1 //===- SROA.cpp - Scalar Replacement Of Aggregates ------------------------===//
2 //
3 //                     The LLVM Compiler Infrastructure
4 //
5 // This file is distributed under the University of Illinois Open Source
6 // License. See LICENSE.TXT for details.
7 //
8 //===----------------------------------------------------------------------===//
9 /// \file
10 /// This transformation implements the well known scalar replacement of
11 /// aggregates transformation. It tries to identify promotable elements of an
12 /// aggregate alloca, and promote them to registers. It will also try to
13 /// convert uses of an element (or set of elements) of an alloca into a vector
14 /// or bitfield-style integer scalar if appropriate.
15 ///
16 /// It works to do this with minimal slicing of the alloca so that regions
17 /// which are merely transferred in and out of external memory remain unchanged
18 /// and are not decomposed to scalar code.
19 ///
20 /// Because this also performs alloca promotion, it can be thought of as also
21 /// serving the purpose of SSA formation. The algorithm iterates on the
22 /// function until all opportunities for promotion have been realized.
23 ///
24 //===----------------------------------------------------------------------===//
25 
26 #include "llvm/Transforms/Scalar/SROA.h"
27 #include "llvm/ADT/STLExtras.h"
28 #include "llvm/ADT/SmallVector.h"
29 #include "llvm/ADT/Statistic.h"
30 #include "llvm/Analysis/AssumptionCache.h"
31 #include "llvm/Analysis/GlobalsModRef.h"
32 #include "llvm/Analysis/Loads.h"
33 #include "llvm/Analysis/PtrUseVisitor.h"
34 #include "llvm/Analysis/ValueTracking.h"
35 #include "llvm/IR/Constants.h"
36 #include "llvm/IR/DIBuilder.h"
37 #include "llvm/IR/DataLayout.h"
38 #include "llvm/IR/DebugInfo.h"
39 #include "llvm/IR/DerivedTypes.h"
40 #include "llvm/IR/IRBuilder.h"
41 #include "llvm/IR/InstVisitor.h"
42 #include "llvm/IR/Instructions.h"
43 #include "llvm/IR/IntrinsicInst.h"
44 #include "llvm/IR/LLVMContext.h"
45 #include "llvm/IR/Operator.h"
46 #include "llvm/Pass.h"
47 #include "llvm/Support/CommandLine.h"
48 #include "llvm/Support/Compiler.h"
49 #include "llvm/Support/Debug.h"
50 #include "llvm/Support/ErrorHandling.h"
51 #include "llvm/Support/MathExtras.h"
52 #include "llvm/Support/TimeValue.h"
53 #include "llvm/Support/raw_ostream.h"
54 #include "llvm/Transforms/Scalar.h"
55 #include "llvm/Transforms/Utils/Local.h"
56 #include "llvm/Transforms/Utils/PromoteMemToReg.h"
57 
58 #ifndef NDEBUG
59 // We only use this for a debug check.
60 #include <random>
61 #endif
62 
63 using namespace llvm;
64 using namespace llvm::sroa;
65 
66 #define DEBUG_TYPE "sroa"
67 
68 STATISTIC(NumAllocasAnalyzed, "Number of allocas analyzed for replacement");
69 STATISTIC(NumAllocaPartitions, "Number of alloca partitions formed");
70 STATISTIC(MaxPartitionsPerAlloca, "Maximum number of partitions per alloca");
71 STATISTIC(NumAllocaPartitionUses, "Number of alloca partition uses rewritten");
72 STATISTIC(MaxUsesPerAllocaPartition, "Maximum number of uses of a partition");
73 STATISTIC(NumNewAllocas, "Number of new, smaller allocas introduced");
74 STATISTIC(NumPromoted, "Number of allocas promoted to SSA values");
75 STATISTIC(NumLoadsSpeculated, "Number of loads speculated to allow promotion");
76 STATISTIC(NumDeleted, "Number of instructions deleted");
77 STATISTIC(NumVectorized, "Number of vectorized aggregates");
78 
79 /// Hidden option to enable randomly shuffling the slices to help uncover
80 /// instability in their order.
81 static cl::opt<bool> SROARandomShuffleSlices("sroa-random-shuffle-slices",
82                                              cl::init(false), cl::Hidden);
83 
84 /// Hidden option to experiment with completely strict handling of inbounds
85 /// GEPs.
86 static cl::opt<bool> SROAStrictInbounds("sroa-strict-inbounds", cl::init(false),
87                                         cl::Hidden);
88 
89 namespace {
90 /// \brief A custom IRBuilder inserter which prefixes all names, but only in
91 /// Assert builds.
92 class IRBuilderPrefixedInserter : public IRBuilderDefaultInserter {
93   std::string Prefix;
94   const Twine getNameWithPrefix(const Twine &Name) const {
95     return Name.isTriviallyEmpty() ? Name : Prefix + Name;
96   }
97 
98 public:
99   void SetNamePrefix(const Twine &P) { Prefix = P.str(); }
100 
101 protected:
102   void InsertHelper(Instruction *I, const Twine &Name, BasicBlock *BB,
103                     BasicBlock::iterator InsertPt) const {
104     IRBuilderDefaultInserter::InsertHelper(I, getNameWithPrefix(Name), BB,
105                                            InsertPt);
106   }
107 };
108 
109 /// \brief Provide a typedef for IRBuilder that drops names in release builds.
110 using IRBuilderTy = llvm::IRBuilder<ConstantFolder, IRBuilderPrefixedInserter>;
111 }
112 
113 namespace {
114 /// \brief A used slice of an alloca.
115 ///
116 /// This structure represents a slice of an alloca used by some instruction. It
117 /// stores both the begin and end offsets of this use, a pointer to the use
118 /// itself, and a flag indicating whether we can classify the use as splittable
119 /// or not when forming partitions of the alloca.
120 class Slice {
121   /// \brief The beginning offset of the range.
122   uint64_t BeginOffset;
123 
124   /// \brief The ending offset, not included in the range.
125   uint64_t EndOffset;
126 
127   /// \brief Storage for both the use of this slice and whether it can be
128   /// split.
129   PointerIntPair<Use *, 1, bool> UseAndIsSplittable;
130 
131 public:
132   Slice() : BeginOffset(), EndOffset() {}
133   Slice(uint64_t BeginOffset, uint64_t EndOffset, Use *U, bool IsSplittable)
134       : BeginOffset(BeginOffset), EndOffset(EndOffset),
135         UseAndIsSplittable(U, IsSplittable) {}
136 
137   uint64_t beginOffset() const { return BeginOffset; }
138   uint64_t endOffset() const { return EndOffset; }
139 
140   bool isSplittable() const { return UseAndIsSplittable.getInt(); }
141   void makeUnsplittable() { UseAndIsSplittable.setInt(false); }
142 
143   Use *getUse() const { return UseAndIsSplittable.getPointer(); }
144 
145   bool isDead() const { return getUse() == nullptr; }
146   void kill() { UseAndIsSplittable.setPointer(nullptr); }
147 
148   /// \brief Support for ordering ranges.
149   ///
150   /// This provides an ordering over ranges such that start offsets are
151   /// always increasing, and within equal start offsets, the end offsets are
152   /// decreasing. Thus the spanning range comes first in a cluster with the
153   /// same start position.
154   bool operator<(const Slice &RHS) const {
155     if (beginOffset() < RHS.beginOffset())
156       return true;
157     if (beginOffset() > RHS.beginOffset())
158       return false;
159     if (isSplittable() != RHS.isSplittable())
160       return !isSplittable();
161     if (endOffset() > RHS.endOffset())
162       return true;
163     return false;
164   }
165 
166   /// \brief Support comparison with a single offset to allow binary searches.
167   friend LLVM_ATTRIBUTE_UNUSED bool operator<(const Slice &LHS,
168                                               uint64_t RHSOffset) {
169     return LHS.beginOffset() < RHSOffset;
170   }
171   friend LLVM_ATTRIBUTE_UNUSED bool operator<(uint64_t LHSOffset,
172                                               const Slice &RHS) {
173     return LHSOffset < RHS.beginOffset();
174   }
175 
176   bool operator==(const Slice &RHS) const {
177     return isSplittable() == RHS.isSplittable() &&
178            beginOffset() == RHS.beginOffset() && endOffset() == RHS.endOffset();
179   }
180   bool operator!=(const Slice &RHS) const { return !operator==(RHS); }
181 };
182 } // end anonymous namespace
183 
184 namespace llvm {
185 template <typename T> struct isPodLike;
186 template <> struct isPodLike<Slice> { static const bool value = true; };
187 }
188 
189 /// \brief Representation of the alloca slices.
190 ///
191 /// This class represents the slices of an alloca which are formed by its
192 /// various uses. If a pointer escapes, we can't fully build a representation
193 /// for the slices used and we reflect that in this structure. The uses are
194 /// stored, sorted by increasing beginning offset and with unsplittable slices
195 /// starting at a particular offset before splittable slices.
196 class llvm::sroa::AllocaSlices {
197 public:
198   /// \brief Construct the slices of a particular alloca.
199   AllocaSlices(const DataLayout &DL, AllocaInst &AI);
200 
201   /// \brief Test whether a pointer to the allocation escapes our analysis.
202   ///
203   /// If this is true, the slices are never fully built and should be
204   /// ignored.
205   bool isEscaped() const { return PointerEscapingInstr; }
206 
207   /// \brief Support for iterating over the slices.
208   /// @{
209   typedef SmallVectorImpl<Slice>::iterator iterator;
210   typedef iterator_range<iterator> range;
211   iterator begin() { return Slices.begin(); }
212   iterator end() { return Slices.end(); }
213 
214   typedef SmallVectorImpl<Slice>::const_iterator const_iterator;
215   typedef iterator_range<const_iterator> const_range;
216   const_iterator begin() const { return Slices.begin(); }
217   const_iterator end() const { return Slices.end(); }
218   /// @}
219 
220   /// \brief Erase a range of slices.
221   void erase(iterator Start, iterator Stop) { Slices.erase(Start, Stop); }
222 
223   /// \brief Insert new slices for this alloca.
224   ///
225   /// This moves the slices into the alloca's slices collection, and re-sorts
226   /// everything so that the usual ordering properties of the alloca's slices
227   /// hold.
228   void insert(ArrayRef<Slice> NewSlices) {
229     int OldSize = Slices.size();
230     Slices.append(NewSlices.begin(), NewSlices.end());
231     auto SliceI = Slices.begin() + OldSize;
232     std::sort(SliceI, Slices.end());
233     std::inplace_merge(Slices.begin(), SliceI, Slices.end());
234   }
235 
236   // Forward declare the iterator and range accessor for walking the
237   // partitions.
238   class partition_iterator;
239   iterator_range<partition_iterator> partitions();
240 
241   /// \brief Access the dead users for this alloca.
242   ArrayRef<Instruction *> getDeadUsers() const { return DeadUsers; }
243 
244   /// \brief Access the dead operands referring to this alloca.
245   ///
246   /// These are operands which have cannot actually be used to refer to the
247   /// alloca as they are outside its range and the user doesn't correct for
248   /// that. These mostly consist of PHI node inputs and the like which we just
249   /// need to replace with undef.
250   ArrayRef<Use *> getDeadOperands() const { return DeadOperands; }
251 
252 #if !defined(NDEBUG) || defined(LLVM_ENABLE_DUMP)
253   void print(raw_ostream &OS, const_iterator I, StringRef Indent = "  ") const;
254   void printSlice(raw_ostream &OS, const_iterator I,
255                   StringRef Indent = "  ") const;
256   void printUse(raw_ostream &OS, const_iterator I,
257                 StringRef Indent = "  ") const;
258   void print(raw_ostream &OS) const;
259   void dump(const_iterator I) const;
260   void dump() const;
261 #endif
262 
263 private:
264   template <typename DerivedT, typename RetT = void> class BuilderBase;
265   class SliceBuilder;
266   friend class AllocaSlices::SliceBuilder;
267 
268 #if !defined(NDEBUG) || defined(LLVM_ENABLE_DUMP)
269   /// \brief Handle to alloca instruction to simplify method interfaces.
270   AllocaInst &AI;
271 #endif
272 
273   /// \brief The instruction responsible for this alloca not having a known set
274   /// of slices.
275   ///
276   /// When an instruction (potentially) escapes the pointer to the alloca, we
277   /// store a pointer to that here and abort trying to form slices of the
278   /// alloca. This will be null if the alloca slices are analyzed successfully.
279   Instruction *PointerEscapingInstr;
280 
281   /// \brief The slices of the alloca.
282   ///
283   /// We store a vector of the slices formed by uses of the alloca here. This
284   /// vector is sorted by increasing begin offset, and then the unsplittable
285   /// slices before the splittable ones. See the Slice inner class for more
286   /// details.
287   SmallVector<Slice, 8> Slices;
288 
289   /// \brief Instructions which will become dead if we rewrite the alloca.
290   ///
291   /// Note that these are not separated by slice. This is because we expect an
292   /// alloca to be completely rewritten or not rewritten at all. If rewritten,
293   /// all these instructions can simply be removed and replaced with undef as
294   /// they come from outside of the allocated space.
295   SmallVector<Instruction *, 8> DeadUsers;
296 
297   /// \brief Operands which will become dead if we rewrite the alloca.
298   ///
299   /// These are operands that in their particular use can be replaced with
300   /// undef when we rewrite the alloca. These show up in out-of-bounds inputs
301   /// to PHI nodes and the like. They aren't entirely dead (there might be
302   /// a GEP back into the bounds using it elsewhere) and nor is the PHI, but we
303   /// want to swap this particular input for undef to simplify the use lists of
304   /// the alloca.
305   SmallVector<Use *, 8> DeadOperands;
306 };
307 
308 /// \brief A partition of the slices.
309 ///
310 /// An ephemeral representation for a range of slices which can be viewed as
311 /// a partition of the alloca. This range represents a span of the alloca's
312 /// memory which cannot be split, and provides access to all of the slices
313 /// overlapping some part of the partition.
314 ///
315 /// Objects of this type are produced by traversing the alloca's slices, but
316 /// are only ephemeral and not persistent.
317 class llvm::sroa::Partition {
318 private:
319   friend class AllocaSlices;
320   friend class AllocaSlices::partition_iterator;
321 
322   typedef AllocaSlices::iterator iterator;
323 
324   /// \brief The beginning and ending offsets of the alloca for this
325   /// partition.
326   uint64_t BeginOffset, EndOffset;
327 
328   /// \brief The start end end iterators of this partition.
329   iterator SI, SJ;
330 
331   /// \brief A collection of split slice tails overlapping the partition.
332   SmallVector<Slice *, 4> SplitTails;
333 
334   /// \brief Raw constructor builds an empty partition starting and ending at
335   /// the given iterator.
336   Partition(iterator SI) : SI(SI), SJ(SI) {}
337 
338 public:
339   /// \brief The start offset of this partition.
340   ///
341   /// All of the contained slices start at or after this offset.
342   uint64_t beginOffset() const { return BeginOffset; }
343 
344   /// \brief The end offset of this partition.
345   ///
346   /// All of the contained slices end at or before this offset.
347   uint64_t endOffset() const { return EndOffset; }
348 
349   /// \brief The size of the partition.
350   ///
351   /// Note that this can never be zero.
352   uint64_t size() const {
353     assert(BeginOffset < EndOffset && "Partitions must span some bytes!");
354     return EndOffset - BeginOffset;
355   }
356 
357   /// \brief Test whether this partition contains no slices, and merely spans
358   /// a region occupied by split slices.
359   bool empty() const { return SI == SJ; }
360 
361   /// \name Iterate slices that start within the partition.
362   /// These may be splittable or unsplittable. They have a begin offset >= the
363   /// partition begin offset.
364   /// @{
365   // FIXME: We should probably define a "concat_iterator" helper and use that
366   // to stitch together pointee_iterators over the split tails and the
367   // contiguous iterators of the partition. That would give a much nicer
368   // interface here. We could then additionally expose filtered iterators for
369   // split, unsplit, and unsplittable splices based on the usage patterns.
370   iterator begin() const { return SI; }
371   iterator end() const { return SJ; }
372   /// @}
373 
374   /// \brief Get the sequence of split slice tails.
375   ///
376   /// These tails are of slices which start before this partition but are
377   /// split and overlap into the partition. We accumulate these while forming
378   /// partitions.
379   ArrayRef<Slice *> splitSliceTails() const { return SplitTails; }
380 };
381 
382 /// \brief An iterator over partitions of the alloca's slices.
383 ///
384 /// This iterator implements the core algorithm for partitioning the alloca's
385 /// slices. It is a forward iterator as we don't support backtracking for
386 /// efficiency reasons, and re-use a single storage area to maintain the
387 /// current set of split slices.
388 ///
389 /// It is templated on the slice iterator type to use so that it can operate
390 /// with either const or non-const slice iterators.
391 class AllocaSlices::partition_iterator
392     : public iterator_facade_base<partition_iterator, std::forward_iterator_tag,
393                                   Partition> {
394   friend class AllocaSlices;
395 
396   /// \brief Most of the state for walking the partitions is held in a class
397   /// with a nice interface for examining them.
398   Partition P;
399 
400   /// \brief We need to keep the end of the slices to know when to stop.
401   AllocaSlices::iterator SE;
402 
403   /// \brief We also need to keep track of the maximum split end offset seen.
404   /// FIXME: Do we really?
405   uint64_t MaxSplitSliceEndOffset;
406 
407   /// \brief Sets the partition to be empty at given iterator, and sets the
408   /// end iterator.
409   partition_iterator(AllocaSlices::iterator SI, AllocaSlices::iterator SE)
410       : P(SI), SE(SE), MaxSplitSliceEndOffset(0) {
411     // If not already at the end, advance our state to form the initial
412     // partition.
413     if (SI != SE)
414       advance();
415   }
416 
417   /// \brief Advance the iterator to the next partition.
418   ///
419   /// Requires that the iterator not be at the end of the slices.
420   void advance() {
421     assert((P.SI != SE || !P.SplitTails.empty()) &&
422            "Cannot advance past the end of the slices!");
423 
424     // Clear out any split uses which have ended.
425     if (!P.SplitTails.empty()) {
426       if (P.EndOffset >= MaxSplitSliceEndOffset) {
427         // If we've finished all splits, this is easy.
428         P.SplitTails.clear();
429         MaxSplitSliceEndOffset = 0;
430       } else {
431         // Remove the uses which have ended in the prior partition. This
432         // cannot change the max split slice end because we just checked that
433         // the prior partition ended prior to that max.
434         P.SplitTails.erase(
435             std::remove_if(
436                 P.SplitTails.begin(), P.SplitTails.end(),
437                 [&](Slice *S) { return S->endOffset() <= P.EndOffset; }),
438             P.SplitTails.end());
439         assert(std::any_of(P.SplitTails.begin(), P.SplitTails.end(),
440                            [&](Slice *S) {
441                              return S->endOffset() == MaxSplitSliceEndOffset;
442                            }) &&
443                "Could not find the current max split slice offset!");
444         assert(std::all_of(P.SplitTails.begin(), P.SplitTails.end(),
445                            [&](Slice *S) {
446                              return S->endOffset() <= MaxSplitSliceEndOffset;
447                            }) &&
448                "Max split slice end offset is not actually the max!");
449       }
450     }
451 
452     // If P.SI is already at the end, then we've cleared the split tail and
453     // now have an end iterator.
454     if (P.SI == SE) {
455       assert(P.SplitTails.empty() && "Failed to clear the split slices!");
456       return;
457     }
458 
459     // If we had a non-empty partition previously, set up the state for
460     // subsequent partitions.
461     if (P.SI != P.SJ) {
462       // Accumulate all the splittable slices which started in the old
463       // partition into the split list.
464       for (Slice &S : P)
465         if (S.isSplittable() && S.endOffset() > P.EndOffset) {
466           P.SplitTails.push_back(&S);
467           MaxSplitSliceEndOffset =
468               std::max(S.endOffset(), MaxSplitSliceEndOffset);
469         }
470 
471       // Start from the end of the previous partition.
472       P.SI = P.SJ;
473 
474       // If P.SI is now at the end, we at most have a tail of split slices.
475       if (P.SI == SE) {
476         P.BeginOffset = P.EndOffset;
477         P.EndOffset = MaxSplitSliceEndOffset;
478         return;
479       }
480 
481       // If the we have split slices and the next slice is after a gap and is
482       // not splittable immediately form an empty partition for the split
483       // slices up until the next slice begins.
484       if (!P.SplitTails.empty() && P.SI->beginOffset() != P.EndOffset &&
485           !P.SI->isSplittable()) {
486         P.BeginOffset = P.EndOffset;
487         P.EndOffset = P.SI->beginOffset();
488         return;
489       }
490     }
491 
492     // OK, we need to consume new slices. Set the end offset based on the
493     // current slice, and step SJ past it. The beginning offset of the
494     // partition is the beginning offset of the next slice unless we have
495     // pre-existing split slices that are continuing, in which case we begin
496     // at the prior end offset.
497     P.BeginOffset = P.SplitTails.empty() ? P.SI->beginOffset() : P.EndOffset;
498     P.EndOffset = P.SI->endOffset();
499     ++P.SJ;
500 
501     // There are two strategies to form a partition based on whether the
502     // partition starts with an unsplittable slice or a splittable slice.
503     if (!P.SI->isSplittable()) {
504       // When we're forming an unsplittable region, it must always start at
505       // the first slice and will extend through its end.
506       assert(P.BeginOffset == P.SI->beginOffset());
507 
508       // Form a partition including all of the overlapping slices with this
509       // unsplittable slice.
510       while (P.SJ != SE && P.SJ->beginOffset() < P.EndOffset) {
511         if (!P.SJ->isSplittable())
512           P.EndOffset = std::max(P.EndOffset, P.SJ->endOffset());
513         ++P.SJ;
514       }
515 
516       // We have a partition across a set of overlapping unsplittable
517       // partitions.
518       return;
519     }
520 
521     // If we're starting with a splittable slice, then we need to form
522     // a synthetic partition spanning it and any other overlapping splittable
523     // splices.
524     assert(P.SI->isSplittable() && "Forming a splittable partition!");
525 
526     // Collect all of the overlapping splittable slices.
527     while (P.SJ != SE && P.SJ->beginOffset() < P.EndOffset &&
528            P.SJ->isSplittable()) {
529       P.EndOffset = std::max(P.EndOffset, P.SJ->endOffset());
530       ++P.SJ;
531     }
532 
533     // Back upiP.EndOffset if we ended the span early when encountering an
534     // unsplittable slice. This synthesizes the early end offset of
535     // a partition spanning only splittable slices.
536     if (P.SJ != SE && P.SJ->beginOffset() < P.EndOffset) {
537       assert(!P.SJ->isSplittable());
538       P.EndOffset = P.SJ->beginOffset();
539     }
540   }
541 
542 public:
543   bool operator==(const partition_iterator &RHS) const {
544     assert(SE == RHS.SE &&
545            "End iterators don't match between compared partition iterators!");
546 
547     // The observed positions of partitions is marked by the P.SI iterator and
548     // the emptiness of the split slices. The latter is only relevant when
549     // P.SI == SE, as the end iterator will additionally have an empty split
550     // slices list, but the prior may have the same P.SI and a tail of split
551     // slices.
552     if (P.SI == RHS.P.SI && P.SplitTails.empty() == RHS.P.SplitTails.empty()) {
553       assert(P.SJ == RHS.P.SJ &&
554              "Same set of slices formed two different sized partitions!");
555       assert(P.SplitTails.size() == RHS.P.SplitTails.size() &&
556              "Same slice position with differently sized non-empty split "
557              "slice tails!");
558       return true;
559     }
560     return false;
561   }
562 
563   partition_iterator &operator++() {
564     advance();
565     return *this;
566   }
567 
568   Partition &operator*() { return P; }
569 };
570 
571 /// \brief A forward range over the partitions of the alloca's slices.
572 ///
573 /// This accesses an iterator range over the partitions of the alloca's
574 /// slices. It computes these partitions on the fly based on the overlapping
575 /// offsets of the slices and the ability to split them. It will visit "empty"
576 /// partitions to cover regions of the alloca only accessed via split
577 /// slices.
578 iterator_range<AllocaSlices::partition_iterator> AllocaSlices::partitions() {
579   return make_range(partition_iterator(begin(), end()),
580                     partition_iterator(end(), end()));
581 }
582 
583 static Value *foldSelectInst(SelectInst &SI) {
584   // If the condition being selected on is a constant or the same value is
585   // being selected between, fold the select. Yes this does (rarely) happen
586   // early on.
587   if (ConstantInt *CI = dyn_cast<ConstantInt>(SI.getCondition()))
588     return SI.getOperand(1 + CI->isZero());
589   if (SI.getOperand(1) == SI.getOperand(2))
590     return SI.getOperand(1);
591 
592   return nullptr;
593 }
594 
595 /// \brief A helper that folds a PHI node or a select.
596 static Value *foldPHINodeOrSelectInst(Instruction &I) {
597   if (PHINode *PN = dyn_cast<PHINode>(&I)) {
598     // If PN merges together the same value, return that value.
599     return PN->hasConstantValue();
600   }
601   return foldSelectInst(cast<SelectInst>(I));
602 }
603 
604 /// \brief Builder for the alloca slices.
605 ///
606 /// This class builds a set of alloca slices by recursively visiting the uses
607 /// of an alloca and making a slice for each load and store at each offset.
608 class AllocaSlices::SliceBuilder : public PtrUseVisitor<SliceBuilder> {
609   friend class PtrUseVisitor<SliceBuilder>;
610   friend class InstVisitor<SliceBuilder>;
611   typedef PtrUseVisitor<SliceBuilder> Base;
612 
613   const uint64_t AllocSize;
614   AllocaSlices &AS;
615 
616   SmallDenseMap<Instruction *, unsigned> MemTransferSliceMap;
617   SmallDenseMap<Instruction *, uint64_t> PHIOrSelectSizes;
618 
619   /// \brief Set to de-duplicate dead instructions found in the use walk.
620   SmallPtrSet<Instruction *, 4> VisitedDeadInsts;
621 
622 public:
623   SliceBuilder(const DataLayout &DL, AllocaInst &AI, AllocaSlices &AS)
624       : PtrUseVisitor<SliceBuilder>(DL),
625         AllocSize(DL.getTypeAllocSize(AI.getAllocatedType())), AS(AS) {}
626 
627 private:
628   void markAsDead(Instruction &I) {
629     if (VisitedDeadInsts.insert(&I).second)
630       AS.DeadUsers.push_back(&I);
631   }
632 
633   void insertUse(Instruction &I, const APInt &Offset, uint64_t Size,
634                  bool IsSplittable = false) {
635     // Completely skip uses which have a zero size or start either before or
636     // past the end of the allocation.
637     if (Size == 0 || Offset.uge(AllocSize)) {
638       DEBUG(dbgs() << "WARNING: Ignoring " << Size << " byte use @" << Offset
639                    << " which has zero size or starts outside of the "
640                    << AllocSize << " byte alloca:\n"
641                    << "    alloca: " << AS.AI << "\n"
642                    << "       use: " << I << "\n");
643       return markAsDead(I);
644     }
645 
646     uint64_t BeginOffset = Offset.getZExtValue();
647     uint64_t EndOffset = BeginOffset + Size;
648 
649     // Clamp the end offset to the end of the allocation. Note that this is
650     // formulated to handle even the case where "BeginOffset + Size" overflows.
651     // This may appear superficially to be something we could ignore entirely,
652     // but that is not so! There may be widened loads or PHI-node uses where
653     // some instructions are dead but not others. We can't completely ignore
654     // them, and so have to record at least the information here.
655     assert(AllocSize >= BeginOffset); // Established above.
656     if (Size > AllocSize - BeginOffset) {
657       DEBUG(dbgs() << "WARNING: Clamping a " << Size << " byte use @" << Offset
658                    << " to remain within the " << AllocSize << " byte alloca:\n"
659                    << "    alloca: " << AS.AI << "\n"
660                    << "       use: " << I << "\n");
661       EndOffset = AllocSize;
662     }
663 
664     AS.Slices.push_back(Slice(BeginOffset, EndOffset, U, IsSplittable));
665   }
666 
667   void visitBitCastInst(BitCastInst &BC) {
668     if (BC.use_empty())
669       return markAsDead(BC);
670 
671     return Base::visitBitCastInst(BC);
672   }
673 
674   void visitGetElementPtrInst(GetElementPtrInst &GEPI) {
675     if (GEPI.use_empty())
676       return markAsDead(GEPI);
677 
678     if (SROAStrictInbounds && GEPI.isInBounds()) {
679       // FIXME: This is a manually un-factored variant of the basic code inside
680       // of GEPs with checking of the inbounds invariant specified in the
681       // langref in a very strict sense. If we ever want to enable
682       // SROAStrictInbounds, this code should be factored cleanly into
683       // PtrUseVisitor, but it is easier to experiment with SROAStrictInbounds
684       // by writing out the code here where we have the underlying allocation
685       // size readily available.
686       APInt GEPOffset = Offset;
687       const DataLayout &DL = GEPI.getModule()->getDataLayout();
688       for (gep_type_iterator GTI = gep_type_begin(GEPI),
689                              GTE = gep_type_end(GEPI);
690            GTI != GTE; ++GTI) {
691         ConstantInt *OpC = dyn_cast<ConstantInt>(GTI.getOperand());
692         if (!OpC)
693           break;
694 
695         // Handle a struct index, which adds its field offset to the pointer.
696         if (StructType *STy = dyn_cast<StructType>(*GTI)) {
697           unsigned ElementIdx = OpC->getZExtValue();
698           const StructLayout *SL = DL.getStructLayout(STy);
699           GEPOffset +=
700               APInt(Offset.getBitWidth(), SL->getElementOffset(ElementIdx));
701         } else {
702           // For array or vector indices, scale the index by the size of the
703           // type.
704           APInt Index = OpC->getValue().sextOrTrunc(Offset.getBitWidth());
705           GEPOffset += Index * APInt(Offset.getBitWidth(),
706                                      DL.getTypeAllocSize(GTI.getIndexedType()));
707         }
708 
709         // If this index has computed an intermediate pointer which is not
710         // inbounds, then the result of the GEP is a poison value and we can
711         // delete it and all uses.
712         if (GEPOffset.ugt(AllocSize))
713           return markAsDead(GEPI);
714       }
715     }
716 
717     return Base::visitGetElementPtrInst(GEPI);
718   }
719 
720   void handleLoadOrStore(Type *Ty, Instruction &I, const APInt &Offset,
721                          uint64_t Size, bool IsVolatile) {
722     // We allow splitting of non-volatile loads and stores where the type is an
723     // integer type. These may be used to implement 'memcpy' or other "transfer
724     // of bits" patterns.
725     bool IsSplittable = Ty->isIntegerTy() && !IsVolatile;
726 
727     insertUse(I, Offset, Size, IsSplittable);
728   }
729 
730   void visitLoadInst(LoadInst &LI) {
731     assert((!LI.isSimple() || LI.getType()->isSingleValueType()) &&
732            "All simple FCA loads should have been pre-split");
733 
734     if (!IsOffsetKnown)
735       return PI.setAborted(&LI);
736 
737     const DataLayout &DL = LI.getModule()->getDataLayout();
738     uint64_t Size = DL.getTypeStoreSize(LI.getType());
739     return handleLoadOrStore(LI.getType(), LI, Offset, Size, LI.isVolatile());
740   }
741 
742   void visitStoreInst(StoreInst &SI) {
743     Value *ValOp = SI.getValueOperand();
744     if (ValOp == *U)
745       return PI.setEscapedAndAborted(&SI);
746     if (!IsOffsetKnown)
747       return PI.setAborted(&SI);
748 
749     const DataLayout &DL = SI.getModule()->getDataLayout();
750     uint64_t Size = DL.getTypeStoreSize(ValOp->getType());
751 
752     // If this memory access can be shown to *statically* extend outside the
753     // bounds of of the allocation, it's behavior is undefined, so simply
754     // ignore it. Note that this is more strict than the generic clamping
755     // behavior of insertUse. We also try to handle cases which might run the
756     // risk of overflow.
757     // FIXME: We should instead consider the pointer to have escaped if this
758     // function is being instrumented for addressing bugs or race conditions.
759     if (Size > AllocSize || Offset.ugt(AllocSize - Size)) {
760       DEBUG(dbgs() << "WARNING: Ignoring " << Size << " byte store @" << Offset
761                    << " which extends past the end of the " << AllocSize
762                    << " byte alloca:\n"
763                    << "    alloca: " << AS.AI << "\n"
764                    << "       use: " << SI << "\n");
765       return markAsDead(SI);
766     }
767 
768     assert((!SI.isSimple() || ValOp->getType()->isSingleValueType()) &&
769            "All simple FCA stores should have been pre-split");
770     handleLoadOrStore(ValOp->getType(), SI, Offset, Size, SI.isVolatile());
771   }
772 
773   void visitMemSetInst(MemSetInst &II) {
774     assert(II.getRawDest() == *U && "Pointer use is not the destination?");
775     ConstantInt *Length = dyn_cast<ConstantInt>(II.getLength());
776     if ((Length && Length->getValue() == 0) ||
777         (IsOffsetKnown && Offset.uge(AllocSize)))
778       // Zero-length mem transfer intrinsics can be ignored entirely.
779       return markAsDead(II);
780 
781     if (!IsOffsetKnown)
782       return PI.setAborted(&II);
783 
784     insertUse(II, Offset, Length ? Length->getLimitedValue()
785                                  : AllocSize - Offset.getLimitedValue(),
786               (bool)Length);
787   }
788 
789   void visitMemTransferInst(MemTransferInst &II) {
790     ConstantInt *Length = dyn_cast<ConstantInt>(II.getLength());
791     if (Length && Length->getValue() == 0)
792       // Zero-length mem transfer intrinsics can be ignored entirely.
793       return markAsDead(II);
794 
795     // Because we can visit these intrinsics twice, also check to see if the
796     // first time marked this instruction as dead. If so, skip it.
797     if (VisitedDeadInsts.count(&II))
798       return;
799 
800     if (!IsOffsetKnown)
801       return PI.setAborted(&II);
802 
803     // This side of the transfer is completely out-of-bounds, and so we can
804     // nuke the entire transfer. However, we also need to nuke the other side
805     // if already added to our partitions.
806     // FIXME: Yet another place we really should bypass this when
807     // instrumenting for ASan.
808     if (Offset.uge(AllocSize)) {
809       SmallDenseMap<Instruction *, unsigned>::iterator MTPI =
810           MemTransferSliceMap.find(&II);
811       if (MTPI != MemTransferSliceMap.end())
812         AS.Slices[MTPI->second].kill();
813       return markAsDead(II);
814     }
815 
816     uint64_t RawOffset = Offset.getLimitedValue();
817     uint64_t Size = Length ? Length->getLimitedValue() : AllocSize - RawOffset;
818 
819     // Check for the special case where the same exact value is used for both
820     // source and dest.
821     if (*U == II.getRawDest() && *U == II.getRawSource()) {
822       // For non-volatile transfers this is a no-op.
823       if (!II.isVolatile())
824         return markAsDead(II);
825 
826       return insertUse(II, Offset, Size, /*IsSplittable=*/false);
827     }
828 
829     // If we have seen both source and destination for a mem transfer, then
830     // they both point to the same alloca.
831     bool Inserted;
832     SmallDenseMap<Instruction *, unsigned>::iterator MTPI;
833     std::tie(MTPI, Inserted) =
834         MemTransferSliceMap.insert(std::make_pair(&II, AS.Slices.size()));
835     unsigned PrevIdx = MTPI->second;
836     if (!Inserted) {
837       Slice &PrevP = AS.Slices[PrevIdx];
838 
839       // Check if the begin offsets match and this is a non-volatile transfer.
840       // In that case, we can completely elide the transfer.
841       if (!II.isVolatile() && PrevP.beginOffset() == RawOffset) {
842         PrevP.kill();
843         return markAsDead(II);
844       }
845 
846       // Otherwise we have an offset transfer within the same alloca. We can't
847       // split those.
848       PrevP.makeUnsplittable();
849     }
850 
851     // Insert the use now that we've fixed up the splittable nature.
852     insertUse(II, Offset, Size, /*IsSplittable=*/Inserted && Length);
853 
854     // Check that we ended up with a valid index in the map.
855     assert(AS.Slices[PrevIdx].getUse()->getUser() == &II &&
856            "Map index doesn't point back to a slice with this user.");
857   }
858 
859   // Disable SRoA for any intrinsics except for lifetime invariants.
860   // FIXME: What about debug intrinsics? This matches old behavior, but
861   // doesn't make sense.
862   void visitIntrinsicInst(IntrinsicInst &II) {
863     if (!IsOffsetKnown)
864       return PI.setAborted(&II);
865 
866     if (II.getIntrinsicID() == Intrinsic::lifetime_start ||
867         II.getIntrinsicID() == Intrinsic::lifetime_end) {
868       ConstantInt *Length = cast<ConstantInt>(II.getArgOperand(0));
869       uint64_t Size = std::min(AllocSize - Offset.getLimitedValue(),
870                                Length->getLimitedValue());
871       insertUse(II, Offset, Size, true);
872       return;
873     }
874 
875     Base::visitIntrinsicInst(II);
876   }
877 
878   Instruction *hasUnsafePHIOrSelectUse(Instruction *Root, uint64_t &Size) {
879     // We consider any PHI or select that results in a direct load or store of
880     // the same offset to be a viable use for slicing purposes. These uses
881     // are considered unsplittable and the size is the maximum loaded or stored
882     // size.
883     SmallPtrSet<Instruction *, 4> Visited;
884     SmallVector<std::pair<Instruction *, Instruction *>, 4> Uses;
885     Visited.insert(Root);
886     Uses.push_back(std::make_pair(cast<Instruction>(*U), Root));
887     const DataLayout &DL = Root->getModule()->getDataLayout();
888     // If there are no loads or stores, the access is dead. We mark that as
889     // a size zero access.
890     Size = 0;
891     do {
892       Instruction *I, *UsedI;
893       std::tie(UsedI, I) = Uses.pop_back_val();
894 
895       if (LoadInst *LI = dyn_cast<LoadInst>(I)) {
896         Size = std::max(Size, DL.getTypeStoreSize(LI->getType()));
897         continue;
898       }
899       if (StoreInst *SI = dyn_cast<StoreInst>(I)) {
900         Value *Op = SI->getOperand(0);
901         if (Op == UsedI)
902           return SI;
903         Size = std::max(Size, DL.getTypeStoreSize(Op->getType()));
904         continue;
905       }
906 
907       if (GetElementPtrInst *GEP = dyn_cast<GetElementPtrInst>(I)) {
908         if (!GEP->hasAllZeroIndices())
909           return GEP;
910       } else if (!isa<BitCastInst>(I) && !isa<PHINode>(I) &&
911                  !isa<SelectInst>(I)) {
912         return I;
913       }
914 
915       for (User *U : I->users())
916         if (Visited.insert(cast<Instruction>(U)).second)
917           Uses.push_back(std::make_pair(I, cast<Instruction>(U)));
918     } while (!Uses.empty());
919 
920     return nullptr;
921   }
922 
923   void visitPHINodeOrSelectInst(Instruction &I) {
924     assert(isa<PHINode>(I) || isa<SelectInst>(I));
925     if (I.use_empty())
926       return markAsDead(I);
927 
928     // TODO: We could use SimplifyInstruction here to fold PHINodes and
929     // SelectInsts. However, doing so requires to change the current
930     // dead-operand-tracking mechanism. For instance, suppose neither loading
931     // from %U nor %other traps. Then "load (select undef, %U, %other)" does not
932     // trap either.  However, if we simply replace %U with undef using the
933     // current dead-operand-tracking mechanism, "load (select undef, undef,
934     // %other)" may trap because the select may return the first operand
935     // "undef".
936     if (Value *Result = foldPHINodeOrSelectInst(I)) {
937       if (Result == *U)
938         // If the result of the constant fold will be the pointer, recurse
939         // through the PHI/select as if we had RAUW'ed it.
940         enqueueUsers(I);
941       else
942         // Otherwise the operand to the PHI/select is dead, and we can replace
943         // it with undef.
944         AS.DeadOperands.push_back(U);
945 
946       return;
947     }
948 
949     if (!IsOffsetKnown)
950       return PI.setAborted(&I);
951 
952     // See if we already have computed info on this node.
953     uint64_t &Size = PHIOrSelectSizes[&I];
954     if (!Size) {
955       // This is a new PHI/Select, check for an unsafe use of it.
956       if (Instruction *UnsafeI = hasUnsafePHIOrSelectUse(&I, Size))
957         return PI.setAborted(UnsafeI);
958     }
959 
960     // For PHI and select operands outside the alloca, we can't nuke the entire
961     // phi or select -- the other side might still be relevant, so we special
962     // case them here and use a separate structure to track the operands
963     // themselves which should be replaced with undef.
964     // FIXME: This should instead be escaped in the event we're instrumenting
965     // for address sanitization.
966     if (Offset.uge(AllocSize)) {
967       AS.DeadOperands.push_back(U);
968       return;
969     }
970 
971     insertUse(I, Offset, Size);
972   }
973 
974   void visitPHINode(PHINode &PN) { visitPHINodeOrSelectInst(PN); }
975 
976   void visitSelectInst(SelectInst &SI) { visitPHINodeOrSelectInst(SI); }
977 
978   /// \brief Disable SROA entirely if there are unhandled users of the alloca.
979   void visitInstruction(Instruction &I) { PI.setAborted(&I); }
980 };
981 
982 AllocaSlices::AllocaSlices(const DataLayout &DL, AllocaInst &AI)
983     :
984 #if !defined(NDEBUG) || defined(LLVM_ENABLE_DUMP)
985       AI(AI),
986 #endif
987       PointerEscapingInstr(nullptr) {
988   SliceBuilder PB(DL, AI, *this);
989   SliceBuilder::PtrInfo PtrI = PB.visitPtr(AI);
990   if (PtrI.isEscaped() || PtrI.isAborted()) {
991     // FIXME: We should sink the escape vs. abort info into the caller nicely,
992     // possibly by just storing the PtrInfo in the AllocaSlices.
993     PointerEscapingInstr = PtrI.getEscapingInst() ? PtrI.getEscapingInst()
994                                                   : PtrI.getAbortingInst();
995     assert(PointerEscapingInstr && "Did not track a bad instruction");
996     return;
997   }
998 
999   Slices.erase(std::remove_if(Slices.begin(), Slices.end(),
1000                               [](const Slice &S) {
1001                                 return S.isDead();
1002                               }),
1003                Slices.end());
1004 
1005 #ifndef NDEBUG
1006   if (SROARandomShuffleSlices) {
1007     std::mt19937 MT(static_cast<unsigned>(sys::TimeValue::now().msec()));
1008     std::shuffle(Slices.begin(), Slices.end(), MT);
1009   }
1010 #endif
1011 
1012   // Sort the uses. This arranges for the offsets to be in ascending order,
1013   // and the sizes to be in descending order.
1014   std::sort(Slices.begin(), Slices.end());
1015 }
1016 
1017 #if !defined(NDEBUG) || defined(LLVM_ENABLE_DUMP)
1018 
1019 void AllocaSlices::print(raw_ostream &OS, const_iterator I,
1020                          StringRef Indent) const {
1021   printSlice(OS, I, Indent);
1022   OS << "\n";
1023   printUse(OS, I, Indent);
1024 }
1025 
1026 void AllocaSlices::printSlice(raw_ostream &OS, const_iterator I,
1027                               StringRef Indent) const {
1028   OS << Indent << "[" << I->beginOffset() << "," << I->endOffset() << ")"
1029      << " slice #" << (I - begin())
1030      << (I->isSplittable() ? " (splittable)" : "");
1031 }
1032 
1033 void AllocaSlices::printUse(raw_ostream &OS, const_iterator I,
1034                             StringRef Indent) const {
1035   OS << Indent << "  used by: " << *I->getUse()->getUser() << "\n";
1036 }
1037 
1038 void AllocaSlices::print(raw_ostream &OS) const {
1039   if (PointerEscapingInstr) {
1040     OS << "Can't analyze slices for alloca: " << AI << "\n"
1041        << "  A pointer to this alloca escaped by:\n"
1042        << "  " << *PointerEscapingInstr << "\n";
1043     return;
1044   }
1045 
1046   OS << "Slices of alloca: " << AI << "\n";
1047   for (const_iterator I = begin(), E = end(); I != E; ++I)
1048     print(OS, I);
1049 }
1050 
1051 LLVM_DUMP_METHOD void AllocaSlices::dump(const_iterator I) const {
1052   print(dbgs(), I);
1053 }
1054 LLVM_DUMP_METHOD void AllocaSlices::dump() const { print(dbgs()); }
1055 
1056 #endif // !defined(NDEBUG) || defined(LLVM_ENABLE_DUMP)
1057 
1058 /// Walk the range of a partitioning looking for a common type to cover this
1059 /// sequence of slices.
1060 static Type *findCommonType(AllocaSlices::const_iterator B,
1061                             AllocaSlices::const_iterator E,
1062                             uint64_t EndOffset) {
1063   Type *Ty = nullptr;
1064   bool TyIsCommon = true;
1065   IntegerType *ITy = nullptr;
1066 
1067   // Note that we need to look at *every* alloca slice's Use to ensure we
1068   // always get consistent results regardless of the order of slices.
1069   for (AllocaSlices::const_iterator I = B; I != E; ++I) {
1070     Use *U = I->getUse();
1071     if (isa<IntrinsicInst>(*U->getUser()))
1072       continue;
1073     if (I->beginOffset() != B->beginOffset() || I->endOffset() != EndOffset)
1074       continue;
1075 
1076     Type *UserTy = nullptr;
1077     if (LoadInst *LI = dyn_cast<LoadInst>(U->getUser())) {
1078       UserTy = LI->getType();
1079     } else if (StoreInst *SI = dyn_cast<StoreInst>(U->getUser())) {
1080       UserTy = SI->getValueOperand()->getType();
1081     }
1082 
1083     if (IntegerType *UserITy = dyn_cast_or_null<IntegerType>(UserTy)) {
1084       // If the type is larger than the partition, skip it. We only encounter
1085       // this for split integer operations where we want to use the type of the
1086       // entity causing the split. Also skip if the type is not a byte width
1087       // multiple.
1088       if (UserITy->getBitWidth() % 8 != 0 ||
1089           UserITy->getBitWidth() / 8 > (EndOffset - B->beginOffset()))
1090         continue;
1091 
1092       // Track the largest bitwidth integer type used in this way in case there
1093       // is no common type.
1094       if (!ITy || ITy->getBitWidth() < UserITy->getBitWidth())
1095         ITy = UserITy;
1096     }
1097 
1098     // To avoid depending on the order of slices, Ty and TyIsCommon must not
1099     // depend on types skipped above.
1100     if (!UserTy || (Ty && Ty != UserTy))
1101       TyIsCommon = false; // Give up on anything but an iN type.
1102     else
1103       Ty = UserTy;
1104   }
1105 
1106   return TyIsCommon ? Ty : ITy;
1107 }
1108 
1109 /// PHI instructions that use an alloca and are subsequently loaded can be
1110 /// rewritten to load both input pointers in the pred blocks and then PHI the
1111 /// results, allowing the load of the alloca to be promoted.
1112 /// From this:
1113 ///   %P2 = phi [i32* %Alloca, i32* %Other]
1114 ///   %V = load i32* %P2
1115 /// to:
1116 ///   %V1 = load i32* %Alloca      -> will be mem2reg'd
1117 ///   ...
1118 ///   %V2 = load i32* %Other
1119 ///   ...
1120 ///   %V = phi [i32 %V1, i32 %V2]
1121 ///
1122 /// We can do this to a select if its only uses are loads and if the operands
1123 /// to the select can be loaded unconditionally.
1124 ///
1125 /// FIXME: This should be hoisted into a generic utility, likely in
1126 /// Transforms/Util/Local.h
1127 static bool isSafePHIToSpeculate(PHINode &PN) {
1128   // For now, we can only do this promotion if the load is in the same block
1129   // as the PHI, and if there are no stores between the phi and load.
1130   // TODO: Allow recursive phi users.
1131   // TODO: Allow stores.
1132   BasicBlock *BB = PN.getParent();
1133   unsigned MaxAlign = 0;
1134   bool HaveLoad = false;
1135   for (User *U : PN.users()) {
1136     LoadInst *LI = dyn_cast<LoadInst>(U);
1137     if (!LI || !LI->isSimple())
1138       return false;
1139 
1140     // For now we only allow loads in the same block as the PHI.  This is
1141     // a common case that happens when instcombine merges two loads through
1142     // a PHI.
1143     if (LI->getParent() != BB)
1144       return false;
1145 
1146     // Ensure that there are no instructions between the PHI and the load that
1147     // could store.
1148     for (BasicBlock::iterator BBI(PN); &*BBI != LI; ++BBI)
1149       if (BBI->mayWriteToMemory())
1150         return false;
1151 
1152     MaxAlign = std::max(MaxAlign, LI->getAlignment());
1153     HaveLoad = true;
1154   }
1155 
1156   if (!HaveLoad)
1157     return false;
1158 
1159   // We can only transform this if it is safe to push the loads into the
1160   // predecessor blocks. The only thing to watch out for is that we can't put
1161   // a possibly trapping load in the predecessor if it is a critical edge.
1162   for (unsigned Idx = 0, Num = PN.getNumIncomingValues(); Idx != Num; ++Idx) {
1163     TerminatorInst *TI = PN.getIncomingBlock(Idx)->getTerminator();
1164     Value *InVal = PN.getIncomingValue(Idx);
1165 
1166     // If the value is produced by the terminator of the predecessor (an
1167     // invoke) or it has side-effects, there is no valid place to put a load
1168     // in the predecessor.
1169     if (TI == InVal || TI->mayHaveSideEffects())
1170       return false;
1171 
1172     // If the predecessor has a single successor, then the edge isn't
1173     // critical.
1174     if (TI->getNumSuccessors() == 1)
1175       continue;
1176 
1177     // If this pointer is always safe to load, or if we can prove that there
1178     // is already a load in the block, then we can move the load to the pred
1179     // block.
1180     if (isSafeToLoadUnconditionally(InVal, MaxAlign, TI))
1181       continue;
1182 
1183     return false;
1184   }
1185 
1186   return true;
1187 }
1188 
1189 static void speculatePHINodeLoads(PHINode &PN) {
1190   DEBUG(dbgs() << "    original: " << PN << "\n");
1191 
1192   Type *LoadTy = cast<PointerType>(PN.getType())->getElementType();
1193   IRBuilderTy PHIBuilder(&PN);
1194   PHINode *NewPN = PHIBuilder.CreatePHI(LoadTy, PN.getNumIncomingValues(),
1195                                         PN.getName() + ".sroa.speculated");
1196 
1197   // Get the AA tags and alignment to use from one of the loads.  It doesn't
1198   // matter which one we get and if any differ.
1199   LoadInst *SomeLoad = cast<LoadInst>(PN.user_back());
1200 
1201   AAMDNodes AATags;
1202   SomeLoad->getAAMetadata(AATags);
1203   unsigned Align = SomeLoad->getAlignment();
1204 
1205   // Rewrite all loads of the PN to use the new PHI.
1206   while (!PN.use_empty()) {
1207     LoadInst *LI = cast<LoadInst>(PN.user_back());
1208     LI->replaceAllUsesWith(NewPN);
1209     LI->eraseFromParent();
1210   }
1211 
1212   // Inject loads into all of the pred blocks.
1213   for (unsigned Idx = 0, Num = PN.getNumIncomingValues(); Idx != Num; ++Idx) {
1214     BasicBlock *Pred = PN.getIncomingBlock(Idx);
1215     TerminatorInst *TI = Pred->getTerminator();
1216     Value *InVal = PN.getIncomingValue(Idx);
1217     IRBuilderTy PredBuilder(TI);
1218 
1219     LoadInst *Load = PredBuilder.CreateLoad(
1220         InVal, (PN.getName() + ".sroa.speculate.load." + Pred->getName()));
1221     ++NumLoadsSpeculated;
1222     Load->setAlignment(Align);
1223     if (AATags)
1224       Load->setAAMetadata(AATags);
1225     NewPN->addIncoming(Load, Pred);
1226   }
1227 
1228   DEBUG(dbgs() << "          speculated to: " << *NewPN << "\n");
1229   PN.eraseFromParent();
1230 }
1231 
1232 /// Select instructions that use an alloca and are subsequently loaded can be
1233 /// rewritten to load both input pointers and then select between the result,
1234 /// allowing the load of the alloca to be promoted.
1235 /// From this:
1236 ///   %P2 = select i1 %cond, i32* %Alloca, i32* %Other
1237 ///   %V = load i32* %P2
1238 /// to:
1239 ///   %V1 = load i32* %Alloca      -> will be mem2reg'd
1240 ///   %V2 = load i32* %Other
1241 ///   %V = select i1 %cond, i32 %V1, i32 %V2
1242 ///
1243 /// We can do this to a select if its only uses are loads and if the operand
1244 /// to the select can be loaded unconditionally.
1245 static bool isSafeSelectToSpeculate(SelectInst &SI) {
1246   Value *TValue = SI.getTrueValue();
1247   Value *FValue = SI.getFalseValue();
1248 
1249   for (User *U : SI.users()) {
1250     LoadInst *LI = dyn_cast<LoadInst>(U);
1251     if (!LI || !LI->isSimple())
1252       return false;
1253 
1254     // Both operands to the select need to be dereferencable, either
1255     // absolutely (e.g. allocas) or at this point because we can see other
1256     // accesses to it.
1257     if (!isSafeToLoadUnconditionally(TValue, LI->getAlignment(), LI))
1258       return false;
1259     if (!isSafeToLoadUnconditionally(FValue, LI->getAlignment(), LI))
1260       return false;
1261   }
1262 
1263   return true;
1264 }
1265 
1266 static void speculateSelectInstLoads(SelectInst &SI) {
1267   DEBUG(dbgs() << "    original: " << SI << "\n");
1268 
1269   IRBuilderTy IRB(&SI);
1270   Value *TV = SI.getTrueValue();
1271   Value *FV = SI.getFalseValue();
1272   // Replace the loads of the select with a select of two loads.
1273   while (!SI.use_empty()) {
1274     LoadInst *LI = cast<LoadInst>(SI.user_back());
1275     assert(LI->isSimple() && "We only speculate simple loads");
1276 
1277     IRB.SetInsertPoint(LI);
1278     LoadInst *TL =
1279         IRB.CreateLoad(TV, LI->getName() + ".sroa.speculate.load.true");
1280     LoadInst *FL =
1281         IRB.CreateLoad(FV, LI->getName() + ".sroa.speculate.load.false");
1282     NumLoadsSpeculated += 2;
1283 
1284     // Transfer alignment and AA info if present.
1285     TL->setAlignment(LI->getAlignment());
1286     FL->setAlignment(LI->getAlignment());
1287 
1288     AAMDNodes Tags;
1289     LI->getAAMetadata(Tags);
1290     if (Tags) {
1291       TL->setAAMetadata(Tags);
1292       FL->setAAMetadata(Tags);
1293     }
1294 
1295     Value *V = IRB.CreateSelect(SI.getCondition(), TL, FL,
1296                                 LI->getName() + ".sroa.speculated");
1297 
1298     DEBUG(dbgs() << "          speculated to: " << *V << "\n");
1299     LI->replaceAllUsesWith(V);
1300     LI->eraseFromParent();
1301   }
1302   SI.eraseFromParent();
1303 }
1304 
1305 /// \brief Build a GEP out of a base pointer and indices.
1306 ///
1307 /// This will return the BasePtr if that is valid, or build a new GEP
1308 /// instruction using the IRBuilder if GEP-ing is needed.
1309 static Value *buildGEP(IRBuilderTy &IRB, Value *BasePtr,
1310                        SmallVectorImpl<Value *> &Indices, Twine NamePrefix) {
1311   if (Indices.empty())
1312     return BasePtr;
1313 
1314   // A single zero index is a no-op, so check for this and avoid building a GEP
1315   // in that case.
1316   if (Indices.size() == 1 && cast<ConstantInt>(Indices.back())->isZero())
1317     return BasePtr;
1318 
1319   return IRB.CreateInBoundsGEP(nullptr, BasePtr, Indices,
1320                                NamePrefix + "sroa_idx");
1321 }
1322 
1323 /// \brief Get a natural GEP off of the BasePtr walking through Ty toward
1324 /// TargetTy without changing the offset of the pointer.
1325 ///
1326 /// This routine assumes we've already established a properly offset GEP with
1327 /// Indices, and arrived at the Ty type. The goal is to continue to GEP with
1328 /// zero-indices down through type layers until we find one the same as
1329 /// TargetTy. If we can't find one with the same type, we at least try to use
1330 /// one with the same size. If none of that works, we just produce the GEP as
1331 /// indicated by Indices to have the correct offset.
1332 static Value *getNaturalGEPWithType(IRBuilderTy &IRB, const DataLayout &DL,
1333                                     Value *BasePtr, Type *Ty, Type *TargetTy,
1334                                     SmallVectorImpl<Value *> &Indices,
1335                                     Twine NamePrefix) {
1336   if (Ty == TargetTy)
1337     return buildGEP(IRB, BasePtr, Indices, NamePrefix);
1338 
1339   // Pointer size to use for the indices.
1340   unsigned PtrSize = DL.getPointerTypeSizeInBits(BasePtr->getType());
1341 
1342   // See if we can descend into a struct and locate a field with the correct
1343   // type.
1344   unsigned NumLayers = 0;
1345   Type *ElementTy = Ty;
1346   do {
1347     if (ElementTy->isPointerTy())
1348       break;
1349 
1350     if (ArrayType *ArrayTy = dyn_cast<ArrayType>(ElementTy)) {
1351       ElementTy = ArrayTy->getElementType();
1352       Indices.push_back(IRB.getIntN(PtrSize, 0));
1353     } else if (VectorType *VectorTy = dyn_cast<VectorType>(ElementTy)) {
1354       ElementTy = VectorTy->getElementType();
1355       Indices.push_back(IRB.getInt32(0));
1356     } else if (StructType *STy = dyn_cast<StructType>(ElementTy)) {
1357       if (STy->element_begin() == STy->element_end())
1358         break; // Nothing left to descend into.
1359       ElementTy = *STy->element_begin();
1360       Indices.push_back(IRB.getInt32(0));
1361     } else {
1362       break;
1363     }
1364     ++NumLayers;
1365   } while (ElementTy != TargetTy);
1366   if (ElementTy != TargetTy)
1367     Indices.erase(Indices.end() - NumLayers, Indices.end());
1368 
1369   return buildGEP(IRB, BasePtr, Indices, NamePrefix);
1370 }
1371 
1372 /// \brief Recursively compute indices for a natural GEP.
1373 ///
1374 /// This is the recursive step for getNaturalGEPWithOffset that walks down the
1375 /// element types adding appropriate indices for the GEP.
1376 static Value *getNaturalGEPRecursively(IRBuilderTy &IRB, const DataLayout &DL,
1377                                        Value *Ptr, Type *Ty, APInt &Offset,
1378                                        Type *TargetTy,
1379                                        SmallVectorImpl<Value *> &Indices,
1380                                        Twine NamePrefix) {
1381   if (Offset == 0)
1382     return getNaturalGEPWithType(IRB, DL, Ptr, Ty, TargetTy, Indices,
1383                                  NamePrefix);
1384 
1385   // We can't recurse through pointer types.
1386   if (Ty->isPointerTy())
1387     return nullptr;
1388 
1389   // We try to analyze GEPs over vectors here, but note that these GEPs are
1390   // extremely poorly defined currently. The long-term goal is to remove GEPing
1391   // over a vector from the IR completely.
1392   if (VectorType *VecTy = dyn_cast<VectorType>(Ty)) {
1393     unsigned ElementSizeInBits = DL.getTypeSizeInBits(VecTy->getScalarType());
1394     if (ElementSizeInBits % 8 != 0) {
1395       // GEPs over non-multiple of 8 size vector elements are invalid.
1396       return nullptr;
1397     }
1398     APInt ElementSize(Offset.getBitWidth(), ElementSizeInBits / 8);
1399     APInt NumSkippedElements = Offset.sdiv(ElementSize);
1400     if (NumSkippedElements.ugt(VecTy->getNumElements()))
1401       return nullptr;
1402     Offset -= NumSkippedElements * ElementSize;
1403     Indices.push_back(IRB.getInt(NumSkippedElements));
1404     return getNaturalGEPRecursively(IRB, DL, Ptr, VecTy->getElementType(),
1405                                     Offset, TargetTy, Indices, NamePrefix);
1406   }
1407 
1408   if (ArrayType *ArrTy = dyn_cast<ArrayType>(Ty)) {
1409     Type *ElementTy = ArrTy->getElementType();
1410     APInt ElementSize(Offset.getBitWidth(), DL.getTypeAllocSize(ElementTy));
1411     APInt NumSkippedElements = Offset.sdiv(ElementSize);
1412     if (NumSkippedElements.ugt(ArrTy->getNumElements()))
1413       return nullptr;
1414 
1415     Offset -= NumSkippedElements * ElementSize;
1416     Indices.push_back(IRB.getInt(NumSkippedElements));
1417     return getNaturalGEPRecursively(IRB, DL, Ptr, ElementTy, Offset, TargetTy,
1418                                     Indices, NamePrefix);
1419   }
1420 
1421   StructType *STy = dyn_cast<StructType>(Ty);
1422   if (!STy)
1423     return nullptr;
1424 
1425   const StructLayout *SL = DL.getStructLayout(STy);
1426   uint64_t StructOffset = Offset.getZExtValue();
1427   if (StructOffset >= SL->getSizeInBytes())
1428     return nullptr;
1429   unsigned Index = SL->getElementContainingOffset(StructOffset);
1430   Offset -= APInt(Offset.getBitWidth(), SL->getElementOffset(Index));
1431   Type *ElementTy = STy->getElementType(Index);
1432   if (Offset.uge(DL.getTypeAllocSize(ElementTy)))
1433     return nullptr; // The offset points into alignment padding.
1434 
1435   Indices.push_back(IRB.getInt32(Index));
1436   return getNaturalGEPRecursively(IRB, DL, Ptr, ElementTy, Offset, TargetTy,
1437                                   Indices, NamePrefix);
1438 }
1439 
1440 /// \brief Get a natural GEP from a base pointer to a particular offset and
1441 /// resulting in a particular type.
1442 ///
1443 /// The goal is to produce a "natural" looking GEP that works with the existing
1444 /// composite types to arrive at the appropriate offset and element type for
1445 /// a pointer. TargetTy is the element type the returned GEP should point-to if
1446 /// possible. We recurse by decreasing Offset, adding the appropriate index to
1447 /// Indices, and setting Ty to the result subtype.
1448 ///
1449 /// If no natural GEP can be constructed, this function returns null.
1450 static Value *getNaturalGEPWithOffset(IRBuilderTy &IRB, const DataLayout &DL,
1451                                       Value *Ptr, APInt Offset, Type *TargetTy,
1452                                       SmallVectorImpl<Value *> &Indices,
1453                                       Twine NamePrefix) {
1454   PointerType *Ty = cast<PointerType>(Ptr->getType());
1455 
1456   // Don't consider any GEPs through an i8* as natural unless the TargetTy is
1457   // an i8.
1458   if (Ty == IRB.getInt8PtrTy(Ty->getAddressSpace()) && TargetTy->isIntegerTy(8))
1459     return nullptr;
1460 
1461   Type *ElementTy = Ty->getElementType();
1462   if (!ElementTy->isSized())
1463     return nullptr; // We can't GEP through an unsized element.
1464   APInt ElementSize(Offset.getBitWidth(), DL.getTypeAllocSize(ElementTy));
1465   if (ElementSize == 0)
1466     return nullptr; // Zero-length arrays can't help us build a natural GEP.
1467   APInt NumSkippedElements = Offset.sdiv(ElementSize);
1468 
1469   Offset -= NumSkippedElements * ElementSize;
1470   Indices.push_back(IRB.getInt(NumSkippedElements));
1471   return getNaturalGEPRecursively(IRB, DL, Ptr, ElementTy, Offset, TargetTy,
1472                                   Indices, NamePrefix);
1473 }
1474 
1475 /// \brief Compute an adjusted pointer from Ptr by Offset bytes where the
1476 /// resulting pointer has PointerTy.
1477 ///
1478 /// This tries very hard to compute a "natural" GEP which arrives at the offset
1479 /// and produces the pointer type desired. Where it cannot, it will try to use
1480 /// the natural GEP to arrive at the offset and bitcast to the type. Where that
1481 /// fails, it will try to use an existing i8* and GEP to the byte offset and
1482 /// bitcast to the type.
1483 ///
1484 /// The strategy for finding the more natural GEPs is to peel off layers of the
1485 /// pointer, walking back through bit casts and GEPs, searching for a base
1486 /// pointer from which we can compute a natural GEP with the desired
1487 /// properties. The algorithm tries to fold as many constant indices into
1488 /// a single GEP as possible, thus making each GEP more independent of the
1489 /// surrounding code.
1490 static Value *getAdjustedPtr(IRBuilderTy &IRB, const DataLayout &DL, Value *Ptr,
1491                              APInt Offset, Type *PointerTy, Twine NamePrefix) {
1492   // Even though we don't look through PHI nodes, we could be called on an
1493   // instruction in an unreachable block, which may be on a cycle.
1494   SmallPtrSet<Value *, 4> Visited;
1495   Visited.insert(Ptr);
1496   SmallVector<Value *, 4> Indices;
1497 
1498   // We may end up computing an offset pointer that has the wrong type. If we
1499   // never are able to compute one directly that has the correct type, we'll
1500   // fall back to it, so keep it and the base it was computed from around here.
1501   Value *OffsetPtr = nullptr;
1502   Value *OffsetBasePtr;
1503 
1504   // Remember any i8 pointer we come across to re-use if we need to do a raw
1505   // byte offset.
1506   Value *Int8Ptr = nullptr;
1507   APInt Int8PtrOffset(Offset.getBitWidth(), 0);
1508 
1509   Type *TargetTy = PointerTy->getPointerElementType();
1510 
1511   do {
1512     // First fold any existing GEPs into the offset.
1513     while (GEPOperator *GEP = dyn_cast<GEPOperator>(Ptr)) {
1514       APInt GEPOffset(Offset.getBitWidth(), 0);
1515       if (!GEP->accumulateConstantOffset(DL, GEPOffset))
1516         break;
1517       Offset += GEPOffset;
1518       Ptr = GEP->getPointerOperand();
1519       if (!Visited.insert(Ptr).second)
1520         break;
1521     }
1522 
1523     // See if we can perform a natural GEP here.
1524     Indices.clear();
1525     if (Value *P = getNaturalGEPWithOffset(IRB, DL, Ptr, Offset, TargetTy,
1526                                            Indices, NamePrefix)) {
1527       // If we have a new natural pointer at the offset, clear out any old
1528       // offset pointer we computed. Unless it is the base pointer or
1529       // a non-instruction, we built a GEP we don't need. Zap it.
1530       if (OffsetPtr && OffsetPtr != OffsetBasePtr)
1531         if (Instruction *I = dyn_cast<Instruction>(OffsetPtr)) {
1532           assert(I->use_empty() && "Built a GEP with uses some how!");
1533           I->eraseFromParent();
1534         }
1535       OffsetPtr = P;
1536       OffsetBasePtr = Ptr;
1537       // If we also found a pointer of the right type, we're done.
1538       if (P->getType() == PointerTy)
1539         return P;
1540     }
1541 
1542     // Stash this pointer if we've found an i8*.
1543     if (Ptr->getType()->isIntegerTy(8)) {
1544       Int8Ptr = Ptr;
1545       Int8PtrOffset = Offset;
1546     }
1547 
1548     // Peel off a layer of the pointer and update the offset appropriately.
1549     if (Operator::getOpcode(Ptr) == Instruction::BitCast) {
1550       Ptr = cast<Operator>(Ptr)->getOperand(0);
1551     } else if (GlobalAlias *GA = dyn_cast<GlobalAlias>(Ptr)) {
1552       if (GA->mayBeOverridden())
1553         break;
1554       Ptr = GA->getAliasee();
1555     } else {
1556       break;
1557     }
1558     assert(Ptr->getType()->isPointerTy() && "Unexpected operand type!");
1559   } while (Visited.insert(Ptr).second);
1560 
1561   if (!OffsetPtr) {
1562     if (!Int8Ptr) {
1563       Int8Ptr = IRB.CreateBitCast(
1564           Ptr, IRB.getInt8PtrTy(PointerTy->getPointerAddressSpace()),
1565           NamePrefix + "sroa_raw_cast");
1566       Int8PtrOffset = Offset;
1567     }
1568 
1569     OffsetPtr = Int8PtrOffset == 0
1570                     ? Int8Ptr
1571                     : IRB.CreateInBoundsGEP(IRB.getInt8Ty(), Int8Ptr,
1572                                             IRB.getInt(Int8PtrOffset),
1573                                             NamePrefix + "sroa_raw_idx");
1574   }
1575   Ptr = OffsetPtr;
1576 
1577   // On the off chance we were targeting i8*, guard the bitcast here.
1578   if (Ptr->getType() != PointerTy)
1579     Ptr = IRB.CreateBitCast(Ptr, PointerTy, NamePrefix + "sroa_cast");
1580 
1581   return Ptr;
1582 }
1583 
1584 /// \brief Compute the adjusted alignment for a load or store from an offset.
1585 static unsigned getAdjustedAlignment(Instruction *I, uint64_t Offset,
1586                                      const DataLayout &DL) {
1587   unsigned Alignment;
1588   Type *Ty;
1589   if (auto *LI = dyn_cast<LoadInst>(I)) {
1590     Alignment = LI->getAlignment();
1591     Ty = LI->getType();
1592   } else if (auto *SI = dyn_cast<StoreInst>(I)) {
1593     Alignment = SI->getAlignment();
1594     Ty = SI->getValueOperand()->getType();
1595   } else {
1596     llvm_unreachable("Only loads and stores are allowed!");
1597   }
1598 
1599   if (!Alignment)
1600     Alignment = DL.getABITypeAlignment(Ty);
1601 
1602   return MinAlign(Alignment, Offset);
1603 }
1604 
1605 /// \brief Test whether we can convert a value from the old to the new type.
1606 ///
1607 /// This predicate should be used to guard calls to convertValue in order to
1608 /// ensure that we only try to convert viable values. The strategy is that we
1609 /// will peel off single element struct and array wrappings to get to an
1610 /// underlying value, and convert that value.
1611 static bool canConvertValue(const DataLayout &DL, Type *OldTy, Type *NewTy) {
1612   if (OldTy == NewTy)
1613     return true;
1614 
1615   // For integer types, we can't handle any bit-width differences. This would
1616   // break both vector conversions with extension and introduce endianness
1617   // issues when in conjunction with loads and stores.
1618   if (isa<IntegerType>(OldTy) && isa<IntegerType>(NewTy)) {
1619     assert(cast<IntegerType>(OldTy)->getBitWidth() !=
1620                cast<IntegerType>(NewTy)->getBitWidth() &&
1621            "We can't have the same bitwidth for different int types");
1622     return false;
1623   }
1624 
1625   if (DL.getTypeSizeInBits(NewTy) != DL.getTypeSizeInBits(OldTy))
1626     return false;
1627   if (!NewTy->isSingleValueType() || !OldTy->isSingleValueType())
1628     return false;
1629 
1630   // We can convert pointers to integers and vice-versa. Same for vectors
1631   // of pointers and integers.
1632   OldTy = OldTy->getScalarType();
1633   NewTy = NewTy->getScalarType();
1634   if (NewTy->isPointerTy() || OldTy->isPointerTy()) {
1635     if (NewTy->isPointerTy() && OldTy->isPointerTy())
1636       return true;
1637     if (NewTy->isIntegerTy() || OldTy->isIntegerTy())
1638       return true;
1639     return false;
1640   }
1641 
1642   return true;
1643 }
1644 
1645 /// \brief Generic routine to convert an SSA value to a value of a different
1646 /// type.
1647 ///
1648 /// This will try various different casting techniques, such as bitcasts,
1649 /// inttoptr, and ptrtoint casts. Use the \c canConvertValue predicate to test
1650 /// two types for viability with this routine.
1651 static Value *convertValue(const DataLayout &DL, IRBuilderTy &IRB, Value *V,
1652                            Type *NewTy) {
1653   Type *OldTy = V->getType();
1654   assert(canConvertValue(DL, OldTy, NewTy) && "Value not convertable to type");
1655 
1656   if (OldTy == NewTy)
1657     return V;
1658 
1659   assert(!(isa<IntegerType>(OldTy) && isa<IntegerType>(NewTy)) &&
1660          "Integer types must be the exact same to convert.");
1661 
1662   // See if we need inttoptr for this type pair. A cast involving both scalars
1663   // and vectors requires and additional bitcast.
1664   if (OldTy->getScalarType()->isIntegerTy() &&
1665       NewTy->getScalarType()->isPointerTy()) {
1666     // Expand <2 x i32> to i8* --> <2 x i32> to i64 to i8*
1667     if (OldTy->isVectorTy() && !NewTy->isVectorTy())
1668       return IRB.CreateIntToPtr(IRB.CreateBitCast(V, DL.getIntPtrType(NewTy)),
1669                                 NewTy);
1670 
1671     // Expand i128 to <2 x i8*> --> i128 to <2 x i64> to <2 x i8*>
1672     if (!OldTy->isVectorTy() && NewTy->isVectorTy())
1673       return IRB.CreateIntToPtr(IRB.CreateBitCast(V, DL.getIntPtrType(NewTy)),
1674                                 NewTy);
1675 
1676     return IRB.CreateIntToPtr(V, NewTy);
1677   }
1678 
1679   // See if we need ptrtoint for this type pair. A cast involving both scalars
1680   // and vectors requires and additional bitcast.
1681   if (OldTy->getScalarType()->isPointerTy() &&
1682       NewTy->getScalarType()->isIntegerTy()) {
1683     // Expand <2 x i8*> to i128 --> <2 x i8*> to <2 x i64> to i128
1684     if (OldTy->isVectorTy() && !NewTy->isVectorTy())
1685       return IRB.CreateBitCast(IRB.CreatePtrToInt(V, DL.getIntPtrType(OldTy)),
1686                                NewTy);
1687 
1688     // Expand i8* to <2 x i32> --> i8* to i64 to <2 x i32>
1689     if (!OldTy->isVectorTy() && NewTy->isVectorTy())
1690       return IRB.CreateBitCast(IRB.CreatePtrToInt(V, DL.getIntPtrType(OldTy)),
1691                                NewTy);
1692 
1693     return IRB.CreatePtrToInt(V, NewTy);
1694   }
1695 
1696   return IRB.CreateBitCast(V, NewTy);
1697 }
1698 
1699 /// \brief Test whether the given slice use can be promoted to a vector.
1700 ///
1701 /// This function is called to test each entry in a partition which is slated
1702 /// for a single slice.
1703 static bool isVectorPromotionViableForSlice(Partition &P, const Slice &S,
1704                                             VectorType *Ty,
1705                                             uint64_t ElementSize,
1706                                             const DataLayout &DL) {
1707   // First validate the slice offsets.
1708   uint64_t BeginOffset =
1709       std::max(S.beginOffset(), P.beginOffset()) - P.beginOffset();
1710   uint64_t BeginIndex = BeginOffset / ElementSize;
1711   if (BeginIndex * ElementSize != BeginOffset ||
1712       BeginIndex >= Ty->getNumElements())
1713     return false;
1714   uint64_t EndOffset =
1715       std::min(S.endOffset(), P.endOffset()) - P.beginOffset();
1716   uint64_t EndIndex = EndOffset / ElementSize;
1717   if (EndIndex * ElementSize != EndOffset || EndIndex > Ty->getNumElements())
1718     return false;
1719 
1720   assert(EndIndex > BeginIndex && "Empty vector!");
1721   uint64_t NumElements = EndIndex - BeginIndex;
1722   Type *SliceTy = (NumElements == 1)
1723                       ? Ty->getElementType()
1724                       : VectorType::get(Ty->getElementType(), NumElements);
1725 
1726   Type *SplitIntTy =
1727       Type::getIntNTy(Ty->getContext(), NumElements * ElementSize * 8);
1728 
1729   Use *U = S.getUse();
1730 
1731   if (MemIntrinsic *MI = dyn_cast<MemIntrinsic>(U->getUser())) {
1732     if (MI->isVolatile())
1733       return false;
1734     if (!S.isSplittable())
1735       return false; // Skip any unsplittable intrinsics.
1736   } else if (IntrinsicInst *II = dyn_cast<IntrinsicInst>(U->getUser())) {
1737     if (II->getIntrinsicID() != Intrinsic::lifetime_start &&
1738         II->getIntrinsicID() != Intrinsic::lifetime_end)
1739       return false;
1740   } else if (U->get()->getType()->getPointerElementType()->isStructTy()) {
1741     // Disable vector promotion when there are loads or stores of an FCA.
1742     return false;
1743   } else if (LoadInst *LI = dyn_cast<LoadInst>(U->getUser())) {
1744     if (LI->isVolatile())
1745       return false;
1746     Type *LTy = LI->getType();
1747     if (P.beginOffset() > S.beginOffset() || P.endOffset() < S.endOffset()) {
1748       assert(LTy->isIntegerTy());
1749       LTy = SplitIntTy;
1750     }
1751     if (!canConvertValue(DL, SliceTy, LTy))
1752       return false;
1753   } else if (StoreInst *SI = dyn_cast<StoreInst>(U->getUser())) {
1754     if (SI->isVolatile())
1755       return false;
1756     Type *STy = SI->getValueOperand()->getType();
1757     if (P.beginOffset() > S.beginOffset() || P.endOffset() < S.endOffset()) {
1758       assert(STy->isIntegerTy());
1759       STy = SplitIntTy;
1760     }
1761     if (!canConvertValue(DL, STy, SliceTy))
1762       return false;
1763   } else {
1764     return false;
1765   }
1766 
1767   return true;
1768 }
1769 
1770 /// \brief Test whether the given alloca partitioning and range of slices can be
1771 /// promoted to a vector.
1772 ///
1773 /// This is a quick test to check whether we can rewrite a particular alloca
1774 /// partition (and its newly formed alloca) into a vector alloca with only
1775 /// whole-vector loads and stores such that it could be promoted to a vector
1776 /// SSA value. We only can ensure this for a limited set of operations, and we
1777 /// don't want to do the rewrites unless we are confident that the result will
1778 /// be promotable, so we have an early test here.
1779 static VectorType *isVectorPromotionViable(Partition &P, const DataLayout &DL) {
1780   // Collect the candidate types for vector-based promotion. Also track whether
1781   // we have different element types.
1782   SmallVector<VectorType *, 4> CandidateTys;
1783   Type *CommonEltTy = nullptr;
1784   bool HaveCommonEltTy = true;
1785   auto CheckCandidateType = [&](Type *Ty) {
1786     if (auto *VTy = dyn_cast<VectorType>(Ty)) {
1787       CandidateTys.push_back(VTy);
1788       if (!CommonEltTy)
1789         CommonEltTy = VTy->getElementType();
1790       else if (CommonEltTy != VTy->getElementType())
1791         HaveCommonEltTy = false;
1792     }
1793   };
1794   // Consider any loads or stores that are the exact size of the slice.
1795   for (const Slice &S : P)
1796     if (S.beginOffset() == P.beginOffset() &&
1797         S.endOffset() == P.endOffset()) {
1798       if (auto *LI = dyn_cast<LoadInst>(S.getUse()->getUser()))
1799         CheckCandidateType(LI->getType());
1800       else if (auto *SI = dyn_cast<StoreInst>(S.getUse()->getUser()))
1801         CheckCandidateType(SI->getValueOperand()->getType());
1802     }
1803 
1804   // If we didn't find a vector type, nothing to do here.
1805   if (CandidateTys.empty())
1806     return nullptr;
1807 
1808   // Remove non-integer vector types if we had multiple common element types.
1809   // FIXME: It'd be nice to replace them with integer vector types, but we can't
1810   // do that until all the backends are known to produce good code for all
1811   // integer vector types.
1812   if (!HaveCommonEltTy) {
1813     CandidateTys.erase(std::remove_if(CandidateTys.begin(), CandidateTys.end(),
1814                                       [](VectorType *VTy) {
1815                          return !VTy->getElementType()->isIntegerTy();
1816                        }),
1817                        CandidateTys.end());
1818 
1819     // If there were no integer vector types, give up.
1820     if (CandidateTys.empty())
1821       return nullptr;
1822 
1823     // Rank the remaining candidate vector types. This is easy because we know
1824     // they're all integer vectors. We sort by ascending number of elements.
1825     auto RankVectorTypes = [&DL](VectorType *RHSTy, VectorType *LHSTy) {
1826       assert(DL.getTypeSizeInBits(RHSTy) == DL.getTypeSizeInBits(LHSTy) &&
1827              "Cannot have vector types of different sizes!");
1828       assert(RHSTy->getElementType()->isIntegerTy() &&
1829              "All non-integer types eliminated!");
1830       assert(LHSTy->getElementType()->isIntegerTy() &&
1831              "All non-integer types eliminated!");
1832       return RHSTy->getNumElements() < LHSTy->getNumElements();
1833     };
1834     std::sort(CandidateTys.begin(), CandidateTys.end(), RankVectorTypes);
1835     CandidateTys.erase(
1836         std::unique(CandidateTys.begin(), CandidateTys.end(), RankVectorTypes),
1837         CandidateTys.end());
1838   } else {
1839 // The only way to have the same element type in every vector type is to
1840 // have the same vector type. Check that and remove all but one.
1841 #ifndef NDEBUG
1842     for (VectorType *VTy : CandidateTys) {
1843       assert(VTy->getElementType() == CommonEltTy &&
1844              "Unaccounted for element type!");
1845       assert(VTy == CandidateTys[0] &&
1846              "Different vector types with the same element type!");
1847     }
1848 #endif
1849     CandidateTys.resize(1);
1850   }
1851 
1852   // Try each vector type, and return the one which works.
1853   auto CheckVectorTypeForPromotion = [&](VectorType *VTy) {
1854     uint64_t ElementSize = DL.getTypeSizeInBits(VTy->getElementType());
1855 
1856     // While the definition of LLVM vectors is bitpacked, we don't support sizes
1857     // that aren't byte sized.
1858     if (ElementSize % 8)
1859       return false;
1860     assert((DL.getTypeSizeInBits(VTy) % 8) == 0 &&
1861            "vector size not a multiple of element size?");
1862     ElementSize /= 8;
1863 
1864     for (const Slice &S : P)
1865       if (!isVectorPromotionViableForSlice(P, S, VTy, ElementSize, DL))
1866         return false;
1867 
1868     for (const Slice *S : P.splitSliceTails())
1869       if (!isVectorPromotionViableForSlice(P, *S, VTy, ElementSize, DL))
1870         return false;
1871 
1872     return true;
1873   };
1874   for (VectorType *VTy : CandidateTys)
1875     if (CheckVectorTypeForPromotion(VTy))
1876       return VTy;
1877 
1878   return nullptr;
1879 }
1880 
1881 /// \brief Test whether a slice of an alloca is valid for integer widening.
1882 ///
1883 /// This implements the necessary checking for the \c isIntegerWideningViable
1884 /// test below on a single slice of the alloca.
1885 static bool isIntegerWideningViableForSlice(const Slice &S,
1886                                             uint64_t AllocBeginOffset,
1887                                             Type *AllocaTy,
1888                                             const DataLayout &DL,
1889                                             bool &WholeAllocaOp) {
1890   uint64_t Size = DL.getTypeStoreSize(AllocaTy);
1891 
1892   uint64_t RelBegin = S.beginOffset() - AllocBeginOffset;
1893   uint64_t RelEnd = S.endOffset() - AllocBeginOffset;
1894 
1895   // We can't reasonably handle cases where the load or store extends past
1896   // the end of the alloca's type and into its padding.
1897   if (RelEnd > Size)
1898     return false;
1899 
1900   Use *U = S.getUse();
1901 
1902   if (LoadInst *LI = dyn_cast<LoadInst>(U->getUser())) {
1903     if (LI->isVolatile())
1904       return false;
1905     // We can't handle loads that extend past the allocated memory.
1906     if (DL.getTypeStoreSize(LI->getType()) > Size)
1907       return false;
1908     // Note that we don't count vector loads or stores as whole-alloca
1909     // operations which enable integer widening because we would prefer to use
1910     // vector widening instead.
1911     if (!isa<VectorType>(LI->getType()) && RelBegin == 0 && RelEnd == Size)
1912       WholeAllocaOp = true;
1913     if (IntegerType *ITy = dyn_cast<IntegerType>(LI->getType())) {
1914       if (ITy->getBitWidth() < DL.getTypeStoreSizeInBits(ITy))
1915         return false;
1916     } else if (RelBegin != 0 || RelEnd != Size ||
1917                !canConvertValue(DL, AllocaTy, LI->getType())) {
1918       // Non-integer loads need to be convertible from the alloca type so that
1919       // they are promotable.
1920       return false;
1921     }
1922   } else if (StoreInst *SI = dyn_cast<StoreInst>(U->getUser())) {
1923     Type *ValueTy = SI->getValueOperand()->getType();
1924     if (SI->isVolatile())
1925       return false;
1926     // We can't handle stores that extend past the allocated memory.
1927     if (DL.getTypeStoreSize(ValueTy) > Size)
1928       return false;
1929     // Note that we don't count vector loads or stores as whole-alloca
1930     // operations which enable integer widening because we would prefer to use
1931     // vector widening instead.
1932     if (!isa<VectorType>(ValueTy) && RelBegin == 0 && RelEnd == Size)
1933       WholeAllocaOp = true;
1934     if (IntegerType *ITy = dyn_cast<IntegerType>(ValueTy)) {
1935       if (ITy->getBitWidth() < DL.getTypeStoreSizeInBits(ITy))
1936         return false;
1937     } else if (RelBegin != 0 || RelEnd != Size ||
1938                !canConvertValue(DL, ValueTy, AllocaTy)) {
1939       // Non-integer stores need to be convertible to the alloca type so that
1940       // they are promotable.
1941       return false;
1942     }
1943   } else if (MemIntrinsic *MI = dyn_cast<MemIntrinsic>(U->getUser())) {
1944     if (MI->isVolatile() || !isa<Constant>(MI->getLength()))
1945       return false;
1946     if (!S.isSplittable())
1947       return false; // Skip any unsplittable intrinsics.
1948   } else if (IntrinsicInst *II = dyn_cast<IntrinsicInst>(U->getUser())) {
1949     if (II->getIntrinsicID() != Intrinsic::lifetime_start &&
1950         II->getIntrinsicID() != Intrinsic::lifetime_end)
1951       return false;
1952   } else {
1953     return false;
1954   }
1955 
1956   return true;
1957 }
1958 
1959 /// \brief Test whether the given alloca partition's integer operations can be
1960 /// widened to promotable ones.
1961 ///
1962 /// This is a quick test to check whether we can rewrite the integer loads and
1963 /// stores to a particular alloca into wider loads and stores and be able to
1964 /// promote the resulting alloca.
1965 static bool isIntegerWideningViable(Partition &P, Type *AllocaTy,
1966                                     const DataLayout &DL) {
1967   uint64_t SizeInBits = DL.getTypeSizeInBits(AllocaTy);
1968   // Don't create integer types larger than the maximum bitwidth.
1969   if (SizeInBits > IntegerType::MAX_INT_BITS)
1970     return false;
1971 
1972   // Don't try to handle allocas with bit-padding.
1973   if (SizeInBits != DL.getTypeStoreSizeInBits(AllocaTy))
1974     return false;
1975 
1976   // We need to ensure that an integer type with the appropriate bitwidth can
1977   // be converted to the alloca type, whatever that is. We don't want to force
1978   // the alloca itself to have an integer type if there is a more suitable one.
1979   Type *IntTy = Type::getIntNTy(AllocaTy->getContext(), SizeInBits);
1980   if (!canConvertValue(DL, AllocaTy, IntTy) ||
1981       !canConvertValue(DL, IntTy, AllocaTy))
1982     return false;
1983 
1984   // While examining uses, we ensure that the alloca has a covering load or
1985   // store. We don't want to widen the integer operations only to fail to
1986   // promote due to some other unsplittable entry (which we may make splittable
1987   // later). However, if there are only splittable uses, go ahead and assume
1988   // that we cover the alloca.
1989   // FIXME: We shouldn't consider split slices that happen to start in the
1990   // partition here...
1991   bool WholeAllocaOp =
1992       P.begin() != P.end() ? false : DL.isLegalInteger(SizeInBits);
1993 
1994   for (const Slice &S : P)
1995     if (!isIntegerWideningViableForSlice(S, P.beginOffset(), AllocaTy, DL,
1996                                          WholeAllocaOp))
1997       return false;
1998 
1999   for (const Slice *S : P.splitSliceTails())
2000     if (!isIntegerWideningViableForSlice(*S, P.beginOffset(), AllocaTy, DL,
2001                                          WholeAllocaOp))
2002       return false;
2003 
2004   return WholeAllocaOp;
2005 }
2006 
2007 static Value *extractInteger(const DataLayout &DL, IRBuilderTy &IRB, Value *V,
2008                              IntegerType *Ty, uint64_t Offset,
2009                              const Twine &Name) {
2010   DEBUG(dbgs() << "       start: " << *V << "\n");
2011   IntegerType *IntTy = cast<IntegerType>(V->getType());
2012   assert(DL.getTypeStoreSize(Ty) + Offset <= DL.getTypeStoreSize(IntTy) &&
2013          "Element extends past full value");
2014   uint64_t ShAmt = 8 * Offset;
2015   if (DL.isBigEndian())
2016     ShAmt = 8 * (DL.getTypeStoreSize(IntTy) - DL.getTypeStoreSize(Ty) - Offset);
2017   if (ShAmt) {
2018     V = IRB.CreateLShr(V, ShAmt, Name + ".shift");
2019     DEBUG(dbgs() << "     shifted: " << *V << "\n");
2020   }
2021   assert(Ty->getBitWidth() <= IntTy->getBitWidth() &&
2022          "Cannot extract to a larger integer!");
2023   if (Ty != IntTy) {
2024     V = IRB.CreateTrunc(V, Ty, Name + ".trunc");
2025     DEBUG(dbgs() << "     trunced: " << *V << "\n");
2026   }
2027   return V;
2028 }
2029 
2030 static Value *insertInteger(const DataLayout &DL, IRBuilderTy &IRB, Value *Old,
2031                             Value *V, uint64_t Offset, const Twine &Name) {
2032   IntegerType *IntTy = cast<IntegerType>(Old->getType());
2033   IntegerType *Ty = cast<IntegerType>(V->getType());
2034   assert(Ty->getBitWidth() <= IntTy->getBitWidth() &&
2035          "Cannot insert a larger integer!");
2036   DEBUG(dbgs() << "       start: " << *V << "\n");
2037   if (Ty != IntTy) {
2038     V = IRB.CreateZExt(V, IntTy, Name + ".ext");
2039     DEBUG(dbgs() << "    extended: " << *V << "\n");
2040   }
2041   assert(DL.getTypeStoreSize(Ty) + Offset <= DL.getTypeStoreSize(IntTy) &&
2042          "Element store outside of alloca store");
2043   uint64_t ShAmt = 8 * Offset;
2044   if (DL.isBigEndian())
2045     ShAmt = 8 * (DL.getTypeStoreSize(IntTy) - DL.getTypeStoreSize(Ty) - Offset);
2046   if (ShAmt) {
2047     V = IRB.CreateShl(V, ShAmt, Name + ".shift");
2048     DEBUG(dbgs() << "     shifted: " << *V << "\n");
2049   }
2050 
2051   if (ShAmt || Ty->getBitWidth() < IntTy->getBitWidth()) {
2052     APInt Mask = ~Ty->getMask().zext(IntTy->getBitWidth()).shl(ShAmt);
2053     Old = IRB.CreateAnd(Old, Mask, Name + ".mask");
2054     DEBUG(dbgs() << "      masked: " << *Old << "\n");
2055     V = IRB.CreateOr(Old, V, Name + ".insert");
2056     DEBUG(dbgs() << "    inserted: " << *V << "\n");
2057   }
2058   return V;
2059 }
2060 
2061 static Value *extractVector(IRBuilderTy &IRB, Value *V, unsigned BeginIndex,
2062                             unsigned EndIndex, const Twine &Name) {
2063   VectorType *VecTy = cast<VectorType>(V->getType());
2064   unsigned NumElements = EndIndex - BeginIndex;
2065   assert(NumElements <= VecTy->getNumElements() && "Too many elements!");
2066 
2067   if (NumElements == VecTy->getNumElements())
2068     return V;
2069 
2070   if (NumElements == 1) {
2071     V = IRB.CreateExtractElement(V, IRB.getInt32(BeginIndex),
2072                                  Name + ".extract");
2073     DEBUG(dbgs() << "     extract: " << *V << "\n");
2074     return V;
2075   }
2076 
2077   SmallVector<Constant *, 8> Mask;
2078   Mask.reserve(NumElements);
2079   for (unsigned i = BeginIndex; i != EndIndex; ++i)
2080     Mask.push_back(IRB.getInt32(i));
2081   V = IRB.CreateShuffleVector(V, UndefValue::get(V->getType()),
2082                               ConstantVector::get(Mask), Name + ".extract");
2083   DEBUG(dbgs() << "     shuffle: " << *V << "\n");
2084   return V;
2085 }
2086 
2087 static Value *insertVector(IRBuilderTy &IRB, Value *Old, Value *V,
2088                            unsigned BeginIndex, const Twine &Name) {
2089   VectorType *VecTy = cast<VectorType>(Old->getType());
2090   assert(VecTy && "Can only insert a vector into a vector");
2091 
2092   VectorType *Ty = dyn_cast<VectorType>(V->getType());
2093   if (!Ty) {
2094     // Single element to insert.
2095     V = IRB.CreateInsertElement(Old, V, IRB.getInt32(BeginIndex),
2096                                 Name + ".insert");
2097     DEBUG(dbgs() << "     insert: " << *V << "\n");
2098     return V;
2099   }
2100 
2101   assert(Ty->getNumElements() <= VecTy->getNumElements() &&
2102          "Too many elements!");
2103   if (Ty->getNumElements() == VecTy->getNumElements()) {
2104     assert(V->getType() == VecTy && "Vector type mismatch");
2105     return V;
2106   }
2107   unsigned EndIndex = BeginIndex + Ty->getNumElements();
2108 
2109   // When inserting a smaller vector into the larger to store, we first
2110   // use a shuffle vector to widen it with undef elements, and then
2111   // a second shuffle vector to select between the loaded vector and the
2112   // incoming vector.
2113   SmallVector<Constant *, 8> Mask;
2114   Mask.reserve(VecTy->getNumElements());
2115   for (unsigned i = 0; i != VecTy->getNumElements(); ++i)
2116     if (i >= BeginIndex && i < EndIndex)
2117       Mask.push_back(IRB.getInt32(i - BeginIndex));
2118     else
2119       Mask.push_back(UndefValue::get(IRB.getInt32Ty()));
2120   V = IRB.CreateShuffleVector(V, UndefValue::get(V->getType()),
2121                               ConstantVector::get(Mask), Name + ".expand");
2122   DEBUG(dbgs() << "    shuffle: " << *V << "\n");
2123 
2124   Mask.clear();
2125   for (unsigned i = 0; i != VecTy->getNumElements(); ++i)
2126     Mask.push_back(IRB.getInt1(i >= BeginIndex && i < EndIndex));
2127 
2128   V = IRB.CreateSelect(ConstantVector::get(Mask), V, Old, Name + "blend");
2129 
2130   DEBUG(dbgs() << "    blend: " << *V << "\n");
2131   return V;
2132 }
2133 
2134 /// \brief Visitor to rewrite instructions using p particular slice of an alloca
2135 /// to use a new alloca.
2136 ///
2137 /// Also implements the rewriting to vector-based accesses when the partition
2138 /// passes the isVectorPromotionViable predicate. Most of the rewriting logic
2139 /// lives here.
2140 class llvm::sroa::AllocaSliceRewriter
2141     : public InstVisitor<AllocaSliceRewriter, bool> {
2142   // Befriend the base class so it can delegate to private visit methods.
2143   friend class llvm::InstVisitor<AllocaSliceRewriter, bool>;
2144   typedef llvm::InstVisitor<AllocaSliceRewriter, bool> Base;
2145 
2146   const DataLayout &DL;
2147   AllocaSlices &AS;
2148   SROA &Pass;
2149   AllocaInst &OldAI, &NewAI;
2150   const uint64_t NewAllocaBeginOffset, NewAllocaEndOffset;
2151   Type *NewAllocaTy;
2152 
2153   // This is a convenience and flag variable that will be null unless the new
2154   // alloca's integer operations should be widened to this integer type due to
2155   // passing isIntegerWideningViable above. If it is non-null, the desired
2156   // integer type will be stored here for easy access during rewriting.
2157   IntegerType *IntTy;
2158 
2159   // If we are rewriting an alloca partition which can be written as pure
2160   // vector operations, we stash extra information here. When VecTy is
2161   // non-null, we have some strict guarantees about the rewritten alloca:
2162   //   - The new alloca is exactly the size of the vector type here.
2163   //   - The accesses all either map to the entire vector or to a single
2164   //     element.
2165   //   - The set of accessing instructions is only one of those handled above
2166   //     in isVectorPromotionViable. Generally these are the same access kinds
2167   //     which are promotable via mem2reg.
2168   VectorType *VecTy;
2169   Type *ElementTy;
2170   uint64_t ElementSize;
2171 
2172   // The original offset of the slice currently being rewritten relative to
2173   // the original alloca.
2174   uint64_t BeginOffset, EndOffset;
2175   // The new offsets of the slice currently being rewritten relative to the
2176   // original alloca.
2177   uint64_t NewBeginOffset, NewEndOffset;
2178 
2179   uint64_t SliceSize;
2180   bool IsSplittable;
2181   bool IsSplit;
2182   Use *OldUse;
2183   Instruction *OldPtr;
2184 
2185   // Track post-rewrite users which are PHI nodes and Selects.
2186   SmallPtrSetImpl<PHINode *> &PHIUsers;
2187   SmallPtrSetImpl<SelectInst *> &SelectUsers;
2188 
2189   // Utility IR builder, whose name prefix is setup for each visited use, and
2190   // the insertion point is set to point to the user.
2191   IRBuilderTy IRB;
2192 
2193 public:
2194   AllocaSliceRewriter(const DataLayout &DL, AllocaSlices &AS, SROA &Pass,
2195                       AllocaInst &OldAI, AllocaInst &NewAI,
2196                       uint64_t NewAllocaBeginOffset,
2197                       uint64_t NewAllocaEndOffset, bool IsIntegerPromotable,
2198                       VectorType *PromotableVecTy,
2199                       SmallPtrSetImpl<PHINode *> &PHIUsers,
2200                       SmallPtrSetImpl<SelectInst *> &SelectUsers)
2201       : DL(DL), AS(AS), Pass(Pass), OldAI(OldAI), NewAI(NewAI),
2202         NewAllocaBeginOffset(NewAllocaBeginOffset),
2203         NewAllocaEndOffset(NewAllocaEndOffset),
2204         NewAllocaTy(NewAI.getAllocatedType()),
2205         IntTy(IsIntegerPromotable
2206                   ? Type::getIntNTy(
2207                         NewAI.getContext(),
2208                         DL.getTypeSizeInBits(NewAI.getAllocatedType()))
2209                   : nullptr),
2210         VecTy(PromotableVecTy),
2211         ElementTy(VecTy ? VecTy->getElementType() : nullptr),
2212         ElementSize(VecTy ? DL.getTypeSizeInBits(ElementTy) / 8 : 0),
2213         BeginOffset(), EndOffset(), IsSplittable(), IsSplit(), OldUse(),
2214         OldPtr(), PHIUsers(PHIUsers), SelectUsers(SelectUsers),
2215         IRB(NewAI.getContext(), ConstantFolder()) {
2216     if (VecTy) {
2217       assert((DL.getTypeSizeInBits(ElementTy) % 8) == 0 &&
2218              "Only multiple-of-8 sized vector elements are viable");
2219       ++NumVectorized;
2220     }
2221     assert((!IntTy && !VecTy) || (IntTy && !VecTy) || (!IntTy && VecTy));
2222   }
2223 
2224   bool visit(AllocaSlices::const_iterator I) {
2225     bool CanSROA = true;
2226     BeginOffset = I->beginOffset();
2227     EndOffset = I->endOffset();
2228     IsSplittable = I->isSplittable();
2229     IsSplit =
2230         BeginOffset < NewAllocaBeginOffset || EndOffset > NewAllocaEndOffset;
2231     DEBUG(dbgs() << "  rewriting " << (IsSplit ? "split " : ""));
2232     DEBUG(AS.printSlice(dbgs(), I, ""));
2233     DEBUG(dbgs() << "\n");
2234 
2235     // Compute the intersecting offset range.
2236     assert(BeginOffset < NewAllocaEndOffset);
2237     assert(EndOffset > NewAllocaBeginOffset);
2238     NewBeginOffset = std::max(BeginOffset, NewAllocaBeginOffset);
2239     NewEndOffset = std::min(EndOffset, NewAllocaEndOffset);
2240 
2241     SliceSize = NewEndOffset - NewBeginOffset;
2242 
2243     OldUse = I->getUse();
2244     OldPtr = cast<Instruction>(OldUse->get());
2245 
2246     Instruction *OldUserI = cast<Instruction>(OldUse->getUser());
2247     IRB.SetInsertPoint(OldUserI);
2248     IRB.SetCurrentDebugLocation(OldUserI->getDebugLoc());
2249     IRB.SetNamePrefix(Twine(NewAI.getName()) + "." + Twine(BeginOffset) + ".");
2250 
2251     CanSROA &= visit(cast<Instruction>(OldUse->getUser()));
2252     if (VecTy || IntTy)
2253       assert(CanSROA);
2254     return CanSROA;
2255   }
2256 
2257 private:
2258   // Make sure the other visit overloads are visible.
2259   using Base::visit;
2260 
2261   // Every instruction which can end up as a user must have a rewrite rule.
2262   bool visitInstruction(Instruction &I) {
2263     DEBUG(dbgs() << "    !!!! Cannot rewrite: " << I << "\n");
2264     llvm_unreachable("No rewrite rule for this instruction!");
2265   }
2266 
2267   Value *getNewAllocaSlicePtr(IRBuilderTy &IRB, Type *PointerTy) {
2268     // Note that the offset computation can use BeginOffset or NewBeginOffset
2269     // interchangeably for unsplit slices.
2270     assert(IsSplit || BeginOffset == NewBeginOffset);
2271     uint64_t Offset = NewBeginOffset - NewAllocaBeginOffset;
2272 
2273 #ifndef NDEBUG
2274     StringRef OldName = OldPtr->getName();
2275     // Skip through the last '.sroa.' component of the name.
2276     size_t LastSROAPrefix = OldName.rfind(".sroa.");
2277     if (LastSROAPrefix != StringRef::npos) {
2278       OldName = OldName.substr(LastSROAPrefix + strlen(".sroa."));
2279       // Look for an SROA slice index.
2280       size_t IndexEnd = OldName.find_first_not_of("0123456789");
2281       if (IndexEnd != StringRef::npos && OldName[IndexEnd] == '.') {
2282         // Strip the index and look for the offset.
2283         OldName = OldName.substr(IndexEnd + 1);
2284         size_t OffsetEnd = OldName.find_first_not_of("0123456789");
2285         if (OffsetEnd != StringRef::npos && OldName[OffsetEnd] == '.')
2286           // Strip the offset.
2287           OldName = OldName.substr(OffsetEnd + 1);
2288       }
2289     }
2290     // Strip any SROA suffixes as well.
2291     OldName = OldName.substr(0, OldName.find(".sroa_"));
2292 #endif
2293 
2294     return getAdjustedPtr(IRB, DL, &NewAI,
2295                           APInt(DL.getPointerSizeInBits(), Offset), PointerTy,
2296 #ifndef NDEBUG
2297                           Twine(OldName) + "."
2298 #else
2299                           Twine()
2300 #endif
2301                           );
2302   }
2303 
2304   /// \brief Compute suitable alignment to access this slice of the *new*
2305   /// alloca.
2306   ///
2307   /// You can optionally pass a type to this routine and if that type's ABI
2308   /// alignment is itself suitable, this will return zero.
2309   unsigned getSliceAlign(Type *Ty = nullptr) {
2310     unsigned NewAIAlign = NewAI.getAlignment();
2311     if (!NewAIAlign)
2312       NewAIAlign = DL.getABITypeAlignment(NewAI.getAllocatedType());
2313     unsigned Align =
2314         MinAlign(NewAIAlign, NewBeginOffset - NewAllocaBeginOffset);
2315     return (Ty && Align == DL.getABITypeAlignment(Ty)) ? 0 : Align;
2316   }
2317 
2318   unsigned getIndex(uint64_t Offset) {
2319     assert(VecTy && "Can only call getIndex when rewriting a vector");
2320     uint64_t RelOffset = Offset - NewAllocaBeginOffset;
2321     assert(RelOffset / ElementSize < UINT32_MAX && "Index out of bounds");
2322     uint32_t Index = RelOffset / ElementSize;
2323     assert(Index * ElementSize == RelOffset);
2324     return Index;
2325   }
2326 
2327   void deleteIfTriviallyDead(Value *V) {
2328     Instruction *I = cast<Instruction>(V);
2329     if (isInstructionTriviallyDead(I))
2330       Pass.DeadInsts.insert(I);
2331   }
2332 
2333   Value *rewriteVectorizedLoadInst() {
2334     unsigned BeginIndex = getIndex(NewBeginOffset);
2335     unsigned EndIndex = getIndex(NewEndOffset);
2336     assert(EndIndex > BeginIndex && "Empty vector!");
2337 
2338     Value *V = IRB.CreateAlignedLoad(&NewAI, NewAI.getAlignment(), "load");
2339     return extractVector(IRB, V, BeginIndex, EndIndex, "vec");
2340   }
2341 
2342   Value *rewriteIntegerLoad(LoadInst &LI) {
2343     assert(IntTy && "We cannot insert an integer to the alloca");
2344     assert(!LI.isVolatile());
2345     Value *V = IRB.CreateAlignedLoad(&NewAI, NewAI.getAlignment(), "load");
2346     V = convertValue(DL, IRB, V, IntTy);
2347     assert(NewBeginOffset >= NewAllocaBeginOffset && "Out of bounds offset");
2348     uint64_t Offset = NewBeginOffset - NewAllocaBeginOffset;
2349     if (Offset > 0 || NewEndOffset < NewAllocaEndOffset) {
2350       IntegerType *ExtractTy = Type::getIntNTy(LI.getContext(), SliceSize * 8);
2351       V = extractInteger(DL, IRB, V, ExtractTy, Offset, "extract");
2352     }
2353     // It is possible that the extracted type is not the load type. This
2354     // happens if there is a load past the end of the alloca, and as
2355     // a consequence the slice is narrower but still a candidate for integer
2356     // lowering. To handle this case, we just zero extend the extracted
2357     // integer.
2358     assert(cast<IntegerType>(LI.getType())->getBitWidth() >= SliceSize * 8 &&
2359            "Can only handle an extract for an overly wide load");
2360     if (cast<IntegerType>(LI.getType())->getBitWidth() > SliceSize * 8)
2361       V = IRB.CreateZExt(V, LI.getType());
2362     return V;
2363   }
2364 
2365   bool visitLoadInst(LoadInst &LI) {
2366     DEBUG(dbgs() << "    original: " << LI << "\n");
2367     Value *OldOp = LI.getOperand(0);
2368     assert(OldOp == OldPtr);
2369 
2370     Type *TargetTy = IsSplit ? Type::getIntNTy(LI.getContext(), SliceSize * 8)
2371                              : LI.getType();
2372     const bool IsLoadPastEnd = DL.getTypeStoreSize(TargetTy) > SliceSize;
2373     bool IsPtrAdjusted = false;
2374     Value *V;
2375     if (VecTy) {
2376       V = rewriteVectorizedLoadInst();
2377     } else if (IntTy && LI.getType()->isIntegerTy()) {
2378       V = rewriteIntegerLoad(LI);
2379     } else if (NewBeginOffset == NewAllocaBeginOffset &&
2380                NewEndOffset == NewAllocaEndOffset &&
2381                (canConvertValue(DL, NewAllocaTy, TargetTy) ||
2382                 (IsLoadPastEnd && NewAllocaTy->isIntegerTy() &&
2383                  TargetTy->isIntegerTy()))) {
2384       LoadInst *NewLI = IRB.CreateAlignedLoad(&NewAI, NewAI.getAlignment(),
2385                                               LI.isVolatile(), LI.getName());
2386       if (LI.isVolatile())
2387         NewLI->setAtomic(LI.getOrdering(), LI.getSynchScope());
2388       V = NewLI;
2389 
2390       // If this is an integer load past the end of the slice (which means the
2391       // bytes outside the slice are undef or this load is dead) just forcibly
2392       // fix the integer size with correct handling of endianness.
2393       if (auto *AITy = dyn_cast<IntegerType>(NewAllocaTy))
2394         if (auto *TITy = dyn_cast<IntegerType>(TargetTy))
2395           if (AITy->getBitWidth() < TITy->getBitWidth()) {
2396             V = IRB.CreateZExt(V, TITy, "load.ext");
2397             if (DL.isBigEndian())
2398               V = IRB.CreateShl(V, TITy->getBitWidth() - AITy->getBitWidth(),
2399                                 "endian_shift");
2400           }
2401     } else {
2402       Type *LTy = TargetTy->getPointerTo();
2403       LoadInst *NewLI = IRB.CreateAlignedLoad(getNewAllocaSlicePtr(IRB, LTy),
2404                                               getSliceAlign(TargetTy),
2405                                               LI.isVolatile(), LI.getName());
2406       if (LI.isVolatile())
2407         NewLI->setAtomic(LI.getOrdering(), LI.getSynchScope());
2408 
2409       V = NewLI;
2410       IsPtrAdjusted = true;
2411     }
2412     V = convertValue(DL, IRB, V, TargetTy);
2413 
2414     if (IsSplit) {
2415       assert(!LI.isVolatile());
2416       assert(LI.getType()->isIntegerTy() &&
2417              "Only integer type loads and stores are split");
2418       assert(SliceSize < DL.getTypeStoreSize(LI.getType()) &&
2419              "Split load isn't smaller than original load");
2420       assert(LI.getType()->getIntegerBitWidth() ==
2421                  DL.getTypeStoreSizeInBits(LI.getType()) &&
2422              "Non-byte-multiple bit width");
2423       // Move the insertion point just past the load so that we can refer to it.
2424       IRB.SetInsertPoint(&*std::next(BasicBlock::iterator(&LI)));
2425       // Create a placeholder value with the same type as LI to use as the
2426       // basis for the new value. This allows us to replace the uses of LI with
2427       // the computed value, and then replace the placeholder with LI, leaving
2428       // LI only used for this computation.
2429       Value *Placeholder =
2430           new LoadInst(UndefValue::get(LI.getType()->getPointerTo()));
2431       V = insertInteger(DL, IRB, Placeholder, V, NewBeginOffset - BeginOffset,
2432                         "insert");
2433       LI.replaceAllUsesWith(V);
2434       Placeholder->replaceAllUsesWith(&LI);
2435       delete Placeholder;
2436     } else {
2437       LI.replaceAllUsesWith(V);
2438     }
2439 
2440     Pass.DeadInsts.insert(&LI);
2441     deleteIfTriviallyDead(OldOp);
2442     DEBUG(dbgs() << "          to: " << *V << "\n");
2443     return !LI.isVolatile() && !IsPtrAdjusted;
2444   }
2445 
2446   bool rewriteVectorizedStoreInst(Value *V, StoreInst &SI, Value *OldOp) {
2447     if (V->getType() != VecTy) {
2448       unsigned BeginIndex = getIndex(NewBeginOffset);
2449       unsigned EndIndex = getIndex(NewEndOffset);
2450       assert(EndIndex > BeginIndex && "Empty vector!");
2451       unsigned NumElements = EndIndex - BeginIndex;
2452       assert(NumElements <= VecTy->getNumElements() && "Too many elements!");
2453       Type *SliceTy = (NumElements == 1)
2454                           ? ElementTy
2455                           : VectorType::get(ElementTy, NumElements);
2456       if (V->getType() != SliceTy)
2457         V = convertValue(DL, IRB, V, SliceTy);
2458 
2459       // Mix in the existing elements.
2460       Value *Old = IRB.CreateAlignedLoad(&NewAI, NewAI.getAlignment(), "load");
2461       V = insertVector(IRB, Old, V, BeginIndex, "vec");
2462     }
2463     StoreInst *Store = IRB.CreateAlignedStore(V, &NewAI, NewAI.getAlignment());
2464     Pass.DeadInsts.insert(&SI);
2465 
2466     (void)Store;
2467     DEBUG(dbgs() << "          to: " << *Store << "\n");
2468     return true;
2469   }
2470 
2471   bool rewriteIntegerStore(Value *V, StoreInst &SI) {
2472     assert(IntTy && "We cannot extract an integer from the alloca");
2473     assert(!SI.isVolatile());
2474     if (DL.getTypeSizeInBits(V->getType()) != IntTy->getBitWidth()) {
2475       Value *Old =
2476           IRB.CreateAlignedLoad(&NewAI, NewAI.getAlignment(), "oldload");
2477       Old = convertValue(DL, IRB, Old, IntTy);
2478       assert(BeginOffset >= NewAllocaBeginOffset && "Out of bounds offset");
2479       uint64_t Offset = BeginOffset - NewAllocaBeginOffset;
2480       V = insertInteger(DL, IRB, Old, SI.getValueOperand(), Offset, "insert");
2481     }
2482     V = convertValue(DL, IRB, V, NewAllocaTy);
2483     StoreInst *Store = IRB.CreateAlignedStore(V, &NewAI, NewAI.getAlignment());
2484     Pass.DeadInsts.insert(&SI);
2485     (void)Store;
2486     DEBUG(dbgs() << "          to: " << *Store << "\n");
2487     return true;
2488   }
2489 
2490   bool visitStoreInst(StoreInst &SI) {
2491     DEBUG(dbgs() << "    original: " << SI << "\n");
2492     Value *OldOp = SI.getOperand(1);
2493     assert(OldOp == OldPtr);
2494 
2495     Value *V = SI.getValueOperand();
2496 
2497     // Strip all inbounds GEPs and pointer casts to try to dig out any root
2498     // alloca that should be re-examined after promoting this alloca.
2499     if (V->getType()->isPointerTy())
2500       if (AllocaInst *AI = dyn_cast<AllocaInst>(V->stripInBoundsOffsets()))
2501         Pass.PostPromotionWorklist.insert(AI);
2502 
2503     if (SliceSize < DL.getTypeStoreSize(V->getType())) {
2504       assert(!SI.isVolatile());
2505       assert(V->getType()->isIntegerTy() &&
2506              "Only integer type loads and stores are split");
2507       assert(V->getType()->getIntegerBitWidth() ==
2508                  DL.getTypeStoreSizeInBits(V->getType()) &&
2509              "Non-byte-multiple bit width");
2510       IntegerType *NarrowTy = Type::getIntNTy(SI.getContext(), SliceSize * 8);
2511       V = extractInteger(DL, IRB, V, NarrowTy, NewBeginOffset - BeginOffset,
2512                          "extract");
2513     }
2514 
2515     if (VecTy)
2516       return rewriteVectorizedStoreInst(V, SI, OldOp);
2517     if (IntTy && V->getType()->isIntegerTy())
2518       return rewriteIntegerStore(V, SI);
2519 
2520     const bool IsStorePastEnd = DL.getTypeStoreSize(V->getType()) > SliceSize;
2521     StoreInst *NewSI;
2522     if (NewBeginOffset == NewAllocaBeginOffset &&
2523         NewEndOffset == NewAllocaEndOffset &&
2524         (canConvertValue(DL, V->getType(), NewAllocaTy) ||
2525          (IsStorePastEnd && NewAllocaTy->isIntegerTy() &&
2526           V->getType()->isIntegerTy()))) {
2527       // If this is an integer store past the end of slice (and thus the bytes
2528       // past that point are irrelevant or this is unreachable), truncate the
2529       // value prior to storing.
2530       if (auto *VITy = dyn_cast<IntegerType>(V->getType()))
2531         if (auto *AITy = dyn_cast<IntegerType>(NewAllocaTy))
2532           if (VITy->getBitWidth() > AITy->getBitWidth()) {
2533             if (DL.isBigEndian())
2534               V = IRB.CreateLShr(V, VITy->getBitWidth() - AITy->getBitWidth(),
2535                                  "endian_shift");
2536             V = IRB.CreateTrunc(V, AITy, "load.trunc");
2537           }
2538 
2539       V = convertValue(DL, IRB, V, NewAllocaTy);
2540       NewSI = IRB.CreateAlignedStore(V, &NewAI, NewAI.getAlignment(),
2541                                      SI.isVolatile());
2542     } else {
2543       Value *NewPtr = getNewAllocaSlicePtr(IRB, V->getType()->getPointerTo());
2544       NewSI = IRB.CreateAlignedStore(V, NewPtr, getSliceAlign(V->getType()),
2545                                      SI.isVolatile());
2546     }
2547     if (SI.isVolatile())
2548       NewSI->setAtomic(SI.getOrdering(), SI.getSynchScope());
2549     Pass.DeadInsts.insert(&SI);
2550     deleteIfTriviallyDead(OldOp);
2551 
2552     DEBUG(dbgs() << "          to: " << *NewSI << "\n");
2553     return NewSI->getPointerOperand() == &NewAI && !SI.isVolatile();
2554   }
2555 
2556   /// \brief Compute an integer value from splatting an i8 across the given
2557   /// number of bytes.
2558   ///
2559   /// Note that this routine assumes an i8 is a byte. If that isn't true, don't
2560   /// call this routine.
2561   /// FIXME: Heed the advice above.
2562   ///
2563   /// \param V The i8 value to splat.
2564   /// \param Size The number of bytes in the output (assuming i8 is one byte)
2565   Value *getIntegerSplat(Value *V, unsigned Size) {
2566     assert(Size > 0 && "Expected a positive number of bytes.");
2567     IntegerType *VTy = cast<IntegerType>(V->getType());
2568     assert(VTy->getBitWidth() == 8 && "Expected an i8 value for the byte");
2569     if (Size == 1)
2570       return V;
2571 
2572     Type *SplatIntTy = Type::getIntNTy(VTy->getContext(), Size * 8);
2573     V = IRB.CreateMul(
2574         IRB.CreateZExt(V, SplatIntTy, "zext"),
2575         ConstantExpr::getUDiv(
2576             Constant::getAllOnesValue(SplatIntTy),
2577             ConstantExpr::getZExt(Constant::getAllOnesValue(V->getType()),
2578                                   SplatIntTy)),
2579         "isplat");
2580     return V;
2581   }
2582 
2583   /// \brief Compute a vector splat for a given element value.
2584   Value *getVectorSplat(Value *V, unsigned NumElements) {
2585     V = IRB.CreateVectorSplat(NumElements, V, "vsplat");
2586     DEBUG(dbgs() << "       splat: " << *V << "\n");
2587     return V;
2588   }
2589 
2590   bool visitMemSetInst(MemSetInst &II) {
2591     DEBUG(dbgs() << "    original: " << II << "\n");
2592     assert(II.getRawDest() == OldPtr);
2593 
2594     // If the memset has a variable size, it cannot be split, just adjust the
2595     // pointer to the new alloca.
2596     if (!isa<Constant>(II.getLength())) {
2597       assert(!IsSplit);
2598       assert(NewBeginOffset == BeginOffset);
2599       II.setDest(getNewAllocaSlicePtr(IRB, OldPtr->getType()));
2600       Type *CstTy = II.getAlignmentCst()->getType();
2601       II.setAlignment(ConstantInt::get(CstTy, getSliceAlign()));
2602 
2603       deleteIfTriviallyDead(OldPtr);
2604       return false;
2605     }
2606 
2607     // Record this instruction for deletion.
2608     Pass.DeadInsts.insert(&II);
2609 
2610     Type *AllocaTy = NewAI.getAllocatedType();
2611     Type *ScalarTy = AllocaTy->getScalarType();
2612 
2613     // If this doesn't map cleanly onto the alloca type, and that type isn't
2614     // a single value type, just emit a memset.
2615     if (!VecTy && !IntTy &&
2616         (BeginOffset > NewAllocaBeginOffset || EndOffset < NewAllocaEndOffset ||
2617          SliceSize != DL.getTypeStoreSize(AllocaTy) ||
2618          !AllocaTy->isSingleValueType() ||
2619          !DL.isLegalInteger(DL.getTypeSizeInBits(ScalarTy)) ||
2620          DL.getTypeSizeInBits(ScalarTy) % 8 != 0)) {
2621       Type *SizeTy = II.getLength()->getType();
2622       Constant *Size = ConstantInt::get(SizeTy, NewEndOffset - NewBeginOffset);
2623       CallInst *New = IRB.CreateMemSet(
2624           getNewAllocaSlicePtr(IRB, OldPtr->getType()), II.getValue(), Size,
2625           getSliceAlign(), II.isVolatile());
2626       (void)New;
2627       DEBUG(dbgs() << "          to: " << *New << "\n");
2628       return false;
2629     }
2630 
2631     // If we can represent this as a simple value, we have to build the actual
2632     // value to store, which requires expanding the byte present in memset to
2633     // a sensible representation for the alloca type. This is essentially
2634     // splatting the byte to a sufficiently wide integer, splatting it across
2635     // any desired vector width, and bitcasting to the final type.
2636     Value *V;
2637 
2638     if (VecTy) {
2639       // If this is a memset of a vectorized alloca, insert it.
2640       assert(ElementTy == ScalarTy);
2641 
2642       unsigned BeginIndex = getIndex(NewBeginOffset);
2643       unsigned EndIndex = getIndex(NewEndOffset);
2644       assert(EndIndex > BeginIndex && "Empty vector!");
2645       unsigned NumElements = EndIndex - BeginIndex;
2646       assert(NumElements <= VecTy->getNumElements() && "Too many elements!");
2647 
2648       Value *Splat =
2649           getIntegerSplat(II.getValue(), DL.getTypeSizeInBits(ElementTy) / 8);
2650       Splat = convertValue(DL, IRB, Splat, ElementTy);
2651       if (NumElements > 1)
2652         Splat = getVectorSplat(Splat, NumElements);
2653 
2654       Value *Old =
2655           IRB.CreateAlignedLoad(&NewAI, NewAI.getAlignment(), "oldload");
2656       V = insertVector(IRB, Old, Splat, BeginIndex, "vec");
2657     } else if (IntTy) {
2658       // If this is a memset on an alloca where we can widen stores, insert the
2659       // set integer.
2660       assert(!II.isVolatile());
2661 
2662       uint64_t Size = NewEndOffset - NewBeginOffset;
2663       V = getIntegerSplat(II.getValue(), Size);
2664 
2665       if (IntTy && (BeginOffset != NewAllocaBeginOffset ||
2666                     EndOffset != NewAllocaBeginOffset)) {
2667         Value *Old =
2668             IRB.CreateAlignedLoad(&NewAI, NewAI.getAlignment(), "oldload");
2669         Old = convertValue(DL, IRB, Old, IntTy);
2670         uint64_t Offset = NewBeginOffset - NewAllocaBeginOffset;
2671         V = insertInteger(DL, IRB, Old, V, Offset, "insert");
2672       } else {
2673         assert(V->getType() == IntTy &&
2674                "Wrong type for an alloca wide integer!");
2675       }
2676       V = convertValue(DL, IRB, V, AllocaTy);
2677     } else {
2678       // Established these invariants above.
2679       assert(NewBeginOffset == NewAllocaBeginOffset);
2680       assert(NewEndOffset == NewAllocaEndOffset);
2681 
2682       V = getIntegerSplat(II.getValue(), DL.getTypeSizeInBits(ScalarTy) / 8);
2683       if (VectorType *AllocaVecTy = dyn_cast<VectorType>(AllocaTy))
2684         V = getVectorSplat(V, AllocaVecTy->getNumElements());
2685 
2686       V = convertValue(DL, IRB, V, AllocaTy);
2687     }
2688 
2689     Value *New = IRB.CreateAlignedStore(V, &NewAI, NewAI.getAlignment(),
2690                                         II.isVolatile());
2691     (void)New;
2692     DEBUG(dbgs() << "          to: " << *New << "\n");
2693     return !II.isVolatile();
2694   }
2695 
2696   bool visitMemTransferInst(MemTransferInst &II) {
2697     // Rewriting of memory transfer instructions can be a bit tricky. We break
2698     // them into two categories: split intrinsics and unsplit intrinsics.
2699 
2700     DEBUG(dbgs() << "    original: " << II << "\n");
2701 
2702     bool IsDest = &II.getRawDestUse() == OldUse;
2703     assert((IsDest && II.getRawDest() == OldPtr) ||
2704            (!IsDest && II.getRawSource() == OldPtr));
2705 
2706     unsigned SliceAlign = getSliceAlign();
2707 
2708     // For unsplit intrinsics, we simply modify the source and destination
2709     // pointers in place. This isn't just an optimization, it is a matter of
2710     // correctness. With unsplit intrinsics we may be dealing with transfers
2711     // within a single alloca before SROA ran, or with transfers that have
2712     // a variable length. We may also be dealing with memmove instead of
2713     // memcpy, and so simply updating the pointers is the necessary for us to
2714     // update both source and dest of a single call.
2715     if (!IsSplittable) {
2716       Value *AdjustedPtr = getNewAllocaSlicePtr(IRB, OldPtr->getType());
2717       if (IsDest)
2718         II.setDest(AdjustedPtr);
2719       else
2720         II.setSource(AdjustedPtr);
2721 
2722       if (II.getAlignment() > SliceAlign) {
2723         Type *CstTy = II.getAlignmentCst()->getType();
2724         II.setAlignment(
2725             ConstantInt::get(CstTy, MinAlign(II.getAlignment(), SliceAlign)));
2726       }
2727 
2728       DEBUG(dbgs() << "          to: " << II << "\n");
2729       deleteIfTriviallyDead(OldPtr);
2730       return false;
2731     }
2732     // For split transfer intrinsics we have an incredibly useful assurance:
2733     // the source and destination do not reside within the same alloca, and at
2734     // least one of them does not escape. This means that we can replace
2735     // memmove with memcpy, and we don't need to worry about all manner of
2736     // downsides to splitting and transforming the operations.
2737 
2738     // If this doesn't map cleanly onto the alloca type, and that type isn't
2739     // a single value type, just emit a memcpy.
2740     bool EmitMemCpy =
2741         !VecTy && !IntTy &&
2742         (BeginOffset > NewAllocaBeginOffset || EndOffset < NewAllocaEndOffset ||
2743          SliceSize != DL.getTypeStoreSize(NewAI.getAllocatedType()) ||
2744          !NewAI.getAllocatedType()->isSingleValueType());
2745 
2746     // If we're just going to emit a memcpy, the alloca hasn't changed, and the
2747     // size hasn't been shrunk based on analysis of the viable range, this is
2748     // a no-op.
2749     if (EmitMemCpy && &OldAI == &NewAI) {
2750       // Ensure the start lines up.
2751       assert(NewBeginOffset == BeginOffset);
2752 
2753       // Rewrite the size as needed.
2754       if (NewEndOffset != EndOffset)
2755         II.setLength(ConstantInt::get(II.getLength()->getType(),
2756                                       NewEndOffset - NewBeginOffset));
2757       return false;
2758     }
2759     // Record this instruction for deletion.
2760     Pass.DeadInsts.insert(&II);
2761 
2762     // Strip all inbounds GEPs and pointer casts to try to dig out any root
2763     // alloca that should be re-examined after rewriting this instruction.
2764     Value *OtherPtr = IsDest ? II.getRawSource() : II.getRawDest();
2765     if (AllocaInst *AI =
2766             dyn_cast<AllocaInst>(OtherPtr->stripInBoundsOffsets())) {
2767       assert(AI != &OldAI && AI != &NewAI &&
2768              "Splittable transfers cannot reach the same alloca on both ends.");
2769       Pass.Worklist.insert(AI);
2770     }
2771 
2772     Type *OtherPtrTy = OtherPtr->getType();
2773     unsigned OtherAS = OtherPtrTy->getPointerAddressSpace();
2774 
2775     // Compute the relative offset for the other pointer within the transfer.
2776     unsigned IntPtrWidth = DL.getPointerSizeInBits(OtherAS);
2777     APInt OtherOffset(IntPtrWidth, NewBeginOffset - BeginOffset);
2778     unsigned OtherAlign = MinAlign(II.getAlignment() ? II.getAlignment() : 1,
2779                                    OtherOffset.zextOrTrunc(64).getZExtValue());
2780 
2781     if (EmitMemCpy) {
2782       // Compute the other pointer, folding as much as possible to produce
2783       // a single, simple GEP in most cases.
2784       OtherPtr = getAdjustedPtr(IRB, DL, OtherPtr, OtherOffset, OtherPtrTy,
2785                                 OtherPtr->getName() + ".");
2786 
2787       Value *OurPtr = getNewAllocaSlicePtr(IRB, OldPtr->getType());
2788       Type *SizeTy = II.getLength()->getType();
2789       Constant *Size = ConstantInt::get(SizeTy, NewEndOffset - NewBeginOffset);
2790 
2791       CallInst *New = IRB.CreateMemCpy(
2792           IsDest ? OurPtr : OtherPtr, IsDest ? OtherPtr : OurPtr, Size,
2793           MinAlign(SliceAlign, OtherAlign), II.isVolatile());
2794       (void)New;
2795       DEBUG(dbgs() << "          to: " << *New << "\n");
2796       return false;
2797     }
2798 
2799     bool IsWholeAlloca = NewBeginOffset == NewAllocaBeginOffset &&
2800                          NewEndOffset == NewAllocaEndOffset;
2801     uint64_t Size = NewEndOffset - NewBeginOffset;
2802     unsigned BeginIndex = VecTy ? getIndex(NewBeginOffset) : 0;
2803     unsigned EndIndex = VecTy ? getIndex(NewEndOffset) : 0;
2804     unsigned NumElements = EndIndex - BeginIndex;
2805     IntegerType *SubIntTy =
2806         IntTy ? Type::getIntNTy(IntTy->getContext(), Size * 8) : nullptr;
2807 
2808     // Reset the other pointer type to match the register type we're going to
2809     // use, but using the address space of the original other pointer.
2810     if (VecTy && !IsWholeAlloca) {
2811       if (NumElements == 1)
2812         OtherPtrTy = VecTy->getElementType();
2813       else
2814         OtherPtrTy = VectorType::get(VecTy->getElementType(), NumElements);
2815 
2816       OtherPtrTy = OtherPtrTy->getPointerTo(OtherAS);
2817     } else if (IntTy && !IsWholeAlloca) {
2818       OtherPtrTy = SubIntTy->getPointerTo(OtherAS);
2819     } else {
2820       OtherPtrTy = NewAllocaTy->getPointerTo(OtherAS);
2821     }
2822 
2823     Value *SrcPtr = getAdjustedPtr(IRB, DL, OtherPtr, OtherOffset, OtherPtrTy,
2824                                    OtherPtr->getName() + ".");
2825     unsigned SrcAlign = OtherAlign;
2826     Value *DstPtr = &NewAI;
2827     unsigned DstAlign = SliceAlign;
2828     if (!IsDest) {
2829       std::swap(SrcPtr, DstPtr);
2830       std::swap(SrcAlign, DstAlign);
2831     }
2832 
2833     Value *Src;
2834     if (VecTy && !IsWholeAlloca && !IsDest) {
2835       Src = IRB.CreateAlignedLoad(&NewAI, NewAI.getAlignment(), "load");
2836       Src = extractVector(IRB, Src, BeginIndex, EndIndex, "vec");
2837     } else if (IntTy && !IsWholeAlloca && !IsDest) {
2838       Src = IRB.CreateAlignedLoad(&NewAI, NewAI.getAlignment(), "load");
2839       Src = convertValue(DL, IRB, Src, IntTy);
2840       uint64_t Offset = NewBeginOffset - NewAllocaBeginOffset;
2841       Src = extractInteger(DL, IRB, Src, SubIntTy, Offset, "extract");
2842     } else {
2843       Src =
2844           IRB.CreateAlignedLoad(SrcPtr, SrcAlign, II.isVolatile(), "copyload");
2845     }
2846 
2847     if (VecTy && !IsWholeAlloca && IsDest) {
2848       Value *Old =
2849           IRB.CreateAlignedLoad(&NewAI, NewAI.getAlignment(), "oldload");
2850       Src = insertVector(IRB, Old, Src, BeginIndex, "vec");
2851     } else if (IntTy && !IsWholeAlloca && IsDest) {
2852       Value *Old =
2853           IRB.CreateAlignedLoad(&NewAI, NewAI.getAlignment(), "oldload");
2854       Old = convertValue(DL, IRB, Old, IntTy);
2855       uint64_t Offset = NewBeginOffset - NewAllocaBeginOffset;
2856       Src = insertInteger(DL, IRB, Old, Src, Offset, "insert");
2857       Src = convertValue(DL, IRB, Src, NewAllocaTy);
2858     }
2859 
2860     StoreInst *Store = cast<StoreInst>(
2861         IRB.CreateAlignedStore(Src, DstPtr, DstAlign, II.isVolatile()));
2862     (void)Store;
2863     DEBUG(dbgs() << "          to: " << *Store << "\n");
2864     return !II.isVolatile();
2865   }
2866 
2867   bool visitIntrinsicInst(IntrinsicInst &II) {
2868     assert(II.getIntrinsicID() == Intrinsic::lifetime_start ||
2869            II.getIntrinsicID() == Intrinsic::lifetime_end);
2870     DEBUG(dbgs() << "    original: " << II << "\n");
2871     assert(II.getArgOperand(1) == OldPtr);
2872 
2873     // Record this instruction for deletion.
2874     Pass.DeadInsts.insert(&II);
2875 
2876     ConstantInt *Size =
2877         ConstantInt::get(cast<IntegerType>(II.getArgOperand(0)->getType()),
2878                          NewEndOffset - NewBeginOffset);
2879     Value *Ptr = getNewAllocaSlicePtr(IRB, OldPtr->getType());
2880     Value *New;
2881     if (II.getIntrinsicID() == Intrinsic::lifetime_start)
2882       New = IRB.CreateLifetimeStart(Ptr, Size);
2883     else
2884       New = IRB.CreateLifetimeEnd(Ptr, Size);
2885 
2886     (void)New;
2887     DEBUG(dbgs() << "          to: " << *New << "\n");
2888     return true;
2889   }
2890 
2891   bool visitPHINode(PHINode &PN) {
2892     DEBUG(dbgs() << "    original: " << PN << "\n");
2893     assert(BeginOffset >= NewAllocaBeginOffset && "PHIs are unsplittable");
2894     assert(EndOffset <= NewAllocaEndOffset && "PHIs are unsplittable");
2895 
2896     // We would like to compute a new pointer in only one place, but have it be
2897     // as local as possible to the PHI. To do that, we re-use the location of
2898     // the old pointer, which necessarily must be in the right position to
2899     // dominate the PHI.
2900     IRBuilderTy PtrBuilder(IRB);
2901     if (isa<PHINode>(OldPtr))
2902       PtrBuilder.SetInsertPoint(&*OldPtr->getParent()->getFirstInsertionPt());
2903     else
2904       PtrBuilder.SetInsertPoint(OldPtr);
2905     PtrBuilder.SetCurrentDebugLocation(OldPtr->getDebugLoc());
2906 
2907     Value *NewPtr = getNewAllocaSlicePtr(PtrBuilder, OldPtr->getType());
2908     // Replace the operands which were using the old pointer.
2909     std::replace(PN.op_begin(), PN.op_end(), cast<Value>(OldPtr), NewPtr);
2910 
2911     DEBUG(dbgs() << "          to: " << PN << "\n");
2912     deleteIfTriviallyDead(OldPtr);
2913 
2914     // PHIs can't be promoted on their own, but often can be speculated. We
2915     // check the speculation outside of the rewriter so that we see the
2916     // fully-rewritten alloca.
2917     PHIUsers.insert(&PN);
2918     return true;
2919   }
2920 
2921   bool visitSelectInst(SelectInst &SI) {
2922     DEBUG(dbgs() << "    original: " << SI << "\n");
2923     assert((SI.getTrueValue() == OldPtr || SI.getFalseValue() == OldPtr) &&
2924            "Pointer isn't an operand!");
2925     assert(BeginOffset >= NewAllocaBeginOffset && "Selects are unsplittable");
2926     assert(EndOffset <= NewAllocaEndOffset && "Selects are unsplittable");
2927 
2928     Value *NewPtr = getNewAllocaSlicePtr(IRB, OldPtr->getType());
2929     // Replace the operands which were using the old pointer.
2930     if (SI.getOperand(1) == OldPtr)
2931       SI.setOperand(1, NewPtr);
2932     if (SI.getOperand(2) == OldPtr)
2933       SI.setOperand(2, NewPtr);
2934 
2935     DEBUG(dbgs() << "          to: " << SI << "\n");
2936     deleteIfTriviallyDead(OldPtr);
2937 
2938     // Selects can't be promoted on their own, but often can be speculated. We
2939     // check the speculation outside of the rewriter so that we see the
2940     // fully-rewritten alloca.
2941     SelectUsers.insert(&SI);
2942     return true;
2943   }
2944 };
2945 
2946 namespace {
2947 /// \brief Visitor to rewrite aggregate loads and stores as scalar.
2948 ///
2949 /// This pass aggressively rewrites all aggregate loads and stores on
2950 /// a particular pointer (or any pointer derived from it which we can identify)
2951 /// with scalar loads and stores.
2952 class AggLoadStoreRewriter : public InstVisitor<AggLoadStoreRewriter, bool> {
2953   // Befriend the base class so it can delegate to private visit methods.
2954   friend class llvm::InstVisitor<AggLoadStoreRewriter, bool>;
2955 
2956   /// Queue of pointer uses to analyze and potentially rewrite.
2957   SmallVector<Use *, 8> Queue;
2958 
2959   /// Set to prevent us from cycling with phi nodes and loops.
2960   SmallPtrSet<User *, 8> Visited;
2961 
2962   /// The current pointer use being rewritten. This is used to dig up the used
2963   /// value (as opposed to the user).
2964   Use *U;
2965 
2966 public:
2967   /// Rewrite loads and stores through a pointer and all pointers derived from
2968   /// it.
2969   bool rewrite(Instruction &I) {
2970     DEBUG(dbgs() << "  Rewriting FCA loads and stores...\n");
2971     enqueueUsers(I);
2972     bool Changed = false;
2973     while (!Queue.empty()) {
2974       U = Queue.pop_back_val();
2975       Changed |= visit(cast<Instruction>(U->getUser()));
2976     }
2977     return Changed;
2978   }
2979 
2980 private:
2981   /// Enqueue all the users of the given instruction for further processing.
2982   /// This uses a set to de-duplicate users.
2983   void enqueueUsers(Instruction &I) {
2984     for (Use &U : I.uses())
2985       if (Visited.insert(U.getUser()).second)
2986         Queue.push_back(&U);
2987   }
2988 
2989   // Conservative default is to not rewrite anything.
2990   bool visitInstruction(Instruction &I) { return false; }
2991 
2992   /// \brief Generic recursive split emission class.
2993   template <typename Derived> class OpSplitter {
2994   protected:
2995     /// The builder used to form new instructions.
2996     IRBuilderTy IRB;
2997     /// The indices which to be used with insert- or extractvalue to select the
2998     /// appropriate value within the aggregate.
2999     SmallVector<unsigned, 4> Indices;
3000     /// The indices to a GEP instruction which will move Ptr to the correct slot
3001     /// within the aggregate.
3002     SmallVector<Value *, 4> GEPIndices;
3003     /// The base pointer of the original op, used as a base for GEPing the
3004     /// split operations.
3005     Value *Ptr;
3006 
3007     /// Initialize the splitter with an insertion point, Ptr and start with a
3008     /// single zero GEP index.
3009     OpSplitter(Instruction *InsertionPoint, Value *Ptr)
3010         : IRB(InsertionPoint), GEPIndices(1, IRB.getInt32(0)), Ptr(Ptr) {}
3011 
3012   public:
3013     /// \brief Generic recursive split emission routine.
3014     ///
3015     /// This method recursively splits an aggregate op (load or store) into
3016     /// scalar or vector ops. It splits recursively until it hits a single value
3017     /// and emits that single value operation via the template argument.
3018     ///
3019     /// The logic of this routine relies on GEPs and insertvalue and
3020     /// extractvalue all operating with the same fundamental index list, merely
3021     /// formatted differently (GEPs need actual values).
3022     ///
3023     /// \param Ty  The type being split recursively into smaller ops.
3024     /// \param Agg The aggregate value being built up or stored, depending on
3025     /// whether this is splitting a load or a store respectively.
3026     void emitSplitOps(Type *Ty, Value *&Agg, const Twine &Name) {
3027       if (Ty->isSingleValueType())
3028         return static_cast<Derived *>(this)->emitFunc(Ty, Agg, Name);
3029 
3030       if (ArrayType *ATy = dyn_cast<ArrayType>(Ty)) {
3031         unsigned OldSize = Indices.size();
3032         (void)OldSize;
3033         for (unsigned Idx = 0, Size = ATy->getNumElements(); Idx != Size;
3034              ++Idx) {
3035           assert(Indices.size() == OldSize && "Did not return to the old size");
3036           Indices.push_back(Idx);
3037           GEPIndices.push_back(IRB.getInt32(Idx));
3038           emitSplitOps(ATy->getElementType(), Agg, Name + "." + Twine(Idx));
3039           GEPIndices.pop_back();
3040           Indices.pop_back();
3041         }
3042         return;
3043       }
3044 
3045       if (StructType *STy = dyn_cast<StructType>(Ty)) {
3046         unsigned OldSize = Indices.size();
3047         (void)OldSize;
3048         for (unsigned Idx = 0, Size = STy->getNumElements(); Idx != Size;
3049              ++Idx) {
3050           assert(Indices.size() == OldSize && "Did not return to the old size");
3051           Indices.push_back(Idx);
3052           GEPIndices.push_back(IRB.getInt32(Idx));
3053           emitSplitOps(STy->getElementType(Idx), Agg, Name + "." + Twine(Idx));
3054           GEPIndices.pop_back();
3055           Indices.pop_back();
3056         }
3057         return;
3058       }
3059 
3060       llvm_unreachable("Only arrays and structs are aggregate loadable types");
3061     }
3062   };
3063 
3064   struct LoadOpSplitter : public OpSplitter<LoadOpSplitter> {
3065     LoadOpSplitter(Instruction *InsertionPoint, Value *Ptr)
3066         : OpSplitter<LoadOpSplitter>(InsertionPoint, Ptr) {}
3067 
3068     /// Emit a leaf load of a single value. This is called at the leaves of the
3069     /// recursive emission to actually load values.
3070     void emitFunc(Type *Ty, Value *&Agg, const Twine &Name) {
3071       assert(Ty->isSingleValueType());
3072       // Load the single value and insert it using the indices.
3073       Value *GEP =
3074           IRB.CreateInBoundsGEP(nullptr, Ptr, GEPIndices, Name + ".gep");
3075       Value *Load = IRB.CreateLoad(GEP, Name + ".load");
3076       Agg = IRB.CreateInsertValue(Agg, Load, Indices, Name + ".insert");
3077       DEBUG(dbgs() << "          to: " << *Load << "\n");
3078     }
3079   };
3080 
3081   bool visitLoadInst(LoadInst &LI) {
3082     assert(LI.getPointerOperand() == *U);
3083     if (!LI.isSimple() || LI.getType()->isSingleValueType())
3084       return false;
3085 
3086     // We have an aggregate being loaded, split it apart.
3087     DEBUG(dbgs() << "    original: " << LI << "\n");
3088     LoadOpSplitter Splitter(&LI, *U);
3089     Value *V = UndefValue::get(LI.getType());
3090     Splitter.emitSplitOps(LI.getType(), V, LI.getName() + ".fca");
3091     LI.replaceAllUsesWith(V);
3092     LI.eraseFromParent();
3093     return true;
3094   }
3095 
3096   struct StoreOpSplitter : public OpSplitter<StoreOpSplitter> {
3097     StoreOpSplitter(Instruction *InsertionPoint, Value *Ptr)
3098         : OpSplitter<StoreOpSplitter>(InsertionPoint, Ptr) {}
3099 
3100     /// Emit a leaf store of a single value. This is called at the leaves of the
3101     /// recursive emission to actually produce stores.
3102     void emitFunc(Type *Ty, Value *&Agg, const Twine &Name) {
3103       assert(Ty->isSingleValueType());
3104       // Extract the single value and store it using the indices.
3105       Value *Store = IRB.CreateStore(
3106           IRB.CreateExtractValue(Agg, Indices, Name + ".extract"),
3107           IRB.CreateInBoundsGEP(nullptr, Ptr, GEPIndices, Name + ".gep"));
3108       (void)Store;
3109       DEBUG(dbgs() << "          to: " << *Store << "\n");
3110     }
3111   };
3112 
3113   bool visitStoreInst(StoreInst &SI) {
3114     if (!SI.isSimple() || SI.getPointerOperand() != *U)
3115       return false;
3116     Value *V = SI.getValueOperand();
3117     if (V->getType()->isSingleValueType())
3118       return false;
3119 
3120     // We have an aggregate being stored, split it apart.
3121     DEBUG(dbgs() << "    original: " << SI << "\n");
3122     StoreOpSplitter Splitter(&SI, *U);
3123     Splitter.emitSplitOps(V->getType(), V, V->getName() + ".fca");
3124     SI.eraseFromParent();
3125     return true;
3126   }
3127 
3128   bool visitBitCastInst(BitCastInst &BC) {
3129     enqueueUsers(BC);
3130     return false;
3131   }
3132 
3133   bool visitGetElementPtrInst(GetElementPtrInst &GEPI) {
3134     enqueueUsers(GEPI);
3135     return false;
3136   }
3137 
3138   bool visitPHINode(PHINode &PN) {
3139     enqueueUsers(PN);
3140     return false;
3141   }
3142 
3143   bool visitSelectInst(SelectInst &SI) {
3144     enqueueUsers(SI);
3145     return false;
3146   }
3147 };
3148 }
3149 
3150 /// \brief Strip aggregate type wrapping.
3151 ///
3152 /// This removes no-op aggregate types wrapping an underlying type. It will
3153 /// strip as many layers of types as it can without changing either the type
3154 /// size or the allocated size.
3155 static Type *stripAggregateTypeWrapping(const DataLayout &DL, Type *Ty) {
3156   if (Ty->isSingleValueType())
3157     return Ty;
3158 
3159   uint64_t AllocSize = DL.getTypeAllocSize(Ty);
3160   uint64_t TypeSize = DL.getTypeSizeInBits(Ty);
3161 
3162   Type *InnerTy;
3163   if (ArrayType *ArrTy = dyn_cast<ArrayType>(Ty)) {
3164     InnerTy = ArrTy->getElementType();
3165   } else if (StructType *STy = dyn_cast<StructType>(Ty)) {
3166     const StructLayout *SL = DL.getStructLayout(STy);
3167     unsigned Index = SL->getElementContainingOffset(0);
3168     InnerTy = STy->getElementType(Index);
3169   } else {
3170     return Ty;
3171   }
3172 
3173   if (AllocSize > DL.getTypeAllocSize(InnerTy) ||
3174       TypeSize > DL.getTypeSizeInBits(InnerTy))
3175     return Ty;
3176 
3177   return stripAggregateTypeWrapping(DL, InnerTy);
3178 }
3179 
3180 /// \brief Try to find a partition of the aggregate type passed in for a given
3181 /// offset and size.
3182 ///
3183 /// This recurses through the aggregate type and tries to compute a subtype
3184 /// based on the offset and size. When the offset and size span a sub-section
3185 /// of an array, it will even compute a new array type for that sub-section,
3186 /// and the same for structs.
3187 ///
3188 /// Note that this routine is very strict and tries to find a partition of the
3189 /// type which produces the *exact* right offset and size. It is not forgiving
3190 /// when the size or offset cause either end of type-based partition to be off.
3191 /// Also, this is a best-effort routine. It is reasonable to give up and not
3192 /// return a type if necessary.
3193 static Type *getTypePartition(const DataLayout &DL, Type *Ty, uint64_t Offset,
3194                               uint64_t Size) {
3195   if (Offset == 0 && DL.getTypeAllocSize(Ty) == Size)
3196     return stripAggregateTypeWrapping(DL, Ty);
3197   if (Offset > DL.getTypeAllocSize(Ty) ||
3198       (DL.getTypeAllocSize(Ty) - Offset) < Size)
3199     return nullptr;
3200 
3201   if (SequentialType *SeqTy = dyn_cast<SequentialType>(Ty)) {
3202     // We can't partition pointers...
3203     if (SeqTy->isPointerTy())
3204       return nullptr;
3205 
3206     Type *ElementTy = SeqTy->getElementType();
3207     uint64_t ElementSize = DL.getTypeAllocSize(ElementTy);
3208     uint64_t NumSkippedElements = Offset / ElementSize;
3209     if (ArrayType *ArrTy = dyn_cast<ArrayType>(SeqTy)) {
3210       if (NumSkippedElements >= ArrTy->getNumElements())
3211         return nullptr;
3212     } else if (VectorType *VecTy = dyn_cast<VectorType>(SeqTy)) {
3213       if (NumSkippedElements >= VecTy->getNumElements())
3214         return nullptr;
3215     }
3216     Offset -= NumSkippedElements * ElementSize;
3217 
3218     // First check if we need to recurse.
3219     if (Offset > 0 || Size < ElementSize) {
3220       // Bail if the partition ends in a different array element.
3221       if ((Offset + Size) > ElementSize)
3222         return nullptr;
3223       // Recurse through the element type trying to peel off offset bytes.
3224       return getTypePartition(DL, ElementTy, Offset, Size);
3225     }
3226     assert(Offset == 0);
3227 
3228     if (Size == ElementSize)
3229       return stripAggregateTypeWrapping(DL, ElementTy);
3230     assert(Size > ElementSize);
3231     uint64_t NumElements = Size / ElementSize;
3232     if (NumElements * ElementSize != Size)
3233       return nullptr;
3234     return ArrayType::get(ElementTy, NumElements);
3235   }
3236 
3237   StructType *STy = dyn_cast<StructType>(Ty);
3238   if (!STy)
3239     return nullptr;
3240 
3241   const StructLayout *SL = DL.getStructLayout(STy);
3242   if (Offset >= SL->getSizeInBytes())
3243     return nullptr;
3244   uint64_t EndOffset = Offset + Size;
3245   if (EndOffset > SL->getSizeInBytes())
3246     return nullptr;
3247 
3248   unsigned Index = SL->getElementContainingOffset(Offset);
3249   Offset -= SL->getElementOffset(Index);
3250 
3251   Type *ElementTy = STy->getElementType(Index);
3252   uint64_t ElementSize = DL.getTypeAllocSize(ElementTy);
3253   if (Offset >= ElementSize)
3254     return nullptr; // The offset points into alignment padding.
3255 
3256   // See if any partition must be contained by the element.
3257   if (Offset > 0 || Size < ElementSize) {
3258     if ((Offset + Size) > ElementSize)
3259       return nullptr;
3260     return getTypePartition(DL, ElementTy, Offset, Size);
3261   }
3262   assert(Offset == 0);
3263 
3264   if (Size == ElementSize)
3265     return stripAggregateTypeWrapping(DL, ElementTy);
3266 
3267   StructType::element_iterator EI = STy->element_begin() + Index,
3268                                EE = STy->element_end();
3269   if (EndOffset < SL->getSizeInBytes()) {
3270     unsigned EndIndex = SL->getElementContainingOffset(EndOffset);
3271     if (Index == EndIndex)
3272       return nullptr; // Within a single element and its padding.
3273 
3274     // Don't try to form "natural" types if the elements don't line up with the
3275     // expected size.
3276     // FIXME: We could potentially recurse down through the last element in the
3277     // sub-struct to find a natural end point.
3278     if (SL->getElementOffset(EndIndex) != EndOffset)
3279       return nullptr;
3280 
3281     assert(Index < EndIndex);
3282     EE = STy->element_begin() + EndIndex;
3283   }
3284 
3285   // Try to build up a sub-structure.
3286   StructType *SubTy =
3287       StructType::get(STy->getContext(), makeArrayRef(EI, EE), STy->isPacked());
3288   const StructLayout *SubSL = DL.getStructLayout(SubTy);
3289   if (Size != SubSL->getSizeInBytes())
3290     return nullptr; // The sub-struct doesn't have quite the size needed.
3291 
3292   return SubTy;
3293 }
3294 
3295 /// \brief Pre-split loads and stores to simplify rewriting.
3296 ///
3297 /// We want to break up the splittable load+store pairs as much as
3298 /// possible. This is important to do as a preprocessing step, as once we
3299 /// start rewriting the accesses to partitions of the alloca we lose the
3300 /// necessary information to correctly split apart paired loads and stores
3301 /// which both point into this alloca. The case to consider is something like
3302 /// the following:
3303 ///
3304 ///   %a = alloca [12 x i8]
3305 ///   %gep1 = getelementptr [12 x i8]* %a, i32 0, i32 0
3306 ///   %gep2 = getelementptr [12 x i8]* %a, i32 0, i32 4
3307 ///   %gep3 = getelementptr [12 x i8]* %a, i32 0, i32 8
3308 ///   %iptr1 = bitcast i8* %gep1 to i64*
3309 ///   %iptr2 = bitcast i8* %gep2 to i64*
3310 ///   %fptr1 = bitcast i8* %gep1 to float*
3311 ///   %fptr2 = bitcast i8* %gep2 to float*
3312 ///   %fptr3 = bitcast i8* %gep3 to float*
3313 ///   store float 0.0, float* %fptr1
3314 ///   store float 1.0, float* %fptr2
3315 ///   %v = load i64* %iptr1
3316 ///   store i64 %v, i64* %iptr2
3317 ///   %f1 = load float* %fptr2
3318 ///   %f2 = load float* %fptr3
3319 ///
3320 /// Here we want to form 3 partitions of the alloca, each 4 bytes large, and
3321 /// promote everything so we recover the 2 SSA values that should have been
3322 /// there all along.
3323 ///
3324 /// \returns true if any changes are made.
3325 bool SROA::presplitLoadsAndStores(AllocaInst &AI, AllocaSlices &AS) {
3326   DEBUG(dbgs() << "Pre-splitting loads and stores\n");
3327 
3328   // Track the loads and stores which are candidates for pre-splitting here, in
3329   // the order they first appear during the partition scan. These give stable
3330   // iteration order and a basis for tracking which loads and stores we
3331   // actually split.
3332   SmallVector<LoadInst *, 4> Loads;
3333   SmallVector<StoreInst *, 4> Stores;
3334 
3335   // We need to accumulate the splits required of each load or store where we
3336   // can find them via a direct lookup. This is important to cross-check loads
3337   // and stores against each other. We also track the slice so that we can kill
3338   // all the slices that end up split.
3339   struct SplitOffsets {
3340     Slice *S;
3341     std::vector<uint64_t> Splits;
3342   };
3343   SmallDenseMap<Instruction *, SplitOffsets, 8> SplitOffsetsMap;
3344 
3345   // Track loads out of this alloca which cannot, for any reason, be pre-split.
3346   // This is important as we also cannot pre-split stores of those loads!
3347   // FIXME: This is all pretty gross. It means that we can be more aggressive
3348   // in pre-splitting when the load feeding the store happens to come from
3349   // a separate alloca. Put another way, the effectiveness of SROA would be
3350   // decreased by a frontend which just concatenated all of its local allocas
3351   // into one big flat alloca. But defeating such patterns is exactly the job
3352   // SROA is tasked with! Sadly, to not have this discrepancy we would have
3353   // change store pre-splitting to actually force pre-splitting of the load
3354   // that feeds it *and all stores*. That makes pre-splitting much harder, but
3355   // maybe it would make it more principled?
3356   SmallPtrSet<LoadInst *, 8> UnsplittableLoads;
3357 
3358   DEBUG(dbgs() << "  Searching for candidate loads and stores\n");
3359   for (auto &P : AS.partitions()) {
3360     for (Slice &S : P) {
3361       Instruction *I = cast<Instruction>(S.getUse()->getUser());
3362       if (!S.isSplittable() || S.endOffset() <= P.endOffset()) {
3363         // If this is a load we have to track that it can't participate in any
3364         // pre-splitting. If this is a store of a load we have to track that
3365         // that load also can't participate in any pre-splitting.
3366         if (auto *LI = dyn_cast<LoadInst>(I))
3367           UnsplittableLoads.insert(LI);
3368         else if (auto *SI = dyn_cast<StoreInst>(I))
3369           if (auto *LI = dyn_cast<LoadInst>(SI->getValueOperand()))
3370             UnsplittableLoads.insert(LI);
3371         continue;
3372       }
3373       assert(P.endOffset() > S.beginOffset() &&
3374              "Empty or backwards partition!");
3375 
3376       // Determine if this is a pre-splittable slice.
3377       if (auto *LI = dyn_cast<LoadInst>(I)) {
3378         assert(!LI->isVolatile() && "Cannot split volatile loads!");
3379 
3380         // The load must be used exclusively to store into other pointers for
3381         // us to be able to arbitrarily pre-split it. The stores must also be
3382         // simple to avoid changing semantics.
3383         auto IsLoadSimplyStored = [](LoadInst *LI) {
3384           for (User *LU : LI->users()) {
3385             auto *SI = dyn_cast<StoreInst>(LU);
3386             if (!SI || !SI->isSimple())
3387               return false;
3388           }
3389           return true;
3390         };
3391         if (!IsLoadSimplyStored(LI)) {
3392           UnsplittableLoads.insert(LI);
3393           continue;
3394         }
3395 
3396         Loads.push_back(LI);
3397       } else if (auto *SI = dyn_cast<StoreInst>(I)) {
3398         if (S.getUse() != &SI->getOperandUse(SI->getPointerOperandIndex()))
3399           // Skip stores *of* pointers. FIXME: This shouldn't even be possible!
3400           continue;
3401         auto *StoredLoad = dyn_cast<LoadInst>(SI->getValueOperand());
3402         if (!StoredLoad || !StoredLoad->isSimple())
3403           continue;
3404         assert(!SI->isVolatile() && "Cannot split volatile stores!");
3405 
3406         Stores.push_back(SI);
3407       } else {
3408         // Other uses cannot be pre-split.
3409         continue;
3410       }
3411 
3412       // Record the initial split.
3413       DEBUG(dbgs() << "    Candidate: " << *I << "\n");
3414       auto &Offsets = SplitOffsetsMap[I];
3415       assert(Offsets.Splits.empty() &&
3416              "Should not have splits the first time we see an instruction!");
3417       Offsets.S = &S;
3418       Offsets.Splits.push_back(P.endOffset() - S.beginOffset());
3419     }
3420 
3421     // Now scan the already split slices, and add a split for any of them which
3422     // we're going to pre-split.
3423     for (Slice *S : P.splitSliceTails()) {
3424       auto SplitOffsetsMapI =
3425           SplitOffsetsMap.find(cast<Instruction>(S->getUse()->getUser()));
3426       if (SplitOffsetsMapI == SplitOffsetsMap.end())
3427         continue;
3428       auto &Offsets = SplitOffsetsMapI->second;
3429 
3430       assert(Offsets.S == S && "Found a mismatched slice!");
3431       assert(!Offsets.Splits.empty() &&
3432              "Cannot have an empty set of splits on the second partition!");
3433       assert(Offsets.Splits.back() ==
3434                  P.beginOffset() - Offsets.S->beginOffset() &&
3435              "Previous split does not end where this one begins!");
3436 
3437       // Record each split. The last partition's end isn't needed as the size
3438       // of the slice dictates that.
3439       if (S->endOffset() > P.endOffset())
3440         Offsets.Splits.push_back(P.endOffset() - Offsets.S->beginOffset());
3441     }
3442   }
3443 
3444   // We may have split loads where some of their stores are split stores. For
3445   // such loads and stores, we can only pre-split them if their splits exactly
3446   // match relative to their starting offset. We have to verify this prior to
3447   // any rewriting.
3448   Stores.erase(
3449       std::remove_if(Stores.begin(), Stores.end(),
3450                      [&UnsplittableLoads, &SplitOffsetsMap](StoreInst *SI) {
3451                        // Lookup the load we are storing in our map of split
3452                        // offsets.
3453                        auto *LI = cast<LoadInst>(SI->getValueOperand());
3454                        // If it was completely unsplittable, then we're done,
3455                        // and this store can't be pre-split.
3456                        if (UnsplittableLoads.count(LI))
3457                          return true;
3458 
3459                        auto LoadOffsetsI = SplitOffsetsMap.find(LI);
3460                        if (LoadOffsetsI == SplitOffsetsMap.end())
3461                          return false; // Unrelated loads are definitely safe.
3462                        auto &LoadOffsets = LoadOffsetsI->second;
3463 
3464                        // Now lookup the store's offsets.
3465                        auto &StoreOffsets = SplitOffsetsMap[SI];
3466 
3467                        // If the relative offsets of each split in the load and
3468                        // store match exactly, then we can split them and we
3469                        // don't need to remove them here.
3470                        if (LoadOffsets.Splits == StoreOffsets.Splits)
3471                          return false;
3472 
3473                        DEBUG(dbgs()
3474                              << "    Mismatched splits for load and store:\n"
3475                              << "      " << *LI << "\n"
3476                              << "      " << *SI << "\n");
3477 
3478                        // We've found a store and load that we need to split
3479                        // with mismatched relative splits. Just give up on them
3480                        // and remove both instructions from our list of
3481                        // candidates.
3482                        UnsplittableLoads.insert(LI);
3483                        return true;
3484                      }),
3485       Stores.end());
3486   // Now we have to go *back* through all the stores, because a later store may
3487   // have caused an earlier store's load to become unsplittable and if it is
3488   // unsplittable for the later store, then we can't rely on it being split in
3489   // the earlier store either.
3490   Stores.erase(std::remove_if(Stores.begin(), Stores.end(),
3491                               [&UnsplittableLoads](StoreInst *SI) {
3492                                 auto *LI =
3493                                     cast<LoadInst>(SI->getValueOperand());
3494                                 return UnsplittableLoads.count(LI);
3495                               }),
3496                Stores.end());
3497   // Once we've established all the loads that can't be split for some reason,
3498   // filter any that made it into our list out.
3499   Loads.erase(std::remove_if(Loads.begin(), Loads.end(),
3500                              [&UnsplittableLoads](LoadInst *LI) {
3501                                return UnsplittableLoads.count(LI);
3502                              }),
3503               Loads.end());
3504 
3505 
3506   // If no loads or stores are left, there is no pre-splitting to be done for
3507   // this alloca.
3508   if (Loads.empty() && Stores.empty())
3509     return false;
3510 
3511   // From here on, we can't fail and will be building new accesses, so rig up
3512   // an IR builder.
3513   IRBuilderTy IRB(&AI);
3514 
3515   // Collect the new slices which we will merge into the alloca slices.
3516   SmallVector<Slice, 4> NewSlices;
3517 
3518   // Track any allocas we end up splitting loads and stores for so we iterate
3519   // on them.
3520   SmallPtrSet<AllocaInst *, 4> ResplitPromotableAllocas;
3521 
3522   // At this point, we have collected all of the loads and stores we can
3523   // pre-split, and the specific splits needed for them. We actually do the
3524   // splitting in a specific order in order to handle when one of the loads in
3525   // the value operand to one of the stores.
3526   //
3527   // First, we rewrite all of the split loads, and just accumulate each split
3528   // load in a parallel structure. We also build the slices for them and append
3529   // them to the alloca slices.
3530   SmallDenseMap<LoadInst *, std::vector<LoadInst *>, 1> SplitLoadsMap;
3531   std::vector<LoadInst *> SplitLoads;
3532   const DataLayout &DL = AI.getModule()->getDataLayout();
3533   for (LoadInst *LI : Loads) {
3534     SplitLoads.clear();
3535 
3536     IntegerType *Ty = cast<IntegerType>(LI->getType());
3537     uint64_t LoadSize = Ty->getBitWidth() / 8;
3538     assert(LoadSize > 0 && "Cannot have a zero-sized integer load!");
3539 
3540     auto &Offsets = SplitOffsetsMap[LI];
3541     assert(LoadSize == Offsets.S->endOffset() - Offsets.S->beginOffset() &&
3542            "Slice size should always match load size exactly!");
3543     uint64_t BaseOffset = Offsets.S->beginOffset();
3544     assert(BaseOffset + LoadSize > BaseOffset &&
3545            "Cannot represent alloca access size using 64-bit integers!");
3546 
3547     Instruction *BasePtr = cast<Instruction>(LI->getPointerOperand());
3548     IRB.SetInsertPoint(LI);
3549 
3550     DEBUG(dbgs() << "  Splitting load: " << *LI << "\n");
3551 
3552     uint64_t PartOffset = 0, PartSize = Offsets.Splits.front();
3553     int Idx = 0, Size = Offsets.Splits.size();
3554     for (;;) {
3555       auto *PartTy = Type::getIntNTy(Ty->getContext(), PartSize * 8);
3556       auto *PartPtrTy = PartTy->getPointerTo(LI->getPointerAddressSpace());
3557       LoadInst *PLoad = IRB.CreateAlignedLoad(
3558           getAdjustedPtr(IRB, DL, BasePtr,
3559                          APInt(DL.getPointerSizeInBits(), PartOffset),
3560                          PartPtrTy, BasePtr->getName() + "."),
3561           getAdjustedAlignment(LI, PartOffset, DL), /*IsVolatile*/ false,
3562           LI->getName());
3563 
3564       // Append this load onto the list of split loads so we can find it later
3565       // to rewrite the stores.
3566       SplitLoads.push_back(PLoad);
3567 
3568       // Now build a new slice for the alloca.
3569       NewSlices.push_back(
3570           Slice(BaseOffset + PartOffset, BaseOffset + PartOffset + PartSize,
3571                 &PLoad->getOperandUse(PLoad->getPointerOperandIndex()),
3572                 /*IsSplittable*/ false));
3573       DEBUG(dbgs() << "    new slice [" << NewSlices.back().beginOffset()
3574                    << ", " << NewSlices.back().endOffset() << "): " << *PLoad
3575                    << "\n");
3576 
3577       // See if we've handled all the splits.
3578       if (Idx >= Size)
3579         break;
3580 
3581       // Setup the next partition.
3582       PartOffset = Offsets.Splits[Idx];
3583       ++Idx;
3584       PartSize = (Idx < Size ? Offsets.Splits[Idx] : LoadSize) - PartOffset;
3585     }
3586 
3587     // Now that we have the split loads, do the slow walk over all uses of the
3588     // load and rewrite them as split stores, or save the split loads to use
3589     // below if the store is going to be split there anyways.
3590     bool DeferredStores = false;
3591     for (User *LU : LI->users()) {
3592       StoreInst *SI = cast<StoreInst>(LU);
3593       if (!Stores.empty() && SplitOffsetsMap.count(SI)) {
3594         DeferredStores = true;
3595         DEBUG(dbgs() << "    Deferred splitting of store: " << *SI << "\n");
3596         continue;
3597       }
3598 
3599       Value *StoreBasePtr = SI->getPointerOperand();
3600       IRB.SetInsertPoint(SI);
3601 
3602       DEBUG(dbgs() << "    Splitting store of load: " << *SI << "\n");
3603 
3604       for (int Idx = 0, Size = SplitLoads.size(); Idx < Size; ++Idx) {
3605         LoadInst *PLoad = SplitLoads[Idx];
3606         uint64_t PartOffset = Idx == 0 ? 0 : Offsets.Splits[Idx - 1];
3607         auto *PartPtrTy =
3608             PLoad->getType()->getPointerTo(SI->getPointerAddressSpace());
3609 
3610         StoreInst *PStore = IRB.CreateAlignedStore(
3611             PLoad, getAdjustedPtr(IRB, DL, StoreBasePtr,
3612                                   APInt(DL.getPointerSizeInBits(), PartOffset),
3613                                   PartPtrTy, StoreBasePtr->getName() + "."),
3614             getAdjustedAlignment(SI, PartOffset, DL), /*IsVolatile*/ false);
3615         (void)PStore;
3616         DEBUG(dbgs() << "      +" << PartOffset << ":" << *PStore << "\n");
3617       }
3618 
3619       // We want to immediately iterate on any allocas impacted by splitting
3620       // this store, and we have to track any promotable alloca (indicated by
3621       // a direct store) as needing to be resplit because it is no longer
3622       // promotable.
3623       if (AllocaInst *OtherAI = dyn_cast<AllocaInst>(StoreBasePtr)) {
3624         ResplitPromotableAllocas.insert(OtherAI);
3625         Worklist.insert(OtherAI);
3626       } else if (AllocaInst *OtherAI = dyn_cast<AllocaInst>(
3627                      StoreBasePtr->stripInBoundsOffsets())) {
3628         Worklist.insert(OtherAI);
3629       }
3630 
3631       // Mark the original store as dead.
3632       DeadInsts.insert(SI);
3633     }
3634 
3635     // Save the split loads if there are deferred stores among the users.
3636     if (DeferredStores)
3637       SplitLoadsMap.insert(std::make_pair(LI, std::move(SplitLoads)));
3638 
3639     // Mark the original load as dead and kill the original slice.
3640     DeadInsts.insert(LI);
3641     Offsets.S->kill();
3642   }
3643 
3644   // Second, we rewrite all of the split stores. At this point, we know that
3645   // all loads from this alloca have been split already. For stores of such
3646   // loads, we can simply look up the pre-existing split loads. For stores of
3647   // other loads, we split those loads first and then write split stores of
3648   // them.
3649   for (StoreInst *SI : Stores) {
3650     auto *LI = cast<LoadInst>(SI->getValueOperand());
3651     IntegerType *Ty = cast<IntegerType>(LI->getType());
3652     uint64_t StoreSize = Ty->getBitWidth() / 8;
3653     assert(StoreSize > 0 && "Cannot have a zero-sized integer store!");
3654 
3655     auto &Offsets = SplitOffsetsMap[SI];
3656     assert(StoreSize == Offsets.S->endOffset() - Offsets.S->beginOffset() &&
3657            "Slice size should always match load size exactly!");
3658     uint64_t BaseOffset = Offsets.S->beginOffset();
3659     assert(BaseOffset + StoreSize > BaseOffset &&
3660            "Cannot represent alloca access size using 64-bit integers!");
3661 
3662     Value *LoadBasePtr = LI->getPointerOperand();
3663     Instruction *StoreBasePtr = cast<Instruction>(SI->getPointerOperand());
3664 
3665     DEBUG(dbgs() << "  Splitting store: " << *SI << "\n");
3666 
3667     // Check whether we have an already split load.
3668     auto SplitLoadsMapI = SplitLoadsMap.find(LI);
3669     std::vector<LoadInst *> *SplitLoads = nullptr;
3670     if (SplitLoadsMapI != SplitLoadsMap.end()) {
3671       SplitLoads = &SplitLoadsMapI->second;
3672       assert(SplitLoads->size() == Offsets.Splits.size() + 1 &&
3673              "Too few split loads for the number of splits in the store!");
3674     } else {
3675       DEBUG(dbgs() << "          of load: " << *LI << "\n");
3676     }
3677 
3678     uint64_t PartOffset = 0, PartSize = Offsets.Splits.front();
3679     int Idx = 0, Size = Offsets.Splits.size();
3680     for (;;) {
3681       auto *PartTy = Type::getIntNTy(Ty->getContext(), PartSize * 8);
3682       auto *PartPtrTy = PartTy->getPointerTo(SI->getPointerAddressSpace());
3683 
3684       // Either lookup a split load or create one.
3685       LoadInst *PLoad;
3686       if (SplitLoads) {
3687         PLoad = (*SplitLoads)[Idx];
3688       } else {
3689         IRB.SetInsertPoint(LI);
3690         PLoad = IRB.CreateAlignedLoad(
3691             getAdjustedPtr(IRB, DL, LoadBasePtr,
3692                            APInt(DL.getPointerSizeInBits(), PartOffset),
3693                            PartPtrTy, LoadBasePtr->getName() + "."),
3694             getAdjustedAlignment(LI, PartOffset, DL), /*IsVolatile*/ false,
3695             LI->getName());
3696       }
3697 
3698       // And store this partition.
3699       IRB.SetInsertPoint(SI);
3700       StoreInst *PStore = IRB.CreateAlignedStore(
3701           PLoad, getAdjustedPtr(IRB, DL, StoreBasePtr,
3702                                 APInt(DL.getPointerSizeInBits(), PartOffset),
3703                                 PartPtrTy, StoreBasePtr->getName() + "."),
3704           getAdjustedAlignment(SI, PartOffset, DL), /*IsVolatile*/ false);
3705 
3706       // Now build a new slice for the alloca.
3707       NewSlices.push_back(
3708           Slice(BaseOffset + PartOffset, BaseOffset + PartOffset + PartSize,
3709                 &PStore->getOperandUse(PStore->getPointerOperandIndex()),
3710                 /*IsSplittable*/ false));
3711       DEBUG(dbgs() << "    new slice [" << NewSlices.back().beginOffset()
3712                    << ", " << NewSlices.back().endOffset() << "): " << *PStore
3713                    << "\n");
3714       if (!SplitLoads) {
3715         DEBUG(dbgs() << "      of split load: " << *PLoad << "\n");
3716       }
3717 
3718       // See if we've finished all the splits.
3719       if (Idx >= Size)
3720         break;
3721 
3722       // Setup the next partition.
3723       PartOffset = Offsets.Splits[Idx];
3724       ++Idx;
3725       PartSize = (Idx < Size ? Offsets.Splits[Idx] : StoreSize) - PartOffset;
3726     }
3727 
3728     // We want to immediately iterate on any allocas impacted by splitting
3729     // this load, which is only relevant if it isn't a load of this alloca and
3730     // thus we didn't already split the loads above. We also have to keep track
3731     // of any promotable allocas we split loads on as they can no longer be
3732     // promoted.
3733     if (!SplitLoads) {
3734       if (AllocaInst *OtherAI = dyn_cast<AllocaInst>(LoadBasePtr)) {
3735         assert(OtherAI != &AI && "We can't re-split our own alloca!");
3736         ResplitPromotableAllocas.insert(OtherAI);
3737         Worklist.insert(OtherAI);
3738       } else if (AllocaInst *OtherAI = dyn_cast<AllocaInst>(
3739                      LoadBasePtr->stripInBoundsOffsets())) {
3740         assert(OtherAI != &AI && "We can't re-split our own alloca!");
3741         Worklist.insert(OtherAI);
3742       }
3743     }
3744 
3745     // Mark the original store as dead now that we've split it up and kill its
3746     // slice. Note that we leave the original load in place unless this store
3747     // was its only use. It may in turn be split up if it is an alloca load
3748     // for some other alloca, but it may be a normal load. This may introduce
3749     // redundant loads, but where those can be merged the rest of the optimizer
3750     // should handle the merging, and this uncovers SSA splits which is more
3751     // important. In practice, the original loads will almost always be fully
3752     // split and removed eventually, and the splits will be merged by any
3753     // trivial CSE, including instcombine.
3754     if (LI->hasOneUse()) {
3755       assert(*LI->user_begin() == SI && "Single use isn't this store!");
3756       DeadInsts.insert(LI);
3757     }
3758     DeadInsts.insert(SI);
3759     Offsets.S->kill();
3760   }
3761 
3762   // Remove the killed slices that have ben pre-split.
3763   AS.erase(std::remove_if(AS.begin(), AS.end(), [](const Slice &S) {
3764     return S.isDead();
3765   }), AS.end());
3766 
3767   // Insert our new slices. This will sort and merge them into the sorted
3768   // sequence.
3769   AS.insert(NewSlices);
3770 
3771   DEBUG(dbgs() << "  Pre-split slices:\n");
3772 #ifndef NDEBUG
3773   for (auto I = AS.begin(), E = AS.end(); I != E; ++I)
3774     DEBUG(AS.print(dbgs(), I, "    "));
3775 #endif
3776 
3777   // Finally, don't try to promote any allocas that new require re-splitting.
3778   // They have already been added to the worklist above.
3779   PromotableAllocas.erase(
3780       std::remove_if(
3781           PromotableAllocas.begin(), PromotableAllocas.end(),
3782           [&](AllocaInst *AI) { return ResplitPromotableAllocas.count(AI); }),
3783       PromotableAllocas.end());
3784 
3785   return true;
3786 }
3787 
3788 /// \brief Rewrite an alloca partition's users.
3789 ///
3790 /// This routine drives both of the rewriting goals of the SROA pass. It tries
3791 /// to rewrite uses of an alloca partition to be conducive for SSA value
3792 /// promotion. If the partition needs a new, more refined alloca, this will
3793 /// build that new alloca, preserving as much type information as possible, and
3794 /// rewrite the uses of the old alloca to point at the new one and have the
3795 /// appropriate new offsets. It also evaluates how successful the rewrite was
3796 /// at enabling promotion and if it was successful queues the alloca to be
3797 /// promoted.
3798 AllocaInst *SROA::rewritePartition(AllocaInst &AI, AllocaSlices &AS,
3799                                    Partition &P) {
3800   // Try to compute a friendly type for this partition of the alloca. This
3801   // won't always succeed, in which case we fall back to a legal integer type
3802   // or an i8 array of an appropriate size.
3803   Type *SliceTy = nullptr;
3804   const DataLayout &DL = AI.getModule()->getDataLayout();
3805   if (Type *CommonUseTy = findCommonType(P.begin(), P.end(), P.endOffset()))
3806     if (DL.getTypeAllocSize(CommonUseTy) >= P.size())
3807       SliceTy = CommonUseTy;
3808   if (!SliceTy)
3809     if (Type *TypePartitionTy = getTypePartition(DL, AI.getAllocatedType(),
3810                                                  P.beginOffset(), P.size()))
3811       SliceTy = TypePartitionTy;
3812   if ((!SliceTy || (SliceTy->isArrayTy() &&
3813                     SliceTy->getArrayElementType()->isIntegerTy())) &&
3814       DL.isLegalInteger(P.size() * 8))
3815     SliceTy = Type::getIntNTy(*C, P.size() * 8);
3816   if (!SliceTy)
3817     SliceTy = ArrayType::get(Type::getInt8Ty(*C), P.size());
3818   assert(DL.getTypeAllocSize(SliceTy) >= P.size());
3819 
3820   bool IsIntegerPromotable = isIntegerWideningViable(P, SliceTy, DL);
3821 
3822   VectorType *VecTy =
3823       IsIntegerPromotable ? nullptr : isVectorPromotionViable(P, DL);
3824   if (VecTy)
3825     SliceTy = VecTy;
3826 
3827   // Check for the case where we're going to rewrite to a new alloca of the
3828   // exact same type as the original, and with the same access offsets. In that
3829   // case, re-use the existing alloca, but still run through the rewriter to
3830   // perform phi and select speculation.
3831   AllocaInst *NewAI;
3832   if (SliceTy == AI.getAllocatedType()) {
3833     assert(P.beginOffset() == 0 &&
3834            "Non-zero begin offset but same alloca type");
3835     NewAI = &AI;
3836     // FIXME: We should be able to bail at this point with "nothing changed".
3837     // FIXME: We might want to defer PHI speculation until after here.
3838     // FIXME: return nullptr;
3839   } else {
3840     unsigned Alignment = AI.getAlignment();
3841     if (!Alignment) {
3842       // The minimum alignment which users can rely on when the explicit
3843       // alignment is omitted or zero is that required by the ABI for this
3844       // type.
3845       Alignment = DL.getABITypeAlignment(AI.getAllocatedType());
3846     }
3847     Alignment = MinAlign(Alignment, P.beginOffset());
3848     // If we will get at least this much alignment from the type alone, leave
3849     // the alloca's alignment unconstrained.
3850     if (Alignment <= DL.getABITypeAlignment(SliceTy))
3851       Alignment = 0;
3852     NewAI = new AllocaInst(
3853         SliceTy, nullptr, Alignment,
3854         AI.getName() + ".sroa." + Twine(P.begin() - AS.begin()), &AI);
3855     ++NumNewAllocas;
3856   }
3857 
3858   DEBUG(dbgs() << "Rewriting alloca partition "
3859                << "[" << P.beginOffset() << "," << P.endOffset()
3860                << ") to: " << *NewAI << "\n");
3861 
3862   // Track the high watermark on the worklist as it is only relevant for
3863   // promoted allocas. We will reset it to this point if the alloca is not in
3864   // fact scheduled for promotion.
3865   unsigned PPWOldSize = PostPromotionWorklist.size();
3866   unsigned NumUses = 0;
3867   SmallPtrSet<PHINode *, 8> PHIUsers;
3868   SmallPtrSet<SelectInst *, 8> SelectUsers;
3869 
3870   AllocaSliceRewriter Rewriter(DL, AS, *this, AI, *NewAI, P.beginOffset(),
3871                                P.endOffset(), IsIntegerPromotable, VecTy,
3872                                PHIUsers, SelectUsers);
3873   bool Promotable = true;
3874   for (Slice *S : P.splitSliceTails()) {
3875     Promotable &= Rewriter.visit(S);
3876     ++NumUses;
3877   }
3878   for (Slice &S : P) {
3879     Promotable &= Rewriter.visit(&S);
3880     ++NumUses;
3881   }
3882 
3883   NumAllocaPartitionUses += NumUses;
3884   MaxUsesPerAllocaPartition =
3885       std::max<unsigned>(NumUses, MaxUsesPerAllocaPartition);
3886 
3887   // Now that we've processed all the slices in the new partition, check if any
3888   // PHIs or Selects would block promotion.
3889   for (SmallPtrSetImpl<PHINode *>::iterator I = PHIUsers.begin(),
3890                                             E = PHIUsers.end();
3891        I != E; ++I)
3892     if (!isSafePHIToSpeculate(**I)) {
3893       Promotable = false;
3894       PHIUsers.clear();
3895       SelectUsers.clear();
3896       break;
3897     }
3898   for (SmallPtrSetImpl<SelectInst *>::iterator I = SelectUsers.begin(),
3899                                                E = SelectUsers.end();
3900        I != E; ++I)
3901     if (!isSafeSelectToSpeculate(**I)) {
3902       Promotable = false;
3903       PHIUsers.clear();
3904       SelectUsers.clear();
3905       break;
3906     }
3907 
3908   if (Promotable) {
3909     if (PHIUsers.empty() && SelectUsers.empty()) {
3910       // Promote the alloca.
3911       PromotableAllocas.push_back(NewAI);
3912     } else {
3913       // If we have either PHIs or Selects to speculate, add them to those
3914       // worklists and re-queue the new alloca so that we promote in on the
3915       // next iteration.
3916       for (PHINode *PHIUser : PHIUsers)
3917         SpeculatablePHIs.insert(PHIUser);
3918       for (SelectInst *SelectUser : SelectUsers)
3919         SpeculatableSelects.insert(SelectUser);
3920       Worklist.insert(NewAI);
3921     }
3922   } else {
3923     // If we can't promote the alloca, iterate on it to check for new
3924     // refinements exposed by splitting the current alloca. Don't iterate on an
3925     // alloca which didn't actually change and didn't get promoted.
3926     if (NewAI != &AI)
3927       Worklist.insert(NewAI);
3928 
3929     // Drop any post-promotion work items if promotion didn't happen.
3930     while (PostPromotionWorklist.size() > PPWOldSize)
3931       PostPromotionWorklist.pop_back();
3932   }
3933 
3934   return NewAI;
3935 }
3936 
3937 /// \brief Walks the slices of an alloca and form partitions based on them,
3938 /// rewriting each of their uses.
3939 bool SROA::splitAlloca(AllocaInst &AI, AllocaSlices &AS) {
3940   if (AS.begin() == AS.end())
3941     return false;
3942 
3943   unsigned NumPartitions = 0;
3944   bool Changed = false;
3945   const DataLayout &DL = AI.getModule()->getDataLayout();
3946 
3947   // First try to pre-split loads and stores.
3948   Changed |= presplitLoadsAndStores(AI, AS);
3949 
3950   // Now that we have identified any pre-splitting opportunities, mark any
3951   // splittable (non-whole-alloca) loads and stores as unsplittable. If we fail
3952   // to split these during pre-splitting, we want to force them to be
3953   // rewritten into a partition.
3954   bool IsSorted = true;
3955   for (Slice &S : AS) {
3956     if (!S.isSplittable())
3957       continue;
3958     // FIXME: We currently leave whole-alloca splittable loads and stores. This
3959     // used to be the only splittable loads and stores and we need to be
3960     // confident that the above handling of splittable loads and stores is
3961     // completely sufficient before we forcibly disable the remaining handling.
3962     if (S.beginOffset() == 0 &&
3963         S.endOffset() >= DL.getTypeAllocSize(AI.getAllocatedType()))
3964       continue;
3965     if (isa<LoadInst>(S.getUse()->getUser()) ||
3966         isa<StoreInst>(S.getUse()->getUser())) {
3967       S.makeUnsplittable();
3968       IsSorted = false;
3969     }
3970   }
3971   if (!IsSorted)
3972     std::sort(AS.begin(), AS.end());
3973 
3974   /// \brief Describes the allocas introduced by rewritePartition
3975   /// in order to migrate the debug info.
3976   struct Piece {
3977     AllocaInst *Alloca;
3978     uint64_t Offset;
3979     uint64_t Size;
3980     Piece(AllocaInst *AI, uint64_t O, uint64_t S)
3981       : Alloca(AI), Offset(O), Size(S) {}
3982   };
3983   SmallVector<Piece, 4> Pieces;
3984 
3985   // Rewrite each partition.
3986   for (auto &P : AS.partitions()) {
3987     if (AllocaInst *NewAI = rewritePartition(AI, AS, P)) {
3988       Changed = true;
3989       if (NewAI != &AI) {
3990         uint64_t SizeOfByte = 8;
3991         uint64_t AllocaSize = DL.getTypeSizeInBits(NewAI->getAllocatedType());
3992         // Don't include any padding.
3993         uint64_t Size = std::min(AllocaSize, P.size() * SizeOfByte);
3994         Pieces.push_back(Piece(NewAI, P.beginOffset() * SizeOfByte, Size));
3995       }
3996     }
3997     ++NumPartitions;
3998   }
3999 
4000   NumAllocaPartitions += NumPartitions;
4001   MaxPartitionsPerAlloca =
4002       std::max<unsigned>(NumPartitions, MaxPartitionsPerAlloca);
4003 
4004   // Migrate debug information from the old alloca to the new alloca(s)
4005   // and the individual partitions.
4006   if (DbgDeclareInst *DbgDecl = FindAllocaDbgDeclare(&AI)) {
4007     auto *Var = DbgDecl->getVariable();
4008     auto *Expr = DbgDecl->getExpression();
4009     DIBuilder DIB(*AI.getModule(), /*AllowUnresolved*/ false);
4010     uint64_t AllocaSize = DL.getTypeSizeInBits(AI.getAllocatedType());
4011     for (auto Piece : Pieces) {
4012       // Create a piece expression describing the new partition or reuse AI's
4013       // expression if there is only one partition.
4014       auto *PieceExpr = Expr;
4015       if (Piece.Size < AllocaSize || Expr->isBitPiece()) {
4016         // If this alloca is already a scalar replacement of a larger aggregate,
4017         // Piece.Offset describes the offset inside the scalar.
4018         uint64_t Offset = Expr->isBitPiece() ? Expr->getBitPieceOffset() : 0;
4019         uint64_t Start = Offset + Piece.Offset;
4020         uint64_t Size = Piece.Size;
4021         if (Expr->isBitPiece()) {
4022           uint64_t AbsEnd = Expr->getBitPieceOffset() + Expr->getBitPieceSize();
4023           if (Start >= AbsEnd)
4024             // No need to describe a SROAed padding.
4025             continue;
4026           Size = std::min(Size, AbsEnd - Start);
4027         }
4028         PieceExpr = DIB.createBitPieceExpression(Start, Size);
4029       } else {
4030         assert(Pieces.size() == 1 &&
4031                "partition is as large as original alloca");
4032       }
4033 
4034       // Remove any existing dbg.declare intrinsic describing the same alloca.
4035       if (DbgDeclareInst *OldDDI = FindAllocaDbgDeclare(Piece.Alloca))
4036         OldDDI->eraseFromParent();
4037 
4038       DIB.insertDeclare(Piece.Alloca, Var, PieceExpr, DbgDecl->getDebugLoc(),
4039                         &AI);
4040     }
4041   }
4042   return Changed;
4043 }
4044 
4045 /// \brief Clobber a use with undef, deleting the used value if it becomes dead.
4046 void SROA::clobberUse(Use &U) {
4047   Value *OldV = U;
4048   // Replace the use with an undef value.
4049   U = UndefValue::get(OldV->getType());
4050 
4051   // Check for this making an instruction dead. We have to garbage collect
4052   // all the dead instructions to ensure the uses of any alloca end up being
4053   // minimal.
4054   if (Instruction *OldI = dyn_cast<Instruction>(OldV))
4055     if (isInstructionTriviallyDead(OldI)) {
4056       DeadInsts.insert(OldI);
4057     }
4058 }
4059 
4060 /// \brief Analyze an alloca for SROA.
4061 ///
4062 /// This analyzes the alloca to ensure we can reason about it, builds
4063 /// the slices of the alloca, and then hands it off to be split and
4064 /// rewritten as needed.
4065 bool SROA::runOnAlloca(AllocaInst &AI) {
4066   DEBUG(dbgs() << "SROA alloca: " << AI << "\n");
4067   ++NumAllocasAnalyzed;
4068 
4069   // Special case dead allocas, as they're trivial.
4070   if (AI.use_empty()) {
4071     AI.eraseFromParent();
4072     return true;
4073   }
4074   const DataLayout &DL = AI.getModule()->getDataLayout();
4075 
4076   // Skip alloca forms that this analysis can't handle.
4077   if (AI.isArrayAllocation() || !AI.getAllocatedType()->isSized() ||
4078       DL.getTypeAllocSize(AI.getAllocatedType()) == 0)
4079     return false;
4080 
4081   bool Changed = false;
4082 
4083   // First, split any FCA loads and stores touching this alloca to promote
4084   // better splitting and promotion opportunities.
4085   AggLoadStoreRewriter AggRewriter;
4086   Changed |= AggRewriter.rewrite(AI);
4087 
4088   // Build the slices using a recursive instruction-visiting builder.
4089   AllocaSlices AS(DL, AI);
4090   DEBUG(AS.print(dbgs()));
4091   if (AS.isEscaped())
4092     return Changed;
4093 
4094   // Delete all the dead users of this alloca before splitting and rewriting it.
4095   for (Instruction *DeadUser : AS.getDeadUsers()) {
4096     // Free up everything used by this instruction.
4097     for (Use &DeadOp : DeadUser->operands())
4098       clobberUse(DeadOp);
4099 
4100     // Now replace the uses of this instruction.
4101     DeadUser->replaceAllUsesWith(UndefValue::get(DeadUser->getType()));
4102 
4103     // And mark it for deletion.
4104     DeadInsts.insert(DeadUser);
4105     Changed = true;
4106   }
4107   for (Use *DeadOp : AS.getDeadOperands()) {
4108     clobberUse(*DeadOp);
4109     Changed = true;
4110   }
4111 
4112   // No slices to split. Leave the dead alloca for a later pass to clean up.
4113   if (AS.begin() == AS.end())
4114     return Changed;
4115 
4116   Changed |= splitAlloca(AI, AS);
4117 
4118   DEBUG(dbgs() << "  Speculating PHIs\n");
4119   while (!SpeculatablePHIs.empty())
4120     speculatePHINodeLoads(*SpeculatablePHIs.pop_back_val());
4121 
4122   DEBUG(dbgs() << "  Speculating Selects\n");
4123   while (!SpeculatableSelects.empty())
4124     speculateSelectInstLoads(*SpeculatableSelects.pop_back_val());
4125 
4126   return Changed;
4127 }
4128 
4129 /// \brief Delete the dead instructions accumulated in this run.
4130 ///
4131 /// Recursively deletes the dead instructions we've accumulated. This is done
4132 /// at the very end to maximize locality of the recursive delete and to
4133 /// minimize the problems of invalidated instruction pointers as such pointers
4134 /// are used heavily in the intermediate stages of the algorithm.
4135 ///
4136 /// We also record the alloca instructions deleted here so that they aren't
4137 /// subsequently handed to mem2reg to promote.
4138 void SROA::deleteDeadInstructions(
4139     SmallPtrSetImpl<AllocaInst *> &DeletedAllocas) {
4140   while (!DeadInsts.empty()) {
4141     Instruction *I = DeadInsts.pop_back_val();
4142     DEBUG(dbgs() << "Deleting dead instruction: " << *I << "\n");
4143 
4144     I->replaceAllUsesWith(UndefValue::get(I->getType()));
4145 
4146     for (Use &Operand : I->operands())
4147       if (Instruction *U = dyn_cast<Instruction>(Operand)) {
4148         // Zero out the operand and see if it becomes trivially dead.
4149         Operand = nullptr;
4150         if (isInstructionTriviallyDead(U))
4151           DeadInsts.insert(U);
4152       }
4153 
4154     if (AllocaInst *AI = dyn_cast<AllocaInst>(I)) {
4155       DeletedAllocas.insert(AI);
4156       if (DbgDeclareInst *DbgDecl = FindAllocaDbgDeclare(AI))
4157         DbgDecl->eraseFromParent();
4158     }
4159 
4160     ++NumDeleted;
4161     I->eraseFromParent();
4162   }
4163 }
4164 
4165 /// \brief Promote the allocas, using the best available technique.
4166 ///
4167 /// This attempts to promote whatever allocas have been identified as viable in
4168 /// the PromotableAllocas list. If that list is empty, there is nothing to do.
4169 /// This function returns whether any promotion occurred.
4170 bool SROA::promoteAllocas(Function &F) {
4171   if (PromotableAllocas.empty())
4172     return false;
4173 
4174   NumPromoted += PromotableAllocas.size();
4175 
4176   DEBUG(dbgs() << "Promoting allocas with mem2reg...\n");
4177   PromoteMemToReg(PromotableAllocas, *DT, nullptr, AC);
4178   PromotableAllocas.clear();
4179   return true;
4180 }
4181 
4182 PreservedAnalyses SROA::runImpl(Function &F, DominatorTree &RunDT,
4183                                 AssumptionCache &RunAC) {
4184   DEBUG(dbgs() << "SROA function: " << F.getName() << "\n");
4185   C = &F.getContext();
4186   DT = &RunDT;
4187   AC = &RunAC;
4188 
4189   BasicBlock &EntryBB = F.getEntryBlock();
4190   for (BasicBlock::iterator I = EntryBB.begin(), E = std::prev(EntryBB.end());
4191        I != E; ++I) {
4192     if (AllocaInst *AI = dyn_cast<AllocaInst>(I))
4193       Worklist.insert(AI);
4194   }
4195 
4196   bool Changed = false;
4197   // A set of deleted alloca instruction pointers which should be removed from
4198   // the list of promotable allocas.
4199   SmallPtrSet<AllocaInst *, 4> DeletedAllocas;
4200 
4201   do {
4202     while (!Worklist.empty()) {
4203       Changed |= runOnAlloca(*Worklist.pop_back_val());
4204       deleteDeadInstructions(DeletedAllocas);
4205 
4206       // Remove the deleted allocas from various lists so that we don't try to
4207       // continue processing them.
4208       if (!DeletedAllocas.empty()) {
4209         auto IsInSet = [&](AllocaInst *AI) { return DeletedAllocas.count(AI); };
4210         Worklist.remove_if(IsInSet);
4211         PostPromotionWorklist.remove_if(IsInSet);
4212         PromotableAllocas.erase(std::remove_if(PromotableAllocas.begin(),
4213                                                PromotableAllocas.end(),
4214                                                IsInSet),
4215                                 PromotableAllocas.end());
4216         DeletedAllocas.clear();
4217       }
4218     }
4219 
4220     Changed |= promoteAllocas(F);
4221 
4222     Worklist = PostPromotionWorklist;
4223     PostPromotionWorklist.clear();
4224   } while (!Worklist.empty());
4225 
4226   // FIXME: Even when promoting allocas we should preserve some abstract set of
4227   // CFG-specific analyses.
4228   return Changed ? PreservedAnalyses::none() : PreservedAnalyses::all();
4229 }
4230 
4231 PreservedAnalyses SROA::run(Function &F, AnalysisManager<Function> &AM) {
4232   return runImpl(F, AM.getResult<DominatorTreeAnalysis>(F),
4233                  AM.getResult<AssumptionAnalysis>(F));
4234 }
4235 
4236 /// A legacy pass for the legacy pass manager that wraps the \c SROA pass.
4237 ///
4238 /// This is in the llvm namespace purely to allow it to be a friend of the \c
4239 /// SROA pass.
4240 class llvm::sroa::SROALegacyPass : public FunctionPass {
4241   /// The SROA implementation.
4242   SROA Impl;
4243 
4244 public:
4245   SROALegacyPass() : FunctionPass(ID) {
4246     initializeSROALegacyPassPass(*PassRegistry::getPassRegistry());
4247   }
4248   bool runOnFunction(Function &F) override {
4249     if (skipOptnoneFunction(F))
4250       return false;
4251 
4252     auto PA = Impl.runImpl(
4253         F, getAnalysis<DominatorTreeWrapperPass>().getDomTree(),
4254         getAnalysis<AssumptionCacheTracker>().getAssumptionCache(F));
4255     return !PA.areAllPreserved();
4256   }
4257   void getAnalysisUsage(AnalysisUsage &AU) const override {
4258     AU.addRequired<AssumptionCacheTracker>();
4259     AU.addRequired<DominatorTreeWrapperPass>();
4260     AU.addPreserved<GlobalsAAWrapperPass>();
4261     AU.setPreservesCFG();
4262   }
4263 
4264   const char *getPassName() const override { return "SROA"; }
4265   static char ID;
4266 };
4267 
4268 char SROALegacyPass::ID = 0;
4269 
4270 FunctionPass *llvm::createSROAPass() { return new SROALegacyPass(); }
4271 
4272 INITIALIZE_PASS_BEGIN(SROALegacyPass, "sroa",
4273                       "Scalar Replacement Of Aggregates", false, false)
4274 INITIALIZE_PASS_DEPENDENCY(AssumptionCacheTracker)
4275 INITIALIZE_PASS_DEPENDENCY(DominatorTreeWrapperPass)
4276 INITIALIZE_PASS_END(SROALegacyPass, "sroa", "Scalar Replacement Of Aggregates",
4277                     false, false)
4278