1 //===- InstructionSimplify.cpp - Fold instruction operands ----------------===// 2 // 3 // The LLVM Compiler Infrastructure 4 // 5 // This file is distributed under the University of Illinois Open Source 6 // License. See LICENSE.TXT for details. 7 // 8 //===----------------------------------------------------------------------===// 9 // 10 // This file implements routines for folding instructions into simpler forms 11 // that do not require creating new instructions. This does constant folding 12 // ("add i32 1, 1" -> "2") but can also handle non-constant operands, either 13 // returning a constant ("and i32 %x, 0" -> "0") or an already existing value 14 // ("and i32 %x, %x" -> "%x"). All operands are assumed to have already been 15 // simplified: This is usually true and assuming it simplifies the logic (if 16 // they have not been simplified then results are correct but maybe suboptimal). 17 // 18 //===----------------------------------------------------------------------===// 19 20 #include "llvm/Analysis/InstructionSimplify.h" 21 #include "llvm/ADT/SetVector.h" 22 #include "llvm/ADT/Statistic.h" 23 #include "llvm/Analysis/AliasAnalysis.h" 24 #include "llvm/Analysis/AssumptionCache.h" 25 #include "llvm/Analysis/CaptureTracking.h" 26 #include "llvm/Analysis/CmpInstAnalysis.h" 27 #include "llvm/Analysis/ConstantFolding.h" 28 #include "llvm/Analysis/LoopAnalysisManager.h" 29 #include "llvm/Analysis/MemoryBuiltins.h" 30 #include "llvm/Analysis/ValueTracking.h" 31 #include "llvm/Analysis/VectorUtils.h" 32 #include "llvm/IR/ConstantRange.h" 33 #include "llvm/IR/DataLayout.h" 34 #include "llvm/IR/Dominators.h" 35 #include "llvm/IR/GetElementPtrTypeIterator.h" 36 #include "llvm/IR/GlobalAlias.h" 37 #include "llvm/IR/Operator.h" 38 #include "llvm/IR/PatternMatch.h" 39 #include "llvm/IR/ValueHandle.h" 40 #include "llvm/Support/KnownBits.h" 41 #include <algorithm> 42 using namespace llvm; 43 using namespace llvm::PatternMatch; 44 45 #define DEBUG_TYPE "instsimplify" 46 47 enum { RecursionLimit = 3 }; 48 49 STATISTIC(NumExpand, "Number of expansions"); 50 STATISTIC(NumReassoc, "Number of reassociations"); 51 52 static Value *SimplifyAndInst(Value *, Value *, const SimplifyQuery &, unsigned); 53 static Value *SimplifyBinOp(unsigned, Value *, Value *, const SimplifyQuery &, 54 unsigned); 55 static Value *SimplifyFPBinOp(unsigned, Value *, Value *, const FastMathFlags &, 56 const SimplifyQuery &, unsigned); 57 static Value *SimplifyCmpInst(unsigned, Value *, Value *, const SimplifyQuery &, 58 unsigned); 59 static Value *SimplifyICmpInst(unsigned Predicate, Value *LHS, Value *RHS, 60 const SimplifyQuery &Q, unsigned MaxRecurse); 61 static Value *SimplifyOrInst(Value *, Value *, const SimplifyQuery &, unsigned); 62 static Value *SimplifyXorInst(Value *, Value *, const SimplifyQuery &, unsigned); 63 static Value *SimplifyCastInst(unsigned, Value *, Type *, 64 const SimplifyQuery &, unsigned); 65 static Value *SimplifyGEPInst(Type *, ArrayRef<Value *>, const SimplifyQuery &, 66 unsigned); 67 68 /// For a boolean type or a vector of boolean type, return false or a vector 69 /// with every element false. 70 static Constant *getFalse(Type *Ty) { 71 return ConstantInt::getFalse(Ty); 72 } 73 74 /// For a boolean type or a vector of boolean type, return true or a vector 75 /// with every element true. 76 static Constant *getTrue(Type *Ty) { 77 return ConstantInt::getTrue(Ty); 78 } 79 80 /// isSameCompare - Is V equivalent to the comparison "LHS Pred RHS"? 81 static bool isSameCompare(Value *V, CmpInst::Predicate Pred, Value *LHS, 82 Value *RHS) { 83 CmpInst *Cmp = dyn_cast<CmpInst>(V); 84 if (!Cmp) 85 return false; 86 CmpInst::Predicate CPred = Cmp->getPredicate(); 87 Value *CLHS = Cmp->getOperand(0), *CRHS = Cmp->getOperand(1); 88 if (CPred == Pred && CLHS == LHS && CRHS == RHS) 89 return true; 90 return CPred == CmpInst::getSwappedPredicate(Pred) && CLHS == RHS && 91 CRHS == LHS; 92 } 93 94 /// Does the given value dominate the specified phi node? 95 static bool valueDominatesPHI(Value *V, PHINode *P, const DominatorTree *DT) { 96 Instruction *I = dyn_cast<Instruction>(V); 97 if (!I) 98 // Arguments and constants dominate all instructions. 99 return true; 100 101 // If we are processing instructions (and/or basic blocks) that have not been 102 // fully added to a function, the parent nodes may still be null. Simply 103 // return the conservative answer in these cases. 104 if (!I->getParent() || !P->getParent() || !I->getFunction()) 105 return false; 106 107 // If we have a DominatorTree then do a precise test. 108 if (DT) 109 return DT->dominates(I, P); 110 111 // Otherwise, if the instruction is in the entry block and is not an invoke, 112 // then it obviously dominates all phi nodes. 113 if (I->getParent() == &I->getFunction()->getEntryBlock() && 114 !isa<InvokeInst>(I)) 115 return true; 116 117 return false; 118 } 119 120 /// Simplify "A op (B op' C)" by distributing op over op', turning it into 121 /// "(A op B) op' (A op C)". Here "op" is given by Opcode and "op'" is 122 /// given by OpcodeToExpand, while "A" corresponds to LHS and "B op' C" to RHS. 123 /// Also performs the transform "(A op' B) op C" -> "(A op C) op' (B op C)". 124 /// Returns the simplified value, or null if no simplification was performed. 125 static Value *ExpandBinOp(Instruction::BinaryOps Opcode, Value *LHS, Value *RHS, 126 Instruction::BinaryOps OpcodeToExpand, 127 const SimplifyQuery &Q, unsigned MaxRecurse) { 128 // Recursion is always used, so bail out at once if we already hit the limit. 129 if (!MaxRecurse--) 130 return nullptr; 131 132 // Check whether the expression has the form "(A op' B) op C". 133 if (BinaryOperator *Op0 = dyn_cast<BinaryOperator>(LHS)) 134 if (Op0->getOpcode() == OpcodeToExpand) { 135 // It does! Try turning it into "(A op C) op' (B op C)". 136 Value *A = Op0->getOperand(0), *B = Op0->getOperand(1), *C = RHS; 137 // Do "A op C" and "B op C" both simplify? 138 if (Value *L = SimplifyBinOp(Opcode, A, C, Q, MaxRecurse)) 139 if (Value *R = SimplifyBinOp(Opcode, B, C, Q, MaxRecurse)) { 140 // They do! Return "L op' R" if it simplifies or is already available. 141 // If "L op' R" equals "A op' B" then "L op' R" is just the LHS. 142 if ((L == A && R == B) || (Instruction::isCommutative(OpcodeToExpand) 143 && L == B && R == A)) { 144 ++NumExpand; 145 return LHS; 146 } 147 // Otherwise return "L op' R" if it simplifies. 148 if (Value *V = SimplifyBinOp(OpcodeToExpand, L, R, Q, MaxRecurse)) { 149 ++NumExpand; 150 return V; 151 } 152 } 153 } 154 155 // Check whether the expression has the form "A op (B op' C)". 156 if (BinaryOperator *Op1 = dyn_cast<BinaryOperator>(RHS)) 157 if (Op1->getOpcode() == OpcodeToExpand) { 158 // It does! Try turning it into "(A op B) op' (A op C)". 159 Value *A = LHS, *B = Op1->getOperand(0), *C = Op1->getOperand(1); 160 // Do "A op B" and "A op C" both simplify? 161 if (Value *L = SimplifyBinOp(Opcode, A, B, Q, MaxRecurse)) 162 if (Value *R = SimplifyBinOp(Opcode, A, C, Q, MaxRecurse)) { 163 // They do! Return "L op' R" if it simplifies or is already available. 164 // If "L op' R" equals "B op' C" then "L op' R" is just the RHS. 165 if ((L == B && R == C) || (Instruction::isCommutative(OpcodeToExpand) 166 && L == C && R == B)) { 167 ++NumExpand; 168 return RHS; 169 } 170 // Otherwise return "L op' R" if it simplifies. 171 if (Value *V = SimplifyBinOp(OpcodeToExpand, L, R, Q, MaxRecurse)) { 172 ++NumExpand; 173 return V; 174 } 175 } 176 } 177 178 return nullptr; 179 } 180 181 /// Generic simplifications for associative binary operations. 182 /// Returns the simpler value, or null if none was found. 183 static Value *SimplifyAssociativeBinOp(Instruction::BinaryOps Opcode, 184 Value *LHS, Value *RHS, 185 const SimplifyQuery &Q, 186 unsigned MaxRecurse) { 187 assert(Instruction::isAssociative(Opcode) && "Not an associative operation!"); 188 189 // Recursion is always used, so bail out at once if we already hit the limit. 190 if (!MaxRecurse--) 191 return nullptr; 192 193 BinaryOperator *Op0 = dyn_cast<BinaryOperator>(LHS); 194 BinaryOperator *Op1 = dyn_cast<BinaryOperator>(RHS); 195 196 // Transform: "(A op B) op C" ==> "A op (B op C)" if it simplifies completely. 197 if (Op0 && Op0->getOpcode() == Opcode) { 198 Value *A = Op0->getOperand(0); 199 Value *B = Op0->getOperand(1); 200 Value *C = RHS; 201 202 // Does "B op C" simplify? 203 if (Value *V = SimplifyBinOp(Opcode, B, C, Q, MaxRecurse)) { 204 // It does! Return "A op V" if it simplifies or is already available. 205 // If V equals B then "A op V" is just the LHS. 206 if (V == B) return LHS; 207 // Otherwise return "A op V" if it simplifies. 208 if (Value *W = SimplifyBinOp(Opcode, A, V, Q, MaxRecurse)) { 209 ++NumReassoc; 210 return W; 211 } 212 } 213 } 214 215 // Transform: "A op (B op C)" ==> "(A op B) op C" if it simplifies completely. 216 if (Op1 && Op1->getOpcode() == Opcode) { 217 Value *A = LHS; 218 Value *B = Op1->getOperand(0); 219 Value *C = Op1->getOperand(1); 220 221 // Does "A op B" simplify? 222 if (Value *V = SimplifyBinOp(Opcode, A, B, Q, MaxRecurse)) { 223 // It does! Return "V op C" if it simplifies or is already available. 224 // If V equals B then "V op C" is just the RHS. 225 if (V == B) return RHS; 226 // Otherwise return "V op C" if it simplifies. 227 if (Value *W = SimplifyBinOp(Opcode, V, C, Q, MaxRecurse)) { 228 ++NumReassoc; 229 return W; 230 } 231 } 232 } 233 234 // The remaining transforms require commutativity as well as associativity. 235 if (!Instruction::isCommutative(Opcode)) 236 return nullptr; 237 238 // Transform: "(A op B) op C" ==> "(C op A) op B" if it simplifies completely. 239 if (Op0 && Op0->getOpcode() == Opcode) { 240 Value *A = Op0->getOperand(0); 241 Value *B = Op0->getOperand(1); 242 Value *C = RHS; 243 244 // Does "C op A" simplify? 245 if (Value *V = SimplifyBinOp(Opcode, C, A, Q, MaxRecurse)) { 246 // It does! Return "V op B" if it simplifies or is already available. 247 // If V equals A then "V op B" is just the LHS. 248 if (V == A) return LHS; 249 // Otherwise return "V op B" if it simplifies. 250 if (Value *W = SimplifyBinOp(Opcode, V, B, Q, MaxRecurse)) { 251 ++NumReassoc; 252 return W; 253 } 254 } 255 } 256 257 // Transform: "A op (B op C)" ==> "B op (C op A)" if it simplifies completely. 258 if (Op1 && Op1->getOpcode() == Opcode) { 259 Value *A = LHS; 260 Value *B = Op1->getOperand(0); 261 Value *C = Op1->getOperand(1); 262 263 // Does "C op A" simplify? 264 if (Value *V = SimplifyBinOp(Opcode, C, A, Q, MaxRecurse)) { 265 // It does! Return "B op V" if it simplifies or is already available. 266 // If V equals C then "B op V" is just the RHS. 267 if (V == C) return RHS; 268 // Otherwise return "B op V" if it simplifies. 269 if (Value *W = SimplifyBinOp(Opcode, B, V, Q, MaxRecurse)) { 270 ++NumReassoc; 271 return W; 272 } 273 } 274 } 275 276 return nullptr; 277 } 278 279 /// In the case of a binary operation with a select instruction as an operand, 280 /// try to simplify the binop by seeing whether evaluating it on both branches 281 /// of the select results in the same value. Returns the common value if so, 282 /// otherwise returns null. 283 static Value *ThreadBinOpOverSelect(Instruction::BinaryOps Opcode, Value *LHS, 284 Value *RHS, const SimplifyQuery &Q, 285 unsigned MaxRecurse) { 286 // Recursion is always used, so bail out at once if we already hit the limit. 287 if (!MaxRecurse--) 288 return nullptr; 289 290 SelectInst *SI; 291 if (isa<SelectInst>(LHS)) { 292 SI = cast<SelectInst>(LHS); 293 } else { 294 assert(isa<SelectInst>(RHS) && "No select instruction operand!"); 295 SI = cast<SelectInst>(RHS); 296 } 297 298 // Evaluate the BinOp on the true and false branches of the select. 299 Value *TV; 300 Value *FV; 301 if (SI == LHS) { 302 TV = SimplifyBinOp(Opcode, SI->getTrueValue(), RHS, Q, MaxRecurse); 303 FV = SimplifyBinOp(Opcode, SI->getFalseValue(), RHS, Q, MaxRecurse); 304 } else { 305 TV = SimplifyBinOp(Opcode, LHS, SI->getTrueValue(), Q, MaxRecurse); 306 FV = SimplifyBinOp(Opcode, LHS, SI->getFalseValue(), Q, MaxRecurse); 307 } 308 309 // If they simplified to the same value, then return the common value. 310 // If they both failed to simplify then return null. 311 if (TV == FV) 312 return TV; 313 314 // If one branch simplified to undef, return the other one. 315 if (TV && isa<UndefValue>(TV)) 316 return FV; 317 if (FV && isa<UndefValue>(FV)) 318 return TV; 319 320 // If applying the operation did not change the true and false select values, 321 // then the result of the binop is the select itself. 322 if (TV == SI->getTrueValue() && FV == SI->getFalseValue()) 323 return SI; 324 325 // If one branch simplified and the other did not, and the simplified 326 // value is equal to the unsimplified one, return the simplified value. 327 // For example, select (cond, X, X & Z) & Z -> X & Z. 328 if ((FV && !TV) || (TV && !FV)) { 329 // Check that the simplified value has the form "X op Y" where "op" is the 330 // same as the original operation. 331 Instruction *Simplified = dyn_cast<Instruction>(FV ? FV : TV); 332 if (Simplified && Simplified->getOpcode() == unsigned(Opcode)) { 333 // The value that didn't simplify is "UnsimplifiedLHS op UnsimplifiedRHS". 334 // We already know that "op" is the same as for the simplified value. See 335 // if the operands match too. If so, return the simplified value. 336 Value *UnsimplifiedBranch = FV ? SI->getTrueValue() : SI->getFalseValue(); 337 Value *UnsimplifiedLHS = SI == LHS ? UnsimplifiedBranch : LHS; 338 Value *UnsimplifiedRHS = SI == LHS ? RHS : UnsimplifiedBranch; 339 if (Simplified->getOperand(0) == UnsimplifiedLHS && 340 Simplified->getOperand(1) == UnsimplifiedRHS) 341 return Simplified; 342 if (Simplified->isCommutative() && 343 Simplified->getOperand(1) == UnsimplifiedLHS && 344 Simplified->getOperand(0) == UnsimplifiedRHS) 345 return Simplified; 346 } 347 } 348 349 return nullptr; 350 } 351 352 /// In the case of a comparison with a select instruction, try to simplify the 353 /// comparison by seeing whether both branches of the select result in the same 354 /// value. Returns the common value if so, otherwise returns null. 355 static Value *ThreadCmpOverSelect(CmpInst::Predicate Pred, Value *LHS, 356 Value *RHS, const SimplifyQuery &Q, 357 unsigned MaxRecurse) { 358 // Recursion is always used, so bail out at once if we already hit the limit. 359 if (!MaxRecurse--) 360 return nullptr; 361 362 // Make sure the select is on the LHS. 363 if (!isa<SelectInst>(LHS)) { 364 std::swap(LHS, RHS); 365 Pred = CmpInst::getSwappedPredicate(Pred); 366 } 367 assert(isa<SelectInst>(LHS) && "Not comparing with a select instruction!"); 368 SelectInst *SI = cast<SelectInst>(LHS); 369 Value *Cond = SI->getCondition(); 370 Value *TV = SI->getTrueValue(); 371 Value *FV = SI->getFalseValue(); 372 373 // Now that we have "cmp select(Cond, TV, FV), RHS", analyse it. 374 // Does "cmp TV, RHS" simplify? 375 Value *TCmp = SimplifyCmpInst(Pred, TV, RHS, Q, MaxRecurse); 376 if (TCmp == Cond) { 377 // It not only simplified, it simplified to the select condition. Replace 378 // it with 'true'. 379 TCmp = getTrue(Cond->getType()); 380 } else if (!TCmp) { 381 // It didn't simplify. However if "cmp TV, RHS" is equal to the select 382 // condition then we can replace it with 'true'. Otherwise give up. 383 if (!isSameCompare(Cond, Pred, TV, RHS)) 384 return nullptr; 385 TCmp = getTrue(Cond->getType()); 386 } 387 388 // Does "cmp FV, RHS" simplify? 389 Value *FCmp = SimplifyCmpInst(Pred, FV, RHS, Q, MaxRecurse); 390 if (FCmp == Cond) { 391 // It not only simplified, it simplified to the select condition. Replace 392 // it with 'false'. 393 FCmp = getFalse(Cond->getType()); 394 } else if (!FCmp) { 395 // It didn't simplify. However if "cmp FV, RHS" is equal to the select 396 // condition then we can replace it with 'false'. Otherwise give up. 397 if (!isSameCompare(Cond, Pred, FV, RHS)) 398 return nullptr; 399 FCmp = getFalse(Cond->getType()); 400 } 401 402 // If both sides simplified to the same value, then use it as the result of 403 // the original comparison. 404 if (TCmp == FCmp) 405 return TCmp; 406 407 // The remaining cases only make sense if the select condition has the same 408 // type as the result of the comparison, so bail out if this is not so. 409 if (Cond->getType()->isVectorTy() != RHS->getType()->isVectorTy()) 410 return nullptr; 411 // If the false value simplified to false, then the result of the compare 412 // is equal to "Cond && TCmp". This also catches the case when the false 413 // value simplified to false and the true value to true, returning "Cond". 414 if (match(FCmp, m_Zero())) 415 if (Value *V = SimplifyAndInst(Cond, TCmp, Q, MaxRecurse)) 416 return V; 417 // If the true value simplified to true, then the result of the compare 418 // is equal to "Cond || FCmp". 419 if (match(TCmp, m_One())) 420 if (Value *V = SimplifyOrInst(Cond, FCmp, Q, MaxRecurse)) 421 return V; 422 // Finally, if the false value simplified to true and the true value to 423 // false, then the result of the compare is equal to "!Cond". 424 if (match(FCmp, m_One()) && match(TCmp, m_Zero())) 425 if (Value *V = 426 SimplifyXorInst(Cond, Constant::getAllOnesValue(Cond->getType()), 427 Q, MaxRecurse)) 428 return V; 429 430 return nullptr; 431 } 432 433 /// In the case of a binary operation with an operand that is a PHI instruction, 434 /// try to simplify the binop by seeing whether evaluating it on the incoming 435 /// phi values yields the same result for every value. If so returns the common 436 /// value, otherwise returns null. 437 static Value *ThreadBinOpOverPHI(Instruction::BinaryOps Opcode, Value *LHS, 438 Value *RHS, const SimplifyQuery &Q, 439 unsigned MaxRecurse) { 440 // Recursion is always used, so bail out at once if we already hit the limit. 441 if (!MaxRecurse--) 442 return nullptr; 443 444 PHINode *PI; 445 if (isa<PHINode>(LHS)) { 446 PI = cast<PHINode>(LHS); 447 // Bail out if RHS and the phi may be mutually interdependent due to a loop. 448 if (!valueDominatesPHI(RHS, PI, Q.DT)) 449 return nullptr; 450 } else { 451 assert(isa<PHINode>(RHS) && "No PHI instruction operand!"); 452 PI = cast<PHINode>(RHS); 453 // Bail out if LHS and the phi may be mutually interdependent due to a loop. 454 if (!valueDominatesPHI(LHS, PI, Q.DT)) 455 return nullptr; 456 } 457 458 // Evaluate the BinOp on the incoming phi values. 459 Value *CommonValue = nullptr; 460 for (Value *Incoming : PI->incoming_values()) { 461 // If the incoming value is the phi node itself, it can safely be skipped. 462 if (Incoming == PI) continue; 463 Value *V = PI == LHS ? 464 SimplifyBinOp(Opcode, Incoming, RHS, Q, MaxRecurse) : 465 SimplifyBinOp(Opcode, LHS, Incoming, Q, MaxRecurse); 466 // If the operation failed to simplify, or simplified to a different value 467 // to previously, then give up. 468 if (!V || (CommonValue && V != CommonValue)) 469 return nullptr; 470 CommonValue = V; 471 } 472 473 return CommonValue; 474 } 475 476 /// In the case of a comparison with a PHI instruction, try to simplify the 477 /// comparison by seeing whether comparing with all of the incoming phi values 478 /// yields the same result every time. If so returns the common result, 479 /// otherwise returns null. 480 static Value *ThreadCmpOverPHI(CmpInst::Predicate Pred, Value *LHS, Value *RHS, 481 const SimplifyQuery &Q, unsigned MaxRecurse) { 482 // Recursion is always used, so bail out at once if we already hit the limit. 483 if (!MaxRecurse--) 484 return nullptr; 485 486 // Make sure the phi is on the LHS. 487 if (!isa<PHINode>(LHS)) { 488 std::swap(LHS, RHS); 489 Pred = CmpInst::getSwappedPredicate(Pred); 490 } 491 assert(isa<PHINode>(LHS) && "Not comparing with a phi instruction!"); 492 PHINode *PI = cast<PHINode>(LHS); 493 494 // Bail out if RHS and the phi may be mutually interdependent due to a loop. 495 if (!valueDominatesPHI(RHS, PI, Q.DT)) 496 return nullptr; 497 498 // Evaluate the BinOp on the incoming phi values. 499 Value *CommonValue = nullptr; 500 for (Value *Incoming : PI->incoming_values()) { 501 // If the incoming value is the phi node itself, it can safely be skipped. 502 if (Incoming == PI) continue; 503 Value *V = SimplifyCmpInst(Pred, Incoming, RHS, Q, MaxRecurse); 504 // If the operation failed to simplify, or simplified to a different value 505 // to previously, then give up. 506 if (!V || (CommonValue && V != CommonValue)) 507 return nullptr; 508 CommonValue = V; 509 } 510 511 return CommonValue; 512 } 513 514 static Constant *foldOrCommuteConstant(Instruction::BinaryOps Opcode, 515 Value *&Op0, Value *&Op1, 516 const SimplifyQuery &Q) { 517 if (auto *CLHS = dyn_cast<Constant>(Op0)) { 518 if (auto *CRHS = dyn_cast<Constant>(Op1)) 519 return ConstantFoldBinaryOpOperands(Opcode, CLHS, CRHS, Q.DL); 520 521 // Canonicalize the constant to the RHS if this is a commutative operation. 522 if (Instruction::isCommutative(Opcode)) 523 std::swap(Op0, Op1); 524 } 525 return nullptr; 526 } 527 528 /// Given operands for an Add, see if we can fold the result. 529 /// If not, this returns null. 530 static Value *SimplifyAddInst(Value *Op0, Value *Op1, bool IsNSW, bool IsNUW, 531 const SimplifyQuery &Q, unsigned MaxRecurse) { 532 if (Constant *C = foldOrCommuteConstant(Instruction::Add, Op0, Op1, Q)) 533 return C; 534 535 // X + undef -> undef 536 if (match(Op1, m_Undef())) 537 return Op1; 538 539 // X + 0 -> X 540 if (match(Op1, m_Zero())) 541 return Op0; 542 543 // If two operands are negative, return 0. 544 if (isKnownNegation(Op0, Op1)) 545 return Constant::getNullValue(Op0->getType()); 546 547 // X + (Y - X) -> Y 548 // (Y - X) + X -> Y 549 // Eg: X + -X -> 0 550 Value *Y = nullptr; 551 if (match(Op1, m_Sub(m_Value(Y), m_Specific(Op0))) || 552 match(Op0, m_Sub(m_Value(Y), m_Specific(Op1)))) 553 return Y; 554 555 // X + ~X -> -1 since ~X = -X-1 556 Type *Ty = Op0->getType(); 557 if (match(Op0, m_Not(m_Specific(Op1))) || 558 match(Op1, m_Not(m_Specific(Op0)))) 559 return Constant::getAllOnesValue(Ty); 560 561 // add nsw/nuw (xor Y, signmask), signmask --> Y 562 // The no-wrapping add guarantees that the top bit will be set by the add. 563 // Therefore, the xor must be clearing the already set sign bit of Y. 564 if ((IsNSW || IsNUW) && match(Op1, m_SignMask()) && 565 match(Op0, m_Xor(m_Value(Y), m_SignMask()))) 566 return Y; 567 568 // add nuw %x, -1 -> -1, because %x can only be 0. 569 if (IsNUW && match(Op1, m_AllOnes())) 570 return Op1; // Which is -1. 571 572 /// i1 add -> xor. 573 if (MaxRecurse && Op0->getType()->isIntOrIntVectorTy(1)) 574 if (Value *V = SimplifyXorInst(Op0, Op1, Q, MaxRecurse-1)) 575 return V; 576 577 // Try some generic simplifications for associative operations. 578 if (Value *V = SimplifyAssociativeBinOp(Instruction::Add, Op0, Op1, Q, 579 MaxRecurse)) 580 return V; 581 582 // Threading Add over selects and phi nodes is pointless, so don't bother. 583 // Threading over the select in "A + select(cond, B, C)" means evaluating 584 // "A+B" and "A+C" and seeing if they are equal; but they are equal if and 585 // only if B and C are equal. If B and C are equal then (since we assume 586 // that operands have already been simplified) "select(cond, B, C)" should 587 // have been simplified to the common value of B and C already. Analysing 588 // "A+B" and "A+C" thus gains nothing, but costs compile time. Similarly 589 // for threading over phi nodes. 590 591 return nullptr; 592 } 593 594 Value *llvm::SimplifyAddInst(Value *Op0, Value *Op1, bool IsNSW, bool IsNUW, 595 const SimplifyQuery &Query) { 596 return ::SimplifyAddInst(Op0, Op1, IsNSW, IsNUW, Query, RecursionLimit); 597 } 598 599 /// Compute the base pointer and cumulative constant offsets for V. 600 /// 601 /// This strips all constant offsets off of V, leaving it the base pointer, and 602 /// accumulates the total constant offset applied in the returned constant. It 603 /// returns 0 if V is not a pointer, and returns the constant '0' if there are 604 /// no constant offsets applied. 605 /// 606 /// This is very similar to GetPointerBaseWithConstantOffset except it doesn't 607 /// follow non-inbounds geps. This allows it to remain usable for icmp ult/etc. 608 /// folding. 609 static Constant *stripAndComputeConstantOffsets(const DataLayout &DL, Value *&V, 610 bool AllowNonInbounds = false) { 611 assert(V->getType()->isPtrOrPtrVectorTy()); 612 613 Type *IntPtrTy = DL.getIntPtrType(V->getType())->getScalarType(); 614 APInt Offset = APInt::getNullValue(IntPtrTy->getIntegerBitWidth()); 615 616 // Even though we don't look through PHI nodes, we could be called on an 617 // instruction in an unreachable block, which may be on a cycle. 618 SmallPtrSet<Value *, 4> Visited; 619 Visited.insert(V); 620 do { 621 if (GEPOperator *GEP = dyn_cast<GEPOperator>(V)) { 622 if ((!AllowNonInbounds && !GEP->isInBounds()) || 623 !GEP->accumulateConstantOffset(DL, Offset)) 624 break; 625 V = GEP->getPointerOperand(); 626 } else if (Operator::getOpcode(V) == Instruction::BitCast) { 627 V = cast<Operator>(V)->getOperand(0); 628 } else if (GlobalAlias *GA = dyn_cast<GlobalAlias>(V)) { 629 if (GA->isInterposable()) 630 break; 631 V = GA->getAliasee(); 632 } else { 633 if (auto CS = CallSite(V)) 634 if (Value *RV = CS.getReturnedArgOperand()) { 635 V = RV; 636 continue; 637 } 638 break; 639 } 640 assert(V->getType()->isPtrOrPtrVectorTy() && "Unexpected operand type!"); 641 } while (Visited.insert(V).second); 642 643 Constant *OffsetIntPtr = ConstantInt::get(IntPtrTy, Offset); 644 if (V->getType()->isVectorTy()) 645 return ConstantVector::getSplat(V->getType()->getVectorNumElements(), 646 OffsetIntPtr); 647 return OffsetIntPtr; 648 } 649 650 /// Compute the constant difference between two pointer values. 651 /// If the difference is not a constant, returns zero. 652 static Constant *computePointerDifference(const DataLayout &DL, Value *LHS, 653 Value *RHS) { 654 Constant *LHSOffset = stripAndComputeConstantOffsets(DL, LHS); 655 Constant *RHSOffset = stripAndComputeConstantOffsets(DL, RHS); 656 657 // If LHS and RHS are not related via constant offsets to the same base 658 // value, there is nothing we can do here. 659 if (LHS != RHS) 660 return nullptr; 661 662 // Otherwise, the difference of LHS - RHS can be computed as: 663 // LHS - RHS 664 // = (LHSOffset + Base) - (RHSOffset + Base) 665 // = LHSOffset - RHSOffset 666 return ConstantExpr::getSub(LHSOffset, RHSOffset); 667 } 668 669 /// Given operands for a Sub, see if we can fold the result. 670 /// If not, this returns null. 671 static Value *SimplifySubInst(Value *Op0, Value *Op1, bool isNSW, bool isNUW, 672 const SimplifyQuery &Q, unsigned MaxRecurse) { 673 if (Constant *C = foldOrCommuteConstant(Instruction::Sub, Op0, Op1, Q)) 674 return C; 675 676 // X - undef -> undef 677 // undef - X -> undef 678 if (match(Op0, m_Undef()) || match(Op1, m_Undef())) 679 return UndefValue::get(Op0->getType()); 680 681 // X - 0 -> X 682 if (match(Op1, m_Zero())) 683 return Op0; 684 685 // X - X -> 0 686 if (Op0 == Op1) 687 return Constant::getNullValue(Op0->getType()); 688 689 // Is this a negation? 690 if (match(Op0, m_Zero())) { 691 // 0 - X -> 0 if the sub is NUW. 692 if (isNUW) 693 return Constant::getNullValue(Op0->getType()); 694 695 KnownBits Known = computeKnownBits(Op1, Q.DL, 0, Q.AC, Q.CxtI, Q.DT); 696 if (Known.Zero.isMaxSignedValue()) { 697 // Op1 is either 0 or the minimum signed value. If the sub is NSW, then 698 // Op1 must be 0 because negating the minimum signed value is undefined. 699 if (isNSW) 700 return Constant::getNullValue(Op0->getType()); 701 702 // 0 - X -> X if X is 0 or the minimum signed value. 703 return Op1; 704 } 705 } 706 707 // (X + Y) - Z -> X + (Y - Z) or Y + (X - Z) if everything simplifies. 708 // For example, (X + Y) - Y -> X; (Y + X) - Y -> X 709 Value *X = nullptr, *Y = nullptr, *Z = Op1; 710 if (MaxRecurse && match(Op0, m_Add(m_Value(X), m_Value(Y)))) { // (X + Y) - Z 711 // See if "V === Y - Z" simplifies. 712 if (Value *V = SimplifyBinOp(Instruction::Sub, Y, Z, Q, MaxRecurse-1)) 713 // It does! Now see if "X + V" simplifies. 714 if (Value *W = SimplifyBinOp(Instruction::Add, X, V, Q, MaxRecurse-1)) { 715 // It does, we successfully reassociated! 716 ++NumReassoc; 717 return W; 718 } 719 // See if "V === X - Z" simplifies. 720 if (Value *V = SimplifyBinOp(Instruction::Sub, X, Z, Q, MaxRecurse-1)) 721 // It does! Now see if "Y + V" simplifies. 722 if (Value *W = SimplifyBinOp(Instruction::Add, Y, V, Q, MaxRecurse-1)) { 723 // It does, we successfully reassociated! 724 ++NumReassoc; 725 return W; 726 } 727 } 728 729 // X - (Y + Z) -> (X - Y) - Z or (X - Z) - Y if everything simplifies. 730 // For example, X - (X + 1) -> -1 731 X = Op0; 732 if (MaxRecurse && match(Op1, m_Add(m_Value(Y), m_Value(Z)))) { // X - (Y + Z) 733 // See if "V === X - Y" simplifies. 734 if (Value *V = SimplifyBinOp(Instruction::Sub, X, Y, Q, MaxRecurse-1)) 735 // It does! Now see if "V - Z" simplifies. 736 if (Value *W = SimplifyBinOp(Instruction::Sub, V, Z, Q, MaxRecurse-1)) { 737 // It does, we successfully reassociated! 738 ++NumReassoc; 739 return W; 740 } 741 // See if "V === X - Z" simplifies. 742 if (Value *V = SimplifyBinOp(Instruction::Sub, X, Z, Q, MaxRecurse-1)) 743 // It does! Now see if "V - Y" simplifies. 744 if (Value *W = SimplifyBinOp(Instruction::Sub, V, Y, Q, MaxRecurse-1)) { 745 // It does, we successfully reassociated! 746 ++NumReassoc; 747 return W; 748 } 749 } 750 751 // Z - (X - Y) -> (Z - X) + Y if everything simplifies. 752 // For example, X - (X - Y) -> Y. 753 Z = Op0; 754 if (MaxRecurse && match(Op1, m_Sub(m_Value(X), m_Value(Y)))) // Z - (X - Y) 755 // See if "V === Z - X" simplifies. 756 if (Value *V = SimplifyBinOp(Instruction::Sub, Z, X, Q, MaxRecurse-1)) 757 // It does! Now see if "V + Y" simplifies. 758 if (Value *W = SimplifyBinOp(Instruction::Add, V, Y, Q, MaxRecurse-1)) { 759 // It does, we successfully reassociated! 760 ++NumReassoc; 761 return W; 762 } 763 764 // trunc(X) - trunc(Y) -> trunc(X - Y) if everything simplifies. 765 if (MaxRecurse && match(Op0, m_Trunc(m_Value(X))) && 766 match(Op1, m_Trunc(m_Value(Y)))) 767 if (X->getType() == Y->getType()) 768 // See if "V === X - Y" simplifies. 769 if (Value *V = SimplifyBinOp(Instruction::Sub, X, Y, Q, MaxRecurse-1)) 770 // It does! Now see if "trunc V" simplifies. 771 if (Value *W = SimplifyCastInst(Instruction::Trunc, V, Op0->getType(), 772 Q, MaxRecurse - 1)) 773 // It does, return the simplified "trunc V". 774 return W; 775 776 // Variations on GEP(base, I, ...) - GEP(base, i, ...) -> GEP(null, I-i, ...). 777 if (match(Op0, m_PtrToInt(m_Value(X))) && 778 match(Op1, m_PtrToInt(m_Value(Y)))) 779 if (Constant *Result = computePointerDifference(Q.DL, X, Y)) 780 return ConstantExpr::getIntegerCast(Result, Op0->getType(), true); 781 782 // i1 sub -> xor. 783 if (MaxRecurse && Op0->getType()->isIntOrIntVectorTy(1)) 784 if (Value *V = SimplifyXorInst(Op0, Op1, Q, MaxRecurse-1)) 785 return V; 786 787 // Threading Sub over selects and phi nodes is pointless, so don't bother. 788 // Threading over the select in "A - select(cond, B, C)" means evaluating 789 // "A-B" and "A-C" and seeing if they are equal; but they are equal if and 790 // only if B and C are equal. If B and C are equal then (since we assume 791 // that operands have already been simplified) "select(cond, B, C)" should 792 // have been simplified to the common value of B and C already. Analysing 793 // "A-B" and "A-C" thus gains nothing, but costs compile time. Similarly 794 // for threading over phi nodes. 795 796 return nullptr; 797 } 798 799 Value *llvm::SimplifySubInst(Value *Op0, Value *Op1, bool isNSW, bool isNUW, 800 const SimplifyQuery &Q) { 801 return ::SimplifySubInst(Op0, Op1, isNSW, isNUW, Q, RecursionLimit); 802 } 803 804 /// Given operands for a Mul, see if we can fold the result. 805 /// If not, this returns null. 806 static Value *SimplifyMulInst(Value *Op0, Value *Op1, const SimplifyQuery &Q, 807 unsigned MaxRecurse) { 808 if (Constant *C = foldOrCommuteConstant(Instruction::Mul, Op0, Op1, Q)) 809 return C; 810 811 // X * undef -> 0 812 // X * 0 -> 0 813 if (match(Op1, m_CombineOr(m_Undef(), m_Zero()))) 814 return Constant::getNullValue(Op0->getType()); 815 816 // X * 1 -> X 817 if (match(Op1, m_One())) 818 return Op0; 819 820 // (X / Y) * Y -> X if the division is exact. 821 Value *X = nullptr; 822 if (match(Op0, m_Exact(m_IDiv(m_Value(X), m_Specific(Op1)))) || // (X / Y) * Y 823 match(Op1, m_Exact(m_IDiv(m_Value(X), m_Specific(Op0))))) // Y * (X / Y) 824 return X; 825 826 // i1 mul -> and. 827 if (MaxRecurse && Op0->getType()->isIntOrIntVectorTy(1)) 828 if (Value *V = SimplifyAndInst(Op0, Op1, Q, MaxRecurse-1)) 829 return V; 830 831 // Try some generic simplifications for associative operations. 832 if (Value *V = SimplifyAssociativeBinOp(Instruction::Mul, Op0, Op1, Q, 833 MaxRecurse)) 834 return V; 835 836 // Mul distributes over Add. Try some generic simplifications based on this. 837 if (Value *V = ExpandBinOp(Instruction::Mul, Op0, Op1, Instruction::Add, 838 Q, MaxRecurse)) 839 return V; 840 841 // If the operation is with the result of a select instruction, check whether 842 // operating on either branch of the select always yields the same value. 843 if (isa<SelectInst>(Op0) || isa<SelectInst>(Op1)) 844 if (Value *V = ThreadBinOpOverSelect(Instruction::Mul, Op0, Op1, Q, 845 MaxRecurse)) 846 return V; 847 848 // If the operation is with the result of a phi instruction, check whether 849 // operating on all incoming values of the phi always yields the same value. 850 if (isa<PHINode>(Op0) || isa<PHINode>(Op1)) 851 if (Value *V = ThreadBinOpOverPHI(Instruction::Mul, Op0, Op1, Q, 852 MaxRecurse)) 853 return V; 854 855 return nullptr; 856 } 857 858 Value *llvm::SimplifyMulInst(Value *Op0, Value *Op1, const SimplifyQuery &Q) { 859 return ::SimplifyMulInst(Op0, Op1, Q, RecursionLimit); 860 } 861 862 /// Check for common or similar folds of integer division or integer remainder. 863 /// This applies to all 4 opcodes (sdiv/udiv/srem/urem). 864 static Value *simplifyDivRem(Value *Op0, Value *Op1, bool IsDiv) { 865 Type *Ty = Op0->getType(); 866 867 // X / undef -> undef 868 // X % undef -> undef 869 if (match(Op1, m_Undef())) 870 return Op1; 871 872 // X / 0 -> undef 873 // X % 0 -> undef 874 // We don't need to preserve faults! 875 if (match(Op1, m_Zero())) 876 return UndefValue::get(Ty); 877 878 // If any element of a constant divisor vector is zero or undef, the whole op 879 // is undef. 880 auto *Op1C = dyn_cast<Constant>(Op1); 881 if (Op1C && Ty->isVectorTy()) { 882 unsigned NumElts = Ty->getVectorNumElements(); 883 for (unsigned i = 0; i != NumElts; ++i) { 884 Constant *Elt = Op1C->getAggregateElement(i); 885 if (Elt && (Elt->isNullValue() || isa<UndefValue>(Elt))) 886 return UndefValue::get(Ty); 887 } 888 } 889 890 // undef / X -> 0 891 // undef % X -> 0 892 if (match(Op0, m_Undef())) 893 return Constant::getNullValue(Ty); 894 895 // 0 / X -> 0 896 // 0 % X -> 0 897 if (match(Op0, m_Zero())) 898 return Constant::getNullValue(Op0->getType()); 899 900 // X / X -> 1 901 // X % X -> 0 902 if (Op0 == Op1) 903 return IsDiv ? ConstantInt::get(Ty, 1) : Constant::getNullValue(Ty); 904 905 // X / 1 -> X 906 // X % 1 -> 0 907 // If this is a boolean op (single-bit element type), we can't have 908 // division-by-zero or remainder-by-zero, so assume the divisor is 1. 909 // Similarly, if we're zero-extending a boolean divisor, then assume it's a 1. 910 Value *X; 911 if (match(Op1, m_One()) || Ty->isIntOrIntVectorTy(1) || 912 (match(Op1, m_ZExt(m_Value(X))) && X->getType()->isIntOrIntVectorTy(1))) 913 return IsDiv ? Op0 : Constant::getNullValue(Ty); 914 915 return nullptr; 916 } 917 918 /// Given a predicate and two operands, return true if the comparison is true. 919 /// This is a helper for div/rem simplification where we return some other value 920 /// when we can prove a relationship between the operands. 921 static bool isICmpTrue(ICmpInst::Predicate Pred, Value *LHS, Value *RHS, 922 const SimplifyQuery &Q, unsigned MaxRecurse) { 923 Value *V = SimplifyICmpInst(Pred, LHS, RHS, Q, MaxRecurse); 924 Constant *C = dyn_cast_or_null<Constant>(V); 925 return (C && C->isAllOnesValue()); 926 } 927 928 /// Return true if we can simplify X / Y to 0. Remainder can adapt that answer 929 /// to simplify X % Y to X. 930 static bool isDivZero(Value *X, Value *Y, const SimplifyQuery &Q, 931 unsigned MaxRecurse, bool IsSigned) { 932 // Recursion is always used, so bail out at once if we already hit the limit. 933 if (!MaxRecurse--) 934 return false; 935 936 if (IsSigned) { 937 // |X| / |Y| --> 0 938 // 939 // We require that 1 operand is a simple constant. That could be extended to 940 // 2 variables if we computed the sign bit for each. 941 // 942 // Make sure that a constant is not the minimum signed value because taking 943 // the abs() of that is undefined. 944 Type *Ty = X->getType(); 945 const APInt *C; 946 if (match(X, m_APInt(C)) && !C->isMinSignedValue()) { 947 // Is the variable divisor magnitude always greater than the constant 948 // dividend magnitude? 949 // |Y| > |C| --> Y < -abs(C) or Y > abs(C) 950 Constant *PosDividendC = ConstantInt::get(Ty, C->abs()); 951 Constant *NegDividendC = ConstantInt::get(Ty, -C->abs()); 952 if (isICmpTrue(CmpInst::ICMP_SLT, Y, NegDividendC, Q, MaxRecurse) || 953 isICmpTrue(CmpInst::ICMP_SGT, Y, PosDividendC, Q, MaxRecurse)) 954 return true; 955 } 956 if (match(Y, m_APInt(C))) { 957 // Special-case: we can't take the abs() of a minimum signed value. If 958 // that's the divisor, then all we have to do is prove that the dividend 959 // is also not the minimum signed value. 960 if (C->isMinSignedValue()) 961 return isICmpTrue(CmpInst::ICMP_NE, X, Y, Q, MaxRecurse); 962 963 // Is the variable dividend magnitude always less than the constant 964 // divisor magnitude? 965 // |X| < |C| --> X > -abs(C) and X < abs(C) 966 Constant *PosDivisorC = ConstantInt::get(Ty, C->abs()); 967 Constant *NegDivisorC = ConstantInt::get(Ty, -C->abs()); 968 if (isICmpTrue(CmpInst::ICMP_SGT, X, NegDivisorC, Q, MaxRecurse) && 969 isICmpTrue(CmpInst::ICMP_SLT, X, PosDivisorC, Q, MaxRecurse)) 970 return true; 971 } 972 return false; 973 } 974 975 // IsSigned == false. 976 // Is the dividend unsigned less than the divisor? 977 return isICmpTrue(ICmpInst::ICMP_ULT, X, Y, Q, MaxRecurse); 978 } 979 980 /// These are simplifications common to SDiv and UDiv. 981 static Value *simplifyDiv(Instruction::BinaryOps Opcode, Value *Op0, Value *Op1, 982 const SimplifyQuery &Q, unsigned MaxRecurse) { 983 if (Constant *C = foldOrCommuteConstant(Opcode, Op0, Op1, Q)) 984 return C; 985 986 if (Value *V = simplifyDivRem(Op0, Op1, true)) 987 return V; 988 989 bool IsSigned = Opcode == Instruction::SDiv; 990 991 // (X * Y) / Y -> X if the multiplication does not overflow. 992 Value *X; 993 if (match(Op0, m_c_Mul(m_Value(X), m_Specific(Op1)))) { 994 auto *Mul = cast<OverflowingBinaryOperator>(Op0); 995 // If the Mul does not overflow, then we are good to go. 996 if ((IsSigned && Mul->hasNoSignedWrap()) || 997 (!IsSigned && Mul->hasNoUnsignedWrap())) 998 return X; 999 // If X has the form X = A / Y, then X * Y cannot overflow. 1000 if ((IsSigned && match(X, m_SDiv(m_Value(), m_Specific(Op1)))) || 1001 (!IsSigned && match(X, m_UDiv(m_Value(), m_Specific(Op1))))) 1002 return X; 1003 } 1004 1005 // (X rem Y) / Y -> 0 1006 if ((IsSigned && match(Op0, m_SRem(m_Value(), m_Specific(Op1)))) || 1007 (!IsSigned && match(Op0, m_URem(m_Value(), m_Specific(Op1))))) 1008 return Constant::getNullValue(Op0->getType()); 1009 1010 // (X /u C1) /u C2 -> 0 if C1 * C2 overflow 1011 ConstantInt *C1, *C2; 1012 if (!IsSigned && match(Op0, m_UDiv(m_Value(X), m_ConstantInt(C1))) && 1013 match(Op1, m_ConstantInt(C2))) { 1014 bool Overflow; 1015 (void)C1->getValue().umul_ov(C2->getValue(), Overflow); 1016 if (Overflow) 1017 return Constant::getNullValue(Op0->getType()); 1018 } 1019 1020 // If the operation is with the result of a select instruction, check whether 1021 // operating on either branch of the select always yields the same value. 1022 if (isa<SelectInst>(Op0) || isa<SelectInst>(Op1)) 1023 if (Value *V = ThreadBinOpOverSelect(Opcode, Op0, Op1, Q, MaxRecurse)) 1024 return V; 1025 1026 // If the operation is with the result of a phi instruction, check whether 1027 // operating on all incoming values of the phi always yields the same value. 1028 if (isa<PHINode>(Op0) || isa<PHINode>(Op1)) 1029 if (Value *V = ThreadBinOpOverPHI(Opcode, Op0, Op1, Q, MaxRecurse)) 1030 return V; 1031 1032 if (isDivZero(Op0, Op1, Q, MaxRecurse, IsSigned)) 1033 return Constant::getNullValue(Op0->getType()); 1034 1035 return nullptr; 1036 } 1037 1038 /// These are simplifications common to SRem and URem. 1039 static Value *simplifyRem(Instruction::BinaryOps Opcode, Value *Op0, Value *Op1, 1040 const SimplifyQuery &Q, unsigned MaxRecurse) { 1041 if (Constant *C = foldOrCommuteConstant(Opcode, Op0, Op1, Q)) 1042 return C; 1043 1044 if (Value *V = simplifyDivRem(Op0, Op1, false)) 1045 return V; 1046 1047 // (X % Y) % Y -> X % Y 1048 if ((Opcode == Instruction::SRem && 1049 match(Op0, m_SRem(m_Value(), m_Specific(Op1)))) || 1050 (Opcode == Instruction::URem && 1051 match(Op0, m_URem(m_Value(), m_Specific(Op1))))) 1052 return Op0; 1053 1054 // (X << Y) % X -> 0 1055 if ((Opcode == Instruction::SRem && 1056 match(Op0, m_NSWShl(m_Specific(Op1), m_Value()))) || 1057 (Opcode == Instruction::URem && 1058 match(Op0, m_NUWShl(m_Specific(Op1), m_Value())))) 1059 return Constant::getNullValue(Op0->getType()); 1060 1061 // If the operation is with the result of a select instruction, check whether 1062 // operating on either branch of the select always yields the same value. 1063 if (isa<SelectInst>(Op0) || isa<SelectInst>(Op1)) 1064 if (Value *V = ThreadBinOpOverSelect(Opcode, Op0, Op1, Q, MaxRecurse)) 1065 return V; 1066 1067 // If the operation is with the result of a phi instruction, check whether 1068 // operating on all incoming values of the phi always yields the same value. 1069 if (isa<PHINode>(Op0) || isa<PHINode>(Op1)) 1070 if (Value *V = ThreadBinOpOverPHI(Opcode, Op0, Op1, Q, MaxRecurse)) 1071 return V; 1072 1073 // If X / Y == 0, then X % Y == X. 1074 if (isDivZero(Op0, Op1, Q, MaxRecurse, Opcode == Instruction::SRem)) 1075 return Op0; 1076 1077 return nullptr; 1078 } 1079 1080 /// Given operands for an SDiv, see if we can fold the result. 1081 /// If not, this returns null. 1082 static Value *SimplifySDivInst(Value *Op0, Value *Op1, const SimplifyQuery &Q, 1083 unsigned MaxRecurse) { 1084 // If two operands are negated and no signed overflow, return -1. 1085 if (isKnownNegation(Op0, Op1, /*NeedNSW=*/true)) 1086 return Constant::getAllOnesValue(Op0->getType()); 1087 1088 return simplifyDiv(Instruction::SDiv, Op0, Op1, Q, MaxRecurse); 1089 } 1090 1091 Value *llvm::SimplifySDivInst(Value *Op0, Value *Op1, const SimplifyQuery &Q) { 1092 return ::SimplifySDivInst(Op0, Op1, Q, RecursionLimit); 1093 } 1094 1095 /// Given operands for a UDiv, see if we can fold the result. 1096 /// If not, this returns null. 1097 static Value *SimplifyUDivInst(Value *Op0, Value *Op1, const SimplifyQuery &Q, 1098 unsigned MaxRecurse) { 1099 return simplifyDiv(Instruction::UDiv, Op0, Op1, Q, MaxRecurse); 1100 } 1101 1102 Value *llvm::SimplifyUDivInst(Value *Op0, Value *Op1, const SimplifyQuery &Q) { 1103 return ::SimplifyUDivInst(Op0, Op1, Q, RecursionLimit); 1104 } 1105 1106 /// Given operands for an SRem, see if we can fold the result. 1107 /// If not, this returns null. 1108 static Value *SimplifySRemInst(Value *Op0, Value *Op1, const SimplifyQuery &Q, 1109 unsigned MaxRecurse) { 1110 // If the divisor is 0, the result is undefined, so assume the divisor is -1. 1111 // srem Op0, (sext i1 X) --> srem Op0, -1 --> 0 1112 Value *X; 1113 if (match(Op1, m_SExt(m_Value(X))) && X->getType()->isIntOrIntVectorTy(1)) 1114 return ConstantInt::getNullValue(Op0->getType()); 1115 1116 // If the two operands are negated, return 0. 1117 if (isKnownNegation(Op0, Op1)) 1118 return ConstantInt::getNullValue(Op0->getType()); 1119 1120 return simplifyRem(Instruction::SRem, Op0, Op1, Q, MaxRecurse); 1121 } 1122 1123 Value *llvm::SimplifySRemInst(Value *Op0, Value *Op1, const SimplifyQuery &Q) { 1124 return ::SimplifySRemInst(Op0, Op1, Q, RecursionLimit); 1125 } 1126 1127 /// Given operands for a URem, see if we can fold the result. 1128 /// If not, this returns null. 1129 static Value *SimplifyURemInst(Value *Op0, Value *Op1, const SimplifyQuery &Q, 1130 unsigned MaxRecurse) { 1131 return simplifyRem(Instruction::URem, Op0, Op1, Q, MaxRecurse); 1132 } 1133 1134 Value *llvm::SimplifyURemInst(Value *Op0, Value *Op1, const SimplifyQuery &Q) { 1135 return ::SimplifyURemInst(Op0, Op1, Q, RecursionLimit); 1136 } 1137 1138 /// Returns true if a shift by \c Amount always yields undef. 1139 static bool isUndefShift(Value *Amount) { 1140 Constant *C = dyn_cast<Constant>(Amount); 1141 if (!C) 1142 return false; 1143 1144 // X shift by undef -> undef because it may shift by the bitwidth. 1145 if (isa<UndefValue>(C)) 1146 return true; 1147 1148 // Shifting by the bitwidth or more is undefined. 1149 if (ConstantInt *CI = dyn_cast<ConstantInt>(C)) 1150 if (CI->getValue().getLimitedValue() >= 1151 CI->getType()->getScalarSizeInBits()) 1152 return true; 1153 1154 // If all lanes of a vector shift are undefined the whole shift is. 1155 if (isa<ConstantVector>(C) || isa<ConstantDataVector>(C)) { 1156 for (unsigned I = 0, E = C->getType()->getVectorNumElements(); I != E; ++I) 1157 if (!isUndefShift(C->getAggregateElement(I))) 1158 return false; 1159 return true; 1160 } 1161 1162 return false; 1163 } 1164 1165 /// Given operands for an Shl, LShr or AShr, see if we can fold the result. 1166 /// If not, this returns null. 1167 static Value *SimplifyShift(Instruction::BinaryOps Opcode, Value *Op0, 1168 Value *Op1, const SimplifyQuery &Q, unsigned MaxRecurse) { 1169 if (Constant *C = foldOrCommuteConstant(Opcode, Op0, Op1, Q)) 1170 return C; 1171 1172 // 0 shift by X -> 0 1173 if (match(Op0, m_Zero())) 1174 return Constant::getNullValue(Op0->getType()); 1175 1176 // X shift by 0 -> X 1177 // Shift-by-sign-extended bool must be shift-by-0 because shift-by-all-ones 1178 // would be poison. 1179 Value *X; 1180 if (match(Op1, m_Zero()) || 1181 (match(Op1, m_SExt(m_Value(X))) && X->getType()->isIntOrIntVectorTy(1))) 1182 return Op0; 1183 1184 // Fold undefined shifts. 1185 if (isUndefShift(Op1)) 1186 return UndefValue::get(Op0->getType()); 1187 1188 // If the operation is with the result of a select instruction, check whether 1189 // operating on either branch of the select always yields the same value. 1190 if (isa<SelectInst>(Op0) || isa<SelectInst>(Op1)) 1191 if (Value *V = ThreadBinOpOverSelect(Opcode, Op0, Op1, Q, MaxRecurse)) 1192 return V; 1193 1194 // If the operation is with the result of a phi instruction, check whether 1195 // operating on all incoming values of the phi always yields the same value. 1196 if (isa<PHINode>(Op0) || isa<PHINode>(Op1)) 1197 if (Value *V = ThreadBinOpOverPHI(Opcode, Op0, Op1, Q, MaxRecurse)) 1198 return V; 1199 1200 // If any bits in the shift amount make that value greater than or equal to 1201 // the number of bits in the type, the shift is undefined. 1202 KnownBits Known = computeKnownBits(Op1, Q.DL, 0, Q.AC, Q.CxtI, Q.DT); 1203 if (Known.One.getLimitedValue() >= Known.getBitWidth()) 1204 return UndefValue::get(Op0->getType()); 1205 1206 // If all valid bits in the shift amount are known zero, the first operand is 1207 // unchanged. 1208 unsigned NumValidShiftBits = Log2_32_Ceil(Known.getBitWidth()); 1209 if (Known.countMinTrailingZeros() >= NumValidShiftBits) 1210 return Op0; 1211 1212 return nullptr; 1213 } 1214 1215 /// Given operands for an Shl, LShr or AShr, see if we can 1216 /// fold the result. If not, this returns null. 1217 static Value *SimplifyRightShift(Instruction::BinaryOps Opcode, Value *Op0, 1218 Value *Op1, bool isExact, const SimplifyQuery &Q, 1219 unsigned MaxRecurse) { 1220 if (Value *V = SimplifyShift(Opcode, Op0, Op1, Q, MaxRecurse)) 1221 return V; 1222 1223 // X >> X -> 0 1224 if (Op0 == Op1) 1225 return Constant::getNullValue(Op0->getType()); 1226 1227 // undef >> X -> 0 1228 // undef >> X -> undef (if it's exact) 1229 if (match(Op0, m_Undef())) 1230 return isExact ? Op0 : Constant::getNullValue(Op0->getType()); 1231 1232 // The low bit cannot be shifted out of an exact shift if it is set. 1233 if (isExact) { 1234 KnownBits Op0Known = computeKnownBits(Op0, Q.DL, /*Depth=*/0, Q.AC, Q.CxtI, Q.DT); 1235 if (Op0Known.One[0]) 1236 return Op0; 1237 } 1238 1239 return nullptr; 1240 } 1241 1242 /// Given operands for an Shl, see if we can fold the result. 1243 /// If not, this returns null. 1244 static Value *SimplifyShlInst(Value *Op0, Value *Op1, bool isNSW, bool isNUW, 1245 const SimplifyQuery &Q, unsigned MaxRecurse) { 1246 if (Value *V = SimplifyShift(Instruction::Shl, Op0, Op1, Q, MaxRecurse)) 1247 return V; 1248 1249 // undef << X -> 0 1250 // undef << X -> undef if (if it's NSW/NUW) 1251 if (match(Op0, m_Undef())) 1252 return isNSW || isNUW ? Op0 : Constant::getNullValue(Op0->getType()); 1253 1254 // (X >> A) << A -> X 1255 Value *X; 1256 if (match(Op0, m_Exact(m_Shr(m_Value(X), m_Specific(Op1))))) 1257 return X; 1258 1259 // shl nuw i8 C, %x -> C iff C has sign bit set. 1260 if (isNUW && match(Op0, m_Negative())) 1261 return Op0; 1262 // NOTE: could use computeKnownBits() / LazyValueInfo, 1263 // but the cost-benefit analysis suggests it isn't worth it. 1264 1265 return nullptr; 1266 } 1267 1268 Value *llvm::SimplifyShlInst(Value *Op0, Value *Op1, bool isNSW, bool isNUW, 1269 const SimplifyQuery &Q) { 1270 return ::SimplifyShlInst(Op0, Op1, isNSW, isNUW, Q, RecursionLimit); 1271 } 1272 1273 /// Given operands for an LShr, see if we can fold the result. 1274 /// If not, this returns null. 1275 static Value *SimplifyLShrInst(Value *Op0, Value *Op1, bool isExact, 1276 const SimplifyQuery &Q, unsigned MaxRecurse) { 1277 if (Value *V = SimplifyRightShift(Instruction::LShr, Op0, Op1, isExact, Q, 1278 MaxRecurse)) 1279 return V; 1280 1281 // (X << A) >> A -> X 1282 Value *X; 1283 if (match(Op0, m_NUWShl(m_Value(X), m_Specific(Op1)))) 1284 return X; 1285 1286 return nullptr; 1287 } 1288 1289 Value *llvm::SimplifyLShrInst(Value *Op0, Value *Op1, bool isExact, 1290 const SimplifyQuery &Q) { 1291 return ::SimplifyLShrInst(Op0, Op1, isExact, Q, RecursionLimit); 1292 } 1293 1294 /// Given operands for an AShr, see if we can fold the result. 1295 /// If not, this returns null. 1296 static Value *SimplifyAShrInst(Value *Op0, Value *Op1, bool isExact, 1297 const SimplifyQuery &Q, unsigned MaxRecurse) { 1298 if (Value *V = SimplifyRightShift(Instruction::AShr, Op0, Op1, isExact, Q, 1299 MaxRecurse)) 1300 return V; 1301 1302 // all ones >>a X -> -1 1303 // Do not return Op0 because it may contain undef elements if it's a vector. 1304 if (match(Op0, m_AllOnes())) 1305 return Constant::getAllOnesValue(Op0->getType()); 1306 1307 // (X << A) >> A -> X 1308 Value *X; 1309 if (match(Op0, m_NSWShl(m_Value(X), m_Specific(Op1)))) 1310 return X; 1311 1312 // Arithmetic shifting an all-sign-bit value is a no-op. 1313 unsigned NumSignBits = ComputeNumSignBits(Op0, Q.DL, 0, Q.AC, Q.CxtI, Q.DT); 1314 if (NumSignBits == Op0->getType()->getScalarSizeInBits()) 1315 return Op0; 1316 1317 return nullptr; 1318 } 1319 1320 Value *llvm::SimplifyAShrInst(Value *Op0, Value *Op1, bool isExact, 1321 const SimplifyQuery &Q) { 1322 return ::SimplifyAShrInst(Op0, Op1, isExact, Q, RecursionLimit); 1323 } 1324 1325 /// Commuted variants are assumed to be handled by calling this function again 1326 /// with the parameters swapped. 1327 static Value *simplifyUnsignedRangeCheck(ICmpInst *ZeroICmp, 1328 ICmpInst *UnsignedICmp, bool IsAnd) { 1329 Value *X, *Y; 1330 1331 ICmpInst::Predicate EqPred; 1332 if (!match(ZeroICmp, m_ICmp(EqPred, m_Value(Y), m_Zero())) || 1333 !ICmpInst::isEquality(EqPred)) 1334 return nullptr; 1335 1336 ICmpInst::Predicate UnsignedPred; 1337 if (match(UnsignedICmp, m_ICmp(UnsignedPred, m_Value(X), m_Specific(Y))) && 1338 ICmpInst::isUnsigned(UnsignedPred)) 1339 ; 1340 else if (match(UnsignedICmp, 1341 m_ICmp(UnsignedPred, m_Specific(Y), m_Value(X))) && 1342 ICmpInst::isUnsigned(UnsignedPred)) 1343 UnsignedPred = ICmpInst::getSwappedPredicate(UnsignedPred); 1344 else 1345 return nullptr; 1346 1347 // X < Y && Y != 0 --> X < Y 1348 // X < Y || Y != 0 --> Y != 0 1349 if (UnsignedPred == ICmpInst::ICMP_ULT && EqPred == ICmpInst::ICMP_NE) 1350 return IsAnd ? UnsignedICmp : ZeroICmp; 1351 1352 // X >= Y || Y != 0 --> true 1353 // X >= Y || Y == 0 --> X >= Y 1354 if (UnsignedPred == ICmpInst::ICMP_UGE && !IsAnd) { 1355 if (EqPred == ICmpInst::ICMP_NE) 1356 return getTrue(UnsignedICmp->getType()); 1357 return UnsignedICmp; 1358 } 1359 1360 // X < Y && Y == 0 --> false 1361 if (UnsignedPred == ICmpInst::ICMP_ULT && EqPred == ICmpInst::ICMP_EQ && 1362 IsAnd) 1363 return getFalse(UnsignedICmp->getType()); 1364 1365 return nullptr; 1366 } 1367 1368 /// Commuted variants are assumed to be handled by calling this function again 1369 /// with the parameters swapped. 1370 static Value *simplifyAndOfICmpsWithSameOperands(ICmpInst *Op0, ICmpInst *Op1) { 1371 ICmpInst::Predicate Pred0, Pred1; 1372 Value *A ,*B; 1373 if (!match(Op0, m_ICmp(Pred0, m_Value(A), m_Value(B))) || 1374 !match(Op1, m_ICmp(Pred1, m_Specific(A), m_Specific(B)))) 1375 return nullptr; 1376 1377 // We have (icmp Pred0, A, B) & (icmp Pred1, A, B). 1378 // If Op1 is always implied true by Op0, then Op0 is a subset of Op1, and we 1379 // can eliminate Op1 from this 'and'. 1380 if (ICmpInst::isImpliedTrueByMatchingCmp(Pred0, Pred1)) 1381 return Op0; 1382 1383 // Check for any combination of predicates that are guaranteed to be disjoint. 1384 if ((Pred0 == ICmpInst::getInversePredicate(Pred1)) || 1385 (Pred0 == ICmpInst::ICMP_EQ && ICmpInst::isFalseWhenEqual(Pred1)) || 1386 (Pred0 == ICmpInst::ICMP_SLT && Pred1 == ICmpInst::ICMP_SGT) || 1387 (Pred0 == ICmpInst::ICMP_ULT && Pred1 == ICmpInst::ICMP_UGT)) 1388 return getFalse(Op0->getType()); 1389 1390 return nullptr; 1391 } 1392 1393 /// Commuted variants are assumed to be handled by calling this function again 1394 /// with the parameters swapped. 1395 static Value *simplifyOrOfICmpsWithSameOperands(ICmpInst *Op0, ICmpInst *Op1) { 1396 ICmpInst::Predicate Pred0, Pred1; 1397 Value *A ,*B; 1398 if (!match(Op0, m_ICmp(Pred0, m_Value(A), m_Value(B))) || 1399 !match(Op1, m_ICmp(Pred1, m_Specific(A), m_Specific(B)))) 1400 return nullptr; 1401 1402 // We have (icmp Pred0, A, B) | (icmp Pred1, A, B). 1403 // If Op1 is always implied true by Op0, then Op0 is a subset of Op1, and we 1404 // can eliminate Op0 from this 'or'. 1405 if (ICmpInst::isImpliedTrueByMatchingCmp(Pred0, Pred1)) 1406 return Op1; 1407 1408 // Check for any combination of predicates that cover the entire range of 1409 // possibilities. 1410 if ((Pred0 == ICmpInst::getInversePredicate(Pred1)) || 1411 (Pred0 == ICmpInst::ICMP_NE && ICmpInst::isTrueWhenEqual(Pred1)) || 1412 (Pred0 == ICmpInst::ICMP_SLE && Pred1 == ICmpInst::ICMP_SGE) || 1413 (Pred0 == ICmpInst::ICMP_ULE && Pred1 == ICmpInst::ICMP_UGE)) 1414 return getTrue(Op0->getType()); 1415 1416 return nullptr; 1417 } 1418 1419 /// Test if a pair of compares with a shared operand and 2 constants has an 1420 /// empty set intersection, full set union, or if one compare is a superset of 1421 /// the other. 1422 static Value *simplifyAndOrOfICmpsWithConstants(ICmpInst *Cmp0, ICmpInst *Cmp1, 1423 bool IsAnd) { 1424 // Look for this pattern: {and/or} (icmp X, C0), (icmp X, C1)). 1425 if (Cmp0->getOperand(0) != Cmp1->getOperand(0)) 1426 return nullptr; 1427 1428 const APInt *C0, *C1; 1429 if (!match(Cmp0->getOperand(1), m_APInt(C0)) || 1430 !match(Cmp1->getOperand(1), m_APInt(C1))) 1431 return nullptr; 1432 1433 auto Range0 = ConstantRange::makeExactICmpRegion(Cmp0->getPredicate(), *C0); 1434 auto Range1 = ConstantRange::makeExactICmpRegion(Cmp1->getPredicate(), *C1); 1435 1436 // For and-of-compares, check if the intersection is empty: 1437 // (icmp X, C0) && (icmp X, C1) --> empty set --> false 1438 if (IsAnd && Range0.intersectWith(Range1).isEmptySet()) 1439 return getFalse(Cmp0->getType()); 1440 1441 // For or-of-compares, check if the union is full: 1442 // (icmp X, C0) || (icmp X, C1) --> full set --> true 1443 if (!IsAnd && Range0.unionWith(Range1).isFullSet()) 1444 return getTrue(Cmp0->getType()); 1445 1446 // Is one range a superset of the other? 1447 // If this is and-of-compares, take the smaller set: 1448 // (icmp sgt X, 4) && (icmp sgt X, 42) --> icmp sgt X, 42 1449 // If this is or-of-compares, take the larger set: 1450 // (icmp sgt X, 4) || (icmp sgt X, 42) --> icmp sgt X, 4 1451 if (Range0.contains(Range1)) 1452 return IsAnd ? Cmp1 : Cmp0; 1453 if (Range1.contains(Range0)) 1454 return IsAnd ? Cmp0 : Cmp1; 1455 1456 return nullptr; 1457 } 1458 1459 static Value *simplifyAndOrOfICmpsWithZero(ICmpInst *Cmp0, ICmpInst *Cmp1, 1460 bool IsAnd) { 1461 ICmpInst::Predicate P0 = Cmp0->getPredicate(), P1 = Cmp1->getPredicate(); 1462 if (!match(Cmp0->getOperand(1), m_Zero()) || 1463 !match(Cmp1->getOperand(1), m_Zero()) || P0 != P1) 1464 return nullptr; 1465 1466 if ((IsAnd && P0 != ICmpInst::ICMP_NE) || (!IsAnd && P1 != ICmpInst::ICMP_EQ)) 1467 return nullptr; 1468 1469 // We have either "(X == 0 || Y == 0)" or "(X != 0 && Y != 0)". 1470 Value *X = Cmp0->getOperand(0); 1471 Value *Y = Cmp1->getOperand(0); 1472 1473 // If one of the compares is a masked version of a (not) null check, then 1474 // that compare implies the other, so we eliminate the other. Optionally, look 1475 // through a pointer-to-int cast to match a null check of a pointer type. 1476 1477 // (X == 0) || (([ptrtoint] X & ?) == 0) --> ([ptrtoint] X & ?) == 0 1478 // (X == 0) || ((? & [ptrtoint] X) == 0) --> (? & [ptrtoint] X) == 0 1479 // (X != 0) && (([ptrtoint] X & ?) != 0) --> ([ptrtoint] X & ?) != 0 1480 // (X != 0) && ((? & [ptrtoint] X) != 0) --> (? & [ptrtoint] X) != 0 1481 if (match(Y, m_c_And(m_Specific(X), m_Value())) || 1482 match(Y, m_c_And(m_PtrToInt(m_Specific(X)), m_Value()))) 1483 return Cmp1; 1484 1485 // (([ptrtoint] Y & ?) == 0) || (Y == 0) --> ([ptrtoint] Y & ?) == 0 1486 // ((? & [ptrtoint] Y) == 0) || (Y == 0) --> (? & [ptrtoint] Y) == 0 1487 // (([ptrtoint] Y & ?) != 0) && (Y != 0) --> ([ptrtoint] Y & ?) != 0 1488 // ((? & [ptrtoint] Y) != 0) && (Y != 0) --> (? & [ptrtoint] Y) != 0 1489 if (match(X, m_c_And(m_Specific(Y), m_Value())) || 1490 match(X, m_c_And(m_PtrToInt(m_Specific(Y)), m_Value()))) 1491 return Cmp0; 1492 1493 return nullptr; 1494 } 1495 1496 static Value *simplifyAndOfICmpsWithAdd(ICmpInst *Op0, ICmpInst *Op1) { 1497 // (icmp (add V, C0), C1) & (icmp V, C0) 1498 ICmpInst::Predicate Pred0, Pred1; 1499 const APInt *C0, *C1; 1500 Value *V; 1501 if (!match(Op0, m_ICmp(Pred0, m_Add(m_Value(V), m_APInt(C0)), m_APInt(C1)))) 1502 return nullptr; 1503 1504 if (!match(Op1, m_ICmp(Pred1, m_Specific(V), m_Value()))) 1505 return nullptr; 1506 1507 auto *AddInst = cast<BinaryOperator>(Op0->getOperand(0)); 1508 if (AddInst->getOperand(1) != Op1->getOperand(1)) 1509 return nullptr; 1510 1511 Type *ITy = Op0->getType(); 1512 bool isNSW = AddInst->hasNoSignedWrap(); 1513 bool isNUW = AddInst->hasNoUnsignedWrap(); 1514 1515 const APInt Delta = *C1 - *C0; 1516 if (C0->isStrictlyPositive()) { 1517 if (Delta == 2) { 1518 if (Pred0 == ICmpInst::ICMP_ULT && Pred1 == ICmpInst::ICMP_SGT) 1519 return getFalse(ITy); 1520 if (Pred0 == ICmpInst::ICMP_SLT && Pred1 == ICmpInst::ICMP_SGT && isNSW) 1521 return getFalse(ITy); 1522 } 1523 if (Delta == 1) { 1524 if (Pred0 == ICmpInst::ICMP_ULE && Pred1 == ICmpInst::ICMP_SGT) 1525 return getFalse(ITy); 1526 if (Pred0 == ICmpInst::ICMP_SLE && Pred1 == ICmpInst::ICMP_SGT && isNSW) 1527 return getFalse(ITy); 1528 } 1529 } 1530 if (C0->getBoolValue() && isNUW) { 1531 if (Delta == 2) 1532 if (Pred0 == ICmpInst::ICMP_ULT && Pred1 == ICmpInst::ICMP_UGT) 1533 return getFalse(ITy); 1534 if (Delta == 1) 1535 if (Pred0 == ICmpInst::ICMP_ULE && Pred1 == ICmpInst::ICMP_UGT) 1536 return getFalse(ITy); 1537 } 1538 1539 return nullptr; 1540 } 1541 1542 static Value *simplifyAndOfICmps(ICmpInst *Op0, ICmpInst *Op1) { 1543 if (Value *X = simplifyUnsignedRangeCheck(Op0, Op1, /*IsAnd=*/true)) 1544 return X; 1545 if (Value *X = simplifyUnsignedRangeCheck(Op1, Op0, /*IsAnd=*/true)) 1546 return X; 1547 1548 if (Value *X = simplifyAndOfICmpsWithSameOperands(Op0, Op1)) 1549 return X; 1550 if (Value *X = simplifyAndOfICmpsWithSameOperands(Op1, Op0)) 1551 return X; 1552 1553 if (Value *X = simplifyAndOrOfICmpsWithConstants(Op0, Op1, true)) 1554 return X; 1555 1556 if (Value *X = simplifyAndOrOfICmpsWithZero(Op0, Op1, true)) 1557 return X; 1558 1559 if (Value *X = simplifyAndOfICmpsWithAdd(Op0, Op1)) 1560 return X; 1561 if (Value *X = simplifyAndOfICmpsWithAdd(Op1, Op0)) 1562 return X; 1563 1564 return nullptr; 1565 } 1566 1567 static Value *simplifyOrOfICmpsWithAdd(ICmpInst *Op0, ICmpInst *Op1) { 1568 // (icmp (add V, C0), C1) | (icmp V, C0) 1569 ICmpInst::Predicate Pred0, Pred1; 1570 const APInt *C0, *C1; 1571 Value *V; 1572 if (!match(Op0, m_ICmp(Pred0, m_Add(m_Value(V), m_APInt(C0)), m_APInt(C1)))) 1573 return nullptr; 1574 1575 if (!match(Op1, m_ICmp(Pred1, m_Specific(V), m_Value()))) 1576 return nullptr; 1577 1578 auto *AddInst = cast<BinaryOperator>(Op0->getOperand(0)); 1579 if (AddInst->getOperand(1) != Op1->getOperand(1)) 1580 return nullptr; 1581 1582 Type *ITy = Op0->getType(); 1583 bool isNSW = AddInst->hasNoSignedWrap(); 1584 bool isNUW = AddInst->hasNoUnsignedWrap(); 1585 1586 const APInt Delta = *C1 - *C0; 1587 if (C0->isStrictlyPositive()) { 1588 if (Delta == 2) { 1589 if (Pred0 == ICmpInst::ICMP_UGE && Pred1 == ICmpInst::ICMP_SLE) 1590 return getTrue(ITy); 1591 if (Pred0 == ICmpInst::ICMP_SGE && Pred1 == ICmpInst::ICMP_SLE && isNSW) 1592 return getTrue(ITy); 1593 } 1594 if (Delta == 1) { 1595 if (Pred0 == ICmpInst::ICMP_UGT && Pred1 == ICmpInst::ICMP_SLE) 1596 return getTrue(ITy); 1597 if (Pred0 == ICmpInst::ICMP_SGT && Pred1 == ICmpInst::ICMP_SLE && isNSW) 1598 return getTrue(ITy); 1599 } 1600 } 1601 if (C0->getBoolValue() && isNUW) { 1602 if (Delta == 2) 1603 if (Pred0 == ICmpInst::ICMP_UGE && Pred1 == ICmpInst::ICMP_ULE) 1604 return getTrue(ITy); 1605 if (Delta == 1) 1606 if (Pred0 == ICmpInst::ICMP_UGT && Pred1 == ICmpInst::ICMP_ULE) 1607 return getTrue(ITy); 1608 } 1609 1610 return nullptr; 1611 } 1612 1613 static Value *simplifyOrOfICmps(ICmpInst *Op0, ICmpInst *Op1) { 1614 if (Value *X = simplifyUnsignedRangeCheck(Op0, Op1, /*IsAnd=*/false)) 1615 return X; 1616 if (Value *X = simplifyUnsignedRangeCheck(Op1, Op0, /*IsAnd=*/false)) 1617 return X; 1618 1619 if (Value *X = simplifyOrOfICmpsWithSameOperands(Op0, Op1)) 1620 return X; 1621 if (Value *X = simplifyOrOfICmpsWithSameOperands(Op1, Op0)) 1622 return X; 1623 1624 if (Value *X = simplifyAndOrOfICmpsWithConstants(Op0, Op1, false)) 1625 return X; 1626 1627 if (Value *X = simplifyAndOrOfICmpsWithZero(Op0, Op1, false)) 1628 return X; 1629 1630 if (Value *X = simplifyOrOfICmpsWithAdd(Op0, Op1)) 1631 return X; 1632 if (Value *X = simplifyOrOfICmpsWithAdd(Op1, Op0)) 1633 return X; 1634 1635 return nullptr; 1636 } 1637 1638 static Value *simplifyAndOrOfFCmps(FCmpInst *LHS, FCmpInst *RHS, bool IsAnd) { 1639 Value *LHS0 = LHS->getOperand(0), *LHS1 = LHS->getOperand(1); 1640 Value *RHS0 = RHS->getOperand(0), *RHS1 = RHS->getOperand(1); 1641 if (LHS0->getType() != RHS0->getType()) 1642 return nullptr; 1643 1644 FCmpInst::Predicate PredL = LHS->getPredicate(), PredR = RHS->getPredicate(); 1645 if ((PredL == FCmpInst::FCMP_ORD && PredR == FCmpInst::FCMP_ORD && IsAnd) || 1646 (PredL == FCmpInst::FCMP_UNO && PredR == FCmpInst::FCMP_UNO && !IsAnd)) { 1647 // (fcmp ord NNAN, X) & (fcmp ord X, Y) --> fcmp ord X, Y 1648 // (fcmp ord NNAN, X) & (fcmp ord Y, X) --> fcmp ord Y, X 1649 // (fcmp ord X, NNAN) & (fcmp ord X, Y) --> fcmp ord X, Y 1650 // (fcmp ord X, NNAN) & (fcmp ord Y, X) --> fcmp ord Y, X 1651 // (fcmp uno NNAN, X) | (fcmp uno X, Y) --> fcmp uno X, Y 1652 // (fcmp uno NNAN, X) | (fcmp uno Y, X) --> fcmp uno Y, X 1653 // (fcmp uno X, NNAN) | (fcmp uno X, Y) --> fcmp uno X, Y 1654 // (fcmp uno X, NNAN) | (fcmp uno Y, X) --> fcmp uno Y, X 1655 if ((isKnownNeverNaN(LHS0) && (LHS1 == RHS0 || LHS1 == RHS1)) || 1656 (isKnownNeverNaN(LHS1) && (LHS0 == RHS0 || LHS0 == RHS1))) 1657 return RHS; 1658 1659 // (fcmp ord X, Y) & (fcmp ord NNAN, X) --> fcmp ord X, Y 1660 // (fcmp ord Y, X) & (fcmp ord NNAN, X) --> fcmp ord Y, X 1661 // (fcmp ord X, Y) & (fcmp ord X, NNAN) --> fcmp ord X, Y 1662 // (fcmp ord Y, X) & (fcmp ord X, NNAN) --> fcmp ord Y, X 1663 // (fcmp uno X, Y) | (fcmp uno NNAN, X) --> fcmp uno X, Y 1664 // (fcmp uno Y, X) | (fcmp uno NNAN, X) --> fcmp uno Y, X 1665 // (fcmp uno X, Y) | (fcmp uno X, NNAN) --> fcmp uno X, Y 1666 // (fcmp uno Y, X) | (fcmp uno X, NNAN) --> fcmp uno Y, X 1667 if ((isKnownNeverNaN(RHS0) && (RHS1 == LHS0 || RHS1 == LHS1)) || 1668 (isKnownNeverNaN(RHS1) && (RHS0 == LHS0 || RHS0 == LHS1))) 1669 return LHS; 1670 } 1671 1672 return nullptr; 1673 } 1674 1675 static Value *simplifyAndOrOfCmps(Value *Op0, Value *Op1, bool IsAnd) { 1676 // Look through casts of the 'and' operands to find compares. 1677 auto *Cast0 = dyn_cast<CastInst>(Op0); 1678 auto *Cast1 = dyn_cast<CastInst>(Op1); 1679 if (Cast0 && Cast1 && Cast0->getOpcode() == Cast1->getOpcode() && 1680 Cast0->getSrcTy() == Cast1->getSrcTy()) { 1681 Op0 = Cast0->getOperand(0); 1682 Op1 = Cast1->getOperand(0); 1683 } 1684 1685 Value *V = nullptr; 1686 auto *ICmp0 = dyn_cast<ICmpInst>(Op0); 1687 auto *ICmp1 = dyn_cast<ICmpInst>(Op1); 1688 if (ICmp0 && ICmp1) 1689 V = IsAnd ? simplifyAndOfICmps(ICmp0, ICmp1) : 1690 simplifyOrOfICmps(ICmp0, ICmp1); 1691 1692 auto *FCmp0 = dyn_cast<FCmpInst>(Op0); 1693 auto *FCmp1 = dyn_cast<FCmpInst>(Op1); 1694 if (FCmp0 && FCmp1) 1695 V = simplifyAndOrOfFCmps(FCmp0, FCmp1, IsAnd); 1696 1697 if (!V) 1698 return nullptr; 1699 if (!Cast0) 1700 return V; 1701 1702 // If we looked through casts, we can only handle a constant simplification 1703 // because we are not allowed to create a cast instruction here. 1704 if (auto *C = dyn_cast<Constant>(V)) 1705 return ConstantExpr::getCast(Cast0->getOpcode(), C, Cast0->getType()); 1706 1707 return nullptr; 1708 } 1709 1710 /// Given operands for an And, see if we can fold the result. 1711 /// If not, this returns null. 1712 static Value *SimplifyAndInst(Value *Op0, Value *Op1, const SimplifyQuery &Q, 1713 unsigned MaxRecurse) { 1714 if (Constant *C = foldOrCommuteConstant(Instruction::And, Op0, Op1, Q)) 1715 return C; 1716 1717 // X & undef -> 0 1718 if (match(Op1, m_Undef())) 1719 return Constant::getNullValue(Op0->getType()); 1720 1721 // X & X = X 1722 if (Op0 == Op1) 1723 return Op0; 1724 1725 // X & 0 = 0 1726 if (match(Op1, m_Zero())) 1727 return Constant::getNullValue(Op0->getType()); 1728 1729 // X & -1 = X 1730 if (match(Op1, m_AllOnes())) 1731 return Op0; 1732 1733 // A & ~A = ~A & A = 0 1734 if (match(Op0, m_Not(m_Specific(Op1))) || 1735 match(Op1, m_Not(m_Specific(Op0)))) 1736 return Constant::getNullValue(Op0->getType()); 1737 1738 // (A | ?) & A = A 1739 if (match(Op0, m_c_Or(m_Specific(Op1), m_Value()))) 1740 return Op1; 1741 1742 // A & (A | ?) = A 1743 if (match(Op1, m_c_Or(m_Specific(Op0), m_Value()))) 1744 return Op0; 1745 1746 // A mask that only clears known zeros of a shifted value is a no-op. 1747 Value *X; 1748 const APInt *Mask; 1749 const APInt *ShAmt; 1750 if (match(Op1, m_APInt(Mask))) { 1751 // If all bits in the inverted and shifted mask are clear: 1752 // and (shl X, ShAmt), Mask --> shl X, ShAmt 1753 if (match(Op0, m_Shl(m_Value(X), m_APInt(ShAmt))) && 1754 (~(*Mask)).lshr(*ShAmt).isNullValue()) 1755 return Op0; 1756 1757 // If all bits in the inverted and shifted mask are clear: 1758 // and (lshr X, ShAmt), Mask --> lshr X, ShAmt 1759 if (match(Op0, m_LShr(m_Value(X), m_APInt(ShAmt))) && 1760 (~(*Mask)).shl(*ShAmt).isNullValue()) 1761 return Op0; 1762 } 1763 1764 // A & (-A) = A if A is a power of two or zero. 1765 if (match(Op0, m_Neg(m_Specific(Op1))) || 1766 match(Op1, m_Neg(m_Specific(Op0)))) { 1767 if (isKnownToBeAPowerOfTwo(Op0, Q.DL, /*OrZero*/ true, 0, Q.AC, Q.CxtI, 1768 Q.DT)) 1769 return Op0; 1770 if (isKnownToBeAPowerOfTwo(Op1, Q.DL, /*OrZero*/ true, 0, Q.AC, Q.CxtI, 1771 Q.DT)) 1772 return Op1; 1773 } 1774 1775 if (Value *V = simplifyAndOrOfCmps(Op0, Op1, true)) 1776 return V; 1777 1778 // Try some generic simplifications for associative operations. 1779 if (Value *V = SimplifyAssociativeBinOp(Instruction::And, Op0, Op1, Q, 1780 MaxRecurse)) 1781 return V; 1782 1783 // And distributes over Or. Try some generic simplifications based on this. 1784 if (Value *V = ExpandBinOp(Instruction::And, Op0, Op1, Instruction::Or, 1785 Q, MaxRecurse)) 1786 return V; 1787 1788 // And distributes over Xor. Try some generic simplifications based on this. 1789 if (Value *V = ExpandBinOp(Instruction::And, Op0, Op1, Instruction::Xor, 1790 Q, MaxRecurse)) 1791 return V; 1792 1793 // If the operation is with the result of a select instruction, check whether 1794 // operating on either branch of the select always yields the same value. 1795 if (isa<SelectInst>(Op0) || isa<SelectInst>(Op1)) 1796 if (Value *V = ThreadBinOpOverSelect(Instruction::And, Op0, Op1, Q, 1797 MaxRecurse)) 1798 return V; 1799 1800 // If the operation is with the result of a phi instruction, check whether 1801 // operating on all incoming values of the phi always yields the same value. 1802 if (isa<PHINode>(Op0) || isa<PHINode>(Op1)) 1803 if (Value *V = ThreadBinOpOverPHI(Instruction::And, Op0, Op1, Q, 1804 MaxRecurse)) 1805 return V; 1806 1807 return nullptr; 1808 } 1809 1810 Value *llvm::SimplifyAndInst(Value *Op0, Value *Op1, const SimplifyQuery &Q) { 1811 return ::SimplifyAndInst(Op0, Op1, Q, RecursionLimit); 1812 } 1813 1814 /// Given operands for an Or, see if we can fold the result. 1815 /// If not, this returns null. 1816 static Value *SimplifyOrInst(Value *Op0, Value *Op1, const SimplifyQuery &Q, 1817 unsigned MaxRecurse) { 1818 if (Constant *C = foldOrCommuteConstant(Instruction::Or, Op0, Op1, Q)) 1819 return C; 1820 1821 // X | undef -> -1 1822 // X | -1 = -1 1823 // Do not return Op1 because it may contain undef elements if it's a vector. 1824 if (match(Op1, m_Undef()) || match(Op1, m_AllOnes())) 1825 return Constant::getAllOnesValue(Op0->getType()); 1826 1827 // X | X = X 1828 // X | 0 = X 1829 if (Op0 == Op1 || match(Op1, m_Zero())) 1830 return Op0; 1831 1832 // A | ~A = ~A | A = -1 1833 if (match(Op0, m_Not(m_Specific(Op1))) || 1834 match(Op1, m_Not(m_Specific(Op0)))) 1835 return Constant::getAllOnesValue(Op0->getType()); 1836 1837 // (A & ?) | A = A 1838 if (match(Op0, m_c_And(m_Specific(Op1), m_Value()))) 1839 return Op1; 1840 1841 // A | (A & ?) = A 1842 if (match(Op1, m_c_And(m_Specific(Op0), m_Value()))) 1843 return Op0; 1844 1845 // ~(A & ?) | A = -1 1846 if (match(Op0, m_Not(m_c_And(m_Specific(Op1), m_Value())))) 1847 return Constant::getAllOnesValue(Op1->getType()); 1848 1849 // A | ~(A & ?) = -1 1850 if (match(Op1, m_Not(m_c_And(m_Specific(Op1), m_Value())))) 1851 return Constant::getAllOnesValue(Op0->getType()); 1852 1853 Value *A, *B; 1854 // (A & ~B) | (A ^ B) -> (A ^ B) 1855 // (~B & A) | (A ^ B) -> (A ^ B) 1856 // (A & ~B) | (B ^ A) -> (B ^ A) 1857 // (~B & A) | (B ^ A) -> (B ^ A) 1858 if (match(Op1, m_Xor(m_Value(A), m_Value(B))) && 1859 (match(Op0, m_c_And(m_Specific(A), m_Not(m_Specific(B)))) || 1860 match(Op0, m_c_And(m_Not(m_Specific(A)), m_Specific(B))))) 1861 return Op1; 1862 1863 // Commute the 'or' operands. 1864 // (A ^ B) | (A & ~B) -> (A ^ B) 1865 // (A ^ B) | (~B & A) -> (A ^ B) 1866 // (B ^ A) | (A & ~B) -> (B ^ A) 1867 // (B ^ A) | (~B & A) -> (B ^ A) 1868 if (match(Op0, m_Xor(m_Value(A), m_Value(B))) && 1869 (match(Op1, m_c_And(m_Specific(A), m_Not(m_Specific(B)))) || 1870 match(Op1, m_c_And(m_Not(m_Specific(A)), m_Specific(B))))) 1871 return Op0; 1872 1873 // (A & B) | (~A ^ B) -> (~A ^ B) 1874 // (B & A) | (~A ^ B) -> (~A ^ B) 1875 // (A & B) | (B ^ ~A) -> (B ^ ~A) 1876 // (B & A) | (B ^ ~A) -> (B ^ ~A) 1877 if (match(Op0, m_And(m_Value(A), m_Value(B))) && 1878 (match(Op1, m_c_Xor(m_Specific(A), m_Not(m_Specific(B)))) || 1879 match(Op1, m_c_Xor(m_Not(m_Specific(A)), m_Specific(B))))) 1880 return Op1; 1881 1882 // (~A ^ B) | (A & B) -> (~A ^ B) 1883 // (~A ^ B) | (B & A) -> (~A ^ B) 1884 // (B ^ ~A) | (A & B) -> (B ^ ~A) 1885 // (B ^ ~A) | (B & A) -> (B ^ ~A) 1886 if (match(Op1, m_And(m_Value(A), m_Value(B))) && 1887 (match(Op0, m_c_Xor(m_Specific(A), m_Not(m_Specific(B)))) || 1888 match(Op0, m_c_Xor(m_Not(m_Specific(A)), m_Specific(B))))) 1889 return Op0; 1890 1891 if (Value *V = simplifyAndOrOfCmps(Op0, Op1, false)) 1892 return V; 1893 1894 // Try some generic simplifications for associative operations. 1895 if (Value *V = SimplifyAssociativeBinOp(Instruction::Or, Op0, Op1, Q, 1896 MaxRecurse)) 1897 return V; 1898 1899 // Or distributes over And. Try some generic simplifications based on this. 1900 if (Value *V = ExpandBinOp(Instruction::Or, Op0, Op1, Instruction::And, Q, 1901 MaxRecurse)) 1902 return V; 1903 1904 // If the operation is with the result of a select instruction, check whether 1905 // operating on either branch of the select always yields the same value. 1906 if (isa<SelectInst>(Op0) || isa<SelectInst>(Op1)) 1907 if (Value *V = ThreadBinOpOverSelect(Instruction::Or, Op0, Op1, Q, 1908 MaxRecurse)) 1909 return V; 1910 1911 // (A & C1)|(B & C2) 1912 const APInt *C1, *C2; 1913 if (match(Op0, m_And(m_Value(A), m_APInt(C1))) && 1914 match(Op1, m_And(m_Value(B), m_APInt(C2)))) { 1915 if (*C1 == ~*C2) { 1916 // (A & C1)|(B & C2) 1917 // If we have: ((V + N) & C1) | (V & C2) 1918 // .. and C2 = ~C1 and C2 is 0+1+ and (N & C2) == 0 1919 // replace with V+N. 1920 Value *N; 1921 if (C2->isMask() && // C2 == 0+1+ 1922 match(A, m_c_Add(m_Specific(B), m_Value(N)))) { 1923 // Add commutes, try both ways. 1924 if (MaskedValueIsZero(N, *C2, Q.DL, 0, Q.AC, Q.CxtI, Q.DT)) 1925 return A; 1926 } 1927 // Or commutes, try both ways. 1928 if (C1->isMask() && 1929 match(B, m_c_Add(m_Specific(A), m_Value(N)))) { 1930 // Add commutes, try both ways. 1931 if (MaskedValueIsZero(N, *C1, Q.DL, 0, Q.AC, Q.CxtI, Q.DT)) 1932 return B; 1933 } 1934 } 1935 } 1936 1937 // If the operation is with the result of a phi instruction, check whether 1938 // operating on all incoming values of the phi always yields the same value. 1939 if (isa<PHINode>(Op0) || isa<PHINode>(Op1)) 1940 if (Value *V = ThreadBinOpOverPHI(Instruction::Or, Op0, Op1, Q, MaxRecurse)) 1941 return V; 1942 1943 return nullptr; 1944 } 1945 1946 Value *llvm::SimplifyOrInst(Value *Op0, Value *Op1, const SimplifyQuery &Q) { 1947 return ::SimplifyOrInst(Op0, Op1, Q, RecursionLimit); 1948 } 1949 1950 /// Given operands for a Xor, see if we can fold the result. 1951 /// If not, this returns null. 1952 static Value *SimplifyXorInst(Value *Op0, Value *Op1, const SimplifyQuery &Q, 1953 unsigned MaxRecurse) { 1954 if (Constant *C = foldOrCommuteConstant(Instruction::Xor, Op0, Op1, Q)) 1955 return C; 1956 1957 // A ^ undef -> undef 1958 if (match(Op1, m_Undef())) 1959 return Op1; 1960 1961 // A ^ 0 = A 1962 if (match(Op1, m_Zero())) 1963 return Op0; 1964 1965 // A ^ A = 0 1966 if (Op0 == Op1) 1967 return Constant::getNullValue(Op0->getType()); 1968 1969 // A ^ ~A = ~A ^ A = -1 1970 if (match(Op0, m_Not(m_Specific(Op1))) || 1971 match(Op1, m_Not(m_Specific(Op0)))) 1972 return Constant::getAllOnesValue(Op0->getType()); 1973 1974 // Try some generic simplifications for associative operations. 1975 if (Value *V = SimplifyAssociativeBinOp(Instruction::Xor, Op0, Op1, Q, 1976 MaxRecurse)) 1977 return V; 1978 1979 // Threading Xor over selects and phi nodes is pointless, so don't bother. 1980 // Threading over the select in "A ^ select(cond, B, C)" means evaluating 1981 // "A^B" and "A^C" and seeing if they are equal; but they are equal if and 1982 // only if B and C are equal. If B and C are equal then (since we assume 1983 // that operands have already been simplified) "select(cond, B, C)" should 1984 // have been simplified to the common value of B and C already. Analysing 1985 // "A^B" and "A^C" thus gains nothing, but costs compile time. Similarly 1986 // for threading over phi nodes. 1987 1988 return nullptr; 1989 } 1990 1991 Value *llvm::SimplifyXorInst(Value *Op0, Value *Op1, const SimplifyQuery &Q) { 1992 return ::SimplifyXorInst(Op0, Op1, Q, RecursionLimit); 1993 } 1994 1995 1996 static Type *GetCompareTy(Value *Op) { 1997 return CmpInst::makeCmpResultType(Op->getType()); 1998 } 1999 2000 /// Rummage around inside V looking for something equivalent to the comparison 2001 /// "LHS Pred RHS". Return such a value if found, otherwise return null. 2002 /// Helper function for analyzing max/min idioms. 2003 static Value *ExtractEquivalentCondition(Value *V, CmpInst::Predicate Pred, 2004 Value *LHS, Value *RHS) { 2005 SelectInst *SI = dyn_cast<SelectInst>(V); 2006 if (!SI) 2007 return nullptr; 2008 CmpInst *Cmp = dyn_cast<CmpInst>(SI->getCondition()); 2009 if (!Cmp) 2010 return nullptr; 2011 Value *CmpLHS = Cmp->getOperand(0), *CmpRHS = Cmp->getOperand(1); 2012 if (Pred == Cmp->getPredicate() && LHS == CmpLHS && RHS == CmpRHS) 2013 return Cmp; 2014 if (Pred == CmpInst::getSwappedPredicate(Cmp->getPredicate()) && 2015 LHS == CmpRHS && RHS == CmpLHS) 2016 return Cmp; 2017 return nullptr; 2018 } 2019 2020 // A significant optimization not implemented here is assuming that alloca 2021 // addresses are not equal to incoming argument values. They don't *alias*, 2022 // as we say, but that doesn't mean they aren't equal, so we take a 2023 // conservative approach. 2024 // 2025 // This is inspired in part by C++11 5.10p1: 2026 // "Two pointers of the same type compare equal if and only if they are both 2027 // null, both point to the same function, or both represent the same 2028 // address." 2029 // 2030 // This is pretty permissive. 2031 // 2032 // It's also partly due to C11 6.5.9p6: 2033 // "Two pointers compare equal if and only if both are null pointers, both are 2034 // pointers to the same object (including a pointer to an object and a 2035 // subobject at its beginning) or function, both are pointers to one past the 2036 // last element of the same array object, or one is a pointer to one past the 2037 // end of one array object and the other is a pointer to the start of a 2038 // different array object that happens to immediately follow the first array 2039 // object in the address space.) 2040 // 2041 // C11's version is more restrictive, however there's no reason why an argument 2042 // couldn't be a one-past-the-end value for a stack object in the caller and be 2043 // equal to the beginning of a stack object in the callee. 2044 // 2045 // If the C and C++ standards are ever made sufficiently restrictive in this 2046 // area, it may be possible to update LLVM's semantics accordingly and reinstate 2047 // this optimization. 2048 static Constant * 2049 computePointerICmp(const DataLayout &DL, const TargetLibraryInfo *TLI, 2050 const DominatorTree *DT, CmpInst::Predicate Pred, 2051 AssumptionCache *AC, const Instruction *CxtI, 2052 Value *LHS, Value *RHS) { 2053 // First, skip past any trivial no-ops. 2054 LHS = LHS->stripPointerCasts(); 2055 RHS = RHS->stripPointerCasts(); 2056 2057 // A non-null pointer is not equal to a null pointer. 2058 if (llvm::isKnownNonZero(LHS, DL) && isa<ConstantPointerNull>(RHS) && 2059 (Pred == CmpInst::ICMP_EQ || Pred == CmpInst::ICMP_NE)) 2060 return ConstantInt::get(GetCompareTy(LHS), 2061 !CmpInst::isTrueWhenEqual(Pred)); 2062 2063 // We can only fold certain predicates on pointer comparisons. 2064 switch (Pred) { 2065 default: 2066 return nullptr; 2067 2068 // Equality comaprisons are easy to fold. 2069 case CmpInst::ICMP_EQ: 2070 case CmpInst::ICMP_NE: 2071 break; 2072 2073 // We can only handle unsigned relational comparisons because 'inbounds' on 2074 // a GEP only protects against unsigned wrapping. 2075 case CmpInst::ICMP_UGT: 2076 case CmpInst::ICMP_UGE: 2077 case CmpInst::ICMP_ULT: 2078 case CmpInst::ICMP_ULE: 2079 // However, we have to switch them to their signed variants to handle 2080 // negative indices from the base pointer. 2081 Pred = ICmpInst::getSignedPredicate(Pred); 2082 break; 2083 } 2084 2085 // Strip off any constant offsets so that we can reason about them. 2086 // It's tempting to use getUnderlyingObject or even just stripInBoundsOffsets 2087 // here and compare base addresses like AliasAnalysis does, however there are 2088 // numerous hazards. AliasAnalysis and its utilities rely on special rules 2089 // governing loads and stores which don't apply to icmps. Also, AliasAnalysis 2090 // doesn't need to guarantee pointer inequality when it says NoAlias. 2091 Constant *LHSOffset = stripAndComputeConstantOffsets(DL, LHS); 2092 Constant *RHSOffset = stripAndComputeConstantOffsets(DL, RHS); 2093 2094 // If LHS and RHS are related via constant offsets to the same base 2095 // value, we can replace it with an icmp which just compares the offsets. 2096 if (LHS == RHS) 2097 return ConstantExpr::getICmp(Pred, LHSOffset, RHSOffset); 2098 2099 // Various optimizations for (in)equality comparisons. 2100 if (Pred == CmpInst::ICMP_EQ || Pred == CmpInst::ICMP_NE) { 2101 // Different non-empty allocations that exist at the same time have 2102 // different addresses (if the program can tell). Global variables always 2103 // exist, so they always exist during the lifetime of each other and all 2104 // allocas. Two different allocas usually have different addresses... 2105 // 2106 // However, if there's an @llvm.stackrestore dynamically in between two 2107 // allocas, they may have the same address. It's tempting to reduce the 2108 // scope of the problem by only looking at *static* allocas here. That would 2109 // cover the majority of allocas while significantly reducing the likelihood 2110 // of having an @llvm.stackrestore pop up in the middle. However, it's not 2111 // actually impossible for an @llvm.stackrestore to pop up in the middle of 2112 // an entry block. Also, if we have a block that's not attached to a 2113 // function, we can't tell if it's "static" under the current definition. 2114 // Theoretically, this problem could be fixed by creating a new kind of 2115 // instruction kind specifically for static allocas. Such a new instruction 2116 // could be required to be at the top of the entry block, thus preventing it 2117 // from being subject to a @llvm.stackrestore. Instcombine could even 2118 // convert regular allocas into these special allocas. It'd be nifty. 2119 // However, until then, this problem remains open. 2120 // 2121 // So, we'll assume that two non-empty allocas have different addresses 2122 // for now. 2123 // 2124 // With all that, if the offsets are within the bounds of their allocations 2125 // (and not one-past-the-end! so we can't use inbounds!), and their 2126 // allocations aren't the same, the pointers are not equal. 2127 // 2128 // Note that it's not necessary to check for LHS being a global variable 2129 // address, due to canonicalization and constant folding. 2130 if (isa<AllocaInst>(LHS) && 2131 (isa<AllocaInst>(RHS) || isa<GlobalVariable>(RHS))) { 2132 ConstantInt *LHSOffsetCI = dyn_cast<ConstantInt>(LHSOffset); 2133 ConstantInt *RHSOffsetCI = dyn_cast<ConstantInt>(RHSOffset); 2134 uint64_t LHSSize, RHSSize; 2135 ObjectSizeOpts Opts; 2136 Opts.NullIsUnknownSize = 2137 NullPointerIsDefined(cast<AllocaInst>(LHS)->getFunction()); 2138 if (LHSOffsetCI && RHSOffsetCI && 2139 getObjectSize(LHS, LHSSize, DL, TLI, Opts) && 2140 getObjectSize(RHS, RHSSize, DL, TLI, Opts)) { 2141 const APInt &LHSOffsetValue = LHSOffsetCI->getValue(); 2142 const APInt &RHSOffsetValue = RHSOffsetCI->getValue(); 2143 if (!LHSOffsetValue.isNegative() && 2144 !RHSOffsetValue.isNegative() && 2145 LHSOffsetValue.ult(LHSSize) && 2146 RHSOffsetValue.ult(RHSSize)) { 2147 return ConstantInt::get(GetCompareTy(LHS), 2148 !CmpInst::isTrueWhenEqual(Pred)); 2149 } 2150 } 2151 2152 // Repeat the above check but this time without depending on DataLayout 2153 // or being able to compute a precise size. 2154 if (!cast<PointerType>(LHS->getType())->isEmptyTy() && 2155 !cast<PointerType>(RHS->getType())->isEmptyTy() && 2156 LHSOffset->isNullValue() && 2157 RHSOffset->isNullValue()) 2158 return ConstantInt::get(GetCompareTy(LHS), 2159 !CmpInst::isTrueWhenEqual(Pred)); 2160 } 2161 2162 // Even if an non-inbounds GEP occurs along the path we can still optimize 2163 // equality comparisons concerning the result. We avoid walking the whole 2164 // chain again by starting where the last calls to 2165 // stripAndComputeConstantOffsets left off and accumulate the offsets. 2166 Constant *LHSNoBound = stripAndComputeConstantOffsets(DL, LHS, true); 2167 Constant *RHSNoBound = stripAndComputeConstantOffsets(DL, RHS, true); 2168 if (LHS == RHS) 2169 return ConstantExpr::getICmp(Pred, 2170 ConstantExpr::getAdd(LHSOffset, LHSNoBound), 2171 ConstantExpr::getAdd(RHSOffset, RHSNoBound)); 2172 2173 // If one side of the equality comparison must come from a noalias call 2174 // (meaning a system memory allocation function), and the other side must 2175 // come from a pointer that cannot overlap with dynamically-allocated 2176 // memory within the lifetime of the current function (allocas, byval 2177 // arguments, globals), then determine the comparison result here. 2178 SmallVector<Value *, 8> LHSUObjs, RHSUObjs; 2179 GetUnderlyingObjects(LHS, LHSUObjs, DL); 2180 GetUnderlyingObjects(RHS, RHSUObjs, DL); 2181 2182 // Is the set of underlying objects all noalias calls? 2183 auto IsNAC = [](ArrayRef<Value *> Objects) { 2184 return all_of(Objects, isNoAliasCall); 2185 }; 2186 2187 // Is the set of underlying objects all things which must be disjoint from 2188 // noalias calls. For allocas, we consider only static ones (dynamic 2189 // allocas might be transformed into calls to malloc not simultaneously 2190 // live with the compared-to allocation). For globals, we exclude symbols 2191 // that might be resolve lazily to symbols in another dynamically-loaded 2192 // library (and, thus, could be malloc'ed by the implementation). 2193 auto IsAllocDisjoint = [](ArrayRef<Value *> Objects) { 2194 return all_of(Objects, [](Value *V) { 2195 if (const AllocaInst *AI = dyn_cast<AllocaInst>(V)) 2196 return AI->getParent() && AI->getFunction() && AI->isStaticAlloca(); 2197 if (const GlobalValue *GV = dyn_cast<GlobalValue>(V)) 2198 return (GV->hasLocalLinkage() || GV->hasHiddenVisibility() || 2199 GV->hasProtectedVisibility() || GV->hasGlobalUnnamedAddr()) && 2200 !GV->isThreadLocal(); 2201 if (const Argument *A = dyn_cast<Argument>(V)) 2202 return A->hasByValAttr(); 2203 return false; 2204 }); 2205 }; 2206 2207 if ((IsNAC(LHSUObjs) && IsAllocDisjoint(RHSUObjs)) || 2208 (IsNAC(RHSUObjs) && IsAllocDisjoint(LHSUObjs))) 2209 return ConstantInt::get(GetCompareTy(LHS), 2210 !CmpInst::isTrueWhenEqual(Pred)); 2211 2212 // Fold comparisons for non-escaping pointer even if the allocation call 2213 // cannot be elided. We cannot fold malloc comparison to null. Also, the 2214 // dynamic allocation call could be either of the operands. 2215 Value *MI = nullptr; 2216 if (isAllocLikeFn(LHS, TLI) && 2217 llvm::isKnownNonZero(RHS, DL, 0, nullptr, CxtI, DT)) 2218 MI = LHS; 2219 else if (isAllocLikeFn(RHS, TLI) && 2220 llvm::isKnownNonZero(LHS, DL, 0, nullptr, CxtI, DT)) 2221 MI = RHS; 2222 // FIXME: We should also fold the compare when the pointer escapes, but the 2223 // compare dominates the pointer escape 2224 if (MI && !PointerMayBeCaptured(MI, true, true)) 2225 return ConstantInt::get(GetCompareTy(LHS), 2226 CmpInst::isFalseWhenEqual(Pred)); 2227 } 2228 2229 // Otherwise, fail. 2230 return nullptr; 2231 } 2232 2233 /// Fold an icmp when its operands have i1 scalar type. 2234 static Value *simplifyICmpOfBools(CmpInst::Predicate Pred, Value *LHS, 2235 Value *RHS, const SimplifyQuery &Q) { 2236 Type *ITy = GetCompareTy(LHS); // The return type. 2237 Type *OpTy = LHS->getType(); // The operand type. 2238 if (!OpTy->isIntOrIntVectorTy(1)) 2239 return nullptr; 2240 2241 // A boolean compared to true/false can be simplified in 14 out of the 20 2242 // (10 predicates * 2 constants) possible combinations. Cases not handled here 2243 // require a 'not' of the LHS, so those must be transformed in InstCombine. 2244 if (match(RHS, m_Zero())) { 2245 switch (Pred) { 2246 case CmpInst::ICMP_NE: // X != 0 -> X 2247 case CmpInst::ICMP_UGT: // X >u 0 -> X 2248 case CmpInst::ICMP_SLT: // X <s 0 -> X 2249 return LHS; 2250 2251 case CmpInst::ICMP_ULT: // X <u 0 -> false 2252 case CmpInst::ICMP_SGT: // X >s 0 -> false 2253 return getFalse(ITy); 2254 2255 case CmpInst::ICMP_UGE: // X >=u 0 -> true 2256 case CmpInst::ICMP_SLE: // X <=s 0 -> true 2257 return getTrue(ITy); 2258 2259 default: break; 2260 } 2261 } else if (match(RHS, m_One())) { 2262 switch (Pred) { 2263 case CmpInst::ICMP_EQ: // X == 1 -> X 2264 case CmpInst::ICMP_UGE: // X >=u 1 -> X 2265 case CmpInst::ICMP_SLE: // X <=s -1 -> X 2266 return LHS; 2267 2268 case CmpInst::ICMP_UGT: // X >u 1 -> false 2269 case CmpInst::ICMP_SLT: // X <s -1 -> false 2270 return getFalse(ITy); 2271 2272 case CmpInst::ICMP_ULE: // X <=u 1 -> true 2273 case CmpInst::ICMP_SGE: // X >=s -1 -> true 2274 return getTrue(ITy); 2275 2276 default: break; 2277 } 2278 } 2279 2280 switch (Pred) { 2281 default: 2282 break; 2283 case ICmpInst::ICMP_UGE: 2284 if (isImpliedCondition(RHS, LHS, Q.DL).getValueOr(false)) 2285 return getTrue(ITy); 2286 break; 2287 case ICmpInst::ICMP_SGE: 2288 /// For signed comparison, the values for an i1 are 0 and -1 2289 /// respectively. This maps into a truth table of: 2290 /// LHS | RHS | LHS >=s RHS | LHS implies RHS 2291 /// 0 | 0 | 1 (0 >= 0) | 1 2292 /// 0 | 1 | 1 (0 >= -1) | 1 2293 /// 1 | 0 | 0 (-1 >= 0) | 0 2294 /// 1 | 1 | 1 (-1 >= -1) | 1 2295 if (isImpliedCondition(LHS, RHS, Q.DL).getValueOr(false)) 2296 return getTrue(ITy); 2297 break; 2298 case ICmpInst::ICMP_ULE: 2299 if (isImpliedCondition(LHS, RHS, Q.DL).getValueOr(false)) 2300 return getTrue(ITy); 2301 break; 2302 } 2303 2304 return nullptr; 2305 } 2306 2307 /// Try hard to fold icmp with zero RHS because this is a common case. 2308 static Value *simplifyICmpWithZero(CmpInst::Predicate Pred, Value *LHS, 2309 Value *RHS, const SimplifyQuery &Q) { 2310 if (!match(RHS, m_Zero())) 2311 return nullptr; 2312 2313 Type *ITy = GetCompareTy(LHS); // The return type. 2314 switch (Pred) { 2315 default: 2316 llvm_unreachable("Unknown ICmp predicate!"); 2317 case ICmpInst::ICMP_ULT: 2318 return getFalse(ITy); 2319 case ICmpInst::ICMP_UGE: 2320 return getTrue(ITy); 2321 case ICmpInst::ICMP_EQ: 2322 case ICmpInst::ICMP_ULE: 2323 if (isKnownNonZero(LHS, Q.DL, 0, Q.AC, Q.CxtI, Q.DT)) 2324 return getFalse(ITy); 2325 break; 2326 case ICmpInst::ICMP_NE: 2327 case ICmpInst::ICMP_UGT: 2328 if (isKnownNonZero(LHS, Q.DL, 0, Q.AC, Q.CxtI, Q.DT)) 2329 return getTrue(ITy); 2330 break; 2331 case ICmpInst::ICMP_SLT: { 2332 KnownBits LHSKnown = computeKnownBits(LHS, Q.DL, 0, Q.AC, Q.CxtI, Q.DT); 2333 if (LHSKnown.isNegative()) 2334 return getTrue(ITy); 2335 if (LHSKnown.isNonNegative()) 2336 return getFalse(ITy); 2337 break; 2338 } 2339 case ICmpInst::ICMP_SLE: { 2340 KnownBits LHSKnown = computeKnownBits(LHS, Q.DL, 0, Q.AC, Q.CxtI, Q.DT); 2341 if (LHSKnown.isNegative()) 2342 return getTrue(ITy); 2343 if (LHSKnown.isNonNegative() && 2344 isKnownNonZero(LHS, Q.DL, 0, Q.AC, Q.CxtI, Q.DT)) 2345 return getFalse(ITy); 2346 break; 2347 } 2348 case ICmpInst::ICMP_SGE: { 2349 KnownBits LHSKnown = computeKnownBits(LHS, Q.DL, 0, Q.AC, Q.CxtI, Q.DT); 2350 if (LHSKnown.isNegative()) 2351 return getFalse(ITy); 2352 if (LHSKnown.isNonNegative()) 2353 return getTrue(ITy); 2354 break; 2355 } 2356 case ICmpInst::ICMP_SGT: { 2357 KnownBits LHSKnown = computeKnownBits(LHS, Q.DL, 0, Q.AC, Q.CxtI, Q.DT); 2358 if (LHSKnown.isNegative()) 2359 return getFalse(ITy); 2360 if (LHSKnown.isNonNegative() && 2361 isKnownNonZero(LHS, Q.DL, 0, Q.AC, Q.CxtI, Q.DT)) 2362 return getTrue(ITy); 2363 break; 2364 } 2365 } 2366 2367 return nullptr; 2368 } 2369 2370 /// Many binary operators with a constant operand have an easy-to-compute 2371 /// range of outputs. This can be used to fold a comparison to always true or 2372 /// always false. 2373 static void setLimitsForBinOp(BinaryOperator &BO, APInt &Lower, APInt &Upper) { 2374 unsigned Width = Lower.getBitWidth(); 2375 const APInt *C; 2376 switch (BO.getOpcode()) { 2377 case Instruction::Add: 2378 if (match(BO.getOperand(1), m_APInt(C)) && !C->isNullValue()) { 2379 // FIXME: If we have both nuw and nsw, we should reduce the range further. 2380 if (BO.hasNoUnsignedWrap()) { 2381 // 'add nuw x, C' produces [C, UINT_MAX]. 2382 Lower = *C; 2383 } else if (BO.hasNoSignedWrap()) { 2384 if (C->isNegative()) { 2385 // 'add nsw x, -C' produces [SINT_MIN, SINT_MAX - C]. 2386 Lower = APInt::getSignedMinValue(Width); 2387 Upper = APInt::getSignedMaxValue(Width) + *C + 1; 2388 } else { 2389 // 'add nsw x, +C' produces [SINT_MIN + C, SINT_MAX]. 2390 Lower = APInt::getSignedMinValue(Width) + *C; 2391 Upper = APInt::getSignedMaxValue(Width) + 1; 2392 } 2393 } 2394 } 2395 break; 2396 2397 case Instruction::And: 2398 if (match(BO.getOperand(1), m_APInt(C))) 2399 // 'and x, C' produces [0, C]. 2400 Upper = *C + 1; 2401 break; 2402 2403 case Instruction::Or: 2404 if (match(BO.getOperand(1), m_APInt(C))) 2405 // 'or x, C' produces [C, UINT_MAX]. 2406 Lower = *C; 2407 break; 2408 2409 case Instruction::AShr: 2410 if (match(BO.getOperand(1), m_APInt(C)) && C->ult(Width)) { 2411 // 'ashr x, C' produces [INT_MIN >> C, INT_MAX >> C]. 2412 Lower = APInt::getSignedMinValue(Width).ashr(*C); 2413 Upper = APInt::getSignedMaxValue(Width).ashr(*C) + 1; 2414 } else if (match(BO.getOperand(0), m_APInt(C))) { 2415 unsigned ShiftAmount = Width - 1; 2416 if (!C->isNullValue() && BO.isExact()) 2417 ShiftAmount = C->countTrailingZeros(); 2418 if (C->isNegative()) { 2419 // 'ashr C, x' produces [C, C >> (Width-1)] 2420 Lower = *C; 2421 Upper = C->ashr(ShiftAmount) + 1; 2422 } else { 2423 // 'ashr C, x' produces [C >> (Width-1), C] 2424 Lower = C->ashr(ShiftAmount); 2425 Upper = *C + 1; 2426 } 2427 } 2428 break; 2429 2430 case Instruction::LShr: 2431 if (match(BO.getOperand(1), m_APInt(C)) && C->ult(Width)) { 2432 // 'lshr x, C' produces [0, UINT_MAX >> C]. 2433 Upper = APInt::getAllOnesValue(Width).lshr(*C) + 1; 2434 } else if (match(BO.getOperand(0), m_APInt(C))) { 2435 // 'lshr C, x' produces [C >> (Width-1), C]. 2436 unsigned ShiftAmount = Width - 1; 2437 if (!C->isNullValue() && BO.isExact()) 2438 ShiftAmount = C->countTrailingZeros(); 2439 Lower = C->lshr(ShiftAmount); 2440 Upper = *C + 1; 2441 } 2442 break; 2443 2444 case Instruction::Shl: 2445 if (match(BO.getOperand(0), m_APInt(C))) { 2446 if (BO.hasNoUnsignedWrap()) { 2447 // 'shl nuw C, x' produces [C, C << CLZ(C)] 2448 Lower = *C; 2449 Upper = Lower.shl(Lower.countLeadingZeros()) + 1; 2450 } else if (BO.hasNoSignedWrap()) { // TODO: What if both nuw+nsw? 2451 if (C->isNegative()) { 2452 // 'shl nsw C, x' produces [C << CLO(C)-1, C] 2453 unsigned ShiftAmount = C->countLeadingOnes() - 1; 2454 Lower = C->shl(ShiftAmount); 2455 Upper = *C + 1; 2456 } else { 2457 // 'shl nsw C, x' produces [C, C << CLZ(C)-1] 2458 unsigned ShiftAmount = C->countLeadingZeros() - 1; 2459 Lower = *C; 2460 Upper = C->shl(ShiftAmount) + 1; 2461 } 2462 } 2463 } 2464 break; 2465 2466 case Instruction::SDiv: 2467 if (match(BO.getOperand(1), m_APInt(C))) { 2468 APInt IntMin = APInt::getSignedMinValue(Width); 2469 APInt IntMax = APInt::getSignedMaxValue(Width); 2470 if (C->isAllOnesValue()) { 2471 // 'sdiv x, -1' produces [INT_MIN + 1, INT_MAX] 2472 // where C != -1 and C != 0 and C != 1 2473 Lower = IntMin + 1; 2474 Upper = IntMax + 1; 2475 } else if (C->countLeadingZeros() < Width - 1) { 2476 // 'sdiv x, C' produces [INT_MIN / C, INT_MAX / C] 2477 // where C != -1 and C != 0 and C != 1 2478 Lower = IntMin.sdiv(*C); 2479 Upper = IntMax.sdiv(*C); 2480 if (Lower.sgt(Upper)) 2481 std::swap(Lower, Upper); 2482 Upper = Upper + 1; 2483 assert(Upper != Lower && "Upper part of range has wrapped!"); 2484 } 2485 } else if (match(BO.getOperand(0), m_APInt(C))) { 2486 if (C->isMinSignedValue()) { 2487 // 'sdiv INT_MIN, x' produces [INT_MIN, INT_MIN / -2]. 2488 Lower = *C; 2489 Upper = Lower.lshr(1) + 1; 2490 } else { 2491 // 'sdiv C, x' produces [-|C|, |C|]. 2492 Upper = C->abs() + 1; 2493 Lower = (-Upper) + 1; 2494 } 2495 } 2496 break; 2497 2498 case Instruction::UDiv: 2499 if (match(BO.getOperand(1), m_APInt(C)) && !C->isNullValue()) { 2500 // 'udiv x, C' produces [0, UINT_MAX / C]. 2501 Upper = APInt::getMaxValue(Width).udiv(*C) + 1; 2502 } else if (match(BO.getOperand(0), m_APInt(C))) { 2503 // 'udiv C, x' produces [0, C]. 2504 Upper = *C + 1; 2505 } 2506 break; 2507 2508 case Instruction::SRem: 2509 if (match(BO.getOperand(1), m_APInt(C))) { 2510 // 'srem x, C' produces (-|C|, |C|). 2511 Upper = C->abs(); 2512 Lower = (-Upper) + 1; 2513 } 2514 break; 2515 2516 case Instruction::URem: 2517 if (match(BO.getOperand(1), m_APInt(C))) 2518 // 'urem x, C' produces [0, C). 2519 Upper = *C; 2520 break; 2521 2522 default: 2523 break; 2524 } 2525 } 2526 2527 static Value *simplifyICmpWithConstant(CmpInst::Predicate Pred, Value *LHS, 2528 Value *RHS) { 2529 Type *ITy = GetCompareTy(RHS); // The return type. 2530 2531 Value *X; 2532 // Sign-bit checks can be optimized to true/false after unsigned 2533 // floating-point casts: 2534 // icmp slt (bitcast (uitofp X)), 0 --> false 2535 // icmp sgt (bitcast (uitofp X)), -1 --> true 2536 if (match(LHS, m_BitCast(m_UIToFP(m_Value(X))))) { 2537 if (Pred == ICmpInst::ICMP_SLT && match(RHS, m_Zero())) 2538 return ConstantInt::getFalse(ITy); 2539 if (Pred == ICmpInst::ICMP_SGT && match(RHS, m_AllOnes())) 2540 return ConstantInt::getTrue(ITy); 2541 } 2542 2543 const APInt *C; 2544 if (!match(RHS, m_APInt(C))) 2545 return nullptr; 2546 2547 // Rule out tautological comparisons (eg., ult 0 or uge 0). 2548 ConstantRange RHS_CR = ConstantRange::makeExactICmpRegion(Pred, *C); 2549 if (RHS_CR.isEmptySet()) 2550 return ConstantInt::getFalse(ITy); 2551 if (RHS_CR.isFullSet()) 2552 return ConstantInt::getTrue(ITy); 2553 2554 // Find the range of possible values for binary operators. 2555 unsigned Width = C->getBitWidth(); 2556 APInt Lower = APInt(Width, 0); 2557 APInt Upper = APInt(Width, 0); 2558 if (auto *BO = dyn_cast<BinaryOperator>(LHS)) 2559 setLimitsForBinOp(*BO, Lower, Upper); 2560 2561 ConstantRange LHS_CR = 2562 Lower != Upper ? ConstantRange(Lower, Upper) : ConstantRange(Width, true); 2563 2564 if (auto *I = dyn_cast<Instruction>(LHS)) 2565 if (auto *Ranges = I->getMetadata(LLVMContext::MD_range)) 2566 LHS_CR = LHS_CR.intersectWith(getConstantRangeFromMetadata(*Ranges)); 2567 2568 if (!LHS_CR.isFullSet()) { 2569 if (RHS_CR.contains(LHS_CR)) 2570 return ConstantInt::getTrue(ITy); 2571 if (RHS_CR.inverse().contains(LHS_CR)) 2572 return ConstantInt::getFalse(ITy); 2573 } 2574 2575 return nullptr; 2576 } 2577 2578 /// TODO: A large part of this logic is duplicated in InstCombine's 2579 /// foldICmpBinOp(). We should be able to share that and avoid the code 2580 /// duplication. 2581 static Value *simplifyICmpWithBinOp(CmpInst::Predicate Pred, Value *LHS, 2582 Value *RHS, const SimplifyQuery &Q, 2583 unsigned MaxRecurse) { 2584 Type *ITy = GetCompareTy(LHS); // The return type. 2585 2586 BinaryOperator *LBO = dyn_cast<BinaryOperator>(LHS); 2587 BinaryOperator *RBO = dyn_cast<BinaryOperator>(RHS); 2588 if (MaxRecurse && (LBO || RBO)) { 2589 // Analyze the case when either LHS or RHS is an add instruction. 2590 Value *A = nullptr, *B = nullptr, *C = nullptr, *D = nullptr; 2591 // LHS = A + B (or A and B are null); RHS = C + D (or C and D are null). 2592 bool NoLHSWrapProblem = false, NoRHSWrapProblem = false; 2593 if (LBO && LBO->getOpcode() == Instruction::Add) { 2594 A = LBO->getOperand(0); 2595 B = LBO->getOperand(1); 2596 NoLHSWrapProblem = 2597 ICmpInst::isEquality(Pred) || 2598 (CmpInst::isUnsigned(Pred) && LBO->hasNoUnsignedWrap()) || 2599 (CmpInst::isSigned(Pred) && LBO->hasNoSignedWrap()); 2600 } 2601 if (RBO && RBO->getOpcode() == Instruction::Add) { 2602 C = RBO->getOperand(0); 2603 D = RBO->getOperand(1); 2604 NoRHSWrapProblem = 2605 ICmpInst::isEquality(Pred) || 2606 (CmpInst::isUnsigned(Pred) && RBO->hasNoUnsignedWrap()) || 2607 (CmpInst::isSigned(Pred) && RBO->hasNoSignedWrap()); 2608 } 2609 2610 // icmp (X+Y), X -> icmp Y, 0 for equalities or if there is no overflow. 2611 if ((A == RHS || B == RHS) && NoLHSWrapProblem) 2612 if (Value *V = SimplifyICmpInst(Pred, A == RHS ? B : A, 2613 Constant::getNullValue(RHS->getType()), Q, 2614 MaxRecurse - 1)) 2615 return V; 2616 2617 // icmp X, (X+Y) -> icmp 0, Y for equalities or if there is no overflow. 2618 if ((C == LHS || D == LHS) && NoRHSWrapProblem) 2619 if (Value *V = 2620 SimplifyICmpInst(Pred, Constant::getNullValue(LHS->getType()), 2621 C == LHS ? D : C, Q, MaxRecurse - 1)) 2622 return V; 2623 2624 // icmp (X+Y), (X+Z) -> icmp Y,Z for equalities or if there is no overflow. 2625 if (A && C && (A == C || A == D || B == C || B == D) && NoLHSWrapProblem && 2626 NoRHSWrapProblem) { 2627 // Determine Y and Z in the form icmp (X+Y), (X+Z). 2628 Value *Y, *Z; 2629 if (A == C) { 2630 // C + B == C + D -> B == D 2631 Y = B; 2632 Z = D; 2633 } else if (A == D) { 2634 // D + B == C + D -> B == C 2635 Y = B; 2636 Z = C; 2637 } else if (B == C) { 2638 // A + C == C + D -> A == D 2639 Y = A; 2640 Z = D; 2641 } else { 2642 assert(B == D); 2643 // A + D == C + D -> A == C 2644 Y = A; 2645 Z = C; 2646 } 2647 if (Value *V = SimplifyICmpInst(Pred, Y, Z, Q, MaxRecurse - 1)) 2648 return V; 2649 } 2650 } 2651 2652 { 2653 Value *Y = nullptr; 2654 // icmp pred (or X, Y), X 2655 if (LBO && match(LBO, m_c_Or(m_Value(Y), m_Specific(RHS)))) { 2656 if (Pred == ICmpInst::ICMP_ULT) 2657 return getFalse(ITy); 2658 if (Pred == ICmpInst::ICMP_UGE) 2659 return getTrue(ITy); 2660 2661 if (Pred == ICmpInst::ICMP_SLT || Pred == ICmpInst::ICMP_SGE) { 2662 KnownBits RHSKnown = computeKnownBits(RHS, Q.DL, 0, Q.AC, Q.CxtI, Q.DT); 2663 KnownBits YKnown = computeKnownBits(Y, Q.DL, 0, Q.AC, Q.CxtI, Q.DT); 2664 if (RHSKnown.isNonNegative() && YKnown.isNegative()) 2665 return Pred == ICmpInst::ICMP_SLT ? getTrue(ITy) : getFalse(ITy); 2666 if (RHSKnown.isNegative() || YKnown.isNonNegative()) 2667 return Pred == ICmpInst::ICMP_SLT ? getFalse(ITy) : getTrue(ITy); 2668 } 2669 } 2670 // icmp pred X, (or X, Y) 2671 if (RBO && match(RBO, m_c_Or(m_Value(Y), m_Specific(LHS)))) { 2672 if (Pred == ICmpInst::ICMP_ULE) 2673 return getTrue(ITy); 2674 if (Pred == ICmpInst::ICMP_UGT) 2675 return getFalse(ITy); 2676 2677 if (Pred == ICmpInst::ICMP_SGT || Pred == ICmpInst::ICMP_SLE) { 2678 KnownBits LHSKnown = computeKnownBits(LHS, Q.DL, 0, Q.AC, Q.CxtI, Q.DT); 2679 KnownBits YKnown = computeKnownBits(Y, Q.DL, 0, Q.AC, Q.CxtI, Q.DT); 2680 if (LHSKnown.isNonNegative() && YKnown.isNegative()) 2681 return Pred == ICmpInst::ICMP_SGT ? getTrue(ITy) : getFalse(ITy); 2682 if (LHSKnown.isNegative() || YKnown.isNonNegative()) 2683 return Pred == ICmpInst::ICMP_SGT ? getFalse(ITy) : getTrue(ITy); 2684 } 2685 } 2686 } 2687 2688 // icmp pred (and X, Y), X 2689 if (LBO && match(LBO, m_c_And(m_Value(), m_Specific(RHS)))) { 2690 if (Pred == ICmpInst::ICMP_UGT) 2691 return getFalse(ITy); 2692 if (Pred == ICmpInst::ICMP_ULE) 2693 return getTrue(ITy); 2694 } 2695 // icmp pred X, (and X, Y) 2696 if (RBO && match(RBO, m_c_And(m_Value(), m_Specific(LHS)))) { 2697 if (Pred == ICmpInst::ICMP_UGE) 2698 return getTrue(ITy); 2699 if (Pred == ICmpInst::ICMP_ULT) 2700 return getFalse(ITy); 2701 } 2702 2703 // 0 - (zext X) pred C 2704 if (!CmpInst::isUnsigned(Pred) && match(LHS, m_Neg(m_ZExt(m_Value())))) { 2705 if (ConstantInt *RHSC = dyn_cast<ConstantInt>(RHS)) { 2706 if (RHSC->getValue().isStrictlyPositive()) { 2707 if (Pred == ICmpInst::ICMP_SLT) 2708 return ConstantInt::getTrue(RHSC->getContext()); 2709 if (Pred == ICmpInst::ICMP_SGE) 2710 return ConstantInt::getFalse(RHSC->getContext()); 2711 if (Pred == ICmpInst::ICMP_EQ) 2712 return ConstantInt::getFalse(RHSC->getContext()); 2713 if (Pred == ICmpInst::ICMP_NE) 2714 return ConstantInt::getTrue(RHSC->getContext()); 2715 } 2716 if (RHSC->getValue().isNonNegative()) { 2717 if (Pred == ICmpInst::ICMP_SLE) 2718 return ConstantInt::getTrue(RHSC->getContext()); 2719 if (Pred == ICmpInst::ICMP_SGT) 2720 return ConstantInt::getFalse(RHSC->getContext()); 2721 } 2722 } 2723 } 2724 2725 // icmp pred (urem X, Y), Y 2726 if (LBO && match(LBO, m_URem(m_Value(), m_Specific(RHS)))) { 2727 switch (Pred) { 2728 default: 2729 break; 2730 case ICmpInst::ICMP_SGT: 2731 case ICmpInst::ICMP_SGE: { 2732 KnownBits Known = computeKnownBits(RHS, Q.DL, 0, Q.AC, Q.CxtI, Q.DT); 2733 if (!Known.isNonNegative()) 2734 break; 2735 LLVM_FALLTHROUGH; 2736 } 2737 case ICmpInst::ICMP_EQ: 2738 case ICmpInst::ICMP_UGT: 2739 case ICmpInst::ICMP_UGE: 2740 return getFalse(ITy); 2741 case ICmpInst::ICMP_SLT: 2742 case ICmpInst::ICMP_SLE: { 2743 KnownBits Known = computeKnownBits(RHS, Q.DL, 0, Q.AC, Q.CxtI, Q.DT); 2744 if (!Known.isNonNegative()) 2745 break; 2746 LLVM_FALLTHROUGH; 2747 } 2748 case ICmpInst::ICMP_NE: 2749 case ICmpInst::ICMP_ULT: 2750 case ICmpInst::ICMP_ULE: 2751 return getTrue(ITy); 2752 } 2753 } 2754 2755 // icmp pred X, (urem Y, X) 2756 if (RBO && match(RBO, m_URem(m_Value(), m_Specific(LHS)))) { 2757 switch (Pred) { 2758 default: 2759 break; 2760 case ICmpInst::ICMP_SGT: 2761 case ICmpInst::ICMP_SGE: { 2762 KnownBits Known = computeKnownBits(LHS, Q.DL, 0, Q.AC, Q.CxtI, Q.DT); 2763 if (!Known.isNonNegative()) 2764 break; 2765 LLVM_FALLTHROUGH; 2766 } 2767 case ICmpInst::ICMP_NE: 2768 case ICmpInst::ICMP_UGT: 2769 case ICmpInst::ICMP_UGE: 2770 return getTrue(ITy); 2771 case ICmpInst::ICMP_SLT: 2772 case ICmpInst::ICMP_SLE: { 2773 KnownBits Known = computeKnownBits(LHS, Q.DL, 0, Q.AC, Q.CxtI, Q.DT); 2774 if (!Known.isNonNegative()) 2775 break; 2776 LLVM_FALLTHROUGH; 2777 } 2778 case ICmpInst::ICMP_EQ: 2779 case ICmpInst::ICMP_ULT: 2780 case ICmpInst::ICMP_ULE: 2781 return getFalse(ITy); 2782 } 2783 } 2784 2785 // x >> y <=u x 2786 // x udiv y <=u x. 2787 if (LBO && (match(LBO, m_LShr(m_Specific(RHS), m_Value())) || 2788 match(LBO, m_UDiv(m_Specific(RHS), m_Value())))) { 2789 // icmp pred (X op Y), X 2790 if (Pred == ICmpInst::ICMP_UGT) 2791 return getFalse(ITy); 2792 if (Pred == ICmpInst::ICMP_ULE) 2793 return getTrue(ITy); 2794 } 2795 2796 // x >=u x >> y 2797 // x >=u x udiv y. 2798 if (RBO && (match(RBO, m_LShr(m_Specific(LHS), m_Value())) || 2799 match(RBO, m_UDiv(m_Specific(LHS), m_Value())))) { 2800 // icmp pred X, (X op Y) 2801 if (Pred == ICmpInst::ICMP_ULT) 2802 return getFalse(ITy); 2803 if (Pred == ICmpInst::ICMP_UGE) 2804 return getTrue(ITy); 2805 } 2806 2807 // handle: 2808 // CI2 << X == CI 2809 // CI2 << X != CI 2810 // 2811 // where CI2 is a power of 2 and CI isn't 2812 if (auto *CI = dyn_cast<ConstantInt>(RHS)) { 2813 const APInt *CI2Val, *CIVal = &CI->getValue(); 2814 if (LBO && match(LBO, m_Shl(m_APInt(CI2Val), m_Value())) && 2815 CI2Val->isPowerOf2()) { 2816 if (!CIVal->isPowerOf2()) { 2817 // CI2 << X can equal zero in some circumstances, 2818 // this simplification is unsafe if CI is zero. 2819 // 2820 // We know it is safe if: 2821 // - The shift is nsw, we can't shift out the one bit. 2822 // - The shift is nuw, we can't shift out the one bit. 2823 // - CI2 is one 2824 // - CI isn't zero 2825 if (LBO->hasNoSignedWrap() || LBO->hasNoUnsignedWrap() || 2826 CI2Val->isOneValue() || !CI->isZero()) { 2827 if (Pred == ICmpInst::ICMP_EQ) 2828 return ConstantInt::getFalse(RHS->getContext()); 2829 if (Pred == ICmpInst::ICMP_NE) 2830 return ConstantInt::getTrue(RHS->getContext()); 2831 } 2832 } 2833 if (CIVal->isSignMask() && CI2Val->isOneValue()) { 2834 if (Pred == ICmpInst::ICMP_UGT) 2835 return ConstantInt::getFalse(RHS->getContext()); 2836 if (Pred == ICmpInst::ICMP_ULE) 2837 return ConstantInt::getTrue(RHS->getContext()); 2838 } 2839 } 2840 } 2841 2842 if (MaxRecurse && LBO && RBO && LBO->getOpcode() == RBO->getOpcode() && 2843 LBO->getOperand(1) == RBO->getOperand(1)) { 2844 switch (LBO->getOpcode()) { 2845 default: 2846 break; 2847 case Instruction::UDiv: 2848 case Instruction::LShr: 2849 if (ICmpInst::isSigned(Pred) || !LBO->isExact() || !RBO->isExact()) 2850 break; 2851 if (Value *V = SimplifyICmpInst(Pred, LBO->getOperand(0), 2852 RBO->getOperand(0), Q, MaxRecurse - 1)) 2853 return V; 2854 break; 2855 case Instruction::SDiv: 2856 if (!ICmpInst::isEquality(Pred) || !LBO->isExact() || !RBO->isExact()) 2857 break; 2858 if (Value *V = SimplifyICmpInst(Pred, LBO->getOperand(0), 2859 RBO->getOperand(0), Q, MaxRecurse - 1)) 2860 return V; 2861 break; 2862 case Instruction::AShr: 2863 if (!LBO->isExact() || !RBO->isExact()) 2864 break; 2865 if (Value *V = SimplifyICmpInst(Pred, LBO->getOperand(0), 2866 RBO->getOperand(0), Q, MaxRecurse - 1)) 2867 return V; 2868 break; 2869 case Instruction::Shl: { 2870 bool NUW = LBO->hasNoUnsignedWrap() && RBO->hasNoUnsignedWrap(); 2871 bool NSW = LBO->hasNoSignedWrap() && RBO->hasNoSignedWrap(); 2872 if (!NUW && !NSW) 2873 break; 2874 if (!NSW && ICmpInst::isSigned(Pred)) 2875 break; 2876 if (Value *V = SimplifyICmpInst(Pred, LBO->getOperand(0), 2877 RBO->getOperand(0), Q, MaxRecurse - 1)) 2878 return V; 2879 break; 2880 } 2881 } 2882 } 2883 return nullptr; 2884 } 2885 2886 /// Simplify integer comparisons where at least one operand of the compare 2887 /// matches an integer min/max idiom. 2888 static Value *simplifyICmpWithMinMax(CmpInst::Predicate Pred, Value *LHS, 2889 Value *RHS, const SimplifyQuery &Q, 2890 unsigned MaxRecurse) { 2891 Type *ITy = GetCompareTy(LHS); // The return type. 2892 Value *A, *B; 2893 CmpInst::Predicate P = CmpInst::BAD_ICMP_PREDICATE; 2894 CmpInst::Predicate EqP; // Chosen so that "A == max/min(A,B)" iff "A EqP B". 2895 2896 // Signed variants on "max(a,b)>=a -> true". 2897 if (match(LHS, m_SMax(m_Value(A), m_Value(B))) && (A == RHS || B == RHS)) { 2898 if (A != RHS) 2899 std::swap(A, B); // smax(A, B) pred A. 2900 EqP = CmpInst::ICMP_SGE; // "A == smax(A, B)" iff "A sge B". 2901 // We analyze this as smax(A, B) pred A. 2902 P = Pred; 2903 } else if (match(RHS, m_SMax(m_Value(A), m_Value(B))) && 2904 (A == LHS || B == LHS)) { 2905 if (A != LHS) 2906 std::swap(A, B); // A pred smax(A, B). 2907 EqP = CmpInst::ICMP_SGE; // "A == smax(A, B)" iff "A sge B". 2908 // We analyze this as smax(A, B) swapped-pred A. 2909 P = CmpInst::getSwappedPredicate(Pred); 2910 } else if (match(LHS, m_SMin(m_Value(A), m_Value(B))) && 2911 (A == RHS || B == RHS)) { 2912 if (A != RHS) 2913 std::swap(A, B); // smin(A, B) pred A. 2914 EqP = CmpInst::ICMP_SLE; // "A == smin(A, B)" iff "A sle B". 2915 // We analyze this as smax(-A, -B) swapped-pred -A. 2916 // Note that we do not need to actually form -A or -B thanks to EqP. 2917 P = CmpInst::getSwappedPredicate(Pred); 2918 } else if (match(RHS, m_SMin(m_Value(A), m_Value(B))) && 2919 (A == LHS || B == LHS)) { 2920 if (A != LHS) 2921 std::swap(A, B); // A pred smin(A, B). 2922 EqP = CmpInst::ICMP_SLE; // "A == smin(A, B)" iff "A sle B". 2923 // We analyze this as smax(-A, -B) pred -A. 2924 // Note that we do not need to actually form -A or -B thanks to EqP. 2925 P = Pred; 2926 } 2927 if (P != CmpInst::BAD_ICMP_PREDICATE) { 2928 // Cases correspond to "max(A, B) p A". 2929 switch (P) { 2930 default: 2931 break; 2932 case CmpInst::ICMP_EQ: 2933 case CmpInst::ICMP_SLE: 2934 // Equivalent to "A EqP B". This may be the same as the condition tested 2935 // in the max/min; if so, we can just return that. 2936 if (Value *V = ExtractEquivalentCondition(LHS, EqP, A, B)) 2937 return V; 2938 if (Value *V = ExtractEquivalentCondition(RHS, EqP, A, B)) 2939 return V; 2940 // Otherwise, see if "A EqP B" simplifies. 2941 if (MaxRecurse) 2942 if (Value *V = SimplifyICmpInst(EqP, A, B, Q, MaxRecurse - 1)) 2943 return V; 2944 break; 2945 case CmpInst::ICMP_NE: 2946 case CmpInst::ICMP_SGT: { 2947 CmpInst::Predicate InvEqP = CmpInst::getInversePredicate(EqP); 2948 // Equivalent to "A InvEqP B". This may be the same as the condition 2949 // tested in the max/min; if so, we can just return that. 2950 if (Value *V = ExtractEquivalentCondition(LHS, InvEqP, A, B)) 2951 return V; 2952 if (Value *V = ExtractEquivalentCondition(RHS, InvEqP, A, B)) 2953 return V; 2954 // Otherwise, see if "A InvEqP B" simplifies. 2955 if (MaxRecurse) 2956 if (Value *V = SimplifyICmpInst(InvEqP, A, B, Q, MaxRecurse - 1)) 2957 return V; 2958 break; 2959 } 2960 case CmpInst::ICMP_SGE: 2961 // Always true. 2962 return getTrue(ITy); 2963 case CmpInst::ICMP_SLT: 2964 // Always false. 2965 return getFalse(ITy); 2966 } 2967 } 2968 2969 // Unsigned variants on "max(a,b)>=a -> true". 2970 P = CmpInst::BAD_ICMP_PREDICATE; 2971 if (match(LHS, m_UMax(m_Value(A), m_Value(B))) && (A == RHS || B == RHS)) { 2972 if (A != RHS) 2973 std::swap(A, B); // umax(A, B) pred A. 2974 EqP = CmpInst::ICMP_UGE; // "A == umax(A, B)" iff "A uge B". 2975 // We analyze this as umax(A, B) pred A. 2976 P = Pred; 2977 } else if (match(RHS, m_UMax(m_Value(A), m_Value(B))) && 2978 (A == LHS || B == LHS)) { 2979 if (A != LHS) 2980 std::swap(A, B); // A pred umax(A, B). 2981 EqP = CmpInst::ICMP_UGE; // "A == umax(A, B)" iff "A uge B". 2982 // We analyze this as umax(A, B) swapped-pred A. 2983 P = CmpInst::getSwappedPredicate(Pred); 2984 } else if (match(LHS, m_UMin(m_Value(A), m_Value(B))) && 2985 (A == RHS || B == RHS)) { 2986 if (A != RHS) 2987 std::swap(A, B); // umin(A, B) pred A. 2988 EqP = CmpInst::ICMP_ULE; // "A == umin(A, B)" iff "A ule B". 2989 // We analyze this as umax(-A, -B) swapped-pred -A. 2990 // Note that we do not need to actually form -A or -B thanks to EqP. 2991 P = CmpInst::getSwappedPredicate(Pred); 2992 } else if (match(RHS, m_UMin(m_Value(A), m_Value(B))) && 2993 (A == LHS || B == LHS)) { 2994 if (A != LHS) 2995 std::swap(A, B); // A pred umin(A, B). 2996 EqP = CmpInst::ICMP_ULE; // "A == umin(A, B)" iff "A ule B". 2997 // We analyze this as umax(-A, -B) pred -A. 2998 // Note that we do not need to actually form -A or -B thanks to EqP. 2999 P = Pred; 3000 } 3001 if (P != CmpInst::BAD_ICMP_PREDICATE) { 3002 // Cases correspond to "max(A, B) p A". 3003 switch (P) { 3004 default: 3005 break; 3006 case CmpInst::ICMP_EQ: 3007 case CmpInst::ICMP_ULE: 3008 // Equivalent to "A EqP B". This may be the same as the condition tested 3009 // in the max/min; if so, we can just return that. 3010 if (Value *V = ExtractEquivalentCondition(LHS, EqP, A, B)) 3011 return V; 3012 if (Value *V = ExtractEquivalentCondition(RHS, EqP, A, B)) 3013 return V; 3014 // Otherwise, see if "A EqP B" simplifies. 3015 if (MaxRecurse) 3016 if (Value *V = SimplifyICmpInst(EqP, A, B, Q, MaxRecurse - 1)) 3017 return V; 3018 break; 3019 case CmpInst::ICMP_NE: 3020 case CmpInst::ICMP_UGT: { 3021 CmpInst::Predicate InvEqP = CmpInst::getInversePredicate(EqP); 3022 // Equivalent to "A InvEqP B". This may be the same as the condition 3023 // tested in the max/min; if so, we can just return that. 3024 if (Value *V = ExtractEquivalentCondition(LHS, InvEqP, A, B)) 3025 return V; 3026 if (Value *V = ExtractEquivalentCondition(RHS, InvEqP, A, B)) 3027 return V; 3028 // Otherwise, see if "A InvEqP B" simplifies. 3029 if (MaxRecurse) 3030 if (Value *V = SimplifyICmpInst(InvEqP, A, B, Q, MaxRecurse - 1)) 3031 return V; 3032 break; 3033 } 3034 case CmpInst::ICMP_UGE: 3035 // Always true. 3036 return getTrue(ITy); 3037 case CmpInst::ICMP_ULT: 3038 // Always false. 3039 return getFalse(ITy); 3040 } 3041 } 3042 3043 // Variants on "max(x,y) >= min(x,z)". 3044 Value *C, *D; 3045 if (match(LHS, m_SMax(m_Value(A), m_Value(B))) && 3046 match(RHS, m_SMin(m_Value(C), m_Value(D))) && 3047 (A == C || A == D || B == C || B == D)) { 3048 // max(x, ?) pred min(x, ?). 3049 if (Pred == CmpInst::ICMP_SGE) 3050 // Always true. 3051 return getTrue(ITy); 3052 if (Pred == CmpInst::ICMP_SLT) 3053 // Always false. 3054 return getFalse(ITy); 3055 } else if (match(LHS, m_SMin(m_Value(A), m_Value(B))) && 3056 match(RHS, m_SMax(m_Value(C), m_Value(D))) && 3057 (A == C || A == D || B == C || B == D)) { 3058 // min(x, ?) pred max(x, ?). 3059 if (Pred == CmpInst::ICMP_SLE) 3060 // Always true. 3061 return getTrue(ITy); 3062 if (Pred == CmpInst::ICMP_SGT) 3063 // Always false. 3064 return getFalse(ITy); 3065 } else if (match(LHS, m_UMax(m_Value(A), m_Value(B))) && 3066 match(RHS, m_UMin(m_Value(C), m_Value(D))) && 3067 (A == C || A == D || B == C || B == D)) { 3068 // max(x, ?) pred min(x, ?). 3069 if (Pred == CmpInst::ICMP_UGE) 3070 // Always true. 3071 return getTrue(ITy); 3072 if (Pred == CmpInst::ICMP_ULT) 3073 // Always false. 3074 return getFalse(ITy); 3075 } else if (match(LHS, m_UMin(m_Value(A), m_Value(B))) && 3076 match(RHS, m_UMax(m_Value(C), m_Value(D))) && 3077 (A == C || A == D || B == C || B == D)) { 3078 // min(x, ?) pred max(x, ?). 3079 if (Pred == CmpInst::ICMP_ULE) 3080 // Always true. 3081 return getTrue(ITy); 3082 if (Pred == CmpInst::ICMP_UGT) 3083 // Always false. 3084 return getFalse(ITy); 3085 } 3086 3087 return nullptr; 3088 } 3089 3090 /// Given operands for an ICmpInst, see if we can fold the result. 3091 /// If not, this returns null. 3092 static Value *SimplifyICmpInst(unsigned Predicate, Value *LHS, Value *RHS, 3093 const SimplifyQuery &Q, unsigned MaxRecurse) { 3094 CmpInst::Predicate Pred = (CmpInst::Predicate)Predicate; 3095 assert(CmpInst::isIntPredicate(Pred) && "Not an integer compare!"); 3096 3097 if (Constant *CLHS = dyn_cast<Constant>(LHS)) { 3098 if (Constant *CRHS = dyn_cast<Constant>(RHS)) 3099 return ConstantFoldCompareInstOperands(Pred, CLHS, CRHS, Q.DL, Q.TLI); 3100 3101 // If we have a constant, make sure it is on the RHS. 3102 std::swap(LHS, RHS); 3103 Pred = CmpInst::getSwappedPredicate(Pred); 3104 } 3105 3106 Type *ITy = GetCompareTy(LHS); // The return type. 3107 3108 // icmp X, X -> true/false 3109 // icmp X, undef -> true/false because undef could be X. 3110 if (LHS == RHS || isa<UndefValue>(RHS)) 3111 return ConstantInt::get(ITy, CmpInst::isTrueWhenEqual(Pred)); 3112 3113 if (Value *V = simplifyICmpOfBools(Pred, LHS, RHS, Q)) 3114 return V; 3115 3116 if (Value *V = simplifyICmpWithZero(Pred, LHS, RHS, Q)) 3117 return V; 3118 3119 if (Value *V = simplifyICmpWithConstant(Pred, LHS, RHS)) 3120 return V; 3121 3122 // If both operands have range metadata, use the metadata 3123 // to simplify the comparison. 3124 if (isa<Instruction>(RHS) && isa<Instruction>(LHS)) { 3125 auto RHS_Instr = cast<Instruction>(RHS); 3126 auto LHS_Instr = cast<Instruction>(LHS); 3127 3128 if (RHS_Instr->getMetadata(LLVMContext::MD_range) && 3129 LHS_Instr->getMetadata(LLVMContext::MD_range)) { 3130 auto RHS_CR = getConstantRangeFromMetadata( 3131 *RHS_Instr->getMetadata(LLVMContext::MD_range)); 3132 auto LHS_CR = getConstantRangeFromMetadata( 3133 *LHS_Instr->getMetadata(LLVMContext::MD_range)); 3134 3135 auto Satisfied_CR = ConstantRange::makeSatisfyingICmpRegion(Pred, RHS_CR); 3136 if (Satisfied_CR.contains(LHS_CR)) 3137 return ConstantInt::getTrue(RHS->getContext()); 3138 3139 auto InversedSatisfied_CR = ConstantRange::makeSatisfyingICmpRegion( 3140 CmpInst::getInversePredicate(Pred), RHS_CR); 3141 if (InversedSatisfied_CR.contains(LHS_CR)) 3142 return ConstantInt::getFalse(RHS->getContext()); 3143 } 3144 } 3145 3146 // Compare of cast, for example (zext X) != 0 -> X != 0 3147 if (isa<CastInst>(LHS) && (isa<Constant>(RHS) || isa<CastInst>(RHS))) { 3148 Instruction *LI = cast<CastInst>(LHS); 3149 Value *SrcOp = LI->getOperand(0); 3150 Type *SrcTy = SrcOp->getType(); 3151 Type *DstTy = LI->getType(); 3152 3153 // Turn icmp (ptrtoint x), (ptrtoint/constant) into a compare of the input 3154 // if the integer type is the same size as the pointer type. 3155 if (MaxRecurse && isa<PtrToIntInst>(LI) && 3156 Q.DL.getTypeSizeInBits(SrcTy) == DstTy->getPrimitiveSizeInBits()) { 3157 if (Constant *RHSC = dyn_cast<Constant>(RHS)) { 3158 // Transfer the cast to the constant. 3159 if (Value *V = SimplifyICmpInst(Pred, SrcOp, 3160 ConstantExpr::getIntToPtr(RHSC, SrcTy), 3161 Q, MaxRecurse-1)) 3162 return V; 3163 } else if (PtrToIntInst *RI = dyn_cast<PtrToIntInst>(RHS)) { 3164 if (RI->getOperand(0)->getType() == SrcTy) 3165 // Compare without the cast. 3166 if (Value *V = SimplifyICmpInst(Pred, SrcOp, RI->getOperand(0), 3167 Q, MaxRecurse-1)) 3168 return V; 3169 } 3170 } 3171 3172 if (isa<ZExtInst>(LHS)) { 3173 // Turn icmp (zext X), (zext Y) into a compare of X and Y if they have the 3174 // same type. 3175 if (ZExtInst *RI = dyn_cast<ZExtInst>(RHS)) { 3176 if (MaxRecurse && SrcTy == RI->getOperand(0)->getType()) 3177 // Compare X and Y. Note that signed predicates become unsigned. 3178 if (Value *V = SimplifyICmpInst(ICmpInst::getUnsignedPredicate(Pred), 3179 SrcOp, RI->getOperand(0), Q, 3180 MaxRecurse-1)) 3181 return V; 3182 } 3183 // Turn icmp (zext X), Cst into a compare of X and Cst if Cst is extended 3184 // too. If not, then try to deduce the result of the comparison. 3185 else if (ConstantInt *CI = dyn_cast<ConstantInt>(RHS)) { 3186 // Compute the constant that would happen if we truncated to SrcTy then 3187 // reextended to DstTy. 3188 Constant *Trunc = ConstantExpr::getTrunc(CI, SrcTy); 3189 Constant *RExt = ConstantExpr::getCast(CastInst::ZExt, Trunc, DstTy); 3190 3191 // If the re-extended constant didn't change then this is effectively 3192 // also a case of comparing two zero-extended values. 3193 if (RExt == CI && MaxRecurse) 3194 if (Value *V = SimplifyICmpInst(ICmpInst::getUnsignedPredicate(Pred), 3195 SrcOp, Trunc, Q, MaxRecurse-1)) 3196 return V; 3197 3198 // Otherwise the upper bits of LHS are zero while RHS has a non-zero bit 3199 // there. Use this to work out the result of the comparison. 3200 if (RExt != CI) { 3201 switch (Pred) { 3202 default: llvm_unreachable("Unknown ICmp predicate!"); 3203 // LHS <u RHS. 3204 case ICmpInst::ICMP_EQ: 3205 case ICmpInst::ICMP_UGT: 3206 case ICmpInst::ICMP_UGE: 3207 return ConstantInt::getFalse(CI->getContext()); 3208 3209 case ICmpInst::ICMP_NE: 3210 case ICmpInst::ICMP_ULT: 3211 case ICmpInst::ICMP_ULE: 3212 return ConstantInt::getTrue(CI->getContext()); 3213 3214 // LHS is non-negative. If RHS is negative then LHS >s LHS. If RHS 3215 // is non-negative then LHS <s RHS. 3216 case ICmpInst::ICMP_SGT: 3217 case ICmpInst::ICMP_SGE: 3218 return CI->getValue().isNegative() ? 3219 ConstantInt::getTrue(CI->getContext()) : 3220 ConstantInt::getFalse(CI->getContext()); 3221 3222 case ICmpInst::ICMP_SLT: 3223 case ICmpInst::ICMP_SLE: 3224 return CI->getValue().isNegative() ? 3225 ConstantInt::getFalse(CI->getContext()) : 3226 ConstantInt::getTrue(CI->getContext()); 3227 } 3228 } 3229 } 3230 } 3231 3232 if (isa<SExtInst>(LHS)) { 3233 // Turn icmp (sext X), (sext Y) into a compare of X and Y if they have the 3234 // same type. 3235 if (SExtInst *RI = dyn_cast<SExtInst>(RHS)) { 3236 if (MaxRecurse && SrcTy == RI->getOperand(0)->getType()) 3237 // Compare X and Y. Note that the predicate does not change. 3238 if (Value *V = SimplifyICmpInst(Pred, SrcOp, RI->getOperand(0), 3239 Q, MaxRecurse-1)) 3240 return V; 3241 } 3242 // Turn icmp (sext X), Cst into a compare of X and Cst if Cst is extended 3243 // too. If not, then try to deduce the result of the comparison. 3244 else if (ConstantInt *CI = dyn_cast<ConstantInt>(RHS)) { 3245 // Compute the constant that would happen if we truncated to SrcTy then 3246 // reextended to DstTy. 3247 Constant *Trunc = ConstantExpr::getTrunc(CI, SrcTy); 3248 Constant *RExt = ConstantExpr::getCast(CastInst::SExt, Trunc, DstTy); 3249 3250 // If the re-extended constant didn't change then this is effectively 3251 // also a case of comparing two sign-extended values. 3252 if (RExt == CI && MaxRecurse) 3253 if (Value *V = SimplifyICmpInst(Pred, SrcOp, Trunc, Q, MaxRecurse-1)) 3254 return V; 3255 3256 // Otherwise the upper bits of LHS are all equal, while RHS has varying 3257 // bits there. Use this to work out the result of the comparison. 3258 if (RExt != CI) { 3259 switch (Pred) { 3260 default: llvm_unreachable("Unknown ICmp predicate!"); 3261 case ICmpInst::ICMP_EQ: 3262 return ConstantInt::getFalse(CI->getContext()); 3263 case ICmpInst::ICMP_NE: 3264 return ConstantInt::getTrue(CI->getContext()); 3265 3266 // If RHS is non-negative then LHS <s RHS. If RHS is negative then 3267 // LHS >s RHS. 3268 case ICmpInst::ICMP_SGT: 3269 case ICmpInst::ICMP_SGE: 3270 return CI->getValue().isNegative() ? 3271 ConstantInt::getTrue(CI->getContext()) : 3272 ConstantInt::getFalse(CI->getContext()); 3273 case ICmpInst::ICMP_SLT: 3274 case ICmpInst::ICMP_SLE: 3275 return CI->getValue().isNegative() ? 3276 ConstantInt::getFalse(CI->getContext()) : 3277 ConstantInt::getTrue(CI->getContext()); 3278 3279 // If LHS is non-negative then LHS <u RHS. If LHS is negative then 3280 // LHS >u RHS. 3281 case ICmpInst::ICMP_UGT: 3282 case ICmpInst::ICMP_UGE: 3283 // Comparison is true iff the LHS <s 0. 3284 if (MaxRecurse) 3285 if (Value *V = SimplifyICmpInst(ICmpInst::ICMP_SLT, SrcOp, 3286 Constant::getNullValue(SrcTy), 3287 Q, MaxRecurse-1)) 3288 return V; 3289 break; 3290 case ICmpInst::ICMP_ULT: 3291 case ICmpInst::ICMP_ULE: 3292 // Comparison is true iff the LHS >=s 0. 3293 if (MaxRecurse) 3294 if (Value *V = SimplifyICmpInst(ICmpInst::ICMP_SGE, SrcOp, 3295 Constant::getNullValue(SrcTy), 3296 Q, MaxRecurse-1)) 3297 return V; 3298 break; 3299 } 3300 } 3301 } 3302 } 3303 } 3304 3305 // icmp eq|ne X, Y -> false|true if X != Y 3306 if (ICmpInst::isEquality(Pred) && 3307 isKnownNonEqual(LHS, RHS, Q.DL, Q.AC, Q.CxtI, Q.DT)) { 3308 return Pred == ICmpInst::ICMP_NE ? getTrue(ITy) : getFalse(ITy); 3309 } 3310 3311 if (Value *V = simplifyICmpWithBinOp(Pred, LHS, RHS, Q, MaxRecurse)) 3312 return V; 3313 3314 if (Value *V = simplifyICmpWithMinMax(Pred, LHS, RHS, Q, MaxRecurse)) 3315 return V; 3316 3317 // Simplify comparisons of related pointers using a powerful, recursive 3318 // GEP-walk when we have target data available.. 3319 if (LHS->getType()->isPointerTy()) 3320 if (auto *C = computePointerICmp(Q.DL, Q.TLI, Q.DT, Pred, Q.AC, Q.CxtI, LHS, 3321 RHS)) 3322 return C; 3323 if (auto *CLHS = dyn_cast<PtrToIntOperator>(LHS)) 3324 if (auto *CRHS = dyn_cast<PtrToIntOperator>(RHS)) 3325 if (Q.DL.getTypeSizeInBits(CLHS->getPointerOperandType()) == 3326 Q.DL.getTypeSizeInBits(CLHS->getType()) && 3327 Q.DL.getTypeSizeInBits(CRHS->getPointerOperandType()) == 3328 Q.DL.getTypeSizeInBits(CRHS->getType())) 3329 if (auto *C = computePointerICmp(Q.DL, Q.TLI, Q.DT, Pred, Q.AC, Q.CxtI, 3330 CLHS->getPointerOperand(), 3331 CRHS->getPointerOperand())) 3332 return C; 3333 3334 if (GetElementPtrInst *GLHS = dyn_cast<GetElementPtrInst>(LHS)) { 3335 if (GEPOperator *GRHS = dyn_cast<GEPOperator>(RHS)) { 3336 if (GLHS->getPointerOperand() == GRHS->getPointerOperand() && 3337 GLHS->hasAllConstantIndices() && GRHS->hasAllConstantIndices() && 3338 (ICmpInst::isEquality(Pred) || 3339 (GLHS->isInBounds() && GRHS->isInBounds() && 3340 Pred == ICmpInst::getSignedPredicate(Pred)))) { 3341 // The bases are equal and the indices are constant. Build a constant 3342 // expression GEP with the same indices and a null base pointer to see 3343 // what constant folding can make out of it. 3344 Constant *Null = Constant::getNullValue(GLHS->getPointerOperandType()); 3345 SmallVector<Value *, 4> IndicesLHS(GLHS->idx_begin(), GLHS->idx_end()); 3346 Constant *NewLHS = ConstantExpr::getGetElementPtr( 3347 GLHS->getSourceElementType(), Null, IndicesLHS); 3348 3349 SmallVector<Value *, 4> IndicesRHS(GRHS->idx_begin(), GRHS->idx_end()); 3350 Constant *NewRHS = ConstantExpr::getGetElementPtr( 3351 GLHS->getSourceElementType(), Null, IndicesRHS); 3352 return ConstantExpr::getICmp(Pred, NewLHS, NewRHS); 3353 } 3354 } 3355 } 3356 3357 // If the comparison is with the result of a select instruction, check whether 3358 // comparing with either branch of the select always yields the same value. 3359 if (isa<SelectInst>(LHS) || isa<SelectInst>(RHS)) 3360 if (Value *V = ThreadCmpOverSelect(Pred, LHS, RHS, Q, MaxRecurse)) 3361 return V; 3362 3363 // If the comparison is with the result of a phi instruction, check whether 3364 // doing the compare with each incoming phi value yields a common result. 3365 if (isa<PHINode>(LHS) || isa<PHINode>(RHS)) 3366 if (Value *V = ThreadCmpOverPHI(Pred, LHS, RHS, Q, MaxRecurse)) 3367 return V; 3368 3369 return nullptr; 3370 } 3371 3372 Value *llvm::SimplifyICmpInst(unsigned Predicate, Value *LHS, Value *RHS, 3373 const SimplifyQuery &Q) { 3374 return ::SimplifyICmpInst(Predicate, LHS, RHS, Q, RecursionLimit); 3375 } 3376 3377 /// Given operands for an FCmpInst, see if we can fold the result. 3378 /// If not, this returns null. 3379 static Value *SimplifyFCmpInst(unsigned Predicate, Value *LHS, Value *RHS, 3380 FastMathFlags FMF, const SimplifyQuery &Q, 3381 unsigned MaxRecurse) { 3382 CmpInst::Predicate Pred = (CmpInst::Predicate)Predicate; 3383 assert(CmpInst::isFPPredicate(Pred) && "Not an FP compare!"); 3384 3385 if (Constant *CLHS = dyn_cast<Constant>(LHS)) { 3386 if (Constant *CRHS = dyn_cast<Constant>(RHS)) 3387 return ConstantFoldCompareInstOperands(Pred, CLHS, CRHS, Q.DL, Q.TLI); 3388 3389 // If we have a constant, make sure it is on the RHS. 3390 std::swap(LHS, RHS); 3391 Pred = CmpInst::getSwappedPredicate(Pred); 3392 } 3393 3394 // Fold trivial predicates. 3395 Type *RetTy = GetCompareTy(LHS); 3396 if (Pred == FCmpInst::FCMP_FALSE) 3397 return getFalse(RetTy); 3398 if (Pred == FCmpInst::FCMP_TRUE) 3399 return getTrue(RetTy); 3400 3401 // UNO/ORD predicates can be trivially folded if NaNs are ignored. 3402 if (FMF.noNaNs()) { 3403 if (Pred == FCmpInst::FCMP_UNO) 3404 return getFalse(RetTy); 3405 if (Pred == FCmpInst::FCMP_ORD) 3406 return getTrue(RetTy); 3407 } 3408 3409 // NaN is unordered; NaN is not ordered. 3410 assert((FCmpInst::isOrdered(Pred) || FCmpInst::isUnordered(Pred)) && 3411 "Comparison must be either ordered or unordered"); 3412 if (match(RHS, m_NaN())) 3413 return ConstantInt::get(RetTy, CmpInst::isUnordered(Pred)); 3414 3415 // fcmp pred x, undef and fcmp pred undef, x 3416 // fold to true if unordered, false if ordered 3417 if (isa<UndefValue>(LHS) || isa<UndefValue>(RHS)) { 3418 // Choosing NaN for the undef will always make unordered comparison succeed 3419 // and ordered comparison fail. 3420 return ConstantInt::get(RetTy, CmpInst::isUnordered(Pred)); 3421 } 3422 3423 // fcmp x,x -> true/false. Not all compares are foldable. 3424 if (LHS == RHS) { 3425 if (CmpInst::isTrueWhenEqual(Pred)) 3426 return getTrue(RetTy); 3427 if (CmpInst::isFalseWhenEqual(Pred)) 3428 return getFalse(RetTy); 3429 } 3430 3431 // Handle fcmp with constant RHS. 3432 const APFloat *C; 3433 if (match(RHS, m_APFloat(C))) { 3434 // Check whether the constant is an infinity. 3435 if (C->isInfinity()) { 3436 if (C->isNegative()) { 3437 switch (Pred) { 3438 case FCmpInst::FCMP_OLT: 3439 // No value is ordered and less than negative infinity. 3440 return getFalse(RetTy); 3441 case FCmpInst::FCMP_UGE: 3442 // All values are unordered with or at least negative infinity. 3443 return getTrue(RetTy); 3444 default: 3445 break; 3446 } 3447 } else { 3448 switch (Pred) { 3449 case FCmpInst::FCMP_OGT: 3450 // No value is ordered and greater than infinity. 3451 return getFalse(RetTy); 3452 case FCmpInst::FCMP_ULE: 3453 // All values are unordered with and at most infinity. 3454 return getTrue(RetTy); 3455 default: 3456 break; 3457 } 3458 } 3459 } 3460 if (C->isZero()) { 3461 switch (Pred) { 3462 case FCmpInst::FCMP_UGE: 3463 if (CannotBeOrderedLessThanZero(LHS, Q.TLI)) 3464 return getTrue(RetTy); 3465 break; 3466 case FCmpInst::FCMP_OLT: 3467 // X < 0 3468 if (CannotBeOrderedLessThanZero(LHS, Q.TLI)) 3469 return getFalse(RetTy); 3470 break; 3471 default: 3472 break; 3473 } 3474 } else if (C->isNegative()) { 3475 assert(!C->isNaN() && "Unexpected NaN constant!"); 3476 // TODO: We can catch more cases by using a range check rather than 3477 // relying on CannotBeOrderedLessThanZero. 3478 switch (Pred) { 3479 case FCmpInst::FCMP_UGE: 3480 case FCmpInst::FCMP_UGT: 3481 case FCmpInst::FCMP_UNE: 3482 // (X >= 0) implies (X > C) when (C < 0) 3483 if (CannotBeOrderedLessThanZero(LHS, Q.TLI)) 3484 return getTrue(RetTy); 3485 break; 3486 case FCmpInst::FCMP_OEQ: 3487 case FCmpInst::FCMP_OLE: 3488 case FCmpInst::FCMP_OLT: 3489 // (X >= 0) implies !(X < C) when (C < 0) 3490 if (CannotBeOrderedLessThanZero(LHS, Q.TLI)) 3491 return getFalse(RetTy); 3492 break; 3493 default: 3494 break; 3495 } 3496 } 3497 } 3498 3499 // If the comparison is with the result of a select instruction, check whether 3500 // comparing with either branch of the select always yields the same value. 3501 if (isa<SelectInst>(LHS) || isa<SelectInst>(RHS)) 3502 if (Value *V = ThreadCmpOverSelect(Pred, LHS, RHS, Q, MaxRecurse)) 3503 return V; 3504 3505 // If the comparison is with the result of a phi instruction, check whether 3506 // doing the compare with each incoming phi value yields a common result. 3507 if (isa<PHINode>(LHS) || isa<PHINode>(RHS)) 3508 if (Value *V = ThreadCmpOverPHI(Pred, LHS, RHS, Q, MaxRecurse)) 3509 return V; 3510 3511 return nullptr; 3512 } 3513 3514 Value *llvm::SimplifyFCmpInst(unsigned Predicate, Value *LHS, Value *RHS, 3515 FastMathFlags FMF, const SimplifyQuery &Q) { 3516 return ::SimplifyFCmpInst(Predicate, LHS, RHS, FMF, Q, RecursionLimit); 3517 } 3518 3519 /// See if V simplifies when its operand Op is replaced with RepOp. 3520 static const Value *SimplifyWithOpReplaced(Value *V, Value *Op, Value *RepOp, 3521 const SimplifyQuery &Q, 3522 unsigned MaxRecurse) { 3523 // Trivial replacement. 3524 if (V == Op) 3525 return RepOp; 3526 3527 // We cannot replace a constant, and shouldn't even try. 3528 if (isa<Constant>(Op)) 3529 return nullptr; 3530 3531 auto *I = dyn_cast<Instruction>(V); 3532 if (!I) 3533 return nullptr; 3534 3535 // If this is a binary operator, try to simplify it with the replaced op. 3536 if (auto *B = dyn_cast<BinaryOperator>(I)) { 3537 // Consider: 3538 // %cmp = icmp eq i32 %x, 2147483647 3539 // %add = add nsw i32 %x, 1 3540 // %sel = select i1 %cmp, i32 -2147483648, i32 %add 3541 // 3542 // We can't replace %sel with %add unless we strip away the flags. 3543 if (isa<OverflowingBinaryOperator>(B)) 3544 if (B->hasNoSignedWrap() || B->hasNoUnsignedWrap()) 3545 return nullptr; 3546 if (isa<PossiblyExactOperator>(B)) 3547 if (B->isExact()) 3548 return nullptr; 3549 3550 if (MaxRecurse) { 3551 if (B->getOperand(0) == Op) 3552 return SimplifyBinOp(B->getOpcode(), RepOp, B->getOperand(1), Q, 3553 MaxRecurse - 1); 3554 if (B->getOperand(1) == Op) 3555 return SimplifyBinOp(B->getOpcode(), B->getOperand(0), RepOp, Q, 3556 MaxRecurse - 1); 3557 } 3558 } 3559 3560 // Same for CmpInsts. 3561 if (CmpInst *C = dyn_cast<CmpInst>(I)) { 3562 if (MaxRecurse) { 3563 if (C->getOperand(0) == Op) 3564 return SimplifyCmpInst(C->getPredicate(), RepOp, C->getOperand(1), Q, 3565 MaxRecurse - 1); 3566 if (C->getOperand(1) == Op) 3567 return SimplifyCmpInst(C->getPredicate(), C->getOperand(0), RepOp, Q, 3568 MaxRecurse - 1); 3569 } 3570 } 3571 3572 // Same for GEPs. 3573 if (auto *GEP = dyn_cast<GetElementPtrInst>(I)) { 3574 if (MaxRecurse) { 3575 SmallVector<Value *, 8> NewOps(GEP->getNumOperands()); 3576 transform(GEP->operands(), NewOps.begin(), 3577 [&](Value *V) { return V == Op ? RepOp : V; }); 3578 return SimplifyGEPInst(GEP->getSourceElementType(), NewOps, Q, 3579 MaxRecurse - 1); 3580 } 3581 } 3582 3583 // TODO: We could hand off more cases to instsimplify here. 3584 3585 // If all operands are constant after substituting Op for RepOp then we can 3586 // constant fold the instruction. 3587 if (Constant *CRepOp = dyn_cast<Constant>(RepOp)) { 3588 // Build a list of all constant operands. 3589 SmallVector<Constant *, 8> ConstOps; 3590 for (unsigned i = 0, e = I->getNumOperands(); i != e; ++i) { 3591 if (I->getOperand(i) == Op) 3592 ConstOps.push_back(CRepOp); 3593 else if (Constant *COp = dyn_cast<Constant>(I->getOperand(i))) 3594 ConstOps.push_back(COp); 3595 else 3596 break; 3597 } 3598 3599 // All operands were constants, fold it. 3600 if (ConstOps.size() == I->getNumOperands()) { 3601 if (CmpInst *C = dyn_cast<CmpInst>(I)) 3602 return ConstantFoldCompareInstOperands(C->getPredicate(), ConstOps[0], 3603 ConstOps[1], Q.DL, Q.TLI); 3604 3605 if (LoadInst *LI = dyn_cast<LoadInst>(I)) 3606 if (!LI->isVolatile()) 3607 return ConstantFoldLoadFromConstPtr(ConstOps[0], LI->getType(), Q.DL); 3608 3609 return ConstantFoldInstOperands(I, ConstOps, Q.DL, Q.TLI); 3610 } 3611 } 3612 3613 return nullptr; 3614 } 3615 3616 /// Try to simplify a select instruction when its condition operand is an 3617 /// integer comparison where one operand of the compare is a constant. 3618 static Value *simplifySelectBitTest(Value *TrueVal, Value *FalseVal, Value *X, 3619 const APInt *Y, bool TrueWhenUnset) { 3620 const APInt *C; 3621 3622 // (X & Y) == 0 ? X & ~Y : X --> X 3623 // (X & Y) != 0 ? X & ~Y : X --> X & ~Y 3624 if (FalseVal == X && match(TrueVal, m_And(m_Specific(X), m_APInt(C))) && 3625 *Y == ~*C) 3626 return TrueWhenUnset ? FalseVal : TrueVal; 3627 3628 // (X & Y) == 0 ? X : X & ~Y --> X & ~Y 3629 // (X & Y) != 0 ? X : X & ~Y --> X 3630 if (TrueVal == X && match(FalseVal, m_And(m_Specific(X), m_APInt(C))) && 3631 *Y == ~*C) 3632 return TrueWhenUnset ? FalseVal : TrueVal; 3633 3634 if (Y->isPowerOf2()) { 3635 // (X & Y) == 0 ? X | Y : X --> X | Y 3636 // (X & Y) != 0 ? X | Y : X --> X 3637 if (FalseVal == X && match(TrueVal, m_Or(m_Specific(X), m_APInt(C))) && 3638 *Y == *C) 3639 return TrueWhenUnset ? TrueVal : FalseVal; 3640 3641 // (X & Y) == 0 ? X : X | Y --> X 3642 // (X & Y) != 0 ? X : X | Y --> X | Y 3643 if (TrueVal == X && match(FalseVal, m_Or(m_Specific(X), m_APInt(C))) && 3644 *Y == *C) 3645 return TrueWhenUnset ? TrueVal : FalseVal; 3646 } 3647 3648 return nullptr; 3649 } 3650 3651 /// An alternative way to test if a bit is set or not uses sgt/slt instead of 3652 /// eq/ne. 3653 static Value *simplifySelectWithFakeICmpEq(Value *CmpLHS, Value *CmpRHS, 3654 ICmpInst::Predicate Pred, 3655 Value *TrueVal, Value *FalseVal) { 3656 Value *X; 3657 APInt Mask; 3658 if (!decomposeBitTestICmp(CmpLHS, CmpRHS, Pred, X, Mask)) 3659 return nullptr; 3660 3661 return simplifySelectBitTest(TrueVal, FalseVal, X, &Mask, 3662 Pred == ICmpInst::ICMP_EQ); 3663 } 3664 3665 /// Try to simplify a select instruction when its condition operand is an 3666 /// integer comparison. 3667 static Value *simplifySelectWithICmpCond(Value *CondVal, Value *TrueVal, 3668 Value *FalseVal, const SimplifyQuery &Q, 3669 unsigned MaxRecurse) { 3670 ICmpInst::Predicate Pred; 3671 Value *CmpLHS, *CmpRHS; 3672 if (!match(CondVal, m_ICmp(Pred, m_Value(CmpLHS), m_Value(CmpRHS)))) 3673 return nullptr; 3674 3675 if (ICmpInst::isEquality(Pred) && match(CmpRHS, m_Zero())) { 3676 Value *X; 3677 const APInt *Y; 3678 if (match(CmpLHS, m_And(m_Value(X), m_APInt(Y)))) 3679 if (Value *V = simplifySelectBitTest(TrueVal, FalseVal, X, Y, 3680 Pred == ICmpInst::ICMP_EQ)) 3681 return V; 3682 } 3683 3684 // Check for other compares that behave like bit test. 3685 if (Value *V = simplifySelectWithFakeICmpEq(CmpLHS, CmpRHS, Pred, 3686 TrueVal, FalseVal)) 3687 return V; 3688 3689 // If we have an equality comparison, then we know the value in one of the 3690 // arms of the select. See if substituting this value into the arm and 3691 // simplifying the result yields the same value as the other arm. 3692 if (Pred == ICmpInst::ICMP_EQ) { 3693 if (SimplifyWithOpReplaced(FalseVal, CmpLHS, CmpRHS, Q, MaxRecurse) == 3694 TrueVal || 3695 SimplifyWithOpReplaced(FalseVal, CmpRHS, CmpLHS, Q, MaxRecurse) == 3696 TrueVal) 3697 return FalseVal; 3698 if (SimplifyWithOpReplaced(TrueVal, CmpLHS, CmpRHS, Q, MaxRecurse) == 3699 FalseVal || 3700 SimplifyWithOpReplaced(TrueVal, CmpRHS, CmpLHS, Q, MaxRecurse) == 3701 FalseVal) 3702 return FalseVal; 3703 } else if (Pred == ICmpInst::ICMP_NE) { 3704 if (SimplifyWithOpReplaced(TrueVal, CmpLHS, CmpRHS, Q, MaxRecurse) == 3705 FalseVal || 3706 SimplifyWithOpReplaced(TrueVal, CmpRHS, CmpLHS, Q, MaxRecurse) == 3707 FalseVal) 3708 return TrueVal; 3709 if (SimplifyWithOpReplaced(FalseVal, CmpLHS, CmpRHS, Q, MaxRecurse) == 3710 TrueVal || 3711 SimplifyWithOpReplaced(FalseVal, CmpRHS, CmpLHS, Q, MaxRecurse) == 3712 TrueVal) 3713 return TrueVal; 3714 } 3715 3716 return nullptr; 3717 } 3718 3719 /// Given operands for a SelectInst, see if we can fold the result. 3720 /// If not, this returns null. 3721 static Value *SimplifySelectInst(Value *Cond, Value *TrueVal, Value *FalseVal, 3722 const SimplifyQuery &Q, unsigned MaxRecurse) { 3723 if (auto *CondC = dyn_cast<Constant>(Cond)) { 3724 if (auto *TrueC = dyn_cast<Constant>(TrueVal)) 3725 if (auto *FalseC = dyn_cast<Constant>(FalseVal)) 3726 return ConstantFoldSelectInstruction(CondC, TrueC, FalseC); 3727 3728 // select undef, X, Y -> X or Y 3729 if (isa<UndefValue>(CondC)) 3730 return isa<Constant>(FalseVal) ? FalseVal : TrueVal; 3731 3732 // TODO: Vector constants with undef elements don't simplify. 3733 3734 // select true, X, Y -> X 3735 if (CondC->isAllOnesValue()) 3736 return TrueVal; 3737 // select false, X, Y -> Y 3738 if (CondC->isNullValue()) 3739 return FalseVal; 3740 } 3741 3742 // select ?, X, X -> X 3743 if (TrueVal == FalseVal) 3744 return TrueVal; 3745 3746 if (isa<UndefValue>(TrueVal)) // select ?, undef, X -> X 3747 return FalseVal; 3748 if (isa<UndefValue>(FalseVal)) // select ?, X, undef -> X 3749 return TrueVal; 3750 3751 if (Value *V = 3752 simplifySelectWithICmpCond(Cond, TrueVal, FalseVal, Q, MaxRecurse)) 3753 return V; 3754 3755 return nullptr; 3756 } 3757 3758 Value *llvm::SimplifySelectInst(Value *Cond, Value *TrueVal, Value *FalseVal, 3759 const SimplifyQuery &Q) { 3760 return ::SimplifySelectInst(Cond, TrueVal, FalseVal, Q, RecursionLimit); 3761 } 3762 3763 /// Given operands for an GetElementPtrInst, see if we can fold the result. 3764 /// If not, this returns null. 3765 static Value *SimplifyGEPInst(Type *SrcTy, ArrayRef<Value *> Ops, 3766 const SimplifyQuery &Q, unsigned) { 3767 // The type of the GEP pointer operand. 3768 unsigned AS = 3769 cast<PointerType>(Ops[0]->getType()->getScalarType())->getAddressSpace(); 3770 3771 // getelementptr P -> P. 3772 if (Ops.size() == 1) 3773 return Ops[0]; 3774 3775 // Compute the (pointer) type returned by the GEP instruction. 3776 Type *LastType = GetElementPtrInst::getIndexedType(SrcTy, Ops.slice(1)); 3777 Type *GEPTy = PointerType::get(LastType, AS); 3778 if (VectorType *VT = dyn_cast<VectorType>(Ops[0]->getType())) 3779 GEPTy = VectorType::get(GEPTy, VT->getNumElements()); 3780 else if (VectorType *VT = dyn_cast<VectorType>(Ops[1]->getType())) 3781 GEPTy = VectorType::get(GEPTy, VT->getNumElements()); 3782 3783 if (isa<UndefValue>(Ops[0])) 3784 return UndefValue::get(GEPTy); 3785 3786 if (Ops.size() == 2) { 3787 // getelementptr P, 0 -> P. 3788 if (match(Ops[1], m_Zero()) && Ops[0]->getType() == GEPTy) 3789 return Ops[0]; 3790 3791 Type *Ty = SrcTy; 3792 if (Ty->isSized()) { 3793 Value *P; 3794 uint64_t C; 3795 uint64_t TyAllocSize = Q.DL.getTypeAllocSize(Ty); 3796 // getelementptr P, N -> P if P points to a type of zero size. 3797 if (TyAllocSize == 0 && Ops[0]->getType() == GEPTy) 3798 return Ops[0]; 3799 3800 // The following transforms are only safe if the ptrtoint cast 3801 // doesn't truncate the pointers. 3802 if (Ops[1]->getType()->getScalarSizeInBits() == 3803 Q.DL.getIndexSizeInBits(AS)) { 3804 auto PtrToIntOrZero = [GEPTy](Value *P) -> Value * { 3805 if (match(P, m_Zero())) 3806 return Constant::getNullValue(GEPTy); 3807 Value *Temp; 3808 if (match(P, m_PtrToInt(m_Value(Temp)))) 3809 if (Temp->getType() == GEPTy) 3810 return Temp; 3811 return nullptr; 3812 }; 3813 3814 // getelementptr V, (sub P, V) -> P if P points to a type of size 1. 3815 if (TyAllocSize == 1 && 3816 match(Ops[1], m_Sub(m_Value(P), m_PtrToInt(m_Specific(Ops[0]))))) 3817 if (Value *R = PtrToIntOrZero(P)) 3818 return R; 3819 3820 // getelementptr V, (ashr (sub P, V), C) -> Q 3821 // if P points to a type of size 1 << C. 3822 if (match(Ops[1], 3823 m_AShr(m_Sub(m_Value(P), m_PtrToInt(m_Specific(Ops[0]))), 3824 m_ConstantInt(C))) && 3825 TyAllocSize == 1ULL << C) 3826 if (Value *R = PtrToIntOrZero(P)) 3827 return R; 3828 3829 // getelementptr V, (sdiv (sub P, V), C) -> Q 3830 // if P points to a type of size C. 3831 if (match(Ops[1], 3832 m_SDiv(m_Sub(m_Value(P), m_PtrToInt(m_Specific(Ops[0]))), 3833 m_SpecificInt(TyAllocSize)))) 3834 if (Value *R = PtrToIntOrZero(P)) 3835 return R; 3836 } 3837 } 3838 } 3839 3840 if (Q.DL.getTypeAllocSize(LastType) == 1 && 3841 all_of(Ops.slice(1).drop_back(1), 3842 [](Value *Idx) { return match(Idx, m_Zero()); })) { 3843 unsigned IdxWidth = 3844 Q.DL.getIndexSizeInBits(Ops[0]->getType()->getPointerAddressSpace()); 3845 if (Q.DL.getTypeSizeInBits(Ops.back()->getType()) == IdxWidth) { 3846 APInt BasePtrOffset(IdxWidth, 0); 3847 Value *StrippedBasePtr = 3848 Ops[0]->stripAndAccumulateInBoundsConstantOffsets(Q.DL, 3849 BasePtrOffset); 3850 3851 // gep (gep V, C), (sub 0, V) -> C 3852 if (match(Ops.back(), 3853 m_Sub(m_Zero(), m_PtrToInt(m_Specific(StrippedBasePtr))))) { 3854 auto *CI = ConstantInt::get(GEPTy->getContext(), BasePtrOffset); 3855 return ConstantExpr::getIntToPtr(CI, GEPTy); 3856 } 3857 // gep (gep V, C), (xor V, -1) -> C-1 3858 if (match(Ops.back(), 3859 m_Xor(m_PtrToInt(m_Specific(StrippedBasePtr)), m_AllOnes()))) { 3860 auto *CI = ConstantInt::get(GEPTy->getContext(), BasePtrOffset - 1); 3861 return ConstantExpr::getIntToPtr(CI, GEPTy); 3862 } 3863 } 3864 } 3865 3866 // Check to see if this is constant foldable. 3867 if (!all_of(Ops, [](Value *V) { return isa<Constant>(V); })) 3868 return nullptr; 3869 3870 auto *CE = ConstantExpr::getGetElementPtr(SrcTy, cast<Constant>(Ops[0]), 3871 Ops.slice(1)); 3872 if (auto *CEFolded = ConstantFoldConstant(CE, Q.DL)) 3873 return CEFolded; 3874 return CE; 3875 } 3876 3877 Value *llvm::SimplifyGEPInst(Type *SrcTy, ArrayRef<Value *> Ops, 3878 const SimplifyQuery &Q) { 3879 return ::SimplifyGEPInst(SrcTy, Ops, Q, RecursionLimit); 3880 } 3881 3882 /// Given operands for an InsertValueInst, see if we can fold the result. 3883 /// If not, this returns null. 3884 static Value *SimplifyInsertValueInst(Value *Agg, Value *Val, 3885 ArrayRef<unsigned> Idxs, const SimplifyQuery &Q, 3886 unsigned) { 3887 if (Constant *CAgg = dyn_cast<Constant>(Agg)) 3888 if (Constant *CVal = dyn_cast<Constant>(Val)) 3889 return ConstantFoldInsertValueInstruction(CAgg, CVal, Idxs); 3890 3891 // insertvalue x, undef, n -> x 3892 if (match(Val, m_Undef())) 3893 return Agg; 3894 3895 // insertvalue x, (extractvalue y, n), n 3896 if (ExtractValueInst *EV = dyn_cast<ExtractValueInst>(Val)) 3897 if (EV->getAggregateOperand()->getType() == Agg->getType() && 3898 EV->getIndices() == Idxs) { 3899 // insertvalue undef, (extractvalue y, n), n -> y 3900 if (match(Agg, m_Undef())) 3901 return EV->getAggregateOperand(); 3902 3903 // insertvalue y, (extractvalue y, n), n -> y 3904 if (Agg == EV->getAggregateOperand()) 3905 return Agg; 3906 } 3907 3908 return nullptr; 3909 } 3910 3911 Value *llvm::SimplifyInsertValueInst(Value *Agg, Value *Val, 3912 ArrayRef<unsigned> Idxs, 3913 const SimplifyQuery &Q) { 3914 return ::SimplifyInsertValueInst(Agg, Val, Idxs, Q, RecursionLimit); 3915 } 3916 3917 Value *llvm::SimplifyInsertElementInst(Value *Vec, Value *Val, Value *Idx, 3918 const SimplifyQuery &Q) { 3919 // Try to constant fold. 3920 auto *VecC = dyn_cast<Constant>(Vec); 3921 auto *ValC = dyn_cast<Constant>(Val); 3922 auto *IdxC = dyn_cast<Constant>(Idx); 3923 if (VecC && ValC && IdxC) 3924 return ConstantFoldInsertElementInstruction(VecC, ValC, IdxC); 3925 3926 // Fold into undef if index is out of bounds. 3927 if (auto *CI = dyn_cast<ConstantInt>(Idx)) { 3928 uint64_t NumElements = cast<VectorType>(Vec->getType())->getNumElements(); 3929 if (CI->uge(NumElements)) 3930 return UndefValue::get(Vec->getType()); 3931 } 3932 3933 // If index is undef, it might be out of bounds (see above case) 3934 if (isa<UndefValue>(Idx)) 3935 return UndefValue::get(Vec->getType()); 3936 3937 return nullptr; 3938 } 3939 3940 /// Given operands for an ExtractValueInst, see if we can fold the result. 3941 /// If not, this returns null. 3942 static Value *SimplifyExtractValueInst(Value *Agg, ArrayRef<unsigned> Idxs, 3943 const SimplifyQuery &, unsigned) { 3944 if (auto *CAgg = dyn_cast<Constant>(Agg)) 3945 return ConstantFoldExtractValueInstruction(CAgg, Idxs); 3946 3947 // extractvalue x, (insertvalue y, elt, n), n -> elt 3948 unsigned NumIdxs = Idxs.size(); 3949 for (auto *IVI = dyn_cast<InsertValueInst>(Agg); IVI != nullptr; 3950 IVI = dyn_cast<InsertValueInst>(IVI->getAggregateOperand())) { 3951 ArrayRef<unsigned> InsertValueIdxs = IVI->getIndices(); 3952 unsigned NumInsertValueIdxs = InsertValueIdxs.size(); 3953 unsigned NumCommonIdxs = std::min(NumInsertValueIdxs, NumIdxs); 3954 if (InsertValueIdxs.slice(0, NumCommonIdxs) == 3955 Idxs.slice(0, NumCommonIdxs)) { 3956 if (NumIdxs == NumInsertValueIdxs) 3957 return IVI->getInsertedValueOperand(); 3958 break; 3959 } 3960 } 3961 3962 return nullptr; 3963 } 3964 3965 Value *llvm::SimplifyExtractValueInst(Value *Agg, ArrayRef<unsigned> Idxs, 3966 const SimplifyQuery &Q) { 3967 return ::SimplifyExtractValueInst(Agg, Idxs, Q, RecursionLimit); 3968 } 3969 3970 /// Given operands for an ExtractElementInst, see if we can fold the result. 3971 /// If not, this returns null. 3972 static Value *SimplifyExtractElementInst(Value *Vec, Value *Idx, const SimplifyQuery &, 3973 unsigned) { 3974 if (auto *CVec = dyn_cast<Constant>(Vec)) { 3975 if (auto *CIdx = dyn_cast<Constant>(Idx)) 3976 return ConstantFoldExtractElementInstruction(CVec, CIdx); 3977 3978 // The index is not relevant if our vector is a splat. 3979 if (auto *Splat = CVec->getSplatValue()) 3980 return Splat; 3981 3982 if (isa<UndefValue>(Vec)) 3983 return UndefValue::get(Vec->getType()->getVectorElementType()); 3984 } 3985 3986 // If extracting a specified index from the vector, see if we can recursively 3987 // find a previously computed scalar that was inserted into the vector. 3988 if (auto *IdxC = dyn_cast<ConstantInt>(Idx)) { 3989 if (IdxC->getValue().uge(Vec->getType()->getVectorNumElements())) 3990 // definitely out of bounds, thus undefined result 3991 return UndefValue::get(Vec->getType()->getVectorElementType()); 3992 if (Value *Elt = findScalarElement(Vec, IdxC->getZExtValue())) 3993 return Elt; 3994 } 3995 3996 // An undef extract index can be arbitrarily chosen to be an out-of-range 3997 // index value, which would result in the instruction being undef. 3998 if (isa<UndefValue>(Idx)) 3999 return UndefValue::get(Vec->getType()->getVectorElementType()); 4000 4001 return nullptr; 4002 } 4003 4004 Value *llvm::SimplifyExtractElementInst(Value *Vec, Value *Idx, 4005 const SimplifyQuery &Q) { 4006 return ::SimplifyExtractElementInst(Vec, Idx, Q, RecursionLimit); 4007 } 4008 4009 /// See if we can fold the given phi. If not, returns null. 4010 static Value *SimplifyPHINode(PHINode *PN, const SimplifyQuery &Q) { 4011 // If all of the PHI's incoming values are the same then replace the PHI node 4012 // with the common value. 4013 Value *CommonValue = nullptr; 4014 bool HasUndefInput = false; 4015 for (Value *Incoming : PN->incoming_values()) { 4016 // If the incoming value is the phi node itself, it can safely be skipped. 4017 if (Incoming == PN) continue; 4018 if (isa<UndefValue>(Incoming)) { 4019 // Remember that we saw an undef value, but otherwise ignore them. 4020 HasUndefInput = true; 4021 continue; 4022 } 4023 if (CommonValue && Incoming != CommonValue) 4024 return nullptr; // Not the same, bail out. 4025 CommonValue = Incoming; 4026 } 4027 4028 // If CommonValue is null then all of the incoming values were either undef or 4029 // equal to the phi node itself. 4030 if (!CommonValue) 4031 return UndefValue::get(PN->getType()); 4032 4033 // If we have a PHI node like phi(X, undef, X), where X is defined by some 4034 // instruction, we cannot return X as the result of the PHI node unless it 4035 // dominates the PHI block. 4036 if (HasUndefInput) 4037 return valueDominatesPHI(CommonValue, PN, Q.DT) ? CommonValue : nullptr; 4038 4039 return CommonValue; 4040 } 4041 4042 static Value *SimplifyCastInst(unsigned CastOpc, Value *Op, 4043 Type *Ty, const SimplifyQuery &Q, unsigned MaxRecurse) { 4044 if (auto *C = dyn_cast<Constant>(Op)) 4045 return ConstantFoldCastOperand(CastOpc, C, Ty, Q.DL); 4046 4047 if (auto *CI = dyn_cast<CastInst>(Op)) { 4048 auto *Src = CI->getOperand(0); 4049 Type *SrcTy = Src->getType(); 4050 Type *MidTy = CI->getType(); 4051 Type *DstTy = Ty; 4052 if (Src->getType() == Ty) { 4053 auto FirstOp = static_cast<Instruction::CastOps>(CI->getOpcode()); 4054 auto SecondOp = static_cast<Instruction::CastOps>(CastOpc); 4055 Type *SrcIntPtrTy = 4056 SrcTy->isPtrOrPtrVectorTy() ? Q.DL.getIntPtrType(SrcTy) : nullptr; 4057 Type *MidIntPtrTy = 4058 MidTy->isPtrOrPtrVectorTy() ? Q.DL.getIntPtrType(MidTy) : nullptr; 4059 Type *DstIntPtrTy = 4060 DstTy->isPtrOrPtrVectorTy() ? Q.DL.getIntPtrType(DstTy) : nullptr; 4061 if (CastInst::isEliminableCastPair(FirstOp, SecondOp, SrcTy, MidTy, DstTy, 4062 SrcIntPtrTy, MidIntPtrTy, 4063 DstIntPtrTy) == Instruction::BitCast) 4064 return Src; 4065 } 4066 } 4067 4068 // bitcast x -> x 4069 if (CastOpc == Instruction::BitCast) 4070 if (Op->getType() == Ty) 4071 return Op; 4072 4073 return nullptr; 4074 } 4075 4076 Value *llvm::SimplifyCastInst(unsigned CastOpc, Value *Op, Type *Ty, 4077 const SimplifyQuery &Q) { 4078 return ::SimplifyCastInst(CastOpc, Op, Ty, Q, RecursionLimit); 4079 } 4080 4081 /// For the given destination element of a shuffle, peek through shuffles to 4082 /// match a root vector source operand that contains that element in the same 4083 /// vector lane (ie, the same mask index), so we can eliminate the shuffle(s). 4084 static Value *foldIdentityShuffles(int DestElt, Value *Op0, Value *Op1, 4085 int MaskVal, Value *RootVec, 4086 unsigned MaxRecurse) { 4087 if (!MaxRecurse--) 4088 return nullptr; 4089 4090 // Bail out if any mask value is undefined. That kind of shuffle may be 4091 // simplified further based on demanded bits or other folds. 4092 if (MaskVal == -1) 4093 return nullptr; 4094 4095 // The mask value chooses which source operand we need to look at next. 4096 int InVecNumElts = Op0->getType()->getVectorNumElements(); 4097 int RootElt = MaskVal; 4098 Value *SourceOp = Op0; 4099 if (MaskVal >= InVecNumElts) { 4100 RootElt = MaskVal - InVecNumElts; 4101 SourceOp = Op1; 4102 } 4103 4104 // If the source operand is a shuffle itself, look through it to find the 4105 // matching root vector. 4106 if (auto *SourceShuf = dyn_cast<ShuffleVectorInst>(SourceOp)) { 4107 return foldIdentityShuffles( 4108 DestElt, SourceShuf->getOperand(0), SourceShuf->getOperand(1), 4109 SourceShuf->getMaskValue(RootElt), RootVec, MaxRecurse); 4110 } 4111 4112 // TODO: Look through bitcasts? What if the bitcast changes the vector element 4113 // size? 4114 4115 // The source operand is not a shuffle. Initialize the root vector value for 4116 // this shuffle if that has not been done yet. 4117 if (!RootVec) 4118 RootVec = SourceOp; 4119 4120 // Give up as soon as a source operand does not match the existing root value. 4121 if (RootVec != SourceOp) 4122 return nullptr; 4123 4124 // The element must be coming from the same lane in the source vector 4125 // (although it may have crossed lanes in intermediate shuffles). 4126 if (RootElt != DestElt) 4127 return nullptr; 4128 4129 return RootVec; 4130 } 4131 4132 static Value *SimplifyShuffleVectorInst(Value *Op0, Value *Op1, Constant *Mask, 4133 Type *RetTy, const SimplifyQuery &Q, 4134 unsigned MaxRecurse) { 4135 if (isa<UndefValue>(Mask)) 4136 return UndefValue::get(RetTy); 4137 4138 Type *InVecTy = Op0->getType(); 4139 unsigned MaskNumElts = Mask->getType()->getVectorNumElements(); 4140 unsigned InVecNumElts = InVecTy->getVectorNumElements(); 4141 4142 SmallVector<int, 32> Indices; 4143 ShuffleVectorInst::getShuffleMask(Mask, Indices); 4144 assert(MaskNumElts == Indices.size() && 4145 "Size of Indices not same as number of mask elements?"); 4146 4147 // Canonicalization: If mask does not select elements from an input vector, 4148 // replace that input vector with undef. 4149 bool MaskSelects0 = false, MaskSelects1 = false; 4150 for (unsigned i = 0; i != MaskNumElts; ++i) { 4151 if (Indices[i] == -1) 4152 continue; 4153 if ((unsigned)Indices[i] < InVecNumElts) 4154 MaskSelects0 = true; 4155 else 4156 MaskSelects1 = true; 4157 } 4158 if (!MaskSelects0) 4159 Op0 = UndefValue::get(InVecTy); 4160 if (!MaskSelects1) 4161 Op1 = UndefValue::get(InVecTy); 4162 4163 auto *Op0Const = dyn_cast<Constant>(Op0); 4164 auto *Op1Const = dyn_cast<Constant>(Op1); 4165 4166 // If all operands are constant, constant fold the shuffle. 4167 if (Op0Const && Op1Const) 4168 return ConstantFoldShuffleVectorInstruction(Op0Const, Op1Const, Mask); 4169 4170 // Canonicalization: if only one input vector is constant, it shall be the 4171 // second one. 4172 if (Op0Const && !Op1Const) { 4173 std::swap(Op0, Op1); 4174 ShuffleVectorInst::commuteShuffleMask(Indices, InVecNumElts); 4175 } 4176 4177 // A shuffle of a splat is always the splat itself. Legal if the shuffle's 4178 // value type is same as the input vectors' type. 4179 if (auto *OpShuf = dyn_cast<ShuffleVectorInst>(Op0)) 4180 if (isa<UndefValue>(Op1) && RetTy == InVecTy && 4181 OpShuf->getMask()->getSplatValue()) 4182 return Op0; 4183 4184 // Don't fold a shuffle with undef mask elements. This may get folded in a 4185 // better way using demanded bits or other analysis. 4186 // TODO: Should we allow this? 4187 if (find(Indices, -1) != Indices.end()) 4188 return nullptr; 4189 4190 // Check if every element of this shuffle can be mapped back to the 4191 // corresponding element of a single root vector. If so, we don't need this 4192 // shuffle. This handles simple identity shuffles as well as chains of 4193 // shuffles that may widen/narrow and/or move elements across lanes and back. 4194 Value *RootVec = nullptr; 4195 for (unsigned i = 0; i != MaskNumElts; ++i) { 4196 // Note that recursion is limited for each vector element, so if any element 4197 // exceeds the limit, this will fail to simplify. 4198 RootVec = 4199 foldIdentityShuffles(i, Op0, Op1, Indices[i], RootVec, MaxRecurse); 4200 4201 // We can't replace a widening/narrowing shuffle with one of its operands. 4202 if (!RootVec || RootVec->getType() != RetTy) 4203 return nullptr; 4204 } 4205 return RootVec; 4206 } 4207 4208 /// Given operands for a ShuffleVectorInst, fold the result or return null. 4209 Value *llvm::SimplifyShuffleVectorInst(Value *Op0, Value *Op1, Constant *Mask, 4210 Type *RetTy, const SimplifyQuery &Q) { 4211 return ::SimplifyShuffleVectorInst(Op0, Op1, Mask, RetTy, Q, RecursionLimit); 4212 } 4213 4214 static Constant *propagateNaN(Constant *In) { 4215 // If the input is a vector with undef elements, just return a default NaN. 4216 if (!In->isNaN()) 4217 return ConstantFP::getNaN(In->getType()); 4218 4219 // Propagate the existing NaN constant when possible. 4220 // TODO: Should we quiet a signaling NaN? 4221 return In; 4222 } 4223 4224 static Constant *simplifyFPBinop(Value *Op0, Value *Op1) { 4225 if (isa<UndefValue>(Op0) || isa<UndefValue>(Op1)) 4226 return ConstantFP::getNaN(Op0->getType()); 4227 4228 if (match(Op0, m_NaN())) 4229 return propagateNaN(cast<Constant>(Op0)); 4230 if (match(Op1, m_NaN())) 4231 return propagateNaN(cast<Constant>(Op1)); 4232 4233 return nullptr; 4234 } 4235 4236 /// Given operands for an FAdd, see if we can fold the result. If not, this 4237 /// returns null. 4238 static Value *SimplifyFAddInst(Value *Op0, Value *Op1, FastMathFlags FMF, 4239 const SimplifyQuery &Q, unsigned MaxRecurse) { 4240 if (Constant *C = foldOrCommuteConstant(Instruction::FAdd, Op0, Op1, Q)) 4241 return C; 4242 4243 if (Constant *C = simplifyFPBinop(Op0, Op1)) 4244 return C; 4245 4246 // fadd X, -0 ==> X 4247 if (match(Op1, m_NegZeroFP())) 4248 return Op0; 4249 4250 // fadd X, 0 ==> X, when we know X is not -0 4251 if (match(Op1, m_PosZeroFP()) && 4252 (FMF.noSignedZeros() || CannotBeNegativeZero(Op0, Q.TLI))) 4253 return Op0; 4254 4255 // With nnan: (+/-0.0 - X) + X --> 0.0 (and commuted variant) 4256 // We don't have to explicitly exclude infinities (ninf): INF + -INF == NaN. 4257 // Negative zeros are allowed because we always end up with positive zero: 4258 // X = -0.0: (-0.0 - (-0.0)) + (-0.0) == ( 0.0) + (-0.0) == 0.0 4259 // X = -0.0: ( 0.0 - (-0.0)) + (-0.0) == ( 0.0) + (-0.0) == 0.0 4260 // X = 0.0: (-0.0 - ( 0.0)) + ( 0.0) == (-0.0) + ( 0.0) == 0.0 4261 // X = 0.0: ( 0.0 - ( 0.0)) + ( 0.0) == ( 0.0) + ( 0.0) == 0.0 4262 if (FMF.noNaNs() && (match(Op0, m_FSub(m_AnyZeroFP(), m_Specific(Op1))) || 4263 match(Op1, m_FSub(m_AnyZeroFP(), m_Specific(Op0))))) 4264 return ConstantFP::getNullValue(Op0->getType()); 4265 4266 return nullptr; 4267 } 4268 4269 /// Given operands for an FSub, see if we can fold the result. If not, this 4270 /// returns null. 4271 static Value *SimplifyFSubInst(Value *Op0, Value *Op1, FastMathFlags FMF, 4272 const SimplifyQuery &Q, unsigned MaxRecurse) { 4273 if (Constant *C = foldOrCommuteConstant(Instruction::FSub, Op0, Op1, Q)) 4274 return C; 4275 4276 if (Constant *C = simplifyFPBinop(Op0, Op1)) 4277 return C; 4278 4279 // fsub X, +0 ==> X 4280 if (match(Op1, m_PosZeroFP())) 4281 return Op0; 4282 4283 // fsub X, -0 ==> X, when we know X is not -0 4284 if (match(Op1, m_NegZeroFP()) && 4285 (FMF.noSignedZeros() || CannotBeNegativeZero(Op0, Q.TLI))) 4286 return Op0; 4287 4288 // fsub -0.0, (fsub -0.0, X) ==> X 4289 Value *X; 4290 if (match(Op0, m_NegZeroFP()) && 4291 match(Op1, m_FSub(m_NegZeroFP(), m_Value(X)))) 4292 return X; 4293 4294 // fsub 0.0, (fsub 0.0, X) ==> X if signed zeros are ignored. 4295 if (FMF.noSignedZeros() && match(Op0, m_AnyZeroFP()) && 4296 match(Op1, m_FSub(m_AnyZeroFP(), m_Value(X)))) 4297 return X; 4298 4299 // fsub nnan x, x ==> 0.0 4300 if (FMF.noNaNs() && Op0 == Op1) 4301 return Constant::getNullValue(Op0->getType()); 4302 4303 return nullptr; 4304 } 4305 4306 /// Given the operands for an FMul, see if we can fold the result 4307 static Value *SimplifyFMulInst(Value *Op0, Value *Op1, FastMathFlags FMF, 4308 const SimplifyQuery &Q, unsigned MaxRecurse) { 4309 if (Constant *C = foldOrCommuteConstant(Instruction::FMul, Op0, Op1, Q)) 4310 return C; 4311 4312 if (Constant *C = simplifyFPBinop(Op0, Op1)) 4313 return C; 4314 4315 // fmul X, 1.0 ==> X 4316 if (match(Op1, m_FPOne())) 4317 return Op0; 4318 4319 // fmul nnan nsz X, 0 ==> 0 4320 if (FMF.noNaNs() && FMF.noSignedZeros() && match(Op1, m_AnyZeroFP())) 4321 return ConstantFP::getNullValue(Op0->getType()); 4322 4323 // sqrt(X) * sqrt(X) --> X, if we can: 4324 // 1. Remove the intermediate rounding (reassociate). 4325 // 2. Ignore non-zero negative numbers because sqrt would produce NAN. 4326 // 3. Ignore -0.0 because sqrt(-0.0) == -0.0, but -0.0 * -0.0 == 0.0. 4327 Value *X; 4328 if (Op0 == Op1 && match(Op0, m_Intrinsic<Intrinsic::sqrt>(m_Value(X))) && 4329 FMF.allowReassoc() && FMF.noNaNs() && FMF.noSignedZeros()) 4330 return X; 4331 4332 return nullptr; 4333 } 4334 4335 Value *llvm::SimplifyFAddInst(Value *Op0, Value *Op1, FastMathFlags FMF, 4336 const SimplifyQuery &Q) { 4337 return ::SimplifyFAddInst(Op0, Op1, FMF, Q, RecursionLimit); 4338 } 4339 4340 4341 Value *llvm::SimplifyFSubInst(Value *Op0, Value *Op1, FastMathFlags FMF, 4342 const SimplifyQuery &Q) { 4343 return ::SimplifyFSubInst(Op0, Op1, FMF, Q, RecursionLimit); 4344 } 4345 4346 Value *llvm::SimplifyFMulInst(Value *Op0, Value *Op1, FastMathFlags FMF, 4347 const SimplifyQuery &Q) { 4348 return ::SimplifyFMulInst(Op0, Op1, FMF, Q, RecursionLimit); 4349 } 4350 4351 static Value *SimplifyFDivInst(Value *Op0, Value *Op1, FastMathFlags FMF, 4352 const SimplifyQuery &Q, unsigned) { 4353 if (Constant *C = foldOrCommuteConstant(Instruction::FDiv, Op0, Op1, Q)) 4354 return C; 4355 4356 if (Constant *C = simplifyFPBinop(Op0, Op1)) 4357 return C; 4358 4359 // X / 1.0 -> X 4360 if (match(Op1, m_FPOne())) 4361 return Op0; 4362 4363 // 0 / X -> 0 4364 // Requires that NaNs are off (X could be zero) and signed zeroes are 4365 // ignored (X could be positive or negative, so the output sign is unknown). 4366 if (FMF.noNaNs() && FMF.noSignedZeros() && match(Op0, m_AnyZeroFP())) 4367 return ConstantFP::getNullValue(Op0->getType()); 4368 4369 if (FMF.noNaNs()) { 4370 // X / X -> 1.0 is legal when NaNs are ignored. 4371 // We can ignore infinities because INF/INF is NaN. 4372 if (Op0 == Op1) 4373 return ConstantFP::get(Op0->getType(), 1.0); 4374 4375 // (X * Y) / Y --> X if we can reassociate to the above form. 4376 Value *X; 4377 if (FMF.allowReassoc() && match(Op0, m_c_FMul(m_Value(X), m_Specific(Op1)))) 4378 return X; 4379 4380 // -X / X -> -1.0 and 4381 // X / -X -> -1.0 are legal when NaNs are ignored. 4382 // We can ignore signed zeros because +-0.0/+-0.0 is NaN and ignored. 4383 if ((BinaryOperator::isFNeg(Op0, /*IgnoreZeroSign=*/true) && 4384 BinaryOperator::getFNegArgument(Op0) == Op1) || 4385 (BinaryOperator::isFNeg(Op1, /*IgnoreZeroSign=*/true) && 4386 BinaryOperator::getFNegArgument(Op1) == Op0)) 4387 return ConstantFP::get(Op0->getType(), -1.0); 4388 } 4389 4390 return nullptr; 4391 } 4392 4393 Value *llvm::SimplifyFDivInst(Value *Op0, Value *Op1, FastMathFlags FMF, 4394 const SimplifyQuery &Q) { 4395 return ::SimplifyFDivInst(Op0, Op1, FMF, Q, RecursionLimit); 4396 } 4397 4398 static Value *SimplifyFRemInst(Value *Op0, Value *Op1, FastMathFlags FMF, 4399 const SimplifyQuery &Q, unsigned) { 4400 if (Constant *C = foldOrCommuteConstant(Instruction::FRem, Op0, Op1, Q)) 4401 return C; 4402 4403 if (Constant *C = simplifyFPBinop(Op0, Op1)) 4404 return C; 4405 4406 // Unlike fdiv, the result of frem always matches the sign of the dividend. 4407 // The constant match may include undef elements in a vector, so return a full 4408 // zero constant as the result. 4409 if (FMF.noNaNs()) { 4410 // +0 % X -> 0 4411 if (match(Op0, m_PosZeroFP())) 4412 return ConstantFP::getNullValue(Op0->getType()); 4413 // -0 % X -> -0 4414 if (match(Op0, m_NegZeroFP())) 4415 return ConstantFP::getNegativeZero(Op0->getType()); 4416 } 4417 4418 return nullptr; 4419 } 4420 4421 Value *llvm::SimplifyFRemInst(Value *Op0, Value *Op1, FastMathFlags FMF, 4422 const SimplifyQuery &Q) { 4423 return ::SimplifyFRemInst(Op0, Op1, FMF, Q, RecursionLimit); 4424 } 4425 4426 //=== Helper functions for higher up the class hierarchy. 4427 4428 /// Given operands for a BinaryOperator, see if we can fold the result. 4429 /// If not, this returns null. 4430 static Value *SimplifyBinOp(unsigned Opcode, Value *LHS, Value *RHS, 4431 const SimplifyQuery &Q, unsigned MaxRecurse) { 4432 switch (Opcode) { 4433 case Instruction::Add: 4434 return SimplifyAddInst(LHS, RHS, false, false, Q, MaxRecurse); 4435 case Instruction::Sub: 4436 return SimplifySubInst(LHS, RHS, false, false, Q, MaxRecurse); 4437 case Instruction::Mul: 4438 return SimplifyMulInst(LHS, RHS, Q, MaxRecurse); 4439 case Instruction::SDiv: 4440 return SimplifySDivInst(LHS, RHS, Q, MaxRecurse); 4441 case Instruction::UDiv: 4442 return SimplifyUDivInst(LHS, RHS, Q, MaxRecurse); 4443 case Instruction::SRem: 4444 return SimplifySRemInst(LHS, RHS, Q, MaxRecurse); 4445 case Instruction::URem: 4446 return SimplifyURemInst(LHS, RHS, Q, MaxRecurse); 4447 case Instruction::Shl: 4448 return SimplifyShlInst(LHS, RHS, false, false, Q, MaxRecurse); 4449 case Instruction::LShr: 4450 return SimplifyLShrInst(LHS, RHS, false, Q, MaxRecurse); 4451 case Instruction::AShr: 4452 return SimplifyAShrInst(LHS, RHS, false, Q, MaxRecurse); 4453 case Instruction::And: 4454 return SimplifyAndInst(LHS, RHS, Q, MaxRecurse); 4455 case Instruction::Or: 4456 return SimplifyOrInst(LHS, RHS, Q, MaxRecurse); 4457 case Instruction::Xor: 4458 return SimplifyXorInst(LHS, RHS, Q, MaxRecurse); 4459 case Instruction::FAdd: 4460 return SimplifyFAddInst(LHS, RHS, FastMathFlags(), Q, MaxRecurse); 4461 case Instruction::FSub: 4462 return SimplifyFSubInst(LHS, RHS, FastMathFlags(), Q, MaxRecurse); 4463 case Instruction::FMul: 4464 return SimplifyFMulInst(LHS, RHS, FastMathFlags(), Q, MaxRecurse); 4465 case Instruction::FDiv: 4466 return SimplifyFDivInst(LHS, RHS, FastMathFlags(), Q, MaxRecurse); 4467 case Instruction::FRem: 4468 return SimplifyFRemInst(LHS, RHS, FastMathFlags(), Q, MaxRecurse); 4469 default: 4470 llvm_unreachable("Unexpected opcode"); 4471 } 4472 } 4473 4474 /// Given operands for a BinaryOperator, see if we can fold the result. 4475 /// If not, this returns null. 4476 /// In contrast to SimplifyBinOp, try to use FastMathFlag when folding the 4477 /// result. In case we don't need FastMathFlags, simply fall to SimplifyBinOp. 4478 static Value *SimplifyFPBinOp(unsigned Opcode, Value *LHS, Value *RHS, 4479 const FastMathFlags &FMF, const SimplifyQuery &Q, 4480 unsigned MaxRecurse) { 4481 switch (Opcode) { 4482 case Instruction::FAdd: 4483 return SimplifyFAddInst(LHS, RHS, FMF, Q, MaxRecurse); 4484 case Instruction::FSub: 4485 return SimplifyFSubInst(LHS, RHS, FMF, Q, MaxRecurse); 4486 case Instruction::FMul: 4487 return SimplifyFMulInst(LHS, RHS, FMF, Q, MaxRecurse); 4488 case Instruction::FDiv: 4489 return SimplifyFDivInst(LHS, RHS, FMF, Q, MaxRecurse); 4490 default: 4491 return SimplifyBinOp(Opcode, LHS, RHS, Q, MaxRecurse); 4492 } 4493 } 4494 4495 Value *llvm::SimplifyBinOp(unsigned Opcode, Value *LHS, Value *RHS, 4496 const SimplifyQuery &Q) { 4497 return ::SimplifyBinOp(Opcode, LHS, RHS, Q, RecursionLimit); 4498 } 4499 4500 Value *llvm::SimplifyFPBinOp(unsigned Opcode, Value *LHS, Value *RHS, 4501 FastMathFlags FMF, const SimplifyQuery &Q) { 4502 return ::SimplifyFPBinOp(Opcode, LHS, RHS, FMF, Q, RecursionLimit); 4503 } 4504 4505 /// Given operands for a CmpInst, see if we can fold the result. 4506 static Value *SimplifyCmpInst(unsigned Predicate, Value *LHS, Value *RHS, 4507 const SimplifyQuery &Q, unsigned MaxRecurse) { 4508 if (CmpInst::isIntPredicate((CmpInst::Predicate)Predicate)) 4509 return SimplifyICmpInst(Predicate, LHS, RHS, Q, MaxRecurse); 4510 return SimplifyFCmpInst(Predicate, LHS, RHS, FastMathFlags(), Q, MaxRecurse); 4511 } 4512 4513 Value *llvm::SimplifyCmpInst(unsigned Predicate, Value *LHS, Value *RHS, 4514 const SimplifyQuery &Q) { 4515 return ::SimplifyCmpInst(Predicate, LHS, RHS, Q, RecursionLimit); 4516 } 4517 4518 static bool IsIdempotent(Intrinsic::ID ID) { 4519 switch (ID) { 4520 default: return false; 4521 4522 // Unary idempotent: f(f(x)) = f(x) 4523 case Intrinsic::fabs: 4524 case Intrinsic::floor: 4525 case Intrinsic::ceil: 4526 case Intrinsic::trunc: 4527 case Intrinsic::rint: 4528 case Intrinsic::nearbyint: 4529 case Intrinsic::round: 4530 case Intrinsic::canonicalize: 4531 return true; 4532 } 4533 } 4534 4535 static Value *SimplifyRelativeLoad(Constant *Ptr, Constant *Offset, 4536 const DataLayout &DL) { 4537 GlobalValue *PtrSym; 4538 APInt PtrOffset; 4539 if (!IsConstantOffsetFromGlobal(Ptr, PtrSym, PtrOffset, DL)) 4540 return nullptr; 4541 4542 Type *Int8PtrTy = Type::getInt8PtrTy(Ptr->getContext()); 4543 Type *Int32Ty = Type::getInt32Ty(Ptr->getContext()); 4544 Type *Int32PtrTy = Int32Ty->getPointerTo(); 4545 Type *Int64Ty = Type::getInt64Ty(Ptr->getContext()); 4546 4547 auto *OffsetConstInt = dyn_cast<ConstantInt>(Offset); 4548 if (!OffsetConstInt || OffsetConstInt->getType()->getBitWidth() > 64) 4549 return nullptr; 4550 4551 uint64_t OffsetInt = OffsetConstInt->getSExtValue(); 4552 if (OffsetInt % 4 != 0) 4553 return nullptr; 4554 4555 Constant *C = ConstantExpr::getGetElementPtr( 4556 Int32Ty, ConstantExpr::getBitCast(Ptr, Int32PtrTy), 4557 ConstantInt::get(Int64Ty, OffsetInt / 4)); 4558 Constant *Loaded = ConstantFoldLoadFromConstPtr(C, Int32Ty, DL); 4559 if (!Loaded) 4560 return nullptr; 4561 4562 auto *LoadedCE = dyn_cast<ConstantExpr>(Loaded); 4563 if (!LoadedCE) 4564 return nullptr; 4565 4566 if (LoadedCE->getOpcode() == Instruction::Trunc) { 4567 LoadedCE = dyn_cast<ConstantExpr>(LoadedCE->getOperand(0)); 4568 if (!LoadedCE) 4569 return nullptr; 4570 } 4571 4572 if (LoadedCE->getOpcode() != Instruction::Sub) 4573 return nullptr; 4574 4575 auto *LoadedLHS = dyn_cast<ConstantExpr>(LoadedCE->getOperand(0)); 4576 if (!LoadedLHS || LoadedLHS->getOpcode() != Instruction::PtrToInt) 4577 return nullptr; 4578 auto *LoadedLHSPtr = LoadedLHS->getOperand(0); 4579 4580 Constant *LoadedRHS = LoadedCE->getOperand(1); 4581 GlobalValue *LoadedRHSSym; 4582 APInt LoadedRHSOffset; 4583 if (!IsConstantOffsetFromGlobal(LoadedRHS, LoadedRHSSym, LoadedRHSOffset, 4584 DL) || 4585 PtrSym != LoadedRHSSym || PtrOffset != LoadedRHSOffset) 4586 return nullptr; 4587 4588 return ConstantExpr::getBitCast(LoadedLHSPtr, Int8PtrTy); 4589 } 4590 4591 static bool maskIsAllZeroOrUndef(Value *Mask) { 4592 auto *ConstMask = dyn_cast<Constant>(Mask); 4593 if (!ConstMask) 4594 return false; 4595 if (ConstMask->isNullValue() || isa<UndefValue>(ConstMask)) 4596 return true; 4597 for (unsigned I = 0, E = ConstMask->getType()->getVectorNumElements(); I != E; 4598 ++I) { 4599 if (auto *MaskElt = ConstMask->getAggregateElement(I)) 4600 if (MaskElt->isNullValue() || isa<UndefValue>(MaskElt)) 4601 continue; 4602 return false; 4603 } 4604 return true; 4605 } 4606 4607 template <typename IterTy> 4608 static Value *SimplifyIntrinsic(Function *F, IterTy ArgBegin, IterTy ArgEnd, 4609 const SimplifyQuery &Q, unsigned MaxRecurse) { 4610 Intrinsic::ID IID = F->getIntrinsicID(); 4611 unsigned NumOperands = std::distance(ArgBegin, ArgEnd); 4612 4613 // Unary Ops 4614 if (NumOperands == 1) { 4615 // Perform idempotent optimizations 4616 if (IsIdempotent(IID)) { 4617 if (IntrinsicInst *II = dyn_cast<IntrinsicInst>(*ArgBegin)) { 4618 if (II->getIntrinsicID() == IID) 4619 return II; 4620 } 4621 } 4622 4623 Value *IIOperand = *ArgBegin; 4624 Value *X; 4625 switch (IID) { 4626 case Intrinsic::fabs: { 4627 if (SignBitMustBeZero(IIOperand, Q.TLI)) 4628 return IIOperand; 4629 return nullptr; 4630 } 4631 case Intrinsic::bswap: { 4632 // bswap(bswap(x)) -> x 4633 if (match(IIOperand, m_BSwap(m_Value(X)))) 4634 return X; 4635 return nullptr; 4636 } 4637 case Intrinsic::bitreverse: { 4638 // bitreverse(bitreverse(x)) -> x 4639 if (match(IIOperand, m_BitReverse(m_Value(X)))) 4640 return X; 4641 return nullptr; 4642 } 4643 case Intrinsic::exp: { 4644 // exp(log(x)) -> x 4645 if (Q.CxtI->hasAllowReassoc() && 4646 match(IIOperand, m_Intrinsic<Intrinsic::log>(m_Value(X)))) 4647 return X; 4648 return nullptr; 4649 } 4650 case Intrinsic::exp2: { 4651 // exp2(log2(x)) -> x 4652 if (Q.CxtI->hasAllowReassoc() && 4653 match(IIOperand, m_Intrinsic<Intrinsic::log2>(m_Value(X)))) 4654 return X; 4655 return nullptr; 4656 } 4657 case Intrinsic::log: { 4658 // log(exp(x)) -> x 4659 if (Q.CxtI->hasAllowReassoc() && 4660 match(IIOperand, m_Intrinsic<Intrinsic::exp>(m_Value(X)))) 4661 return X; 4662 return nullptr; 4663 } 4664 case Intrinsic::log2: { 4665 // log2(exp2(x)) -> x 4666 if (Q.CxtI->hasAllowReassoc() && 4667 match(IIOperand, m_Intrinsic<Intrinsic::exp2>(m_Value(X)))) { 4668 return X; 4669 } 4670 return nullptr; 4671 } 4672 default: 4673 return nullptr; 4674 } 4675 } 4676 4677 // Binary Ops 4678 if (NumOperands == 2) { 4679 Value *LHS = *ArgBegin; 4680 Value *RHS = *(ArgBegin + 1); 4681 Type *ReturnType = F->getReturnType(); 4682 4683 switch (IID) { 4684 case Intrinsic::usub_with_overflow: 4685 case Intrinsic::ssub_with_overflow: { 4686 // X - X -> { 0, false } 4687 if (LHS == RHS) 4688 return Constant::getNullValue(ReturnType); 4689 4690 // X - undef -> undef 4691 // undef - X -> undef 4692 if (isa<UndefValue>(LHS) || isa<UndefValue>(RHS)) 4693 return UndefValue::get(ReturnType); 4694 4695 return nullptr; 4696 } 4697 case Intrinsic::uadd_with_overflow: 4698 case Intrinsic::sadd_with_overflow: { 4699 // X + undef -> undef 4700 if (isa<UndefValue>(LHS) || isa<UndefValue>(RHS)) 4701 return UndefValue::get(ReturnType); 4702 4703 return nullptr; 4704 } 4705 case Intrinsic::umul_with_overflow: 4706 case Intrinsic::smul_with_overflow: { 4707 // 0 * X -> { 0, false } 4708 // X * 0 -> { 0, false } 4709 if (match(LHS, m_Zero()) || match(RHS, m_Zero())) 4710 return Constant::getNullValue(ReturnType); 4711 4712 // undef * X -> { 0, false } 4713 // X * undef -> { 0, false } 4714 if (match(LHS, m_Undef()) || match(RHS, m_Undef())) 4715 return Constant::getNullValue(ReturnType); 4716 4717 return nullptr; 4718 } 4719 case Intrinsic::load_relative: { 4720 Constant *C0 = dyn_cast<Constant>(LHS); 4721 Constant *C1 = dyn_cast<Constant>(RHS); 4722 if (C0 && C1) 4723 return SimplifyRelativeLoad(C0, C1, Q.DL); 4724 return nullptr; 4725 } 4726 case Intrinsic::powi: 4727 if (ConstantInt *Power = dyn_cast<ConstantInt>(RHS)) { 4728 // powi(x, 0) -> 1.0 4729 if (Power->isZero()) 4730 return ConstantFP::get(LHS->getType(), 1.0); 4731 // powi(x, 1) -> x 4732 if (Power->isOne()) 4733 return LHS; 4734 } 4735 return nullptr; 4736 case Intrinsic::maxnum: 4737 case Intrinsic::minnum: 4738 // If one argument is NaN, return the other argument. 4739 if (match(LHS, m_NaN())) 4740 return RHS; 4741 if (match(RHS, m_NaN())) 4742 return LHS; 4743 return nullptr; 4744 default: 4745 return nullptr; 4746 } 4747 } 4748 4749 // Simplify calls to llvm.masked.load.* 4750 switch (IID) { 4751 case Intrinsic::masked_load: { 4752 Value *MaskArg = ArgBegin[2]; 4753 Value *PassthruArg = ArgBegin[3]; 4754 // If the mask is all zeros or undef, the "passthru" argument is the result. 4755 if (maskIsAllZeroOrUndef(MaskArg)) 4756 return PassthruArg; 4757 return nullptr; 4758 } 4759 default: 4760 return nullptr; 4761 } 4762 } 4763 4764 template <typename IterTy> 4765 static Value *SimplifyCall(ImmutableCallSite CS, Value *V, IterTy ArgBegin, 4766 IterTy ArgEnd, const SimplifyQuery &Q, 4767 unsigned MaxRecurse) { 4768 Type *Ty = V->getType(); 4769 if (PointerType *PTy = dyn_cast<PointerType>(Ty)) 4770 Ty = PTy->getElementType(); 4771 FunctionType *FTy = cast<FunctionType>(Ty); 4772 4773 // call undef -> undef 4774 // call null -> undef 4775 if (isa<UndefValue>(V) || isa<ConstantPointerNull>(V)) 4776 return UndefValue::get(FTy->getReturnType()); 4777 4778 Function *F = dyn_cast<Function>(V); 4779 if (!F) 4780 return nullptr; 4781 4782 if (F->isIntrinsic()) 4783 if (Value *Ret = SimplifyIntrinsic(F, ArgBegin, ArgEnd, Q, MaxRecurse)) 4784 return Ret; 4785 4786 if (!canConstantFoldCallTo(CS, F)) 4787 return nullptr; 4788 4789 SmallVector<Constant *, 4> ConstantArgs; 4790 ConstantArgs.reserve(ArgEnd - ArgBegin); 4791 for (IterTy I = ArgBegin, E = ArgEnd; I != E; ++I) { 4792 Constant *C = dyn_cast<Constant>(*I); 4793 if (!C) 4794 return nullptr; 4795 ConstantArgs.push_back(C); 4796 } 4797 4798 return ConstantFoldCall(CS, F, ConstantArgs, Q.TLI); 4799 } 4800 4801 Value *llvm::SimplifyCall(ImmutableCallSite CS, Value *V, 4802 User::op_iterator ArgBegin, User::op_iterator ArgEnd, 4803 const SimplifyQuery &Q) { 4804 return ::SimplifyCall(CS, V, ArgBegin, ArgEnd, Q, RecursionLimit); 4805 } 4806 4807 Value *llvm::SimplifyCall(ImmutableCallSite CS, Value *V, 4808 ArrayRef<Value *> Args, const SimplifyQuery &Q) { 4809 return ::SimplifyCall(CS, V, Args.begin(), Args.end(), Q, RecursionLimit); 4810 } 4811 4812 Value *llvm::SimplifyCall(ImmutableCallSite ICS, const SimplifyQuery &Q) { 4813 CallSite CS(const_cast<Instruction*>(ICS.getInstruction())); 4814 return ::SimplifyCall(CS, CS.getCalledValue(), CS.arg_begin(), CS.arg_end(), 4815 Q, RecursionLimit); 4816 } 4817 4818 /// See if we can compute a simplified version of this instruction. 4819 /// If not, this returns null. 4820 4821 Value *llvm::SimplifyInstruction(Instruction *I, const SimplifyQuery &SQ, 4822 OptimizationRemarkEmitter *ORE) { 4823 const SimplifyQuery Q = SQ.CxtI ? SQ : SQ.getWithInstruction(I); 4824 Value *Result; 4825 4826 switch (I->getOpcode()) { 4827 default: 4828 Result = ConstantFoldInstruction(I, Q.DL, Q.TLI); 4829 break; 4830 case Instruction::FAdd: 4831 Result = SimplifyFAddInst(I->getOperand(0), I->getOperand(1), 4832 I->getFastMathFlags(), Q); 4833 break; 4834 case Instruction::Add: 4835 Result = SimplifyAddInst(I->getOperand(0), I->getOperand(1), 4836 cast<BinaryOperator>(I)->hasNoSignedWrap(), 4837 cast<BinaryOperator>(I)->hasNoUnsignedWrap(), Q); 4838 break; 4839 case Instruction::FSub: 4840 Result = SimplifyFSubInst(I->getOperand(0), I->getOperand(1), 4841 I->getFastMathFlags(), Q); 4842 break; 4843 case Instruction::Sub: 4844 Result = SimplifySubInst(I->getOperand(0), I->getOperand(1), 4845 cast<BinaryOperator>(I)->hasNoSignedWrap(), 4846 cast<BinaryOperator>(I)->hasNoUnsignedWrap(), Q); 4847 break; 4848 case Instruction::FMul: 4849 Result = SimplifyFMulInst(I->getOperand(0), I->getOperand(1), 4850 I->getFastMathFlags(), Q); 4851 break; 4852 case Instruction::Mul: 4853 Result = SimplifyMulInst(I->getOperand(0), I->getOperand(1), Q); 4854 break; 4855 case Instruction::SDiv: 4856 Result = SimplifySDivInst(I->getOperand(0), I->getOperand(1), Q); 4857 break; 4858 case Instruction::UDiv: 4859 Result = SimplifyUDivInst(I->getOperand(0), I->getOperand(1), Q); 4860 break; 4861 case Instruction::FDiv: 4862 Result = SimplifyFDivInst(I->getOperand(0), I->getOperand(1), 4863 I->getFastMathFlags(), Q); 4864 break; 4865 case Instruction::SRem: 4866 Result = SimplifySRemInst(I->getOperand(0), I->getOperand(1), Q); 4867 break; 4868 case Instruction::URem: 4869 Result = SimplifyURemInst(I->getOperand(0), I->getOperand(1), Q); 4870 break; 4871 case Instruction::FRem: 4872 Result = SimplifyFRemInst(I->getOperand(0), I->getOperand(1), 4873 I->getFastMathFlags(), Q); 4874 break; 4875 case Instruction::Shl: 4876 Result = SimplifyShlInst(I->getOperand(0), I->getOperand(1), 4877 cast<BinaryOperator>(I)->hasNoSignedWrap(), 4878 cast<BinaryOperator>(I)->hasNoUnsignedWrap(), Q); 4879 break; 4880 case Instruction::LShr: 4881 Result = SimplifyLShrInst(I->getOperand(0), I->getOperand(1), 4882 cast<BinaryOperator>(I)->isExact(), Q); 4883 break; 4884 case Instruction::AShr: 4885 Result = SimplifyAShrInst(I->getOperand(0), I->getOperand(1), 4886 cast<BinaryOperator>(I)->isExact(), Q); 4887 break; 4888 case Instruction::And: 4889 Result = SimplifyAndInst(I->getOperand(0), I->getOperand(1), Q); 4890 break; 4891 case Instruction::Or: 4892 Result = SimplifyOrInst(I->getOperand(0), I->getOperand(1), Q); 4893 break; 4894 case Instruction::Xor: 4895 Result = SimplifyXorInst(I->getOperand(0), I->getOperand(1), Q); 4896 break; 4897 case Instruction::ICmp: 4898 Result = SimplifyICmpInst(cast<ICmpInst>(I)->getPredicate(), 4899 I->getOperand(0), I->getOperand(1), Q); 4900 break; 4901 case Instruction::FCmp: 4902 Result = 4903 SimplifyFCmpInst(cast<FCmpInst>(I)->getPredicate(), I->getOperand(0), 4904 I->getOperand(1), I->getFastMathFlags(), Q); 4905 break; 4906 case Instruction::Select: 4907 Result = SimplifySelectInst(I->getOperand(0), I->getOperand(1), 4908 I->getOperand(2), Q); 4909 break; 4910 case Instruction::GetElementPtr: { 4911 SmallVector<Value *, 8> Ops(I->op_begin(), I->op_end()); 4912 Result = SimplifyGEPInst(cast<GetElementPtrInst>(I)->getSourceElementType(), 4913 Ops, Q); 4914 break; 4915 } 4916 case Instruction::InsertValue: { 4917 InsertValueInst *IV = cast<InsertValueInst>(I); 4918 Result = SimplifyInsertValueInst(IV->getAggregateOperand(), 4919 IV->getInsertedValueOperand(), 4920 IV->getIndices(), Q); 4921 break; 4922 } 4923 case Instruction::InsertElement: { 4924 auto *IE = cast<InsertElementInst>(I); 4925 Result = SimplifyInsertElementInst(IE->getOperand(0), IE->getOperand(1), 4926 IE->getOperand(2), Q); 4927 break; 4928 } 4929 case Instruction::ExtractValue: { 4930 auto *EVI = cast<ExtractValueInst>(I); 4931 Result = SimplifyExtractValueInst(EVI->getAggregateOperand(), 4932 EVI->getIndices(), Q); 4933 break; 4934 } 4935 case Instruction::ExtractElement: { 4936 auto *EEI = cast<ExtractElementInst>(I); 4937 Result = SimplifyExtractElementInst(EEI->getVectorOperand(), 4938 EEI->getIndexOperand(), Q); 4939 break; 4940 } 4941 case Instruction::ShuffleVector: { 4942 auto *SVI = cast<ShuffleVectorInst>(I); 4943 Result = SimplifyShuffleVectorInst(SVI->getOperand(0), SVI->getOperand(1), 4944 SVI->getMask(), SVI->getType(), Q); 4945 break; 4946 } 4947 case Instruction::PHI: 4948 Result = SimplifyPHINode(cast<PHINode>(I), Q); 4949 break; 4950 case Instruction::Call: { 4951 CallSite CS(cast<CallInst>(I)); 4952 Result = SimplifyCall(CS, Q); 4953 break; 4954 } 4955 #define HANDLE_CAST_INST(num, opc, clas) case Instruction::opc: 4956 #include "llvm/IR/Instruction.def" 4957 #undef HANDLE_CAST_INST 4958 Result = 4959 SimplifyCastInst(I->getOpcode(), I->getOperand(0), I->getType(), Q); 4960 break; 4961 case Instruction::Alloca: 4962 // No simplifications for Alloca and it can't be constant folded. 4963 Result = nullptr; 4964 break; 4965 } 4966 4967 // In general, it is possible for computeKnownBits to determine all bits in a 4968 // value even when the operands are not all constants. 4969 if (!Result && I->getType()->isIntOrIntVectorTy()) { 4970 KnownBits Known = computeKnownBits(I, Q.DL, /*Depth*/ 0, Q.AC, I, Q.DT, ORE); 4971 if (Known.isConstant()) 4972 Result = ConstantInt::get(I->getType(), Known.getConstant()); 4973 } 4974 4975 /// If called on unreachable code, the above logic may report that the 4976 /// instruction simplified to itself. Make life easier for users by 4977 /// detecting that case here, returning a safe value instead. 4978 return Result == I ? UndefValue::get(I->getType()) : Result; 4979 } 4980 4981 /// Implementation of recursive simplification through an instruction's 4982 /// uses. 4983 /// 4984 /// This is the common implementation of the recursive simplification routines. 4985 /// If we have a pre-simplified value in 'SimpleV', that is forcibly used to 4986 /// replace the instruction 'I'. Otherwise, we simply add 'I' to the list of 4987 /// instructions to process and attempt to simplify it using 4988 /// InstructionSimplify. 4989 /// 4990 /// This routine returns 'true' only when *it* simplifies something. The passed 4991 /// in simplified value does not count toward this. 4992 static bool replaceAndRecursivelySimplifyImpl(Instruction *I, Value *SimpleV, 4993 const TargetLibraryInfo *TLI, 4994 const DominatorTree *DT, 4995 AssumptionCache *AC) { 4996 bool Simplified = false; 4997 SmallSetVector<Instruction *, 8> Worklist; 4998 const DataLayout &DL = I->getModule()->getDataLayout(); 4999 5000 // If we have an explicit value to collapse to, do that round of the 5001 // simplification loop by hand initially. 5002 if (SimpleV) { 5003 for (User *U : I->users()) 5004 if (U != I) 5005 Worklist.insert(cast<Instruction>(U)); 5006 5007 // Replace the instruction with its simplified value. 5008 I->replaceAllUsesWith(SimpleV); 5009 5010 // Gracefully handle edge cases where the instruction is not wired into any 5011 // parent block. 5012 if (I->getParent() && !I->isEHPad() && !isa<TerminatorInst>(I) && 5013 !I->mayHaveSideEffects()) 5014 I->eraseFromParent(); 5015 } else { 5016 Worklist.insert(I); 5017 } 5018 5019 // Note that we must test the size on each iteration, the worklist can grow. 5020 for (unsigned Idx = 0; Idx != Worklist.size(); ++Idx) { 5021 I = Worklist[Idx]; 5022 5023 // See if this instruction simplifies. 5024 SimpleV = SimplifyInstruction(I, {DL, TLI, DT, AC}); 5025 if (!SimpleV) 5026 continue; 5027 5028 Simplified = true; 5029 5030 // Stash away all the uses of the old instruction so we can check them for 5031 // recursive simplifications after a RAUW. This is cheaper than checking all 5032 // uses of To on the recursive step in most cases. 5033 for (User *U : I->users()) 5034 Worklist.insert(cast<Instruction>(U)); 5035 5036 // Replace the instruction with its simplified value. 5037 I->replaceAllUsesWith(SimpleV); 5038 5039 // Gracefully handle edge cases where the instruction is not wired into any 5040 // parent block. 5041 if (I->getParent() && !I->isEHPad() && !isa<TerminatorInst>(I) && 5042 !I->mayHaveSideEffects()) 5043 I->eraseFromParent(); 5044 } 5045 return Simplified; 5046 } 5047 5048 bool llvm::recursivelySimplifyInstruction(Instruction *I, 5049 const TargetLibraryInfo *TLI, 5050 const DominatorTree *DT, 5051 AssumptionCache *AC) { 5052 return replaceAndRecursivelySimplifyImpl(I, nullptr, TLI, DT, AC); 5053 } 5054 5055 bool llvm::replaceAndRecursivelySimplify(Instruction *I, Value *SimpleV, 5056 const TargetLibraryInfo *TLI, 5057 const DominatorTree *DT, 5058 AssumptionCache *AC) { 5059 assert(I != SimpleV && "replaceAndRecursivelySimplify(X,X) is not valid!"); 5060 assert(SimpleV && "Must provide a simplified value."); 5061 return replaceAndRecursivelySimplifyImpl(I, SimpleV, TLI, DT, AC); 5062 } 5063 5064 namespace llvm { 5065 const SimplifyQuery getBestSimplifyQuery(Pass &P, Function &F) { 5066 auto *DTWP = P.getAnalysisIfAvailable<DominatorTreeWrapperPass>(); 5067 auto *DT = DTWP ? &DTWP->getDomTree() : nullptr; 5068 auto *TLIWP = P.getAnalysisIfAvailable<TargetLibraryInfoWrapperPass>(); 5069 auto *TLI = TLIWP ? &TLIWP->getTLI() : nullptr; 5070 auto *ACWP = P.getAnalysisIfAvailable<AssumptionCacheTracker>(); 5071 auto *AC = ACWP ? &ACWP->getAssumptionCache(F) : nullptr; 5072 return {F.getParent()->getDataLayout(), TLI, DT, AC}; 5073 } 5074 5075 const SimplifyQuery getBestSimplifyQuery(LoopStandardAnalysisResults &AR, 5076 const DataLayout &DL) { 5077 return {DL, &AR.TLI, &AR.DT, &AR.AC}; 5078 } 5079 5080 template <class T, class... TArgs> 5081 const SimplifyQuery getBestSimplifyQuery(AnalysisManager<T, TArgs...> &AM, 5082 Function &F) { 5083 auto *DT = AM.template getCachedResult<DominatorTreeAnalysis>(F); 5084 auto *TLI = AM.template getCachedResult<TargetLibraryAnalysis>(F); 5085 auto *AC = AM.template getCachedResult<AssumptionAnalysis>(F); 5086 return {F.getParent()->getDataLayout(), TLI, DT, AC}; 5087 } 5088 template const SimplifyQuery getBestSimplifyQuery(AnalysisManager<Function> &, 5089 Function &); 5090 } 5091