1 //===-- X86FastISel.cpp - X86 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 X86-specific support for the FastISel class. Much 11 // of the target-specific code is generated by tablegen in the file 12 // X86GenFastISel.inc, which is #included here. 13 // 14 //===----------------------------------------------------------------------===// 15 16 #include "X86.h" 17 #include "X86InstrBuilder.h" 18 #include "X86ISelLowering.h" 19 #include "X86RegisterInfo.h" 20 #include "X86Subtarget.h" 21 #include "X86TargetMachine.h" 22 #include "llvm/CallingConv.h" 23 #include "llvm/DerivedTypes.h" 24 #include "llvm/GlobalVariable.h" 25 #include "llvm/GlobalAlias.h" 26 #include "llvm/Instructions.h" 27 #include "llvm/IntrinsicInst.h" 28 #include "llvm/Operator.h" 29 #include "llvm/CodeGen/Analysis.h" 30 #include "llvm/CodeGen/FastISel.h" 31 #include "llvm/CodeGen/FunctionLoweringInfo.h" 32 #include "llvm/CodeGen/MachineConstantPool.h" 33 #include "llvm/CodeGen/MachineFrameInfo.h" 34 #include "llvm/CodeGen/MachineRegisterInfo.h" 35 #include "llvm/Support/CallSite.h" 36 #include "llvm/Support/ErrorHandling.h" 37 #include "llvm/Support/GetElementPtrTypeIterator.h" 38 #include "llvm/Target/TargetOptions.h" 39 using namespace llvm; 40 41 namespace { 42 43 class X86FastISel : public FastISel { 44 /// Subtarget - Keep a pointer to the X86Subtarget around so that we can 45 /// make the right decision when generating code for different targets. 46 const X86Subtarget *Subtarget; 47 48 /// StackPtr - Register used as the stack pointer. 49 /// 50 unsigned StackPtr; 51 52 /// X86ScalarSSEf32, X86ScalarSSEf64 - Select between SSE or x87 53 /// floating point ops. 54 /// When SSE is available, use it for f32 operations. 55 /// When SSE2 is available, use it for f64 operations. 56 bool X86ScalarSSEf64; 57 bool X86ScalarSSEf32; 58 59 public: 60 explicit X86FastISel(FunctionLoweringInfo &funcInfo, 61 const TargetLibraryInfo *libInfo) 62 : FastISel(funcInfo, libInfo) { 63 Subtarget = &TM.getSubtarget<X86Subtarget>(); 64 StackPtr = Subtarget->is64Bit() ? X86::RSP : X86::ESP; 65 X86ScalarSSEf64 = Subtarget->hasSSE2(); 66 X86ScalarSSEf32 = Subtarget->hasSSE1(); 67 } 68 69 virtual bool TargetSelectInstruction(const Instruction *I); 70 71 /// TryToFoldLoad - The specified machine instr operand is a vreg, and that 72 /// vreg is being provided by the specified load instruction. If possible, 73 /// try to fold the load as an operand to the instruction, returning true if 74 /// possible. 75 virtual bool TryToFoldLoad(MachineInstr *MI, unsigned OpNo, 76 const LoadInst *LI); 77 78 #include "X86GenFastISel.inc" 79 80 private: 81 bool X86FastEmitCompare(const Value *LHS, const Value *RHS, EVT VT); 82 83 bool X86FastEmitLoad(EVT VT, const X86AddressMode &AM, unsigned &RR); 84 85 bool X86FastEmitStore(EVT VT, const Value *Val, const X86AddressMode &AM); 86 bool X86FastEmitStore(EVT VT, unsigned Val, const X86AddressMode &AM); 87 88 bool X86FastEmitExtend(ISD::NodeType Opc, EVT DstVT, unsigned Src, EVT SrcVT, 89 unsigned &ResultReg); 90 91 bool X86SelectAddress(const Value *V, X86AddressMode &AM); 92 bool X86SelectCallAddress(const Value *V, X86AddressMode &AM); 93 94 bool X86SelectLoad(const Instruction *I); 95 96 bool X86SelectStore(const Instruction *I); 97 98 bool X86SelectRet(const Instruction *I); 99 100 bool X86SelectCmp(const Instruction *I); 101 102 bool X86SelectZExt(const Instruction *I); 103 104 bool X86SelectBranch(const Instruction *I); 105 106 bool X86SelectShift(const Instruction *I); 107 108 bool X86SelectSelect(const Instruction *I); 109 110 bool X86SelectTrunc(const Instruction *I); 111 112 bool X86SelectFPExt(const Instruction *I); 113 bool X86SelectFPTrunc(const Instruction *I); 114 115 bool X86VisitIntrinsicCall(const IntrinsicInst &I); 116 bool X86SelectCall(const Instruction *I); 117 118 bool DoSelectCall(const Instruction *I, const char *MemIntName); 119 120 const X86InstrInfo *getInstrInfo() const { 121 return getTargetMachine()->getInstrInfo(); 122 } 123 const X86TargetMachine *getTargetMachine() const { 124 return static_cast<const X86TargetMachine *>(&TM); 125 } 126 127 unsigned TargetMaterializeConstant(const Constant *C); 128 129 unsigned TargetMaterializeAlloca(const AllocaInst *C); 130 131 unsigned TargetMaterializeFloatZero(const ConstantFP *CF); 132 133 /// isScalarFPTypeInSSEReg - Return true if the specified scalar FP type is 134 /// computed in an SSE register, not on the X87 floating point stack. 135 bool isScalarFPTypeInSSEReg(EVT VT) const { 136 return (VT == MVT::f64 && X86ScalarSSEf64) || // f64 is when SSE2 137 (VT == MVT::f32 && X86ScalarSSEf32); // f32 is when SSE1 138 } 139 140 bool isTypeLegal(Type *Ty, MVT &VT, bool AllowI1 = false); 141 142 bool IsMemcpySmall(uint64_t Len); 143 144 bool TryEmitSmallMemcpy(X86AddressMode DestAM, 145 X86AddressMode SrcAM, uint64_t Len); 146 }; 147 148 } // end anonymous namespace. 149 150 bool X86FastISel::isTypeLegal(Type *Ty, MVT &VT, bool AllowI1) { 151 EVT evt = TLI.getValueType(Ty, /*HandleUnknown=*/true); 152 if (evt == MVT::Other || !evt.isSimple()) 153 // Unhandled type. Halt "fast" selection and bail. 154 return false; 155 156 VT = evt.getSimpleVT(); 157 // For now, require SSE/SSE2 for performing floating-point operations, 158 // since x87 requires additional work. 159 if (VT == MVT::f64 && !X86ScalarSSEf64) 160 return false; 161 if (VT == MVT::f32 && !X86ScalarSSEf32) 162 return false; 163 // Similarly, no f80 support yet. 164 if (VT == MVT::f80) 165 return false; 166 // We only handle legal types. For example, on x86-32 the instruction 167 // selector contains all of the 64-bit instructions from x86-64, 168 // under the assumption that i64 won't be used if the target doesn't 169 // support it. 170 return (AllowI1 && VT == MVT::i1) || TLI.isTypeLegal(VT); 171 } 172 173 #include "X86GenCallingConv.inc" 174 175 /// X86FastEmitLoad - Emit a machine instruction to load a value of type VT. 176 /// The address is either pre-computed, i.e. Ptr, or a GlobalAddress, i.e. GV. 177 /// Return true and the result register by reference if it is possible. 178 bool X86FastISel::X86FastEmitLoad(EVT VT, const X86AddressMode &AM, 179 unsigned &ResultReg) { 180 // Get opcode and regclass of the output for the given load instruction. 181 unsigned Opc = 0; 182 const TargetRegisterClass *RC = NULL; 183 switch (VT.getSimpleVT().SimpleTy) { 184 default: return false; 185 case MVT::i1: 186 case MVT::i8: 187 Opc = X86::MOV8rm; 188 RC = &X86::GR8RegClass; 189 break; 190 case MVT::i16: 191 Opc = X86::MOV16rm; 192 RC = &X86::GR16RegClass; 193 break; 194 case MVT::i32: 195 Opc = X86::MOV32rm; 196 RC = &X86::GR32RegClass; 197 break; 198 case MVT::i64: 199 // Must be in x86-64 mode. 200 Opc = X86::MOV64rm; 201 RC = &X86::GR64RegClass; 202 break; 203 case MVT::f32: 204 if (X86ScalarSSEf32) { 205 Opc = Subtarget->hasAVX() ? X86::VMOVSSrm : X86::MOVSSrm; 206 RC = &X86::FR32RegClass; 207 } else { 208 Opc = X86::LD_Fp32m; 209 RC = &X86::RFP32RegClass; 210 } 211 break; 212 case MVT::f64: 213 if (X86ScalarSSEf64) { 214 Opc = Subtarget->hasAVX() ? X86::VMOVSDrm : X86::MOVSDrm; 215 RC = &X86::FR64RegClass; 216 } else { 217 Opc = X86::LD_Fp64m; 218 RC = &X86::RFP64RegClass; 219 } 220 break; 221 case MVT::f80: 222 // No f80 support yet. 223 return false; 224 } 225 226 ResultReg = createResultReg(RC); 227 addFullAddress(BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, 228 DL, TII.get(Opc), ResultReg), AM); 229 return true; 230 } 231 232 /// X86FastEmitStore - Emit a machine instruction to store a value Val of 233 /// type VT. The address is either pre-computed, consisted of a base ptr, Ptr 234 /// and a displacement offset, or a GlobalAddress, 235 /// i.e. V. Return true if it is possible. 236 bool 237 X86FastISel::X86FastEmitStore(EVT VT, unsigned Val, const X86AddressMode &AM) { 238 // Get opcode and regclass of the output for the given store instruction. 239 unsigned Opc = 0; 240 switch (VT.getSimpleVT().SimpleTy) { 241 case MVT::f80: // No f80 support yet. 242 default: return false; 243 case MVT::i1: { 244 // Mask out all but lowest bit. 245 unsigned AndResult = createResultReg(&X86::GR8RegClass); 246 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DL, 247 TII.get(X86::AND8ri), AndResult).addReg(Val).addImm(1); 248 Val = AndResult; 249 } 250 // FALLTHROUGH, handling i1 as i8. 251 case MVT::i8: Opc = X86::MOV8mr; break; 252 case MVT::i16: Opc = X86::MOV16mr; break; 253 case MVT::i32: Opc = X86::MOV32mr; break; 254 case MVT::i64: Opc = X86::MOV64mr; break; // Must be in x86-64 mode. 255 case MVT::f32: 256 Opc = X86ScalarSSEf32 ? 257 (Subtarget->hasAVX() ? X86::VMOVSSmr : X86::MOVSSmr) : X86::ST_Fp32m; 258 break; 259 case MVT::f64: 260 Opc = X86ScalarSSEf64 ? 261 (Subtarget->hasAVX() ? X86::VMOVSDmr : X86::MOVSDmr) : X86::ST_Fp64m; 262 break; 263 case MVT::v4f32: 264 Opc = X86::MOVAPSmr; 265 break; 266 case MVT::v2f64: 267 Opc = X86::MOVAPDmr; 268 break; 269 case MVT::v4i32: 270 case MVT::v2i64: 271 case MVT::v8i16: 272 case MVT::v16i8: 273 Opc = X86::MOVDQAmr; 274 break; 275 } 276 277 addFullAddress(BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, 278 DL, TII.get(Opc)), AM).addReg(Val); 279 return true; 280 } 281 282 bool X86FastISel::X86FastEmitStore(EVT VT, const Value *Val, 283 const X86AddressMode &AM) { 284 // Handle 'null' like i32/i64 0. 285 if (isa<ConstantPointerNull>(Val)) 286 Val = Constant::getNullValue(TD.getIntPtrType(Val->getContext())); 287 288 // If this is a store of a simple constant, fold the constant into the store. 289 if (const ConstantInt *CI = dyn_cast<ConstantInt>(Val)) { 290 unsigned Opc = 0; 291 bool Signed = true; 292 switch (VT.getSimpleVT().SimpleTy) { 293 default: break; 294 case MVT::i1: Signed = false; // FALLTHROUGH to handle as i8. 295 case MVT::i8: Opc = X86::MOV8mi; break; 296 case MVT::i16: Opc = X86::MOV16mi; break; 297 case MVT::i32: Opc = X86::MOV32mi; break; 298 case MVT::i64: 299 // Must be a 32-bit sign extended value. 300 if ((int)CI->getSExtValue() == CI->getSExtValue()) 301 Opc = X86::MOV64mi32; 302 break; 303 } 304 305 if (Opc) { 306 addFullAddress(BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, 307 DL, TII.get(Opc)), AM) 308 .addImm(Signed ? (uint64_t) CI->getSExtValue() : 309 CI->getZExtValue()); 310 return true; 311 } 312 } 313 314 unsigned ValReg = getRegForValue(Val); 315 if (ValReg == 0) 316 return false; 317 318 return X86FastEmitStore(VT, ValReg, AM); 319 } 320 321 /// X86FastEmitExtend - Emit a machine instruction to extend a value Src of 322 /// type SrcVT to type DstVT using the specified extension opcode Opc (e.g. 323 /// ISD::SIGN_EXTEND). 324 bool X86FastISel::X86FastEmitExtend(ISD::NodeType Opc, EVT DstVT, 325 unsigned Src, EVT SrcVT, 326 unsigned &ResultReg) { 327 unsigned RR = FastEmit_r(SrcVT.getSimpleVT(), DstVT.getSimpleVT(), Opc, 328 Src, /*TODO: Kill=*/false); 329 330 if (RR != 0) { 331 ResultReg = RR; 332 return true; 333 } else 334 return false; 335 } 336 337 /// X86SelectAddress - Attempt to fill in an address from the given value. 338 /// 339 bool X86FastISel::X86SelectAddress(const Value *V, X86AddressMode &AM) { 340 const User *U = NULL; 341 unsigned Opcode = Instruction::UserOp1; 342 if (const Instruction *I = dyn_cast<Instruction>(V)) { 343 // Don't walk into other basic blocks; it's possible we haven't 344 // visited them yet, so the instructions may not yet be assigned 345 // virtual registers. 346 if (FuncInfo.StaticAllocaMap.count(static_cast<const AllocaInst *>(V)) || 347 FuncInfo.MBBMap[I->getParent()] == FuncInfo.MBB) { 348 Opcode = I->getOpcode(); 349 U = I; 350 } 351 } else if (const ConstantExpr *C = dyn_cast<ConstantExpr>(V)) { 352 Opcode = C->getOpcode(); 353 U = C; 354 } 355 356 if (PointerType *Ty = dyn_cast<PointerType>(V->getType())) 357 if (Ty->getAddressSpace() > 255) 358 // Fast instruction selection doesn't support the special 359 // address spaces. 360 return false; 361 362 switch (Opcode) { 363 default: break; 364 case Instruction::BitCast: 365 // Look past bitcasts. 366 return X86SelectAddress(U->getOperand(0), AM); 367 368 case Instruction::IntToPtr: 369 // Look past no-op inttoptrs. 370 if (TLI.getValueType(U->getOperand(0)->getType()) == TLI.getPointerTy()) 371 return X86SelectAddress(U->getOperand(0), AM); 372 break; 373 374 case Instruction::PtrToInt: 375 // Look past no-op ptrtoints. 376 if (TLI.getValueType(U->getType()) == TLI.getPointerTy()) 377 return X86SelectAddress(U->getOperand(0), AM); 378 break; 379 380 case Instruction::Alloca: { 381 // Do static allocas. 382 const AllocaInst *A = cast<AllocaInst>(V); 383 DenseMap<const AllocaInst*, int>::iterator SI = 384 FuncInfo.StaticAllocaMap.find(A); 385 if (SI != FuncInfo.StaticAllocaMap.end()) { 386 AM.BaseType = X86AddressMode::FrameIndexBase; 387 AM.Base.FrameIndex = SI->second; 388 return true; 389 } 390 break; 391 } 392 393 case Instruction::Add: { 394 // Adds of constants are common and easy enough. 395 if (const ConstantInt *CI = dyn_cast<ConstantInt>(U->getOperand(1))) { 396 uint64_t Disp = (int32_t)AM.Disp + (uint64_t)CI->getSExtValue(); 397 // They have to fit in the 32-bit signed displacement field though. 398 if (isInt<32>(Disp)) { 399 AM.Disp = (uint32_t)Disp; 400 return X86SelectAddress(U->getOperand(0), AM); 401 } 402 } 403 break; 404 } 405 406 case Instruction::GetElementPtr: { 407 X86AddressMode SavedAM = AM; 408 409 // Pattern-match simple GEPs. 410 uint64_t Disp = (int32_t)AM.Disp; 411 unsigned IndexReg = AM.IndexReg; 412 unsigned Scale = AM.Scale; 413 gep_type_iterator GTI = gep_type_begin(U); 414 // Iterate through the indices, folding what we can. Constants can be 415 // folded, and one dynamic index can be handled, if the scale is supported. 416 for (User::const_op_iterator i = U->op_begin() + 1, e = U->op_end(); 417 i != e; ++i, ++GTI) { 418 const Value *Op = *i; 419 if (StructType *STy = dyn_cast<StructType>(*GTI)) { 420 const StructLayout *SL = TD.getStructLayout(STy); 421 Disp += SL->getElementOffset(cast<ConstantInt>(Op)->getZExtValue()); 422 continue; 423 } 424 425 // A array/variable index is always of the form i*S where S is the 426 // constant scale size. See if we can push the scale into immediates. 427 uint64_t S = TD.getTypeAllocSize(GTI.getIndexedType()); 428 for (;;) { 429 if (const ConstantInt *CI = dyn_cast<ConstantInt>(Op)) { 430 // Constant-offset addressing. 431 Disp += CI->getSExtValue() * S; 432 break; 433 } 434 if (isa<AddOperator>(Op) && 435 (!isa<Instruction>(Op) || 436 FuncInfo.MBBMap[cast<Instruction>(Op)->getParent()] 437 == FuncInfo.MBB) && 438 isa<ConstantInt>(cast<AddOperator>(Op)->getOperand(1))) { 439 // An add (in the same block) with a constant operand. Fold the 440 // constant. 441 ConstantInt *CI = 442 cast<ConstantInt>(cast<AddOperator>(Op)->getOperand(1)); 443 Disp += CI->getSExtValue() * S; 444 // Iterate on the other operand. 445 Op = cast<AddOperator>(Op)->getOperand(0); 446 continue; 447 } 448 if (IndexReg == 0 && 449 (!AM.GV || !Subtarget->isPICStyleRIPRel()) && 450 (S == 1 || S == 2 || S == 4 || S == 8)) { 451 // Scaled-index addressing. 452 Scale = S; 453 IndexReg = getRegForGEPIndex(Op).first; 454 if (IndexReg == 0) 455 return false; 456 break; 457 } 458 // Unsupported. 459 goto unsupported_gep; 460 } 461 } 462 // Check for displacement overflow. 463 if (!isInt<32>(Disp)) 464 break; 465 // Ok, the GEP indices were covered by constant-offset and scaled-index 466 // addressing. Update the address state and move on to examining the base. 467 AM.IndexReg = IndexReg; 468 AM.Scale = Scale; 469 AM.Disp = (uint32_t)Disp; 470 if (X86SelectAddress(U->getOperand(0), AM)) 471 return true; 472 473 // If we couldn't merge the gep value into this addr mode, revert back to 474 // our address and just match the value instead of completely failing. 475 AM = SavedAM; 476 break; 477 unsupported_gep: 478 // Ok, the GEP indices weren't all covered. 479 break; 480 } 481 } 482 483 // Handle constant address. 484 if (const GlobalValue *GV = dyn_cast<GlobalValue>(V)) { 485 // Can't handle alternate code models yet. 486 if (TM.getCodeModel() != CodeModel::Small) 487 return false; 488 489 // Can't handle TLS yet. 490 if (const GlobalVariable *GVar = dyn_cast<GlobalVariable>(GV)) 491 if (GVar->isThreadLocal()) 492 return false; 493 494 // Can't handle TLS yet, part 2 (this is slightly crazy, but this is how 495 // it works...). 496 if (const GlobalAlias *GA = dyn_cast<GlobalAlias>(GV)) 497 if (const GlobalVariable *GVar = 498 dyn_cast_or_null<GlobalVariable>(GA->resolveAliasedGlobal(false))) 499 if (GVar->isThreadLocal()) 500 return false; 501 502 // RIP-relative addresses can't have additional register operands, so if 503 // we've already folded stuff into the addressing mode, just force the 504 // global value into its own register, which we can use as the basereg. 505 if (!Subtarget->isPICStyleRIPRel() || 506 (AM.Base.Reg == 0 && AM.IndexReg == 0)) { 507 // Okay, we've committed to selecting this global. Set up the address. 508 AM.GV = GV; 509 510 // Allow the subtarget to classify the global. 511 unsigned char GVFlags = Subtarget->ClassifyGlobalReference(GV, TM); 512 513 // If this reference is relative to the pic base, set it now. 514 if (isGlobalRelativeToPICBase(GVFlags)) { 515 // FIXME: How do we know Base.Reg is free?? 516 AM.Base.Reg = getInstrInfo()->getGlobalBaseReg(FuncInfo.MF); 517 } 518 519 // Unless the ABI requires an extra load, return a direct reference to 520 // the global. 521 if (!isGlobalStubReference(GVFlags)) { 522 if (Subtarget->isPICStyleRIPRel()) { 523 // Use rip-relative addressing if we can. Above we verified that the 524 // base and index registers are unused. 525 assert(AM.Base.Reg == 0 && AM.IndexReg == 0); 526 AM.Base.Reg = X86::RIP; 527 } 528 AM.GVOpFlags = GVFlags; 529 return true; 530 } 531 532 // Ok, we need to do a load from a stub. If we've already loaded from 533 // this stub, reuse the loaded pointer, otherwise emit the load now. 534 DenseMap<const Value*, unsigned>::iterator I = LocalValueMap.find(V); 535 unsigned LoadReg; 536 if (I != LocalValueMap.end() && I->second != 0) { 537 LoadReg = I->second; 538 } else { 539 // Issue load from stub. 540 unsigned Opc = 0; 541 const TargetRegisterClass *RC = NULL; 542 X86AddressMode StubAM; 543 StubAM.Base.Reg = AM.Base.Reg; 544 StubAM.GV = GV; 545 StubAM.GVOpFlags = GVFlags; 546 547 // Prepare for inserting code in the local-value area. 548 SavePoint SaveInsertPt = enterLocalValueArea(); 549 550 if (TLI.getPointerTy() == MVT::i64) { 551 Opc = X86::MOV64rm; 552 RC = &X86::GR64RegClass; 553 554 if (Subtarget->isPICStyleRIPRel()) 555 StubAM.Base.Reg = X86::RIP; 556 } else { 557 Opc = X86::MOV32rm; 558 RC = &X86::GR32RegClass; 559 } 560 561 LoadReg = createResultReg(RC); 562 MachineInstrBuilder LoadMI = 563 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DL, TII.get(Opc), LoadReg); 564 addFullAddress(LoadMI, StubAM); 565 566 // Ok, back to normal mode. 567 leaveLocalValueArea(SaveInsertPt); 568 569 // Prevent loading GV stub multiple times in same MBB. 570 LocalValueMap[V] = LoadReg; 571 } 572 573 // Now construct the final address. Note that the Disp, Scale, 574 // and Index values may already be set here. 575 AM.Base.Reg = LoadReg; 576 AM.GV = 0; 577 return true; 578 } 579 } 580 581 // If all else fails, try to materialize the value in a register. 582 if (!AM.GV || !Subtarget->isPICStyleRIPRel()) { 583 if (AM.Base.Reg == 0) { 584 AM.Base.Reg = getRegForValue(V); 585 return AM.Base.Reg != 0; 586 } 587 if (AM.IndexReg == 0) { 588 assert(AM.Scale == 1 && "Scale with no index!"); 589 AM.IndexReg = getRegForValue(V); 590 return AM.IndexReg != 0; 591 } 592 } 593 594 return false; 595 } 596 597 /// X86SelectCallAddress - Attempt to fill in an address from the given value. 598 /// 599 bool X86FastISel::X86SelectCallAddress(const Value *V, X86AddressMode &AM) { 600 const User *U = NULL; 601 unsigned Opcode = Instruction::UserOp1; 602 if (const Instruction *I = dyn_cast<Instruction>(V)) { 603 Opcode = I->getOpcode(); 604 U = I; 605 } else if (const ConstantExpr *C = dyn_cast<ConstantExpr>(V)) { 606 Opcode = C->getOpcode(); 607 U = C; 608 } 609 610 switch (Opcode) { 611 default: break; 612 case Instruction::BitCast: 613 // Look past bitcasts. 614 return X86SelectCallAddress(U->getOperand(0), AM); 615 616 case Instruction::IntToPtr: 617 // Look past no-op inttoptrs. 618 if (TLI.getValueType(U->getOperand(0)->getType()) == TLI.getPointerTy()) 619 return X86SelectCallAddress(U->getOperand(0), AM); 620 break; 621 622 case Instruction::PtrToInt: 623 // Look past no-op ptrtoints. 624 if (TLI.getValueType(U->getType()) == TLI.getPointerTy()) 625 return X86SelectCallAddress(U->getOperand(0), AM); 626 break; 627 } 628 629 // Handle constant address. 630 if (const GlobalValue *GV = dyn_cast<GlobalValue>(V)) { 631 // Can't handle alternate code models yet. 632 if (TM.getCodeModel() != CodeModel::Small) 633 return false; 634 635 // RIP-relative addresses can't have additional register operands. 636 if (Subtarget->isPICStyleRIPRel() && 637 (AM.Base.Reg != 0 || AM.IndexReg != 0)) 638 return false; 639 640 // Can't handle DLLImport. 641 if (GV->hasDLLImportLinkage()) 642 return false; 643 644 // Can't handle TLS. 645 if (const GlobalVariable *GVar = dyn_cast<GlobalVariable>(GV)) 646 if (GVar->isThreadLocal()) 647 return false; 648 649 // Okay, we've committed to selecting this global. Set up the basic address. 650 AM.GV = GV; 651 652 // No ABI requires an extra load for anything other than DLLImport, which 653 // we rejected above. Return a direct reference to the global. 654 if (Subtarget->isPICStyleRIPRel()) { 655 // Use rip-relative addressing if we can. Above we verified that the 656 // base and index registers are unused. 657 assert(AM.Base.Reg == 0 && AM.IndexReg == 0); 658 AM.Base.Reg = X86::RIP; 659 } else if (Subtarget->isPICStyleStubPIC()) { 660 AM.GVOpFlags = X86II::MO_PIC_BASE_OFFSET; 661 } else if (Subtarget->isPICStyleGOT()) { 662 AM.GVOpFlags = X86II::MO_GOTOFF; 663 } 664 665 return true; 666 } 667 668 // If all else fails, try to materialize the value in a register. 669 if (!AM.GV || !Subtarget->isPICStyleRIPRel()) { 670 if (AM.Base.Reg == 0) { 671 AM.Base.Reg = getRegForValue(V); 672 return AM.Base.Reg != 0; 673 } 674 if (AM.IndexReg == 0) { 675 assert(AM.Scale == 1 && "Scale with no index!"); 676 AM.IndexReg = getRegForValue(V); 677 return AM.IndexReg != 0; 678 } 679 } 680 681 return false; 682 } 683 684 685 /// X86SelectStore - Select and emit code to implement store instructions. 686 bool X86FastISel::X86SelectStore(const Instruction *I) { 687 // Atomic stores need special handling. 688 const StoreInst *S = cast<StoreInst>(I); 689 690 if (S->isAtomic()) 691 return false; 692 693 unsigned SABIAlignment = 694 TD.getABITypeAlignment(S->getValueOperand()->getType()); 695 if (S->getAlignment() != 0 && S->getAlignment() < SABIAlignment) 696 return false; 697 698 MVT VT; 699 if (!isTypeLegal(I->getOperand(0)->getType(), VT, /*AllowI1=*/true)) 700 return false; 701 702 X86AddressMode AM; 703 if (!X86SelectAddress(I->getOperand(1), AM)) 704 return false; 705 706 return X86FastEmitStore(VT, I->getOperand(0), AM); 707 } 708 709 /// X86SelectRet - Select and emit code to implement ret instructions. 710 bool X86FastISel::X86SelectRet(const Instruction *I) { 711 const ReturnInst *Ret = cast<ReturnInst>(I); 712 const Function &F = *I->getParent()->getParent(); 713 714 if (!FuncInfo.CanLowerReturn) 715 return false; 716 717 CallingConv::ID CC = F.getCallingConv(); 718 if (CC != CallingConv::C && 719 CC != CallingConv::Fast && 720 CC != CallingConv::X86_FastCall) 721 return false; 722 723 if (Subtarget->isTargetWin64()) 724 return false; 725 726 // Don't handle popping bytes on return for now. 727 if (FuncInfo.MF->getInfo<X86MachineFunctionInfo>() 728 ->getBytesToPopOnReturn() != 0) 729 return 0; 730 731 // fastcc with -tailcallopt is intended to provide a guaranteed 732 // tail call optimization. Fastisel doesn't know how to do that. 733 if (CC == CallingConv::Fast && TM.Options.GuaranteedTailCallOpt) 734 return false; 735 736 // Let SDISel handle vararg functions. 737 if (F.isVarArg()) 738 return false; 739 740 if (Ret->getNumOperands() > 0) { 741 SmallVector<ISD::OutputArg, 4> Outs; 742 GetReturnInfo(F.getReturnType(), F.getAttributes().getRetAttributes(), 743 Outs, TLI); 744 745 // Analyze operands of the call, assigning locations to each operand. 746 SmallVector<CCValAssign, 16> ValLocs; 747 CCState CCInfo(CC, F.isVarArg(), *FuncInfo.MF, TM, ValLocs, 748 I->getContext()); 749 CCInfo.AnalyzeReturn(Outs, RetCC_X86); 750 751 const Value *RV = Ret->getOperand(0); 752 unsigned Reg = getRegForValue(RV); 753 if (Reg == 0) 754 return false; 755 756 // Only handle a single return value for now. 757 if (ValLocs.size() != 1) 758 return false; 759 760 CCValAssign &VA = ValLocs[0]; 761 762 // Don't bother handling odd stuff for now. 763 if (VA.getLocInfo() != CCValAssign::Full) 764 return false; 765 // Only handle register returns for now. 766 if (!VA.isRegLoc()) 767 return false; 768 769 // The calling-convention tables for x87 returns don't tell 770 // the whole story. 771 if (VA.getLocReg() == X86::ST0 || VA.getLocReg() == X86::ST1) 772 return false; 773 774 unsigned SrcReg = Reg + VA.getValNo(); 775 EVT SrcVT = TLI.getValueType(RV->getType()); 776 EVT DstVT = VA.getValVT(); 777 // Special handling for extended integers. 778 if (SrcVT != DstVT) { 779 if (SrcVT != MVT::i1 && SrcVT != MVT::i8 && SrcVT != MVT::i16) 780 return false; 781 782 if (!Outs[0].Flags.isZExt() && !Outs[0].Flags.isSExt()) 783 return false; 784 785 assert(DstVT == MVT::i32 && "X86 should always ext to i32"); 786 787 if (SrcVT == MVT::i1) { 788 if (Outs[0].Flags.isSExt()) 789 return false; 790 SrcReg = FastEmitZExtFromI1(MVT::i8, SrcReg, /*TODO: Kill=*/false); 791 SrcVT = MVT::i8; 792 } 793 unsigned Op = Outs[0].Flags.isZExt() ? ISD::ZERO_EXTEND : 794 ISD::SIGN_EXTEND; 795 SrcReg = FastEmit_r(SrcVT.getSimpleVT(), DstVT.getSimpleVT(), Op, 796 SrcReg, /*TODO: Kill=*/false); 797 } 798 799 // Make the copy. 800 unsigned DstReg = VA.getLocReg(); 801 const TargetRegisterClass* SrcRC = MRI.getRegClass(SrcReg); 802 // Avoid a cross-class copy. This is very unlikely. 803 if (!SrcRC->contains(DstReg)) 804 return false; 805 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DL, TII.get(TargetOpcode::COPY), 806 DstReg).addReg(SrcReg); 807 808 // Mark the register as live out of the function. 809 MRI.addLiveOut(VA.getLocReg()); 810 } 811 812 // Now emit the RET. 813 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DL, TII.get(X86::RET)); 814 return true; 815 } 816 817 /// X86SelectLoad - Select and emit code to implement load instructions. 818 /// 819 bool X86FastISel::X86SelectLoad(const Instruction *I) { 820 // Atomic loads need special handling. 821 if (cast<LoadInst>(I)->isAtomic()) 822 return false; 823 824 MVT VT; 825 if (!isTypeLegal(I->getType(), VT, /*AllowI1=*/true)) 826 return false; 827 828 X86AddressMode AM; 829 if (!X86SelectAddress(I->getOperand(0), AM)) 830 return false; 831 832 unsigned ResultReg = 0; 833 if (X86FastEmitLoad(VT, AM, ResultReg)) { 834 UpdateValueMap(I, ResultReg); 835 return true; 836 } 837 return false; 838 } 839 840 static unsigned X86ChooseCmpOpcode(EVT VT, const X86Subtarget *Subtarget) { 841 bool HasAVX = Subtarget->hasAVX(); 842 bool X86ScalarSSEf32 = Subtarget->hasSSE1(); 843 bool X86ScalarSSEf64 = Subtarget->hasSSE2(); 844 845 switch (VT.getSimpleVT().SimpleTy) { 846 default: return 0; 847 case MVT::i8: return X86::CMP8rr; 848 case MVT::i16: return X86::CMP16rr; 849 case MVT::i32: return X86::CMP32rr; 850 case MVT::i64: return X86::CMP64rr; 851 case MVT::f32: 852 return X86ScalarSSEf32 ? (HasAVX ? X86::VUCOMISSrr : X86::UCOMISSrr) : 0; 853 case MVT::f64: 854 return X86ScalarSSEf64 ? (HasAVX ? X86::VUCOMISDrr : X86::UCOMISDrr) : 0; 855 } 856 } 857 858 /// X86ChooseCmpImmediateOpcode - If we have a comparison with RHS as the RHS 859 /// of the comparison, return an opcode that works for the compare (e.g. 860 /// CMP32ri) otherwise return 0. 861 static unsigned X86ChooseCmpImmediateOpcode(EVT VT, const ConstantInt *RHSC) { 862 switch (VT.getSimpleVT().SimpleTy) { 863 // Otherwise, we can't fold the immediate into this comparison. 864 default: return 0; 865 case MVT::i8: return X86::CMP8ri; 866 case MVT::i16: return X86::CMP16ri; 867 case MVT::i32: return X86::CMP32ri; 868 case MVT::i64: 869 // 64-bit comparisons are only valid if the immediate fits in a 32-bit sext 870 // field. 871 if ((int)RHSC->getSExtValue() == RHSC->getSExtValue()) 872 return X86::CMP64ri32; 873 return 0; 874 } 875 } 876 877 bool X86FastISel::X86FastEmitCompare(const Value *Op0, const Value *Op1, 878 EVT VT) { 879 unsigned Op0Reg = getRegForValue(Op0); 880 if (Op0Reg == 0) return false; 881 882 // Handle 'null' like i32/i64 0. 883 if (isa<ConstantPointerNull>(Op1)) 884 Op1 = Constant::getNullValue(TD.getIntPtrType(Op0->getContext())); 885 886 // We have two options: compare with register or immediate. If the RHS of 887 // the compare is an immediate that we can fold into this compare, use 888 // CMPri, otherwise use CMPrr. 889 if (const ConstantInt *Op1C = dyn_cast<ConstantInt>(Op1)) { 890 if (unsigned CompareImmOpc = X86ChooseCmpImmediateOpcode(VT, Op1C)) { 891 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DL, TII.get(CompareImmOpc)) 892 .addReg(Op0Reg) 893 .addImm(Op1C->getSExtValue()); 894 return true; 895 } 896 } 897 898 unsigned CompareOpc = X86ChooseCmpOpcode(VT, Subtarget); 899 if (CompareOpc == 0) return false; 900 901 unsigned Op1Reg = getRegForValue(Op1); 902 if (Op1Reg == 0) return false; 903 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DL, TII.get(CompareOpc)) 904 .addReg(Op0Reg) 905 .addReg(Op1Reg); 906 907 return true; 908 } 909 910 bool X86FastISel::X86SelectCmp(const Instruction *I) { 911 const CmpInst *CI = cast<CmpInst>(I); 912 913 MVT VT; 914 if (!isTypeLegal(I->getOperand(0)->getType(), VT)) 915 return false; 916 917 unsigned ResultReg = createResultReg(&X86::GR8RegClass); 918 unsigned SetCCOpc; 919 bool SwapArgs; // false -> compare Op0, Op1. true -> compare Op1, Op0. 920 switch (CI->getPredicate()) { 921 case CmpInst::FCMP_OEQ: { 922 if (!X86FastEmitCompare(CI->getOperand(0), CI->getOperand(1), VT)) 923 return false; 924 925 unsigned EReg = createResultReg(&X86::GR8RegClass); 926 unsigned NPReg = createResultReg(&X86::GR8RegClass); 927 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DL, TII.get(X86::SETEr), EReg); 928 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DL, 929 TII.get(X86::SETNPr), NPReg); 930 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DL, 931 TII.get(X86::AND8rr), ResultReg).addReg(NPReg).addReg(EReg); 932 UpdateValueMap(I, ResultReg); 933 return true; 934 } 935 case CmpInst::FCMP_UNE: { 936 if (!X86FastEmitCompare(CI->getOperand(0), CI->getOperand(1), VT)) 937 return false; 938 939 unsigned NEReg = createResultReg(&X86::GR8RegClass); 940 unsigned PReg = createResultReg(&X86::GR8RegClass); 941 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DL, TII.get(X86::SETNEr), NEReg); 942 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DL, TII.get(X86::SETPr), PReg); 943 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DL, TII.get(X86::OR8rr),ResultReg) 944 .addReg(PReg).addReg(NEReg); 945 UpdateValueMap(I, ResultReg); 946 return true; 947 } 948 case CmpInst::FCMP_OGT: SwapArgs = false; SetCCOpc = X86::SETAr; break; 949 case CmpInst::FCMP_OGE: SwapArgs = false; SetCCOpc = X86::SETAEr; break; 950 case CmpInst::FCMP_OLT: SwapArgs = true; SetCCOpc = X86::SETAr; break; 951 case CmpInst::FCMP_OLE: SwapArgs = true; SetCCOpc = X86::SETAEr; break; 952 case CmpInst::FCMP_ONE: SwapArgs = false; SetCCOpc = X86::SETNEr; break; 953 case CmpInst::FCMP_ORD: SwapArgs = false; SetCCOpc = X86::SETNPr; break; 954 case CmpInst::FCMP_UNO: SwapArgs = false; SetCCOpc = X86::SETPr; break; 955 case CmpInst::FCMP_UEQ: SwapArgs = false; SetCCOpc = X86::SETEr; break; 956 case CmpInst::FCMP_UGT: SwapArgs = true; SetCCOpc = X86::SETBr; break; 957 case CmpInst::FCMP_UGE: SwapArgs = true; SetCCOpc = X86::SETBEr; break; 958 case CmpInst::FCMP_ULT: SwapArgs = false; SetCCOpc = X86::SETBr; break; 959 case CmpInst::FCMP_ULE: SwapArgs = false; SetCCOpc = X86::SETBEr; break; 960 961 case CmpInst::ICMP_EQ: SwapArgs = false; SetCCOpc = X86::SETEr; break; 962 case CmpInst::ICMP_NE: SwapArgs = false; SetCCOpc = X86::SETNEr; break; 963 case CmpInst::ICMP_UGT: SwapArgs = false; SetCCOpc = X86::SETAr; break; 964 case CmpInst::ICMP_UGE: SwapArgs = false; SetCCOpc = X86::SETAEr; break; 965 case CmpInst::ICMP_ULT: SwapArgs = false; SetCCOpc = X86::SETBr; break; 966 case CmpInst::ICMP_ULE: SwapArgs = false; SetCCOpc = X86::SETBEr; break; 967 case CmpInst::ICMP_SGT: SwapArgs = false; SetCCOpc = X86::SETGr; break; 968 case CmpInst::ICMP_SGE: SwapArgs = false; SetCCOpc = X86::SETGEr; break; 969 case CmpInst::ICMP_SLT: SwapArgs = false; SetCCOpc = X86::SETLr; break; 970 case CmpInst::ICMP_SLE: SwapArgs = false; SetCCOpc = X86::SETLEr; break; 971 default: 972 return false; 973 } 974 975 const Value *Op0 = CI->getOperand(0), *Op1 = CI->getOperand(1); 976 if (SwapArgs) 977 std::swap(Op0, Op1); 978 979 // Emit a compare of Op0/Op1. 980 if (!X86FastEmitCompare(Op0, Op1, VT)) 981 return false; 982 983 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DL, TII.get(SetCCOpc), ResultReg); 984 UpdateValueMap(I, ResultReg); 985 return true; 986 } 987 988 bool X86FastISel::X86SelectZExt(const Instruction *I) { 989 // Handle zero-extension from i1 to i8, which is common. 990 if (!I->getOperand(0)->getType()->isIntegerTy(1)) 991 return false; 992 993 EVT DstVT = TLI.getValueType(I->getType()); 994 if (!TLI.isTypeLegal(DstVT)) 995 return false; 996 997 unsigned ResultReg = getRegForValue(I->getOperand(0)); 998 if (ResultReg == 0) 999 return false; 1000 1001 // Set the high bits to zero. 1002 ResultReg = FastEmitZExtFromI1(MVT::i8, ResultReg, /*TODO: Kill=*/false); 1003 if (ResultReg == 0) 1004 return false; 1005 1006 if (DstVT != MVT::i8) { 1007 ResultReg = FastEmit_r(MVT::i8, DstVT.getSimpleVT(), ISD::ZERO_EXTEND, 1008 ResultReg, /*Kill=*/true); 1009 if (ResultReg == 0) 1010 return false; 1011 } 1012 1013 UpdateValueMap(I, ResultReg); 1014 return true; 1015 } 1016 1017 1018 bool X86FastISel::X86SelectBranch(const Instruction *I) { 1019 // Unconditional branches are selected by tablegen-generated code. 1020 // Handle a conditional branch. 1021 const BranchInst *BI = cast<BranchInst>(I); 1022 MachineBasicBlock *TrueMBB = FuncInfo.MBBMap[BI->getSuccessor(0)]; 1023 MachineBasicBlock *FalseMBB = FuncInfo.MBBMap[BI->getSuccessor(1)]; 1024 1025 // Fold the common case of a conditional branch with a comparison 1026 // in the same block (values defined on other blocks may not have 1027 // initialized registers). 1028 if (const CmpInst *CI = dyn_cast<CmpInst>(BI->getCondition())) { 1029 if (CI->hasOneUse() && CI->getParent() == I->getParent()) { 1030 EVT VT = TLI.getValueType(CI->getOperand(0)->getType()); 1031 1032 // Try to take advantage of fallthrough opportunities. 1033 CmpInst::Predicate Predicate = CI->getPredicate(); 1034 if (FuncInfo.MBB->isLayoutSuccessor(TrueMBB)) { 1035 std::swap(TrueMBB, FalseMBB); 1036 Predicate = CmpInst::getInversePredicate(Predicate); 1037 } 1038 1039 bool SwapArgs; // false -> compare Op0, Op1. true -> compare Op1, Op0. 1040 unsigned BranchOpc; // Opcode to jump on, e.g. "X86::JA" 1041 1042 switch (Predicate) { 1043 case CmpInst::FCMP_OEQ: 1044 std::swap(TrueMBB, FalseMBB); 1045 Predicate = CmpInst::FCMP_UNE; 1046 // FALL THROUGH 1047 case CmpInst::FCMP_UNE: SwapArgs = false; BranchOpc = X86::JNE_4; break; 1048 case CmpInst::FCMP_OGT: SwapArgs = false; BranchOpc = X86::JA_4; break; 1049 case CmpInst::FCMP_OGE: SwapArgs = false; BranchOpc = X86::JAE_4; break; 1050 case CmpInst::FCMP_OLT: SwapArgs = true; BranchOpc = X86::JA_4; break; 1051 case CmpInst::FCMP_OLE: SwapArgs = true; BranchOpc = X86::JAE_4; break; 1052 case CmpInst::FCMP_ONE: SwapArgs = false; BranchOpc = X86::JNE_4; break; 1053 case CmpInst::FCMP_ORD: SwapArgs = false; BranchOpc = X86::JNP_4; break; 1054 case CmpInst::FCMP_UNO: SwapArgs = false; BranchOpc = X86::JP_4; break; 1055 case CmpInst::FCMP_UEQ: SwapArgs = false; BranchOpc = X86::JE_4; break; 1056 case CmpInst::FCMP_UGT: SwapArgs = true; BranchOpc = X86::JB_4; break; 1057 case CmpInst::FCMP_UGE: SwapArgs = true; BranchOpc = X86::JBE_4; break; 1058 case CmpInst::FCMP_ULT: SwapArgs = false; BranchOpc = X86::JB_4; break; 1059 case CmpInst::FCMP_ULE: SwapArgs = false; BranchOpc = X86::JBE_4; break; 1060 1061 case CmpInst::ICMP_EQ: SwapArgs = false; BranchOpc = X86::JE_4; break; 1062 case CmpInst::ICMP_NE: SwapArgs = false; BranchOpc = X86::JNE_4; break; 1063 case CmpInst::ICMP_UGT: SwapArgs = false; BranchOpc = X86::JA_4; break; 1064 case CmpInst::ICMP_UGE: SwapArgs = false; BranchOpc = X86::JAE_4; break; 1065 case CmpInst::ICMP_ULT: SwapArgs = false; BranchOpc = X86::JB_4; break; 1066 case CmpInst::ICMP_ULE: SwapArgs = false; BranchOpc = X86::JBE_4; break; 1067 case CmpInst::ICMP_SGT: SwapArgs = false; BranchOpc = X86::JG_4; break; 1068 case CmpInst::ICMP_SGE: SwapArgs = false; BranchOpc = X86::JGE_4; break; 1069 case CmpInst::ICMP_SLT: SwapArgs = false; BranchOpc = X86::JL_4; break; 1070 case CmpInst::ICMP_SLE: SwapArgs = false; BranchOpc = X86::JLE_4; break; 1071 default: 1072 return false; 1073 } 1074 1075 const Value *Op0 = CI->getOperand(0), *Op1 = CI->getOperand(1); 1076 if (SwapArgs) 1077 std::swap(Op0, Op1); 1078 1079 // Emit a compare of the LHS and RHS, setting the flags. 1080 if (!X86FastEmitCompare(Op0, Op1, VT)) 1081 return false; 1082 1083 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DL, TII.get(BranchOpc)) 1084 .addMBB(TrueMBB); 1085 1086 if (Predicate == CmpInst::FCMP_UNE) { 1087 // X86 requires a second branch to handle UNE (and OEQ, 1088 // which is mapped to UNE above). 1089 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DL, TII.get(X86::JP_4)) 1090 .addMBB(TrueMBB); 1091 } 1092 1093 FastEmitBranch(FalseMBB, DL); 1094 FuncInfo.MBB->addSuccessor(TrueMBB); 1095 return true; 1096 } 1097 } else if (TruncInst *TI = dyn_cast<TruncInst>(BI->getCondition())) { 1098 // Handle things like "%cond = trunc i32 %X to i1 / br i1 %cond", which 1099 // typically happen for _Bool and C++ bools. 1100 MVT SourceVT; 1101 if (TI->hasOneUse() && TI->getParent() == I->getParent() && 1102 isTypeLegal(TI->getOperand(0)->getType(), SourceVT)) { 1103 unsigned TestOpc = 0; 1104 switch (SourceVT.SimpleTy) { 1105 default: break; 1106 case MVT::i8: TestOpc = X86::TEST8ri; break; 1107 case MVT::i16: TestOpc = X86::TEST16ri; break; 1108 case MVT::i32: TestOpc = X86::TEST32ri; break; 1109 case MVT::i64: TestOpc = X86::TEST64ri32; break; 1110 } 1111 if (TestOpc) { 1112 unsigned OpReg = getRegForValue(TI->getOperand(0)); 1113 if (OpReg == 0) return false; 1114 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DL, TII.get(TestOpc)) 1115 .addReg(OpReg).addImm(1); 1116 1117 unsigned JmpOpc = X86::JNE_4; 1118 if (FuncInfo.MBB->isLayoutSuccessor(TrueMBB)) { 1119 std::swap(TrueMBB, FalseMBB); 1120 JmpOpc = X86::JE_4; 1121 } 1122 1123 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DL, TII.get(JmpOpc)) 1124 .addMBB(TrueMBB); 1125 FastEmitBranch(FalseMBB, DL); 1126 FuncInfo.MBB->addSuccessor(TrueMBB); 1127 return true; 1128 } 1129 } 1130 } 1131 1132 // Otherwise do a clumsy setcc and re-test it. 1133 // Note that i1 essentially gets ANY_EXTEND'ed to i8 where it isn't used 1134 // in an explicit cast, so make sure to handle that correctly. 1135 unsigned OpReg = getRegForValue(BI->getCondition()); 1136 if (OpReg == 0) return false; 1137 1138 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DL, TII.get(X86::TEST8ri)) 1139 .addReg(OpReg).addImm(1); 1140 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DL, TII.get(X86::JNE_4)) 1141 .addMBB(TrueMBB); 1142 FastEmitBranch(FalseMBB, DL); 1143 FuncInfo.MBB->addSuccessor(TrueMBB); 1144 return true; 1145 } 1146 1147 bool X86FastISel::X86SelectShift(const Instruction *I) { 1148 unsigned CReg = 0, OpReg = 0; 1149 const TargetRegisterClass *RC = NULL; 1150 if (I->getType()->isIntegerTy(8)) { 1151 CReg = X86::CL; 1152 RC = &X86::GR8RegClass; 1153 switch (I->getOpcode()) { 1154 case Instruction::LShr: OpReg = X86::SHR8rCL; break; 1155 case Instruction::AShr: OpReg = X86::SAR8rCL; break; 1156 case Instruction::Shl: OpReg = X86::SHL8rCL; break; 1157 default: return false; 1158 } 1159 } else if (I->getType()->isIntegerTy(16)) { 1160 CReg = X86::CX; 1161 RC = &X86::GR16RegClass; 1162 switch (I->getOpcode()) { 1163 case Instruction::LShr: OpReg = X86::SHR16rCL; break; 1164 case Instruction::AShr: OpReg = X86::SAR16rCL; break; 1165 case Instruction::Shl: OpReg = X86::SHL16rCL; break; 1166 default: return false; 1167 } 1168 } else if (I->getType()->isIntegerTy(32)) { 1169 CReg = X86::ECX; 1170 RC = &X86::GR32RegClass; 1171 switch (I->getOpcode()) { 1172 case Instruction::LShr: OpReg = X86::SHR32rCL; break; 1173 case Instruction::AShr: OpReg = X86::SAR32rCL; break; 1174 case Instruction::Shl: OpReg = X86::SHL32rCL; break; 1175 default: return false; 1176 } 1177 } else if (I->getType()->isIntegerTy(64)) { 1178 CReg = X86::RCX; 1179 RC = &X86::GR64RegClass; 1180 switch (I->getOpcode()) { 1181 case Instruction::LShr: OpReg = X86::SHR64rCL; break; 1182 case Instruction::AShr: OpReg = X86::SAR64rCL; break; 1183 case Instruction::Shl: OpReg = X86::SHL64rCL; break; 1184 default: return false; 1185 } 1186 } else { 1187 return false; 1188 } 1189 1190 MVT VT; 1191 if (!isTypeLegal(I->getType(), VT)) 1192 return false; 1193 1194 unsigned Op0Reg = getRegForValue(I->getOperand(0)); 1195 if (Op0Reg == 0) return false; 1196 1197 unsigned Op1Reg = getRegForValue(I->getOperand(1)); 1198 if (Op1Reg == 0) return false; 1199 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DL, TII.get(TargetOpcode::COPY), 1200 CReg).addReg(Op1Reg); 1201 1202 // The shift instruction uses X86::CL. If we defined a super-register 1203 // of X86::CL, emit a subreg KILL to precisely describe what we're doing here. 1204 if (CReg != X86::CL) 1205 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DL, 1206 TII.get(TargetOpcode::KILL), X86::CL) 1207 .addReg(CReg, RegState::Kill); 1208 1209 unsigned ResultReg = createResultReg(RC); 1210 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DL, TII.get(OpReg), ResultReg) 1211 .addReg(Op0Reg); 1212 UpdateValueMap(I, ResultReg); 1213 return true; 1214 } 1215 1216 bool X86FastISel::X86SelectSelect(const Instruction *I) { 1217 MVT VT; 1218 if (!isTypeLegal(I->getType(), VT)) 1219 return false; 1220 1221 // We only use cmov here, if we don't have a cmov instruction bail. 1222 if (!Subtarget->hasCMov()) return false; 1223 1224 unsigned Opc = 0; 1225 const TargetRegisterClass *RC = NULL; 1226 if (VT == MVT::i16) { 1227 Opc = X86::CMOVE16rr; 1228 RC = &X86::GR16RegClass; 1229 } else if (VT == MVT::i32) { 1230 Opc = X86::CMOVE32rr; 1231 RC = &X86::GR32RegClass; 1232 } else if (VT == MVT::i64) { 1233 Opc = X86::CMOVE64rr; 1234 RC = &X86::GR64RegClass; 1235 } else { 1236 return false; 1237 } 1238 1239 unsigned Op0Reg = getRegForValue(I->getOperand(0)); 1240 if (Op0Reg == 0) return false; 1241 unsigned Op1Reg = getRegForValue(I->getOperand(1)); 1242 if (Op1Reg == 0) return false; 1243 unsigned Op2Reg = getRegForValue(I->getOperand(2)); 1244 if (Op2Reg == 0) return false; 1245 1246 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DL, TII.get(X86::TEST8rr)) 1247 .addReg(Op0Reg).addReg(Op0Reg); 1248 unsigned ResultReg = createResultReg(RC); 1249 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DL, TII.get(Opc), ResultReg) 1250 .addReg(Op1Reg).addReg(Op2Reg); 1251 UpdateValueMap(I, ResultReg); 1252 return true; 1253 } 1254 1255 bool X86FastISel::X86SelectFPExt(const Instruction *I) { 1256 // fpext from float to double. 1257 if (X86ScalarSSEf64 && 1258 I->getType()->isDoubleTy()) { 1259 const Value *V = I->getOperand(0); 1260 if (V->getType()->isFloatTy()) { 1261 unsigned OpReg = getRegForValue(V); 1262 if (OpReg == 0) return false; 1263 unsigned ResultReg = createResultReg(&X86::FR64RegClass); 1264 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DL, 1265 TII.get(X86::CVTSS2SDrr), ResultReg) 1266 .addReg(OpReg); 1267 UpdateValueMap(I, ResultReg); 1268 return true; 1269 } 1270 } 1271 1272 return false; 1273 } 1274 1275 bool X86FastISel::X86SelectFPTrunc(const Instruction *I) { 1276 if (X86ScalarSSEf64) { 1277 if (I->getType()->isFloatTy()) { 1278 const Value *V = I->getOperand(0); 1279 if (V->getType()->isDoubleTy()) { 1280 unsigned OpReg = getRegForValue(V); 1281 if (OpReg == 0) return false; 1282 unsigned ResultReg = createResultReg(&X86::FR32RegClass); 1283 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DL, 1284 TII.get(X86::CVTSD2SSrr), ResultReg) 1285 .addReg(OpReg); 1286 UpdateValueMap(I, ResultReg); 1287 return true; 1288 } 1289 } 1290 } 1291 1292 return false; 1293 } 1294 1295 bool X86FastISel::X86SelectTrunc(const Instruction *I) { 1296 EVT SrcVT = TLI.getValueType(I->getOperand(0)->getType()); 1297 EVT DstVT = TLI.getValueType(I->getType()); 1298 1299 // This code only handles truncation to byte. 1300 if (DstVT != MVT::i8 && DstVT != MVT::i1) 1301 return false; 1302 if (!TLI.isTypeLegal(SrcVT)) 1303 return false; 1304 1305 unsigned InputReg = getRegForValue(I->getOperand(0)); 1306 if (!InputReg) 1307 // Unhandled operand. Halt "fast" selection and bail. 1308 return false; 1309 1310 if (SrcVT == MVT::i8) { 1311 // Truncate from i8 to i1; no code needed. 1312 UpdateValueMap(I, InputReg); 1313 return true; 1314 } 1315 1316 if (!Subtarget->is64Bit()) { 1317 // If we're on x86-32; we can't extract an i8 from a general register. 1318 // First issue a copy to GR16_ABCD or GR32_ABCD. 1319 const TargetRegisterClass *CopyRC = (SrcVT == MVT::i16) ? 1320 (const TargetRegisterClass*)&X86::GR16_ABCDRegClass : 1321 (const TargetRegisterClass*)&X86::GR32_ABCDRegClass; 1322 unsigned CopyReg = createResultReg(CopyRC); 1323 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DL, TII.get(TargetOpcode::COPY), 1324 CopyReg).addReg(InputReg); 1325 InputReg = CopyReg; 1326 } 1327 1328 // Issue an extract_subreg. 1329 unsigned ResultReg = FastEmitInst_extractsubreg(MVT::i8, 1330 InputReg, /*Kill=*/true, 1331 X86::sub_8bit); 1332 if (!ResultReg) 1333 return false; 1334 1335 UpdateValueMap(I, ResultReg); 1336 return true; 1337 } 1338 1339 bool X86FastISel::IsMemcpySmall(uint64_t Len) { 1340 return Len <= (Subtarget->is64Bit() ? 32 : 16); 1341 } 1342 1343 bool X86FastISel::TryEmitSmallMemcpy(X86AddressMode DestAM, 1344 X86AddressMode SrcAM, uint64_t Len) { 1345 1346 // Make sure we don't bloat code by inlining very large memcpy's. 1347 if (!IsMemcpySmall(Len)) 1348 return false; 1349 1350 bool i64Legal = Subtarget->is64Bit(); 1351 1352 // We don't care about alignment here since we just emit integer accesses. 1353 while (Len) { 1354 MVT VT; 1355 if (Len >= 8 && i64Legal) 1356 VT = MVT::i64; 1357 else if (Len >= 4) 1358 VT = MVT::i32; 1359 else if (Len >= 2) 1360 VT = MVT::i16; 1361 else { 1362 assert(Len == 1); 1363 VT = MVT::i8; 1364 } 1365 1366 unsigned Reg; 1367 bool RV = X86FastEmitLoad(VT, SrcAM, Reg); 1368 RV &= X86FastEmitStore(VT, Reg, DestAM); 1369 assert(RV && "Failed to emit load or store??"); 1370 1371 unsigned Size = VT.getSizeInBits()/8; 1372 Len -= Size; 1373 DestAM.Disp += Size; 1374 SrcAM.Disp += Size; 1375 } 1376 1377 return true; 1378 } 1379 1380 bool X86FastISel::X86VisitIntrinsicCall(const IntrinsicInst &I) { 1381 // FIXME: Handle more intrinsics. 1382 switch (I.getIntrinsicID()) { 1383 default: return false; 1384 case Intrinsic::memcpy: { 1385 const MemCpyInst &MCI = cast<MemCpyInst>(I); 1386 // Don't handle volatile or variable length memcpys. 1387 if (MCI.isVolatile()) 1388 return false; 1389 1390 if (isa<ConstantInt>(MCI.getLength())) { 1391 // Small memcpy's are common enough that we want to do them 1392 // without a call if possible. 1393 uint64_t Len = cast<ConstantInt>(MCI.getLength())->getZExtValue(); 1394 if (IsMemcpySmall(Len)) { 1395 X86AddressMode DestAM, SrcAM; 1396 if (!X86SelectAddress(MCI.getRawDest(), DestAM) || 1397 !X86SelectAddress(MCI.getRawSource(), SrcAM)) 1398 return false; 1399 TryEmitSmallMemcpy(DestAM, SrcAM, Len); 1400 return true; 1401 } 1402 } 1403 1404 unsigned SizeWidth = Subtarget->is64Bit() ? 64 : 32; 1405 if (!MCI.getLength()->getType()->isIntegerTy(SizeWidth)) 1406 return false; 1407 1408 if (MCI.getSourceAddressSpace() > 255 || MCI.getDestAddressSpace() > 255) 1409 return false; 1410 1411 return DoSelectCall(&I, "memcpy"); 1412 } 1413 case Intrinsic::memset: { 1414 const MemSetInst &MSI = cast<MemSetInst>(I); 1415 1416 if (MSI.isVolatile()) 1417 return false; 1418 1419 unsigned SizeWidth = Subtarget->is64Bit() ? 64 : 32; 1420 if (!MSI.getLength()->getType()->isIntegerTy(SizeWidth)) 1421 return false; 1422 1423 if (MSI.getDestAddressSpace() > 255) 1424 return false; 1425 1426 return DoSelectCall(&I, "memset"); 1427 } 1428 case Intrinsic::stackprotector: { 1429 // Emit code to store the stack guard onto the stack. 1430 EVT PtrTy = TLI.getPointerTy(); 1431 1432 const Value *Op1 = I.getArgOperand(0); // The guard's value. 1433 const AllocaInst *Slot = cast<AllocaInst>(I.getArgOperand(1)); 1434 1435 // Grab the frame index. 1436 X86AddressMode AM; 1437 if (!X86SelectAddress(Slot, AM)) return false; 1438 if (!X86FastEmitStore(PtrTy, Op1, AM)) return false; 1439 return true; 1440 } 1441 case Intrinsic::dbg_declare: { 1442 const DbgDeclareInst *DI = cast<DbgDeclareInst>(&I); 1443 X86AddressMode AM; 1444 assert(DI->getAddress() && "Null address should be checked earlier!"); 1445 if (!X86SelectAddress(DI->getAddress(), AM)) 1446 return false; 1447 const MCInstrDesc &II = TII.get(TargetOpcode::DBG_VALUE); 1448 // FIXME may need to add RegState::Debug to any registers produced, 1449 // although ESP/EBP should be the only ones at the moment. 1450 addFullAddress(BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DL, II), AM). 1451 addImm(0).addMetadata(DI->getVariable()); 1452 return true; 1453 } 1454 case Intrinsic::trap: { 1455 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DL, TII.get(X86::TRAP)); 1456 return true; 1457 } 1458 case Intrinsic::sadd_with_overflow: 1459 case Intrinsic::uadd_with_overflow: { 1460 // FIXME: Should fold immediates. 1461 1462 // Replace "add with overflow" intrinsics with an "add" instruction followed 1463 // by a seto/setc instruction. 1464 const Function *Callee = I.getCalledFunction(); 1465 Type *RetTy = 1466 cast<StructType>(Callee->getReturnType())->getTypeAtIndex(unsigned(0)); 1467 1468 MVT VT; 1469 if (!isTypeLegal(RetTy, VT)) 1470 return false; 1471 1472 const Value *Op1 = I.getArgOperand(0); 1473 const Value *Op2 = I.getArgOperand(1); 1474 unsigned Reg1 = getRegForValue(Op1); 1475 unsigned Reg2 = getRegForValue(Op2); 1476 1477 if (Reg1 == 0 || Reg2 == 0) 1478 // FIXME: Handle values *not* in registers. 1479 return false; 1480 1481 unsigned OpC = 0; 1482 if (VT == MVT::i32) 1483 OpC = X86::ADD32rr; 1484 else if (VT == MVT::i64) 1485 OpC = X86::ADD64rr; 1486 else 1487 return false; 1488 1489 // The call to CreateRegs builds two sequential registers, to store the 1490 // both the returned values. 1491 unsigned ResultReg = FuncInfo.CreateRegs(I.getType()); 1492 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DL, TII.get(OpC), ResultReg) 1493 .addReg(Reg1).addReg(Reg2); 1494 1495 unsigned Opc = X86::SETBr; 1496 if (I.getIntrinsicID() == Intrinsic::sadd_with_overflow) 1497 Opc = X86::SETOr; 1498 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DL, TII.get(Opc), ResultReg+1); 1499 1500 UpdateValueMap(&I, ResultReg, 2); 1501 return true; 1502 } 1503 } 1504 } 1505 1506 bool X86FastISel::X86SelectCall(const Instruction *I) { 1507 const CallInst *CI = cast<CallInst>(I); 1508 const Value *Callee = CI->getCalledValue(); 1509 1510 // Can't handle inline asm yet. 1511 if (isa<InlineAsm>(Callee)) 1512 return false; 1513 1514 // Handle intrinsic calls. 1515 if (const IntrinsicInst *II = dyn_cast<IntrinsicInst>(CI)) 1516 return X86VisitIntrinsicCall(*II); 1517 1518 return DoSelectCall(I, 0); 1519 } 1520 1521 static unsigned computeBytesPoppedByCallee(const X86Subtarget &Subtarget, 1522 const ImmutableCallSite &CS) { 1523 if (Subtarget.is64Bit()) 1524 return 0; 1525 if (Subtarget.isTargetWindows()) 1526 return 0; 1527 CallingConv::ID CC = CS.getCallingConv(); 1528 if (CC == CallingConv::Fast || CC == CallingConv::GHC) 1529 return 0; 1530 if (!CS.paramHasAttr(1, Attribute::StructRet)) 1531 return 0; 1532 if (CS.paramHasAttr(1, Attribute::InReg)) 1533 return 0; 1534 return 4; 1535 } 1536 1537 // Select either a call, or an llvm.memcpy/memmove/memset intrinsic 1538 bool X86FastISel::DoSelectCall(const Instruction *I, const char *MemIntName) { 1539 const CallInst *CI = cast<CallInst>(I); 1540 const Value *Callee = CI->getCalledValue(); 1541 1542 // Handle only C and fastcc calling conventions for now. 1543 ImmutableCallSite CS(CI); 1544 CallingConv::ID CC = CS.getCallingConv(); 1545 if (CC != CallingConv::C && CC != CallingConv::Fast && 1546 CC != CallingConv::X86_FastCall) 1547 return false; 1548 1549 // fastcc with -tailcallopt is intended to provide a guaranteed 1550 // tail call optimization. Fastisel doesn't know how to do that. 1551 if (CC == CallingConv::Fast && TM.Options.GuaranteedTailCallOpt) 1552 return false; 1553 1554 PointerType *PT = cast<PointerType>(CS.getCalledValue()->getType()); 1555 FunctionType *FTy = cast<FunctionType>(PT->getElementType()); 1556 bool isVarArg = FTy->isVarArg(); 1557 1558 // Don't know how to handle Win64 varargs yet. Nothing special needed for 1559 // x86-32. Special handling for x86-64 is implemented. 1560 if (isVarArg && Subtarget->isTargetWin64()) 1561 return false; 1562 1563 // Fast-isel doesn't know about callee-pop yet. 1564 if (X86::isCalleePop(CC, Subtarget->is64Bit(), isVarArg, 1565 TM.Options.GuaranteedTailCallOpt)) 1566 return false; 1567 1568 // Check whether the function can return without sret-demotion. 1569 SmallVector<ISD::OutputArg, 4> Outs; 1570 GetReturnInfo(I->getType(), CS.getAttributes().getRetAttributes(), 1571 Outs, TLI); 1572 bool CanLowerReturn = TLI.CanLowerReturn(CS.getCallingConv(), 1573 *FuncInfo.MF, FTy->isVarArg(), 1574 Outs, FTy->getContext()); 1575 if (!CanLowerReturn) 1576 return false; 1577 1578 // Materialize callee address in a register. FIXME: GV address can be 1579 // handled with a CALLpcrel32 instead. 1580 X86AddressMode CalleeAM; 1581 if (!X86SelectCallAddress(Callee, CalleeAM)) 1582 return false; 1583 unsigned CalleeOp = 0; 1584 const GlobalValue *GV = 0; 1585 if (CalleeAM.GV != 0) { 1586 GV = CalleeAM.GV; 1587 } else if (CalleeAM.Base.Reg != 0) { 1588 CalleeOp = CalleeAM.Base.Reg; 1589 } else 1590 return false; 1591 1592 // Deal with call operands first. 1593 SmallVector<const Value *, 8> ArgVals; 1594 SmallVector<unsigned, 8> Args; 1595 SmallVector<MVT, 8> ArgVTs; 1596 SmallVector<ISD::ArgFlagsTy, 8> ArgFlags; 1597 unsigned arg_size = CS.arg_size(); 1598 Args.reserve(arg_size); 1599 ArgVals.reserve(arg_size); 1600 ArgVTs.reserve(arg_size); 1601 ArgFlags.reserve(arg_size); 1602 for (ImmutableCallSite::arg_iterator i = CS.arg_begin(), e = CS.arg_end(); 1603 i != e; ++i) { 1604 // If we're lowering a mem intrinsic instead of a regular call, skip the 1605 // last two arguments, which should not passed to the underlying functions. 1606 if (MemIntName && e-i <= 2) 1607 break; 1608 Value *ArgVal = *i; 1609 ISD::ArgFlagsTy Flags; 1610 unsigned AttrInd = i - CS.arg_begin() + 1; 1611 if (CS.paramHasAttr(AttrInd, Attribute::SExt)) 1612 Flags.setSExt(); 1613 if (CS.paramHasAttr(AttrInd, Attribute::ZExt)) 1614 Flags.setZExt(); 1615 1616 if (CS.paramHasAttr(AttrInd, Attribute::ByVal)) { 1617 PointerType *Ty = cast<PointerType>(ArgVal->getType()); 1618 Type *ElementTy = Ty->getElementType(); 1619 unsigned FrameSize = TD.getTypeAllocSize(ElementTy); 1620 unsigned FrameAlign = CS.getParamAlignment(AttrInd); 1621 if (!FrameAlign) 1622 FrameAlign = TLI.getByValTypeAlignment(ElementTy); 1623 Flags.setByVal(); 1624 Flags.setByValSize(FrameSize); 1625 Flags.setByValAlign(FrameAlign); 1626 if (!IsMemcpySmall(FrameSize)) 1627 return false; 1628 } 1629 1630 if (CS.paramHasAttr(AttrInd, Attribute::InReg)) 1631 Flags.setInReg(); 1632 if (CS.paramHasAttr(AttrInd, Attribute::Nest)) 1633 Flags.setNest(); 1634 1635 // If this is an i1/i8/i16 argument, promote to i32 to avoid an extra 1636 // instruction. This is safe because it is common to all fastisel supported 1637 // calling conventions on x86. 1638 if (ConstantInt *CI = dyn_cast<ConstantInt>(ArgVal)) { 1639 if (CI->getBitWidth() == 1 || CI->getBitWidth() == 8 || 1640 CI->getBitWidth() == 16) { 1641 if (Flags.isSExt()) 1642 ArgVal = ConstantExpr::getSExt(CI,Type::getInt32Ty(CI->getContext())); 1643 else 1644 ArgVal = ConstantExpr::getZExt(CI,Type::getInt32Ty(CI->getContext())); 1645 } 1646 } 1647 1648 unsigned ArgReg; 1649 1650 // Passing bools around ends up doing a trunc to i1 and passing it. 1651 // Codegen this as an argument + "and 1". 1652 if (ArgVal->getType()->isIntegerTy(1) && isa<TruncInst>(ArgVal) && 1653 cast<TruncInst>(ArgVal)->getParent() == I->getParent() && 1654 ArgVal->hasOneUse()) { 1655 ArgVal = cast<TruncInst>(ArgVal)->getOperand(0); 1656 ArgReg = getRegForValue(ArgVal); 1657 if (ArgReg == 0) return false; 1658 1659 MVT ArgVT; 1660 if (!isTypeLegal(ArgVal->getType(), ArgVT)) return false; 1661 1662 ArgReg = FastEmit_ri(ArgVT, ArgVT, ISD::AND, ArgReg, 1663 ArgVal->hasOneUse(), 1); 1664 } else { 1665 ArgReg = getRegForValue(ArgVal); 1666 } 1667 1668 if (ArgReg == 0) return false; 1669 1670 Type *ArgTy = ArgVal->getType(); 1671 MVT ArgVT; 1672 if (!isTypeLegal(ArgTy, ArgVT)) 1673 return false; 1674 if (ArgVT == MVT::x86mmx) 1675 return false; 1676 unsigned OriginalAlignment = TD.getABITypeAlignment(ArgTy); 1677 Flags.setOrigAlign(OriginalAlignment); 1678 1679 Args.push_back(ArgReg); 1680 ArgVals.push_back(ArgVal); 1681 ArgVTs.push_back(ArgVT); 1682 ArgFlags.push_back(Flags); 1683 } 1684 1685 // Analyze operands of the call, assigning locations to each operand. 1686 SmallVector<CCValAssign, 16> ArgLocs; 1687 CCState CCInfo(CC, isVarArg, *FuncInfo.MF, TM, ArgLocs, 1688 I->getParent()->getContext()); 1689 1690 // Allocate shadow area for Win64 1691 if (Subtarget->isTargetWin64()) 1692 CCInfo.AllocateStack(32, 8); 1693 1694 CCInfo.AnalyzeCallOperands(ArgVTs, ArgFlags, CC_X86); 1695 1696 // Get a count of how many bytes are to be pushed on the stack. 1697 unsigned NumBytes = CCInfo.getNextStackOffset(); 1698 1699 // Issue CALLSEQ_START 1700 unsigned AdjStackDown = TII.getCallFrameSetupOpcode(); 1701 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DL, TII.get(AdjStackDown)) 1702 .addImm(NumBytes); 1703 1704 // Process argument: walk the register/memloc assignments, inserting 1705 // copies / loads. 1706 SmallVector<unsigned, 4> RegArgs; 1707 for (unsigned i = 0, e = ArgLocs.size(); i != e; ++i) { 1708 CCValAssign &VA = ArgLocs[i]; 1709 unsigned Arg = Args[VA.getValNo()]; 1710 EVT ArgVT = ArgVTs[VA.getValNo()]; 1711 1712 // Promote the value if needed. 1713 switch (VA.getLocInfo()) { 1714 case CCValAssign::Full: break; 1715 case CCValAssign::SExt: { 1716 assert(VA.getLocVT().isInteger() && !VA.getLocVT().isVector() && 1717 "Unexpected extend"); 1718 bool Emitted = X86FastEmitExtend(ISD::SIGN_EXTEND, VA.getLocVT(), 1719 Arg, ArgVT, Arg); 1720 assert(Emitted && "Failed to emit a sext!"); (void)Emitted; 1721 ArgVT = VA.getLocVT(); 1722 break; 1723 } 1724 case CCValAssign::ZExt: { 1725 assert(VA.getLocVT().isInteger() && !VA.getLocVT().isVector() && 1726 "Unexpected extend"); 1727 bool Emitted = X86FastEmitExtend(ISD::ZERO_EXTEND, VA.getLocVT(), 1728 Arg, ArgVT, Arg); 1729 assert(Emitted && "Failed to emit a zext!"); (void)Emitted; 1730 ArgVT = VA.getLocVT(); 1731 break; 1732 } 1733 case CCValAssign::AExt: { 1734 assert(VA.getLocVT().isInteger() && !VA.getLocVT().isVector() && 1735 "Unexpected extend"); 1736 bool Emitted = X86FastEmitExtend(ISD::ANY_EXTEND, VA.getLocVT(), 1737 Arg, ArgVT, Arg); 1738 if (!Emitted) 1739 Emitted = X86FastEmitExtend(ISD::ZERO_EXTEND, VA.getLocVT(), 1740 Arg, ArgVT, Arg); 1741 if (!Emitted) 1742 Emitted = X86FastEmitExtend(ISD::SIGN_EXTEND, VA.getLocVT(), 1743 Arg, ArgVT, Arg); 1744 1745 assert(Emitted && "Failed to emit a aext!"); (void)Emitted; 1746 ArgVT = VA.getLocVT(); 1747 break; 1748 } 1749 case CCValAssign::BCvt: { 1750 unsigned BC = FastEmit_r(ArgVT.getSimpleVT(), VA.getLocVT(), 1751 ISD::BITCAST, Arg, /*TODO: Kill=*/false); 1752 assert(BC != 0 && "Failed to emit a bitcast!"); 1753 Arg = BC; 1754 ArgVT = VA.getLocVT(); 1755 break; 1756 } 1757 case CCValAssign::VExt: 1758 // VExt has not been implemented, so this should be impossible to reach 1759 // for now. However, fallback to Selection DAG isel once implemented. 1760 return false; 1761 case CCValAssign::Indirect: 1762 // FIXME: Indirect doesn't need extending, but fast-isel doesn't fully 1763 // support this. 1764 return false; 1765 } 1766 1767 if (VA.isRegLoc()) { 1768 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DL, TII.get(TargetOpcode::COPY), 1769 VA.getLocReg()).addReg(Arg); 1770 RegArgs.push_back(VA.getLocReg()); 1771 } else { 1772 unsigned LocMemOffset = VA.getLocMemOffset(); 1773 X86AddressMode AM; 1774 AM.Base.Reg = StackPtr; 1775 AM.Disp = LocMemOffset; 1776 const Value *ArgVal = ArgVals[VA.getValNo()]; 1777 ISD::ArgFlagsTy Flags = ArgFlags[VA.getValNo()]; 1778 1779 if (Flags.isByVal()) { 1780 X86AddressMode SrcAM; 1781 SrcAM.Base.Reg = Arg; 1782 bool Res = TryEmitSmallMemcpy(AM, SrcAM, Flags.getByValSize()); 1783 assert(Res && "memcpy length already checked!"); (void)Res; 1784 } else if (isa<ConstantInt>(ArgVal) || isa<ConstantPointerNull>(ArgVal)) { 1785 // If this is a really simple value, emit this with the Value* version 1786 // of X86FastEmitStore. If it isn't simple, we don't want to do this, 1787 // as it can cause us to reevaluate the argument. 1788 if (!X86FastEmitStore(ArgVT, ArgVal, AM)) 1789 return false; 1790 } else { 1791 if (!X86FastEmitStore(ArgVT, Arg, AM)) 1792 return false; 1793 } 1794 } 1795 } 1796 1797 // ELF / PIC requires GOT in the EBX register before function calls via PLT 1798 // GOT pointer. 1799 if (Subtarget->isPICStyleGOT()) { 1800 unsigned Base = getInstrInfo()->getGlobalBaseReg(FuncInfo.MF); 1801 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DL, TII.get(TargetOpcode::COPY), 1802 X86::EBX).addReg(Base); 1803 } 1804 1805 if (Subtarget->is64Bit() && isVarArg && !Subtarget->isTargetWin64()) { 1806 // Count the number of XMM registers allocated. 1807 static const uint16_t XMMArgRegs[] = { 1808 X86::XMM0, X86::XMM1, X86::XMM2, X86::XMM3, 1809 X86::XMM4, X86::XMM5, X86::XMM6, X86::XMM7 1810 }; 1811 unsigned NumXMMRegs = CCInfo.getFirstUnallocated(XMMArgRegs, 8); 1812 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DL, TII.get(X86::MOV8ri), 1813 X86::AL).addImm(NumXMMRegs); 1814 } 1815 1816 // Issue the call. 1817 MachineInstrBuilder MIB; 1818 if (CalleeOp) { 1819 // Register-indirect call. 1820 unsigned CallOpc; 1821 if (Subtarget->is64Bit()) 1822 CallOpc = X86::CALL64r; 1823 else 1824 CallOpc = X86::CALL32r; 1825 MIB = BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DL, TII.get(CallOpc)) 1826 .addReg(CalleeOp); 1827 1828 } else { 1829 // Direct call. 1830 assert(GV && "Not a direct call"); 1831 unsigned CallOpc; 1832 if (Subtarget->is64Bit()) 1833 CallOpc = X86::CALL64pcrel32; 1834 else 1835 CallOpc = X86::CALLpcrel32; 1836 1837 // See if we need any target-specific flags on the GV operand. 1838 unsigned char OpFlags = 0; 1839 1840 // On ELF targets, in both X86-64 and X86-32 mode, direct calls to 1841 // external symbols most go through the PLT in PIC mode. If the symbol 1842 // has hidden or protected visibility, or if it is static or local, then 1843 // we don't need to use the PLT - we can directly call it. 1844 if (Subtarget->isTargetELF() && 1845 TM.getRelocationModel() == Reloc::PIC_ && 1846 GV->hasDefaultVisibility() && !GV->hasLocalLinkage()) { 1847 OpFlags = X86II::MO_PLT; 1848 } else if (Subtarget->isPICStyleStubAny() && 1849 (GV->isDeclaration() || GV->isWeakForLinker()) && 1850 (!Subtarget->getTargetTriple().isMacOSX() || 1851 Subtarget->getTargetTriple().isMacOSXVersionLT(10, 5))) { 1852 // PC-relative references to external symbols should go through $stub, 1853 // unless we're building with the leopard linker or later, which 1854 // automatically synthesizes these stubs. 1855 OpFlags = X86II::MO_DARWIN_STUB; 1856 } 1857 1858 1859 MIB = BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DL, TII.get(CallOpc)); 1860 if (MemIntName) 1861 MIB.addExternalSymbol(MemIntName, OpFlags); 1862 else 1863 MIB.addGlobalAddress(GV, 0, OpFlags); 1864 } 1865 1866 // Add a register mask with the call-preserved registers. 1867 // Proper defs for return values will be added by setPhysRegsDeadExcept(). 1868 MIB.addRegMask(TRI.getCallPreservedMask(CS.getCallingConv())); 1869 1870 // Add an implicit use GOT pointer in EBX. 1871 if (Subtarget->isPICStyleGOT()) 1872 MIB.addReg(X86::EBX, RegState::Implicit); 1873 1874 if (Subtarget->is64Bit() && isVarArg && !Subtarget->isTargetWin64()) 1875 MIB.addReg(X86::AL, RegState::Implicit); 1876 1877 // Add implicit physical register uses to the call. 1878 for (unsigned i = 0, e = RegArgs.size(); i != e; ++i) 1879 MIB.addReg(RegArgs[i], RegState::Implicit); 1880 1881 // Issue CALLSEQ_END 1882 unsigned AdjStackUp = TII.getCallFrameDestroyOpcode(); 1883 const unsigned NumBytesCallee = computeBytesPoppedByCallee(*Subtarget, CS); 1884 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DL, TII.get(AdjStackUp)) 1885 .addImm(NumBytes).addImm(NumBytesCallee); 1886 1887 // Build info for return calling conv lowering code. 1888 // FIXME: This is practically a copy-paste from TargetLowering::LowerCallTo. 1889 SmallVector<ISD::InputArg, 32> Ins; 1890 SmallVector<EVT, 4> RetTys; 1891 ComputeValueVTs(TLI, I->getType(), RetTys); 1892 for (unsigned i = 0, e = RetTys.size(); i != e; ++i) { 1893 EVT VT = RetTys[i]; 1894 EVT RegisterVT = TLI.getRegisterType(I->getParent()->getContext(), VT); 1895 unsigned NumRegs = TLI.getNumRegisters(I->getParent()->getContext(), VT); 1896 for (unsigned j = 0; j != NumRegs; ++j) { 1897 ISD::InputArg MyFlags; 1898 MyFlags.VT = RegisterVT.getSimpleVT(); 1899 MyFlags.Used = !CS.getInstruction()->use_empty(); 1900 if (CS.paramHasAttr(0, Attribute::SExt)) 1901 MyFlags.Flags.setSExt(); 1902 if (CS.paramHasAttr(0, Attribute::ZExt)) 1903 MyFlags.Flags.setZExt(); 1904 if (CS.paramHasAttr(0, Attribute::InReg)) 1905 MyFlags.Flags.setInReg(); 1906 Ins.push_back(MyFlags); 1907 } 1908 } 1909 1910 // Now handle call return values. 1911 SmallVector<unsigned, 4> UsedRegs; 1912 SmallVector<CCValAssign, 16> RVLocs; 1913 CCState CCRetInfo(CC, false, *FuncInfo.MF, TM, RVLocs, 1914 I->getParent()->getContext()); 1915 unsigned ResultReg = FuncInfo.CreateRegs(I->getType()); 1916 CCRetInfo.AnalyzeCallResult(Ins, RetCC_X86); 1917 for (unsigned i = 0; i != RVLocs.size(); ++i) { 1918 EVT CopyVT = RVLocs[i].getValVT(); 1919 unsigned CopyReg = ResultReg + i; 1920 1921 // If this is a call to a function that returns an fp value on the x87 fp 1922 // stack, but where we prefer to use the value in xmm registers, copy it 1923 // out as F80 and use a truncate to move it from fp stack reg to xmm reg. 1924 if ((RVLocs[i].getLocReg() == X86::ST0 || 1925 RVLocs[i].getLocReg() == X86::ST1)) { 1926 if (isScalarFPTypeInSSEReg(RVLocs[i].getValVT())) { 1927 CopyVT = MVT::f80; 1928 CopyReg = createResultReg(&X86::RFP80RegClass); 1929 } 1930 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DL, TII.get(X86::FpPOP_RETVAL), 1931 CopyReg); 1932 } else { 1933 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DL, TII.get(TargetOpcode::COPY), 1934 CopyReg).addReg(RVLocs[i].getLocReg()); 1935 UsedRegs.push_back(RVLocs[i].getLocReg()); 1936 } 1937 1938 if (CopyVT != RVLocs[i].getValVT()) { 1939 // Round the F80 the right size, which also moves to the appropriate xmm 1940 // register. This is accomplished by storing the F80 value in memory and 1941 // then loading it back. Ewww... 1942 EVT ResVT = RVLocs[i].getValVT(); 1943 unsigned Opc = ResVT == MVT::f32 ? X86::ST_Fp80m32 : X86::ST_Fp80m64; 1944 unsigned MemSize = ResVT.getSizeInBits()/8; 1945 int FI = MFI.CreateStackObject(MemSize, MemSize, false); 1946 addFrameReference(BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DL, 1947 TII.get(Opc)), FI) 1948 .addReg(CopyReg); 1949 Opc = ResVT == MVT::f32 ? X86::MOVSSrm : X86::MOVSDrm; 1950 addFrameReference(BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DL, 1951 TII.get(Opc), ResultReg + i), FI); 1952 } 1953 } 1954 1955 if (RVLocs.size()) 1956 UpdateValueMap(I, ResultReg, RVLocs.size()); 1957 1958 // Set all unused physreg defs as dead. 1959 static_cast<MachineInstr *>(MIB)->setPhysRegsDeadExcept(UsedRegs, TRI); 1960 1961 return true; 1962 } 1963 1964 1965 bool 1966 X86FastISel::TargetSelectInstruction(const Instruction *I) { 1967 switch (I->getOpcode()) { 1968 default: break; 1969 case Instruction::Load: 1970 return X86SelectLoad(I); 1971 case Instruction::Store: 1972 return X86SelectStore(I); 1973 case Instruction::Ret: 1974 return X86SelectRet(I); 1975 case Instruction::ICmp: 1976 case Instruction::FCmp: 1977 return X86SelectCmp(I); 1978 case Instruction::ZExt: 1979 return X86SelectZExt(I); 1980 case Instruction::Br: 1981 return X86SelectBranch(I); 1982 case Instruction::Call: 1983 return X86SelectCall(I); 1984 case Instruction::LShr: 1985 case Instruction::AShr: 1986 case Instruction::Shl: 1987 return X86SelectShift(I); 1988 case Instruction::Select: 1989 return X86SelectSelect(I); 1990 case Instruction::Trunc: 1991 return X86SelectTrunc(I); 1992 case Instruction::FPExt: 1993 return X86SelectFPExt(I); 1994 case Instruction::FPTrunc: 1995 return X86SelectFPTrunc(I); 1996 case Instruction::IntToPtr: // Deliberate fall-through. 1997 case Instruction::PtrToInt: { 1998 EVT SrcVT = TLI.getValueType(I->getOperand(0)->getType()); 1999 EVT DstVT = TLI.getValueType(I->getType()); 2000 if (DstVT.bitsGT(SrcVT)) 2001 return X86SelectZExt(I); 2002 if (DstVT.bitsLT(SrcVT)) 2003 return X86SelectTrunc(I); 2004 unsigned Reg = getRegForValue(I->getOperand(0)); 2005 if (Reg == 0) return false; 2006 UpdateValueMap(I, Reg); 2007 return true; 2008 } 2009 } 2010 2011 return false; 2012 } 2013 2014 unsigned X86FastISel::TargetMaterializeConstant(const Constant *C) { 2015 MVT VT; 2016 if (!isTypeLegal(C->getType(), VT)) 2017 return false; 2018 2019 // Get opcode and regclass of the output for the given load instruction. 2020 unsigned Opc = 0; 2021 const TargetRegisterClass *RC = NULL; 2022 switch (VT.SimpleTy) { 2023 default: return false; 2024 case MVT::i8: 2025 Opc = X86::MOV8rm; 2026 RC = &X86::GR8RegClass; 2027 break; 2028 case MVT::i16: 2029 Opc = X86::MOV16rm; 2030 RC = &X86::GR16RegClass; 2031 break; 2032 case MVT::i32: 2033 Opc = X86::MOV32rm; 2034 RC = &X86::GR32RegClass; 2035 break; 2036 case MVT::i64: 2037 // Must be in x86-64 mode. 2038 Opc = X86::MOV64rm; 2039 RC = &X86::GR64RegClass; 2040 break; 2041 case MVT::f32: 2042 if (X86ScalarSSEf32) { 2043 Opc = Subtarget->hasAVX() ? X86::VMOVSSrm : X86::MOVSSrm; 2044 RC = &X86::FR32RegClass; 2045 } else { 2046 Opc = X86::LD_Fp32m; 2047 RC = &X86::RFP32RegClass; 2048 } 2049 break; 2050 case MVT::f64: 2051 if (X86ScalarSSEf64) { 2052 Opc = Subtarget->hasAVX() ? X86::VMOVSDrm : X86::MOVSDrm; 2053 RC = &X86::FR64RegClass; 2054 } else { 2055 Opc = X86::LD_Fp64m; 2056 RC = &X86::RFP64RegClass; 2057 } 2058 break; 2059 case MVT::f80: 2060 // No f80 support yet. 2061 return false; 2062 } 2063 2064 // Materialize addresses with LEA instructions. 2065 if (isa<GlobalValue>(C)) { 2066 X86AddressMode AM; 2067 if (X86SelectAddress(C, AM)) { 2068 // If the expression is just a basereg, then we're done, otherwise we need 2069 // to emit an LEA. 2070 if (AM.BaseType == X86AddressMode::RegBase && 2071 AM.IndexReg == 0 && AM.Disp == 0 && AM.GV == 0) 2072 return AM.Base.Reg; 2073 2074 Opc = TLI.getPointerTy() == MVT::i32 ? X86::LEA32r : X86::LEA64r; 2075 unsigned ResultReg = createResultReg(RC); 2076 addFullAddress(BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DL, 2077 TII.get(Opc), ResultReg), AM); 2078 return ResultReg; 2079 } 2080 return 0; 2081 } 2082 2083 // MachineConstantPool wants an explicit alignment. 2084 unsigned Align = TD.getPrefTypeAlignment(C->getType()); 2085 if (Align == 0) { 2086 // Alignment of vector types. FIXME! 2087 Align = TD.getTypeAllocSize(C->getType()); 2088 } 2089 2090 // x86-32 PIC requires a PIC base register for constant pools. 2091 unsigned PICBase = 0; 2092 unsigned char OpFlag = 0; 2093 if (Subtarget->isPICStyleStubPIC()) { // Not dynamic-no-pic 2094 OpFlag = X86II::MO_PIC_BASE_OFFSET; 2095 PICBase = getInstrInfo()->getGlobalBaseReg(FuncInfo.MF); 2096 } else if (Subtarget->isPICStyleGOT()) { 2097 OpFlag = X86II::MO_GOTOFF; 2098 PICBase = getInstrInfo()->getGlobalBaseReg(FuncInfo.MF); 2099 } else if (Subtarget->isPICStyleRIPRel() && 2100 TM.getCodeModel() == CodeModel::Small) { 2101 PICBase = X86::RIP; 2102 } 2103 2104 // Create the load from the constant pool. 2105 unsigned MCPOffset = MCP.getConstantPoolIndex(C, Align); 2106 unsigned ResultReg = createResultReg(RC); 2107 addConstantPoolReference(BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DL, 2108 TII.get(Opc), ResultReg), 2109 MCPOffset, PICBase, OpFlag); 2110 2111 return ResultReg; 2112 } 2113 2114 unsigned X86FastISel::TargetMaterializeAlloca(const AllocaInst *C) { 2115 // Fail on dynamic allocas. At this point, getRegForValue has already 2116 // checked its CSE maps, so if we're here trying to handle a dynamic 2117 // alloca, we're not going to succeed. X86SelectAddress has a 2118 // check for dynamic allocas, because it's called directly from 2119 // various places, but TargetMaterializeAlloca also needs a check 2120 // in order to avoid recursion between getRegForValue, 2121 // X86SelectAddrss, and TargetMaterializeAlloca. 2122 if (!FuncInfo.StaticAllocaMap.count(C)) 2123 return 0; 2124 2125 X86AddressMode AM; 2126 if (!X86SelectAddress(C, AM)) 2127 return 0; 2128 unsigned Opc = Subtarget->is64Bit() ? X86::LEA64r : X86::LEA32r; 2129 const TargetRegisterClass* RC = TLI.getRegClassFor(TLI.getPointerTy()); 2130 unsigned ResultReg = createResultReg(RC); 2131 addFullAddress(BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DL, 2132 TII.get(Opc), ResultReg), AM); 2133 return ResultReg; 2134 } 2135 2136 unsigned X86FastISel::TargetMaterializeFloatZero(const ConstantFP *CF) { 2137 MVT VT; 2138 if (!isTypeLegal(CF->getType(), VT)) 2139 return false; 2140 2141 // Get opcode and regclass for the given zero. 2142 unsigned Opc = 0; 2143 const TargetRegisterClass *RC = NULL; 2144 switch (VT.SimpleTy) { 2145 default: return false; 2146 case MVT::f32: 2147 if (X86ScalarSSEf32) { 2148 Opc = X86::FsFLD0SS; 2149 RC = &X86::FR32RegClass; 2150 } else { 2151 Opc = X86::LD_Fp032; 2152 RC = &X86::RFP32RegClass; 2153 } 2154 break; 2155 case MVT::f64: 2156 if (X86ScalarSSEf64) { 2157 Opc = X86::FsFLD0SD; 2158 RC = &X86::FR64RegClass; 2159 } else { 2160 Opc = X86::LD_Fp064; 2161 RC = &X86::RFP64RegClass; 2162 } 2163 break; 2164 case MVT::f80: 2165 // No f80 support yet. 2166 return false; 2167 } 2168 2169 unsigned ResultReg = createResultReg(RC); 2170 BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DL, TII.get(Opc), ResultReg); 2171 return ResultReg; 2172 } 2173 2174 2175 /// TryToFoldLoad - The specified machine instr operand is a vreg, and that 2176 /// vreg is being provided by the specified load instruction. If possible, 2177 /// try to fold the load as an operand to the instruction, returning true if 2178 /// possible. 2179 bool X86FastISel::TryToFoldLoad(MachineInstr *MI, unsigned OpNo, 2180 const LoadInst *LI) { 2181 X86AddressMode AM; 2182 if (!X86SelectAddress(LI->getOperand(0), AM)) 2183 return false; 2184 2185 const X86InstrInfo &XII = (const X86InstrInfo&)TII; 2186 2187 unsigned Size = TD.getTypeAllocSize(LI->getType()); 2188 unsigned Alignment = LI->getAlignment(); 2189 2190 SmallVector<MachineOperand, 8> AddrOps; 2191 AM.getFullAddress(AddrOps); 2192 2193 MachineInstr *Result = 2194 XII.foldMemoryOperandImpl(*FuncInfo.MF, MI, OpNo, AddrOps, Size, Alignment); 2195 if (Result == 0) return false; 2196 2197 FuncInfo.MBB->insert(FuncInfo.InsertPt, Result); 2198 MI->eraseFromParent(); 2199 return true; 2200 } 2201 2202 2203 namespace llvm { 2204 FastISel *X86::createFastISel(FunctionLoweringInfo &funcInfo, 2205 const TargetLibraryInfo *libInfo) { 2206 return new X86FastISel(funcInfo, libInfo); 2207 } 2208 } 2209