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      1 //===- LoadStoreVectorizer.cpp - GPU Load & Store Vectorizer --------------===//
      2 //
      3 // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions.
      4 // See https://llvm.org/LICENSE.txt for license information.
      5 // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
      6 //
      7 //===----------------------------------------------------------------------===//
      8 //
      9 // This pass merges loads/stores to/from sequential memory addresses into vector
     10 // loads/stores.  Although there's nothing GPU-specific in here, this pass is
     11 // motivated by the microarchitectural quirks of nVidia and AMD GPUs.
     12 //
     13 // (For simplicity below we talk about loads only, but everything also applies
     14 // to stores.)
     15 //
     16 // This pass is intended to be run late in the pipeline, after other
     17 // vectorization opportunities have been exploited.  So the assumption here is
     18 // that immediately following our new vector load we'll need to extract out the
     19 // individual elements of the load, so we can operate on them individually.
     20 //
     21 // On CPUs this transformation is usually not beneficial, because extracting the
     22 // elements of a vector register is expensive on most architectures.  It's
     23 // usually better just to load each element individually into its own scalar
     24 // register.
     25 //
     26 // However, nVidia and AMD GPUs don't have proper vector registers.  Instead, a
     27 // "vector load" loads directly into a series of scalar registers.  In effect,
     28 // extracting the elements of the vector is free.  It's therefore always
     29 // beneficial to vectorize a sequence of loads on these architectures.
     30 //
     31 // Vectorizing (perhaps a better name might be "coalescing") loads can have
     32 // large performance impacts on GPU kernels, and opportunities for vectorizing
     33 // are common in GPU code.  This pass tries very hard to find such
     34 // opportunities; its runtime is quadratic in the number of loads in a BB.
     35 //
     36 // Some CPU architectures, such as ARM, have instructions that load into
     37 // multiple scalar registers, similar to a GPU vectorized load.  In theory ARM
     38 // could use this pass (with some modifications), but currently it implements
     39 // its own pass to do something similar to what we do here.
     40 
     41 #include "llvm/Transforms/Vectorize/LoadStoreVectorizer.h"
     42 #include "llvm/ADT/APInt.h"
     43 #include "llvm/ADT/ArrayRef.h"
     44 #include "llvm/ADT/MapVector.h"
     45 #include "llvm/ADT/PostOrderIterator.h"
     46 #include "llvm/ADT/STLExtras.h"
     47 #include "llvm/ADT/SmallPtrSet.h"
     48 #include "llvm/ADT/SmallVector.h"
     49 #include "llvm/ADT/Statistic.h"
     50 #include "llvm/ADT/iterator_range.h"
     51 #include "llvm/Analysis/AliasAnalysis.h"
     52 #include "llvm/Analysis/AssumptionCache.h"
     53 #include "llvm/Analysis/MemoryLocation.h"
     54 #include "llvm/Analysis/ScalarEvolution.h"
     55 #include "llvm/Analysis/TargetTransformInfo.h"
     56 #include "llvm/Analysis/ValueTracking.h"
     57 #include "llvm/Analysis/VectorUtils.h"
     58 #include "llvm/IR/Attributes.h"
     59 #include "llvm/IR/BasicBlock.h"
     60 #include "llvm/IR/Constants.h"
     61 #include "llvm/IR/DataLayout.h"
     62 #include "llvm/IR/DerivedTypes.h"
     63 #include "llvm/IR/Dominators.h"
     64 #include "llvm/IR/Function.h"
     65 #include "llvm/IR/IRBuilder.h"
     66 #include "llvm/IR/InstrTypes.h"
     67 #include "llvm/IR/Instruction.h"
     68 #include "llvm/IR/Instructions.h"
     69 #include "llvm/IR/IntrinsicInst.h"
     70 #include "llvm/IR/Module.h"
     71 #include "llvm/IR/Type.h"
     72 #include "llvm/IR/User.h"
     73 #include "llvm/IR/Value.h"
     74 #include "llvm/InitializePasses.h"
     75 #include "llvm/Pass.h"
     76 #include "llvm/Support/Casting.h"
     77 #include "llvm/Support/Debug.h"
     78 #include "llvm/Support/KnownBits.h"
     79 #include "llvm/Support/MathExtras.h"
     80 #include "llvm/Support/raw_ostream.h"
     81 #include "llvm/Transforms/Utils/Local.h"
     82 #include "llvm/Transforms/Vectorize.h"
     83 #include <algorithm>
     84 #include <cassert>
     85 #include <cstdlib>
     86 #include <tuple>
     87 #include <utility>
     88 
     89 using namespace llvm;
     90 
     91 #define DEBUG_TYPE "load-store-vectorizer"
     92 
     93 STATISTIC(NumVectorInstructions, "Number of vector accesses generated");
     94 STATISTIC(NumScalarsVectorized, "Number of scalar accesses vectorized");
     95 
     96 // FIXME: Assuming stack alignment of 4 is always good enough
     97 static const unsigned StackAdjustedAlignment = 4;
     98 
     99 namespace {
    100 
    101 /// ChainID is an arbitrary token that is allowed to be different only for the
    102 /// accesses that are guaranteed to be considered non-consecutive by
    103 /// Vectorizer::isConsecutiveAccess. It's used for grouping instructions
    104 /// together and reducing the number of instructions the main search operates on
    105 /// at a time, i.e. this is to reduce compile time and nothing else as the main
    106 /// search has O(n^2) time complexity. The underlying type of ChainID should not
    107 /// be relied upon.
    108 using ChainID = const Value *;
    109 using InstrList = SmallVector<Instruction *, 8>;
    110 using InstrListMap = MapVector<ChainID, InstrList>;
    111 
    112 class Vectorizer {
    113   Function &F;
    114   AliasAnalysis &AA;
    115   AssumptionCache &AC;
    116   DominatorTree &DT;
    117   ScalarEvolution &SE;
    118   TargetTransformInfo &TTI;
    119   const DataLayout &DL;
    120   IRBuilder<> Builder;
    121 
    122 public:
    123   Vectorizer(Function &F, AliasAnalysis &AA, AssumptionCache &AC,
    124              DominatorTree &DT, ScalarEvolution &SE, TargetTransformInfo &TTI)
    125       : F(F), AA(AA), AC(AC), DT(DT), SE(SE), TTI(TTI),
    126         DL(F.getParent()->getDataLayout()), Builder(SE.getContext()) {}
    127 
    128   bool run();
    129 
    130 private:
    131   unsigned getPointerAddressSpace(Value *I);
    132 
    133   static const unsigned MaxDepth = 3;
    134 
    135   bool isConsecutiveAccess(Value *A, Value *B);
    136   bool areConsecutivePointers(Value *PtrA, Value *PtrB, APInt PtrDelta,
    137                               unsigned Depth = 0) const;
    138   bool lookThroughComplexAddresses(Value *PtrA, Value *PtrB, APInt PtrDelta,
    139                                    unsigned Depth) const;
    140   bool lookThroughSelects(Value *PtrA, Value *PtrB, const APInt &PtrDelta,
    141                           unsigned Depth) const;
    142 
    143   /// After vectorization, reorder the instructions that I depends on
    144   /// (the instructions defining its operands), to ensure they dominate I.
    145   void reorder(Instruction *I);
    146 
    147   /// Returns the first and the last instructions in Chain.
    148   std::pair<BasicBlock::iterator, BasicBlock::iterator>
    149   getBoundaryInstrs(ArrayRef<Instruction *> Chain);
    150 
    151   /// Erases the original instructions after vectorizing.
    152   void eraseInstructions(ArrayRef<Instruction *> Chain);
    153 
    154   /// "Legalize" the vector type that would be produced by combining \p
    155   /// ElementSizeBits elements in \p Chain. Break into two pieces such that the
    156   /// total size of each piece is 1, 2 or a multiple of 4 bytes. \p Chain is
    157   /// expected to have more than 4 elements.
    158   std::pair<ArrayRef<Instruction *>, ArrayRef<Instruction *>>
    159   splitOddVectorElts(ArrayRef<Instruction *> Chain, unsigned ElementSizeBits);
    160 
    161   /// Finds the largest prefix of Chain that's vectorizable, checking for
    162   /// intervening instructions which may affect the memory accessed by the
    163   /// instructions within Chain.
    164   ///
    165   /// The elements of \p Chain must be all loads or all stores and must be in
    166   /// address order.
    167   ArrayRef<Instruction *> getVectorizablePrefix(ArrayRef<Instruction *> Chain);
    168 
    169   /// Collects load and store instructions to vectorize.
    170   std::pair<InstrListMap, InstrListMap> collectInstructions(BasicBlock *BB);
    171 
    172   /// Processes the collected instructions, the \p Map. The values of \p Map
    173   /// should be all loads or all stores.
    174   bool vectorizeChains(InstrListMap &Map);
    175 
    176   /// Finds the load/stores to consecutive memory addresses and vectorizes them.
    177   bool vectorizeInstructions(ArrayRef<Instruction *> Instrs);
    178 
    179   /// Vectorizes the load instructions in Chain.
    180   bool
    181   vectorizeLoadChain(ArrayRef<Instruction *> Chain,
    182                      SmallPtrSet<Instruction *, 16> *InstructionsProcessed);
    183 
    184   /// Vectorizes the store instructions in Chain.
    185   bool
    186   vectorizeStoreChain(ArrayRef<Instruction *> Chain,
    187                       SmallPtrSet<Instruction *, 16> *InstructionsProcessed);
    188 
    189   /// Check if this load/store access is misaligned accesses.
    190   bool accessIsMisaligned(unsigned SzInBytes, unsigned AddressSpace,
    191                           Align Alignment);
    192 };
    193 
    194 class LoadStoreVectorizerLegacyPass : public FunctionPass {
    195 public:
    196   static char ID;
    197 
    198   LoadStoreVectorizerLegacyPass() : FunctionPass(ID) {
    199     initializeLoadStoreVectorizerLegacyPassPass(*PassRegistry::getPassRegistry());
    200   }
    201 
    202   bool runOnFunction(Function &F) override;
    203 
    204   StringRef getPassName() const override {
    205     return "GPU Load and Store Vectorizer";
    206   }
    207 
    208   void getAnalysisUsage(AnalysisUsage &AU) const override {
    209     AU.addRequired<AAResultsWrapperPass>();
    210     AU.addRequired<AssumptionCacheTracker>();
    211     AU.addRequired<ScalarEvolutionWrapperPass>();
    212     AU.addRequired<DominatorTreeWrapperPass>();
    213     AU.addRequired<TargetTransformInfoWrapperPass>();
    214     AU.setPreservesCFG();
    215   }
    216 };
    217 
    218 } // end anonymous namespace
    219 
    220 char LoadStoreVectorizerLegacyPass::ID = 0;
    221 
    222 INITIALIZE_PASS_BEGIN(LoadStoreVectorizerLegacyPass, DEBUG_TYPE,
    223                       "Vectorize load and Store instructions", false, false)
    224 INITIALIZE_PASS_DEPENDENCY(SCEVAAWrapperPass)
    225 INITIALIZE_PASS_DEPENDENCY(AssumptionCacheTracker);
    226 INITIALIZE_PASS_DEPENDENCY(DominatorTreeWrapperPass)
    227 INITIALIZE_PASS_DEPENDENCY(AAResultsWrapperPass)
    228 INITIALIZE_PASS_DEPENDENCY(GlobalsAAWrapperPass)
    229 INITIALIZE_PASS_DEPENDENCY(TargetTransformInfoWrapperPass)
    230 INITIALIZE_PASS_END(LoadStoreVectorizerLegacyPass, DEBUG_TYPE,
    231                     "Vectorize load and store instructions", false, false)
    232 
    233 Pass *llvm::createLoadStoreVectorizerPass() {
    234   return new LoadStoreVectorizerLegacyPass();
    235 }
    236 
    237 bool LoadStoreVectorizerLegacyPass::runOnFunction(Function &F) {
    238   // Don't vectorize when the attribute NoImplicitFloat is used.
    239   if (skipFunction(F) || F.hasFnAttribute(Attribute::NoImplicitFloat))
    240     return false;
    241 
    242   AliasAnalysis &AA = getAnalysis<AAResultsWrapperPass>().getAAResults();
    243   DominatorTree &DT = getAnalysis<DominatorTreeWrapperPass>().getDomTree();
    244   ScalarEvolution &SE = getAnalysis<ScalarEvolutionWrapperPass>().getSE();
    245   TargetTransformInfo &TTI =
    246       getAnalysis<TargetTransformInfoWrapperPass>().getTTI(F);
    247 
    248   AssumptionCache &AC =
    249       getAnalysis<AssumptionCacheTracker>().getAssumptionCache(F);
    250 
    251   Vectorizer V(F, AA, AC, DT, SE, TTI);
    252   return V.run();
    253 }
    254 
    255 PreservedAnalyses LoadStoreVectorizerPass::run(Function &F, FunctionAnalysisManager &AM) {
    256   // Don't vectorize when the attribute NoImplicitFloat is used.
    257   if (F.hasFnAttribute(Attribute::NoImplicitFloat))
    258     return PreservedAnalyses::all();
    259 
    260   AliasAnalysis &AA = AM.getResult<AAManager>(F);
    261   DominatorTree &DT = AM.getResult<DominatorTreeAnalysis>(F);
    262   ScalarEvolution &SE = AM.getResult<ScalarEvolutionAnalysis>(F);
    263   TargetTransformInfo &TTI = AM.getResult<TargetIRAnalysis>(F);
    264   AssumptionCache &AC = AM.getResult<AssumptionAnalysis>(F);
    265 
    266   Vectorizer V(F, AA, AC, DT, SE, TTI);
    267   bool Changed = V.run();
    268   PreservedAnalyses PA;
    269   PA.preserveSet<CFGAnalyses>();
    270   return Changed ? PA : PreservedAnalyses::all();
    271 }
    272 
    273 // The real propagateMetadata expects a SmallVector<Value*>, but we deal in
    274 // vectors of Instructions.
    275 static void propagateMetadata(Instruction *I, ArrayRef<Instruction *> IL) {
    276   SmallVector<Value *, 8> VL(IL.begin(), IL.end());
    277   propagateMetadata(I, VL);
    278 }
    279 
    280 // Vectorizer Implementation
    281 bool Vectorizer::run() {
    282   bool Changed = false;
    283 
    284   // Scan the blocks in the function in post order.
    285   for (BasicBlock *BB : post_order(&F)) {
    286     InstrListMap LoadRefs, StoreRefs;
    287     std::tie(LoadRefs, StoreRefs) = collectInstructions(BB);
    288     Changed |= vectorizeChains(LoadRefs);
    289     Changed |= vectorizeChains(StoreRefs);
    290   }
    291 
    292   return Changed;
    293 }
    294 
    295 unsigned Vectorizer::getPointerAddressSpace(Value *I) {
    296   if (LoadInst *L = dyn_cast<LoadInst>(I))
    297     return L->getPointerAddressSpace();
    298   if (StoreInst *S = dyn_cast<StoreInst>(I))
    299     return S->getPointerAddressSpace();
    300   return -1;
    301 }
    302 
    303 // FIXME: Merge with llvm::isConsecutiveAccess
    304 bool Vectorizer::isConsecutiveAccess(Value *A, Value *B) {
    305   Value *PtrA = getLoadStorePointerOperand(A);
    306   Value *PtrB = getLoadStorePointerOperand(B);
    307   unsigned ASA = getPointerAddressSpace(A);
    308   unsigned ASB = getPointerAddressSpace(B);
    309 
    310   // Check that the address spaces match and that the pointers are valid.
    311   if (!PtrA || !PtrB || (ASA != ASB))
    312     return false;
    313 
    314   // Make sure that A and B are different pointers of the same size type.
    315   Type *PtrATy = PtrA->getType()->getPointerElementType();
    316   Type *PtrBTy = PtrB->getType()->getPointerElementType();
    317   if (PtrA == PtrB ||
    318       PtrATy->isVectorTy() != PtrBTy->isVectorTy() ||
    319       DL.getTypeStoreSize(PtrATy) != DL.getTypeStoreSize(PtrBTy) ||
    320       DL.getTypeStoreSize(PtrATy->getScalarType()) !=
    321           DL.getTypeStoreSize(PtrBTy->getScalarType()))
    322     return false;
    323 
    324   unsigned PtrBitWidth = DL.getPointerSizeInBits(ASA);
    325   APInt Size(PtrBitWidth, DL.getTypeStoreSize(PtrATy));
    326 
    327   return areConsecutivePointers(PtrA, PtrB, Size);
    328 }
    329 
    330 bool Vectorizer::areConsecutivePointers(Value *PtrA, Value *PtrB,
    331                                         APInt PtrDelta, unsigned Depth) const {
    332   unsigned PtrBitWidth = DL.getPointerTypeSizeInBits(PtrA->getType());
    333   APInt OffsetA(PtrBitWidth, 0);
    334   APInt OffsetB(PtrBitWidth, 0);
    335   PtrA = PtrA->stripAndAccumulateInBoundsConstantOffsets(DL, OffsetA);
    336   PtrB = PtrB->stripAndAccumulateInBoundsConstantOffsets(DL, OffsetB);
    337 
    338   unsigned NewPtrBitWidth = DL.getTypeStoreSizeInBits(PtrA->getType());
    339 
    340   if (NewPtrBitWidth != DL.getTypeStoreSizeInBits(PtrB->getType()))
    341     return false;
    342 
    343   // In case if we have to shrink the pointer
    344   // stripAndAccumulateInBoundsConstantOffsets should properly handle a
    345   // possible overflow and the value should fit into a smallest data type
    346   // used in the cast/gep chain.
    347   assert(OffsetA.getMinSignedBits() <= NewPtrBitWidth &&
    348          OffsetB.getMinSignedBits() <= NewPtrBitWidth);
    349 
    350   OffsetA = OffsetA.sextOrTrunc(NewPtrBitWidth);
    351   OffsetB = OffsetB.sextOrTrunc(NewPtrBitWidth);
    352   PtrDelta = PtrDelta.sextOrTrunc(NewPtrBitWidth);
    353 
    354   APInt OffsetDelta = OffsetB - OffsetA;
    355 
    356   // Check if they are based on the same pointer. That makes the offsets
    357   // sufficient.
    358   if (PtrA == PtrB)
    359     return OffsetDelta == PtrDelta;
    360 
    361   // Compute the necessary base pointer delta to have the necessary final delta
    362   // equal to the pointer delta requested.
    363   APInt BaseDelta = PtrDelta - OffsetDelta;
    364 
    365   // Compute the distance with SCEV between the base pointers.
    366   const SCEV *PtrSCEVA = SE.getSCEV(PtrA);
    367   const SCEV *PtrSCEVB = SE.getSCEV(PtrB);
    368   const SCEV *C = SE.getConstant(BaseDelta);
    369   const SCEV *X = SE.getAddExpr(PtrSCEVA, C);
    370   if (X == PtrSCEVB)
    371     return true;
    372 
    373   // The above check will not catch the cases where one of the pointers is
    374   // factorized but the other one is not, such as (C + (S * (A + B))) vs
    375   // (AS + BS). Get the minus scev. That will allow re-combining the expresions
    376   // and getting the simplified difference.
    377   const SCEV *Dist = SE.getMinusSCEV(PtrSCEVB, PtrSCEVA);
    378   if (C == Dist)
    379     return true;
    380 
    381   // Sometimes even this doesn't work, because SCEV can't always see through
    382   // patterns that look like (gep (ext (add (shl X, C1), C2))). Try checking
    383   // things the hard way.
    384   return lookThroughComplexAddresses(PtrA, PtrB, BaseDelta, Depth);
    385 }
    386 
    387 bool Vectorizer::lookThroughComplexAddresses(Value *PtrA, Value *PtrB,
    388                                              APInt PtrDelta,
    389                                              unsigned Depth) const {
    390   auto *GEPA = dyn_cast<GetElementPtrInst>(PtrA);
    391   auto *GEPB = dyn_cast<GetElementPtrInst>(PtrB);
    392   if (!GEPA || !GEPB)
    393     return lookThroughSelects(PtrA, PtrB, PtrDelta, Depth);
    394 
    395   // Look through GEPs after checking they're the same except for the last
    396   // index.
    397   if (GEPA->getNumOperands() != GEPB->getNumOperands() ||
    398       GEPA->getPointerOperand() != GEPB->getPointerOperand())
    399     return false;
    400   gep_type_iterator GTIA = gep_type_begin(GEPA);
    401   gep_type_iterator GTIB = gep_type_begin(GEPB);
    402   for (unsigned I = 0, E = GEPA->getNumIndices() - 1; I < E; ++I) {
    403     if (GTIA.getOperand() != GTIB.getOperand())
    404       return false;
    405     ++GTIA;
    406     ++GTIB;
    407   }
    408 
    409   Instruction *OpA = dyn_cast<Instruction>(GTIA.getOperand());
    410   Instruction *OpB = dyn_cast<Instruction>(GTIB.getOperand());
    411   if (!OpA || !OpB || OpA->getOpcode() != OpB->getOpcode() ||
    412       OpA->getType() != OpB->getType())
    413     return false;
    414 
    415   if (PtrDelta.isNegative()) {
    416     if (PtrDelta.isMinSignedValue())
    417       return false;
    418     PtrDelta.negate();
    419     std::swap(OpA, OpB);
    420   }
    421   uint64_t Stride = DL.getTypeAllocSize(GTIA.getIndexedType());
    422   if (PtrDelta.urem(Stride) != 0)
    423     return false;
    424   unsigned IdxBitWidth = OpA->getType()->getScalarSizeInBits();
    425   APInt IdxDiff = PtrDelta.udiv(Stride).zextOrSelf(IdxBitWidth);
    426 
    427   // Only look through a ZExt/SExt.
    428   if (!isa<SExtInst>(OpA) && !isa<ZExtInst>(OpA))
    429     return false;
    430 
    431   bool Signed = isa<SExtInst>(OpA);
    432 
    433   // At this point A could be a function parameter, i.e. not an instruction
    434   Value *ValA = OpA->getOperand(0);
    435   OpB = dyn_cast<Instruction>(OpB->getOperand(0));
    436   if (!OpB || ValA->getType() != OpB->getType())
    437     return false;
    438 
    439   // Now we need to prove that adding IdxDiff to ValA won't overflow.
    440   bool Safe = false;
    441   auto CheckFlags = [](Instruction *I, bool Signed) {
    442     BinaryOperator *BinOpI = cast<BinaryOperator>(I);
    443     return (Signed && BinOpI->hasNoSignedWrap()) ||
    444            (!Signed && BinOpI->hasNoUnsignedWrap());
    445   };
    446 
    447   // First attempt: if OpB is an add with NSW/NUW, and OpB is IdxDiff added to
    448   // ValA, we're okay.
    449   if (OpB->getOpcode() == Instruction::Add &&
    450       isa<ConstantInt>(OpB->getOperand(1)) &&
    451       IdxDiff.sle(cast<ConstantInt>(OpB->getOperand(1))->getSExtValue()) &&
    452       CheckFlags(OpB, Signed))
    453     Safe = true;
    454 
    455   // Second attempt: If both OpA and OpB is an add with NSW/NUW and with
    456   // the same LHS operand, we can guarantee that the transformation is safe
    457   // if we can prove that OpA won't overflow when IdxDiff added to the RHS
    458   // of OpA.
    459   // For example:
    460   //  %tmp7 = add nsw i32 %tmp2, %v0
    461   //  %tmp8 = sext i32 %tmp7 to i64
    462   //  ...
    463   //  %tmp11 = add nsw i32 %v0, 1
    464   //  %tmp12 = add nsw i32 %tmp2, %tmp11
    465   //  %tmp13 = sext i32 %tmp12 to i64
    466   //
    467   //  Both %tmp7 and %tmp2 has the nsw flag and the first operand
    468   //  is %tmp2. It's guaranteed that adding 1 to %tmp7 won't overflow
    469   //  because %tmp11 adds 1 to %v0 and both %tmp11 and %tmp12 has the
    470   //  nsw flag.
    471   OpA = dyn_cast<Instruction>(ValA);
    472   if (!Safe && OpA && OpA->getOpcode() == Instruction::Add &&
    473       OpB->getOpcode() == Instruction::Add &&
    474       OpA->getOperand(0) == OpB->getOperand(0) && CheckFlags(OpA, Signed) &&
    475       CheckFlags(OpB, Signed)) {
    476     Value *RHSA = OpA->getOperand(1);
    477     Value *RHSB = OpB->getOperand(1);
    478     Instruction *OpRHSA = dyn_cast<Instruction>(RHSA);
    479     Instruction *OpRHSB = dyn_cast<Instruction>(RHSB);
    480     // Match `x +nsw/nuw y` and `x +nsw/nuw (y +nsw/nuw IdxDiff)`.
    481     if (OpRHSB && OpRHSB->getOpcode() == Instruction::Add &&
    482         CheckFlags(OpRHSB, Signed) && isa<ConstantInt>(OpRHSB->getOperand(1))) {
    483       int64_t CstVal = cast<ConstantInt>(OpRHSB->getOperand(1))->getSExtValue();
    484       if (OpRHSB->getOperand(0) == RHSA && IdxDiff.getSExtValue() == CstVal)
    485         Safe = true;
    486     }
    487     // Match `x +nsw/nuw (y +nsw/nuw -Idx)` and `x +nsw/nuw (y +nsw/nuw x)`.
    488     if (OpRHSA && OpRHSA->getOpcode() == Instruction::Add &&
    489         CheckFlags(OpRHSA, Signed) && isa<ConstantInt>(OpRHSA->getOperand(1))) {
    490       int64_t CstVal = cast<ConstantInt>(OpRHSA->getOperand(1))->getSExtValue();
    491       if (OpRHSA->getOperand(0) == RHSB && IdxDiff.getSExtValue() == -CstVal)
    492         Safe = true;
    493     }
    494     // Match `x +nsw/nuw (y +nsw/nuw c)` and
    495     // `x +nsw/nuw (y +nsw/nuw (c + IdxDiff))`.
    496     if (OpRHSA && OpRHSB && OpRHSA->getOpcode() == Instruction::Add &&
    497         OpRHSB->getOpcode() == Instruction::Add && CheckFlags(OpRHSA, Signed) &&
    498         CheckFlags(OpRHSB, Signed) && isa<ConstantInt>(OpRHSA->getOperand(1)) &&
    499         isa<ConstantInt>(OpRHSB->getOperand(1))) {
    500       int64_t CstValA =
    501           cast<ConstantInt>(OpRHSA->getOperand(1))->getSExtValue();
    502       int64_t CstValB =
    503           cast<ConstantInt>(OpRHSB->getOperand(1))->getSExtValue();
    504       if (OpRHSA->getOperand(0) == OpRHSB->getOperand(0) &&
    505           IdxDiff.getSExtValue() == (CstValB - CstValA))
    506         Safe = true;
    507     }
    508   }
    509 
    510   unsigned BitWidth = ValA->getType()->getScalarSizeInBits();
    511 
    512   // Third attempt:
    513   // If all set bits of IdxDiff or any higher order bit other than the sign bit
    514   // are known to be zero in ValA, we can add Diff to it while guaranteeing no
    515   // overflow of any sort.
    516   if (!Safe) {
    517     KnownBits Known(BitWidth);
    518     computeKnownBits(ValA, Known, DL, 0, &AC, OpB, &DT);
    519     APInt BitsAllowedToBeSet = Known.Zero.zext(IdxDiff.getBitWidth());
    520     if (Signed)
    521       BitsAllowedToBeSet.clearBit(BitWidth - 1);
    522     if (BitsAllowedToBeSet.ult(IdxDiff))
    523       return false;
    524   }
    525 
    526   const SCEV *OffsetSCEVA = SE.getSCEV(ValA);
    527   const SCEV *OffsetSCEVB = SE.getSCEV(OpB);
    528   const SCEV *C = SE.getConstant(IdxDiff.trunc(BitWidth));
    529   const SCEV *X = SE.getAddExpr(OffsetSCEVA, C);
    530   return X == OffsetSCEVB;
    531 }
    532 
    533 bool Vectorizer::lookThroughSelects(Value *PtrA, Value *PtrB,
    534                                     const APInt &PtrDelta,
    535                                     unsigned Depth) const {
    536   if (Depth++ == MaxDepth)
    537     return false;
    538 
    539   if (auto *SelectA = dyn_cast<SelectInst>(PtrA)) {
    540     if (auto *SelectB = dyn_cast<SelectInst>(PtrB)) {
    541       return SelectA->getCondition() == SelectB->getCondition() &&
    542              areConsecutivePointers(SelectA->getTrueValue(),
    543                                     SelectB->getTrueValue(), PtrDelta, Depth) &&
    544              areConsecutivePointers(SelectA->getFalseValue(),
    545                                     SelectB->getFalseValue(), PtrDelta, Depth);
    546     }
    547   }
    548   return false;
    549 }
    550 
    551 void Vectorizer::reorder(Instruction *I) {
    552   SmallPtrSet<Instruction *, 16> InstructionsToMove;
    553   SmallVector<Instruction *, 16> Worklist;
    554 
    555   Worklist.push_back(I);
    556   while (!Worklist.empty()) {
    557     Instruction *IW = Worklist.pop_back_val();
    558     int NumOperands = IW->getNumOperands();
    559     for (int i = 0; i < NumOperands; i++) {
    560       Instruction *IM = dyn_cast<Instruction>(IW->getOperand(i));
    561       if (!IM || IM->getOpcode() == Instruction::PHI)
    562         continue;
    563 
    564       // If IM is in another BB, no need to move it, because this pass only
    565       // vectorizes instructions within one BB.
    566       if (IM->getParent() != I->getParent())
    567         continue;
    568 
    569       if (!IM->comesBefore(I)) {
    570         InstructionsToMove.insert(IM);
    571         Worklist.push_back(IM);
    572       }
    573     }
    574   }
    575 
    576   // All instructions to move should follow I. Start from I, not from begin().
    577   for (auto BBI = I->getIterator(), E = I->getParent()->end(); BBI != E;
    578        ++BBI) {
    579     if (!InstructionsToMove.count(&*BBI))
    580       continue;
    581     Instruction *IM = &*BBI;
    582     --BBI;
    583     IM->removeFromParent();
    584     IM->insertBefore(I);
    585   }
    586 }
    587 
    588 std::pair<BasicBlock::iterator, BasicBlock::iterator>
    589 Vectorizer::getBoundaryInstrs(ArrayRef<Instruction *> Chain) {
    590   Instruction *C0 = Chain[0];
    591   BasicBlock::iterator FirstInstr = C0->getIterator();
    592   BasicBlock::iterator LastInstr = C0->getIterator();
    593 
    594   BasicBlock *BB = C0->getParent();
    595   unsigned NumFound = 0;
    596   for (Instruction &I : *BB) {
    597     if (!is_contained(Chain, &I))
    598       continue;
    599 
    600     ++NumFound;
    601     if (NumFound == 1) {
    602       FirstInstr = I.getIterator();
    603     }
    604     if (NumFound == Chain.size()) {
    605       LastInstr = I.getIterator();
    606       break;
    607     }
    608   }
    609 
    610   // Range is [first, last).
    611   return std::make_pair(FirstInstr, ++LastInstr);
    612 }
    613 
    614 void Vectorizer::eraseInstructions(ArrayRef<Instruction *> Chain) {
    615   SmallVector<Instruction *, 16> Instrs;
    616   for (Instruction *I : Chain) {
    617     Value *PtrOperand = getLoadStorePointerOperand(I);
    618     assert(PtrOperand && "Instruction must have a pointer operand.");
    619     Instrs.push_back(I);
    620     if (GetElementPtrInst *GEP = dyn_cast<GetElementPtrInst>(PtrOperand))
    621       Instrs.push_back(GEP);
    622   }
    623 
    624   // Erase instructions.
    625   for (Instruction *I : Instrs)
    626     if (I->use_empty())
    627       I->eraseFromParent();
    628 }
    629 
    630 std::pair<ArrayRef<Instruction *>, ArrayRef<Instruction *>>
    631 Vectorizer::splitOddVectorElts(ArrayRef<Instruction *> Chain,
    632                                unsigned ElementSizeBits) {
    633   unsigned ElementSizeBytes = ElementSizeBits / 8;
    634   unsigned SizeBytes = ElementSizeBytes * Chain.size();
    635   unsigned NumLeft = (SizeBytes - (SizeBytes % 4)) / ElementSizeBytes;
    636   if (NumLeft == Chain.size()) {
    637     if ((NumLeft & 1) == 0)
    638       NumLeft /= 2; // Split even in half
    639     else
    640       --NumLeft;    // Split off last element
    641   } else if (NumLeft == 0)
    642     NumLeft = 1;
    643   return std::make_pair(Chain.slice(0, NumLeft), Chain.slice(NumLeft));
    644 }
    645 
    646 ArrayRef<Instruction *>
    647 Vectorizer::getVectorizablePrefix(ArrayRef<Instruction *> Chain) {
    648   // These are in BB order, unlike Chain, which is in address order.
    649   SmallVector<Instruction *, 16> MemoryInstrs;
    650   SmallVector<Instruction *, 16> ChainInstrs;
    651 
    652   bool IsLoadChain = isa<LoadInst>(Chain[0]);
    653   LLVM_DEBUG({
    654     for (Instruction *I : Chain) {
    655       if (IsLoadChain)
    656         assert(isa<LoadInst>(I) &&
    657                "All elements of Chain must be loads, or all must be stores.");
    658       else
    659         assert(isa<StoreInst>(I) &&
    660                "All elements of Chain must be loads, or all must be stores.");
    661     }
    662   });
    663 
    664   for (Instruction &I : make_range(getBoundaryInstrs(Chain))) {
    665     if (isa<LoadInst>(I) || isa<StoreInst>(I)) {
    666       if (!is_contained(Chain, &I))
    667         MemoryInstrs.push_back(&I);
    668       else
    669         ChainInstrs.push_back(&I);
    670     } else if (isa<IntrinsicInst>(&I) &&
    671                cast<IntrinsicInst>(&I)->getIntrinsicID() ==
    672                    Intrinsic::sideeffect) {
    673       // Ignore llvm.sideeffect calls.
    674     } else if (isa<IntrinsicInst>(&I) &&
    675                cast<IntrinsicInst>(&I)->getIntrinsicID() ==
    676                    Intrinsic::pseudoprobe) {
    677       // Ignore llvm.pseudoprobe calls.
    678     } else if (isa<IntrinsicInst>(&I) &&
    679                cast<IntrinsicInst>(&I)->getIntrinsicID() == Intrinsic::assume) {
    680       // Ignore llvm.assume calls.
    681     } else if (IsLoadChain && (I.mayWriteToMemory() || I.mayThrow())) {
    682       LLVM_DEBUG(dbgs() << "LSV: Found may-write/throw operation: " << I
    683                         << '\n');
    684       break;
    685     } else if (!IsLoadChain && (I.mayReadOrWriteMemory() || I.mayThrow())) {
    686       LLVM_DEBUG(dbgs() << "LSV: Found may-read/write/throw operation: " << I
    687                         << '\n');
    688       break;
    689     }
    690   }
    691 
    692   // Loop until we find an instruction in ChainInstrs that we can't vectorize.
    693   unsigned ChainInstrIdx = 0;
    694   Instruction *BarrierMemoryInstr = nullptr;
    695 
    696   for (unsigned E = ChainInstrs.size(); ChainInstrIdx < E; ++ChainInstrIdx) {
    697     Instruction *ChainInstr = ChainInstrs[ChainInstrIdx];
    698 
    699     // If a barrier memory instruction was found, chain instructions that follow
    700     // will not be added to the valid prefix.
    701     if (BarrierMemoryInstr && BarrierMemoryInstr->comesBefore(ChainInstr))
    702       break;
    703 
    704     // Check (in BB order) if any instruction prevents ChainInstr from being
    705     // vectorized. Find and store the first such "conflicting" instruction.
    706     for (Instruction *MemInstr : MemoryInstrs) {
    707       // If a barrier memory instruction was found, do not check past it.
    708       if (BarrierMemoryInstr && BarrierMemoryInstr->comesBefore(MemInstr))
    709         break;
    710 
    711       auto *MemLoad = dyn_cast<LoadInst>(MemInstr);
    712       auto *ChainLoad = dyn_cast<LoadInst>(ChainInstr);
    713       if (MemLoad && ChainLoad)
    714         continue;
    715 
    716       // We can ignore the alias if the we have a load store pair and the load
    717       // is known to be invariant. The load cannot be clobbered by the store.
    718       auto IsInvariantLoad = [](const LoadInst *LI) -> bool {
    719         return LI->hasMetadata(LLVMContext::MD_invariant_load);
    720       };
    721 
    722       // We can ignore the alias as long as the load comes before the store,
    723       // because that means we won't be moving the load past the store to
    724       // vectorize it (the vectorized load is inserted at the location of the
    725       // first load in the chain).
    726       if (isa<StoreInst>(MemInstr) && ChainLoad &&
    727           (IsInvariantLoad(ChainLoad) || ChainLoad->comesBefore(MemInstr)))
    728         continue;
    729 
    730       // Same case, but in reverse.
    731       if (MemLoad && isa<StoreInst>(ChainInstr) &&
    732           (IsInvariantLoad(MemLoad) || MemLoad->comesBefore(ChainInstr)))
    733         continue;
    734 
    735       if (!AA.isNoAlias(MemoryLocation::get(MemInstr),
    736                         MemoryLocation::get(ChainInstr))) {
    737         LLVM_DEBUG({
    738           dbgs() << "LSV: Found alias:\n"
    739                     "  Aliasing instruction and pointer:\n"
    740                  << "  " << *MemInstr << '\n'
    741                  << "  " << *getLoadStorePointerOperand(MemInstr) << '\n'
    742                  << "  Aliased instruction and pointer:\n"
    743                  << "  " << *ChainInstr << '\n'
    744                  << "  " << *getLoadStorePointerOperand(ChainInstr) << '\n';
    745         });
    746         // Save this aliasing memory instruction as a barrier, but allow other
    747         // instructions that precede the barrier to be vectorized with this one.
    748         BarrierMemoryInstr = MemInstr;
    749         break;
    750       }
    751     }
    752     // Continue the search only for store chains, since vectorizing stores that
    753     // precede an aliasing load is valid. Conversely, vectorizing loads is valid
    754     // up to an aliasing store, but should not pull loads from further down in
    755     // the basic block.
    756     if (IsLoadChain && BarrierMemoryInstr) {
    757       // The BarrierMemoryInstr is a store that precedes ChainInstr.
    758       assert(BarrierMemoryInstr->comesBefore(ChainInstr));
    759       break;
    760     }
    761   }
    762 
    763   // Find the largest prefix of Chain whose elements are all in
    764   // ChainInstrs[0, ChainInstrIdx).  This is the largest vectorizable prefix of
    765   // Chain.  (Recall that Chain is in address order, but ChainInstrs is in BB
    766   // order.)
    767   SmallPtrSet<Instruction *, 8> VectorizableChainInstrs(
    768       ChainInstrs.begin(), ChainInstrs.begin() + ChainInstrIdx);
    769   unsigned ChainIdx = 0;
    770   for (unsigned ChainLen = Chain.size(); ChainIdx < ChainLen; ++ChainIdx) {
    771     if (!VectorizableChainInstrs.count(Chain[ChainIdx]))
    772       break;
    773   }
    774   return Chain.slice(0, ChainIdx);
    775 }
    776 
    777 static ChainID getChainID(const Value *Ptr) {
    778   const Value *ObjPtr = getUnderlyingObject(Ptr);
    779   if (const auto *Sel = dyn_cast<SelectInst>(ObjPtr)) {
    780     // The select's themselves are distinct instructions even if they share the
    781     // same condition and evaluate to consecutive pointers for true and false
    782     // values of the condition. Therefore using the select's themselves for
    783     // grouping instructions would put consecutive accesses into different lists
    784     // and they won't be even checked for being consecutive, and won't be
    785     // vectorized.
    786     return Sel->getCondition();
    787   }
    788   return ObjPtr;
    789 }
    790 
    791 std::pair<InstrListMap, InstrListMap>
    792 Vectorizer::collectInstructions(BasicBlock *BB) {
    793   InstrListMap LoadRefs;
    794   InstrListMap StoreRefs;
    795 
    796   for (Instruction &I : *BB) {
    797     if (!I.mayReadOrWriteMemory())
    798       continue;
    799 
    800     if (LoadInst *LI = dyn_cast<LoadInst>(&I)) {
    801       if (!LI->isSimple())
    802         continue;
    803 
    804       // Skip if it's not legal.
    805       if (!TTI.isLegalToVectorizeLoad(LI))
    806         continue;
    807 
    808       Type *Ty = LI->getType();
    809       if (!VectorType::isValidElementType(Ty->getScalarType()))
    810         continue;
    811 
    812       // Skip weird non-byte sizes. They probably aren't worth the effort of
    813       // handling correctly.
    814       unsigned TySize = DL.getTypeSizeInBits(Ty);
    815       if ((TySize % 8) != 0)
    816         continue;
    817 
    818       // Skip vectors of pointers. The vectorizeLoadChain/vectorizeStoreChain
    819       // functions are currently using an integer type for the vectorized
    820       // load/store, and does not support casting between the integer type and a
    821       // vector of pointers (e.g. i64 to <2 x i16*>)
    822       if (Ty->isVectorTy() && Ty->isPtrOrPtrVectorTy())
    823         continue;
    824 
    825       Value *Ptr = LI->getPointerOperand();
    826       unsigned AS = Ptr->getType()->getPointerAddressSpace();
    827       unsigned VecRegSize = TTI.getLoadStoreVecRegBitWidth(AS);
    828 
    829       unsigned VF = VecRegSize / TySize;
    830       VectorType *VecTy = dyn_cast<VectorType>(Ty);
    831 
    832       // No point in looking at these if they're too big to vectorize.
    833       if (TySize > VecRegSize / 2 ||
    834           (VecTy && TTI.getLoadVectorFactor(VF, TySize, TySize / 8, VecTy) == 0))
    835         continue;
    836 
    837       // Make sure all the users of a vector are constant-index extracts.
    838       if (isa<VectorType>(Ty) && !llvm::all_of(LI->users(), [](const User *U) {
    839             const ExtractElementInst *EEI = dyn_cast<ExtractElementInst>(U);
    840             return EEI && isa<ConstantInt>(EEI->getOperand(1));
    841           }))
    842         continue;
    843 
    844       // Save the load locations.
    845       const ChainID ID = getChainID(Ptr);
    846       LoadRefs[ID].push_back(LI);
    847     } else if (StoreInst *SI = dyn_cast<StoreInst>(&I)) {
    848       if (!SI->isSimple())
    849         continue;
    850 
    851       // Skip if it's not legal.
    852       if (!TTI.isLegalToVectorizeStore(SI))
    853         continue;
    854 
    855       Type *Ty = SI->getValueOperand()->getType();
    856       if (!VectorType::isValidElementType(Ty->getScalarType()))
    857         continue;
    858 
    859       // Skip vectors of pointers. The vectorizeLoadChain/vectorizeStoreChain
    860       // functions are currently using an integer type for the vectorized
    861       // load/store, and does not support casting between the integer type and a
    862       // vector of pointers (e.g. i64 to <2 x i16*>)
    863       if (Ty->isVectorTy() && Ty->isPtrOrPtrVectorTy())
    864         continue;
    865 
    866       // Skip weird non-byte sizes. They probably aren't worth the effort of
    867       // handling correctly.
    868       unsigned TySize = DL.getTypeSizeInBits(Ty);
    869       if ((TySize % 8) != 0)
    870         continue;
    871 
    872       Value *Ptr = SI->getPointerOperand();
    873       unsigned AS = Ptr->getType()->getPointerAddressSpace();
    874       unsigned VecRegSize = TTI.getLoadStoreVecRegBitWidth(AS);
    875 
    876       unsigned VF = VecRegSize / TySize;
    877       VectorType *VecTy = dyn_cast<VectorType>(Ty);
    878 
    879       // No point in looking at these if they're too big to vectorize.
    880       if (TySize > VecRegSize / 2 ||
    881           (VecTy && TTI.getStoreVectorFactor(VF, TySize, TySize / 8, VecTy) == 0))
    882         continue;
    883 
    884       if (isa<VectorType>(Ty) && !llvm::all_of(SI->users(), [](const User *U) {
    885             const ExtractElementInst *EEI = dyn_cast<ExtractElementInst>(U);
    886             return EEI && isa<ConstantInt>(EEI->getOperand(1));
    887           }))
    888         continue;
    889 
    890       // Save store location.
    891       const ChainID ID = getChainID(Ptr);
    892       StoreRefs[ID].push_back(SI);
    893     }
    894   }
    895 
    896   return {LoadRefs, StoreRefs};
    897 }
    898 
    899 bool Vectorizer::vectorizeChains(InstrListMap &Map) {
    900   bool Changed = false;
    901 
    902   for (const std::pair<ChainID, InstrList> &Chain : Map) {
    903     unsigned Size = Chain.second.size();
    904     if (Size < 2)
    905       continue;
    906 
    907     LLVM_DEBUG(dbgs() << "LSV: Analyzing a chain of length " << Size << ".\n");
    908 
    909     // Process the stores in chunks of 64.
    910     for (unsigned CI = 0, CE = Size; CI < CE; CI += 64) {
    911       unsigned Len = std::min<unsigned>(CE - CI, 64);
    912       ArrayRef<Instruction *> Chunk(&Chain.second[CI], Len);
    913       Changed |= vectorizeInstructions(Chunk);
    914     }
    915   }
    916 
    917   return Changed;
    918 }
    919 
    920 bool Vectorizer::vectorizeInstructions(ArrayRef<Instruction *> Instrs) {
    921   LLVM_DEBUG(dbgs() << "LSV: Vectorizing " << Instrs.size()
    922                     << " instructions.\n");
    923   SmallVector<int, 16> Heads, Tails;
    924   int ConsecutiveChain[64];
    925 
    926   // Do a quadratic search on all of the given loads/stores and find all of the
    927   // pairs of loads/stores that follow each other.
    928   for (int i = 0, e = Instrs.size(); i < e; ++i) {
    929     ConsecutiveChain[i] = -1;
    930     for (int j = e - 1; j >= 0; --j) {
    931       if (i == j)
    932         continue;
    933 
    934       if (isConsecutiveAccess(Instrs[i], Instrs[j])) {
    935         if (ConsecutiveChain[i] != -1) {
    936           int CurDistance = std::abs(ConsecutiveChain[i] - i);
    937           int NewDistance = std::abs(ConsecutiveChain[i] - j);
    938           if (j < i || NewDistance > CurDistance)
    939             continue; // Should not insert.
    940         }
    941 
    942         Tails.push_back(j);
    943         Heads.push_back(i);
    944         ConsecutiveChain[i] = j;
    945       }
    946     }
    947   }
    948 
    949   bool Changed = false;
    950   SmallPtrSet<Instruction *, 16> InstructionsProcessed;
    951 
    952   for (int Head : Heads) {
    953     if (InstructionsProcessed.count(Instrs[Head]))
    954       continue;
    955     bool LongerChainExists = false;
    956     for (unsigned TIt = 0; TIt < Tails.size(); TIt++)
    957       if (Head == Tails[TIt] &&
    958           !InstructionsProcessed.count(Instrs[Heads[TIt]])) {
    959         LongerChainExists = true;
    960         break;
    961       }
    962     if (LongerChainExists)
    963       continue;
    964 
    965     // We found an instr that starts a chain. Now follow the chain and try to
    966     // vectorize it.
    967     SmallVector<Instruction *, 16> Operands;
    968     int I = Head;
    969     while (I != -1 && (is_contained(Tails, I) || is_contained(Heads, I))) {
    970       if (InstructionsProcessed.count(Instrs[I]))
    971         break;
    972 
    973       Operands.push_back(Instrs[I]);
    974       I = ConsecutiveChain[I];
    975     }
    976 
    977     bool Vectorized = false;
    978     if (isa<LoadInst>(*Operands.begin()))
    979       Vectorized = vectorizeLoadChain(Operands, &InstructionsProcessed);
    980     else
    981       Vectorized = vectorizeStoreChain(Operands, &InstructionsProcessed);
    982 
    983     Changed |= Vectorized;
    984   }
    985 
    986   return Changed;
    987 }
    988 
    989 bool Vectorizer::vectorizeStoreChain(
    990     ArrayRef<Instruction *> Chain,
    991     SmallPtrSet<Instruction *, 16> *InstructionsProcessed) {
    992   StoreInst *S0 = cast<StoreInst>(Chain[0]);
    993 
    994   // If the vector has an int element, default to int for the whole store.
    995   Type *StoreTy = nullptr;
    996   for (Instruction *I : Chain) {
    997     StoreTy = cast<StoreInst>(I)->getValueOperand()->getType();
    998     if (StoreTy->isIntOrIntVectorTy())
    999       break;
   1000 
   1001     if (StoreTy->isPtrOrPtrVectorTy()) {
   1002       StoreTy = Type::getIntNTy(F.getParent()->getContext(),
   1003                                 DL.getTypeSizeInBits(StoreTy));
   1004       break;
   1005     }
   1006   }
   1007   assert(StoreTy && "Failed to find store type");
   1008 
   1009   unsigned Sz = DL.getTypeSizeInBits(StoreTy);
   1010   unsigned AS = S0->getPointerAddressSpace();
   1011   unsigned VecRegSize = TTI.getLoadStoreVecRegBitWidth(AS);
   1012   unsigned VF = VecRegSize / Sz;
   1013   unsigned ChainSize = Chain.size();
   1014   Align Alignment = S0->getAlign();
   1015 
   1016   if (!isPowerOf2_32(Sz) || VF < 2 || ChainSize < 2) {
   1017     InstructionsProcessed->insert(Chain.begin(), Chain.end());
   1018     return false;
   1019   }
   1020 
   1021   ArrayRef<Instruction *> NewChain = getVectorizablePrefix(Chain);
   1022   if (NewChain.empty()) {
   1023     // No vectorization possible.
   1024     InstructionsProcessed->insert(Chain.begin(), Chain.end());
   1025     return false;
   1026   }
   1027   if (NewChain.size() == 1) {
   1028     // Failed after the first instruction. Discard it and try the smaller chain.
   1029     InstructionsProcessed->insert(NewChain.front());
   1030     return false;
   1031   }
   1032 
   1033   // Update Chain to the valid vectorizable subchain.
   1034   Chain = NewChain;
   1035   ChainSize = Chain.size();
   1036 
   1037   // Check if it's legal to vectorize this chain. If not, split the chain and
   1038   // try again.
   1039   unsigned EltSzInBytes = Sz / 8;
   1040   unsigned SzInBytes = EltSzInBytes * ChainSize;
   1041 
   1042   FixedVectorType *VecTy;
   1043   auto *VecStoreTy = dyn_cast<FixedVectorType>(StoreTy);
   1044   if (VecStoreTy)
   1045     VecTy = FixedVectorType::get(StoreTy->getScalarType(),
   1046                                  Chain.size() * VecStoreTy->getNumElements());
   1047   else
   1048     VecTy = FixedVectorType::get(StoreTy, Chain.size());
   1049 
   1050   // If it's more than the max vector size or the target has a better
   1051   // vector factor, break it into two pieces.
   1052   unsigned TargetVF = TTI.getStoreVectorFactor(VF, Sz, SzInBytes, VecTy);
   1053   if (ChainSize > VF || (VF != TargetVF && TargetVF < ChainSize)) {
   1054     LLVM_DEBUG(dbgs() << "LSV: Chain doesn't match with the vector factor."
   1055                          " Creating two separate arrays.\n");
   1056     return vectorizeStoreChain(Chain.slice(0, TargetVF),
   1057                                InstructionsProcessed) |
   1058            vectorizeStoreChain(Chain.slice(TargetVF), InstructionsProcessed);
   1059   }
   1060 
   1061   LLVM_DEBUG({
   1062     dbgs() << "LSV: Stores to vectorize:\n";
   1063     for (Instruction *I : Chain)
   1064       dbgs() << "  " << *I << "\n";
   1065   });
   1066 
   1067   // We won't try again to vectorize the elements of the chain, regardless of
   1068   // whether we succeed below.
   1069   InstructionsProcessed->insert(Chain.begin(), Chain.end());
   1070 
   1071   // If the store is going to be misaligned, don't vectorize it.
   1072   if (accessIsMisaligned(SzInBytes, AS, Alignment)) {
   1073     if (S0->getPointerAddressSpace() != DL.getAllocaAddrSpace()) {
   1074       auto Chains = splitOddVectorElts(Chain, Sz);
   1075       return vectorizeStoreChain(Chains.first, InstructionsProcessed) |
   1076              vectorizeStoreChain(Chains.second, InstructionsProcessed);
   1077     }
   1078 
   1079     Align NewAlign = getOrEnforceKnownAlignment(S0->getPointerOperand(),
   1080                                                 Align(StackAdjustedAlignment),
   1081                                                 DL, S0, nullptr, &DT);
   1082     if (NewAlign >= Alignment)
   1083       Alignment = NewAlign;
   1084     else
   1085       return false;
   1086   }
   1087 
   1088   if (!TTI.isLegalToVectorizeStoreChain(SzInBytes, Alignment, AS)) {
   1089     auto Chains = splitOddVectorElts(Chain, Sz);
   1090     return vectorizeStoreChain(Chains.first, InstructionsProcessed) |
   1091            vectorizeStoreChain(Chains.second, InstructionsProcessed);
   1092   }
   1093 
   1094   BasicBlock::iterator First, Last;
   1095   std::tie(First, Last) = getBoundaryInstrs(Chain);
   1096   Builder.SetInsertPoint(&*Last);
   1097 
   1098   Value *Vec = UndefValue::get(VecTy);
   1099 
   1100   if (VecStoreTy) {
   1101     unsigned VecWidth = VecStoreTy->getNumElements();
   1102     for (unsigned I = 0, E = Chain.size(); I != E; ++I) {
   1103       StoreInst *Store = cast<StoreInst>(Chain[I]);
   1104       for (unsigned J = 0, NE = VecStoreTy->getNumElements(); J != NE; ++J) {
   1105         unsigned NewIdx = J + I * VecWidth;
   1106         Value *Extract = Builder.CreateExtractElement(Store->getValueOperand(),
   1107                                                       Builder.getInt32(J));
   1108         if (Extract->getType() != StoreTy->getScalarType())
   1109           Extract = Builder.CreateBitCast(Extract, StoreTy->getScalarType());
   1110 
   1111         Value *Insert =
   1112             Builder.CreateInsertElement(Vec, Extract, Builder.getInt32(NewIdx));
   1113         Vec = Insert;
   1114       }
   1115     }
   1116   } else {
   1117     for (unsigned I = 0, E = Chain.size(); I != E; ++I) {
   1118       StoreInst *Store = cast<StoreInst>(Chain[I]);
   1119       Value *Extract = Store->getValueOperand();
   1120       if (Extract->getType() != StoreTy->getScalarType())
   1121         Extract =
   1122             Builder.CreateBitOrPointerCast(Extract, StoreTy->getScalarType());
   1123 
   1124       Value *Insert =
   1125           Builder.CreateInsertElement(Vec, Extract, Builder.getInt32(I));
   1126       Vec = Insert;
   1127     }
   1128   }
   1129 
   1130   StoreInst *SI = Builder.CreateAlignedStore(
   1131     Vec,
   1132     Builder.CreateBitCast(S0->getPointerOperand(), VecTy->getPointerTo(AS)),
   1133     Alignment);
   1134   propagateMetadata(SI, Chain);
   1135 
   1136   eraseInstructions(Chain);
   1137   ++NumVectorInstructions;
   1138   NumScalarsVectorized += Chain.size();
   1139   return true;
   1140 }
   1141 
   1142 bool Vectorizer::vectorizeLoadChain(
   1143     ArrayRef<Instruction *> Chain,
   1144     SmallPtrSet<Instruction *, 16> *InstructionsProcessed) {
   1145   LoadInst *L0 = cast<LoadInst>(Chain[0]);
   1146 
   1147   // If the vector has an int element, default to int for the whole load.
   1148   Type *LoadTy = nullptr;
   1149   for (const auto &V : Chain) {
   1150     LoadTy = cast<LoadInst>(V)->getType();
   1151     if (LoadTy->isIntOrIntVectorTy())
   1152       break;
   1153 
   1154     if (LoadTy->isPtrOrPtrVectorTy()) {
   1155       LoadTy = Type::getIntNTy(F.getParent()->getContext(),
   1156                                DL.getTypeSizeInBits(LoadTy));
   1157       break;
   1158     }
   1159   }
   1160   assert(LoadTy && "Can't determine LoadInst type from chain");
   1161 
   1162   unsigned Sz = DL.getTypeSizeInBits(LoadTy);
   1163   unsigned AS = L0->getPointerAddressSpace();
   1164   unsigned VecRegSize = TTI.getLoadStoreVecRegBitWidth(AS);
   1165   unsigned VF = VecRegSize / Sz;
   1166   unsigned ChainSize = Chain.size();
   1167   Align Alignment = L0->getAlign();
   1168 
   1169   if (!isPowerOf2_32(Sz) || VF < 2 || ChainSize < 2) {
   1170     InstructionsProcessed->insert(Chain.begin(), Chain.end());
   1171     return false;
   1172   }
   1173 
   1174   ArrayRef<Instruction *> NewChain = getVectorizablePrefix(Chain);
   1175   if (NewChain.empty()) {
   1176     // No vectorization possible.
   1177     InstructionsProcessed->insert(Chain.begin(), Chain.end());
   1178     return false;
   1179   }
   1180   if (NewChain.size() == 1) {
   1181     // Failed after the first instruction. Discard it and try the smaller chain.
   1182     InstructionsProcessed->insert(NewChain.front());
   1183     return false;
   1184   }
   1185 
   1186   // Update Chain to the valid vectorizable subchain.
   1187   Chain = NewChain;
   1188   ChainSize = Chain.size();
   1189 
   1190   // Check if it's legal to vectorize this chain. If not, split the chain and
   1191   // try again.
   1192   unsigned EltSzInBytes = Sz / 8;
   1193   unsigned SzInBytes = EltSzInBytes * ChainSize;
   1194   VectorType *VecTy;
   1195   auto *VecLoadTy = dyn_cast<FixedVectorType>(LoadTy);
   1196   if (VecLoadTy)
   1197     VecTy = FixedVectorType::get(LoadTy->getScalarType(),
   1198                                  Chain.size() * VecLoadTy->getNumElements());
   1199   else
   1200     VecTy = FixedVectorType::get(LoadTy, Chain.size());
   1201 
   1202   // If it's more than the max vector size or the target has a better
   1203   // vector factor, break it into two pieces.
   1204   unsigned TargetVF = TTI.getLoadVectorFactor(VF, Sz, SzInBytes, VecTy);
   1205   if (ChainSize > VF || (VF != TargetVF && TargetVF < ChainSize)) {
   1206     LLVM_DEBUG(dbgs() << "LSV: Chain doesn't match with the vector factor."
   1207                          " Creating two separate arrays.\n");
   1208     return vectorizeLoadChain(Chain.slice(0, TargetVF), InstructionsProcessed) |
   1209            vectorizeLoadChain(Chain.slice(TargetVF), InstructionsProcessed);
   1210   }
   1211 
   1212   // We won't try again to vectorize the elements of the chain, regardless of
   1213   // whether we succeed below.
   1214   InstructionsProcessed->insert(Chain.begin(), Chain.end());
   1215 
   1216   // If the load is going to be misaligned, don't vectorize it.
   1217   if (accessIsMisaligned(SzInBytes, AS, Alignment)) {
   1218     if (L0->getPointerAddressSpace() != DL.getAllocaAddrSpace()) {
   1219       auto Chains = splitOddVectorElts(Chain, Sz);
   1220       return vectorizeLoadChain(Chains.first, InstructionsProcessed) |
   1221              vectorizeLoadChain(Chains.second, InstructionsProcessed);
   1222     }
   1223 
   1224     Align NewAlign = getOrEnforceKnownAlignment(L0->getPointerOperand(),
   1225                                                 Align(StackAdjustedAlignment),
   1226                                                 DL, L0, nullptr, &DT);
   1227     if (NewAlign >= Alignment)
   1228       Alignment = NewAlign;
   1229     else
   1230       return false;
   1231   }
   1232 
   1233   if (!TTI.isLegalToVectorizeLoadChain(SzInBytes, Alignment, AS)) {
   1234     auto Chains = splitOddVectorElts(Chain, Sz);
   1235     return vectorizeLoadChain(Chains.first, InstructionsProcessed) |
   1236            vectorizeLoadChain(Chains.second, InstructionsProcessed);
   1237   }
   1238 
   1239   LLVM_DEBUG({
   1240     dbgs() << "LSV: Loads to vectorize:\n";
   1241     for (Instruction *I : Chain)
   1242       I->dump();
   1243   });
   1244 
   1245   // getVectorizablePrefix already computed getBoundaryInstrs.  The value of
   1246   // Last may have changed since then, but the value of First won't have.  If it
   1247   // matters, we could compute getBoundaryInstrs only once and reuse it here.
   1248   BasicBlock::iterator First, Last;
   1249   std::tie(First, Last) = getBoundaryInstrs(Chain);
   1250   Builder.SetInsertPoint(&*First);
   1251 
   1252   Value *Bitcast =
   1253       Builder.CreateBitCast(L0->getPointerOperand(), VecTy->getPointerTo(AS));
   1254   LoadInst *LI =
   1255       Builder.CreateAlignedLoad(VecTy, Bitcast, MaybeAlign(Alignment));
   1256   propagateMetadata(LI, Chain);
   1257 
   1258   if (VecLoadTy) {
   1259     SmallVector<Instruction *, 16> InstrsToErase;
   1260 
   1261     unsigned VecWidth = VecLoadTy->getNumElements();
   1262     for (unsigned I = 0, E = Chain.size(); I != E; ++I) {
   1263       for (auto Use : Chain[I]->users()) {
   1264         // All users of vector loads are ExtractElement instructions with
   1265         // constant indices, otherwise we would have bailed before now.
   1266         Instruction *UI = cast<Instruction>(Use);
   1267         unsigned Idx = cast<ConstantInt>(UI->getOperand(1))->getZExtValue();
   1268         unsigned NewIdx = Idx + I * VecWidth;
   1269         Value *V = Builder.CreateExtractElement(LI, Builder.getInt32(NewIdx),
   1270                                                 UI->getName());
   1271         if (V->getType() != UI->getType())
   1272           V = Builder.CreateBitCast(V, UI->getType());
   1273 
   1274         // Replace the old instruction.
   1275         UI->replaceAllUsesWith(V);
   1276         InstrsToErase.push_back(UI);
   1277       }
   1278     }
   1279 
   1280     // Bitcast might not be an Instruction, if the value being loaded is a
   1281     // constant.  In that case, no need to reorder anything.
   1282     if (Instruction *BitcastInst = dyn_cast<Instruction>(Bitcast))
   1283       reorder(BitcastInst);
   1284 
   1285     for (auto I : InstrsToErase)
   1286       I->eraseFromParent();
   1287   } else {
   1288     for (unsigned I = 0, E = Chain.size(); I != E; ++I) {
   1289       Value *CV = Chain[I];
   1290       Value *V =
   1291           Builder.CreateExtractElement(LI, Builder.getInt32(I), CV->getName());
   1292       if (V->getType() != CV->getType()) {
   1293         V = Builder.CreateBitOrPointerCast(V, CV->getType());
   1294       }
   1295 
   1296       // Replace the old instruction.
   1297       CV->replaceAllUsesWith(V);
   1298     }
   1299 
   1300     if (Instruction *BitcastInst = dyn_cast<Instruction>(Bitcast))
   1301       reorder(BitcastInst);
   1302   }
   1303 
   1304   eraseInstructions(Chain);
   1305 
   1306   ++NumVectorInstructions;
   1307   NumScalarsVectorized += Chain.size();
   1308   return true;
   1309 }
   1310 
   1311 bool Vectorizer::accessIsMisaligned(unsigned SzInBytes, unsigned AddressSpace,
   1312                                     Align Alignment) {
   1313   if (Alignment.value() % SzInBytes == 0)
   1314     return false;
   1315 
   1316   bool Fast = false;
   1317   bool Allows = TTI.allowsMisalignedMemoryAccesses(F.getParent()->getContext(),
   1318                                                    SzInBytes * 8, AddressSpace,
   1319                                                    Alignment, &Fast);
   1320   LLVM_DEBUG(dbgs() << "LSV: Target said misaligned is allowed? " << Allows
   1321                     << " and fast? " << Fast << "\n";);
   1322   return !Allows || !Fast;
   1323 }
   1324