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SDPatternMatch.h
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1//==--------------- llvm/CodeGen/SDPatternMatch.h ---------------*- C++ -*-===//
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/// \file
9/// Contains matchers for matching SelectionDAG nodes and values.
10///
11//===----------------------------------------------------------------------===//
12
13#ifndef LLVM_CODEGEN_SDPATTERNMATCH_H
14#define LLVM_CODEGEN_SDPATTERNMATCH_H
15
16#include "llvm/ADT/APInt.h"
17#include "llvm/ADT/ArrayRef.h"
18#include "llvm/ADT/STLExtras.h"
23
24namespace llvm {
25namespace SDPatternMatch {
26
27/// MatchContext can repurpose existing patterns to behave differently under
28/// a certain context. For instance, `m_Opc(ISD::ADD)` matches plain ADD nodes
29/// in normal circumstances, but matches VP_ADD nodes under a custom
30/// VPMatchContext. This design is meant to facilitate code / pattern reusing.
32 const SelectionDAG *DAG;
33 const TargetLowering *TLI;
34
35public:
36 explicit BasicMatchContext(const SelectionDAG *DAG)
37 : DAG(DAG), TLI(DAG ? &DAG->getTargetLoweringInfo() : nullptr) {}
38
39 explicit BasicMatchContext(const TargetLowering *TLI)
40 : DAG(nullptr), TLI(TLI) {}
41
42 // A valid MatchContext has to implement the following functions.
43
44 const SelectionDAG *getDAG() const { return DAG; }
45
46 const TargetLowering *getTLI() const { return TLI; }
47
48 /// Return true if N effectively has opcode Opcode.
49 bool match(SDValue N, unsigned Opcode) const {
50 return N->getOpcode() == Opcode;
51 }
52
53 unsigned getNumOperands(SDValue N) const { return N->getNumOperands(); }
54};
55
56template <typename Pattern, typename MatchContext>
57[[nodiscard]] bool sd_context_match(SDValue N, const MatchContext &Ctx,
58 Pattern &&P) {
59 return P.match(Ctx, N);
60}
61
62template <typename Pattern, typename MatchContext>
63[[nodiscard]] bool sd_context_match(SDNode *N, const MatchContext &Ctx,
64 Pattern &&P) {
65 return sd_context_match(SDValue(N, 0), Ctx, P);
66}
67
68template <typename Pattern>
69[[nodiscard]] bool sd_match(SDNode *N, const SelectionDAG *DAG, Pattern &&P) {
71}
72
73template <typename Pattern>
74[[nodiscard]] bool sd_match(SDValue N, const SelectionDAG *DAG, Pattern &&P) {
76}
77
78template <typename Pattern>
79[[nodiscard]] bool sd_match(SDNode *N, Pattern &&P) {
80 return sd_match(N, nullptr, P);
81}
82
83template <typename Pattern>
84[[nodiscard]] bool sd_match(SDValue N, Pattern &&P) {
85 return sd_match(N, nullptr, P);
86}
87
88// === Utilities ===
91
92 Value_match() = default;
93
94 explicit Value_match(SDValue Match) : MatchVal(Match) {}
95
96 template <typename MatchContext> bool match(const MatchContext &, SDValue N) {
97 if (MatchVal)
98 return MatchVal == N;
99 return N.getNode();
100 }
101};
102
103/// Match any valid SDValue.
104inline Value_match m_Value() { return Value_match(); }
105
107 assert(N);
108 return Value_match(N);
109}
110
111template <unsigned ResNo, typename Pattern> struct Result_match {
113
114 explicit Result_match(const Pattern &P) : P(P) {}
115
116 template <typename MatchContext>
117 bool match(const MatchContext &Ctx, SDValue N) {
118 return N.getResNo() == ResNo && P.match(Ctx, N);
119 }
120};
121
122/// Match only if the SDValue is a certain result at ResNo.
123template <unsigned ResNo, typename Pattern>
127
130
131 explicit DeferredValue_match(SDValue &Match) : MatchVal(Match) {}
132
133 template <typename MatchContext> bool match(const MatchContext &, SDValue N) {
134 return N == MatchVal;
135 }
136};
137
138/// Similar to m_Specific, but the specific value to match is determined by
139/// another sub-pattern in the same sd_match() expression. For instance,
140/// We cannot match `(add V, V)` with `m_Add(m_Value(X), m_Specific(X))` since
141/// `X` is not initialized at the time it got copied into `m_Specific`. Instead,
142/// we should use `m_Add(m_Value(X), m_Deferred(X))`.
146
148 unsigned Opcode;
149
150 explicit Opcode_match(unsigned Opc) : Opcode(Opc) {}
151
152 template <typename MatchContext>
153 bool match(const MatchContext &Ctx, SDValue N) {
154 return Ctx.match(N, Opcode);
155 }
156};
157
158inline Opcode_match m_Opc(unsigned Opcode) { return Opcode_match(Opcode); }
159
161
163
164template <unsigned NumUses, typename Pattern> struct NUses_match {
166
167 explicit NUses_match(const Pattern &P) : P(P) {}
168
169 template <typename MatchContext>
170 bool match(const MatchContext &Ctx, SDValue N) {
171 // SDNode::hasNUsesOfValue is pretty expensive when the SDNode produces
172 // multiple results, hence we check the subsequent pattern here before
173 // checking the number of value users.
174 return P.match(Ctx, N) && N->hasNUsesOfValue(NumUses, N.getResNo());
175 }
176};
177
178template <typename Pattern>
182template <unsigned N, typename Pattern>
186
190template <unsigned N> inline NUses_match<N, Value_match> m_NUses() {
192}
193
196
197 explicit Value_bind(SDValue &N) : BindVal(N) {}
198
199 template <typename MatchContext> bool match(const MatchContext &, SDValue N) {
200 BindVal = N;
201 return true;
202 }
203};
204
205inline Value_bind m_Value(SDValue &N) { return Value_bind(N); }
206
207template <typename Pattern, typename PredFuncT> struct TLI_pred_match {
209 PredFuncT PredFunc;
210
211 TLI_pred_match(const PredFuncT &Pred, const Pattern &P)
212 : P(P), PredFunc(Pred) {}
213
214 template <typename MatchContext>
215 bool match(const MatchContext &Ctx, SDValue N) {
216 assert(Ctx.getTLI() && "TargetLowering is required for this pattern.");
217 return PredFunc(*Ctx.getTLI(), N) && P.match(Ctx, N);
218 }
219};
220
221// Explicit deduction guide.
222template <typename PredFuncT, typename Pattern>
223TLI_pred_match(const PredFuncT &Pred, const Pattern &P)
225
226/// Match legal SDNodes based on the information provided by TargetLowering.
227template <typename Pattern> inline auto m_LegalOp(const Pattern &P) {
228 return TLI_pred_match{[](const TargetLowering &TLI, SDValue N) {
229 return TLI.isOperationLegal(N->getOpcode(),
230 N.getValueType());
231 },
232 P};
233}
234
235/// Switch to a different MatchContext for subsequent patterns.
236template <typename NewMatchContext, typename Pattern> struct SwitchContext {
237 const NewMatchContext &Ctx;
239
240 template <typename OrigMatchContext>
241 bool match(const OrigMatchContext &, SDValue N) {
242 return P.match(Ctx, N);
243 }
244};
245
246template <typename MatchContext, typename Pattern>
247inline SwitchContext<MatchContext, Pattern> m_Context(const MatchContext &Ctx,
248 Pattern &&P) {
249 return SwitchContext<MatchContext, Pattern>{Ctx, std::move(P)};
250}
251
252// === Value type ===
255
256 explicit ValueType_bind(EVT &Bind) : BindVT(Bind) {}
257
258 template <typename MatchContext> bool match(const MatchContext &, SDValue N) {
259 BindVT = N.getValueType();
260 return true;
261 }
262};
263
264/// Retreive the ValueType of the current SDValue.
265inline ValueType_bind m_VT(EVT &VT) { return ValueType_bind(VT); }
266
267template <typename Pattern, typename PredFuncT> struct ValueType_match {
268 PredFuncT PredFunc;
270
271 ValueType_match(const PredFuncT &Pred, const Pattern &P)
272 : PredFunc(Pred), P(P) {}
273
274 template <typename MatchContext>
275 bool match(const MatchContext &Ctx, SDValue N) {
276 return PredFunc(N.getValueType()) && P.match(Ctx, N);
277 }
278};
279
280// Explicit deduction guide.
281template <typename PredFuncT, typename Pattern>
282ValueType_match(const PredFuncT &Pred, const Pattern &P)
284
285/// Match a specific ValueType.
286template <typename Pattern>
287inline auto m_SpecificVT(EVT RefVT, const Pattern &P) {
288 return ValueType_match{[=](EVT VT) { return VT == RefVT; }, P};
289}
290inline auto m_SpecificVT(EVT RefVT) {
291 return ValueType_match{[=](EVT VT) { return VT == RefVT; }, m_Value()};
292}
293
294inline auto m_Glue() { return m_SpecificVT(MVT::Glue); }
295inline auto m_OtherVT() { return m_SpecificVT(MVT::Other); }
296
297/// Match a scalar ValueType.
298template <typename Pattern>
299inline auto m_SpecificScalarVT(EVT RefVT, const Pattern &P) {
300 return ValueType_match{[=](EVT VT) { return VT.getScalarType() == RefVT; },
301 P};
302}
303inline auto m_SpecificScalarVT(EVT RefVT) {
304 return ValueType_match{[=](EVT VT) { return VT.getScalarType() == RefVT; },
305 m_Value()};
306}
307
308/// Match a vector ValueType.
309template <typename Pattern>
310inline auto m_SpecificVectorElementVT(EVT RefVT, const Pattern &P) {
311 return ValueType_match{[=](EVT VT) {
312 return VT.isVector() &&
313 VT.getVectorElementType() == RefVT;
314 },
315 P};
316}
317inline auto m_SpecificVectorElementVT(EVT RefVT) {
318 return ValueType_match{[=](EVT VT) {
319 return VT.isVector() &&
320 VT.getVectorElementType() == RefVT;
321 },
322 m_Value()};
323}
324
325/// Match any integer ValueTypes.
326template <typename Pattern> inline auto m_IntegerVT(const Pattern &P) {
327 return ValueType_match{[](EVT VT) { return VT.isInteger(); }, P};
328}
329inline auto m_IntegerVT() {
330 return ValueType_match{[](EVT VT) { return VT.isInteger(); }, m_Value()};
331}
332
333/// Match any floating point ValueTypes.
334template <typename Pattern> inline auto m_FloatingPointVT(const Pattern &P) {
335 return ValueType_match{[](EVT VT) { return VT.isFloatingPoint(); }, P};
336}
337inline auto m_FloatingPointVT() {
338 return ValueType_match{[](EVT VT) { return VT.isFloatingPoint(); },
339 m_Value()};
340}
341
342/// Match any vector ValueTypes.
343template <typename Pattern> inline auto m_VectorVT(const Pattern &P) {
344 return ValueType_match{[](EVT VT) { return VT.isVector(); }, P};
345}
346inline auto m_VectorVT() {
347 return ValueType_match{[](EVT VT) { return VT.isVector(); }, m_Value()};
348}
349
350/// Match fixed-length vector ValueTypes.
351template <typename Pattern> inline auto m_FixedVectorVT(const Pattern &P) {
352 return ValueType_match{[](EVT VT) { return VT.isFixedLengthVector(); }, P};
353}
354inline auto m_FixedVectorVT() {
355 return ValueType_match{[](EVT VT) { return VT.isFixedLengthVector(); },
356 m_Value()};
357}
358
359/// Match scalable vector ValueTypes.
360template <typename Pattern> inline auto m_ScalableVectorVT(const Pattern &P) {
361 return ValueType_match{[](EVT VT) { return VT.isScalableVector(); }, P};
362}
363inline auto m_ScalableVectorVT() {
364 return ValueType_match{[](EVT VT) { return VT.isScalableVector(); },
365 m_Value()};
366}
367
368/// Match legal ValueTypes based on the information provided by TargetLowering.
369template <typename Pattern> inline auto m_LegalType(const Pattern &P) {
370 return TLI_pred_match{[](const TargetLowering &TLI, SDValue N) {
371 return TLI.isTypeLegal(N.getValueType());
372 },
373 P};
374}
375
376// === Patterns combinators ===
377template <typename... Preds> struct And {
378 template <typename MatchContext> bool match(const MatchContext &, SDValue N) {
379 return true;
380 }
381};
382
383template <typename Pred, typename... Preds>
384struct And<Pred, Preds...> : And<Preds...> {
385 Pred P;
386 And(const Pred &p, const Preds &...preds) : And<Preds...>(preds...), P(p) {}
387
388 template <typename MatchContext>
389 bool match(const MatchContext &Ctx, SDValue N) {
390 return P.match(Ctx, N) && And<Preds...>::match(Ctx, N);
391 }
392};
393
394template <typename... Preds> struct Or {
395 template <typename MatchContext> bool match(const MatchContext &, SDValue N) {
396 return false;
397 }
398};
399
400template <typename Pred, typename... Preds>
401struct Or<Pred, Preds...> : Or<Preds...> {
402 Pred P;
403 Or(const Pred &p, const Preds &...preds) : Or<Preds...>(preds...), P(p) {}
404
405 template <typename MatchContext>
406 bool match(const MatchContext &Ctx, SDValue N) {
407 return P.match(Ctx, N) || Or<Preds...>::match(Ctx, N);
408 }
409};
410
411template <typename Pred> struct Not {
412 Pred P;
413
414 explicit Not(const Pred &P) : P(P) {}
415
416 template <typename MatchContext>
417 bool match(const MatchContext &Ctx, SDValue N) {
418 return !P.match(Ctx, N);
419 }
420};
421// Explicit deduction guide.
422template <typename Pred> Not(const Pred &P) -> Not<Pred>;
423
424/// Match if the inner pattern does NOT match.
425template <typename Pred> inline Not<Pred> m_Unless(const Pred &P) {
426 return Not{P};
427}
428
429template <typename... Preds> And<Preds...> m_AllOf(const Preds &...preds) {
430 return And<Preds...>(preds...);
431}
432
433template <typename... Preds> Or<Preds...> m_AnyOf(const Preds &...preds) {
434 return Or<Preds...>(preds...);
435}
436
437template <typename... Preds> auto m_NoneOf(const Preds &...preds) {
438 return m_Unless(m_AnyOf(preds...));
439}
440
441// === Generic node matching ===
442template <unsigned OpIdx, typename... OpndPreds> struct Operands_match {
443 template <typename MatchContext>
444 bool match(const MatchContext &Ctx, SDValue N) {
445 // Returns false if there are more operands than predicates;
446 // Ignores the last two operands if both the Context and the Node are VP
447 return Ctx.getNumOperands(N) == OpIdx;
448 }
449};
450
451template <unsigned OpIdx, typename OpndPred, typename... OpndPreds>
452struct Operands_match<OpIdx, OpndPred, OpndPreds...>
453 : Operands_match<OpIdx + 1, OpndPreds...> {
454 OpndPred P;
455
456 Operands_match(const OpndPred &p, const OpndPreds &...preds)
457 : Operands_match<OpIdx + 1, OpndPreds...>(preds...), P(p) {}
458
459 template <typename MatchContext>
460 bool match(const MatchContext &Ctx, SDValue N) {
461 if (OpIdx < N->getNumOperands())
462 return P.match(Ctx, N->getOperand(OpIdx)) &&
464
465 // This is the case where there are more predicates than operands.
466 return false;
467 }
468};
469
470template <typename... OpndPreds>
471auto m_Node(unsigned Opcode, const OpndPreds &...preds) {
472 return m_AllOf(m_Opc(Opcode), Operands_match<0, OpndPreds...>(preds...));
473}
474
475/// Provide number of operands that are not chain or glue, as well as the first
476/// index of such operand.
477template <bool ExcludeChain> struct EffectiveOperands {
478 unsigned Size = 0;
479 unsigned FirstIndex = 0;
480
481 template <typename MatchContext>
482 explicit EffectiveOperands(SDValue N, const MatchContext &Ctx) {
483 const unsigned TotalNumOps = Ctx.getNumOperands(N);
484 FirstIndex = TotalNumOps;
485 for (unsigned I = 0; I < TotalNumOps; ++I) {
486 // Count the number of non-chain and non-glue nodes (we ignore chain
487 // and glue by default) and retreive the operand index offset.
488 EVT VT = N->getOperand(I).getValueType();
489 if (VT != MVT::Glue && VT != MVT::Other) {
490 ++Size;
491 if (FirstIndex == TotalNumOps)
492 FirstIndex = I;
493 }
494 }
495 }
496};
497
498template <> struct EffectiveOperands<false> {
499 unsigned Size = 0;
500 unsigned FirstIndex = 0;
501
502 template <typename MatchContext>
503 explicit EffectiveOperands(SDValue N, const MatchContext &Ctx)
504 : Size(Ctx.getNumOperands(N)) {}
505};
506
507// === Ternary operations ===
508template <typename T0_P, typename T1_P, typename T2_P, bool Commutable = false,
509 bool ExcludeChain = false>
511 unsigned Opcode;
512 T0_P Op0;
513 T1_P Op1;
514 T2_P Op2;
515
516 TernaryOpc_match(unsigned Opc, const T0_P &Op0, const T1_P &Op1,
517 const T2_P &Op2)
518 : Opcode(Opc), Op0(Op0), Op1(Op1), Op2(Op2) {}
519
520 template <typename MatchContext>
521 bool match(const MatchContext &Ctx, SDValue N) {
522 if (sd_context_match(N, Ctx, m_Opc(Opcode))) {
524 assert(EO.Size == 3);
525 return ((Op0.match(Ctx, N->getOperand(EO.FirstIndex)) &&
526 Op1.match(Ctx, N->getOperand(EO.FirstIndex + 1))) ||
527 (Commutable && Op0.match(Ctx, N->getOperand(EO.FirstIndex + 1)) &&
528 Op1.match(Ctx, N->getOperand(EO.FirstIndex)))) &&
529 Op2.match(Ctx, N->getOperand(EO.FirstIndex + 2));
530 }
531
532 return false;
533 }
534};
535
536template <typename T0_P, typename T1_P, typename T2_P>
537inline TernaryOpc_match<T0_P, T1_P, T2_P>
538m_SetCC(const T0_P &LHS, const T1_P &RHS, const T2_P &CC) {
540}
541
542template <typename T0_P, typename T1_P, typename T2_P>
543inline TernaryOpc_match<T0_P, T1_P, T2_P, true, false>
544m_c_SetCC(const T0_P &LHS, const T1_P &RHS, const T2_P &CC) {
546 CC);
547}
548
549template <typename T0_P, typename T1_P, typename T2_P>
550inline TernaryOpc_match<T0_P, T1_P, T2_P>
551m_Select(const T0_P &Cond, const T1_P &T, const T2_P &F) {
553}
554
555template <typename T0_P, typename T1_P, typename T2_P>
556inline TernaryOpc_match<T0_P, T1_P, T2_P>
557m_VSelect(const T0_P &Cond, const T1_P &T, const T2_P &F) {
559}
560
561template <typename T0_P, typename T1_P, typename T2_P>
562inline Result_match<0, TernaryOpc_match<T0_P, T1_P, T2_P>>
563m_Load(const T0_P &Ch, const T1_P &Ptr, const T2_P &Offset) {
564 return m_Result<0>(
566}
567
568template <typename T0_P, typename T1_P, typename T2_P>
569inline TernaryOpc_match<T0_P, T1_P, T2_P>
570m_InsertElt(const T0_P &Vec, const T1_P &Val, const T2_P &Idx) {
572 Idx);
573}
574
575template <typename LHS, typename RHS, typename IDX>
576inline TernaryOpc_match<LHS, RHS, IDX>
577m_InsertSubvector(const LHS &Base, const RHS &Sub, const IDX &Idx) {
579}
580
581template <typename LTy, typename RTy, typename TTy, typename FTy, typename CCTy>
582inline auto m_SelectCC(const LTy &L, const RTy &R, const TTy &T, const FTy &F,
583 const CCTy &CC) {
584 return m_Node(ISD::SELECT_CC, L, R, T, F, CC);
585}
586
587template <typename LTy, typename RTy, typename TTy, typename FTy, typename CCTy>
588inline auto m_SelectCCLike(const LTy &L, const RTy &R, const TTy &T,
589 const FTy &F, const CCTy &CC) {
590 return m_AnyOf(m_Select(m_SetCC(L, R, CC), T, F), m_SelectCC(L, R, T, F, CC));
591}
592
593// === Binary operations ===
594template <typename LHS_P, typename RHS_P, bool Commutable = false,
595 bool ExcludeChain = false>
597 unsigned Opcode;
598 LHS_P LHS;
599 RHS_P RHS;
601 BinaryOpc_match(unsigned Opc, const LHS_P &L, const RHS_P &R,
602 SDNodeFlags Flgs = SDNodeFlags())
603 : Opcode(Opc), LHS(L), RHS(R), Flags(Flgs) {}
604
605 template <typename MatchContext>
606 bool match(const MatchContext &Ctx, SDValue N) {
607 if (sd_context_match(N, Ctx, m_Opc(Opcode))) {
609 assert(EO.Size == 2);
610 if (!((LHS.match(Ctx, N->getOperand(EO.FirstIndex)) &&
611 RHS.match(Ctx, N->getOperand(EO.FirstIndex + 1))) ||
612 (Commutable && LHS.match(Ctx, N->getOperand(EO.FirstIndex + 1)) &&
613 RHS.match(Ctx, N->getOperand(EO.FirstIndex)))))
614 return false;
615
616 return (Flags & N->getFlags()) == Flags;
617 }
618
619 return false;
620 }
621};
622
623/// Matching while capturing mask
624template <typename T0, typename T1, typename T2> struct SDShuffle_match {
625 T0 Op1;
628
629 SDShuffle_match(const T0 &Op1, const T1 &Op2, const T2 &Mask)
630 : Op1(Op1), Op2(Op2), Mask(Mask) {}
631
632 template <typename MatchContext>
633 bool match(const MatchContext &Ctx, SDValue N) {
634 if (auto *I = dyn_cast<ShuffleVectorSDNode>(N)) {
635 return Op1.match(Ctx, I->getOperand(0)) &&
636 Op2.match(Ctx, I->getOperand(1)) && Mask.match(I->getMask());
637 }
638 return false;
639 }
640};
641struct m_Mask {
644 bool match(ArrayRef<int> Mask) {
645 MaskRef = Mask;
646 return true;
647 }
648};
649
655
656template <typename LHS_P, typename RHS_P, typename Pred_t,
657 bool Commutable = false, bool ExcludeChain = false>
659 using PredType = Pred_t;
660 LHS_P LHS;
661 RHS_P RHS;
662
663 MaxMin_match(const LHS_P &L, const RHS_P &R) : LHS(L), RHS(R) {}
664
665 template <typename MatchContext>
666 bool match(const MatchContext &Ctx, SDValue N) {
667 auto MatchMinMax = [&](SDValue L, SDValue R, SDValue TrueValue,
668 SDValue FalseValue, ISD::CondCode CC) {
669 if ((TrueValue != L || FalseValue != R) &&
670 (TrueValue != R || FalseValue != L))
671 return false;
672
674 TrueValue == L ? CC : getSetCCInverse(CC, L.getValueType());
675 if (!Pred_t::match(Cond))
676 return false;
677
678 return (LHS.match(Ctx, L) && RHS.match(Ctx, R)) ||
679 (Commutable && LHS.match(Ctx, R) && RHS.match(Ctx, L));
680 };
681
682 if (sd_context_match(N, Ctx, m_Opc(ISD::SELECT)) ||
684 EffectiveOperands<ExcludeChain> EO_SELECT(N, Ctx);
685 assert(EO_SELECT.Size == 3);
686 SDValue Cond = N->getOperand(EO_SELECT.FirstIndex);
687 SDValue TrueValue = N->getOperand(EO_SELECT.FirstIndex + 1);
688 SDValue FalseValue = N->getOperand(EO_SELECT.FirstIndex + 2);
689
692 assert(EO_SETCC.Size == 3);
693 SDValue L = Cond->getOperand(EO_SETCC.FirstIndex);
694 SDValue R = Cond->getOperand(EO_SETCC.FirstIndex + 1);
695 auto *CondNode =
696 cast<CondCodeSDNode>(Cond->getOperand(EO_SETCC.FirstIndex + 2));
697 return MatchMinMax(L, R, TrueValue, FalseValue, CondNode->get());
698 }
699 }
700
702 EffectiveOperands<ExcludeChain> EO_SELECT(N, Ctx);
703 assert(EO_SELECT.Size == 5);
704 SDValue L = N->getOperand(EO_SELECT.FirstIndex);
705 SDValue R = N->getOperand(EO_SELECT.FirstIndex + 1);
706 SDValue TrueValue = N->getOperand(EO_SELECT.FirstIndex + 2);
707 SDValue FalseValue = N->getOperand(EO_SELECT.FirstIndex + 3);
708 auto *CondNode =
709 cast<CondCodeSDNode>(N->getOperand(EO_SELECT.FirstIndex + 4));
710 return MatchMinMax(L, R, TrueValue, FalseValue, CondNode->get());
711 }
712
713 return false;
714 }
715};
716
717// Helper class for identifying signed max predicates.
719 static bool match(ISD::CondCode Cond) {
721 }
722};
723
724// Helper class for identifying unsigned max predicates.
729};
730
731// Helper class for identifying signed min predicates.
733 static bool match(ISD::CondCode Cond) {
735 }
736};
737
738// Helper class for identifying unsigned min predicates.
743};
744
745template <typename LHS, typename RHS>
746inline BinaryOpc_match<LHS, RHS> m_BinOp(unsigned Opc, const LHS &L,
747 const RHS &R) {
748 return BinaryOpc_match<LHS, RHS>(Opc, L, R);
749}
750template <typename LHS, typename RHS>
752 const RHS &R) {
754}
755
756template <typename LHS, typename RHS>
758m_ChainedBinOp(unsigned Opc, const LHS &L, const RHS &R) {
760}
761template <typename LHS, typename RHS>
763m_c_ChainedBinOp(unsigned Opc, const LHS &L, const RHS &R) {
765}
766
767// Common binary operations
768template <typename LHS, typename RHS>
769inline BinaryOpc_match<LHS, RHS, true> m_Add(const LHS &L, const RHS &R) {
771}
772
773template <typename LHS, typename RHS>
774inline BinaryOpc_match<LHS, RHS> m_Sub(const LHS &L, const RHS &R) {
776}
777
778template <typename LHS, typename RHS>
779inline BinaryOpc_match<LHS, RHS, true> m_Mul(const LHS &L, const RHS &R) {
781}
782
783template <typename LHS, typename RHS>
784inline BinaryOpc_match<LHS, RHS, true> m_And(const LHS &L, const RHS &R) {
786}
787
788template <typename LHS, typename RHS>
789inline BinaryOpc_match<LHS, RHS, true> m_Or(const LHS &L, const RHS &R) {
791}
792
793template <typename LHS, typename RHS>
798
799template <typename LHS, typename RHS>
800inline auto m_AddLike(const LHS &L, const RHS &R) {
801 return m_AnyOf(m_Add(L, R), m_DisjointOr(L, R));
802}
803
804template <typename LHS, typename RHS>
805inline BinaryOpc_match<LHS, RHS, true> m_Xor(const LHS &L, const RHS &R) {
807}
808
809template <typename LHS, typename RHS>
810inline auto m_BitwiseLogic(const LHS &L, const RHS &R) {
811 return m_AnyOf(m_And(L, R), m_Or(L, R), m_Xor(L, R));
812}
813
814template <typename LHS, typename RHS>
815inline BinaryOpc_match<LHS, RHS, true> m_SMin(const LHS &L, const RHS &R) {
817}
818
819template <typename LHS, typename RHS>
820inline auto m_SMinLike(const LHS &L, const RHS &R) {
823}
824
825template <typename LHS, typename RHS>
826inline BinaryOpc_match<LHS, RHS, true> m_SMax(const LHS &L, const RHS &R) {
828}
829
830template <typename LHS, typename RHS>
831inline auto m_SMaxLike(const LHS &L, const RHS &R) {
834}
835
836template <typename LHS, typename RHS>
837inline BinaryOpc_match<LHS, RHS, true> m_UMin(const LHS &L, const RHS &R) {
839}
840
841template <typename LHS, typename RHS>
842inline auto m_UMinLike(const LHS &L, const RHS &R) {
845}
846
847template <typename LHS, typename RHS>
848inline BinaryOpc_match<LHS, RHS, true> m_UMax(const LHS &L, const RHS &R) {
850}
851
852template <typename LHS, typename RHS>
853inline auto m_UMaxLike(const LHS &L, const RHS &R) {
856}
857
858template <typename LHS, typename RHS>
859inline BinaryOpc_match<LHS, RHS> m_UDiv(const LHS &L, const RHS &R) {
861}
862template <typename LHS, typename RHS>
863inline BinaryOpc_match<LHS, RHS> m_SDiv(const LHS &L, const RHS &R) {
865}
866
867template <typename LHS, typename RHS>
868inline BinaryOpc_match<LHS, RHS> m_URem(const LHS &L, const RHS &R) {
870}
871template <typename LHS, typename RHS>
872inline BinaryOpc_match<LHS, RHS> m_SRem(const LHS &L, const RHS &R) {
874}
875
876template <typename LHS, typename RHS>
877inline BinaryOpc_match<LHS, RHS> m_Shl(const LHS &L, const RHS &R) {
879}
880
881template <typename LHS, typename RHS>
882inline BinaryOpc_match<LHS, RHS> m_Sra(const LHS &L, const RHS &R) {
884}
885template <typename LHS, typename RHS>
886inline BinaryOpc_match<LHS, RHS> m_Srl(const LHS &L, const RHS &R) {
888}
889
890template <typename LHS, typename RHS>
891inline BinaryOpc_match<LHS, RHS> m_Rotl(const LHS &L, const RHS &R) {
893}
894
895template <typename LHS, typename RHS>
896inline BinaryOpc_match<LHS, RHS> m_Rotr(const LHS &L, const RHS &R) {
898}
899
900template <typename LHS, typename RHS>
901inline BinaryOpc_match<LHS, RHS, true> m_FAdd(const LHS &L, const RHS &R) {
903}
904
905template <typename LHS, typename RHS>
906inline BinaryOpc_match<LHS, RHS> m_FSub(const LHS &L, const RHS &R) {
908}
909
910template <typename LHS, typename RHS>
911inline BinaryOpc_match<LHS, RHS, true> m_FMul(const LHS &L, const RHS &R) {
913}
914
915template <typename LHS, typename RHS>
916inline BinaryOpc_match<LHS, RHS> m_FDiv(const LHS &L, const RHS &R) {
918}
919
920template <typename LHS, typename RHS>
921inline BinaryOpc_match<LHS, RHS> m_FRem(const LHS &L, const RHS &R) {
923}
924
925template <typename V1_t, typename V2_t>
926inline BinaryOpc_match<V1_t, V2_t> m_Shuffle(const V1_t &v1, const V2_t &v2) {
928}
929
930template <typename V1_t, typename V2_t, typename Mask_t>
931inline SDShuffle_match<V1_t, V2_t, Mask_t>
932m_Shuffle(const V1_t &v1, const V2_t &v2, const Mask_t &mask) {
933 return SDShuffle_match<V1_t, V2_t, Mask_t>(v1, v2, mask);
934}
935
936template <typename LHS, typename RHS>
937inline BinaryOpc_match<LHS, RHS> m_ExtractElt(const LHS &Vec, const RHS &Idx) {
939}
940
941template <typename LHS, typename RHS>
943 const RHS &Idx) {
945}
946
947// === Unary operations ===
948template <typename Opnd_P, bool ExcludeChain = false> struct UnaryOpc_match {
949 unsigned Opcode;
950 Opnd_P Opnd;
951 std::optional<SDNodeFlags> Flags;
952 UnaryOpc_match(unsigned Opc, const Opnd_P &Op,
953 std::optional<SDNodeFlags> Flgs = std::nullopt)
954 : Opcode(Opc), Opnd(Op), Flags(Flgs) {}
955
956 template <typename MatchContext>
957 bool match(const MatchContext &Ctx, SDValue N) {
958 if (sd_context_match(N, Ctx, m_Opc(Opcode))) {
960 assert(EO.Size == 1);
961 if (!Opnd.match(Ctx, N->getOperand(EO.FirstIndex)))
962 return false;
963 if (!Flags.has_value())
964 return true;
965
966 return (*Flags & N->getFlags()) == *Flags;
967 }
968
969 return false;
970 }
971};
972
973template <typename Opnd>
974inline UnaryOpc_match<Opnd> m_UnaryOp(unsigned Opc, const Opnd &Op) {
975 return UnaryOpc_match<Opnd>(Opc, Op);
976}
977template <typename Opnd>
979 const Opnd &Op) {
981}
982
983template <typename Opnd> inline UnaryOpc_match<Opnd> m_BitCast(const Opnd &Op) {
984 return UnaryOpc_match<Opnd>(ISD::BITCAST, Op);
985}
986
987template <typename Opnd>
988inline UnaryOpc_match<Opnd> m_BSwap(const Opnd &Op) {
990}
991
992template <typename Opnd>
996
997template <typename Opnd> inline UnaryOpc_match<Opnd> m_ZExt(const Opnd &Op) {
999}
1000
1001template <typename Opnd>
1005
1006template <typename Opnd> inline auto m_SExt(const Opnd &Op) {
1008}
1009
1010template <typename Opnd> inline UnaryOpc_match<Opnd> m_AnyExt(const Opnd &Op) {
1012}
1013
1014template <typename Opnd> inline UnaryOpc_match<Opnd> m_Trunc(const Opnd &Op) {
1016}
1017
1018template <typename Opnd> inline UnaryOpc_match<Opnd> m_Abs(const Opnd &Op) {
1020}
1021
1022/// Match a zext or identity
1023/// Allows to peek through optional extensions
1024template <typename Opnd> inline auto m_ZExtOrSelf(const Opnd &Op) {
1025 return m_AnyOf(m_ZExt(Op), Op);
1026}
1027
1028/// Match a sext or identity
1029/// Allows to peek through optional extensions
1030template <typename Opnd> inline auto m_SExtOrSelf(const Opnd &Op) {
1031 return m_AnyOf(m_SExt(Op), Op);
1032}
1033
1034template <typename Opnd> inline auto m_SExtLike(const Opnd &Op) {
1035 return m_AnyOf(m_SExt(Op), m_NNegZExt(Op));
1036}
1037
1038/// Match a aext or identity
1039/// Allows to peek through optional extensions
1040template <typename Opnd>
1041inline Or<UnaryOpc_match<Opnd>, Opnd> m_AExtOrSelf(const Opnd &Op) {
1042 return Or<UnaryOpc_match<Opnd>, Opnd>(m_AnyExt(Op), Op);
1043}
1044
1045/// Match a trunc or identity
1046/// Allows to peek through optional truncations
1047template <typename Opnd>
1048inline Or<UnaryOpc_match<Opnd>, Opnd> m_TruncOrSelf(const Opnd &Op) {
1049 return Or<UnaryOpc_match<Opnd>, Opnd>(m_Trunc(Op), Op);
1050}
1051
1052template <typename Opnd> inline UnaryOpc_match<Opnd> m_VScale(const Opnd &Op) {
1053 return UnaryOpc_match<Opnd>(ISD::VSCALE, Op);
1054}
1055
1056template <typename Opnd> inline UnaryOpc_match<Opnd> m_FPToUI(const Opnd &Op) {
1058}
1059
1060template <typename Opnd> inline UnaryOpc_match<Opnd> m_FPToSI(const Opnd &Op) {
1062}
1063
1064template <typename Opnd> inline UnaryOpc_match<Opnd> m_Ctpop(const Opnd &Op) {
1066}
1067
1068template <typename Opnd> inline UnaryOpc_match<Opnd> m_Ctlz(const Opnd &Op) {
1070}
1071
1072template <typename Opnd> inline UnaryOpc_match<Opnd> m_Cttz(const Opnd &Op) {
1074}
1075
1076template <typename Opnd> inline UnaryOpc_match<Opnd> m_FNeg(const Opnd &Op) {
1077 return UnaryOpc_match<Opnd>(ISD::FNEG, Op);
1078}
1079
1080// === Constants ===
1083
1084 explicit ConstantInt_match(APInt *V) : BindVal(V) {}
1085
1086 template <typename MatchContext> bool match(const MatchContext &, SDValue N) {
1087 // The logics here are similar to that in
1088 // SelectionDAG::isConstantIntBuildVectorOrConstantInt, but the latter also
1089 // treats GlobalAddressSDNode as a constant, which is difficult to turn into
1090 // APInt.
1091 if (auto *C = dyn_cast_or_null<ConstantSDNode>(N.getNode())) {
1092 if (BindVal)
1093 *BindVal = C->getAPIntValue();
1094 return true;
1095 }
1096
1097 APInt Discard;
1098 return ISD::isConstantSplatVector(N.getNode(),
1099 BindVal ? *BindVal : Discard);
1100 }
1101};
1102/// Match any integer constants or splat of an integer constant.
1104/// Match any integer constants or splat of an integer constant; return the
1105/// specific constant or constant splat value.
1107
1110
1111 explicit SpecificInt_match(APInt APV) : IntVal(std::move(APV)) {}
1112
1113 template <typename MatchContext>
1114 bool match(const MatchContext &Ctx, SDValue N) {
1115 APInt ConstInt;
1116 if (sd_context_match(N, Ctx, m_ConstInt(ConstInt)))
1117 return APInt::isSameValue(IntVal, ConstInt);
1118 return false;
1119 }
1120};
1121
1122/// Match a specific integer constant or constant splat value.
1124 return SpecificInt_match(std::move(V));
1125}
1127 return SpecificInt_match(APInt(64, V));
1128}
1129
1132
1134
1135 template <typename MatchContext>
1136 bool match(const MatchContext &, SDValue N) const {
1138 }
1139};
1140
1143
1145
1146 template <typename MatchContext> bool match(const MatchContext &, SDValue N) {
1148 }
1149};
1150
1153
1155
1156 template <typename MatchContext> bool match(const MatchContext &, SDValue N) {
1158 }
1159};
1160
1161inline Ones_match m_One(bool AllowUndefs = false) {
1162 return Ones_match(AllowUndefs);
1163}
1164inline Zero_match m_Zero(bool AllowUndefs = false) {
1165 return Zero_match(AllowUndefs);
1166}
1167inline AllOnes_match m_AllOnes(bool AllowUndefs = false) {
1168 return AllOnes_match(AllowUndefs);
1169}
1170
1171/// Match true boolean value based on the information provided by
1172/// TargetLowering.
1173inline auto m_True() {
1174 return TLI_pred_match{
1175 [](const TargetLowering &TLI, SDValue N) {
1176 APInt ConstVal;
1177 if (sd_match(N, m_ConstInt(ConstVal)))
1178 switch (TLI.getBooleanContents(N.getValueType())) {
1180 return ConstVal.isOne();
1182 return ConstVal.isAllOnes();
1184 return (ConstVal & 0x01) == 1;
1185 }
1186
1187 return false;
1188 },
1189 m_Value()};
1190}
1191/// Match false boolean value based on the information provided by
1192/// TargetLowering.
1193inline auto m_False() {
1194 return TLI_pred_match{
1195 [](const TargetLowering &TLI, SDValue N) {
1196 APInt ConstVal;
1197 if (sd_match(N, m_ConstInt(ConstVal)))
1198 switch (TLI.getBooleanContents(N.getValueType())) {
1201 return ConstVal.isZero();
1203 return (ConstVal & 0x01) == 0;
1204 }
1205
1206 return false;
1207 },
1208 m_Value()};
1209}
1210
1212 std::optional<ISD::CondCode> CCToMatch;
1214
1216
1217 explicit CondCode_match(ISD::CondCode *CC) : BindCC(CC) {}
1218
1219 template <typename MatchContext> bool match(const MatchContext &, SDValue N) {
1220 if (auto *CC = dyn_cast<CondCodeSDNode>(N.getNode())) {
1221 if (CCToMatch && *CCToMatch != CC->get())
1222 return false;
1223
1224 if (BindCC)
1225 *BindCC = CC->get();
1226 return true;
1227 }
1228
1229 return false;
1230 }
1231};
1232
1233/// Match any conditional code SDNode.
1234inline CondCode_match m_CondCode() { return CondCode_match(nullptr); }
1235/// Match any conditional code SDNode and return its ISD::CondCode value.
1237 return CondCode_match(&CC);
1238}
1239/// Match a conditional code SDNode with a specific ISD::CondCode.
1243
1244/// Match a negate as a sub(0, v)
1245template <typename ValTy>
1247 return m_Sub(m_Zero(), V);
1248}
1249
1250/// Match a Not as a xor(v, -1) or xor(-1, v)
1251template <typename ValTy>
1253 return m_Xor(V, m_AllOnes());
1254}
1255
1256template <typename... PatternTs> struct ReassociatableOpc_match {
1257 unsigned Opcode;
1258 std::tuple<PatternTs...> Patterns;
1259
1260 ReassociatableOpc_match(unsigned Opcode, const PatternTs &...Patterns)
1261 : Opcode(Opcode), Patterns(Patterns...) {}
1262
1263 template <typename MatchContext>
1264 bool match(const MatchContext &Ctx, SDValue N) {
1265 constexpr size_t NumPatterns = std::tuple_size_v<std::tuple<PatternTs...>>;
1266
1267 SmallVector<SDValue> Leaves;
1268 collectLeaves(N, Leaves);
1269 if (Leaves.size() != NumPatterns)
1270 return false;
1271
1272 // Matches[I][J] == true iff sd_context_match(Leaves[I], Ctx,
1273 // std::get<J>(Patterns)) == true
1274 std::array<SmallBitVector, NumPatterns> Matches;
1275 for (size_t I = 0; I != NumPatterns; I++) {
1276 std::apply(
1277 [&](auto &...P) {
1278 (Matches[I].push_back(sd_context_match(Leaves[I], Ctx, P)), ...);
1279 },
1280 Patterns);
1281 }
1282
1283 SmallBitVector Used(NumPatterns);
1284 return reassociatableMatchHelper(Matches, Used);
1285 }
1286
1288 if (V->getOpcode() == Opcode) {
1289 for (size_t I = 0, N = V->getNumOperands(); I < N; I++)
1290 collectLeaves(V->getOperand(I), Leaves);
1291 } else {
1292 Leaves.emplace_back(V);
1293 }
1294 }
1295
1296 [[nodiscard]] inline bool
1298 SmallBitVector &Used, size_t Curr = 0) {
1299 if (Curr == Matches.size())
1300 return true;
1301 for (size_t Match = 0, N = Matches[Curr].size(); Match < N; Match++) {
1302 if (!Matches[Curr][Match] || Used[Match])
1303 continue;
1304 Used[Match] = true;
1305 if (reassociatableMatchHelper(Matches, Used, Curr + 1))
1306 return true;
1307 Used[Match] = false;
1308 }
1309 return false;
1310 }
1311};
1312
1313template <typename... PatternTs>
1314inline ReassociatableOpc_match<PatternTs...>
1315m_ReassociatableAdd(const PatternTs &...Patterns) {
1316 return ReassociatableOpc_match<PatternTs...>(ISD::ADD, Patterns...);
1317}
1318
1319template <typename... PatternTs>
1320inline ReassociatableOpc_match<PatternTs...>
1321m_ReassociatableOr(const PatternTs &...Patterns) {
1322 return ReassociatableOpc_match<PatternTs...>(ISD::OR, Patterns...);
1323}
1324
1325template <typename... PatternTs>
1326inline ReassociatableOpc_match<PatternTs...>
1327m_ReassociatableAnd(const PatternTs &...Patterns) {
1328 return ReassociatableOpc_match<PatternTs...>(ISD::AND, Patterns...);
1329}
1330
1331template <typename... PatternTs>
1332inline ReassociatableOpc_match<PatternTs...>
1333m_ReassociatableMul(const PatternTs &...Patterns) {
1334 return ReassociatableOpc_match<PatternTs...>(ISD::MUL, Patterns...);
1335}
1336
1337} // namespace SDPatternMatch
1338} // namespace llvm
1339#endif
return SDValue()
assert(UImm &&(UImm !=~static_cast< T >(0)) &&"Invalid immediate!")
This file implements a class to represent arbitrary precision integral constant values and operations...
#define F(x, y, z)
Definition MD5.cpp:55
#define I(x, y, z)
Definition MD5.cpp:58
#define T
#define T1
MachineInstr unsigned OpIdx
#define P(N)
const SmallVectorImpl< MachineOperand > & Cond
This file contains some templates that are useful if you are working with the STL at all.
This file implements the SmallBitVector class.
This file describes how to lower LLVM code to machine code.
Value * RHS
Value * LHS
Class for arbitrary precision integers.
Definition APInt.h:78
bool isAllOnes() const
Determine if all bits are set. This is true for zero-width values.
Definition APInt.h:371
bool isZero() const
Determine if this value is zero, i.e. all bits are clear.
Definition APInt.h:380
static bool isSameValue(const APInt &I1, const APInt &I2)
Determine if two APInts have the same value, after zero-extending one of them (if needed!...
Definition APInt.h:553
bool isOne() const
Determine if this is a value of 1.
Definition APInt.h:389
ArrayRef - Represent a constant reference to an array (0 or more elements consecutively in memory),...
Definition ArrayRef.h:41
size_t size() const
size - Get the array size.
Definition ArrayRef.h:147
Represents one node in the SelectionDAG.
MatchContext can repurpose existing patterns to behave differently under a certain context.
const TargetLowering * getTLI() const
const SelectionDAG * getDAG() const
BasicMatchContext(const TargetLowering *TLI)
BasicMatchContext(const SelectionDAG *DAG)
bool match(SDValue N, unsigned Opcode) const
Return true if N effectively has opcode Opcode.
unsigned getNumOperands(SDValue N) const
Unlike LLVM values, Selection DAG nodes may return multiple values as the result of a computation.
This is used to represent a portion of an LLVM function in a low-level Data Dependence DAG representa...
This is a 'bitvector' (really, a variable-sized bit array), optimized for the case when the array is ...
reference emplace_back(ArgTypes &&... Args)
This is a 'vector' (really, a variable-sized array), optimized for the case when the array is small.
BooleanContent getBooleanContents(bool isVec, bool isFloat) const
For targets without i1 registers, this gives the nature of the high-bits of boolean values held in ty...
bool isTypeLegal(EVT VT) const
Return true if the target has native support for the specified value type.
bool isOperationLegal(unsigned Op, EVT VT) const
Return true if the specified operation is legal on this target.
This class defines information used to lower LLVM code to legal SelectionDAG operators that the targe...
@ C
The default llvm calling convention, compatible with C.
Definition CallingConv.h:34
@ SETCC
SetCC operator - This evaluates to a true value iff the condition is true.
Definition ISDOpcodes.h:801
@ POISON
POISON - A poison node.
Definition ISDOpcodes.h:231
@ INSERT_SUBVECTOR
INSERT_SUBVECTOR(VECTOR1, VECTOR2, IDX) - Returns a vector with VECTOR2 inserted into VECTOR1.
Definition ISDOpcodes.h:587
@ BSWAP
Byte Swap and Counting operators.
Definition ISDOpcodes.h:765
@ ADD
Simple integer binary arithmetic operators.
Definition ISDOpcodes.h:259
@ ANY_EXTEND
ANY_EXTEND - Used for integer types. The high bits are undefined.
Definition ISDOpcodes.h:835
@ FADD
Simple binary floating point operators.
Definition ISDOpcodes.h:410
@ ABS
ABS - Determine the unsigned absolute value of a signed integer value of the same bitwidth.
Definition ISDOpcodes.h:738
@ SIGN_EXTEND
Conversion operators.
Definition ISDOpcodes.h:826
@ SELECT
Select(COND, TRUEVAL, FALSEVAL).
Definition ISDOpcodes.h:778
@ UNDEF
UNDEF - An undefined node.
Definition ISDOpcodes.h:228
@ SHL
Shift and rotation operations.
Definition ISDOpcodes.h:756
@ VECTOR_SHUFFLE
VECTOR_SHUFFLE(VEC1, VEC2) - Returns a vector, of the same type as VEC1/VEC2.
Definition ISDOpcodes.h:636
@ EXTRACT_SUBVECTOR
EXTRACT_SUBVECTOR(VECTOR, IDX) - Returns a subvector from VECTOR.
Definition ISDOpcodes.h:601
@ EXTRACT_VECTOR_ELT
EXTRACT_VECTOR_ELT(VECTOR, IDX) - Returns a single element from VECTOR identified by the (potentially...
Definition ISDOpcodes.h:563
@ ZERO_EXTEND
ZERO_EXTEND - Used for integer types, zeroing the new bits.
Definition ISDOpcodes.h:832
@ SELECT_CC
Select with condition operator - This selects between a true value and a false value (ops #2 and #3) ...
Definition ISDOpcodes.h:793
@ SMIN
[US]{MIN/MAX} - Binary minimum or maximum of signed or unsigned integers.
Definition ISDOpcodes.h:718
@ VSELECT
Select with a vector condition (op #0) and two vector operands (ops #1 and #2), returning a vector re...
Definition ISDOpcodes.h:787
@ FP_TO_SINT
FP_TO_[US]INT - Convert a floating point value to a signed or unsigned integer.
Definition ISDOpcodes.h:908
@ AND
Bitwise operators - logical and, logical or, logical xor.
Definition ISDOpcodes.h:730
@ INSERT_VECTOR_ELT
INSERT_VECTOR_ELT(VECTOR, VAL, IDX) - Returns VECTOR with the element at IDX replaced with VAL.
Definition ISDOpcodes.h:552
@ TRUNCATE
TRUNCATE - Completely drop the high bits.
Definition ISDOpcodes.h:838
LLVM_ABI bool isConstantSplatVector(const SDNode *N, APInt &SplatValue)
Node predicates.
CondCode
ISD::CondCode enum - These are ordered carefully to make the bitfields below work out,...
cst_pred_ty< is_all_ones > m_AllOnes()
Match an integer or vector with all bits set.
class_match< BinaryOperator > m_BinOp()
Match an arbitrary binary operation and ignore it.
cst_pred_ty< is_one > m_One()
Match an integer 1 or a vector with all elements equal to 1.
IntrinsicID_match m_VScale()
Matches a call to llvm.vscale().
is_zero m_Zero()
Match any null constant or a vector with all elements equal to 0.
BinaryOpc_match< Zero_match, ValTy, false > m_Neg(const ValTy &V)
Match a negate as a sub(0, v)
Result_match< 0, TernaryOpc_match< T0_P, T1_P, T2_P > > m_Load(const T0_P &Ch, const T1_P &Ptr, const T2_P &Offset)
ReassociatableOpc_match< PatternTs... > m_ReassociatableMul(const PatternTs &...Patterns)
Opcode_match m_Opc(unsigned Opcode)
auto m_SelectCCLike(const LTy &L, const RTy &R, const TTy &T, const FTy &F, const CCTy &CC)
BinaryOpc_match< LHS, RHS > m_Srl(const LHS &L, const RHS &R)
auto m_SExtLike(const Opnd &Op)
auto m_SpecificVT(EVT RefVT, const Pattern &P)
Match a specific ValueType.
auto m_SelectCC(const LTy &L, const RTy &R, const TTy &T, const FTy &F, const CCTy &CC)
BinaryOpc_match< LHS, RHS > m_Sra(const LHS &L, const RHS &R)
BinaryOpc_match< LHS, RHS > m_FRem(const LHS &L, const RHS &R)
TLI_pred_match(const PredFuncT &Pred, const Pattern &P) -> TLI_pred_match< Pattern, PredFuncT >
Result_match< ResNo, Pattern > m_Result(const Pattern &P)
Match only if the SDValue is a certain result at ResNo.
BinaryOpc_match< LHS, RHS, true > m_Mul(const LHS &L, const RHS &R)
auto m_UMinLike(const LHS &L, const RHS &R)
TernaryOpc_match< LHS, RHS, IDX > m_InsertSubvector(const LHS &Base, const RHS &Sub, const IDX &Idx)
auto m_UMaxLike(const LHS &L, const RHS &R)
BinaryOpc_match< LHS, RHS, true > m_Or(const LHS &L, const RHS &R)
UnaryOpc_match< Opnd > m_Abs(const Opnd &Op)
TernaryOpc_match< T0_P, T1_P, T2_P > m_InsertElt(const T0_P &Vec, const T1_P &Val, const T2_P &Idx)
BinaryOpc_match< LHS, RHS, false, true > m_ChainedBinOp(unsigned Opc, const LHS &L, const RHS &R)
BinaryOpc_match< LHS, RHS, true > m_SMin(const LHS &L, const RHS &R)
UnaryOpc_match< Opnd > m_Trunc(const Opnd &Op)
BinaryOpc_match< LHS, RHS > m_FSub(const LHS &L, const RHS &R)
auto m_AddLike(const LHS &L, const RHS &R)
BinaryOpc_match< LHS, RHS > m_URem(const LHS &L, const RHS &R)
UnaryOpc_match< Opnd > m_BSwap(const Opnd &Op)
Or< Preds... > m_AnyOf(const Preds &...preds)
BinaryOpc_match< LHS, RHS, true, true > m_c_ChainedBinOp(unsigned Opc, const LHS &L, const RHS &R)
Or< UnaryOpc_match< Opnd >, Opnd > m_TruncOrSelf(const Opnd &Op)
Match a trunc or identity Allows to peek through optional truncations.
UnaryOpc_match< Opnd > m_NNegZExt(const Opnd &Op)
And< Preds... > m_AllOf(const Preds &...preds)
BinaryOpc_match< LHS, RHS > m_FDiv(const LHS &L, const RHS &R)
auto m_LegalType(const Pattern &P)
Match legal ValueTypes based on the information provided by TargetLowering.
UnaryOpc_match< Opnd > m_BitCast(const Opnd &Op)
UnaryOpc_match< Opnd > m_FNeg(const Opnd &Op)
Opcode_match m_Poison()
BinaryOpc_match< LHS, RHS, true > m_UMin(const LHS &L, const RHS &R)
Not< Pred > m_Unless(const Pred &P)
Match if the inner pattern does NOT match.
BinaryOpc_match< LHS, RHS, true > m_SMax(const LHS &L, const RHS &R)
auto m_SpecificScalarVT(EVT RefVT, const Pattern &P)
Match a scalar ValueType.
NUses_match< N, Value_match > m_NUses()
UnaryOpc_match< Opnd, true > m_ChainedUnaryOp(unsigned Opc, const Opnd &Op)
ValueType_match(const PredFuncT &Pred, const Pattern &P) -> ValueType_match< Pattern, PredFuncT >
SpecificInt_match m_SpecificInt(APInt V)
Match a specific integer constant or constant splat value.
UnaryOpc_match< Opnd > m_FPToUI(const Opnd &Op)
Value_match m_Specific(SDValue N)
BinaryOpc_match< LHS, RHS > m_ExtractElt(const LHS &Vec, const RHS &Idx)
BinaryOpc_match< LHS, RHS > m_ExtractSubvector(const LHS &Vec, const RHS &Idx)
UnaryOpc_match< Opnd > m_BitReverse(const Opnd &Op)
BinaryOpc_match< LHS, RHS, true > m_And(const LHS &L, const RHS &R)
ValueType_bind m_VT(EVT &VT)
Retreive the ValueType of the current SDValue.
BinaryOpc_match< LHS, RHS > m_Sub(const LHS &L, const RHS &R)
TernaryOpc_match< T0_P, T1_P, T2_P > m_SetCC(const T0_P &LHS, const T1_P &RHS, const T2_P &CC)
BinaryOpc_match< ValTy, AllOnes_match, true > m_Not(const ValTy &V)
Match a Not as a xor(v, -1) or xor(-1, v)
ReassociatableOpc_match< PatternTs... > m_ReassociatableOr(const PatternTs &...Patterns)
BinaryOpc_match< LHS, RHS > m_Rotr(const LHS &L, const RHS &R)
ReassociatableOpc_match< PatternTs... > m_ReassociatableAdd(const PatternTs &...Patterns)
UnaryOpc_match< Opnd > m_AnyExt(const Opnd &Op)
BinaryOpc_match< LHS, RHS > m_Rotl(const LHS &L, const RHS &R)
UnaryOpc_match< Opnd > m_Cttz(const Opnd &Op)
auto m_Node(unsigned Opcode, const OpndPreds &...preds)
BinaryOpc_match< LHS, RHS, true > m_DisjointOr(const LHS &L, const RHS &R)
auto m_SMaxLike(const LHS &L, const RHS &R)
TernaryOpc_match< T0_P, T1_P, T2_P > m_Select(const T0_P &Cond, const T1_P &T, const T2_P &F)
BinaryOpc_match< LHS, RHS > m_UDiv(const LHS &L, const RHS &R)
UnaryOpc_match< Opnd > m_Ctlz(const Opnd &Op)
BinaryOpc_match< LHS, RHS > m_SDiv(const LHS &L, const RHS &R)
SwitchContext< MatchContext, Pattern > m_Context(const MatchContext &Ctx, Pattern &&P)
BinaryOpc_match< LHS, RHS, true > m_FAdd(const LHS &L, const RHS &R)
Or< UnaryOpc_match< Opnd >, Opnd > m_AExtOrSelf(const Opnd &Op)
Match a aext or identity Allows to peek through optional extensions.
BinaryOpc_match< LHS, RHS, true > m_UMax(const LHS &L, const RHS &R)
TernaryOpc_match< T0_P, T1_P, T2_P > m_VSelect(const T0_P &Cond, const T1_P &T, const T2_P &F)
bool sd_match(SDNode *N, const SelectionDAG *DAG, Pattern &&P)
UnaryOpc_match< Opnd > m_UnaryOp(unsigned Opc, const Opnd &Op)
auto m_SExt(const Opnd &Op)
BinaryOpc_match< LHS, RHS, true > m_Xor(const LHS &L, const RHS &R)
Opcode_match m_Undef()
auto m_SMinLike(const LHS &L, const RHS &R)
BinaryOpc_match< LHS, RHS > m_SRem(const LHS &L, const RHS &R)
auto m_NoneOf(const Preds &...preds)
CondCode_match m_SpecificCondCode(ISD::CondCode CC)
Match a conditional code SDNode with a specific ISD::CondCode.
UnaryOpc_match< Opnd > m_ZExt(const Opnd &Op)
Value_match m_Value()
Match any valid SDValue.
BinaryOpc_match< LHS, RHS, true > m_Add(const LHS &L, const RHS &R)
auto m_SpecificVectorElementVT(EVT RefVT, const Pattern &P)
Match a vector ValueType.
BinaryOpc_match< LHS, RHS > m_Shl(const LHS &L, const RHS &R)
auto m_LegalOp(const Pattern &P)
Match legal SDNodes based on the information provided by TargetLowering.
auto m_BitwiseLogic(const LHS &L, const RHS &R)
auto m_True()
Match true boolean value based on the information provided by TargetLowering.
UnaryOpc_match< Opnd > m_Ctpop(const Opnd &Op)
ReassociatableOpc_match< PatternTs... > m_ReassociatableAnd(const PatternTs &...Patterns)
UnaryOpc_match< Opnd > m_FPToSI(const Opnd &Op)
NUses_match< 1, Value_match > m_OneUse()
auto m_False()
Match false boolean value based on the information provided by TargetLowering.
auto m_SExtOrSelf(const Opnd &Op)
Match a sext or identity Allows to peek through optional extensions.
CondCode_match m_CondCode()
Match any conditional code SDNode.
BinaryOpc_match< LHS, RHS, true > m_c_BinOp(unsigned Opc, const LHS &L, const RHS &R)
Not(const Pred &P) -> Not< Pred >
DeferredValue_match m_Deferred(SDValue &V)
Similar to m_Specific, but the specific value to match is determined by another sub-pattern in the sa...
TernaryOpc_match< T0_P, T1_P, T2_P, true, false > m_c_SetCC(const T0_P &LHS, const T1_P &RHS, const T2_P &CC)
bool sd_context_match(SDValue N, const MatchContext &Ctx, Pattern &&P)
BinaryOpc_match< LHS, RHS, true > m_FMul(const LHS &L, const RHS &R)
BinaryOpc_match< V1_t, V2_t > m_Shuffle(const V1_t &v1, const V2_t &v2)
ConstantInt_match m_ConstInt()
Match any integer constants or splat of an integer constant.
auto m_ZExtOrSelf(const Opnd &Op)
Match a zext or identity Allows to peek through optional extensions.
This is an optimization pass for GlobalISel generic memory operations.
@ Offset
Definition DWP.cpp:477
auto size(R &&Range, std::enable_if_t< std::is_base_of< std::random_access_iterator_tag, typename std::iterator_traits< decltype(Range.begin())>::iterator_category >::value, void > *=nullptr)
Get the size of a range.
Definition STLExtras.h:1657
LLVM_ABI bool isAllOnesOrAllOnesSplat(const MachineInstr &MI, const MachineRegisterInfo &MRI, bool AllowUndefs=false)
Return true if the value is a constant -1 integer or a splatted vector of a constant -1 integer (with...
Definition Utils.cpp:1607
decltype(auto) dyn_cast(const From &Val)
dyn_cast<X> - Return the argument parameter cast to the specified type.
Definition Casting.h:649
auto dyn_cast_or_null(const Y &Val)
Definition Casting.h:759
@ Sub
Subtraction of integers.
DWARFExpression::Operation Op
OutputIt move(R &&Range, OutputIt Out)
Provide wrappers to std::move which take ranges instead of having to pass begin/end explicitly.
Definition STLExtras.h:1847
decltype(auto) cast(const From &Val)
cast<X> - Return the argument parameter cast to the specified type.
Definition Casting.h:565
LLVM_ABI bool isZeroOrZeroSplat(SDValue N, bool AllowUndefs=false)
Return true if the value is a constant 0 integer or a splatted vector of a constant 0 integer (with n...
LLVM_ABI bool isOnesOrOnesSplat(SDValue N, bool AllowUndefs=false)
Return true if the value is a constant 1 integer or a splatted vector of a constant 1 integer (with n...
Implement std::hash so that hash_code can be used in STL containers.
Definition BitVector.h:851
#define N
Extended Value Type.
Definition ValueTypes.h:35
These are IR-level optimization flags that may be propagated to SDNodes.
bool match(const MatchContext &, SDValue N)
And(const Pred &p, const Preds &...preds)
bool match(const MatchContext &Ctx, SDValue N)
bool match(const MatchContext &, SDValue N)
bool match(const MatchContext &Ctx, SDValue N)
BinaryOpc_match(unsigned Opc, const LHS_P &L, const RHS_P &R, SDNodeFlags Flgs=SDNodeFlags())
bool match(const MatchContext &, SDValue N)
std::optional< ISD::CondCode > CCToMatch
bool match(const MatchContext &, SDValue N)
bool match(const MatchContext &, SDValue N)
EffectiveOperands(SDValue N, const MatchContext &Ctx)
Provide number of operands that are not chain or glue, as well as the first index of such operand.
EffectiveOperands(SDValue N, const MatchContext &Ctx)
MaxMin_match(const LHS_P &L, const RHS_P &R)
bool match(const MatchContext &Ctx, SDValue N)
bool match(const MatchContext &Ctx, SDValue N)
bool match(const MatchContext &Ctx, SDValue N)
bool match(const MatchContext &, SDValue N)
bool match(const MatchContext &Ctx, SDValue N)
Operands_match(const OpndPred &p, const OpndPreds &...preds)
bool match(const MatchContext &Ctx, SDValue N)
Or(const Pred &p, const Preds &...preds)
bool match(const MatchContext &Ctx, SDValue N)
bool match(const MatchContext &, SDValue N)
bool match(const MatchContext &Ctx, SDValue N)
bool reassociatableMatchHelper(const ArrayRef< SmallBitVector > Matches, SmallBitVector &Used, size_t Curr=0)
void collectLeaves(SDValue V, SmallVector< SDValue > &Leaves)
ReassociatableOpc_match(unsigned Opcode, const PatternTs &...Patterns)
bool match(const MatchContext &Ctx, SDValue N)
Matching while capturing mask.
bool match(const MatchContext &Ctx, SDValue N)
SDShuffle_match(const T0 &Op1, const T1 &Op2, const T2 &Mask)
bool match(const MatchContext &Ctx, SDValue N)
Switch to a different MatchContext for subsequent patterns.
bool match(const OrigMatchContext &, SDValue N)
bool match(const MatchContext &Ctx, SDValue N)
TLI_pred_match(const PredFuncT &Pred, const Pattern &P)
bool match(const MatchContext &Ctx, SDValue N)
TernaryOpc_match(unsigned Opc, const T0_P &Op0, const T1_P &Op1, const T2_P &Op2)
std::optional< SDNodeFlags > Flags
UnaryOpc_match(unsigned Opc, const Opnd_P &Op, std::optional< SDNodeFlags > Flgs=std::nullopt)
bool match(const MatchContext &Ctx, SDValue N)
bool match(const MatchContext &, SDValue N)
ValueType_match(const PredFuncT &Pred, const Pattern &P)
bool match(const MatchContext &Ctx, SDValue N)
bool match(const MatchContext &, SDValue N)
bool match(const MatchContext &, SDValue N)
bool match(const MatchContext &, SDValue N) const
bool match(ArrayRef< int > Mask)
m_Mask(ArrayRef< int > &MaskRef)
m_SpecificMask(ArrayRef< int > MaskRef)
bool match(ArrayRef< int > Mask)
static bool match(ISD::CondCode Cond)
static bool match(ISD::CondCode Cond)
static bool match(ISD::CondCode Cond)
static bool match(ISD::CondCode Cond)