1 //===-- llvm/CodeGen/GlobalISel/IRTranslator.cpp - IRTranslator --*- C++ -*-==// 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 /// \file 10 /// This file implements the IRTranslator class. 11 //===----------------------------------------------------------------------===// 12 13 #include "llvm/CodeGen/GlobalISel/IRTranslator.h" 14 15 #include "llvm/ADT/ScopeExit.h" 16 #include "llvm/ADT/SmallSet.h" 17 #include "llvm/ADT/SmallVector.h" 18 #include "llvm/Analysis/OptimizationDiagnosticInfo.h" 19 #include "llvm/CodeGen/GlobalISel/CallLowering.h" 20 #include "llvm/CodeGen/Analysis.h" 21 #include "llvm/CodeGen/MachineFunction.h" 22 #include "llvm/CodeGen/MachineFrameInfo.h" 23 #include "llvm/CodeGen/MachineModuleInfo.h" 24 #include "llvm/CodeGen/MachineRegisterInfo.h" 25 #include "llvm/CodeGen/TargetPassConfig.h" 26 #include "llvm/IR/Constant.h" 27 #include "llvm/IR/DebugInfo.h" 28 #include "llvm/IR/Function.h" 29 #include "llvm/IR/GetElementPtrTypeIterator.h" 30 #include "llvm/IR/IntrinsicInst.h" 31 #include "llvm/IR/Type.h" 32 #include "llvm/IR/Value.h" 33 #include "llvm/Target/TargetFrameLowering.h" 34 #include "llvm/Target/TargetIntrinsicInfo.h" 35 #include "llvm/Target/TargetLowering.h" 36 37 #define DEBUG_TYPE "irtranslator" 38 39 using namespace llvm; 40 41 char IRTranslator::ID = 0; 42 INITIALIZE_PASS_BEGIN(IRTranslator, DEBUG_TYPE, "IRTranslator LLVM IR -> MI", 43 false, false) 44 INITIALIZE_PASS_DEPENDENCY(TargetPassConfig) 45 INITIALIZE_PASS_END(IRTranslator, DEBUG_TYPE, "IRTranslator LLVM IR -> MI", 46 false, false) 47 48 static void reportTranslationError(MachineFunction &MF, 49 const TargetPassConfig &TPC, 50 OptimizationRemarkEmitter &ORE, 51 OptimizationRemarkMissed &R) { 52 MF.getProperties().set(MachineFunctionProperties::Property::FailedISel); 53 54 // Print the function name explicitly if we don't have a debug location (which 55 // makes the diagnostic less useful) or if we're going to emit a raw error. 56 if (!R.getLocation().isValid() || TPC.isGlobalISelAbortEnabled()) 57 R << (" (in function: " + MF.getName() + ")").str(); 58 59 if (TPC.isGlobalISelAbortEnabled()) 60 report_fatal_error(R.getMsg()); 61 else 62 ORE.emit(R); 63 } 64 65 IRTranslator::IRTranslator() : MachineFunctionPass(ID), MRI(nullptr) { 66 initializeIRTranslatorPass(*PassRegistry::getPassRegistry()); 67 } 68 69 void IRTranslator::getAnalysisUsage(AnalysisUsage &AU) const { 70 AU.addRequired<TargetPassConfig>(); 71 MachineFunctionPass::getAnalysisUsage(AU); 72 } 73 74 75 unsigned IRTranslator::getOrCreateVReg(const Value &Val) { 76 unsigned &ValReg = ValToVReg[&Val]; 77 78 if (ValReg) 79 return ValReg; 80 81 // Fill ValRegsSequence with the sequence of registers 82 // we need to concat together to produce the value. 83 assert(Val.getType()->isSized() && 84 "Don't know how to create an empty vreg"); 85 unsigned VReg = MRI->createGenericVirtualRegister(LLT{*Val.getType(), *DL}); 86 ValReg = VReg; 87 88 if (auto CV = dyn_cast<Constant>(&Val)) { 89 bool Success = translate(*CV, VReg); 90 if (!Success) { 91 OptimizationRemarkMissed R("gisel-irtranslator", "GISelFailure", 92 MF->getFunction()->getSubprogram(), 93 &MF->getFunction()->getEntryBlock()); 94 R << "unable to translate constant: " << ore::NV("Type", Val.getType()); 95 reportTranslationError(*MF, *TPC, *ORE, R); 96 return VReg; 97 } 98 } 99 100 return VReg; 101 } 102 103 int IRTranslator::getOrCreateFrameIndex(const AllocaInst &AI) { 104 if (FrameIndices.find(&AI) != FrameIndices.end()) 105 return FrameIndices[&AI]; 106 107 unsigned ElementSize = DL->getTypeStoreSize(AI.getAllocatedType()); 108 unsigned Size = 109 ElementSize * cast<ConstantInt>(AI.getArraySize())->getZExtValue(); 110 111 // Always allocate at least one byte. 112 Size = std::max(Size, 1u); 113 114 unsigned Alignment = AI.getAlignment(); 115 if (!Alignment) 116 Alignment = DL->getABITypeAlignment(AI.getAllocatedType()); 117 118 int &FI = FrameIndices[&AI]; 119 FI = MF->getFrameInfo().CreateStackObject(Size, Alignment, false, &AI); 120 return FI; 121 } 122 123 unsigned IRTranslator::getMemOpAlignment(const Instruction &I) { 124 unsigned Alignment = 0; 125 Type *ValTy = nullptr; 126 if (const StoreInst *SI = dyn_cast<StoreInst>(&I)) { 127 Alignment = SI->getAlignment(); 128 ValTy = SI->getValueOperand()->getType(); 129 } else if (const LoadInst *LI = dyn_cast<LoadInst>(&I)) { 130 Alignment = LI->getAlignment(); 131 ValTy = LI->getType(); 132 } else { 133 OptimizationRemarkMissed R("gisel-irtranslator", "", &I); 134 R << "unable to translate memop: " << ore::NV("Opcode", &I); 135 reportTranslationError(*MF, *TPC, *ORE, R); 136 return 1; 137 } 138 139 return Alignment ? Alignment : DL->getABITypeAlignment(ValTy); 140 } 141 142 MachineBasicBlock &IRTranslator::getOrCreateBB(const BasicBlock &BB) { 143 MachineBasicBlock *&MBB = BBToMBB[&BB]; 144 if (!MBB) { 145 MBB = MF->CreateMachineBasicBlock(&BB); 146 MF->push_back(MBB); 147 148 if (BB.hasAddressTaken()) 149 MBB->setHasAddressTaken(); 150 } 151 return *MBB; 152 } 153 154 void IRTranslator::addMachineCFGPred(CFGEdge Edge, MachineBasicBlock *NewPred) { 155 assert(NewPred && "new predecessor must be a real MachineBasicBlock"); 156 MachinePreds[Edge].push_back(NewPred); 157 } 158 159 bool IRTranslator::translateBinaryOp(unsigned Opcode, const User &U, 160 MachineIRBuilder &MIRBuilder) { 161 // FIXME: handle signed/unsigned wrapping flags. 162 163 // Get or create a virtual register for each value. 164 // Unless the value is a Constant => loadimm cst? 165 // or inline constant each time? 166 // Creation of a virtual register needs to have a size. 167 unsigned Op0 = getOrCreateVReg(*U.getOperand(0)); 168 unsigned Op1 = getOrCreateVReg(*U.getOperand(1)); 169 unsigned Res = getOrCreateVReg(U); 170 MIRBuilder.buildInstr(Opcode).addDef(Res).addUse(Op0).addUse(Op1); 171 return true; 172 } 173 174 bool IRTranslator::translateCompare(const User &U, 175 MachineIRBuilder &MIRBuilder) { 176 const CmpInst *CI = dyn_cast<CmpInst>(&U); 177 unsigned Op0 = getOrCreateVReg(*U.getOperand(0)); 178 unsigned Op1 = getOrCreateVReg(*U.getOperand(1)); 179 unsigned Res = getOrCreateVReg(U); 180 CmpInst::Predicate Pred = 181 CI ? CI->getPredicate() : static_cast<CmpInst::Predicate>( 182 cast<ConstantExpr>(U).getPredicate()); 183 184 if (CmpInst::isIntPredicate(Pred)) 185 MIRBuilder.buildICmp(Pred, Res, Op0, Op1); 186 else 187 MIRBuilder.buildFCmp(Pred, Res, Op0, Op1); 188 189 return true; 190 } 191 192 bool IRTranslator::translateRet(const User &U, MachineIRBuilder &MIRBuilder) { 193 const ReturnInst &RI = cast<ReturnInst>(U); 194 const Value *Ret = RI.getReturnValue(); 195 // The target may mess up with the insertion point, but 196 // this is not important as a return is the last instruction 197 // of the block anyway. 198 return CLI->lowerReturn(MIRBuilder, Ret, !Ret ? 0 : getOrCreateVReg(*Ret)); 199 } 200 201 bool IRTranslator::translateBr(const User &U, MachineIRBuilder &MIRBuilder) { 202 const BranchInst &BrInst = cast<BranchInst>(U); 203 unsigned Succ = 0; 204 if (!BrInst.isUnconditional()) { 205 // We want a G_BRCOND to the true BB followed by an unconditional branch. 206 unsigned Tst = getOrCreateVReg(*BrInst.getCondition()); 207 const BasicBlock &TrueTgt = *cast<BasicBlock>(BrInst.getSuccessor(Succ++)); 208 MachineBasicBlock &TrueBB = getOrCreateBB(TrueTgt); 209 MIRBuilder.buildBrCond(Tst, TrueBB); 210 } 211 212 const BasicBlock &BrTgt = *cast<BasicBlock>(BrInst.getSuccessor(Succ)); 213 MachineBasicBlock &TgtBB = getOrCreateBB(BrTgt); 214 MIRBuilder.buildBr(TgtBB); 215 216 // Link successors. 217 MachineBasicBlock &CurBB = MIRBuilder.getMBB(); 218 for (const BasicBlock *Succ : BrInst.successors()) 219 CurBB.addSuccessor(&getOrCreateBB(*Succ)); 220 return true; 221 } 222 223 bool IRTranslator::translateSwitch(const User &U, 224 MachineIRBuilder &MIRBuilder) { 225 // For now, just translate as a chain of conditional branches. 226 // FIXME: could we share most of the logic/code in 227 // SelectionDAGBuilder::visitSwitch between SelectionDAG and GlobalISel? 228 // At first sight, it seems most of the logic in there is independent of 229 // SelectionDAG-specifics and a lot of work went in to optimize switch 230 // lowering in there. 231 232 const SwitchInst &SwInst = cast<SwitchInst>(U); 233 const unsigned SwCondValue = getOrCreateVReg(*SwInst.getCondition()); 234 const BasicBlock *OrigBB = SwInst.getParent(); 235 236 LLT LLTi1 = LLT(*Type::getInt1Ty(U.getContext()), *DL); 237 for (auto &CaseIt : SwInst.cases()) { 238 const unsigned CaseValueReg = getOrCreateVReg(*CaseIt.getCaseValue()); 239 const unsigned Tst = MRI->createGenericVirtualRegister(LLTi1); 240 MIRBuilder.buildICmp(CmpInst::ICMP_EQ, Tst, CaseValueReg, SwCondValue); 241 MachineBasicBlock &CurMBB = MIRBuilder.getMBB(); 242 const BasicBlock *TrueBB = CaseIt.getCaseSuccessor(); 243 MachineBasicBlock &TrueMBB = getOrCreateBB(*TrueBB); 244 245 MIRBuilder.buildBrCond(Tst, TrueMBB); 246 CurMBB.addSuccessor(&TrueMBB); 247 addMachineCFGPred({OrigBB, TrueBB}, &CurMBB); 248 249 MachineBasicBlock *FalseMBB = 250 MF->CreateMachineBasicBlock(SwInst.getParent()); 251 MF->push_back(FalseMBB); 252 MIRBuilder.buildBr(*FalseMBB); 253 CurMBB.addSuccessor(FalseMBB); 254 255 MIRBuilder.setMBB(*FalseMBB); 256 } 257 // handle default case 258 const BasicBlock *DefaultBB = SwInst.getDefaultDest(); 259 MachineBasicBlock &DefaultMBB = getOrCreateBB(*DefaultBB); 260 MIRBuilder.buildBr(DefaultMBB); 261 MachineBasicBlock &CurMBB = MIRBuilder.getMBB(); 262 CurMBB.addSuccessor(&DefaultMBB); 263 addMachineCFGPred({OrigBB, DefaultBB}, &CurMBB); 264 265 return true; 266 } 267 268 bool IRTranslator::translateIndirectBr(const User &U, 269 MachineIRBuilder &MIRBuilder) { 270 const IndirectBrInst &BrInst = cast<IndirectBrInst>(U); 271 272 const unsigned Tgt = getOrCreateVReg(*BrInst.getAddress()); 273 MIRBuilder.buildBrIndirect(Tgt); 274 275 // Link successors. 276 MachineBasicBlock &CurBB = MIRBuilder.getMBB(); 277 for (const BasicBlock *Succ : BrInst.successors()) 278 CurBB.addSuccessor(&getOrCreateBB(*Succ)); 279 280 return true; 281 } 282 283 bool IRTranslator::translateLoad(const User &U, MachineIRBuilder &MIRBuilder) { 284 const LoadInst &LI = cast<LoadInst>(U); 285 286 auto Flags = LI.isVolatile() ? MachineMemOperand::MOVolatile 287 : MachineMemOperand::MONone; 288 Flags |= MachineMemOperand::MOLoad; 289 290 unsigned Res = getOrCreateVReg(LI); 291 unsigned Addr = getOrCreateVReg(*LI.getPointerOperand()); 292 LLT VTy{*LI.getType(), *DL}, PTy{*LI.getPointerOperand()->getType(), *DL}; 293 MIRBuilder.buildLoad( 294 Res, Addr, 295 *MF->getMachineMemOperand(MachinePointerInfo(LI.getPointerOperand()), 296 Flags, DL->getTypeStoreSize(LI.getType()), 297 getMemOpAlignment(LI), AAMDNodes(), nullptr, 298 LI.getSynchScope(), LI.getOrdering())); 299 return true; 300 } 301 302 bool IRTranslator::translateStore(const User &U, MachineIRBuilder &MIRBuilder) { 303 const StoreInst &SI = cast<StoreInst>(U); 304 auto Flags = SI.isVolatile() ? MachineMemOperand::MOVolatile 305 : MachineMemOperand::MONone; 306 Flags |= MachineMemOperand::MOStore; 307 308 unsigned Val = getOrCreateVReg(*SI.getValueOperand()); 309 unsigned Addr = getOrCreateVReg(*SI.getPointerOperand()); 310 LLT VTy{*SI.getValueOperand()->getType(), *DL}, 311 PTy{*SI.getPointerOperand()->getType(), *DL}; 312 313 MIRBuilder.buildStore( 314 Val, Addr, 315 *MF->getMachineMemOperand( 316 MachinePointerInfo(SI.getPointerOperand()), Flags, 317 DL->getTypeStoreSize(SI.getValueOperand()->getType()), 318 getMemOpAlignment(SI), AAMDNodes(), nullptr, SI.getSynchScope(), 319 SI.getOrdering())); 320 return true; 321 } 322 323 bool IRTranslator::translateExtractValue(const User &U, 324 MachineIRBuilder &MIRBuilder) { 325 const Value *Src = U.getOperand(0); 326 Type *Int32Ty = Type::getInt32Ty(U.getContext()); 327 SmallVector<Value *, 1> Indices; 328 329 // getIndexedOffsetInType is designed for GEPs, so the first index is the 330 // usual array element rather than looking into the actual aggregate. 331 Indices.push_back(ConstantInt::get(Int32Ty, 0)); 332 333 if (const ExtractValueInst *EVI = dyn_cast<ExtractValueInst>(&U)) { 334 for (auto Idx : EVI->indices()) 335 Indices.push_back(ConstantInt::get(Int32Ty, Idx)); 336 } else { 337 for (unsigned i = 1; i < U.getNumOperands(); ++i) 338 Indices.push_back(U.getOperand(i)); 339 } 340 341 uint64_t Offset = 8 * DL->getIndexedOffsetInType(Src->getType(), Indices); 342 343 unsigned Res = getOrCreateVReg(U); 344 MIRBuilder.buildExtract(Res, Offset, getOrCreateVReg(*Src)); 345 346 return true; 347 } 348 349 bool IRTranslator::translateInsertValue(const User &U, 350 MachineIRBuilder &MIRBuilder) { 351 const Value *Src = U.getOperand(0); 352 Type *Int32Ty = Type::getInt32Ty(U.getContext()); 353 SmallVector<Value *, 1> Indices; 354 355 // getIndexedOffsetInType is designed for GEPs, so the first index is the 356 // usual array element rather than looking into the actual aggregate. 357 Indices.push_back(ConstantInt::get(Int32Ty, 0)); 358 359 if (const InsertValueInst *IVI = dyn_cast<InsertValueInst>(&U)) { 360 for (auto Idx : IVI->indices()) 361 Indices.push_back(ConstantInt::get(Int32Ty, Idx)); 362 } else { 363 for (unsigned i = 2; i < U.getNumOperands(); ++i) 364 Indices.push_back(U.getOperand(i)); 365 } 366 367 uint64_t Offset = 8 * DL->getIndexedOffsetInType(Src->getType(), Indices); 368 369 unsigned Res = getOrCreateVReg(U); 370 const Value &Inserted = *U.getOperand(1); 371 MIRBuilder.buildInsert(Res, getOrCreateVReg(*Src), getOrCreateVReg(Inserted), 372 Offset); 373 374 return true; 375 } 376 377 bool IRTranslator::translateSelect(const User &U, 378 MachineIRBuilder &MIRBuilder) { 379 MIRBuilder.buildSelect(getOrCreateVReg(U), getOrCreateVReg(*U.getOperand(0)), 380 getOrCreateVReg(*U.getOperand(1)), 381 getOrCreateVReg(*U.getOperand(2))); 382 return true; 383 } 384 385 bool IRTranslator::translateBitCast(const User &U, 386 MachineIRBuilder &MIRBuilder) { 387 if (LLT{*U.getOperand(0)->getType(), *DL} == LLT{*U.getType(), *DL}) { 388 unsigned &Reg = ValToVReg[&U]; 389 if (Reg) 390 MIRBuilder.buildCopy(Reg, getOrCreateVReg(*U.getOperand(0))); 391 else 392 Reg = getOrCreateVReg(*U.getOperand(0)); 393 return true; 394 } 395 return translateCast(TargetOpcode::G_BITCAST, U, MIRBuilder); 396 } 397 398 bool IRTranslator::translateCast(unsigned Opcode, const User &U, 399 MachineIRBuilder &MIRBuilder) { 400 unsigned Op = getOrCreateVReg(*U.getOperand(0)); 401 unsigned Res = getOrCreateVReg(U); 402 MIRBuilder.buildInstr(Opcode).addDef(Res).addUse(Op); 403 return true; 404 } 405 406 bool IRTranslator::translateGetElementPtr(const User &U, 407 MachineIRBuilder &MIRBuilder) { 408 // FIXME: support vector GEPs. 409 if (U.getType()->isVectorTy()) 410 return false; 411 412 Value &Op0 = *U.getOperand(0); 413 unsigned BaseReg = getOrCreateVReg(Op0); 414 LLT PtrTy{*Op0.getType(), *DL}; 415 unsigned PtrSize = DL->getPointerSizeInBits(PtrTy.getAddressSpace()); 416 LLT OffsetTy = LLT::scalar(PtrSize); 417 418 int64_t Offset = 0; 419 for (gep_type_iterator GTI = gep_type_begin(&U), E = gep_type_end(&U); 420 GTI != E; ++GTI) { 421 const Value *Idx = GTI.getOperand(); 422 if (StructType *StTy = GTI.getStructTypeOrNull()) { 423 unsigned Field = cast<Constant>(Idx)->getUniqueInteger().getZExtValue(); 424 Offset += DL->getStructLayout(StTy)->getElementOffset(Field); 425 continue; 426 } else { 427 uint64_t ElementSize = DL->getTypeAllocSize(GTI.getIndexedType()); 428 429 // If this is a scalar constant or a splat vector of constants, 430 // handle it quickly. 431 if (const auto *CI = dyn_cast<ConstantInt>(Idx)) { 432 Offset += ElementSize * CI->getSExtValue(); 433 continue; 434 } 435 436 if (Offset != 0) { 437 unsigned NewBaseReg = MRI->createGenericVirtualRegister(PtrTy); 438 unsigned OffsetReg = MRI->createGenericVirtualRegister(OffsetTy); 439 MIRBuilder.buildConstant(OffsetReg, Offset); 440 MIRBuilder.buildGEP(NewBaseReg, BaseReg, OffsetReg); 441 442 BaseReg = NewBaseReg; 443 Offset = 0; 444 } 445 446 // N = N + Idx * ElementSize; 447 unsigned ElementSizeReg = MRI->createGenericVirtualRegister(OffsetTy); 448 MIRBuilder.buildConstant(ElementSizeReg, ElementSize); 449 450 unsigned IdxReg = getOrCreateVReg(*Idx); 451 if (MRI->getType(IdxReg) != OffsetTy) { 452 unsigned NewIdxReg = MRI->createGenericVirtualRegister(OffsetTy); 453 MIRBuilder.buildSExtOrTrunc(NewIdxReg, IdxReg); 454 IdxReg = NewIdxReg; 455 } 456 457 unsigned OffsetReg = MRI->createGenericVirtualRegister(OffsetTy); 458 MIRBuilder.buildMul(OffsetReg, ElementSizeReg, IdxReg); 459 460 unsigned NewBaseReg = MRI->createGenericVirtualRegister(PtrTy); 461 MIRBuilder.buildGEP(NewBaseReg, BaseReg, OffsetReg); 462 BaseReg = NewBaseReg; 463 } 464 } 465 466 if (Offset != 0) { 467 unsigned OffsetReg = MRI->createGenericVirtualRegister(OffsetTy); 468 MIRBuilder.buildConstant(OffsetReg, Offset); 469 MIRBuilder.buildGEP(getOrCreateVReg(U), BaseReg, OffsetReg); 470 return true; 471 } 472 473 MIRBuilder.buildCopy(getOrCreateVReg(U), BaseReg); 474 return true; 475 } 476 477 bool IRTranslator::translateMemfunc(const CallInst &CI, 478 MachineIRBuilder &MIRBuilder, 479 unsigned ID) { 480 LLT SizeTy{*CI.getArgOperand(2)->getType(), *DL}; 481 Type *DstTy = CI.getArgOperand(0)->getType(); 482 if (cast<PointerType>(DstTy)->getAddressSpace() != 0 || 483 SizeTy.getSizeInBits() != DL->getPointerSizeInBits(0)) 484 return false; 485 486 SmallVector<CallLowering::ArgInfo, 8> Args; 487 for (int i = 0; i < 3; ++i) { 488 const auto &Arg = CI.getArgOperand(i); 489 Args.emplace_back(getOrCreateVReg(*Arg), Arg->getType()); 490 } 491 492 const char *Callee; 493 switch (ID) { 494 case Intrinsic::memmove: 495 case Intrinsic::memcpy: { 496 Type *SrcTy = CI.getArgOperand(1)->getType(); 497 if(cast<PointerType>(SrcTy)->getAddressSpace() != 0) 498 return false; 499 Callee = ID == Intrinsic::memcpy ? "memcpy" : "memmove"; 500 break; 501 } 502 case Intrinsic::memset: 503 Callee = "memset"; 504 break; 505 default: 506 return false; 507 } 508 509 return CLI->lowerCall(MIRBuilder, MachineOperand::CreateES(Callee), 510 CallLowering::ArgInfo(0, CI.getType()), Args); 511 } 512 513 void IRTranslator::getStackGuard(unsigned DstReg, 514 MachineIRBuilder &MIRBuilder) { 515 const TargetRegisterInfo *TRI = MF->getSubtarget().getRegisterInfo(); 516 MRI->setRegClass(DstReg, TRI->getPointerRegClass(*MF)); 517 auto MIB = MIRBuilder.buildInstr(TargetOpcode::LOAD_STACK_GUARD); 518 MIB.addDef(DstReg); 519 520 auto &TLI = *MF->getSubtarget().getTargetLowering(); 521 Value *Global = TLI.getSDagStackGuard(*MF->getFunction()->getParent()); 522 if (!Global) 523 return; 524 525 MachinePointerInfo MPInfo(Global); 526 MachineInstr::mmo_iterator MemRefs = MF->allocateMemRefsArray(1); 527 auto Flags = MachineMemOperand::MOLoad | MachineMemOperand::MOInvariant | 528 MachineMemOperand::MODereferenceable; 529 *MemRefs = 530 MF->getMachineMemOperand(MPInfo, Flags, DL->getPointerSizeInBits() / 8, 531 DL->getPointerABIAlignment()); 532 MIB.setMemRefs(MemRefs, MemRefs + 1); 533 } 534 535 bool IRTranslator::translateOverflowIntrinsic(const CallInst &CI, unsigned Op, 536 MachineIRBuilder &MIRBuilder) { 537 LLT Ty{*CI.getOperand(0)->getType(), *DL}; 538 LLT s1 = LLT::scalar(1); 539 unsigned Width = Ty.getSizeInBits(); 540 unsigned Res = MRI->createGenericVirtualRegister(Ty); 541 unsigned Overflow = MRI->createGenericVirtualRegister(s1); 542 auto MIB = MIRBuilder.buildInstr(Op) 543 .addDef(Res) 544 .addDef(Overflow) 545 .addUse(getOrCreateVReg(*CI.getOperand(0))) 546 .addUse(getOrCreateVReg(*CI.getOperand(1))); 547 548 if (Op == TargetOpcode::G_UADDE || Op == TargetOpcode::G_USUBE) { 549 unsigned Zero = MRI->createGenericVirtualRegister(s1); 550 EntryBuilder.buildConstant(Zero, 0); 551 MIB.addUse(Zero); 552 } 553 554 MIRBuilder.buildSequence(getOrCreateVReg(CI), Res, 0, Overflow, Width); 555 return true; 556 } 557 558 bool IRTranslator::translateKnownIntrinsic(const CallInst &CI, Intrinsic::ID ID, 559 MachineIRBuilder &MIRBuilder) { 560 switch (ID) { 561 default: 562 break; 563 case Intrinsic::lifetime_start: 564 case Intrinsic::lifetime_end: 565 // Stack coloring is not enabled in O0 (which we care about now) so we can 566 // drop these. Make sure someone notices when we start compiling at higher 567 // opts though. 568 if (MF->getTarget().getOptLevel() != CodeGenOpt::None) 569 return false; 570 return true; 571 case Intrinsic::dbg_declare: { 572 const DbgDeclareInst &DI = cast<DbgDeclareInst>(CI); 573 assert(DI.getVariable() && "Missing variable"); 574 575 const Value *Address = DI.getAddress(); 576 if (!Address || isa<UndefValue>(Address)) { 577 DEBUG(dbgs() << "Dropping debug info for " << DI << "\n"); 578 return true; 579 } 580 581 unsigned Reg = getOrCreateVReg(*Address); 582 auto RegDef = MRI->def_instr_begin(Reg); 583 assert(DI.getVariable()->isValidLocationForIntrinsic( 584 MIRBuilder.getDebugLoc()) && 585 "Expected inlined-at fields to agree"); 586 587 if (RegDef != MRI->def_instr_end() && 588 RegDef->getOpcode() == TargetOpcode::G_FRAME_INDEX) { 589 MIRBuilder.buildFIDbgValue(RegDef->getOperand(1).getIndex(), 590 DI.getVariable(), DI.getExpression()); 591 } else 592 MIRBuilder.buildDirectDbgValue(Reg, DI.getVariable(), DI.getExpression()); 593 return true; 594 } 595 case Intrinsic::vaend: 596 // No target I know of cares about va_end. Certainly no in-tree target 597 // does. Simplest intrinsic ever! 598 return true; 599 case Intrinsic::vastart: { 600 auto &TLI = *MF->getSubtarget().getTargetLowering(); 601 Value *Ptr = CI.getArgOperand(0); 602 unsigned ListSize = TLI.getVaListSizeInBits(*DL) / 8; 603 604 MIRBuilder.buildInstr(TargetOpcode::G_VASTART) 605 .addUse(getOrCreateVReg(*Ptr)) 606 .addMemOperand(MF->getMachineMemOperand( 607 MachinePointerInfo(Ptr), MachineMemOperand::MOStore, ListSize, 0)); 608 return true; 609 } 610 case Intrinsic::dbg_value: { 611 // This form of DBG_VALUE is target-independent. 612 const DbgValueInst &DI = cast<DbgValueInst>(CI); 613 const Value *V = DI.getValue(); 614 assert(DI.getVariable()->isValidLocationForIntrinsic( 615 MIRBuilder.getDebugLoc()) && 616 "Expected inlined-at fields to agree"); 617 if (!V) { 618 // Currently the optimizer can produce this; insert an undef to 619 // help debugging. Probably the optimizer should not do this. 620 MIRBuilder.buildIndirectDbgValue(0, DI.getOffset(), DI.getVariable(), 621 DI.getExpression()); 622 } else if (const auto *CI = dyn_cast<Constant>(V)) { 623 MIRBuilder.buildConstDbgValue(*CI, DI.getOffset(), DI.getVariable(), 624 DI.getExpression()); 625 } else { 626 unsigned Reg = getOrCreateVReg(*V); 627 // FIXME: This does not handle register-indirect values at offset 0. The 628 // direct/indirect thing shouldn't really be handled by something as 629 // implicit as reg+noreg vs reg+imm in the first palce, but it seems 630 // pretty baked in right now. 631 if (DI.getOffset() != 0) 632 MIRBuilder.buildIndirectDbgValue(Reg, DI.getOffset(), DI.getVariable(), 633 DI.getExpression()); 634 else 635 MIRBuilder.buildDirectDbgValue(Reg, DI.getVariable(), 636 DI.getExpression()); 637 } 638 return true; 639 } 640 case Intrinsic::uadd_with_overflow: 641 return translateOverflowIntrinsic(CI, TargetOpcode::G_UADDE, MIRBuilder); 642 case Intrinsic::sadd_with_overflow: 643 return translateOverflowIntrinsic(CI, TargetOpcode::G_SADDO, MIRBuilder); 644 case Intrinsic::usub_with_overflow: 645 return translateOverflowIntrinsic(CI, TargetOpcode::G_USUBE, MIRBuilder); 646 case Intrinsic::ssub_with_overflow: 647 return translateOverflowIntrinsic(CI, TargetOpcode::G_SSUBO, MIRBuilder); 648 case Intrinsic::umul_with_overflow: 649 return translateOverflowIntrinsic(CI, TargetOpcode::G_UMULO, MIRBuilder); 650 case Intrinsic::smul_with_overflow: 651 return translateOverflowIntrinsic(CI, TargetOpcode::G_SMULO, MIRBuilder); 652 case Intrinsic::pow: 653 MIRBuilder.buildInstr(TargetOpcode::G_FPOW) 654 .addDef(getOrCreateVReg(CI)) 655 .addUse(getOrCreateVReg(*CI.getArgOperand(0))) 656 .addUse(getOrCreateVReg(*CI.getArgOperand(1))); 657 return true; 658 case Intrinsic::memcpy: 659 case Intrinsic::memmove: 660 case Intrinsic::memset: 661 return translateMemfunc(CI, MIRBuilder, ID); 662 case Intrinsic::eh_typeid_for: { 663 GlobalValue *GV = ExtractTypeInfo(CI.getArgOperand(0)); 664 unsigned Reg = getOrCreateVReg(CI); 665 unsigned TypeID = MF->getTypeIDFor(GV); 666 MIRBuilder.buildConstant(Reg, TypeID); 667 return true; 668 } 669 case Intrinsic::objectsize: { 670 // If we don't know by now, we're never going to know. 671 const ConstantInt *Min = cast<ConstantInt>(CI.getArgOperand(1)); 672 673 MIRBuilder.buildConstant(getOrCreateVReg(CI), Min->isZero() ? -1ULL : 0); 674 return true; 675 } 676 case Intrinsic::stackguard: 677 getStackGuard(getOrCreateVReg(CI), MIRBuilder); 678 return true; 679 case Intrinsic::stackprotector: { 680 LLT PtrTy{*CI.getArgOperand(0)->getType(), *DL}; 681 unsigned GuardVal = MRI->createGenericVirtualRegister(PtrTy); 682 getStackGuard(GuardVal, MIRBuilder); 683 684 AllocaInst *Slot = cast<AllocaInst>(CI.getArgOperand(1)); 685 MIRBuilder.buildStore( 686 GuardVal, getOrCreateVReg(*Slot), 687 *MF->getMachineMemOperand( 688 MachinePointerInfo::getFixedStack(*MF, 689 getOrCreateFrameIndex(*Slot)), 690 MachineMemOperand::MOStore | MachineMemOperand::MOVolatile, 691 PtrTy.getSizeInBits() / 8, 8)); 692 return true; 693 } 694 } 695 return false; 696 } 697 698 bool IRTranslator::translateCall(const User &U, MachineIRBuilder &MIRBuilder) { 699 const CallInst &CI = cast<CallInst>(U); 700 auto TII = MF->getTarget().getIntrinsicInfo(); 701 const Function *F = CI.getCalledFunction(); 702 703 if (CI.isInlineAsm()) 704 return false; 705 706 if (!F || !F->isIntrinsic()) { 707 unsigned Res = CI.getType()->isVoidTy() ? 0 : getOrCreateVReg(CI); 708 SmallVector<unsigned, 8> Args; 709 for (auto &Arg: CI.arg_operands()) 710 Args.push_back(getOrCreateVReg(*Arg)); 711 712 return CLI->lowerCall(MIRBuilder, CI, Res, Args, [&]() { 713 return getOrCreateVReg(*CI.getCalledValue()); 714 }); 715 } 716 717 Intrinsic::ID ID = F->getIntrinsicID(); 718 if (TII && ID == Intrinsic::not_intrinsic) 719 ID = static_cast<Intrinsic::ID>(TII->getIntrinsicID(F)); 720 721 assert(ID != Intrinsic::not_intrinsic && "unknown intrinsic"); 722 723 if (translateKnownIntrinsic(CI, ID, MIRBuilder)) 724 return true; 725 726 unsigned Res = CI.getType()->isVoidTy() ? 0 : getOrCreateVReg(CI); 727 MachineInstrBuilder MIB = 728 MIRBuilder.buildIntrinsic(ID, Res, !CI.doesNotAccessMemory()); 729 730 for (auto &Arg : CI.arg_operands()) { 731 if (ConstantInt *CI = dyn_cast<ConstantInt>(Arg)) 732 MIB.addImm(CI->getSExtValue()); 733 else 734 MIB.addUse(getOrCreateVReg(*Arg)); 735 } 736 return true; 737 } 738 739 bool IRTranslator::translateInvoke(const User &U, 740 MachineIRBuilder &MIRBuilder) { 741 const InvokeInst &I = cast<InvokeInst>(U); 742 MCContext &Context = MF->getContext(); 743 744 const BasicBlock *ReturnBB = I.getSuccessor(0); 745 const BasicBlock *EHPadBB = I.getSuccessor(1); 746 747 const Value *Callee(I.getCalledValue()); 748 const Function *Fn = dyn_cast<Function>(Callee); 749 if (isa<InlineAsm>(Callee)) 750 return false; 751 752 // FIXME: support invoking patchpoint and statepoint intrinsics. 753 if (Fn && Fn->isIntrinsic()) 754 return false; 755 756 // FIXME: support whatever these are. 757 if (I.countOperandBundlesOfType(LLVMContext::OB_deopt)) 758 return false; 759 760 // FIXME: support Windows exception handling. 761 if (!isa<LandingPadInst>(EHPadBB->front())) 762 return false; 763 764 765 // Emit the actual call, bracketed by EH_LABELs so that the MF knows about 766 // the region covered by the try. 767 MCSymbol *BeginSymbol = Context.createTempSymbol(); 768 MIRBuilder.buildInstr(TargetOpcode::EH_LABEL).addSym(BeginSymbol); 769 770 unsigned Res = I.getType()->isVoidTy() ? 0 : getOrCreateVReg(I); 771 SmallVector<unsigned, 8> Args; 772 for (auto &Arg: I.arg_operands()) 773 Args.push_back(getOrCreateVReg(*Arg)); 774 775 CLI->lowerCall(MIRBuilder, I, Res, Args, 776 [&]() { return getOrCreateVReg(*I.getCalledValue()); }); 777 778 MCSymbol *EndSymbol = Context.createTempSymbol(); 779 MIRBuilder.buildInstr(TargetOpcode::EH_LABEL).addSym(EndSymbol); 780 781 // FIXME: track probabilities. 782 MachineBasicBlock &EHPadMBB = getOrCreateBB(*EHPadBB), 783 &ReturnMBB = getOrCreateBB(*ReturnBB); 784 MF->addInvoke(&EHPadMBB, BeginSymbol, EndSymbol); 785 MIRBuilder.getMBB().addSuccessor(&ReturnMBB); 786 MIRBuilder.getMBB().addSuccessor(&EHPadMBB); 787 MIRBuilder.buildBr(ReturnMBB); 788 789 return true; 790 } 791 792 bool IRTranslator::translateLandingPad(const User &U, 793 MachineIRBuilder &MIRBuilder) { 794 const LandingPadInst &LP = cast<LandingPadInst>(U); 795 796 MachineBasicBlock &MBB = MIRBuilder.getMBB(); 797 addLandingPadInfo(LP, MBB); 798 799 MBB.setIsEHPad(); 800 801 // If there aren't registers to copy the values into (e.g., during SjLj 802 // exceptions), then don't bother. 803 auto &TLI = *MF->getSubtarget().getTargetLowering(); 804 const Constant *PersonalityFn = MF->getFunction()->getPersonalityFn(); 805 if (TLI.getExceptionPointerRegister(PersonalityFn) == 0 && 806 TLI.getExceptionSelectorRegister(PersonalityFn) == 0) 807 return true; 808 809 // If landingpad's return type is token type, we don't create DAG nodes 810 // for its exception pointer and selector value. The extraction of exception 811 // pointer or selector value from token type landingpads is not currently 812 // supported. 813 if (LP.getType()->isTokenTy()) 814 return true; 815 816 // Add a label to mark the beginning of the landing pad. Deletion of the 817 // landing pad can thus be detected via the MachineModuleInfo. 818 MIRBuilder.buildInstr(TargetOpcode::EH_LABEL) 819 .addSym(MF->addLandingPad(&MBB)); 820 821 SmallVector<LLT, 2> Tys; 822 for (Type *Ty : cast<StructType>(LP.getType())->elements()) 823 Tys.push_back(LLT{*Ty, *DL}); 824 assert(Tys.size() == 2 && "Only two-valued landingpads are supported"); 825 826 // Mark exception register as live in. 827 SmallVector<unsigned, 2> Regs; 828 SmallVector<uint64_t, 2> Offsets; 829 if (unsigned Reg = TLI.getExceptionPointerRegister(PersonalityFn)) { 830 MBB.addLiveIn(Reg); 831 unsigned VReg = MRI->createGenericVirtualRegister(Tys[0]); 832 MIRBuilder.buildCopy(VReg, Reg); 833 Regs.push_back(VReg); 834 Offsets.push_back(0); 835 } 836 837 if (unsigned Reg = TLI.getExceptionSelectorRegister(PersonalityFn)) { 838 MBB.addLiveIn(Reg); 839 840 // N.b. the exception selector register always has pointer type and may not 841 // match the actual IR-level type in the landingpad so an extra cast is 842 // needed. 843 unsigned PtrVReg = MRI->createGenericVirtualRegister(Tys[0]); 844 MIRBuilder.buildCopy(PtrVReg, Reg); 845 846 unsigned VReg = MRI->createGenericVirtualRegister(Tys[1]); 847 MIRBuilder.buildInstr(TargetOpcode::G_PTRTOINT) 848 .addDef(VReg) 849 .addUse(PtrVReg); 850 Regs.push_back(VReg); 851 Offsets.push_back(Tys[0].getSizeInBits()); 852 } 853 854 MIRBuilder.buildSequence(getOrCreateVReg(LP), Regs, Offsets); 855 return true; 856 } 857 858 bool IRTranslator::translateAlloca(const User &U, 859 MachineIRBuilder &MIRBuilder) { 860 auto &AI = cast<AllocaInst>(U); 861 862 if (AI.isStaticAlloca()) { 863 unsigned Res = getOrCreateVReg(AI); 864 int FI = getOrCreateFrameIndex(AI); 865 MIRBuilder.buildFrameIndex(Res, FI); 866 return true; 867 } 868 869 // Now we're in the harder dynamic case. 870 Type *Ty = AI.getAllocatedType(); 871 unsigned Align = 872 std::max((unsigned)DL->getPrefTypeAlignment(Ty), AI.getAlignment()); 873 874 unsigned NumElts = getOrCreateVReg(*AI.getArraySize()); 875 876 LLT IntPtrTy = LLT::scalar(DL->getPointerSizeInBits()); 877 if (MRI->getType(NumElts) != IntPtrTy) { 878 unsigned ExtElts = MRI->createGenericVirtualRegister(IntPtrTy); 879 MIRBuilder.buildZExtOrTrunc(ExtElts, NumElts); 880 NumElts = ExtElts; 881 } 882 883 unsigned AllocSize = MRI->createGenericVirtualRegister(IntPtrTy); 884 unsigned TySize = MRI->createGenericVirtualRegister(IntPtrTy); 885 MIRBuilder.buildConstant(TySize, -DL->getTypeAllocSize(Ty)); 886 MIRBuilder.buildMul(AllocSize, NumElts, TySize); 887 888 LLT PtrTy = LLT{*AI.getType(), *DL}; 889 auto &TLI = *MF->getSubtarget().getTargetLowering(); 890 unsigned SPReg = TLI.getStackPointerRegisterToSaveRestore(); 891 892 unsigned SPTmp = MRI->createGenericVirtualRegister(PtrTy); 893 MIRBuilder.buildCopy(SPTmp, SPReg); 894 895 unsigned AllocTmp = MRI->createGenericVirtualRegister(PtrTy); 896 MIRBuilder.buildGEP(AllocTmp, SPTmp, AllocSize); 897 898 // Handle alignment. We have to realign if the allocation granule was smaller 899 // than stack alignment, or the specific alloca requires more than stack 900 // alignment. 901 unsigned StackAlign = 902 MF->getSubtarget().getFrameLowering()->getStackAlignment(); 903 Align = std::max(Align, StackAlign); 904 if (Align > StackAlign || DL->getTypeAllocSize(Ty) % StackAlign != 0) { 905 // Round the size of the allocation up to the stack alignment size 906 // by add SA-1 to the size. This doesn't overflow because we're computing 907 // an address inside an alloca. 908 unsigned AlignedAlloc = MRI->createGenericVirtualRegister(PtrTy); 909 MIRBuilder.buildPtrMask(AlignedAlloc, AllocTmp, Log2_32(Align)); 910 AllocTmp = AlignedAlloc; 911 } 912 913 MIRBuilder.buildCopy(SPReg, AllocTmp); 914 MIRBuilder.buildCopy(getOrCreateVReg(AI), AllocTmp); 915 916 MF->getFrameInfo().CreateVariableSizedObject(Align ? Align : 1, &AI); 917 assert(MF->getFrameInfo().hasVarSizedObjects()); 918 return true; 919 } 920 921 bool IRTranslator::translateVAArg(const User &U, MachineIRBuilder &MIRBuilder) { 922 // FIXME: We may need more info about the type. Because of how LLT works, 923 // we're completely discarding the i64/double distinction here (amongst 924 // others). Fortunately the ABIs I know of where that matters don't use va_arg 925 // anyway but that's not guaranteed. 926 MIRBuilder.buildInstr(TargetOpcode::G_VAARG) 927 .addDef(getOrCreateVReg(U)) 928 .addUse(getOrCreateVReg(*U.getOperand(0))) 929 .addImm(DL->getABITypeAlignment(U.getType())); 930 return true; 931 } 932 933 bool IRTranslator::translatePHI(const User &U, MachineIRBuilder &MIRBuilder) { 934 const PHINode &PI = cast<PHINode>(U); 935 auto MIB = MIRBuilder.buildInstr(TargetOpcode::PHI); 936 MIB.addDef(getOrCreateVReg(PI)); 937 938 PendingPHIs.emplace_back(&PI, MIB.getInstr()); 939 return true; 940 } 941 942 void IRTranslator::finishPendingPhis() { 943 for (std::pair<const PHINode *, MachineInstr *> &Phi : PendingPHIs) { 944 const PHINode *PI = Phi.first; 945 MachineInstrBuilder MIB(*MF, Phi.second); 946 947 // All MachineBasicBlocks exist, add them to the PHI. We assume IRTranslator 948 // won't create extra control flow here, otherwise we need to find the 949 // dominating predecessor here (or perhaps force the weirder IRTranslators 950 // to provide a simple boundary). 951 SmallSet<const BasicBlock *, 4> HandledPreds; 952 953 for (unsigned i = 0; i < PI->getNumIncomingValues(); ++i) { 954 auto IRPred = PI->getIncomingBlock(i); 955 if (HandledPreds.count(IRPred)) 956 continue; 957 958 HandledPreds.insert(IRPred); 959 unsigned ValReg = getOrCreateVReg(*PI->getIncomingValue(i)); 960 for (auto Pred : getMachinePredBBs({IRPred, PI->getParent()})) { 961 assert(Pred->isSuccessor(MIB->getParent()) && 962 "incorrect CFG at MachineBasicBlock level"); 963 MIB.addUse(ValReg); 964 MIB.addMBB(Pred); 965 } 966 } 967 } 968 } 969 970 bool IRTranslator::translate(const Instruction &Inst) { 971 CurBuilder.setDebugLoc(Inst.getDebugLoc()); 972 switch(Inst.getOpcode()) { 973 #define HANDLE_INST(NUM, OPCODE, CLASS) \ 974 case Instruction::OPCODE: return translate##OPCODE(Inst, CurBuilder); 975 #include "llvm/IR/Instruction.def" 976 default: 977 if (!TPC->isGlobalISelAbortEnabled()) 978 return false; 979 llvm_unreachable("unknown opcode"); 980 } 981 } 982 983 bool IRTranslator::translate(const Constant &C, unsigned Reg) { 984 if (auto CI = dyn_cast<ConstantInt>(&C)) 985 EntryBuilder.buildConstant(Reg, *CI); 986 else if (auto CF = dyn_cast<ConstantFP>(&C)) 987 EntryBuilder.buildFConstant(Reg, *CF); 988 else if (isa<UndefValue>(C)) 989 EntryBuilder.buildInstr(TargetOpcode::IMPLICIT_DEF).addDef(Reg); 990 else if (isa<ConstantPointerNull>(C)) 991 EntryBuilder.buildConstant(Reg, 0); 992 else if (auto GV = dyn_cast<GlobalValue>(&C)) 993 EntryBuilder.buildGlobalValue(Reg, GV); 994 else if (auto CE = dyn_cast<ConstantExpr>(&C)) { 995 switch(CE->getOpcode()) { 996 #define HANDLE_INST(NUM, OPCODE, CLASS) \ 997 case Instruction::OPCODE: return translate##OPCODE(*CE, EntryBuilder); 998 #include "llvm/IR/Instruction.def" 999 default: 1000 if (!TPC->isGlobalISelAbortEnabled()) 1001 return false; 1002 llvm_unreachable("unknown opcode"); 1003 } 1004 } else if (!TPC->isGlobalISelAbortEnabled()) 1005 return false; 1006 else 1007 llvm_unreachable("unhandled constant kind"); 1008 1009 return true; 1010 } 1011 1012 void IRTranslator::finalizeFunction() { 1013 // Release the memory used by the different maps we 1014 // needed during the translation. 1015 PendingPHIs.clear(); 1016 ValToVReg.clear(); 1017 FrameIndices.clear(); 1018 Constants.clear(); 1019 MachinePreds.clear(); 1020 } 1021 1022 bool IRTranslator::runOnMachineFunction(MachineFunction &CurMF) { 1023 MF = &CurMF; 1024 const Function &F = *MF->getFunction(); 1025 if (F.empty()) 1026 return false; 1027 CLI = MF->getSubtarget().getCallLowering(); 1028 CurBuilder.setMF(*MF); 1029 EntryBuilder.setMF(*MF); 1030 MRI = &MF->getRegInfo(); 1031 DL = &F.getParent()->getDataLayout(); 1032 TPC = &getAnalysis<TargetPassConfig>(); 1033 ORE = make_unique<OptimizationRemarkEmitter>(&F); 1034 1035 assert(PendingPHIs.empty() && "stale PHIs"); 1036 1037 // Release the per-function state when we return, whether we succeeded or not. 1038 auto FinalizeOnReturn = make_scope_exit([this]() { finalizeFunction(); }); 1039 1040 // Setup a separate basic-block for the arguments and constants, falling 1041 // through to the IR-level Function's entry block. 1042 MachineBasicBlock *EntryBB = MF->CreateMachineBasicBlock(); 1043 MF->push_back(EntryBB); 1044 EntryBB->addSuccessor(&getOrCreateBB(F.front())); 1045 EntryBuilder.setMBB(*EntryBB); 1046 1047 // Lower the actual args into this basic block. 1048 SmallVector<unsigned, 8> VRegArgs; 1049 for (const Argument &Arg: F.args()) 1050 VRegArgs.push_back(getOrCreateVReg(Arg)); 1051 if (!CLI->lowerFormalArguments(EntryBuilder, F, VRegArgs)) { 1052 OptimizationRemarkMissed R("gisel-irtranslator", "GISelFailure", 1053 MF->getFunction()->getSubprogram(), 1054 &MF->getFunction()->getEntryBlock()); 1055 R << "unable to lower arguments: " << ore::NV("Prototype", F.getType()); 1056 reportTranslationError(*MF, *TPC, *ORE, R); 1057 return false; 1058 } 1059 1060 // And translate the function! 1061 for (const BasicBlock &BB: F) { 1062 MachineBasicBlock &MBB = getOrCreateBB(BB); 1063 // Set the insertion point of all the following translations to 1064 // the end of this basic block. 1065 CurBuilder.setMBB(MBB); 1066 1067 for (const Instruction &Inst: BB) { 1068 if (translate(Inst)) 1069 continue; 1070 1071 std::string InstStrStorage; 1072 raw_string_ostream InstStr(InstStrStorage); 1073 InstStr << Inst; 1074 1075 OptimizationRemarkMissed R("gisel-irtranslator", "GISelFailure", 1076 Inst.getDebugLoc(), &BB); 1077 R << "unable to translate instruction: " << ore::NV("Opcode", &Inst) 1078 << ": '" << InstStr.str() << "'"; 1079 reportTranslationError(*MF, *TPC, *ORE, R); 1080 return false; 1081 } 1082 } 1083 1084 finishPendingPhis(); 1085 1086 // Now that the MachineFrameInfo has been configured, no further changes to 1087 // the reserved registers are possible. 1088 MRI->freezeReservedRegs(*MF); 1089 1090 // Merge the argument lowering and constants block with its single 1091 // successor, the LLVM-IR entry block. We want the basic block to 1092 // be maximal. 1093 assert(EntryBB->succ_size() == 1 && 1094 "Custom BB used for lowering should have only one successor"); 1095 // Get the successor of the current entry block. 1096 MachineBasicBlock &NewEntryBB = **EntryBB->succ_begin(); 1097 assert(NewEntryBB.pred_size() == 1 && 1098 "LLVM-IR entry block has a predecessor!?"); 1099 // Move all the instruction from the current entry block to the 1100 // new entry block. 1101 NewEntryBB.splice(NewEntryBB.begin(), EntryBB, EntryBB->begin(), 1102 EntryBB->end()); 1103 1104 // Update the live-in information for the new entry block. 1105 for (const MachineBasicBlock::RegisterMaskPair &LiveIn : EntryBB->liveins()) 1106 NewEntryBB.addLiveIn(LiveIn); 1107 NewEntryBB.sortUniqueLiveIns(); 1108 1109 // Get rid of the now empty basic block. 1110 EntryBB->removeSuccessor(&NewEntryBB); 1111 MF->remove(EntryBB); 1112 MF->DeleteMachineBasicBlock(EntryBB); 1113 1114 assert(&MF->front() == &NewEntryBB && 1115 "New entry wasn't next in the list of basic block!"); 1116 1117 return false; 1118 } 1119