1 //===-- AArch64TargetTransformInfo.cpp - AArch64 specific TTI -------------===//
2 //
3 // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions.
4 // See https://llvm.org/LICENSE.txt for license information.
5 // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
6 //
7 //===----------------------------------------------------------------------===//
8 
9 #include "AArch64TargetTransformInfo.h"
10 #include "AArch64ExpandImm.h"
11 #include "MCTargetDesc/AArch64AddressingModes.h"
12 #include "llvm/Analysis/IVDescriptors.h"
13 #include "llvm/Analysis/LoopInfo.h"
14 #include "llvm/Analysis/TargetTransformInfo.h"
15 #include "llvm/CodeGen/BasicTTIImpl.h"
16 #include "llvm/CodeGen/CostTable.h"
17 #include "llvm/CodeGen/TargetLowering.h"
18 #include "llvm/IR/Intrinsics.h"
19 #include "llvm/IR/IntrinsicInst.h"
20 #include "llvm/IR/IntrinsicsAArch64.h"
21 #include "llvm/IR/PatternMatch.h"
22 #include "llvm/Support/Debug.h"
23 #include "llvm/Transforms/InstCombine/InstCombiner.h"
24 #include <algorithm>
25 using namespace llvm;
26 using namespace llvm::PatternMatch;
27 
28 #define DEBUG_TYPE "aarch64tti"
29 
30 static cl::opt<bool> EnableFalkorHWPFUnrollFix("enable-falkor-hwpf-unroll-fix",
31                                                cl::init(true), cl::Hidden);
32 
33 bool AArch64TTIImpl::areInlineCompatible(const Function *Caller,
34                                          const Function *Callee) const {
35   const TargetMachine &TM = getTLI()->getTargetMachine();
36 
37   const FeatureBitset &CallerBits =
38       TM.getSubtargetImpl(*Caller)->getFeatureBits();
39   const FeatureBitset &CalleeBits =
40       TM.getSubtargetImpl(*Callee)->getFeatureBits();
41 
42   // Inline a callee if its target-features are a subset of the callers
43   // target-features.
44   return (CallerBits & CalleeBits) == CalleeBits;
45 }
46 
47 /// Calculate the cost of materializing a 64-bit value. This helper
48 /// method might only calculate a fraction of a larger immediate. Therefore it
49 /// is valid to return a cost of ZERO.
50 InstructionCost AArch64TTIImpl::getIntImmCost(int64_t Val) {
51   // Check if the immediate can be encoded within an instruction.
52   if (Val == 0 || AArch64_AM::isLogicalImmediate(Val, 64))
53     return 0;
54 
55   if (Val < 0)
56     Val = ~Val;
57 
58   // Calculate how many moves we will need to materialize this constant.
59   SmallVector<AArch64_IMM::ImmInsnModel, 4> Insn;
60   AArch64_IMM::expandMOVImm(Val, 64, Insn);
61   return Insn.size();
62 }
63 
64 /// Calculate the cost of materializing the given constant.
65 InstructionCost AArch64TTIImpl::getIntImmCost(const APInt &Imm, Type *Ty,
66                                               TTI::TargetCostKind CostKind) {
67   assert(Ty->isIntegerTy());
68 
69   unsigned BitSize = Ty->getPrimitiveSizeInBits();
70   if (BitSize == 0)
71     return ~0U;
72 
73   // Sign-extend all constants to a multiple of 64-bit.
74   APInt ImmVal = Imm;
75   if (BitSize & 0x3f)
76     ImmVal = Imm.sext((BitSize + 63) & ~0x3fU);
77 
78   // Split the constant into 64-bit chunks and calculate the cost for each
79   // chunk.
80   InstructionCost Cost = 0;
81   for (unsigned ShiftVal = 0; ShiftVal < BitSize; ShiftVal += 64) {
82     APInt Tmp = ImmVal.ashr(ShiftVal).sextOrTrunc(64);
83     int64_t Val = Tmp.getSExtValue();
84     Cost += getIntImmCost(Val);
85   }
86   // We need at least one instruction to materialze the constant.
87   return std::max<InstructionCost>(1, Cost);
88 }
89 
90 InstructionCost AArch64TTIImpl::getIntImmCostInst(unsigned Opcode, unsigned Idx,
91                                                   const APInt &Imm, Type *Ty,
92                                                   TTI::TargetCostKind CostKind,
93                                                   Instruction *Inst) {
94   assert(Ty->isIntegerTy());
95 
96   unsigned BitSize = Ty->getPrimitiveSizeInBits();
97   // There is no cost model for constants with a bit size of 0. Return TCC_Free
98   // here, so that constant hoisting will ignore this constant.
99   if (BitSize == 0)
100     return TTI::TCC_Free;
101 
102   unsigned ImmIdx = ~0U;
103   switch (Opcode) {
104   default:
105     return TTI::TCC_Free;
106   case Instruction::GetElementPtr:
107     // Always hoist the base address of a GetElementPtr.
108     if (Idx == 0)
109       return 2 * TTI::TCC_Basic;
110     return TTI::TCC_Free;
111   case Instruction::Store:
112     ImmIdx = 0;
113     break;
114   case Instruction::Add:
115   case Instruction::Sub:
116   case Instruction::Mul:
117   case Instruction::UDiv:
118   case Instruction::SDiv:
119   case Instruction::URem:
120   case Instruction::SRem:
121   case Instruction::And:
122   case Instruction::Or:
123   case Instruction::Xor:
124   case Instruction::ICmp:
125     ImmIdx = 1;
126     break;
127   // Always return TCC_Free for the shift value of a shift instruction.
128   case Instruction::Shl:
129   case Instruction::LShr:
130   case Instruction::AShr:
131     if (Idx == 1)
132       return TTI::TCC_Free;
133     break;
134   case Instruction::Trunc:
135   case Instruction::ZExt:
136   case Instruction::SExt:
137   case Instruction::IntToPtr:
138   case Instruction::PtrToInt:
139   case Instruction::BitCast:
140   case Instruction::PHI:
141   case Instruction::Call:
142   case Instruction::Select:
143   case Instruction::Ret:
144   case Instruction::Load:
145     break;
146   }
147 
148   if (Idx == ImmIdx) {
149     int NumConstants = (BitSize + 63) / 64;
150     InstructionCost Cost = AArch64TTIImpl::getIntImmCost(Imm, Ty, CostKind);
151     return (Cost <= NumConstants * TTI::TCC_Basic)
152                ? static_cast<int>(TTI::TCC_Free)
153                : Cost;
154   }
155   return AArch64TTIImpl::getIntImmCost(Imm, Ty, CostKind);
156 }
157 
158 InstructionCost
159 AArch64TTIImpl::getIntImmCostIntrin(Intrinsic::ID IID, unsigned Idx,
160                                     const APInt &Imm, Type *Ty,
161                                     TTI::TargetCostKind CostKind) {
162   assert(Ty->isIntegerTy());
163 
164   unsigned BitSize = Ty->getPrimitiveSizeInBits();
165   // There is no cost model for constants with a bit size of 0. Return TCC_Free
166   // here, so that constant hoisting will ignore this constant.
167   if (BitSize == 0)
168     return TTI::TCC_Free;
169 
170   // Most (all?) AArch64 intrinsics do not support folding immediates into the
171   // selected instruction, so we compute the materialization cost for the
172   // immediate directly.
173   if (IID >= Intrinsic::aarch64_addg && IID <= Intrinsic::aarch64_udiv)
174     return AArch64TTIImpl::getIntImmCost(Imm, Ty, CostKind);
175 
176   switch (IID) {
177   default:
178     return TTI::TCC_Free;
179   case Intrinsic::sadd_with_overflow:
180   case Intrinsic::uadd_with_overflow:
181   case Intrinsic::ssub_with_overflow:
182   case Intrinsic::usub_with_overflow:
183   case Intrinsic::smul_with_overflow:
184   case Intrinsic::umul_with_overflow:
185     if (Idx == 1) {
186       int NumConstants = (BitSize + 63) / 64;
187       InstructionCost Cost = AArch64TTIImpl::getIntImmCost(Imm, Ty, CostKind);
188       return (Cost <= NumConstants * TTI::TCC_Basic)
189                  ? static_cast<int>(TTI::TCC_Free)
190                  : Cost;
191     }
192     break;
193   case Intrinsic::experimental_stackmap:
194     if ((Idx < 2) || (Imm.getBitWidth() <= 64 && isInt<64>(Imm.getSExtValue())))
195       return TTI::TCC_Free;
196     break;
197   case Intrinsic::experimental_patchpoint_void:
198   case Intrinsic::experimental_patchpoint_i64:
199     if ((Idx < 4) || (Imm.getBitWidth() <= 64 && isInt<64>(Imm.getSExtValue())))
200       return TTI::TCC_Free;
201     break;
202   case Intrinsic::experimental_gc_statepoint:
203     if ((Idx < 5) || (Imm.getBitWidth() <= 64 && isInt<64>(Imm.getSExtValue())))
204       return TTI::TCC_Free;
205     break;
206   }
207   return AArch64TTIImpl::getIntImmCost(Imm, Ty, CostKind);
208 }
209 
210 TargetTransformInfo::PopcntSupportKind
211 AArch64TTIImpl::getPopcntSupport(unsigned TyWidth) {
212   assert(isPowerOf2_32(TyWidth) && "Ty width must be power of 2");
213   if (TyWidth == 32 || TyWidth == 64)
214     return TTI::PSK_FastHardware;
215   // TODO: AArch64TargetLowering::LowerCTPOP() supports 128bit popcount.
216   return TTI::PSK_Software;
217 }
218 
219 InstructionCost
220 AArch64TTIImpl::getIntrinsicInstrCost(const IntrinsicCostAttributes &ICA,
221                                       TTI::TargetCostKind CostKind) {
222   auto *RetTy = ICA.getReturnType();
223   switch (ICA.getID()) {
224   case Intrinsic::umin:
225   case Intrinsic::umax:
226   case Intrinsic::smin:
227   case Intrinsic::smax: {
228     static const auto ValidMinMaxTys = {MVT::v8i8,  MVT::v16i8, MVT::v4i16,
229                                         MVT::v8i16, MVT::v2i32, MVT::v4i32};
230     auto LT = TLI->getTypeLegalizationCost(DL, RetTy);
231     // v2i64 types get converted to cmp+bif hence the cost of 2
232     if (LT.second == MVT::v2i64)
233       return LT.first * 2;
234     if (any_of(ValidMinMaxTys, [&LT](MVT M) { return M == LT.second; }))
235       return LT.first;
236     break;
237   }
238   case Intrinsic::sadd_sat:
239   case Intrinsic::ssub_sat:
240   case Intrinsic::uadd_sat:
241   case Intrinsic::usub_sat: {
242     static const auto ValidSatTys = {MVT::v8i8,  MVT::v16i8, MVT::v4i16,
243                                      MVT::v8i16, MVT::v2i32, MVT::v4i32,
244                                      MVT::v2i64};
245     auto LT = TLI->getTypeLegalizationCost(DL, RetTy);
246     // This is a base cost of 1 for the vadd, plus 3 extract shifts if we
247     // need to extend the type, as it uses shr(qadd(shl, shl)).
248     unsigned Instrs =
249         LT.second.getScalarSizeInBits() == RetTy->getScalarSizeInBits() ? 1 : 4;
250     if (any_of(ValidSatTys, [&LT](MVT M) { return M == LT.second; }))
251       return LT.first * Instrs;
252     break;
253   }
254   case Intrinsic::abs: {
255     static const auto ValidAbsTys = {MVT::v8i8,  MVT::v16i8, MVT::v4i16,
256                                      MVT::v8i16, MVT::v2i32, MVT::v4i32,
257                                      MVT::v2i64};
258     auto LT = TLI->getTypeLegalizationCost(DL, RetTy);
259     if (any_of(ValidAbsTys, [&LT](MVT M) { return M == LT.second; }))
260       return LT.first;
261     break;
262   }
263   case Intrinsic::experimental_stepvector: {
264     InstructionCost Cost = 1; // Cost of the `index' instruction
265     auto LT = TLI->getTypeLegalizationCost(DL, RetTy);
266     // Legalisation of illegal vectors involves an `index' instruction plus
267     // (LT.first - 1) vector adds.
268     if (LT.first > 1) {
269       Type *LegalVTy = EVT(LT.second).getTypeForEVT(RetTy->getContext());
270       InstructionCost AddCost =
271           getArithmeticInstrCost(Instruction::Add, LegalVTy, CostKind);
272       Cost += AddCost * (LT.first - 1);
273     }
274     return Cost;
275   }
276   case Intrinsic::bitreverse: {
277     static const CostTblEntry BitreverseTbl[] = {
278         {Intrinsic::bitreverse, MVT::i32, 1},
279         {Intrinsic::bitreverse, MVT::i64, 1},
280         {Intrinsic::bitreverse, MVT::v8i8, 1},
281         {Intrinsic::bitreverse, MVT::v16i8, 1},
282         {Intrinsic::bitreverse, MVT::v4i16, 2},
283         {Intrinsic::bitreverse, MVT::v8i16, 2},
284         {Intrinsic::bitreverse, MVT::v2i32, 2},
285         {Intrinsic::bitreverse, MVT::v4i32, 2},
286         {Intrinsic::bitreverse, MVT::v1i64, 2},
287         {Intrinsic::bitreverse, MVT::v2i64, 2},
288     };
289     const auto LegalisationCost = TLI->getTypeLegalizationCost(DL, RetTy);
290     const auto *Entry =
291         CostTableLookup(BitreverseTbl, ICA.getID(), LegalisationCost.second);
292     if (Entry) {
293       // Cost Model is using the legal type(i32) that i8 and i16 will be
294       // converted to +1 so that we match the actual lowering cost
295       if (TLI->getValueType(DL, RetTy, true) == MVT::i8 ||
296           TLI->getValueType(DL, RetTy, true) == MVT::i16)
297         return LegalisationCost.first * Entry->Cost + 1;
298 
299       return LegalisationCost.first * Entry->Cost;
300     }
301     break;
302   }
303   case Intrinsic::ctpop: {
304     static const CostTblEntry CtpopCostTbl[] = {
305         {ISD::CTPOP, MVT::v2i64, 4},
306         {ISD::CTPOP, MVT::v4i32, 3},
307         {ISD::CTPOP, MVT::v8i16, 2},
308         {ISD::CTPOP, MVT::v16i8, 1},
309         {ISD::CTPOP, MVT::i64,   4},
310         {ISD::CTPOP, MVT::v2i32, 3},
311         {ISD::CTPOP, MVT::v4i16, 2},
312         {ISD::CTPOP, MVT::v8i8,  1},
313         {ISD::CTPOP, MVT::i32,   5},
314     };
315     auto LT = TLI->getTypeLegalizationCost(DL, RetTy);
316     MVT MTy = LT.second;
317     if (const auto *Entry = CostTableLookup(CtpopCostTbl, ISD::CTPOP, MTy)) {
318       // Extra cost of +1 when illegal vector types are legalized by promoting
319       // the integer type.
320       int ExtraCost = MTy.isVector() && MTy.getScalarSizeInBits() !=
321                                             RetTy->getScalarSizeInBits()
322                           ? 1
323                           : 0;
324       return LT.first * Entry->Cost + ExtraCost;
325     }
326     break;
327   }
328   default:
329     break;
330   }
331   return BaseT::getIntrinsicInstrCost(ICA, CostKind);
332 }
333 
334 /// The function will remove redundant reinterprets casting in the presence
335 /// of the control flow
336 static Optional<Instruction *> processPhiNode(InstCombiner &IC,
337                                               IntrinsicInst &II) {
338   SmallVector<Instruction *, 32> Worklist;
339   auto RequiredType = II.getType();
340 
341   auto *PN = dyn_cast<PHINode>(II.getArgOperand(0));
342   assert(PN && "Expected Phi Node!");
343 
344   // Don't create a new Phi unless we can remove the old one.
345   if (!PN->hasOneUse())
346     return None;
347 
348   for (Value *IncValPhi : PN->incoming_values()) {
349     auto *Reinterpret = dyn_cast<IntrinsicInst>(IncValPhi);
350     if (!Reinterpret ||
351         Reinterpret->getIntrinsicID() !=
352             Intrinsic::aarch64_sve_convert_to_svbool ||
353         RequiredType != Reinterpret->getArgOperand(0)->getType())
354       return None;
355   }
356 
357   // Create the new Phi
358   LLVMContext &Ctx = PN->getContext();
359   IRBuilder<> Builder(Ctx);
360   Builder.SetInsertPoint(PN);
361   PHINode *NPN = Builder.CreatePHI(RequiredType, PN->getNumIncomingValues());
362   Worklist.push_back(PN);
363 
364   for (unsigned I = 0; I < PN->getNumIncomingValues(); I++) {
365     auto *Reinterpret = cast<Instruction>(PN->getIncomingValue(I));
366     NPN->addIncoming(Reinterpret->getOperand(0), PN->getIncomingBlock(I));
367     Worklist.push_back(Reinterpret);
368   }
369 
370   // Cleanup Phi Node and reinterprets
371   return IC.replaceInstUsesWith(II, NPN);
372 }
373 
374 static Optional<Instruction *> instCombineConvertFromSVBool(InstCombiner &IC,
375                                                             IntrinsicInst &II) {
376   // If the reinterpret instruction operand is a PHI Node
377   if (isa<PHINode>(II.getArgOperand(0)))
378     return processPhiNode(IC, II);
379 
380   SmallVector<Instruction *, 32> CandidatesForRemoval;
381   Value *Cursor = II.getOperand(0), *EarliestReplacement = nullptr;
382 
383   const auto *IVTy = cast<VectorType>(II.getType());
384 
385   // Walk the chain of conversions.
386   while (Cursor) {
387     // If the type of the cursor has fewer lanes than the final result, zeroing
388     // must take place, which breaks the equivalence chain.
389     const auto *CursorVTy = cast<VectorType>(Cursor->getType());
390     if (CursorVTy->getElementCount().getKnownMinValue() <
391         IVTy->getElementCount().getKnownMinValue())
392       break;
393 
394     // If the cursor has the same type as I, it is a viable replacement.
395     if (Cursor->getType() == IVTy)
396       EarliestReplacement = Cursor;
397 
398     auto *IntrinsicCursor = dyn_cast<IntrinsicInst>(Cursor);
399 
400     // If this is not an SVE conversion intrinsic, this is the end of the chain.
401     if (!IntrinsicCursor || !(IntrinsicCursor->getIntrinsicID() ==
402                                   Intrinsic::aarch64_sve_convert_to_svbool ||
403                               IntrinsicCursor->getIntrinsicID() ==
404                                   Intrinsic::aarch64_sve_convert_from_svbool))
405       break;
406 
407     CandidatesForRemoval.insert(CandidatesForRemoval.begin(), IntrinsicCursor);
408     Cursor = IntrinsicCursor->getOperand(0);
409   }
410 
411   // If no viable replacement in the conversion chain was found, there is
412   // nothing to do.
413   if (!EarliestReplacement)
414     return None;
415 
416   return IC.replaceInstUsesWith(II, EarliestReplacement);
417 }
418 
419 static Optional<Instruction *> instCombineSVEDup(InstCombiner &IC,
420                                                  IntrinsicInst &II) {
421   IntrinsicInst *Pg = dyn_cast<IntrinsicInst>(II.getArgOperand(1));
422   if (!Pg)
423     return None;
424 
425   if (Pg->getIntrinsicID() != Intrinsic::aarch64_sve_ptrue)
426     return None;
427 
428   const auto PTruePattern =
429       cast<ConstantInt>(Pg->getOperand(0))->getZExtValue();
430   if (PTruePattern != AArch64SVEPredPattern::vl1)
431     return None;
432 
433   // The intrinsic is inserting into lane zero so use an insert instead.
434   auto *IdxTy = Type::getInt64Ty(II.getContext());
435   auto *Insert = InsertElementInst::Create(
436       II.getArgOperand(0), II.getArgOperand(2), ConstantInt::get(IdxTy, 0));
437   Insert->insertBefore(&II);
438   Insert->takeName(&II);
439 
440   return IC.replaceInstUsesWith(II, Insert);
441 }
442 
443 static Optional<Instruction *> instCombineSVEDupX(InstCombiner &IC,
444                                                   IntrinsicInst &II) {
445   // Replace DupX with a regular IR splat.
446   IRBuilder<> Builder(II.getContext());
447   Builder.SetInsertPoint(&II);
448   auto *RetTy = cast<ScalableVectorType>(II.getType());
449   Value *Splat =
450       Builder.CreateVectorSplat(RetTy->getElementCount(), II.getArgOperand(0));
451   Splat->takeName(&II);
452   return IC.replaceInstUsesWith(II, Splat);
453 }
454 
455 static Optional<Instruction *> instCombineSVECmpNE(InstCombiner &IC,
456                                                    IntrinsicInst &II) {
457   LLVMContext &Ctx = II.getContext();
458   IRBuilder<> Builder(Ctx);
459   Builder.SetInsertPoint(&II);
460 
461   // Check that the predicate is all active
462   auto *Pg = dyn_cast<IntrinsicInst>(II.getArgOperand(0));
463   if (!Pg || Pg->getIntrinsicID() != Intrinsic::aarch64_sve_ptrue)
464     return None;
465 
466   const auto PTruePattern =
467       cast<ConstantInt>(Pg->getOperand(0))->getZExtValue();
468   if (PTruePattern != AArch64SVEPredPattern::all)
469     return None;
470 
471   // Check that we have a compare of zero..
472   auto *SplatValue =
473       dyn_cast_or_null<ConstantInt>(getSplatValue(II.getArgOperand(2)));
474   if (!SplatValue || !SplatValue->isZero())
475     return None;
476 
477   // ..against a dupq
478   auto *DupQLane = dyn_cast<IntrinsicInst>(II.getArgOperand(1));
479   if (!DupQLane ||
480       DupQLane->getIntrinsicID() != Intrinsic::aarch64_sve_dupq_lane)
481     return None;
482 
483   // Where the dupq is a lane 0 replicate of a vector insert
484   if (!cast<ConstantInt>(DupQLane->getArgOperand(1))->isZero())
485     return None;
486 
487   auto *VecIns = dyn_cast<IntrinsicInst>(DupQLane->getArgOperand(0));
488   if (!VecIns ||
489       VecIns->getIntrinsicID() != Intrinsic::experimental_vector_insert)
490     return None;
491 
492   // Where the vector insert is a fixed constant vector insert into undef at
493   // index zero
494   if (!isa<UndefValue>(VecIns->getArgOperand(0)))
495     return None;
496 
497   if (!cast<ConstantInt>(VecIns->getArgOperand(2))->isZero())
498     return None;
499 
500   auto *ConstVec = dyn_cast<Constant>(VecIns->getArgOperand(1));
501   if (!ConstVec)
502     return None;
503 
504   auto *VecTy = dyn_cast<FixedVectorType>(ConstVec->getType());
505   auto *OutTy = dyn_cast<ScalableVectorType>(II.getType());
506   if (!VecTy || !OutTy || VecTy->getNumElements() != OutTy->getMinNumElements())
507     return None;
508 
509   unsigned NumElts = VecTy->getNumElements();
510   unsigned PredicateBits = 0;
511 
512   // Expand intrinsic operands to a 16-bit byte level predicate
513   for (unsigned I = 0; I < NumElts; ++I) {
514     auto *Arg = dyn_cast<ConstantInt>(ConstVec->getAggregateElement(I));
515     if (!Arg)
516       return None;
517     if (!Arg->isZero())
518       PredicateBits |= 1 << (I * (16 / NumElts));
519   }
520 
521   // If all bits are zero bail early with an empty predicate
522   if (PredicateBits == 0) {
523     auto *PFalse = Constant::getNullValue(II.getType());
524     PFalse->takeName(&II);
525     return IC.replaceInstUsesWith(II, PFalse);
526   }
527 
528   // Calculate largest predicate type used (where byte predicate is largest)
529   unsigned Mask = 8;
530   for (unsigned I = 0; I < 16; ++I)
531     if ((PredicateBits & (1 << I)) != 0)
532       Mask |= (I % 8);
533 
534   unsigned PredSize = Mask & -Mask;
535   auto *PredType = ScalableVectorType::get(
536       Type::getInt1Ty(Ctx), AArch64::SVEBitsPerBlock / (PredSize * 8));
537 
538   // Ensure all relevant bits are set
539   for (unsigned I = 0; I < 16; I += PredSize)
540     if ((PredicateBits & (1 << I)) == 0)
541       return None;
542 
543   auto *PTruePat =
544       ConstantInt::get(Type::getInt32Ty(Ctx), AArch64SVEPredPattern::all);
545   auto *PTrue = Builder.CreateIntrinsic(Intrinsic::aarch64_sve_ptrue,
546                                         {PredType}, {PTruePat});
547   auto *ConvertToSVBool = Builder.CreateIntrinsic(
548       Intrinsic::aarch64_sve_convert_to_svbool, {PredType}, {PTrue});
549   auto *ConvertFromSVBool =
550       Builder.CreateIntrinsic(Intrinsic::aarch64_sve_convert_from_svbool,
551                               {II.getType()}, {ConvertToSVBool});
552 
553   ConvertFromSVBool->takeName(&II);
554   return IC.replaceInstUsesWith(II, ConvertFromSVBool);
555 }
556 
557 static Optional<Instruction *> instCombineSVELast(InstCombiner &IC,
558                                                   IntrinsicInst &II) {
559   IRBuilder<> Builder(II.getContext());
560   Builder.SetInsertPoint(&II);
561   Value *Pg = II.getArgOperand(0);
562   Value *Vec = II.getArgOperand(1);
563   auto IntrinsicID = II.getIntrinsicID();
564   bool IsAfter = IntrinsicID == Intrinsic::aarch64_sve_lasta;
565 
566   // lastX(splat(X)) --> X
567   if (auto *SplatVal = getSplatValue(Vec))
568     return IC.replaceInstUsesWith(II, SplatVal);
569 
570   // If x and/or y is a splat value then:
571   // lastX (binop (x, y)) --> binop(lastX(x), lastX(y))
572   Value *LHS, *RHS;
573   if (match(Vec, m_OneUse(m_BinOp(m_Value(LHS), m_Value(RHS))))) {
574     if (isSplatValue(LHS) || isSplatValue(RHS)) {
575       auto *OldBinOp = cast<BinaryOperator>(Vec);
576       auto OpC = OldBinOp->getOpcode();
577       auto *NewLHS =
578           Builder.CreateIntrinsic(IntrinsicID, {Vec->getType()}, {Pg, LHS});
579       auto *NewRHS =
580           Builder.CreateIntrinsic(IntrinsicID, {Vec->getType()}, {Pg, RHS});
581       auto *NewBinOp = BinaryOperator::CreateWithCopiedFlags(
582           OpC, NewLHS, NewRHS, OldBinOp, OldBinOp->getName(), &II);
583       return IC.replaceInstUsesWith(II, NewBinOp);
584     }
585   }
586 
587   auto *C = dyn_cast<Constant>(Pg);
588   if (IsAfter && C && C->isNullValue()) {
589     // The intrinsic is extracting lane 0 so use an extract instead.
590     auto *IdxTy = Type::getInt64Ty(II.getContext());
591     auto *Extract = ExtractElementInst::Create(Vec, ConstantInt::get(IdxTy, 0));
592     Extract->insertBefore(&II);
593     Extract->takeName(&II);
594     return IC.replaceInstUsesWith(II, Extract);
595   }
596 
597   auto *IntrPG = dyn_cast<IntrinsicInst>(Pg);
598   if (!IntrPG)
599     return None;
600 
601   if (IntrPG->getIntrinsicID() != Intrinsic::aarch64_sve_ptrue)
602     return None;
603 
604   const auto PTruePattern =
605       cast<ConstantInt>(IntrPG->getOperand(0))->getZExtValue();
606 
607   // Can the intrinsic's predicate be converted to a known constant index?
608   unsigned MinNumElts = getNumElementsFromSVEPredPattern(PTruePattern);
609   if (!MinNumElts)
610     return None;
611 
612   unsigned Idx = MinNumElts - 1;
613   // Increment the index if extracting the element after the last active
614   // predicate element.
615   if (IsAfter)
616     ++Idx;
617 
618   // Ignore extracts whose index is larger than the known minimum vector
619   // length. NOTE: This is an artificial constraint where we prefer to
620   // maintain what the user asked for until an alternative is proven faster.
621   auto *PgVTy = cast<ScalableVectorType>(Pg->getType());
622   if (Idx >= PgVTy->getMinNumElements())
623     return None;
624 
625   // The intrinsic is extracting a fixed lane so use an extract instead.
626   auto *IdxTy = Type::getInt64Ty(II.getContext());
627   auto *Extract = ExtractElementInst::Create(Vec, ConstantInt::get(IdxTy, Idx));
628   Extract->insertBefore(&II);
629   Extract->takeName(&II);
630   return IC.replaceInstUsesWith(II, Extract);
631 }
632 
633 static Optional<Instruction *> instCombineRDFFR(InstCombiner &IC,
634                                                 IntrinsicInst &II) {
635   LLVMContext &Ctx = II.getContext();
636   IRBuilder<> Builder(Ctx);
637   Builder.SetInsertPoint(&II);
638   // Replace rdffr with predicated rdffr.z intrinsic, so that optimizePTestInstr
639   // can work with RDFFR_PP for ptest elimination.
640   auto *AllPat =
641       ConstantInt::get(Type::getInt32Ty(Ctx), AArch64SVEPredPattern::all);
642   auto *PTrue = Builder.CreateIntrinsic(Intrinsic::aarch64_sve_ptrue,
643                                         {II.getType()}, {AllPat});
644   auto *RDFFR =
645       Builder.CreateIntrinsic(Intrinsic::aarch64_sve_rdffr_z, {}, {PTrue});
646   RDFFR->takeName(&II);
647   return IC.replaceInstUsesWith(II, RDFFR);
648 }
649 
650 static Optional<Instruction *>
651 instCombineSVECntElts(InstCombiner &IC, IntrinsicInst &II, unsigned NumElts) {
652   const auto Pattern = cast<ConstantInt>(II.getArgOperand(0))->getZExtValue();
653 
654   if (Pattern == AArch64SVEPredPattern::all) {
655     LLVMContext &Ctx = II.getContext();
656     IRBuilder<> Builder(Ctx);
657     Builder.SetInsertPoint(&II);
658 
659     Constant *StepVal = ConstantInt::get(II.getType(), NumElts);
660     auto *VScale = Builder.CreateVScale(StepVal);
661     VScale->takeName(&II);
662     return IC.replaceInstUsesWith(II, VScale);
663   }
664 
665   unsigned MinNumElts = getNumElementsFromSVEPredPattern(Pattern);
666 
667   return MinNumElts && NumElts >= MinNumElts
668              ? Optional<Instruction *>(IC.replaceInstUsesWith(
669                    II, ConstantInt::get(II.getType(), MinNumElts)))
670              : None;
671 }
672 
673 static Optional<Instruction *> instCombineSVEPTest(InstCombiner &IC,
674                                                    IntrinsicInst &II) {
675   IntrinsicInst *Op1 = dyn_cast<IntrinsicInst>(II.getArgOperand(0));
676   IntrinsicInst *Op2 = dyn_cast<IntrinsicInst>(II.getArgOperand(1));
677 
678   if (Op1 && Op2 &&
679       Op1->getIntrinsicID() == Intrinsic::aarch64_sve_convert_to_svbool &&
680       Op2->getIntrinsicID() == Intrinsic::aarch64_sve_convert_to_svbool &&
681       Op1->getArgOperand(0)->getType() == Op2->getArgOperand(0)->getType()) {
682 
683     IRBuilder<> Builder(II.getContext());
684     Builder.SetInsertPoint(&II);
685 
686     Value *Ops[] = {Op1->getArgOperand(0), Op2->getArgOperand(0)};
687     Type *Tys[] = {Op1->getArgOperand(0)->getType()};
688 
689     auto *PTest = Builder.CreateIntrinsic(II.getIntrinsicID(), Tys, Ops);
690 
691     PTest->takeName(&II);
692     return IC.replaceInstUsesWith(II, PTest);
693   }
694 
695   return None;
696 }
697 
698 static Optional<Instruction *> instCombineSVEVectorFMLA(InstCombiner &IC,
699                                                         IntrinsicInst &II) {
700   // fold (fadd p a (fmul p b c)) -> (fma p a b c)
701   Value *P = II.getOperand(0);
702   Value *A = II.getOperand(1);
703   auto FMul = II.getOperand(2);
704   Value *B, *C;
705   if (!match(FMul, m_Intrinsic<Intrinsic::aarch64_sve_fmul>(
706                        m_Specific(P), m_Value(B), m_Value(C))))
707     return None;
708 
709   if (!FMul->hasOneUse())
710     return None;
711 
712   llvm::FastMathFlags FAddFlags = II.getFastMathFlags();
713   // Stop the combine when the flags on the inputs differ in case dropping flags
714   // would lead to us missing out on more beneficial optimizations.
715   if (FAddFlags != cast<CallInst>(FMul)->getFastMathFlags())
716     return None;
717   if (!FAddFlags.allowContract())
718     return None;
719 
720   IRBuilder<> Builder(II.getContext());
721   Builder.SetInsertPoint(&II);
722   auto FMLA = Builder.CreateIntrinsic(Intrinsic::aarch64_sve_fmla,
723                                       {II.getType()}, {P, A, B, C}, &II);
724   FMLA->setFastMathFlags(FAddFlags);
725   return IC.replaceInstUsesWith(II, FMLA);
726 }
727 
728 static bool isAllActivePredicate(Value *Pred) {
729   // Look through convert.from.svbool(convert.to.svbool(...) chain.
730   Value *UncastedPred;
731   if (match(Pred, m_Intrinsic<Intrinsic::aarch64_sve_convert_from_svbool>(
732                       m_Intrinsic<Intrinsic::aarch64_sve_convert_to_svbool>(
733                           m_Value(UncastedPred)))))
734     // If the predicate has the same or less lanes than the uncasted
735     // predicate then we know the casting has no effect.
736     if (cast<ScalableVectorType>(Pred->getType())->getMinNumElements() <=
737         cast<ScalableVectorType>(UncastedPred->getType())->getMinNumElements())
738       Pred = UncastedPred;
739 
740   return match(Pred, m_Intrinsic<Intrinsic::aarch64_sve_ptrue>(
741                          m_ConstantInt<AArch64SVEPredPattern::all>()));
742 }
743 
744 static Optional<Instruction *>
745 instCombineSVELD1(InstCombiner &IC, IntrinsicInst &II, const DataLayout &DL) {
746   IRBuilder<> Builder(II.getContext());
747   Builder.SetInsertPoint(&II);
748 
749   Value *Pred = II.getOperand(0);
750   Value *PtrOp = II.getOperand(1);
751   Type *VecTy = II.getType();
752   Value *VecPtr = Builder.CreateBitCast(PtrOp, VecTy->getPointerTo());
753 
754   if (isAllActivePredicate(Pred)) {
755     LoadInst *Load = Builder.CreateLoad(VecTy, VecPtr);
756     return IC.replaceInstUsesWith(II, Load);
757   }
758 
759   CallInst *MaskedLoad =
760       Builder.CreateMaskedLoad(VecTy, VecPtr, PtrOp->getPointerAlignment(DL),
761                                Pred, ConstantAggregateZero::get(VecTy));
762   return IC.replaceInstUsesWith(II, MaskedLoad);
763 }
764 
765 static Optional<Instruction *>
766 instCombineSVEST1(InstCombiner &IC, IntrinsicInst &II, const DataLayout &DL) {
767   IRBuilder<> Builder(II.getContext());
768   Builder.SetInsertPoint(&II);
769 
770   Value *VecOp = II.getOperand(0);
771   Value *Pred = II.getOperand(1);
772   Value *PtrOp = II.getOperand(2);
773   Value *VecPtr =
774       Builder.CreateBitCast(PtrOp, VecOp->getType()->getPointerTo());
775 
776   if (isAllActivePredicate(Pred)) {
777     Builder.CreateStore(VecOp, VecPtr);
778     return IC.eraseInstFromFunction(II);
779   }
780 
781   Builder.CreateMaskedStore(VecOp, VecPtr, PtrOp->getPointerAlignment(DL),
782                             Pred);
783   return IC.eraseInstFromFunction(II);
784 }
785 
786 static Instruction::BinaryOps intrinsicIDToBinOpCode(unsigned Intrinsic) {
787   switch (Intrinsic) {
788   case Intrinsic::aarch64_sve_fmul:
789     return Instruction::BinaryOps::FMul;
790   case Intrinsic::aarch64_sve_fadd:
791     return Instruction::BinaryOps::FAdd;
792   case Intrinsic::aarch64_sve_fsub:
793     return Instruction::BinaryOps::FSub;
794   default:
795     return Instruction::BinaryOpsEnd;
796   }
797 }
798 
799 static Optional<Instruction *> instCombineSVEVectorBinOp(InstCombiner &IC,
800                                                          IntrinsicInst &II) {
801   auto *OpPredicate = II.getOperand(0);
802   auto BinOpCode = intrinsicIDToBinOpCode(II.getIntrinsicID());
803   if (BinOpCode == Instruction::BinaryOpsEnd ||
804       !match(OpPredicate, m_Intrinsic<Intrinsic::aarch64_sve_ptrue>(
805                               m_ConstantInt<AArch64SVEPredPattern::all>())))
806     return None;
807   IRBuilder<> Builder(II.getContext());
808   Builder.SetInsertPoint(&II);
809   Builder.setFastMathFlags(II.getFastMathFlags());
810   auto BinOp =
811       Builder.CreateBinOp(BinOpCode, II.getOperand(1), II.getOperand(2));
812   return IC.replaceInstUsesWith(II, BinOp);
813 }
814 
815 static Optional<Instruction *> instCombineSVEVectorFAdd(InstCombiner &IC,
816                                                         IntrinsicInst &II) {
817   if (auto FMLA = instCombineSVEVectorFMLA(IC, II))
818     return FMLA;
819   return instCombineSVEVectorBinOp(IC, II);
820 }
821 
822 static Optional<Instruction *> instCombineSVEVectorMul(InstCombiner &IC,
823                                                        IntrinsicInst &II) {
824   auto *OpPredicate = II.getOperand(0);
825   auto *OpMultiplicand = II.getOperand(1);
826   auto *OpMultiplier = II.getOperand(2);
827 
828   IRBuilder<> Builder(II.getContext());
829   Builder.SetInsertPoint(&II);
830 
831   // Return true if a given instruction is a unit splat value, false otherwise.
832   auto IsUnitSplat = [](auto *I) {
833     auto *SplatValue = getSplatValue(I);
834     if (!SplatValue)
835       return false;
836     return match(SplatValue, m_FPOne()) || match(SplatValue, m_One());
837   };
838 
839   // Return true if a given instruction is an aarch64_sve_dup intrinsic call
840   // with a unit splat value, false otherwise.
841   auto IsUnitDup = [](auto *I) {
842     auto *IntrI = dyn_cast<IntrinsicInst>(I);
843     if (!IntrI || IntrI->getIntrinsicID() != Intrinsic::aarch64_sve_dup)
844       return false;
845 
846     auto *SplatValue = IntrI->getOperand(2);
847     return match(SplatValue, m_FPOne()) || match(SplatValue, m_One());
848   };
849 
850   if (IsUnitSplat(OpMultiplier)) {
851     // [f]mul pg %n, (dupx 1) => %n
852     OpMultiplicand->takeName(&II);
853     return IC.replaceInstUsesWith(II, OpMultiplicand);
854   } else if (IsUnitDup(OpMultiplier)) {
855     // [f]mul pg %n, (dup pg 1) => %n
856     auto *DupInst = cast<IntrinsicInst>(OpMultiplier);
857     auto *DupPg = DupInst->getOperand(1);
858     // TODO: this is naive. The optimization is still valid if DupPg
859     // 'encompasses' OpPredicate, not only if they're the same predicate.
860     if (OpPredicate == DupPg) {
861       OpMultiplicand->takeName(&II);
862       return IC.replaceInstUsesWith(II, OpMultiplicand);
863     }
864   }
865 
866   return instCombineSVEVectorBinOp(IC, II);
867 }
868 
869 static Optional<Instruction *> instCombineSVEUnpack(InstCombiner &IC,
870                                                     IntrinsicInst &II) {
871   IRBuilder<> Builder(II.getContext());
872   Builder.SetInsertPoint(&II);
873   Value *UnpackArg = II.getArgOperand(0);
874   auto *RetTy = cast<ScalableVectorType>(II.getType());
875   bool IsSigned = II.getIntrinsicID() == Intrinsic::aarch64_sve_sunpkhi ||
876                   II.getIntrinsicID() == Intrinsic::aarch64_sve_sunpklo;
877 
878   // Hi = uunpkhi(splat(X)) --> Hi = splat(extend(X))
879   // Lo = uunpklo(splat(X)) --> Lo = splat(extend(X))
880   if (auto *ScalarArg = getSplatValue(UnpackArg)) {
881     ScalarArg =
882         Builder.CreateIntCast(ScalarArg, RetTy->getScalarType(), IsSigned);
883     Value *NewVal =
884         Builder.CreateVectorSplat(RetTy->getElementCount(), ScalarArg);
885     NewVal->takeName(&II);
886     return IC.replaceInstUsesWith(II, NewVal);
887   }
888 
889   return None;
890 }
891 static Optional<Instruction *> instCombineSVETBL(InstCombiner &IC,
892                                                  IntrinsicInst &II) {
893   auto *OpVal = II.getOperand(0);
894   auto *OpIndices = II.getOperand(1);
895   VectorType *VTy = cast<VectorType>(II.getType());
896 
897   // Check whether OpIndices is a constant splat value < minimal element count
898   // of result.
899   auto *SplatValue = dyn_cast_or_null<ConstantInt>(getSplatValue(OpIndices));
900   if (!SplatValue ||
901       SplatValue->getValue().uge(VTy->getElementCount().getKnownMinValue()))
902     return None;
903 
904   // Convert sve_tbl(OpVal sve_dup_x(SplatValue)) to
905   // splat_vector(extractelement(OpVal, SplatValue)) for further optimization.
906   IRBuilder<> Builder(II.getContext());
907   Builder.SetInsertPoint(&II);
908   auto *Extract = Builder.CreateExtractElement(OpVal, SplatValue);
909   auto *VectorSplat =
910       Builder.CreateVectorSplat(VTy->getElementCount(), Extract);
911 
912   VectorSplat->takeName(&II);
913   return IC.replaceInstUsesWith(II, VectorSplat);
914 }
915 
916 static Optional<Instruction *> instCombineSVETupleGet(InstCombiner &IC,
917                                                       IntrinsicInst &II) {
918   // Try to remove sequences of tuple get/set.
919   Value *SetTuple, *SetIndex, *SetValue;
920   auto *GetTuple = II.getArgOperand(0);
921   auto *GetIndex = II.getArgOperand(1);
922   // Check that we have tuple_get(GetTuple, GetIndex) where GetTuple is a
923   // call to tuple_set i.e. tuple_set(SetTuple, SetIndex, SetValue).
924   // Make sure that the types of the current intrinsic and SetValue match
925   // in order to safely remove the sequence.
926   if (!match(GetTuple,
927              m_Intrinsic<Intrinsic::aarch64_sve_tuple_set>(
928                  m_Value(SetTuple), m_Value(SetIndex), m_Value(SetValue))) ||
929       SetValue->getType() != II.getType())
930     return None;
931   // Case where we get the same index right after setting it.
932   // tuple_get(tuple_set(SetTuple, SetIndex, SetValue), GetIndex) --> SetValue
933   if (GetIndex == SetIndex)
934     return IC.replaceInstUsesWith(II, SetValue);
935   // If we are getting a different index than what was set in the tuple_set
936   // intrinsic. We can just set the input tuple to the one up in the chain.
937   // tuple_get(tuple_set(SetTuple, SetIndex, SetValue), GetIndex)
938   // --> tuple_get(SetTuple, GetIndex)
939   return IC.replaceOperand(II, 0, SetTuple);
940 }
941 
942 static Optional<Instruction *> instCombineSVEZip(InstCombiner &IC,
943                                                  IntrinsicInst &II) {
944   // zip1(uzp1(A, B), uzp2(A, B)) --> A
945   // zip2(uzp1(A, B), uzp2(A, B)) --> B
946   Value *A, *B;
947   if (match(II.getArgOperand(0),
948             m_Intrinsic<Intrinsic::aarch64_sve_uzp1>(m_Value(A), m_Value(B))) &&
949       match(II.getArgOperand(1), m_Intrinsic<Intrinsic::aarch64_sve_uzp2>(
950                                      m_Specific(A), m_Specific(B))))
951     return IC.replaceInstUsesWith(
952         II, (II.getIntrinsicID() == Intrinsic::aarch64_sve_zip1 ? A : B));
953 
954   return None;
955 }
956 
957 static Optional<Instruction *> instCombineLD1GatherIndex(InstCombiner &IC,
958                                                          IntrinsicInst &II) {
959   Value *Mask = II.getOperand(0);
960   Value *BasePtr = II.getOperand(1);
961   Value *Index = II.getOperand(2);
962   Type *Ty = II.getType();
963   Type *BasePtrTy = BasePtr->getType();
964   Value *PassThru = ConstantAggregateZero::get(Ty);
965 
966   // Contiguous gather => masked load.
967   // (sve.ld1.gather.index Mask BasePtr (sve.index IndexBase 1))
968   // => (masked.load (gep BasePtr IndexBase) Align Mask zeroinitializer)
969   Value *IndexBase;
970   if (match(Index, m_Intrinsic<Intrinsic::aarch64_sve_index>(
971                        m_Value(IndexBase), m_SpecificInt(1)))) {
972     IRBuilder<> Builder(II.getContext());
973     Builder.SetInsertPoint(&II);
974 
975     Align Alignment =
976         BasePtr->getPointerAlignment(II.getModule()->getDataLayout());
977 
978     Type *VecPtrTy = PointerType::getUnqual(Ty);
979     Value *Ptr = Builder.CreateGEP(BasePtrTy->getPointerElementType(), BasePtr,
980                                    IndexBase);
981     Ptr = Builder.CreateBitCast(Ptr, VecPtrTy);
982     CallInst *MaskedLoad =
983         Builder.CreateMaskedLoad(Ty, Ptr, Alignment, Mask, PassThru);
984     MaskedLoad->takeName(&II);
985     return IC.replaceInstUsesWith(II, MaskedLoad);
986   }
987 
988   return None;
989 }
990 
991 static Optional<Instruction *> instCombineST1ScatterIndex(InstCombiner &IC,
992                                                           IntrinsicInst &II) {
993   Value *Val = II.getOperand(0);
994   Value *Mask = II.getOperand(1);
995   Value *BasePtr = II.getOperand(2);
996   Value *Index = II.getOperand(3);
997   Type *Ty = Val->getType();
998   Type *BasePtrTy = BasePtr->getType();
999 
1000   // Contiguous scatter => masked store.
1001   // (sve.ld1.scatter.index Value Mask BasePtr (sve.index IndexBase 1))
1002   // => (masked.store Value (gep BasePtr IndexBase) Align Mask)
1003   Value *IndexBase;
1004   if (match(Index, m_Intrinsic<Intrinsic::aarch64_sve_index>(
1005                        m_Value(IndexBase), m_SpecificInt(1)))) {
1006     IRBuilder<> Builder(II.getContext());
1007     Builder.SetInsertPoint(&II);
1008 
1009     Align Alignment =
1010         BasePtr->getPointerAlignment(II.getModule()->getDataLayout());
1011 
1012     Value *Ptr = Builder.CreateGEP(BasePtrTy->getPointerElementType(), BasePtr,
1013                                    IndexBase);
1014     Type *VecPtrTy = PointerType::getUnqual(Ty);
1015     Ptr = Builder.CreateBitCast(Ptr, VecPtrTy);
1016 
1017     (void)Builder.CreateMaskedStore(Val, Ptr, Alignment, Mask);
1018 
1019     return IC.eraseInstFromFunction(II);
1020   }
1021 
1022   return None;
1023 }
1024 
1025 Optional<Instruction *>
1026 AArch64TTIImpl::instCombineIntrinsic(InstCombiner &IC,
1027                                      IntrinsicInst &II) const {
1028   Intrinsic::ID IID = II.getIntrinsicID();
1029   switch (IID) {
1030   default:
1031     break;
1032   case Intrinsic::aarch64_sve_convert_from_svbool:
1033     return instCombineConvertFromSVBool(IC, II);
1034   case Intrinsic::aarch64_sve_dup:
1035     return instCombineSVEDup(IC, II);
1036   case Intrinsic::aarch64_sve_dup_x:
1037     return instCombineSVEDupX(IC, II);
1038   case Intrinsic::aarch64_sve_cmpne:
1039   case Intrinsic::aarch64_sve_cmpne_wide:
1040     return instCombineSVECmpNE(IC, II);
1041   case Intrinsic::aarch64_sve_rdffr:
1042     return instCombineRDFFR(IC, II);
1043   case Intrinsic::aarch64_sve_lasta:
1044   case Intrinsic::aarch64_sve_lastb:
1045     return instCombineSVELast(IC, II);
1046   case Intrinsic::aarch64_sve_cntd:
1047     return instCombineSVECntElts(IC, II, 2);
1048   case Intrinsic::aarch64_sve_cntw:
1049     return instCombineSVECntElts(IC, II, 4);
1050   case Intrinsic::aarch64_sve_cnth:
1051     return instCombineSVECntElts(IC, II, 8);
1052   case Intrinsic::aarch64_sve_cntb:
1053     return instCombineSVECntElts(IC, II, 16);
1054   case Intrinsic::aarch64_sve_ptest_any:
1055   case Intrinsic::aarch64_sve_ptest_first:
1056   case Intrinsic::aarch64_sve_ptest_last:
1057     return instCombineSVEPTest(IC, II);
1058   case Intrinsic::aarch64_sve_mul:
1059   case Intrinsic::aarch64_sve_fmul:
1060     return instCombineSVEVectorMul(IC, II);
1061   case Intrinsic::aarch64_sve_fadd:
1062     return instCombineSVEVectorFAdd(IC, II);
1063   case Intrinsic::aarch64_sve_fsub:
1064     return instCombineSVEVectorBinOp(IC, II);
1065   case Intrinsic::aarch64_sve_tbl:
1066     return instCombineSVETBL(IC, II);
1067   case Intrinsic::aarch64_sve_uunpkhi:
1068   case Intrinsic::aarch64_sve_uunpklo:
1069   case Intrinsic::aarch64_sve_sunpkhi:
1070   case Intrinsic::aarch64_sve_sunpklo:
1071     return instCombineSVEUnpack(IC, II);
1072   case Intrinsic::aarch64_sve_tuple_get:
1073     return instCombineSVETupleGet(IC, II);
1074   case Intrinsic::aarch64_sve_zip1:
1075   case Intrinsic::aarch64_sve_zip2:
1076     return instCombineSVEZip(IC, II);
1077   case Intrinsic::aarch64_sve_ld1_gather_index:
1078     return instCombineLD1GatherIndex(IC, II);
1079   case Intrinsic::aarch64_sve_st1_scatter_index:
1080     return instCombineST1ScatterIndex(IC, II);
1081   case Intrinsic::aarch64_sve_ld1:
1082     return instCombineSVELD1(IC, II, DL);
1083   case Intrinsic::aarch64_sve_st1:
1084     return instCombineSVEST1(IC, II, DL);
1085   }
1086 
1087   return None;
1088 }
1089 
1090 bool AArch64TTIImpl::isWideningInstruction(Type *DstTy, unsigned Opcode,
1091                                            ArrayRef<const Value *> Args) {
1092 
1093   // A helper that returns a vector type from the given type. The number of
1094   // elements in type Ty determine the vector width.
1095   auto toVectorTy = [&](Type *ArgTy) {
1096     return VectorType::get(ArgTy->getScalarType(),
1097                            cast<VectorType>(DstTy)->getElementCount());
1098   };
1099 
1100   // Exit early if DstTy is not a vector type whose elements are at least
1101   // 16-bits wide.
1102   if (!DstTy->isVectorTy() || DstTy->getScalarSizeInBits() < 16)
1103     return false;
1104 
1105   // Determine if the operation has a widening variant. We consider both the
1106   // "long" (e.g., usubl) and "wide" (e.g., usubw) versions of the
1107   // instructions.
1108   //
1109   // TODO: Add additional widening operations (e.g., mul, shl, etc.) once we
1110   //       verify that their extending operands are eliminated during code
1111   //       generation.
1112   switch (Opcode) {
1113   case Instruction::Add: // UADDL(2), SADDL(2), UADDW(2), SADDW(2).
1114   case Instruction::Sub: // USUBL(2), SSUBL(2), USUBW(2), SSUBW(2).
1115     break;
1116   default:
1117     return false;
1118   }
1119 
1120   // To be a widening instruction (either the "wide" or "long" versions), the
1121   // second operand must be a sign- or zero extend having a single user. We
1122   // only consider extends having a single user because they may otherwise not
1123   // be eliminated.
1124   if (Args.size() != 2 ||
1125       (!isa<SExtInst>(Args[1]) && !isa<ZExtInst>(Args[1])) ||
1126       !Args[1]->hasOneUse())
1127     return false;
1128   auto *Extend = cast<CastInst>(Args[1]);
1129 
1130   // Legalize the destination type and ensure it can be used in a widening
1131   // operation.
1132   auto DstTyL = TLI->getTypeLegalizationCost(DL, DstTy);
1133   unsigned DstElTySize = DstTyL.second.getScalarSizeInBits();
1134   if (!DstTyL.second.isVector() || DstElTySize != DstTy->getScalarSizeInBits())
1135     return false;
1136 
1137   // Legalize the source type and ensure it can be used in a widening
1138   // operation.
1139   auto *SrcTy = toVectorTy(Extend->getSrcTy());
1140   auto SrcTyL = TLI->getTypeLegalizationCost(DL, SrcTy);
1141   unsigned SrcElTySize = SrcTyL.second.getScalarSizeInBits();
1142   if (!SrcTyL.second.isVector() || SrcElTySize != SrcTy->getScalarSizeInBits())
1143     return false;
1144 
1145   // Get the total number of vector elements in the legalized types.
1146   InstructionCost NumDstEls =
1147       DstTyL.first * DstTyL.second.getVectorMinNumElements();
1148   InstructionCost NumSrcEls =
1149       SrcTyL.first * SrcTyL.second.getVectorMinNumElements();
1150 
1151   // Return true if the legalized types have the same number of vector elements
1152   // and the destination element type size is twice that of the source type.
1153   return NumDstEls == NumSrcEls && 2 * SrcElTySize == DstElTySize;
1154 }
1155 
1156 InstructionCost AArch64TTIImpl::getCastInstrCost(unsigned Opcode, Type *Dst,
1157                                                  Type *Src,
1158                                                  TTI::CastContextHint CCH,
1159                                                  TTI::TargetCostKind CostKind,
1160                                                  const Instruction *I) {
1161   int ISD = TLI->InstructionOpcodeToISD(Opcode);
1162   assert(ISD && "Invalid opcode");
1163 
1164   // If the cast is observable, and it is used by a widening instruction (e.g.,
1165   // uaddl, saddw, etc.), it may be free.
1166   if (I && I->hasOneUse()) {
1167     auto *SingleUser = cast<Instruction>(*I->user_begin());
1168     SmallVector<const Value *, 4> Operands(SingleUser->operand_values());
1169     if (isWideningInstruction(Dst, SingleUser->getOpcode(), Operands)) {
1170       // If the cast is the second operand, it is free. We will generate either
1171       // a "wide" or "long" version of the widening instruction.
1172       if (I == SingleUser->getOperand(1))
1173         return 0;
1174       // If the cast is not the second operand, it will be free if it looks the
1175       // same as the second operand. In this case, we will generate a "long"
1176       // version of the widening instruction.
1177       if (auto *Cast = dyn_cast<CastInst>(SingleUser->getOperand(1)))
1178         if (I->getOpcode() == unsigned(Cast->getOpcode()) &&
1179             cast<CastInst>(I)->getSrcTy() == Cast->getSrcTy())
1180           return 0;
1181     }
1182   }
1183 
1184   // TODO: Allow non-throughput costs that aren't binary.
1185   auto AdjustCost = [&CostKind](InstructionCost Cost) -> InstructionCost {
1186     if (CostKind != TTI::TCK_RecipThroughput)
1187       return Cost == 0 ? 0 : 1;
1188     return Cost;
1189   };
1190 
1191   EVT SrcTy = TLI->getValueType(DL, Src);
1192   EVT DstTy = TLI->getValueType(DL, Dst);
1193 
1194   if (!SrcTy.isSimple() || !DstTy.isSimple())
1195     return AdjustCost(
1196         BaseT::getCastInstrCost(Opcode, Dst, Src, CCH, CostKind, I));
1197 
1198   static const TypeConversionCostTblEntry
1199   ConversionTbl[] = {
1200     { ISD::TRUNCATE, MVT::v4i16, MVT::v4i32,  1 },
1201     { ISD::TRUNCATE, MVT::v4i32, MVT::v4i64,  0 },
1202     { ISD::TRUNCATE, MVT::v8i8,  MVT::v8i32,  3 },
1203     { ISD::TRUNCATE, MVT::v16i8, MVT::v16i32, 6 },
1204 
1205     // Truncations on nxvmiN
1206     { ISD::TRUNCATE, MVT::nxv2i1, MVT::nxv2i16, 1 },
1207     { ISD::TRUNCATE, MVT::nxv2i1, MVT::nxv2i32, 1 },
1208     { ISD::TRUNCATE, MVT::nxv2i1, MVT::nxv2i64, 1 },
1209     { ISD::TRUNCATE, MVT::nxv4i1, MVT::nxv4i16, 1 },
1210     { ISD::TRUNCATE, MVT::nxv4i1, MVT::nxv4i32, 1 },
1211     { ISD::TRUNCATE, MVT::nxv4i1, MVT::nxv4i64, 2 },
1212     { ISD::TRUNCATE, MVT::nxv8i1, MVT::nxv8i16, 1 },
1213     { ISD::TRUNCATE, MVT::nxv8i1, MVT::nxv8i32, 3 },
1214     { ISD::TRUNCATE, MVT::nxv8i1, MVT::nxv8i64, 5 },
1215     { ISD::TRUNCATE, MVT::nxv16i1, MVT::nxv16i8, 1 },
1216     { ISD::TRUNCATE, MVT::nxv2i16, MVT::nxv2i32, 1 },
1217     { ISD::TRUNCATE, MVT::nxv2i32, MVT::nxv2i64, 1 },
1218     { ISD::TRUNCATE, MVT::nxv4i16, MVT::nxv4i32, 1 },
1219     { ISD::TRUNCATE, MVT::nxv4i32, MVT::nxv4i64, 2 },
1220     { ISD::TRUNCATE, MVT::nxv8i16, MVT::nxv8i32, 3 },
1221     { ISD::TRUNCATE, MVT::nxv8i32, MVT::nxv8i64, 6 },
1222 
1223     // The number of shll instructions for the extension.
1224     { ISD::SIGN_EXTEND, MVT::v4i64,  MVT::v4i16, 3 },
1225     { ISD::ZERO_EXTEND, MVT::v4i64,  MVT::v4i16, 3 },
1226     { ISD::SIGN_EXTEND, MVT::v4i64,  MVT::v4i32, 2 },
1227     { ISD::ZERO_EXTEND, MVT::v4i64,  MVT::v4i32, 2 },
1228     { ISD::SIGN_EXTEND, MVT::v8i32,  MVT::v8i8,  3 },
1229     { ISD::ZERO_EXTEND, MVT::v8i32,  MVT::v8i8,  3 },
1230     { ISD::SIGN_EXTEND, MVT::v8i32,  MVT::v8i16, 2 },
1231     { ISD::ZERO_EXTEND, MVT::v8i32,  MVT::v8i16, 2 },
1232     { ISD::SIGN_EXTEND, MVT::v8i64,  MVT::v8i8,  7 },
1233     { ISD::ZERO_EXTEND, MVT::v8i64,  MVT::v8i8,  7 },
1234     { ISD::SIGN_EXTEND, MVT::v8i64,  MVT::v8i16, 6 },
1235     { ISD::ZERO_EXTEND, MVT::v8i64,  MVT::v8i16, 6 },
1236     { ISD::SIGN_EXTEND, MVT::v16i16, MVT::v16i8, 2 },
1237     { ISD::ZERO_EXTEND, MVT::v16i16, MVT::v16i8, 2 },
1238     { ISD::SIGN_EXTEND, MVT::v16i32, MVT::v16i8, 6 },
1239     { ISD::ZERO_EXTEND, MVT::v16i32, MVT::v16i8, 6 },
1240 
1241     // LowerVectorINT_TO_FP:
1242     { ISD::SINT_TO_FP, MVT::v2f32, MVT::v2i32, 1 },
1243     { ISD::SINT_TO_FP, MVT::v4f32, MVT::v4i32, 1 },
1244     { ISD::SINT_TO_FP, MVT::v2f64, MVT::v2i64, 1 },
1245     { ISD::UINT_TO_FP, MVT::v2f32, MVT::v2i32, 1 },
1246     { ISD::UINT_TO_FP, MVT::v4f32, MVT::v4i32, 1 },
1247     { ISD::UINT_TO_FP, MVT::v2f64, MVT::v2i64, 1 },
1248 
1249     // Complex: to v2f32
1250     { ISD::SINT_TO_FP, MVT::v2f32, MVT::v2i8,  3 },
1251     { ISD::SINT_TO_FP, MVT::v2f32, MVT::v2i16, 3 },
1252     { ISD::SINT_TO_FP, MVT::v2f32, MVT::v2i64, 2 },
1253     { ISD::UINT_TO_FP, MVT::v2f32, MVT::v2i8,  3 },
1254     { ISD::UINT_TO_FP, MVT::v2f32, MVT::v2i16, 3 },
1255     { ISD::UINT_TO_FP, MVT::v2f32, MVT::v2i64, 2 },
1256 
1257     // Complex: to v4f32
1258     { ISD::SINT_TO_FP, MVT::v4f32, MVT::v4i8,  4 },
1259     { ISD::SINT_TO_FP, MVT::v4f32, MVT::v4i16, 2 },
1260     { ISD::UINT_TO_FP, MVT::v4f32, MVT::v4i8,  3 },
1261     { ISD::UINT_TO_FP, MVT::v4f32, MVT::v4i16, 2 },
1262 
1263     // Complex: to v8f32
1264     { ISD::SINT_TO_FP, MVT::v8f32, MVT::v8i8,  10 },
1265     { ISD::SINT_TO_FP, MVT::v8f32, MVT::v8i16, 4 },
1266     { ISD::UINT_TO_FP, MVT::v8f32, MVT::v8i8,  10 },
1267     { ISD::UINT_TO_FP, MVT::v8f32, MVT::v8i16, 4 },
1268 
1269     // Complex: to v16f32
1270     { ISD::SINT_TO_FP, MVT::v16f32, MVT::v16i8, 21 },
1271     { ISD::UINT_TO_FP, MVT::v16f32, MVT::v16i8, 21 },
1272 
1273     // Complex: to v2f64
1274     { ISD::SINT_TO_FP, MVT::v2f64, MVT::v2i8,  4 },
1275     { ISD::SINT_TO_FP, MVT::v2f64, MVT::v2i16, 4 },
1276     { ISD::SINT_TO_FP, MVT::v2f64, MVT::v2i32, 2 },
1277     { ISD::UINT_TO_FP, MVT::v2f64, MVT::v2i8,  4 },
1278     { ISD::UINT_TO_FP, MVT::v2f64, MVT::v2i16, 4 },
1279     { ISD::UINT_TO_FP, MVT::v2f64, MVT::v2i32, 2 },
1280 
1281 
1282     // LowerVectorFP_TO_INT
1283     { ISD::FP_TO_SINT, MVT::v2i32, MVT::v2f32, 1 },
1284     { ISD::FP_TO_SINT, MVT::v4i32, MVT::v4f32, 1 },
1285     { ISD::FP_TO_SINT, MVT::v2i64, MVT::v2f64, 1 },
1286     { ISD::FP_TO_UINT, MVT::v2i32, MVT::v2f32, 1 },
1287     { ISD::FP_TO_UINT, MVT::v4i32, MVT::v4f32, 1 },
1288     { ISD::FP_TO_UINT, MVT::v2i64, MVT::v2f64, 1 },
1289 
1290     // Complex, from v2f32: legal type is v2i32 (no cost) or v2i64 (1 ext).
1291     { ISD::FP_TO_SINT, MVT::v2i64, MVT::v2f32, 2 },
1292     { ISD::FP_TO_SINT, MVT::v2i16, MVT::v2f32, 1 },
1293     { ISD::FP_TO_SINT, MVT::v2i8,  MVT::v2f32, 1 },
1294     { ISD::FP_TO_UINT, MVT::v2i64, MVT::v2f32, 2 },
1295     { ISD::FP_TO_UINT, MVT::v2i16, MVT::v2f32, 1 },
1296     { ISD::FP_TO_UINT, MVT::v2i8,  MVT::v2f32, 1 },
1297 
1298     // Complex, from v4f32: legal type is v4i16, 1 narrowing => ~2
1299     { ISD::FP_TO_SINT, MVT::v4i16, MVT::v4f32, 2 },
1300     { ISD::FP_TO_SINT, MVT::v4i8,  MVT::v4f32, 2 },
1301     { ISD::FP_TO_UINT, MVT::v4i16, MVT::v4f32, 2 },
1302     { ISD::FP_TO_UINT, MVT::v4i8,  MVT::v4f32, 2 },
1303 
1304     // Complex, from nxv2f32.
1305     { ISD::FP_TO_SINT, MVT::nxv2i64, MVT::nxv2f32, 1 },
1306     { ISD::FP_TO_SINT, MVT::nxv2i32, MVT::nxv2f32, 1 },
1307     { ISD::FP_TO_SINT, MVT::nxv2i16, MVT::nxv2f32, 1 },
1308     { ISD::FP_TO_SINT, MVT::nxv2i8,  MVT::nxv2f32, 1 },
1309     { ISD::FP_TO_UINT, MVT::nxv2i64, MVT::nxv2f32, 1 },
1310     { ISD::FP_TO_UINT, MVT::nxv2i32, MVT::nxv2f32, 1 },
1311     { ISD::FP_TO_UINT, MVT::nxv2i16, MVT::nxv2f32, 1 },
1312     { ISD::FP_TO_UINT, MVT::nxv2i8,  MVT::nxv2f32, 1 },
1313 
1314     // Complex, from v2f64: legal type is v2i32, 1 narrowing => ~2.
1315     { ISD::FP_TO_SINT, MVT::v2i32, MVT::v2f64, 2 },
1316     { ISD::FP_TO_SINT, MVT::v2i16, MVT::v2f64, 2 },
1317     { ISD::FP_TO_SINT, MVT::v2i8,  MVT::v2f64, 2 },
1318     { ISD::FP_TO_UINT, MVT::v2i32, MVT::v2f64, 2 },
1319     { ISD::FP_TO_UINT, MVT::v2i16, MVT::v2f64, 2 },
1320     { ISD::FP_TO_UINT, MVT::v2i8,  MVT::v2f64, 2 },
1321 
1322     // Complex, from nxv2f64.
1323     { ISD::FP_TO_SINT, MVT::nxv2i64, MVT::nxv2f64, 1 },
1324     { ISD::FP_TO_SINT, MVT::nxv2i32, MVT::nxv2f64, 1 },
1325     { ISD::FP_TO_SINT, MVT::nxv2i16, MVT::nxv2f64, 1 },
1326     { ISD::FP_TO_SINT, MVT::nxv2i8,  MVT::nxv2f64, 1 },
1327     { ISD::FP_TO_UINT, MVT::nxv2i64, MVT::nxv2f64, 1 },
1328     { ISD::FP_TO_UINT, MVT::nxv2i32, MVT::nxv2f64, 1 },
1329     { ISD::FP_TO_UINT, MVT::nxv2i16, MVT::nxv2f64, 1 },
1330     { ISD::FP_TO_UINT, MVT::nxv2i8,  MVT::nxv2f64, 1 },
1331 
1332     // Complex, from nxv4f32.
1333     { ISD::FP_TO_SINT, MVT::nxv4i64, MVT::nxv4f32, 4 },
1334     { ISD::FP_TO_SINT, MVT::nxv4i32, MVT::nxv4f32, 1 },
1335     { ISD::FP_TO_SINT, MVT::nxv4i16, MVT::nxv4f32, 1 },
1336     { ISD::FP_TO_SINT, MVT::nxv4i8,  MVT::nxv4f32, 1 },
1337     { ISD::FP_TO_UINT, MVT::nxv4i64, MVT::nxv4f32, 4 },
1338     { ISD::FP_TO_UINT, MVT::nxv4i32, MVT::nxv4f32, 1 },
1339     { ISD::FP_TO_UINT, MVT::nxv4i16, MVT::nxv4f32, 1 },
1340     { ISD::FP_TO_UINT, MVT::nxv4i8,  MVT::nxv4f32, 1 },
1341 
1342     // Complex, from nxv8f64. Illegal -> illegal conversions not required.
1343     { ISD::FP_TO_SINT, MVT::nxv8i16, MVT::nxv8f64, 7 },
1344     { ISD::FP_TO_SINT, MVT::nxv8i8,  MVT::nxv8f64, 7 },
1345     { ISD::FP_TO_UINT, MVT::nxv8i16, MVT::nxv8f64, 7 },
1346     { ISD::FP_TO_UINT, MVT::nxv8i8,  MVT::nxv8f64, 7 },
1347 
1348     // Complex, from nxv4f64. Illegal -> illegal conversions not required.
1349     { ISD::FP_TO_SINT, MVT::nxv4i32, MVT::nxv4f64, 3 },
1350     { ISD::FP_TO_SINT, MVT::nxv4i16, MVT::nxv4f64, 3 },
1351     { ISD::FP_TO_SINT, MVT::nxv4i8,  MVT::nxv4f64, 3 },
1352     { ISD::FP_TO_UINT, MVT::nxv4i32, MVT::nxv4f64, 3 },
1353     { ISD::FP_TO_UINT, MVT::nxv4i16, MVT::nxv4f64, 3 },
1354     { ISD::FP_TO_UINT, MVT::nxv4i8,  MVT::nxv4f64, 3 },
1355 
1356     // Complex, from nxv8f32. Illegal -> illegal conversions not required.
1357     { ISD::FP_TO_SINT, MVT::nxv8i16, MVT::nxv8f32, 3 },
1358     { ISD::FP_TO_SINT, MVT::nxv8i8,  MVT::nxv8f32, 3 },
1359     { ISD::FP_TO_UINT, MVT::nxv8i16, MVT::nxv8f32, 3 },
1360     { ISD::FP_TO_UINT, MVT::nxv8i8,  MVT::nxv8f32, 3 },
1361 
1362     // Complex, from nxv8f16.
1363     { ISD::FP_TO_SINT, MVT::nxv8i64, MVT::nxv8f16, 10 },
1364     { ISD::FP_TO_SINT, MVT::nxv8i32, MVT::nxv8f16, 4 },
1365     { ISD::FP_TO_SINT, MVT::nxv8i16, MVT::nxv8f16, 1 },
1366     { ISD::FP_TO_SINT, MVT::nxv8i8,  MVT::nxv8f16, 1 },
1367     { ISD::FP_TO_UINT, MVT::nxv8i64, MVT::nxv8f16, 10 },
1368     { ISD::FP_TO_UINT, MVT::nxv8i32, MVT::nxv8f16, 4 },
1369     { ISD::FP_TO_UINT, MVT::nxv8i16, MVT::nxv8f16, 1 },
1370     { ISD::FP_TO_UINT, MVT::nxv8i8,  MVT::nxv8f16, 1 },
1371 
1372     // Complex, from nxv4f16.
1373     { ISD::FP_TO_SINT, MVT::nxv4i64, MVT::nxv4f16, 4 },
1374     { ISD::FP_TO_SINT, MVT::nxv4i32, MVT::nxv4f16, 1 },
1375     { ISD::FP_TO_SINT, MVT::nxv4i16, MVT::nxv4f16, 1 },
1376     { ISD::FP_TO_SINT, MVT::nxv4i8,  MVT::nxv4f16, 1 },
1377     { ISD::FP_TO_UINT, MVT::nxv4i64, MVT::nxv4f16, 4 },
1378     { ISD::FP_TO_UINT, MVT::nxv4i32, MVT::nxv4f16, 1 },
1379     { ISD::FP_TO_UINT, MVT::nxv4i16, MVT::nxv4f16, 1 },
1380     { ISD::FP_TO_UINT, MVT::nxv4i8,  MVT::nxv4f16, 1 },
1381 
1382     // Complex, from nxv2f16.
1383     { ISD::FP_TO_SINT, MVT::nxv2i64, MVT::nxv2f16, 1 },
1384     { ISD::FP_TO_SINT, MVT::nxv2i32, MVT::nxv2f16, 1 },
1385     { ISD::FP_TO_SINT, MVT::nxv2i16, MVT::nxv2f16, 1 },
1386     { ISD::FP_TO_SINT, MVT::nxv2i8,  MVT::nxv2f16, 1 },
1387     { ISD::FP_TO_UINT, MVT::nxv2i64, MVT::nxv2f16, 1 },
1388     { ISD::FP_TO_UINT, MVT::nxv2i32, MVT::nxv2f16, 1 },
1389     { ISD::FP_TO_UINT, MVT::nxv2i16, MVT::nxv2f16, 1 },
1390     { ISD::FP_TO_UINT, MVT::nxv2i8,  MVT::nxv2f16, 1 },
1391 
1392     // Truncate from nxvmf32 to nxvmf16.
1393     { ISD::FP_ROUND, MVT::nxv2f16, MVT::nxv2f32, 1 },
1394     { ISD::FP_ROUND, MVT::nxv4f16, MVT::nxv4f32, 1 },
1395     { ISD::FP_ROUND, MVT::nxv8f16, MVT::nxv8f32, 3 },
1396 
1397     // Truncate from nxvmf64 to nxvmf16.
1398     { ISD::FP_ROUND, MVT::nxv2f16, MVT::nxv2f64, 1 },
1399     { ISD::FP_ROUND, MVT::nxv4f16, MVT::nxv4f64, 3 },
1400     { ISD::FP_ROUND, MVT::nxv8f16, MVT::nxv8f64, 7 },
1401 
1402     // Truncate from nxvmf64 to nxvmf32.
1403     { ISD::FP_ROUND, MVT::nxv2f32, MVT::nxv2f64, 1 },
1404     { ISD::FP_ROUND, MVT::nxv4f32, MVT::nxv4f64, 3 },
1405     { ISD::FP_ROUND, MVT::nxv8f32, MVT::nxv8f64, 6 },
1406 
1407     // Extend from nxvmf16 to nxvmf32.
1408     { ISD::FP_EXTEND, MVT::nxv2f32, MVT::nxv2f16, 1},
1409     { ISD::FP_EXTEND, MVT::nxv4f32, MVT::nxv4f16, 1},
1410     { ISD::FP_EXTEND, MVT::nxv8f32, MVT::nxv8f16, 2},
1411 
1412     // Extend from nxvmf16 to nxvmf64.
1413     { ISD::FP_EXTEND, MVT::nxv2f64, MVT::nxv2f16, 1},
1414     { ISD::FP_EXTEND, MVT::nxv4f64, MVT::nxv4f16, 2},
1415     { ISD::FP_EXTEND, MVT::nxv8f64, MVT::nxv8f16, 4},
1416 
1417     // Extend from nxvmf32 to nxvmf64.
1418     { ISD::FP_EXTEND, MVT::nxv2f64, MVT::nxv2f32, 1},
1419     { ISD::FP_EXTEND, MVT::nxv4f64, MVT::nxv4f32, 2},
1420     { ISD::FP_EXTEND, MVT::nxv8f64, MVT::nxv8f32, 6},
1421 
1422   };
1423 
1424   if (const auto *Entry = ConvertCostTableLookup(ConversionTbl, ISD,
1425                                                  DstTy.getSimpleVT(),
1426                                                  SrcTy.getSimpleVT()))
1427     return AdjustCost(Entry->Cost);
1428 
1429   return AdjustCost(
1430       BaseT::getCastInstrCost(Opcode, Dst, Src, CCH, CostKind, I));
1431 }
1432 
1433 InstructionCost AArch64TTIImpl::getExtractWithExtendCost(unsigned Opcode,
1434                                                          Type *Dst,
1435                                                          VectorType *VecTy,
1436                                                          unsigned Index) {
1437 
1438   // Make sure we were given a valid extend opcode.
1439   assert((Opcode == Instruction::SExt || Opcode == Instruction::ZExt) &&
1440          "Invalid opcode");
1441 
1442   // We are extending an element we extract from a vector, so the source type
1443   // of the extend is the element type of the vector.
1444   auto *Src = VecTy->getElementType();
1445 
1446   // Sign- and zero-extends are for integer types only.
1447   assert(isa<IntegerType>(Dst) && isa<IntegerType>(Src) && "Invalid type");
1448 
1449   // Get the cost for the extract. We compute the cost (if any) for the extend
1450   // below.
1451   InstructionCost Cost =
1452       getVectorInstrCost(Instruction::ExtractElement, VecTy, Index);
1453 
1454   // Legalize the types.
1455   auto VecLT = TLI->getTypeLegalizationCost(DL, VecTy);
1456   auto DstVT = TLI->getValueType(DL, Dst);
1457   auto SrcVT = TLI->getValueType(DL, Src);
1458   TTI::TargetCostKind CostKind = TTI::TCK_RecipThroughput;
1459 
1460   // If the resulting type is still a vector and the destination type is legal,
1461   // we may get the extension for free. If not, get the default cost for the
1462   // extend.
1463   if (!VecLT.second.isVector() || !TLI->isTypeLegal(DstVT))
1464     return Cost + getCastInstrCost(Opcode, Dst, Src, TTI::CastContextHint::None,
1465                                    CostKind);
1466 
1467   // The destination type should be larger than the element type. If not, get
1468   // the default cost for the extend.
1469   if (DstVT.getFixedSizeInBits() < SrcVT.getFixedSizeInBits())
1470     return Cost + getCastInstrCost(Opcode, Dst, Src, TTI::CastContextHint::None,
1471                                    CostKind);
1472 
1473   switch (Opcode) {
1474   default:
1475     llvm_unreachable("Opcode should be either SExt or ZExt");
1476 
1477   // For sign-extends, we only need a smov, which performs the extension
1478   // automatically.
1479   case Instruction::SExt:
1480     return Cost;
1481 
1482   // For zero-extends, the extend is performed automatically by a umov unless
1483   // the destination type is i64 and the element type is i8 or i16.
1484   case Instruction::ZExt:
1485     if (DstVT.getSizeInBits() != 64u || SrcVT.getSizeInBits() == 32u)
1486       return Cost;
1487   }
1488 
1489   // If we are unable to perform the extend for free, get the default cost.
1490   return Cost + getCastInstrCost(Opcode, Dst, Src, TTI::CastContextHint::None,
1491                                  CostKind);
1492 }
1493 
1494 InstructionCost AArch64TTIImpl::getCFInstrCost(unsigned Opcode,
1495                                                TTI::TargetCostKind CostKind,
1496                                                const Instruction *I) {
1497   if (CostKind != TTI::TCK_RecipThroughput)
1498     return Opcode == Instruction::PHI ? 0 : 1;
1499   assert(CostKind == TTI::TCK_RecipThroughput && "unexpected CostKind");
1500   // Branches are assumed to be predicted.
1501   return 0;
1502 }
1503 
1504 InstructionCost AArch64TTIImpl::getVectorInstrCost(unsigned Opcode, Type *Val,
1505                                                    unsigned Index) {
1506   assert(Val->isVectorTy() && "This must be a vector type");
1507 
1508   if (Index != -1U) {
1509     // Legalize the type.
1510     std::pair<InstructionCost, MVT> LT = TLI->getTypeLegalizationCost(DL, Val);
1511 
1512     // This type is legalized to a scalar type.
1513     if (!LT.second.isVector())
1514       return 0;
1515 
1516     // The type may be split. Normalize the index to the new type.
1517     unsigned Width = LT.second.getVectorNumElements();
1518     Index = Index % Width;
1519 
1520     // The element at index zero is already inside the vector.
1521     if (Index == 0)
1522       return 0;
1523   }
1524 
1525   // All other insert/extracts cost this much.
1526   return ST->getVectorInsertExtractBaseCost();
1527 }
1528 
1529 InstructionCost AArch64TTIImpl::getArithmeticInstrCost(
1530     unsigned Opcode, Type *Ty, TTI::TargetCostKind CostKind,
1531     TTI::OperandValueKind Opd1Info, TTI::OperandValueKind Opd2Info,
1532     TTI::OperandValueProperties Opd1PropInfo,
1533     TTI::OperandValueProperties Opd2PropInfo, ArrayRef<const Value *> Args,
1534     const Instruction *CxtI) {
1535   // TODO: Handle more cost kinds.
1536   if (CostKind != TTI::TCK_RecipThroughput)
1537     return BaseT::getArithmeticInstrCost(Opcode, Ty, CostKind, Opd1Info,
1538                                          Opd2Info, Opd1PropInfo,
1539                                          Opd2PropInfo, Args, CxtI);
1540 
1541   // Legalize the type.
1542   std::pair<InstructionCost, MVT> LT = TLI->getTypeLegalizationCost(DL, Ty);
1543 
1544   // If the instruction is a widening instruction (e.g., uaddl, saddw, etc.),
1545   // add in the widening overhead specified by the sub-target. Since the
1546   // extends feeding widening instructions are performed automatically, they
1547   // aren't present in the generated code and have a zero cost. By adding a
1548   // widening overhead here, we attach the total cost of the combined operation
1549   // to the widening instruction.
1550   InstructionCost Cost = 0;
1551   if (isWideningInstruction(Ty, Opcode, Args))
1552     Cost += ST->getWideningBaseCost();
1553 
1554   int ISD = TLI->InstructionOpcodeToISD(Opcode);
1555 
1556   switch (ISD) {
1557   default:
1558     return Cost + BaseT::getArithmeticInstrCost(Opcode, Ty, CostKind, Opd1Info,
1559                                                 Opd2Info,
1560                                                 Opd1PropInfo, Opd2PropInfo);
1561   case ISD::SDIV:
1562     if (Opd2Info == TargetTransformInfo::OK_UniformConstantValue &&
1563         Opd2PropInfo == TargetTransformInfo::OP_PowerOf2) {
1564       // On AArch64, scalar signed division by constants power-of-two are
1565       // normally expanded to the sequence ADD + CMP + SELECT + SRA.
1566       // The OperandValue properties many not be same as that of previous
1567       // operation; conservatively assume OP_None.
1568       Cost += getArithmeticInstrCost(Instruction::Add, Ty, CostKind,
1569                                      Opd1Info, Opd2Info,
1570                                      TargetTransformInfo::OP_None,
1571                                      TargetTransformInfo::OP_None);
1572       Cost += getArithmeticInstrCost(Instruction::Sub, Ty, CostKind,
1573                                      Opd1Info, Opd2Info,
1574                                      TargetTransformInfo::OP_None,
1575                                      TargetTransformInfo::OP_None);
1576       Cost += getArithmeticInstrCost(Instruction::Select, Ty, CostKind,
1577                                      Opd1Info, Opd2Info,
1578                                      TargetTransformInfo::OP_None,
1579                                      TargetTransformInfo::OP_None);
1580       Cost += getArithmeticInstrCost(Instruction::AShr, Ty, CostKind,
1581                                      Opd1Info, Opd2Info,
1582                                      TargetTransformInfo::OP_None,
1583                                      TargetTransformInfo::OP_None);
1584       return Cost;
1585     }
1586     LLVM_FALLTHROUGH;
1587   case ISD::UDIV:
1588     if (Opd2Info == TargetTransformInfo::OK_UniformConstantValue) {
1589       auto VT = TLI->getValueType(DL, Ty);
1590       if (TLI->isOperationLegalOrCustom(ISD::MULHU, VT)) {
1591         // Vector signed division by constant are expanded to the
1592         // sequence MULHS + ADD/SUB + SRA + SRL + ADD, and unsigned division
1593         // to MULHS + SUB + SRL + ADD + SRL.
1594         InstructionCost MulCost = getArithmeticInstrCost(
1595             Instruction::Mul, Ty, CostKind, Opd1Info, Opd2Info,
1596             TargetTransformInfo::OP_None, TargetTransformInfo::OP_None);
1597         InstructionCost AddCost = getArithmeticInstrCost(
1598             Instruction::Add, Ty, CostKind, Opd1Info, Opd2Info,
1599             TargetTransformInfo::OP_None, TargetTransformInfo::OP_None);
1600         InstructionCost ShrCost = getArithmeticInstrCost(
1601             Instruction::AShr, Ty, CostKind, Opd1Info, Opd2Info,
1602             TargetTransformInfo::OP_None, TargetTransformInfo::OP_None);
1603         return MulCost * 2 + AddCost * 2 + ShrCost * 2 + 1;
1604       }
1605     }
1606 
1607     Cost += BaseT::getArithmeticInstrCost(Opcode, Ty, CostKind, Opd1Info,
1608                                           Opd2Info,
1609                                           Opd1PropInfo, Opd2PropInfo);
1610     if (Ty->isVectorTy()) {
1611       // On AArch64, vector divisions are not supported natively and are
1612       // expanded into scalar divisions of each pair of elements.
1613       Cost += getArithmeticInstrCost(Instruction::ExtractElement, Ty, CostKind,
1614                                      Opd1Info, Opd2Info, Opd1PropInfo,
1615                                      Opd2PropInfo);
1616       Cost += getArithmeticInstrCost(Instruction::InsertElement, Ty, CostKind,
1617                                      Opd1Info, Opd2Info, Opd1PropInfo,
1618                                      Opd2PropInfo);
1619       // TODO: if one of the arguments is scalar, then it's not necessary to
1620       // double the cost of handling the vector elements.
1621       Cost += Cost;
1622     }
1623     return Cost;
1624 
1625   case ISD::MUL:
1626     if (LT.second != MVT::v2i64)
1627       return (Cost + 1) * LT.first;
1628     // Since we do not have a MUL.2d instruction, a mul <2 x i64> is expensive
1629     // as elements are extracted from the vectors and the muls scalarized.
1630     // As getScalarizationOverhead is a bit too pessimistic, we estimate the
1631     // cost for a i64 vector directly here, which is:
1632     // - four i64 extracts,
1633     // - two i64 inserts, and
1634     // - two muls.
1635     // So, for a v2i64 with LT.First = 1 the cost is 8, and for a v4i64 with
1636     // LT.first = 2 the cost is 16.
1637     return LT.first * 8;
1638   case ISD::ADD:
1639   case ISD::XOR:
1640   case ISD::OR:
1641   case ISD::AND:
1642     // These nodes are marked as 'custom' for combining purposes only.
1643     // We know that they are legal. See LowerAdd in ISelLowering.
1644     return (Cost + 1) * LT.first;
1645 
1646   case ISD::FADD:
1647   case ISD::FSUB:
1648   case ISD::FMUL:
1649   case ISD::FDIV:
1650   case ISD::FNEG:
1651     // These nodes are marked as 'custom' just to lower them to SVE.
1652     // We know said lowering will incur no additional cost.
1653     if (!Ty->getScalarType()->isFP128Ty())
1654       return (Cost + 2) * LT.first;
1655 
1656     return Cost + BaseT::getArithmeticInstrCost(Opcode, Ty, CostKind, Opd1Info,
1657                                                 Opd2Info,
1658                                                 Opd1PropInfo, Opd2PropInfo);
1659   }
1660 }
1661 
1662 InstructionCost AArch64TTIImpl::getAddressComputationCost(Type *Ty,
1663                                                           ScalarEvolution *SE,
1664                                                           const SCEV *Ptr) {
1665   // Address computations in vectorized code with non-consecutive addresses will
1666   // likely result in more instructions compared to scalar code where the
1667   // computation can more often be merged into the index mode. The resulting
1668   // extra micro-ops can significantly decrease throughput.
1669   unsigned NumVectorInstToHideOverhead = 10;
1670   int MaxMergeDistance = 64;
1671 
1672   if (Ty->isVectorTy() && SE &&
1673       !BaseT::isConstantStridedAccessLessThan(SE, Ptr, MaxMergeDistance + 1))
1674     return NumVectorInstToHideOverhead;
1675 
1676   // In many cases the address computation is not merged into the instruction
1677   // addressing mode.
1678   return 1;
1679 }
1680 
1681 InstructionCost AArch64TTIImpl::getCmpSelInstrCost(unsigned Opcode, Type *ValTy,
1682                                                    Type *CondTy,
1683                                                    CmpInst::Predicate VecPred,
1684                                                    TTI::TargetCostKind CostKind,
1685                                                    const Instruction *I) {
1686   // TODO: Handle other cost kinds.
1687   if (CostKind != TTI::TCK_RecipThroughput)
1688     return BaseT::getCmpSelInstrCost(Opcode, ValTy, CondTy, VecPred, CostKind,
1689                                      I);
1690 
1691   int ISD = TLI->InstructionOpcodeToISD(Opcode);
1692   // We don't lower some vector selects well that are wider than the register
1693   // width.
1694   if (isa<FixedVectorType>(ValTy) && ISD == ISD::SELECT) {
1695     // We would need this many instructions to hide the scalarization happening.
1696     const int AmortizationCost = 20;
1697 
1698     // If VecPred is not set, check if we can get a predicate from the context
1699     // instruction, if its type matches the requested ValTy.
1700     if (VecPred == CmpInst::BAD_ICMP_PREDICATE && I && I->getType() == ValTy) {
1701       CmpInst::Predicate CurrentPred;
1702       if (match(I, m_Select(m_Cmp(CurrentPred, m_Value(), m_Value()), m_Value(),
1703                             m_Value())))
1704         VecPred = CurrentPred;
1705     }
1706     // Check if we have a compare/select chain that can be lowered using CMxx &
1707     // BFI pair.
1708     if (CmpInst::isIntPredicate(VecPred)) {
1709       static const auto ValidMinMaxTys = {MVT::v8i8,  MVT::v16i8, MVT::v4i16,
1710                                           MVT::v8i16, MVT::v2i32, MVT::v4i32,
1711                                           MVT::v2i64};
1712       auto LT = TLI->getTypeLegalizationCost(DL, ValTy);
1713       if (any_of(ValidMinMaxTys, [&LT](MVT M) { return M == LT.second; }))
1714         return LT.first;
1715     }
1716 
1717     static const TypeConversionCostTblEntry
1718     VectorSelectTbl[] = {
1719       { ISD::SELECT, MVT::v16i1, MVT::v16i16, 16 },
1720       { ISD::SELECT, MVT::v8i1, MVT::v8i32, 8 },
1721       { ISD::SELECT, MVT::v16i1, MVT::v16i32, 16 },
1722       { ISD::SELECT, MVT::v4i1, MVT::v4i64, 4 * AmortizationCost },
1723       { ISD::SELECT, MVT::v8i1, MVT::v8i64, 8 * AmortizationCost },
1724       { ISD::SELECT, MVT::v16i1, MVT::v16i64, 16 * AmortizationCost }
1725     };
1726 
1727     EVT SelCondTy = TLI->getValueType(DL, CondTy);
1728     EVT SelValTy = TLI->getValueType(DL, ValTy);
1729     if (SelCondTy.isSimple() && SelValTy.isSimple()) {
1730       if (const auto *Entry = ConvertCostTableLookup(VectorSelectTbl, ISD,
1731                                                      SelCondTy.getSimpleVT(),
1732                                                      SelValTy.getSimpleVT()))
1733         return Entry->Cost;
1734     }
1735   }
1736   // The base case handles scalable vectors fine for now, since it treats the
1737   // cost as 1 * legalization cost.
1738   return BaseT::getCmpSelInstrCost(Opcode, ValTy, CondTy, VecPred, CostKind, I);
1739 }
1740 
1741 AArch64TTIImpl::TTI::MemCmpExpansionOptions
1742 AArch64TTIImpl::enableMemCmpExpansion(bool OptSize, bool IsZeroCmp) const {
1743   TTI::MemCmpExpansionOptions Options;
1744   if (ST->requiresStrictAlign()) {
1745     // TODO: Add cost modeling for strict align. Misaligned loads expand to
1746     // a bunch of instructions when strict align is enabled.
1747     return Options;
1748   }
1749   Options.AllowOverlappingLoads = true;
1750   Options.MaxNumLoads = TLI->getMaxExpandSizeMemcmp(OptSize);
1751   Options.NumLoadsPerBlock = Options.MaxNumLoads;
1752   // TODO: Though vector loads usually perform well on AArch64, in some targets
1753   // they may wake up the FP unit, which raises the power consumption.  Perhaps
1754   // they could be used with no holds barred (-O3).
1755   Options.LoadSizes = {8, 4, 2, 1};
1756   return Options;
1757 }
1758 
1759 InstructionCost
1760 AArch64TTIImpl::getMaskedMemoryOpCost(unsigned Opcode, Type *Src,
1761                                       Align Alignment, unsigned AddressSpace,
1762                                       TTI::TargetCostKind CostKind) {
1763   if (!isa<ScalableVectorType>(Src))
1764     return BaseT::getMaskedMemoryOpCost(Opcode, Src, Alignment, AddressSpace,
1765                                         CostKind);
1766   auto LT = TLI->getTypeLegalizationCost(DL, Src);
1767   if (!LT.first.isValid())
1768     return InstructionCost::getInvalid();
1769 
1770   // The code-generator is currently not able to handle scalable vectors
1771   // of <vscale x 1 x eltty> yet, so return an invalid cost to avoid selecting
1772   // it. This change will be removed when code-generation for these types is
1773   // sufficiently reliable.
1774   if (cast<VectorType>(Src)->getElementCount() == ElementCount::getScalable(1))
1775     return InstructionCost::getInvalid();
1776 
1777   return LT.first * 2;
1778 }
1779 
1780 InstructionCost AArch64TTIImpl::getGatherScatterOpCost(
1781     unsigned Opcode, Type *DataTy, const Value *Ptr, bool VariableMask,
1782     Align Alignment, TTI::TargetCostKind CostKind, const Instruction *I) {
1783   if (useNeonVector(DataTy))
1784     return BaseT::getGatherScatterOpCost(Opcode, DataTy, Ptr, VariableMask,
1785                                          Alignment, CostKind, I);
1786   auto *VT = cast<VectorType>(DataTy);
1787   auto LT = TLI->getTypeLegalizationCost(DL, DataTy);
1788   if (!LT.first.isValid())
1789     return InstructionCost::getInvalid();
1790 
1791   // The code-generator is currently not able to handle scalable vectors
1792   // of <vscale x 1 x eltty> yet, so return an invalid cost to avoid selecting
1793   // it. This change will be removed when code-generation for these types is
1794   // sufficiently reliable.
1795   if (cast<VectorType>(DataTy)->getElementCount() ==
1796       ElementCount::getScalable(1))
1797     return InstructionCost::getInvalid();
1798 
1799   ElementCount LegalVF = LT.second.getVectorElementCount();
1800   InstructionCost MemOpCost =
1801       getMemoryOpCost(Opcode, VT->getElementType(), Alignment, 0, CostKind, I);
1802   return LT.first * MemOpCost * getMaxNumElements(LegalVF);
1803 }
1804 
1805 bool AArch64TTIImpl::useNeonVector(const Type *Ty) const {
1806   return isa<FixedVectorType>(Ty) && !ST->useSVEForFixedLengthVectors();
1807 }
1808 
1809 InstructionCost AArch64TTIImpl::getMemoryOpCost(unsigned Opcode, Type *Ty,
1810                                                 MaybeAlign Alignment,
1811                                                 unsigned AddressSpace,
1812                                                 TTI::TargetCostKind CostKind,
1813                                                 const Instruction *I) {
1814   EVT VT = TLI->getValueType(DL, Ty, true);
1815   // Type legalization can't handle structs
1816   if (VT == MVT::Other)
1817     return BaseT::getMemoryOpCost(Opcode, Ty, Alignment, AddressSpace,
1818                                   CostKind);
1819 
1820   auto LT = TLI->getTypeLegalizationCost(DL, Ty);
1821   if (!LT.first.isValid())
1822     return InstructionCost::getInvalid();
1823 
1824   // The code-generator is currently not able to handle scalable vectors
1825   // of <vscale x 1 x eltty> yet, so return an invalid cost to avoid selecting
1826   // it. This change will be removed when code-generation for these types is
1827   // sufficiently reliable.
1828   if (auto *VTy = dyn_cast<ScalableVectorType>(Ty))
1829     if (VTy->getElementCount() == ElementCount::getScalable(1))
1830       return InstructionCost::getInvalid();
1831 
1832   // TODO: consider latency as well for TCK_SizeAndLatency.
1833   if (CostKind == TTI::TCK_CodeSize || CostKind == TTI::TCK_SizeAndLatency)
1834     return LT.first;
1835 
1836   if (CostKind != TTI::TCK_RecipThroughput)
1837     return 1;
1838 
1839   if (ST->isMisaligned128StoreSlow() && Opcode == Instruction::Store &&
1840       LT.second.is128BitVector() && (!Alignment || *Alignment < Align(16))) {
1841     // Unaligned stores are extremely inefficient. We don't split all
1842     // unaligned 128-bit stores because the negative impact that has shown in
1843     // practice on inlined block copy code.
1844     // We make such stores expensive so that we will only vectorize if there
1845     // are 6 other instructions getting vectorized.
1846     const int AmortizationCost = 6;
1847 
1848     return LT.first * 2 * AmortizationCost;
1849   }
1850 
1851   // Check truncating stores and extending loads.
1852   if (useNeonVector(Ty) &&
1853       Ty->getScalarSizeInBits() != LT.second.getScalarSizeInBits()) {
1854     // v4i8 types are lowered to scalar a load/store and sshll/xtn.
1855     if (VT == MVT::v4i8)
1856       return 2;
1857     // Otherwise we need to scalarize.
1858     return cast<FixedVectorType>(Ty)->getNumElements() * 2;
1859   }
1860 
1861   return LT.first;
1862 }
1863 
1864 InstructionCost AArch64TTIImpl::getInterleavedMemoryOpCost(
1865     unsigned Opcode, Type *VecTy, unsigned Factor, ArrayRef<unsigned> Indices,
1866     Align Alignment, unsigned AddressSpace, TTI::TargetCostKind CostKind,
1867     bool UseMaskForCond, bool UseMaskForGaps) {
1868   assert(Factor >= 2 && "Invalid interleave factor");
1869   auto *VecVTy = cast<FixedVectorType>(VecTy);
1870 
1871   if (!UseMaskForCond && !UseMaskForGaps &&
1872       Factor <= TLI->getMaxSupportedInterleaveFactor()) {
1873     unsigned NumElts = VecVTy->getNumElements();
1874     auto *SubVecTy =
1875         FixedVectorType::get(VecTy->getScalarType(), NumElts / Factor);
1876 
1877     // ldN/stN only support legal vector types of size 64 or 128 in bits.
1878     // Accesses having vector types that are a multiple of 128 bits can be
1879     // matched to more than one ldN/stN instruction.
1880     bool UseScalable;
1881     if (NumElts % Factor == 0 &&
1882         TLI->isLegalInterleavedAccessType(SubVecTy, DL, UseScalable))
1883       return Factor * TLI->getNumInterleavedAccesses(SubVecTy, DL, UseScalable);
1884   }
1885 
1886   return BaseT::getInterleavedMemoryOpCost(Opcode, VecTy, Factor, Indices,
1887                                            Alignment, AddressSpace, CostKind,
1888                                            UseMaskForCond, UseMaskForGaps);
1889 }
1890 
1891 InstructionCost
1892 AArch64TTIImpl::getCostOfKeepingLiveOverCall(ArrayRef<Type *> Tys) {
1893   InstructionCost Cost = 0;
1894   TTI::TargetCostKind CostKind = TTI::TCK_RecipThroughput;
1895   for (auto *I : Tys) {
1896     if (!I->isVectorTy())
1897       continue;
1898     if (I->getScalarSizeInBits() * cast<FixedVectorType>(I)->getNumElements() ==
1899         128)
1900       Cost += getMemoryOpCost(Instruction::Store, I, Align(128), 0, CostKind) +
1901               getMemoryOpCost(Instruction::Load, I, Align(128), 0, CostKind);
1902   }
1903   return Cost;
1904 }
1905 
1906 unsigned AArch64TTIImpl::getMaxInterleaveFactor(unsigned VF) {
1907   return ST->getMaxInterleaveFactor();
1908 }
1909 
1910 // For Falkor, we want to avoid having too many strided loads in a loop since
1911 // that can exhaust the HW prefetcher resources.  We adjust the unroller
1912 // MaxCount preference below to attempt to ensure unrolling doesn't create too
1913 // many strided loads.
1914 static void
1915 getFalkorUnrollingPreferences(Loop *L, ScalarEvolution &SE,
1916                               TargetTransformInfo::UnrollingPreferences &UP) {
1917   enum { MaxStridedLoads = 7 };
1918   auto countStridedLoads = [](Loop *L, ScalarEvolution &SE) {
1919     int StridedLoads = 0;
1920     // FIXME? We could make this more precise by looking at the CFG and
1921     // e.g. not counting loads in each side of an if-then-else diamond.
1922     for (const auto BB : L->blocks()) {
1923       for (auto &I : *BB) {
1924         LoadInst *LMemI = dyn_cast<LoadInst>(&I);
1925         if (!LMemI)
1926           continue;
1927 
1928         Value *PtrValue = LMemI->getPointerOperand();
1929         if (L->isLoopInvariant(PtrValue))
1930           continue;
1931 
1932         const SCEV *LSCEV = SE.getSCEV(PtrValue);
1933         const SCEVAddRecExpr *LSCEVAddRec = dyn_cast<SCEVAddRecExpr>(LSCEV);
1934         if (!LSCEVAddRec || !LSCEVAddRec->isAffine())
1935           continue;
1936 
1937         // FIXME? We could take pairing of unrolled load copies into account
1938         // by looking at the AddRec, but we would probably have to limit this
1939         // to loops with no stores or other memory optimization barriers.
1940         ++StridedLoads;
1941         // We've seen enough strided loads that seeing more won't make a
1942         // difference.
1943         if (StridedLoads > MaxStridedLoads / 2)
1944           return StridedLoads;
1945       }
1946     }
1947     return StridedLoads;
1948   };
1949 
1950   int StridedLoads = countStridedLoads(L, SE);
1951   LLVM_DEBUG(dbgs() << "falkor-hwpf: detected " << StridedLoads
1952                     << " strided loads\n");
1953   // Pick the largest power of 2 unroll count that won't result in too many
1954   // strided loads.
1955   if (StridedLoads) {
1956     UP.MaxCount = 1 << Log2_32(MaxStridedLoads / StridedLoads);
1957     LLVM_DEBUG(dbgs() << "falkor-hwpf: setting unroll MaxCount to "
1958                       << UP.MaxCount << '\n');
1959   }
1960 }
1961 
1962 void AArch64TTIImpl::getUnrollingPreferences(Loop *L, ScalarEvolution &SE,
1963                                              TTI::UnrollingPreferences &UP,
1964                                              OptimizationRemarkEmitter *ORE) {
1965   // Enable partial unrolling and runtime unrolling.
1966   BaseT::getUnrollingPreferences(L, SE, UP, ORE);
1967 
1968   UP.UpperBound = true;
1969 
1970   // For inner loop, it is more likely to be a hot one, and the runtime check
1971   // can be promoted out from LICM pass, so the overhead is less, let's try
1972   // a larger threshold to unroll more loops.
1973   if (L->getLoopDepth() > 1)
1974     UP.PartialThreshold *= 2;
1975 
1976   // Disable partial & runtime unrolling on -Os.
1977   UP.PartialOptSizeThreshold = 0;
1978 
1979   if (ST->getProcFamily() == AArch64Subtarget::Falkor &&
1980       EnableFalkorHWPFUnrollFix)
1981     getFalkorUnrollingPreferences(L, SE, UP);
1982 
1983   // Scan the loop: don't unroll loops with calls as this could prevent
1984   // inlining. Don't unroll vector loops either, as they don't benefit much from
1985   // unrolling.
1986   for (auto *BB : L->getBlocks()) {
1987     for (auto &I : *BB) {
1988       // Don't unroll vectorised loop.
1989       if (I.getType()->isVectorTy())
1990         return;
1991 
1992       if (isa<CallInst>(I) || isa<InvokeInst>(I)) {
1993         if (const Function *F = cast<CallBase>(I).getCalledFunction()) {
1994           if (!isLoweredToCall(F))
1995             continue;
1996         }
1997         return;
1998       }
1999     }
2000   }
2001 
2002   // Enable runtime unrolling for in-order models
2003   // If mcpu is omitted, getProcFamily() returns AArch64Subtarget::Others, so by
2004   // checking for that case, we can ensure that the default behaviour is
2005   // unchanged
2006   if (ST->getProcFamily() != AArch64Subtarget::Others &&
2007       !ST->getSchedModel().isOutOfOrder()) {
2008     UP.Runtime = true;
2009     UP.Partial = true;
2010     UP.UnrollRemainder = true;
2011     UP.DefaultUnrollRuntimeCount = 4;
2012 
2013     UP.UnrollAndJam = true;
2014     UP.UnrollAndJamInnerLoopThreshold = 60;
2015   }
2016 }
2017 
2018 void AArch64TTIImpl::getPeelingPreferences(Loop *L, ScalarEvolution &SE,
2019                                            TTI::PeelingPreferences &PP) {
2020   BaseT::getPeelingPreferences(L, SE, PP);
2021 }
2022 
2023 Value *AArch64TTIImpl::getOrCreateResultFromMemIntrinsic(IntrinsicInst *Inst,
2024                                                          Type *ExpectedType) {
2025   switch (Inst->getIntrinsicID()) {
2026   default:
2027     return nullptr;
2028   case Intrinsic::aarch64_neon_st2:
2029   case Intrinsic::aarch64_neon_st3:
2030   case Intrinsic::aarch64_neon_st4: {
2031     // Create a struct type
2032     StructType *ST = dyn_cast<StructType>(ExpectedType);
2033     if (!ST)
2034       return nullptr;
2035     unsigned NumElts = Inst->arg_size() - 1;
2036     if (ST->getNumElements() != NumElts)
2037       return nullptr;
2038     for (unsigned i = 0, e = NumElts; i != e; ++i) {
2039       if (Inst->getArgOperand(i)->getType() != ST->getElementType(i))
2040         return nullptr;
2041     }
2042     Value *Res = UndefValue::get(ExpectedType);
2043     IRBuilder<> Builder(Inst);
2044     for (unsigned i = 0, e = NumElts; i != e; ++i) {
2045       Value *L = Inst->getArgOperand(i);
2046       Res = Builder.CreateInsertValue(Res, L, i);
2047     }
2048     return Res;
2049   }
2050   case Intrinsic::aarch64_neon_ld2:
2051   case Intrinsic::aarch64_neon_ld3:
2052   case Intrinsic::aarch64_neon_ld4:
2053     if (Inst->getType() == ExpectedType)
2054       return Inst;
2055     return nullptr;
2056   }
2057 }
2058 
2059 bool AArch64TTIImpl::getTgtMemIntrinsic(IntrinsicInst *Inst,
2060                                         MemIntrinsicInfo &Info) {
2061   switch (Inst->getIntrinsicID()) {
2062   default:
2063     break;
2064   case Intrinsic::aarch64_neon_ld2:
2065   case Intrinsic::aarch64_neon_ld3:
2066   case Intrinsic::aarch64_neon_ld4:
2067     Info.ReadMem = true;
2068     Info.WriteMem = false;
2069     Info.PtrVal = Inst->getArgOperand(0);
2070     break;
2071   case Intrinsic::aarch64_neon_st2:
2072   case Intrinsic::aarch64_neon_st3:
2073   case Intrinsic::aarch64_neon_st4:
2074     Info.ReadMem = false;
2075     Info.WriteMem = true;
2076     Info.PtrVal = Inst->getArgOperand(Inst->arg_size() - 1);
2077     break;
2078   }
2079 
2080   switch (Inst->getIntrinsicID()) {
2081   default:
2082     return false;
2083   case Intrinsic::aarch64_neon_ld2:
2084   case Intrinsic::aarch64_neon_st2:
2085     Info.MatchingId = VECTOR_LDST_TWO_ELEMENTS;
2086     break;
2087   case Intrinsic::aarch64_neon_ld3:
2088   case Intrinsic::aarch64_neon_st3:
2089     Info.MatchingId = VECTOR_LDST_THREE_ELEMENTS;
2090     break;
2091   case Intrinsic::aarch64_neon_ld4:
2092   case Intrinsic::aarch64_neon_st4:
2093     Info.MatchingId = VECTOR_LDST_FOUR_ELEMENTS;
2094     break;
2095   }
2096   return true;
2097 }
2098 
2099 /// See if \p I should be considered for address type promotion. We check if \p
2100 /// I is a sext with right type and used in memory accesses. If it used in a
2101 /// "complex" getelementptr, we allow it to be promoted without finding other
2102 /// sext instructions that sign extended the same initial value. A getelementptr
2103 /// is considered as "complex" if it has more than 2 operands.
2104 bool AArch64TTIImpl::shouldConsiderAddressTypePromotion(
2105     const Instruction &I, bool &AllowPromotionWithoutCommonHeader) {
2106   bool Considerable = false;
2107   AllowPromotionWithoutCommonHeader = false;
2108   if (!isa<SExtInst>(&I))
2109     return false;
2110   Type *ConsideredSExtType =
2111       Type::getInt64Ty(I.getParent()->getParent()->getContext());
2112   if (I.getType() != ConsideredSExtType)
2113     return false;
2114   // See if the sext is the one with the right type and used in at least one
2115   // GetElementPtrInst.
2116   for (const User *U : I.users()) {
2117     if (const GetElementPtrInst *GEPInst = dyn_cast<GetElementPtrInst>(U)) {
2118       Considerable = true;
2119       // A getelementptr is considered as "complex" if it has more than 2
2120       // operands. We will promote a SExt used in such complex GEP as we
2121       // expect some computation to be merged if they are done on 64 bits.
2122       if (GEPInst->getNumOperands() > 2) {
2123         AllowPromotionWithoutCommonHeader = true;
2124         break;
2125       }
2126     }
2127   }
2128   return Considerable;
2129 }
2130 
2131 bool AArch64TTIImpl::isLegalToVectorizeReduction(
2132     const RecurrenceDescriptor &RdxDesc, ElementCount VF) const {
2133   if (!VF.isScalable())
2134     return true;
2135 
2136   Type *Ty = RdxDesc.getRecurrenceType();
2137   if (Ty->isBFloatTy() || !isElementTypeLegalForScalableVector(Ty))
2138     return false;
2139 
2140   switch (RdxDesc.getRecurrenceKind()) {
2141   case RecurKind::Add:
2142   case RecurKind::FAdd:
2143   case RecurKind::And:
2144   case RecurKind::Or:
2145   case RecurKind::Xor:
2146   case RecurKind::SMin:
2147   case RecurKind::SMax:
2148   case RecurKind::UMin:
2149   case RecurKind::UMax:
2150   case RecurKind::FMin:
2151   case RecurKind::FMax:
2152   case RecurKind::SelectICmp:
2153   case RecurKind::SelectFCmp:
2154   case RecurKind::FMulAdd:
2155     return true;
2156   default:
2157     return false;
2158   }
2159 }
2160 
2161 InstructionCost
2162 AArch64TTIImpl::getMinMaxReductionCost(VectorType *Ty, VectorType *CondTy,
2163                                        bool IsUnsigned,
2164                                        TTI::TargetCostKind CostKind) {
2165   std::pair<InstructionCost, MVT> LT = TLI->getTypeLegalizationCost(DL, Ty);
2166 
2167   if (LT.second.getScalarType() == MVT::f16 && !ST->hasFullFP16())
2168     return BaseT::getMinMaxReductionCost(Ty, CondTy, IsUnsigned, CostKind);
2169 
2170   assert((isa<ScalableVectorType>(Ty) == isa<ScalableVectorType>(CondTy)) &&
2171          "Both vector needs to be equally scalable");
2172 
2173   InstructionCost LegalizationCost = 0;
2174   if (LT.first > 1) {
2175     Type *LegalVTy = EVT(LT.second).getTypeForEVT(Ty->getContext());
2176     unsigned MinMaxOpcode =
2177         Ty->isFPOrFPVectorTy()
2178             ? Intrinsic::maxnum
2179             : (IsUnsigned ? Intrinsic::umin : Intrinsic::smin);
2180     IntrinsicCostAttributes Attrs(MinMaxOpcode, LegalVTy, {LegalVTy, LegalVTy});
2181     LegalizationCost = getIntrinsicInstrCost(Attrs, CostKind) * (LT.first - 1);
2182   }
2183 
2184   return LegalizationCost + /*Cost of horizontal reduction*/ 2;
2185 }
2186 
2187 InstructionCost AArch64TTIImpl::getArithmeticReductionCostSVE(
2188     unsigned Opcode, VectorType *ValTy, TTI::TargetCostKind CostKind) {
2189   std::pair<InstructionCost, MVT> LT = TLI->getTypeLegalizationCost(DL, ValTy);
2190   InstructionCost LegalizationCost = 0;
2191   if (LT.first > 1) {
2192     Type *LegalVTy = EVT(LT.second).getTypeForEVT(ValTy->getContext());
2193     LegalizationCost = getArithmeticInstrCost(Opcode, LegalVTy, CostKind);
2194     LegalizationCost *= LT.first - 1;
2195   }
2196 
2197   int ISD = TLI->InstructionOpcodeToISD(Opcode);
2198   assert(ISD && "Invalid opcode");
2199   // Add the final reduction cost for the legal horizontal reduction
2200   switch (ISD) {
2201   case ISD::ADD:
2202   case ISD::AND:
2203   case ISD::OR:
2204   case ISD::XOR:
2205   case ISD::FADD:
2206     return LegalizationCost + 2;
2207   default:
2208     return InstructionCost::getInvalid();
2209   }
2210 }
2211 
2212 InstructionCost
2213 AArch64TTIImpl::getArithmeticReductionCost(unsigned Opcode, VectorType *ValTy,
2214                                            Optional<FastMathFlags> FMF,
2215                                            TTI::TargetCostKind CostKind) {
2216   if (TTI::requiresOrderedReduction(FMF)) {
2217     if (auto *FixedVTy = dyn_cast<FixedVectorType>(ValTy)) {
2218       InstructionCost BaseCost =
2219           BaseT::getArithmeticReductionCost(Opcode, ValTy, FMF, CostKind);
2220       // Add on extra cost to reflect the extra overhead on some CPUs. We still
2221       // end up vectorizing for more computationally intensive loops.
2222       return BaseCost + FixedVTy->getNumElements();
2223     }
2224 
2225     if (Opcode != Instruction::FAdd)
2226       return InstructionCost::getInvalid();
2227 
2228     auto *VTy = cast<ScalableVectorType>(ValTy);
2229     InstructionCost Cost =
2230         getArithmeticInstrCost(Opcode, VTy->getScalarType(), CostKind);
2231     Cost *= getMaxNumElements(VTy->getElementCount());
2232     return Cost;
2233   }
2234 
2235   if (isa<ScalableVectorType>(ValTy))
2236     return getArithmeticReductionCostSVE(Opcode, ValTy, CostKind);
2237 
2238   std::pair<InstructionCost, MVT> LT = TLI->getTypeLegalizationCost(DL, ValTy);
2239   MVT MTy = LT.second;
2240   int ISD = TLI->InstructionOpcodeToISD(Opcode);
2241   assert(ISD && "Invalid opcode");
2242 
2243   // Horizontal adds can use the 'addv' instruction. We model the cost of these
2244   // instructions as twice a normal vector add, plus 1 for each legalization
2245   // step (LT.first). This is the only arithmetic vector reduction operation for
2246   // which we have an instruction.
2247   // OR, XOR and AND costs should match the codegen from:
2248   // OR: llvm/test/CodeGen/AArch64/reduce-or.ll
2249   // XOR: llvm/test/CodeGen/AArch64/reduce-xor.ll
2250   // AND: llvm/test/CodeGen/AArch64/reduce-and.ll
2251   static const CostTblEntry CostTblNoPairwise[]{
2252       {ISD::ADD, MVT::v8i8,   2},
2253       {ISD::ADD, MVT::v16i8,  2},
2254       {ISD::ADD, MVT::v4i16,  2},
2255       {ISD::ADD, MVT::v8i16,  2},
2256       {ISD::ADD, MVT::v4i32,  2},
2257       {ISD::OR,  MVT::v8i8,  15},
2258       {ISD::OR,  MVT::v16i8, 17},
2259       {ISD::OR,  MVT::v4i16,  7},
2260       {ISD::OR,  MVT::v8i16,  9},
2261       {ISD::OR,  MVT::v2i32,  3},
2262       {ISD::OR,  MVT::v4i32,  5},
2263       {ISD::OR,  MVT::v2i64,  3},
2264       {ISD::XOR, MVT::v8i8,  15},
2265       {ISD::XOR, MVT::v16i8, 17},
2266       {ISD::XOR, MVT::v4i16,  7},
2267       {ISD::XOR, MVT::v8i16,  9},
2268       {ISD::XOR, MVT::v2i32,  3},
2269       {ISD::XOR, MVT::v4i32,  5},
2270       {ISD::XOR, MVT::v2i64,  3},
2271       {ISD::AND, MVT::v8i8,  15},
2272       {ISD::AND, MVT::v16i8, 17},
2273       {ISD::AND, MVT::v4i16,  7},
2274       {ISD::AND, MVT::v8i16,  9},
2275       {ISD::AND, MVT::v2i32,  3},
2276       {ISD::AND, MVT::v4i32,  5},
2277       {ISD::AND, MVT::v2i64,  3},
2278   };
2279   switch (ISD) {
2280   default:
2281     break;
2282   case ISD::ADD:
2283     if (const auto *Entry = CostTableLookup(CostTblNoPairwise, ISD, MTy))
2284       return (LT.first - 1) + Entry->Cost;
2285     break;
2286   case ISD::XOR:
2287   case ISD::AND:
2288   case ISD::OR:
2289     const auto *Entry = CostTableLookup(CostTblNoPairwise, ISD, MTy);
2290     if (!Entry)
2291       break;
2292     auto *ValVTy = cast<FixedVectorType>(ValTy);
2293     if (!ValVTy->getElementType()->isIntegerTy(1) &&
2294         MTy.getVectorNumElements() <= ValVTy->getNumElements() &&
2295         isPowerOf2_32(ValVTy->getNumElements())) {
2296       InstructionCost ExtraCost = 0;
2297       if (LT.first != 1) {
2298         // Type needs to be split, so there is an extra cost of LT.first - 1
2299         // arithmetic ops.
2300         auto *Ty = FixedVectorType::get(ValTy->getElementType(),
2301                                         MTy.getVectorNumElements());
2302         ExtraCost = getArithmeticInstrCost(Opcode, Ty, CostKind);
2303         ExtraCost *= LT.first - 1;
2304       }
2305       return Entry->Cost + ExtraCost;
2306     }
2307     break;
2308   }
2309   return BaseT::getArithmeticReductionCost(Opcode, ValTy, FMF, CostKind);
2310 }
2311 
2312 InstructionCost AArch64TTIImpl::getSpliceCost(VectorType *Tp, int Index) {
2313   static const CostTblEntry ShuffleTbl[] = {
2314       { TTI::SK_Splice, MVT::nxv16i8,  1 },
2315       { TTI::SK_Splice, MVT::nxv8i16,  1 },
2316       { TTI::SK_Splice, MVT::nxv4i32,  1 },
2317       { TTI::SK_Splice, MVT::nxv2i64,  1 },
2318       { TTI::SK_Splice, MVT::nxv2f16,  1 },
2319       { TTI::SK_Splice, MVT::nxv4f16,  1 },
2320       { TTI::SK_Splice, MVT::nxv8f16,  1 },
2321       { TTI::SK_Splice, MVT::nxv2bf16, 1 },
2322       { TTI::SK_Splice, MVT::nxv4bf16, 1 },
2323       { TTI::SK_Splice, MVT::nxv8bf16, 1 },
2324       { TTI::SK_Splice, MVT::nxv2f32,  1 },
2325       { TTI::SK_Splice, MVT::nxv4f32,  1 },
2326       { TTI::SK_Splice, MVT::nxv2f64,  1 },
2327   };
2328 
2329   std::pair<InstructionCost, MVT> LT = TLI->getTypeLegalizationCost(DL, Tp);
2330   Type *LegalVTy = EVT(LT.second).getTypeForEVT(Tp->getContext());
2331   TTI::TargetCostKind CostKind = TTI::TCK_RecipThroughput;
2332   EVT PromotedVT = LT.second.getScalarType() == MVT::i1
2333                        ? TLI->getPromotedVTForPredicate(EVT(LT.second))
2334                        : LT.second;
2335   Type *PromotedVTy = EVT(PromotedVT).getTypeForEVT(Tp->getContext());
2336   InstructionCost LegalizationCost = 0;
2337   if (Index < 0) {
2338     LegalizationCost =
2339         getCmpSelInstrCost(Instruction::ICmp, PromotedVTy, PromotedVTy,
2340                            CmpInst::BAD_ICMP_PREDICATE, CostKind) +
2341         getCmpSelInstrCost(Instruction::Select, PromotedVTy, LegalVTy,
2342                            CmpInst::BAD_ICMP_PREDICATE, CostKind);
2343   }
2344 
2345   // Predicated splice are promoted when lowering. See AArch64ISelLowering.cpp
2346   // Cost performed on a promoted type.
2347   if (LT.second.getScalarType() == MVT::i1) {
2348     LegalizationCost +=
2349         getCastInstrCost(Instruction::ZExt, PromotedVTy, LegalVTy,
2350                          TTI::CastContextHint::None, CostKind) +
2351         getCastInstrCost(Instruction::Trunc, LegalVTy, PromotedVTy,
2352                          TTI::CastContextHint::None, CostKind);
2353   }
2354   const auto *Entry =
2355       CostTableLookup(ShuffleTbl, TTI::SK_Splice, PromotedVT.getSimpleVT());
2356   assert(Entry && "Illegal Type for Splice");
2357   LegalizationCost += Entry->Cost;
2358   return LegalizationCost * LT.first;
2359 }
2360 
2361 InstructionCost AArch64TTIImpl::getShuffleCost(TTI::ShuffleKind Kind,
2362                                                VectorType *Tp,
2363                                                ArrayRef<int> Mask, int Index,
2364                                                VectorType *SubTp) {
2365   Kind = improveShuffleKindFromMask(Kind, Mask);
2366   if (Kind == TTI::SK_Broadcast || Kind == TTI::SK_Transpose ||
2367       Kind == TTI::SK_Select || Kind == TTI::SK_PermuteSingleSrc ||
2368       Kind == TTI::SK_Reverse) {
2369     static const CostTblEntry ShuffleTbl[] = {
2370       // Broadcast shuffle kinds can be performed with 'dup'.
2371       { TTI::SK_Broadcast, MVT::v8i8,  1 },
2372       { TTI::SK_Broadcast, MVT::v16i8, 1 },
2373       { TTI::SK_Broadcast, MVT::v4i16, 1 },
2374       { TTI::SK_Broadcast, MVT::v8i16, 1 },
2375       { TTI::SK_Broadcast, MVT::v2i32, 1 },
2376       { TTI::SK_Broadcast, MVT::v4i32, 1 },
2377       { TTI::SK_Broadcast, MVT::v2i64, 1 },
2378       { TTI::SK_Broadcast, MVT::v2f32, 1 },
2379       { TTI::SK_Broadcast, MVT::v4f32, 1 },
2380       { TTI::SK_Broadcast, MVT::v2f64, 1 },
2381       // Transpose shuffle kinds can be performed with 'trn1/trn2' and
2382       // 'zip1/zip2' instructions.
2383       { TTI::SK_Transpose, MVT::v8i8,  1 },
2384       { TTI::SK_Transpose, MVT::v16i8, 1 },
2385       { TTI::SK_Transpose, MVT::v4i16, 1 },
2386       { TTI::SK_Transpose, MVT::v8i16, 1 },
2387       { TTI::SK_Transpose, MVT::v2i32, 1 },
2388       { TTI::SK_Transpose, MVT::v4i32, 1 },
2389       { TTI::SK_Transpose, MVT::v2i64, 1 },
2390       { TTI::SK_Transpose, MVT::v2f32, 1 },
2391       { TTI::SK_Transpose, MVT::v4f32, 1 },
2392       { TTI::SK_Transpose, MVT::v2f64, 1 },
2393       // Select shuffle kinds.
2394       // TODO: handle vXi8/vXi16.
2395       { TTI::SK_Select, MVT::v2i32, 1 }, // mov.
2396       { TTI::SK_Select, MVT::v4i32, 2 }, // rev+trn (or similar).
2397       { TTI::SK_Select, MVT::v2i64, 1 }, // mov.
2398       { TTI::SK_Select, MVT::v2f32, 1 }, // mov.
2399       { TTI::SK_Select, MVT::v4f32, 2 }, // rev+trn (or similar).
2400       { TTI::SK_Select, MVT::v2f64, 1 }, // mov.
2401       // PermuteSingleSrc shuffle kinds.
2402       { TTI::SK_PermuteSingleSrc, MVT::v2i32, 1 }, // mov.
2403       { TTI::SK_PermuteSingleSrc, MVT::v4i32, 3 }, // perfectshuffle worst case.
2404       { TTI::SK_PermuteSingleSrc, MVT::v2i64, 1 }, // mov.
2405       { TTI::SK_PermuteSingleSrc, MVT::v2f32, 1 }, // mov.
2406       { TTI::SK_PermuteSingleSrc, MVT::v4f32, 3 }, // perfectshuffle worst case.
2407       { TTI::SK_PermuteSingleSrc, MVT::v2f64, 1 }, // mov.
2408       { TTI::SK_PermuteSingleSrc, MVT::v4i16, 3 }, // perfectshuffle worst case.
2409       { TTI::SK_PermuteSingleSrc, MVT::v4f16, 3 }, // perfectshuffle worst case.
2410       { TTI::SK_PermuteSingleSrc, MVT::v4bf16, 3 }, // perfectshuffle worst case.
2411       { TTI::SK_PermuteSingleSrc, MVT::v8i16, 8 }, // constpool + load + tbl
2412       { TTI::SK_PermuteSingleSrc, MVT::v8f16, 8 }, // constpool + load + tbl
2413       { TTI::SK_PermuteSingleSrc, MVT::v8bf16, 8 }, // constpool + load + tbl
2414       { TTI::SK_PermuteSingleSrc, MVT::v8i8, 8 }, // constpool + load + tbl
2415       { TTI::SK_PermuteSingleSrc, MVT::v16i8, 8 }, // constpool + load + tbl
2416       // Reverse can be lowered with `rev`.
2417       { TTI::SK_Reverse, MVT::v2i32, 1 }, // mov.
2418       { TTI::SK_Reverse, MVT::v4i32, 2 }, // REV64; EXT
2419       { TTI::SK_Reverse, MVT::v2i64, 1 }, // mov.
2420       { TTI::SK_Reverse, MVT::v2f32, 1 }, // mov.
2421       { TTI::SK_Reverse, MVT::v4f32, 2 }, // REV64; EXT
2422       { TTI::SK_Reverse, MVT::v2f64, 1 }, // mov.
2423       // Broadcast shuffle kinds for scalable vectors
2424       { TTI::SK_Broadcast, MVT::nxv16i8,  1 },
2425       { TTI::SK_Broadcast, MVT::nxv8i16,  1 },
2426       { TTI::SK_Broadcast, MVT::nxv4i32,  1 },
2427       { TTI::SK_Broadcast, MVT::nxv2i64,  1 },
2428       { TTI::SK_Broadcast, MVT::nxv2f16,  1 },
2429       { TTI::SK_Broadcast, MVT::nxv4f16,  1 },
2430       { TTI::SK_Broadcast, MVT::nxv8f16,  1 },
2431       { TTI::SK_Broadcast, MVT::nxv2bf16, 1 },
2432       { TTI::SK_Broadcast, MVT::nxv4bf16, 1 },
2433       { TTI::SK_Broadcast, MVT::nxv8bf16, 1 },
2434       { TTI::SK_Broadcast, MVT::nxv2f32,  1 },
2435       { TTI::SK_Broadcast, MVT::nxv4f32,  1 },
2436       { TTI::SK_Broadcast, MVT::nxv2f64,  1 },
2437       { TTI::SK_Broadcast, MVT::nxv16i1,  1 },
2438       { TTI::SK_Broadcast, MVT::nxv8i1,   1 },
2439       { TTI::SK_Broadcast, MVT::nxv4i1,   1 },
2440       { TTI::SK_Broadcast, MVT::nxv2i1,   1 },
2441       // Handle the cases for vector.reverse with scalable vectors
2442       { TTI::SK_Reverse, MVT::nxv16i8,  1 },
2443       { TTI::SK_Reverse, MVT::nxv8i16,  1 },
2444       { TTI::SK_Reverse, MVT::nxv4i32,  1 },
2445       { TTI::SK_Reverse, MVT::nxv2i64,  1 },
2446       { TTI::SK_Reverse, MVT::nxv2f16,  1 },
2447       { TTI::SK_Reverse, MVT::nxv4f16,  1 },
2448       { TTI::SK_Reverse, MVT::nxv8f16,  1 },
2449       { TTI::SK_Reverse, MVT::nxv2bf16, 1 },
2450       { TTI::SK_Reverse, MVT::nxv4bf16, 1 },
2451       { TTI::SK_Reverse, MVT::nxv8bf16, 1 },
2452       { TTI::SK_Reverse, MVT::nxv2f32,  1 },
2453       { TTI::SK_Reverse, MVT::nxv4f32,  1 },
2454       { TTI::SK_Reverse, MVT::nxv2f64,  1 },
2455       { TTI::SK_Reverse, MVT::nxv16i1,  1 },
2456       { TTI::SK_Reverse, MVT::nxv8i1,   1 },
2457       { TTI::SK_Reverse, MVT::nxv4i1,   1 },
2458       { TTI::SK_Reverse, MVT::nxv2i1,   1 },
2459     };
2460     std::pair<InstructionCost, MVT> LT = TLI->getTypeLegalizationCost(DL, Tp);
2461     if (const auto *Entry = CostTableLookup(ShuffleTbl, Kind, LT.second))
2462       return LT.first * Entry->Cost;
2463   }
2464   if (Kind == TTI::SK_Splice && isa<ScalableVectorType>(Tp))
2465     return getSpliceCost(Tp, Index);
2466   return BaseT::getShuffleCost(Kind, Tp, Mask, Index, SubTp);
2467 }
2468