LLVM 24.0.0git
VectorCombine.cpp
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1//===------- VectorCombine.cpp - Optimize partial vector operations -------===//
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 optimizes scalar/vector interactions using target cost models. The
10// transforms implemented here may not fit in traditional loop-based or SLP
11// vectorization passes.
12//
13//===----------------------------------------------------------------------===//
14
16#include "llvm/ADT/DenseMap.h"
17#include "llvm/ADT/STLExtras.h"
18#include "llvm/ADT/ScopeExit.h"
21#include "llvm/ADT/Statistic.h"
26#include "llvm/Analysis/Loads.h"
31#include "llvm/IR/Dominators.h"
32#include "llvm/IR/Function.h"
33#include "llvm/IR/IRBuilder.h"
42#include <numeric>
43#include <optional>
44#include <queue>
45#include <set>
46
47#define DEBUG_TYPE "vector-combine"
49
50using namespace llvm;
51using namespace llvm::PatternMatch;
52
53STATISTIC(NumVecLoad, "Number of vector loads formed");
54STATISTIC(NumVecCmp, "Number of vector compares formed");
55STATISTIC(NumVecBO, "Number of vector binops formed");
56STATISTIC(NumVecCmpBO, "Number of vector compare + binop formed");
57STATISTIC(NumShufOfBitcast, "Number of shuffles moved after bitcast");
58STATISTIC(NumScalarOps, "Number of scalar unary + binary ops formed");
59STATISTIC(NumScalarCmp, "Number of scalar compares formed");
60STATISTIC(NumScalarIntrinsic, "Number of scalar intrinsic calls formed");
61
63 "disable-vector-combine", cl::init(false), cl::Hidden,
64 cl::desc("Disable all vector combine transforms"));
65
67 "disable-binop-extract-shuffle", cl::init(false), cl::Hidden,
68 cl::desc("Disable binop extract to shuffle transforms"));
69
71 "vector-combine-max-scan-instrs", cl::init(30), cl::Hidden,
72 cl::desc("Max number of instructions to scan for vector combining."));
73
74static const unsigned InvalidIndex = std::numeric_limits<unsigned>::max();
75
76namespace {
77class VectorCombine {
78public:
79 VectorCombine(Function &F, const TargetTransformInfo &TTI,
82 bool TryEarlyFoldsOnly)
83 : F(F), Builder(F.getContext(), InstSimplifyFolder(*DL)), TTI(TTI),
84 DT(DT), AA(AA), DL(DL), CostKind(CostKind),
85 SQ(*DL, /*TLI=*/nullptr, &DT, &AC),
86 TryEarlyFoldsOnly(TryEarlyFoldsOnly) {}
87
88 bool run();
89
90private:
91 Function &F;
93 const TargetTransformInfo &TTI;
94 const DominatorTree &DT;
95 AAResults &AA;
96 const DataLayout *DL;
97 TTI::TargetCostKind CostKind;
98 const SimplifyQuery SQ;
99
100 /// If true, only perform beneficial early IR transforms. Do not introduce new
101 /// vector operations.
102 bool TryEarlyFoldsOnly;
103
104 InstructionWorklist Worklist;
105
106 /// Next instruction to iterate. It will be updated when it is erased by
107 /// RecursivelyDeleteTriviallyDeadInstructions.
108 Instruction *NextInst;
109
110 // TODO: Direct calls from the top-level "run" loop use a plain "Instruction"
111 // parameter. That should be updated to specific sub-classes because the
112 // run loop was changed to dispatch on opcode.
113 bool vectorizeLoadInsert(Instruction &I);
114 bool widenSubvectorLoad(Instruction &I);
115 ExtractElementInst *getShuffleExtract(ExtractElementInst *Ext0,
116 ExtractElementInst *Ext1,
117 unsigned PreferredExtractIndex) const;
118 bool isExtractExtractCheap(ExtractElementInst *Ext0, ExtractElementInst *Ext1,
119 const Instruction &I,
120 ExtractElementInst *&ConvertToShuffle,
121 unsigned PreferredExtractIndex);
122 Value *foldExtExtCmp(Value *V0, Value *V1, Value *ExtIndex, Instruction &I);
123 Value *foldExtExtBinop(Value *V0, Value *V1, Value *ExtIndex, Instruction &I);
124 bool foldExtractExtract(Instruction &I);
125 bool foldInsExtFNeg(Instruction &I);
126 bool foldInsExtBinop(Instruction &I);
127 bool foldInsExtVectorToShuffle(Instruction &I);
128 bool foldBitOpOfCastops(Instruction &I);
129 bool foldBitOpOfCastConstant(Instruction &I);
130 bool foldBitcastShuffle(Instruction &I);
131 bool scalarizeOpOrCmp(Instruction &I);
132 bool foldExtractedCmps(Instruction &I);
133 bool foldSelectsFromBitcast(Instruction &I);
134 bool foldBinopOfReductions(Instruction &I);
135 bool foldInsertElementsToStores(Instruction &I);
136 bool scalarizeLoad(Instruction &I);
137 bool scalarizeLoadExtract(LoadInst *LI, VectorType *VecTy, Value *Ptr);
138 bool scalarizeLoadBitcast(LoadInst *LI, VectorType *VecTy, Value *Ptr);
139 bool scalarizeExtExtract(Instruction &I);
140 bool foldConcatOfBoolMasks(Instruction &I);
141 bool foldPermuteOfBinops(Instruction &I);
142 bool foldShuffleOfBinops(Instruction &I);
143 bool foldShuffleOfSelects(Instruction &I);
144 bool foldShuffleOfCastops(Instruction &I);
145 bool foldShuffleOfShuffles(Instruction &I);
146 bool foldPermuteOfIntrinsic(Instruction &I);
147 bool foldShufflesOfLengthChangingShuffles(Instruction &I);
148 bool foldShuffleOfIntrinsics(Instruction &I);
149 bool foldShuffleToIdentity(Instruction &I);
150 bool foldShuffleFromReductions(Instruction &I);
151 bool foldShuffleChainsToReduce(Instruction &I);
152 bool foldCastFromReductions(Instruction &I);
153 bool foldSignBitReductionCmp(Instruction &I);
154 bool foldReductionZeroTest(Instruction &I);
155 bool foldICmpEqZeroVectorReduce(Instruction &I);
156 bool foldEquivalentReductionCmp(Instruction &I);
157 bool foldReduceAddCmpZero(Instruction &I);
158 bool foldSelectShuffle(Instruction &I, bool FromReduction = false);
159 bool foldInterleaveIntrinsics(Instruction &I);
160 bool foldDeinterleaveIntrinsics(Instruction &I);
161 bool foldBitcastOfVPLoad(Instruction &I);
162 bool foldBitOrderReverseAndSwap(Instruction &I);
163 bool shrinkType(Instruction &I);
164 bool shrinkLoadForShuffles(Instruction &I);
165 bool shrinkPhiOfShuffles(Instruction &I);
166 bool foldDeinterleaveInterleavePair(Instruction &I);
167
168 void replaceValue(Instruction &Old, Value &New, bool Erase = true) {
169 LLVM_DEBUG(dbgs() << "VC: Replacing: " << Old << '\n');
170 LLVM_DEBUG(dbgs() << " With: " << New << '\n');
171 Old.replaceAllUsesWith(&New);
172 if (auto *NewI = dyn_cast<Instruction>(&New)) {
173 New.takeName(&Old);
174 Worklist.pushUsersToWorkList(*NewI);
175 Worklist.pushValue(NewI);
176 }
177 if (Erase && isInstructionTriviallyDead(&Old)) {
178 eraseInstruction(Old);
179 } else {
180 Worklist.push(&Old);
181 }
182 }
183
184 void eraseInstruction(Instruction &I) {
185 LLVM_DEBUG(dbgs() << "VC: Erasing: " << I << '\n');
186 SmallVector<Value *> Ops(I.operands());
187 Worklist.remove(&I);
188 I.eraseFromParent();
189
190 // Push remaining users of the operands and then the operand itself - allows
191 // further folds that were hindered by OneUse limits.
192 SmallPtrSet<Value *, 4> Visited;
193 for (Value *Op : Ops) {
194 if (!Visited.contains(Op)) {
195 if (auto *OpI = dyn_cast<Instruction>(Op)) {
197 OpI, nullptr, nullptr, [&](Value *V) {
198 if (auto *I = dyn_cast<Instruction>(V)) {
199 LLVM_DEBUG(dbgs() << "VC: Erased: " << *I << '\n');
200 Worklist.remove(I);
201 if (I == NextInst)
202 NextInst = NextInst->getNextNode();
203 Visited.insert(I);
204 }
205 }))
206 continue;
207 Worklist.pushUsersToWorkList(*OpI);
208 Worklist.pushValue(OpI);
209 }
210 }
211 }
212 }
213};
214} // namespace
215
216/// Return the source operand of a potentially bitcasted value. If there is no
217/// bitcast, return the input value itself.
219 while (auto *BitCast = dyn_cast<BitCastInst>(V))
220 V = BitCast->getOperand(0);
221 return V;
222}
223
224/// Helper to peek through bitcasts to the same value.
225static bool isEquivBitcast(Value *X, Value *Y) {
226 return X->getType() == Y->getType() &&
228}
229
231 // Do not widen load if atomic/volatile or under asan/hwasan/memtag/tsan.
232 // The widened load may load data from dirty regions or create data races
233 // non-existent in the source.
234 if (!Load || !Load->isSimple() || !Load->hasOneUse() ||
235 Load->getFunction()->hasFnAttribute(Attribute::SanitizeMemTag) ||
237 return false;
238
239 // We are potentially transforming byte-sized (8-bit) memory accesses, so make
240 // sure we have all of our type-based constraints in place for this target.
241 Type *ScalarTy = Load->getType()->getScalarType();
242 uint64_t ScalarSize = ScalarTy->getPrimitiveSizeInBits();
243 unsigned MinVectorSize = TTI.getMinVectorRegisterBitWidth();
244 if (!ScalarSize || !MinVectorSize || MinVectorSize % ScalarSize != 0 ||
245 ScalarSize % 8 != 0)
246 return false;
247
248 return true;
249}
250
251bool VectorCombine::vectorizeLoadInsert(Instruction &I) {
252 // Match insert into fixed vector of scalar value.
253 // TODO: Handle non-zero insert index.
254 Value *Scalar;
255 if (!match(&I,
257 return false;
258
259 // Optionally match an extract from another vector.
260 Value *X;
261 bool HasExtract = match(Scalar, m_ExtractElt(m_Value(X), m_ZeroInt()));
262 if (!HasExtract)
263 X = Scalar;
264
265 auto *Load = dyn_cast<LoadInst>(X);
266 if (!canWidenLoad(Load, TTI))
267 return false;
268
269 Type *ScalarTy = Scalar->getType();
270 uint64_t ScalarSize = ScalarTy->getPrimitiveSizeInBits();
271 unsigned MinVectorSize = TTI.getMinVectorRegisterBitWidth();
272
273 // Check safety of replacing the scalar load with a larger vector load.
274 // We use minimal alignment (maximum flexibility) because we only care about
275 // the dereferenceable region. When calculating cost and creating a new op,
276 // we may use a larger value based on alignment attributes.
277 Value *SrcPtr = Load->getPointerOperand()->stripPointerCasts();
278 assert(isa<PointerType>(SrcPtr->getType()) && "Expected a pointer type");
279
280 unsigned MinVecNumElts = MinVectorSize / ScalarSize;
281 auto *MinVecTy = VectorType::get(ScalarTy, MinVecNumElts, false);
282 unsigned OffsetEltIndex = 0;
283 Align Alignment = Load->getAlign();
284 if (!isSafeToLoadUnconditionally(SrcPtr, MinVecTy, Align(1),
286 // It is not safe to load directly from the pointer, but we can still peek
287 // through gep offsets and check if it safe to load from a base address with
288 // updated alignment. If it is, we can shuffle the element(s) into place
289 // after loading.
290 unsigned OffsetBitWidth = DL->getIndexTypeSizeInBits(SrcPtr->getType());
291 APInt Offset(OffsetBitWidth, 0);
293
294 // We want to shuffle the result down from a high element of a vector, so
295 // the offset must be positive.
296 if (Offset.isNegative())
297 return false;
298
299 // The offset must be a multiple of the scalar element to shuffle cleanly
300 // in the element's size.
301 uint64_t ScalarSizeInBytes = ScalarSize / 8;
302 if (Offset.urem(ScalarSizeInBytes) != 0)
303 return false;
304
305 // If we load MinVecNumElts, will our target element still be loaded?
306 APInt OffsetEltIndexAP = Offset.udiv(ScalarSizeInBytes);
307 if (OffsetEltIndexAP.uge(MinVecNumElts))
308 return false;
309 OffsetEltIndex = OffsetEltIndexAP.getZExtValue();
310
311 if (!isSafeToLoadUnconditionally(SrcPtr, MinVecTy, Align(1),
313 return false;
314
315 // Update alignment with offset value. Note that the offset could be negated
316 // to more accurately represent "(new) SrcPtr - Offset = (old) SrcPtr", but
317 // negation does not change the result of the alignment calculation.
318 Alignment = commonAlignment(Alignment, Offset.getZExtValue());
319 }
320
321 // Original pattern: insertelt undef, load [free casts of] PtrOp, 0
322 // Use the greater of the alignment on the load or its source pointer.
323 Alignment = std::max(SrcPtr->getPointerAlignment(*DL), Alignment);
324 Type *LoadTy = Load->getType();
325 unsigned AS = Load->getPointerAddressSpace();
326 InstructionCost OldCost =
327 TTI.getMemoryOpCost(Instruction::Load, LoadTy, Alignment, AS, CostKind);
328 APInt DemandedElts = APInt::getOneBitSet(MinVecNumElts, 0);
329 OldCost +=
330 TTI.getScalarizationOverhead(MinVecTy, DemandedElts,
331 /* Insert */ true, HasExtract, CostKind);
332
333 // New pattern: load VecPtr
334 InstructionCost NewCost =
335 TTI.getMemoryOpCost(Instruction::Load, MinVecTy, Alignment, AS, CostKind);
336 // Optionally, we are shuffling the loaded vector element(s) into place.
337 // For the mask set everything but element 0 to undef to prevent poison from
338 // propagating from the extra loaded memory. This will also optionally
339 // shrink/grow the vector from the loaded size to the output size.
340 // We assume this operation has no cost in codegen if there was no offset.
341 // Note that we could use freeze to avoid poison problems, but then we might
342 // still need a shuffle to change the vector size.
343 auto *Ty = cast<FixedVectorType>(I.getType());
344 unsigned OutputNumElts = Ty->getNumElements();
345 SmallVector<int, 16> Mask(OutputNumElts, PoisonMaskElem);
346 assert(OffsetEltIndex < MinVecNumElts && "Address offset too big");
347 Mask[0] = OffsetEltIndex;
348 if (OffsetEltIndex)
349 NewCost += TTI.getShuffleCost(TTI::SK_PermuteSingleSrc, Ty, MinVecTy,
350 CostKind, Mask);
351
352 // We can aggressively convert to the vector form because the backend can
353 // invert this transform if it does not result in a performance win.
354 if (OldCost < NewCost || !NewCost.isValid())
355 return false;
356
357 // It is safe and potentially profitable to load a vector directly:
358 // inselt undef, load Scalar, 0 --> load VecPtr
359 IRBuilder<> Builder(Load);
360 Value *CastedPtr =
361 Builder.CreatePointerBitCastOrAddrSpaceCast(SrcPtr, Builder.getPtrTy(AS));
362 Value *VecLd = Builder.CreateAlignedLoad(MinVecTy, CastedPtr, Alignment);
363 VecLd = Builder.CreateShuffleVector(VecLd, Mask);
364
365 replaceValue(I, *VecLd);
366 ++NumVecLoad;
367 return true;
368}
369
370/// If we are loading a vector and then inserting it into a larger vector with
371/// undefined elements, try to load the larger vector and eliminate the insert.
372/// This removes a shuffle in IR and may allow combining of other loaded values.
373bool VectorCombine::widenSubvectorLoad(Instruction &I) {
374 // Match subvector insert of fixed vector.
375 auto *Shuf = cast<ShuffleVectorInst>(&I);
376 if (!Shuf->isIdentityWithPadding())
377 return false;
378
379 // Allow a non-canonical shuffle mask that is choosing elements from op1.
380 unsigned NumOpElts =
381 cast<FixedVectorType>(Shuf->getOperand(0)->getType())->getNumElements();
382 unsigned OpIndex = any_of(Shuf->getShuffleMask(), [&NumOpElts](int M) {
383 return M >= (int)(NumOpElts);
384 });
385
386 auto *Load = dyn_cast<LoadInst>(Shuf->getOperand(OpIndex));
387 if (!canWidenLoad(Load, TTI))
388 return false;
389
390 // We use minimal alignment (maximum flexibility) because we only care about
391 // the dereferenceable region. When calculating cost and creating a new op,
392 // we may use a larger value based on alignment attributes.
393 auto *Ty = cast<FixedVectorType>(I.getType());
394 Value *SrcPtr = Load->getPointerOperand()->stripPointerCasts();
395 assert(isa<PointerType>(SrcPtr->getType()) && "Expected a pointer type");
396 Align Alignment = Load->getAlign();
397 if (!isSafeToLoadUnconditionally(SrcPtr, Ty, Align(1),
399 return false;
400
401 Alignment = std::max(SrcPtr->getPointerAlignment(*DL), Alignment);
402 Type *LoadTy = Load->getType();
403 unsigned AS = Load->getPointerAddressSpace();
404
405 // Original pattern: insert_subvector (load PtrOp)
406 // This conservatively assumes that the cost of a subvector insert into an
407 // undef value is 0. We could add that cost if the cost model accurately
408 // reflects the real cost of that operation.
409 InstructionCost OldCost =
410 TTI.getMemoryOpCost(Instruction::Load, LoadTy, Alignment, AS, CostKind);
411
412 // New pattern: load PtrOp
413 InstructionCost NewCost =
414 TTI.getMemoryOpCost(Instruction::Load, Ty, Alignment, AS, CostKind);
415
416 // We can aggressively convert to the vector form because the backend can
417 // invert this transform if it does not result in a performance win.
418 if (OldCost < NewCost || !NewCost.isValid())
419 return false;
420
421 IRBuilder<> Builder(Load);
422 Value *CastedPtr =
423 Builder.CreatePointerBitCastOrAddrSpaceCast(SrcPtr, Builder.getPtrTy(AS));
424 Value *VecLd = Builder.CreateAlignedLoad(Ty, CastedPtr, Alignment);
425 replaceValue(I, *VecLd);
426 ++NumVecLoad;
427 return true;
428}
429
430/// Determine which, if any, of the inputs should be replaced by a shuffle
431/// followed by extract from a different index.
432ExtractElementInst *VectorCombine::getShuffleExtract(
433 ExtractElementInst *Ext0, ExtractElementInst *Ext1,
434 unsigned PreferredExtractIndex = InvalidIndex) const {
435 auto *Index0C = dyn_cast<ConstantInt>(Ext0->getIndexOperand());
436 auto *Index1C = dyn_cast<ConstantInt>(Ext1->getIndexOperand());
437 assert(Index0C && Index1C && "Expected constant extract indexes");
438
439 unsigned Index0 = Index0C->getZExtValue();
440 unsigned Index1 = Index1C->getZExtValue();
441
442 // If the extract indexes are identical, no shuffle is needed.
443 if (Index0 == Index1)
444 return nullptr;
445
446 Type *VecTy = Ext0->getVectorOperand()->getType();
447 assert(VecTy == Ext1->getVectorOperand()->getType() && "Need matching types");
448 InstructionCost Cost0 =
449 TTI.getVectorInstrCost(*Ext0, VecTy, CostKind, Index0);
450 InstructionCost Cost1 =
451 TTI.getVectorInstrCost(*Ext1, VecTy, CostKind, Index1);
452
453 // If both costs are invalid no shuffle is needed
454 if (!Cost0.isValid() && !Cost1.isValid())
455 return nullptr;
456
457 // We are extracting from 2 different indexes, so one operand must be shuffled
458 // before performing a vector operation and/or extract. The more expensive
459 // extract will be replaced by a shuffle.
460 if (Cost0 > Cost1)
461 return Ext0;
462 if (Cost1 > Cost0)
463 return Ext1;
464
465 // If the costs are equal and there is a preferred extract index, shuffle the
466 // opposite operand.
467 if (PreferredExtractIndex == Index0)
468 return Ext1;
469 if (PreferredExtractIndex == Index1)
470 return Ext0;
471
472 // Otherwise, replace the extract with the higher index.
473 return Index0 > Index1 ? Ext0 : Ext1;
474}
475
476/// Compare the relative costs of 2 extracts followed by scalar operation vs.
477/// vector operation(s) followed by extract. Return true if the existing
478/// instructions are cheaper than a vector alternative. Otherwise, return false
479/// and if one of the extracts should be transformed to a shufflevector, set
480/// \p ConvertToShuffle to that extract instruction.
481bool VectorCombine::isExtractExtractCheap(ExtractElementInst *Ext0,
482 ExtractElementInst *Ext1,
483 const Instruction &I,
484 ExtractElementInst *&ConvertToShuffle,
485 unsigned PreferredExtractIndex) {
486 auto *Ext0IndexC = dyn_cast<ConstantInt>(Ext0->getIndexOperand());
487 auto *Ext1IndexC = dyn_cast<ConstantInt>(Ext1->getIndexOperand());
488 assert(Ext0IndexC && Ext1IndexC && "Expected constant extract indexes");
489
490 unsigned Opcode = I.getOpcode();
491 Value *Ext0Src = Ext0->getVectorOperand();
492 Value *Ext1Src = Ext1->getVectorOperand();
493 Type *ScalarTy = Ext0->getType();
494 auto *VecTy = cast<VectorType>(Ext0Src->getType());
495 InstructionCost ScalarOpCost, VectorOpCost;
496
497 // Get cost estimates for scalar and vector versions of the operation.
498 bool IsBinOp = Instruction::isBinaryOp(Opcode);
499 if (IsBinOp) {
500 ScalarOpCost = TTI.getArithmeticInstrCost(Opcode, ScalarTy, CostKind);
501 VectorOpCost = TTI.getArithmeticInstrCost(Opcode, VecTy, CostKind);
502 } else {
503 assert((Opcode == Instruction::ICmp || Opcode == Instruction::FCmp) &&
504 "Expected a compare");
505 CmpInst::Predicate Pred = cast<CmpInst>(I).getPredicate();
506 ScalarOpCost = TTI.getCmpSelInstrCost(
507 Opcode, ScalarTy, CmpInst::makeCmpResultType(ScalarTy), Pred, CostKind);
508 VectorOpCost = TTI.getCmpSelInstrCost(
509 Opcode, VecTy, CmpInst::makeCmpResultType(VecTy), Pred, CostKind);
510 }
511
512 // Get cost estimates for the extract elements. These costs will factor into
513 // both sequences.
514 unsigned Ext0Index = Ext0IndexC->getZExtValue();
515 unsigned Ext1Index = Ext1IndexC->getZExtValue();
516
517 InstructionCost Extract0Cost =
518 TTI.getVectorInstrCost(*Ext0, VecTy, CostKind, Ext0Index);
519 InstructionCost Extract1Cost =
520 TTI.getVectorInstrCost(*Ext1, VecTy, CostKind, Ext1Index);
521
522 // A more expensive extract will always be replaced by a splat shuffle.
523 // For example, if Ext0 is more expensive:
524 // opcode (extelt V0, Ext0), (ext V1, Ext1) -->
525 // extelt (opcode (splat V0, Ext0), V1), Ext1
526 // TODO: Evaluate whether that always results in lowest cost. Alternatively,
527 // check the cost of creating a broadcast shuffle and shuffling both
528 // operands to element 0.
529 unsigned BestExtIndex = Extract0Cost > Extract1Cost ? Ext0Index : Ext1Index;
530 unsigned BestInsIndex = Extract0Cost > Extract1Cost ? Ext1Index : Ext0Index;
531 InstructionCost CheapExtractCost = std::min(Extract0Cost, Extract1Cost);
532
533 // Extra uses of the extracts mean that we include those costs in the
534 // vector total because those instructions will not be eliminated.
535 InstructionCost OldCost, NewCost;
536 if (Ext0Src == Ext1Src && Ext0Index == Ext1Index) {
537 // Handle a special case. If the 2 extracts are identical, adjust the
538 // formulas to account for that. The extra use charge allows for either the
539 // CSE'd pattern or an unoptimized form with identical values:
540 // opcode (extelt V, C), (extelt V, C) --> extelt (opcode V, V), C
541 bool HasUseTax = Ext0 == Ext1 ? !Ext0->hasNUses(2)
542 : !Ext0->hasOneUse() || !Ext1->hasOneUse();
543 OldCost = CheapExtractCost + ScalarOpCost;
544 NewCost = VectorOpCost + CheapExtractCost + HasUseTax * CheapExtractCost;
545 } else {
546 // Handle the general case. Each extract is actually a different value:
547 // opcode (extelt V0, C0), (extelt V1, C1) --> extelt (opcode V0, V1), C
548 OldCost = Extract0Cost + Extract1Cost + ScalarOpCost;
549 NewCost = VectorOpCost + CheapExtractCost +
550 !Ext0->hasOneUse() * Extract0Cost +
551 !Ext1->hasOneUse() * Extract1Cost;
552 }
553
554 ConvertToShuffle = getShuffleExtract(Ext0, Ext1, PreferredExtractIndex);
555 if (ConvertToShuffle) {
556 if (IsBinOp && DisableBinopExtractShuffle)
557 return true;
558
559 // If we are extracting from 2 different indexes, then one operand must be
560 // shuffled before performing the vector operation. The shuffle mask is
561 // poison except for 1 lane that is being translated to the remaining
562 // extraction lane. Therefore, it is a splat shuffle. Ex:
563 // ShufMask = { poison, poison, 0, poison }
564 // TODO: The cost model has an option for a "broadcast" shuffle
565 // (splat-from-element-0), but no option for a more general splat.
566 if (auto *FixedVecTy = dyn_cast<FixedVectorType>(VecTy)) {
567 SmallVector<int> ShuffleMask(FixedVecTy->getNumElements(),
569 ShuffleMask[BestInsIndex] = BestExtIndex;
571 VecTy, VecTy, CostKind, ShuffleMask, 0,
572 nullptr, {ConvertToShuffle});
573 } else {
575 VecTy, VecTy, CostKind, {}, 0, nullptr,
576 {ConvertToShuffle});
577 }
578 }
579
580 LLVM_DEBUG(dbgs() << "Found a binop of extractions: " << I << "\n OldCost: "
581 << OldCost << " vs NewCost: " << NewCost << "\n");
582
583 // Aggressively form a vector op if the cost is equal because the transform
584 // may enable further optimization.
585 // Codegen can reverse this transform (scalarize) if it was not profitable.
586 return OldCost < NewCost;
587}
588
589/// Create a shuffle that translates (shifts) 1 element from the input vector
590/// to a new element location.
591static Value *createShiftShuffle(Value *Vec, unsigned OldIndex,
592 unsigned NewIndex, IRBuilderBase &Builder) {
593 // The shuffle mask is poison except for 1 lane that is being translated
594 // to the new element index. Example for OldIndex == 2 and NewIndex == 0:
595 // ShufMask = { 2, poison, poison, poison }
596 auto *VecTy = cast<FixedVectorType>(Vec->getType());
597 SmallVector<int, 32> ShufMask(VecTy->getNumElements(), PoisonMaskElem);
598 ShufMask[NewIndex] = OldIndex;
599 return Builder.CreateShuffleVector(Vec, ShufMask, "shift");
600}
601
602/// Given an extract element instruction with constant index operand, shuffle
603/// the source vector (shift the scalar element) to a NewIndex for extraction.
604/// Return null if the input can be constant folded, so that we are not creating
605/// unnecessary instructions.
606static Value *translateExtract(ExtractElementInst *ExtElt, unsigned NewIndex,
607 IRBuilderBase &Builder) {
608 // Shufflevectors can only be created for fixed-width vectors.
609 Value *X = ExtElt->getVectorOperand();
610 if (!isa<FixedVectorType>(X->getType()))
611 return nullptr;
612
613 // If the extract can be constant-folded, this code is unsimplified. Defer
614 // to other passes to handle that.
615 Value *C = ExtElt->getIndexOperand();
616 assert(isa<ConstantInt>(C) && "Expected a constant index operand");
617 if (isa<Constant>(X))
618 return nullptr;
619
620 Value *Shuf = createShiftShuffle(X, cast<ConstantInt>(C)->getZExtValue(),
621 NewIndex, Builder);
622 return Shuf;
623}
624
625/// Try to reduce extract element costs by converting scalar compares to vector
626/// compares followed by extract.
627/// cmp (ext0 V0, ExtIndex), (ext1 V1, ExtIndex)
628Value *VectorCombine::foldExtExtCmp(Value *V0, Value *V1, Value *ExtIndex,
629 Instruction &I) {
630 assert(isa<CmpInst>(&I) && "Expected a compare");
631
632 // cmp Pred (extelt V0, ExtIndex), (extelt V1, ExtIndex)
633 // --> extelt (cmp Pred V0, V1), ExtIndex
634 ++NumVecCmp;
635 CmpInst::Predicate Pred = cast<CmpInst>(&I)->getPredicate();
636 Value *VecCmp = Builder.CreateCmp(Pred, V0, V1);
637 return Builder.CreateExtractElement(VecCmp, ExtIndex, "foldExtExtCmp");
638}
639
640/// Try to reduce extract element costs by converting scalar binops to vector
641/// binops followed by extract.
642/// bo (ext0 V0, ExtIndex), (ext1 V1, ExtIndex)
643Value *VectorCombine::foldExtExtBinop(Value *V0, Value *V1, Value *ExtIndex,
644 Instruction &I) {
645 assert(isa<BinaryOperator>(&I) && "Expected a binary operator");
646
647 // bo (extelt V0, ExtIndex), (extelt V1, ExtIndex)
648 // --> extelt (bo V0, V1), ExtIndex
649 ++NumVecBO;
650 Value *VecBO = Builder.CreateBinOp(cast<BinaryOperator>(&I)->getOpcode(), V0,
651 V1, "foldExtExtBinop");
652
653 // All IR flags are safe to back-propagate because any potential poison
654 // created in unused vector elements is discarded by the extract.
655 if (auto *VecBOInst = dyn_cast<Instruction>(VecBO))
656 VecBOInst->copyIRFlags(&I);
657
658 return Builder.CreateExtractElement(VecBO, ExtIndex, "foldExtExtBinop");
659}
660
661/// Match an instruction with extracted vector operands.
662bool VectorCombine::foldExtractExtract(Instruction &I) {
663 // It is not safe to transform things like div, urem, etc. because we may
664 // create undefined behavior when executing those on unknown vector elements.
666 return false;
667
668 Instruction *I0, *I1;
669 CmpPredicate Pred = CmpInst::BAD_ICMP_PREDICATE;
670 if (!match(&I, m_Cmp(Pred, m_Instruction(I0), m_Instruction(I1))) &&
672 return false;
673
674 Value *V0, *V1;
675 uint64_t C0, C1;
676 if (!match(I0, m_ExtractElt(m_Value(V0), m_ConstantInt(C0))) ||
678 V0->getType() != V1->getType())
679 return false;
680
681 // For fixed-width vectors, reject out-of-bounds extract indexes
682 if (auto *FixedVecTy = dyn_cast<FixedVectorType>(V0->getType())) {
683 unsigned NumElts = FixedVecTy->getNumElements();
684 if (C0 >= NumElts || C1 >= NumElts)
685 return false;
686 }
687
688 // If the scalar value 'I' is going to be re-inserted into a vector, then try
689 // to create an extract to that same element. The extract/insert can be
690 // reduced to a "select shuffle".
691 // TODO: If we add a larger pattern match that starts from an insert, this
692 // probably becomes unnecessary.
693 auto *Ext0 = cast<ExtractElementInst>(I0);
694 auto *Ext1 = cast<ExtractElementInst>(I1);
695 uint64_t InsertIndex = InvalidIndex;
696 if (I.hasOneUse())
697 match(I.user_back(),
698 m_InsertElt(m_Value(), m_Value(), m_ConstantInt(InsertIndex)));
699
700 ExtractElementInst *ExtractToChange;
701 if (isExtractExtractCheap(Ext0, Ext1, I, ExtractToChange, InsertIndex))
702 return false;
703
704 Value *ExtOp0 = Ext0->getVectorOperand();
705 Value *ExtOp1 = Ext1->getVectorOperand();
706
707 if (ExtractToChange) {
708 unsigned CheapExtractIdx = ExtractToChange == Ext0 ? C1 : C0;
709 Value *NewExtOp =
710 translateExtract(ExtractToChange, CheapExtractIdx, Builder);
711 if (!NewExtOp)
712 return false;
713 if (ExtractToChange == Ext0)
714 ExtOp0 = NewExtOp;
715 else
716 ExtOp1 = NewExtOp;
717 }
718
719 Value *ExtIndex = ExtractToChange == Ext0 ? Ext1->getIndexOperand()
720 : Ext0->getIndexOperand();
721 Value *NewExt = Pred != CmpInst::BAD_ICMP_PREDICATE
722 ? foldExtExtCmp(ExtOp0, ExtOp1, ExtIndex, I)
723 : foldExtExtBinop(ExtOp0, ExtOp1, ExtIndex, I);
724 Worklist.push(Ext0);
725 Worklist.push(Ext1);
726 replaceValue(I, *NewExt);
727 return true;
728}
729
730/// Try to replace an extract + scalar fneg + insert with a vector fneg +
731/// shuffle.
732bool VectorCombine::foldInsExtFNeg(Instruction &I) {
733 // Match an insert (op (extract)) pattern.
734 Value *DstVec;
735 uint64_t ExtIdx, InsIdx;
736 Instruction *FNeg;
737 if (!match(&I, m_InsertElt(m_Value(DstVec), m_OneUse(m_Instruction(FNeg)),
738 m_ConstantInt(InsIdx))))
739 return false;
740
741 // Note: This handles the canonical fneg instruction and "fsub -0.0, X".
742 Value *SrcVec;
743 Instruction *Extract;
744 if (!match(FNeg, m_FNeg(m_CombineAnd(
745 m_Instruction(Extract),
746 m_ExtractElt(m_Value(SrcVec), m_ConstantInt(ExtIdx))))))
747 return false;
748
749 auto *DstVecTy = cast<FixedVectorType>(DstVec->getType());
750 auto *DstVecScalarTy = DstVecTy->getScalarType();
751 auto *SrcVecTy = dyn_cast<FixedVectorType>(SrcVec->getType());
752 if (!SrcVecTy || DstVecScalarTy != SrcVecTy->getScalarType())
753 return false;
754
755 // Ignore if insert/extract index is out of bounds or destination vector has
756 // one element
757 unsigned NumDstElts = DstVecTy->getNumElements();
758 unsigned NumSrcElts = SrcVecTy->getNumElements();
759 if (ExtIdx > NumSrcElts || InsIdx >= NumDstElts || NumDstElts == 1)
760 return false;
761
762 // We are inserting the negated element into the same lane that we extracted
763 // from. This is equivalent to a select-shuffle that chooses all but the
764 // negated element from the destination vector.
765 SmallVector<int> Mask(NumDstElts);
766 std::iota(Mask.begin(), Mask.end(), 0);
767 Mask[InsIdx] = (ExtIdx % NumDstElts) + NumDstElts;
768 InstructionCost OldCost =
769 TTI.getArithmeticInstrCost(Instruction::FNeg, DstVecScalarTy, CostKind) +
770 TTI.getVectorInstrCost(I, DstVecTy, CostKind, InsIdx);
771
772 // If the extract has one use, it will be eliminated, so count it in the
773 // original cost. If it has more than one use, ignore the cost because it will
774 // be the same before/after.
775 if (Extract->hasOneUse())
776 OldCost += TTI.getVectorInstrCost(*Extract, SrcVecTy, CostKind, ExtIdx);
777
778 InstructionCost NewCost =
779 TTI.getArithmeticInstrCost(Instruction::FNeg, SrcVecTy, CostKind) +
781 DstVecTy, CostKind, Mask);
782
783 bool NeedLenChg = SrcVecTy->getNumElements() != NumDstElts;
784 // If the lengths of the two vectors are not equal,
785 // we need to add a length-change vector. Add this cost.
786 SmallVector<int> SrcMask;
787 if (NeedLenChg) {
788 SrcMask.assign(NumDstElts, PoisonMaskElem);
789 SrcMask[ExtIdx % NumDstElts] = ExtIdx;
791 DstVecTy, SrcVecTy, CostKind, SrcMask);
792 }
793
794 LLVM_DEBUG(dbgs() << "Found an insertion of (extract)fneg : " << I
795 << "\n OldCost: " << OldCost << " vs NewCost: " << NewCost
796 << "\n");
797 if (NewCost > OldCost)
798 return false;
799
800 Value *NewShuf, *LenChgShuf = nullptr;
801 // insertelt DstVec, (fneg (extractelt SrcVec, Index)), Index
802 Value *VecFNeg = Builder.CreateFNegFMF(SrcVec, FNeg);
803 if (NeedLenChg) {
804 // shuffle DstVec, (shuffle (fneg SrcVec), poison, SrcMask), Mask
805 LenChgShuf = Builder.CreateShuffleVector(VecFNeg, SrcMask);
806 NewShuf = Builder.CreateShuffleVector(DstVec, LenChgShuf, Mask);
807 Worklist.pushValue(LenChgShuf);
808 } else {
809 // shuffle DstVec, (fneg SrcVec), Mask
810 NewShuf = Builder.CreateShuffleVector(DstVec, VecFNeg, Mask);
811 }
812
813 Worklist.pushValue(VecFNeg);
814 replaceValue(I, *NewShuf);
815 return true;
816}
817
818/// Try to fold insert(binop(x,y),binop(a,b),idx)
819/// --> binop(insert(x,a,idx),insert(y,b,idx))
820bool VectorCombine::foldInsExtBinop(Instruction &I) {
821 BinaryOperator *VecBinOp, *SclBinOp;
823 if (!match(&I,
824 m_InsertElt(m_OneUse(m_BinOp(VecBinOp)),
825 m_OneUse(m_BinOp(SclBinOp)), m_ConstantInt(Index))))
826 return false;
827
828 // TODO: Add support for addlike etc.
829 Instruction::BinaryOps BinOpcode = VecBinOp->getOpcode();
830 if (BinOpcode != SclBinOp->getOpcode())
831 return false;
832
833 auto *ResultTy = dyn_cast<FixedVectorType>(I.getType());
834 if (!ResultTy)
835 return false;
836
837 // TODO: Attempt to detect m_ExtractElt for scalar operands and convert to
838 // shuffle?
839
841 TTI.getInstructionCost(VecBinOp, CostKind) +
843 InstructionCost NewCost =
844 TTI.getArithmeticInstrCost(BinOpcode, ResultTy, CostKind) +
845 TTI.getVectorInstrCost(Instruction::InsertElement, ResultTy, CostKind,
846 Index, VecBinOp->getOperand(0),
847 SclBinOp->getOperand(0)) +
848 TTI.getVectorInstrCost(Instruction::InsertElement, ResultTy, CostKind,
849 Index, VecBinOp->getOperand(1),
850 SclBinOp->getOperand(1));
851
852 LLVM_DEBUG(dbgs() << "Found an insertion of two binops: " << I
853 << "\n OldCost: " << OldCost << " vs NewCost: " << NewCost
854 << "\n");
855 if (NewCost > OldCost)
856 return false;
857
858 Value *NewIns0 = Builder.CreateInsertElement(VecBinOp->getOperand(0),
859 SclBinOp->getOperand(0), Index);
860 Value *NewIns1 = Builder.CreateInsertElement(VecBinOp->getOperand(1),
861 SclBinOp->getOperand(1), Index);
862 Value *NewBO = Builder.CreateBinOp(BinOpcode, NewIns0, NewIns1);
863
864 // Intersect flags from the old binops.
865 if (auto *NewInst = dyn_cast<Instruction>(NewBO)) {
866 NewInst->copyIRFlags(VecBinOp);
867 NewInst->andIRFlags(SclBinOp);
868 }
869
870 Worklist.pushValue(NewIns0);
871 Worklist.pushValue(NewIns1);
872 replaceValue(I, *NewBO);
873 return true;
874}
875
876/// Match: bitop(castop(x), castop(y)) -> castop(bitop(x, y))
877/// Supports: bitcast, trunc, sext, zext
878bool VectorCombine::foldBitOpOfCastops(Instruction &I) {
879 // Check if this is a bitwise logic operation
880 auto *BinOp = dyn_cast<BinaryOperator>(&I);
881 if (!BinOp || !BinOp->isBitwiseLogicOp())
882 return false;
883
884 // Get the cast instructions
885 auto *LHSCast = dyn_cast<CastInst>(BinOp->getOperand(0));
886 auto *RHSCast = dyn_cast<CastInst>(BinOp->getOperand(1));
887 if (!LHSCast || !RHSCast) {
888 LLVM_DEBUG(dbgs() << " One or both operands are not cast instructions\n");
889 return false;
890 }
891
892 // Both casts must be the same type
893 Instruction::CastOps CastOpcode = LHSCast->getOpcode();
894 if (CastOpcode != RHSCast->getOpcode())
895 return false;
896
897 // Only handle supported cast operations
898 switch (CastOpcode) {
899 case Instruction::BitCast:
900 case Instruction::Trunc:
901 case Instruction::SExt:
902 case Instruction::ZExt:
903 break;
904 default:
905 return false;
906 }
907
908 Value *LHSSrc = LHSCast->getOperand(0);
909 Value *RHSSrc = RHSCast->getOperand(0);
910
911 // Source types must match
912 if (LHSSrc->getType() != RHSSrc->getType())
913 return false;
914
915 auto *SrcTy = LHSSrc->getType();
916 auto *DstTy = I.getType();
917 // Bitcasts can handle scalar/vector mixes, such as i16 -> <16 x i1>.
918 // Other casts only handle vector types with integer elements.
919 if (CastOpcode != Instruction::BitCast &&
920 (!isa<FixedVectorType>(SrcTy) || !isa<FixedVectorType>(DstTy)))
921 return false;
922
923 // Only integer scalar/vector values are legal for bitwise logic operations.
924 if (!SrcTy->getScalarType()->isIntegerTy() ||
925 !DstTy->getScalarType()->isIntegerTy())
926 return false;
927
928 // Cost Check :
929 // OldCost = bitlogic + 2*casts
930 // NewCost = bitlogic + cast
931
932 // Calculate specific costs for each cast with instruction context
934 CastOpcode, DstTy, SrcTy, TTI::CastContextHint::None, CostKind, LHSCast);
936 CastOpcode, DstTy, SrcTy, TTI::CastContextHint::None, CostKind, RHSCast);
937
938 InstructionCost OldCost =
939 TTI.getArithmeticInstrCost(BinOp->getOpcode(), DstTy, CostKind) +
940 LHSCastCost + RHSCastCost;
941
942 // For new cost, we can't provide an instruction (it doesn't exist yet)
943 InstructionCost GenericCastCost = TTI.getCastInstrCost(
944 CastOpcode, DstTy, SrcTy, TTI::CastContextHint::None, CostKind);
945
946 InstructionCost NewCost =
947 TTI.getArithmeticInstrCost(BinOp->getOpcode(), SrcTy, CostKind) +
948 GenericCastCost;
949
950 // Account for multi-use casts using specific costs
951 if (!LHSCast->hasOneUse())
952 NewCost += LHSCastCost;
953 if (!RHSCast->hasOneUse())
954 NewCost += RHSCastCost;
955
956 LLVM_DEBUG(dbgs() << "foldBitOpOfCastops: OldCost=" << OldCost
957 << " NewCost=" << NewCost << "\n");
958
959 if (NewCost > OldCost)
960 return false;
961
962 // Create the operation on the source type
963 Value *NewOp = Builder.CreateBinOp(BinOp->getOpcode(), LHSSrc, RHSSrc,
964 BinOp->getName() + ".inner");
965 if (auto *NewBinOp = dyn_cast<BinaryOperator>(NewOp))
966 NewBinOp->copyIRFlags(BinOp);
967
968 Worklist.pushValue(NewOp);
969
970 // Create the cast operation directly to ensure we get a new instruction
971 Instruction *NewCast = CastInst::Create(CastOpcode, NewOp, I.getType());
972
973 // Preserve cast instruction flags
974 NewCast->copyIRFlags(LHSCast);
975 NewCast->andIRFlags(RHSCast);
976
977 // Insert the new instruction
978 Value *Result = Builder.Insert(NewCast);
979
980 replaceValue(I, *Result);
981 return true;
982}
983
984/// Match:
985// bitop(castop(x), C) ->
986// bitop(castop(x), castop(InvC)) ->
987// castop(bitop(x, InvC))
988// Supports: bitcast
989bool VectorCombine::foldBitOpOfCastConstant(Instruction &I) {
991 Constant *C;
992
993 // Check if this is a bitwise logic operation
995 return false;
996
997 // Get the cast instructions
998 auto *LHSCast = dyn_cast<CastInst>(LHS);
999 if (!LHSCast)
1000 return false;
1001
1002 Instruction::CastOps CastOpcode = LHSCast->getOpcode();
1003
1004 // Only handle supported cast operations
1005 switch (CastOpcode) {
1006 case Instruction::BitCast:
1007 case Instruction::ZExt:
1008 case Instruction::SExt:
1009 case Instruction::Trunc:
1010 break;
1011 default:
1012 return false;
1013 }
1014
1015 Value *LHSSrc = LHSCast->getOperand(0);
1016
1017 auto *SrcTy = LHSSrc->getType();
1018 auto *DstTy = I.getType();
1019 // Bitcasts can handle scalar/vector mixes, such as i16 -> <16 x i1>.
1020 // Other casts only handle vector types with integer elements.
1021 if (CastOpcode != Instruction::BitCast &&
1022 (!isa<FixedVectorType>(SrcTy) || !isa<FixedVectorType>(DstTy)))
1023 return false;
1024
1025 // Only integer scalar/vector values are legal for bitwise logic operations.
1026 if (!SrcTy->getScalarType()->isIntegerTy() ||
1027 !DstTy->getScalarType()->isIntegerTy())
1028 return false;
1029
1030 // Find the constant InvC, such that castop(InvC) equals to C.
1031 PreservedCastFlags RHSFlags;
1032 Constant *InvC = getLosslessInvCast(C, SrcTy, CastOpcode, *DL, &RHSFlags);
1033 if (!InvC)
1034 return false;
1035
1036 // Cost Check :
1037 // OldCost = bitlogic + cast
1038 // NewCost = bitlogic + cast
1039
1040 // Calculate specific costs for each cast with instruction context
1041 InstructionCost LHSCastCost = TTI.getCastInstrCost(
1042 CastOpcode, DstTy, SrcTy, TTI::CastContextHint::None, CostKind, LHSCast);
1043
1044 InstructionCost OldCost =
1045 TTI.getArithmeticInstrCost(I.getOpcode(), DstTy, CostKind) + LHSCastCost;
1046
1047 // For new cost, we can't provide an instruction (it doesn't exist yet)
1048 InstructionCost GenericCastCost = TTI.getCastInstrCost(
1049 CastOpcode, DstTy, SrcTy, TTI::CastContextHint::None, CostKind);
1050
1051 InstructionCost NewCost =
1052 TTI.getArithmeticInstrCost(I.getOpcode(), SrcTy, CostKind) +
1053 GenericCastCost;
1054
1055 // Account for multi-use casts using specific costs
1056 if (!LHSCast->hasOneUse())
1057 NewCost += LHSCastCost;
1058
1059 LLVM_DEBUG(dbgs() << "foldBitOpOfCastConstant: OldCost=" << OldCost
1060 << " NewCost=" << NewCost << "\n");
1061
1062 if (NewCost > OldCost)
1063 return false;
1064
1065 // Create the operation on the source type
1066 Value *NewOp = Builder.CreateBinOp((Instruction::BinaryOps)I.getOpcode(),
1067 LHSSrc, InvC, I.getName() + ".inner");
1068 if (auto *NewBinOp = dyn_cast<BinaryOperator>(NewOp))
1069 NewBinOp->copyIRFlags(&I);
1070
1071 Worklist.pushValue(NewOp);
1072
1073 // Create the cast operation directly to ensure we get a new instruction
1074 Instruction *NewCast = CastInst::Create(CastOpcode, NewOp, I.getType());
1075
1076 // Preserve cast instruction flags
1077 if (RHSFlags.NNeg)
1078 NewCast->setNonNeg();
1079 if (RHSFlags.NUW)
1080 NewCast->setHasNoUnsignedWrap();
1081 if (RHSFlags.NSW)
1082 NewCast->setHasNoSignedWrap();
1083
1084 NewCast->andIRFlags(LHSCast);
1085
1086 // Insert the new instruction
1087 Value *Result = Builder.Insert(NewCast);
1088
1089 replaceValue(I, *Result);
1090 return true;
1091}
1092
1093/// If this is a bitcast of a shuffle, try to bitcast the source vector to the
1094/// destination type followed by shuffle. This can enable further transforms by
1095/// moving bitcasts or shuffles together.
1096bool VectorCombine::foldBitcastShuffle(Instruction &I) {
1097 Value *V0, *V1;
1098 ArrayRef<int> Mask;
1099 if (!match(&I, m_BitCast(m_OneUse(
1100 m_Shuffle(m_Value(V0), m_Value(V1), m_Mask(Mask))))))
1101 return false;
1102
1103 // 1) Do not fold bitcast shuffle for scalable type. First, shuffle cost for
1104 // scalable type is unknown; Second, we cannot reason if the narrowed shuffle
1105 // mask for scalable type is a splat or not.
1106 // 2) Disallow non-vector casts.
1107 // TODO: We could allow any shuffle.
1108 auto *DestTy = dyn_cast<FixedVectorType>(I.getType());
1109 auto *SrcTy = dyn_cast<FixedVectorType>(V0->getType());
1110 if (!DestTy || !SrcTy)
1111 return false;
1112
1113 unsigned DestEltSize = DestTy->getScalarSizeInBits();
1114 unsigned SrcEltSize = SrcTy->getScalarSizeInBits();
1115 if (SrcTy->getPrimitiveSizeInBits() % DestEltSize != 0)
1116 return false;
1117
1118 bool IsUnary = isa<UndefValue>(V1);
1119
1120 // For binary shuffles, only fold bitcast(shuffle(X,Y))
1121 // if it won't increase the number of bitcasts.
1122 if (!IsUnary) {
1125 if (!(BCTy0 && BCTy0->getElementType() == DestTy->getElementType()) &&
1126 !(BCTy1 && BCTy1->getElementType() == DestTy->getElementType()))
1127 return false;
1128 }
1129
1130 SmallVector<int, 16> NewMask;
1131 if (DestEltSize <= SrcEltSize) {
1132 // The bitcast is from wide to narrow/equal elements. The shuffle mask can
1133 // always be expanded to the equivalent form choosing narrower elements.
1134 if (SrcEltSize % DestEltSize != 0)
1135 return false;
1136 unsigned ScaleFactor = SrcEltSize / DestEltSize;
1137 narrowShuffleMaskElts(ScaleFactor, Mask, NewMask);
1138 } else {
1139 // The bitcast is from narrow elements to wide elements. The shuffle mask
1140 // must choose consecutive elements to allow casting first.
1141 if (DestEltSize % SrcEltSize != 0)
1142 return false;
1143 unsigned ScaleFactor = DestEltSize / SrcEltSize;
1144 if (!widenShuffleMaskElts(ScaleFactor, Mask, NewMask))
1145 return false;
1146 }
1147
1148 // Bitcast the shuffle src - keep its original width but using the destination
1149 // scalar type.
1150 unsigned NumSrcElts = SrcTy->getPrimitiveSizeInBits() / DestEltSize;
1151 auto *NewShuffleTy =
1152 FixedVectorType::get(DestTy->getScalarType(), NumSrcElts);
1153 auto *OldShuffleTy =
1154 FixedVectorType::get(SrcTy->getScalarType(), Mask.size());
1155 unsigned NumOps = IsUnary ? 1 : 2;
1156
1157 // The new shuffle must not cost more than the old shuffle.
1161
1162 InstructionCost NewCost =
1163 TTI.getShuffleCost(SK, DestTy, NewShuffleTy, CostKind, NewMask) +
1164 (NumOps * TTI.getCastInstrCost(Instruction::BitCast, NewShuffleTy, SrcTy,
1165 TargetTransformInfo::CastContextHint::None,
1166 CostKind));
1167 InstructionCost OldCost =
1168 TTI.getShuffleCost(SK, OldShuffleTy, SrcTy, CostKind, Mask) +
1169 TTI.getCastInstrCost(Instruction::BitCast, DestTy, OldShuffleTy,
1170 TargetTransformInfo::CastContextHint::None,
1171 CostKind);
1172
1173 LLVM_DEBUG(dbgs() << "Found a bitcasted shuffle: " << I << "\n OldCost: "
1174 << OldCost << " vs NewCost: " << NewCost << "\n");
1175
1176 if (NewCost > OldCost || !NewCost.isValid())
1177 return false;
1178
1179 // bitcast (shuf V0, V1, MaskC) --> shuf (bitcast V0), (bitcast V1), MaskC'
1180 ++NumShufOfBitcast;
1181 Value *CastV0 = Builder.CreateBitCast(peekThroughBitcasts(V0), NewShuffleTy);
1182 Value *CastV1 = Builder.CreateBitCast(peekThroughBitcasts(V1), NewShuffleTy);
1183 Value *Shuf = Builder.CreateShuffleVector(CastV0, CastV1, NewMask);
1184 replaceValue(I, *Shuf);
1185 return true;
1186}
1187
1188/// Match a vector op/compare/intrinsic with at least one
1189/// inserted scalar operand and convert to scalar op/cmp/intrinsic followed
1190/// by insertelement.
1191bool VectorCombine::scalarizeOpOrCmp(Instruction &I) {
1192 auto *UO = dyn_cast<UnaryOperator>(&I);
1193 auto *BO = dyn_cast<BinaryOperator>(&I);
1194 auto *CI = dyn_cast<CmpInst>(&I);
1195 auto *II = dyn_cast<IntrinsicInst>(&I);
1196 if (!UO && !BO && !CI && !II)
1197 return false;
1198
1199 // TODO: Allow intrinsics with different argument types
1200 if (II) {
1201 if (!isTriviallyVectorizable(II->getIntrinsicID()))
1202 return false;
1203 for (auto [Idx, Arg] : enumerate(II->args()))
1204 if (Arg->getType() != II->getType() &&
1205 !isVectorIntrinsicWithScalarOpAtArg(II->getIntrinsicID(), Idx, &TTI))
1206 return false;
1207 }
1208
1209 // Do not convert the vector condition of a vector select into a scalar
1210 // condition. That may cause problems for codegen because of differences in
1211 // boolean formats and register-file transfers.
1212 // TODO: Can we account for that in the cost model?
1213 if (CI)
1214 for (User *U : I.users())
1215 if (match(U, m_Select(m_Specific(&I), m_Value(), m_Value())))
1216 return false;
1217
1218 // Match constant vectors or scalars being inserted into constant vectors:
1219 // vec_op [VecC0 | (inselt VecC0, V0, Index)], ...
1220 SmallVector<Value *> VecCs, ScalarOps;
1221 std::optional<uint64_t> Index;
1222
1223 auto Ops = II ? II->args() : I.operands();
1224 for (auto [OpNum, Op] : enumerate(Ops)) {
1225 Constant *VecC;
1226 Value *V;
1227 uint64_t InsIdx = 0;
1228 if (match(Op.get(), m_InsertElt(m_Constant(VecC), m_Value(V),
1229 m_ConstantInt(InsIdx)))) {
1230 // Bail if any inserts are out of bounds.
1231 VectorType *OpTy = cast<VectorType>(Op->getType());
1232 if (OpTy->getElementCount().getKnownMinValue() <= InsIdx)
1233 return false;
1234 // All inserts must have the same index.
1235 // TODO: Deal with mismatched index constants and variable indexes?
1236 if (!Index)
1237 Index = InsIdx;
1238 else if (InsIdx != *Index)
1239 return false;
1240 VecCs.push_back(VecC);
1241 ScalarOps.push_back(V);
1242 } else if (II && isVectorIntrinsicWithScalarOpAtArg(II->getIntrinsicID(),
1243 OpNum, &TTI)) {
1244 VecCs.push_back(Op.get());
1245 ScalarOps.push_back(Op.get());
1246 } else if (match(Op.get(), m_Constant(VecC))) {
1247 VecCs.push_back(VecC);
1248 ScalarOps.push_back(nullptr);
1249 } else {
1250 return false;
1251 }
1252 }
1253
1254 // Bail if all operands are constant.
1255 if (!Index.has_value())
1256 return false;
1257
1258 VectorType *VecTy = cast<VectorType>(I.getType());
1259 Type *ScalarTy = VecTy->getScalarType();
1260 assert(VecTy->isVectorTy() &&
1261 (ScalarTy->isIntegerTy() || ScalarTy->isFloatingPointTy() ||
1262 ScalarTy->isPointerTy()) &&
1263 "Unexpected types for insert element into binop or cmp");
1264
1265 unsigned Opcode = I.getOpcode();
1266 InstructionCost ScalarOpCost, VectorOpCost;
1267 if (CI) {
1268 CmpInst::Predicate Pred = CI->getPredicate();
1269 ScalarOpCost = TTI.getCmpSelInstrCost(
1270 Opcode, ScalarTy, CmpInst::makeCmpResultType(ScalarTy), Pred, CostKind);
1271 VectorOpCost = TTI.getCmpSelInstrCost(
1272 Opcode, VecTy, CmpInst::makeCmpResultType(VecTy), Pred, CostKind);
1273 } else if (UO || BO) {
1274 ScalarOpCost = TTI.getArithmeticInstrCost(Opcode, ScalarTy, CostKind);
1275 VectorOpCost = TTI.getArithmeticInstrCost(Opcode, VecTy, CostKind);
1276 } else {
1277 IntrinsicCostAttributes ScalarICA(
1278 II->getIntrinsicID(), ScalarTy,
1279 SmallVector<Type *>(II->arg_size(), ScalarTy));
1280 ScalarOpCost = TTI.getIntrinsicInstrCost(ScalarICA, CostKind);
1281 IntrinsicCostAttributes VectorICA(
1282 II->getIntrinsicID(), VecTy,
1283 SmallVector<Type *>(II->arg_size(), VecTy));
1284 VectorOpCost = TTI.getIntrinsicInstrCost(VectorICA, CostKind);
1285 }
1286
1287 // Fold the vector constants in the original vectors into a new base vector to
1288 // get more accurate cost modelling.
1289 Value *NewVecC = nullptr;
1290 if (CI)
1291 NewVecC = simplifyCmpInst(CI->getPredicate(), VecCs[0], VecCs[1], SQ);
1292 else if (UO)
1293 NewVecC =
1294 simplifyUnOp(UO->getOpcode(), VecCs[0], UO->getFastMathFlags(), SQ);
1295 else if (BO)
1296 NewVecC = simplifyBinOp(BO->getOpcode(), VecCs[0], VecCs[1], SQ);
1297 else if (II)
1298 NewVecC = simplifyCall(II, II->getCalledOperand(), VecCs, SQ);
1299
1300 if (!NewVecC)
1301 return false;
1302
1303 // Get cost estimate for the insert element. This cost will factor into
1304 // both sequences.
1305 InstructionCost OldCost = VectorOpCost;
1306 InstructionCost NewCost =
1307 ScalarOpCost + TTI.getVectorInstrCost(Instruction::InsertElement, VecTy,
1308 CostKind, *Index, NewVecC);
1309
1310 for (auto [Idx, Op, VecC, Scalar] : enumerate(Ops, VecCs, ScalarOps)) {
1311 if (!Scalar || (II && isVectorIntrinsicWithScalarOpAtArg(
1312 II->getIntrinsicID(), Idx, &TTI)))
1313 continue;
1315 Instruction::InsertElement, VecTy, CostKind, *Index, VecC, Scalar);
1316 OldCost += InsertCost;
1317 NewCost += !Op->hasOneUse() * InsertCost;
1318 }
1319
1320 // We want to scalarize unless the vector variant actually has lower cost.
1321 if (OldCost < NewCost || !NewCost.isValid())
1322 return false;
1323
1324 // vec_op (inselt VecC0, V0, Index), (inselt VecC1, V1, Index) -->
1325 // inselt NewVecC, (scalar_op V0, V1), Index
1326 if (CI)
1327 ++NumScalarCmp;
1328 else if (UO || BO)
1329 ++NumScalarOps;
1330 else
1331 ++NumScalarIntrinsic;
1332
1333 // For constant cases, extract the scalar element, this should constant fold.
1334 for (auto [OpIdx, Scalar, VecC] : enumerate(ScalarOps, VecCs))
1335 if (!Scalar)
1336 ScalarOps[OpIdx] = ConstantExpr::getExtractElement(
1337 cast<Constant>(VecC), Builder.getInt64(*Index));
1338
1339 Value *Scalar;
1340 if (CI)
1341 Scalar = Builder.CreateCmp(CI->getPredicate(), ScalarOps[0], ScalarOps[1]);
1342 else if (UO || BO)
1343 Scalar = Builder.CreateNAryOp(Opcode, ScalarOps);
1344 else
1345 Scalar = Builder.CreateIntrinsic(ScalarTy, II->getIntrinsicID(), ScalarOps);
1346
1347 Scalar->setName(I.getName() + ".scalar");
1348
1349 // All IR flags are safe to back-propagate. There is no potential for extra
1350 // poison to be created by the scalar instruction.
1351 if (auto *ScalarInst = dyn_cast<Instruction>(Scalar))
1352 ScalarInst->copyIRFlags(&I);
1353
1354 Value *Insert = Builder.CreateInsertElement(NewVecC, Scalar, *Index);
1355 replaceValue(I, *Insert);
1356 return true;
1357}
1358
1359/// Try to combine a scalar binop + 2 scalar compares of extracted elements of
1360/// a vector into vector operations followed by extract. Note: The SLP pass
1361/// may miss this pattern because of implementation problems.
1362bool VectorCombine::foldExtractedCmps(Instruction &I) {
1363 auto *BI = dyn_cast<BinaryOperator>(&I);
1364
1365 // We are looking for a scalar binop of booleans.
1366 // binop i1 (cmp Pred I0, C0), (cmp Pred I1, C1)
1367 if (!BI || !I.getType()->isIntegerTy(1))
1368 return false;
1369
1370 // The compare predicates should match, and each compare should have a
1371 // constant operand.
1372 Value *B0 = I.getOperand(0), *B1 = I.getOperand(1);
1373 Instruction *I0, *I1;
1374 Constant *C0, *C1;
1375 CmpPredicate P0, P1;
1376 if (!match(B0, m_Cmp(P0, m_Instruction(I0), m_Constant(C0))) ||
1377 !match(B1, m_Cmp(P1, m_Instruction(I1), m_Constant(C1))))
1378 return false;
1379
1380 auto MatchingPred = CmpPredicate::getMatching(P0, P1);
1381 if (!MatchingPred)
1382 return false;
1383
1384 // The compare operands must be extracts of the same vector with constant
1385 // extract indexes.
1386 Value *X;
1387 uint64_t Index0, Index1;
1388 if (!match(I0, m_ExtractElt(m_Value(X), m_ConstantInt(Index0))) ||
1389 !match(I1, m_ExtractElt(m_Specific(X), m_ConstantInt(Index1))))
1390 return false;
1391
1392 auto *Ext0 = cast<ExtractElementInst>(I0);
1393 auto *Ext1 = cast<ExtractElementInst>(I1);
1394 ExtractElementInst *ConvertToShuf = getShuffleExtract(Ext0, Ext1, CostKind);
1395 if (!ConvertToShuf)
1396 return false;
1397 assert((ConvertToShuf == Ext0 || ConvertToShuf == Ext1) &&
1398 "Unknown ExtractElementInst");
1399
1400 // The original scalar pattern is:
1401 // binop i1 (cmp Pred (ext X, Index0), C0), (cmp Pred (ext X, Index1), C1)
1402 CmpInst::Predicate Pred = *MatchingPred;
1403 unsigned CmpOpcode =
1404 CmpInst::isFPPredicate(Pred) ? Instruction::FCmp : Instruction::ICmp;
1405 auto *VecTy = dyn_cast<FixedVectorType>(X->getType());
1406 if (!VecTy)
1407 return false;
1408
1409 if (Index0 >= VecTy->getNumElements() || Index1 >= VecTy->getNumElements())
1410 return false;
1411
1412 InstructionCost Ext0Cost =
1413 TTI.getVectorInstrCost(*Ext0, VecTy, CostKind, Index0);
1414 InstructionCost Ext1Cost =
1415 TTI.getVectorInstrCost(*Ext1, VecTy, CostKind, Index1);
1417 CmpOpcode, I0->getType(), CmpInst::makeCmpResultType(I0->getType()), Pred,
1418 CostKind);
1419
1420 InstructionCost OldCost =
1421 Ext0Cost + Ext1Cost + CmpCost * 2 +
1422 TTI.getArithmeticInstrCost(I.getOpcode(), I.getType(), CostKind);
1423
1424 // The proposed vector pattern is:
1425 // vcmp = cmp Pred X, VecC
1426 // ext (binop vNi1 vcmp, (shuffle vcmp, Index1)), Index0
1427 int CheapIndex = ConvertToShuf == Ext0 ? Index1 : Index0;
1428 int ExpensiveIndex = ConvertToShuf == Ext0 ? Index0 : Index1;
1431 CmpOpcode, VecTy, CmpInst::makeCmpResultType(VecTy), Pred, CostKind);
1432 SmallVector<int, 32> ShufMask(VecTy->getNumElements(), PoisonMaskElem);
1433 ShufMask[CheapIndex] = ExpensiveIndex;
1435 CmpTy, CostKind, ShufMask);
1436 NewCost += TTI.getArithmeticInstrCost(I.getOpcode(), CmpTy, CostKind);
1437 NewCost += TTI.getVectorInstrCost(*Ext0, CmpTy, CostKind, CheapIndex);
1438 NewCost += Ext0->hasOneUse() ? 0 : Ext0Cost;
1439 NewCost += Ext1->hasOneUse() ? 0 : Ext1Cost;
1440
1441 // Aggressively form vector ops if the cost is equal because the transform
1442 // may enable further optimization.
1443 // Codegen can reverse this transform (scalarize) if it was not profitable.
1444 if (OldCost < NewCost || !NewCost.isValid())
1445 return false;
1446
1447 // Create a vector constant from the 2 scalar constants.
1448 SmallVector<Constant *, 32> CmpC(VecTy->getNumElements(),
1449 PoisonValue::get(VecTy->getElementType()));
1450 CmpC[Index0] = C0;
1451 CmpC[Index1] = C1;
1452 Value *VCmp = Builder.CreateCmp(Pred, X, ConstantVector::get(CmpC));
1453 Value *Shuf = createShiftShuffle(VCmp, ExpensiveIndex, CheapIndex, Builder);
1454 Value *LHS = ConvertToShuf == Ext0 ? Shuf : VCmp;
1455 Value *RHS = ConvertToShuf == Ext0 ? VCmp : Shuf;
1456 Value *VecLogic = Builder.CreateBinOp(BI->getOpcode(), LHS, RHS);
1457 Value *NewExt = Builder.CreateExtractElement(VecLogic, CheapIndex);
1458 replaceValue(I, *NewExt);
1459 ++NumVecCmpBO;
1460 return true;
1461}
1462
1463/// Try to fold scalar selects that select between extracted elements and zero
1464/// into extracting from a vector select. This is rooted at the bitcast.
1465///
1466/// This pattern arises when a vector is bitcast to a smaller element type,
1467/// elements are extracted, and then conditionally selected with zero:
1468///
1469/// %bc = bitcast <4 x i32> %src to <16 x i8>
1470/// %e0 = extractelement <16 x i8> %bc, i32 0
1471/// %s0 = select i1 %cond, i8 %e0, i8 0
1472/// %e1 = extractelement <16 x i8> %bc, i32 1
1473/// %s1 = select i1 %cond, i8 %e1, i8 0
1474/// ...
1475///
1476/// Transforms to:
1477/// %sel = select i1 %cond, <4 x i32> %src, <4 x i32> zeroinitializer
1478/// %bc = bitcast <4 x i32> %sel to <16 x i8>
1479/// %e0 = extractelement <16 x i8> %bc, i32 0
1480/// %e1 = extractelement <16 x i8> %bc, i32 1
1481/// ...
1482///
1483/// This is profitable because vector select on wider types produces fewer
1484/// select/cndmask instructions than scalar selects on each element.
1485bool VectorCombine::foldSelectsFromBitcast(Instruction &I) {
1486 auto *BC = dyn_cast<BitCastInst>(&I);
1487 if (!BC)
1488 return false;
1489
1490 FixedVectorType *SrcVecTy = dyn_cast<FixedVectorType>(BC->getSrcTy());
1491 FixedVectorType *DstVecTy = dyn_cast<FixedVectorType>(BC->getDestTy());
1492 if (!SrcVecTy || !DstVecTy)
1493 return false;
1494
1495 // Source must be 32-bit or 64-bit elements, destination must be smaller
1496 // integer elements. Zero in all these types is all-bits-zero.
1497 Type *SrcEltTy = SrcVecTy->getElementType();
1498 Type *DstEltTy = DstVecTy->getElementType();
1499 unsigned SrcEltBits = SrcEltTy->getPrimitiveSizeInBits();
1500 unsigned DstEltBits = DstEltTy->getPrimitiveSizeInBits();
1501
1502 if (SrcEltBits != 32 && SrcEltBits != 64)
1503 return false;
1504
1505 if (!DstEltTy->isIntegerTy() || DstEltBits >= SrcEltBits)
1506 return false;
1507
1508 // Check profitability using TTI before collecting users.
1509 Type *CondTy = CmpInst::makeCmpResultType(DstEltTy);
1510 Type *VecCondTy = CmpInst::makeCmpResultType(SrcVecTy);
1511
1512 InstructionCost ScalarSelCost =
1513 TTI.getCmpSelInstrCost(Instruction::Select, DstEltTy, CondTy,
1515 InstructionCost VecSelCost =
1516 TTI.getCmpSelInstrCost(Instruction::Select, SrcVecTy, VecCondTy,
1518
1519 // We need at least this many selects for vectorization to be profitable.
1520 // VecSelCost < ScalarSelCost * NumSelects => NumSelects > VecSelCost /
1521 // ScalarSelCost
1522 if (!ScalarSelCost.isValid() || ScalarSelCost == 0)
1523 return false;
1524
1525 unsigned MinSelects = (VecSelCost.getValue() / ScalarSelCost.getValue()) + 1;
1526
1527 // Quick check: if bitcast doesn't have enough users, bail early.
1528 if (!BC->hasNUsesOrMore(MinSelects))
1529 return false;
1530
1531 // Collect all select users that match the pattern, grouped by condition.
1532 // Pattern: select i1 %cond, (extractelement %bc, idx), 0
1533 DenseMap<Value *, SmallVector<SelectInst *, 8>> CondToSelects;
1534
1535 for (User *U : BC->users()) {
1536 auto *Ext = dyn_cast<ExtractElementInst>(U);
1537 if (!Ext)
1538 continue;
1539
1540 for (User *ExtUser : Ext->users()) {
1541 Value *Cond;
1542 // Match: select i1 %cond, %ext, 0
1543 if (match(ExtUser, m_Select(m_Value(Cond), m_Specific(Ext), m_Zero())) &&
1544 Cond->getType()->isIntegerTy(1))
1545 CondToSelects[Cond].push_back(cast<SelectInst>(ExtUser));
1546 }
1547 }
1548
1549 if (CondToSelects.empty())
1550 return false;
1551
1552 bool MadeChange = false;
1553 Value *SrcVec = BC->getOperand(0);
1554
1555 // Process each group of selects with the same condition.
1556 for (auto [Cond, Selects] : CondToSelects) {
1557 // Only profitable if vector select cost < total scalar select cost.
1558 if (Selects.size() < MinSelects) {
1559 LLVM_DEBUG(dbgs() << "VectorCombine: foldSelectsFromBitcast not "
1560 << "profitable (VecCost=" << VecSelCost
1561 << ", ScalarCost=" << ScalarSelCost
1562 << ", NumSelects=" << Selects.size() << ")\n");
1563 continue;
1564 }
1565
1566 // Create the vector select and bitcast once for this condition.
1567 auto InsertPt = std::next(BC->getIterator());
1568
1569 if (auto *CondInst = dyn_cast<Instruction>(Cond))
1570 if (DT.dominates(BC, CondInst))
1571 InsertPt = std::next(CondInst->getIterator());
1572
1573 Builder.SetInsertPoint(InsertPt);
1574 Value *VecSel =
1575 Builder.CreateSelect(Cond, SrcVec, Constant::getNullValue(SrcVecTy));
1576 Value *NewBC = Builder.CreateBitCast(VecSel, DstVecTy);
1577
1578 // Replace each scalar select with an extract from the new bitcast.
1579 for (SelectInst *Sel : Selects) {
1580 auto *Ext = cast<ExtractElementInst>(Sel->getTrueValue());
1581 Value *Idx = Ext->getIndexOperand();
1582
1583 Builder.SetInsertPoint(Sel);
1584 Value *NewExt = Builder.CreateExtractElement(NewBC, Idx);
1585 replaceValue(*Sel, *NewExt);
1586 MadeChange = true;
1587 }
1588
1589 LLVM_DEBUG(dbgs() << "VectorCombine: folded " << Selects.size()
1590 << " selects into vector select\n");
1591 }
1592
1593 return MadeChange;
1594}
1595
1598 const TargetTransformInfo &TTI,
1599 InstructionCost &CostBeforeReduction,
1600 InstructionCost &CostAfterReduction) {
1601 Instruction *Op0, *Op1;
1602 auto *RedOp = dyn_cast<Instruction>(II.getOperand(0));
1603 auto *VecRedTy = cast<VectorType>(II.getOperand(0)->getType());
1604 unsigned ReductionOpc =
1605 getArithmeticReductionInstruction(II.getIntrinsicID());
1606 if (RedOp && match(RedOp, m_ZExtOrSExt(m_Value()))) {
1607 bool IsUnsigned = isa<ZExtInst>(RedOp);
1608 auto *ExtType = cast<VectorType>(RedOp->getOperand(0)->getType());
1609
1610 CostBeforeReduction =
1611 TTI.getCastInstrCost(RedOp->getOpcode(), VecRedTy, ExtType,
1613 CostAfterReduction =
1614 TTI.getExtendedReductionCost(ReductionOpc, IsUnsigned, II.getType(),
1615 ExtType, FastMathFlags(), CostKind);
1616 return;
1617 }
1618 if (RedOp && II.getIntrinsicID() == Intrinsic::vector_reduce_add &&
1619 match(RedOp,
1621 match(Op0, m_ZExtOrSExt(m_Value())) &&
1622 Op0->getOpcode() == Op1->getOpcode() &&
1623 Op0->getOperand(0)->getType() == Op1->getOperand(0)->getType() &&
1624 (Op0->getOpcode() == RedOp->getOpcode() || Op0 == Op1)) {
1625 // Matched reduce.add(ext(mul(ext(A), ext(B)))
1626 bool IsUnsigned = isa<ZExtInst>(Op0);
1627 auto *ExtType = cast<VectorType>(Op0->getOperand(0)->getType());
1628 VectorType *MulType = VectorType::get(Op0->getType(), VecRedTy);
1629
1630 InstructionCost ExtCost =
1631 TTI.getCastInstrCost(Op0->getOpcode(), MulType, ExtType,
1633 InstructionCost MulCost =
1634 TTI.getArithmeticInstrCost(Instruction::Mul, MulType, CostKind);
1635 InstructionCost Ext2Cost =
1636 TTI.getCastInstrCost(RedOp->getOpcode(), VecRedTy, MulType,
1638
1639 CostBeforeReduction = ExtCost * 2 + MulCost + Ext2Cost;
1640 CostAfterReduction = TTI.getMulAccReductionCost(
1641 IsUnsigned, ReductionOpc, II.getType(), ExtType, CostKind);
1642 return;
1643 }
1644 CostAfterReduction = TTI.getArithmeticReductionCost(ReductionOpc, VecRedTy,
1645 std::nullopt, CostKind);
1646}
1647
1648bool VectorCombine::foldBinopOfReductions(Instruction &I) {
1649 Instruction::BinaryOps BinOpOpc = cast<BinaryOperator>(&I)->getOpcode();
1650 Intrinsic::ID ReductionIID = getReductionForBinop(BinOpOpc);
1651 if (BinOpOpc == Instruction::Sub)
1652 ReductionIID = Intrinsic::vector_reduce_add;
1653 if (ReductionIID == Intrinsic::not_intrinsic)
1654 return false;
1655 // FP reductions have a start-value operand that this fold doesn't handle.
1656 if (ReductionIID == Intrinsic::vector_reduce_fadd ||
1657 ReductionIID == Intrinsic::vector_reduce_fmul)
1658 return false;
1659
1660 auto checkIntrinsicAndGetItsArgument = [](Value *V,
1661 Intrinsic::ID IID) -> Value * {
1662 auto *II = dyn_cast<IntrinsicInst>(V);
1663 if (!II)
1664 return nullptr;
1665 if (II->getIntrinsicID() == IID && II->hasOneUse())
1666 return II->getArgOperand(0);
1667 return nullptr;
1668 };
1669
1670 Value *V0 = checkIntrinsicAndGetItsArgument(I.getOperand(0), ReductionIID);
1671 if (!V0)
1672 return false;
1673 Value *V1 = checkIntrinsicAndGetItsArgument(I.getOperand(1), ReductionIID);
1674 if (!V1)
1675 return false;
1676
1677 auto *VTy = cast<VectorType>(V0->getType());
1678 if (V1->getType() != VTy)
1679 return false;
1680 const auto &II0 = *cast<IntrinsicInst>(I.getOperand(0));
1681 const auto &II1 = *cast<IntrinsicInst>(I.getOperand(1));
1682 unsigned ReductionOpc =
1683 getArithmeticReductionInstruction(II0.getIntrinsicID());
1684
1685 InstructionCost OldCost = 0;
1686 InstructionCost NewCost = 0;
1687 InstructionCost CostOfRedOperand0 = 0;
1688 InstructionCost CostOfRed0 = 0;
1689 InstructionCost CostOfRedOperand1 = 0;
1690 InstructionCost CostOfRed1 = 0;
1691 analyzeCostOfVecReduction(II0, CostKind, TTI, CostOfRedOperand0, CostOfRed0);
1692 analyzeCostOfVecReduction(II1, CostKind, TTI, CostOfRedOperand1, CostOfRed1);
1693 OldCost = CostOfRed0 + CostOfRed1 + TTI.getInstructionCost(&I, CostKind);
1694 NewCost =
1695 CostOfRedOperand0 + CostOfRedOperand1 +
1696 TTI.getArithmeticInstrCost(BinOpOpc, VTy, CostKind) +
1697 TTI.getArithmeticReductionCost(ReductionOpc, VTy, std::nullopt, CostKind);
1698 if (NewCost >= OldCost || !NewCost.isValid())
1699 return false;
1700
1701 LLVM_DEBUG(dbgs() << "Found two mergeable reductions: " << I
1702 << "\n OldCost: " << OldCost << " vs NewCost: " << NewCost
1703 << "\n");
1704 Value *VectorBO;
1705 if (BinOpOpc == Instruction::Or)
1706 VectorBO = Builder.CreateOr(V0, V1, "",
1707 cast<PossiblyDisjointInst>(I).isDisjoint());
1708 else
1709 VectorBO = Builder.CreateBinOp(BinOpOpc, V0, V1);
1710
1711 Value *Rdx = Builder.CreateIntrinsic(ReductionIID, {VTy}, {VectorBO});
1712 replaceValue(I, *Rdx);
1713 return true;
1714}
1715
1716// Check if memory is modified, freed, or synchronized between two instrs in
1717// the same BB.
1720 const MemoryLocation &Loc, AAResults &AA) {
1721 unsigned NumScanned = 0;
1722 if (std::any_of(Begin, End, [&](const Instruction &Instr) {
1723 return isModSet(AA.getModRefInfo(&Instr, Loc)) ||
1724 ++NumScanned > MaxInstrsToScan;
1725 }))
1726 return true;
1727
1728 // willNotFreeBetween expects instructions rather than iterators. An empty
1729 // range cannot free or synchronize, so avoid dereferencing its end.
1730 return Begin != End && !willNotFreeBetween(&*Begin, &*End);
1731}
1732
1733namespace {
1734/// Helper class to indicate whether a vector index can be safely scalarized and
1735/// if a freeze needs to be inserted.
1736class ScalarizationResult {
1737 enum class StatusTy { Unsafe, Safe, SafeWithFreeze };
1738
1739 StatusTy Status;
1740 Value *ToFreeze;
1741
1742 ScalarizationResult(StatusTy Status, Value *ToFreeze = nullptr)
1743 : Status(Status), ToFreeze(ToFreeze) {}
1744
1745public:
1746 ScalarizationResult(const ScalarizationResult &Other) = default;
1747 ~ScalarizationResult() {
1748 assert(!ToFreeze && "freeze() not called with ToFreeze being set");
1749 }
1750
1751 static ScalarizationResult unsafe() { return {StatusTy::Unsafe}; }
1752 static ScalarizationResult safe() { return {StatusTy::Safe}; }
1753 static ScalarizationResult safeWithFreeze(Value *ToFreeze) {
1754 return {StatusTy::SafeWithFreeze, ToFreeze};
1755 }
1756
1757 /// Returns true if the index can be scalarize without requiring a freeze.
1758 bool isSafe() const { return Status == StatusTy::Safe; }
1759 /// Returns true if the index cannot be scalarized.
1760 bool isUnsafe() const { return Status == StatusTy::Unsafe; }
1761 /// Returns true if the index can be scalarize, but requires inserting a
1762 /// freeze.
1763 bool isSafeWithFreeze() const { return Status == StatusTy::SafeWithFreeze; }
1764
1765 /// Reset the state of Unsafe and clear ToFreze if set.
1766 void discard() {
1767 ToFreeze = nullptr;
1768 Status = StatusTy::Unsafe;
1769 }
1770
1771 /// Freeze the ToFreeze and update the use in \p User to use it.
1772 void freeze(IRBuilderBase &Builder, Instruction &UserI) {
1773 assert(isSafeWithFreeze() &&
1774 "should only be used when freezing is required");
1775 assert(is_contained(ToFreeze->users(), &UserI) &&
1776 "UserI must be a user of ToFreeze");
1777 IRBuilder<>::InsertPointGuard Guard(Builder);
1778 Builder.SetInsertPoint(cast<Instruction>(&UserI));
1779 Value *Frozen =
1780 Builder.CreateFreeze(ToFreeze, ToFreeze->getName() + ".frozen");
1781 for (Use &U : make_early_inc_range((UserI.operands())))
1782 if (U.get() == ToFreeze)
1783 U.set(Frozen);
1784
1785 ToFreeze = nullptr;
1786 }
1787};
1788} // namespace
1789
1790/// Check if it is legal to scalarize a memory access to \p VecTy at index \p
1791/// Idx. \p Idx must access a valid vector element.
1792static ScalarizationResult canScalarizeAccess(VectorType *VecTy, Value *Idx,
1793 const SimplifyQuery &SQ) {
1794 // We do checks for both fixed vector types and scalable vector types.
1795 // This is the number of elements of fixed vector types,
1796 // or the minimum number of elements of scalable vector types.
1797 uint64_t NumElements = VecTy->getElementCount().getKnownMinValue();
1798 unsigned IntWidth = Idx->getType()->getScalarSizeInBits();
1799
1800 if (auto *C = dyn_cast<ConstantInt>(Idx)) {
1801 if (C->getValue().ult(NumElements))
1802 return ScalarizationResult::safe();
1803 return ScalarizationResult::unsafe();
1804 }
1805
1806 // Always unsafe if the index type can't handle all inbound values.
1807 if (!llvm::isUIntN(IntWidth, NumElements))
1808 return ScalarizationResult::unsafe();
1809
1810 APInt Zero(IntWidth, 0);
1811 APInt MaxElts(IntWidth, NumElements);
1812 ConstantRange ValidIndices(Zero, MaxElts);
1813 ConstantRange IdxRange(IntWidth, true);
1814
1815 if (isGuaranteedNotToBePoison(Idx, SQ.AC, SQ.CxtI, SQ.DT)) {
1816 if (ValidIndices.contains(
1817 computeConstantRange(Idx, /*ForSigned=*/false, SQ)))
1818 return ScalarizationResult::safe();
1819 return ScalarizationResult::unsafe();
1820 }
1821
1822 // If the index may be poison, check if we can insert a freeze before the
1823 // range of the index is restricted.
1824 Value *IdxBase;
1825 ConstantInt *CI;
1826 if (match(Idx, m_And(m_Value(IdxBase), m_ConstantInt(CI)))) {
1827 IdxRange = IdxRange.binaryAnd(CI->getValue());
1828 } else if (match(Idx, m_URem(m_Value(IdxBase), m_ConstantInt(CI)))) {
1829 IdxRange = IdxRange.urem(CI->getValue());
1830 }
1831
1832 if (ValidIndices.contains(IdxRange))
1833 return ScalarizationResult::safeWithFreeze(IdxBase);
1834 return ScalarizationResult::unsafe();
1835}
1836
1837/// Return the GEP index type if the unsigned vector index \p Idx can be
1838/// represented by an inbounds GEP. A null result means that the maximum byte
1839/// offset cannot be represented by the pointer's signed GEP index type.
1840///
1841/// unsigned lane range
1842/// |
1843/// v
1844/// MaxByteOffset = MaxLane * element store size
1845/// |
1846/// +-- unavailable or outside signed GEP range --> reject
1847/// |
1848/// v
1849/// valid range --> use the pointer's GEP index type
1851 Type *PtrTy,
1852 const DataLayout &DL) {
1853 auto *GEPIndexTy = cast<IntegerType>(DL.getIndexType(PtrTy));
1854 unsigned GEPBits = GEPIndexTy->getBitWidth();
1855 uint64_t NumElements = VecTy->getElementCount().getKnownMinValue();
1856
1857 uint64_t MaxLane = NumElements - 1;
1858 if (auto *C = dyn_cast<ConstantInt>(Idx)) {
1859 if (C->getValue().uge(NumElements))
1860 return nullptr;
1861 MaxLane = C->getZExtValue();
1862 }
1863
1864 Type *ElemTy = VecTy->getElementType();
1865 if (!DL.typeSizeEqualsStoreSize(ElemTy))
1866 return nullptr;
1867
1868 TypeSize ElemStride = DL.getTypeStoreSize(ElemTy);
1869 if (ElemStride.isScalable())
1870 return nullptr;
1871
1872 // Compare both values in a common width:
1873 //
1874 // MaxLane (uint64_t) * ElemStride (uint64_t) signed_max(GEPBits)
1875 // | |
1876 // v v
1877 // ByteOffset (up to 128 bits) sext to WideBits
1878 // \ /
1879 // +------------ ugt ------------+
1880 // |
1881 // greater -> reject
1882 //
1883 // WideBits = max(GEPBits, 128) prevents the multiplication from wrapping
1884 // and preserves the GEP limit during the comparison.
1885 unsigned WideBits = std::max(GEPBits, 128u);
1886 APInt MaxLaneValue(WideBits, MaxLane);
1887 APInt ByteOffset = MaxLaneValue;
1888 ByteOffset *= APInt(WideBits, ElemStride.getFixedValue());
1889 APInt MaxGEPOffset = APInt::getSignedMaxValue(GEPBits).sext(WideBits);
1890 // Reject offsets outside the GEP's positive signed range. Compare as
1891 // unsigned because the full 128-bit product may set its sign bit.
1892 if (ByteOffset.ugt(MaxGEPOffset))
1893 return nullptr;
1894
1895 return GEPIndexTy;
1896}
1897
1898/// Materialize an index for a scalarized GEP after profitability is known.
1899/// Vector element indices are unsigned, but GEP sign-extends narrow integer
1900/// indices. Widen a narrow index explicitly so its unsigned value is retained.
1902 IRBuilderBase &Builder) {
1903 unsigned SrcBits = Idx->getType()->getIntegerBitWidth();
1904 unsigned DstBits = GEPIndexTy->getBitWidth();
1905 if (SrcBits >= DstBits)
1906 return Idx;
1907
1908 return Builder.CreateZExt(Idx, GEPIndexTy, Idx->getName() + ".gepidx");
1909}
1910
1911/// The memory operation on a vector of \p ScalarType had alignment of
1912/// \p VectorAlignment. Compute the maximal, but conservatively correct,
1913/// alignment that will be valid for the memory operation on a single scalar
1914/// element of the same type with index \p Idx.
1916 Type *ScalarType, Value *Idx,
1917 const DataLayout &DL) {
1918 if (auto *C = dyn_cast<ConstantInt>(Idx))
1919 return commonAlignment(VectorAlignment,
1920 C->getZExtValue() * DL.getTypeStoreSize(ScalarType));
1921 return commonAlignment(VectorAlignment, DL.getTypeStoreSize(ScalarType));
1922}
1923
1924/// Fold a vector store fed by a single-use insertelement chain into scalar
1925/// stores.
1926///
1927/// Before:
1928///
1929/// %p --> vector load --> insert %x, lane 1 --> insert %y, lane 3
1930/// |
1931/// v
1932/// vector store to %p
1933///
1934/// Vector lanes: [ 0 ] [ 1 ] [ 2 ] [ 3 ]
1935/// Stored value: [ old | x | old | y ] (one vector store)
1936///
1937/// After:
1938///
1939/// +--> GEP(%p, lane 1) --> store %x
1940/// %p -------------+
1941/// +--> GEP(%p, lane 3) --> store %y
1942///
1943/// Vector lanes: [ 0 ] [ 1 ] [ 2 ] [ 3 ]
1944/// Scalar stores: x y
1945/// store@1 store@3
1946///
1947/// Step 1. Gate:
1948/// target supports vector-element GEP addressing
1949///
1950/// Step 2. Trace:
1951/// vector store <-- insertelement <-- ... <-- insertelement <-- load
1952///
1953/// Steps 3-5. Validate:
1954/// reject unprofitable full overwrites; require simple accesses, a
1955/// common address/block, no memory write in between, and scalarizable
1956/// indices.
1957bool VectorCombine::foldInsertElementsToStores(Instruction &I) {
1958 // Step 1: The target must support addressing a vector element with a GEP.
1960 return false;
1961
1962 auto *SI = cast<StoreInst>(&I);
1963 if (!SI->isSimple() || !isa<VectorType>(SI->getValueOperand()->getType()))
1964 return false;
1965
1966 // Step 2: Collect a single-use insertelement chain, starting at the vector
1967 // store and walking back to the candidate load.
1968 Value *Source = SI->getValueOperand();
1969 SmallVector<std::pair<Value *, Value *>, 4> InsertElements;
1970 Value *Base = Source;
1971 while (auto *Insert = dyn_cast<InsertElementInst>(Base)) {
1972 if (!Insert->hasOneUse())
1973 break;
1974 Value *InsertVal = Insert->getOperand(1);
1975 Value *Idx = Insert->getOperand(2);
1976 InsertElements.push_back({InsertVal, Idx});
1977 Base = Insert->getOperand(0);
1978 }
1979
1980 if (InsertElements.empty())
1981 return false;
1982
1983 // The backwards walk collected the inserts in reverse program order. Restore
1984 // it now so later scalar stores preserve writes to duplicate/equal indices.
1985 std::reverse(InsertElements.begin(), InsertElements.end());
1986 auto *Load = dyn_cast<LoadInst>(Base);
1987 if (!Load)
1988 return false;
1989 auto *VecTy = cast<VectorType>(SI->getValueOperand()->getType());
1990
1991 // Step 3: Avoid replacing a complete overwrite with scalar stores when every
1992 // lane receives the same value; keeping the vector operation is preferable.
1993 if (auto *FVT = dyn_cast<FixedVectorType>(VecTy)) {
1994 if (InsertElements.size() == FVT->getNumElements()) {
1995 Value *FirstVal = InsertElements.front().first;
1996 if (all_of(InsertElements,
1997 [FirstVal](const auto &Elt) { return Elt.first == FirstVal; }))
1998 return false;
1999 }
2000 }
2001 Value *SrcAddr = Load->getPointerOperand()->stripPointerCasts();
2002 // Step 4: Establish the load/store update is legal: both accesses are simple,
2003 // have the same base address and block, have scalar elements whose type size
2004 // equals their store size, and no intervening operation modifies the updated
2005 // memory.
2006 if (!Load->isSimple() || Load->getParent() != SI->getParent() ||
2007 !DL->typeSizeEqualsStoreSize(Load->getType()->getScalarType()) ||
2008 SrcAddr != SI->getPointerOperand()->stripPointerCasts())
2009 return false;
2010
2011 if (isMemModifiedBetween(Load->getIterator(), SI->getIterator(),
2012 MemoryLocation::get(SI), AA))
2013 return false;
2014
2015 // Step 5: Validate every index before changing IR. A safe-with-freeze result
2016 // is recorded by ScalarizationResult, so discard it until profitability is
2017 // known; otherwise a rejected candidate could leave a freeze behind.
2018 for (auto [InsertVal, Idx] : InsertElements) {
2019 auto ScalarizableIdx =
2020 canScalarizeAccess(VecTy, Idx, SQ.getWithInstruction(&I));
2021 if (ScalarizableIdx.isUnsafe())
2022 return false;
2023
2024 auto GEPIndex =
2025 getScalarizedGEPIndexInfo(VecTy, Idx, SI->getPointerOperandType(), *DL);
2026 if (!GEPIndex) {
2027 ScalarizableIdx.discard();
2028 return false;
2029 }
2030
2031 // We are only checking legality here. Do not mutate IR before the
2032 // profitability check, but also do not leave a pending ToFreeze behind.
2033 ScalarizableIdx.discard();
2034 }
2035
2037 Instruction::Store, SI->getValueOperand()->getType(), SI->getAlign(),
2038 SI->getPointerAddressSpace(), CostKind);
2039
2040 if (Load->hasOneUse())
2041 OldCost += TTI.getMemoryOpCost(Instruction::Load, Load->getType(),
2042 Load->getAlign(),
2043 Load->getPointerAddressSpace(), CostKind);
2044
2045 for (auto [InsertVal, Idx] : InsertElements) {
2046 int Index = -1;
2047 if (auto *CIdx = dyn_cast<ConstantInt>(Idx))
2048 Index = CIdx->getZExtValue();
2049
2050 OldCost += TTI.getVectorInstrCost(Instruction::InsertElement, VecTy,
2051 CostKind, Index);
2052 }
2053
2054 InstructionCost NewCost = 0;
2055 // This transform replaces insertelement operations on a single vector with
2056 // GEPs and scalar stores, so assume constant-index GEP offsets stay within
2057 // addressing-mode ranges that getGEPCost considers TCC_Free. Cost only GEPs
2058 // with dynamic indices.
2059 for (auto [InsertVal, Idx] : InsertElements) {
2060 if (isa<ConstantInt>(Idx))
2061 continue;
2062 const Value *GEPIndices[] = {ConstantInt::get(Idx->getType(), 0), Idx};
2063 NewCost += TTI.getGEPCost(VecTy, SI->getPointerOperand(), GEPIndices,
2064 CostKind, InsertVal->getType());
2065 }
2066
2067 for (auto [InsertVal, Idx] : InsertElements) {
2068 Align ScalarOpAlignment = computeAlignmentAfterScalarization(
2069 std::max(SI->getAlign(), Load->getAlign()), InsertVal->getType(), Idx,
2070 *DL);
2071
2072 NewCost += TTI.getMemoryOpCost(Instruction::Store, InsertVal->getType(),
2073 ScalarOpAlignment,
2074 SI->getPointerAddressSpace(), CostKind);
2075 }
2076
2077 LLVM_DEBUG(dbgs() << "Found an insert-elements vector store scalarization "
2078 "candidate: "
2079 << I << "\n"
2080 << " NumInserts: " << InsertElements.size() << "\n"
2081 << " OldCost: " << OldCost << " vs NewCost: " << NewCost
2082 << "\n");
2083
2084 if (OldCost <= NewCost)
2085 return false;
2086
2087 for (auto [InsertVal, Idx] : InsertElements) {
2088 auto ScalarizableIdx =
2089 canScalarizeAccess(VecTy, Idx, SQ.getWithInstruction(&I));
2090 assert(!ScalarizableIdx.isUnsafe() && "already checked above");
2091
2092 if (ScalarizableIdx.isSafeWithFreeze())
2093 ScalarizableIdx.freeze(Builder, *cast<Instruction>(Idx));
2094 }
2095
2096 Worklist.push(Load);
2097 StoreInst *LastStore = nullptr;
2098 for (auto [InsertVal, Idx] : InsertElements) {
2099 auto ScalarizableIdx =
2100 canScalarizeAccess(VecTy, Idx, SQ.getWithInstruction(&I));
2101 if (ScalarizableIdx.isUnsafe())
2102 return false;
2103
2104 IntegerType *GEPIndexTy =
2105 getScalarizedGEPIndexInfo(VecTy, Idx, SI->getPointerOperandType(), *DL);
2106
2107 Value *GEPIdx = materializeScalarizedGEPIndex(Idx, GEPIndexTy, Builder);
2108 Value *GEP = Builder.CreateInBoundsGEP(
2109 SI->getValueOperand()->getType(), SI->getPointerOperand(),
2110 {ConstantInt::get(GEPIdx->getType(), 0), GEPIdx});
2111
2112 LastStore = Builder.CreateStore(InsertVal, GEP);
2113 LastStore->copyMetadata(*SI);
2114
2115 // The new GEP may change the pointer operand, so !invariant.group cannot
2116 // be transferred to the scalar store.
2117 LastStore->setMetadata(LLVMContext::MD_invariant_group, nullptr);
2118 Align ScalarOpAlignment = computeAlignmentAfterScalarization(
2119 std::max(SI->getAlign(), Load->getAlign()), InsertVal->getType(), Idx,
2120 *DL);
2121 LastStore->setAlignment(ScalarOpAlignment);
2122 }
2123
2124 replaceValue(I, *LastStore);
2126 return true;
2127}
2128
2129/// Try to scalarize vector loads feeding extractelement or bitcast
2130/// instructions.
2131bool VectorCombine::scalarizeLoad(Instruction &I) {
2132 Value *Ptr;
2133 if (!match(&I, m_Load(m_Value(Ptr))))
2134 return false;
2135
2136 auto *LI = cast<LoadInst>(&I);
2137 auto *VecTy = cast<VectorType>(LI->getType());
2138
2139 // The isSimple() check could be isUnordered(), but for now we cowardly
2140 // refuse to handle even unordered atomics.
2141 if (!LI->isSimple() || !DL->typeSizeEqualsStoreSize(VecTy->getScalarType()))
2142 return false;
2143
2144 bool AllExtracts = true;
2145 bool AllBitcasts = true;
2146 Instruction *LastCheckedInst = LI;
2147 unsigned NumInstChecked = 0;
2148
2149 // Check what type of users we have (must either all be extracts or
2150 // bitcasts) and ensure no memory modifications between the load and
2151 // its users.
2152 for (User *U : LI->users()) {
2153 auto *UI = dyn_cast<Instruction>(U);
2154 if (!UI || UI->getParent() != LI->getParent())
2155 return false;
2156
2157 // If any user is waiting to be erased, then bail out as this will
2158 // distort the cost calculation and possibly lead to infinite loops.
2159 if (UI->use_empty())
2160 return false;
2161
2162 if (!isa<ExtractElementInst>(UI))
2163 AllExtracts = false;
2164 if (!isa<BitCastInst>(UI))
2165 AllBitcasts = false;
2166
2167 // Check if any instruction between the load and the user may modify memory.
2168 if (LastCheckedInst->comesBefore(UI)) {
2169 for (Instruction &I :
2170 make_range(std::next(LI->getIterator()), UI->getIterator())) {
2171 // Bail out if we reached the check limit or the instruction may write
2172 // to memory.
2173 if (NumInstChecked == MaxInstrsToScan || I.mayWriteToMemory())
2174 return false;
2175 NumInstChecked++;
2176 }
2177 LastCheckedInst = UI;
2178 }
2179 }
2180
2181 if (AllExtracts)
2182 return scalarizeLoadExtract(LI, VecTy, Ptr);
2183 if (AllBitcasts)
2184 return scalarizeLoadBitcast(LI, VecTy, Ptr);
2185 return false;
2186}
2187
2188/// Try to scalarize vector loads feeding extractelement instructions.
2189bool VectorCombine::scalarizeLoadExtract(LoadInst *LI, VectorType *VecTy,
2190 Value *Ptr) {
2192 return false;
2193
2194 DenseMap<ExtractElementInst *, ScalarizationResult> NeedFreeze;
2195 DenseMap<ExtractElementInst *, IntegerType *> GEPIndexInfos;
2196 llvm::scope_exit FailureGuard([&]() {
2197 // If the transform is aborted, discard the ScalarizationResults.
2198 for (auto &Pair : NeedFreeze)
2199 Pair.second.discard();
2200 });
2201
2202 InstructionCost OriginalCost =
2203 TTI.getMemoryOpCost(Instruction::Load, VecTy, LI->getAlign(),
2205 InstructionCost ScalarizedCost = 0;
2206
2207 for (User *U : LI->users()) {
2208 auto *UI = cast<ExtractElementInst>(U);
2209
2210 auto ScalarIdx = canScalarizeAccess(VecTy, UI->getIndexOperand(),
2211 SQ.getWithInstruction(LI));
2212 if (ScalarIdx.isUnsafe())
2213 return false;
2214
2215 IntegerType *GEPIndex = getScalarizedGEPIndexInfo(
2216 VecTy, UI->getIndexOperand(), LI->getPointerOperandType(), *DL);
2217 if (!GEPIndex) {
2218 ScalarIdx.discard();
2219 return false;
2220 }
2221
2222 GEPIndexInfos.try_emplace(UI, GEPIndex);
2223
2224 if (ScalarIdx.isSafeWithFreeze()) {
2225 NeedFreeze.try_emplace(UI, ScalarIdx);
2226 ScalarIdx.discard();
2227 }
2228
2229 auto *Index = dyn_cast<ConstantInt>(UI->getIndexOperand());
2230 OriginalCost +=
2231 TTI.getVectorInstrCost(Instruction::ExtractElement, VecTy, CostKind,
2232 Index ? Index->getZExtValue() : -1);
2233 ScalarizedCost +=
2234 TTI.getMemoryOpCost(Instruction::Load, VecTy->getElementType(),
2236 ScalarizedCost += TTI.getAddressComputationCost(LI->getPointerOperandType(),
2237 nullptr, nullptr, CostKind);
2238 if (!Index && UI->getIndexOperand()->getType()->getIntegerBitWidth() <
2239 GEPIndex->getBitWidth())
2240 ScalarizedCost += TTI.getCastInstrCost(
2241 Instruction::ZExt, GEPIndex, UI->getIndexOperand()->getType(),
2243 }
2244
2245 LLVM_DEBUG(dbgs() << "Found all extractions of a vector load: " << *LI
2246 << "\n LoadExtractCost: " << OriginalCost
2247 << " vs ScalarizedCost: " << ScalarizedCost << "\n");
2248
2249 if (ScalarizedCost >= OriginalCost)
2250 return false;
2251
2252 // Ensure we add the load back to the worklist BEFORE its users so they can
2253 // erased in the correct order.
2254 Worklist.push(LI);
2255
2256 Type *ElemType = VecTy->getElementType();
2257
2258 // Replace extracts with narrow scalar loads.
2259 for (User *U : LI->users()) {
2260 auto *EI = cast<ExtractElementInst>(U);
2261 Value *Idx = EI->getIndexOperand();
2262
2263 // Insert 'freeze' for poison indexes.
2264 if (auto It = NeedFreeze.find(EI); It != NeedFreeze.end())
2265 It->second.freeze(Builder, *cast<Instruction>(Idx));
2266
2267 Builder.SetInsertPoint(EI);
2268 auto It = GEPIndexInfos.find(EI);
2269 assert(It != GEPIndexInfos.end() &&
2270 "Missing scalarized GEP index information");
2271 Value *GEPIdx = materializeScalarizedGEPIndex(Idx, It->second, Builder);
2272 Value *GEP = Builder.CreateInBoundsGEP(
2273 VecTy, Ptr, {ConstantInt::get(GEPIdx->getType(), 0), GEPIdx});
2274 auto *NewLoad = cast<LoadInst>(
2275 Builder.CreateLoad(ElemType, GEP, EI->getName() + ".scalar"));
2276
2277 Align ScalarOpAlignment =
2278 computeAlignmentAfterScalarization(LI->getAlign(), ElemType, Idx, *DL);
2279 NewLoad->setAlignment(ScalarOpAlignment);
2280
2281 if (auto *ConstIdx = dyn_cast<ConstantInt>(Idx)) {
2282 size_t Offset = ConstIdx->getZExtValue() * DL->getTypeStoreSize(ElemType);
2283 AAMDNodes OldAAMD = LI->getAAMetadata();
2284 NewLoad->setAAMetadata(OldAAMD.adjustForAccess(Offset, ElemType, *DL));
2285 }
2286
2287 replaceValue(*EI, *NewLoad, false);
2288 }
2289
2290 FailureGuard.release();
2291 return true;
2292}
2293
2294/// Try to scalarize vector loads feeding bitcast instructions.
2295bool VectorCombine::scalarizeLoadBitcast(LoadInst *LI, VectorType *VecTy,
2296 Value *Ptr) {
2297 InstructionCost OriginalCost =
2298 TTI.getMemoryOpCost(Instruction::Load, VecTy, LI->getAlign(),
2300
2301 Type *TargetScalarType = nullptr;
2302 unsigned VecBitWidth = DL->getTypeSizeInBits(VecTy);
2303
2304 for (User *U : LI->users()) {
2305 auto *BC = cast<BitCastInst>(U);
2306
2307 Type *DestTy = BC->getDestTy();
2308 if (!DestTy->isIntegerTy() && !DestTy->isFloatingPointTy())
2309 return false;
2310
2311 unsigned DestBitWidth = DL->getTypeSizeInBits(DestTy);
2312 if (DestBitWidth != VecBitWidth)
2313 return false;
2314
2315 // All bitcasts must target the same scalar type.
2316 if (!TargetScalarType)
2317 TargetScalarType = DestTy;
2318 else if (TargetScalarType != DestTy)
2319 return false;
2320
2321 OriginalCost +=
2322 TTI.getCastInstrCost(Instruction::BitCast, TargetScalarType, VecTy,
2324 }
2325
2326 if (!TargetScalarType)
2327 return false;
2328
2329 assert(!LI->user_empty() && "Unexpected load without bitcast users");
2330 InstructionCost ScalarizedCost =
2331 TTI.getMemoryOpCost(Instruction::Load, TargetScalarType, LI->getAlign(),
2333
2334 LLVM_DEBUG(dbgs() << "Found vector load feeding only bitcasts: " << *LI
2335 << "\n OriginalCost: " << OriginalCost
2336 << " vs ScalarizedCost: " << ScalarizedCost << "\n");
2337
2338 if (ScalarizedCost >= OriginalCost)
2339 return false;
2340
2341 // Ensure we add the load back to the worklist BEFORE its users so they can
2342 // erased in the correct order.
2343 Worklist.push(LI);
2344
2345 Builder.SetInsertPoint(LI);
2346 auto *ScalarLoad =
2347 Builder.CreateLoad(TargetScalarType, Ptr, LI->getName() + ".scalar");
2348 ScalarLoad->setAlignment(LI->getAlign());
2349 ScalarLoad->copyMetadata(*LI);
2350
2351 // Replace all bitcast users with the scalar load.
2352 for (User *U : LI->users()) {
2353 auto *BC = cast<BitCastInst>(U);
2354 replaceValue(*BC, *ScalarLoad, false);
2355 }
2356
2357 return true;
2358}
2359
2360bool VectorCombine::scalarizeExtExtract(Instruction &I) {
2362 return false;
2363 auto *Ext = dyn_cast<ZExtInst>(&I);
2364 if (!Ext)
2365 return false;
2366
2367 // Try to convert a vector zext feeding only extracts to a set of scalar
2368 // (Src << ExtIdx *Size) & (Size -1)
2369 // if profitable .
2370 auto *SrcTy = dyn_cast<FixedVectorType>(Ext->getOperand(0)->getType());
2371 if (!SrcTy)
2372 return false;
2373 auto *DstTy = cast<FixedVectorType>(Ext->getType());
2374
2375 Type *ScalarDstTy = DstTy->getElementType();
2376 if (DL->getTypeSizeInBits(SrcTy) != DL->getTypeSizeInBits(ScalarDstTy))
2377 return false;
2378
2379 InstructionCost VectorCost =
2380 TTI.getCastInstrCost(Instruction::ZExt, DstTy, SrcTy,
2382 unsigned ExtCnt = 0;
2383 bool ExtLane0 = false;
2384 for (User *U : Ext->users()) {
2385 uint64_t Idx;
2386 if (!match(U, m_ExtractElt(m_Value(), m_ConstantInt(Idx))))
2387 return false;
2388 // An out-of-bounds extractelement produces poison; bail out rather
2389 // than computing a shift amount that overflows the packed type.
2390 if (Idx >= SrcTy->getNumElements())
2391 return false;
2392 if (cast<Instruction>(U)->use_empty())
2393 continue;
2394 ExtCnt += 1;
2395 ExtLane0 |= !Idx;
2396 VectorCost += TTI.getVectorInstrCost(Instruction::ExtractElement, DstTy,
2397 CostKind, Idx, U);
2398 }
2399
2400 InstructionCost ScalarCost =
2401 ExtCnt * TTI.getArithmeticInstrCost(
2402 Instruction::And, ScalarDstTy, CostKind,
2405 (ExtCnt - ExtLane0) *
2407 Instruction::LShr, ScalarDstTy, CostKind,
2410 if (ScalarCost > VectorCost)
2411 return false;
2412
2413 Value *ScalarV = Ext->getOperand(0);
2414 if (!isGuaranteedNotToBePoison(ScalarV, SQ.AC, dyn_cast<Instruction>(ScalarV),
2415 SQ.DT)) {
2416 // Check wether all lanes are extracted, all extracts trigger UB
2417 // on poison, and the last extract (and hence all previous ones)
2418 // are guaranteed to execute if Ext executes. If so, we do not
2419 // need to insert a freeze.
2420 SmallDenseSet<ConstantInt *, 8> ExtractedLanes;
2421 bool AllExtractsTriggerUB = true;
2422 ExtractElementInst *LastExtract = nullptr;
2423 BasicBlock *ExtBB = Ext->getParent();
2424 for (User *U : Ext->users()) {
2425 auto *Extract = cast<ExtractElementInst>(U);
2426 if (Extract->getParent() != ExtBB || !programUndefinedIfPoison(Extract)) {
2427 AllExtractsTriggerUB = false;
2428 break;
2429 }
2430 ExtractedLanes.insert(cast<ConstantInt>(Extract->getIndexOperand()));
2431 if (!LastExtract || LastExtract->comesBefore(Extract))
2432 LastExtract = Extract;
2433 }
2434 if (ExtractedLanes.size() != DstTy->getNumElements() ||
2435 !AllExtractsTriggerUB ||
2437 LastExtract->getIterator()))
2438 ScalarV = Builder.CreateFreeze(ScalarV);
2439 }
2440 ScalarV = Builder.CreateBitCast(
2441 ScalarV,
2442 IntegerType::get(SrcTy->getContext(), DL->getTypeSizeInBits(SrcTy)));
2443 uint64_t SrcEltSizeInBits = DL->getTypeSizeInBits(SrcTy->getElementType());
2444 uint64_t TotalBits = DL->getTypeSizeInBits(SrcTy);
2445 APInt EltBitMask = APInt::getLowBitsSet(TotalBits, SrcEltSizeInBits);
2446 Type *PackedTy = IntegerType::get(SrcTy->getContext(), TotalBits);
2447 Value *Mask = ConstantInt::get(PackedTy, EltBitMask);
2448 for (User *U : Ext->users()) {
2449 auto *Extract = cast<ExtractElementInst>(U);
2450 uint64_t Idx =
2451 cast<ConstantInt>(Extract->getIndexOperand())->getZExtValue();
2452 uint64_t ShiftAmt =
2453 DL->isBigEndian()
2454 ? (TotalBits - SrcEltSizeInBits - Idx * SrcEltSizeInBits)
2455 : (Idx * SrcEltSizeInBits);
2456 Value *LShr = Builder.CreateLShr(ScalarV, ShiftAmt);
2457 Value *And = Builder.CreateAnd(LShr, Mask);
2458 U->replaceAllUsesWith(And);
2459 }
2460 return true;
2461}
2462
2463/// Try to fold "(or (zext (bitcast X)), (shl (zext (bitcast Y)), C))"
2464/// to "(bitcast (concat X, Y))"
2465/// where X/Y are bitcasted from i1 mask vectors.
2466bool VectorCombine::foldConcatOfBoolMasks(Instruction &I) {
2467 Type *Ty = I.getType();
2468 if (!Ty->isIntegerTy())
2469 return false;
2470
2471 // TODO: Add big endian test coverage
2472 if (DL->isBigEndian())
2473 return false;
2474
2475 // Restrict to disjoint cases so the mask vectors aren't overlapping.
2476 Instruction *X, *Y;
2478 return false;
2479
2480 // Allow both sources to contain shl, to handle more generic pattern:
2481 // "(or (shl (zext (bitcast X)), C1), (shl (zext (bitcast Y)), C2))"
2482 Value *SrcX;
2483 uint64_t ShAmtX = 0;
2484 if (!match(X, m_OneUse(m_ZExt(m_OneUse(m_BitCast(m_Value(SrcX)))))) &&
2485 !match(X, m_OneUse(
2487 m_ConstantInt(ShAmtX)))))
2488 return false;
2489
2490 Value *SrcY;
2491 uint64_t ShAmtY = 0;
2492 if (!match(Y, m_OneUse(m_ZExt(m_OneUse(m_BitCast(m_Value(SrcY)))))) &&
2493 !match(Y, m_OneUse(
2495 m_ConstantInt(ShAmtY)))))
2496 return false;
2497
2498 // Canonicalize larger shift to the RHS.
2499 if (ShAmtX > ShAmtY) {
2500 std::swap(X, Y);
2501 std::swap(SrcX, SrcY);
2502 std::swap(ShAmtX, ShAmtY);
2503 }
2504
2505 // Ensure both sources are matching vXi1 bool mask types, and that the shift
2506 // difference is the mask width so they can be easily concatenated together.
2507 uint64_t ShAmtDiff = ShAmtY - ShAmtX;
2508 unsigned NumSHL = (ShAmtX > 0) + (ShAmtY > 0);
2509 unsigned BitWidth = Ty->getPrimitiveSizeInBits();
2510 auto *MaskTy = dyn_cast<FixedVectorType>(SrcX->getType());
2511 if (!MaskTy || SrcX->getType() != SrcY->getType() ||
2512 !MaskTy->getElementType()->isIntegerTy(1) ||
2513 MaskTy->getNumElements() != ShAmtDiff ||
2514 MaskTy->getNumElements() > (BitWidth / 2))
2515 return false;
2516
2517 auto *ConcatTy = FixedVectorType::getDoubleElementsVectorType(MaskTy);
2518 auto *ConcatIntTy =
2519 Type::getIntNTy(Ty->getContext(), ConcatTy->getNumElements());
2520 auto *MaskIntTy = Type::getIntNTy(Ty->getContext(), ShAmtDiff);
2521
2522 SmallVector<int, 32> ConcatMask(ConcatTy->getNumElements());
2523 std::iota(ConcatMask.begin(), ConcatMask.end(), 0);
2524
2525 // TODO: Is it worth supporting multi use cases?
2526 InstructionCost OldCost = 0;
2527 OldCost += TTI.getArithmeticInstrCost(Instruction::Or, Ty, CostKind);
2528 OldCost +=
2529 NumSHL * TTI.getArithmeticInstrCost(Instruction::Shl, Ty, CostKind);
2530 OldCost += 2 * TTI.getCastInstrCost(Instruction::ZExt, Ty, MaskIntTy,
2532 OldCost += 2 * TTI.getCastInstrCost(Instruction::BitCast, MaskIntTy, MaskTy,
2534
2535 InstructionCost NewCost = 0;
2537 MaskTy, CostKind, ConcatMask);
2538 NewCost += TTI.getCastInstrCost(Instruction::BitCast, ConcatIntTy, ConcatTy,
2540 if (Ty != ConcatIntTy)
2541 NewCost += TTI.getCastInstrCost(Instruction::ZExt, Ty, ConcatIntTy,
2543 if (ShAmtX > 0)
2544 NewCost += TTI.getArithmeticInstrCost(Instruction::Shl, Ty, CostKind);
2545
2546 LLVM_DEBUG(dbgs() << "Found a concatenation of bitcasted bool masks: " << I
2547 << "\n OldCost: " << OldCost << " vs NewCost: " << NewCost
2548 << "\n");
2549
2550 if (NewCost > OldCost)
2551 return false;
2552
2553 // Build bool mask concatenation, bitcast back to scalar integer, and perform
2554 // any residual zero-extension or shifting.
2555 Value *Concat = Builder.CreateShuffleVector(SrcX, SrcY, ConcatMask);
2556 Worklist.pushValue(Concat);
2557
2558 Value *Result = Builder.CreateBitCast(Concat, ConcatIntTy);
2559
2560 if (Ty != ConcatIntTy) {
2561 Worklist.pushValue(Result);
2562 Result = Builder.CreateZExt(Result, Ty);
2563 }
2564
2565 if (ShAmtX > 0) {
2566 Worklist.pushValue(Result);
2567 Result = Builder.CreateShl(Result, ShAmtX);
2568 }
2569
2570 replaceValue(I, *Result);
2571 return true;
2572}
2573
2574/// Try to convert "shuffle (binop (shuffle, shuffle)), undef"
2575/// --> "binop (shuffle), (shuffle)".
2576bool VectorCombine::foldPermuteOfBinops(Instruction &I) {
2577 BinaryOperator *BinOp;
2578 ArrayRef<int> OuterMask;
2579 if (!match(&I, m_Shuffle(m_BinOp(BinOp), m_Undef(), m_Mask(OuterMask))))
2580 return false;
2581
2582 // Don't introduce poison into div/rem.
2583 if (BinOp->isIntDivRem() && llvm::is_contained(OuterMask, PoisonMaskElem))
2584 return false;
2585
2586 Value *Op00, *Op01, *Op10, *Op11;
2587 ArrayRef<int> Mask0, Mask1;
2588 bool Match0 = match(BinOp->getOperand(0),
2589 m_Shuffle(m_Value(Op00), m_Value(Op01), m_Mask(Mask0)));
2590 bool Match1 = match(BinOp->getOperand(1),
2591 m_Shuffle(m_Value(Op10), m_Value(Op11), m_Mask(Mask1)));
2592 if (!Match0 && !Match1)
2593 return false;
2594
2595 Op00 = Match0 ? Op00 : BinOp->getOperand(0);
2596 Op01 = Match0 ? Op01 : BinOp->getOperand(0);
2597 Op10 = Match1 ? Op10 : BinOp->getOperand(1);
2598 Op11 = Match1 ? Op11 : BinOp->getOperand(1);
2599
2600 Instruction::BinaryOps Opcode = BinOp->getOpcode();
2601 auto *ShuffleDstTy = dyn_cast<FixedVectorType>(I.getType());
2602 auto *BinOpTy = dyn_cast<FixedVectorType>(BinOp->getType());
2603 auto *Op0Ty = dyn_cast<FixedVectorType>(Op00->getType());
2604 auto *Op1Ty = dyn_cast<FixedVectorType>(Op10->getType());
2605 if (!ShuffleDstTy || !BinOpTy || !Op0Ty || !Op1Ty)
2606 return false;
2607
2608 unsigned NumSrcElts = BinOpTy->getNumElements();
2609
2610 // Don't accept shuffles that reference the second operand in
2611 // div/rem or if its an undef arg.
2612 if ((BinOp->isIntDivRem() || !isa<PoisonValue>(I.getOperand(1))) &&
2613 any_of(OuterMask, [NumSrcElts](int M) { return M >= (int)NumSrcElts; }))
2614 return false;
2615
2616 // Merge outer / inner (or identity if no match) shuffles.
2617 SmallVector<int> NewMask0, NewMask1;
2618 for (int M : OuterMask) {
2619 if (M < 0 || M >= (int)NumSrcElts) {
2620 NewMask0.push_back(PoisonMaskElem);
2621 NewMask1.push_back(PoisonMaskElem);
2622 } else {
2623 NewMask0.push_back(Match0 ? Mask0[M] : M);
2624 NewMask1.push_back(Match1 ? Mask1[M] : M);
2625 }
2626 }
2627
2628 unsigned NumOpElts = Op0Ty->getNumElements();
2629 bool IsIdentity0 = ShuffleDstTy == Op0Ty &&
2630 all_of(NewMask0, [NumOpElts](int M) { return M < (int)NumOpElts; }) &&
2631 ShuffleVectorInst::isIdentityMask(NewMask0, NumOpElts);
2632 bool IsIdentity1 = ShuffleDstTy == Op1Ty &&
2633 all_of(NewMask1, [NumOpElts](int M) { return M < (int)NumOpElts; }) &&
2634 ShuffleVectorInst::isIdentityMask(NewMask1, NumOpElts);
2635
2636 InstructionCost NewCost = 0;
2637 // Try to merge shuffles across the binop if the new shuffles are not costly.
2638 InstructionCost BinOpCost =
2639 TTI.getArithmeticInstrCost(Opcode, BinOpTy, CostKind);
2640 InstructionCost OldCost =
2642 ShuffleDstTy, BinOpTy, CostKind, OuterMask,
2643 0, nullptr, {BinOp}, &I);
2644 if (!BinOp->hasOneUse())
2645 NewCost += BinOpCost;
2646
2647 if (Match0) {
2649 TargetTransformInfo::SK_PermuteTwoSrc, BinOpTy, Op0Ty, CostKind, Mask0,
2650 0, nullptr, {Op00, Op01}, cast<Instruction>(BinOp->getOperand(0)));
2651 OldCost += Shuf0Cost;
2652 if (!BinOp->hasOneUse() || !BinOp->getOperand(0)->hasOneUse())
2653 NewCost += Shuf0Cost;
2654 }
2655 if (Match1) {
2657 TargetTransformInfo::SK_PermuteTwoSrc, BinOpTy, Op1Ty, CostKind, Mask1,
2658 0, nullptr, {Op10, Op11}, cast<Instruction>(BinOp->getOperand(1)));
2659 OldCost += Shuf1Cost;
2660 if (!BinOp->hasOneUse() || !BinOp->getOperand(1)->hasOneUse())
2661 NewCost += Shuf1Cost;
2662 }
2663
2664 NewCost += TTI.getArithmeticInstrCost(Opcode, ShuffleDstTy, CostKind);
2665
2666 if (!IsIdentity0)
2667 NewCost +=
2669 Op0Ty, CostKind, NewMask0, 0, nullptr, {Op00, Op01});
2670 if (!IsIdentity1)
2671 NewCost +=
2673 Op1Ty, CostKind, NewMask1, 0, nullptr, {Op10, Op11});
2674
2675 LLVM_DEBUG(dbgs() << "Found a shuffle feeding a shuffled binop: " << I
2676 << "\n OldCost: " << OldCost << " vs NewCost: " << NewCost
2677 << "\n");
2678
2679 // If costs are equal, still fold as we reduce instruction count.
2680 if (NewCost > OldCost)
2681 return false;
2682
2683 Value *LHS =
2684 IsIdentity0 ? Op00 : Builder.CreateShuffleVector(Op00, Op01, NewMask0);
2685 Value *RHS =
2686 IsIdentity1 ? Op10 : Builder.CreateShuffleVector(Op10, Op11, NewMask1);
2687 Value *NewBO = Builder.CreateBinOp(Opcode, LHS, RHS);
2688
2689 // Intersect flags from the old binops.
2690 if (auto *NewInst = dyn_cast<Instruction>(NewBO))
2691 NewInst->copyIRFlags(BinOp);
2692
2693 Worklist.pushValue(LHS);
2694 Worklist.pushValue(RHS);
2695 replaceValue(I, *NewBO);
2696 return true;
2697}
2698
2699/// Try to convert "shuffle (binop), (binop)" into "binop (shuffle), (shuffle)".
2700/// Try to convert "shuffle (cmpop), (cmpop)" into "cmpop (shuffle), (shuffle)".
2701bool VectorCombine::foldShuffleOfBinops(Instruction &I) {
2702 ArrayRef<int> OldMask;
2703 Instruction *LHS, *RHS;
2705 m_Mask(OldMask))))
2706 return false;
2707
2708 // TODO: Add support for addlike etc.
2709 if (LHS->getOpcode() != RHS->getOpcode())
2710 return false;
2711
2712 Value *X, *Y, *Z, *W;
2713 bool IsCommutative = false;
2714 CmpPredicate PredLHS = CmpInst::BAD_ICMP_PREDICATE;
2715 CmpPredicate PredRHS = CmpInst::BAD_ICMP_PREDICATE;
2716 if (match(LHS, m_BinOp(m_Value(X), m_Value(Y))) &&
2717 match(RHS, m_BinOp(m_Value(Z), m_Value(W)))) {
2718 auto *BO = cast<BinaryOperator>(LHS);
2719 // Don't introduce poison into div/rem.
2720 if (llvm::is_contained(OldMask, PoisonMaskElem) && BO->isIntDivRem())
2721 return false;
2722 IsCommutative = BinaryOperator::isCommutative(BO->getOpcode());
2723 } else if (match(LHS, m_Cmp(PredLHS, m_Value(X), m_Value(Y))) &&
2724 match(RHS, m_Cmp(PredRHS, m_Value(Z), m_Value(W))) &&
2725 (CmpInst::Predicate)PredLHS == (CmpInst::Predicate)PredRHS) {
2726 IsCommutative = cast<CmpInst>(LHS)->isCommutative();
2727 } else
2728 return false;
2729
2730 auto *ShuffleDstTy = dyn_cast<FixedVectorType>(I.getType());
2731 auto *BinResTy = dyn_cast<FixedVectorType>(LHS->getType());
2732 auto *BinOpTy = dyn_cast<FixedVectorType>(X->getType());
2733 if (!ShuffleDstTy || !BinResTy || !BinOpTy || X->getType() != Z->getType())
2734 return false;
2735
2736 bool SameBinOp = LHS == RHS;
2737 unsigned NumSrcElts = BinOpTy->getNumElements();
2738
2739 // If we have something like "add X, Y" and "add Z, X", swap ops to match.
2740 if (IsCommutative && X != Z && Y != W && (X == W || Y == Z))
2741 std::swap(X, Y);
2742
2743 auto ConvertToUnary = [NumSrcElts](int &M) {
2744 if (M >= (int)NumSrcElts)
2745 M -= NumSrcElts;
2746 };
2747
2748 SmallVector<int> NewMask0(OldMask);
2750 TTI::OperandValueInfo Op0Info = TTI.commonOperandInfo(X, Z);
2751 if (X == Z) {
2752 llvm::for_each(NewMask0, ConvertToUnary);
2754 Z = PoisonValue::get(BinOpTy);
2755 }
2756
2757 SmallVector<int> NewMask1(OldMask);
2759 TTI::OperandValueInfo Op1Info = TTI.commonOperandInfo(Y, W);
2760 if (Y == W) {
2761 llvm::for_each(NewMask1, ConvertToUnary);
2763 W = PoisonValue::get(BinOpTy);
2764 }
2765
2766 // Try to replace a binop with a shuffle if the shuffle is not costly.
2767 // When SameBinOp, only count the binop cost once.
2770
2771 InstructionCost OldCost = LHSCost;
2772 if (!SameBinOp) {
2773 OldCost += RHSCost;
2774 }
2776 ShuffleDstTy, BinResTy, CostKind, OldMask, 0,
2777 nullptr, {LHS, RHS}, &I);
2778
2779 // Handle shuffle(binop(shuffle(x),y),binop(z,shuffle(w))) style patterns
2780 // where one use shuffles have gotten split across the binop/cmp. These
2781 // often allow a major reduction in total cost that wouldn't happen as
2782 // individual folds.
2783 auto MergeInner = [&](Value *&Op, int Offset, MutableArrayRef<int> Mask,
2784 TTI::TargetCostKind CostKind) -> bool {
2785 Value *InnerOp;
2786 ArrayRef<int> InnerMask;
2787 if (match(Op, m_OneUse(m_Shuffle(m_Value(InnerOp), m_Undef(),
2788 m_Mask(InnerMask)))) &&
2789 InnerOp->getType() == Op->getType() &&
2790 all_of(InnerMask,
2791 [NumSrcElts](int M) { return M < (int)NumSrcElts; })) {
2792 for (int &M : Mask)
2793 if (Offset <= M && M < (int)(Offset + NumSrcElts)) {
2794 M = InnerMask[M - Offset];
2795 M = 0 <= M ? M + Offset : M;
2796 }
2798 Op = InnerOp;
2799 return true;
2800 }
2801 return false;
2802 };
2803 bool ReducedInstCount = false;
2804 ReducedInstCount |= MergeInner(X, 0, NewMask0, CostKind);
2805 ReducedInstCount |= MergeInner(Y, 0, NewMask1, CostKind);
2806 ReducedInstCount |= MergeInner(Z, NumSrcElts, NewMask0, CostKind);
2807 ReducedInstCount |= MergeInner(W, NumSrcElts, NewMask1, CostKind);
2808 bool SingleSrcBinOp = (X == Y) && (Z == W) && (NewMask0 == NewMask1);
2809 // SingleSrcBinOp only reduces instruction count if we also eliminate the
2810 // original binop(s). If binops have multiple uses, they won't be eliminated.
2811 ReducedInstCount |= SingleSrcBinOp && LHS->hasOneUser() && RHS->hasOneUser();
2812
2813 // For concat shuffles of i1 vectors where both binops are one-use, the
2814 // transform keeps the same instruction count but canonicalises to a single
2815 // wider binop, enabling downstream folds (e.g. NOT(XOR(concat(a,b),
2816 // concat(c,d))) -> XNOR(concat(a,b),concat(c,d)) on AVX-512 mask regs).
2817 // Restrict to BinaryOperator (not CmpInst) since narrow comparisons may
2818 // be cheaper than wide ones on some targets (e.g. AVX-512 vpcmpeq).
2819 ReducedInstCount |= cast<ShuffleVectorInst>(&I)->isConcat() &&
2820 I.getType()->getScalarType()->isIntegerTy(1) &&
2822 RHS->hasOneUser();
2823
2824 auto *ShuffleCmpTy =
2825 FixedVectorType::get(BinOpTy->getElementType(), ShuffleDstTy);
2827 SK0, ShuffleCmpTy, BinOpTy, CostKind, NewMask0, 0, nullptr, {X, Z});
2828 if (!SingleSrcBinOp)
2829 NewCost += TTI.getShuffleCost(SK1, ShuffleCmpTy, BinOpTy, CostKind,
2830 NewMask1, 0, nullptr, {Y, W});
2831
2832 if (PredLHS == CmpInst::BAD_ICMP_PREDICATE) {
2833 NewCost += TTI.getArithmeticInstrCost(LHS->getOpcode(), ShuffleDstTy,
2834 CostKind, Op0Info, Op1Info);
2835 } else {
2836 NewCost +=
2837 TTI.getCmpSelInstrCost(LHS->getOpcode(), ShuffleCmpTy, ShuffleDstTy,
2838 PredLHS, CostKind, Op0Info, Op1Info);
2839 }
2840 // If LHS/RHS have other uses, we need to account for the cost of keeping
2841 // the original instructions. When SameBinOp, only add the cost once.
2842 if (!LHS->hasOneUser())
2843 NewCost += LHSCost;
2844 if (!SameBinOp && !RHS->hasOneUser())
2845 NewCost += RHSCost;
2846
2847 LLVM_DEBUG(dbgs() << "Found a shuffle feeding two binops: " << I
2848 << "\n OldCost: " << OldCost << " vs NewCost: " << NewCost
2849 << "\n");
2850
2851 // If either shuffle will constant fold away, then fold for the same cost as
2852 // we will reduce the instruction count.
2853 ReducedInstCount |= (isa<Constant>(X) && isa<Constant>(Z)) ||
2854 (isa<Constant>(Y) && isa<Constant>(W));
2855 if (ReducedInstCount ? (NewCost > OldCost) : (NewCost >= OldCost))
2856 return false;
2857
2858 Value *Shuf0 = Builder.CreateShuffleVector(X, Z, NewMask0);
2859 Value *Shuf1 =
2860 SingleSrcBinOp ? Shuf0 : Builder.CreateShuffleVector(Y, W, NewMask1);
2861 Value *NewBO = PredLHS == CmpInst::BAD_ICMP_PREDICATE
2862 ? Builder.CreateBinOp(
2863 cast<BinaryOperator>(LHS)->getOpcode(), Shuf0, Shuf1)
2864 : Builder.CreateCmp(PredLHS, Shuf0, Shuf1);
2865
2866 // Intersect flags from the old binops.
2867 if (auto *NewInst = dyn_cast<Instruction>(NewBO)) {
2868 NewInst->copyIRFlags(LHS);
2869 NewInst->andIRFlags(RHS);
2870 }
2871
2872 Worklist.pushValue(Shuf0);
2873 Worklist.pushValue(Shuf1);
2874 replaceValue(I, *NewBO);
2875 return true;
2876}
2877
2878/// Try to convert,
2879/// (shuffle(select(c1,t1,f1)), (select(c2,t2,f2)), m) into
2880/// (select (shuffle c1,c2,m), (shuffle t1,t2,m), (shuffle f1,f2,m))
2881bool VectorCombine::foldShuffleOfSelects(Instruction &I) {
2882 ArrayRef<int> Mask;
2883 Value *C1, *T1, *F1, *C2, *T2, *F2;
2884 if (!match(&I, m_Shuffle(m_Select(m_Value(C1), m_Value(T1), m_Value(F1)),
2885 m_Select(m_Value(C2), m_Value(T2), m_Value(F2)),
2886 m_Mask(Mask))))
2887 return false;
2888
2889 auto *Sel1 = cast<Instruction>(I.getOperand(0));
2890 auto *Sel2 = cast<Instruction>(I.getOperand(1));
2891
2892 auto *C1VecTy = dyn_cast<FixedVectorType>(C1->getType());
2893 auto *C2VecTy = dyn_cast<FixedVectorType>(C2->getType());
2894 if (!C1VecTy || !C2VecTy || C1VecTy != C2VecTy)
2895 return false;
2896
2897 auto *SI0FOp = dyn_cast<FPMathOperator>(I.getOperand(0));
2898 auto *SI1FOp = dyn_cast<FPMathOperator>(I.getOperand(1));
2899 // SelectInsts must have the same FMF.
2900 if (((SI0FOp == nullptr) != (SI1FOp == nullptr)) ||
2901 ((SI0FOp != nullptr) &&
2902 (SI0FOp->getFastMathFlags() != SI1FOp->getFastMathFlags())))
2903 return false;
2904
2905 auto *SrcVecTy = cast<FixedVectorType>(T1->getType());
2906 auto *DstVecTy = cast<FixedVectorType>(I.getType());
2908 auto SelOp = Instruction::Select;
2909
2911 SelOp, SrcVecTy, C1VecTy, CmpInst::BAD_ICMP_PREDICATE, CostKind);
2913 SelOp, SrcVecTy, C2VecTy, CmpInst::BAD_ICMP_PREDICATE, CostKind);
2914
2915 InstructionCost OldCost =
2916 CostSel1 + CostSel2 +
2917 TTI.getShuffleCost(SK, DstVecTy, SrcVecTy, CostKind, Mask, 0, nullptr,
2918 {I.getOperand(0), I.getOperand(1)}, &I);
2919
2921 SK, FixedVectorType::get(C1VecTy->getScalarType(), Mask.size()), C1VecTy,
2922 CostKind, Mask, 0, nullptr, {C1, C2});
2923 NewCost += TTI.getShuffleCost(SK, DstVecTy, SrcVecTy, CostKind, Mask, 0,
2924 nullptr, {T1, T2});
2925 NewCost += TTI.getShuffleCost(SK, DstVecTy, SrcVecTy, CostKind, Mask, 0,
2926 nullptr, {F1, F2});
2927 auto *C1C2ShuffledVecTy = FixedVectorType::get(
2928 Type::getInt1Ty(I.getContext()), DstVecTy->getNumElements());
2929 NewCost += TTI.getCmpSelInstrCost(SelOp, DstVecTy, C1C2ShuffledVecTy,
2931
2932 if (!Sel1->hasOneUse())
2933 NewCost += CostSel1;
2934 if (!Sel2->hasOneUse())
2935 NewCost += CostSel2;
2936
2937 LLVM_DEBUG(dbgs() << "Found a shuffle feeding two selects: " << I
2938 << "\n OldCost: " << OldCost << " vs NewCost: " << NewCost
2939 << "\n");
2940 if (NewCost > OldCost)
2941 return false;
2942
2943 Value *ShuffleCmp = Builder.CreateShuffleVector(C1, C2, Mask);
2944 Value *ShuffleTrue = Builder.CreateShuffleVector(T1, T2, Mask);
2945 Value *ShuffleFalse = Builder.CreateShuffleVector(F1, F2, Mask);
2946 Value *NewSel;
2947 // We presuppose that the SelectInsts have the same FMF.
2948 if (SI0FOp)
2949 NewSel = Builder.CreateSelectFMF(ShuffleCmp, ShuffleTrue, ShuffleFalse,
2950 SI0FOp->getFastMathFlags());
2951 else
2952 NewSel = Builder.CreateSelect(ShuffleCmp, ShuffleTrue, ShuffleFalse);
2953
2954 Worklist.pushValue(ShuffleCmp);
2955 Worklist.pushValue(ShuffleTrue);
2956 Worklist.pushValue(ShuffleFalse);
2957 replaceValue(I, *NewSel);
2958 return true;
2959}
2960
2961/// Try to convert "shuffle (castop), (castop)" with a shared castop operand
2962/// into "castop (shuffle)".
2963bool VectorCombine::foldShuffleOfCastops(Instruction &I) {
2964 Value *V0, *V1;
2965 ArrayRef<int> OldMask;
2966 if (!match(&I, m_Shuffle(m_Value(V0), m_Value(V1), m_Mask(OldMask))))
2967 return false;
2968
2969 // Check whether this is a binary shuffle.
2970 bool IsBinaryShuffle = !isa<UndefValue>(V1);
2971
2972 auto *C0 = dyn_cast<CastInst>(V0);
2973 auto *C1 = dyn_cast<CastInst>(V1);
2974 if (!C0 || (IsBinaryShuffle && !C1))
2975 return false;
2976
2977 Instruction::CastOps Opcode = C0->getOpcode();
2978
2979 // If this is allowed, foldShuffleOfCastops can get stuck in a loop
2980 // with foldBitcastOfShuffle. Reject in favor of foldBitcastOfShuffle.
2981 if (!IsBinaryShuffle && Opcode == Instruction::BitCast)
2982 return false;
2983
2984 if (IsBinaryShuffle) {
2985 if (C0->getSrcTy() != C1->getSrcTy())
2986 return false;
2987 // Handle shuffle(zext_nneg(x), sext(y)) -> sext(shuffle(x,y)) folds.
2988 if (Opcode != C1->getOpcode()) {
2989 if (match(C0, m_SExtLike(m_Value())) && match(C1, m_SExtLike(m_Value())))
2990 Opcode = Instruction::SExt;
2991 else
2992 return false;
2993 }
2994 }
2995
2996 auto *ShuffleDstTy = dyn_cast<FixedVectorType>(I.getType());
2997 auto *CastDstTy = dyn_cast<FixedVectorType>(C0->getDestTy());
2998 auto *CastSrcTy = dyn_cast<FixedVectorType>(C0->getSrcTy());
2999 if (!ShuffleDstTy || !CastDstTy || !CastSrcTy)
3000 return false;
3001
3002 unsigned NumSrcElts = CastSrcTy->getNumElements();
3003 unsigned NumDstElts = CastDstTy->getNumElements();
3004 assert((NumDstElts == NumSrcElts || Opcode == Instruction::BitCast) &&
3005 "Only bitcasts expected to alter src/dst element counts");
3006
3007 // Check for bitcasting of unscalable vector types.
3008 // e.g. <32 x i40> -> <40 x i32>
3009 if (NumDstElts != NumSrcElts && (NumSrcElts % NumDstElts) != 0 &&
3010 (NumDstElts % NumSrcElts) != 0)
3011 return false;
3012
3013 SmallVector<int, 16> NewMask;
3014 if (NumSrcElts >= NumDstElts) {
3015 // The bitcast is from wide to narrow/equal elements. The shuffle mask can
3016 // always be expanded to the equivalent form choosing narrower elements.
3017 assert(NumSrcElts % NumDstElts == 0 && "Unexpected shuffle mask");
3018 unsigned ScaleFactor = NumSrcElts / NumDstElts;
3019 narrowShuffleMaskElts(ScaleFactor, OldMask, NewMask);
3020 } else {
3021 // The bitcast is from narrow elements to wide elements. The shuffle mask
3022 // must choose consecutive elements to allow casting first.
3023 assert(NumDstElts % NumSrcElts == 0 && "Unexpected shuffle mask");
3024 unsigned ScaleFactor = NumDstElts / NumSrcElts;
3025 if (!widenShuffleMaskElts(ScaleFactor, OldMask, NewMask))
3026 return false;
3027 }
3028
3029 auto *NewShuffleDstTy =
3030 FixedVectorType::get(CastSrcTy->getScalarType(), NewMask.size());
3031
3032 // Try to replace a castop with a shuffle if the shuffle is not costly.
3033 InstructionCost CostC0 =
3034 TTI.getCastInstrCost(C0->getOpcode(), CastDstTy, CastSrcTy,
3036
3038 if (IsBinaryShuffle)
3040 else
3042
3043 InstructionCost OldCost = CostC0;
3044 OldCost += TTI.getShuffleCost(ShuffleKind, ShuffleDstTy, CastDstTy, CostKind,
3045 OldMask, 0, nullptr, {}, &I);
3046
3047 InstructionCost NewCost = TTI.getShuffleCost(ShuffleKind, NewShuffleDstTy,
3048 CastSrcTy, CostKind, NewMask);
3049 NewCost += TTI.getCastInstrCost(Opcode, ShuffleDstTy, NewShuffleDstTy,
3051 if (!C0->hasOneUse())
3052 NewCost += CostC0;
3053 if (IsBinaryShuffle) {
3054 InstructionCost CostC1 =
3055 TTI.getCastInstrCost(C1->getOpcode(), CastDstTy, CastSrcTy,
3057 OldCost += CostC1;
3058 if (!C1->hasOneUse())
3059 NewCost += CostC1;
3060 }
3061
3062 LLVM_DEBUG(dbgs() << "Found a shuffle feeding two casts: " << I
3063 << "\n OldCost: " << OldCost << " vs NewCost: " << NewCost
3064 << "\n");
3065 if (NewCost > OldCost)
3066 return false;
3067
3068 Value *Shuf;
3069 if (IsBinaryShuffle)
3070 Shuf = Builder.CreateShuffleVector(C0->getOperand(0), C1->getOperand(0),
3071 NewMask);
3072 else
3073 Shuf = Builder.CreateShuffleVector(C0->getOperand(0), NewMask);
3074
3075 Value *Cast = Builder.CreateCast(Opcode, Shuf, ShuffleDstTy);
3076
3077 // Intersect flags from the old casts.
3078 if (auto *NewInst = dyn_cast<Instruction>(Cast)) {
3079 NewInst->copyIRFlags(C0);
3080 if (IsBinaryShuffle)
3081 NewInst->andIRFlags(C1);
3082 }
3083
3084 Worklist.pushValue(Shuf);
3085 replaceValue(I, *Cast);
3086 return true;
3087}
3088
3089/// Try to convert any of:
3090/// "shuffle (shuffle x, y), (shuffle y, x)"
3091/// "shuffle (shuffle x, undef), (shuffle y, undef)"
3092/// "shuffle (shuffle x, undef), y"
3093/// "shuffle x, (shuffle y, undef)"
3094/// into "shuffle x, y".
3095bool VectorCombine::foldShuffleOfShuffles(Instruction &I) {
3096 ArrayRef<int> OuterMask;
3097 Value *OuterV0, *OuterV1;
3098 if (!match(&I,
3099 m_Shuffle(m_Value(OuterV0), m_Value(OuterV1), m_Mask(OuterMask))))
3100 return false;
3101
3102 ArrayRef<int> InnerMask0, InnerMask1;
3103 Value *X0, *X1, *Y0, *Y1;
3104 bool Match0 =
3105 match(OuterV0, m_Shuffle(m_Value(X0), m_Value(Y0), m_Mask(InnerMask0)));
3106 bool Match1 =
3107 match(OuterV1, m_Shuffle(m_Value(X1), m_Value(Y1), m_Mask(InnerMask1)));
3108 if (!Match0 && !Match1)
3109 return false;
3110
3111 // If the outer shuffle is a permute, then create a fake inner all-poison
3112 // shuffle. This is easier than accounting for length-changing shuffles below.
3113 SmallVector<int, 16> PoisonMask1;
3114 if (!Match1 && isa<PoisonValue>(OuterV1)) {
3115 X1 = X0;
3116 Y1 = Y0;
3117 PoisonMask1.append(InnerMask0.size(), PoisonMaskElem);
3118 InnerMask1 = PoisonMask1;
3119 Match1 = true; // fake match
3120 }
3121
3122 X0 = Match0 ? X0 : OuterV0;
3123 Y0 = Match0 ? Y0 : OuterV0;
3124 X1 = Match1 ? X1 : OuterV1;
3125 Y1 = Match1 ? Y1 : OuterV1;
3126 auto *ShuffleDstTy = dyn_cast<FixedVectorType>(I.getType());
3127 auto *ShuffleSrcTy = dyn_cast<FixedVectorType>(X0->getType());
3128 auto *ShuffleImmTy = dyn_cast<FixedVectorType>(OuterV0->getType());
3129 if (!ShuffleDstTy || !ShuffleSrcTy || !ShuffleImmTy ||
3130 X0->getType() != X1->getType())
3131 return false;
3132
3133 unsigned NumSrcElts = ShuffleSrcTy->getNumElements();
3134 unsigned NumImmElts = ShuffleImmTy->getNumElements();
3135
3136 // Attempt to merge shuffles, matching upto 2 source operands.
3137 // Replace index to a poison arg with PoisonMaskElem.
3138 // Bail if either inner masks reference an undef arg.
3139 SmallVector<int, 16> NewMask(OuterMask);
3140 Value *NewX = nullptr, *NewY = nullptr;
3141 for (int &M : NewMask) {
3142 Value *Src = nullptr;
3143 if (0 <= M && M < (int)NumImmElts) {
3144 Src = OuterV0;
3145 if (Match0) {
3146 M = InnerMask0[M];
3147 Src = M >= (int)NumSrcElts ? Y0 : X0;
3148 M = M >= (int)NumSrcElts ? (M - NumSrcElts) : M;
3149 }
3150 } else if (M >= (int)NumImmElts) {
3151 Src = OuterV1;
3152 M -= NumImmElts;
3153 if (Match1) {
3154 M = InnerMask1[M];
3155 Src = M >= (int)NumSrcElts ? Y1 : X1;
3156 M = M >= (int)NumSrcElts ? (M - NumSrcElts) : M;
3157 }
3158 }
3159 if (Src && M != PoisonMaskElem) {
3160 assert(0 <= M && M < (int)NumSrcElts && "Unexpected shuffle mask index");
3161 if (isa<UndefValue>(Src)) {
3162 // We've referenced an undef element - if its poison, update the shuffle
3163 // mask, else bail.
3164 if (!isa<PoisonValue>(Src))
3165 return false;
3166 M = PoisonMaskElem;
3167 continue;
3168 }
3169 if (!NewX || NewX == Src) {
3170 NewX = Src;
3171 continue;
3172 }
3173 if (!NewY || NewY == Src) {
3174 M += NumSrcElts;
3175 NewY = Src;
3176 continue;
3177 }
3178 return false;
3179 }
3180 }
3181
3182 if (!NewX) {
3183 replaceValue(I, *PoisonValue::get(ShuffleDstTy));
3184 return true;
3185 }
3186
3187 if (!NewY)
3188 NewY = PoisonValue::get(ShuffleSrcTy);
3189
3190 // Have we folded to an Identity shuffle?
3191 if (ShuffleVectorInst::isIdentityMask(NewMask, NumSrcElts)) {
3192 replaceValue(I, *NewX);
3193 return true;
3194 }
3195
3196 // Try to merge the shuffles if the new shuffle is not costly.
3197 InstructionCost InnerCost0 = 0;
3198 if (Match0)
3199 InnerCost0 = TTI.getInstructionCost(cast<User>(OuterV0), CostKind);
3200
3201 InstructionCost InnerCost1 = 0;
3202 if (Match1)
3203 InnerCost1 = TTI.getInstructionCost(cast<User>(OuterV1), CostKind);
3204
3206
3207 InstructionCost OldCost = InnerCost0 + InnerCost1 + OuterCost;
3208
3209 bool IsUnary = all_of(NewMask, [&](int M) { return M < (int)NumSrcElts; });
3213 InstructionCost NewCost =
3214 TTI.getShuffleCost(SK, ShuffleDstTy, ShuffleSrcTy, CostKind, NewMask, 0,
3215 nullptr, {NewX, NewY});
3216 if (!OuterV0->hasOneUse())
3217 NewCost += InnerCost0;
3218 if (!OuterV1->hasOneUse())
3219 NewCost += InnerCost1;
3220
3221 LLVM_DEBUG(dbgs() << "Found a shuffle feeding two shuffles: " << I
3222 << "\n OldCost: " << OldCost << " vs NewCost: " << NewCost
3223 << "\n");
3224 if (NewCost > OldCost)
3225 return false;
3226
3227 Value *Shuf = Builder.CreateShuffleVector(NewX, NewY, NewMask);
3228 replaceValue(I, *Shuf);
3229 return true;
3230}
3231
3232/// Try to convert a chain of length-preserving shuffles that are fed by
3233/// length-changing shuffles from the same source, e.g. a chain of length 3:
3234///
3235/// "shuffle (shuffle (shuffle x, (shuffle y, undef)),
3236/// (shuffle y, undef)),
3237// (shuffle y, undef)"
3238///
3239/// into a single shuffle fed by a length-changing shuffle:
3240///
3241/// "shuffle x, (shuffle y, undef)"
3242///
3243/// Such chains arise e.g. from folding extract/insert sequences.
3244bool VectorCombine::foldShufflesOfLengthChangingShuffles(Instruction &I) {
3245 FixedVectorType *TrunkType = dyn_cast<FixedVectorType>(I.getType());
3246 if (!TrunkType)
3247 return false;
3248
3249 unsigned ChainLength = 0;
3250 SmallVector<int> Mask;
3251 SmallVector<int> YMask;
3252 InstructionCost OldCost = 0;
3253 InstructionCost NewCost = 0;
3254 Value *Trunk = &I;
3255 unsigned NumTrunkElts = TrunkType->getNumElements();
3256 Value *Y = nullptr;
3257
3258 for (;;) {
3259 // Match the current trunk against (commutations of) the pattern
3260 // "shuffle trunk', (shuffle y, undef)"
3261 ArrayRef<int> OuterMask;
3262 Value *OuterV0, *OuterV1;
3263 if (ChainLength != 0 && !Trunk->hasOneUse())
3264 break;
3265 if (!match(Trunk, m_Shuffle(m_Value(OuterV0), m_Value(OuterV1),
3266 m_Mask(OuterMask))))
3267 break;
3268 if (OuterV0->getType() != TrunkType) {
3269 // This shuffle is not length-preserving, so it cannot be part of the
3270 // chain.
3271 break;
3272 }
3273
3274 ArrayRef<int> InnerMask0, InnerMask1;
3275 Value *A0, *A1, *B0, *B1;
3276 bool Match0 =
3277 match(OuterV0, m_Shuffle(m_Value(A0), m_Value(B0), m_Mask(InnerMask0)));
3278 bool Match1 =
3279 match(OuterV1, m_Shuffle(m_Value(A1), m_Value(B1), m_Mask(InnerMask1)));
3280 bool Match0Leaf = Match0 && A0->getType() != I.getType();
3281 bool Match1Leaf = Match1 && A1->getType() != I.getType();
3282 if (Match0Leaf == Match1Leaf) {
3283 // Only handle the case of exactly one leaf in each step. The "two leaves"
3284 // case is handled by foldShuffleOfShuffles.
3285 break;
3286 }
3287
3288 SmallVector<int> CommutedOuterMask;
3289 if (Match0Leaf) {
3290 std::swap(OuterV0, OuterV1);
3291 std::swap(InnerMask0, InnerMask1);
3292 std::swap(A0, A1);
3293 std::swap(B0, B1);
3294 llvm::append_range(CommutedOuterMask, OuterMask);
3295 for (int &M : CommutedOuterMask) {
3296 if (M == PoisonMaskElem)
3297 continue;
3298 if (M < (int)NumTrunkElts)
3299 M += NumTrunkElts;
3300 else
3301 M -= NumTrunkElts;
3302 }
3303 OuterMask = CommutedOuterMask;
3304 }
3305 if (!OuterV1->hasOneUse())
3306 break;
3307
3308 if (!isa<UndefValue>(A1)) {
3309 if (!Y)
3310 Y = A1;
3311 else if (Y != A1)
3312 break;
3313 }
3314 if (!isa<UndefValue>(B1)) {
3315 if (!Y)
3316 Y = B1;
3317 else if (Y != B1)
3318 break;
3319 }
3320
3321 auto *YType = cast<FixedVectorType>(A1->getType());
3322 int NumLeafElts = YType->getNumElements();
3323 SmallVector<int> LocalYMask(InnerMask1);
3324 for (int &M : LocalYMask) {
3325 if (M >= NumLeafElts)
3326 M -= NumLeafElts;
3327 }
3328
3329 InstructionCost LocalOldCost =
3332
3333 // Handle the initial (start of chain) case.
3334 if (!ChainLength) {
3335 Mask.assign(OuterMask);
3336 YMask.assign(LocalYMask);
3337 OldCost = NewCost = LocalOldCost;
3338 Trunk = OuterV0;
3339 ChainLength++;
3340 continue;
3341 }
3342
3343 // For the non-root case, first attempt to combine masks.
3344 SmallVector<int> NewYMask(YMask);
3345 bool Valid = true;
3346 for (auto [CombinedM, LeafM] : llvm::zip(NewYMask, LocalYMask)) {
3347 if (LeafM == -1 || CombinedM == LeafM)
3348 continue;
3349 if (CombinedM == -1) {
3350 CombinedM = LeafM;
3351 } else {
3352 Valid = false;
3353 break;
3354 }
3355 }
3356 if (!Valid)
3357 break;
3358
3359 SmallVector<int> NewMask;
3360 NewMask.reserve(NumTrunkElts);
3361 for (int M : Mask) {
3362 if (M < 0 || M >= static_cast<int>(NumTrunkElts))
3363 NewMask.push_back(M);
3364 else
3365 NewMask.push_back(OuterMask[M]);
3366 }
3367
3368 // Break the chain if adding this new step complicates the shuffles such
3369 // that it would increase the new cost by more than the old cost of this
3370 // step.
3371 InstructionCost LocalNewCost =
3373 YType, CostKind, NewYMask) +
3375 TrunkType, CostKind, NewMask);
3376
3377 if (LocalNewCost >= NewCost && LocalOldCost < LocalNewCost - NewCost)
3378 break;
3379
3380 LLVM_DEBUG({
3381 if (ChainLength == 1) {
3382 dbgs() << "Found chain of shuffles fed by length-changing shuffles: "
3383 << I << '\n';
3384 }
3385 dbgs() << " next chain link: " << *Trunk << '\n'
3386 << " old cost: " << (OldCost + LocalOldCost)
3387 << " new cost: " << LocalNewCost << '\n';
3388 });
3389
3390 Mask = NewMask;
3391 YMask = NewYMask;
3392 OldCost += LocalOldCost;
3393 NewCost = LocalNewCost;
3394 Trunk = OuterV0;
3395 ChainLength++;
3396 }
3397 if (ChainLength <= 1)
3398 return false;
3399
3400 // Bail out if all leaves were poison.
3401 if (!Y)
3402 return false;
3403
3404 if (llvm::all_of(Mask, [&](int M) {
3405 return M < 0 || M >= static_cast<int>(NumTrunkElts);
3406 })) {
3407 // Produce a canonical simplified form if all elements are sourced from Y.
3408 for (int &M : Mask) {
3409 if (M >= static_cast<int>(NumTrunkElts))
3410 M = YMask[M - NumTrunkElts];
3411 }
3412 Value *Root =
3413 Builder.CreateShuffleVector(Y, PoisonValue::get(Y->getType()), Mask);
3414 replaceValue(I, *Root);
3415 return true;
3416 }
3417
3418 Value *Leaf =
3419 Builder.CreateShuffleVector(Y, PoisonValue::get(Y->getType()), YMask);
3420 Value *Root = Builder.CreateShuffleVector(Trunk, Leaf, Mask);
3421 replaceValue(I, *Root);
3422 return true;
3423}
3424
3425/// Try to convert
3426/// "shuffle (intrinsic), (intrinsic)" into "intrinsic (shuffle), (shuffle)".
3427bool VectorCombine::foldShuffleOfIntrinsics(Instruction &I) {
3428 Value *V0, *V1;
3429 ArrayRef<int> OldMask;
3430 if (!match(&I, m_Shuffle(m_Value(V0), m_Value(V1), m_Mask(OldMask))))
3431 return false;
3432
3433 auto *II0 = dyn_cast<IntrinsicInst>(V0);
3434 auto *II1 = dyn_cast<IntrinsicInst>(V1);
3435 if (!II0 || !II1)
3436 return false;
3437
3438 Intrinsic::ID IID = II0->getIntrinsicID();
3439 if (IID != II1->getIntrinsicID())
3440 return false;
3441 InstructionCost CostII0 =
3442 TTI.getIntrinsicInstrCost(IntrinsicCostAttributes(IID, *II0), CostKind);
3443 InstructionCost CostII1 =
3444 TTI.getIntrinsicInstrCost(IntrinsicCostAttributes(IID, *II1), CostKind);
3445
3446 auto *ShuffleDstTy = dyn_cast<FixedVectorType>(I.getType());
3447 auto *II0Ty = dyn_cast<FixedVectorType>(II0->getType());
3448 if (!ShuffleDstTy || !II0Ty)
3449 return false;
3450
3451 if (!isTriviallyVectorizable(IID))
3452 return false;
3453
3454 for (unsigned I = 0, E = II0->arg_size(); I != E; ++I) {
3455 Value *Arg0 = II0->getArgOperand(I);
3456 Value *Arg1 = II1->getArgOperand(I);
3458 // Scalar operands must be identical.
3459 if (Arg0 != Arg1)
3460 return false;
3461 } else if (Arg0->getType() != Arg1->getType()) {
3462 // The corresponding vector operands are shuffled together, so they must
3463 // share the same type. For intrinsics overloaded on their operand type
3464 // (e.g. llvm.fptosi.sat), two calls can produce the same result type
3465 // from different operand types; shuffling those would be invalid.
3466 return false;
3467 }
3468 }
3469
3470 InstructionCost OldCost =
3471 CostII0 + CostII1 +
3473 II0Ty, CostKind, OldMask, 0, nullptr, {II0, II1}, &I);
3474
3475 SmallVector<Type *> NewArgsTy;
3476 InstructionCost NewCost = 0;
3477 SmallDenseSet<std::pair<Value *, Value *>> SeenOperandPairs;
3478 for (unsigned I = 0, E = II0->arg_size(); I != E; ++I) {
3480 NewArgsTy.push_back(II0->getArgOperand(I)->getType());
3481 } else {
3482 auto *VecTy = cast<FixedVectorType>(II0->getArgOperand(I)->getType());
3483 auto *ArgTy = FixedVectorType::get(VecTy->getElementType(),
3484 ShuffleDstTy->getNumElements());
3485 NewArgsTy.push_back(ArgTy);
3486 std::pair<Value *, Value *> OperandPair =
3487 std::make_pair(II0->getArgOperand(I), II1->getArgOperand(I));
3488 if (!SeenOperandPairs.insert(OperandPair).second) {
3489 // We've already computed the cost for this operand pair.
3490 continue;
3491 }
3492 NewCost += TTI.getShuffleCost(
3494 OldMask, 0, nullptr, {II0->getArgOperand(I), II1->getArgOperand(I)});
3495 }
3496 }
3497 IntrinsicCostAttributes NewAttr(IID, ShuffleDstTy, NewArgsTy);
3498
3499 NewCost += TTI.getIntrinsicInstrCost(NewAttr, CostKind);
3500 if (!II0->hasOneUse())
3501 NewCost += CostII0;
3502 if (II1 != II0 && !II1->hasOneUse())
3503 NewCost += CostII1;
3504
3505 LLVM_DEBUG(dbgs() << "Found a shuffle feeding two intrinsics: " << I
3506 << "\n OldCost: " << OldCost << " vs NewCost: " << NewCost
3507 << "\n");
3508
3509 if (NewCost > OldCost)
3510 return false;
3511
3512 SmallVector<Value *> NewArgs;
3513 SmallDenseMap<std::pair<Value *, Value *>, Value *> ShuffleCache;
3514 for (unsigned I = 0, E = II0->arg_size(); I != E; ++I)
3516 NewArgs.push_back(II0->getArgOperand(I));
3517 } else {
3518 std::pair<Value *, Value *> OperandPair =
3519 std::make_pair(II0->getArgOperand(I), II1->getArgOperand(I));
3520 auto It = ShuffleCache.find(OperandPair);
3521 if (It != ShuffleCache.end()) {
3522 // Reuse previously created shuffle for this operand pair.
3523 NewArgs.push_back(It->second);
3524 continue;
3525 }
3526 Value *Shuf = Builder.CreateShuffleVector(II0->getArgOperand(I),
3527 II1->getArgOperand(I), OldMask);
3528 ShuffleCache[OperandPair] = Shuf;
3529 NewArgs.push_back(Shuf);
3530 Worklist.pushValue(Shuf);
3531 }
3532 Value *NewIntrinsic = Builder.CreateIntrinsic(ShuffleDstTy, IID, NewArgs);
3533
3534 // Intersect flags from the old intrinsics.
3535 if (auto *NewInst = dyn_cast<Instruction>(NewIntrinsic)) {
3536 NewInst->copyIRFlags(II0);
3537 NewInst->andIRFlags(II1);
3538 }
3539
3540 replaceValue(I, *NewIntrinsic);
3541 return true;
3542}
3543
3544/// Try to convert
3545/// "shuffle (intrinsic), (poison/undef)" into "intrinsic (shuffle)".
3546bool VectorCombine::foldPermuteOfIntrinsic(Instruction &I) {
3547 Value *V0;
3548 ArrayRef<int> Mask;
3549 if (!match(&I, m_Shuffle(m_Value(V0), m_Undef(), m_Mask(Mask))))
3550 return false;
3551
3552 auto *II0 = dyn_cast<IntrinsicInst>(V0);
3553 if (!II0)
3554 return false;
3555
3556 auto *ShuffleDstTy = dyn_cast<FixedVectorType>(I.getType());
3557 auto *IntrinsicSrcTy = dyn_cast<FixedVectorType>(II0->getType());
3558 if (!ShuffleDstTy || !IntrinsicSrcTy)
3559 return false;
3560
3561 // Validate it's a pure permute, mask should only reference the first vector
3562 unsigned NumSrcElts = IntrinsicSrcTy->getNumElements();
3563 if (any_of(Mask, [NumSrcElts](int M) { return M >= (int)NumSrcElts; }))
3564 return false;
3565
3566 Intrinsic::ID IID = II0->getIntrinsicID();
3567 if (!isTriviallyVectorizable(IID))
3568 return false;
3569
3570 // Cost analysis
3572 TTI.getIntrinsicInstrCost(IntrinsicCostAttributes(IID, *II0), CostKind);
3573 InstructionCost OldCost =
3576 IntrinsicSrcTy, CostKind, Mask, 0, nullptr, {V0}, &I);
3577
3578 SmallVector<Type *> NewArgsTy;
3579 InstructionCost NewCost = 0;
3580 for (unsigned I = 0, E = II0->arg_size(); I != E; ++I) {
3582 NewArgsTy.push_back(II0->getArgOperand(I)->getType());
3583 } else {
3584 auto *VecTy = cast<FixedVectorType>(II0->getArgOperand(I)->getType());
3585 auto *ArgTy = FixedVectorType::get(VecTy->getElementType(),
3586 ShuffleDstTy->getNumElements());
3587 NewArgsTy.push_back(ArgTy);
3589 ArgTy, VecTy, CostKind, Mask, 0, nullptr,
3590 {II0->getArgOperand(I)});
3591 }
3592 }
3593 IntrinsicCostAttributes NewAttr(IID, ShuffleDstTy, NewArgsTy);
3594 NewCost += TTI.getIntrinsicInstrCost(NewAttr, CostKind);
3595
3596 // If the intrinsic has multiple uses, we need to account for the cost of
3597 // keeping the original intrinsic around.
3598 if (!II0->hasOneUse())
3599 NewCost += IntrinsicCost;
3600
3601 LLVM_DEBUG(dbgs() << "Found a permute of intrinsic: " << I << "\n OldCost: "
3602 << OldCost << " vs NewCost: " << NewCost << "\n");
3603
3604 if (NewCost > OldCost)
3605 return false;
3606
3607 // Transform
3608 SmallVector<Value *> NewArgs;
3609 for (unsigned I = 0, E = II0->arg_size(); I != E; ++I) {
3611 NewArgs.push_back(II0->getArgOperand(I));
3612 } else {
3613 Value *Shuf = Builder.CreateShuffleVector(II0->getArgOperand(I), Mask);
3614 NewArgs.push_back(Shuf);
3615 Worklist.pushValue(Shuf);
3616 }
3617 }
3618
3619 Value *NewIntrinsic = Builder.CreateIntrinsic(ShuffleDstTy, IID, NewArgs);
3620
3621 if (auto *NewInst = dyn_cast<Instruction>(NewIntrinsic))
3622 NewInst->copyIRFlags(II0);
3623
3624 replaceValue(I, *NewIntrinsic);
3625 return true;
3626}
3627
3628using InstLane = std::pair<Value *, int>;
3629
3630static InstLane lookThroughShuffles(Value *V, int Lane) {
3631 while (auto *SV = dyn_cast<ShuffleVectorInst>(V)) {
3632 unsigned NumElts =
3633 cast<FixedVectorType>(SV->getOperand(0)->getType())->getNumElements();
3634 int M = SV->getMaskValue(Lane);
3635 if (M < 0)
3636 return {nullptr, PoisonMaskElem};
3637 if (static_cast<unsigned>(M) < NumElts) {
3638 V = SV->getOperand(0);
3639 Lane = M;
3640 } else {
3641 V = SV->getOperand(1);
3642 Lane = M - NumElts;
3643 }
3644 }
3645 return InstLane{V, Lane};
3646}
3647
3651 for (InstLane IL : Item) {
3652 auto [U, Lane] = IL;
3653 InstLane OpLane =
3654 U ? lookThroughShuffles(cast<Instruction>(U)->getOperand(Op), Lane)
3655 : InstLane{nullptr, PoisonMaskElem};
3656 NItem.emplace_back(OpLane);
3657 }
3658 return NItem;
3659}
3660
3661/// Detect concat of multiple values into a vector
3663 const TargetTransformInfo &TTI) {
3664 auto *Ty = cast<FixedVectorType>(Item.front().first->getType());
3665 unsigned NumElts = Ty->getNumElements();
3666 if (Item.size() == NumElts || NumElts == 1 || Item.size() % NumElts != 0)
3667 return false;
3668
3669 // Check that the concat is free, usually meaning that the type will be split
3670 // during legalization.
3671 SmallVector<int, 16> ConcatMask(NumElts * 2);
3672 std::iota(ConcatMask.begin(), ConcatMask.end(), 0);
3673 if (TTI.getShuffleCost(TTI::SK_PermuteTwoSrc,
3674 FixedVectorType::get(Ty->getScalarType(), NumElts * 2),
3675 Ty, CostKind, ConcatMask) != 0)
3676 return false;
3677
3678 unsigned NumSlices = Item.size() / NumElts;
3679 // Currently we generate a tree of shuffles for the concats, which limits us
3680 // to a power2.
3681 if (!isPowerOf2_32(NumSlices))
3682 return false;
3683 for (unsigned Slice = 0; Slice < NumSlices; ++Slice) {
3684 Value *SliceV = Item[Slice * NumElts].first;
3685 if (!SliceV || SliceV->getType() != Ty)
3686 return false;
3687 for (unsigned Elt = 0; Elt < NumElts; ++Elt) {
3688 auto [V, Lane] = Item[Slice * NumElts + Elt];
3689 if (Lane != static_cast<int>(Elt) || SliceV != V)
3690 return false;
3691 }
3692 }
3693 return true;
3694}
3695
3696static Value *
3698 const DenseSet<std::pair<Value *, Use *>> &IdentityLeafs,
3699 const DenseSet<std::pair<Value *, Use *>> &SplatLeafs,
3700 const DenseSet<std::pair<Value *, Use *>> &ConcatLeafs,
3701 IRBuilderBase &Builder, InstructionWorklist &WorkList,
3702 const TargetTransformInfo *TTI) {
3703 auto [FrontV, FrontLane] = Item.front();
3704
3705 if (IdentityLeafs.contains(std::make_pair(FrontV, From))) {
3706 return FrontV;
3707 }
3708 if (SplatLeafs.contains(std::make_pair(FrontV, From))) {
3709 SmallVector<int, 16> Mask(Item.size(), FrontLane);
3710 return Builder.CreateShuffleVector(FrontV, Mask);
3711 }
3712 if (ConcatLeafs.contains(std::make_pair(FrontV, From))) {
3713 unsigned NumElts =
3714 cast<FixedVectorType>(FrontV->getType())->getNumElements();
3715 SmallVector<Value *> Values(Item.size() / NumElts, nullptr);
3716 for (unsigned S = 0; S < Values.size(); ++S)
3717 Values[S] = Item[S * NumElts].first;
3718
3719 while (Values.size() > 1) {
3720 NumElts *= 2;
3721 SmallVector<int, 16> Mask(NumElts, 0);
3722 std::iota(Mask.begin(), Mask.end(), 0);
3723 SmallVector<Value *> NewValues(Values.size() / 2, nullptr);
3724 for (unsigned S = 0; S < NewValues.size(); ++S)
3725 NewValues[S] =
3726 Builder.CreateShuffleVector(Values[S * 2], Values[S * 2 + 1], Mask);
3727 Values = NewValues;
3728 }
3729 return Values[0];
3730 }
3731
3732 auto *I = cast<Instruction>(FrontV);
3733
3734 // Handle vector bitcasts that change element count. We cannot use
3735 // generateInstLaneVectorFromOperand for these because the lane indices
3736 // don't map 1:1 through the bitcast.
3737 if (auto *BitCast = dyn_cast<BitCastInst>(I)) {
3738 auto *BCDstTy = dyn_cast<FixedVectorType>(BitCast->getDestTy());
3739 auto *BCSrcTy = dyn_cast<FixedVectorType>(BitCast->getSrcTy());
3740 if (BCDstTy && BCSrcTy &&
3741 BCDstTy->getElementCount() != BCSrcTy->getElementCount()) {
3742 unsigned DstElts = BCDstTy->getNumElements();
3743 unsigned SrcElts = BCSrcTy->getNumElements();
3744 SmallVector<InstLane> NewItem;
3745 if (DstElts > SrcElts) {
3746 // Widening: compress operand Item.
3747 unsigned R = DstElts / SrcElts;
3748 if (Item.size() % R != 0)
3749 return nullptr;
3750 for (unsigned Idx = 0, E = Item.size(); Idx < E; Idx += R) {
3751 auto [V, Lane] = Item[Idx];
3752 if (!V) {
3753 NewItem.push_back({nullptr, PoisonMaskElem});
3754 continue;
3755 }
3756 NewItem.push_back(
3757 lookThroughShuffles(cast<Operator>(V)->getOperand(0), Lane / R));
3758 }
3759 } else {
3760 // Narrowing: expand operand Item.
3761 unsigned R = SrcElts / DstElts;
3762 for (auto [V, Lane] : Item) {
3763 if (!V) {
3764 NewItem.append(R, {nullptr, PoisonMaskElem});
3765 continue;
3766 }
3767 Value *Op = cast<Operator>(V)->getOperand(0);
3768 for (unsigned J = 0; J < R; ++J)
3769 NewItem.push_back(lookThroughShuffles(Op, Lane * R + J));
3770 }
3771 }
3772 Value *Op = generateNewInstTree(NewItem, &BitCast->getOperandUse(0),
3773 IdentityLeafs, SplatLeafs, ConcatLeafs,
3774 Builder, WorkList, TTI);
3775 WorkList.pushValue(Op);
3776 return Builder.CreateBitCast(
3777 Op, FixedVectorType::get(BCDstTy->getScalarType(), Item.size()));
3778 }
3779 }
3780 auto *II = dyn_cast<IntrinsicInst>(I);
3781 unsigned NumOps = I->getNumOperands() - (II ? 1 : 0);
3783 for (unsigned Idx = 0; Idx < NumOps; Idx++) {
3784 if (II &&
3785 isVectorIntrinsicWithScalarOpAtArg(II->getIntrinsicID(), Idx, TTI)) {
3786 Ops[Idx] = II->getOperand(Idx);
3787 continue;
3788 }
3789 Ops[Idx] = generateNewInstTree(
3790 generateInstLaneVectorFromOperand(Item, Idx), &I->getOperandUse(Idx),
3791 IdentityLeafs, SplatLeafs, ConcatLeafs, Builder, WorkList, TTI);
3792 // Don't re-queue the operand of a bitcast we just regenerated. Doing so
3793 // lets foldBitcastShuffle sink the bitcast back into a shuffle(bitcast),
3794 // which foldShuffleToIdentity then re-matches as the same superfluous
3795 // identity - an infinite loop between the two folds.
3796 if (!isa<BitCastInst>(I))
3797 WorkList.pushValue(Ops[Idx]);
3798 }
3799
3800 SmallVector<Value *, 8> ValueList;
3801 for (const auto &Lane : Item)
3802 if (Lane.first)
3803 ValueList.push_back(Lane.first);
3804
3805 Type *DstTy =
3806 FixedVectorType::get(I->getType()->getScalarType(), Item.size());
3807 if (auto *BI = dyn_cast<BinaryOperator>(I)) {
3808 auto *Value = Builder.CreateBinOp((Instruction::BinaryOps)BI->getOpcode(),
3809 Ops[0], Ops[1]);
3810 propagateIRFlags(Value, ValueList);
3811 return Value;
3812 }
3813 if (auto *CI = dyn_cast<CmpInst>(I)) {
3814 auto *Value = Builder.CreateCmp(CI->getPredicate(), Ops[0], Ops[1]);
3815 propagateIRFlags(Value, ValueList);
3816 return Value;
3817 }
3818 if (auto *SI = dyn_cast<SelectInst>(I)) {
3819 auto *Value = Builder.CreateSelect(Ops[0], Ops[1], Ops[2], "", SI);
3820 propagateIRFlags(Value, ValueList);
3821 return Value;
3822 }
3823 if (auto *CI = dyn_cast<CastInst>(I)) {
3824 auto *Value = Builder.CreateCast(CI->getOpcode(), Ops[0], DstTy);
3825 propagateIRFlags(Value, ValueList);
3826 return Value;
3827 }
3828 if (II) {
3829 auto *Value = Builder.CreateIntrinsic(DstTy, II->getIntrinsicID(), Ops);
3830 propagateIRFlags(Value, ValueList);
3831 return Value;
3832 }
3833 assert(isa<UnaryInstruction>(I) && "Unexpected instruction type in Generate");
3834 auto *Value =
3835 Builder.CreateUnOp((Instruction::UnaryOps)I->getOpcode(), Ops[0]);
3836 propagateIRFlags(Value, ValueList);
3837 return Value;
3838}
3839
3840// Starting from a shuffle, look up through operands tracking the shuffled index
3841// of each lane. If we can simplify away the shuffles to identities then
3842// do so.
3843bool VectorCombine::foldShuffleToIdentity(Instruction &I) {
3844 auto *Ty = dyn_cast<FixedVectorType>(I.getType());
3845 if (!Ty || I.use_empty())
3846 return false;
3847
3848 SmallVector<InstLane> Start(Ty->getNumElements());
3849 for (unsigned M = 0, E = Ty->getNumElements(); M < E; ++M)
3850 Start[M] = lookThroughShuffles(&I, M);
3851
3853 Candidates.push_back(std::make_pair(Start, &*I.use_begin()));
3854 DenseSet<std::pair<Value *, Use *>> IdentityLeafs, SplatLeafs, ConcatLeafs;
3855 unsigned NumVisited = 0;
3856 bool TraversedElCountChangingBitcast = false;
3857
3858 while (!Candidates.empty()) {
3859 if (++NumVisited > MaxInstrsToScan)
3860 return false;
3861
3862 auto ItemFrom = Candidates.pop_back_val();
3863 auto Item = ItemFrom.first;
3864 auto From = ItemFrom.second;
3865 auto [FrontV, FrontLane] = Item.front();
3866
3867 // If we found an undef first lane then bail out to keep things simple.
3868 if (!FrontV)
3869 return false;
3870
3871 // Look for an identity value.
3872 if (FrontLane == 0 &&
3873 cast<FixedVectorType>(FrontV->getType())->getNumElements() ==
3874 Item.size() &&
3875 all_of(drop_begin(enumerate(Item)), [Item](const auto &E) {
3876 Value *FrontV = Item.front().first;
3877 return !E.value().first || (isEquivBitcast(E.value().first, FrontV) &&
3878 E.value().second == (int)E.index());
3879 })) {
3880 IdentityLeafs.insert(std::make_pair(FrontV, From));
3881 continue;
3882 }
3883 // Look for constants, for the moment only supporting constant splats.
3884 if (auto *C = dyn_cast<Constant>(FrontV);
3885 C && C->getSplatValue() &&
3886 all_of(drop_begin(Item), [Item](InstLane &IL) {
3887 Value *FrontV = Item.front().first;
3888 Value *V = IL.first;
3889 return !V || (isa<Constant>(V) &&
3890 cast<Constant>(V)->getSplatValue() ==
3891 cast<Constant>(FrontV)->getSplatValue());
3892 })) {
3893 SplatLeafs.insert(std::make_pair(FrontV, From));
3894 continue;
3895 }
3896 // Look for a splat value.
3897 if (all_of(drop_begin(Item), [Item](InstLane &IL) {
3898 auto [FrontV, FrontLane] = Item.front();
3899 auto [V, Lane] = IL;
3900 return !V || (V == FrontV && Lane == FrontLane);
3901 })) {
3902 SplatLeafs.insert(std::make_pair(FrontV, From));
3903 continue;
3904 }
3905
3906 // We need each element to be the same type of value, and check that each
3907 // element has a single use.
3908 auto CheckLaneIsEquivalentToFirst = [Item](InstLane IL) {
3909 Value *FrontV = Item.front().first;
3910 if (!IL.first)
3911 return true;
3912 Value *V = IL.first;
3913 if (auto *I = dyn_cast<Instruction>(V); I && !I->hasOneUser())
3914 return false;
3915 if (V->getValueID() != FrontV->getValueID())
3916 return false;
3917 if (auto *CI = dyn_cast<CmpInst>(V))
3918 if (CI->getPredicate() != cast<CmpInst>(FrontV)->getPredicate())
3919 return false;
3920 if (auto *CI = dyn_cast<CastInst>(V))
3921 if (CI->getSrcTy()->getScalarType() !=
3922 cast<CastInst>(FrontV)->getSrcTy()->getScalarType())
3923 return false;
3924 if (auto *SI = dyn_cast<SelectInst>(V))
3925 if (!isa<VectorType>(SI->getOperand(0)->getType()) ||
3926 SI->getOperand(0)->getType() !=
3927 cast<SelectInst>(FrontV)->getOperand(0)->getType())
3928 return false;
3929 if (isa<CallInst>(V) && !isa<IntrinsicInst>(V))
3930 return false;
3931 auto *II = dyn_cast<IntrinsicInst>(V);
3932 return !II || (isa<IntrinsicInst>(FrontV) &&
3933 II->getIntrinsicID() ==
3934 cast<IntrinsicInst>(FrontV)->getIntrinsicID() &&
3935 !II->hasOperandBundles());
3936 };
3937 if (all_of(drop_begin(Item), CheckLaneIsEquivalentToFirst)) {
3938 // Check the operator is one that we support.
3939 if (isa<BinaryOperator, CmpInst>(FrontV)) {
3940 // We exclude div/rem in case they hit UB from poison lanes.
3941 if (auto *BO = dyn_cast<BinaryOperator>(FrontV);
3942 BO && BO->isIntDivRem())
3943 return false;
3945 &cast<Instruction>(FrontV)->getOperandUse(0));
3947 &cast<Instruction>(FrontV)->getOperandUse(1));
3948 continue;
3949 } else if (isa<UnaryOperator, TruncInst, ZExtInst, SExtInst, FPToSIInst,
3950 FPToUIInst, SIToFPInst, UIToFPInst>(FrontV)) {
3952 &cast<Instruction>(FrontV)->getOperandUse(0));
3953 continue;
3954 } else if (auto *BitCast = dyn_cast<BitCastInst>(FrontV)) {
3955 auto *BCDstTy = dyn_cast<FixedVectorType>(BitCast->getDestTy());
3956 auto *BCSrcTy = dyn_cast<FixedVectorType>(BitCast->getSrcTy());
3957 if (BCDstTy && BCSrcTy) {
3958 ElementCount DstEC = BCDstTy->getElementCount();
3959 ElementCount SrcEC = BCSrcTy->getElementCount();
3960 if (DstEC == SrcEC) {
3961 // Same element count - simple pass-through.
3963 &BitCast->getOperandUse(0));
3964 continue;
3965 }
3966 unsigned DstElts = DstEC.getFixedValue();
3967 unsigned SrcElts = SrcEC.getFixedValue();
3968 if (DstElts > SrcElts && DstElts % SrcElts == 0) {
3969 // Widening bitcast (e.g. <2 x i32> -> <4 x i16>). Compress
3970 // consecutive groups of R destination lanes into one source
3971 // lane.
3972 unsigned R = DstElts / SrcElts;
3974 bool Valid = Item.size() % R == 0;
3975 for (unsigned Idx = 0, E = Item.size(); Valid && Idx < E;
3976 Idx += R) {
3977 auto [V0, L0] = Item[Idx];
3978 if (!V0) {
3979 if (any_of(ArrayRef(Item).slice(Idx + 1, R - 1),
3980 [](InstLane IL) { return IL.first != nullptr; })) {
3981 Valid = false;
3982 break;
3983 }
3984 NItem.push_back({nullptr, PoisonMaskElem});
3985 continue;
3986 }
3987 if (L0 % R != 0) {
3988 Valid = false;
3989 break;
3990 }
3991 for (unsigned J = 1; J < R; ++J) {
3992 auto [VJ, LJ] = Item[Idx + J];
3993 if (!VJ || VJ != V0 || LJ != L0 + (int)J) {
3994 Valid = false;
3995 break;
3996 }
3997 }
3998 if (!Valid)
3999 break;
4001 cast<Operator>(V0)->getOperand(0), L0 / R));
4002 }
4003 if (Valid) {
4004 TraversedElCountChangingBitcast = true;
4005 Candidates.emplace_back(NItem, &BitCast->getOperandUse(0));
4006 continue;
4007 }
4008 } else if (SrcElts > DstElts && SrcElts % DstElts == 0) {
4009 // Narrowing bitcast (e.g. <4 x i16> -> <2 x i32>). Expand
4010 // each destination lane into R source lanes.
4011 unsigned R = SrcElts / DstElts;
4013 for (auto [V, Lane] : Item) {
4014 if (!V) {
4015 NItem.append(R, {nullptr, PoisonMaskElem});
4016 continue;
4017 }
4018 Value *Op = cast<Operator>(V)->getOperand(0);
4019 for (unsigned J = 0; J < R; ++J)
4020 NItem.push_back(lookThroughShuffles(Op, Lane * R + J));
4021 }
4022 TraversedElCountChangingBitcast = true;
4023 Candidates.emplace_back(NItem, &BitCast->getOperandUse(0));
4024 continue;
4025 }
4026 }
4027 } else if (auto *Sel = dyn_cast<SelectInst>(FrontV)) {
4029 &Sel->getOperandUse(0));
4031 &Sel->getOperandUse(1));
4033 &Sel->getOperandUse(2));
4034 continue;
4035 } else if (auto *II = dyn_cast<IntrinsicInst>(FrontV);
4036 II && isTriviallyVectorizable(II->getIntrinsicID()) &&
4037 !II->hasOperandBundles()) {
4038 for (unsigned Op = 0, E = II->getNumOperands() - 1; Op < E; Op++) {
4039 if (isVectorIntrinsicWithScalarOpAtArg(II->getIntrinsicID(), Op,
4040 &TTI)) {
4041 if (!all_of(drop_begin(Item), [Item, Op](InstLane &IL) {
4042 Value *FrontV = Item.front().first;
4043 Value *V = IL.first;
4044 return !V || (cast<Instruction>(V)->getOperand(Op) ==
4045 cast<Instruction>(FrontV)->getOperand(Op));
4046 }))
4047 return false;
4048 continue;
4049 }
4050 Candidates.emplace_back(
4052 &cast<Instruction>(FrontV)->getOperandUse(Op));
4053 }
4054 continue;
4055 }
4056 }
4057
4058 if (isFreeConcat(Item, CostKind, TTI)) {
4059 ConcatLeafs.insert(std::make_pair(FrontV, From));
4060 continue;
4061 }
4062
4063 return false;
4064 }
4065
4066 if (NumVisited <= 1)
4067 return false;
4068
4069 // If the only non-leaf node traversed was a single bitcast that changes
4070 // element count, the fold would just commute the bitcast and shuffle.
4071 // foldBitcastShuffle does the reverse transform, causing an infinite loop.
4072 if (NumVisited == 2 && TraversedElCountChangingBitcast)
4073 return false;
4074
4075 LLVM_DEBUG(dbgs() << "Found a superfluous identity shuffle: " << I << "\n");
4076
4077 // If we got this far, we know the shuffles are superfluous and can be
4078 // removed. Scan through again and generate the new tree of instructions.
4079 Builder.SetInsertPoint(&I);
4080 Value *V =
4081 generateNewInstTree(Start, &*I.use_begin(), IdentityLeafs, SplatLeafs,
4082 ConcatLeafs, Builder, Worklist, &TTI);
4083 replaceValue(I, *V);
4084 return true;
4085}
4086
4087/// Given a commutative reduction, the order of the input lanes does not alter
4088/// the results. We can use this to remove certain shuffles feeding the
4089/// reduction, removing the need to shuffle at all.
4090bool VectorCombine::foldShuffleFromReductions(Instruction &I) {
4091 auto *II = dyn_cast<IntrinsicInst>(&I);
4092 if (!II)
4093 return false;
4094 switch (II->getIntrinsicID()) {
4095 case Intrinsic::vector_reduce_add:
4096 case Intrinsic::vector_reduce_mul:
4097 case Intrinsic::vector_reduce_and:
4098 case Intrinsic::vector_reduce_or:
4099 case Intrinsic::vector_reduce_xor:
4100 case Intrinsic::vector_reduce_smin:
4101 case Intrinsic::vector_reduce_smax:
4102 case Intrinsic::vector_reduce_umin:
4103 case Intrinsic::vector_reduce_umax:
4104 break;
4105 default:
4106 return false;
4107 }
4108
4109 // Find all the inputs when looking through operations that do not alter the
4110 // lane order (binops, for example). Currently we look for a single shuffle,
4111 // and can ignore splat values.
4112 std::queue<Value *> Worklist;
4113 SmallPtrSet<Value *, 4> Visited;
4114 ShuffleVectorInst *Shuffle = nullptr;
4115 if (auto *Op = dyn_cast<Instruction>(I.getOperand(0)))
4116 Worklist.push(Op);
4117
4118 while (!Worklist.empty()) {
4119 Value *CV = Worklist.front();
4120 Worklist.pop();
4121 if (Visited.contains(CV))
4122 continue;
4123
4124 // Splats don't change the order, so can be safely ignored.
4125 if (isSplatValue(CV))
4126 continue;
4127
4128 Visited.insert(CV);
4129
4130 if (auto *CI = dyn_cast<Instruction>(CV)) {
4131 if (CI->isBinaryOp()) {
4132 for (auto *Op : CI->operand_values())
4133 Worklist.push(Op);
4134 continue;
4135 } else if (auto *SV = dyn_cast<ShuffleVectorInst>(CI)) {
4136 if (Shuffle && Shuffle != SV)
4137 return false;
4138 Shuffle = SV;
4139 continue;
4140 }
4141 }
4142
4143 // Anything else is currently an unknown node.
4144 return false;
4145 }
4146
4147 if (!Shuffle)
4148 return false;
4149
4150 // Check all uses of the binary ops and shuffles are also included in the
4151 // lane-invariant operations (Visited should be the list of lanewise
4152 // instructions, including the shuffle that we found).
4153 for (auto *V : Visited)
4154 for (auto *U : V->users())
4155 if (!Visited.contains(U) && U != &I)
4156 return false;
4157
4158 FixedVectorType *VecType =
4159 dyn_cast<FixedVectorType>(II->getOperand(0)->getType());
4160 if (!VecType)
4161 return false;
4162 FixedVectorType *ShuffleInputType =
4164 if (!ShuffleInputType)
4165 return false;
4166 unsigned NumInputElts = ShuffleInputType->getNumElements();
4167
4168 // Find the mask from sorting the lanes into order. This is most likely to
4169 // become a identity or concat mask. Undef elements are pushed to the end.
4170 SmallVector<int> ConcatMask;
4171 Shuffle->getShuffleMask(ConcatMask);
4172 sort(ConcatMask, [](int X, int Y) { return (unsigned)X < (unsigned)Y; });
4173 bool UsesSecondVec =
4174 any_of(ConcatMask, [&](int M) { return M >= (int)NumInputElts; });
4175
4177 UsesSecondVec ? TTI::SK_PermuteTwoSrc : TTI::SK_PermuteSingleSrc, VecType,
4178 ShuffleInputType, CostKind, Shuffle->getShuffleMask());
4180 UsesSecondVec ? TTI::SK_PermuteTwoSrc : TTI::SK_PermuteSingleSrc, VecType,
4181 ShuffleInputType, CostKind, ConcatMask);
4182
4183 LLVM_DEBUG(dbgs() << "Found a reduction feeding from a shuffle: " << *Shuffle
4184 << "\n");
4185 LLVM_DEBUG(dbgs() << " OldCost: " << OldCost << " vs NewCost: " << NewCost
4186 << "\n");
4187 bool MadeChanges = false;
4188 if (NewCost < OldCost) {
4189 Builder.SetInsertPoint(Shuffle);
4190 Value *NewShuffle = Builder.CreateShuffleVector(
4191 Shuffle->getOperand(0), Shuffle->getOperand(1), ConcatMask);
4192 LLVM_DEBUG(dbgs() << "Created new shuffle: " << *NewShuffle << "\n");
4193 replaceValue(*Shuffle, *NewShuffle);
4194 return true;
4195 }
4196
4197 // See if we can re-use foldSelectShuffle, getting it to reduce the size of
4198 // the shuffle into a nicer order, as it can ignore the order of the shuffles.
4199 MadeChanges |= foldSelectShuffle(*Shuffle, true);
4200 return MadeChanges;
4201}
4202
4203/// Try to fold a chain of shuffles and ops feeding extractelement(..., 0)
4204/// into llvm.vector.reduce.*, by tracking which lanes contribute to the
4205/// extracted lane and reducing the widest vector whose lanes each contribute
4206/// once.
4207///
4208/// For example:
4209///
4210/// %lo = shufflevector <4 x i32> %a, poison, <2 x i32> <i32 0, i32 1>
4211/// %hi = shufflevector <4 x i32> %a, poison, <2 x i32> <i32 2, i32 3>
4212/// %s = add <2 x i32> %lo, %hi
4213/// %sh = shufflevector <2 x i32> %s, poison, <2 x i32> <i32 1, i32 poison>
4214/// %r = add <2 x i32> %s, %sh
4215/// %e = extractelement <2 x i32> %r, i64 0
4216///
4217/// transforms to:
4218///
4219/// %e = call i32 @llvm.vector.reduce.add.v4i32(<4 x i32> %a)
4220bool VectorCombine::foldShuffleChainsToReduce(Instruction &I) {
4221 Value *VecOpEE;
4222 if (!match(&I, m_ExtractElt(m_Value(VecOpEE), m_Zero())))
4223 return false;
4224
4225 auto *FVT = dyn_cast<FixedVectorType>(VecOpEE->getType());
4226 if (!FVT)
4227 return false;
4228
4229 if (FVT->getNumElements() < 2)
4230 return false;
4231
4232 std::optional<Instruction::BinaryOps> CommonBinOp;
4233 std::optional<Intrinsic::ID> CommonCallOp;
4234
4235 if (auto *BO = dyn_cast<BinaryOperator>(VecOpEE)) {
4236 if (!getReductionForBinop(BO->getOpcode()))
4237 return false;
4238 CommonBinOp = BO->getOpcode();
4239 } else if (auto *MMI = dyn_cast<MinMaxIntrinsic>(VecOpEE)) {
4240 CommonCallOp = MMI->getIntrinsicID();
4241 } else {
4242 return false;
4243 }
4244
4245 // For floating-point reductions, track FMF intersection across all binops.
4246 FastMathFlags CommonFMF;
4247 bool IsFloatReduction = false;
4248
4249 // A chain node is one we walk through, either a matching-opcode binop/min-max
4250 // or a single-source shuffle. Anything else is a leaf source.
4251 auto IsChainNode = [&](Value *V) {
4252 if (auto *BO = dyn_cast<BinaryOperator>(V))
4253 return CommonBinOp && BO->getOpcode() == *CommonBinOp;
4254 if (auto *MMI = dyn_cast<MinMaxIntrinsic>(V))
4255 return CommonCallOp && MMI->getIntrinsicID() == *CommonCallOp;
4256 if (auto *SVI = dyn_cast<ShuffleVectorInst>(V))
4257 return isa<PoisonValue>(SVI->getOperand(1));
4258 return false;
4259 };
4260
4261 // Collect the chain, building Nodes in postorder. Bail if the chain is empty
4262 // or exceeds MaxChainNodes.
4263 constexpr unsigned MaxChainNodes = 32;
4264 SmallSetVector<Value *, 16> Nodes;
4265 SmallSetVector<Value *, 4> Sources;
4266 unsigned NumVisited = 0;
4267 auto AddSource = [&](Value *V) {
4268 if (!isa<FixedVectorType>(V->getType()))
4269 return false;
4270 Sources.insert(V);
4271 return true;
4272 };
4273 auto Walk = [&](Value *V, auto &&Walk) -> bool {
4274 if (Nodes.contains(V) || Sources.contains(V))
4275 return true;
4276 if (++NumVisited > MaxChainNodes)
4277 return false;
4278 if (!IsChainNode(V))
4279 return AddSource(V);
4280 // Chain shuffles always have poison as op1, so only op0 matters.
4281 auto *U = cast<Instruction>(V);
4282 unsigned NumOps = isa<ShuffleVectorInst>(U) ? 1 : 2;
4283 for (unsigned I = 0; I != NumOps; ++I)
4284 if (!Walk(U->getOperand(I), Walk))
4285 return false;
4286 if (isa<ShuffleVectorInst>(U) || Nodes.contains(U->getOperand(0)) ||
4287 Nodes.contains(U->getOperand(1))) {
4288 Nodes.insert(V);
4289 return true;
4290 }
4291 // Both operands are leaves so treat this binop as a source rather than
4292 // walking into it.
4293 return AddSource(V);
4294 };
4295 if (!Walk(VecOpEE, Walk) || Nodes.empty())
4296 return false;
4297
4298 bool IsIdempotent =
4299 CommonCallOp || (CommonBinOp && Instruction::isIdempotent(*CommonBinOp));
4300
4301 // For FP reductions, require reassoc on every binop and collect FMF.
4302 for (Value *V : Nodes) {
4303 auto *BinOp = dyn_cast<BinaryOperator>(V);
4304 if (!BinOp || !BinOp->getType()->isFPOrFPVectorTy())
4305 continue;
4306 if (!BinOp->hasAllowReassoc())
4307 return false;
4308 if (!IsFloatReduction) {
4309 CommonFMF = BinOp->getFastMathFlags();
4310 IsFloatReduction = true;
4311 } else {
4312 CommonFMF &= BinOp->getFastMathFlags();
4313 }
4314 }
4315
4316 // Top-down demanded elements. For each chain value, track which lanes feed
4317 // the extracted lane 0 and which feed it more than once. Reverse postorder
4318 // visits every use before its value. A binop forwards its demand to both
4319 // operands and a shuffle follows its mask back to the source lane.
4320 struct Demand {
4321 APInt Lanes;
4322 APInt Duplicates;
4323 };
4324 DenseMap<Value *, Demand> Demands;
4325 auto DemandOf = [&](Value *V) -> Demand & {
4326 unsigned N = cast<FixedVectorType>(V->getType())->getNumElements();
4327 Demand &D = Demands[V];
4328 if (D.Lanes.getBitWidth() != N)
4329 D.Lanes = D.Duplicates = APInt::getZero(N);
4330 return D;
4331 };
4332 DemandOf(VecOpEE).Lanes.setBit(0);
4333 for (Value *V : reverse(Nodes)) {
4334 Demand DV = Demands.lookup(V);
4335 if (DV.Lanes.isZero())
4336 continue;
4337 if (auto *SVI = dyn_cast<ShuffleVectorInst>(V)) {
4338 ArrayRef<int> Mask = SVI->getShuffleMask();
4339 Demand &DS = DemandOf(SVI->getOperand(0));
4340 for (unsigned I = 0, E = Mask.size(); I != E; ++I) {
4341 // Skip lanes that are undemanded or map to poison.
4342 if (!DV.Lanes[I] || Mask[I] < 0 ||
4343 (unsigned)Mask[I] >= DS.Lanes.getBitWidth())
4344 continue;
4345 if (DS.Lanes[Mask[I]] || DV.Duplicates[I])
4346 DS.Duplicates.setBit(Mask[I]);
4347 DS.Lanes.setBit(Mask[I]);
4348 }
4349 } else {
4350 auto *U = cast<User>(V);
4351 for (Value *Op : {U->getOperand(0), U->getOperand(1)}) {
4352 Demand &DOp = DemandOf(Op);
4353 // Lanes demanded through more than one path accumulate in Duplicates.
4354 DOp.Duplicates |= DV.Duplicates | (DOp.Lanes & DV.Lanes);
4355 DOp.Lanes |= DV.Lanes;
4356 }
4357 }
4358 }
4359
4360 // Reducing V replaces the entire chain, so every contribution to the result
4361 // must flow through V. Reject if anything above V reads outside the chain.
4362 auto CoversChain = [&](Value *V) {
4363 SmallVector<Value *, 8> Worklist(1, VecOpEE);
4364 SmallPtrSet<Value *, 8> Seen;
4365 Seen.insert(VecOpEE);
4366 while (!Worklist.empty()) {
4367 auto *U = cast<Instruction>(Worklist.pop_back_val());
4368 unsigned NumOps = isa<ShuffleVectorInst>(U) ? 1 : 2;
4369 for (unsigned I = 0; I != NumOps; ++I) {
4370 Value *Op = U->getOperand(I);
4371 if (Op == V || !Seen.insert(Op).second)
4372 continue;
4373 if (!Nodes.contains(Op))
4374 return false;
4375 Worklist.push_back(Op);
4376 }
4377 }
4378 return true;
4379 };
4380
4381 // Reduce a single cleanly demanded source if there is one, otherwise the
4382 // deepest intermediate that covers the chain.
4383 struct ReductionCut {
4384 Value *Src;
4385 APInt Elts;
4386 };
4387 std::optional<ReductionCut> Cut;
4388 for (Value *S : Sources) {
4389 auto It = Demands.find(S);
4390 if (It == Demands.end() || It->second.Lanes.isZero())
4391 continue;
4392 if (!IsIdempotent && !It->second.Duplicates.isZero()) {
4393 Cut.reset();
4394 break;
4395 }
4396 if (!Cut) {
4397 Cut = ReductionCut{S, It->second.Lanes};
4398 continue;
4399 }
4400 if (!isEquivBitcast(Cut->Src, S)) {
4401 Cut.reset();
4402 break;
4403 }
4404 if (!IsIdempotent && !(Cut->Elts & It->second.Lanes).isZero()) {
4405 Cut.reset();
4406 break;
4407 }
4408 Cut->Elts |= It->second.Lanes;
4409 }
4410 if (!Cut) {
4411 for (Value *V : Nodes) {
4413 continue;
4414 auto It = Demands.find(V);
4415 if (It == Demands.end() || !It->second.Lanes.isAllOnes())
4416 continue;
4417 if (!IsIdempotent && !It->second.Duplicates.isZero())
4418 continue;
4419 if (!CoversChain(V))
4420 continue;
4421 Cut = ReductionCut{V, It->second.Lanes};
4422 break;
4423 }
4424 }
4425 // Reducing one lane is just an extract and can refold forever.
4426 if (!Cut || Cut->Elts.popcount() < 2)
4427 return false;
4428
4429 Intrinsic::ID ReducedOp =
4430 (CommonCallOp ? getMinMaxReductionIntrinsicID(*CommonCallOp)
4431 : getReductionForBinop(*CommonBinOp));
4432 if (!ReducedOp)
4433 return false;
4434
4435 InstructionCost OrigCost = 0;
4436 for (Value *V : Nodes)
4438
4439 auto *SrcVT = cast<FixedVectorType>(Cut->Src->getType());
4440 bool IsPartialReduction = !Cut->Elts.isAllOnes();
4441 FixedVectorType *ReduceVecTy =
4442 IsPartialReduction
4443 ? FixedVectorType::get(FVT->getElementType(), Cut->Elts.popcount())
4444 : SrcVT;
4445
4446 SmallVector<int> ExtractMask;
4447 InstructionCost NewCost = 0;
4448 if (IsPartialReduction) {
4449 for (unsigned I = 0, E = Cut->Elts.getBitWidth(); I != E; ++I)
4450 if (Cut->Elts[I])
4451 ExtractMask.push_back(I);
4452 unsigned SubIdx = 0, SubLen;
4453 auto SK = Cut->Elts.isShiftedMask(SubIdx, SubLen)
4456 NewCost += TTI.getShuffleCost(SK, ReduceVecTy, SrcVT, CostKind, ExtractMask,
4457 SubIdx, ReduceVecTy);
4458 }
4459
4460 IntrinsicCostAttributes ICA(
4461 ReducedOp, ReduceVecTy->getElementType(),
4462 IsFloatReduction
4463 ? SmallVector<Type *, 2>{ReduceVecTy->getElementType(), ReduceVecTy}
4464 : SmallVector<Type *, 2>{ReduceVecTy},
4465 IsFloatReduction ? CommonFMF : FastMathFlags());
4466 NewCost += TTI.getIntrinsicInstrCost(ICA, CostKind);
4467
4468 LLVM_DEBUG(dbgs() << "Found reduction shuffle chain: " << I << "\n OldCost : "
4469 << OrigCost << " vs NewCost: " << NewCost << "\n");
4470
4471 if (!OrigCost.isValid() || !NewCost.isValid())
4472 return false;
4473
4474 if (VecOpEE->hasOneUse() ? (NewCost > OrigCost) : (NewCost >= OrigCost))
4475 return false;
4476
4477 Value *ReduceInput = Cut->Src;
4478 if (IsPartialReduction)
4479 ReduceInput = Builder.CreateShuffleVector(Cut->Src, ExtractMask);
4480
4481 Value *ReducedResult;
4482 if (IsFloatReduction) {
4484 *CommonBinOp, ReduceVecTy->getElementType(), /*AllowRHSConstant=*/false,
4485 CommonFMF.noSignedZeros());
4486 ReducedResult = Builder.CreateIntrinsic(ReducedOp, {ReduceVecTy},
4487 {Identity, ReduceInput}, CommonFMF);
4488 } else {
4489 ReducedResult =
4490 Builder.CreateIntrinsic(ReducedOp, {ReduceVecTy}, {ReduceInput});
4491 }
4492 replaceValue(I, *ReducedResult);
4493
4494 return true;
4495}
4496
4497/// Determine if its more efficient to fold:
4498/// reduce(trunc(x)) -> trunc(reduce(x)).
4499/// reduce(sext(x)) -> sext(reduce(x)).
4500/// reduce(zext(x)) -> zext(reduce(x)).
4501bool VectorCombine::foldCastFromReductions(Instruction &I) {
4502 auto *II = dyn_cast<IntrinsicInst>(&I);
4503 if (!II)
4504 return false;
4505
4506 bool TruncOnly = false;
4507 Intrinsic::ID IID = II->getIntrinsicID();
4508 switch (IID) {
4509 case Intrinsic::vector_reduce_add:
4510 case Intrinsic::vector_reduce_mul:
4511 TruncOnly = true;
4512 break;
4513 case Intrinsic::vector_reduce_and:
4514 case Intrinsic::vector_reduce_or:
4515 case Intrinsic::vector_reduce_xor:
4516 break;
4517 default:
4518 return false;
4519 }
4520
4521 unsigned ReductionOpc = getArithmeticReductionInstruction(IID);
4522 Value *ReductionSrc = I.getOperand(0);
4523
4524 Value *Src;
4525 if (!match(ReductionSrc, m_OneUse(m_Trunc(m_Value(Src)))) &&
4526 (TruncOnly || !match(ReductionSrc, m_OneUse(m_ZExtOrSExt(m_Value(Src))))))
4527 return false;
4528
4529 auto CastOpc =
4530 (Instruction::CastOps)cast<Instruction>(ReductionSrc)->getOpcode();
4531
4532 auto *SrcTy = cast<VectorType>(Src->getType());
4533 auto *ReductionSrcTy = cast<VectorType>(ReductionSrc->getType());
4534 Type *ResultTy = I.getType();
4535
4537 ReductionOpc, ReductionSrcTy, std::nullopt, CostKind);
4538 OldCost += TTI.getCastInstrCost(CastOpc, ReductionSrcTy, SrcTy,
4540 cast<CastInst>(ReductionSrc));
4541 InstructionCost NewCost =
4542 TTI.getArithmeticReductionCost(ReductionOpc, SrcTy, std::nullopt,
4543 CostKind) +
4544 TTI.getCastInstrCost(CastOpc, ResultTy, ReductionSrcTy->getScalarType(),
4546
4547 if (OldCost <= NewCost || !NewCost.isValid())
4548 return false;
4549
4550 Value *NewReduction = Builder.CreateIntrinsic(SrcTy->getScalarType(),
4551 II->getIntrinsicID(), {Src});
4552 Value *NewCast = Builder.CreateCast(CastOpc, NewReduction, ResultTy);
4553 replaceValue(I, *NewCast);
4554 return true;
4555}
4556
4557/// Fold:
4558/// icmp pred (reduce.{add,or,and,umax,umin}(signbit_extract(x))), C
4559/// into:
4560/// icmp sgt/slt (reduce.{or,umax,and,umin}(x)), -1/0
4561///
4562/// Sign-bit reductions produce values with known semantics:
4563/// - reduce.{or,umax}: 0 if no element is negative, 1 if any is
4564/// - reduce.{and,umin}: 1 if all elements are negative, 0 if any isn't
4565/// - reduce.add: count of negative elements (0 to NumElts)
4566///
4567/// Both lshr and ashr are supported:
4568/// - lshr produces 0 or 1, so reduce.add range is [0, N]
4569/// - ashr produces 0 or -1, so reduce.add range is [-N, 0]
4570///
4571/// The fold generalizes to multiple source vectors combined with the same
4572/// operation as the reduction. For example:
4573/// reduce.or(or(shr A, shr B)) conceptually extends the vector
4574/// For reduce.add, this changes the count to M*N where M is the number of
4575/// source vectors.
4576///
4577/// We transform to a direct sign check on the original vector using
4578/// reduce.{or,umax} or reduce.{and,umin}.
4579///
4580/// In spirit, it's similar to foldSignBitCheck in InstCombine.
4581bool VectorCombine::foldSignBitReductionCmp(Instruction &I) {
4582 CmpPredicate Pred;
4583 IntrinsicInst *ReduceOp;
4584 const APInt *CmpVal;
4585 if (!match(&I,
4586 m_ICmp(Pred, m_OneUse(m_AnyIntrinsic(ReduceOp)), m_APInt(CmpVal))))
4587 return false;
4588
4589 Intrinsic::ID OrigIID = ReduceOp->getIntrinsicID();
4590 switch (OrigIID) {
4591 case Intrinsic::vector_reduce_or:
4592 case Intrinsic::vector_reduce_umax:
4593 case Intrinsic::vector_reduce_and:
4594 case Intrinsic::vector_reduce_umin:
4595 case Intrinsic::vector_reduce_add:
4596 break;
4597 default:
4598 return false;
4599 }
4600
4601 Value *ReductionSrc = ReduceOp->getArgOperand(0);
4602 auto *VecTy = dyn_cast<FixedVectorType>(ReductionSrc->getType());
4603 if (!VecTy)
4604 return false;
4605
4606 unsigned BitWidth = VecTy->getScalarSizeInBits();
4607 if (BitWidth == 1)
4608 return false;
4609
4610 unsigned NumElts = VecTy->getNumElements();
4611
4612 // Determine the expected tree opcode for multi-vector patterns.
4613 // The tree opcode must match the reduction's underlying operation.
4614 //
4615 // TODO: for pairs of equivalent operators, we should match both,
4616 // not only the most common.
4617 Instruction::BinaryOps TreeOpcode;
4618 switch (OrigIID) {
4619 case Intrinsic::vector_reduce_or:
4620 case Intrinsic::vector_reduce_umax:
4621 TreeOpcode = Instruction::Or;
4622 break;
4623 case Intrinsic::vector_reduce_and:
4624 case Intrinsic::vector_reduce_umin:
4625 TreeOpcode = Instruction::And;
4626 break;
4627 case Intrinsic::vector_reduce_add:
4628 TreeOpcode = Instruction::Add;
4629 break;
4630 default:
4631 llvm_unreachable("Unexpected intrinsic");
4632 }
4633
4634 // Collect sign-bit extraction leaves from an associative tree of TreeOpcode.
4635 // The tree conceptually extends the vector being reduced.
4636 SmallVector<Value *, 8> Worklist;
4637 SmallVector<Value *, 8> Sources; // Original vectors (X in shr X, BW-1)
4638 Worklist.push_back(ReductionSrc);
4639 std::optional<bool> IsAShr;
4640 constexpr unsigned MaxSources = 8;
4641
4642 // Calculate old cost: all shifts + tree ops + reduction
4643 InstructionCost OldCost = TTI.getInstructionCost(ReduceOp, CostKind);
4644
4645 while (!Worklist.empty() && Worklist.size() <= MaxSources &&
4646 Sources.size() <= MaxSources) {
4647 Value *V = Worklist.pop_back_val();
4648
4649 // Try to match sign-bit extraction: shr X, (bitwidth-1)
4650 Value *X;
4651 if (match(V, m_OneUse(m_Shr(m_Value(X), m_SpecificInt(BitWidth - 1))))) {
4652 auto *Shr = cast<Instruction>(V);
4653
4654 // All shifts must be the same type (all lshr or all ashr)
4655 bool ThisIsAShr = Shr->getOpcode() == Instruction::AShr;
4656 if (!IsAShr)
4657 IsAShr = ThisIsAShr;
4658 else if (*IsAShr != ThisIsAShr)
4659 return false;
4660
4661 Sources.push_back(X);
4662
4663 // As part of the fold, we remove all of the shifts, so we need to keep
4664 // track of their costs.
4665 OldCost += TTI.getInstructionCost(Shr, CostKind);
4666
4667 continue;
4668 }
4669
4670 // Try to extend through a tree node of the expected opcode
4671 Value *A, *B;
4672 if (!match(V, m_OneUse(m_BinOp(TreeOpcode, m_Value(A), m_Value(B)))))
4673 return false;
4674
4675 // We are potentially replacing these operations as well, so we add them
4676 // to the costs.
4678
4679 Worklist.push_back(A);
4680 Worklist.push_back(B);
4681 }
4682
4683 // Must have at least one source and not exceed limit
4684 if (Sources.empty() || Sources.size() > MaxSources ||
4685 Worklist.size() > MaxSources || !IsAShr)
4686 return false;
4687
4688 unsigned NumSources = Sources.size();
4689
4690 // For reduce.add, the total count must fit as a signed integer.
4691 // Range is [0, M*N] for lshr or [-M*N, 0] for ashr.
4692 if (OrigIID == Intrinsic::vector_reduce_add &&
4693 !isIntN(BitWidth, NumSources * NumElts))
4694 return false;
4695
4696 // Compute the boundary value when all elements are negative:
4697 // - Per-element contribution: 1 for lshr, -1 for ashr
4698 // - For add: M*N (total elements across all sources); for others: just 1
4699 unsigned Count =
4700 (OrigIID == Intrinsic::vector_reduce_add) ? NumSources * NumElts : 1;
4701 APInt NegativeVal(CmpVal->getBitWidth(), Count);
4702 if (*IsAShr)
4703 NegativeVal.negate();
4704
4705 // Range is [min(0, AllNegVal), max(0, AllNegVal)]
4706 APInt Zero = APInt::getZero(CmpVal->getBitWidth());
4707 APInt RangeLow = APIntOps::smin(Zero, NegativeVal);
4708 APInt RangeHigh = APIntOps::smax(Zero, NegativeVal);
4709
4710 // Determine comparison semantics:
4711 // - IsEq: true for equality test, false for inequality
4712 // - TestsNegative: true if testing against AllNegVal, false for zero
4713 //
4714 // In addition to EQ/NE against 0 or AllNegVal, we support inequalities
4715 // that fold to boundary tests given the narrow value range:
4716 // < RangeHigh -> != RangeHigh
4717 // > RangeHigh-1 -> == RangeHigh
4718 // > RangeLow -> != RangeLow
4719 // < RangeLow+1 -> == RangeLow
4720 //
4721 // For inequalities, we work with signed predicates only. Unsigned predicates
4722 // are canonicalized to signed when the range is non-negative (where they are
4723 // equivalent). When the range includes negative values, unsigned predicates
4724 // would have different semantics due to wrap-around, so we reject them.
4725 if (!ICmpInst::isEquality(Pred) && !ICmpInst::isSigned(Pred)) {
4726 if (RangeLow.isNegative())
4727 return false;
4728 Pred = ICmpInst::getSignedPredicate(Pred);
4729 }
4730
4731 bool IsEq;
4732 bool TestsNegative;
4733 if (ICmpInst::isEquality(Pred)) {
4734 if (CmpVal->isZero()) {
4735 TestsNegative = false;
4736 } else if (*CmpVal == NegativeVal) {
4737 TestsNegative = true;
4738 } else {
4739 return false;
4740 }
4741 IsEq = Pred == ICmpInst::ICMP_EQ;
4742 } else if (Pred == ICmpInst::ICMP_SLT && *CmpVal == RangeHigh) {
4743 IsEq = false;
4744 TestsNegative = (RangeHigh == NegativeVal);
4745 } else if (Pred == ICmpInst::ICMP_SGT && *CmpVal == RangeHigh - 1) {
4746 IsEq = true;
4747 TestsNegative = (RangeHigh == NegativeVal);
4748 } else if (Pred == ICmpInst::ICMP_SGT && *CmpVal == RangeLow) {
4749 IsEq = false;
4750 TestsNegative = (RangeLow == NegativeVal);
4751 } else if (Pred == ICmpInst::ICMP_SLT && *CmpVal == RangeLow + 1) {
4752 IsEq = true;
4753 TestsNegative = (RangeLow == NegativeVal);
4754 } else {
4755 return false;
4756 }
4757
4758 // For this fold we support four types of checks:
4759 //
4760 // 1. All lanes are negative - AllNeg
4761 // 2. All lanes are non-negative - AllNonNeg
4762 // 3. At least one negative lane - AnyNeg
4763 // 4. At least one non-negative lane - AnyNonNeg
4764 //
4765 // For each case, we can generate the following code:
4766 //
4767 // 1. AllNeg - reduce.and/umin(X) < 0
4768 // 2. AllNonNeg - reduce.or/umax(X) > -1
4769 // 3. AnyNeg - reduce.or/umax(X) < 0
4770 // 4. AnyNonNeg - reduce.and/umin(X) > -1
4771 //
4772 // The table below shows the aggregation of all supported cases
4773 // using these four cases.
4774 //
4775 // Reduction | == 0 | != 0 | == MAX | != MAX
4776 // ------------+-----------+-----------+-----------+-----------
4777 // or/umax | AllNonNeg | AnyNeg | AnyNeg | AllNonNeg
4778 // and/umin | AnyNonNeg | AllNeg | AllNeg | AnyNonNeg
4779 // add | AllNonNeg | AnyNeg | AllNeg | AnyNonNeg
4780 //
4781 // NOTE: MAX = 1 for or/and/umax/umin, and the vector size N for add
4782 //
4783 // For easier codegen and check inversion, we use the following encoding:
4784 //
4785 // 1. Bit-3 === requires or/umax (1) or and/umin (0) check
4786 // 2. Bit-2 === checks < 0 (1) or > -1 (0)
4787 // 3. Bit-1 === universal (1) or existential (0) check
4788 //
4789 // AnyNeg = 0b110: uses or/umax, checks negative, any-check
4790 // AllNonNeg = 0b101: uses or/umax, checks non-neg, all-check
4791 // AnyNonNeg = 0b000: uses and/umin, checks non-neg, any-check
4792 // AllNeg = 0b011: uses and/umin, checks negative, all-check
4793 //
4794 // XOR with 0b011 inverts the check (swaps all/any and neg/non-neg).
4795 //
4796 enum CheckKind : unsigned {
4797 AnyNonNeg = 0b000,
4798 AllNeg = 0b011,
4799 AllNonNeg = 0b101,
4800 AnyNeg = 0b110,
4801 };
4802 // Return true if we fold this check into or/umax and false for and/umin
4803 auto RequiresOr = [](CheckKind C) -> bool { return C & 0b100; };
4804 // Return true if we should check if result is negative and false otherwise
4805 auto IsNegativeCheck = [](CheckKind C) -> bool { return C & 0b010; };
4806 // Logically invert the check
4807 auto Invert = [](CheckKind C) { return CheckKind(C ^ 0b011); };
4808
4809 CheckKind Base;
4810 switch (OrigIID) {
4811 case Intrinsic::vector_reduce_or:
4812 case Intrinsic::vector_reduce_umax:
4813 Base = TestsNegative ? AnyNeg : AllNonNeg;
4814 break;
4815 case Intrinsic::vector_reduce_and:
4816 case Intrinsic::vector_reduce_umin:
4817 Base = TestsNegative ? AllNeg : AnyNonNeg;
4818 break;
4819 case Intrinsic::vector_reduce_add:
4820 Base = TestsNegative ? AllNeg : AllNonNeg;
4821 break;
4822 default:
4823 llvm_unreachable("Unexpected intrinsic");
4824 }
4825
4826 CheckKind Check = IsEq ? Base : Invert(Base);
4827
4828 auto PickCheaper = [&](Intrinsic::ID Arith, Intrinsic::ID MinMax) {
4829 InstructionCost ArithCost =
4831 VecTy, std::nullopt, CostKind);
4832 InstructionCost MinMaxCost =
4834 FastMathFlags(), CostKind);
4835 return ArithCost <= MinMaxCost ? std::make_pair(Arith, ArithCost)
4836 : std::make_pair(MinMax, MinMaxCost);
4837 };
4838
4839 // Choose output reduction based on encoding's MSB
4840 auto [NewIID, NewCost] = RequiresOr(Check)
4841 ? PickCheaper(Intrinsic::vector_reduce_or,
4842 Intrinsic::vector_reduce_umax)
4843 : PickCheaper(Intrinsic::vector_reduce_and,
4844 Intrinsic::vector_reduce_umin);
4845
4846 // Add cost of combining multiple sources with or/and
4847 if (NumSources > 1) {
4848 unsigned CombineOpc =
4849 RequiresOr(Check) ? Instruction::Or : Instruction::And;
4850 NewCost += TTI.getArithmeticInstrCost(CombineOpc, VecTy, CostKind) *
4851 (NumSources - 1);
4852 }
4853
4854 LLVM_DEBUG(dbgs() << "Found sign-bit reduction cmp: " << I << "\n OldCost: "
4855 << OldCost << " vs NewCost: " << NewCost << "\n");
4856
4857 if (NewCost > OldCost)
4858 return false;
4859
4860 // Generate the combined input and reduction
4861 Builder.SetInsertPoint(&I);
4862 Type *ScalarTy = VecTy->getScalarType();
4863
4864 Value *Input;
4865 if (NumSources == 1) {
4866 Input = Sources[0];
4867 } else {
4868 // Combine sources with or/and based on check type
4869 Input = RequiresOr(Check) ? Builder.CreateOr(Sources)
4870 : Builder.CreateAnd(Sources);
4871 }
4872
4873 Value *NewReduce = Builder.CreateIntrinsic(ScalarTy, NewIID, {Input});
4874 Value *NewCmp = IsNegativeCheck(Check) ? Builder.CreateIsNeg(NewReduce)
4875 : Builder.CreateIsNotNeg(NewReduce);
4876 replaceValue(I, *NewCmp);
4877 return true;
4878}
4879
4880/// Fold a zero test of reduce.or or reduce.umax into a boolean reduction.
4881///
4882/// Vectorization may produce IR that compares the result of a scalar reduction
4883/// with zero. Depending on the target, lowering a reduction and a scalar
4884/// comparison separately can cost more than reducing lane-wise comparison
4885/// results. This fold creates the latter form only when it is not costlier.
4886///
4887/// Before:
4888/// %r = call iT @llvm.vector.reduce.or.vNiT(<N x iT> %x)
4889/// %cmp = icmp ne iT %r, 0
4890///
4891/// After:
4892/// %lane.cmp = icmp ne <N x iT> %x, zeroinitializer
4893/// %cmp = call i1 @llvm.vector.reduce.or.vNi1(<N x i1> %lane.cmp)
4894///
4895/// `reduce.or` and `reduce.umax` are non-zero when at least one lane is
4896/// non-zero. Therefore, `icmp ne` uses the existential `reduce.or` test.
4897/// Conversely, `icmp eq` must check that every lane is zero, so it uses the
4898/// universal `reduce.and` test.
4899///
4900/// Before:
4901/// %r = call iT @llvm.vector.reduce.umax.vNiT(<N x iT> %x)
4902/// %cmp = icmp eq iT %r, 0
4903///
4904/// After:
4905/// %lane.cmp = icmp eq <N x iT> %x, zeroinitializer
4906/// %cmp = call i1 @llvm.vector.reduce.and.vNi1(<N x i1> %lane.cmp)
4907bool VectorCombine::foldReductionZeroTest(Instruction &I) {
4908 CmpPredicate Pred;
4909 Value *Op;
4910
4911 if (!match(&I, m_c_ICmp(Pred, m_Value(Op), m_Zero())) ||
4912 !ICmpInst::isEquality(Pred))
4913 return false;
4914
4915 auto *II = dyn_cast<IntrinsicInst>(Op);
4916 if (!II || !II->hasOneUse())
4917 return false;
4918
4919 auto ReduceID = II->getIntrinsicID();
4920 if (ReduceID != Intrinsic::vector_reduce_or &&
4921 ReduceID != Intrinsic::vector_reduce_umax)
4922 return false;
4923
4924 Value *Vec = II->getArgOperand(0);
4925 auto *VecTy = dyn_cast<FixedVectorType>(Vec->getType());
4926 if (!VecTy || !VecTy->getElementType()->isIntegerTy())
4927 return false;
4928
4929 // Map the scalar zero test to an any-lane or all-lane boolean reduction.
4930 Intrinsic::ID NewIID = (Pred == ICmpInst::ICMP_NE)
4931 ? Intrinsic::vector_reduce_or
4932 : Intrinsic::vector_reduce_and;
4933
4934 // This is not an unconditional canonicalization: compare the cost of the
4935 // original scalar reduction and compare with the vector compare and i1
4936 // reduction replacement for both reduce.or and reduce.umax.
4939
4940 auto *CmpTy = cast<VectorType>(CmpInst::makeCmpResultType(VecTy));
4941 InstructionCost NewCost =
4942 TTI.getCmpSelInstrCost(Instruction::ICmp, VecTy, CmpTy, Pred, CostKind);
4944 getArithmeticReductionInstruction(NewIID), CmpTy, std::nullopt, CostKind);
4945
4946 LLVM_DEBUG(dbgs() << "Found a reduction zero test: " << I << "\n OldCost: "
4947 << OldCost << " vs NewCost: " << NewCost << "\n");
4948
4949 if (!OldCost.isValid() || !NewCost.isValid() || NewCost > OldCost)
4950 return false;
4951
4952 Builder.SetInsertPoint(&I);
4953 Value *NewCmp = Builder.CreateICmp(Pred, Vec, Constant::getNullValue(VecTy));
4954 Value *NewReduce = Builder.CreateIntrinsic(NewIID, {CmpTy}, {NewCmp});
4955 replaceValue(I, *NewReduce);
4956 return true;
4957}
4958
4959/// vector.reduce.OP f(X_i) == 0 -> vector.reduce.OP X_i == 0
4960///
4961/// We can prove it for cases when:
4962///
4963/// 1. OP X_i == 0 <=> \forall i \in [1, N] X_i == 0
4964/// 1'. OP X_i == 0 <=> \exists j \in [1, N] X_j == 0
4965/// 2. f(x) == 0 <=> x == 0
4966///
4967/// From 1 and 2 (or 1' and 2), we can infer that
4968///
4969/// OP f(X_i) == 0 <=> OP X_i == 0.
4970///
4971/// (1)
4972/// OP f(X_i) == 0 <=> \forall i \in [1, N] f(X_i) == 0
4973/// (2)
4974/// <=> \forall i \in [1, N] X_i == 0
4975/// (1)
4976/// <=> OP(X_i) == 0
4977///
4978/// For some of the OP's and f's, we need to have domain constraints on X
4979/// to ensure properties 1 (or 1') and 2.
4980bool VectorCombine::foldICmpEqZeroVectorReduce(Instruction &I) {
4981 CmpPredicate Pred;
4982 Value *Op;
4983 if (!match(&I, m_ICmp(Pred, m_Value(Op), m_Zero())) ||
4984 !ICmpInst::isEquality(Pred))
4985 return false;
4986
4987 auto *II = dyn_cast<IntrinsicInst>(Op);
4988 if (!II)
4989 return false;
4990
4991 switch (II->getIntrinsicID()) {
4992 case Intrinsic::vector_reduce_add:
4993 case Intrinsic::vector_reduce_or:
4994 case Intrinsic::vector_reduce_umin:
4995 case Intrinsic::vector_reduce_umax:
4996 case Intrinsic::vector_reduce_smin:
4997 case Intrinsic::vector_reduce_smax:
4998 break;
4999 default:
5000 return false;
5001 }
5002
5003 Value *InnerOp = II->getArgOperand(0);
5004
5005 // TODO: fixed vector type might be too restrictive
5006 if (!II->hasOneUse() || !isa<FixedVectorType>(InnerOp->getType()))
5007 return false;
5008
5009 Value *X = nullptr;
5010
5011 // Check for zero-preserving operations where f(x) = 0 <=> x = 0
5012 //
5013 // 1. f(x) = shl nuw x, y for arbitrary y
5014 // 2. f(x) = mul nuw x, c for defined c != 0
5015 // 3. f(x) = zext x
5016 // 4. f(x) = sext x
5017 // 5. f(x) = neg x
5018 //
5019 if (!(match(InnerOp, m_NUWShl(m_Value(X), m_Value())) || // Case 1
5020 match(InnerOp, m_NUWMul(m_Value(X), m_NonZeroInt())) || // Case 2
5021 match(InnerOp, m_ZExt(m_Value(X))) || // Case 3
5022 match(InnerOp, m_SExt(m_Value(X))) || // Case 4
5023 match(InnerOp, m_Neg(m_Value(X))) // Case 5
5024 ))
5025 return false;
5026
5027 SimplifyQuery S = SQ.getWithInstruction(&I);
5028 auto *XTy = cast<FixedVectorType>(X->getType());
5029
5030 // Check for domain constraints for all supported reductions.
5031 //
5032 // a. OR X_i - has property 1 for every X
5033 // b. UMAX X_i - has property 1 for every X
5034 // c. UMIN X_i - has property 1' for every X
5035 // d. SMAX X_i - has property 1 for X >= 0
5036 // e. SMIN X_i - has property 1' for X >= 0
5037 // f. ADD X_i - has property 1 for X >= 0 && ADD X_i doesn't sign wrap
5038 //
5039 // In order for the proof to work, we need 1 (or 1') to be true for both
5040 // OP f(X_i) and OP X_i and that's why below we check constraints twice.
5041 //
5042 // NOTE: ADD X_i holds property 1 for a mirror case as well, i.e. when
5043 // X <= 0 && ADD X_i doesn't sign wrap. However, due to the nature
5044 // of known bits, we can't reasonably hold knowledge of "either 0
5045 // or negative".
5046 switch (II->getIntrinsicID()) {
5047 case Intrinsic::vector_reduce_add: {
5048 // We need to check that both X_i and f(X_i) have enough leading
5049 // zeros to not overflow.
5050 KnownBits KnownX = computeKnownBits(X, S);
5051 KnownBits KnownFX = computeKnownBits(InnerOp, S);
5052 unsigned NumElems = XTy->getNumElements();
5053 // Adding N elements loses at most ceil(log2(N)) leading bits.
5054 unsigned LostBits = Log2_32_Ceil(NumElems);
5055 unsigned LeadingZerosX = KnownX.countMinLeadingZeros();
5056 unsigned LeadingZerosFX = KnownFX.countMinLeadingZeros();
5057 // Need at least one leading zero left after summation to ensure no overflow
5058 if (LeadingZerosX <= LostBits || LeadingZerosFX <= LostBits)
5059 return false;
5060
5061 // We are not checking whether X or f(X) are positive explicitly because
5062 // we implicitly checked for it when we checked if both cases have enough
5063 // leading zeros to not wrap addition.
5064 break;
5065 }
5066 case Intrinsic::vector_reduce_smin:
5067 case Intrinsic::vector_reduce_smax:
5068 // Check whether X >= 0 and f(X) >= 0
5069 if (!isKnownNonNegative(InnerOp, S) || !isKnownNonNegative(X, S))
5070 return false;
5071
5072 break;
5073 default:
5074 break;
5075 };
5076
5077 LLVM_DEBUG(dbgs() << "Found a reduction to 0 comparison with removable op: "
5078 << *II << "\n");
5079
5080 // For zext/sext, check if the transform is profitable using cost model.
5081 // For other operations (shl, mul, neg), we're removing an instruction
5082 // while keeping the same reduction type, so it's always profitable.
5083 if (isa<ZExtInst>(InnerOp) || isa<SExtInst>(InnerOp)) {
5084 auto *FXTy = cast<FixedVectorType>(InnerOp->getType());
5085 Intrinsic::ID IID = II->getIntrinsicID();
5086
5088 cast<CastInst>(InnerOp)->getOpcode(), FXTy, XTy,
5090
5091 InstructionCost OldReduceCost, NewReduceCost;
5092 switch (IID) {
5093 case Intrinsic::vector_reduce_add:
5094 case Intrinsic::vector_reduce_or:
5095 OldReduceCost = TTI.getArithmeticReductionCost(
5096 getArithmeticReductionInstruction(IID), FXTy, std::nullopt, CostKind);
5097 NewReduceCost = TTI.getArithmeticReductionCost(
5098 getArithmeticReductionInstruction(IID), XTy, std::nullopt, CostKind);
5099 break;
5100 case Intrinsic::vector_reduce_umin:
5101 case Intrinsic::vector_reduce_umax:
5102 case Intrinsic::vector_reduce_smin:
5103 case Intrinsic::vector_reduce_smax:
5104 OldReduceCost = TTI.getMinMaxReductionCost(
5105 getMinMaxReductionIntrinsicOp(IID), FXTy, FastMathFlags(), CostKind);
5106 NewReduceCost = TTI.getMinMaxReductionCost(
5107 getMinMaxReductionIntrinsicOp(IID), XTy, FastMathFlags(), CostKind);
5108 break;
5109 default:
5110 llvm_unreachable("Unexpected reduction");
5111 }
5112
5113 InstructionCost OldCost = OldReduceCost + ExtCost;
5114 InstructionCost NewCost =
5115 NewReduceCost + (InnerOp->hasOneUse() ? 0 : ExtCost);
5116
5117 LLVM_DEBUG(dbgs() << "Found a removable extension before reduction: "
5118 << *InnerOp << "\n OldCost: " << OldCost
5119 << " vs NewCost: " << NewCost << "\n");
5120
5121 // We consider transformation to still be potentially beneficial even
5122 // when the costs are the same because we might remove a use from f(X)
5123 // and unlock other optimizations. Equal costs would just mean that we
5124 // didn't make it worse in the worst case.
5125 if (NewCost > OldCost)
5126 return false;
5127 }
5128
5129 // Since we support zext and sext as f, we might change the scalar type
5130 // of the intrinsic.
5131 Type *Ty = XTy->getScalarType();
5132 Value *NewReduce = Builder.CreateIntrinsic(Ty, II->getIntrinsicID(), {X});
5133 Value *NewCmp =
5134 Builder.CreateICmp(Pred, NewReduce, ConstantInt::getNullValue(Ty));
5135 replaceValue(I, *NewCmp);
5136 return true;
5137}
5138
5139/// Fold comparisons of reduce.or/reduce.and with reduce.umax/reduce.umin
5140/// based on cost, preserving the comparison semantics.
5141///
5142/// We use two fundamental properties for each pair:
5143///
5144/// 1. or(X) == 0 <=> umax(X) == 0
5145/// 2. or(X) == 1 <=> umax(X) == 1
5146/// 3. sign(or(X)) == sign(umax(X))
5147///
5148/// 1. and(X) == -1 <=> umin(X) == -1
5149/// 2. and(X) == -2 <=> umin(X) == -2
5150/// 3. sign(and(X)) == sign(umin(X))
5151///
5152/// From these we can infer the following transformations:
5153/// a. or(X) ==/!= 0 <-> umax(X) ==/!= 0
5154/// b. or(X) s< 0 <-> umax(X) s< 0
5155/// c. or(X) s> -1 <-> umax(X) s> -1
5156/// d. or(X) s< 1 <-> umax(X) s< 1
5157/// e. or(X) ==/!= 1 <-> umax(X) ==/!= 1
5158/// f. or(X) s< 2 <-> umax(X) s< 2
5159/// g. and(X) ==/!= -1 <-> umin(X) ==/!= -1
5160/// h. and(X) s< 0 <-> umin(X) s< 0
5161/// i. and(X) s> -1 <-> umin(X) s> -1
5162/// j. and(X) s> -2 <-> umin(X) s> -2
5163/// k. and(X) ==/!= -2 <-> umin(X) ==/!= -2
5164/// l. and(X) s> -3 <-> umin(X) s> -3
5165///
5166bool VectorCombine::foldEquivalentReductionCmp(Instruction &I) {
5167 CmpPredicate Pred;
5168 Value *ReduceOp;
5169 const APInt *CmpVal;
5170 if (!match(&I, m_ICmp(Pred, m_Value(ReduceOp), m_APInt(CmpVal))))
5171 return false;
5172
5173 auto *II = dyn_cast<IntrinsicInst>(ReduceOp);
5174 if (!II || !II->hasOneUse())
5175 return false;
5176
5177 const auto IsValidOrUmaxCmp = [&]() {
5178 // or === umax for i1
5179 if (CmpVal->getBitWidth() == 1)
5180 return true;
5181
5182 // Cases a and e
5183 bool IsEquality =
5184 (CmpVal->isZero() || CmpVal->isOne()) && ICmpInst::isEquality(Pred);
5185 // Case c
5186 bool IsPositive = CmpVal->isAllOnes() && Pred == ICmpInst::ICMP_SGT;
5187 // Cases b, d, and f
5188 bool IsNegative = (CmpVal->isZero() || CmpVal->isOne() || *CmpVal == 2) &&
5189 Pred == ICmpInst::ICMP_SLT;
5190 return IsEquality || IsPositive || IsNegative;
5191 };
5192
5193 const auto IsValidAndUminCmp = [&]() {
5194 // and === umin for i1
5195 if (CmpVal->getBitWidth() == 1)
5196 return true;
5197
5198 const auto LeadingOnes = CmpVal->countl_one();
5199
5200 // Cases g and k
5201 bool IsEquality =
5202 (CmpVal->isAllOnes() || LeadingOnes + 1 == CmpVal->getBitWidth()) &&
5204 // Case h
5205 bool IsNegative = CmpVal->isZero() && Pred == ICmpInst::ICMP_SLT;
5206 // Cases i, j, and l
5207 bool IsPositive =
5208 // if the number has at least N - 2 leading ones
5209 // and the two LSBs are:
5210 // - 1 x 1 -> -1
5211 // - 1 x 0 -> -2
5212 // - 0 x 1 -> -3
5213 LeadingOnes + 2 >= CmpVal->getBitWidth() &&
5214 ((*CmpVal)[0] || (*CmpVal)[1]) && Pred == ICmpInst::ICMP_SGT;
5215 return IsEquality || IsNegative || IsPositive;
5216 };
5217
5218 Intrinsic::ID OriginalIID = II->getIntrinsicID();
5219 Intrinsic::ID AlternativeIID;
5220
5221 // Check if this is a valid comparison pattern and determine the alternate
5222 // reduction intrinsic.
5223 switch (OriginalIID) {
5224 case Intrinsic::vector_reduce_or:
5225 if (!IsValidOrUmaxCmp())
5226 return false;
5227 AlternativeIID = Intrinsic::vector_reduce_umax;
5228 break;
5229 case Intrinsic::vector_reduce_umax:
5230 if (!IsValidOrUmaxCmp())
5231 return false;
5232 AlternativeIID = Intrinsic::vector_reduce_or;
5233 break;
5234 case Intrinsic::vector_reduce_and:
5235 if (!IsValidAndUminCmp())
5236 return false;
5237 AlternativeIID = Intrinsic::vector_reduce_umin;
5238 break;
5239 case Intrinsic::vector_reduce_umin:
5240 if (!IsValidAndUminCmp())
5241 return false;
5242 AlternativeIID = Intrinsic::vector_reduce_and;
5243 break;
5244 default:
5245 return false;
5246 }
5247
5248 Value *X = II->getArgOperand(0);
5249 auto *VecTy = dyn_cast<FixedVectorType>(X->getType());
5250 if (!VecTy)
5251 return false;
5252
5253 const auto GetReductionCost = [&](Intrinsic::ID IID) -> InstructionCost {
5254 unsigned ReductionOpc = getArithmeticReductionInstruction(IID);
5255 if (ReductionOpc != Instruction::ICmp)
5256 return TTI.getArithmeticReductionCost(ReductionOpc, VecTy, std::nullopt,
5257 CostKind);
5259 FastMathFlags(), CostKind);
5260 };
5261
5262 InstructionCost OrigCost = GetReductionCost(OriginalIID);
5263 InstructionCost AltCost = GetReductionCost(AlternativeIID);
5264
5265 LLVM_DEBUG(dbgs() << "Found equivalent reduction cmp: " << I
5266 << "\n OrigCost: " << OrigCost
5267 << " vs AltCost: " << AltCost << "\n");
5268
5269 if (AltCost >= OrigCost)
5270 return false;
5271
5272 Builder.SetInsertPoint(&I);
5273 Type *ScalarTy = VecTy->getScalarType();
5274 Value *NewReduce = Builder.CreateIntrinsic(ScalarTy, AlternativeIID, {X});
5275 Value *NewCmp =
5276 Builder.CreateICmp(Pred, NewReduce, ConstantInt::get(ScalarTy, *CmpVal));
5277
5278 replaceValue(I, *NewCmp);
5279 return true;
5280}
5281
5282/// Used by foldReduceAddCmpZero to check if we can prove that a value is
5283/// non-positive.
5284/// KnownBits cannot see sext <? x i1> as non-positive: each top bit equals a
5285/// single unknown input bit, which a per-bit lattice cannot track. The fold's
5286/// target shape is popcount-style sums of <N x i1> valid/invalid masks (e.g.
5287/// ray-intersection hits) tested for any-hit.
5288/// Previous attempts to approximate the known bits of such expressions were
5289/// using a fully recursive value tracking approach to infer a constant range
5290/// but ultimately turned to be too expensive in compile time.
5291static bool isKnownNonPositive(const Value *V, const SimplifyQuery &SQ,
5292 unsigned Depth = 0) {
5293 constexpr unsigned MaxLocalDepth = 2;
5294 if (Depth > MaxLocalDepth)
5295 return false;
5296
5297 auto NumSignBits = [&](const Value *X) {
5298 return ComputeNumSignBits(X, SQ.DL, SQ.AC, SQ.CxtI, SQ.DT);
5299 };
5300 if (NumSignBits(V) == V->getType()->getScalarSizeInBits())
5301 return true;
5302
5303 Value *A, *B;
5304 if (match(V, m_Add(m_Value(A), m_Value(B))))
5305 return NumSignBits(A) >= 2 && NumSignBits(B) >= 2 &&
5306 isKnownNonPositive(A, SQ, Depth + 1) &&
5307 isKnownNonPositive(B, SQ, Depth + 1);
5308
5309 return computeKnownBits(V, SQ).isNonPositive();
5310}
5311
5312/// Fold (icmp pred (reduce.add X), 0) to (icmp pred' (reduce.or X), 0) when X
5313/// has lanes known to all be non-negative or all non-positive, so that
5314/// sum == 0 iff every lane is 0. Falls back to reduce.umax if reduce.or is
5315/// more expensive on the target.
5316bool VectorCombine::foldReduceAddCmpZero(Instruction &I) {
5317 CmpPredicate Pred;
5318 Value *Vec;
5319 if (!match(&I, m_ICmp(Pred,
5321 m_Value(Vec))),
5322 m_Zero())))
5323 return false;
5324
5325 auto *VecTy = dyn_cast<FixedVectorType>(Vec->getType());
5326 if (!VecTy || VecTy->getNumElements() < 2)
5327 return false;
5328
5329 SimplifyQuery Q = SQ.getWithInstruction(&I);
5330 bool IsNonNegative = isKnownNonNegative(Vec, Q);
5331 bool IsNonPositive = !IsNonNegative && isKnownNonPositive(Vec, Q);
5332 if (!IsNonNegative && !IsNonPositive)
5333 return false;
5334
5335 // Summing NumElts lanes can consume up to log2(NumElts) sign bits. Require
5336 // strictly more headroom than that so the sum cannot wrap to zero.
5337 unsigned NumElts = VecTy->getNumElements();
5338 unsigned NumSignBits = ComputeNumSignBits(Vec, *DL, SQ.AC, &I, &DT);
5339 if (Log2_32(NumElts) >= NumSignBits)
5340 return false;
5341
5342 ICmpInst::Predicate NewPred;
5343 switch (Pred) {
5344 case ICmpInst::ICMP_EQ:
5345 case ICmpInst::ICMP_ULE:
5346 case ICmpInst::ICMP_SLE:
5347 case ICmpInst::ICMP_SGE:
5348 NewPred = ICmpInst::ICMP_EQ;
5349 break;
5350 case ICmpInst::ICMP_NE:
5351 case ICmpInst::ICMP_UGT:
5352 case ICmpInst::ICMP_SGT:
5353 case ICmpInst::ICMP_SLT:
5354 NewPred = ICmpInst::ICMP_NE;
5355 break;
5356 default:
5357 return false;
5358 }
5359
5360 // SGT and SLE on a non-positive tree, and SLT and SGE on a non-negative
5361 // tree, are tautologies (always true or always false). Leave those to
5362 // InstCombine rather than mapping them here. Remaining signed inequalities
5363 // also need one extra sign bit so the sum cannot flip sign.
5364 if (!IsNonNegative &&
5365 (Pred == ICmpInst::ICMP_SGT || Pred == ICmpInst::ICMP_SLE))
5366 return false;
5367 if (!IsNonPositive &&
5368 (Pred == ICmpInst::ICMP_SLT || Pred == ICmpInst::ICMP_SGE))
5369 return false;
5370 if ((Pred == ICmpInst::ICMP_SGT || Pred == ICmpInst::ICMP_SLE ||
5371 Pred == ICmpInst::ICMP_SLT || Pred == ICmpInst::ICMP_SGE) &&
5372 Log2_32(NumElts) >= NumSignBits - 1)
5373 return false;
5374
5376 Instruction::Add, VecTy, std::nullopt, CostKind);
5378 Instruction::Or, VecTy, std::nullopt, CostKind);
5380 Intrinsic::umax, VecTy, FastMathFlags(), CostKind);
5381 if (!OrCost.isValid() && !UmaxCost.isValid())
5382 return false;
5383 bool UseOr = OrCost.isValid() && (!UmaxCost.isValid() || OrCost <= UmaxCost);
5384 InstructionCost AltCost = UseOr ? OrCost : UmaxCost;
5385 if (AltCost > OrigCost)
5386 return false;
5387
5388 Builder.SetInsertPoint(&I);
5389 Value *NewReduce = UseOr ? Builder.CreateOrReduce(Vec)
5390 : Builder.CreateIntrinsic(
5391 Intrinsic::vector_reduce_umax, {VecTy}, {Vec});
5392 Worklist.pushValue(NewReduce);
5393 Value *NewCmp = Builder.CreateICmp(
5394 NewPred, NewReduce, ConstantInt::getNullValue(VecTy->getScalarType()));
5395 replaceValue(I, *NewCmp);
5396 return true;
5397}
5398
5399/// Returns true if this ShuffleVectorInst eventually feeds into a
5400/// vector reduction intrinsic (e.g., vector_reduce_add) by only following
5401/// chains of shuffles and binary operators (in any combination/order).
5402/// The search does not go deeper than the given Depth.
5404 constexpr unsigned MaxVisited = 32;
5407 bool FoundReduction = false;
5408
5409 WorkList.push_back(SVI);
5410 while (!WorkList.empty()) {
5411 Instruction *I = WorkList.pop_back_val();
5412 for (User *U : I->users()) {
5413 auto *UI = cast<Instruction>(U);
5414 if (!UI || !Visited.insert(UI).second)
5415 continue;
5416 if (Visited.size() > MaxVisited)
5417 return false;
5418 if (auto *II = dyn_cast<IntrinsicInst>(UI)) {
5419 // More than one reduction reached
5420 if (FoundReduction)
5421 return false;
5422 switch (II->getIntrinsicID()) {
5423 case Intrinsic::vector_reduce_add:
5424 case Intrinsic::vector_reduce_mul:
5425 case Intrinsic::vector_reduce_and:
5426 case Intrinsic::vector_reduce_or:
5427 case Intrinsic::vector_reduce_xor:
5428 case Intrinsic::vector_reduce_smin:
5429 case Intrinsic::vector_reduce_smax:
5430 case Intrinsic::vector_reduce_umin:
5431 case Intrinsic::vector_reduce_umax:
5432 FoundReduction = true;
5433 continue;
5434 default:
5435 return false;
5436 }
5437 }
5438
5440 return false;
5441
5442 WorkList.emplace_back(UI);
5443 }
5444 }
5445 return FoundReduction;
5446}
5447
5448/// This method looks for groups of shuffles acting on binops, of the form:
5449/// %x = shuffle ...
5450/// %y = shuffle ...
5451/// %a = binop %x, %y
5452/// %b = binop %x, %y
5453/// shuffle %a, %b, selectmask
5454/// We may, especially if the shuffle is wider than legal, be able to convert
5455/// the shuffle to a form where only parts of a and b need to be computed. On
5456/// architectures with no obvious "select" shuffle, this can reduce the total
5457/// number of operations if the target reports them as cheaper.
5458bool VectorCombine::foldSelectShuffle(Instruction &I, bool FromReduction) {
5459 auto *SVI = cast<ShuffleVectorInst>(&I);
5460 auto *VT = cast<FixedVectorType>(I.getType());
5461 auto *Op0 = dyn_cast<Instruction>(SVI->getOperand(0));
5462 auto *Op1 = dyn_cast<Instruction>(SVI->getOperand(1));
5463 if (!Op0 || !Op1 || Op0 == Op1 || !Op0->isBinaryOp() || !Op1->isBinaryOp() ||
5464 VT != Op0->getType())
5465 return false;
5466
5467 auto *SVI0A = dyn_cast<Instruction>(Op0->getOperand(0));
5468 auto *SVI0B = dyn_cast<Instruction>(Op0->getOperand(1));
5469 auto *SVI1A = dyn_cast<Instruction>(Op1->getOperand(0));
5470 auto *SVI1B = dyn_cast<Instruction>(Op1->getOperand(1));
5471 SmallPtrSet<Instruction *, 4> InputShuffles({SVI0A, SVI0B, SVI1A, SVI1B});
5472 auto checkSVNonOpUses = [&](Instruction *I) {
5473 if (!I || I->getOperand(0)->getType() != VT)
5474 return true;
5475 return any_of(I->users(), [&](User *U) {
5476 return U != Op0 && U != Op1 &&
5477 !(isa<ShuffleVectorInst>(U) &&
5478 (InputShuffles.contains(cast<Instruction>(U)) ||
5479 isInstructionTriviallyDead(cast<Instruction>(U))));
5480 });
5481 };
5482 if (checkSVNonOpUses(SVI0A) || checkSVNonOpUses(SVI0B) ||
5483 checkSVNonOpUses(SVI1A) || checkSVNonOpUses(SVI1B))
5484 return false;
5485
5486 // Collect all the uses that are shuffles that we can transform together. We
5487 // may not have a single shuffle, but a group that can all be transformed
5488 // together profitably.
5490 auto collectShuffles = [&](Instruction *I) {
5491 for (auto *U : I->users()) {
5492 auto *SV = dyn_cast<ShuffleVectorInst>(U);
5493 if (!SV || SV->getType() != VT)
5494 return false;
5495 if ((SV->getOperand(0) != Op0 && SV->getOperand(0) != Op1) ||
5496 (SV->getOperand(1) != Op0 && SV->getOperand(1) != Op1))
5497 return false;
5498 if (!llvm::is_contained(Shuffles, SV))
5499 Shuffles.push_back(SV);
5500 }
5501 return true;
5502 };
5503 if (!collectShuffles(Op0) || !collectShuffles(Op1))
5504 return false;
5505 // From a reduction, we need to be processing a single shuffle, otherwise the
5506 // other uses will not be lane-invariant.
5507 if (FromReduction && Shuffles.size() > 1)
5508 return false;
5509
5510 // Add any shuffle uses for the shuffles we have found, to include them in our
5511 // cost calculations.
5512 if (!FromReduction) {
5513 for (size_t Idx = 0, E = Shuffles.size(); Idx != E; ++Idx) {
5514 for (auto *U : Shuffles[Idx]->users()) {
5515 ShuffleVectorInst *SSV = dyn_cast<ShuffleVectorInst>(U);
5516 if (SSV && isa<UndefValue>(SSV->getOperand(1)) && SSV->getType() == VT)
5517 Shuffles.push_back(SSV);
5518 }
5519 }
5520 }
5521
5522 // For each of the output shuffles, we try to sort all the first vector
5523 // elements to the beginning, followed by the second array elements at the
5524 // end. If the binops are legalized to smaller vectors, this may reduce total
5525 // number of binops. We compute the ReconstructMask mask needed to convert
5526 // back to the original lane order.
5528 SmallVector<SmallVector<int>> OrigReconstructMasks;
5529 int MaxV1Elt = 0, MaxV2Elt = 0;
5530 unsigned NumElts = VT->getNumElements();
5531 for (ShuffleVectorInst *SVN : Shuffles) {
5532 SmallVector<int> Mask;
5533 SVN->getShuffleMask(Mask);
5534
5535 // Check the operands are the same as the original, or reversed (in which
5536 // case we need to commute the mask).
5537 Value *SVOp0 = SVN->getOperand(0);
5538 Value *SVOp1 = SVN->getOperand(1);
5539 if (isa<UndefValue>(SVOp1)) {
5540 auto *SSV = cast<ShuffleVectorInst>(SVOp0);
5541 SVOp0 = SSV->getOperand(0);
5542 SVOp1 = SSV->getOperand(1);
5543 for (int &Elem : Mask) {
5544 if (Elem >= static_cast<int>(SSV->getShuffleMask().size()))
5545 return false;
5546 Elem = Elem < 0 ? Elem : SSV->getMaskValue(Elem);
5547 }
5548 }
5549 if (SVOp0 == Op1 && SVOp1 == Op0) {
5550 std::swap(SVOp0, SVOp1);
5552 }
5553 if (SVOp0 != Op0 || SVOp1 != Op1)
5554 return false;
5555
5556 // Calculate the reconstruction mask for this shuffle, as the mask needed to
5557 // take the packed values from Op0/Op1 and reconstructing to the original
5558 // order.
5559 SmallVector<int> ReconstructMask;
5560 for (unsigned I = 0; I < Mask.size(); I++) {
5561 if (Mask[I] < 0) {
5562 ReconstructMask.push_back(-1);
5563 } else if (Mask[I] < static_cast<int>(NumElts)) {
5564 MaxV1Elt = std::max(MaxV1Elt, Mask[I]);
5565 auto It = find_if(V1, [&](const std::pair<int, int> &A) {
5566 return Mask[I] == A.first;
5567 });
5568 if (It != V1.end())
5569 ReconstructMask.push_back(It - V1.begin());
5570 else {
5571 ReconstructMask.push_back(V1.size());
5572 V1.emplace_back(Mask[I], V1.size());
5573 }
5574 } else {
5575 MaxV2Elt = std::max<int>(MaxV2Elt, Mask[I] - NumElts);
5576 auto It = find_if(V2, [&](const std::pair<int, int> &A) {
5577 return Mask[I] - static_cast<int>(NumElts) == A.first;
5578 });
5579 if (It != V2.end())
5580 ReconstructMask.push_back(NumElts + It - V2.begin());
5581 else {
5582 ReconstructMask.push_back(NumElts + V2.size());
5583 V2.emplace_back(Mask[I] - NumElts, NumElts + V2.size());
5584 }
5585 }
5586 }
5587
5588 // For reductions, we know that the lane ordering out doesn't alter the
5589 // result. In-order can help simplify the shuffle away.
5590 if (FromReduction)
5591 sort(ReconstructMask);
5592 OrigReconstructMasks.push_back(std::move(ReconstructMask));
5593 }
5594
5595 // If the Maximum element used from V1 and V2 are not larger than the new
5596 // vectors, the vectors are already packes and performing the optimization
5597 // again will likely not help any further. This also prevents us from getting
5598 // stuck in a cycle in case the costs do not also rule it out.
5599 if (V1.empty() || V2.empty() ||
5600 (MaxV1Elt == static_cast<int>(V1.size()) - 1 &&
5601 MaxV2Elt == static_cast<int>(V2.size()) - 1))
5602 return false;
5603
5604 // GetBaseMaskValue takes one of the inputs, which may either be a shuffle, a
5605 // shuffle of another shuffle, or not a shuffle (that is treated like a
5606 // identity shuffle).
5607 auto GetBaseMaskValue = [&](Instruction *I, int M) {
5608 auto *SV = dyn_cast<ShuffleVectorInst>(I);
5609 if (!SV)
5610 return M;
5611 if (isa<UndefValue>(SV->getOperand(1)))
5612 if (auto *SSV = dyn_cast<ShuffleVectorInst>(SV->getOperand(0)))
5613 if (InputShuffles.contains(SSV))
5614 return SSV->getMaskValue(SV->getMaskValue(M));
5615 return SV->getMaskValue(M);
5616 };
5617
5618 // Attempt to sort the inputs my ascending mask values to make simpler input
5619 // shuffles and push complex shuffles down to the uses. We sort on the first
5620 // of the two input shuffle orders, to try and get at least one input into a
5621 // nice order.
5622 auto SortBase = [&](Instruction *A, std::pair<int, int> X,
5623 std::pair<int, int> Y) {
5624 int MXA = GetBaseMaskValue(A, X.first);
5625 int MYA = GetBaseMaskValue(A, Y.first);
5626 return MXA < MYA;
5627 };
5628 stable_sort(V1, [&](std::pair<int, int> A, std::pair<int, int> B) {
5629 return SortBase(SVI0A, A, B);
5630 });
5631 stable_sort(V2, [&](std::pair<int, int> A, std::pair<int, int> B) {
5632 return SortBase(SVI1A, A, B);
5633 });
5634 // Calculate our ReconstructMasks from the OrigReconstructMasks and the
5635 // modified order of the input shuffles.
5636 SmallVector<SmallVector<int>> ReconstructMasks;
5637 for (const auto &Mask : OrigReconstructMasks) {
5638 SmallVector<int> ReconstructMask;
5639 for (int M : Mask) {
5640 auto FindIndex = [](const SmallVector<std::pair<int, int>> &V, int M) {
5641 auto It = find_if(V, [M](auto A) { return A.second == M; });
5642 assert(It != V.end() && "Expected all entries in Mask");
5643 return std::distance(V.begin(), It);
5644 };
5645 if (M < 0)
5646 ReconstructMask.push_back(-1);
5647 else if (M < static_cast<int>(NumElts)) {
5648 ReconstructMask.push_back(FindIndex(V1, M));
5649 } else {
5650 ReconstructMask.push_back(NumElts + FindIndex(V2, M));
5651 }
5652 }
5653 ReconstructMasks.push_back(std::move(ReconstructMask));
5654 }
5655
5656 // Calculate the masks needed for the new input shuffles, which get padded
5657 // with undef
5658 SmallVector<int> V1A, V1B, V2A, V2B;
5659 for (unsigned I = 0; I < V1.size(); I++) {
5660 V1A.push_back(GetBaseMaskValue(SVI0A, V1[I].first));
5661 V1B.push_back(GetBaseMaskValue(SVI0B, V1[I].first));
5662 }
5663 for (unsigned I = 0; I < V2.size(); I++) {
5664 V2A.push_back(GetBaseMaskValue(SVI1A, V2[I].first));
5665 V2B.push_back(GetBaseMaskValue(SVI1B, V2[I].first));
5666 }
5667 while (V1A.size() < NumElts) {
5670 }
5671 while (V2A.size() < NumElts) {
5674 }
5675
5676 auto AddShuffleCost = [&](InstructionCost C, Instruction *I) {
5677 auto *SV = dyn_cast<ShuffleVectorInst>(I);
5678 if (!SV)
5679 return C;
5680 return C + TTI.getShuffleCost(isa<UndefValue>(SV->getOperand(1))
5683 VT, VT, CostKind, SV->getShuffleMask());
5684 };
5685 auto AddShuffleMaskCost = [&](InstructionCost C, ArrayRef<int> Mask) {
5686 return C +
5688 };
5689
5690 unsigned ElementSize = VT->getElementType()->getPrimitiveSizeInBits();
5691 unsigned MaxVectorSize =
5693 unsigned MaxElementsInVector = MaxVectorSize / ElementSize;
5694 if (MaxElementsInVector == 0)
5695 return false;
5696 // When there are multiple shufflevector operations on the same input,
5697 // especially when the vector length is larger than the register size,
5698 // identical shuffle patterns may occur across different groups of elements.
5699 // To avoid overestimating the cost by counting these repeated shuffles more
5700 // than once, we only account for unique shuffle patterns. This adjustment
5701 // prevents inflated costs in the cost model for wide vectors split into
5702 // several register-sized groups.
5703 std::set<SmallVector<int, 4>> UniqueShuffles;
5704 auto AddShuffleMaskAdjustedCost = [&](InstructionCost C, ArrayRef<int> Mask) {
5705 // Compute the cost for performing the shuffle over the full vector.
5706 auto ShuffleCost =
5708 unsigned NumFullVectors = Mask.size() / MaxElementsInVector;
5709 if (NumFullVectors < 2)
5710 return C + ShuffleCost;
5711 SmallVector<int, 4> SubShuffle(MaxElementsInVector);
5712 unsigned NumUniqueGroups = 0;
5713 unsigned NumGroups = Mask.size() / MaxElementsInVector;
5714 // For each group of MaxElementsInVector contiguous elements,
5715 // collect their shuffle pattern and insert into the set of unique patterns.
5716 for (unsigned I = 0; I < NumFullVectors; ++I) {
5717 for (unsigned J = 0; J < MaxElementsInVector; ++J)
5718 SubShuffle[J] = Mask[MaxElementsInVector * I + J];
5719 if (UniqueShuffles.insert(SubShuffle).second)
5720 NumUniqueGroups += 1;
5721 }
5722 return C + ShuffleCost * NumUniqueGroups / NumGroups;
5723 };
5724 auto AddShuffleAdjustedCost = [&](InstructionCost C, Instruction *I) {
5725 auto *SV = dyn_cast<ShuffleVectorInst>(I);
5726 if (!SV)
5727 return C;
5728 SmallVector<int, 16> Mask;
5729 SV->getShuffleMask(Mask);
5730 return AddShuffleMaskAdjustedCost(C, Mask);
5731 };
5732 // Check that input consists of ShuffleVectors applied to the same input
5733 auto AllShufflesHaveSameOperands =
5734 [](SmallPtrSetImpl<Instruction *> &InputShuffles) {
5735 if (InputShuffles.size() < 2)
5736 return false;
5737 ShuffleVectorInst *FirstSV =
5738 dyn_cast<ShuffleVectorInst>(*InputShuffles.begin());
5739 if (!FirstSV)
5740 return false;
5741
5742 Value *In0 = FirstSV->getOperand(0), *In1 = FirstSV->getOperand(1);
5743 return std::all_of(
5744 std::next(InputShuffles.begin()), InputShuffles.end(),
5745 [&](Instruction *I) {
5746 ShuffleVectorInst *SV = dyn_cast<ShuffleVectorInst>(I);
5747 return SV && SV->getOperand(0) == In0 && SV->getOperand(1) == In1;
5748 });
5749 };
5750
5751 // Get the costs of the shuffles + binops before and after with the new
5752 // shuffle masks.
5753 InstructionCost CostBefore =
5754 TTI.getArithmeticInstrCost(Op0->getOpcode(), VT, CostKind) +
5755 TTI.getArithmeticInstrCost(Op1->getOpcode(), VT, CostKind);
5756 CostBefore += std::accumulate(Shuffles.begin(), Shuffles.end(),
5757 InstructionCost(0), AddShuffleCost);
5758 if (AllShufflesHaveSameOperands(InputShuffles)) {
5759 UniqueShuffles.clear();
5760 CostBefore += std::accumulate(InputShuffles.begin(), InputShuffles.end(),
5761 InstructionCost(0), AddShuffleAdjustedCost);
5762 } else {
5763 CostBefore += std::accumulate(InputShuffles.begin(), InputShuffles.end(),
5764 InstructionCost(0), AddShuffleCost);
5765 }
5766
5767 // The new binops will be unused for lanes past the used shuffle lengths.
5768 // These types attempt to get the correct cost for that from the target.
5769 FixedVectorType *Op0SmallVT =
5770 FixedVectorType::get(VT->getScalarType(), V1.size());
5771 FixedVectorType *Op1SmallVT =
5772 FixedVectorType::get(VT->getScalarType(), V2.size());
5773 InstructionCost CostAfter =
5774 TTI.getArithmeticInstrCost(Op0->getOpcode(), Op0SmallVT, CostKind) +
5775 TTI.getArithmeticInstrCost(Op1->getOpcode(), Op1SmallVT, CostKind);
5776 UniqueShuffles.clear();
5777 CostAfter += std::accumulate(ReconstructMasks.begin(), ReconstructMasks.end(),
5778 InstructionCost(0), AddShuffleMaskAdjustedCost);
5779 std::set<SmallVector<int>> OutputShuffleMasks({V1A, V1B, V2A, V2B});
5780 CostAfter +=
5781 std::accumulate(OutputShuffleMasks.begin(), OutputShuffleMasks.end(),
5782 InstructionCost(0), AddShuffleMaskCost);
5783
5784 LLVM_DEBUG(dbgs() << "Found a binop select shuffle pattern: " << I << "\n");
5785 LLVM_DEBUG(dbgs() << " CostBefore: " << CostBefore
5786 << " vs CostAfter: " << CostAfter << "\n");
5787 if (CostBefore < CostAfter ||
5788 (CostBefore == CostAfter && !feedsIntoVectorReduction(SVI)))
5789 return false;
5790
5791 // The cost model has passed, create the new instructions.
5792 auto GetShuffleOperand = [&](Instruction *I, unsigned Op) -> Value * {
5793 auto *SV = dyn_cast<ShuffleVectorInst>(I);
5794 if (!SV)
5795 return I;
5796 if (isa<UndefValue>(SV->getOperand(1)))
5797 if (auto *SSV = dyn_cast<ShuffleVectorInst>(SV->getOperand(0)))
5798 if (InputShuffles.contains(SSV))
5799 return SSV->getOperand(Op);
5800 return SV->getOperand(Op);
5801 };
5802 Builder.SetInsertPoint(*SVI0A->getInsertionPointAfterDef());
5803 Value *NSV0A = Builder.CreateShuffleVector(GetShuffleOperand(SVI0A, 0),
5804 GetShuffleOperand(SVI0A, 1), V1A);
5805 Builder.SetInsertPoint(*SVI0B->getInsertionPointAfterDef());
5806 Value *NSV0B = Builder.CreateShuffleVector(GetShuffleOperand(SVI0B, 0),
5807 GetShuffleOperand(SVI0B, 1), V1B);
5808 Builder.SetInsertPoint(*SVI1A->getInsertionPointAfterDef());
5809 Value *NSV1A = Builder.CreateShuffleVector(GetShuffleOperand(SVI1A, 0),
5810 GetShuffleOperand(SVI1A, 1), V2A);
5811 Builder.SetInsertPoint(*SVI1B->getInsertionPointAfterDef());
5812 Value *NSV1B = Builder.CreateShuffleVector(GetShuffleOperand(SVI1B, 0),
5813 GetShuffleOperand(SVI1B, 1), V2B);
5814 Builder.SetInsertPoint(Op0);
5815 Value *NOp0 = Builder.CreateBinOp((Instruction::BinaryOps)Op0->getOpcode(),
5816 NSV0A, NSV0B);
5817 if (auto *I = dyn_cast<Instruction>(NOp0))
5818 I->copyIRFlags(Op0, true);
5819 Builder.SetInsertPoint(Op1);
5820 Value *NOp1 = Builder.CreateBinOp((Instruction::BinaryOps)Op1->getOpcode(),
5821 NSV1A, NSV1B);
5822 if (auto *I = dyn_cast<Instruction>(NOp1))
5823 I->copyIRFlags(Op1, true);
5824
5825 for (int S = 0, E = ReconstructMasks.size(); S != E; S++) {
5826 Builder.SetInsertPoint(Shuffles[S]);
5827 Value *NSV = Builder.CreateShuffleVector(NOp0, NOp1, ReconstructMasks[S]);
5828 replaceValue(*Shuffles[S], *NSV, false);
5829 }
5830
5831 Worklist.pushValue(NSV0A);
5832 Worklist.pushValue(NSV0B);
5833 Worklist.pushValue(NSV1A);
5834 Worklist.pushValue(NSV1B);
5835 return true;
5836}
5837
5838/// Check if instruction depends on ZExt and this ZExt can be moved after the
5839/// instruction. Move ZExt if it is profitable. For example:
5840/// logic(zext(x),y) -> zext(logic(x,trunc(y)))
5841/// lshr((zext(x),y) -> zext(lshr(x,trunc(y)))
5842/// Cost model calculations takes into account if zext(x) has other users and
5843/// whether it can be propagated through them too.
5844bool VectorCombine::shrinkType(Instruction &I) {
5845 Value *ZExted, *OtherOperand;
5846 if (!match(&I, m_c_BitwiseLogic(m_ZExt(m_Value(ZExted)),
5847 m_Value(OtherOperand))) &&
5848 !match(&I, m_LShr(m_ZExt(m_Value(ZExted)), m_Value(OtherOperand))))
5849 return false;
5850
5851 Value *ZExtOperand = I.getOperand(I.getOperand(0) == OtherOperand ? 1 : 0);
5852
5853 auto *BigTy = cast<FixedVectorType>(I.getType());
5854 auto *SmallTy = cast<FixedVectorType>(ZExted->getType());
5855 unsigned BW = SmallTy->getElementType()->getPrimitiveSizeInBits();
5856
5857 if (I.getOpcode() == Instruction::LShr) {
5858 // Check that the shift amount is less than the number of bits in the
5859 // smaller type. Otherwise, the smaller lshr will return a poison value.
5860 KnownBits ShAmtKB = computeKnownBits(I.getOperand(1), *DL);
5861 if (ShAmtKB.getMaxValue().uge(BW))
5862 return false;
5863 } else {
5864 // Check that the expression overall uses at most the same number of bits as
5865 // ZExted
5866 KnownBits KB = computeKnownBits(&I, *DL);
5867 if (KB.countMaxActiveBits() > BW)
5868 return false;
5869 }
5870
5871 // Calculate costs of leaving current IR as it is and moving ZExt operation
5872 // later, along with adding truncates if needed
5874 Instruction::ZExt, BigTy, SmallTy,
5875 TargetTransformInfo::CastContextHint::None, CostKind);
5876 InstructionCost CurrentCost = ZExtCost;
5877 InstructionCost ShrinkCost = 0;
5878
5879 // Calculate total cost and check that we can propagate through all ZExt users
5880 for (User *U : ZExtOperand->users()) {
5881 auto *UI = cast<Instruction>(U);
5882 if (UI == &I) {
5883 CurrentCost +=
5884 TTI.getArithmeticInstrCost(UI->getOpcode(), BigTy, CostKind);
5885 ShrinkCost +=
5886 TTI.getArithmeticInstrCost(UI->getOpcode(), SmallTy, CostKind);
5887 ShrinkCost += ZExtCost;
5888 continue;
5889 }
5890
5891 if (!Instruction::isBinaryOp(UI->getOpcode()))
5892 return false;
5893
5894 // Check if we can propagate ZExt through its other users
5895 KnownBits KB = computeKnownBits(UI, *DL);
5896 if (KB.countMaxActiveBits() > BW)
5897 return false;
5898
5899 CurrentCost += TTI.getArithmeticInstrCost(UI->getOpcode(), BigTy, CostKind);
5900 ShrinkCost +=
5901 TTI.getArithmeticInstrCost(UI->getOpcode(), SmallTy, CostKind);
5902 ShrinkCost += ZExtCost;
5903 }
5904
5905 // If the other instruction operand is not a constant, we'll need to
5906 // generate a truncate instruction. So we have to adjust cost
5907 if (!isa<Constant>(OtherOperand))
5908 ShrinkCost += TTI.getCastInstrCost(
5909 Instruction::Trunc, SmallTy, BigTy,
5910 TargetTransformInfo::CastContextHint::None, CostKind);
5911
5912 // If the cost of shrinking types and leaving the IR is the same, we'll lean
5913 // towards modifying the IR because shrinking opens opportunities for other
5914 // shrinking optimisations.
5915 if (ShrinkCost > CurrentCost)
5916 return false;
5917
5918 Builder.SetInsertPoint(&I);
5919 Value *Op0 = ZExted;
5920 Value *Op1 = Builder.CreateTrunc(OtherOperand, SmallTy);
5921 // Keep the order of operands the same
5922 if (I.getOperand(0) == OtherOperand)
5923 std::swap(Op0, Op1);
5924 Value *NewBinOp =
5925 Builder.CreateBinOp((Instruction::BinaryOps)I.getOpcode(), Op0, Op1);
5926 cast<Instruction>(NewBinOp)->copyIRFlags(&I);
5927 cast<Instruction>(NewBinOp)->copyMetadata(I);
5928 Value *NewZExtr = Builder.CreateZExt(NewBinOp, BigTy);
5929 replaceValue(I, *NewZExtr);
5930 return true;
5931}
5932
5933/// insert (DstVec, (extract SrcVec, ExtIdx), InsIdx) -->
5934/// shuffle (DstVec, SrcVec, Mask)
5935bool VectorCombine::foldInsExtVectorToShuffle(Instruction &I) {
5936 Value *DstVec, *SrcVec;
5937 uint64_t ExtIdx, InsIdx;
5938 if (!match(&I,
5939 m_InsertElt(m_Value(DstVec),
5940 m_ExtractElt(m_Value(SrcVec), m_ConstantInt(ExtIdx)),
5941 m_ConstantInt(InsIdx))))
5942 return false;
5943
5944 auto *DstVecTy = dyn_cast<FixedVectorType>(I.getType());
5945 auto *SrcVecTy = dyn_cast<FixedVectorType>(SrcVec->getType());
5946 // We can try combining vectors with different element sizes.
5947 if (!DstVecTy || !SrcVecTy ||
5948 SrcVecTy->getElementType() != DstVecTy->getElementType())
5949 return false;
5950
5951 unsigned NumDstElts = DstVecTy->getNumElements();
5952 unsigned NumSrcElts = SrcVecTy->getNumElements();
5953 if (InsIdx >= NumDstElts || ExtIdx >= NumSrcElts || NumDstElts == 1)
5954 return false;
5955
5956 // Insertion into poison is a cheaper single operand shuffle.
5958 SmallVector<int> Mask(NumDstElts, PoisonMaskElem);
5959
5960 bool NeedExpOrNarrow = NumSrcElts != NumDstElts;
5961 bool NeedDstSrcSwap = isa<PoisonValue>(DstVec) && !isa<UndefValue>(SrcVec);
5962 if (NeedDstSrcSwap) {
5964 Mask[InsIdx] = ExtIdx % NumDstElts;
5965 std::swap(DstVec, SrcVec);
5966 } else {
5968 std::iota(Mask.begin(), Mask.end(), 0);
5969 Mask[InsIdx] = (ExtIdx % NumDstElts) + NumDstElts;
5970 }
5971
5972 // Cost
5973 auto *Ins = cast<InsertElementInst>(&I);
5974 auto *Ext = cast<ExtractElementInst>(I.getOperand(1));
5975 InstructionCost InsCost =
5976 TTI.getVectorInstrCost(*Ins, DstVecTy, CostKind, InsIdx);
5977 InstructionCost ExtCost =
5978 TTI.getVectorInstrCost(*Ext, DstVecTy, CostKind, ExtIdx);
5979 InstructionCost OldCost = ExtCost + InsCost;
5980
5981 InstructionCost NewCost = 0;
5982 SmallVector<int> ExtToVecMask;
5983 if (!NeedExpOrNarrow) {
5984 // Ignore 'free' identity insertion shuffle.
5985 // TODO: getShuffleCost should return TCC_Free for Identity shuffles.
5986 if (!ShuffleVectorInst::isIdentityMask(Mask, NumSrcElts))
5987 NewCost += TTI.getShuffleCost(SK, DstVecTy, DstVecTy, CostKind, Mask, 0,
5988 nullptr, {DstVec, SrcVec});
5989 } else {
5990 // When creating a length-changing-vector, always try to keep the relevant
5991 // element in an equivalent position, so that bulk shuffles are more likely
5992 // to be useful.
5993 ExtToVecMask.assign(NumDstElts, PoisonMaskElem);
5994 ExtToVecMask[ExtIdx % NumDstElts] = ExtIdx;
5995 // Add cost for expanding or narrowing
5997 DstVecTy, SrcVecTy, CostKind, ExtToVecMask);
5998 NewCost += TTI.getShuffleCost(SK, DstVecTy, DstVecTy, CostKind, Mask);
5999 }
6000
6001 if (!Ext->hasOneUse())
6002 NewCost += ExtCost;
6003
6004 LLVM_DEBUG(dbgs() << "Found a insert/extract shuffle-like pair: " << I
6005 << "\n OldCost: " << OldCost << " vs NewCost: " << NewCost
6006 << "\n");
6007
6008 if (OldCost < NewCost)
6009 return false;
6010
6011 if (NeedExpOrNarrow) {
6012 if (!NeedDstSrcSwap)
6013 SrcVec = Builder.CreateShuffleVector(SrcVec, ExtToVecMask);
6014 else
6015 DstVec = Builder.CreateShuffleVector(DstVec, ExtToVecMask);
6016 }
6017
6018 // Canonicalize undef param to RHS to help further folds.
6019 if (isa<UndefValue>(DstVec) && !isa<UndefValue>(SrcVec)) {
6020 ShuffleVectorInst::commuteShuffleMask(Mask, NumDstElts);
6021 std::swap(DstVec, SrcVec);
6022 }
6023
6024 Value *Shuf = Builder.CreateShuffleVector(DstVec, SrcVec, Mask);
6025 replaceValue(I, *Shuf);
6026
6027 return true;
6028}
6029
6030/// Fold away a matched pair of vector.deinterleave/interleave intrinsics
6031/// with a chain of elementwise operations on each between the
6032/// deinterleave and interleave.
6033///
6034/// For example:
6035/// ```
6036/// %d = call { <2 x i16>, <2 x i16> } @deinterleave2.v4i16(<4 x i16> %v)
6037/// %f0 = extractvalue { <2 x i16>, <2 x i16> } %d, 0
6038/// %f1 = extractvalue { <2 x i16>, <2 x i16> } %d, 1
6039///
6040/// %u0 = add <2 x i16> %f0, splat (i16 3)
6041/// %u1 = add <2 x i16> %f1, splat (i16 3)
6042///
6043/// %r = call <4 x i16> @interleave2.v4i16(<2 x i16> %u0, <2 x i16> %u1)
6044/// ```
6045/// Folds to:
6046/// ```
6047/// %r = add <4 x i16> %v, splat (i16 3)
6048/// ```
6049bool VectorCombine::foldDeinterleaveInterleavePair(Instruction &I) {
6051 if (!Deinterleave)
6052 return false;
6053
6054 unsigned Factor =
6056 if (!Factor || Deinterleave->hasOperandBundles() ||
6057 !Deinterleave->hasNUndroppableUses(Factor))
6058 return false;
6059
6060 const Intrinsic::ID ExpectedInterleaveIID =
6062
6063 // Collect one extract for each deinterleaved field.
6064 SmallVector<Use *, 8> CurrentUses(Factor, nullptr);
6065 for (Use &U : Deinterleave->uses()) {
6066 if (U.getUser()->isDroppable())
6067 continue;
6068
6069 auto *Extract = dyn_cast<ExtractValueInst>(U.getUser());
6070 if (!Extract || Extract->getNumIndices() != 1)
6071 return false;
6072
6073 unsigned Index = *Extract->idx_begin();
6074 if (Index >= Factor || CurrentUses[Index])
6075 return false;
6076
6077 CurrentUses[Index] = &U;
6078 }
6079
6080 using ElementwiseStep = SmallVector<Use *, 8>;
6082 IntrinsicInst *Interleave = nullptr;
6083 unsigned NumVisited = 0;
6084
6085 auto GetNumDataOperands = [](Instruction *Inst) {
6086 if (auto *CB = dyn_cast<CallBase>(Inst))
6087 return CB->arg_size(); // Exclude callee operand and bundles.
6088 return Inst->getNumOperands();
6089 };
6090
6091 auto IsSupportedElementwise = [&](Instruction *Inst) {
6092 auto *ResultTy = dyn_cast<VectorType>(Inst->getType());
6093 if (!ResultTy || !isSafeToSpeculativelyExecute(Inst))
6094 return false;
6095
6096 if (auto *II = dyn_cast<IntrinsicInst>(Inst)) {
6097 if (II->hasOperandBundles() ||
6098 !isTriviallyVectorizable(II->getIntrinsicID()))
6099 return false;
6100 } else if (!isa<BinaryOperator, UnaryOperator, CastInst, CmpInst,
6101 SelectInst, FreezeInst>(Inst)) {
6102 return false;
6103 }
6104
6105 // Reject operations that change the element-count.
6106 // E.g., bitcast <vscale x 4 x i16> %v to <vscale x 8 x i8>
6107 for (unsigned Op = 0, E = GetNumDataOperands(Inst); Op != E; ++Op) {
6108 auto *OperandTy = dyn_cast<VectorType>(Inst->getOperand(Op)->getType());
6109 if (OperandTy &&
6110 OperandTy->getElementCount() != ResultTy->getElementCount())
6111 return false;
6112 }
6113
6114 return true;
6115 };
6116
6117 // Traverse the Factor use chains with a breadth-first search.
6118 // At each level, expect every chain to perform the same operation with the
6119 // preceding chain value at the same operand position, until they all reach
6120 // the matching interleave.
6121 while (NumVisited + Factor <= MaxInstrsToScan) {
6122 NumVisited += Factor;
6123
6124 for (Use *&CurrentUse : CurrentUses) {
6125 Use *NextUse = CurrentUse->getUser()->getSingleUndroppableUse();
6126 auto *Next =
6127 NextUse ? dyn_cast<Instruction>(NextUse->getUser()) : nullptr;
6128 if (!Next)
6129 return false;
6130
6131 CurrentUse = NextUse;
6132 }
6133
6134 // Check whether every chain has reached the same interleave.
6135 if (auto *II = dyn_cast<IntrinsicInst>(CurrentUses.front()->getUser());
6136 II && II->getIntrinsicID() == ExpectedInterleaveIID) {
6137 if (II->hasOperandBundles())
6138 return false;
6139
6140 for (unsigned Index = 0; Index != Factor; ++Index)
6141 if (CurrentUses[Index]->getUser() != II ||
6142 CurrentUses[Index]->getOperandNo() != Index)
6143 return false;
6144
6145 Interleave = II;
6146 break;
6147 }
6148
6149 auto *FirstInst = cast<Instruction>(CurrentUses.front()->getUser());
6150 if (!IsSupportedElementwise(FirstInst))
6151 return false;
6152
6153 unsigned ChainOperand = CurrentUses.front()->getOperandNo();
6154 if (any_of(CurrentUses, [&](Use *U) {
6155 auto *Inst = cast<Instruction>(U->getUser());
6156 return Inst != FirstInst && (U->getOperandNo() != ChainOperand ||
6157 !FirstInst->isSameOperationAs(Inst));
6158 }))
6159 return false;
6160
6161 auto GetSplatOrScalar = [](Value *V) {
6162 return isa<VectorType>(V->getType()) ? getSplatValue(V) : V;
6163 };
6164
6165 // Non-chain operands must be either the same scalar or splats of that
6166 // scalar. This intentionally rejects differing poison/undef or non-splat
6167 // vector operands between chains.
6168 for (unsigned Op = 0, E = GetNumDataOperands(FirstInst); Op != E; ++Op) {
6169 if (Op == ChainOperand)
6170 continue;
6171
6172 Value *CommonValue = GetSplatOrScalar(FirstInst->getOperand(Op));
6173 if (!CommonValue || any_of(CurrentUses, [&](Use *U) {
6174 Instruction *Inst = cast<Instruction>(U->getUser());
6175 return Inst != FirstInst &&
6176 GetSplatOrScalar(Inst->getOperand(Op)) != CommonValue;
6177 }))
6178 return false;
6179 }
6180
6181 Steps.push_back(CurrentUses);
6182 }
6183
6184 if (!Interleave)
6185 return false;
6186
6187 // Rebuild the matched elementwise chain at the original vector width.
6188 Value *WideValue = Deinterleave->getArgOperand(0);
6189 ElementCount WideEC =
6190 cast<VectorType>(WideValue->getType())->getElementCount();
6191
6192 auto CreateWideInstruction = [&](Instruction *NarrowInst,
6193 ArrayRef<Value *> NewOperands,
6194 VectorType *WideResultTy) -> Value * {
6195 assert(IsSupportedElementwise(NarrowInst) &&
6196 "Expected supported elementwise");
6197 if (isa<BinaryOperator, UnaryOperator>(NarrowInst))
6198 return Builder.CreateNAryOp(NarrowInst->getOpcode(), NewOperands);
6199 if (auto *Cast = dyn_cast<CastInst>(NarrowInst))
6200 return Builder.CreateCast(Cast->getOpcode(), NewOperands[0],
6201 WideResultTy);
6202 if (auto *Cmp = dyn_cast<CmpInst>(NarrowInst))
6203 return Builder.CreateCmp(Cmp->getPredicate(), NewOperands[0],
6204 NewOperands[1]);
6205 if (isa<SelectInst>(NarrowInst))
6206 return Builder.CreateSelect(
6207 NewOperands[0], NewOperands[1], NewOperands[2], /*Name=*/"",
6208 ProfcheckDisableMetadataFixes ? nullptr : NarrowInst);
6209 if (isa<FreezeInst>(NarrowInst))
6210 return Builder.CreateFreeze(NewOperands[0]);
6211 if (auto *II = dyn_cast<IntrinsicInst>(NarrowInst))
6212 return Builder.CreateIntrinsic(WideResultTy, II->getIntrinsicID(),
6213 NewOperands);
6214 llvm_unreachable("Unsupported instruction");
6215 };
6216
6217 // The BFS has succeeded and collected multiple levels of instructions that
6218 // can be SLP-widened into a chain of wider instructions.
6219 for (const ElementwiseStep &Step : Steps) {
6220 Instruction *NarrowInst = cast<Instruction>(Step.front()->getUser());
6221 unsigned ChainOperand = Step.front()->getOperandNo();
6222
6223 Builder.SetInsertPoint(NarrowInst);
6224 Builder.SetCurrentDebugLocation(NarrowInst->getDebugLoc());
6225
6226 unsigned NumOperands = GetNumDataOperands(NarrowInst);
6227 SmallVector<Value *, 4> NewOperands;
6228 NewOperands.reserve(NumOperands);
6229
6230 for (unsigned Op = 0; Op != NumOperands; ++Op) {
6231 Value *Operand = NarrowInst->getOperand(Op);
6232
6233 if (Op == ChainOperand)
6234 Operand = WideValue;
6235 else if (isa<VectorType>(Operand->getType()))
6236 Operand = Builder.CreateVectorSplat(WideEC, getSplatValue(Operand));
6237 NewOperands.push_back(Operand);
6238 }
6239
6240 auto *WideResultTy =
6241 VectorType::get(NarrowInst->getType()->getScalarType(), WideEC);
6242 Value *NewValue =
6243 CreateWideInstruction(NarrowInst, NewOperands, WideResultTy);
6244
6245 SmallVector<Value *> NarrowInsts =
6246 map_to_vector(Step, [](Use *U) { return cast<Value>(U->getUser()); });
6247 propagateIRFlags(NewValue, NarrowInsts);
6248
6249 if (auto *NewInst = dyn_cast<Instruction>(NewValue))
6250 propagateMetadata(NewInst, NarrowInsts);
6251
6252 WideValue = NewValue;
6253 }
6254
6255 assert(WideValue->getType() == Interleave->getType());
6256 replaceValue(*Interleave, *WideValue);
6257 return true;
6258}
6259
6260/// If we're interleaving 2 constant splats, for instance `<vscale x 8 x i32>
6261/// <splat of 666>` and `<vscale x 8 x i32> <splat of 777>`, we can create a
6262/// larger splat `<vscale x 8 x i64> <splat of ((777 << 32) | 666)>` first
6263/// before casting it back into `<vscale x 16 x i32>`.
6264bool VectorCombine::foldInterleaveIntrinsics(Instruction &I) {
6265 const APInt *SplatVal0, *SplatVal1;
6267 m_APInt(SplatVal0), m_APInt(SplatVal1))))
6268 return false;
6269
6270 LLVM_DEBUG(dbgs() << "VC: Folding interleave2 with two splats: " << I
6271 << "\n");
6272
6273 auto *VTy =
6274 cast<VectorType>(cast<IntrinsicInst>(I).getArgOperand(0)->getType());
6275 auto *ExtVTy = VectorType::getExtendedElementVectorType(VTy);
6276 unsigned Width = VTy->getElementType()->getIntegerBitWidth();
6277
6278 // Just in case the cost of interleave2 intrinsic and bitcast are both
6279 // invalid, in which case we want to bail out, we use <= rather
6280 // than < here. Even they both have valid and equal costs, it's probably
6281 // not a good idea to emit a high-cost constant splat.
6283 TTI.getCastInstrCost(Instruction::BitCast, I.getType(), ExtVTy,
6285 LLVM_DEBUG(dbgs() << "VC: The cost to cast from " << *ExtVTy << " to "
6286 << *I.getType() << " is too high.\n");
6287 return false;
6288 }
6289
6290 APInt NewSplatVal = SplatVal1->zext(Width * 2);
6291 NewSplatVal <<= Width;
6292 NewSplatVal |= SplatVal0->zext(Width * 2);
6293 auto *NewSplat = ConstantVector::getSplat(
6294 ExtVTy->getElementCount(), ConstantInt::get(F.getContext(), NewSplatVal));
6295
6296 IRBuilder<> Builder(&I);
6297 replaceValue(I, *Builder.CreateBitCast(NewSplat, I.getType()));
6298 return true;
6299}
6300
6301/// Given this sequence:
6302/// ```
6303/// %d = llvm.vector.deinterleave2 <vscale x 16 x i32> %v
6304/// %f0 = extractvalue { <vscale x 8 x i32>, <vscale x 8 x i32> } %d, 0
6305/// %f1 = extractvalue { <vscale x 8 x i32>, <vscale x 8 x i32> } %d, 1
6306///
6307/// %low0 = and <vscale x 8 x i32> %f0, splat (i32 65535)
6308/// %low1 = shl <vscale x 8 x i32> %f1, splat (i32 16)
6309/// %merge0 = or disjoint <vscale x 8 x i32> %low0, %low1
6310///
6311/// %high0 = and <vscale x 8 x i32> %f1, splat (i32 -65536)
6312/// %high1 = lshr <vscale x 8 x i32> %f0, splat (i32 16)
6313/// %merge1 = or disjoint <vscale x 8 x i32> %high0, %high1
6314/// ```
6315/// It is actually just de-interleaving a 16-bit vector with double the
6316/// vector length. More generally speaking, it's de-interleaving on a vector
6317/// with half the element width as the original vector.
6318///
6319/// Therefore, we can turn it into:
6320/// ```
6321/// %narrow.v = bitcast <vscale x 16 x i32> %v to <vscale x 32 x i16>
6322/// %d = llvm.vector.deinterleave2 <vscale x 32 x i16> %narrow.v
6323/// %f0 = extractvalue { <vscale x 16 x i16>, <vscale x 16 x i16> } %d, 0
6324/// %f1 = extractvalue { <vscale x 16 x i16>, <vscale x 16 x i16> } %d, 1
6325///
6326/// %merge0 = bitcast <vscale x 16 x i16> %f0 to <vscale x 8 x i32>
6327/// %merge1 = bitcast <vscale x 16 x i16> %f1 to <vscale x 8 x i32>
6328/// ```
6329bool VectorCombine::foldDeinterleaveIntrinsics(Instruction &I) {
6330 if (foldDeinterleaveInterleavePair(I))
6331 return true;
6332
6333 // This pattern involves bitcast that is not compatible with big endian.
6334 if (DL->isBigEndian())
6335 return false;
6336
6337 using namespace PatternMatch;
6338 Value *DeinterleavedVal;
6339 if (!match(&I, m_Deinterleave2(m_Value(DeinterleavedVal))))
6340 return false;
6341
6342 VectorType *VecTy = cast<VectorType>(DeinterleavedVal->getType());
6343 IntegerType *ElementTy = dyn_cast<IntegerType>(VecTy->getElementType());
6344 if (!ElementTy)
6345 return false;
6346 unsigned ElementWidth = ElementTy->getBitWidth();
6347 if (ElementWidth < 2 || !isPowerOf2_32(ElementWidth))
6348 return false;
6349 unsigned HalfElementWidth = ElementWidth / 2;
6350
6351 if (!I.hasNUses(2))
6352 return false;
6353 std::array<ExtractValueInst *, 2> OrigFields{};
6354 for (User *Usr : I.users()) {
6355 auto *E = dyn_cast<ExtractValueInst>(Usr);
6356 // The deinterleave result can only be used by extractions.
6357 if (!E || E->getNumIndices() != 1)
6358 return false;
6359 unsigned Idx = *E->idx_begin();
6360 // A single field cannot be extracted more than once.
6361 if (Idx >= 2 || OrigFields[Idx] || !E->hasNUses(2))
6362 return false;
6363 OrigFields[Idx] = E;
6364 }
6365
6366 // Find the merge instruction (i.e. OR) first.
6367 SmallVector<Instruction *, 2> MergeInsts;
6368 for (auto *FieldUsr : OrigFields[0]->users()) {
6369 if (!FieldUsr->hasOneUse() || !isa<Instruction>(FieldUsr->user_back()))
6370 return false;
6371 MergeInsts.push_back(cast<Instruction>(FieldUsr->user_back()));
6372 }
6373 assert(MergeInsts.size() == 2);
6374
6375 // Pattern match bottom-up from the merge instructions.
6376 auto MatchMerge = [&](void) -> bool {
6377 APInt LoMask = APInt::getLowBitsSet(ElementWidth, HalfElementWidth);
6378 APInt HiMask = APInt::getHighBitsSet(ElementWidth, HalfElementWidth);
6379 return match(MergeInsts[0],
6380 m_c_Or(m_And(m_Specific(OrigFields[0]), m_SpecificInt(LoMask)),
6381 m_Shl(m_Specific(OrigFields[1]),
6382 m_SpecificInt(HalfElementWidth)))) &&
6383 match(MergeInsts[1],
6384 m_c_Or(m_And(m_Specific(OrigFields[1]), m_SpecificInt(HiMask)),
6385 m_LShr(m_Specific(OrigFields[0]),
6386 m_SpecificInt(HalfElementWidth))));
6387 };
6388 if (!MatchMerge()) {
6389 std::swap(MergeInsts[0], MergeInsts[1]);
6390 if (!MatchMerge())
6391 return false;
6392 }
6393
6394 // Profitability check.
6395 InstructionCost OldCost =
6396 TTI.getInstructionCost(MergeInsts[0], CostKind) +
6397 TTI.getInstructionCost(cast<Instruction>(MergeInsts[0]->getOperand(0)),
6398 CostKind) +
6399 TTI.getInstructionCost(cast<Instruction>(MergeInsts[0]->getOperand(1)),
6400 CostKind);
6401 // There are two fields (assuming SHL has the same cost as LSHR).
6402 OldCost *= 2;
6403
6404 auto *NewFieldTy = VecTy->getWithNewBitWidth(HalfElementWidth);
6405 auto *NewVecTy =
6406 VectorType::getDoubleElementsVectorType(cast<VectorType>(NewFieldTy));
6407 InstructionCost NewCost =
6408 TTI.getCastInstrCost(Instruction::BitCast, VecTy, NewVecTy,
6410 TTI.getCastInstrCost(Instruction::BitCast, NewFieldTy,
6411 MergeInsts[0]->getType(), TTI::CastContextHint::None,
6412 CostKind) *
6413 2;
6414 if (OldCost <= NewCost || !NewCost.isValid()) {
6415 LLVM_DEBUG(
6416 dbgs() << "VC: New deinterleave2 sequence cost (" << NewCost << ")"
6417 << " is higher than that of the old one (" << OldCost << ")\n");
6418 return false;
6419 }
6420
6421 // Do the replacement.
6422 IRBuilder<> Builder(&I);
6423 Value *NewVecCast = Builder.CreateBitCast(DeinterleavedVal, NewVecTy);
6424 Value *NewDeinterleave = Builder.CreateIntrinsic(
6425 Intrinsic::vector_deinterleave2, {NewVecTy}, {NewVecCast});
6426 for (auto [Idx, MergeInst] : enumerate(MergeInsts)) {
6427 Value *NewField = Builder.CreateExtractValue(NewDeinterleave, Idx);
6428 NewField = Builder.CreateBitCast(NewField, MergeInst->getType());
6429 replaceValue(*MergeInst, *NewField);
6430 }
6431
6432 return true;
6433}
6434
6435bool VectorCombine::foldBitcastOfVPLoad(Instruction &I) {
6436 const DataLayout &DL = I.getDataLayout();
6437 auto *Cast = dyn_cast<CastInst>(&I);
6438 if (!Cast || !Cast->isNoopCast(DL) || !isa<VectorType>(Cast->getDestTy()))
6439 return false;
6440
6441 // Fold away bit casts of the loaded value by loading the desired type,
6442 // if the mask is all-ones.
6443 Value *EVL;
6444 auto *II = dyn_cast<VPIntrinsic>(I.getOperand(0));
6446 m_Value(), m_AllOnes(), m_Value(EVL)))))
6447 return false;
6448
6449 VectorType *OrigVecTy = cast<VectorType>(II->getType());
6450 Align OrigAlign =
6451 DL.getValueOrABITypeAlignment(II->getPointerAlignment(), OrigVecTy);
6452 ElementCount OrigVecCnt = OrigVecTy->getElementCount();
6453 VectorType *NewVecTy = cast<VectorType>(Cast->getDestTy());
6454 ElementCount NewVecCnt = NewVecTy->getElementCount();
6455
6456 // Right now we only support cases where the NewVec is longer, because for
6457 // cases where it's shorter, we have to be sure that EVL can be exactly
6458 // divided, otherwise it might yield incorrect results or even page faults
6459 // (if we round-up during the division).
6460 if (!(OrigVecCnt.isScalable() == NewVecCnt.isScalable() &&
6461 NewVecCnt.hasKnownScalarFactor(OrigVecCnt)))
6462 return false;
6463
6464 InstructionCost OldCost =
6465 TTI.getMemIntrinsicInstrCost({Intrinsic::vp_load, OrigVecTy,
6466 II->getMemoryPointerParam(), false,
6467 OrigAlign},
6468 CostKind) +
6469 TTI.getCastInstrCost(Instruction::BitCast, Cast->getType(), OrigVecTy,
6472 {Intrinsic::vp_load, NewVecTy, II->getMemoryPointerParam(), false,
6473 OrigAlign},
6474 CostKind);
6475 LLVM_DEBUG(dbgs() << "foldBitcastOfVPLoad: OldCost=" << OldCost
6476 << " NewCost=" << NewCost << "\n");
6477 if (NewCost > OldCost || !NewCost.isValid())
6478 return false;
6479
6480 Builder.SetInsertPoint(II);
6481 unsigned Factor = NewVecCnt.getKnownScalarFactor(OrigVecCnt);
6482 Value *NewEVL = Builder.CreateNUWMul(EVL, Builder.getInt32(Factor));
6483 Value *NewMask = Builder.CreateVectorSplat(NewVecCnt, Builder.getTrue());
6484 CallInst *NewVP = Builder.CreateIntrinsicWithoutFolding(
6485 NewVecTy, Intrinsic::vp_load,
6486 {II->getMemoryPointerParam(), NewMask, NewEVL});
6487 // Preserve the original alignment.
6488 NewVP->addParamAttrs(
6489 0, AttrBuilder(II->getContext()).addAlignmentAttr(OrigAlign));
6490 replaceValue(*Cast, *NewVP);
6491 return true;
6492}
6493/// Fold the following cases into a single byte-level bit-reverse operation
6494/// and accepts bswap and bitreverse intrinsics:
6495/// bswap(bitreverse(x)) --> bitcast(bitreverse(bitcast(x)))
6496/// bitreverse(bswap(x)) <--> bitcast(bitreverse(bitcast(x)))
6497/// The direction of the fold is cost-model driven.
6498/// Also supports:
6499/// bitcast(bitreverse(bitcast(x))) --> bitreverse(fshl(x))
6500bool VectorCombine::foldBitOrderReverseAndSwap(Instruction &I) {
6501 Value *X;
6502
6504 Type *Ty = X->getType();
6505 Type *VecTy = I.getOperand(0)->getType();
6506 // Detect the case when bitreversing every octet in X individually. Then we
6507 // can use bswap to reorder the octets before doing a single bitreverse.
6508 bool CanUseBswap =
6509 Ty->isIntegerTy() && Ty == I.getType() && isa<FixedVectorType>(VecTy) &&
6510 cast<FixedVectorType>(VecTy)->getElementType()->isIntegerTy(8) &&
6511 Ty->getIntegerBitWidth() % 16 == 0;
6512 // Detect the case when bitreversing upper and lower half of X
6513 // individually. Then we can use fshl as a rotate operation, to swap the
6514 // halves before doing a single bitreverse.
6515 bool CanUseFshl =
6516 Ty->isIntegerTy() && Ty == I.getType() && isa<FixedVectorType>(VecTy) &&
6517 cast<FixedVectorType>(VecTy)->getElementType()->isIntegerTy() &&
6518 cast<FixedVectorType>(VecTy)->getNumElements() == 2;
6519 if (CanUseBswap || CanUseFshl) {
6520 auto *InnerCall = dyn_cast<Instruction>(I.getOperand(0));
6521 if (!InnerCall)
6522 return false;
6523 auto *InnerBitCast = dyn_cast<BitCastInst>(InnerCall->getOperand(0));
6524 if (!InnerBitCast)
6525 return false;
6526 Constant *HalfBW = ConstantInt::get(Ty, Ty->getIntegerBitWidth() / 2);
6527 InstructionCost OldCost = TTI.getInstructionCost(InnerBitCast, CostKind) +
6528 TTI.getInstructionCost(InnerCall, CostKind) +
6530 IntrinsicCostAttributes ICABSwap(Intrinsic::bswap, Ty, {Ty});
6531 IntrinsicCostAttributes ICABFshl(Intrinsic::fshl, Ty, {X, X, HalfBW},
6532 {Ty, Ty, Ty});
6533 IntrinsicCostAttributes ICABRev(Intrinsic::bitreverse, Ty, {Ty});
6534 InstructionCost NewCost =
6535 TTI.getIntrinsicInstrCost(CanUseBswap ? ICABSwap : ICABFshl,
6536 CostKind) +
6538 if (!InnerCall->hasOneUse())
6539 NewCost += TTI.getInstructionCost(InnerCall, CostKind) +
6540 TTI.getInstructionCost(InnerBitCast, CostKind);
6541 else if (!InnerBitCast->hasOneUse())
6542 NewCost += TTI.getInstructionCost(InnerBitCast, CostKind);
6543 LLVM_DEBUG(dbgs() << "Found bitreverse vector roundtrip: " << I
6544 << "\n OldCost: " << OldCost
6545 << " vs NewCost: " << NewCost << "\n");
6546 if (NewCost.isValid() && NewCost < OldCost) {
6547 Builder.SetInsertPoint(&I);
6548 Value *Swap =
6549 CanUseBswap
6550 ? Builder.CreateUnaryIntrinsic(Intrinsic::bswap, X)
6551 : Builder.CreateIntrinsic(Ty, Intrinsic::fshl, {X, X, HalfBW});
6552 Worklist.pushValue(Swap);
6553 Value *BRev = Builder.CreateUnaryIntrinsic(Intrinsic::bitreverse, Swap);
6554 replaceValue(I, *BRev);
6555 return true;
6556 }
6557 }
6558 }
6559
6560 if (!match(&I, m_BitReverse(m_BSwap(m_Value(X)))) &&
6562 return false;
6563 Type *Ty = I.getType();
6564 Type *I8Ty = Builder.getInt8Ty();
6565 TypeSize ElementSize = DL->getTypeStoreSize(Ty);
6566 ElementCount NewVecCnt = ElementCount::get(ElementSize.getKnownMinValue(),
6567 ElementSize.isScalable());
6568 Type *NewVecTy = VectorType::get(I8Ty, NewVecCnt);
6569 auto *II = cast<IntrinsicInst>(&I);
6570 auto *InnerII = cast<IntrinsicInst>(II->getArgOperand(0));
6571 // OldCost = cost of bitreverse/bswap + cost of bswap/bitreverse
6574 // NewCost = cost of bitcast to byte vector +
6575 // cost of bitreverse/bswap on byte vector +
6576 // cost of bitcast back to original type
6577 InstructionCost CastToVecCost = TTI.getCastInstrCost(
6578 Instruction::BitCast, NewVecTy, Ty, TTI::CastContextHint::None, CostKind);
6579 InstructionCost CastToOrigCost = TTI.getCastInstrCost(
6580 Instruction::BitCast, Ty, NewVecTy, TTI::CastContextHint::None, CostKind);
6581 IntrinsicCostAttributes ICANew(Intrinsic::bitreverse, NewVecTy, {NewVecTy});
6582 InstructionCost NewIntrinsicCost =
6584 InstructionCost NewCost = CastToVecCost + NewIntrinsicCost + CastToOrigCost;
6585 if (!InnerII->hasOneUse())
6586 NewCost += TTI.getInstructionCost(InnerII, CostKind);
6587 LLVM_DEBUG(dbgs() << "Found bitorder reverse and swap: " << I
6588 << "\n OldCost: " << OldCost << " vs NewCost: " << NewCost
6589 << "\n");
6590 if (!NewCost.isValid() || NewCost >= OldCost)
6591 return false;
6592 // Perform transform: bitcast(arg, <N x i8>), bitreverse, bitcast back
6593 Builder.SetInsertPoint(II);
6594 Value *CastToVec = Builder.CreateBitCast(X, NewVecTy);
6595 Value *NewCall =
6596 Builder.CreateUnaryIntrinsic(Intrinsic::bitreverse, CastToVec);
6597 Value *CastToOrig = Builder.CreateBitCast(NewCall, Ty);
6598 replaceValue(I, *CastToOrig);
6599 return true;
6600}
6601
6602/// Given the maximum shuffle index and load vector type, compute the number of
6603/// elements for the shrunk load, rounding up to the next full vector register
6604/// boundary to avoid scalar remainders that legalize poorly.
6605static unsigned getAlignedNumElements(unsigned MaxIdx, FixedVectorType *LoadTy,
6606 const TargetTransformInfo &TTI,
6607 const DataLayout &DL) {
6608 unsigned RawNumElements = MaxIdx + 1u;
6609 Type *ElemTy = LoadTy->getElementType();
6610 // Skip alignment for illegal element types.
6611 if (!TTI.isTypeLegal(ElemTy))
6612 return RawNumElements;
6613
6614 TypeSize ElemSize = DL.getTypeSizeInBits(ElemTy);
6615 if (ElemSize.isScalable() || ElemSize.isZero())
6616 return RawNumElements;
6617
6620 if (RegSize.isScalable() || RegSize.isZero())
6621 return RawNumElements;
6622
6623 unsigned ElemsPerReg = RegSize.getFixedValue() / ElemSize.getFixedValue();
6624 // If the load already fits in a register, keep the exact size.
6625 // Otherwise round up to the next full register boundary.
6626 if (ElemsPerReg == 0 || RawNumElements <= ElemsPerReg)
6627 return RawNumElements;
6628
6629 return alignTo(RawNumElements, ElemsPerReg);
6630}
6631
6632// Attempt to shrink loads that are only used by shufflevector instructions.
6633bool VectorCombine::shrinkLoadForShuffles(Instruction &I) {
6634 auto *OldLoad = dyn_cast<LoadInst>(&I);
6635 if (!OldLoad || !OldLoad->isSimple())
6636 return false;
6637
6638 auto *OldLoadTy = dyn_cast<FixedVectorType>(OldLoad->getType());
6639 if (!OldLoadTy)
6640 return false;
6641
6642 unsigned const OldNumElements = OldLoadTy->getNumElements();
6643
6644 // Search all uses of load. If all uses are shufflevector instructions, and
6645 // the second operands are all poison values, find the minimum and maximum
6646 // indices of the vector elements referenced by all shuffle masks.
6647 // Otherwise return `std::nullopt`.
6648 using IndexRange = std::pair<int, int>;
6649 auto GetIndexRangeInShuffles = [&]() -> std::optional<IndexRange> {
6650 IndexRange OutputRange = IndexRange(OldNumElements, -1);
6651 for (llvm::Use &Use : I.uses()) {
6652 // Ensure all uses match the required pattern.
6653 User *Shuffle = Use.getUser();
6654 ArrayRef<int> Mask;
6655
6656 if (!match(Shuffle,
6657 m_Shuffle(m_Specific(OldLoad), m_Undef(), m_Mask(Mask))))
6658 return std::nullopt;
6659
6660 // Ignore shufflevector instructions that have no uses.
6661 if (Shuffle->use_empty())
6662 continue;
6663
6664 // Find the min and max indices used by the shufflevector instruction.
6665 for (int Index : Mask) {
6666 if (Index >= 0 && Index < static_cast<int>(OldNumElements)) {
6667 OutputRange.first = std::min(Index, OutputRange.first);
6668 OutputRange.second = std::max(Index, OutputRange.second);
6669 }
6670 }
6671 }
6672
6673 if (OutputRange.second < OutputRange.first)
6674 return std::nullopt;
6675
6676 return OutputRange;
6677 };
6678
6679 // Get the range of vector elements used by shufflevector instructions.
6680 if (std::optional<IndexRange> Indices = GetIndexRangeInShuffles()) {
6681 unsigned const NewNumElements =
6682 getAlignedNumElements(Indices->second, OldLoadTy, TTI, *DL);
6683
6684 // If the range of vector elements is smaller than the full load, attempt
6685 // to create a smaller load.
6686 if (NewNumElements < OldNumElements) {
6687 IRBuilder Builder(&I);
6688 Builder.SetCurrentDebugLocation(I.getDebugLoc());
6689
6690 // Calculate costs of old and new ops.
6691 Type *ElemTy = OldLoadTy->getElementType();
6692 FixedVectorType *NewLoadTy = FixedVectorType::get(ElemTy, NewNumElements);
6693 Value *PtrOp = OldLoad->getPointerOperand();
6694
6696 Instruction::Load, OldLoad->getType(), OldLoad->getAlign(),
6697 OldLoad->getPointerAddressSpace(), CostKind);
6698 InstructionCost NewCost =
6699 TTI.getMemoryOpCost(Instruction::Load, NewLoadTy, OldLoad->getAlign(),
6700 OldLoad->getPointerAddressSpace(), CostKind);
6701
6702 using UseEntry = std::pair<ShuffleVectorInst *, std::vector<int>>;
6704 unsigned const MaxIndex = NewNumElements * 2u;
6705
6706 for (llvm::Use &Use : I.uses()) {
6707 auto *Shuffle = cast<ShuffleVectorInst>(Use.getUser());
6708
6709 // Ignore shufflevector instructions that have no uses.
6710 if (Shuffle->use_empty())
6711 continue;
6712
6713 ArrayRef<int> OldMask = Shuffle->getShuffleMask();
6714
6715 // Create entry for new use.
6716 NewUses.push_back({Shuffle, OldMask});
6717
6718 // Validate mask indices.
6719 for (int Index : OldMask) {
6720 if (Index >= static_cast<int>(MaxIndex))
6721 return false;
6722 }
6723
6724 // Update costs.
6725 OldCost +=
6727 OldLoadTy, CostKind, OldMask);
6728 NewCost +=
6730 NewLoadTy, CostKind, OldMask);
6731 }
6732
6733 LLVM_DEBUG(
6734 dbgs() << "Found a load used only by shufflevector instructions: "
6735 << I << "\n OldCost: " << OldCost
6736 << " vs NewCost: " << NewCost << "\n");
6737
6738 if (OldCost < NewCost || !NewCost.isValid())
6739 return false;
6740
6741 // Create new load of smaller vector.
6742 auto *NewLoad = cast<LoadInst>(
6743 Builder.CreateAlignedLoad(NewLoadTy, PtrOp, OldLoad->getAlign()));
6744 NewLoad->copyMetadata(I);
6745
6746 // Replace all uses.
6747 for (UseEntry &Use : NewUses) {
6748 ShuffleVectorInst *Shuffle = Use.first;
6749 std::vector<int> &NewMask = Use.second;
6750
6751 Builder.SetInsertPoint(Shuffle);
6752 Builder.SetCurrentDebugLocation(Shuffle->getDebugLoc());
6753 Value *NewShuffle = Builder.CreateShuffleVector(
6754 NewLoad, PoisonValue::get(NewLoadTy), NewMask);
6755
6756 replaceValue(*Shuffle, *NewShuffle, false);
6757 }
6758
6759 return true;
6760 }
6761 }
6762 return false;
6763}
6764
6765// Attempt to narrow a phi of shufflevector instructions where the two incoming
6766// values have the same operands but different masks. If the two shuffle masks
6767// are offsets of one another we can use one branch to rotate the incoming
6768// vector and perform one larger shuffle after the phi.
6769bool VectorCombine::shrinkPhiOfShuffles(Instruction &I) {
6770 auto *Phi = dyn_cast<PHINode>(&I);
6771 if (!Phi || Phi->getNumIncomingValues() != 2u)
6772 return false;
6773
6774 Value *Op = nullptr;
6775 ArrayRef<int> Mask0;
6776 ArrayRef<int> Mask1;
6777
6778 if (!match(Phi->getOperand(0u),
6779 m_OneUse(m_Shuffle(m_Value(Op), m_Poison(), m_Mask(Mask0)))) ||
6780 !match(Phi->getOperand(1u),
6781 m_OneUse(m_Shuffle(m_Specific(Op), m_Poison(), m_Mask(Mask1)))))
6782 return false;
6783
6784 auto *Shuf = cast<ShuffleVectorInst>(Phi->getOperand(0u));
6785
6786 // Ensure result vectors are wider than the argument vector.
6787 auto *InputVT = cast<FixedVectorType>(Op->getType());
6788 auto *ResultVT = cast<FixedVectorType>(Shuf->getType());
6789 auto const InputNumElements = InputVT->getNumElements();
6790
6791 if (InputNumElements >= ResultVT->getNumElements())
6792 return false;
6793
6794 // Take the difference of the two shuffle masks at each index. Ignore poison
6795 // values at the same index in both masks.
6796 SmallVector<int, 16> NewMask;
6797 NewMask.reserve(Mask0.size());
6798
6799 for (auto [M0, M1] : zip(Mask0, Mask1)) {
6800 if (M0 >= 0 && M1 >= 0)
6801 NewMask.push_back(M0 - M1);
6802 else if (M0 == -1 && M1 == -1)
6803 continue;
6804 else
6805 return false;
6806 }
6807
6808 // Ensure all elements of the new mask are equal. If the difference between
6809 // the incoming mask elements is the same, the two must be constant offsets
6810 // of one another.
6811 if (NewMask.empty() || !all_equal(NewMask))
6812 return false;
6813
6814 // Create new mask using difference of the two incoming masks.
6815 int MaskOffset = NewMask[0u];
6816 unsigned Index = (InputNumElements + MaskOffset) % InputNumElements;
6817 NewMask.clear();
6818
6819 for (unsigned I = 0u; I < InputNumElements; ++I) {
6820 NewMask.push_back(Index);
6821 Index = (Index + 1u) % InputNumElements;
6822 }
6823
6824 // Calculate costs for worst cases and compare.
6825 auto const Kind = TTI::SK_PermuteSingleSrc;
6826 auto OldCost =
6827 std::max(TTI.getShuffleCost(Kind, ResultVT, InputVT, CostKind, Mask0),
6828 TTI.getShuffleCost(Kind, ResultVT, InputVT, CostKind, Mask1));
6829 auto NewCost = TTI.getShuffleCost(Kind, InputVT, InputVT, CostKind, NewMask) +
6830 TTI.getShuffleCost(Kind, ResultVT, InputVT, CostKind, Mask1);
6831
6832 LLVM_DEBUG(dbgs() << "Found a phi of mergeable shuffles: " << I
6833 << "\n OldCost: " << OldCost << " vs NewCost: " << NewCost
6834 << "\n");
6835
6836 if (NewCost > OldCost)
6837 return false;
6838
6839 // Create new shuffles and narrowed phi.
6840 auto Builder = IRBuilder(Shuf);
6841 Builder.SetCurrentDebugLocation(Shuf->getDebugLoc());
6842 auto *PoisonVal = PoisonValue::get(InputVT);
6843 auto *NewShuf0 = Builder.CreateShuffleVector(Op, PoisonVal, NewMask);
6844 Worklist.push(cast<Instruction>(NewShuf0));
6845
6846 Builder.SetInsertPoint(Phi);
6847 Builder.SetCurrentDebugLocation(Phi->getDebugLoc());
6848 auto *NewPhi = Builder.CreatePHI(NewShuf0->getType(), 2u);
6849 NewPhi->addIncoming(NewShuf0, Phi->getIncomingBlock(0u));
6850 NewPhi->addIncoming(Op, Phi->getIncomingBlock(1u));
6851
6852 Builder.SetInsertPoint(*NewPhi->getInsertionPointAfterDef());
6853 PoisonVal = PoisonValue::get(NewPhi->getType());
6854 auto *NewShuf1 = Builder.CreateShuffleVector(NewPhi, PoisonVal, Mask1);
6855
6856 replaceValue(*Phi, *NewShuf1);
6857 return true;
6858}
6859
6860/// This is the entry point for all transforms. Pass manager differences are
6861/// handled in the callers of this function.
6862bool VectorCombine::run() {
6864 return false;
6865
6866 // Don't attempt vectorization if the target does not support vectors.
6867 if (!TTI.getNumberOfRegisters(TTI.getRegisterClassForType(/*Vector*/ true)))
6868 return false;
6869
6870 LLVM_DEBUG(dbgs() << "\n\nVECTORCOMBINE on " << F.getName() << "\n");
6871
6872 auto FoldInst = [this](Instruction &I) {
6873 Builder.SetInsertPoint(&I);
6874 bool IsVectorType = isa<VectorType>(I.getType());
6875 bool IsFixedVectorType = isa<FixedVectorType>(I.getType());
6876 auto Opcode = I.getOpcode();
6877
6878 LLVM_DEBUG(dbgs() << "VC: Visiting: " << I << '\n');
6879
6880 // These folds should be beneficial regardless of when this pass is run
6881 // in the optimization pipeline.
6882 // The type checking is for run-time efficiency. We can avoid wasting time
6883 // dispatching to folding functions if there's no chance of matching.
6884 if (IsFixedVectorType) {
6885 switch (Opcode) {
6886 case Instruction::InsertElement:
6887 if (vectorizeLoadInsert(I))
6888 return true;
6889 break;
6890 case Instruction::ShuffleVector:
6891 if (widenSubvectorLoad(I))
6892 return true;
6893 break;
6894 default:
6895 break;
6896 }
6897 }
6898
6899 // This transform works with scalable and fixed vectors
6900 // TODO: Identify and allow other scalable transforms
6901 if (IsVectorType) {
6902 if (scalarizeOpOrCmp(I))
6903 return true;
6904 if (scalarizeLoad(I))
6905 return true;
6906 if (scalarizeExtExtract(I))
6907 return true;
6908 if (foldInterleaveIntrinsics(I))
6909 return true;
6910 if (foldBitcastOfVPLoad(I))
6911 return true;
6912 }
6913
6914 if (foldDeinterleaveIntrinsics(I))
6915 return true;
6916
6917 if (Opcode == Instruction::Store)
6918 if (foldInsertElementsToStores(I))
6919 return true;
6920
6921 // If this is an early pipeline invocation of this pass, we are done.
6922 if (TryEarlyFoldsOnly)
6923 return false;
6924
6925 if (Opcode == Instruction::Call)
6926 if (foldBitOrderReverseAndSwap(I))
6927 return true;
6928 if (Opcode == Instruction::BitCast)
6929 if (foldBitOrderReverseAndSwap(I))
6930 return true;
6931
6932 // Otherwise, try folds that improve codegen but may interfere with
6933 // early IR canonicalizations.
6934 // The type checking is for run-time efficiency. We can avoid wasting time
6935 // dispatching to folding functions if there's no chance of matching.
6936 if (IsFixedVectorType) {
6937 switch (Opcode) {
6938 case Instruction::InsertElement:
6939 if (foldInsExtFNeg(I))
6940 return true;
6941 if (foldInsExtBinop(I))
6942 return true;
6943 if (foldInsExtVectorToShuffle(I))
6944 return true;
6945 break;
6946 case Instruction::ShuffleVector:
6947 if (foldPermuteOfBinops(I))
6948 return true;
6949 if (foldShuffleOfBinops(I))
6950 return true;
6951 if (foldShuffleOfSelects(I))
6952 return true;
6953 if (foldShuffleOfCastops(I))
6954 return true;
6955 if (foldShuffleOfShuffles(I))
6956 return true;
6957 if (foldPermuteOfIntrinsic(I))
6958 return true;
6959 if (foldShufflesOfLengthChangingShuffles(I))
6960 return true;
6961 if (foldShuffleOfIntrinsics(I))
6962 return true;
6963 if (foldSelectShuffle(I))
6964 return true;
6965 if (foldShuffleToIdentity(I))
6966 return true;
6967 break;
6968 case Instruction::Load:
6969 if (shrinkLoadForShuffles(I))
6970 return true;
6971 break;
6972 case Instruction::BitCast:
6973 if (foldBitcastShuffle(I))
6974 return true;
6975 if (foldSelectsFromBitcast(I))
6976 return true;
6977 break;
6978 case Instruction::And:
6979 case Instruction::Or:
6980 case Instruction::Xor:
6981 if (foldBitOpOfCastops(I))
6982 return true;
6983 if (foldBitOpOfCastConstant(I))
6984 return true;
6985 break;
6986 case Instruction::PHI:
6987 if (shrinkPhiOfShuffles(I))
6988 return true;
6989 break;
6990 default:
6991 if (shrinkType(I))
6992 return true;
6993 break;
6994 }
6995 } else {
6996 switch (Opcode) {
6997 case Instruction::Call:
6998 if (foldShuffleFromReductions(I))
6999 return true;
7000 if (foldCastFromReductions(I))
7001 return true;
7002 break;
7003 case Instruction::ExtractElement:
7004 if (foldShuffleChainsToReduce(I))
7005 return true;
7006 break;
7007 case Instruction::ICmp:
7008 if (foldSignBitReductionCmp(I))
7009 return true;
7010 if (foldICmpEqZeroVectorReduce(I))
7011 return true;
7012 if (foldReductionZeroTest(I))
7013 return true;
7014 if (foldEquivalentReductionCmp(I))
7015 return true;
7016 if (foldReduceAddCmpZero(I))
7017 return true;
7018 [[fallthrough]];
7019 case Instruction::FCmp:
7020 if (foldExtractExtract(I))
7021 return true;
7022 break;
7023 case Instruction::Or:
7024 if (foldConcatOfBoolMasks(I))
7025 return true;
7026 [[fallthrough]];
7027 default:
7028 if (Instruction::isBinaryOp(Opcode)) {
7029 if (foldExtractExtract(I))
7030 return true;
7031 if (foldExtractedCmps(I))
7032 return true;
7033 if (foldBinopOfReductions(I))
7034 return true;
7035 }
7036 break;
7037 }
7038 }
7039 return false;
7040 };
7041
7042 bool MadeChange = false;
7043 for (BasicBlock &BB : F) {
7044 // Ignore unreachable basic blocks.
7045 if (!DT.isReachableFromEntry(&BB))
7046 continue;
7047 // Use early increment range so that we can erase instructions in loop.
7048 // make_early_inc_range is not applicable here, as the next iterator may
7049 // be invalidated by RecursivelyDeleteTriviallyDeadInstructions.
7050 // We manually maintain the next instruction and update it when it is about
7051 // to be deleted.
7052 Instruction *I = &BB.front();
7053 while (I) {
7054 NextInst = I->getNextNode();
7055 if (!I->isDebugOrPseudoInst())
7056 MadeChange |= FoldInst(*I);
7057 I = NextInst;
7058 }
7059 }
7060
7061 NextInst = nullptr;
7062
7063 while (!Worklist.isEmpty()) {
7064 Instruction *I = Worklist.removeOne();
7065 if (!I)
7066 continue;
7067
7070 continue;
7071 }
7072
7073 MadeChange |= FoldInst(*I);
7074 }
7075
7076 return MadeChange;
7077}
7078
7081 auto &AC = FAM.getResult<AssumptionAnalysis>(F);
7083 DominatorTree &DT = FAM.getResult<DominatorTreeAnalysis>(F);
7084 AAResults &AA = FAM.getResult<AAManager>(F);
7085 const DataLayout *DL = &F.getDataLayout();
7088 VectorCombine Combiner(F, TTI, DT, AA, AC, DL, CostKind, TryEarlyFoldsOnly);
7089 if (!Combiner.run())
7090 return PreservedAnalyses::all();
7093 return PA;
7094}
unsigned RegSize
assert(UImm &&(UImm !=~static_cast< T >(0)) &&"Invalid immediate!")
unsigned uint64_t
MachineBasicBlock MachineBasicBlock::iterator DebugLoc DL
static cl::opt< unsigned > MaxInstrsToScan("aggressive-instcombine-max-scan-instrs", cl::init(64), cl::Hidden, cl::desc("Max number of instructions to scan for aggressive instcombine."))
This is the interface for LLVM's primary stateless and local alias analysis.
#define X(NUM, ENUM, NAME)
Definition ELF.h:857
static GCRegistry::Add< ShadowStackGC > C("shadow-stack", "Very portable GC for uncooperative code generators")
static GCRegistry::Add< ErlangGC > A("erlang", "erlang-compatible garbage collector")
static GCRegistry::Add< StatepointGC > D("statepoint-example", "an example strategy for statepoint")
static GCRegistry::Add< CoreCLRGC > E("coreclr", "CoreCLR-compatible GC")
static GCRegistry::Add< OcamlGC > B("ocaml", "ocaml 3.10-compatible GC")
static cl::opt< OutputCostKind > CostKind("cost-kind", cl::desc("Target cost kind"), cl::init(OutputCostKind::RecipThroughput), cl::values(clEnumValN(OutputCostKind::RecipThroughput, "throughput", "Reciprocal throughput"), clEnumValN(OutputCostKind::Latency, "latency", "Instruction latency"), clEnumValN(OutputCostKind::CodeSize, "code-size", "Code size"), clEnumValN(OutputCostKind::SizeAndLatency, "size-latency", "Code size and latency"), clEnumValN(OutputCostKind::All, "all", "Print all cost kinds")))
static cl::opt< IntrinsicCostStrategy > IntrinsicCost("intrinsic-cost-strategy", cl::desc("Costing strategy for intrinsic instructions"), cl::init(IntrinsicCostStrategy::InstructionCost), cl::values(clEnumValN(IntrinsicCostStrategy::InstructionCost, "instruction-cost", "Use TargetTransformInfo::getInstructionCost"), clEnumValN(IntrinsicCostStrategy::IntrinsicCost, "intrinsic-cost", "Use TargetTransformInfo::getIntrinsicInstrCost"), clEnumValN(IntrinsicCostStrategy::TypeBasedIntrinsicCost, "type-based-intrinsic-cost", "Calculate the intrinsic cost based only on argument types")))
This file defines the DenseMap class.
#define Check(C,...)
This is the interface for a simple mod/ref and alias analysis over globals.
Hexagon Common GEP
iv users
Definition IVUsers.cpp:48
const size_t AbstractManglingParser< Derived, Alloc >::NumOps
const AbstractManglingParser< Derived, Alloc >::OperatorInfo AbstractManglingParser< Derived, Alloc >::Ops[]
static void eraseInstruction(Instruction &I, ICFLoopSafetyInfo &SafetyInfo, MemorySSAUpdater &MSSAU)
Definition LICM.cpp:1546
#define F(x, y, z)
Definition MD5.cpp:54
#define I(x, y, z)
Definition MD5.cpp:57
#define T1
uint64_t IntrinsicInst * II
FunctionAnalysisManager FAM
if(PassOpts->AAPipeline)
This file contains the declarations for profiling metadata utility functions.
const SmallVectorImpl< MachineOperand > & Cond
Func getContext().diagnose(DiagnosticInfoUnsupported(Func
This file contains some templates that are useful if you are working with the STL at all.
This file defines the scope_exit class, which executes user-defined cleanup logic at scope exit.
This file defines less commonly used SmallVector utilities.
This file defines the SmallVector class.
This file defines the 'Statistic' class, which is designed to be an easy way to expose various metric...
#define STATISTIC(VARNAME, DESC)
Definition Statistic.h:171
#define LLVM_DEBUG(...)
Definition Debug.h:119
static TableGen::Emitter::Opt Y("gen-skeleton-entry", EmitSkeleton, "Generate example skeleton entry")
static SymbolRef::Type getType(const Symbol *Sym)
Definition TapiFile.cpp:39
This pass exposes codegen information to IR-level passes.
static bool isEquivBitcast(Value *X, Value *Y)
Helper to peek through bitcasts to the same value.
static bool isFreeConcat(ArrayRef< InstLane > Item, TTI::TargetCostKind CostKind, const TargetTransformInfo &TTI)
Detect concat of multiple values into a vector.
static void analyzeCostOfVecReduction(const IntrinsicInst &II, TTI::TargetCostKind CostKind, const TargetTransformInfo &TTI, InstructionCost &CostBeforeReduction, InstructionCost &CostAfterReduction)
static Value * generateNewInstTree(ArrayRef< InstLane > Item, Use *From, const DenseSet< std::pair< Value *, Use * > > &IdentityLeafs, const DenseSet< std::pair< Value *, Use * > > &SplatLeafs, const DenseSet< std::pair< Value *, Use * > > &ConcatLeafs, IRBuilderBase &Builder, InstructionWorklist &WorkList, const TargetTransformInfo *TTI)
static SmallVector< InstLane > generateInstLaneVectorFromOperand(ArrayRef< InstLane > Item, int Op)
static Value * createShiftShuffle(Value *Vec, unsigned OldIndex, unsigned NewIndex, IRBuilderBase &Builder)
Create a shuffle that translates (shifts) 1 element from the input vector to a new element location.
std::pair< Value *, int > InstLane
static bool isKnownNonPositive(const Value *V, const SimplifyQuery &SQ, unsigned Depth=0)
Used by foldReduceAddCmpZero to check if we can prove that a value is non-positive.
static Value * materializeScalarizedGEPIndex(Value *Idx, IntegerType *GEPIndexTy, IRBuilderBase &Builder)
Materialize an index for a scalarized GEP after profitability is known.
static Align computeAlignmentAfterScalarization(Align VectorAlignment, Type *ScalarType, Value *Idx, const DataLayout &DL)
The memory operation on a vector of ScalarType had alignment of VectorAlignment.
static bool feedsIntoVectorReduction(ShuffleVectorInst *SVI)
Returns true if this ShuffleVectorInst eventually feeds into a vector reduction intrinsic (e....
static cl::opt< bool > DisableVectorCombine("disable-vector-combine", cl::init(false), cl::Hidden, cl::desc("Disable all vector combine transforms"))
static bool canWidenLoad(LoadInst *Load, const TargetTransformInfo &TTI)
static const unsigned InvalidIndex
static IntegerType * getScalarizedGEPIndexInfo(VectorType *VecTy, Value *Idx, Type *PtrTy, const DataLayout &DL)
Return the GEP index type if the unsigned vector index Idx can be represented by an inbounds GEP.
static Value * translateExtract(ExtractElementInst *ExtElt, unsigned NewIndex, IRBuilderBase &Builder)
Given an extract element instruction with constant index operand, shuffle the source vector (shift th...
static ScalarizationResult canScalarizeAccess(VectorType *VecTy, Value *Idx, const SimplifyQuery &SQ)
Check if it is legal to scalarize a memory access to VecTy at index Idx.
static cl::opt< unsigned > MaxInstrsToScan("vector-combine-max-scan-instrs", cl::init(30), cl::Hidden, cl::desc("Max number of instructions to scan for vector combining."))
static cl::opt< bool > DisableBinopExtractShuffle("disable-binop-extract-shuffle", cl::init(false), cl::Hidden, cl::desc("Disable binop extract to shuffle transforms"))
static unsigned getAlignedNumElements(unsigned MaxIdx, FixedVectorType *LoadTy, const TargetTransformInfo &TTI, const DataLayout &DL)
Given the maximum shuffle index and load vector type, compute the number of elements for the shrunk l...
static InstLane lookThroughShuffles(Value *V, int Lane)
static bool isMemModifiedBetween(BasicBlock::iterator Begin, BasicBlock::iterator End, const MemoryLocation &Loc, AAResults &AA)
static constexpr int Concat[]
Value * RHS
Value * LHS
A manager for alias analyses.
Class for arbitrary precision integers.
Definition APInt.h:78
LLVM_ABI APInt zext(unsigned width) const
Zero extend to a new width.
Definition APInt.cpp:1056
uint64_t getZExtValue() const
Get zero extended value.
Definition APInt.h:1561
bool isAllOnes() const
Determine if all bits are set. This is true for zero-width values.
Definition APInt.h:368
bool ugt(const APInt &RHS) const
Unsigned greater than comparison.
Definition APInt.h:1187
bool isZero() const
Determine if this value is zero, i.e. all bits are clear.
Definition APInt.h:377
unsigned getBitWidth() const
Return the number of bits in the APInt.
Definition APInt.h:1509
static APInt getSignedMaxValue(unsigned numBits)
Gets maximum signed value of APInt for a specific bit width.
Definition APInt.h:206
bool isNegative() const
Determine sign of this APInt.
Definition APInt.h:326
unsigned countl_one() const
Count the number of leading one bits.
Definition APInt.h:1636
LLVM_ABI APInt sext(unsigned width) const
Sign extend to a new width.
Definition APInt.cpp:1029
static APInt getLowBitsSet(unsigned numBits, unsigned loBitsSet)
Constructs an APInt value that has the bottom loBitsSet bits set.
Definition APInt.h:303
static APInt getHighBitsSet(unsigned numBits, unsigned hiBitsSet)
Constructs an APInt value that has the top hiBitsSet bits set.
Definition APInt.h:293
static APInt getZero(unsigned numBits)
Get the '0' value for the specified bit-width.
Definition APInt.h:197
bool isOne() const
Determine if this is a value of 1.
Definition APInt.h:386
static APInt getOneBitSet(unsigned numBits, unsigned BitNo)
Return an APInt with exactly one bit set in the result.
Definition APInt.h:236
bool uge(const APInt &RHS) const
Unsigned greater or equal comparison.
Definition APInt.h:1226
Represent a constant reference to an array (0 or more elements consecutively in memory),...
Definition ArrayRef.h:40
const T & front() const
Get the first element.
Definition ArrayRef.h:144
size_t size() const
Get the array size.
Definition ArrayRef.h:141
A function analysis which provides an AssumptionCache.
A cache of @llvm.assume calls within a function.
InstListType::iterator iterator
Instruction iterators...
Definition BasicBlock.h:170
BinaryOps getOpcode() const
Definition InstrTypes.h:409
Represents analyses that only rely on functions' control flow.
Definition Analysis.h:73
Value * getArgOperand(unsigned i) const
void addParamAttrs(unsigned ArgNo, const AttrBuilder &B)
Adds attributes to the indicated argument.
static LLVM_ABI CastInst * Create(Instruction::CastOps, Value *S, Type *Ty, const Twine &Name="", InsertPosition InsertBefore=nullptr)
Provides a way to construct any of the CastInst subclasses using an opcode instead of the subclass's ...
static Type * makeCmpResultType(Type *opnd_type)
Create a result type for fcmp/icmp.
Predicate
This enumeration lists the possible predicates for CmpInst subclasses.
Definition InstrTypes.h:740
bool isFPPredicate() const
Definition InstrTypes.h:845
static LLVM_ABI std::optional< CmpPredicate > getMatching(CmpPredicate A, CmpPredicate B)
Compares two CmpPredicates taking samesign into account and returns the canonicalized CmpPredicate if...
Combiner implementation.
Definition Combiner.h:33
static LLVM_ABI Constant * getExtractElement(Constant *Vec, Constant *Idx, Type *OnlyIfReducedTy=nullptr)
static LLVM_ABI Constant * getBinOpIdentity(unsigned Opcode, Type *Ty, bool AllowRHSConstant=false, bool NSZ=false)
Return the identity constant for a binary opcode.
This is the shared class of boolean and integer constants.
Definition Constants.h:87
const APInt & getValue() const
Return the constant as an APInt value reference.
Definition Constants.h:159
This class represents a range of values.
LLVM_ABI ConstantRange urem(const ConstantRange &Other) const
Return a new range representing the possible values resulting from an unsigned remainder operation of...
LLVM_ABI ConstantRange binaryAnd(const ConstantRange &Other) const
Return a new range representing the possible values resulting from a binary-and of a value in this ra...
LLVM_ABI bool contains(const APInt &Val) const
Return true if the specified value is in the set.
static LLVM_ABI Constant * getSplat(ElementCount EC, Constant *Elt)
Return a ConstantVector with the specified constant in each element.
static LLVM_ABI Constant * get(ArrayRef< Constant * > V)
static LLVM_ABI Constant * getNullValue(Type *Ty)
Constructor to create a '0' constant of arbitrary type.
A parsed version of the target data layout string in and methods for querying it.
Definition DataLayout.h:64
ValueT lookup(const_arg_type_t< KeyT > Val) const
Return the entry for the specified key, or a default constructed value if no such entry exists.
Definition DenseMap.h:250
iterator find(const_arg_type_t< KeyT > Val)
Definition DenseMap.h:223
std::pair< iterator, bool > try_emplace(KeyT &&Key, Ts &&...Args)
Definition DenseMap.h:299
bool empty() const
Definition DenseMap.h:171
iterator end()
Definition DenseMap.h:141
Implements a dense probed hash-table based set.
Definition DenseSet.h:281
Analysis pass which computes a DominatorTree.
Definition Dominators.h:241
Concrete subclass of DominatorTreeBase that is used to compute a normal dominator tree.
Definition Dominators.h:122
LLVM_ABI bool isReachableFromEntry(const Use &U) const
Provide an overload for a Use.
LLVM_ABI bool dominates(const BasicBlock *BB, const Use &U) const
Return true if the (end of the) basic block BB dominates the use U.
static constexpr ElementCount get(ScalarTy MinVal, bool Scalable)
Definition TypeSize.h:315
This instruction extracts a single (scalar) element from a VectorType value.
Convenience struct for specifying and reasoning about fast-math flags.
Definition FMF.h:23
bool noSignedZeros() const
Definition FMF.h:67
Class to represent fixed width SIMD vectors.
unsigned getNumElements() const
static FixedVectorType * getDoubleElementsVectorType(FixedVectorType *VTy)
static LLVM_ABI FixedVectorType * get(Type *ElementType, unsigned NumElts)
Definition Type.cpp:867
Predicate getSignedPredicate() const
For example, EQ->EQ, SLE->SLE, UGT->SGT, etc.
bool isEquality() const
Return true if this predicate is either EQ or NE.
Common base class shared among various IRBuilders.
Definition IRBuilder.h:114
LLVM_ABI CallInst * CreateIntrinsicWithoutFolding(Intrinsic::ID ID, ArrayRef< Type * > OverloadTypes, ArrayRef< Value * > Args, FMFSource FMFSource={}, const Twine &Name="", ArrayRef< OperandBundleDef > OpBundles={})
Create a call to intrinsic ID with Args, mangled using OverloadTypes.
Value * CreateNUWMul(Value *LHS, Value *RHS, const Twine &Name="")
Definition IRBuilder.h:1479
Value * CreateInsertElement(Type *VecTy, Value *NewElt, Value *Idx, const Twine &Name="")
Definition IRBuilder.h:2672
Value * CreateExtractElement(Value *Vec, Value *Idx, const Twine &Name="")
Definition IRBuilder.h:2660
LoadInst * CreateAlignedLoad(Type *Ty, Value *Ptr, MaybeAlign Align, const char *Name)
Definition IRBuilder.h:1944
LLVM_ABI Value * CreateSelectFMF(Value *C, Value *True, Value *False, FMFSource FMFSource, const Twine &Name="", Instruction *MDFrom=nullptr)
LLVM_ABI Value * CreateVectorSplat(unsigned NumElts, Value *V, const Twine &Name="")
Return a vector value that contains.
Value * CreateExtractValue(Value *Agg, ArrayRef< unsigned > Idxs, const Twine &Name="")
Definition IRBuilder.h:2719
ConstantInt * getTrue()
Get the constant value for i1 true.
Definition IRBuilder.h:457
LLVM_ABI Value * CreateSelect(Value *C, Value *True, Value *False, const Twine &Name="", Instruction *MDFrom=nullptr)
Value * CreateFreeze(Value *V, const Twine &Name="")
Definition IRBuilder.h:2738
void SetCurrentDebugLocation(const DebugLoc &L)
Set location information used by debugging information.
Definition IRBuilder.h:221
Value * CreateLShr(Value *LHS, Value *RHS, const Twine &Name="", bool isExact=false)
Definition IRBuilder.h:1542
Value * CreateCast(Instruction::CastOps Op, Value *V, Type *DestTy, const Twine &Name="", MDNode *FPMathTag=nullptr, FMFSource FMFSource={})
Definition IRBuilder.h:2287
Value * CreateIsNotNeg(Value *Arg, const Twine &Name="")
Return a boolean value testing if Arg > -1.
Definition IRBuilder.h:2762
Value * CreateInBoundsGEP(Type *Ty, Value *Ptr, ArrayRef< Value * > IdxList, const Twine &Name="")
Definition IRBuilder.h:2029
Value * CreatePointerBitCastOrAddrSpaceCast(Value *V, Type *DestTy, const Twine &Name="")
Definition IRBuilder.h:2312
ConstantInt * getInt64(uint64_t C)
Get a constant 64-bit value.
Definition IRBuilder.h:482
LLVM_ABI Value * CreateOrReduce(Value *Src)
Create a vector int OR reduction intrinsic of the source vector.
ConstantInt * getInt32(uint32_t C)
Get a constant 32-bit value.
Definition IRBuilder.h:477
Value * CreateCmp(CmpInst::Predicate Pred, Value *LHS, Value *RHS, const Twine &Name="", MDNode *FPMathTag=nullptr)
Definition IRBuilder.h:2519
PHINode * CreatePHI(Type *Ty, unsigned NumReservedValues, const Twine &Name="")
Definition IRBuilder.h:2550
InstTy * Insert(InstTy *I, const Twine &Name="") const
Insert and return the specified instruction.
Definition IRBuilder.h:146
Value * CreateIsNeg(Value *Arg, const Twine &Name="")
Return a boolean value testing if Arg < 0.
Definition IRBuilder.h:2757
Value * CreateBitCast(Value *V, Type *DestTy, const Twine &Name="")
Definition IRBuilder.h:2253
LoadInst * CreateLoad(Type *Ty, Value *Ptr, const char *Name)
Provided to resolve 'CreateLoad(Ty, Ptr, "...")' correctly, instead of converting the string to 'bool...
Definition IRBuilder.h:1916
Value * CreateShl(Value *LHS, Value *RHS, const Twine &Name="", bool HasNUW=false, bool HasNSW=false)
Definition IRBuilder.h:1521
LLVM_ABI Value * CreateNAryOp(unsigned Opc, ArrayRef< Value * > Ops, const Twine &Name="", MDNode *FPMathTag=nullptr)
Create either a UnaryOperator or BinaryOperator depending on Opc.
Value * CreateZExt(Value *V, Type *DestTy, const Twine &Name="", bool IsNonNeg=false)
Definition IRBuilder.h:2131
Value * CreateShuffleVector(Value *V1, Value *V2, Value *Mask, const Twine &Name="")
Definition IRBuilder.h:2694
Value * CreateAnd(Value *LHS, Value *RHS, const Twine &Name="")
Definition IRBuilder.h:1580
LLVM_ABI Value * CreateIntrinsic(Intrinsic::ID ID, ArrayRef< Type * > OverloadTypes, ArrayRef< Value * > Args, FMFSource FMFSource={}, const Twine &Name="", ArrayRef< OperandBundleDef > OpBundles={}, function_ref< void(CallInst *)> SetFn=[](CallInst *) {})
Variant to create a possibly constant-folded intrinsic.
StoreInst * CreateStore(Value *Val, Value *Ptr, bool isVolatile=false)
Definition IRBuilder.h:1935
Value * CreateTrunc(Value *V, Type *DestTy, const Twine &Name="", bool IsNUW=false, bool IsNSW=false)
Definition IRBuilder.h:2117
PointerType * getPtrTy(unsigned AddrSpace=0)
Fetch the type representing a pointer.
Definition IRBuilder.h:577
Value * CreateBinOp(Instruction::BinaryOps Opc, Value *LHS, Value *RHS, const Twine &Name="", MDNode *FPMathTag=nullptr)
Definition IRBuilder.h:1741
void SetInsertPoint(BasicBlock *TheBB)
This specifies that created instructions should be appended to the end of the specified block.
Definition IRBuilder.h:181
Value * CreateFNegFMF(Value *V, FMFSource FMFSource, const Twine &Name="", MDNode *FPMathTag=nullptr)
Definition IRBuilder.h:1854
Value * CreateICmp(CmpInst::Predicate P, Value *LHS, Value *RHS, const Twine &Name="")
Definition IRBuilder.h:2495
Value * CreateOr(Value *LHS, Value *RHS, const Twine &Name="", bool IsDisjoint=false)
Definition IRBuilder.h:1602
IntegerType * getInt8Ty()
Fetch the type representing an 8-bit integer.
Definition IRBuilder.h:524
LLVM_ABI Value * CreateUnaryIntrinsic(Intrinsic::ID ID, Value *Op, FMFSource FMFSource={}, const Twine &Name="")
Create a call to intrinsic ID with 1 operand which is mangled on its type.
InstSimplifyFolder - Use InstructionSimplify to fold operations to existing values.
CostType getValue() const
This function is intended to be used as sparingly as possible, since the class provides the full rang...
InstructionWorklist - This is the worklist management logic for InstCombine and other simplification ...
void push(Instruction *I)
Push the instruction onto the worklist stack.
LLVM_ABI void setHasNoUnsignedWrap(bool b=true)
Set or clear the nuw flag on this instruction, which must be an operator which supports this flag.
LLVM_ABI void copyIRFlags(const Value *V, bool IncludeWrapFlags=true)
Convenience method to copy supported exact, fast-math, and (optionally) wrapping flags from V to this...
LLVM_ABI void setHasNoSignedWrap(bool b=true)
Set or clear the nsw flag on this instruction, which must be an operator which supports this flag.
const DebugLoc & getDebugLoc() const
Return the debug location for this node as a DebugLoc.
LLVM_ABI void andIRFlags(const Value *V)
Logical 'and' of any supported wrapping, exact, and fast-math flags of V and this instruction.
bool isBinaryOp() const
LLVM_ABI void setNonNeg(bool b=true)
Set or clear the nneg flag on this instruction, which must be a zext instruction.
LLVM_ABI bool comesBefore(const Instruction *Other) const
Given an instruction Other in the same basic block as this instruction, return true if this instructi...
LLVM_ABI void setMetadata(unsigned KindID, MDNode *Node)
Set the metadata of the specified kind to the specified node.
LLVM_ABI FastMathFlags getFastMathFlags() const LLVM_READONLY
Convenience function for getting all the fast-math flags, which must be an operator which supports th...
LLVM_ABI AAMDNodes getAAMetadata() const
Returns the AA metadata for this instruction.
unsigned getOpcode() const
Returns a member of one of the enums like Instruction::Add.
bool isIdempotent() const
Return true if the instruction is idempotent:
LLVM_ABI void copyMetadata(const Instruction &SrcInst, ArrayRef< unsigned > WL=ArrayRef< unsigned >())
Copy metadata from SrcInst to this instruction.
LLVM_ABI bool hasAllowReassoc() const LLVM_READONLY
Determine whether the allow-reassociation flag is set.
bool isIntDivRem() const
Class to represent integer types.
static LLVM_ABI IntegerType * get(LLVMContext &C, unsigned NumBits)
This static method is the primary way of constructing an IntegerType.
Definition Type.cpp:348
unsigned getBitWidth() const
Get the number of bits in this IntegerType.
A wrapper class for inspecting calls to intrinsic functions.
Intrinsic::ID getIntrinsicID() const
Return the intrinsic ID of this intrinsic.
An instruction for reading from memory.
unsigned getPointerAddressSpace() const
Returns the address space of the pointer operand.
void setAlignment(Align Align)
Type * getPointerOperandType() const
Align getAlign() const
Return the alignment of the access that is being performed.
Representation for a specific memory location.
static LLVM_ABI MemoryLocation get(const LoadInst *LI)
Return a location with information about the memory reference by the given instruction.
void addIncoming(Value *V, BasicBlock *BB)
Add an incoming value to the end of the PHI list.
static LLVM_ABI PoisonValue * get(Type *T)
Static factory methods - Return an 'poison' object of the specified type.
A set of analyses that are preserved following a run of a transformation pass.
Definition Analysis.h:112
static PreservedAnalyses all()
Construct a special preserved set that preserves all passes.
Definition Analysis.h:118
PreservedAnalyses & preserveSet()
Mark an analysis set as preserved.
Definition Analysis.h:151
const SDValue & getOperand(unsigned Num) const
bool contains(const_arg_type key) const
Check if the SetVector contains the given key.
Definition SetVector.h:258
bool empty() const
Determine if the SetVector is empty or not.
Definition SetVector.h:100
bool insert(const value_type &X)
Insert a new element into the SetVector.
Definition SetVector.h:157
This instruction constructs a fixed permutation of two input vectors.
int getMaskValue(unsigned Elt) const
Return the shuffle mask value of this instruction for the given element index.
VectorType * getType() const
Overload to return most specific vector type.
static LLVM_ABI void getShuffleMask(const Constant *Mask, SmallVectorImpl< int > &Result)
Convert the input shuffle mask operand to a vector of integers.
static LLVM_ABI bool isIdentityMask(ArrayRef< int > Mask, int NumSrcElts)
Return true if this shuffle mask chooses elements from exactly one source vector without lane crossin...
static void commuteShuffleMask(MutableArrayRef< int > Mask, unsigned InVecNumElts)
Change values in a shuffle permute mask assuming the two vector operands of length InVecNumElts have ...
size_type size() const
std::pair< iterator, bool > insert(PtrType Ptr)
Inserts Ptr if and only if there is no element in the container equal to Ptr.
bool contains(ConstPtrType Ptr) const
SmallPtrSet - This class implements a set which is optimized for holding SmallSize or less elements.
void assign(size_type NumElts, ValueParamT Elt)
reference emplace_back(ArgTypes &&... Args)
void reserve(size_type N)
void append(ItTy in_start, ItTy in_end)
Add the specified range to the end of the SmallVector.
void push_back(const T &Elt)
This is a 'vector' (really, a variable-sized array), optimized for the case when the array is small.
void setAlignment(Align Align)
Analysis pass providing the TargetTransformInfo.
This pass provides access to the codegen interfaces that are needed for IR-level transformations.
static LLVM_ABI CastContextHint getCastContextHint(const Instruction *I)
Calculates a CastContextHint from I.
LLVM_ABI InstructionCost getGEPCost(Type *PointeeType, const Value *Ptr, ArrayRef< const Value * > Operands, TargetCostKind CostKind, Type *AccessType=nullptr) const
Estimate the cost of a GEP operation when lowered.
LLVM_ABI TypeSize getRegisterBitWidth(RegisterKind K) const
LLVM_ABI InstructionCost getMemoryOpCost(unsigned Opcode, Type *Src, Align Alignment, unsigned AddressSpace, TTI::TargetCostKind CostKind, OperandValueInfo OpdInfo={OK_AnyValue, OP_None}, const Instruction *I=nullptr) const
static LLVM_ABI OperandValueInfo commonOperandInfo(const Value *X, const Value *Y)
Collect common data between two OperandValueInfo inputs.
LLVM_ABI bool allowVectorElementIndexingUsingGEP() const
Returns true if GEP should not be used to index into vectors for this target.
LLVM_ABI InstructionCost getIntrinsicInstrCost(const IntrinsicCostAttributes &ICA, TTI::TargetCostKind CostKind) const
LLVM_ABI InstructionCost getVectorInstrCost(unsigned Opcode, Type *Val, TTI::TargetCostKind CostKind, unsigned Index=-1, const Value *Op0=nullptr, const Value *Op1=nullptr, TTI::VectorInstrContext VIC=TTI::VectorInstrContext::None) const
LLVM_ABI InstructionCost getCmpSelInstrCost(unsigned Opcode, Type *ValTy, Type *CondTy, CmpInst::Predicate VecPred, TTI::TargetCostKind CostKind, OperandValueInfo Op1Info={OK_AnyValue, OP_None}, OperandValueInfo Op2Info={OK_AnyValue, OP_None}, const Instruction *I=nullptr) const
LLVM_ABI InstructionCost getCastInstrCost(unsigned Opcode, Type *Dst, Type *Src, TTI::CastContextHint CCH, TTI::TargetCostKind CostKind, const Instruction *I=nullptr) const
LLVM_ABI unsigned getRegisterClassForType(bool Vector, Type *Ty=nullptr) const
LLVM_ABI InstructionCost getArithmeticReductionCost(unsigned Opcode, VectorType *Ty, std::optional< FastMathFlags > FMF, TTI::TargetCostKind CostKind) const
Calculate the cost of vector reduction intrinsics.
LLVM_ABI InstructionCost getMinMaxReductionCost(Intrinsic::ID IID, VectorType *Ty, FastMathFlags FMF=FastMathFlags(), TTI::TargetCostKind CostKind=TTI::TCK_RecipThroughput) const
TargetCostKind
The kind of cost model.
@ TCK_RecipThroughput
Reciprocal throughput.
@ TCK_CodeSize
Instruction code size.
LLVM_ABI InstructionCost getMemIntrinsicInstrCost(const MemIntrinsicCostAttributes &MICA, TTI::TargetCostKind CostKind) const
LLVM_ABI unsigned getMinVectorRegisterBitWidth() const
LLVM_ABI InstructionCost getAddressComputationCost(Type *PtrTy, ScalarEvolution *SE, const SCEV *Ptr, TTI::TargetCostKind CostKind) const
LLVM_ABI unsigned getNumberOfRegisters(unsigned ClassID) const
LLVM_ABI InstructionCost getShuffleCost(ShuffleKind Kind, VectorType *DstTy, VectorType *SrcTy, TTI::TargetCostKind CostKind, ArrayRef< int > Mask={}, int Index=0, VectorType *SubTp=nullptr, ArrayRef< const Value * > Args={}, const Instruction *CxtI=nullptr) const
LLVM_ABI InstructionCost getInstructionCost(const User *U, ArrayRef< const Value * > Operands, TargetCostKind CostKind) const
Estimate the cost of a given IR user when lowered.
LLVM_ABI InstructionCost getArithmeticInstrCost(unsigned Opcode, Type *Ty, TTI::TargetCostKind CostKind, TTI::OperandValueInfo Opd1Info={TTI::OK_AnyValue, TTI::OP_None}, TTI::OperandValueInfo Opd2Info={TTI::OK_AnyValue, TTI::OP_None}, ArrayRef< const Value * > Args={}, const Instruction *CxtI=nullptr, const TargetLibraryInfo *TLibInfo=nullptr) const
This is an approximation of reciprocal throughput of a math/logic op.
LLVM_ABI InstructionCost getScalarizationOverhead(VectorType *Ty, const APInt &DemandedElts, bool Insert, bool Extract, TTI::TargetCostKind CostKind, bool ForPoisonSrc=true, ArrayRef< Value * > VL={}, TTI::VectorInstrContext VIC=TTI::VectorInstrContext::None) const
Estimate the overhead of scalarizing an instruction.
ShuffleKind
The various kinds of shuffle patterns for vector queries.
@ SK_PermuteSingleSrc
Shuffle elements of single source vector with any shuffle mask.
@ SK_PermuteTwoSrc
Merge elements from two source vectors into one with any shuffle mask.
@ SK_ExtractSubvector
ExtractSubvector Index indicates start offset.
@ None
The cast is not used with a load/store of any kind.
The instances of the Type class are immutable: once they are created, they are never changed.
Definition Type.h:46
LLVM_ABI unsigned getIntegerBitWidth() const
bool isPointerTy() const
True if this is an instance of PointerType.
Definition Type.h:282
Type * getScalarType() const
If this is a vector type, return the element type, otherwise return 'this'.
Definition Type.h:368
LLVM_ABI TypeSize getPrimitiveSizeInBits() const LLVM_READONLY
Return the basic size of this type if it is a primitive type.
Definition Type.cpp:197
LLVMContext & getContext() const
Return the LLVMContext in which this type was uniqued.
Definition Type.h:130
LLVM_ABI unsigned getScalarSizeInBits() const LLVM_READONLY
If this is a vector type, return the getPrimitiveSizeInBits value for the element type.
Definition Type.cpp:232
bool isFloatingPointTy() const
Return true if this is one of the floating-point types.
Definition Type.h:186
bool isIntegerTy() const
True if this is an instance of IntegerType.
Definition Type.h:257
bool isFPOrFPVectorTy() const
Return true if this is a FP type or a vector of FP.
Definition Type.h:227
A Use represents the edge between a Value definition and its users.
Definition Use.h:35
op_range operands()
Definition User.h:267
Value * getOperand(unsigned i) const
Definition User.h:207
LLVM Value Representation.
Definition Value.h:75
Type * getType() const
All values are typed, get the type of this value.
Definition Value.h:255
const Value * stripAndAccumulateInBoundsConstantOffsets(const DataLayout &DL, APInt &Offset) const
This is a wrapper around stripAndAccumulateConstantOffsets with the in-bounds requirement set to fals...
Definition Value.h:727
LLVM_ABI bool hasOneUser() const
Return true if there is exactly one user of this value.
Definition Value.cpp:163
bool hasOneUse() const
Return true if there is exactly one use of this value.
Definition Value.h:439
LLVM_ABI void replaceAllUsesWith(Value *V)
Change all uses of this to point to a new Value.
Definition Value.cpp:553
iterator_range< user_iterator > users()
Definition Value.h:426
LLVM_ABI Align getPointerAlignment(const DataLayout &DL) const
Returns an alignment of the pointer value.
Definition Value.cpp:1002
unsigned getValueID() const
Return an ID for the concrete type of this object.
Definition Value.h:543
LLVM_ABI bool hasNUses(unsigned N) const
Return true if this Value has exactly N uses.
Definition Value.cpp:147
LLVM_ABI const Value * stripPointerCasts() const
Strip off pointer casts, all-zero GEPs and address space casts.
Definition Value.cpp:713
bool use_empty() const
Definition Value.h:346
LLVM_ABI StringRef getName() const
Return a constant reference to the value's name.
Definition Value.cpp:319
bool user_empty() const
Definition Value.h:389
LLVM_ABI PreservedAnalyses run(Function &F, FunctionAnalysisManager &)
static LLVM_ABI VectorType * get(Type *ElementType, ElementCount EC)
This static method is the primary way to construct an VectorType.
Type * getElementType() const
std::pair< iterator, bool > insert(const ValueT &V)
Definition DenseSet.h:209
size_type size() const
Definition DenseSet.h:84
constexpr bool hasKnownScalarFactor(const FixedOrScalableQuantity &RHS) const
Returns true if there exists a value X where RHS.multiplyCoefficientBy(X) will result in a value whos...
Definition TypeSize.h:269
constexpr ScalarTy getFixedValue() const
Definition TypeSize.h:200
constexpr ScalarTy getKnownScalarFactor(const FixedOrScalableQuantity &RHS) const
Returns a value X where RHS.multiplyCoefficientBy(X) will result in a value whose quantity matches ou...
Definition TypeSize.h:277
constexpr bool isScalable() const
Returns whether the quantity is scaled by a runtime quantity (vscale).
Definition TypeSize.h:168
constexpr ScalarTy getKnownMinValue() const
Returns the minimum value this quantity can represent.
Definition TypeSize.h:165
constexpr bool isZero() const
Definition TypeSize.h:153
const ParentTy * getParent() const
Definition ilist_node.h:34
self_iterator getIterator()
Definition ilist_node.h:123
NodeTy * getNextNode()
Get the next node, or nullptr for the list tail.
Definition ilist_node.h:348
#define llvm_unreachable(msg)
Marks that the current location is not supposed to be reachable.
Abstract Attribute helper functions.
Definition Attributor.h:165
constexpr char Align[]
Key for Kernel::Arg::Metadata::mAlign.
const APInt & smin(const APInt &A, const APInt &B)
Determine the smaller of two APInts considered to be signed.
Definition APInt.h:2275
const APInt & smax(const APInt &A, const APInt &B)
Determine the larger of two APInts considered to be signed.
Definition APInt.h:2280
constexpr std::underlying_type_t< E > Mask()
Get a bitmask with 1s in all places up to the high-order bit of E's largest value.
@ BasicBlock
Various leaf nodes.
Definition ISDOpcodes.h:81
LLVM_ABI Intrinsic::ID getInterleaveIntrinsicID(unsigned Factor)
Returns the corresponding llvm.vector.interleaveN intrinsic for factor N.
SpecificConstantMatch m_ZeroInt()
Convenience matchers for specific integer values.
BinaryOp_match< SpecificConstantMatch, SrcTy, TargetOpcode::G_SUB > m_Neg(const SrcTy &&Src)
Matches a register negated by a G_SUB.
AllOnesConstantMatch m_AllOnes()
OneUse_match< SubPat > m_OneUse(const SubPat &SP)
match_combine_and< Ty... > m_CombineAnd(const Ty &...Ps)
Combine pattern matchers matching all of Ps patterns.
BinaryOp_match< LHS, RHS, Instruction::And > m_And(const LHS &L, const RHS &R)
auto m_BSwap(const Opnd0 &Op0)
auto m_Cmp()
Matches any compare instruction and ignore it.
BinaryOp_match< LHS, RHS, Instruction::Add > m_Add(const LHS &L, const RHS &R)
auto m_BitReverse(const Opnd0 &Op0)
BinaryOp_match< LHS, RHS, Instruction::URem > m_URem(const LHS &L, const RHS &R)
auto m_Poison()
Match an arbitrary poison constant.
ap_match< APInt > m_APInt(const APInt *&Res)
Match a ConstantInt or splatted ConstantVector, binding the specified pointer to the contained APInt.
CastInst_match< OpTy, TruncInst > m_Trunc(const OpTy &Op)
Matches Trunc.
specific_intval< false > m_SpecificInt(const APInt &V)
Match a specific integer value or vector with all elements equal to the value.
bool match(Val *V, const Pattern &P)
match_bind< Instruction > m_Instruction(Instruction *&I)
Match an instruction, capturing it if we match.
specificval_ty m_Specific(const Value *V)
Match if we have a specific specified value.
DisjointOr_match< LHS, RHS > m_DisjointOr(const LHS &L, const RHS &R)
BinOpPred_match< LHS, RHS, is_right_shift_op > m_Shr(const LHS &L, const RHS &R)
Matches logical shift operations.
CmpClass_match< LHS, RHS, ICmpInst, true > m_c_ICmp(CmpPredicate &Pred, const LHS &L, const RHS &R)
Matches an ICmp with a predicate over LHS and RHS in either order.
TwoOps_match< Val_t, Idx_t, Instruction::ExtractElement > m_ExtractElt(const Val_t &Val, const Idx_t &Idx)
Matches ExtractElementInst.
ThreeOps_match< Cond, LHS, RHS, Instruction::Select > m_Select(const Cond &C, const LHS &L, const RHS &R)
Matches SelectInst.
auto m_BinOp()
Match an arbitrary binary operation and ignore it.
auto m_Value()
Match an arbitrary value and ignore it.
BinaryOp_match< LHS, RHS, Instruction::Mul > m_Mul(const LHS &L, const RHS &R)
auto m_Constant()
Match an arbitrary Constant and ignore it.
TwoOps_match< V1_t, V2_t, Instruction::ShuffleVector > m_Shuffle(const V1_t &v1, const V2_t &v2)
Matches ShuffleVectorInst independently of mask value.
cst_pred_ty< is_non_zero_int > m_NonZeroInt()
Match a non-zero integer or a vector with all non-zero elements.
OneOps_match< OpTy, Instruction::Load > m_Load(const OpTy &Op)
Matches LoadInst.
CastInst_match< OpTy, ZExtInst > m_ZExt(const OpTy &Op)
Matches ZExt.
OverflowingBinaryOp_match< LHS, RHS, Instruction::Shl, OverflowingBinaryOperator::NoUnsignedWrap > m_NUWShl(const LHS &L, const RHS &R)
auto m_AnyIntrinsic()
Matches any intrinsic call and ignore it.
OverflowingBinaryOp_match< LHS, RHS, Instruction::Mul, OverflowingBinaryOperator::NoUnsignedWrap > m_NUWMul(const LHS &L, const RHS &R)
BinOpPred_match< LHS, RHS, is_bitwiselogic_op, true > m_c_BitwiseLogic(const LHS &L, const RHS &R)
Matches bitwise logic operations in either order.
CastOperator_match< OpTy, Instruction::BitCast > m_BitCast(const OpTy &Op)
Matches BitCast.
match_combine_or< CastInst_match< OpTy, SExtInst >, NNegZExt_match< OpTy > > m_SExtLike(const OpTy &Op)
Match either "sext" or "zext nneg".
auto m_Intrinsic(const Ts &...Ops)
Match intrinsic calls like this: m_Intrinsic<Intrinsic::fabs>(m_Value(X))
auto m_Deinterleave2(const Opnd &Op)
BinaryOp_match< LHS, RHS, Instruction::LShr > m_LShr(const LHS &L, const RHS &R)
CmpClass_match< LHS, RHS, ICmpInst > m_ICmp(CmpPredicate &Pred, const LHS &L, const RHS &R)
match_combine_or< CastInst_match< OpTy, ZExtInst >, CastInst_match< OpTy, SExtInst > > m_ZExtOrSExt(const OpTy &Op)
FNeg_match< OpTy > m_FNeg(const OpTy &X)
Match 'fneg X' as 'fsub -0.0, X'.
BinaryOp_match< LHS, RHS, Instruction::Shl > m_Shl(const LHS &L, const RHS &R)
auto m_Undef()
Match an arbitrary undef constant.
CastInst_match< OpTy, SExtInst > m_SExt(const OpTy &Op)
Matches SExt.
is_zero m_Zero()
Match any null constant or a vector with all elements equal to 0.
BinaryOp_match< LHS, RHS, Instruction::Or, true > m_c_Or(const LHS &L, const RHS &R)
Matches an Or with LHS and RHS in either order.
ThreeOps_match< Val_t, Elt_t, Idx_t, Instruction::InsertElement > m_InsertElt(const Val_t &Val, const Elt_t &Elt, const Idx_t &Idx)
Matches InsertElementInst.
auto m_ConstantInt()
Match an arbitrary ConstantInt and ignore it.
@ Valid
The data is already valid.
initializer< Ty > init(const Ty &Val)
DXILDebugInfoMap run(Module &M)
@ User
could "use" a pointer
NodeAddr< PhiNode * > Phi
Definition RDFGraph.h:390
NodeAddr< UseNode * > Use
Definition RDFGraph.h:385
friend class Instruction
Iterator for Instructions in a `BasicBlock.
Definition BasicBlock.h:73
unsigned getOpcode(const VPValue *V)
Return the instruction opcode for the recipe defining V or 0 for unsupported recipes and VPValues not...
This is an optimization pass for GlobalISel generic memory operations.
auto drop_begin(T &&RangeOrContainer, size_t N=1)
Return a range covering RangeOrContainer with the first N elements excluded.
Definition STLExtras.h:315
unsigned Log2_32_Ceil(uint32_t Value)
Return the ceil log base 2 of the specified value, 32 if the value is zero.
Definition MathExtras.h:339
LLVM_ABI bool willNotFreeBetween(const Instruction *Assume, const Instruction *CtxI)
Returns true, if no instruction between Assume and CtxI may free (including through synchronization).
@ Offset
Definition DWP.cpp:578
detail::zippy< detail::zip_shortest, T, U, Args... > zip(T &&t, U &&u, Args &&...args)
zip iterator for two or more iteratable types.
Definition STLExtras.h:830
void stable_sort(R &&Range)
Definition STLExtras.h:2116
LLVM_ABI cl::opt< bool > ProfcheckDisableMetadataFixes
Definition LoopInfo.cpp:60
UnaryFunction for_each(R &&Range, UnaryFunction F)
Provide wrappers to std::for_each which take ranges instead of having to pass begin/end explicitly.
Definition STLExtras.h:1732
bool all_of(R &&range, UnaryPredicate P)
Provide wrappers to std::all_of which take ranges instead of having to pass begin/end explicitly.
Definition STLExtras.h:1739
LLVM_ABI Intrinsic::ID getMinMaxReductionIntrinsicOp(Intrinsic::ID RdxID)
Returns the min/max intrinsic used when expanding a min/max reduction.
LLVM_ABI bool RecursivelyDeleteTriviallyDeadInstructions(Value *V, const TargetLibraryInfo *TLI=nullptr, MemorySSAUpdater *MSSAU=nullptr, std::function< void(Value *)> AboutToDeleteCallback=std::function< void(Value *)>())
If the specified value is a trivially dead instruction, delete it.
Definition Local.cpp:522
RelativeUniformCounterPtr Values
Definition InstrProf.h:91
LLVM_ABI SDValue peekThroughBitcasts(SDValue V)
Return the non-bitcasted source operand of V if it exists.
auto enumerate(FirstRange &&First, RestRanges &&...Rest)
Given two or more input ranges, returns a new range whose values are tuples (A, B,...
Definition STLExtras.h:2554
decltype(auto) dyn_cast(const From &Val)
dyn_cast<X> - Return the argument parameter cast to the specified type.
Definition Casting.h:643
LLVM_ABI Value * simplifyUnOp(unsigned Opcode, Value *Op, const SimplifyQuery &Q)
Given operand for a UnaryOperator, fold the result or return null.
scope_exit(Callable) -> scope_exit< Callable >
@ Load
The value being inserted comes from a load (InsertElement only).
auto map_to_vector(ContainerTy &&C, FuncTy &&F)
Map a range to a SmallVector with element types deduced from the mapping.
iterator_range< T > make_range(T x, T y)
Convenience function for iterating over sub-ranges.
LLVM_ABI unsigned getArithmeticReductionInstruction(Intrinsic::ID RdxID)
Returns the arithmetic instruction opcode used when expanding a reduction.
void append_range(Container &C, Range &&R)
Wrapper function to append range R to container C.
Definition STLExtras.h:2208
constexpr bool isUIntN(unsigned N, uint64_t x)
Checks if an unsigned integer fits into the given (dynamic) bit width.
Definition MathExtras.h:244
LLVM_ABI Value * simplifyCall(CallBase *Call, Value *Callee, ArrayRef< Value * > Args, const SimplifyQuery &Q)
Given a callsite, callee, and arguments, fold the result or return null.
iterator_range< early_inc_iterator_impl< detail::IterOfRange< RangeT > > > make_early_inc_range(RangeT &&Range)
Make a range that does early increment to allow mutation of the underlying range without disrupting i...
Definition STLExtras.h:633
LLVM_ABI bool mustSuppressSpeculation(const LoadInst &LI)
Return true if speculation of the given load must be suppressed to avoid ordering or interfering with...
Definition Loads.cpp:452
LLVM_ABI bool widenShuffleMaskElts(int Scale, ArrayRef< int > Mask, SmallVectorImpl< int > &ScaledMask)
Try to transform a shuffle mask by replacing elements with the scaled index for an equivalent mask of...
LLVM_ABI bool isSafeToSpeculativelyExecute(const Instruction *I, const Instruction *CtxI=nullptr, AssumptionCache *AC=nullptr, const DominatorTree *DT=nullptr, const TargetLibraryInfo *TLI=nullptr, bool UseVariableInfo=true, bool IgnoreUBImplyingAttrs=true)
Return true if the instruction does not have any effects besides calculating the result and does not ...
LLVM_ABI Instruction * propagateMetadata(Instruction *I, ArrayRef< Value * > VL)
Specifically, let Kinds = [MD_tbaa, MD_alias_scope, MD_noalias, MD_fpmath, MD_nontemporal,...
LLVM_ABI Value * getSplatValue(const Value *V)
Get splat value if the input is a splat vector or return nullptr.
RelativeUniformCounterPtr ValuesPtrExpr VTableAddr Value
Definition InstrProf.h:143
unsigned M1(unsigned Val)
Definition VE.h:377
bool any_of(R &&range, UnaryPredicate P)
Provide wrappers to std::any_of which take ranges instead of having to pass begin/end explicitly.
Definition STLExtras.h:1746
LLVM_ABI bool isInstructionTriviallyDead(Instruction *I, const TargetLibraryInfo *TLI=nullptr)
Return true if the result produced by the instruction is not used, and the instruction will return.
Definition Local.cpp:402
LLVM_ABI bool isSplatValue(const Value *V, int Index=-1, unsigned Depth=0)
Return true if each element of the vector value V is poisoned or equal to every other non-poisoned el...
unsigned Log2_32(uint32_t Value)
Return the floor log base 2 of the specified value, -1 if the value is zero.
Definition MathExtras.h:326
auto reverse(ContainerTy &&C)
Definition STLExtras.h:407
constexpr bool isPowerOf2_32(uint32_t Value)
Return true if the argument is a power of two > 0.
Definition MathExtras.h:280
bool isModSet(const ModRefInfo MRI)
Definition ModRef.h:49
void sort(IteratorTy Start, IteratorTy End)
Definition STLExtras.h:1636
LLVM_ABI void computeKnownBits(const Value *V, KnownBits &Known, const DataLayout &DL, AssumptionCache *AC=nullptr, const Instruction *CxtI=nullptr, const DominatorTree *DT=nullptr, bool UseInstrInfo=true, unsigned Depth=0)
Determine which bits of V are known to be either zero or one and return them in the KnownZero/KnownOn...
LLVM_ABI bool programUndefinedIfPoison(const Instruction *Inst)
LLVM_ABI unsigned getDeinterleaveIntrinsicFactor(Intrinsic::ID ID)
Returns the corresponding factor of llvm.vector.deinterleaveN intrinsics.
LLVM_ABI raw_ostream & dbgs()
dbgs() - This returns a reference to a raw_ostream for debugging messages.
Definition Debug.cpp:209
constexpr uint64_t alignTo(uint64_t Size, Align A)
Returns a multiple of A needed to store Size bytes.
Definition Alignment.h:144
class LLVM_GSL_OWNER SmallVector
Forward declaration of SmallVector so that calculateSmallVectorDefaultInlinedElements can reference s...
bool isa(const From &Val)
isa<X> - Return true if the parameter to the template is an instance of one of the template type argu...
Definition Casting.h:547
LLVM_ABI void propagateIRFlags(Value *I, ArrayRef< Value * > VL, Value *OpValue=nullptr, bool IncludeWrapFlags=true)
Get the intersection (logical and) of all of the potential IR flags of each scalar operation (VL) tha...
MutableArrayRef(T &OneElt) -> MutableArrayRef< T >
constexpr int PoisonMaskElem
@ Other
Any other memory.
Definition ModRef.h:68
TargetTransformInfo TTI
IRBuilder(LLVMContext &, FolderTy, InserterTy, MDNode *, ArrayRef< OperandBundleDef >) -> IRBuilder< FolderTy, InserterTy >
LLVM_ABI Value * simplifyBinOp(unsigned Opcode, Value *LHS, Value *RHS, const SimplifyQuery &Q)
Given operands for a BinaryOperator, fold the result or return null.
LLVM_ABI void narrowShuffleMaskElts(int Scale, ArrayRef< int > Mask, SmallVectorImpl< int > &ScaledMask)
Replace each shuffle mask index with the scaled sequential indices for an equivalent mask of narrowed...
LLVM_ABI Intrinsic::ID getReductionForBinop(Instruction::BinaryOps Opc)
Returns the reduction intrinsic id corresponding to the binary operation.
@ And
Bitwise or logical AND of integers.
LLVM_ABI bool isVectorIntrinsicWithScalarOpAtArg(Intrinsic::ID ID, unsigned ScalarOpdIdx, const TargetTransformInfo *TTI)
Identifies if the vector form of the intrinsic has a scalar operand.
RelativeUniformCounterPtr ValuesPtrExpr VTableAddr Count
Definition InstrProf.h:145
DWARFExpression::Operation Op
unsigned M0(unsigned Val)
Definition VE.h:376
ArrayRef(const T &OneElt) -> ArrayRef< T >
LLVM_ABI unsigned ComputeNumSignBits(const Value *Op, const DataLayout &DL, AssumptionCache *AC=nullptr, const Instruction *CxtI=nullptr, const DominatorTree *DT=nullptr, bool UseInstrInfo=true, unsigned Depth=0)
Return the number of times the sign bit of the register is replicated into the other bits.
constexpr unsigned BitWidth
LLVM_ABI bool isGuaranteedToTransferExecutionToSuccessor(const Instruction *I)
Return true if this function can prove that the instruction I will always transfer execution to one o...
LLVM_ABI Constant * getLosslessInvCast(Constant *C, Type *InvCastTo, unsigned CastOp, const DataLayout &DL, PreservedCastFlags *Flags=nullptr)
Try to cast C to InvC losslessly, satisfying CastOp(InvC) equals C, or CastOp(InvC) is a refined valu...
decltype(auto) cast(const From &Val)
cast<X> - Return the argument parameter cast to the specified type.
Definition Casting.h:559
auto find_if(R &&Range, UnaryPredicate P)
Provide wrappers to std::find_if which take ranges instead of having to pass begin/end explicitly.
Definition STLExtras.h:1772
constexpr bool isIntN(unsigned N, int64_t x)
Checks if an signed integer fits into the given (dynamic) bit width.
Definition MathExtras.h:249
LLVM_ABI bool isSafeToLoadUnconditionally(Value *V, Align Alignment, const APInt &Size, const SimplifyQuery &SQ)
Return true if we know that executing a load from this value cannot trap.
Definition Loads.cpp:456
bool is_contained(R &&Range, const E &Element)
Returns true if Element is found in Range.
Definition STLExtras.h:1947
Align commonAlignment(Align A, uint64_t Offset)
Returns the alignment that satisfies both alignments.
Definition Alignment.h:201
RelativeUniformCounterPtr ValuesPtrExpr VTableAddr Next
Definition InstrProf.h:147
bool all_equal(std::initializer_list< T > Values)
Returns true if all Values in the initializer lists are equal or the list.
Definition STLExtras.h:2166
LLVM_ABI Value * simplifyCmpInst(CmpPredicate Predicate, Value *LHS, Value *RHS, const SimplifyQuery &Q)
Given operands for a CmpInst, fold the result or return null.
AnalysisManager< Function > FunctionAnalysisManager
Convenience typedef for the Function analysis manager.
LLVM_ABI bool isGuaranteedNotToBePoison(const Value *V, AssumptionCache *AC=nullptr, const Instruction *CtxI=nullptr, const DominatorTree *DT=nullptr, unsigned Depth=0)
Returns true if V cannot be poison, but may be undef.
LLVM_ABI bool isKnownNonNegative(const Value *V, const SimplifyQuery &SQ, unsigned Depth=0)
Returns true if the give value is known to be non-negative.
LLVM_ABI bool isTriviallyVectorizable(Intrinsic::ID ID)
Identify if the intrinsic is trivially vectorizable.
LLVM_ABI Intrinsic::ID getMinMaxReductionIntrinsicID(Intrinsic::ID IID)
Returns the llvm.vector.reduce min/max intrinsic that corresponds to the intrinsic op.
LLVM_ABI ConstantRange computeConstantRange(const Value *V, bool ForSigned, const SimplifyQuery &SQ, unsigned Depth=0)
Determine the possible constant range of an integer or vector of integer value.
void swap(llvm::BitVector &LHS, llvm::BitVector &RHS)
Implement std::swap in terms of BitVector swap.
Definition BitVector.h:880
#define N
LLVM_ABI AAMDNodes adjustForAccess(unsigned AccessSize)
Create a new AAMDNode for accessing AccessSize bytes of this AAMDNode.
This struct is a compact representation of a valid (non-zero power of two) alignment.
Definition Alignment.h:39
unsigned countMaxActiveBits() const
Returns the maximum number of bits needed to represent all possible unsigned values with these known ...
Definition KnownBits.h:310
unsigned countMinLeadingZeros() const
Returns the minimum number of leading zero bits.
Definition KnownBits.h:262
APInt getMaxValue() const
Return the maximal unsigned value possible given these KnownBits.
Definition KnownBits.h:146
const DataLayout & DL
const Instruction * CxtI
const DominatorTree * DT
SimplifyQuery getWithInstruction(const Instruction *I) const
AssumptionCache * AC