LLVM 24.0.0git
InstCombineSimplifyDemanded.cpp
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1//===- InstCombineSimplifyDemanded.cpp ------------------------------------===//
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 contains logic for simplifying instructions based on information
10// about how they are used.
11//
12//===----------------------------------------------------------------------===//
13
14#include "InstCombineInternal.h"
22
23using namespace llvm;
24using namespace llvm::PatternMatch;
25
26#define DEBUG_TYPE "instcombine"
27
28static cl::opt<bool>
29 VerifyKnownBits("instcombine-verify-known-bits",
30 cl::desc("Verify that computeKnownBits() and "
31 "SimplifyDemandedBits() are consistent"),
32 cl::Hidden, cl::init(false));
33
35 "instcombine-simplify-vector-elts-depth",
37 "Depth limit when simplifying vector instructions and their operands"),
38 cl::Hidden, cl::init(10));
39
40/// Check to see if the specified operand of the specified instruction is a
41/// constant integer. If so, check to see if there are any bits set in the
42/// constant that are not demanded. If so, shrink the constant and return true.
43static bool ShrinkDemandedConstant(Instruction *I, unsigned OpNo,
44 const APInt &Demanded) {
45 assert(I && "No instruction?");
46 assert(OpNo < I->getNumOperands() && "Operand index too large");
47
48 // The operand must be a constant integer or splat integer.
49 Value *Op = I->getOperand(OpNo);
50 const APInt *C;
51 if (!match(Op, m_APInt(C)))
52 return false;
53
54 // If there are no bits set that aren't demanded, nothing to do.
55 if (C->isSubsetOf(Demanded))
56 return false;
57
58 // This instruction is producing bits that are not demanded. Shrink the RHS.
59 I->setOperand(OpNo, ConstantInt::get(Op->getType(), *C & Demanded));
60
61 return true;
62}
63
64/// Let N = 2 * M.
65/// Given an N-bit integer representing a pack of two M-bit integers,
66/// we can select one of the packed integers by right-shifting by either
67/// zero or M (which is the most straightforward to check if M is a power
68/// of 2), and then isolating the lower M bits. In this case, we can
69/// represent the shift as a select on whether the shr amount is nonzero.
71 const APInt &DemandedMask,
73 unsigned Depth) {
74 assert(I->getOpcode() == Instruction::LShr &&
75 "Only lshr instruction supported");
76
77 uint64_t ShlAmt;
78 Value *Upper, *Lower;
79 if (!match(I->getOperand(0),
82 m_Value(Lower)))))
83 return nullptr;
84
85 if (!isPowerOf2_64(ShlAmt))
86 return nullptr;
87
88 const uint64_t DemandedBitWidth = DemandedMask.getActiveBits();
89 if (DemandedBitWidth > ShlAmt)
90 return nullptr;
91
92 // Check that upper demanded bits are not lost from lshift.
93 if (Upper->getType()->getScalarSizeInBits() < ShlAmt + DemandedBitWidth)
94 return nullptr;
95
96 KnownBits KnownLowerBits = IC.computeKnownBits(Lower, I, Depth);
97 if (!KnownLowerBits.getMaxValue().isIntN(ShlAmt))
98 return nullptr;
99
100 Value *ShrAmt = I->getOperand(1);
101 KnownBits KnownShrBits = IC.computeKnownBits(ShrAmt, I, Depth);
102
103 // Verify that ShrAmt is either exactly ShlAmt (which is a power of 2) or
104 // zero.
105 if (~KnownShrBits.Zero != ShlAmt)
106 return nullptr;
107
110 Value *ShrAmtZ =
112 ShrAmt->getName() + ".z");
113 // There is no existing !prof metadata we can derive the !prof metadata for
114 // this select.
117 Select->takeName(I);
118 return Select;
119}
120
121/// Returns the bitwidth of the given scalar or pointer type. For vector types,
122/// returns the element type's bitwidth.
123static unsigned getBitWidth(Type *Ty, const DataLayout &DL) {
124 if (unsigned BitWidth = Ty->getScalarSizeInBits())
125 return BitWidth;
126
127 return DL.getPointerTypeSizeInBits(Ty);
128}
129
130/// Inst is an integer instruction that SimplifyDemandedBits knows about. See if
131/// the instruction has any properties that allow us to simplify its operands.
133 KnownBits &Known) {
134 APInt DemandedMask(APInt::getAllOnes(Known.getBitWidth()));
135 Value *V = SimplifyDemandedUseBits(&Inst, DemandedMask, Known,
136 SQ.getWithInstruction(&Inst));
137 if (!V) return false;
138 if (V == &Inst) return true;
139 replaceInstUsesWith(Inst, V);
140 return true;
141}
142
143/// Inst is an integer instruction that SimplifyDemandedBits knows about. See if
144/// the instruction has any properties that allow us to simplify its operands.
149
152
154 SQ.getWithInstruction(&Inst));
155 if (!V)
156 return false;
157 if (V == &Inst)
158 return true;
159 replaceInstUsesWith(Inst, V);
160 return true;
161}
162
163/// This form of SimplifyDemandedBits simplifies the specified instruction
164/// operand if possible, updating it in place. It returns true if it made any
165/// change and false otherwise.
167 const APInt &DemandedMask,
169 const SimplifyQuery &Q,
170 unsigned Depth) {
171 Use &U = I->getOperandUse(OpNo);
172 Value *V = U.get();
173 if (isa<Constant>(V)) {
175 return false;
176 }
177
178 Known.resetAll();
179 if (DemandedMask.isZero()) {
180 // Not demanding any bits from V.
181 replaceUse(U, UndefValue::get(V->getType()));
182 return true;
183 }
184
186 if (!VInst) {
188 return false;
189 }
190
192 return false;
193
194 Value *NewVal;
195 if (VInst->hasOneUse()) {
196 // If the instruction has one use, we can directly simplify it.
197 NewVal = SimplifyDemandedUseBits(VInst, DemandedMask, Known, Q, Depth);
198 } else {
199 // If there are multiple uses of this instruction, then we can simplify
200 // VInst to some other value, but not modify the instruction.
201 NewVal =
202 SimplifyMultipleUseDemandedBits(VInst, DemandedMask, Known, Q, Depth);
203 }
204 if (!NewVal) return false;
205 if (Instruction* OpInst = dyn_cast<Instruction>(U))
206 salvageDebugInfo(*OpInst);
207
208 replaceUse(U, NewVal);
209 return true;
210}
211
212/// This function attempts to replace V with a simpler value based on the
213/// demanded bits. When this function is called, it is known that only the bits
214/// set in DemandedMask of the result of V are ever used downstream.
215/// Consequently, depending on the mask and V, it may be possible to replace V
216/// with a constant or one of its operands. In such cases, this function does
217/// the replacement and returns true. In all other cases, it returns false after
218/// analyzing the expression and setting KnownOne and known to be one in the
219/// expression. Known.Zero contains all the bits that are known to be zero in
220/// the expression. These are provided to potentially allow the caller (which
221/// might recursively be SimplifyDemandedBits itself) to simplify the
222/// expression.
223/// Known.One and Known.Zero always follow the invariant that:
224/// Known.One & Known.Zero == 0.
225/// That is, a bit can't be both 1 and 0. The bits in Known.One and Known.Zero
226/// are accurate even for bits not in DemandedMask. Note
227/// also that the bitwidth of V, DemandedMask, Known.Zero and Known.One must all
228/// be the same.
229///
230/// This returns null if it did not change anything and it permits no
231/// simplification. This returns V itself if it did some simplification of V's
232/// operands based on the information about what bits are demanded. This returns
233/// some other non-null value if it found out that V is equal to another value
234/// in the context where the specified bits are demanded, but not for all users.
236 const APInt &DemandedMask,
238 const SimplifyQuery &Q,
239 unsigned Depth) {
240 assert(I != nullptr && "Null pointer of Value???");
241 assert(Depth <= MaxAnalysisRecursionDepth && "Limit Search Depth");
242 uint32_t BitWidth = DemandedMask.getBitWidth();
243 Type *VTy = I->getType();
244 assert(
245 (!VTy->isIntOrIntVectorTy() || VTy->getScalarSizeInBits() == BitWidth) &&
246 Known.getBitWidth() == BitWidth &&
247 "Value *V, DemandedMask and Known must have same BitWidth");
248
249 KnownBits LHSKnown(BitWidth), RHSKnown(BitWidth);
250
251 // Update flags after simplifying an operand based on the fact that some high
252 // order bits are not demanded.
253 auto disableWrapFlagsBasedOnUnusedHighBits = [](Instruction *I,
254 unsigned NLZ) {
255 if (NLZ > 0) {
256 // Disable the nsw and nuw flags here: We can no longer guarantee that
257 // we won't wrap after simplification. Removing the nsw/nuw flags is
258 // legal here because the top bit is not demanded.
259 I->setHasNoSignedWrap(false);
260 I->setHasNoUnsignedWrap(false);
261 }
262 return I;
263 };
264
265 // If the high-bits of an ADD/SUB/MUL are not demanded, then we do not care
266 // about the high bits of the operands.
267 auto simplifyOperandsBasedOnUnusedHighBits = [&](APInt &DemandedFromOps) {
268 unsigned NLZ = DemandedMask.countl_zero();
269 // Right fill the mask of bits for the operands to demand the most
270 // significant bit and all those below it.
271 DemandedFromOps = APInt::getLowBitsSet(BitWidth, BitWidth - NLZ);
272 if (ShrinkDemandedConstant(I, 0, DemandedFromOps) ||
273 SimplifyDemandedBits(I, 0, DemandedFromOps, LHSKnown, Q, Depth + 1) ||
274 ShrinkDemandedConstant(I, 1, DemandedFromOps) ||
275 SimplifyDemandedBits(I, 1, DemandedFromOps, RHSKnown, Q, Depth + 1)) {
276 disableWrapFlagsBasedOnUnusedHighBits(I, NLZ);
277 return true;
278 }
279 return false;
280 };
281
282 switch (I->getOpcode()) {
283 default:
285 break;
286 case Instruction::And: {
287 // If either the LHS or the RHS are Zero, the result is zero.
288 if (SimplifyDemandedBits(I, 1, DemandedMask, RHSKnown, Q, Depth + 1) ||
289 SimplifyDemandedBits(I, 0, DemandedMask & ~RHSKnown.Zero, LHSKnown, Q,
290 Depth + 1))
291 return I;
292
293 Known = analyzeKnownBitsFromAndXorOr(cast<Operator>(I), LHSKnown, RHSKnown,
294 Q, Depth);
295
296 // If the client is only demanding bits that we know, return the known
297 // constant.
298 if (DemandedMask.isSubsetOf(Known.Zero | Known.One))
299 return Constant::getIntegerValue(VTy, Known.One);
300
301 // If all of the demanded bits are known 1 on one side, return the other.
302 // These bits cannot contribute to the result of the 'and'.
303 if (DemandedMask.isSubsetOf(LHSKnown.Zero | RHSKnown.One))
304 return I->getOperand(0);
305 if (DemandedMask.isSubsetOf(RHSKnown.Zero | LHSKnown.One))
306 return I->getOperand(1);
307
308 // If the RHS is a constant, see if we can simplify it.
309 if (ShrinkDemandedConstant(I, 1, DemandedMask & ~LHSKnown.Zero))
310 return I;
311
312 break;
313 }
314 case Instruction::Or: {
315 // If either the LHS or the RHS are One, the result is One.
316 if (SimplifyDemandedBits(I, 1, DemandedMask, RHSKnown, Q, Depth + 1) ||
317 SimplifyDemandedBits(I, 0, DemandedMask & ~RHSKnown.One, LHSKnown, Q,
318 Depth + 1)) {
319 // Disjoint flag may not longer hold.
320 I->dropPoisonGeneratingFlags();
321 return I;
322 }
323
324 Known = analyzeKnownBitsFromAndXorOr(cast<Operator>(I), LHSKnown, RHSKnown,
325 Q, Depth);
326
327 // If the client is only demanding bits that we know, return the known
328 // constant.
329 if (DemandedMask.isSubsetOf(Known.Zero | Known.One))
330 return Constant::getIntegerValue(VTy, Known.One);
331
332 // If all of the demanded bits are known zero on one side, return the other.
333 // These bits cannot contribute to the result of the 'or'.
334 if (DemandedMask.isSubsetOf(LHSKnown.One | RHSKnown.Zero))
335 return I->getOperand(0);
336 if (DemandedMask.isSubsetOf(RHSKnown.One | LHSKnown.Zero))
337 return I->getOperand(1);
338
339 // If the RHS is a constant, see if we can simplify it.
340 if (ShrinkDemandedConstant(I, 1, DemandedMask))
341 return I;
342
343 // Infer disjoint flag if no common bits are set.
344 if (!cast<PossiblyDisjointInst>(I)->isDisjoint()) {
345 WithCache<const Value *> LHSCache(I->getOperand(0), LHSKnown),
346 RHSCache(I->getOperand(1), RHSKnown);
347 if (haveNoCommonBitsSet(LHSCache, RHSCache, Q)) {
348 cast<PossiblyDisjointInst>(I)->setIsDisjoint(true);
349 return I;
350 }
351 }
352
353 break;
354 }
355 case Instruction::Xor: {
356 if (SimplifyDemandedBits(I, 1, DemandedMask, RHSKnown, Q, Depth + 1) ||
357 SimplifyDemandedBits(I, 0, DemandedMask, LHSKnown, Q, Depth + 1))
358 return I;
359 Value *LHS, *RHS;
360 if (DemandedMask == 1 && match(I->getOperand(0), m_Ctpop(m_Value(LHS))) &&
361 match(I->getOperand(1), m_Ctpop(m_Value(RHS)))) {
362 // (ctpop(X) ^ ctpop(Y)) & 1 --> ctpop(X^Y) & 1
364 Builder.SetInsertPoint(I);
365 auto *Xor = Builder.CreateXor(LHS, RHS);
366 return Builder.CreateUnaryIntrinsic(Intrinsic::ctpop, Xor);
367 }
368
369 Known = analyzeKnownBitsFromAndXorOr(cast<Operator>(I), LHSKnown, RHSKnown,
370 Q, Depth);
371
372 // If the client is only demanding bits that we know, return the known
373 // constant.
374 if (DemandedMask.isSubsetOf(Known.Zero | Known.One))
375 return Constant::getIntegerValue(VTy, Known.One);
376
377 // If all of the demanded bits are known zero on one side, return the other.
378 // These bits cannot contribute to the result of the 'xor'.
379 if (DemandedMask.isSubsetOf(RHSKnown.Zero))
380 return I->getOperand(0);
381 if (DemandedMask.isSubsetOf(LHSKnown.Zero))
382 return I->getOperand(1);
383
384 // If all of the demanded bits are known to be zero on one side or the
385 // other, turn this into an *inclusive* or.
386 // e.g. (A & C1)^(B & C2) -> (A & C1)|(B & C2) iff C1&C2 == 0
387 if (DemandedMask.isSubsetOf(RHSKnown.Zero | LHSKnown.Zero)) {
388 Instruction *Or =
389 BinaryOperator::CreateOr(I->getOperand(0), I->getOperand(1));
390 if (DemandedMask.isAllOnes())
391 cast<PossiblyDisjointInst>(Or)->setIsDisjoint(true);
392 Or->takeName(I);
393 return InsertNewInstWith(Or, I->getIterator());
394 }
395
396 // If all of the demanded bits on one side are known, and all of the set
397 // bits on that side are also known to be set on the other side, turn this
398 // into an AND, as we know the bits will be cleared.
399 // e.g. (X | C1) ^ C2 --> (X | C1) & ~C2 iff (C1&C2) == C2
400 if (DemandedMask.isSubsetOf(RHSKnown.Zero|RHSKnown.One) &&
401 RHSKnown.One.isSubsetOf(LHSKnown.One)) {
403 ~RHSKnown.One & DemandedMask);
404 Instruction *And = BinaryOperator::CreateAnd(I->getOperand(0), AndC);
405 return InsertNewInstWith(And, I->getIterator());
406 }
407
408 // If the RHS is a constant, see if we can change it. Don't alter a -1
409 // constant because that's a canonical 'not' op, and that is better for
410 // combining, SCEV, and codegen.
411 const APInt *C;
412 if (match(I->getOperand(1), m_APInt(C)) && !C->isAllOnes()) {
413 if ((*C | ~DemandedMask).isAllOnes()) {
414 // Force bits to 1 to create a 'not' op.
415 I->setOperand(1, ConstantInt::getAllOnesValue(VTy));
416 return I;
417 }
418 // If we can't turn this into a 'not', try to shrink the constant.
419 if (ShrinkDemandedConstant(I, 1, DemandedMask))
420 return I;
421 }
422
423 // If our LHS is an 'and' and if it has one use, and if any of the bits we
424 // are flipping are known to be set, then the xor is just resetting those
425 // bits to zero. We can just knock out bits from the 'and' and the 'xor',
426 // simplifying both of them.
427 if (Instruction *LHSInst = dyn_cast<Instruction>(I->getOperand(0))) {
428 ConstantInt *AndRHS, *XorRHS;
429 if (LHSInst->getOpcode() == Instruction::And && LHSInst->hasOneUse() &&
430 match(I->getOperand(1), m_ConstantInt(XorRHS)) &&
431 match(LHSInst->getOperand(1), m_ConstantInt(AndRHS)) &&
432 (LHSKnown.One & RHSKnown.One & DemandedMask) != 0) {
433 APInt NewMask = ~(LHSKnown.One & RHSKnown.One & DemandedMask);
434
435 Constant *AndC = ConstantInt::get(VTy, NewMask & AndRHS->getValue());
436 Instruction *NewAnd = BinaryOperator::CreateAnd(I->getOperand(0), AndC);
437 InsertNewInstWith(NewAnd, I->getIterator());
438
439 Constant *XorC = ConstantInt::get(VTy, NewMask & XorRHS->getValue());
440 Instruction *NewXor = BinaryOperator::CreateXor(NewAnd, XorC);
441 return InsertNewInstWith(NewXor, I->getIterator());
442 }
443 }
444 break;
445 }
446 case Instruction::Select: {
447 if (SimplifyDemandedBits(I, 2, DemandedMask, RHSKnown, Q, Depth + 1) ||
448 SimplifyDemandedBits(I, 1, DemandedMask, LHSKnown, Q, Depth + 1))
449 return I;
450
451 // If the operands are constants, see if we can simplify them.
452 // This is similar to ShrinkDemandedConstant, but for a select we want to
453 // try to keep the selected constants the same as icmp value constants, if
454 // we can. This helps not break apart (or helps put back together)
455 // canonical patterns like min and max.
456 auto CanonicalizeSelectConstant = [](Instruction *I, unsigned OpNo,
457 const APInt &DemandedMask) {
458 const APInt *SelC;
459 if (!match(I->getOperand(OpNo), m_APInt(SelC)))
460 return false;
461
462 // Get the constant out of the ICmp, if there is one.
463 // Only try this when exactly 1 operand is a constant (if both operands
464 // are constant, the icmp should eventually simplify). Otherwise, we may
465 // invert the transform that reduces set bits and infinite-loop.
466 Value *X;
467 const APInt *CmpC;
468 if (!match(I->getOperand(0), m_ICmp(m_Value(X), m_APInt(CmpC))) ||
469 isa<Constant>(X) || CmpC->getBitWidth() != SelC->getBitWidth())
470 return ShrinkDemandedConstant(I, OpNo, DemandedMask);
471
472 // If the constant is already the same as the ICmp, leave it as-is.
473 if (*CmpC == *SelC)
474 return false;
475 // If the constants are not already the same, but can be with the demand
476 // mask, use the constant value from the ICmp.
477 if ((*CmpC & DemandedMask) == (*SelC & DemandedMask)) {
478 I->setOperand(OpNo, ConstantInt::get(I->getType(), *CmpC));
479 return true;
480 }
481 return ShrinkDemandedConstant(I, OpNo, DemandedMask);
482 };
483 if (CanonicalizeSelectConstant(I, 1, DemandedMask) ||
484 CanonicalizeSelectConstant(I, 2, DemandedMask))
485 return I;
486
487 // Only known if known in both the LHS and RHS.
488 adjustKnownBitsForSelectArm(LHSKnown, I->getOperand(0), I->getOperand(1),
489 /*Invert=*/false, Q, Depth);
490 adjustKnownBitsForSelectArm(RHSKnown, I->getOperand(0), I->getOperand(2),
491 /*Invert=*/true, Q, Depth);
492 Known = LHSKnown.intersectWith(RHSKnown);
493 break;
494 }
495 case Instruction::Trunc: {
496 // If we do not demand the high bits of a right-shifted and truncated value,
497 // then we may be able to truncate it before the shift.
498 Value *X;
499 const APInt *C;
500 if (match(I->getOperand(0), m_OneUse(m_LShr(m_Value(X), m_APInt(C))))) {
501 // The shift amount must be valid (not poison) in the narrow type, and
502 // it must not be greater than the high bits demanded of the result.
503 if (C->ult(VTy->getScalarSizeInBits()) &&
504 C->ule(DemandedMask.countl_zero())) {
505 // trunc (lshr X, C) --> lshr (trunc X), C
507 Builder.SetInsertPoint(I);
508 Value *Trunc = Builder.CreateTrunc(X, VTy);
509 return Builder.CreateLShr(Trunc, C->getZExtValue());
510 }
511 }
512 }
513 [[fallthrough]];
514 case Instruction::ZExt: {
515 unsigned SrcBitWidth = I->getOperand(0)->getType()->getScalarSizeInBits();
516
517 APInt InputDemandedMask = DemandedMask.zextOrTrunc(SrcBitWidth);
518 KnownBits InputKnown(SrcBitWidth);
519 if (SimplifyDemandedBits(I, 0, InputDemandedMask, InputKnown, Q,
520 Depth + 1)) {
521 // For zext nneg, we may have dropped the instruction which made the
522 // input non-negative.
523 I->dropPoisonGeneratingFlags();
524 return I;
525 }
526 assert(InputKnown.getBitWidth() == SrcBitWidth && "Src width changed?");
527 if (I->getOpcode() == Instruction::ZExt && I->hasNonNeg() &&
528 !InputKnown.isNegative())
529 InputKnown.makeNonNegative();
530 Known = InputKnown.zextOrTrunc(BitWidth);
531
532 break;
533 }
534 case Instruction::SExt: {
535 // Compute the bits in the result that are not present in the input.
536 unsigned SrcBitWidth = I->getOperand(0)->getType()->getScalarSizeInBits();
537
538 APInt InputDemandedBits = DemandedMask.trunc(SrcBitWidth);
539
540 // If any of the sign extended bits are demanded, we know that the sign
541 // bit is demanded.
542 if (DemandedMask.getActiveBits() > SrcBitWidth)
543 InputDemandedBits.setBit(SrcBitWidth-1);
544
545 KnownBits InputKnown(SrcBitWidth);
546 if (SimplifyDemandedBits(I, 0, InputDemandedBits, InputKnown, Q, Depth + 1))
547 return I;
548
549 // If the input sign bit is known zero, or if the NewBits are not demanded
550 // convert this into a zero extension.
551 if (InputKnown.isNonNegative() ||
552 DemandedMask.getActiveBits() <= SrcBitWidth) {
553 // Convert to ZExt cast.
554 CastInst *NewCast = new ZExtInst(I->getOperand(0), VTy);
555 NewCast->takeName(I);
556 return InsertNewInstWith(NewCast, I->getIterator());
557 }
558
559 // If the sign bit of the input is known set or clear, then we know the
560 // top bits of the result.
561 Known = InputKnown.sext(BitWidth);
562 break;
563 }
564 case Instruction::Add: {
565 if ((DemandedMask & 1) == 0) {
566 // If we do not need the low bit, try to convert bool math to logic:
567 // add iN (zext i1 X), (sext i1 Y) --> sext (~X & Y) to iN
568 Value *X, *Y;
570 m_OneUse(m_SExt(m_Value(Y))))) &&
571 X->getType()->isIntOrIntVectorTy(1) && X->getType() == Y->getType()) {
572 // Truth table for inputs and output signbits:
573 // X:0 | X:1
574 // ----------
575 // Y:0 | 0 | 0 |
576 // Y:1 | -1 | 0 |
577 // ----------
579 Builder.SetInsertPoint(I);
580 Value *AndNot = Builder.CreateAnd(Builder.CreateNot(X), Y);
581 return Builder.CreateSExt(AndNot, VTy);
582 }
583
584 // add iN (sext i1 X), (sext i1 Y) --> sext (X | Y) to iN
585 if (match(I, m_Add(m_SExt(m_Value(X)), m_SExt(m_Value(Y)))) &&
586 X->getType()->isIntOrIntVectorTy(1) && X->getType() == Y->getType() &&
587 (I->getOperand(0)->hasOneUse() || I->getOperand(1)->hasOneUse())) {
588
589 // Truth table for inputs and output signbits:
590 // X:0 | X:1
591 // -----------
592 // Y:0 | 0 | -1 |
593 // Y:1 | -1 | -1 |
594 // -----------
596 Builder.SetInsertPoint(I);
597 Value *Or = Builder.CreateOr(X, Y);
598 return Builder.CreateSExt(Or, VTy);
599 }
600 }
601
602 // Right fill the mask of bits for the operands to demand the most
603 // significant bit and all those below it.
604 unsigned NLZ = DemandedMask.countl_zero();
605 APInt DemandedFromOps = APInt::getLowBitsSet(BitWidth, BitWidth - NLZ);
606 if (ShrinkDemandedConstant(I, 1, DemandedFromOps) ||
607 SimplifyDemandedBits(I, 1, DemandedFromOps, RHSKnown, Q, Depth + 1))
608 return disableWrapFlagsBasedOnUnusedHighBits(I, NLZ);
609
610 // If low order bits are not demanded and known to be zero in one operand,
611 // then we don't need to demand them from the other operand, since they
612 // can't cause overflow into any bits that are demanded in the result.
613 unsigned NTZ = (~DemandedMask & RHSKnown.Zero).countr_one();
614 APInt DemandedFromLHS = DemandedFromOps;
615 DemandedFromLHS.clearLowBits(NTZ);
616 if (ShrinkDemandedConstant(I, 0, DemandedFromLHS) ||
617 SimplifyDemandedBits(I, 0, DemandedFromLHS, LHSKnown, Q, Depth + 1))
618 return disableWrapFlagsBasedOnUnusedHighBits(I, NLZ);
619
620 unsigned NtzLHS = (~DemandedMask & LHSKnown.Zero).countr_one();
621 APInt DemandedFromRHS = DemandedFromOps;
622 DemandedFromRHS.clearLowBits(NtzLHS);
623 if (ShrinkDemandedConstant(I, 1, DemandedFromRHS))
624 return disableWrapFlagsBasedOnUnusedHighBits(I, NLZ);
625
626 // If we are known to be adding zeros to every bit below
627 // the highest demanded bit, we just return the other side.
628 if (DemandedFromOps.isSubsetOf(RHSKnown.Zero))
629 return I->getOperand(0);
630 if (DemandedFromOps.isSubsetOf(LHSKnown.Zero))
631 return I->getOperand(1);
632
633 // (add X, C) --> (xor X, C) IFF C is equal to the top bit of the DemandMask
634 {
635 const APInt *C;
636 if (match(I->getOperand(1), m_APInt(C)) &&
637 C->isOneBitSet(DemandedMask.getActiveBits() - 1)) {
639 Builder.SetInsertPoint(I);
640 return Builder.CreateXor(I->getOperand(0), ConstantInt::get(VTy, *C));
641 }
642 }
643
644 // Otherwise just compute the known bits of the result.
645 bool NSW = cast<OverflowingBinaryOperator>(I)->hasNoSignedWrap();
646 bool NUW = cast<OverflowingBinaryOperator>(I)->hasNoUnsignedWrap();
647 Known = KnownBits::add(LHSKnown, RHSKnown, NSW, NUW);
648 break;
649 }
650 case Instruction::Sub: {
651 // Right fill the mask of bits for the operands to demand the most
652 // significant bit and all those below it.
653 unsigned NLZ = DemandedMask.countl_zero();
654 APInt DemandedFromOps = APInt::getLowBitsSet(BitWidth, BitWidth - NLZ);
655 if (ShrinkDemandedConstant(I, 1, DemandedFromOps) ||
656 SimplifyDemandedBits(I, 1, DemandedFromOps, RHSKnown, Q, Depth + 1))
657 return disableWrapFlagsBasedOnUnusedHighBits(I, NLZ);
658
659 // If low order bits are not demanded and are known to be zero in RHS,
660 // then we don't need to demand them from LHS, since they can't cause a
661 // borrow from any bits that are demanded in the result.
662 unsigned NTZ = (~DemandedMask & RHSKnown.Zero).countr_one();
663 APInt DemandedFromLHS = DemandedFromOps;
664 DemandedFromLHS.clearLowBits(NTZ);
665 if (ShrinkDemandedConstant(I, 0, DemandedFromLHS) ||
666 SimplifyDemandedBits(I, 0, DemandedFromLHS, LHSKnown, Q, Depth + 1))
667 return disableWrapFlagsBasedOnUnusedHighBits(I, NLZ);
668
669 // If we are known to be subtracting zeros from every bit below
670 // the highest demanded bit, we just return the other side.
671 if (DemandedFromOps.isSubsetOf(RHSKnown.Zero))
672 return I->getOperand(0);
673 // We can't do this with the LHS for subtraction, unless we are only
674 // demanding the LSB.
675 if (DemandedFromOps.isOne() && DemandedFromOps.isSubsetOf(LHSKnown.Zero))
676 return I->getOperand(1);
677
678 // Canonicalize sub mask, X -> ~X
679 const APInt *LHSC;
680 if (match(I->getOperand(0), m_LowBitMask(LHSC)) &&
681 DemandedFromOps.isSubsetOf(*LHSC)) {
683 Builder.SetInsertPoint(I);
684 return Builder.CreateNot(I->getOperand(1));
685 }
686
687 // Otherwise just compute the known bits of the result.
688 bool NSW = cast<OverflowingBinaryOperator>(I)->hasNoSignedWrap();
689 bool NUW = cast<OverflowingBinaryOperator>(I)->hasNoUnsignedWrap();
690 Known = KnownBits::sub(LHSKnown, RHSKnown, NSW, NUW);
691 break;
692 }
693 case Instruction::Mul: {
694 APInt DemandedFromOps;
695 if (simplifyOperandsBasedOnUnusedHighBits(DemandedFromOps))
696 return I;
697
698 if (DemandedMask.isPowerOf2()) {
699 // The LSB of X*Y is set only if (X & 1) == 1 and (Y & 1) == 1.
700 // If we demand exactly one bit N and we have "X * (C' << N)" where C' is
701 // odd (has LSB set), then the left-shifted low bit of X is the answer.
702 unsigned CTZ = DemandedMask.countr_zero();
703 const APInt *C;
704 if (match(I->getOperand(1), m_APInt(C)) && C->countr_zero() == CTZ) {
705 Constant *ShiftC = ConstantInt::get(VTy, CTZ);
706 Instruction *Shl = BinaryOperator::CreateShl(I->getOperand(0), ShiftC);
707 return InsertNewInstWith(Shl, I->getIterator());
708 }
709 }
710 // For a squared value "X * X", the bottom 2 bits are 0 and X[0] because:
711 // X * X is odd iff X is odd.
712 // 'Quadratic Reciprocity': X * X -> 0 for bit[1]
713 if (I->getOperand(0) == I->getOperand(1) && DemandedMask.ult(4)) {
714 Constant *One = ConstantInt::get(VTy, 1);
715 Instruction *And1 = BinaryOperator::CreateAnd(I->getOperand(0), One);
716 return InsertNewInstWith(And1, I->getIterator());
717 }
718
720 break;
721 }
722 case Instruction::Shl: {
723 const APInt *SA;
724 if (match(I->getOperand(1), m_APInt(SA))) {
725 const APInt *ShrAmt;
726 if (match(I->getOperand(0), m_Shr(m_Value(), m_APInt(ShrAmt))))
727 if (Instruction *Shr = dyn_cast<Instruction>(I->getOperand(0)))
728 if (Value *R = simplifyShrShlDemandedBits(Shr, *ShrAmt, I, *SA,
729 DemandedMask, Known))
730 return R;
731
732 // Do not simplify if shl is part of funnel-shift pattern
733 if (I->hasOneUse()) {
734 Instruction *Inst = I->user_back();
735 if (Inst->getOpcode() == BinaryOperator::Or) {
736 if (auto Opt = convertOrOfShiftsToFunnelShift(*Inst)) {
737 auto [IID, FShiftArgs] = *Opt;
738 if ((IID == Intrinsic::fshl || IID == Intrinsic::fshr) &&
739 FShiftArgs[0] == FShiftArgs[1]) {
741 break;
742 }
743 }
744 }
745 }
746
747 // We only want bits that already match the signbit then we don't
748 // need to shift.
749 uint64_t ShiftAmt = SA->getLimitedValue(BitWidth - 1);
750 if (DemandedMask.countr_zero() >= ShiftAmt) {
751 if (I->hasNoSignedWrap()) {
752 unsigned NumHiDemandedBits = BitWidth - DemandedMask.countr_zero();
753 unsigned SignBits =
754 ComputeNumSignBits(I->getOperand(0), Q.CxtI, Depth + 1);
755 if (SignBits > ShiftAmt && SignBits - ShiftAmt >= NumHiDemandedBits)
756 return I->getOperand(0);
757 }
758
759 // If we can pre-shift a right-shifted constant to the left without
760 // losing any high bits and we don't demand the low bits, then eliminate
761 // the left-shift:
762 // (C >> X) << LeftShiftAmtC --> (C << LeftShiftAmtC) >> X
763 Value *X;
764 Constant *C;
765 if (match(I->getOperand(0), m_LShr(m_ImmConstant(C), m_Value(X)))) {
766 Constant *LeftShiftAmtC = ConstantInt::get(VTy, ShiftAmt);
767 Constant *NewC = ConstantFoldBinaryOpOperands(Instruction::Shl, C,
768 LeftShiftAmtC, DL);
769 if (ConstantFoldBinaryOpOperands(Instruction::LShr, NewC,
770 LeftShiftAmtC, DL) == C) {
771 Instruction *Lshr = BinaryOperator::CreateLShr(NewC, X);
772 return InsertNewInstWith(Lshr, I->getIterator());
773 }
774 }
775 }
776
777 APInt DemandedMaskIn(DemandedMask.lshr(ShiftAmt));
778
779 // If the shift is NUW/NSW, then it does demand the high bits.
781 if (IOp->hasNoSignedWrap())
782 DemandedMaskIn.setHighBits(ShiftAmt+1);
783 else if (IOp->hasNoUnsignedWrap())
784 DemandedMaskIn.setHighBits(ShiftAmt);
785
786 if (SimplifyDemandedBits(I, 0, DemandedMaskIn, Known, Q, Depth + 1))
787 return I;
788
791 /* NUW */ IOp->hasNoUnsignedWrap(),
792 /* NSW */ IOp->hasNoSignedWrap());
793 } else {
794 // This is a variable shift, so we can't shift the demand mask by a known
795 // amount. But if we are not demanding high bits, then we are not
796 // demanding those bits from the pre-shifted operand either.
797 if (unsigned CTLZ = DemandedMask.countl_zero()) {
798 APInt DemandedFromOp(APInt::getLowBitsSet(BitWidth, BitWidth - CTLZ));
799 if (SimplifyDemandedBits(I, 0, DemandedFromOp, Known, Q, Depth + 1)) {
800 // We can't guarantee that nsw/nuw hold after simplifying the operand.
801 I->dropPoisonGeneratingFlags();
802 return I;
803 }
804 }
806 }
807 break;
808 }
809 case Instruction::LShr: {
810 const APInt *SA;
811 if (match(I->getOperand(1), m_APInt(SA))) {
812 uint64_t ShiftAmt = SA->getLimitedValue(BitWidth-1);
813
814 // Do not simplify if lshr is part of funnel-shift pattern
815 if (I->hasOneUse()) {
816 Instruction *Inst = I->user_back();
817 if (Inst->getOpcode() == BinaryOperator::Or) {
818 if (auto Opt = convertOrOfShiftsToFunnelShift(*Inst)) {
819 auto [IID, FShiftArgs] = *Opt;
820 if ((IID == Intrinsic::fshl || IID == Intrinsic::fshr) &&
821 FShiftArgs[0] == FShiftArgs[1]) {
823 break;
824 }
825 }
826 }
827 }
828
829 // If we are just demanding the shifted sign bit and below, then this can
830 // be treated as an ASHR in disguise.
831 if (DemandedMask.countl_zero() >= ShiftAmt) {
832 // If we only want bits that already match the signbit then we don't
833 // need to shift.
834 unsigned NumHiDemandedBits = BitWidth - DemandedMask.countr_zero();
835 unsigned SignBits =
836 ComputeNumSignBits(I->getOperand(0), Q.CxtI, Depth + 1);
837 if (SignBits >= NumHiDemandedBits)
838 return I->getOperand(0);
839
840 // If we can pre-shift a left-shifted constant to the right without
841 // losing any low bits (we already know we don't demand the high bits),
842 // then eliminate the right-shift:
843 // (C << X) >> RightShiftAmtC --> (C >> RightShiftAmtC) << X
844 Value *X;
845 Constant *C;
846 if (match(I->getOperand(0), m_Shl(m_ImmConstant(C), m_Value(X)))) {
847 Constant *RightShiftAmtC = ConstantInt::get(VTy, ShiftAmt);
848 Constant *NewC = ConstantFoldBinaryOpOperands(Instruction::LShr, C,
849 RightShiftAmtC, DL);
850 if (ConstantFoldBinaryOpOperands(Instruction::Shl, NewC,
851 RightShiftAmtC, DL) == C) {
852 Instruction *Shl = BinaryOperator::CreateShl(NewC, X);
853 return InsertNewInstWith(Shl, I->getIterator());
854 }
855 }
856
857 const APInt *Factor;
858 if (match(I->getOperand(0),
859 m_OneUse(m_Mul(m_Value(X), m_APInt(Factor)))) &&
860 Factor->countr_zero() >= ShiftAmt) {
861 BinaryOperator *Mul = BinaryOperator::CreateMul(
862 X, ConstantInt::get(X->getType(), Factor->lshr(ShiftAmt)));
863 return InsertNewInstWith(Mul, I->getIterator());
864 }
865 }
866
867 // Unsigned shift right.
868 APInt DemandedMaskIn(DemandedMask.shl(ShiftAmt));
869 if (SimplifyDemandedBits(I, 0, DemandedMaskIn, Known, Q, Depth + 1)) {
870 // exact flag may not longer hold.
871 I->dropPoisonGeneratingFlags();
872 return I;
873 }
874 Known >>= ShiftAmt;
875 if (ShiftAmt)
876 Known.Zero.setHighBits(ShiftAmt); // high bits known zero.
877 break;
878 }
879 if (Value *V =
880 simplifyShiftSelectingPackedElement(I, DemandedMask, *this, Depth))
881 return V;
882
884 break;
885 }
886 case Instruction::AShr: {
887 unsigned SignBits = ComputeNumSignBits(I->getOperand(0), Q.CxtI, Depth + 1);
888
889 // If we only want bits that already match the signbit then we don't need
890 // to shift.
891 unsigned NumHiDemandedBits = BitWidth - DemandedMask.countr_zero();
892 if (SignBits >= NumHiDemandedBits)
893 return I->getOperand(0);
894
895 // If this is an arithmetic shift right and only the low-bit is set, we can
896 // always convert this into a logical shr, even if the shift amount is
897 // variable. The low bit of the shift cannot be an input sign bit unless
898 // the shift amount is >= the size of the datatype, which is undefined.
899 if (DemandedMask.isOne()) {
900 // Perform the logical shift right.
901 Instruction *NewVal = BinaryOperator::CreateLShr(
902 I->getOperand(0), I->getOperand(1), I->getName());
903 return InsertNewInstWith(NewVal, I->getIterator());
904 }
905
906 const APInt *SA;
907 if (match(I->getOperand(1), m_APInt(SA))) {
908 uint32_t ShiftAmt = SA->getLimitedValue(BitWidth-1);
909
910 // Signed shift right.
911 APInt DemandedMaskIn(DemandedMask.shl(ShiftAmt));
912 // If any of the bits being shifted in are demanded, then we should set
913 // the sign bit as demanded.
914 bool ShiftedInBitsDemanded = DemandedMask.countl_zero() < ShiftAmt;
915 if (ShiftedInBitsDemanded)
916 DemandedMaskIn.setSignBit();
917 if (SimplifyDemandedBits(I, 0, DemandedMaskIn, Known, Q, Depth + 1)) {
918 // exact flag may not longer hold.
919 I->dropPoisonGeneratingFlags();
920 return I;
921 }
922
923 // If the input sign bit is known to be zero, or if none of the shifted in
924 // bits are demanded, turn this into an unsigned shift right.
925 if (Known.Zero[BitWidth - 1] || !ShiftedInBitsDemanded) {
926 BinaryOperator *LShr = BinaryOperator::CreateLShr(I->getOperand(0),
927 I->getOperand(1));
928 LShr->setIsExact(cast<BinaryOperator>(I)->isExact());
929 LShr->takeName(I);
930 return InsertNewInstWith(LShr, I->getIterator());
931 }
932
935 ShiftAmt != 0, I->isExact());
936 } else {
938 }
939 break;
940 }
941 case Instruction::UDiv: {
942 // UDiv doesn't demand low bits that are zero in the divisor.
943 const APInt *SA;
944 if (match(I->getOperand(1), m_APInt(SA))) {
945 // TODO: Take the demanded mask of the result into account.
946 unsigned RHSTrailingZeros = SA->countr_zero();
947 APInt DemandedMaskIn =
948 APInt::getHighBitsSet(BitWidth, BitWidth - RHSTrailingZeros);
949 if (SimplifyDemandedBits(I, 0, DemandedMaskIn, LHSKnown, Q, Depth + 1)) {
950 // We can't guarantee that "exact" is still true after changing the
951 // the dividend.
952 I->dropPoisonGeneratingFlags();
953 return I;
954 }
955
957 cast<BinaryOperator>(I)->isExact());
958 } else {
960 }
961 break;
962 }
963 case Instruction::SRem: {
964 const APInt *Rem;
965 if (match(I->getOperand(1), m_APInt(Rem)) && Rem->isPowerOf2()) {
966 if (DemandedMask.ult(*Rem)) // srem won't affect demanded bits
967 return I->getOperand(0);
968
969 APInt LowBits = *Rem - 1;
970 APInt Mask2 = LowBits | APInt::getSignMask(BitWidth);
971 if (SimplifyDemandedBits(I, 0, Mask2, LHSKnown, Q, Depth + 1))
972 return I;
974 break;
975 }
976
978 break;
979 }
980 case Instruction::Call: {
981 bool KnownBitsComputed = false;
983 switch (II->getIntrinsicID()) {
984 case Intrinsic::abs: {
985 if (DemandedMask == 1)
986 return II->getArgOperand(0);
987 break;
988 }
989 case Intrinsic::ctpop: {
990 // Checking if the number of clear bits is odd (parity)? If the type has
991 // an even number of bits, that's the same as checking if the number of
992 // set bits is odd, so we can eliminate the 'not' op.
993 Value *X;
994 if (DemandedMask == 1 && VTy->getScalarSizeInBits() % 2 == 0 &&
995 match(II->getArgOperand(0), m_Not(m_Value(X)))) {
997 II->getModule(), Intrinsic::ctpop, VTy);
998 return InsertNewInstWith(CallInst::Create(Ctpop, {X}), I->getIterator());
999 }
1000 break;
1001 }
1002 case Intrinsic::bswap: {
1003 // If the only bits demanded come from one byte of the bswap result,
1004 // just shift the input byte into position to eliminate the bswap.
1005 unsigned NLZ = DemandedMask.countl_zero();
1006 unsigned NTZ = DemandedMask.countr_zero();
1007
1008 // Round NTZ down to the next byte. If we have 11 trailing zeros, then
1009 // we need all the bits down to bit 8. Likewise, round NLZ. If we
1010 // have 14 leading zeros, round to 8.
1011 NLZ = alignDown(NLZ, 8);
1012 NTZ = alignDown(NTZ, 8);
1013 // If we need exactly one byte, we can do this transformation.
1014 if (BitWidth - NLZ - NTZ == 8) {
1015 // Replace this with either a left or right shift to get the byte into
1016 // the right place.
1017 Instruction *NewVal;
1018 if (NLZ > NTZ)
1019 NewVal = BinaryOperator::CreateLShr(
1020 II->getArgOperand(0), ConstantInt::get(VTy, NLZ - NTZ));
1021 else
1022 NewVal = BinaryOperator::CreateShl(
1023 II->getArgOperand(0), ConstantInt::get(VTy, NTZ - NLZ));
1024 NewVal->takeName(I);
1025 return InsertNewInstWith(NewVal, I->getIterator());
1026 }
1027 break;
1028 }
1029 case Intrinsic::ptrmask: {
1030 unsigned MaskWidth = I->getOperand(1)->getType()->getScalarSizeInBits();
1031 RHSKnown = KnownBits(MaskWidth);
1032 // If either the LHS or the RHS are Zero, the result is zero.
1033 if (SimplifyDemandedBits(I, 0, DemandedMask, LHSKnown, Q, Depth + 1) ||
1035 I, 1, (DemandedMask & ~LHSKnown.Zero).zextOrTrunc(MaskWidth),
1036 RHSKnown, Q, Depth + 1))
1037 return I;
1038
1039 // TODO: Should be 1-extend
1040 RHSKnown = RHSKnown.anyextOrTrunc(BitWidth);
1041
1042 Known = LHSKnown & RHSKnown;
1043 KnownBitsComputed = true;
1044
1045 // If the client is only demanding bits we know to be zero, return
1046 // `llvm.ptrmask(p, 0)`. We can't return `null` here due to pointer
1047 // provenance, but making the mask zero will be easily optimizable in
1048 // the backend.
1049 if (DemandedMask.isSubsetOf(Known.Zero) &&
1050 !match(I->getOperand(1), m_Zero()))
1051 return replaceOperand(
1052 *I, 1, Constant::getNullValue(I->getOperand(1)->getType()));
1053
1054 // Mask in demanded space does nothing.
1055 // NOTE: We may have attributes associated with the return value of the
1056 // llvm.ptrmask intrinsic that will be lost when we just return the
1057 // operand. We should try to preserve them.
1058 if (DemandedMask.isSubsetOf(RHSKnown.One | LHSKnown.Zero))
1059 return I->getOperand(0);
1060
1061 // If the RHS is a constant, see if we can simplify it.
1063 I, 1, (DemandedMask & ~LHSKnown.Zero).zextOrTrunc(MaskWidth)))
1064 return I;
1065
1066 // Combine:
1067 // (ptrmask (getelementptr i8, ptr p, imm i), imm mask)
1068 // -> (ptrmask (getelementptr i8, ptr p, imm (i & mask)), imm mask)
1069 // where only the low bits known to be zero in the pointer are changed
1070 Value *InnerPtr;
1071 uint64_t GEPIndex;
1072 uint64_t PtrMaskImmediate;
1074 m_PtrAdd(m_Value(InnerPtr), m_ConstantInt(GEPIndex)),
1075 m_ConstantInt(PtrMaskImmediate)))) {
1076
1077 LHSKnown = computeKnownBits(InnerPtr, I, Depth + 1);
1078 if (!LHSKnown.isZero()) {
1079 const unsigned trailingZeros = LHSKnown.countMinTrailingZeros();
1080 uint64_t PointerAlignBits = (uint64_t(1) << trailingZeros) - 1;
1081
1082 uint64_t HighBitsGEPIndex = GEPIndex & ~PointerAlignBits;
1083 uint64_t MaskedLowBitsGEPIndex =
1084 GEPIndex & PointerAlignBits & PtrMaskImmediate;
1085
1086 uint64_t MaskedGEPIndex = HighBitsGEPIndex | MaskedLowBitsGEPIndex;
1087
1088 if (MaskedGEPIndex != GEPIndex) {
1089 auto *GEP = cast<GEPOperator>(II->getArgOperand(0));
1090 Builder.SetInsertPoint(I);
1091 Type *GEPIndexType =
1092 DL.getIndexType(GEP->getPointerOperand()->getType());
1093 Value *MaskedGEP = Builder.CreateGEP(
1094 GEP->getSourceElementType(), InnerPtr,
1095 ConstantInt::get(GEPIndexType, MaskedGEPIndex),
1096 GEP->getName(), GEP->isInBounds());
1097
1098 replaceOperand(*I, 0, MaskedGEP);
1099 return I;
1100 }
1101 }
1102 }
1103
1104 break;
1105 }
1106
1107 case Intrinsic::fshr:
1108 case Intrinsic::fshl: {
1109 const APInt *SA;
1110 if (!match(I->getOperand(2), m_APInt(SA)))
1111 break;
1112
1113 // Normalize to funnel shift left. APInt shifts of BitWidth are well-
1114 // defined, so no need to special-case zero shifts here.
1115 uint64_t ShiftAmt = SA->urem(BitWidth);
1116 if (II->getIntrinsicID() == Intrinsic::fshr)
1117 ShiftAmt = BitWidth - ShiftAmt;
1118
1119 APInt DemandedMaskLHS(DemandedMask.lshr(ShiftAmt));
1120 APInt DemandedMaskRHS(DemandedMask.shl(BitWidth - ShiftAmt));
1121 if (I->getOperand(0) != I->getOperand(1)) {
1122 if (SimplifyDemandedBits(I, 0, DemandedMaskLHS, LHSKnown, Q,
1123 Depth + 1) ||
1124 SimplifyDemandedBits(I, 1, DemandedMaskRHS, RHSKnown, Q,
1125 Depth + 1)) {
1126 // Range attribute or metadata may no longer hold.
1127 I->dropPoisonGeneratingAnnotations();
1128 return I;
1129 }
1130 } else { // fshl is a rotate
1131 // Avoid converting rotate into funnel shift.
1132 // Only simplify if one operand is constant.
1133 LHSKnown = computeKnownBits(I->getOperand(0), I, Depth + 1);
1134 if (DemandedMaskLHS.isSubsetOf(LHSKnown.Zero | LHSKnown.One) &&
1135 !match(I->getOperand(0), m_SpecificInt(LHSKnown.One))) {
1136 replaceOperand(*I, 0, Constant::getIntegerValue(VTy, LHSKnown.One));
1137 return I;
1138 }
1139
1140 RHSKnown = computeKnownBits(I->getOperand(1), I, Depth + 1);
1141 if (DemandedMaskRHS.isSubsetOf(RHSKnown.Zero | RHSKnown.One) &&
1142 !match(I->getOperand(1), m_SpecificInt(RHSKnown.One))) {
1143 replaceOperand(*I, 1, Constant::getIntegerValue(VTy, RHSKnown.One));
1144 return I;
1145 }
1146 }
1147
1148 LHSKnown <<= ShiftAmt;
1149 RHSKnown >>= BitWidth - ShiftAmt;
1150 Known = LHSKnown.unionWith(RHSKnown);
1151 KnownBitsComputed = true;
1152 break;
1153 }
1154 case Intrinsic::umax: {
1155 // UMax(A, C) == A if ...
1156 // The lowest non-zero bit of DemandMask is higher than the highest
1157 // non-zero bit of C.
1158 const APInt *C;
1159 unsigned CTZ = DemandedMask.countr_zero();
1160 if (match(II->getArgOperand(1), m_APInt(C)) &&
1161 CTZ >= C->getActiveBits())
1162 return II->getArgOperand(0);
1163 break;
1164 }
1165 case Intrinsic::umin: {
1166 // UMin(A, C) == A if ...
1167 // The lowest non-zero bit of DemandMask is higher than the highest
1168 // non-one bit of C.
1169 // This comes from using DeMorgans on the above umax example.
1170 const APInt *C;
1171 unsigned CTZ = DemandedMask.countr_zero();
1172 if (match(II->getArgOperand(1), m_APInt(C)) &&
1173 CTZ >= C->getBitWidth() - C->countl_one())
1174 return II->getArgOperand(0);
1175 break;
1176 }
1177 default: {
1178 // Handle target specific intrinsics
1179 std::optional<Value *> V = targetSimplifyDemandedUseBitsIntrinsic(
1180 *II, DemandedMask, Known, KnownBitsComputed);
1181 if (V)
1182 return *V;
1183 break;
1184 }
1185 }
1186 }
1187
1188 if (!KnownBitsComputed)
1190 break;
1191 }
1192 }
1193
1194 if (I->getType()->isPointerTy()) {
1195 Align Alignment = I->getPointerAlignment(DL);
1196 Known.Zero.setLowBits(Log2(Alignment));
1197 }
1198
1199 // If the client is only demanding bits that we know, return the known
1200 // constant. We can't directly simplify pointers as a constant because of
1201 // pointer provenance.
1202 // TODO: We could return `(inttoptr const)` for pointers.
1203 if (!I->getType()->isPointerTy() &&
1204 DemandedMask.isSubsetOf(Known.Zero | Known.One))
1205 return Constant::getIntegerValue(VTy, Known.One);
1206
1207 if (VerifyKnownBits) {
1208 KnownBits ReferenceKnown = llvm::computeKnownBits(I, Q, Depth);
1209 if (Known != ReferenceKnown) {
1210 errs() << "Mismatched known bits for " << *I << " in "
1211 << I->getFunction()->getName() << "\n";
1212 errs() << "computeKnownBits(): " << ReferenceKnown << "\n";
1213 errs() << "SimplifyDemandedBits(): " << Known << "\n";
1214 std::abort();
1215 }
1216 }
1217
1218 return nullptr;
1219}
1220
1221/// Helper routine of SimplifyDemandedUseBits. It computes Known
1222/// bits. It also tries to handle simplifications that can be done based on
1223/// DemandedMask, but without modifying the Instruction.
1225 Instruction *I, const APInt &DemandedMask, KnownBits &Known,
1226 const SimplifyQuery &Q, unsigned Depth) {
1227 unsigned BitWidth = DemandedMask.getBitWidth();
1228 Type *ITy = I->getType();
1229
1230 KnownBits LHSKnown(BitWidth);
1231 KnownBits RHSKnown(BitWidth);
1232
1233 // Despite the fact that we can't simplify this instruction in all User's
1234 // context, we can at least compute the known bits, and we can
1235 // do simplifications that apply to *just* the one user if we know that
1236 // this instruction has a simpler value in that context.
1237 switch (I->getOpcode()) {
1238 case Instruction::And: {
1239 llvm::computeKnownBits(I->getOperand(1), RHSKnown, Q, Depth + 1);
1240 llvm::computeKnownBits(I->getOperand(0), LHSKnown, Q, Depth + 1);
1241 Known = analyzeKnownBitsFromAndXorOr(cast<Operator>(I), LHSKnown, RHSKnown,
1242 Q, Depth);
1244
1245 // If the client is only demanding bits that we know, return the known
1246 // constant.
1247 if (DemandedMask.isSubsetOf(Known.Zero | Known.One))
1248 return Constant::getIntegerValue(ITy, Known.One);
1249
1250 // If all of the demanded bits are known 1 on one side, return the other.
1251 // These bits cannot contribute to the result of the 'and' in this context.
1252 if (DemandedMask.isSubsetOf(LHSKnown.Zero | RHSKnown.One))
1253 return I->getOperand(0);
1254 if (DemandedMask.isSubsetOf(RHSKnown.Zero | LHSKnown.One))
1255 return I->getOperand(1);
1256
1257 break;
1258 }
1259 case Instruction::Or: {
1260 llvm::computeKnownBits(I->getOperand(1), RHSKnown, Q, Depth + 1);
1261 llvm::computeKnownBits(I->getOperand(0), LHSKnown, Q, Depth + 1);
1262 Known = analyzeKnownBitsFromAndXorOr(cast<Operator>(I), LHSKnown, RHSKnown,
1263 Q, Depth);
1265
1266 // If the client is only demanding bits that we know, return the known
1267 // constant.
1268 if (DemandedMask.isSubsetOf(Known.Zero | Known.One))
1269 return Constant::getIntegerValue(ITy, Known.One);
1270
1271 // We can simplify (X|Y) -> X or Y in the user's context if we know that
1272 // only bits from X or Y are demanded.
1273 // If all of the demanded bits are known zero on one side, return the other.
1274 // These bits cannot contribute to the result of the 'or' in this context.
1275 if (DemandedMask.isSubsetOf(LHSKnown.One | RHSKnown.Zero))
1276 return I->getOperand(0);
1277 if (DemandedMask.isSubsetOf(RHSKnown.One | LHSKnown.Zero))
1278 return I->getOperand(1);
1279
1280 break;
1281 }
1282 case Instruction::Xor: {
1283 llvm::computeKnownBits(I->getOperand(1), RHSKnown, Q, Depth + 1);
1284 llvm::computeKnownBits(I->getOperand(0), LHSKnown, Q, Depth + 1);
1285 Known = analyzeKnownBitsFromAndXorOr(cast<Operator>(I), LHSKnown, RHSKnown,
1286 Q, Depth);
1288
1289 // If the client is only demanding bits that we know, return the known
1290 // constant.
1291 if (DemandedMask.isSubsetOf(Known.Zero | Known.One))
1292 return Constant::getIntegerValue(ITy, Known.One);
1293
1294 // We can simplify (X^Y) -> X or Y in the user's context if we know that
1295 // only bits from X or Y are demanded.
1296 // If all of the demanded bits are known zero on one side, return the other.
1297 if (DemandedMask.isSubsetOf(RHSKnown.Zero))
1298 return I->getOperand(0);
1299 if (DemandedMask.isSubsetOf(LHSKnown.Zero))
1300 return I->getOperand(1);
1301
1302 break;
1303 }
1304 case Instruction::Add: {
1305 unsigned NLZ = DemandedMask.countl_zero();
1306 APInt DemandedFromOps = APInt::getLowBitsSet(BitWidth, BitWidth - NLZ);
1307
1308 // If an operand adds zeros to every bit below the highest demanded bit,
1309 // that operand doesn't change the result. Return the other side.
1310 llvm::computeKnownBits(I->getOperand(1), RHSKnown, Q, Depth + 1);
1311 if (DemandedFromOps.isSubsetOf(RHSKnown.Zero))
1312 return I->getOperand(0);
1313
1314 llvm::computeKnownBits(I->getOperand(0), LHSKnown, Q, Depth + 1);
1315 if (DemandedFromOps.isSubsetOf(LHSKnown.Zero))
1316 return I->getOperand(1);
1317
1318 bool NSW = cast<OverflowingBinaryOperator>(I)->hasNoSignedWrap();
1319 bool NUW = cast<OverflowingBinaryOperator>(I)->hasNoUnsignedWrap();
1320 Known = KnownBits::add(LHSKnown, RHSKnown, NSW, NUW);
1322 break;
1323 }
1324 case Instruction::Sub: {
1325 unsigned NLZ = DemandedMask.countl_zero();
1326 APInt DemandedFromOps = APInt::getLowBitsSet(BitWidth, BitWidth - NLZ);
1327
1328 // If an operand subtracts zeros from every bit below the highest demanded
1329 // bit, that operand doesn't change the result. Return the other side.
1330 llvm::computeKnownBits(I->getOperand(1), RHSKnown, Q, Depth + 1);
1331 if (DemandedFromOps.isSubsetOf(RHSKnown.Zero))
1332 return I->getOperand(0);
1333
1334 bool NSW = cast<OverflowingBinaryOperator>(I)->hasNoSignedWrap();
1335 bool NUW = cast<OverflowingBinaryOperator>(I)->hasNoUnsignedWrap();
1336 llvm::computeKnownBits(I->getOperand(0), LHSKnown, Q, Depth + 1);
1337 Known = KnownBits::sub(LHSKnown, RHSKnown, NSW, NUW);
1339 break;
1340 }
1341 case Instruction::AShr: {
1342 // Compute the Known bits to simplify things downstream.
1344
1345 // If this user is only demanding bits that we know, return the known
1346 // constant.
1347 if (DemandedMask.isSubsetOf(Known.Zero | Known.One))
1348 return Constant::getIntegerValue(ITy, Known.One);
1349
1350 // If the right shift operand 0 is a result of a left shift by the same
1351 // amount, this is probably a zero/sign extension, which may be unnecessary,
1352 // if we do not demand any of the new sign bits. So, return the original
1353 // operand instead.
1354 const APInt *ShiftRC;
1355 const APInt *ShiftLC;
1356 Value *X;
1357 unsigned BitWidth = DemandedMask.getBitWidth();
1358 if (match(I,
1359 m_AShr(m_Shl(m_Value(X), m_APInt(ShiftLC)), m_APInt(ShiftRC))) &&
1360 ShiftLC == ShiftRC && ShiftLC->ult(BitWidth) &&
1361 DemandedMask.isSubsetOf(APInt::getLowBitsSet(
1362 BitWidth, BitWidth - ShiftRC->getZExtValue()))) {
1363 return X;
1364 }
1365
1366 break;
1367 }
1368 default:
1369 // Compute the Known bits to simplify things downstream.
1371
1372 // If this user is only demanding bits that we know, return the known
1373 // constant.
1374 if (DemandedMask.isSubsetOf(Known.Zero|Known.One))
1375 return Constant::getIntegerValue(ITy, Known.One);
1376
1377 break;
1378 }
1379
1380 return nullptr;
1381}
1382
1383/// Helper routine of SimplifyDemandedUseBits. It tries to simplify
1384/// "E1 = (X lsr C1) << C2", where the C1 and C2 are constant, into
1385/// "E2 = X << (C2 - C1)" or "E2 = X >> (C1 - C2)", depending on the sign
1386/// of "C2-C1".
1387///
1388/// Suppose E1 and E2 are generally different in bits S={bm, bm+1,
1389/// ..., bn}, without considering the specific value X is holding.
1390/// This transformation is legal iff one of following conditions is hold:
1391/// 1) All the bit in S are 0, in this case E1 == E2.
1392/// 2) We don't care those bits in S, per the input DemandedMask.
1393/// 3) Combination of 1) and 2). Some bits in S are 0, and we don't care the
1394/// rest bits.
1395///
1396/// Currently we only test condition 2).
1397///
1398/// As with SimplifyDemandedUseBits, it returns NULL if the simplification was
1399/// not successful.
1401 Instruction *Shr, const APInt &ShrOp1, Instruction *Shl,
1402 const APInt &ShlOp1, const APInt &DemandedMask, KnownBits &Known) {
1403 if (!ShlOp1 || !ShrOp1)
1404 return nullptr; // No-op.
1405
1406 Value *VarX = Shr->getOperand(0);
1407 Type *Ty = VarX->getType();
1408 unsigned BitWidth = Ty->getScalarSizeInBits();
1409 if (ShlOp1.uge(BitWidth) || ShrOp1.uge(BitWidth))
1410 return nullptr; // Undef.
1411
1412 unsigned ShlAmt = ShlOp1.getZExtValue();
1413 unsigned ShrAmt = ShrOp1.getZExtValue();
1414
1415 Known.One.clearAllBits();
1416 Known.Zero.setLowBits(ShlAmt - 1);
1417 Known.Zero &= DemandedMask;
1418
1419 APInt BitMask1(APInt::getAllOnes(BitWidth));
1420 APInt BitMask2(APInt::getAllOnes(BitWidth));
1421
1422 bool isLshr = (Shr->getOpcode() == Instruction::LShr);
1423 BitMask1 = isLshr ? (BitMask1.lshr(ShrAmt) << ShlAmt) :
1424 (BitMask1.ashr(ShrAmt) << ShlAmt);
1425
1426 if (ShrAmt <= ShlAmt) {
1427 BitMask2 <<= (ShlAmt - ShrAmt);
1428 } else {
1429 BitMask2 = isLshr ? BitMask2.lshr(ShrAmt - ShlAmt):
1430 BitMask2.ashr(ShrAmt - ShlAmt);
1431 }
1432
1433 // Check if condition-2 (see the comment to this function) is satified.
1434 if ((BitMask1 & DemandedMask) == (BitMask2 & DemandedMask)) {
1435 if (ShrAmt == ShlAmt)
1436 return VarX;
1437
1438 if (!Shr->hasOneUse())
1439 return nullptr;
1440
1441 BinaryOperator *New;
1442 if (ShrAmt < ShlAmt) {
1443 Constant *Amt = ConstantInt::get(VarX->getType(), ShlAmt - ShrAmt);
1444 New = BinaryOperator::CreateShl(VarX, Amt);
1446 New->setHasNoSignedWrap(Orig->hasNoSignedWrap());
1447 New->setHasNoUnsignedWrap(Orig->hasNoUnsignedWrap());
1448 } else {
1449 Constant *Amt = ConstantInt::get(VarX->getType(), ShrAmt - ShlAmt);
1450 New = isLshr ? BinaryOperator::CreateLShr(VarX, Amt) :
1451 BinaryOperator::CreateAShr(VarX, Amt);
1452 if (cast<BinaryOperator>(Shr)->isExact())
1453 New->setIsExact(true);
1454 }
1455
1456 return InsertNewInstWith(New, Shl->getIterator());
1457 }
1458
1459 return nullptr;
1460}
1461
1462/// Return true if the top-level all-lanes demanded-elements query can be
1463/// skipped for an intermediate insertelement chain node. This is limited to a
1464/// bounded one-use chain with distinct in-range constant indices, where SDVE
1465/// cannot remove a dead insert before hitting its depth limit.
1467 unsigned VWidth,
1468 unsigned DepthLimit) {
1469 // Only skip chain nodes that feed another insertelement; the final chain root
1470 // still runs the full query.
1471 if (!IE.hasOneUse())
1472 return false;
1473 auto *UserIE = dyn_cast<InsertElementInst>(IE.user_back());
1474 if (!UserIE || UserIE->getOperand(0) != &IE)
1475 return false;
1476
1477 SmallBitVector SeenIndices(VWidth);
1478 auto HasNewIndexInRange = [&](InsertElementInst &Insert) {
1479 auto *Idx = dyn_cast<ConstantInt>(Insert.getOperand(2));
1480 // Let the normal SDVE path handle variable or out-of-range indices. The
1481 // latter may simplify the chain and must not be passed to getZExtValue().
1482 if (!Idx || Idx->getValue().uge(VWidth))
1483 return false;
1484
1485 unsigned Index = Idx->getZExtValue();
1486 if (SeenIndices.test(Index))
1487 return false;
1488
1489 SeenIndices.set(Index);
1490 return true;
1491 };
1492
1493 auto *Cur = &IE;
1494 for (unsigned I = 0; I != DepthLimit; ++I) {
1495 // This loop scans the same base-chain window that the SDVE query would
1496 // inspect before hitting its depth limit. With distinct insert indices in
1497 // that window, the all-lanes query cannot remove a dead insert; with
1498 // VWidth > DepthLimit, it also cannot narrow demand to a single lane.
1499 if (!HasNewIndexInRange(*Cur))
1500 return false;
1501
1502 Value *Base = Cur->getOperand(0);
1503 if (match(Base, m_Poison()))
1504 return true;
1505
1507 if (!Cur || !Cur->hasOneUse())
1508 return false;
1509 }
1510
1511 return true;
1512}
1513
1514/// The specified value produces a vector with any number of elements.
1515/// This method analyzes which elements of the operand are poison and
1516/// returns that information in PoisonElts.
1517///
1518/// DemandedElts contains the set of elements that are actually used by the
1519/// caller, and by default (AllowMultipleUsers equals false) the value is
1520/// simplified only if it has a single caller. If AllowMultipleUsers is set
1521/// to true, DemandedElts refers to the union of sets of elements that are
1522/// used by all callers.
1523///
1524/// If the information about demanded elements can be used to simplify the
1525/// operation, the operation is simplified, then the resultant value is
1526/// returned. This returns null if no change was made.
1528 APInt DemandedElts,
1529 APInt &PoisonElts,
1530 unsigned Depth,
1531 bool AllowMultipleUsers) {
1532 // Cannot analyze scalable type. The number of vector elements is not a
1533 // compile-time constant.
1534 if (isa<ScalableVectorType>(V->getType()))
1535 return nullptr;
1536
1537 unsigned VWidth = cast<FixedVectorType>(V->getType())->getNumElements();
1538 APInt EltMask(APInt::getAllOnes(VWidth));
1539 assert((DemandedElts & ~EltMask) == 0 && "Invalid DemandedElts!");
1540
1541 if (match(V, m_Poison())) {
1542 // If the entire vector is poison, just return this info.
1543 PoisonElts = EltMask;
1544 return nullptr;
1545 }
1546
1547 if (DemandedElts.isZero()) { // If nothing is demanded, provide poison.
1548 PoisonElts = EltMask;
1549 return PoisonValue::get(V->getType());
1550 }
1551
1552 PoisonElts = 0;
1553
1554 if (auto *C = dyn_cast<Constant>(V)) {
1555 // Check if this is identity. If so, return 0 since we are not simplifying
1556 // anything.
1557 if (DemandedElts.isAllOnes())
1558 return nullptr;
1559
1560 Type *EltTy = cast<VectorType>(V->getType())->getElementType();
1563 for (unsigned i = 0; i != VWidth; ++i) {
1564 if (!DemandedElts[i]) { // If not demanded, set to poison.
1565 Elts.push_back(Poison);
1566 PoisonElts.setBit(i);
1567 continue;
1568 }
1569
1570 Constant *Elt = C->getAggregateElement(i);
1571 if (!Elt) return nullptr;
1572
1573 Elts.push_back(Elt);
1574 if (isa<PoisonValue>(Elt)) // Already poison.
1575 PoisonElts.setBit(i);
1576 }
1577
1578 // If we changed the constant, return it.
1579 Constant *NewCV = ConstantVector::get(Elts);
1580 return NewCV != C ? NewCV : nullptr;
1581 }
1582
1583 // Limit search depth.
1585 return nullptr;
1586
1587 if (!AllowMultipleUsers) {
1588 // If multiple users are using the root value, proceed with
1589 // simplification conservatively assuming that all elements
1590 // are needed.
1591 if (!V->hasOneUse()) {
1592 // Quit if we find multiple users of a non-root value though.
1593 // They'll be handled when it's their turn to be visited by
1594 // the main instcombine process.
1595 if (Depth != 0)
1596 // TODO: Just compute the PoisonElts information recursively.
1597 return nullptr;
1598
1599 // Conservatively assume that all elements are needed.
1600 DemandedElts = EltMask;
1601 }
1602 }
1603
1605 if (!I) return nullptr; // Only analyze instructions.
1606
1607 bool MadeChange = false;
1608 auto simplifyAndSetOp = [&](Instruction *Inst, unsigned OpNum,
1609 APInt Demanded, APInt &Undef) {
1610 auto *II = dyn_cast<IntrinsicInst>(Inst);
1611 Value *Op = II ? II->getArgOperand(OpNum) : Inst->getOperand(OpNum);
1612 if (Value *V = SimplifyDemandedVectorElts(Op, Demanded, Undef, Depth + 1)) {
1613 replaceOperand(*Inst, OpNum, V);
1614 MadeChange = true;
1615 }
1616 };
1617
1618 APInt PoisonElts2(VWidth, 0);
1619 APInt PoisonElts3(VWidth, 0);
1620 switch (I->getOpcode()) {
1621 default: break;
1622
1623 case Instruction::GetElementPtr: {
1624 // The LangRef requires that struct geps have all constant indices. As
1625 // such, we can't convert any operand to partial undef.
1626 auto mayIndexStructType = [](GetElementPtrInst &GEP) {
1627 for (auto I = gep_type_begin(GEP), E = gep_type_end(GEP);
1628 I != E; I++)
1629 if (I.isStruct())
1630 return true;
1631 return false;
1632 };
1633 if (mayIndexStructType(cast<GetElementPtrInst>(*I)))
1634 break;
1635
1636 // Conservatively track the demanded elements back through any vector
1637 // operands we may have. We know there must be at least one, or we
1638 // wouldn't have a vector result to get here. Note that we intentionally
1639 // merge the undef bits here since gepping with either an poison base or
1640 // index results in poison.
1641 for (unsigned i = 0; i < I->getNumOperands(); i++) {
1642 if (i == 0 ? match(I->getOperand(i), m_Undef())
1643 : match(I->getOperand(i), m_Poison())) {
1644 // If the entire vector is undefined, just return this info.
1645 PoisonElts = EltMask;
1646 return nullptr;
1647 }
1648 if (I->getOperand(i)->getType()->isVectorTy()) {
1649 APInt PoisonEltsOp(VWidth, 0);
1650 simplifyAndSetOp(I, i, DemandedElts, PoisonEltsOp);
1651 // gep(x, undef) is not undef, so skip considering idx ops here
1652 // Note that we could propagate poison, but we can't distinguish between
1653 // undef & poison bits ATM
1654 if (i == 0)
1655 PoisonElts |= PoisonEltsOp;
1656 }
1657 }
1658
1659 break;
1660 }
1661 case Instruction::InsertElement: {
1662 unsigned DepthLimit = SimplifyDemandedVectorEltsDepthLimit;
1663 auto *IE = cast<InsertElementInst>(I);
1664 // Skip only when SDVE cannot simplify this insert chain before the limit.
1665 if (Depth == 0 && DemandedElts.isAllOnes() && VWidth > DepthLimit &&
1666 canSkipDemandedEltsInInsertChain(*IE, VWidth, DepthLimit))
1667 return nullptr;
1668
1669 // If this is a variable index, we don't know which element it overwrites.
1670 // demand exactly the same input as we produce.
1671 ConstantInt *Idx = dyn_cast<ConstantInt>(I->getOperand(2));
1672 if (!Idx) {
1673 // Note that we can't propagate undef elt info, because we don't know
1674 // which elt is getting updated.
1675 simplifyAndSetOp(I, 0, DemandedElts, PoisonElts2);
1676 break;
1677 }
1678
1679 // The element inserted overwrites whatever was there, so the input demanded
1680 // set is simpler than the output set.
1681 unsigned IdxNo = Idx->getZExtValue();
1682 APInt PreInsertDemandedElts = DemandedElts;
1683 if (IdxNo < VWidth)
1684 PreInsertDemandedElts.clearBit(IdxNo);
1685
1686 // If we only demand the element that is being inserted and that element
1687 // was extracted from the same index in another vector with the same type,
1688 // replace this insert with that other vector.
1689 // Note: This is attempted before the call to simplifyAndSetOp because that
1690 // may change PoisonElts to a value that does not match with Vec.
1691 Value *Vec;
1692 if (PreInsertDemandedElts == 0 &&
1693 match(I->getOperand(1),
1694 m_ExtractElt(m_Value(Vec), m_SpecificInt(IdxNo))) &&
1695 Vec->getType() == I->getType()) {
1696 return Vec;
1697 }
1698
1699 simplifyAndSetOp(I, 0, PreInsertDemandedElts, PoisonElts);
1700
1701 // If this is inserting an element that isn't demanded, remove this
1702 // insertelement.
1703 if (IdxNo >= VWidth || !DemandedElts[IdxNo]) {
1704 Worklist.push(I);
1705 return I->getOperand(0);
1706 }
1707
1708 // The inserted element is defined.
1709 PoisonElts.clearBit(IdxNo);
1710 break;
1711 }
1712 case Instruction::ShuffleVector: {
1713 auto *Shuffle = cast<ShuffleVectorInst>(I);
1714 assert(Shuffle->getOperand(0)->getType() ==
1715 Shuffle->getOperand(1)->getType() &&
1716 "Expected shuffle operands to have same type");
1717 unsigned OpWidth = cast<FixedVectorType>(Shuffle->getOperand(0)->getType())
1718 ->getNumElements();
1719 // Handle trivial case of a splat. Only check the first element of LHS
1720 // operand.
1721 if (all_of(Shuffle->getShuffleMask(), equal_to(0)) &&
1722 DemandedElts.isAllOnes()) {
1723 if (!isa<PoisonValue>(I->getOperand(1))) {
1724 I->setOperand(1, PoisonValue::get(I->getOperand(1)->getType()));
1725 MadeChange = true;
1726 }
1727 APInt LeftDemanded(OpWidth, 1);
1728 APInt LHSPoisonElts(OpWidth, 0);
1729 simplifyAndSetOp(I, 0, LeftDemanded, LHSPoisonElts);
1730 if (LHSPoisonElts[0])
1731 PoisonElts = EltMask;
1732 else
1733 PoisonElts.clearAllBits();
1734 break;
1735 }
1736
1737 APInt LeftDemanded(OpWidth, 0), RightDemanded(OpWidth, 0);
1738 for (unsigned i = 0; i < VWidth; i++) {
1739 if (DemandedElts[i]) {
1740 unsigned MaskVal = Shuffle->getMaskValue(i);
1741 if (MaskVal != -1u) {
1742 assert(MaskVal < OpWidth * 2 &&
1743 "shufflevector mask index out of range!");
1744 if (MaskVal < OpWidth)
1745 LeftDemanded.setBit(MaskVal);
1746 else
1747 RightDemanded.setBit(MaskVal - OpWidth);
1748 }
1749 }
1750 }
1751
1752 APInt LHSPoisonElts(OpWidth, 0);
1753 simplifyAndSetOp(I, 0, LeftDemanded, LHSPoisonElts);
1754
1755 APInt RHSPoisonElts(OpWidth, 0);
1756 simplifyAndSetOp(I, 1, RightDemanded, RHSPoisonElts);
1757
1758 // If this shuffle does not change the vector length and the elements
1759 // demanded by this shuffle are an identity mask, then this shuffle is
1760 // unnecessary.
1761 //
1762 // We are assuming canonical form for the mask, so the source vector is
1763 // operand 0 and operand 1 is not used.
1764 //
1765 // Note that if an element is demanded and this shuffle mask is undefined
1766 // for that element, then the shuffle is not considered an identity
1767 // operation. The shuffle prevents poison from the operand vector from
1768 // leaking to the result by replacing poison with an undefined value.
1769 if (VWidth == OpWidth) {
1770 bool IsIdentityShuffle = true;
1771 for (unsigned i = 0; i < VWidth; i++) {
1772 unsigned MaskVal = Shuffle->getMaskValue(i);
1773 if (DemandedElts[i] && i != MaskVal) {
1774 IsIdentityShuffle = false;
1775 break;
1776 }
1777 }
1778 if (IsIdentityShuffle)
1779 return Shuffle->getOperand(0);
1780 }
1781
1782 bool NewPoisonElts = false;
1783 unsigned LHSIdx = -1u, LHSValIdx = -1u;
1784 unsigned RHSIdx = -1u, RHSValIdx = -1u;
1785 bool LHSUniform = true;
1786 bool RHSUniform = true;
1787 for (unsigned i = 0; i < VWidth; i++) {
1788 unsigned MaskVal = Shuffle->getMaskValue(i);
1789 if (MaskVal == -1u) {
1790 PoisonElts.setBit(i);
1791 } else if (!DemandedElts[i]) {
1792 NewPoisonElts = true;
1793 PoisonElts.setBit(i);
1794 } else if (MaskVal < OpWidth) {
1795 if (LHSPoisonElts[MaskVal]) {
1796 NewPoisonElts = true;
1797 PoisonElts.setBit(i);
1798 } else {
1799 LHSIdx = LHSIdx == -1u ? i : OpWidth;
1800 LHSValIdx = LHSValIdx == -1u ? MaskVal : OpWidth;
1801 LHSUniform = LHSUniform && (MaskVal == i);
1802 }
1803 } else {
1804 if (RHSPoisonElts[MaskVal - OpWidth]) {
1805 NewPoisonElts = true;
1806 PoisonElts.setBit(i);
1807 } else {
1808 RHSIdx = RHSIdx == -1u ? i : OpWidth;
1809 RHSValIdx = RHSValIdx == -1u ? MaskVal - OpWidth : OpWidth;
1810 RHSUniform = RHSUniform && (MaskVal - OpWidth == i);
1811 }
1812 }
1813 }
1814
1815 // Try to transform shuffle with constant vector and single element from
1816 // this constant vector to single insertelement instruction.
1817 // shufflevector V, C, <v1, v2, .., ci, .., vm> ->
1818 // insertelement V, C[ci], ci-n
1819 if (OpWidth ==
1820 cast<FixedVectorType>(Shuffle->getType())->getNumElements()) {
1821 Value *Op = nullptr;
1822 Constant *Value = nullptr;
1823 unsigned Idx = -1u;
1824
1825 // Find constant vector with the single element in shuffle (LHS or RHS).
1826 if (LHSIdx < OpWidth && RHSUniform) {
1827 if (auto *CV = dyn_cast<ConstantVector>(Shuffle->getOperand(0))) {
1828 Op = Shuffle->getOperand(1);
1829 Value = CV->getOperand(LHSValIdx);
1830 Idx = LHSIdx;
1831 }
1832 }
1833 if (RHSIdx < OpWidth && LHSUniform) {
1834 if (auto *CV = dyn_cast<ConstantVector>(Shuffle->getOperand(1))) {
1835 Op = Shuffle->getOperand(0);
1836 Value = CV->getOperand(RHSValIdx);
1837 Idx = RHSIdx;
1838 }
1839 }
1840 // Found constant vector with single element - convert to insertelement.
1841 if (Op && Value) {
1843 Op, Value, ConstantInt::get(Type::getInt64Ty(I->getContext()), Idx),
1844 Shuffle->getName());
1845 InsertNewInstWith(New, Shuffle->getIterator());
1846 return New;
1847 }
1848 }
1849 if (NewPoisonElts) {
1850 // Add additional discovered undefs.
1852 for (unsigned i = 0; i < VWidth; ++i) {
1853 if (PoisonElts[i])
1855 else
1856 Elts.push_back(Shuffle->getMaskValue(i));
1857 }
1858 Shuffle->setShuffleMask(Elts);
1859 MadeChange = true;
1860 }
1861 break;
1862 }
1863 case Instruction::Select: {
1864 // If this is a vector select, try to transform the select condition based
1865 // on the current demanded elements.
1867 if (Sel->getCondition()->getType()->isVectorTy()) {
1868 // TODO: We are not doing anything with PoisonElts based on this call.
1869 // It is overwritten below based on the other select operands. If an
1870 // element of the select condition is known undef, then we are free to
1871 // choose the output value from either arm of the select. If we know that
1872 // one of those values is undef, then the output can be undef.
1873 simplifyAndSetOp(I, 0, DemandedElts, PoisonElts);
1874 }
1875
1876 // Next, see if we can transform the arms of the select.
1877 APInt DemandedLHS(DemandedElts), DemandedRHS(DemandedElts);
1878 if (auto *CV = dyn_cast<ConstantVector>(Sel->getCondition())) {
1879 for (unsigned i = 0; i < VWidth; i++) {
1880 Constant *CElt = CV->getAggregateElement(i);
1881
1882 // isNullValue() always returns false when called on a ConstantExpr.
1883 if (CElt->isNullValue())
1884 DemandedLHS.clearBit(i);
1885 else if (CElt->isOneValue())
1886 DemandedRHS.clearBit(i);
1887 }
1888 }
1889
1890 simplifyAndSetOp(I, 1, DemandedLHS, PoisonElts2);
1891 simplifyAndSetOp(I, 2, DemandedRHS, PoisonElts3);
1892
1893 // Output elements are undefined if the element from each arm is undefined.
1894 // TODO: This can be improved. See comment in select condition handling.
1895 PoisonElts = PoisonElts2 & PoisonElts3;
1896 break;
1897 }
1898 case Instruction::BitCast: {
1899 // Vector->vector casts only.
1900 VectorType *VTy = dyn_cast<VectorType>(I->getOperand(0)->getType());
1901 if (!VTy) break;
1902 unsigned InVWidth = cast<FixedVectorType>(VTy)->getNumElements();
1903 APInt InputDemandedElts(InVWidth, 0);
1904 PoisonElts2 = APInt(InVWidth, 0);
1905 unsigned Ratio;
1906
1907 if (VWidth == InVWidth) {
1908 // If we are converting from <4 x i32> -> <4 x f32>, we demand the same
1909 // elements as are demanded of us.
1910 Ratio = 1;
1911 InputDemandedElts = DemandedElts;
1912 } else if ((VWidth % InVWidth) == 0) {
1913 // If the number of elements in the output is a multiple of the number of
1914 // elements in the input then an input element is live if any of the
1915 // corresponding output elements are live.
1916 Ratio = VWidth / InVWidth;
1917 for (unsigned OutIdx = 0; OutIdx != VWidth; ++OutIdx)
1918 if (DemandedElts[OutIdx])
1919 InputDemandedElts.setBit(OutIdx / Ratio);
1920 } else if ((InVWidth % VWidth) == 0) {
1921 // If the number of elements in the input is a multiple of the number of
1922 // elements in the output then an input element is live if the
1923 // corresponding output element is live.
1924 Ratio = InVWidth / VWidth;
1925 for (unsigned InIdx = 0; InIdx != InVWidth; ++InIdx)
1926 if (DemandedElts[InIdx / Ratio])
1927 InputDemandedElts.setBit(InIdx);
1928 } else {
1929 // Unsupported so far.
1930 break;
1931 }
1932
1933 simplifyAndSetOp(I, 0, InputDemandedElts, PoisonElts2);
1934
1935 if (VWidth == InVWidth) {
1936 PoisonElts = PoisonElts2;
1937 } else if ((VWidth % InVWidth) == 0) {
1938 // If the number of elements in the output is a multiple of the number of
1939 // elements in the input then an output element is undef if the
1940 // corresponding input element is undef.
1941 for (unsigned OutIdx = 0; OutIdx != VWidth; ++OutIdx)
1942 if (PoisonElts2[OutIdx / Ratio])
1943 PoisonElts.setBit(OutIdx);
1944 } else if ((InVWidth % VWidth) == 0) {
1945 // If the number of elements in the input is a multiple of the number of
1946 // elements in the output then an output element is undef if all of the
1947 // corresponding input elements are undef.
1948 for (unsigned OutIdx = 0; OutIdx != VWidth; ++OutIdx) {
1949 APInt SubUndef = PoisonElts2.lshr(OutIdx * Ratio).zextOrTrunc(Ratio);
1950 if (SubUndef.popcount() == Ratio)
1951 PoisonElts.setBit(OutIdx);
1952 }
1953 } else {
1954 llvm_unreachable("Unimp");
1955 }
1956 break;
1957 }
1958 case Instruction::FPTrunc:
1959 case Instruction::FPExt:
1960 simplifyAndSetOp(I, 0, DemandedElts, PoisonElts);
1961 break;
1962
1963 case Instruction::Call: {
1965 if (!II) break;
1966 switch (II->getIntrinsicID()) {
1967 case Intrinsic::masked_gather: // fallthrough
1968 case Intrinsic::masked_load: {
1969 // Subtlety: If we load from a pointer, the pointer must be valid
1970 // regardless of whether the element is demanded. Doing otherwise risks
1971 // segfaults which didn't exist in the original program.
1972 APInt DemandedPtrs(APInt::getAllOnes(VWidth)),
1973 DemandedPassThrough(DemandedElts);
1974 if (auto *CMask = dyn_cast<Constant>(II->getOperand(1))) {
1975 for (unsigned i = 0; i < VWidth; i++) {
1976 if (Constant *CElt = CMask->getAggregateElement(i)) {
1977 if (CElt->isNullValue())
1978 DemandedPtrs.clearBit(i);
1979 else if (CElt->isAllOnesValue())
1980 DemandedPassThrough.clearBit(i);
1981 }
1982 }
1983 }
1984
1985 if (II->getIntrinsicID() == Intrinsic::masked_gather)
1986 simplifyAndSetOp(II, 0, DemandedPtrs, PoisonElts2);
1987 simplifyAndSetOp(II, 2, DemandedPassThrough, PoisonElts3);
1988
1989 // Output elements are undefined if the element from both sources are.
1990 // TODO: can strengthen via mask as well.
1991 PoisonElts = PoisonElts2 & PoisonElts3;
1992 break;
1993 }
1994 default: {
1995 // Handle target specific intrinsics
1996 std::optional<Value *> V = targetSimplifyDemandedVectorEltsIntrinsic(
1997 *II, DemandedElts, PoisonElts, PoisonElts2, PoisonElts3,
1998 simplifyAndSetOp);
1999 if (V)
2000 return *V;
2001 break;
2002 }
2003 } // switch on IntrinsicID
2004 break;
2005 } // case Call
2006 } // switch on Opcode
2007
2008 // TODO: We bail completely on integer div/rem and shifts because they have
2009 // UB/poison potential, but that should be refined.
2010 BinaryOperator *BO;
2011 if (match(I, m_BinOp(BO)) && !BO->isIntDivRem() && !BO->isShift()) {
2012 Value *X = BO->getOperand(0);
2013 Value *Y = BO->getOperand(1);
2014
2015 // Look for an equivalent binop except that one operand has been shuffled.
2016 // If the demand for this binop only includes elements that are the same as
2017 // the other binop, then we may be able to replace this binop with a use of
2018 // the earlier one.
2019 //
2020 // Example:
2021 // %other_bo = bo (shuf X, {0}), Y
2022 // %this_extracted_bo = extelt (bo X, Y), 0
2023 // -->
2024 // %other_bo = bo (shuf X, {0}), Y
2025 // %this_extracted_bo = extelt %other_bo, 0
2026 //
2027 // TODO: Handle demand of an arbitrary single element or more than one
2028 // element instead of just element 0.
2029 // TODO: Unlike general demanded elements transforms, this should be safe
2030 // for any (div/rem/shift) opcode too.
2031 if (DemandedElts == 1 && !X->hasOneUse() && !Y->hasOneUse() &&
2032 BO->hasOneUse() ) {
2033
2034 auto findShufBO = [&](bool MatchShufAsOp0) -> User * {
2035 // Try to use shuffle-of-operand in place of an operand:
2036 // bo X, Y --> bo (shuf X), Y
2037 // bo X, Y --> bo X, (shuf Y)
2038
2039 Value *OtherOp = MatchShufAsOp0 ? Y : X;
2040 if (!OtherOp->hasUseList())
2041 return nullptr;
2042
2043 BinaryOperator::BinaryOps Opcode = BO->getOpcode();
2044 Value *ShufOp = MatchShufAsOp0 ? X : Y;
2045
2046 for (User *U : OtherOp->users()) {
2047 ArrayRef<int> Mask;
2048 auto Shuf = m_Shuffle(m_Specific(ShufOp), m_Value(), m_Mask(Mask));
2049 if (BO->isCommutative()
2050 ? match(U, m_c_BinOp(Opcode, Shuf, m_Specific(OtherOp)))
2051 : MatchShufAsOp0
2052 ? match(U, m_BinOp(Opcode, Shuf, m_Specific(OtherOp)))
2053 : match(U, m_BinOp(Opcode, m_Specific(OtherOp), Shuf)))
2054 if (match(Mask, m_ZeroMask()) && Mask[0] != PoisonMaskElem)
2055 if (DT.dominates(U, I))
2056 return U;
2057 }
2058 return nullptr;
2059 };
2060
2061 User *ShufBO = findShufBO(/* MatchShufAsOp0 */ true);
2062 if (!ShufBO)
2063 ShufBO = findShufBO(/* MatchShufAsOp0 */ false);
2064 if (ShufBO) {
2065 auto *ShufBOI = cast<Instruction>(ShufBO);
2066 ShufBOI->andIRFlags(BO);
2067 Worklist.add(ShufBOI);
2068 return ShufBO;
2069 }
2070 }
2071
2072 simplifyAndSetOp(I, 0, DemandedElts, PoisonElts);
2073 simplifyAndSetOp(I, 1, DemandedElts, PoisonElts2);
2074
2075 // Output elements are undefined if both are undefined. Consider things
2076 // like undef & 0. The result is known zero, not undef.
2077 PoisonElts &= PoisonElts2;
2078 }
2079
2080 // If we've proven all of the lanes poison, return a poison value.
2081 // TODO: Intersect w/demanded lanes
2082 if (PoisonElts.isAllOnes())
2083 return PoisonValue::get(I->getType());
2084
2085 return MadeChange ? I : nullptr;
2086}
2087
2088/// For floating-point classes that resolve to a single bit pattern, return that
2089/// value.
2091 bool IsCanonicalizing = false) {
2092 if (Mask == fcNone)
2093 return PoisonValue::get(Ty);
2094
2095 if (Mask == fcPosZero)
2096 return Constant::getNullValue(Ty);
2097
2098 // TODO: Support aggregate types that are allowed by FPMathOperator.
2099 if (Ty->isAggregateType())
2100 return nullptr;
2101
2102 // Turn any possible snans into quiet if we can.
2103 if (Mask == fcNan && IsCanonicalizing)
2104 return ConstantFP::getQNaN(Ty);
2105
2106 switch (Mask) {
2107 case fcNegZero:
2108 return ConstantFP::getZero(Ty, true);
2109 case fcPosInf:
2110 return ConstantFP::getInfinity(Ty);
2111 case fcNegInf:
2112 return ConstantFP::getInfinity(Ty, true);
2113 case fcQNan:
2114 // Payload bits cannot be dropped for pure signbit operations.
2115 return IsCanonicalizing ? ConstantFP::getQNaN(Ty) : nullptr;
2116 default:
2117 return nullptr;
2118 }
2119}
2120
2121/// Perform multiple-use aware simplfications for fabs(\p Src). Returns a
2122/// replacement value if it's simplified, otherwise nullptr. Updates \p Known
2123/// with the known fpclass if not simplified.
2125 FPClassTest DemandedMask,
2126 KnownFPClass KnownSrc, bool NSZ) {
2127 if ((DemandedMask & fcNan) == fcNone)
2128 KnownSrc.knownNot(fcNan);
2129 if ((DemandedMask & fcInf) == fcNone)
2130 KnownSrc.knownNot(fcInf);
2131
2132 if (KnownSrc.SignBit == false ||
2133 ((DemandedMask & fcNan) == fcNone && KnownSrc.isKnownNever(fcNegative)))
2134 return Src;
2135
2136 // If the only sign bit difference is due to -0, ignore it with nsz
2137 if (NSZ &&
2139 return Src;
2140
2141 Known = KnownFPClass::fabs(KnownSrc);
2142 Known.knownNot(~DemandedMask);
2143 return nullptr;
2144}
2145
2146/// Try to set an inferred no-nans or no-infs in \p FMF. \p ValidResults is a
2147/// mask of known valid results for the operator (already computed from the
2148/// result, and the known operand inputs in \p Known)
2150 FPClassTest ValidResults,
2152 if (!FMF.noNaNs() && (ValidResults & fcNan) == fcNone) {
2153 if (all_of(Known, [](const KnownFPClass KnownSrc) {
2154 return KnownSrc.isKnownNeverNaN();
2155 }))
2156 FMF.setNoNaNs();
2157 }
2158
2159 if (!FMF.noInfs() && (ValidResults & fcInf) == fcNone) {
2160 if (all_of(Known, [](const KnownFPClass KnownSrc) {
2161 return KnownSrc.isKnownNeverInfinity();
2162 }))
2163 FMF.setNoInfs();
2164 }
2165
2166 return FMF;
2167}
2168
2170 FastMathFlags FMF) {
2171 if (FMF.noNaNs())
2172 DemandedMask &= ~fcNan;
2173
2174 if (FMF.noInfs())
2175 DemandedMask &= ~fcInf;
2176 return DemandedMask;
2177}
2178
2179/// Apply epilog fixups to a floating-point intrinsic. See if the result can
2180/// fold to a constant, or apply fast math flags.
2182 FastMathFlags FMF,
2183 FPClassTest DemandedMask,
2185 ArrayRef<KnownFPClass> KnownSrcs) {
2186 FPClassTest ValidResults = DemandedMask & Known.KnownFPClasses;
2187 Constant *SingleVal = getFPClassConstant(FPOp->getType(), ValidResults,
2188 /*IsCanonicalizing=*/true);
2189 if (SingleVal)
2190 return SingleVal;
2191
2192 FastMathFlags InferredFMF =
2193 inferFastMathValueFlags(FMF, ValidResults, KnownSrcs);
2194 if (InferredFMF != FMF) {
2196 FPOp->setFastMathFlags(InferredFMF);
2197 return FPOp;
2198 }
2199
2200 return nullptr;
2201}
2202
2203/// Perform multiple-use aware simplfications for fneg(fabs(\p Src)). Returns a
2204/// replacement value if it's simplified, otherwise nullptr. Updates \p Known
2205/// with the known fpclass if not simplified.
2207 FPClassTest DemandedMask,
2208 KnownFPClass KnownSrc, bool NSZ) {
2209 if ((DemandedMask & fcNan) == fcNone)
2210 KnownSrc.knownNot(fcNan);
2211 if ((DemandedMask & fcInf) == fcNone)
2212 KnownSrc.knownNot(fcInf);
2213
2214 // If the source value is known negative, we can directly fold to it.
2215 if (KnownSrc.SignBit == true)
2216 return Src;
2217
2218 // If the only sign bit difference is for 0, ignore it with nsz.
2219 if (NSZ &&
2221 return Src;
2222
2224 Known.knownNot(~DemandedMask);
2225 return nullptr;
2226}
2227
2229 FPClassTest DemandedMask,
2230 KnownFPClass KnownSrc,
2231 bool NSZ) {
2232 if (NSZ) {
2233 constexpr FPClassTest NegOrZero = fcNegative | fcPosZero;
2234 constexpr FPClassTest PosOrZero = fcPositive | fcNegZero;
2235
2236 if ((DemandedMask & ~NegOrZero) == fcNone &&
2237 KnownSrc.isKnownAlways(NegOrZero))
2238 return MagSrc;
2239
2240 if ((DemandedMask & ~PosOrZero) == fcNone &&
2241 KnownSrc.isKnownAlways(PosOrZero))
2242 return MagSrc;
2243 } else {
2244 if ((DemandedMask & ~fcNegative) == fcNone && KnownSrc.SignBit == true)
2245 return MagSrc;
2246
2247 if ((DemandedMask & ~fcPositive) == fcNone && KnownSrc.SignBit == false)
2248 return MagSrc;
2249 }
2250
2251 return nullptr;
2252}
2253
2254static Value *
2256 const CallInst *CI, FPClassTest DemandedMask,
2257 KnownFPClass KnownLHS, KnownFPClass KnownRHS,
2258 const Function &F, bool NSZ) {
2259 bool OrderedZeroSign = !NSZ;
2260
2262 switch (IID) {
2263 case Intrinsic::maximum: {
2265
2266 // If one operand is known greater than the other, it must be that
2267 // operand unless the other is a nan.
2269 KnownRHS.KnownFPClasses, OrderedZeroSign) &&
2270 KnownRHS.isKnownNever(fcNan))
2271 return CI->getArgOperand(0);
2272
2274 KnownRHS.KnownFPClasses, OrderedZeroSign) &&
2275 KnownLHS.isKnownNever(fcNan))
2276 return CI->getArgOperand(1);
2277
2278 break;
2279 }
2280 case Intrinsic::minimum: {
2282
2283 // If one operand is known less than the other, it must be that operand
2284 // unless the other is a nan.
2286 KnownRHS.KnownFPClasses, OrderedZeroSign) &&
2287 KnownRHS.isKnownNever(fcNan))
2288 return CI->getArgOperand(0);
2289
2291 KnownRHS.KnownFPClasses, OrderedZeroSign) &&
2292 KnownLHS.isKnownNever(fcNan))
2293 return CI->getArgOperand(1);
2294
2295 break;
2296 }
2297 case Intrinsic::maxnum:
2298 case Intrinsic::maximumnum: {
2299 OpKind = IID == Intrinsic::maxnum ? KnownFPClass::MinMaxKind::maxnum
2301
2303 KnownRHS.KnownFPClasses, OrderedZeroSign) &&
2304 KnownLHS.isKnownNever(fcNan))
2305 return CI->getArgOperand(0);
2306
2308 KnownRHS.KnownFPClasses, OrderedZeroSign) &&
2309 KnownRHS.isKnownNever(fcNan))
2310 return CI->getArgOperand(1);
2311
2312 break;
2313 }
2314 case Intrinsic::minnum:
2315 case Intrinsic::minimumnum: {
2316 OpKind = IID == Intrinsic::minnum ? KnownFPClass::MinMaxKind::minnum
2318
2320 KnownRHS.KnownFPClasses, OrderedZeroSign) &&
2321 KnownLHS.isKnownNever(fcNan))
2322 return CI->getArgOperand(0);
2323
2325 KnownRHS.KnownFPClasses, OrderedZeroSign) &&
2326 KnownRHS.isKnownNever(fcNan))
2327 return CI->getArgOperand(1);
2328
2329 break;
2330 }
2331 default:
2332 llvm_unreachable("not a min/max intrinsic");
2333 }
2334
2335 Type *EltTy = CI->getType()->getScalarType();
2336 DenormalMode Mode = F.getDenormalMode(EltTy->getFltSemantics());
2337 Known = KnownFPClass::minMaxLike(KnownLHS, KnownRHS, OpKind, Mode);
2338 Known.knownNot(~DemandedMask);
2339
2340 return getFPClassConstant(CI->getType(), Known.KnownFPClasses,
2341 /*IsCanonicalizing=*/true);
2342}
2343
2344static Value *
2346 FastMathFlags FMF, FPClassTest DemandedMask,
2347 KnownFPClass &Known, const SimplifyQuery &SQ,
2348 unsigned Depth) {
2349
2350 FPClassTest SrcDemandedMask = DemandedMask;
2351 if (DemandedMask & fcNan)
2352 SrcDemandedMask |= fcNan;
2353
2354 // Zero results may have been rounded from subnormal or normal sources.
2355 if (DemandedMask & fcNegZero)
2356 SrcDemandedMask |= fcNegSubnormal | fcNegNormal;
2357 if (DemandedMask & fcPosZero)
2358 SrcDemandedMask |= fcPosSubnormal | fcPosNormal;
2359
2360 // Subnormal results may have been normal in the source type
2361 if (DemandedMask & fcNegSubnormal)
2362 SrcDemandedMask |= fcNegNormal;
2363 if (DemandedMask & fcPosSubnormal)
2364 SrcDemandedMask |= fcPosNormal;
2365
2366 if (DemandedMask & fcPosInf)
2367 SrcDemandedMask |= fcPosNormal;
2368 if (DemandedMask & fcNegInf)
2369 SrcDemandedMask |= fcNegNormal;
2370
2371 KnownFPClass KnownSrc;
2372 if (IC.SimplifyDemandedFPClass(&I, 0, SrcDemandedMask, KnownSrc, SQ,
2373 Depth + 1))
2374 return &I;
2375
2376 Known = KnownFPClass::fptrunc(KnownSrc);
2377 Known.knownNot(~DemandedMask);
2378
2379 return simplifyDemandedFPClassResult(&I, FMF, DemandedMask, Known,
2380 {KnownSrc});
2381}
2382
2384 FPClassTest DemandedMask,
2386 const SimplifyQuery &SQ,
2387 unsigned Depth) {
2388 assert(Depth <= MaxAnalysisRecursionDepth && "Limit Search Depth");
2389 assert(Known == KnownFPClass() && "expected uninitialized state");
2390
2391 Type *VTy = I->getType();
2392
2393 FastMathFlags FMF;
2394 if (auto *FPOp = dyn_cast<FPMathOperator>(I)) {
2395 FMF = FPOp->getFastMathFlags();
2396 DemandedMask = adjustDemandedMaskFromFlags(DemandedMask, FMF);
2397 }
2398
2399 switch (I->getOpcode()) {
2400 case Instruction::FNeg: {
2401 // Special case fneg(fabs(x))
2402
2403 Value *FNegSrc = I->getOperand(0);
2404 Value *FNegFAbsSrc;
2405 if (match(FNegSrc, m_OneUse(m_FAbs(m_Value(FNegFAbsSrc))))) {
2406 KnownFPClass KnownSrc;
2408 llvm::unknown_sign(DemandedMask), KnownSrc,
2409 SQ, Depth + 1))
2410 return I;
2411
2412 FastMathFlags FabsFMF = cast<FPMathOperator>(FNegSrc)->getFastMathFlags();
2413 FPClassTest ThisDemandedMask =
2414 adjustDemandedMaskFromFlags(DemandedMask, FabsFMF);
2415
2416 bool IsNSZ = FMF.noSignedZeros() || FabsFMF.noSignedZeros();
2417 if (Value *Simplified = simplifyDemandedFPClassFnegFabs(
2418 Known, FNegFAbsSrc, ThisDemandedMask, KnownSrc, IsNSZ))
2419 return Simplified;
2420
2421 if ((ThisDemandedMask & fcNan) == fcNone)
2422 KnownSrc.knownNot(fcNan);
2423 if ((ThisDemandedMask & fcInf) == fcNone)
2424 KnownSrc.knownNot(fcInf);
2425
2426 // fneg(fabs(x)) => fneg(x)
2427 if (KnownSrc.SignBit == false)
2428 return replaceOperand(*I, 0, FNegFAbsSrc);
2429
2430 // fneg(fabs(x)) => fneg(x), ignoring -0 if nsz.
2431 if (IsNSZ &&
2433 return replaceOperand(*I, 0, FNegFAbsSrc);
2434
2435 break;
2436 }
2437
2438 if (SimplifyDemandedFPClass(I, 0, llvm::fneg(DemandedMask), Known, SQ,
2439 Depth + 1))
2440 return I;
2441 Known.fneg();
2442 Known.knownNot(~DemandedMask);
2443 break;
2444 }
2445 case Instruction::FAdd:
2446 case Instruction::FSub: {
2447 KnownFPClass KnownLHS, KnownRHS;
2448
2449 // fadd x, x can be handled more aggressively.
2450 if (I->getOperand(0) == I->getOperand(1) &&
2451 I->getOpcode() == Instruction::FAdd &&
2452 isGuaranteedNotToBeUndef(I->getOperand(0), SQ.AC, SQ.CxtI, SQ.DT,
2453 Depth + 1)) {
2454 Type *EltTy = VTy->getScalarType();
2455 DenormalMode Mode = F.getDenormalMode(EltTy->getFltSemantics());
2456
2457 FPClassTest SrcDemandedMask = DemandedMask;
2458 if (DemandedMask & fcNan)
2459 SrcDemandedMask |= fcNan;
2460
2461 // Doubling a subnormal could have resulted in a normal value.
2462 if (DemandedMask & fcPosNormal)
2463 SrcDemandedMask |= fcPosSubnormal;
2464 if (DemandedMask & fcNegNormal)
2465 SrcDemandedMask |= fcNegSubnormal;
2466
2467 // Doubling a subnormal may produce 0 if FTZ/DAZ.
2468 if (Mode != DenormalMode::getIEEE()) {
2469 if (DemandedMask & fcPosZero) {
2470 SrcDemandedMask |= fcPosSubnormal;
2471
2472 if (Mode.inputsMayBePositiveZero() || Mode.outputsMayBePositiveZero())
2473 SrcDemandedMask |= fcNegSubnormal;
2474 }
2475
2476 if (DemandedMask & fcNegZero)
2477 SrcDemandedMask |= fcNegSubnormal;
2478 }
2479
2480 // Doubling a normal could have resulted in an infinity.
2481 if (DemandedMask & fcPosInf)
2482 SrcDemandedMask |= fcPosNormal;
2483 if (DemandedMask & fcNegInf)
2484 SrcDemandedMask |= fcNegNormal;
2485
2486 if (SimplifyDemandedFPClass(I, 0, SrcDemandedMask, KnownLHS, SQ,
2487 Depth + 1))
2488 return I;
2489
2490 Known = KnownFPClass::fadd_self(KnownLHS, Mode);
2491 KnownRHS = KnownLHS;
2492 } else {
2493 FPClassTest SrcDemandedMask = fcFinite;
2494
2495 // inf + (-inf) = nan
2496 if (DemandedMask & fcNan)
2497 SrcDemandedMask |= fcNan | fcInf;
2498
2499 if (DemandedMask & fcInf)
2500 SrcDemandedMask |= fcInf;
2501
2502 if (SimplifyDemandedFPClass(I, 1, SrcDemandedMask, KnownRHS, SQ,
2503 Depth + 1) ||
2504 SimplifyDemandedFPClass(I, 0, SrcDemandedMask, KnownLHS, SQ,
2505 Depth + 1))
2506 return I;
2507
2508 Type *EltTy = VTy->getScalarType();
2509 DenormalMode Mode = F.getDenormalMode(EltTy->getFltSemantics());
2510
2511 Known = I->getOpcode() == Instruction::FAdd
2512 ? KnownFPClass::fadd(KnownLHS, KnownRHS, Mode)
2513 : KnownFPClass::fsub(KnownLHS, KnownRHS, Mode);
2514 }
2515
2516 Known.knownNot(~DemandedMask);
2517
2518 if (Constant *SingleVal = getFPClassConstant(VTy, Known.KnownFPClasses,
2519 /*IsCanonicalizing=*/true))
2520 return SingleVal;
2521
2522 // Propagate known result to simplify edge case checks.
2523 bool ResultNotNan = (DemandedMask & fcNan) == fcNone;
2524
2525 // With nnan: X + {+/-}Inf --> {+/-}Inf
2526 if (ResultNotNan && I->getOpcode() == Instruction::FAdd &&
2527 KnownRHS.isKnownAlways(fcInf | fcNan) && KnownLHS.isKnownNever(fcNan))
2528 return I->getOperand(1);
2529
2530 // With nnan: {+/-}Inf + X --> {+/-}Inf
2531 // With nnan: {+/-}Inf - X --> {+/-}Inf
2532 if (ResultNotNan && KnownLHS.isKnownAlways(fcInf | fcNan) &&
2533 KnownRHS.isKnownNever(fcNan))
2534 return I->getOperand(0);
2535
2537 FMF, Known.KnownFPClasses, {KnownLHS, KnownRHS});
2538 if (InferredFMF != FMF) {
2539 I->setFastMathFlags(InferredFMF);
2540 return I;
2541 }
2542
2543 return nullptr;
2544 }
2545 case Instruction::FMul: {
2546 KnownFPClass KnownLHS, KnownRHS;
2547
2548 Value *X = I->getOperand(0);
2549 Value *Y = I->getOperand(1);
2550
2551 FPClassTest SrcDemandedMask =
2552 DemandedMask & (fcNan | fcZero | fcSubnormal | fcNormal);
2553
2554 if (DemandedMask & fcInf) {
2555 // mul x, inf = inf
2556 // mul large_x, large_y = inf
2557 SrcDemandedMask |= fcSubnormal | fcNormal | fcInf;
2558 }
2559
2560 if (DemandedMask & fcNan) {
2561 // mul +/-inf, 0 => nan
2562 SrcDemandedMask |= fcZero | fcInf | fcNan;
2563
2564 // TODO: Mode check
2565 // mul +/-inf, sub => nan if daz
2566 SrcDemandedMask |= fcSubnormal;
2567 }
2568
2569 // mul normal, subnormal = normal
2570 // Normal inputs may result in underflow.
2571 if (DemandedMask & (fcNormal | fcSubnormal))
2572 SrcDemandedMask |= fcNormal | fcSubnormal;
2573
2574 if (DemandedMask & fcZero)
2575 SrcDemandedMask |= fcNormal | fcSubnormal;
2576
2577 if (X == Y &&
2578 isGuaranteedNotToBeUndef(X, SQ.AC, SQ.CxtI, SQ.DT, Depth + 1)) {
2579 if (SimplifyDemandedFPClass(I, 0, SrcDemandedMask, KnownLHS, SQ,
2580 Depth + 1))
2581 return I;
2582 Type *EltTy = VTy->getScalarType();
2583
2584 DenormalMode Mode = F.getDenormalMode(EltTy->getFltSemantics());
2585 Known = KnownFPClass::square(KnownLHS, Mode);
2586 Known.knownNot(~DemandedMask);
2587
2588 if (Constant *Folded = getFPClassConstant(VTy, Known.KnownFPClasses,
2589 /*IsCanonicalizing=*/true))
2590 return Folded;
2591
2592 if (Known.isKnownAlways(fcPosZero | fcPosInf | fcNan) &&
2593 KnownLHS.isKnownNever(fcSubnormal | fcNormal)) {
2594 // We can skip the fabs if the source was already known positive.
2595 if (KnownLHS.isKnownAlways(fcPositive))
2596 return X;
2597
2598 // => fabs(x), in case this was a -inf or -0.
2599 // Note: Dropping canonicalize.
2601 Builder.SetInsertPoint(I);
2602 Value *Fabs = Builder.CreateFAbs(X, FMF);
2603 Fabs->takeName(I);
2604 return Fabs;
2605 }
2606
2607 return nullptr;
2608 }
2609
2610 if (SimplifyDemandedFPClass(I, 1, SrcDemandedMask, KnownRHS, SQ,
2611 Depth + 1) ||
2612 SimplifyDemandedFPClass(I, 0, SrcDemandedMask, KnownLHS, SQ, Depth + 1))
2613 return I;
2614
2615 if (FMF.noInfs()) {
2616 // Flag implies inputs cannot be infinity.
2617 KnownLHS.knownNot(fcInf);
2618 KnownRHS.knownNot(fcInf);
2619 }
2620
2621 bool NonNanResult = (DemandedMask & fcNan) == fcNone;
2622
2623 // With no-nans/no-infs:
2624 // X * 0.0 --> copysign(0.0, X)
2625 // X * -0.0 --> copysign(0.0, -X)
2626 if ((NonNanResult || KnownLHS.isKnownNeverInfOrNaN()) &&
2627 KnownRHS.isKnownAlways(fcPosZero | fcNan)) {
2629 Builder.SetInsertPoint(I);
2630
2631 // => copysign(+0, lhs)
2632 // Note: Dropping canonicalize
2633 Value *Copysign = Builder.CreateCopySign(Y, X, FMF);
2634 Copysign->takeName(I);
2635 return Copysign;
2636 }
2637
2638 if (KnownLHS.isKnownAlways(fcPosZero | fcNan) &&
2639 (NonNanResult || KnownRHS.isKnownNeverInfOrNaN())) {
2641 Builder.SetInsertPoint(I);
2642
2643 // => copysign(+0, rhs)
2644 // Note: Dropping canonicalize
2645 Value *Copysign = Builder.CreateCopySign(X, Y, FMF);
2646 Copysign->takeName(I);
2647 return Copysign;
2648 }
2649
2650 if ((NonNanResult || KnownLHS.isKnownNeverInfOrNaN()) &&
2651 KnownRHS.isKnownAlways(fcNegZero | fcNan)) {
2653 Builder.SetInsertPoint(I);
2654
2655 // => copysign(0, fneg(lhs))
2656 // Note: Dropping canonicalize
2657 Value *Copysign =
2658 Builder.CreateCopySign(Y, Builder.CreateFNegFMF(X, FMF), FMF);
2659 Copysign->takeName(I);
2660 return Copysign;
2661 }
2662
2663 if (KnownLHS.isKnownAlways(fcNegZero | fcNan) &&
2664 (NonNanResult || KnownRHS.isKnownNeverInfOrNaN())) {
2666 Builder.SetInsertPoint(I);
2667
2668 // => copysign(+0, fneg(rhs))
2669 // Note: Dropping canonicalize
2670 Value *Copysign =
2671 Builder.CreateCopySign(X, Builder.CreateFNegFMF(Y, FMF), FMF);
2672 Copysign->takeName(I);
2673 return Copysign;
2674 }
2675
2676 Type *EltTy = VTy->getScalarType();
2677 DenormalMode Mode = F.getDenormalMode(EltTy->getFltSemantics());
2678
2679 if (KnownLHS.isKnownAlways(fcInf | fcNan) &&
2680 (KnownRHS.isKnownNeverNaN() &&
2681 KnownRHS.cannotBeOrderedGreaterEqZero(Mode))) {
2683 Builder.SetInsertPoint(I);
2684
2685 // Note: Dropping canonicalize
2686 Value *Neg = Builder.CreateFNegFMF(X, FMF);
2687 Neg->takeName(I);
2688 return Neg;
2689 }
2690
2691 if (KnownRHS.isKnownAlways(fcInf | fcNan) &&
2692 (KnownLHS.isKnownNeverNaN() &&
2693 KnownLHS.cannotBeOrderedGreaterEqZero(Mode))) {
2695 Builder.SetInsertPoint(I);
2696
2697 // Note: Dropping canonicalize
2698 Value *Neg = Builder.CreateFNegFMF(Y, FMF);
2699 Neg->takeName(I);
2700 return Neg;
2701 }
2702
2703 Known = KnownFPClass::fmul(KnownLHS, KnownRHS, Mode);
2704 Known.knownNot(~DemandedMask);
2705
2706 if (Constant *SingleVal = getFPClassConstant(VTy, Known.KnownFPClasses,
2707 /*IsCanonicalizing=*/true))
2708 return SingleVal;
2709
2711 FMF, Known.KnownFPClasses, {KnownLHS, KnownRHS});
2712 if (InferredFMF != FMF) {
2713 I->setFastMathFlags(InferredFMF);
2714 return I;
2715 }
2716
2717 return nullptr;
2718 }
2719 case Instruction::FDiv: {
2720 Value *X = I->getOperand(0);
2721 Value *Y = I->getOperand(1);
2722 if (X == Y &&
2723 isGuaranteedNotToBeUndef(X, SQ.AC, SQ.CxtI, SQ.DT, Depth + 1)) {
2724 // If the source is 0, inf or nan, the result is a nan
2726 Builder.SetInsertPoint(I);
2727
2728 Value *IsZeroOrNan = Builder.CreateFCmpFMF(
2729 FCmpInst::FCMP_UEQ, I->getOperand(0), ConstantFP::getZero(VTy), FMF);
2730
2731 Value *Fabs = Builder.CreateFAbs(I->getOperand(0), FMF);
2732 Value *IsInfOrNan = Builder.CreateFCmpFMF(
2734
2735 Value *IsInfOrZeroOrNan = Builder.CreateOr(IsInfOrNan, IsZeroOrNan);
2736
2737 return Builder.CreateSelectFMFWithUnknownProfile(
2738 IsInfOrZeroOrNan, ConstantFP::getQNaN(VTy),
2739 ConstantFP::get(
2741 FMF, DEBUG_TYPE);
2742 }
2743
2744 Type *EltTy = VTy->getScalarType();
2745 DenormalMode Mode = F.getDenormalMode(EltTy->getFltSemantics());
2746
2747 // Every output class could require denormal inputs (except for the
2748 // degenerate case of only-nan results, without DAZ).
2749 FPClassTest SrcDemandedMask = (DemandedMask & fcNan) | fcSubnormal;
2750
2751 // Normal inputs may result in underflow.
2752 // x / x = 1.0 for non0/inf/nan
2753 // -x = +y / -z
2754 // -x = -y / +z
2755 if (DemandedMask & (fcSubnormal | fcNormal))
2756 SrcDemandedMask |= fcNormal;
2757
2758 if (DemandedMask & fcNan) {
2759 // 0 / 0 = nan
2760 // inf / inf = nan
2761
2762 // Subnormal is added in case of DAZ, but this isn't strictly
2763 // necessary. Every other input class implies a possible subnormal source,
2764 // so this only could matter in the degenerate case of only-nan results.
2765 SrcDemandedMask |= fcZero | fcInf | fcNan;
2766 }
2767
2768 // Zero outputs may be the result of underflow.
2769 if (DemandedMask & fcZero)
2770 SrcDemandedMask |= fcNormal | fcSubnormal;
2771
2772 FPClassTest LHSDemandedMask = SrcDemandedMask;
2773 FPClassTest RHSDemandedMask = SrcDemandedMask;
2774
2775 // 0 / inf = 0
2776 if (DemandedMask & fcZero) {
2777 assert((LHSDemandedMask & fcSubnormal) &&
2778 "should not have to worry about daz here");
2779 LHSDemandedMask |= fcZero;
2780 RHSDemandedMask |= fcInf;
2781 }
2782
2783 // x / 0 = inf
2784 // large_normal / small_normal = inf
2785 // inf / 1 = inf
2786 // large_normal / subnormal = inf
2787 if (DemandedMask & fcInf) {
2788 LHSDemandedMask |= fcInf | fcNormal | fcSubnormal;
2789 RHSDemandedMask |= fcZero | fcSubnormal | fcNormal;
2790 }
2791
2792 KnownFPClass KnownLHS, KnownRHS;
2793 if (SimplifyDemandedFPClass(I, 0, LHSDemandedMask, KnownLHS, SQ,
2794 Depth + 1) ||
2795 SimplifyDemandedFPClass(I, 1, RHSDemandedMask, KnownRHS, SQ, Depth + 1))
2796 return I;
2797
2798 bool ResultNotNan = (DemandedMask & fcNan) == fcNone;
2799 bool ResultNotInf = (DemandedMask & fcInf) == fcNone;
2800
2801 // Replacing 0/x with a zero is only valid when the divisor can't be
2802 // (logical) zero, since 0/0 is NaN -- unless NaN results aren't demanded. A
2803 // subnormal divisor can flush to zero under a flushing denormal mode.
2804 bool CanIgnoreZeroByZeroNan =
2805 ResultNotNan || KnownRHS.isKnownNeverLogicalZero(Mode);
2806
2807 // nsz [+-]0 / x -> 0
2808 if (FMF.noSignedZeros() && KnownLHS.isKnownAlways(fcZero) &&
2809 KnownRHS.isKnownNeverNaN() && CanIgnoreZeroByZeroNan)
2810 return ConstantFP::getZero(VTy);
2811
2812 if (KnownLHS.isKnownAlways(fcPosZero) && KnownRHS.isKnownNeverNaN() &&
2813 CanIgnoreZeroByZeroNan) {
2815 Builder.SetInsertPoint(I);
2816
2817 // nnan +0 / x -> copysign(0, rhs)
2818 // TODO: -0 / x => copysign(0, fneg(rhs))
2819 Value *Copysign = Builder.CreateCopySign(X, Y, FMF);
2820 Copysign->takeName(I);
2821 return Copysign;
2822 }
2823
2824 if (!ResultNotInf &&
2825 ((ResultNotNan || (KnownLHS.isKnownNeverNaN() &&
2826 KnownLHS.isKnownNeverLogicalZero(Mode))) &&
2827 (KnownRHS.isKnownAlways(fcPosZero) ||
2828 (FMF.noSignedZeros() && KnownRHS.isKnownAlways(fcZero))))) {
2830 Builder.SetInsertPoint(I);
2831
2832 // nnan x / 0 => copysign(inf, x);
2833 // nnan nsz x / -0 => copysign(inf, x);
2834 Value *Copysign =
2835 Builder.CreateCopySign(ConstantFP::getInfinity(VTy), X, FMF);
2836 Copysign->takeName(I);
2837 return Copysign;
2838 }
2839
2840 // nnan ninf X / [-]0.0 -> poison
2841 if (ResultNotNan && ResultNotInf && KnownRHS.isKnownAlways(fcZero))
2842 return PoisonValue::get(VTy);
2843
2844 Known = KnownFPClass::fdiv(KnownLHS, KnownRHS, Mode);
2845 Known.knownNot(~DemandedMask);
2846
2847 if (Constant *SingleVal = getFPClassConstant(VTy, Known.KnownFPClasses,
2848 /*IsCanonicalizing=*/true))
2849 return SingleVal;
2850
2852 FMF, Known.KnownFPClasses, {KnownLHS, KnownRHS});
2853 if (InferredFMF != FMF) {
2854 I->setFastMathFlags(InferredFMF);
2855 return I;
2856 }
2857
2858 return nullptr;
2859 }
2860 case Instruction::FPTrunc:
2861 return simplifyDemandedUseFPClassFPTrunc(*this, *I, FMF, DemandedMask,
2862 Known, SQ, Depth);
2863 case Instruction::FPExt: {
2864 FPClassTest SrcDemandedMask = DemandedMask;
2865 if (DemandedMask & fcNan)
2866 SrcDemandedMask |= fcNan;
2867
2868 // No subnormal result does not imply not-subnormal in the source type.
2869 if ((DemandedMask & fcNegNormal) != fcNone)
2870 SrcDemandedMask |= fcNegSubnormal;
2871 if ((DemandedMask & fcPosNormal) != fcNone)
2872 SrcDemandedMask |= fcPosSubnormal;
2873
2874 KnownFPClass KnownSrc;
2875 if (SimplifyDemandedFPClass(I, 0, SrcDemandedMask, KnownSrc, SQ, Depth + 1))
2876 return I;
2877
2878 const fltSemantics &DstTy = VTy->getScalarType()->getFltSemantics();
2879 const fltSemantics &SrcTy =
2880 I->getOperand(0)->getType()->getScalarType()->getFltSemantics();
2881
2882 Known = KnownFPClass::fpext(KnownSrc, DstTy, SrcTy);
2883 Known.knownNot(~DemandedMask);
2884
2885 return simplifyDemandedFPClassResult(I, FMF, DemandedMask, Known,
2886 {KnownSrc});
2887 }
2888 case Instruction::Call: {
2889 CallInst *CI = cast<CallInst>(I);
2890 const Intrinsic::ID IID = CI->getIntrinsicID();
2891 switch (IID) {
2892 case Intrinsic::fabs: {
2893 KnownFPClass KnownSrc;
2894 if (SimplifyDemandedFPClass(I, 0, llvm::inverse_fabs(DemandedMask),
2895 KnownSrc, SQ, Depth + 1))
2896 return I;
2897
2898 if (Value *Simplified = simplifyDemandedFPClassFabs(
2899 Known, CI->getArgOperand(0), DemandedMask, KnownSrc,
2900 FMF.noSignedZeros()))
2901 return Simplified;
2902 break;
2903 }
2904 case Intrinsic::arithmetic_fence:
2905 if (SimplifyDemandedFPClass(I, 0, DemandedMask, Known, SQ, Depth + 1))
2906 return I;
2907 break;
2908 case Intrinsic::copysign: {
2909 // Flip on more potentially demanded classes
2910 const FPClassTest DemandedMaskAnySign = llvm::unknown_sign(DemandedMask);
2911 KnownFPClass KnownMag;
2912 if (SimplifyDemandedFPClass(CI, 0, DemandedMaskAnySign, KnownMag, SQ,
2913 Depth + 1))
2914 return I;
2915
2916 if ((DemandedMask & fcNegative) == DemandedMask) {
2917 // Roundabout way of replacing with fneg(fabs)
2918 CI->setOperand(1, ConstantFP::get(VTy, -1.0));
2919 return I;
2920 }
2921
2922 if ((DemandedMask & fcPositive) == DemandedMask) {
2923 // Roundabout way of replacing with fabs
2924 CI->setOperand(1, ConstantFP::getZero(VTy));
2925 return I;
2926 }
2927
2928 if (Value *Simplified = simplifyDemandedFPClassCopysignMag(
2929 CI->getArgOperand(0), DemandedMask, KnownMag,
2930 FMF.noSignedZeros()))
2931 return Simplified;
2932
2933 KnownFPClass KnownSign =
2935 if (KnownMag.SignBit && KnownSign.SignBit &&
2936 *KnownMag.SignBit == *KnownSign.SignBit)
2937 return CI->getOperand(0);
2938
2939 // TODO: Call argument attribute not considered
2940 // Input implied not-nan from flag.
2941 if (FMF.noNaNs())
2942 KnownSign.knownNot(fcNan);
2943
2944 if (KnownSign.SignBit == false) {
2946 CI->setOperand(1, ConstantFP::getZero(VTy));
2947 return I;
2948 }
2949
2950 if (KnownSign.SignBit == true) {
2952 CI->setOperand(1, ConstantFP::get(VTy, -1.0));
2953 return I;
2954 }
2955
2956 Known = KnownFPClass::copysign(KnownMag, KnownSign);
2957 Known.knownNot(~DemandedMask);
2958 break;
2959 }
2960 case Intrinsic::fma:
2961 case Intrinsic::fmuladd: {
2962 // We can't do any simplification on the source besides stripping out
2963 // unneeded nans.
2964 FPClassTest SrcDemandedMask = DemandedMask | ~fcNan;
2965 if (DemandedMask & fcNan)
2966 SrcDemandedMask |= fcNan;
2967
2968 KnownFPClass KnownSrc[3];
2969
2970 Type *EltTy = VTy->getScalarType();
2971 if (CI->getArgOperand(0) == CI->getArgOperand(1) &&
2972 isGuaranteedNotToBeUndef(CI->getArgOperand(0), SQ.AC, SQ.CxtI, SQ.DT,
2973 Depth + 1)) {
2974 if (SimplifyDemandedFPClass(CI, 0, SrcDemandedMask, KnownSrc[0], SQ,
2975 Depth + 1) ||
2976 SimplifyDemandedFPClass(CI, 2, SrcDemandedMask, KnownSrc[2], SQ,
2977 Depth + 1))
2978 return I;
2979
2980 KnownSrc[1] = KnownSrc[0];
2981 DenormalMode Mode = F.getDenormalMode(EltTy->getFltSemantics());
2982 Known = KnownFPClass::fma_square(KnownSrc[0], KnownSrc[2], Mode);
2983 } else {
2984 for (int OpIdx = 0; OpIdx != 3; ++OpIdx) {
2985 if (SimplifyDemandedFPClass(CI, OpIdx, SrcDemandedMask,
2986 KnownSrc[OpIdx], SQ, Depth + 1))
2987 return CI;
2988 }
2989
2990 DenormalMode Mode = F.getDenormalMode(EltTy->getFltSemantics());
2991 Known = KnownFPClass::fma(KnownSrc[0], KnownSrc[1], KnownSrc[2], Mode);
2992 }
2993
2994 return simplifyDemandedFPClassResult(CI, FMF, DemandedMask, Known,
2995 {KnownSrc});
2996 }
2997 case Intrinsic::maximum:
2998 case Intrinsic::minimum:
2999 case Intrinsic::maximumnum:
3000 case Intrinsic::minimumnum:
3001 case Intrinsic::maxnum:
3002 case Intrinsic::minnum: {
3003 const bool PropagateNaN =
3004 IID == Intrinsic::maximum || IID == Intrinsic::minimum;
3005
3006 // We can't tell much based on the demanded result without inspecting the
3007 // operands (e.g., a known-positive result could have been clamped), but
3008 // we can still prune known-nan inputs.
3009 FPClassTest SrcDemandedMask =
3010 PropagateNaN && ((DemandedMask & fcNan) == fcNone)
3011 ? DemandedMask | ~fcNan
3012 : fcAllFlags;
3013
3014 KnownFPClass KnownLHS, KnownRHS;
3015 if (SimplifyDemandedFPClass(CI, 1, SrcDemandedMask, KnownRHS, SQ,
3016 Depth + 1) ||
3017 SimplifyDemandedFPClass(CI, 0, SrcDemandedMask, KnownLHS, SQ,
3018 Depth + 1))
3019 return I;
3020
3021 Value *Simplified =
3022 simplifyDemandedFPClassMinMax(Known, IID, CI, DemandedMask, KnownLHS,
3023 KnownRHS, F, FMF.noSignedZeros());
3024 if (Simplified)
3025 return Simplified;
3026
3027 auto *FPOp = cast<FPMathOperator>(CI);
3028
3029 FPClassTest ValidResults = DemandedMask & Known.KnownFPClasses;
3030 FastMathFlags InferredFMF = FMF;
3031
3032 if (!FMF.noSignedZeros()) {
3033 // Add NSZ flag if we know the result will not be sensitive to the sign
3034 // of 0.
3035 FPClassTest ZeroMask = fcZero;
3036
3037 Type *EltTy = VTy->getScalarType();
3038 DenormalMode Mode = F.getDenormalMode(EltTy->getFltSemantics());
3039 if (Mode != DenormalMode::getIEEE())
3040 ZeroMask |= fcSubnormal;
3041
3042 bool ResultNotLogical0 = (ValidResults & ZeroMask) == fcNone;
3043 if (ResultNotLogical0 || ((KnownLHS.isKnownNeverLogicalNegZero(Mode) ||
3044 KnownRHS.isKnownNeverLogicalPosZero(Mode)) &&
3045 (KnownLHS.isKnownNeverLogicalPosZero(Mode) ||
3046 KnownRHS.isKnownNeverLogicalNegZero(Mode))))
3047 InferredFMF.setNoSignedZeros(true);
3048 }
3049
3050 if (!FMF.noNaNs() &&
3051 ((PropagateNaN && (ValidResults & fcNan) == fcNone) ||
3052 (KnownLHS.isKnownNeverNaN() && KnownRHS.isKnownNeverNaN()))) {
3054 InferredFMF.setNoNaNs(true);
3055 }
3056
3057 if (InferredFMF != FMF) {
3058 CI->setFastMathFlags(InferredFMF);
3059 return FPOp;
3060 }
3061
3062 return nullptr;
3063 }
3064 case Intrinsic::exp:
3065 case Intrinsic::exp2:
3066 case Intrinsic::exp10: {
3067 if ((DemandedMask & fcPositive) == fcNone) {
3068 // Only returns positive values or nans.
3069 if ((DemandedMask & fcNan) == fcNone)
3070 return PoisonValue::get(VTy);
3071
3072 // Only need nan propagation.
3073 if ((DemandedMask & ~fcNan) == fcNone)
3074 return ConstantFP::getQNaN(VTy);
3075
3076 return CI->getArgOperand(0);
3077 }
3078
3079 FPClassTest SrcDemandedMask = DemandedMask & fcNan;
3080 if (DemandedMask & fcNan)
3081 SrcDemandedMask |= fcNan;
3082
3083 if (DemandedMask & fcZero) {
3084 // exp(-infinity) = 0
3085 SrcDemandedMask |= fcNegInf;
3086
3087 // exp(-largest_normal) = 0
3088 //
3089 // Negative numbers of sufficiently large magnitude underflow to 0. No
3090 // subnormal input has a 0 result.
3091 SrcDemandedMask |= fcNegNormal;
3092 }
3093
3094 if (DemandedMask & fcPosSubnormal) {
3095 // Negative numbers of sufficiently large magnitude underflow to 0. No
3096 // subnormal input has a 0 result.
3097 SrcDemandedMask |= fcNegNormal;
3098 }
3099
3100 if (DemandedMask & fcPosNormal) {
3101 // exp(0) = 1
3102 // exp(+/- smallest_normal) = 1
3103 // exp(+/- largest_denormal) = 1
3104 // exp(+/- smallest_denormal) = 1
3105 // exp(-1) = pos normal
3106 SrcDemandedMask |= fcNormal | fcSubnormal | fcZero;
3107 }
3108
3109 // exp(inf), exp(largest_normal) = inf
3110 if (DemandedMask & fcPosInf)
3111 SrcDemandedMask |= fcPosInf | fcPosNormal;
3112
3113 KnownFPClass KnownSrc;
3114
3115 // TODO: This could really make use of KnownFPClass of specific value
3116 // range, (i.e., close enough to 1)
3117 if (SimplifyDemandedFPClass(I, 0, SrcDemandedMask, KnownSrc, SQ,
3118 Depth + 1))
3119 return I;
3120
3121 // exp(+/-0) = 1
3122 if (KnownSrc.isKnownAlways(fcZero))
3123 return ConstantFP::get(VTy, 1.0);
3124
3125 // Only perform nan propagation.
3126 // Note: Dropping canonicalize / quiet of signaling nan.
3127 if (KnownSrc.isKnownAlways(fcNan))
3128 return CI->getArgOperand(0);
3129
3130 // exp(0 | nan) => x == 0.0 ? 1.0 : x
3131 if (KnownSrc.isKnownAlways(fcZero | fcNan)) {
3133 Builder.SetInsertPoint(CI);
3134
3135 // fadd +/-0, 1.0 => 1.0
3136 // fadd nan, 1.0 => nan
3137 return Builder.CreateFAddFMF(CI->getArgOperand(0),
3138 ConstantFP::get(VTy, 1.0), FMF);
3139 }
3140
3141 if (KnownSrc.isKnownAlways(fcInf | fcNan)) {
3142 // exp(-inf) = 0
3143 // exp(+inf) = +inf
3145 Builder.SetInsertPoint(CI);
3146
3147 // Note: Dropping canonicalize / quiet of signaling nan.
3148 Value *X = CI->getArgOperand(0);
3149 Value *IsPosInfOrNan = Builder.CreateFCmpFMF(
3151 // We do not know whether an infinity or a NaN is more likely here,
3152 // so mark the branch weights as unkown.
3153 Value *ZeroOrInf = Builder.CreateSelectFMFWithUnknownProfile(
3154 IsPosInfOrNan, X, ConstantFP::getZero(VTy), FMF, DEBUG_TYPE);
3155 return ZeroOrInf;
3156 }
3157
3158 Known = KnownFPClass::exp(KnownSrc);
3159 Known.knownNot(~DemandedMask);
3160
3161 return simplifyDemandedFPClassResult(CI, FMF, DemandedMask, Known,
3162 KnownSrc);
3163 }
3164 case Intrinsic::log:
3165 case Intrinsic::log2:
3166 case Intrinsic::log10: {
3167 FPClassTest DemandedSrcMask = DemandedMask & (fcNan | fcPosInf);
3168 if (DemandedMask & fcNan)
3169 DemandedSrcMask |= fcNan;
3170
3171 Type *EltTy = VTy->getScalarType();
3172 DenormalMode Mode = F.getDenormalMode(EltTy->getFltSemantics());
3173
3174 // log(x < 0) = nan
3175 if (DemandedMask & fcNan)
3176 DemandedSrcMask |= (fcNegative & ~fcNegZero);
3177
3178 // log(0) = -inf
3179 if (DemandedMask & fcNegInf) {
3180 DemandedSrcMask |= fcZero;
3181
3182 // No value produces subnormal result.
3183 if (Mode.inputsMayBeZero())
3184 DemandedSrcMask |= fcSubnormal;
3185 }
3186
3187 if (DemandedMask & fcNormal)
3188 DemandedSrcMask |= fcNormal | fcSubnormal;
3189
3190 // log(1) = 0
3191 if (DemandedMask & fcZero)
3192 DemandedSrcMask |= fcPosNormal;
3193
3194 KnownFPClass KnownSrc;
3195 if (SimplifyDemandedFPClass(I, 0, DemandedSrcMask, KnownSrc, SQ,
3196 Depth + 1))
3197 return I;
3198
3199 Known = KnownFPClass::log(KnownSrc, Mode);
3200 Known.knownNot(~DemandedMask);
3201
3202 return simplifyDemandedFPClassResult(CI, FMF, DemandedMask, Known,
3203 KnownSrc);
3204 }
3205 case Intrinsic::sqrt: {
3206 FPClassTest DemandedSrcMask =
3207 DemandedMask & (fcNegZero | fcPositive | fcNan);
3208
3209 if (DemandedMask & fcNan)
3210 DemandedSrcMask |= fcNan | (fcNegative & ~fcNegZero);
3211
3212 // sqrt(max_subnormal) is a normal value
3213 if (DemandedMask & fcPosNormal)
3214 DemandedSrcMask |= fcPosSubnormal;
3215
3216 KnownFPClass KnownSrc;
3217 if (SimplifyDemandedFPClass(I, 0, DemandedSrcMask, KnownSrc, SQ,
3218 Depth + 1))
3219 return I;
3220
3221 // Infer the source cannot be negative if the result cannot be nan.
3222 if ((DemandedMask & fcNan) == fcNone)
3223 KnownSrc.knownNot((fcNegative & ~fcNegZero) | fcNan);
3224
3225 // Infer the source cannot be +inf if the result is not +nf
3226 if ((DemandedMask & fcPosInf) == fcNone)
3227 KnownSrc.knownNot(fcPosInf);
3228
3229 Type *EltTy = VTy->getScalarType();
3230 DenormalMode Mode = F.getDenormalMode(EltTy->getFltSemantics());
3231
3232 // sqrt(-x) = nan, but be careful of negative subnormals flushed to 0.
3233 if (KnownSrc.isKnownNever(fcPositive) &&
3234 KnownSrc.isKnownNeverLogicalZero(Mode))
3235 return ConstantFP::getQNaN(VTy);
3236
3237 Known = KnownFPClass::sqrt(KnownSrc, Mode);
3238 Known.knownNot(~DemandedMask);
3239
3240 if (Known.KnownFPClasses == fcZero) {
3241 if (FMF.noSignedZeros())
3242 return ConstantFP::getZero(VTy);
3244 Builder.SetInsertPoint(CI);
3245
3246 Value *Copysign = Builder.CreateCopySign(ConstantFP::getZero(VTy),
3247 CI->getArgOperand(0), FMF);
3248 Copysign->takeName(CI);
3249 return Copysign;
3250 }
3251
3252 return simplifyDemandedFPClassResult(CI, FMF, DemandedMask, Known,
3253 {KnownSrc});
3254 }
3255 case Intrinsic::ldexp: {
3256 FPClassTest SrcDemandedMask = DemandedMask & fcInf;
3257 if (DemandedMask & fcNan)
3258 SrcDemandedMask |= fcNan;
3259
3260 if (DemandedMask & fcPosInf)
3261 SrcDemandedMask |= fcPosNormal | fcPosSubnormal;
3262 if (DemandedMask & fcNegInf)
3263 SrcDemandedMask |= fcNegNormal | fcNegSubnormal;
3264
3265 if (DemandedMask & (fcPosNormal | fcPosSubnormal))
3266 SrcDemandedMask |= fcPosNormal | fcPosSubnormal;
3267 if (DemandedMask & (fcNegNormal | fcNegSubnormal))
3268 SrcDemandedMask |= fcNegNormal | fcNegSubnormal;
3269
3270 if (DemandedMask & fcPosZero)
3271 SrcDemandedMask |= fcPosFinite;
3272 if (DemandedMask & fcNegZero)
3273 SrcDemandedMask |= fcNegFinite;
3274
3275 KnownFPClass KnownSrc;
3276 if (SimplifyDemandedFPClass(CI, 0, SrcDemandedMask, KnownSrc, SQ,
3277 Depth + 1))
3278 return CI;
3279
3280 Type *EltTy = VTy->getScalarType();
3281 const fltSemantics &FltSem = EltTy->getFltSemantics();
3282 DenormalMode Mode = F.getDenormalMode(FltSem);
3283
3284 KnownBits KnownExpBits =
3286
3287 Known = KnownFPClass::ldexp(KnownSrc, KnownExpBits, FltSem, Mode);
3288 Known.knownNot(~DemandedMask);
3289
3290 return simplifyDemandedFPClassResult(CI, FMF, DemandedMask, Known,
3291 {KnownSrc});
3292 }
3293 case Intrinsic::trunc:
3294 case Intrinsic::floor:
3295 case Intrinsic::ceil:
3296 case Intrinsic::rint:
3297 case Intrinsic::nearbyint:
3298 case Intrinsic::round:
3299 case Intrinsic::roundeven: {
3300 FPClassTest DemandedSrcMask = DemandedMask;
3301 if (DemandedMask & fcNan)
3302 DemandedSrcMask |= fcNan;
3303
3304 // Zero results imply valid subnormal sources.
3305 if (DemandedMask & fcNegZero)
3306 DemandedSrcMask |= fcNegSubnormal | fcNegNormal;
3307
3308 if (DemandedMask & fcPosZero)
3309 DemandedSrcMask |= fcPosSubnormal | fcPosNormal;
3310
3311 KnownFPClass KnownSrc;
3312 if (SimplifyDemandedFPClass(CI, 0, DemandedSrcMask, KnownSrc, SQ,
3313 Depth + 1))
3314 return I;
3315
3316 // Note: Possibly dropping snan quiet.
3317 if (KnownSrc.isKnownAlways(fcInf | fcNan | fcZero))
3318 return CI->getArgOperand(0);
3319
3320 bool IsRoundNearestOrTrunc =
3321 IID == Intrinsic::round || IID == Intrinsic::roundeven ||
3322 IID == Intrinsic::nearbyint || IID == Intrinsic::rint ||
3323 IID == Intrinsic::trunc;
3324
3325 // Ignore denormals-as-zero, as canonicalization is not mandated.
3326 if ((IID == Intrinsic::floor || IsRoundNearestOrTrunc) &&
3328 return ConstantFP::getZero(VTy);
3329
3330 if ((IID == Intrinsic::ceil || IsRoundNearestOrTrunc) &&
3332 return ConstantFP::getZero(VTy, true);
3333
3334 if (IID == Intrinsic::floor && KnownSrc.isKnownAlways(fcNegSubnormal))
3335 return ConstantFP::get(VTy, -1.0);
3336
3337 if (IID == Intrinsic::ceil && KnownSrc.isKnownAlways(fcPosSubnormal))
3338 return ConstantFP::get(VTy, 1.0);
3339
3341 KnownSrc, IID == Intrinsic::trunc,
3343
3344 Known.knownNot(~DemandedMask);
3345
3346 if (Constant *SingleVal = getFPClassConstant(VTy, Known.KnownFPClasses,
3347 /*IsCanonicalizing=*/true))
3348 return SingleVal;
3349
3350 if ((IID == Intrinsic::trunc || IsRoundNearestOrTrunc) &&
3351 KnownSrc.isKnownAlways(fcZero | fcSubnormal)) {
3353 Builder.SetInsertPoint(CI);
3354
3355 Value *Copysign = Builder.CreateCopySign(ConstantFP::getZero(VTy),
3356 CI->getArgOperand(0));
3357 Copysign->takeName(CI);
3358 return Copysign;
3359 }
3360
3361 FastMathFlags InferredFMF =
3362 inferFastMathValueFlags(FMF, Known.KnownFPClasses, KnownSrc);
3363 if (InferredFMF != FMF) {
3365 CI->setFastMathFlags(InferredFMF);
3366 return CI;
3367 }
3368
3369 return nullptr;
3370 }
3371 case Intrinsic::fptrunc_round:
3372 return simplifyDemandedUseFPClassFPTrunc(*this, *CI, FMF, DemandedMask,
3373 Known, SQ, Depth);
3374 case Intrinsic::canonicalize: {
3375 Type *EltTy = VTy->getScalarType();
3376
3377 // TODO: This could have more refined support for PositiveZero denormal
3378 // mode.
3379 if (EltTy->isIEEELikeFPTy()) {
3380 DenormalMode Mode = F.getDenormalMode(EltTy->getFltSemantics());
3381
3382 FPClassTest SrcDemandedMask = DemandedMask;
3383
3384 // A demanded quiet nan result may have come from a signaling nan, so we
3385 // need to expand the demanded mask.
3386 if ((DemandedMask & fcQNan) != fcNone)
3387 SrcDemandedMask |= fcSNan;
3388
3389 if (Mode != DenormalMode::getIEEE()) {
3390 // Any zero results may have come from flushed denormals.
3391 if (DemandedMask & fcPosZero)
3392 SrcDemandedMask |= fcPosSubnormal;
3393 if (DemandedMask & fcNegZero)
3394 SrcDemandedMask |= fcNegSubnormal;
3395 }
3396
3397 if (Mode == DenormalMode::getPreserveSign()) {
3398 // If a denormal input will be flushed, and we don't need zeros, we
3399 // don't need denormals either.
3400 if ((DemandedMask & fcPosZero) == fcNone)
3401 SrcDemandedMask &= ~fcPosSubnormal;
3402
3403 if ((DemandedMask & fcNegZero) == fcNone)
3404 SrcDemandedMask &= ~fcNegSubnormal;
3405 }
3406
3407 KnownFPClass KnownSrc;
3408
3409 // Simplify upstream operations before trying to simplify this call.
3410 if (SimplifyDemandedFPClass(I, 0, SrcDemandedMask, KnownSrc, SQ,
3411 Depth + 1))
3412 return I;
3413
3414 // Perform the canonicalization to see if this folded to a constant.
3415 Known = KnownFPClass::canonicalize(KnownSrc, Mode);
3416 Known.knownNot(~DemandedMask);
3417
3418 if (Constant *SingleVal = getFPClassConstant(VTy, Known.KnownFPClasses))
3419 return SingleVal;
3420
3421 // For IEEE handling, there is only a bit change for nan inputs, so we
3422 // can drop it if we do not demand nan results or we know the input
3423 // isn't a nan.
3424 // Otherwise, we also need to avoid denormal inputs to drop the
3425 // canonicalize.
3426 if (KnownSrc.isKnownNeverNaN() && (Mode == DenormalMode::getIEEE() ||
3427 KnownSrc.isKnownNeverSubnormal()))
3428 return CI->getArgOperand(0);
3429
3430 FastMathFlags InferredFMF =
3431 inferFastMathValueFlags(FMF, Known.KnownFPClasses, KnownSrc);
3432 if (InferredFMF != FMF) {
3434 CI->setFastMathFlags(InferredFMF);
3435 return CI;
3436 }
3437
3438 return nullptr;
3439 }
3440
3441 [[fallthrough]];
3442 }
3443 default:
3444 Known = computeKnownFPClass(I, DemandedMask, SQ, Depth + 1);
3445 Known.knownNot(~DemandedMask);
3446 break;
3447 }
3448
3449 break;
3450 }
3451 case Instruction::Select: {
3452 KnownFPClass KnownLHS, KnownRHS;
3453 if (SimplifyDemandedFPClass(I, 2, DemandedMask, KnownRHS, SQ, Depth + 1) ||
3454 SimplifyDemandedFPClass(I, 1, DemandedMask, KnownLHS, SQ, Depth + 1))
3455 return I;
3456
3457 if (KnownLHS.isKnownNever(DemandedMask))
3458 return I->getOperand(2);
3459 if (KnownRHS.isKnownNever(DemandedMask))
3460 return I->getOperand(1);
3461
3462 adjustKnownFPClassForSelectArm(KnownLHS, I->getOperand(0), I->getOperand(1),
3463 /*Invert=*/false, SQ, Depth);
3464 adjustKnownFPClassForSelectArm(KnownRHS, I->getOperand(0), I->getOperand(2),
3465 /*Invert=*/true, SQ, Depth);
3466 Known = KnownLHS.intersectWith(KnownRHS);
3467 Known.knownNot(~DemandedMask);
3468 break;
3469 }
3470 case Instruction::ExtractElement: {
3471 // TODO: Handle demanded element mask
3472 if (SimplifyDemandedFPClass(I, 0, DemandedMask, Known, SQ, Depth + 1))
3473 return I;
3474 Known.knownNot(~DemandedMask);
3475 break;
3476 }
3477 case Instruction::InsertElement: {
3478 KnownFPClass KnownInserted, KnownVec;
3479 if (SimplifyDemandedFPClass(I, 1, DemandedMask, KnownInserted, SQ,
3480 Depth + 1) ||
3481 SimplifyDemandedFPClass(I, 0, DemandedMask, KnownVec, SQ, Depth + 1))
3482 return I;
3483
3484 // TODO: Use demanded elements logic from computeKnownFPClass
3485 Known = KnownVec | KnownInserted;
3486 Known.knownNot(~DemandedMask);
3487 break;
3488 }
3489 case Instruction::ShuffleVector: {
3490 KnownFPClass KnownLHS, KnownRHS;
3491 if (SimplifyDemandedFPClass(I, 1, DemandedMask, KnownRHS, SQ, Depth + 1) ||
3492 SimplifyDemandedFPClass(I, 0, DemandedMask, KnownLHS, SQ, Depth + 1))
3493 return I;
3494
3495 // TODO: This is overly conservative and should consider demanded elements,
3496 // and splats.
3497 Known = KnownLHS | KnownRHS;
3498 Known.knownNot(~DemandedMask);
3499 break;
3500 }
3501 case Instruction::InsertValue: {
3502 KnownFPClass KnownAgg, KnownElt;
3503 if (SimplifyDemandedFPClass(I, 0, DemandedMask, KnownAgg, SQ, Depth + 1) ||
3504 SimplifyDemandedFPClass(I, 1, DemandedMask, KnownElt, SQ, Depth + 1))
3505 return I;
3506
3507 Known = KnownAgg | KnownElt;
3508 break;
3509 }
3510 case Instruction::ExtractValue: {
3511 Value *ExtractSrc;
3512 if (match(I, m_ExtractValue<0>(m_OneUse(m_Value(ExtractSrc))))) {
3513 if (auto *II = dyn_cast<IntrinsicInst>(ExtractSrc)) {
3514 const Intrinsic::ID IID = II->getIntrinsicID();
3515 switch (IID) {
3516 case Intrinsic::frexp: {
3517 FPClassTest SrcDemandedMask = fcNone;
3518 if (DemandedMask & fcNan)
3519 SrcDemandedMask |= fcNan;
3520 if (DemandedMask & fcNegFinite)
3521 SrcDemandedMask |= fcNegFinite;
3522 if (DemandedMask & fcPosFinite)
3523 SrcDemandedMask |= fcPosFinite;
3524 if (DemandedMask & fcPosInf)
3525 SrcDemandedMask |= fcPosInf;
3526 if (DemandedMask & fcNegInf)
3527 SrcDemandedMask |= fcNegInf;
3528
3529 KnownFPClass KnownSrc;
3530 if (SimplifyDemandedFPClass(II, 0, SrcDemandedMask, KnownSrc, SQ,
3531 Depth + 1))
3532 return I;
3533
3534 Type *EltTy = VTy->getScalarType();
3535 DenormalMode Mode = F.getDenormalMode(EltTy->getFltSemantics());
3536
3537 Known = KnownFPClass::frexp_mant(KnownSrc, Mode);
3538 Known.KnownFPClasses &= DemandedMask;
3539
3540 if (Constant *SingleVal =
3541 getFPClassConstant(VTy, Known.KnownFPClasses,
3542 /*IsCanonicalizing=*/true))
3543 return SingleVal;
3544
3545 if (Known.isKnownAlways(fcInf | fcNan))
3546 return II->getArgOperand(0);
3547
3548 return nullptr;
3549 }
3550 default:
3551 break;
3552 }
3553 }
3554 }
3555
3556 KnownFPClass KnownSrc;
3557 if (SimplifyDemandedFPClass(I, 0, DemandedMask, KnownSrc, SQ, Depth + 1))
3558 return I;
3559 Known = KnownSrc;
3560 break;
3561 }
3562 case Instruction::PHI: {
3563 const unsigned PhiRecursionLimit = MaxAnalysisRecursionDepth - 2;
3564 if (Depth >= PhiRecursionLimit)
3565 break;
3566
3568 SimplifyQuery ContextSQ = SQ.getWithoutCondContext();
3569
3570 bool First = true;
3571 bool Changed = false;
3572 for (unsigned I = 0, E = P->getNumIncomingValues(); I != E; ++I) {
3573 // TODO: Better support for self recursive phi
3574 BasicBlock *PredBB = P->getIncomingBlock(I);
3575 const Instruction *CtxI = PredBB->getTerminator();
3576
3577 // Attempt to simplify all incoming edges at a time. If we simplify one
3578 // incoming edge, the phi may fold away, losing information on a later
3579 // visit.
3580 KnownFPClass KnownSrc;
3582 P, P->getOperandNumForIncomingValue(I), DemandedMask, KnownSrc,
3583 ContextSQ.getWithInstruction(CtxI), Depth + 1)) {
3584 // Fixup the other block references to the simplified value.
3585 P->setIncomingValueForBlock(PredBB, P->getIncomingValue(I));
3586 Changed = true;
3587 }
3588
3589 if (First) {
3590 Known = KnownSrc;
3591 First = false;
3592 } else {
3593 Known |= KnownSrc;
3594 }
3595 }
3596
3597 if (Changed)
3598 return P;
3599
3600 Known.knownNot(~DemandedMask);
3601 break;
3602 }
3603 default:
3604 Known = computeKnownFPClass(I, DemandedMask, SQ, Depth + 1);
3605 Known.knownNot(~DemandedMask);
3606 break;
3607 }
3608
3609 return getFPClassConstant(VTy, Known.KnownFPClasses);
3610}
3611
3612/// Helper routine of SimplifyDemandedUseFPClass. It computes Known
3613/// floating-point classes. It also tries to handle simplifications that can be
3614/// done based on DemandedMask, but without modifying the Instruction.
3616 Instruction *I, FPClassTest DemandedMask, KnownFPClass &Known,
3617 const SimplifyQuery &SQ, unsigned Depth) {
3618 FastMathFlags FMF;
3619 if (auto *FPOp = dyn_cast<FPMathOperator>(I)) {
3620 FMF = FPOp->getFastMathFlags();
3621 DemandedMask = adjustDemandedMaskFromFlags(DemandedMask, FMF);
3622 }
3623
3624 switch (I->getOpcode()) {
3625 case Instruction::Select: {
3626 // TODO: Can we infer which side it came from based on adjusted result
3627 // class?
3628 KnownFPClass KnownRHS =
3629 computeKnownFPClass(I->getOperand(2), DemandedMask, SQ, Depth + 1);
3630 if (KnownRHS.isKnownNever(DemandedMask))
3631 return I->getOperand(1);
3632
3633 KnownFPClass KnownLHS =
3634 computeKnownFPClass(I->getOperand(1), DemandedMask, SQ, Depth + 1);
3635 if (KnownLHS.isKnownNever(DemandedMask))
3636 return I->getOperand(2);
3637
3638 adjustKnownFPClassForSelectArm(KnownLHS, I->getOperand(0), I->getOperand(1),
3639 /*Invert=*/false, SQ, Depth);
3640 adjustKnownFPClassForSelectArm(KnownRHS, I->getOperand(0), I->getOperand(2),
3641 /*Invert=*/true, SQ, Depth);
3642 Known = KnownLHS.intersectWith(KnownRHS);
3643 Known.knownNot(~DemandedMask);
3644 break;
3645 }
3646 case Instruction::FNeg: {
3647 // Special case fneg(fabs(x))
3648 Value *Src;
3649
3650 Value *FNegSrc = I->getOperand(0);
3651 if (!match(FNegSrc, m_FAbs(m_Value(Src)))) {
3652 Known = computeKnownFPClass(I, DemandedMask, SQ, Depth + 1);
3653 break;
3654 }
3655
3656 KnownFPClass KnownSrc = computeKnownFPClass(Src, fcAllFlags, SQ, Depth + 1);
3657
3658 FastMathFlags FabsFMF = cast<FPMathOperator>(FNegSrc)->getFastMathFlags();
3659 FPClassTest ThisDemandedMask =
3660 adjustDemandedMaskFromFlags(DemandedMask, FabsFMF);
3661
3662 // We cannot apply the NSZ logic with multiple uses. We can apply it if the
3663 // inner fabs has it and this is the only use.
3664 if (Value *Simplified = simplifyDemandedFPClassFnegFabs(
3665 Known, Src, ThisDemandedMask, KnownSrc, /*NSZ=*/false))
3666 return Simplified;
3667 break;
3668 }
3669 case Instruction::Call: {
3670 const CallInst *CI = cast<CallInst>(I);
3671 const Intrinsic::ID IID = CI->getIntrinsicID();
3672 switch (IID) {
3673 case Intrinsic::fabs: {
3674 Value *Src = CI->getArgOperand(0);
3675 KnownFPClass KnownSrc =
3677
3678 // NSZ cannot be applied in multiple use case (maybe it could if all uses
3679 // were known nsz)
3680 if (Value *Simplified = simplifyDemandedFPClassFabs(
3681 Known, CI->getArgOperand(0), DemandedMask, KnownSrc,
3682 /*NSZ=*/false))
3683 return Simplified;
3684 break;
3685 }
3686 case Intrinsic::copysign: {
3687 Value *Mag = CI->getArgOperand(0);
3688 Value *Sign = CI->getArgOperand(1);
3689 KnownFPClass KnownMag =
3691
3692 // Rule out some cases by magnitude, which may help prove the sign bit is
3693 // one direction or the other.
3694 KnownMag.knownNot(~llvm::unknown_sign(DemandedMask));
3695
3696 // Cannot use nsz in the multiple use case.
3697 if (Value *Simplified = simplifyDemandedFPClassCopysignMag(
3698 Mag, DemandedMask, KnownMag, /*NSZ=*/false))
3699 return Simplified;
3700
3701 KnownFPClass KnownSign =
3703
3704 if (FMF.noInfs())
3705 KnownSign.knownNot(fcInf);
3706 if (FMF.noNaNs())
3707 KnownSign.knownNot(fcNan);
3708
3709 if (KnownSign.SignBit && KnownMag.SignBit &&
3710 *KnownSign.SignBit == *KnownMag.SignBit)
3711 return Mag;
3712
3713 Known = KnownFPClass::copysign(KnownMag, KnownSign);
3714 break;
3715 }
3716 case Intrinsic::maxnum:
3717 case Intrinsic::minnum:
3718 case Intrinsic::maximum:
3719 case Intrinsic::minimum:
3720 case Intrinsic::maximumnum:
3721 case Intrinsic::minimumnum: {
3723 DemandedMask, SQ, Depth + 1);
3724 if (KnownRHS.isUnknown())
3725 return nullptr;
3726
3728 DemandedMask, SQ, Depth + 1);
3729
3730 // Cannot use NSZ in the multiple use case.
3731 return simplifyDemandedFPClassMinMax(Known, IID, CI, DemandedMask,
3732 KnownLHS, KnownRHS, F,
3733 /*NSZ=*/false);
3734 }
3735 default:
3736 break;
3737 }
3738
3739 [[fallthrough]];
3740 }
3741 default:
3742 Known = computeKnownFPClass(I, DemandedMask, SQ, Depth + 1);
3743 Known.knownNot(~DemandedMask);
3744 break;
3745 }
3746
3747 return getFPClassConstant(I->getType(), Known.KnownFPClasses);
3748}
3749
3751 FPClassTest DemandedMask,
3753 const SimplifyQuery &SQ,
3754 unsigned Depth) {
3755 Use &U = I->getOperandUse(OpNo);
3756 Value *V = U.get();
3757 Type *VTy = V->getType();
3758
3759 if (DemandedMask == fcNone) {
3760 if (isa<PoisonValue>(V))
3761 return false;
3763 return true;
3764 }
3765
3766 // Handle constant
3768 if (!VInst) {
3769 // Handle constants and arguments
3771 Known.knownNot(~DemandedMask);
3772
3773 if (Known.KnownFPClasses == fcNone) {
3774 if (isa<PoisonValue>(V))
3775 return false;
3777 return true;
3778 }
3779
3780 // Do not try to replace values which are already constants (unless we are
3781 // folding to poison). Doing so could promote poison elements to non-poison
3782 // constants.
3783 if (isa<Constant>(V))
3784 return false;
3785
3786 Value *FoldedToConst = getFPClassConstant(VTy, Known.KnownFPClasses);
3787 if (!FoldedToConst || FoldedToConst == V)
3788 return false;
3789
3790 replaceUse(U, FoldedToConst);
3791 return true;
3792 }
3793
3795 Known.knownNot(~DemandedMask);
3796 return false;
3797 }
3798
3799 Value *NewVal;
3800
3801 if (VInst->hasOneUse()) {
3802 // If the instruction has one use, we can directly simplify it.
3803 NewVal = SimplifyDemandedUseFPClass(VInst, DemandedMask, Known, SQ, Depth);
3804 } else {
3805 // If there are multiple uses of this instruction, then we can simplify
3806 // VInst to some other value, but not modify the instruction.
3807 NewVal = SimplifyMultipleUseDemandedFPClass(VInst, DemandedMask, Known, SQ,
3808 Depth);
3809 }
3810
3811 if (!NewVal)
3812 return false;
3813 if (Instruction *OpInst = dyn_cast<Instruction>(U))
3814 salvageDebugInfo(*OpInst);
3815
3816 replaceUse(U, NewVal);
3817 return true;
3818}
assert(UImm &&(UImm !=~static_cast< T >(0)) &&"Invalid immediate!")
unsigned uint64_t
AMDGPU Register Bank Select
MachineBasicBlock MachineBasicBlock::iterator DebugLoc DL
#define X(NUM, ENUM, NAME)
Definition ELF.h:857
static GCRegistry::Add< ShadowStackGC > C("shadow-stack", "Very portable GC for uncooperative code generators")
#define DEBUG_TYPE
Hexagon Common GEP
This file provides internal interfaces used to implement the InstCombine.
static cl::opt< unsigned > SimplifyDemandedVectorEltsDepthLimit("instcombine-simplify-vector-elts-depth", cl::desc("Depth limit when simplifying vector instructions and their operands"), cl::Hidden, cl::init(10))
static Constant * getFPClassConstant(Type *Ty, FPClassTest Mask, bool IsCanonicalizing=false)
For floating-point classes that resolve to a single bit pattern, return that value.
static cl::opt< bool > VerifyKnownBits("instcombine-verify-known-bits", cl::desc("Verify that computeKnownBits() and " "SimplifyDemandedBits() are consistent"), cl::Hidden, cl::init(false))
static unsigned getBitWidth(Type *Ty, const DataLayout &DL)
Returns the bitwidth of the given scalar or pointer type.
static Value * simplifyDemandedFPClassFabs(KnownFPClass &Known, Value *Src, FPClassTest DemandedMask, KnownFPClass KnownSrc, bool NSZ)
Perform multiple-use aware simplfications for fabs(Src).
static Value * simplifyDemandedUseFPClassFPTrunc(InstCombinerImpl &IC, Instruction &I, FastMathFlags FMF, FPClassTest DemandedMask, KnownFPClass &Known, const SimplifyQuery &SQ, unsigned Depth)
static Value * simplifyDemandedFPClassFnegFabs(KnownFPClass &Known, Value *Src, FPClassTest DemandedMask, KnownFPClass KnownSrc, bool NSZ)
Perform multiple-use aware simplfications for fneg(fabs(Src)).
static bool ShrinkDemandedConstant(Instruction *I, unsigned OpNo, const APInt &Demanded)
Check to see if the specified operand of the specified instruction is a constant integer.
static Value * simplifyShiftSelectingPackedElement(Instruction *I, const APInt &DemandedMask, InstCombinerImpl &IC, unsigned Depth)
Let N = 2 * M.
static Value * simplifyDemandedFPClassMinMax(KnownFPClass &Known, Intrinsic::ID IID, const CallInst *CI, FPClassTest DemandedMask, KnownFPClass KnownLHS, KnownFPClass KnownRHS, const Function &F, bool NSZ)
static bool canSkipDemandedEltsInInsertChain(InsertElementInst &IE, unsigned VWidth, unsigned DepthLimit)
Return true if the top-level all-lanes demanded-elements query can be skipped for an intermediate ins...
static Value * simplifyDemandedFPClassCopysignMag(Value *MagSrc, FPClassTest DemandedMask, KnownFPClass KnownSrc, bool NSZ)
static FPClassTest adjustDemandedMaskFromFlags(FPClassTest DemandedMask, FastMathFlags FMF)
static FastMathFlags inferFastMathValueFlags(FastMathFlags FMF, FPClassTest ValidResults, ArrayRef< KnownFPClass > Known)
Try to set an inferred no-nans or no-infs in FMF.
static Value * simplifyDemandedFPClassResult(Instruction *FPOp, FastMathFlags FMF, FPClassTest DemandedMask, KnownFPClass &Known, ArrayRef< KnownFPClass > KnownSrcs)
Apply epilog fixups to a floating-point intrinsic.
This file provides the interface for the instcombine pass implementation.
#define F(x, y, z)
Definition MD5.cpp:54
#define I(x, y, z)
Definition MD5.cpp:57
uint64_t IntrinsicInst * II
#define P(N)
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")))
This file implements the SmallBitVector class.
static TableGen::Emitter::Opt Y("gen-skeleton-entry", EmitSkeleton, "Generate example skeleton entry")
static unsigned getBitWidth(Type *Ty, const DataLayout &DL)
Returns the bitwidth of the given scalar or pointer type.
static APFloat getOne(const fltSemantics &Sem, bool Negative=false)
Factory for Positive and Negative One.
Definition APFloat.h:1192
Class for arbitrary precision integers.
Definition APInt.h:78
static APInt getAllOnes(unsigned numBits)
Return an APInt of a specified width with all bits set.
Definition APInt.h:231
void clearBit(unsigned BitPosition)
Set a given bit to 0.
Definition APInt.h:1427
static APInt getSignMask(unsigned BitWidth)
Get the SignMask for a specific bit width.
Definition APInt.h:226
uint64_t getZExtValue() const
Get zero extended value.
Definition APInt.h:1561
void setHighBits(unsigned hiBits)
Set the top hiBits bits.
Definition APInt.h:1412
unsigned popcount() const
Count the number of bits set.
Definition APInt.h:1691
LLVM_ABI APInt zextOrTrunc(unsigned width) const
Zero extend or truncate to width.
Definition APInt.cpp:1077
unsigned getActiveBits() const
Compute the number of active bits in the value.
Definition APInt.h:1533
LLVM_ABI APInt trunc(unsigned width) const
Truncate to new width.
Definition APInt.cpp:969
void setBit(unsigned BitPosition)
Set the given bit to 1 whose position is given as "bitPosition".
Definition APInt.h:1351
bool isAllOnes() const
Determine if all bits are set. This is true for zero-width values.
Definition APInt.h:368
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:1693
void setSignBit()
Set the sign bit to 1.
Definition APInt.h:1361
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
void clearAllBits()
Set every bit to 0.
Definition APInt.h:1417
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
void clearLowBits(unsigned loBits)
Set bottom loBits bits to 0.
Definition APInt.h:1456
uint64_t getLimitedValue(uint64_t Limit=UINT64_MAX) const
If this value is smaller than the specified limit, return it, otherwise return the limit value.
Definition APInt.h:472
APInt ashr(unsigned ShiftAmt) const
Arithmetic right-shift function.
Definition APInt.h:830
APInt shl(unsigned shiftAmt) const
Left-shift function.
Definition APInt.h:876
bool isSubsetOf(const APInt &RHS) const
This operation checks that all bits set in this APInt are also set in RHS.
Definition APInt.h:1262
bool isPowerOf2() const
Check if this APInt's value is a power of two greater than zero.
Definition APInt.h:437
static APInt getLowBitsSet(unsigned numBits, unsigned loBitsSet)
Constructs an APInt value that has the bottom loBitsSet bits set.
Definition APInt.h:303
static APInt getHighBitsSet(unsigned numBits, unsigned hiBitsSet)
Constructs an APInt value that has the top hiBitsSet bits set.
Definition APInt.h:293
bool isIntN(unsigned N) const
Check if this APInt has an N-bits unsigned integer value.
Definition APInt.h:429
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
bool uge(const APInt &RHS) const
Unsigned greater or equal comparison.
Definition APInt.h:1226
Represent a constant reference to an array (0 or more elements consecutively in memory),...
Definition ArrayRef.h:40
LLVM Basic Block Representation.
Definition BasicBlock.h:62
const Instruction * getTerminator() const LLVM_READONLY
Returns the terminator instruction; assumes that the block is well-formed.
Definition BasicBlock.h:237
BinaryOps getOpcode() const
Definition InstrTypes.h:409
Value * getArgOperand(unsigned i) const
LLVM_ABI Intrinsic::ID getIntrinsicID() const
Returns the intrinsic ID of the intrinsic called or Intrinsic::not_intrinsic if the called function i...
This class represents a function call, abstracting a target machine's calling convention.
static CallInst * Create(FunctionType *Ty, Value *F, const Twine &NameStr="", InsertPosition InsertBefore=nullptr)
This is the base class for all instructions that perform data casts.
Definition InstrTypes.h:512
@ FCMP_UEQ
1 0 0 1 True if unordered or equal
Definition InstrTypes.h:751
static LLVM_ABI ConstantFP * getZero(Type *Ty, bool Negative=false)
static LLVM_ABI ConstantFP * getQNaN(Type *Ty, bool Negative=false, APInt *Payload=nullptr)
static LLVM_ABI ConstantFP * getInfinity(Type *Ty, bool Negative=false)
This is the shared class of boolean and integer constants.
Definition Constants.h:87
uint64_t getZExtValue() const
Return the constant as a 64-bit unsigned integer value after it has been zero extended as appropriate...
Definition Constants.h:168
const APInt & getValue() const
Return the constant as an APInt value reference.
Definition Constants.h:159
static LLVM_ABI Constant * get(ArrayRef< Constant * > V)
This is an important base class in LLVM.
Definition Constant.h:43
static LLVM_ABI Constant * getIntegerValue(Type *Ty, const APInt &V)
Return the value for an integer or pointer constant, or a vector thereof, with the given scalar 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)
LLVM_ABI bool isOneValue() const
Returns true if the value is one.
Definition Constants.cpp:89
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...
A parsed version of the target data layout string in and methods for querying it.
Definition DataLayout.h:64
Convenience struct for specifying and reasoning about fast-math flags.
Definition FMF.h:23
bool noSignedZeros() const
Definition FMF.h:67
bool noInfs() const
Definition FMF.h:66
void setNoSignedZeros(bool B=true)
Definition FMF.h:84
void setNoNaNs(bool B=true)
Definition FMF.h:78
bool noNaNs() const
Definition FMF.h:65
void setNoInfs(bool B=true)
Definition FMF.h:81
an instruction for type-safe pointer arithmetic to access elements of arrays and structs
Value * CreateICmpEQ(Value *LHS, Value *RHS, const Twine &Name="")
Definition IRBuilder.h:2385
LLVM_ABI Value * CreateSelectWithUnknownProfile(Value *C, Value *True, Value *False, StringRef PassName, const Twine &Name="")
void SetInsertPoint(BasicBlock *TheBB)
This specifies that created instructions should be appended to the end of the specified block.
Definition IRBuilder.h:181
This instruction inserts a single (scalar) element into a VectorType value.
static InsertElementInst * Create(Value *Vec, Value *NewElt, Value *Idx, const Twine &NameStr="", InsertPosition InsertBefore=nullptr)
bool SimplifyDemandedInstructionFPClass(Instruction &Inst)
Value * SimplifyDemandedVectorElts(Value *V, APInt DemandedElts, APInt &PoisonElts, unsigned Depth=0, bool AllowMultipleUsers=false) override
The specified value produces a vector with any number of elements.
Value * SimplifyDemandedUseFPClass(Instruction *I, FPClassTest DemandedMask, KnownFPClass &Known, const SimplifyQuery &Q, unsigned Depth=0)
Attempts to replace V with a simpler value based on the demanded floating-point classes.
bool SimplifyDemandedBits(Instruction *I, unsigned Op, const APInt &DemandedMask, KnownBits &Known, const SimplifyQuery &Q, unsigned Depth=0) override
This form of SimplifyDemandedBits simplifies the specified instruction operand if possible,...
std::optional< std::pair< Intrinsic::ID, SmallVector< Value *, 3 > > > convertOrOfShiftsToFunnelShift(Instruction &Or)
Value * SimplifyMultipleUseDemandedFPClass(Instruction *I, FPClassTest DemandedMask, KnownFPClass &Known, const SimplifyQuery &Q, unsigned Depth)
Helper routine of SimplifyDemandedUseFPClass.
Value * simplifyShrShlDemandedBits(Instruction *Shr, const APInt &ShrOp1, Instruction *Shl, const APInt &ShlOp1, const APInt &DemandedMask, KnownBits &Known)
Helper routine of SimplifyDemandedUseBits.
bool SimplifyDemandedFPClass(Instruction *I, unsigned Op, FPClassTest DemandedMask, KnownFPClass &Known, const SimplifyQuery &Q, unsigned Depth=0)
Value * SimplifyDemandedUseBits(Instruction *I, const APInt &DemandedMask, KnownBits &Known, const SimplifyQuery &Q, unsigned Depth=0)
Attempts to replace I with a simpler value based on the demanded bits.
bool SimplifyDemandedInstructionBits(Instruction &Inst)
Tries to simplify operands to an integer instruction based on its demanded bits.
Value * SimplifyMultipleUseDemandedBits(Instruction *I, const APInt &DemandedMask, KnownBits &Known, const SimplifyQuery &Q, unsigned Depth=0)
Helper routine of SimplifyDemandedUseBits.
SimplifyQuery SQ
unsigned ComputeNumSignBits(const Value *Op, const Instruction *CxtI=nullptr, unsigned Depth=0) const
Instruction * replaceInstUsesWith(Instruction &I, Value *V)
A combiner-aware RAUW-like routine.
void replaceUse(Use &U, Value *NewValue)
Replace use and add the previously used value to the worklist.
InstructionWorklist & Worklist
A worklist of the instructions that need to be simplified.
Instruction * InsertNewInstWith(Instruction *New, BasicBlock::iterator Old)
Same as InsertNewInstBefore, but also sets the debug loc.
const DataLayout & DL
void computeKnownBits(const Value *V, KnownBits &Known, const Instruction *CxtI, unsigned Depth=0) const
LLVM_ABI std::optional< Value * > targetSimplifyDemandedVectorEltsIntrinsic(IntrinsicInst &II, APInt DemandedElts, APInt &UndefElts, APInt &UndefElts2, APInt &UndefElts3, std::function< void(Instruction *, unsigned, APInt, APInt &)> SimplifyAndSetOp)
Instruction * replaceOperand(Instruction &I, unsigned OpNum, Value *V)
Replace operand of instruction and add old operand to the worklist.
DominatorTree & DT
LLVM_ABI std::optional< Value * > targetSimplifyDemandedUseBitsIntrinsic(IntrinsicInst &II, APInt DemandedMask, KnownBits &Known, bool &KnownBitsComputed)
LLVM_ABI void dropUBImplyingAttrsAndMetadata(ArrayRef< unsigned > Keep={})
Drop any attributes or metadata that can cause immediate undefined behavior.
LLVM_ABI bool hasNoUnsignedWrap() const LLVM_READONLY
Determine whether the no unsigned wrap flag is set.
LLVM_ABI bool hasNoSignedWrap() const LLVM_READONLY
Determine whether the no signed wrap flag is set.
LLVM_ABI bool isCommutative() const LLVM_READONLY
Return true if the instruction is commutative:
LLVM_ABI void setFastMathFlags(FastMathFlags FMF)
Convenience function for setting multiple fast-math flags on this instruction, which must be an opera...
unsigned getOpcode() const
Returns a member of one of the enums like Instruction::Add.
LLVM_ABI void setIsExact(bool b=true)
Set or clear the exact flag on this instruction, which must be an operator which supports this flag.
bool isShift() const
bool isIntDivRem() const
A wrapper class for inspecting calls to intrinsic functions.
bool hasNoSignedWrap() const
Test whether this operation is known to never undergo signed overflow, aka the nsw property.
Definition Operator.h:113
bool hasNoUnsignedWrap() const
Test whether this operation is known to never undergo unsigned overflow, aka the nuw property.
Definition Operator.h:107
static LLVM_ABI PoisonValue * get(Type *T)
Static factory methods - Return an 'poison' object of the specified type.
This class represents the LLVM 'select' instruction.
const Value * getCondition() const
This is a 'bitvector' (really, a variable-sized bit array), optimized for the case when the array is ...
SmallBitVector & set()
bool test(unsigned Idx) const
Returns true if bit Idx is set.
void push_back(const T &Elt)
This is a 'vector' (really, a variable-sized array), optimized for the case when the array is small.
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 isVectorTy() const
True if this is an instance of VectorType.
Definition Type.h:288
bool isIntOrIntVectorTy() const
Return true if this is an integer type or a vector of integer types.
Definition Type.h:263
Type * getScalarType() const
If this is a vector type, return the element type, otherwise return 'this'.
Definition Type.h:368
bool isMultiUnitFPType() const
Returns true if this is a floating-point type that is an unevaluated sum of multiple floating-point u...
Definition Type.h:195
LLVM_ABI unsigned getScalarSizeInBits() const LLVM_READONLY
If this is a vector type, return the getPrimitiveSizeInBits value for the element type.
Definition Type.cpp:232
bool isIEEELikeFPTy() const
Return true if this is a well-behaved IEEE-like type, which has a IEEE compatible layout,...
Definition Type.h:172
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
void setOperand(unsigned i, Value *Val)
Definition User.h:212
Value * getOperand(unsigned i) const
Definition User.h:207
LLVM Value Representation.
Definition Value.h:75
Type * getType() const
All values are typed, get the type of this value.
Definition Value.h:255
bool hasOneUse() const
Return true if there is exactly one use of this value.
Definition Value.h:439
iterator_range< user_iterator > users()
Definition Value.h:426
bool hasUseList() const
Check if this Value has a use-list.
Definition Value.h:344
LLVM_ABI StringRef getName() const
Return a constant reference to the value's name.
Definition Value.cpp:319
LLVM_ABI void takeName(Value *V)
Transfer the name from V to this value.
Definition Value.cpp:400
Base class of all SIMD vector types.
This class represents zero extension of integer types.
self_iterator getIterator()
Definition ilist_node.h:123
Changed
#define llvm_unreachable(msg)
Marks that the current location is not supposed to be reachable.
LLVM_ABI Function * getOrInsertDeclaration(Module *M, ID id, ArrayRef< Type * > OverloadTys={})
Look up the Function declaration of the intrinsic id in the Module M.
BinaryOp_match< SrcTy, SpecificConstantMatch, TargetOpcode::G_XOR, true > m_Not(const SrcTy &&Src)
Matches a register not-ed by a G_XOR.
OneUse_match< SubPat > m_OneUse(const SubPat &SP)
cst_pred_ty< is_lowbit_mask > m_LowBitMask()
Match an integer or vector with only the low bit(s) set.
PtrAdd_match< PointerOpTy, OffsetOpTy > m_PtrAdd(const PointerOpTy &PointerOp, const OffsetOpTy &OffsetOp)
Matches GEP with i8 source element type.
BinaryOp_match< LHS, RHS, Instruction::Add > m_Add(const LHS &L, const RHS &R)
BinaryOp_match< LHS, RHS, Instruction::AShr > m_AShr(const LHS &L, const RHS &R)
auto m_Poison()
Match an arbitrary poison constant.
ap_match< APInt > m_APInt(const APInt *&Res)
Match a ConstantInt or splatted ConstantVector, binding the specified pointer to the contained APInt.
specific_intval< false > m_SpecificInt(const APInt &V)
Match a specific integer value or vector with all elements equal to the value.
bool match(Val *V, const Pattern &P)
specificval_ty m_Specific(const Value *V)
Match if we have a specific specified value.
BinOpPred_match< LHS, RHS, is_right_shift_op > m_Shr(const LHS &L, const RHS &R)
Matches logical shift operations.
TwoOps_match< Val_t, Idx_t, Instruction::ExtractElement > m_ExtractElt(const Val_t &Val, const Idx_t &Idx)
Matches ExtractElementInst.
auto m_BinOp()
Match an arbitrary binary operation and ignore it.
ExtractValue_match< Ind, Val_t > m_ExtractValue(const Val_t &V)
Match a single index ExtractValue instruction.
auto m_Value()
Match an arbitrary value and ignore it.
auto m_Ctpop(const Opnd0 &Op0)
BinaryOp_match< LHS, RHS, Instruction::Mul > m_Mul(const LHS &L, const RHS &R)
TwoOps_match< V1_t, V2_t, Instruction::ShuffleVector > m_Shuffle(const V1_t &v1, const V2_t &v2)
Matches ShuffleVectorInst independently of mask value.
CastInst_match< OpTy, ZExtInst > m_ZExt(const OpTy &Op)
Matches ZExt.
match_immconstant_ty m_ImmConstant()
Match an arbitrary immediate Constant and ignore it.
DisjointOr_match< LHS, RHS, true > m_c_DisjointOr(const LHS &L, const RHS &R)
BinaryOp_match< LHS, RHS, Instruction::Add, true > m_c_Add(const LHS &L, const RHS &R)
Matches a Add with LHS and RHS in either order.
auto m_Intrinsic(const Ts &...Ops)
Match intrinsic calls like this: m_Intrinsic<Intrinsic::fabs>(m_Value(X))
auto m_FAbs(const Opnd0 &Op0)
AnyBinaryOp_match< LHS, RHS, true > m_c_BinOp(const LHS &L, const RHS &R)
Matches a BinaryOperator with LHS and RHS in either order.
BinaryOp_match< LHS, RHS, Instruction::LShr > m_LShr(const LHS &L, const RHS &R)
CmpClass_match< LHS, RHS, ICmpInst > m_ICmp(CmpPredicate &Pred, const LHS &L, const RHS &R)
BinaryOp_match< LHS, RHS, Instruction::Shl > m_Shl(const LHS &L, const RHS &R)
auto m_Undef()
Match an arbitrary undef constant.
CastInst_match< OpTy, SExtInst > m_SExt(const OpTy &Op)
Matches SExt.
is_zero m_Zero()
Match any null constant or a vector with all elements equal to 0.
auto m_ConstantInt()
Match an arbitrary ConstantInt and ignore it.
initializer< Ty > init(const Ty &Val)
This is an optimization pass for GlobalISel generic memory operations.
LLVM_ABI bool haveNoCommonBitsSet(const WithCache< const Value * > &LHSCache, const WithCache< const Value * > &RHSCache, const SimplifyQuery &SQ)
Return true if LHS and RHS have no common bits set.
LLVM_ABI KnownFPClass computeKnownFPClass(const Value *V, const APInt &DemandedElts, FPClassTest InterestedClasses, const SimplifyQuery &SQ, unsigned Depth=0)
Determine which floating-point classes are valid for V, and return them in KnownFPClass bit sets.
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 void computeKnownBitsFromContext(const Value *V, KnownBits &Known, const SimplifyQuery &Q, unsigned Depth=0)
Merge bits known from context-dependent facts into Known.
@ Known
Known to have no common set bits.
@ Undef
Value of the register doesn't matter.
decltype(auto) dyn_cast(const From &Val)
dyn_cast<X> - Return the argument parameter cast to the specified type.
Definition Casting.h:643
int countr_one(T Value)
Count the number of ones from the least significant bit to the first zero bit.
Definition bit.h:315
LLVM_ABI void salvageDebugInfo(const MachineRegisterInfo &MRI, MachineInstr &MI)
Assuming the instruction MI is going to be deleted, attempt to salvage debug users of MI by writing t...
Definition Utils.cpp:1675
constexpr T alignDown(U Value, V Align, W Skew=0)
Returns the largest unsigned integer less than or equal to Value and is Skew mod Align.
Definition MathExtras.h:541
constexpr bool isPowerOf2_64(uint64_t Value)
Return true if the argument is a power of two > 0 (64 bit edition.)
Definition MathExtras.h:285
gep_type_iterator gep_type_end(const User *GEP)
constexpr auto equal_to(T &&Arg)
Functor variant of std::equal_to that can be used as a UnaryPredicate in functional algorithms like a...
Definition STLExtras.h:2173
LLVM_ABI bool isGuaranteedNotToBeUndef(const Value *V, AssumptionCache *AC=nullptr, const Instruction *CtxI=nullptr, const DominatorTree *DT=nullptr, unsigned Depth=0)
Returns true if V cannot be undef, but may be poison.
LLVM_ABI bool cannotOrderStrictlyLess(FPClassTest LHS, FPClassTest RHS, bool OrderedZeroSign=false)
Returns true if all values in LHS must be greater than or equal to those in RHS.
LLVM_ABI bool cannotOrderStrictlyGreater(FPClassTest LHS, FPClassTest RHS, bool OrderedZeroSign=false)
Returns true if all values in LHS must be less than or equal to those in RHS.
constexpr unsigned MaxAnalysisRecursionDepth
LLVM_ABI void adjustKnownBitsForSelectArm(KnownBits &Known, Value *Cond, Value *Arm, bool Invert, const SimplifyQuery &Q, unsigned Depth=0)
Adjust Known for the given select Arm to include information from the select Cond.
LLVM_ABI FPClassTest fneg(FPClassTest Mask)
Return the test mask which returns true if the value's sign bit is flipped.
FPClassTest
Floating-point class tests, supported by 'is_fpclass' intrinsic.
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 void adjustKnownFPClassForSelectArm(KnownFPClass &Known, Value *Cond, Value *Arm, bool Invert, const SimplifyQuery &Q, unsigned Depth=0)
Adjust Known for the given select Arm to include information from the select Cond.
LLVM_ABI FPClassTest inverse_fabs(FPClassTest Mask)
Return the test mask which returns true after fabs is applied to the value.
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 Constant * ConstantFoldBinaryOpOperands(unsigned Opcode, Constant *LHS, Constant *RHS, const DataLayout &DL)
Attempt to constant fold a binary operation with the specified operands.
constexpr int PoisonMaskElem
LLVM_ABI raw_fd_ostream & errs()
This returns a reference to a raw_ostream for standard error.
@ First
Helpers to iterate all locations in the MemoryEffectsBase class.
Definition ModRef.h:74
@ Mul
Product of integers.
@ Xor
Bitwise or logical XOR of integers.
LLVM_ABI FPClassTest unknown_sign(FPClassTest Mask)
Return the test mask which returns true if the value could have the same set of classes,...
DWARFExpression::Operation Op
constexpr unsigned BitWidth
LLVM_ABI KnownBits analyzeKnownBitsFromAndXorOr(const Operator *I, const KnownBits &KnownLHS, const KnownBits &KnownRHS, const SimplifyQuery &SQ, unsigned Depth=0)
Using KnownBits LHS/RHS produce the known bits for logic op (and/xor/or).
decltype(auto) cast(const From &Val)
cast<X> - Return the argument parameter cast to the specified type.
Definition Casting.h:559
gep_type_iterator gep_type_begin(const User *GEP)
unsigned Log2(Align A)
Returns the log2 of the alignment.
Definition Alignment.h:197
This struct is a compact representation of a valid (non-zero power of two) alignment.
Definition Alignment.h:39
Represent subnormal handling kind for floating point instruction inputs and outputs.
static constexpr DenormalMode getPreserveSign()
static constexpr DenormalMode getIEEE()
static KnownBits makeConstant(const APInt &C)
Create known bits from a known constant.
Definition KnownBits.h:315
KnownBits anyextOrTrunc(unsigned BitWidth) const
Return known bits for an "any" extension or truncation of the value we're tracking.
Definition KnownBits.h:190
bool isNonNegative() const
Returns true if this value is known to be non-negative.
Definition KnownBits.h:106
void makeNonNegative()
Make this value non-negative.
Definition KnownBits.h:125
static LLVM_ABI KnownBits ashr(const KnownBits &LHS, const KnownBits &RHS, bool ShAmtNonZero=false, bool Exact=false)
Compute known bits for ashr(LHS, RHS).
unsigned getBitWidth() const
Get the bit width of this value.
Definition KnownBits.h:44
static KnownBits add(const KnownBits &LHS, const KnownBits &RHS, bool NSW=false, bool NUW=false, bool SelfAdd=false)
Compute knownbits resulting from addition of LHS and RHS.
Definition KnownBits.h:361
KnownBits sext(unsigned BitWidth) const
Return known bits for a sign extension of the value we're tracking.
Definition KnownBits.h:184
KnownBits zextOrTrunc(unsigned BitWidth) const
Return known bits for a zero extension or truncation of the value we're tracking.
Definition KnownBits.h:200
APInt getMaxValue() const
Return the maximal unsigned value possible given these KnownBits.
Definition KnownBits.h:146
static LLVM_ABI KnownBits srem(const KnownBits &LHS, const KnownBits &RHS)
Compute known bits for srem(LHS, RHS).
static LLVM_ABI KnownBits udiv(const KnownBits &LHS, const KnownBits &RHS, bool Exact=false)
Compute known bits for udiv(LHS, RHS).
bool isNegative() const
Returns true if this value is known to be negative.
Definition KnownBits.h:103
static KnownBits sub(const KnownBits &LHS, const KnownBits &RHS, bool NSW=false, bool NUW=false)
Compute knownbits resulting from subtraction of LHS and RHS.
Definition KnownBits.h:376
static LLVM_ABI KnownBits shl(const KnownBits &LHS, const KnownBits &RHS, bool NUW=false, bool NSW=false, bool ShAmtNonZero=false)
Compute known bits for shl(LHS, RHS).
bool isKnownNeverInfOrNaN() const
Return true if it's known this can never be an infinity or nan.
FPClassTest KnownFPClasses
Floating-point classes the value could be one of.
bool isKnownNeverInfinity() const
Return true if it's known this can never be an infinity.
static constexpr FPClassTest OrderedGreaterThanZeroMask
static constexpr FPClassTest OrderedLessThanZeroMask
void knownNot(FPClassTest RuleOut)
static LLVM_ABI KnownFPClass fmul(const KnownFPClass &LHS, const KnownFPClass &RHS, DenormalMode Mode=DenormalMode::getDynamic())
Report known values for fmul.
static LLVM_ABI KnownFPClass fadd_self(const KnownFPClass &Src, DenormalMode Mode=DenormalMode::getDynamic())
Report known values for fadd x, x.
void copysign(const KnownFPClass &Sign)
static KnownFPClass square(const KnownFPClass &Src, DenormalMode Mode=DenormalMode::getDynamic())
static LLVM_ABI KnownFPClass fsub(const KnownFPClass &LHS, const KnownFPClass &RHS, DenormalMode Mode=DenormalMode::getDynamic())
Report known values for fsub.
bool isKnownNeverSubnormal() const
Return true if it's known this can never be a subnormal.
bool isKnownAlways(FPClassTest Mask) const
static LLVM_ABI KnownFPClass canonicalize(const KnownFPClass &Src, DenormalMode DenormMode=DenormalMode::getDynamic())
Apply the canonicalize intrinsic to this value.
LLVM_ABI bool isKnownNeverLogicalZero(DenormalMode Mode) const
Return true if it's known this can never be interpreted as a zero.
static LLVM_ABI KnownFPClass log(const KnownFPClass &Src, DenormalMode Mode=DenormalMode::getDynamic())
Propagate known class for log/log2/log10.
static LLVM_ABI KnownFPClass fdiv(const KnownFPClass &LHS, const KnownFPClass &RHS, DenormalMode Mode=DenormalMode::getDynamic())
Report known values for fdiv.
static LLVM_ABI KnownFPClass roundToIntegral(const KnownFPClass &Src, bool IsTrunc, bool IsMultiUnitFPType)
Propagate known class for rounding intrinsics (trunc, floor, ceil, rint, nearbyint,...
static LLVM_ABI KnownFPClass minMaxLike(const KnownFPClass &LHS, const KnownFPClass &RHS, MinMaxKind Kind, DenormalMode DenormMode=DenormalMode::getDynamic())
bool isUnknown() const
KnownFPClass intersectWith(const KnownFPClass &RHS) const
static LLVM_ABI KnownFPClass exp(const KnownFPClass &Src)
Report known values for exp, exp2 and exp10.
static LLVM_ABI KnownFPClass frexp_mant(const KnownFPClass &Src, DenormalMode Mode=DenormalMode::getDynamic())
Propagate known class for mantissa component of frexp.
std::optional< bool > SignBit
std::nullopt if the sign bit is unknown, true if the sign bit is definitely set or false if the sign ...
bool isKnownNeverNaN() const
Return true if it's known this can never be a nan.
bool isKnownNever(FPClassTest Mask) const
Return true if it's known this can never be one of the mask entries.
static LLVM_ABI KnownFPClass fpext(const KnownFPClass &KnownSrc, const fltSemantics &DstTy, const fltSemantics &SrcTy)
Propagate known class for fpext.
static LLVM_ABI KnownFPClass fma(const KnownFPClass &LHS, const KnownFPClass &RHS, const KnownFPClass &Addend, DenormalMode Mode=DenormalMode::getDynamic())
Report known values for fma.
static LLVM_ABI KnownFPClass fptrunc(const KnownFPClass &KnownSrc)
Propagate known class for fptrunc.
static LLVM_ABI KnownFPClass sqrt(const KnownFPClass &Src, DenormalMode Mode=DenormalMode::getDynamic())
Propagate known class for sqrt.
LLVM_ABI bool isKnownNeverLogicalPosZero(DenormalMode Mode) const
Return true if it's known this can never be interpreted as a positive zero.
bool cannotBeOrderedGreaterEqZero(DenormalMode Mode) const
Return true if it's know this can never be a negative value or a logical 0.
static LLVM_ABI KnownFPClass fadd(const KnownFPClass &LHS, const KnownFPClass &RHS, DenormalMode Mode=DenormalMode::getDynamic())
Report known values for fadd.
LLVM_ABI bool isKnownNeverLogicalNegZero(DenormalMode Mode) const
Return true if it's known this can never be interpreted as a negative zero.
static LLVM_ABI KnownFPClass fma_square(const KnownFPClass &Squared, const KnownFPClass &Addend, DenormalMode Mode=DenormalMode::getDynamic())
Report known values for fma squared, squared, addend.
static LLVM_ABI KnownFPClass ldexp(const KnownFPClass &Src, const APInt &ConstantRangeMin, const APInt &ConstantRangeMax, const fltSemantics &Flt, DenormalMode Mode=DenormalMode::getDynamic())
Propagate known class for ldexp, assuming the exponent is known to be within [ConstantRangeMin,...
Matching combinators.
const Instruction * CxtI
SimplifyQuery getWithInstruction(const Instruction *I) const