162#define LV_NAME "loop-vectorize"
163#define DEBUG_TYPE LV_NAME
169STATISTIC(LoopsVectorized,
"Number of loops vectorized");
170STATISTIC(LoopsAnalyzed,
"Number of loops analyzed for vectorization");
171STATISTIC(LoopsEpilogueVectorized,
"Number of epilogues vectorized");
172STATISTIC(LoopsEarlyExitVectorized,
"Number of early exit loops vectorized");
176 cl::desc(
"Enable vectorization of epilogue loops."));
180 cl::desc(
"When epilogue vectorization is enabled, and a value greater than "
181 "1 is specified, forces the given VF for all applicable epilogue "
185 "epilogue-vectorization-minimum-VF",
cl::Hidden,
186 cl::desc(
"Only loops with vectorization factor equal to or larger than "
187 "the specified value are considered for epilogue vectorization."));
193 cl::desc(
"Loops with a constant trip count that is smaller than this "
194 "value are vectorized only if no scalar iteration overheads "
199 cl::desc(
"The maximum allowed number of runtime memory checks"));
205 cl::desc(
"Assume the target supports masked memory operations (used for "
222 "prefer-predicate-over-epilogue",
225 cl::desc(
"Tail-folding and predication preferences over creating a scalar "
229 "Don't tail-predicate loops, create scalar epilogue"),
231 "predicate-else-scalar-epilogue",
232 "prefer tail-folding, create scalar epilogue if tail "
235 "predicate-dont-vectorize",
236 "prefers tail-folding, don't attempt vectorization if "
237 "tail-folding fails.")));
240 "force-tail-folding-style",
cl::desc(
"Force the tail folding style"),
246 "Create lane mask for data only, using active.lane.mask intrinsic"),
248 "data-without-lane-mask",
249 "Create lane mask with compare/stepvector"),
251 "Create lane mask using active.lane.mask intrinsic, and use "
252 "it for both data and control flow"),
254 "Use predicated EVL instructions for tail folding. If EVL "
255 "is unsupported, fallback to data-without-lane-mask.")));
259 cl::desc(
"Enable use of wide lane masks when used for control flow in "
260 "tail-folded loops"));
264 cl::desc(
"Maximize bandwidth when selecting vectorization factor which "
265 "will be determined by the smallest type in loop."));
269 cl::desc(
"Enable vectorization on interleaved memory accesses in a loop"));
275 cl::desc(
"Enable vectorization on masked interleaved memory accesses in a loop"));
279 cl::desc(
"A flag that overrides the target's number of scalar registers."));
283 cl::desc(
"A flag that overrides the target's number of vector registers."));
287 cl::desc(
"A flag that overrides the target's max interleave factor for "
292 cl::desc(
"A flag that overrides the target's max interleave factor for "
293 "vectorized loops."));
297 cl::desc(
"A flag that overrides the target's expected cost for "
298 "an instruction to a single constant value. Mostly "
299 "useful for getting consistent testing."));
304 "Pretend that scalable vectors are supported, even if the target does "
305 "not support them. This flag should only be used for testing."));
310 "The cost of a loop that is considered 'small' by the interleaver."));
314 cl::desc(
"Enable the use of the block frequency analysis to access PGO "
315 "heuristics minimizing code growth in cold regions and being more "
316 "aggressive in hot regions."));
322 "Enable runtime interleaving until load/store ports are saturated"));
327 cl::desc(
"Max number of stores to be predicated behind an if."));
331 cl::desc(
"Count the induction variable only once when interleaving"));
335 cl::desc(
"Enable if predication of stores during vectorization."));
339 cl::desc(
"The maximum interleave count to use when interleaving a scalar "
340 "reduction in a nested loop."));
345 cl::desc(
"Prefer in-loop vector reductions, "
346 "overriding the targets preference."));
350 cl::desc(
"Enable the vectorisation of loops with in-order (strict) "
356 "Prefer predicating a reduction operation over an after loop select."));
360 cl::desc(
"Enable VPlan-native vectorization path with "
361 "support for outer loop vectorization."));
365#ifdef EXPENSIVE_CHECKS
371 cl::desc(
"Verify VPlans after VPlan transforms."));
373#if !defined(NDEBUG) || defined(LLVM_ENABLE_DUMP)
376 cl::desc(
"Print VPlans after all VPlan transformations."));
380 cl::desc(
"Print VPlans after specified VPlan transformations (regexp)."));
384 cl::desc(
"Limit VPlan printing to vector loop region in "
385 "`-vplan-print-after*` if the plan has one."));
395 "Build VPlan for every supported loop nest in the function and bail "
396 "out right after the build (stress test the VPlan H-CFG construction "
397 "in the VPlan-native vectorization path)."));
401 cl::desc(
"Enable loop interleaving in Loop vectorization passes"));
404 cl::desc(
"Run the Loop vectorization passes"));
407 "force-widen-divrem-via-safe-divisor",
cl::Hidden,
409 "Override cost based safe divisor widening for div/rem instructions"));
412 "vectorizer-maximize-bandwidth-for-vector-calls",
cl::init(
true),
414 cl::desc(
"Try wider VFs if they enable the use of vector variants"));
419 "Enable vectorization of early exit loops with uncountable exits."));
423 cl::desc(
"Discard VFs if their register pressure is too high."));
436 return DL.getTypeAllocSizeInBits(Ty) !=
DL.getTypeSizeInBits(Ty);
471static std::optional<ElementCount>
473 bool CanUseConstantMax =
true) {
483 if (!CanUseConstantMax)
495class GeneratedRTChecks;
527 VF(VecWidth),
UF(UnrollFactor),
Builder(
PSE.getSE()->getContext()),
530 Plan.getVectorLoopRegion()->getSinglePredecessor())) {}
636 "A high UF for the epilogue loop is likely not beneficial.");
656 UnrollFactor, CM, Checks,
Plan),
685 EPI.MainLoopVF,
EPI.MainLoopUF) {}
723 EPI.EpilogueVF,
EPI.EpilogueUF) {}
740 if (
I->getDebugLoc() !=
Empty)
741 return I->getDebugLoc();
744 if (Instruction *OpInst = dyn_cast<Instruction>(Op))
745 if (OpInst->getDebugLoc() != Empty)
746 return OpInst->getDebugLoc();
749 return I->getDebugLoc();
758 dbgs() <<
"LV: " << Prefix << DebugMsg;
774static OptimizationRemarkAnalysis
780 if (
I &&
I->getDebugLoc())
781 DL =
I->getDebugLoc();
785 return OptimizationRemarkAnalysis(
PassName, RemarkName,
DL, CodeRegion);
793 assert(Ty->isIntegerTy() &&
"Expected an integer step");
801 return B.CreateElementCount(Ty, VFxStep);
806 return B.CreateElementCount(Ty, VF);
817 <<
"loop not vectorized: " << OREMsg);
840 "Vectorizing: ", TheLoop->
isInnermost() ?
"innermost loop" :
"outer loop",
846 <<
"vectorized " << LoopType <<
"loop (vectorization width: "
848 <<
", interleaved count: " <<
ore::NV(
"InterleaveCount", IC) <<
")";
905 initializeVScaleForTuning();
916 bool runtimeChecksRequired();
935 std::pair<unsigned, unsigned> getSmallestAndWidestTypes();
954 void collectValuesToIgnore();
957 void collectElementTypesForWidening();
961 void collectInLoopReductions();
982 "Profitable to scalarize relevant only for VF > 1.");
985 "cost-model should not be used for outer loops (in VPlan-native path)");
987 auto Scalars = InstsToScalarize.find(VF);
988 assert(Scalars != InstsToScalarize.end() &&
989 "VF not yet analyzed for scalarization profitability");
990 return Scalars->second.contains(
I);
997 "cost-model should not be used for outer loops (in VPlan-native path)");
1007 auto UniformsPerVF = Uniforms.find(VF);
1008 assert(UniformsPerVF != Uniforms.end() &&
1009 "VF not yet analyzed for uniformity");
1010 return UniformsPerVF->second.count(
I);
1017 "cost-model should not be used for outer loops (in VPlan-native path)");
1021 auto ScalarsPerVF = Scalars.find(VF);
1022 assert(ScalarsPerVF != Scalars.end() &&
1023 "Scalar values are not calculated for VF");
1024 return ScalarsPerVF->second.count(
I);
1032 I->getType()->getScalarSizeInBits() < MinBWs.lookup(
I))
1034 return VF.
isVector() && MinBWs.contains(
I) &&
1056 WideningDecisions[{
I, VF}] = {W,
Cost};
1075 for (
unsigned Idx = 0; Idx < Grp->
getFactor(); ++Idx) {
1078 WideningDecisions[{
I, VF}] = {W, InsertPosCost};
1080 WideningDecisions[{
I, VF}] = {W, OtherMemberCost};
1092 "cost-model should not be used for outer loops (in VPlan-native path)");
1094 std::pair<Instruction *, ElementCount> InstOnVF(
I, VF);
1095 auto Itr = WideningDecisions.find(InstOnVF);
1096 if (Itr == WideningDecisions.end())
1098 return Itr->second.first;
1105 std::pair<Instruction *, ElementCount> InstOnVF(
I, VF);
1106 assert(WideningDecisions.contains(InstOnVF) &&
1107 "The cost is not calculated");
1108 return WideningDecisions[InstOnVF].second;
1121 std::optional<unsigned> MaskPos,
1124 CallWideningDecisions[{CI, VF}] = {Kind, Variant, IID, MaskPos,
Cost};
1130 auto I = CallWideningDecisions.find({CI, VF});
1131 if (
I == CallWideningDecisions.end())
1154 Value *
Op = Trunc->getOperand(0);
1155 if (
Op !=
Legal->getPrimaryInduction() &&
TTI.isTruncateFree(SrcTy, DestTy))
1159 return Legal->isInductionPhi(
Op);
1175 if (VF.
isScalar() || Uniforms.contains(VF))
1178 collectLoopUniforms(VF);
1180 collectLoopScalars(VF);
1188 return Legal->isConsecutivePtr(DataType, Ptr) &&
1197 return Legal->isConsecutivePtr(DataType, Ptr) &&
1213 return (
LI &&
TTI.isLegalMaskedGather(Ty,
Align)) ||
1220 return (
all_of(
Legal->getReductionVars(), [&](
auto &Reduction) ->
bool {
1221 const RecurrenceDescriptor &RdxDesc = Reduction.second;
1222 return TTI.isLegalToVectorizeReduction(RdxDesc, VF);
1233 return ScalarCost < SafeDivisorCost;
1276 std::pair<InstructionCost, InstructionCost>
1303 LLVM_DEBUG(
dbgs() <<
"LV: Loop does not require scalar epilogue\n");
1310 LLVM_DEBUG(
dbgs() <<
"LV: Loop requires scalar epilogue: not exiting "
1311 "from latch block\n");
1316 "interleaved group requires scalar epilogue\n");
1319 LLVM_DEBUG(
dbgs() <<
"LV: Loop does not require scalar epilogue\n");
1337 return ChosenTailFoldingStyle;
1345 "Tail folding must not be selected yet.");
1346 if (!
Legal->canFoldTailByMasking()) {
1352 ChosenTailFoldingStyle =
TTI.getPreferredTailFoldingStyle();
1360 bool EVLIsLegal = UserIC <= 1 && IsScalableVF &&
1373 dbgs() <<
"LV: Preference for VP intrinsics indicated. Will "
1374 "not try to generate VP Intrinsics "
1376 ?
"since interleave count specified is greater than 1.\n"
1377 :
"due to non-interleaving reasons.\n"));
1418 return InLoopReductions.contains(Phi);
1423 return InLoopReductions;
1441 TTI.preferPredicatedReductionSelect();
1456 WideningDecisions.clear();
1457 CallWideningDecisions.clear();
1475 bool isEpilogueVectorizationProfitable(
const ElementCount VF,
1476 const unsigned IC)
const;
1484 std::optional<InstructionCost> getReductionPatternCost(
Instruction *
I,
1486 Type *VectorTy)
const;
1490 bool shouldConsiderInvariant(
Value *
Op);
1496 unsigned NumPredStores = 0;
1500 std::optional<unsigned> VScaleForTuning;
1505 void initializeVScaleForTuning() {
1510 auto Max = Attr.getVScaleRangeMax();
1511 if (Max && Min == Max) {
1512 VScaleForTuning = Max;
1525 FixedScalableVFPair computeFeasibleMaxVF(
unsigned MaxTripCount,
1526 ElementCount UserVF,
unsigned UserIC,
1527 bool FoldTailByMasking);
1531 ElementCount clampVFByMaxTripCount(ElementCount VF,
unsigned MaxTripCount,
1533 bool FoldTailByMasking)
const;
1538 ElementCount getMaximizedVFForTarget(
unsigned MaxTripCount,
1539 unsigned SmallestType,
1540 unsigned WidestType,
1541 ElementCount MaxSafeVF,
unsigned UserIC,
1542 bool FoldTailByMasking);
1546 bool isScalableVectorizationAllowed();
1550 ElementCount getMaxLegalScalableVF(
unsigned MaxSafeElements);
1556 InstructionCost getMemInstScalarizationCost(Instruction *
I, ElementCount VF);
1577 ElementCount VF)
const;
1582 MapVector<Instruction *, uint64_t> MinBWs;
1587 using ScalarCostsTy = MapVector<Instruction *, InstructionCost>;
1591 DenseMap<ElementCount, SmallPtrSet<BasicBlock *, 4>>
1592 PredicatedBBsAfterVectorization;
1607 std::optional<bool> IsScalableVectorizationAllowed;
1613 std::optional<unsigned> MaxSafeElements;
1619 MapVector<ElementCount, ScalarCostsTy> InstsToScalarize;
1623 DenseMap<ElementCount, SmallPtrSet<Instruction *, 4>> Uniforms;
1627 DenseMap<ElementCount, SmallPtrSet<Instruction *, 4>> Scalars;
1631 DenseMap<ElementCount, SmallPtrSet<Instruction *, 4>> ForcedScalars;
1634 SmallPtrSet<PHINode *, 4> InLoopReductions;
1639 DenseMap<Instruction *, Instruction *> InLoopReductionImmediateChains;
1647 ScalarCostsTy &ScalarCosts,
1659 void collectLoopUniforms(ElementCount VF);
1668 void collectLoopScalars(ElementCount VF);
1672 using DecisionList = DenseMap<std::pair<Instruction *, ElementCount>,
1673 std::pair<InstWidening, InstructionCost>>;
1675 DecisionList WideningDecisions;
1677 using CallDecisionList =
1678 DenseMap<std::pair<CallInst *, ElementCount>, CallWideningDecision>;
1680 CallDecisionList CallWideningDecisions;
1684 bool needsExtract(
Value *V, ElementCount VF)
const {
1688 getWideningDecision(
I, VF) == CM_Scalarize ||
1699 return !Scalars.
contains(VF) || !isScalarAfterVectorization(
I, VF);
1703 SmallVector<Value *, 4> filterExtractingOperands(Instruction::op_range
Ops,
1704 ElementCount VF)
const {
1706 SmallPtrSet<const Value *, 4> UniqueOperands;
1707 SmallVector<Value *, 4> Res;
1710 !needsExtract(
Op, VF))
1796class GeneratedRTChecks {
1802 Value *SCEVCheckCond =
nullptr;
1809 Value *MemRuntimeCheckCond =
nullptr;
1818 bool CostTooHigh =
false;
1820 Loop *OuterLoop =
nullptr;
1831 : DT(DT), LI(LI),
TTI(
TTI),
1832 SCEVExp(*PSE.
getSE(),
"scev.check",
false),
1833 MemCheckExp(*PSE.
getSE(),
"scev.check",
false),
1841 void create(Loop *L,
const LoopAccessInfo &LAI,
1842 const SCEVPredicate &UnionPred, ElementCount VF,
unsigned IC,
1843 OptimizationRemarkEmitter &ORE) {
1856 return OptimizationRemarkAnalysisAliasing(
1857 DEBUG_TYPE,
"TooManyMemoryRuntimeChecks",
L->getStartLoc(),
1859 <<
"loop not vectorized: too many memory checks needed";
1874 nullptr,
"vector.scevcheck");
1881 SCEVExpanderCleaner SCEVCleaner(SCEVExp);
1882 SCEVCleaner.cleanup();
1887 if (RtPtrChecking.Need) {
1888 auto *Pred = SCEVCheckBlock ? SCEVCheckBlock : Preheader;
1889 MemCheckBlock =
SplitBlock(Pred, Pred->getTerminator(), DT, LI,
nullptr,
1892 auto DiffChecks = RtPtrChecking.getDiffChecks();
1894 Value *RuntimeVF =
nullptr;
1897 [VF, &RuntimeVF](IRBuilderBase &
B,
unsigned Bits) {
1899 RuntimeVF = getRuntimeVF(B, B.getIntNTy(Bits), VF);
1905 MemCheckBlock->
getTerminator(), L, RtPtrChecking.getChecks(),
1908 assert(MemRuntimeCheckCond &&
1909 "no RT checks generated although RtPtrChecking "
1910 "claimed checks are required");
1915 if (!MemCheckBlock && !SCEVCheckBlock)
1925 if (SCEVCheckBlock) {
1928 auto *UI =
new UnreachableInst(Preheader->
getContext(), SCEVCheckBlock);
1932 if (MemCheckBlock) {
1935 auto *UI =
new UnreachableInst(Preheader->
getContext(), MemCheckBlock);
1941 if (MemCheckBlock) {
1945 if (SCEVCheckBlock) {
1951 OuterLoop =
L->getParentLoop();
1955 if (SCEVCheckBlock || MemCheckBlock)
1967 for (Instruction &
I : *SCEVCheckBlock) {
1968 if (SCEVCheckBlock->getTerminator() == &
I)
1974 if (MemCheckBlock) {
1976 for (Instruction &
I : *MemCheckBlock) {
1977 if (MemCheckBlock->getTerminator() == &
I)
1989 ScalarEvolution *SE = MemCheckExp.
getSE();
1994 const SCEV *
Cond = SE->
getSCEV(MemRuntimeCheckCond);
1999 unsigned BestTripCount = 2;
2003 PSE, OuterLoop,
false))
2004 if (EstimatedTC->isFixed())
2005 BestTripCount = EstimatedTC->getFixedValue();
2010 NewMemCheckCost = std::max(NewMemCheckCost.
getValue(),
2011 (InstructionCost::CostType)1);
2013 if (BestTripCount > 1)
2015 <<
"We expect runtime memory checks to be hoisted "
2016 <<
"out of the outer loop. Cost reduced from "
2017 << MemCheckCost <<
" to " << NewMemCheckCost <<
'\n');
2019 MemCheckCost = NewMemCheckCost;
2023 RTCheckCost += MemCheckCost;
2026 if (SCEVCheckBlock || MemCheckBlock)
2027 LLVM_DEBUG(
dbgs() <<
"Total cost of runtime checks: " << RTCheckCost
2035 ~GeneratedRTChecks() {
2036 SCEVExpanderCleaner SCEVCleaner(SCEVExp);
2037 SCEVExpanderCleaner MemCheckCleaner(MemCheckExp);
2038 bool SCEVChecksUsed = !SCEVCheckBlock || !
pred_empty(SCEVCheckBlock);
2039 bool MemChecksUsed = !MemCheckBlock || !
pred_empty(MemCheckBlock);
2041 SCEVCleaner.markResultUsed();
2043 if (MemChecksUsed) {
2044 MemCheckCleaner.markResultUsed();
2046 auto &SE = *MemCheckExp.
getSE();
2053 I.eraseFromParent();
2056 MemCheckCleaner.cleanup();
2057 SCEVCleaner.cleanup();
2059 if (!SCEVChecksUsed)
2060 SCEVCheckBlock->eraseFromParent();
2062 MemCheckBlock->eraseFromParent();
2067 std::pair<Value *, BasicBlock *> getSCEVChecks()
const {
2068 using namespace llvm::PatternMatch;
2070 return {
nullptr,
nullptr};
2072 return {SCEVCheckCond, SCEVCheckBlock};
2077 std::pair<Value *, BasicBlock *> getMemRuntimeChecks()
const {
2078 using namespace llvm::PatternMatch;
2079 if (MemRuntimeCheckCond &&
match(MemRuntimeCheckCond,
m_ZeroInt()))
2080 return {
nullptr,
nullptr};
2081 return {MemRuntimeCheckCond, MemCheckBlock};
2085 bool hasChecks()
const {
2086 return getSCEVChecks().first || getMemRuntimeChecks().first;
2127 LLVM_DEBUG(
dbgs() <<
"LV: Loop hints prevent outer loop vectorization.\n");
2133 LLVM_DEBUG(
dbgs() <<
"LV: Not vectorizing: Interleave is not supported for "
2163 for (
Loop *InnerL : L)
2182 ?
B.CreateSExtOrTrunc(Index, StepTy)
2183 :
B.CreateCast(Instruction::SIToFP, Index, StepTy);
2184 if (CastedIndex != Index) {
2186 Index = CastedIndex;
2196 assert(
X->getType() ==
Y->getType() &&
"Types don't match!");
2201 return B.CreateAdd(
X,
Y);
2207 assert(
X->getType()->getScalarType() ==
Y->getType() &&
2208 "Types don't match!");
2216 return B.CreateMul(
X,
Y);
2219 switch (InductionKind) {
2222 "Vector indices not supported for integer inductions yet");
2224 "Index type does not match StartValue type");
2226 return B.CreateSub(StartValue, Index);
2231 return B.CreatePtrAdd(StartValue,
CreateMul(Index, Step));
2234 "Vector indices not supported for FP inductions yet");
2237 (InductionBinOp->
getOpcode() == Instruction::FAdd ||
2238 InductionBinOp->
getOpcode() == Instruction::FSub) &&
2239 "Original bin op should be defined for FP induction");
2241 Value *MulExp =
B.CreateFMul(Step, Index);
2242 return B.CreateBinOp(InductionBinOp->
getOpcode(), StartValue, MulExp,
2253 if (std::optional<unsigned> MaxVScale =
TTI.getMaxVScale())
2256 if (
F.hasFnAttribute(Attribute::VScaleRange))
2257 return F.getFnAttribute(Attribute::VScaleRange).getVScaleRangeMax();
2259 return std::nullopt;
2268 ElementCount VF, std::optional<unsigned> UF = std::nullopt) {
2270 unsigned MaxUF = UF ? *UF : Cost->TTI.getMaxInterleaveFactor(VF);
2272 IntegerType *IdxTy = Cost->Legal->getWidestInductionType();
2278 if (
unsigned TC = Cost->PSE.getSmallConstantMaxTripCount()) {
2281 std::optional<unsigned> MaxVScale =
2285 MaxVF *= *MaxVScale;
2288 return (MaxUIntTripCount - TC).ugt(MaxVF * MaxUF);
2302 return TTI.enableMaskedInterleavedAccessVectorization();
2315 PreVectorPH = CheckVPIRBB;
2325 "must have incoming values for all operands");
2326 R.addOperand(R.getOperand(NumPredecessors - 2));
2352 auto CreateStep = [&]() ->
Value * {
2359 if (!
VF.isScalable())
2361 return Builder.CreateBinaryIntrinsic(
2367 Value *Step = CreateStep();
2376 CheckMinIters =
Builder.getTrue();
2378 TripCountSCEV, SE.
getSCEV(Step))) {
2381 CheckMinIters =
Builder.CreateICmp(
P,
Count, Step,
"min.iters.check");
2385 return CheckMinIters;
2394 VPlan *Plan =
nullptr) {
2398 auto IP = IRVPBB->
begin();
2400 R.moveBefore(*IRVPBB, IP);
2404 R.moveBefore(*IRVPBB, IRVPBB->
end());
2413 assert(VectorPH &&
"Invalid loop structure");
2415 Cost->requiresScalarEpilogue(
VF.isVector())) &&
2416 "loops not exiting via the latch without required epilogue?");
2423 Twine(Prefix) +
"scalar.ph");
2429 const SCEV2ValueTy &ExpandedSCEVs) {
2430 const SCEV *Step =
ID.getStep();
2432 return C->getValue();
2434 return U->getValue();
2435 Value *V = ExpandedSCEVs.lookup(Step);
2436 assert(V &&
"SCEV must be expanded at this point");
2446 auto *Cmp = L->getLatchCmpInst();
2448 InstsToIgnore.
insert(Cmp);
2449 for (
const auto &KV : IL) {
2458 [&](
const User *U) { return U == IV || U == Cmp; }))
2459 InstsToIgnore.
insert(IVInst);
2471struct CSEDenseMapInfo {
2482 return DenseMapInfo<Instruction *>::getTombstoneKey();
2485 static unsigned getHashValue(
const Instruction *
I) {
2486 assert(canHandle(
I) &&
"Unknown instruction!");
2491 static bool isEqual(
const Instruction *
LHS,
const Instruction *
RHS) {
2492 if (
LHS == getEmptyKey() ||
RHS == getEmptyKey() ||
2493 LHS == getTombstoneKey() ||
RHS == getTombstoneKey())
2495 return LHS->isIdenticalTo(
RHS);
2507 if (!CSEDenseMapInfo::canHandle(&In))
2513 In.replaceAllUsesWith(V);
2514 In.eraseFromParent();
2527 std::optional<unsigned> VScale) {
2531 EstimatedVF *= *VScale;
2532 assert(EstimatedVF >= 1 &&
"Estimated VF shouldn't be less than 1");
2550 for (
auto &ArgOp : CI->
args())
2561 return ScalarCallCost;
2574 assert(
ID &&
"Expected intrinsic call!");
2578 FMF = FPMO->getFastMathFlags();
2584 std::back_inserter(ParamTys),
2585 [&](
Type *Ty) { return maybeVectorizeType(Ty, VF); });
2590 return TTI.getIntrinsicInstrCost(CostAttrs,
CostKind);
2604 BasicBlock *HeaderBB = State.CFG.VPBB2IRBB[HeaderVPBB];
2619 Builder.SetInsertPoint(NewPhi);
2621 NewPhi->
addIncoming(State.get(Inc), State.CFG.VPBB2IRBB[VPBB]);
2626void LoopVectorizationCostModel::collectLoopScalars(
ElementCount VF) {
2631 "This function should not be visited twice for the same VF");
2654 InstWidening WideningDecision = getWideningDecision(MemAccess, VF);
2655 assert(WideningDecision != CM_Unknown &&
2656 "Widening decision should be ready at this moment");
2658 if (Ptr == Store->getValueOperand())
2659 return WideningDecision == CM_Scalarize;
2661 "Ptr is neither a value or pointer operand");
2662 return WideningDecision != CM_GatherScatter;
2667 auto IsLoopVaryingGEP = [&](
Value *
V) {
2678 if (!IsLoopVaryingGEP(Ptr))
2690 if (IsScalarUse(MemAccess, Ptr) &&
2694 PossibleNonScalarPtrs.
insert(
I);
2710 for (
auto *BB : TheLoop->
blocks())
2711 for (
auto &
I : *BB) {
2713 EvaluatePtrUse(Load,
Load->getPointerOperand());
2715 EvaluatePtrUse(Store,
Store->getPointerOperand());
2716 EvaluatePtrUse(Store,
Store->getValueOperand());
2719 for (
auto *
I : ScalarPtrs)
2720 if (!PossibleNonScalarPtrs.
count(
I)) {
2728 auto ForcedScalar = ForcedScalars.
find(VF);
2729 if (ForcedScalar != ForcedScalars.
end())
2730 for (
auto *
I : ForcedScalar->second) {
2731 LLVM_DEBUG(
dbgs() <<
"LV: Found (forced) scalar instruction: " << *
I <<
"\n");
2740 while (Idx != Worklist.
size()) {
2742 if (!IsLoopVaryingGEP(Dst->getOperand(0)))
2746 auto *J = cast<Instruction>(U);
2747 return !TheLoop->contains(J) || Worklist.count(J) ||
2748 ((isa<LoadInst>(J) || isa<StoreInst>(J)) &&
2749 IsScalarUse(J, Src));
2752 LLVM_DEBUG(
dbgs() <<
"LV: Found scalar instruction: " << *Src <<
"\n");
2758 for (
const auto &Induction :
Legal->getInductionVars()) {
2759 auto *Ind = Induction.first;
2764 if (Ind ==
Legal->getPrimaryInduction() && foldTailByMasking())
2769 auto IsDirectLoadStoreFromPtrIndvar = [&](
Instruction *Indvar,
2771 return Induction.second.getKind() ==
2779 bool ScalarInd =
all_of(Ind->users(), [&](User *U) ->
bool {
2780 auto *I = cast<Instruction>(U);
2781 return I == IndUpdate || !TheLoop->contains(I) || Worklist.count(I) ||
2782 IsDirectLoadStoreFromPtrIndvar(Ind, I);
2791 if (IndUpdatePhi &&
Legal->isFixedOrderRecurrence(IndUpdatePhi))
2796 bool ScalarIndUpdate =
all_of(IndUpdate->users(), [&](User *U) ->
bool {
2797 auto *I = cast<Instruction>(U);
2798 return I == Ind || !TheLoop->contains(I) || Worklist.count(I) ||
2799 IsDirectLoadStoreFromPtrIndvar(IndUpdate, I);
2801 if (!ScalarIndUpdate)
2806 Worklist.
insert(IndUpdate);
2807 LLVM_DEBUG(
dbgs() <<
"LV: Found scalar instruction: " << *Ind <<
"\n");
2808 LLVM_DEBUG(
dbgs() <<
"LV: Found scalar instruction: " << *IndUpdate
2822 switch(
I->getOpcode()) {
2825 case Instruction::Call:
2829 case Instruction::Load:
2830 case Instruction::Store: {
2839 TTI.isLegalMaskedGather(VTy, Alignment))
2841 TTI.isLegalMaskedScatter(VTy, Alignment));
2843 case Instruction::UDiv:
2844 case Instruction::SDiv:
2845 case Instruction::SRem:
2846 case Instruction::URem: {
2867 if (
Legal->blockNeedsPredication(
I->getParent()))
2879 switch(
I->getOpcode()) {
2882 "instruction should have been considered by earlier checks");
2883 case Instruction::Call:
2887 "should have returned earlier for calls not needing a mask");
2889 case Instruction::Load:
2892 case Instruction::Store: {
2900 case Instruction::UDiv:
2901 case Instruction::URem:
2903 return !
Legal->isInvariant(
I->getOperand(1));
2904 case Instruction::SDiv:
2905 case Instruction::SRem:
2918 if (!
Legal->blockNeedsPredication(BB))
2925 "Header has smaller block freq than dominated BB?");
2926 return std::round((
double)HeaderFreq /
BBFreq);
2929std::pair<InstructionCost, InstructionCost>
2932 assert(
I->getOpcode() == Instruction::UDiv ||
2933 I->getOpcode() == Instruction::SDiv ||
2934 I->getOpcode() == Instruction::SRem ||
2935 I->getOpcode() == Instruction::URem);
2944 ScalarizationCost = 0;
2950 ScalarizationCost +=
2954 ScalarizationCost +=
2956 TTI.getArithmeticInstrCost(
I->getOpcode(),
I->getType(),
CostKind);
2974 TTI.getCmpSelInstrCost(Instruction::Select, VecTy,
2979 SafeDivisorCost +=
TTI.getArithmeticInstrCost(
2981 {TargetTransformInfo::OK_AnyValue, TargetTransformInfo::OP_None},
2982 {TargetTransformInfo::OK_AnyValue, TargetTransformInfo::OP_None},
2984 return {ScalarizationCost, SafeDivisorCost};
2991 "Decision should not be set yet.");
2993 assert(Group &&
"Must have a group.");
2994 unsigned InterleaveFactor = Group->getFactor();
2998 auto &
DL =
I->getDataLayout();
3010 bool ScalarNI =
DL.isNonIntegralPointerType(ScalarTy);
3011 for (
unsigned Idx = 0; Idx < InterleaveFactor; Idx++) {
3016 bool MemberNI =
DL.isNonIntegralPointerType(MemberTy);
3018 if (MemberNI != ScalarNI)
3021 if (MemberNI && ScalarNI &&
3022 ScalarTy->getPointerAddressSpace() !=
3023 MemberTy->getPointerAddressSpace())
3032 bool PredicatedAccessRequiresMasking =
3034 Legal->isMaskRequired(
I);
3035 bool LoadAccessWithGapsRequiresEpilogMasking =
3038 bool StoreAccessWithGapsRequiresMasking =
3040 if (!PredicatedAccessRequiresMasking &&
3041 !LoadAccessWithGapsRequiresEpilogMasking &&
3042 !StoreAccessWithGapsRequiresMasking)
3049 "Masked interleave-groups for predicated accesses are not enabled.");
3051 if (Group->isReverse())
3055 bool NeedsMaskForGaps = LoadAccessWithGapsRequiresEpilogMasking ||
3056 StoreAccessWithGapsRequiresMasking;
3064 :
TTI.isLegalMaskedStore(Ty, Alignment, AS);
3076 if (!
Legal->isConsecutivePtr(ScalarTy, Ptr))
3086 auto &
DL =
I->getDataLayout();
3093void LoopVectorizationCostModel::collectLoopUniforms(
ElementCount VF) {
3100 "This function should not be visited twice for the same VF");
3104 Uniforms[VF].
clear();
3112 auto IsOutOfScope = [&](
Value *V) ->
bool {
3124 auto AddToWorklistIfAllowed = [&](
Instruction *
I) ->
void {
3125 if (IsOutOfScope(
I)) {
3130 if (isPredicatedInst(
I)) {
3132 dbgs() <<
"LV: Found not uniform due to requiring predication: " << *
I
3136 LLVM_DEBUG(
dbgs() <<
"LV: Found uniform instruction: " << *
I <<
"\n");
3146 for (BasicBlock *
E : Exiting) {
3150 if (Cmp && TheLoop->
contains(Cmp) &&
Cmp->hasOneUse())
3151 AddToWorklistIfAllowed(Cmp);
3160 if (PrevVF.isVector()) {
3161 auto Iter = Uniforms.
find(PrevVF);
3162 if (Iter != Uniforms.
end() && !Iter->second.contains(
I))
3165 if (!
Legal->isUniformMemOp(*
I, VF))
3175 auto IsUniformDecision = [&](
Instruction *
I, ElementCount VF) {
3176 InstWidening WideningDecision = getWideningDecision(
I, VF);
3177 assert(WideningDecision != CM_Unknown &&
3178 "Widening decision should be ready at this moment");
3180 if (IsUniformMemOpUse(
I))
3183 return (WideningDecision == CM_Widen ||
3184 WideningDecision == CM_Widen_Reverse ||
3185 WideningDecision == CM_Interleave);
3195 (IsUniformDecision(
I, VF) ||
Legal->isInvariant(Ptr));
3203 SetVector<Value *> HasUniformUse;
3207 for (
auto *BB : TheLoop->
blocks())
3208 for (
auto &
I : *BB) {
3210 switch (
II->getIntrinsicID()) {
3211 case Intrinsic::sideeffect:
3212 case Intrinsic::experimental_noalias_scope_decl:
3213 case Intrinsic::assume:
3214 case Intrinsic::lifetime_start:
3215 case Intrinsic::lifetime_end:
3217 AddToWorklistIfAllowed(&
I);
3225 if (IsOutOfScope(EVI->getAggregateOperand())) {
3226 AddToWorklistIfAllowed(EVI);
3232 "Expected aggregate value to be call return value");
3245 if (IsUniformMemOpUse(&
I))
3246 AddToWorklistIfAllowed(&
I);
3248 if (IsVectorizedMemAccessUse(&
I, Ptr))
3249 HasUniformUse.
insert(Ptr);
3255 for (
auto *V : HasUniformUse) {
3256 if (IsOutOfScope(V))
3259 bool UsersAreMemAccesses =
all_of(
I->users(), [&](User *U) ->
bool {
3260 auto *UI = cast<Instruction>(U);
3261 return TheLoop->contains(UI) && IsVectorizedMemAccessUse(UI, V);
3263 if (UsersAreMemAccesses)
3264 AddToWorklistIfAllowed(
I);
3271 while (Idx != Worklist.
size()) {
3274 for (
auto *OV :
I->operand_values()) {
3276 if (IsOutOfScope(OV))
3281 if (
OP &&
Legal->isFixedOrderRecurrence(
OP))
3287 auto *J = cast<Instruction>(U);
3288 return Worklist.count(J) || IsVectorizedMemAccessUse(J, OI);
3290 AddToWorklistIfAllowed(OI);
3301 for (
const auto &Induction :
Legal->getInductionVars()) {
3302 auto *Ind = Induction.first;
3307 bool UniformInd =
all_of(Ind->users(), [&](User *U) ->
bool {
3308 auto *I = cast<Instruction>(U);
3309 return I == IndUpdate || !TheLoop->contains(I) || Worklist.count(I) ||
3310 IsVectorizedMemAccessUse(I, Ind);
3317 bool UniformIndUpdate =
all_of(IndUpdate->users(), [&](User *U) ->
bool {
3318 auto *I = cast<Instruction>(U);
3319 return I == Ind || Worklist.count(I) ||
3320 IsVectorizedMemAccessUse(I, IndUpdate);
3322 if (!UniformIndUpdate)
3326 AddToWorklistIfAllowed(Ind);
3327 AddToWorklistIfAllowed(IndUpdate);
3336 if (
Legal->getRuntimePointerChecking()->Need) {
3338 "runtime pointer checks needed. Enable vectorization of this "
3339 "loop with '#pragma clang loop vectorize(enable)' when "
3340 "compiling with -Os/-Oz",
3341 "CantVersionLoopWithOptForSize",
ORE,
TheLoop);
3345 if (!
PSE.getPredicate().isAlwaysTrue()) {
3347 "runtime SCEV checks needed. Enable vectorization of this "
3348 "loop with '#pragma clang loop vectorize(enable)' when "
3349 "compiling with -Os/-Oz",
3350 "CantVersionLoopWithOptForSize",
ORE,
TheLoop);
3355 if (!
Legal->getLAI()->getSymbolicStrides().empty()) {
3357 "runtime stride == 1 checks needed. Enable vectorization of "
3358 "this loop without such check by compiling with -Os/-Oz",
3359 "CantVersionLoopWithOptForSize",
ORE,
TheLoop);
3366bool LoopVectorizationCostModel::isScalableVectorizationAllowed() {
3367 if (IsScalableVectorizationAllowed)
3368 return *IsScalableVectorizationAllowed;
3370 IsScalableVectorizationAllowed =
false;
3374 if (Hints->isScalableVectorizationDisabled()) {
3376 "ScalableVectorizationDisabled", ORE, TheLoop);
3380 LLVM_DEBUG(
dbgs() <<
"LV: Scalable vectorization is available\n");
3383 std::numeric_limits<ElementCount::ScalarTy>::max());
3392 if (!canVectorizeReductions(MaxScalableVF)) {
3394 "Scalable vectorization not supported for the reduction "
3395 "operations found in this loop.",
3396 "ScalableVFUnfeasible", ORE, TheLoop);
3402 if (
any_of(ElementTypesInLoop, [&](
Type *Ty) {
3407 "for all element types found in this loop.",
3408 "ScalableVFUnfeasible", ORE, TheLoop);
3414 "for safe distance analysis.",
3415 "ScalableVFUnfeasible", ORE, TheLoop);
3419 IsScalableVectorizationAllowed =
true;
3424LoopVectorizationCostModel::getMaxLegalScalableVF(
unsigned MaxSafeElements) {
3425 if (!isScalableVectorizationAllowed())
3429 std::numeric_limits<ElementCount::ScalarTy>::max());
3430 if (
Legal->isSafeForAnyVectorWidth())
3431 return MaxScalableVF;
3439 "Max legal vector width too small, scalable vectorization "
3441 "ScalableVFUnfeasible", ORE, TheLoop);
3443 return MaxScalableVF;
3446FixedScalableVFPair LoopVectorizationCostModel::computeFeasibleMaxVF(
3447 unsigned MaxTripCount, ElementCount UserVF,
unsigned UserIC,
3448 bool FoldTailByMasking) {
3450 unsigned SmallestType, WidestType;
3451 std::tie(SmallestType, WidestType) = getSmallestAndWidestTypes();
3457 unsigned MaxSafeElementsPowerOf2 =
3459 if (!
Legal->isSafeForAnyStoreLoadForwardDistances()) {
3460 unsigned SLDist =
Legal->getMaxStoreLoadForwardSafeDistanceInBits();
3461 MaxSafeElementsPowerOf2 =
3462 std::min(MaxSafeElementsPowerOf2, SLDist / WidestType);
3465 auto MaxSafeScalableVF = getMaxLegalScalableVF(MaxSafeElementsPowerOf2);
3467 if (!
Legal->isSafeForAnyVectorWidth())
3468 this->MaxSafeElements = MaxSafeElementsPowerOf2;
3470 LLVM_DEBUG(
dbgs() <<
"LV: The max safe fixed VF is: " << MaxSafeFixedVF
3472 LLVM_DEBUG(
dbgs() <<
"LV: The max safe scalable VF is: " << MaxSafeScalableVF
3477 auto MaxSafeUserVF =
3478 UserVF.
isScalable() ? MaxSafeScalableVF : MaxSafeFixedVF;
3480 if (ElementCount::isKnownLE(UserVF, MaxSafeUserVF)) {
3483 return FixedScalableVFPair(
3489 assert(ElementCount::isKnownGT(UserVF, MaxSafeUserVF));
3495 <<
" is unsafe, clamping to max safe VF="
3496 << MaxSafeFixedVF <<
".\n");
3498 return OptimizationRemarkAnalysis(
DEBUG_TYPE,
"VectorizationFactor",
3501 <<
"User-specified vectorization factor "
3502 <<
ore::NV(
"UserVectorizationFactor", UserVF)
3503 <<
" is unsafe, clamping to maximum safe vectorization factor "
3504 <<
ore::NV(
"VectorizationFactor", MaxSafeFixedVF);
3506 return MaxSafeFixedVF;
3511 <<
" is ignored because scalable vectors are not "
3514 return OptimizationRemarkAnalysis(
DEBUG_TYPE,
"VectorizationFactor",
3517 <<
"User-specified vectorization factor "
3518 <<
ore::NV(
"UserVectorizationFactor", UserVF)
3519 <<
" is ignored because the target does not support scalable "
3520 "vectors. The compiler will pick a more suitable value.";
3524 <<
" is unsafe. Ignoring scalable UserVF.\n");
3526 return OptimizationRemarkAnalysis(
DEBUG_TYPE,
"VectorizationFactor",
3529 <<
"User-specified vectorization factor "
3530 <<
ore::NV(
"UserVectorizationFactor", UserVF)
3531 <<
" is unsafe. Ignoring the hint to let the compiler pick a "
3532 "more suitable value.";
3537 LLVM_DEBUG(
dbgs() <<
"LV: The Smallest and Widest types: " << SmallestType
3538 <<
" / " << WidestType <<
" bits.\n");
3543 getMaximizedVFForTarget(MaxTripCount, SmallestType, WidestType,
3544 MaxSafeFixedVF, UserIC, FoldTailByMasking))
3548 getMaximizedVFForTarget(MaxTripCount, SmallestType, WidestType,
3549 MaxSafeScalableVF, UserIC, FoldTailByMasking))
3550 if (MaxVF.isScalable()) {
3551 Result.ScalableVF = MaxVF;
3552 LLVM_DEBUG(
dbgs() <<
"LV: Found feasible scalable VF = " << MaxVF
3561 if (
Legal->getRuntimePointerChecking()->Need &&
TTI.hasBranchDivergence()) {
3565 "Not inserting runtime ptr check for divergent target",
3566 "runtime pointer checks needed. Not enabled for divergent target",
3567 "CantVersionLoopWithDivergentTarget",
ORE,
TheLoop);
3573 unsigned MaxTC =
PSE.getSmallConstantMaxTripCount();
3576 LLVM_DEBUG(
dbgs() <<
"LV: Found maximum trip count: " << MaxTC <<
'\n');
3579 "loop trip count is one, irrelevant for vectorization",
3590 Legal->getWidestInductionType()->getScalarSizeInBits() &&
3594 "Trip count computation wrapped",
3595 "backedge-taken count is -1, loop trip count wrapped to 0",
3600 switch (ScalarEpilogueStatus) {
3602 return computeFeasibleMaxVF(MaxTC, UserVF, UserIC,
false);
3607 dbgs() <<
"LV: vector predicate hint/switch found.\n"
3608 <<
"LV: Not allowing scalar epilogue, creating predicated "
3609 <<
"vector loop.\n");
3616 dbgs() <<
"LV: Not allowing scalar epilogue due to -Os/-Oz.\n");
3618 LLVM_DEBUG(
dbgs() <<
"LV: Not allowing scalar epilogue due to low trip "
3634 assert(WideningDecisions.empty() && Uniforms.empty() && Scalars.empty() &&
3635 "No decisions should have been taken at this point");
3642 computeFeasibleMaxVF(MaxTC, UserVF, UserIC,
true);
3646 std::optional<unsigned> MaxPowerOf2RuntimeVF =
3651 MaxPowerOf2RuntimeVF = std::max<unsigned>(
3652 *MaxPowerOf2RuntimeVF,
3655 MaxPowerOf2RuntimeVF = std::nullopt;
3658 auto NoScalarEpilogueNeeded = [
this, &UserIC](
unsigned MaxVF) {
3662 !
Legal->hasUncountableEarlyExit())
3664 unsigned MaxVFtimesIC = UserIC ? MaxVF * UserIC : MaxVF;
3669 const SCEV *BackedgeTakenCount =
PSE.getSymbolicMaxBackedgeTakenCount();
3671 BackedgeTakenCount ==
PSE.getBackedgeTakenCount()) &&
3672 "Invalid loop count");
3674 BackedgeTakenCount, SE->
getOne(BackedgeTakenCount->
getType()));
3681 if (MaxPowerOf2RuntimeVF > 0u) {
3683 "MaxFixedVF must be a power of 2");
3684 if (NoScalarEpilogueNeeded(*MaxPowerOf2RuntimeVF)) {
3686 LLVM_DEBUG(
dbgs() <<
"LV: No tail will remain for any chosen VF.\n");
3692 if (ExpectedTC && ExpectedTC->isFixed() &&
3693 ExpectedTC->getFixedValue() <=
3694 TTI.getMinTripCountTailFoldingThreshold()) {
3695 if (MaxPowerOf2RuntimeVF > 0u) {
3701 LLVM_DEBUG(
dbgs() <<
"LV: Picking a fixed-width so that no tail will "
3702 "remain for any chosen VF.\n");
3709 "The trip count is below the minial threshold value.",
3710 "loop trip count is too low, avoiding vectorization",
"LowTripCount",
3725 <<
"LV: tail is folded with EVL, forcing unroll factor to be 1. Will "
3726 "try to generate VP Intrinsics with scalable vector "
3731 assert(ContainsScalableVF &&
"Expected scalable vector factor.");
3741 LLVM_DEBUG(
dbgs() <<
"LV: Cannot fold tail by masking: vectorize with a "
3742 "scalar epilogue instead.\n");
3748 LLVM_DEBUG(
dbgs() <<
"LV: Can't fold tail by masking: don't vectorize\n");
3754 "unable to calculate the loop count due to complex control flow",
3760 "Cannot optimize for size and vectorize at the same time.",
3761 "cannot optimize for size and vectorize at the same time. "
3762 "Enable vectorization of this loop with '#pragma clang loop "
3763 "vectorize(enable)' when compiling with -Os/-Oz",
3775 if (
TTI.shouldConsiderVectorizationRegPressure())
3791 (
TTI.shouldMaximizeVectorBandwidth(RegKind) ||
3793 Legal->hasVectorCallVariants())));
3796ElementCount LoopVectorizationCostModel::clampVFByMaxTripCount(
3797 ElementCount VF,
unsigned MaxTripCount,
unsigned UserIC,
3798 bool FoldTailByMasking)
const {
3800 if (VF.
isScalable() && TheFunction->hasFnAttribute(Attribute::VScaleRange)) {
3801 auto Attr = TheFunction->getFnAttribute(Attribute::VScaleRange);
3802 auto Min = Attr.getVScaleRangeMin();
3809 if (MaxTripCount > 0 && requiresScalarEpilogue(
true))
3814 unsigned IC = UserIC > 0 ? UserIC : 1;
3815 unsigned EstimatedVFTimesIC = EstimatedVF * IC;
3817 if (MaxTripCount && MaxTripCount <= EstimatedVFTimesIC &&
3825 if (ClampedUpperTripCount == 0)
3826 ClampedUpperTripCount = 1;
3827 LLVM_DEBUG(
dbgs() <<
"LV: Clamping the MaxVF to maximum power of two not "
3828 "exceeding the constant trip count"
3829 << (UserIC > 0 ?
" divided by UserIC" :
"") <<
": "
3830 << ClampedUpperTripCount <<
"\n");
3832 FoldTailByMasking ? VF.
isScalable() :
false);
3837ElementCount LoopVectorizationCostModel::getMaximizedVFForTarget(
3838 unsigned MaxTripCount,
unsigned SmallestType,
unsigned WidestType,
3839 ElementCount MaxSafeVF,
unsigned UserIC,
bool FoldTailByMasking) {
3840 bool ComputeScalableMaxVF = MaxSafeVF.
isScalable();
3846 auto MinVF = [](
const ElementCount &
LHS,
const ElementCount &
RHS) {
3848 "Scalable flags must match");
3856 ComputeScalableMaxVF);
3857 MaxVectorElementCount = MinVF(MaxVectorElementCount, MaxSafeVF);
3859 << (MaxVectorElementCount * WidestType) <<
" bits.\n");
3861 if (!MaxVectorElementCount) {
3863 << (ComputeScalableMaxVF ?
"scalable" :
"fixed")
3864 <<
" vector registers.\n");
3868 ElementCount MaxVF = clampVFByMaxTripCount(
3869 MaxVectorElementCount, MaxTripCount, UserIC, FoldTailByMasking);
3872 if (MaxVF != MaxVectorElementCount)
3880 MaxPermissibleVFWithoutMaxBW.ScalableVF = MaxVF;
3882 MaxPermissibleVFWithoutMaxBW.FixedVF = MaxVF;
3884 if (useMaxBandwidth(RegKind)) {
3887 ComputeScalableMaxVF);
3888 MaxVF = MinVF(MaxVectorElementCountMaxBW, MaxSafeVF);
3890 if (ElementCount MinVF =
3892 if (ElementCount::isKnownLT(MaxVF, MinVF)) {
3894 <<
") with target's minimum: " << MinVF <<
'\n');
3900 clampVFByMaxTripCount(MaxVF, MaxTripCount, UserIC, FoldTailByMasking);
3902 if (MaxVectorElementCount != MaxVF) {
3906 invalidateCostModelingDecisions();
3914 const unsigned MaxTripCount,
3916 bool IsEpilogue)
const {
3922 unsigned EstimatedWidthB =
B.Width.getKnownMinValue();
3923 if (std::optional<unsigned> VScale = CM.getVScaleForTuning()) {
3924 if (
A.Width.isScalable())
3925 EstimatedWidthA *= *VScale;
3926 if (
B.Width.isScalable())
3927 EstimatedWidthB *= *VScale;
3934 return CostA < CostB ||
3935 (CostA == CostB && EstimatedWidthA > EstimatedWidthB);
3941 A.Width.isScalable() && !
B.Width.isScalable();
3952 return CmpFn(CostA * EstimatedWidthB, CostB * EstimatedWidthA);
3954 auto GetCostForTC = [MaxTripCount, HasTail](
unsigned VF,
3966 return VectorCost * (MaxTripCount / VF) +
3967 ScalarCost * (MaxTripCount % VF);
3968 return VectorCost *
divideCeil(MaxTripCount, VF);
3971 auto RTCostA = GetCostForTC(EstimatedWidthA, CostA,
A.ScalarCost);
3972 auto RTCostB = GetCostForTC(EstimatedWidthB, CostB,
B.ScalarCost);
3973 return CmpFn(RTCostA, RTCostB);
3979 bool IsEpilogue)
const {
3981 return LoopVectorizationPlanner::isMoreProfitable(
A,
B, MaxTripCount, HasTail,
3987 using RecipeVFPair = std::pair<VPRecipeBase *, ElementCount>;
3989 for (
const auto &Plan : VPlans) {
3998 VPCostContext CostCtx(CM.TTI, *CM.TLI, *Plan, CM, CM.CostKind, CM.PSE,
4000 precomputeCosts(*Plan, VF, CostCtx);
4003 for (
auto &R : *VPBB) {
4004 if (!R.cost(VF, CostCtx).isValid())
4010 if (InvalidCosts.
empty())
4018 for (
auto &Pair : InvalidCosts)
4023 sort(InvalidCosts, [&Numbering](RecipeVFPair &
A, RecipeVFPair &
B) {
4024 unsigned NA = Numbering[
A.first];
4025 unsigned NB = Numbering[
B.first];
4040 Subset =
Tail.take_front(1);
4050 .Case<VPWidenCallRecipe, VPWidenIntrinsicRecipe>(
4051 [](
const auto *R) {
return Instruction::Call; })
4054 [](
const auto *R) {
return R->getOpcode(); })
4056 return R->getStoredValues().empty() ? Instruction::Load
4057 : Instruction::Store;
4068 if (Subset ==
Tail ||
Tail[Subset.size()].first != R) {
4069 std::string OutString;
4071 assert(!Subset.empty() &&
"Unexpected empty range");
4072 OS <<
"Recipe with invalid costs prevented vectorization at VF=(";
4073 for (
const auto &Pair : Subset)
4074 OS << (Pair.second == Subset.front().second ?
"" :
", ") << Pair.second;
4076 if (Opcode == Instruction::Call) {
4079 Name =
Int->getIntrinsicName();
4083 WidenCall ? WidenCall->getCalledScalarFunction()
4085 ->getLiveInIRValue());
4088 OS <<
" call to " << Name;
4093 Tail =
Tail.drop_front(Subset.size());
4097 Subset =
Tail.take_front(Subset.size() + 1);
4098 }
while (!
Tail.empty());
4120 switch (R.getVPRecipeID()) {
4121 case VPRecipeBase::VPDerivedIVSC:
4122 case VPRecipeBase::VPScalarIVStepsSC:
4123 case VPRecipeBase::VPReplicateSC:
4124 case VPRecipeBase::VPInstructionSC:
4125 case VPRecipeBase::VPCanonicalIVPHISC:
4126 case VPRecipeBase::VPCurrentIterationPHISC:
4127 case VPRecipeBase::VPVectorPointerSC:
4128 case VPRecipeBase::VPVectorEndPointerSC:
4129 case VPRecipeBase::VPExpandSCEVSC:
4130 case VPRecipeBase::VPPredInstPHISC:
4131 case VPRecipeBase::VPBranchOnMaskSC:
4133 case VPRecipeBase::VPReductionSC:
4134 case VPRecipeBase::VPActiveLaneMaskPHISC:
4135 case VPRecipeBase::VPWidenCallSC:
4136 case VPRecipeBase::VPWidenCanonicalIVSC:
4137 case VPRecipeBase::VPWidenCastSC:
4138 case VPRecipeBase::VPWidenGEPSC:
4139 case VPRecipeBase::VPWidenIntrinsicSC:
4140 case VPRecipeBase::VPWidenSC:
4141 case VPRecipeBase::VPBlendSC:
4142 case VPRecipeBase::VPFirstOrderRecurrencePHISC:
4143 case VPRecipeBase::VPHistogramSC:
4144 case VPRecipeBase::VPWidenPHISC:
4145 case VPRecipeBase::VPWidenIntOrFpInductionSC:
4146 case VPRecipeBase::VPWidenPointerInductionSC:
4147 case VPRecipeBase::VPReductionPHISC:
4148 case VPRecipeBase::VPInterleaveEVLSC:
4149 case VPRecipeBase::VPInterleaveSC:
4150 case VPRecipeBase::VPWidenLoadEVLSC:
4151 case VPRecipeBase::VPWidenLoadSC:
4152 case VPRecipeBase::VPWidenStoreEVLSC:
4153 case VPRecipeBase::VPWidenStoreSC:
4159 auto WillGenerateTargetVectors = [&
TTI, VF](
Type *VectorTy) {
4160 unsigned NumLegalParts =
TTI.getNumberOfParts(VectorTy);
4176 if (R.getNumDefinedValues() == 0 &&
4185 R.getNumDefinedValues() >= 1 ? R.getVPValue(0) : R.getOperand(1);
4187 if (!Visited.
insert({ScalarTy}).second)
4201 [](
auto *VPRB) { return VPRB->isReplicator(); });
4207 LLVM_DEBUG(
dbgs() <<
"LV: Scalar loop costs: " << ExpectedCost <<
".\n");
4208 assert(ExpectedCost.
isValid() &&
"Unexpected invalid cost for scalar loop");
4211 [](std::unique_ptr<VPlan> &
P) {
return P->hasScalarVFOnly(); }) &&
4212 "Expected Scalar VF to be a candidate");
4219 if (ForceVectorization &&
4220 (VPlans.size() > 1 || !VPlans[0]->hasScalarVFOnly())) {
4224 ChosenFactor.
Cost = InstructionCost::getMax();
4227 for (
auto &
P : VPlans) {
4229 P->vectorFactors().end());
4232 if (
any_of(VFs, [
this](ElementCount VF) {
4233 return CM.shouldConsiderRegPressureForVF(VF);
4237 for (
unsigned I = 0;
I < VFs.size();
I++) {
4238 ElementCount VF = VFs[
I];
4246 if (CM.shouldConsiderRegPressureForVF(VF) &&
4254 VPCostContext CostCtx(CM.TTI, *CM.TLI, *
P, CM, CM.CostKind, CM.PSE,
4256 VPRegionBlock *VectorRegion =
P->getVectorLoopRegion();
4257 assert(VectorRegion &&
"Expected to have a vector region!");
4260 for (VPRecipeBase &R : *VPBB) {
4264 switch (VPI->getOpcode()) {
4267 case Instruction::Select: {
4270 switch (WR->getOpcode()) {
4271 case Instruction::UDiv:
4272 case Instruction::SDiv:
4273 case Instruction::URem:
4274 case Instruction::SRem:
4280 C += VPI->cost(VF, CostCtx);
4284 unsigned Multiplier =
4286 C += VPI->cost(VF * Multiplier, CostCtx);
4291 C += VPI->cost(VF, CostCtx);
4303 <<
" costs: " << (Candidate.Cost / Width));
4306 << CM.getVScaleForTuning().value_or(1) <<
")");
4312 <<
"LV: Not considering vector loop of width " << VF
4313 <<
" because it will not generate any vector instructions.\n");
4320 <<
"LV: Not considering vector loop of width " << VF
4321 <<
" because it would cause replicated blocks to be generated,"
4322 <<
" which isn't allowed when optimizing for size.\n");
4326 if (isMoreProfitable(Candidate, ChosenFactor,
P->hasScalarTail()))
4327 ChosenFactor = Candidate;
4333 "There are conditional stores.",
4334 "store that is conditionally executed prevents vectorization",
4335 "ConditionalStore", ORE, OrigLoop);
4336 ChosenFactor = ScalarCost;
4340 !isMoreProfitable(ChosenFactor, ScalarCost,
4341 !CM.foldTailByMasking()))
dbgs()
4342 <<
"LV: Vectorization seems to be not beneficial, "
4343 <<
"but was forced by a user.\n");
4344 return ChosenFactor;
4353 auto *RedPhi = dyn_cast<VPReductionPHIRecipe>(&R);
4355 RecurrenceDescriptor::isFindLastRecurrenceKind(
4356 RedPhi->getRecurrenceKind());
4366 if (auto *WidenInd = dyn_cast<VPWidenIntOrFpInductionRecipe>(&R))
4367 return !WidenInd->getPHINode();
4368 auto *RedPhi = dyn_cast<VPReductionPHIRecipe>(&R);
4369 return RedPhi && (RecurrenceDescriptor::isFindLastRecurrenceKind(
4370 RedPhi->getRecurrenceKind()) ||
4371 !RedPhi->getUnderlyingValue());
4375bool LoopVectorizationPlanner::isCandidateForEpilogueVectorization(
4376 ElementCount VF)
const {
4379 if (
any_of(OrigLoop->getHeader()->phis(), [&](PHINode &Phi) {
4380 if (!Legal->isReductionVariable(&Phi))
4381 return Legal->isFixedOrderRecurrence(&Phi);
4383 Legal->getRecurrenceDescriptor(&Phi).getRecurrenceKind();
4384 return RecurrenceDescriptor::isFPMinMaxNumRecurrenceKind(Kind);
4395 for (
const auto &Entry :
Legal->getInductionVars()) {
4398 Entry.first->getIncomingValueForBlock(OrigLoop->getLoopLatch());
4399 for (User *U :
PostInc->users())
4403 for (User *U :
Entry.first->users())
4412 if (OrigLoop->getExitingBlock() != OrigLoop->getLoopLatch())
4426 if (!
TTI.preferEpilogueVectorization(VF * IC))
4431 :
TTI.getEpilogueVectorizationMinVF();
4439 LLVM_DEBUG(
dbgs() <<
"LEV: Epilogue vectorization is disabled.\n");
4443 if (!CM.isScalarEpilogueAllowed()) {
4444 LLVM_DEBUG(
dbgs() <<
"LEV: Unable to vectorize epilogue because no "
4445 "epilogue is allowed.\n");
4451 if (!isCandidateForEpilogueVectorization(MainLoopVF)) {
4452 LLVM_DEBUG(
dbgs() <<
"LEV: Unable to vectorize epilogue because the loop "
4453 "is not a supported candidate.\n");
4458 LLVM_DEBUG(
dbgs() <<
"LEV: Epilogue vectorization factor is forced.\n");
4461 return {ForcedEC, 0, 0};
4463 LLVM_DEBUG(
dbgs() <<
"LEV: Epilogue vectorization forced factor is not "
4468 if (OrigLoop->getHeader()->getParent()->hasOptSize()) {
4470 dbgs() <<
"LEV: Epilogue vectorization skipped due to opt for size.\n");
4474 if (!CM.isEpilogueVectorizationProfitable(MainLoopVF, IC)) {
4475 LLVM_DEBUG(
dbgs() <<
"LEV: Epilogue vectorization is not profitable for "
4486 Type *TCType = Legal->getWidestInductionType();
4487 const SCEV *RemainingIterations =
nullptr;
4488 unsigned MaxTripCount = 0;
4492 const SCEV *KnownMinTC;
4494 bool ScalableRemIter =
false;
4498 ScalableRemIter = ScalableTC;
4499 RemainingIterations =
4501 }
else if (ScalableTC) {
4504 SE.
getConstant(TCType, CM.getVScaleForTuning().value_or(1)));
4508 RemainingIterations =
4512 if (RemainingIterations->
isZero())
4522 << MaxTripCount <<
"\n");
4525 auto SkipVF = [&](
const SCEV *VF,
const SCEV *RemIter) ->
bool {
4528 for (
auto &NextVF : ProfitableVFs) {
4535 if ((!NextVF.Width.isScalable() && MainLoopVF.
isScalable() &&
4537 (NextVF.Width.isScalable() &&
4539 (!NextVF.Width.isScalable() && !MainLoopVF.
isScalable() &&
4548 if (!ScalableRemIter) {
4552 if (NextVF.Width.isScalable())
4559 if (Result.Width.isScalar() ||
4560 isMoreProfitable(NextVF, Result, MaxTripCount, !CM.foldTailByMasking(),
4567 << Result.Width <<
"\n");
4571std::pair<unsigned, unsigned>
4573 unsigned MinWidth = -1U;
4574 unsigned MaxWidth = 8;
4580 for (
const auto &PhiDescriptorPair :
Legal->getReductionVars()) {
4584 MinWidth = std::min(
4588 MaxWidth = std::max(MaxWidth,
4593 MinWidth = std::min<unsigned>(
4594 MinWidth,
DL.getTypeSizeInBits(
T->getScalarType()).getFixedValue());
4595 MaxWidth = std::max<unsigned>(
4596 MaxWidth,
DL.getTypeSizeInBits(
T->getScalarType()).getFixedValue());
4599 return {MinWidth, MaxWidth};
4607 for (
Instruction &
I : BB->instructionsWithoutDebug()) {
4621 if (!
Legal->isReductionVariable(PN))
4624 Legal->getRecurrenceDescriptor(PN);
4634 T = ST->getValueOperand()->getType();
4637 "Expected the load/store/recurrence type to be sized");
4665 if (!CM.isScalarEpilogueAllowed() &&
4666 !(CM.preferPredicatedLoop() && CM.useWideActiveLaneMask()))
4672 "Unroll factor forced to be 1.\n");
4677 if (!Legal->isSafeForAnyVectorWidth())
4686 const bool HasReductions =
4696 if (LoopCost == 0) {
4698 LoopCost = CM.expectedCost(VF);
4700 LoopCost = cost(Plan, VF);
4701 assert(LoopCost.
isValid() &&
"Expected to have chosen a VF with valid cost");
4712 for (
auto &Pair : R.MaxLocalUsers) {
4713 Pair.second = std::max(Pair.second, 1U);
4727 unsigned IC = UINT_MAX;
4729 for (
const auto &Pair : R.MaxLocalUsers) {
4730 unsigned TargetNumRegisters = TTI.getNumberOfRegisters(Pair.first);
4733 << TTI.getRegisterClassName(Pair.first)
4734 <<
" register class\n");
4742 unsigned MaxLocalUsers = Pair.second;
4743 unsigned LoopInvariantRegs = 0;
4744 if (R.LoopInvariantRegs.contains(Pair.first))
4745 LoopInvariantRegs = R.LoopInvariantRegs[Pair.first];
4747 unsigned TmpIC =
llvm::bit_floor((TargetNumRegisters - LoopInvariantRegs) /
4751 TmpIC =
llvm::bit_floor((TargetNumRegisters - LoopInvariantRegs - 1) /
4752 std::max(1U, (MaxLocalUsers - 1)));
4755 IC = std::min(IC, TmpIC);
4759 unsigned MaxInterleaveCount = TTI.getMaxInterleaveFactor(VF);
4760 LLVM_DEBUG(
dbgs() <<
"LV: MaxInterleaveFactor for the target is "
4761 << MaxInterleaveCount <<
"\n");
4777 if (BestKnownTC && (BestKnownTC->isFixed() || VF.
isScalable())) {
4779 unsigned AvailableTC =
4785 if (CM.requiresScalarEpilogue(VF.
isVector()))
4788 unsigned InterleaveCountLB =
bit_floor(std::max(
4789 1u, std::min(AvailableTC / (EstimatedVF * 2), MaxInterleaveCount)));
4803 unsigned InterleaveCountUB =
bit_floor(std::max(
4804 1u, std::min(AvailableTC / EstimatedVF, MaxInterleaveCount)));
4805 MaxInterleaveCount = InterleaveCountLB;
4807 if (InterleaveCountUB != InterleaveCountLB) {
4808 unsigned TailTripCountUB =
4809 (AvailableTC % (EstimatedVF * InterleaveCountUB));
4810 unsigned TailTripCountLB =
4811 (AvailableTC % (EstimatedVF * InterleaveCountLB));
4814 if (TailTripCountUB == TailTripCountLB)
4815 MaxInterleaveCount = InterleaveCountUB;
4823 MaxInterleaveCount = InterleaveCountLB;
4827 assert(MaxInterleaveCount > 0 &&
4828 "Maximum interleave count must be greater than 0");
4832 if (IC > MaxInterleaveCount)
4833 IC = MaxInterleaveCount;
4836 IC = std::max(1u, IC);
4838 assert(IC > 0 &&
"Interleave count must be greater than 0.");
4842 if (VF.
isVector() && HasReductions) {
4843 LLVM_DEBUG(
dbgs() <<
"LV: Interleaving because of reductions.\n");
4851 bool ScalarInterleavingRequiresPredication =
4853 return Legal->blockNeedsPredication(BB);
4855 bool ScalarInterleavingRequiresRuntimePointerCheck =
4856 (VF.
isScalar() && Legal->getRuntimePointerChecking()->Need);
4861 <<
"LV: IC is " << IC <<
'\n'
4862 <<
"LV: VF is " << VF <<
'\n');
4863 const bool AggressivelyInterleave =
4864 TTI.enableAggressiveInterleaving(HasReductions);
4865 if (!ScalarInterleavingRequiresRuntimePointerCheck &&
4866 !ScalarInterleavingRequiresPredication && LoopCost <
SmallLoopCost) {
4875 unsigned NumStores = 0;
4876 unsigned NumLoads = 0;
4890 if (
unsigned StoreOps = InterleaveR->getNumStoreOperands())
4891 NumStores += StoreOps;
4893 NumLoads += InterleaveR->getNumDefinedValues();
4908 unsigned StoresIC = IC / (NumStores ? NumStores : 1);
4909 unsigned LoadsIC = IC / (NumLoads ? NumLoads : 1);
4915 bool HasSelectCmpReductions =
4919 auto *RedR = dyn_cast<VPReductionPHIRecipe>(&R);
4920 return RedR && (RecurrenceDescriptor::isAnyOfRecurrenceKind(
4921 RedR->getRecurrenceKind()) ||
4922 RecurrenceDescriptor::isFindIVRecurrenceKind(
4923 RedR->getRecurrenceKind()));
4925 if (HasSelectCmpReductions) {
4926 LLVM_DEBUG(
dbgs() <<
"LV: Not interleaving select-cmp reductions.\n");
4935 if (HasReductions && OrigLoop->getLoopDepth() > 1) {
4936 bool HasOrderedReductions =
4939 auto *RedR = dyn_cast<VPReductionPHIRecipe>(&R);
4941 return RedR && RedR->isOrdered();
4943 if (HasOrderedReductions) {
4945 dbgs() <<
"LV: Not interleaving scalar ordered reductions.\n");
4950 SmallIC = std::min(SmallIC,
F);
4951 StoresIC = std::min(StoresIC,
F);
4952 LoadsIC = std::min(LoadsIC,
F);
4956 std::max(StoresIC, LoadsIC) > SmallIC) {
4958 dbgs() <<
"LV: Interleaving to saturate store or load ports.\n");
4959 return std::max(StoresIC, LoadsIC);
4964 if (VF.
isScalar() && AggressivelyInterleave) {
4968 return std::max(IC / 2, SmallIC);
4971 LLVM_DEBUG(
dbgs() <<
"LV: Interleaving to reduce branch cost.\n");
4977 if (AggressivelyInterleave) {
4997 "Expecting a scalar emulated instruction");
5010 if (InstsToScalarize.contains(VF) ||
5011 PredicatedBBsAfterVectorization.contains(VF))
5017 ScalarCostsTy &ScalarCostsVF = InstsToScalarize[VF];
5027 ScalarCostsTy ScalarCosts;
5035 computePredInstDiscount(&
I, ScalarCosts, VF) >= 0) {
5036 for (
const auto &[
I, IC] : ScalarCosts)
5037 ScalarCostsVF.
insert({
I, IC});
5040 for (
const auto &[
I,
Cost] : ScalarCosts) {
5042 if (!CI || !CallWideningDecisions.contains({CI, VF}))
5045 CallWideningDecisions[{CI, VF}].Cost =
Cost;
5049 PredicatedBBsAfterVectorization[VF].insert(BB);
5051 if (Pred->getSingleSuccessor() == BB)
5052 PredicatedBBsAfterVectorization[VF].insert(Pred);
5060 assert(!isUniformAfterVectorization(PredInst, VF) &&
5061 "Instruction marked uniform-after-vectorization will be predicated");
5079 if (!
I->hasOneUse() || PredInst->
getParent() !=
I->getParent() ||
5080 isScalarAfterVectorization(
I, VF))
5085 if (isScalarWithPredication(
I, VF))
5098 for (
Use &U :
I->operands())
5100 if (isUniformAfterVectorization(J, VF))
5111 while (!Worklist.
empty()) {
5115 if (ScalarCosts.contains(
I))
5135 if (isScalarWithPredication(
I, VF) && !
I->getType()->isVoidTy()) {
5138 ScalarCost +=
TTI.getScalarizationOverhead(
5151 for (Use &U :
I->operands())
5154 "Instruction has non-scalar type");
5155 if (CanBeScalarized(J))
5157 else if (needsExtract(J, VF)) {
5169 ScalarCost /= getPredBlockCostDivisor(
CostKind,
I->getParent());
5173 Discount += VectorCost - ScalarCost;
5174 ScalarCosts[
I] = ScalarCost;
5190 ValuesToIgnoreForVF);
5197 for (
Instruction &
I : BB->instructionsWithoutDebug()) {
5220 LLVM_DEBUG(
dbgs() <<
"LV: Found an estimated cost of " <<
C <<
" for VF "
5221 << VF <<
" For instruction: " <<
I <<
'\n');
5249 const Loop *TheLoop) {
5256LoopVectorizationCostModel::getMemInstScalarizationCost(Instruction *
I,
5259 "Scalarization cost of instruction implies vectorization.");
5261 return InstructionCost::getInvalid();
5264 auto *SE = PSE.
getSE();
5295 if (isPredicatedInst(
I)) {
5300 VectorType::get(IntegerType::getInt1Ty(ValTy->
getContext()), VF);
5306 if (useEmulatedMaskMemRefHack(
I, VF))
5316LoopVectorizationCostModel::getConsecutiveMemOpCost(Instruction *
I,
5322 int ConsecutiveStride =
Legal->isConsecutivePtr(ValTy, Ptr);
5324 assert((ConsecutiveStride == 1 || ConsecutiveStride == -1) &&
5325 "Stride should be 1 or -1 for consecutive memory access");
5328 if (
Legal->isMaskRequired(
I)) {
5329 unsigned IID =
I->getOpcode() == Instruction::Load
5330 ? Intrinsic::masked_load
5331 : Intrinsic::masked_store;
5333 MemIntrinsicCostAttributes(IID, VectorTy, Alignment, AS),
CostKind);
5340 bool Reverse = ConsecutiveStride < 0;
5348LoopVectorizationCostModel::getUniformMemOpCost(Instruction *
I,
5366 bool IsLoopInvariantStoreValue =
Legal->isInvariant(
SI->getValueOperand());
5374 if (!IsLoopInvariantStoreValue)
5381LoopVectorizationCostModel::getGatherScatterCost(Instruction *
I,
5389 if (!
Legal->isUniform(Ptr, VF))
5392 unsigned IID =
I->getOpcode() == Instruction::Load
5393 ? Intrinsic::masked_gather
5394 : Intrinsic::masked_scatter;
5397 MemIntrinsicCostAttributes(IID, VectorTy, Ptr,
5398 Legal->isMaskRequired(
I), Alignment,
I),
5403LoopVectorizationCostModel::getInterleaveGroupCost(Instruction *
I,
5405 const auto *Group = getInterleavedAccessGroup(
I);
5406 assert(Group &&
"Fail to get an interleaved access group.");
5413 unsigned InterleaveFactor = Group->getFactor();
5414 auto *WideVecTy = VectorType::get(ValTy, VF * InterleaveFactor);
5417 SmallVector<unsigned, 4> Indices;
5418 for (
unsigned IF = 0; IF < InterleaveFactor; IF++)
5419 if (Group->getMember(IF))
5423 bool UseMaskForGaps =
5424 (Group->requiresScalarEpilogue() && !isScalarEpilogueAllowed()) ||
5427 InsertPos->
getOpcode(), WideVecTy, Group->getFactor(), Indices,
5431 if (Group->isReverse()) {
5434 "Reverse masked interleaved access not supported.");
5435 Cost += Group->getNumMembers() *
5442std::optional<InstructionCost>
5449 return std::nullopt;
5467 return std::nullopt;
5478 Instruction *LastChain = InLoopReductionImmediateChains.lookup(RetI);
5480 return std::nullopt;
5486 ReductionPhi = InLoopReductionImmediateChains.at(ReductionPhi);
5495 BaseCost =
TTI.getMinMaxReductionCost(MinMaxID, VectorTy,
5498 BaseCost =
TTI.getArithmeticReductionCost(
5506 TTI.getArithmeticInstrCost(Instruction::FMul, VectorTy,
CostKind);
5523 if (RedOp && RdxDesc.
getOpcode() == Instruction::Add &&
5529 !
TheLoop->isLoopInvariant(Op0) && !
TheLoop->isLoopInvariant(Op1) &&
5541 TTI.getCastInstrCost(Op0->
getOpcode(), MulType, ExtType,
5544 TTI.getArithmeticInstrCost(Instruction::Mul, MulType,
CostKind);
5546 TTI.getCastInstrCost(RedOp->
getOpcode(), VectorTy, MulType,
5554 RedCost < ExtCost * 2 + MulCost + Ext2Cost + BaseCost)
5555 return I == RetI ? RedCost : 0;
5557 !
TheLoop->isLoopInvariant(RedOp)) {
5566 TTI.getCastInstrCost(RedOp->
getOpcode(), VectorTy, ExtType,
5568 if (RedCost.
isValid() && RedCost < BaseCost + ExtCost)
5569 return I == RetI ? RedCost : 0;
5570 }
else if (RedOp && RdxDesc.
getOpcode() == Instruction::Add &&
5574 !
TheLoop->isLoopInvariant(Op0) && !
TheLoop->isLoopInvariant(Op1)) {
5593 TTI.getArithmeticInstrCost(Instruction::Mul, VectorTy,
CostKind);
5599 if (Op0Ty != LargestOpTy || Op1Ty != LargestOpTy) {
5600 Instruction *ExtraExtOp = (Op0Ty != LargestOpTy) ? Op0 : Op1;
5601 ExtraExtCost =
TTI.getCastInstrCost(
5608 (RedCost + ExtraExtCost) < (ExtCost0 + ExtCost1 + MulCost + BaseCost))
5609 return I == RetI ? RedCost : 0;
5613 TTI.getArithmeticInstrCost(Instruction::Mul, VectorTy,
CostKind);
5619 if (RedCost.
isValid() && RedCost < MulCost + BaseCost)
5620 return I == RetI ? RedCost : 0;
5624 return I == RetI ? std::optional<InstructionCost>(BaseCost) : std::nullopt;
5628LoopVectorizationCostModel::getMemoryInstructionCost(
Instruction *
I,
5639 return TTI.getAddressComputationCost(PtrTy,
nullptr,
nullptr,
CostKind) +
5640 TTI.getMemoryOpCost(
I->getOpcode(), ValTy, Alignment, AS,
CostKind,
5643 return getWideningCost(
I, VF);
5647LoopVectorizationCostModel::getScalarizationOverhead(Instruction *
I,
5648 ElementCount VF)
const {
5653 return InstructionCost::getInvalid();
5687 Instruction::op_range
Ops = CI ? CI->
args() :
I->operands();
5692 for (
auto *V : filterExtractingOperands(
Ops, VF))
5719 if (
Legal->isUniformMemOp(
I, VF)) {
5720 auto IsLegalToScalarize = [&]() {
5740 return TheLoop->isLoopInvariant(
SI.getValueOperand());
5752 IsLegalToScalarize() ? getUniformMemOpCost(&
I, VF)
5758 if (GatherScatterCost < ScalarizationCost)
5768 int ConsecutiveStride =
Legal->isConsecutivePtr(
5770 assert((ConsecutiveStride == 1 || ConsecutiveStride == -1) &&
5771 "Expected consecutive stride.");
5780 unsigned NumAccesses = 1;
5783 assert(Group &&
"Fail to get an interleaved access group.");
5789 NumAccesses = Group->getNumMembers();
5791 InterleaveCost = getInterleaveGroupCost(&
I, VF);
5796 ? getGatherScatterCost(&
I, VF) * NumAccesses
5800 getMemInstScalarizationCost(&
I, VF) * NumAccesses;
5806 if (InterleaveCost <= GatherScatterCost &&
5807 InterleaveCost < ScalarizationCost) {
5809 Cost = InterleaveCost;
5810 }
else if (GatherScatterCost < ScalarizationCost) {
5812 Cost = GatherScatterCost;
5815 Cost = ScalarizationCost;
5822 for (
unsigned Idx = 0; Idx < Group->getFactor(); ++Idx) {
5823 if (
auto *
I = Group->getMember(Idx)) {
5825 getMemInstScalarizationCost(
I, VF));
5841 if (
TTI.prefersVectorizedAddressing())
5850 if (PtrDef &&
TheLoop->contains(PtrDef) &&
5858 while (!Worklist.
empty()) {
5860 for (
auto &
Op :
I->operands())
5863 AddrDefs.
insert(InstOp).second)
5867 auto UpdateMemOpUserCost = [
this, VF](
LoadInst *
LI) {
5871 for (
User *U :
LI->users()) {
5881 for (
auto *
I : AddrDefs) {
5902 for (
unsigned Idx = 0; Idx < Group->getFactor(); ++Idx) {
5903 if (
Instruction *Member = Group->getMember(Idx)) {
5907 getMemoryInstructionCost(Member,
5909 : getMemInstScalarizationCost(Member, VF);
5922 ForcedScalars[VF].insert(
I);
5929 "Trying to set a vectorization decision for a scalar VF");
5931 auto ForcedScalar = ForcedScalars.find(VF);
5946 for (
auto &ArgOp : CI->
args())
5955 TTI.getCallInstrCost(ScalarFunc, ScalarRetTy, ScalarTys,
CostKind);
5965 "Unexpected valid cost for scalarizing scalable vectors");
5972 if (VF.
isVector() && ((ForcedScalar != ForcedScalars.end() &&
5973 ForcedScalar->second.contains(CI)) ||
5981 bool MaskRequired =
Legal->isMaskRequired(CI);
5984 for (
Type *ScalarTy : ScalarTys)
5993 std::nullopt, *RedCost);
6004 if (Info.Shape.VF != VF)
6008 if (MaskRequired && !Info.isMasked())
6012 bool ParamsOk =
true;
6014 switch (Param.ParamKind) {
6020 if (!
PSE.getSE()->isLoopInvariant(
PSE.getSCEV(ScalarParam),
6057 VectorCost =
TTI.getCallInstrCost(
nullptr, RetTy, Tys,
CostKind);
6090 return !OpI || !
TheLoop->contains(OpI) ||
6094 [
this](
Value *
Op) { return shouldConsiderInvariant(Op); }));
6106 return InstsToScalarize[VF][
I];
6109 auto ForcedScalar = ForcedScalars.find(VF);
6110 if (VF.
isVector() && ForcedScalar != ForcedScalars.end()) {
6111 auto InstSet = ForcedScalar->second;
6112 if (InstSet.count(
I))
6117 Type *RetTy =
I->getType();
6120 auto *SE =
PSE.getSE();
6124 [[maybe_unused]]
auto HasSingleCopyAfterVectorization =
6129 auto Scalarized = InstsToScalarize.find(VF);
6130 assert(Scalarized != InstsToScalarize.end() &&
6131 "VF not yet analyzed for scalarization profitability");
6132 return !Scalarized->second.count(
I) &&
6134 auto *UI = cast<Instruction>(U);
6135 return !Scalarized->second.count(UI);
6144 assert(
I->getOpcode() == Instruction::GetElementPtr ||
6145 I->getOpcode() == Instruction::PHI ||
6146 (
I->getOpcode() == Instruction::BitCast &&
6147 I->getType()->isPointerTy()) ||
6148 HasSingleCopyAfterVectorization(
I, VF));
6154 !
TTI.getNumberOfParts(VectorTy))
6158 switch (
I->getOpcode()) {
6159 case Instruction::GetElementPtr:
6165 case Instruction::UncondBr:
6166 case Instruction::CondBr: {
6173 bool ScalarPredicatedBB =
false;
6176 (PredicatedBBsAfterVectorization[VF].count(BI->
getSuccessor(0)) ||
6177 PredicatedBBsAfterVectorization[VF].count(BI->
getSuccessor(1))) &&
6179 ScalarPredicatedBB =
true;
6181 if (ScalarPredicatedBB) {
6188 return (
TTI.getScalarizationOverhead(
6191 (
TTI.getCFInstrCost(Instruction::CondBr,
CostKind) *
6197 return TTI.getCFInstrCost(Instruction::UncondBr,
CostKind);
6205 case Instruction::Switch: {
6207 return TTI.getCFInstrCost(Instruction::Switch,
CostKind);
6209 return Switch->getNumCases() *
6210 TTI.getCmpSelInstrCost(
6212 toVectorTy(Switch->getCondition()->getType(), VF),
6216 case Instruction::PHI: {
6233 Type *ResultTy = Phi->getType();
6239 auto *Phi = dyn_cast<PHINode>(U);
6240 if (Phi && Phi->getParent() == TheLoop->getHeader())
6245 auto &ReductionVars =
Legal->getReductionVars();
6246 auto Iter = ReductionVars.find(HeaderUser);
6247 if (Iter != ReductionVars.end() &&
6249 Iter->second.getRecurrenceKind()))
6252 return (Phi->getNumIncomingValues() - 1) *
6253 TTI.getCmpSelInstrCost(
6254 Instruction::Select,
toVectorTy(ResultTy, VF),
6264 Intrinsic::vp_merge,
toVectorTy(Phi->getType(), VF),
6265 {toVectorTy(Type::getInt1Ty(Phi->getContext()), VF)});
6269 return TTI.getCFInstrCost(Instruction::PHI,
CostKind);
6271 case Instruction::UDiv:
6272 case Instruction::SDiv:
6273 case Instruction::URem:
6274 case Instruction::SRem:
6278 ScalarCost : SafeDivisorCost;
6282 case Instruction::Add:
6283 case Instruction::Sub: {
6284 auto Info =
Legal->getHistogramInfo(
I);
6291 if (!RHS || RHS->getZExtValue() != 1)
6293 TTI.getArithmeticInstrCost(Instruction::Mul, VectorTy,
CostKind);
6297 Type *ScalarTy =
I->getType();
6301 {PtrTy, ScalarTy, MaskTy});
6304 return TTI.getIntrinsicInstrCost(ICA,
CostKind) + MulCost +
6305 TTI.getArithmeticInstrCost(
I->getOpcode(), VectorTy,
CostKind);
6309 case Instruction::FAdd:
6310 case Instruction::FSub:
6311 case Instruction::Mul:
6312 case Instruction::FMul:
6313 case Instruction::FDiv:
6314 case Instruction::FRem:
6315 case Instruction::Shl:
6316 case Instruction::LShr:
6317 case Instruction::AShr:
6318 case Instruction::And:
6319 case Instruction::Or:
6320 case Instruction::Xor: {
6324 if (
I->getOpcode() == Instruction::Mul &&
6325 ((
TheLoop->isLoopInvariant(
I->getOperand(0)) &&
6326 PSE.getSCEV(
I->getOperand(0))->isOne()) ||
6327 (
TheLoop->isLoopInvariant(
I->getOperand(1)) &&
6328 PSE.getSCEV(
I->getOperand(1))->isOne())))
6337 Value *Op2 =
I->getOperand(1);
6343 auto Op2Info =
TTI.getOperandInfo(Op2);
6349 return TTI.getArithmeticInstrCost(
6351 {TargetTransformInfo::OK_AnyValue, TargetTransformInfo::OP_None},
6352 Op2Info, Operands,
I,
TLI);
6354 case Instruction::FNeg: {
6355 return TTI.getArithmeticInstrCost(
6357 {TargetTransformInfo::OK_AnyValue, TargetTransformInfo::OP_None},
6358 {TargetTransformInfo::OK_AnyValue, TargetTransformInfo::OP_None},
6359 I->getOperand(0),
I);
6361 case Instruction::Select: {
6366 const Value *Op0, *Op1;
6377 return TTI.getArithmeticInstrCost(
6379 VectorTy,
CostKind, {Op1VK, Op1VP}, {Op2VK, Op2VP}, {Op0, Op1},
I);
6382 Type *CondTy =
SI->getCondition()->getType();
6388 Pred = Cmp->getPredicate();
6389 return TTI.getCmpSelInstrCost(
I->getOpcode(), VectorTy, CondTy, Pred,
6390 CostKind, {TTI::OK_AnyValue, TTI::OP_None},
6391 {TTI::OK_AnyValue, TTI::OP_None},
I);
6393 case Instruction::ICmp:
6394 case Instruction::FCmp: {
6395 Type *ValTy =
I->getOperand(0)->getType();
6401 MinBWs[
I] == MinBWs[Op0AsInstruction]) &&
6402 "if both the operand and the compare are marked for "
6403 "truncation, they must have the same bitwidth");
6408 return TTI.getCmpSelInstrCost(
6411 {TTI::OK_AnyValue, TTI::OP_None}, {TTI::OK_AnyValue, TTI::OP_None},
I);
6413 case Instruction::Store:
6414 case Instruction::Load: {
6419 "CM decision should be taken at this point");
6426 return getMemoryInstructionCost(
I, VF);
6428 case Instruction::BitCast:
6429 if (
I->getType()->isPointerTy())
6432 case Instruction::ZExt:
6433 case Instruction::SExt:
6434 case Instruction::FPToUI:
6435 case Instruction::FPToSI:
6436 case Instruction::FPExt:
6437 case Instruction::PtrToInt:
6438 case Instruction::IntToPtr:
6439 case Instruction::SIToFP:
6440 case Instruction::UIToFP:
6441 case Instruction::Trunc:
6442 case Instruction::FPTrunc: {
6446 "Expected a load or a store!");
6472 unsigned Opcode =
I->getOpcode();
6475 if (Opcode == Instruction::Trunc || Opcode == Instruction::FPTrunc) {
6478 CCH = ComputeCCH(Store);
6481 else if (Opcode == Instruction::ZExt || Opcode == Instruction::SExt ||
6482 Opcode == Instruction::FPExt) {
6484 CCH = ComputeCCH(Load);
6492 return TTI.getCastInstrCost(Instruction::Trunc, Trunc->getDestTy(),
6493 Trunc->getSrcTy(), CCH,
CostKind, Trunc);
6500 Type *SrcScalarTy =
I->getOperand(0)->getType();
6512 (
I->getOpcode() == Instruction::ZExt ||
6513 I->getOpcode() == Instruction::SExt))
6517 return TTI.getCastInstrCost(Opcode, VectorTy, SrcVecTy, CCH,
CostKind,
I);
6519 case Instruction::Call:
6521 case Instruction::ExtractValue:
6523 case Instruction::Alloca:
6528 return TTI.getArithmeticInstrCost(Instruction::Mul, RetTy,
CostKind);
6531 return TTI.getArithmeticInstrCost(Instruction::Mul, VectorTy,
CostKind);
6546 auto IsLiveOutDead = [
this, RequiresScalarEpilogue](
User *U) {
6547 return RequiresScalarEpilogue &&
6561 all_of(
I.users(), [
this, IsLiveOutDead](
User *U) {
6562 return VecValuesToIgnore.contains(U) ||
6563 ValuesToIgnore.contains(U) || IsLiveOutDead(U);
6572 if (Group->getInsertPos() == &
I)
6575 DeadInterleavePointerOps.
push_back(PointerOp);
6586 for (
unsigned I = 0;
I != DeadInterleavePointerOps.
size(); ++
I) {
6589 Instruction *UI = cast<Instruction>(U);
6590 return !VecValuesToIgnore.contains(U) &&
6591 (!isAccessInterleaved(UI) ||
6592 getInterleavedAccessGroup(UI)->getInsertPos() == UI);
6612 for (
unsigned I = 0;
I != DeadOps.
size(); ++
I) {
6624 if ((ThenEmpty && ElseEmpty) ||
6626 ElseBB->
phis().empty()) ||
6628 ThenBB->
phis().empty())) {
6640 return !VecValuesToIgnore.contains(U) &&
6641 !ValuesToIgnore.contains(U) && !IsLiveOutDead(U);
6649 [
this](
User *U) { return ValuesToIgnore.contains(U); }))
6658 for (
const auto &Reduction :
Legal->getReductionVars()) {
6665 for (
const auto &Induction :
Legal->getInductionVars()) {
6673 if (!InLoopReductions.empty())
6676 for (
const auto &Reduction :
Legal->getReductionVars()) {
6677 PHINode *Phi = Reduction.first;
6699 !
TTI.preferInLoopReduction(Kind, Phi->getType()))
6707 bool InLoop = !ReductionOperations.
empty();
6710 InLoopReductions.insert(Phi);
6713 for (
auto *
I : ReductionOperations) {
6714 InLoopReductionImmediateChains[
I] = LastChain;
6718 LLVM_DEBUG(
dbgs() <<
"LV: Using " << (InLoop ?
"inloop" :
"out of loop")
6719 <<
" reduction for phi: " << *Phi <<
"\n");
6732 unsigned WidestType;
6736 TTI.enableScalableVectorization()
6741 unsigned N =
RegSize.getKnownMinValue() / WidestType;
6752 if (!OrigLoop->isInnermost()) {
6762 <<
"overriding computed VF.\n");
6765 }
else if (UserVF.
isScalable() && !TTI.supportsScalableVectors() &&
6767 LLVM_DEBUG(
dbgs() <<
"LV: Not vectorizing. Scalable VF requested, but "
6768 <<
"not supported by the target.\n");
6770 "Scalable vectorization requested but not supported by the target",
6771 "the scalable user-specified vectorization width for outer-loop "
6772 "vectorization cannot be used because the target does not support "
6773 "scalable vectors.",
6774 "ScalableVFUnfeasible", ORE, OrigLoop);
6779 "VF needs to be a power of two");
6781 <<
"VF " << VF <<
" to build VPlans.\n");
6791 return {VF, 0 , 0 };
6795 dbgs() <<
"LV: Not vectorizing. Inner loops aren't supported in the "
6796 "VPlan-native path.\n");
6801 assert(OrigLoop->isInnermost() &&
"Inner loop expected.");
6802 CM.collectValuesToIgnore();
6803 CM.collectElementTypesForWidening();
6810 if (CM.blockNeedsPredicationForAnyReason(OrigLoop->getHeader()) &&
6814 <<
"LV: Invalidate all interleaved groups due to fold-tail by masking "
6815 "which requires masked-interleaved support.\n");
6816 if (CM.InterleaveInfo.invalidateGroups())
6820 CM.invalidateCostModelingDecisions();
6823 if (CM.foldTailByMasking())
6824 Legal->prepareToFoldTailByMasking();
6831 "UserVF ignored because it may be larger than the maximal safe VF",
6832 "InvalidUserVF", ORE, OrigLoop);
6835 "VF needs to be a power of two");
6838 CM.collectInLoopReductions();
6839 if (CM.selectUserVectorizationFactor(UserVF)) {
6841 buildVPlansWithVPRecipes(UserVF, UserVF);
6846 "InvalidCost", ORE, OrigLoop);
6859 CM.collectInLoopReductions();
6860 for (
const auto &VF : VFCandidates) {
6862 CM.collectNonVectorizedAndSetWideningDecisions(VF);
6881 return CM.isUniformAfterVectorization(
I, VF);
6885 return CM.ValuesToIgnore.contains(UI) ||
6886 (IsVector &&
CM.VecValuesToIgnore.contains(UI)) ||
6891 return CM.getPredBlockCostDivisor(
CostKind, BB);
6910 for (
const auto &[
IV, IndDesc] :
Legal->getInductionVars()) {
6912 IV->getIncomingValueForBlock(OrigLoop->getLoopLatch()));
6914 for (
unsigned I = 0;
I != IVInsts.
size();
I++) {
6915 for (
Value *
Op : IVInsts[
I]->operands()) {
6917 if (
Op ==
IV || !OpI || !OrigLoop->contains(OpI) || !
Op->hasOneUse())
6923 for (User *U :
IV->users()) {
6936 if (TC == VF && !CM.foldTailByMasking())
6940 for (Instruction *IVInst : IVInsts) {
6945 dbgs() <<
"Cost of " << InductionCost <<
" for VF " << VF
6946 <<
": induction instruction " << *IVInst <<
"\n";
6948 Cost += InductionCost;
6958 CM.TheLoop->getExitingBlocks(Exiting);
6959 SetVector<Instruction *> ExitInstrs;
6961 for (BasicBlock *EB : Exiting) {
6966 ExitInstrs.
insert(CondI);
6970 for (
unsigned I = 0;
I != ExitInstrs.
size(); ++
I) {
6972 if (!OrigLoop->contains(CondI) ||
6977 dbgs() <<
"Cost of " << CondICost <<
" for VF " << VF
6978 <<
": exit condition instruction " << *CondI <<
"\n";
6984 any_of(OpI->users(), [&ExitInstrs](User *U) {
6985 return !ExitInstrs.contains(cast<Instruction>(U));
6997 for (BasicBlock *BB : OrigLoop->blocks()) {
7001 if (BB == OrigLoop->getLoopLatch())
7003 auto BranchCost = CostCtx.
getLegacyCost(BB->getTerminator(), VF);
7015 for (Instruction *ForcedScalar : CM.ForcedScalars[VF]) {
7021 dbgs() <<
"Cost of " << ForcedCost <<
" for VF " << VF
7022 <<
": forced scalar " << *ForcedScalar <<
"\n";
7026 for (
const auto &[Scalarized, ScalarCost] : CM.InstsToScalarize[VF]) {
7031 dbgs() <<
"Cost of " << ScalarCost <<
" for VF " << VF
7032 <<
": profitable to scalarize " << *Scalarized <<
"\n";
7041 ElementCount VF)
const {
7042 VPCostContext CostCtx(CM.TTI, *CM.TLI, Plan, CM, CM.CostKind, PSE, OrigLoop);
7050 <<
" (Estimated cost per lane: ");
7052 double CostPerLane = double(
Cost.
getValue()) / EstimatedWidth;
7076 return &WidenMem->getIngredient();
7085 if (!VPI || VPI->getOpcode() != Instruction::Select)
7089 switch (WR->getOpcode()) {
7090 case Instruction::UDiv:
7091 case Instruction::SDiv:
7092 case Instruction::URem:
7093 case Instruction::SRem:
7106 auto *IG =
IR->getInterleaveGroup();
7107 unsigned NumMembers = IG->getNumMembers();
7108 for (
unsigned I = 0;
I != NumMembers; ++
I) {
7125 if (VPR->isPartialReduction())
7137 if (WidenMemR->isReverse()) {
7143 if (StoreR->getStoredValue()->isDefinedOutsideLoopRegions())
7147 if (StoreR->getStoredValue()->isDefinedOutsideLoopRegions())
7162 if (RepR->isSingleScalar() &&
7164 RepR->getUnderlyingInstr(), VF))
7167 if (
Instruction *UI = GetInstructionForCost(&R)) {
7171 if (
match(&R,
m_Cmp(Pred, m_VPValue(), m_VPValue())) &&
7179 if (!VPBB->getEnclosingLoopRegion())
7191 return match(&R, m_VPInstruction<VPInstruction::Reverse>());
7198 return any_of(TheLoop->
blocks(), [&SeenInstrs, &CostCtx,
7200 return any_of(*BB, [&SeenInstrs, &CostCtx, TheLoop, BB](Instruction &I) {
7203 if (isa<PHINode>(&I) && BB == TheLoop->getHeader() &&
7204 CostCtx.CM.Legal->isInductionPhi(cast<PHINode>(&I)))
7206 return !SeenInstrs.contains(&I) && !CostCtx.skipCostComputation(&I, true);
7216 VPlan &FirstPlan = *VPlans[0];
7222 ?
"Reciprocal Throughput\n"
7224 ?
"Instruction Latency\n"
7227 ?
"Code Size and Latency\n"
7232 "More than a single plan/VF w/o any plan having scalar VF");
7236 LLVM_DEBUG(
dbgs() <<
"LV: Scalar loop costs: " << ScalarCost <<
".\n");
7241 if (ForceVectorization) {
7248 for (
auto &
P : VPlans) {
7250 P->vectorFactors().end());
7254 return CM.shouldConsiderRegPressureForVF(VF);
7258 for (
unsigned I = 0;
I < VFs.
size();
I++) {
7265 <<
"LV: Not considering vector loop of width " << VF
7266 <<
" because it will not generate any vector instructions.\n");
7272 <<
"LV: Not considering vector loop of width " << VF
7273 <<
" because it would cause replicated blocks to be generated,"
7274 <<
" which isn't allowed when optimizing for size.\n");
7281 if (CM.shouldConsiderRegPressureForVF(VF) &&
7283 LLVM_DEBUG(
dbgs() <<
"LV(REG): Not considering vector loop of width "
7284 << VF <<
" because it uses too many registers\n");
7288 if (isMoreProfitable(CurrentFactor, BestFactor,
P->hasScalarTail()))
7289 BestFactor = CurrentFactor;
7292 if (isMoreProfitable(CurrentFactor, ScalarFactor,
P->hasScalarTail()))
7293 ProfitableVFs.push_back(CurrentFactor);
7309 VPCostContext CostCtx(CM.TTI, *CM.TLI, BestPlan, CM, CM.CostKind, CM.PSE,
7311 precomputeCosts(BestPlan, BestFactor.
Width, CostCtx);
7318 bool UsesEVLGatherScatter =
7322 return any_of(*VPBB, [](VPRecipeBase &R) {
7323 return isa<VPWidenLoadEVLRecipe, VPWidenStoreEVLRecipe>(&R) &&
7324 !cast<VPWidenMemoryRecipe>(&R)->isConsecutive();
7328 (BestFactor.Width == LegacyVF.Width || BestPlan.hasEarlyExit() ||
7329 !
Legal->getLAI()->getSymbolicStrides().empty() || UsesEVLGatherScatter ||
7331 getPlanFor(BestFactor.Width), CostCtx, OrigLoop, BestFactor.Width) ||
7333 getPlanFor(LegacyVF.Width), CostCtx, OrigLoop, LegacyVF.Width)) &&
7334 " VPlan cost model and legacy cost model disagreed");
7335 assert((BestFactor.Width.isScalar() || BestFactor.ScalarCost > 0) &&
7336 "when vectorizing, the scalar cost must be computed.");
7339 LLVM_DEBUG(
dbgs() <<
"LV: Selecting VF: " << BestFactor.Width <<
".\n");
7360 bool IsFindIV =
false;
7363 BackedgeVal = EpiRedResult->getOperand(EpiRedResult->getNumOperands() - 1);
7364 else if (matchFindIVResult(EpiRedResult, m_VPValue(BackedgeVal), m_VPValue()))
7371 if (!EpiRedHeaderPhi) {
7380 Value *MainResumeValue;
7384 "unexpected start recipe");
7385 MainResumeValue = VPI->getOperand(0)->getUnderlyingValue();
7387 MainResumeValue = EpiRedHeaderPhi->getStartValue()->getUnderlyingValue();
7389 [[maybe_unused]]
Value *StartV =
7390 EpiRedResult->getOperand(0)->getLiveInIRValue();
7393 "AnyOf expected to start with ICMP_NE");
7394 assert(Cmp->getOperand(1) == StartV &&
7395 "AnyOf expected to start by comparing main resume value to original "
7397 MainResumeValue = Cmp->getOperand(0);
7398 }
else if (IsFindIV) {
7414 "Trying to execute plan with unsupported VF");
7416 "Trying to execute plan with unsupported UF");
7418 ++LoopsEarlyExitVectorized;
7425 bool HasBranchWeights =
7427 if (HasBranchWeights) {
7428 std::optional<unsigned> VScale = CM.getVScaleForTuning();
7430 BestVPlan, BestVF, VScale);
7435 attachRuntimeChecks(BestVPlan, ILV.
RTChecks, HasBranchWeights);
7448 OrigLoop->getStartLoc(),
7449 OrigLoop->getHeader())
7450 <<
"Created vector loop never executes due to insufficient trip "
7471 BestVPlan, VectorPH, CM.foldTailByMasking(),
7484 assert(VectorizingEpilogue &&
"should only re-use the existing trip "
7485 "count during epilogue vectorization");
7490 OrigLoop->getParentLoop(),
7491 Legal->getWidestInductionType());
7493#ifdef EXPENSIVE_CHECKS
7494 assert(DT->verify(DominatorTree::VerificationLevel::Fast));
7511 if (!Exit->hasPredecessors())
7533 MDNode *LID = OrigLoop->getLoopID();
7534 unsigned OrigLoopInvocationWeight = 0;
7535 std::optional<unsigned> OrigAverageTripCount =
7547 bool DisableRuntimeUnroll = !ILV.
RTChecks.hasChecks() && !BestVF.
isScalar();
7549 HeaderVPBB ? LI->getLoopFor(State.CFG.VPBB2IRBB.lookup(HeaderVPBB))
7551 HeaderVPBB, BestVPlan, VectorizingEpilogue, LID, OrigAverageTripCount,
7552 OrigLoopInvocationWeight,
7554 DisableRuntimeUnroll);
7562 return ExpandedSCEVs;
7577 EPI.EpilogueIterationCountCheck =
7579 EPI.EpilogueIterationCountCheck->setName(
"iter.check");
7589 EPI.MainLoopIterationCountCheck =
7598 dbgs() <<
"Create Skeleton for epilogue vectorized loop (first pass)\n"
7599 <<
"Main Loop VF:" <<
EPI.MainLoopVF
7600 <<
", Main Loop UF:" <<
EPI.MainLoopUF
7601 <<
", Epilogue Loop VF:" <<
EPI.EpilogueVF
7602 <<
", Epilogue Loop UF:" <<
EPI.EpilogueUF <<
"\n";
7608 dbgs() <<
"intermediate fn:\n"
7609 << *
OrigLoop->getHeader()->getParent() <<
"\n";
7615 assert(Bypass &&
"Expected valid bypass basic block.");
7619 VectorPH, ForEpilogue ?
EPI.EpilogueVF :
EPI.MainLoopVF,
7620 ForEpilogue ?
EPI.EpilogueUF :
EPI.MainLoopUF);
7624 TCCheckBlock->
setName(
"vector.main.loop.iter.check");
7650 return TCCheckBlock;
7663 OriginalScalarPH->
setName(
"vec.epilog.iter.check");
7671 R.moveBefore(*NewEntry, NewEntry->
end());
7675 Plan.setEntry(NewEntry);
7678 return OriginalScalarPH;
7683 dbgs() <<
"Create Skeleton for epilogue vectorized loop (second pass)\n"
7684 <<
"Epilogue Loop VF:" <<
EPI.EpilogueVF
7685 <<
", Epilogue Loop UF:" <<
EPI.EpilogueUF <<
"\n";
7691 dbgs() <<
"final fn:\n" << *
OrigLoop->getHeader()->getParent() <<
"\n";
7698 VPI->
getOpcode() == Instruction::Store) &&
7699 "Must be called with either a load or store");
7706 "CM decision should be taken at this point.");
7744 :
GEP->getNoWrapFlags().withoutNoUnsignedWrap();
7750 GEP ?
GEP->getNoWrapFlags()
7754 Builder.insert(VectorPtr);
7758 if (VPI->
getOpcode() == Instruction::Load) {
7760 auto *LoadR =
new VPWidenLoadRecipe(*Load, Ptr, Mask, Consecutive,
Reverse,
7761 *VPI,
Load->getDebugLoc());
7763 Builder.insert(LoadR);
7765 LoadR->getDebugLoc());
7774 Store->getDebugLoc());
7775 return new VPWidenStoreRecipe(*Store, Ptr, StoredVal, Mask, Consecutive,
7780VPRecipeBuilder::tryToOptimizeInductionTruncate(
VPInstruction *VPI,
7790 auto IsOptimizableIVTruncate =
7791 [&](
Instruction *
K) -> std::function<
bool(ElementCount)> {
7792 return [=](ElementCount VF) ->
bool {
7793 return CM.isOptimizableIVTruncate(K, VF);
7798 IsOptimizableIVTruncate(
I),
Range))
7805 const InductionDescriptor &IndDesc =
WidenIV->getInductionDescriptor();
7813 return new VPWidenIntOrFpInductionRecipe(
7814 Phi, Start, Step, &Plan.getVF(), IndDesc,
I, Flags, VPI->
getDebugLoc());
7821 [
this, CI](ElementCount VF) {
7822 return CM.isScalarWithPredication(CI, VF);
7830 if (
ID && (
ID == Intrinsic::assume ||
ID == Intrinsic::lifetime_end ||
7831 ID == Intrinsic::lifetime_start ||
ID == Intrinsic::sideeffect ||
7832 ID == Intrinsic::pseudoprobe ||
7833 ID == Intrinsic::experimental_noalias_scope_decl))
7840 bool ShouldUseVectorIntrinsic =
7842 [&](ElementCount VF) ->
bool {
7843 return CM.getCallWideningDecision(CI, VF).Kind ==
7847 if (ShouldUseVectorIntrinsic)
7848 return new VPWidenIntrinsicRecipe(*CI,
ID,
Ops, CI->
getType(), *VPI, *VPI,
7852 std::optional<unsigned> MaskPos;
7856 [&](ElementCount VF) ->
bool {
7871 LoopVectorizationCostModel::CallWideningDecision Decision =
7872 CM.getCallWideningDecision(CI, VF);
7882 if (ShouldUseVectorCall) {
7883 if (MaskPos.has_value()) {
7893 Ops.insert(
Ops.begin() + *MaskPos, Mask);
7897 return new VPWidenCallRecipe(CI, Variant,
Ops, *VPI, *VPI,
7906 "Instruction should have been handled earlier");
7909 auto WillScalarize = [
this,
I](ElementCount VF) ->
bool {
7910 return CM.isScalarAfterVectorization(
I, VF) ||
7911 CM.isProfitableToScalarize(
I, VF) ||
7912 CM.isScalarWithPredication(
I, VF);
7923 case Instruction::SDiv:
7924 case Instruction::UDiv:
7925 case Instruction::SRem:
7926 case Instruction::URem: {
7929 if (CM.isPredicatedInst(
I)) {
7932 VPValue *One = Plan.getConstantInt(
I->getType(), 1u);
7940 case Instruction::Add:
7941 case Instruction::And:
7942 case Instruction::AShr:
7943 case Instruction::FAdd:
7944 case Instruction::FCmp:
7945 case Instruction::FDiv:
7946 case Instruction::FMul:
7947 case Instruction::FNeg:
7948 case Instruction::FRem:
7949 case Instruction::FSub:
7950 case Instruction::ICmp:
7951 case Instruction::LShr:
7952 case Instruction::Mul:
7953 case Instruction::Or:
7954 case Instruction::Select:
7955 case Instruction::Shl:
7956 case Instruction::Sub:
7957 case Instruction::Xor:
7958 case Instruction::Freeze:
7961 case Instruction::ExtractValue: {
7964 assert(EVI->getNumIndices() == 1 &&
"Expected one extractvalue index");
7965 unsigned Idx = EVI->getIndices()[0];
7966 NewOps.push_back(Plan.getConstantInt(32, Idx));
7967 return new VPWidenRecipe(*
I, NewOps, *VPI, *VPI, VPI->
getDebugLoc());
7975 unsigned Opcode =
HI->Update->getOpcode();
7976 assert((Opcode == Instruction::Add || Opcode == Instruction::Sub) &&
7977 "Histogram update operation must be an Add or Sub");
7987 if (Legal->isMaskRequired(
HI->Store))
7990 return new VPHistogramRecipe(Opcode, HGramOps, VPI->
getDebugLoc());
7997 [&](
ElementCount VF) {
return CM.isUniformAfterVectorization(
I, VF); },
8000 bool IsPredicated = CM.isPredicatedInst(
I);
8008 case Intrinsic::assume:
8009 case Intrinsic::lifetime_start:
8010 case Intrinsic::lifetime_end:
8032 VPValue *BlockInMask =
nullptr;
8033 if (!IsPredicated) {
8037 LLVM_DEBUG(
dbgs() <<
"LV: Scalarizing and predicating:" << *
I <<
"\n");
8048 assert((
Range.Start.isScalar() || !IsUniform || !IsPredicated ||
8050 "Should not predicate a uniform recipe");
8060 assert(!R->isPhi() &&
"phis must be handled earlier");
8066 if (VPI->
getOpcode() == Instruction::Trunc &&
8067 (Recipe = tryToOptimizeInductionTruncate(VPI,
Range)))
8075 if (VPI->
getOpcode() == Instruction::Call)
8076 return tryToWidenCall(VPI,
Range);
8079 if (VPI->
getOpcode() == Instruction::Store)
8081 return tryToWidenHistogram(*HistInfo, VPI);
8083 if (VPI->
getOpcode() == Instruction::Load ||
8085 return tryToWidenMemory(VPI,
Range);
8087 if (!shouldWiden(Instr,
Range))
8090 if (VPI->
getOpcode() == Instruction::GetElementPtr)
8099 CastR->getResultType(), CI, *VPI, *VPI,
8103 return tryToWiden(VPI);
8106void LoopVectorizationPlanner::buildVPlansWithVPRecipes(
ElementCount MinVF,
8115 OrigLoop, LI, DT, PSE.
getSE());
8120 LVer.prepareNoAliasMetadata();
8126 OrigLoop, *LI,
Legal->getWidestInductionType(),
8131 *VPlan0, PSE, *OrigLoop,
Legal->getInductionVars(),
8132 Legal->getReductionVars(),
Legal->getFixedOrderRecurrences(),
8144 auto MaxVFTimes2 = MaxVF * 2;
8146 VFRange SubRange = {VF, MaxVFTimes2};
8147 if (
auto Plan = tryToBuildVPlanWithVPRecipes(
8148 std::unique_ptr<VPlan>(VPlan0->duplicate()), SubRange, &LVer)) {
8153 CM.getMinimalBitwidths());
8156 if (CM.foldTailWithEVL()) {
8158 CM.getMaxSafeElements());
8163 VPlans.push_back(std::move(
P));
8166 VPlans.push_back(std::move(Plan));
8172VPlanPtr LoopVectorizationPlanner::tryToBuildVPlanWithVPRecipes(
8175 using namespace llvm::VPlanPatternMatch;
8176 SmallPtrSet<const InterleaveGroup<Instruction> *, 1> InterleaveGroups;
8183 bool RequiresScalarEpilogueCheck =
8185 [
this](ElementCount VF) {
8186 return !CM.requiresScalarEpilogue(VF.
isVector());
8190 VPBasicBlock *MiddleVPBB = Plan->getMiddleBlock();
8191 if (!RequiresScalarEpilogueCheck && MiddleVPBB->getNumSuccessors() == 2) {
8193 assert(MiddleVPBB->getSuccessors()[1] == Plan->getScalarPreheader() &&
8194 "second successor must be scalar preheader");
8195 BranchOnCond->setOperand(0, Plan->getFalse());
8202 bool IVUpdateMayOverflow =
false;
8203 for (ElementCount VF :
Range)
8211 VPRegionBlock *LoopRegion = Plan->getVectorLoopRegion();
8217 m_VPInstruction<Instruction::Add>(
8219 "Did not find the canonical IV increment");
8232 for (InterleaveGroup<Instruction> *IG : IAI.getInterleaveGroups()) {
8233 auto ApplyIG = [IG,
this](ElementCount VF) ->
bool {
8235 CM.getWideningDecision(IG->getInsertPos(), VF) ==
8240 "Unsupported interleave factor for scalable vectors");
8245 InterleaveGroups.
insert(IG);
8252 VPRecipeBuilder RecipeBuilder(*Plan, TLI, Legal, CM, Builder);
8257 ReversePostOrderTraversal<VPBlockShallowTraversalWrapper<VPBlockBase *>> RPOT(
8263 DenseSet<BasicBlock *> BlocksNeedingPredication;
8264 for (BasicBlock *BB : OrigLoop->blocks())
8265 if (CM.blockNeedsPredicationForAnyReason(BB))
8266 BlocksNeedingPredication.
insert(BB);
8275 make_range(VPBB->getFirstNonPhi(), VPBB->end()))) {
8287 Builder.setInsertPoint(VPI);
8294 Legal->isInvariantAddressOfReduction(
SI->getPointerOperand())) {
8296 if (Legal->isInvariantStoreOfReduction(SI)) {
8297 auto *Recipe =
new VPReplicateRecipe(
8300 Recipe->insertBefore(*MiddleVPBB, MBIP);
8302 R.eraseFromParent();
8306 VPRecipeBase *Recipe =
8307 RecipeBuilder.tryToCreateWidenNonPhiRecipe(VPI,
Range);
8312 RecipeBuilder.setRecipe(Instr, Recipe);
8318 Builder.insert(Recipe);
8324 "Unexpected multidef recipe");
8326 R.eraseFromParent();
8332 "entry block must be set to a VPRegionBlock having a non-empty entry "
8344 addReductionResultComputation(Plan, RecipeBuilder,
Range.Start);
8350 CM.foldTailByMasking());
8371 if (!CM.foldTailWithEVL()) {
8372 VPCostContext CostCtx(CM.TTI, *CM.TLI, *Plan, CM, CM.CostKind, CM.PSE,
8380 for (ElementCount VF :
Range)
8382 Plan->setName(
"Initial VPlan");
8388 InterleaveGroups, RecipeBuilder, CM.isScalarEpilogueAllowed());
8392 Legal->getLAI()->getSymbolicStrides());
8394 auto BlockNeedsPredication = [
this](
BasicBlock *BB) {
8395 return Legal->blockNeedsPredication(BB);
8398 BlockNeedsPredication);
8422 assert(!OrigLoop->isInnermost());
8426 OrigLoop, *LI, Legal->getWidestInductionType(),
8430 *Plan, PSE, *OrigLoop, Legal->getInductionVars(),
8431 MapVector<PHINode *, RecurrenceDescriptor>(),
8432 SmallPtrSet<const PHINode *, 1>(), SmallPtrSet<PHINode *, 1>(),
8440 for (ElementCount VF :
Range)
8454void LoopVectorizationPlanner::addReductionResultComputation(
8456 using namespace VPlanPatternMatch;
8457 VPTypeAnalysis TypeInfo(*Plan);
8458 VPRegionBlock *VectorLoopRegion = Plan->getVectorLoopRegion();
8459 VPBasicBlock *MiddleVPBB = Plan->getMiddleBlock();
8462 Builder.setInsertPoint(&*std::prev(std::prev(LatchVPBB->
end())));
8464 for (VPRecipeBase &R :
8465 Plan->getVectorLoopRegion()->getEntryBasicBlock()->phis()) {
8473 const RecurrenceDescriptor &RdxDesc = Legal->getRecurrenceDescriptor(
8475 Type *PhiTy = TypeInfo.inferScalarType(PhiR);
8485 if (!PhiR->
isInLoop() && CM.foldTailByMasking() &&
8486 (!RR || !RR->isPartialReduction())) {
8489 Builder.createSelect(
Cond, OrigExitingVPV, PhiR, {},
"", *PhiR);
8490 OrigExitingVPV->replaceUsesWithIf(NewExitingVPV, [](VPUser &U,
unsigned) {
8491 using namespace VPlanPatternMatch;
8494 m_VPInstruction<VPInstruction::ComputeAnyOfResult>(),
8495 m_VPInstruction<VPInstruction::ComputeReductionResult>()));
8498 if (CM.usePredicatedReductionSelect(RecurrenceKind))
8509 DebugLoc ExitDL = OrigLoop->getLoopLatch()->getTerminator()->getDebugLoc();
8515 VPInstruction *FinalReductionResult;
8516 VPBuilder::InsertPointGuard Guard(Builder);
8517 Builder.setInsertPoint(MiddleVPBB, IP);
8520 VPRecipeBase *AnyOfSelect =
nullptr;
8523 return match(U, m_Select(m_VPValue(), m_VPValue(), m_VPValue()));
8529 VPValue *NewVal = AnyOfSelect->
getOperand(1) == PhiR
8532 FinalReductionResult =
8534 {
Start, NewVal, NewExitingVPV}, ExitDL);
8538 FinalReductionResult =
8540 {NewExitingVPV},
Flags, ExitDL);
8547 assert(!PhiR->
isInLoop() &&
"Unexpected truncated inloop reduction!");
8549 "Unexpected truncated min-max recurrence!");
8551 VPWidenCastRecipe *Trunc;
8553 RdxDesc.
isSigned() ? Instruction::SExt : Instruction::ZExt;
8554 VPWidenCastRecipe *Extnd;
8556 VPBuilder::InsertPointGuard Guard(Builder);
8557 Builder.setInsertPoint(
8558 NewExitingVPV->getDefiningRecipe()->getParent(),
8559 std::next(NewExitingVPV->getDefiningRecipe()->getIterator()));
8561 Builder.createWidenCast(Instruction::Trunc, NewExitingVPV, RdxTy);
8562 Extnd = Builder.createWidenCast(ExtendOpc, Trunc, PhiTy);
8570 FinalReductionResult =
8571 Builder.createScalarCast(ExtendOpc, FinalReductionResult, PhiTy, {});
8576 for (
auto *U :
to_vector(OrigExitingVPV->users())) {
8578 if (FinalReductionResult == U || Parent->getParent())
8583 m_VPInstruction<VPInstruction::ComputeReductionResult>(),
8584 m_VPInstruction<Instruction::ICmp>())))
8586 U->replaceUsesOfWith(OrigExitingVPV, FinalReductionResult);
8605 if (VPRecipeBase *CmpR =
Cmp->getDefiningRecipe())
8607 Builder.setInsertPoint(AnyOfSelect);
8612 Cmp = Builder.createNot(Cmp);
8613 VPValue *
Or = Builder.createOr(PhiR, Cmp);
8628 VPBuilder PHBuilder(Plan->getVectorPreheader());
8629 VPValue *Iden = Plan->getOrAddLiveIn(
8631 auto *ScaleFactorVPV = Plan->getConstantInt(32, 1);
8632 VPValue *StartV = PHBuilder.createNaryOp(
8638 for (VPRecipeBase *R : ToDelete)
8639 R->eraseFromParent();
8644void LoopVectorizationPlanner::attachRuntimeChecks(
8645 VPlan &Plan, GeneratedRTChecks &RTChecks,
bool HasBranchWeights)
const {
8646 const auto &[SCEVCheckCond, SCEVCheckBlock] = RTChecks.getSCEVChecks();
8647 if (SCEVCheckBlock && SCEVCheckBlock->hasNPredecessors(0)) {
8648 assert((!CM.OptForSize ||
8650 "Cannot SCEV check stride or overflow when optimizing for size");
8654 const auto &[MemCheckCond, MemCheckBlock] = RTChecks.getMemRuntimeChecks();
8655 if (MemCheckBlock && MemCheckBlock->hasNPredecessors(0)) {
8659 "Runtime checks are not supported for outer loops yet");
8661 if (CM.OptForSize) {
8664 "Cannot emit memory checks when optimizing for size, unless forced "
8667 return OptimizationRemarkAnalysis(
DEBUG_TYPE,
"VectorizationCodeSize",
8668 OrigLoop->getStartLoc(),
8669 OrigLoop->getHeader())
8670 <<
"Code-size may be reduced by not forcing "
8671 "vectorization, or by source-code modifications "
8672 "eliminating the need for runtime checks "
8673 "(e.g., adding 'restrict').";
8689 Plan, VF, UF, MinProfitableTripCount,
8690 CM.requiresScalarEpilogue(VF.
isVector()), CM.foldTailByMasking(),
8691 OrigLoop, BranchWeights,
8692 OrigLoop->getLoopPredecessor()->getTerminator()->getDebugLoc(), PSE);
8705 if (
F->hasOptSize() ||
8731 if (
TTI->preferPredicateOverEpilogue(&TFI))
8750 LLVM_DEBUG(
dbgs() <<
"LV: cannot compute the outer-loop trip count\n");
8754 Function *
F = L->getHeader()->getParent();
8760 LoopVectorizationCostModel CM(
SEL, L, PSE, LI, LVL, *
TTI, TLI, DB, AC, ORE,
8761 GetBFI,
F, &Hints, IAI, OptForSize);
8765 LoopVectorizationPlanner LVP(L, LI, DT, TLI, *
TTI, LVL, CM, IAI, PSE, Hints,
8785 GeneratedRTChecks Checks(PSE, DT, LI,
TTI, CM.
CostKind);
8789 << L->getHeader()->getParent()->getName() <<
"\"\n");
8811 if (S->getValueOperand()->getType()->isFloatTy())
8821 while (!Worklist.
empty()) {
8823 if (!L->contains(
I))
8825 if (!Visited.
insert(
I).second)
8835 I->getDebugLoc(), L->getHeader())
8836 <<
"floating point conversion changes vector width. "
8837 <<
"Mixed floating point precision requires an up/down "
8838 <<
"cast that will negatively impact performance.";
8841 for (
Use &
Op :
I->operands())
8857 for (
auto *PredVPBB : ExitVPBB->getPredecessors()) {
8863 << PredVPBB->getName() <<
":\n");
8864 Cost += PredVPBB->cost(VF, CostCtx);
8884 std::optional<unsigned> VScale) {
8896 <<
"LV: Interleaving only is not profitable due to runtime checks\n");
8963 uint64_t MinTC = std::max(MinTC1, MinTC2);
8965 MinTC =
alignTo(MinTC, IntVF);
8969 dbgs() <<
"LV: Minimum required TC for runtime checks to be profitable:"
8976 LLVM_DEBUG(
dbgs() <<
"LV: Vectorization is not beneficial: expected "
8977 "trip count < minimum profitable VF ("
8988 : InterleaveOnlyWhenForced(Opts.InterleaveOnlyWhenForced ||
8990 VectorizeOnlyWhenForced(Opts.VectorizeOnlyWhenForced ||
9011 if (EpiWidenedPhis.
contains(&VPIRInst->getIRPhi()))
9030 auto AddFreezeForFindLastIVReductions = [](
VPlan &Plan,
9031 bool UpdateResumePhis) {
9043 Builder.createNaryOp(Instruction::Freeze, {OrigStart}, {},
"fr");
9045 if (UpdateResumePhis)
9051 AddFreezeForFindLastIVReductions(MainPlan,
true);
9052 AddFreezeForFindLastIVReductions(EpiPlan,
false);
9057 [[maybe_unused]]
bool MatchedTC =
9059 assert(MatchedTC &&
"must match vector trip count");
9065 auto ResumePhiIter =
9067 return match(&R, m_VPInstruction<Instruction::PHI>(m_Specific(VectorTC),
9070 VPPhi *ResumePhi =
nullptr;
9071 if (ResumePhiIter == MainScalarPH->
phis().
end()) {
9076 "canonical IV must start at 0");
9080 {VectorTC, MainPlan.
getZero(Ty)}, {},
"vec.epilog.resume.val");
9083 if (MainScalarPH->
begin() == MainScalarPH->
end())
9085 else if (&*MainScalarPH->
begin() != ResumePhi)
9100 VPlan &Plan,
Loop *L,
const SCEV2ValueTy &ExpandedSCEVs,
9105 Header->
setName(
"vec.epilog.vector.body");
9116 PHINode *EPResumeVal = &*L->getLoopPreheader()->phis().begin();
9121 "Must only have a single non-zero incoming value");
9132 [](
Value *Inc) { return match(Inc, m_SpecificInt(0)); }) &&
9133 "all incoming values must be 0");
9139 return isa<VPScalarIVStepsRecipe>(U) ||
9140 isa<VPDerivedIVRecipe>(U) ||
9141 cast<VPRecipeBase>(U)->isScalarCast() ||
9142 cast<VPInstruction>(U)->getOpcode() ==
9145 "the canonical IV should only be used by its increment or "
9146 "ScalarIVSteps when resetting the start value");
9147 VPBuilder Builder(Header, Header->getFirstNonPhi());
9149 IV->replaceAllUsesWith(
Add);
9150 Add->setOperand(0,
IV);
9158 Value *ResumeV =
nullptr;
9172 assert(RdxResult &&
"expected to find reduction result");
9175 ->getIncomingValueForBlock(L->getLoopPreheader());
9180 VPValue *SentinelVPV =
nullptr;
9181 bool IsFindIV =
any_of(RdxResult->users(), [&](
VPUser *U) {
9182 return match(U, VPlanPatternMatch::m_SpecificICmp(
9183 ICmpInst::ICMP_NE, m_Specific(RdxResult),
9184 m_VPValue(SentinelVPV)));
9194 ResumeV = Builder.CreateICmpNE(ResumeV, StartV);
9197 }
else if (IsFindIV) {
9198 assert(SentinelVPV &&
"expected to find icmp using RdxResult");
9204 ToFrozen[FreezeI->getOperand(0)] = FrozenStartV;
9210 Value *Cmp = Builder.CreateICmpEQ(ResumeV, FrozenStartV);
9222 "unexpected start value");
9229 assert(
Sub->getOpcode() == Instruction::Sub &&
"Unexpected opcode");
9231 "Expected operand to match the original start value of the "
9235 "Expected start value for partial sub-reduction to start at "
9237 Sub->setOperand(0, StartVal);
9251 assert(ResumeV &&
"Must have a resume value");
9265 if (VPI && VPI->
getOpcode() == Instruction::Freeze) {
9282 ExpandR->eraseFromParent();
9286 unsigned MainLoopStep =
9288 unsigned EpilogueLoopStep =
9293 EPI.
EpilogueUF, MainLoopStep, EpilogueLoopStep, SE);
9304 const SCEV2ValueTy &ExpandedSCEVs,
Value *MainVectorTripCount,
9309 Value *EndValueFromAdditionalBypass = MainVectorTripCount;
9310 if (OrigPhi != OldInduction) {
9311 auto *BinOp =
II.getInductionBinOp();
9317 EndValueFromAdditionalBypass =
9319 II.getStartValue(), Step,
II.getKind(), BinOp);
9320 EndValueFromAdditionalBypass->
setName(
"ind.end");
9322 return EndValueFromAdditionalBypass;
9328 const SCEV2ValueTy &ExpandedSCEVs,
9329 Value *MainVectorTripCount) {
9334 if (Phi.getBasicBlockIndex(Pred) != -1)
9336 Phi.addIncoming(Phi.getIncomingValueForBlock(BypassBlock), Pred);
9340 if (ScalarPH->hasPredecessors()) {
9343 for (
const auto &[R, IRPhi] :
9344 zip(ScalarPH->phis(), ScalarPH->getIRBasicBlock()->phis())) {
9354 IVPhi,
II, BypassBuilder, ExpandedSCEVs, MainVectorTripCount,
9358 if (Inc->getBasicBlockIndex(BypassBlock) != -1)
9359 Inc->setIncomingValueForBlock(BypassBlock, V);
9364 Value *OrigVal = IVPhi->getIncomingValueForBlock(PH);
9369 if (Pred == BypassBlock)
9374 IVPhi->setIncomingValueForBlock(PH, NewPhi);
9398 "expected this to be saved from the previous pass.");
9401 VecEpilogueIterationCountCheck, VecEpiloguePreHeader);
9404 VecEpilogueIterationCountCheck},
9406 VecEpiloguePreHeader}});
9411 VecEpilogueIterationCountCheck, ScalarPH);
9414 VecEpilogueIterationCountCheck},
9418 BasicBlock *SCEVCheckBlock = Checks.getSCEVChecks().second;
9419 BasicBlock *MemCheckBlock = Checks.getMemRuntimeChecks().second;
9420 if (SCEVCheckBlock) {
9422 VecEpilogueIterationCountCheck, ScalarPH);
9424 VecEpilogueIterationCountCheck},
9427 if (MemCheckBlock) {
9429 VecEpilogueIterationCountCheck, ScalarPH);
9442 for (
PHINode *Phi : PhisInBlock) {
9444 Phi->replaceIncomingBlockWith(
9446 VecEpilogueIterationCountCheck);
9453 return EPI.EpilogueIterationCountCheck == IncB;
9458 Phi->removeIncomingValue(SCEVCheckBlock);
9460 Phi->removeIncomingValue(MemCheckBlock);
9464 for (
auto *
I : InstsToMove)
9476 "VPlan-native path is not enabled. Only process inner loops.");
9479 << L->getHeader()->getParent()->getName() <<
"' from "
9480 << L->getLocStr() <<
"\n");
9485 dbgs() <<
"LV: Loop hints:"
9496 Function *
F = L->getHeader()->getParent();
9516 L->getHeader(),
PSI,
9523 &Requirements, &Hints,
DB,
AC,
9526 LLVM_DEBUG(
dbgs() <<
"LV: Not vectorizing: Cannot prove legality.\n");
9534 "early exit is not enabled",
9535 "UncountableEarlyExitLoopsDisabled",
ORE, L);
9542 "faulting load is not supported",
9543 "PotentiallyFaultingLoadsNotSupported",
ORE, L);
9552 if (!L->isInnermost())
9557 assert(L->isInnermost() &&
"Inner loop expected.");
9560 bool UseInterleaved =
TTI->enableInterleavedAccessVectorization();
9574 [LoopLatch](
BasicBlock *BB) { return BB != LoopLatch; })) {
9576 "requiring a scalar epilogue is unsupported",
9577 "UncountableEarlyExitUnsupported",
ORE, L);
9590 if (ExpectedTC && ExpectedTC->isFixed() &&
9592 LLVM_DEBUG(
dbgs() <<
"LV: Found a loop with a very small trip count. "
9593 <<
"This loop is worth vectorizing only if no scalar "
9594 <<
"iteration overheads are incurred.");
9596 LLVM_DEBUG(
dbgs() <<
" But vectorizing was explicitly forced.\n");
9612 if (
F->hasFnAttribute(Attribute::NoImplicitFloat)) {
9614 "Can't vectorize when the NoImplicitFloat attribute is used",
9615 "loop not vectorized due to NoImplicitFloat attribute",
9616 "NoImplicitFloat",
ORE, L);
9626 TTI->isFPVectorizationPotentiallyUnsafe()) {
9628 "Potentially unsafe FP op prevents vectorization",
9629 "loop not vectorized due to unsafe FP support.",
9630 "UnsafeFP",
ORE, L);
9635 bool AllowOrderedReductions;
9640 AllowOrderedReductions =
TTI->enableOrderedReductions();
9645 ExactFPMathInst->getDebugLoc(),
9646 ExactFPMathInst->getParent())
9647 <<
"loop not vectorized: cannot prove it is safe to reorder "
9648 "floating-point operations";
9650 LLVM_DEBUG(
dbgs() <<
"LV: loop not vectorized: cannot prove it is safe to "
9651 "reorder floating-point operations\n");
9657 LoopVectorizationCostModel CM(
SEL, L, PSE,
LI, &LVL, *
TTI,
TLI,
DB,
AC,
ORE,
9658 GetBFI,
F, &Hints, IAI, OptForSize);
9660 LoopVectorizationPlanner LVP(L,
LI,
DT,
TLI, *
TTI, &LVL, CM, IAI, PSE, Hints,
9670 LVP.
plan(UserVF, UserIC);
9682 unsigned SelectedIC = std::max(IC, UserIC);
9692 if (Checks.getSCEVChecks().first &&
9693 match(Checks.getSCEVChecks().first,
m_One()))
9695 if (Checks.getMemRuntimeChecks().first &&
9696 match(Checks.getMemRuntimeChecks().first,
m_One()))
9701 bool ForceVectorization =
9705 if (!ForceVectorization &&
9711 DEBUG_TYPE,
"CantReorderMemOps", L->getStartLoc(),
9713 <<
"loop not vectorized: cannot prove it is safe to reorder "
9714 "memory operations";
9723 std::pair<StringRef, std::string> VecDiagMsg, IntDiagMsg;
9724 bool VectorizeLoop =
true, InterleaveLoop =
true;
9726 LLVM_DEBUG(
dbgs() <<
"LV: Vectorization is possible but not beneficial.\n");
9728 "VectorizationNotBeneficial",
9729 "the cost-model indicates that vectorization is not beneficial"};
9730 VectorizeLoop =
false;
9735 "UserIC should only be ignored due to unsafe dependencies");
9736 LLVM_DEBUG(
dbgs() <<
"LV: Ignoring user-specified interleave count.\n");
9737 IntDiagMsg = {
"InterleavingUnsafe",
9738 "Ignoring user-specified interleave count due to possibly "
9739 "unsafe dependencies in the loop."};
9740 InterleaveLoop =
false;
9744 LLVM_DEBUG(
dbgs() <<
"LV: Ignoring UserIC, because vectorization and "
9745 "interleaving should be avoided up front\n");
9746 IntDiagMsg = {
"InterleavingAvoided",
9747 "Ignoring UserIC, because interleaving was avoided up front"};
9748 InterleaveLoop =
false;
9749 }
else if (IC == 1 && UserIC <= 1) {
9753 "InterleavingNotBeneficial",
9754 "the cost-model indicates that interleaving is not beneficial"};
9755 InterleaveLoop =
false;
9757 IntDiagMsg.first =
"InterleavingNotBeneficialAndDisabled";
9758 IntDiagMsg.second +=
9759 " and is explicitly disabled or interleave count is set to 1";
9761 }
else if (IC > 1 && UserIC == 1) {
9763 LLVM_DEBUG(
dbgs() <<
"LV: Interleaving is beneficial but is explicitly "
9765 IntDiagMsg = {
"InterleavingBeneficialButDisabled",
9766 "the cost-model indicates that interleaving is beneficial "
9767 "but is explicitly disabled or interleave count is set to 1"};
9768 InterleaveLoop =
false;
9774 if (!VectorizeLoop && InterleaveLoop && LVL.
hasHistograms()) {
9775 LLVM_DEBUG(
dbgs() <<
"LV: Not interleaving without vectorization due "
9776 <<
"to histogram operations.\n");
9778 "HistogramPreventsScalarInterleaving",
9779 "Unable to interleave without vectorization due to constraints on "
9780 "the order of histogram operations"};
9781 InterleaveLoop =
false;
9785 IC = UserIC > 0 ? UserIC : IC;
9789 if (!VectorizeLoop && !InterleaveLoop) {
9793 L->getStartLoc(), L->getHeader())
9794 << VecDiagMsg.second;
9798 L->getStartLoc(), L->getHeader())
9799 << IntDiagMsg.second;
9804 if (!VectorizeLoop && InterleaveLoop) {
9808 L->getStartLoc(), L->getHeader())
9809 << VecDiagMsg.second;
9811 }
else if (VectorizeLoop && !InterleaveLoop) {
9813 <<
") in " << L->getLocStr() <<
'\n');
9816 L->getStartLoc(), L->getHeader())
9817 << IntDiagMsg.second;
9819 }
else if (VectorizeLoop && InterleaveLoop) {
9821 <<
") in " << L->getLocStr() <<
'\n');
9827 using namespace ore;
9832 <<
"interleaved loop (interleaved count: "
9833 << NV(
"InterleaveCount", IC) <<
")";
9850 std::unique_ptr<VPlan> BestMainPlan(BestPlan.
duplicate());
9862 Checks, *BestMainPlan);
9864 *BestMainPlan, MainILV,
DT,
false);
9870 Checks, BestEpiPlan);
9872 BestEpiPlan, L, ExpandedSCEVs, EPI, CM, *PSE.
getSE());
9876 Checks, InstsToMove);
9877 ++LoopsEpilogueVectorized;
9879 InnerLoopVectorizer LB(L, PSE,
LI,
DT,
TTI,
AC, VF.
Width, IC, &CM, Checks,
9884 BestPlan, VF.
Width, IC, PSE);
9892 assert(
DT->verify(DominatorTree::VerificationLevel::Fast) &&
9893 "DT not preserved correctly");
9908 if (!
TTI->getNumberOfRegisters(
TTI->getRegisterClassForType(
true)) &&
9912 bool Changed =
false, CFGChanged =
false;
9919 for (
const auto &L : *
LI)
9931 LoopsAnalyzed += Worklist.
size();
9934 while (!Worklist.
empty()) {
9980 if (!Result.MadeAnyChange)
9994 if (Result.MadeCFGChange) {
10010 OS, MapClassName2PassName);
10013 OS << (InterleaveOnlyWhenForced ?
"" :
"no-") <<
"interleave-forced-only;";
10014 OS << (VectorizeOnlyWhenForced ?
"" :
"no-") <<
"vectorize-forced-only;";
for(const MachineOperand &MO :llvm::drop_begin(OldMI.operands(), Desc.getNumOperands()))
static unsigned getIntrinsicID(const SDNode *N)
assert(UImm &&(UImm !=~static_cast< T >(0)) &&"Invalid immediate!")
AMDGPU Lower Kernel Arguments
This file implements a class to represent arbitrary precision integral constant values and operations...
MachineBasicBlock MachineBasicBlock::iterator DebugLoc DL
static bool isEqual(const Function &Caller, const Function &Callee)
This file contains the simple types necessary to represent the attributes associated with functions a...
static const Function * getParent(const Value *V)
This is the interface for LLVM's primary stateless and local alias analysis.
static bool IsEmptyBlock(MachineBasicBlock *MBB)
static GCRegistry::Add< ErlangGC > A("erlang", "erlang-compatible garbage collector")
static GCRegistry::Add< CoreCLRGC > E("coreclr", "CoreCLR-compatible GC")
static GCRegistry::Add< OcamlGC > B("ocaml", "ocaml 3.10-compatible GC")
#define clEnumValN(ENUMVAL, FLAGNAME, DESC)
This file contains the declarations for the subclasses of Constant, which represent the different fla...
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")))
static InstructionCost getCost(Instruction &Inst, TTI::TargetCostKind CostKind, TargetTransformInfo &TTI)
This file defines DenseMapInfo traits for DenseMap.
This file defines the DenseMap class.
This is the interface for a simple mod/ref and alias analysis over globals.
This file provides various utilities for inspecting and working with the control flow graph in LLVM I...
Module.h This file contains the declarations for the Module class.
This defines the Use class.
static bool hasNoUnsignedWrap(BinaryOperator &I)
This file defines an InstructionCost class that is used when calculating the cost of an instruction,...
const AbstractManglingParser< Derived, Alloc >::OperatorInfo AbstractManglingParser< Derived, Alloc >::Ops[]
Legalize the Machine IR a function s Machine IR
static cl::opt< unsigned, true > VectorizationFactor("force-vector-width", cl::Hidden, cl::desc("Sets the SIMD width. Zero is autoselect."), cl::location(VectorizerParams::VectorizationFactor))
This header provides classes for managing per-loop analyses.
static cl::opt< bool > WidenIV("loop-flatten-widen-iv", cl::Hidden, cl::init(true), cl::desc("Widen the loop induction variables, if possible, so " "overflow checks won't reject flattening"))
static const char * VerboseDebug
This file defines the LoopVectorizationLegality class.
This file provides a LoopVectorizationPlanner class.
static void collectSupportedLoops(Loop &L, LoopInfo *LI, OptimizationRemarkEmitter *ORE, SmallVectorImpl< Loop * > &V)
static cl::opt< unsigned > EpilogueVectorizationMinVF("epilogue-vectorization-minimum-VF", cl::Hidden, cl::desc("Only loops with vectorization factor equal to or larger than " "the specified value are considered for epilogue vectorization."))
static cl::opt< unsigned > EpilogueVectorizationForceVF("epilogue-vectorization-force-VF", cl::init(1), cl::Hidden, cl::desc("When epilogue vectorization is enabled, and a value greater than " "1 is specified, forces the given VF for all applicable epilogue " "loops."))
static Type * maybeVectorizeType(Type *Ty, ElementCount VF)
static ElementCount determineVPlanVF(const TargetTransformInfo &TTI, LoopVectorizationCostModel &CM)
static ElementCount getSmallConstantTripCount(ScalarEvolution *SE, const Loop *L)
A version of ScalarEvolution::getSmallConstantTripCount that returns an ElementCount to include loops...
static bool hasUnsupportedHeaderPhiRecipe(VPlan &Plan)
Returns true if the VPlan contains header phi recipes that are not currently supported for epilogue v...
static cl::opt< unsigned > VectorizeMemoryCheckThreshold("vectorize-memory-check-threshold", cl::init(128), cl::Hidden, cl::desc("The maximum allowed number of runtime memory checks"))
static void preparePlanForMainVectorLoop(VPlan &MainPlan, VPlan &EpiPlan)
Prepare MainPlan for vectorizing the main vector loop during epilogue vectorization.
static cl::opt< unsigned > TinyTripCountVectorThreshold("vectorizer-min-trip-count", cl::init(16), cl::Hidden, cl::desc("Loops with a constant trip count that is smaller than this " "value are vectorized only if no scalar iteration overheads " "are incurred."))
Loops with a known constant trip count below this number are vectorized only if no scalar iteration o...
static void debugVectorizationMessage(const StringRef Prefix, const StringRef DebugMsg, Instruction *I)
Write a DebugMsg about vectorization to the debug output stream.
static cl::opt< bool > EnableCondStoresVectorization("enable-cond-stores-vec", cl::init(true), cl::Hidden, cl::desc("Enable if predication of stores during vectorization."))
static void legacyCSE(BasicBlock *BB)
FIXME: This legacy common-subexpression-elimination routine is scheduled for removal,...
static VPIRBasicBlock * replaceVPBBWithIRVPBB(VPBasicBlock *VPBB, BasicBlock *IRBB, VPlan *Plan=nullptr)
Replace VPBB with a VPIRBasicBlock wrapping IRBB.
static DebugLoc getDebugLocFromInstOrOperands(Instruction *I)
Look for a meaningful debug location on the instruction or its operands.
static Value * createInductionAdditionalBypassValues(PHINode *OrigPhi, const InductionDescriptor &II, IRBuilder<> &BypassBuilder, const SCEV2ValueTy &ExpandedSCEVs, Value *MainVectorTripCount, Instruction *OldInduction)
static void fixReductionScalarResumeWhenVectorizingEpilog(VPPhi *EpiResumePhiR, PHINode &EpiResumePhi, BasicBlock *BypassBlock)
static cl::opt< bool > ForceTargetSupportsScalableVectors("force-target-supports-scalable-vectors", cl::init(false), cl::Hidden, cl::desc("Pretend that scalable vectors are supported, even if the target does " "not support them. This flag should only be used for testing."))
static bool useActiveLaneMaskForControlFlow(TailFoldingStyle Style)
static cl::opt< bool > EnableEarlyExitVectorization("enable-early-exit-vectorization", cl::init(true), cl::Hidden, cl::desc("Enable vectorization of early exit loops with uncountable exits."))
static bool processLoopInVPlanNativePath(Loop *L, PredicatedScalarEvolution &PSE, LoopInfo *LI, DominatorTree *DT, LoopVectorizationLegality *LVL, TargetTransformInfo *TTI, TargetLibraryInfo *TLI, DemandedBits *DB, AssumptionCache *AC, OptimizationRemarkEmitter *ORE, std::function< BlockFrequencyInfo &()> GetBFI, bool OptForSize, LoopVectorizeHints &Hints, LoopVectorizationRequirements &Requirements)
static cl::opt< bool > ConsiderRegPressure("vectorizer-consider-reg-pressure", cl::init(false), cl::Hidden, cl::desc("Discard VFs if their register pressure is too high."))
static unsigned estimateElementCount(ElementCount VF, std::optional< unsigned > VScale)
This function attempts to return a value that represents the ElementCount at runtime.
static constexpr uint32_t MinItersBypassWeights[]
static cl::opt< unsigned > ForceTargetNumScalarRegs("force-target-num-scalar-regs", cl::init(0), cl::Hidden, cl::desc("A flag that overrides the target's number of scalar registers."))
static cl::opt< bool > UseWiderVFIfCallVariantsPresent("vectorizer-maximize-bandwidth-for-vector-calls", cl::init(true), cl::Hidden, cl::desc("Try wider VFs if they enable the use of vector variants"))
static std::optional< unsigned > getMaxVScale(const Function &F, const TargetTransformInfo &TTI)
static cl::opt< unsigned > SmallLoopCost("small-loop-cost", cl::init(20), cl::Hidden, cl::desc("The cost of a loop that is considered 'small' by the interleaver."))
static void connectEpilogueVectorLoop(VPlan &EpiPlan, Loop *L, EpilogueLoopVectorizationInfo &EPI, DominatorTree *DT, LoopVectorizationLegality &LVL, DenseMap< const SCEV *, Value * > &ExpandedSCEVs, GeneratedRTChecks &Checks, ArrayRef< Instruction * > InstsToMove)
Connect the epilogue vector loop generated for EpiPlan to the main vector.
static bool planContainsAdditionalSimplifications(VPlan &Plan, VPCostContext &CostCtx, Loop *TheLoop, ElementCount VF)
Return true if the original loop \ TheLoop contains any instructions that do not have corresponding r...
static cl::opt< unsigned > ForceTargetNumVectorRegs("force-target-num-vector-regs", cl::init(0), cl::Hidden, cl::desc("A flag that overrides the target's number of vector registers."))
static bool isExplicitVecOuterLoop(Loop *OuterLp, OptimizationRemarkEmitter *ORE)
static cl::opt< bool > EnableIndVarRegisterHeur("enable-ind-var-reg-heur", cl::init(true), cl::Hidden, cl::desc("Count the induction variable only once when interleaving"))
static cl::opt< TailFoldingStyle > ForceTailFoldingStyle("force-tail-folding-style", cl::desc("Force the tail folding style"), cl::init(TailFoldingStyle::None), cl::values(clEnumValN(TailFoldingStyle::None, "none", "Disable tail folding"), clEnumValN(TailFoldingStyle::Data, "data", "Create lane mask for data only, using active.lane.mask intrinsic"), clEnumValN(TailFoldingStyle::DataWithoutLaneMask, "data-without-lane-mask", "Create lane mask with compare/stepvector"), clEnumValN(TailFoldingStyle::DataAndControlFlow, "data-and-control", "Create lane mask using active.lane.mask intrinsic, and use " "it for both data and control flow"), clEnumValN(TailFoldingStyle::DataWithEVL, "data-with-evl", "Use predicated EVL instructions for tail folding. If EVL " "is unsupported, fallback to data-without-lane-mask.")))
static ScalarEpilogueLowering getScalarEpilogueLowering(Function *F, Loop *L, LoopVectorizeHints &Hints, bool OptForSize, TargetTransformInfo *TTI, TargetLibraryInfo *TLI, LoopVectorizationLegality &LVL, InterleavedAccessInfo *IAI)
static cl::opt< bool > EnableEpilogueVectorization("enable-epilogue-vectorization", cl::init(true), cl::Hidden, cl::desc("Enable vectorization of epilogue loops."))
static cl::opt< bool > PreferPredicatedReductionSelect("prefer-predicated-reduction-select", cl::init(false), cl::Hidden, cl::desc("Prefer predicating a reduction operation over an after loop select."))
static cl::opt< bool > PreferInLoopReductions("prefer-inloop-reductions", cl::init(false), cl::Hidden, cl::desc("Prefer in-loop vector reductions, " "overriding the targets preference."))
static SmallVector< Instruction * > preparePlanForEpilogueVectorLoop(VPlan &Plan, Loop *L, const SCEV2ValueTy &ExpandedSCEVs, EpilogueLoopVectorizationInfo &EPI, LoopVectorizationCostModel &CM, ScalarEvolution &SE)
Prepare Plan for vectorizing the epilogue loop.
static const SCEV * getAddressAccessSCEV(Value *Ptr, PredicatedScalarEvolution &PSE, const Loop *TheLoop)
Gets the address access SCEV for Ptr, if it should be used for cost modeling according to isAddressSC...
static cl::opt< bool > EnableLoadStoreRuntimeInterleave("enable-loadstore-runtime-interleave", cl::init(true), cl::Hidden, cl::desc("Enable runtime interleaving until load/store ports are saturated"))
static cl::opt< bool > VPlanBuildStressTest("vplan-build-stress-test", cl::init(false), cl::Hidden, cl::desc("Build VPlan for every supported loop nest in the function and bail " "out right after the build (stress test the VPlan H-CFG construction " "in the VPlan-native vectorization path)."))
static bool hasIrregularType(Type *Ty, const DataLayout &DL)
A helper function that returns true if the given type is irregular.
static cl::opt< bool > LoopVectorizeWithBlockFrequency("loop-vectorize-with-block-frequency", cl::init(true), cl::Hidden, cl::desc("Enable the use of the block frequency analysis to access PGO " "heuristics minimizing code growth in cold regions and being more " "aggressive in hot regions."))
static std::optional< ElementCount > getSmallBestKnownTC(PredicatedScalarEvolution &PSE, Loop *L, bool CanUseConstantMax=true)
Returns "best known" trip count, which is either a valid positive trip count or std::nullopt when an ...
static Value * getExpandedStep(const InductionDescriptor &ID, const SCEV2ValueTy &ExpandedSCEVs)
Return the expanded step for ID using ExpandedSCEVs to look up SCEV expansion results.
static bool useActiveLaneMask(TailFoldingStyle Style)
static bool hasReplicatorRegion(VPlan &Plan)
static bool isIndvarOverflowCheckKnownFalse(const LoopVectorizationCostModel *Cost, ElementCount VF, std::optional< unsigned > UF=std::nullopt)
For the given VF and UF and maximum trip count computed for the loop, return whether the induction va...
static void addFullyUnrolledInstructionsToIgnore(Loop *L, const LoopVectorizationLegality::InductionList &IL, SmallPtrSetImpl< Instruction * > &InstsToIgnore)
Knowing that loop L executes a single vector iteration, add instructions that will get simplified and...
static cl::opt< PreferPredicateTy::Option > PreferPredicateOverEpilogue("prefer-predicate-over-epilogue", cl::init(PreferPredicateTy::ScalarEpilogue), cl::Hidden, cl::desc("Tail-folding and predication preferences over creating a scalar " "epilogue loop."), cl::values(clEnumValN(PreferPredicateTy::ScalarEpilogue, "scalar-epilogue", "Don't tail-predicate loops, create scalar epilogue"), clEnumValN(PreferPredicateTy::PredicateElseScalarEpilogue, "predicate-else-scalar-epilogue", "prefer tail-folding, create scalar epilogue if tail " "folding fails."), clEnumValN(PreferPredicateTy::PredicateOrDontVectorize, "predicate-dont-vectorize", "prefers tail-folding, don't attempt vectorization if " "tail-folding fails.")))
static bool hasFindLastReductionPhi(VPlan &Plan)
Returns true if the VPlan contains a VPReductionPHIRecipe with FindLast recurrence kind.
static cl::opt< bool > EnableInterleavedMemAccesses("enable-interleaved-mem-accesses", cl::init(false), cl::Hidden, cl::desc("Enable vectorization on interleaved memory accesses in a loop"))
static cl::opt< bool > EnableMaskedInterleavedMemAccesses("enable-masked-interleaved-mem-accesses", cl::init(false), cl::Hidden, cl::desc("Enable vectorization on masked interleaved memory accesses in a loop"))
An interleave-group may need masking if it resides in a block that needs predication,...
static cl::opt< bool > ForceOrderedReductions("force-ordered-reductions", cl::init(false), cl::Hidden, cl::desc("Enable the vectorisation of loops with in-order (strict) " "FP reductions"))
static cl::opt< cl::boolOrDefault > ForceSafeDivisor("force-widen-divrem-via-safe-divisor", cl::Hidden, cl::desc("Override cost based safe divisor widening for div/rem instructions"))
static InstructionCost calculateEarlyExitCost(VPCostContext &CostCtx, VPlan &Plan, ElementCount VF)
For loops with uncountable early exits, find the cost of doing work when exiting the loop early,...
static cl::opt< unsigned > ForceTargetMaxVectorInterleaveFactor("force-target-max-vector-interleave", cl::init(0), cl::Hidden, cl::desc("A flag that overrides the target's max interleave factor for " "vectorized loops."))
static bool useMaskedInterleavedAccesses(const TargetTransformInfo &TTI)
cl::opt< unsigned > NumberOfStoresToPredicate("vectorize-num-stores-pred", cl::init(1), cl::Hidden, cl::desc("Max number of stores to be predicated behind an if."))
The number of stores in a loop that are allowed to need predication.
static cl::opt< unsigned > MaxNestedScalarReductionIC("max-nested-scalar-reduction-interleave", cl::init(2), cl::Hidden, cl::desc("The maximum interleave count to use when interleaving a scalar " "reduction in a nested loop."))
static cl::opt< unsigned > ForceTargetMaxScalarInterleaveFactor("force-target-max-scalar-interleave", cl::init(0), cl::Hidden, cl::desc("A flag that overrides the target's max interleave factor for " "scalar loops."))
static void checkMixedPrecision(Loop *L, OptimizationRemarkEmitter *ORE)
static bool willGenerateVectors(VPlan &Plan, ElementCount VF, const TargetTransformInfo &TTI)
Check if any recipe of Plan will generate a vector value, which will be assigned a vector register.
static cl::opt< bool > ForceTargetSupportsMaskedMemoryOps("force-target-supports-masked-memory-ops", cl::init(false), cl::Hidden, cl::desc("Assume the target supports masked memory operations (used for " "testing)."))
Note: This currently only applies to llvm.masked.load and llvm.masked.store.
static bool isOutsideLoopWorkProfitable(GeneratedRTChecks &Checks, VectorizationFactor &VF, Loop *L, PredicatedScalarEvolution &PSE, VPCostContext &CostCtx, VPlan &Plan, ScalarEpilogueLowering SEL, std::optional< unsigned > VScale)
This function determines whether or not it's still profitable to vectorize the loop given the extra w...
static void fixScalarResumeValuesFromBypass(BasicBlock *BypassBlock, Loop *L, VPlan &BestEpiPlan, LoopVectorizationLegality &LVL, const SCEV2ValueTy &ExpandedSCEVs, Value *MainVectorTripCount)
static cl::opt< bool > MaximizeBandwidth("vectorizer-maximize-bandwidth", cl::init(false), cl::Hidden, cl::desc("Maximize bandwidth when selecting vectorization factor which " "will be determined by the smallest type in loop."))
static OptimizationRemarkAnalysis createLVAnalysis(const char *PassName, StringRef RemarkName, Loop *TheLoop, Instruction *I, DebugLoc DL={})
Create an analysis remark that explains why vectorization failed.
This file implements a map that provides insertion order iteration.
ConstantRange Range(APInt(BitWidth, Low), APInt(BitWidth, High))
uint64_t IntrinsicInst * II
This file contains the declarations for profiling metadata utility functions.
const SmallVectorImpl< MachineOperand > & Cond
static BinaryOperator * CreateMul(Value *S1, Value *S2, const Twine &Name, BasicBlock::iterator InsertBefore, Value *FlagsOp)
static BinaryOperator * CreateAdd(Value *S1, Value *S2, const Twine &Name, BasicBlock::iterator InsertBefore, Value *FlagsOp)
static bool isValid(const char C)
Returns true if C is a valid mangled character: <0-9a-zA-Z_>.
static InstructionCost getScalarizationOverhead(const TargetTransformInfo &TTI, Type *ScalarTy, VectorType *Ty, const APInt &DemandedElts, bool Insert, bool Extract, TTI::TargetCostKind CostKind, bool ForPoisonSrc=true, ArrayRef< Value * > VL={})
This is similar to TargetTransformInfo::getScalarizationOverhead, but if ScalarTy is a FixedVectorTyp...
This file defines the SmallPtrSet class.
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)
#define DEBUG_WITH_TYPE(TYPE,...)
DEBUG_WITH_TYPE macro - This macro should be used by passes to emit debug information.
static TableGen::Emitter::Opt Y("gen-skeleton-entry", EmitSkeleton, "Generate example skeleton entry")
LocallyHashedType DenseMapInfo< LocallyHashedType >::Empty
This file implements the TypeSwitch template, which mimics a switch() statement whose cases are type ...
This file contains the declarations of different VPlan-related auxiliary helpers.
This file declares the class VPlanVerifier, which contains utility functions to check the consistency...
This file contains the declarations of the Vectorization Plan base classes:
static const char PassName[]
static const uint32_t IV[8]
A manager for alias analyses.
Class for arbitrary precision integers.
static APInt getAllOnes(unsigned numBits)
Return an APInt of a specified width with all bits set.
uint64_t getZExtValue() const
Get zero extended value.
unsigned getActiveBits() const
Compute the number of active bits in the value.
PassT::Result & getResult(IRUnitT &IR, ExtraArgTs... ExtraArgs)
Get the result of an analysis pass for a given IR unit.
ArrayRef - Represent a constant reference to an array (0 or more elements consecutively in memory),...
size_t size() const
size - Get the array size.
A function analysis which provides an AssumptionCache.
A cache of @llvm.assume calls within a function.
LLVM_ABI unsigned getVScaleRangeMin() const
Returns the minimum value for the vscale_range attribute.
LLVM Basic Block Representation.
iterator_range< const_phi_iterator > phis() const
Returns a range that iterates over the phis in the basic block.
LLVM_ABI const_iterator getFirstInsertionPt() const
Returns an iterator to the first instruction in this block that is suitable for inserting a non-PHI i...
const Function * getParent() const
Return the enclosing method, or null if none.
LLVM_ABI InstListType::const_iterator getFirstNonPHIIt() const
Returns an iterator to the first instruction in this block that is not a PHINode instruction.
LLVM_ABI const BasicBlock * getSinglePredecessor() const
Return the predecessor of this block if it has a single predecessor block.
LLVM_ABI const BasicBlock * getSingleSuccessor() const
Return the successor of this block if it has a single successor.
LLVM_ABI const DataLayout & getDataLayout() const
Get the data layout of the module this basic block belongs to.
LLVM_ABI LLVMContext & getContext() const
Get the context in which this basic block lives.
const Instruction * getTerminator() const LLVM_READONLY
Returns the terminator instruction if the block is well formed or null if the block is not well forme...
BinaryOps getOpcode() const
Analysis pass which computes BlockFrequencyInfo.
BlockFrequencyInfo pass uses BlockFrequencyInfoImpl implementation to estimate IR basic block frequen...
Represents analyses that only rely on functions' control flow.
bool isNoBuiltin() const
Return true if the call should not be treated as a call to a builtin.
Function * getCalledFunction() const
Returns the function called, or null if this is an indirect function invocation or the function signa...
Value * getArgOperand(unsigned i) const
iterator_range< User::op_iterator > args()
Iteration adapter for range-for loops.
unsigned arg_size() const
This class represents a function call, abstracting a target machine's calling convention.
static Type * makeCmpResultType(Type *opnd_type)
Create a result type for fcmp/icmp.
Predicate
This enumeration lists the possible predicates for CmpInst subclasses.
@ ICMP_UGT
unsigned greater than
@ ICMP_ULT
unsigned less than
@ ICMP_ULE
unsigned less or equal
Predicate getInversePredicate() const
For example, EQ -> NE, UGT -> ULE, SLT -> SGE, OEQ -> UNE, UGT -> OLE, OLT -> UGE,...
An abstraction over a floating-point predicate, and a pack of an integer predicate with samesign info...
Conditional Branch instruction.
static CondBrInst * Create(Value *Cond, BasicBlock *IfTrue, BasicBlock *IfFalse, InsertPosition InsertBefore=nullptr)
BasicBlock * getSuccessor(unsigned i) const
This is the shared class of boolean and integer constants.
static LLVM_ABI ConstantInt * getTrue(LLVMContext &Context)
A parsed version of the target data layout string in and methods for querying it.
static DebugLoc getTemporary()
static DebugLoc getUnknown()
An analysis that produces DemandedBits for a function.
ValueT lookup(const_arg_type_t< KeyT > Val) const
lookup - Return the entry for the specified key, or a default constructed value if no such entry exis...
iterator find(const_arg_type_t< KeyT > Val)
std::pair< iterator, bool > try_emplace(KeyT &&Key, Ts &&...Args)
bool contains(const_arg_type_t< KeyT > Val) const
Return true if the specified key is in the map, false otherwise.
void insert_range(Range &&R)
Inserts range of 'std::pair<KeyT, ValueT>' values into the map.
Implements a dense probed hash-table based set.
Analysis pass which computes a DominatorTree.
void changeImmediateDominator(DomTreeNodeBase< NodeT > *N, DomTreeNodeBase< NodeT > *NewIDom)
changeImmediateDominator - This method is used to update the dominator tree information when a node's...
static constexpr UpdateKind Delete
static constexpr UpdateKind Insert
void eraseNode(NodeT *BB)
eraseNode - Removes a node from the dominator tree.
Concrete subclass of DominatorTreeBase that is used to compute a normal dominator tree.
constexpr bool isVector() const
One or more elements.
static constexpr ElementCount getScalable(ScalarTy MinVal)
static constexpr ElementCount getFixed(ScalarTy MinVal)
static constexpr ElementCount get(ScalarTy MinVal, bool Scalable)
constexpr bool isScalar() const
Exactly one element.
void printDebugTracesAtEnd() override
EpilogueVectorizerEpilogueLoop(Loop *OrigLoop, PredicatedScalarEvolution &PSE, LoopInfo *LI, DominatorTree *DT, const TargetTransformInfo *TTI, AssumptionCache *AC, EpilogueLoopVectorizationInfo &EPI, LoopVectorizationCostModel *CM, GeneratedRTChecks &Checks, VPlan &Plan)
BasicBlock * createVectorizedLoopSkeleton() final
Implements the interface for creating a vectorized skeleton using the epilogue loop strategy (i....
void printDebugTracesAtStart() override
Allow subclasses to override and print debug traces before/after vplan execution, when trace informat...
A specialized derived class of inner loop vectorizer that performs vectorization of main loops in the...
void introduceCheckBlockInVPlan(BasicBlock *CheckIRBB)
Introduces a new VPIRBasicBlock for CheckIRBB to Plan between the vector preheader and its predecesso...
BasicBlock * emitIterationCountCheck(BasicBlock *VectorPH, BasicBlock *Bypass, bool ForEpilogue)
Emits an iteration count bypass check once for the main loop (when ForEpilogue is false) and once for...
void printDebugTracesAtEnd() override
Value * createIterationCountCheck(BasicBlock *VectorPH, ElementCount VF, unsigned UF) const
void printDebugTracesAtStart() override
Allow subclasses to override and print debug traces before/after vplan execution, when trace informat...
EpilogueVectorizerMainLoop(Loop *OrigLoop, PredicatedScalarEvolution &PSE, LoopInfo *LI, DominatorTree *DT, const TargetTransformInfo *TTI, AssumptionCache *AC, EpilogueLoopVectorizationInfo &EPI, LoopVectorizationCostModel *CM, GeneratedRTChecks &Check, VPlan &Plan)
BasicBlock * createVectorizedLoopSkeleton() final
Implements the interface for creating a vectorized skeleton using the main loop strategy (i....
Convenience struct for specifying and reasoning about fast-math flags.
Class to represent function types.
param_iterator param_begin() const
param_iterator param_end() const
FunctionType * getFunctionType() const
Returns the FunctionType for me.
Attribute getFnAttribute(Attribute::AttrKind Kind) const
Return the attribute for the given attribute kind.
bool hasFnAttribute(Attribute::AttrKind Kind) const
Return true if the function has the attribute.
Represents flags for the getelementptr instruction/expression.
static GEPNoWrapFlags none()
void applyUpdates(ArrayRef< UpdateT > Updates)
Submit updates to all available trees.
Common base class shared among various IRBuilders.
void setFastMathFlags(FastMathFlags NewFMF)
Set the fast-math flags to be used with generated fp-math operators.
This provides a uniform API for creating instructions and inserting them into a basic block: either a...
A struct for saving information about induction variables.
const SCEV * getStep() const
ArrayRef< Instruction * > getCastInsts() const
Returns an ArrayRef to the type cast instructions in the induction update chain, that are redundant w...
InductionKind
This enum represents the kinds of inductions that we support.
@ IK_NoInduction
Not an induction variable.
@ IK_FpInduction
Floating point induction variable.
@ IK_PtrInduction
Pointer induction var. Step = C.
@ IK_IntInduction
Integer induction variable. Step = C.
ElementCount MinProfitableTripCount
InnerLoopAndEpilogueVectorizer(Loop *OrigLoop, PredicatedScalarEvolution &PSE, LoopInfo *LI, DominatorTree *DT, const TargetTransformInfo *TTI, AssumptionCache *AC, EpilogueLoopVectorizationInfo &EPI, LoopVectorizationCostModel *CM, GeneratedRTChecks &Checks, VPlan &Plan, ElementCount VecWidth, ElementCount MinProfitableTripCount, unsigned UnrollFactor)
EpilogueLoopVectorizationInfo & EPI
Holds and updates state information required to vectorize the main loop and its epilogue in two separ...
InnerLoopVectorizer vectorizes loops which contain only one basic block to a specified vectorization ...
virtual void printDebugTracesAtStart()
Allow subclasses to override and print debug traces before/after vplan execution, when trace informat...
Value * TripCount
Trip count of the original loop.
const TargetTransformInfo * TTI
Target Transform Info.
LoopVectorizationCostModel * Cost
The profitablity analysis.
Value * getTripCount() const
Returns the original loop trip count.
friend class LoopVectorizationPlanner
InnerLoopVectorizer(Loop *OrigLoop, PredicatedScalarEvolution &PSE, LoopInfo *LI, DominatorTree *DT, const TargetTransformInfo *TTI, AssumptionCache *AC, ElementCount VecWidth, unsigned UnrollFactor, LoopVectorizationCostModel *CM, GeneratedRTChecks &RTChecks, VPlan &Plan)
PredicatedScalarEvolution & PSE
A wrapper around ScalarEvolution used to add runtime SCEV checks.
DominatorTree * DT
Dominator Tree.
void setTripCount(Value *TC)
Used to set the trip count after ILV's construction and after the preheader block has been executed.
void fixVectorizedLoop(VPTransformState &State)
Fix the vectorized code, taking care of header phi's, and more.
virtual BasicBlock * createVectorizedLoopSkeleton()
Creates a basic block for the scalar preheader.
virtual void printDebugTracesAtEnd()
AssumptionCache * AC
Assumption Cache.
IRBuilder Builder
The builder that we use.
void fixNonInductionPHIs(VPTransformState &State)
Fix the non-induction PHIs in Plan.
VPBasicBlock * VectorPHVPBB
The vector preheader block of Plan, used as target for check blocks introduced during skeleton creati...
unsigned UF
The vectorization unroll factor to use.
GeneratedRTChecks & RTChecks
Structure to hold information about generated runtime checks, responsible for cleaning the checks,...
virtual ~InnerLoopVectorizer()=default
ElementCount VF
The vectorization SIMD factor to use.
Loop * OrigLoop
The original loop.
BasicBlock * createScalarPreheader(StringRef Prefix)
Create and return a new IR basic block for the scalar preheader whose name is prefixed with Prefix.
InstSimplifyFolder - Use InstructionSimplify to fold operations to existing values.
static InstructionCost getInvalid(CostType Val=0)
static InstructionCost getMax()
CostType getValue() const
This function is intended to be used as sparingly as possible, since the class provides the full rang...
LLVM_ABI const Module * getModule() const
Return the module owning the function this instruction belongs to or nullptr it the function does not...
LLVM_ABI void moveBefore(InstListType::iterator InsertPos)
Unlink this instruction from its current basic block and insert it into the basic block that MovePos ...
LLVM_ABI InstListType::iterator eraseFromParent()
This method unlinks 'this' from the containing basic block and deletes it.
Instruction * user_back()
Specialize the methods defined in Value, as we know that an instruction can only be used by other ins...
const char * getOpcodeName() const
unsigned getOpcode() const
Returns a member of one of the enums like Instruction::Add.
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.
LLVM_ABI APInt getMask() const
For example, this is 0xFF for an 8 bit integer, 0xFFFF for i16, etc.
The group of interleaved loads/stores sharing the same stride and close to each other.
uint32_t getFactor() const
InstTy * getMember(uint32_t Index) const
Get the member with the given index Index.
InstTy * getInsertPos() const
uint32_t getNumMembers() const
Drive the analysis of interleaved memory accesses in the loop.
bool requiresScalarEpilogue() const
Returns true if an interleaved group that may access memory out-of-bounds requires a scalar epilogue ...
LLVM_ABI void analyzeInterleaving(bool EnableMaskedInterleavedGroup)
Analyze the interleaved accesses and collect them in interleave groups.
An instruction for reading from memory.
Type * getPointerOperandType() const
This analysis provides dependence information for the memory accesses of a loop.
Drive the analysis of memory accesses in the loop.
const RuntimePointerChecking * getRuntimePointerChecking() const
unsigned getNumRuntimePointerChecks() const
Number of memchecks required to prove independence of otherwise may-alias pointers.
Analysis pass that exposes the LoopInfo for a function.
bool contains(const LoopT *L) const
Return true if the specified loop is contained within in this loop.
BlockT * getLoopLatch() const
If there is a single latch block for this loop, return it.
bool isInnermost() const
Return true if the loop does not contain any (natural) loops.
void getExitingBlocks(SmallVectorImpl< BlockT * > &ExitingBlocks) const
Return all blocks inside the loop that have successors outside of the loop.
BlockT * getHeader() const
iterator_range< block_iterator > blocks() const
ArrayRef< BlockT * > getBlocks() const
Get a list of the basic blocks which make up this loop.
Store the result of a depth first search within basic blocks contained by a single loop.
RPOIterator beginRPO() const
Reverse iterate over the cached postorder blocks.
void perform(const LoopInfo *LI)
Traverse the loop blocks and store the DFS result.
RPOIterator endRPO() const
Wrapper class to LoopBlocksDFS that provides a standard begin()/end() interface for the DFS reverse p...
void perform(const LoopInfo *LI)
Traverse the loop blocks and store the DFS result.
void removeBlock(BlockT *BB)
This method completely removes BB from all data structures, including all of the Loop objects it is n...
LoopVectorizationCostModel - estimates the expected speedups due to vectorization.
SmallPtrSet< Type *, 16 > ElementTypesInLoop
All element types found in the loop.
bool isLegalMaskedLoad(Type *DataType, Value *Ptr, Align Alignment, unsigned AddressSpace) const
Returns true if the target machine supports masked load operation for the given DataType and kind of ...
void collectElementTypesForWidening()
Collect all element types in the loop for which widening is needed.
bool canVectorizeReductions(ElementCount VF) const
Returns true if the target machine supports all of the reduction variables found for the given VF.
bool isLegalMaskedStore(Type *DataType, Value *Ptr, Align Alignment, unsigned AddressSpace) const
Returns true if the target machine supports masked store operation for the given DataType and kind of...
bool isEpilogueVectorizationProfitable(const ElementCount VF, const unsigned IC) const
Returns true if epilogue vectorization is considered profitable, and false otherwise.
bool useWideActiveLaneMask() const
Returns true if the use of wide lane masks is requested and the loop is using tail-folding with a lan...
bool isPredicatedInst(Instruction *I) const
Returns true if I is an instruction that needs to be predicated at runtime.
bool hasPredStores() const
void collectValuesToIgnore()
Collect values we want to ignore in the cost model.
BlockFrequencyInfo * BFI
The BlockFrequencyInfo returned from GetBFI.
void collectInLoopReductions()
Split reductions into those that happen in the loop, and those that happen outside.
BlockFrequencyInfo & getBFI()
Returns the BlockFrequencyInfo for the function if cached, otherwise fetches it via GetBFI.
std::pair< unsigned, unsigned > getSmallestAndWidestTypes()
bool isUniformAfterVectorization(Instruction *I, ElementCount VF) const
Returns true if I is known to be uniform after vectorization.
bool useEmulatedMaskMemRefHack(Instruction *I, ElementCount VF)
Returns true if an artificially high cost for emulated masked memrefs should be used.
void collectNonVectorizedAndSetWideningDecisions(ElementCount VF)
Collect values that will not be widened, including Uniforms, Scalars, and Instructions to Scalarize f...
PredicatedScalarEvolution & PSE
Predicated scalar evolution analysis.
const LoopVectorizeHints * Hints
Loop Vectorize Hint.
std::optional< unsigned > getMaxSafeElements() const
Return maximum safe number of elements to be processed per vector iteration, which do not prevent sto...
const TargetTransformInfo & TTI
Vector target information.
friend class LoopVectorizationPlanner
const Function * TheFunction
LoopVectorizationLegality * Legal
Vectorization legality.
uint64_t getPredBlockCostDivisor(TargetTransformInfo::TargetCostKind CostKind, const BasicBlock *BB)
A helper function that returns how much we should divide the cost of a predicated block by.
std::optional< InstructionCost > getReductionPatternCost(Instruction *I, ElementCount VF, Type *VectorTy) const
Return the cost of instructions in an inloop reduction pattern, if I is part of that pattern.
InstructionCost getInstructionCost(Instruction *I, ElementCount VF)
Returns the execution time cost of an instruction for a given vector width.
DemandedBits * DB
Demanded bits analysis.
bool interleavedAccessCanBeWidened(Instruction *I, ElementCount VF) const
Returns true if I is a memory instruction in an interleaved-group of memory accesses that can be vect...
const TargetLibraryInfo * TLI
Target Library Info.
bool memoryInstructionCanBeWidened(Instruction *I, ElementCount VF)
Returns true if I is a memory instruction with consecutive memory access that can be widened.
const InterleaveGroup< Instruction > * getInterleavedAccessGroup(Instruction *Instr) const
Get the interleaved access group that Instr belongs to.
InstructionCost getVectorIntrinsicCost(CallInst *CI, ElementCount VF) const
Estimate cost of an intrinsic call instruction CI if it were vectorized with factor VF.
bool OptForSize
Whether this loop should be optimized for size based on function attribute or profile information.
bool useMaxBandwidth(TargetTransformInfo::RegisterKind RegKind)
bool isScalarAfterVectorization(Instruction *I, ElementCount VF) const
Returns true if I is known to be scalar after vectorization.
bool isOptimizableIVTruncate(Instruction *I, ElementCount VF)
Return True if instruction I is an optimizable truncate whose operand is an induction variable.
FixedScalableVFPair computeMaxVF(ElementCount UserVF, unsigned UserIC)
bool shouldConsiderRegPressureForVF(ElementCount VF)
Loop * TheLoop
The loop that we evaluate.
TTI::TargetCostKind CostKind
The kind of cost that we are calculating.
InterleavedAccessInfo & InterleaveInfo
The interleave access information contains groups of interleaved accesses with the same stride and cl...
SmallPtrSet< const Value *, 16 > ValuesToIgnore
Values to ignore in the cost model.
void setVectorizedCallDecision(ElementCount VF)
A call may be vectorized in different ways depending on whether we have vectorized variants available...
void invalidateCostModelingDecisions()
Invalidates decisions already taken by the cost model.
bool isAccessInterleaved(Instruction *Instr) const
Check if Instr belongs to any interleaved access group.
bool selectUserVectorizationFactor(ElementCount UserVF)
Setup cost-based decisions for user vectorization factor.
std::optional< unsigned > getVScaleForTuning() const
Return the value of vscale used for tuning the cost model.
void setTailFoldingStyle(bool IsScalableVF, unsigned UserIC)
Selects and saves TailFoldingStyle.
OptimizationRemarkEmitter * ORE
Interface to emit optimization remarks.
bool preferPredicatedLoop() const
Returns true if tail-folding is preferred over a scalar epilogue.
LoopInfo * LI
Loop Info analysis.
bool requiresScalarEpilogue(bool IsVectorizing) const
Returns true if we're required to use a scalar epilogue for at least the final iteration of the origi...
SmallPtrSet< const Value *, 16 > VecValuesToIgnore
Values to ignore in the cost model when VF > 1.
bool isInLoopReduction(PHINode *Phi) const
Returns true if the Phi is part of an inloop reduction.
bool isProfitableToScalarize(Instruction *I, ElementCount VF) const
void setWideningDecision(const InterleaveGroup< Instruction > *Grp, ElementCount VF, InstWidening W, InstructionCost Cost)
Save vectorization decision W and Cost taken by the cost model for interleaving group Grp and vector ...
const MapVector< Instruction *, uint64_t > & getMinimalBitwidths() const
CallWideningDecision getCallWideningDecision(CallInst *CI, ElementCount VF) const
bool isLegalGatherOrScatter(Value *V, ElementCount VF)
Returns true if the target machine can represent V as a masked gather or scatter operation.
bool canTruncateToMinimalBitwidth(Instruction *I, ElementCount VF) const
bool runtimeChecksRequired()
bool shouldConsiderInvariant(Value *Op)
Returns true if Op should be considered invariant and if it is trivially hoistable.
bool foldTailByMasking() const
Returns true if all loop blocks should be masked to fold tail loop.
bool foldTailWithEVL() const
Returns true if VP intrinsics with explicit vector length support should be generated in the tail fol...
bool blockNeedsPredicationForAnyReason(BasicBlock *BB) const
Returns true if the instructions in this block requires predication for any reason,...
void setCallWideningDecision(CallInst *CI, ElementCount VF, InstWidening Kind, Function *Variant, Intrinsic::ID IID, std::optional< unsigned > MaskPos, InstructionCost Cost)
AssumptionCache * AC
Assumption cache.
void setWideningDecision(Instruction *I, ElementCount VF, InstWidening W, InstructionCost Cost)
Save vectorization decision W and Cost taken by the cost model for instruction I and vector width VF.
InstWidening
Decision that was taken during cost calculation for memory instruction.
bool usePredicatedReductionSelect(RecurKind RecurrenceKind) const
Returns true if the predicated reduction select should be used to set the incoming value for the redu...
std::pair< InstructionCost, InstructionCost > getDivRemSpeculationCost(Instruction *I, ElementCount VF)
Return the costs for our two available strategies for lowering a div/rem operation which requires spe...
InstructionCost getVectorCallCost(CallInst *CI, ElementCount VF) const
Estimate cost of a call instruction CI if it were vectorized with factor VF.
bool isScalarWithPredication(Instruction *I, ElementCount VF)
Returns true if I is an instruction which requires predication and for which our chosen predication s...
bool useOrderedReductions(const RecurrenceDescriptor &RdxDesc) const
Returns true if we should use strict in-order reductions for the given RdxDesc.
bool isDivRemScalarWithPredication(InstructionCost ScalarCost, InstructionCost SafeDivisorCost) const
Given costs for both strategies, return true if the scalar predication lowering should be used for di...
std::function< BlockFrequencyInfo &()> GetBFI
A function to lazily fetch BlockFrequencyInfo.
LoopVectorizationCostModel(ScalarEpilogueLowering SEL, Loop *L, PredicatedScalarEvolution &PSE, LoopInfo *LI, LoopVectorizationLegality *Legal, const TargetTransformInfo &TTI, const TargetLibraryInfo *TLI, DemandedBits *DB, AssumptionCache *AC, OptimizationRemarkEmitter *ORE, std::function< BlockFrequencyInfo &()> GetBFI, const Function *F, const LoopVectorizeHints *Hints, InterleavedAccessInfo &IAI, bool OptForSize)
InstructionCost expectedCost(ElementCount VF)
Returns the expected execution cost.
void setCostBasedWideningDecision(ElementCount VF)
Memory access instruction may be vectorized in more than one way.
InstWidening getWideningDecision(Instruction *I, ElementCount VF) const
Return the cost model decision for the given instruction I and vector width VF.
FixedScalableVFPair MaxPermissibleVFWithoutMaxBW
The highest VF possible for this loop, without using MaxBandwidth.
const SmallPtrSetImpl< PHINode * > & getInLoopReductions() const
Returns the set of in-loop reduction PHIs.
bool isScalarEpilogueAllowed() const
Returns true if a scalar epilogue is not allowed due to optsize or a loop hint annotation.
InstructionCost getWideningCost(Instruction *I, ElementCount VF)
Return the vectorization cost for the given instruction I and vector width VF.
TailFoldingStyle getTailFoldingStyle() const
Returns the TailFoldingStyle that is best for the current loop.
void collectInstsToScalarize(ElementCount VF)
Collects the instructions to scalarize for each predicated instruction in the loop.
LoopVectorizationLegality checks if it is legal to vectorize a loop, and to what vectorization factor...
MapVector< PHINode *, InductionDescriptor > InductionList
InductionList saves induction variables and maps them to the induction descriptor.
const SmallPtrSetImpl< const Instruction * > & getPotentiallyFaultingLoads() const
Returns potentially faulting loads.
bool canVectorize(bool UseVPlanNativePath)
Returns true if it is legal to vectorize this loop.
bool canVectorizeFPMath(bool EnableStrictReductions)
Returns true if it is legal to vectorize the FP math operations in this loop.
PHINode * getPrimaryInduction()
Returns the primary induction variable.
const SmallVector< BasicBlock *, 4 > & getCountableExitingBlocks() const
Returns all exiting blocks with a countable exit, i.e.
const InductionList & getInductionVars() const
Returns the induction variables found in the loop.
bool isSafeForAnyVectorWidth() const
bool hasUncountableEarlyExit() const
Returns true if the loop has uncountable early exits, i.e.
bool hasHistograms() const
Returns a list of all known histogram operations in the loop.
const LoopAccessInfo * getLAI() const
Planner drives the vectorization process after having passed Legality checks.
VectorizationFactor selectEpilogueVectorizationFactor(const ElementCount MainLoopVF, unsigned IC)
VPlan & getPlanFor(ElementCount VF) const
Return the VPlan for VF.
VectorizationFactor planInVPlanNativePath(ElementCount UserVF)
Use the VPlan-native path to plan how to best vectorize, return the best VF and its cost.
void updateLoopMetadataAndProfileInfo(Loop *VectorLoop, VPBasicBlock *HeaderVPBB, const VPlan &Plan, bool VectorizingEpilogue, MDNode *OrigLoopID, std::optional< unsigned > OrigAverageTripCount, unsigned OrigLoopInvocationWeight, unsigned EstimatedVFxUF, bool DisableRuntimeUnroll)
Update loop metadata and profile info for both the scalar remainder loop and VectorLoop,...
void buildVPlans(ElementCount MinVF, ElementCount MaxVF)
Build VPlans for power-of-2 VF's between MinVF and MaxVF inclusive, according to the information gath...
VectorizationFactor computeBestVF()
Compute and return the most profitable vectorization factor.
DenseMap< const SCEV *, Value * > executePlan(ElementCount VF, unsigned UF, VPlan &BestPlan, InnerLoopVectorizer &LB, DominatorTree *DT, bool VectorizingEpilogue)
Generate the IR code for the vectorized loop captured in VPlan BestPlan according to the best selecte...
unsigned selectInterleaveCount(VPlan &Plan, ElementCount VF, InstructionCost LoopCost)
void emitInvalidCostRemarks(OptimizationRemarkEmitter *ORE)
Emit remarks for recipes with invalid costs in the available VPlans.
static bool getDecisionAndClampRange(const std::function< bool(ElementCount)> &Predicate, VFRange &Range)
Test a Predicate on a Range of VF's.
void printPlans(raw_ostream &O)
void plan(ElementCount UserVF, unsigned UserIC)
Build VPlans for the specified UserVF and UserIC if they are non-zero or all applicable candidate VFs...
void addMinimumIterationCheck(VPlan &Plan, ElementCount VF, unsigned UF, ElementCount MinProfitableTripCount) const
Create a check to Plan to see if the vector loop should be executed based on its trip count.
bool hasPlanWithVF(ElementCount VF) const
Look through the existing plans and return true if we have one with vectorization factor VF.
This holds vectorization requirements that must be verified late in the process.
Instruction * getExactFPInst()
Utility class for getting and setting loop vectorizer hints in the form of loop metadata.
enum ForceKind getForce() const
bool allowVectorization(Function *F, Loop *L, bool VectorizeOnlyWhenForced) const
bool allowReordering() const
When enabling loop hints are provided we allow the vectorizer to change the order of operations that ...
void emitRemarkWithHints() const
Dumps all the hint information.
bool isPotentiallyUnsafe() const
ElementCount getWidth() const
@ FK_Enabled
Forcing enabled.
@ FK_Undefined
Not selected.
@ FK_Disabled
Forcing disabled.
unsigned getPredicate() const
const char * vectorizeAnalysisPassName() const
If hints are provided that force vectorization, use the AlwaysPrint pass name to force the frontend t...
unsigned getInterleave() const
This class emits a version of the loop where run-time checks ensure that may-alias pointers can't ove...
Represents a single loop in the control flow graph.
bool hasLoopInvariantOperands(const Instruction *I) const
Return true if all the operands of the specified instruction are loop invariant.
DebugLoc getStartLoc() const
Return the debug location of the start of this loop.
bool isLoopInvariant(const Value *V) const
Return true if the specified value is loop invariant.
This class implements a map that also provides access to all stored values in a deterministic order.
std::pair< iterator, bool > insert(const std::pair< KeyT, ValueT > &KV)
Function * getFunction(StringRef Name) const
Look up the specified function in the module symbol table.
void addIncoming(Value *V, BasicBlock *BB)
Add an incoming value to the end of the PHI list.
op_range incoming_values()
void setIncomingValueForBlock(const BasicBlock *BB, Value *V)
Set every incoming value(s) for block BB to V.
Value * getIncomingValueForBlock(const BasicBlock *BB) const
unsigned getNumIncomingValues() const
Return the number of incoming edges.
static PHINode * Create(Type *Ty, unsigned NumReservedValues, const Twine &NameStr="", InsertPosition InsertBefore=nullptr)
Constructors - NumReservedValues is a hint for the number of incoming edges that this phi node will h...
An interface layer with SCEV used to manage how we see SCEV expressions for values in the context of ...
ScalarEvolution * getSE() const
Returns the ScalarEvolution analysis used.
LLVM_ABI const SCEVPredicate & getPredicate() const
LLVM_ABI unsigned getSmallConstantMaxTripCount()
Returns the upper bound of the loop trip count as a normal unsigned value, or 0 if the trip count is ...
LLVM_ABI const SCEV * getBackedgeTakenCount()
Get the (predicated) backedge count for the analyzed loop.
LLVM_ABI const SCEV * getSCEV(Value *V)
Returns the SCEV expression of V, in the context of the current SCEV predicate.
A set of analyses that are preserved following a run of a transformation pass.
static PreservedAnalyses all()
Construct a special preserved set that preserves all passes.
PreservedAnalyses & preserveSet()
Mark an analysis set as preserved.
PreservedAnalyses & preserve()
Mark an analysis as preserved.
An analysis pass based on the new PM to deliver ProfileSummaryInfo.
The RecurrenceDescriptor is used to identify recurrences variables in a loop.
static bool isFMulAddIntrinsic(Instruction *I)
Returns true if the instruction is a call to the llvm.fmuladd intrinsic.
FastMathFlags getFastMathFlags() const
static LLVM_ABI unsigned getOpcode(RecurKind Kind)
Returns the opcode corresponding to the RecurrenceKind.
unsigned getOpcode() const
Type * getRecurrenceType() const
Returns the type of the recurrence.
bool hasUsesOutsideReductionChain() const
Returns true if the reduction PHI has any uses outside the reduction chain.
const SmallPtrSet< Instruction *, 8 > & getCastInsts() const
Returns a reference to the instructions used for type-promoting the recurrence.
static bool isFindLastRecurrenceKind(RecurKind Kind)
Returns true if the recurrence kind is of the form select(cmp(),x,y) where one of (x,...
unsigned getMinWidthCastToRecurrenceTypeInBits() const
Returns the minimum width used by the recurrence in bits.
LLVM_ABI SmallVector< Instruction *, 4 > getReductionOpChain(PHINode *Phi, Loop *L) const
Attempts to find a chain of operations from Phi to LoopExitInst that can be treated as a set of reduc...
static bool isAnyOfRecurrenceKind(RecurKind Kind)
Returns true if the recurrence kind is of the form select(cmp(),x,y) where one of (x,...
bool isSigned() const
Returns true if all source operands of the recurrence are SExtInsts.
RecurKind getRecurrenceKind() const
bool isOrdered() const
Expose an ordered FP reduction to the instance users.
static bool isFindIVRecurrenceKind(RecurKind Kind)
Returns true if the recurrence kind is of the form select(cmp(),x,y) where one of (x,...
static bool isMinMaxRecurrenceKind(RecurKind Kind)
Returns true if the recurrence kind is any min/max kind.
std::optional< ArrayRef< PointerDiffInfo > > getDiffChecks() const
const SmallVectorImpl< RuntimePointerCheck > & getChecks() const
Returns the checks that generateChecks created.
This class uses information about analyze scalars to rewrite expressions in canonical form.
ScalarEvolution * getSE()
bool isInsertedInstruction(Instruction *I) const
Return true if the specified instruction was inserted by the code rewriter.
LLVM_ABI Value * expandCodeForPredicate(const SCEVPredicate *Pred, Instruction *Loc)
Generates a code sequence that evaluates this predicate.
void eraseDeadInstructions(Value *Root)
Remove inserted instructions that are dead, e.g.
virtual bool isAlwaysTrue() const =0
Returns true if the predicate is always true.
This class represents an analyzed expression in the program.
LLVM_ABI bool isZero() const
Return true if the expression is a constant zero.
LLVM_ABI Type * getType() const
Return the LLVM type of this SCEV expression.
Analysis pass that exposes the ScalarEvolution for a function.
The main scalar evolution driver.
LLVM_ABI const SCEV * getURemExpr(SCEVUse LHS, SCEVUse RHS)
Represents an unsigned remainder expression based on unsigned division.
LLVM_ABI const SCEV * getBackedgeTakenCount(const Loop *L, ExitCountKind Kind=Exact)
If the specified loop has a predictable backedge-taken count, return it, otherwise return a SCEVCould...
LLVM_ABI const SCEV * getConstant(ConstantInt *V)
LLVM_ABI const SCEV * getSCEV(Value *V)
Return a SCEV expression for the full generality of the specified expression.
LLVM_ABI const SCEV * getTripCountFromExitCount(const SCEV *ExitCount)
A version of getTripCountFromExitCount below which always picks an evaluation type which can not resu...
const SCEV * getOne(Type *Ty)
Return a SCEV for the constant 1 of a specific type.
LLVM_ABI void forgetLoop(const Loop *L)
This method should be called by the client when it has changed a loop in a way that may effect Scalar...
LLVM_ABI bool isLoopInvariant(const SCEV *S, const Loop *L)
Return true if the value of the given SCEV is unchanging in the specified loop.
LLVM_ABI const SCEV * getElementCount(Type *Ty, ElementCount EC, SCEV::NoWrapFlags Flags=SCEV::FlagAnyWrap)
LLVM_ABI void forgetValue(Value *V)
This method should be called by the client when it has changed a value in a way that may effect its v...
LLVM_ABI void forgetBlockAndLoopDispositions(Value *V=nullptr)
Called when the client has changed the disposition of values in a loop or block.
const SCEV * getMinusOne(Type *Ty)
Return a SCEV for the constant -1 of a specific type.
LLVM_ABI void forgetLcssaPhiWithNewPredecessor(Loop *L, PHINode *V)
Forget LCSSA phi node V of loop L to which a new predecessor was added, such that it may no longer be...
LLVM_ABI const SCEV * getMulExpr(SmallVectorImpl< SCEVUse > &Ops, SCEV::NoWrapFlags Flags=SCEV::FlagAnyWrap, unsigned Depth=0)
Get a canonical multiply expression, or something simpler if possible.
LLVM_ABI unsigned getSmallConstantTripCount(const Loop *L)
Returns the exact trip count of the loop if we can compute it, and the result is a small constant.
APInt getUnsignedRangeMax(const SCEV *S)
Determine the max of the unsigned range for a particular SCEV.
LLVM_ABI const SCEV * getAddExpr(SmallVectorImpl< SCEVUse > &Ops, SCEV::NoWrapFlags Flags=SCEV::FlagAnyWrap, unsigned Depth=0)
Get a canonical add expression, or something simpler if possible.
LLVM_ABI const SCEV * applyLoopGuards(const SCEV *Expr, const Loop *L)
Try to apply information from loop guards for L to Expr.
LLVM_ABI bool isKnownPredicate(CmpPredicate Pred, const SCEV *LHS, const SCEV *RHS)
Test if the given expression is known to satisfy the condition described by Pred, LHS,...
This class represents the LLVM 'select' instruction.
A vector that has set insertion semantics.
size_type size() const
Determine the number of elements in the SetVector.
void insert_range(Range &&R)
size_type count(const_arg_type key) const
Count the number of elements of a given key in the SetVector.
bool insert(const value_type &X)
Insert a new element into the SetVector.
A templated base class for SmallPtrSet which provides the typesafe interface that is common across al...
size_type count(ConstPtrType Ptr) const
count - Return 1 if the specified pointer is in the set, 0 otherwise.
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.
A SetVector that performs no allocations if smaller than a certain size.
This class consists of common code factored out of the SmallVector class to reduce code duplication b...
reference emplace_back(ArgTypes &&... Args)
void push_back(const T &Elt)
This is a 'vector' (really, a variable-sized array), optimized for the case when the array is small.
An instruction for storing to memory.
StringRef - Represent a constant reference to a string, i.e.
Analysis pass providing the TargetTransformInfo.
Analysis pass providing the TargetLibraryInfo.
Provides information about what library functions are available for the current target.
Twine - A lightweight data structure for efficiently representing the concatenation of temporary valu...
This class implements a switch-like dispatch statement for a value of 'T' using dyn_cast functionalit...
TypeSwitch< T, ResultT > & Case(CallableT &&caseFn)
Add a case on the given type.
The instances of the Type class are immutable: once they are created, they are never changed.
LLVM_ABI unsigned getIntegerBitWidth() const
bool isVectorTy() const
True if this is an instance of VectorType.
static LLVM_ABI Type * getVoidTy(LLVMContext &C)
Type * getScalarType() const
If this is a vector type, return the element type, otherwise return 'this'.
LLVMContext & getContext() const
Return the LLVMContext in which this type was uniqued.
LLVM_ABI unsigned getScalarSizeInBits() const LLVM_READONLY
If this is a vector type, return the getPrimitiveSizeInBits value for the element type.
static LLVM_ABI IntegerType * getInt1Ty(LLVMContext &C)
bool isFloatingPointTy() const
Return true if this is one of the floating-point types.
bool isIntegerTy() const
True if this is an instance of IntegerType.
bool isVoidTy() const
Return true if this is 'void'.
A Use represents the edge between a Value definition and its users.
LLVM_ABI bool replaceUsesOfWith(Value *From, Value *To)
Replace uses of one Value with another.
Value * getOperand(unsigned i) const
static SmallVector< VFInfo, 8 > getMappings(const CallInst &CI)
Retrieve all the VFInfo instances associated to the CallInst CI.
VPBasicBlock serves as the leaf of the Hierarchical Control-Flow Graph.
RecipeListTy::iterator iterator
Instruction iterators...
iterator begin()
Recipe iterator methods.
iterator_range< iterator > phis()
Returns an iterator range over the PHI-like recipes in the block.
InstructionCost cost(ElementCount VF, VPCostContext &Ctx) override
Return the cost of this VPBasicBlock.
iterator getFirstNonPhi()
Return the position of the first non-phi node recipe in the block.
VPRecipeBase * getTerminator()
If the block has multiple successors, return the branch recipe terminating the block.
VPBlockBase is the building block of the Hierarchical Control-Flow Graph.
const VPBasicBlock * getExitingBasicBlock() const
void setName(const Twine &newName)
size_t getNumSuccessors() const
void swapSuccessors()
Swap successors of the block. The block must have exactly 2 successors.
size_t getNumPredecessors() const
const VPBasicBlock * getEntryBasicBlock() const
VPBlockBase * getSingleSuccessor() const
const VPBlocksTy & getSuccessors() const
static auto blocksOnly(const T &Range)
Return an iterator range over Range which only includes BlockTy blocks.
static void insertOnEdge(VPBlockBase *From, VPBlockBase *To, VPBlockBase *BlockPtr)
Inserts BlockPtr on the edge between From and To.
static void connectBlocks(VPBlockBase *From, VPBlockBase *To, unsigned PredIdx=-1u, unsigned SuccIdx=-1u)
Connect VPBlockBases From and To bi-directionally.
static void reassociateBlocks(VPBlockBase *Old, VPBlockBase *New)
Reassociate all the blocks connected to Old so that they now point to New.
VPlan-based builder utility analogous to IRBuilder.
VPPhi * createScalarPhi(ArrayRef< VPValue * > IncomingValues, DebugLoc DL=DebugLoc::getUnknown(), const Twine &Name="", const VPIRFlags &Flags={})
VPInstruction * createNaryOp(unsigned Opcode, ArrayRef< VPValue * > Operands, Instruction *Inst=nullptr, const VPIRFlags &Flags={}, const VPIRMetadata &MD={}, DebugLoc DL=DebugLoc::getUnknown(), const Twine &Name="")
Create an N-ary operation with Opcode, Operands and set Inst as its underlying Instruction.
Canonical scalar induction phi of the vector loop.
VPIRValue * getStartValue() const
Returns the start value of the canonical induction.
unsigned getNumDefinedValues() const
Returns the number of values defined by the VPDef.
VPValue * getVPSingleValue()
Returns the only VPValue defined by the VPDef.
A recipe representing a sequence of load -> update -> store as part of a histogram operation.
A special type of VPBasicBlock that wraps an existing IR basic block.
LLVM_ABI_FOR_TEST FastMathFlags getFastMathFlags() const
This is a concrete Recipe that models a single VPlan-level instruction.
unsigned getNumOperandsWithoutMask() const
Returns the number of operands, excluding the mask if the VPInstruction is masked.
iterator_range< operand_iterator > operandsWithoutMask()
Returns an iterator range over the operands excluding the mask operand if present.
@ ComputeAnyOfResult
Compute the final result of a AnyOf reduction with select(cmp(),x,y), where one of (x,...
@ ResumeForEpilogue
Explicit user for the resume phi of the canonical induction in the main VPlan, used by the epilogue v...
@ FirstOrderRecurrenceSplice
@ ReductionStartVector
Start vector for reductions with 3 operands: the original start value, the identity value for the red...
unsigned getOpcode() const
VPValue * getMask() const
Returns the mask for the VPInstruction.
bool isMasked() const
Returns true if the VPInstruction has a mask operand.
VPInterleaveRecipe is a recipe for transforming an interleave group of load or stores into one wide l...
detail::zippy< llvm::detail::zip_first, VPUser::const_operand_range, const_incoming_blocks_range > incoming_values_and_blocks() const
Returns an iterator range over pairs of incoming values and corresponding incoming blocks.
VPRecipeBase is a base class modeling a sequence of one or more output IR instructions.
DebugLoc getDebugLoc() const
Returns the debug location of the recipe.
void moveBefore(VPBasicBlock &BB, iplist< VPRecipeBase >::iterator I)
Unlink this recipe and insert into BB before I.
void insertBefore(VPRecipeBase *InsertPos)
Insert an unlinked recipe into a basic block immediately before the specified recipe.
iplist< VPRecipeBase >::iterator eraseFromParent()
This method unlinks 'this' from the containing basic block and deletes it.
Helper class to create VPRecipies from IR instructions.
VPRecipeBase * tryToCreateWidenNonPhiRecipe(VPSingleDefRecipe *R, VFRange &Range)
Create and return a widened recipe for a non-phi recipe R if one can be created within the given VF R...
VPValue * getVPValueOrAddLiveIn(Value *V)
VPReplicateRecipe * handleReplication(VPInstruction *VPI, VFRange &Range)
Build a VPReplicationRecipe for VPI.
bool isOrdered() const
Returns true, if the phi is part of an ordered reduction.
unsigned getVFScaleFactor() const
Get the factor that the VF of this recipe's output should be scaled by, or 1 if it isn't scaled.
bool isInLoop() const
Returns true if the phi is part of an in-loop reduction.
RecurKind getRecurrenceKind() const
Returns the recurrence kind of the reduction.
A recipe to represent inloop, ordered or partial reduction operations.
VPRegionBlock represents a collection of VPBasicBlocks and VPRegionBlocks which form a Single-Entry-S...
const VPBlockBase * getEntry() const
VPCanonicalIVPHIRecipe * getCanonicalIV()
Returns the canonical induction recipe of the region.
VPReplicateRecipe replicates a given instruction producing multiple scalar copies of the original sca...
VPSingleDef is a base class for recipes for modeling a sequence of one or more output IR that define ...
Instruction * getUnderlyingInstr()
Returns the underlying instruction.
An analysis for type-inference for VPValues.
Type * inferScalarType(const VPValue *V)
Infer the type of V. Returns the scalar type of V.
This class augments VPValue with operands which provide the inverse def-use edges from VPValue's user...
void setOperand(unsigned I, VPValue *New)
operand_iterator op_begin()
VPValue * getOperand(unsigned N) const
This is the base class of the VPlan Def/Use graph, used for modeling the data flow into,...
Value * getLiveInIRValue() const
Return the underlying IR value for a VPIRValue.
VPRecipeBase * getDefiningRecipe()
Returns the recipe defining this VPValue or nullptr if it is not defined by a recipe,...
Value * getUnderlyingValue() const
Return the underlying Value attached to this VPValue.
void replaceAllUsesWith(VPValue *New)
void replaceUsesWithIf(VPValue *New, llvm::function_ref< bool(VPUser &U, unsigned Idx)> ShouldReplace)
Go through the uses list for this VPValue and make each use point to New if the callback ShouldReplac...
A recipe to compute a pointer to the last element of each part of a widened memory access for widened...
VPWidenCastRecipe is a recipe to create vector cast instructions.
A recipe for handling GEP instructions.
A recipe for handling phi nodes of integer and floating-point inductions, producing their vector valu...
A recipe for widened phis.
VPWidenRecipe is a recipe for producing a widened instruction using the opcode and operands of the re...
VPlan models a candidate for vectorization, encoding various decisions take to produce efficient outp...
bool hasVF(ElementCount VF) const
VPBasicBlock * getEntry()
VPValue * getTripCount() const
The trip count of the original loop.
iterator_range< SmallSetVector< ElementCount, 2 >::iterator > vectorFactors() const
Returns an iterator range over all VFs of the plan.
VPSymbolicValue & getVFxUF()
Returns VF * UF of the vector loop region.
bool hasUF(unsigned UF) const
ArrayRef< VPIRBasicBlock * > getExitBlocks() const
Return an ArrayRef containing VPIRBasicBlocks wrapping the exit blocks of the original scalar loop.
VPIRValue * getOrAddLiveIn(Value *V)
Gets the live-in VPIRValue for V or adds a new live-in (if none exists yet) for V.
VPIRValue * getZero(Type *Ty)
Return a VPIRValue wrapping the null value of type Ty.
LLVM_ABI_FOR_TEST VPRegionBlock * getVectorLoopRegion()
Returns the VPRegionBlock of the vector loop.
bool hasEarlyExit() const
Returns true if the VPlan is based on a loop with an early exit.
InstructionCost cost(ElementCount VF, VPCostContext &Ctx)
Return the cost of this plan.
void resetTripCount(VPValue *NewTripCount)
Resets the trip count for the VPlan.
VPBasicBlock * getMiddleBlock()
Returns the 'middle' block of the plan, that is the block that selects whether to execute the scalar ...
VPBasicBlock * getScalarPreheader() const
Return the VPBasicBlock for the preheader of the scalar loop.
void execute(VPTransformState *State)
Generate the IR code for this VPlan.
VPIRBasicBlock * getScalarHeader() const
Return the VPIRBasicBlock wrapping the header of the scalar loop.
VPBasicBlock * getVectorPreheader()
Returns the preheader of the vector loop region, if one exists, or null otherwise.
VPSymbolicValue & getVF()
Returns the VF of the vector loop region.
LLVM_ABI_FOR_TEST VPlan * duplicate()
Clone the current VPlan, update all VPValues of the new VPlan and cloned recipes to refer to the clon...
LLVM Value Representation.
Type * getType() const
All values are typed, get the type of this value.
LLVM_ABI bool hasOneUser() const
Return true if there is exactly one user of this value.
LLVM_ABI void setName(const Twine &Name)
Change the name of the value.
LLVM_ABI void replaceAllUsesWith(Value *V)
Change all uses of this to point to a new Value.
iterator_range< user_iterator > users()
LLVM_ABI const Value * stripPointerCasts() const
Strip off pointer casts, all-zero GEPs and address space casts.
LLVM_ABI StringRef getName() const
Return a constant reference to the value's name.
Base class of all SIMD vector types.
ElementCount getElementCount() const
Return an ElementCount instance to represent the (possibly scalable) number of elements in the vector...
static LLVM_ABI VectorType * get(Type *ElementType, ElementCount EC)
This static method is the primary way to construct an VectorType.
std::pair< iterator, bool > insert(const ValueT &V)
bool contains(const_arg_type_t< ValueT > V) const
Check if the set contains the given element.
constexpr ScalarTy getFixedValue() const
static constexpr bool isKnownLE(const FixedOrScalableQuantity &LHS, const FixedOrScalableQuantity &RHS)
constexpr bool isNonZero() const
static constexpr bool isKnownLT(const FixedOrScalableQuantity &LHS, const FixedOrScalableQuantity &RHS)
constexpr bool isScalable() const
Returns whether the quantity is scaled by a runtime quantity (vscale).
constexpr LeafTy multiplyCoefficientBy(ScalarTy RHS) const
constexpr bool isFixed() const
Returns true if the quantity is not scaled by vscale.
constexpr ScalarTy getKnownMinValue() const
Returns the minimum value this quantity can represent.
constexpr bool isZero() const
static constexpr bool isKnownGT(const FixedOrScalableQuantity &LHS, const FixedOrScalableQuantity &RHS)
constexpr LeafTy divideCoefficientBy(ScalarTy RHS) const
We do not provide the '/' operator here because division for polynomial types does not work in the sa...
static constexpr bool isKnownGE(const FixedOrScalableQuantity &LHS, const FixedOrScalableQuantity &RHS)
An efficient, type-erasing, non-owning reference to a callable.
const ParentTy * getParent() const
self_iterator getIterator()
This class implements an extremely fast bulk output stream that can only output to a stream.
A raw_ostream that writes to an std::string.
This provides a very simple, boring adaptor for a begin and end iterator into a range type.
#define llvm_unreachable(msg)
Marks that the current location is not supposed to be reachable.
@ PredicateElseScalarEpilogue
@ PredicateOrDontVectorize
constexpr char Align[]
Key for Kernel::Arg::Metadata::mAlign.
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.
unsigned ID
LLVM IR allows to use arbitrary numbers as calling convention identifiers.
@ Tail
Attemps to make calls as fast as possible while guaranteeing that tail call optimization can always b...
@ C
The default llvm calling convention, compatible with C.
@ BasicBlock
Various leaf nodes.
std::variant< std::monostate, Loc::Single, Loc::Multi, Loc::MMI, Loc::EntryValue > Variant
Alias for the std::variant specialization base class of DbgVariable.
SpecificConstantMatch m_ZeroInt()
Convenience matchers for specific integer values.
OneUse_match< SubPat > m_OneUse(const SubPat &SP)
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)
bind_ty< 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.
auto match_fn(const Pattern &P)
A match functor that can be used as a UnaryPredicate in functional algorithms like all_of.
cst_pred_ty< is_one > m_One()
Match an integer 1 or a vector with all elements equal to 1.
BinaryOp_match< LHS, RHS, Instruction::Mul > m_Mul(const LHS &L, const RHS &R)
auto m_LogicalOr()
Matches L || R where L and R are arbitrary values.
class_match< CmpInst > m_Cmp()
Matches any compare instruction and ignore it.
class_match< Value > m_Value()
Match an arbitrary value and ignore it.
match_combine_or< CastInst_match< OpTy, ZExtInst >, CastInst_match< OpTy, SExtInst > > m_ZExtOrSExt(const OpTy &Op)
auto m_LogicalAnd()
Matches L && R where L and R are arbitrary values.
match_combine_or< LTy, RTy > m_CombineOr(const LTy &L, const RTy &R)
Combine two pattern matchers matching L || R.
class_match< const SCEVVScale > m_SCEVVScale()
bind_cst_ty m_scev_APInt(const APInt *&C)
Match an SCEV constant and bind it to an APInt.
specificloop_ty m_SpecificLoop(const Loop *L)
cst_pred_ty< is_specific_signed_cst > m_scev_SpecificSInt(int64_t V)
Match an SCEV constant with a plain signed integer (sign-extended value will be matched)
SCEVAffineAddRec_match< Op0_t, Op1_t, class_match< const Loop > > m_scev_AffineAddRec(const Op0_t &Op0, const Op1_t &Op1)
bind_ty< const SCEVMulExpr > m_scev_Mul(const SCEVMulExpr *&V)
bool match(const SCEV *S, const Pattern &P)
SCEVBinaryExpr_match< SCEVMulExpr, Op0_t, Op1_t, SCEV::FlagAnyWrap, true > m_scev_c_Mul(const Op0_t &Op0, const Op1_t &Op1)
class_match< const SCEV > m_SCEV()
AllRecipe_match< Instruction::Select, Op0_t, Op1_t, Op2_t > m_Select(const Op0_t &Op0, const Op1_t &Op1, const Op2_t &Op2)
int_pred_ty< is_zero_int > m_ZeroInt()
Match an integer 0 or a vector with all elements equal to 0.
bool matchFindIVResult(VPInstruction *VPI, Op0_t ReducedIV, Op1_t Start)
Match FindIV result pattern: select(icmp ne ComputeReductionResult(ReducedIV), Sentinel),...
match_combine_or< AllRecipe_match< Instruction::ZExt, Op0_t >, AllRecipe_match< Instruction::SExt, Op0_t > > m_ZExtOrSExt(const Op0_t &Op0)
VPInstruction_match< VPInstruction::ExtractLastLane, Op0_t > m_ExtractLastLane(const Op0_t &Op0)
VPInstruction_match< VPInstruction::BranchOnCount > m_BranchOnCount()
VPInstruction_match< VPInstruction::ExtractLastPart, Op0_t > m_ExtractLastPart(const Op0_t &Op0)
bool match(Val *V, const Pattern &P)
class_match< VPValue > m_VPValue()
Match an arbitrary VPValue and ignore it.
VPInstruction_match< VPInstruction::ExtractLane, Op0_t, Op1_t > m_ExtractLane(const Op0_t &Op0, const Op1_t &Op1)
ValuesClass values(OptsTy... Options)
Helper to build a ValuesClass by forwarding a variable number of arguments as an initializer list to ...
initializer< Ty > init(const Ty &Val)
Add a small namespace to avoid name clashes with the classes used in the streaming interface.
DiagnosticInfoOptimizationBase::Argument NV
NodeAddr< InstrNode * > Instr
NodeAddr< PhiNode * > Phi
friend class Instruction
Iterator for Instructions in a `BasicBlock.
bool isSingleScalar(const VPValue *VPV)
Returns true if VPV is a single scalar, either because it produces the same value for all lanes or on...
VPValue * getOrCreateVPValueForSCEVExpr(VPlan &Plan, const SCEV *Expr)
Get or create a VPValue that corresponds to the expansion of Expr.
VPBasicBlock * getFirstLoopHeader(VPlan &Plan, VPDominatorTree &VPDT)
Returns the header block of the first, top-level loop, or null if none exist.
bool isAddressSCEVForCost(const SCEV *Addr, ScalarEvolution &SE, const Loop *L)
Returns true if Addr is an address SCEV that can be passed to TTI::getAddressComputationCost,...
bool onlyFirstLaneUsed(const VPValue *Def)
Returns true if only the first lane of Def is used.
VPIRFlags getFlagsFromIndDesc(const InductionDescriptor &ID)
Extracts and returns NoWrap and FastMath flags from the induction binop in ID.
VPRecipeBase * findRecipe(VPValue *Start, PredT Pred)
Search Start's users for a recipe satisfying Pred, looking through recipes with definitions.
VPSingleDefRecipe * findHeaderMask(VPlan &Plan)
Collect the header mask with the pattern: (ICMP_ULE, WideCanonicalIV, backedge-taken-count) TODO: Int...
const SCEV * getSCEVExprForVPValue(const VPValue *V, PredicatedScalarEvolution &PSE, const Loop *L=nullptr)
Return the SCEV expression for V.
This is an optimization pass for GlobalISel generic memory operations.
LLVM_ABI bool simplifyLoop(Loop *L, DominatorTree *DT, LoopInfo *LI, ScalarEvolution *SE, AssumptionCache *AC, MemorySSAUpdater *MSSAU, bool PreserveLCSSA)
Simplify each loop in a loop nest recursively.
LLVM_ABI void ReplaceInstWithInst(BasicBlock *BB, BasicBlock::iterator &BI, Instruction *I)
Replace the instruction specified by BI with the instruction specified by I.
auto drop_begin(T &&RangeOrContainer, size_t N=1)
Return a range covering RangeOrContainer with the first N elements excluded.
detail::zippy< detail::zip_shortest, T, U, Args... > zip(T &&t, U &&u, Args &&...args)
zip iterator for two or more iteratable types.
FunctionAddr VTableAddr Value
LLVM_ABI Value * addRuntimeChecks(Instruction *Loc, Loop *TheLoop, const SmallVectorImpl< RuntimePointerCheck > &PointerChecks, SCEVExpander &Expander, bool HoistRuntimeChecks=false)
Add code that checks at runtime if the accessed arrays in PointerChecks overlap.
auto cast_if_present(const Y &Val)
cast_if_present<X> - Functionally identical to cast, except that a null value is accepted.
LLVM_ABI bool RemoveRedundantDbgInstrs(BasicBlock *BB)
Try to remove redundant dbg.value instructions from given basic block.
LLVM_ABI_FOR_TEST cl::opt< bool > VerifyEachVPlan
LLVM_ABI std::optional< unsigned > getLoopEstimatedTripCount(Loop *L, unsigned *EstimatedLoopInvocationWeight=nullptr)
Return either:
static void reportVectorization(OptimizationRemarkEmitter *ORE, Loop *TheLoop, VectorizationFactor VF, unsigned IC)
Report successful vectorization of the loop.
bool all_of(R &&range, UnaryPredicate P)
Provide wrappers to std::all_of which take ranges instead of having to pass begin/end explicitly.
unsigned getLoadStoreAddressSpace(const Value *I)
A helper function that returns the address space of the pointer operand of load or store instruction.
LLVM_ABI Intrinsic::ID getMinMaxReductionIntrinsicOp(Intrinsic::ID RdxID)
Returns the min/max intrinsic used when expanding a min/max reduction.
auto size(R &&Range, std::enable_if_t< std::is_base_of< std::random_access_iterator_tag, typename std::iterator_traits< decltype(Range.begin())>::iterator_category >::value, void > *=nullptr)
Get the size of a range.
LLVM_ABI Intrinsic::ID getVectorIntrinsicIDForCall(const CallInst *CI, const TargetLibraryInfo *TLI)
Returns intrinsic ID for call.
decltype(auto) dyn_cast(const From &Val)
dyn_cast<X> - Return the argument parameter cast to the specified type.
LLVM_ABI bool verifyFunction(const Function &F, raw_ostream *OS=nullptr)
Check a function for errors, useful for use when debugging a pass.
const Value * getLoadStorePointerOperand(const Value *V)
A helper function that returns the pointer operand of a load or store instruction.
OuterAnalysisManagerProxy< ModuleAnalysisManager, Function > ModuleAnalysisManagerFunctionProxy
Provide the ModuleAnalysisManager to Function proxy.
Value * getRuntimeVF(IRBuilderBase &B, Type *Ty, ElementCount VF)
Return the runtime value for VF.
LLVM_ABI bool formLCSSARecursively(Loop &L, const DominatorTree &DT, const LoopInfo *LI, ScalarEvolution *SE)
Put a loop nest into LCSSA form.
iterator_range< T > make_range(T x, T y)
Convenience function for iterating over sub-ranges.
void append_range(Container &C, Range &&R)
Wrapper function to append range R to container C.
LLVM_ABI bool shouldOptimizeForSize(const MachineFunction *MF, ProfileSummaryInfo *PSI, const MachineBlockFrequencyInfo *BFI, PGSOQueryType QueryType=PGSOQueryType::Other)
Returns true if machine function MF is suggested to be size-optimized based on the profile.
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...
auto pred_size(const MachineBasicBlock *BB)
constexpr bool isPowerOf2_64(uint64_t Value)
Return true if the argument is a power of two > 0 (64 bit edition.)
Align getLoadStoreAlignment(const Value *I)
A helper function that returns the alignment of load or store instruction.
iterator_range< df_iterator< VPBlockShallowTraversalWrapper< VPBlockBase * > > > vp_depth_first_shallow(VPBlockBase *G)
Returns an iterator range to traverse the graph starting at G in depth-first order.
LLVM_ABI_FOR_TEST cl::opt< bool > VPlanPrintAfterAll
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 ...
bool isa_and_nonnull(const Y &Val)
iterator_range< df_iterator< VPBlockDeepTraversalWrapper< VPBlockBase * > > > vp_depth_first_deep(VPBlockBase *G)
Returns an iterator range to traverse the graph starting at G in depth-first order while traversing t...
SmallVector< VPRegisterUsage, 8 > calculateRegisterUsageForPlan(VPlan &Plan, ArrayRef< ElementCount > VFs, const TargetTransformInfo &TTI, const SmallPtrSetImpl< const Value * > &ValuesToIgnore)
Estimate the register usage for Plan and vectorization factors in VFs by calculating the highest numb...
unsigned Log2_64(uint64_t Value)
Return the floor log base 2 of the specified value, -1 if the value is zero.
LLVM_ABI void setBranchWeights(Instruction &I, ArrayRef< uint32_t > Weights, bool IsExpected, bool ElideAllZero=false)
Create a new branch_weights metadata node and add or overwrite a prof metadata reference to instructi...
auto dyn_cast_or_null(const Y &Val)
bool any_of(R &&range, UnaryPredicate P)
Provide wrappers to std::any_of which take ranges instead of having to pass begin/end explicitly.
void collectEphemeralRecipesForVPlan(VPlan &Plan, DenseSet< VPRecipeBase * > &EphRecipes)
auto reverse(ContainerTy &&C)
bool containsIrreducibleCFG(RPOTraversalT &RPOTraversal, const LoopInfoT &LI)
Return true if the control flow in RPOTraversal is irreducible.
constexpr bool isPowerOf2_32(uint32_t Value)
Return true if the argument is a power of two > 0.
void sort(IteratorTy Start, IteratorTy End)
LLVM_ABI_FOR_TEST cl::opt< bool > EnableWideActiveLaneMask
LLVM_ABI raw_ostream & dbgs()
dbgs() - This returns a reference to a raw_ostream for debugging messages.
bool none_of(R &&Range, UnaryPredicate P)
Provide wrappers to std::none_of which take ranges instead of having to pass begin/end explicitly.
LLVM_ABI cl::opt< bool > EnableLoopVectorization
LLVM_ABI_FOR_TEST cl::list< std::string > VPlanPrintAfterPasses
LLVM_ABI bool wouldInstructionBeTriviallyDead(const Instruction *I, const TargetLibraryInfo *TLI=nullptr)
Return true if the result produced by the instruction would have no side effects if it was not used.
FunctionAddr VTableAddr Count
SmallVector< ValueTypeFromRangeType< R >, Size > to_vector(R &&Range)
Given a range of type R, iterate the entire range and return a SmallVector with elements of the vecto...
Type * toVectorizedTy(Type *Ty, ElementCount EC)
A helper for converting to vectorized types.
LLVM_ABI void llvm_unreachable_internal(const char *msg=nullptr, const char *file=nullptr, unsigned line=0)
This function calls abort(), and prints the optional message to stderr.
T * find_singleton(R &&Range, Predicate P, bool AllowRepeats=false)
Return the single value in Range that satisfies P(<member of Range> *, AllowRepeats)->T * returning n...
class LLVM_GSL_OWNER SmallVector
Forward declaration of SmallVector so that calculateSmallVectorDefaultInlinedElements can reference s...
cl::opt< unsigned > ForceTargetInstructionCost
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...
format_object< Ts... > format(const char *Fmt, const Ts &... Vals)
These are helper functions used to produce formatted output.
constexpr T divideCeil(U Numerator, V Denominator)
Returns the integer ceil(Numerator / Denominator).
bool canVectorizeTy(Type *Ty)
Returns true if Ty is a valid vector element type, void, or an unpacked literal struct where all elem...
static void reportVectorizationInfo(const StringRef Msg, const StringRef ORETag, OptimizationRemarkEmitter *ORE, Loop *TheLoop, Instruction *I=nullptr, DebugLoc DL={})
Reports an informative message: print Msg for debugging purposes as well as an optimization remark.
LLVM_ABI bool isAssignmentTrackingEnabled(const Module &M)
Return true if assignment tracking is enabled for module M.
RecurKind
These are the kinds of recurrences that we support.
@ Or
Bitwise or logical OR of integers.
@ FMulAdd
Sum of float products with llvm.fmuladd(a * b + sum).
@ Sub
Subtraction of integers.
LLVM_ABI Value * getRecurrenceIdentity(RecurKind K, Type *Tp, FastMathFlags FMF)
Given information about an recurrence kind, return the identity for the @llvm.vector....
LLVM_ABI BasicBlock * SplitBlock(BasicBlock *Old, BasicBlock::iterator SplitPt, DominatorTree *DT, LoopInfo *LI=nullptr, MemorySSAUpdater *MSSAU=nullptr, const Twine &BBName="")
Split the specified block at the specified instruction.
uint64_t alignTo(uint64_t Size, Align A)
Returns a multiple of A needed to store Size bytes.
LLVM_ABI void reportVectorizationFailure(const StringRef DebugMsg, const StringRef OREMsg, const StringRef ORETag, OptimizationRemarkEmitter *ORE, Loop *TheLoop, Instruction *I=nullptr)
Reports a vectorization failure: print DebugMsg for debugging purposes along with the corresponding o...
DWARFExpression::Operation Op
@ CM_ScalarEpilogueNotAllowedLowTripLoop
@ CM_ScalarEpilogueNotNeededUsePredicate
@ CM_ScalarEpilogueNotAllowedOptSize
@ CM_ScalarEpilogueAllowed
@ CM_ScalarEpilogueNotAllowedUsePredicate
LLVM_ABI bool isGuaranteedNotToBeUndefOrPoison(const Value *V, AssumptionCache *AC=nullptr, const Instruction *CtxI=nullptr, const DominatorTree *DT=nullptr, unsigned Depth=0)
Return true if this function can prove that V does not have undef bits and is never poison.
ArrayRef(const T &OneElt) -> ArrayRef< T >
Value * createStepForVF(IRBuilderBase &B, Type *Ty, ElementCount VF, int64_t Step)
Return a value for Step multiplied by VF.
decltype(auto) cast(const From &Val)
cast<X> - Return the argument parameter cast to the specified type.
auto find_if(R &&Range, UnaryPredicate P)
Provide wrappers to std::find_if which take ranges instead of having to pass begin/end explicitly.
Value * emitTransformedIndex(IRBuilderBase &B, Value *Index, Value *StartValue, Value *Step, InductionDescriptor::InductionKind InductionKind, const BinaryOperator *InductionBinOp)
Compute the transformed value of Index at offset StartValue using step StepValue.
auto predecessors(const MachineBasicBlock *BB)
iterator_range< pointer_iterator< WrappedIteratorT > > make_pointer_range(RangeT &&Range)
cl::opt< bool > EnableVPlanNativePath
Type * getLoadStoreType(const Value *I)
A helper function that returns the type of a load or store instruction.
ArrayRef< Type * > getContainedTypes(Type *const &Ty)
Returns the types contained in Ty.
LLVM_ABI Value * addDiffRuntimeChecks(Instruction *Loc, ArrayRef< PointerDiffInfo > Checks, SCEVExpander &Expander, function_ref< Value *(IRBuilderBase &, unsigned)> GetVF, unsigned IC)
bool pred_empty(const BasicBlock *BB)
@ None
Don't use tail folding.
@ DataWithEVL
Use predicated EVL instructions for tail-folding.
@ DataAndControlFlow
Use predicate to control both data and control flow.
@ DataWithoutLaneMask
Same as Data, but avoids using the get.active.lane.mask intrinsic to calculate the mask and instead i...
@ Data
Use predicate only to mask operations on data in the loop.
AnalysisManager< Function > FunctionAnalysisManager
Convenience typedef for the Function analysis manager.
LLVM_ABI bool hasBranchWeightMD(const Instruction &I)
Checks if an instructions has Branch Weight Metadata.
hash_code hash_combine(const Ts &...args)
Combine values into a single hash_code.
T bit_floor(T Value)
Returns the largest integral power of two no greater than Value if Value is nonzero.
Type * toVectorTy(Type *Scalar, ElementCount EC)
A helper function for converting Scalar types to vector types.
std::unique_ptr< VPlan > VPlanPtr
constexpr detail::IsaCheckPredicate< Types... > IsaPred
Function object wrapper for the llvm::isa type check.
LLVM_ABI_FOR_TEST bool verifyVPlanIsValid(const VPlan &Plan)
Verify invariants for general VPlans.
LLVM_ABI MapVector< Instruction *, uint64_t > computeMinimumValueSizes(ArrayRef< BasicBlock * > Blocks, DemandedBits &DB, const TargetTransformInfo *TTI=nullptr)
Compute a map of integer instructions to their minimum legal type size.
hash_code hash_combine_range(InputIteratorT first, InputIteratorT last)
Compute a hash_code for a sequence of values.
LLVM_ABI_FOR_TEST cl::opt< bool > VPlanPrintVectorRegionScope
LLVM_ABI cl::opt< bool > EnableLoopInterleaving
This struct is a compact representation of a valid (non-zero power of two) alignment.
A special type used by analysis passes to provide an address that identifies that particular analysis...
static LLVM_ABI void collectEphemeralValues(const Loop *L, AssumptionCache *AC, SmallPtrSetImpl< const Value * > &EphValues)
Collect a loop's ephemeral values (those used only by an assume or similar intrinsics in the loop).
An information struct used to provide DenseMap with the various necessary components for a given valu...
Encapsulate information regarding vectorization of a loop and its epilogue.
EpilogueLoopVectorizationInfo(ElementCount MVF, unsigned MUF, ElementCount EVF, unsigned EUF, VPlan &EpiloguePlan)
BasicBlock * MainLoopIterationCountCheck
BasicBlock * EpilogueIterationCountCheck
A class that represents two vectorization factors (initialized with 0 by default).
static FixedScalableVFPair getNone()
This holds details about a histogram operation – a load -> update -> store sequence where each lane i...
Incoming for lane maks phi as machine instruction, incoming register Reg and incoming block Block are...
std::optional< unsigned > MaskPos
LLVM_ABI LoopVectorizeResult runImpl(Function &F)
LLVM_ABI bool processLoop(Loop *L)
LoopAccessInfoManager * LAIs
LLVM_ABI void printPipeline(raw_ostream &OS, function_ref< StringRef(StringRef)> MapClassName2PassName)
LLVM_ABI LoopVectorizePass(LoopVectorizeOptions Opts={})
LLVM_ABI PreservedAnalyses run(Function &F, FunctionAnalysisManager &AM)
OptimizationRemarkEmitter * ORE
std::function< BlockFrequencyInfo &()> GetBFI
TargetTransformInfo * TTI
Storage for information about made changes.
A CRTP mix-in to automatically provide informational APIs needed for passes.
Holds the VFShape for a specific scalar to vector function mapping.
std::optional< unsigned > getParamIndexForOptionalMask() const
Instruction Set Architecture.
Encapsulates information needed to describe a parameter.
A range of powers-of-2 vectorization factors with fixed start and adjustable end.
Struct to hold various analysis needed for cost computations.
unsigned getPredBlockCostDivisor(BasicBlock *BB) const
LoopVectorizationCostModel & CM
bool isLegacyUniformAfterVectorization(Instruction *I, ElementCount VF) const
Return true if I is considered uniform-after-vectorization in the legacy cost model for VF.
bool skipCostComputation(Instruction *UI, bool IsVector) const
Return true if the cost for UI shouldn't be computed, e.g.
InstructionCost getLegacyCost(Instruction *UI, ElementCount VF) const
Return the cost for UI with VF using the legacy cost model as fallback until computing the cost of al...
TargetTransformInfo::TargetCostKind CostKind
SmallPtrSet< Instruction *, 8 > SkipCostComputation
A struct that represents some properties of the register usage of a loop.
A recipe for widening load operations, using the address to load from and an optional mask.
A recipe for widening store operations, using the stored value, the address to store to and an option...
TODO: The following VectorizationFactor was pulled out of LoopVectorizationCostModel class.
InstructionCost Cost
Cost of the loop with that width.
ElementCount MinProfitableTripCount
The minimum trip count required to make vectorization profitable, e.g.
ElementCount Width
Vector width with best cost.
InstructionCost ScalarCost
Cost of the scalar loop.
static VectorizationFactor Disabled()
Width 1 means no vectorization, cost 0 means uncomputed cost.
static LLVM_ABI bool HoistRuntimeChecks