1 //===- InstCombineLoadStoreAlloca.cpp -------------------------------------===// 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 implements the visit functions for load, store and alloca. 11 // 12 //===----------------------------------------------------------------------===// 13 14 #include "InstCombineInternal.h" 15 #include "llvm/ADT/SmallString.h" 16 #include "llvm/ADT/Statistic.h" 17 #include "llvm/Analysis/Loads.h" 18 #include "llvm/IR/DataLayout.h" 19 #include "llvm/IR/LLVMContext.h" 20 #include "llvm/IR/IntrinsicInst.h" 21 #include "llvm/IR/MDBuilder.h" 22 #include "llvm/Transforms/Utils/BasicBlockUtils.h" 23 #include "llvm/Transforms/Utils/Local.h" 24 using namespace llvm; 25 26 #define DEBUG_TYPE "instcombine" 27 28 STATISTIC(NumDeadStore, "Number of dead stores eliminated"); 29 STATISTIC(NumGlobalCopies, "Number of allocas copied from constant global"); 30 31 /// pointsToConstantGlobal - Return true if V (possibly indirectly) points to 32 /// some part of a constant global variable. This intentionally only accepts 33 /// constant expressions because we can't rewrite arbitrary instructions. 34 static bool pointsToConstantGlobal(Value *V) { 35 if (GlobalVariable *GV = dyn_cast<GlobalVariable>(V)) 36 return GV->isConstant(); 37 38 if (ConstantExpr *CE = dyn_cast<ConstantExpr>(V)) { 39 if (CE->getOpcode() == Instruction::BitCast || 40 CE->getOpcode() == Instruction::AddrSpaceCast || 41 CE->getOpcode() == Instruction::GetElementPtr) 42 return pointsToConstantGlobal(CE->getOperand(0)); 43 } 44 return false; 45 } 46 47 /// isOnlyCopiedFromConstantGlobal - Recursively walk the uses of a (derived) 48 /// pointer to an alloca. Ignore any reads of the pointer, return false if we 49 /// see any stores or other unknown uses. If we see pointer arithmetic, keep 50 /// track of whether it moves the pointer (with IsOffset) but otherwise traverse 51 /// the uses. If we see a memcpy/memmove that targets an unoffseted pointer to 52 /// the alloca, and if the source pointer is a pointer to a constant global, we 53 /// can optimize this. 54 static bool 55 isOnlyCopiedFromConstantGlobal(Value *V, MemTransferInst *&TheCopy, 56 SmallVectorImpl<Instruction *> &ToDelete) { 57 // We track lifetime intrinsics as we encounter them. If we decide to go 58 // ahead and replace the value with the global, this lets the caller quickly 59 // eliminate the markers. 60 61 SmallVector<std::pair<Value *, bool>, 35> ValuesToInspect; 62 ValuesToInspect.push_back(std::make_pair(V, false)); 63 while (!ValuesToInspect.empty()) { 64 auto ValuePair = ValuesToInspect.pop_back_val(); 65 const bool IsOffset = ValuePair.second; 66 for (auto &U : ValuePair.first->uses()) { 67 Instruction *I = cast<Instruction>(U.getUser()); 68 69 if (LoadInst *LI = dyn_cast<LoadInst>(I)) { 70 // Ignore non-volatile loads, they are always ok. 71 if (!LI->isSimple()) return false; 72 continue; 73 } 74 75 if (isa<BitCastInst>(I) || isa<AddrSpaceCastInst>(I)) { 76 // If uses of the bitcast are ok, we are ok. 77 ValuesToInspect.push_back(std::make_pair(I, IsOffset)); 78 continue; 79 } 80 if (GetElementPtrInst *GEP = dyn_cast<GetElementPtrInst>(I)) { 81 // If the GEP has all zero indices, it doesn't offset the pointer. If it 82 // doesn't, it does. 83 ValuesToInspect.push_back( 84 std::make_pair(I, IsOffset || !GEP->hasAllZeroIndices())); 85 continue; 86 } 87 88 if (auto CS = CallSite(I)) { 89 // If this is the function being called then we treat it like a load and 90 // ignore it. 91 if (CS.isCallee(&U)) 92 continue; 93 94 unsigned DataOpNo = CS.getDataOperandNo(&U); 95 bool IsArgOperand = CS.isArgOperand(&U); 96 97 // Inalloca arguments are clobbered by the call. 98 if (IsArgOperand && CS.isInAllocaArgument(DataOpNo)) 99 return false; 100 101 // If this is a readonly/readnone call site, then we know it is just a 102 // load (but one that potentially returns the value itself), so we can 103 // ignore it if we know that the value isn't captured. 104 if (CS.onlyReadsMemory() && 105 (CS.getInstruction()->use_empty() || CS.doesNotCapture(DataOpNo))) 106 continue; 107 108 // If this is being passed as a byval argument, the caller is making a 109 // copy, so it is only a read of the alloca. 110 if (IsArgOperand && CS.isByValArgument(DataOpNo)) 111 continue; 112 } 113 114 // Lifetime intrinsics can be handled by the caller. 115 if (IntrinsicInst *II = dyn_cast<IntrinsicInst>(I)) { 116 if (II->getIntrinsicID() == Intrinsic::lifetime_start || 117 II->getIntrinsicID() == Intrinsic::lifetime_end) { 118 assert(II->use_empty() && "Lifetime markers have no result to use!"); 119 ToDelete.push_back(II); 120 continue; 121 } 122 } 123 124 // If this is isn't our memcpy/memmove, reject it as something we can't 125 // handle. 126 MemTransferInst *MI = dyn_cast<MemTransferInst>(I); 127 if (!MI) 128 return false; 129 130 // If the transfer is using the alloca as a source of the transfer, then 131 // ignore it since it is a load (unless the transfer is volatile). 132 if (U.getOperandNo() == 1) { 133 if (MI->isVolatile()) return false; 134 continue; 135 } 136 137 // If we already have seen a copy, reject the second one. 138 if (TheCopy) return false; 139 140 // If the pointer has been offset from the start of the alloca, we can't 141 // safely handle this. 142 if (IsOffset) return false; 143 144 // If the memintrinsic isn't using the alloca as the dest, reject it. 145 if (U.getOperandNo() != 0) return false; 146 147 // If the source of the memcpy/move is not a constant global, reject it. 148 if (!pointsToConstantGlobal(MI->getSource())) 149 return false; 150 151 // Otherwise, the transform is safe. Remember the copy instruction. 152 TheCopy = MI; 153 } 154 } 155 return true; 156 } 157 158 /// isOnlyCopiedFromConstantGlobal - Return true if the specified alloca is only 159 /// modified by a copy from a constant global. If we can prove this, we can 160 /// replace any uses of the alloca with uses of the global directly. 161 static MemTransferInst * 162 isOnlyCopiedFromConstantGlobal(AllocaInst *AI, 163 SmallVectorImpl<Instruction *> &ToDelete) { 164 MemTransferInst *TheCopy = nullptr; 165 if (isOnlyCopiedFromConstantGlobal(AI, TheCopy, ToDelete)) 166 return TheCopy; 167 return nullptr; 168 } 169 170 static Instruction *simplifyAllocaArraySize(InstCombiner &IC, AllocaInst &AI) { 171 // Check for array size of 1 (scalar allocation). 172 if (!AI.isArrayAllocation()) { 173 // i32 1 is the canonical array size for scalar allocations. 174 if (AI.getArraySize()->getType()->isIntegerTy(32)) 175 return nullptr; 176 177 // Canonicalize it. 178 Value *V = IC.Builder->getInt32(1); 179 AI.setOperand(0, V); 180 return &AI; 181 } 182 183 // Convert: alloca Ty, C - where C is a constant != 1 into: alloca [C x Ty], 1 184 if (const ConstantInt *C = dyn_cast<ConstantInt>(AI.getArraySize())) { 185 Type *NewTy = ArrayType::get(AI.getAllocatedType(), C->getZExtValue()); 186 AllocaInst *New = IC.Builder->CreateAlloca(NewTy, nullptr, AI.getName()); 187 New->setAlignment(AI.getAlignment()); 188 189 // Scan to the end of the allocation instructions, to skip over a block of 190 // allocas if possible...also skip interleaved debug info 191 // 192 BasicBlock::iterator It(New); 193 while (isa<AllocaInst>(*It) || isa<DbgInfoIntrinsic>(*It)) 194 ++It; 195 196 // Now that I is pointing to the first non-allocation-inst in the block, 197 // insert our getelementptr instruction... 198 // 199 Type *IdxTy = IC.getDataLayout().getIntPtrType(AI.getType()); 200 Value *NullIdx = Constant::getNullValue(IdxTy); 201 Value *Idx[2] = {NullIdx, NullIdx}; 202 Instruction *GEP = 203 GetElementPtrInst::CreateInBounds(New, Idx, New->getName() + ".sub"); 204 IC.InsertNewInstBefore(GEP, *It); 205 206 // Now make everything use the getelementptr instead of the original 207 // allocation. 208 return IC.ReplaceInstUsesWith(AI, GEP); 209 } 210 211 if (isa<UndefValue>(AI.getArraySize())) 212 return IC.ReplaceInstUsesWith(AI, Constant::getNullValue(AI.getType())); 213 214 // Ensure that the alloca array size argument has type intptr_t, so that 215 // any casting is exposed early. 216 Type *IntPtrTy = IC.getDataLayout().getIntPtrType(AI.getType()); 217 if (AI.getArraySize()->getType() != IntPtrTy) { 218 Value *V = IC.Builder->CreateIntCast(AI.getArraySize(), IntPtrTy, false); 219 AI.setOperand(0, V); 220 return &AI; 221 } 222 223 return nullptr; 224 } 225 226 Instruction *InstCombiner::visitAllocaInst(AllocaInst &AI) { 227 if (auto *I = simplifyAllocaArraySize(*this, AI)) 228 return I; 229 230 if (AI.getAllocatedType()->isSized()) { 231 // If the alignment is 0 (unspecified), assign it the preferred alignment. 232 if (AI.getAlignment() == 0) 233 AI.setAlignment(DL.getPrefTypeAlignment(AI.getAllocatedType())); 234 235 // Move all alloca's of zero byte objects to the entry block and merge them 236 // together. Note that we only do this for alloca's, because malloc should 237 // allocate and return a unique pointer, even for a zero byte allocation. 238 if (DL.getTypeAllocSize(AI.getAllocatedType()) == 0) { 239 // For a zero sized alloca there is no point in doing an array allocation. 240 // This is helpful if the array size is a complicated expression not used 241 // elsewhere. 242 if (AI.isArrayAllocation()) { 243 AI.setOperand(0, ConstantInt::get(AI.getArraySize()->getType(), 1)); 244 return &AI; 245 } 246 247 // Get the first instruction in the entry block. 248 BasicBlock &EntryBlock = AI.getParent()->getParent()->getEntryBlock(); 249 Instruction *FirstInst = EntryBlock.getFirstNonPHIOrDbg(); 250 if (FirstInst != &AI) { 251 // If the entry block doesn't start with a zero-size alloca then move 252 // this one to the start of the entry block. There is no problem with 253 // dominance as the array size was forced to a constant earlier already. 254 AllocaInst *EntryAI = dyn_cast<AllocaInst>(FirstInst); 255 if (!EntryAI || !EntryAI->getAllocatedType()->isSized() || 256 DL.getTypeAllocSize(EntryAI->getAllocatedType()) != 0) { 257 AI.moveBefore(FirstInst); 258 return &AI; 259 } 260 261 // If the alignment of the entry block alloca is 0 (unspecified), 262 // assign it the preferred alignment. 263 if (EntryAI->getAlignment() == 0) 264 EntryAI->setAlignment( 265 DL.getPrefTypeAlignment(EntryAI->getAllocatedType())); 266 // Replace this zero-sized alloca with the one at the start of the entry 267 // block after ensuring that the address will be aligned enough for both 268 // types. 269 unsigned MaxAlign = std::max(EntryAI->getAlignment(), 270 AI.getAlignment()); 271 EntryAI->setAlignment(MaxAlign); 272 if (AI.getType() != EntryAI->getType()) 273 return new BitCastInst(EntryAI, AI.getType()); 274 return ReplaceInstUsesWith(AI, EntryAI); 275 } 276 } 277 } 278 279 if (AI.getAlignment()) { 280 // Check to see if this allocation is only modified by a memcpy/memmove from 281 // a constant global whose alignment is equal to or exceeds that of the 282 // allocation. If this is the case, we can change all users to use 283 // the constant global instead. This is commonly produced by the CFE by 284 // constructs like "void foo() { int A[] = {1,2,3,4,5,6,7,8,9...}; }" if 'A' 285 // is only subsequently read. 286 SmallVector<Instruction *, 4> ToDelete; 287 if (MemTransferInst *Copy = isOnlyCopiedFromConstantGlobal(&AI, ToDelete)) { 288 unsigned SourceAlign = getOrEnforceKnownAlignment( 289 Copy->getSource(), AI.getAlignment(), DL, &AI, AC, DT); 290 if (AI.getAlignment() <= SourceAlign) { 291 DEBUG(dbgs() << "Found alloca equal to global: " << AI << '\n'); 292 DEBUG(dbgs() << " memcpy = " << *Copy << '\n'); 293 for (unsigned i = 0, e = ToDelete.size(); i != e; ++i) 294 EraseInstFromFunction(*ToDelete[i]); 295 Constant *TheSrc = cast<Constant>(Copy->getSource()); 296 Constant *Cast 297 = ConstantExpr::getPointerBitCastOrAddrSpaceCast(TheSrc, AI.getType()); 298 Instruction *NewI = ReplaceInstUsesWith(AI, Cast); 299 EraseInstFromFunction(*Copy); 300 ++NumGlobalCopies; 301 return NewI; 302 } 303 } 304 } 305 306 // At last, use the generic allocation site handler to aggressively remove 307 // unused allocas. 308 return visitAllocSite(AI); 309 } 310 311 /// \brief Helper to combine a load to a new type. 312 /// 313 /// This just does the work of combining a load to a new type. It handles 314 /// metadata, etc., and returns the new instruction. The \c NewTy should be the 315 /// loaded *value* type. This will convert it to a pointer, cast the operand to 316 /// that pointer type, load it, etc. 317 /// 318 /// Note that this will create all of the instructions with whatever insert 319 /// point the \c InstCombiner currently is using. 320 static LoadInst *combineLoadToNewType(InstCombiner &IC, LoadInst &LI, Type *NewTy, 321 const Twine &Suffix = "") { 322 Value *Ptr = LI.getPointerOperand(); 323 unsigned AS = LI.getPointerAddressSpace(); 324 SmallVector<std::pair<unsigned, MDNode *>, 8> MD; 325 LI.getAllMetadata(MD); 326 327 LoadInst *NewLoad = IC.Builder->CreateAlignedLoad( 328 IC.Builder->CreateBitCast(Ptr, NewTy->getPointerTo(AS)), 329 LI.getAlignment(), LI.getName() + Suffix); 330 MDBuilder MDB(NewLoad->getContext()); 331 for (const auto &MDPair : MD) { 332 unsigned ID = MDPair.first; 333 MDNode *N = MDPair.second; 334 // Note, essentially every kind of metadata should be preserved here! This 335 // routine is supposed to clone a load instruction changing *only its type*. 336 // The only metadata it makes sense to drop is metadata which is invalidated 337 // when the pointer type changes. This should essentially never be the case 338 // in LLVM, but we explicitly switch over only known metadata to be 339 // conservatively correct. If you are adding metadata to LLVM which pertains 340 // to loads, you almost certainly want to add it here. 341 switch (ID) { 342 case LLVMContext::MD_dbg: 343 case LLVMContext::MD_tbaa: 344 case LLVMContext::MD_prof: 345 case LLVMContext::MD_fpmath: 346 case LLVMContext::MD_tbaa_struct: 347 case LLVMContext::MD_invariant_load: 348 case LLVMContext::MD_alias_scope: 349 case LLVMContext::MD_noalias: 350 case LLVMContext::MD_nontemporal: 351 case LLVMContext::MD_mem_parallel_loop_access: 352 // All of these directly apply. 353 NewLoad->setMetadata(ID, N); 354 break; 355 356 case LLVMContext::MD_nonnull: 357 // This only directly applies if the new type is also a pointer. 358 if (NewTy->isPointerTy()) { 359 NewLoad->setMetadata(ID, N); 360 break; 361 } 362 // If it's integral now, translate it to !range metadata. 363 if (NewTy->isIntegerTy()) { 364 auto *ITy = cast<IntegerType>(NewTy); 365 auto *NullInt = ConstantExpr::getPtrToInt( 366 ConstantPointerNull::get(cast<PointerType>(Ptr->getType())), ITy); 367 auto *NonNullInt = 368 ConstantExpr::getAdd(NullInt, ConstantInt::get(ITy, 1)); 369 NewLoad->setMetadata(LLVMContext::MD_range, 370 MDB.createRange(NonNullInt, NullInt)); 371 } 372 break; 373 case LLVMContext::MD_align: 374 case LLVMContext::MD_dereferenceable: 375 case LLVMContext::MD_dereferenceable_or_null: 376 // These only directly apply if the new type is also a pointer. 377 if (NewTy->isPointerTy()) 378 NewLoad->setMetadata(ID, N); 379 break; 380 case LLVMContext::MD_range: 381 // FIXME: It would be nice to propagate this in some way, but the type 382 // conversions make it hard. If the new type is a pointer, we could 383 // translate it to !nonnull metadata. 384 break; 385 } 386 } 387 return NewLoad; 388 } 389 390 /// \brief Combine a store to a new type. 391 /// 392 /// Returns the newly created store instruction. 393 static StoreInst *combineStoreToNewValue(InstCombiner &IC, StoreInst &SI, Value *V) { 394 Value *Ptr = SI.getPointerOperand(); 395 unsigned AS = SI.getPointerAddressSpace(); 396 SmallVector<std::pair<unsigned, MDNode *>, 8> MD; 397 SI.getAllMetadata(MD); 398 399 StoreInst *NewStore = IC.Builder->CreateAlignedStore( 400 V, IC.Builder->CreateBitCast(Ptr, V->getType()->getPointerTo(AS)), 401 SI.getAlignment()); 402 for (const auto &MDPair : MD) { 403 unsigned ID = MDPair.first; 404 MDNode *N = MDPair.second; 405 // Note, essentially every kind of metadata should be preserved here! This 406 // routine is supposed to clone a store instruction changing *only its 407 // type*. The only metadata it makes sense to drop is metadata which is 408 // invalidated when the pointer type changes. This should essentially 409 // never be the case in LLVM, but we explicitly switch over only known 410 // metadata to be conservatively correct. If you are adding metadata to 411 // LLVM which pertains to stores, you almost certainly want to add it 412 // here. 413 switch (ID) { 414 case LLVMContext::MD_dbg: 415 case LLVMContext::MD_tbaa: 416 case LLVMContext::MD_prof: 417 case LLVMContext::MD_fpmath: 418 case LLVMContext::MD_tbaa_struct: 419 case LLVMContext::MD_alias_scope: 420 case LLVMContext::MD_noalias: 421 case LLVMContext::MD_nontemporal: 422 case LLVMContext::MD_mem_parallel_loop_access: 423 // All of these directly apply. 424 NewStore->setMetadata(ID, N); 425 break; 426 427 case LLVMContext::MD_invariant_load: 428 case LLVMContext::MD_nonnull: 429 case LLVMContext::MD_range: 430 case LLVMContext::MD_align: 431 case LLVMContext::MD_dereferenceable: 432 case LLVMContext::MD_dereferenceable_or_null: 433 // These don't apply for stores. 434 break; 435 } 436 } 437 438 return NewStore; 439 } 440 441 /// \brief Combine loads to match the type of value their uses after looking 442 /// through intervening bitcasts. 443 /// 444 /// The core idea here is that if the result of a load is used in an operation, 445 /// we should load the type most conducive to that operation. For example, when 446 /// loading an integer and converting that immediately to a pointer, we should 447 /// instead directly load a pointer. 448 /// 449 /// However, this routine must never change the width of a load or the number of 450 /// loads as that would introduce a semantic change. This combine is expected to 451 /// be a semantic no-op which just allows loads to more closely model the types 452 /// of their consuming operations. 453 /// 454 /// Currently, we also refuse to change the precise type used for an atomic load 455 /// or a volatile load. This is debatable, and might be reasonable to change 456 /// later. However, it is risky in case some backend or other part of LLVM is 457 /// relying on the exact type loaded to select appropriate atomic operations. 458 static Instruction *combineLoadToOperationType(InstCombiner &IC, LoadInst &LI) { 459 // FIXME: We could probably with some care handle both volatile and atomic 460 // loads here but it isn't clear that this is important. 461 if (!LI.isSimple()) 462 return nullptr; 463 464 if (LI.use_empty()) 465 return nullptr; 466 467 Type *Ty = LI.getType(); 468 const DataLayout &DL = IC.getDataLayout(); 469 470 // Try to canonicalize loads which are only ever stored to operate over 471 // integers instead of any other type. We only do this when the loaded type 472 // is sized and has a size exactly the same as its store size and the store 473 // size is a legal integer type. 474 if (!Ty->isIntegerTy() && Ty->isSized() && 475 DL.isLegalInteger(DL.getTypeStoreSizeInBits(Ty)) && 476 DL.getTypeStoreSizeInBits(Ty) == DL.getTypeSizeInBits(Ty)) { 477 if (std::all_of(LI.user_begin(), LI.user_end(), [&LI](User *U) { 478 auto *SI = dyn_cast<StoreInst>(U); 479 return SI && SI->getPointerOperand() != &LI; 480 })) { 481 LoadInst *NewLoad = combineLoadToNewType( 482 IC, LI, 483 Type::getIntNTy(LI.getContext(), DL.getTypeStoreSizeInBits(Ty))); 484 // Replace all the stores with stores of the newly loaded value. 485 for (auto UI = LI.user_begin(), UE = LI.user_end(); UI != UE;) { 486 auto *SI = cast<StoreInst>(*UI++); 487 IC.Builder->SetInsertPoint(SI); 488 combineStoreToNewValue(IC, *SI, NewLoad); 489 IC.EraseInstFromFunction(*SI); 490 } 491 assert(LI.use_empty() && "Failed to remove all users of the load!"); 492 // Return the old load so the combiner can delete it safely. 493 return &LI; 494 } 495 } 496 497 // Fold away bit casts of the loaded value by loading the desired type. 498 // We can do this for BitCastInsts as well as casts from and to pointer types, 499 // as long as those are noops (i.e., the source or dest type have the same 500 // bitwidth as the target's pointers). 501 if (LI.hasOneUse()) 502 if (auto* CI = dyn_cast<CastInst>(LI.user_back())) { 503 if (CI->isNoopCast(DL)) { 504 LoadInst *NewLoad = combineLoadToNewType(IC, LI, CI->getDestTy()); 505 CI->replaceAllUsesWith(NewLoad); 506 IC.EraseInstFromFunction(*CI); 507 return &LI; 508 } 509 } 510 511 // FIXME: We should also canonicalize loads of vectors when their elements are 512 // cast to other types. 513 return nullptr; 514 } 515 516 static Instruction *unpackLoadToAggregate(InstCombiner &IC, LoadInst &LI) { 517 // FIXME: We could probably with some care handle both volatile and atomic 518 // stores here but it isn't clear that this is important. 519 if (!LI.isSimple()) 520 return nullptr; 521 522 Type *T = LI.getType(); 523 if (!T->isAggregateType()) 524 return nullptr; 525 526 assert(LI.getAlignment() && "Alignment must be set at this point"); 527 528 if (auto *ST = dyn_cast<StructType>(T)) { 529 // If the struct only have one element, we unpack. 530 unsigned Count = ST->getNumElements(); 531 if (Count == 1) { 532 LoadInst *NewLoad = combineLoadToNewType(IC, LI, ST->getTypeAtIndex(0U), 533 ".unpack"); 534 return IC.ReplaceInstUsesWith(LI, IC.Builder->CreateInsertValue( 535 UndefValue::get(T), NewLoad, 0, LI.getName())); 536 } 537 538 // We don't want to break loads with padding here as we'd loose 539 // the knowledge that padding exists for the rest of the pipeline. 540 const DataLayout &DL = IC.getDataLayout(); 541 auto *SL = DL.getStructLayout(ST); 542 if (SL->hasPadding()) 543 return nullptr; 544 545 auto Name = LI.getName(); 546 SmallString<16> LoadName = Name; 547 LoadName += ".unpack"; 548 SmallString<16> EltName = Name; 549 EltName += ".elt"; 550 auto *Addr = LI.getPointerOperand(); 551 Value *V = UndefValue::get(T); 552 auto *IdxType = Type::getInt32Ty(ST->getContext()); 553 auto *Zero = ConstantInt::get(IdxType, 0); 554 for (unsigned i = 0; i < Count; i++) { 555 Value *Indices[2] = { 556 Zero, 557 ConstantInt::get(IdxType, i), 558 }; 559 auto *Ptr = IC.Builder->CreateInBoundsGEP(ST, Addr, makeArrayRef(Indices), EltName); 560 auto *L = IC.Builder->CreateAlignedLoad(Ptr, LI.getAlignment(), 561 LoadName); 562 V = IC.Builder->CreateInsertValue(V, L, i); 563 } 564 565 V->setName(Name); 566 return IC.ReplaceInstUsesWith(LI, V); 567 } 568 569 if (auto *AT = dyn_cast<ArrayType>(T)) { 570 // If the array only have one element, we unpack. 571 if (AT->getNumElements() == 1) { 572 LoadInst *NewLoad = combineLoadToNewType(IC, LI, AT->getElementType(), 573 ".unpack"); 574 return IC.ReplaceInstUsesWith(LI, IC.Builder->CreateInsertValue( 575 UndefValue::get(T), NewLoad, 0, LI.getName())); 576 } 577 } 578 579 return nullptr; 580 } 581 582 // If we can determine that all possible objects pointed to by the provided 583 // pointer value are, not only dereferenceable, but also definitively less than 584 // or equal to the provided maximum size, then return true. Otherwise, return 585 // false (constant global values and allocas fall into this category). 586 // 587 // FIXME: This should probably live in ValueTracking (or similar). 588 static bool isObjectSizeLessThanOrEq(Value *V, uint64_t MaxSize, 589 const DataLayout &DL) { 590 SmallPtrSet<Value *, 4> Visited; 591 SmallVector<Value *, 4> Worklist(1, V); 592 593 do { 594 Value *P = Worklist.pop_back_val(); 595 P = P->stripPointerCasts(); 596 597 if (!Visited.insert(P).second) 598 continue; 599 600 if (SelectInst *SI = dyn_cast<SelectInst>(P)) { 601 Worklist.push_back(SI->getTrueValue()); 602 Worklist.push_back(SI->getFalseValue()); 603 continue; 604 } 605 606 if (PHINode *PN = dyn_cast<PHINode>(P)) { 607 for (Value *IncValue : PN->incoming_values()) 608 Worklist.push_back(IncValue); 609 continue; 610 } 611 612 if (GlobalAlias *GA = dyn_cast<GlobalAlias>(P)) { 613 if (GA->mayBeOverridden()) 614 return false; 615 Worklist.push_back(GA->getAliasee()); 616 continue; 617 } 618 619 // If we know how big this object is, and it is less than MaxSize, continue 620 // searching. Otherwise, return false. 621 if (AllocaInst *AI = dyn_cast<AllocaInst>(P)) { 622 if (!AI->getAllocatedType()->isSized()) 623 return false; 624 625 ConstantInt *CS = dyn_cast<ConstantInt>(AI->getArraySize()); 626 if (!CS) 627 return false; 628 629 uint64_t TypeSize = DL.getTypeAllocSize(AI->getAllocatedType()); 630 // Make sure that, even if the multiplication below would wrap as an 631 // uint64_t, we still do the right thing. 632 if ((CS->getValue().zextOrSelf(128)*APInt(128, TypeSize)).ugt(MaxSize)) 633 return false; 634 continue; 635 } 636 637 if (GlobalVariable *GV = dyn_cast<GlobalVariable>(P)) { 638 if (!GV->hasDefinitiveInitializer() || !GV->isConstant()) 639 return false; 640 641 uint64_t InitSize = DL.getTypeAllocSize(GV->getType()->getElementType()); 642 if (InitSize > MaxSize) 643 return false; 644 continue; 645 } 646 647 return false; 648 } while (!Worklist.empty()); 649 650 return true; 651 } 652 653 // If we're indexing into an object of a known size, and the outer index is 654 // not a constant, but having any value but zero would lead to undefined 655 // behavior, replace it with zero. 656 // 657 // For example, if we have: 658 // @f.a = private unnamed_addr constant [1 x i32] [i32 12], align 4 659 // ... 660 // %arrayidx = getelementptr inbounds [1 x i32]* @f.a, i64 0, i64 %x 661 // ... = load i32* %arrayidx, align 4 662 // Then we know that we can replace %x in the GEP with i64 0. 663 // 664 // FIXME: We could fold any GEP index to zero that would cause UB if it were 665 // not zero. Currently, we only handle the first such index. Also, we could 666 // also search through non-zero constant indices if we kept track of the 667 // offsets those indices implied. 668 static bool canReplaceGEPIdxWithZero(InstCombiner &IC, GetElementPtrInst *GEPI, 669 Instruction *MemI, unsigned &Idx) { 670 if (GEPI->getNumOperands() < 2) 671 return false; 672 673 // Find the first non-zero index of a GEP. If all indices are zero, return 674 // one past the last index. 675 auto FirstNZIdx = [](const GetElementPtrInst *GEPI) { 676 unsigned I = 1; 677 for (unsigned IE = GEPI->getNumOperands(); I != IE; ++I) { 678 Value *V = GEPI->getOperand(I); 679 if (const ConstantInt *CI = dyn_cast<ConstantInt>(V)) 680 if (CI->isZero()) 681 continue; 682 683 break; 684 } 685 686 return I; 687 }; 688 689 // Skip through initial 'zero' indices, and find the corresponding pointer 690 // type. See if the next index is not a constant. 691 Idx = FirstNZIdx(GEPI); 692 if (Idx == GEPI->getNumOperands()) 693 return false; 694 if (isa<Constant>(GEPI->getOperand(Idx))) 695 return false; 696 697 SmallVector<Value *, 4> Ops(GEPI->idx_begin(), GEPI->idx_begin() + Idx); 698 Type *AllocTy = GetElementPtrInst::getIndexedType( 699 cast<PointerType>(GEPI->getOperand(0)->getType()->getScalarType()) 700 ->getElementType(), 701 Ops); 702 if (!AllocTy || !AllocTy->isSized()) 703 return false; 704 const DataLayout &DL = IC.getDataLayout(); 705 uint64_t TyAllocSize = DL.getTypeAllocSize(AllocTy); 706 707 // If there are more indices after the one we might replace with a zero, make 708 // sure they're all non-negative. If any of them are negative, the overall 709 // address being computed might be before the base address determined by the 710 // first non-zero index. 711 auto IsAllNonNegative = [&]() { 712 for (unsigned i = Idx+1, e = GEPI->getNumOperands(); i != e; ++i) { 713 bool KnownNonNegative, KnownNegative; 714 IC.ComputeSignBit(GEPI->getOperand(i), KnownNonNegative, 715 KnownNegative, 0, MemI); 716 if (KnownNonNegative) 717 continue; 718 return false; 719 } 720 721 return true; 722 }; 723 724 // FIXME: If the GEP is not inbounds, and there are extra indices after the 725 // one we'll replace, those could cause the address computation to wrap 726 // (rendering the IsAllNonNegative() check below insufficient). We can do 727 // better, ignoring zero indices (and other indices we can prove small 728 // enough not to wrap). 729 if (Idx+1 != GEPI->getNumOperands() && !GEPI->isInBounds()) 730 return false; 731 732 // Note that isObjectSizeLessThanOrEq will return true only if the pointer is 733 // also known to be dereferenceable. 734 return isObjectSizeLessThanOrEq(GEPI->getOperand(0), TyAllocSize, DL) && 735 IsAllNonNegative(); 736 } 737 738 // If we're indexing into an object with a variable index for the memory 739 // access, but the object has only one element, we can assume that the index 740 // will always be zero. If we replace the GEP, return it. 741 template <typename T> 742 static Instruction *replaceGEPIdxWithZero(InstCombiner &IC, Value *Ptr, 743 T &MemI) { 744 if (GetElementPtrInst *GEPI = dyn_cast<GetElementPtrInst>(Ptr)) { 745 unsigned Idx; 746 if (canReplaceGEPIdxWithZero(IC, GEPI, &MemI, Idx)) { 747 Instruction *NewGEPI = GEPI->clone(); 748 NewGEPI->setOperand(Idx, 749 ConstantInt::get(GEPI->getOperand(Idx)->getType(), 0)); 750 NewGEPI->insertBefore(GEPI); 751 MemI.setOperand(MemI.getPointerOperandIndex(), NewGEPI); 752 return NewGEPI; 753 } 754 } 755 756 return nullptr; 757 } 758 759 Instruction *InstCombiner::visitLoadInst(LoadInst &LI) { 760 Value *Op = LI.getOperand(0); 761 762 // Try to canonicalize the loaded type. 763 if (Instruction *Res = combineLoadToOperationType(*this, LI)) 764 return Res; 765 766 // Attempt to improve the alignment. 767 unsigned KnownAlign = getOrEnforceKnownAlignment( 768 Op, DL.getPrefTypeAlignment(LI.getType()), DL, &LI, AC, DT); 769 unsigned LoadAlign = LI.getAlignment(); 770 unsigned EffectiveLoadAlign = 771 LoadAlign != 0 ? LoadAlign : DL.getABITypeAlignment(LI.getType()); 772 773 if (KnownAlign > EffectiveLoadAlign) 774 LI.setAlignment(KnownAlign); 775 else if (LoadAlign == 0) 776 LI.setAlignment(EffectiveLoadAlign); 777 778 // Replace GEP indices if possible. 779 if (Instruction *NewGEPI = replaceGEPIdxWithZero(*this, Op, LI)) { 780 Worklist.Add(NewGEPI); 781 return &LI; 782 } 783 784 // None of the following transforms are legal for volatile/atomic loads. 785 // FIXME: Some of it is okay for atomic loads; needs refactoring. 786 if (!LI.isSimple()) return nullptr; 787 788 if (Instruction *Res = unpackLoadToAggregate(*this, LI)) 789 return Res; 790 791 // Do really simple store-to-load forwarding and load CSE, to catch cases 792 // where there are several consecutive memory accesses to the same location, 793 // separated by a few arithmetic operations. 794 BasicBlock::iterator BBI(LI); 795 AAMDNodes AATags; 796 if (Value *AvailableVal = 797 FindAvailableLoadedValue(Op, LI.getParent(), BBI, 798 DefMaxInstsToScan, AA, &AATags)) { 799 if (LoadInst *NLI = dyn_cast<LoadInst>(AvailableVal)) { 800 unsigned KnownIDs[] = { 801 LLVMContext::MD_tbaa, LLVMContext::MD_alias_scope, 802 LLVMContext::MD_noalias, LLVMContext::MD_range, 803 LLVMContext::MD_invariant_load, LLVMContext::MD_nonnull, 804 LLVMContext::MD_invariant_group, LLVMContext::MD_align, 805 LLVMContext::MD_dereferenceable, 806 LLVMContext::MD_dereferenceable_or_null}; 807 combineMetadata(NLI, &LI, KnownIDs); 808 }; 809 810 return ReplaceInstUsesWith( 811 LI, Builder->CreateBitOrPointerCast(AvailableVal, LI.getType(), 812 LI.getName() + ".cast")); 813 } 814 815 // load(gep null, ...) -> unreachable 816 if (GetElementPtrInst *GEPI = dyn_cast<GetElementPtrInst>(Op)) { 817 const Value *GEPI0 = GEPI->getOperand(0); 818 // TODO: Consider a target hook for valid address spaces for this xform. 819 if (isa<ConstantPointerNull>(GEPI0) && GEPI->getPointerAddressSpace() == 0){ 820 // Insert a new store to null instruction before the load to indicate 821 // that this code is not reachable. We do this instead of inserting 822 // an unreachable instruction directly because we cannot modify the 823 // CFG. 824 new StoreInst(UndefValue::get(LI.getType()), 825 Constant::getNullValue(Op->getType()), &LI); 826 return ReplaceInstUsesWith(LI, UndefValue::get(LI.getType())); 827 } 828 } 829 830 // load null/undef -> unreachable 831 // TODO: Consider a target hook for valid address spaces for this xform. 832 if (isa<UndefValue>(Op) || 833 (isa<ConstantPointerNull>(Op) && LI.getPointerAddressSpace() == 0)) { 834 // Insert a new store to null instruction before the load to indicate that 835 // this code is not reachable. We do this instead of inserting an 836 // unreachable instruction directly because we cannot modify the CFG. 837 new StoreInst(UndefValue::get(LI.getType()), 838 Constant::getNullValue(Op->getType()), &LI); 839 return ReplaceInstUsesWith(LI, UndefValue::get(LI.getType())); 840 } 841 842 if (Op->hasOneUse()) { 843 // Change select and PHI nodes to select values instead of addresses: this 844 // helps alias analysis out a lot, allows many others simplifications, and 845 // exposes redundancy in the code. 846 // 847 // Note that we cannot do the transformation unless we know that the 848 // introduced loads cannot trap! Something like this is valid as long as 849 // the condition is always false: load (select bool %C, int* null, int* %G), 850 // but it would not be valid if we transformed it to load from null 851 // unconditionally. 852 // 853 if (SelectInst *SI = dyn_cast<SelectInst>(Op)) { 854 // load (select (Cond, &V1, &V2)) --> select(Cond, load &V1, load &V2). 855 unsigned Align = LI.getAlignment(); 856 if (isSafeToLoadUnconditionally(SI->getOperand(1), SI, Align) && 857 isSafeToLoadUnconditionally(SI->getOperand(2), SI, Align)) { 858 LoadInst *V1 = Builder->CreateLoad(SI->getOperand(1), 859 SI->getOperand(1)->getName()+".val"); 860 LoadInst *V2 = Builder->CreateLoad(SI->getOperand(2), 861 SI->getOperand(2)->getName()+".val"); 862 V1->setAlignment(Align); 863 V2->setAlignment(Align); 864 return SelectInst::Create(SI->getCondition(), V1, V2); 865 } 866 867 // load (select (cond, null, P)) -> load P 868 if (isa<ConstantPointerNull>(SI->getOperand(1)) && 869 LI.getPointerAddressSpace() == 0) { 870 LI.setOperand(0, SI->getOperand(2)); 871 return &LI; 872 } 873 874 // load (select (cond, P, null)) -> load P 875 if (isa<ConstantPointerNull>(SI->getOperand(2)) && 876 LI.getPointerAddressSpace() == 0) { 877 LI.setOperand(0, SI->getOperand(1)); 878 return &LI; 879 } 880 } 881 } 882 return nullptr; 883 } 884 885 /// \brief Combine stores to match the type of value being stored. 886 /// 887 /// The core idea here is that the memory does not have any intrinsic type and 888 /// where we can we should match the type of a store to the type of value being 889 /// stored. 890 /// 891 /// However, this routine must never change the width of a store or the number of 892 /// stores as that would introduce a semantic change. This combine is expected to 893 /// be a semantic no-op which just allows stores to more closely model the types 894 /// of their incoming values. 895 /// 896 /// Currently, we also refuse to change the precise type used for an atomic or 897 /// volatile store. This is debatable, and might be reasonable to change later. 898 /// However, it is risky in case some backend or other part of LLVM is relying 899 /// on the exact type stored to select appropriate atomic operations. 900 /// 901 /// \returns true if the store was successfully combined away. This indicates 902 /// the caller must erase the store instruction. We have to let the caller erase 903 /// the store instruction as otherwise there is no way to signal whether it was 904 /// combined or not: IC.EraseInstFromFunction returns a null pointer. 905 static bool combineStoreToValueType(InstCombiner &IC, StoreInst &SI) { 906 // FIXME: We could probably with some care handle both volatile and atomic 907 // stores here but it isn't clear that this is important. 908 if (!SI.isSimple()) 909 return false; 910 911 Value *V = SI.getValueOperand(); 912 913 // Fold away bit casts of the stored value by storing the original type. 914 if (auto *BC = dyn_cast<BitCastInst>(V)) { 915 V = BC->getOperand(0); 916 combineStoreToNewValue(IC, SI, V); 917 return true; 918 } 919 920 // FIXME: We should also canonicalize loads of vectors when their elements are 921 // cast to other types. 922 return false; 923 } 924 925 static bool unpackStoreToAggregate(InstCombiner &IC, StoreInst &SI) { 926 // FIXME: We could probably with some care handle both volatile and atomic 927 // stores here but it isn't clear that this is important. 928 if (!SI.isSimple()) 929 return false; 930 931 Value *V = SI.getValueOperand(); 932 Type *T = V->getType(); 933 934 if (!T->isAggregateType()) 935 return false; 936 937 if (auto *ST = dyn_cast<StructType>(T)) { 938 // If the struct only have one element, we unpack. 939 unsigned Count = ST->getNumElements(); 940 if (Count == 1) { 941 V = IC.Builder->CreateExtractValue(V, 0); 942 combineStoreToNewValue(IC, SI, V); 943 return true; 944 } 945 946 // We don't want to break loads with padding here as we'd loose 947 // the knowledge that padding exists for the rest of the pipeline. 948 const DataLayout &DL = IC.getDataLayout(); 949 auto *SL = DL.getStructLayout(ST); 950 if (SL->hasPadding()) 951 return false; 952 953 SmallString<16> EltName = V->getName(); 954 EltName += ".elt"; 955 auto *Addr = SI.getPointerOperand(); 956 SmallString<16> AddrName = Addr->getName(); 957 AddrName += ".repack"; 958 auto *IdxType = Type::getInt32Ty(ST->getContext()); 959 auto *Zero = ConstantInt::get(IdxType, 0); 960 for (unsigned i = 0; i < Count; i++) { 961 Value *Indices[2] = { 962 Zero, 963 ConstantInt::get(IdxType, i), 964 }; 965 auto *Ptr = IC.Builder->CreateInBoundsGEP(ST, Addr, makeArrayRef(Indices), AddrName); 966 auto *Val = IC.Builder->CreateExtractValue(V, i, EltName); 967 IC.Builder->CreateStore(Val, Ptr); 968 } 969 970 return true; 971 } 972 973 if (auto *AT = dyn_cast<ArrayType>(T)) { 974 // If the array only have one element, we unpack. 975 if (AT->getNumElements() == 1) { 976 V = IC.Builder->CreateExtractValue(V, 0); 977 combineStoreToNewValue(IC, SI, V); 978 return true; 979 } 980 } 981 982 return false; 983 } 984 985 /// equivalentAddressValues - Test if A and B will obviously have the same 986 /// value. This includes recognizing that %t0 and %t1 will have the same 987 /// value in code like this: 988 /// %t0 = getelementptr \@a, 0, 3 989 /// store i32 0, i32* %t0 990 /// %t1 = getelementptr \@a, 0, 3 991 /// %t2 = load i32* %t1 992 /// 993 static bool equivalentAddressValues(Value *A, Value *B) { 994 // Test if the values are trivially equivalent. 995 if (A == B) return true; 996 997 // Test if the values come form identical arithmetic instructions. 998 // This uses isIdenticalToWhenDefined instead of isIdenticalTo because 999 // its only used to compare two uses within the same basic block, which 1000 // means that they'll always either have the same value or one of them 1001 // will have an undefined value. 1002 if (isa<BinaryOperator>(A) || 1003 isa<CastInst>(A) || 1004 isa<PHINode>(A) || 1005 isa<GetElementPtrInst>(A)) 1006 if (Instruction *BI = dyn_cast<Instruction>(B)) 1007 if (cast<Instruction>(A)->isIdenticalToWhenDefined(BI)) 1008 return true; 1009 1010 // Otherwise they may not be equivalent. 1011 return false; 1012 } 1013 1014 Instruction *InstCombiner::visitStoreInst(StoreInst &SI) { 1015 Value *Val = SI.getOperand(0); 1016 Value *Ptr = SI.getOperand(1); 1017 1018 // Try to canonicalize the stored type. 1019 if (combineStoreToValueType(*this, SI)) 1020 return EraseInstFromFunction(SI); 1021 1022 // Attempt to improve the alignment. 1023 unsigned KnownAlign = getOrEnforceKnownAlignment( 1024 Ptr, DL.getPrefTypeAlignment(Val->getType()), DL, &SI, AC, DT); 1025 unsigned StoreAlign = SI.getAlignment(); 1026 unsigned EffectiveStoreAlign = 1027 StoreAlign != 0 ? StoreAlign : DL.getABITypeAlignment(Val->getType()); 1028 1029 if (KnownAlign > EffectiveStoreAlign) 1030 SI.setAlignment(KnownAlign); 1031 else if (StoreAlign == 0) 1032 SI.setAlignment(EffectiveStoreAlign); 1033 1034 // Try to canonicalize the stored type. 1035 if (unpackStoreToAggregate(*this, SI)) 1036 return EraseInstFromFunction(SI); 1037 1038 // Replace GEP indices if possible. 1039 if (Instruction *NewGEPI = replaceGEPIdxWithZero(*this, Ptr, SI)) { 1040 Worklist.Add(NewGEPI); 1041 return &SI; 1042 } 1043 1044 // Don't hack volatile/ordered stores. 1045 // FIXME: Some bits are legal for ordered atomic stores; needs refactoring. 1046 if (!SI.isUnordered()) return nullptr; 1047 1048 // If the RHS is an alloca with a single use, zapify the store, making the 1049 // alloca dead. 1050 if (Ptr->hasOneUse()) { 1051 if (isa<AllocaInst>(Ptr)) 1052 return EraseInstFromFunction(SI); 1053 if (GetElementPtrInst *GEP = dyn_cast<GetElementPtrInst>(Ptr)) { 1054 if (isa<AllocaInst>(GEP->getOperand(0))) { 1055 if (GEP->getOperand(0)->hasOneUse()) 1056 return EraseInstFromFunction(SI); 1057 } 1058 } 1059 } 1060 1061 // Do really simple DSE, to catch cases where there are several consecutive 1062 // stores to the same location, separated by a few arithmetic operations. This 1063 // situation often occurs with bitfield accesses. 1064 BasicBlock::iterator BBI(SI); 1065 for (unsigned ScanInsts = 6; BBI != SI.getParent()->begin() && ScanInsts; 1066 --ScanInsts) { 1067 --BBI; 1068 // Don't count debug info directives, lest they affect codegen, 1069 // and we skip pointer-to-pointer bitcasts, which are NOPs. 1070 if (isa<DbgInfoIntrinsic>(BBI) || 1071 (isa<BitCastInst>(BBI) && BBI->getType()->isPointerTy())) { 1072 ScanInsts++; 1073 continue; 1074 } 1075 1076 if (StoreInst *PrevSI = dyn_cast<StoreInst>(BBI)) { 1077 // Prev store isn't volatile, and stores to the same location? 1078 if (PrevSI->isUnordered() && equivalentAddressValues(PrevSI->getOperand(1), 1079 SI.getOperand(1))) { 1080 ++NumDeadStore; 1081 ++BBI; 1082 EraseInstFromFunction(*PrevSI); 1083 continue; 1084 } 1085 break; 1086 } 1087 1088 // If this is a load, we have to stop. However, if the loaded value is from 1089 // the pointer we're loading and is producing the pointer we're storing, 1090 // then *this* store is dead (X = load P; store X -> P). 1091 if (LoadInst *LI = dyn_cast<LoadInst>(BBI)) { 1092 if (LI == Val && equivalentAddressValues(LI->getOperand(0), Ptr)) { 1093 assert(SI.isUnordered() && "can't eliminate ordering operation"); 1094 return EraseInstFromFunction(SI); 1095 } 1096 1097 // Otherwise, this is a load from some other location. Stores before it 1098 // may not be dead. 1099 break; 1100 } 1101 1102 // Don't skip over loads or things that can modify memory. 1103 if (BBI->mayWriteToMemory() || BBI->mayReadFromMemory()) 1104 break; 1105 } 1106 1107 // store X, null -> turns into 'unreachable' in SimplifyCFG 1108 if (isa<ConstantPointerNull>(Ptr) && SI.getPointerAddressSpace() == 0) { 1109 if (!isa<UndefValue>(Val)) { 1110 SI.setOperand(0, UndefValue::get(Val->getType())); 1111 if (Instruction *U = dyn_cast<Instruction>(Val)) 1112 Worklist.Add(U); // Dropped a use. 1113 } 1114 return nullptr; // Do not modify these! 1115 } 1116 1117 // store undef, Ptr -> noop 1118 if (isa<UndefValue>(Val)) 1119 return EraseInstFromFunction(SI); 1120 1121 // The code below needs to be audited and adjusted for unordered atomics 1122 if (!SI.isSimple()) 1123 return nullptr; 1124 1125 // If this store is the last instruction in the basic block (possibly 1126 // excepting debug info instructions), and if the block ends with an 1127 // unconditional branch, try to move it to the successor block. 1128 BBI = SI.getIterator(); 1129 do { 1130 ++BBI; 1131 } while (isa<DbgInfoIntrinsic>(BBI) || 1132 (isa<BitCastInst>(BBI) && BBI->getType()->isPointerTy())); 1133 if (BranchInst *BI = dyn_cast<BranchInst>(BBI)) 1134 if (BI->isUnconditional()) 1135 if (SimplifyStoreAtEndOfBlock(SI)) 1136 return nullptr; // xform done! 1137 1138 return nullptr; 1139 } 1140 1141 /// SimplifyStoreAtEndOfBlock - Turn things like: 1142 /// if () { *P = v1; } else { *P = v2 } 1143 /// into a phi node with a store in the successor. 1144 /// 1145 /// Simplify things like: 1146 /// *P = v1; if () { *P = v2; } 1147 /// into a phi node with a store in the successor. 1148 /// 1149 bool InstCombiner::SimplifyStoreAtEndOfBlock(StoreInst &SI) { 1150 BasicBlock *StoreBB = SI.getParent(); 1151 1152 // Check to see if the successor block has exactly two incoming edges. If 1153 // so, see if the other predecessor contains a store to the same location. 1154 // if so, insert a PHI node (if needed) and move the stores down. 1155 BasicBlock *DestBB = StoreBB->getTerminator()->getSuccessor(0); 1156 1157 // Determine whether Dest has exactly two predecessors and, if so, compute 1158 // the other predecessor. 1159 pred_iterator PI = pred_begin(DestBB); 1160 BasicBlock *P = *PI; 1161 BasicBlock *OtherBB = nullptr; 1162 1163 if (P != StoreBB) 1164 OtherBB = P; 1165 1166 if (++PI == pred_end(DestBB)) 1167 return false; 1168 1169 P = *PI; 1170 if (P != StoreBB) { 1171 if (OtherBB) 1172 return false; 1173 OtherBB = P; 1174 } 1175 if (++PI != pred_end(DestBB)) 1176 return false; 1177 1178 // Bail out if all the relevant blocks aren't distinct (this can happen, 1179 // for example, if SI is in an infinite loop) 1180 if (StoreBB == DestBB || OtherBB == DestBB) 1181 return false; 1182 1183 // Verify that the other block ends in a branch and is not otherwise empty. 1184 BasicBlock::iterator BBI(OtherBB->getTerminator()); 1185 BranchInst *OtherBr = dyn_cast<BranchInst>(BBI); 1186 if (!OtherBr || BBI == OtherBB->begin()) 1187 return false; 1188 1189 // If the other block ends in an unconditional branch, check for the 'if then 1190 // else' case. there is an instruction before the branch. 1191 StoreInst *OtherStore = nullptr; 1192 if (OtherBr->isUnconditional()) { 1193 --BBI; 1194 // Skip over debugging info. 1195 while (isa<DbgInfoIntrinsic>(BBI) || 1196 (isa<BitCastInst>(BBI) && BBI->getType()->isPointerTy())) { 1197 if (BBI==OtherBB->begin()) 1198 return false; 1199 --BBI; 1200 } 1201 // If this isn't a store, isn't a store to the same location, or is not the 1202 // right kind of store, bail out. 1203 OtherStore = dyn_cast<StoreInst>(BBI); 1204 if (!OtherStore || OtherStore->getOperand(1) != SI.getOperand(1) || 1205 !SI.isSameOperationAs(OtherStore)) 1206 return false; 1207 } else { 1208 // Otherwise, the other block ended with a conditional branch. If one of the 1209 // destinations is StoreBB, then we have the if/then case. 1210 if (OtherBr->getSuccessor(0) != StoreBB && 1211 OtherBr->getSuccessor(1) != StoreBB) 1212 return false; 1213 1214 // Okay, we know that OtherBr now goes to Dest and StoreBB, so this is an 1215 // if/then triangle. See if there is a store to the same ptr as SI that 1216 // lives in OtherBB. 1217 for (;; --BBI) { 1218 // Check to see if we find the matching store. 1219 if ((OtherStore = dyn_cast<StoreInst>(BBI))) { 1220 if (OtherStore->getOperand(1) != SI.getOperand(1) || 1221 !SI.isSameOperationAs(OtherStore)) 1222 return false; 1223 break; 1224 } 1225 // If we find something that may be using or overwriting the stored 1226 // value, or if we run out of instructions, we can't do the xform. 1227 if (BBI->mayReadFromMemory() || BBI->mayWriteToMemory() || 1228 BBI == OtherBB->begin()) 1229 return false; 1230 } 1231 1232 // In order to eliminate the store in OtherBr, we have to 1233 // make sure nothing reads or overwrites the stored value in 1234 // StoreBB. 1235 for (BasicBlock::iterator I = StoreBB->begin(); &*I != &SI; ++I) { 1236 // FIXME: This should really be AA driven. 1237 if (I->mayReadFromMemory() || I->mayWriteToMemory()) 1238 return false; 1239 } 1240 } 1241 1242 // Insert a PHI node now if we need it. 1243 Value *MergedVal = OtherStore->getOperand(0); 1244 if (MergedVal != SI.getOperand(0)) { 1245 PHINode *PN = PHINode::Create(MergedVal->getType(), 2, "storemerge"); 1246 PN->addIncoming(SI.getOperand(0), SI.getParent()); 1247 PN->addIncoming(OtherStore->getOperand(0), OtherBB); 1248 MergedVal = InsertNewInstBefore(PN, DestBB->front()); 1249 } 1250 1251 // Advance to a place where it is safe to insert the new store and 1252 // insert it. 1253 BBI = DestBB->getFirstInsertionPt(); 1254 StoreInst *NewSI = new StoreInst(MergedVal, SI.getOperand(1), 1255 SI.isVolatile(), 1256 SI.getAlignment(), 1257 SI.getOrdering(), 1258 SI.getSynchScope()); 1259 InsertNewInstBefore(NewSI, *BBI); 1260 NewSI->setDebugLoc(OtherStore->getDebugLoc()); 1261 1262 // If the two stores had AA tags, merge them. 1263 AAMDNodes AATags; 1264 SI.getAAMetadata(AATags); 1265 if (AATags) { 1266 OtherStore->getAAMetadata(AATags, /* Merge = */ true); 1267 NewSI->setAAMetadata(AATags); 1268 } 1269 1270 // Nuke the old stores. 1271 EraseInstFromFunction(SI); 1272 EraseInstFromFunction(*OtherStore); 1273 return true; 1274 } 1275