(), 2358 E = FTy->param_end(); 2359 2360 do { 2361 if (ArgNo == NestArgNo) 2362 // Add the chain's type. 2363 NewTypes.push_back(NestTy); 2364 2365 if (I == E) 2366 break; 2367 2368 // Add the original type. 2369 NewTypes.push_back(*I); 2370 2371 ++ArgNo; 2372 ++I; 2373 } while (true); 2374 } 2375 2376 // Replace the trampoline call with a direct call. Let the generic 2377 // code sort out any function type mismatches. 2378 FunctionType *NewFTy = FunctionType::get(FTy->getReturnType(), NewTypes, 2379 FTy->isVarArg()); 2380 Constant *NewCallee = 2381 NestF->getType() == PointerType::getUnqual(NewFTy) ? 2382 NestF : ConstantExpr::getBitCast(NestF, 2383 PointerType::getUnqual(NewFTy)); 2384 AttributeList NewPAL = 2385 AttributeList::get(FTy->getContext(), Attrs.getFnAttributes(), 2386 Attrs.getRetAttributes(), NewArgAttrs); 2387 2388 SmallVector<OperandBundleDef, 1> OpBundles; 2389 Call.getOperandBundlesAsDefs(OpBundles); 2390 2391 Instruction *NewCaller; 2392 if (InvokeInst *II = dyn_cast<InvokeInst>(&Call)) { 2393 NewCaller = InvokeInst::Create(NewFTy, NewCallee, 2394 II->getNormalDest(), II->getUnwindDest(), 2395 NewArgs, OpBundles); 2396 cast<InvokeInst>(NewCaller)->setCallingConv(II->getCallingConv()); 2397 cast<InvokeInst>(NewCaller)->setAttributes(NewPAL); 2398 } else if (CallBrInst *CBI = dyn_cast<CallBrInst>(&Call)) { 2399 NewCaller = 2400 CallBrInst::Create(NewFTy, NewCallee, CBI->getDefaultDest(), 2401 CBI->getIndirectDests(), NewArgs, OpBundles); 2402 cast<CallBrInst>(NewCaller)->setCallingConv(CBI->getCallingConv()); 2403 cast<CallBrInst>(NewCaller)->setAttributes(NewPAL); 2404 } else { 2405 NewCaller = CallInst::Create(NewFTy, NewCallee, NewArgs, OpBundles); 2406 cast<CallInst>(NewCaller)->setTailCallKind( 2407 cast<CallInst>(Call).getTailCallKind()); 2408 cast<CallInst>(NewCaller)->setCallingConv( 2409 cast<CallInst>(Call).getCallingConv()); 2410 cast<CallInst>(NewCaller)->setAttributes(NewPAL); 2411 } 2412 NewCaller->setDebugLoc(Call.getDebugLoc()); 2413 2414 return NewCaller; 2415 } 2416 } 2417 2418 // Replace the trampoline call with a direct call. Since there is no 'nest' 2419 // parameter, there is no need to adjust the argument list. Let the generic 2420 // code sort out any function type mismatches. 2421 Constant *NewCallee = ConstantExpr::getBitCast(NestF, CalleeTy); 2422 Call.setCalledFunction(FTy, NewCallee); 2423 return &Call; 2424 } 2425