1 //===- InstCombineSelect.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 implements the visitSelect function. 10 // 11 //===----------------------------------------------------------------------===// 12 13 #include "InstCombineInternal.h" 14 #include "llvm/ADT/APInt.h" 15 #include "llvm/ADT/Optional.h" 16 #include "llvm/ADT/STLExtras.h" 17 #include "llvm/ADT/SmallVector.h" 18 #include "llvm/Analysis/AssumptionCache.h" 19 #include "llvm/Analysis/CmpInstAnalysis.h" 20 #include "llvm/Analysis/InstructionSimplify.h" 21 #include "llvm/Analysis/ValueTracking.h" 22 #include "llvm/IR/BasicBlock.h" 23 #include "llvm/IR/Constant.h" 24 #include "llvm/IR/Constants.h" 25 #include "llvm/IR/DerivedTypes.h" 26 #include "llvm/IR/IRBuilder.h" 27 #include "llvm/IR/InstrTypes.h" 28 #include "llvm/IR/Instruction.h" 29 #include "llvm/IR/Instructions.h" 30 #include "llvm/IR/IntrinsicInst.h" 31 #include "llvm/IR/Intrinsics.h" 32 #include "llvm/IR/Operator.h" 33 #include "llvm/IR/PatternMatch.h" 34 #include "llvm/IR/Type.h" 35 #include "llvm/IR/User.h" 36 #include "llvm/IR/Value.h" 37 #include "llvm/Support/Casting.h" 38 #include "llvm/Support/ErrorHandling.h" 39 #include "llvm/Support/KnownBits.h" 40 #include "llvm/Transforms/InstCombine/InstCombineWorklist.h" 41 #include "llvm/Transforms/InstCombine/InstCombiner.h" 42 #include <cassert> 43 #include <utility> 44 45 using namespace llvm; 46 using namespace PatternMatch; 47 48 #define DEBUG_TYPE "instcombine" 49 50 static Value *createMinMax(InstCombiner::BuilderTy &Builder, 51 SelectPatternFlavor SPF, Value *A, Value *B) { 52 CmpInst::Predicate Pred = getMinMaxPred(SPF); 53 assert(CmpInst::isIntPredicate(Pred) && "Expected integer predicate"); 54 return Builder.CreateSelect(Builder.CreateICmp(Pred, A, B), A, B); 55 } 56 57 /// Replace a select operand based on an equality comparison with the identity 58 /// constant of a binop. 59 static Instruction *foldSelectBinOpIdentity(SelectInst &Sel, 60 const TargetLibraryInfo &TLI, 61 InstCombinerImpl &IC) { 62 // The select condition must be an equality compare with a constant operand. 63 Value *X; 64 Constant *C; 65 CmpInst::Predicate Pred; 66 if (!match(Sel.getCondition(), m_Cmp(Pred, m_Value(X), m_Constant(C)))) 67 return nullptr; 68 69 bool IsEq; 70 if (ICmpInst::isEquality(Pred)) 71 IsEq = Pred == ICmpInst::ICMP_EQ; 72 else if (Pred == FCmpInst::FCMP_OEQ) 73 IsEq = true; 74 else if (Pred == FCmpInst::FCMP_UNE) 75 IsEq = false; 76 else 77 return nullptr; 78 79 // A select operand must be a binop. 80 BinaryOperator *BO; 81 if (!match(Sel.getOperand(IsEq ? 1 : 2), m_BinOp(BO))) 82 return nullptr; 83 84 // The compare constant must be the identity constant for that binop. 85 // If this a floating-point compare with 0.0, any zero constant will do. 86 Type *Ty = BO->getType(); 87 Constant *IdC = ConstantExpr::getBinOpIdentity(BO->getOpcode(), Ty, true); 88 if (IdC != C) { 89 if (!IdC || !CmpInst::isFPPredicate(Pred)) 90 return nullptr; 91 if (!match(IdC, m_AnyZeroFP()) || !match(C, m_AnyZeroFP())) 92 return nullptr; 93 } 94 95 // Last, match the compare variable operand with a binop operand. 96 Value *Y; 97 if (!BO->isCommutative() && !match(BO, m_BinOp(m_Value(Y), m_Specific(X)))) 98 return nullptr; 99 if (!match(BO, m_c_BinOp(m_Value(Y), m_Specific(X)))) 100 return nullptr; 101 102 // +0.0 compares equal to -0.0, and so it does not behave as required for this 103 // transform. Bail out if we can not exclude that possibility. 104 if (isa<FPMathOperator>(BO)) 105 if (!BO->hasNoSignedZeros() && !CannotBeNegativeZero(Y, &TLI)) 106 return nullptr; 107 108 // BO = binop Y, X 109 // S = { select (cmp eq X, C), BO, ? } or { select (cmp ne X, C), ?, BO } 110 // => 111 // S = { select (cmp eq X, C), Y, ? } or { select (cmp ne X, C), ?, Y } 112 return IC.replaceOperand(Sel, IsEq ? 1 : 2, Y); 113 } 114 115 /// This folds: 116 /// select (icmp eq (and X, C1)), TC, FC 117 /// iff C1 is a power 2 and the difference between TC and FC is a power-of-2. 118 /// To something like: 119 /// (shr (and (X, C1)), (log2(C1) - log2(TC-FC))) + FC 120 /// Or: 121 /// (shl (and (X, C1)), (log2(TC-FC) - log2(C1))) + FC 122 /// With some variations depending if FC is larger than TC, or the shift 123 /// isn't needed, or the bit widths don't match. 124 static Value *foldSelectICmpAnd(SelectInst &Sel, ICmpInst *Cmp, 125 InstCombiner::BuilderTy &Builder) { 126 const APInt *SelTC, *SelFC; 127 if (!match(Sel.getTrueValue(), m_APInt(SelTC)) || 128 !match(Sel.getFalseValue(), m_APInt(SelFC))) 129 return nullptr; 130 131 // If this is a vector select, we need a vector compare. 132 Type *SelType = Sel.getType(); 133 if (SelType->isVectorTy() != Cmp->getType()->isVectorTy()) 134 return nullptr; 135 136 Value *V; 137 APInt AndMask; 138 bool CreateAnd = false; 139 ICmpInst::Predicate Pred = Cmp->getPredicate(); 140 if (ICmpInst::isEquality(Pred)) { 141 if (!match(Cmp->getOperand(1), m_Zero())) 142 return nullptr; 143 144 V = Cmp->getOperand(0); 145 const APInt *AndRHS; 146 if (!match(V, m_And(m_Value(), m_Power2(AndRHS)))) 147 return nullptr; 148 149 AndMask = *AndRHS; 150 } else if (decomposeBitTestICmp(Cmp->getOperand(0), Cmp->getOperand(1), 151 Pred, V, AndMask)) { 152 assert(ICmpInst::isEquality(Pred) && "Not equality test?"); 153 if (!AndMask.isPowerOf2()) 154 return nullptr; 155 156 CreateAnd = true; 157 } else { 158 return nullptr; 159 } 160 161 // In general, when both constants are non-zero, we would need an offset to 162 // replace the select. This would require more instructions than we started 163 // with. But there's one special-case that we handle here because it can 164 // simplify/reduce the instructions. 165 APInt TC = *SelTC; 166 APInt FC = *SelFC; 167 if (!TC.isNullValue() && !FC.isNullValue()) { 168 // If the select constants differ by exactly one bit and that's the same 169 // bit that is masked and checked by the select condition, the select can 170 // be replaced by bitwise logic to set/clear one bit of the constant result. 171 if (TC.getBitWidth() != AndMask.getBitWidth() || (TC ^ FC) != AndMask) 172 return nullptr; 173 if (CreateAnd) { 174 // If we have to create an 'and', then we must kill the cmp to not 175 // increase the instruction count. 176 if (!Cmp->hasOneUse()) 177 return nullptr; 178 V = Builder.CreateAnd(V, ConstantInt::get(SelType, AndMask)); 179 } 180 bool ExtraBitInTC = TC.ugt(FC); 181 if (Pred == ICmpInst::ICMP_EQ) { 182 // If the masked bit in V is clear, clear or set the bit in the result: 183 // (V & AndMaskC) == 0 ? TC : FC --> (V & AndMaskC) ^ TC 184 // (V & AndMaskC) == 0 ? TC : FC --> (V & AndMaskC) | TC 185 Constant *C = ConstantInt::get(SelType, TC); 186 return ExtraBitInTC ? Builder.CreateXor(V, C) : Builder.CreateOr(V, C); 187 } 188 if (Pred == ICmpInst::ICMP_NE) { 189 // If the masked bit in V is set, set or clear the bit in the result: 190 // (V & AndMaskC) != 0 ? TC : FC --> (V & AndMaskC) | FC 191 // (V & AndMaskC) != 0 ? TC : FC --> (V & AndMaskC) ^ FC 192 Constant *C = ConstantInt::get(SelType, FC); 193 return ExtraBitInTC ? Builder.CreateOr(V, C) : Builder.CreateXor(V, C); 194 } 195 llvm_unreachable("Only expecting equality predicates"); 196 } 197 198 // Make sure one of the select arms is a power-of-2. 199 if (!TC.isPowerOf2() && !FC.isPowerOf2()) 200 return nullptr; 201 202 // Determine which shift is needed to transform result of the 'and' into the 203 // desired result. 204 const APInt &ValC = !TC.isNullValue() ? TC : FC; 205 unsigned ValZeros = ValC.logBase2(); 206 unsigned AndZeros = AndMask.logBase2(); 207 208 // Insert the 'and' instruction on the input to the truncate. 209 if (CreateAnd) 210 V = Builder.CreateAnd(V, ConstantInt::get(V->getType(), AndMask)); 211 212 // If types don't match, we can still convert the select by introducing a zext 213 // or a trunc of the 'and'. 214 if (ValZeros > AndZeros) { 215 V = Builder.CreateZExtOrTrunc(V, SelType); 216 V = Builder.CreateShl(V, ValZeros - AndZeros); 217 } else if (ValZeros < AndZeros) { 218 V = Builder.CreateLShr(V, AndZeros - ValZeros); 219 V = Builder.CreateZExtOrTrunc(V, SelType); 220 } else { 221 V = Builder.CreateZExtOrTrunc(V, SelType); 222 } 223 224 // Okay, now we know that everything is set up, we just don't know whether we 225 // have a icmp_ne or icmp_eq and whether the true or false val is the zero. 226 bool ShouldNotVal = !TC.isNullValue(); 227 ShouldNotVal ^= Pred == ICmpInst::ICMP_NE; 228 if (ShouldNotVal) 229 V = Builder.CreateXor(V, ValC); 230 231 return V; 232 } 233 234 /// We want to turn code that looks like this: 235 /// %C = or %A, %B 236 /// %D = select %cond, %C, %A 237 /// into: 238 /// %C = select %cond, %B, 0 239 /// %D = or %A, %C 240 /// 241 /// Assuming that the specified instruction is an operand to the select, return 242 /// a bitmask indicating which operands of this instruction are foldable if they 243 /// equal the other incoming value of the select. 244 static unsigned getSelectFoldableOperands(BinaryOperator *I) { 245 switch (I->getOpcode()) { 246 case Instruction::Add: 247 case Instruction::Mul: 248 case Instruction::And: 249 case Instruction::Or: 250 case Instruction::Xor: 251 return 3; // Can fold through either operand. 252 case Instruction::Sub: // Can only fold on the amount subtracted. 253 case Instruction::Shl: // Can only fold on the shift amount. 254 case Instruction::LShr: 255 case Instruction::AShr: 256 return 1; 257 default: 258 return 0; // Cannot fold 259 } 260 } 261 262 /// We have (select c, TI, FI), and we know that TI and FI have the same opcode. 263 Instruction *InstCombinerImpl::foldSelectOpOp(SelectInst &SI, Instruction *TI, 264 Instruction *FI) { 265 // Don't break up min/max patterns. The hasOneUse checks below prevent that 266 // for most cases, but vector min/max with bitcasts can be transformed. If the 267 // one-use restrictions are eased for other patterns, we still don't want to 268 // obfuscate min/max. 269 if ((match(&SI, m_SMin(m_Value(), m_Value())) || 270 match(&SI, m_SMax(m_Value(), m_Value())) || 271 match(&SI, m_UMin(m_Value(), m_Value())) || 272 match(&SI, m_UMax(m_Value(), m_Value())))) 273 return nullptr; 274 275 // If this is a cast from the same type, merge. 276 Value *Cond = SI.getCondition(); 277 Type *CondTy = Cond->getType(); 278 if (TI->getNumOperands() == 1 && TI->isCast()) { 279 Type *FIOpndTy = FI->getOperand(0)->getType(); 280 if (TI->getOperand(0)->getType() != FIOpndTy) 281 return nullptr; 282 283 // The select condition may be a vector. We may only change the operand 284 // type if the vector width remains the same (and matches the condition). 285 if (auto *CondVTy = dyn_cast<VectorType>(CondTy)) { 286 if (!FIOpndTy->isVectorTy()) 287 return nullptr; 288 if (cast<FixedVectorType>(CondVTy)->getNumElements() != 289 cast<FixedVectorType>(FIOpndTy)->getNumElements()) 290 return nullptr; 291 292 // TODO: If the backend knew how to deal with casts better, we could 293 // remove this limitation. For now, there's too much potential to create 294 // worse codegen by promoting the select ahead of size-altering casts 295 // (PR28160). 296 // 297 // Note that ValueTracking's matchSelectPattern() looks through casts 298 // without checking 'hasOneUse' when it matches min/max patterns, so this 299 // transform may end up happening anyway. 300 if (TI->getOpcode() != Instruction::BitCast && 301 (!TI->hasOneUse() || !FI->hasOneUse())) 302 return nullptr; 303 } else if (!TI->hasOneUse() || !FI->hasOneUse()) { 304 // TODO: The one-use restrictions for a scalar select could be eased if 305 // the fold of a select in visitLoadInst() was enhanced to match a pattern 306 // that includes a cast. 307 return nullptr; 308 } 309 310 // Fold this by inserting a select from the input values. 311 Value *NewSI = 312 Builder.CreateSelect(Cond, TI->getOperand(0), FI->getOperand(0), 313 SI.getName() + ".v", &SI); 314 return CastInst::Create(Instruction::CastOps(TI->getOpcode()), NewSI, 315 TI->getType()); 316 } 317 318 // Cond ? -X : -Y --> -(Cond ? X : Y) 319 Value *X, *Y; 320 if (match(TI, m_FNeg(m_Value(X))) && match(FI, m_FNeg(m_Value(Y))) && 321 (TI->hasOneUse() || FI->hasOneUse())) { 322 Value *NewSel = Builder.CreateSelect(Cond, X, Y, SI.getName() + ".v", &SI); 323 return UnaryOperator::CreateFNegFMF(NewSel, TI); 324 } 325 326 // Only handle binary operators (including two-operand getelementptr) with 327 // one-use here. As with the cast case above, it may be possible to relax the 328 // one-use constraint, but that needs be examined carefully since it may not 329 // reduce the total number of instructions. 330 if (TI->getNumOperands() != 2 || FI->getNumOperands() != 2 || 331 (!isa<BinaryOperator>(TI) && !isa<GetElementPtrInst>(TI)) || 332 !TI->hasOneUse() || !FI->hasOneUse()) 333 return nullptr; 334 335 // Figure out if the operations have any operands in common. 336 Value *MatchOp, *OtherOpT, *OtherOpF; 337 bool MatchIsOpZero; 338 if (TI->getOperand(0) == FI->getOperand(0)) { 339 MatchOp = TI->getOperand(0); 340 OtherOpT = TI->getOperand(1); 341 OtherOpF = FI->getOperand(1); 342 MatchIsOpZero = true; 343 } else if (TI->getOperand(1) == FI->getOperand(1)) { 344 MatchOp = TI->getOperand(1); 345 OtherOpT = TI->getOperand(0); 346 OtherOpF = FI->getOperand(0); 347 MatchIsOpZero = false; 348 } else if (!TI->isCommutative()) { 349 return nullptr; 350 } else if (TI->getOperand(0) == FI->getOperand(1)) { 351 MatchOp = TI->getOperand(0); 352 OtherOpT = TI->getOperand(1); 353 OtherOpF = FI->getOperand(0); 354 MatchIsOpZero = true; 355 } else if (TI->getOperand(1) == FI->getOperand(0)) { 356 MatchOp = TI->getOperand(1); 357 OtherOpT = TI->getOperand(0); 358 OtherOpF = FI->getOperand(1); 359 MatchIsOpZero = true; 360 } else { 361 return nullptr; 362 } 363 364 // If the select condition is a vector, the operands of the original select's 365 // operands also must be vectors. This may not be the case for getelementptr 366 // for example. 367 if (CondTy->isVectorTy() && (!OtherOpT->getType()->isVectorTy() || 368 !OtherOpF->getType()->isVectorTy())) 369 return nullptr; 370 371 // If we reach here, they do have operations in common. 372 Value *NewSI = Builder.CreateSelect(Cond, OtherOpT, OtherOpF, 373 SI.getName() + ".v", &SI); 374 Value *Op0 = MatchIsOpZero ? MatchOp : NewSI; 375 Value *Op1 = MatchIsOpZero ? NewSI : MatchOp; 376 if (auto *BO = dyn_cast<BinaryOperator>(TI)) { 377 BinaryOperator *NewBO = BinaryOperator::Create(BO->getOpcode(), Op0, Op1); 378 NewBO->copyIRFlags(TI); 379 NewBO->andIRFlags(FI); 380 return NewBO; 381 } 382 if (auto *TGEP = dyn_cast<GetElementPtrInst>(TI)) { 383 auto *FGEP = cast<GetElementPtrInst>(FI); 384 Type *ElementType = TGEP->getResultElementType(); 385 return TGEP->isInBounds() && FGEP->isInBounds() 386 ? GetElementPtrInst::CreateInBounds(ElementType, Op0, {Op1}) 387 : GetElementPtrInst::Create(ElementType, Op0, {Op1}); 388 } 389 llvm_unreachable("Expected BinaryOperator or GEP"); 390 return nullptr; 391 } 392 393 static bool isSelect01(const APInt &C1I, const APInt &C2I) { 394 if (!C1I.isNullValue() && !C2I.isNullValue()) // One side must be zero. 395 return false; 396 return C1I.isOneValue() || C1I.isAllOnesValue() || 397 C2I.isOneValue() || C2I.isAllOnesValue(); 398 } 399 400 /// Try to fold the select into one of the operands to allow further 401 /// optimization. 402 Instruction *InstCombinerImpl::foldSelectIntoOp(SelectInst &SI, Value *TrueVal, 403 Value *FalseVal) { 404 // See the comment above GetSelectFoldableOperands for a description of the 405 // transformation we are doing here. 406 if (auto *TVI = dyn_cast<BinaryOperator>(TrueVal)) { 407 if (TVI->hasOneUse() && !isa<Constant>(FalseVal)) { 408 if (unsigned SFO = getSelectFoldableOperands(TVI)) { 409 unsigned OpToFold = 0; 410 if ((SFO & 1) && FalseVal == TVI->getOperand(0)) { 411 OpToFold = 1; 412 } else if ((SFO & 2) && FalseVal == TVI->getOperand(1)) { 413 OpToFold = 2; 414 } 415 416 if (OpToFold) { 417 Constant *C = ConstantExpr::getBinOpIdentity(TVI->getOpcode(), 418 TVI->getType(), true); 419 Value *OOp = TVI->getOperand(2-OpToFold); 420 // Avoid creating select between 2 constants unless it's selecting 421 // between 0, 1 and -1. 422 const APInt *OOpC; 423 bool OOpIsAPInt = match(OOp, m_APInt(OOpC)); 424 if (!isa<Constant>(OOp) || 425 (OOpIsAPInt && isSelect01(C->getUniqueInteger(), *OOpC))) { 426 Value *NewSel = Builder.CreateSelect(SI.getCondition(), OOp, C); 427 NewSel->takeName(TVI); 428 BinaryOperator *BO = BinaryOperator::Create(TVI->getOpcode(), 429 FalseVal, NewSel); 430 BO->copyIRFlags(TVI); 431 return BO; 432 } 433 } 434 } 435 } 436 } 437 438 if (auto *FVI = dyn_cast<BinaryOperator>(FalseVal)) { 439 if (FVI->hasOneUse() && !isa<Constant>(TrueVal)) { 440 if (unsigned SFO = getSelectFoldableOperands(FVI)) { 441 unsigned OpToFold = 0; 442 if ((SFO & 1) && TrueVal == FVI->getOperand(0)) { 443 OpToFold = 1; 444 } else if ((SFO & 2) && TrueVal == FVI->getOperand(1)) { 445 OpToFold = 2; 446 } 447 448 if (OpToFold) { 449 Constant *C = ConstantExpr::getBinOpIdentity(FVI->getOpcode(), 450 FVI->getType(), true); 451 Value *OOp = FVI->getOperand(2-OpToFold); 452 // Avoid creating select between 2 constants unless it's selecting 453 // between 0, 1 and -1. 454 const APInt *OOpC; 455 bool OOpIsAPInt = match(OOp, m_APInt(OOpC)); 456 if (!isa<Constant>(OOp) || 457 (OOpIsAPInt && isSelect01(C->getUniqueInteger(), *OOpC))) { 458 Value *NewSel = Builder.CreateSelect(SI.getCondition(), C, OOp); 459 NewSel->takeName(FVI); 460 BinaryOperator *BO = BinaryOperator::Create(FVI->getOpcode(), 461 TrueVal, NewSel); 462 BO->copyIRFlags(FVI); 463 return BO; 464 } 465 } 466 } 467 } 468 } 469 470 return nullptr; 471 } 472 473 /// We want to turn: 474 /// (select (icmp eq (and X, Y), 0), (and (lshr X, Z), 1), 1) 475 /// into: 476 /// zext (icmp ne i32 (and X, (or Y, (shl 1, Z))), 0) 477 /// Note: 478 /// Z may be 0 if lshr is missing. 479 /// Worst-case scenario is that we will replace 5 instructions with 5 different 480 /// instructions, but we got rid of select. 481 static Instruction *foldSelectICmpAndAnd(Type *SelType, const ICmpInst *Cmp, 482 Value *TVal, Value *FVal, 483 InstCombiner::BuilderTy &Builder) { 484 if (!(Cmp->hasOneUse() && Cmp->getOperand(0)->hasOneUse() && 485 Cmp->getPredicate() == ICmpInst::ICMP_EQ && 486 match(Cmp->getOperand(1), m_Zero()) && match(FVal, m_One()))) 487 return nullptr; 488 489 // The TrueVal has general form of: and %B, 1 490 Value *B; 491 if (!match(TVal, m_OneUse(m_And(m_Value(B), m_One())))) 492 return nullptr; 493 494 // Where %B may be optionally shifted: lshr %X, %Z. 495 Value *X, *Z; 496 const bool HasShift = match(B, m_OneUse(m_LShr(m_Value(X), m_Value(Z)))); 497 if (!HasShift) 498 X = B; 499 500 Value *Y; 501 if (!match(Cmp->getOperand(0), m_c_And(m_Specific(X), m_Value(Y)))) 502 return nullptr; 503 504 // ((X & Y) == 0) ? ((X >> Z) & 1) : 1 --> (X & (Y | (1 << Z))) != 0 505 // ((X & Y) == 0) ? (X & 1) : 1 --> (X & (Y | 1)) != 0 506 Constant *One = ConstantInt::get(SelType, 1); 507 Value *MaskB = HasShift ? Builder.CreateShl(One, Z) : One; 508 Value *FullMask = Builder.CreateOr(Y, MaskB); 509 Value *MaskedX = Builder.CreateAnd(X, FullMask); 510 Value *ICmpNeZero = Builder.CreateIsNotNull(MaskedX); 511 return new ZExtInst(ICmpNeZero, SelType); 512 } 513 514 /// We want to turn: 515 /// (select (icmp sgt x, C), lshr (X, Y), ashr (X, Y)); iff C s>= -1 516 /// (select (icmp slt x, C), ashr (X, Y), lshr (X, Y)); iff C s>= 0 517 /// into: 518 /// ashr (X, Y) 519 static Value *foldSelectICmpLshrAshr(const ICmpInst *IC, Value *TrueVal, 520 Value *FalseVal, 521 InstCombiner::BuilderTy &Builder) { 522 ICmpInst::Predicate Pred = IC->getPredicate(); 523 Value *CmpLHS = IC->getOperand(0); 524 Value *CmpRHS = IC->getOperand(1); 525 if (!CmpRHS->getType()->isIntOrIntVectorTy()) 526 return nullptr; 527 528 Value *X, *Y; 529 unsigned Bitwidth = CmpRHS->getType()->getScalarSizeInBits(); 530 if ((Pred != ICmpInst::ICMP_SGT || 531 !match(CmpRHS, 532 m_SpecificInt_ICMP(ICmpInst::ICMP_SGE, APInt(Bitwidth, -1)))) && 533 (Pred != ICmpInst::ICMP_SLT || 534 !match(CmpRHS, 535 m_SpecificInt_ICMP(ICmpInst::ICMP_SGE, APInt(Bitwidth, 0))))) 536 return nullptr; 537 538 // Canonicalize so that ashr is in FalseVal. 539 if (Pred == ICmpInst::ICMP_SLT) 540 std::swap(TrueVal, FalseVal); 541 542 if (match(TrueVal, m_LShr(m_Value(X), m_Value(Y))) && 543 match(FalseVal, m_AShr(m_Specific(X), m_Specific(Y))) && 544 match(CmpLHS, m_Specific(X))) { 545 const auto *Ashr = cast<Instruction>(FalseVal); 546 // if lshr is not exact and ashr is, this new ashr must not be exact. 547 bool IsExact = Ashr->isExact() && cast<Instruction>(TrueVal)->isExact(); 548 return Builder.CreateAShr(X, Y, IC->getName(), IsExact); 549 } 550 551 return nullptr; 552 } 553 554 /// We want to turn: 555 /// (select (icmp eq (and X, C1), 0), Y, (or Y, C2)) 556 /// into: 557 /// (or (shl (and X, C1), C3), Y) 558 /// iff: 559 /// C1 and C2 are both powers of 2 560 /// where: 561 /// C3 = Log(C2) - Log(C1) 562 /// 563 /// This transform handles cases where: 564 /// 1. The icmp predicate is inverted 565 /// 2. The select operands are reversed 566 /// 3. The magnitude of C2 and C1 are flipped 567 static Value *foldSelectICmpAndOr(const ICmpInst *IC, Value *TrueVal, 568 Value *FalseVal, 569 InstCombiner::BuilderTy &Builder) { 570 // Only handle integer compares. Also, if this is a vector select, we need a 571 // vector compare. 572 if (!TrueVal->getType()->isIntOrIntVectorTy() || 573 TrueVal->getType()->isVectorTy() != IC->getType()->isVectorTy()) 574 return nullptr; 575 576 Value *CmpLHS = IC->getOperand(0); 577 Value *CmpRHS = IC->getOperand(1); 578 579 Value *V; 580 unsigned C1Log; 581 bool IsEqualZero; 582 bool NeedAnd = false; 583 if (IC->isEquality()) { 584 if (!match(CmpRHS, m_Zero())) 585 return nullptr; 586 587 const APInt *C1; 588 if (!match(CmpLHS, m_And(m_Value(), m_Power2(C1)))) 589 return nullptr; 590 591 V = CmpLHS; 592 C1Log = C1->logBase2(); 593 IsEqualZero = IC->getPredicate() == ICmpInst::ICMP_EQ; 594 } else if (IC->getPredicate() == ICmpInst::ICMP_SLT || 595 IC->getPredicate() == ICmpInst::ICMP_SGT) { 596 // We also need to recognize (icmp slt (trunc (X)), 0) and 597 // (icmp sgt (trunc (X)), -1). 598 IsEqualZero = IC->getPredicate() == ICmpInst::ICMP_SGT; 599 if ((IsEqualZero && !match(CmpRHS, m_AllOnes())) || 600 (!IsEqualZero && !match(CmpRHS, m_Zero()))) 601 return nullptr; 602 603 if (!match(CmpLHS, m_OneUse(m_Trunc(m_Value(V))))) 604 return nullptr; 605 606 C1Log = CmpLHS->getType()->getScalarSizeInBits() - 1; 607 NeedAnd = true; 608 } else { 609 return nullptr; 610 } 611 612 const APInt *C2; 613 bool OrOnTrueVal = false; 614 bool OrOnFalseVal = match(FalseVal, m_Or(m_Specific(TrueVal), m_Power2(C2))); 615 if (!OrOnFalseVal) 616 OrOnTrueVal = match(TrueVal, m_Or(m_Specific(FalseVal), m_Power2(C2))); 617 618 if (!OrOnFalseVal && !OrOnTrueVal) 619 return nullptr; 620 621 Value *Y = OrOnFalseVal ? TrueVal : FalseVal; 622 623 unsigned C2Log = C2->logBase2(); 624 625 bool NeedXor = (!IsEqualZero && OrOnFalseVal) || (IsEqualZero && OrOnTrueVal); 626 bool NeedShift = C1Log != C2Log; 627 bool NeedZExtTrunc = Y->getType()->getScalarSizeInBits() != 628 V->getType()->getScalarSizeInBits(); 629 630 // Make sure we don't create more instructions than we save. 631 Value *Or = OrOnFalseVal ? FalseVal : TrueVal; 632 if ((NeedShift + NeedXor + NeedZExtTrunc) > 633 (IC->hasOneUse() + Or->hasOneUse())) 634 return nullptr; 635 636 if (NeedAnd) { 637 // Insert the AND instruction on the input to the truncate. 638 APInt C1 = APInt::getOneBitSet(V->getType()->getScalarSizeInBits(), C1Log); 639 V = Builder.CreateAnd(V, ConstantInt::get(V->getType(), C1)); 640 } 641 642 if (C2Log > C1Log) { 643 V = Builder.CreateZExtOrTrunc(V, Y->getType()); 644 V = Builder.CreateShl(V, C2Log - C1Log); 645 } else if (C1Log > C2Log) { 646 V = Builder.CreateLShr(V, C1Log - C2Log); 647 V = Builder.CreateZExtOrTrunc(V, Y->getType()); 648 } else 649 V = Builder.CreateZExtOrTrunc(V, Y->getType()); 650 651 if (NeedXor) 652 V = Builder.CreateXor(V, *C2); 653 654 return Builder.CreateOr(V, Y); 655 } 656 657 /// Canonicalize a set or clear of a masked set of constant bits to 658 /// select-of-constants form. 659 static Instruction *foldSetClearBits(SelectInst &Sel, 660 InstCombiner::BuilderTy &Builder) { 661 Value *Cond = Sel.getCondition(); 662 Value *T = Sel.getTrueValue(); 663 Value *F = Sel.getFalseValue(); 664 Type *Ty = Sel.getType(); 665 Value *X; 666 const APInt *NotC, *C; 667 668 // Cond ? (X & ~C) : (X | C) --> (X & ~C) | (Cond ? 0 : C) 669 if (match(T, m_And(m_Value(X), m_APInt(NotC))) && 670 match(F, m_OneUse(m_Or(m_Specific(X), m_APInt(C)))) && *NotC == ~(*C)) { 671 Constant *Zero = ConstantInt::getNullValue(Ty); 672 Constant *OrC = ConstantInt::get(Ty, *C); 673 Value *NewSel = Builder.CreateSelect(Cond, Zero, OrC, "masksel", &Sel); 674 return BinaryOperator::CreateOr(T, NewSel); 675 } 676 677 // Cond ? (X | C) : (X & ~C) --> (X & ~C) | (Cond ? C : 0) 678 if (match(F, m_And(m_Value(X), m_APInt(NotC))) && 679 match(T, m_OneUse(m_Or(m_Specific(X), m_APInt(C)))) && *NotC == ~(*C)) { 680 Constant *Zero = ConstantInt::getNullValue(Ty); 681 Constant *OrC = ConstantInt::get(Ty, *C); 682 Value *NewSel = Builder.CreateSelect(Cond, OrC, Zero, "masksel", &Sel); 683 return BinaryOperator::CreateOr(F, NewSel); 684 } 685 686 return nullptr; 687 } 688 689 /// Transform patterns such as (a > b) ? a - b : 0 into usub.sat(a, b). 690 /// There are 8 commuted/swapped variants of this pattern. 691 /// TODO: Also support a - UMIN(a,b) patterns. 692 static Value *canonicalizeSaturatedSubtract(const ICmpInst *ICI, 693 const Value *TrueVal, 694 const Value *FalseVal, 695 InstCombiner::BuilderTy &Builder) { 696 ICmpInst::Predicate Pred = ICI->getPredicate(); 697 if (!ICmpInst::isUnsigned(Pred)) 698 return nullptr; 699 700 // (b > a) ? 0 : a - b -> (b <= a) ? a - b : 0 701 if (match(TrueVal, m_Zero())) { 702 Pred = ICmpInst::getInversePredicate(Pred); 703 std::swap(TrueVal, FalseVal); 704 } 705 if (!match(FalseVal, m_Zero())) 706 return nullptr; 707 708 Value *A = ICI->getOperand(0); 709 Value *B = ICI->getOperand(1); 710 if (Pred == ICmpInst::ICMP_ULE || Pred == ICmpInst::ICMP_ULT) { 711 // (b < a) ? a - b : 0 -> (a > b) ? a - b : 0 712 std::swap(A, B); 713 Pred = ICmpInst::getSwappedPredicate(Pred); 714 } 715 716 assert((Pred == ICmpInst::ICMP_UGE || Pred == ICmpInst::ICMP_UGT) && 717 "Unexpected isUnsigned predicate!"); 718 719 // Ensure the sub is of the form: 720 // (a > b) ? a - b : 0 -> usub.sat(a, b) 721 // (a > b) ? b - a : 0 -> -usub.sat(a, b) 722 // Checking for both a-b and a+(-b) as a constant. 723 bool IsNegative = false; 724 const APInt *C; 725 if (match(TrueVal, m_Sub(m_Specific(B), m_Specific(A))) || 726 (match(A, m_APInt(C)) && 727 match(TrueVal, m_Add(m_Specific(B), m_SpecificInt(-*C))))) 728 IsNegative = true; 729 else if (!match(TrueVal, m_Sub(m_Specific(A), m_Specific(B))) && 730 !(match(B, m_APInt(C)) && 731 match(TrueVal, m_Add(m_Specific(A), m_SpecificInt(-*C))))) 732 return nullptr; 733 734 // If we are adding a negate and the sub and icmp are used anywhere else, we 735 // would end up with more instructions. 736 if (IsNegative && !TrueVal->hasOneUse() && !ICI->hasOneUse()) 737 return nullptr; 738 739 // (a > b) ? a - b : 0 -> usub.sat(a, b) 740 // (a > b) ? b - a : 0 -> -usub.sat(a, b) 741 Value *Result = Builder.CreateBinaryIntrinsic(Intrinsic::usub_sat, A, B); 742 if (IsNegative) 743 Result = Builder.CreateNeg(Result); 744 return Result; 745 } 746 747 static Value *canonicalizeSaturatedAdd(ICmpInst *Cmp, Value *TVal, Value *FVal, 748 InstCombiner::BuilderTy &Builder) { 749 if (!Cmp->hasOneUse()) 750 return nullptr; 751 752 // Match unsigned saturated add with constant. 753 Value *Cmp0 = Cmp->getOperand(0); 754 Value *Cmp1 = Cmp->getOperand(1); 755 ICmpInst::Predicate Pred = Cmp->getPredicate(); 756 Value *X; 757 const APInt *C, *CmpC; 758 if (Pred == ICmpInst::ICMP_ULT && 759 match(TVal, m_Add(m_Value(X), m_APInt(C))) && X == Cmp0 && 760 match(FVal, m_AllOnes()) && match(Cmp1, m_APInt(CmpC)) && *CmpC == ~*C) { 761 // (X u< ~C) ? (X + C) : -1 --> uadd.sat(X, C) 762 return Builder.CreateBinaryIntrinsic( 763 Intrinsic::uadd_sat, X, ConstantInt::get(X->getType(), *C)); 764 } 765 766 // Match unsigned saturated add of 2 variables with an unnecessary 'not'. 767 // There are 8 commuted variants. 768 // Canonicalize -1 (saturated result) to true value of the select. 769 if (match(FVal, m_AllOnes())) { 770 std::swap(TVal, FVal); 771 Pred = CmpInst::getInversePredicate(Pred); 772 } 773 if (!match(TVal, m_AllOnes())) 774 return nullptr; 775 776 // Canonicalize predicate to less-than or less-or-equal-than. 777 if (Pred == ICmpInst::ICMP_UGT || Pred == ICmpInst::ICMP_UGE) { 778 std::swap(Cmp0, Cmp1); 779 Pred = CmpInst::getSwappedPredicate(Pred); 780 } 781 if (Pred != ICmpInst::ICMP_ULT && Pred != ICmpInst::ICMP_ULE) 782 return nullptr; 783 784 // Match unsigned saturated add of 2 variables with an unnecessary 'not'. 785 // Strictness of the comparison is irrelevant. 786 Value *Y; 787 if (match(Cmp0, m_Not(m_Value(X))) && 788 match(FVal, m_c_Add(m_Specific(X), m_Value(Y))) && Y == Cmp1) { 789 // (~X u< Y) ? -1 : (X + Y) --> uadd.sat(X, Y) 790 // (~X u< Y) ? -1 : (Y + X) --> uadd.sat(X, Y) 791 return Builder.CreateBinaryIntrinsic(Intrinsic::uadd_sat, X, Y); 792 } 793 // The 'not' op may be included in the sum but not the compare. 794 // Strictness of the comparison is irrelevant. 795 X = Cmp0; 796 Y = Cmp1; 797 if (match(FVal, m_c_Add(m_Not(m_Specific(X)), m_Specific(Y)))) { 798 // (X u< Y) ? -1 : (~X + Y) --> uadd.sat(~X, Y) 799 // (X u< Y) ? -1 : (Y + ~X) --> uadd.sat(Y, ~X) 800 BinaryOperator *BO = cast<BinaryOperator>(FVal); 801 return Builder.CreateBinaryIntrinsic( 802 Intrinsic::uadd_sat, BO->getOperand(0), BO->getOperand(1)); 803 } 804 // The overflow may be detected via the add wrapping round. 805 // This is only valid for strict comparison! 806 if (Pred == ICmpInst::ICMP_ULT && 807 match(Cmp0, m_c_Add(m_Specific(Cmp1), m_Value(Y))) && 808 match(FVal, m_c_Add(m_Specific(Cmp1), m_Specific(Y)))) { 809 // ((X + Y) u< X) ? -1 : (X + Y) --> uadd.sat(X, Y) 810 // ((X + Y) u< Y) ? -1 : (X + Y) --> uadd.sat(X, Y) 811 return Builder.CreateBinaryIntrinsic(Intrinsic::uadd_sat, Cmp1, Y); 812 } 813 814 return nullptr; 815 } 816 817 /// Fold the following code sequence: 818 /// \code 819 /// int a = ctlz(x & -x); 820 // x ? 31 - a : a; 821 /// \code 822 /// 823 /// into: 824 /// cttz(x) 825 static Instruction *foldSelectCtlzToCttz(ICmpInst *ICI, Value *TrueVal, 826 Value *FalseVal, 827 InstCombiner::BuilderTy &Builder) { 828 unsigned BitWidth = TrueVal->getType()->getScalarSizeInBits(); 829 if (!ICI->isEquality() || !match(ICI->getOperand(1), m_Zero())) 830 return nullptr; 831 832 if (ICI->getPredicate() == ICmpInst::ICMP_NE) 833 std::swap(TrueVal, FalseVal); 834 835 if (!match(FalseVal, 836 m_Xor(m_Deferred(TrueVal), m_SpecificInt(BitWidth - 1)))) 837 return nullptr; 838 839 if (!match(TrueVal, m_Intrinsic<Intrinsic::ctlz>())) 840 return nullptr; 841 842 Value *X = ICI->getOperand(0); 843 auto *II = cast<IntrinsicInst>(TrueVal); 844 if (!match(II->getOperand(0), m_c_And(m_Specific(X), m_Neg(m_Specific(X))))) 845 return nullptr; 846 847 Function *F = Intrinsic::getDeclaration(II->getModule(), Intrinsic::cttz, 848 II->getType()); 849 return CallInst::Create(F, {X, II->getArgOperand(1)}); 850 } 851 852 /// Attempt to fold a cttz/ctlz followed by a icmp plus select into a single 853 /// call to cttz/ctlz with flag 'is_zero_undef' cleared. 854 /// 855 /// For example, we can fold the following code sequence: 856 /// \code 857 /// %0 = tail call i32 @llvm.cttz.i32(i32 %x, i1 true) 858 /// %1 = icmp ne i32 %x, 0 859 /// %2 = select i1 %1, i32 %0, i32 32 860 /// \code 861 /// 862 /// into: 863 /// %0 = tail call i32 @llvm.cttz.i32(i32 %x, i1 false) 864 static Value *foldSelectCttzCtlz(ICmpInst *ICI, Value *TrueVal, Value *FalseVal, 865 InstCombiner::BuilderTy &Builder) { 866 ICmpInst::Predicate Pred = ICI->getPredicate(); 867 Value *CmpLHS = ICI->getOperand(0); 868 Value *CmpRHS = ICI->getOperand(1); 869 870 // Check if the condition value compares a value for equality against zero. 871 if (!ICI->isEquality() || !match(CmpRHS, m_Zero())) 872 return nullptr; 873 874 Value *SelectArg = FalseVal; 875 Value *ValueOnZero = TrueVal; 876 if (Pred == ICmpInst::ICMP_NE) 877 std::swap(SelectArg, ValueOnZero); 878 879 // Skip zero extend/truncate. 880 Value *Count = nullptr; 881 if (!match(SelectArg, m_ZExt(m_Value(Count))) && 882 !match(SelectArg, m_Trunc(m_Value(Count)))) 883 Count = SelectArg; 884 885 // Check that 'Count' is a call to intrinsic cttz/ctlz. Also check that the 886 // input to the cttz/ctlz is used as LHS for the compare instruction. 887 if (!match(Count, m_Intrinsic<Intrinsic::cttz>(m_Specific(CmpLHS))) && 888 !match(Count, m_Intrinsic<Intrinsic::ctlz>(m_Specific(CmpLHS)))) 889 return nullptr; 890 891 IntrinsicInst *II = cast<IntrinsicInst>(Count); 892 893 // Check if the value propagated on zero is a constant number equal to the 894 // sizeof in bits of 'Count'. 895 unsigned SizeOfInBits = Count->getType()->getScalarSizeInBits(); 896 if (match(ValueOnZero, m_SpecificInt(SizeOfInBits))) { 897 // Explicitly clear the 'undef_on_zero' flag. It's always valid to go from 898 // true to false on this flag, so we can replace it for all users. 899 II->setArgOperand(1, ConstantInt::getFalse(II->getContext())); 900 return SelectArg; 901 } 902 903 // The ValueOnZero is not the bitwidth. But if the cttz/ctlz (and optional 904 // zext/trunc) have one use (ending at the select), the cttz/ctlz result will 905 // not be used if the input is zero. Relax to 'undef_on_zero' for that case. 906 if (II->hasOneUse() && SelectArg->hasOneUse() && 907 !match(II->getArgOperand(1), m_One())) 908 II->setArgOperand(1, ConstantInt::getTrue(II->getContext())); 909 910 return nullptr; 911 } 912 913 /// Return true if we find and adjust an icmp+select pattern where the compare 914 /// is with a constant that can be incremented or decremented to match the 915 /// minimum or maximum idiom. 916 static bool adjustMinMax(SelectInst &Sel, ICmpInst &Cmp) { 917 ICmpInst::Predicate Pred = Cmp.getPredicate(); 918 Value *CmpLHS = Cmp.getOperand(0); 919 Value *CmpRHS = Cmp.getOperand(1); 920 Value *TrueVal = Sel.getTrueValue(); 921 Value *FalseVal = Sel.getFalseValue(); 922 923 // We may move or edit the compare, so make sure the select is the only user. 924 const APInt *CmpC; 925 if (!Cmp.hasOneUse() || !match(CmpRHS, m_APInt(CmpC))) 926 return false; 927 928 // These transforms only work for selects of integers or vector selects of 929 // integer vectors. 930 Type *SelTy = Sel.getType(); 931 auto *SelEltTy = dyn_cast<IntegerType>(SelTy->getScalarType()); 932 if (!SelEltTy || SelTy->isVectorTy() != Cmp.getType()->isVectorTy()) 933 return false; 934 935 Constant *AdjustedRHS; 936 if (Pred == ICmpInst::ICMP_UGT || Pred == ICmpInst::ICMP_SGT) 937 AdjustedRHS = ConstantInt::get(CmpRHS->getType(), *CmpC + 1); 938 else if (Pred == ICmpInst::ICMP_ULT || Pred == ICmpInst::ICMP_SLT) 939 AdjustedRHS = ConstantInt::get(CmpRHS->getType(), *CmpC - 1); 940 else 941 return false; 942 943 // X > C ? X : C+1 --> X < C+1 ? C+1 : X 944 // X < C ? X : C-1 --> X > C-1 ? C-1 : X 945 if ((CmpLHS == TrueVal && AdjustedRHS == FalseVal) || 946 (CmpLHS == FalseVal && AdjustedRHS == TrueVal)) { 947 ; // Nothing to do here. Values match without any sign/zero extension. 948 } 949 // Types do not match. Instead of calculating this with mixed types, promote 950 // all to the larger type. This enables scalar evolution to analyze this 951 // expression. 952 else if (CmpRHS->getType()->getScalarSizeInBits() < SelEltTy->getBitWidth()) { 953 Constant *SextRHS = ConstantExpr::getSExt(AdjustedRHS, SelTy); 954 955 // X = sext x; x >s c ? X : C+1 --> X = sext x; X <s C+1 ? C+1 : X 956 // X = sext x; x <s c ? X : C-1 --> X = sext x; X >s C-1 ? C-1 : X 957 // X = sext x; x >u c ? X : C+1 --> X = sext x; X <u C+1 ? C+1 : X 958 // X = sext x; x <u c ? X : C-1 --> X = sext x; X >u C-1 ? C-1 : X 959 if (match(TrueVal, m_SExt(m_Specific(CmpLHS))) && SextRHS == FalseVal) { 960 CmpLHS = TrueVal; 961 AdjustedRHS = SextRHS; 962 } else if (match(FalseVal, m_SExt(m_Specific(CmpLHS))) && 963 SextRHS == TrueVal) { 964 CmpLHS = FalseVal; 965 AdjustedRHS = SextRHS; 966 } else if (Cmp.isUnsigned()) { 967 Constant *ZextRHS = ConstantExpr::getZExt(AdjustedRHS, SelTy); 968 // X = zext x; x >u c ? X : C+1 --> X = zext x; X <u C+1 ? C+1 : X 969 // X = zext x; x <u c ? X : C-1 --> X = zext x; X >u C-1 ? C-1 : X 970 // zext + signed compare cannot be changed: 971 // 0xff <s 0x00, but 0x00ff >s 0x0000 972 if (match(TrueVal, m_ZExt(m_Specific(CmpLHS))) && ZextRHS == FalseVal) { 973 CmpLHS = TrueVal; 974 AdjustedRHS = ZextRHS; 975 } else if (match(FalseVal, m_ZExt(m_Specific(CmpLHS))) && 976 ZextRHS == TrueVal) { 977 CmpLHS = FalseVal; 978 AdjustedRHS = ZextRHS; 979 } else { 980 return false; 981 } 982 } else { 983 return false; 984 } 985 } else { 986 return false; 987 } 988 989 Pred = ICmpInst::getSwappedPredicate(Pred); 990 CmpRHS = AdjustedRHS; 991 std::swap(FalseVal, TrueVal); 992 Cmp.setPredicate(Pred); 993 Cmp.setOperand(0, CmpLHS); 994 Cmp.setOperand(1, CmpRHS); 995 Sel.setOperand(1, TrueVal); 996 Sel.setOperand(2, FalseVal); 997 Sel.swapProfMetadata(); 998 999 // Move the compare instruction right before the select instruction. Otherwise 1000 // the sext/zext value may be defined after the compare instruction uses it. 1001 Cmp.moveBefore(&Sel); 1002 1003 return true; 1004 } 1005 1006 /// If this is an integer min/max (icmp + select) with a constant operand, 1007 /// create the canonical icmp for the min/max operation and canonicalize the 1008 /// constant to the 'false' operand of the select: 1009 /// select (icmp Pred X, C1), C2, X --> select (icmp Pred' X, C2), X, C2 1010 /// Note: if C1 != C2, this will change the icmp constant to the existing 1011 /// constant operand of the select. 1012 static Instruction *canonicalizeMinMaxWithConstant(SelectInst &Sel, 1013 ICmpInst &Cmp, 1014 InstCombinerImpl &IC) { 1015 if (!Cmp.hasOneUse() || !isa<Constant>(Cmp.getOperand(1))) 1016 return nullptr; 1017 1018 // Canonicalize the compare predicate based on whether we have min or max. 1019 Value *LHS, *RHS; 1020 SelectPatternResult SPR = matchSelectPattern(&Sel, LHS, RHS); 1021 if (!SelectPatternResult::isMinOrMax(SPR.Flavor)) 1022 return nullptr; 1023 1024 // Is this already canonical? 1025 ICmpInst::Predicate CanonicalPred = getMinMaxPred(SPR.Flavor); 1026 if (Cmp.getOperand(0) == LHS && Cmp.getOperand(1) == RHS && 1027 Cmp.getPredicate() == CanonicalPred) 1028 return nullptr; 1029 1030 // Bail out on unsimplified X-0 operand (due to some worklist management bug), 1031 // as this may cause an infinite combine loop. Let the sub be folded first. 1032 if (match(LHS, m_Sub(m_Value(), m_Zero())) || 1033 match(RHS, m_Sub(m_Value(), m_Zero()))) 1034 return nullptr; 1035 1036 // Create the canonical compare and plug it into the select. 1037 IC.replaceOperand(Sel, 0, IC.Builder.CreateICmp(CanonicalPred, LHS, RHS)); 1038 1039 // If the select operands did not change, we're done. 1040 if (Sel.getTrueValue() == LHS && Sel.getFalseValue() == RHS) 1041 return &Sel; 1042 1043 // If we are swapping the select operands, swap the metadata too. 1044 assert(Sel.getTrueValue() == RHS && Sel.getFalseValue() == LHS && 1045 "Unexpected results from matchSelectPattern"); 1046 Sel.swapValues(); 1047 Sel.swapProfMetadata(); 1048 return &Sel; 1049 } 1050 1051 /// There are many select variants for each of ABS/NABS. 1052 /// In matchSelectPattern(), there are different compare constants, compare 1053 /// predicates/operands and select operands. 1054 /// In isKnownNegation(), there are different formats of negated operands. 1055 /// Canonicalize all these variants to 1 pattern. 1056 /// This makes CSE more likely. 1057 static Instruction *canonicalizeAbsNabs(SelectInst &Sel, ICmpInst &Cmp, 1058 InstCombinerImpl &IC) { 1059 if (!Cmp.hasOneUse() || !isa<Constant>(Cmp.getOperand(1))) 1060 return nullptr; 1061 1062 // Choose a sign-bit check for the compare (likely simpler for codegen). 1063 // ABS: (X <s 0) ? -X : X 1064 // NABS: (X <s 0) ? X : -X 1065 Value *LHS, *RHS; 1066 SelectPatternFlavor SPF = matchSelectPattern(&Sel, LHS, RHS).Flavor; 1067 if (SPF != SelectPatternFlavor::SPF_ABS && 1068 SPF != SelectPatternFlavor::SPF_NABS) 1069 return nullptr; 1070 1071 Value *TVal = Sel.getTrueValue(); 1072 Value *FVal = Sel.getFalseValue(); 1073 assert(isKnownNegation(TVal, FVal) && 1074 "Unexpected result from matchSelectPattern"); 1075 1076 // The compare may use the negated abs()/nabs() operand, or it may use 1077 // negation in non-canonical form such as: sub A, B. 1078 bool CmpUsesNegatedOp = match(Cmp.getOperand(0), m_Neg(m_Specific(TVal))) || 1079 match(Cmp.getOperand(0), m_Neg(m_Specific(FVal))); 1080 1081 bool CmpCanonicalized = !CmpUsesNegatedOp && 1082 match(Cmp.getOperand(1), m_ZeroInt()) && 1083 Cmp.getPredicate() == ICmpInst::ICMP_SLT; 1084 bool RHSCanonicalized = match(RHS, m_Neg(m_Specific(LHS))); 1085 1086 // Is this already canonical? 1087 if (CmpCanonicalized && RHSCanonicalized) 1088 return nullptr; 1089 1090 // If RHS is not canonical but is used by other instructions, don't 1091 // canonicalize it and potentially increase the instruction count. 1092 if (!RHSCanonicalized) 1093 if (!(RHS->hasOneUse() || (RHS->hasNUses(2) && CmpUsesNegatedOp))) 1094 return nullptr; 1095 1096 // Create the canonical compare: icmp slt LHS 0. 1097 if (!CmpCanonicalized) { 1098 Cmp.setPredicate(ICmpInst::ICMP_SLT); 1099 Cmp.setOperand(1, ConstantInt::getNullValue(Cmp.getOperand(0)->getType())); 1100 if (CmpUsesNegatedOp) 1101 Cmp.setOperand(0, LHS); 1102 } 1103 1104 // Create the canonical RHS: RHS = sub (0, LHS). 1105 if (!RHSCanonicalized) { 1106 assert(RHS->hasOneUse() && "RHS use number is not right"); 1107 RHS = IC.Builder.CreateNeg(LHS); 1108 if (TVal == LHS) { 1109 // Replace false value. 1110 IC.replaceOperand(Sel, 2, RHS); 1111 FVal = RHS; 1112 } else { 1113 // Replace true value. 1114 IC.replaceOperand(Sel, 1, RHS); 1115 TVal = RHS; 1116 } 1117 } 1118 1119 // If the select operands do not change, we're done. 1120 if (SPF == SelectPatternFlavor::SPF_NABS) { 1121 if (TVal == LHS) 1122 return &Sel; 1123 assert(FVal == LHS && "Unexpected results from matchSelectPattern"); 1124 } else { 1125 if (FVal == LHS) 1126 return &Sel; 1127 assert(TVal == LHS && "Unexpected results from matchSelectPattern"); 1128 } 1129 1130 // We are swapping the select operands, so swap the metadata too. 1131 Sel.swapValues(); 1132 Sel.swapProfMetadata(); 1133 return &Sel; 1134 } 1135 1136 /// If we have a select with an equality comparison, then we know the value in 1137 /// one of the arms of the select. See if substituting this value into an arm 1138 /// and simplifying the result yields the same value as the other arm. 1139 /// 1140 /// To make this transform safe, we must drop poison-generating flags 1141 /// (nsw, etc) if we simplified to a binop because the select may be guarding 1142 /// that poison from propagating. If the existing binop already had no 1143 /// poison-generating flags, then this transform can be done by instsimplify. 1144 /// 1145 /// Consider: 1146 /// %cmp = icmp eq i32 %x, 2147483647 1147 /// %add = add nsw i32 %x, 1 1148 /// %sel = select i1 %cmp, i32 -2147483648, i32 %add 1149 /// 1150 /// We can't replace %sel with %add unless we strip away the flags. 1151 /// TODO: Wrapping flags could be preserved in some cases with better analysis. 1152 Instruction *InstCombinerImpl::foldSelectValueEquivalence(SelectInst &Sel, 1153 ICmpInst &Cmp) { 1154 if (!Cmp.isEquality()) 1155 return nullptr; 1156 1157 // Canonicalize the pattern to ICMP_EQ by swapping the select operands. 1158 Value *TrueVal = Sel.getTrueValue(), *FalseVal = Sel.getFalseValue(); 1159 bool Swapped = false; 1160 if (Cmp.getPredicate() == ICmpInst::ICMP_NE) { 1161 std::swap(TrueVal, FalseVal); 1162 Swapped = true; 1163 } 1164 1165 // In X == Y ? f(X) : Z, try to evaluate f(Y) and replace the operand. 1166 // Make sure Y cannot be undef though, as we might pick different values for 1167 // undef in the icmp and in f(Y). Additionally, take care to avoid replacing 1168 // X == Y ? X : Z with X == Y ? Y : Z, as that would lead to an infinite 1169 // replacement cycle. 1170 Value *CmpLHS = Cmp.getOperand(0), *CmpRHS = Cmp.getOperand(1); 1171 if (TrueVal != CmpLHS && 1172 isGuaranteedNotToBeUndefOrPoison(CmpRHS, SQ.AC, &Sel, &DT)) 1173 if (Value *V = SimplifyWithOpReplaced(TrueVal, CmpLHS, CmpRHS, SQ, 1174 /* AllowRefinement */ true)) 1175 return replaceOperand(Sel, Swapped ? 2 : 1, V); 1176 if (TrueVal != CmpRHS && 1177 isGuaranteedNotToBeUndefOrPoison(CmpLHS, SQ.AC, &Sel, &DT)) 1178 if (Value *V = SimplifyWithOpReplaced(TrueVal, CmpRHS, CmpLHS, SQ, 1179 /* AllowRefinement */ true)) 1180 return replaceOperand(Sel, Swapped ? 2 : 1, V); 1181 1182 auto *FalseInst = dyn_cast<Instruction>(FalseVal); 1183 if (!FalseInst) 1184 return nullptr; 1185 1186 // InstSimplify already performed this fold if it was possible subject to 1187 // current poison-generating flags. Try the transform again with 1188 // poison-generating flags temporarily dropped. 1189 bool WasNUW = false, WasNSW = false, WasExact = false, WasInBounds = false; 1190 if (auto *OBO = dyn_cast<OverflowingBinaryOperator>(FalseVal)) { 1191 WasNUW = OBO->hasNoUnsignedWrap(); 1192 WasNSW = OBO->hasNoSignedWrap(); 1193 FalseInst->setHasNoUnsignedWrap(false); 1194 FalseInst->setHasNoSignedWrap(false); 1195 } 1196 if (auto *PEO = dyn_cast<PossiblyExactOperator>(FalseVal)) { 1197 WasExact = PEO->isExact(); 1198 FalseInst->setIsExact(false); 1199 } 1200 if (auto *GEP = dyn_cast<GetElementPtrInst>(FalseVal)) { 1201 WasInBounds = GEP->isInBounds(); 1202 GEP->setIsInBounds(false); 1203 } 1204 1205 // Try each equivalence substitution possibility. 1206 // We have an 'EQ' comparison, so the select's false value will propagate. 1207 // Example: 1208 // (X == 42) ? 43 : (X + 1) --> (X == 42) ? (X + 1) : (X + 1) --> X + 1 1209 if (SimplifyWithOpReplaced(FalseVal, CmpLHS, CmpRHS, SQ, 1210 /* AllowRefinement */ false) == TrueVal || 1211 SimplifyWithOpReplaced(FalseVal, CmpRHS, CmpLHS, SQ, 1212 /* AllowRefinement */ false) == TrueVal) { 1213 return replaceInstUsesWith(Sel, FalseVal); 1214 } 1215 1216 // Restore poison-generating flags if the transform did not apply. 1217 if (WasNUW) 1218 FalseInst->setHasNoUnsignedWrap(); 1219 if (WasNSW) 1220 FalseInst->setHasNoSignedWrap(); 1221 if (WasExact) 1222 FalseInst->setIsExact(); 1223 if (WasInBounds) 1224 cast<GetElementPtrInst>(FalseInst)->setIsInBounds(); 1225 1226 return nullptr; 1227 } 1228 1229 // See if this is a pattern like: 1230 // %old_cmp1 = icmp slt i32 %x, C2 1231 // %old_replacement = select i1 %old_cmp1, i32 %target_low, i32 %target_high 1232 // %old_x_offseted = add i32 %x, C1 1233 // %old_cmp0 = icmp ult i32 %old_x_offseted, C0 1234 // %r = select i1 %old_cmp0, i32 %x, i32 %old_replacement 1235 // This can be rewritten as more canonical pattern: 1236 // %new_cmp1 = icmp slt i32 %x, -C1 1237 // %new_cmp2 = icmp sge i32 %x, C0-C1 1238 // %new_clamped_low = select i1 %new_cmp1, i32 %target_low, i32 %x 1239 // %r = select i1 %new_cmp2, i32 %target_high, i32 %new_clamped_low 1240 // Iff -C1 s<= C2 s<= C0-C1 1241 // Also ULT predicate can also be UGT iff C0 != -1 (+invert result) 1242 // SLT predicate can also be SGT iff C2 != INT_MAX (+invert res.) 1243 static Instruction *canonicalizeClampLike(SelectInst &Sel0, ICmpInst &Cmp0, 1244 InstCombiner::BuilderTy &Builder) { 1245 Value *X = Sel0.getTrueValue(); 1246 Value *Sel1 = Sel0.getFalseValue(); 1247 1248 // First match the condition of the outermost select. 1249 // Said condition must be one-use. 1250 if (!Cmp0.hasOneUse()) 1251 return nullptr; 1252 Value *Cmp00 = Cmp0.getOperand(0); 1253 Constant *C0; 1254 if (!match(Cmp0.getOperand(1), 1255 m_CombineAnd(m_AnyIntegralConstant(), m_Constant(C0)))) 1256 return nullptr; 1257 // Canonicalize Cmp0 into the form we expect. 1258 // FIXME: we shouldn't care about lanes that are 'undef' in the end? 1259 switch (Cmp0.getPredicate()) { 1260 case ICmpInst::Predicate::ICMP_ULT: 1261 break; // Great! 1262 case ICmpInst::Predicate::ICMP_ULE: 1263 // We'd have to increment C0 by one, and for that it must not have all-ones 1264 // element, but then it would have been canonicalized to 'ult' before 1265 // we get here. So we can't do anything useful with 'ule'. 1266 return nullptr; 1267 case ICmpInst::Predicate::ICMP_UGT: 1268 // We want to canonicalize it to 'ult', so we'll need to increment C0, 1269 // which again means it must not have any all-ones elements. 1270 if (!match(C0, 1271 m_SpecificInt_ICMP(ICmpInst::Predicate::ICMP_NE, 1272 APInt::getAllOnesValue( 1273 C0->getType()->getScalarSizeInBits())))) 1274 return nullptr; // Can't do, have all-ones element[s]. 1275 C0 = InstCombiner::AddOne(C0); 1276 std::swap(X, Sel1); 1277 break; 1278 case ICmpInst::Predicate::ICMP_UGE: 1279 // The only way we'd get this predicate if this `icmp` has extra uses, 1280 // but then we won't be able to do this fold. 1281 return nullptr; 1282 default: 1283 return nullptr; // Unknown predicate. 1284 } 1285 1286 // Now that we've canonicalized the ICmp, we know the X we expect; 1287 // the select in other hand should be one-use. 1288 if (!Sel1->hasOneUse()) 1289 return nullptr; 1290 1291 // We now can finish matching the condition of the outermost select: 1292 // it should either be the X itself, or an addition of some constant to X. 1293 Constant *C1; 1294 if (Cmp00 == X) 1295 C1 = ConstantInt::getNullValue(Sel0.getType()); 1296 else if (!match(Cmp00, 1297 m_Add(m_Specific(X), 1298 m_CombineAnd(m_AnyIntegralConstant(), m_Constant(C1))))) 1299 return nullptr; 1300 1301 Value *Cmp1; 1302 ICmpInst::Predicate Pred1; 1303 Constant *C2; 1304 Value *ReplacementLow, *ReplacementHigh; 1305 if (!match(Sel1, m_Select(m_Value(Cmp1), m_Value(ReplacementLow), 1306 m_Value(ReplacementHigh))) || 1307 !match(Cmp1, 1308 m_ICmp(Pred1, m_Specific(X), 1309 m_CombineAnd(m_AnyIntegralConstant(), m_Constant(C2))))) 1310 return nullptr; 1311 1312 if (!Cmp1->hasOneUse() && (Cmp00 == X || !Cmp00->hasOneUse())) 1313 return nullptr; // Not enough one-use instructions for the fold. 1314 // FIXME: this restriction could be relaxed if Cmp1 can be reused as one of 1315 // two comparisons we'll need to build. 1316 1317 // Canonicalize Cmp1 into the form we expect. 1318 // FIXME: we shouldn't care about lanes that are 'undef' in the end? 1319 switch (Pred1) { 1320 case ICmpInst::Predicate::ICMP_SLT: 1321 break; 1322 case ICmpInst::Predicate::ICMP_SLE: 1323 // We'd have to increment C2 by one, and for that it must not have signed 1324 // max element, but then it would have been canonicalized to 'slt' before 1325 // we get here. So we can't do anything useful with 'sle'. 1326 return nullptr; 1327 case ICmpInst::Predicate::ICMP_SGT: 1328 // We want to canonicalize it to 'slt', so we'll need to increment C2, 1329 // which again means it must not have any signed max elements. 1330 if (!match(C2, 1331 m_SpecificInt_ICMP(ICmpInst::Predicate::ICMP_NE, 1332 APInt::getSignedMaxValue( 1333 C2->getType()->getScalarSizeInBits())))) 1334 return nullptr; // Can't do, have signed max element[s]. 1335 C2 = InstCombiner::AddOne(C2); 1336 LLVM_FALLTHROUGH; 1337 case ICmpInst::Predicate::ICMP_SGE: 1338 // Also non-canonical, but here we don't need to change C2, 1339 // so we don't have any restrictions on C2, so we can just handle it. 1340 std::swap(ReplacementLow, ReplacementHigh); 1341 break; 1342 default: 1343 return nullptr; // Unknown predicate. 1344 } 1345 1346 // The thresholds of this clamp-like pattern. 1347 auto *ThresholdLowIncl = ConstantExpr::getNeg(C1); 1348 auto *ThresholdHighExcl = ConstantExpr::getSub(C0, C1); 1349 1350 // The fold has a precondition 1: C2 s>= ThresholdLow 1351 auto *Precond1 = ConstantExpr::getICmp(ICmpInst::Predicate::ICMP_SGE, C2, 1352 ThresholdLowIncl); 1353 if (!match(Precond1, m_One())) 1354 return nullptr; 1355 // The fold has a precondition 2: C2 s<= ThresholdHigh 1356 auto *Precond2 = ConstantExpr::getICmp(ICmpInst::Predicate::ICMP_SLE, C2, 1357 ThresholdHighExcl); 1358 if (!match(Precond2, m_One())) 1359 return nullptr; 1360 1361 // All good, finally emit the new pattern. 1362 Value *ShouldReplaceLow = Builder.CreateICmpSLT(X, ThresholdLowIncl); 1363 Value *ShouldReplaceHigh = Builder.CreateICmpSGE(X, ThresholdHighExcl); 1364 Value *MaybeReplacedLow = 1365 Builder.CreateSelect(ShouldReplaceLow, ReplacementLow, X); 1366 Instruction *MaybeReplacedHigh = 1367 SelectInst::Create(ShouldReplaceHigh, ReplacementHigh, MaybeReplacedLow); 1368 1369 return MaybeReplacedHigh; 1370 } 1371 1372 // If we have 1373 // %cmp = icmp [canonical predicate] i32 %x, C0 1374 // %r = select i1 %cmp, i32 %y, i32 C1 1375 // Where C0 != C1 and %x may be different from %y, see if the constant that we 1376 // will have if we flip the strictness of the predicate (i.e. without changing 1377 // the result) is identical to the C1 in select. If it matches we can change 1378 // original comparison to one with swapped predicate, reuse the constant, 1379 // and swap the hands of select. 1380 static Instruction * 1381 tryToReuseConstantFromSelectInComparison(SelectInst &Sel, ICmpInst &Cmp, 1382 InstCombinerImpl &IC) { 1383 ICmpInst::Predicate Pred; 1384 Value *X; 1385 Constant *C0; 1386 if (!match(&Cmp, m_OneUse(m_ICmp( 1387 Pred, m_Value(X), 1388 m_CombineAnd(m_AnyIntegralConstant(), m_Constant(C0)))))) 1389 return nullptr; 1390 1391 // If comparison predicate is non-relational, we won't be able to do anything. 1392 if (ICmpInst::isEquality(Pred)) 1393 return nullptr; 1394 1395 // If comparison predicate is non-canonical, then we certainly won't be able 1396 // to make it canonical; canonicalizeCmpWithConstant() already tried. 1397 if (!InstCombiner::isCanonicalPredicate(Pred)) 1398 return nullptr; 1399 1400 // If the [input] type of comparison and select type are different, lets abort 1401 // for now. We could try to compare constants with trunc/[zs]ext though. 1402 if (C0->getType() != Sel.getType()) 1403 return nullptr; 1404 1405 // FIXME: are there any magic icmp predicate+constant pairs we must not touch? 1406 1407 Value *SelVal0, *SelVal1; // We do not care which one is from where. 1408 match(&Sel, m_Select(m_Value(), m_Value(SelVal0), m_Value(SelVal1))); 1409 // At least one of these values we are selecting between must be a constant 1410 // else we'll never succeed. 1411 if (!match(SelVal0, m_AnyIntegralConstant()) && 1412 !match(SelVal1, m_AnyIntegralConstant())) 1413 return nullptr; 1414 1415 // Does this constant C match any of the `select` values? 1416 auto MatchesSelectValue = [SelVal0, SelVal1](Constant *C) { 1417 return C->isElementWiseEqual(SelVal0) || C->isElementWiseEqual(SelVal1); 1418 }; 1419 1420 // If C0 *already* matches true/false value of select, we are done. 1421 if (MatchesSelectValue(C0)) 1422 return nullptr; 1423 1424 // Check the constant we'd have with flipped-strictness predicate. 1425 auto FlippedStrictness = 1426 InstCombiner::getFlippedStrictnessPredicateAndConstant(Pred, C0); 1427 if (!FlippedStrictness) 1428 return nullptr; 1429 1430 // If said constant doesn't match either, then there is no hope, 1431 if (!MatchesSelectValue(FlippedStrictness->second)) 1432 return nullptr; 1433 1434 // It matched! Lets insert the new comparison just before select. 1435 InstCombiner::BuilderTy::InsertPointGuard Guard(IC.Builder); 1436 IC.Builder.SetInsertPoint(&Sel); 1437 1438 Pred = ICmpInst::getSwappedPredicate(Pred); // Yes, swapped. 1439 Value *NewCmp = IC.Builder.CreateICmp(Pred, X, FlippedStrictness->second, 1440 Cmp.getName() + ".inv"); 1441 IC.replaceOperand(Sel, 0, NewCmp); 1442 Sel.swapValues(); 1443 Sel.swapProfMetadata(); 1444 1445 return &Sel; 1446 } 1447 1448 /// Visit a SelectInst that has an ICmpInst as its first operand. 1449 Instruction *InstCombinerImpl::foldSelectInstWithICmp(SelectInst &SI, 1450 ICmpInst *ICI) { 1451 if (Instruction *NewSel = foldSelectValueEquivalence(SI, *ICI)) 1452 return NewSel; 1453 1454 if (Instruction *NewSel = canonicalizeMinMaxWithConstant(SI, *ICI, *this)) 1455 return NewSel; 1456 1457 if (Instruction *NewAbs = canonicalizeAbsNabs(SI, *ICI, *this)) 1458 return NewAbs; 1459 1460 if (Instruction *NewAbs = canonicalizeClampLike(SI, *ICI, Builder)) 1461 return NewAbs; 1462 1463 if (Instruction *NewSel = 1464 tryToReuseConstantFromSelectInComparison(SI, *ICI, *this)) 1465 return NewSel; 1466 1467 bool Changed = adjustMinMax(SI, *ICI); 1468 1469 if (Value *V = foldSelectICmpAnd(SI, ICI, Builder)) 1470 return replaceInstUsesWith(SI, V); 1471 1472 // NOTE: if we wanted to, this is where to detect integer MIN/MAX 1473 Value *TrueVal = SI.getTrueValue(); 1474 Value *FalseVal = SI.getFalseValue(); 1475 ICmpInst::Predicate Pred = ICI->getPredicate(); 1476 Value *CmpLHS = ICI->getOperand(0); 1477 Value *CmpRHS = ICI->getOperand(1); 1478 if (CmpRHS != CmpLHS && isa<Constant>(CmpRHS)) { 1479 if (CmpLHS == TrueVal && Pred == ICmpInst::ICMP_EQ) { 1480 // Transform (X == C) ? X : Y -> (X == C) ? C : Y 1481 SI.setOperand(1, CmpRHS); 1482 Changed = true; 1483 } else if (CmpLHS == FalseVal && Pred == ICmpInst::ICMP_NE) { 1484 // Transform (X != C) ? Y : X -> (X != C) ? Y : C 1485 SI.setOperand(2, CmpRHS); 1486 Changed = true; 1487 } 1488 } 1489 1490 // FIXME: This code is nearly duplicated in InstSimplify. Using/refactoring 1491 // decomposeBitTestICmp() might help. 1492 { 1493 unsigned BitWidth = 1494 DL.getTypeSizeInBits(TrueVal->getType()->getScalarType()); 1495 APInt MinSignedValue = APInt::getSignedMinValue(BitWidth); 1496 Value *X; 1497 const APInt *Y, *C; 1498 bool TrueWhenUnset; 1499 bool IsBitTest = false; 1500 if (ICmpInst::isEquality(Pred) && 1501 match(CmpLHS, m_And(m_Value(X), m_Power2(Y))) && 1502 match(CmpRHS, m_Zero())) { 1503 IsBitTest = true; 1504 TrueWhenUnset = Pred == ICmpInst::ICMP_EQ; 1505 } else if (Pred == ICmpInst::ICMP_SLT && match(CmpRHS, m_Zero())) { 1506 X = CmpLHS; 1507 Y = &MinSignedValue; 1508 IsBitTest = true; 1509 TrueWhenUnset = false; 1510 } else if (Pred == ICmpInst::ICMP_SGT && match(CmpRHS, m_AllOnes())) { 1511 X = CmpLHS; 1512 Y = &MinSignedValue; 1513 IsBitTest = true; 1514 TrueWhenUnset = true; 1515 } 1516 if (IsBitTest) { 1517 Value *V = nullptr; 1518 // (X & Y) == 0 ? X : X ^ Y --> X & ~Y 1519 if (TrueWhenUnset && TrueVal == X && 1520 match(FalseVal, m_Xor(m_Specific(X), m_APInt(C))) && *Y == *C) 1521 V = Builder.CreateAnd(X, ~(*Y)); 1522 // (X & Y) != 0 ? X ^ Y : X --> X & ~Y 1523 else if (!TrueWhenUnset && FalseVal == X && 1524 match(TrueVal, m_Xor(m_Specific(X), m_APInt(C))) && *Y == *C) 1525 V = Builder.CreateAnd(X, ~(*Y)); 1526 // (X & Y) == 0 ? X ^ Y : X --> X | Y 1527 else if (TrueWhenUnset && FalseVal == X && 1528 match(TrueVal, m_Xor(m_Specific(X), m_APInt(C))) && *Y == *C) 1529 V = Builder.CreateOr(X, *Y); 1530 // (X & Y) != 0 ? X : X ^ Y --> X | Y 1531 else if (!TrueWhenUnset && TrueVal == X && 1532 match(FalseVal, m_Xor(m_Specific(X), m_APInt(C))) && *Y == *C) 1533 V = Builder.CreateOr(X, *Y); 1534 1535 if (V) 1536 return replaceInstUsesWith(SI, V); 1537 } 1538 } 1539 1540 if (Instruction *V = 1541 foldSelectICmpAndAnd(SI.getType(), ICI, TrueVal, FalseVal, Builder)) 1542 return V; 1543 1544 if (Instruction *V = foldSelectCtlzToCttz(ICI, TrueVal, FalseVal, Builder)) 1545 return V; 1546 1547 if (Value *V = foldSelectICmpAndOr(ICI, TrueVal, FalseVal, Builder)) 1548 return replaceInstUsesWith(SI, V); 1549 1550 if (Value *V = foldSelectICmpLshrAshr(ICI, TrueVal, FalseVal, Builder)) 1551 return replaceInstUsesWith(SI, V); 1552 1553 if (Value *V = foldSelectCttzCtlz(ICI, TrueVal, FalseVal, Builder)) 1554 return replaceInstUsesWith(SI, V); 1555 1556 if (Value *V = canonicalizeSaturatedSubtract(ICI, TrueVal, FalseVal, Builder)) 1557 return replaceInstUsesWith(SI, V); 1558 1559 if (Value *V = canonicalizeSaturatedAdd(ICI, TrueVal, FalseVal, Builder)) 1560 return replaceInstUsesWith(SI, V); 1561 1562 return Changed ? &SI : nullptr; 1563 } 1564 1565 /// SI is a select whose condition is a PHI node (but the two may be in 1566 /// different blocks). See if the true/false values (V) are live in all of the 1567 /// predecessor blocks of the PHI. For example, cases like this can't be mapped: 1568 /// 1569 /// X = phi [ C1, BB1], [C2, BB2] 1570 /// Y = add 1571 /// Z = select X, Y, 0 1572 /// 1573 /// because Y is not live in BB1/BB2. 1574 static bool canSelectOperandBeMappingIntoPredBlock(const Value *V, 1575 const SelectInst &SI) { 1576 // If the value is a non-instruction value like a constant or argument, it 1577 // can always be mapped. 1578 const Instruction *I = dyn_cast<Instruction>(V); 1579 if (!I) return true; 1580 1581 // If V is a PHI node defined in the same block as the condition PHI, we can 1582 // map the arguments. 1583 const PHINode *CondPHI = cast<PHINode>(SI.getCondition()); 1584 1585 if (const PHINode *VP = dyn_cast<PHINode>(I)) 1586 if (VP->getParent() == CondPHI->getParent()) 1587 return true; 1588 1589 // Otherwise, if the PHI and select are defined in the same block and if V is 1590 // defined in a different block, then we can transform it. 1591 if (SI.getParent() == CondPHI->getParent() && 1592 I->getParent() != CondPHI->getParent()) 1593 return true; 1594 1595 // Otherwise we have a 'hard' case and we can't tell without doing more 1596 // detailed dominator based analysis, punt. 1597 return false; 1598 } 1599 1600 /// We have an SPF (e.g. a min or max) of an SPF of the form: 1601 /// SPF2(SPF1(A, B), C) 1602 Instruction *InstCombinerImpl::foldSPFofSPF(Instruction *Inner, 1603 SelectPatternFlavor SPF1, Value *A, 1604 Value *B, Instruction &Outer, 1605 SelectPatternFlavor SPF2, 1606 Value *C) { 1607 if (Outer.getType() != Inner->getType()) 1608 return nullptr; 1609 1610 if (C == A || C == B) { 1611 // MAX(MAX(A, B), B) -> MAX(A, B) 1612 // MIN(MIN(a, b), a) -> MIN(a, b) 1613 // TODO: This could be done in instsimplify. 1614 if (SPF1 == SPF2 && SelectPatternResult::isMinOrMax(SPF1)) 1615 return replaceInstUsesWith(Outer, Inner); 1616 1617 // MAX(MIN(a, b), a) -> a 1618 // MIN(MAX(a, b), a) -> a 1619 // TODO: This could be done in instsimplify. 1620 if ((SPF1 == SPF_SMIN && SPF2 == SPF_SMAX) || 1621 (SPF1 == SPF_SMAX && SPF2 == SPF_SMIN) || 1622 (SPF1 == SPF_UMIN && SPF2 == SPF_UMAX) || 1623 (SPF1 == SPF_UMAX && SPF2 == SPF_UMIN)) 1624 return replaceInstUsesWith(Outer, C); 1625 } 1626 1627 if (SPF1 == SPF2) { 1628 const APInt *CB, *CC; 1629 if (match(B, m_APInt(CB)) && match(C, m_APInt(CC))) { 1630 // MIN(MIN(A, 23), 97) -> MIN(A, 23) 1631 // MAX(MAX(A, 97), 23) -> MAX(A, 97) 1632 // TODO: This could be done in instsimplify. 1633 if ((SPF1 == SPF_UMIN && CB->ule(*CC)) || 1634 (SPF1 == SPF_SMIN && CB->sle(*CC)) || 1635 (SPF1 == SPF_UMAX && CB->uge(*CC)) || 1636 (SPF1 == SPF_SMAX && CB->sge(*CC))) 1637 return replaceInstUsesWith(Outer, Inner); 1638 1639 // MIN(MIN(A, 97), 23) -> MIN(A, 23) 1640 // MAX(MAX(A, 23), 97) -> MAX(A, 97) 1641 if ((SPF1 == SPF_UMIN && CB->ugt(*CC)) || 1642 (SPF1 == SPF_SMIN && CB->sgt(*CC)) || 1643 (SPF1 == SPF_UMAX && CB->ult(*CC)) || 1644 (SPF1 == SPF_SMAX && CB->slt(*CC))) { 1645 Outer.replaceUsesOfWith(Inner, A); 1646 return &Outer; 1647 } 1648 } 1649 } 1650 1651 // max(max(A, B), min(A, B)) --> max(A, B) 1652 // min(min(A, B), max(A, B)) --> min(A, B) 1653 // TODO: This could be done in instsimplify. 1654 if (SPF1 == SPF2 && 1655 ((SPF1 == SPF_UMIN && match(C, m_c_UMax(m_Specific(A), m_Specific(B)))) || 1656 (SPF1 == SPF_SMIN && match(C, m_c_SMax(m_Specific(A), m_Specific(B)))) || 1657 (SPF1 == SPF_UMAX && match(C, m_c_UMin(m_Specific(A), m_Specific(B)))) || 1658 (SPF1 == SPF_SMAX && match(C, m_c_SMin(m_Specific(A), m_Specific(B)))))) 1659 return replaceInstUsesWith(Outer, Inner); 1660 1661 // ABS(ABS(X)) -> ABS(X) 1662 // NABS(NABS(X)) -> NABS(X) 1663 // TODO: This could be done in instsimplify. 1664 if (SPF1 == SPF2 && (SPF1 == SPF_ABS || SPF1 == SPF_NABS)) { 1665 return replaceInstUsesWith(Outer, Inner); 1666 } 1667 1668 // ABS(NABS(X)) -> ABS(X) 1669 // NABS(ABS(X)) -> NABS(X) 1670 if ((SPF1 == SPF_ABS && SPF2 == SPF_NABS) || 1671 (SPF1 == SPF_NABS && SPF2 == SPF_ABS)) { 1672 SelectInst *SI = cast<SelectInst>(Inner); 1673 Value *NewSI = 1674 Builder.CreateSelect(SI->getCondition(), SI->getFalseValue(), 1675 SI->getTrueValue(), SI->getName(), SI); 1676 return replaceInstUsesWith(Outer, NewSI); 1677 } 1678 1679 auto IsFreeOrProfitableToInvert = 1680 [&](Value *V, Value *&NotV, bool &ElidesXor) { 1681 if (match(V, m_Not(m_Value(NotV)))) { 1682 // If V has at most 2 uses then we can get rid of the xor operation 1683 // entirely. 1684 ElidesXor |= !V->hasNUsesOrMore(3); 1685 return true; 1686 } 1687 1688 if (isFreeToInvert(V, !V->hasNUsesOrMore(3))) { 1689 NotV = nullptr; 1690 return true; 1691 } 1692 1693 return false; 1694 }; 1695 1696 Value *NotA, *NotB, *NotC; 1697 bool ElidesXor = false; 1698 1699 // MIN(MIN(~A, ~B), ~C) == ~MAX(MAX(A, B), C) 1700 // MIN(MAX(~A, ~B), ~C) == ~MAX(MIN(A, B), C) 1701 // MAX(MIN(~A, ~B), ~C) == ~MIN(MAX(A, B), C) 1702 // MAX(MAX(~A, ~B), ~C) == ~MIN(MIN(A, B), C) 1703 // 1704 // This transform is performance neutral if we can elide at least one xor from 1705 // the set of three operands, since we'll be tacking on an xor at the very 1706 // end. 1707 if (SelectPatternResult::isMinOrMax(SPF1) && 1708 SelectPatternResult::isMinOrMax(SPF2) && 1709 IsFreeOrProfitableToInvert(A, NotA, ElidesXor) && 1710 IsFreeOrProfitableToInvert(B, NotB, ElidesXor) && 1711 IsFreeOrProfitableToInvert(C, NotC, ElidesXor) && ElidesXor) { 1712 if (!NotA) 1713 NotA = Builder.CreateNot(A); 1714 if (!NotB) 1715 NotB = Builder.CreateNot(B); 1716 if (!NotC) 1717 NotC = Builder.CreateNot(C); 1718 1719 Value *NewInner = createMinMax(Builder, getInverseMinMaxFlavor(SPF1), NotA, 1720 NotB); 1721 Value *NewOuter = Builder.CreateNot( 1722 createMinMax(Builder, getInverseMinMaxFlavor(SPF2), NewInner, NotC)); 1723 return replaceInstUsesWith(Outer, NewOuter); 1724 } 1725 1726 return nullptr; 1727 } 1728 1729 /// Turn select C, (X + Y), (X - Y) --> (X + (select C, Y, (-Y))). 1730 /// This is even legal for FP. 1731 static Instruction *foldAddSubSelect(SelectInst &SI, 1732 InstCombiner::BuilderTy &Builder) { 1733 Value *CondVal = SI.getCondition(); 1734 Value *TrueVal = SI.getTrueValue(); 1735 Value *FalseVal = SI.getFalseValue(); 1736 auto *TI = dyn_cast<Instruction>(TrueVal); 1737 auto *FI = dyn_cast<Instruction>(FalseVal); 1738 if (!TI || !FI || !TI->hasOneUse() || !FI->hasOneUse()) 1739 return nullptr; 1740 1741 Instruction *AddOp = nullptr, *SubOp = nullptr; 1742 if ((TI->getOpcode() == Instruction::Sub && 1743 FI->getOpcode() == Instruction::Add) || 1744 (TI->getOpcode() == Instruction::FSub && 1745 FI->getOpcode() == Instruction::FAdd)) { 1746 AddOp = FI; 1747 SubOp = TI; 1748 } else if ((FI->getOpcode() == Instruction::Sub && 1749 TI->getOpcode() == Instruction::Add) || 1750 (FI->getOpcode() == Instruction::FSub && 1751 TI->getOpcode() == Instruction::FAdd)) { 1752 AddOp = TI; 1753 SubOp = FI; 1754 } 1755 1756 if (AddOp) { 1757 Value *OtherAddOp = nullptr; 1758 if (SubOp->getOperand(0) == AddOp->getOperand(0)) { 1759 OtherAddOp = AddOp->getOperand(1); 1760 } else if (SubOp->getOperand(0) == AddOp->getOperand(1)) { 1761 OtherAddOp = AddOp->getOperand(0); 1762 } 1763 1764 if (OtherAddOp) { 1765 // So at this point we know we have (Y -> OtherAddOp): 1766 // select C, (add X, Y), (sub X, Z) 1767 Value *NegVal; // Compute -Z 1768 if (SI.getType()->isFPOrFPVectorTy()) { 1769 NegVal = Builder.CreateFNeg(SubOp->getOperand(1)); 1770 if (Instruction *NegInst = dyn_cast<Instruction>(NegVal)) { 1771 FastMathFlags Flags = AddOp->getFastMathFlags(); 1772 Flags &= SubOp->getFastMathFlags(); 1773 NegInst->setFastMathFlags(Flags); 1774 } 1775 } else { 1776 NegVal = Builder.CreateNeg(SubOp->getOperand(1)); 1777 } 1778 1779 Value *NewTrueOp = OtherAddOp; 1780 Value *NewFalseOp = NegVal; 1781 if (AddOp != TI) 1782 std::swap(NewTrueOp, NewFalseOp); 1783 Value *NewSel = Builder.CreateSelect(CondVal, NewTrueOp, NewFalseOp, 1784 SI.getName() + ".p", &SI); 1785 1786 if (SI.getType()->isFPOrFPVectorTy()) { 1787 Instruction *RI = 1788 BinaryOperator::CreateFAdd(SubOp->getOperand(0), NewSel); 1789 1790 FastMathFlags Flags = AddOp->getFastMathFlags(); 1791 Flags &= SubOp->getFastMathFlags(); 1792 RI->setFastMathFlags(Flags); 1793 return RI; 1794 } else 1795 return BinaryOperator::CreateAdd(SubOp->getOperand(0), NewSel); 1796 } 1797 } 1798 return nullptr; 1799 } 1800 1801 /// Turn X + Y overflows ? -1 : X + Y -> uadd_sat X, Y 1802 /// And X - Y overflows ? 0 : X - Y -> usub_sat X, Y 1803 /// Along with a number of patterns similar to: 1804 /// X + Y overflows ? (X < 0 ? INTMIN : INTMAX) : X + Y --> sadd_sat X, Y 1805 /// X - Y overflows ? (X > 0 ? INTMAX : INTMIN) : X - Y --> ssub_sat X, Y 1806 static Instruction * 1807 foldOverflowingAddSubSelect(SelectInst &SI, InstCombiner::BuilderTy &Builder) { 1808 Value *CondVal = SI.getCondition(); 1809 Value *TrueVal = SI.getTrueValue(); 1810 Value *FalseVal = SI.getFalseValue(); 1811 1812 WithOverflowInst *II; 1813 if (!match(CondVal, m_ExtractValue<1>(m_WithOverflowInst(II))) || 1814 !match(FalseVal, m_ExtractValue<0>(m_Specific(II)))) 1815 return nullptr; 1816 1817 Value *X = II->getLHS(); 1818 Value *Y = II->getRHS(); 1819 1820 auto IsSignedSaturateLimit = [&](Value *Limit, bool IsAdd) { 1821 Type *Ty = Limit->getType(); 1822 1823 ICmpInst::Predicate Pred; 1824 Value *TrueVal, *FalseVal, *Op; 1825 const APInt *C; 1826 if (!match(Limit, m_Select(m_ICmp(Pred, m_Value(Op), m_APInt(C)), 1827 m_Value(TrueVal), m_Value(FalseVal)))) 1828 return false; 1829 1830 auto IsZeroOrOne = [](const APInt &C) { 1831 return C.isNullValue() || C.isOneValue(); 1832 }; 1833 auto IsMinMax = [&](Value *Min, Value *Max) { 1834 APInt MinVal = APInt::getSignedMinValue(Ty->getScalarSizeInBits()); 1835 APInt MaxVal = APInt::getSignedMaxValue(Ty->getScalarSizeInBits()); 1836 return match(Min, m_SpecificInt(MinVal)) && 1837 match(Max, m_SpecificInt(MaxVal)); 1838 }; 1839 1840 if (Op != X && Op != Y) 1841 return false; 1842 1843 if (IsAdd) { 1844 // X + Y overflows ? (X <s 0 ? INTMIN : INTMAX) : X + Y --> sadd_sat X, Y 1845 // X + Y overflows ? (X <s 1 ? INTMIN : INTMAX) : X + Y --> sadd_sat X, Y 1846 // X + Y overflows ? (Y <s 0 ? INTMIN : INTMAX) : X + Y --> sadd_sat X, Y 1847 // X + Y overflows ? (Y <s 1 ? INTMIN : INTMAX) : X + Y --> sadd_sat X, Y 1848 if (Pred == ICmpInst::ICMP_SLT && IsZeroOrOne(*C) && 1849 IsMinMax(TrueVal, FalseVal)) 1850 return true; 1851 // X + Y overflows ? (X >s 0 ? INTMAX : INTMIN) : X + Y --> sadd_sat X, Y 1852 // X + Y overflows ? (X >s -1 ? INTMAX : INTMIN) : X + Y --> sadd_sat X, Y 1853 // X + Y overflows ? (Y >s 0 ? INTMAX : INTMIN) : X + Y --> sadd_sat X, Y 1854 // X + Y overflows ? (Y >s -1 ? INTMAX : INTMIN) : X + Y --> sadd_sat X, Y 1855 if (Pred == ICmpInst::ICMP_SGT && IsZeroOrOne(*C + 1) && 1856 IsMinMax(FalseVal, TrueVal)) 1857 return true; 1858 } else { 1859 // X - Y overflows ? (X <s 0 ? INTMIN : INTMAX) : X - Y --> ssub_sat X, Y 1860 // X - Y overflows ? (X <s -1 ? INTMIN : INTMAX) : X - Y --> ssub_sat X, Y 1861 if (Op == X && Pred == ICmpInst::ICMP_SLT && IsZeroOrOne(*C + 1) && 1862 IsMinMax(TrueVal, FalseVal)) 1863 return true; 1864 // X - Y overflows ? (X >s -1 ? INTMAX : INTMIN) : X - Y --> ssub_sat X, Y 1865 // X - Y overflows ? (X >s -2 ? INTMAX : INTMIN) : X - Y --> ssub_sat X, Y 1866 if (Op == X && Pred == ICmpInst::ICMP_SGT && IsZeroOrOne(*C + 2) && 1867 IsMinMax(FalseVal, TrueVal)) 1868 return true; 1869 // X - Y overflows ? (Y <s 0 ? INTMAX : INTMIN) : X - Y --> ssub_sat X, Y 1870 // X - Y overflows ? (Y <s 1 ? INTMAX : INTMIN) : X - Y --> ssub_sat X, Y 1871 if (Op == Y && Pred == ICmpInst::ICMP_SLT && IsZeroOrOne(*C) && 1872 IsMinMax(FalseVal, TrueVal)) 1873 return true; 1874 // X - Y overflows ? (Y >s 0 ? INTMIN : INTMAX) : X - Y --> ssub_sat X, Y 1875 // X - Y overflows ? (Y >s -1 ? INTMIN : INTMAX) : X - Y --> ssub_sat X, Y 1876 if (Op == Y && Pred == ICmpInst::ICMP_SGT && IsZeroOrOne(*C + 1) && 1877 IsMinMax(TrueVal, FalseVal)) 1878 return true; 1879 } 1880 1881 return false; 1882 }; 1883 1884 Intrinsic::ID NewIntrinsicID; 1885 if (II->getIntrinsicID() == Intrinsic::uadd_with_overflow && 1886 match(TrueVal, m_AllOnes())) 1887 // X + Y overflows ? -1 : X + Y -> uadd_sat X, Y 1888 NewIntrinsicID = Intrinsic::uadd_sat; 1889 else if (II->getIntrinsicID() == Intrinsic::usub_with_overflow && 1890 match(TrueVal, m_Zero())) 1891 // X - Y overflows ? 0 : X - Y -> usub_sat X, Y 1892 NewIntrinsicID = Intrinsic::usub_sat; 1893 else if (II->getIntrinsicID() == Intrinsic::sadd_with_overflow && 1894 IsSignedSaturateLimit(TrueVal, /*IsAdd=*/true)) 1895 // X + Y overflows ? (X <s 0 ? INTMIN : INTMAX) : X + Y --> sadd_sat X, Y 1896 // X + Y overflows ? (X <s 1 ? INTMIN : INTMAX) : X + Y --> sadd_sat X, Y 1897 // X + Y overflows ? (X >s 0 ? INTMAX : INTMIN) : X + Y --> sadd_sat X, Y 1898 // X + Y overflows ? (X >s -1 ? INTMAX : INTMIN) : X + Y --> sadd_sat X, Y 1899 // X + Y overflows ? (Y <s 0 ? INTMIN : INTMAX) : X + Y --> sadd_sat X, Y 1900 // X + Y overflows ? (Y <s 1 ? INTMIN : INTMAX) : X + Y --> sadd_sat X, Y 1901 // X + Y overflows ? (Y >s 0 ? INTMAX : INTMIN) : X + Y --> sadd_sat X, Y 1902 // X + Y overflows ? (Y >s -1 ? INTMAX : INTMIN) : X + Y --> sadd_sat X, Y 1903 NewIntrinsicID = Intrinsic::sadd_sat; 1904 else if (II->getIntrinsicID() == Intrinsic::ssub_with_overflow && 1905 IsSignedSaturateLimit(TrueVal, /*IsAdd=*/false)) 1906 // X - Y overflows ? (X <s 0 ? INTMIN : INTMAX) : X - Y --> ssub_sat X, Y 1907 // X - Y overflows ? (X <s -1 ? INTMIN : INTMAX) : X - Y --> ssub_sat X, Y 1908 // X - Y overflows ? (X >s -1 ? INTMAX : INTMIN) : X - Y --> ssub_sat X, Y 1909 // X - Y overflows ? (X >s -2 ? INTMAX : INTMIN) : X - Y --> ssub_sat X, Y 1910 // X - Y overflows ? (Y <s 0 ? INTMAX : INTMIN) : X - Y --> ssub_sat X, Y 1911 // X - Y overflows ? (Y <s 1 ? INTMAX : INTMIN) : X - Y --> ssub_sat X, Y 1912 // X - Y overflows ? (Y >s 0 ? INTMIN : INTMAX) : X - Y --> ssub_sat X, Y 1913 // X - Y overflows ? (Y >s -1 ? INTMIN : INTMAX) : X - Y --> ssub_sat X, Y 1914 NewIntrinsicID = Intrinsic::ssub_sat; 1915 else 1916 return nullptr; 1917 1918 Function *F = 1919 Intrinsic::getDeclaration(SI.getModule(), NewIntrinsicID, SI.getType()); 1920 return CallInst::Create(F, {X, Y}); 1921 } 1922 1923 Instruction *InstCombinerImpl::foldSelectExtConst(SelectInst &Sel) { 1924 Constant *C; 1925 if (!match(Sel.getTrueValue(), m_Constant(C)) && 1926 !match(Sel.getFalseValue(), m_Constant(C))) 1927 return nullptr; 1928 1929 Instruction *ExtInst; 1930 if (!match(Sel.getTrueValue(), m_Instruction(ExtInst)) && 1931 !match(Sel.getFalseValue(), m_Instruction(ExtInst))) 1932 return nullptr; 1933 1934 auto ExtOpcode = ExtInst->getOpcode(); 1935 if (ExtOpcode != Instruction::ZExt && ExtOpcode != Instruction::SExt) 1936 return nullptr; 1937 1938 // If we are extending from a boolean type or if we can create a select that 1939 // has the same size operands as its condition, try to narrow the select. 1940 Value *X = ExtInst->getOperand(0); 1941 Type *SmallType = X->getType(); 1942 Value *Cond = Sel.getCondition(); 1943 auto *Cmp = dyn_cast<CmpInst>(Cond); 1944 if (!SmallType->isIntOrIntVectorTy(1) && 1945 (!Cmp || Cmp->getOperand(0)->getType() != SmallType)) 1946 return nullptr; 1947 1948 // If the constant is the same after truncation to the smaller type and 1949 // extension to the original type, we can narrow the select. 1950 Type *SelType = Sel.getType(); 1951 Constant *TruncC = ConstantExpr::getTrunc(C, SmallType); 1952 Constant *ExtC = ConstantExpr::getCast(ExtOpcode, TruncC, SelType); 1953 if (ExtC == C && ExtInst->hasOneUse()) { 1954 Value *TruncCVal = cast<Value>(TruncC); 1955 if (ExtInst == Sel.getFalseValue()) 1956 std::swap(X, TruncCVal); 1957 1958 // select Cond, (ext X), C --> ext(select Cond, X, C') 1959 // select Cond, C, (ext X) --> ext(select Cond, C', X) 1960 Value *NewSel = Builder.CreateSelect(Cond, X, TruncCVal, "narrow", &Sel); 1961 return CastInst::Create(Instruction::CastOps(ExtOpcode), NewSel, SelType); 1962 } 1963 1964 // If one arm of the select is the extend of the condition, replace that arm 1965 // with the extension of the appropriate known bool value. 1966 if (Cond == X) { 1967 if (ExtInst == Sel.getTrueValue()) { 1968 // select X, (sext X), C --> select X, -1, C 1969 // select X, (zext X), C --> select X, 1, C 1970 Constant *One = ConstantInt::getTrue(SmallType); 1971 Constant *AllOnesOrOne = ConstantExpr::getCast(ExtOpcode, One, SelType); 1972 return SelectInst::Create(Cond, AllOnesOrOne, C, "", nullptr, &Sel); 1973 } else { 1974 // select X, C, (sext X) --> select X, C, 0 1975 // select X, C, (zext X) --> select X, C, 0 1976 Constant *Zero = ConstantInt::getNullValue(SelType); 1977 return SelectInst::Create(Cond, C, Zero, "", nullptr, &Sel); 1978 } 1979 } 1980 1981 return nullptr; 1982 } 1983 1984 /// Try to transform a vector select with a constant condition vector into a 1985 /// shuffle for easier combining with other shuffles and insert/extract. 1986 static Instruction *canonicalizeSelectToShuffle(SelectInst &SI) { 1987 Value *CondVal = SI.getCondition(); 1988 Constant *CondC; 1989 if (!CondVal->getType()->isVectorTy() || !match(CondVal, m_Constant(CondC))) 1990 return nullptr; 1991 1992 unsigned NumElts = 1993 cast<FixedVectorType>(CondVal->getType())->getNumElements(); 1994 SmallVector<int, 16> Mask; 1995 Mask.reserve(NumElts); 1996 for (unsigned i = 0; i != NumElts; ++i) { 1997 Constant *Elt = CondC->getAggregateElement(i); 1998 if (!Elt) 1999 return nullptr; 2000 2001 if (Elt->isOneValue()) { 2002 // If the select condition element is true, choose from the 1st vector. 2003 Mask.push_back(i); 2004 } else if (Elt->isNullValue()) { 2005 // If the select condition element is false, choose from the 2nd vector. 2006 Mask.push_back(i + NumElts); 2007 } else if (isa<UndefValue>(Elt)) { 2008 // Undef in a select condition (choose one of the operands) does not mean 2009 // the same thing as undef in a shuffle mask (any value is acceptable), so 2010 // give up. 2011 return nullptr; 2012 } else { 2013 // Bail out on a constant expression. 2014 return nullptr; 2015 } 2016 } 2017 2018 return new ShuffleVectorInst(SI.getTrueValue(), SI.getFalseValue(), Mask); 2019 } 2020 2021 /// If we have a select of vectors with a scalar condition, try to convert that 2022 /// to a vector select by splatting the condition. A splat may get folded with 2023 /// other operations in IR and having all operands of a select be vector types 2024 /// is likely better for vector codegen. 2025 static Instruction *canonicalizeScalarSelectOfVecs(SelectInst &Sel, 2026 InstCombinerImpl &IC) { 2027 auto *Ty = dyn_cast<VectorType>(Sel.getType()); 2028 if (!Ty) 2029 return nullptr; 2030 2031 // We can replace a single-use extract with constant index. 2032 Value *Cond = Sel.getCondition(); 2033 if (!match(Cond, m_OneUse(m_ExtractElt(m_Value(), m_ConstantInt())))) 2034 return nullptr; 2035 2036 // select (extelt V, Index), T, F --> select (splat V, Index), T, F 2037 // Splatting the extracted condition reduces code (we could directly create a 2038 // splat shuffle of the source vector to eliminate the intermediate step). 2039 return IC.replaceOperand( 2040 Sel, 0, IC.Builder.CreateVectorSplat(Ty->getElementCount(), Cond)); 2041 } 2042 2043 /// Reuse bitcasted operands between a compare and select: 2044 /// select (cmp (bitcast C), (bitcast D)), (bitcast' C), (bitcast' D) --> 2045 /// bitcast (select (cmp (bitcast C), (bitcast D)), (bitcast C), (bitcast D)) 2046 static Instruction *foldSelectCmpBitcasts(SelectInst &Sel, 2047 InstCombiner::BuilderTy &Builder) { 2048 Value *Cond = Sel.getCondition(); 2049 Value *TVal = Sel.getTrueValue(); 2050 Value *FVal = Sel.getFalseValue(); 2051 2052 CmpInst::Predicate Pred; 2053 Value *A, *B; 2054 if (!match(Cond, m_Cmp(Pred, m_Value(A), m_Value(B)))) 2055 return nullptr; 2056 2057 // The select condition is a compare instruction. If the select's true/false 2058 // values are already the same as the compare operands, there's nothing to do. 2059 if (TVal == A || TVal == B || FVal == A || FVal == B) 2060 return nullptr; 2061 2062 Value *C, *D; 2063 if (!match(A, m_BitCast(m_Value(C))) || !match(B, m_BitCast(m_Value(D)))) 2064 return nullptr; 2065 2066 // select (cmp (bitcast C), (bitcast D)), (bitcast TSrc), (bitcast FSrc) 2067 Value *TSrc, *FSrc; 2068 if (!match(TVal, m_BitCast(m_Value(TSrc))) || 2069 !match(FVal, m_BitCast(m_Value(FSrc)))) 2070 return nullptr; 2071 2072 // If the select true/false values are *different bitcasts* of the same source 2073 // operands, make the select operands the same as the compare operands and 2074 // cast the result. This is the canonical select form for min/max. 2075 Value *NewSel; 2076 if (TSrc == C && FSrc == D) { 2077 // select (cmp (bitcast C), (bitcast D)), (bitcast' C), (bitcast' D) --> 2078 // bitcast (select (cmp A, B), A, B) 2079 NewSel = Builder.CreateSelect(Cond, A, B, "", &Sel); 2080 } else if (TSrc == D && FSrc == C) { 2081 // select (cmp (bitcast C), (bitcast D)), (bitcast' D), (bitcast' C) --> 2082 // bitcast (select (cmp A, B), B, A) 2083 NewSel = Builder.CreateSelect(Cond, B, A, "", &Sel); 2084 } else { 2085 return nullptr; 2086 } 2087 return CastInst::CreateBitOrPointerCast(NewSel, Sel.getType()); 2088 } 2089 2090 /// Try to eliminate select instructions that test the returned flag of cmpxchg 2091 /// instructions. 2092 /// 2093 /// If a select instruction tests the returned flag of a cmpxchg instruction and 2094 /// selects between the returned value of the cmpxchg instruction its compare 2095 /// operand, the result of the select will always be equal to its false value. 2096 /// For example: 2097 /// 2098 /// %0 = cmpxchg i64* %ptr, i64 %compare, i64 %new_value seq_cst seq_cst 2099 /// %1 = extractvalue { i64, i1 } %0, 1 2100 /// %2 = extractvalue { i64, i1 } %0, 0 2101 /// %3 = select i1 %1, i64 %compare, i64 %2 2102 /// ret i64 %3 2103 /// 2104 /// The returned value of the cmpxchg instruction (%2) is the original value 2105 /// located at %ptr prior to any update. If the cmpxchg operation succeeds, %2 2106 /// must have been equal to %compare. Thus, the result of the select is always 2107 /// equal to %2, and the code can be simplified to: 2108 /// 2109 /// %0 = cmpxchg i64* %ptr, i64 %compare, i64 %new_value seq_cst seq_cst 2110 /// %1 = extractvalue { i64, i1 } %0, 0 2111 /// ret i64 %1 2112 /// 2113 static Value *foldSelectCmpXchg(SelectInst &SI) { 2114 // A helper that determines if V is an extractvalue instruction whose 2115 // aggregate operand is a cmpxchg instruction and whose single index is equal 2116 // to I. If such conditions are true, the helper returns the cmpxchg 2117 // instruction; otherwise, a nullptr is returned. 2118 auto isExtractFromCmpXchg = [](Value *V, unsigned I) -> AtomicCmpXchgInst * { 2119 auto *Extract = dyn_cast<ExtractValueInst>(V); 2120 if (!Extract) 2121 return nullptr; 2122 if (Extract->getIndices()[0] != I) 2123 return nullptr; 2124 return dyn_cast<AtomicCmpXchgInst>(Extract->getAggregateOperand()); 2125 }; 2126 2127 // If the select has a single user, and this user is a select instruction that 2128 // we can simplify, skip the cmpxchg simplification for now. 2129 if (SI.hasOneUse()) 2130 if (auto *Select = dyn_cast<SelectInst>(SI.user_back())) 2131 if (Select->getCondition() == SI.getCondition()) 2132 if (Select->getFalseValue() == SI.getTrueValue() || 2133 Select->getTrueValue() == SI.getFalseValue()) 2134 return nullptr; 2135 2136 // Ensure the select condition is the returned flag of a cmpxchg instruction. 2137 auto *CmpXchg = isExtractFromCmpXchg(SI.getCondition(), 1); 2138 if (!CmpXchg) 2139 return nullptr; 2140 2141 // Check the true value case: The true value of the select is the returned 2142 // value of the same cmpxchg used by the condition, and the false value is the 2143 // cmpxchg instruction's compare operand. 2144 if (auto *X = isExtractFromCmpXchg(SI.getTrueValue(), 0)) 2145 if (X == CmpXchg && X->getCompareOperand() == SI.getFalseValue()) 2146 return SI.getFalseValue(); 2147 2148 // Check the false value case: The false value of the select is the returned 2149 // value of the same cmpxchg used by the condition, and the true value is the 2150 // cmpxchg instruction's compare operand. 2151 if (auto *X = isExtractFromCmpXchg(SI.getFalseValue(), 0)) 2152 if (X == CmpXchg && X->getCompareOperand() == SI.getTrueValue()) 2153 return SI.getFalseValue(); 2154 2155 return nullptr; 2156 } 2157 2158 static Instruction *moveAddAfterMinMax(SelectPatternFlavor SPF, Value *X, 2159 Value *Y, 2160 InstCombiner::BuilderTy &Builder) { 2161 assert(SelectPatternResult::isMinOrMax(SPF) && "Expected min/max pattern"); 2162 bool IsUnsigned = SPF == SelectPatternFlavor::SPF_UMIN || 2163 SPF == SelectPatternFlavor::SPF_UMAX; 2164 // TODO: If InstSimplify could fold all cases where C2 <= C1, we could change 2165 // the constant value check to an assert. 2166 Value *A; 2167 const APInt *C1, *C2; 2168 if (IsUnsigned && match(X, m_NUWAdd(m_Value(A), m_APInt(C1))) && 2169 match(Y, m_APInt(C2)) && C2->uge(*C1) && X->hasNUses(2)) { 2170 // umin (add nuw A, C1), C2 --> add nuw (umin A, C2 - C1), C1 2171 // umax (add nuw A, C1), C2 --> add nuw (umax A, C2 - C1), C1 2172 Value *NewMinMax = createMinMax(Builder, SPF, A, 2173 ConstantInt::get(X->getType(), *C2 - *C1)); 2174 return BinaryOperator::CreateNUW(BinaryOperator::Add, NewMinMax, 2175 ConstantInt::get(X->getType(), *C1)); 2176 } 2177 2178 if (!IsUnsigned && match(X, m_NSWAdd(m_Value(A), m_APInt(C1))) && 2179 match(Y, m_APInt(C2)) && X->hasNUses(2)) { 2180 bool Overflow; 2181 APInt Diff = C2->ssub_ov(*C1, Overflow); 2182 if (!Overflow) { 2183 // smin (add nsw A, C1), C2 --> add nsw (smin A, C2 - C1), C1 2184 // smax (add nsw A, C1), C2 --> add nsw (smax A, C2 - C1), C1 2185 Value *NewMinMax = createMinMax(Builder, SPF, A, 2186 ConstantInt::get(X->getType(), Diff)); 2187 return BinaryOperator::CreateNSW(BinaryOperator::Add, NewMinMax, 2188 ConstantInt::get(X->getType(), *C1)); 2189 } 2190 } 2191 2192 return nullptr; 2193 } 2194 2195 /// Match a sadd_sat or ssub_sat which is using min/max to clamp the value. 2196 Instruction *InstCombinerImpl::matchSAddSubSat(SelectInst &MinMax1) { 2197 Type *Ty = MinMax1.getType(); 2198 2199 // We are looking for a tree of: 2200 // max(INT_MIN, min(INT_MAX, add(sext(A), sext(B)))) 2201 // Where the min and max could be reversed 2202 Instruction *MinMax2; 2203 BinaryOperator *AddSub; 2204 const APInt *MinValue, *MaxValue; 2205 if (match(&MinMax1, m_SMin(m_Instruction(MinMax2), m_APInt(MaxValue)))) { 2206 if (!match(MinMax2, m_SMax(m_BinOp(AddSub), m_APInt(MinValue)))) 2207 return nullptr; 2208 } else if (match(&MinMax1, 2209 m_SMax(m_Instruction(MinMax2), m_APInt(MinValue)))) { 2210 if (!match(MinMax2, m_SMin(m_BinOp(AddSub), m_APInt(MaxValue)))) 2211 return nullptr; 2212 } else 2213 return nullptr; 2214 2215 // Check that the constants clamp a saturate, and that the new type would be 2216 // sensible to convert to. 2217 if (!(*MaxValue + 1).isPowerOf2() || -*MinValue != *MaxValue + 1) 2218 return nullptr; 2219 // In what bitwidth can this be treated as saturating arithmetics? 2220 unsigned NewBitWidth = (*MaxValue + 1).logBase2() + 1; 2221 // FIXME: This isn't quite right for vectors, but using the scalar type is a 2222 // good first approximation for what should be done there. 2223 if (!shouldChangeType(Ty->getScalarType()->getIntegerBitWidth(), NewBitWidth)) 2224 return nullptr; 2225 2226 // Also make sure that the number of uses is as expected. The "3"s are for the 2227 // the two items of min/max (the compare and the select). 2228 if (MinMax2->hasNUsesOrMore(3) || AddSub->hasNUsesOrMore(3)) 2229 return nullptr; 2230 2231 // Create the new type (which can be a vector type) 2232 Type *NewTy = Ty->getWithNewBitWidth(NewBitWidth); 2233 // Match the two extends from the add/sub 2234 Value *A, *B; 2235 if(!match(AddSub, m_BinOp(m_SExt(m_Value(A)), m_SExt(m_Value(B))))) 2236 return nullptr; 2237 // And check the incoming values are of a type smaller than or equal to the 2238 // size of the saturation. Otherwise the higher bits can cause different 2239 // results. 2240 if (A->getType()->getScalarSizeInBits() > NewBitWidth || 2241 B->getType()->getScalarSizeInBits() > NewBitWidth) 2242 return nullptr; 2243 2244 Intrinsic::ID IntrinsicID; 2245 if (AddSub->getOpcode() == Instruction::Add) 2246 IntrinsicID = Intrinsic::sadd_sat; 2247 else if (AddSub->getOpcode() == Instruction::Sub) 2248 IntrinsicID = Intrinsic::ssub_sat; 2249 else 2250 return nullptr; 2251 2252 // Finally create and return the sat intrinsic, truncated to the new type 2253 Function *F = Intrinsic::getDeclaration(MinMax1.getModule(), IntrinsicID, NewTy); 2254 Value *AT = Builder.CreateSExt(A, NewTy); 2255 Value *BT = Builder.CreateSExt(B, NewTy); 2256 Value *Sat = Builder.CreateCall(F, {AT, BT}); 2257 return CastInst::Create(Instruction::SExt, Sat, Ty); 2258 } 2259 2260 /// Reduce a sequence of min/max with a common operand. 2261 static Instruction *factorizeMinMaxTree(SelectPatternFlavor SPF, Value *LHS, 2262 Value *RHS, 2263 InstCombiner::BuilderTy &Builder) { 2264 assert(SelectPatternResult::isMinOrMax(SPF) && "Expected a min/max"); 2265 // TODO: Allow FP min/max with nnan/nsz. 2266 if (!LHS->getType()->isIntOrIntVectorTy()) 2267 return nullptr; 2268 2269 // Match 3 of the same min/max ops. Example: umin(umin(), umin()). 2270 Value *A, *B, *C, *D; 2271 SelectPatternResult L = matchSelectPattern(LHS, A, B); 2272 SelectPatternResult R = matchSelectPattern(RHS, C, D); 2273 if (SPF != L.Flavor || L.Flavor != R.Flavor) 2274 return nullptr; 2275 2276 // Look for a common operand. The use checks are different than usual because 2277 // a min/max pattern typically has 2 uses of each op: 1 by the cmp and 1 by 2278 // the select. 2279 Value *MinMaxOp = nullptr; 2280 Value *ThirdOp = nullptr; 2281 if (!LHS->hasNUsesOrMore(3) && RHS->hasNUsesOrMore(3)) { 2282 // If the LHS is only used in this chain and the RHS is used outside of it, 2283 // reuse the RHS min/max because that will eliminate the LHS. 2284 if (D == A || C == A) { 2285 // min(min(a, b), min(c, a)) --> min(min(c, a), b) 2286 // min(min(a, b), min(a, d)) --> min(min(a, d), b) 2287 MinMaxOp = RHS; 2288 ThirdOp = B; 2289 } else if (D == B || C == B) { 2290 // min(min(a, b), min(c, b)) --> min(min(c, b), a) 2291 // min(min(a, b), min(b, d)) --> min(min(b, d), a) 2292 MinMaxOp = RHS; 2293 ThirdOp = A; 2294 } 2295 } else if (!RHS->hasNUsesOrMore(3)) { 2296 // Reuse the LHS. This will eliminate the RHS. 2297 if (D == A || D == B) { 2298 // min(min(a, b), min(c, a)) --> min(min(a, b), c) 2299 // min(min(a, b), min(c, b)) --> min(min(a, b), c) 2300 MinMaxOp = LHS; 2301 ThirdOp = C; 2302 } else if (C == A || C == B) { 2303 // min(min(a, b), min(b, d)) --> min(min(a, b), d) 2304 // min(min(a, b), min(c, b)) --> min(min(a, b), d) 2305 MinMaxOp = LHS; 2306 ThirdOp = D; 2307 } 2308 } 2309 if (!MinMaxOp || !ThirdOp) 2310 return nullptr; 2311 2312 CmpInst::Predicate P = getMinMaxPred(SPF); 2313 Value *CmpABC = Builder.CreateICmp(P, MinMaxOp, ThirdOp); 2314 return SelectInst::Create(CmpABC, MinMaxOp, ThirdOp); 2315 } 2316 2317 /// Try to reduce a funnel/rotate pattern that includes a compare and select 2318 /// into a funnel shift intrinsic. Example: 2319 /// rotl32(a, b) --> (b == 0 ? a : ((a >> (32 - b)) | (a << b))) 2320 /// --> call llvm.fshl.i32(a, a, b) 2321 /// fshl32(a, b, c) --> (c == 0 ? a : ((b >> (32 - c)) | (a << c))) 2322 /// --> call llvm.fshl.i32(a, b, c) 2323 /// fshr32(a, b, c) --> (c == 0 ? b : ((a >> (32 - c)) | (b << c))) 2324 /// --> call llvm.fshr.i32(a, b, c) 2325 static Instruction *foldSelectFunnelShift(SelectInst &Sel, 2326 InstCombiner::BuilderTy &Builder) { 2327 // This must be a power-of-2 type for a bitmasking transform to be valid. 2328 unsigned Width = Sel.getType()->getScalarSizeInBits(); 2329 if (!isPowerOf2_32(Width)) 2330 return nullptr; 2331 2332 BinaryOperator *Or0, *Or1; 2333 if (!match(Sel.getFalseValue(), m_OneUse(m_Or(m_BinOp(Or0), m_BinOp(Or1))))) 2334 return nullptr; 2335 2336 Value *SV0, *SV1, *SA0, *SA1; 2337 if (!match(Or0, m_OneUse(m_LogicalShift(m_Value(SV0), 2338 m_ZExtOrSelf(m_Value(SA0))))) || 2339 !match(Or1, m_OneUse(m_LogicalShift(m_Value(SV1), 2340 m_ZExtOrSelf(m_Value(SA1))))) || 2341 Or0->getOpcode() == Or1->getOpcode()) 2342 return nullptr; 2343 2344 // Canonicalize to or(shl(SV0, SA0), lshr(SV1, SA1)). 2345 if (Or0->getOpcode() == BinaryOperator::LShr) { 2346 std::swap(Or0, Or1); 2347 std::swap(SV0, SV1); 2348 std::swap(SA0, SA1); 2349 } 2350 assert(Or0->getOpcode() == BinaryOperator::Shl && 2351 Or1->getOpcode() == BinaryOperator::LShr && 2352 "Illegal or(shift,shift) pair"); 2353 2354 // Check the shift amounts to see if they are an opposite pair. 2355 Value *ShAmt; 2356 if (match(SA1, m_OneUse(m_Sub(m_SpecificInt(Width), m_Specific(SA0))))) 2357 ShAmt = SA0; 2358 else if (match(SA0, m_OneUse(m_Sub(m_SpecificInt(Width), m_Specific(SA1))))) 2359 ShAmt = SA1; 2360 else 2361 return nullptr; 2362 2363 // We should now have this pattern: 2364 // select ?, TVal, (or (shl SV0, SA0), (lshr SV1, SA1)) 2365 // The false value of the select must be a funnel-shift of the true value: 2366 // IsFShl -> TVal must be SV0 else TVal must be SV1. 2367 bool IsFshl = (ShAmt == SA0); 2368 Value *TVal = Sel.getTrueValue(); 2369 if ((IsFshl && TVal != SV0) || (!IsFshl && TVal != SV1)) 2370 return nullptr; 2371 2372 // Finally, see if the select is filtering out a shift-by-zero. 2373 Value *Cond = Sel.getCondition(); 2374 ICmpInst::Predicate Pred; 2375 if (!match(Cond, m_OneUse(m_ICmp(Pred, m_Specific(ShAmt), m_ZeroInt()))) || 2376 Pred != ICmpInst::ICMP_EQ) 2377 return nullptr; 2378 2379 // If this is not a rotate then the select was blocking poison from the 2380 // 'shift-by-zero' non-TVal, but a funnel shift won't - so freeze it. 2381 if (SV0 != SV1) { 2382 if (IsFshl && !llvm::isGuaranteedNotToBePoison(SV1)) 2383 SV1 = Builder.CreateFreeze(SV1); 2384 else if (!IsFshl && !llvm::isGuaranteedNotToBePoison(SV0)) 2385 SV0 = Builder.CreateFreeze(SV0); 2386 } 2387 2388 // This is a funnel/rotate that avoids shift-by-bitwidth UB in a suboptimal way. 2389 // Convert to funnel shift intrinsic. 2390 Intrinsic::ID IID = IsFshl ? Intrinsic::fshl : Intrinsic::fshr; 2391 Function *F = Intrinsic::getDeclaration(Sel.getModule(), IID, Sel.getType()); 2392 ShAmt = Builder.CreateZExt(ShAmt, Sel.getType()); 2393 return IntrinsicInst::Create(F, { SV0, SV1, ShAmt }); 2394 } 2395 2396 static Instruction *foldSelectToCopysign(SelectInst &Sel, 2397 InstCombiner::BuilderTy &Builder) { 2398 Value *Cond = Sel.getCondition(); 2399 Value *TVal = Sel.getTrueValue(); 2400 Value *FVal = Sel.getFalseValue(); 2401 Type *SelType = Sel.getType(); 2402 2403 // Match select ?, TC, FC where the constants are equal but negated. 2404 // TODO: Generalize to handle a negated variable operand? 2405 const APFloat *TC, *FC; 2406 if (!match(TVal, m_APFloat(TC)) || !match(FVal, m_APFloat(FC)) || 2407 !abs(*TC).bitwiseIsEqual(abs(*FC))) 2408 return nullptr; 2409 2410 assert(TC != FC && "Expected equal select arms to simplify"); 2411 2412 Value *X; 2413 const APInt *C; 2414 bool IsTrueIfSignSet; 2415 ICmpInst::Predicate Pred; 2416 if (!match(Cond, m_OneUse(m_ICmp(Pred, m_BitCast(m_Value(X)), m_APInt(C)))) || 2417 !InstCombiner::isSignBitCheck(Pred, *C, IsTrueIfSignSet) || 2418 X->getType() != SelType) 2419 return nullptr; 2420 2421 // If needed, negate the value that will be the sign argument of the copysign: 2422 // (bitcast X) < 0 ? -TC : TC --> copysign(TC, X) 2423 // (bitcast X) < 0 ? TC : -TC --> copysign(TC, -X) 2424 // (bitcast X) >= 0 ? -TC : TC --> copysign(TC, -X) 2425 // (bitcast X) >= 0 ? TC : -TC --> copysign(TC, X) 2426 if (IsTrueIfSignSet ^ TC->isNegative()) 2427 X = Builder.CreateFNegFMF(X, &Sel); 2428 2429 // Canonicalize the magnitude argument as the positive constant since we do 2430 // not care about its sign. 2431 Value *MagArg = TC->isNegative() ? FVal : TVal; 2432 Function *F = Intrinsic::getDeclaration(Sel.getModule(), Intrinsic::copysign, 2433 Sel.getType()); 2434 Instruction *CopySign = IntrinsicInst::Create(F, { MagArg, X }); 2435 CopySign->setFastMathFlags(Sel.getFastMathFlags()); 2436 return CopySign; 2437 } 2438 2439 Instruction *InstCombinerImpl::foldVectorSelect(SelectInst &Sel) { 2440 auto *VecTy = dyn_cast<FixedVectorType>(Sel.getType()); 2441 if (!VecTy) 2442 return nullptr; 2443 2444 unsigned NumElts = VecTy->getNumElements(); 2445 APInt UndefElts(NumElts, 0); 2446 APInt AllOnesEltMask(APInt::getAllOnesValue(NumElts)); 2447 if (Value *V = SimplifyDemandedVectorElts(&Sel, AllOnesEltMask, UndefElts)) { 2448 if (V != &Sel) 2449 return replaceInstUsesWith(Sel, V); 2450 return &Sel; 2451 } 2452 2453 // A select of a "select shuffle" with a common operand can be rearranged 2454 // to select followed by "select shuffle". Because of poison, this only works 2455 // in the case of a shuffle with no undefined mask elements. 2456 Value *Cond = Sel.getCondition(); 2457 Value *TVal = Sel.getTrueValue(); 2458 Value *FVal = Sel.getFalseValue(); 2459 Value *X, *Y; 2460 ArrayRef<int> Mask; 2461 if (match(TVal, m_OneUse(m_Shuffle(m_Value(X), m_Value(Y), m_Mask(Mask)))) && 2462 !is_contained(Mask, UndefMaskElem) && 2463 cast<ShuffleVectorInst>(TVal)->isSelect()) { 2464 if (X == FVal) { 2465 // select Cond, (shuf_sel X, Y), X --> shuf_sel X, (select Cond, Y, X) 2466 Value *NewSel = Builder.CreateSelect(Cond, Y, X, "sel", &Sel); 2467 return new ShuffleVectorInst(X, NewSel, Mask); 2468 } 2469 if (Y == FVal) { 2470 // select Cond, (shuf_sel X, Y), Y --> shuf_sel (select Cond, X, Y), Y 2471 Value *NewSel = Builder.CreateSelect(Cond, X, Y, "sel", &Sel); 2472 return new ShuffleVectorInst(NewSel, Y, Mask); 2473 } 2474 } 2475 if (match(FVal, m_OneUse(m_Shuffle(m_Value(X), m_Value(Y), m_Mask(Mask)))) && 2476 !is_contained(Mask, UndefMaskElem) && 2477 cast<ShuffleVectorInst>(FVal)->isSelect()) { 2478 if (X == TVal) { 2479 // select Cond, X, (shuf_sel X, Y) --> shuf_sel X, (select Cond, X, Y) 2480 Value *NewSel = Builder.CreateSelect(Cond, X, Y, "sel", &Sel); 2481 return new ShuffleVectorInst(X, NewSel, Mask); 2482 } 2483 if (Y == TVal) { 2484 // select Cond, Y, (shuf_sel X, Y) --> shuf_sel (select Cond, Y, X), Y 2485 Value *NewSel = Builder.CreateSelect(Cond, Y, X, "sel", &Sel); 2486 return new ShuffleVectorInst(NewSel, Y, Mask); 2487 } 2488 } 2489 2490 return nullptr; 2491 } 2492 2493 static Instruction *foldSelectToPhiImpl(SelectInst &Sel, BasicBlock *BB, 2494 const DominatorTree &DT, 2495 InstCombiner::BuilderTy &Builder) { 2496 // Find the block's immediate dominator that ends with a conditional branch 2497 // that matches select's condition (maybe inverted). 2498 auto *IDomNode = DT[BB]->getIDom(); 2499 if (!IDomNode) 2500 return nullptr; 2501 BasicBlock *IDom = IDomNode->getBlock(); 2502 2503 Value *Cond = Sel.getCondition(); 2504 Value *IfTrue, *IfFalse; 2505 BasicBlock *TrueSucc, *FalseSucc; 2506 if (match(IDom->getTerminator(), 2507 m_Br(m_Specific(Cond), m_BasicBlock(TrueSucc), 2508 m_BasicBlock(FalseSucc)))) { 2509 IfTrue = Sel.getTrueValue(); 2510 IfFalse = Sel.getFalseValue(); 2511 } else if (match(IDom->getTerminator(), 2512 m_Br(m_Not(m_Specific(Cond)), m_BasicBlock(TrueSucc), 2513 m_BasicBlock(FalseSucc)))) { 2514 IfTrue = Sel.getFalseValue(); 2515 IfFalse = Sel.getTrueValue(); 2516 } else 2517 return nullptr; 2518 2519 // Make sure the branches are actually different. 2520 if (TrueSucc == FalseSucc) 2521 return nullptr; 2522 2523 // We want to replace select %cond, %a, %b with a phi that takes value %a 2524 // for all incoming edges that are dominated by condition `%cond == true`, 2525 // and value %b for edges dominated by condition `%cond == false`. If %a 2526 // or %b are also phis from the same basic block, we can go further and take 2527 // their incoming values from the corresponding blocks. 2528 BasicBlockEdge TrueEdge(IDom, TrueSucc); 2529 BasicBlockEdge FalseEdge(IDom, FalseSucc); 2530 DenseMap<BasicBlock *, Value *> Inputs; 2531 for (auto *Pred : predecessors(BB)) { 2532 // Check implication. 2533 BasicBlockEdge Incoming(Pred, BB); 2534 if (DT.dominates(TrueEdge, Incoming)) 2535 Inputs[Pred] = IfTrue->DoPHITranslation(BB, Pred); 2536 else if (DT.dominates(FalseEdge, Incoming)) 2537 Inputs[Pred] = IfFalse->DoPHITranslation(BB, Pred); 2538 else 2539 return nullptr; 2540 // Check availability. 2541 if (auto *Insn = dyn_cast<Instruction>(Inputs[Pred])) 2542 if (!DT.dominates(Insn, Pred->getTerminator())) 2543 return nullptr; 2544 } 2545 2546 Builder.SetInsertPoint(&*BB->begin()); 2547 auto *PN = Builder.CreatePHI(Sel.getType(), Inputs.size()); 2548 for (auto *Pred : predecessors(BB)) 2549 PN->addIncoming(Inputs[Pred], Pred); 2550 PN->takeName(&Sel); 2551 return PN; 2552 } 2553 2554 static Instruction *foldSelectToPhi(SelectInst &Sel, const DominatorTree &DT, 2555 InstCombiner::BuilderTy &Builder) { 2556 // Try to replace this select with Phi in one of these blocks. 2557 SmallSetVector<BasicBlock *, 4> CandidateBlocks; 2558 CandidateBlocks.insert(Sel.getParent()); 2559 for (Value *V : Sel.operands()) 2560 if (auto *I = dyn_cast<Instruction>(V)) 2561 CandidateBlocks.insert(I->getParent()); 2562 2563 for (BasicBlock *BB : CandidateBlocks) 2564 if (auto *PN = foldSelectToPhiImpl(Sel, BB, DT, Builder)) 2565 return PN; 2566 return nullptr; 2567 } 2568 2569 static Value *foldSelectWithFrozenICmp(SelectInst &Sel, InstCombiner::BuilderTy &Builder) { 2570 FreezeInst *FI = dyn_cast<FreezeInst>(Sel.getCondition()); 2571 if (!FI) 2572 return nullptr; 2573 2574 Value *Cond = FI->getOperand(0); 2575 Value *TrueVal = Sel.getTrueValue(), *FalseVal = Sel.getFalseValue(); 2576 2577 // select (freeze(x == y)), x, y --> y 2578 // select (freeze(x != y)), x, y --> x 2579 // The freeze should be only used by this select. Otherwise, remaining uses of 2580 // the freeze can observe a contradictory value. 2581 // c = freeze(x == y) ; Let's assume that y = poison & x = 42; c is 0 or 1 2582 // a = select c, x, y ; 2583 // f(a, c) ; f(poison, 1) cannot happen, but if a is folded 2584 // ; to y, this can happen. 2585 CmpInst::Predicate Pred; 2586 if (FI->hasOneUse() && 2587 match(Cond, m_c_ICmp(Pred, m_Specific(TrueVal), m_Specific(FalseVal))) && 2588 (Pred == ICmpInst::ICMP_EQ || Pred == ICmpInst::ICMP_NE)) { 2589 return Pred == ICmpInst::ICMP_EQ ? FalseVal : TrueVal; 2590 } 2591 2592 return nullptr; 2593 } 2594 2595 Instruction *InstCombinerImpl::visitSelectInst(SelectInst &SI) { 2596 Value *CondVal = SI.getCondition(); 2597 Value *TrueVal = SI.getTrueValue(); 2598 Value *FalseVal = SI.getFalseValue(); 2599 Type *SelType = SI.getType(); 2600 2601 // FIXME: Remove this workaround when freeze related patches are done. 2602 // For select with undef operand which feeds into an equality comparison, 2603 // don't simplify it so loop unswitch can know the equality comparison 2604 // may have an undef operand. This is a workaround for PR31652 caused by 2605 // descrepancy about branch on undef between LoopUnswitch and GVN. 2606 if (isa<UndefValue>(TrueVal) || isa<UndefValue>(FalseVal)) { 2607 if (llvm::any_of(SI.users(), [&](User *U) { 2608 ICmpInst *CI = dyn_cast<ICmpInst>(U); 2609 if (CI && CI->isEquality()) 2610 return true; 2611 return false; 2612 })) { 2613 return nullptr; 2614 } 2615 } 2616 2617 if (Value *V = SimplifySelectInst(CondVal, TrueVal, FalseVal, 2618 SQ.getWithInstruction(&SI))) 2619 return replaceInstUsesWith(SI, V); 2620 2621 if (Instruction *I = canonicalizeSelectToShuffle(SI)) 2622 return I; 2623 2624 if (Instruction *I = canonicalizeScalarSelectOfVecs(SI, *this)) 2625 return I; 2626 2627 CmpInst::Predicate Pred; 2628 2629 if (SelType->isIntOrIntVectorTy(1) && 2630 TrueVal->getType() == CondVal->getType()) { 2631 if (match(TrueVal, m_One())) { 2632 // Change: A = select B, true, C --> A = or B, C 2633 return BinaryOperator::CreateOr(CondVal, FalseVal); 2634 } 2635 if (match(TrueVal, m_Zero())) { 2636 // Change: A = select B, false, C --> A = and !B, C 2637 Value *NotCond = Builder.CreateNot(CondVal, "not." + CondVal->getName()); 2638 return BinaryOperator::CreateAnd(NotCond, FalseVal); 2639 } 2640 if (match(FalseVal, m_Zero())) { 2641 // Change: A = select B, C, false --> A = and B, C 2642 return BinaryOperator::CreateAnd(CondVal, TrueVal); 2643 } 2644 if (match(FalseVal, m_One())) { 2645 // Change: A = select B, C, true --> A = or !B, C 2646 Value *NotCond = Builder.CreateNot(CondVal, "not." + CondVal->getName()); 2647 return BinaryOperator::CreateOr(NotCond, TrueVal); 2648 } 2649 2650 // select a, a, b -> a | b 2651 // select a, b, a -> a & b 2652 if (CondVal == TrueVal) 2653 return BinaryOperator::CreateOr(CondVal, FalseVal); 2654 if (CondVal == FalseVal) 2655 return BinaryOperator::CreateAnd(CondVal, TrueVal); 2656 2657 // select a, ~a, b -> (~a) & b 2658 // select a, b, ~a -> (~a) | b 2659 if (match(TrueVal, m_Not(m_Specific(CondVal)))) 2660 return BinaryOperator::CreateAnd(TrueVal, FalseVal); 2661 if (match(FalseVal, m_Not(m_Specific(CondVal)))) 2662 return BinaryOperator::CreateOr(TrueVal, FalseVal); 2663 } 2664 2665 // Selecting between two integer or vector splat integer constants? 2666 // 2667 // Note that we don't handle a scalar select of vectors: 2668 // select i1 %c, <2 x i8> <1, 1>, <2 x i8> <0, 0> 2669 // because that may need 3 instructions to splat the condition value: 2670 // extend, insertelement, shufflevector. 2671 if (SelType->isIntOrIntVectorTy() && 2672 CondVal->getType()->isVectorTy() == SelType->isVectorTy()) { 2673 // select C, 1, 0 -> zext C to int 2674 if (match(TrueVal, m_One()) && match(FalseVal, m_Zero())) 2675 return new ZExtInst(CondVal, SelType); 2676 2677 // select C, -1, 0 -> sext C to int 2678 if (match(TrueVal, m_AllOnes()) && match(FalseVal, m_Zero())) 2679 return new SExtInst(CondVal, SelType); 2680 2681 // select C, 0, 1 -> zext !C to int 2682 if (match(TrueVal, m_Zero()) && match(FalseVal, m_One())) { 2683 Value *NotCond = Builder.CreateNot(CondVal, "not." + CondVal->getName()); 2684 return new ZExtInst(NotCond, SelType); 2685 } 2686 2687 // select C, 0, -1 -> sext !C to int 2688 if (match(TrueVal, m_Zero()) && match(FalseVal, m_AllOnes())) { 2689 Value *NotCond = Builder.CreateNot(CondVal, "not." + CondVal->getName()); 2690 return new SExtInst(NotCond, SelType); 2691 } 2692 } 2693 2694 // See if we are selecting two values based on a comparison of the two values. 2695 if (FCmpInst *FCI = dyn_cast<FCmpInst>(CondVal)) { 2696 Value *Cmp0 = FCI->getOperand(0), *Cmp1 = FCI->getOperand(1); 2697 if ((Cmp0 == TrueVal && Cmp1 == FalseVal) || 2698 (Cmp0 == FalseVal && Cmp1 == TrueVal)) { 2699 // Canonicalize to use ordered comparisons by swapping the select 2700 // operands. 2701 // 2702 // e.g. 2703 // (X ugt Y) ? X : Y -> (X ole Y) ? Y : X 2704 if (FCI->hasOneUse() && FCmpInst::isUnordered(FCI->getPredicate())) { 2705 FCmpInst::Predicate InvPred = FCI->getInversePredicate(); 2706 IRBuilder<>::FastMathFlagGuard FMFG(Builder); 2707 // FIXME: The FMF should propagate from the select, not the fcmp. 2708 Builder.setFastMathFlags(FCI->getFastMathFlags()); 2709 Value *NewCond = Builder.CreateFCmp(InvPred, Cmp0, Cmp1, 2710 FCI->getName() + ".inv"); 2711 Value *NewSel = Builder.CreateSelect(NewCond, FalseVal, TrueVal); 2712 return replaceInstUsesWith(SI, NewSel); 2713 } 2714 2715 // NOTE: if we wanted to, this is where to detect MIN/MAX 2716 } 2717 } 2718 2719 // Canonicalize select with fcmp to fabs(). -0.0 makes this tricky. We need 2720 // fast-math-flags (nsz) or fsub with +0.0 (not fneg) for this to work. We 2721 // also require nnan because we do not want to unintentionally change the 2722 // sign of a NaN value. 2723 // FIXME: These folds should test/propagate FMF from the select, not the 2724 // fsub or fneg. 2725 // (X <= +/-0.0) ? (0.0 - X) : X --> fabs(X) 2726 Instruction *FSub; 2727 if (match(CondVal, m_FCmp(Pred, m_Specific(FalseVal), m_AnyZeroFP())) && 2728 match(TrueVal, m_FSub(m_PosZeroFP(), m_Specific(FalseVal))) && 2729 match(TrueVal, m_Instruction(FSub)) && FSub->hasNoNaNs() && 2730 (Pred == FCmpInst::FCMP_OLE || Pred == FCmpInst::FCMP_ULE)) { 2731 Value *Fabs = Builder.CreateUnaryIntrinsic(Intrinsic::fabs, FalseVal, FSub); 2732 return replaceInstUsesWith(SI, Fabs); 2733 } 2734 // (X > +/-0.0) ? X : (0.0 - X) --> fabs(X) 2735 if (match(CondVal, m_FCmp(Pred, m_Specific(TrueVal), m_AnyZeroFP())) && 2736 match(FalseVal, m_FSub(m_PosZeroFP(), m_Specific(TrueVal))) && 2737 match(FalseVal, m_Instruction(FSub)) && FSub->hasNoNaNs() && 2738 (Pred == FCmpInst::FCMP_OGT || Pred == FCmpInst::FCMP_UGT)) { 2739 Value *Fabs = Builder.CreateUnaryIntrinsic(Intrinsic::fabs, TrueVal, FSub); 2740 return replaceInstUsesWith(SI, Fabs); 2741 } 2742 // With nnan and nsz: 2743 // (X < +/-0.0) ? -X : X --> fabs(X) 2744 // (X <= +/-0.0) ? -X : X --> fabs(X) 2745 Instruction *FNeg; 2746 if (match(CondVal, m_FCmp(Pred, m_Specific(FalseVal), m_AnyZeroFP())) && 2747 match(TrueVal, m_FNeg(m_Specific(FalseVal))) && 2748 match(TrueVal, m_Instruction(FNeg)) && 2749 FNeg->hasNoNaNs() && FNeg->hasNoSignedZeros() && 2750 (Pred == FCmpInst::FCMP_OLT || Pred == FCmpInst::FCMP_OLE || 2751 Pred == FCmpInst::FCMP_ULT || Pred == FCmpInst::FCMP_ULE)) { 2752 Value *Fabs = Builder.CreateUnaryIntrinsic(Intrinsic::fabs, FalseVal, FNeg); 2753 return replaceInstUsesWith(SI, Fabs); 2754 } 2755 // With nnan and nsz: 2756 // (X > +/-0.0) ? X : -X --> fabs(X) 2757 // (X >= +/-0.0) ? X : -X --> fabs(X) 2758 if (match(CondVal, m_FCmp(Pred, m_Specific(TrueVal), m_AnyZeroFP())) && 2759 match(FalseVal, m_FNeg(m_Specific(TrueVal))) && 2760 match(FalseVal, m_Instruction(FNeg)) && 2761 FNeg->hasNoNaNs() && FNeg->hasNoSignedZeros() && 2762 (Pred == FCmpInst::FCMP_OGT || Pred == FCmpInst::FCMP_OGE || 2763 Pred == FCmpInst::FCMP_UGT || Pred == FCmpInst::FCMP_UGE)) { 2764 Value *Fabs = Builder.CreateUnaryIntrinsic(Intrinsic::fabs, TrueVal, FNeg); 2765 return replaceInstUsesWith(SI, Fabs); 2766 } 2767 2768 // See if we are selecting two values based on a comparison of the two values. 2769 if (ICmpInst *ICI = dyn_cast<ICmpInst>(CondVal)) 2770 if (Instruction *Result = foldSelectInstWithICmp(SI, ICI)) 2771 return Result; 2772 2773 if (Instruction *Add = foldAddSubSelect(SI, Builder)) 2774 return Add; 2775 if (Instruction *Add = foldOverflowingAddSubSelect(SI, Builder)) 2776 return Add; 2777 if (Instruction *Or = foldSetClearBits(SI, Builder)) 2778 return Or; 2779 2780 // Turn (select C, (op X, Y), (op X, Z)) -> (op X, (select C, Y, Z)) 2781 auto *TI = dyn_cast<Instruction>(TrueVal); 2782 auto *FI = dyn_cast<Instruction>(FalseVal); 2783 if (TI && FI && TI->getOpcode() == FI->getOpcode()) 2784 if (Instruction *IV = foldSelectOpOp(SI, TI, FI)) 2785 return IV; 2786 2787 if (Instruction *I = foldSelectExtConst(SI)) 2788 return I; 2789 2790 // See if we can fold the select into one of our operands. 2791 if (SelType->isIntOrIntVectorTy() || SelType->isFPOrFPVectorTy()) { 2792 if (Instruction *FoldI = foldSelectIntoOp(SI, TrueVal, FalseVal)) 2793 return FoldI; 2794 2795 Value *LHS, *RHS; 2796 Instruction::CastOps CastOp; 2797 SelectPatternResult SPR = matchSelectPattern(&SI, LHS, RHS, &CastOp); 2798 auto SPF = SPR.Flavor; 2799 if (SPF) { 2800 Value *LHS2, *RHS2; 2801 if (SelectPatternFlavor SPF2 = matchSelectPattern(LHS, LHS2, RHS2).Flavor) 2802 if (Instruction *R = foldSPFofSPF(cast<Instruction>(LHS), SPF2, LHS2, 2803 RHS2, SI, SPF, RHS)) 2804 return R; 2805 if (SelectPatternFlavor SPF2 = matchSelectPattern(RHS, LHS2, RHS2).Flavor) 2806 if (Instruction *R = foldSPFofSPF(cast<Instruction>(RHS), SPF2, LHS2, 2807 RHS2, SI, SPF, LHS)) 2808 return R; 2809 // TODO. 2810 // ABS(-X) -> ABS(X) 2811 } 2812 2813 if (SelectPatternResult::isMinOrMax(SPF)) { 2814 // Canonicalize so that 2815 // - type casts are outside select patterns. 2816 // - float clamp is transformed to min/max pattern 2817 2818 bool IsCastNeeded = LHS->getType() != SelType; 2819 Value *CmpLHS = cast<CmpInst>(CondVal)->getOperand(0); 2820 Value *CmpRHS = cast<CmpInst>(CondVal)->getOperand(1); 2821 if (IsCastNeeded || 2822 (LHS->getType()->isFPOrFPVectorTy() && 2823 ((CmpLHS != LHS && CmpLHS != RHS) || 2824 (CmpRHS != LHS && CmpRHS != RHS)))) { 2825 CmpInst::Predicate MinMaxPred = getMinMaxPred(SPF, SPR.Ordered); 2826 2827 Value *Cmp; 2828 if (CmpInst::isIntPredicate(MinMaxPred)) { 2829 Cmp = Builder.CreateICmp(MinMaxPred, LHS, RHS); 2830 } else { 2831 IRBuilder<>::FastMathFlagGuard FMFG(Builder); 2832 auto FMF = 2833 cast<FPMathOperator>(SI.getCondition())->getFastMathFlags(); 2834 Builder.setFastMathFlags(FMF); 2835 Cmp = Builder.CreateFCmp(MinMaxPred, LHS, RHS); 2836 } 2837 2838 Value *NewSI = Builder.CreateSelect(Cmp, LHS, RHS, SI.getName(), &SI); 2839 if (!IsCastNeeded) 2840 return replaceInstUsesWith(SI, NewSI); 2841 2842 Value *NewCast = Builder.CreateCast(CastOp, NewSI, SelType); 2843 return replaceInstUsesWith(SI, NewCast); 2844 } 2845 2846 // MAX(~a, ~b) -> ~MIN(a, b) 2847 // MAX(~a, C) -> ~MIN(a, ~C) 2848 // MIN(~a, ~b) -> ~MAX(a, b) 2849 // MIN(~a, C) -> ~MAX(a, ~C) 2850 auto moveNotAfterMinMax = [&](Value *X, Value *Y) -> Instruction * { 2851 Value *A; 2852 if (match(X, m_Not(m_Value(A))) && !X->hasNUsesOrMore(3) && 2853 !isFreeToInvert(A, A->hasOneUse()) && 2854 // Passing false to only consider m_Not and constants. 2855 isFreeToInvert(Y, false)) { 2856 Value *B = Builder.CreateNot(Y); 2857 Value *NewMinMax = createMinMax(Builder, getInverseMinMaxFlavor(SPF), 2858 A, B); 2859 // Copy the profile metadata. 2860 if (MDNode *MD = SI.getMetadata(LLVMContext::MD_prof)) { 2861 cast<SelectInst>(NewMinMax)->setMetadata(LLVMContext::MD_prof, MD); 2862 // Swap the metadata if the operands are swapped. 2863 if (X == SI.getFalseValue() && Y == SI.getTrueValue()) 2864 cast<SelectInst>(NewMinMax)->swapProfMetadata(); 2865 } 2866 2867 return BinaryOperator::CreateNot(NewMinMax); 2868 } 2869 2870 return nullptr; 2871 }; 2872 2873 if (Instruction *I = moveNotAfterMinMax(LHS, RHS)) 2874 return I; 2875 if (Instruction *I = moveNotAfterMinMax(RHS, LHS)) 2876 return I; 2877 2878 if (Instruction *I = moveAddAfterMinMax(SPF, LHS, RHS, Builder)) 2879 return I; 2880 2881 if (Instruction *I = factorizeMinMaxTree(SPF, LHS, RHS, Builder)) 2882 return I; 2883 if (Instruction *I = matchSAddSubSat(SI)) 2884 return I; 2885 } 2886 } 2887 2888 // Canonicalize select of FP values where NaN and -0.0 are not valid as 2889 // minnum/maxnum intrinsics. 2890 if (isa<FPMathOperator>(SI) && SI.hasNoNaNs() && SI.hasNoSignedZeros()) { 2891 Value *X, *Y; 2892 if (match(&SI, m_OrdFMax(m_Value(X), m_Value(Y)))) 2893 return replaceInstUsesWith( 2894 SI, Builder.CreateBinaryIntrinsic(Intrinsic::maxnum, X, Y, &SI)); 2895 2896 if (match(&SI, m_OrdFMin(m_Value(X), m_Value(Y)))) 2897 return replaceInstUsesWith( 2898 SI, Builder.CreateBinaryIntrinsic(Intrinsic::minnum, X, Y, &SI)); 2899 } 2900 2901 // See if we can fold the select into a phi node if the condition is a select. 2902 if (auto *PN = dyn_cast<PHINode>(SI.getCondition())) 2903 // The true/false values have to be live in the PHI predecessor's blocks. 2904 if (canSelectOperandBeMappingIntoPredBlock(TrueVal, SI) && 2905 canSelectOperandBeMappingIntoPredBlock(FalseVal, SI)) 2906 if (Instruction *NV = foldOpIntoPhi(SI, PN)) 2907 return NV; 2908 2909 if (SelectInst *TrueSI = dyn_cast<SelectInst>(TrueVal)) { 2910 if (TrueSI->getCondition()->getType() == CondVal->getType()) { 2911 // select(C, select(C, a, b), c) -> select(C, a, c) 2912 if (TrueSI->getCondition() == CondVal) { 2913 if (SI.getTrueValue() == TrueSI->getTrueValue()) 2914 return nullptr; 2915 return replaceOperand(SI, 1, TrueSI->getTrueValue()); 2916 } 2917 // select(C0, select(C1, a, b), b) -> select(C0&C1, a, b) 2918 // We choose this as normal form to enable folding on the And and 2919 // shortening paths for the values (this helps getUnderlyingObjects() for 2920 // example). 2921 if (TrueSI->getFalseValue() == FalseVal && TrueSI->hasOneUse()) { 2922 Value *And = Builder.CreateAnd(CondVal, TrueSI->getCondition()); 2923 replaceOperand(SI, 0, And); 2924 replaceOperand(SI, 1, TrueSI->getTrueValue()); 2925 return &SI; 2926 } 2927 } 2928 } 2929 if (SelectInst *FalseSI = dyn_cast<SelectInst>(FalseVal)) { 2930 if (FalseSI->getCondition()->getType() == CondVal->getType()) { 2931 // select(C, a, select(C, b, c)) -> select(C, a, c) 2932 if (FalseSI->getCondition() == CondVal) { 2933 if (SI.getFalseValue() == FalseSI->getFalseValue()) 2934 return nullptr; 2935 return replaceOperand(SI, 2, FalseSI->getFalseValue()); 2936 } 2937 // select(C0, a, select(C1, a, b)) -> select(C0|C1, a, b) 2938 if (FalseSI->getTrueValue() == TrueVal && FalseSI->hasOneUse()) { 2939 Value *Or = Builder.CreateOr(CondVal, FalseSI->getCondition()); 2940 replaceOperand(SI, 0, Or); 2941 replaceOperand(SI, 2, FalseSI->getFalseValue()); 2942 return &SI; 2943 } 2944 } 2945 } 2946 2947 auto canMergeSelectThroughBinop = [](BinaryOperator *BO) { 2948 // The select might be preventing a division by 0. 2949 switch (BO->getOpcode()) { 2950 default: 2951 return true; 2952 case Instruction::SRem: 2953 case Instruction::URem: 2954 case Instruction::SDiv: 2955 case Instruction::UDiv: 2956 return false; 2957 } 2958 }; 2959 2960 // Try to simplify a binop sandwiched between 2 selects with the same 2961 // condition. 2962 // select(C, binop(select(C, X, Y), W), Z) -> select(C, binop(X, W), Z) 2963 BinaryOperator *TrueBO; 2964 if (match(TrueVal, m_OneUse(m_BinOp(TrueBO))) && 2965 canMergeSelectThroughBinop(TrueBO)) { 2966 if (auto *TrueBOSI = dyn_cast<SelectInst>(TrueBO->getOperand(0))) { 2967 if (TrueBOSI->getCondition() == CondVal) { 2968 replaceOperand(*TrueBO, 0, TrueBOSI->getTrueValue()); 2969 Worklist.push(TrueBO); 2970 return &SI; 2971 } 2972 } 2973 if (auto *TrueBOSI = dyn_cast<SelectInst>(TrueBO->getOperand(1))) { 2974 if (TrueBOSI->getCondition() == CondVal) { 2975 replaceOperand(*TrueBO, 1, TrueBOSI->getTrueValue()); 2976 Worklist.push(TrueBO); 2977 return &SI; 2978 } 2979 } 2980 } 2981 2982 // select(C, Z, binop(select(C, X, Y), W)) -> select(C, Z, binop(Y, W)) 2983 BinaryOperator *FalseBO; 2984 if (match(FalseVal, m_OneUse(m_BinOp(FalseBO))) && 2985 canMergeSelectThroughBinop(FalseBO)) { 2986 if (auto *FalseBOSI = dyn_cast<SelectInst>(FalseBO->getOperand(0))) { 2987 if (FalseBOSI->getCondition() == CondVal) { 2988 replaceOperand(*FalseBO, 0, FalseBOSI->getFalseValue()); 2989 Worklist.push(FalseBO); 2990 return &SI; 2991 } 2992 } 2993 if (auto *FalseBOSI = dyn_cast<SelectInst>(FalseBO->getOperand(1))) { 2994 if (FalseBOSI->getCondition() == CondVal) { 2995 replaceOperand(*FalseBO, 1, FalseBOSI->getFalseValue()); 2996 Worklist.push(FalseBO); 2997 return &SI; 2998 } 2999 } 3000 } 3001 3002 Value *NotCond; 3003 if (match(CondVal, m_Not(m_Value(NotCond)))) { 3004 replaceOperand(SI, 0, NotCond); 3005 SI.swapValues(); 3006 SI.swapProfMetadata(); 3007 return &SI; 3008 } 3009 3010 if (Instruction *I = foldVectorSelect(SI)) 3011 return I; 3012 3013 // If we can compute the condition, there's no need for a select. 3014 // Like the above fold, we are attempting to reduce compile-time cost by 3015 // putting this fold here with limitations rather than in InstSimplify. 3016 // The motivation for this call into value tracking is to take advantage of 3017 // the assumption cache, so make sure that is populated. 3018 if (!CondVal->getType()->isVectorTy() && !AC.assumptions().empty()) { 3019 KnownBits Known(1); 3020 computeKnownBits(CondVal, Known, 0, &SI); 3021 if (Known.One.isOneValue()) 3022 return replaceInstUsesWith(SI, TrueVal); 3023 if (Known.Zero.isOneValue()) 3024 return replaceInstUsesWith(SI, FalseVal); 3025 } 3026 3027 if (Instruction *BitCastSel = foldSelectCmpBitcasts(SI, Builder)) 3028 return BitCastSel; 3029 3030 // Simplify selects that test the returned flag of cmpxchg instructions. 3031 if (Value *V = foldSelectCmpXchg(SI)) 3032 return replaceInstUsesWith(SI, V); 3033 3034 if (Instruction *Select = foldSelectBinOpIdentity(SI, TLI, *this)) 3035 return Select; 3036 3037 if (Instruction *Funnel = foldSelectFunnelShift(SI, Builder)) 3038 return Funnel; 3039 3040 if (Instruction *Copysign = foldSelectToCopysign(SI, Builder)) 3041 return Copysign; 3042 3043 if (Instruction *PN = foldSelectToPhi(SI, DT, Builder)) 3044 return replaceInstUsesWith(SI, PN); 3045 3046 if (Value *Fr = foldSelectWithFrozenICmp(SI, Builder)) 3047 return replaceInstUsesWith(SI, Fr); 3048 3049 return nullptr; 3050 } 3051