1 //===-- AArch6464FastISel.cpp - AArch64 FastISel implementation -----------===// 2 // 3 // The LLVM Compiler Infrastructure 4 // 5 // This file is distributed under the University of Illinois Open Source 6 // License. See LICENSE.TXT for details. 7 // 8 //===----------------------------------------------------------------------===// 9 // 10 // This file defines the AArch64-specific support for the FastISel class. Some 11 // of the target-specific code is generated by tablegen in the file 12 // AArch64GenFastISel.inc, which is #included here. 13 // 14 //===----------------------------------------------------------------------===// 15 16 #include "AArch64.h" 17 #include "AArch64Subtarget.h" 18 #include "AArch64TargetMachine.h" 19 #include "MCTargetDesc/AArch64AddressingModes.h" 20 #include "llvm/Analysis/BranchProbabilityInfo.h" 21 #include "llvm/CodeGen/CallingConvLower.h" 22 #include "llvm/CodeGen/FastISel.h" 23 #include "llvm/CodeGen/FunctionLoweringInfo.h" 24 #include "llvm/CodeGen/MachineConstantPool.h" 25 #include "llvm/CodeGen/MachineFrameInfo.h" 26 #include "llvm/CodeGen/MachineInstrBuilder.h" 27 #include "llvm/CodeGen/MachineRegisterInfo.h" 28 #include "llvm/IR/CallingConv.h" 29 #include "llvm/IR/DataLayout.h" 30 #include "llvm/IR/DerivedTypes.h" 31 #include "llvm/IR/Function.h" 32 #include "llvm/IR/GetElementPtrTypeIterator.h" 33 #include "llvm/IR/GlobalAlias.h" 34 #include "llvm/IR/GlobalVariable.h" 35 #include "llvm/IR/Instructions.h" 36 #include "llvm/IR/IntrinsicInst.h" 37 #include "llvm/IR/Operator.h" 38 #include "llvm/Support/CommandLine.h" 39 using namespace llvm; 40 41 namespace { 42 43 class AArch64FastISel final : public FastISel { 44 class Address { 45 public: 46 typedef enum { 47 RegBase, 48 FrameIndexBase 49 } BaseKind; 50 51 private: 52 BaseKind Kind; 53 AArch64_AM::ShiftExtendType ExtType; 54 union { 55 unsigned Reg; 56 int FI; 57 } Base; 58 unsigned OffsetReg; 59 unsigned Shift; 60 int64_t Offset; 61 const GlobalValue *GV; 62 63 public: 64 Address() : Kind(RegBase), ExtType(AArch64_AM::InvalidShiftExtend), 65 OffsetReg(0), Shift(0), Offset(0), GV(nullptr) { Base.Reg = 0; } 66 void setKind(BaseKind K) { Kind = K; } 67 BaseKind getKind() const { return Kind; } 68 void setExtendType(AArch64_AM::ShiftExtendType E) { ExtType = E; } 69 AArch64_AM::ShiftExtendType getExtendType() const { return ExtType; } 70 bool isRegBase() const { return Kind == RegBase; } 71 bool isFIBase() const { return Kind == FrameIndexBase; } 72 void setReg(unsigned Reg) { 73 assert(isRegBase() && "Invalid base register access!"); 74 Base.Reg = Reg; 75 } 76 unsigned getReg() const { 77 assert(isRegBase() && "Invalid base register access!"); 78 return Base.Reg; 79 } 80 void setOffsetReg(unsigned Reg) { 81 assert(isRegBase() && "Invalid offset register access!"); 82 OffsetReg = Reg; 83 } 84 unsigned getOffsetReg() const { 85 assert(isRegBase() && "Invalid offset register access!"); 86 return OffsetReg; 87 } 88 void setFI(unsigned FI) { 89 assert(isFIBase() && "Invalid base frame index access!"); 90 Base.FI = FI; 91 } 92 unsigned getFI() const { 93 assert(isFIBase() && "Invalid base frame index access!"); 94 return Base.FI; 95 } 96 void setOffset(int64_t O) { Offset = O; } 97 int64_t getOffset() { return Offset; } 98 void setShift(unsigned S) { Shift = S; } 99 unsigned getShift() { return Shift; } 100 101 void setGlobalValue(const GlobalValue *G) { GV = G; } 102 const GlobalValue *getGlobalValue() { return GV; } 103 }; 104 105 /// Subtarget - Keep a pointer to the AArch64Subtarget around so that we can 106 /// make the right decision when generating code for different targets. 107 const AArch64Subtarget *Subtarget; 108 LLVMContext *Context; 109 110 bool fastLowerArguments() override; 111 bool fastLowerCall(CallLoweringInfo &CLI) override; 112 bool fastLowerIntrinsicCall(const IntrinsicInst *II) override; 113 114 private: 115 // Selection routines. 116 bool selectAddSub(const Instruction *I); 117 bool selectLogicalOp(const Instruction *I); 118 bool selectLoad(const Instruction *I); 119 bool selectStore(const Instruction *I); 120 bool selectBranch(const Instruction *I); 121 bool selectIndirectBr(const Instruction *I); 122 bool selectCmp(const Instruction *I); 123 bool selectSelect(const Instruction *I); 124 bool selectFPExt(const Instruction *I); 125 bool selectFPTrunc(const Instruction *I); 126 bool selectFPToInt(const Instruction *I, bool Signed); 127 bool selectIntToFP(const Instruction *I, bool Signed); 128 bool selectRem(const Instruction *I, unsigned ISDOpcode); 129 bool selectRet(const Instruction *I); 130 bool selectTrunc(const Instruction *I); 131 bool selectIntExt(const Instruction *I); 132 bool selectMul(const Instruction *I); 133 bool selectShift(const Instruction *I); 134 bool selectBitCast(const Instruction *I); 135 bool selectFRem(const Instruction *I); 136 bool selectSDiv(const Instruction *I); 137 138 // Utility helper routines. 139 bool isTypeLegal(Type *Ty, MVT &VT); 140 bool isTypeSupported(Type *Ty, MVT &VT, bool IsVectorAllowed = false); 141 bool isValueAvailable(const Value *V) const; 142 bool computeAddress(const Value *Obj, Address &Addr, Type *Ty = nullptr); 143 bool computeCallAddress(const Value *V, Address &Addr); 144 bool simplifyAddress(Address &Addr, MVT VT); 145 void addLoadStoreOperands(Address &Addr, const MachineInstrBuilder &MIB, 146 unsigned Flags, unsigned ScaleFactor, 147 MachineMemOperand *MMO); 148 bool isMemCpySmall(uint64_t Len, unsigned Alignment); 149 bool tryEmitSmallMemCpy(Address Dest, Address Src, uint64_t Len, 150 unsigned Alignment); 151 bool foldXALUIntrinsic(AArch64CC::CondCode &CC, const Instruction *I, 152 const Value *Cond); 153 154 // Emit helper routines. 155 unsigned emitAddSub(bool UseAdd, MVT RetVT, const Value *LHS, 156 const Value *RHS, bool SetFlags = false, 157 bool WantResult = true, bool IsZExt = false); 158 unsigned emitAddSub_rr(bool UseAdd, MVT RetVT, unsigned LHSReg, 159 bool LHSIsKill, unsigned RHSReg, bool RHSIsKill, 160 bool SetFlags = false, bool WantResult = true); 161 unsigned emitAddSub_ri(bool UseAdd, MVT RetVT, unsigned LHSReg, 162 bool LHSIsKill, uint64_t Imm, bool SetFlags = false, 163 bool WantResult = true); 164 unsigned emitAddSub_rs(bool UseAdd, MVT RetVT, unsigned LHSReg, 165 bool LHSIsKill, unsigned RHSReg, bool RHSIsKill, 166 AArch64_AM::ShiftExtendType ShiftType, 167 uint64_t ShiftImm, bool SetFlags = false, 168 bool WantResult = true); 169 unsigned emitAddSub_rx(bool UseAdd, MVT RetVT, unsigned LHSReg, 170 bool LHSIsKill, unsigned RHSReg, bool RHSIsKill, 171 AArch64_AM::ShiftExtendType ExtType, 172 uint64_t ShiftImm, bool SetFlags = false, 173 bool WantResult = true); 174 175 // Emit functions. 176 bool emitCompareAndBranch(const BranchInst *BI); 177 bool emitCmp(const Value *LHS, const Value *RHS, bool IsZExt); 178 bool emitICmp(MVT RetVT, const Value *LHS, const Value *RHS, bool IsZExt); 179 bool emitICmp_ri(MVT RetVT, unsigned LHSReg, bool LHSIsKill, uint64_t Imm); 180 bool emitFCmp(MVT RetVT, const Value *LHS, const Value *RHS); 181 bool emitLoad(MVT VT, unsigned &ResultReg, Address Addr, bool WantZExt = true, 182 MachineMemOperand *MMO = nullptr); 183 bool emitStore(MVT VT, unsigned SrcReg, Address Addr, 184 MachineMemOperand *MMO = nullptr); 185 unsigned emitIntExt(MVT SrcVT, unsigned SrcReg, MVT DestVT, bool isZExt); 186 unsigned emiti1Ext(unsigned SrcReg, MVT DestVT, bool isZExt); 187 unsigned emitAdd(MVT RetVT, const Value *LHS, const Value *RHS, 188 bool SetFlags = false, bool WantResult = true, 189 bool IsZExt = false); 190 unsigned emitSub(MVT RetVT, const Value *LHS, const Value *RHS, 191 bool SetFlags = false, bool WantResult = true, 192 bool IsZExt = false); 193 unsigned emitSubs_rr(MVT RetVT, unsigned LHSReg, bool LHSIsKill, 194 unsigned RHSReg, bool RHSIsKill, bool WantResult = true); 195 unsigned emitSubs_rs(MVT RetVT, unsigned LHSReg, bool LHSIsKill, 196 unsigned RHSReg, bool RHSIsKill, 197 AArch64_AM::ShiftExtendType ShiftType, uint64_t ShiftImm, 198 bool WantResult = true); 199 unsigned emitLogicalOp(unsigned ISDOpc, MVT RetVT, const Value *LHS, 200 const Value *RHS); 201 unsigned emitLogicalOp_ri(unsigned ISDOpc, MVT RetVT, unsigned LHSReg, 202 bool LHSIsKill, uint64_t Imm); 203 unsigned emitLogicalOp_rs(unsigned ISDOpc, MVT RetVT, unsigned LHSReg, 204 bool LHSIsKill, unsigned RHSReg, bool RHSIsKill, 205 uint64_t ShiftImm); 206 unsigned emitAnd_ri(MVT RetVT, unsigned LHSReg, bool LHSIsKill, uint64_t Imm); 207 unsigned emitMul_rr(MVT RetVT, unsigned Op0, bool Op0IsKill, 208 unsigned Op1, bool Op1IsKill); 209 unsigned emitSMULL_rr(MVT RetVT, unsigned Op0, bool Op0IsKill, 210 unsigned Op1, bool Op1IsKill); 211 unsigned emitUMULL_rr(MVT RetVT, unsigned Op0, bool Op0IsKill, 212 unsigned Op1, bool Op1IsKill); 213 unsigned emitLSL_rr(MVT RetVT, unsigned Op0Reg, bool Op0IsKill, 214 unsigned Op1Reg, bool Op1IsKill); 215 unsigned emitLSL_ri(MVT RetVT, MVT SrcVT, unsigned Op0Reg, bool Op0IsKill, 216 uint64_t Imm, bool IsZExt = true); 217 unsigned emitLSR_rr(MVT RetVT, unsigned Op0Reg, bool Op0IsKill, 218 unsigned Op1Reg, bool Op1IsKill); 219 unsigned emitLSR_ri(MVT RetVT, MVT SrcVT, unsigned Op0Reg, bool Op0IsKill, 220 uint64_t Imm, bool IsZExt = true); 221 unsigned emitASR_rr(MVT RetVT, unsigned Op0Reg, bool Op0IsKill, 222 unsigned Op1Reg, bool Op1IsKill); 223 unsigned emitASR_ri(MVT RetVT, MVT SrcVT, unsigned Op0Reg, bool Op0IsKill, 224 uint64_t Imm, bool IsZExt = false); 225 226 unsigned materializeInt(const ConstantInt *CI, MVT VT); 227 unsigned materializeFP(const ConstantFP *CFP, MVT VT); 228 unsigned materializeGV(const GlobalValue *GV); 229 230 // Call handling routines. 231 private: 232 CCAssignFn *CCAssignFnForCall(CallingConv::ID CC) const; 233 bool processCallArgs(CallLoweringInfo &CLI, SmallVectorImpl<MVT> &ArgVTs, 234 unsigned &NumBytes); 235 bool finishCall(CallLoweringInfo &CLI, MVT RetVT, unsigned NumBytes); 236 237 public: 238 // Backend specific FastISel code. 239 unsigned fastMaterializeAlloca(const AllocaInst *AI) override; 240 unsigned fastMaterializeConstant(const Constant *C) override; 241 unsigned fastMaterializeFloatZero(const ConstantFP* CF) override; 242 243 explicit AArch64FastISel(FunctionLoweringInfo &FuncInfo, 244 const TargetLibraryInfo *LibInfo) 245 : FastISel(FuncInfo, LibInfo, /*SkipTargetIndependentISel=*/true) { 246 Subtarget = &TM.getSubtarget<AArch64Subtarget>(); 247 Context = &FuncInfo.Fn->getContext(); 248 } 249 250 bool fastSelectInstruction(const Instruction *I) override; 251 252 #include "AArch64GenFastISel.inc" 253 }; 254 255 } // end anonymous namespace 256 257 #include "AArch64GenCallingConv.inc" 258 259 /// \brief Check if the sign-/zero-extend will be a noop. 260 static bool isIntExtFree(const Instruction *I) { 261 assert((isa<ZExtInst>(I) || isa<SExtInst>(I)) && 262 "Unexpected integer extend instruction."); 263 bool IsZExt = isa<ZExtInst>(I); 264 265 if (const auto *LI = dyn_cast<LoadInst>(I->getOperand(0))) 266 if (LI->hasOneUse()) 267 return true; 268 269 if (const auto *Arg = dyn_cast<Argument>(I->getOperand(0))) 270 if ((IsZExt && Arg->hasZExtAttr()) || (!IsZExt && Arg->hasSExtAttr())) 271 return true; 272 273 return false; 274 } 275 276 /// \brief Determine the implicit scale factor that is applied by a memory 277 /// operation for a given value type. 278 static unsigned getImplicitScaleFactor(MVT VT) { 279 switch (VT.SimpleTy) { 280 default: 281 return 0; // invalid 282 case MVT::i1: // fall-through 283 case MVT::i8: 284 return 1; 285 case MVT::i16: 286 return 2; 287 case MVT::i32: // fall-through 288 case MVT::f32: 289 return 4; 290 case MVT::i64: // fall-through 291 case MVT::f64: 292 return 8; 293 } 294 } 295 296 CCAssignFn *AArch64FastISel::CCAssignFnForCall(CallingConv::ID CC) const { 297 if (CC == CallingConv::WebKit_JS) 298 return CC_AArch64_WebKit_JS; 299 return Subtarget->isTargetDarwin() ? CC_AArch64_DarwinPCS : CC_AArch64_AAPCS; 300 } 301 302 unsigned AArch64FastISel::fastMaterializeAlloca(const AllocaInst *AI) { 303 assert(TLI.getValueType(AI->getType(), true) == MVT::i64 && 304 "Alloca should always return a pointer."); 305 306 // Don't handle dynamic allocas. 307 if (!FuncInfo.StaticAllocaMap.count(AI)) 308 return 0; 309 310 DenseMap<const AllocaInst *, int>::iterator SI = 311 FuncInfo.StaticAllocaMap.find(AI); 312 313 if (SI != FuncInfo.StaticAllocaMap.end()) { 314 unsigned ResultReg = createResultReg(&AArch64::GPR64spRegClass); 315 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, TII.get(AArch64::ADDXri), 316 ResultReg) 317 .addFrameIndex(SI->second) 318 .addImm(0) 319 .addImm(0); 320 return ResultReg; 321 } 322 323 return 0; 324 } 325 326 unsigned AArch64FastISel::materializeInt(const ConstantInt *CI, MVT VT) { 327 if (VT > MVT::i64) 328 return 0; 329 330 if (!CI->isZero()) 331 return fastEmit_i(VT, VT, ISD::Constant, CI->getZExtValue()); 332 333 // Create a copy from the zero register to materialize a "0" value. 334 const TargetRegisterClass *RC = (VT == MVT::i64) ? &AArch64::GPR64RegClass 335 : &AArch64::GPR32RegClass; 336 unsigned ZeroReg = (VT == MVT::i64) ? AArch64::XZR : AArch64::WZR; 337 unsigned ResultReg = createResultReg(RC); 338 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, TII.get(TargetOpcode::COPY), 339 ResultReg).addReg(ZeroReg, getKillRegState(true)); 340 return ResultReg; 341 } 342 343 unsigned AArch64FastISel::materializeFP(const ConstantFP *CFP, MVT VT) { 344 // Positive zero (+0.0) has to be materialized with a fmov from the zero 345 // register, because the immediate version of fmov cannot encode zero. 346 if (CFP->isNullValue()) 347 return fastMaterializeFloatZero(CFP); 348 349 if (VT != MVT::f32 && VT != MVT::f64) 350 return 0; 351 352 const APFloat Val = CFP->getValueAPF(); 353 bool Is64Bit = (VT == MVT::f64); 354 // This checks to see if we can use FMOV instructions to materialize 355 // a constant, otherwise we have to materialize via the constant pool. 356 if (TLI.isFPImmLegal(Val, VT)) { 357 int Imm = 358 Is64Bit ? AArch64_AM::getFP64Imm(Val) : AArch64_AM::getFP32Imm(Val); 359 assert((Imm != -1) && "Cannot encode floating-point constant."); 360 unsigned Opc = Is64Bit ? AArch64::FMOVDi : AArch64::FMOVSi; 361 return fastEmitInst_i(Opc, TLI.getRegClassFor(VT), Imm); 362 } 363 364 // Materialize via constant pool. MachineConstantPool wants an explicit 365 // alignment. 366 unsigned Align = DL.getPrefTypeAlignment(CFP->getType()); 367 if (Align == 0) 368 Align = DL.getTypeAllocSize(CFP->getType()); 369 370 unsigned CPI = MCP.getConstantPoolIndex(cast<Constant>(CFP), Align); 371 unsigned ADRPReg = createResultReg(&AArch64::GPR64commonRegClass); 372 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, TII.get(AArch64::ADRP), 373 ADRPReg).addConstantPoolIndex(CPI, 0, AArch64II::MO_PAGE); 374 375 unsigned Opc = Is64Bit ? AArch64::LDRDui : AArch64::LDRSui; 376 unsigned ResultReg = createResultReg(TLI.getRegClassFor(VT)); 377 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, TII.get(Opc), ResultReg) 378 .addReg(ADRPReg) 379 .addConstantPoolIndex(CPI, 0, AArch64II::MO_PAGEOFF | AArch64II::MO_NC); 380 return ResultReg; 381 } 382 383 unsigned AArch64FastISel::materializeGV(const GlobalValue *GV) { 384 // We can't handle thread-local variables quickly yet. 385 if (GV->isThreadLocal()) 386 return 0; 387 388 // MachO still uses GOT for large code-model accesses, but ELF requires 389 // movz/movk sequences, which FastISel doesn't handle yet. 390 if (TM.getCodeModel() != CodeModel::Small && !Subtarget->isTargetMachO()) 391 return 0; 392 393 unsigned char OpFlags = Subtarget->ClassifyGlobalReference(GV, TM); 394 395 EVT DestEVT = TLI.getValueType(GV->getType(), true); 396 if (!DestEVT.isSimple()) 397 return 0; 398 399 unsigned ADRPReg = createResultReg(&AArch64::GPR64commonRegClass); 400 unsigned ResultReg; 401 402 if (OpFlags & AArch64II::MO_GOT) { 403 // ADRP + LDRX 404 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, TII.get(AArch64::ADRP), 405 ADRPReg) 406 .addGlobalAddress(GV, 0, AArch64II::MO_GOT | AArch64II::MO_PAGE); 407 408 ResultReg = createResultReg(&AArch64::GPR64RegClass); 409 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, TII.get(AArch64::LDRXui), 410 ResultReg) 411 .addReg(ADRPReg) 412 .addGlobalAddress(GV, 0, AArch64II::MO_GOT | AArch64II::MO_PAGEOFF | 413 AArch64II::MO_NC); 414 } else if (OpFlags & AArch64II::MO_CONSTPOOL) { 415 // We can't handle addresses loaded from a constant pool quickly yet. 416 return 0; 417 } else { 418 // ADRP + ADDX 419 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, TII.get(AArch64::ADRP), 420 ADRPReg) 421 .addGlobalAddress(GV, 0, AArch64II::MO_PAGE); 422 423 ResultReg = createResultReg(&AArch64::GPR64spRegClass); 424 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, TII.get(AArch64::ADDXri), 425 ResultReg) 426 .addReg(ADRPReg) 427 .addGlobalAddress(GV, 0, AArch64II::MO_PAGEOFF | AArch64II::MO_NC) 428 .addImm(0); 429 } 430 return ResultReg; 431 } 432 433 unsigned AArch64FastISel::fastMaterializeConstant(const Constant *C) { 434 EVT CEVT = TLI.getValueType(C->getType(), true); 435 436 // Only handle simple types. 437 if (!CEVT.isSimple()) 438 return 0; 439 MVT VT = CEVT.getSimpleVT(); 440 441 if (const auto *CI = dyn_cast<ConstantInt>(C)) 442 return materializeInt(CI, VT); 443 else if (const ConstantFP *CFP = dyn_cast<ConstantFP>(C)) 444 return materializeFP(CFP, VT); 445 else if (const GlobalValue *GV = dyn_cast<GlobalValue>(C)) 446 return materializeGV(GV); 447 448 return 0; 449 } 450 451 unsigned AArch64FastISel::fastMaterializeFloatZero(const ConstantFP* CFP) { 452 assert(CFP->isNullValue() && 453 "Floating-point constant is not a positive zero."); 454 MVT VT; 455 if (!isTypeLegal(CFP->getType(), VT)) 456 return 0; 457 458 if (VT != MVT::f32 && VT != MVT::f64) 459 return 0; 460 461 bool Is64Bit = (VT == MVT::f64); 462 unsigned ZReg = Is64Bit ? AArch64::XZR : AArch64::WZR; 463 unsigned Opc = Is64Bit ? AArch64::FMOVXDr : AArch64::FMOVWSr; 464 return fastEmitInst_r(Opc, TLI.getRegClassFor(VT), ZReg, /*IsKill=*/true); 465 } 466 467 /// \brief Check if the multiply is by a power-of-2 constant. 468 static bool isMulPowOf2(const Value *I) { 469 if (const auto *MI = dyn_cast<MulOperator>(I)) { 470 if (const auto *C = dyn_cast<ConstantInt>(MI->getOperand(0))) 471 if (C->getValue().isPowerOf2()) 472 return true; 473 if (const auto *C = dyn_cast<ConstantInt>(MI->getOperand(1))) 474 if (C->getValue().isPowerOf2()) 475 return true; 476 } 477 return false; 478 } 479 480 // Computes the address to get to an object. 481 bool AArch64FastISel::computeAddress(const Value *Obj, Address &Addr, Type *Ty) 482 { 483 const User *U = nullptr; 484 unsigned Opcode = Instruction::UserOp1; 485 if (const Instruction *I = dyn_cast<Instruction>(Obj)) { 486 // Don't walk into other basic blocks unless the object is an alloca from 487 // another block, otherwise it may not have a virtual register assigned. 488 if (FuncInfo.StaticAllocaMap.count(static_cast<const AllocaInst *>(Obj)) || 489 FuncInfo.MBBMap[I->getParent()] == FuncInfo.MBB) { 490 Opcode = I->getOpcode(); 491 U = I; 492 } 493 } else if (const ConstantExpr *C = dyn_cast<ConstantExpr>(Obj)) { 494 Opcode = C->getOpcode(); 495 U = C; 496 } 497 498 if (const PointerType *Ty = dyn_cast<PointerType>(Obj->getType())) 499 if (Ty->getAddressSpace() > 255) 500 // Fast instruction selection doesn't support the special 501 // address spaces. 502 return false; 503 504 switch (Opcode) { 505 default: 506 break; 507 case Instruction::BitCast: { 508 // Look through bitcasts. 509 return computeAddress(U->getOperand(0), Addr, Ty); 510 } 511 case Instruction::IntToPtr: { 512 // Look past no-op inttoptrs. 513 if (TLI.getValueType(U->getOperand(0)->getType()) == TLI.getPointerTy()) 514 return computeAddress(U->getOperand(0), Addr, Ty); 515 break; 516 } 517 case Instruction::PtrToInt: { 518 // Look past no-op ptrtoints. 519 if (TLI.getValueType(U->getType()) == TLI.getPointerTy()) 520 return computeAddress(U->getOperand(0), Addr, Ty); 521 break; 522 } 523 case Instruction::GetElementPtr: { 524 Address SavedAddr = Addr; 525 uint64_t TmpOffset = Addr.getOffset(); 526 527 // Iterate through the GEP folding the constants into offsets where 528 // we can. 529 gep_type_iterator GTI = gep_type_begin(U); 530 for (User::const_op_iterator i = U->op_begin() + 1, e = U->op_end(); i != e; 531 ++i, ++GTI) { 532 const Value *Op = *i; 533 if (StructType *STy = dyn_cast<StructType>(*GTI)) { 534 const StructLayout *SL = DL.getStructLayout(STy); 535 unsigned Idx = cast<ConstantInt>(Op)->getZExtValue(); 536 TmpOffset += SL->getElementOffset(Idx); 537 } else { 538 uint64_t S = DL.getTypeAllocSize(GTI.getIndexedType()); 539 for (;;) { 540 if (const ConstantInt *CI = dyn_cast<ConstantInt>(Op)) { 541 // Constant-offset addressing. 542 TmpOffset += CI->getSExtValue() * S; 543 break; 544 } 545 if (canFoldAddIntoGEP(U, Op)) { 546 // A compatible add with a constant operand. Fold the constant. 547 ConstantInt *CI = 548 cast<ConstantInt>(cast<AddOperator>(Op)->getOperand(1)); 549 TmpOffset += CI->getSExtValue() * S; 550 // Iterate on the other operand. 551 Op = cast<AddOperator>(Op)->getOperand(0); 552 continue; 553 } 554 // Unsupported 555 goto unsupported_gep; 556 } 557 } 558 } 559 560 // Try to grab the base operand now. 561 Addr.setOffset(TmpOffset); 562 if (computeAddress(U->getOperand(0), Addr, Ty)) 563 return true; 564 565 // We failed, restore everything and try the other options. 566 Addr = SavedAddr; 567 568 unsupported_gep: 569 break; 570 } 571 case Instruction::Alloca: { 572 const AllocaInst *AI = cast<AllocaInst>(Obj); 573 DenseMap<const AllocaInst *, int>::iterator SI = 574 FuncInfo.StaticAllocaMap.find(AI); 575 if (SI != FuncInfo.StaticAllocaMap.end()) { 576 Addr.setKind(Address::FrameIndexBase); 577 Addr.setFI(SI->second); 578 return true; 579 } 580 break; 581 } 582 case Instruction::Add: { 583 // Adds of constants are common and easy enough. 584 const Value *LHS = U->getOperand(0); 585 const Value *RHS = U->getOperand(1); 586 587 if (isa<ConstantInt>(LHS)) 588 std::swap(LHS, RHS); 589 590 if (const ConstantInt *CI = dyn_cast<ConstantInt>(RHS)) { 591 Addr.setOffset(Addr.getOffset() + (uint64_t)CI->getSExtValue()); 592 return computeAddress(LHS, Addr, Ty); 593 } 594 595 Address Backup = Addr; 596 if (computeAddress(LHS, Addr, Ty) && computeAddress(RHS, Addr, Ty)) 597 return true; 598 Addr = Backup; 599 600 break; 601 } 602 case Instruction::Shl: { 603 if (Addr.getOffsetReg()) 604 break; 605 606 const auto *CI = dyn_cast<ConstantInt>(U->getOperand(1)); 607 if (!CI) 608 break; 609 610 unsigned Val = CI->getZExtValue(); 611 if (Val < 1 || Val > 3) 612 break; 613 614 uint64_t NumBytes = 0; 615 if (Ty && Ty->isSized()) { 616 uint64_t NumBits = DL.getTypeSizeInBits(Ty); 617 NumBytes = NumBits / 8; 618 if (!isPowerOf2_64(NumBits)) 619 NumBytes = 0; 620 } 621 622 if (NumBytes != (1ULL << Val)) 623 break; 624 625 Addr.setShift(Val); 626 Addr.setExtendType(AArch64_AM::LSL); 627 628 const Value *Src = U->getOperand(0); 629 if (const auto *I = dyn_cast<Instruction>(Src)) 630 if (FuncInfo.MBBMap[I->getParent()] == FuncInfo.MBB) 631 Src = I; 632 633 // Fold the zext or sext when it won't become a noop. 634 if (const auto *ZE = dyn_cast<ZExtInst>(Src)) { 635 if (!isIntExtFree(ZE) && ZE->getOperand(0)->getType()->isIntegerTy(32)) { 636 Addr.setExtendType(AArch64_AM::UXTW); 637 Src = ZE->getOperand(0); 638 } 639 } else if (const auto *SE = dyn_cast<SExtInst>(Src)) { 640 if (!isIntExtFree(SE) && SE->getOperand(0)->getType()->isIntegerTy(32)) { 641 Addr.setExtendType(AArch64_AM::SXTW); 642 Src = SE->getOperand(0); 643 } 644 } 645 646 if (const auto *AI = dyn_cast<BinaryOperator>(Src)) 647 if (AI->getOpcode() == Instruction::And) { 648 const Value *LHS = AI->getOperand(0); 649 const Value *RHS = AI->getOperand(1); 650 651 if (const auto *C = dyn_cast<ConstantInt>(LHS)) 652 if (C->getValue() == 0xffffffff) 653 std::swap(LHS, RHS); 654 655 if (const auto *C = dyn_cast<ConstantInt>(RHS)) 656 if (C->getValue() == 0xffffffff) { 657 Addr.setExtendType(AArch64_AM::UXTW); 658 unsigned Reg = getRegForValue(LHS); 659 if (!Reg) 660 return false; 661 bool RegIsKill = hasTrivialKill(LHS); 662 Reg = fastEmitInst_extractsubreg(MVT::i32, Reg, RegIsKill, 663 AArch64::sub_32); 664 Addr.setOffsetReg(Reg); 665 return true; 666 } 667 } 668 669 unsigned Reg = getRegForValue(Src); 670 if (!Reg) 671 return false; 672 Addr.setOffsetReg(Reg); 673 return true; 674 } 675 case Instruction::Mul: { 676 if (Addr.getOffsetReg()) 677 break; 678 679 if (!isMulPowOf2(U)) 680 break; 681 682 const Value *LHS = U->getOperand(0); 683 const Value *RHS = U->getOperand(1); 684 685 // Canonicalize power-of-2 value to the RHS. 686 if (const auto *C = dyn_cast<ConstantInt>(LHS)) 687 if (C->getValue().isPowerOf2()) 688 std::swap(LHS, RHS); 689 690 assert(isa<ConstantInt>(RHS) && "Expected an ConstantInt."); 691 const auto *C = cast<ConstantInt>(RHS); 692 unsigned Val = C->getValue().logBase2(); 693 if (Val < 1 || Val > 3) 694 break; 695 696 uint64_t NumBytes = 0; 697 if (Ty && Ty->isSized()) { 698 uint64_t NumBits = DL.getTypeSizeInBits(Ty); 699 NumBytes = NumBits / 8; 700 if (!isPowerOf2_64(NumBits)) 701 NumBytes = 0; 702 } 703 704 if (NumBytes != (1ULL << Val)) 705 break; 706 707 Addr.setShift(Val); 708 Addr.setExtendType(AArch64_AM::LSL); 709 710 const Value *Src = LHS; 711 if (const auto *I = dyn_cast<Instruction>(Src)) 712 if (FuncInfo.MBBMap[I->getParent()] == FuncInfo.MBB) 713 Src = I; 714 715 716 // Fold the zext or sext when it won't become a noop. 717 if (const auto *ZE = dyn_cast<ZExtInst>(Src)) { 718 if (!isIntExtFree(ZE) && ZE->getOperand(0)->getType()->isIntegerTy(32)) { 719 Addr.setExtendType(AArch64_AM::UXTW); 720 Src = ZE->getOperand(0); 721 } 722 } else if (const auto *SE = dyn_cast<SExtInst>(Src)) { 723 if (!isIntExtFree(SE) && SE->getOperand(0)->getType()->isIntegerTy(32)) { 724 Addr.setExtendType(AArch64_AM::SXTW); 725 Src = SE->getOperand(0); 726 } 727 } 728 729 unsigned Reg = getRegForValue(Src); 730 if (!Reg) 731 return false; 732 Addr.setOffsetReg(Reg); 733 return true; 734 } 735 case Instruction::And: { 736 if (Addr.getOffsetReg()) 737 break; 738 739 if (DL.getTypeSizeInBits(Ty) != 8) 740 break; 741 742 const Value *LHS = U->getOperand(0); 743 const Value *RHS = U->getOperand(1); 744 745 if (const auto *C = dyn_cast<ConstantInt>(LHS)) 746 if (C->getValue() == 0xffffffff) 747 std::swap(LHS, RHS); 748 749 if (const auto *C = dyn_cast<ConstantInt>(RHS)) 750 if (C->getValue() == 0xffffffff) { 751 Addr.setShift(0); 752 Addr.setExtendType(AArch64_AM::LSL); 753 Addr.setExtendType(AArch64_AM::UXTW); 754 755 unsigned Reg = getRegForValue(LHS); 756 if (!Reg) 757 return false; 758 bool RegIsKill = hasTrivialKill(LHS); 759 Reg = fastEmitInst_extractsubreg(MVT::i32, Reg, RegIsKill, 760 AArch64::sub_32); 761 Addr.setOffsetReg(Reg); 762 return true; 763 } 764 break; 765 } 766 } // end switch 767 768 if (Addr.getReg()) { 769 if (!Addr.getOffsetReg()) { 770 unsigned Reg = getRegForValue(Obj); 771 if (!Reg) 772 return false; 773 Addr.setOffsetReg(Reg); 774 return true; 775 } 776 return false; 777 } 778 779 unsigned Reg = getRegForValue(Obj); 780 if (!Reg) 781 return false; 782 Addr.setReg(Reg); 783 return true; 784 } 785 786 bool AArch64FastISel::computeCallAddress(const Value *V, Address &Addr) { 787 const User *U = nullptr; 788 unsigned Opcode = Instruction::UserOp1; 789 bool InMBB = true; 790 791 if (const auto *I = dyn_cast<Instruction>(V)) { 792 Opcode = I->getOpcode(); 793 U = I; 794 InMBB = I->getParent() == FuncInfo.MBB->getBasicBlock(); 795 } else if (const auto *C = dyn_cast<ConstantExpr>(V)) { 796 Opcode = C->getOpcode(); 797 U = C; 798 } 799 800 switch (Opcode) { 801 default: break; 802 case Instruction::BitCast: 803 // Look past bitcasts if its operand is in the same BB. 804 if (InMBB) 805 return computeCallAddress(U->getOperand(0), Addr); 806 break; 807 case Instruction::IntToPtr: 808 // Look past no-op inttoptrs if its operand is in the same BB. 809 if (InMBB && 810 TLI.getValueType(U->getOperand(0)->getType()) == TLI.getPointerTy()) 811 return computeCallAddress(U->getOperand(0), Addr); 812 break; 813 case Instruction::PtrToInt: 814 // Look past no-op ptrtoints if its operand is in the same BB. 815 if (InMBB && 816 TLI.getValueType(U->getType()) == TLI.getPointerTy()) 817 return computeCallAddress(U->getOperand(0), Addr); 818 break; 819 } 820 821 if (const GlobalValue *GV = dyn_cast<GlobalValue>(V)) { 822 Addr.setGlobalValue(GV); 823 return true; 824 } 825 826 // If all else fails, try to materialize the value in a register. 827 if (!Addr.getGlobalValue()) { 828 Addr.setReg(getRegForValue(V)); 829 return Addr.getReg() != 0; 830 } 831 832 return false; 833 } 834 835 836 bool AArch64FastISel::isTypeLegal(Type *Ty, MVT &VT) { 837 EVT evt = TLI.getValueType(Ty, true); 838 839 // Only handle simple types. 840 if (evt == MVT::Other || !evt.isSimple()) 841 return false; 842 VT = evt.getSimpleVT(); 843 844 // This is a legal type, but it's not something we handle in fast-isel. 845 if (VT == MVT::f128) 846 return false; 847 848 // Handle all other legal types, i.e. a register that will directly hold this 849 // value. 850 return TLI.isTypeLegal(VT); 851 } 852 853 /// \brief Determine if the value type is supported by FastISel. 854 /// 855 /// FastISel for AArch64 can handle more value types than are legal. This adds 856 /// simple value type such as i1, i8, and i16. 857 bool AArch64FastISel::isTypeSupported(Type *Ty, MVT &VT, bool IsVectorAllowed) { 858 if (Ty->isVectorTy() && !IsVectorAllowed) 859 return false; 860 861 if (isTypeLegal(Ty, VT)) 862 return true; 863 864 // If this is a type than can be sign or zero-extended to a basic operation 865 // go ahead and accept it now. 866 if (VT == MVT::i1 || VT == MVT::i8 || VT == MVT::i16) 867 return true; 868 869 return false; 870 } 871 872 bool AArch64FastISel::isValueAvailable(const Value *V) const { 873 if (!isa<Instruction>(V)) 874 return true; 875 876 const auto *I = cast<Instruction>(V); 877 if (FuncInfo.MBBMap[I->getParent()] == FuncInfo.MBB) 878 return true; 879 880 return false; 881 } 882 883 bool AArch64FastISel::simplifyAddress(Address &Addr, MVT VT) { 884 unsigned ScaleFactor = getImplicitScaleFactor(VT); 885 if (!ScaleFactor) 886 return false; 887 888 bool ImmediateOffsetNeedsLowering = false; 889 bool RegisterOffsetNeedsLowering = false; 890 int64_t Offset = Addr.getOffset(); 891 if (((Offset < 0) || (Offset & (ScaleFactor - 1))) && !isInt<9>(Offset)) 892 ImmediateOffsetNeedsLowering = true; 893 else if (Offset > 0 && !(Offset & (ScaleFactor - 1)) && 894 !isUInt<12>(Offset / ScaleFactor)) 895 ImmediateOffsetNeedsLowering = true; 896 897 // Cannot encode an offset register and an immediate offset in the same 898 // instruction. Fold the immediate offset into the load/store instruction and 899 // emit an additonal add to take care of the offset register. 900 if (!ImmediateOffsetNeedsLowering && Addr.getOffset() && Addr.isRegBase() && 901 Addr.getOffsetReg()) 902 RegisterOffsetNeedsLowering = true; 903 904 // Cannot encode zero register as base. 905 if (Addr.isRegBase() && Addr.getOffsetReg() && !Addr.getReg()) 906 RegisterOffsetNeedsLowering = true; 907 908 // If this is a stack pointer and the offset needs to be simplified then put 909 // the alloca address into a register, set the base type back to register and 910 // continue. This should almost never happen. 911 if (ImmediateOffsetNeedsLowering && Addr.isFIBase()) { 912 unsigned ResultReg = createResultReg(&AArch64::GPR64spRegClass); 913 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, TII.get(AArch64::ADDXri), 914 ResultReg) 915 .addFrameIndex(Addr.getFI()) 916 .addImm(0) 917 .addImm(0); 918 Addr.setKind(Address::RegBase); 919 Addr.setReg(ResultReg); 920 } 921 922 if (RegisterOffsetNeedsLowering) { 923 unsigned ResultReg = 0; 924 if (Addr.getReg()) { 925 if (Addr.getExtendType() == AArch64_AM::SXTW || 926 Addr.getExtendType() == AArch64_AM::UXTW ) 927 ResultReg = emitAddSub_rx(/*UseAdd=*/true, MVT::i64, Addr.getReg(), 928 /*TODO:IsKill=*/false, Addr.getOffsetReg(), 929 /*TODO:IsKill=*/false, Addr.getExtendType(), 930 Addr.getShift()); 931 else 932 ResultReg = emitAddSub_rs(/*UseAdd=*/true, MVT::i64, Addr.getReg(), 933 /*TODO:IsKill=*/false, Addr.getOffsetReg(), 934 /*TODO:IsKill=*/false, AArch64_AM::LSL, 935 Addr.getShift()); 936 } else { 937 if (Addr.getExtendType() == AArch64_AM::UXTW) 938 ResultReg = emitLSL_ri(MVT::i64, MVT::i32, Addr.getOffsetReg(), 939 /*Op0IsKill=*/false, Addr.getShift(), 940 /*IsZExt=*/true); 941 else if (Addr.getExtendType() == AArch64_AM::SXTW) 942 ResultReg = emitLSL_ri(MVT::i64, MVT::i32, Addr.getOffsetReg(), 943 /*Op0IsKill=*/false, Addr.getShift(), 944 /*IsZExt=*/false); 945 else 946 ResultReg = emitLSL_ri(MVT::i64, MVT::i64, Addr.getOffsetReg(), 947 /*Op0IsKill=*/false, Addr.getShift()); 948 } 949 if (!ResultReg) 950 return false; 951 952 Addr.setReg(ResultReg); 953 Addr.setOffsetReg(0); 954 Addr.setShift(0); 955 Addr.setExtendType(AArch64_AM::InvalidShiftExtend); 956 } 957 958 // Since the offset is too large for the load/store instruction get the 959 // reg+offset into a register. 960 if (ImmediateOffsetNeedsLowering) { 961 unsigned ResultReg; 962 if (Addr.getReg()) { 963 // Try to fold the immediate into the add instruction. 964 if (Offset < 0) 965 ResultReg = emitAddSub_ri(/*UseAdd=*/false, MVT::i64, Addr.getReg(), 966 /*IsKill=*/false, -Offset); 967 else 968 ResultReg = emitAddSub_ri(/*UseAdd=*/true, MVT::i64, Addr.getReg(), 969 /*IsKill=*/false, Offset); 970 if (!ResultReg) { 971 unsigned ImmReg = fastEmit_i(MVT::i64, MVT::i64, ISD::Constant, Offset); 972 ResultReg = emitAddSub_rr(/*UseAdd=*/true, MVT::i64, Addr.getReg(), 973 /*IsKill=*/false, ImmReg, /*IsKill=*/true); 974 } 975 } else 976 ResultReg = fastEmit_i(MVT::i64, MVT::i64, ISD::Constant, Offset); 977 978 if (!ResultReg) 979 return false; 980 Addr.setReg(ResultReg); 981 Addr.setOffset(0); 982 } 983 return true; 984 } 985 986 void AArch64FastISel::addLoadStoreOperands(Address &Addr, 987 const MachineInstrBuilder &MIB, 988 unsigned Flags, 989 unsigned ScaleFactor, 990 MachineMemOperand *MMO) { 991 int64_t Offset = Addr.getOffset() / ScaleFactor; 992 // Frame base works a bit differently. Handle it separately. 993 if (Addr.isFIBase()) { 994 int FI = Addr.getFI(); 995 // FIXME: We shouldn't be using getObjectSize/getObjectAlignment. The size 996 // and alignment should be based on the VT. 997 MMO = FuncInfo.MF->getMachineMemOperand( 998 MachinePointerInfo::getFixedStack(FI, Offset), Flags, 999 MFI.getObjectSize(FI), MFI.getObjectAlignment(FI)); 1000 // Now add the rest of the operands. 1001 MIB.addFrameIndex(FI).addImm(Offset); 1002 } else { 1003 assert(Addr.isRegBase() && "Unexpected address kind."); 1004 const MCInstrDesc &II = MIB->getDesc(); 1005 unsigned Idx = (Flags & MachineMemOperand::MOStore) ? 1 : 0; 1006 Addr.setReg( 1007 constrainOperandRegClass(II, Addr.getReg(), II.getNumDefs()+Idx)); 1008 Addr.setOffsetReg( 1009 constrainOperandRegClass(II, Addr.getOffsetReg(), II.getNumDefs()+Idx+1)); 1010 if (Addr.getOffsetReg()) { 1011 assert(Addr.getOffset() == 0 && "Unexpected offset"); 1012 bool IsSigned = Addr.getExtendType() == AArch64_AM::SXTW || 1013 Addr.getExtendType() == AArch64_AM::SXTX; 1014 MIB.addReg(Addr.getReg()); 1015 MIB.addReg(Addr.getOffsetReg()); 1016 MIB.addImm(IsSigned); 1017 MIB.addImm(Addr.getShift() != 0); 1018 } else { 1019 MIB.addReg(Addr.getReg()); 1020 MIB.addImm(Offset); 1021 } 1022 } 1023 1024 if (MMO) 1025 MIB.addMemOperand(MMO); 1026 } 1027 1028 unsigned AArch64FastISel::emitAddSub(bool UseAdd, MVT RetVT, const Value *LHS, 1029 const Value *RHS, bool SetFlags, 1030 bool WantResult, bool IsZExt) { 1031 AArch64_AM::ShiftExtendType ExtendType = AArch64_AM::InvalidShiftExtend; 1032 bool NeedExtend = false; 1033 switch (RetVT.SimpleTy) { 1034 default: 1035 return 0; 1036 case MVT::i1: 1037 NeedExtend = true; 1038 break; 1039 case MVT::i8: 1040 NeedExtend = true; 1041 ExtendType = IsZExt ? AArch64_AM::UXTB : AArch64_AM::SXTB; 1042 break; 1043 case MVT::i16: 1044 NeedExtend = true; 1045 ExtendType = IsZExt ? AArch64_AM::UXTH : AArch64_AM::SXTH; 1046 break; 1047 case MVT::i32: // fall-through 1048 case MVT::i64: 1049 break; 1050 } 1051 MVT SrcVT = RetVT; 1052 RetVT.SimpleTy = std::max(RetVT.SimpleTy, MVT::i32); 1053 1054 // Canonicalize immediates to the RHS first. 1055 if (UseAdd && isa<ConstantInt>(LHS) && !isa<ConstantInt>(RHS)) 1056 std::swap(LHS, RHS); 1057 1058 // Canonicalize mul by power of 2 to the RHS. 1059 if (UseAdd && LHS->hasOneUse() && isValueAvailable(LHS)) 1060 if (isMulPowOf2(LHS)) 1061 std::swap(LHS, RHS); 1062 1063 // Canonicalize shift immediate to the RHS. 1064 if (UseAdd && LHS->hasOneUse() && isValueAvailable(LHS)) 1065 if (const auto *SI = dyn_cast<BinaryOperator>(LHS)) 1066 if (isa<ConstantInt>(SI->getOperand(1))) 1067 if (SI->getOpcode() == Instruction::Shl || 1068 SI->getOpcode() == Instruction::LShr || 1069 SI->getOpcode() == Instruction::AShr ) 1070 std::swap(LHS, RHS); 1071 1072 unsigned LHSReg = getRegForValue(LHS); 1073 if (!LHSReg) 1074 return 0; 1075 bool LHSIsKill = hasTrivialKill(LHS); 1076 1077 if (NeedExtend) 1078 LHSReg = emitIntExt(SrcVT, LHSReg, RetVT, IsZExt); 1079 1080 unsigned ResultReg = 0; 1081 if (const auto *C = dyn_cast<ConstantInt>(RHS)) { 1082 uint64_t Imm = IsZExt ? C->getZExtValue() : C->getSExtValue(); 1083 if (C->isNegative()) 1084 ResultReg = emitAddSub_ri(!UseAdd, RetVT, LHSReg, LHSIsKill, -Imm, 1085 SetFlags, WantResult); 1086 else 1087 ResultReg = emitAddSub_ri(UseAdd, RetVT, LHSReg, LHSIsKill, Imm, SetFlags, 1088 WantResult); 1089 } 1090 if (ResultReg) 1091 return ResultReg; 1092 1093 // Only extend the RHS within the instruction if there is a valid extend type. 1094 if (ExtendType != AArch64_AM::InvalidShiftExtend && RHS->hasOneUse() && 1095 isValueAvailable(RHS)) { 1096 if (const auto *SI = dyn_cast<BinaryOperator>(RHS)) 1097 if (const auto *C = dyn_cast<ConstantInt>(SI->getOperand(1))) 1098 if ((SI->getOpcode() == Instruction::Shl) && (C->getZExtValue() < 4)) { 1099 unsigned RHSReg = getRegForValue(SI->getOperand(0)); 1100 if (!RHSReg) 1101 return 0; 1102 bool RHSIsKill = hasTrivialKill(SI->getOperand(0)); 1103 return emitAddSub_rx(UseAdd, RetVT, LHSReg, LHSIsKill, RHSReg, 1104 RHSIsKill, ExtendType, C->getZExtValue(), 1105 SetFlags, WantResult); 1106 } 1107 unsigned RHSReg = getRegForValue(RHS); 1108 if (!RHSReg) 1109 return 0; 1110 bool RHSIsKill = hasTrivialKill(RHS); 1111 return emitAddSub_rx(UseAdd, RetVT, LHSReg, LHSIsKill, RHSReg, RHSIsKill, 1112 ExtendType, 0, SetFlags, WantResult); 1113 } 1114 1115 // Check if the mul can be folded into the instruction. 1116 if (RHS->hasOneUse() && isValueAvailable(RHS)) 1117 if (isMulPowOf2(RHS)) { 1118 const Value *MulLHS = cast<MulOperator>(RHS)->getOperand(0); 1119 const Value *MulRHS = cast<MulOperator>(RHS)->getOperand(1); 1120 1121 if (const auto *C = dyn_cast<ConstantInt>(MulLHS)) 1122 if (C->getValue().isPowerOf2()) 1123 std::swap(MulLHS, MulRHS); 1124 1125 assert(isa<ConstantInt>(MulRHS) && "Expected a ConstantInt."); 1126 uint64_t ShiftVal = cast<ConstantInt>(MulRHS)->getValue().logBase2(); 1127 unsigned RHSReg = getRegForValue(MulLHS); 1128 if (!RHSReg) 1129 return 0; 1130 bool RHSIsKill = hasTrivialKill(MulLHS); 1131 return emitAddSub_rs(UseAdd, RetVT, LHSReg, LHSIsKill, RHSReg, RHSIsKill, 1132 AArch64_AM::LSL, ShiftVal, SetFlags, WantResult); 1133 } 1134 1135 // Check if the shift can be folded into the instruction. 1136 if (RHS->hasOneUse() && isValueAvailable(RHS)) 1137 if (const auto *SI = dyn_cast<BinaryOperator>(RHS)) { 1138 if (const auto *C = dyn_cast<ConstantInt>(SI->getOperand(1))) { 1139 AArch64_AM::ShiftExtendType ShiftType = AArch64_AM::InvalidShiftExtend; 1140 switch (SI->getOpcode()) { 1141 default: break; 1142 case Instruction::Shl: ShiftType = AArch64_AM::LSL; break; 1143 case Instruction::LShr: ShiftType = AArch64_AM::LSR; break; 1144 case Instruction::AShr: ShiftType = AArch64_AM::ASR; break; 1145 } 1146 uint64_t ShiftVal = C->getZExtValue(); 1147 if (ShiftType != AArch64_AM::InvalidShiftExtend) { 1148 unsigned RHSReg = getRegForValue(SI->getOperand(0)); 1149 if (!RHSReg) 1150 return 0; 1151 bool RHSIsKill = hasTrivialKill(SI->getOperand(0)); 1152 return emitAddSub_rs(UseAdd, RetVT, LHSReg, LHSIsKill, RHSReg, 1153 RHSIsKill, ShiftType, ShiftVal, SetFlags, 1154 WantResult); 1155 } 1156 } 1157 } 1158 1159 unsigned RHSReg = getRegForValue(RHS); 1160 if (!RHSReg) 1161 return 0; 1162 bool RHSIsKill = hasTrivialKill(RHS); 1163 1164 if (NeedExtend) 1165 RHSReg = emitIntExt(SrcVT, RHSReg, RetVT, IsZExt); 1166 1167 return emitAddSub_rr(UseAdd, RetVT, LHSReg, LHSIsKill, RHSReg, RHSIsKill, 1168 SetFlags, WantResult); 1169 } 1170 1171 unsigned AArch64FastISel::emitAddSub_rr(bool UseAdd, MVT RetVT, unsigned LHSReg, 1172 bool LHSIsKill, unsigned RHSReg, 1173 bool RHSIsKill, bool SetFlags, 1174 bool WantResult) { 1175 assert(LHSReg && RHSReg && "Invalid register number."); 1176 1177 if (RetVT != MVT::i32 && RetVT != MVT::i64) 1178 return 0; 1179 1180 static const unsigned OpcTable[2][2][2] = { 1181 { { AArch64::SUBWrr, AArch64::SUBXrr }, 1182 { AArch64::ADDWrr, AArch64::ADDXrr } }, 1183 { { AArch64::SUBSWrr, AArch64::SUBSXrr }, 1184 { AArch64::ADDSWrr, AArch64::ADDSXrr } } 1185 }; 1186 bool Is64Bit = RetVT == MVT::i64; 1187 unsigned Opc = OpcTable[SetFlags][UseAdd][Is64Bit]; 1188 const TargetRegisterClass *RC = 1189 Is64Bit ? &AArch64::GPR64RegClass : &AArch64::GPR32RegClass; 1190 unsigned ResultReg; 1191 if (WantResult) 1192 ResultReg = createResultReg(RC); 1193 else 1194 ResultReg = Is64Bit ? AArch64::XZR : AArch64::WZR; 1195 1196 const MCInstrDesc &II = TII.get(Opc); 1197 LHSReg = constrainOperandRegClass(II, LHSReg, II.getNumDefs()); 1198 RHSReg = constrainOperandRegClass(II, RHSReg, II.getNumDefs() + 1); 1199 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, II, ResultReg) 1200 .addReg(LHSReg, getKillRegState(LHSIsKill)) 1201 .addReg(RHSReg, getKillRegState(RHSIsKill)); 1202 return ResultReg; 1203 } 1204 1205 unsigned AArch64FastISel::emitAddSub_ri(bool UseAdd, MVT RetVT, unsigned LHSReg, 1206 bool LHSIsKill, uint64_t Imm, 1207 bool SetFlags, bool WantResult) { 1208 assert(LHSReg && "Invalid register number."); 1209 1210 if (RetVT != MVT::i32 && RetVT != MVT::i64) 1211 return 0; 1212 1213 unsigned ShiftImm; 1214 if (isUInt<12>(Imm)) 1215 ShiftImm = 0; 1216 else if ((Imm & 0xfff000) == Imm) { 1217 ShiftImm = 12; 1218 Imm >>= 12; 1219 } else 1220 return 0; 1221 1222 static const unsigned OpcTable[2][2][2] = { 1223 { { AArch64::SUBWri, AArch64::SUBXri }, 1224 { AArch64::ADDWri, AArch64::ADDXri } }, 1225 { { AArch64::SUBSWri, AArch64::SUBSXri }, 1226 { AArch64::ADDSWri, AArch64::ADDSXri } } 1227 }; 1228 bool Is64Bit = RetVT == MVT::i64; 1229 unsigned Opc = OpcTable[SetFlags][UseAdd][Is64Bit]; 1230 const TargetRegisterClass *RC; 1231 if (SetFlags) 1232 RC = Is64Bit ? &AArch64::GPR64RegClass : &AArch64::GPR32RegClass; 1233 else 1234 RC = Is64Bit ? &AArch64::GPR64spRegClass : &AArch64::GPR32spRegClass; 1235 unsigned ResultReg; 1236 if (WantResult) 1237 ResultReg = createResultReg(RC); 1238 else 1239 ResultReg = Is64Bit ? AArch64::XZR : AArch64::WZR; 1240 1241 const MCInstrDesc &II = TII.get(Opc); 1242 LHSReg = constrainOperandRegClass(II, LHSReg, II.getNumDefs()); 1243 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, II, ResultReg) 1244 .addReg(LHSReg, getKillRegState(LHSIsKill)) 1245 .addImm(Imm) 1246 .addImm(getShifterImm(AArch64_AM::LSL, ShiftImm)); 1247 return ResultReg; 1248 } 1249 1250 unsigned AArch64FastISel::emitAddSub_rs(bool UseAdd, MVT RetVT, unsigned LHSReg, 1251 bool LHSIsKill, unsigned RHSReg, 1252 bool RHSIsKill, 1253 AArch64_AM::ShiftExtendType ShiftType, 1254 uint64_t ShiftImm, bool SetFlags, 1255 bool WantResult) { 1256 assert(LHSReg && RHSReg && "Invalid register number."); 1257 1258 if (RetVT != MVT::i32 && RetVT != MVT::i64) 1259 return 0; 1260 1261 static const unsigned OpcTable[2][2][2] = { 1262 { { AArch64::SUBWrs, AArch64::SUBXrs }, 1263 { AArch64::ADDWrs, AArch64::ADDXrs } }, 1264 { { AArch64::SUBSWrs, AArch64::SUBSXrs }, 1265 { AArch64::ADDSWrs, AArch64::ADDSXrs } } 1266 }; 1267 bool Is64Bit = RetVT == MVT::i64; 1268 unsigned Opc = OpcTable[SetFlags][UseAdd][Is64Bit]; 1269 const TargetRegisterClass *RC = 1270 Is64Bit ? &AArch64::GPR64RegClass : &AArch64::GPR32RegClass; 1271 unsigned ResultReg; 1272 if (WantResult) 1273 ResultReg = createResultReg(RC); 1274 else 1275 ResultReg = Is64Bit ? AArch64::XZR : AArch64::WZR; 1276 1277 const MCInstrDesc &II = TII.get(Opc); 1278 LHSReg = constrainOperandRegClass(II, LHSReg, II.getNumDefs()); 1279 RHSReg = constrainOperandRegClass(II, RHSReg, II.getNumDefs() + 1); 1280 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, II, ResultReg) 1281 .addReg(LHSReg, getKillRegState(LHSIsKill)) 1282 .addReg(RHSReg, getKillRegState(RHSIsKill)) 1283 .addImm(getShifterImm(ShiftType, ShiftImm)); 1284 return ResultReg; 1285 } 1286 1287 unsigned AArch64FastISel::emitAddSub_rx(bool UseAdd, MVT RetVT, unsigned LHSReg, 1288 bool LHSIsKill, unsigned RHSReg, 1289 bool RHSIsKill, 1290 AArch64_AM::ShiftExtendType ExtType, 1291 uint64_t ShiftImm, bool SetFlags, 1292 bool WantResult) { 1293 assert(LHSReg && RHSReg && "Invalid register number."); 1294 1295 if (RetVT != MVT::i32 && RetVT != MVT::i64) 1296 return 0; 1297 1298 static const unsigned OpcTable[2][2][2] = { 1299 { { AArch64::SUBWrx, AArch64::SUBXrx }, 1300 { AArch64::ADDWrx, AArch64::ADDXrx } }, 1301 { { AArch64::SUBSWrx, AArch64::SUBSXrx }, 1302 { AArch64::ADDSWrx, AArch64::ADDSXrx } } 1303 }; 1304 bool Is64Bit = RetVT == MVT::i64; 1305 unsigned Opc = OpcTable[SetFlags][UseAdd][Is64Bit]; 1306 const TargetRegisterClass *RC = nullptr; 1307 if (SetFlags) 1308 RC = Is64Bit ? &AArch64::GPR64RegClass : &AArch64::GPR32RegClass; 1309 else 1310 RC = Is64Bit ? &AArch64::GPR64spRegClass : &AArch64::GPR32spRegClass; 1311 unsigned ResultReg; 1312 if (WantResult) 1313 ResultReg = createResultReg(RC); 1314 else 1315 ResultReg = Is64Bit ? AArch64::XZR : AArch64::WZR; 1316 1317 const MCInstrDesc &II = TII.get(Opc); 1318 LHSReg = constrainOperandRegClass(II, LHSReg, II.getNumDefs()); 1319 RHSReg = constrainOperandRegClass(II, RHSReg, II.getNumDefs() + 1); 1320 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, II, ResultReg) 1321 .addReg(LHSReg, getKillRegState(LHSIsKill)) 1322 .addReg(RHSReg, getKillRegState(RHSIsKill)) 1323 .addImm(getArithExtendImm(ExtType, ShiftImm)); 1324 return ResultReg; 1325 } 1326 1327 bool AArch64FastISel::emitCmp(const Value *LHS, const Value *RHS, bool IsZExt) { 1328 Type *Ty = LHS->getType(); 1329 EVT EVT = TLI.getValueType(Ty, true); 1330 if (!EVT.isSimple()) 1331 return false; 1332 MVT VT = EVT.getSimpleVT(); 1333 1334 switch (VT.SimpleTy) { 1335 default: 1336 return false; 1337 case MVT::i1: 1338 case MVT::i8: 1339 case MVT::i16: 1340 case MVT::i32: 1341 case MVT::i64: 1342 return emitICmp(VT, LHS, RHS, IsZExt); 1343 case MVT::f32: 1344 case MVT::f64: 1345 return emitFCmp(VT, LHS, RHS); 1346 } 1347 } 1348 1349 bool AArch64FastISel::emitICmp(MVT RetVT, const Value *LHS, const Value *RHS, 1350 bool IsZExt) { 1351 return emitSub(RetVT, LHS, RHS, /*SetFlags=*/true, /*WantResult=*/false, 1352 IsZExt) != 0; 1353 } 1354 1355 bool AArch64FastISel::emitICmp_ri(MVT RetVT, unsigned LHSReg, bool LHSIsKill, 1356 uint64_t Imm) { 1357 return emitAddSub_ri(/*UseAdd=*/false, RetVT, LHSReg, LHSIsKill, Imm, 1358 /*SetFlags=*/true, /*WantResult=*/false) != 0; 1359 } 1360 1361 bool AArch64FastISel::emitFCmp(MVT RetVT, const Value *LHS, const Value *RHS) { 1362 if (RetVT != MVT::f32 && RetVT != MVT::f64) 1363 return false; 1364 1365 // Check to see if the 2nd operand is a constant that we can encode directly 1366 // in the compare. 1367 bool UseImm = false; 1368 if (const auto *CFP = dyn_cast<ConstantFP>(RHS)) 1369 if (CFP->isZero() && !CFP->isNegative()) 1370 UseImm = true; 1371 1372 unsigned LHSReg = getRegForValue(LHS); 1373 if (!LHSReg) 1374 return false; 1375 bool LHSIsKill = hasTrivialKill(LHS); 1376 1377 if (UseImm) { 1378 unsigned Opc = (RetVT == MVT::f64) ? AArch64::FCMPDri : AArch64::FCMPSri; 1379 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, TII.get(Opc)) 1380 .addReg(LHSReg, getKillRegState(LHSIsKill)); 1381 return true; 1382 } 1383 1384 unsigned RHSReg = getRegForValue(RHS); 1385 if (!RHSReg) 1386 return false; 1387 bool RHSIsKill = hasTrivialKill(RHS); 1388 1389 unsigned Opc = (RetVT == MVT::f64) ? AArch64::FCMPDrr : AArch64::FCMPSrr; 1390 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, TII.get(Opc)) 1391 .addReg(LHSReg, getKillRegState(LHSIsKill)) 1392 .addReg(RHSReg, getKillRegState(RHSIsKill)); 1393 return true; 1394 } 1395 1396 unsigned AArch64FastISel::emitAdd(MVT RetVT, const Value *LHS, const Value *RHS, 1397 bool SetFlags, bool WantResult, bool IsZExt) { 1398 return emitAddSub(/*UseAdd=*/true, RetVT, LHS, RHS, SetFlags, WantResult, 1399 IsZExt); 1400 } 1401 1402 unsigned AArch64FastISel::emitSub(MVT RetVT, const Value *LHS, const Value *RHS, 1403 bool SetFlags, bool WantResult, bool IsZExt) { 1404 return emitAddSub(/*UseAdd=*/false, RetVT, LHS, RHS, SetFlags, WantResult, 1405 IsZExt); 1406 } 1407 1408 unsigned AArch64FastISel::emitSubs_rr(MVT RetVT, unsigned LHSReg, 1409 bool LHSIsKill, unsigned RHSReg, 1410 bool RHSIsKill, bool WantResult) { 1411 return emitAddSub_rr(/*UseAdd=*/false, RetVT, LHSReg, LHSIsKill, RHSReg, 1412 RHSIsKill, /*SetFlags=*/true, WantResult); 1413 } 1414 1415 unsigned AArch64FastISel::emitSubs_rs(MVT RetVT, unsigned LHSReg, 1416 bool LHSIsKill, unsigned RHSReg, 1417 bool RHSIsKill, 1418 AArch64_AM::ShiftExtendType ShiftType, 1419 uint64_t ShiftImm, bool WantResult) { 1420 return emitAddSub_rs(/*UseAdd=*/false, RetVT, LHSReg, LHSIsKill, RHSReg, 1421 RHSIsKill, ShiftType, ShiftImm, /*SetFlags=*/true, 1422 WantResult); 1423 } 1424 1425 unsigned AArch64FastISel::emitLogicalOp(unsigned ISDOpc, MVT RetVT, 1426 const Value *LHS, const Value *RHS) { 1427 // Canonicalize immediates to the RHS first. 1428 if (isa<ConstantInt>(LHS) && !isa<ConstantInt>(RHS)) 1429 std::swap(LHS, RHS); 1430 1431 // Canonicalize mul by power-of-2 to the RHS. 1432 if (LHS->hasOneUse() && isValueAvailable(LHS)) 1433 if (isMulPowOf2(LHS)) 1434 std::swap(LHS, RHS); 1435 1436 // Canonicalize shift immediate to the RHS. 1437 if (LHS->hasOneUse() && isValueAvailable(LHS)) 1438 if (const auto *SI = dyn_cast<ShlOperator>(LHS)) 1439 if (isa<ConstantInt>(SI->getOperand(1))) 1440 std::swap(LHS, RHS); 1441 1442 unsigned LHSReg = getRegForValue(LHS); 1443 if (!LHSReg) 1444 return 0; 1445 bool LHSIsKill = hasTrivialKill(LHS); 1446 1447 unsigned ResultReg = 0; 1448 if (const auto *C = dyn_cast<ConstantInt>(RHS)) { 1449 uint64_t Imm = C->getZExtValue(); 1450 ResultReg = emitLogicalOp_ri(ISDOpc, RetVT, LHSReg, LHSIsKill, Imm); 1451 } 1452 if (ResultReg) 1453 return ResultReg; 1454 1455 // Check if the mul can be folded into the instruction. 1456 if (RHS->hasOneUse() && isValueAvailable(RHS)) 1457 if (isMulPowOf2(RHS)) { 1458 const Value *MulLHS = cast<MulOperator>(RHS)->getOperand(0); 1459 const Value *MulRHS = cast<MulOperator>(RHS)->getOperand(1); 1460 1461 if (const auto *C = dyn_cast<ConstantInt>(MulLHS)) 1462 if (C->getValue().isPowerOf2()) 1463 std::swap(MulLHS, MulRHS); 1464 1465 assert(isa<ConstantInt>(MulRHS) && "Expected a ConstantInt."); 1466 uint64_t ShiftVal = cast<ConstantInt>(MulRHS)->getValue().logBase2(); 1467 1468 unsigned RHSReg = getRegForValue(MulLHS); 1469 if (!RHSReg) 1470 return 0; 1471 bool RHSIsKill = hasTrivialKill(MulLHS); 1472 return emitLogicalOp_rs(ISDOpc, RetVT, LHSReg, LHSIsKill, RHSReg, 1473 RHSIsKill, ShiftVal); 1474 } 1475 1476 // Check if the shift can be folded into the instruction. 1477 if (RHS->hasOneUse() && isValueAvailable(RHS)) 1478 if (const auto *SI = dyn_cast<ShlOperator>(RHS)) 1479 if (const auto *C = dyn_cast<ConstantInt>(SI->getOperand(1))) { 1480 uint64_t ShiftVal = C->getZExtValue(); 1481 unsigned RHSReg = getRegForValue(SI->getOperand(0)); 1482 if (!RHSReg) 1483 return 0; 1484 bool RHSIsKill = hasTrivialKill(SI->getOperand(0)); 1485 return emitLogicalOp_rs(ISDOpc, RetVT, LHSReg, LHSIsKill, RHSReg, 1486 RHSIsKill, ShiftVal); 1487 } 1488 1489 unsigned RHSReg = getRegForValue(RHS); 1490 if (!RHSReg) 1491 return 0; 1492 bool RHSIsKill = hasTrivialKill(RHS); 1493 1494 MVT VT = std::max(MVT::i32, RetVT.SimpleTy); 1495 ResultReg = fastEmit_rr(VT, VT, ISDOpc, LHSReg, LHSIsKill, RHSReg, RHSIsKill); 1496 if (RetVT >= MVT::i8 && RetVT <= MVT::i16) { 1497 uint64_t Mask = (RetVT == MVT::i8) ? 0xff : 0xffff; 1498 ResultReg = emitAnd_ri(MVT::i32, ResultReg, /*IsKill=*/true, Mask); 1499 } 1500 return ResultReg; 1501 } 1502 1503 unsigned AArch64FastISel::emitLogicalOp_ri(unsigned ISDOpc, MVT RetVT, 1504 unsigned LHSReg, bool LHSIsKill, 1505 uint64_t Imm) { 1506 assert((ISD::AND + 1 == ISD::OR) && (ISD::AND + 2 == ISD::XOR) && 1507 "ISD nodes are not consecutive!"); 1508 static const unsigned OpcTable[3][2] = { 1509 { AArch64::ANDWri, AArch64::ANDXri }, 1510 { AArch64::ORRWri, AArch64::ORRXri }, 1511 { AArch64::EORWri, AArch64::EORXri } 1512 }; 1513 const TargetRegisterClass *RC; 1514 unsigned Opc; 1515 unsigned RegSize; 1516 switch (RetVT.SimpleTy) { 1517 default: 1518 return 0; 1519 case MVT::i1: 1520 case MVT::i8: 1521 case MVT::i16: 1522 case MVT::i32: { 1523 unsigned Idx = ISDOpc - ISD::AND; 1524 Opc = OpcTable[Idx][0]; 1525 RC = &AArch64::GPR32spRegClass; 1526 RegSize = 32; 1527 break; 1528 } 1529 case MVT::i64: 1530 Opc = OpcTable[ISDOpc - ISD::AND][1]; 1531 RC = &AArch64::GPR64spRegClass; 1532 RegSize = 64; 1533 break; 1534 } 1535 1536 if (!AArch64_AM::isLogicalImmediate(Imm, RegSize)) 1537 return 0; 1538 1539 unsigned ResultReg = 1540 fastEmitInst_ri(Opc, RC, LHSReg, LHSIsKill, 1541 AArch64_AM::encodeLogicalImmediate(Imm, RegSize)); 1542 if (RetVT >= MVT::i8 && RetVT <= MVT::i16 && ISDOpc != ISD::AND) { 1543 uint64_t Mask = (RetVT == MVT::i8) ? 0xff : 0xffff; 1544 ResultReg = emitAnd_ri(MVT::i32, ResultReg, /*IsKill=*/true, Mask); 1545 } 1546 return ResultReg; 1547 } 1548 1549 unsigned AArch64FastISel::emitLogicalOp_rs(unsigned ISDOpc, MVT RetVT, 1550 unsigned LHSReg, bool LHSIsKill, 1551 unsigned RHSReg, bool RHSIsKill, 1552 uint64_t ShiftImm) { 1553 assert((ISD::AND + 1 == ISD::OR) && (ISD::AND + 2 == ISD::XOR) && 1554 "ISD nodes are not consecutive!"); 1555 static const unsigned OpcTable[3][2] = { 1556 { AArch64::ANDWrs, AArch64::ANDXrs }, 1557 { AArch64::ORRWrs, AArch64::ORRXrs }, 1558 { AArch64::EORWrs, AArch64::EORXrs } 1559 }; 1560 const TargetRegisterClass *RC; 1561 unsigned Opc; 1562 switch (RetVT.SimpleTy) { 1563 default: 1564 return 0; 1565 case MVT::i1: 1566 case MVT::i8: 1567 case MVT::i16: 1568 case MVT::i32: 1569 Opc = OpcTable[ISDOpc - ISD::AND][0]; 1570 RC = &AArch64::GPR32RegClass; 1571 break; 1572 case MVT::i64: 1573 Opc = OpcTable[ISDOpc - ISD::AND][1]; 1574 RC = &AArch64::GPR64RegClass; 1575 break; 1576 } 1577 unsigned ResultReg = 1578 fastEmitInst_rri(Opc, RC, LHSReg, LHSIsKill, RHSReg, RHSIsKill, 1579 AArch64_AM::getShifterImm(AArch64_AM::LSL, ShiftImm)); 1580 if (RetVT >= MVT::i8 && RetVT <= MVT::i16) { 1581 uint64_t Mask = (RetVT == MVT::i8) ? 0xff : 0xffff; 1582 ResultReg = emitAnd_ri(MVT::i32, ResultReg, /*IsKill=*/true, Mask); 1583 } 1584 return ResultReg; 1585 } 1586 1587 unsigned AArch64FastISel::emitAnd_ri(MVT RetVT, unsigned LHSReg, bool LHSIsKill, 1588 uint64_t Imm) { 1589 return emitLogicalOp_ri(ISD::AND, RetVT, LHSReg, LHSIsKill, Imm); 1590 } 1591 1592 bool AArch64FastISel::emitLoad(MVT VT, unsigned &ResultReg, Address Addr, 1593 bool WantZExt, MachineMemOperand *MMO) { 1594 // Simplify this down to something we can handle. 1595 if (!simplifyAddress(Addr, VT)) 1596 return false; 1597 1598 unsigned ScaleFactor = getImplicitScaleFactor(VT); 1599 if (!ScaleFactor) 1600 llvm_unreachable("Unexpected value type."); 1601 1602 // Negative offsets require unscaled, 9-bit, signed immediate offsets. 1603 // Otherwise, we try using scaled, 12-bit, unsigned immediate offsets. 1604 bool UseScaled = true; 1605 if ((Addr.getOffset() < 0) || (Addr.getOffset() & (ScaleFactor - 1))) { 1606 UseScaled = false; 1607 ScaleFactor = 1; 1608 } 1609 1610 static const unsigned GPOpcTable[2][4][4] = { 1611 // Sign-extend. 1612 { { AArch64::LDURSBWi, AArch64::LDURSHWi, AArch64::LDURSWi, 1613 AArch64::LDURXi }, 1614 { AArch64::LDRSBWui, AArch64::LDRSHWui, AArch64::LDRSWui, 1615 AArch64::LDRXui }, 1616 { AArch64::LDRSBWroX, AArch64::LDRSHWroX, AArch64::LDRSWroX, 1617 AArch64::LDRXroX }, 1618 { AArch64::LDRSBWroW, AArch64::LDRSHWroW, AArch64::LDRSWroW, 1619 AArch64::LDRXroW }, 1620 }, 1621 // Zero-extend. 1622 { { AArch64::LDURBBi, AArch64::LDURHHi, AArch64::LDURWi, 1623 AArch64::LDURXi }, 1624 { AArch64::LDRBBui, AArch64::LDRHHui, AArch64::LDRWui, 1625 AArch64::LDRXui }, 1626 { AArch64::LDRBBroX, AArch64::LDRHHroX, AArch64::LDRWroX, 1627 AArch64::LDRXroX }, 1628 { AArch64::LDRBBroW, AArch64::LDRHHroW, AArch64::LDRWroW, 1629 AArch64::LDRXroW } 1630 } 1631 }; 1632 1633 static const unsigned FPOpcTable[4][2] = { 1634 { AArch64::LDURSi, AArch64::LDURDi }, 1635 { AArch64::LDRSui, AArch64::LDRDui }, 1636 { AArch64::LDRSroX, AArch64::LDRDroX }, 1637 { AArch64::LDRSroW, AArch64::LDRDroW } 1638 }; 1639 1640 unsigned Opc; 1641 const TargetRegisterClass *RC; 1642 bool UseRegOffset = Addr.isRegBase() && !Addr.getOffset() && Addr.getReg() && 1643 Addr.getOffsetReg(); 1644 unsigned Idx = UseRegOffset ? 2 : UseScaled ? 1 : 0; 1645 if (Addr.getExtendType() == AArch64_AM::UXTW || 1646 Addr.getExtendType() == AArch64_AM::SXTW) 1647 Idx++; 1648 1649 switch (VT.SimpleTy) { 1650 default: 1651 llvm_unreachable("Unexpected value type."); 1652 case MVT::i1: // Intentional fall-through. 1653 case MVT::i8: 1654 Opc = GPOpcTable[WantZExt][Idx][0]; 1655 RC = &AArch64::GPR32RegClass; 1656 break; 1657 case MVT::i16: 1658 Opc = GPOpcTable[WantZExt][Idx][1]; 1659 RC = &AArch64::GPR32RegClass; 1660 break; 1661 case MVT::i32: 1662 Opc = GPOpcTable[WantZExt][Idx][2]; 1663 RC = WantZExt ? &AArch64::GPR32RegClass : &AArch64::GPR64RegClass; 1664 break; 1665 case MVT::i64: 1666 Opc = GPOpcTable[WantZExt][Idx][3]; 1667 RC = &AArch64::GPR64RegClass; 1668 break; 1669 case MVT::f32: 1670 Opc = FPOpcTable[Idx][0]; 1671 RC = &AArch64::FPR32RegClass; 1672 break; 1673 case MVT::f64: 1674 Opc = FPOpcTable[Idx][1]; 1675 RC = &AArch64::FPR64RegClass; 1676 break; 1677 } 1678 1679 // Create the base instruction, then add the operands. 1680 ResultReg = createResultReg(RC); 1681 MachineInstrBuilder MIB = BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, 1682 TII.get(Opc), ResultReg); 1683 addLoadStoreOperands(Addr, MIB, MachineMemOperand::MOLoad, ScaleFactor, MMO); 1684 1685 // For 32bit loads we do sign-extending loads to 64bit and then extract the 1686 // subreg. In the end this is just a NOOP. 1687 if (VT == MVT::i32 && !WantZExt) 1688 ResultReg = fastEmitInst_extractsubreg(MVT::i32, ResultReg, /*IsKill=*/true, 1689 AArch64::sub_32); 1690 1691 // Loading an i1 requires special handling. 1692 if (VT == MVT::i1) { 1693 unsigned ANDReg = emitAnd_ri(MVT::i32, ResultReg, /*IsKill=*/true, 1); 1694 assert(ANDReg && "Unexpected AND instruction emission failure."); 1695 ResultReg = ANDReg; 1696 } 1697 return true; 1698 } 1699 1700 bool AArch64FastISel::selectAddSub(const Instruction *I) { 1701 MVT VT; 1702 if (!isTypeSupported(I->getType(), VT, /*IsVectorAllowed=*/true)) 1703 return false; 1704 1705 if (VT.isVector()) 1706 return selectOperator(I, I->getOpcode()); 1707 1708 unsigned ResultReg; 1709 switch (I->getOpcode()) { 1710 default: 1711 llvm_unreachable("Unexpected instruction."); 1712 case Instruction::Add: 1713 ResultReg = emitAdd(VT, I->getOperand(0), I->getOperand(1)); 1714 break; 1715 case Instruction::Sub: 1716 ResultReg = emitSub(VT, I->getOperand(0), I->getOperand(1)); 1717 break; 1718 } 1719 if (!ResultReg) 1720 return false; 1721 1722 updateValueMap(I, ResultReg); 1723 return true; 1724 } 1725 1726 bool AArch64FastISel::selectLogicalOp(const Instruction *I) { 1727 MVT VT; 1728 if (!isTypeSupported(I->getType(), VT, /*IsVectorAllowed=*/true)) 1729 return false; 1730 1731 if (VT.isVector()) 1732 return selectOperator(I, I->getOpcode()); 1733 1734 unsigned ResultReg; 1735 switch (I->getOpcode()) { 1736 default: 1737 llvm_unreachable("Unexpected instruction."); 1738 case Instruction::And: 1739 ResultReg = emitLogicalOp(ISD::AND, VT, I->getOperand(0), I->getOperand(1)); 1740 break; 1741 case Instruction::Or: 1742 ResultReg = emitLogicalOp(ISD::OR, VT, I->getOperand(0), I->getOperand(1)); 1743 break; 1744 case Instruction::Xor: 1745 ResultReg = emitLogicalOp(ISD::XOR, VT, I->getOperand(0), I->getOperand(1)); 1746 break; 1747 } 1748 if (!ResultReg) 1749 return false; 1750 1751 updateValueMap(I, ResultReg); 1752 return true; 1753 } 1754 1755 bool AArch64FastISel::selectLoad(const Instruction *I) { 1756 MVT VT; 1757 // Verify we have a legal type before going any further. Currently, we handle 1758 // simple types that will directly fit in a register (i32/f32/i64/f64) or 1759 // those that can be sign or zero-extended to a basic operation (i1/i8/i16). 1760 if (!isTypeSupported(I->getType(), VT, /*IsVectorAllowed=*/true) || 1761 cast<LoadInst>(I)->isAtomic()) 1762 return false; 1763 1764 // See if we can handle this address. 1765 Address Addr; 1766 if (!computeAddress(I->getOperand(0), Addr, I->getType())) 1767 return false; 1768 1769 bool WantZExt = true; 1770 if (I->hasOneUse() && isa<SExtInst>(I->use_begin()->getUser())) 1771 WantZExt = false; 1772 1773 unsigned ResultReg; 1774 if (!emitLoad(VT, ResultReg, Addr, WantZExt, createMachineMemOperandFor(I))) 1775 return false; 1776 1777 updateValueMap(I, ResultReg); 1778 return true; 1779 } 1780 1781 bool AArch64FastISel::emitStore(MVT VT, unsigned SrcReg, Address Addr, 1782 MachineMemOperand *MMO) { 1783 // Simplify this down to something we can handle. 1784 if (!simplifyAddress(Addr, VT)) 1785 return false; 1786 1787 unsigned ScaleFactor = getImplicitScaleFactor(VT); 1788 if (!ScaleFactor) 1789 llvm_unreachable("Unexpected value type."); 1790 1791 // Negative offsets require unscaled, 9-bit, signed immediate offsets. 1792 // Otherwise, we try using scaled, 12-bit, unsigned immediate offsets. 1793 bool UseScaled = true; 1794 if ((Addr.getOffset() < 0) || (Addr.getOffset() & (ScaleFactor - 1))) { 1795 UseScaled = false; 1796 ScaleFactor = 1; 1797 } 1798 1799 static const unsigned OpcTable[4][6] = { 1800 { AArch64::STURBBi, AArch64::STURHHi, AArch64::STURWi, AArch64::STURXi, 1801 AArch64::STURSi, AArch64::STURDi }, 1802 { AArch64::STRBBui, AArch64::STRHHui, AArch64::STRWui, AArch64::STRXui, 1803 AArch64::STRSui, AArch64::STRDui }, 1804 { AArch64::STRBBroX, AArch64::STRHHroX, AArch64::STRWroX, AArch64::STRXroX, 1805 AArch64::STRSroX, AArch64::STRDroX }, 1806 { AArch64::STRBBroW, AArch64::STRHHroW, AArch64::STRWroW, AArch64::STRXroW, 1807 AArch64::STRSroW, AArch64::STRDroW } 1808 }; 1809 1810 unsigned Opc; 1811 bool VTIsi1 = false; 1812 bool UseRegOffset = Addr.isRegBase() && !Addr.getOffset() && Addr.getReg() && 1813 Addr.getOffsetReg(); 1814 unsigned Idx = UseRegOffset ? 2 : UseScaled ? 1 : 0; 1815 if (Addr.getExtendType() == AArch64_AM::UXTW || 1816 Addr.getExtendType() == AArch64_AM::SXTW) 1817 Idx++; 1818 1819 switch (VT.SimpleTy) { 1820 default: llvm_unreachable("Unexpected value type."); 1821 case MVT::i1: VTIsi1 = true; 1822 case MVT::i8: Opc = OpcTable[Idx][0]; break; 1823 case MVT::i16: Opc = OpcTable[Idx][1]; break; 1824 case MVT::i32: Opc = OpcTable[Idx][2]; break; 1825 case MVT::i64: Opc = OpcTable[Idx][3]; break; 1826 case MVT::f32: Opc = OpcTable[Idx][4]; break; 1827 case MVT::f64: Opc = OpcTable[Idx][5]; break; 1828 } 1829 1830 // Storing an i1 requires special handling. 1831 if (VTIsi1 && SrcReg != AArch64::WZR) { 1832 unsigned ANDReg = emitAnd_ri(MVT::i32, SrcReg, /*TODO:IsKill=*/false, 1); 1833 assert(ANDReg && "Unexpected AND instruction emission failure."); 1834 SrcReg = ANDReg; 1835 } 1836 // Create the base instruction, then add the operands. 1837 const MCInstrDesc &II = TII.get(Opc); 1838 SrcReg = constrainOperandRegClass(II, SrcReg, II.getNumDefs()); 1839 MachineInstrBuilder MIB = 1840 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, II).addReg(SrcReg); 1841 addLoadStoreOperands(Addr, MIB, MachineMemOperand::MOStore, ScaleFactor, MMO); 1842 1843 return true; 1844 } 1845 1846 bool AArch64FastISel::selectStore(const Instruction *I) { 1847 MVT VT; 1848 const Value *Op0 = I->getOperand(0); 1849 // Verify we have a legal type before going any further. Currently, we handle 1850 // simple types that will directly fit in a register (i32/f32/i64/f64) or 1851 // those that can be sign or zero-extended to a basic operation (i1/i8/i16). 1852 if (!isTypeSupported(Op0->getType(), VT, /*IsVectorAllowed=*/true) || 1853 cast<StoreInst>(I)->isAtomic()) 1854 return false; 1855 1856 // Get the value to be stored into a register. Use the zero register directly 1857 // when possible to avoid an unnecessary copy and a wasted register. 1858 unsigned SrcReg = 0; 1859 if (const auto *CI = dyn_cast<ConstantInt>(Op0)) { 1860 if (CI->isZero()) 1861 SrcReg = (VT == MVT::i64) ? AArch64::XZR : AArch64::WZR; 1862 } else if (const auto *CF = dyn_cast<ConstantFP>(Op0)) { 1863 if (CF->isZero() && !CF->isNegative()) { 1864 VT = MVT::getIntegerVT(VT.getSizeInBits()); 1865 SrcReg = (VT == MVT::i64) ? AArch64::XZR : AArch64::WZR; 1866 } 1867 } 1868 1869 if (!SrcReg) 1870 SrcReg = getRegForValue(Op0); 1871 1872 if (!SrcReg) 1873 return false; 1874 1875 // See if we can handle this address. 1876 Address Addr; 1877 if (!computeAddress(I->getOperand(1), Addr, I->getOperand(0)->getType())) 1878 return false; 1879 1880 if (!emitStore(VT, SrcReg, Addr, createMachineMemOperandFor(I))) 1881 return false; 1882 return true; 1883 } 1884 1885 static AArch64CC::CondCode getCompareCC(CmpInst::Predicate Pred) { 1886 switch (Pred) { 1887 case CmpInst::FCMP_ONE: 1888 case CmpInst::FCMP_UEQ: 1889 default: 1890 // AL is our "false" for now. The other two need more compares. 1891 return AArch64CC::AL; 1892 case CmpInst::ICMP_EQ: 1893 case CmpInst::FCMP_OEQ: 1894 return AArch64CC::EQ; 1895 case CmpInst::ICMP_SGT: 1896 case CmpInst::FCMP_OGT: 1897 return AArch64CC::GT; 1898 case CmpInst::ICMP_SGE: 1899 case CmpInst::FCMP_OGE: 1900 return AArch64CC::GE; 1901 case CmpInst::ICMP_UGT: 1902 case CmpInst::FCMP_UGT: 1903 return AArch64CC::HI; 1904 case CmpInst::FCMP_OLT: 1905 return AArch64CC::MI; 1906 case CmpInst::ICMP_ULE: 1907 case CmpInst::FCMP_OLE: 1908 return AArch64CC::LS; 1909 case CmpInst::FCMP_ORD: 1910 return AArch64CC::VC; 1911 case CmpInst::FCMP_UNO: 1912 return AArch64CC::VS; 1913 case CmpInst::FCMP_UGE: 1914 return AArch64CC::PL; 1915 case CmpInst::ICMP_SLT: 1916 case CmpInst::FCMP_ULT: 1917 return AArch64CC::LT; 1918 case CmpInst::ICMP_SLE: 1919 case CmpInst::FCMP_ULE: 1920 return AArch64CC::LE; 1921 case CmpInst::FCMP_UNE: 1922 case CmpInst::ICMP_NE: 1923 return AArch64CC::NE; 1924 case CmpInst::ICMP_UGE: 1925 return AArch64CC::HS; 1926 case CmpInst::ICMP_ULT: 1927 return AArch64CC::LO; 1928 } 1929 } 1930 1931 /// \brief Try to emit a combined compare-and-branch instruction. 1932 bool AArch64FastISel::emitCompareAndBranch(const BranchInst *BI) { 1933 assert(isa<CmpInst>(BI->getCondition()) && "Expected cmp instruction"); 1934 const CmpInst *CI = cast<CmpInst>(BI->getCondition()); 1935 CmpInst::Predicate Predicate = optimizeCmpPredicate(CI); 1936 1937 const Value *LHS = CI->getOperand(0); 1938 const Value *RHS = CI->getOperand(1); 1939 1940 Type *Ty = LHS->getType(); 1941 if (!Ty->isIntegerTy()) 1942 return false; 1943 1944 unsigned BW = cast<IntegerType>(Ty)->getBitWidth(); 1945 if (BW != 1 && BW != 8 && BW != 16 && BW != 32 && BW != 64) 1946 return false; 1947 1948 MachineBasicBlock *TBB = FuncInfo.MBBMap[BI->getSuccessor(0)]; 1949 MachineBasicBlock *FBB = FuncInfo.MBBMap[BI->getSuccessor(1)]; 1950 1951 // Try to take advantage of fallthrough opportunities. 1952 if (FuncInfo.MBB->isLayoutSuccessor(TBB)) { 1953 std::swap(TBB, FBB); 1954 Predicate = CmpInst::getInversePredicate(Predicate); 1955 } 1956 1957 int TestBit = -1; 1958 bool IsCmpNE; 1959 if ((Predicate == CmpInst::ICMP_EQ) || (Predicate == CmpInst::ICMP_NE)) { 1960 if (const auto *C = dyn_cast<ConstantInt>(LHS)) 1961 if (C->isNullValue()) 1962 std::swap(LHS, RHS); 1963 1964 if (!isa<ConstantInt>(RHS)) 1965 return false; 1966 1967 if (!cast<ConstantInt>(RHS)->isNullValue()) 1968 return false; 1969 1970 if (const auto *AI = dyn_cast<BinaryOperator>(LHS)) 1971 if (AI->getOpcode() == Instruction::And) { 1972 const Value *AndLHS = AI->getOperand(0); 1973 const Value *AndRHS = AI->getOperand(1); 1974 1975 if (const auto *C = dyn_cast<ConstantInt>(AndLHS)) 1976 if (C->getValue().isPowerOf2()) 1977 std::swap(AndLHS, AndRHS); 1978 1979 if (const auto *C = dyn_cast<ConstantInt>(AndRHS)) 1980 if (C->getValue().isPowerOf2()) { 1981 TestBit = C->getValue().logBase2(); 1982 LHS = AndLHS; 1983 } 1984 } 1985 IsCmpNE = Predicate == CmpInst::ICMP_NE; 1986 } else if (Predicate == CmpInst::ICMP_SLT) { 1987 if (!isa<ConstantInt>(RHS)) 1988 return false; 1989 1990 if (!cast<ConstantInt>(RHS)->isNullValue()) 1991 return false; 1992 1993 TestBit = BW - 1; 1994 IsCmpNE = true; 1995 } else if (Predicate == CmpInst::ICMP_SGT) { 1996 if (!isa<ConstantInt>(RHS)) 1997 return false; 1998 1999 if (cast<ConstantInt>(RHS)->getValue() != -1) 2000 return false; 2001 2002 TestBit = BW - 1; 2003 IsCmpNE = false; 2004 } else 2005 return false; 2006 2007 static const unsigned OpcTable[2][2][2] = { 2008 { {AArch64::CBZW, AArch64::CBZX }, 2009 {AArch64::CBNZW, AArch64::CBNZX} }, 2010 { {AArch64::TBZW, AArch64::TBZX }, 2011 {AArch64::TBNZW, AArch64::TBNZX} } 2012 }; 2013 2014 bool IsBitTest = TestBit != -1; 2015 bool Is64Bit = BW == 64; 2016 if (TestBit < 32 && TestBit >= 0) 2017 Is64Bit = false; 2018 2019 unsigned Opc = OpcTable[IsBitTest][IsCmpNE][Is64Bit]; 2020 const MCInstrDesc &II = TII.get(Opc); 2021 2022 unsigned SrcReg = getRegForValue(LHS); 2023 if (!SrcReg) 2024 return false; 2025 bool SrcIsKill = hasTrivialKill(LHS); 2026 2027 if (BW == 64 && !Is64Bit) { 2028 SrcReg = fastEmitInst_extractsubreg(MVT::i32, SrcReg, SrcIsKill, 2029 AArch64::sub_32); 2030 SrcReg = constrainOperandRegClass(II, SrcReg, II.getNumDefs()); 2031 } 2032 2033 // Emit the combined compare and branch instruction. 2034 MachineInstrBuilder MIB = 2035 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, TII.get(Opc)) 2036 .addReg(SrcReg, getKillRegState(SrcIsKill)); 2037 if (IsBitTest) 2038 MIB.addImm(TestBit); 2039 MIB.addMBB(TBB); 2040 2041 // Obtain the branch weight and add the TrueBB to the successor list. 2042 uint32_t BranchWeight = 0; 2043 if (FuncInfo.BPI) 2044 BranchWeight = FuncInfo.BPI->getEdgeWeight(BI->getParent(), 2045 TBB->getBasicBlock()); 2046 FuncInfo.MBB->addSuccessor(TBB, BranchWeight); 2047 fastEmitBranch(FBB, DbgLoc); 2048 2049 return true; 2050 } 2051 2052 bool AArch64FastISel::selectBranch(const Instruction *I) { 2053 const BranchInst *BI = cast<BranchInst>(I); 2054 if (BI->isUnconditional()) { 2055 MachineBasicBlock *MSucc = FuncInfo.MBBMap[BI->getSuccessor(0)]; 2056 fastEmitBranch(MSucc, BI->getDebugLoc()); 2057 return true; 2058 } 2059 2060 MachineBasicBlock *TBB = FuncInfo.MBBMap[BI->getSuccessor(0)]; 2061 MachineBasicBlock *FBB = FuncInfo.MBBMap[BI->getSuccessor(1)]; 2062 2063 AArch64CC::CondCode CC = AArch64CC::NE; 2064 if (const CmpInst *CI = dyn_cast<CmpInst>(BI->getCondition())) { 2065 if (CI->hasOneUse() && isValueAvailable(CI)) { 2066 // Try to optimize or fold the cmp. 2067 CmpInst::Predicate Predicate = optimizeCmpPredicate(CI); 2068 switch (Predicate) { 2069 default: 2070 break; 2071 case CmpInst::FCMP_FALSE: 2072 fastEmitBranch(FBB, DbgLoc); 2073 return true; 2074 case CmpInst::FCMP_TRUE: 2075 fastEmitBranch(TBB, DbgLoc); 2076 return true; 2077 } 2078 2079 // Try to emit a combined compare-and-branch first. 2080 if (emitCompareAndBranch(BI)) 2081 return true; 2082 2083 // Try to take advantage of fallthrough opportunities. 2084 if (FuncInfo.MBB->isLayoutSuccessor(TBB)) { 2085 std::swap(TBB, FBB); 2086 Predicate = CmpInst::getInversePredicate(Predicate); 2087 } 2088 2089 // Emit the cmp. 2090 if (!emitCmp(CI->getOperand(0), CI->getOperand(1), CI->isUnsigned())) 2091 return false; 2092 2093 // FCMP_UEQ and FCMP_ONE cannot be checked with a single branch 2094 // instruction. 2095 CC = getCompareCC(Predicate); 2096 AArch64CC::CondCode ExtraCC = AArch64CC::AL; 2097 switch (Predicate) { 2098 default: 2099 break; 2100 case CmpInst::FCMP_UEQ: 2101 ExtraCC = AArch64CC::EQ; 2102 CC = AArch64CC::VS; 2103 break; 2104 case CmpInst::FCMP_ONE: 2105 ExtraCC = AArch64CC::MI; 2106 CC = AArch64CC::GT; 2107 break; 2108 } 2109 assert((CC != AArch64CC::AL) && "Unexpected condition code."); 2110 2111 // Emit the extra branch for FCMP_UEQ and FCMP_ONE. 2112 if (ExtraCC != AArch64CC::AL) { 2113 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, TII.get(AArch64::Bcc)) 2114 .addImm(ExtraCC) 2115 .addMBB(TBB); 2116 } 2117 2118 // Emit the branch. 2119 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, TII.get(AArch64::Bcc)) 2120 .addImm(CC) 2121 .addMBB(TBB); 2122 2123 // Obtain the branch weight and add the TrueBB to the successor list. 2124 uint32_t BranchWeight = 0; 2125 if (FuncInfo.BPI) 2126 BranchWeight = FuncInfo.BPI->getEdgeWeight(BI->getParent(), 2127 TBB->getBasicBlock()); 2128 FuncInfo.MBB->addSuccessor(TBB, BranchWeight); 2129 2130 fastEmitBranch(FBB, DbgLoc); 2131 return true; 2132 } 2133 } else if (TruncInst *TI = dyn_cast<TruncInst>(BI->getCondition())) { 2134 MVT SrcVT; 2135 if (TI->hasOneUse() && isValueAvailable(TI) && 2136 isTypeSupported(TI->getOperand(0)->getType(), SrcVT)) { 2137 unsigned CondReg = getRegForValue(TI->getOperand(0)); 2138 if (!CondReg) 2139 return false; 2140 bool CondIsKill = hasTrivialKill(TI->getOperand(0)); 2141 2142 // Issue an extract_subreg to get the lower 32-bits. 2143 if (SrcVT == MVT::i64) { 2144 CondReg = fastEmitInst_extractsubreg(MVT::i32, CondReg, CondIsKill, 2145 AArch64::sub_32); 2146 CondIsKill = true; 2147 } 2148 2149 unsigned ANDReg = emitAnd_ri(MVT::i32, CondReg, CondIsKill, 1); 2150 assert(ANDReg && "Unexpected AND instruction emission failure."); 2151 emitICmp_ri(MVT::i32, ANDReg, /*IsKill=*/true, 0); 2152 2153 if (FuncInfo.MBB->isLayoutSuccessor(TBB)) { 2154 std::swap(TBB, FBB); 2155 CC = AArch64CC::EQ; 2156 } 2157 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, TII.get(AArch64::Bcc)) 2158 .addImm(CC) 2159 .addMBB(TBB); 2160 2161 // Obtain the branch weight and add the TrueBB to the successor list. 2162 uint32_t BranchWeight = 0; 2163 if (FuncInfo.BPI) 2164 BranchWeight = FuncInfo.BPI->getEdgeWeight(BI->getParent(), 2165 TBB->getBasicBlock()); 2166 FuncInfo.MBB->addSuccessor(TBB, BranchWeight); 2167 2168 fastEmitBranch(FBB, DbgLoc); 2169 return true; 2170 } 2171 } else if (const auto *CI = dyn_cast<ConstantInt>(BI->getCondition())) { 2172 uint64_t Imm = CI->getZExtValue(); 2173 MachineBasicBlock *Target = (Imm == 0) ? FBB : TBB; 2174 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, TII.get(AArch64::B)) 2175 .addMBB(Target); 2176 2177 // Obtain the branch weight and add the target to the successor list. 2178 uint32_t BranchWeight = 0; 2179 if (FuncInfo.BPI) 2180 BranchWeight = FuncInfo.BPI->getEdgeWeight(BI->getParent(), 2181 Target->getBasicBlock()); 2182 FuncInfo.MBB->addSuccessor(Target, BranchWeight); 2183 return true; 2184 } else if (foldXALUIntrinsic(CC, I, BI->getCondition())) { 2185 // Fake request the condition, otherwise the intrinsic might be completely 2186 // optimized away. 2187 unsigned CondReg = getRegForValue(BI->getCondition()); 2188 if (!CondReg) 2189 return false; 2190 2191 // Emit the branch. 2192 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, TII.get(AArch64::Bcc)) 2193 .addImm(CC) 2194 .addMBB(TBB); 2195 2196 // Obtain the branch weight and add the TrueBB to the successor list. 2197 uint32_t BranchWeight = 0; 2198 if (FuncInfo.BPI) 2199 BranchWeight = FuncInfo.BPI->getEdgeWeight(BI->getParent(), 2200 TBB->getBasicBlock()); 2201 FuncInfo.MBB->addSuccessor(TBB, BranchWeight); 2202 2203 fastEmitBranch(FBB, DbgLoc); 2204 return true; 2205 } 2206 2207 unsigned CondReg = getRegForValue(BI->getCondition()); 2208 if (CondReg == 0) 2209 return false; 2210 bool CondRegIsKill = hasTrivialKill(BI->getCondition()); 2211 2212 // We've been divorced from our compare! Our block was split, and 2213 // now our compare lives in a predecessor block. We musn't 2214 // re-compare here, as the children of the compare aren't guaranteed 2215 // live across the block boundary (we *could* check for this). 2216 // Regardless, the compare has been done in the predecessor block, 2217 // and it left a value for us in a virtual register. Ergo, we test 2218 // the one-bit value left in the virtual register. 2219 emitICmp_ri(MVT::i32, CondReg, CondRegIsKill, 0); 2220 2221 if (FuncInfo.MBB->isLayoutSuccessor(TBB)) { 2222 std::swap(TBB, FBB); 2223 CC = AArch64CC::EQ; 2224 } 2225 2226 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, TII.get(AArch64::Bcc)) 2227 .addImm(CC) 2228 .addMBB(TBB); 2229 2230 // Obtain the branch weight and add the TrueBB to the successor list. 2231 uint32_t BranchWeight = 0; 2232 if (FuncInfo.BPI) 2233 BranchWeight = FuncInfo.BPI->getEdgeWeight(BI->getParent(), 2234 TBB->getBasicBlock()); 2235 FuncInfo.MBB->addSuccessor(TBB, BranchWeight); 2236 2237 fastEmitBranch(FBB, DbgLoc); 2238 return true; 2239 } 2240 2241 bool AArch64FastISel::selectIndirectBr(const Instruction *I) { 2242 const IndirectBrInst *BI = cast<IndirectBrInst>(I); 2243 unsigned AddrReg = getRegForValue(BI->getOperand(0)); 2244 if (AddrReg == 0) 2245 return false; 2246 2247 // Emit the indirect branch. 2248 const MCInstrDesc &II = TII.get(AArch64::BR); 2249 AddrReg = constrainOperandRegClass(II, AddrReg, II.getNumDefs()); 2250 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, II).addReg(AddrReg); 2251 2252 // Make sure the CFG is up-to-date. 2253 for (unsigned i = 0, e = BI->getNumSuccessors(); i != e; ++i) 2254 FuncInfo.MBB->addSuccessor(FuncInfo.MBBMap[BI->getSuccessor(i)]); 2255 2256 return true; 2257 } 2258 2259 bool AArch64FastISel::selectCmp(const Instruction *I) { 2260 const CmpInst *CI = cast<CmpInst>(I); 2261 2262 // Try to optimize or fold the cmp. 2263 CmpInst::Predicate Predicate = optimizeCmpPredicate(CI); 2264 unsigned ResultReg = 0; 2265 switch (Predicate) { 2266 default: 2267 break; 2268 case CmpInst::FCMP_FALSE: 2269 ResultReg = createResultReg(&AArch64::GPR32RegClass); 2270 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, 2271 TII.get(TargetOpcode::COPY), ResultReg) 2272 .addReg(AArch64::WZR, getKillRegState(true)); 2273 break; 2274 case CmpInst::FCMP_TRUE: 2275 ResultReg = fastEmit_i(MVT::i32, MVT::i32, ISD::Constant, 1); 2276 break; 2277 } 2278 2279 if (ResultReg) { 2280 updateValueMap(I, ResultReg); 2281 return true; 2282 } 2283 2284 // Emit the cmp. 2285 if (!emitCmp(CI->getOperand(0), CI->getOperand(1), CI->isUnsigned())) 2286 return false; 2287 2288 ResultReg = createResultReg(&AArch64::GPR32RegClass); 2289 2290 // FCMP_UEQ and FCMP_ONE cannot be checked with a single instruction. These 2291 // condition codes are inverted, because they are used by CSINC. 2292 static unsigned CondCodeTable[2][2] = { 2293 { AArch64CC::NE, AArch64CC::VC }, 2294 { AArch64CC::PL, AArch64CC::LE } 2295 }; 2296 unsigned *CondCodes = nullptr; 2297 switch (Predicate) { 2298 default: 2299 break; 2300 case CmpInst::FCMP_UEQ: 2301 CondCodes = &CondCodeTable[0][0]; 2302 break; 2303 case CmpInst::FCMP_ONE: 2304 CondCodes = &CondCodeTable[1][0]; 2305 break; 2306 } 2307 2308 if (CondCodes) { 2309 unsigned TmpReg1 = createResultReg(&AArch64::GPR32RegClass); 2310 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, TII.get(AArch64::CSINCWr), 2311 TmpReg1) 2312 .addReg(AArch64::WZR, getKillRegState(true)) 2313 .addReg(AArch64::WZR, getKillRegState(true)) 2314 .addImm(CondCodes[0]); 2315 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, TII.get(AArch64::CSINCWr), 2316 ResultReg) 2317 .addReg(TmpReg1, getKillRegState(true)) 2318 .addReg(AArch64::WZR, getKillRegState(true)) 2319 .addImm(CondCodes[1]); 2320 2321 updateValueMap(I, ResultReg); 2322 return true; 2323 } 2324 2325 // Now set a register based on the comparison. 2326 AArch64CC::CondCode CC = getCompareCC(Predicate); 2327 assert((CC != AArch64CC::AL) && "Unexpected condition code."); 2328 AArch64CC::CondCode invertedCC = getInvertedCondCode(CC); 2329 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, TII.get(AArch64::CSINCWr), 2330 ResultReg) 2331 .addReg(AArch64::WZR, getKillRegState(true)) 2332 .addReg(AArch64::WZR, getKillRegState(true)) 2333 .addImm(invertedCC); 2334 2335 updateValueMap(I, ResultReg); 2336 return true; 2337 } 2338 2339 bool AArch64FastISel::selectSelect(const Instruction *I) { 2340 const SelectInst *SI = cast<SelectInst>(I); 2341 2342 EVT DestEVT = TLI.getValueType(SI->getType(), true); 2343 if (!DestEVT.isSimple()) 2344 return false; 2345 2346 MVT DestVT = DestEVT.getSimpleVT(); 2347 if (DestVT != MVT::i32 && DestVT != MVT::i64 && DestVT != MVT::f32 && 2348 DestVT != MVT::f64) 2349 return false; 2350 2351 unsigned SelectOpc; 2352 const TargetRegisterClass *RC = nullptr; 2353 switch (DestVT.SimpleTy) { 2354 default: return false; 2355 case MVT::i32: 2356 SelectOpc = AArch64::CSELWr; RC = &AArch64::GPR32RegClass; break; 2357 case MVT::i64: 2358 SelectOpc = AArch64::CSELXr; RC = &AArch64::GPR64RegClass; break; 2359 case MVT::f32: 2360 SelectOpc = AArch64::FCSELSrrr; RC = &AArch64::FPR32RegClass; break; 2361 case MVT::f64: 2362 SelectOpc = AArch64::FCSELDrrr; RC = &AArch64::FPR64RegClass; break; 2363 } 2364 2365 const Value *Cond = SI->getCondition(); 2366 bool NeedTest = true; 2367 AArch64CC::CondCode CC = AArch64CC::NE; 2368 if (foldXALUIntrinsic(CC, I, Cond)) 2369 NeedTest = false; 2370 2371 unsigned CondReg = getRegForValue(Cond); 2372 if (!CondReg) 2373 return false; 2374 bool CondIsKill = hasTrivialKill(Cond); 2375 2376 if (NeedTest) { 2377 unsigned ANDReg = emitAnd_ri(MVT::i32, CondReg, CondIsKill, 1); 2378 assert(ANDReg && "Unexpected AND instruction emission failure."); 2379 emitICmp_ri(MVT::i32, ANDReg, /*IsKill=*/true, 0); 2380 } 2381 2382 unsigned TrueReg = getRegForValue(SI->getTrueValue()); 2383 bool TrueIsKill = hasTrivialKill(SI->getTrueValue()); 2384 2385 unsigned FalseReg = getRegForValue(SI->getFalseValue()); 2386 bool FalseIsKill = hasTrivialKill(SI->getFalseValue()); 2387 2388 if (!TrueReg || !FalseReg) 2389 return false; 2390 2391 unsigned ResultReg = fastEmitInst_rri(SelectOpc, RC, TrueReg, TrueIsKill, 2392 FalseReg, FalseIsKill, CC); 2393 updateValueMap(I, ResultReg); 2394 return true; 2395 } 2396 2397 bool AArch64FastISel::selectFPExt(const Instruction *I) { 2398 Value *V = I->getOperand(0); 2399 if (!I->getType()->isDoubleTy() || !V->getType()->isFloatTy()) 2400 return false; 2401 2402 unsigned Op = getRegForValue(V); 2403 if (Op == 0) 2404 return false; 2405 2406 unsigned ResultReg = createResultReg(&AArch64::FPR64RegClass); 2407 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, TII.get(AArch64::FCVTDSr), 2408 ResultReg).addReg(Op); 2409 updateValueMap(I, ResultReg); 2410 return true; 2411 } 2412 2413 bool AArch64FastISel::selectFPTrunc(const Instruction *I) { 2414 Value *V = I->getOperand(0); 2415 if (!I->getType()->isFloatTy() || !V->getType()->isDoubleTy()) 2416 return false; 2417 2418 unsigned Op = getRegForValue(V); 2419 if (Op == 0) 2420 return false; 2421 2422 unsigned ResultReg = createResultReg(&AArch64::FPR32RegClass); 2423 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, TII.get(AArch64::FCVTSDr), 2424 ResultReg).addReg(Op); 2425 updateValueMap(I, ResultReg); 2426 return true; 2427 } 2428 2429 // FPToUI and FPToSI 2430 bool AArch64FastISel::selectFPToInt(const Instruction *I, bool Signed) { 2431 MVT DestVT; 2432 if (!isTypeLegal(I->getType(), DestVT) || DestVT.isVector()) 2433 return false; 2434 2435 unsigned SrcReg = getRegForValue(I->getOperand(0)); 2436 if (SrcReg == 0) 2437 return false; 2438 2439 EVT SrcVT = TLI.getValueType(I->getOperand(0)->getType(), true); 2440 if (SrcVT == MVT::f128) 2441 return false; 2442 2443 unsigned Opc; 2444 if (SrcVT == MVT::f64) { 2445 if (Signed) 2446 Opc = (DestVT == MVT::i32) ? AArch64::FCVTZSUWDr : AArch64::FCVTZSUXDr; 2447 else 2448 Opc = (DestVT == MVT::i32) ? AArch64::FCVTZUUWDr : AArch64::FCVTZUUXDr; 2449 } else { 2450 if (Signed) 2451 Opc = (DestVT == MVT::i32) ? AArch64::FCVTZSUWSr : AArch64::FCVTZSUXSr; 2452 else 2453 Opc = (DestVT == MVT::i32) ? AArch64::FCVTZUUWSr : AArch64::FCVTZUUXSr; 2454 } 2455 unsigned ResultReg = createResultReg( 2456 DestVT == MVT::i32 ? &AArch64::GPR32RegClass : &AArch64::GPR64RegClass); 2457 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, TII.get(Opc), ResultReg) 2458 .addReg(SrcReg); 2459 updateValueMap(I, ResultReg); 2460 return true; 2461 } 2462 2463 bool AArch64FastISel::selectIntToFP(const Instruction *I, bool Signed) { 2464 MVT DestVT; 2465 if (!isTypeLegal(I->getType(), DestVT) || DestVT.isVector()) 2466 return false; 2467 assert ((DestVT == MVT::f32 || DestVT == MVT::f64) && 2468 "Unexpected value type."); 2469 2470 unsigned SrcReg = getRegForValue(I->getOperand(0)); 2471 if (!SrcReg) 2472 return false; 2473 bool SrcIsKill = hasTrivialKill(I->getOperand(0)); 2474 2475 EVT SrcVT = TLI.getValueType(I->getOperand(0)->getType(), true); 2476 2477 // Handle sign-extension. 2478 if (SrcVT == MVT::i16 || SrcVT == MVT::i8 || SrcVT == MVT::i1) { 2479 SrcReg = 2480 emitIntExt(SrcVT.getSimpleVT(), SrcReg, MVT::i32, /*isZExt*/ !Signed); 2481 if (!SrcReg) 2482 return false; 2483 SrcIsKill = true; 2484 } 2485 2486 unsigned Opc; 2487 if (SrcVT == MVT::i64) { 2488 if (Signed) 2489 Opc = (DestVT == MVT::f32) ? AArch64::SCVTFUXSri : AArch64::SCVTFUXDri; 2490 else 2491 Opc = (DestVT == MVT::f32) ? AArch64::UCVTFUXSri : AArch64::UCVTFUXDri; 2492 } else { 2493 if (Signed) 2494 Opc = (DestVT == MVT::f32) ? AArch64::SCVTFUWSri : AArch64::SCVTFUWDri; 2495 else 2496 Opc = (DestVT == MVT::f32) ? AArch64::UCVTFUWSri : AArch64::UCVTFUWDri; 2497 } 2498 2499 unsigned ResultReg = fastEmitInst_r(Opc, TLI.getRegClassFor(DestVT), SrcReg, 2500 SrcIsKill); 2501 updateValueMap(I, ResultReg); 2502 return true; 2503 } 2504 2505 bool AArch64FastISel::fastLowerArguments() { 2506 if (!FuncInfo.CanLowerReturn) 2507 return false; 2508 2509 const Function *F = FuncInfo.Fn; 2510 if (F->isVarArg()) 2511 return false; 2512 2513 CallingConv::ID CC = F->getCallingConv(); 2514 if (CC != CallingConv::C) 2515 return false; 2516 2517 // Only handle simple cases of up to 8 GPR and FPR each. 2518 unsigned GPRCnt = 0; 2519 unsigned FPRCnt = 0; 2520 unsigned Idx = 0; 2521 for (auto const &Arg : F->args()) { 2522 // The first argument is at index 1. 2523 ++Idx; 2524 if (F->getAttributes().hasAttribute(Idx, Attribute::ByVal) || 2525 F->getAttributes().hasAttribute(Idx, Attribute::InReg) || 2526 F->getAttributes().hasAttribute(Idx, Attribute::StructRet) || 2527 F->getAttributes().hasAttribute(Idx, Attribute::Nest)) 2528 return false; 2529 2530 Type *ArgTy = Arg.getType(); 2531 if (ArgTy->isStructTy() || ArgTy->isArrayTy()) 2532 return false; 2533 2534 EVT ArgVT = TLI.getValueType(ArgTy); 2535 if (!ArgVT.isSimple()) 2536 return false; 2537 2538 MVT VT = ArgVT.getSimpleVT().SimpleTy; 2539 if (VT.isFloatingPoint() && !Subtarget->hasFPARMv8()) 2540 return false; 2541 2542 if (VT.isVector() && 2543 (!Subtarget->hasNEON() || !Subtarget->isLittleEndian())) 2544 return false; 2545 2546 if (VT >= MVT::i1 && VT <= MVT::i64) 2547 ++GPRCnt; 2548 else if ((VT >= MVT::f16 && VT <= MVT::f64) || VT.is64BitVector() || 2549 VT.is128BitVector()) 2550 ++FPRCnt; 2551 else 2552 return false; 2553 2554 if (GPRCnt > 8 || FPRCnt > 8) 2555 return false; 2556 } 2557 2558 static const MCPhysReg Registers[6][8] = { 2559 { AArch64::W0, AArch64::W1, AArch64::W2, AArch64::W3, AArch64::W4, 2560 AArch64::W5, AArch64::W6, AArch64::W7 }, 2561 { AArch64::X0, AArch64::X1, AArch64::X2, AArch64::X3, AArch64::X4, 2562 AArch64::X5, AArch64::X6, AArch64::X7 }, 2563 { AArch64::H0, AArch64::H1, AArch64::H2, AArch64::H3, AArch64::H4, 2564 AArch64::H5, AArch64::H6, AArch64::H7 }, 2565 { AArch64::S0, AArch64::S1, AArch64::S2, AArch64::S3, AArch64::S4, 2566 AArch64::S5, AArch64::S6, AArch64::S7 }, 2567 { AArch64::D0, AArch64::D1, AArch64::D2, AArch64::D3, AArch64::D4, 2568 AArch64::D5, AArch64::D6, AArch64::D7 }, 2569 { AArch64::Q0, AArch64::Q1, AArch64::Q2, AArch64::Q3, AArch64::Q4, 2570 AArch64::Q5, AArch64::Q6, AArch64::Q7 } 2571 }; 2572 2573 unsigned GPRIdx = 0; 2574 unsigned FPRIdx = 0; 2575 for (auto const &Arg : F->args()) { 2576 MVT VT = TLI.getSimpleValueType(Arg.getType()); 2577 unsigned SrcReg; 2578 const TargetRegisterClass *RC; 2579 if (VT >= MVT::i1 && VT <= MVT::i32) { 2580 SrcReg = Registers[0][GPRIdx++]; 2581 RC = &AArch64::GPR32RegClass; 2582 VT = MVT::i32; 2583 } else if (VT == MVT::i64) { 2584 SrcReg = Registers[1][GPRIdx++]; 2585 RC = &AArch64::GPR64RegClass; 2586 } else if (VT == MVT::f16) { 2587 SrcReg = Registers[2][FPRIdx++]; 2588 RC = &AArch64::FPR16RegClass; 2589 } else if (VT == MVT::f32) { 2590 SrcReg = Registers[3][FPRIdx++]; 2591 RC = &AArch64::FPR32RegClass; 2592 } else if ((VT == MVT::f64) || VT.is64BitVector()) { 2593 SrcReg = Registers[4][FPRIdx++]; 2594 RC = &AArch64::FPR64RegClass; 2595 } else if (VT.is128BitVector()) { 2596 SrcReg = Registers[5][FPRIdx++]; 2597 RC = &AArch64::FPR128RegClass; 2598 } else 2599 llvm_unreachable("Unexpected value type."); 2600 2601 unsigned DstReg = FuncInfo.MF->addLiveIn(SrcReg, RC); 2602 // FIXME: Unfortunately it's necessary to emit a copy from the livein copy. 2603 // Without this, EmitLiveInCopies may eliminate the livein if its only 2604 // use is a bitcast (which isn't turned into an instruction). 2605 unsigned ResultReg = createResultReg(RC); 2606 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, 2607 TII.get(TargetOpcode::COPY), ResultReg) 2608 .addReg(DstReg, getKillRegState(true)); 2609 updateValueMap(&Arg, ResultReg); 2610 } 2611 return true; 2612 } 2613 2614 bool AArch64FastISel::processCallArgs(CallLoweringInfo &CLI, 2615 SmallVectorImpl<MVT> &OutVTs, 2616 unsigned &NumBytes) { 2617 CallingConv::ID CC = CLI.CallConv; 2618 SmallVector<CCValAssign, 16> ArgLocs; 2619 CCState CCInfo(CC, false, *FuncInfo.MF, ArgLocs, *Context); 2620 CCInfo.AnalyzeCallOperands(OutVTs, CLI.OutFlags, CCAssignFnForCall(CC)); 2621 2622 // Get a count of how many bytes are to be pushed on the stack. 2623 NumBytes = CCInfo.getNextStackOffset(); 2624 2625 // Issue CALLSEQ_START 2626 unsigned AdjStackDown = TII.getCallFrameSetupOpcode(); 2627 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, TII.get(AdjStackDown)) 2628 .addImm(NumBytes); 2629 2630 // Process the args. 2631 for (unsigned i = 0, e = ArgLocs.size(); i != e; ++i) { 2632 CCValAssign &VA = ArgLocs[i]; 2633 const Value *ArgVal = CLI.OutVals[VA.getValNo()]; 2634 MVT ArgVT = OutVTs[VA.getValNo()]; 2635 2636 unsigned ArgReg = getRegForValue(ArgVal); 2637 if (!ArgReg) 2638 return false; 2639 2640 // Handle arg promotion: SExt, ZExt, AExt. 2641 switch (VA.getLocInfo()) { 2642 case CCValAssign::Full: 2643 break; 2644 case CCValAssign::SExt: { 2645 MVT DestVT = VA.getLocVT(); 2646 MVT SrcVT = ArgVT; 2647 ArgReg = emitIntExt(SrcVT, ArgReg, DestVT, /*isZExt=*/false); 2648 if (!ArgReg) 2649 return false; 2650 break; 2651 } 2652 case CCValAssign::AExt: 2653 // Intentional fall-through. 2654 case CCValAssign::ZExt: { 2655 MVT DestVT = VA.getLocVT(); 2656 MVT SrcVT = ArgVT; 2657 ArgReg = emitIntExt(SrcVT, ArgReg, DestVT, /*isZExt=*/true); 2658 if (!ArgReg) 2659 return false; 2660 break; 2661 } 2662 default: 2663 llvm_unreachable("Unknown arg promotion!"); 2664 } 2665 2666 // Now copy/store arg to correct locations. 2667 if (VA.isRegLoc() && !VA.needsCustom()) { 2668 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, 2669 TII.get(TargetOpcode::COPY), VA.getLocReg()).addReg(ArgReg); 2670 CLI.OutRegs.push_back(VA.getLocReg()); 2671 } else if (VA.needsCustom()) { 2672 // FIXME: Handle custom args. 2673 return false; 2674 } else { 2675 assert(VA.isMemLoc() && "Assuming store on stack."); 2676 2677 // Don't emit stores for undef values. 2678 if (isa<UndefValue>(ArgVal)) 2679 continue; 2680 2681 // Need to store on the stack. 2682 unsigned ArgSize = (ArgVT.getSizeInBits() + 7) / 8; 2683 2684 unsigned BEAlign = 0; 2685 if (ArgSize < 8 && !Subtarget->isLittleEndian()) 2686 BEAlign = 8 - ArgSize; 2687 2688 Address Addr; 2689 Addr.setKind(Address::RegBase); 2690 Addr.setReg(AArch64::SP); 2691 Addr.setOffset(VA.getLocMemOffset() + BEAlign); 2692 2693 unsigned Alignment = DL.getABITypeAlignment(ArgVal->getType()); 2694 MachineMemOperand *MMO = FuncInfo.MF->getMachineMemOperand( 2695 MachinePointerInfo::getStack(Addr.getOffset()), 2696 MachineMemOperand::MOStore, ArgVT.getStoreSize(), Alignment); 2697 2698 if (!emitStore(ArgVT, ArgReg, Addr, MMO)) 2699 return false; 2700 } 2701 } 2702 return true; 2703 } 2704 2705 bool AArch64FastISel::finishCall(CallLoweringInfo &CLI, MVT RetVT, 2706 unsigned NumBytes) { 2707 CallingConv::ID CC = CLI.CallConv; 2708 2709 // Issue CALLSEQ_END 2710 unsigned AdjStackUp = TII.getCallFrameDestroyOpcode(); 2711 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, TII.get(AdjStackUp)) 2712 .addImm(NumBytes).addImm(0); 2713 2714 // Now the return value. 2715 if (RetVT != MVT::isVoid) { 2716 SmallVector<CCValAssign, 16> RVLocs; 2717 CCState CCInfo(CC, false, *FuncInfo.MF, RVLocs, *Context); 2718 CCInfo.AnalyzeCallResult(RetVT, CCAssignFnForCall(CC)); 2719 2720 // Only handle a single return value. 2721 if (RVLocs.size() != 1) 2722 return false; 2723 2724 // Copy all of the result registers out of their specified physreg. 2725 MVT CopyVT = RVLocs[0].getValVT(); 2726 unsigned ResultReg = createResultReg(TLI.getRegClassFor(CopyVT)); 2727 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, 2728 TII.get(TargetOpcode::COPY), ResultReg) 2729 .addReg(RVLocs[0].getLocReg()); 2730 CLI.InRegs.push_back(RVLocs[0].getLocReg()); 2731 2732 CLI.ResultReg = ResultReg; 2733 CLI.NumResultRegs = 1; 2734 } 2735 2736 return true; 2737 } 2738 2739 bool AArch64FastISel::fastLowerCall(CallLoweringInfo &CLI) { 2740 CallingConv::ID CC = CLI.CallConv; 2741 bool IsTailCall = CLI.IsTailCall; 2742 bool IsVarArg = CLI.IsVarArg; 2743 const Value *Callee = CLI.Callee; 2744 const char *SymName = CLI.SymName; 2745 2746 if (!Callee && !SymName) 2747 return false; 2748 2749 // Allow SelectionDAG isel to handle tail calls. 2750 if (IsTailCall) 2751 return false; 2752 2753 CodeModel::Model CM = TM.getCodeModel(); 2754 // Only support the small and large code model. 2755 if (CM != CodeModel::Small && CM != CodeModel::Large) 2756 return false; 2757 2758 // FIXME: Add large code model support for ELF. 2759 if (CM == CodeModel::Large && !Subtarget->isTargetMachO()) 2760 return false; 2761 2762 // Let SDISel handle vararg functions. 2763 if (IsVarArg) 2764 return false; 2765 2766 // FIXME: Only handle *simple* calls for now. 2767 MVT RetVT; 2768 if (CLI.RetTy->isVoidTy()) 2769 RetVT = MVT::isVoid; 2770 else if (!isTypeLegal(CLI.RetTy, RetVT)) 2771 return false; 2772 2773 for (auto Flag : CLI.OutFlags) 2774 if (Flag.isInReg() || Flag.isSRet() || Flag.isNest() || Flag.isByVal()) 2775 return false; 2776 2777 // Set up the argument vectors. 2778 SmallVector<MVT, 16> OutVTs; 2779 OutVTs.reserve(CLI.OutVals.size()); 2780 2781 for (auto *Val : CLI.OutVals) { 2782 MVT VT; 2783 if (!isTypeLegal(Val->getType(), VT) && 2784 !(VT == MVT::i1 || VT == MVT::i8 || VT == MVT::i16)) 2785 return false; 2786 2787 // We don't handle vector parameters yet. 2788 if (VT.isVector() || VT.getSizeInBits() > 64) 2789 return false; 2790 2791 OutVTs.push_back(VT); 2792 } 2793 2794 Address Addr; 2795 if (Callee && !computeCallAddress(Callee, Addr)) 2796 return false; 2797 2798 // Handle the arguments now that we've gotten them. 2799 unsigned NumBytes; 2800 if (!processCallArgs(CLI, OutVTs, NumBytes)) 2801 return false; 2802 2803 // Issue the call. 2804 MachineInstrBuilder MIB; 2805 if (CM == CodeModel::Small) { 2806 const MCInstrDesc &II = TII.get(Addr.getReg() ? AArch64::BLR : AArch64::BL); 2807 MIB = BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, II); 2808 if (SymName) 2809 MIB.addExternalSymbol(SymName, 0); 2810 else if (Addr.getGlobalValue()) 2811 MIB.addGlobalAddress(Addr.getGlobalValue(), 0, 0); 2812 else if (Addr.getReg()) { 2813 unsigned Reg = constrainOperandRegClass(II, Addr.getReg(), 0); 2814 MIB.addReg(Reg); 2815 } else 2816 return false; 2817 } else { 2818 unsigned CallReg = 0; 2819 if (SymName) { 2820 unsigned ADRPReg = createResultReg(&AArch64::GPR64commonRegClass); 2821 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, TII.get(AArch64::ADRP), 2822 ADRPReg) 2823 .addExternalSymbol(SymName, AArch64II::MO_GOT | AArch64II::MO_PAGE); 2824 2825 CallReg = createResultReg(&AArch64::GPR64RegClass); 2826 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, TII.get(AArch64::LDRXui), 2827 CallReg) 2828 .addReg(ADRPReg) 2829 .addExternalSymbol(SymName, AArch64II::MO_GOT | AArch64II::MO_PAGEOFF | 2830 AArch64II::MO_NC); 2831 } else if (Addr.getGlobalValue()) 2832 CallReg = materializeGV(Addr.getGlobalValue()); 2833 else if (Addr.getReg()) 2834 CallReg = Addr.getReg(); 2835 2836 if (!CallReg) 2837 return false; 2838 2839 const MCInstrDesc &II = TII.get(AArch64::BLR); 2840 CallReg = constrainOperandRegClass(II, CallReg, 0); 2841 MIB = BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, II).addReg(CallReg); 2842 } 2843 2844 // Add implicit physical register uses to the call. 2845 for (auto Reg : CLI.OutRegs) 2846 MIB.addReg(Reg, RegState::Implicit); 2847 2848 // Add a register mask with the call-preserved registers. 2849 // Proper defs for return values will be added by setPhysRegsDeadExcept(). 2850 MIB.addRegMask(TRI.getCallPreservedMask(CC)); 2851 2852 CLI.Call = MIB; 2853 2854 // Finish off the call including any return values. 2855 return finishCall(CLI, RetVT, NumBytes); 2856 } 2857 2858 bool AArch64FastISel::isMemCpySmall(uint64_t Len, unsigned Alignment) { 2859 if (Alignment) 2860 return Len / Alignment <= 4; 2861 else 2862 return Len < 32; 2863 } 2864 2865 bool AArch64FastISel::tryEmitSmallMemCpy(Address Dest, Address Src, 2866 uint64_t Len, unsigned Alignment) { 2867 // Make sure we don't bloat code by inlining very large memcpy's. 2868 if (!isMemCpySmall(Len, Alignment)) 2869 return false; 2870 2871 int64_t UnscaledOffset = 0; 2872 Address OrigDest = Dest; 2873 Address OrigSrc = Src; 2874 2875 while (Len) { 2876 MVT VT; 2877 if (!Alignment || Alignment >= 8) { 2878 if (Len >= 8) 2879 VT = MVT::i64; 2880 else if (Len >= 4) 2881 VT = MVT::i32; 2882 else if (Len >= 2) 2883 VT = MVT::i16; 2884 else { 2885 VT = MVT::i8; 2886 } 2887 } else { 2888 // Bound based on alignment. 2889 if (Len >= 4 && Alignment == 4) 2890 VT = MVT::i32; 2891 else if (Len >= 2 && Alignment == 2) 2892 VT = MVT::i16; 2893 else { 2894 VT = MVT::i8; 2895 } 2896 } 2897 2898 bool RV; 2899 unsigned ResultReg; 2900 RV = emitLoad(VT, ResultReg, Src); 2901 if (!RV) 2902 return false; 2903 2904 RV = emitStore(VT, ResultReg, Dest); 2905 if (!RV) 2906 return false; 2907 2908 int64_t Size = VT.getSizeInBits() / 8; 2909 Len -= Size; 2910 UnscaledOffset += Size; 2911 2912 // We need to recompute the unscaled offset for each iteration. 2913 Dest.setOffset(OrigDest.getOffset() + UnscaledOffset); 2914 Src.setOffset(OrigSrc.getOffset() + UnscaledOffset); 2915 } 2916 2917 return true; 2918 } 2919 2920 /// \brief Check if it is possible to fold the condition from the XALU intrinsic 2921 /// into the user. The condition code will only be updated on success. 2922 bool AArch64FastISel::foldXALUIntrinsic(AArch64CC::CondCode &CC, 2923 const Instruction *I, 2924 const Value *Cond) { 2925 if (!isa<ExtractValueInst>(Cond)) 2926 return false; 2927 2928 const auto *EV = cast<ExtractValueInst>(Cond); 2929 if (!isa<IntrinsicInst>(EV->getAggregateOperand())) 2930 return false; 2931 2932 const auto *II = cast<IntrinsicInst>(EV->getAggregateOperand()); 2933 MVT RetVT; 2934 const Function *Callee = II->getCalledFunction(); 2935 Type *RetTy = 2936 cast<StructType>(Callee->getReturnType())->getTypeAtIndex(0U); 2937 if (!isTypeLegal(RetTy, RetVT)) 2938 return false; 2939 2940 if (RetVT != MVT::i32 && RetVT != MVT::i64) 2941 return false; 2942 2943 const Value *LHS = II->getArgOperand(0); 2944 const Value *RHS = II->getArgOperand(1); 2945 2946 // Canonicalize immediate to the RHS. 2947 if (isa<ConstantInt>(LHS) && !isa<ConstantInt>(RHS) && 2948 isCommutativeIntrinsic(II)) 2949 std::swap(LHS, RHS); 2950 2951 // Simplify multiplies. 2952 unsigned IID = II->getIntrinsicID(); 2953 switch (IID) { 2954 default: 2955 break; 2956 case Intrinsic::smul_with_overflow: 2957 if (const auto *C = dyn_cast<ConstantInt>(RHS)) 2958 if (C->getValue() == 2) 2959 IID = Intrinsic::sadd_with_overflow; 2960 break; 2961 case Intrinsic::umul_with_overflow: 2962 if (const auto *C = dyn_cast<ConstantInt>(RHS)) 2963 if (C->getValue() == 2) 2964 IID = Intrinsic::uadd_with_overflow; 2965 break; 2966 } 2967 2968 AArch64CC::CondCode TmpCC; 2969 switch (IID) { 2970 default: 2971 return false; 2972 case Intrinsic::sadd_with_overflow: 2973 case Intrinsic::ssub_with_overflow: 2974 TmpCC = AArch64CC::VS; 2975 break; 2976 case Intrinsic::uadd_with_overflow: 2977 TmpCC = AArch64CC::HS; 2978 break; 2979 case Intrinsic::usub_with_overflow: 2980 TmpCC = AArch64CC::LO; 2981 break; 2982 case Intrinsic::smul_with_overflow: 2983 case Intrinsic::umul_with_overflow: 2984 TmpCC = AArch64CC::NE; 2985 break; 2986 } 2987 2988 // Check if both instructions are in the same basic block. 2989 if (!isValueAvailable(II)) 2990 return false; 2991 2992 // Make sure nothing is in the way 2993 BasicBlock::const_iterator Start = I; 2994 BasicBlock::const_iterator End = II; 2995 for (auto Itr = std::prev(Start); Itr != End; --Itr) { 2996 // We only expect extractvalue instructions between the intrinsic and the 2997 // instruction to be selected. 2998 if (!isa<ExtractValueInst>(Itr)) 2999 return false; 3000 3001 // Check that the extractvalue operand comes from the intrinsic. 3002 const auto *EVI = cast<ExtractValueInst>(Itr); 3003 if (EVI->getAggregateOperand() != II) 3004 return false; 3005 } 3006 3007 CC = TmpCC; 3008 return true; 3009 } 3010 3011 bool AArch64FastISel::fastLowerIntrinsicCall(const IntrinsicInst *II) { 3012 // FIXME: Handle more intrinsics. 3013 switch (II->getIntrinsicID()) { 3014 default: return false; 3015 case Intrinsic::frameaddress: { 3016 MachineFrameInfo *MFI = FuncInfo.MF->getFrameInfo(); 3017 MFI->setFrameAddressIsTaken(true); 3018 3019 const AArch64RegisterInfo *RegInfo = 3020 static_cast<const AArch64RegisterInfo *>( 3021 TM.getSubtargetImpl()->getRegisterInfo()); 3022 unsigned FramePtr = RegInfo->getFrameRegister(*(FuncInfo.MF)); 3023 unsigned SrcReg = MRI.createVirtualRegister(&AArch64::GPR64RegClass); 3024 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, 3025 TII.get(TargetOpcode::COPY), SrcReg).addReg(FramePtr); 3026 // Recursively load frame address 3027 // ldr x0, [fp] 3028 // ldr x0, [x0] 3029 // ldr x0, [x0] 3030 // ... 3031 unsigned DestReg; 3032 unsigned Depth = cast<ConstantInt>(II->getOperand(0))->getZExtValue(); 3033 while (Depth--) { 3034 DestReg = fastEmitInst_ri(AArch64::LDRXui, &AArch64::GPR64RegClass, 3035 SrcReg, /*IsKill=*/true, 0); 3036 assert(DestReg && "Unexpected LDR instruction emission failure."); 3037 SrcReg = DestReg; 3038 } 3039 3040 updateValueMap(II, SrcReg); 3041 return true; 3042 } 3043 case Intrinsic::memcpy: 3044 case Intrinsic::memmove: { 3045 const auto *MTI = cast<MemTransferInst>(II); 3046 // Don't handle volatile. 3047 if (MTI->isVolatile()) 3048 return false; 3049 3050 // Disable inlining for memmove before calls to ComputeAddress. Otherwise, 3051 // we would emit dead code because we don't currently handle memmoves. 3052 bool IsMemCpy = (II->getIntrinsicID() == Intrinsic::memcpy); 3053 if (isa<ConstantInt>(MTI->getLength()) && IsMemCpy) { 3054 // Small memcpy's are common enough that we want to do them without a call 3055 // if possible. 3056 uint64_t Len = cast<ConstantInt>(MTI->getLength())->getZExtValue(); 3057 unsigned Alignment = MTI->getAlignment(); 3058 if (isMemCpySmall(Len, Alignment)) { 3059 Address Dest, Src; 3060 if (!computeAddress(MTI->getRawDest(), Dest) || 3061 !computeAddress(MTI->getRawSource(), Src)) 3062 return false; 3063 if (tryEmitSmallMemCpy(Dest, Src, Len, Alignment)) 3064 return true; 3065 } 3066 } 3067 3068 if (!MTI->getLength()->getType()->isIntegerTy(64)) 3069 return false; 3070 3071 if (MTI->getSourceAddressSpace() > 255 || MTI->getDestAddressSpace() > 255) 3072 // Fast instruction selection doesn't support the special 3073 // address spaces. 3074 return false; 3075 3076 const char *IntrMemName = isa<MemCpyInst>(II) ? "memcpy" : "memmove"; 3077 return lowerCallTo(II, IntrMemName, II->getNumArgOperands() - 2); 3078 } 3079 case Intrinsic::memset: { 3080 const MemSetInst *MSI = cast<MemSetInst>(II); 3081 // Don't handle volatile. 3082 if (MSI->isVolatile()) 3083 return false; 3084 3085 if (!MSI->getLength()->getType()->isIntegerTy(64)) 3086 return false; 3087 3088 if (MSI->getDestAddressSpace() > 255) 3089 // Fast instruction selection doesn't support the special 3090 // address spaces. 3091 return false; 3092 3093 return lowerCallTo(II, "memset", II->getNumArgOperands() - 2); 3094 } 3095 case Intrinsic::sin: 3096 case Intrinsic::cos: 3097 case Intrinsic::pow: { 3098 MVT RetVT; 3099 if (!isTypeLegal(II->getType(), RetVT)) 3100 return false; 3101 3102 if (RetVT != MVT::f32 && RetVT != MVT::f64) 3103 return false; 3104 3105 static const RTLIB::Libcall LibCallTable[3][2] = { 3106 { RTLIB::SIN_F32, RTLIB::SIN_F64 }, 3107 { RTLIB::COS_F32, RTLIB::COS_F64 }, 3108 { RTLIB::POW_F32, RTLIB::POW_F64 } 3109 }; 3110 RTLIB::Libcall LC; 3111 bool Is64Bit = RetVT == MVT::f64; 3112 switch (II->getIntrinsicID()) { 3113 default: 3114 llvm_unreachable("Unexpected intrinsic."); 3115 case Intrinsic::sin: 3116 LC = LibCallTable[0][Is64Bit]; 3117 break; 3118 case Intrinsic::cos: 3119 LC = LibCallTable[1][Is64Bit]; 3120 break; 3121 case Intrinsic::pow: 3122 LC = LibCallTable[2][Is64Bit]; 3123 break; 3124 } 3125 3126 ArgListTy Args; 3127 Args.reserve(II->getNumArgOperands()); 3128 3129 // Populate the argument list. 3130 for (auto &Arg : II->arg_operands()) { 3131 ArgListEntry Entry; 3132 Entry.Val = Arg; 3133 Entry.Ty = Arg->getType(); 3134 Args.push_back(Entry); 3135 } 3136 3137 CallLoweringInfo CLI; 3138 CLI.setCallee(TLI.getLibcallCallingConv(LC), II->getType(), 3139 TLI.getLibcallName(LC), std::move(Args)); 3140 if (!lowerCallTo(CLI)) 3141 return false; 3142 updateValueMap(II, CLI.ResultReg); 3143 return true; 3144 } 3145 case Intrinsic::trap: { 3146 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, TII.get(AArch64::BRK)) 3147 .addImm(1); 3148 return true; 3149 } 3150 case Intrinsic::sqrt: { 3151 Type *RetTy = II->getCalledFunction()->getReturnType(); 3152 3153 MVT VT; 3154 if (!isTypeLegal(RetTy, VT)) 3155 return false; 3156 3157 unsigned Op0Reg = getRegForValue(II->getOperand(0)); 3158 if (!Op0Reg) 3159 return false; 3160 bool Op0IsKill = hasTrivialKill(II->getOperand(0)); 3161 3162 unsigned ResultReg = fastEmit_r(VT, VT, ISD::FSQRT, Op0Reg, Op0IsKill); 3163 if (!ResultReg) 3164 return false; 3165 3166 updateValueMap(II, ResultReg); 3167 return true; 3168 } 3169 case Intrinsic::sadd_with_overflow: 3170 case Intrinsic::uadd_with_overflow: 3171 case Intrinsic::ssub_with_overflow: 3172 case Intrinsic::usub_with_overflow: 3173 case Intrinsic::smul_with_overflow: 3174 case Intrinsic::umul_with_overflow: { 3175 // This implements the basic lowering of the xalu with overflow intrinsics. 3176 const Function *Callee = II->getCalledFunction(); 3177 auto *Ty = cast<StructType>(Callee->getReturnType()); 3178 Type *RetTy = Ty->getTypeAtIndex(0U); 3179 3180 MVT VT; 3181 if (!isTypeLegal(RetTy, VT)) 3182 return false; 3183 3184 if (VT != MVT::i32 && VT != MVT::i64) 3185 return false; 3186 3187 const Value *LHS = II->getArgOperand(0); 3188 const Value *RHS = II->getArgOperand(1); 3189 // Canonicalize immediate to the RHS. 3190 if (isa<ConstantInt>(LHS) && !isa<ConstantInt>(RHS) && 3191 isCommutativeIntrinsic(II)) 3192 std::swap(LHS, RHS); 3193 3194 // Simplify multiplies. 3195 unsigned IID = II->getIntrinsicID(); 3196 switch (IID) { 3197 default: 3198 break; 3199 case Intrinsic::smul_with_overflow: 3200 if (const auto *C = dyn_cast<ConstantInt>(RHS)) 3201 if (C->getValue() == 2) { 3202 IID = Intrinsic::sadd_with_overflow; 3203 RHS = LHS; 3204 } 3205 break; 3206 case Intrinsic::umul_with_overflow: 3207 if (const auto *C = dyn_cast<ConstantInt>(RHS)) 3208 if (C->getValue() == 2) { 3209 IID = Intrinsic::uadd_with_overflow; 3210 RHS = LHS; 3211 } 3212 break; 3213 } 3214 3215 unsigned ResultReg1 = 0, ResultReg2 = 0, MulReg = 0; 3216 AArch64CC::CondCode CC = AArch64CC::Invalid; 3217 switch (IID) { 3218 default: llvm_unreachable("Unexpected intrinsic!"); 3219 case Intrinsic::sadd_with_overflow: 3220 ResultReg1 = emitAdd(VT, LHS, RHS, /*SetFlags=*/true); 3221 CC = AArch64CC::VS; 3222 break; 3223 case Intrinsic::uadd_with_overflow: 3224 ResultReg1 = emitAdd(VT, LHS, RHS, /*SetFlags=*/true); 3225 CC = AArch64CC::HS; 3226 break; 3227 case Intrinsic::ssub_with_overflow: 3228 ResultReg1 = emitSub(VT, LHS, RHS, /*SetFlags=*/true); 3229 CC = AArch64CC::VS; 3230 break; 3231 case Intrinsic::usub_with_overflow: 3232 ResultReg1 = emitSub(VT, LHS, RHS, /*SetFlags=*/true); 3233 CC = AArch64CC::LO; 3234 break; 3235 case Intrinsic::smul_with_overflow: { 3236 CC = AArch64CC::NE; 3237 unsigned LHSReg = getRegForValue(LHS); 3238 if (!LHSReg) 3239 return false; 3240 bool LHSIsKill = hasTrivialKill(LHS); 3241 3242 unsigned RHSReg = getRegForValue(RHS); 3243 if (!RHSReg) 3244 return false; 3245 bool RHSIsKill = hasTrivialKill(RHS); 3246 3247 if (VT == MVT::i32) { 3248 MulReg = emitSMULL_rr(MVT::i64, LHSReg, LHSIsKill, RHSReg, RHSIsKill); 3249 unsigned ShiftReg = emitLSR_ri(MVT::i64, MVT::i64, MulReg, 3250 /*IsKill=*/false, 32); 3251 MulReg = fastEmitInst_extractsubreg(VT, MulReg, /*IsKill=*/true, 3252 AArch64::sub_32); 3253 ShiftReg = fastEmitInst_extractsubreg(VT, ShiftReg, /*IsKill=*/true, 3254 AArch64::sub_32); 3255 emitSubs_rs(VT, ShiftReg, /*IsKill=*/true, MulReg, /*IsKill=*/false, 3256 AArch64_AM::ASR, 31, /*WantResult=*/false); 3257 } else { 3258 assert(VT == MVT::i64 && "Unexpected value type."); 3259 MulReg = emitMul_rr(VT, LHSReg, LHSIsKill, RHSReg, RHSIsKill); 3260 unsigned SMULHReg = fastEmit_rr(VT, VT, ISD::MULHS, LHSReg, LHSIsKill, 3261 RHSReg, RHSIsKill); 3262 emitSubs_rs(VT, SMULHReg, /*IsKill=*/true, MulReg, /*IsKill=*/false, 3263 AArch64_AM::ASR, 63, /*WantResult=*/false); 3264 } 3265 break; 3266 } 3267 case Intrinsic::umul_with_overflow: { 3268 CC = AArch64CC::NE; 3269 unsigned LHSReg = getRegForValue(LHS); 3270 if (!LHSReg) 3271 return false; 3272 bool LHSIsKill = hasTrivialKill(LHS); 3273 3274 unsigned RHSReg = getRegForValue(RHS); 3275 if (!RHSReg) 3276 return false; 3277 bool RHSIsKill = hasTrivialKill(RHS); 3278 3279 if (VT == MVT::i32) { 3280 MulReg = emitUMULL_rr(MVT::i64, LHSReg, LHSIsKill, RHSReg, RHSIsKill); 3281 emitSubs_rs(MVT::i64, AArch64::XZR, /*IsKill=*/true, MulReg, 3282 /*IsKill=*/false, AArch64_AM::LSR, 32, 3283 /*WantResult=*/false); 3284 MulReg = fastEmitInst_extractsubreg(VT, MulReg, /*IsKill=*/true, 3285 AArch64::sub_32); 3286 } else { 3287 assert(VT == MVT::i64 && "Unexpected value type."); 3288 MulReg = emitMul_rr(VT, LHSReg, LHSIsKill, RHSReg, RHSIsKill); 3289 unsigned UMULHReg = fastEmit_rr(VT, VT, ISD::MULHU, LHSReg, LHSIsKill, 3290 RHSReg, RHSIsKill); 3291 emitSubs_rr(VT, AArch64::XZR, /*IsKill=*/true, UMULHReg, 3292 /*IsKill=*/false, /*WantResult=*/false); 3293 } 3294 break; 3295 } 3296 } 3297 3298 if (MulReg) { 3299 ResultReg1 = createResultReg(TLI.getRegClassFor(VT)); 3300 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, 3301 TII.get(TargetOpcode::COPY), ResultReg1).addReg(MulReg); 3302 } 3303 3304 ResultReg2 = fastEmitInst_rri(AArch64::CSINCWr, &AArch64::GPR32RegClass, 3305 AArch64::WZR, /*IsKill=*/true, AArch64::WZR, 3306 /*IsKill=*/true, getInvertedCondCode(CC)); 3307 assert((ResultReg1 + 1) == ResultReg2 && 3308 "Nonconsecutive result registers."); 3309 updateValueMap(II, ResultReg1, 2); 3310 return true; 3311 } 3312 } 3313 return false; 3314 } 3315 3316 bool AArch64FastISel::selectRet(const Instruction *I) { 3317 const ReturnInst *Ret = cast<ReturnInst>(I); 3318 const Function &F = *I->getParent()->getParent(); 3319 3320 if (!FuncInfo.CanLowerReturn) 3321 return false; 3322 3323 if (F.isVarArg()) 3324 return false; 3325 3326 // Build a list of return value registers. 3327 SmallVector<unsigned, 4> RetRegs; 3328 3329 if (Ret->getNumOperands() > 0) { 3330 CallingConv::ID CC = F.getCallingConv(); 3331 SmallVector<ISD::OutputArg, 4> Outs; 3332 GetReturnInfo(F.getReturnType(), F.getAttributes(), Outs, TLI); 3333 3334 // Analyze operands of the call, assigning locations to each operand. 3335 SmallVector<CCValAssign, 16> ValLocs; 3336 CCState CCInfo(CC, F.isVarArg(), *FuncInfo.MF, ValLocs, I->getContext()); 3337 CCAssignFn *RetCC = CC == CallingConv::WebKit_JS ? RetCC_AArch64_WebKit_JS 3338 : RetCC_AArch64_AAPCS; 3339 CCInfo.AnalyzeReturn(Outs, RetCC); 3340 3341 // Only handle a single return value for now. 3342 if (ValLocs.size() != 1) 3343 return false; 3344 3345 CCValAssign &VA = ValLocs[0]; 3346 const Value *RV = Ret->getOperand(0); 3347 3348 // Don't bother handling odd stuff for now. 3349 if ((VA.getLocInfo() != CCValAssign::Full) && 3350 (VA.getLocInfo() != CCValAssign::BCvt)) 3351 return false; 3352 3353 // Only handle register returns for now. 3354 if (!VA.isRegLoc()) 3355 return false; 3356 3357 unsigned Reg = getRegForValue(RV); 3358 if (Reg == 0) 3359 return false; 3360 3361 unsigned SrcReg = Reg + VA.getValNo(); 3362 unsigned DestReg = VA.getLocReg(); 3363 // Avoid a cross-class copy. This is very unlikely. 3364 if (!MRI.getRegClass(SrcReg)->contains(DestReg)) 3365 return false; 3366 3367 EVT RVEVT = TLI.getValueType(RV->getType()); 3368 if (!RVEVT.isSimple()) 3369 return false; 3370 3371 // Vectors (of > 1 lane) in big endian need tricky handling. 3372 if (RVEVT.isVector() && RVEVT.getVectorNumElements() > 1 && 3373 !Subtarget->isLittleEndian()) 3374 return false; 3375 3376 MVT RVVT = RVEVT.getSimpleVT(); 3377 if (RVVT == MVT::f128) 3378 return false; 3379 3380 MVT DestVT = VA.getValVT(); 3381 // Special handling for extended integers. 3382 if (RVVT != DestVT) { 3383 if (RVVT != MVT::i1 && RVVT != MVT::i8 && RVVT != MVT::i16) 3384 return false; 3385 3386 if (!Outs[0].Flags.isZExt() && !Outs[0].Flags.isSExt()) 3387 return false; 3388 3389 bool IsZExt = Outs[0].Flags.isZExt(); 3390 SrcReg = emitIntExt(RVVT, SrcReg, DestVT, IsZExt); 3391 if (SrcReg == 0) 3392 return false; 3393 } 3394 3395 // Make the copy. 3396 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, 3397 TII.get(TargetOpcode::COPY), DestReg).addReg(SrcReg); 3398 3399 // Add register to return instruction. 3400 RetRegs.push_back(VA.getLocReg()); 3401 } 3402 3403 MachineInstrBuilder MIB = BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, 3404 TII.get(AArch64::RET_ReallyLR)); 3405 for (unsigned i = 0, e = RetRegs.size(); i != e; ++i) 3406 MIB.addReg(RetRegs[i], RegState::Implicit); 3407 return true; 3408 } 3409 3410 bool AArch64FastISel::selectTrunc(const Instruction *I) { 3411 Type *DestTy = I->getType(); 3412 Value *Op = I->getOperand(0); 3413 Type *SrcTy = Op->getType(); 3414 3415 EVT SrcEVT = TLI.getValueType(SrcTy, true); 3416 EVT DestEVT = TLI.getValueType(DestTy, true); 3417 if (!SrcEVT.isSimple()) 3418 return false; 3419 if (!DestEVT.isSimple()) 3420 return false; 3421 3422 MVT SrcVT = SrcEVT.getSimpleVT(); 3423 MVT DestVT = DestEVT.getSimpleVT(); 3424 3425 if (SrcVT != MVT::i64 && SrcVT != MVT::i32 && SrcVT != MVT::i16 && 3426 SrcVT != MVT::i8) 3427 return false; 3428 if (DestVT != MVT::i32 && DestVT != MVT::i16 && DestVT != MVT::i8 && 3429 DestVT != MVT::i1) 3430 return false; 3431 3432 unsigned SrcReg = getRegForValue(Op); 3433 if (!SrcReg) 3434 return false; 3435 bool SrcIsKill = hasTrivialKill(Op); 3436 3437 // If we're truncating from i64 to a smaller non-legal type then generate an 3438 // AND. Otherwise, we know the high bits are undefined and a truncate only 3439 // generate a COPY. We cannot mark the source register also as result 3440 // register, because this can incorrectly transfer the kill flag onto the 3441 // source register. 3442 unsigned ResultReg; 3443 if (SrcVT == MVT::i64) { 3444 uint64_t Mask = 0; 3445 switch (DestVT.SimpleTy) { 3446 default: 3447 // Trunc i64 to i32 is handled by the target-independent fast-isel. 3448 return false; 3449 case MVT::i1: 3450 Mask = 0x1; 3451 break; 3452 case MVT::i8: 3453 Mask = 0xff; 3454 break; 3455 case MVT::i16: 3456 Mask = 0xffff; 3457 break; 3458 } 3459 // Issue an extract_subreg to get the lower 32-bits. 3460 unsigned Reg32 = fastEmitInst_extractsubreg(MVT::i32, SrcReg, SrcIsKill, 3461 AArch64::sub_32); 3462 // Create the AND instruction which performs the actual truncation. 3463 ResultReg = emitAnd_ri(MVT::i32, Reg32, /*IsKill=*/true, Mask); 3464 assert(ResultReg && "Unexpected AND instruction emission failure."); 3465 } else { 3466 ResultReg = createResultReg(&AArch64::GPR32RegClass); 3467 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, 3468 TII.get(TargetOpcode::COPY), ResultReg) 3469 .addReg(SrcReg, getKillRegState(SrcIsKill)); 3470 } 3471 3472 updateValueMap(I, ResultReg); 3473 return true; 3474 } 3475 3476 unsigned AArch64FastISel::emiti1Ext(unsigned SrcReg, MVT DestVT, bool IsZExt) { 3477 assert((DestVT == MVT::i8 || DestVT == MVT::i16 || DestVT == MVT::i32 || 3478 DestVT == MVT::i64) && 3479 "Unexpected value type."); 3480 // Handle i8 and i16 as i32. 3481 if (DestVT == MVT::i8 || DestVT == MVT::i16) 3482 DestVT = MVT::i32; 3483 3484 if (IsZExt) { 3485 unsigned ResultReg = emitAnd_ri(MVT::i32, SrcReg, /*TODO:IsKill=*/false, 1); 3486 assert(ResultReg && "Unexpected AND instruction emission failure."); 3487 if (DestVT == MVT::i64) { 3488 // We're ZExt i1 to i64. The ANDWri Wd, Ws, #1 implicitly clears the 3489 // upper 32 bits. Emit a SUBREG_TO_REG to extend from Wd to Xd. 3490 unsigned Reg64 = MRI.createVirtualRegister(&AArch64::GPR64RegClass); 3491 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, 3492 TII.get(AArch64::SUBREG_TO_REG), Reg64) 3493 .addImm(0) 3494 .addReg(ResultReg) 3495 .addImm(AArch64::sub_32); 3496 ResultReg = Reg64; 3497 } 3498 return ResultReg; 3499 } else { 3500 if (DestVT == MVT::i64) { 3501 // FIXME: We're SExt i1 to i64. 3502 return 0; 3503 } 3504 return fastEmitInst_rii(AArch64::SBFMWri, &AArch64::GPR32RegClass, SrcReg, 3505 /*TODO:IsKill=*/false, 0, 0); 3506 } 3507 } 3508 3509 unsigned AArch64FastISel::emitMul_rr(MVT RetVT, unsigned Op0, bool Op0IsKill, 3510 unsigned Op1, bool Op1IsKill) { 3511 unsigned Opc, ZReg; 3512 switch (RetVT.SimpleTy) { 3513 default: return 0; 3514 case MVT::i8: 3515 case MVT::i16: 3516 case MVT::i32: 3517 RetVT = MVT::i32; 3518 Opc = AArch64::MADDWrrr; ZReg = AArch64::WZR; break; 3519 case MVT::i64: 3520 Opc = AArch64::MADDXrrr; ZReg = AArch64::XZR; break; 3521 } 3522 3523 const TargetRegisterClass *RC = 3524 (RetVT == MVT::i64) ? &AArch64::GPR64RegClass : &AArch64::GPR32RegClass; 3525 return fastEmitInst_rrr(Opc, RC, Op0, Op0IsKill, Op1, Op1IsKill, 3526 /*IsKill=*/ZReg, true); 3527 } 3528 3529 unsigned AArch64FastISel::emitSMULL_rr(MVT RetVT, unsigned Op0, bool Op0IsKill, 3530 unsigned Op1, bool Op1IsKill) { 3531 if (RetVT != MVT::i64) 3532 return 0; 3533 3534 return fastEmitInst_rrr(AArch64::SMADDLrrr, &AArch64::GPR64RegClass, 3535 Op0, Op0IsKill, Op1, Op1IsKill, 3536 AArch64::XZR, /*IsKill=*/true); 3537 } 3538 3539 unsigned AArch64FastISel::emitUMULL_rr(MVT RetVT, unsigned Op0, bool Op0IsKill, 3540 unsigned Op1, bool Op1IsKill) { 3541 if (RetVT != MVT::i64) 3542 return 0; 3543 3544 return fastEmitInst_rrr(AArch64::UMADDLrrr, &AArch64::GPR64RegClass, 3545 Op0, Op0IsKill, Op1, Op1IsKill, 3546 AArch64::XZR, /*IsKill=*/true); 3547 } 3548 3549 unsigned AArch64FastISel::emitLSL_rr(MVT RetVT, unsigned Op0Reg, bool Op0IsKill, 3550 unsigned Op1Reg, bool Op1IsKill) { 3551 unsigned Opc = 0; 3552 bool NeedTrunc = false; 3553 uint64_t Mask = 0; 3554 switch (RetVT.SimpleTy) { 3555 default: return 0; 3556 case MVT::i8: Opc = AArch64::LSLVWr; NeedTrunc = true; Mask = 0xff; break; 3557 case MVT::i16: Opc = AArch64::LSLVWr; NeedTrunc = true; Mask = 0xffff; break; 3558 case MVT::i32: Opc = AArch64::LSLVWr; break; 3559 case MVT::i64: Opc = AArch64::LSLVXr; break; 3560 } 3561 3562 const TargetRegisterClass *RC = 3563 (RetVT == MVT::i64) ? &AArch64::GPR64RegClass : &AArch64::GPR32RegClass; 3564 if (NeedTrunc) { 3565 Op1Reg = emitAnd_ri(MVT::i32, Op1Reg, Op1IsKill, Mask); 3566 Op1IsKill = true; 3567 } 3568 unsigned ResultReg = fastEmitInst_rr(Opc, RC, Op0Reg, Op0IsKill, Op1Reg, 3569 Op1IsKill); 3570 if (NeedTrunc) 3571 ResultReg = emitAnd_ri(MVT::i32, ResultReg, /*IsKill=*/true, Mask); 3572 return ResultReg; 3573 } 3574 3575 unsigned AArch64FastISel::emitLSL_ri(MVT RetVT, MVT SrcVT, unsigned Op0, 3576 bool Op0IsKill, uint64_t Shift, 3577 bool IsZext) { 3578 assert(RetVT.SimpleTy >= SrcVT.SimpleTy && 3579 "Unexpected source/return type pair."); 3580 assert((SrcVT == MVT::i1 || SrcVT == MVT::i8 || SrcVT == MVT::i16 || 3581 SrcVT == MVT::i32 || SrcVT == MVT::i64) && 3582 "Unexpected source value type."); 3583 assert((RetVT == MVT::i8 || RetVT == MVT::i16 || RetVT == MVT::i32 || 3584 RetVT == MVT::i64) && "Unexpected return value type."); 3585 3586 bool Is64Bit = (RetVT == MVT::i64); 3587 unsigned RegSize = Is64Bit ? 64 : 32; 3588 unsigned DstBits = RetVT.getSizeInBits(); 3589 unsigned SrcBits = SrcVT.getSizeInBits(); 3590 3591 // Don't deal with undefined shifts. 3592 if (Shift >= DstBits) 3593 return 0; 3594 3595 // For immediate shifts we can fold the zero-/sign-extension into the shift. 3596 // {S|U}BFM Wd, Wn, #r, #s 3597 // Wd<32+s-r,32-r> = Wn<s:0> when r > s 3598 3599 // %1 = {s|z}ext i8 {0b1010_1010|0b0101_0101} to i16 3600 // %2 = shl i16 %1, 4 3601 // Wd<32+7-28,32-28> = Wn<7:0> <- clamp s to 7 3602 // 0b1111_1111_1111_1111__1111_1010_1010_0000 sext 3603 // 0b0000_0000_0000_0000__0000_0101_0101_0000 sext | zext 3604 // 0b0000_0000_0000_0000__0000_1010_1010_0000 zext 3605 3606 // %1 = {s|z}ext i8 {0b1010_1010|0b0101_0101} to i16 3607 // %2 = shl i16 %1, 8 3608 // Wd<32+7-24,32-24> = Wn<7:0> 3609 // 0b1111_1111_1111_1111__1010_1010_0000_0000 sext 3610 // 0b0000_0000_0000_0000__0101_0101_0000_0000 sext | zext 3611 // 0b0000_0000_0000_0000__1010_1010_0000_0000 zext 3612 3613 // %1 = {s|z}ext i8 {0b1010_1010|0b0101_0101} to i16 3614 // %2 = shl i16 %1, 12 3615 // Wd<32+3-20,32-20> = Wn<3:0> 3616 // 0b1111_1111_1111_1111__1010_0000_0000_0000 sext 3617 // 0b0000_0000_0000_0000__0101_0000_0000_0000 sext | zext 3618 // 0b0000_0000_0000_0000__1010_0000_0000_0000 zext 3619 3620 unsigned ImmR = RegSize - Shift; 3621 // Limit the width to the length of the source type. 3622 unsigned ImmS = std::min<unsigned>(SrcBits - 1, DstBits - 1 - Shift); 3623 static const unsigned OpcTable[2][2] = { 3624 {AArch64::SBFMWri, AArch64::SBFMXri}, 3625 {AArch64::UBFMWri, AArch64::UBFMXri} 3626 }; 3627 unsigned Opc = OpcTable[IsZext][Is64Bit]; 3628 const TargetRegisterClass *RC = 3629 Is64Bit ? &AArch64::GPR64RegClass : &AArch64::GPR32RegClass; 3630 if (SrcVT.SimpleTy <= MVT::i32 && RetVT == MVT::i64) { 3631 unsigned TmpReg = MRI.createVirtualRegister(RC); 3632 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, 3633 TII.get(AArch64::SUBREG_TO_REG), TmpReg) 3634 .addImm(0) 3635 .addReg(Op0, getKillRegState(Op0IsKill)) 3636 .addImm(AArch64::sub_32); 3637 Op0 = TmpReg; 3638 Op0IsKill = true; 3639 } 3640 return fastEmitInst_rii(Opc, RC, Op0, Op0IsKill, ImmR, ImmS); 3641 } 3642 3643 unsigned AArch64FastISel::emitLSR_rr(MVT RetVT, unsigned Op0Reg, bool Op0IsKill, 3644 unsigned Op1Reg, bool Op1IsKill) { 3645 unsigned Opc = 0; 3646 bool NeedTrunc = false; 3647 uint64_t Mask = 0; 3648 switch (RetVT.SimpleTy) { 3649 default: return 0; 3650 case MVT::i8: Opc = AArch64::LSRVWr; NeedTrunc = true; Mask = 0xff; break; 3651 case MVT::i16: Opc = AArch64::LSRVWr; NeedTrunc = true; Mask = 0xffff; break; 3652 case MVT::i32: Opc = AArch64::LSRVWr; break; 3653 case MVT::i64: Opc = AArch64::LSRVXr; break; 3654 } 3655 3656 const TargetRegisterClass *RC = 3657 (RetVT == MVT::i64) ? &AArch64::GPR64RegClass : &AArch64::GPR32RegClass; 3658 if (NeedTrunc) { 3659 Op0Reg = emitAnd_ri(MVT::i32, Op0Reg, Op0IsKill, Mask); 3660 Op1Reg = emitAnd_ri(MVT::i32, Op1Reg, Op1IsKill, Mask); 3661 Op0IsKill = Op1IsKill = true; 3662 } 3663 unsigned ResultReg = fastEmitInst_rr(Opc, RC, Op0Reg, Op0IsKill, Op1Reg, 3664 Op1IsKill); 3665 if (NeedTrunc) 3666 ResultReg = emitAnd_ri(MVT::i32, ResultReg, /*IsKill=*/true, Mask); 3667 return ResultReg; 3668 } 3669 3670 unsigned AArch64FastISel::emitLSR_ri(MVT RetVT, MVT SrcVT, unsigned Op0, 3671 bool Op0IsKill, uint64_t Shift, 3672 bool IsZExt) { 3673 assert(RetVT.SimpleTy >= SrcVT.SimpleTy && 3674 "Unexpected source/return type pair."); 3675 assert((SrcVT == MVT::i8 || SrcVT == MVT::i16 || SrcVT == MVT::i32 || 3676 SrcVT == MVT::i64) && "Unexpected source value type."); 3677 assert((RetVT == MVT::i8 || RetVT == MVT::i16 || RetVT == MVT::i32 || 3678 RetVT == MVT::i64) && "Unexpected return value type."); 3679 3680 bool Is64Bit = (RetVT == MVT::i64); 3681 unsigned RegSize = Is64Bit ? 64 : 32; 3682 unsigned DstBits = RetVT.getSizeInBits(); 3683 unsigned SrcBits = SrcVT.getSizeInBits(); 3684 3685 // Don't deal with undefined shifts. 3686 if (Shift >= DstBits) 3687 return 0; 3688 3689 // For immediate shifts we can fold the zero-/sign-extension into the shift. 3690 // {S|U}BFM Wd, Wn, #r, #s 3691 // Wd<s-r:0> = Wn<s:r> when r <= s 3692 3693 // %1 = {s|z}ext i8 {0b1010_1010|0b0101_0101} to i16 3694 // %2 = lshr i16 %1, 4 3695 // Wd<7-4:0> = Wn<7:4> 3696 // 0b0000_0000_0000_0000__0000_1111_1111_1010 sext 3697 // 0b0000_0000_0000_0000__0000_0000_0000_0101 sext | zext 3698 // 0b0000_0000_0000_0000__0000_0000_0000_1010 zext 3699 3700 // %1 = {s|z}ext i8 {0b1010_1010|0b0101_0101} to i16 3701 // %2 = lshr i16 %1, 8 3702 // Wd<7-7,0> = Wn<7:7> 3703 // 0b0000_0000_0000_0000__0000_0000_1111_1111 sext 3704 // 0b0000_0000_0000_0000__0000_0000_0000_0000 sext 3705 // 0b0000_0000_0000_0000__0000_0000_0000_0000 zext 3706 3707 // %1 = {s|z}ext i8 {0b1010_1010|0b0101_0101} to i16 3708 // %2 = lshr i16 %1, 12 3709 // Wd<7-7,0> = Wn<7:7> <- clamp r to 7 3710 // 0b0000_0000_0000_0000__0000_0000_0000_1111 sext 3711 // 0b0000_0000_0000_0000__0000_0000_0000_0000 sext 3712 // 0b0000_0000_0000_0000__0000_0000_0000_0000 zext 3713 3714 if (Shift >= SrcBits && IsZExt) 3715 return materializeInt(ConstantInt::get(*Context, APInt(RegSize, 0)), RetVT); 3716 3717 // It is not possible to fold a sign-extend into the LShr instruction. In this 3718 // case emit a sign-extend. 3719 if (!IsZExt) { 3720 Op0 = emitIntExt(SrcVT, Op0, RetVT, IsZExt); 3721 if (!Op0) 3722 return 0; 3723 Op0IsKill = true; 3724 SrcVT = RetVT; 3725 SrcBits = SrcVT.getSizeInBits(); 3726 IsZExt = true; 3727 } 3728 3729 unsigned ImmR = std::min<unsigned>(SrcBits - 1, Shift); 3730 unsigned ImmS = SrcBits - 1; 3731 static const unsigned OpcTable[2][2] = { 3732 {AArch64::SBFMWri, AArch64::SBFMXri}, 3733 {AArch64::UBFMWri, AArch64::UBFMXri} 3734 }; 3735 unsigned Opc = OpcTable[IsZExt][Is64Bit]; 3736 const TargetRegisterClass *RC = 3737 Is64Bit ? &AArch64::GPR64RegClass : &AArch64::GPR32RegClass; 3738 if (SrcVT.SimpleTy <= MVT::i32 && RetVT == MVT::i64) { 3739 unsigned TmpReg = MRI.createVirtualRegister(RC); 3740 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, 3741 TII.get(AArch64::SUBREG_TO_REG), TmpReg) 3742 .addImm(0) 3743 .addReg(Op0, getKillRegState(Op0IsKill)) 3744 .addImm(AArch64::sub_32); 3745 Op0 = TmpReg; 3746 Op0IsKill = true; 3747 } 3748 return fastEmitInst_rii(Opc, RC, Op0, Op0IsKill, ImmR, ImmS); 3749 } 3750 3751 unsigned AArch64FastISel::emitASR_rr(MVT RetVT, unsigned Op0Reg, bool Op0IsKill, 3752 unsigned Op1Reg, bool Op1IsKill) { 3753 unsigned Opc = 0; 3754 bool NeedTrunc = false; 3755 uint64_t Mask = 0; 3756 switch (RetVT.SimpleTy) { 3757 default: return 0; 3758 case MVT::i8: Opc = AArch64::ASRVWr; NeedTrunc = true; Mask = 0xff; break; 3759 case MVT::i16: Opc = AArch64::ASRVWr; NeedTrunc = true; Mask = 0xffff; break; 3760 case MVT::i32: Opc = AArch64::ASRVWr; break; 3761 case MVT::i64: Opc = AArch64::ASRVXr; break; 3762 } 3763 3764 const TargetRegisterClass *RC = 3765 (RetVT == MVT::i64) ? &AArch64::GPR64RegClass : &AArch64::GPR32RegClass; 3766 if (NeedTrunc) { 3767 Op0Reg = emitIntExt(RetVT, Op0Reg, MVT::i32, /*IsZExt=*/false); 3768 Op1Reg = emitAnd_ri(MVT::i32, Op1Reg, Op1IsKill, Mask); 3769 Op0IsKill = Op1IsKill = true; 3770 } 3771 unsigned ResultReg = fastEmitInst_rr(Opc, RC, Op0Reg, Op0IsKill, Op1Reg, 3772 Op1IsKill); 3773 if (NeedTrunc) 3774 ResultReg = emitAnd_ri(MVT::i32, ResultReg, /*IsKill=*/true, Mask); 3775 return ResultReg; 3776 } 3777 3778 unsigned AArch64FastISel::emitASR_ri(MVT RetVT, MVT SrcVT, unsigned Op0, 3779 bool Op0IsKill, uint64_t Shift, 3780 bool IsZExt) { 3781 assert(RetVT.SimpleTy >= SrcVT.SimpleTy && 3782 "Unexpected source/return type pair."); 3783 assert((SrcVT == MVT::i8 || SrcVT == MVT::i16 || SrcVT == MVT::i32 || 3784 SrcVT == MVT::i64) && "Unexpected source value type."); 3785 assert((RetVT == MVT::i8 || RetVT == MVT::i16 || RetVT == MVT::i32 || 3786 RetVT == MVT::i64) && "Unexpected return value type."); 3787 3788 bool Is64Bit = (RetVT == MVT::i64); 3789 unsigned RegSize = Is64Bit ? 64 : 32; 3790 unsigned DstBits = RetVT.getSizeInBits(); 3791 unsigned SrcBits = SrcVT.getSizeInBits(); 3792 3793 // Don't deal with undefined shifts. 3794 if (Shift >= DstBits) 3795 return 0; 3796 3797 // For immediate shifts we can fold the zero-/sign-extension into the shift. 3798 // {S|U}BFM Wd, Wn, #r, #s 3799 // Wd<s-r:0> = Wn<s:r> when r <= s 3800 3801 // %1 = {s|z}ext i8 {0b1010_1010|0b0101_0101} to i16 3802 // %2 = ashr i16 %1, 4 3803 // Wd<7-4:0> = Wn<7:4> 3804 // 0b1111_1111_1111_1111__1111_1111_1111_1010 sext 3805 // 0b0000_0000_0000_0000__0000_0000_0000_0101 sext | zext 3806 // 0b0000_0000_0000_0000__0000_0000_0000_1010 zext 3807 3808 // %1 = {s|z}ext i8 {0b1010_1010|0b0101_0101} to i16 3809 // %2 = ashr i16 %1, 8 3810 // Wd<7-7,0> = Wn<7:7> 3811 // 0b1111_1111_1111_1111__1111_1111_1111_1111 sext 3812 // 0b0000_0000_0000_0000__0000_0000_0000_0000 sext 3813 // 0b0000_0000_0000_0000__0000_0000_0000_0000 zext 3814 3815 // %1 = {s|z}ext i8 {0b1010_1010|0b0101_0101} to i16 3816 // %2 = ashr i16 %1, 12 3817 // Wd<7-7,0> = Wn<7:7> <- clamp r to 7 3818 // 0b1111_1111_1111_1111__1111_1111_1111_1111 sext 3819 // 0b0000_0000_0000_0000__0000_0000_0000_0000 sext 3820 // 0b0000_0000_0000_0000__0000_0000_0000_0000 zext 3821 3822 if (Shift >= SrcBits && IsZExt) 3823 return materializeInt(ConstantInt::get(*Context, APInt(RegSize, 0)), RetVT); 3824 3825 unsigned ImmR = std::min<unsigned>(SrcBits - 1, Shift); 3826 unsigned ImmS = SrcBits - 1; 3827 static const unsigned OpcTable[2][2] = { 3828 {AArch64::SBFMWri, AArch64::SBFMXri}, 3829 {AArch64::UBFMWri, AArch64::UBFMXri} 3830 }; 3831 unsigned Opc = OpcTable[IsZExt][Is64Bit]; 3832 const TargetRegisterClass *RC = 3833 Is64Bit ? &AArch64::GPR64RegClass : &AArch64::GPR32RegClass; 3834 if (SrcVT.SimpleTy <= MVT::i32 && RetVT == MVT::i64) { 3835 unsigned TmpReg = MRI.createVirtualRegister(RC); 3836 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, 3837 TII.get(AArch64::SUBREG_TO_REG), TmpReg) 3838 .addImm(0) 3839 .addReg(Op0, getKillRegState(Op0IsKill)) 3840 .addImm(AArch64::sub_32); 3841 Op0 = TmpReg; 3842 Op0IsKill = true; 3843 } 3844 return fastEmitInst_rii(Opc, RC, Op0, Op0IsKill, ImmR, ImmS); 3845 } 3846 3847 unsigned AArch64FastISel::emitIntExt(MVT SrcVT, unsigned SrcReg, MVT DestVT, 3848 bool IsZExt) { 3849 assert(DestVT != MVT::i1 && "ZeroExt/SignExt an i1?"); 3850 3851 // FastISel does not have plumbing to deal with extensions where the SrcVT or 3852 // DestVT are odd things, so test to make sure that they are both types we can 3853 // handle (i1/i8/i16/i32 for SrcVT and i8/i16/i32/i64 for DestVT), otherwise 3854 // bail out to SelectionDAG. 3855 if (((DestVT != MVT::i8) && (DestVT != MVT::i16) && 3856 (DestVT != MVT::i32) && (DestVT != MVT::i64)) || 3857 ((SrcVT != MVT::i1) && (SrcVT != MVT::i8) && 3858 (SrcVT != MVT::i16) && (SrcVT != MVT::i32))) 3859 return 0; 3860 3861 unsigned Opc; 3862 unsigned Imm = 0; 3863 3864 switch (SrcVT.SimpleTy) { 3865 default: 3866 return 0; 3867 case MVT::i1: 3868 return emiti1Ext(SrcReg, DestVT, IsZExt); 3869 case MVT::i8: 3870 if (DestVT == MVT::i64) 3871 Opc = IsZExt ? AArch64::UBFMXri : AArch64::SBFMXri; 3872 else 3873 Opc = IsZExt ? AArch64::UBFMWri : AArch64::SBFMWri; 3874 Imm = 7; 3875 break; 3876 case MVT::i16: 3877 if (DestVT == MVT::i64) 3878 Opc = IsZExt ? AArch64::UBFMXri : AArch64::SBFMXri; 3879 else 3880 Opc = IsZExt ? AArch64::UBFMWri : AArch64::SBFMWri; 3881 Imm = 15; 3882 break; 3883 case MVT::i32: 3884 assert(DestVT == MVT::i64 && "IntExt i32 to i32?!?"); 3885 Opc = IsZExt ? AArch64::UBFMXri : AArch64::SBFMXri; 3886 Imm = 31; 3887 break; 3888 } 3889 3890 // Handle i8 and i16 as i32. 3891 if (DestVT == MVT::i8 || DestVT == MVT::i16) 3892 DestVT = MVT::i32; 3893 else if (DestVT == MVT::i64) { 3894 unsigned Src64 = MRI.createVirtualRegister(&AArch64::GPR64RegClass); 3895 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, 3896 TII.get(AArch64::SUBREG_TO_REG), Src64) 3897 .addImm(0) 3898 .addReg(SrcReg) 3899 .addImm(AArch64::sub_32); 3900 SrcReg = Src64; 3901 } 3902 3903 const TargetRegisterClass *RC = 3904 (DestVT == MVT::i64) ? &AArch64::GPR64RegClass : &AArch64::GPR32RegClass; 3905 return fastEmitInst_rii(Opc, RC, SrcReg, /*TODO:IsKill=*/false, 0, Imm); 3906 } 3907 3908 bool AArch64FastISel::selectIntExt(const Instruction *I) { 3909 assert((isa<ZExtInst>(I) || isa<SExtInst>(I)) && 3910 "Unexpected integer extend instruction."); 3911 MVT RetVT; 3912 MVT SrcVT; 3913 if (!isTypeSupported(I->getType(), RetVT)) 3914 return false; 3915 3916 if (!isTypeSupported(I->getOperand(0)->getType(), SrcVT)) 3917 return false; 3918 3919 if (isIntExtFree(I)) { 3920 unsigned SrcReg = getRegForValue(I->getOperand(0)); 3921 if (!SrcReg) 3922 return false; 3923 bool SrcIsKill = hasTrivialKill(I->getOperand(0)); 3924 3925 const TargetRegisterClass *RC = (RetVT == MVT::i64) ? 3926 &AArch64::GPR64RegClass : &AArch64::GPR32RegClass; 3927 unsigned ResultReg = createResultReg(RC); 3928 if (RetVT == MVT::i64 && SrcVT != MVT::i64) { 3929 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, 3930 TII.get(AArch64::SUBREG_TO_REG), ResultReg) 3931 .addImm(0) 3932 .addReg(SrcReg, getKillRegState(SrcIsKill)) 3933 .addImm(AArch64::sub_32); 3934 } else { 3935 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, 3936 TII.get(TargetOpcode::COPY), ResultReg) 3937 .addReg(SrcReg, getKillRegState(SrcIsKill)); 3938 } 3939 updateValueMap(I, ResultReg); 3940 return true; 3941 } 3942 3943 unsigned SrcReg = getRegForValue(I->getOperand(0)); 3944 if (!SrcReg) 3945 return false; 3946 bool SrcRegIsKill = hasTrivialKill(I->getOperand(0)); 3947 3948 unsigned ResultReg = 0; 3949 if (isIntExtFree(I)) { 3950 if (RetVT == MVT::i64) { 3951 ResultReg = createResultReg(&AArch64::GPR64RegClass); 3952 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, 3953 TII.get(AArch64::SUBREG_TO_REG), ResultReg) 3954 .addImm(0) 3955 .addReg(SrcReg, getKillRegState(SrcRegIsKill)) 3956 .addImm(AArch64::sub_32); 3957 } else 3958 ResultReg = SrcReg; 3959 } 3960 3961 if (!ResultReg) 3962 ResultReg = emitIntExt(SrcVT, SrcReg, RetVT, isa<ZExtInst>(I)); 3963 3964 if (!ResultReg) 3965 return false; 3966 3967 updateValueMap(I, ResultReg); 3968 return true; 3969 } 3970 3971 bool AArch64FastISel::selectRem(const Instruction *I, unsigned ISDOpcode) { 3972 EVT DestEVT = TLI.getValueType(I->getType(), true); 3973 if (!DestEVT.isSimple()) 3974 return false; 3975 3976 MVT DestVT = DestEVT.getSimpleVT(); 3977 if (DestVT != MVT::i64 && DestVT != MVT::i32) 3978 return false; 3979 3980 unsigned DivOpc; 3981 bool Is64bit = (DestVT == MVT::i64); 3982 switch (ISDOpcode) { 3983 default: 3984 return false; 3985 case ISD::SREM: 3986 DivOpc = Is64bit ? AArch64::SDIVXr : AArch64::SDIVWr; 3987 break; 3988 case ISD::UREM: 3989 DivOpc = Is64bit ? AArch64::UDIVXr : AArch64::UDIVWr; 3990 break; 3991 } 3992 unsigned MSubOpc = Is64bit ? AArch64::MSUBXrrr : AArch64::MSUBWrrr; 3993 unsigned Src0Reg = getRegForValue(I->getOperand(0)); 3994 if (!Src0Reg) 3995 return false; 3996 bool Src0IsKill = hasTrivialKill(I->getOperand(0)); 3997 3998 unsigned Src1Reg = getRegForValue(I->getOperand(1)); 3999 if (!Src1Reg) 4000 return false; 4001 bool Src1IsKill = hasTrivialKill(I->getOperand(1)); 4002 4003 const TargetRegisterClass *RC = 4004 (DestVT == MVT::i64) ? &AArch64::GPR64RegClass : &AArch64::GPR32RegClass; 4005 unsigned QuotReg = fastEmitInst_rr(DivOpc, RC, Src0Reg, /*IsKill=*/false, 4006 Src1Reg, /*IsKill=*/false); 4007 assert(QuotReg && "Unexpected DIV instruction emission failure."); 4008 // The remainder is computed as numerator - (quotient * denominator) using the 4009 // MSUB instruction. 4010 unsigned ResultReg = fastEmitInst_rrr(MSubOpc, RC, QuotReg, /*IsKill=*/true, 4011 Src1Reg, Src1IsKill, Src0Reg, 4012 Src0IsKill); 4013 updateValueMap(I, ResultReg); 4014 return true; 4015 } 4016 4017 bool AArch64FastISel::selectMul(const Instruction *I) { 4018 MVT VT; 4019 if (!isTypeSupported(I->getType(), VT, /*IsVectorAllowed=*/true)) 4020 return false; 4021 4022 if (VT.isVector()) 4023 return selectBinaryOp(I, ISD::MUL); 4024 4025 const Value *Src0 = I->getOperand(0); 4026 const Value *Src1 = I->getOperand(1); 4027 if (const auto *C = dyn_cast<ConstantInt>(Src0)) 4028 if (C->getValue().isPowerOf2()) 4029 std::swap(Src0, Src1); 4030 4031 // Try to simplify to a shift instruction. 4032 if (const auto *C = dyn_cast<ConstantInt>(Src1)) 4033 if (C->getValue().isPowerOf2()) { 4034 uint64_t ShiftVal = C->getValue().logBase2(); 4035 MVT SrcVT = VT; 4036 bool IsZExt = true; 4037 if (const auto *ZExt = dyn_cast<ZExtInst>(Src0)) { 4038 if (!isIntExtFree(ZExt)) { 4039 MVT VT; 4040 if (isValueAvailable(ZExt) && isTypeSupported(ZExt->getSrcTy(), VT)) { 4041 SrcVT = VT; 4042 IsZExt = true; 4043 Src0 = ZExt->getOperand(0); 4044 } 4045 } 4046 } else if (const auto *SExt = dyn_cast<SExtInst>(Src0)) { 4047 if (!isIntExtFree(SExt)) { 4048 MVT VT; 4049 if (isValueAvailable(SExt) && isTypeSupported(SExt->getSrcTy(), VT)) { 4050 SrcVT = VT; 4051 IsZExt = false; 4052 Src0 = SExt->getOperand(0); 4053 } 4054 } 4055 } 4056 4057 unsigned Src0Reg = getRegForValue(Src0); 4058 if (!Src0Reg) 4059 return false; 4060 bool Src0IsKill = hasTrivialKill(Src0); 4061 4062 unsigned ResultReg = 4063 emitLSL_ri(VT, SrcVT, Src0Reg, Src0IsKill, ShiftVal, IsZExt); 4064 4065 if (ResultReg) { 4066 updateValueMap(I, ResultReg); 4067 return true; 4068 } 4069 } 4070 4071 unsigned Src0Reg = getRegForValue(I->getOperand(0)); 4072 if (!Src0Reg) 4073 return false; 4074 bool Src0IsKill = hasTrivialKill(I->getOperand(0)); 4075 4076 unsigned Src1Reg = getRegForValue(I->getOperand(1)); 4077 if (!Src1Reg) 4078 return false; 4079 bool Src1IsKill = hasTrivialKill(I->getOperand(1)); 4080 4081 unsigned ResultReg = emitMul_rr(VT, Src0Reg, Src0IsKill, Src1Reg, Src1IsKill); 4082 4083 if (!ResultReg) 4084 return false; 4085 4086 updateValueMap(I, ResultReg); 4087 return true; 4088 } 4089 4090 bool AArch64FastISel::selectShift(const Instruction *I) { 4091 MVT RetVT; 4092 if (!isTypeSupported(I->getType(), RetVT, /*IsVectorAllowed=*/true)) 4093 return false; 4094 4095 if (RetVT.isVector()) 4096 return selectOperator(I, I->getOpcode()); 4097 4098 if (const auto *C = dyn_cast<ConstantInt>(I->getOperand(1))) { 4099 unsigned ResultReg = 0; 4100 uint64_t ShiftVal = C->getZExtValue(); 4101 MVT SrcVT = RetVT; 4102 bool IsZExt = (I->getOpcode() == Instruction::AShr) ? false : true; 4103 const Value *Op0 = I->getOperand(0); 4104 if (const auto *ZExt = dyn_cast<ZExtInst>(Op0)) { 4105 if (!isIntExtFree(ZExt)) { 4106 MVT TmpVT; 4107 if (isValueAvailable(ZExt) && isTypeSupported(ZExt->getSrcTy(), TmpVT)) { 4108 SrcVT = TmpVT; 4109 IsZExt = true; 4110 Op0 = ZExt->getOperand(0); 4111 } 4112 } 4113 } else if (const auto *SExt = dyn_cast<SExtInst>(Op0)) { 4114 if (!isIntExtFree(SExt)) { 4115 MVT TmpVT; 4116 if (isValueAvailable(SExt) && isTypeSupported(SExt->getSrcTy(), TmpVT)) { 4117 SrcVT = TmpVT; 4118 IsZExt = false; 4119 Op0 = SExt->getOperand(0); 4120 } 4121 } 4122 } 4123 4124 unsigned Op0Reg = getRegForValue(Op0); 4125 if (!Op0Reg) 4126 return false; 4127 bool Op0IsKill = hasTrivialKill(Op0); 4128 4129 switch (I->getOpcode()) { 4130 default: llvm_unreachable("Unexpected instruction."); 4131 case Instruction::Shl: 4132 ResultReg = emitLSL_ri(RetVT, SrcVT, Op0Reg, Op0IsKill, ShiftVal, IsZExt); 4133 break; 4134 case Instruction::AShr: 4135 ResultReg = emitASR_ri(RetVT, SrcVT, Op0Reg, Op0IsKill, ShiftVal, IsZExt); 4136 break; 4137 case Instruction::LShr: 4138 ResultReg = emitLSR_ri(RetVT, SrcVT, Op0Reg, Op0IsKill, ShiftVal, IsZExt); 4139 break; 4140 } 4141 if (!ResultReg) 4142 return false; 4143 4144 updateValueMap(I, ResultReg); 4145 return true; 4146 } 4147 4148 unsigned Op0Reg = getRegForValue(I->getOperand(0)); 4149 if (!Op0Reg) 4150 return false; 4151 bool Op0IsKill = hasTrivialKill(I->getOperand(0)); 4152 4153 unsigned Op1Reg = getRegForValue(I->getOperand(1)); 4154 if (!Op1Reg) 4155 return false; 4156 bool Op1IsKill = hasTrivialKill(I->getOperand(1)); 4157 4158 unsigned ResultReg = 0; 4159 switch (I->getOpcode()) { 4160 default: llvm_unreachable("Unexpected instruction."); 4161 case Instruction::Shl: 4162 ResultReg = emitLSL_rr(RetVT, Op0Reg, Op0IsKill, Op1Reg, Op1IsKill); 4163 break; 4164 case Instruction::AShr: 4165 ResultReg = emitASR_rr(RetVT, Op0Reg, Op0IsKill, Op1Reg, Op1IsKill); 4166 break; 4167 case Instruction::LShr: 4168 ResultReg = emitLSR_rr(RetVT, Op0Reg, Op0IsKill, Op1Reg, Op1IsKill); 4169 break; 4170 } 4171 4172 if (!ResultReg) 4173 return false; 4174 4175 updateValueMap(I, ResultReg); 4176 return true; 4177 } 4178 4179 bool AArch64FastISel::selectBitCast(const Instruction *I) { 4180 MVT RetVT, SrcVT; 4181 4182 if (!isTypeLegal(I->getOperand(0)->getType(), SrcVT)) 4183 return false; 4184 if (!isTypeLegal(I->getType(), RetVT)) 4185 return false; 4186 4187 unsigned Opc; 4188 if (RetVT == MVT::f32 && SrcVT == MVT::i32) 4189 Opc = AArch64::FMOVWSr; 4190 else if (RetVT == MVT::f64 && SrcVT == MVT::i64) 4191 Opc = AArch64::FMOVXDr; 4192 else if (RetVT == MVT::i32 && SrcVT == MVT::f32) 4193 Opc = AArch64::FMOVSWr; 4194 else if (RetVT == MVT::i64 && SrcVT == MVT::f64) 4195 Opc = AArch64::FMOVDXr; 4196 else 4197 return false; 4198 4199 const TargetRegisterClass *RC = nullptr; 4200 switch (RetVT.SimpleTy) { 4201 default: llvm_unreachable("Unexpected value type."); 4202 case MVT::i32: RC = &AArch64::GPR32RegClass; break; 4203 case MVT::i64: RC = &AArch64::GPR64RegClass; break; 4204 case MVT::f32: RC = &AArch64::FPR32RegClass; break; 4205 case MVT::f64: RC = &AArch64::FPR64RegClass; break; 4206 } 4207 unsigned Op0Reg = getRegForValue(I->getOperand(0)); 4208 if (!Op0Reg) 4209 return false; 4210 bool Op0IsKill = hasTrivialKill(I->getOperand(0)); 4211 unsigned ResultReg = fastEmitInst_r(Opc, RC, Op0Reg, Op0IsKill); 4212 4213 if (!ResultReg) 4214 return false; 4215 4216 updateValueMap(I, ResultReg); 4217 return true; 4218 } 4219 4220 bool AArch64FastISel::selectFRem(const Instruction *I) { 4221 MVT RetVT; 4222 if (!isTypeLegal(I->getType(), RetVT)) 4223 return false; 4224 4225 RTLIB::Libcall LC; 4226 switch (RetVT.SimpleTy) { 4227 default: 4228 return false; 4229 case MVT::f32: 4230 LC = RTLIB::REM_F32; 4231 break; 4232 case MVT::f64: 4233 LC = RTLIB::REM_F64; 4234 break; 4235 } 4236 4237 ArgListTy Args; 4238 Args.reserve(I->getNumOperands()); 4239 4240 // Populate the argument list. 4241 for (auto &Arg : I->operands()) { 4242 ArgListEntry Entry; 4243 Entry.Val = Arg; 4244 Entry.Ty = Arg->getType(); 4245 Args.push_back(Entry); 4246 } 4247 4248 CallLoweringInfo CLI; 4249 CLI.setCallee(TLI.getLibcallCallingConv(LC), I->getType(), 4250 TLI.getLibcallName(LC), std::move(Args)); 4251 if (!lowerCallTo(CLI)) 4252 return false; 4253 updateValueMap(I, CLI.ResultReg); 4254 return true; 4255 } 4256 4257 bool AArch64FastISel::selectSDiv(const Instruction *I) { 4258 MVT VT; 4259 if (!isTypeLegal(I->getType(), VT)) 4260 return false; 4261 4262 if (!isa<ConstantInt>(I->getOperand(1))) 4263 return selectBinaryOp(I, ISD::SDIV); 4264 4265 const APInt &C = cast<ConstantInt>(I->getOperand(1))->getValue(); 4266 if ((VT != MVT::i32 && VT != MVT::i64) || !C || 4267 !(C.isPowerOf2() || (-C).isPowerOf2())) 4268 return selectBinaryOp(I, ISD::SDIV); 4269 4270 unsigned Lg2 = C.countTrailingZeros(); 4271 unsigned Src0Reg = getRegForValue(I->getOperand(0)); 4272 if (!Src0Reg) 4273 return false; 4274 bool Src0IsKill = hasTrivialKill(I->getOperand(0)); 4275 4276 if (cast<BinaryOperator>(I)->isExact()) { 4277 unsigned ResultReg = emitASR_ri(VT, VT, Src0Reg, Src0IsKill, Lg2); 4278 if (!ResultReg) 4279 return false; 4280 updateValueMap(I, ResultReg); 4281 return true; 4282 } 4283 4284 unsigned Pow2MinusOne = (1 << Lg2) - 1; 4285 unsigned AddReg = emitAddSub_ri(/*UseAdd=*/true, VT, Src0Reg, 4286 /*IsKill=*/false, Pow2MinusOne); 4287 if (!AddReg) 4288 return false; 4289 4290 // (Src0 < 0) ? Pow2 - 1 : 0; 4291 if (!emitICmp_ri(VT, Src0Reg, /*IsKill=*/false, 0)) 4292 return false; 4293 4294 unsigned SelectOpc; 4295 const TargetRegisterClass *RC; 4296 if (VT == MVT::i64) { 4297 SelectOpc = AArch64::CSELXr; 4298 RC = &AArch64::GPR64RegClass; 4299 } else { 4300 SelectOpc = AArch64::CSELWr; 4301 RC = &AArch64::GPR32RegClass; 4302 } 4303 unsigned SelectReg = 4304 fastEmitInst_rri(SelectOpc, RC, AddReg, /*IsKill=*/true, Src0Reg, 4305 Src0IsKill, AArch64CC::LT); 4306 if (!SelectReg) 4307 return false; 4308 4309 // Divide by Pow2 --> ashr. If we're dividing by a negative value we must also 4310 // negate the result. 4311 unsigned ZeroReg = (VT == MVT::i64) ? AArch64::XZR : AArch64::WZR; 4312 unsigned ResultReg; 4313 if (C.isNegative()) 4314 ResultReg = emitAddSub_rs(/*UseAdd=*/false, VT, ZeroReg, /*IsKill=*/true, 4315 SelectReg, /*IsKill=*/true, AArch64_AM::ASR, Lg2); 4316 else 4317 ResultReg = emitASR_ri(VT, VT, SelectReg, /*IsKill=*/true, Lg2); 4318 4319 if (!ResultReg) 4320 return false; 4321 4322 updateValueMap(I, ResultReg); 4323 return true; 4324 } 4325 4326 bool AArch64FastISel::fastSelectInstruction(const Instruction *I) { 4327 switch (I->getOpcode()) { 4328 default: 4329 break; 4330 case Instruction::Add: 4331 case Instruction::Sub: 4332 return selectAddSub(I); 4333 case Instruction::Mul: 4334 return selectMul(I); 4335 case Instruction::SDiv: 4336 return selectSDiv(I); 4337 case Instruction::SRem: 4338 if (!selectBinaryOp(I, ISD::SREM)) 4339 return selectRem(I, ISD::SREM); 4340 return true; 4341 case Instruction::URem: 4342 if (!selectBinaryOp(I, ISD::UREM)) 4343 return selectRem(I, ISD::UREM); 4344 return true; 4345 case Instruction::Shl: 4346 case Instruction::LShr: 4347 case Instruction::AShr: 4348 return selectShift(I); 4349 case Instruction::And: 4350 case Instruction::Or: 4351 case Instruction::Xor: 4352 return selectLogicalOp(I); 4353 case Instruction::Br: 4354 return selectBranch(I); 4355 case Instruction::IndirectBr: 4356 return selectIndirectBr(I); 4357 case Instruction::BitCast: 4358 if (!FastISel::selectBitCast(I)) 4359 return selectBitCast(I); 4360 return true; 4361 case Instruction::FPToSI: 4362 if (!selectCast(I, ISD::FP_TO_SINT)) 4363 return selectFPToInt(I, /*Signed=*/true); 4364 return true; 4365 case Instruction::FPToUI: 4366 return selectFPToInt(I, /*Signed=*/false); 4367 case Instruction::ZExt: 4368 case Instruction::SExt: 4369 return selectIntExt(I); 4370 case Instruction::Trunc: 4371 if (!selectCast(I, ISD::TRUNCATE)) 4372 return selectTrunc(I); 4373 return true; 4374 case Instruction::FPExt: 4375 return selectFPExt(I); 4376 case Instruction::FPTrunc: 4377 return selectFPTrunc(I); 4378 case Instruction::SIToFP: 4379 if (!selectCast(I, ISD::SINT_TO_FP)) 4380 return selectIntToFP(I, /*Signed=*/true); 4381 return true; 4382 case Instruction::UIToFP: 4383 return selectIntToFP(I, /*Signed=*/false); 4384 case Instruction::Load: 4385 return selectLoad(I); 4386 case Instruction::Store: 4387 return selectStore(I); 4388 case Instruction::FCmp: 4389 case Instruction::ICmp: 4390 return selectCmp(I); 4391 case Instruction::Select: 4392 return selectSelect(I); 4393 case Instruction::Ret: 4394 return selectRet(I); 4395 case Instruction::FRem: 4396 return selectFRem(I); 4397 } 4398 4399 // fall-back to target-independent instruction selection. 4400 return selectOperator(I, I->getOpcode()); 4401 // Silence warnings. 4402 (void)&CC_AArch64_DarwinPCS_VarArg; 4403 } 4404 4405 namespace llvm { 4406 llvm::FastISel *AArch64::createFastISel(FunctionLoweringInfo &FuncInfo, 4407 const TargetLibraryInfo *LibInfo) { 4408 return new AArch64FastISel(FuncInfo, LibInfo); 4409 } 4410 } 4411