1a17f03bdSSanjay Patel //===------- VectorCombine.cpp - Optimize partial vector operations -------===//
2a17f03bdSSanjay Patel //
3a17f03bdSSanjay Patel // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions.
4a17f03bdSSanjay Patel // See https://llvm.org/LICENSE.txt for license information.
5a17f03bdSSanjay Patel // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
6a17f03bdSSanjay Patel //
7a17f03bdSSanjay Patel //===----------------------------------------------------------------------===//
8a17f03bdSSanjay Patel //
9a17f03bdSSanjay Patel // This pass optimizes scalar/vector interactions using target cost models. The
10a17f03bdSSanjay Patel // transforms implemented here may not fit in traditional loop-based or SLP
11a17f03bdSSanjay Patel // vectorization passes.
12a17f03bdSSanjay Patel //
13a17f03bdSSanjay Patel //===----------------------------------------------------------------------===//
14a17f03bdSSanjay Patel 
15a17f03bdSSanjay Patel #include "llvm/Transforms/Vectorize/VectorCombine.h"
16a17f03bdSSanjay Patel #include "llvm/ADT/Statistic.h"
175006e551SSimon Pilgrim #include "llvm/Analysis/BasicAliasAnalysis.h"
18a17f03bdSSanjay Patel #include "llvm/Analysis/GlobalsModRef.h"
1943bdac29SSanjay Patel #include "llvm/Analysis/Loads.h"
20a17f03bdSSanjay Patel #include "llvm/Analysis/TargetTransformInfo.h"
2119b62b79SSanjay Patel #include "llvm/Analysis/ValueTracking.h"
22b6050ca1SSanjay Patel #include "llvm/Analysis/VectorUtils.h"
23a17f03bdSSanjay Patel #include "llvm/IR/Dominators.h"
24a17f03bdSSanjay Patel #include "llvm/IR/Function.h"
25a17f03bdSSanjay Patel #include "llvm/IR/IRBuilder.h"
26a17f03bdSSanjay Patel #include "llvm/IR/PatternMatch.h"
27a17f03bdSSanjay Patel #include "llvm/InitializePasses.h"
28a17f03bdSSanjay Patel #include "llvm/Pass.h"
2925c6544fSSanjay Patel #include "llvm/Support/CommandLine.h"
30a17f03bdSSanjay Patel #include "llvm/Transforms/Utils/Local.h"
315006e551SSimon Pilgrim #include "llvm/Transforms/Vectorize.h"
32a17f03bdSSanjay Patel 
33a17f03bdSSanjay Patel using namespace llvm;
34a17f03bdSSanjay Patel using namespace llvm::PatternMatch;
35a17f03bdSSanjay Patel 
36a17f03bdSSanjay Patel #define DEBUG_TYPE "vector-combine"
3743bdac29SSanjay Patel STATISTIC(NumVecLoad, "Number of vector loads formed");
38a17f03bdSSanjay Patel STATISTIC(NumVecCmp, "Number of vector compares formed");
3919b62b79SSanjay Patel STATISTIC(NumVecBO, "Number of vector binops formed");
40b6315aeeSSanjay Patel STATISTIC(NumVecCmpBO, "Number of vector compare + binop formed");
417aeb41b3SRoman Lebedev STATISTIC(NumShufOfBitcast, "Number of shuffles moved after bitcast");
420d2a0b44SSanjay Patel STATISTIC(NumScalarBO, "Number of scalar binops formed");
43ed67f5e7SSanjay Patel STATISTIC(NumScalarCmp, "Number of scalar compares formed");
44a17f03bdSSanjay Patel 
4525c6544fSSanjay Patel static cl::opt<bool> DisableVectorCombine(
4625c6544fSSanjay Patel     "disable-vector-combine", cl::init(false), cl::Hidden,
4725c6544fSSanjay Patel     cl::desc("Disable all vector combine transforms"));
4825c6544fSSanjay Patel 
49a69158c1SSanjay Patel static cl::opt<bool> DisableBinopExtractShuffle(
50a69158c1SSanjay Patel     "disable-binop-extract-shuffle", cl::init(false), cl::Hidden,
51a69158c1SSanjay Patel     cl::desc("Disable binop extract to shuffle transforms"));
52a69158c1SSanjay Patel 
532db4979cSQiu Chaofan static cl::opt<unsigned> MaxInstrsToScan(
542db4979cSQiu Chaofan     "vector-combine-max-scan-instrs", cl::init(30), cl::Hidden,
552db4979cSQiu Chaofan     cl::desc("Max number of instructions to scan for vector combining."));
562db4979cSQiu Chaofan 
57a0f96741SSanjay Patel static const unsigned InvalidIndex = std::numeric_limits<unsigned>::max();
58a0f96741SSanjay Patel 
59b4447054SBenjamin Kramer namespace {
606bdd531aSSanjay Patel class VectorCombine {
616bdd531aSSanjay Patel public:
626bdd531aSSanjay Patel   VectorCombine(Function &F, const TargetTransformInfo &TTI,
632db4979cSQiu Chaofan                 const DominatorTree &DT, AAResults &AA)
642db4979cSQiu Chaofan       : F(F), Builder(F.getContext()), TTI(TTI), DT(DT), AA(AA) {}
656bdd531aSSanjay Patel 
666bdd531aSSanjay Patel   bool run();
676bdd531aSSanjay Patel 
686bdd531aSSanjay Patel private:
696bdd531aSSanjay Patel   Function &F;
70de65b356SSanjay Patel   IRBuilder<> Builder;
716bdd531aSSanjay Patel   const TargetTransformInfo &TTI;
726bdd531aSSanjay Patel   const DominatorTree &DT;
732db4979cSQiu Chaofan   AAResults &AA;
746bdd531aSSanjay Patel 
7543bdac29SSanjay Patel   bool vectorizeLoadInsert(Instruction &I);
763b95d834SSanjay Patel   ExtractElementInst *getShuffleExtract(ExtractElementInst *Ext0,
773b95d834SSanjay Patel                                         ExtractElementInst *Ext1,
783b95d834SSanjay Patel                                         unsigned PreferredExtractIndex) const;
796bdd531aSSanjay Patel   bool isExtractExtractCheap(ExtractElementInst *Ext0, ExtractElementInst *Ext1,
806bdd531aSSanjay Patel                              unsigned Opcode,
816bdd531aSSanjay Patel                              ExtractElementInst *&ConvertToShuffle,
826bdd531aSSanjay Patel                              unsigned PreferredExtractIndex);
83de65b356SSanjay Patel   void foldExtExtCmp(ExtractElementInst *Ext0, ExtractElementInst *Ext1,
84de65b356SSanjay Patel                      Instruction &I);
85de65b356SSanjay Patel   void foldExtExtBinop(ExtractElementInst *Ext0, ExtractElementInst *Ext1,
86de65b356SSanjay Patel                        Instruction &I);
876bdd531aSSanjay Patel   bool foldExtractExtract(Instruction &I);
886bdd531aSSanjay Patel   bool foldBitcastShuf(Instruction &I);
896bdd531aSSanjay Patel   bool scalarizeBinopOrCmp(Instruction &I);
90b6315aeeSSanjay Patel   bool foldExtractedCmps(Instruction &I);
912db4979cSQiu Chaofan   bool foldSingleElementStore(Instruction &I);
92*4e8c28b6SFlorian Hahn   bool scalarizeLoadExtract(Instruction &I);
936bdd531aSSanjay Patel };
94b4447054SBenjamin Kramer } // namespace
95a69158c1SSanjay Patel 
9698c2f4eeSSanjay Patel static void replaceValue(Value &Old, Value &New) {
9798c2f4eeSSanjay Patel   Old.replaceAllUsesWith(&New);
9898c2f4eeSSanjay Patel   New.takeName(&Old);
9998c2f4eeSSanjay Patel }
10098c2f4eeSSanjay Patel 
10143bdac29SSanjay Patel bool VectorCombine::vectorizeLoadInsert(Instruction &I) {
102b2ef2640SSanjay Patel   // Match insert into fixed vector of scalar value.
10347aaa99cSSanjay Patel   // TODO: Handle non-zero insert index.
104ddd9575dSSanjay Patel   auto *Ty = dyn_cast<FixedVectorType>(I.getType());
10543bdac29SSanjay Patel   Value *Scalar;
10648a23bccSSanjay Patel   if (!Ty || !match(&I, m_InsertElt(m_Undef(), m_Value(Scalar), m_ZeroInt())) ||
10748a23bccSSanjay Patel       !Scalar->hasOneUse())
10843bdac29SSanjay Patel     return false;
109ddd9575dSSanjay Patel 
110b2ef2640SSanjay Patel   // Optionally match an extract from another vector.
111b2ef2640SSanjay Patel   Value *X;
112b2ef2640SSanjay Patel   bool HasExtract = match(Scalar, m_ExtractElt(m_Value(X), m_ZeroInt()));
113b2ef2640SSanjay Patel   if (!HasExtract)
114b2ef2640SSanjay Patel     X = Scalar;
115b2ef2640SSanjay Patel 
116b2ef2640SSanjay Patel   // Match source value as load of scalar or vector.
1174452cc40SFangrui Song   // Do not vectorize scalar load (widening) if atomic/volatile or under
1184452cc40SFangrui Song   // asan/hwasan/memtag/tsan. The widened load may load data from dirty regions
1194452cc40SFangrui Song   // or create data races non-existent in the source.
120b2ef2640SSanjay Patel   auto *Load = dyn_cast<LoadInst>(X);
121b2ef2640SSanjay Patel   if (!Load || !Load->isSimple() || !Load->hasOneUse() ||
1224452cc40SFangrui Song       Load->getFunction()->hasFnAttribute(Attribute::SanitizeMemTag) ||
1234452cc40SFangrui Song       mustSuppressSpeculation(*Load))
12443bdac29SSanjay Patel     return false;
12543bdac29SSanjay Patel 
12612b684aeSSanjay Patel   const DataLayout &DL = I.getModule()->getDataLayout();
12712b684aeSSanjay Patel   Value *SrcPtr = Load->getPointerOperand()->stripPointerCasts();
12812b684aeSSanjay Patel   assert(isa<PointerType>(SrcPtr->getType()) && "Expected a pointer type");
129c36c0fabSArtem Belevich 
130c36c0fabSArtem Belevich   // If original AS != Load's AS, we can't bitcast the original pointer and have
131c36c0fabSArtem Belevich   // to use Load's operand instead. Ideally we would want to strip pointer casts
132c36c0fabSArtem Belevich   // without changing AS, but there's no API to do that ATM.
13312b684aeSSanjay Patel   unsigned AS = Load->getPointerAddressSpace();
13412b684aeSSanjay Patel   if (AS != SrcPtr->getType()->getPointerAddressSpace())
13512b684aeSSanjay Patel     SrcPtr = Load->getPointerOperand();
13643bdac29SSanjay Patel 
13747aaa99cSSanjay Patel   // We are potentially transforming byte-sized (8-bit) memory accesses, so make
13847aaa99cSSanjay Patel   // sure we have all of our type-based constraints in place for this target.
139ddd9575dSSanjay Patel   Type *ScalarTy = Scalar->getType();
14043bdac29SSanjay Patel   uint64_t ScalarSize = ScalarTy->getPrimitiveSizeInBits();
141ddd9575dSSanjay Patel   unsigned MinVectorSize = TTI.getMinVectorRegisterBitWidth();
14247aaa99cSSanjay Patel   if (!ScalarSize || !MinVectorSize || MinVectorSize % ScalarSize != 0 ||
14347aaa99cSSanjay Patel       ScalarSize % 8 != 0)
14443bdac29SSanjay Patel     return false;
14543bdac29SSanjay Patel 
14643bdac29SSanjay Patel   // Check safety of replacing the scalar load with a larger vector load.
147aaaf0ec7SSanjay Patel   // We use minimal alignment (maximum flexibility) because we only care about
148aaaf0ec7SSanjay Patel   // the dereferenceable region. When calculating cost and creating a new op,
149aaaf0ec7SSanjay Patel   // we may use a larger value based on alignment attributes.
1508fb05593SSanjay Patel   unsigned MinVecNumElts = MinVectorSize / ScalarSize;
1518fb05593SSanjay Patel   auto *MinVecTy = VectorType::get(ScalarTy, MinVecNumElts, false);
15247aaa99cSSanjay Patel   unsigned OffsetEltIndex = 0;
15347aaa99cSSanjay Patel   Align Alignment = Load->getAlign();
15447aaa99cSSanjay Patel   if (!isSafeToLoadUnconditionally(SrcPtr, MinVecTy, Align(1), DL, Load, &DT)) {
15547aaa99cSSanjay Patel     // It is not safe to load directly from the pointer, but we can still peek
15647aaa99cSSanjay Patel     // through gep offsets and check if it safe to load from a base address with
15747aaa99cSSanjay Patel     // updated alignment. If it is, we can shuffle the element(s) into place
15847aaa99cSSanjay Patel     // after loading.
15947aaa99cSSanjay Patel     unsigned OffsetBitWidth = DL.getIndexTypeSizeInBits(SrcPtr->getType());
16047aaa99cSSanjay Patel     APInt Offset(OffsetBitWidth, 0);
16147aaa99cSSanjay Patel     SrcPtr = SrcPtr->stripAndAccumulateInBoundsConstantOffsets(DL, Offset);
16247aaa99cSSanjay Patel 
16347aaa99cSSanjay Patel     // We want to shuffle the result down from a high element of a vector, so
16447aaa99cSSanjay Patel     // the offset must be positive.
16547aaa99cSSanjay Patel     if (Offset.isNegative())
16647aaa99cSSanjay Patel       return false;
16747aaa99cSSanjay Patel 
16847aaa99cSSanjay Patel     // The offset must be a multiple of the scalar element to shuffle cleanly
16947aaa99cSSanjay Patel     // in the element's size.
17047aaa99cSSanjay Patel     uint64_t ScalarSizeInBytes = ScalarSize / 8;
17147aaa99cSSanjay Patel     if (Offset.urem(ScalarSizeInBytes) != 0)
17247aaa99cSSanjay Patel       return false;
17347aaa99cSSanjay Patel 
17447aaa99cSSanjay Patel     // If we load MinVecNumElts, will our target element still be loaded?
17547aaa99cSSanjay Patel     OffsetEltIndex = Offset.udiv(ScalarSizeInBytes).getZExtValue();
17647aaa99cSSanjay Patel     if (OffsetEltIndex >= MinVecNumElts)
17747aaa99cSSanjay Patel       return false;
17847aaa99cSSanjay Patel 
179aaaf0ec7SSanjay Patel     if (!isSafeToLoadUnconditionally(SrcPtr, MinVecTy, Align(1), DL, Load, &DT))
18043bdac29SSanjay Patel       return false;
18143bdac29SSanjay Patel 
18247aaa99cSSanjay Patel     // Update alignment with offset value. Note that the offset could be negated
18347aaa99cSSanjay Patel     // to more accurately represent "(new) SrcPtr - Offset = (old) SrcPtr", but
18447aaa99cSSanjay Patel     // negation does not change the result of the alignment calculation.
18547aaa99cSSanjay Patel     Alignment = commonAlignment(Alignment, Offset.getZExtValue());
18647aaa99cSSanjay Patel   }
18747aaa99cSSanjay Patel 
188b2ef2640SSanjay Patel   // Original pattern: insertelt undef, load [free casts of] PtrOp, 0
18938ebc1a1SSanjay Patel   // Use the greater of the alignment on the load or its source pointer.
19047aaa99cSSanjay Patel   Alignment = std::max(SrcPtr->getPointerAlignment(DL), Alignment);
191b2ef2640SSanjay Patel   Type *LoadTy = Load->getType();
19236710c38SCaroline Concatto   InstructionCost OldCost =
19336710c38SCaroline Concatto       TTI.getMemoryOpCost(Instruction::Load, LoadTy, Alignment, AS);
1948fb05593SSanjay Patel   APInt DemandedElts = APInt::getOneBitSet(MinVecNumElts, 0);
195b2ef2640SSanjay Patel   OldCost += TTI.getScalarizationOverhead(MinVecTy, DemandedElts,
196b2ef2640SSanjay Patel                                           /* Insert */ true, HasExtract);
19743bdac29SSanjay Patel 
19843bdac29SSanjay Patel   // New pattern: load VecPtr
19936710c38SCaroline Concatto   InstructionCost NewCost =
20036710c38SCaroline Concatto       TTI.getMemoryOpCost(Instruction::Load, MinVecTy, Alignment, AS);
20147aaa99cSSanjay Patel   // Optionally, we are shuffling the loaded vector element(s) into place.
202e2935dcfSDavid Green   // For the mask set everything but element 0 to undef to prevent poison from
203e2935dcfSDavid Green   // propagating from the extra loaded memory. This will also optionally
204e2935dcfSDavid Green   // shrink/grow the vector from the loaded size to the output size.
205e2935dcfSDavid Green   // We assume this operation has no cost in codegen if there was no offset.
206e2935dcfSDavid Green   // Note that we could use freeze to avoid poison problems, but then we might
207e2935dcfSDavid Green   // still need a shuffle to change the vector size.
208e2935dcfSDavid Green   unsigned OutputNumElts = Ty->getNumElements();
209e2935dcfSDavid Green   SmallVector<int, 16> Mask(OutputNumElts, UndefMaskElem);
210e2935dcfSDavid Green   assert(OffsetEltIndex < MinVecNumElts && "Address offset too big");
211e2935dcfSDavid Green   Mask[0] = OffsetEltIndex;
21247aaa99cSSanjay Patel   if (OffsetEltIndex)
213e2935dcfSDavid Green     NewCost += TTI.getShuffleCost(TTI::SK_PermuteSingleSrc, MinVecTy, Mask);
21443bdac29SSanjay Patel 
21543bdac29SSanjay Patel   // We can aggressively convert to the vector form because the backend can
21643bdac29SSanjay Patel   // invert this transform if it does not result in a performance win.
21736710c38SCaroline Concatto   if (OldCost < NewCost || !NewCost.isValid())
21843bdac29SSanjay Patel     return false;
21943bdac29SSanjay Patel 
22043bdac29SSanjay Patel   // It is safe and potentially profitable to load a vector directly:
22143bdac29SSanjay Patel   // inselt undef, load Scalar, 0 --> load VecPtr
22243bdac29SSanjay Patel   IRBuilder<> Builder(Load);
22312b684aeSSanjay Patel   Value *CastedPtr = Builder.CreateBitCast(SrcPtr, MinVecTy->getPointerTo(AS));
2248fb05593SSanjay Patel   Value *VecLd = Builder.CreateAlignedLoad(MinVecTy, CastedPtr, Alignment);
2251e6b240dSSanjay Patel   VecLd = Builder.CreateShuffleVector(VecLd, Mask);
226d399f870SSanjay Patel 
22743bdac29SSanjay Patel   replaceValue(I, *VecLd);
22843bdac29SSanjay Patel   ++NumVecLoad;
22943bdac29SSanjay Patel   return true;
23043bdac29SSanjay Patel }
23143bdac29SSanjay Patel 
2323b95d834SSanjay Patel /// Determine which, if any, of the inputs should be replaced by a shuffle
2333b95d834SSanjay Patel /// followed by extract from a different index.
2343b95d834SSanjay Patel ExtractElementInst *VectorCombine::getShuffleExtract(
2353b95d834SSanjay Patel     ExtractElementInst *Ext0, ExtractElementInst *Ext1,
2363b95d834SSanjay Patel     unsigned PreferredExtractIndex = InvalidIndex) const {
2373b95d834SSanjay Patel   assert(isa<ConstantInt>(Ext0->getIndexOperand()) &&
2383b95d834SSanjay Patel          isa<ConstantInt>(Ext1->getIndexOperand()) &&
2393b95d834SSanjay Patel          "Expected constant extract indexes");
2403b95d834SSanjay Patel 
2413b95d834SSanjay Patel   unsigned Index0 = cast<ConstantInt>(Ext0->getIndexOperand())->getZExtValue();
2423b95d834SSanjay Patel   unsigned Index1 = cast<ConstantInt>(Ext1->getIndexOperand())->getZExtValue();
2433b95d834SSanjay Patel 
2443b95d834SSanjay Patel   // If the extract indexes are identical, no shuffle is needed.
2453b95d834SSanjay Patel   if (Index0 == Index1)
2463b95d834SSanjay Patel     return nullptr;
2473b95d834SSanjay Patel 
2483b95d834SSanjay Patel   Type *VecTy = Ext0->getVectorOperand()->getType();
2493b95d834SSanjay Patel   assert(VecTy == Ext1->getVectorOperand()->getType() && "Need matching types");
25036710c38SCaroline Concatto   InstructionCost Cost0 =
25136710c38SCaroline Concatto       TTI.getVectorInstrCost(Ext0->getOpcode(), VecTy, Index0);
25236710c38SCaroline Concatto   InstructionCost Cost1 =
25336710c38SCaroline Concatto       TTI.getVectorInstrCost(Ext1->getOpcode(), VecTy, Index1);
25436710c38SCaroline Concatto 
25536710c38SCaroline Concatto   // If both costs are invalid no shuffle is needed
25636710c38SCaroline Concatto   if (!Cost0.isValid() && !Cost1.isValid())
25736710c38SCaroline Concatto     return nullptr;
2583b95d834SSanjay Patel 
2593b95d834SSanjay Patel   // We are extracting from 2 different indexes, so one operand must be shuffled
2603b95d834SSanjay Patel   // before performing a vector operation and/or extract. The more expensive
2613b95d834SSanjay Patel   // extract will be replaced by a shuffle.
2623b95d834SSanjay Patel   if (Cost0 > Cost1)
2633b95d834SSanjay Patel     return Ext0;
2643b95d834SSanjay Patel   if (Cost1 > Cost0)
2653b95d834SSanjay Patel     return Ext1;
2663b95d834SSanjay Patel 
2673b95d834SSanjay Patel   // If the costs are equal and there is a preferred extract index, shuffle the
2683b95d834SSanjay Patel   // opposite operand.
2693b95d834SSanjay Patel   if (PreferredExtractIndex == Index0)
2703b95d834SSanjay Patel     return Ext1;
2713b95d834SSanjay Patel   if (PreferredExtractIndex == Index1)
2723b95d834SSanjay Patel     return Ext0;
2733b95d834SSanjay Patel 
2743b95d834SSanjay Patel   // Otherwise, replace the extract with the higher index.
2753b95d834SSanjay Patel   return Index0 > Index1 ? Ext0 : Ext1;
2763b95d834SSanjay Patel }
2773b95d834SSanjay Patel 
278a69158c1SSanjay Patel /// Compare the relative costs of 2 extracts followed by scalar operation vs.
279a69158c1SSanjay Patel /// vector operation(s) followed by extract. Return true if the existing
280a69158c1SSanjay Patel /// instructions are cheaper than a vector alternative. Otherwise, return false
281a69158c1SSanjay Patel /// and if one of the extracts should be transformed to a shufflevector, set
282a69158c1SSanjay Patel /// \p ConvertToShuffle to that extract instruction.
2836bdd531aSSanjay Patel bool VectorCombine::isExtractExtractCheap(ExtractElementInst *Ext0,
2846bdd531aSSanjay Patel                                           ExtractElementInst *Ext1,
2856bdd531aSSanjay Patel                                           unsigned Opcode,
286216a37bbSSanjay Patel                                           ExtractElementInst *&ConvertToShuffle,
287ce97ce3aSSanjay Patel                                           unsigned PreferredExtractIndex) {
2884fa63fd4SAustin Kerbow   assert(isa<ConstantInt>(Ext0->getOperand(1)) &&
289a69158c1SSanjay Patel          isa<ConstantInt>(Ext1->getOperand(1)) &&
290a69158c1SSanjay Patel          "Expected constant extract indexes");
29134e34855SSanjay Patel   Type *ScalarTy = Ext0->getType();
292e3056ae9SSam Parker   auto *VecTy = cast<VectorType>(Ext0->getOperand(0)->getType());
29336710c38SCaroline Concatto   InstructionCost ScalarOpCost, VectorOpCost;
29434e34855SSanjay Patel 
29534e34855SSanjay Patel   // Get cost estimates for scalar and vector versions of the operation.
29634e34855SSanjay Patel   bool IsBinOp = Instruction::isBinaryOp(Opcode);
29734e34855SSanjay Patel   if (IsBinOp) {
29834e34855SSanjay Patel     ScalarOpCost = TTI.getArithmeticInstrCost(Opcode, ScalarTy);
29934e34855SSanjay Patel     VectorOpCost = TTI.getArithmeticInstrCost(Opcode, VecTy);
30034e34855SSanjay Patel   } else {
30134e34855SSanjay Patel     assert((Opcode == Instruction::ICmp || Opcode == Instruction::FCmp) &&
30234e34855SSanjay Patel            "Expected a compare");
30334e34855SSanjay Patel     ScalarOpCost = TTI.getCmpSelInstrCost(Opcode, ScalarTy,
30434e34855SSanjay Patel                                           CmpInst::makeCmpResultType(ScalarTy));
30534e34855SSanjay Patel     VectorOpCost = TTI.getCmpSelInstrCost(Opcode, VecTy,
30634e34855SSanjay Patel                                           CmpInst::makeCmpResultType(VecTy));
30734e34855SSanjay Patel   }
30834e34855SSanjay Patel 
309a69158c1SSanjay Patel   // Get cost estimates for the extract elements. These costs will factor into
31034e34855SSanjay Patel   // both sequences.
311a69158c1SSanjay Patel   unsigned Ext0Index = cast<ConstantInt>(Ext0->getOperand(1))->getZExtValue();
312a69158c1SSanjay Patel   unsigned Ext1Index = cast<ConstantInt>(Ext1->getOperand(1))->getZExtValue();
313a69158c1SSanjay Patel 
31436710c38SCaroline Concatto   InstructionCost Extract0Cost =
3156bdd531aSSanjay Patel       TTI.getVectorInstrCost(Instruction::ExtractElement, VecTy, Ext0Index);
31636710c38SCaroline Concatto   InstructionCost Extract1Cost =
3176bdd531aSSanjay Patel       TTI.getVectorInstrCost(Instruction::ExtractElement, VecTy, Ext1Index);
318a69158c1SSanjay Patel 
319a69158c1SSanjay Patel   // A more expensive extract will always be replaced by a splat shuffle.
320a69158c1SSanjay Patel   // For example, if Ext0 is more expensive:
321a69158c1SSanjay Patel   // opcode (extelt V0, Ext0), (ext V1, Ext1) -->
322a69158c1SSanjay Patel   // extelt (opcode (splat V0, Ext0), V1), Ext1
323a69158c1SSanjay Patel   // TODO: Evaluate whether that always results in lowest cost. Alternatively,
324a69158c1SSanjay Patel   //       check the cost of creating a broadcast shuffle and shuffling both
325a69158c1SSanjay Patel   //       operands to element 0.
32636710c38SCaroline Concatto   InstructionCost CheapExtractCost = std::min(Extract0Cost, Extract1Cost);
32734e34855SSanjay Patel 
32834e34855SSanjay Patel   // Extra uses of the extracts mean that we include those costs in the
32934e34855SSanjay Patel   // vector total because those instructions will not be eliminated.
33036710c38SCaroline Concatto   InstructionCost OldCost, NewCost;
331a69158c1SSanjay Patel   if (Ext0->getOperand(0) == Ext1->getOperand(0) && Ext0Index == Ext1Index) {
332a69158c1SSanjay Patel     // Handle a special case. If the 2 extracts are identical, adjust the
33334e34855SSanjay Patel     // formulas to account for that. The extra use charge allows for either the
33434e34855SSanjay Patel     // CSE'd pattern or an unoptimized form with identical values:
33534e34855SSanjay Patel     // opcode (extelt V, C), (extelt V, C) --> extelt (opcode V, V), C
33634e34855SSanjay Patel     bool HasUseTax = Ext0 == Ext1 ? !Ext0->hasNUses(2)
33734e34855SSanjay Patel                                   : !Ext0->hasOneUse() || !Ext1->hasOneUse();
338a69158c1SSanjay Patel     OldCost = CheapExtractCost + ScalarOpCost;
339a69158c1SSanjay Patel     NewCost = VectorOpCost + CheapExtractCost + HasUseTax * CheapExtractCost;
34034e34855SSanjay Patel   } else {
34134e34855SSanjay Patel     // Handle the general case. Each extract is actually a different value:
342a69158c1SSanjay Patel     // opcode (extelt V0, C0), (extelt V1, C1) --> extelt (opcode V0, V1), C
343a69158c1SSanjay Patel     OldCost = Extract0Cost + Extract1Cost + ScalarOpCost;
344a69158c1SSanjay Patel     NewCost = VectorOpCost + CheapExtractCost +
345a69158c1SSanjay Patel               !Ext0->hasOneUse() * Extract0Cost +
346a69158c1SSanjay Patel               !Ext1->hasOneUse() * Extract1Cost;
34734e34855SSanjay Patel   }
348a69158c1SSanjay Patel 
3493b95d834SSanjay Patel   ConvertToShuffle = getShuffleExtract(Ext0, Ext1, PreferredExtractIndex);
3503b95d834SSanjay Patel   if (ConvertToShuffle) {
351a69158c1SSanjay Patel     if (IsBinOp && DisableBinopExtractShuffle)
352a69158c1SSanjay Patel       return true;
353a69158c1SSanjay Patel 
354a69158c1SSanjay Patel     // If we are extracting from 2 different indexes, then one operand must be
355a69158c1SSanjay Patel     // shuffled before performing the vector operation. The shuffle mask is
356a69158c1SSanjay Patel     // undefined except for 1 lane that is being translated to the remaining
357a69158c1SSanjay Patel     // extraction lane. Therefore, it is a splat shuffle. Ex:
358a69158c1SSanjay Patel     // ShufMask = { undef, undef, 0, undef }
359a69158c1SSanjay Patel     // TODO: The cost model has an option for a "broadcast" shuffle
360a69158c1SSanjay Patel     //       (splat-from-element-0), but no option for a more general splat.
361a69158c1SSanjay Patel     NewCost +=
362a69158c1SSanjay Patel         TTI.getShuffleCost(TargetTransformInfo::SK_PermuteSingleSrc, VecTy);
363a69158c1SSanjay Patel   }
364a69158c1SSanjay Patel 
36510ea01d8SSanjay Patel   // Aggressively form a vector op if the cost is equal because the transform
36610ea01d8SSanjay Patel   // may enable further optimization.
36710ea01d8SSanjay Patel   // Codegen can reverse this transform (scalarize) if it was not profitable.
36810ea01d8SSanjay Patel   return OldCost < NewCost;
36934e34855SSanjay Patel }
37034e34855SSanjay Patel 
3719934cc54SSanjay Patel /// Create a shuffle that translates (shifts) 1 element from the input vector
3729934cc54SSanjay Patel /// to a new element location.
3739934cc54SSanjay Patel static Value *createShiftShuffle(Value *Vec, unsigned OldIndex,
3749934cc54SSanjay Patel                                  unsigned NewIndex, IRBuilder<> &Builder) {
3759934cc54SSanjay Patel   // The shuffle mask is undefined except for 1 lane that is being translated
3769934cc54SSanjay Patel   // to the new element index. Example for OldIndex == 2 and NewIndex == 0:
3779934cc54SSanjay Patel   // ShufMask = { 2, undef, undef, undef }
3789934cc54SSanjay Patel   auto *VecTy = cast<FixedVectorType>(Vec->getType());
37954143e2bSSanjay Patel   SmallVector<int, 32> ShufMask(VecTy->getNumElements(), UndefMaskElem);
3809934cc54SSanjay Patel   ShufMask[NewIndex] = OldIndex;
3811e6b240dSSanjay Patel   return Builder.CreateShuffleVector(Vec, ShufMask, "shift");
3829934cc54SSanjay Patel }
3839934cc54SSanjay Patel 
384216a37bbSSanjay Patel /// Given an extract element instruction with constant index operand, shuffle
385216a37bbSSanjay Patel /// the source vector (shift the scalar element) to a NewIndex for extraction.
386216a37bbSSanjay Patel /// Return null if the input can be constant folded, so that we are not creating
387216a37bbSSanjay Patel /// unnecessary instructions.
3889934cc54SSanjay Patel static ExtractElementInst *translateExtract(ExtractElementInst *ExtElt,
3899934cc54SSanjay Patel                                             unsigned NewIndex,
3909934cc54SSanjay Patel                                             IRBuilder<> &Builder) {
391216a37bbSSanjay Patel   // If the extract can be constant-folded, this code is unsimplified. Defer
392216a37bbSSanjay Patel   // to other passes to handle that.
393216a37bbSSanjay Patel   Value *X = ExtElt->getVectorOperand();
394216a37bbSSanjay Patel   Value *C = ExtElt->getIndexOperand();
395de65b356SSanjay Patel   assert(isa<ConstantInt>(C) && "Expected a constant index operand");
396216a37bbSSanjay Patel   if (isa<Constant>(X))
397216a37bbSSanjay Patel     return nullptr;
398216a37bbSSanjay Patel 
3999934cc54SSanjay Patel   Value *Shuf = createShiftShuffle(X, cast<ConstantInt>(C)->getZExtValue(),
4009934cc54SSanjay Patel                                    NewIndex, Builder);
401216a37bbSSanjay Patel   return cast<ExtractElementInst>(Builder.CreateExtractElement(Shuf, NewIndex));
402216a37bbSSanjay Patel }
403216a37bbSSanjay Patel 
404fc445589SSanjay Patel /// Try to reduce extract element costs by converting scalar compares to vector
405fc445589SSanjay Patel /// compares followed by extract.
406e9c79a7aSSanjay Patel /// cmp (ext0 V0, C), (ext1 V1, C)
407de65b356SSanjay Patel void VectorCombine::foldExtExtCmp(ExtractElementInst *Ext0,
408de65b356SSanjay Patel                                   ExtractElementInst *Ext1, Instruction &I) {
409fc445589SSanjay Patel   assert(isa<CmpInst>(&I) && "Expected a compare");
410216a37bbSSanjay Patel   assert(cast<ConstantInt>(Ext0->getIndexOperand())->getZExtValue() ==
411216a37bbSSanjay Patel              cast<ConstantInt>(Ext1->getIndexOperand())->getZExtValue() &&
412216a37bbSSanjay Patel          "Expected matching constant extract indexes");
413a17f03bdSSanjay Patel 
414a17f03bdSSanjay Patel   // cmp Pred (extelt V0, C), (extelt V1, C) --> extelt (cmp Pred V0, V1), C
415a17f03bdSSanjay Patel   ++NumVecCmp;
416fc445589SSanjay Patel   CmpInst::Predicate Pred = cast<CmpInst>(&I)->getPredicate();
417216a37bbSSanjay Patel   Value *V0 = Ext0->getVectorOperand(), *V1 = Ext1->getVectorOperand();
41846a285adSSanjay Patel   Value *VecCmp = Builder.CreateCmp(Pred, V0, V1);
419216a37bbSSanjay Patel   Value *NewExt = Builder.CreateExtractElement(VecCmp, Ext0->getIndexOperand());
42098c2f4eeSSanjay Patel   replaceValue(I, *NewExt);
421a17f03bdSSanjay Patel }
422a17f03bdSSanjay Patel 
42319b62b79SSanjay Patel /// Try to reduce extract element costs by converting scalar binops to vector
42419b62b79SSanjay Patel /// binops followed by extract.
425e9c79a7aSSanjay Patel /// bo (ext0 V0, C), (ext1 V1, C)
426de65b356SSanjay Patel void VectorCombine::foldExtExtBinop(ExtractElementInst *Ext0,
427de65b356SSanjay Patel                                     ExtractElementInst *Ext1, Instruction &I) {
428fc445589SSanjay Patel   assert(isa<BinaryOperator>(&I) && "Expected a binary operator");
429216a37bbSSanjay Patel   assert(cast<ConstantInt>(Ext0->getIndexOperand())->getZExtValue() ==
430216a37bbSSanjay Patel              cast<ConstantInt>(Ext1->getIndexOperand())->getZExtValue() &&
431216a37bbSSanjay Patel          "Expected matching constant extract indexes");
43219b62b79SSanjay Patel 
43334e34855SSanjay Patel   // bo (extelt V0, C), (extelt V1, C) --> extelt (bo V0, V1), C
43419b62b79SSanjay Patel   ++NumVecBO;
435216a37bbSSanjay Patel   Value *V0 = Ext0->getVectorOperand(), *V1 = Ext1->getVectorOperand();
436e9c79a7aSSanjay Patel   Value *VecBO =
43734e34855SSanjay Patel       Builder.CreateBinOp(cast<BinaryOperator>(&I)->getOpcode(), V0, V1);
438e9c79a7aSSanjay Patel 
43919b62b79SSanjay Patel   // All IR flags are safe to back-propagate because any potential poison
44019b62b79SSanjay Patel   // created in unused vector elements is discarded by the extract.
441e9c79a7aSSanjay Patel   if (auto *VecBOInst = dyn_cast<Instruction>(VecBO))
44219b62b79SSanjay Patel     VecBOInst->copyIRFlags(&I);
443e9c79a7aSSanjay Patel 
444216a37bbSSanjay Patel   Value *NewExt = Builder.CreateExtractElement(VecBO, Ext0->getIndexOperand());
44598c2f4eeSSanjay Patel   replaceValue(I, *NewExt);
44619b62b79SSanjay Patel }
44719b62b79SSanjay Patel 
448fc445589SSanjay Patel /// Match an instruction with extracted vector operands.
4496bdd531aSSanjay Patel bool VectorCombine::foldExtractExtract(Instruction &I) {
450e9c79a7aSSanjay Patel   // It is not safe to transform things like div, urem, etc. because we may
451e9c79a7aSSanjay Patel   // create undefined behavior when executing those on unknown vector elements.
452e9c79a7aSSanjay Patel   if (!isSafeToSpeculativelyExecute(&I))
453e9c79a7aSSanjay Patel     return false;
454e9c79a7aSSanjay Patel 
455216a37bbSSanjay Patel   Instruction *I0, *I1;
456fc445589SSanjay Patel   CmpInst::Predicate Pred = CmpInst::BAD_ICMP_PREDICATE;
457216a37bbSSanjay Patel   if (!match(&I, m_Cmp(Pred, m_Instruction(I0), m_Instruction(I1))) &&
458216a37bbSSanjay Patel       !match(&I, m_BinOp(m_Instruction(I0), m_Instruction(I1))))
459fc445589SSanjay Patel     return false;
460fc445589SSanjay Patel 
461fc445589SSanjay Patel   Value *V0, *V1;
462fc445589SSanjay Patel   uint64_t C0, C1;
463216a37bbSSanjay Patel   if (!match(I0, m_ExtractElt(m_Value(V0), m_ConstantInt(C0))) ||
464216a37bbSSanjay Patel       !match(I1, m_ExtractElt(m_Value(V1), m_ConstantInt(C1))) ||
465fc445589SSanjay Patel       V0->getType() != V1->getType())
466fc445589SSanjay Patel     return false;
467fc445589SSanjay Patel 
468ce97ce3aSSanjay Patel   // If the scalar value 'I' is going to be re-inserted into a vector, then try
469ce97ce3aSSanjay Patel   // to create an extract to that same element. The extract/insert can be
470ce97ce3aSSanjay Patel   // reduced to a "select shuffle".
471ce97ce3aSSanjay Patel   // TODO: If we add a larger pattern match that starts from an insert, this
472ce97ce3aSSanjay Patel   //       probably becomes unnecessary.
473216a37bbSSanjay Patel   auto *Ext0 = cast<ExtractElementInst>(I0);
474216a37bbSSanjay Patel   auto *Ext1 = cast<ExtractElementInst>(I1);
475a0f96741SSanjay Patel   uint64_t InsertIndex = InvalidIndex;
476ce97ce3aSSanjay Patel   if (I.hasOneUse())
4777eed772aSSanjay Patel     match(I.user_back(),
4787eed772aSSanjay Patel           m_InsertElt(m_Value(), m_Value(), m_ConstantInt(InsertIndex)));
479ce97ce3aSSanjay Patel 
480216a37bbSSanjay Patel   ExtractElementInst *ExtractToChange;
4816bdd531aSSanjay Patel   if (isExtractExtractCheap(Ext0, Ext1, I.getOpcode(), ExtractToChange,
482ce97ce3aSSanjay Patel                             InsertIndex))
483fc445589SSanjay Patel     return false;
484e9c79a7aSSanjay Patel 
485216a37bbSSanjay Patel   if (ExtractToChange) {
486216a37bbSSanjay Patel     unsigned CheapExtractIdx = ExtractToChange == Ext0 ? C1 : C0;
487216a37bbSSanjay Patel     ExtractElementInst *NewExtract =
4889934cc54SSanjay Patel         translateExtract(ExtractToChange, CheapExtractIdx, Builder);
489216a37bbSSanjay Patel     if (!NewExtract)
4906d864097SSanjay Patel       return false;
491216a37bbSSanjay Patel     if (ExtractToChange == Ext0)
492216a37bbSSanjay Patel       Ext0 = NewExtract;
493a69158c1SSanjay Patel     else
494216a37bbSSanjay Patel       Ext1 = NewExtract;
495a69158c1SSanjay Patel   }
496e9c79a7aSSanjay Patel 
497e9c79a7aSSanjay Patel   if (Pred != CmpInst::BAD_ICMP_PREDICATE)
498039ff29eSSanjay Patel     foldExtExtCmp(Ext0, Ext1, I);
499e9c79a7aSSanjay Patel   else
500039ff29eSSanjay Patel     foldExtExtBinop(Ext0, Ext1, I);
501e9c79a7aSSanjay Patel 
502e9c79a7aSSanjay Patel   return true;
503fc445589SSanjay Patel }
504fc445589SSanjay Patel 
505bef6e67eSSanjay Patel /// If this is a bitcast of a shuffle, try to bitcast the source vector to the
506bef6e67eSSanjay Patel /// destination type followed by shuffle. This can enable further transforms by
507bef6e67eSSanjay Patel /// moving bitcasts or shuffles together.
5086bdd531aSSanjay Patel bool VectorCombine::foldBitcastShuf(Instruction &I) {
509b6050ca1SSanjay Patel   Value *V;
510b6050ca1SSanjay Patel   ArrayRef<int> Mask;
5117eed772aSSanjay Patel   if (!match(&I, m_BitCast(
5127eed772aSSanjay Patel                      m_OneUse(m_Shuffle(m_Value(V), m_Undef(), m_Mask(Mask))))))
513b6050ca1SSanjay Patel     return false;
514b6050ca1SSanjay Patel 
515b4f04d71SHuihui Zhang   // 1) Do not fold bitcast shuffle for scalable type. First, shuffle cost for
516b4f04d71SHuihui Zhang   // scalable type is unknown; Second, we cannot reason if the narrowed shuffle
517b4f04d71SHuihui Zhang   // mask for scalable type is a splat or not.
518b4f04d71SHuihui Zhang   // 2) Disallow non-vector casts and length-changing shuffles.
519bef6e67eSSanjay Patel   // TODO: We could allow any shuffle.
520b4f04d71SHuihui Zhang   auto *DestTy = dyn_cast<FixedVectorType>(I.getType());
521b4f04d71SHuihui Zhang   auto *SrcTy = dyn_cast<FixedVectorType>(V->getType());
522b4f04d71SHuihui Zhang   if (!SrcTy || !DestTy || I.getOperand(0)->getType() != SrcTy)
523b6050ca1SSanjay Patel     return false;
524b6050ca1SSanjay Patel 
525b4f04d71SHuihui Zhang   unsigned DestNumElts = DestTy->getNumElements();
526b4f04d71SHuihui Zhang   unsigned SrcNumElts = SrcTy->getNumElements();
527b6050ca1SSanjay Patel   SmallVector<int, 16> NewMask;
528bef6e67eSSanjay Patel   if (SrcNumElts <= DestNumElts) {
529bef6e67eSSanjay Patel     // The bitcast is from wide to narrow/equal elements. The shuffle mask can
530bef6e67eSSanjay Patel     // always be expanded to the equivalent form choosing narrower elements.
531b6050ca1SSanjay Patel     assert(DestNumElts % SrcNumElts == 0 && "Unexpected shuffle mask");
532b6050ca1SSanjay Patel     unsigned ScaleFactor = DestNumElts / SrcNumElts;
5331318ddbcSSanjay Patel     narrowShuffleMaskElts(ScaleFactor, Mask, NewMask);
534bef6e67eSSanjay Patel   } else {
535bef6e67eSSanjay Patel     // The bitcast is from narrow elements to wide elements. The shuffle mask
536bef6e67eSSanjay Patel     // must choose consecutive elements to allow casting first.
537bef6e67eSSanjay Patel     assert(SrcNumElts % DestNumElts == 0 && "Unexpected shuffle mask");
538bef6e67eSSanjay Patel     unsigned ScaleFactor = SrcNumElts / DestNumElts;
539bef6e67eSSanjay Patel     if (!widenShuffleMaskElts(ScaleFactor, Mask, NewMask))
540bef6e67eSSanjay Patel       return false;
541bef6e67eSSanjay Patel   }
542e2935dcfSDavid Green 
543e2935dcfSDavid Green   // The new shuffle must not cost more than the old shuffle. The bitcast is
544e2935dcfSDavid Green   // moved ahead of the shuffle, so assume that it has the same cost as before.
545e2935dcfSDavid Green   InstructionCost DestCost = TTI.getShuffleCost(
546e2935dcfSDavid Green       TargetTransformInfo::SK_PermuteSingleSrc, DestTy, NewMask);
547e2935dcfSDavid Green   InstructionCost SrcCost =
548e2935dcfSDavid Green       TTI.getShuffleCost(TargetTransformInfo::SK_PermuteSingleSrc, SrcTy, Mask);
549e2935dcfSDavid Green   if (DestCost > SrcCost || !DestCost.isValid())
550e2935dcfSDavid Green     return false;
551e2935dcfSDavid Green 
552bef6e67eSSanjay Patel   // bitcast (shuf V, MaskC) --> shuf (bitcast V), MaskC'
5537aeb41b3SRoman Lebedev   ++NumShufOfBitcast;
554bef6e67eSSanjay Patel   Value *CastV = Builder.CreateBitCast(V, DestTy);
5551e6b240dSSanjay Patel   Value *Shuf = Builder.CreateShuffleVector(CastV, NewMask);
55698c2f4eeSSanjay Patel   replaceValue(I, *Shuf);
557b6050ca1SSanjay Patel   return true;
558b6050ca1SSanjay Patel }
559b6050ca1SSanjay Patel 
560ed67f5e7SSanjay Patel /// Match a vector binop or compare instruction with at least one inserted
561ed67f5e7SSanjay Patel /// scalar operand and convert to scalar binop/cmp followed by insertelement.
5626bdd531aSSanjay Patel bool VectorCombine::scalarizeBinopOrCmp(Instruction &I) {
563ed67f5e7SSanjay Patel   CmpInst::Predicate Pred = CmpInst::BAD_ICMP_PREDICATE;
5645dc4e7c2SSimon Pilgrim   Value *Ins0, *Ins1;
565ed67f5e7SSanjay Patel   if (!match(&I, m_BinOp(m_Value(Ins0), m_Value(Ins1))) &&
566ed67f5e7SSanjay Patel       !match(&I, m_Cmp(Pred, m_Value(Ins0), m_Value(Ins1))))
567ed67f5e7SSanjay Patel     return false;
568ed67f5e7SSanjay Patel 
569ed67f5e7SSanjay Patel   // Do not convert the vector condition of a vector select into a scalar
570ed67f5e7SSanjay Patel   // condition. That may cause problems for codegen because of differences in
571ed67f5e7SSanjay Patel   // boolean formats and register-file transfers.
572ed67f5e7SSanjay Patel   // TODO: Can we account for that in the cost model?
573ed67f5e7SSanjay Patel   bool IsCmp = Pred != CmpInst::Predicate::BAD_ICMP_PREDICATE;
574ed67f5e7SSanjay Patel   if (IsCmp)
575ed67f5e7SSanjay Patel     for (User *U : I.users())
576ed67f5e7SSanjay Patel       if (match(U, m_Select(m_Specific(&I), m_Value(), m_Value())))
5770d2a0b44SSanjay Patel         return false;
5780d2a0b44SSanjay Patel 
5795dc4e7c2SSimon Pilgrim   // Match against one or both scalar values being inserted into constant
5805dc4e7c2SSimon Pilgrim   // vectors:
581ed67f5e7SSanjay Patel   // vec_op VecC0, (inselt VecC1, V1, Index)
582ed67f5e7SSanjay Patel   // vec_op (inselt VecC0, V0, Index), VecC1
583ed67f5e7SSanjay Patel   // vec_op (inselt VecC0, V0, Index), (inselt VecC1, V1, Index)
5840d2a0b44SSanjay Patel   // TODO: Deal with mismatched index constants and variable indexes?
5855dc4e7c2SSimon Pilgrim   Constant *VecC0 = nullptr, *VecC1 = nullptr;
5865dc4e7c2SSimon Pilgrim   Value *V0 = nullptr, *V1 = nullptr;
5875dc4e7c2SSimon Pilgrim   uint64_t Index0 = 0, Index1 = 0;
5887eed772aSSanjay Patel   if (!match(Ins0, m_InsertElt(m_Constant(VecC0), m_Value(V0),
5895dc4e7c2SSimon Pilgrim                                m_ConstantInt(Index0))) &&
5905dc4e7c2SSimon Pilgrim       !match(Ins0, m_Constant(VecC0)))
5915dc4e7c2SSimon Pilgrim     return false;
5925dc4e7c2SSimon Pilgrim   if (!match(Ins1, m_InsertElt(m_Constant(VecC1), m_Value(V1),
5935dc4e7c2SSimon Pilgrim                                m_ConstantInt(Index1))) &&
5945dc4e7c2SSimon Pilgrim       !match(Ins1, m_Constant(VecC1)))
5950d2a0b44SSanjay Patel     return false;
5960d2a0b44SSanjay Patel 
5975dc4e7c2SSimon Pilgrim   bool IsConst0 = !V0;
5985dc4e7c2SSimon Pilgrim   bool IsConst1 = !V1;
5995dc4e7c2SSimon Pilgrim   if (IsConst0 && IsConst1)
6005dc4e7c2SSimon Pilgrim     return false;
6015dc4e7c2SSimon Pilgrim   if (!IsConst0 && !IsConst1 && Index0 != Index1)
6025dc4e7c2SSimon Pilgrim     return false;
6035dc4e7c2SSimon Pilgrim 
6045dc4e7c2SSimon Pilgrim   // Bail for single insertion if it is a load.
6055dc4e7c2SSimon Pilgrim   // TODO: Handle this once getVectorInstrCost can cost for load/stores.
6065dc4e7c2SSimon Pilgrim   auto *I0 = dyn_cast_or_null<Instruction>(V0);
6075dc4e7c2SSimon Pilgrim   auto *I1 = dyn_cast_or_null<Instruction>(V1);
6085dc4e7c2SSimon Pilgrim   if ((IsConst0 && I1 && I1->mayReadFromMemory()) ||
6095dc4e7c2SSimon Pilgrim       (IsConst1 && I0 && I0->mayReadFromMemory()))
6105dc4e7c2SSimon Pilgrim     return false;
6115dc4e7c2SSimon Pilgrim 
6125dc4e7c2SSimon Pilgrim   uint64_t Index = IsConst0 ? Index1 : Index0;
6135dc4e7c2SSimon Pilgrim   Type *ScalarTy = IsConst0 ? V1->getType() : V0->getType();
6140d2a0b44SSanjay Patel   Type *VecTy = I.getType();
6155dc4e7c2SSimon Pilgrim   assert(VecTy->isVectorTy() &&
6165dc4e7c2SSimon Pilgrim          (IsConst0 || IsConst1 || V0->getType() == V1->getType()) &&
617741e20f3SSanjay Patel          (ScalarTy->isIntegerTy() || ScalarTy->isFloatingPointTy() ||
618741e20f3SSanjay Patel           ScalarTy->isPointerTy()) &&
619741e20f3SSanjay Patel          "Unexpected types for insert element into binop or cmp");
6200d2a0b44SSanjay Patel 
621ed67f5e7SSanjay Patel   unsigned Opcode = I.getOpcode();
62236710c38SCaroline Concatto   InstructionCost ScalarOpCost, VectorOpCost;
623ed67f5e7SSanjay Patel   if (IsCmp) {
624ed67f5e7SSanjay Patel     ScalarOpCost = TTI.getCmpSelInstrCost(Opcode, ScalarTy);
625ed67f5e7SSanjay Patel     VectorOpCost = TTI.getCmpSelInstrCost(Opcode, VecTy);
626ed67f5e7SSanjay Patel   } else {
627ed67f5e7SSanjay Patel     ScalarOpCost = TTI.getArithmeticInstrCost(Opcode, ScalarTy);
628ed67f5e7SSanjay Patel     VectorOpCost = TTI.getArithmeticInstrCost(Opcode, VecTy);
629ed67f5e7SSanjay Patel   }
6300d2a0b44SSanjay Patel 
6310d2a0b44SSanjay Patel   // Get cost estimate for the insert element. This cost will factor into
6320d2a0b44SSanjay Patel   // both sequences.
63336710c38SCaroline Concatto   InstructionCost InsertCost =
6340d2a0b44SSanjay Patel       TTI.getVectorInstrCost(Instruction::InsertElement, VecTy, Index);
63536710c38SCaroline Concatto   InstructionCost OldCost =
63636710c38SCaroline Concatto       (IsConst0 ? 0 : InsertCost) + (IsConst1 ? 0 : InsertCost) + VectorOpCost;
63736710c38SCaroline Concatto   InstructionCost NewCost = ScalarOpCost + InsertCost +
6385dc4e7c2SSimon Pilgrim                             (IsConst0 ? 0 : !Ins0->hasOneUse() * InsertCost) +
6395dc4e7c2SSimon Pilgrim                             (IsConst1 ? 0 : !Ins1->hasOneUse() * InsertCost);
6400d2a0b44SSanjay Patel 
6410d2a0b44SSanjay Patel   // We want to scalarize unless the vector variant actually has lower cost.
64236710c38SCaroline Concatto   if (OldCost < NewCost || !NewCost.isValid())
6430d2a0b44SSanjay Patel     return false;
6440d2a0b44SSanjay Patel 
645ed67f5e7SSanjay Patel   // vec_op (inselt VecC0, V0, Index), (inselt VecC1, V1, Index) -->
646ed67f5e7SSanjay Patel   // inselt NewVecC, (scalar_op V0, V1), Index
647ed67f5e7SSanjay Patel   if (IsCmp)
648ed67f5e7SSanjay Patel     ++NumScalarCmp;
649ed67f5e7SSanjay Patel   else
6500d2a0b44SSanjay Patel     ++NumScalarBO;
6515dc4e7c2SSimon Pilgrim 
6525dc4e7c2SSimon Pilgrim   // For constant cases, extract the scalar element, this should constant fold.
6535dc4e7c2SSimon Pilgrim   if (IsConst0)
6545dc4e7c2SSimon Pilgrim     V0 = ConstantExpr::getExtractElement(VecC0, Builder.getInt64(Index));
6555dc4e7c2SSimon Pilgrim   if (IsConst1)
6565dc4e7c2SSimon Pilgrim     V1 = ConstantExpr::getExtractElement(VecC1, Builder.getInt64(Index));
6575dc4e7c2SSimon Pilgrim 
658ed67f5e7SSanjay Patel   Value *Scalar =
65946a285adSSanjay Patel       IsCmp ? Builder.CreateCmp(Pred, V0, V1)
660ed67f5e7SSanjay Patel             : Builder.CreateBinOp((Instruction::BinaryOps)Opcode, V0, V1);
661ed67f5e7SSanjay Patel 
662ed67f5e7SSanjay Patel   Scalar->setName(I.getName() + ".scalar");
6630d2a0b44SSanjay Patel 
6640d2a0b44SSanjay Patel   // All IR flags are safe to back-propagate. There is no potential for extra
6650d2a0b44SSanjay Patel   // poison to be created by the scalar instruction.
6660d2a0b44SSanjay Patel   if (auto *ScalarInst = dyn_cast<Instruction>(Scalar))
6670d2a0b44SSanjay Patel     ScalarInst->copyIRFlags(&I);
6680d2a0b44SSanjay Patel 
6690d2a0b44SSanjay Patel   // Fold the vector constants in the original vectors into a new base vector.
670ed67f5e7SSanjay Patel   Constant *NewVecC = IsCmp ? ConstantExpr::getCompare(Pred, VecC0, VecC1)
671ed67f5e7SSanjay Patel                             : ConstantExpr::get(Opcode, VecC0, VecC1);
6720d2a0b44SSanjay Patel   Value *Insert = Builder.CreateInsertElement(NewVecC, Scalar, Index);
67398c2f4eeSSanjay Patel   replaceValue(I, *Insert);
6740d2a0b44SSanjay Patel   return true;
6750d2a0b44SSanjay Patel }
6760d2a0b44SSanjay Patel 
677b6315aeeSSanjay Patel /// Try to combine a scalar binop + 2 scalar compares of extracted elements of
678b6315aeeSSanjay Patel /// a vector into vector operations followed by extract. Note: The SLP pass
679b6315aeeSSanjay Patel /// may miss this pattern because of implementation problems.
680b6315aeeSSanjay Patel bool VectorCombine::foldExtractedCmps(Instruction &I) {
681b6315aeeSSanjay Patel   // We are looking for a scalar binop of booleans.
682b6315aeeSSanjay Patel   // binop i1 (cmp Pred I0, C0), (cmp Pred I1, C1)
683b6315aeeSSanjay Patel   if (!I.isBinaryOp() || !I.getType()->isIntegerTy(1))
684b6315aeeSSanjay Patel     return false;
685b6315aeeSSanjay Patel 
686b6315aeeSSanjay Patel   // The compare predicates should match, and each compare should have a
687b6315aeeSSanjay Patel   // constant operand.
688b6315aeeSSanjay Patel   // TODO: Relax the one-use constraints.
689b6315aeeSSanjay Patel   Value *B0 = I.getOperand(0), *B1 = I.getOperand(1);
690b6315aeeSSanjay Patel   Instruction *I0, *I1;
691b6315aeeSSanjay Patel   Constant *C0, *C1;
692b6315aeeSSanjay Patel   CmpInst::Predicate P0, P1;
693b6315aeeSSanjay Patel   if (!match(B0, m_OneUse(m_Cmp(P0, m_Instruction(I0), m_Constant(C0)))) ||
694b6315aeeSSanjay Patel       !match(B1, m_OneUse(m_Cmp(P1, m_Instruction(I1), m_Constant(C1)))) ||
695b6315aeeSSanjay Patel       P0 != P1)
696b6315aeeSSanjay Patel     return false;
697b6315aeeSSanjay Patel 
698b6315aeeSSanjay Patel   // The compare operands must be extracts of the same vector with constant
699b6315aeeSSanjay Patel   // extract indexes.
700b6315aeeSSanjay Patel   // TODO: Relax the one-use constraints.
701b6315aeeSSanjay Patel   Value *X;
702b6315aeeSSanjay Patel   uint64_t Index0, Index1;
703b6315aeeSSanjay Patel   if (!match(I0, m_OneUse(m_ExtractElt(m_Value(X), m_ConstantInt(Index0)))) ||
704b6315aeeSSanjay Patel       !match(I1, m_OneUse(m_ExtractElt(m_Specific(X), m_ConstantInt(Index1)))))
705b6315aeeSSanjay Patel     return false;
706b6315aeeSSanjay Patel 
707b6315aeeSSanjay Patel   auto *Ext0 = cast<ExtractElementInst>(I0);
708b6315aeeSSanjay Patel   auto *Ext1 = cast<ExtractElementInst>(I1);
709b6315aeeSSanjay Patel   ExtractElementInst *ConvertToShuf = getShuffleExtract(Ext0, Ext1);
710b6315aeeSSanjay Patel   if (!ConvertToShuf)
711b6315aeeSSanjay Patel     return false;
712b6315aeeSSanjay Patel 
713b6315aeeSSanjay Patel   // The original scalar pattern is:
714b6315aeeSSanjay Patel   // binop i1 (cmp Pred (ext X, Index0), C0), (cmp Pred (ext X, Index1), C1)
715b6315aeeSSanjay Patel   CmpInst::Predicate Pred = P0;
716b6315aeeSSanjay Patel   unsigned CmpOpcode = CmpInst::isFPPredicate(Pred) ? Instruction::FCmp
717b6315aeeSSanjay Patel                                                     : Instruction::ICmp;
718b6315aeeSSanjay Patel   auto *VecTy = dyn_cast<FixedVectorType>(X->getType());
719b6315aeeSSanjay Patel   if (!VecTy)
720b6315aeeSSanjay Patel     return false;
721b6315aeeSSanjay Patel 
72236710c38SCaroline Concatto   InstructionCost OldCost =
72336710c38SCaroline Concatto       TTI.getVectorInstrCost(Ext0->getOpcode(), VecTy, Index0);
724b6315aeeSSanjay Patel   OldCost += TTI.getVectorInstrCost(Ext1->getOpcode(), VecTy, Index1);
725b6315aeeSSanjay Patel   OldCost += TTI.getCmpSelInstrCost(CmpOpcode, I0->getType()) * 2;
726b6315aeeSSanjay Patel   OldCost += TTI.getArithmeticInstrCost(I.getOpcode(), I.getType());
727b6315aeeSSanjay Patel 
728b6315aeeSSanjay Patel   // The proposed vector pattern is:
729b6315aeeSSanjay Patel   // vcmp = cmp Pred X, VecC
730b6315aeeSSanjay Patel   // ext (binop vNi1 vcmp, (shuffle vcmp, Index1)), Index0
731b6315aeeSSanjay Patel   int CheapIndex = ConvertToShuf == Ext0 ? Index1 : Index0;
732b6315aeeSSanjay Patel   int ExpensiveIndex = ConvertToShuf == Ext0 ? Index0 : Index1;
733b6315aeeSSanjay Patel   auto *CmpTy = cast<FixedVectorType>(CmpInst::makeCmpResultType(X->getType()));
73436710c38SCaroline Concatto   InstructionCost NewCost = TTI.getCmpSelInstrCost(CmpOpcode, X->getType());
735e2935dcfSDavid Green   SmallVector<int, 32> ShufMask(VecTy->getNumElements(), UndefMaskElem);
736e2935dcfSDavid Green   ShufMask[CheapIndex] = ExpensiveIndex;
737e2935dcfSDavid Green   NewCost += TTI.getShuffleCost(TargetTransformInfo::SK_PermuteSingleSrc, CmpTy,
738e2935dcfSDavid Green                                 ShufMask);
739b6315aeeSSanjay Patel   NewCost += TTI.getArithmeticInstrCost(I.getOpcode(), CmpTy);
740b6315aeeSSanjay Patel   NewCost += TTI.getVectorInstrCost(Ext0->getOpcode(), CmpTy, CheapIndex);
741b6315aeeSSanjay Patel 
742b6315aeeSSanjay Patel   // Aggressively form vector ops if the cost is equal because the transform
743b6315aeeSSanjay Patel   // may enable further optimization.
744b6315aeeSSanjay Patel   // Codegen can reverse this transform (scalarize) if it was not profitable.
74536710c38SCaroline Concatto   if (OldCost < NewCost || !NewCost.isValid())
746b6315aeeSSanjay Patel     return false;
747b6315aeeSSanjay Patel 
748b6315aeeSSanjay Patel   // Create a vector constant from the 2 scalar constants.
749b6315aeeSSanjay Patel   SmallVector<Constant *, 32> CmpC(VecTy->getNumElements(),
750b6315aeeSSanjay Patel                                    UndefValue::get(VecTy->getElementType()));
751b6315aeeSSanjay Patel   CmpC[Index0] = C0;
752b6315aeeSSanjay Patel   CmpC[Index1] = C1;
753b6315aeeSSanjay Patel   Value *VCmp = Builder.CreateCmp(Pred, X, ConstantVector::get(CmpC));
754b6315aeeSSanjay Patel 
755b6315aeeSSanjay Patel   Value *Shuf = createShiftShuffle(VCmp, ExpensiveIndex, CheapIndex, Builder);
756b6315aeeSSanjay Patel   Value *VecLogic = Builder.CreateBinOp(cast<BinaryOperator>(I).getOpcode(),
757b6315aeeSSanjay Patel                                         VCmp, Shuf);
758b6315aeeSSanjay Patel   Value *NewExt = Builder.CreateExtractElement(VecLogic, CheapIndex);
759b6315aeeSSanjay Patel   replaceValue(I, *NewExt);
760b6315aeeSSanjay Patel   ++NumVecCmpBO;
761b6315aeeSSanjay Patel   return true;
762b6315aeeSSanjay Patel }
763b6315aeeSSanjay Patel 
7642db4979cSQiu Chaofan // Check if memory loc modified between two instrs in the same BB
7652db4979cSQiu Chaofan static bool isMemModifiedBetween(BasicBlock::iterator Begin,
7662db4979cSQiu Chaofan                                  BasicBlock::iterator End,
7672db4979cSQiu Chaofan                                  const MemoryLocation &Loc, AAResults &AA) {
7682db4979cSQiu Chaofan   unsigned NumScanned = 0;
7692db4979cSQiu Chaofan   return std::any_of(Begin, End, [&](const Instruction &Instr) {
7702db4979cSQiu Chaofan     return isModSet(AA.getModRefInfo(&Instr, Loc)) ||
7712db4979cSQiu Chaofan            ++NumScanned > MaxInstrsToScan;
7722db4979cSQiu Chaofan   });
7732db4979cSQiu Chaofan }
7742db4979cSQiu Chaofan 
775*4e8c28b6SFlorian Hahn /// Check if it is legal to scalarize a memory access to \p VecTy at index \p
776*4e8c28b6SFlorian Hahn /// Idx. \p Idx must access a valid vector element.
777*4e8c28b6SFlorian Hahn static bool canScalarizeAccess(FixedVectorType *VecTy, ConstantInt *Idx) {
778*4e8c28b6SFlorian Hahn   return Idx->getValue().ult(VecTy->getNumElements());
779*4e8c28b6SFlorian Hahn }
780*4e8c28b6SFlorian Hahn 
7812db4979cSQiu Chaofan // Combine patterns like:
7822db4979cSQiu Chaofan //   %0 = load <4 x i32>, <4 x i32>* %a
7832db4979cSQiu Chaofan //   %1 = insertelement <4 x i32> %0, i32 %b, i32 1
7842db4979cSQiu Chaofan //   store <4 x i32> %1, <4 x i32>* %a
7852db4979cSQiu Chaofan // to:
7862db4979cSQiu Chaofan //   %0 = bitcast <4 x i32>* %a to i32*
7872db4979cSQiu Chaofan //   %1 = getelementptr inbounds i32, i32* %0, i64 0, i64 1
7882db4979cSQiu Chaofan //   store i32 %b, i32* %1
7892db4979cSQiu Chaofan bool VectorCombine::foldSingleElementStore(Instruction &I) {
7902db4979cSQiu Chaofan   StoreInst *SI = dyn_cast<StoreInst>(&I);
7916d2df181SQiu Chaofan   if (!SI || !SI->isSimple() ||
7926d2df181SQiu Chaofan       !isa<FixedVectorType>(SI->getValueOperand()->getType()))
7932db4979cSQiu Chaofan     return false;
7942db4979cSQiu Chaofan 
7952db4979cSQiu Chaofan   // TODO: Combine more complicated patterns (multiple insert) by referencing
7962db4979cSQiu Chaofan   // TargetTransformInfo.
7972db4979cSQiu Chaofan   Instruction *Source;
7986d2df181SQiu Chaofan   Value *NewElement;
7996d2df181SQiu Chaofan   ConstantInt *Idx;
8002db4979cSQiu Chaofan   if (!match(SI->getValueOperand(),
8012db4979cSQiu Chaofan              m_InsertElt(m_Instruction(Source), m_Value(NewElement),
8026d2df181SQiu Chaofan                          m_ConstantInt(Idx))))
8032db4979cSQiu Chaofan     return false;
8042db4979cSQiu Chaofan 
8052db4979cSQiu Chaofan   if (auto *Load = dyn_cast<LoadInst>(Source)) {
8066d2df181SQiu Chaofan     auto VecTy = cast<FixedVectorType>(SI->getValueOperand()->getType());
8072db4979cSQiu Chaofan     const DataLayout &DL = I.getModule()->getDataLayout();
8082db4979cSQiu Chaofan     Value *SrcAddr = Load->getPointerOperand()->stripPointerCasts();
8096d2df181SQiu Chaofan     // Don't optimize for atomic/volatile load or store. Ensure memory is not
8106d2df181SQiu Chaofan     // modified between, vector type matches store size, and index is inbounds.
8112db4979cSQiu Chaofan     if (!Load->isSimple() || Load->getParent() != SI->getParent() ||
8122db4979cSQiu Chaofan         !DL.typeSizeEqualsStoreSize(Load->getType()) ||
813*4e8c28b6SFlorian Hahn         !canScalarizeAccess(VecTy, Idx) ||
8142db4979cSQiu Chaofan         SrcAddr != SI->getPointerOperand()->stripPointerCasts() ||
8152db4979cSQiu Chaofan         isMemModifiedBetween(Load->getIterator(), SI->getIterator(),
8162db4979cSQiu Chaofan                              MemoryLocation::get(SI), AA))
8172db4979cSQiu Chaofan       return false;
8182db4979cSQiu Chaofan 
8192db4979cSQiu Chaofan     Value *GEP = GetElementPtrInst::CreateInBounds(
8202db4979cSQiu Chaofan         SI->getPointerOperand(), {ConstantInt::get(Idx->getType(), 0), Idx});
8212db4979cSQiu Chaofan     Builder.Insert(GEP);
8222db4979cSQiu Chaofan     StoreInst *NSI = Builder.CreateStore(NewElement, GEP);
8232db4979cSQiu Chaofan     NSI->copyMetadata(*SI);
8242db4979cSQiu Chaofan     if (SI->getAlign() < NSI->getAlign())
8252db4979cSQiu Chaofan       NSI->setAlignment(SI->getAlign());
8262db4979cSQiu Chaofan     replaceValue(I, *NSI);
8272db4979cSQiu Chaofan     // Need erasing the store manually.
8282db4979cSQiu Chaofan     I.eraseFromParent();
8292db4979cSQiu Chaofan     return true;
8302db4979cSQiu Chaofan   }
8312db4979cSQiu Chaofan 
8322db4979cSQiu Chaofan   return false;
8332db4979cSQiu Chaofan }
8342db4979cSQiu Chaofan 
835*4e8c28b6SFlorian Hahn /// Try to scalarize vector loads feeding extractelement instructions.
836*4e8c28b6SFlorian Hahn bool VectorCombine::scalarizeLoadExtract(Instruction &I) {
837*4e8c28b6SFlorian Hahn   Value *Ptr;
838*4e8c28b6SFlorian Hahn   ConstantInt *Idx;
839*4e8c28b6SFlorian Hahn   if (!match(&I, m_ExtractElt(m_Load(m_Value(Ptr)), m_ConstantInt(Idx))))
840*4e8c28b6SFlorian Hahn     return false;
841*4e8c28b6SFlorian Hahn 
842*4e8c28b6SFlorian Hahn   auto *LI = cast<LoadInst>(I.getOperand(0));
843*4e8c28b6SFlorian Hahn   const DataLayout &DL = I.getModule()->getDataLayout();
844*4e8c28b6SFlorian Hahn   if (LI->isVolatile() || !DL.typeSizeEqualsStoreSize(LI->getType()))
845*4e8c28b6SFlorian Hahn     return false;
846*4e8c28b6SFlorian Hahn 
847*4e8c28b6SFlorian Hahn   auto *FixedVT = dyn_cast<FixedVectorType>(LI->getType());
848*4e8c28b6SFlorian Hahn   if (!FixedVT)
849*4e8c28b6SFlorian Hahn     return false;
850*4e8c28b6SFlorian Hahn 
851*4e8c28b6SFlorian Hahn   if (!canScalarizeAccess(FixedVT, Idx))
852*4e8c28b6SFlorian Hahn     return false;
853*4e8c28b6SFlorian Hahn 
854*4e8c28b6SFlorian Hahn   InstructionCost OriginalCost = TTI.getMemoryOpCost(
855*4e8c28b6SFlorian Hahn       Instruction::Load, LI->getType(), Align(LI->getAlignment()),
856*4e8c28b6SFlorian Hahn       LI->getPointerAddressSpace());
857*4e8c28b6SFlorian Hahn   InstructionCost ScalarizedCost = 0;
858*4e8c28b6SFlorian Hahn 
859*4e8c28b6SFlorian Hahn   Instruction *LastCheckedInst = LI;
860*4e8c28b6SFlorian Hahn   unsigned NumInstChecked = 0;
861*4e8c28b6SFlorian Hahn   // Check if all users of the load are extracts with no memory modifications
862*4e8c28b6SFlorian Hahn   // between the load and the extract. Compute the cost of both the original
863*4e8c28b6SFlorian Hahn   // code and the scalarized version.
864*4e8c28b6SFlorian Hahn   for (User *U : LI->users()) {
865*4e8c28b6SFlorian Hahn     auto *UI = dyn_cast<ExtractElementInst>(U);
866*4e8c28b6SFlorian Hahn     if (!UI || UI->getParent() != LI->getParent())
867*4e8c28b6SFlorian Hahn       return false;
868*4e8c28b6SFlorian Hahn 
869*4e8c28b6SFlorian Hahn     // Check if any instruction between the load and the extract may modify
870*4e8c28b6SFlorian Hahn     // memory.
871*4e8c28b6SFlorian Hahn     if (LastCheckedInst->comesBefore(UI)) {
872*4e8c28b6SFlorian Hahn       for (Instruction &I :
873*4e8c28b6SFlorian Hahn            make_range(std::next(LI->getIterator()), UI->getIterator())) {
874*4e8c28b6SFlorian Hahn         // Bail out if we reached the check limit or the instruction may write
875*4e8c28b6SFlorian Hahn         // to memory.
876*4e8c28b6SFlorian Hahn         if (NumInstChecked == MaxInstrsToScan || I.mayWriteToMemory())
877*4e8c28b6SFlorian Hahn           return false;
878*4e8c28b6SFlorian Hahn         NumInstChecked++;
879*4e8c28b6SFlorian Hahn       }
880*4e8c28b6SFlorian Hahn     }
881*4e8c28b6SFlorian Hahn 
882*4e8c28b6SFlorian Hahn     if (!LastCheckedInst)
883*4e8c28b6SFlorian Hahn       LastCheckedInst = UI;
884*4e8c28b6SFlorian Hahn     else if (LastCheckedInst->comesBefore(UI))
885*4e8c28b6SFlorian Hahn       LastCheckedInst = UI;
886*4e8c28b6SFlorian Hahn 
887*4e8c28b6SFlorian Hahn     auto *Index = dyn_cast<ConstantInt>(UI->getOperand(1));
888*4e8c28b6SFlorian Hahn     OriginalCost +=
889*4e8c28b6SFlorian Hahn         TTI.getVectorInstrCost(Instruction::ExtractElement, LI->getType(),
890*4e8c28b6SFlorian Hahn                                Index ? Index->getZExtValue() : -1);
891*4e8c28b6SFlorian Hahn     ScalarizedCost +=
892*4e8c28b6SFlorian Hahn         TTI.getMemoryOpCost(Instruction::Load, FixedVT->getElementType(),
893*4e8c28b6SFlorian Hahn                             Align(1), LI->getPointerAddressSpace());
894*4e8c28b6SFlorian Hahn     ScalarizedCost += TTI.getAddressComputationCost(FixedVT->getElementType());
895*4e8c28b6SFlorian Hahn   }
896*4e8c28b6SFlorian Hahn 
897*4e8c28b6SFlorian Hahn   if (ScalarizedCost >= OriginalCost)
898*4e8c28b6SFlorian Hahn     return false;
899*4e8c28b6SFlorian Hahn 
900*4e8c28b6SFlorian Hahn   // Replace extracts with narrow scalar loads.
901*4e8c28b6SFlorian Hahn   for (User *U : LI->users()) {
902*4e8c28b6SFlorian Hahn     auto *EI = cast<ExtractElementInst>(U);
903*4e8c28b6SFlorian Hahn     IRBuilder<>::InsertPointGuard Guard(Builder);
904*4e8c28b6SFlorian Hahn     Builder.SetInsertPoint(EI);
905*4e8c28b6SFlorian Hahn     Value *GEP = Builder.CreateInBoundsGEP(
906*4e8c28b6SFlorian Hahn         FixedVT, Ptr, {Builder.getInt32(0), EI->getOperand(1)});
907*4e8c28b6SFlorian Hahn     auto *NewLoad = cast<LoadInst>(Builder.CreateLoad(
908*4e8c28b6SFlorian Hahn         FixedVT->getElementType(), GEP, EI->getName() + ".scalar"));
909*4e8c28b6SFlorian Hahn 
910*4e8c28b6SFlorian Hahn     // Set the alignment for the new load. For index 0, we can use the original
911*4e8c28b6SFlorian Hahn     // alignment. Otherwise choose the common alignment of the load's align and
912*4e8c28b6SFlorian Hahn     // the alignment for the scalar type.
913*4e8c28b6SFlorian Hahn     auto *ConstIdx = dyn_cast<ConstantInt>(EI->getOperand(1));
914*4e8c28b6SFlorian Hahn     if (ConstIdx && ConstIdx->isNullValue())
915*4e8c28b6SFlorian Hahn       NewLoad->setAlignment(LI->getAlign());
916*4e8c28b6SFlorian Hahn     else
917*4e8c28b6SFlorian Hahn       NewLoad->setAlignment(commonAlignment(
918*4e8c28b6SFlorian Hahn           DL.getABITypeAlign(NewLoad->getType()), LI->getAlign()));
919*4e8c28b6SFlorian Hahn     replaceValue(*EI, *NewLoad);
920*4e8c28b6SFlorian Hahn   }
921*4e8c28b6SFlorian Hahn 
922*4e8c28b6SFlorian Hahn   return true;
923*4e8c28b6SFlorian Hahn }
924*4e8c28b6SFlorian Hahn 
925a17f03bdSSanjay Patel /// This is the entry point for all transforms. Pass manager differences are
926a17f03bdSSanjay Patel /// handled in the callers of this function.
9276bdd531aSSanjay Patel bool VectorCombine::run() {
92825c6544fSSanjay Patel   if (DisableVectorCombine)
92925c6544fSSanjay Patel     return false;
93025c6544fSSanjay Patel 
931cc892fd9SSanjay Patel   // Don't attempt vectorization if the target does not support vectors.
932cc892fd9SSanjay Patel   if (!TTI.getNumberOfRegisters(TTI.getRegisterClassForType(/*Vector*/ true)))
933cc892fd9SSanjay Patel     return false;
934cc892fd9SSanjay Patel 
935a17f03bdSSanjay Patel   bool MadeChange = false;
936a17f03bdSSanjay Patel   for (BasicBlock &BB : F) {
937a17f03bdSSanjay Patel     // Ignore unreachable basic blocks.
938a17f03bdSSanjay Patel     if (!DT.isReachableFromEntry(&BB))
939a17f03bdSSanjay Patel       continue;
9402db4979cSQiu Chaofan     // Use early increment range so that we can erase instructions in loop.
9412db4979cSQiu Chaofan     for (Instruction &I : make_early_inc_range(BB)) {
942fc3cc8a4SSanjay Patel       if (isa<DbgInfoIntrinsic>(I))
943fc3cc8a4SSanjay Patel         continue;
944de65b356SSanjay Patel       Builder.SetInsertPoint(&I);
94543bdac29SSanjay Patel       MadeChange |= vectorizeLoadInsert(I);
9466bdd531aSSanjay Patel       MadeChange |= foldExtractExtract(I);
9476bdd531aSSanjay Patel       MadeChange |= foldBitcastShuf(I);
9486bdd531aSSanjay Patel       MadeChange |= scalarizeBinopOrCmp(I);
949b6315aeeSSanjay Patel       MadeChange |= foldExtractedCmps(I);
950*4e8c28b6SFlorian Hahn       MadeChange |= scalarizeLoadExtract(I);
9512db4979cSQiu Chaofan       MadeChange |= foldSingleElementStore(I);
952a17f03bdSSanjay Patel     }
953fc3cc8a4SSanjay Patel   }
954a17f03bdSSanjay Patel 
955a17f03bdSSanjay Patel   // We're done with transforms, so remove dead instructions.
956a17f03bdSSanjay Patel   if (MadeChange)
957a17f03bdSSanjay Patel     for (BasicBlock &BB : F)
958a17f03bdSSanjay Patel       SimplifyInstructionsInBlock(&BB);
959a17f03bdSSanjay Patel 
960a17f03bdSSanjay Patel   return MadeChange;
961a17f03bdSSanjay Patel }
962a17f03bdSSanjay Patel 
963a17f03bdSSanjay Patel // Pass manager boilerplate below here.
964a17f03bdSSanjay Patel 
965a17f03bdSSanjay Patel namespace {
966a17f03bdSSanjay Patel class VectorCombineLegacyPass : public FunctionPass {
967a17f03bdSSanjay Patel public:
968a17f03bdSSanjay Patel   static char ID;
969a17f03bdSSanjay Patel   VectorCombineLegacyPass() : FunctionPass(ID) {
970a17f03bdSSanjay Patel     initializeVectorCombineLegacyPassPass(*PassRegistry::getPassRegistry());
971a17f03bdSSanjay Patel   }
972a17f03bdSSanjay Patel 
973a17f03bdSSanjay Patel   void getAnalysisUsage(AnalysisUsage &AU) const override {
974a17f03bdSSanjay Patel     AU.addRequired<DominatorTreeWrapperPass>();
975a17f03bdSSanjay Patel     AU.addRequired<TargetTransformInfoWrapperPass>();
9762db4979cSQiu Chaofan     AU.addRequired<AAResultsWrapperPass>();
977a17f03bdSSanjay Patel     AU.setPreservesCFG();
978a17f03bdSSanjay Patel     AU.addPreserved<DominatorTreeWrapperPass>();
979a17f03bdSSanjay Patel     AU.addPreserved<GlobalsAAWrapperPass>();
980024098aeSSanjay Patel     AU.addPreserved<AAResultsWrapperPass>();
981024098aeSSanjay Patel     AU.addPreserved<BasicAAWrapperPass>();
982a17f03bdSSanjay Patel     FunctionPass::getAnalysisUsage(AU);
983a17f03bdSSanjay Patel   }
984a17f03bdSSanjay Patel 
985a17f03bdSSanjay Patel   bool runOnFunction(Function &F) override {
986a17f03bdSSanjay Patel     if (skipFunction(F))
987a17f03bdSSanjay Patel       return false;
988a17f03bdSSanjay Patel     auto &TTI = getAnalysis<TargetTransformInfoWrapperPass>().getTTI(F);
989a17f03bdSSanjay Patel     auto &DT = getAnalysis<DominatorTreeWrapperPass>().getDomTree();
9902db4979cSQiu Chaofan     auto &AA = getAnalysis<AAResultsWrapperPass>().getAAResults();
9912db4979cSQiu Chaofan     VectorCombine Combiner(F, TTI, DT, AA);
9926bdd531aSSanjay Patel     return Combiner.run();
993a17f03bdSSanjay Patel   }
994a17f03bdSSanjay Patel };
995a17f03bdSSanjay Patel } // namespace
996a17f03bdSSanjay Patel 
997a17f03bdSSanjay Patel char VectorCombineLegacyPass::ID = 0;
998a17f03bdSSanjay Patel INITIALIZE_PASS_BEGIN(VectorCombineLegacyPass, "vector-combine",
999a17f03bdSSanjay Patel                       "Optimize scalar/vector ops", false,
1000a17f03bdSSanjay Patel                       false)
1001a17f03bdSSanjay Patel INITIALIZE_PASS_DEPENDENCY(DominatorTreeWrapperPass)
1002a17f03bdSSanjay Patel INITIALIZE_PASS_END(VectorCombineLegacyPass, "vector-combine",
1003a17f03bdSSanjay Patel                     "Optimize scalar/vector ops", false, false)
1004a17f03bdSSanjay Patel Pass *llvm::createVectorCombinePass() {
1005a17f03bdSSanjay Patel   return new VectorCombineLegacyPass();
1006a17f03bdSSanjay Patel }
1007a17f03bdSSanjay Patel 
1008a17f03bdSSanjay Patel PreservedAnalyses VectorCombinePass::run(Function &F,
1009a17f03bdSSanjay Patel                                          FunctionAnalysisManager &FAM) {
1010a17f03bdSSanjay Patel   TargetTransformInfo &TTI = FAM.getResult<TargetIRAnalysis>(F);
1011a17f03bdSSanjay Patel   DominatorTree &DT = FAM.getResult<DominatorTreeAnalysis>(F);
10122db4979cSQiu Chaofan   AAResults &AA = FAM.getResult<AAManager>(F);
10132db4979cSQiu Chaofan   VectorCombine Combiner(F, TTI, DT, AA);
10146bdd531aSSanjay Patel   if (!Combiner.run())
1015a17f03bdSSanjay Patel     return PreservedAnalyses::all();
1016a17f03bdSSanjay Patel   PreservedAnalyses PA;
1017a17f03bdSSanjay Patel   PA.preserveSet<CFGAnalyses>();
1018a17f03bdSSanjay Patel   return PA;
1019a17f03bdSSanjay Patel }
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