1 //===- InstCombineAndOrXor.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 visitAnd, visitOr, and visitXor functions. 10 // 11 //===----------------------------------------------------------------------===// 12 13 #include "InstCombineInternal.h" 14 #include "llvm/Analysis/CmpInstAnalysis.h" 15 #include "llvm/Analysis/InstructionSimplify.h" 16 #include "llvm/Transforms/Utils/Local.h" 17 #include "llvm/IR/ConstantRange.h" 18 #include "llvm/IR/Intrinsics.h" 19 #include "llvm/IR/PatternMatch.h" 20 using namespace llvm; 21 using namespace PatternMatch; 22 23 #define DEBUG_TYPE "instcombine" 24 25 /// Similar to getICmpCode but for FCmpInst. This encodes a fcmp predicate into 26 /// a four bit mask. 27 static unsigned getFCmpCode(FCmpInst::Predicate CC) { 28 assert(FCmpInst::FCMP_FALSE <= CC && CC <= FCmpInst::FCMP_TRUE && 29 "Unexpected FCmp predicate!"); 30 // Take advantage of the bit pattern of FCmpInst::Predicate here. 31 // U L G E 32 static_assert(FCmpInst::FCMP_FALSE == 0, ""); // 0 0 0 0 33 static_assert(FCmpInst::FCMP_OEQ == 1, ""); // 0 0 0 1 34 static_assert(FCmpInst::FCMP_OGT == 2, ""); // 0 0 1 0 35 static_assert(FCmpInst::FCMP_OGE == 3, ""); // 0 0 1 1 36 static_assert(FCmpInst::FCMP_OLT == 4, ""); // 0 1 0 0 37 static_assert(FCmpInst::FCMP_OLE == 5, ""); // 0 1 0 1 38 static_assert(FCmpInst::FCMP_ONE == 6, ""); // 0 1 1 0 39 static_assert(FCmpInst::FCMP_ORD == 7, ""); // 0 1 1 1 40 static_assert(FCmpInst::FCMP_UNO == 8, ""); // 1 0 0 0 41 static_assert(FCmpInst::FCMP_UEQ == 9, ""); // 1 0 0 1 42 static_assert(FCmpInst::FCMP_UGT == 10, ""); // 1 0 1 0 43 static_assert(FCmpInst::FCMP_UGE == 11, ""); // 1 0 1 1 44 static_assert(FCmpInst::FCMP_ULT == 12, ""); // 1 1 0 0 45 static_assert(FCmpInst::FCMP_ULE == 13, ""); // 1 1 0 1 46 static_assert(FCmpInst::FCMP_UNE == 14, ""); // 1 1 1 0 47 static_assert(FCmpInst::FCMP_TRUE == 15, ""); // 1 1 1 1 48 return CC; 49 } 50 51 /// This is the complement of getICmpCode, which turns an opcode and two 52 /// operands into either a constant true or false, or a brand new ICmp 53 /// instruction. The sign is passed in to determine which kind of predicate to 54 /// use in the new icmp instruction. 55 static Value *getNewICmpValue(unsigned Code, bool Sign, Value *LHS, Value *RHS, 56 InstCombiner::BuilderTy &Builder) { 57 ICmpInst::Predicate NewPred; 58 if (Constant *TorF = getPredForICmpCode(Code, Sign, LHS->getType(), NewPred)) 59 return TorF; 60 return Builder.CreateICmp(NewPred, LHS, RHS); 61 } 62 63 /// This is the complement of getFCmpCode, which turns an opcode and two 64 /// operands into either a FCmp instruction, or a true/false constant. 65 static Value *getFCmpValue(unsigned Code, Value *LHS, Value *RHS, 66 InstCombiner::BuilderTy &Builder) { 67 const auto Pred = static_cast<FCmpInst::Predicate>(Code); 68 assert(FCmpInst::FCMP_FALSE <= Pred && Pred <= FCmpInst::FCMP_TRUE && 69 "Unexpected FCmp predicate!"); 70 if (Pred == FCmpInst::FCMP_FALSE) 71 return ConstantInt::get(CmpInst::makeCmpResultType(LHS->getType()), 0); 72 if (Pred == FCmpInst::FCMP_TRUE) 73 return ConstantInt::get(CmpInst::makeCmpResultType(LHS->getType()), 1); 74 return Builder.CreateFCmp(Pred, LHS, RHS); 75 } 76 77 /// Transform BITWISE_OP(BSWAP(A),BSWAP(B)) or 78 /// BITWISE_OP(BSWAP(A), Constant) to BSWAP(BITWISE_OP(A, B)) 79 /// \param I Binary operator to transform. 80 /// \return Pointer to node that must replace the original binary operator, or 81 /// null pointer if no transformation was made. 82 static Value *SimplifyBSwap(BinaryOperator &I, 83 InstCombiner::BuilderTy &Builder) { 84 assert(I.isBitwiseLogicOp() && "Unexpected opcode for bswap simplifying"); 85 86 Value *OldLHS = I.getOperand(0); 87 Value *OldRHS = I.getOperand(1); 88 89 Value *NewLHS; 90 if (!match(OldLHS, m_BSwap(m_Value(NewLHS)))) 91 return nullptr; 92 93 Value *NewRHS; 94 const APInt *C; 95 96 if (match(OldRHS, m_BSwap(m_Value(NewRHS)))) { 97 // OP( BSWAP(x), BSWAP(y) ) -> BSWAP( OP(x, y) ) 98 if (!OldLHS->hasOneUse() && !OldRHS->hasOneUse()) 99 return nullptr; 100 // NewRHS initialized by the matcher. 101 } else if (match(OldRHS, m_APInt(C))) { 102 // OP( BSWAP(x), CONSTANT ) -> BSWAP( OP(x, BSWAP(CONSTANT) ) ) 103 if (!OldLHS->hasOneUse()) 104 return nullptr; 105 NewRHS = ConstantInt::get(I.getType(), C->byteSwap()); 106 } else 107 return nullptr; 108 109 Value *BinOp = Builder.CreateBinOp(I.getOpcode(), NewLHS, NewRHS); 110 Function *F = Intrinsic::getDeclaration(I.getModule(), Intrinsic::bswap, 111 I.getType()); 112 return Builder.CreateCall(F, BinOp); 113 } 114 115 /// This handles expressions of the form ((val OP C1) & C2). Where 116 /// the Op parameter is 'OP', OpRHS is 'C1', and AndRHS is 'C2'. 117 Instruction *InstCombiner::OptAndOp(BinaryOperator *Op, 118 ConstantInt *OpRHS, 119 ConstantInt *AndRHS, 120 BinaryOperator &TheAnd) { 121 Value *X = Op->getOperand(0); 122 123 switch (Op->getOpcode()) { 124 default: break; 125 case Instruction::Add: 126 if (Op->hasOneUse()) { 127 // Adding a one to a single bit bit-field should be turned into an XOR 128 // of the bit. First thing to check is to see if this AND is with a 129 // single bit constant. 130 const APInt &AndRHSV = AndRHS->getValue(); 131 132 // If there is only one bit set. 133 if (AndRHSV.isPowerOf2()) { 134 // Ok, at this point, we know that we are masking the result of the 135 // ADD down to exactly one bit. If the constant we are adding has 136 // no bits set below this bit, then we can eliminate the ADD. 137 const APInt& AddRHS = OpRHS->getValue(); 138 139 // Check to see if any bits below the one bit set in AndRHSV are set. 140 if ((AddRHS & (AndRHSV - 1)).isNullValue()) { 141 // If not, the only thing that can effect the output of the AND is 142 // the bit specified by AndRHSV. If that bit is set, the effect of 143 // the XOR is to toggle the bit. If it is clear, then the ADD has 144 // no effect. 145 if ((AddRHS & AndRHSV).isNullValue()) { // Bit is not set, noop 146 return replaceOperand(TheAnd, 0, X); 147 } else { 148 // Pull the XOR out of the AND. 149 Value *NewAnd = Builder.CreateAnd(X, AndRHS); 150 NewAnd->takeName(Op); 151 return BinaryOperator::CreateXor(NewAnd, AndRHS); 152 } 153 } 154 } 155 } 156 break; 157 } 158 return nullptr; 159 } 160 161 /// Emit a computation of: (V >= Lo && V < Hi) if Inside is true, otherwise 162 /// (V < Lo || V >= Hi). This method expects that Lo < Hi. IsSigned indicates 163 /// whether to treat V, Lo, and Hi as signed or not. 164 Value *InstCombiner::insertRangeTest(Value *V, const APInt &Lo, const APInt &Hi, 165 bool isSigned, bool Inside) { 166 assert((isSigned ? Lo.slt(Hi) : Lo.ult(Hi)) && 167 "Lo is not < Hi in range emission code!"); 168 169 Type *Ty = V->getType(); 170 171 // V >= Min && V < Hi --> V < Hi 172 // V < Min || V >= Hi --> V >= Hi 173 ICmpInst::Predicate Pred = Inside ? ICmpInst::ICMP_ULT : ICmpInst::ICMP_UGE; 174 if (isSigned ? Lo.isMinSignedValue() : Lo.isMinValue()) { 175 Pred = isSigned ? ICmpInst::getSignedPredicate(Pred) : Pred; 176 return Builder.CreateICmp(Pred, V, ConstantInt::get(Ty, Hi)); 177 } 178 179 // V >= Lo && V < Hi --> V - Lo u< Hi - Lo 180 // V < Lo || V >= Hi --> V - Lo u>= Hi - Lo 181 Value *VMinusLo = 182 Builder.CreateSub(V, ConstantInt::get(Ty, Lo), V->getName() + ".off"); 183 Constant *HiMinusLo = ConstantInt::get(Ty, Hi - Lo); 184 return Builder.CreateICmp(Pred, VMinusLo, HiMinusLo); 185 } 186 187 /// Classify (icmp eq (A & B), C) and (icmp ne (A & B), C) as matching patterns 188 /// that can be simplified. 189 /// One of A and B is considered the mask. The other is the value. This is 190 /// described as the "AMask" or "BMask" part of the enum. If the enum contains 191 /// only "Mask", then both A and B can be considered masks. If A is the mask, 192 /// then it was proven that (A & C) == C. This is trivial if C == A or C == 0. 193 /// If both A and C are constants, this proof is also easy. 194 /// For the following explanations, we assume that A is the mask. 195 /// 196 /// "AllOnes" declares that the comparison is true only if (A & B) == A or all 197 /// bits of A are set in B. 198 /// Example: (icmp eq (A & 3), 3) -> AMask_AllOnes 199 /// 200 /// "AllZeros" declares that the comparison is true only if (A & B) == 0 or all 201 /// bits of A are cleared in B. 202 /// Example: (icmp eq (A & 3), 0) -> Mask_AllZeroes 203 /// 204 /// "Mixed" declares that (A & B) == C and C might or might not contain any 205 /// number of one bits and zero bits. 206 /// Example: (icmp eq (A & 3), 1) -> AMask_Mixed 207 /// 208 /// "Not" means that in above descriptions "==" should be replaced by "!=". 209 /// Example: (icmp ne (A & 3), 3) -> AMask_NotAllOnes 210 /// 211 /// If the mask A contains a single bit, then the following is equivalent: 212 /// (icmp eq (A & B), A) equals (icmp ne (A & B), 0) 213 /// (icmp ne (A & B), A) equals (icmp eq (A & B), 0) 214 enum MaskedICmpType { 215 AMask_AllOnes = 1, 216 AMask_NotAllOnes = 2, 217 BMask_AllOnes = 4, 218 BMask_NotAllOnes = 8, 219 Mask_AllZeros = 16, 220 Mask_NotAllZeros = 32, 221 AMask_Mixed = 64, 222 AMask_NotMixed = 128, 223 BMask_Mixed = 256, 224 BMask_NotMixed = 512 225 }; 226 227 /// Return the set of patterns (from MaskedICmpType) that (icmp SCC (A & B), C) 228 /// satisfies. 229 static unsigned getMaskedICmpType(Value *A, Value *B, Value *C, 230 ICmpInst::Predicate Pred) { 231 ConstantInt *ACst = dyn_cast<ConstantInt>(A); 232 ConstantInt *BCst = dyn_cast<ConstantInt>(B); 233 ConstantInt *CCst = dyn_cast<ConstantInt>(C); 234 bool IsEq = (Pred == ICmpInst::ICMP_EQ); 235 bool IsAPow2 = (ACst && !ACst->isZero() && ACst->getValue().isPowerOf2()); 236 bool IsBPow2 = (BCst && !BCst->isZero() && BCst->getValue().isPowerOf2()); 237 unsigned MaskVal = 0; 238 if (CCst && CCst->isZero()) { 239 // if C is zero, then both A and B qualify as mask 240 MaskVal |= (IsEq ? (Mask_AllZeros | AMask_Mixed | BMask_Mixed) 241 : (Mask_NotAllZeros | AMask_NotMixed | BMask_NotMixed)); 242 if (IsAPow2) 243 MaskVal |= (IsEq ? (AMask_NotAllOnes | AMask_NotMixed) 244 : (AMask_AllOnes | AMask_Mixed)); 245 if (IsBPow2) 246 MaskVal |= (IsEq ? (BMask_NotAllOnes | BMask_NotMixed) 247 : (BMask_AllOnes | BMask_Mixed)); 248 return MaskVal; 249 } 250 251 if (A == C) { 252 MaskVal |= (IsEq ? (AMask_AllOnes | AMask_Mixed) 253 : (AMask_NotAllOnes | AMask_NotMixed)); 254 if (IsAPow2) 255 MaskVal |= (IsEq ? (Mask_NotAllZeros | AMask_NotMixed) 256 : (Mask_AllZeros | AMask_Mixed)); 257 } else if (ACst && CCst && ConstantExpr::getAnd(ACst, CCst) == CCst) { 258 MaskVal |= (IsEq ? AMask_Mixed : AMask_NotMixed); 259 } 260 261 if (B == C) { 262 MaskVal |= (IsEq ? (BMask_AllOnes | BMask_Mixed) 263 : (BMask_NotAllOnes | BMask_NotMixed)); 264 if (IsBPow2) 265 MaskVal |= (IsEq ? (Mask_NotAllZeros | BMask_NotMixed) 266 : (Mask_AllZeros | BMask_Mixed)); 267 } else if (BCst && CCst && ConstantExpr::getAnd(BCst, CCst) == CCst) { 268 MaskVal |= (IsEq ? BMask_Mixed : BMask_NotMixed); 269 } 270 271 return MaskVal; 272 } 273 274 /// Convert an analysis of a masked ICmp into its equivalent if all boolean 275 /// operations had the opposite sense. Since each "NotXXX" flag (recording !=) 276 /// is adjacent to the corresponding normal flag (recording ==), this just 277 /// involves swapping those bits over. 278 static unsigned conjugateICmpMask(unsigned Mask) { 279 unsigned NewMask; 280 NewMask = (Mask & (AMask_AllOnes | BMask_AllOnes | Mask_AllZeros | 281 AMask_Mixed | BMask_Mixed)) 282 << 1; 283 284 NewMask |= (Mask & (AMask_NotAllOnes | BMask_NotAllOnes | Mask_NotAllZeros | 285 AMask_NotMixed | BMask_NotMixed)) 286 >> 1; 287 288 return NewMask; 289 } 290 291 // Adapts the external decomposeBitTestICmp for local use. 292 static bool decomposeBitTestICmp(Value *LHS, Value *RHS, CmpInst::Predicate &Pred, 293 Value *&X, Value *&Y, Value *&Z) { 294 APInt Mask; 295 if (!llvm::decomposeBitTestICmp(LHS, RHS, Pred, X, Mask)) 296 return false; 297 298 Y = ConstantInt::get(X->getType(), Mask); 299 Z = ConstantInt::get(X->getType(), 0); 300 return true; 301 } 302 303 /// Handle (icmp(A & B) ==/!= C) &/| (icmp(A & D) ==/!= E). 304 /// Return the pattern classes (from MaskedICmpType) for the left hand side and 305 /// the right hand side as a pair. 306 /// LHS and RHS are the left hand side and the right hand side ICmps and PredL 307 /// and PredR are their predicates, respectively. 308 static 309 Optional<std::pair<unsigned, unsigned>> 310 getMaskedTypeForICmpPair(Value *&A, Value *&B, Value *&C, 311 Value *&D, Value *&E, ICmpInst *LHS, 312 ICmpInst *RHS, 313 ICmpInst::Predicate &PredL, 314 ICmpInst::Predicate &PredR) { 315 // vectors are not (yet?) supported. Don't support pointers either. 316 if (!LHS->getOperand(0)->getType()->isIntegerTy() || 317 !RHS->getOperand(0)->getType()->isIntegerTy()) 318 return None; 319 320 // Here comes the tricky part: 321 // LHS might be of the form L11 & L12 == X, X == L21 & L22, 322 // and L11 & L12 == L21 & L22. The same goes for RHS. 323 // Now we must find those components L** and R**, that are equal, so 324 // that we can extract the parameters A, B, C, D, and E for the canonical 325 // above. 326 Value *L1 = LHS->getOperand(0); 327 Value *L2 = LHS->getOperand(1); 328 Value *L11, *L12, *L21, *L22; 329 // Check whether the icmp can be decomposed into a bit test. 330 if (decomposeBitTestICmp(L1, L2, PredL, L11, L12, L2)) { 331 L21 = L22 = L1 = nullptr; 332 } else { 333 // Look for ANDs in the LHS icmp. 334 if (!match(L1, m_And(m_Value(L11), m_Value(L12)))) { 335 // Any icmp can be viewed as being trivially masked; if it allows us to 336 // remove one, it's worth it. 337 L11 = L1; 338 L12 = Constant::getAllOnesValue(L1->getType()); 339 } 340 341 if (!match(L2, m_And(m_Value(L21), m_Value(L22)))) { 342 L21 = L2; 343 L22 = Constant::getAllOnesValue(L2->getType()); 344 } 345 } 346 347 // Bail if LHS was a icmp that can't be decomposed into an equality. 348 if (!ICmpInst::isEquality(PredL)) 349 return None; 350 351 Value *R1 = RHS->getOperand(0); 352 Value *R2 = RHS->getOperand(1); 353 Value *R11, *R12; 354 bool Ok = false; 355 if (decomposeBitTestICmp(R1, R2, PredR, R11, R12, R2)) { 356 if (R11 == L11 || R11 == L12 || R11 == L21 || R11 == L22) { 357 A = R11; 358 D = R12; 359 } else if (R12 == L11 || R12 == L12 || R12 == L21 || R12 == L22) { 360 A = R12; 361 D = R11; 362 } else { 363 return None; 364 } 365 E = R2; 366 R1 = nullptr; 367 Ok = true; 368 } else { 369 if (!match(R1, m_And(m_Value(R11), m_Value(R12)))) { 370 // As before, model no mask as a trivial mask if it'll let us do an 371 // optimization. 372 R11 = R1; 373 R12 = Constant::getAllOnesValue(R1->getType()); 374 } 375 376 if (R11 == L11 || R11 == L12 || R11 == L21 || R11 == L22) { 377 A = R11; 378 D = R12; 379 E = R2; 380 Ok = true; 381 } else if (R12 == L11 || R12 == L12 || R12 == L21 || R12 == L22) { 382 A = R12; 383 D = R11; 384 E = R2; 385 Ok = true; 386 } 387 } 388 389 // Bail if RHS was a icmp that can't be decomposed into an equality. 390 if (!ICmpInst::isEquality(PredR)) 391 return None; 392 393 // Look for ANDs on the right side of the RHS icmp. 394 if (!Ok) { 395 if (!match(R2, m_And(m_Value(R11), m_Value(R12)))) { 396 R11 = R2; 397 R12 = Constant::getAllOnesValue(R2->getType()); 398 } 399 400 if (R11 == L11 || R11 == L12 || R11 == L21 || R11 == L22) { 401 A = R11; 402 D = R12; 403 E = R1; 404 Ok = true; 405 } else if (R12 == L11 || R12 == L12 || R12 == L21 || R12 == L22) { 406 A = R12; 407 D = R11; 408 E = R1; 409 Ok = true; 410 } else { 411 return None; 412 } 413 } 414 if (!Ok) 415 return None; 416 417 if (L11 == A) { 418 B = L12; 419 C = L2; 420 } else if (L12 == A) { 421 B = L11; 422 C = L2; 423 } else if (L21 == A) { 424 B = L22; 425 C = L1; 426 } else if (L22 == A) { 427 B = L21; 428 C = L1; 429 } 430 431 unsigned LeftType = getMaskedICmpType(A, B, C, PredL); 432 unsigned RightType = getMaskedICmpType(A, D, E, PredR); 433 return Optional<std::pair<unsigned, unsigned>>(std::make_pair(LeftType, RightType)); 434 } 435 436 /// Try to fold (icmp(A & B) ==/!= C) &/| (icmp(A & D) ==/!= E) into a single 437 /// (icmp(A & X) ==/!= Y), where the left-hand side is of type Mask_NotAllZeros 438 /// and the right hand side is of type BMask_Mixed. For example, 439 /// (icmp (A & 12) != 0) & (icmp (A & 15) == 8) -> (icmp (A & 15) == 8). 440 static Value * foldLogOpOfMaskedICmps_NotAllZeros_BMask_Mixed( 441 ICmpInst *LHS, ICmpInst *RHS, bool IsAnd, 442 Value *A, Value *B, Value *C, Value *D, Value *E, 443 ICmpInst::Predicate PredL, ICmpInst::Predicate PredR, 444 llvm::InstCombiner::BuilderTy &Builder) { 445 // We are given the canonical form: 446 // (icmp ne (A & B), 0) & (icmp eq (A & D), E). 447 // where D & E == E. 448 // 449 // If IsAnd is false, we get it in negated form: 450 // (icmp eq (A & B), 0) | (icmp ne (A & D), E) -> 451 // !((icmp ne (A & B), 0) & (icmp eq (A & D), E)). 452 // 453 // We currently handle the case of B, C, D, E are constant. 454 // 455 ConstantInt *BCst = dyn_cast<ConstantInt>(B); 456 if (!BCst) 457 return nullptr; 458 ConstantInt *CCst = dyn_cast<ConstantInt>(C); 459 if (!CCst) 460 return nullptr; 461 ConstantInt *DCst = dyn_cast<ConstantInt>(D); 462 if (!DCst) 463 return nullptr; 464 ConstantInt *ECst = dyn_cast<ConstantInt>(E); 465 if (!ECst) 466 return nullptr; 467 468 ICmpInst::Predicate NewCC = IsAnd ? ICmpInst::ICMP_EQ : ICmpInst::ICMP_NE; 469 470 // Update E to the canonical form when D is a power of two and RHS is 471 // canonicalized as, 472 // (icmp ne (A & D), 0) -> (icmp eq (A & D), D) or 473 // (icmp ne (A & D), D) -> (icmp eq (A & D), 0). 474 if (PredR != NewCC) 475 ECst = cast<ConstantInt>(ConstantExpr::getXor(DCst, ECst)); 476 477 // If B or D is zero, skip because if LHS or RHS can be trivially folded by 478 // other folding rules and this pattern won't apply any more. 479 if (BCst->getValue() == 0 || DCst->getValue() == 0) 480 return nullptr; 481 482 // If B and D don't intersect, ie. (B & D) == 0, no folding because we can't 483 // deduce anything from it. 484 // For example, 485 // (icmp ne (A & 12), 0) & (icmp eq (A & 3), 1) -> no folding. 486 if ((BCst->getValue() & DCst->getValue()) == 0) 487 return nullptr; 488 489 // If the following two conditions are met: 490 // 491 // 1. mask B covers only a single bit that's not covered by mask D, that is, 492 // (B & (B ^ D)) is a power of 2 (in other words, B minus the intersection of 493 // B and D has only one bit set) and, 494 // 495 // 2. RHS (and E) indicates that the rest of B's bits are zero (in other 496 // words, the intersection of B and D is zero), that is, ((B & D) & E) == 0 497 // 498 // then that single bit in B must be one and thus the whole expression can be 499 // folded to 500 // (A & (B | D)) == (B & (B ^ D)) | E. 501 // 502 // For example, 503 // (icmp ne (A & 12), 0) & (icmp eq (A & 7), 1) -> (icmp eq (A & 15), 9) 504 // (icmp ne (A & 15), 0) & (icmp eq (A & 7), 0) -> (icmp eq (A & 15), 8) 505 if ((((BCst->getValue() & DCst->getValue()) & ECst->getValue()) == 0) && 506 (BCst->getValue() & (BCst->getValue() ^ DCst->getValue())).isPowerOf2()) { 507 APInt BorD = BCst->getValue() | DCst->getValue(); 508 APInt BandBxorDorE = (BCst->getValue() & (BCst->getValue() ^ DCst->getValue())) | 509 ECst->getValue(); 510 Value *NewMask = ConstantInt::get(BCst->getType(), BorD); 511 Value *NewMaskedValue = ConstantInt::get(BCst->getType(), BandBxorDorE); 512 Value *NewAnd = Builder.CreateAnd(A, NewMask); 513 return Builder.CreateICmp(NewCC, NewAnd, NewMaskedValue); 514 } 515 516 auto IsSubSetOrEqual = [](ConstantInt *C1, ConstantInt *C2) { 517 return (C1->getValue() & C2->getValue()) == C1->getValue(); 518 }; 519 auto IsSuperSetOrEqual = [](ConstantInt *C1, ConstantInt *C2) { 520 return (C1->getValue() & C2->getValue()) == C2->getValue(); 521 }; 522 523 // In the following, we consider only the cases where B is a superset of D, B 524 // is a subset of D, or B == D because otherwise there's at least one bit 525 // covered by B but not D, in which case we can't deduce much from it, so 526 // no folding (aside from the single must-be-one bit case right above.) 527 // For example, 528 // (icmp ne (A & 14), 0) & (icmp eq (A & 3), 1) -> no folding. 529 if (!IsSubSetOrEqual(BCst, DCst) && !IsSuperSetOrEqual(BCst, DCst)) 530 return nullptr; 531 532 // At this point, either B is a superset of D, B is a subset of D or B == D. 533 534 // If E is zero, if B is a subset of (or equal to) D, LHS and RHS contradict 535 // and the whole expression becomes false (or true if negated), otherwise, no 536 // folding. 537 // For example, 538 // (icmp ne (A & 3), 0) & (icmp eq (A & 7), 0) -> false. 539 // (icmp ne (A & 15), 0) & (icmp eq (A & 3), 0) -> no folding. 540 if (ECst->isZero()) { 541 if (IsSubSetOrEqual(BCst, DCst)) 542 return ConstantInt::get(LHS->getType(), !IsAnd); 543 return nullptr; 544 } 545 546 // At this point, B, D, E aren't zero and (B & D) == B, (B & D) == D or B == 547 // D. If B is a superset of (or equal to) D, since E is not zero, LHS is 548 // subsumed by RHS (RHS implies LHS.) So the whole expression becomes 549 // RHS. For example, 550 // (icmp ne (A & 255), 0) & (icmp eq (A & 15), 8) -> (icmp eq (A & 15), 8). 551 // (icmp ne (A & 15), 0) & (icmp eq (A & 15), 8) -> (icmp eq (A & 15), 8). 552 if (IsSuperSetOrEqual(BCst, DCst)) 553 return RHS; 554 // Otherwise, B is a subset of D. If B and E have a common bit set, 555 // ie. (B & E) != 0, then LHS is subsumed by RHS. For example. 556 // (icmp ne (A & 12), 0) & (icmp eq (A & 15), 8) -> (icmp eq (A & 15), 8). 557 assert(IsSubSetOrEqual(BCst, DCst) && "Precondition due to above code"); 558 if ((BCst->getValue() & ECst->getValue()) != 0) 559 return RHS; 560 // Otherwise, LHS and RHS contradict and the whole expression becomes false 561 // (or true if negated.) For example, 562 // (icmp ne (A & 7), 0) & (icmp eq (A & 15), 8) -> false. 563 // (icmp ne (A & 6), 0) & (icmp eq (A & 15), 8) -> false. 564 return ConstantInt::get(LHS->getType(), !IsAnd); 565 } 566 567 /// Try to fold (icmp(A & B) ==/!= 0) &/| (icmp(A & D) ==/!= E) into a single 568 /// (icmp(A & X) ==/!= Y), where the left-hand side and the right hand side 569 /// aren't of the common mask pattern type. 570 static Value *foldLogOpOfMaskedICmpsAsymmetric( 571 ICmpInst *LHS, ICmpInst *RHS, bool IsAnd, 572 Value *A, Value *B, Value *C, Value *D, Value *E, 573 ICmpInst::Predicate PredL, ICmpInst::Predicate PredR, 574 unsigned LHSMask, unsigned RHSMask, 575 llvm::InstCombiner::BuilderTy &Builder) { 576 assert(ICmpInst::isEquality(PredL) && ICmpInst::isEquality(PredR) && 577 "Expected equality predicates for masked type of icmps."); 578 // Handle Mask_NotAllZeros-BMask_Mixed cases. 579 // (icmp ne/eq (A & B), C) &/| (icmp eq/ne (A & D), E), or 580 // (icmp eq/ne (A & B), C) &/| (icmp ne/eq (A & D), E) 581 // which gets swapped to 582 // (icmp ne/eq (A & D), E) &/| (icmp eq/ne (A & B), C). 583 if (!IsAnd) { 584 LHSMask = conjugateICmpMask(LHSMask); 585 RHSMask = conjugateICmpMask(RHSMask); 586 } 587 if ((LHSMask & Mask_NotAllZeros) && (RHSMask & BMask_Mixed)) { 588 if (Value *V = foldLogOpOfMaskedICmps_NotAllZeros_BMask_Mixed( 589 LHS, RHS, IsAnd, A, B, C, D, E, 590 PredL, PredR, Builder)) { 591 return V; 592 } 593 } else if ((LHSMask & BMask_Mixed) && (RHSMask & Mask_NotAllZeros)) { 594 if (Value *V = foldLogOpOfMaskedICmps_NotAllZeros_BMask_Mixed( 595 RHS, LHS, IsAnd, A, D, E, B, C, 596 PredR, PredL, Builder)) { 597 return V; 598 } 599 } 600 return nullptr; 601 } 602 603 /// Try to fold (icmp(A & B) ==/!= C) &/| (icmp(A & D) ==/!= E) 604 /// into a single (icmp(A & X) ==/!= Y). 605 static Value *foldLogOpOfMaskedICmps(ICmpInst *LHS, ICmpInst *RHS, bool IsAnd, 606 llvm::InstCombiner::BuilderTy &Builder) { 607 Value *A = nullptr, *B = nullptr, *C = nullptr, *D = nullptr, *E = nullptr; 608 ICmpInst::Predicate PredL = LHS->getPredicate(), PredR = RHS->getPredicate(); 609 Optional<std::pair<unsigned, unsigned>> MaskPair = 610 getMaskedTypeForICmpPair(A, B, C, D, E, LHS, RHS, PredL, PredR); 611 if (!MaskPair) 612 return nullptr; 613 assert(ICmpInst::isEquality(PredL) && ICmpInst::isEquality(PredR) && 614 "Expected equality predicates for masked type of icmps."); 615 unsigned LHSMask = MaskPair->first; 616 unsigned RHSMask = MaskPair->second; 617 unsigned Mask = LHSMask & RHSMask; 618 if (Mask == 0) { 619 // Even if the two sides don't share a common pattern, check if folding can 620 // still happen. 621 if (Value *V = foldLogOpOfMaskedICmpsAsymmetric( 622 LHS, RHS, IsAnd, A, B, C, D, E, PredL, PredR, LHSMask, RHSMask, 623 Builder)) 624 return V; 625 return nullptr; 626 } 627 628 // In full generality: 629 // (icmp (A & B) Op C) | (icmp (A & D) Op E) 630 // == ![ (icmp (A & B) !Op C) & (icmp (A & D) !Op E) ] 631 // 632 // If the latter can be converted into (icmp (A & X) Op Y) then the former is 633 // equivalent to (icmp (A & X) !Op Y). 634 // 635 // Therefore, we can pretend for the rest of this function that we're dealing 636 // with the conjunction, provided we flip the sense of any comparisons (both 637 // input and output). 638 639 // In most cases we're going to produce an EQ for the "&&" case. 640 ICmpInst::Predicate NewCC = IsAnd ? ICmpInst::ICMP_EQ : ICmpInst::ICMP_NE; 641 if (!IsAnd) { 642 // Convert the masking analysis into its equivalent with negated 643 // comparisons. 644 Mask = conjugateICmpMask(Mask); 645 } 646 647 if (Mask & Mask_AllZeros) { 648 // (icmp eq (A & B), 0) & (icmp eq (A & D), 0) 649 // -> (icmp eq (A & (B|D)), 0) 650 Value *NewOr = Builder.CreateOr(B, D); 651 Value *NewAnd = Builder.CreateAnd(A, NewOr); 652 // We can't use C as zero because we might actually handle 653 // (icmp ne (A & B), B) & (icmp ne (A & D), D) 654 // with B and D, having a single bit set. 655 Value *Zero = Constant::getNullValue(A->getType()); 656 return Builder.CreateICmp(NewCC, NewAnd, Zero); 657 } 658 if (Mask & BMask_AllOnes) { 659 // (icmp eq (A & B), B) & (icmp eq (A & D), D) 660 // -> (icmp eq (A & (B|D)), (B|D)) 661 Value *NewOr = Builder.CreateOr(B, D); 662 Value *NewAnd = Builder.CreateAnd(A, NewOr); 663 return Builder.CreateICmp(NewCC, NewAnd, NewOr); 664 } 665 if (Mask & AMask_AllOnes) { 666 // (icmp eq (A & B), A) & (icmp eq (A & D), A) 667 // -> (icmp eq (A & (B&D)), A) 668 Value *NewAnd1 = Builder.CreateAnd(B, D); 669 Value *NewAnd2 = Builder.CreateAnd(A, NewAnd1); 670 return Builder.CreateICmp(NewCC, NewAnd2, A); 671 } 672 673 // Remaining cases assume at least that B and D are constant, and depend on 674 // their actual values. This isn't strictly necessary, just a "handle the 675 // easy cases for now" decision. 676 ConstantInt *BCst = dyn_cast<ConstantInt>(B); 677 if (!BCst) 678 return nullptr; 679 ConstantInt *DCst = dyn_cast<ConstantInt>(D); 680 if (!DCst) 681 return nullptr; 682 683 if (Mask & (Mask_NotAllZeros | BMask_NotAllOnes)) { 684 // (icmp ne (A & B), 0) & (icmp ne (A & D), 0) and 685 // (icmp ne (A & B), B) & (icmp ne (A & D), D) 686 // -> (icmp ne (A & B), 0) or (icmp ne (A & D), 0) 687 // Only valid if one of the masks is a superset of the other (check "B&D" is 688 // the same as either B or D). 689 APInt NewMask = BCst->getValue() & DCst->getValue(); 690 691 if (NewMask == BCst->getValue()) 692 return LHS; 693 else if (NewMask == DCst->getValue()) 694 return RHS; 695 } 696 697 if (Mask & AMask_NotAllOnes) { 698 // (icmp ne (A & B), B) & (icmp ne (A & D), D) 699 // -> (icmp ne (A & B), A) or (icmp ne (A & D), A) 700 // Only valid if one of the masks is a superset of the other (check "B|D" is 701 // the same as either B or D). 702 APInt NewMask = BCst->getValue() | DCst->getValue(); 703 704 if (NewMask == BCst->getValue()) 705 return LHS; 706 else if (NewMask == DCst->getValue()) 707 return RHS; 708 } 709 710 if (Mask & BMask_Mixed) { 711 // (icmp eq (A & B), C) & (icmp eq (A & D), E) 712 // We already know that B & C == C && D & E == E. 713 // If we can prove that (B & D) & (C ^ E) == 0, that is, the bits of 714 // C and E, which are shared by both the mask B and the mask D, don't 715 // contradict, then we can transform to 716 // -> (icmp eq (A & (B|D)), (C|E)) 717 // Currently, we only handle the case of B, C, D, and E being constant. 718 // We can't simply use C and E because we might actually handle 719 // (icmp ne (A & B), B) & (icmp eq (A & D), D) 720 // with B and D, having a single bit set. 721 ConstantInt *CCst = dyn_cast<ConstantInt>(C); 722 if (!CCst) 723 return nullptr; 724 ConstantInt *ECst = dyn_cast<ConstantInt>(E); 725 if (!ECst) 726 return nullptr; 727 if (PredL != NewCC) 728 CCst = cast<ConstantInt>(ConstantExpr::getXor(BCst, CCst)); 729 if (PredR != NewCC) 730 ECst = cast<ConstantInt>(ConstantExpr::getXor(DCst, ECst)); 731 732 // If there is a conflict, we should actually return a false for the 733 // whole construct. 734 if (((BCst->getValue() & DCst->getValue()) & 735 (CCst->getValue() ^ ECst->getValue())).getBoolValue()) 736 return ConstantInt::get(LHS->getType(), !IsAnd); 737 738 Value *NewOr1 = Builder.CreateOr(B, D); 739 Value *NewOr2 = ConstantExpr::getOr(CCst, ECst); 740 Value *NewAnd = Builder.CreateAnd(A, NewOr1); 741 return Builder.CreateICmp(NewCC, NewAnd, NewOr2); 742 } 743 744 return nullptr; 745 } 746 747 /// Try to fold a signed range checked with lower bound 0 to an unsigned icmp. 748 /// Example: (icmp sge x, 0) & (icmp slt x, n) --> icmp ult x, n 749 /// If \p Inverted is true then the check is for the inverted range, e.g. 750 /// (icmp slt x, 0) | (icmp sgt x, n) --> icmp ugt x, n 751 Value *InstCombiner::simplifyRangeCheck(ICmpInst *Cmp0, ICmpInst *Cmp1, 752 bool Inverted) { 753 // Check the lower range comparison, e.g. x >= 0 754 // InstCombine already ensured that if there is a constant it's on the RHS. 755 ConstantInt *RangeStart = dyn_cast<ConstantInt>(Cmp0->getOperand(1)); 756 if (!RangeStart) 757 return nullptr; 758 759 ICmpInst::Predicate Pred0 = (Inverted ? Cmp0->getInversePredicate() : 760 Cmp0->getPredicate()); 761 762 // Accept x > -1 or x >= 0 (after potentially inverting the predicate). 763 if (!((Pred0 == ICmpInst::ICMP_SGT && RangeStart->isMinusOne()) || 764 (Pred0 == ICmpInst::ICMP_SGE && RangeStart->isZero()))) 765 return nullptr; 766 767 ICmpInst::Predicate Pred1 = (Inverted ? Cmp1->getInversePredicate() : 768 Cmp1->getPredicate()); 769 770 Value *Input = Cmp0->getOperand(0); 771 Value *RangeEnd; 772 if (Cmp1->getOperand(0) == Input) { 773 // For the upper range compare we have: icmp x, n 774 RangeEnd = Cmp1->getOperand(1); 775 } else if (Cmp1->getOperand(1) == Input) { 776 // For the upper range compare we have: icmp n, x 777 RangeEnd = Cmp1->getOperand(0); 778 Pred1 = ICmpInst::getSwappedPredicate(Pred1); 779 } else { 780 return nullptr; 781 } 782 783 // Check the upper range comparison, e.g. x < n 784 ICmpInst::Predicate NewPred; 785 switch (Pred1) { 786 case ICmpInst::ICMP_SLT: NewPred = ICmpInst::ICMP_ULT; break; 787 case ICmpInst::ICMP_SLE: NewPred = ICmpInst::ICMP_ULE; break; 788 default: return nullptr; 789 } 790 791 // This simplification is only valid if the upper range is not negative. 792 KnownBits Known = computeKnownBits(RangeEnd, /*Depth=*/0, Cmp1); 793 if (!Known.isNonNegative()) 794 return nullptr; 795 796 if (Inverted) 797 NewPred = ICmpInst::getInversePredicate(NewPred); 798 799 return Builder.CreateICmp(NewPred, Input, RangeEnd); 800 } 801 802 static Value * 803 foldAndOrOfEqualityCmpsWithConstants(ICmpInst *LHS, ICmpInst *RHS, 804 bool JoinedByAnd, 805 InstCombiner::BuilderTy &Builder) { 806 Value *X = LHS->getOperand(0); 807 if (X != RHS->getOperand(0)) 808 return nullptr; 809 810 const APInt *C1, *C2; 811 if (!match(LHS->getOperand(1), m_APInt(C1)) || 812 !match(RHS->getOperand(1), m_APInt(C2))) 813 return nullptr; 814 815 // We only handle (X != C1 && X != C2) and (X == C1 || X == C2). 816 ICmpInst::Predicate Pred = LHS->getPredicate(); 817 if (Pred != RHS->getPredicate()) 818 return nullptr; 819 if (JoinedByAnd && Pred != ICmpInst::ICMP_NE) 820 return nullptr; 821 if (!JoinedByAnd && Pred != ICmpInst::ICMP_EQ) 822 return nullptr; 823 824 // The larger unsigned constant goes on the right. 825 if (C1->ugt(*C2)) 826 std::swap(C1, C2); 827 828 APInt Xor = *C1 ^ *C2; 829 if (Xor.isPowerOf2()) { 830 // If LHSC and RHSC differ by only one bit, then set that bit in X and 831 // compare against the larger constant: 832 // (X == C1 || X == C2) --> (X | (C1 ^ C2)) == C2 833 // (X != C1 && X != C2) --> (X | (C1 ^ C2)) != C2 834 // We choose an 'or' with a Pow2 constant rather than the inverse mask with 835 // 'and' because that may lead to smaller codegen from a smaller constant. 836 Value *Or = Builder.CreateOr(X, ConstantInt::get(X->getType(), Xor)); 837 return Builder.CreateICmp(Pred, Or, ConstantInt::get(X->getType(), *C2)); 838 } 839 840 // Special case: get the ordering right when the values wrap around zero. 841 // Ie, we assumed the constants were unsigned when swapping earlier. 842 if (C1->isNullValue() && C2->isAllOnesValue()) 843 std::swap(C1, C2); 844 845 if (*C1 == *C2 - 1) { 846 // (X == 13 || X == 14) --> X - 13 <=u 1 847 // (X != 13 && X != 14) --> X - 13 >u 1 848 // An 'add' is the canonical IR form, so favor that over a 'sub'. 849 Value *Add = Builder.CreateAdd(X, ConstantInt::get(X->getType(), -(*C1))); 850 auto NewPred = JoinedByAnd ? ICmpInst::ICMP_UGT : ICmpInst::ICMP_ULE; 851 return Builder.CreateICmp(NewPred, Add, ConstantInt::get(X->getType(), 1)); 852 } 853 854 return nullptr; 855 } 856 857 // Fold (iszero(A & K1) | iszero(A & K2)) -> (A & (K1 | K2)) != (K1 | K2) 858 // Fold (!iszero(A & K1) & !iszero(A & K2)) -> (A & (K1 | K2)) == (K1 | K2) 859 Value *InstCombiner::foldAndOrOfICmpsOfAndWithPow2(ICmpInst *LHS, ICmpInst *RHS, 860 BinaryOperator &Logic) { 861 bool JoinedByAnd = Logic.getOpcode() == Instruction::And; 862 assert((JoinedByAnd || Logic.getOpcode() == Instruction::Or) && 863 "Wrong opcode"); 864 ICmpInst::Predicate Pred = LHS->getPredicate(); 865 if (Pred != RHS->getPredicate()) 866 return nullptr; 867 if (JoinedByAnd && Pred != ICmpInst::ICMP_NE) 868 return nullptr; 869 if (!JoinedByAnd && Pred != ICmpInst::ICMP_EQ) 870 return nullptr; 871 872 // TODO support vector splats 873 ConstantInt *LHSC = dyn_cast<ConstantInt>(LHS->getOperand(1)); 874 ConstantInt *RHSC = dyn_cast<ConstantInt>(RHS->getOperand(1)); 875 if (!LHSC || !RHSC || !LHSC->isZero() || !RHSC->isZero()) 876 return nullptr; 877 878 Value *A, *B, *C, *D; 879 if (match(LHS->getOperand(0), m_And(m_Value(A), m_Value(B))) && 880 match(RHS->getOperand(0), m_And(m_Value(C), m_Value(D)))) { 881 if (A == D || B == D) 882 std::swap(C, D); 883 if (B == C) 884 std::swap(A, B); 885 886 if (A == C && 887 isKnownToBeAPowerOfTwo(B, false, 0, &Logic) && 888 isKnownToBeAPowerOfTwo(D, false, 0, &Logic)) { 889 Value *Mask = Builder.CreateOr(B, D); 890 Value *Masked = Builder.CreateAnd(A, Mask); 891 auto NewPred = JoinedByAnd ? ICmpInst::ICMP_EQ : ICmpInst::ICMP_NE; 892 return Builder.CreateICmp(NewPred, Masked, Mask); 893 } 894 } 895 896 return nullptr; 897 } 898 899 /// General pattern: 900 /// X & Y 901 /// 902 /// Where Y is checking that all the high bits (covered by a mask 4294967168) 903 /// are uniform, i.e. %arg & 4294967168 can be either 4294967168 or 0 904 /// Pattern can be one of: 905 /// %t = add i32 %arg, 128 906 /// %r = icmp ult i32 %t, 256 907 /// Or 908 /// %t0 = shl i32 %arg, 24 909 /// %t1 = ashr i32 %t0, 24 910 /// %r = icmp eq i32 %t1, %arg 911 /// Or 912 /// %t0 = trunc i32 %arg to i8 913 /// %t1 = sext i8 %t0 to i32 914 /// %r = icmp eq i32 %t1, %arg 915 /// This pattern is a signed truncation check. 916 /// 917 /// And X is checking that some bit in that same mask is zero. 918 /// I.e. can be one of: 919 /// %r = icmp sgt i32 %arg, -1 920 /// Or 921 /// %t = and i32 %arg, 2147483648 922 /// %r = icmp eq i32 %t, 0 923 /// 924 /// Since we are checking that all the bits in that mask are the same, 925 /// and a particular bit is zero, what we are really checking is that all the 926 /// masked bits are zero. 927 /// So this should be transformed to: 928 /// %r = icmp ult i32 %arg, 128 929 static Value *foldSignedTruncationCheck(ICmpInst *ICmp0, ICmpInst *ICmp1, 930 Instruction &CxtI, 931 InstCombiner::BuilderTy &Builder) { 932 assert(CxtI.getOpcode() == Instruction::And); 933 934 // Match icmp ult (add %arg, C01), C1 (C1 == C01 << 1; powers of two) 935 auto tryToMatchSignedTruncationCheck = [](ICmpInst *ICmp, Value *&X, 936 APInt &SignBitMask) -> bool { 937 CmpInst::Predicate Pred; 938 const APInt *I01, *I1; // powers of two; I1 == I01 << 1 939 if (!(match(ICmp, 940 m_ICmp(Pred, m_Add(m_Value(X), m_Power2(I01)), m_Power2(I1))) && 941 Pred == ICmpInst::ICMP_ULT && I1->ugt(*I01) && I01->shl(1) == *I1)) 942 return false; 943 // Which bit is the new sign bit as per the 'signed truncation' pattern? 944 SignBitMask = *I01; 945 return true; 946 }; 947 948 // One icmp needs to be 'signed truncation check'. 949 // We need to match this first, else we will mismatch commutative cases. 950 Value *X1; 951 APInt HighestBit; 952 ICmpInst *OtherICmp; 953 if (tryToMatchSignedTruncationCheck(ICmp1, X1, HighestBit)) 954 OtherICmp = ICmp0; 955 else if (tryToMatchSignedTruncationCheck(ICmp0, X1, HighestBit)) 956 OtherICmp = ICmp1; 957 else 958 return nullptr; 959 960 assert(HighestBit.isPowerOf2() && "expected to be power of two (non-zero)"); 961 962 // Try to match/decompose into: icmp eq (X & Mask), 0 963 auto tryToDecompose = [](ICmpInst *ICmp, Value *&X, 964 APInt &UnsetBitsMask) -> bool { 965 CmpInst::Predicate Pred = ICmp->getPredicate(); 966 // Can it be decomposed into icmp eq (X & Mask), 0 ? 967 if (llvm::decomposeBitTestICmp(ICmp->getOperand(0), ICmp->getOperand(1), 968 Pred, X, UnsetBitsMask, 969 /*LookThroughTrunc=*/false) && 970 Pred == ICmpInst::ICMP_EQ) 971 return true; 972 // Is it icmp eq (X & Mask), 0 already? 973 const APInt *Mask; 974 if (match(ICmp, m_ICmp(Pred, m_And(m_Value(X), m_APInt(Mask)), m_Zero())) && 975 Pred == ICmpInst::ICMP_EQ) { 976 UnsetBitsMask = *Mask; 977 return true; 978 } 979 return false; 980 }; 981 982 // And the other icmp needs to be decomposable into a bit test. 983 Value *X0; 984 APInt UnsetBitsMask; 985 if (!tryToDecompose(OtherICmp, X0, UnsetBitsMask)) 986 return nullptr; 987 988 assert(!UnsetBitsMask.isNullValue() && "empty mask makes no sense."); 989 990 // Are they working on the same value? 991 Value *X; 992 if (X1 == X0) { 993 // Ok as is. 994 X = X1; 995 } else if (match(X0, m_Trunc(m_Specific(X1)))) { 996 UnsetBitsMask = UnsetBitsMask.zext(X1->getType()->getScalarSizeInBits()); 997 X = X1; 998 } else 999 return nullptr; 1000 1001 // So which bits should be uniform as per the 'signed truncation check'? 1002 // (all the bits starting with (i.e. including) HighestBit) 1003 APInt SignBitsMask = ~(HighestBit - 1U); 1004 1005 // UnsetBitsMask must have some common bits with SignBitsMask, 1006 if (!UnsetBitsMask.intersects(SignBitsMask)) 1007 return nullptr; 1008 1009 // Does UnsetBitsMask contain any bits outside of SignBitsMask? 1010 if (!UnsetBitsMask.isSubsetOf(SignBitsMask)) { 1011 APInt OtherHighestBit = (~UnsetBitsMask) + 1U; 1012 if (!OtherHighestBit.isPowerOf2()) 1013 return nullptr; 1014 HighestBit = APIntOps::umin(HighestBit, OtherHighestBit); 1015 } 1016 // Else, if it does not, then all is ok as-is. 1017 1018 // %r = icmp ult %X, SignBit 1019 return Builder.CreateICmpULT(X, ConstantInt::get(X->getType(), HighestBit), 1020 CxtI.getName() + ".simplified"); 1021 } 1022 1023 /// Reduce a pair of compares that check if a value has exactly 1 bit set. 1024 static Value *foldIsPowerOf2(ICmpInst *Cmp0, ICmpInst *Cmp1, bool JoinedByAnd, 1025 InstCombiner::BuilderTy &Builder) { 1026 // Handle 'and' / 'or' commutation: make the equality check the first operand. 1027 if (JoinedByAnd && Cmp1->getPredicate() == ICmpInst::ICMP_NE) 1028 std::swap(Cmp0, Cmp1); 1029 else if (!JoinedByAnd && Cmp1->getPredicate() == ICmpInst::ICMP_EQ) 1030 std::swap(Cmp0, Cmp1); 1031 1032 // (X != 0) && (ctpop(X) u< 2) --> ctpop(X) == 1 1033 CmpInst::Predicate Pred0, Pred1; 1034 Value *X; 1035 if (JoinedByAnd && match(Cmp0, m_ICmp(Pred0, m_Value(X), m_ZeroInt())) && 1036 match(Cmp1, m_ICmp(Pred1, m_Intrinsic<Intrinsic::ctpop>(m_Specific(X)), 1037 m_SpecificInt(2))) && 1038 Pred0 == ICmpInst::ICMP_NE && Pred1 == ICmpInst::ICMP_ULT) { 1039 Value *CtPop = Cmp1->getOperand(0); 1040 return Builder.CreateICmpEQ(CtPop, ConstantInt::get(CtPop->getType(), 1)); 1041 } 1042 // (X == 0) || (ctpop(X) u> 1) --> ctpop(X) != 1 1043 if (!JoinedByAnd && match(Cmp0, m_ICmp(Pred0, m_Value(X), m_ZeroInt())) && 1044 match(Cmp1, m_ICmp(Pred1, m_Intrinsic<Intrinsic::ctpop>(m_Specific(X)), 1045 m_SpecificInt(1))) && 1046 Pred0 == ICmpInst::ICMP_EQ && Pred1 == ICmpInst::ICMP_UGT) { 1047 Value *CtPop = Cmp1->getOperand(0); 1048 return Builder.CreateICmpNE(CtPop, ConstantInt::get(CtPop->getType(), 1)); 1049 } 1050 return nullptr; 1051 } 1052 1053 /// Commuted variants are assumed to be handled by calling this function again 1054 /// with the parameters swapped. 1055 static Value *foldUnsignedUnderflowCheck(ICmpInst *ZeroICmp, 1056 ICmpInst *UnsignedICmp, bool IsAnd, 1057 const SimplifyQuery &Q, 1058 InstCombiner::BuilderTy &Builder) { 1059 Value *ZeroCmpOp; 1060 ICmpInst::Predicate EqPred; 1061 if (!match(ZeroICmp, m_ICmp(EqPred, m_Value(ZeroCmpOp), m_Zero())) || 1062 !ICmpInst::isEquality(EqPred)) 1063 return nullptr; 1064 1065 auto IsKnownNonZero = [&](Value *V) { 1066 return isKnownNonZero(V, Q.DL, /*Depth=*/0, Q.AC, Q.CxtI, Q.DT); 1067 }; 1068 1069 ICmpInst::Predicate UnsignedPred; 1070 1071 Value *A, *B; 1072 if (match(UnsignedICmp, 1073 m_c_ICmp(UnsignedPred, m_Specific(ZeroCmpOp), m_Value(A))) && 1074 match(ZeroCmpOp, m_c_Add(m_Specific(A), m_Value(B))) && 1075 (ZeroICmp->hasOneUse() || UnsignedICmp->hasOneUse())) { 1076 auto GetKnownNonZeroAndOther = [&](Value *&NonZero, Value *&Other) { 1077 if (!IsKnownNonZero(NonZero)) 1078 std::swap(NonZero, Other); 1079 return IsKnownNonZero(NonZero); 1080 }; 1081 1082 // Given ZeroCmpOp = (A + B) 1083 // ZeroCmpOp <= A && ZeroCmpOp != 0 --> (0-B) < A 1084 // ZeroCmpOp > A || ZeroCmpOp == 0 --> (0-B) >= A 1085 // 1086 // ZeroCmpOp < A && ZeroCmpOp != 0 --> (0-X) < Y iff 1087 // ZeroCmpOp >= A || ZeroCmpOp == 0 --> (0-X) >= Y iff 1088 // with X being the value (A/B) that is known to be non-zero, 1089 // and Y being remaining value. 1090 if (UnsignedPred == ICmpInst::ICMP_ULE && EqPred == ICmpInst::ICMP_NE && 1091 IsAnd) 1092 return Builder.CreateICmpULT(Builder.CreateNeg(B), A); 1093 if (UnsignedPred == ICmpInst::ICMP_ULT && EqPred == ICmpInst::ICMP_NE && 1094 IsAnd && GetKnownNonZeroAndOther(B, A)) 1095 return Builder.CreateICmpULT(Builder.CreateNeg(B), A); 1096 if (UnsignedPred == ICmpInst::ICMP_UGT && EqPred == ICmpInst::ICMP_EQ && 1097 !IsAnd) 1098 return Builder.CreateICmpUGE(Builder.CreateNeg(B), A); 1099 if (UnsignedPred == ICmpInst::ICMP_UGE && EqPred == ICmpInst::ICMP_EQ && 1100 !IsAnd && GetKnownNonZeroAndOther(B, A)) 1101 return Builder.CreateICmpUGE(Builder.CreateNeg(B), A); 1102 } 1103 1104 Value *Base, *Offset; 1105 if (!match(ZeroCmpOp, m_Sub(m_Value(Base), m_Value(Offset)))) 1106 return nullptr; 1107 1108 if (!match(UnsignedICmp, 1109 m_c_ICmp(UnsignedPred, m_Specific(Base), m_Specific(Offset))) || 1110 !ICmpInst::isUnsigned(UnsignedPred)) 1111 return nullptr; 1112 1113 // Base >=/> Offset && (Base - Offset) != 0 <--> Base > Offset 1114 // (no overflow and not null) 1115 if ((UnsignedPred == ICmpInst::ICMP_UGE || 1116 UnsignedPred == ICmpInst::ICMP_UGT) && 1117 EqPred == ICmpInst::ICMP_NE && IsAnd) 1118 return Builder.CreateICmpUGT(Base, Offset); 1119 1120 // Base <=/< Offset || (Base - Offset) == 0 <--> Base <= Offset 1121 // (overflow or null) 1122 if ((UnsignedPred == ICmpInst::ICMP_ULE || 1123 UnsignedPred == ICmpInst::ICMP_ULT) && 1124 EqPred == ICmpInst::ICMP_EQ && !IsAnd) 1125 return Builder.CreateICmpULE(Base, Offset); 1126 1127 // Base <= Offset && (Base - Offset) != 0 --> Base < Offset 1128 if (UnsignedPred == ICmpInst::ICMP_ULE && EqPred == ICmpInst::ICMP_NE && 1129 IsAnd) 1130 return Builder.CreateICmpULT(Base, Offset); 1131 1132 // Base > Offset || (Base - Offset) == 0 --> Base >= Offset 1133 if (UnsignedPred == ICmpInst::ICMP_UGT && EqPred == ICmpInst::ICMP_EQ && 1134 !IsAnd) 1135 return Builder.CreateICmpUGE(Base, Offset); 1136 1137 return nullptr; 1138 } 1139 1140 /// Fold (icmp)&(icmp) if possible. 1141 Value *InstCombiner::foldAndOfICmps(ICmpInst *LHS, ICmpInst *RHS, 1142 BinaryOperator &And) { 1143 const SimplifyQuery Q = SQ.getWithInstruction(&And); 1144 1145 // Fold (!iszero(A & K1) & !iszero(A & K2)) -> (A & (K1 | K2)) == (K1 | K2) 1146 // if K1 and K2 are a one-bit mask. 1147 if (Value *V = foldAndOrOfICmpsOfAndWithPow2(LHS, RHS, And)) 1148 return V; 1149 1150 ICmpInst::Predicate PredL = LHS->getPredicate(), PredR = RHS->getPredicate(); 1151 1152 // (icmp1 A, B) & (icmp2 A, B) --> (icmp3 A, B) 1153 if (predicatesFoldable(PredL, PredR)) { 1154 if (LHS->getOperand(0) == RHS->getOperand(1) && 1155 LHS->getOperand(1) == RHS->getOperand(0)) 1156 LHS->swapOperands(); 1157 if (LHS->getOperand(0) == RHS->getOperand(0) && 1158 LHS->getOperand(1) == RHS->getOperand(1)) { 1159 Value *Op0 = LHS->getOperand(0), *Op1 = LHS->getOperand(1); 1160 unsigned Code = getICmpCode(LHS) & getICmpCode(RHS); 1161 bool IsSigned = LHS->isSigned() || RHS->isSigned(); 1162 return getNewICmpValue(Code, IsSigned, Op0, Op1, Builder); 1163 } 1164 } 1165 1166 // handle (roughly): (icmp eq (A & B), C) & (icmp eq (A & D), E) 1167 if (Value *V = foldLogOpOfMaskedICmps(LHS, RHS, true, Builder)) 1168 return V; 1169 1170 // E.g. (icmp sge x, 0) & (icmp slt x, n) --> icmp ult x, n 1171 if (Value *V = simplifyRangeCheck(LHS, RHS, /*Inverted=*/false)) 1172 return V; 1173 1174 // E.g. (icmp slt x, n) & (icmp sge x, 0) --> icmp ult x, n 1175 if (Value *V = simplifyRangeCheck(RHS, LHS, /*Inverted=*/false)) 1176 return V; 1177 1178 if (Value *V = foldAndOrOfEqualityCmpsWithConstants(LHS, RHS, true, Builder)) 1179 return V; 1180 1181 if (Value *V = foldSignedTruncationCheck(LHS, RHS, And, Builder)) 1182 return V; 1183 1184 if (Value *V = foldIsPowerOf2(LHS, RHS, true /* JoinedByAnd */, Builder)) 1185 return V; 1186 1187 if (Value *X = 1188 foldUnsignedUnderflowCheck(LHS, RHS, /*IsAnd=*/true, Q, Builder)) 1189 return X; 1190 if (Value *X = 1191 foldUnsignedUnderflowCheck(RHS, LHS, /*IsAnd=*/true, Q, Builder)) 1192 return X; 1193 1194 // This only handles icmp of constants: (icmp1 A, C1) & (icmp2 B, C2). 1195 Value *LHS0 = LHS->getOperand(0), *RHS0 = RHS->getOperand(0); 1196 ConstantInt *LHSC = dyn_cast<ConstantInt>(LHS->getOperand(1)); 1197 ConstantInt *RHSC = dyn_cast<ConstantInt>(RHS->getOperand(1)); 1198 if (!LHSC || !RHSC) 1199 return nullptr; 1200 1201 if (LHSC == RHSC && PredL == PredR) { 1202 // (icmp ult A, C) & (icmp ult B, C) --> (icmp ult (A|B), C) 1203 // where C is a power of 2 or 1204 // (icmp eq A, 0) & (icmp eq B, 0) --> (icmp eq (A|B), 0) 1205 if ((PredL == ICmpInst::ICMP_ULT && LHSC->getValue().isPowerOf2()) || 1206 (PredL == ICmpInst::ICMP_EQ && LHSC->isZero())) { 1207 Value *NewOr = Builder.CreateOr(LHS0, RHS0); 1208 return Builder.CreateICmp(PredL, NewOr, LHSC); 1209 } 1210 } 1211 1212 // (trunc x) == C1 & (and x, CA) == C2 -> (and x, CA|CMAX) == C1|C2 1213 // where CMAX is the all ones value for the truncated type, 1214 // iff the lower bits of C2 and CA are zero. 1215 if (PredL == ICmpInst::ICMP_EQ && PredL == PredR && LHS->hasOneUse() && 1216 RHS->hasOneUse()) { 1217 Value *V; 1218 ConstantInt *AndC, *SmallC = nullptr, *BigC = nullptr; 1219 1220 // (trunc x) == C1 & (and x, CA) == C2 1221 // (and x, CA) == C2 & (trunc x) == C1 1222 if (match(RHS0, m_Trunc(m_Value(V))) && 1223 match(LHS0, m_And(m_Specific(V), m_ConstantInt(AndC)))) { 1224 SmallC = RHSC; 1225 BigC = LHSC; 1226 } else if (match(LHS0, m_Trunc(m_Value(V))) && 1227 match(RHS0, m_And(m_Specific(V), m_ConstantInt(AndC)))) { 1228 SmallC = LHSC; 1229 BigC = RHSC; 1230 } 1231 1232 if (SmallC && BigC) { 1233 unsigned BigBitSize = BigC->getType()->getBitWidth(); 1234 unsigned SmallBitSize = SmallC->getType()->getBitWidth(); 1235 1236 // Check that the low bits are zero. 1237 APInt Low = APInt::getLowBitsSet(BigBitSize, SmallBitSize); 1238 if ((Low & AndC->getValue()).isNullValue() && 1239 (Low & BigC->getValue()).isNullValue()) { 1240 Value *NewAnd = Builder.CreateAnd(V, Low | AndC->getValue()); 1241 APInt N = SmallC->getValue().zext(BigBitSize) | BigC->getValue(); 1242 Value *NewVal = ConstantInt::get(AndC->getType()->getContext(), N); 1243 return Builder.CreateICmp(PredL, NewAnd, NewVal); 1244 } 1245 } 1246 } 1247 1248 // From here on, we only handle: 1249 // (icmp1 A, C1) & (icmp2 A, C2) --> something simpler. 1250 if (LHS0 != RHS0) 1251 return nullptr; 1252 1253 // ICMP_[US][GL]E X, C is folded to ICMP_[US][GL]T elsewhere. 1254 if (PredL == ICmpInst::ICMP_UGE || PredL == ICmpInst::ICMP_ULE || 1255 PredR == ICmpInst::ICMP_UGE || PredR == ICmpInst::ICMP_ULE || 1256 PredL == ICmpInst::ICMP_SGE || PredL == ICmpInst::ICMP_SLE || 1257 PredR == ICmpInst::ICMP_SGE || PredR == ICmpInst::ICMP_SLE) 1258 return nullptr; 1259 1260 // We can't fold (ugt x, C) & (sgt x, C2). 1261 if (!predicatesFoldable(PredL, PredR)) 1262 return nullptr; 1263 1264 // Ensure that the larger constant is on the RHS. 1265 bool ShouldSwap; 1266 if (CmpInst::isSigned(PredL) || 1267 (ICmpInst::isEquality(PredL) && CmpInst::isSigned(PredR))) 1268 ShouldSwap = LHSC->getValue().sgt(RHSC->getValue()); 1269 else 1270 ShouldSwap = LHSC->getValue().ugt(RHSC->getValue()); 1271 1272 if (ShouldSwap) { 1273 std::swap(LHS, RHS); 1274 std::swap(LHSC, RHSC); 1275 std::swap(PredL, PredR); 1276 } 1277 1278 // At this point, we know we have two icmp instructions 1279 // comparing a value against two constants and and'ing the result 1280 // together. Because of the above check, we know that we only have 1281 // icmp eq, icmp ne, icmp [su]lt, and icmp [SU]gt here. We also know 1282 // (from the icmp folding check above), that the two constants 1283 // are not equal and that the larger constant is on the RHS 1284 assert(LHSC != RHSC && "Compares not folded above?"); 1285 1286 switch (PredL) { 1287 default: 1288 llvm_unreachable("Unknown integer condition code!"); 1289 case ICmpInst::ICMP_NE: 1290 switch (PredR) { 1291 default: 1292 llvm_unreachable("Unknown integer condition code!"); 1293 case ICmpInst::ICMP_ULT: 1294 // (X != 13 & X u< 14) -> X < 13 1295 if (LHSC->getValue() == (RHSC->getValue() - 1)) 1296 return Builder.CreateICmpULT(LHS0, LHSC); 1297 if (LHSC->isZero()) // (X != 0 & X u< C) -> X-1 u< C-1 1298 return insertRangeTest(LHS0, LHSC->getValue() + 1, RHSC->getValue(), 1299 false, true); 1300 break; // (X != 13 & X u< 15) -> no change 1301 case ICmpInst::ICMP_SLT: 1302 // (X != 13 & X s< 14) -> X < 13 1303 if (LHSC->getValue() == (RHSC->getValue() - 1)) 1304 return Builder.CreateICmpSLT(LHS0, LHSC); 1305 // (X != INT_MIN & X s< C) -> X-(INT_MIN+1) u< (C-(INT_MIN+1)) 1306 if (LHSC->isMinValue(true)) 1307 return insertRangeTest(LHS0, LHSC->getValue() + 1, RHSC->getValue(), 1308 true, true); 1309 break; // (X != 13 & X s< 15) -> no change 1310 case ICmpInst::ICMP_NE: 1311 // Potential folds for this case should already be handled. 1312 break; 1313 } 1314 break; 1315 case ICmpInst::ICMP_UGT: 1316 switch (PredR) { 1317 default: 1318 llvm_unreachable("Unknown integer condition code!"); 1319 case ICmpInst::ICMP_NE: 1320 // (X u> 13 & X != 14) -> X u> 14 1321 if (RHSC->getValue() == (LHSC->getValue() + 1)) 1322 return Builder.CreateICmp(PredL, LHS0, RHSC); 1323 // X u> C & X != UINT_MAX -> (X-(C+1)) u< UINT_MAX-(C+1) 1324 if (RHSC->isMaxValue(false)) 1325 return insertRangeTest(LHS0, LHSC->getValue() + 1, RHSC->getValue(), 1326 false, true); 1327 break; // (X u> 13 & X != 15) -> no change 1328 case ICmpInst::ICMP_ULT: // (X u> 13 & X u< 15) -> (X-14) u< 1 1329 return insertRangeTest(LHS0, LHSC->getValue() + 1, RHSC->getValue(), 1330 false, true); 1331 } 1332 break; 1333 case ICmpInst::ICMP_SGT: 1334 switch (PredR) { 1335 default: 1336 llvm_unreachable("Unknown integer condition code!"); 1337 case ICmpInst::ICMP_NE: 1338 // (X s> 13 & X != 14) -> X s> 14 1339 if (RHSC->getValue() == (LHSC->getValue() + 1)) 1340 return Builder.CreateICmp(PredL, LHS0, RHSC); 1341 // X s> C & X != INT_MAX -> (X-(C+1)) u< INT_MAX-(C+1) 1342 if (RHSC->isMaxValue(true)) 1343 return insertRangeTest(LHS0, LHSC->getValue() + 1, RHSC->getValue(), 1344 true, true); 1345 break; // (X s> 13 & X != 15) -> no change 1346 case ICmpInst::ICMP_SLT: // (X s> 13 & X s< 15) -> (X-14) u< 1 1347 return insertRangeTest(LHS0, LHSC->getValue() + 1, RHSC->getValue(), true, 1348 true); 1349 } 1350 break; 1351 } 1352 1353 return nullptr; 1354 } 1355 1356 Value *InstCombiner::foldLogicOfFCmps(FCmpInst *LHS, FCmpInst *RHS, bool IsAnd) { 1357 Value *LHS0 = LHS->getOperand(0), *LHS1 = LHS->getOperand(1); 1358 Value *RHS0 = RHS->getOperand(0), *RHS1 = RHS->getOperand(1); 1359 FCmpInst::Predicate PredL = LHS->getPredicate(), PredR = RHS->getPredicate(); 1360 1361 if (LHS0 == RHS1 && RHS0 == LHS1) { 1362 // Swap RHS operands to match LHS. 1363 PredR = FCmpInst::getSwappedPredicate(PredR); 1364 std::swap(RHS0, RHS1); 1365 } 1366 1367 // Simplify (fcmp cc0 x, y) & (fcmp cc1 x, y). 1368 // Suppose the relation between x and y is R, where R is one of 1369 // U(1000), L(0100), G(0010) or E(0001), and CC0 and CC1 are the bitmasks for 1370 // testing the desired relations. 1371 // 1372 // Since (R & CC0) and (R & CC1) are either R or 0, we actually have this: 1373 // bool(R & CC0) && bool(R & CC1) 1374 // = bool((R & CC0) & (R & CC1)) 1375 // = bool(R & (CC0 & CC1)) <= by re-association, commutation, and idempotency 1376 // 1377 // Since (R & CC0) and (R & CC1) are either R or 0, we actually have this: 1378 // bool(R & CC0) || bool(R & CC1) 1379 // = bool((R & CC0) | (R & CC1)) 1380 // = bool(R & (CC0 | CC1)) <= by reversed distribution (contribution? ;) 1381 if (LHS0 == RHS0 && LHS1 == RHS1) { 1382 unsigned FCmpCodeL = getFCmpCode(PredL); 1383 unsigned FCmpCodeR = getFCmpCode(PredR); 1384 unsigned NewPred = IsAnd ? FCmpCodeL & FCmpCodeR : FCmpCodeL | FCmpCodeR; 1385 return getFCmpValue(NewPred, LHS0, LHS1, Builder); 1386 } 1387 1388 if ((PredL == FCmpInst::FCMP_ORD && PredR == FCmpInst::FCMP_ORD && IsAnd) || 1389 (PredL == FCmpInst::FCMP_UNO && PredR == FCmpInst::FCMP_UNO && !IsAnd)) { 1390 if (LHS0->getType() != RHS0->getType()) 1391 return nullptr; 1392 1393 // FCmp canonicalization ensures that (fcmp ord/uno X, X) and 1394 // (fcmp ord/uno X, C) will be transformed to (fcmp X, +0.0). 1395 if (match(LHS1, m_PosZeroFP()) && match(RHS1, m_PosZeroFP())) 1396 // Ignore the constants because they are obviously not NANs: 1397 // (fcmp ord x, 0.0) & (fcmp ord y, 0.0) -> (fcmp ord x, y) 1398 // (fcmp uno x, 0.0) | (fcmp uno y, 0.0) -> (fcmp uno x, y) 1399 return Builder.CreateFCmp(PredL, LHS0, RHS0); 1400 } 1401 1402 return nullptr; 1403 } 1404 1405 /// This a limited reassociation for a special case (see above) where we are 1406 /// checking if two values are either both NAN (unordered) or not-NAN (ordered). 1407 /// This could be handled more generally in '-reassociation', but it seems like 1408 /// an unlikely pattern for a large number of logic ops and fcmps. 1409 static Instruction *reassociateFCmps(BinaryOperator &BO, 1410 InstCombiner::BuilderTy &Builder) { 1411 Instruction::BinaryOps Opcode = BO.getOpcode(); 1412 assert((Opcode == Instruction::And || Opcode == Instruction::Or) && 1413 "Expecting and/or op for fcmp transform"); 1414 1415 // There are 4 commuted variants of the pattern. Canonicalize operands of this 1416 // logic op so an fcmp is operand 0 and a matching logic op is operand 1. 1417 Value *Op0 = BO.getOperand(0), *Op1 = BO.getOperand(1), *X; 1418 FCmpInst::Predicate Pred; 1419 if (match(Op1, m_FCmp(Pred, m_Value(), m_AnyZeroFP()))) 1420 std::swap(Op0, Op1); 1421 1422 // Match inner binop and the predicate for combining 2 NAN checks into 1. 1423 BinaryOperator *BO1; 1424 FCmpInst::Predicate NanPred = Opcode == Instruction::And ? FCmpInst::FCMP_ORD 1425 : FCmpInst::FCMP_UNO; 1426 if (!match(Op0, m_FCmp(Pred, m_Value(X), m_AnyZeroFP())) || Pred != NanPred || 1427 !match(Op1, m_BinOp(BO1)) || BO1->getOpcode() != Opcode) 1428 return nullptr; 1429 1430 // The inner logic op must have a matching fcmp operand. 1431 Value *BO10 = BO1->getOperand(0), *BO11 = BO1->getOperand(1), *Y; 1432 if (!match(BO10, m_FCmp(Pred, m_Value(Y), m_AnyZeroFP())) || 1433 Pred != NanPred || X->getType() != Y->getType()) 1434 std::swap(BO10, BO11); 1435 1436 if (!match(BO10, m_FCmp(Pred, m_Value(Y), m_AnyZeroFP())) || 1437 Pred != NanPred || X->getType() != Y->getType()) 1438 return nullptr; 1439 1440 // and (fcmp ord X, 0), (and (fcmp ord Y, 0), Z) --> and (fcmp ord X, Y), Z 1441 // or (fcmp uno X, 0), (or (fcmp uno Y, 0), Z) --> or (fcmp uno X, Y), Z 1442 Value *NewFCmp = Builder.CreateFCmp(Pred, X, Y); 1443 if (auto *NewFCmpInst = dyn_cast<FCmpInst>(NewFCmp)) { 1444 // Intersect FMF from the 2 source fcmps. 1445 NewFCmpInst->copyIRFlags(Op0); 1446 NewFCmpInst->andIRFlags(BO10); 1447 } 1448 return BinaryOperator::Create(Opcode, NewFCmp, BO11); 1449 } 1450 1451 /// Match De Morgan's Laws: 1452 /// (~A & ~B) == (~(A | B)) 1453 /// (~A | ~B) == (~(A & B)) 1454 static Instruction *matchDeMorgansLaws(BinaryOperator &I, 1455 InstCombiner::BuilderTy &Builder) { 1456 auto Opcode = I.getOpcode(); 1457 assert((Opcode == Instruction::And || Opcode == Instruction::Or) && 1458 "Trying to match De Morgan's Laws with something other than and/or"); 1459 1460 // Flip the logic operation. 1461 Opcode = (Opcode == Instruction::And) ? Instruction::Or : Instruction::And; 1462 1463 Value *A, *B; 1464 if (match(I.getOperand(0), m_OneUse(m_Not(m_Value(A)))) && 1465 match(I.getOperand(1), m_OneUse(m_Not(m_Value(B)))) && 1466 !isFreeToInvert(A, A->hasOneUse()) && 1467 !isFreeToInvert(B, B->hasOneUse())) { 1468 Value *AndOr = Builder.CreateBinOp(Opcode, A, B, I.getName() + ".demorgan"); 1469 return BinaryOperator::CreateNot(AndOr); 1470 } 1471 1472 return nullptr; 1473 } 1474 1475 bool InstCombiner::shouldOptimizeCast(CastInst *CI) { 1476 Value *CastSrc = CI->getOperand(0); 1477 1478 // Noop casts and casts of constants should be eliminated trivially. 1479 if (CI->getSrcTy() == CI->getDestTy() || isa<Constant>(CastSrc)) 1480 return false; 1481 1482 // If this cast is paired with another cast that can be eliminated, we prefer 1483 // to have it eliminated. 1484 if (const auto *PrecedingCI = dyn_cast<CastInst>(CastSrc)) 1485 if (isEliminableCastPair(PrecedingCI, CI)) 1486 return false; 1487 1488 return true; 1489 } 1490 1491 /// Fold {and,or,xor} (cast X), C. 1492 static Instruction *foldLogicCastConstant(BinaryOperator &Logic, CastInst *Cast, 1493 InstCombiner::BuilderTy &Builder) { 1494 Constant *C = dyn_cast<Constant>(Logic.getOperand(1)); 1495 if (!C) 1496 return nullptr; 1497 1498 auto LogicOpc = Logic.getOpcode(); 1499 Type *DestTy = Logic.getType(); 1500 Type *SrcTy = Cast->getSrcTy(); 1501 1502 // Move the logic operation ahead of a zext or sext if the constant is 1503 // unchanged in the smaller source type. Performing the logic in a smaller 1504 // type may provide more information to later folds, and the smaller logic 1505 // instruction may be cheaper (particularly in the case of vectors). 1506 Value *X; 1507 if (match(Cast, m_OneUse(m_ZExt(m_Value(X))))) { 1508 Constant *TruncC = ConstantExpr::getTrunc(C, SrcTy); 1509 Constant *ZextTruncC = ConstantExpr::getZExt(TruncC, DestTy); 1510 if (ZextTruncC == C) { 1511 // LogicOpc (zext X), C --> zext (LogicOpc X, C) 1512 Value *NewOp = Builder.CreateBinOp(LogicOpc, X, TruncC); 1513 return new ZExtInst(NewOp, DestTy); 1514 } 1515 } 1516 1517 if (match(Cast, m_OneUse(m_SExt(m_Value(X))))) { 1518 Constant *TruncC = ConstantExpr::getTrunc(C, SrcTy); 1519 Constant *SextTruncC = ConstantExpr::getSExt(TruncC, DestTy); 1520 if (SextTruncC == C) { 1521 // LogicOpc (sext X), C --> sext (LogicOpc X, C) 1522 Value *NewOp = Builder.CreateBinOp(LogicOpc, X, TruncC); 1523 return new SExtInst(NewOp, DestTy); 1524 } 1525 } 1526 1527 return nullptr; 1528 } 1529 1530 /// Fold {and,or,xor} (cast X), Y. 1531 Instruction *InstCombiner::foldCastedBitwiseLogic(BinaryOperator &I) { 1532 auto LogicOpc = I.getOpcode(); 1533 assert(I.isBitwiseLogicOp() && "Unexpected opcode for bitwise logic folding"); 1534 1535 Value *Op0 = I.getOperand(0), *Op1 = I.getOperand(1); 1536 CastInst *Cast0 = dyn_cast<CastInst>(Op0); 1537 if (!Cast0) 1538 return nullptr; 1539 1540 // This must be a cast from an integer or integer vector source type to allow 1541 // transformation of the logic operation to the source type. 1542 Type *DestTy = I.getType(); 1543 Type *SrcTy = Cast0->getSrcTy(); 1544 if (!SrcTy->isIntOrIntVectorTy()) 1545 return nullptr; 1546 1547 if (Instruction *Ret = foldLogicCastConstant(I, Cast0, Builder)) 1548 return Ret; 1549 1550 CastInst *Cast1 = dyn_cast<CastInst>(Op1); 1551 if (!Cast1) 1552 return nullptr; 1553 1554 // Both operands of the logic operation are casts. The casts must be of the 1555 // same type for reduction. 1556 auto CastOpcode = Cast0->getOpcode(); 1557 if (CastOpcode != Cast1->getOpcode() || SrcTy != Cast1->getSrcTy()) 1558 return nullptr; 1559 1560 Value *Cast0Src = Cast0->getOperand(0); 1561 Value *Cast1Src = Cast1->getOperand(0); 1562 1563 // fold logic(cast(A), cast(B)) -> cast(logic(A, B)) 1564 if (shouldOptimizeCast(Cast0) && shouldOptimizeCast(Cast1)) { 1565 Value *NewOp = Builder.CreateBinOp(LogicOpc, Cast0Src, Cast1Src, 1566 I.getName()); 1567 return CastInst::Create(CastOpcode, NewOp, DestTy); 1568 } 1569 1570 // For now, only 'and'/'or' have optimizations after this. 1571 if (LogicOpc == Instruction::Xor) 1572 return nullptr; 1573 1574 // If this is logic(cast(icmp), cast(icmp)), try to fold this even if the 1575 // cast is otherwise not optimizable. This happens for vector sexts. 1576 ICmpInst *ICmp0 = dyn_cast<ICmpInst>(Cast0Src); 1577 ICmpInst *ICmp1 = dyn_cast<ICmpInst>(Cast1Src); 1578 if (ICmp0 && ICmp1) { 1579 Value *Res = LogicOpc == Instruction::And ? foldAndOfICmps(ICmp0, ICmp1, I) 1580 : foldOrOfICmps(ICmp0, ICmp1, I); 1581 if (Res) 1582 return CastInst::Create(CastOpcode, Res, DestTy); 1583 return nullptr; 1584 } 1585 1586 // If this is logic(cast(fcmp), cast(fcmp)), try to fold this even if the 1587 // cast is otherwise not optimizable. This happens for vector sexts. 1588 FCmpInst *FCmp0 = dyn_cast<FCmpInst>(Cast0Src); 1589 FCmpInst *FCmp1 = dyn_cast<FCmpInst>(Cast1Src); 1590 if (FCmp0 && FCmp1) 1591 if (Value *R = foldLogicOfFCmps(FCmp0, FCmp1, LogicOpc == Instruction::And)) 1592 return CastInst::Create(CastOpcode, R, DestTy); 1593 1594 return nullptr; 1595 } 1596 1597 static Instruction *foldAndToXor(BinaryOperator &I, 1598 InstCombiner::BuilderTy &Builder) { 1599 assert(I.getOpcode() == Instruction::And); 1600 Value *Op0 = I.getOperand(0); 1601 Value *Op1 = I.getOperand(1); 1602 Value *A, *B; 1603 1604 // Operand complexity canonicalization guarantees that the 'or' is Op0. 1605 // (A | B) & ~(A & B) --> A ^ B 1606 // (A | B) & ~(B & A) --> A ^ B 1607 if (match(&I, m_BinOp(m_Or(m_Value(A), m_Value(B)), 1608 m_Not(m_c_And(m_Deferred(A), m_Deferred(B)))))) 1609 return BinaryOperator::CreateXor(A, B); 1610 1611 // (A | ~B) & (~A | B) --> ~(A ^ B) 1612 // (A | ~B) & (B | ~A) --> ~(A ^ B) 1613 // (~B | A) & (~A | B) --> ~(A ^ B) 1614 // (~B | A) & (B | ~A) --> ~(A ^ B) 1615 if (Op0->hasOneUse() || Op1->hasOneUse()) 1616 if (match(&I, m_BinOp(m_c_Or(m_Value(A), m_Not(m_Value(B))), 1617 m_c_Or(m_Not(m_Deferred(A)), m_Deferred(B))))) 1618 return BinaryOperator::CreateNot(Builder.CreateXor(A, B)); 1619 1620 return nullptr; 1621 } 1622 1623 static Instruction *foldOrToXor(BinaryOperator &I, 1624 InstCombiner::BuilderTy &Builder) { 1625 assert(I.getOpcode() == Instruction::Or); 1626 Value *Op0 = I.getOperand(0); 1627 Value *Op1 = I.getOperand(1); 1628 Value *A, *B; 1629 1630 // Operand complexity canonicalization guarantees that the 'and' is Op0. 1631 // (A & B) | ~(A | B) --> ~(A ^ B) 1632 // (A & B) | ~(B | A) --> ~(A ^ B) 1633 if (Op0->hasOneUse() || Op1->hasOneUse()) 1634 if (match(Op0, m_And(m_Value(A), m_Value(B))) && 1635 match(Op1, m_Not(m_c_Or(m_Specific(A), m_Specific(B))))) 1636 return BinaryOperator::CreateNot(Builder.CreateXor(A, B)); 1637 1638 // (A & ~B) | (~A & B) --> A ^ B 1639 // (A & ~B) | (B & ~A) --> A ^ B 1640 // (~B & A) | (~A & B) --> A ^ B 1641 // (~B & A) | (B & ~A) --> A ^ B 1642 if (match(Op0, m_c_And(m_Value(A), m_Not(m_Value(B)))) && 1643 match(Op1, m_c_And(m_Not(m_Specific(A)), m_Specific(B)))) 1644 return BinaryOperator::CreateXor(A, B); 1645 1646 return nullptr; 1647 } 1648 1649 /// Return true if a constant shift amount is always less than the specified 1650 /// bit-width. If not, the shift could create poison in the narrower type. 1651 static bool canNarrowShiftAmt(Constant *C, unsigned BitWidth) { 1652 if (auto *ScalarC = dyn_cast<ConstantInt>(C)) 1653 return ScalarC->getZExtValue() < BitWidth; 1654 1655 if (C->getType()->isVectorTy()) { 1656 // Check each element of a constant vector. 1657 unsigned NumElts = cast<VectorType>(C->getType())->getNumElements(); 1658 for (unsigned i = 0; i != NumElts; ++i) { 1659 Constant *Elt = C->getAggregateElement(i); 1660 if (!Elt) 1661 return false; 1662 if (isa<UndefValue>(Elt)) 1663 continue; 1664 auto *CI = dyn_cast<ConstantInt>(Elt); 1665 if (!CI || CI->getZExtValue() >= BitWidth) 1666 return false; 1667 } 1668 return true; 1669 } 1670 1671 // The constant is a constant expression or unknown. 1672 return false; 1673 } 1674 1675 /// Try to use narrower ops (sink zext ops) for an 'and' with binop operand and 1676 /// a common zext operand: and (binop (zext X), C), (zext X). 1677 Instruction *InstCombiner::narrowMaskedBinOp(BinaryOperator &And) { 1678 // This transform could also apply to {or, and, xor}, but there are better 1679 // folds for those cases, so we don't expect those patterns here. AShr is not 1680 // handled because it should always be transformed to LShr in this sequence. 1681 // The subtract transform is different because it has a constant on the left. 1682 // Add/mul commute the constant to RHS; sub with constant RHS becomes add. 1683 Value *Op0 = And.getOperand(0), *Op1 = And.getOperand(1); 1684 Constant *C; 1685 if (!match(Op0, m_OneUse(m_Add(m_Specific(Op1), m_Constant(C)))) && 1686 !match(Op0, m_OneUse(m_Mul(m_Specific(Op1), m_Constant(C)))) && 1687 !match(Op0, m_OneUse(m_LShr(m_Specific(Op1), m_Constant(C)))) && 1688 !match(Op0, m_OneUse(m_Shl(m_Specific(Op1), m_Constant(C)))) && 1689 !match(Op0, m_OneUse(m_Sub(m_Constant(C), m_Specific(Op1))))) 1690 return nullptr; 1691 1692 Value *X; 1693 if (!match(Op1, m_ZExt(m_Value(X))) || Op1->hasNUsesOrMore(3)) 1694 return nullptr; 1695 1696 Type *Ty = And.getType(); 1697 if (!isa<VectorType>(Ty) && !shouldChangeType(Ty, X->getType())) 1698 return nullptr; 1699 1700 // If we're narrowing a shift, the shift amount must be safe (less than the 1701 // width) in the narrower type. If the shift amount is greater, instsimplify 1702 // usually handles that case, but we can't guarantee/assert it. 1703 Instruction::BinaryOps Opc = cast<BinaryOperator>(Op0)->getOpcode(); 1704 if (Opc == Instruction::LShr || Opc == Instruction::Shl) 1705 if (!canNarrowShiftAmt(C, X->getType()->getScalarSizeInBits())) 1706 return nullptr; 1707 1708 // and (sub C, (zext X)), (zext X) --> zext (and (sub C', X), X) 1709 // and (binop (zext X), C), (zext X) --> zext (and (binop X, C'), X) 1710 Value *NewC = ConstantExpr::getTrunc(C, X->getType()); 1711 Value *NewBO = Opc == Instruction::Sub ? Builder.CreateBinOp(Opc, NewC, X) 1712 : Builder.CreateBinOp(Opc, X, NewC); 1713 return new ZExtInst(Builder.CreateAnd(NewBO, X), Ty); 1714 } 1715 1716 // FIXME: We use commutative matchers (m_c_*) for some, but not all, matches 1717 // here. We should standardize that construct where it is needed or choose some 1718 // other way to ensure that commutated variants of patterns are not missed. 1719 Instruction *InstCombiner::visitAnd(BinaryOperator &I) { 1720 if (Value *V = SimplifyAndInst(I.getOperand(0), I.getOperand(1), 1721 SQ.getWithInstruction(&I))) 1722 return replaceInstUsesWith(I, V); 1723 1724 if (SimplifyAssociativeOrCommutative(I)) 1725 return &I; 1726 1727 if (Instruction *X = foldVectorBinop(I)) 1728 return X; 1729 1730 // See if we can simplify any instructions used by the instruction whose sole 1731 // purpose is to compute bits we don't care about. 1732 if (SimplifyDemandedInstructionBits(I)) 1733 return &I; 1734 1735 // Do this before using distributive laws to catch simple and/or/not patterns. 1736 if (Instruction *Xor = foldAndToXor(I, Builder)) 1737 return Xor; 1738 1739 // (A|B)&(A|C) -> A|(B&C) etc 1740 if (Value *V = SimplifyUsingDistributiveLaws(I)) 1741 return replaceInstUsesWith(I, V); 1742 1743 if (Value *V = SimplifyBSwap(I, Builder)) 1744 return replaceInstUsesWith(I, V); 1745 1746 Value *Op0 = I.getOperand(0), *Op1 = I.getOperand(1); 1747 const APInt *C; 1748 if (match(Op1, m_APInt(C))) { 1749 Value *X, *Y; 1750 if (match(Op0, m_OneUse(m_LogicalShift(m_One(), m_Value(X)))) && 1751 C->isOneValue()) { 1752 // (1 << X) & 1 --> zext(X == 0) 1753 // (1 >> X) & 1 --> zext(X == 0) 1754 Value *IsZero = Builder.CreateICmpEQ(X, ConstantInt::get(I.getType(), 0)); 1755 return new ZExtInst(IsZero, I.getType()); 1756 } 1757 1758 const APInt *XorC; 1759 if (match(Op0, m_OneUse(m_Xor(m_Value(X), m_APInt(XorC))))) { 1760 // (X ^ C1) & C2 --> (X & C2) ^ (C1&C2) 1761 Constant *NewC = ConstantInt::get(I.getType(), *C & *XorC); 1762 Value *And = Builder.CreateAnd(X, Op1); 1763 And->takeName(Op0); 1764 return BinaryOperator::CreateXor(And, NewC); 1765 } 1766 1767 const APInt *OrC; 1768 if (match(Op0, m_OneUse(m_Or(m_Value(X), m_APInt(OrC))))) { 1769 // (X | C1) & C2 --> (X & C2^(C1&C2)) | (C1&C2) 1770 // NOTE: This reduces the number of bits set in the & mask, which 1771 // can expose opportunities for store narrowing for scalars. 1772 // NOTE: SimplifyDemandedBits should have already removed bits from C1 1773 // that aren't set in C2. Meaning we can replace (C1&C2) with C1 in 1774 // above, but this feels safer. 1775 APInt Together = *C & *OrC; 1776 Value *And = Builder.CreateAnd(X, ConstantInt::get(I.getType(), 1777 Together ^ *C)); 1778 And->takeName(Op0); 1779 return BinaryOperator::CreateOr(And, ConstantInt::get(I.getType(), 1780 Together)); 1781 } 1782 1783 // If the mask is only needed on one incoming arm, push the 'and' op up. 1784 if (match(Op0, m_OneUse(m_Xor(m_Value(X), m_Value(Y)))) || 1785 match(Op0, m_OneUse(m_Or(m_Value(X), m_Value(Y))))) { 1786 APInt NotAndMask(~(*C)); 1787 BinaryOperator::BinaryOps BinOp = cast<BinaryOperator>(Op0)->getOpcode(); 1788 if (MaskedValueIsZero(X, NotAndMask, 0, &I)) { 1789 // Not masking anything out for the LHS, move mask to RHS. 1790 // and ({x}or X, Y), C --> {x}or X, (and Y, C) 1791 Value *NewRHS = Builder.CreateAnd(Y, Op1, Y->getName() + ".masked"); 1792 return BinaryOperator::Create(BinOp, X, NewRHS); 1793 } 1794 if (!isa<Constant>(Y) && MaskedValueIsZero(Y, NotAndMask, 0, &I)) { 1795 // Not masking anything out for the RHS, move mask to LHS. 1796 // and ({x}or X, Y), C --> {x}or (and X, C), Y 1797 Value *NewLHS = Builder.CreateAnd(X, Op1, X->getName() + ".masked"); 1798 return BinaryOperator::Create(BinOp, NewLHS, Y); 1799 } 1800 } 1801 1802 } 1803 1804 if (ConstantInt *AndRHS = dyn_cast<ConstantInt>(Op1)) { 1805 const APInt &AndRHSMask = AndRHS->getValue(); 1806 1807 // Optimize a variety of ((val OP C1) & C2) combinations... 1808 if (BinaryOperator *Op0I = dyn_cast<BinaryOperator>(Op0)) { 1809 // ((C1 OP zext(X)) & C2) -> zext((C1-X) & C2) if C2 fits in the bitwidth 1810 // of X and OP behaves well when given trunc(C1) and X. 1811 // TODO: Do this for vectors by using m_APInt isntead of m_ConstantInt. 1812 switch (Op0I->getOpcode()) { 1813 default: 1814 break; 1815 case Instruction::Xor: 1816 case Instruction::Or: 1817 case Instruction::Mul: 1818 case Instruction::Add: 1819 case Instruction::Sub: 1820 Value *X; 1821 ConstantInt *C1; 1822 // TODO: The one use restrictions could be relaxed a little if the AND 1823 // is going to be removed. 1824 if (match(Op0I, m_OneUse(m_c_BinOp(m_OneUse(m_ZExt(m_Value(X))), 1825 m_ConstantInt(C1))))) { 1826 if (AndRHSMask.isIntN(X->getType()->getScalarSizeInBits())) { 1827 auto *TruncC1 = ConstantExpr::getTrunc(C1, X->getType()); 1828 Value *BinOp; 1829 Value *Op0LHS = Op0I->getOperand(0); 1830 if (isa<ZExtInst>(Op0LHS)) 1831 BinOp = Builder.CreateBinOp(Op0I->getOpcode(), X, TruncC1); 1832 else 1833 BinOp = Builder.CreateBinOp(Op0I->getOpcode(), TruncC1, X); 1834 auto *TruncC2 = ConstantExpr::getTrunc(AndRHS, X->getType()); 1835 auto *And = Builder.CreateAnd(BinOp, TruncC2); 1836 return new ZExtInst(And, I.getType()); 1837 } 1838 } 1839 } 1840 1841 if (ConstantInt *Op0CI = dyn_cast<ConstantInt>(Op0I->getOperand(1))) 1842 if (Instruction *Res = OptAndOp(Op0I, Op0CI, AndRHS, I)) 1843 return Res; 1844 } 1845 1846 // If this is an integer truncation, and if the source is an 'and' with 1847 // immediate, transform it. This frequently occurs for bitfield accesses. 1848 { 1849 Value *X = nullptr; ConstantInt *YC = nullptr; 1850 if (match(Op0, m_Trunc(m_And(m_Value(X), m_ConstantInt(YC))))) { 1851 // Change: and (trunc (and X, YC) to T), C2 1852 // into : and (trunc X to T), trunc(YC) & C2 1853 // This will fold the two constants together, which may allow 1854 // other simplifications. 1855 Value *NewCast = Builder.CreateTrunc(X, I.getType(), "and.shrunk"); 1856 Constant *C3 = ConstantExpr::getTrunc(YC, I.getType()); 1857 C3 = ConstantExpr::getAnd(C3, AndRHS); 1858 return BinaryOperator::CreateAnd(NewCast, C3); 1859 } 1860 } 1861 } 1862 1863 if (Instruction *Z = narrowMaskedBinOp(I)) 1864 return Z; 1865 1866 if (Instruction *FoldedLogic = foldBinOpIntoSelectOrPhi(I)) 1867 return FoldedLogic; 1868 1869 if (Instruction *DeMorgan = matchDeMorgansLaws(I, Builder)) 1870 return DeMorgan; 1871 1872 { 1873 Value *A, *B, *C; 1874 // A & (A ^ B) --> A & ~B 1875 if (match(Op1, m_OneUse(m_c_Xor(m_Specific(Op0), m_Value(B))))) 1876 return BinaryOperator::CreateAnd(Op0, Builder.CreateNot(B)); 1877 // (A ^ B) & A --> A & ~B 1878 if (match(Op0, m_OneUse(m_c_Xor(m_Specific(Op1), m_Value(B))))) 1879 return BinaryOperator::CreateAnd(Op1, Builder.CreateNot(B)); 1880 1881 // (A ^ B) & ((B ^ C) ^ A) -> (A ^ B) & ~C 1882 if (match(Op0, m_Xor(m_Value(A), m_Value(B)))) 1883 if (match(Op1, m_Xor(m_Xor(m_Specific(B), m_Value(C)), m_Specific(A)))) 1884 if (Op1->hasOneUse() || isFreeToInvert(C, C->hasOneUse())) 1885 return BinaryOperator::CreateAnd(Op0, Builder.CreateNot(C)); 1886 1887 // ((A ^ C) ^ B) & (B ^ A) -> (B ^ A) & ~C 1888 if (match(Op0, m_Xor(m_Xor(m_Value(A), m_Value(C)), m_Value(B)))) 1889 if (match(Op1, m_Xor(m_Specific(B), m_Specific(A)))) 1890 if (Op0->hasOneUse() || isFreeToInvert(C, C->hasOneUse())) 1891 return BinaryOperator::CreateAnd(Op1, Builder.CreateNot(C)); 1892 1893 // (A | B) & ((~A) ^ B) -> (A & B) 1894 // (A | B) & (B ^ (~A)) -> (A & B) 1895 // (B | A) & ((~A) ^ B) -> (A & B) 1896 // (B | A) & (B ^ (~A)) -> (A & B) 1897 if (match(Op1, m_c_Xor(m_Not(m_Value(A)), m_Value(B))) && 1898 match(Op0, m_c_Or(m_Specific(A), m_Specific(B)))) 1899 return BinaryOperator::CreateAnd(A, B); 1900 1901 // ((~A) ^ B) & (A | B) -> (A & B) 1902 // ((~A) ^ B) & (B | A) -> (A & B) 1903 // (B ^ (~A)) & (A | B) -> (A & B) 1904 // (B ^ (~A)) & (B | A) -> (A & B) 1905 if (match(Op0, m_c_Xor(m_Not(m_Value(A)), m_Value(B))) && 1906 match(Op1, m_c_Or(m_Specific(A), m_Specific(B)))) 1907 return BinaryOperator::CreateAnd(A, B); 1908 } 1909 1910 { 1911 ICmpInst *LHS = dyn_cast<ICmpInst>(Op0); 1912 ICmpInst *RHS = dyn_cast<ICmpInst>(Op1); 1913 if (LHS && RHS) 1914 if (Value *Res = foldAndOfICmps(LHS, RHS, I)) 1915 return replaceInstUsesWith(I, Res); 1916 1917 // TODO: Make this recursive; it's a little tricky because an arbitrary 1918 // number of 'and' instructions might have to be created. 1919 Value *X, *Y; 1920 if (LHS && match(Op1, m_OneUse(m_And(m_Value(X), m_Value(Y))))) { 1921 if (auto *Cmp = dyn_cast<ICmpInst>(X)) 1922 if (Value *Res = foldAndOfICmps(LHS, Cmp, I)) 1923 return replaceInstUsesWith(I, Builder.CreateAnd(Res, Y)); 1924 if (auto *Cmp = dyn_cast<ICmpInst>(Y)) 1925 if (Value *Res = foldAndOfICmps(LHS, Cmp, I)) 1926 return replaceInstUsesWith(I, Builder.CreateAnd(Res, X)); 1927 } 1928 if (RHS && match(Op0, m_OneUse(m_And(m_Value(X), m_Value(Y))))) { 1929 if (auto *Cmp = dyn_cast<ICmpInst>(X)) 1930 if (Value *Res = foldAndOfICmps(Cmp, RHS, I)) 1931 return replaceInstUsesWith(I, Builder.CreateAnd(Res, Y)); 1932 if (auto *Cmp = dyn_cast<ICmpInst>(Y)) 1933 if (Value *Res = foldAndOfICmps(Cmp, RHS, I)) 1934 return replaceInstUsesWith(I, Builder.CreateAnd(Res, X)); 1935 } 1936 } 1937 1938 if (FCmpInst *LHS = dyn_cast<FCmpInst>(I.getOperand(0))) 1939 if (FCmpInst *RHS = dyn_cast<FCmpInst>(I.getOperand(1))) 1940 if (Value *Res = foldLogicOfFCmps(LHS, RHS, true)) 1941 return replaceInstUsesWith(I, Res); 1942 1943 if (Instruction *FoldedFCmps = reassociateFCmps(I, Builder)) 1944 return FoldedFCmps; 1945 1946 if (Instruction *CastedAnd = foldCastedBitwiseLogic(I)) 1947 return CastedAnd; 1948 1949 // and(sext(A), B) / and(B, sext(A)) --> A ? B : 0, where A is i1 or <N x i1>. 1950 Value *A; 1951 if (match(Op0, m_OneUse(m_SExt(m_Value(A)))) && 1952 A->getType()->isIntOrIntVectorTy(1)) 1953 return SelectInst::Create(A, Op1, Constant::getNullValue(I.getType())); 1954 if (match(Op1, m_OneUse(m_SExt(m_Value(A)))) && 1955 A->getType()->isIntOrIntVectorTy(1)) 1956 return SelectInst::Create(A, Op0, Constant::getNullValue(I.getType())); 1957 1958 // and(ashr(subNSW(Y, X), ScalarSizeInBits(Y)-1), X) --> X s> Y ? X : 0. 1959 { 1960 Value *X, *Y; 1961 const APInt *ShAmt; 1962 Type *Ty = I.getType(); 1963 if (match(&I, m_c_And(m_OneUse(m_AShr(m_NSWSub(m_Value(Y), m_Value(X)), 1964 m_APInt(ShAmt))), 1965 m_Deferred(X))) && 1966 *ShAmt == Ty->getScalarSizeInBits() - 1) { 1967 Value *NewICmpInst = Builder.CreateICmpSGT(X, Y); 1968 return SelectInst::Create(NewICmpInst, X, ConstantInt::getNullValue(Ty)); 1969 } 1970 } 1971 1972 return nullptr; 1973 } 1974 1975 Instruction *InstCombiner::matchBSwap(BinaryOperator &Or) { 1976 assert(Or.getOpcode() == Instruction::Or && "bswap requires an 'or'"); 1977 Value *Op0 = Or.getOperand(0), *Op1 = Or.getOperand(1); 1978 1979 // Look through zero extends. 1980 if (Instruction *Ext = dyn_cast<ZExtInst>(Op0)) 1981 Op0 = Ext->getOperand(0); 1982 1983 if (Instruction *Ext = dyn_cast<ZExtInst>(Op1)) 1984 Op1 = Ext->getOperand(0); 1985 1986 // (A | B) | C and A | (B | C) -> bswap if possible. 1987 bool OrOfOrs = match(Op0, m_Or(m_Value(), m_Value())) || 1988 match(Op1, m_Or(m_Value(), m_Value())); 1989 1990 // (A >> B) | (C << D) and (A << B) | (B >> C) -> bswap if possible. 1991 bool OrOfShifts = match(Op0, m_LogicalShift(m_Value(), m_Value())) && 1992 match(Op1, m_LogicalShift(m_Value(), m_Value())); 1993 1994 // (A & B) | (C & D) -> bswap if possible. 1995 bool OrOfAnds = match(Op0, m_And(m_Value(), m_Value())) && 1996 match(Op1, m_And(m_Value(), m_Value())); 1997 1998 // (A << B) | (C & D) -> bswap if possible. 1999 // The bigger pattern here is ((A & C1) << C2) | ((B >> C2) & C1), which is a 2000 // part of the bswap idiom for specific values of C1, C2 (e.g. C1 = 16711935, 2001 // C2 = 8 for i32). 2002 // This pattern can occur when the operands of the 'or' are not canonicalized 2003 // for some reason (not having only one use, for example). 2004 bool OrOfAndAndSh = (match(Op0, m_LogicalShift(m_Value(), m_Value())) && 2005 match(Op1, m_And(m_Value(), m_Value()))) || 2006 (match(Op0, m_And(m_Value(), m_Value())) && 2007 match(Op1, m_LogicalShift(m_Value(), m_Value()))); 2008 2009 if (!OrOfOrs && !OrOfShifts && !OrOfAnds && !OrOfAndAndSh) 2010 return nullptr; 2011 2012 SmallVector<Instruction*, 4> Insts; 2013 if (!recognizeBSwapOrBitReverseIdiom(&Or, true, false, Insts)) 2014 return nullptr; 2015 Instruction *LastInst = Insts.pop_back_val(); 2016 LastInst->removeFromParent(); 2017 2018 for (auto *Inst : Insts) 2019 Worklist.push(Inst); 2020 return LastInst; 2021 } 2022 2023 /// Transform UB-safe variants of bitwise rotate to the funnel shift intrinsic. 2024 static Instruction *matchRotate(Instruction &Or) { 2025 // TODO: Can we reduce the code duplication between this and the related 2026 // rotate matching code under visitSelect and visitTrunc? 2027 unsigned Width = Or.getType()->getScalarSizeInBits(); 2028 if (!isPowerOf2_32(Width)) 2029 return nullptr; 2030 2031 // First, find an or'd pair of opposite shifts with the same shifted operand: 2032 // or (lshr ShVal, ShAmt0), (shl ShVal, ShAmt1) 2033 BinaryOperator *Or0, *Or1; 2034 if (!match(Or.getOperand(0), m_BinOp(Or0)) || 2035 !match(Or.getOperand(1), m_BinOp(Or1))) 2036 return nullptr; 2037 2038 Value *ShVal, *ShAmt0, *ShAmt1; 2039 if (!match(Or0, m_OneUse(m_LogicalShift(m_Value(ShVal), m_Value(ShAmt0)))) || 2040 !match(Or1, m_OneUse(m_LogicalShift(m_Specific(ShVal), m_Value(ShAmt1))))) 2041 return nullptr; 2042 2043 BinaryOperator::BinaryOps ShiftOpcode0 = Or0->getOpcode(); 2044 BinaryOperator::BinaryOps ShiftOpcode1 = Or1->getOpcode(); 2045 if (ShiftOpcode0 == ShiftOpcode1) 2046 return nullptr; 2047 2048 // Match the shift amount operands for a rotate pattern. This always matches 2049 // a subtraction on the R operand. 2050 auto matchShiftAmount = [](Value *L, Value *R, unsigned Width) -> Value * { 2051 // The shift amount may be masked with negation: 2052 // (shl ShVal, (X & (Width - 1))) | (lshr ShVal, ((-X) & (Width - 1))) 2053 Value *X; 2054 unsigned Mask = Width - 1; 2055 if (match(L, m_And(m_Value(X), m_SpecificInt(Mask))) && 2056 match(R, m_And(m_Neg(m_Specific(X)), m_SpecificInt(Mask)))) 2057 return X; 2058 2059 // Similar to above, but the shift amount may be extended after masking, 2060 // so return the extended value as the parameter for the intrinsic. 2061 if (match(L, m_ZExt(m_And(m_Value(X), m_SpecificInt(Mask)))) && 2062 match(R, m_And(m_Neg(m_ZExt(m_And(m_Specific(X), m_SpecificInt(Mask)))), 2063 m_SpecificInt(Mask)))) 2064 return L; 2065 2066 return nullptr; 2067 }; 2068 2069 Value *ShAmt = matchShiftAmount(ShAmt0, ShAmt1, Width); 2070 bool SubIsOnLHS = false; 2071 if (!ShAmt) { 2072 ShAmt = matchShiftAmount(ShAmt1, ShAmt0, Width); 2073 SubIsOnLHS = true; 2074 } 2075 if (!ShAmt) 2076 return nullptr; 2077 2078 bool IsFshl = (!SubIsOnLHS && ShiftOpcode0 == BinaryOperator::Shl) || 2079 (SubIsOnLHS && ShiftOpcode1 == BinaryOperator::Shl); 2080 Intrinsic::ID IID = IsFshl ? Intrinsic::fshl : Intrinsic::fshr; 2081 Function *F = Intrinsic::getDeclaration(Or.getModule(), IID, Or.getType()); 2082 return IntrinsicInst::Create(F, { ShVal, ShVal, ShAmt }); 2083 } 2084 2085 /// If all elements of two constant vectors are 0/-1 and inverses, return true. 2086 static bool areInverseVectorBitmasks(Constant *C1, Constant *C2) { 2087 unsigned NumElts = cast<VectorType>(C1->getType())->getNumElements(); 2088 for (unsigned i = 0; i != NumElts; ++i) { 2089 Constant *EltC1 = C1->getAggregateElement(i); 2090 Constant *EltC2 = C2->getAggregateElement(i); 2091 if (!EltC1 || !EltC2) 2092 return false; 2093 2094 // One element must be all ones, and the other must be all zeros. 2095 if (!((match(EltC1, m_Zero()) && match(EltC2, m_AllOnes())) || 2096 (match(EltC2, m_Zero()) && match(EltC1, m_AllOnes())))) 2097 return false; 2098 } 2099 return true; 2100 } 2101 2102 /// We have an expression of the form (A & C) | (B & D). If A is a scalar or 2103 /// vector composed of all-zeros or all-ones values and is the bitwise 'not' of 2104 /// B, it can be used as the condition operand of a select instruction. 2105 Value *InstCombiner::getSelectCondition(Value *A, Value *B) { 2106 // Step 1: We may have peeked through bitcasts in the caller. 2107 // Exit immediately if we don't have (vector) integer types. 2108 Type *Ty = A->getType(); 2109 if (!Ty->isIntOrIntVectorTy() || !B->getType()->isIntOrIntVectorTy()) 2110 return nullptr; 2111 2112 // Step 2: We need 0 or all-1's bitmasks. 2113 if (ComputeNumSignBits(A) != Ty->getScalarSizeInBits()) 2114 return nullptr; 2115 2116 // Step 3: If B is the 'not' value of A, we have our answer. 2117 if (match(A, m_Not(m_Specific(B)))) { 2118 // If these are scalars or vectors of i1, A can be used directly. 2119 if (Ty->isIntOrIntVectorTy(1)) 2120 return A; 2121 return Builder.CreateTrunc(A, CmpInst::makeCmpResultType(Ty)); 2122 } 2123 2124 // If both operands are constants, see if the constants are inverse bitmasks. 2125 Constant *AConst, *BConst; 2126 if (match(A, m_Constant(AConst)) && match(B, m_Constant(BConst))) 2127 if (AConst == ConstantExpr::getNot(BConst)) 2128 return Builder.CreateZExtOrTrunc(A, CmpInst::makeCmpResultType(Ty)); 2129 2130 // Look for more complex patterns. The 'not' op may be hidden behind various 2131 // casts. Look through sexts and bitcasts to find the booleans. 2132 Value *Cond; 2133 Value *NotB; 2134 if (match(A, m_SExt(m_Value(Cond))) && 2135 Cond->getType()->isIntOrIntVectorTy(1) && 2136 match(B, m_OneUse(m_Not(m_Value(NotB))))) { 2137 NotB = peekThroughBitcast(NotB, true); 2138 if (match(NotB, m_SExt(m_Specific(Cond)))) 2139 return Cond; 2140 } 2141 2142 // All scalar (and most vector) possibilities should be handled now. 2143 // Try more matches that only apply to non-splat constant vectors. 2144 if (!Ty->isVectorTy()) 2145 return nullptr; 2146 2147 // If both operands are xor'd with constants using the same sexted boolean 2148 // operand, see if the constants are inverse bitmasks. 2149 // TODO: Use ConstantExpr::getNot()? 2150 if (match(A, (m_Xor(m_SExt(m_Value(Cond)), m_Constant(AConst)))) && 2151 match(B, (m_Xor(m_SExt(m_Specific(Cond)), m_Constant(BConst)))) && 2152 Cond->getType()->isIntOrIntVectorTy(1) && 2153 areInverseVectorBitmasks(AConst, BConst)) { 2154 AConst = ConstantExpr::getTrunc(AConst, CmpInst::makeCmpResultType(Ty)); 2155 return Builder.CreateXor(Cond, AConst); 2156 } 2157 return nullptr; 2158 } 2159 2160 /// We have an expression of the form (A & C) | (B & D). Try to simplify this 2161 /// to "A' ? C : D", where A' is a boolean or vector of booleans. 2162 Value *InstCombiner::matchSelectFromAndOr(Value *A, Value *C, Value *B, 2163 Value *D) { 2164 // The potential condition of the select may be bitcasted. In that case, look 2165 // through its bitcast and the corresponding bitcast of the 'not' condition. 2166 Type *OrigType = A->getType(); 2167 A = peekThroughBitcast(A, true); 2168 B = peekThroughBitcast(B, true); 2169 if (Value *Cond = getSelectCondition(A, B)) { 2170 // ((bc Cond) & C) | ((bc ~Cond) & D) --> bc (select Cond, (bc C), (bc D)) 2171 // The bitcasts will either all exist or all not exist. The builder will 2172 // not create unnecessary casts if the types already match. 2173 Value *BitcastC = Builder.CreateBitCast(C, A->getType()); 2174 Value *BitcastD = Builder.CreateBitCast(D, A->getType()); 2175 Value *Select = Builder.CreateSelect(Cond, BitcastC, BitcastD); 2176 return Builder.CreateBitCast(Select, OrigType); 2177 } 2178 2179 return nullptr; 2180 } 2181 2182 /// Fold (icmp)|(icmp) if possible. 2183 Value *InstCombiner::foldOrOfICmps(ICmpInst *LHS, ICmpInst *RHS, 2184 BinaryOperator &Or) { 2185 const SimplifyQuery Q = SQ.getWithInstruction(&Or); 2186 2187 // Fold (iszero(A & K1) | iszero(A & K2)) -> (A & (K1 | K2)) != (K1 | K2) 2188 // if K1 and K2 are a one-bit mask. 2189 if (Value *V = foldAndOrOfICmpsOfAndWithPow2(LHS, RHS, Or)) 2190 return V; 2191 2192 ICmpInst::Predicate PredL = LHS->getPredicate(), PredR = RHS->getPredicate(); 2193 2194 ConstantInt *LHSC = dyn_cast<ConstantInt>(LHS->getOperand(1)); 2195 ConstantInt *RHSC = dyn_cast<ConstantInt>(RHS->getOperand(1)); 2196 2197 // Fold (icmp ult/ule (A + C1), C3) | (icmp ult/ule (A + C2), C3) 2198 // --> (icmp ult/ule ((A & ~(C1 ^ C2)) + max(C1, C2)), C3) 2199 // The original condition actually refers to the following two ranges: 2200 // [MAX_UINT-C1+1, MAX_UINT-C1+1+C3] and [MAX_UINT-C2+1, MAX_UINT-C2+1+C3] 2201 // We can fold these two ranges if: 2202 // 1) C1 and C2 is unsigned greater than C3. 2203 // 2) The two ranges are separated. 2204 // 3) C1 ^ C2 is one-bit mask. 2205 // 4) LowRange1 ^ LowRange2 and HighRange1 ^ HighRange2 are one-bit mask. 2206 // This implies all values in the two ranges differ by exactly one bit. 2207 2208 if ((PredL == ICmpInst::ICMP_ULT || PredL == ICmpInst::ICMP_ULE) && 2209 PredL == PredR && LHSC && RHSC && LHS->hasOneUse() && RHS->hasOneUse() && 2210 LHSC->getType() == RHSC->getType() && 2211 LHSC->getValue() == (RHSC->getValue())) { 2212 2213 Value *LAdd = LHS->getOperand(0); 2214 Value *RAdd = RHS->getOperand(0); 2215 2216 Value *LAddOpnd, *RAddOpnd; 2217 ConstantInt *LAddC, *RAddC; 2218 if (match(LAdd, m_Add(m_Value(LAddOpnd), m_ConstantInt(LAddC))) && 2219 match(RAdd, m_Add(m_Value(RAddOpnd), m_ConstantInt(RAddC))) && 2220 LAddC->getValue().ugt(LHSC->getValue()) && 2221 RAddC->getValue().ugt(LHSC->getValue())) { 2222 2223 APInt DiffC = LAddC->getValue() ^ RAddC->getValue(); 2224 if (LAddOpnd == RAddOpnd && DiffC.isPowerOf2()) { 2225 ConstantInt *MaxAddC = nullptr; 2226 if (LAddC->getValue().ult(RAddC->getValue())) 2227 MaxAddC = RAddC; 2228 else 2229 MaxAddC = LAddC; 2230 2231 APInt RRangeLow = -RAddC->getValue(); 2232 APInt RRangeHigh = RRangeLow + LHSC->getValue(); 2233 APInt LRangeLow = -LAddC->getValue(); 2234 APInt LRangeHigh = LRangeLow + LHSC->getValue(); 2235 APInt LowRangeDiff = RRangeLow ^ LRangeLow; 2236 APInt HighRangeDiff = RRangeHigh ^ LRangeHigh; 2237 APInt RangeDiff = LRangeLow.sgt(RRangeLow) ? LRangeLow - RRangeLow 2238 : RRangeLow - LRangeLow; 2239 2240 if (LowRangeDiff.isPowerOf2() && LowRangeDiff == HighRangeDiff && 2241 RangeDiff.ugt(LHSC->getValue())) { 2242 Value *MaskC = ConstantInt::get(LAddC->getType(), ~DiffC); 2243 2244 Value *NewAnd = Builder.CreateAnd(LAddOpnd, MaskC); 2245 Value *NewAdd = Builder.CreateAdd(NewAnd, MaxAddC); 2246 return Builder.CreateICmp(LHS->getPredicate(), NewAdd, LHSC); 2247 } 2248 } 2249 } 2250 } 2251 2252 // (icmp1 A, B) | (icmp2 A, B) --> (icmp3 A, B) 2253 if (predicatesFoldable(PredL, PredR)) { 2254 if (LHS->getOperand(0) == RHS->getOperand(1) && 2255 LHS->getOperand(1) == RHS->getOperand(0)) 2256 LHS->swapOperands(); 2257 if (LHS->getOperand(0) == RHS->getOperand(0) && 2258 LHS->getOperand(1) == RHS->getOperand(1)) { 2259 Value *Op0 = LHS->getOperand(0), *Op1 = LHS->getOperand(1); 2260 unsigned Code = getICmpCode(LHS) | getICmpCode(RHS); 2261 bool IsSigned = LHS->isSigned() || RHS->isSigned(); 2262 return getNewICmpValue(Code, IsSigned, Op0, Op1, Builder); 2263 } 2264 } 2265 2266 // handle (roughly): 2267 // (icmp ne (A & B), C) | (icmp ne (A & D), E) 2268 if (Value *V = foldLogOpOfMaskedICmps(LHS, RHS, false, Builder)) 2269 return V; 2270 2271 Value *LHS0 = LHS->getOperand(0), *RHS0 = RHS->getOperand(0); 2272 if (LHS->hasOneUse() || RHS->hasOneUse()) { 2273 // (icmp eq B, 0) | (icmp ult A, B) -> (icmp ule A, B-1) 2274 // (icmp eq B, 0) | (icmp ugt B, A) -> (icmp ule A, B-1) 2275 Value *A = nullptr, *B = nullptr; 2276 if (PredL == ICmpInst::ICMP_EQ && LHSC && LHSC->isZero()) { 2277 B = LHS0; 2278 if (PredR == ICmpInst::ICMP_ULT && LHS0 == RHS->getOperand(1)) 2279 A = RHS0; 2280 else if (PredR == ICmpInst::ICMP_UGT && LHS0 == RHS0) 2281 A = RHS->getOperand(1); 2282 } 2283 // (icmp ult A, B) | (icmp eq B, 0) -> (icmp ule A, B-1) 2284 // (icmp ugt B, A) | (icmp eq B, 0) -> (icmp ule A, B-1) 2285 else if (PredR == ICmpInst::ICMP_EQ && RHSC && RHSC->isZero()) { 2286 B = RHS0; 2287 if (PredL == ICmpInst::ICMP_ULT && RHS0 == LHS->getOperand(1)) 2288 A = LHS0; 2289 else if (PredL == ICmpInst::ICMP_UGT && LHS0 == RHS0) 2290 A = LHS->getOperand(1); 2291 } 2292 if (A && B) 2293 return Builder.CreateICmp( 2294 ICmpInst::ICMP_UGE, 2295 Builder.CreateAdd(B, ConstantInt::getSigned(B->getType(), -1)), A); 2296 } 2297 2298 // E.g. (icmp slt x, 0) | (icmp sgt x, n) --> icmp ugt x, n 2299 if (Value *V = simplifyRangeCheck(LHS, RHS, /*Inverted=*/true)) 2300 return V; 2301 2302 // E.g. (icmp sgt x, n) | (icmp slt x, 0) --> icmp ugt x, n 2303 if (Value *V = simplifyRangeCheck(RHS, LHS, /*Inverted=*/true)) 2304 return V; 2305 2306 if (Value *V = foldAndOrOfEqualityCmpsWithConstants(LHS, RHS, false, Builder)) 2307 return V; 2308 2309 if (Value *V = foldIsPowerOf2(LHS, RHS, false /* JoinedByAnd */, Builder)) 2310 return V; 2311 2312 if (Value *X = 2313 foldUnsignedUnderflowCheck(LHS, RHS, /*IsAnd=*/false, Q, Builder)) 2314 return X; 2315 if (Value *X = 2316 foldUnsignedUnderflowCheck(RHS, LHS, /*IsAnd=*/false, Q, Builder)) 2317 return X; 2318 2319 // This only handles icmp of constants: (icmp1 A, C1) | (icmp2 B, C2). 2320 if (!LHSC || !RHSC) 2321 return nullptr; 2322 2323 if (LHSC == RHSC && PredL == PredR) { 2324 // (icmp ne A, 0) | (icmp ne B, 0) --> (icmp ne (A|B), 0) 2325 if (PredL == ICmpInst::ICMP_NE && LHSC->isZero()) { 2326 Value *NewOr = Builder.CreateOr(LHS0, RHS0); 2327 return Builder.CreateICmp(PredL, NewOr, LHSC); 2328 } 2329 } 2330 2331 // (icmp ult (X + CA), C1) | (icmp eq X, C2) -> (icmp ule (X + CA), C1) 2332 // iff C2 + CA == C1. 2333 if (PredL == ICmpInst::ICMP_ULT && PredR == ICmpInst::ICMP_EQ) { 2334 ConstantInt *AddC; 2335 if (match(LHS0, m_Add(m_Specific(RHS0), m_ConstantInt(AddC)))) 2336 if (RHSC->getValue() + AddC->getValue() == LHSC->getValue()) 2337 return Builder.CreateICmpULE(LHS0, LHSC); 2338 } 2339 2340 // From here on, we only handle: 2341 // (icmp1 A, C1) | (icmp2 A, C2) --> something simpler. 2342 if (LHS0 != RHS0) 2343 return nullptr; 2344 2345 // ICMP_[US][GL]E X, C is folded to ICMP_[US][GL]T elsewhere. 2346 if (PredL == ICmpInst::ICMP_UGE || PredL == ICmpInst::ICMP_ULE || 2347 PredR == ICmpInst::ICMP_UGE || PredR == ICmpInst::ICMP_ULE || 2348 PredL == ICmpInst::ICMP_SGE || PredL == ICmpInst::ICMP_SLE || 2349 PredR == ICmpInst::ICMP_SGE || PredR == ICmpInst::ICMP_SLE) 2350 return nullptr; 2351 2352 // We can't fold (ugt x, C) | (sgt x, C2). 2353 if (!predicatesFoldable(PredL, PredR)) 2354 return nullptr; 2355 2356 // Ensure that the larger constant is on the RHS. 2357 bool ShouldSwap; 2358 if (CmpInst::isSigned(PredL) || 2359 (ICmpInst::isEquality(PredL) && CmpInst::isSigned(PredR))) 2360 ShouldSwap = LHSC->getValue().sgt(RHSC->getValue()); 2361 else 2362 ShouldSwap = LHSC->getValue().ugt(RHSC->getValue()); 2363 2364 if (ShouldSwap) { 2365 std::swap(LHS, RHS); 2366 std::swap(LHSC, RHSC); 2367 std::swap(PredL, PredR); 2368 } 2369 2370 // At this point, we know we have two icmp instructions 2371 // comparing a value against two constants and or'ing the result 2372 // together. Because of the above check, we know that we only have 2373 // ICMP_EQ, ICMP_NE, ICMP_LT, and ICMP_GT here. We also know (from the 2374 // icmp folding check above), that the two constants are not 2375 // equal. 2376 assert(LHSC != RHSC && "Compares not folded above?"); 2377 2378 switch (PredL) { 2379 default: 2380 llvm_unreachable("Unknown integer condition code!"); 2381 case ICmpInst::ICMP_EQ: 2382 switch (PredR) { 2383 default: 2384 llvm_unreachable("Unknown integer condition code!"); 2385 case ICmpInst::ICMP_EQ: 2386 // Potential folds for this case should already be handled. 2387 break; 2388 case ICmpInst::ICMP_UGT: 2389 // (X == 0 || X u> C) -> (X-1) u>= C 2390 if (LHSC->isMinValue(false)) 2391 return insertRangeTest(LHS0, LHSC->getValue() + 1, RHSC->getValue() + 1, 2392 false, false); 2393 // (X == 13 | X u> 14) -> no change 2394 break; 2395 case ICmpInst::ICMP_SGT: 2396 // (X == INT_MIN || X s> C) -> (X-(INT_MIN+1)) u>= C-INT_MIN 2397 if (LHSC->isMinValue(true)) 2398 return insertRangeTest(LHS0, LHSC->getValue() + 1, RHSC->getValue() + 1, 2399 true, false); 2400 // (X == 13 | X s> 14) -> no change 2401 break; 2402 } 2403 break; 2404 case ICmpInst::ICMP_ULT: 2405 switch (PredR) { 2406 default: 2407 llvm_unreachable("Unknown integer condition code!"); 2408 case ICmpInst::ICMP_EQ: // (X u< 13 | X == 14) -> no change 2409 // (X u< C || X == UINT_MAX) => (X-C) u>= UINT_MAX-C 2410 if (RHSC->isMaxValue(false)) 2411 return insertRangeTest(LHS0, LHSC->getValue(), RHSC->getValue(), 2412 false, false); 2413 break; 2414 case ICmpInst::ICMP_UGT: // (X u< 13 | X u> 15) -> (X-13) u> 2 2415 assert(!RHSC->isMaxValue(false) && "Missed icmp simplification"); 2416 return insertRangeTest(LHS0, LHSC->getValue(), RHSC->getValue() + 1, 2417 false, false); 2418 } 2419 break; 2420 case ICmpInst::ICMP_SLT: 2421 switch (PredR) { 2422 default: 2423 llvm_unreachable("Unknown integer condition code!"); 2424 case ICmpInst::ICMP_EQ: 2425 // (X s< C || X == INT_MAX) => (X-C) u>= INT_MAX-C 2426 if (RHSC->isMaxValue(true)) 2427 return insertRangeTest(LHS0, LHSC->getValue(), RHSC->getValue(), 2428 true, false); 2429 // (X s< 13 | X == 14) -> no change 2430 break; 2431 case ICmpInst::ICMP_SGT: // (X s< 13 | X s> 15) -> (X-13) u> 2 2432 assert(!RHSC->isMaxValue(true) && "Missed icmp simplification"); 2433 return insertRangeTest(LHS0, LHSC->getValue(), RHSC->getValue() + 1, true, 2434 false); 2435 } 2436 break; 2437 } 2438 return nullptr; 2439 } 2440 2441 // FIXME: We use commutative matchers (m_c_*) for some, but not all, matches 2442 // here. We should standardize that construct where it is needed or choose some 2443 // other way to ensure that commutated variants of patterns are not missed. 2444 Instruction *InstCombiner::visitOr(BinaryOperator &I) { 2445 if (Value *V = SimplifyOrInst(I.getOperand(0), I.getOperand(1), 2446 SQ.getWithInstruction(&I))) 2447 return replaceInstUsesWith(I, V); 2448 2449 if (SimplifyAssociativeOrCommutative(I)) 2450 return &I; 2451 2452 if (Instruction *X = foldVectorBinop(I)) 2453 return X; 2454 2455 // See if we can simplify any instructions used by the instruction whose sole 2456 // purpose is to compute bits we don't care about. 2457 if (SimplifyDemandedInstructionBits(I)) 2458 return &I; 2459 2460 // Do this before using distributive laws to catch simple and/or/not patterns. 2461 if (Instruction *Xor = foldOrToXor(I, Builder)) 2462 return Xor; 2463 2464 // (A&B)|(A&C) -> A&(B|C) etc 2465 if (Value *V = SimplifyUsingDistributiveLaws(I)) 2466 return replaceInstUsesWith(I, V); 2467 2468 if (Value *V = SimplifyBSwap(I, Builder)) 2469 return replaceInstUsesWith(I, V); 2470 2471 if (Instruction *FoldedLogic = foldBinOpIntoSelectOrPhi(I)) 2472 return FoldedLogic; 2473 2474 if (Instruction *BSwap = matchBSwap(I)) 2475 return BSwap; 2476 2477 if (Instruction *Rotate = matchRotate(I)) 2478 return Rotate; 2479 2480 Value *X, *Y; 2481 const APInt *CV; 2482 if (match(&I, m_c_Or(m_OneUse(m_Xor(m_Value(X), m_APInt(CV))), m_Value(Y))) && 2483 !CV->isAllOnesValue() && MaskedValueIsZero(Y, *CV, 0, &I)) { 2484 // (X ^ C) | Y -> (X | Y) ^ C iff Y & C == 0 2485 // The check for a 'not' op is for efficiency (if Y is known zero --> ~X). 2486 Value *Or = Builder.CreateOr(X, Y); 2487 return BinaryOperator::CreateXor(Or, ConstantInt::get(I.getType(), *CV)); 2488 } 2489 2490 // (A & C)|(B & D) 2491 Value *Op0 = I.getOperand(0), *Op1 = I.getOperand(1); 2492 Value *A, *B, *C, *D; 2493 if (match(Op0, m_And(m_Value(A), m_Value(C))) && 2494 match(Op1, m_And(m_Value(B), m_Value(D)))) { 2495 ConstantInt *C1 = dyn_cast<ConstantInt>(C); 2496 ConstantInt *C2 = dyn_cast<ConstantInt>(D); 2497 if (C1 && C2) { // (A & C1)|(B & C2) 2498 Value *V1 = nullptr, *V2 = nullptr; 2499 if ((C1->getValue() & C2->getValue()).isNullValue()) { 2500 // ((V | N) & C1) | (V & C2) --> (V|N) & (C1|C2) 2501 // iff (C1&C2) == 0 and (N&~C1) == 0 2502 if (match(A, m_Or(m_Value(V1), m_Value(V2))) && 2503 ((V1 == B && 2504 MaskedValueIsZero(V2, ~C1->getValue(), 0, &I)) || // (V|N) 2505 (V2 == B && 2506 MaskedValueIsZero(V1, ~C1->getValue(), 0, &I)))) // (N|V) 2507 return BinaryOperator::CreateAnd(A, 2508 Builder.getInt(C1->getValue()|C2->getValue())); 2509 // Or commutes, try both ways. 2510 if (match(B, m_Or(m_Value(V1), m_Value(V2))) && 2511 ((V1 == A && 2512 MaskedValueIsZero(V2, ~C2->getValue(), 0, &I)) || // (V|N) 2513 (V2 == A && 2514 MaskedValueIsZero(V1, ~C2->getValue(), 0, &I)))) // (N|V) 2515 return BinaryOperator::CreateAnd(B, 2516 Builder.getInt(C1->getValue()|C2->getValue())); 2517 2518 // ((V|C3)&C1) | ((V|C4)&C2) --> (V|C3|C4)&(C1|C2) 2519 // iff (C1&C2) == 0 and (C3&~C1) == 0 and (C4&~C2) == 0. 2520 ConstantInt *C3 = nullptr, *C4 = nullptr; 2521 if (match(A, m_Or(m_Value(V1), m_ConstantInt(C3))) && 2522 (C3->getValue() & ~C1->getValue()).isNullValue() && 2523 match(B, m_Or(m_Specific(V1), m_ConstantInt(C4))) && 2524 (C4->getValue() & ~C2->getValue()).isNullValue()) { 2525 V2 = Builder.CreateOr(V1, ConstantExpr::getOr(C3, C4), "bitfield"); 2526 return BinaryOperator::CreateAnd(V2, 2527 Builder.getInt(C1->getValue()|C2->getValue())); 2528 } 2529 } 2530 2531 if (C1->getValue() == ~C2->getValue()) { 2532 Value *X; 2533 2534 // ((X|B)&C1)|(B&C2) -> (X&C1) | B iff C1 == ~C2 2535 if (match(A, m_c_Or(m_Value(X), m_Specific(B)))) 2536 return BinaryOperator::CreateOr(Builder.CreateAnd(X, C1), B); 2537 // (A&C2)|((X|A)&C1) -> (X&C2) | A iff C1 == ~C2 2538 if (match(B, m_c_Or(m_Specific(A), m_Value(X)))) 2539 return BinaryOperator::CreateOr(Builder.CreateAnd(X, C2), A); 2540 2541 // ((X^B)&C1)|(B&C2) -> (X&C1) ^ B iff C1 == ~C2 2542 if (match(A, m_c_Xor(m_Value(X), m_Specific(B)))) 2543 return BinaryOperator::CreateXor(Builder.CreateAnd(X, C1), B); 2544 // (A&C2)|((X^A)&C1) -> (X&C2) ^ A iff C1 == ~C2 2545 if (match(B, m_c_Xor(m_Specific(A), m_Value(X)))) 2546 return BinaryOperator::CreateXor(Builder.CreateAnd(X, C2), A); 2547 } 2548 } 2549 2550 // Don't try to form a select if it's unlikely that we'll get rid of at 2551 // least one of the operands. A select is generally more expensive than the 2552 // 'or' that it is replacing. 2553 if (Op0->hasOneUse() || Op1->hasOneUse()) { 2554 // (Cond & C) | (~Cond & D) -> Cond ? C : D, and commuted variants. 2555 if (Value *V = matchSelectFromAndOr(A, C, B, D)) 2556 return replaceInstUsesWith(I, V); 2557 if (Value *V = matchSelectFromAndOr(A, C, D, B)) 2558 return replaceInstUsesWith(I, V); 2559 if (Value *V = matchSelectFromAndOr(C, A, B, D)) 2560 return replaceInstUsesWith(I, V); 2561 if (Value *V = matchSelectFromAndOr(C, A, D, B)) 2562 return replaceInstUsesWith(I, V); 2563 if (Value *V = matchSelectFromAndOr(B, D, A, C)) 2564 return replaceInstUsesWith(I, V); 2565 if (Value *V = matchSelectFromAndOr(B, D, C, A)) 2566 return replaceInstUsesWith(I, V); 2567 if (Value *V = matchSelectFromAndOr(D, B, A, C)) 2568 return replaceInstUsesWith(I, V); 2569 if (Value *V = matchSelectFromAndOr(D, B, C, A)) 2570 return replaceInstUsesWith(I, V); 2571 } 2572 } 2573 2574 // (A ^ B) | ((B ^ C) ^ A) -> (A ^ B) | C 2575 if (match(Op0, m_Xor(m_Value(A), m_Value(B)))) 2576 if (match(Op1, m_Xor(m_Xor(m_Specific(B), m_Value(C)), m_Specific(A)))) 2577 return BinaryOperator::CreateOr(Op0, C); 2578 2579 // ((A ^ C) ^ B) | (B ^ A) -> (B ^ A) | C 2580 if (match(Op0, m_Xor(m_Xor(m_Value(A), m_Value(C)), m_Value(B)))) 2581 if (match(Op1, m_Xor(m_Specific(B), m_Specific(A)))) 2582 return BinaryOperator::CreateOr(Op1, C); 2583 2584 // ((B | C) & A) | B -> B | (A & C) 2585 if (match(Op0, m_And(m_Or(m_Specific(Op1), m_Value(C)), m_Value(A)))) 2586 return BinaryOperator::CreateOr(Op1, Builder.CreateAnd(A, C)); 2587 2588 if (Instruction *DeMorgan = matchDeMorgansLaws(I, Builder)) 2589 return DeMorgan; 2590 2591 // Canonicalize xor to the RHS. 2592 bool SwappedForXor = false; 2593 if (match(Op0, m_Xor(m_Value(), m_Value()))) { 2594 std::swap(Op0, Op1); 2595 SwappedForXor = true; 2596 } 2597 2598 // A | ( A ^ B) -> A | B 2599 // A | (~A ^ B) -> A | ~B 2600 // (A & B) | (A ^ B) 2601 if (match(Op1, m_Xor(m_Value(A), m_Value(B)))) { 2602 if (Op0 == A || Op0 == B) 2603 return BinaryOperator::CreateOr(A, B); 2604 2605 if (match(Op0, m_And(m_Specific(A), m_Specific(B))) || 2606 match(Op0, m_And(m_Specific(B), m_Specific(A)))) 2607 return BinaryOperator::CreateOr(A, B); 2608 2609 if (Op1->hasOneUse() && match(A, m_Not(m_Specific(Op0)))) { 2610 Value *Not = Builder.CreateNot(B, B->getName() + ".not"); 2611 return BinaryOperator::CreateOr(Not, Op0); 2612 } 2613 if (Op1->hasOneUse() && match(B, m_Not(m_Specific(Op0)))) { 2614 Value *Not = Builder.CreateNot(A, A->getName() + ".not"); 2615 return BinaryOperator::CreateOr(Not, Op0); 2616 } 2617 } 2618 2619 // A | ~(A | B) -> A | ~B 2620 // A | ~(A ^ B) -> A | ~B 2621 if (match(Op1, m_Not(m_Value(A)))) 2622 if (BinaryOperator *B = dyn_cast<BinaryOperator>(A)) 2623 if ((Op0 == B->getOperand(0) || Op0 == B->getOperand(1)) && 2624 Op1->hasOneUse() && (B->getOpcode() == Instruction::Or || 2625 B->getOpcode() == Instruction::Xor)) { 2626 Value *NotOp = Op0 == B->getOperand(0) ? B->getOperand(1) : 2627 B->getOperand(0); 2628 Value *Not = Builder.CreateNot(NotOp, NotOp->getName() + ".not"); 2629 return BinaryOperator::CreateOr(Not, Op0); 2630 } 2631 2632 if (SwappedForXor) 2633 std::swap(Op0, Op1); 2634 2635 { 2636 ICmpInst *LHS = dyn_cast<ICmpInst>(Op0); 2637 ICmpInst *RHS = dyn_cast<ICmpInst>(Op1); 2638 if (LHS && RHS) 2639 if (Value *Res = foldOrOfICmps(LHS, RHS, I)) 2640 return replaceInstUsesWith(I, Res); 2641 2642 // TODO: Make this recursive; it's a little tricky because an arbitrary 2643 // number of 'or' instructions might have to be created. 2644 Value *X, *Y; 2645 if (LHS && match(Op1, m_OneUse(m_Or(m_Value(X), m_Value(Y))))) { 2646 if (auto *Cmp = dyn_cast<ICmpInst>(X)) 2647 if (Value *Res = foldOrOfICmps(LHS, Cmp, I)) 2648 return replaceInstUsesWith(I, Builder.CreateOr(Res, Y)); 2649 if (auto *Cmp = dyn_cast<ICmpInst>(Y)) 2650 if (Value *Res = foldOrOfICmps(LHS, Cmp, I)) 2651 return replaceInstUsesWith(I, Builder.CreateOr(Res, X)); 2652 } 2653 if (RHS && match(Op0, m_OneUse(m_Or(m_Value(X), m_Value(Y))))) { 2654 if (auto *Cmp = dyn_cast<ICmpInst>(X)) 2655 if (Value *Res = foldOrOfICmps(Cmp, RHS, I)) 2656 return replaceInstUsesWith(I, Builder.CreateOr(Res, Y)); 2657 if (auto *Cmp = dyn_cast<ICmpInst>(Y)) 2658 if (Value *Res = foldOrOfICmps(Cmp, RHS, I)) 2659 return replaceInstUsesWith(I, Builder.CreateOr(Res, X)); 2660 } 2661 } 2662 2663 if (FCmpInst *LHS = dyn_cast<FCmpInst>(I.getOperand(0))) 2664 if (FCmpInst *RHS = dyn_cast<FCmpInst>(I.getOperand(1))) 2665 if (Value *Res = foldLogicOfFCmps(LHS, RHS, false)) 2666 return replaceInstUsesWith(I, Res); 2667 2668 if (Instruction *FoldedFCmps = reassociateFCmps(I, Builder)) 2669 return FoldedFCmps; 2670 2671 if (Instruction *CastedOr = foldCastedBitwiseLogic(I)) 2672 return CastedOr; 2673 2674 // or(sext(A), B) / or(B, sext(A)) --> A ? -1 : B, where A is i1 or <N x i1>. 2675 if (match(Op0, m_OneUse(m_SExt(m_Value(A)))) && 2676 A->getType()->isIntOrIntVectorTy(1)) 2677 return SelectInst::Create(A, ConstantInt::getSigned(I.getType(), -1), Op1); 2678 if (match(Op1, m_OneUse(m_SExt(m_Value(A)))) && 2679 A->getType()->isIntOrIntVectorTy(1)) 2680 return SelectInst::Create(A, ConstantInt::getSigned(I.getType(), -1), Op0); 2681 2682 // Note: If we've gotten to the point of visiting the outer OR, then the 2683 // inner one couldn't be simplified. If it was a constant, then it won't 2684 // be simplified by a later pass either, so we try swapping the inner/outer 2685 // ORs in the hopes that we'll be able to simplify it this way. 2686 // (X|C) | V --> (X|V) | C 2687 ConstantInt *CI; 2688 if (Op0->hasOneUse() && !isa<ConstantInt>(Op1) && 2689 match(Op0, m_Or(m_Value(A), m_ConstantInt(CI)))) { 2690 Value *Inner = Builder.CreateOr(A, Op1); 2691 Inner->takeName(Op0); 2692 return BinaryOperator::CreateOr(Inner, CI); 2693 } 2694 2695 // Change (or (bool?A:B),(bool?C:D)) --> (bool?(or A,C):(or B,D)) 2696 // Since this OR statement hasn't been optimized further yet, we hope 2697 // that this transformation will allow the new ORs to be optimized. 2698 { 2699 Value *X = nullptr, *Y = nullptr; 2700 if (Op0->hasOneUse() && Op1->hasOneUse() && 2701 match(Op0, m_Select(m_Value(X), m_Value(A), m_Value(B))) && 2702 match(Op1, m_Select(m_Value(Y), m_Value(C), m_Value(D))) && X == Y) { 2703 Value *orTrue = Builder.CreateOr(A, C); 2704 Value *orFalse = Builder.CreateOr(B, D); 2705 return SelectInst::Create(X, orTrue, orFalse); 2706 } 2707 } 2708 2709 // or(ashr(subNSW(Y, X), ScalarSizeInBits(Y)-1), X) --> X s> Y ? -1 : X. 2710 { 2711 Value *X, *Y; 2712 const APInt *ShAmt; 2713 Type *Ty = I.getType(); 2714 if (match(&I, m_c_Or(m_OneUse(m_AShr(m_NSWSub(m_Value(Y), m_Value(X)), 2715 m_APInt(ShAmt))), 2716 m_Deferred(X))) && 2717 *ShAmt == Ty->getScalarSizeInBits() - 1) { 2718 Value *NewICmpInst = Builder.CreateICmpSGT(X, Y); 2719 return SelectInst::Create(NewICmpInst, ConstantInt::getAllOnesValue(Ty), 2720 X); 2721 } 2722 } 2723 2724 if (Instruction *V = 2725 canonicalizeCondSignextOfHighBitExtractToSignextHighBitExtract(I)) 2726 return V; 2727 2728 CmpInst::Predicate Pred; 2729 Value *Mul, *Ov, *MulIsNotZero, *UMulWithOv; 2730 // Check if the OR weakens the overflow condition for umul.with.overflow by 2731 // treating any non-zero result as overflow. In that case, we overflow if both 2732 // umul.with.overflow operands are != 0, as in that case the result can only 2733 // be 0, iff the multiplication overflows. 2734 if (match(&I, 2735 m_c_Or(m_CombineAnd(m_ExtractValue<1>(m_Value(UMulWithOv)), 2736 m_Value(Ov)), 2737 m_CombineAnd(m_ICmp(Pred, 2738 m_CombineAnd(m_ExtractValue<0>( 2739 m_Deferred(UMulWithOv)), 2740 m_Value(Mul)), 2741 m_ZeroInt()), 2742 m_Value(MulIsNotZero)))) && 2743 (Ov->hasOneUse() || (MulIsNotZero->hasOneUse() && Mul->hasOneUse())) && 2744 Pred == CmpInst::ICMP_NE) { 2745 Value *A, *B; 2746 if (match(UMulWithOv, m_Intrinsic<Intrinsic::umul_with_overflow>( 2747 m_Value(A), m_Value(B)))) { 2748 Value *NotNullA = Builder.CreateIsNotNull(A); 2749 Value *NotNullB = Builder.CreateIsNotNull(B); 2750 return BinaryOperator::CreateAnd(NotNullA, NotNullB); 2751 } 2752 } 2753 2754 return nullptr; 2755 } 2756 2757 /// A ^ B can be specified using other logic ops in a variety of patterns. We 2758 /// can fold these early and efficiently by morphing an existing instruction. 2759 static Instruction *foldXorToXor(BinaryOperator &I, 2760 InstCombiner::BuilderTy &Builder) { 2761 assert(I.getOpcode() == Instruction::Xor); 2762 Value *Op0 = I.getOperand(0); 2763 Value *Op1 = I.getOperand(1); 2764 Value *A, *B; 2765 2766 // There are 4 commuted variants for each of the basic patterns. 2767 2768 // (A & B) ^ (A | B) -> A ^ B 2769 // (A & B) ^ (B | A) -> A ^ B 2770 // (A | B) ^ (A & B) -> A ^ B 2771 // (A | B) ^ (B & A) -> A ^ B 2772 if (match(&I, m_c_Xor(m_And(m_Value(A), m_Value(B)), 2773 m_c_Or(m_Deferred(A), m_Deferred(B))))) 2774 return BinaryOperator::CreateXor(A, B); 2775 2776 // (A | ~B) ^ (~A | B) -> A ^ B 2777 // (~B | A) ^ (~A | B) -> A ^ B 2778 // (~A | B) ^ (A | ~B) -> A ^ B 2779 // (B | ~A) ^ (A | ~B) -> A ^ B 2780 if (match(&I, m_Xor(m_c_Or(m_Value(A), m_Not(m_Value(B))), 2781 m_c_Or(m_Not(m_Deferred(A)), m_Deferred(B))))) 2782 return BinaryOperator::CreateXor(A, B); 2783 2784 // (A & ~B) ^ (~A & B) -> A ^ B 2785 // (~B & A) ^ (~A & B) -> A ^ B 2786 // (~A & B) ^ (A & ~B) -> A ^ B 2787 // (B & ~A) ^ (A & ~B) -> A ^ B 2788 if (match(&I, m_Xor(m_c_And(m_Value(A), m_Not(m_Value(B))), 2789 m_c_And(m_Not(m_Deferred(A)), m_Deferred(B))))) 2790 return BinaryOperator::CreateXor(A, B); 2791 2792 // For the remaining cases we need to get rid of one of the operands. 2793 if (!Op0->hasOneUse() && !Op1->hasOneUse()) 2794 return nullptr; 2795 2796 // (A | B) ^ ~(A & B) -> ~(A ^ B) 2797 // (A | B) ^ ~(B & A) -> ~(A ^ B) 2798 // (A & B) ^ ~(A | B) -> ~(A ^ B) 2799 // (A & B) ^ ~(B | A) -> ~(A ^ B) 2800 // Complexity sorting ensures the not will be on the right side. 2801 if ((match(Op0, m_Or(m_Value(A), m_Value(B))) && 2802 match(Op1, m_Not(m_c_And(m_Specific(A), m_Specific(B))))) || 2803 (match(Op0, m_And(m_Value(A), m_Value(B))) && 2804 match(Op1, m_Not(m_c_Or(m_Specific(A), m_Specific(B)))))) 2805 return BinaryOperator::CreateNot(Builder.CreateXor(A, B)); 2806 2807 return nullptr; 2808 } 2809 2810 Value *InstCombiner::foldXorOfICmps(ICmpInst *LHS, ICmpInst *RHS, 2811 BinaryOperator &I) { 2812 assert(I.getOpcode() == Instruction::Xor && I.getOperand(0) == LHS && 2813 I.getOperand(1) == RHS && "Should be 'xor' with these operands"); 2814 2815 if (predicatesFoldable(LHS->getPredicate(), RHS->getPredicate())) { 2816 if (LHS->getOperand(0) == RHS->getOperand(1) && 2817 LHS->getOperand(1) == RHS->getOperand(0)) 2818 LHS->swapOperands(); 2819 if (LHS->getOperand(0) == RHS->getOperand(0) && 2820 LHS->getOperand(1) == RHS->getOperand(1)) { 2821 // (icmp1 A, B) ^ (icmp2 A, B) --> (icmp3 A, B) 2822 Value *Op0 = LHS->getOperand(0), *Op1 = LHS->getOperand(1); 2823 unsigned Code = getICmpCode(LHS) ^ getICmpCode(RHS); 2824 bool IsSigned = LHS->isSigned() || RHS->isSigned(); 2825 return getNewICmpValue(Code, IsSigned, Op0, Op1, Builder); 2826 } 2827 } 2828 2829 // TODO: This can be generalized to compares of non-signbits using 2830 // decomposeBitTestICmp(). It could be enhanced more by using (something like) 2831 // foldLogOpOfMaskedICmps(). 2832 ICmpInst::Predicate PredL = LHS->getPredicate(), PredR = RHS->getPredicate(); 2833 Value *LHS0 = LHS->getOperand(0), *LHS1 = LHS->getOperand(1); 2834 Value *RHS0 = RHS->getOperand(0), *RHS1 = RHS->getOperand(1); 2835 if ((LHS->hasOneUse() || RHS->hasOneUse()) && 2836 LHS0->getType() == RHS0->getType() && 2837 LHS0->getType()->isIntOrIntVectorTy()) { 2838 // (X > -1) ^ (Y > -1) --> (X ^ Y) < 0 2839 // (X < 0) ^ (Y < 0) --> (X ^ Y) < 0 2840 if ((PredL == CmpInst::ICMP_SGT && match(LHS1, m_AllOnes()) && 2841 PredR == CmpInst::ICMP_SGT && match(RHS1, m_AllOnes())) || 2842 (PredL == CmpInst::ICMP_SLT && match(LHS1, m_Zero()) && 2843 PredR == CmpInst::ICMP_SLT && match(RHS1, m_Zero()))) { 2844 Value *Zero = ConstantInt::getNullValue(LHS0->getType()); 2845 return Builder.CreateICmpSLT(Builder.CreateXor(LHS0, RHS0), Zero); 2846 } 2847 // (X > -1) ^ (Y < 0) --> (X ^ Y) > -1 2848 // (X < 0) ^ (Y > -1) --> (X ^ Y) > -1 2849 if ((PredL == CmpInst::ICMP_SGT && match(LHS1, m_AllOnes()) && 2850 PredR == CmpInst::ICMP_SLT && match(RHS1, m_Zero())) || 2851 (PredL == CmpInst::ICMP_SLT && match(LHS1, m_Zero()) && 2852 PredR == CmpInst::ICMP_SGT && match(RHS1, m_AllOnes()))) { 2853 Value *MinusOne = ConstantInt::getAllOnesValue(LHS0->getType()); 2854 return Builder.CreateICmpSGT(Builder.CreateXor(LHS0, RHS0), MinusOne); 2855 } 2856 } 2857 2858 // Instead of trying to imitate the folds for and/or, decompose this 'xor' 2859 // into those logic ops. That is, try to turn this into an and-of-icmps 2860 // because we have many folds for that pattern. 2861 // 2862 // This is based on a truth table definition of xor: 2863 // X ^ Y --> (X | Y) & !(X & Y) 2864 if (Value *OrICmp = SimplifyBinOp(Instruction::Or, LHS, RHS, SQ)) { 2865 // TODO: If OrICmp is true, then the definition of xor simplifies to !(X&Y). 2866 // TODO: If OrICmp is false, the whole thing is false (InstSimplify?). 2867 if (Value *AndICmp = SimplifyBinOp(Instruction::And, LHS, RHS, SQ)) { 2868 // TODO: Independently handle cases where the 'and' side is a constant. 2869 ICmpInst *X = nullptr, *Y = nullptr; 2870 if (OrICmp == LHS && AndICmp == RHS) { 2871 // (LHS | RHS) & !(LHS & RHS) --> LHS & !RHS --> X & !Y 2872 X = LHS; 2873 Y = RHS; 2874 } 2875 if (OrICmp == RHS && AndICmp == LHS) { 2876 // !(LHS & RHS) & (LHS | RHS) --> !LHS & RHS --> !Y & X 2877 X = RHS; 2878 Y = LHS; 2879 } 2880 if (X && Y && (Y->hasOneUse() || canFreelyInvertAllUsersOf(Y, &I))) { 2881 // Invert the predicate of 'Y', thus inverting its output. 2882 Y->setPredicate(Y->getInversePredicate()); 2883 // So, are there other uses of Y? 2884 if (!Y->hasOneUse()) { 2885 // We need to adapt other uses of Y though. Get a value that matches 2886 // the original value of Y before inversion. While this increases 2887 // immediate instruction count, we have just ensured that all the 2888 // users are freely-invertible, so that 'not' *will* get folded away. 2889 BuilderTy::InsertPointGuard Guard(Builder); 2890 // Set insertion point to right after the Y. 2891 Builder.SetInsertPoint(Y->getParent(), ++(Y->getIterator())); 2892 Value *NotY = Builder.CreateNot(Y, Y->getName() + ".not"); 2893 // Replace all uses of Y (excluding the one in NotY!) with NotY. 2894 Worklist.pushUsersToWorkList(*Y); 2895 Y->replaceUsesWithIf(NotY, 2896 [NotY](Use &U) { return U.getUser() != NotY; }); 2897 } 2898 // All done. 2899 return Builder.CreateAnd(LHS, RHS); 2900 } 2901 } 2902 } 2903 2904 return nullptr; 2905 } 2906 2907 /// If we have a masked merge, in the canonical form of: 2908 /// (assuming that A only has one use.) 2909 /// | A | |B| 2910 /// ((x ^ y) & M) ^ y 2911 /// | D | 2912 /// * If M is inverted: 2913 /// | D | 2914 /// ((x ^ y) & ~M) ^ y 2915 /// We can canonicalize by swapping the final xor operand 2916 /// to eliminate the 'not' of the mask. 2917 /// ((x ^ y) & M) ^ x 2918 /// * If M is a constant, and D has one use, we transform to 'and' / 'or' ops 2919 /// because that shortens the dependency chain and improves analysis: 2920 /// (x & M) | (y & ~M) 2921 static Instruction *visitMaskedMerge(BinaryOperator &I, 2922 InstCombiner::BuilderTy &Builder) { 2923 Value *B, *X, *D; 2924 Value *M; 2925 if (!match(&I, m_c_Xor(m_Value(B), 2926 m_OneUse(m_c_And( 2927 m_CombineAnd(m_c_Xor(m_Deferred(B), m_Value(X)), 2928 m_Value(D)), 2929 m_Value(M)))))) 2930 return nullptr; 2931 2932 Value *NotM; 2933 if (match(M, m_Not(m_Value(NotM)))) { 2934 // De-invert the mask and swap the value in B part. 2935 Value *NewA = Builder.CreateAnd(D, NotM); 2936 return BinaryOperator::CreateXor(NewA, X); 2937 } 2938 2939 Constant *C; 2940 if (D->hasOneUse() && match(M, m_Constant(C))) { 2941 // Unfold. 2942 Value *LHS = Builder.CreateAnd(X, C); 2943 Value *NotC = Builder.CreateNot(C); 2944 Value *RHS = Builder.CreateAnd(B, NotC); 2945 return BinaryOperator::CreateOr(LHS, RHS); 2946 } 2947 2948 return nullptr; 2949 } 2950 2951 // Transform 2952 // ~(x ^ y) 2953 // into: 2954 // (~x) ^ y 2955 // or into 2956 // x ^ (~y) 2957 static Instruction *sinkNotIntoXor(BinaryOperator &I, 2958 InstCombiner::BuilderTy &Builder) { 2959 Value *X, *Y; 2960 // FIXME: one-use check is not needed in general, but currently we are unable 2961 // to fold 'not' into 'icmp', if that 'icmp' has multiple uses. (D35182) 2962 if (!match(&I, m_Not(m_OneUse(m_Xor(m_Value(X), m_Value(Y)))))) 2963 return nullptr; 2964 2965 // We only want to do the transform if it is free to do. 2966 if (isFreeToInvert(X, X->hasOneUse())) { 2967 // Ok, good. 2968 } else if (isFreeToInvert(Y, Y->hasOneUse())) { 2969 std::swap(X, Y); 2970 } else 2971 return nullptr; 2972 2973 Value *NotX = Builder.CreateNot(X, X->getName() + ".not"); 2974 return BinaryOperator::CreateXor(NotX, Y, I.getName() + ".demorgan"); 2975 } 2976 2977 // FIXME: We use commutative matchers (m_c_*) for some, but not all, matches 2978 // here. We should standardize that construct where it is needed or choose some 2979 // other way to ensure that commutated variants of patterns are not missed. 2980 Instruction *InstCombiner::visitXor(BinaryOperator &I) { 2981 if (Value *V = SimplifyXorInst(I.getOperand(0), I.getOperand(1), 2982 SQ.getWithInstruction(&I))) 2983 return replaceInstUsesWith(I, V); 2984 2985 if (SimplifyAssociativeOrCommutative(I)) 2986 return &I; 2987 2988 if (Instruction *X = foldVectorBinop(I)) 2989 return X; 2990 2991 if (Instruction *NewXor = foldXorToXor(I, Builder)) 2992 return NewXor; 2993 2994 // (A&B)^(A&C) -> A&(B^C) etc 2995 if (Value *V = SimplifyUsingDistributiveLaws(I)) 2996 return replaceInstUsesWith(I, V); 2997 2998 // See if we can simplify any instructions used by the instruction whose sole 2999 // purpose is to compute bits we don't care about. 3000 if (SimplifyDemandedInstructionBits(I)) 3001 return &I; 3002 3003 if (Value *V = SimplifyBSwap(I, Builder)) 3004 return replaceInstUsesWith(I, V); 3005 3006 Value *Op0 = I.getOperand(0), *Op1 = I.getOperand(1); 3007 3008 // Fold (X & M) ^ (Y & ~M) -> (X & M) | (Y & ~M) 3009 // This it a special case in haveNoCommonBitsSet, but the computeKnownBits 3010 // calls in there are unnecessary as SimplifyDemandedInstructionBits should 3011 // have already taken care of those cases. 3012 Value *M; 3013 if (match(&I, m_c_Xor(m_c_And(m_Not(m_Value(M)), m_Value()), 3014 m_c_And(m_Deferred(M), m_Value())))) 3015 return BinaryOperator::CreateOr(Op0, Op1); 3016 3017 // Apply DeMorgan's Law for 'nand' / 'nor' logic with an inverted operand. 3018 Value *X, *Y; 3019 3020 // We must eliminate the and/or (one-use) for these transforms to not increase 3021 // the instruction count. 3022 // ~(~X & Y) --> (X | ~Y) 3023 // ~(Y & ~X) --> (X | ~Y) 3024 if (match(&I, m_Not(m_OneUse(m_c_And(m_Not(m_Value(X)), m_Value(Y)))))) { 3025 Value *NotY = Builder.CreateNot(Y, Y->getName() + ".not"); 3026 return BinaryOperator::CreateOr(X, NotY); 3027 } 3028 // ~(~X | Y) --> (X & ~Y) 3029 // ~(Y | ~X) --> (X & ~Y) 3030 if (match(&I, m_Not(m_OneUse(m_c_Or(m_Not(m_Value(X)), m_Value(Y)))))) { 3031 Value *NotY = Builder.CreateNot(Y, Y->getName() + ".not"); 3032 return BinaryOperator::CreateAnd(X, NotY); 3033 } 3034 3035 if (Instruction *Xor = visitMaskedMerge(I, Builder)) 3036 return Xor; 3037 3038 // Is this a 'not' (~) fed by a binary operator? 3039 BinaryOperator *NotVal; 3040 if (match(&I, m_Not(m_BinOp(NotVal)))) { 3041 if (NotVal->getOpcode() == Instruction::And || 3042 NotVal->getOpcode() == Instruction::Or) { 3043 // Apply DeMorgan's Law when inverts are free: 3044 // ~(X & Y) --> (~X | ~Y) 3045 // ~(X | Y) --> (~X & ~Y) 3046 if (isFreeToInvert(NotVal->getOperand(0), 3047 NotVal->getOperand(0)->hasOneUse()) && 3048 isFreeToInvert(NotVal->getOperand(1), 3049 NotVal->getOperand(1)->hasOneUse())) { 3050 Value *NotX = Builder.CreateNot(NotVal->getOperand(0), "notlhs"); 3051 Value *NotY = Builder.CreateNot(NotVal->getOperand(1), "notrhs"); 3052 if (NotVal->getOpcode() == Instruction::And) 3053 return BinaryOperator::CreateOr(NotX, NotY); 3054 return BinaryOperator::CreateAnd(NotX, NotY); 3055 } 3056 } 3057 3058 // ~(X - Y) --> ~X + Y 3059 if (match(NotVal, m_Sub(m_Value(X), m_Value(Y)))) 3060 if (isa<Constant>(X) || NotVal->hasOneUse()) 3061 return BinaryOperator::CreateAdd(Builder.CreateNot(X), Y); 3062 3063 // ~(~X >>s Y) --> (X >>s Y) 3064 if (match(NotVal, m_AShr(m_Not(m_Value(X)), m_Value(Y)))) 3065 return BinaryOperator::CreateAShr(X, Y); 3066 3067 // If we are inverting a right-shifted constant, we may be able to eliminate 3068 // the 'not' by inverting the constant and using the opposite shift type. 3069 // Canonicalization rules ensure that only a negative constant uses 'ashr', 3070 // but we must check that in case that transform has not fired yet. 3071 3072 // ~(C >>s Y) --> ~C >>u Y (when inverting the replicated sign bits) 3073 Constant *C; 3074 if (match(NotVal, m_AShr(m_Constant(C), m_Value(Y))) && 3075 match(C, m_Negative())) { 3076 // We matched a negative constant, so propagating undef is unsafe. 3077 // Clamp undef elements to -1. 3078 Type *EltTy = C->getType()->getScalarType(); 3079 C = Constant::replaceUndefsWith(C, ConstantInt::getAllOnesValue(EltTy)); 3080 return BinaryOperator::CreateLShr(ConstantExpr::getNot(C), Y); 3081 } 3082 3083 // ~(C >>u Y) --> ~C >>s Y (when inverting the replicated sign bits) 3084 if (match(NotVal, m_LShr(m_Constant(C), m_Value(Y))) && 3085 match(C, m_NonNegative())) { 3086 // We matched a non-negative constant, so propagating undef is unsafe. 3087 // Clamp undef elements to 0. 3088 Type *EltTy = C->getType()->getScalarType(); 3089 C = Constant::replaceUndefsWith(C, ConstantInt::getNullValue(EltTy)); 3090 return BinaryOperator::CreateAShr(ConstantExpr::getNot(C), Y); 3091 } 3092 3093 // ~(X + C) --> -(C + 1) - X 3094 if (match(Op0, m_Add(m_Value(X), m_Constant(C)))) 3095 return BinaryOperator::CreateSub(ConstantExpr::getNeg(AddOne(C)), X); 3096 } 3097 3098 // Use DeMorgan and reassociation to eliminate a 'not' op. 3099 Constant *C1; 3100 if (match(Op1, m_Constant(C1))) { 3101 Constant *C2; 3102 if (match(Op0, m_OneUse(m_Or(m_Not(m_Value(X)), m_Constant(C2))))) { 3103 // (~X | C2) ^ C1 --> ((X & ~C2) ^ -1) ^ C1 --> (X & ~C2) ^ ~C1 3104 Value *And = Builder.CreateAnd(X, ConstantExpr::getNot(C2)); 3105 return BinaryOperator::CreateXor(And, ConstantExpr::getNot(C1)); 3106 } 3107 if (match(Op0, m_OneUse(m_And(m_Not(m_Value(X)), m_Constant(C2))))) { 3108 // (~X & C2) ^ C1 --> ((X | ~C2) ^ -1) ^ C1 --> (X | ~C2) ^ ~C1 3109 Value *Or = Builder.CreateOr(X, ConstantExpr::getNot(C2)); 3110 return BinaryOperator::CreateXor(Or, ConstantExpr::getNot(C1)); 3111 } 3112 } 3113 3114 // not (cmp A, B) = !cmp A, B 3115 CmpInst::Predicate Pred; 3116 if (match(&I, m_Not(m_OneUse(m_Cmp(Pred, m_Value(), m_Value()))))) { 3117 cast<CmpInst>(Op0)->setPredicate(CmpInst::getInversePredicate(Pred)); 3118 return replaceInstUsesWith(I, Op0); 3119 } 3120 3121 { 3122 const APInt *RHSC; 3123 if (match(Op1, m_APInt(RHSC))) { 3124 Value *X; 3125 const APInt *C; 3126 if (RHSC->isSignMask() && match(Op0, m_Sub(m_APInt(C), m_Value(X)))) { 3127 // (C - X) ^ signmask -> (C + signmask - X) 3128 Constant *NewC = ConstantInt::get(I.getType(), *C + *RHSC); 3129 return BinaryOperator::CreateSub(NewC, X); 3130 } 3131 if (RHSC->isSignMask() && match(Op0, m_Add(m_Value(X), m_APInt(C)))) { 3132 // (X + C) ^ signmask -> (X + C + signmask) 3133 Constant *NewC = ConstantInt::get(I.getType(), *C + *RHSC); 3134 return BinaryOperator::CreateAdd(X, NewC); 3135 } 3136 3137 // (X|C1)^C2 -> X^(C1^C2) iff X&~C1 == 0 3138 if (match(Op0, m_Or(m_Value(X), m_APInt(C))) && 3139 MaskedValueIsZero(X, *C, 0, &I)) { 3140 Constant *NewC = ConstantInt::get(I.getType(), *C ^ *RHSC); 3141 return BinaryOperator::CreateXor(X, NewC); 3142 } 3143 } 3144 } 3145 3146 if (ConstantInt *RHSC = dyn_cast<ConstantInt>(Op1)) { 3147 if (BinaryOperator *Op0I = dyn_cast<BinaryOperator>(Op0)) { 3148 if (ConstantInt *Op0CI = dyn_cast<ConstantInt>(Op0I->getOperand(1))) { 3149 if (Op0I->getOpcode() == Instruction::LShr) { 3150 // ((X^C1) >> C2) ^ C3 -> (X>>C2) ^ ((C1>>C2)^C3) 3151 // E1 = "X ^ C1" 3152 BinaryOperator *E1; 3153 ConstantInt *C1; 3154 if (Op0I->hasOneUse() && 3155 (E1 = dyn_cast<BinaryOperator>(Op0I->getOperand(0))) && 3156 E1->getOpcode() == Instruction::Xor && 3157 (C1 = dyn_cast<ConstantInt>(E1->getOperand(1)))) { 3158 // fold (C1 >> C2) ^ C3 3159 ConstantInt *C2 = Op0CI, *C3 = RHSC; 3160 APInt FoldConst = C1->getValue().lshr(C2->getValue()); 3161 FoldConst ^= C3->getValue(); 3162 // Prepare the two operands. 3163 Value *Opnd0 = Builder.CreateLShr(E1->getOperand(0), C2); 3164 Opnd0->takeName(Op0I); 3165 cast<Instruction>(Opnd0)->setDebugLoc(I.getDebugLoc()); 3166 Value *FoldVal = ConstantInt::get(Opnd0->getType(), FoldConst); 3167 3168 return BinaryOperator::CreateXor(Opnd0, FoldVal); 3169 } 3170 } 3171 } 3172 } 3173 } 3174 3175 if (Instruction *FoldedLogic = foldBinOpIntoSelectOrPhi(I)) 3176 return FoldedLogic; 3177 3178 // Y ^ (X | Y) --> X & ~Y 3179 // Y ^ (Y | X) --> X & ~Y 3180 if (match(Op1, m_OneUse(m_c_Or(m_Value(X), m_Specific(Op0))))) 3181 return BinaryOperator::CreateAnd(X, Builder.CreateNot(Op0)); 3182 // (X | Y) ^ Y --> X & ~Y 3183 // (Y | X) ^ Y --> X & ~Y 3184 if (match(Op0, m_OneUse(m_c_Or(m_Value(X), m_Specific(Op1))))) 3185 return BinaryOperator::CreateAnd(X, Builder.CreateNot(Op1)); 3186 3187 // Y ^ (X & Y) --> ~X & Y 3188 // Y ^ (Y & X) --> ~X & Y 3189 if (match(Op1, m_OneUse(m_c_And(m_Value(X), m_Specific(Op0))))) 3190 return BinaryOperator::CreateAnd(Op0, Builder.CreateNot(X)); 3191 // (X & Y) ^ Y --> ~X & Y 3192 // (Y & X) ^ Y --> ~X & Y 3193 // Canonical form is (X & C) ^ C; don't touch that. 3194 // TODO: A 'not' op is better for analysis and codegen, but demanded bits must 3195 // be fixed to prefer that (otherwise we get infinite looping). 3196 if (!match(Op1, m_Constant()) && 3197 match(Op0, m_OneUse(m_c_And(m_Value(X), m_Specific(Op1))))) 3198 return BinaryOperator::CreateAnd(Op1, Builder.CreateNot(X)); 3199 3200 Value *A, *B, *C; 3201 // (A ^ B) ^ (A | C) --> (~A & C) ^ B -- There are 4 commuted variants. 3202 if (match(&I, m_c_Xor(m_OneUse(m_Xor(m_Value(A), m_Value(B))), 3203 m_OneUse(m_c_Or(m_Deferred(A), m_Value(C)))))) 3204 return BinaryOperator::CreateXor( 3205 Builder.CreateAnd(Builder.CreateNot(A), C), B); 3206 3207 // (A ^ B) ^ (B | C) --> (~B & C) ^ A -- There are 4 commuted variants. 3208 if (match(&I, m_c_Xor(m_OneUse(m_Xor(m_Value(A), m_Value(B))), 3209 m_OneUse(m_c_Or(m_Deferred(B), m_Value(C)))))) 3210 return BinaryOperator::CreateXor( 3211 Builder.CreateAnd(Builder.CreateNot(B), C), A); 3212 3213 // (A & B) ^ (A ^ B) -> (A | B) 3214 if (match(Op0, m_And(m_Value(A), m_Value(B))) && 3215 match(Op1, m_c_Xor(m_Specific(A), m_Specific(B)))) 3216 return BinaryOperator::CreateOr(A, B); 3217 // (A ^ B) ^ (A & B) -> (A | B) 3218 if (match(Op0, m_Xor(m_Value(A), m_Value(B))) && 3219 match(Op1, m_c_And(m_Specific(A), m_Specific(B)))) 3220 return BinaryOperator::CreateOr(A, B); 3221 3222 // (A & ~B) ^ ~A -> ~(A & B) 3223 // (~B & A) ^ ~A -> ~(A & B) 3224 if (match(Op0, m_c_And(m_Value(A), m_Not(m_Value(B)))) && 3225 match(Op1, m_Not(m_Specific(A)))) 3226 return BinaryOperator::CreateNot(Builder.CreateAnd(A, B)); 3227 3228 if (auto *LHS = dyn_cast<ICmpInst>(I.getOperand(0))) 3229 if (auto *RHS = dyn_cast<ICmpInst>(I.getOperand(1))) 3230 if (Value *V = foldXorOfICmps(LHS, RHS, I)) 3231 return replaceInstUsesWith(I, V); 3232 3233 if (Instruction *CastedXor = foldCastedBitwiseLogic(I)) 3234 return CastedXor; 3235 3236 // Canonicalize a shifty way to code absolute value to the common pattern. 3237 // There are 4 potential commuted variants. Move the 'ashr' candidate to Op1. 3238 // We're relying on the fact that we only do this transform when the shift has 3239 // exactly 2 uses and the add has exactly 1 use (otherwise, we might increase 3240 // instructions). 3241 if (Op0->hasNUses(2)) 3242 std::swap(Op0, Op1); 3243 3244 const APInt *ShAmt; 3245 Type *Ty = I.getType(); 3246 if (match(Op1, m_AShr(m_Value(A), m_APInt(ShAmt))) && 3247 Op1->hasNUses(2) && *ShAmt == Ty->getScalarSizeInBits() - 1 && 3248 match(Op0, m_OneUse(m_c_Add(m_Specific(A), m_Specific(Op1))))) { 3249 // B = ashr i32 A, 31 ; smear the sign bit 3250 // xor (add A, B), B ; add -1 and flip bits if negative 3251 // --> (A < 0) ? -A : A 3252 Value *Cmp = Builder.CreateICmpSLT(A, ConstantInt::getNullValue(Ty)); 3253 // Copy the nuw/nsw flags from the add to the negate. 3254 auto *Add = cast<BinaryOperator>(Op0); 3255 Value *Neg = Builder.CreateNeg(A, "", Add->hasNoUnsignedWrap(), 3256 Add->hasNoSignedWrap()); 3257 return SelectInst::Create(Cmp, Neg, A); 3258 } 3259 3260 // Eliminate a bitwise 'not' op of 'not' min/max by inverting the min/max: 3261 // 3262 // %notx = xor i32 %x, -1 3263 // %cmp1 = icmp sgt i32 %notx, %y 3264 // %smax = select i1 %cmp1, i32 %notx, i32 %y 3265 // %res = xor i32 %smax, -1 3266 // => 3267 // %noty = xor i32 %y, -1 3268 // %cmp2 = icmp slt %x, %noty 3269 // %res = select i1 %cmp2, i32 %x, i32 %noty 3270 // 3271 // Same is applicable for smin/umax/umin. 3272 if (match(Op1, m_AllOnes()) && Op0->hasOneUse()) { 3273 Value *LHS, *RHS; 3274 SelectPatternFlavor SPF = matchSelectPattern(Op0, LHS, RHS).Flavor; 3275 if (SelectPatternResult::isMinOrMax(SPF)) { 3276 // It's possible we get here before the not has been simplified, so make 3277 // sure the input to the not isn't freely invertible. 3278 if (match(LHS, m_Not(m_Value(X))) && !isFreeToInvert(X, X->hasOneUse())) { 3279 Value *NotY = Builder.CreateNot(RHS); 3280 return SelectInst::Create( 3281 Builder.CreateICmp(getInverseMinMaxPred(SPF), X, NotY), X, NotY); 3282 } 3283 3284 // It's possible we get here before the not has been simplified, so make 3285 // sure the input to the not isn't freely invertible. 3286 if (match(RHS, m_Not(m_Value(Y))) && !isFreeToInvert(Y, Y->hasOneUse())) { 3287 Value *NotX = Builder.CreateNot(LHS); 3288 return SelectInst::Create( 3289 Builder.CreateICmp(getInverseMinMaxPred(SPF), NotX, Y), NotX, Y); 3290 } 3291 3292 // If both sides are freely invertible, then we can get rid of the xor 3293 // completely. 3294 if (isFreeToInvert(LHS, !LHS->hasNUsesOrMore(3)) && 3295 isFreeToInvert(RHS, !RHS->hasNUsesOrMore(3))) { 3296 Value *NotLHS = Builder.CreateNot(LHS); 3297 Value *NotRHS = Builder.CreateNot(RHS); 3298 return SelectInst::Create( 3299 Builder.CreateICmp(getInverseMinMaxPred(SPF), NotLHS, NotRHS), 3300 NotLHS, NotRHS); 3301 } 3302 } 3303 3304 // Pull 'not' into operands of select if both operands are one-use compares. 3305 // Inverting the predicates eliminates the 'not' operation. 3306 // Example: 3307 // not (select ?, (cmp TPred, ?, ?), (cmp FPred, ?, ?) --> 3308 // select ?, (cmp InvTPred, ?, ?), (cmp InvFPred, ?, ?) 3309 // TODO: Canonicalize by hoisting 'not' into an arm of the select if only 3310 // 1 select operand is a cmp? 3311 if (auto *Sel = dyn_cast<SelectInst>(Op0)) { 3312 auto *CmpT = dyn_cast<CmpInst>(Sel->getTrueValue()); 3313 auto *CmpF = dyn_cast<CmpInst>(Sel->getFalseValue()); 3314 if (CmpT && CmpF && CmpT->hasOneUse() && CmpF->hasOneUse()) { 3315 CmpT->setPredicate(CmpT->getInversePredicate()); 3316 CmpF->setPredicate(CmpF->getInversePredicate()); 3317 return replaceInstUsesWith(I, Sel); 3318 } 3319 } 3320 } 3321 3322 if (Instruction *NewXor = sinkNotIntoXor(I, Builder)) 3323 return NewXor; 3324 3325 return nullptr; 3326 } 3327