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   auto Name = LI.getName();
527   assert(LI.getAlignment() && "Alignment must be set at this point");
528 
529   if (auto *ST = dyn_cast<StructType>(T)) {
530     // If the struct only have one element, we unpack.
531     auto NumElements = ST->getNumElements();
532     if (NumElements == 1) {
533       LoadInst *NewLoad = combineLoadToNewType(IC, LI, ST->getTypeAtIndex(0U),
534                                                ".unpack");
535       return IC.replaceInstUsesWith(LI, IC.Builder->CreateInsertValue(
536         UndefValue::get(T), NewLoad, 0, Name));
537     }
538 
539     // We don't want to break loads with padding here as we'd loose
540     // the knowledge that padding exists for the rest of the pipeline.
541     const DataLayout &DL = IC.getDataLayout();
542     auto *SL = DL.getStructLayout(ST);
543     if (SL->hasPadding())
544       return nullptr;
545 
546     auto Align = LI.getAlignment();
547     if (!Align)
548       Align = DL.getABITypeAlignment(ST);
549 
550     SmallString<16> LoadName = Name;
551     LoadName += ".unpack";
552     SmallString<16> EltName = Name;
553     EltName += ".elt";
554 
555     auto *Addr = LI.getPointerOperand();
556     auto *IdxType = Type::getInt32Ty(T->getContext());
557     auto *Zero = ConstantInt::get(IdxType, 0);
558 
559     Value *V = UndefValue::get(T);
560     for (unsigned i = 0; i < NumElements; i++) {
561       Value *Indices[2] = {
562         Zero,
563         ConstantInt::get(IdxType, i),
564       };
565       auto *Ptr = IC.Builder->CreateInBoundsGEP(ST, Addr, makeArrayRef(Indices),
566                                                 EltName);
567       auto EltAlign = MinAlign(Align, SL->getElementOffset(i));
568       auto *L = IC.Builder->CreateAlignedLoad(Ptr, EltAlign, LoadName);
569       V = IC.Builder->CreateInsertValue(V, L, i);
570     }
571 
572     V->setName(Name);
573     return IC.replaceInstUsesWith(LI, V);
574   }
575 
576   if (auto *AT = dyn_cast<ArrayType>(T)) {
577     auto *ET = AT->getElementType();
578     auto NumElements = AT->getNumElements();
579     if (NumElements == 1) {
580       LoadInst *NewLoad = combineLoadToNewType(IC, LI, ET, ".unpack");
581       return IC.replaceInstUsesWith(LI, IC.Builder->CreateInsertValue(
582         UndefValue::get(T), NewLoad, 0, Name));
583     }
584 
585     const DataLayout &DL = IC.getDataLayout();
586     auto EltSize = DL.getTypeAllocSize(ET);
587     auto Align = LI.getAlignment();
588     if (!Align)
589       Align = DL.getABITypeAlignment(T);
590 
591     SmallString<16> LoadName = Name;
592     LoadName += ".unpack";
593     SmallString<16> EltName = Name;
594     EltName += ".elt";
595 
596     auto *Addr = LI.getPointerOperand();
597     auto *IdxType = Type::getInt64Ty(T->getContext());
598     auto *Zero = ConstantInt::get(IdxType, 0);
599 
600     Value *V = UndefValue::get(T);
601     uint64_t Offset = 0;
602     for (uint64_t i = 0; i < NumElements; i++) {
603       Value *Indices[2] = {
604         Zero,
605         ConstantInt::get(IdxType, i),
606       };
607       auto *Ptr = IC.Builder->CreateInBoundsGEP(AT, Addr, makeArrayRef(Indices),
608                                                 EltName);
609       auto *L = IC.Builder->CreateAlignedLoad(Ptr, MinAlign(Align, Offset),
610                                               LoadName);
611       V = IC.Builder->CreateInsertValue(V, L, i);
612       Offset += EltSize;
613     }
614 
615     V->setName(Name);
616     return IC.replaceInstUsesWith(LI, V);
617   }
618 
619   return nullptr;
620 }
621 
622 // If we can determine that all possible objects pointed to by the provided
623 // pointer value are, not only dereferenceable, but also definitively less than
624 // or equal to the provided maximum size, then return true. Otherwise, return
625 // false (constant global values and allocas fall into this category).
626 //
627 // FIXME: This should probably live in ValueTracking (or similar).
628 static bool isObjectSizeLessThanOrEq(Value *V, uint64_t MaxSize,
629                                      const DataLayout &DL) {
630   SmallPtrSet<Value *, 4> Visited;
631   SmallVector<Value *, 4> Worklist(1, V);
632 
633   do {
634     Value *P = Worklist.pop_back_val();
635     P = P->stripPointerCasts();
636 
637     if (!Visited.insert(P).second)
638       continue;
639 
640     if (SelectInst *SI = dyn_cast<SelectInst>(P)) {
641       Worklist.push_back(SI->getTrueValue());
642       Worklist.push_back(SI->getFalseValue());
643       continue;
644     }
645 
646     if (PHINode *PN = dyn_cast<PHINode>(P)) {
647       for (Value *IncValue : PN->incoming_values())
648         Worklist.push_back(IncValue);
649       continue;
650     }
651 
652     if (GlobalAlias *GA = dyn_cast<GlobalAlias>(P)) {
653       if (GA->mayBeOverridden())
654         return false;
655       Worklist.push_back(GA->getAliasee());
656       continue;
657     }
658 
659     // If we know how big this object is, and it is less than MaxSize, continue
660     // searching. Otherwise, return false.
661     if (AllocaInst *AI = dyn_cast<AllocaInst>(P)) {
662       if (!AI->getAllocatedType()->isSized())
663         return false;
664 
665       ConstantInt *CS = dyn_cast<ConstantInt>(AI->getArraySize());
666       if (!CS)
667         return false;
668 
669       uint64_t TypeSize = DL.getTypeAllocSize(AI->getAllocatedType());
670       // Make sure that, even if the multiplication below would wrap as an
671       // uint64_t, we still do the right thing.
672       if ((CS->getValue().zextOrSelf(128)*APInt(128, TypeSize)).ugt(MaxSize))
673         return false;
674       continue;
675     }
676 
677     if (GlobalVariable *GV = dyn_cast<GlobalVariable>(P)) {
678       if (!GV->hasDefinitiveInitializer() || !GV->isConstant())
679         return false;
680 
681       uint64_t InitSize = DL.getTypeAllocSize(GV->getValueType());
682       if (InitSize > MaxSize)
683         return false;
684       continue;
685     }
686 
687     return false;
688   } while (!Worklist.empty());
689 
690   return true;
691 }
692 
693 // If we're indexing into an object of a known size, and the outer index is
694 // not a constant, but having any value but zero would lead to undefined
695 // behavior, replace it with zero.
696 //
697 // For example, if we have:
698 // @f.a = private unnamed_addr constant [1 x i32] [i32 12], align 4
699 // ...
700 // %arrayidx = getelementptr inbounds [1 x i32]* @f.a, i64 0, i64 %x
701 // ... = load i32* %arrayidx, align 4
702 // Then we know that we can replace %x in the GEP with i64 0.
703 //
704 // FIXME: We could fold any GEP index to zero that would cause UB if it were
705 // not zero. Currently, we only handle the first such index. Also, we could
706 // also search through non-zero constant indices if we kept track of the
707 // offsets those indices implied.
708 static bool canReplaceGEPIdxWithZero(InstCombiner &IC, GetElementPtrInst *GEPI,
709                                      Instruction *MemI, unsigned &Idx) {
710   if (GEPI->getNumOperands() < 2)
711     return false;
712 
713   // Find the first non-zero index of a GEP. If all indices are zero, return
714   // one past the last index.
715   auto FirstNZIdx = [](const GetElementPtrInst *GEPI) {
716     unsigned I = 1;
717     for (unsigned IE = GEPI->getNumOperands(); I != IE; ++I) {
718       Value *V = GEPI->getOperand(I);
719       if (const ConstantInt *CI = dyn_cast<ConstantInt>(V))
720         if (CI->isZero())
721           continue;
722 
723       break;
724     }
725 
726     return I;
727   };
728 
729   // Skip through initial 'zero' indices, and find the corresponding pointer
730   // type. See if the next index is not a constant.
731   Idx = FirstNZIdx(GEPI);
732   if (Idx == GEPI->getNumOperands())
733     return false;
734   if (isa<Constant>(GEPI->getOperand(Idx)))
735     return false;
736 
737   SmallVector<Value *, 4> Ops(GEPI->idx_begin(), GEPI->idx_begin() + Idx);
738   Type *AllocTy =
739     GetElementPtrInst::getIndexedType(GEPI->getSourceElementType(), Ops);
740   if (!AllocTy || !AllocTy->isSized())
741     return false;
742   const DataLayout &DL = IC.getDataLayout();
743   uint64_t TyAllocSize = DL.getTypeAllocSize(AllocTy);
744 
745   // If there are more indices after the one we might replace with a zero, make
746   // sure they're all non-negative. If any of them are negative, the overall
747   // address being computed might be before the base address determined by the
748   // first non-zero index.
749   auto IsAllNonNegative = [&]() {
750     for (unsigned i = Idx+1, e = GEPI->getNumOperands(); i != e; ++i) {
751       bool KnownNonNegative, KnownNegative;
752       IC.ComputeSignBit(GEPI->getOperand(i), KnownNonNegative,
753                         KnownNegative, 0, MemI);
754       if (KnownNonNegative)
755         continue;
756       return false;
757     }
758 
759     return true;
760   };
761 
762   // FIXME: If the GEP is not inbounds, and there are extra indices after the
763   // one we'll replace, those could cause the address computation to wrap
764   // (rendering the IsAllNonNegative() check below insufficient). We can do
765   // better, ignoring zero indices (and other indices we can prove small
766   // enough not to wrap).
767   if (Idx+1 != GEPI->getNumOperands() && !GEPI->isInBounds())
768     return false;
769 
770   // Note that isObjectSizeLessThanOrEq will return true only if the pointer is
771   // also known to be dereferenceable.
772   return isObjectSizeLessThanOrEq(GEPI->getOperand(0), TyAllocSize, DL) &&
773          IsAllNonNegative();
774 }
775 
776 // If we're indexing into an object with a variable index for the memory
777 // access, but the object has only one element, we can assume that the index
778 // will always be zero. If we replace the GEP, return it.
779 template <typename T>
780 static Instruction *replaceGEPIdxWithZero(InstCombiner &IC, Value *Ptr,
781                                           T &MemI) {
782   if (GetElementPtrInst *GEPI = dyn_cast<GetElementPtrInst>(Ptr)) {
783     unsigned Idx;
784     if (canReplaceGEPIdxWithZero(IC, GEPI, &MemI, Idx)) {
785       Instruction *NewGEPI = GEPI->clone();
786       NewGEPI->setOperand(Idx,
787         ConstantInt::get(GEPI->getOperand(Idx)->getType(), 0));
788       NewGEPI->insertBefore(GEPI);
789       MemI.setOperand(MemI.getPointerOperandIndex(), NewGEPI);
790       return NewGEPI;
791     }
792   }
793 
794   return nullptr;
795 }
796 
797 Instruction *InstCombiner::visitLoadInst(LoadInst &LI) {
798   Value *Op = LI.getOperand(0);
799 
800   // Try to canonicalize the loaded type.
801   if (Instruction *Res = combineLoadToOperationType(*this, LI))
802     return Res;
803 
804   // Attempt to improve the alignment.
805   unsigned KnownAlign = getOrEnforceKnownAlignment(
806       Op, DL.getPrefTypeAlignment(LI.getType()), DL, &LI, AC, DT);
807   unsigned LoadAlign = LI.getAlignment();
808   unsigned EffectiveLoadAlign =
809       LoadAlign != 0 ? LoadAlign : DL.getABITypeAlignment(LI.getType());
810 
811   if (KnownAlign > EffectiveLoadAlign)
812     LI.setAlignment(KnownAlign);
813   else if (LoadAlign == 0)
814     LI.setAlignment(EffectiveLoadAlign);
815 
816   // Replace GEP indices if possible.
817   if (Instruction *NewGEPI = replaceGEPIdxWithZero(*this, Op, LI)) {
818       Worklist.Add(NewGEPI);
819       return &LI;
820   }
821 
822   // None of the following transforms are legal for volatile/atomic loads.
823   // FIXME: Some of it is okay for atomic loads; needs refactoring.
824   if (!LI.isSimple()) return nullptr;
825 
826   if (Instruction *Res = unpackLoadToAggregate(*this, LI))
827     return Res;
828 
829   // Do really simple store-to-load forwarding and load CSE, to catch cases
830   // where there are several consecutive memory accesses to the same location,
831   // separated by a few arithmetic operations.
832   BasicBlock::iterator BBI(LI);
833   AAMDNodes AATags;
834   if (Value *AvailableVal =
835       FindAvailableLoadedValue(&LI, LI.getParent(), BBI,
836                                DefMaxInstsToScan, AA, &AATags)) {
837     if (LoadInst *NLI = dyn_cast<LoadInst>(AvailableVal)) {
838       unsigned KnownIDs[] = {
839           LLVMContext::MD_tbaa,            LLVMContext::MD_alias_scope,
840           LLVMContext::MD_noalias,         LLVMContext::MD_range,
841           LLVMContext::MD_invariant_load,  LLVMContext::MD_nonnull,
842           LLVMContext::MD_invariant_group, LLVMContext::MD_align,
843           LLVMContext::MD_dereferenceable,
844           LLVMContext::MD_dereferenceable_or_null};
845       combineMetadata(NLI, &LI, KnownIDs);
846     };
847 
848     return replaceInstUsesWith(
849         LI, Builder->CreateBitOrPointerCast(AvailableVal, LI.getType(),
850                                             LI.getName() + ".cast"));
851   }
852 
853   // load(gep null, ...) -> unreachable
854   if (GetElementPtrInst *GEPI = dyn_cast<GetElementPtrInst>(Op)) {
855     const Value *GEPI0 = GEPI->getOperand(0);
856     // TODO: Consider a target hook for valid address spaces for this xform.
857     if (isa<ConstantPointerNull>(GEPI0) && GEPI->getPointerAddressSpace() == 0){
858       // Insert a new store to null instruction before the load to indicate
859       // that this code is not reachable.  We do this instead of inserting
860       // an unreachable instruction directly because we cannot modify the
861       // CFG.
862       new StoreInst(UndefValue::get(LI.getType()),
863                     Constant::getNullValue(Op->getType()), &LI);
864       return replaceInstUsesWith(LI, UndefValue::get(LI.getType()));
865     }
866   }
867 
868   // load null/undef -> unreachable
869   // TODO: Consider a target hook for valid address spaces for this xform.
870   if (isa<UndefValue>(Op) ||
871       (isa<ConstantPointerNull>(Op) && LI.getPointerAddressSpace() == 0)) {
872     // Insert a new store to null instruction before the load to indicate that
873     // this code is not reachable.  We do this instead of inserting an
874     // unreachable instruction directly because we cannot modify the CFG.
875     new StoreInst(UndefValue::get(LI.getType()),
876                   Constant::getNullValue(Op->getType()), &LI);
877     return replaceInstUsesWith(LI, UndefValue::get(LI.getType()));
878   }
879 
880   if (Op->hasOneUse()) {
881     // Change select and PHI nodes to select values instead of addresses: this
882     // helps alias analysis out a lot, allows many others simplifications, and
883     // exposes redundancy in the code.
884     //
885     // Note that we cannot do the transformation unless we know that the
886     // introduced loads cannot trap!  Something like this is valid as long as
887     // the condition is always false: load (select bool %C, int* null, int* %G),
888     // but it would not be valid if we transformed it to load from null
889     // unconditionally.
890     //
891     if (SelectInst *SI = dyn_cast<SelectInst>(Op)) {
892       // load (select (Cond, &V1, &V2))  --> select(Cond, load &V1, load &V2).
893       unsigned Align = LI.getAlignment();
894       if (isSafeToLoadUnconditionally(SI->getOperand(1), Align, SI) &&
895           isSafeToLoadUnconditionally(SI->getOperand(2), Align, SI)) {
896         LoadInst *V1 = Builder->CreateLoad(SI->getOperand(1),
897                                            SI->getOperand(1)->getName()+".val");
898         LoadInst *V2 = Builder->CreateLoad(SI->getOperand(2),
899                                            SI->getOperand(2)->getName()+".val");
900         V1->setAlignment(Align);
901         V2->setAlignment(Align);
902         return SelectInst::Create(SI->getCondition(), V1, V2);
903       }
904 
905       // load (select (cond, null, P)) -> load P
906       if (isa<ConstantPointerNull>(SI->getOperand(1)) &&
907           LI.getPointerAddressSpace() == 0) {
908         LI.setOperand(0, SI->getOperand(2));
909         return &LI;
910       }
911 
912       // load (select (cond, P, null)) -> load P
913       if (isa<ConstantPointerNull>(SI->getOperand(2)) &&
914           LI.getPointerAddressSpace() == 0) {
915         LI.setOperand(0, SI->getOperand(1));
916         return &LI;
917       }
918     }
919   }
920   return nullptr;
921 }
922 
923 /// \brief Combine stores to match the type of value being stored.
924 ///
925 /// The core idea here is that the memory does not have any intrinsic type and
926 /// where we can we should match the type of a store to the type of value being
927 /// stored.
928 ///
929 /// However, this routine must never change the width of a store or the number of
930 /// stores as that would introduce a semantic change. This combine is expected to
931 /// be a semantic no-op which just allows stores to more closely model the types
932 /// of their incoming values.
933 ///
934 /// Currently, we also refuse to change the precise type used for an atomic or
935 /// volatile store. This is debatable, and might be reasonable to change later.
936 /// However, it is risky in case some backend or other part of LLVM is relying
937 /// on the exact type stored to select appropriate atomic operations.
938 ///
939 /// \returns true if the store was successfully combined away. This indicates
940 /// the caller must erase the store instruction. We have to let the caller erase
941 /// the store instruction as otherwise there is no way to signal whether it was
942 /// combined or not: IC.EraseInstFromFunction returns a null pointer.
943 static bool combineStoreToValueType(InstCombiner &IC, StoreInst &SI) {
944   // FIXME: We could probably with some care handle both volatile and atomic
945   // stores here but it isn't clear that this is important.
946   if (!SI.isSimple())
947     return false;
948 
949   Value *V = SI.getValueOperand();
950 
951   // Fold away bit casts of the stored value by storing the original type.
952   if (auto *BC = dyn_cast<BitCastInst>(V)) {
953     V = BC->getOperand(0);
954     combineStoreToNewValue(IC, SI, V);
955     return true;
956   }
957 
958   // FIXME: We should also canonicalize loads of vectors when their elements are
959   // cast to other types.
960   return false;
961 }
962 
963 static bool unpackStoreToAggregate(InstCombiner &IC, StoreInst &SI) {
964   // FIXME: We could probably with some care handle both volatile and atomic
965   // stores here but it isn't clear that this is important.
966   if (!SI.isSimple())
967     return false;
968 
969   Value *V = SI.getValueOperand();
970   Type *T = V->getType();
971 
972   if (!T->isAggregateType())
973     return false;
974 
975   if (auto *ST = dyn_cast<StructType>(T)) {
976     // If the struct only have one element, we unpack.
977     unsigned Count = ST->getNumElements();
978     if (Count == 1) {
979       V = IC.Builder->CreateExtractValue(V, 0);
980       combineStoreToNewValue(IC, SI, V);
981       return true;
982     }
983 
984     // We don't want to break loads with padding here as we'd loose
985     // the knowledge that padding exists for the rest of the pipeline.
986     const DataLayout &DL = IC.getDataLayout();
987     auto *SL = DL.getStructLayout(ST);
988     if (SL->hasPadding())
989       return false;
990 
991     auto Align = SI.getAlignment();
992     if (!Align)
993       Align = DL.getABITypeAlignment(ST);
994 
995     SmallString<16> EltName = V->getName();
996     EltName += ".elt";
997     auto *Addr = SI.getPointerOperand();
998     SmallString<16> AddrName = Addr->getName();
999     AddrName += ".repack";
1000 
1001     auto *IdxType = Type::getInt32Ty(ST->getContext());
1002     auto *Zero = ConstantInt::get(IdxType, 0);
1003     for (unsigned i = 0; i < Count; i++) {
1004       Value *Indices[2] = {
1005         Zero,
1006         ConstantInt::get(IdxType, i),
1007       };
1008       auto *Ptr = IC.Builder->CreateInBoundsGEP(ST, Addr, makeArrayRef(Indices),
1009                                                 AddrName);
1010       auto *Val = IC.Builder->CreateExtractValue(V, i, EltName);
1011       auto EltAlign = MinAlign(Align, SL->getElementOffset(i));
1012       IC.Builder->CreateAlignedStore(Val, Ptr, EltAlign);
1013     }
1014 
1015     return true;
1016   }
1017 
1018   if (auto *AT = dyn_cast<ArrayType>(T)) {
1019     // If the array only have one element, we unpack.
1020     auto NumElements = AT->getNumElements();
1021     if (NumElements == 1) {
1022       V = IC.Builder->CreateExtractValue(V, 0);
1023       combineStoreToNewValue(IC, SI, V);
1024       return true;
1025     }
1026 
1027     const DataLayout &DL = IC.getDataLayout();
1028     auto EltSize = DL.getTypeAllocSize(AT->getElementType());
1029     auto Align = SI.getAlignment();
1030     if (!Align)
1031       Align = DL.getABITypeAlignment(T);
1032 
1033     SmallString<16> EltName = V->getName();
1034     EltName += ".elt";
1035     auto *Addr = SI.getPointerOperand();
1036     SmallString<16> AddrName = Addr->getName();
1037     AddrName += ".repack";
1038 
1039     auto *IdxType = Type::getInt64Ty(T->getContext());
1040     auto *Zero = ConstantInt::get(IdxType, 0);
1041 
1042     uint64_t Offset = 0;
1043     for (uint64_t i = 0; i < NumElements; i++) {
1044       Value *Indices[2] = {
1045         Zero,
1046         ConstantInt::get(IdxType, i),
1047       };
1048       auto *Ptr = IC.Builder->CreateInBoundsGEP(AT, Addr, makeArrayRef(Indices),
1049                                                 AddrName);
1050       auto *Val = IC.Builder->CreateExtractValue(V, i, EltName);
1051       auto EltAlign = MinAlign(Align, Offset);
1052       IC.Builder->CreateAlignedStore(Val, Ptr, EltAlign);
1053       Offset += EltSize;
1054     }
1055 
1056     return true;
1057   }
1058 
1059   return false;
1060 }
1061 
1062 /// equivalentAddressValues - Test if A and B will obviously have the same
1063 /// value. This includes recognizing that %t0 and %t1 will have the same
1064 /// value in code like this:
1065 ///   %t0 = getelementptr \@a, 0, 3
1066 ///   store i32 0, i32* %t0
1067 ///   %t1 = getelementptr \@a, 0, 3
1068 ///   %t2 = load i32* %t1
1069 ///
1070 static bool equivalentAddressValues(Value *A, Value *B) {
1071   // Test if the values are trivially equivalent.
1072   if (A == B) return true;
1073 
1074   // Test if the values come form identical arithmetic instructions.
1075   // This uses isIdenticalToWhenDefined instead of isIdenticalTo because
1076   // its only used to compare two uses within the same basic block, which
1077   // means that they'll always either have the same value or one of them
1078   // will have an undefined value.
1079   if (isa<BinaryOperator>(A) ||
1080       isa<CastInst>(A) ||
1081       isa<PHINode>(A) ||
1082       isa<GetElementPtrInst>(A))
1083     if (Instruction *BI = dyn_cast<Instruction>(B))
1084       if (cast<Instruction>(A)->isIdenticalToWhenDefined(BI))
1085         return true;
1086 
1087   // Otherwise they may not be equivalent.
1088   return false;
1089 }
1090 
1091 Instruction *InstCombiner::visitStoreInst(StoreInst &SI) {
1092   Value *Val = SI.getOperand(0);
1093   Value *Ptr = SI.getOperand(1);
1094 
1095   // Try to canonicalize the stored type.
1096   if (combineStoreToValueType(*this, SI))
1097     return eraseInstFromFunction(SI);
1098 
1099   // Attempt to improve the alignment.
1100   unsigned KnownAlign = getOrEnforceKnownAlignment(
1101       Ptr, DL.getPrefTypeAlignment(Val->getType()), DL, &SI, AC, DT);
1102   unsigned StoreAlign = SI.getAlignment();
1103   unsigned EffectiveStoreAlign =
1104       StoreAlign != 0 ? StoreAlign : DL.getABITypeAlignment(Val->getType());
1105 
1106   if (KnownAlign > EffectiveStoreAlign)
1107     SI.setAlignment(KnownAlign);
1108   else if (StoreAlign == 0)
1109     SI.setAlignment(EffectiveStoreAlign);
1110 
1111   // Try to canonicalize the stored type.
1112   if (unpackStoreToAggregate(*this, SI))
1113     return eraseInstFromFunction(SI);
1114 
1115   // Replace GEP indices if possible.
1116   if (Instruction *NewGEPI = replaceGEPIdxWithZero(*this, Ptr, SI)) {
1117       Worklist.Add(NewGEPI);
1118       return &SI;
1119   }
1120 
1121   // Don't hack volatile/ordered stores.
1122   // FIXME: Some bits are legal for ordered atomic stores; needs refactoring.
1123   if (!SI.isUnordered()) return nullptr;
1124 
1125   // If the RHS is an alloca with a single use, zapify the store, making the
1126   // alloca dead.
1127   if (Ptr->hasOneUse()) {
1128     if (isa<AllocaInst>(Ptr))
1129       return eraseInstFromFunction(SI);
1130     if (GetElementPtrInst *GEP = dyn_cast<GetElementPtrInst>(Ptr)) {
1131       if (isa<AllocaInst>(GEP->getOperand(0))) {
1132         if (GEP->getOperand(0)->hasOneUse())
1133           return eraseInstFromFunction(SI);
1134       }
1135     }
1136   }
1137 
1138   // Do really simple DSE, to catch cases where there are several consecutive
1139   // stores to the same location, separated by a few arithmetic operations. This
1140   // situation often occurs with bitfield accesses.
1141   BasicBlock::iterator BBI(SI);
1142   for (unsigned ScanInsts = 6; BBI != SI.getParent()->begin() && ScanInsts;
1143        --ScanInsts) {
1144     --BBI;
1145     // Don't count debug info directives, lest they affect codegen,
1146     // and we skip pointer-to-pointer bitcasts, which are NOPs.
1147     if (isa<DbgInfoIntrinsic>(BBI) ||
1148         (isa<BitCastInst>(BBI) && BBI->getType()->isPointerTy())) {
1149       ScanInsts++;
1150       continue;
1151     }
1152 
1153     if (StoreInst *PrevSI = dyn_cast<StoreInst>(BBI)) {
1154       // Prev store isn't volatile, and stores to the same location?
1155       if (PrevSI->isUnordered() && equivalentAddressValues(PrevSI->getOperand(1),
1156                                                         SI.getOperand(1))) {
1157         ++NumDeadStore;
1158         ++BBI;
1159         eraseInstFromFunction(*PrevSI);
1160         continue;
1161       }
1162       break;
1163     }
1164 
1165     // If this is a load, we have to stop.  However, if the loaded value is from
1166     // the pointer we're loading and is producing the pointer we're storing,
1167     // then *this* store is dead (X = load P; store X -> P).
1168     if (LoadInst *LI = dyn_cast<LoadInst>(BBI)) {
1169       if (LI == Val && equivalentAddressValues(LI->getOperand(0), Ptr)) {
1170         assert(SI.isUnordered() && "can't eliminate ordering operation");
1171         return eraseInstFromFunction(SI);
1172       }
1173 
1174       // Otherwise, this is a load from some other location.  Stores before it
1175       // may not be dead.
1176       break;
1177     }
1178 
1179     // Don't skip over loads or things that can modify memory.
1180     if (BBI->mayWriteToMemory() || BBI->mayReadFromMemory())
1181       break;
1182   }
1183 
1184   // store X, null    -> turns into 'unreachable' in SimplifyCFG
1185   if (isa<ConstantPointerNull>(Ptr) && SI.getPointerAddressSpace() == 0) {
1186     if (!isa<UndefValue>(Val)) {
1187       SI.setOperand(0, UndefValue::get(Val->getType()));
1188       if (Instruction *U = dyn_cast<Instruction>(Val))
1189         Worklist.Add(U);  // Dropped a use.
1190     }
1191     return nullptr;  // Do not modify these!
1192   }
1193 
1194   // store undef, Ptr -> noop
1195   if (isa<UndefValue>(Val))
1196     return eraseInstFromFunction(SI);
1197 
1198   // The code below needs to be audited and adjusted for unordered atomics
1199   if (!SI.isSimple())
1200     return nullptr;
1201 
1202   // If this store is the last instruction in the basic block (possibly
1203   // excepting debug info instructions), and if the block ends with an
1204   // unconditional branch, try to move it to the successor block.
1205   BBI = SI.getIterator();
1206   do {
1207     ++BBI;
1208   } while (isa<DbgInfoIntrinsic>(BBI) ||
1209            (isa<BitCastInst>(BBI) && BBI->getType()->isPointerTy()));
1210   if (BranchInst *BI = dyn_cast<BranchInst>(BBI))
1211     if (BI->isUnconditional())
1212       if (SimplifyStoreAtEndOfBlock(SI))
1213         return nullptr;  // xform done!
1214 
1215   return nullptr;
1216 }
1217 
1218 /// SimplifyStoreAtEndOfBlock - Turn things like:
1219 ///   if () { *P = v1; } else { *P = v2 }
1220 /// into a phi node with a store in the successor.
1221 ///
1222 /// Simplify things like:
1223 ///   *P = v1; if () { *P = v2; }
1224 /// into a phi node with a store in the successor.
1225 ///
1226 bool InstCombiner::SimplifyStoreAtEndOfBlock(StoreInst &SI) {
1227   BasicBlock *StoreBB = SI.getParent();
1228 
1229   // Check to see if the successor block has exactly two incoming edges.  If
1230   // so, see if the other predecessor contains a store to the same location.
1231   // if so, insert a PHI node (if needed) and move the stores down.
1232   BasicBlock *DestBB = StoreBB->getTerminator()->getSuccessor(0);
1233 
1234   // Determine whether Dest has exactly two predecessors and, if so, compute
1235   // the other predecessor.
1236   pred_iterator PI = pred_begin(DestBB);
1237   BasicBlock *P = *PI;
1238   BasicBlock *OtherBB = nullptr;
1239 
1240   if (P != StoreBB)
1241     OtherBB = P;
1242 
1243   if (++PI == pred_end(DestBB))
1244     return false;
1245 
1246   P = *PI;
1247   if (P != StoreBB) {
1248     if (OtherBB)
1249       return false;
1250     OtherBB = P;
1251   }
1252   if (++PI != pred_end(DestBB))
1253     return false;
1254 
1255   // Bail out if all the relevant blocks aren't distinct (this can happen,
1256   // for example, if SI is in an infinite loop)
1257   if (StoreBB == DestBB || OtherBB == DestBB)
1258     return false;
1259 
1260   // Verify that the other block ends in a branch and is not otherwise empty.
1261   BasicBlock::iterator BBI(OtherBB->getTerminator());
1262   BranchInst *OtherBr = dyn_cast<BranchInst>(BBI);
1263   if (!OtherBr || BBI == OtherBB->begin())
1264     return false;
1265 
1266   // If the other block ends in an unconditional branch, check for the 'if then
1267   // else' case.  there is an instruction before the branch.
1268   StoreInst *OtherStore = nullptr;
1269   if (OtherBr->isUnconditional()) {
1270     --BBI;
1271     // Skip over debugging info.
1272     while (isa<DbgInfoIntrinsic>(BBI) ||
1273            (isa<BitCastInst>(BBI) && BBI->getType()->isPointerTy())) {
1274       if (BBI==OtherBB->begin())
1275         return false;
1276       --BBI;
1277     }
1278     // If this isn't a store, isn't a store to the same location, or is not the
1279     // right kind of store, bail out.
1280     OtherStore = dyn_cast<StoreInst>(BBI);
1281     if (!OtherStore || OtherStore->getOperand(1) != SI.getOperand(1) ||
1282         !SI.isSameOperationAs(OtherStore))
1283       return false;
1284   } else {
1285     // Otherwise, the other block ended with a conditional branch. If one of the
1286     // destinations is StoreBB, then we have the if/then case.
1287     if (OtherBr->getSuccessor(0) != StoreBB &&
1288         OtherBr->getSuccessor(1) != StoreBB)
1289       return false;
1290 
1291     // Okay, we know that OtherBr now goes to Dest and StoreBB, so this is an
1292     // if/then triangle.  See if there is a store to the same ptr as SI that
1293     // lives in OtherBB.
1294     for (;; --BBI) {
1295       // Check to see if we find the matching store.
1296       if ((OtherStore = dyn_cast<StoreInst>(BBI))) {
1297         if (OtherStore->getOperand(1) != SI.getOperand(1) ||
1298             !SI.isSameOperationAs(OtherStore))
1299           return false;
1300         break;
1301       }
1302       // If we find something that may be using or overwriting the stored
1303       // value, or if we run out of instructions, we can't do the xform.
1304       if (BBI->mayReadFromMemory() || BBI->mayWriteToMemory() ||
1305           BBI == OtherBB->begin())
1306         return false;
1307     }
1308 
1309     // In order to eliminate the store in OtherBr, we have to
1310     // make sure nothing reads or overwrites the stored value in
1311     // StoreBB.
1312     for (BasicBlock::iterator I = StoreBB->begin(); &*I != &SI; ++I) {
1313       // FIXME: This should really be AA driven.
1314       if (I->mayReadFromMemory() || I->mayWriteToMemory())
1315         return false;
1316     }
1317   }
1318 
1319   // Insert a PHI node now if we need it.
1320   Value *MergedVal = OtherStore->getOperand(0);
1321   if (MergedVal != SI.getOperand(0)) {
1322     PHINode *PN = PHINode::Create(MergedVal->getType(), 2, "storemerge");
1323     PN->addIncoming(SI.getOperand(0), SI.getParent());
1324     PN->addIncoming(OtherStore->getOperand(0), OtherBB);
1325     MergedVal = InsertNewInstBefore(PN, DestBB->front());
1326   }
1327 
1328   // Advance to a place where it is safe to insert the new store and
1329   // insert it.
1330   BBI = DestBB->getFirstInsertionPt();
1331   StoreInst *NewSI = new StoreInst(MergedVal, SI.getOperand(1),
1332                                    SI.isVolatile(),
1333                                    SI.getAlignment(),
1334                                    SI.getOrdering(),
1335                                    SI.getSynchScope());
1336   InsertNewInstBefore(NewSI, *BBI);
1337   NewSI->setDebugLoc(OtherStore->getDebugLoc());
1338 
1339   // If the two stores had AA tags, merge them.
1340   AAMDNodes AATags;
1341   SI.getAAMetadata(AATags);
1342   if (AATags) {
1343     OtherStore->getAAMetadata(AATags, /* Merge = */ true);
1344     NewSI->setAAMetadata(AATags);
1345   }
1346 
1347   // Nuke the old stores.
1348   eraseInstFromFunction(SI);
1349   eraseInstFromFunction(*OtherStore);
1350   return true;
1351 }
1352