LLVM 24.0.0git
ConstantFolding.cpp
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1//===-- ConstantFolding.cpp - Fold instructions into constants ------------===//
2//
3// Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions.
4// See https://llvm.org/LICENSE.txt for license information.
5// SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
6//
7//===----------------------------------------------------------------------===//
8//
9// This file defines routines for folding instructions into constants.
10//
11// Also, to supplement the basic IR ConstantExpr simplifications,
12// this file defines some additional folding routines that can make use of
13// DataLayout information. These functions cannot go in IR due to library
14// dependency issues.
15//
16//===----------------------------------------------------------------------===//
17
19#include "llvm/ADT/APFloat.h"
20#include "llvm/ADT/APInt.h"
21#include "llvm/ADT/APSInt.h"
22#include "llvm/ADT/ArrayRef.h"
23#include "llvm/ADT/DenseMap.h"
24#include "llvm/ADT/STLExtras.h"
27#include "llvm/ADT/StringRef.h"
32#include "llvm/Config/config.h"
33#include "llvm/IR/Constant.h"
35#include "llvm/IR/Constants.h"
36#include "llvm/IR/DataLayout.h"
38#include "llvm/IR/Function.h"
39#include "llvm/IR/GlobalValue.h"
41#include "llvm/IR/InstrTypes.h"
42#include "llvm/IR/Instruction.h"
45#include "llvm/IR/Intrinsics.h"
46#include "llvm/IR/IntrinsicsAArch64.h"
47#include "llvm/IR/IntrinsicsAMDGPU.h"
48#include "llvm/IR/IntrinsicsARM.h"
49#include "llvm/IR/IntrinsicsNVPTX.h"
50#include "llvm/IR/IntrinsicsWebAssembly.h"
51#include "llvm/IR/IntrinsicsX86.h"
53#include "llvm/IR/Operator.h"
54#include "llvm/IR/Type.h"
55#include "llvm/IR/Value.h"
59#include <cassert>
60#include <cerrno>
61#include <cfenv>
62#include <cmath>
63#include <cstdint>
64
65using namespace llvm;
66
68 "disable-fp-call-folding",
69 cl::desc("Disable constant-folding of FP intrinsics and libcalls."),
70 cl::init(false), cl::Hidden);
71
72namespace {
73
74//===----------------------------------------------------------------------===//
75// Constant Folding internal helper functions
76//===----------------------------------------------------------------------===//
77
78static Constant *foldConstVectorToAPInt(APInt &Result, Type *DestTy,
79 Constant *C, Type *SrcEltTy,
80 unsigned NumSrcElts,
81 const DataLayout &DL) {
82 // Now that we know that the input value is a vector of integers, just shift
83 // and insert them into our result.
84 unsigned BitShift = DL.getTypeSizeInBits(SrcEltTy);
85 for (unsigned i = 0; i != NumSrcElts; ++i) {
86 Constant *Element;
87 if (DL.isLittleEndian())
88 Element = C->getAggregateElement(NumSrcElts - i - 1);
89 else
90 Element = C->getAggregateElement(i);
91
92 if (isa_and_nonnull<UndefValue>(Element)) {
93 Result <<= BitShift;
94 continue;
95 }
96
97 auto *ElementCI = dyn_cast_or_null<ConstantInt>(Element);
98 if (!ElementCI)
99 return ConstantExpr::getBitCast(C, DestTy);
100
101 Result <<= BitShift;
102 Result |= ElementCI->getValue().zext(Result.getBitWidth());
103 }
104
105 return nullptr;
106}
107
108/// Check whether folding this bitcast into a byte vector would mix poison and
109/// non-poison bits in the same output lane. While integer types track poison on
110/// a per-value basis, byte types track it on a per-bit basis. However,
111/// `ConstantByte` cannot represent values with both poison and non-poison bits.
112///
113/// Source elements are grouped by the output lane they map to. Returns true if
114/// any group contains both poison and non-poison elements.
115static bool foldMixesPoisonBits(Constant *C, unsigned NumSrcElt,
116 unsigned NumDstElt) {
117 // If element counts don't divide evenly, bail out if a poison source element
118 // might span multiple destination lanes.
119 if (NumSrcElt % NumDstElt != 0)
120 return C->containsPoisonElement();
121 unsigned Ratio = NumSrcElt / NumDstElt;
122 for (unsigned i = 0; i != NumSrcElt; i += Ratio) {
123 bool HasPoison = false;
124 bool HasNonPoison = false;
125 for (unsigned j = 0; j != Ratio; ++j) {
126 Constant *Src = C->getAggregateElement(i + j);
127 // Conservatively bail out.
128 if (!Src)
129 return true;
130 if (isa<PoisonValue>(Src))
131 HasPoison = true;
132 else
133 HasNonPoison = true;
134 }
135 if (HasPoison && HasNonPoison)
136 return true;
137 }
138 return false;
139}
140
141/// Track which destination lanes of a bitcast are produced from poison bytes.
142/// A destination lane is marked if any source element mapped to it is poison.
143/// Returns false if an aggregate element cannot be inspected. The caller should
144/// bail out of folding.
145static bool computePoisonDstLanes(Constant *C, unsigned NumSrcElt,
146 unsigned NumDstElt,
147 SmallBitVector &PoisonDstElts) {
148 // If element counts don't divide evenly, bail out if a poison source element
149 // might span multiple destination lanes.
150 if ((NumDstElt < NumSrcElt ? NumSrcElt % NumDstElt : NumDstElt % NumSrcElt))
151 return !C->containsPoisonElement();
152 if (NumDstElt < NumSrcElt) {
153 unsigned Ratio = NumSrcElt / NumDstElt;
154 for (unsigned i = 0; i != NumDstElt; ++i) {
155 for (unsigned j = 0; j != Ratio; ++j) {
156 Constant *Src = C->getAggregateElement(i * Ratio + j);
157 if (!Src)
158 return false;
159 if (isa<PoisonValue>(Src)) {
160 PoisonDstElts[i] = true;
161 break;
162 }
163 }
164 }
165 } else {
166 unsigned Ratio = NumDstElt / NumSrcElt;
167 for (unsigned i = 0; i != NumSrcElt; ++i) {
168 Constant *Src = C->getAggregateElement(i);
169 if (!Src)
170 return false;
171 if (isa<PoisonValue>(Src))
172 PoisonDstElts.set(i * Ratio, (i + 1) * Ratio);
173 }
174 }
175 return true;
176}
177
178/// Constant fold bitcast, symbolically evaluating it with DataLayout.
179/// This always returns a non-null constant, but it may be a
180/// ConstantExpr if unfoldable.
181Constant *FoldBitCast(Constant *C, Type *DestTy, const DataLayout &DL) {
182 assert(CastInst::castIsValid(Instruction::BitCast, C, DestTy) &&
183 "Invalid constantexpr bitcast!");
184
185 // Catch the obvious splat cases.
186 if (Constant *Res = ConstantFoldLoadFromUniformValue(C, DestTy, DL))
187 return Res;
188
189 if (auto *VTy = dyn_cast<VectorType>(C->getType())) {
190 // Handle a vector->scalar integer/fp cast.
191 if (isa<IntegerType>(DestTy) || DestTy->isFloatingPointTy()) {
192 unsigned NumSrcElts = cast<FixedVectorType>(VTy)->getNumElements();
193 Type *SrcEltTy = VTy->getElementType();
194
195 // Bitcasting a byte containing any poison bit to an integer or fp type
196 // yields poison.
197 if (SrcEltTy->isByteTy() && C->containsPoisonElement())
198 return PoisonValue::get(DestTy);
199
200 // If the vector is a vector of floating point or bytes, convert it to a
201 // vector of int to simplify things.
202 if (SrcEltTy->isFloatingPointTy() || SrcEltTy->isByteTy()) {
203 unsigned Width = SrcEltTy->getPrimitiveSizeInBits();
204 auto *SrcIVTy = FixedVectorType::get(
205 IntegerType::get(C->getContext(), Width), NumSrcElts);
206 // Ask IR to do the conversion now that #elts line up.
207 C = ConstantExpr::getBitCast(C, SrcIVTy);
208 }
209
210 APInt Result(DL.getTypeSizeInBits(DestTy), 0);
211 if (Constant *CE = foldConstVectorToAPInt(Result, DestTy, C,
212 SrcEltTy, NumSrcElts, DL))
213 return CE;
214
215 if (isa<IntegerType>(DestTy))
216 return ConstantInt::get(DestTy, Result);
217
218 APFloat FP(DestTy->getFltSemantics(), Result);
219 return ConstantFP::get(DestTy->getContext(), FP);
220 }
221 }
222
223 // The code below only handles casts to vectors currently.
224 auto *DestVTy = dyn_cast<VectorType>(DestTy);
225 if (!DestVTy)
226 return ConstantExpr::getBitCast(C, DestTy);
227
228 // If this is a scalar -> vector cast, convert the input into a <1 x scalar>
229 // vector so the code below can handle it uniformly.
230 if (!isa<VectorType>(C->getType()) &&
232 Constant *Ops = C; // don't take the address of C!
233 return FoldBitCast(ConstantVector::get(Ops), DestTy, DL);
234 }
235
236 // Some of what follows may extend to cover scalable vectors but the current
237 // implementation is fixed length specific.
238 if (!isa<FixedVectorType>(C->getType()))
239 return ConstantExpr::getBitCast(C, DestTy);
240
241 // If this is a bitcast from constant vector -> vector, fold it.
244 return ConstantExpr::getBitCast(C, DestTy);
245
246 // If the element types match, IR can fold it.
247 unsigned NumDstElt = cast<FixedVectorType>(DestVTy)->getNumElements();
248 unsigned NumSrcElt = cast<FixedVectorType>(C->getType())->getNumElements();
249 if (NumDstElt == NumSrcElt)
250 return ConstantExpr::getBitCast(C, DestTy);
251
252 Type *SrcEltTy = cast<VectorType>(C->getType())->getElementType();
253 Type *DstEltTy = DestVTy->getElementType();
254
255 // Otherwise, we're changing the number of elements in a vector, which
256 // requires endianness information to do the right thing. For example,
257 // bitcast (<2 x i64> <i64 0, i64 1> to <4 x i32>)
258 // folds to (little endian):
259 // <4 x i32> <i32 0, i32 0, i32 1, i32 0>
260 // and to (big endian):
261 // <4 x i32> <i32 0, i32 0, i32 0, i32 1>
262
263 // First thing is first. We only want to think about integer here, so if
264 // we have something in FP form, recast it as integer.
265 if (DstEltTy->isFloatingPointTy()) {
266 // Fold to an vector of integers with same size as our FP type.
267 unsigned FPWidth = DstEltTy->getPrimitiveSizeInBits();
268 auto *DestIVTy = FixedVectorType::get(
269 IntegerType::get(C->getContext(), FPWidth), NumDstElt);
270 // Recursively handle this integer conversion, if possible.
271 C = FoldBitCast(C, DestIVTy, DL);
272
273 // Finally, IR can handle this now that #elts line up.
274 return ConstantExpr::getBitCast(C, DestTy);
275 }
276
277 // Handle byte destination type by folding through integers.
278 if (DstEltTy->isByteTy()) {
279 // When combining elements into larger byte values, bail out if the fold
280 // mixes poison and non-poison bits in the same destination element. Byte
281 // types track poison per bit, and no constant value can represent that.
282 if (NumDstElt < NumSrcElt && foldMixesPoisonBits(C, NumSrcElt, NumDstElt))
283 return ConstantExpr::getBitCast(C, DestTy);
284
285 // Fold to a vector of integers with same size as the byte type.
286 unsigned ByteWidth = DstEltTy->getPrimitiveSizeInBits();
287 auto *DestIVTy = FixedVectorType::get(
288 IntegerType::get(C->getContext(), ByteWidth), NumDstElt);
289 C = FoldBitCast(C, DestIVTy, DL);
290 return ConstantExpr::getBitCast(C, DestTy);
291 }
292
293 // Okay, we know the destination is integer, if the input is FP, convert
294 // it to integer first.
295 if (SrcEltTy->isFloatingPointTy()) {
296 unsigned FPWidth = SrcEltTy->getPrimitiveSizeInBits();
297 auto *SrcIVTy = FixedVectorType::get(
298 IntegerType::get(C->getContext(), FPWidth), NumSrcElt);
299 // Ask IR to do the conversion now that #elts line up.
300 C = ConstantExpr::getBitCast(C, SrcIVTy);
301 assert((isa<ConstantVector>(C) || // FIXME: Remove ConstantVector.
303 "Constant folding cannot fail for plain fp->int bitcast!");
304 }
305
306 // Handle byte source type by folding through integers. Byte types track
307 // poison per bit, so any poison bit makes the destination lane poison.
308 // Record which destination lanes contain poison bits, before the generic
309 // fold below refines them to undef/zero, so they can be restored.
310 SmallBitVector PoisonDstElts(NumDstElt);
311 if (SrcEltTy->isByteTy()) {
312 if (!computePoisonDstLanes(C, NumSrcElt, NumDstElt, PoisonDstElts))
313 return ConstantExpr::getBitCast(C, DestTy);
314
315 unsigned ByteWidth = SrcEltTy->getPrimitiveSizeInBits();
316 auto *SrcIVTy = FixedVectorType::get(
317 IntegerType::get(C->getContext(), ByteWidth), NumSrcElt);
318 // Ask IR to do the conversion now that #elts line up.
319 C = ConstantExpr::getBitCast(C, SrcIVTy);
320 assert((isa<ConstantVector>(C) || // FIXME: Remove ConstantVector.
322 "Constant folding cannot fail for plain byte->int bitcast!");
323 }
324
325 // Now we know that the input and output vectors are both integer vectors
326 // of the same size, and that their #elements is not the same.
327 // Use data buffer for easy non-integer element ratio vectors handling,
328 // For example: <4 x i24> to <3 x i32>.
329 bool isLittleEndian = DL.isLittleEndian();
330 unsigned SrcBitSize = SrcEltTy->getPrimitiveSizeInBits();
331 unsigned DstBitSize = DstEltTy->getPrimitiveSizeInBits();
333 unsigned SrcElt = 0;
334
335 APInt Buffer(2 * std::max(SrcBitSize, DstBitSize), 0);
336 APInt UndefMask(Buffer.getBitWidth(), 0);
337 APInt PoisonMask(Buffer.getBitWidth(), 0);
338 unsigned BufferBitSize = 0;
339
340 while (Result.size() != NumDstElt) {
341 // Load SrcElts into Buffer.
342 while (BufferBitSize < DstBitSize) {
343 Constant *Element = C->getAggregateElement(SrcElt++);
344 if (!Element) // Reject constantexpr elements
345 return ConstantExpr::getBitCast(C, DestTy);
346
347 // Shift Buffer & Masks to fit next SrcElt.
348 if (!isLittleEndian) {
349 Buffer <<= SrcBitSize;
350 UndefMask <<= SrcBitSize;
351 PoisonMask <<= SrcBitSize;
352 }
353
354 APInt SrcValue;
355 unsigned BitPosition = isLittleEndian ? BufferBitSize : 0;
356 if (isa<UndefValue>(Element)) {
357 // Set masks fragments bits.
358 UndefMask.setBits(BitPosition, BitPosition + SrcBitSize);
359 if (isa<PoisonValue>(Element))
360 PoisonMask.setBits(BitPosition, BitPosition + SrcBitSize);
361 SrcValue = APInt::getZero(SrcBitSize);
362 } else {
363 auto *Src = dyn_cast<ConstantInt>(Element);
364 if (!Src)
365 return ConstantExpr::getBitCast(C, DestTy);
366 SrcValue = Src->getValue();
367 }
368
369 // Insert src element bits into Buffer on correct position.
370 Buffer.insertBits(SrcValue, BitPosition);
371 BufferBitSize += SrcBitSize;
372 }
373
374 // Create DstElts from Buffer.
375 while (BufferBitSize >= DstBitSize) {
376 unsigned ShiftAmt = isLittleEndian ? 0 : BufferBitSize - DstBitSize;
377 // Emit undef/poison, if all undef mask fragment bits are set.
378 if (UndefMask.extractBits(DstBitSize, ShiftAmt).isAllOnes()) {
379 // Push poison, if any bit in poison mask fragment is set.
380 if (!PoisonMask.extractBits(DstBitSize, ShiftAmt).isZero()) {
381 Result.push_back(PoisonValue::get(DstEltTy));
382 } else {
383 Result.push_back(UndefValue::get(DstEltTy));
384 }
385 } else {
386 // Create and push DstElt.
387 APInt Elt = Buffer.extractBits(DstBitSize, ShiftAmt);
388 Result.push_back(ConstantInt::get(DstEltTy, Elt));
389 }
390
391 // Shift unused Buffer fragment to lower bits.
392 if (isLittleEndian) {
393 Buffer.lshrInPlace(DstBitSize);
394 UndefMask.lshrInPlace(DstBitSize);
395 PoisonMask.lshrInPlace(DstBitSize);
396 }
397 BufferBitSize -= DstBitSize;
398 }
399 }
400
401 // Restore destination lanes whose source bytes contained poison bits.
402 for (unsigned I : PoisonDstElts.set_bits())
403 Result[I] = PoisonValue::get(DstEltTy);
404
405 return ConstantVector::get(Result);
406}
407
408} // end anonymous namespace
409
410/// If this constant is a constant offset from a global, return the global and
411/// the constant. Because of constantexprs, this function is recursive.
413 APInt &Offset, const DataLayout &DL,
414 DSOLocalEquivalent **DSOEquiv) {
415 if (DSOEquiv)
416 *DSOEquiv = nullptr;
417
418 // Trivial case, constant is the global.
419 if ((GV = dyn_cast<GlobalValue>(C))) {
420 unsigned BitWidth = DL.getIndexTypeSizeInBits(GV->getType());
421 Offset = APInt(BitWidth, 0);
422 return true;
423 }
424
425 if (auto *FoundDSOEquiv = dyn_cast<DSOLocalEquivalent>(C)) {
426 if (DSOEquiv)
427 *DSOEquiv = FoundDSOEquiv;
428 GV = FoundDSOEquiv->getGlobalValue();
429 unsigned BitWidth = DL.getIndexTypeSizeInBits(GV->getType());
430 Offset = APInt(BitWidth, 0);
431 return true;
432 }
433
434 // Otherwise, if this isn't a constant expr, bail out.
435 auto *CE = dyn_cast<ConstantExpr>(C);
436 if (!CE) return false;
437
438 // Look through ptr->int and ptr->ptr casts.
439 if (CE->getOpcode() == Instruction::PtrToInt ||
440 CE->getOpcode() == Instruction::PtrToAddr)
441 return IsConstantOffsetFromGlobal(CE->getOperand(0), GV, Offset, DL,
442 DSOEquiv);
443
444 // i32* getelementptr ([5 x i32]* @a, i32 0, i32 5)
445 auto *GEP = dyn_cast<GEPOperator>(CE);
446 if (!GEP)
447 return false;
448
449 unsigned BitWidth = DL.getIndexTypeSizeInBits(GEP->getType());
450 APInt TmpOffset(BitWidth, 0);
451
452 // If the base isn't a global+constant, we aren't either.
453 if (!IsConstantOffsetFromGlobal(CE->getOperand(0), GV, TmpOffset, DL,
454 DSOEquiv))
455 return false;
456
457 // Otherwise, add any offset that our operands provide.
458 if (!GEP->accumulateConstantOffset(DL, TmpOffset))
459 return false;
460
461 Offset = TmpOffset;
462 return true;
463}
464
466 const DataLayout &DL) {
467 do {
468 Type *SrcTy = C->getType();
469 if (SrcTy == DestTy)
470 return C;
471
472 TypeSize DestSize = DL.getTypeSizeInBits(DestTy);
473 TypeSize SrcSize = DL.getTypeSizeInBits(SrcTy);
474 if (!TypeSize::isKnownGE(SrcSize, DestSize))
475 return nullptr;
476
477 // Catch the obvious splat cases (since all-zeros can coerce non-integral
478 // pointers legally).
479 if (Constant *Res = ConstantFoldLoadFromUniformValue(C, DestTy, DL))
480 return Res;
481
482 // If the type sizes are the same and a cast is legal, just directly
483 // cast the constant.
484 // But be careful not to coerce non-integral pointers illegally.
485 if (SrcSize == DestSize &&
486 DL.isNonIntegralPointerType(SrcTy->getScalarType()) ==
487 DL.isNonIntegralPointerType(DestTy->getScalarType())) {
488 Instruction::CastOps Cast = Instruction::BitCast;
489 // If we are going from a pointer to int or vice versa, we spell the cast
490 // differently.
491 if (SrcTy->isIntegerTy() && DestTy->isPointerTy())
492 Cast = Instruction::IntToPtr;
493 else if (SrcTy->isPointerTy() && DestTy->isIntegerTy())
494 Cast = Instruction::PtrToInt;
495
496 if (CastInst::castIsValid(Cast, C, DestTy))
497 return ConstantFoldCastOperand(Cast, C, DestTy, DL);
498 }
499
500 // If this isn't an aggregate type, there is nothing we can do to drill down
501 // and find a bitcastable constant.
502 if (!SrcTy->isAggregateType() && !SrcTy->isVectorTy())
503 return nullptr;
504
505 // We're simulating a load through a pointer that was bitcast to point to
506 // a different type, so we can try to walk down through the initial
507 // elements of an aggregate to see if some part of the aggregate is
508 // castable to implement the "load" semantic model.
509 if (SrcTy->isStructTy()) {
510 // Struct types might have leading zero-length elements like [0 x i32],
511 // which are certainly not what we are looking for, so skip them.
512 unsigned Elem = 0;
513 Constant *ElemC;
514 do {
515 ElemC = C->getAggregateElement(Elem++);
516 } while (ElemC && DL.getTypeSizeInBits(ElemC->getType()).isZero());
517 C = ElemC;
518 } else {
519 // For non-byte-sized vector elements, the first element is not
520 // necessarily located at the vector base address.
521 if (auto *VT = dyn_cast<VectorType>(SrcTy))
522 if (!DL.typeSizeEqualsStoreSize(VT->getElementType()))
523 return nullptr;
524
525 C = C->getAggregateElement(0u);
526 }
527 } while (C);
528
529 return nullptr;
530}
531
532namespace {
533
534/// Recursive helper to read bits out of global. C is the constant being copied
535/// out of. ByteOffset is an offset into C. CurPtr is the pointer to copy
536/// results into and BytesLeft is the number of bytes left in
537/// the CurPtr buffer. DL is the DataLayout. When IsByteLoad is true, do not
538/// unwrap inttoptr constant expressions. The caller would reconstruct those
539/// bits as a ConstantByte, dropping the pointer's provenance.
540bool ReadDataFromGlobal(Constant *C, uint64_t ByteOffset, unsigned char *CurPtr,
541 unsigned BytesLeft, const DataLayout &DL,
542 bool IsByteLoad = false) {
543 assert(ByteOffset <= DL.getTypeAllocSize(C->getType()) &&
544 "Out of range access");
545
546 // Reading type padding, return zero.
547 if (ByteOffset >= DL.getTypeStoreSize(C->getType()))
548 return true;
549
550 // If this element is zero or undefined, we can just return since *CurPtr is
551 // zero initialized.
553 return true;
554
555 auto *CI = dyn_cast<ConstantInt>(C);
556 if (CI && CI->getType()->isIntegerTy()) {
557 if ((CI->getBitWidth() & 7) != 0)
558 return false;
559 const APInt &Val = CI->getValue();
560 unsigned IntBytes = unsigned(CI->getBitWidth()/8);
561
562 for (unsigned i = 0; i != BytesLeft && ByteOffset != IntBytes; ++i) {
563 unsigned n = ByteOffset;
564 if (!DL.isLittleEndian())
565 n = IntBytes - n - 1;
566 CurPtr[i] = Val.extractBits(8, n * 8).getZExtValue();
567 ++ByteOffset;
568 }
569 return true;
570 }
571
572 auto *CFP = dyn_cast<ConstantFP>(C);
573 if (CFP && CFP->getType()->isFloatingPointTy()) {
574 if (CFP->getType()->isDoubleTy()) {
575 C = FoldBitCast(C, Type::getInt64Ty(C->getContext()), DL);
576 return ReadDataFromGlobal(C, ByteOffset, CurPtr, BytesLeft, DL,
577 IsByteLoad);
578 }
579 if (CFP->getType()->isFloatTy()){
580 C = FoldBitCast(C, Type::getInt32Ty(C->getContext()), DL);
581 return ReadDataFromGlobal(C, ByteOffset, CurPtr, BytesLeft, DL,
582 IsByteLoad);
583 }
584 if (CFP->getType()->isHalfTy()){
585 C = FoldBitCast(C, Type::getInt16Ty(C->getContext()), DL);
586 return ReadDataFromGlobal(C, ByteOffset, CurPtr, BytesLeft, DL,
587 IsByteLoad);
588 }
589 return false;
590 }
591
592 if (auto *CS = dyn_cast<ConstantStruct>(C)) {
593 const StructLayout *SL = DL.getStructLayout(CS->getType());
594 unsigned Index = SL->getElementContainingOffset(ByteOffset);
595 uint64_t CurEltOffset = SL->getElementOffset(Index);
596 ByteOffset -= CurEltOffset;
597
598 while (true) {
599 // If the element access is to the element itself and not to tail padding,
600 // read the bytes from the element.
601 uint64_t EltSize = DL.getTypeAllocSize(CS->getOperand(Index)->getType());
602
603 if (ByteOffset < EltSize &&
604 !ReadDataFromGlobal(CS->getOperand(Index), ByteOffset, CurPtr,
605 BytesLeft, DL, IsByteLoad))
606 return false;
607
608 ++Index;
609
610 // Check to see if we read from the last struct element, if so we're done.
611 if (Index == CS->getType()->getNumElements())
612 return true;
613
614 // If we read all of the bytes we needed from this element we're done.
615 uint64_t NextEltOffset = SL->getElementOffset(Index);
616
617 if (BytesLeft <= NextEltOffset - CurEltOffset - ByteOffset)
618 return true;
619
620 // Move to the next element of the struct.
621 CurPtr += NextEltOffset - CurEltOffset - ByteOffset;
622 BytesLeft -= NextEltOffset - CurEltOffset - ByteOffset;
623 ByteOffset = 0;
624 CurEltOffset = NextEltOffset;
625 }
626 // not reached.
627 }
628
632 uint64_t NumElts, EltSize;
633 Type *EltTy;
634 if (auto *AT = dyn_cast<ArrayType>(C->getType())) {
635 NumElts = AT->getNumElements();
636 EltTy = AT->getElementType();
637 EltSize = DL.getTypeAllocSize(EltTy);
638 } else {
639 NumElts = cast<FixedVectorType>(C->getType())->getNumElements();
640 EltTy = cast<FixedVectorType>(C->getType())->getElementType();
641 // TODO: For non-byte-sized vectors, current implementation assumes there is
642 // padding to the next byte boundary between elements.
643 if (!DL.typeSizeEqualsStoreSize(EltTy))
644 return false;
645
646 EltSize = DL.getTypeStoreSize(EltTy);
647 }
648 uint64_t Index = ByteOffset / EltSize;
649 uint64_t Offset = ByteOffset - Index * EltSize;
650
651 for (; Index != NumElts; ++Index) {
652 if (!ReadDataFromGlobal(C->getAggregateElement(Index), Offset, CurPtr,
653 BytesLeft, DL, IsByteLoad))
654 return false;
655
656 uint64_t BytesWritten = EltSize - Offset;
657 assert(BytesWritten <= EltSize && "Not indexing into this element?");
658 if (BytesWritten >= BytesLeft)
659 return true;
660
661 Offset = 0;
662 BytesLeft -= BytesWritten;
663 CurPtr += BytesWritten;
664 }
665 return true;
666 }
667
668 if (auto *CE = dyn_cast<ConstantExpr>(C)) {
669 if (CE->getOpcode() == Instruction::IntToPtr &&
670 CE->getOperand(0)->getType() == DL.getIntPtrType(CE->getType())) {
671 // Folding byte loads through the integer operand would rebuild the result
672 // as a `ConstantByte`, dropping the pointer's provenance.
673 if (IsByteLoad)
674 return false;
675 return ReadDataFromGlobal(CE->getOperand(0), ByteOffset, CurPtr,
676 BytesLeft, DL, IsByteLoad);
677 }
678 }
679
680 // Otherwise, unknown initializer type.
681 return false;
682}
683
684/// OrigLoadTy is the original type being loaded, while LoadTy is the type
685/// currently being folded (which may be integer type mapped from OrigLoadTy).
686Constant *FoldReinterpretLoadFromConst(Constant *C, Type *LoadTy,
687 Type *OrigLoadTy, int64_t Offset,
688 const DataLayout &DL) {
689 // Bail out early. Not expect to load from scalable global variable.
690 if (isa<ScalableVectorType>(LoadTy))
691 return nullptr;
692
693 auto *IntType = dyn_cast<IntegerType>(LoadTy);
694
695 // If this isn't an integer load we can't fold it directly.
696 if (!IntType) {
697 // If this is a non-integer load, we can try folding it as an int load and
698 // then bitcast the result. This can be useful for union cases. Note
699 // that address spaces don't matter here since we're not going to result in
700 // an actual new load.
701 if (!LoadTy->isFloatingPointTy() && !LoadTy->isPointerTy() &&
702 !LoadTy->isByteTy() && !LoadTy->isVectorTy())
703 return nullptr;
704
705 Type *MapTy = Type::getIntNTy(C->getContext(),
706 DL.getTypeSizeInBits(LoadTy).getFixedValue());
707 if (Constant *Res =
708 FoldReinterpretLoadFromConst(C, MapTy, OrigLoadTy, Offset, DL)) {
709 if (Res->isNullValue() && !LoadTy->isX86_AMXTy())
710 // Materializing a zero can be done trivially without a bitcast
711 return Constant::getNullValue(LoadTy);
712 Type *CastTy = LoadTy->isPtrOrPtrVectorTy() ? DL.getIntPtrType(LoadTy) : LoadTy;
713 Res = FoldBitCast(Res, CastTy, DL);
714 if (LoadTy->isPtrOrPtrVectorTy()) {
715 // For vector of pointer, we needed to first convert to a vector of integer, then do vector inttoptr
716 if (Res->isNullValue() && !LoadTy->isX86_AMXTy())
717 return Constant::getNullValue(LoadTy);
718 if (DL.isNonIntegralPointerType(LoadTy->getScalarType()))
719 // Be careful not to replace a load of an addrspace value with an inttoptr here
720 return nullptr;
721 Res = ConstantExpr::getIntToPtr(Res, LoadTy);
722 }
723 return Res;
724 }
725 return nullptr;
726 }
727
728 unsigned BytesLoaded = (IntType->getBitWidth() + 7) / 8;
729 // Allow folding of large type loads (e.g. <16 x double>).
730 if (BytesLoaded > 128 || BytesLoaded == 0)
731 return nullptr;
732
733 // For scalar integer load, use smaller limit to avoid regression during
734 // memcmp expansion. Codegen may generate inefficient string operations.
735 if (BytesLoaded > 32 && OrigLoadTy->isIntegerTy())
736 return nullptr;
737
738 // If we're not accessing anything in this constant, the result is undefined.
739 if (Offset <= -1 * static_cast<int64_t>(BytesLoaded))
740 return PoisonValue::get(IntType);
741
742 // TODO: We should be able to support scalable types.
743 TypeSize InitializerSize = DL.getTypeAllocSize(C->getType());
744 if (InitializerSize.isScalable())
745 return nullptr;
746
747 // If we're not accessing anything in this constant, the result is undefined.
748 if (Offset >= (int64_t)InitializerSize.getFixedValue())
749 return PoisonValue::get(IntType);
750
751 SmallVector<unsigned char, 64> RawBytes(BytesLoaded);
752 unsigned char *CurPtr = RawBytes.data();
753 unsigned BytesLeft = BytesLoaded;
754
755 // If we're loading off the beginning of the global, some bytes may be valid.
756 if (Offset < 0) {
757 CurPtr += -Offset;
758 BytesLeft += Offset;
759 Offset = 0;
760 }
761
762 if (!ReadDataFromGlobal(C, Offset, CurPtr, BytesLeft, DL,
763 /*IsByteLoad=*/OrigLoadTy->isByteOrByteVectorTy()))
764 return nullptr;
765
766 APInt ResultVal = APInt(IntType->getBitWidth(), 0);
767 if (DL.isLittleEndian()) {
768 ResultVal = RawBytes[BytesLoaded - 1];
769 for (unsigned i = 1; i != BytesLoaded; ++i) {
770 ResultVal <<= 8;
771 ResultVal |= RawBytes[BytesLoaded - 1 - i];
772 }
773 } else {
774 ResultVal = RawBytes[0];
775 for (unsigned i = 1; i != BytesLoaded; ++i) {
776 ResultVal <<= 8;
777 ResultVal |= RawBytes[i];
778 }
779 }
780
781 return ConstantInt::get(IntType->getContext(), ResultVal);
782}
783
784} // anonymous namespace
785
786// If GV is a constant with an initializer read its representation starting
787// at Offset and return it as a constant array of unsigned char. Otherwise
788// return null.
790 uint64_t Offset) {
791 if (!GV->isConstant() || !GV->hasDefinitiveInitializer())
792 return nullptr;
793
794 const DataLayout &DL = GV->getDataLayout();
795 Constant *Init = const_cast<Constant *>(GV->getInitializer());
796 TypeSize InitSize = DL.getTypeAllocSize(Init->getType());
797 if (InitSize < Offset)
798 return nullptr;
799
800 uint64_t NBytes = InitSize - Offset;
801 if (NBytes > UINT16_MAX)
802 // Bail for large initializers in excess of 64K to avoid allocating
803 // too much memory.
804 // Offset is assumed to be less than or equal than InitSize (this
805 // is enforced in ReadDataFromGlobal).
806 return nullptr;
807
808 SmallVector<unsigned char, 256> RawBytes(static_cast<size_t>(NBytes));
809 unsigned char *CurPtr = RawBytes.data();
810
811 if (!ReadDataFromGlobal(Init, Offset, CurPtr, NBytes, DL))
812 return nullptr;
813
814 return ConstantDataArray::get(GV->getContext(), RawBytes);
815}
816
817/// If this Offset points exactly to the start of an aggregate element, return
818/// that element, otherwise return nullptr.
820 const DataLayout &DL) {
821 if (Offset.isZero())
822 return Base;
823
825 return nullptr;
826
827 Type *ElemTy = Base->getType();
828 SmallVector<APInt> Indices = DL.getGEPIndicesForOffset(ElemTy, Offset);
829 if (!Offset.isZero() || !Indices[0].isZero())
830 return nullptr;
831
832 Constant *C = Base;
833 for (const APInt &Index : drop_begin(Indices)) {
834 if (Index.isNegative() || Index.getActiveBits() >= 32)
835 return nullptr;
836
837 C = C->getAggregateElement(Index.getZExtValue());
838 if (!C)
839 return nullptr;
840 }
841
842 return C;
843}
844
846 const APInt &Offset,
847 const DataLayout &DL) {
848 if (Constant *AtOffset = getConstantAtOffset(C, Offset, DL))
849 if (Constant *Result = ConstantFoldLoadThroughBitcast(AtOffset, Ty, DL))
850 return Result;
851
852 // Explicitly check for out-of-bounds access, so we return poison even if the
853 // constant is a uniform value.
854 TypeSize Size = DL.getTypeAllocSize(C->getType());
855 if (!Size.isScalable() && Offset.sge(Size.getFixedValue()))
856 return PoisonValue::get(Ty);
857
858 // Try an offset-independent fold of a uniform value.
859 if (Constant *Result = ConstantFoldLoadFromUniformValue(C, Ty, DL))
860 return Result;
861
862 // Try hard to fold loads from bitcasted strange and non-type-safe things.
863 if (Offset.getSignificantBits() <= 64)
864 if (Constant *Result =
865 FoldReinterpretLoadFromConst(C, Ty, Ty, Offset.getSExtValue(), DL))
866 return Result;
867
868 return nullptr;
869}
870
875
878 const DataLayout &DL) {
879 // We can only fold loads from constant globals with a definitive initializer.
880 // Check this upfront, to skip expensive offset calculations.
882 if (!GV || !GV->isConstant() || !GV->hasDefinitiveInitializer())
883 return nullptr;
884
885 C = cast<Constant>(C->stripAndAccumulateConstantOffsets(
886 DL, Offset, /* AllowNonInbounds */ true));
887
888 if (C == GV)
889 if (Constant *Result = ConstantFoldLoadFromConst(GV->getInitializer(), Ty,
890 Offset, DL))
891 return Result;
892
893 // If this load comes from anywhere in a uniform constant global, the value
894 // is always the same, regardless of the loaded offset.
895 return ConstantFoldLoadFromUniformValue(GV->getInitializer(), Ty, DL);
896}
897
899 const DataLayout &DL) {
900 APInt Offset(DL.getIndexTypeSizeInBits(C->getType()), 0);
901 return ConstantFoldLoadFromConstPtr(C, Ty, std::move(Offset), DL);
902}
903
905 const DataLayout &DL) {
906 if (isa<PoisonValue>(C))
907 return PoisonValue::get(Ty);
908 if (isa<UndefValue>(C))
909 return UndefValue::get(Ty);
910 // If padding is needed when storing C to memory, then it isn't considered as
911 // uniform.
912 if (!DL.typeSizeEqualsStoreSize(C->getType()))
913 return nullptr;
914 if (C->isNullValue() && !Ty->isX86_AMXTy())
915 return Constant::getNullValue(Ty);
916 if (C->isAllOnesValue() &&
917 (Ty->isIntOrIntVectorTy() || Ty->isByteOrByteVectorTy() ||
918 Ty->isFPOrFPVectorTy()))
919 return Constant::getAllOnesValue(Ty);
920 return nullptr;
921}
922
923namespace {
924
925/// One of Op0/Op1 is a constant expression.
926/// Attempt to symbolically evaluate the result of a binary operator merging
927/// these together. If target data info is available, it is provided as DL,
928/// otherwise DL is null.
929Constant *SymbolicallyEvaluateBinop(unsigned Opc, Constant *Op0, Constant *Op1,
930 const DataLayout &DL) {
931 // SROA
932
933 // Fold (and 0xffffffff00000000, (shl x, 32)) -> shl.
934 // Fold (lshr (or X, Y), 32) -> (lshr [X/Y], 32) if one doesn't contribute
935 // bits.
936
937 if (Opc == Instruction::And) {
938 KnownBits Known0 = computeKnownBits(Op0, DL);
939 KnownBits Known1 = computeKnownBits(Op1, DL);
940 if ((Known1.One | Known0.Zero).isAllOnes()) {
941 // All the bits of Op0 that the 'and' could be masking are already zero.
942 return Op0;
943 }
944 if ((Known0.One | Known1.Zero).isAllOnes()) {
945 // All the bits of Op1 that the 'and' could be masking are already zero.
946 return Op1;
947 }
948
949 Known0 &= Known1;
950 if (Known0.isConstant())
951 return ConstantInt::get(Op0->getType(), Known0.getConstant());
952 }
953
954 // If the constant expr is something like &A[123] - &A[4].f, fold this into a
955 // constant. This happens frequently when iterating over a global array.
956 if (Opc == Instruction::Sub) {
957 GlobalValue *GV1, *GV2;
958 APInt Offs1, Offs2;
959
960 if (IsConstantOffsetFromGlobal(Op0, GV1, Offs1, DL))
961 if (IsConstantOffsetFromGlobal(Op1, GV2, Offs2, DL) && GV1 == GV2) {
962 unsigned OpSize = DL.getTypeSizeInBits(Op0->getType());
963
964 // (&GV+C1) - (&GV+C2) -> C1-C2, pointer arithmetic cannot overflow.
965 // PtrToInt may change the bitwidth so we have convert to the right size
966 // first.
967 return ConstantInt::get(Op0->getType(), Offs1.zextOrTrunc(OpSize) -
968 Offs2.zextOrTrunc(OpSize));
969 }
970 }
971
972 return nullptr;
973}
974
975/// If array indices are not pointer-sized integers, explicitly cast them so
976/// that they aren't implicitly casted by the getelementptr.
977Constant *CastGEPIndices(Type *SrcElemTy, ArrayRef<Constant *> Ops,
978 Type *ResultTy, GEPNoWrapFlags NW,
979 std::optional<ConstantRange> InRange,
980 const DataLayout &DL, const TargetLibraryInfo *TLI) {
981 Type *IntIdxTy = DL.getIndexType(ResultTy);
982 Type *IntIdxScalarTy = IntIdxTy->getScalarType();
983
984 bool Any = false;
986 for (unsigned i = 1, e = Ops.size(); i != e; ++i) {
987 if ((i == 1 ||
989 SrcElemTy, Ops.slice(1, i - 1)))) &&
990 Ops[i]->getType()->getScalarType() != IntIdxScalarTy) {
991 Any = true;
992 Type *NewType =
993 Ops[i]->getType()->isVectorTy() ? IntIdxTy : IntIdxScalarTy;
995 CastInst::getCastOpcode(Ops[i], true, NewType, true), Ops[i], NewType,
996 DL);
997 if (!NewIdx)
998 return nullptr;
999 NewIdxs.push_back(NewIdx);
1000 } else
1001 NewIdxs.push_back(Ops[i]);
1002 }
1003
1004 if (!Any)
1005 return nullptr;
1006
1007 Constant *C =
1008 ConstantExpr::getGetElementPtr(SrcElemTy, Ops[0], NewIdxs, NW, InRange);
1009 return ConstantFoldConstant(C, DL, TLI);
1010}
1011
1012/// If we can symbolically evaluate the GEP constant expression, do so.
1013Constant *SymbolicallyEvaluateGEP(const GEPOperator *GEP,
1015 const DataLayout &DL,
1016 const TargetLibraryInfo *TLI) {
1017 Type *SrcElemTy = GEP->getSourceElementType();
1018 Type *ResTy = GEP->getType();
1019 if (!SrcElemTy->isSized() || isa<ScalableVectorType>(SrcElemTy))
1020 return nullptr;
1021
1022 if (Constant *C = CastGEPIndices(SrcElemTy, Ops, ResTy, GEP->getNoWrapFlags(),
1023 GEP->getInRange(), DL, TLI))
1024 return C;
1025
1026 Constant *Ptr = Ops[0];
1027 if (!Ptr->getType()->isPointerTy())
1028 return nullptr;
1029
1030 Type *IntIdxTy = DL.getIndexType(Ptr->getType());
1031
1032 for (unsigned i = 1, e = Ops.size(); i != e; ++i)
1033 if (!isa<ConstantInt>(Ops[i]) || !Ops[i]->getType()->isIntegerTy())
1034 return nullptr;
1035
1036 unsigned BitWidth = DL.getTypeSizeInBits(IntIdxTy);
1037 APInt Offset = APInt(
1038 BitWidth,
1039 DL.getIndexedOffsetInType(
1040 SrcElemTy, ArrayRef((Value *const *)Ops.data() + 1, Ops.size() - 1)),
1041 /*isSigned=*/true, /*implicitTrunc=*/true);
1042
1043 std::optional<ConstantRange> InRange = GEP->getInRange();
1044 if (InRange)
1045 InRange = InRange->sextOrTrunc(BitWidth);
1046
1047 // If this is a GEP of a GEP, fold it all into a single GEP.
1048 GEPNoWrapFlags NW = GEP->getNoWrapFlags();
1049 bool Overflow = false;
1050 while (auto *GEP = dyn_cast<GEPOperator>(Ptr)) {
1051 NW &= GEP->getNoWrapFlags();
1052
1053 SmallVector<Value *, 4> NestedOps(llvm::drop_begin(GEP->operands()));
1054
1055 // Do not try the incorporate the sub-GEP if some index is not a number.
1056 bool AllConstantInt = true;
1057 for (Value *NestedOp : NestedOps)
1058 if (!isa<ConstantInt>(NestedOp)) {
1059 AllConstantInt = false;
1060 break;
1061 }
1062 if (!AllConstantInt)
1063 break;
1064
1065 // Adjust inrange offset and intersect inrange attributes
1066 if (auto GEPRange = GEP->getInRange()) {
1067 auto AdjustedGEPRange = GEPRange->sextOrTrunc(BitWidth).subtract(Offset);
1068 InRange =
1069 InRange ? InRange->intersectWith(AdjustedGEPRange) : AdjustedGEPRange;
1070 }
1071
1072 Ptr = cast<Constant>(GEP->getOperand(0));
1073 SrcElemTy = GEP->getSourceElementType();
1074 Offset = Offset.sadd_ov(
1075 APInt(BitWidth, DL.getIndexedOffsetInType(SrcElemTy, NestedOps),
1076 /*isSigned=*/true, /*implicitTrunc=*/true),
1077 Overflow);
1078 }
1079
1080 // Preserving nusw (without inbounds) also requires that the offset
1081 // additions did not overflow.
1082 if (NW.hasNoUnsignedSignedWrap() && !NW.isInBounds() && Overflow)
1084
1085 // If the base value for this address is a literal integer value, fold the
1086 // getelementptr to the resulting integer value casted to the pointer type.
1087 APInt BaseIntVal(DL.getPointerTypeSizeInBits(Ptr->getType()), 0);
1088 if (auto *CE = dyn_cast<ConstantExpr>(Ptr)) {
1089 if (CE->getOpcode() == Instruction::IntToPtr) {
1090 if (auto *Base = dyn_cast<ConstantInt>(CE->getOperand(0)))
1091 BaseIntVal = Base->getValue().zextOrTrunc(BaseIntVal.getBitWidth());
1092 }
1093 }
1094
1095 if ((Ptr->isNullValue() || BaseIntVal != 0) &&
1096 !DL.mustNotIntroduceIntToPtr(Ptr->getType())) {
1097
1098 // If the index size is smaller than the pointer size, add to the low
1099 // bits only.
1100 BaseIntVal.insertBits(BaseIntVal.trunc(BitWidth) + Offset, 0);
1101 Constant *C = ConstantInt::get(Ptr->getContext(), BaseIntVal);
1102 return ConstantExpr::getIntToPtr(C, ResTy);
1103 }
1104
1105 // Try to infer inbounds for GEPs of globals.
1106 if (!NW.isInBounds() && Offset.isNonNegative()) {
1107 bool CanBeNull;
1108 uint64_t DerefBytes = Ptr->getPointerDereferenceableBytes(
1109 DL, CanBeNull, /*CanBeFreed=*/nullptr);
1110 if (DerefBytes != 0 && !CanBeNull && Offset.sle(DerefBytes))
1112 }
1113
1114 // nusw + nneg -> nuw
1115 if (NW.hasNoUnsignedSignedWrap() && Offset.isNonNegative())
1117
1118 // Otherwise canonicalize this to a single ptradd.
1119 LLVMContext &Ctx = Ptr->getContext();
1120 return ConstantExpr::getPtrAdd(Ptr, ConstantInt::get(Ctx, Offset), NW,
1121 InRange);
1122}
1123
1124/// Attempt to constant fold an instruction with the
1125/// specified opcode and operands. If successful, the constant result is
1126/// returned, if not, null is returned. Note that this function can fail when
1127/// attempting to fold instructions like loads and stores, which have no
1128/// constant expression form.
1129Constant *ConstantFoldInstOperandsImpl(const Value *InstOrCE, unsigned Opcode,
1131 const DataLayout &DL,
1132 const TargetLibraryInfo *TLI,
1133 bool AllowNonDeterministic) {
1134 Type *DestTy = InstOrCE->getType();
1135
1136 if (Instruction::isUnaryOp(Opcode))
1137 return ConstantFoldUnaryOpOperand(Opcode, Ops[0], DL);
1138
1139 if (Instruction::isBinaryOp(Opcode)) {
1140 switch (Opcode) {
1141 default:
1142 break;
1143 case Instruction::FAdd:
1144 case Instruction::FSub:
1145 case Instruction::FMul:
1146 case Instruction::FDiv:
1147 case Instruction::FRem:
1148 // Handle floating point instructions separately to account for denormals
1149 // TODO: If a constant expression is being folded rather than an
1150 // instruction, denormals will not be flushed/treated as zero
1151 if (const auto *I = dyn_cast<Instruction>(InstOrCE)) {
1152 return ConstantFoldFPInstOperands(Opcode, Ops[0], Ops[1], DL, I,
1153 AllowNonDeterministic);
1154 }
1155 }
1156 return ConstantFoldBinaryOpOperands(Opcode, Ops[0], Ops[1], DL);
1157 }
1158
1159 if (Instruction::isCast(Opcode))
1160 return ConstantFoldCastOperand(Opcode, Ops[0], DestTy, DL);
1161
1162 if (auto *GEP = dyn_cast<GEPOperator>(InstOrCE)) {
1163 Type *SrcElemTy = GEP->getSourceElementType();
1165 return nullptr;
1166
1167 if (Constant *C = SymbolicallyEvaluateGEP(GEP, Ops, DL, TLI))
1168 return C;
1169
1170 return ConstantExpr::getGetElementPtr(SrcElemTy, Ops[0], Ops.slice(1),
1171 GEP->getNoWrapFlags(),
1172 GEP->getInRange());
1173 }
1174
1175 if (auto *CE = dyn_cast<ConstantExpr>(InstOrCE))
1176 return CE->getWithOperands(Ops);
1177
1178 switch (Opcode) {
1179 default: return nullptr;
1180 case Instruction::ICmp:
1181 case Instruction::FCmp: {
1182 auto *C = cast<CmpInst>(InstOrCE);
1183 return ConstantFoldCompareInstOperands(C->getPredicate(), Ops[0], Ops[1],
1184 DL, TLI, C);
1185 }
1186 case Instruction::Freeze:
1187 return isGuaranteedNotToBeUndefOrPoison(Ops[0]) ? Ops[0] : nullptr;
1188 case Instruction::Call:
1189 if (auto *F = dyn_cast<Function>(Ops.back())) {
1190 const auto *Call = cast<CallBase>(InstOrCE);
1191 if (canConstantFoldCallTo(Call, F, TLI))
1192 return ConstantFoldCall(Call, F, Ops.slice(0, Ops.size() - 1), TLI,
1193 AllowNonDeterministic);
1194 }
1195 return nullptr;
1196 case Instruction::Select:
1197 return ConstantFoldSelectInstruction(Ops[0], Ops[1], Ops[2]);
1198 case Instruction::ExtractElement:
1200 case Instruction::ExtractValue:
1202 Ops[0], cast<ExtractValueInst>(InstOrCE)->getIndices());
1203 case Instruction::InsertElement:
1204 return ConstantExpr::getInsertElement(Ops[0], Ops[1], Ops[2]);
1205 case Instruction::InsertValue:
1207 Ops[0], Ops[1], cast<InsertValueInst>(InstOrCE)->getIndices());
1208 case Instruction::ShuffleVector:
1210 Ops[0], Ops[1], cast<ShuffleVectorInst>(InstOrCE)->getShuffleMask());
1211 case Instruction::Load: {
1212 const auto *LI = dyn_cast<LoadInst>(InstOrCE);
1213 if (LI->isVolatile())
1214 return nullptr;
1215 return ConstantFoldLoadFromConstPtr(Ops[0], LI->getType(), DL);
1216 }
1217 }
1218}
1219
1220} // end anonymous namespace
1221
1222//===----------------------------------------------------------------------===//
1223// Constant Folding public APIs
1224//===----------------------------------------------------------------------===//
1225
1226namespace {
1227
1228Constant *
1229ConstantFoldConstantImpl(const Constant *C, const DataLayout &DL,
1230 const TargetLibraryInfo *TLI,
1233 return const_cast<Constant *>(C);
1234
1236 for (const Use &OldU : C->operands()) {
1237 Constant *OldC = cast<Constant>(&OldU);
1238 Constant *NewC = OldC;
1239 // Recursively fold the ConstantExpr's operands. If we have already folded
1240 // a ConstantExpr, we don't have to process it again.
1241 if (isa<ConstantVector>(OldC) || isa<ConstantExpr>(OldC)) {
1242 auto It = FoldedOps.find(OldC);
1243 if (It == FoldedOps.end()) {
1244 NewC = ConstantFoldConstantImpl(OldC, DL, TLI, FoldedOps);
1245 FoldedOps.insert({OldC, NewC});
1246 } else {
1247 NewC = It->second;
1248 }
1249 }
1250 Ops.push_back(NewC);
1251 }
1252
1253 if (auto *CE = dyn_cast<ConstantExpr>(C)) {
1254 if (Constant *Res = ConstantFoldInstOperandsImpl(
1255 CE, CE->getOpcode(), Ops, DL, TLI, /*AllowNonDeterministic=*/true))
1256 return Res;
1257 return const_cast<Constant *>(C);
1258 }
1259
1261 return ConstantVector::get(Ops);
1262}
1263
1264} // end anonymous namespace
1265
1267 const DataLayout &DL,
1268 const TargetLibraryInfo *TLI) {
1269 // Handle PHI nodes quickly here...
1270 if (auto *PN = dyn_cast<PHINode>(I)) {
1271 Constant *CommonValue = nullptr;
1272
1274 for (Value *Incoming : PN->incoming_values()) {
1275 // If the incoming value is undef then skip it. Note that while we could
1276 // skip the value if it is equal to the phi node itself we choose not to
1277 // because that would break the rule that constant folding only applies if
1278 // all operands are constants.
1279 if (isa<UndefValue>(Incoming))
1280 continue;
1281 // If the incoming value is not a constant, then give up.
1282 auto *C = dyn_cast<Constant>(Incoming);
1283 if (!C)
1284 return nullptr;
1285 // Fold the PHI's operands.
1286 C = ConstantFoldConstantImpl(C, DL, TLI, FoldedOps);
1287 // If the incoming value is a different constant to
1288 // the one we saw previously, then give up.
1289 if (CommonValue && C != CommonValue)
1290 return nullptr;
1291 CommonValue = C;
1292 }
1293
1294 // If we reach here, all incoming values are the same constant or undef.
1295 return CommonValue ? CommonValue : UndefValue::get(PN->getType());
1296 }
1297
1298 // Scan the operand list, checking to see if they are all constants, if so,
1299 // hand off to ConstantFoldInstOperandsImpl.
1300 if (!all_of(I->operands(), [](const Use &U) { return isa<Constant>(U); }))
1301 return nullptr;
1302
1305 for (const Use &OpU : I->operands()) {
1306 auto *Op = cast<Constant>(&OpU);
1307 // Fold the Instruction's operands.
1308 Op = ConstantFoldConstantImpl(Op, DL, TLI, FoldedOps);
1309 Ops.push_back(Op);
1310 }
1311
1312 return ConstantFoldInstOperands(I, Ops, DL, TLI);
1313}
1314
1316 const TargetLibraryInfo *TLI) {
1318 return ConstantFoldConstantImpl(C, DL, TLI, FoldedOps);
1319}
1320
1323 const DataLayout &DL,
1324 const TargetLibraryInfo *TLI,
1325 bool AllowNonDeterministic) {
1326 return ConstantFoldInstOperandsImpl(I, I->getOpcode(), Ops, DL, TLI,
1327 AllowNonDeterministic);
1328}
1329
1331 unsigned IntPredicate, Constant *Ops0, Constant *Ops1, const DataLayout &DL,
1332 const TargetLibraryInfo *TLI, const Instruction *I) {
1333 CmpInst::Predicate Predicate = (CmpInst::Predicate)IntPredicate;
1334 // fold: icmp (inttoptr x), null -> icmp x, 0
1335 // fold: icmp null, (inttoptr x) -> icmp 0, x
1336 // fold: icmp (ptrtoint x), 0 -> icmp x, null
1337 // fold: icmp 0, (ptrtoint x) -> icmp null, x
1338 // fold: icmp (inttoptr x), (inttoptr y) -> icmp trunc/zext x, trunc/zext y
1339 // fold: icmp (ptrtoint x), (ptrtoint y) -> icmp x, y
1340 //
1341 // FIXME: The following comment is out of data and the DataLayout is here now.
1342 // ConstantExpr::getCompare cannot do this, because it doesn't have DL
1343 // around to know if bit truncation is happening.
1344 if (auto *CE0 = dyn_cast<ConstantExpr>(Ops0)) {
1345 if (Ops1->isNullValue()) {
1346 if (CE0->getOpcode() == Instruction::IntToPtr) {
1347 Type *IntPtrTy = DL.getIntPtrType(CE0->getType());
1348 // Convert the integer value to the right size to ensure we get the
1349 // proper extension or truncation.
1350 if (Constant *C = ConstantFoldIntegerCast(CE0->getOperand(0), IntPtrTy,
1351 /*IsSigned*/ false, DL)) {
1352 Constant *Null = Constant::getNullValue(C->getType());
1353 return ConstantFoldCompareInstOperands(Predicate, C, Null, DL, TLI);
1354 }
1355 }
1356
1357 // icmp only compares the address part of the pointer, so only do this
1358 // transform if the integer size matches the address size.
1359 if (CE0->getOpcode() == Instruction::PtrToInt ||
1360 CE0->getOpcode() == Instruction::PtrToAddr) {
1361 Type *AddrTy = DL.getAddressType(CE0->getOperand(0)->getType());
1362 if (CE0->getType() == AddrTy) {
1363 Constant *C = CE0->getOperand(0);
1364 Constant *Null = Constant::getNullValue(C->getType());
1365 return ConstantFoldCompareInstOperands(Predicate, C, Null, DL, TLI);
1366 }
1367 }
1368 }
1369
1370 if (auto *CE1 = dyn_cast<ConstantExpr>(Ops1)) {
1371 if (CE0->getOpcode() == CE1->getOpcode()) {
1372 if (CE0->getOpcode() == Instruction::IntToPtr) {
1373 Type *IntPtrTy = DL.getIntPtrType(CE0->getType());
1374
1375 // Convert the integer value to the right size to ensure we get the
1376 // proper extension or truncation.
1377 Constant *C0 = ConstantFoldIntegerCast(CE0->getOperand(0), IntPtrTy,
1378 /*IsSigned*/ false, DL);
1379 Constant *C1 = ConstantFoldIntegerCast(CE1->getOperand(0), IntPtrTy,
1380 /*IsSigned*/ false, DL);
1381 if (C0 && C1)
1382 return ConstantFoldCompareInstOperands(Predicate, C0, C1, DL, TLI);
1383 }
1384
1385 // icmp only compares the address part of the pointer, so only do this
1386 // transform if the integer size matches the address size.
1387 if (CE0->getOpcode() == Instruction::PtrToInt ||
1388 CE0->getOpcode() == Instruction::PtrToAddr) {
1389 Type *AddrTy = DL.getAddressType(CE0->getOperand(0)->getType());
1390 if (CE0->getType() == AddrTy &&
1391 CE0->getOperand(0)->getType() == CE1->getOperand(0)->getType()) {
1393 Predicate, CE0->getOperand(0), CE1->getOperand(0), DL, TLI);
1394 }
1395 }
1396 }
1397 }
1398
1399 // Convert pointer comparison (base+offset1) pred (base+offset2) into
1400 // offset1 pred offset2, for the case where the offset is inbounds. This
1401 // only works for equality and unsigned comparison, as inbounds permits
1402 // crossing the sign boundary. However, the offset comparison itself is
1403 // signed.
1404 if (Ops0->getType()->isPointerTy() && !ICmpInst::isSigned(Predicate)) {
1405 unsigned IndexWidth = DL.getIndexTypeSizeInBits(Ops0->getType());
1406 APInt Offset0(IndexWidth, 0);
1407 bool IsEqPred = ICmpInst::isEquality(Predicate);
1408 Value *Stripped0 = Ops0->stripAndAccumulateConstantOffsets(
1409 DL, Offset0, /*AllowNonInbounds=*/IsEqPred,
1410 /*AllowInvariantGroup=*/false, /*ExternalAnalysis=*/nullptr,
1411 /*LookThroughIntToPtr=*/IsEqPred);
1412 APInt Offset1(IndexWidth, 0);
1413 Value *Stripped1 = Ops1->stripAndAccumulateConstantOffsets(
1414 DL, Offset1, /*AllowNonInbounds=*/IsEqPred,
1415 /*AllowInvariantGroup=*/false, /*ExternalAnalysis=*/nullptr,
1416 /*LookThroughIntToPtr=*/IsEqPred);
1417 if (Stripped0 == Stripped1)
1418 return ConstantInt::getBool(
1419 Ops0->getContext(),
1420 ICmpInst::compare(Offset0, Offset1,
1421 ICmpInst::getSignedPredicate(Predicate)));
1422 }
1423 } else if (isa<ConstantExpr>(Ops1)) {
1424 // If RHS is a constant expression, but the left side isn't, swap the
1425 // operands and try again.
1426 Predicate = ICmpInst::getSwappedPredicate(Predicate);
1427 return ConstantFoldCompareInstOperands(Predicate, Ops1, Ops0, DL, TLI);
1428 }
1429
1430 if (CmpInst::isFPPredicate(Predicate)) {
1431 // Flush any denormal constant float input according to denormal handling
1432 // mode.
1433 Ops0 = FlushFPConstant(Ops0, I, /*IsOutput=*/false);
1434 if (!Ops0)
1435 return nullptr;
1436 Ops1 = FlushFPConstant(Ops1, I, /*IsOutput=*/false);
1437 if (!Ops1)
1438 return nullptr;
1439 }
1440
1441 return ConstantFoldCompareInstruction(Predicate, Ops0, Ops1);
1442}
1443
1445 const DataLayout &DL) {
1447
1448 return ConstantFoldUnaryInstruction(Opcode, Op);
1449}
1450
1452 Constant *RHS,
1453 const DataLayout &DL) {
1455 if (isa<ConstantExpr>(LHS) || isa<ConstantExpr>(RHS))
1456 if (Constant *C = SymbolicallyEvaluateBinop(Opcode, LHS, RHS, DL))
1457 return C;
1458
1460 return ConstantExpr::get(Opcode, LHS, RHS);
1461 return ConstantFoldBinaryInstruction(Opcode, LHS, RHS);
1462}
1463
1466 switch (Mode) {
1468 return nullptr;
1469 case DenormalMode::IEEE:
1470 return ConstantFP::get(Ty, APF);
1472 return ConstantFP::get(
1473 Ty, APFloat::getZero(APF.getSemantics(), APF.isNegative()));
1475 return ConstantFP::get(Ty, APFloat::getZero(APF.getSemantics(), false));
1476 default:
1477 break;
1478 }
1479
1480 llvm_unreachable("unknown denormal mode");
1481}
1482
1483/// Return the denormal mode that can be assumed when executing a floating point
1484/// operation at \p CtxI.
1486 if (!CtxI || !CtxI->getParent() || !CtxI->getFunction())
1487 return DenormalMode::getDynamic();
1488 return CtxI->getFunction()->getDenormalMode(
1489 Ty->getScalarType()->getFltSemantics());
1490}
1491
1493 const Instruction *Inst,
1494 bool IsOutput) {
1495 const APFloat &APF = CFP->getValueAPF();
1496 if (!APF.isDenormal())
1497 return CFP;
1498
1500 return flushDenormalConstant(CFP->getType(), APF,
1501 IsOutput ? Mode.Output : Mode.Input);
1502}
1503
1505 bool IsOutput) {
1506 if (ConstantFP *CFP = dyn_cast<ConstantFP>(Operand))
1507 return flushDenormalConstantFP(CFP, Inst, IsOutput);
1508
1510 return Operand;
1511
1512 Type *Ty = Operand->getType();
1513 VectorType *VecTy = dyn_cast<VectorType>(Ty);
1514 if (VecTy) {
1515 if (auto *Splat = dyn_cast_or_null<ConstantFP>(Operand->getSplatValue())) {
1516 ConstantFP *Folded = flushDenormalConstantFP(Splat, Inst, IsOutput);
1517 if (!Folded)
1518 return nullptr;
1519 return ConstantVector::getSplat(VecTy->getElementCount(), Folded);
1520 }
1521
1522 Ty = VecTy->getElementType();
1523 }
1524
1525 if (isa<ConstantExpr>(Operand))
1526 return Operand;
1527
1528 if (const auto *CV = dyn_cast<ConstantVector>(Operand)) {
1530 for (unsigned i = 0, e = CV->getNumOperands(); i != e; ++i) {
1531 Constant *Element = CV->getAggregateElement(i);
1532 if (isa<UndefValue>(Element)) {
1533 NewElts.push_back(Element);
1534 continue;
1535 }
1536
1537 ConstantFP *CFP = dyn_cast<ConstantFP>(Element);
1538 if (!CFP)
1539 return nullptr;
1540
1541 ConstantFP *Folded = flushDenormalConstantFP(CFP, Inst, IsOutput);
1542 if (!Folded)
1543 return nullptr;
1544 NewElts.push_back(Folded);
1545 }
1546
1547 return ConstantVector::get(NewElts);
1548 }
1549
1550 if (const auto *CDV = dyn_cast<ConstantDataVector>(Operand)) {
1552 for (unsigned I = 0, E = CDV->getNumElements(); I < E; ++I) {
1553 const APFloat &Elt = CDV->getElementAsAPFloat(I);
1554 if (!Elt.isDenormal()) {
1555 NewElts.push_back(ConstantFP::get(Ty, Elt));
1556 } else {
1557 DenormalMode Mode = getInstrDenormalMode(Inst, Ty);
1558 ConstantFP *Folded =
1559 flushDenormalConstant(Ty, Elt, IsOutput ? Mode.Output : Mode.Input);
1560 if (!Folded)
1561 return nullptr;
1562 NewElts.push_back(Folded);
1563 }
1564 }
1565
1566 return ConstantVector::get(NewElts);
1567 }
1568
1569 return nullptr;
1570}
1571
1573 Constant *RHS, const DataLayout &DL,
1574 const Instruction *I,
1575 bool AllowNonDeterministic) {
1576 if (Instruction::isBinaryOp(Opcode)) {
1577 // Flush denormal inputs if needed.
1578 Constant *Op0 = FlushFPConstant(LHS, I, /* IsOutput */ false);
1579 if (!Op0)
1580 return nullptr;
1581 Constant *Op1 = FlushFPConstant(RHS, I, /* IsOutput */ false);
1582 if (!Op1)
1583 return nullptr;
1584
1585 // If nsz or an algebraic FMF flag is set, the result of the FP operation
1586 // may change due to future optimization. Don't constant fold them if
1587 // non-deterministic results are not allowed.
1588 if (!AllowNonDeterministic)
1590 if (FP->hasNoSignedZeros() || FP->hasAllowReassoc() ||
1591 FP->hasAllowContract() || FP->hasAllowReciprocal())
1592 return nullptr;
1593
1594 // Calculate constant result.
1595 Constant *C = ConstantFoldBinaryOpOperands(Opcode, Op0, Op1, DL);
1596 if (!C)
1597 return nullptr;
1598
1599 // Flush denormal output if needed.
1600 C = FlushFPConstant(C, I, /* IsOutput */ true);
1601 if (!C)
1602 return nullptr;
1603
1604 // The precise NaN value is non-deterministic.
1605 if (!AllowNonDeterministic && C->isNaN())
1606 return nullptr;
1607
1608 return C;
1609 }
1610 // If instruction lacks a parent/function and the denormal mode cannot be
1611 // determined, use the default (IEEE).
1612 return ConstantFoldBinaryOpOperands(Opcode, LHS, RHS, DL);
1613}
1614
1616 Type *DestTy, const DataLayout &DL) {
1617 assert(Instruction::isCast(Opcode));
1618
1619 if (auto *CE = dyn_cast<ConstantExpr>(C))
1620 if (CE->isCast())
1621 if (unsigned NewOp = CastInst::isEliminableCastPair(
1622 Instruction::CastOps(CE->getOpcode()),
1623 Instruction::CastOps(Opcode), CE->getOperand(0)->getType(),
1624 C->getType(), DestTy, &DL))
1625 return ConstantFoldCastOperand(NewOp, CE->getOperand(0), DestTy, DL);
1626
1627 switch (Opcode) {
1628 default:
1629 llvm_unreachable("Missing case");
1630 case Instruction::PtrToAddr:
1631 case Instruction::PtrToInt:
1632 if (auto *CE = dyn_cast<ConstantExpr>(C)) {
1633 Constant *FoldedValue = nullptr;
1634 // If the input is an inttoptr, eliminate the pair. This requires knowing
1635 // the width of a pointer, so it can't be done in ConstantExpr::getCast.
1636 if (CE->getOpcode() == Instruction::IntToPtr) {
1637 // zext/trunc the inttoptr to pointer/address size.
1638 Type *MidTy = Opcode == Instruction::PtrToInt
1639 ? DL.getAddressType(CE->getType())
1640 : DL.getIntPtrType(CE->getType());
1641 FoldedValue = ConstantFoldIntegerCast(CE->getOperand(0), MidTy,
1642 /*IsSigned=*/false, DL);
1643 } else if (auto *GEP = dyn_cast<GEPOperator>(CE)) {
1644 // If we have GEP, we can perform the following folds:
1645 // (ptrtoint/ptrtoaddr (gep null, x)) -> x
1646 // (ptrtoint/ptrtoaddr (gep (gep null, x), y) -> x + y, etc.
1647 unsigned BitWidth = DL.getIndexTypeSizeInBits(GEP->getType());
1648 APInt BaseOffset(BitWidth, 0);
1649 auto *Base = cast<Constant>(GEP->stripAndAccumulateConstantOffsets(
1650 DL, BaseOffset, /*AllowNonInbounds=*/true));
1651 if (Base->isNullValue()) {
1652 FoldedValue = ConstantInt::get(CE->getContext(), BaseOffset);
1653 } else {
1654 // ptrtoint/ptrtoaddr (gep i8, Ptr, (sub 0, V))
1655 // -> sub (ptrtoint/ptrtoaddr Ptr), V
1656 if (GEP->getNumIndices() == 1 &&
1657 GEP->getSourceElementType()->isIntegerTy(8)) {
1658 auto *Ptr = cast<Constant>(GEP->getPointerOperand());
1659 auto *Sub = dyn_cast<ConstantExpr>(GEP->getOperand(1));
1660 Type *IntIdxTy = DL.getIndexType(Ptr->getType());
1661 if (Sub && Sub->getType() == IntIdxTy &&
1662 Sub->getOpcode() == Instruction::Sub &&
1663 Sub->getOperand(0)->isNullValue())
1664 FoldedValue = ConstantExpr::getSub(
1665 ConstantExpr::getCast(Opcode, Ptr, IntIdxTy),
1666 Sub->getOperand(1));
1667 }
1668 }
1669 }
1670 if (FoldedValue) {
1671 // Do a zext or trunc to get to the ptrtoint/ptrtoaddr dest size.
1672 return ConstantFoldIntegerCast(FoldedValue, DestTy, /*IsSigned=*/false,
1673 DL);
1674 }
1675 }
1676 break;
1677 case Instruction::IntToPtr:
1678 // If the input is a ptrtoint, turn the pair into a ptr to ptr bitcast if
1679 // the int size is >= the ptr size and the address spaces are the same.
1680 // This requires knowing the width of a pointer, so it can't be done in
1681 // ConstantExpr::getCast.
1682 if (auto *CE = dyn_cast<ConstantExpr>(C)) {
1683 if (CE->getOpcode() == Instruction::PtrToInt) {
1684 Constant *SrcPtr = CE->getOperand(0);
1685 unsigned SrcPtrSize = DL.getPointerTypeSizeInBits(SrcPtr->getType());
1686 unsigned MidIntSize = CE->getType()->getScalarSizeInBits();
1687
1688 if (MidIntSize >= SrcPtrSize) {
1689 unsigned SrcAS = SrcPtr->getType()->getPointerAddressSpace();
1690 if (SrcAS == DestTy->getPointerAddressSpace())
1691 return FoldBitCast(CE->getOperand(0), DestTy, DL);
1692 }
1693 }
1694 }
1695 break;
1696 case Instruction::Trunc:
1697 case Instruction::ZExt:
1698 case Instruction::SExt:
1699 case Instruction::FPTrunc:
1700 case Instruction::FPExt:
1701 case Instruction::UIToFP:
1702 case Instruction::SIToFP:
1703 case Instruction::FPToUI:
1704 case Instruction::FPToSI:
1705 case Instruction::AddrSpaceCast:
1706 break;
1707 case Instruction::BitCast:
1708 return FoldBitCast(C, DestTy, DL);
1709 }
1710
1712 return ConstantExpr::getCast(Opcode, C, DestTy);
1713 return ConstantFoldCastInstruction(Opcode, C, DestTy);
1714}
1715
1717 bool IsSigned, const DataLayout &DL) {
1718 Type *SrcTy = C->getType();
1719 if (SrcTy == DestTy)
1720 return C;
1721 if (SrcTy->getScalarSizeInBits() > DestTy->getScalarSizeInBits())
1722 return ConstantFoldCastOperand(Instruction::Trunc, C, DestTy, DL);
1723 if (IsSigned)
1724 return ConstantFoldCastOperand(Instruction::SExt, C, DestTy, DL);
1725 return ConstantFoldCastOperand(Instruction::ZExt, C, DestTy, DL);
1726}
1727
1728//===----------------------------------------------------------------------===//
1729// Constant Folding for Calls
1730//
1731
1732/// Returns true if the intrinsic can be constant folded, given \p IsStrictFP.
1733static bool canConstantFoldIntrinsic(Intrinsic::ID ID, bool IsStrictFP) {
1734 switch (ID) {
1735 // Operations that do not operate floating-point numbers and do not depend on
1736 // FP environment can be folded even in strictfp functions.
1737 case Intrinsic::bswap:
1738 case Intrinsic::ctpop:
1739 case Intrinsic::ctlz:
1740 case Intrinsic::cttz:
1741 case Intrinsic::fshl:
1742 case Intrinsic::fshr:
1743 case Intrinsic::clmul:
1744 case Intrinsic::pdep:
1745 case Intrinsic::pext:
1746 case Intrinsic::launder_invariant_group:
1747 case Intrinsic::strip_invariant_group:
1748 case Intrinsic::masked_load:
1749 case Intrinsic::get_active_lane_mask:
1750 case Intrinsic::abs:
1751 case Intrinsic::smax:
1752 case Intrinsic::smin:
1753 case Intrinsic::umax:
1754 case Intrinsic::umin:
1755 case Intrinsic::scmp:
1756 case Intrinsic::ucmp:
1757 case Intrinsic::sadd_with_overflow:
1758 case Intrinsic::uadd_with_overflow:
1759 case Intrinsic::ssub_with_overflow:
1760 case Intrinsic::usub_with_overflow:
1761 case Intrinsic::smul_with_overflow:
1762 case Intrinsic::umul_with_overflow:
1763 case Intrinsic::sadd_sat:
1764 case Intrinsic::uadd_sat:
1765 case Intrinsic::ssub_sat:
1766 case Intrinsic::usub_sat:
1767 case Intrinsic::smul_fix:
1768 case Intrinsic::smul_fix_sat:
1769 case Intrinsic::bitreverse:
1770 case Intrinsic::is_constant:
1771 case Intrinsic::vector_reduce_add:
1772 case Intrinsic::vector_reduce_mul:
1773 case Intrinsic::vector_reduce_and:
1774 case Intrinsic::vector_reduce_or:
1775 case Intrinsic::vector_reduce_xor:
1776 case Intrinsic::vector_reduce_smin:
1777 case Intrinsic::vector_reduce_smax:
1778 case Intrinsic::vector_reduce_umin:
1779 case Intrinsic::vector_reduce_umax:
1780 case Intrinsic::vector_extract:
1781 case Intrinsic::vector_insert:
1782 case Intrinsic::vector_interleave2:
1783 case Intrinsic::vector_interleave3:
1784 case Intrinsic::vector_interleave4:
1785 case Intrinsic::vector_interleave5:
1786 case Intrinsic::vector_interleave6:
1787 case Intrinsic::vector_interleave7:
1788 case Intrinsic::vector_interleave8:
1789 case Intrinsic::vector_deinterleave2:
1790 case Intrinsic::vector_deinterleave3:
1791 case Intrinsic::vector_deinterleave4:
1792 case Intrinsic::vector_deinterleave5:
1793 case Intrinsic::vector_deinterleave6:
1794 case Intrinsic::vector_deinterleave7:
1795 case Intrinsic::vector_deinterleave8:
1796 // Target intrinsics
1797 case Intrinsic::amdgcn_perm:
1798 case Intrinsic::amdgcn_wave_reduce_umin:
1799 case Intrinsic::amdgcn_wave_reduce_umax:
1800 case Intrinsic::amdgcn_wave_reduce_max:
1801 case Intrinsic::amdgcn_wave_reduce_min:
1802 case Intrinsic::amdgcn_wave_reduce_and:
1803 case Intrinsic::amdgcn_wave_reduce_or:
1804 case Intrinsic::amdgcn_s_wqm:
1805 case Intrinsic::amdgcn_s_quadmask:
1806 case Intrinsic::amdgcn_s_bitreplicate:
1807 case Intrinsic::arm_mve_vctp8:
1808 case Intrinsic::arm_mve_vctp16:
1809 case Intrinsic::arm_mve_vctp32:
1810 case Intrinsic::arm_mve_vctp64:
1811 case Intrinsic::aarch64_sve_convert_from_svbool:
1812 case Intrinsic::wasm_alltrue:
1813 case Intrinsic::wasm_anytrue:
1814 case Intrinsic::wasm_dot:
1815 // WebAssembly float semantics are always known
1816 case Intrinsic::wasm_trunc_signed:
1817 case Intrinsic::wasm_trunc_unsigned:
1818 return true;
1819
1820 // Floating point operations cannot be folded in strictfp functions in
1821 // general case. They can be folded if FP environment is known to compiler.
1822 case Intrinsic::minnum:
1823 case Intrinsic::maxnum:
1824 case Intrinsic::minimum:
1825 case Intrinsic::maximum:
1826 case Intrinsic::minimumnum:
1827 case Intrinsic::maximumnum:
1828 case Intrinsic::log:
1829 case Intrinsic::log2:
1830 case Intrinsic::log10:
1831 case Intrinsic::exp:
1832 case Intrinsic::exp2:
1833 case Intrinsic::exp10:
1834 case Intrinsic::sqrt:
1835 case Intrinsic::sin:
1836 case Intrinsic::cos:
1837 case Intrinsic::sincos:
1838 case Intrinsic::sinh:
1839 case Intrinsic::cosh:
1840 case Intrinsic::atan:
1841 case Intrinsic::pow:
1842 case Intrinsic::powi:
1843 case Intrinsic::ldexp:
1844 case Intrinsic::fma:
1845 case Intrinsic::fmuladd:
1846 case Intrinsic::frexp:
1847 case Intrinsic::fptoui_sat:
1848 case Intrinsic::fptosi_sat:
1849 case Intrinsic::amdgcn_cos:
1850 case Intrinsic::amdgcn_cubeid:
1851 case Intrinsic::amdgcn_cubema:
1852 case Intrinsic::amdgcn_cubesc:
1853 case Intrinsic::amdgcn_cubetc:
1854 case Intrinsic::amdgcn_fmul_legacy:
1855 case Intrinsic::amdgcn_fma_legacy:
1856 case Intrinsic::amdgcn_fract:
1857 case Intrinsic::amdgcn_sin:
1858 // The intrinsics below depend on rounding mode in MXCSR.
1859 case Intrinsic::x86_sse_cvtss2si:
1860 case Intrinsic::x86_sse_cvtss2si64:
1861 case Intrinsic::x86_sse_cvttss2si:
1862 case Intrinsic::x86_sse_cvttss2si64:
1863 case Intrinsic::x86_sse2_cvtsd2si:
1864 case Intrinsic::x86_sse2_cvtsd2si64:
1865 case Intrinsic::x86_sse2_cvttsd2si:
1866 case Intrinsic::x86_sse2_cvttsd2si64:
1867 case Intrinsic::x86_avx512_vcvtss2si32:
1868 case Intrinsic::x86_avx512_vcvtss2si64:
1869 case Intrinsic::x86_avx512_cvttss2si:
1870 case Intrinsic::x86_avx512_cvttss2si64:
1871 case Intrinsic::x86_avx512_vcvtsd2si32:
1872 case Intrinsic::x86_avx512_vcvtsd2si64:
1873 case Intrinsic::x86_avx512_cvttsd2si:
1874 case Intrinsic::x86_avx512_cvttsd2si64:
1875 case Intrinsic::x86_avx512_vcvtss2usi32:
1876 case Intrinsic::x86_avx512_vcvtss2usi64:
1877 case Intrinsic::x86_avx512_cvttss2usi:
1878 case Intrinsic::x86_avx512_cvttss2usi64:
1879 case Intrinsic::x86_avx512_vcvtsd2usi32:
1880 case Intrinsic::x86_avx512_vcvtsd2usi64:
1881 case Intrinsic::x86_avx512_cvttsd2usi:
1882 case Intrinsic::x86_avx512_cvttsd2usi64:
1883
1884 // NVVM FMax intrinsics
1885 case Intrinsic::nvvm_fmax_d:
1886 case Intrinsic::nvvm_fmax_f:
1887 case Intrinsic::nvvm_fmax_ftz_f:
1888 case Intrinsic::nvvm_fmax_ftz_nan_f:
1889 case Intrinsic::nvvm_fmax_ftz_nan_xorsign_abs_f:
1890 case Intrinsic::nvvm_fmax_ftz_xorsign_abs_f:
1891 case Intrinsic::nvvm_fmax_nan_f:
1892 case Intrinsic::nvvm_fmax_nan_xorsign_abs_f:
1893 case Intrinsic::nvvm_fmax_xorsign_abs_f:
1894
1895 // NVVM FMin intrinsics
1896 case Intrinsic::nvvm_fmin_d:
1897 case Intrinsic::nvvm_fmin_f:
1898 case Intrinsic::nvvm_fmin_ftz_f:
1899 case Intrinsic::nvvm_fmin_ftz_nan_f:
1900 case Intrinsic::nvvm_fmin_ftz_nan_xorsign_abs_f:
1901 case Intrinsic::nvvm_fmin_ftz_xorsign_abs_f:
1902 case Intrinsic::nvvm_fmin_nan_f:
1903 case Intrinsic::nvvm_fmin_nan_xorsign_abs_f:
1904 case Intrinsic::nvvm_fmin_xorsign_abs_f:
1905
1906 // NVVM float/double to int32/uint32 conversion intrinsics
1907 case Intrinsic::nvvm_f2i_rm:
1908 case Intrinsic::nvvm_f2i_rn:
1909 case Intrinsic::nvvm_f2i_rp:
1910 case Intrinsic::nvvm_f2i_rz:
1911 case Intrinsic::nvvm_f2i_rm_ftz:
1912 case Intrinsic::nvvm_f2i_rn_ftz:
1913 case Intrinsic::nvvm_f2i_rp_ftz:
1914 case Intrinsic::nvvm_f2i_rz_ftz:
1915 case Intrinsic::nvvm_f2ui_rm:
1916 case Intrinsic::nvvm_f2ui_rn:
1917 case Intrinsic::nvvm_f2ui_rp:
1918 case Intrinsic::nvvm_f2ui_rz:
1919 case Intrinsic::nvvm_f2ui_rm_ftz:
1920 case Intrinsic::nvvm_f2ui_rn_ftz:
1921 case Intrinsic::nvvm_f2ui_rp_ftz:
1922 case Intrinsic::nvvm_f2ui_rz_ftz:
1923 case Intrinsic::nvvm_d2i_rm:
1924 case Intrinsic::nvvm_d2i_rn:
1925 case Intrinsic::nvvm_d2i_rp:
1926 case Intrinsic::nvvm_d2i_rz:
1927 case Intrinsic::nvvm_d2ui_rm:
1928 case Intrinsic::nvvm_d2ui_rn:
1929 case Intrinsic::nvvm_d2ui_rp:
1930 case Intrinsic::nvvm_d2ui_rz:
1931
1932 // NVVM float/double to int64/uint64 conversion intrinsics
1933 case Intrinsic::nvvm_f2ll_rm:
1934 case Intrinsic::nvvm_f2ll_rn:
1935 case Intrinsic::nvvm_f2ll_rp:
1936 case Intrinsic::nvvm_f2ll_rz:
1937 case Intrinsic::nvvm_f2ll_rm_ftz:
1938 case Intrinsic::nvvm_f2ll_rn_ftz:
1939 case Intrinsic::nvvm_f2ll_rp_ftz:
1940 case Intrinsic::nvvm_f2ll_rz_ftz:
1941 case Intrinsic::nvvm_f2ull_rm:
1942 case Intrinsic::nvvm_f2ull_rn:
1943 case Intrinsic::nvvm_f2ull_rp:
1944 case Intrinsic::nvvm_f2ull_rz:
1945 case Intrinsic::nvvm_f2ull_rm_ftz:
1946 case Intrinsic::nvvm_f2ull_rn_ftz:
1947 case Intrinsic::nvvm_f2ull_rp_ftz:
1948 case Intrinsic::nvvm_f2ull_rz_ftz:
1949 case Intrinsic::nvvm_d2ll_rm:
1950 case Intrinsic::nvvm_d2ll_rn:
1951 case Intrinsic::nvvm_d2ll_rp:
1952 case Intrinsic::nvvm_d2ll_rz:
1953 case Intrinsic::nvvm_d2ull_rm:
1954 case Intrinsic::nvvm_d2ull_rn:
1955 case Intrinsic::nvvm_d2ull_rp:
1956 case Intrinsic::nvvm_d2ull_rz:
1957
1958 // NVVM math intrinsics:
1959 case Intrinsic::nvvm_ceil_d:
1960 case Intrinsic::nvvm_ceil_f:
1961 case Intrinsic::nvvm_ceil_ftz_f:
1962
1963 case Intrinsic::nvvm_fabs:
1964 case Intrinsic::nvvm_fabs_ftz:
1965
1966 case Intrinsic::nvvm_floor_d:
1967 case Intrinsic::nvvm_floor_f:
1968 case Intrinsic::nvvm_floor_ftz_f:
1969
1970 case Intrinsic::nvvm_rcp_rm_d:
1971 case Intrinsic::nvvm_rcp_rm_f:
1972 case Intrinsic::nvvm_rcp_rm_ftz_f:
1973 case Intrinsic::nvvm_rcp_rn_d:
1974 case Intrinsic::nvvm_rcp_rn_f:
1975 case Intrinsic::nvvm_rcp_rn_ftz_f:
1976 case Intrinsic::nvvm_rcp_rp_d:
1977 case Intrinsic::nvvm_rcp_rp_f:
1978 case Intrinsic::nvvm_rcp_rp_ftz_f:
1979 case Intrinsic::nvvm_rcp_rz_d:
1980 case Intrinsic::nvvm_rcp_rz_f:
1981 case Intrinsic::nvvm_rcp_rz_ftz_f:
1982
1983 case Intrinsic::nvvm_round_d:
1984 case Intrinsic::nvvm_round_f:
1985 case Intrinsic::nvvm_round_ftz_f:
1986
1987 case Intrinsic::nvvm_saturate_d:
1988 case Intrinsic::nvvm_saturate_f:
1989 case Intrinsic::nvvm_saturate_ftz_f:
1990
1991 case Intrinsic::nvvm_sqrt_f:
1992 case Intrinsic::nvvm_sqrt_rn_d:
1993 case Intrinsic::nvvm_sqrt_rn_f:
1994 case Intrinsic::nvvm_sqrt_rn_ftz_f:
1995 return !IsStrictFP;
1996
1997 // NVVM add intrinsics with explicit rounding modes
1998 case Intrinsic::nvvm_fadd:
1999 case Intrinsic::nvvm_fadd_ftz:
2000
2001 // NVVM div intrinsics with explicit rounding modes
2002 case Intrinsic::nvvm_div_rm_d:
2003 case Intrinsic::nvvm_div_rn_d:
2004 case Intrinsic::nvvm_div_rp_d:
2005 case Intrinsic::nvvm_div_rz_d:
2006 case Intrinsic::nvvm_div_rm_f:
2007 case Intrinsic::nvvm_div_rn_f:
2008 case Intrinsic::nvvm_div_rp_f:
2009 case Intrinsic::nvvm_div_rz_f:
2010 case Intrinsic::nvvm_div_rm_ftz_f:
2011 case Intrinsic::nvvm_div_rn_ftz_f:
2012 case Intrinsic::nvvm_div_rp_ftz_f:
2013 case Intrinsic::nvvm_div_rz_ftz_f:
2014
2015 // NVVM mul intrinsics with explicit rounding modes
2016 case Intrinsic::nvvm_mul_rm_d:
2017 case Intrinsic::nvvm_mul_rn_d:
2018 case Intrinsic::nvvm_mul_rp_d:
2019 case Intrinsic::nvvm_mul_rz_d:
2020 case Intrinsic::nvvm_mul_rm_f:
2021 case Intrinsic::nvvm_mul_rn_f:
2022 case Intrinsic::nvvm_mul_rp_f:
2023 case Intrinsic::nvvm_mul_rz_f:
2024 case Intrinsic::nvvm_mul_rm_ftz_f:
2025 case Intrinsic::nvvm_mul_rn_ftz_f:
2026 case Intrinsic::nvvm_mul_rp_ftz_f:
2027 case Intrinsic::nvvm_mul_rz_ftz_f:
2028
2029 // NVVM fma intrinsics with explicit rounding modes
2030 case Intrinsic::nvvm_fma_rm_d:
2031 case Intrinsic::nvvm_fma_rn_d:
2032 case Intrinsic::nvvm_fma_rp_d:
2033 case Intrinsic::nvvm_fma_rz_d:
2034 case Intrinsic::nvvm_fma_rm_f:
2035 case Intrinsic::nvvm_fma_rn_f:
2036 case Intrinsic::nvvm_fma_rp_f:
2037 case Intrinsic::nvvm_fma_rz_f:
2038 case Intrinsic::nvvm_fma_rm_ftz_f:
2039 case Intrinsic::nvvm_fma_rn_ftz_f:
2040 case Intrinsic::nvvm_fma_rp_ftz_f:
2041 case Intrinsic::nvvm_fma_rz_ftz_f:
2042
2043 // Sign operations are actually bitwise operations, they do not raise
2044 // exceptions even for SNANs.
2045 case Intrinsic::fabs:
2046 case Intrinsic::copysign:
2047 case Intrinsic::is_fpclass:
2048 // Non-constrained variants of rounding operations means default FP
2049 // environment, they can be folded in any case.
2050 case Intrinsic::ceil:
2051 case Intrinsic::floor:
2052 case Intrinsic::round:
2053 case Intrinsic::roundeven:
2054 case Intrinsic::trunc:
2055 case Intrinsic::nearbyint:
2056 case Intrinsic::rint:
2057 case Intrinsic::canonicalize:
2058
2059 // Constrained intrinsics can be folded if FP environment is known
2060 // to compiler.
2061 case Intrinsic::experimental_constrained_fma:
2062 case Intrinsic::experimental_constrained_fmuladd:
2063 case Intrinsic::experimental_constrained_fadd:
2064 case Intrinsic::experimental_constrained_fsub:
2065 case Intrinsic::experimental_constrained_fmul:
2066 case Intrinsic::experimental_constrained_fdiv:
2067 case Intrinsic::experimental_constrained_frem:
2068 case Intrinsic::experimental_constrained_ceil:
2069 case Intrinsic::experimental_constrained_floor:
2070 case Intrinsic::experimental_constrained_round:
2071 case Intrinsic::experimental_constrained_roundeven:
2072 case Intrinsic::experimental_constrained_trunc:
2073 case Intrinsic::experimental_constrained_nearbyint:
2074 case Intrinsic::experimental_constrained_rint:
2075 case Intrinsic::experimental_constrained_fcmp:
2076 case Intrinsic::experimental_constrained_fcmps:
2077
2078 case Intrinsic::experimental_cttz_elts:
2079 return true;
2080 default:
2081 return false;
2082 }
2083}
2084
2085/// Given a function's return type and its operands, determine if any of them of
2086/// of floating-point type.
2088 return RetTy->isFloatingPointTy() || any_of(Ops, [](Value *V) {
2089 return V->getType()->isFloatingPointTy();
2090 });
2091}
2092
2094 const TargetLibraryInfo *TLI) {
2095 if (Call->isNoBuiltin())
2096 return false;
2097 if (Call->getFunctionType() != F->getFunctionType())
2098 return false;
2099
2100 // Allow FP calls (both libcalls and intrinsics) to avoid being folded.
2101 // This can be useful for GPU targets or in cross-compilation scenarios
2102 // when the exact target FP behaviour is required, and the host compiler's
2103 // behaviour may be slightly different from the device's run-time behaviour.
2106 F->getReturnType(),
2107 ArrayRef<Value *>((Value *const *)(F->arg_begin()), F->arg_size())))
2108 return false;
2109
2110 if (F->getIntrinsicID() != Intrinsic::not_intrinsic)
2111 return canConstantFoldIntrinsic(F->getIntrinsicID(), Call->isStrictFP());
2112
2113 if (!TLI || Call->isStrictFP())
2114 return false;
2115
2116 LibFunc Func = TLI->getLibFunc(*F);
2117 if (Func == NotLibFunc)
2118 return false;
2119
2120 switch (Func) {
2121 case LibFunc_acos:
2122 case LibFunc_acosf:
2123 case LibFunc_acos_finite:
2124 case LibFunc_acosf_finite:
2125 case LibFunc_asin:
2126 case LibFunc_asinf:
2127 case LibFunc_asin_finite:
2128 case LibFunc_asinf_finite:
2129 case LibFunc_atan:
2130 case LibFunc_atanf:
2131 case LibFunc_atan2:
2132 case LibFunc_atan2f:
2133 case LibFunc_atan2_finite:
2134 case LibFunc_atan2f_finite:
2135 case LibFunc_ceil:
2136 case LibFunc_ceilf:
2137 case LibFunc_cosh:
2138 case LibFunc_coshf:
2139 case LibFunc_cosh_finite:
2140 case LibFunc_coshf_finite:
2141 case LibFunc_cos:
2142 case LibFunc_cosf:
2143 case LibFunc_erf:
2144 case LibFunc_erff:
2145 case LibFunc_exp:
2146 case LibFunc_expf:
2147 case LibFunc_exp_finite:
2148 case LibFunc_expf_finite:
2149 case LibFunc_exp2:
2150 case LibFunc_exp2f:
2151 case LibFunc_exp2_finite:
2152 case LibFunc_exp2f_finite:
2153 case LibFunc_fabs:
2154 case LibFunc_fabsf:
2155 case LibFunc_floor:
2156 case LibFunc_floorf:
2157 case LibFunc_fmod:
2158 case LibFunc_fmodf:
2159 case LibFunc_ilogb:
2160 case LibFunc_ilogbf:
2161 case LibFunc_log:
2162 case LibFunc_logf:
2163 case LibFunc_log_finite:
2164 case LibFunc_logf_finite:
2165 case LibFunc_logb:
2166 case LibFunc_logbf:
2167 case LibFunc_logl:
2168 case LibFunc_log2:
2169 case LibFunc_log2f:
2170 case LibFunc_log2_finite:
2171 case LibFunc_log2f_finite:
2172 case LibFunc_log10:
2173 case LibFunc_log10f:
2174 case LibFunc_log10_finite:
2175 case LibFunc_log10f_finite:
2176 case LibFunc_log1p:
2177 case LibFunc_log1pf:
2178 case LibFunc_nearbyint:
2179 case LibFunc_nearbyintf:
2180 case LibFunc_nextafter:
2181 case LibFunc_nextafterf:
2182 case LibFunc_nexttoward:
2183 case LibFunc_nexttowardf:
2184 case LibFunc_pow:
2185 case LibFunc_powf:
2186 case LibFunc_pow_finite:
2187 case LibFunc_powf_finite:
2188 case LibFunc_remainder:
2189 case LibFunc_remainderf:
2190 case LibFunc_rint:
2191 case LibFunc_rintf:
2192 case LibFunc_round:
2193 case LibFunc_roundf:
2194 case LibFunc_roundeven:
2195 case LibFunc_roundevenf:
2196 case LibFunc_sin:
2197 case LibFunc_sinf:
2198 case LibFunc_sinh:
2199 case LibFunc_sinhf:
2200 case LibFunc_sinh_finite:
2201 case LibFunc_sinhf_finite:
2202 case LibFunc_sqrt:
2203 case LibFunc_sqrtf:
2204 case LibFunc_tan:
2205 case LibFunc_tanf:
2206 case LibFunc_tanh:
2207 case LibFunc_tanhf:
2208 case LibFunc_trunc:
2209 case LibFunc_truncf:
2210 return true;
2211 default:
2212 return false;
2213 }
2214}
2215
2216namespace {
2217
2218Constant *GetConstantFoldFPValue(double V, Type *Ty) {
2219 if (Ty->isHalfTy() || Ty->isFloatTy() || Ty->isBFloatTy()) {
2220 APFloat APF(V);
2221 bool unused;
2222 APF.convert(Ty->getFltSemantics(), APFloat::rmNearestTiesToEven, &unused);
2223 return ConstantFP::get(Ty->getContext(), APF);
2224 }
2225 if (Ty->isDoubleTy())
2226 return ConstantFP::get(Ty->getContext(), APFloat(V));
2227 llvm_unreachable("Can only constant fold half/float/double/bfloat");
2228}
2229
2230#if defined(HAS_IEE754_FLOAT128) && defined(HAS_LOGF128)
2231Constant *GetConstantFoldFPValue128(float128 V, Type *Ty) {
2232 if (Ty->isFP128Ty())
2233 return ConstantFP::get(Ty, V);
2234 llvm_unreachable("Can only constant fold fp128");
2235}
2236#endif
2237
2238/// Clear the floating-point exception state.
2239inline void llvm_fenv_clearexcept() {
2240#if HAVE_DECL_FE_ALL_EXCEPT
2241 feclearexcept(FE_ALL_EXCEPT);
2242#endif
2243 errno = 0;
2244}
2245
2246/// Test if a floating-point exception was raised.
2247inline bool llvm_fenv_testexcept() {
2248 int errno_val = errno;
2249 if (errno_val == ERANGE || errno_val == EDOM)
2250 return true;
2251#if HAVE_DECL_FE_ALL_EXCEPT && HAVE_DECL_FE_INEXACT
2252 if (fetestexcept(FE_ALL_EXCEPT & ~FE_INEXACT))
2253 return true;
2254#endif
2255 return false;
2256}
2257
2258static APFloat FTZPreserveSign(const APFloat &V) {
2259 if (V.isDenormal())
2260 return APFloat::getZero(V.getSemantics(), V.isNegative());
2261 return V;
2262}
2263
2264static APFloat FlushToPositiveZero(const APFloat &V) {
2265 if (V.isDenormal())
2266 return APFloat::getZero(V.getSemantics(), false);
2267 return V;
2268}
2269
2270static APFloat FlushWithDenormKind(const APFloat &V,
2271 DenormalMode::DenormalModeKind DenormKind) {
2274 switch (DenormKind) {
2276 return V;
2278 return FTZPreserveSign(V);
2280 return FlushToPositiveZero(V);
2281 default:
2282 llvm_unreachable("Invalid denormal mode!");
2283 }
2284}
2285
2286Constant *ConstantFoldFP(double (*NativeFP)(double), const APFloat &V, Type *Ty,
2287 DenormalMode DenormMode = DenormalMode::getIEEE()) {
2288 if (!DenormMode.isValid() ||
2289 DenormMode.Input == DenormalMode::DenormalModeKind::Dynamic ||
2290 DenormMode.Output == DenormalMode::DenormalModeKind::Dynamic)
2291 return nullptr;
2292
2293 llvm_fenv_clearexcept();
2294 auto Input = FlushWithDenormKind(V, DenormMode.Input);
2295 double Result = NativeFP(Input.convertToDouble());
2296 if (llvm_fenv_testexcept()) {
2297 llvm_fenv_clearexcept();
2298 return nullptr;
2299 }
2300
2301 Constant *Output = GetConstantFoldFPValue(Result, Ty);
2302 if (DenormMode.Output == DenormalMode::DenormalModeKind::IEEE)
2303 return Output;
2304 const auto *CFP = static_cast<ConstantFP *>(Output);
2305 const auto Res = FlushWithDenormKind(CFP->getValueAPF(), DenormMode.Output);
2306 return ConstantFP::get(Ty->getContext(), Res);
2307}
2308
2309#if defined(HAS_IEE754_FLOAT128) && defined(HAS_LOGF128)
2310Constant *ConstantFoldFP128(float128 (*NativeFP)(float128), const APFloat &V,
2311 Type *Ty) {
2312 llvm_fenv_clearexcept();
2313 float128 Result = NativeFP(V.convertToQuad());
2314 if (llvm_fenv_testexcept()) {
2315 llvm_fenv_clearexcept();
2316 return nullptr;
2317 }
2318
2319 return GetConstantFoldFPValue128(Result, Ty);
2320}
2321#endif
2322
2323Constant *ConstantFoldBinaryFP(double (*NativeFP)(double, double),
2324 const APFloat &V, const APFloat &W, Type *Ty) {
2325 llvm_fenv_clearexcept();
2326 double Result = NativeFP(V.convertToDouble(), W.convertToDouble());
2327 if (llvm_fenv_testexcept()) {
2328 llvm_fenv_clearexcept();
2329 return nullptr;
2330 }
2331
2332 return GetConstantFoldFPValue(Result, Ty);
2333}
2334
2335Constant *constantFoldVectorReduce(Intrinsic::ID IID, Constant *Op) {
2336 auto *OpVT = cast<VectorType>(Op->getType());
2337
2338 // This is the same as the underlying binops - poison propagates.
2339 if (Op->containsPoisonElement())
2340 return PoisonValue::get(OpVT->getElementType());
2341
2342 // Shortcut non-accumulating reductions.
2343 if (Constant *SplatVal = Op->getSplatValue()) {
2344 switch (IID) {
2345 case Intrinsic::vector_reduce_and:
2346 case Intrinsic::vector_reduce_or:
2347 case Intrinsic::vector_reduce_smin:
2348 case Intrinsic::vector_reduce_smax:
2349 case Intrinsic::vector_reduce_umin:
2350 case Intrinsic::vector_reduce_umax:
2351 return SplatVal;
2352 case Intrinsic::vector_reduce_add:
2353 if (SplatVal->isNullValue())
2354 return SplatVal;
2355 break;
2356 case Intrinsic::vector_reduce_mul:
2357 if (SplatVal->isNullValue() || SplatVal->isOneValue())
2358 return SplatVal;
2359 break;
2360 case Intrinsic::vector_reduce_xor:
2361 if (SplatVal->isNullValue())
2362 return SplatVal;
2363 if (OpVT->getElementCount().isKnownMultipleOf(2))
2364 return Constant::getNullValue(OpVT->getElementType());
2365 break;
2366 }
2367 }
2368
2370 if (!VT)
2371 return nullptr;
2372
2373 auto *EltC = dyn_cast_or_null<ConstantInt>(Op->getAggregateElement(0U));
2374 if (!EltC)
2375 return nullptr;
2376
2377 APInt Acc = EltC->getValue();
2378 for (unsigned I = 1, E = VT->getNumElements(); I != E; I++) {
2379 if (!(EltC = dyn_cast_or_null<ConstantInt>(Op->getAggregateElement(I))))
2380 return nullptr;
2381 const APInt &X = EltC->getValue();
2382 switch (IID) {
2383 case Intrinsic::vector_reduce_add:
2384 Acc = Acc + X;
2385 break;
2386 case Intrinsic::vector_reduce_mul:
2387 Acc = Acc * X;
2388 break;
2389 case Intrinsic::vector_reduce_and:
2390 Acc = Acc & X;
2391 break;
2392 case Intrinsic::vector_reduce_or:
2393 Acc = Acc | X;
2394 break;
2395 case Intrinsic::vector_reduce_xor:
2396 Acc = Acc ^ X;
2397 break;
2398 case Intrinsic::vector_reduce_smin:
2399 Acc = APIntOps::smin(Acc, X);
2400 break;
2401 case Intrinsic::vector_reduce_smax:
2402 Acc = APIntOps::smax(Acc, X);
2403 break;
2404 case Intrinsic::vector_reduce_umin:
2405 Acc = APIntOps::umin(Acc, X);
2406 break;
2407 case Intrinsic::vector_reduce_umax:
2408 Acc = APIntOps::umax(Acc, X);
2409 break;
2410 }
2411 }
2412
2413 return ConstantInt::get(Op->getContext(), Acc);
2414}
2415
2416/// Attempt to fold an SSE floating point to integer conversion of a constant
2417/// floating point. If roundTowardZero is false, the default IEEE rounding is
2418/// used (toward nearest, ties to even). This matches the behavior of the
2419/// non-truncating SSE instructions in the default rounding mode. The desired
2420/// integer type Ty is used to select how many bits are available for the
2421/// result. Returns null if the conversion cannot be performed, otherwise
2422/// returns the Constant value resulting from the conversion.
2423Constant *ConstantFoldSSEConvertToInt(const APFloat &Val, bool roundTowardZero,
2424 Type *Ty, bool IsSigned) {
2425 // All of these conversion intrinsics form an integer of at most 64bits.
2426 unsigned ResultWidth = Ty->getIntegerBitWidth();
2427 assert(ResultWidth <= 64 &&
2428 "Can only constant fold conversions to 64 and 32 bit ints");
2429
2430 uint64_t UIntVal;
2431 bool isExact = false;
2435 Val.convertToInteger(MutableArrayRef(UIntVal), ResultWidth,
2436 IsSigned, mode, &isExact);
2437 if (status != APFloat::opOK &&
2438 (!roundTowardZero || status != APFloat::opInexact))
2439 return nullptr;
2440 return ConstantInt::get(Ty, UIntVal, IsSigned);
2441}
2442
2443double getValueAsDouble(ConstantFP *Op) {
2444 Type *Ty = Op->getType();
2445
2446 if (Ty->isBFloatTy() || Ty->isHalfTy() || Ty->isFloatTy() || Ty->isDoubleTy())
2447 return Op->getValueAPF().convertToDouble();
2448
2449 bool unused;
2450 APFloat APF = Op->getValueAPF();
2452 return APF.convertToDouble();
2453}
2454
2455static bool getConstIntOrUndef(Value *Op, const APInt *&C) {
2456 if (auto *CI = dyn_cast<ConstantInt>(Op)) {
2457 C = &CI->getValue();
2458 return true;
2459 }
2460 if (isa<UndefValue>(Op)) {
2461 C = nullptr;
2462 return true;
2463 }
2464 return false;
2465}
2466
2467/// Checks if the given intrinsic call, which evaluates to constant, is allowed
2468/// to be folded.
2469///
2470/// \param CI Constrained intrinsic call.
2471/// \param St Exception flags raised during constant evaluation.
2472static bool mayFoldConstrained(ConstrainedFPIntrinsic *CI,
2473 APFloat::opStatus St) {
2474 std::optional<RoundingMode> ORM = CI->getRoundingMode();
2475 std::optional<fp::ExceptionBehavior> EB = CI->getExceptionBehavior();
2476
2477 // If the operation does not change exception status flags, it is safe
2478 // to fold.
2479 if (St == APFloat::opStatus::opOK)
2480 return true;
2481
2482 // If evaluation raised FP exception, the result can depend on rounding
2483 // mode. If the latter is unknown, folding is not possible.
2484 if (ORM == RoundingMode::Dynamic)
2485 return false;
2486
2487 // If FP exceptions are ignored, fold the call, even if such exception is
2488 // raised.
2489 if (EB && *EB != fp::ExceptionBehavior::ebStrict)
2490 return true;
2491
2492 // Leave the calculation for runtime so that exception flags be correctly set
2493 // in hardware.
2494 return false;
2495}
2496
2497/// Returns the rounding mode that should be used for constant evaluation.
2498static RoundingMode
2499getEvaluationRoundingMode(const ConstrainedFPIntrinsic *CI) {
2500 std::optional<RoundingMode> ORM = CI->getRoundingMode();
2501 if (!ORM || *ORM == RoundingMode::Dynamic)
2502 // Even if the rounding mode is unknown, try evaluating the operation.
2503 // If it does not raise inexact exception, rounding was not applied,
2504 // so the result is exact and does not depend on rounding mode. Whether
2505 // other FP exceptions are raised, it does not depend on rounding mode.
2507 return *ORM;
2508}
2509
2510/// Try to constant fold llvm.canonicalize for the given caller and value.
2511static Constant *constantFoldCanonicalize(const Type *Ty, const APFloat &Src,
2512 const Function *CtxF = nullptr) {
2513 // Zero, positive and negative, is always OK to fold.
2514 if (Src.isZero()) {
2515 // Get a fresh 0, since ppc_fp128 does have non-canonical zeros.
2516 return ConstantFP::get(
2517 Ty->getContext(),
2518 APFloat::getZero(Src.getSemantics(), Src.isNegative()));
2519 }
2520
2521 if (!Ty->isIEEELikeFPTy())
2522 return nullptr;
2523
2524 // Zero is always canonical and the sign must be preserved.
2525 //
2526 // Denorms and nans may have special encodings, but it should be OK to fold a
2527 // totally average number.
2528 if (Src.isNormal() || Src.isInfinity())
2529 return ConstantFP::get(Ty->getContext(), Src);
2530
2531 if (Src.isDenormal() && CtxF) {
2532 DenormalMode DenormMode = CtxF->getDenormalMode(Src.getSemantics());
2533
2534 if (DenormMode == DenormalMode::getIEEE())
2535 return ConstantFP::get(Ty->getContext(), Src);
2536
2537 if (DenormMode.Input == DenormalMode::Dynamic)
2538 return nullptr;
2539
2540 // If we know if either input or output is flushed, we can fold.
2541 if ((DenormMode.Input == DenormalMode::Dynamic &&
2542 DenormMode.Output == DenormalMode::IEEE) ||
2543 (DenormMode.Input == DenormalMode::IEEE &&
2544 DenormMode.Output == DenormalMode::Dynamic))
2545 return nullptr;
2546
2547 bool IsPositive =
2548 (!Src.isNegative() || DenormMode.Input == DenormalMode::PositiveZero ||
2549 (DenormMode.Output == DenormalMode::PositiveZero &&
2550 DenormMode.Input == DenormalMode::IEEE));
2551
2552 return ConstantFP::get(Ty->getContext(),
2553 APFloat::getZero(Src.getSemantics(), !IsPositive));
2554 }
2555
2556 return nullptr;
2557}
2558
2559static Constant *ConstantFoldScalarCall1(StringRef Name,
2560 Intrinsic::ID IntrinsicID, Type *Ty,
2562 const TargetLibraryInfo *TLI = nullptr,
2563 const CallBase *Call = nullptr) {
2564 assert(Operands.size() == 1 && "Wrong number of operands.");
2565
2566 if (IntrinsicID == Intrinsic::is_constant) {
2567 // We know we have a "Constant" argument. But we want to only
2568 // return true for manifest constants, not those that depend on
2569 // constants with unknowable values, e.g. GlobalValue or BlockAddress.
2570 if (Operands[0]->isManifestConstant())
2571 return ConstantInt::getTrue(Ty->getContext());
2572 return nullptr;
2573 }
2574
2575 if (isa<UndefValue>(Operands[0])) {
2576 // cosine(arg) is between -1 and 1. cosine(invalid arg) is NaN.
2577 // ctpop() is between 0 and bitwidth, pick 0 for undef.
2578 // fptoui.sat and fptosi.sat can always fold to zero (for a zero input).
2579 if (IntrinsicID == Intrinsic::cos ||
2580 IntrinsicID == Intrinsic::ctpop ||
2581 IntrinsicID == Intrinsic::fptoui_sat ||
2582 IntrinsicID == Intrinsic::fptosi_sat ||
2583 IntrinsicID == Intrinsic::canonicalize)
2584 return Constant::getNullValue(Ty);
2585 if (IntrinsicID == Intrinsic::bswap ||
2586 IntrinsicID == Intrinsic::bitreverse ||
2587 IntrinsicID == Intrinsic::launder_invariant_group ||
2588 IntrinsicID == Intrinsic::strip_invariant_group)
2589 return Operands[0];
2590 }
2591
2593 // launder(null) == null == strip(null) iff in addrspace 0
2594 if (IntrinsicID == Intrinsic::launder_invariant_group ||
2595 IntrinsicID == Intrinsic::strip_invariant_group) {
2596 // If instruction is not yet put in a basic block (e.g. when cloning
2597 // a function during inlining), Call's caller may not be available.
2598 // So check Call's BB first before querying Call->getCaller.
2599 const Function *Caller =
2600 Call && Call->getParent() ? Call->getCaller() : nullptr;
2601 if (Caller &&
2603 Caller, Operands[0]->getType()->getPointerAddressSpace())) {
2604 return Operands[0];
2605 }
2606 return nullptr;
2607 }
2608 }
2609
2610 if (auto *Op = dyn_cast<ConstantFP>(Operands[0])) {
2611 APFloat U = Op->getValueAPF();
2612
2613 if (IntrinsicID == Intrinsic::wasm_trunc_signed ||
2614 IntrinsicID == Intrinsic::wasm_trunc_unsigned) {
2615 bool Signed = IntrinsicID == Intrinsic::wasm_trunc_signed;
2616
2617 if (U.isNaN())
2618 return nullptr;
2619
2620 unsigned Width = Ty->getIntegerBitWidth();
2621 APSInt Int(Width, !Signed);
2622 bool IsExact = false;
2624 U.convertToInteger(Int, APFloat::rmTowardZero, &IsExact);
2625
2627 return ConstantInt::get(Ty, Int);
2628
2629 return nullptr;
2630 }
2631
2632 if (IntrinsicID == Intrinsic::fptoui_sat ||
2633 IntrinsicID == Intrinsic::fptosi_sat) {
2634 // convertToInteger() already has the desired saturation semantics.
2635 APSInt Int(Ty->getIntegerBitWidth(),
2636 IntrinsicID == Intrinsic::fptoui_sat);
2637 bool IsExact;
2638 U.convertToInteger(Int, APFloat::rmTowardZero, &IsExact);
2639 return ConstantInt::get(Ty, Int);
2640 }
2641
2642 if (IntrinsicID == Intrinsic::canonicalize) {
2643 const Function *CtxF =
2644 Call && Call->getParent() ? Call->getFunction() : nullptr;
2645 return constantFoldCanonicalize(Ty, U, CtxF);
2646 }
2647
2648#if defined(HAS_IEE754_FLOAT128) && defined(HAS_LOGF128)
2649 if (Ty->isFP128Ty()) {
2650 if (IntrinsicID == Intrinsic::log) {
2651 float128 Result = logf128(Op->getValueAPF().convertToQuad());
2652 return GetConstantFoldFPValue128(Result, Ty);
2653 }
2654
2655 if (TLI && TLI->getLibFunc(Name) == LibFunc_logl &&
2656 TLI->has(LibFunc_logl))
2657 return ConstantFoldFP128(logf128, Op->getValueAPF(), Ty);
2658 }
2659#endif
2660
2661 if (!Ty->isHalfTy() && !Ty->isFloatTy() && !Ty->isDoubleTy() &&
2662 !Ty->isIntegerTy() && !Ty->isBFloatTy())
2663 return nullptr;
2664
2665 // Use internal versions of these intrinsics.
2666
2667 if (IntrinsicID == Intrinsic::nearbyint || IntrinsicID == Intrinsic::rint ||
2668 IntrinsicID == Intrinsic::roundeven) {
2669 U.roundToIntegral(APFloat::rmNearestTiesToEven);
2670 return ConstantFP::get(Ty, U);
2671 }
2672
2673 if (IntrinsicID == Intrinsic::round) {
2674 U.roundToIntegral(APFloat::rmNearestTiesToAway);
2675 return ConstantFP::get(Ty, U);
2676 }
2677
2678 if (IntrinsicID == Intrinsic::roundeven) {
2679 U.roundToIntegral(APFloat::rmNearestTiesToEven);
2680 return ConstantFP::get(Ty, U);
2681 }
2682
2683 if (IntrinsicID == Intrinsic::ceil) {
2684 U.roundToIntegral(APFloat::rmTowardPositive);
2685 return ConstantFP::get(Ty, U);
2686 }
2687
2688 if (IntrinsicID == Intrinsic::floor) {
2689 U.roundToIntegral(APFloat::rmTowardNegative);
2690 return ConstantFP::get(Ty, U);
2691 }
2692
2693 if (IntrinsicID == Intrinsic::trunc) {
2694 U.roundToIntegral(APFloat::rmTowardZero);
2695 return ConstantFP::get(Ty, U);
2696 }
2697
2698 if (IntrinsicID == Intrinsic::fabs) {
2699 U.clearSign();
2700 return ConstantFP::get(Ty, U);
2701 }
2702
2703 if (IntrinsicID == Intrinsic::amdgcn_fract) {
2704 // The v_fract instruction behaves like the OpenCL spec, which defines
2705 // fract(x) as fmin(x - floor(x), 0x1.fffffep-1f): "The min() operator is
2706 // there to prevent fract(-small) from returning 1.0. It returns the
2707 // largest positive floating-point number less than 1.0."
2708 APFloat FloorU(U);
2709 FloorU.roundToIntegral(APFloat::rmTowardNegative);
2710 APFloat FractU(U - FloorU);
2711 APFloat AlmostOne(U.getSemantics(), 1);
2712 AlmostOne.next(/*nextDown*/ true);
2713 return ConstantFP::get(Ty, minimum(FractU, AlmostOne));
2714 }
2715
2716 // Rounding operations (floor, trunc, ceil, round and nearbyint) do not
2717 // raise FP exceptions, unless the argument is signaling NaN.
2718
2720 std::optional<APFloat::roundingMode> RM;
2721 switch (IntrinsicID) {
2722 default:
2723 break;
2724 case Intrinsic::experimental_constrained_nearbyint:
2725 case Intrinsic::experimental_constrained_rint: {
2726 RM = CI->getRoundingMode();
2727 if (!RM || *RM == RoundingMode::Dynamic)
2728 return nullptr;
2729 break;
2730 }
2731 case Intrinsic::experimental_constrained_round:
2733 break;
2734 case Intrinsic::experimental_constrained_ceil:
2736 break;
2737 case Intrinsic::experimental_constrained_floor:
2739 break;
2740 case Intrinsic::experimental_constrained_trunc:
2742 break;
2743 }
2744 if (RM) {
2745 if (U.isFinite()) {
2746 APFloat::opStatus St = U.roundToIntegral(*RM);
2747 if (IntrinsicID == Intrinsic::experimental_constrained_rint &&
2748 St == APFloat::opInexact) {
2749 std::optional<fp::ExceptionBehavior> EB =
2751 if (EB == fp::ebStrict)
2752 return nullptr;
2753 }
2754 } else if (U.isSignaling()) {
2755 std::optional<fp::ExceptionBehavior> EB = CI->getExceptionBehavior();
2756 if (EB && *EB != fp::ebIgnore)
2757 return nullptr;
2758 U = APFloat::getQNaN(U.getSemantics());
2759 }
2760 return ConstantFP::get(Ty, U);
2761 }
2762 }
2763
2764 // NVVM float/double to signed/unsigned int32/int64 conversions:
2765 switch (IntrinsicID) {
2766 // f2i
2767 case Intrinsic::nvvm_f2i_rm:
2768 case Intrinsic::nvvm_f2i_rn:
2769 case Intrinsic::nvvm_f2i_rp:
2770 case Intrinsic::nvvm_f2i_rz:
2771 case Intrinsic::nvvm_f2i_rm_ftz:
2772 case Intrinsic::nvvm_f2i_rn_ftz:
2773 case Intrinsic::nvvm_f2i_rp_ftz:
2774 case Intrinsic::nvvm_f2i_rz_ftz:
2775 // f2ui
2776 case Intrinsic::nvvm_f2ui_rm:
2777 case Intrinsic::nvvm_f2ui_rn:
2778 case Intrinsic::nvvm_f2ui_rp:
2779 case Intrinsic::nvvm_f2ui_rz:
2780 case Intrinsic::nvvm_f2ui_rm_ftz:
2781 case Intrinsic::nvvm_f2ui_rn_ftz:
2782 case Intrinsic::nvvm_f2ui_rp_ftz:
2783 case Intrinsic::nvvm_f2ui_rz_ftz:
2784 // d2i
2785 case Intrinsic::nvvm_d2i_rm:
2786 case Intrinsic::nvvm_d2i_rn:
2787 case Intrinsic::nvvm_d2i_rp:
2788 case Intrinsic::nvvm_d2i_rz:
2789 // d2ui
2790 case Intrinsic::nvvm_d2ui_rm:
2791 case Intrinsic::nvvm_d2ui_rn:
2792 case Intrinsic::nvvm_d2ui_rp:
2793 case Intrinsic::nvvm_d2ui_rz:
2794 // f2ll
2795 case Intrinsic::nvvm_f2ll_rm:
2796 case Intrinsic::nvvm_f2ll_rn:
2797 case Intrinsic::nvvm_f2ll_rp:
2798 case Intrinsic::nvvm_f2ll_rz:
2799 case Intrinsic::nvvm_f2ll_rm_ftz:
2800 case Intrinsic::nvvm_f2ll_rn_ftz:
2801 case Intrinsic::nvvm_f2ll_rp_ftz:
2802 case Intrinsic::nvvm_f2ll_rz_ftz:
2803 // f2ull
2804 case Intrinsic::nvvm_f2ull_rm:
2805 case Intrinsic::nvvm_f2ull_rn:
2806 case Intrinsic::nvvm_f2ull_rp:
2807 case Intrinsic::nvvm_f2ull_rz:
2808 case Intrinsic::nvvm_f2ull_rm_ftz:
2809 case Intrinsic::nvvm_f2ull_rn_ftz:
2810 case Intrinsic::nvvm_f2ull_rp_ftz:
2811 case Intrinsic::nvvm_f2ull_rz_ftz:
2812 // d2ll
2813 case Intrinsic::nvvm_d2ll_rm:
2814 case Intrinsic::nvvm_d2ll_rn:
2815 case Intrinsic::nvvm_d2ll_rp:
2816 case Intrinsic::nvvm_d2ll_rz:
2817 // d2ull
2818 case Intrinsic::nvvm_d2ull_rm:
2819 case Intrinsic::nvvm_d2ull_rn:
2820 case Intrinsic::nvvm_d2ull_rp:
2821 case Intrinsic::nvvm_d2ull_rz: {
2822 // In float-to-integer conversion, NaN inputs are converted to 0.
2823 if (U.isNaN()) {
2824 // In float-to-integer conversion, NaN inputs are converted to 0
2825 // when the source and destination bitwidths are both less than 64.
2826 if (nvvm::FPToIntegerIntrinsicNaNZero(IntrinsicID))
2827 return ConstantInt::get(Ty, 0);
2828
2829 // Otherwise, the most significant bit is set.
2830 unsigned BitWidth = Ty->getIntegerBitWidth();
2831 uint64_t Val = 1ULL << (BitWidth - 1);
2832 return ConstantInt::get(Ty, APInt(BitWidth, Val, /*IsSigned=*/false));
2833 }
2834
2835 APFloat::roundingMode RMode =
2837 bool IsFTZ = nvvm::FPToIntegerIntrinsicShouldFTZ(IntrinsicID);
2838 bool IsSigned = nvvm::FPToIntegerIntrinsicResultIsSigned(IntrinsicID);
2839
2840 APSInt ResInt(Ty->getIntegerBitWidth(), !IsSigned);
2841 auto FloatToRound = IsFTZ ? FTZPreserveSign(U) : U;
2842
2843 // Return max/min value for integers if the result is +/-inf or
2844 // is too large to fit in the result's integer bitwidth.
2845 bool IsExact = false;
2846 FloatToRound.convertToInteger(ResInt, RMode, &IsExact);
2847 return ConstantInt::get(Ty, ResInt);
2848 }
2849 }
2850
2851 /// We only fold functions with finite arguments. Folding NaN and inf is
2852 /// likely to be aborted with an exception anyway, and some host libms
2853 /// have known errors raising exceptions.
2854 if (!U.isFinite())
2855 return nullptr;
2856
2857 /// Currently APFloat versions of these functions do not exist, so we use
2858 /// the host native double versions. Float versions are not called
2859 /// directly but for all these it is true (float)(f((double)arg)) ==
2860 /// f(arg). Long double not supported yet.
2861 const APFloat &APF = Op->getValueAPF();
2862
2863 switch (IntrinsicID) {
2864 default: break;
2865 case Intrinsic::log:
2866 if (U.isZero())
2867 return ConstantFP::getInfinity(Ty, true);
2868 if (U.isNegative())
2869 return ConstantFP::getNaN(Ty);
2870 if (U.isOne())
2871 return ConstantFP::getZero(Ty);
2872 return ConstantFoldFP(log, APF, Ty);
2873 case Intrinsic::log2:
2874 if (U.isZero())
2875 return ConstantFP::getInfinity(Ty, true);
2876 if (U.isNegative())
2877 return ConstantFP::getNaN(Ty);
2878 if (U.isOne())
2879 return ConstantFP::getZero(Ty);
2880 // TODO: What about hosts that lack a C99 library?
2881 return ConstantFoldFP(log2, APF, Ty);
2882 case Intrinsic::log10:
2883 if (U.isZero())
2884 return ConstantFP::getInfinity(Ty, true);
2885 if (U.isNegative())
2886 return ConstantFP::getNaN(Ty);
2887 if (U.isOne())
2888 return ConstantFP::getZero(Ty);
2889 // TODO: What about hosts that lack a C99 library?
2890 return ConstantFoldFP(log10, APF, Ty);
2891 case Intrinsic::exp:
2892 return ConstantFoldFP(exp, APF, Ty);
2893 case Intrinsic::exp2:
2894 // Fold exp2(x) as pow(2, x), in case the host lacks a C99 library.
2895 return ConstantFoldBinaryFP(pow, APFloat(2.0), APF, Ty);
2896 case Intrinsic::exp10:
2897 // Fold exp10(x) as pow(10, x), in case the host lacks a C99 library.
2898 return ConstantFoldBinaryFP(pow, APFloat(10.0), APF, Ty);
2899 case Intrinsic::sin:
2900 return ConstantFoldFP(sin, APF, Ty);
2901 case Intrinsic::cos:
2902 return ConstantFoldFP(cos, APF, Ty);
2903 case Intrinsic::sinh:
2904 return ConstantFoldFP(sinh, APF, Ty);
2905 case Intrinsic::cosh:
2906 return ConstantFoldFP(cosh, APF, Ty);
2907 case Intrinsic::atan:
2908 // Implement optional behavior from C's Annex F for +/-0.0.
2909 if (U.isZero())
2910 return ConstantFP::get(Ty, U);
2911 return ConstantFoldFP(atan, APF, Ty);
2912 case Intrinsic::sqrt:
2913 return ConstantFoldFP(sqrt, APF, Ty);
2914
2915 // NVVM Intrinsics:
2916 case Intrinsic::nvvm_ceil_ftz_f:
2917 case Intrinsic::nvvm_ceil_f:
2918 case Intrinsic::nvvm_ceil_d:
2919 return ConstantFoldFP(
2920 ceil, APF, Ty,
2922 nvvm::UnaryMathIntrinsicShouldFTZ(IntrinsicID)));
2923
2924 case Intrinsic::nvvm_fabs_ftz:
2925 case Intrinsic::nvvm_fabs:
2926 return ConstantFoldFP(
2927 fabs, APF, Ty,
2929 nvvm::UnaryMathIntrinsicShouldFTZ(IntrinsicID)));
2930
2931 case Intrinsic::nvvm_floor_ftz_f:
2932 case Intrinsic::nvvm_floor_f:
2933 case Intrinsic::nvvm_floor_d:
2934 return ConstantFoldFP(
2935 floor, APF, Ty,
2937 nvvm::UnaryMathIntrinsicShouldFTZ(IntrinsicID)));
2938
2939 case Intrinsic::nvvm_rcp_rm_ftz_f:
2940 case Intrinsic::nvvm_rcp_rn_ftz_f:
2941 case Intrinsic::nvvm_rcp_rp_ftz_f:
2942 case Intrinsic::nvvm_rcp_rz_ftz_f:
2943 case Intrinsic::nvvm_rcp_rm_d:
2944 case Intrinsic::nvvm_rcp_rm_f:
2945 case Intrinsic::nvvm_rcp_rn_d:
2946 case Intrinsic::nvvm_rcp_rn_f:
2947 case Intrinsic::nvvm_rcp_rp_d:
2948 case Intrinsic::nvvm_rcp_rp_f:
2949 case Intrinsic::nvvm_rcp_rz_d:
2950 case Intrinsic::nvvm_rcp_rz_f: {
2951 APFloat::roundingMode RoundMode = nvvm::GetRCPRoundingMode(IntrinsicID);
2952 bool IsFTZ = nvvm::RCPShouldFTZ(IntrinsicID);
2953
2954 auto Denominator = IsFTZ ? FTZPreserveSign(APF) : APF;
2956 APFloat::opStatus Status = Res.divide(Denominator, RoundMode);
2957
2959 if (IsFTZ)
2960 Res = FTZPreserveSign(Res);
2961 return ConstantFP::get(Ty, Res);
2962 }
2963 return nullptr;
2964 }
2965
2966 case Intrinsic::nvvm_round_ftz_f:
2967 case Intrinsic::nvvm_round_f:
2968 case Intrinsic::nvvm_round_d: {
2969 // nvvm_round is lowered to PTX cvt.rni, which will round to nearest
2970 // integer, choosing even integer if source is equidistant between two
2971 // integers, so the semantics are closer to "rint" rather than "round".
2972 bool IsFTZ = nvvm::UnaryMathIntrinsicShouldFTZ(IntrinsicID);
2973 auto V = IsFTZ ? FTZPreserveSign(APF) : APF;
2975 return ConstantFP::get(Ty, V);
2976 }
2977
2978 case Intrinsic::nvvm_saturate_ftz_f:
2979 case Intrinsic::nvvm_saturate_d:
2980 case Intrinsic::nvvm_saturate_f: {
2981 bool IsFTZ = nvvm::UnaryMathIntrinsicShouldFTZ(IntrinsicID);
2982 auto V = IsFTZ ? FTZPreserveSign(APF) : APF;
2983 if (V.isNegative() || V.isZero() || V.isNaN())
2984 return ConstantFP::getZero(Ty);
2986 if (V > One)
2987 return ConstantFP::get(Ty, One);
2988 return ConstantFP::get(Ty, APF);
2989 }
2990
2991 case Intrinsic::nvvm_sqrt_rn_ftz_f:
2992 case Intrinsic::nvvm_sqrt_f:
2993 case Intrinsic::nvvm_sqrt_rn_d:
2994 case Intrinsic::nvvm_sqrt_rn_f:
2995 if (APF.isNegative())
2996 return nullptr;
2997 return ConstantFoldFP(
2998 sqrt, APF, Ty,
3000 nvvm::UnaryMathIntrinsicShouldFTZ(IntrinsicID)));
3001
3002 // AMDGCN Intrinsics:
3003 case Intrinsic::amdgcn_cos:
3004 case Intrinsic::amdgcn_sin: {
3005 double V = getValueAsDouble(Op);
3006 if (V < -256.0 || V > 256.0)
3007 // The gfx8 and gfx9 architectures handle arguments outside the range
3008 // [-256, 256] differently. This should be a rare case so bail out
3009 // rather than trying to handle the difference.
3010 return nullptr;
3011 bool IsCos = IntrinsicID == Intrinsic::amdgcn_cos;
3012 double V4 = V * 4.0;
3013 if (V4 == floor(V4)) {
3014 // Force exact results for quarter-integer inputs.
3015 const double SinVals[4] = { 0.0, 1.0, 0.0, -1.0 };
3016 V = SinVals[((int)V4 + (IsCos ? 1 : 0)) & 3];
3017 } else {
3018 if (IsCos)
3019 V = cos(V * 2.0 * numbers::pi);
3020 else
3021 V = sin(V * 2.0 * numbers::pi);
3022 }
3023 return GetConstantFoldFPValue(V, Ty);
3024 }
3025 }
3026
3027 if (!TLI)
3028 return nullptr;
3029
3030 LibFunc Func = TLI->getLibFunc(Name);
3031 if (Func == NotLibFunc)
3032 return nullptr;
3033
3034 switch (Func) {
3035 default:
3036 break;
3037 case LibFunc_acos:
3038 case LibFunc_acosf:
3039 case LibFunc_acos_finite:
3040 case LibFunc_acosf_finite:
3041 if (TLI->has(Func))
3042 return ConstantFoldFP(acos, APF, Ty);
3043 break;
3044 case LibFunc_asin:
3045 case LibFunc_asinf:
3046 case LibFunc_asin_finite:
3047 case LibFunc_asinf_finite:
3048 if (TLI->has(Func))
3049 return ConstantFoldFP(asin, APF, Ty);
3050 break;
3051 case LibFunc_atan:
3052 case LibFunc_atanf:
3053 // Implement optional behavior from C's Annex F for +/-0.0.
3054 if (U.isZero())
3055 return ConstantFP::get(Ty, U);
3056 if (TLI->has(Func))
3057 return ConstantFoldFP(atan, APF, Ty);
3058 break;
3059 case LibFunc_ceil:
3060 case LibFunc_ceilf:
3061 if (TLI->has(Func)) {
3062 U.roundToIntegral(APFloat::rmTowardPositive);
3063 return ConstantFP::get(Ty, U);
3064 }
3065 break;
3066 case LibFunc_cos:
3067 case LibFunc_cosf:
3068 if (TLI->has(Func))
3069 return ConstantFoldFP(cos, APF, Ty);
3070 break;
3071 case LibFunc_cosh:
3072 case LibFunc_coshf:
3073 case LibFunc_cosh_finite:
3074 case LibFunc_coshf_finite:
3075 if (TLI->has(Func))
3076 return ConstantFoldFP(cosh, APF, Ty);
3077 break;
3078 case LibFunc_exp:
3079 case LibFunc_expf:
3080 case LibFunc_exp_finite:
3081 case LibFunc_expf_finite:
3082 if (TLI->has(Func))
3083 return ConstantFoldFP(exp, APF, Ty);
3084 break;
3085 case LibFunc_exp2:
3086 case LibFunc_exp2f:
3087 case LibFunc_exp2_finite:
3088 case LibFunc_exp2f_finite:
3089 if (TLI->has(Func))
3090 // Fold exp2(x) as pow(2, x), in case the host lacks a C99 library.
3091 return ConstantFoldBinaryFP(pow, APFloat(2.0), APF, Ty);
3092 break;
3093 case LibFunc_fabs:
3094 case LibFunc_fabsf:
3095 if (TLI->has(Func)) {
3096 U.clearSign();
3097 return ConstantFP::get(Ty, U);
3098 }
3099 break;
3100 case LibFunc_floor:
3101 case LibFunc_floorf:
3102 if (TLI->has(Func)) {
3103 U.roundToIntegral(APFloat::rmTowardNegative);
3104 return ConstantFP::get(Ty, U);
3105 }
3106 break;
3107 case LibFunc_log:
3108 case LibFunc_logf:
3109 case LibFunc_log_finite:
3110 case LibFunc_logf_finite:
3111 if (!APF.isNegative() && !APF.isZero() && TLI->has(Func))
3112 return ConstantFoldFP(log, APF, Ty);
3113 break;
3114 case LibFunc_log2:
3115 case LibFunc_log2f:
3116 case LibFunc_log2_finite:
3117 case LibFunc_log2f_finite:
3118 if (!APF.isNegative() && !APF.isZero() && TLI->has(Func))
3119 // TODO: What about hosts that lack a C99 library?
3120 return ConstantFoldFP(log2, APF, Ty);
3121 break;
3122 case LibFunc_log10:
3123 case LibFunc_log10f:
3124 case LibFunc_log10_finite:
3125 case LibFunc_log10f_finite:
3126 if (!APF.isNegative() && !APF.isZero() && TLI->has(Func))
3127 // TODO: What about hosts that lack a C99 library?
3128 return ConstantFoldFP(log10, APF, Ty);
3129 break;
3130 case LibFunc_ilogb:
3131 case LibFunc_ilogbf:
3132 if (!APF.isZero() && TLI->has(Func))
3133 return ConstantInt::get(Ty, ilogb(APF), true);
3134 break;
3135 case LibFunc_logb:
3136 case LibFunc_logbf:
3137 if (!APF.isZero() && TLI->has(Func))
3138 return ConstantFoldFP(logb, APF, Ty);
3139 break;
3140 case LibFunc_log1p:
3141 case LibFunc_log1pf:
3142 // Implement optional behavior from C's Annex F for +/-0.0.
3143 if (U.isZero())
3144 return ConstantFP::get(Ty, U);
3145 if (APF > APFloat::getOne(APF.getSemantics(), true) && TLI->has(Func))
3146 return ConstantFoldFP(log1p, APF, Ty);
3147 break;
3148 case LibFunc_logl:
3149 return nullptr;
3150 case LibFunc_erf:
3151 case LibFunc_erff:
3152 if (TLI->has(Func))
3153 return ConstantFoldFP(erf, APF, Ty);
3154 break;
3155 case LibFunc_nearbyint:
3156 case LibFunc_nearbyintf:
3157 case LibFunc_rint:
3158 case LibFunc_rintf:
3159 case LibFunc_roundeven:
3160 case LibFunc_roundevenf:
3161 if (TLI->has(Func)) {
3162 U.roundToIntegral(APFloat::rmNearestTiesToEven);
3163 return ConstantFP::get(Ty, U);
3164 }
3165 break;
3166 case LibFunc_round:
3167 case LibFunc_roundf:
3168 if (TLI->has(Func)) {
3169 U.roundToIntegral(APFloat::rmNearestTiesToAway);
3170 return ConstantFP::get(Ty, U);
3171 }
3172 break;
3173 case LibFunc_sin:
3174 case LibFunc_sinf:
3175 if (TLI->has(Func))
3176 return ConstantFoldFP(sin, APF, Ty);
3177 break;
3178 case LibFunc_sinh:
3179 case LibFunc_sinhf:
3180 case LibFunc_sinh_finite:
3181 case LibFunc_sinhf_finite:
3182 if (TLI->has(Func))
3183 return ConstantFoldFP(sinh, APF, Ty);
3184 break;
3185 case LibFunc_sqrt:
3186 case LibFunc_sqrtf:
3187 if (!APF.isNegative() && TLI->has(Func))
3188 return ConstantFoldFP(sqrt, APF, Ty);
3189 break;
3190 case LibFunc_tan:
3191 case LibFunc_tanf:
3192 if (TLI->has(Func))
3193 return ConstantFoldFP(tan, APF, Ty);
3194 break;
3195 case LibFunc_tanh:
3196 case LibFunc_tanhf:
3197 if (TLI->has(Func))
3198 return ConstantFoldFP(tanh, APF, Ty);
3199 break;
3200 case LibFunc_trunc:
3201 case LibFunc_truncf:
3202 if (TLI->has(Func)) {
3203 U.roundToIntegral(APFloat::rmTowardZero);
3204 return ConstantFP::get(Ty, U);
3205 }
3206 break;
3207 }
3208 return nullptr;
3209 }
3210
3211 if (auto *Op = dyn_cast<ConstantInt>(Operands[0])) {
3212 switch (IntrinsicID) {
3213 case Intrinsic::bswap:
3214 return ConstantInt::get(Ty->getContext(), Op->getValue().byteSwap());
3215 case Intrinsic::ctpop:
3216 return ConstantInt::get(Ty, Op->getValue().popcount());
3217 case Intrinsic::bitreverse:
3218 return ConstantInt::get(Ty->getContext(), Op->getValue().reverseBits());
3219 case Intrinsic::amdgcn_s_wqm: {
3220 uint64_t Val = Op->getZExtValue();
3221 Val |= (Val & 0x5555555555555555ULL) << 1 |
3222 ((Val >> 1) & 0x5555555555555555ULL);
3223 Val |= (Val & 0x3333333333333333ULL) << 2 |
3224 ((Val >> 2) & 0x3333333333333333ULL);
3225 return ConstantInt::get(Ty, Val);
3226 }
3227
3228 case Intrinsic::amdgcn_s_quadmask: {
3229 uint64_t Val = Op->getZExtValue();
3230 uint64_t QuadMask = 0;
3231 for (unsigned I = 0; I < Op->getBitWidth() / 4; ++I, Val >>= 4) {
3232 if (!(Val & 0xF))
3233 continue;
3234
3235 QuadMask |= (1ULL << I);
3236 }
3237 return ConstantInt::get(Ty, QuadMask);
3238 }
3239
3240 case Intrinsic::amdgcn_s_bitreplicate: {
3241 uint64_t Val = Op->getZExtValue();
3242 Val = (Val & 0x000000000000FFFFULL) | (Val & 0x00000000FFFF0000ULL) << 16;
3243 Val = (Val & 0x000000FF000000FFULL) | (Val & 0x0000FF000000FF00ULL) << 8;
3244 Val = (Val & 0x000F000F000F000FULL) | (Val & 0x00F000F000F000F0ULL) << 4;
3245 Val = (Val & 0x0303030303030303ULL) | (Val & 0x0C0C0C0C0C0C0C0CULL) << 2;
3246 Val = (Val & 0x1111111111111111ULL) | (Val & 0x2222222222222222ULL) << 1;
3247 Val = Val | Val << 1;
3248 return ConstantInt::get(Ty, Val);
3249 }
3250 }
3251 }
3252
3253 if (Operands[0]->getType()->isVectorTy()) {
3254 auto *Op = cast<Constant>(Operands[0]);
3255 switch (IntrinsicID) {
3256 default: break;
3257 case Intrinsic::vector_reduce_add:
3258 case Intrinsic::vector_reduce_mul:
3259 case Intrinsic::vector_reduce_and:
3260 case Intrinsic::vector_reduce_or:
3261 case Intrinsic::vector_reduce_xor:
3262 case Intrinsic::vector_reduce_smin:
3263 case Intrinsic::vector_reduce_smax:
3264 case Intrinsic::vector_reduce_umin:
3265 case Intrinsic::vector_reduce_umax:
3266 if (Constant *C = constantFoldVectorReduce(IntrinsicID, Operands[0]))
3267 return C;
3268 break;
3269 case Intrinsic::x86_sse_cvtss2si:
3270 case Intrinsic::x86_sse_cvtss2si64:
3271 case Intrinsic::x86_sse2_cvtsd2si:
3272 case Intrinsic::x86_sse2_cvtsd2si64:
3273 if (ConstantFP *FPOp =
3274 dyn_cast_or_null<ConstantFP>(Op->getAggregateElement(0U)))
3275 return ConstantFoldSSEConvertToInt(FPOp->getValueAPF(),
3276 /*roundTowardZero=*/false, Ty,
3277 /*IsSigned*/true);
3278 break;
3279 case Intrinsic::x86_sse_cvttss2si:
3280 case Intrinsic::x86_sse_cvttss2si64:
3281 case Intrinsic::x86_sse2_cvttsd2si:
3282 case Intrinsic::x86_sse2_cvttsd2si64:
3283 if (ConstantFP *FPOp =
3284 dyn_cast_or_null<ConstantFP>(Op->getAggregateElement(0U)))
3285 return ConstantFoldSSEConvertToInt(FPOp->getValueAPF(),
3286 /*roundTowardZero=*/true, Ty,
3287 /*IsSigned*/true);
3288 break;
3289
3290 case Intrinsic::wasm_anytrue:
3291 return Op->isNullValue() ? ConstantInt::get(Ty, 0)
3292 : ConstantInt::get(Ty, 1);
3293
3294 case Intrinsic::wasm_alltrue:
3295 // Check each element individually
3296 unsigned E = cast<FixedVectorType>(Op->getType())->getNumElements();
3297 for (unsigned I = 0; I != E; ++I) {
3298 Constant *Elt = Op->getAggregateElement(I);
3299 // Return false as soon as we find a non-true element.
3300 if (Elt && Elt->isNullValue())
3301 return ConstantInt::get(Ty, 0);
3302 // Bail as soon as we find an element we cannot prove to be true.
3303 if (!Elt || !isa<ConstantInt>(Elt))
3304 return nullptr;
3305 }
3306
3307 return ConstantInt::get(Ty, 1);
3308 }
3309 }
3310
3311 return nullptr;
3312}
3313
3314static Constant *evaluateCompare(const APFloat &Op1, const APFloat &Op2,
3318 FCmpInst::Predicate Cond = FCmp->getPredicate();
3319 if (FCmp->isSignaling()) {
3320 if (Op1.isNaN() || Op2.isNaN())
3322 } else {
3323 if (Op1.isSignaling() || Op2.isSignaling())
3325 }
3326 bool Result = FCmpInst::compare(Op1, Op2, Cond);
3327 if (mayFoldConstrained(const_cast<ConstrainedFPCmpIntrinsic *>(FCmp), St))
3328 return ConstantInt::get(Call->getType()->getScalarType(), Result);
3329 return nullptr;
3330}
3331
3332static Constant *ConstantFoldNextToward(const APFloat &Op0, const APFloat &Op1,
3333 const Type *RetTy) {
3334 assert(RetTy != nullptr);
3335 bool LosesInfo;
3336
3337 if (Op1.isSignaling())
3338 return nullptr;
3339 if (Op1.isNaN()) {
3340 APFloat Ret(Op1);
3341 Ret.convert(RetTy->getFltSemantics(), detail::rmNearestTiesToEven,
3342 &LosesInfo);
3343 return ConstantFP::get(RetTy->getContext(), Ret);
3344 }
3345
3346 // Recall that the second argument of nexttoward is always a long double,
3347 // so we may need to promote the first argument for comparisons to be valid.
3348 APFloat PromotedOp0(Op0);
3349 PromotedOp0.convert(Op1.getSemantics(), detail::rmNearestTiesToEven,
3350 &LosesInfo);
3351 assert(!LosesInfo && "Unexpected lossy promotion");
3352 const APFloat::cmpResult Result = PromotedOp0.compare(Op1);
3353
3354 // When equal, the standard says we must return the second argument.
3355 // This allows nice behavior such as nexttoward(0.0, -0.0) = -0.0 and
3356 // nexttoward(-0.0, 0.0) = 0.0
3357 if (Result == detail::cmpEqual) {
3358 APFloat Ret(Op1);
3359 Ret.convert(RetTy->getFltSemantics(), detail::rmNearestTiesToEven,
3360 &LosesInfo);
3361 return ConstantFP::get(RetTy->getContext(), Ret);
3362 }
3363
3364 APFloat Next(Op0);
3365 Next.next(/*nextDown=*/Result == APFloat::cmpGreaterThan);
3366 if (Next.isZero() || Next.isDenormal() || Next.isSignaling())
3367 return nullptr;
3368 return ConstantFP::get(RetTy->getContext(), Next);
3369}
3370
3371static Constant *ConstantFoldLibCall2(StringRef Name, Type *Ty,
3373 const TargetLibraryInfo *TLI = nullptr) {
3374 if (!TLI)
3375 return nullptr;
3376
3377 LibFunc Func = TLI->getLibFunc(Name);
3378 if (Func == NotLibFunc)
3379 return nullptr;
3380
3381 const auto *Op1 = dyn_cast<ConstantFP>(Operands[0]);
3382 if (!Op1)
3383 return nullptr;
3384
3385 const auto *Op2 = dyn_cast<ConstantFP>(Operands[1]);
3386 if (!Op2)
3387 return nullptr;
3388
3389 const APFloat &Op1V = Op1->getValueAPF();
3390 const APFloat &Op2V = Op2->getValueAPF();
3391
3392 switch (Func) {
3393 default:
3394 break;
3395 case LibFunc_pow:
3396 case LibFunc_powf:
3397 case LibFunc_pow_finite:
3398 case LibFunc_powf_finite:
3399 if (TLI->has(Func))
3400 return ConstantFoldBinaryFP(pow, Op1V, Op2V, Ty);
3401 break;
3402 case LibFunc_fmod:
3403 case LibFunc_fmodf:
3404 if (TLI->has(Func)) {
3405 APFloat V = Op1->getValueAPF();
3406 if (APFloat::opStatus::opOK == V.mod(Op2->getValueAPF()))
3407 return ConstantFP::get(Ty, V);
3408 }
3409 break;
3410 case LibFunc_remainder:
3411 case LibFunc_remainderf:
3412 if (TLI->has(Func)) {
3413 APFloat V = Op1->getValueAPF();
3414 if (APFloat::opStatus::opOK == V.remainder(Op2->getValueAPF()))
3415 return ConstantFP::get(Ty, V);
3416 }
3417 break;
3418 case LibFunc_atan2:
3419 case LibFunc_atan2f:
3420 // atan2(+/-0.0, +/-0.0) is known to raise an exception on some libm
3421 // (Solaris), so we do not assume a known result for that.
3422 if (Op1V.isZero() && Op2V.isZero())
3423 return nullptr;
3424 [[fallthrough]];
3425 case LibFunc_atan2_finite:
3426 case LibFunc_atan2f_finite:
3427 if (TLI->has(Func))
3428 return ConstantFoldBinaryFP(atan2, Op1V, Op2V, Ty);
3429 break;
3430 case LibFunc_nextafter:
3431 case LibFunc_nextafterf:
3432 case LibFunc_nexttoward:
3433 case LibFunc_nexttowardf:
3434 if (TLI->has(Func))
3435 return ConstantFoldNextToward(Op1V, Op2V, Ty);
3436 break;
3437 }
3438
3439 return nullptr;
3440}
3441
3442static Constant *ConstantFoldIntrinsicCall2(Intrinsic::ID IntrinsicID, Type *Ty,
3444 const CallBase *Call = nullptr) {
3445 assert(Operands.size() == 2 && "Wrong number of operands.");
3446
3447 if (Ty->isFloatingPointTy()) {
3448 // TODO: We should have undef handling for all of the FP intrinsics that
3449 // are attempted to be folded in this function.
3450 bool IsOp0Undef = isa<UndefValue>(Operands[0]);
3451 bool IsOp1Undef = isa<UndefValue>(Operands[1]);
3452 switch (IntrinsicID) {
3453 case Intrinsic::maxnum:
3454 case Intrinsic::minnum:
3455 case Intrinsic::maximum:
3456 case Intrinsic::minimum:
3457 case Intrinsic::maximumnum:
3458 case Intrinsic::minimumnum:
3459 case Intrinsic::nvvm_fmax_d:
3460 case Intrinsic::nvvm_fmin_d:
3461 // If one argument is undef, return the other argument.
3462 if (IsOp0Undef)
3463 return Operands[1];
3464 if (IsOp1Undef)
3465 return Operands[0];
3466 break;
3467
3468 case Intrinsic::nvvm_fmax_f:
3469 case Intrinsic::nvvm_fmax_ftz_f:
3470 case Intrinsic::nvvm_fmax_ftz_nan_f:
3471 case Intrinsic::nvvm_fmax_ftz_nan_xorsign_abs_f:
3472 case Intrinsic::nvvm_fmax_ftz_xorsign_abs_f:
3473 case Intrinsic::nvvm_fmax_nan_f:
3474 case Intrinsic::nvvm_fmax_nan_xorsign_abs_f:
3475 case Intrinsic::nvvm_fmax_xorsign_abs_f:
3476
3477 case Intrinsic::nvvm_fmin_f:
3478 case Intrinsic::nvvm_fmin_ftz_f:
3479 case Intrinsic::nvvm_fmin_ftz_nan_f:
3480 case Intrinsic::nvvm_fmin_ftz_nan_xorsign_abs_f:
3481 case Intrinsic::nvvm_fmin_ftz_xorsign_abs_f:
3482 case Intrinsic::nvvm_fmin_nan_f:
3483 case Intrinsic::nvvm_fmin_nan_xorsign_abs_f:
3484 case Intrinsic::nvvm_fmin_xorsign_abs_f:
3485 // If one arg is undef, the other arg can be returned only if it is
3486 // constant, as we may need to flush it to sign-preserving zero or
3487 // canonicalize the NaN.
3488 if (!IsOp0Undef && !IsOp1Undef)
3489 break;
3490 if (auto *Op = dyn_cast<ConstantFP>(Operands[IsOp0Undef ? 1 : 0])) {
3491 if (Op->isNaN()) {
3492 APInt NVCanonicalNaN(32, 0x7fffffff);
3493 return ConstantFP::get(
3494 Ty, APFloat(Ty->getFltSemantics(), NVCanonicalNaN));
3495 }
3496 if (nvvm::FMinFMaxShouldFTZ(IntrinsicID))
3497 return ConstantFP::get(Ty, FTZPreserveSign(Op->getValueAPF()));
3498 else
3499 return Op;
3500 }
3501 break;
3502 }
3503 }
3504
3505 if (const auto *Op1 = dyn_cast<ConstantFP>(Operands[0])) {
3506 const APFloat &Op1V = Op1->getValueAPF();
3507
3508 if (const auto *Op2 = dyn_cast<ConstantFP>(Operands[1])) {
3509 if (Op2->getType() != Op1->getType())
3510 return nullptr;
3511 const APFloat &Op2V = Op2->getValueAPF();
3512
3513 if (const auto *ConstrIntr =
3515 RoundingMode RM = getEvaluationRoundingMode(ConstrIntr);
3516 APFloat Res = Op1V;
3518 switch (IntrinsicID) {
3519 default:
3520 return nullptr;
3521 case Intrinsic::experimental_constrained_fadd:
3522 St = Res.add(Op2V, RM);
3523 break;
3524 case Intrinsic::experimental_constrained_fsub:
3525 St = Res.subtract(Op2V, RM);
3526 break;
3527 case Intrinsic::experimental_constrained_fmul:
3528 St = Res.multiply(Op2V, RM);
3529 break;
3530 case Intrinsic::experimental_constrained_fdiv:
3531 St = Res.divide(Op2V, RM);
3532 break;
3533 case Intrinsic::experimental_constrained_frem:
3534 St = Res.mod(Op2V);
3535 break;
3536 case Intrinsic::experimental_constrained_fcmp:
3537 case Intrinsic::experimental_constrained_fcmps:
3538 return evaluateCompare(Op1V, Op2V, ConstrIntr);
3539 }
3540 if (mayFoldConstrained(const_cast<ConstrainedFPIntrinsic *>(ConstrIntr),
3541 St))
3542 return ConstantFP::get(Ty, Res);
3543 return nullptr;
3544 }
3545
3546 switch (IntrinsicID) {
3547 default:
3548 break;
3549 case Intrinsic::copysign:
3550 return ConstantFP::get(Ty, APFloat::copySign(Op1V, Op2V));
3551 case Intrinsic::minnum:
3552 return ConstantFP::get(Ty, minnum(Op1V, Op2V));
3553 case Intrinsic::maxnum:
3554 return ConstantFP::get(Ty, maxnum(Op1V, Op2V));
3555 case Intrinsic::minimum:
3556 return ConstantFP::get(Ty, minimum(Op1V, Op2V));
3557 case Intrinsic::maximum:
3558 return ConstantFP::get(Ty, maximum(Op1V, Op2V));
3559 case Intrinsic::minimumnum:
3560 return ConstantFP::get(Ty, minimumnum(Op1V, Op2V));
3561 case Intrinsic::maximumnum:
3562 return ConstantFP::get(Ty, maximumnum(Op1V, Op2V));
3563
3564 case Intrinsic::nvvm_fmax_d:
3565 case Intrinsic::nvvm_fmax_f:
3566 case Intrinsic::nvvm_fmax_ftz_f:
3567 case Intrinsic::nvvm_fmax_ftz_nan_f:
3568 case Intrinsic::nvvm_fmax_ftz_nan_xorsign_abs_f:
3569 case Intrinsic::nvvm_fmax_ftz_xorsign_abs_f:
3570 case Intrinsic::nvvm_fmax_nan_f:
3571 case Intrinsic::nvvm_fmax_nan_xorsign_abs_f:
3572 case Intrinsic::nvvm_fmax_xorsign_abs_f:
3573
3574 case Intrinsic::nvvm_fmin_d:
3575 case Intrinsic::nvvm_fmin_f:
3576 case Intrinsic::nvvm_fmin_ftz_f:
3577 case Intrinsic::nvvm_fmin_ftz_nan_f:
3578 case Intrinsic::nvvm_fmin_ftz_nan_xorsign_abs_f:
3579 case Intrinsic::nvvm_fmin_ftz_xorsign_abs_f:
3580 case Intrinsic::nvvm_fmin_nan_f:
3581 case Intrinsic::nvvm_fmin_nan_xorsign_abs_f:
3582 case Intrinsic::nvvm_fmin_xorsign_abs_f: {
3583
3584 bool ShouldCanonicalizeNaNs = !(IntrinsicID == Intrinsic::nvvm_fmax_d ||
3585 IntrinsicID == Intrinsic::nvvm_fmin_d);
3586 bool IsFTZ = nvvm::FMinFMaxShouldFTZ(IntrinsicID);
3587 bool IsNaNPropagating = nvvm::FMinFMaxPropagatesNaNs(IntrinsicID);
3588 bool IsXorSignAbs = nvvm::FMinFMaxIsXorSignAbs(IntrinsicID);
3589
3590 APFloat A = IsFTZ ? FTZPreserveSign(Op1V) : Op1V;
3591 APFloat B = IsFTZ ? FTZPreserveSign(Op2V) : Op2V;
3592
3593 bool XorSign = false;
3594 if (IsXorSignAbs) {
3595 XorSign = A.isNegative() ^ B.isNegative();
3596 A = abs(A);
3597 B = abs(B);
3598 }
3599
3600 bool IsFMax = false;
3601 switch (IntrinsicID) {
3602 case Intrinsic::nvvm_fmax_d:
3603 case Intrinsic::nvvm_fmax_f:
3604 case Intrinsic::nvvm_fmax_ftz_f:
3605 case Intrinsic::nvvm_fmax_ftz_nan_f:
3606 case Intrinsic::nvvm_fmax_ftz_nan_xorsign_abs_f:
3607 case Intrinsic::nvvm_fmax_ftz_xorsign_abs_f:
3608 case Intrinsic::nvvm_fmax_nan_f:
3609 case Intrinsic::nvvm_fmax_nan_xorsign_abs_f:
3610 case Intrinsic::nvvm_fmax_xorsign_abs_f:
3611 IsFMax = true;
3612 break;
3613 }
3614 APFloat Res =
3615 IsFMax ? (IsNaNPropagating ? maximum(A, B) : maximumnum(A, B))
3616 : (IsNaNPropagating ? minimum(A, B) : minimumnum(A, B));
3617
3618 if (ShouldCanonicalizeNaNs && Res.isNaN()) {
3619 APFloat NVCanonicalNaN(Res.getSemantics(), APInt(32, 0x7fffffff));
3620 return ConstantFP::get(Ty, NVCanonicalNaN);
3621 }
3622
3623 if (IsXorSignAbs && XorSign != Res.isNegative())
3624 Res.changeSign();
3625
3626 return ConstantFP::get(Ty, Res);
3627 }
3628
3629 case Intrinsic::nvvm_mul_rm_f:
3630 case Intrinsic::nvvm_mul_rn_f:
3631 case Intrinsic::nvvm_mul_rp_f:
3632 case Intrinsic::nvvm_mul_rz_f:
3633 case Intrinsic::nvvm_mul_rm_d:
3634 case Intrinsic::nvvm_mul_rn_d:
3635 case Intrinsic::nvvm_mul_rp_d:
3636 case Intrinsic::nvvm_mul_rz_d:
3637 case Intrinsic::nvvm_mul_rm_ftz_f:
3638 case Intrinsic::nvvm_mul_rn_ftz_f:
3639 case Intrinsic::nvvm_mul_rp_ftz_f:
3640 case Intrinsic::nvvm_mul_rz_ftz_f: {
3641
3642 bool IsFTZ = nvvm::FMulShouldFTZ(IntrinsicID);
3643 APFloat A = IsFTZ ? FTZPreserveSign(Op1V) : Op1V;
3644 APFloat B = IsFTZ ? FTZPreserveSign(Op2V) : Op2V;
3645
3646 APFloat::roundingMode RoundMode =
3647 nvvm::GetFMulRoundingMode(IntrinsicID);
3648
3649 APFloat Res = A;
3650 APFloat::opStatus Status = Res.multiply(B, RoundMode);
3651
3652 if (!Res.isNaN() &&
3654 Res = IsFTZ ? FTZPreserveSign(Res) : Res;
3655 return ConstantFP::get(Ty, Res);
3656 }
3657 return nullptr;
3658 }
3659
3660 case Intrinsic::nvvm_div_rm_f:
3661 case Intrinsic::nvvm_div_rn_f:
3662 case Intrinsic::nvvm_div_rp_f:
3663 case Intrinsic::nvvm_div_rz_f:
3664 case Intrinsic::nvvm_div_rm_d:
3665 case Intrinsic::nvvm_div_rn_d:
3666 case Intrinsic::nvvm_div_rp_d:
3667 case Intrinsic::nvvm_div_rz_d:
3668 case Intrinsic::nvvm_div_rm_ftz_f:
3669 case Intrinsic::nvvm_div_rn_ftz_f:
3670 case Intrinsic::nvvm_div_rp_ftz_f:
3671 case Intrinsic::nvvm_div_rz_ftz_f: {
3672 bool IsFTZ = nvvm::FDivShouldFTZ(IntrinsicID);
3673 APFloat A = IsFTZ ? FTZPreserveSign(Op1V) : Op1V;
3674 APFloat B = IsFTZ ? FTZPreserveSign(Op2V) : Op2V;
3675 APFloat::roundingMode RoundMode =
3676 nvvm::GetFDivRoundingMode(IntrinsicID);
3677
3678 APFloat Res = A;
3679 APFloat::opStatus Status = Res.divide(B, RoundMode);
3680 if (!Res.isNaN() &&
3682 Res = IsFTZ ? FTZPreserveSign(Res) : Res;
3683 return ConstantFP::get(Ty, Res);
3684 }
3685 return nullptr;
3686 }
3687 }
3688
3689 if (!Ty->isHalfTy() && !Ty->isFloatTy() && !Ty->isDoubleTy())
3690 return nullptr;
3691
3692 switch (IntrinsicID) {
3693 default:
3694 break;
3695 case Intrinsic::pow:
3696 return ConstantFoldBinaryFP(pow, Op1V, Op2V, Ty);
3697 case Intrinsic::amdgcn_fmul_legacy:
3698 // The legacy behaviour is that multiplying +/- 0.0 by anything, even
3699 // NaN or infinity, gives +0.0.
3700 if (Op1V.isZero() || Op2V.isZero())
3701 return ConstantFP::getZero(Ty);
3702 return ConstantFP::get(Ty, Op1V * Op2V);
3703 }
3704
3705 } else if (auto *Op2C = dyn_cast<ConstantInt>(Operands[1])) {
3706 switch (IntrinsicID) {
3707 case Intrinsic::ldexp: {
3708 // APFloat::scalbn takes the exponent as `int`. Clamp wider integer
3709 // exponents into [INT_MIN, INT_MAX] so values still saturate the
3710 // result to +/-inf or +/-0.
3711 APInt Exp = Op2C->getValue();
3712 Exp = Exp.getBitWidth() < 32 ? Exp.sext(32) : Exp.truncSSat(32);
3713 return ConstantFP::get(
3714 Ty->getContext(),
3715 scalbn(Op1V, Exp.getSExtValue(), APFloat::rmNearestTiesToEven));
3716 }
3717 case Intrinsic::is_fpclass: {
3718 FPClassTest Mask = static_cast<FPClassTest>(Op2C->getZExtValue());
3719 bool Result =
3720 ((Mask & fcSNan) && Op1V.isNaN() && Op1V.isSignaling()) ||
3721 ((Mask & fcQNan) && Op1V.isNaN() && !Op1V.isSignaling()) ||
3722 ((Mask & fcNegInf) && Op1V.isNegInfinity()) ||
3723 ((Mask & fcNegNormal) && Op1V.isNormal() && Op1V.isNegative()) ||
3724 ((Mask & fcNegSubnormal) && Op1V.isDenormal() && Op1V.isNegative()) ||
3725 ((Mask & fcNegZero) && Op1V.isZero() && Op1V.isNegative()) ||
3726 ((Mask & fcPosZero) && Op1V.isZero() && !Op1V.isNegative()) ||
3727 ((Mask & fcPosSubnormal) && Op1V.isDenormal() && !Op1V.isNegative()) ||
3728 ((Mask & fcPosNormal) && Op1V.isNormal() && !Op1V.isNegative()) ||
3729 ((Mask & fcPosInf) && Op1V.isPosInfinity());
3730 return ConstantInt::get(Ty, Result);
3731 }
3732 case Intrinsic::powi: {
3733 // Square-and-multiply using the operand's own semantics, matching
3734 // the multiply sequence ExpandPowI builds in SelectionDAG.
3735 int Exp = static_cast<int>(Op2C->getSExtValue());
3736 unsigned UExp = static_cast<unsigned>(Exp);
3737 if (Exp < 0)
3738 UExp = -UExp;
3739 const fltSemantics &Semantics = Op1V.getSemantics();
3740 APFloat Res = APFloat::getOne(Semantics);
3741 APFloat CurSquare = Op1V;
3742 while (UExp) {
3743 if (UExp & 1)
3744 Res = Res * CurSquare;
3745 CurSquare = CurSquare * CurSquare;
3746 UExp >>= 1;
3747 }
3748 if (Exp < 0)
3749 Res = APFloat::getOne(Semantics) / Res;
3750 return ConstantFP::get(Ty, Res);
3751 }
3752 default:
3753 break;
3754 }
3755 }
3756 return nullptr;
3757 }
3758
3759 if (Operands[0]->getType()->isIntegerTy() &&
3760 Operands[1]->getType()->isIntegerTy()) {
3761 const APInt *C0, *C1;
3762 if (!getConstIntOrUndef(Operands[0], C0) ||
3763 !getConstIntOrUndef(Operands[1], C1))
3764 return nullptr;
3765
3766 switch (IntrinsicID) {
3767 default: break;
3768 case Intrinsic::smax:
3769 case Intrinsic::smin:
3770 case Intrinsic::umax:
3771 case Intrinsic::umin:
3772 if (!C0 || !C1)
3773 return MinMaxIntrinsic::getSaturationPoint(IntrinsicID, Ty);
3774 return ConstantInt::get(
3775 Ty, ICmpInst::compare(*C0, *C1,
3776 MinMaxIntrinsic::getPredicate(IntrinsicID))
3777 ? *C0
3778 : *C1);
3779
3780 case Intrinsic::scmp:
3781 case Intrinsic::ucmp:
3782 if (!C0 || !C1)
3783 return ConstantInt::get(Ty, 0);
3784
3785 int Res;
3786 if (IntrinsicID == Intrinsic::scmp)
3787 Res = C0->sgt(*C1) ? 1 : C0->slt(*C1) ? -1 : 0;
3788 else
3789 Res = C0->ugt(*C1) ? 1 : C0->ult(*C1) ? -1 : 0;
3790 return ConstantInt::get(Ty, Res, /*IsSigned=*/true);
3791
3792 case Intrinsic::usub_with_overflow:
3793 case Intrinsic::ssub_with_overflow:
3794 // X - undef -> { 0, false }
3795 // undef - X -> { 0, false }
3796 if (!C0 || !C1)
3797 return Constant::getNullValue(Ty);
3798 [[fallthrough]];
3799 case Intrinsic::uadd_with_overflow:
3800 case Intrinsic::sadd_with_overflow:
3801 // X + undef -> { -1, false }
3802 // undef + x -> { -1, false }
3803 if (!C0 || !C1) {
3804 return ConstantStruct::get(
3805 cast<StructType>(Ty),
3806 {Constant::getAllOnesValue(Ty->getStructElementType(0)),
3807 Constant::getNullValue(Ty->getStructElementType(1))});
3808 }
3809 [[fallthrough]];
3810 case Intrinsic::smul_with_overflow:
3811 case Intrinsic::umul_with_overflow: {
3812 // undef * X -> { 0, false }
3813 // X * undef -> { 0, false }
3814 if (!C0 || !C1)
3815 return Constant::getNullValue(Ty);
3816
3817 APInt Res;
3818 bool Overflow;
3819 switch (IntrinsicID) {
3820 default: llvm_unreachable("Invalid case");
3821 case Intrinsic::sadd_with_overflow:
3822 Res = C0->sadd_ov(*C1, Overflow);
3823 break;
3824 case Intrinsic::uadd_with_overflow:
3825 Res = C0->uadd_ov(*C1, Overflow);
3826 break;
3827 case Intrinsic::ssub_with_overflow:
3828 Res = C0->ssub_ov(*C1, Overflow);
3829 break;
3830 case Intrinsic::usub_with_overflow:
3831 Res = C0->usub_ov(*C1, Overflow);
3832 break;
3833 case Intrinsic::smul_with_overflow:
3834 Res = C0->smul_ov(*C1, Overflow);
3835 break;
3836 case Intrinsic::umul_with_overflow:
3837 Res = C0->umul_ov(*C1, Overflow);
3838 break;
3839 }
3840 Constant *Ops[] = {
3841 ConstantInt::get(Ty->getContext(), Res),
3842 ConstantInt::get(Type::getInt1Ty(Ty->getContext()), Overflow)
3843 };
3845 }
3846 case Intrinsic::uadd_sat:
3847 case Intrinsic::sadd_sat:
3848 if (!C0 || !C1)
3849 return Constant::getAllOnesValue(Ty);
3850 if (IntrinsicID == Intrinsic::uadd_sat)
3851 return ConstantInt::get(Ty, C0->uadd_sat(*C1));
3852 else
3853 return ConstantInt::get(Ty, C0->sadd_sat(*C1));
3854 case Intrinsic::usub_sat:
3855 case Intrinsic::ssub_sat:
3856 if (!C0 || !C1)
3857 return Constant::getNullValue(Ty);
3858 if (IntrinsicID == Intrinsic::usub_sat)
3859 return ConstantInt::get(Ty, C0->usub_sat(*C1));
3860 else
3861 return ConstantInt::get(Ty, C0->ssub_sat(*C1));
3862 case Intrinsic::cttz:
3863 case Intrinsic::ctlz:
3864 assert(C1 && "Must be constant int");
3865
3866 // cttz(0, 1) and ctlz(0, 1) are poison.
3867 if (C1->isOne() && (!C0 || C0->isZero()))
3868 return PoisonValue::get(Ty);
3869 if (!C0)
3870 return Constant::getNullValue(Ty);
3871 if (IntrinsicID == Intrinsic::cttz)
3872 return ConstantInt::get(Ty, C0->countr_zero());
3873 else
3874 return ConstantInt::get(Ty, C0->countl_zero());
3875
3876 case Intrinsic::abs:
3877 assert(C1 && "Must be constant int");
3878 assert((C1->isOne() || C1->isZero()) && "Must be 0 or 1");
3879
3880 // Undef or minimum val operand with poison min --> poison
3881 if (C1->isOne() && (!C0 || C0->isMinSignedValue()))
3882 return PoisonValue::get(Ty);
3883
3884 // Undef operand with no poison min --> 0 (sign bit must be clear)
3885 if (!C0)
3886 return Constant::getNullValue(Ty);
3887
3888 return ConstantInt::get(Ty, C0->abs());
3889 case Intrinsic::clmul:
3890 if (!C0 || !C1)
3891 return Constant::getNullValue(Ty);
3892 return ConstantInt::get(Ty, APIntOps::clmul(*C0, *C1));
3893 case Intrinsic::pdep:
3894 if (!C0 || !C1)
3895 return Constant::getNullValue(Ty);
3896 return ConstantInt::get(Ty, APIntOps::pdep(*C0, *C1));
3897 case Intrinsic::pext:
3898 if (!C0 || !C1)
3899 return Constant::getNullValue(Ty);
3900 return ConstantInt::get(Ty, APIntOps::pext(*C0, *C1));
3901 case Intrinsic::amdgcn_wave_reduce_umin:
3902 case Intrinsic::amdgcn_wave_reduce_umax:
3903 case Intrinsic::amdgcn_wave_reduce_max:
3904 case Intrinsic::amdgcn_wave_reduce_min:
3905 case Intrinsic::amdgcn_wave_reduce_and:
3906 case Intrinsic::amdgcn_wave_reduce_or:
3907 return Operands[0];
3908 }
3909
3910 return nullptr;
3911 }
3912
3913 // Support ConstantVector in case we have an Undef in the top.
3914 if ((isa<ConstantVector>(Operands[0]) ||
3916 // Check for default rounding mode.
3917 // FIXME: Support other rounding modes?
3919 cast<ConstantInt>(Operands[1])->getValue() == 4) {
3920 auto *Op = cast<Constant>(Operands[0]);
3921 switch (IntrinsicID) {
3922 default: break;
3923 case Intrinsic::x86_avx512_vcvtss2si32:
3924 case Intrinsic::x86_avx512_vcvtss2si64:
3925 case Intrinsic::x86_avx512_vcvtsd2si32:
3926 case Intrinsic::x86_avx512_vcvtsd2si64:
3927 if (ConstantFP *FPOp =
3928 dyn_cast_or_null<ConstantFP>(Op->getAggregateElement(0U)))
3929 return ConstantFoldSSEConvertToInt(FPOp->getValueAPF(),
3930 /*roundTowardZero=*/false, Ty,
3931 /*IsSigned*/true);
3932 break;
3933 case Intrinsic::x86_avx512_vcvtss2usi32:
3934 case Intrinsic::x86_avx512_vcvtss2usi64:
3935 case Intrinsic::x86_avx512_vcvtsd2usi32:
3936 case Intrinsic::x86_avx512_vcvtsd2usi64:
3937 if (ConstantFP *FPOp =
3938 dyn_cast_or_null<ConstantFP>(Op->getAggregateElement(0U)))
3939 return ConstantFoldSSEConvertToInt(FPOp->getValueAPF(),
3940 /*roundTowardZero=*/false, Ty,
3941 /*IsSigned*/false);
3942 break;
3943 case Intrinsic::x86_avx512_cvttss2si:
3944 case Intrinsic::x86_avx512_cvttss2si64:
3945 case Intrinsic::x86_avx512_cvttsd2si:
3946 case Intrinsic::x86_avx512_cvttsd2si64:
3947 if (ConstantFP *FPOp =
3948 dyn_cast_or_null<ConstantFP>(Op->getAggregateElement(0U)))
3949 return ConstantFoldSSEConvertToInt(FPOp->getValueAPF(),
3950 /*roundTowardZero=*/true, Ty,
3951 /*IsSigned*/true);
3952 break;
3953 case Intrinsic::x86_avx512_cvttss2usi:
3954 case Intrinsic::x86_avx512_cvttss2usi64:
3955 case Intrinsic::x86_avx512_cvttsd2usi:
3956 case Intrinsic::x86_avx512_cvttsd2usi64:
3957 if (ConstantFP *FPOp =
3958 dyn_cast_or_null<ConstantFP>(Op->getAggregateElement(0U)))
3959 return ConstantFoldSSEConvertToInt(FPOp->getValueAPF(),
3960 /*roundTowardZero=*/true, Ty,
3961 /*IsSigned*/false);
3962 break;
3963 }
3964 }
3965
3966 if (IntrinsicID == Intrinsic::experimental_cttz_elts) {
3967 auto *FVTy = dyn_cast<FixedVectorType>(Operands[0]->getType());
3968 bool ZeroIsPoison = cast<ConstantInt>(Operands[1])->isOne();
3969 if (!FVTy)
3970 return nullptr;
3971 unsigned Width = Ty->getIntegerBitWidth();
3972 if (APInt::getMaxValue(Width).ult(FVTy->getNumElements()))
3973 return PoisonValue::get(Ty);
3974 for (unsigned I = 0; I < FVTy->getNumElements(); ++I) {
3975 Constant *Elt = Operands[0]->getAggregateElement(I);
3976 if (!Elt)
3977 return nullptr;
3978 if (isa<UndefValue>(Elt) || Elt->isNullValue())
3979 continue;
3980 return ConstantInt::get(Ty, I);
3981 }
3982 if (ZeroIsPoison)
3983 return PoisonValue::get(Ty);
3984 return ConstantInt::get(Ty, FVTy->getNumElements());
3985 }
3986 return nullptr;
3987}
3988
3989static APFloat ConstantFoldAMDGCNCubeIntrinsic(Intrinsic::ID IntrinsicID,
3990 const APFloat &S0,
3991 const APFloat &S1,
3992 const APFloat &S2) {
3993 unsigned ID;
3994 const fltSemantics &Sem = S0.getSemantics();
3995 APFloat MA(Sem), SC(Sem), TC(Sem);
3996 if (abs(S2) >= abs(S0) && abs(S2) >= abs(S1)) {
3997 if (S2.isNegative() && S2.isNonZero() && !S2.isNaN()) {
3998 // S2 < 0
3999 ID = 5;
4000 SC = -S0;
4001 } else {
4002 ID = 4;
4003 SC = S0;
4004 }
4005 MA = S2;
4006 TC = -S1;
4007 } else if (abs(S1) >= abs(S0)) {
4008 if (S1.isNegative() && S1.isNonZero() && !S1.isNaN()) {
4009 // S1 < 0
4010 ID = 3;
4011 TC = -S2;
4012 } else {
4013 ID = 2;
4014 TC = S2;
4015 }
4016 MA = S1;
4017 SC = S0;
4018 } else {
4019 if (S0.isNegative() && S0.isNonZero() && !S0.isNaN()) {
4020 // S0 < 0
4021 ID = 1;
4022 SC = S2;
4023 } else {
4024 ID = 0;
4025 SC = -S2;
4026 }
4027 MA = S0;
4028 TC = -S1;
4029 }
4030 switch (IntrinsicID) {
4031 default:
4032 llvm_unreachable("unhandled amdgcn cube intrinsic");
4033 case Intrinsic::amdgcn_cubeid:
4034 return APFloat(Sem, ID);
4035 case Intrinsic::amdgcn_cubema:
4036 return MA + MA;
4037 case Intrinsic::amdgcn_cubesc:
4038 return SC;
4039 case Intrinsic::amdgcn_cubetc:
4040 return TC;
4041 }
4042}
4043
4044static Constant *ConstantFoldAMDGCNPermIntrinsic(ArrayRef<Constant *> Operands,
4045 Type *Ty) {
4046 const APInt *C0, *C1, *C2;
4047 if (!getConstIntOrUndef(Operands[0], C0) ||
4048 !getConstIntOrUndef(Operands[1], C1) ||
4049 !getConstIntOrUndef(Operands[2], C2))
4050 return nullptr;
4051
4052 if (!C2)
4053 return UndefValue::get(Ty);
4054
4055 APInt Val(32, 0);
4056 unsigned NumUndefBytes = 0;
4057 for (unsigned I = 0; I < 32; I += 8) {
4058 unsigned Sel = C2->extractBitsAsZExtValue(8, I);
4059 unsigned B = 0;
4060
4061 if (Sel >= 13)
4062 B = 0xff;
4063 else if (Sel == 12)
4064 B = 0x00;
4065 else {
4066 const APInt *Src = ((Sel & 10) == 10 || (Sel & 12) == 4) ? C0 : C1;
4067 if (!Src)
4068 ++NumUndefBytes;
4069 else if (Sel < 8)
4070 B = Src->extractBitsAsZExtValue(8, (Sel & 3) * 8);
4071 else
4072 B = Src->extractBitsAsZExtValue(1, (Sel & 1) ? 31 : 15) * 0xff;
4073 }
4074
4075 Val.insertBits(B, I, 8);
4076 }
4077
4078 if (NumUndefBytes == 4)
4079 return UndefValue::get(Ty);
4080
4081 return ConstantInt::get(Ty, Val);
4082}
4083
4084static Constant *ConstantFoldScalarCall3(StringRef Name,
4085 Intrinsic::ID IntrinsicID, Type *Ty,
4087 const TargetLibraryInfo *TLI = nullptr,
4088 const CallBase *Call = nullptr) {
4089 assert(Operands.size() == 3 && "Wrong number of operands.");
4090
4091 if (const auto *Op1 = dyn_cast<ConstantFP>(Operands[0])) {
4092 if (const auto *Op2 = dyn_cast<ConstantFP>(Operands[1])) {
4093 if (const auto *Op3 = dyn_cast<ConstantFP>(Operands[2])) {
4094 const APFloat &C1 = Op1->getValueAPF();
4095 const APFloat &C2 = Op2->getValueAPF();
4096 const APFloat &C3 = Op3->getValueAPF();
4097
4098 if (const auto *ConstrIntr =
4100 RoundingMode RM = getEvaluationRoundingMode(ConstrIntr);
4101 APFloat Res = C1;
4103 switch (IntrinsicID) {
4104 default:
4105 return nullptr;
4106 case Intrinsic::experimental_constrained_fma:
4107 case Intrinsic::experimental_constrained_fmuladd:
4108 St = Res.fusedMultiplyAdd(C2, C3, RM);
4109 break;
4110 }
4111 if (mayFoldConstrained(
4112 const_cast<ConstrainedFPIntrinsic *>(ConstrIntr), St))
4113 return ConstantFP::get(Ty, Res);
4114 return nullptr;
4115 }
4116
4117 switch (IntrinsicID) {
4118 default: break;
4119 case Intrinsic::amdgcn_fma_legacy: {
4120 // The legacy behaviour is that multiplying +/- 0.0 by anything, even
4121 // NaN or infinity, gives +0.0.
4122 if (C1.isZero() || C2.isZero()) {
4123 // It's tempting to just return C3 here, but that would give the
4124 // wrong result if C3 was -0.0.
4125 return ConstantFP::get(Ty, APFloat(0.0f) + C3);
4126 }
4127 [[fallthrough]];
4128 }
4129 case Intrinsic::fma:
4130 case Intrinsic::fmuladd: {
4131 APFloat V = C1;
4133 return ConstantFP::get(Ty, V);
4134 }
4135
4136 case Intrinsic::nvvm_fma_rm_f:
4137 case Intrinsic::nvvm_fma_rn_f:
4138 case Intrinsic::nvvm_fma_rp_f:
4139 case Intrinsic::nvvm_fma_rz_f:
4140 case Intrinsic::nvvm_fma_rm_d:
4141 case Intrinsic::nvvm_fma_rn_d:
4142 case Intrinsic::nvvm_fma_rp_d:
4143 case Intrinsic::nvvm_fma_rz_d:
4144 case Intrinsic::nvvm_fma_rm_ftz_f:
4145 case Intrinsic::nvvm_fma_rn_ftz_f:
4146 case Intrinsic::nvvm_fma_rp_ftz_f:
4147 case Intrinsic::nvvm_fma_rz_ftz_f: {
4148 bool IsFTZ = nvvm::FMAShouldFTZ(IntrinsicID);
4149 APFloat A = IsFTZ ? FTZPreserveSign(C1) : C1;
4150 APFloat B = IsFTZ ? FTZPreserveSign(C2) : C2;
4151 APFloat C = IsFTZ ? FTZPreserveSign(C3) : C3;
4152
4153 APFloat::roundingMode RoundMode =
4154 nvvm::GetFMARoundingMode(IntrinsicID);
4155
4156 APFloat Res = A;
4157 APFloat::opStatus Status = Res.fusedMultiplyAdd(B, C, RoundMode);
4158
4159 if (!Res.isNaN() &&
4161 Res = IsFTZ ? FTZPreserveSign(Res) : Res;
4162 return ConstantFP::get(Ty, Res);
4163 }
4164 return nullptr;
4165 }
4166
4167 case Intrinsic::amdgcn_cubeid:
4168 case Intrinsic::amdgcn_cubema:
4169 case Intrinsic::amdgcn_cubesc:
4170 case Intrinsic::amdgcn_cubetc: {
4171 APFloat V = ConstantFoldAMDGCNCubeIntrinsic(IntrinsicID, C1, C2, C3);
4172 return ConstantFP::get(Ty, V);
4173 }
4174 }
4175 }
4176
4177 // TODO: Add constant folding for the _sat variants.
4178 if (IntrinsicID == Intrinsic::nvvm_fadd ||
4179 IntrinsicID == Intrinsic::nvvm_fadd_ftz) {
4180 bool IsFTZ = IntrinsicID == Intrinsic::nvvm_fadd_ftz;
4181 APFloat A =
4182 IsFTZ ? FTZPreserveSign(Op1->getValueAPF()) : Op1->getValueAPF();
4183 APFloat B =
4184 IsFTZ ? FTZPreserveSign(Op2->getValueAPF()) : Op2->getValueAPF();
4185
4186 APFloat Res = A;
4189
4190 if (!Res.isNaN() &&
4192 Res = IsFTZ ? FTZPreserveSign(Res) : Res;
4193 return ConstantFP::get(Ty, Res);
4194 }
4195 return nullptr;
4196 }
4197 }
4198 }
4199
4200 if (IntrinsicID == Intrinsic::smul_fix ||
4201 IntrinsicID == Intrinsic::smul_fix_sat) {
4202 const APInt *C0, *C1;
4203 if (!getConstIntOrUndef(Operands[0], C0) ||
4204 !getConstIntOrUndef(Operands[1], C1))
4205 return nullptr;
4206
4207 // undef * C -> 0
4208 // C * undef -> 0
4209 if (!C0 || !C1)
4210 return Constant::getNullValue(Ty);
4211
4212 // This code performs rounding towards negative infinity in case the result
4213 // cannot be represented exactly for the given scale. Targets that do care
4214 // about rounding should use a target hook for specifying how rounding
4215 // should be done, and provide their own folding to be consistent with
4216 // rounding. This is the same approach as used by
4217 // DAGTypeLegalizer::ExpandIntRes_MULFIX.
4218 unsigned Scale = cast<ConstantInt>(Operands[2])->getZExtValue();
4219 unsigned Width = C0->getBitWidth();
4220 assert(Scale < Width && "Illegal scale.");
4221 unsigned ExtendedWidth = Width * 2;
4222 APInt Product =
4223 (C0->sext(ExtendedWidth) * C1->sext(ExtendedWidth)).ashr(Scale);
4224 if (IntrinsicID == Intrinsic::smul_fix_sat) {
4225 APInt Max = APInt::getSignedMaxValue(Width).sext(ExtendedWidth);
4226 APInt Min = APInt::getSignedMinValue(Width).sext(ExtendedWidth);
4227 Product = APIntOps::smin(Product, Max);
4228 Product = APIntOps::smax(Product, Min);
4229 }
4230 return ConstantInt::get(Ty->getContext(), Product.sextOrTrunc(Width));
4231 }
4232
4233 if (IntrinsicID == Intrinsic::fshl || IntrinsicID == Intrinsic::fshr) {
4234 const APInt *C0, *C1, *C2;
4235 if (!getConstIntOrUndef(Operands[0], C0) ||
4236 !getConstIntOrUndef(Operands[1], C1) ||
4237 !getConstIntOrUndef(Operands[2], C2))
4238 return nullptr;
4239
4240 bool IsRight = IntrinsicID == Intrinsic::fshr;
4241 if (!C2)
4242 return Operands[IsRight ? 1 : 0];
4243 if (!C0 && !C1)
4244 return UndefValue::get(Ty);
4245
4246 // The shift amount is interpreted as modulo the bitwidth. If the shift
4247 // amount is effectively 0, avoid UB due to oversized inverse shift below.
4248 unsigned BitWidth = C2->getBitWidth();
4249 unsigned ShAmt = C2->urem(BitWidth);
4250 if (!ShAmt)
4251 return Operands[IsRight ? 1 : 0];
4252
4253 // (C0 << ShlAmt) | (C1 >> LshrAmt)
4254 unsigned LshrAmt = IsRight ? ShAmt : BitWidth - ShAmt;
4255 unsigned ShlAmt = !IsRight ? ShAmt : BitWidth - ShAmt;
4256 if (!C0)
4257 return ConstantInt::get(Ty, C1->lshr(LshrAmt));
4258 if (!C1)
4259 return ConstantInt::get(Ty, C0->shl(ShlAmt));
4260 return ConstantInt::get(Ty, C0->shl(ShlAmt) | C1->lshr(LshrAmt));
4261 }
4262
4263 if (IntrinsicID == Intrinsic::amdgcn_perm)
4264 return ConstantFoldAMDGCNPermIntrinsic(Operands, Ty);
4265
4266 return nullptr;
4267}
4268
4269static Constant *ConstantFoldScalarCall(StringRef Name,
4270 Intrinsic::ID IntrinsicID, Type *Ty,
4272 const TargetLibraryInfo *TLI = nullptr,
4273 const CallBase *Call = nullptr) {
4274 if (IntrinsicID != Intrinsic::not_intrinsic &&
4276 intrinsicPropagatesPoison(IntrinsicID))
4277 return PoisonValue::get(Ty);
4278
4279 if (Operands.size() == 1)
4280 return ConstantFoldScalarCall1(Name, IntrinsicID, Ty, Operands, TLI, Call);
4281
4282 if (Operands.size() == 2) {
4283 if (Constant *FoldedLibCall =
4284 ConstantFoldLibCall2(Name, Ty, Operands, TLI)) {
4285 return FoldedLibCall;
4286 }
4287 return ConstantFoldIntrinsicCall2(IntrinsicID, Ty, Operands, Call);
4288 }
4289
4290 if (Operands.size() == 3)
4291 return ConstantFoldScalarCall3(Name, IntrinsicID, Ty, Operands, TLI, Call);
4292
4293 return nullptr;
4294}
4295
4296static Constant *ConstantFoldFixedVectorCall(
4297 StringRef Name, Intrinsic::ID IntrinsicID, FixedVectorType *FVTy,
4299 const TargetLibraryInfo *TLI = nullptr, const CallBase *Call = nullptr) {
4302 Type *Ty = FVTy->getElementType();
4303
4304 switch (IntrinsicID) {
4305 case Intrinsic::masked_load: {
4306 auto *SrcPtr = Operands[0];
4307 auto *Mask = Operands[1];
4308 auto *Passthru = Operands[2];
4309
4310 Constant *VecData = ConstantFoldLoadFromConstPtr(SrcPtr, FVTy, DL);
4311
4312 SmallVector<Constant *, 32> NewElements;
4313 for (unsigned I = 0, E = FVTy->getNumElements(); I != E; ++I) {
4314 auto *MaskElt = Mask->getAggregateElement(I);
4315 if (!MaskElt)
4316 break;
4317 auto *PassthruElt = Passthru->getAggregateElement(I);
4318 auto *VecElt = VecData ? VecData->getAggregateElement(I) : nullptr;
4319 if (isa<UndefValue>(MaskElt)) {
4320 if (PassthruElt)
4321 NewElements.push_back(PassthruElt);
4322 else if (VecElt)
4323 NewElements.push_back(VecElt);
4324 else
4325 return nullptr;
4326 }
4327 if (MaskElt->isNullValue()) {
4328 if (!PassthruElt)
4329 return nullptr;
4330 NewElements.push_back(PassthruElt);
4331 } else if (MaskElt->isOneValue()) {
4332 if (!VecElt)
4333 return nullptr;
4334 NewElements.push_back(VecElt);
4335 } else {
4336 return nullptr;
4337 }
4338 }
4339 if (NewElements.size() != FVTy->getNumElements())
4340 return nullptr;
4341 return ConstantVector::get(NewElements);
4342 }
4343 case Intrinsic::arm_mve_vctp8:
4344 case Intrinsic::arm_mve_vctp16:
4345 case Intrinsic::arm_mve_vctp32:
4346 case Intrinsic::arm_mve_vctp64: {
4347 if (auto *Op = dyn_cast<ConstantInt>(Operands[0])) {
4348 unsigned Lanes = FVTy->getNumElements();
4349 uint64_t Limit = Op->getZExtValue();
4350
4352 for (unsigned i = 0; i < Lanes; i++) {
4353 if (i < Limit)
4355 else
4357 }
4358 return ConstantVector::get(NCs);
4359 }
4360 return nullptr;
4361 }
4362 case Intrinsic::get_active_lane_mask: {
4363 auto *Op0 = dyn_cast<ConstantInt>(Operands[0]);
4364 auto *Op1 = dyn_cast<ConstantInt>(Operands[1]);
4365 if (Op0 && Op1) {
4366 unsigned Lanes = FVTy->getNumElements();
4367 APInt Base = Op0->getValue();
4368 APInt Limit = Op1->getValue();
4369
4371 for (unsigned I = 0; I < Lanes; I++) {
4372 bool Overflow;
4373 if (Base.uadd_ov(APInt(Base.getBitWidth(), I), Overflow).ult(Limit) &&
4374 !Overflow)
4376 else
4378 }
4379 return ConstantVector::get(NCs);
4380 }
4381 return nullptr;
4382 }
4383 case Intrinsic::vector_extract: {
4384 auto *Idx = dyn_cast<ConstantInt>(Operands[1]);
4385 Constant *Vec = Operands[0];
4386 if (!Idx || !isa<FixedVectorType>(Vec->getType()))
4387 return nullptr;
4388
4389 unsigned NumElements = FVTy->getNumElements();
4390 unsigned VecNumElements =
4391 cast<FixedVectorType>(Vec->getType())->getNumElements();
4392 unsigned StartingIndex = Idx->getZExtValue();
4393
4394 // Extracting entire vector is nop
4395 if (NumElements == VecNumElements && StartingIndex == 0)
4396 return Vec;
4397
4398 for (unsigned I = StartingIndex, E = StartingIndex + NumElements; I < E;
4399 ++I) {
4400 Constant *Elt = Vec->getAggregateElement(I);
4401 if (!Elt)
4402 return nullptr;
4403 Result[I - StartingIndex] = Elt;
4404 }
4405
4406 return ConstantVector::get(Result);
4407 }
4408 case Intrinsic::vector_insert: {
4409 Constant *Vec = Operands[0];
4410 Constant *SubVec = Operands[1];
4411 auto *Idx = dyn_cast<ConstantInt>(Operands[2]);
4412 if (!Idx || !isa<FixedVectorType>(Vec->getType()))
4413 return nullptr;
4414
4415 unsigned SubVecNumElements =
4416 cast<FixedVectorType>(SubVec->getType())->getNumElements();
4417 unsigned VecNumElements =
4418 cast<FixedVectorType>(Vec->getType())->getNumElements();
4419 unsigned IdxN = Idx->getZExtValue();
4420 // Replacing entire vector with a subvec is nop
4421 if (SubVecNumElements == VecNumElements && IdxN == 0)
4422 return SubVec;
4423
4424 for (unsigned I = 0; I < VecNumElements; ++I) {
4425 Constant *Elt;
4426 if (I < IdxN + SubVecNumElements)
4427 Elt = SubVec->getAggregateElement(I - IdxN);
4428 else
4429 Elt = Vec->getAggregateElement(I);
4430 if (!Elt)
4431 return nullptr;
4432 Result[I] = Elt;
4433 }
4434 return ConstantVector::get(Result);
4435 }
4436 case Intrinsic::vector_interleave2:
4437 case Intrinsic::vector_interleave3:
4438 case Intrinsic::vector_interleave4:
4439 case Intrinsic::vector_interleave5:
4440 case Intrinsic::vector_interleave6:
4441 case Intrinsic::vector_interleave7:
4442 case Intrinsic::vector_interleave8: {
4443 unsigned NumElements =
4444 cast<FixedVectorType>(Operands[0]->getType())->getNumElements();
4445 unsigned NumOperands = Operands.size();
4446 for (unsigned I = 0; I < NumElements; ++I) {
4447 for (unsigned J = 0; J < NumOperands; ++J) {
4448 Constant *Elt = Operands[J]->getAggregateElement(I);
4449 if (!Elt)
4450 return nullptr;
4451 Result[NumOperands * I + J] = Elt;
4452 }
4453 }
4454 return ConstantVector::get(Result);
4455 }
4456 case Intrinsic::wasm_dot: {
4457 unsigned NumElements =
4458 cast<FixedVectorType>(Operands[0]->getType())->getNumElements();
4459
4460 assert(NumElements == 8 && Result.size() == 4 &&
4461 "wasm dot takes i16x8 and produces i32x4");
4462 assert(Ty->isIntegerTy());
4463 int32_t MulVector[8];
4464
4465 for (unsigned I = 0; I < NumElements; ++I) {
4466 ConstantInt *Elt0 =
4467 dyn_cast<ConstantInt>(Operands[0]->getAggregateElement(I));
4468 ConstantInt *Elt1 =
4469 dyn_cast<ConstantInt>(Operands[1]->getAggregateElement(I));
4470
4471 if (!Elt0 || !Elt1)
4472 return nullptr;
4473
4474 MulVector[I] = Elt0->getSExtValue() * Elt1->getSExtValue();
4475 }
4476 for (unsigned I = 0; I < Result.size(); I++) {
4477 int64_t IAdd = (int64_t)MulVector[I * 2] + (int64_t)MulVector[I * 2 + 1];
4478 Result[I] = ConstantInt::getSigned(Ty, IAdd, /*ImplicitTrunc=*/true);
4479 }
4480
4481 return ConstantVector::get(Result);
4482 }
4483 case Intrinsic::nvvm_fadd:
4484 case Intrinsic::nvvm_fadd_ftz:
4485 // The rounding mode operand is a scalar, so the lane-wise folding below
4486 // does not apply.
4487 // TODO: Fold these by passing the rounding mode through to every lane.
4488 return nullptr;
4489 default:
4490 break;
4491 }
4492
4493 for (unsigned I = 0, E = FVTy->getNumElements(); I != E; ++I) {
4494 // Gather a column of constants.
4495 for (unsigned J = 0, JE = Operands.size(); J != JE; ++J) {
4496 // Some intrinsics use a scalar type for certain arguments.
4497 if (isVectorIntrinsicWithScalarOpAtArg(IntrinsicID, J, /*TTI=*/nullptr)) {
4498 Lane[J] = Operands[J];
4499 continue;
4500 }
4501
4502 Constant *Agg = Operands[J]->getAggregateElement(I);
4503 if (!Agg)
4504 return nullptr;
4505
4506 Lane[J] = Agg;
4507 }
4508
4509 // Use the regular scalar folding to simplify this column.
4510 Constant *Folded =
4511 ConstantFoldScalarCall(Name, IntrinsicID, Ty, Lane, TLI, Call);
4512 if (!Folded)
4513 return nullptr;
4514 Result[I] = Folded;
4515 }
4516
4517 return ConstantVector::get(Result);
4518}
4519
4520static Constant *ConstantFoldScalableVectorCall(
4521 StringRef Name, Intrinsic::ID IntrinsicID, ScalableVectorType *SVTy,
4523 const TargetLibraryInfo *TLI, const CallBase *Call) {
4524 switch (IntrinsicID) {
4525 case Intrinsic::aarch64_sve_convert_from_svbool: {
4526 Constant *Src = Operands[0];
4527 if (!Src->isNullValue())
4528 break;
4529
4530 return ConstantInt::getFalse(SVTy);
4531 }
4532 case Intrinsic::get_active_lane_mask: {
4533 auto *Op0 = dyn_cast<ConstantInt>(Operands[0]);
4534 auto *Op1 = dyn_cast<ConstantInt>(Operands[1]);
4535 if (Op0 && Op1 && Op0->getValue().uge(Op1->getValue()))
4536 return ConstantVector::getNullValue(SVTy);
4537 break;
4538 }
4539 case Intrinsic::vector_interleave2:
4540 case Intrinsic::vector_interleave3:
4541 case Intrinsic::vector_interleave4:
4542 case Intrinsic::vector_interleave5:
4543 case Intrinsic::vector_interleave6:
4544 case Intrinsic::vector_interleave7:
4545 case Intrinsic::vector_interleave8: {
4546 Constant *SplatVal = Operands[0]->getSplatValue();
4547 if (!SplatVal)
4548 return nullptr;
4549
4551 return nullptr;
4552
4553 return ConstantVector::getSplat(SVTy->getElementCount(), SplatVal);
4554 }
4555 default:
4556 break;
4557 }
4558
4559 // If trivially vectorizable, try folding it via the scalar call if all
4560 // operands are splats.
4561
4562 // TODO: ConstantFoldFixedVectorCall should probably check this too?
4563 if (!isTriviallyVectorizable(IntrinsicID))
4564 return nullptr;
4565
4567 for (auto [I, Op] : enumerate(Operands)) {
4568 if (isVectorIntrinsicWithScalarOpAtArg(IntrinsicID, I, /*TTI=*/nullptr)) {
4569 SplatOps.push_back(Op);
4570 continue;
4571 }
4572 Constant *Splat = Op->getSplatValue();
4573 if (!Splat)
4574 return nullptr;
4575 SplatOps.push_back(Splat);
4576 }
4577 Constant *Folded = ConstantFoldScalarCall(
4578 Name, IntrinsicID, SVTy->getElementType(), SplatOps, TLI, Call);
4579 if (!Folded)
4580 return nullptr;
4581 return ConstantVector::getSplat(SVTy->getElementCount(), Folded);
4582}
4583
4584static std::pair<Constant *, Constant *>
4585ConstantFoldScalarFrexpCall(Constant *Op, Type *IntTy) {
4586 auto *ConstFP = dyn_cast<ConstantFP>(Op);
4587 if (!ConstFP)
4588 return {};
4589
4590 const APFloat &U = ConstFP->getValueAPF();
4591 int FrexpExp;
4592 APFloat FrexpMant = frexp(U, FrexpExp, APFloat::rmNearestTiesToEven);
4593 Constant *Result0 = ConstantFP::get(ConstFP->getType(), FrexpMant);
4594
4595 // The exponent is an "unspecified value" for inf/nan. We use zero to avoid
4596 // using undef.
4597 Constant *Result1 = FrexpMant.isFinite()
4598 ? ConstantInt::getSigned(IntTy, FrexpExp)
4599 : ConstantInt::getNullValue(IntTy);
4600 return {Result0, Result1};
4601}
4602
4603/// Handle intrinsics that return tuples, which may be tuples of vectors.
4604static Constant *
4605ConstantFoldStructCall(StringRef Name, Intrinsic::ID IntrinsicID,
4607 const DataLayout &DL, const TargetLibraryInfo *TLI,
4608 const CallBase *Call) {
4609
4610 switch (IntrinsicID) {
4611 case Intrinsic::frexp: {
4612 Type *Ty0 = StTy->getContainedType(0);
4613 Type *Ty1 = StTy->getContainedType(1)->getScalarType();
4614
4615 if (auto *FVTy0 = dyn_cast<FixedVectorType>(Ty0)) {
4616 SmallVector<Constant *, 4> Results0(FVTy0->getNumElements());
4617 SmallVector<Constant *, 4> Results1(FVTy0->getNumElements());
4618
4619 for (unsigned I = 0, E = FVTy0->getNumElements(); I != E; ++I) {
4620 Constant *Lane = Operands[0]->getAggregateElement(I);
4621 std::tie(Results0[I], Results1[I]) =
4622 ConstantFoldScalarFrexpCall(Lane, Ty1);
4623 if (!Results0[I])
4624 return nullptr;
4625 }
4626
4627 return ConstantStruct::get(StTy, ConstantVector::get(Results0),
4628 ConstantVector::get(Results1));
4629 }
4630
4631 auto [Result0, Result1] = ConstantFoldScalarFrexpCall(Operands[0], Ty1);
4632 if (!Result0)
4633 return nullptr;
4634 return ConstantStruct::get(StTy, Result0, Result1);
4635 }
4636 case Intrinsic::sincos: {
4637 Type *Ty = StTy->getContainedType(0);
4638 Type *TyScalar = Ty->getScalarType();
4639
4640 auto ConstantFoldScalarSincosCall =
4641 [&](Constant *Op) -> std::pair<Constant *, Constant *> {
4642 Constant *SinResult =
4643 ConstantFoldScalarCall(Name, Intrinsic::sin, TyScalar, Op, TLI, Call);
4644 Constant *CosResult =
4645 ConstantFoldScalarCall(Name, Intrinsic::cos, TyScalar, Op, TLI, Call);
4646 return std::make_pair(SinResult, CosResult);
4647 };
4648
4649 if (auto *FVTy = dyn_cast<FixedVectorType>(Ty)) {
4650 SmallVector<Constant *> SinResults(FVTy->getNumElements());
4651 SmallVector<Constant *> CosResults(FVTy->getNumElements());
4652
4653 for (unsigned I = 0, E = FVTy->getNumElements(); I != E; ++I) {
4654 Constant *Lane = Operands[0]->getAggregateElement(I);
4655 std::tie(SinResults[I], CosResults[I]) =
4656 ConstantFoldScalarSincosCall(Lane);
4657 if (!SinResults[I] || !CosResults[I])
4658 return nullptr;
4659 }
4660
4661 return ConstantStruct::get(StTy, ConstantVector::get(SinResults),
4662 ConstantVector::get(CosResults));
4663 }
4664
4665 if (!Ty->isFloatingPointTy())
4666 return nullptr;
4667
4668 auto [SinResult, CosResult] = ConstantFoldScalarSincosCall(Operands[0]);
4669 if (!SinResult || !CosResult)
4670 return nullptr;
4671 return ConstantStruct::get(StTy, SinResult, CosResult);
4672 }
4673 case Intrinsic::vector_deinterleave2:
4674 case Intrinsic::vector_deinterleave3:
4675 case Intrinsic::vector_deinterleave4:
4676 case Intrinsic::vector_deinterleave5:
4677 case Intrinsic::vector_deinterleave6:
4678 case Intrinsic::vector_deinterleave7:
4679 case Intrinsic::vector_deinterleave8: {
4680 unsigned NumResults = StTy->getNumElements();
4681 auto *Vec = Operands[0];
4682 auto *VecTy = cast<VectorType>(Vec->getType());
4683
4684 ElementCount ResultEC =
4685 VecTy->getElementCount().divideCoefficientBy(NumResults);
4686
4687 if (auto *EltC = Vec->getSplatValue()) {
4688 auto *ResultVec = ConstantVector::getSplat(ResultEC, EltC);
4689 SmallVector<Constant *, 8> Results(NumResults, ResultVec);
4690 return ConstantStruct::get(StTy, Results);
4691 }
4692
4693 if (!ResultEC.isFixed())
4694 return nullptr;
4695
4696 unsigned NumElements = ResultEC.getFixedValue();
4698 SmallVector<Constant *> Elements(NumElements);
4699 for (unsigned I = 0; I != NumResults; ++I) {
4700 for (unsigned J = 0; J != NumElements; ++J) {
4701 Constant *Elt = Vec->getAggregateElement(J * NumResults + I);
4702 if (!Elt)
4703 return nullptr;
4704 Elements[J] = Elt;
4705 }
4706 Results[I] = ConstantVector::get(Elements);
4707 }
4708 return ConstantStruct::get(StTy, Results);
4709 }
4710 default:
4711 // TODO: Constant folding of vector intrinsics that fall through here does
4712 // not work (e.g. overflow intrinsics)
4713 return ConstantFoldScalarCall(Name, IntrinsicID, StTy, Operands, TLI, Call);
4714 }
4715
4716 return nullptr;
4717}
4718
4719} // end anonymous namespace
4720
4723 const DataLayout &DL, Function *CxtF) {
4724 // In the absence of CxtF, assume strictfp conservatively.
4725 if (!canConstantFoldIntrinsic(ID, CxtF ? CxtF->isStrictFP() : true) ||
4728 Ty, ArrayRef<Value *>((Value *const *)Ops.data(), Ops.size()))))
4729 return nullptr;
4730 if (auto *FVTy = dyn_cast<FixedVectorType>(Ty))
4731 return ConstantFoldFixedVectorCall("", ID, FVTy, Ops, DL);
4732 return ConstantFoldScalarCall("", ID, Ty, Ops);
4733}
4734
4737 const TargetLibraryInfo *TLI,
4738 bool AllowNonDeterministic) {
4739 if (Call->isNoBuiltin())
4740 return nullptr;
4741 if (!F->hasName())
4742 return nullptr;
4743
4744 // If this is not an intrinsic and not recognized as a library call, bail out.
4745 Intrinsic::ID IID = F->getIntrinsicID();
4746 if (IID == Intrinsic::not_intrinsic) {
4747 if (!TLI)
4748 return nullptr;
4749 if (TLI->getLibFunc(*F) == NotLibFunc)
4750 return nullptr;
4751 }
4752
4753 // Conservatively assume that floating-point libcalls may be
4754 // non-deterministic.
4755 Type *Ty = F->getReturnType();
4756 if (!AllowNonDeterministic && Ty->isFPOrFPVectorTy())
4757 return nullptr;
4758
4759 StringRef Name = F->getName();
4760 if (auto *FVTy = dyn_cast<FixedVectorType>(Ty))
4761 return ConstantFoldFixedVectorCall(
4762 Name, IID, FVTy, Operands, F->getDataLayout(), TLI, Call);
4763
4764 if (auto *SVTy = dyn_cast<ScalableVectorType>(Ty))
4765 return ConstantFoldScalableVectorCall(
4766 Name, IID, SVTy, Operands, F->getDataLayout(), TLI, Call);
4767
4768 if (auto *StTy = dyn_cast<StructType>(Ty))
4769 return ConstantFoldStructCall(Name, IID, StTy, Operands,
4770 F->getDataLayout(), TLI, Call);
4771
4772 // TODO: If this is a library function, we already discovered that above,
4773 // so we should pass the LibFunc, not the name (and it might be better
4774 // still to separate intrinsic handling from libcalls).
4775 return ConstantFoldScalarCall(Name, IID, Ty, Operands, TLI, Call);
4776}
4777
4779 const TargetLibraryInfo *TLI) {
4780 // FIXME: Refactor this code; this duplicates logic in LibCallsShrinkWrap
4781 // (and to some extent ConstantFoldScalarCall).
4782 if (Call->isNoBuiltin() || Call->isStrictFP())
4783 return false;
4784 Function *F = Call->getCalledFunction();
4785 if (!F)
4786 return false;
4787
4788 if (!TLI)
4789 return false;
4790
4791 LibFunc Func = TLI->getLibFunc(*F);
4792 if (Func == NotLibFunc)
4793 return false;
4794
4795 if (Call->arg_size() == 1) {
4796 if (ConstantFP *OpC = dyn_cast<ConstantFP>(Call->getArgOperand(0))) {
4797 const APFloat &Op = OpC->getValueAPF();
4798 switch (Func) {
4799 case LibFunc_logl:
4800 case LibFunc_log:
4801 case LibFunc_logf:
4802 case LibFunc_log2l:
4803 case LibFunc_log2:
4804 case LibFunc_log2f:
4805 case LibFunc_log10l:
4806 case LibFunc_log10:
4807 case LibFunc_log10f:
4808 return Op.isNaN() || (!Op.isZero() && !Op.isNegative());
4809
4810 case LibFunc_ilogb:
4811 return !Op.isNaN() && !Op.isZero() && !Op.isInfinity();
4812
4813 case LibFunc_expl:
4814 case LibFunc_exp:
4815 case LibFunc_expf:
4816 // FIXME: These boundaries are slightly conservative.
4817 if (OpC->getType()->isDoubleTy())
4818 return !(Op < APFloat(-745.0) || Op > APFloat(709.0));
4819 if (OpC->getType()->isFloatTy())
4820 return !(Op < APFloat(-103.0f) || Op > APFloat(88.0f));
4821 break;
4822
4823 case LibFunc_exp2l:
4824 case LibFunc_exp2:
4825 case LibFunc_exp2f:
4826 // FIXME: These boundaries are slightly conservative.
4827 if (OpC->getType()->isDoubleTy())
4828 return !(Op < APFloat(-1074.0) || Op > APFloat(1023.0));
4829 if (OpC->getType()->isFloatTy())
4830 return !(Op < APFloat(-149.0f) || Op > APFloat(127.0f));
4831 break;
4832
4833 case LibFunc_sinl:
4834 case LibFunc_sin:
4835 case LibFunc_sinf:
4836 case LibFunc_cosl:
4837 case LibFunc_cos:
4838 case LibFunc_cosf:
4839 return !Op.isInfinity();
4840
4841 case LibFunc_tanl:
4842 case LibFunc_tan:
4843 case LibFunc_tanf: {
4844 // FIXME: Stop using the host math library.
4845 // FIXME: The computation isn't done in the right precision.
4846 Type *Ty = OpC->getType();
4847 if (Ty->isDoubleTy() || Ty->isFloatTy() || Ty->isHalfTy())
4848 return ConstantFoldFP(tan, OpC->getValueAPF(), Ty) != nullptr;
4849 break;
4850 }
4851
4852 case LibFunc_atan:
4853 case LibFunc_atanf:
4854 case LibFunc_atanl:
4855 // Per POSIX, this MAY fail if Op is denormal. We choose not failing.
4856 return true;
4857
4858 case LibFunc_asinl:
4859 case LibFunc_asin:
4860 case LibFunc_asinf:
4861 case LibFunc_acosl:
4862 case LibFunc_acos:
4863 case LibFunc_acosf:
4864 return !(Op < APFloat::getOne(Op.getSemantics(), true) ||
4865 Op > APFloat::getOne(Op.getSemantics()));
4866
4867 case LibFunc_sinh:
4868 case LibFunc_cosh:
4869 case LibFunc_sinhf:
4870 case LibFunc_coshf:
4871 case LibFunc_sinhl:
4872 case LibFunc_coshl:
4873 // FIXME: These boundaries are slightly conservative.
4874 if (OpC->getType()->isDoubleTy())
4875 return !(Op < APFloat(-710.0) || Op > APFloat(710.0));
4876 if (OpC->getType()->isFloatTy())
4877 return !(Op < APFloat(-89.0f) || Op > APFloat(89.0f));
4878 break;
4879
4880 case LibFunc_sqrtl:
4881 case LibFunc_sqrt:
4882 case LibFunc_sqrtf:
4883 return Op.isNaN() || Op.isZero() || !Op.isNegative();
4884
4885 // FIXME: Add more functions: sqrt_finite, atanh, expm1, log1p,
4886 // maybe others?
4887 default:
4888 break;
4889 }
4890 }
4891 }
4892
4893 if (Call->arg_size() == 2) {
4894 ConstantFP *Op0C = dyn_cast<ConstantFP>(Call->getArgOperand(0));
4895 ConstantFP *Op1C = dyn_cast<ConstantFP>(Call->getArgOperand(1));
4896 if (Op0C && Op1C) {
4897 const APFloat &Op0 = Op0C->getValueAPF();
4898 const APFloat &Op1 = Op1C->getValueAPF();
4899
4900 switch (Func) {
4901 case LibFunc_powl:
4902 case LibFunc_pow:
4903 case LibFunc_powf: {
4904 // FIXME: Stop using the host math library.
4905 // FIXME: The computation isn't done in the right precision.
4906 Type *Ty = Op0C->getType();
4907 if (Ty->isDoubleTy() || Ty->isFloatTy() || Ty->isHalfTy()) {
4908 if (Ty == Op1C->getType())
4909 return ConstantFoldBinaryFP(pow, Op0, Op1, Ty) != nullptr;
4910 }
4911 break;
4912 }
4913
4914 case LibFunc_fmodl:
4915 case LibFunc_fmod:
4916 case LibFunc_fmodf:
4917 case LibFunc_remainderl:
4918 case LibFunc_remainder:
4919 case LibFunc_remainderf:
4920 return Op0.isNaN() || Op1.isNaN() ||
4921 (!Op0.isInfinity() && !Op1.isZero());
4922
4923 case LibFunc_atan2:
4924 case LibFunc_atan2f:
4925 case LibFunc_atan2l:
4926 // Although IEEE-754 says atan2(+/-0.0, +/-0.0) are well-defined, and
4927 // GLIBC and MSVC do not appear to raise an error on those, we
4928 // cannot rely on that behavior. POSIX and C11 say that a domain error
4929 // may occur, so allow for that possibility.
4930 return !Op0.isZero() || !Op1.isZero();
4931
4932 case LibFunc_nextafter:
4933 case LibFunc_nextafterf:
4934 case LibFunc_nextafterl:
4935 case LibFunc_nexttoward:
4936 case LibFunc_nexttowardf:
4937 case LibFunc_nexttowardl: {
4938 return ConstantFoldNextToward(Op0, Op1, F->getReturnType()) != nullptr;
4939 }
4940 default:
4941 break;
4942 }
4943 }
4944 }
4945
4946 return false;
4947}
4948
4950 unsigned CastOp, const DataLayout &DL,
4951 PreservedCastFlags *Flags) {
4952 switch (CastOp) {
4953 case Instruction::BitCast:
4954 // Bitcast is always lossless.
4955 return ConstantFoldCastOperand(Instruction::BitCast, C, InvCastTo, DL);
4956 case Instruction::Trunc: {
4957 auto *ZExtC = ConstantFoldCastOperand(Instruction::ZExt, C, InvCastTo, DL);
4958 if (Flags) {
4959 // Truncation back on ZExt value is always NUW.
4960 Flags->NUW = true;
4961 // Test positivity of C.
4962 auto *SExtC =
4963 ConstantFoldCastOperand(Instruction::SExt, C, InvCastTo, DL);
4964 Flags->NSW = ZExtC == SExtC;
4965 }
4966 return ZExtC;
4967 }
4968 case Instruction::SExt:
4969 case Instruction::ZExt: {
4970 auto *InvC = ConstantExpr::getTrunc(C, InvCastTo);
4971 auto *CastInvC = ConstantFoldCastOperand(CastOp, InvC, C->getType(), DL);
4972 // Must satisfy CastOp(InvC) == C.
4973 if (!CastInvC || CastInvC != C)
4974 return nullptr;
4975 if (Flags && CastOp == Instruction::ZExt) {
4976 auto *SExtInvC =
4977 ConstantFoldCastOperand(Instruction::SExt, InvC, C->getType(), DL);
4978 // Test positivity of InvC.
4979 Flags->NNeg = CastInvC == SExtInvC;
4980 }
4981 return InvC;
4982 }
4983 case Instruction::FPExt: {
4984 Constant *InvC =
4985 ConstantFoldCastOperand(Instruction::FPTrunc, C, InvCastTo, DL);
4986 if (InvC) {
4987 Constant *CastInvC =
4988 ConstantFoldCastOperand(CastOp, InvC, C->getType(), DL);
4989 if (CastInvC == C)
4990 return InvC;
4991 }
4992 return nullptr;
4993 }
4994 default:
4995 return nullptr;
4996 }
4997}
4998
5000 const DataLayout &DL,
5001 PreservedCastFlags *Flags) {
5002 return getLosslessInvCast(C, DestTy, Instruction::ZExt, DL, Flags);
5003}
5004
5006 const DataLayout &DL,
5007 PreservedCastFlags *Flags) {
5008 return getLosslessInvCast(C, DestTy, Instruction::SExt, DL, Flags);
5009}
5010
5011void TargetFolder::anchor() {}
assert(UImm &&(UImm !=~static_cast< T >(0)) &&"Invalid immediate!")
unsigned uint64_t
constexpr LLT S1
This file declares a class to represent arbitrary precision floating point values and provide a varie...
This file implements a class to represent arbitrary precision integral constant values and operations...
This file implements the APSInt class, which is a simple class that represents an arbitrary sized int...
MachineBasicBlock MachineBasicBlock::iterator DebugLoc DL
Function Alias Analysis Results
#define X(NUM, ENUM, NAME)
Definition ELF.h:857
static GCRegistry::Add< ShadowStackGC > C("shadow-stack", "Very portable GC for uncooperative code generators")
static GCRegistry::Add< ErlangGC > A("erlang", "erlang-compatible garbage collector")
static GCRegistry::Add< CoreCLRGC > E("coreclr", "CoreCLR-compatible GC")
static GCRegistry::Add< OcamlGC > B("ocaml", "ocaml 3.10-compatible GC")
static Constant * FoldBitCast(Constant *V, Type *DestTy)
static ConstantFP * flushDenormalConstant(Type *Ty, const APFloat &APF, DenormalMode::DenormalModeKind Mode)
Constant * getConstantAtOffset(Constant *Base, APInt Offset, const DataLayout &DL)
If this Offset points exactly to the start of an aggregate element, return that element,...
static cl::opt< bool > DisableFPCallFolding("disable-fp-call-folding", cl::desc("Disable constant-folding of FP intrinsics and libcalls."), cl::init(false), cl::Hidden)
static bool canConstantFoldIntrinsic(Intrinsic::ID ID, bool IsStrictFP)
Returns true if the intrinsic can be constant folded, given IsStrictFP.
static ConstantFP * flushDenormalConstantFP(ConstantFP *CFP, const Instruction *Inst, bool IsOutput)
static bool anyTypeContainsFP(Type *RetTy, ArrayRef< Value * > Ops)
Given a function's return type and its operands, determine if any of them of of floating-point type.
static DenormalMode getInstrDenormalMode(const Instruction *CtxI, Type *Ty)
Return the denormal mode that can be assumed when executing a floating point operation at CtxI.
This file contains the declarations for the subclasses of Constant, which represent the different fla...
This file defines the DenseMap class.
Hexagon Common GEP
amode Optimize addressing mode
static constexpr Value * getValue(Ty &ValueOrUse)
const AbstractManglingParser< Derived, Alloc >::OperatorInfo AbstractManglingParser< Derived, Alloc >::Ops[]
#define F(x, y, z)
Definition MD5.cpp:54
#define I(x, y, z)
Definition MD5.cpp:57
static bool InRange(int64_t Value, unsigned short Shift, int LBound, int HBound)
This file contains the definitions of the enumerations and flags associated with NVVM Intrinsics,...
if(PassOpts->AAPipeline)
const SmallVectorImpl< MachineOperand > & Cond
static cl::opt< RegAllocEvictionAdvisorAnalysisLegacy::AdvisorMode > Mode("regalloc-enable-advisor", cl::Hidden, cl::init(RegAllocEvictionAdvisorAnalysisLegacy::AdvisorMode::Default), cl::desc("Enable regalloc advisor mode"), cl::values(clEnumValN(RegAllocEvictionAdvisorAnalysisLegacy::AdvisorMode::Default, "default", "Default"), clEnumValN(RegAllocEvictionAdvisorAnalysisLegacy::AdvisorMode::Release, "release", "precompiled"), clEnumValN(RegAllocEvictionAdvisorAnalysisLegacy::AdvisorMode::Development, "development", "for training")))
SI Fold Operands
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 defines the SmallVector class.
static SymbolRef::Type getType(const Symbol *Sym)
Definition TapiFile.cpp:39
The Input class is used to parse a yaml document into in-memory structs and vectors.
cmpResult
IEEE-754R 5.11: Floating Point Comparison Relations.
Definition APFloat.h:351
static constexpr roundingMode rmTowardZero
Definition APFloat.h:365
llvm::RoundingMode roundingMode
IEEE-754R 4.3: Rounding-direction attributes.
Definition APFloat.h:359
static const fltSemantics & IEEEdouble()
Definition APFloat.h:305
static constexpr roundingMode rmTowardNegative
Definition APFloat.h:364
static constexpr roundingMode rmNearestTiesToEven
Definition APFloat.h:361
static constexpr roundingMode rmTowardPositive
Definition APFloat.h:363
static constexpr roundingMode rmNearestTiesToAway
Definition APFloat.h:366
opStatus
IEEE-754R 7: Default exception handling.
Definition APFloat.h:377
static APFloat getQNaN(const fltSemantics &Sem, bool Negative=false, const APInt *payload=nullptr)
Factory for QNaN values.
Definition APFloat.h:1224
opStatus divide(const APFloat &RHS, roundingMode RM)
Definition APFloat.h:1312
void copySign(const APFloat &RHS)
Definition APFloat.h:1406
LLVM_ABI opStatus convert(const fltSemantics &ToSemantics, roundingMode RM, bool *losesInfo)
Definition APFloat.cpp:6010
opStatus subtract(const APFloat &RHS, roundingMode RM)
Definition APFloat.h:1294
bool isNegative() const
Definition APFloat.h:1583
LLVM_ABI double convertToDouble() const
Converts this APFloat to host double value.
Definition APFloat.cpp:6069
bool isPosInfinity() const
Definition APFloat.h:1596
bool isNormal() const
Definition APFloat.h:1587
bool isDenormal() const
Definition APFloat.h:1584
opStatus add(const APFloat &RHS, roundingMode RM)
Definition APFloat.h:1285
const fltSemantics & getSemantics() const
Definition APFloat.h:1591
bool isNonZero() const
Definition APFloat.h:1592
bool isFinite() const
Definition APFloat.h:1588
bool isNaN() const
Definition APFloat.h:1581
static APFloat getOne(const fltSemantics &Sem, bool Negative=false)
Factory for Positive and Negative One.
Definition APFloat.h:1192
opStatus multiply(const APFloat &RHS, roundingMode RM)
Definition APFloat.h:1303
bool isSignaling() const
Definition APFloat.h:1585
opStatus fusedMultiplyAdd(const APFloat &Multiplicand, const APFloat &Addend, roundingMode RM)
Definition APFloat.h:1339
bool isZero() const
Definition APFloat.h:1579
opStatus convertToInteger(MutableArrayRef< integerPart > Input, unsigned int Width, bool IsSigned, roundingMode RM, bool *IsExact) const
Definition APFloat.h:1436
opStatus mod(const APFloat &RHS)
Definition APFloat.h:1330
bool isNegInfinity() const
Definition APFloat.h:1597
opStatus roundToIntegral(roundingMode RM)
Definition APFloat.h:1352
void changeSign()
Definition APFloat.h:1401
static APFloat getZero(const fltSemantics &Sem, bool Negative=false)
Factory for Positive and Negative Zero.
Definition APFloat.h:1183
bool isInfinity() const
Definition APFloat.h:1580
Class for arbitrary precision integers.
Definition APInt.h:78
LLVM_ABI APInt umul_ov(const APInt &RHS, bool &Overflow) const
Definition APInt.cpp:2009
LLVM_ABI APInt usub_sat(const APInt &RHS) const
Definition APInt.cpp:2093
bool isMinSignedValue() const
Determine if this is the smallest signed value.
Definition APInt.h:420
uint64_t getZExtValue() const
Get zero extended value.
Definition APInt.h:1561
LLVM_ABI uint64_t extractBitsAsZExtValue(unsigned numBits, unsigned bitPosition) const
Definition APInt.cpp:517
LLVM_ABI APInt zextOrTrunc(unsigned width) const
Zero extend or truncate to width.
Definition APInt.cpp:1078
static APInt getMaxValue(unsigned numBits)
Gets maximum unsigned value of APInt for specific bit width.
Definition APInt.h:203
APInt abs() const
Get the absolute value.
Definition APInt.h:1816
LLVM_ABI APInt sadd_sat(const APInt &RHS) const
Definition APInt.cpp:2064
bool sgt(const APInt &RHS) const
Signed greater than comparison.
Definition APInt.h:1206
LLVM_ABI APInt usub_ov(const APInt &RHS, bool &Overflow) const
Definition APInt.cpp:1986
bool ugt(const APInt &RHS) const
Unsigned greater than comparison.
Definition APInt.h:1187
bool isZero() const
Determine if this value is zero, i.e. all bits are clear.
Definition APInt.h:377
LLVM_ABI APInt urem(const APInt &RHS) const
Unsigned remainder operation.
Definition APInt.cpp:1695
unsigned getBitWidth() const
Return the number of bits in the APInt.
Definition APInt.h:1509
bool ult(const APInt &RHS) const
Unsigned less than comparison.
Definition APInt.h:1116
static APInt getSignedMaxValue(unsigned numBits)
Gets maximum signed value of APInt for a specific bit width.
Definition APInt.h:206
LLVM_ABI APInt sadd_ov(const APInt &RHS, bool &Overflow) const
Definition APInt.cpp:1966
LLVM_ABI APInt uadd_ov(const APInt &RHS, bool &Overflow) const
Definition APInt.cpp:1973
unsigned countr_zero() const
Count the number of trailing zero bits.
Definition APInt.h:1660
unsigned countl_zero() const
The APInt version of std::countl_zero.
Definition APInt.h:1619
static APInt getSignedMinValue(unsigned numBits)
Gets minimum signed value of APInt for a specific bit width.
Definition APInt.h:216
LLVM_ABI APInt sextOrTrunc(unsigned width) const
Sign extend or truncate to width.
Definition APInt.cpp:1086
LLVM_ABI APInt uadd_sat(const APInt &RHS) const
Definition APInt.cpp:2074
APInt ashr(unsigned ShiftAmt) const
Arithmetic right-shift function.
Definition APInt.h:830
LLVM_ABI APInt smul_ov(const APInt &RHS, bool &Overflow) const
Definition APInt.cpp:1998
LLVM_ABI APInt sext(unsigned width) const
Sign extend to a new width.
Definition APInt.cpp:1030
APInt shl(unsigned shiftAmt) const
Left-shift function.
Definition APInt.h:876
bool slt(const APInt &RHS) const
Signed less than comparison.
Definition APInt.h:1135
static APInt getZero(unsigned numBits)
Get the '0' value for the specified bit-width.
Definition APInt.h:197
LLVM_ABI APInt extractBits(unsigned numBits, unsigned bitPosition) const
Return an APInt with the extracted bits [bitPosition,bitPosition+numBits).
Definition APInt.cpp:478
LLVM_ABI APInt ssub_ov(const APInt &RHS, bool &Overflow) const
Definition APInt.cpp:1979
bool isOne() const
Determine if this is a value of 1.
Definition APInt.h:386
APInt lshr(unsigned shiftAmt) const
Logical right-shift function.
Definition APInt.h:854
LLVM_ABI APInt ssub_sat(const APInt &RHS) const
Definition APInt.cpp:2083
An arbitrary precision integer that knows its signedness.
Definition APSInt.h:24
Represent a constant reference to an array (0 or more elements consecutively in memory),...
Definition ArrayRef.h:40
Base class for all callable instructions (InvokeInst and CallInst) Holds everything related to callin...
static LLVM_ABI Instruction::CastOps getCastOpcode(const Value *Val, bool SrcIsSigned, Type *Ty, bool DstIsSigned)
Returns the opcode necessary to cast Val into Ty using usual casting rules.
static LLVM_ABI unsigned isEliminableCastPair(Instruction::CastOps firstOpcode, Instruction::CastOps secondOpcode, Type *SrcTy, Type *MidTy, Type *DstTy, const DataLayout *DL)
Determine how a pair of casts can be eliminated, if they can be at all.
static LLVM_ABI bool castIsValid(Instruction::CastOps op, Type *SrcTy, Type *DstTy)
This method can be used to determine if a cast from SrcTy to DstTy using Opcode op is valid or not.
Predicate
This enumeration lists the possible predicates for CmpInst subclasses.
Definition InstrTypes.h:740
bool isSigned() const
Definition InstrTypes.h:993
Predicate getSwappedPredicate() const
For example, EQ->EQ, SLE->SGE, ULT->UGT, OEQ->OEQ, ULE->UGE, OLT->OGT, etc.
Definition InstrTypes.h:890
static bool isFPPredicate(Predicate P)
Definition InstrTypes.h:833
static Constant * get(LLVMContext &Context, ArrayRef< ElementTy > Elts)
get() constructor - Return a constant with array type with an element count and element type matching...
Definition Constants.h:878
static LLVM_ABI Constant * getIntToPtr(Constant *C, Type *Ty, bool OnlyIfReduced=false)
static LLVM_ABI Constant * getExtractElement(Constant *Vec, Constant *Idx, Type *OnlyIfReducedTy=nullptr)
static LLVM_ABI bool isDesirableCastOp(unsigned Opcode)
Whether creating a constant expression for this cast is desirable.
static LLVM_ABI Constant * getCast(unsigned ops, Constant *C, Type *Ty, bool OnlyIfReduced=false)
Convenience function for getting a Cast operation.
static LLVM_ABI Constant * getSub(Constant *C1, Constant *C2, bool HasNUW=false, bool HasNSW=false)
static Constant * getPtrAdd(Constant *Ptr, Constant *Offset, GEPNoWrapFlags NW=GEPNoWrapFlags::none(), std::optional< ConstantRange > InRange=std::nullopt, Type *OnlyIfReduced=nullptr)
Create a getelementptr i8, ptr, offset constant expression.
Definition Constants.h:1497
static LLVM_ABI Constant * getInsertElement(Constant *Vec, Constant *Elt, Constant *Idx, Type *OnlyIfReducedTy=nullptr)
static LLVM_ABI Constant * getShuffleVector(Constant *V1, Constant *V2, ArrayRef< int > Mask, Type *OnlyIfReducedTy=nullptr)
static bool isSupportedGetElementPtr(const Type *SrcElemTy)
Whether creating a constant expression for this getelementptr type is supported.
Definition Constants.h:1598
static LLVM_ABI Constant * get(unsigned Opcode, Constant *C1, Constant *C2, unsigned Flags=0, Type *OnlyIfReducedTy=nullptr)
get - Return a binary or shift operator constant expression, folding if possible.
static LLVM_ABI bool isDesirableBinOp(unsigned Opcode)
Whether creating a constant expression for this binary operator is desirable.
static Constant * getGetElementPtr(Type *Ty, Constant *C, ArrayRef< Constant * > IdxList, GEPNoWrapFlags NW=GEPNoWrapFlags::none(), std::optional< ConstantRange > InRange=std::nullopt, Type *OnlyIfReducedTy=nullptr)
Getelementptr form.
Definition Constants.h:1470
static LLVM_ABI Constant * getBitCast(Constant *C, Type *Ty, bool OnlyIfReduced=false)
static LLVM_ABI Constant * getTrunc(Constant *C, Type *Ty, bool OnlyIfReduced=false)
ConstantFP - Floating Point Values [float, double].
Definition Constants.h:420
const APFloat & getValueAPF() const
Definition Constants.h:463
static LLVM_ABI ConstantFP * getZero(Type *Ty, bool Negative=false)
static LLVM_ABI ConstantFP * getNaN(Type *Ty, bool Negative=false, uint64_t Payload=0)
static LLVM_ABI ConstantFP * getInfinity(Type *Ty, bool Negative=false)
This is the shared class of boolean and integer constants.
Definition Constants.h:87
static LLVM_ABI ConstantInt * getTrue(LLVMContext &Context)
static ConstantInt * getSigned(IntegerType *Ty, int64_t V, bool ImplicitTrunc=false)
Return a ConstantInt with the specified value for the specified type.
Definition Constants.h:135
static LLVM_ABI ConstantInt * getFalse(LLVMContext &Context)
int64_t getSExtValue() const
Return the constant as a 64-bit integer value after it has been sign extended as appropriate for the ...
Definition Constants.h:174
static LLVM_ABI ConstantInt * getBool(LLVMContext &Context, bool V)
static LLVM_ABI Constant * get(StructType *T, ArrayRef< Constant * > V)
static LLVM_ABI Constant * getSplat(ElementCount EC, Constant *Elt)
Return a ConstantVector with the specified constant in each element.
static LLVM_ABI Constant * get(ArrayRef< Constant * > V)
This is an important base class in LLVM.
Definition Constant.h:43
LLVM_ABI Constant * getSplatValue(bool AllowPoison=false) const
If all elements of the vector constant have the same value, return that value.
bool isNullValue() const
Return true if this is the value that would be returned by getNullValue.
Definition Constant.h:64
static LLVM_ABI Constant * getAllOnesValue(Type *Ty)
static LLVM_ABI Constant * getNullValue(Type *Ty)
Constructor to create a '0' constant of arbitrary type.
LLVM_ABI Constant * getAggregateElement(unsigned Elt) const
For aggregates (struct/array/vector) return the constant that corresponds to the specified element if...
Constrained floating point compare intrinsics.
This is the common base class for constrained floating point intrinsics.
LLVM_ABI std::optional< fp::ExceptionBehavior > getExceptionBehavior() const
LLVM_ABI std::optional< RoundingMode > getRoundingMode() const
Wrapper for a function that represents a value that functionally represents the original function.
Definition Constants.h:1143
A parsed version of the target data layout string in and methods for querying it.
Definition DataLayout.h:64
iterator find(const_arg_type_t< KeyT > Val)
Definition DenseMap.h:223
iterator end()
Definition DenseMap.h:141
std::pair< iterator, bool > insert(const std::pair< KeyT, ValueT > &KV)
Definition DenseMap.h:284
static LLVM_ABI bool compare(const APFloat &LHS, const APFloat &RHS, FCmpInst::Predicate Pred)
Return result of LHS Pred RHS comparison.
Class to represent fixed width SIMD vectors.
unsigned getNumElements() const
static LLVM_ABI FixedVectorType * get(Type *ElementType, unsigned NumElts)
Definition Type.cpp:867
DenormalMode getDenormalMode(const fltSemantics &FPType) const
Returns the denormal handling type for the default rounding mode of the function.
Definition Function.cpp:806
bool isStrictFP() const
Determine if the function has strict floating point sematics.
Definition Function.h:637
Represents flags for the getelementptr instruction/expression.
static GEPNoWrapFlags inBounds()
GEPNoWrapFlags withoutNoUnsignedSignedWrap() const
static GEPNoWrapFlags noUnsignedWrap()
bool hasNoUnsignedSignedWrap() const
bool isInBounds() const
static LLVM_ABI Type * getIndexedType(Type *Ty, ArrayRef< Value * > IdxList)
Returns the result type of a getelementptr with the given source element type and indexes.
PointerType * getType() const
Global values are always pointers.
LLVM_ABI const DataLayout & getDataLayout() const
Get the data layout of the module this global belongs to.
Definition Globals.cpp:205
const Constant * getInitializer() const
getInitializer - Return the initializer for this global variable.
bool isConstant() const
If the value is a global constant, its value is immutable throughout the runtime execution of the pro...
bool hasDefinitiveInitializer() const
hasDefinitiveInitializer - Whether the global variable has an initializer, and any other instances of...
static LLVM_ABI bool compare(const APInt &LHS, const APInt &RHS, ICmpInst::Predicate Pred)
Return result of LHS Pred RHS comparison.
Predicate getSignedPredicate() const
For example, EQ->EQ, SLE->SLE, UGT->SGT, etc.
bool isEquality() const
Return true if this predicate is either EQ or NE.
bool isCast() const
bool isBinaryOp() const
LLVM_ABI const Function * getFunction() const
Return the function this instruction belongs to.
bool isUnaryOp() const
static LLVM_ABI IntegerType * get(LLVMContext &C, unsigned NumBits)
This static method is the primary way of constructing an IntegerType.
Definition Type.cpp:348
This is an important class for using LLVM in a threaded context.
Definition LLVMContext.h:68
static APInt getSaturationPoint(Intrinsic::ID ID, unsigned numBits)
Min/max intrinsics are monotonic, they operate on a fixed-bitwidth values, so there is a certain thre...
static ICmpInst::Predicate getPredicate(Intrinsic::ID ID)
Returns the comparison predicate underlying the intrinsic.
static LLVM_ABI PoisonValue * get(Type *T)
Static factory methods - Return an 'poison' object of the specified type.
Class to represent scalable SIMD vectors.
This is a 'bitvector' (really, a variable-sized bit array), optimized for the case when the array is ...
SmallBitVector & set()
iterator_range< const_set_bits_iterator > set_bits() const
void push_back(const T &Elt)
pointer data()
Return a pointer to the vector's buffer, even if empty().
This is a 'vector' (really, a variable-sized array), optimized for the case when the array is small.
Represent a constant reference to a string, i.e.
Definition StringRef.h:56
Used to lazily calculate structure layout information for a target machine, based on the DataLayout s...
Definition DataLayout.h:743
LLVM_ABI unsigned getElementContainingOffset(uint64_t FixedOffset) const
Given a valid byte offset into the structure, returns the structure index that contains it.
TypeSize getElementOffset(unsigned Idx) const
Definition DataLayout.h:774
Class to represent struct types.
unsigned getNumElements() const
Random access to the elements.
Provides information about what library functions are available for the current target.
bool has(LibFunc F) const
Tests whether a library function is available.
LibFunc getLibFunc(StringRef funcName) const
Searches for a particular function name.
The instances of the Type class are immutable: once they are created, they are never changed.
Definition Type.h:46
static LLVM_ABI IntegerType * getInt64Ty(LLVMContext &C)
Definition Type.cpp:310
bool isByteTy() const
True if this is an instance of ByteType.
Definition Type.h:242
bool isVectorTy() const
True if this is an instance of VectorType.
Definition Type.h:288
static LLVM_ABI IntegerType * getInt32Ty(LLVMContext &C)
Definition Type.cpp:309
bool isPointerTy() const
True if this is an instance of PointerType.
Definition Type.h:282
LLVM_ABI unsigned getPointerAddressSpace() const
Get the address space of this pointer or pointer vector type.
Type * getScalarType() const
If this is a vector type, return the element type, otherwise return 'this'.
Definition Type.h:368
LLVM_ABI TypeSize getPrimitiveSizeInBits() const LLVM_READONLY
Return the basic size of this type if it is a primitive type.
Definition Type.cpp:197
bool isByteOrByteVectorTy() const
Return true if this is a byte type or a vector of byte types.
Definition Type.h:248
static LLVM_ABI IntegerType * getInt16Ty(LLVMContext &C)
Definition Type.cpp:308
bool isSized(SmallPtrSetImpl< Type * > *Visited=nullptr) const
Return true if it makes sense to take the size of this type.
Definition Type.h:326
LLVMContext & getContext() const
Return the LLVMContext in which this type was uniqued.
Definition Type.h:130
LLVM_ABI unsigned getScalarSizeInBits() const LLVM_READONLY
If this is a vector type, return the getPrimitiveSizeInBits value for the element type.
Definition Type.cpp:232
static LLVM_ABI IntegerType * getInt1Ty(LLVMContext &C)
Definition Type.cpp:306
bool isFloatingPointTy() const
Return true if this is one of the floating-point types.
Definition Type.h:186
bool isPtrOrPtrVectorTy() const
Return true if this is a pointer type or a vector of pointer types.
Definition Type.h:285
bool isX86_AMXTy() const
Return true if this is X86 AMX.
Definition Type.h:202
bool isIntegerTy() const
True if this is an instance of IntegerType.
Definition Type.h:257
static LLVM_ABI IntegerType * getIntNTy(LLVMContext &C, unsigned N)
Definition Type.cpp:313
Type * getContainedType(unsigned i) const
This method is used to implement the type iterator (defined at the end of the file).
Definition Type.h:397
LLVM_ABI const fltSemantics & getFltSemantics() const
Definition Type.cpp:106
static LLVM_ABI UndefValue * get(Type *T)
Static factory methods - Return an 'undef' object of the specified type.
A Use represents the edge between a Value definition and its users.
Definition Use.h:35
LLVM Value Representation.
Definition Value.h:75
Type * getType() const
All values are typed, get the type of this value.
Definition Value.h:255
LLVMContext & getContext() const
All values hold a context through their type.
Definition Value.h:258
LLVM_ABI const Value * stripAndAccumulateConstantOffsets(const DataLayout &DL, APInt &Offset, bool AllowNonInbounds, bool AllowInvariantGroup=false, function_ref< bool(Value &Value, APInt &Offset)> ExternalAnalysis=nullptr, bool LookThroughIntToPtr=false) const
Accumulate the constant offset this value has compared to a base pointer.
LLVM_ABI uint64_t getPointerDereferenceableBytes(const DataLayout &DL, bool &CanBeNull, bool *CanBeFreed) const
Returns the number of bytes known to be dereferenceable for the pointer value.
Definition Value.cpp:918
Base class of all SIMD vector types.
ElementCount getElementCount() const
Return an ElementCount instance to represent the (possibly scalable) number of elements in the vector...
Type * getElementType() const
constexpr ScalarTy getFixedValue() const
Definition TypeSize.h:200
constexpr bool isScalable() const
Returns whether the quantity is scaled by a runtime quantity (vscale).
Definition TypeSize.h:168
constexpr bool isFixed() const
Returns true if the quantity is not scaled by vscale.
Definition TypeSize.h:171
constexpr LeafTy divideCoefficientBy(ScalarTy RHS) const
We do not provide the '/' operator here because division for polynomial types does not work in the sa...
Definition TypeSize.h:252
static constexpr bool isKnownGE(const FixedOrScalableQuantity &LHS, const FixedOrScalableQuantity &RHS)
Definition TypeSize.h:237
const ParentTy * getParent() const
Definition ilist_node.h:34
CallInst * Call
#define llvm_unreachable(msg)
Marks that the current location is not supposed to be reachable.
LLVM_ABI APInt pext(const APInt &Val, const APInt &Mask)
Perform a "compress" operation, also known as pext or bext.
Definition APInt.cpp:3245
const APInt & smin(const APInt &A, const APInt &B)
Determine the smaller of two APInts considered to be signed.
Definition APInt.h:2275
const APInt & smax(const APInt &A, const APInt &B)
Determine the larger of two APInts considered to be signed.
Definition APInt.h:2280
LLVM_ABI APInt clmul(const APInt &LHS, const APInt &RHS)
Perform a carry-less multiply, also known as XOR multiplication, and return low-bits.
Definition APInt.cpp:3225
const APInt & umin(const APInt &A, const APInt &B)
Determine the smaller of two APInts considered to be unsigned.
Definition APInt.h:2285
LLVM_ABI APInt pdep(const APInt &Val, const APInt &Mask)
Perform an "expand" operation, also known as pdep or bdep.
Definition APInt.cpp:3255
const APInt & umax(const APInt &A, const APInt &B)
Determine the larger of two APInts considered to be unsigned.
Definition APInt.h:2290
constexpr std::underlying_type_t< E > Mask()
Get a bitmask with 1s in all places up to the high-order bit of E's largest value.
@ CE
Windows NT (Windows on ARM)
Definition MCAsmInfo.h:51
initializer< Ty > init(const Ty &Val)
static constexpr roundingMode rmNearestTiesToEven
Definition APFloat.h:454
static constexpr cmpResult cmpEqual
Definition APFloat.h:462
@ ebStrict
This corresponds to "fpexcept.strict".
Definition FPEnv.h:42
@ ebIgnore
This corresponds to "fpexcept.ignore".
Definition FPEnv.h:40
constexpr double pi
APFloat::roundingMode GetRoundingModeFromImmArg(const Value *ImmArgVal)
APFloat::roundingMode GetFMARoundingMode(Intrinsic::ID IntrinsicID)
DenormalMode GetNVVMDenormMode(bool ShouldFTZ)
bool FPToIntegerIntrinsicNaNZero(Intrinsic::ID IntrinsicID)
APFloat::roundingMode GetFDivRoundingMode(Intrinsic::ID IntrinsicID)
bool FPToIntegerIntrinsicResultIsSigned(Intrinsic::ID IntrinsicID)
APFloat::roundingMode GetFPToIntegerRoundingMode(Intrinsic::ID IntrinsicID)
bool RCPShouldFTZ(Intrinsic::ID IntrinsicID)
bool FPToIntegerIntrinsicShouldFTZ(Intrinsic::ID IntrinsicID)
bool FDivShouldFTZ(Intrinsic::ID IntrinsicID)
bool FMinFMaxIsXorSignAbs(Intrinsic::ID IntrinsicID)
APFloat::roundingMode GetFMulRoundingMode(Intrinsic::ID IntrinsicID)
bool UnaryMathIntrinsicShouldFTZ(Intrinsic::ID IntrinsicID)
bool FMinFMaxShouldFTZ(Intrinsic::ID IntrinsicID)
bool FMAShouldFTZ(Intrinsic::ID IntrinsicID)
bool FMulShouldFTZ(Intrinsic::ID IntrinsicID)
APFloat::roundingMode GetRCPRoundingMode(Intrinsic::ID IntrinsicID)
bool FMinFMaxPropagatesNaNs(Intrinsic::ID IntrinsicID)
NodeAddr< FuncNode * > Func
Definition RDFGraph.h:393
LLVM_ABI std::error_code status(const Twine &path, file_status &result, bool follow=true)
Get file status as if by POSIX stat().
This is an optimization pass for GlobalISel generic memory operations.
auto drop_begin(T &&RangeOrContainer, size_t N=1)
Return a range covering RangeOrContainer with the first N elements excluded.
Definition STLExtras.h:315
@ Offset
Definition DWP.cpp:577
bool all_of(R &&range, UnaryPredicate P)
Provide wrappers to std::all_of which take ranges instead of having to pass begin/end explicitly.
Definition STLExtras.h:1739
LLVM_ABI Constant * ConstantFoldLoadThroughBitcast(Constant *C, Type *DestTy, const DataLayout &DL)
ConstantFoldLoadThroughBitcast - try to cast constant to destination type returning null if unsuccess...
static double log2(double V)
LLVM_ABI Constant * ConstantFoldSelectInstruction(Constant *Cond, Constant *V1, Constant *V2)
Attempt to constant fold a select instruction with the specified operands.
LLVM_ABI Constant * ConstantFoldFPInstOperands(unsigned Opcode, Constant *LHS, Constant *RHS, const DataLayout &DL, const Instruction *I, bool AllowNonDeterministic=true)
Attempt to constant fold a floating point binary operation with the specified operands,...
auto enumerate(FirstRange &&First, RestRanges &&...Rest)
Given two or more input ranges, returns a new range whose values are tuples (A, B,...
Definition STLExtras.h:2554
unsigned getPointerAddressSpace(const Type *T)
Definition SPIRVUtils.h:395
decltype(auto) dyn_cast(const From &Val)
dyn_cast<X> - Return the argument parameter cast to the specified type.
Definition Casting.h:643
LLVM_ABI Constant * ConstantFoldInstruction(const Instruction *I, const DataLayout &DL, const TargetLibraryInfo *TLI=nullptr)
ConstantFoldInstruction - Try to constant fold the specified instruction.
APFloat abs(APFloat X)
Returns the absolute value of the argument.
Definition APFloat.h:1721
LLVM_ABI Constant * ConstantFoldCompareInstruction(CmpInst::Predicate Predicate, Constant *C1, Constant *C2)
LLVM_ABI Constant * ConstantFoldUnaryInstruction(unsigned Opcode, Constant *V)
LLVM_ABI bool IsConstantOffsetFromGlobal(Constant *C, GlobalValue *&GV, APInt &Offset, const DataLayout &DL, DSOLocalEquivalent **DSOEquiv=nullptr)
If this constant is a constant offset from a global, return the global and the constant.
LLVM_ABI bool isMathLibCallNoop(const CallBase *Call, const TargetLibraryInfo *TLI)
Check whether the given call has no side-effects.
LLVM_ABI Constant * ReadByteArrayFromGlobal(const GlobalVariable *GV, uint64_t Offset)
auto dyn_cast_if_present(const Y &Val)
dyn_cast_if_present<X> - Functionally identical to dyn_cast, except that a null (or none in the case ...
Definition Casting.h:732
LLVM_READONLY APFloat maximum(const APFloat &A, const APFloat &B)
Implements IEEE 754-2019 maximum semantics.
Definition APFloat.h:1801
LLVM_ABI Constant * ConstantFoldCompareInstOperands(unsigned Predicate, Constant *LHS, Constant *RHS, const DataLayout &DL, const TargetLibraryInfo *TLI=nullptr, const Instruction *I=nullptr)
Attempt to constant fold a compare instruction (icmp/fcmp) with the specified operands.
int ilogb(const APFloat &Arg)
Returns the exponent of the internal representation of the APFloat.
Definition APFloat.h:1692
bool isa_and_nonnull(const Y &Val)
Definition Casting.h:676
LLVM_ABI Constant * ConstantFoldCall(const CallBase *Call, Function *F, ArrayRef< Constant * > Operands, const TargetLibraryInfo *TLI=nullptr, bool AllowNonDeterministic=true)
ConstantFoldCall - Attempt to constant fold a call to the specified function with the specified argum...
LLVM_ABI bool canConstantFoldCallTo(const CallBase *Call, const Function *F, const TargetLibraryInfo *TLI=nullptr)
canConstantFoldCallTo - Return true if its even possible to fold a call to the specified function.
APFloat frexp(const APFloat &X, int &Exp, APFloat::roundingMode RM)
Equivalent of C standard library function.
Definition APFloat.h:1713
LLVM_ABI Constant * ConstantFoldExtractValueInstruction(Constant *Agg, ArrayRef< unsigned > Idxs)
Attempt to constant fold an extractvalue instruction with the specified operands and indices.
LLVM_ABI Constant * ConstantFoldConstant(const Constant *C, const DataLayout &DL, const TargetLibraryInfo *TLI=nullptr)
ConstantFoldConstant - Fold the constant using the specified DataLayout.
auto dyn_cast_or_null(const Y &Val)
Definition Casting.h:753
bool any_of(R &&range, UnaryPredicate P)
Provide wrappers to std::any_of which take ranges instead of having to pass begin/end explicitly.
Definition STLExtras.h:1746
LLVM_READONLY APFloat maxnum(const APFloat &A, const APFloat &B)
Implements IEEE-754 2008 maxNum semantics.
Definition APFloat.h:1756
LLVM_ABI Constant * ConstantFoldLoadFromUniformValue(Constant *C, Type *Ty, const DataLayout &DL)
If C is a uniform value where all bits are the same (either all zero, all ones, all undef or all pois...
LLVM_ABI Constant * ConstantFoldUnaryOpOperand(unsigned Opcode, Constant *Op, const DataLayout &DL)
Attempt to constant fold a unary operation with the specified operand.
LLVM_ABI Constant * FlushFPConstant(Constant *Operand, const Instruction *I, bool IsOutput)
Attempt to flush float point constant according to denormal mode set in the instruction's parent func...
LLVM_ABI Constant * getLosslessUnsignedTrunc(Constant *C, Type *DestTy, const DataLayout &DL, PreservedCastFlags *Flags=nullptr)
LLVM_READONLY LLVM_ABI std::optional< APFloat > exp(const APFloat &X, RoundingMode RM=APFloat::rmNearestTiesToEven, APFloat::opStatus *Status=nullptr)
Implement IEEE 754-2019 exp functions.
Definition APFloat.cpp:6229
decltype(auto) get(const PointerIntPair< PointerTy, IntBits, IntType, PtrTraits, Info > &Pair)
LLVM_READONLY APFloat minimumnum(const APFloat &A, const APFloat &B)
Implements IEEE 754-2019 minimumNumber semantics.
Definition APFloat.h:1787
FPClassTest
Floating-point class tests, supported by 'is_fpclass' intrinsic.
APFloat scalbn(APFloat X, int Exp, APFloat::roundingMode RM)
Returns: X * 2^Exp for integral exponents.
Definition APFloat.h:1701
LLVM_ABI void computeKnownBits(const Value *V, KnownBits &Known, const DataLayout &DL, AssumptionCache *AC=nullptr, const Instruction *CxtI=nullptr, const DominatorTree *DT=nullptr, bool UseInstrInfo=true, unsigned Depth=0)
Determine which bits of V are known to be either zero or one and return them in the KnownZero/KnownOn...
LLVM_ABI bool NullPointerIsDefined(const Function *F, unsigned AS=0)
Check whether null pointer dereferencing is considered undefined behavior for a given function or an ...
LLVM_ABI Constant * getLosslessSignedTrunc(Constant *C, Type *DestTy, const DataLayout &DL, PreservedCastFlags *Flags=nullptr)
LLVM_ABI Constant * ConstantFoldCastOperand(unsigned Opcode, Constant *C, Type *DestTy, const DataLayout &DL)
Attempt to constant fold a cast with the specified operand.
LLVM_ABI Constant * ConstantFoldLoadFromConst(Constant *C, Type *Ty, const APInt &Offset, const DataLayout &DL)
Extract value of C at the given Offset reinterpreted as Ty.
bool isa(const From &Val)
isa<X> - Return true if the parameter to the template is an instance of one of the template type argu...
Definition Casting.h:547
LLVM_ABI bool intrinsicPropagatesPoison(Intrinsic::ID IID)
Return whether this intrinsic propagates poison for all operands.
LLVM_ABI Constant * ConstantFoldBinaryOpOperands(unsigned Opcode, Constant *LHS, Constant *RHS, const DataLayout &DL)
Attempt to constant fold a binary operation with the specified operands.
MutableArrayRef(T &OneElt) -> MutableArrayRef< T >
LLVM_ABI Constant * ConstantFoldIntrinsic(Intrinsic::ID ID, ArrayRef< Constant * > Ops, Type *Ty, const DataLayout &DL, Function *CxtF=nullptr)
LLVM_READONLY APFloat minnum(const APFloat &A, const APFloat &B)
Implements IEEE-754 2008 minNum semantics.
Definition APFloat.h:1737
@ Sub
Subtraction of integers.
LLVM_ABI bool isVectorIntrinsicWithScalarOpAtArg(Intrinsic::ID ID, unsigned ScalarOpdIdx, const TargetTransformInfo *TTI)
Identifies if the vector form of the intrinsic has a scalar operand.
IntPtrTy
Definition InstrProf.h:82
DWARFExpression::Operation Op
RoundingMode
Rounding mode.
@ NearestTiesToEven
roundTiesToEven.
@ Dynamic
Denotes mode unknown at compile time.
LLVM_ABI bool isGuaranteedNotToBeUndefOrPoison(const Value *V, AssumptionCache *AC=nullptr, const Instruction *CtxI=nullptr, const DominatorTree *DT=nullptr, unsigned Depth=0)
Return true if this function can prove that V does not have undef bits and is never poison.
constexpr unsigned BitWidth
LLVM_ABI Constant * getLosslessInvCast(Constant *C, Type *InvCastTo, unsigned CastOp, const DataLayout &DL, PreservedCastFlags *Flags=nullptr)
Try to cast C to InvC losslessly, satisfying CastOp(InvC) equals C, or CastOp(InvC) is a refined valu...
decltype(auto) cast(const From &Val)
cast<X> - Return the argument parameter cast to the specified type.
Definition Casting.h:559
RelativeUniformCounterPtr ValuesPtrExpr VTableAddr Next
Definition InstrProf.h:147
bool all_equal(std::initializer_list< T > Values)
Returns true if all Values in the initializer lists are equal or the list.
Definition STLExtras.h:2166
LLVM_ABI Constant * ConstantFoldCastInstruction(unsigned opcode, Constant *V, Type *DestTy)
LLVM_ABI Constant * ConstantFoldInsertValueInstruction(Constant *Agg, Constant *Val, ArrayRef< unsigned > Idxs)
Attempt to constant fold an insertvalue instruction with the specified operands and indices.
LLVM_ABI Constant * ConstantFoldLoadFromConstPtr(Constant *C, Type *Ty, APInt Offset, const DataLayout &DL)
Return the value that a load from C with offset Offset would produce if it is constant and determinab...
LLVM_ABI Constant * ConstantFoldInstOperands(const Instruction *I, ArrayRef< Constant * > Ops, const DataLayout &DL, const TargetLibraryInfo *TLI=nullptr, bool AllowNonDeterministic=true)
ConstantFoldInstOperands - Attempt to constant fold an instruction with the specified operands.
LLVM_READONLY APFloat minimum(const APFloat &A, const APFloat &B)
Implements IEEE 754-2019 minimum semantics.
Definition APFloat.h:1774
LLVM_READONLY APFloat maximumnum(const APFloat &A, const APFloat &B)
Implements IEEE 754-2019 maximumNumber semantics.
Definition APFloat.h:1814
LLVM_ABI const Value * getUnderlyingObject(const Value *V, unsigned MaxLookup=MaxLookupSearchDepth)
This method strips off any GEP address adjustments, pointer casts or llvm.threadlocal....
LLVM_ABI Constant * ConstantFoldIntegerCast(Constant *C, Type *DestTy, bool IsSigned, const DataLayout &DL)
Constant fold a zext, sext or trunc, depending on IsSigned and whether the DestTy is wider or narrowe...
LLVM_ABI bool isTriviallyVectorizable(Intrinsic::ID ID)
Identify if the intrinsic is trivially vectorizable.
constexpr detail::IsaCheckPredicate< Types... > IsaPred
Function object wrapper for the llvm::isa type check.
Definition Casting.h:866
LLVM_ABI Constant * ConstantFoldBinaryInstruction(unsigned Opcode, Constant *V1, Constant *V2)
Represent subnormal handling kind for floating point instruction inputs and outputs.
DenormalModeKind Input
Denormal treatment kind for floating point instruction inputs in the default floating-point environme...
DenormalModeKind
Represent handled modes for denormal (aka subnormal) modes in the floating point environment.
@ PreserveSign
The sign of a flushed-to-zero number is preserved in the sign of 0.
@ PositiveZero
Denormals are flushed to positive zero.
@ Dynamic
Denormals have unknown treatment.
@ IEEE
IEEE-754 denormal numbers preserved.
DenormalModeKind Output
Denormal flushing mode for floating point instruction results in the default floating point environme...
static constexpr DenormalMode getDynamic()
static constexpr DenormalMode getIEEE()
bool isConstant() const
Returns true if we know the value of all bits.
Definition KnownBits.h:54
const APInt & getConstant() const
Returns the value when all bits have a known value.
Definition KnownBits.h:58