1 //===- InstCombineCompares.cpp --------------------------------------------===// 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 the visitICmp and visitFCmp functions. 11 // 12 //===----------------------------------------------------------------------===// 13 14 #include "InstCombineInternal.h" 15 #include "llvm/ADT/APSInt.h" 16 #include "llvm/ADT/SetVector.h" 17 #include "llvm/ADT/Statistic.h" 18 #include "llvm/Analysis/ConstantFolding.h" 19 #include "llvm/Analysis/InstructionSimplify.h" 20 #include "llvm/Analysis/MemoryBuiltins.h" 21 #include "llvm/Analysis/TargetLibraryInfo.h" 22 #include "llvm/Analysis/VectorUtils.h" 23 #include "llvm/IR/ConstantRange.h" 24 #include "llvm/IR/DataLayout.h" 25 #include "llvm/IR/GetElementPtrTypeIterator.h" 26 #include "llvm/IR/IntrinsicInst.h" 27 #include "llvm/IR/PatternMatch.h" 28 #include "llvm/Support/Debug.h" 29 #include "llvm/Support/KnownBits.h" 30 31 using namespace llvm; 32 using namespace PatternMatch; 33 34 #define DEBUG_TYPE "instcombine" 35 36 // How many times is a select replaced by one of its operands? 37 STATISTIC(NumSel, "Number of select opts"); 38 39 40 static ConstantInt *extractElement(Constant *V, Constant *Idx) { 41 return cast<ConstantInt>(ConstantExpr::getExtractElement(V, Idx)); 42 } 43 44 static bool hasAddOverflow(ConstantInt *Result, 45 ConstantInt *In1, ConstantInt *In2, 46 bool IsSigned) { 47 if (!IsSigned) 48 return Result->getValue().ult(In1->getValue()); 49 50 if (In2->isNegative()) 51 return Result->getValue().sgt(In1->getValue()); 52 return Result->getValue().slt(In1->getValue()); 53 } 54 55 /// Compute Result = In1+In2, returning true if the result overflowed for this 56 /// type. 57 static bool addWithOverflow(Constant *&Result, Constant *In1, 58 Constant *In2, bool IsSigned = false) { 59 Result = ConstantExpr::getAdd(In1, In2); 60 61 if (VectorType *VTy = dyn_cast<VectorType>(In1->getType())) { 62 for (unsigned i = 0, e = VTy->getNumElements(); i != e; ++i) { 63 Constant *Idx = ConstantInt::get(Type::getInt32Ty(In1->getContext()), i); 64 if (hasAddOverflow(extractElement(Result, Idx), 65 extractElement(In1, Idx), 66 extractElement(In2, Idx), 67 IsSigned)) 68 return true; 69 } 70 return false; 71 } 72 73 return hasAddOverflow(cast<ConstantInt>(Result), 74 cast<ConstantInt>(In1), cast<ConstantInt>(In2), 75 IsSigned); 76 } 77 78 static bool hasSubOverflow(ConstantInt *Result, 79 ConstantInt *In1, ConstantInt *In2, 80 bool IsSigned) { 81 if (!IsSigned) 82 return Result->getValue().ugt(In1->getValue()); 83 84 if (In2->isNegative()) 85 return Result->getValue().slt(In1->getValue()); 86 87 return Result->getValue().sgt(In1->getValue()); 88 } 89 90 /// Compute Result = In1-In2, returning true if the result overflowed for this 91 /// type. 92 static bool subWithOverflow(Constant *&Result, Constant *In1, 93 Constant *In2, bool IsSigned = false) { 94 Result = ConstantExpr::getSub(In1, In2); 95 96 if (VectorType *VTy = dyn_cast<VectorType>(In1->getType())) { 97 for (unsigned i = 0, e = VTy->getNumElements(); i != e; ++i) { 98 Constant *Idx = ConstantInt::get(Type::getInt32Ty(In1->getContext()), i); 99 if (hasSubOverflow(extractElement(Result, Idx), 100 extractElement(In1, Idx), 101 extractElement(In2, Idx), 102 IsSigned)) 103 return true; 104 } 105 return false; 106 } 107 108 return hasSubOverflow(cast<ConstantInt>(Result), 109 cast<ConstantInt>(In1), cast<ConstantInt>(In2), 110 IsSigned); 111 } 112 113 /// Given an icmp instruction, return true if any use of this comparison is a 114 /// branch on sign bit comparison. 115 static bool hasBranchUse(ICmpInst &I) { 116 for (auto *U : I.users()) 117 if (isa<BranchInst>(U)) 118 return true; 119 return false; 120 } 121 122 /// Given an exploded icmp instruction, return true if the comparison only 123 /// checks the sign bit. If it only checks the sign bit, set TrueIfSigned if the 124 /// result of the comparison is true when the input value is signed. 125 static bool isSignBitCheck(ICmpInst::Predicate Pred, const APInt &RHS, 126 bool &TrueIfSigned) { 127 switch (Pred) { 128 case ICmpInst::ICMP_SLT: // True if LHS s< 0 129 TrueIfSigned = true; 130 return RHS.isNullValue(); 131 case ICmpInst::ICMP_SLE: // True if LHS s<= RHS and RHS == -1 132 TrueIfSigned = true; 133 return RHS.isAllOnesValue(); 134 case ICmpInst::ICMP_SGT: // True if LHS s> -1 135 TrueIfSigned = false; 136 return RHS.isAllOnesValue(); 137 case ICmpInst::ICMP_UGT: 138 // True if LHS u> RHS and RHS == high-bit-mask - 1 139 TrueIfSigned = true; 140 return RHS.isMaxSignedValue(); 141 case ICmpInst::ICMP_UGE: 142 // True if LHS u>= RHS and RHS == high-bit-mask (2^7, 2^15, 2^31, etc) 143 TrueIfSigned = true; 144 return RHS.isSignMask(); 145 default: 146 return false; 147 } 148 } 149 150 /// Returns true if the exploded icmp can be expressed as a signed comparison 151 /// to zero and updates the predicate accordingly. 152 /// The signedness of the comparison is preserved. 153 /// TODO: Refactor with decomposeBitTestICmp()? 154 static bool isSignTest(ICmpInst::Predicate &Pred, const APInt &C) { 155 if (!ICmpInst::isSigned(Pred)) 156 return false; 157 158 if (C.isNullValue()) 159 return ICmpInst::isRelational(Pred); 160 161 if (C.isOneValue()) { 162 if (Pred == ICmpInst::ICMP_SLT) { 163 Pred = ICmpInst::ICMP_SLE; 164 return true; 165 } 166 } else if (C.isAllOnesValue()) { 167 if (Pred == ICmpInst::ICMP_SGT) { 168 Pred = ICmpInst::ICMP_SGE; 169 return true; 170 } 171 } 172 173 return false; 174 } 175 176 /// Given a signed integer type and a set of known zero and one bits, compute 177 /// the maximum and minimum values that could have the specified known zero and 178 /// known one bits, returning them in Min/Max. 179 /// TODO: Move to method on KnownBits struct? 180 static void computeSignedMinMaxValuesFromKnownBits(const KnownBits &Known, 181 APInt &Min, APInt &Max) { 182 assert(Known.getBitWidth() == Min.getBitWidth() && 183 Known.getBitWidth() == Max.getBitWidth() && 184 "KnownZero, KnownOne and Min, Max must have equal bitwidth."); 185 APInt UnknownBits = ~(Known.Zero|Known.One); 186 187 // The minimum value is when all unknown bits are zeros, EXCEPT for the sign 188 // bit if it is unknown. 189 Min = Known.One; 190 Max = Known.One|UnknownBits; 191 192 if (UnknownBits.isNegative()) { // Sign bit is unknown 193 Min.setSignBit(); 194 Max.clearSignBit(); 195 } 196 } 197 198 /// Given an unsigned integer type and a set of known zero and one bits, compute 199 /// the maximum and minimum values that could have the specified known zero and 200 /// known one bits, returning them in Min/Max. 201 /// TODO: Move to method on KnownBits struct? 202 static void computeUnsignedMinMaxValuesFromKnownBits(const KnownBits &Known, 203 APInt &Min, APInt &Max) { 204 assert(Known.getBitWidth() == Min.getBitWidth() && 205 Known.getBitWidth() == Max.getBitWidth() && 206 "Ty, KnownZero, KnownOne and Min, Max must have equal bitwidth."); 207 APInt UnknownBits = ~(Known.Zero|Known.One); 208 209 // The minimum value is when the unknown bits are all zeros. 210 Min = Known.One; 211 // The maximum value is when the unknown bits are all ones. 212 Max = Known.One|UnknownBits; 213 } 214 215 /// This is called when we see this pattern: 216 /// cmp pred (load (gep GV, ...)), cmpcst 217 /// where GV is a global variable with a constant initializer. Try to simplify 218 /// this into some simple computation that does not need the load. For example 219 /// we can optimize "icmp eq (load (gep "foo", 0, i)), 0" into "icmp eq i, 3". 220 /// 221 /// If AndCst is non-null, then the loaded value is masked with that constant 222 /// before doing the comparison. This handles cases like "A[i]&4 == 0". 223 Instruction *InstCombiner::foldCmpLoadFromIndexedGlobal(GetElementPtrInst *GEP, 224 GlobalVariable *GV, 225 CmpInst &ICI, 226 ConstantInt *AndCst) { 227 Constant *Init = GV->getInitializer(); 228 if (!isa<ConstantArray>(Init) && !isa<ConstantDataArray>(Init)) 229 return nullptr; 230 231 uint64_t ArrayElementCount = Init->getType()->getArrayNumElements(); 232 // Don't blow up on huge arrays. 233 if (ArrayElementCount > MaxArraySizeForCombine) 234 return nullptr; 235 236 // There are many forms of this optimization we can handle, for now, just do 237 // the simple index into a single-dimensional array. 238 // 239 // Require: GEP GV, 0, i {{, constant indices}} 240 if (GEP->getNumOperands() < 3 || 241 !isa<ConstantInt>(GEP->getOperand(1)) || 242 !cast<ConstantInt>(GEP->getOperand(1))->isZero() || 243 isa<Constant>(GEP->getOperand(2))) 244 return nullptr; 245 246 // Check that indices after the variable are constants and in-range for the 247 // type they index. Collect the indices. This is typically for arrays of 248 // structs. 249 SmallVector<unsigned, 4> LaterIndices; 250 251 Type *EltTy = Init->getType()->getArrayElementType(); 252 for (unsigned i = 3, e = GEP->getNumOperands(); i != e; ++i) { 253 ConstantInt *Idx = dyn_cast<ConstantInt>(GEP->getOperand(i)); 254 if (!Idx) return nullptr; // Variable index. 255 256 uint64_t IdxVal = Idx->getZExtValue(); 257 if ((unsigned)IdxVal != IdxVal) return nullptr; // Too large array index. 258 259 if (StructType *STy = dyn_cast<StructType>(EltTy)) 260 EltTy = STy->getElementType(IdxVal); 261 else if (ArrayType *ATy = dyn_cast<ArrayType>(EltTy)) { 262 if (IdxVal >= ATy->getNumElements()) return nullptr; 263 EltTy = ATy->getElementType(); 264 } else { 265 return nullptr; // Unknown type. 266 } 267 268 LaterIndices.push_back(IdxVal); 269 } 270 271 enum { Overdefined = -3, Undefined = -2 }; 272 273 // Variables for our state machines. 274 275 // FirstTrueElement/SecondTrueElement - Used to emit a comparison of the form 276 // "i == 47 | i == 87", where 47 is the first index the condition is true for, 277 // and 87 is the second (and last) index. FirstTrueElement is -2 when 278 // undefined, otherwise set to the first true element. SecondTrueElement is 279 // -2 when undefined, -3 when overdefined and >= 0 when that index is true. 280 int FirstTrueElement = Undefined, SecondTrueElement = Undefined; 281 282 // FirstFalseElement/SecondFalseElement - Used to emit a comparison of the 283 // form "i != 47 & i != 87". Same state transitions as for true elements. 284 int FirstFalseElement = Undefined, SecondFalseElement = Undefined; 285 286 /// TrueRangeEnd/FalseRangeEnd - In conjunction with First*Element, these 287 /// define a state machine that triggers for ranges of values that the index 288 /// is true or false for. This triggers on things like "abbbbc"[i] == 'b'. 289 /// This is -2 when undefined, -3 when overdefined, and otherwise the last 290 /// index in the range (inclusive). We use -2 for undefined here because we 291 /// use relative comparisons and don't want 0-1 to match -1. 292 int TrueRangeEnd = Undefined, FalseRangeEnd = Undefined; 293 294 // MagicBitvector - This is a magic bitvector where we set a bit if the 295 // comparison is true for element 'i'. If there are 64 elements or less in 296 // the array, this will fully represent all the comparison results. 297 uint64_t MagicBitvector = 0; 298 299 // Scan the array and see if one of our patterns matches. 300 Constant *CompareRHS = cast<Constant>(ICI.getOperand(1)); 301 for (unsigned i = 0, e = ArrayElementCount; i != e; ++i) { 302 Constant *Elt = Init->getAggregateElement(i); 303 if (!Elt) return nullptr; 304 305 // If this is indexing an array of structures, get the structure element. 306 if (!LaterIndices.empty()) 307 Elt = ConstantExpr::getExtractValue(Elt, LaterIndices); 308 309 // If the element is masked, handle it. 310 if (AndCst) Elt = ConstantExpr::getAnd(Elt, AndCst); 311 312 // Find out if the comparison would be true or false for the i'th element. 313 Constant *C = ConstantFoldCompareInstOperands(ICI.getPredicate(), Elt, 314 CompareRHS, DL, &TLI); 315 // If the result is undef for this element, ignore it. 316 if (isa<UndefValue>(C)) { 317 // Extend range state machines to cover this element in case there is an 318 // undef in the middle of the range. 319 if (TrueRangeEnd == (int)i-1) 320 TrueRangeEnd = i; 321 if (FalseRangeEnd == (int)i-1) 322 FalseRangeEnd = i; 323 continue; 324 } 325 326 // If we can't compute the result for any of the elements, we have to give 327 // up evaluating the entire conditional. 328 if (!isa<ConstantInt>(C)) return nullptr; 329 330 // Otherwise, we know if the comparison is true or false for this element, 331 // update our state machines. 332 bool IsTrueForElt = !cast<ConstantInt>(C)->isZero(); 333 334 // State machine for single/double/range index comparison. 335 if (IsTrueForElt) { 336 // Update the TrueElement state machine. 337 if (FirstTrueElement == Undefined) 338 FirstTrueElement = TrueRangeEnd = i; // First true element. 339 else { 340 // Update double-compare state machine. 341 if (SecondTrueElement == Undefined) 342 SecondTrueElement = i; 343 else 344 SecondTrueElement = Overdefined; 345 346 // Update range state machine. 347 if (TrueRangeEnd == (int)i-1) 348 TrueRangeEnd = i; 349 else 350 TrueRangeEnd = Overdefined; 351 } 352 } else { 353 // Update the FalseElement state machine. 354 if (FirstFalseElement == Undefined) 355 FirstFalseElement = FalseRangeEnd = i; // First false element. 356 else { 357 // Update double-compare state machine. 358 if (SecondFalseElement == Undefined) 359 SecondFalseElement = i; 360 else 361 SecondFalseElement = Overdefined; 362 363 // Update range state machine. 364 if (FalseRangeEnd == (int)i-1) 365 FalseRangeEnd = i; 366 else 367 FalseRangeEnd = Overdefined; 368 } 369 } 370 371 // If this element is in range, update our magic bitvector. 372 if (i < 64 && IsTrueForElt) 373 MagicBitvector |= 1ULL << i; 374 375 // If all of our states become overdefined, bail out early. Since the 376 // predicate is expensive, only check it every 8 elements. This is only 377 // really useful for really huge arrays. 378 if ((i & 8) == 0 && i >= 64 && SecondTrueElement == Overdefined && 379 SecondFalseElement == Overdefined && TrueRangeEnd == Overdefined && 380 FalseRangeEnd == Overdefined) 381 return nullptr; 382 } 383 384 // Now that we've scanned the entire array, emit our new comparison(s). We 385 // order the state machines in complexity of the generated code. 386 Value *Idx = GEP->getOperand(2); 387 388 // If the index is larger than the pointer size of the target, truncate the 389 // index down like the GEP would do implicitly. We don't have to do this for 390 // an inbounds GEP because the index can't be out of range. 391 if (!GEP->isInBounds()) { 392 Type *IntPtrTy = DL.getIntPtrType(GEP->getType()); 393 unsigned PtrSize = IntPtrTy->getIntegerBitWidth(); 394 if (Idx->getType()->getPrimitiveSizeInBits() > PtrSize) 395 Idx = Builder.CreateTrunc(Idx, IntPtrTy); 396 } 397 398 // If the comparison is only true for one or two elements, emit direct 399 // comparisons. 400 if (SecondTrueElement != Overdefined) { 401 // None true -> false. 402 if (FirstTrueElement == Undefined) 403 return replaceInstUsesWith(ICI, Builder.getFalse()); 404 405 Value *FirstTrueIdx = ConstantInt::get(Idx->getType(), FirstTrueElement); 406 407 // True for one element -> 'i == 47'. 408 if (SecondTrueElement == Undefined) 409 return new ICmpInst(ICmpInst::ICMP_EQ, Idx, FirstTrueIdx); 410 411 // True for two elements -> 'i == 47 | i == 72'. 412 Value *C1 = Builder.CreateICmpEQ(Idx, FirstTrueIdx); 413 Value *SecondTrueIdx = ConstantInt::get(Idx->getType(), SecondTrueElement); 414 Value *C2 = Builder.CreateICmpEQ(Idx, SecondTrueIdx); 415 return BinaryOperator::CreateOr(C1, C2); 416 } 417 418 // If the comparison is only false for one or two elements, emit direct 419 // comparisons. 420 if (SecondFalseElement != Overdefined) { 421 // None false -> true. 422 if (FirstFalseElement == Undefined) 423 return replaceInstUsesWith(ICI, Builder.getTrue()); 424 425 Value *FirstFalseIdx = ConstantInt::get(Idx->getType(), FirstFalseElement); 426 427 // False for one element -> 'i != 47'. 428 if (SecondFalseElement == Undefined) 429 return new ICmpInst(ICmpInst::ICMP_NE, Idx, FirstFalseIdx); 430 431 // False for two elements -> 'i != 47 & i != 72'. 432 Value *C1 = Builder.CreateICmpNE(Idx, FirstFalseIdx); 433 Value *SecondFalseIdx = ConstantInt::get(Idx->getType(),SecondFalseElement); 434 Value *C2 = Builder.CreateICmpNE(Idx, SecondFalseIdx); 435 return BinaryOperator::CreateAnd(C1, C2); 436 } 437 438 // If the comparison can be replaced with a range comparison for the elements 439 // where it is true, emit the range check. 440 if (TrueRangeEnd != Overdefined) { 441 assert(TrueRangeEnd != FirstTrueElement && "Should emit single compare"); 442 443 // Generate (i-FirstTrue) <u (TrueRangeEnd-FirstTrue+1). 444 if (FirstTrueElement) { 445 Value *Offs = ConstantInt::get(Idx->getType(), -FirstTrueElement); 446 Idx = Builder.CreateAdd(Idx, Offs); 447 } 448 449 Value *End = ConstantInt::get(Idx->getType(), 450 TrueRangeEnd-FirstTrueElement+1); 451 return new ICmpInst(ICmpInst::ICMP_ULT, Idx, End); 452 } 453 454 // False range check. 455 if (FalseRangeEnd != Overdefined) { 456 assert(FalseRangeEnd != FirstFalseElement && "Should emit single compare"); 457 // Generate (i-FirstFalse) >u (FalseRangeEnd-FirstFalse). 458 if (FirstFalseElement) { 459 Value *Offs = ConstantInt::get(Idx->getType(), -FirstFalseElement); 460 Idx = Builder.CreateAdd(Idx, Offs); 461 } 462 463 Value *End = ConstantInt::get(Idx->getType(), 464 FalseRangeEnd-FirstFalseElement); 465 return new ICmpInst(ICmpInst::ICMP_UGT, Idx, End); 466 } 467 468 // If a magic bitvector captures the entire comparison state 469 // of this load, replace it with computation that does: 470 // ((magic_cst >> i) & 1) != 0 471 { 472 Type *Ty = nullptr; 473 474 // Look for an appropriate type: 475 // - The type of Idx if the magic fits 476 // - The smallest fitting legal type if we have a DataLayout 477 // - Default to i32 478 if (ArrayElementCount <= Idx->getType()->getIntegerBitWidth()) 479 Ty = Idx->getType(); 480 else 481 Ty = DL.getSmallestLegalIntType(Init->getContext(), ArrayElementCount); 482 483 if (Ty) { 484 Value *V = Builder.CreateIntCast(Idx, Ty, false); 485 V = Builder.CreateLShr(ConstantInt::get(Ty, MagicBitvector), V); 486 V = Builder.CreateAnd(ConstantInt::get(Ty, 1), V); 487 return new ICmpInst(ICmpInst::ICMP_NE, V, ConstantInt::get(Ty, 0)); 488 } 489 } 490 491 return nullptr; 492 } 493 494 /// Return a value that can be used to compare the *offset* implied by a GEP to 495 /// zero. For example, if we have &A[i], we want to return 'i' for 496 /// "icmp ne i, 0". Note that, in general, indices can be complex, and scales 497 /// are involved. The above expression would also be legal to codegen as 498 /// "icmp ne (i*4), 0" (assuming A is a pointer to i32). 499 /// This latter form is less amenable to optimization though, and we are allowed 500 /// to generate the first by knowing that pointer arithmetic doesn't overflow. 501 /// 502 /// If we can't emit an optimized form for this expression, this returns null. 503 /// 504 static Value *evaluateGEPOffsetExpression(User *GEP, InstCombiner &IC, 505 const DataLayout &DL) { 506 gep_type_iterator GTI = gep_type_begin(GEP); 507 508 // Check to see if this gep only has a single variable index. If so, and if 509 // any constant indices are a multiple of its scale, then we can compute this 510 // in terms of the scale of the variable index. For example, if the GEP 511 // implies an offset of "12 + i*4", then we can codegen this as "3 + i", 512 // because the expression will cross zero at the same point. 513 unsigned i, e = GEP->getNumOperands(); 514 int64_t Offset = 0; 515 for (i = 1; i != e; ++i, ++GTI) { 516 if (ConstantInt *CI = dyn_cast<ConstantInt>(GEP->getOperand(i))) { 517 // Compute the aggregate offset of constant indices. 518 if (CI->isZero()) continue; 519 520 // Handle a struct index, which adds its field offset to the pointer. 521 if (StructType *STy = GTI.getStructTypeOrNull()) { 522 Offset += DL.getStructLayout(STy)->getElementOffset(CI->getZExtValue()); 523 } else { 524 uint64_t Size = DL.getTypeAllocSize(GTI.getIndexedType()); 525 Offset += Size*CI->getSExtValue(); 526 } 527 } else { 528 // Found our variable index. 529 break; 530 } 531 } 532 533 // If there are no variable indices, we must have a constant offset, just 534 // evaluate it the general way. 535 if (i == e) return nullptr; 536 537 Value *VariableIdx = GEP->getOperand(i); 538 // Determine the scale factor of the variable element. For example, this is 539 // 4 if the variable index is into an array of i32. 540 uint64_t VariableScale = DL.getTypeAllocSize(GTI.getIndexedType()); 541 542 // Verify that there are no other variable indices. If so, emit the hard way. 543 for (++i, ++GTI; i != e; ++i, ++GTI) { 544 ConstantInt *CI = dyn_cast<ConstantInt>(GEP->getOperand(i)); 545 if (!CI) return nullptr; 546 547 // Compute the aggregate offset of constant indices. 548 if (CI->isZero()) continue; 549 550 // Handle a struct index, which adds its field offset to the pointer. 551 if (StructType *STy = GTI.getStructTypeOrNull()) { 552 Offset += DL.getStructLayout(STy)->getElementOffset(CI->getZExtValue()); 553 } else { 554 uint64_t Size = DL.getTypeAllocSize(GTI.getIndexedType()); 555 Offset += Size*CI->getSExtValue(); 556 } 557 } 558 559 // Okay, we know we have a single variable index, which must be a 560 // pointer/array/vector index. If there is no offset, life is simple, return 561 // the index. 562 Type *IntPtrTy = DL.getIntPtrType(GEP->getOperand(0)->getType()); 563 unsigned IntPtrWidth = IntPtrTy->getIntegerBitWidth(); 564 if (Offset == 0) { 565 // Cast to intptrty in case a truncation occurs. If an extension is needed, 566 // we don't need to bother extending: the extension won't affect where the 567 // computation crosses zero. 568 if (VariableIdx->getType()->getPrimitiveSizeInBits() > IntPtrWidth) { 569 VariableIdx = IC.Builder.CreateTrunc(VariableIdx, IntPtrTy); 570 } 571 return VariableIdx; 572 } 573 574 // Otherwise, there is an index. The computation we will do will be modulo 575 // the pointer size, so get it. 576 uint64_t PtrSizeMask = ~0ULL >> (64-IntPtrWidth); 577 578 Offset &= PtrSizeMask; 579 VariableScale &= PtrSizeMask; 580 581 // To do this transformation, any constant index must be a multiple of the 582 // variable scale factor. For example, we can evaluate "12 + 4*i" as "3 + i", 583 // but we can't evaluate "10 + 3*i" in terms of i. Check that the offset is a 584 // multiple of the variable scale. 585 int64_t NewOffs = Offset / (int64_t)VariableScale; 586 if (Offset != NewOffs*(int64_t)VariableScale) 587 return nullptr; 588 589 // Okay, we can do this evaluation. Start by converting the index to intptr. 590 if (VariableIdx->getType() != IntPtrTy) 591 VariableIdx = IC.Builder.CreateIntCast(VariableIdx, IntPtrTy, 592 true /*Signed*/); 593 Constant *OffsetVal = ConstantInt::get(IntPtrTy, NewOffs); 594 return IC.Builder.CreateAdd(VariableIdx, OffsetVal, "offset"); 595 } 596 597 /// Returns true if we can rewrite Start as a GEP with pointer Base 598 /// and some integer offset. The nodes that need to be re-written 599 /// for this transformation will be added to Explored. 600 static bool canRewriteGEPAsOffset(Value *Start, Value *Base, 601 const DataLayout &DL, 602 SetVector<Value *> &Explored) { 603 SmallVector<Value *, 16> WorkList(1, Start); 604 Explored.insert(Base); 605 606 // The following traversal gives us an order which can be used 607 // when doing the final transformation. Since in the final 608 // transformation we create the PHI replacement instructions first, 609 // we don't have to get them in any particular order. 610 // 611 // However, for other instructions we will have to traverse the 612 // operands of an instruction first, which means that we have to 613 // do a post-order traversal. 614 while (!WorkList.empty()) { 615 SetVector<PHINode *> PHIs; 616 617 while (!WorkList.empty()) { 618 if (Explored.size() >= 100) 619 return false; 620 621 Value *V = WorkList.back(); 622 623 if (Explored.count(V) != 0) { 624 WorkList.pop_back(); 625 continue; 626 } 627 628 if (!isa<IntToPtrInst>(V) && !isa<PtrToIntInst>(V) && 629 !isa<GetElementPtrInst>(V) && !isa<PHINode>(V)) 630 // We've found some value that we can't explore which is different from 631 // the base. Therefore we can't do this transformation. 632 return false; 633 634 if (isa<IntToPtrInst>(V) || isa<PtrToIntInst>(V)) { 635 auto *CI = dyn_cast<CastInst>(V); 636 if (!CI->isNoopCast(DL)) 637 return false; 638 639 if (Explored.count(CI->getOperand(0)) == 0) 640 WorkList.push_back(CI->getOperand(0)); 641 } 642 643 if (auto *GEP = dyn_cast<GEPOperator>(V)) { 644 // We're limiting the GEP to having one index. This will preserve 645 // the original pointer type. We could handle more cases in the 646 // future. 647 if (GEP->getNumIndices() != 1 || !GEP->isInBounds() || 648 GEP->getType() != Start->getType()) 649 return false; 650 651 if (Explored.count(GEP->getOperand(0)) == 0) 652 WorkList.push_back(GEP->getOperand(0)); 653 } 654 655 if (WorkList.back() == V) { 656 WorkList.pop_back(); 657 // We've finished visiting this node, mark it as such. 658 Explored.insert(V); 659 } 660 661 if (auto *PN = dyn_cast<PHINode>(V)) { 662 // We cannot transform PHIs on unsplittable basic blocks. 663 if (isa<CatchSwitchInst>(PN->getParent()->getTerminator())) 664 return false; 665 Explored.insert(PN); 666 PHIs.insert(PN); 667 } 668 } 669 670 // Explore the PHI nodes further. 671 for (auto *PN : PHIs) 672 for (Value *Op : PN->incoming_values()) 673 if (Explored.count(Op) == 0) 674 WorkList.push_back(Op); 675 } 676 677 // Make sure that we can do this. Since we can't insert GEPs in a basic 678 // block before a PHI node, we can't easily do this transformation if 679 // we have PHI node users of transformed instructions. 680 for (Value *Val : Explored) { 681 for (Value *Use : Val->uses()) { 682 683 auto *PHI = dyn_cast<PHINode>(Use); 684 auto *Inst = dyn_cast<Instruction>(Val); 685 686 if (Inst == Base || Inst == PHI || !Inst || !PHI || 687 Explored.count(PHI) == 0) 688 continue; 689 690 if (PHI->getParent() == Inst->getParent()) 691 return false; 692 } 693 } 694 return true; 695 } 696 697 // Sets the appropriate insert point on Builder where we can add 698 // a replacement Instruction for V (if that is possible). 699 static void setInsertionPoint(IRBuilder<> &Builder, Value *V, 700 bool Before = true) { 701 if (auto *PHI = dyn_cast<PHINode>(V)) { 702 Builder.SetInsertPoint(&*PHI->getParent()->getFirstInsertionPt()); 703 return; 704 } 705 if (auto *I = dyn_cast<Instruction>(V)) { 706 if (!Before) 707 I = &*std::next(I->getIterator()); 708 Builder.SetInsertPoint(I); 709 return; 710 } 711 if (auto *A = dyn_cast<Argument>(V)) { 712 // Set the insertion point in the entry block. 713 BasicBlock &Entry = A->getParent()->getEntryBlock(); 714 Builder.SetInsertPoint(&*Entry.getFirstInsertionPt()); 715 return; 716 } 717 // Otherwise, this is a constant and we don't need to set a new 718 // insertion point. 719 assert(isa<Constant>(V) && "Setting insertion point for unknown value!"); 720 } 721 722 /// Returns a re-written value of Start as an indexed GEP using Base as a 723 /// pointer. 724 static Value *rewriteGEPAsOffset(Value *Start, Value *Base, 725 const DataLayout &DL, 726 SetVector<Value *> &Explored) { 727 // Perform all the substitutions. This is a bit tricky because we can 728 // have cycles in our use-def chains. 729 // 1. Create the PHI nodes without any incoming values. 730 // 2. Create all the other values. 731 // 3. Add the edges for the PHI nodes. 732 // 4. Emit GEPs to get the original pointers. 733 // 5. Remove the original instructions. 734 Type *IndexType = IntegerType::get( 735 Base->getContext(), DL.getPointerTypeSizeInBits(Start->getType())); 736 737 DenseMap<Value *, Value *> NewInsts; 738 NewInsts[Base] = ConstantInt::getNullValue(IndexType); 739 740 // Create the new PHI nodes, without adding any incoming values. 741 for (Value *Val : Explored) { 742 if (Val == Base) 743 continue; 744 // Create empty phi nodes. This avoids cyclic dependencies when creating 745 // the remaining instructions. 746 if (auto *PHI = dyn_cast<PHINode>(Val)) 747 NewInsts[PHI] = PHINode::Create(IndexType, PHI->getNumIncomingValues(), 748 PHI->getName() + ".idx", PHI); 749 } 750 IRBuilder<> Builder(Base->getContext()); 751 752 // Create all the other instructions. 753 for (Value *Val : Explored) { 754 755 if (NewInsts.find(Val) != NewInsts.end()) 756 continue; 757 758 if (auto *CI = dyn_cast<CastInst>(Val)) { 759 NewInsts[CI] = NewInsts[CI->getOperand(0)]; 760 continue; 761 } 762 if (auto *GEP = dyn_cast<GEPOperator>(Val)) { 763 Value *Index = NewInsts[GEP->getOperand(1)] ? NewInsts[GEP->getOperand(1)] 764 : GEP->getOperand(1); 765 setInsertionPoint(Builder, GEP); 766 // Indices might need to be sign extended. GEPs will magically do 767 // this, but we need to do it ourselves here. 768 if (Index->getType()->getScalarSizeInBits() != 769 NewInsts[GEP->getOperand(0)]->getType()->getScalarSizeInBits()) { 770 Index = Builder.CreateSExtOrTrunc( 771 Index, NewInsts[GEP->getOperand(0)]->getType(), 772 GEP->getOperand(0)->getName() + ".sext"); 773 } 774 775 auto *Op = NewInsts[GEP->getOperand(0)]; 776 if (isa<ConstantInt>(Op) && dyn_cast<ConstantInt>(Op)->isZero()) 777 NewInsts[GEP] = Index; 778 else 779 NewInsts[GEP] = Builder.CreateNSWAdd( 780 Op, Index, GEP->getOperand(0)->getName() + ".add"); 781 continue; 782 } 783 if (isa<PHINode>(Val)) 784 continue; 785 786 llvm_unreachable("Unexpected instruction type"); 787 } 788 789 // Add the incoming values to the PHI nodes. 790 for (Value *Val : Explored) { 791 if (Val == Base) 792 continue; 793 // All the instructions have been created, we can now add edges to the 794 // phi nodes. 795 if (auto *PHI = dyn_cast<PHINode>(Val)) { 796 PHINode *NewPhi = static_cast<PHINode *>(NewInsts[PHI]); 797 for (unsigned I = 0, E = PHI->getNumIncomingValues(); I < E; ++I) { 798 Value *NewIncoming = PHI->getIncomingValue(I); 799 800 if (NewInsts.find(NewIncoming) != NewInsts.end()) 801 NewIncoming = NewInsts[NewIncoming]; 802 803 NewPhi->addIncoming(NewIncoming, PHI->getIncomingBlock(I)); 804 } 805 } 806 } 807 808 for (Value *Val : Explored) { 809 if (Val == Base) 810 continue; 811 812 // Depending on the type, for external users we have to emit 813 // a GEP or a GEP + ptrtoint. 814 setInsertionPoint(Builder, Val, false); 815 816 // If required, create an inttoptr instruction for Base. 817 Value *NewBase = Base; 818 if (!Base->getType()->isPointerTy()) 819 NewBase = Builder.CreateBitOrPointerCast(Base, Start->getType(), 820 Start->getName() + "to.ptr"); 821 822 Value *GEP = Builder.CreateInBoundsGEP( 823 Start->getType()->getPointerElementType(), NewBase, 824 makeArrayRef(NewInsts[Val]), Val->getName() + ".ptr"); 825 826 if (!Val->getType()->isPointerTy()) { 827 Value *Cast = Builder.CreatePointerCast(GEP, Val->getType(), 828 Val->getName() + ".conv"); 829 GEP = Cast; 830 } 831 Val->replaceAllUsesWith(GEP); 832 } 833 834 return NewInsts[Start]; 835 } 836 837 /// Looks through GEPs, IntToPtrInsts and PtrToIntInsts in order to express 838 /// the input Value as a constant indexed GEP. Returns a pair containing 839 /// the GEPs Pointer and Index. 840 static std::pair<Value *, Value *> 841 getAsConstantIndexedAddress(Value *V, const DataLayout &DL) { 842 Type *IndexType = IntegerType::get(V->getContext(), 843 DL.getPointerTypeSizeInBits(V->getType())); 844 845 Constant *Index = ConstantInt::getNullValue(IndexType); 846 while (true) { 847 if (GEPOperator *GEP = dyn_cast<GEPOperator>(V)) { 848 // We accept only inbouds GEPs here to exclude the possibility of 849 // overflow. 850 if (!GEP->isInBounds()) 851 break; 852 if (GEP->hasAllConstantIndices() && GEP->getNumIndices() == 1 && 853 GEP->getType() == V->getType()) { 854 V = GEP->getOperand(0); 855 Constant *GEPIndex = static_cast<Constant *>(GEP->getOperand(1)); 856 Index = ConstantExpr::getAdd( 857 Index, ConstantExpr::getSExtOrBitCast(GEPIndex, IndexType)); 858 continue; 859 } 860 break; 861 } 862 if (auto *CI = dyn_cast<IntToPtrInst>(V)) { 863 if (!CI->isNoopCast(DL)) 864 break; 865 V = CI->getOperand(0); 866 continue; 867 } 868 if (auto *CI = dyn_cast<PtrToIntInst>(V)) { 869 if (!CI->isNoopCast(DL)) 870 break; 871 V = CI->getOperand(0); 872 continue; 873 } 874 break; 875 } 876 return {V, Index}; 877 } 878 879 /// Converts (CMP GEPLHS, RHS) if this change would make RHS a constant. 880 /// We can look through PHIs, GEPs and casts in order to determine a common base 881 /// between GEPLHS and RHS. 882 static Instruction *transformToIndexedCompare(GEPOperator *GEPLHS, Value *RHS, 883 ICmpInst::Predicate Cond, 884 const DataLayout &DL) { 885 if (!GEPLHS->hasAllConstantIndices()) 886 return nullptr; 887 888 // Make sure the pointers have the same type. 889 if (GEPLHS->getType() != RHS->getType()) 890 return nullptr; 891 892 Value *PtrBase, *Index; 893 std::tie(PtrBase, Index) = getAsConstantIndexedAddress(GEPLHS, DL); 894 895 // The set of nodes that will take part in this transformation. 896 SetVector<Value *> Nodes; 897 898 if (!canRewriteGEPAsOffset(RHS, PtrBase, DL, Nodes)) 899 return nullptr; 900 901 // We know we can re-write this as 902 // ((gep Ptr, OFFSET1) cmp (gep Ptr, OFFSET2) 903 // Since we've only looked through inbouds GEPs we know that we 904 // can't have overflow on either side. We can therefore re-write 905 // this as: 906 // OFFSET1 cmp OFFSET2 907 Value *NewRHS = rewriteGEPAsOffset(RHS, PtrBase, DL, Nodes); 908 909 // RewriteGEPAsOffset has replaced RHS and all of its uses with a re-written 910 // GEP having PtrBase as the pointer base, and has returned in NewRHS the 911 // offset. Since Index is the offset of LHS to the base pointer, we will now 912 // compare the offsets instead of comparing the pointers. 913 return new ICmpInst(ICmpInst::getSignedPredicate(Cond), Index, NewRHS); 914 } 915 916 /// Fold comparisons between a GEP instruction and something else. At this point 917 /// we know that the GEP is on the LHS of the comparison. 918 Instruction *InstCombiner::foldGEPICmp(GEPOperator *GEPLHS, Value *RHS, 919 ICmpInst::Predicate Cond, 920 Instruction &I) { 921 // Don't transform signed compares of GEPs into index compares. Even if the 922 // GEP is inbounds, the final add of the base pointer can have signed overflow 923 // and would change the result of the icmp. 924 // e.g. "&foo[0] <s &foo[1]" can't be folded to "true" because "foo" could be 925 // the maximum signed value for the pointer type. 926 if (ICmpInst::isSigned(Cond)) 927 return nullptr; 928 929 // Look through bitcasts and addrspacecasts. We do not however want to remove 930 // 0 GEPs. 931 if (!isa<GetElementPtrInst>(RHS)) 932 RHS = RHS->stripPointerCasts(); 933 934 Value *PtrBase = GEPLHS->getOperand(0); 935 if (PtrBase == RHS && GEPLHS->isInBounds()) { 936 // ((gep Ptr, OFFSET) cmp Ptr) ---> (OFFSET cmp 0). 937 // This transformation (ignoring the base and scales) is valid because we 938 // know pointers can't overflow since the gep is inbounds. See if we can 939 // output an optimized form. 940 Value *Offset = evaluateGEPOffsetExpression(GEPLHS, *this, DL); 941 942 // If not, synthesize the offset the hard way. 943 if (!Offset) 944 Offset = EmitGEPOffset(GEPLHS); 945 return new ICmpInst(ICmpInst::getSignedPredicate(Cond), Offset, 946 Constant::getNullValue(Offset->getType())); 947 } else if (GEPOperator *GEPRHS = dyn_cast<GEPOperator>(RHS)) { 948 // If the base pointers are different, but the indices are the same, just 949 // compare the base pointer. 950 if (PtrBase != GEPRHS->getOperand(0)) { 951 bool IndicesTheSame = GEPLHS->getNumOperands()==GEPRHS->getNumOperands(); 952 IndicesTheSame &= GEPLHS->getOperand(0)->getType() == 953 GEPRHS->getOperand(0)->getType(); 954 if (IndicesTheSame) 955 for (unsigned i = 1, e = GEPLHS->getNumOperands(); i != e; ++i) 956 if (GEPLHS->getOperand(i) != GEPRHS->getOperand(i)) { 957 IndicesTheSame = false; 958 break; 959 } 960 961 // If all indices are the same, just compare the base pointers. 962 if (IndicesTheSame) 963 return new ICmpInst(Cond, GEPLHS->getOperand(0), GEPRHS->getOperand(0)); 964 965 // If we're comparing GEPs with two base pointers that only differ in type 966 // and both GEPs have only constant indices or just one use, then fold 967 // the compare with the adjusted indices. 968 if (GEPLHS->isInBounds() && GEPRHS->isInBounds() && 969 (GEPLHS->hasAllConstantIndices() || GEPLHS->hasOneUse()) && 970 (GEPRHS->hasAllConstantIndices() || GEPRHS->hasOneUse()) && 971 PtrBase->stripPointerCasts() == 972 GEPRHS->getOperand(0)->stripPointerCasts()) { 973 Value *LOffset = EmitGEPOffset(GEPLHS); 974 Value *ROffset = EmitGEPOffset(GEPRHS); 975 976 // If we looked through an addrspacecast between different sized address 977 // spaces, the LHS and RHS pointers are different sized 978 // integers. Truncate to the smaller one. 979 Type *LHSIndexTy = LOffset->getType(); 980 Type *RHSIndexTy = ROffset->getType(); 981 if (LHSIndexTy != RHSIndexTy) { 982 if (LHSIndexTy->getPrimitiveSizeInBits() < 983 RHSIndexTy->getPrimitiveSizeInBits()) { 984 ROffset = Builder.CreateTrunc(ROffset, LHSIndexTy); 985 } else 986 LOffset = Builder.CreateTrunc(LOffset, RHSIndexTy); 987 } 988 989 Value *Cmp = Builder.CreateICmp(ICmpInst::getSignedPredicate(Cond), 990 LOffset, ROffset); 991 return replaceInstUsesWith(I, Cmp); 992 } 993 994 // Otherwise, the base pointers are different and the indices are 995 // different. Try convert this to an indexed compare by looking through 996 // PHIs/casts. 997 return transformToIndexedCompare(GEPLHS, RHS, Cond, DL); 998 } 999 1000 // If one of the GEPs has all zero indices, recurse. 1001 if (GEPLHS->hasAllZeroIndices()) 1002 return foldGEPICmp(GEPRHS, GEPLHS->getOperand(0), 1003 ICmpInst::getSwappedPredicate(Cond), I); 1004 1005 // If the other GEP has all zero indices, recurse. 1006 if (GEPRHS->hasAllZeroIndices()) 1007 return foldGEPICmp(GEPLHS, GEPRHS->getOperand(0), Cond, I); 1008 1009 bool GEPsInBounds = GEPLHS->isInBounds() && GEPRHS->isInBounds(); 1010 if (GEPLHS->getNumOperands() == GEPRHS->getNumOperands()) { 1011 // If the GEPs only differ by one index, compare it. 1012 unsigned NumDifferences = 0; // Keep track of # differences. 1013 unsigned DiffOperand = 0; // The operand that differs. 1014 for (unsigned i = 1, e = GEPRHS->getNumOperands(); i != e; ++i) 1015 if (GEPLHS->getOperand(i) != GEPRHS->getOperand(i)) { 1016 if (GEPLHS->getOperand(i)->getType()->getPrimitiveSizeInBits() != 1017 GEPRHS->getOperand(i)->getType()->getPrimitiveSizeInBits()) { 1018 // Irreconcilable differences. 1019 NumDifferences = 2; 1020 break; 1021 } else { 1022 if (NumDifferences++) break; 1023 DiffOperand = i; 1024 } 1025 } 1026 1027 if (NumDifferences == 0) // SAME GEP? 1028 return replaceInstUsesWith(I, // No comparison is needed here. 1029 Builder.getInt1(ICmpInst::isTrueWhenEqual(Cond))); 1030 1031 else if (NumDifferences == 1 && GEPsInBounds) { 1032 Value *LHSV = GEPLHS->getOperand(DiffOperand); 1033 Value *RHSV = GEPRHS->getOperand(DiffOperand); 1034 // Make sure we do a signed comparison here. 1035 return new ICmpInst(ICmpInst::getSignedPredicate(Cond), LHSV, RHSV); 1036 } 1037 } 1038 1039 // Only lower this if the icmp is the only user of the GEP or if we expect 1040 // the result to fold to a constant! 1041 if (GEPsInBounds && (isa<ConstantExpr>(GEPLHS) || GEPLHS->hasOneUse()) && 1042 (isa<ConstantExpr>(GEPRHS) || GEPRHS->hasOneUse())) { 1043 // ((gep Ptr, OFFSET1) cmp (gep Ptr, OFFSET2) ---> (OFFSET1 cmp OFFSET2) 1044 Value *L = EmitGEPOffset(GEPLHS); 1045 Value *R = EmitGEPOffset(GEPRHS); 1046 return new ICmpInst(ICmpInst::getSignedPredicate(Cond), L, R); 1047 } 1048 } 1049 1050 // Try convert this to an indexed compare by looking through PHIs/casts as a 1051 // last resort. 1052 return transformToIndexedCompare(GEPLHS, RHS, Cond, DL); 1053 } 1054 1055 Instruction *InstCombiner::foldAllocaCmp(ICmpInst &ICI, 1056 const AllocaInst *Alloca, 1057 const Value *Other) { 1058 assert(ICI.isEquality() && "Cannot fold non-equality comparison."); 1059 1060 // It would be tempting to fold away comparisons between allocas and any 1061 // pointer not based on that alloca (e.g. an argument). However, even 1062 // though such pointers cannot alias, they can still compare equal. 1063 // 1064 // But LLVM doesn't specify where allocas get their memory, so if the alloca 1065 // doesn't escape we can argue that it's impossible to guess its value, and we 1066 // can therefore act as if any such guesses are wrong. 1067 // 1068 // The code below checks that the alloca doesn't escape, and that it's only 1069 // used in a comparison once (the current instruction). The 1070 // single-comparison-use condition ensures that we're trivially folding all 1071 // comparisons against the alloca consistently, and avoids the risk of 1072 // erroneously folding a comparison of the pointer with itself. 1073 1074 unsigned MaxIter = 32; // Break cycles and bound to constant-time. 1075 1076 SmallVector<const Use *, 32> Worklist; 1077 for (const Use &U : Alloca->uses()) { 1078 if (Worklist.size() >= MaxIter) 1079 return nullptr; 1080 Worklist.push_back(&U); 1081 } 1082 1083 unsigned NumCmps = 0; 1084 while (!Worklist.empty()) { 1085 assert(Worklist.size() <= MaxIter); 1086 const Use *U = Worklist.pop_back_val(); 1087 const Value *V = U->getUser(); 1088 --MaxIter; 1089 1090 if (isa<BitCastInst>(V) || isa<GetElementPtrInst>(V) || isa<PHINode>(V) || 1091 isa<SelectInst>(V)) { 1092 // Track the uses. 1093 } else if (isa<LoadInst>(V)) { 1094 // Loading from the pointer doesn't escape it. 1095 continue; 1096 } else if (const auto *SI = dyn_cast<StoreInst>(V)) { 1097 // Storing *to* the pointer is fine, but storing the pointer escapes it. 1098 if (SI->getValueOperand() == U->get()) 1099 return nullptr; 1100 continue; 1101 } else if (isa<ICmpInst>(V)) { 1102 if (NumCmps++) 1103 return nullptr; // Found more than one cmp. 1104 continue; 1105 } else if (const auto *Intrin = dyn_cast<IntrinsicInst>(V)) { 1106 switch (Intrin->getIntrinsicID()) { 1107 // These intrinsics don't escape or compare the pointer. Memset is safe 1108 // because we don't allow ptrtoint. Memcpy and memmove are safe because 1109 // we don't allow stores, so src cannot point to V. 1110 case Intrinsic::lifetime_start: case Intrinsic::lifetime_end: 1111 case Intrinsic::dbg_declare: case Intrinsic::dbg_value: 1112 case Intrinsic::memcpy: case Intrinsic::memmove: case Intrinsic::memset: 1113 continue; 1114 default: 1115 return nullptr; 1116 } 1117 } else { 1118 return nullptr; 1119 } 1120 for (const Use &U : V->uses()) { 1121 if (Worklist.size() >= MaxIter) 1122 return nullptr; 1123 Worklist.push_back(&U); 1124 } 1125 } 1126 1127 Type *CmpTy = CmpInst::makeCmpResultType(Other->getType()); 1128 return replaceInstUsesWith( 1129 ICI, 1130 ConstantInt::get(CmpTy, !CmpInst::isTrueWhenEqual(ICI.getPredicate()))); 1131 } 1132 1133 /// Fold "icmp pred (X+CI), X". 1134 Instruction *InstCombiner::foldICmpAddOpConst(Instruction &ICI, 1135 Value *X, ConstantInt *CI, 1136 ICmpInst::Predicate Pred) { 1137 // From this point on, we know that (X+C <= X) --> (X+C < X) because C != 0, 1138 // so the values can never be equal. Similarly for all other "or equals" 1139 // operators. 1140 1141 // (X+1) <u X --> X >u (MAXUINT-1) --> X == 255 1142 // (X+2) <u X --> X >u (MAXUINT-2) --> X > 253 1143 // (X+MAXUINT) <u X --> X >u (MAXUINT-MAXUINT) --> X != 0 1144 if (Pred == ICmpInst::ICMP_ULT || Pred == ICmpInst::ICMP_ULE) { 1145 Value *R = 1146 ConstantExpr::getSub(ConstantInt::getAllOnesValue(CI->getType()), CI); 1147 return new ICmpInst(ICmpInst::ICMP_UGT, X, R); 1148 } 1149 1150 // (X+1) >u X --> X <u (0-1) --> X != 255 1151 // (X+2) >u X --> X <u (0-2) --> X <u 254 1152 // (X+MAXUINT) >u X --> X <u (0-MAXUINT) --> X <u 1 --> X == 0 1153 if (Pred == ICmpInst::ICMP_UGT || Pred == ICmpInst::ICMP_UGE) 1154 return new ICmpInst(ICmpInst::ICMP_ULT, X, ConstantExpr::getNeg(CI)); 1155 1156 unsigned BitWidth = CI->getType()->getPrimitiveSizeInBits(); 1157 ConstantInt *SMax = ConstantInt::get(X->getContext(), 1158 APInt::getSignedMaxValue(BitWidth)); 1159 1160 // (X+ 1) <s X --> X >s (MAXSINT-1) --> X == 127 1161 // (X+ 2) <s X --> X >s (MAXSINT-2) --> X >s 125 1162 // (X+MAXSINT) <s X --> X >s (MAXSINT-MAXSINT) --> X >s 0 1163 // (X+MINSINT) <s X --> X >s (MAXSINT-MINSINT) --> X >s -1 1164 // (X+ -2) <s X --> X >s (MAXSINT- -2) --> X >s 126 1165 // (X+ -1) <s X --> X >s (MAXSINT- -1) --> X != 127 1166 if (Pred == ICmpInst::ICMP_SLT || Pred == ICmpInst::ICMP_SLE) 1167 return new ICmpInst(ICmpInst::ICMP_SGT, X, ConstantExpr::getSub(SMax, CI)); 1168 1169 // (X+ 1) >s X --> X <s (MAXSINT-(1-1)) --> X != 127 1170 // (X+ 2) >s X --> X <s (MAXSINT-(2-1)) --> X <s 126 1171 // (X+MAXSINT) >s X --> X <s (MAXSINT-(MAXSINT-1)) --> X <s 1 1172 // (X+MINSINT) >s X --> X <s (MAXSINT-(MINSINT-1)) --> X <s -2 1173 // (X+ -2) >s X --> X <s (MAXSINT-(-2-1)) --> X <s -126 1174 // (X+ -1) >s X --> X <s (MAXSINT-(-1-1)) --> X == -128 1175 1176 assert(Pred == ICmpInst::ICMP_SGT || Pred == ICmpInst::ICMP_SGE); 1177 Constant *C = Builder.getInt(CI->getValue() - 1); 1178 return new ICmpInst(ICmpInst::ICMP_SLT, X, ConstantExpr::getSub(SMax, C)); 1179 } 1180 1181 /// Handle "(icmp eq/ne (ashr/lshr AP2, A), AP1)" -> 1182 /// (icmp eq/ne A, Log2(AP2/AP1)) -> 1183 /// (icmp eq/ne A, Log2(AP2) - Log2(AP1)). 1184 Instruction *InstCombiner::foldICmpShrConstConst(ICmpInst &I, Value *A, 1185 const APInt &AP1, 1186 const APInt &AP2) { 1187 assert(I.isEquality() && "Cannot fold icmp gt/lt"); 1188 1189 auto getICmp = [&I](CmpInst::Predicate Pred, Value *LHS, Value *RHS) { 1190 if (I.getPredicate() == I.ICMP_NE) 1191 Pred = CmpInst::getInversePredicate(Pred); 1192 return new ICmpInst(Pred, LHS, RHS); 1193 }; 1194 1195 // Don't bother doing any work for cases which InstSimplify handles. 1196 if (AP2.isNullValue()) 1197 return nullptr; 1198 1199 bool IsAShr = isa<AShrOperator>(I.getOperand(0)); 1200 if (IsAShr) { 1201 if (AP2.isAllOnesValue()) 1202 return nullptr; 1203 if (AP2.isNegative() != AP1.isNegative()) 1204 return nullptr; 1205 if (AP2.sgt(AP1)) 1206 return nullptr; 1207 } 1208 1209 if (!AP1) 1210 // 'A' must be large enough to shift out the highest set bit. 1211 return getICmp(I.ICMP_UGT, A, 1212 ConstantInt::get(A->getType(), AP2.logBase2())); 1213 1214 if (AP1 == AP2) 1215 return getICmp(I.ICMP_EQ, A, ConstantInt::getNullValue(A->getType())); 1216 1217 int Shift; 1218 if (IsAShr && AP1.isNegative()) 1219 Shift = AP1.countLeadingOnes() - AP2.countLeadingOnes(); 1220 else 1221 Shift = AP1.countLeadingZeros() - AP2.countLeadingZeros(); 1222 1223 if (Shift > 0) { 1224 if (IsAShr && AP1 == AP2.ashr(Shift)) { 1225 // There are multiple solutions if we are comparing against -1 and the LHS 1226 // of the ashr is not a power of two. 1227 if (AP1.isAllOnesValue() && !AP2.isPowerOf2()) 1228 return getICmp(I.ICMP_UGE, A, ConstantInt::get(A->getType(), Shift)); 1229 return getICmp(I.ICMP_EQ, A, ConstantInt::get(A->getType(), Shift)); 1230 } else if (AP1 == AP2.lshr(Shift)) { 1231 return getICmp(I.ICMP_EQ, A, ConstantInt::get(A->getType(), Shift)); 1232 } 1233 } 1234 1235 // Shifting const2 will never be equal to const1. 1236 // FIXME: This should always be handled by InstSimplify? 1237 auto *TorF = ConstantInt::get(I.getType(), I.getPredicate() == I.ICMP_NE); 1238 return replaceInstUsesWith(I, TorF); 1239 } 1240 1241 /// Handle "(icmp eq/ne (shl AP2, A), AP1)" -> 1242 /// (icmp eq/ne A, TrailingZeros(AP1) - TrailingZeros(AP2)). 1243 Instruction *InstCombiner::foldICmpShlConstConst(ICmpInst &I, Value *A, 1244 const APInt &AP1, 1245 const APInt &AP2) { 1246 assert(I.isEquality() && "Cannot fold icmp gt/lt"); 1247 1248 auto getICmp = [&I](CmpInst::Predicate Pred, Value *LHS, Value *RHS) { 1249 if (I.getPredicate() == I.ICMP_NE) 1250 Pred = CmpInst::getInversePredicate(Pred); 1251 return new ICmpInst(Pred, LHS, RHS); 1252 }; 1253 1254 // Don't bother doing any work for cases which InstSimplify handles. 1255 if (AP2.isNullValue()) 1256 return nullptr; 1257 1258 unsigned AP2TrailingZeros = AP2.countTrailingZeros(); 1259 1260 if (!AP1 && AP2TrailingZeros != 0) 1261 return getICmp( 1262 I.ICMP_UGE, A, 1263 ConstantInt::get(A->getType(), AP2.getBitWidth() - AP2TrailingZeros)); 1264 1265 if (AP1 == AP2) 1266 return getICmp(I.ICMP_EQ, A, ConstantInt::getNullValue(A->getType())); 1267 1268 // Get the distance between the lowest bits that are set. 1269 int Shift = AP1.countTrailingZeros() - AP2TrailingZeros; 1270 1271 if (Shift > 0 && AP2.shl(Shift) == AP1) 1272 return getICmp(I.ICMP_EQ, A, ConstantInt::get(A->getType(), Shift)); 1273 1274 // Shifting const2 will never be equal to const1. 1275 // FIXME: This should always be handled by InstSimplify? 1276 auto *TorF = ConstantInt::get(I.getType(), I.getPredicate() == I.ICMP_NE); 1277 return replaceInstUsesWith(I, TorF); 1278 } 1279 1280 /// The caller has matched a pattern of the form: 1281 /// I = icmp ugt (add (add A, B), CI2), CI1 1282 /// If this is of the form: 1283 /// sum = a + b 1284 /// if (sum+128 >u 255) 1285 /// Then replace it with llvm.sadd.with.overflow.i8. 1286 /// 1287 static Instruction *processUGT_ADDCST_ADD(ICmpInst &I, Value *A, Value *B, 1288 ConstantInt *CI2, ConstantInt *CI1, 1289 InstCombiner &IC) { 1290 // The transformation we're trying to do here is to transform this into an 1291 // llvm.sadd.with.overflow. To do this, we have to replace the original add 1292 // with a narrower add, and discard the add-with-constant that is part of the 1293 // range check (if we can't eliminate it, this isn't profitable). 1294 1295 // In order to eliminate the add-with-constant, the compare can be its only 1296 // use. 1297 Instruction *AddWithCst = cast<Instruction>(I.getOperand(0)); 1298 if (!AddWithCst->hasOneUse()) 1299 return nullptr; 1300 1301 // If CI2 is 2^7, 2^15, 2^31, then it might be an sadd.with.overflow. 1302 if (!CI2->getValue().isPowerOf2()) 1303 return nullptr; 1304 unsigned NewWidth = CI2->getValue().countTrailingZeros(); 1305 if (NewWidth != 7 && NewWidth != 15 && NewWidth != 31) 1306 return nullptr; 1307 1308 // The width of the new add formed is 1 more than the bias. 1309 ++NewWidth; 1310 1311 // Check to see that CI1 is an all-ones value with NewWidth bits. 1312 if (CI1->getBitWidth() == NewWidth || 1313 CI1->getValue() != APInt::getLowBitsSet(CI1->getBitWidth(), NewWidth)) 1314 return nullptr; 1315 1316 // This is only really a signed overflow check if the inputs have been 1317 // sign-extended; check for that condition. For example, if CI2 is 2^31 and 1318 // the operands of the add are 64 bits wide, we need at least 33 sign bits. 1319 unsigned NeededSignBits = CI1->getBitWidth() - NewWidth + 1; 1320 if (IC.ComputeNumSignBits(A, 0, &I) < NeededSignBits || 1321 IC.ComputeNumSignBits(B, 0, &I) < NeededSignBits) 1322 return nullptr; 1323 1324 // In order to replace the original add with a narrower 1325 // llvm.sadd.with.overflow, the only uses allowed are the add-with-constant 1326 // and truncates that discard the high bits of the add. Verify that this is 1327 // the case. 1328 Instruction *OrigAdd = cast<Instruction>(AddWithCst->getOperand(0)); 1329 for (User *U : OrigAdd->users()) { 1330 if (U == AddWithCst) 1331 continue; 1332 1333 // Only accept truncates for now. We would really like a nice recursive 1334 // predicate like SimplifyDemandedBits, but which goes downwards the use-def 1335 // chain to see which bits of a value are actually demanded. If the 1336 // original add had another add which was then immediately truncated, we 1337 // could still do the transformation. 1338 TruncInst *TI = dyn_cast<TruncInst>(U); 1339 if (!TI || TI->getType()->getPrimitiveSizeInBits() > NewWidth) 1340 return nullptr; 1341 } 1342 1343 // If the pattern matches, truncate the inputs to the narrower type and 1344 // use the sadd_with_overflow intrinsic to efficiently compute both the 1345 // result and the overflow bit. 1346 Type *NewType = IntegerType::get(OrigAdd->getContext(), NewWidth); 1347 Value *F = Intrinsic::getDeclaration(I.getModule(), 1348 Intrinsic::sadd_with_overflow, NewType); 1349 1350 InstCombiner::BuilderTy &Builder = IC.Builder; 1351 1352 // Put the new code above the original add, in case there are any uses of the 1353 // add between the add and the compare. 1354 Builder.SetInsertPoint(OrigAdd); 1355 1356 Value *TruncA = Builder.CreateTrunc(A, NewType, A->getName() + ".trunc"); 1357 Value *TruncB = Builder.CreateTrunc(B, NewType, B->getName() + ".trunc"); 1358 CallInst *Call = Builder.CreateCall(F, {TruncA, TruncB}, "sadd"); 1359 Value *Add = Builder.CreateExtractValue(Call, 0, "sadd.result"); 1360 Value *ZExt = Builder.CreateZExt(Add, OrigAdd->getType()); 1361 1362 // The inner add was the result of the narrow add, zero extended to the 1363 // wider type. Replace it with the result computed by the intrinsic. 1364 IC.replaceInstUsesWith(*OrigAdd, ZExt); 1365 1366 // The original icmp gets replaced with the overflow value. 1367 return ExtractValueInst::Create(Call, 1, "sadd.overflow"); 1368 } 1369 1370 // Fold icmp Pred X, C. 1371 Instruction *InstCombiner::foldICmpWithConstant(ICmpInst &Cmp) { 1372 CmpInst::Predicate Pred = Cmp.getPredicate(); 1373 Value *X = Cmp.getOperand(0); 1374 1375 const APInt *C; 1376 if (!match(Cmp.getOperand(1), m_APInt(C))) 1377 return nullptr; 1378 1379 Value *A = nullptr, *B = nullptr; 1380 1381 // Match the following pattern, which is a common idiom when writing 1382 // overflow-safe integer arithmetic functions. The source performs an addition 1383 // in wider type and explicitly checks for overflow using comparisons against 1384 // INT_MIN and INT_MAX. Simplify by using the sadd_with_overflow intrinsic. 1385 // 1386 // TODO: This could probably be generalized to handle other overflow-safe 1387 // operations if we worked out the formulas to compute the appropriate magic 1388 // constants. 1389 // 1390 // sum = a + b 1391 // if (sum+128 >u 255) ... -> llvm.sadd.with.overflow.i8 1392 { 1393 ConstantInt *CI2; // I = icmp ugt (add (add A, B), CI2), CI 1394 if (Pred == ICmpInst::ICMP_UGT && 1395 match(X, m_Add(m_Add(m_Value(A), m_Value(B)), m_ConstantInt(CI2)))) 1396 if (Instruction *Res = processUGT_ADDCST_ADD( 1397 Cmp, A, B, CI2, cast<ConstantInt>(Cmp.getOperand(1)), *this)) 1398 return Res; 1399 } 1400 1401 // (icmp sgt smin(PosA, B) 0) -> (icmp sgt B 0) 1402 if (C->isNullValue() && Pred == ICmpInst::ICMP_SGT) { 1403 SelectPatternResult SPR = matchSelectPattern(X, A, B); 1404 if (SPR.Flavor == SPF_SMIN) { 1405 if (isKnownPositive(A, DL, 0, &AC, &Cmp, &DT)) 1406 return new ICmpInst(Pred, B, Cmp.getOperand(1)); 1407 if (isKnownPositive(B, DL, 0, &AC, &Cmp, &DT)) 1408 return new ICmpInst(Pred, A, Cmp.getOperand(1)); 1409 } 1410 } 1411 1412 // FIXME: Use m_APInt to allow folds for splat constants. 1413 ConstantInt *CI = dyn_cast<ConstantInt>(Cmp.getOperand(1)); 1414 if (!CI) 1415 return nullptr; 1416 1417 // Canonicalize icmp instructions based on dominating conditions. 1418 BasicBlock *Parent = Cmp.getParent(); 1419 BasicBlock *Dom = Parent->getSinglePredecessor(); 1420 auto *BI = Dom ? dyn_cast<BranchInst>(Dom->getTerminator()) : nullptr; 1421 ICmpInst::Predicate Pred2; 1422 BasicBlock *TrueBB, *FalseBB; 1423 ConstantInt *CI2; 1424 if (BI && match(BI, m_Br(m_ICmp(Pred2, m_Specific(X), m_ConstantInt(CI2)), 1425 TrueBB, FalseBB)) && 1426 TrueBB != FalseBB) { 1427 ConstantRange CR = 1428 ConstantRange::makeAllowedICmpRegion(Pred, CI->getValue()); 1429 ConstantRange DominatingCR = 1430 (Parent == TrueBB) 1431 ? ConstantRange::makeExactICmpRegion(Pred2, CI2->getValue()) 1432 : ConstantRange::makeExactICmpRegion( 1433 CmpInst::getInversePredicate(Pred2), CI2->getValue()); 1434 ConstantRange Intersection = DominatingCR.intersectWith(CR); 1435 ConstantRange Difference = DominatingCR.difference(CR); 1436 if (Intersection.isEmptySet()) 1437 return replaceInstUsesWith(Cmp, Builder.getFalse()); 1438 if (Difference.isEmptySet()) 1439 return replaceInstUsesWith(Cmp, Builder.getTrue()); 1440 1441 // If this is a normal comparison, it demands all bits. If it is a sign 1442 // bit comparison, it only demands the sign bit. 1443 bool UnusedBit; 1444 bool IsSignBit = isSignBitCheck(Pred, CI->getValue(), UnusedBit); 1445 1446 // Canonicalizing a sign bit comparison that gets used in a branch, 1447 // pessimizes codegen by generating branch on zero instruction instead 1448 // of a test and branch. So we avoid canonicalizing in such situations 1449 // because test and branch instruction has better branch displacement 1450 // than compare and branch instruction. 1451 if (Cmp.isEquality() || (IsSignBit && hasBranchUse(Cmp))) 1452 return nullptr; 1453 1454 if (auto *AI = Intersection.getSingleElement()) 1455 return new ICmpInst(ICmpInst::ICMP_EQ, X, Builder.getInt(*AI)); 1456 if (auto *AD = Difference.getSingleElement()) 1457 return new ICmpInst(ICmpInst::ICMP_NE, X, Builder.getInt(*AD)); 1458 } 1459 1460 return nullptr; 1461 } 1462 1463 /// Fold icmp (trunc X, Y), C. 1464 Instruction *InstCombiner::foldICmpTruncConstant(ICmpInst &Cmp, 1465 Instruction *Trunc, 1466 const APInt *C) { 1467 ICmpInst::Predicate Pred = Cmp.getPredicate(); 1468 Value *X = Trunc->getOperand(0); 1469 if (C->isOneValue() && C->getBitWidth() > 1) { 1470 // icmp slt trunc(signum(V)) 1 --> icmp slt V, 1 1471 Value *V = nullptr; 1472 if (Pred == ICmpInst::ICMP_SLT && match(X, m_Signum(m_Value(V)))) 1473 return new ICmpInst(ICmpInst::ICMP_SLT, V, 1474 ConstantInt::get(V->getType(), 1)); 1475 } 1476 1477 if (Cmp.isEquality() && Trunc->hasOneUse()) { 1478 // Simplify icmp eq (trunc x to i8), 42 -> icmp eq x, 42|highbits if all 1479 // of the high bits truncated out of x are known. 1480 unsigned DstBits = Trunc->getType()->getScalarSizeInBits(), 1481 SrcBits = X->getType()->getScalarSizeInBits(); 1482 KnownBits Known = computeKnownBits(X, 0, &Cmp); 1483 1484 // If all the high bits are known, we can do this xform. 1485 if ((Known.Zero | Known.One).countLeadingOnes() >= SrcBits - DstBits) { 1486 // Pull in the high bits from known-ones set. 1487 APInt NewRHS = C->zext(SrcBits); 1488 NewRHS |= Known.One & APInt::getHighBitsSet(SrcBits, SrcBits - DstBits); 1489 return new ICmpInst(Pred, X, ConstantInt::get(X->getType(), NewRHS)); 1490 } 1491 } 1492 1493 return nullptr; 1494 } 1495 1496 /// Fold icmp (xor X, Y), C. 1497 Instruction *InstCombiner::foldICmpXorConstant(ICmpInst &Cmp, 1498 BinaryOperator *Xor, 1499 const APInt *C) { 1500 Value *X = Xor->getOperand(0); 1501 Value *Y = Xor->getOperand(1); 1502 const APInt *XorC; 1503 if (!match(Y, m_APInt(XorC))) 1504 return nullptr; 1505 1506 // If this is a comparison that tests the signbit (X < 0) or (x > -1), 1507 // fold the xor. 1508 ICmpInst::Predicate Pred = Cmp.getPredicate(); 1509 if ((Pred == ICmpInst::ICMP_SLT && C->isNullValue()) || 1510 (Pred == ICmpInst::ICMP_SGT && C->isAllOnesValue())) { 1511 1512 // If the sign bit of the XorCst is not set, there is no change to 1513 // the operation, just stop using the Xor. 1514 if (!XorC->isNegative()) { 1515 Cmp.setOperand(0, X); 1516 Worklist.Add(Xor); 1517 return &Cmp; 1518 } 1519 1520 // Was the old condition true if the operand is positive? 1521 bool isTrueIfPositive = Pred == ICmpInst::ICMP_SGT; 1522 1523 // If so, the new one isn't. 1524 isTrueIfPositive ^= true; 1525 1526 Constant *CmpConstant = cast<Constant>(Cmp.getOperand(1)); 1527 if (isTrueIfPositive) 1528 return new ICmpInst(ICmpInst::ICMP_SGT, X, SubOne(CmpConstant)); 1529 else 1530 return new ICmpInst(ICmpInst::ICMP_SLT, X, AddOne(CmpConstant)); 1531 } 1532 1533 if (Xor->hasOneUse()) { 1534 // (icmp u/s (xor X SignMask), C) -> (icmp s/u X, (xor C SignMask)) 1535 if (!Cmp.isEquality() && XorC->isSignMask()) { 1536 Pred = Cmp.isSigned() ? Cmp.getUnsignedPredicate() 1537 : Cmp.getSignedPredicate(); 1538 return new ICmpInst(Pred, X, ConstantInt::get(X->getType(), *C ^ *XorC)); 1539 } 1540 1541 // (icmp u/s (xor X ~SignMask), C) -> (icmp s/u X, (xor C ~SignMask)) 1542 if (!Cmp.isEquality() && XorC->isMaxSignedValue()) { 1543 Pred = Cmp.isSigned() ? Cmp.getUnsignedPredicate() 1544 : Cmp.getSignedPredicate(); 1545 Pred = Cmp.getSwappedPredicate(Pred); 1546 return new ICmpInst(Pred, X, ConstantInt::get(X->getType(), *C ^ *XorC)); 1547 } 1548 } 1549 1550 // (icmp ugt (xor X, C), ~C) -> (icmp ult X, C) 1551 // iff -C is a power of 2 1552 if (Pred == ICmpInst::ICMP_UGT && *XorC == ~(*C) && (*C + 1).isPowerOf2()) 1553 return new ICmpInst(ICmpInst::ICMP_ULT, X, Y); 1554 1555 // (icmp ult (xor X, C), -C) -> (icmp uge X, C) 1556 // iff -C is a power of 2 1557 if (Pred == ICmpInst::ICMP_ULT && *XorC == -(*C) && C->isPowerOf2()) 1558 return new ICmpInst(ICmpInst::ICMP_UGE, X, Y); 1559 1560 return nullptr; 1561 } 1562 1563 /// Fold icmp (and (sh X, Y), C2), C1. 1564 Instruction *InstCombiner::foldICmpAndShift(ICmpInst &Cmp, BinaryOperator *And, 1565 const APInt *C1, const APInt *C2) { 1566 BinaryOperator *Shift = dyn_cast<BinaryOperator>(And->getOperand(0)); 1567 if (!Shift || !Shift->isShift()) 1568 return nullptr; 1569 1570 // If this is: (X >> C3) & C2 != C1 (where any shift and any compare could 1571 // exist), turn it into (X & (C2 << C3)) != (C1 << C3). This happens a LOT in 1572 // code produced by the clang front-end, for bitfield access. 1573 // This seemingly simple opportunity to fold away a shift turns out to be 1574 // rather complicated. See PR17827 for details. 1575 unsigned ShiftOpcode = Shift->getOpcode(); 1576 bool IsShl = ShiftOpcode == Instruction::Shl; 1577 const APInt *C3; 1578 if (match(Shift->getOperand(1), m_APInt(C3))) { 1579 bool CanFold = false; 1580 if (ShiftOpcode == Instruction::AShr) { 1581 // There may be some constraints that make this possible, but nothing 1582 // simple has been discovered yet. 1583 CanFold = false; 1584 } else if (ShiftOpcode == Instruction::Shl) { 1585 // For a left shift, we can fold if the comparison is not signed. We can 1586 // also fold a signed comparison if the mask value and comparison value 1587 // are not negative. These constraints may not be obvious, but we can 1588 // prove that they are correct using an SMT solver. 1589 if (!Cmp.isSigned() || (!C2->isNegative() && !C1->isNegative())) 1590 CanFold = true; 1591 } else if (ShiftOpcode == Instruction::LShr) { 1592 // For a logical right shift, we can fold if the comparison is not signed. 1593 // We can also fold a signed comparison if the shifted mask value and the 1594 // shifted comparison value are not negative. These constraints may not be 1595 // obvious, but we can prove that they are correct using an SMT solver. 1596 if (!Cmp.isSigned() || 1597 (!C2->shl(*C3).isNegative() && !C1->shl(*C3).isNegative())) 1598 CanFold = true; 1599 } 1600 1601 if (CanFold) { 1602 APInt NewCst = IsShl ? C1->lshr(*C3) : C1->shl(*C3); 1603 APInt SameAsC1 = IsShl ? NewCst.shl(*C3) : NewCst.lshr(*C3); 1604 // Check to see if we are shifting out any of the bits being compared. 1605 if (SameAsC1 != *C1) { 1606 // If we shifted bits out, the fold is not going to work out. As a 1607 // special case, check to see if this means that the result is always 1608 // true or false now. 1609 if (Cmp.getPredicate() == ICmpInst::ICMP_EQ) 1610 return replaceInstUsesWith(Cmp, ConstantInt::getFalse(Cmp.getType())); 1611 if (Cmp.getPredicate() == ICmpInst::ICMP_NE) 1612 return replaceInstUsesWith(Cmp, ConstantInt::getTrue(Cmp.getType())); 1613 } else { 1614 Cmp.setOperand(1, ConstantInt::get(And->getType(), NewCst)); 1615 APInt NewAndCst = IsShl ? C2->lshr(*C3) : C2->shl(*C3); 1616 And->setOperand(1, ConstantInt::get(And->getType(), NewAndCst)); 1617 And->setOperand(0, Shift->getOperand(0)); 1618 Worklist.Add(Shift); // Shift is dead. 1619 return &Cmp; 1620 } 1621 } 1622 } 1623 1624 // Turn ((X >> Y) & C2) == 0 into (X & (C2 << Y)) == 0. The latter is 1625 // preferable because it allows the C2 << Y expression to be hoisted out of a 1626 // loop if Y is invariant and X is not. 1627 if (Shift->hasOneUse() && C1->isNullValue() && Cmp.isEquality() && 1628 !Shift->isArithmeticShift() && !isa<Constant>(Shift->getOperand(0))) { 1629 // Compute C2 << Y. 1630 Value *NewShift = 1631 IsShl ? Builder.CreateLShr(And->getOperand(1), Shift->getOperand(1)) 1632 : Builder.CreateShl(And->getOperand(1), Shift->getOperand(1)); 1633 1634 // Compute X & (C2 << Y). 1635 Value *NewAnd = Builder.CreateAnd(Shift->getOperand(0), NewShift); 1636 Cmp.setOperand(0, NewAnd); 1637 return &Cmp; 1638 } 1639 1640 return nullptr; 1641 } 1642 1643 /// Fold icmp (and X, C2), C1. 1644 Instruction *InstCombiner::foldICmpAndConstConst(ICmpInst &Cmp, 1645 BinaryOperator *And, 1646 const APInt *C1) { 1647 const APInt *C2; 1648 if (!match(And->getOperand(1), m_APInt(C2))) 1649 return nullptr; 1650 1651 if (!And->hasOneUse() || !And->getOperand(0)->hasOneUse()) 1652 return nullptr; 1653 1654 // If the LHS is an 'and' of a truncate and we can widen the and/compare to 1655 // the input width without changing the value produced, eliminate the cast: 1656 // 1657 // icmp (and (trunc W), C2), C1 -> icmp (and W, C2'), C1' 1658 // 1659 // We can do this transformation if the constants do not have their sign bits 1660 // set or if it is an equality comparison. Extending a relational comparison 1661 // when we're checking the sign bit would not work. 1662 Value *W; 1663 if (match(And->getOperand(0), m_Trunc(m_Value(W))) && 1664 (Cmp.isEquality() || (!C1->isNegative() && !C2->isNegative()))) { 1665 // TODO: Is this a good transform for vectors? Wider types may reduce 1666 // throughput. Should this transform be limited (even for scalars) by using 1667 // shouldChangeType()? 1668 if (!Cmp.getType()->isVectorTy()) { 1669 Type *WideType = W->getType(); 1670 unsigned WideScalarBits = WideType->getScalarSizeInBits(); 1671 Constant *ZextC1 = ConstantInt::get(WideType, C1->zext(WideScalarBits)); 1672 Constant *ZextC2 = ConstantInt::get(WideType, C2->zext(WideScalarBits)); 1673 Value *NewAnd = Builder.CreateAnd(W, ZextC2, And->getName()); 1674 return new ICmpInst(Cmp.getPredicate(), NewAnd, ZextC1); 1675 } 1676 } 1677 1678 if (Instruction *I = foldICmpAndShift(Cmp, And, C1, C2)) 1679 return I; 1680 1681 // (icmp pred (and (or (lshr A, B), A), 1), 0) --> 1682 // (icmp pred (and A, (or (shl 1, B), 1), 0)) 1683 // 1684 // iff pred isn't signed 1685 if (!Cmp.isSigned() && C1->isNullValue() && 1686 match(And->getOperand(1), m_One())) { 1687 Constant *One = cast<Constant>(And->getOperand(1)); 1688 Value *Or = And->getOperand(0); 1689 Value *A, *B, *LShr; 1690 if (match(Or, m_Or(m_Value(LShr), m_Value(A))) && 1691 match(LShr, m_LShr(m_Specific(A), m_Value(B)))) { 1692 unsigned UsesRemoved = 0; 1693 if (And->hasOneUse()) 1694 ++UsesRemoved; 1695 if (Or->hasOneUse()) 1696 ++UsesRemoved; 1697 if (LShr->hasOneUse()) 1698 ++UsesRemoved; 1699 1700 // Compute A & ((1 << B) | 1) 1701 Value *NewOr = nullptr; 1702 if (auto *C = dyn_cast<Constant>(B)) { 1703 if (UsesRemoved >= 1) 1704 NewOr = ConstantExpr::getOr(ConstantExpr::getNUWShl(One, C), One); 1705 } else { 1706 if (UsesRemoved >= 3) 1707 NewOr = Builder.CreateOr(Builder.CreateShl(One, B, LShr->getName(), 1708 /*HasNUW=*/true), 1709 One, Or->getName()); 1710 } 1711 if (NewOr) { 1712 Value *NewAnd = Builder.CreateAnd(A, NewOr, And->getName()); 1713 Cmp.setOperand(0, NewAnd); 1714 return &Cmp; 1715 } 1716 } 1717 } 1718 1719 // (X & C2) > C1 --> (X & C2) != 0, if any bit set in (X & C2) will produce a 1720 // result greater than C1. 1721 unsigned NumTZ = C2->countTrailingZeros(); 1722 if (Cmp.getPredicate() == ICmpInst::ICMP_UGT && NumTZ < C2->getBitWidth() && 1723 APInt::getOneBitSet(C2->getBitWidth(), NumTZ).ugt(*C1)) { 1724 Constant *Zero = Constant::getNullValue(And->getType()); 1725 return new ICmpInst(ICmpInst::ICMP_NE, And, Zero); 1726 } 1727 1728 return nullptr; 1729 } 1730 1731 /// Fold icmp (and X, Y), C. 1732 Instruction *InstCombiner::foldICmpAndConstant(ICmpInst &Cmp, 1733 BinaryOperator *And, 1734 const APInt *C) { 1735 if (Instruction *I = foldICmpAndConstConst(Cmp, And, C)) 1736 return I; 1737 1738 // TODO: These all require that Y is constant too, so refactor with the above. 1739 1740 // Try to optimize things like "A[i] & 42 == 0" to index computations. 1741 Value *X = And->getOperand(0); 1742 Value *Y = And->getOperand(1); 1743 if (auto *LI = dyn_cast<LoadInst>(X)) 1744 if (auto *GEP = dyn_cast<GetElementPtrInst>(LI->getOperand(0))) 1745 if (auto *GV = dyn_cast<GlobalVariable>(GEP->getOperand(0))) 1746 if (GV->isConstant() && GV->hasDefinitiveInitializer() && 1747 !LI->isVolatile() && isa<ConstantInt>(Y)) { 1748 ConstantInt *C2 = cast<ConstantInt>(Y); 1749 if (Instruction *Res = foldCmpLoadFromIndexedGlobal(GEP, GV, Cmp, C2)) 1750 return Res; 1751 } 1752 1753 if (!Cmp.isEquality()) 1754 return nullptr; 1755 1756 // X & -C == -C -> X > u ~C 1757 // X & -C != -C -> X <= u ~C 1758 // iff C is a power of 2 1759 if (Cmp.getOperand(1) == Y && (-(*C)).isPowerOf2()) { 1760 auto NewPred = Cmp.getPredicate() == CmpInst::ICMP_EQ ? CmpInst::ICMP_UGT 1761 : CmpInst::ICMP_ULE; 1762 return new ICmpInst(NewPred, X, SubOne(cast<Constant>(Cmp.getOperand(1)))); 1763 } 1764 1765 // (X & C2) == 0 -> (trunc X) >= 0 1766 // (X & C2) != 0 -> (trunc X) < 0 1767 // iff C2 is a power of 2 and it masks the sign bit of a legal integer type. 1768 const APInt *C2; 1769 if (And->hasOneUse() && C->isNullValue() && match(Y, m_APInt(C2))) { 1770 int32_t ExactLogBase2 = C2->exactLogBase2(); 1771 if (ExactLogBase2 != -1 && DL.isLegalInteger(ExactLogBase2 + 1)) { 1772 Type *NTy = IntegerType::get(Cmp.getContext(), ExactLogBase2 + 1); 1773 if (And->getType()->isVectorTy()) 1774 NTy = VectorType::get(NTy, And->getType()->getVectorNumElements()); 1775 Value *Trunc = Builder.CreateTrunc(X, NTy); 1776 auto NewPred = Cmp.getPredicate() == CmpInst::ICMP_EQ ? CmpInst::ICMP_SGE 1777 : CmpInst::ICMP_SLT; 1778 return new ICmpInst(NewPred, Trunc, Constant::getNullValue(NTy)); 1779 } 1780 } 1781 1782 return nullptr; 1783 } 1784 1785 /// Fold icmp (or X, Y), C. 1786 Instruction *InstCombiner::foldICmpOrConstant(ICmpInst &Cmp, BinaryOperator *Or, 1787 const APInt *C) { 1788 ICmpInst::Predicate Pred = Cmp.getPredicate(); 1789 if (C->isOneValue()) { 1790 // icmp slt signum(V) 1 --> icmp slt V, 1 1791 Value *V = nullptr; 1792 if (Pred == ICmpInst::ICMP_SLT && match(Or, m_Signum(m_Value(V)))) 1793 return new ICmpInst(ICmpInst::ICMP_SLT, V, 1794 ConstantInt::get(V->getType(), 1)); 1795 } 1796 1797 // X | C == C --> X <=u C 1798 // X | C != C --> X >u C 1799 // iff C+1 is a power of 2 (C is a bitmask of the low bits) 1800 if (Cmp.isEquality() && Cmp.getOperand(1) == Or->getOperand(1) && 1801 (*C + 1).isPowerOf2()) { 1802 Pred = (Pred == CmpInst::ICMP_EQ) ? CmpInst::ICMP_ULE : CmpInst::ICMP_UGT; 1803 return new ICmpInst(Pred, Or->getOperand(0), Or->getOperand(1)); 1804 } 1805 1806 if (!Cmp.isEquality() || !C->isNullValue() || !Or->hasOneUse()) 1807 return nullptr; 1808 1809 Value *P, *Q; 1810 if (match(Or, m_Or(m_PtrToInt(m_Value(P)), m_PtrToInt(m_Value(Q))))) { 1811 // Simplify icmp eq (or (ptrtoint P), (ptrtoint Q)), 0 1812 // -> and (icmp eq P, null), (icmp eq Q, null). 1813 Value *CmpP = 1814 Builder.CreateICmp(Pred, P, ConstantInt::getNullValue(P->getType())); 1815 Value *CmpQ = 1816 Builder.CreateICmp(Pred, Q, ConstantInt::getNullValue(Q->getType())); 1817 auto LogicOpc = Pred == ICmpInst::Predicate::ICMP_EQ ? Instruction::And 1818 : Instruction::Or; 1819 return BinaryOperator::Create(LogicOpc, CmpP, CmpQ); 1820 } 1821 1822 return nullptr; 1823 } 1824 1825 /// Fold icmp (mul X, Y), C. 1826 Instruction *InstCombiner::foldICmpMulConstant(ICmpInst &Cmp, 1827 BinaryOperator *Mul, 1828 const APInt *C) { 1829 const APInt *MulC; 1830 if (!match(Mul->getOperand(1), m_APInt(MulC))) 1831 return nullptr; 1832 1833 // If this is a test of the sign bit and the multiply is sign-preserving with 1834 // a constant operand, use the multiply LHS operand instead. 1835 ICmpInst::Predicate Pred = Cmp.getPredicate(); 1836 if (isSignTest(Pred, *C) && Mul->hasNoSignedWrap()) { 1837 if (MulC->isNegative()) 1838 Pred = ICmpInst::getSwappedPredicate(Pred); 1839 return new ICmpInst(Pred, Mul->getOperand(0), 1840 Constant::getNullValue(Mul->getType())); 1841 } 1842 1843 return nullptr; 1844 } 1845 1846 /// Fold icmp (shl 1, Y), C. 1847 static Instruction *foldICmpShlOne(ICmpInst &Cmp, Instruction *Shl, 1848 const APInt *C) { 1849 Value *Y; 1850 if (!match(Shl, m_Shl(m_One(), m_Value(Y)))) 1851 return nullptr; 1852 1853 Type *ShiftType = Shl->getType(); 1854 uint32_t TypeBits = C->getBitWidth(); 1855 bool CIsPowerOf2 = C->isPowerOf2(); 1856 ICmpInst::Predicate Pred = Cmp.getPredicate(); 1857 if (Cmp.isUnsigned()) { 1858 // (1 << Y) pred C -> Y pred Log2(C) 1859 if (!CIsPowerOf2) { 1860 // (1 << Y) < 30 -> Y <= 4 1861 // (1 << Y) <= 30 -> Y <= 4 1862 // (1 << Y) >= 30 -> Y > 4 1863 // (1 << Y) > 30 -> Y > 4 1864 if (Pred == ICmpInst::ICMP_ULT) 1865 Pred = ICmpInst::ICMP_ULE; 1866 else if (Pred == ICmpInst::ICMP_UGE) 1867 Pred = ICmpInst::ICMP_UGT; 1868 } 1869 1870 // (1 << Y) >= 2147483648 -> Y >= 31 -> Y == 31 1871 // (1 << Y) < 2147483648 -> Y < 31 -> Y != 31 1872 unsigned CLog2 = C->logBase2(); 1873 if (CLog2 == TypeBits - 1) { 1874 if (Pred == ICmpInst::ICMP_UGE) 1875 Pred = ICmpInst::ICMP_EQ; 1876 else if (Pred == ICmpInst::ICMP_ULT) 1877 Pred = ICmpInst::ICMP_NE; 1878 } 1879 return new ICmpInst(Pred, Y, ConstantInt::get(ShiftType, CLog2)); 1880 } else if (Cmp.isSigned()) { 1881 Constant *BitWidthMinusOne = ConstantInt::get(ShiftType, TypeBits - 1); 1882 if (C->isAllOnesValue()) { 1883 // (1 << Y) <= -1 -> Y == 31 1884 if (Pred == ICmpInst::ICMP_SLE) 1885 return new ICmpInst(ICmpInst::ICMP_EQ, Y, BitWidthMinusOne); 1886 1887 // (1 << Y) > -1 -> Y != 31 1888 if (Pred == ICmpInst::ICMP_SGT) 1889 return new ICmpInst(ICmpInst::ICMP_NE, Y, BitWidthMinusOne); 1890 } else if (!(*C)) { 1891 // (1 << Y) < 0 -> Y == 31 1892 // (1 << Y) <= 0 -> Y == 31 1893 if (Pred == ICmpInst::ICMP_SLT || Pred == ICmpInst::ICMP_SLE) 1894 return new ICmpInst(ICmpInst::ICMP_EQ, Y, BitWidthMinusOne); 1895 1896 // (1 << Y) >= 0 -> Y != 31 1897 // (1 << Y) > 0 -> Y != 31 1898 if (Pred == ICmpInst::ICMP_SGT || Pred == ICmpInst::ICMP_SGE) 1899 return new ICmpInst(ICmpInst::ICMP_NE, Y, BitWidthMinusOne); 1900 } 1901 } else if (Cmp.isEquality() && CIsPowerOf2) { 1902 return new ICmpInst(Pred, Y, ConstantInt::get(ShiftType, C->logBase2())); 1903 } 1904 1905 return nullptr; 1906 } 1907 1908 /// Fold icmp (shl X, Y), C. 1909 Instruction *InstCombiner::foldICmpShlConstant(ICmpInst &Cmp, 1910 BinaryOperator *Shl, 1911 const APInt *C) { 1912 const APInt *ShiftVal; 1913 if (Cmp.isEquality() && match(Shl->getOperand(0), m_APInt(ShiftVal))) 1914 return foldICmpShlConstConst(Cmp, Shl->getOperand(1), *C, *ShiftVal); 1915 1916 const APInt *ShiftAmt; 1917 if (!match(Shl->getOperand(1), m_APInt(ShiftAmt))) 1918 return foldICmpShlOne(Cmp, Shl, C); 1919 1920 // Check that the shift amount is in range. If not, don't perform undefined 1921 // shifts. When the shift is visited, it will be simplified. 1922 unsigned TypeBits = C->getBitWidth(); 1923 if (ShiftAmt->uge(TypeBits)) 1924 return nullptr; 1925 1926 ICmpInst::Predicate Pred = Cmp.getPredicate(); 1927 Value *X = Shl->getOperand(0); 1928 Type *ShType = Shl->getType(); 1929 1930 // NSW guarantees that we are only shifting out sign bits from the high bits, 1931 // so we can ASHR the compare constant without needing a mask and eliminate 1932 // the shift. 1933 if (Shl->hasNoSignedWrap()) { 1934 if (Pred == ICmpInst::ICMP_SGT) { 1935 // icmp Pred (shl nsw X, ShiftAmt), C --> icmp Pred X, (C >>s ShiftAmt) 1936 APInt ShiftedC = C->ashr(*ShiftAmt); 1937 return new ICmpInst(Pred, X, ConstantInt::get(ShType, ShiftedC)); 1938 } 1939 if (Pred == ICmpInst::ICMP_EQ || Pred == ICmpInst::ICMP_NE) { 1940 // This is the same code as the SGT case, but assert the pre-condition 1941 // that is needed for this to work with equality predicates. 1942 assert(C->ashr(*ShiftAmt).shl(*ShiftAmt) == *C && 1943 "Compare known true or false was not folded"); 1944 APInt ShiftedC = C->ashr(*ShiftAmt); 1945 return new ICmpInst(Pred, X, ConstantInt::get(ShType, ShiftedC)); 1946 } 1947 if (Pred == ICmpInst::ICMP_SLT) { 1948 // SLE is the same as above, but SLE is canonicalized to SLT, so convert: 1949 // (X << S) <=s C is equiv to X <=s (C >> S) for all C 1950 // (X << S) <s (C + 1) is equiv to X <s (C >> S) + 1 if C <s SMAX 1951 // (X << S) <s C is equiv to X <s ((C - 1) >> S) + 1 if C >s SMIN 1952 assert(!C->isMinSignedValue() && "Unexpected icmp slt"); 1953 APInt ShiftedC = (*C - 1).ashr(*ShiftAmt) + 1; 1954 return new ICmpInst(Pred, X, ConstantInt::get(ShType, ShiftedC)); 1955 } 1956 // If this is a signed comparison to 0 and the shift is sign preserving, 1957 // use the shift LHS operand instead; isSignTest may change 'Pred', so only 1958 // do that if we're sure to not continue on in this function. 1959 if (isSignTest(Pred, *C)) 1960 return new ICmpInst(Pred, X, Constant::getNullValue(ShType)); 1961 } 1962 1963 // NUW guarantees that we are only shifting out zero bits from the high bits, 1964 // so we can LSHR the compare constant without needing a mask and eliminate 1965 // the shift. 1966 if (Shl->hasNoUnsignedWrap()) { 1967 if (Pred == ICmpInst::ICMP_UGT) { 1968 // icmp Pred (shl nuw X, ShiftAmt), C --> icmp Pred X, (C >>u ShiftAmt) 1969 APInt ShiftedC = C->lshr(*ShiftAmt); 1970 return new ICmpInst(Pred, X, ConstantInt::get(ShType, ShiftedC)); 1971 } 1972 if (Pred == ICmpInst::ICMP_EQ || Pred == ICmpInst::ICMP_NE) { 1973 // This is the same code as the UGT case, but assert the pre-condition 1974 // that is needed for this to work with equality predicates. 1975 assert(C->lshr(*ShiftAmt).shl(*ShiftAmt) == *C && 1976 "Compare known true or false was not folded"); 1977 APInt ShiftedC = C->lshr(*ShiftAmt); 1978 return new ICmpInst(Pred, X, ConstantInt::get(ShType, ShiftedC)); 1979 } 1980 if (Pred == ICmpInst::ICMP_ULT) { 1981 // ULE is the same as above, but ULE is canonicalized to ULT, so convert: 1982 // (X << S) <=u C is equiv to X <=u (C >> S) for all C 1983 // (X << S) <u (C + 1) is equiv to X <u (C >> S) + 1 if C <u ~0u 1984 // (X << S) <u C is equiv to X <u ((C - 1) >> S) + 1 if C >u 0 1985 assert(C->ugt(0) && "ult 0 should have been eliminated"); 1986 APInt ShiftedC = (*C - 1).lshr(*ShiftAmt) + 1; 1987 return new ICmpInst(Pred, X, ConstantInt::get(ShType, ShiftedC)); 1988 } 1989 } 1990 1991 if (Cmp.isEquality() && Shl->hasOneUse()) { 1992 // Strength-reduce the shift into an 'and'. 1993 Constant *Mask = ConstantInt::get( 1994 ShType, 1995 APInt::getLowBitsSet(TypeBits, TypeBits - ShiftAmt->getZExtValue())); 1996 Value *And = Builder.CreateAnd(X, Mask, Shl->getName() + ".mask"); 1997 Constant *LShrC = ConstantInt::get(ShType, C->lshr(*ShiftAmt)); 1998 return new ICmpInst(Pred, And, LShrC); 1999 } 2000 2001 // Otherwise, if this is a comparison of the sign bit, simplify to and/test. 2002 bool TrueIfSigned = false; 2003 if (Shl->hasOneUse() && isSignBitCheck(Pred, *C, TrueIfSigned)) { 2004 // (X << 31) <s 0 --> (X & 1) != 0 2005 Constant *Mask = ConstantInt::get( 2006 ShType, 2007 APInt::getOneBitSet(TypeBits, TypeBits - ShiftAmt->getZExtValue() - 1)); 2008 Value *And = Builder.CreateAnd(X, Mask, Shl->getName() + ".mask"); 2009 return new ICmpInst(TrueIfSigned ? ICmpInst::ICMP_NE : ICmpInst::ICMP_EQ, 2010 And, Constant::getNullValue(ShType)); 2011 } 2012 2013 // Transform (icmp pred iM (shl iM %v, N), C) 2014 // -> (icmp pred i(M-N) (trunc %v iM to i(M-N)), (trunc (C>>N)) 2015 // Transform the shl to a trunc if (trunc (C>>N)) has no loss and M-N. 2016 // This enables us to get rid of the shift in favor of a trunc that may be 2017 // free on the target. It has the additional benefit of comparing to a 2018 // smaller constant that may be more target-friendly. 2019 unsigned Amt = ShiftAmt->getLimitedValue(TypeBits - 1); 2020 if (Shl->hasOneUse() && Amt != 0 && C->countTrailingZeros() >= Amt && 2021 DL.isLegalInteger(TypeBits - Amt)) { 2022 Type *TruncTy = IntegerType::get(Cmp.getContext(), TypeBits - Amt); 2023 if (ShType->isVectorTy()) 2024 TruncTy = VectorType::get(TruncTy, ShType->getVectorNumElements()); 2025 Constant *NewC = 2026 ConstantInt::get(TruncTy, C->ashr(*ShiftAmt).trunc(TypeBits - Amt)); 2027 return new ICmpInst(Pred, Builder.CreateTrunc(X, TruncTy), NewC); 2028 } 2029 2030 return nullptr; 2031 } 2032 2033 /// Fold icmp ({al}shr X, Y), C. 2034 Instruction *InstCombiner::foldICmpShrConstant(ICmpInst &Cmp, 2035 BinaryOperator *Shr, 2036 const APInt *C) { 2037 // An exact shr only shifts out zero bits, so: 2038 // icmp eq/ne (shr X, Y), 0 --> icmp eq/ne X, 0 2039 Value *X = Shr->getOperand(0); 2040 CmpInst::Predicate Pred = Cmp.getPredicate(); 2041 if (Cmp.isEquality() && Shr->isExact() && Shr->hasOneUse() && 2042 C->isNullValue()) 2043 return new ICmpInst(Pred, X, Cmp.getOperand(1)); 2044 2045 const APInt *ShiftVal; 2046 if (Cmp.isEquality() && match(Shr->getOperand(0), m_APInt(ShiftVal))) 2047 return foldICmpShrConstConst(Cmp, Shr->getOperand(1), *C, *ShiftVal); 2048 2049 const APInt *ShiftAmt; 2050 if (!match(Shr->getOperand(1), m_APInt(ShiftAmt))) 2051 return nullptr; 2052 2053 // Check that the shift amount is in range. If not, don't perform undefined 2054 // shifts. When the shift is visited it will be simplified. 2055 unsigned TypeBits = C->getBitWidth(); 2056 unsigned ShAmtVal = ShiftAmt->getLimitedValue(TypeBits); 2057 if (ShAmtVal >= TypeBits || ShAmtVal == 0) 2058 return nullptr; 2059 2060 bool IsAShr = Shr->getOpcode() == Instruction::AShr; 2061 if (!Cmp.isEquality()) { 2062 // If we have an unsigned comparison and an ashr, we can't simplify this. 2063 // Similarly for signed comparisons with lshr. 2064 if (Cmp.isSigned() != IsAShr) 2065 return nullptr; 2066 2067 // Otherwise, all lshr and most exact ashr's are equivalent to a udiv/sdiv 2068 // by a power of 2. Since we already have logic to simplify these, 2069 // transform to div and then simplify the resultant comparison. 2070 if (IsAShr && (!Shr->isExact() || ShAmtVal == TypeBits - 1)) 2071 return nullptr; 2072 2073 // Revisit the shift (to delete it). 2074 Worklist.Add(Shr); 2075 2076 Constant *DivCst = ConstantInt::get( 2077 Shr->getType(), APInt::getOneBitSet(TypeBits, ShAmtVal)); 2078 2079 Value *Tmp = IsAShr ? Builder.CreateSDiv(X, DivCst, "", Shr->isExact()) 2080 : Builder.CreateUDiv(X, DivCst, "", Shr->isExact()); 2081 2082 Cmp.setOperand(0, Tmp); 2083 2084 // If the builder folded the binop, just return it. 2085 BinaryOperator *TheDiv = dyn_cast<BinaryOperator>(Tmp); 2086 if (!TheDiv) 2087 return &Cmp; 2088 2089 // Otherwise, fold this div/compare. 2090 assert(TheDiv->getOpcode() == Instruction::SDiv || 2091 TheDiv->getOpcode() == Instruction::UDiv); 2092 2093 Instruction *Res = foldICmpDivConstant(Cmp, TheDiv, C); 2094 assert(Res && "This div/cst should have folded!"); 2095 return Res; 2096 } 2097 2098 // Handle equality comparisons of shift-by-constant. 2099 2100 // If the comparison constant changes with the shift, the comparison cannot 2101 // succeed (bits of the comparison constant cannot match the shifted value). 2102 // This should be known by InstSimplify and already be folded to true/false. 2103 assert(((IsAShr && C->shl(ShAmtVal).ashr(ShAmtVal) == *C) || 2104 (!IsAShr && C->shl(ShAmtVal).lshr(ShAmtVal) == *C)) && 2105 "Expected icmp+shr simplify did not occur."); 2106 2107 // Check if the bits shifted out are known to be zero. If so, we can compare 2108 // against the unshifted value: 2109 // (X & 4) >> 1 == 2 --> (X & 4) == 4. 2110 Constant *ShiftedCmpRHS = ConstantInt::get(Shr->getType(), *C << ShAmtVal); 2111 if (Shr->hasOneUse()) { 2112 if (Shr->isExact()) 2113 return new ICmpInst(Pred, X, ShiftedCmpRHS); 2114 2115 // Otherwise strength reduce the shift into an 'and'. 2116 APInt Val(APInt::getHighBitsSet(TypeBits, TypeBits - ShAmtVal)); 2117 Constant *Mask = ConstantInt::get(Shr->getType(), Val); 2118 Value *And = Builder.CreateAnd(X, Mask, Shr->getName() + ".mask"); 2119 return new ICmpInst(Pred, And, ShiftedCmpRHS); 2120 } 2121 2122 return nullptr; 2123 } 2124 2125 /// Fold icmp (udiv X, Y), C. 2126 Instruction *InstCombiner::foldICmpUDivConstant(ICmpInst &Cmp, 2127 BinaryOperator *UDiv, 2128 const APInt *C) { 2129 const APInt *C2; 2130 if (!match(UDiv->getOperand(0), m_APInt(C2))) 2131 return nullptr; 2132 2133 assert(*C2 != 0 && "udiv 0, X should have been simplified already."); 2134 2135 // (icmp ugt (udiv C2, Y), C) -> (icmp ule Y, C2/(C+1)) 2136 Value *Y = UDiv->getOperand(1); 2137 if (Cmp.getPredicate() == ICmpInst::ICMP_UGT) { 2138 assert(!C->isMaxValue() && 2139 "icmp ugt X, UINT_MAX should have been simplified already."); 2140 return new ICmpInst(ICmpInst::ICMP_ULE, Y, 2141 ConstantInt::get(Y->getType(), C2->udiv(*C + 1))); 2142 } 2143 2144 // (icmp ult (udiv C2, Y), C) -> (icmp ugt Y, C2/C) 2145 if (Cmp.getPredicate() == ICmpInst::ICMP_ULT) { 2146 assert(*C != 0 && "icmp ult X, 0 should have been simplified already."); 2147 return new ICmpInst(ICmpInst::ICMP_UGT, Y, 2148 ConstantInt::get(Y->getType(), C2->udiv(*C))); 2149 } 2150 2151 return nullptr; 2152 } 2153 2154 /// Fold icmp ({su}div X, Y), C. 2155 Instruction *InstCombiner::foldICmpDivConstant(ICmpInst &Cmp, 2156 BinaryOperator *Div, 2157 const APInt *C) { 2158 // Fold: icmp pred ([us]div X, C2), C -> range test 2159 // Fold this div into the comparison, producing a range check. 2160 // Determine, based on the divide type, what the range is being 2161 // checked. If there is an overflow on the low or high side, remember 2162 // it, otherwise compute the range [low, hi) bounding the new value. 2163 // See: InsertRangeTest above for the kinds of replacements possible. 2164 const APInt *C2; 2165 if (!match(Div->getOperand(1), m_APInt(C2))) 2166 return nullptr; 2167 2168 // FIXME: If the operand types don't match the type of the divide 2169 // then don't attempt this transform. The code below doesn't have the 2170 // logic to deal with a signed divide and an unsigned compare (and 2171 // vice versa). This is because (x /s C2) <s C produces different 2172 // results than (x /s C2) <u C or (x /u C2) <s C or even 2173 // (x /u C2) <u C. Simply casting the operands and result won't 2174 // work. :( The if statement below tests that condition and bails 2175 // if it finds it. 2176 bool DivIsSigned = Div->getOpcode() == Instruction::SDiv; 2177 if (!Cmp.isEquality() && DivIsSigned != Cmp.isSigned()) 2178 return nullptr; 2179 2180 // The ProdOV computation fails on divide by 0 and divide by -1. Cases with 2181 // INT_MIN will also fail if the divisor is 1. Although folds of all these 2182 // division-by-constant cases should be present, we can not assert that they 2183 // have happened before we reach this icmp instruction. 2184 if (C2->isNullValue() || C2->isOneValue() || 2185 (DivIsSigned && C2->isAllOnesValue())) 2186 return nullptr; 2187 2188 // TODO: We could do all of the computations below using APInt. 2189 Constant *CmpRHS = cast<Constant>(Cmp.getOperand(1)); 2190 Constant *DivRHS = cast<Constant>(Div->getOperand(1)); 2191 2192 // Compute Prod = CmpRHS * DivRHS. We are essentially solving an equation of 2193 // form X / C2 = C. We solve for X by multiplying C2 (DivRHS) and C (CmpRHS). 2194 // By solving for X, we can turn this into a range check instead of computing 2195 // a divide. 2196 Constant *Prod = ConstantExpr::getMul(CmpRHS, DivRHS); 2197 2198 // Determine if the product overflows by seeing if the product is not equal to 2199 // the divide. Make sure we do the same kind of divide as in the LHS 2200 // instruction that we're folding. 2201 bool ProdOV = (DivIsSigned ? ConstantExpr::getSDiv(Prod, DivRHS) 2202 : ConstantExpr::getUDiv(Prod, DivRHS)) != CmpRHS; 2203 2204 ICmpInst::Predicate Pred = Cmp.getPredicate(); 2205 2206 // If the division is known to be exact, then there is no remainder from the 2207 // divide, so the covered range size is unit, otherwise it is the divisor. 2208 Constant *RangeSize = 2209 Div->isExact() ? ConstantInt::get(Div->getType(), 1) : DivRHS; 2210 2211 // Figure out the interval that is being checked. For example, a comparison 2212 // like "X /u 5 == 0" is really checking that X is in the interval [0, 5). 2213 // Compute this interval based on the constants involved and the signedness of 2214 // the compare/divide. This computes a half-open interval, keeping track of 2215 // whether either value in the interval overflows. After analysis each 2216 // overflow variable is set to 0 if it's corresponding bound variable is valid 2217 // -1 if overflowed off the bottom end, or +1 if overflowed off the top end. 2218 int LoOverflow = 0, HiOverflow = 0; 2219 Constant *LoBound = nullptr, *HiBound = nullptr; 2220 2221 if (!DivIsSigned) { // udiv 2222 // e.g. X/5 op 3 --> [15, 20) 2223 LoBound = Prod; 2224 HiOverflow = LoOverflow = ProdOV; 2225 if (!HiOverflow) { 2226 // If this is not an exact divide, then many values in the range collapse 2227 // to the same result value. 2228 HiOverflow = addWithOverflow(HiBound, LoBound, RangeSize, false); 2229 } 2230 } else if (C2->isStrictlyPositive()) { // Divisor is > 0. 2231 if (C->isNullValue()) { // (X / pos) op 0 2232 // Can't overflow. e.g. X/2 op 0 --> [-1, 2) 2233 LoBound = ConstantExpr::getNeg(SubOne(RangeSize)); 2234 HiBound = RangeSize; 2235 } else if (C->isStrictlyPositive()) { // (X / pos) op pos 2236 LoBound = Prod; // e.g. X/5 op 3 --> [15, 20) 2237 HiOverflow = LoOverflow = ProdOV; 2238 if (!HiOverflow) 2239 HiOverflow = addWithOverflow(HiBound, Prod, RangeSize, true); 2240 } else { // (X / pos) op neg 2241 // e.g. X/5 op -3 --> [-15-4, -15+1) --> [-19, -14) 2242 HiBound = AddOne(Prod); 2243 LoOverflow = HiOverflow = ProdOV ? -1 : 0; 2244 if (!LoOverflow) { 2245 Constant *DivNeg = ConstantExpr::getNeg(RangeSize); 2246 LoOverflow = addWithOverflow(LoBound, HiBound, DivNeg, true) ? -1 : 0; 2247 } 2248 } 2249 } else if (C2->isNegative()) { // Divisor is < 0. 2250 if (Div->isExact()) 2251 RangeSize = ConstantExpr::getNeg(RangeSize); 2252 if (C->isNullValue()) { // (X / neg) op 0 2253 // e.g. X/-5 op 0 --> [-4, 5) 2254 LoBound = AddOne(RangeSize); 2255 HiBound = ConstantExpr::getNeg(RangeSize); 2256 if (HiBound == DivRHS) { // -INTMIN = INTMIN 2257 HiOverflow = 1; // [INTMIN+1, overflow) 2258 HiBound = nullptr; // e.g. X/INTMIN = 0 --> X > INTMIN 2259 } 2260 } else if (C->isStrictlyPositive()) { // (X / neg) op pos 2261 // e.g. X/-5 op 3 --> [-19, -14) 2262 HiBound = AddOne(Prod); 2263 HiOverflow = LoOverflow = ProdOV ? -1 : 0; 2264 if (!LoOverflow) 2265 LoOverflow = addWithOverflow(LoBound, HiBound, RangeSize, true) ? -1:0; 2266 } else { // (X / neg) op neg 2267 LoBound = Prod; // e.g. X/-5 op -3 --> [15, 20) 2268 LoOverflow = HiOverflow = ProdOV; 2269 if (!HiOverflow) 2270 HiOverflow = subWithOverflow(HiBound, Prod, RangeSize, true); 2271 } 2272 2273 // Dividing by a negative swaps the condition. LT <-> GT 2274 Pred = ICmpInst::getSwappedPredicate(Pred); 2275 } 2276 2277 Value *X = Div->getOperand(0); 2278 switch (Pred) { 2279 default: llvm_unreachable("Unhandled icmp opcode!"); 2280 case ICmpInst::ICMP_EQ: 2281 if (LoOverflow && HiOverflow) 2282 return replaceInstUsesWith(Cmp, Builder.getFalse()); 2283 if (HiOverflow) 2284 return new ICmpInst(DivIsSigned ? ICmpInst::ICMP_SGE : 2285 ICmpInst::ICMP_UGE, X, LoBound); 2286 if (LoOverflow) 2287 return new ICmpInst(DivIsSigned ? ICmpInst::ICMP_SLT : 2288 ICmpInst::ICMP_ULT, X, HiBound); 2289 return replaceInstUsesWith( 2290 Cmp, insertRangeTest(X, LoBound->getUniqueInteger(), 2291 HiBound->getUniqueInteger(), DivIsSigned, true)); 2292 case ICmpInst::ICMP_NE: 2293 if (LoOverflow && HiOverflow) 2294 return replaceInstUsesWith(Cmp, Builder.getTrue()); 2295 if (HiOverflow) 2296 return new ICmpInst(DivIsSigned ? ICmpInst::ICMP_SLT : 2297 ICmpInst::ICMP_ULT, X, LoBound); 2298 if (LoOverflow) 2299 return new ICmpInst(DivIsSigned ? ICmpInst::ICMP_SGE : 2300 ICmpInst::ICMP_UGE, X, HiBound); 2301 return replaceInstUsesWith(Cmp, 2302 insertRangeTest(X, LoBound->getUniqueInteger(), 2303 HiBound->getUniqueInteger(), 2304 DivIsSigned, false)); 2305 case ICmpInst::ICMP_ULT: 2306 case ICmpInst::ICMP_SLT: 2307 if (LoOverflow == +1) // Low bound is greater than input range. 2308 return replaceInstUsesWith(Cmp, Builder.getTrue()); 2309 if (LoOverflow == -1) // Low bound is less than input range. 2310 return replaceInstUsesWith(Cmp, Builder.getFalse()); 2311 return new ICmpInst(Pred, X, LoBound); 2312 case ICmpInst::ICMP_UGT: 2313 case ICmpInst::ICMP_SGT: 2314 if (HiOverflow == +1) // High bound greater than input range. 2315 return replaceInstUsesWith(Cmp, Builder.getFalse()); 2316 if (HiOverflow == -1) // High bound less than input range. 2317 return replaceInstUsesWith(Cmp, Builder.getTrue()); 2318 if (Pred == ICmpInst::ICMP_UGT) 2319 return new ICmpInst(ICmpInst::ICMP_UGE, X, HiBound); 2320 return new ICmpInst(ICmpInst::ICMP_SGE, X, HiBound); 2321 } 2322 2323 return nullptr; 2324 } 2325 2326 /// Fold icmp (sub X, Y), C. 2327 Instruction *InstCombiner::foldICmpSubConstant(ICmpInst &Cmp, 2328 BinaryOperator *Sub, 2329 const APInt *C) { 2330 Value *X = Sub->getOperand(0), *Y = Sub->getOperand(1); 2331 ICmpInst::Predicate Pred = Cmp.getPredicate(); 2332 2333 // The following transforms are only worth it if the only user of the subtract 2334 // is the icmp. 2335 if (!Sub->hasOneUse()) 2336 return nullptr; 2337 2338 if (Sub->hasNoSignedWrap()) { 2339 // (icmp sgt (sub nsw X, Y), -1) -> (icmp sge X, Y) 2340 if (Pred == ICmpInst::ICMP_SGT && C->isAllOnesValue()) 2341 return new ICmpInst(ICmpInst::ICMP_SGE, X, Y); 2342 2343 // (icmp sgt (sub nsw X, Y), 0) -> (icmp sgt X, Y) 2344 if (Pred == ICmpInst::ICMP_SGT && C->isNullValue()) 2345 return new ICmpInst(ICmpInst::ICMP_SGT, X, Y); 2346 2347 // (icmp slt (sub nsw X, Y), 0) -> (icmp slt X, Y) 2348 if (Pred == ICmpInst::ICMP_SLT && C->isNullValue()) 2349 return new ICmpInst(ICmpInst::ICMP_SLT, X, Y); 2350 2351 // (icmp slt (sub nsw X, Y), 1) -> (icmp sle X, Y) 2352 if (Pred == ICmpInst::ICMP_SLT && C->isOneValue()) 2353 return new ICmpInst(ICmpInst::ICMP_SLE, X, Y); 2354 } 2355 2356 const APInt *C2; 2357 if (!match(X, m_APInt(C2))) 2358 return nullptr; 2359 2360 // C2 - Y <u C -> (Y | (C - 1)) == C2 2361 // iff (C2 & (C - 1)) == C - 1 and C is a power of 2 2362 if (Pred == ICmpInst::ICMP_ULT && C->isPowerOf2() && 2363 (*C2 & (*C - 1)) == (*C - 1)) 2364 return new ICmpInst(ICmpInst::ICMP_EQ, Builder.CreateOr(Y, *C - 1), X); 2365 2366 // C2 - Y >u C -> (Y | C) != C2 2367 // iff C2 & C == C and C + 1 is a power of 2 2368 if (Pred == ICmpInst::ICMP_UGT && (*C + 1).isPowerOf2() && (*C2 & *C) == *C) 2369 return new ICmpInst(ICmpInst::ICMP_NE, Builder.CreateOr(Y, *C), X); 2370 2371 return nullptr; 2372 } 2373 2374 /// Fold icmp (add X, Y), C. 2375 Instruction *InstCombiner::foldICmpAddConstant(ICmpInst &Cmp, 2376 BinaryOperator *Add, 2377 const APInt *C) { 2378 Value *Y = Add->getOperand(1); 2379 const APInt *C2; 2380 if (Cmp.isEquality() || !match(Y, m_APInt(C2))) 2381 return nullptr; 2382 2383 // Fold icmp pred (add X, C2), C. 2384 Value *X = Add->getOperand(0); 2385 Type *Ty = Add->getType(); 2386 CmpInst::Predicate Pred = Cmp.getPredicate(); 2387 2388 // If the add does not wrap, we can always adjust the compare by subtracting 2389 // the constants. Equality comparisons are handled elsewhere. SGE/SLE are 2390 // canonicalized to SGT/SLT. 2391 if (Add->hasNoSignedWrap() && 2392 (Pred == ICmpInst::ICMP_SGT || Pred == ICmpInst::ICMP_SLT)) { 2393 bool Overflow; 2394 APInt NewC = C->ssub_ov(*C2, Overflow); 2395 // If there is overflow, the result must be true or false. 2396 // TODO: Can we assert there is no overflow because InstSimplify always 2397 // handles those cases? 2398 if (!Overflow) 2399 // icmp Pred (add nsw X, C2), C --> icmp Pred X, (C - C2) 2400 return new ICmpInst(Pred, X, ConstantInt::get(Ty, NewC)); 2401 } 2402 2403 auto CR = ConstantRange::makeExactICmpRegion(Pred, *C).subtract(*C2); 2404 const APInt &Upper = CR.getUpper(); 2405 const APInt &Lower = CR.getLower(); 2406 if (Cmp.isSigned()) { 2407 if (Lower.isSignMask()) 2408 return new ICmpInst(ICmpInst::ICMP_SLT, X, ConstantInt::get(Ty, Upper)); 2409 if (Upper.isSignMask()) 2410 return new ICmpInst(ICmpInst::ICMP_SGE, X, ConstantInt::get(Ty, Lower)); 2411 } else { 2412 if (Lower.isMinValue()) 2413 return new ICmpInst(ICmpInst::ICMP_ULT, X, ConstantInt::get(Ty, Upper)); 2414 if (Upper.isMinValue()) 2415 return new ICmpInst(ICmpInst::ICMP_UGE, X, ConstantInt::get(Ty, Lower)); 2416 } 2417 2418 if (!Add->hasOneUse()) 2419 return nullptr; 2420 2421 // X+C <u C2 -> (X & -C2) == C 2422 // iff C & (C2-1) == 0 2423 // C2 is a power of 2 2424 if (Pred == ICmpInst::ICMP_ULT && C->isPowerOf2() && (*C2 & (*C - 1)) == 0) 2425 return new ICmpInst(ICmpInst::ICMP_EQ, Builder.CreateAnd(X, -(*C)), 2426 ConstantExpr::getNeg(cast<Constant>(Y))); 2427 2428 // X+C >u C2 -> (X & ~C2) != C 2429 // iff C & C2 == 0 2430 // C2+1 is a power of 2 2431 if (Pred == ICmpInst::ICMP_UGT && (*C + 1).isPowerOf2() && (*C2 & *C) == 0) 2432 return new ICmpInst(ICmpInst::ICMP_NE, Builder.CreateAnd(X, ~(*C)), 2433 ConstantExpr::getNeg(cast<Constant>(Y))); 2434 2435 return nullptr; 2436 } 2437 2438 bool InstCombiner::matchThreeWayIntCompare(SelectInst *SI, Value *&LHS, 2439 Value *&RHS, ConstantInt *&Less, 2440 ConstantInt *&Equal, 2441 ConstantInt *&Greater) { 2442 // TODO: Generalize this to work with other comparison idioms or ensure 2443 // they get canonicalized into this form. 2444 2445 // select i1 (a == b), i32 Equal, i32 (select i1 (a < b), i32 Less, i32 2446 // Greater), where Equal, Less and Greater are placeholders for any three 2447 // constants. 2448 ICmpInst::Predicate PredA, PredB; 2449 if (match(SI->getTrueValue(), m_ConstantInt(Equal)) && 2450 match(SI->getCondition(), m_ICmp(PredA, m_Value(LHS), m_Value(RHS))) && 2451 PredA == ICmpInst::ICMP_EQ && 2452 match(SI->getFalseValue(), 2453 m_Select(m_ICmp(PredB, m_Specific(LHS), m_Specific(RHS)), 2454 m_ConstantInt(Less), m_ConstantInt(Greater))) && 2455 PredB == ICmpInst::ICMP_SLT) { 2456 return true; 2457 } 2458 return false; 2459 } 2460 2461 Instruction *InstCombiner::foldICmpSelectConstant(ICmpInst &Cmp, 2462 Instruction *Select, 2463 ConstantInt *C) { 2464 2465 assert(C && "Cmp RHS should be a constant int!"); 2466 // If we're testing a constant value against the result of a three way 2467 // comparison, the result can be expressed directly in terms of the 2468 // original values being compared. Note: We could possibly be more 2469 // aggressive here and remove the hasOneUse test. The original select is 2470 // really likely to simplify or sink when we remove a test of the result. 2471 Value *OrigLHS, *OrigRHS; 2472 ConstantInt *C1LessThan, *C2Equal, *C3GreaterThan; 2473 if (Cmp.hasOneUse() && 2474 matchThreeWayIntCompare(cast<SelectInst>(Select), OrigLHS, OrigRHS, 2475 C1LessThan, C2Equal, C3GreaterThan)) { 2476 assert(C1LessThan && C2Equal && C3GreaterThan); 2477 2478 bool TrueWhenLessThan = 2479 ConstantExpr::getCompare(Cmp.getPredicate(), C1LessThan, C) 2480 ->isAllOnesValue(); 2481 bool TrueWhenEqual = 2482 ConstantExpr::getCompare(Cmp.getPredicate(), C2Equal, C) 2483 ->isAllOnesValue(); 2484 bool TrueWhenGreaterThan = 2485 ConstantExpr::getCompare(Cmp.getPredicate(), C3GreaterThan, C) 2486 ->isAllOnesValue(); 2487 2488 // This generates the new instruction that will replace the original Cmp 2489 // Instruction. Instead of enumerating the various combinations when 2490 // TrueWhenLessThan, TrueWhenEqual and TrueWhenGreaterThan are true versus 2491 // false, we rely on chaining of ORs and future passes of InstCombine to 2492 // simplify the OR further (i.e. a s< b || a == b becomes a s<= b). 2493 2494 // When none of the three constants satisfy the predicate for the RHS (C), 2495 // the entire original Cmp can be simplified to a false. 2496 Value *Cond = Builder.getFalse(); 2497 if (TrueWhenLessThan) 2498 Cond = Builder.CreateOr(Cond, Builder.CreateICmp(ICmpInst::ICMP_SLT, OrigLHS, OrigRHS)); 2499 if (TrueWhenEqual) 2500 Cond = Builder.CreateOr(Cond, Builder.CreateICmp(ICmpInst::ICMP_EQ, OrigLHS, OrigRHS)); 2501 if (TrueWhenGreaterThan) 2502 Cond = Builder.CreateOr(Cond, Builder.CreateICmp(ICmpInst::ICMP_SGT, OrigLHS, OrigRHS)); 2503 2504 return replaceInstUsesWith(Cmp, Cond); 2505 } 2506 return nullptr; 2507 } 2508 2509 /// Try to fold integer comparisons with a constant operand: icmp Pred X, C 2510 /// where X is some kind of instruction. 2511 Instruction *InstCombiner::foldICmpInstWithConstant(ICmpInst &Cmp) { 2512 const APInt *C; 2513 if (!match(Cmp.getOperand(1), m_APInt(C))) 2514 return nullptr; 2515 2516 BinaryOperator *BO; 2517 if (match(Cmp.getOperand(0), m_BinOp(BO))) { 2518 switch (BO->getOpcode()) { 2519 case Instruction::Xor: 2520 if (Instruction *I = foldICmpXorConstant(Cmp, BO, C)) 2521 return I; 2522 break; 2523 case Instruction::And: 2524 if (Instruction *I = foldICmpAndConstant(Cmp, BO, C)) 2525 return I; 2526 break; 2527 case Instruction::Or: 2528 if (Instruction *I = foldICmpOrConstant(Cmp, BO, C)) 2529 return I; 2530 break; 2531 case Instruction::Mul: 2532 if (Instruction *I = foldICmpMulConstant(Cmp, BO, C)) 2533 return I; 2534 break; 2535 case Instruction::Shl: 2536 if (Instruction *I = foldICmpShlConstant(Cmp, BO, C)) 2537 return I; 2538 break; 2539 case Instruction::LShr: 2540 case Instruction::AShr: 2541 if (Instruction *I = foldICmpShrConstant(Cmp, BO, C)) 2542 return I; 2543 break; 2544 case Instruction::UDiv: 2545 if (Instruction *I = foldICmpUDivConstant(Cmp, BO, C)) 2546 return I; 2547 LLVM_FALLTHROUGH; 2548 case Instruction::SDiv: 2549 if (Instruction *I = foldICmpDivConstant(Cmp, BO, C)) 2550 return I; 2551 break; 2552 case Instruction::Sub: 2553 if (Instruction *I = foldICmpSubConstant(Cmp, BO, C)) 2554 return I; 2555 break; 2556 case Instruction::Add: 2557 if (Instruction *I = foldICmpAddConstant(Cmp, BO, C)) 2558 return I; 2559 break; 2560 default: 2561 break; 2562 } 2563 // TODO: These folds could be refactored to be part of the above calls. 2564 if (Instruction *I = foldICmpBinOpEqualityWithConstant(Cmp, BO, C)) 2565 return I; 2566 } 2567 2568 // Match against CmpInst LHS being instructions other than binary operators. 2569 Instruction *LHSI; 2570 if (match(Cmp.getOperand(0), m_Instruction(LHSI))) { 2571 switch (LHSI->getOpcode()) { 2572 case Instruction::Select: 2573 { 2574 // For now, we only support constant integers while folding the 2575 // ICMP(SELECT)) pattern. We can extend this to support vector of integers 2576 // similar to the cases handled by binary ops above. 2577 if (ConstantInt *ConstRHS = dyn_cast<ConstantInt>(Cmp.getOperand(1))) 2578 if (Instruction *I = foldICmpSelectConstant(Cmp, LHSI, ConstRHS)) 2579 return I; 2580 break; 2581 } 2582 case Instruction::Trunc: 2583 if (Instruction *I = foldICmpTruncConstant(Cmp, LHSI, C)) 2584 return I; 2585 break; 2586 default: 2587 break; 2588 } 2589 } 2590 2591 if (Instruction *I = foldICmpIntrinsicWithConstant(Cmp, C)) 2592 return I; 2593 2594 return nullptr; 2595 } 2596 2597 /// Fold an icmp equality instruction with binary operator LHS and constant RHS: 2598 /// icmp eq/ne BO, C. 2599 Instruction *InstCombiner::foldICmpBinOpEqualityWithConstant(ICmpInst &Cmp, 2600 BinaryOperator *BO, 2601 const APInt *C) { 2602 // TODO: Some of these folds could work with arbitrary constants, but this 2603 // function is limited to scalar and vector splat constants. 2604 if (!Cmp.isEquality()) 2605 return nullptr; 2606 2607 ICmpInst::Predicate Pred = Cmp.getPredicate(); 2608 bool isICMP_NE = Pred == ICmpInst::ICMP_NE; 2609 Constant *RHS = cast<Constant>(Cmp.getOperand(1)); 2610 Value *BOp0 = BO->getOperand(0), *BOp1 = BO->getOperand(1); 2611 2612 switch (BO->getOpcode()) { 2613 case Instruction::SRem: 2614 // If we have a signed (X % (2^c)) == 0, turn it into an unsigned one. 2615 if (C->isNullValue() && BO->hasOneUse()) { 2616 const APInt *BOC; 2617 if (match(BOp1, m_APInt(BOC)) && BOC->sgt(1) && BOC->isPowerOf2()) { 2618 Value *NewRem = Builder.CreateURem(BOp0, BOp1, BO->getName()); 2619 return new ICmpInst(Pred, NewRem, 2620 Constant::getNullValue(BO->getType())); 2621 } 2622 } 2623 break; 2624 case Instruction::Add: { 2625 // Replace ((add A, B) != C) with (A != C-B) if B & C are constants. 2626 const APInt *BOC; 2627 if (match(BOp1, m_APInt(BOC))) { 2628 if (BO->hasOneUse()) { 2629 Constant *SubC = ConstantExpr::getSub(RHS, cast<Constant>(BOp1)); 2630 return new ICmpInst(Pred, BOp0, SubC); 2631 } 2632 } else if (C->isNullValue()) { 2633 // Replace ((add A, B) != 0) with (A != -B) if A or B is 2634 // efficiently invertible, or if the add has just this one use. 2635 if (Value *NegVal = dyn_castNegVal(BOp1)) 2636 return new ICmpInst(Pred, BOp0, NegVal); 2637 if (Value *NegVal = dyn_castNegVal(BOp0)) 2638 return new ICmpInst(Pred, NegVal, BOp1); 2639 if (BO->hasOneUse()) { 2640 Value *Neg = Builder.CreateNeg(BOp1); 2641 Neg->takeName(BO); 2642 return new ICmpInst(Pred, BOp0, Neg); 2643 } 2644 } 2645 break; 2646 } 2647 case Instruction::Xor: 2648 if (BO->hasOneUse()) { 2649 if (Constant *BOC = dyn_cast<Constant>(BOp1)) { 2650 // For the xor case, we can xor two constants together, eliminating 2651 // the explicit xor. 2652 return new ICmpInst(Pred, BOp0, ConstantExpr::getXor(RHS, BOC)); 2653 } else if (C->isNullValue()) { 2654 // Replace ((xor A, B) != 0) with (A != B) 2655 return new ICmpInst(Pred, BOp0, BOp1); 2656 } 2657 } 2658 break; 2659 case Instruction::Sub: 2660 if (BO->hasOneUse()) { 2661 const APInt *BOC; 2662 if (match(BOp0, m_APInt(BOC))) { 2663 // Replace ((sub BOC, B) != C) with (B != BOC-C). 2664 Constant *SubC = ConstantExpr::getSub(cast<Constant>(BOp0), RHS); 2665 return new ICmpInst(Pred, BOp1, SubC); 2666 } else if (C->isNullValue()) { 2667 // Replace ((sub A, B) != 0) with (A != B). 2668 return new ICmpInst(Pred, BOp0, BOp1); 2669 } 2670 } 2671 break; 2672 case Instruction::Or: { 2673 const APInt *BOC; 2674 if (match(BOp1, m_APInt(BOC)) && BO->hasOneUse() && RHS->isAllOnesValue()) { 2675 // Comparing if all bits outside of a constant mask are set? 2676 // Replace (X | C) == -1 with (X & ~C) == ~C. 2677 // This removes the -1 constant. 2678 Constant *NotBOC = ConstantExpr::getNot(cast<Constant>(BOp1)); 2679 Value *And = Builder.CreateAnd(BOp0, NotBOC); 2680 return new ICmpInst(Pred, And, NotBOC); 2681 } 2682 break; 2683 } 2684 case Instruction::And: { 2685 const APInt *BOC; 2686 if (match(BOp1, m_APInt(BOC))) { 2687 // If we have ((X & C) == C), turn it into ((X & C) != 0). 2688 if (C == BOC && C->isPowerOf2()) 2689 return new ICmpInst(isICMP_NE ? ICmpInst::ICMP_EQ : ICmpInst::ICMP_NE, 2690 BO, Constant::getNullValue(RHS->getType())); 2691 2692 // Don't perform the following transforms if the AND has multiple uses 2693 if (!BO->hasOneUse()) 2694 break; 2695 2696 // Replace (and X, (1 << size(X)-1) != 0) with x s< 0 2697 if (BOC->isSignMask()) { 2698 Constant *Zero = Constant::getNullValue(BOp0->getType()); 2699 auto NewPred = isICMP_NE ? ICmpInst::ICMP_SLT : ICmpInst::ICMP_SGE; 2700 return new ICmpInst(NewPred, BOp0, Zero); 2701 } 2702 2703 // ((X & ~7) == 0) --> X < 8 2704 if (C->isNullValue() && (~(*BOC) + 1).isPowerOf2()) { 2705 Constant *NegBOC = ConstantExpr::getNeg(cast<Constant>(BOp1)); 2706 auto NewPred = isICMP_NE ? ICmpInst::ICMP_UGE : ICmpInst::ICMP_ULT; 2707 return new ICmpInst(NewPred, BOp0, NegBOC); 2708 } 2709 } 2710 break; 2711 } 2712 case Instruction::Mul: 2713 if (C->isNullValue() && BO->hasNoSignedWrap()) { 2714 const APInt *BOC; 2715 if (match(BOp1, m_APInt(BOC)) && !BOC->isNullValue()) { 2716 // The trivial case (mul X, 0) is handled by InstSimplify. 2717 // General case : (mul X, C) != 0 iff X != 0 2718 // (mul X, C) == 0 iff X == 0 2719 return new ICmpInst(Pred, BOp0, Constant::getNullValue(RHS->getType())); 2720 } 2721 } 2722 break; 2723 case Instruction::UDiv: 2724 if (C->isNullValue()) { 2725 // (icmp eq/ne (udiv A, B), 0) -> (icmp ugt/ule i32 B, A) 2726 auto NewPred = isICMP_NE ? ICmpInst::ICMP_ULE : ICmpInst::ICMP_UGT; 2727 return new ICmpInst(NewPred, BOp1, BOp0); 2728 } 2729 break; 2730 default: 2731 break; 2732 } 2733 return nullptr; 2734 } 2735 2736 /// Fold an icmp with LLVM intrinsic and constant operand: icmp Pred II, C. 2737 Instruction *InstCombiner::foldICmpIntrinsicWithConstant(ICmpInst &Cmp, 2738 const APInt *C) { 2739 IntrinsicInst *II = dyn_cast<IntrinsicInst>(Cmp.getOperand(0)); 2740 if (!II || !Cmp.isEquality()) 2741 return nullptr; 2742 2743 // Handle icmp {eq|ne} <intrinsic>, Constant. 2744 Type *Ty = II->getType(); 2745 switch (II->getIntrinsicID()) { 2746 case Intrinsic::bswap: 2747 Worklist.Add(II); 2748 Cmp.setOperand(0, II->getArgOperand(0)); 2749 Cmp.setOperand(1, ConstantInt::get(Ty, C->byteSwap())); 2750 return &Cmp; 2751 2752 case Intrinsic::ctlz: 2753 case Intrinsic::cttz: 2754 // ctz(A) == bitwidth(A) -> A == 0 and likewise for != 2755 if (*C == C->getBitWidth()) { 2756 Worklist.Add(II); 2757 Cmp.setOperand(0, II->getArgOperand(0)); 2758 Cmp.setOperand(1, ConstantInt::getNullValue(Ty)); 2759 return &Cmp; 2760 } 2761 break; 2762 2763 case Intrinsic::ctpop: { 2764 // popcount(A) == 0 -> A == 0 and likewise for != 2765 // popcount(A) == bitwidth(A) -> A == -1 and likewise for != 2766 bool IsZero = C->isNullValue(); 2767 if (IsZero || *C == C->getBitWidth()) { 2768 Worklist.Add(II); 2769 Cmp.setOperand(0, II->getArgOperand(0)); 2770 auto *NewOp = 2771 IsZero ? Constant::getNullValue(Ty) : Constant::getAllOnesValue(Ty); 2772 Cmp.setOperand(1, NewOp); 2773 return &Cmp; 2774 } 2775 break; 2776 } 2777 default: 2778 break; 2779 } 2780 2781 return nullptr; 2782 } 2783 2784 /// Handle icmp with constant (but not simple integer constant) RHS. 2785 Instruction *InstCombiner::foldICmpInstWithConstantNotInt(ICmpInst &I) { 2786 Value *Op0 = I.getOperand(0), *Op1 = I.getOperand(1); 2787 Constant *RHSC = dyn_cast<Constant>(Op1); 2788 Instruction *LHSI = dyn_cast<Instruction>(Op0); 2789 if (!RHSC || !LHSI) 2790 return nullptr; 2791 2792 switch (LHSI->getOpcode()) { 2793 case Instruction::GetElementPtr: 2794 // icmp pred GEP (P, int 0, int 0, int 0), null -> icmp pred P, null 2795 if (RHSC->isNullValue() && 2796 cast<GetElementPtrInst>(LHSI)->hasAllZeroIndices()) 2797 return new ICmpInst( 2798 I.getPredicate(), LHSI->getOperand(0), 2799 Constant::getNullValue(LHSI->getOperand(0)->getType())); 2800 break; 2801 case Instruction::PHI: 2802 // Only fold icmp into the PHI if the phi and icmp are in the same 2803 // block. If in the same block, we're encouraging jump threading. If 2804 // not, we are just pessimizing the code by making an i1 phi. 2805 if (LHSI->getParent() == I.getParent()) 2806 if (Instruction *NV = foldOpIntoPhi(I, cast<PHINode>(LHSI))) 2807 return NV; 2808 break; 2809 case Instruction::Select: { 2810 // If either operand of the select is a constant, we can fold the 2811 // comparison into the select arms, which will cause one to be 2812 // constant folded and the select turned into a bitwise or. 2813 Value *Op1 = nullptr, *Op2 = nullptr; 2814 ConstantInt *CI = nullptr; 2815 if (Constant *C = dyn_cast<Constant>(LHSI->getOperand(1))) { 2816 Op1 = ConstantExpr::getICmp(I.getPredicate(), C, RHSC); 2817 CI = dyn_cast<ConstantInt>(Op1); 2818 } 2819 if (Constant *C = dyn_cast<Constant>(LHSI->getOperand(2))) { 2820 Op2 = ConstantExpr::getICmp(I.getPredicate(), C, RHSC); 2821 CI = dyn_cast<ConstantInt>(Op2); 2822 } 2823 2824 // We only want to perform this transformation if it will not lead to 2825 // additional code. This is true if either both sides of the select 2826 // fold to a constant (in which case the icmp is replaced with a select 2827 // which will usually simplify) or this is the only user of the 2828 // select (in which case we are trading a select+icmp for a simpler 2829 // select+icmp) or all uses of the select can be replaced based on 2830 // dominance information ("Global cases"). 2831 bool Transform = false; 2832 if (Op1 && Op2) 2833 Transform = true; 2834 else if (Op1 || Op2) { 2835 // Local case 2836 if (LHSI->hasOneUse()) 2837 Transform = true; 2838 // Global cases 2839 else if (CI && !CI->isZero()) 2840 // When Op1 is constant try replacing select with second operand. 2841 // Otherwise Op2 is constant and try replacing select with first 2842 // operand. 2843 Transform = 2844 replacedSelectWithOperand(cast<SelectInst>(LHSI), &I, Op1 ? 2 : 1); 2845 } 2846 if (Transform) { 2847 if (!Op1) 2848 Op1 = Builder.CreateICmp(I.getPredicate(), LHSI->getOperand(1), RHSC, 2849 I.getName()); 2850 if (!Op2) 2851 Op2 = Builder.CreateICmp(I.getPredicate(), LHSI->getOperand(2), RHSC, 2852 I.getName()); 2853 return SelectInst::Create(LHSI->getOperand(0), Op1, Op2); 2854 } 2855 break; 2856 } 2857 case Instruction::IntToPtr: 2858 // icmp pred inttoptr(X), null -> icmp pred X, 0 2859 if (RHSC->isNullValue() && 2860 DL.getIntPtrType(RHSC->getType()) == LHSI->getOperand(0)->getType()) 2861 return new ICmpInst( 2862 I.getPredicate(), LHSI->getOperand(0), 2863 Constant::getNullValue(LHSI->getOperand(0)->getType())); 2864 break; 2865 2866 case Instruction::Load: 2867 // Try to optimize things like "A[i] > 4" to index computations. 2868 if (GetElementPtrInst *GEP = 2869 dyn_cast<GetElementPtrInst>(LHSI->getOperand(0))) { 2870 if (GlobalVariable *GV = dyn_cast<GlobalVariable>(GEP->getOperand(0))) 2871 if (GV->isConstant() && GV->hasDefinitiveInitializer() && 2872 !cast<LoadInst>(LHSI)->isVolatile()) 2873 if (Instruction *Res = foldCmpLoadFromIndexedGlobal(GEP, GV, I)) 2874 return Res; 2875 } 2876 break; 2877 } 2878 2879 return nullptr; 2880 } 2881 2882 /// Try to fold icmp (binop), X or icmp X, (binop). 2883 /// TODO: A large part of this logic is duplicated in InstSimplify's 2884 /// simplifyICmpWithBinOp(). We should be able to share that and avoid the code 2885 /// duplication. 2886 Instruction *InstCombiner::foldICmpBinOp(ICmpInst &I) { 2887 Value *Op0 = I.getOperand(0), *Op1 = I.getOperand(1); 2888 2889 // Special logic for binary operators. 2890 BinaryOperator *BO0 = dyn_cast<BinaryOperator>(Op0); 2891 BinaryOperator *BO1 = dyn_cast<BinaryOperator>(Op1); 2892 if (!BO0 && !BO1) 2893 return nullptr; 2894 2895 const CmpInst::Predicate Pred = I.getPredicate(); 2896 bool NoOp0WrapProblem = false, NoOp1WrapProblem = false; 2897 if (BO0 && isa<OverflowingBinaryOperator>(BO0)) 2898 NoOp0WrapProblem = 2899 ICmpInst::isEquality(Pred) || 2900 (CmpInst::isUnsigned(Pred) && BO0->hasNoUnsignedWrap()) || 2901 (CmpInst::isSigned(Pred) && BO0->hasNoSignedWrap()); 2902 if (BO1 && isa<OverflowingBinaryOperator>(BO1)) 2903 NoOp1WrapProblem = 2904 ICmpInst::isEquality(Pred) || 2905 (CmpInst::isUnsigned(Pred) && BO1->hasNoUnsignedWrap()) || 2906 (CmpInst::isSigned(Pred) && BO1->hasNoSignedWrap()); 2907 2908 // Analyze the case when either Op0 or Op1 is an add instruction. 2909 // Op0 = A + B (or A and B are null); Op1 = C + D (or C and D are null). 2910 Value *A = nullptr, *B = nullptr, *C = nullptr, *D = nullptr; 2911 if (BO0 && BO0->getOpcode() == Instruction::Add) { 2912 A = BO0->getOperand(0); 2913 B = BO0->getOperand(1); 2914 } 2915 if (BO1 && BO1->getOpcode() == Instruction::Add) { 2916 C = BO1->getOperand(0); 2917 D = BO1->getOperand(1); 2918 } 2919 2920 // icmp (X+Y), X -> icmp Y, 0 for equalities or if there is no overflow. 2921 if ((A == Op1 || B == Op1) && NoOp0WrapProblem) 2922 return new ICmpInst(Pred, A == Op1 ? B : A, 2923 Constant::getNullValue(Op1->getType())); 2924 2925 // icmp X, (X+Y) -> icmp 0, Y for equalities or if there is no overflow. 2926 if ((C == Op0 || D == Op0) && NoOp1WrapProblem) 2927 return new ICmpInst(Pred, Constant::getNullValue(Op0->getType()), 2928 C == Op0 ? D : C); 2929 2930 // icmp (X+Y), (X+Z) -> icmp Y, Z for equalities or if there is no overflow. 2931 if (A && C && (A == C || A == D || B == C || B == D) && NoOp0WrapProblem && 2932 NoOp1WrapProblem && 2933 // Try not to increase register pressure. 2934 BO0->hasOneUse() && BO1->hasOneUse()) { 2935 // Determine Y and Z in the form icmp (X+Y), (X+Z). 2936 Value *Y, *Z; 2937 if (A == C) { 2938 // C + B == C + D -> B == D 2939 Y = B; 2940 Z = D; 2941 } else if (A == D) { 2942 // D + B == C + D -> B == C 2943 Y = B; 2944 Z = C; 2945 } else if (B == C) { 2946 // A + C == C + D -> A == D 2947 Y = A; 2948 Z = D; 2949 } else { 2950 assert(B == D); 2951 // A + D == C + D -> A == C 2952 Y = A; 2953 Z = C; 2954 } 2955 return new ICmpInst(Pred, Y, Z); 2956 } 2957 2958 // icmp slt (X + -1), Y -> icmp sle X, Y 2959 if (A && NoOp0WrapProblem && Pred == CmpInst::ICMP_SLT && 2960 match(B, m_AllOnes())) 2961 return new ICmpInst(CmpInst::ICMP_SLE, A, Op1); 2962 2963 // icmp sge (X + -1), Y -> icmp sgt X, Y 2964 if (A && NoOp0WrapProblem && Pred == CmpInst::ICMP_SGE && 2965 match(B, m_AllOnes())) 2966 return new ICmpInst(CmpInst::ICMP_SGT, A, Op1); 2967 2968 // icmp sle (X + 1), Y -> icmp slt X, Y 2969 if (A && NoOp0WrapProblem && Pred == CmpInst::ICMP_SLE && match(B, m_One())) 2970 return new ICmpInst(CmpInst::ICMP_SLT, A, Op1); 2971 2972 // icmp sgt (X + 1), Y -> icmp sge X, Y 2973 if (A && NoOp0WrapProblem && Pred == CmpInst::ICMP_SGT && match(B, m_One())) 2974 return new ICmpInst(CmpInst::ICMP_SGE, A, Op1); 2975 2976 // icmp sgt X, (Y + -1) -> icmp sge X, Y 2977 if (C && NoOp1WrapProblem && Pred == CmpInst::ICMP_SGT && 2978 match(D, m_AllOnes())) 2979 return new ICmpInst(CmpInst::ICMP_SGE, Op0, C); 2980 2981 // icmp sle X, (Y + -1) -> icmp slt X, Y 2982 if (C && NoOp1WrapProblem && Pred == CmpInst::ICMP_SLE && 2983 match(D, m_AllOnes())) 2984 return new ICmpInst(CmpInst::ICMP_SLT, Op0, C); 2985 2986 // icmp sge X, (Y + 1) -> icmp sgt X, Y 2987 if (C && NoOp1WrapProblem && Pred == CmpInst::ICMP_SGE && match(D, m_One())) 2988 return new ICmpInst(CmpInst::ICMP_SGT, Op0, C); 2989 2990 // icmp slt X, (Y + 1) -> icmp sle X, Y 2991 if (C && NoOp1WrapProblem && Pred == CmpInst::ICMP_SLT && match(D, m_One())) 2992 return new ICmpInst(CmpInst::ICMP_SLE, Op0, C); 2993 2994 // TODO: The subtraction-related identities shown below also hold, but 2995 // canonicalization from (X -nuw 1) to (X + -1) means that the combinations 2996 // wouldn't happen even if they were implemented. 2997 // 2998 // icmp ult (X - 1), Y -> icmp ule X, Y 2999 // icmp uge (X - 1), Y -> icmp ugt X, Y 3000 // icmp ugt X, (Y - 1) -> icmp uge X, Y 3001 // icmp ule X, (Y - 1) -> icmp ult X, Y 3002 3003 // icmp ule (X + 1), Y -> icmp ult X, Y 3004 if (A && NoOp0WrapProblem && Pred == CmpInst::ICMP_ULE && match(B, m_One())) 3005 return new ICmpInst(CmpInst::ICMP_ULT, A, Op1); 3006 3007 // icmp ugt (X + 1), Y -> icmp uge X, Y 3008 if (A && NoOp0WrapProblem && Pred == CmpInst::ICMP_UGT && match(B, m_One())) 3009 return new ICmpInst(CmpInst::ICMP_UGE, A, Op1); 3010 3011 // icmp uge X, (Y + 1) -> icmp ugt X, Y 3012 if (C && NoOp1WrapProblem && Pred == CmpInst::ICMP_UGE && match(D, m_One())) 3013 return new ICmpInst(CmpInst::ICMP_UGT, Op0, C); 3014 3015 // icmp ult X, (Y + 1) -> icmp ule X, Y 3016 if (C && NoOp1WrapProblem && Pred == CmpInst::ICMP_ULT && match(D, m_One())) 3017 return new ICmpInst(CmpInst::ICMP_ULE, Op0, C); 3018 3019 // if C1 has greater magnitude than C2: 3020 // icmp (X + C1), (Y + C2) -> icmp (X + C3), Y 3021 // s.t. C3 = C1 - C2 3022 // 3023 // if C2 has greater magnitude than C1: 3024 // icmp (X + C1), (Y + C2) -> icmp X, (Y + C3) 3025 // s.t. C3 = C2 - C1 3026 if (A && C && NoOp0WrapProblem && NoOp1WrapProblem && 3027 (BO0->hasOneUse() || BO1->hasOneUse()) && !I.isUnsigned()) 3028 if (ConstantInt *C1 = dyn_cast<ConstantInt>(B)) 3029 if (ConstantInt *C2 = dyn_cast<ConstantInt>(D)) { 3030 const APInt &AP1 = C1->getValue(); 3031 const APInt &AP2 = C2->getValue(); 3032 if (AP1.isNegative() == AP2.isNegative()) { 3033 APInt AP1Abs = C1->getValue().abs(); 3034 APInt AP2Abs = C2->getValue().abs(); 3035 if (AP1Abs.uge(AP2Abs)) { 3036 ConstantInt *C3 = Builder.getInt(AP1 - AP2); 3037 Value *NewAdd = Builder.CreateNSWAdd(A, C3); 3038 return new ICmpInst(Pred, NewAdd, C); 3039 } else { 3040 ConstantInt *C3 = Builder.getInt(AP2 - AP1); 3041 Value *NewAdd = Builder.CreateNSWAdd(C, C3); 3042 return new ICmpInst(Pred, A, NewAdd); 3043 } 3044 } 3045 } 3046 3047 // Analyze the case when either Op0 or Op1 is a sub instruction. 3048 // Op0 = A - B (or A and B are null); Op1 = C - D (or C and D are null). 3049 A = nullptr; 3050 B = nullptr; 3051 C = nullptr; 3052 D = nullptr; 3053 if (BO0 && BO0->getOpcode() == Instruction::Sub) { 3054 A = BO0->getOperand(0); 3055 B = BO0->getOperand(1); 3056 } 3057 if (BO1 && BO1->getOpcode() == Instruction::Sub) { 3058 C = BO1->getOperand(0); 3059 D = BO1->getOperand(1); 3060 } 3061 3062 // icmp (X-Y), X -> icmp 0, Y for equalities or if there is no overflow. 3063 if (A == Op1 && NoOp0WrapProblem) 3064 return new ICmpInst(Pred, Constant::getNullValue(Op1->getType()), B); 3065 3066 // icmp X, (X-Y) -> icmp Y, 0 for equalities or if there is no overflow. 3067 if (C == Op0 && NoOp1WrapProblem) 3068 return new ICmpInst(Pred, D, Constant::getNullValue(Op0->getType())); 3069 3070 // icmp (Y-X), (Z-X) -> icmp Y, Z for equalities or if there is no overflow. 3071 if (B && D && B == D && NoOp0WrapProblem && NoOp1WrapProblem && 3072 // Try not to increase register pressure. 3073 BO0->hasOneUse() && BO1->hasOneUse()) 3074 return new ICmpInst(Pred, A, C); 3075 3076 // icmp (X-Y), (X-Z) -> icmp Z, Y for equalities or if there is no overflow. 3077 if (A && C && A == C && NoOp0WrapProblem && NoOp1WrapProblem && 3078 // Try not to increase register pressure. 3079 BO0->hasOneUse() && BO1->hasOneUse()) 3080 return new ICmpInst(Pred, D, B); 3081 3082 // icmp (0-X) < cst --> x > -cst 3083 if (NoOp0WrapProblem && ICmpInst::isSigned(Pred)) { 3084 Value *X; 3085 if (match(BO0, m_Neg(m_Value(X)))) 3086 if (ConstantInt *RHSC = dyn_cast<ConstantInt>(Op1)) 3087 if (!RHSC->isMinValue(/*isSigned=*/true)) 3088 return new ICmpInst(I.getSwappedPredicate(), X, 3089 ConstantExpr::getNeg(RHSC)); 3090 } 3091 3092 BinaryOperator *SRem = nullptr; 3093 // icmp (srem X, Y), Y 3094 if (BO0 && BO0->getOpcode() == Instruction::SRem && Op1 == BO0->getOperand(1)) 3095 SRem = BO0; 3096 // icmp Y, (srem X, Y) 3097 else if (BO1 && BO1->getOpcode() == Instruction::SRem && 3098 Op0 == BO1->getOperand(1)) 3099 SRem = BO1; 3100 if (SRem) { 3101 // We don't check hasOneUse to avoid increasing register pressure because 3102 // the value we use is the same value this instruction was already using. 3103 switch (SRem == BO0 ? ICmpInst::getSwappedPredicate(Pred) : Pred) { 3104 default: 3105 break; 3106 case ICmpInst::ICMP_EQ: 3107 return replaceInstUsesWith(I, ConstantInt::getFalse(I.getType())); 3108 case ICmpInst::ICMP_NE: 3109 return replaceInstUsesWith(I, ConstantInt::getTrue(I.getType())); 3110 case ICmpInst::ICMP_SGT: 3111 case ICmpInst::ICMP_SGE: 3112 return new ICmpInst(ICmpInst::ICMP_SGT, SRem->getOperand(1), 3113 Constant::getAllOnesValue(SRem->getType())); 3114 case ICmpInst::ICMP_SLT: 3115 case ICmpInst::ICMP_SLE: 3116 return new ICmpInst(ICmpInst::ICMP_SLT, SRem->getOperand(1), 3117 Constant::getNullValue(SRem->getType())); 3118 } 3119 } 3120 3121 if (BO0 && BO1 && BO0->getOpcode() == BO1->getOpcode() && BO0->hasOneUse() && 3122 BO1->hasOneUse() && BO0->getOperand(1) == BO1->getOperand(1)) { 3123 switch (BO0->getOpcode()) { 3124 default: 3125 break; 3126 case Instruction::Add: 3127 case Instruction::Sub: 3128 case Instruction::Xor: { 3129 if (I.isEquality()) // a+x icmp eq/ne b+x --> a icmp b 3130 return new ICmpInst(Pred, BO0->getOperand(0), BO1->getOperand(0)); 3131 3132 const APInt *C; 3133 if (match(BO0->getOperand(1), m_APInt(C))) { 3134 // icmp u/s (a ^ signmask), (b ^ signmask) --> icmp s/u a, b 3135 if (C->isSignMask()) { 3136 ICmpInst::Predicate NewPred = 3137 I.isSigned() ? I.getUnsignedPredicate() : I.getSignedPredicate(); 3138 return new ICmpInst(NewPred, BO0->getOperand(0), BO1->getOperand(0)); 3139 } 3140 3141 // icmp u/s (a ^ maxsignval), (b ^ maxsignval) --> icmp s/u' a, b 3142 if (BO0->getOpcode() == Instruction::Xor && C->isMaxSignedValue()) { 3143 ICmpInst::Predicate NewPred = 3144 I.isSigned() ? I.getUnsignedPredicate() : I.getSignedPredicate(); 3145 NewPred = I.getSwappedPredicate(NewPred); 3146 return new ICmpInst(NewPred, BO0->getOperand(0), BO1->getOperand(0)); 3147 } 3148 } 3149 break; 3150 } 3151 case Instruction::Mul: { 3152 if (!I.isEquality()) 3153 break; 3154 3155 const APInt *C; 3156 if (match(BO0->getOperand(1), m_APInt(C)) && !C->isNullValue() && 3157 !C->isOneValue()) { 3158 // icmp eq/ne (X * C), (Y * C) --> icmp (X & Mask), (Y & Mask) 3159 // Mask = -1 >> count-trailing-zeros(C). 3160 if (unsigned TZs = C->countTrailingZeros()) { 3161 Constant *Mask = ConstantInt::get( 3162 BO0->getType(), 3163 APInt::getLowBitsSet(C->getBitWidth(), C->getBitWidth() - TZs)); 3164 Value *And1 = Builder.CreateAnd(BO0->getOperand(0), Mask); 3165 Value *And2 = Builder.CreateAnd(BO1->getOperand(0), Mask); 3166 return new ICmpInst(Pred, And1, And2); 3167 } 3168 // If there are no trailing zeros in the multiplier, just eliminate 3169 // the multiplies (no masking is needed): 3170 // icmp eq/ne (X * C), (Y * C) --> icmp eq/ne X, Y 3171 return new ICmpInst(Pred, BO0->getOperand(0), BO1->getOperand(0)); 3172 } 3173 break; 3174 } 3175 case Instruction::UDiv: 3176 case Instruction::LShr: 3177 if (I.isSigned() || !BO0->isExact() || !BO1->isExact()) 3178 break; 3179 return new ICmpInst(Pred, BO0->getOperand(0), BO1->getOperand(0)); 3180 3181 case Instruction::SDiv: 3182 if (!I.isEquality() || !BO0->isExact() || !BO1->isExact()) 3183 break; 3184 return new ICmpInst(Pred, BO0->getOperand(0), BO1->getOperand(0)); 3185 3186 case Instruction::AShr: 3187 if (!BO0->isExact() || !BO1->isExact()) 3188 break; 3189 return new ICmpInst(Pred, BO0->getOperand(0), BO1->getOperand(0)); 3190 3191 case Instruction::Shl: { 3192 bool NUW = BO0->hasNoUnsignedWrap() && BO1->hasNoUnsignedWrap(); 3193 bool NSW = BO0->hasNoSignedWrap() && BO1->hasNoSignedWrap(); 3194 if (!NUW && !NSW) 3195 break; 3196 if (!NSW && I.isSigned()) 3197 break; 3198 return new ICmpInst(Pred, BO0->getOperand(0), BO1->getOperand(0)); 3199 } 3200 } 3201 } 3202 3203 if (BO0) { 3204 // Transform A & (L - 1) `ult` L --> L != 0 3205 auto LSubOne = m_Add(m_Specific(Op1), m_AllOnes()); 3206 auto BitwiseAnd = m_c_And(m_Value(), LSubOne); 3207 3208 if (match(BO0, BitwiseAnd) && Pred == ICmpInst::ICMP_ULT) { 3209 auto *Zero = Constant::getNullValue(BO0->getType()); 3210 return new ICmpInst(ICmpInst::ICMP_NE, Op1, Zero); 3211 } 3212 } 3213 3214 return nullptr; 3215 } 3216 3217 /// Fold icmp Pred min|max(X, Y), X. 3218 static Instruction *foldICmpWithMinMax(ICmpInst &Cmp) { 3219 ICmpInst::Predicate Pred = Cmp.getPredicate(); 3220 Value *Op0 = Cmp.getOperand(0); 3221 Value *X = Cmp.getOperand(1); 3222 3223 // Canonicalize minimum or maximum operand to LHS of the icmp. 3224 if (match(X, m_c_SMin(m_Specific(Op0), m_Value())) || 3225 match(X, m_c_SMax(m_Specific(Op0), m_Value())) || 3226 match(X, m_c_UMin(m_Specific(Op0), m_Value())) || 3227 match(X, m_c_UMax(m_Specific(Op0), m_Value()))) { 3228 std::swap(Op0, X); 3229 Pred = Cmp.getSwappedPredicate(); 3230 } 3231 3232 Value *Y; 3233 if (match(Op0, m_c_SMin(m_Specific(X), m_Value(Y)))) { 3234 // smin(X, Y) == X --> X s<= Y 3235 // smin(X, Y) s>= X --> X s<= Y 3236 if (Pred == CmpInst::ICMP_EQ || Pred == CmpInst::ICMP_SGE) 3237 return new ICmpInst(ICmpInst::ICMP_SLE, X, Y); 3238 3239 // smin(X, Y) != X --> X s> Y 3240 // smin(X, Y) s< X --> X s> Y 3241 if (Pred == CmpInst::ICMP_NE || Pred == CmpInst::ICMP_SLT) 3242 return new ICmpInst(ICmpInst::ICMP_SGT, X, Y); 3243 3244 // These cases should be handled in InstSimplify: 3245 // smin(X, Y) s<= X --> true 3246 // smin(X, Y) s> X --> false 3247 return nullptr; 3248 } 3249 3250 if (match(Op0, m_c_SMax(m_Specific(X), m_Value(Y)))) { 3251 // smax(X, Y) == X --> X s>= Y 3252 // smax(X, Y) s<= X --> X s>= Y 3253 if (Pred == CmpInst::ICMP_EQ || Pred == CmpInst::ICMP_SLE) 3254 return new ICmpInst(ICmpInst::ICMP_SGE, X, Y); 3255 3256 // smax(X, Y) != X --> X s< Y 3257 // smax(X, Y) s> X --> X s< Y 3258 if (Pred == CmpInst::ICMP_NE || Pred == CmpInst::ICMP_SGT) 3259 return new ICmpInst(ICmpInst::ICMP_SLT, X, Y); 3260 3261 // These cases should be handled in InstSimplify: 3262 // smax(X, Y) s>= X --> true 3263 // smax(X, Y) s< X --> false 3264 return nullptr; 3265 } 3266 3267 if (match(Op0, m_c_UMin(m_Specific(X), m_Value(Y)))) { 3268 // umin(X, Y) == X --> X u<= Y 3269 // umin(X, Y) u>= X --> X u<= Y 3270 if (Pred == CmpInst::ICMP_EQ || Pred == CmpInst::ICMP_UGE) 3271 return new ICmpInst(ICmpInst::ICMP_ULE, X, Y); 3272 3273 // umin(X, Y) != X --> X u> Y 3274 // umin(X, Y) u< X --> X u> Y 3275 if (Pred == CmpInst::ICMP_NE || Pred == CmpInst::ICMP_ULT) 3276 return new ICmpInst(ICmpInst::ICMP_UGT, X, Y); 3277 3278 // These cases should be handled in InstSimplify: 3279 // umin(X, Y) u<= X --> true 3280 // umin(X, Y) u> X --> false 3281 return nullptr; 3282 } 3283 3284 if (match(Op0, m_c_UMax(m_Specific(X), m_Value(Y)))) { 3285 // umax(X, Y) == X --> X u>= Y 3286 // umax(X, Y) u<= X --> X u>= Y 3287 if (Pred == CmpInst::ICMP_EQ || Pred == CmpInst::ICMP_ULE) 3288 return new ICmpInst(ICmpInst::ICMP_UGE, X, Y); 3289 3290 // umax(X, Y) != X --> X u< Y 3291 // umax(X, Y) u> X --> X u< Y 3292 if (Pred == CmpInst::ICMP_NE || Pred == CmpInst::ICMP_UGT) 3293 return new ICmpInst(ICmpInst::ICMP_ULT, X, Y); 3294 3295 // These cases should be handled in InstSimplify: 3296 // umax(X, Y) u>= X --> true 3297 // umax(X, Y) u< X --> false 3298 return nullptr; 3299 } 3300 3301 return nullptr; 3302 } 3303 3304 Instruction *InstCombiner::foldICmpEquality(ICmpInst &I) { 3305 if (!I.isEquality()) 3306 return nullptr; 3307 3308 Value *Op0 = I.getOperand(0), *Op1 = I.getOperand(1); 3309 const CmpInst::Predicate Pred = I.getPredicate(); 3310 Value *A, *B, *C, *D; 3311 if (match(Op0, m_Xor(m_Value(A), m_Value(B)))) { 3312 if (A == Op1 || B == Op1) { // (A^B) == A -> B == 0 3313 Value *OtherVal = A == Op1 ? B : A; 3314 return new ICmpInst(Pred, OtherVal, Constant::getNullValue(A->getType())); 3315 } 3316 3317 if (match(Op1, m_Xor(m_Value(C), m_Value(D)))) { 3318 // A^c1 == C^c2 --> A == C^(c1^c2) 3319 ConstantInt *C1, *C2; 3320 if (match(B, m_ConstantInt(C1)) && match(D, m_ConstantInt(C2)) && 3321 Op1->hasOneUse()) { 3322 Constant *NC = Builder.getInt(C1->getValue() ^ C2->getValue()); 3323 Value *Xor = Builder.CreateXor(C, NC); 3324 return new ICmpInst(Pred, A, Xor); 3325 } 3326 3327 // A^B == A^D -> B == D 3328 if (A == C) 3329 return new ICmpInst(Pred, B, D); 3330 if (A == D) 3331 return new ICmpInst(Pred, B, C); 3332 if (B == C) 3333 return new ICmpInst(Pred, A, D); 3334 if (B == D) 3335 return new ICmpInst(Pred, A, C); 3336 } 3337 } 3338 3339 if (match(Op1, m_Xor(m_Value(A), m_Value(B))) && (A == Op0 || B == Op0)) { 3340 // A == (A^B) -> B == 0 3341 Value *OtherVal = A == Op0 ? B : A; 3342 return new ICmpInst(Pred, OtherVal, Constant::getNullValue(A->getType())); 3343 } 3344 3345 // (X&Z) == (Y&Z) -> (X^Y) & Z == 0 3346 if (match(Op0, m_OneUse(m_And(m_Value(A), m_Value(B)))) && 3347 match(Op1, m_OneUse(m_And(m_Value(C), m_Value(D))))) { 3348 Value *X = nullptr, *Y = nullptr, *Z = nullptr; 3349 3350 if (A == C) { 3351 X = B; 3352 Y = D; 3353 Z = A; 3354 } else if (A == D) { 3355 X = B; 3356 Y = C; 3357 Z = A; 3358 } else if (B == C) { 3359 X = A; 3360 Y = D; 3361 Z = B; 3362 } else if (B == D) { 3363 X = A; 3364 Y = C; 3365 Z = B; 3366 } 3367 3368 if (X) { // Build (X^Y) & Z 3369 Op1 = Builder.CreateXor(X, Y); 3370 Op1 = Builder.CreateAnd(Op1, Z); 3371 I.setOperand(0, Op1); 3372 I.setOperand(1, Constant::getNullValue(Op1->getType())); 3373 return &I; 3374 } 3375 } 3376 3377 // Transform (zext A) == (B & (1<<X)-1) --> A == (trunc B) 3378 // and (B & (1<<X)-1) == (zext A) --> A == (trunc B) 3379 ConstantInt *Cst1; 3380 if ((Op0->hasOneUse() && match(Op0, m_ZExt(m_Value(A))) && 3381 match(Op1, m_And(m_Value(B), m_ConstantInt(Cst1)))) || 3382 (Op1->hasOneUse() && match(Op0, m_And(m_Value(B), m_ConstantInt(Cst1))) && 3383 match(Op1, m_ZExt(m_Value(A))))) { 3384 APInt Pow2 = Cst1->getValue() + 1; 3385 if (Pow2.isPowerOf2() && isa<IntegerType>(A->getType()) && 3386 Pow2.logBase2() == cast<IntegerType>(A->getType())->getBitWidth()) 3387 return new ICmpInst(Pred, A, Builder.CreateTrunc(B, A->getType())); 3388 } 3389 3390 // (A >> C) == (B >> C) --> (A^B) u< (1 << C) 3391 // For lshr and ashr pairs. 3392 if ((match(Op0, m_OneUse(m_LShr(m_Value(A), m_ConstantInt(Cst1)))) && 3393 match(Op1, m_OneUse(m_LShr(m_Value(B), m_Specific(Cst1))))) || 3394 (match(Op0, m_OneUse(m_AShr(m_Value(A), m_ConstantInt(Cst1)))) && 3395 match(Op1, m_OneUse(m_AShr(m_Value(B), m_Specific(Cst1)))))) { 3396 unsigned TypeBits = Cst1->getBitWidth(); 3397 unsigned ShAmt = (unsigned)Cst1->getLimitedValue(TypeBits); 3398 if (ShAmt < TypeBits && ShAmt != 0) { 3399 ICmpInst::Predicate NewPred = 3400 Pred == ICmpInst::ICMP_NE ? ICmpInst::ICMP_UGE : ICmpInst::ICMP_ULT; 3401 Value *Xor = Builder.CreateXor(A, B, I.getName() + ".unshifted"); 3402 APInt CmpVal = APInt::getOneBitSet(TypeBits, ShAmt); 3403 return new ICmpInst(NewPred, Xor, Builder.getInt(CmpVal)); 3404 } 3405 } 3406 3407 // (A << C) == (B << C) --> ((A^B) & (~0U >> C)) == 0 3408 if (match(Op0, m_OneUse(m_Shl(m_Value(A), m_ConstantInt(Cst1)))) && 3409 match(Op1, m_OneUse(m_Shl(m_Value(B), m_Specific(Cst1))))) { 3410 unsigned TypeBits = Cst1->getBitWidth(); 3411 unsigned ShAmt = (unsigned)Cst1->getLimitedValue(TypeBits); 3412 if (ShAmt < TypeBits && ShAmt != 0) { 3413 Value *Xor = Builder.CreateXor(A, B, I.getName() + ".unshifted"); 3414 APInt AndVal = APInt::getLowBitsSet(TypeBits, TypeBits - ShAmt); 3415 Value *And = Builder.CreateAnd(Xor, Builder.getInt(AndVal), 3416 I.getName() + ".mask"); 3417 return new ICmpInst(Pred, And, Constant::getNullValue(Cst1->getType())); 3418 } 3419 } 3420 3421 // Transform "icmp eq (trunc (lshr(X, cst1)), cst" to 3422 // "icmp (and X, mask), cst" 3423 uint64_t ShAmt = 0; 3424 if (Op0->hasOneUse() && 3425 match(Op0, m_Trunc(m_OneUse(m_LShr(m_Value(A), m_ConstantInt(ShAmt))))) && 3426 match(Op1, m_ConstantInt(Cst1)) && 3427 // Only do this when A has multiple uses. This is most important to do 3428 // when it exposes other optimizations. 3429 !A->hasOneUse()) { 3430 unsigned ASize = cast<IntegerType>(A->getType())->getPrimitiveSizeInBits(); 3431 3432 if (ShAmt < ASize) { 3433 APInt MaskV = 3434 APInt::getLowBitsSet(ASize, Op0->getType()->getPrimitiveSizeInBits()); 3435 MaskV <<= ShAmt; 3436 3437 APInt CmpV = Cst1->getValue().zext(ASize); 3438 CmpV <<= ShAmt; 3439 3440 Value *Mask = Builder.CreateAnd(A, Builder.getInt(MaskV)); 3441 return new ICmpInst(Pred, Mask, Builder.getInt(CmpV)); 3442 } 3443 } 3444 3445 // If both operands are byte-swapped or bit-reversed, just compare the 3446 // original values. 3447 // TODO: Move this to a function similar to foldICmpIntrinsicWithConstant() 3448 // and handle more intrinsics. 3449 if ((match(Op0, m_BSwap(m_Value(A))) && match(Op1, m_BSwap(m_Value(B)))) || 3450 (match(Op0, m_BitReverse(m_Value(A))) && 3451 match(Op1, m_BitReverse(m_Value(B))))) 3452 return new ICmpInst(Pred, A, B); 3453 3454 return nullptr; 3455 } 3456 3457 /// Handle icmp (cast x to y), (cast/cst). We only handle extending casts so 3458 /// far. 3459 Instruction *InstCombiner::foldICmpWithCastAndCast(ICmpInst &ICmp) { 3460 const CastInst *LHSCI = cast<CastInst>(ICmp.getOperand(0)); 3461 Value *LHSCIOp = LHSCI->getOperand(0); 3462 Type *SrcTy = LHSCIOp->getType(); 3463 Type *DestTy = LHSCI->getType(); 3464 Value *RHSCIOp; 3465 3466 // Turn icmp (ptrtoint x), (ptrtoint/c) into a compare of the input if the 3467 // integer type is the same size as the pointer type. 3468 if (LHSCI->getOpcode() == Instruction::PtrToInt && 3469 DL.getPointerTypeSizeInBits(SrcTy) == DestTy->getIntegerBitWidth()) { 3470 Value *RHSOp = nullptr; 3471 if (auto *RHSC = dyn_cast<PtrToIntOperator>(ICmp.getOperand(1))) { 3472 Value *RHSCIOp = RHSC->getOperand(0); 3473 if (RHSCIOp->getType()->getPointerAddressSpace() == 3474 LHSCIOp->getType()->getPointerAddressSpace()) { 3475 RHSOp = RHSC->getOperand(0); 3476 // If the pointer types don't match, insert a bitcast. 3477 if (LHSCIOp->getType() != RHSOp->getType()) 3478 RHSOp = Builder.CreateBitCast(RHSOp, LHSCIOp->getType()); 3479 } 3480 } else if (auto *RHSC = dyn_cast<Constant>(ICmp.getOperand(1))) { 3481 RHSOp = ConstantExpr::getIntToPtr(RHSC, SrcTy); 3482 } 3483 3484 if (RHSOp) 3485 return new ICmpInst(ICmp.getPredicate(), LHSCIOp, RHSOp); 3486 } 3487 3488 // The code below only handles extension cast instructions, so far. 3489 // Enforce this. 3490 if (LHSCI->getOpcode() != Instruction::ZExt && 3491 LHSCI->getOpcode() != Instruction::SExt) 3492 return nullptr; 3493 3494 bool isSignedExt = LHSCI->getOpcode() == Instruction::SExt; 3495 bool isSignedCmp = ICmp.isSigned(); 3496 3497 if (auto *CI = dyn_cast<CastInst>(ICmp.getOperand(1))) { 3498 // Not an extension from the same type? 3499 RHSCIOp = CI->getOperand(0); 3500 if (RHSCIOp->getType() != LHSCIOp->getType()) 3501 return nullptr; 3502 3503 // If the signedness of the two casts doesn't agree (i.e. one is a sext 3504 // and the other is a zext), then we can't handle this. 3505 if (CI->getOpcode() != LHSCI->getOpcode()) 3506 return nullptr; 3507 3508 // Deal with equality cases early. 3509 if (ICmp.isEquality()) 3510 return new ICmpInst(ICmp.getPredicate(), LHSCIOp, RHSCIOp); 3511 3512 // A signed comparison of sign extended values simplifies into a 3513 // signed comparison. 3514 if (isSignedCmp && isSignedExt) 3515 return new ICmpInst(ICmp.getPredicate(), LHSCIOp, RHSCIOp); 3516 3517 // The other three cases all fold into an unsigned comparison. 3518 return new ICmpInst(ICmp.getUnsignedPredicate(), LHSCIOp, RHSCIOp); 3519 } 3520 3521 // If we aren't dealing with a constant on the RHS, exit early. 3522 auto *C = dyn_cast<Constant>(ICmp.getOperand(1)); 3523 if (!C) 3524 return nullptr; 3525 3526 // Compute the constant that would happen if we truncated to SrcTy then 3527 // re-extended to DestTy. 3528 Constant *Res1 = ConstantExpr::getTrunc(C, SrcTy); 3529 Constant *Res2 = ConstantExpr::getCast(LHSCI->getOpcode(), Res1, DestTy); 3530 3531 // If the re-extended constant didn't change... 3532 if (Res2 == C) { 3533 // Deal with equality cases early. 3534 if (ICmp.isEquality()) 3535 return new ICmpInst(ICmp.getPredicate(), LHSCIOp, Res1); 3536 3537 // A signed comparison of sign extended values simplifies into a 3538 // signed comparison. 3539 if (isSignedExt && isSignedCmp) 3540 return new ICmpInst(ICmp.getPredicate(), LHSCIOp, Res1); 3541 3542 // The other three cases all fold into an unsigned comparison. 3543 return new ICmpInst(ICmp.getUnsignedPredicate(), LHSCIOp, Res1); 3544 } 3545 3546 // The re-extended constant changed, partly changed (in the case of a vector), 3547 // or could not be determined to be equal (in the case of a constant 3548 // expression), so the constant cannot be represented in the shorter type. 3549 // Consequently, we cannot emit a simple comparison. 3550 // All the cases that fold to true or false will have already been handled 3551 // by SimplifyICmpInst, so only deal with the tricky case. 3552 3553 if (isSignedCmp || !isSignedExt || !isa<ConstantInt>(C)) 3554 return nullptr; 3555 3556 // Evaluate the comparison for LT (we invert for GT below). LE and GE cases 3557 // should have been folded away previously and not enter in here. 3558 3559 // We're performing an unsigned comp with a sign extended value. 3560 // This is true if the input is >= 0. [aka >s -1] 3561 Constant *NegOne = Constant::getAllOnesValue(SrcTy); 3562 Value *Result = Builder.CreateICmpSGT(LHSCIOp, NegOne, ICmp.getName()); 3563 3564 // Finally, return the value computed. 3565 if (ICmp.getPredicate() == ICmpInst::ICMP_ULT) 3566 return replaceInstUsesWith(ICmp, Result); 3567 3568 assert(ICmp.getPredicate() == ICmpInst::ICMP_UGT && "ICmp should be folded!"); 3569 return BinaryOperator::CreateNot(Result); 3570 } 3571 3572 bool InstCombiner::OptimizeOverflowCheck(OverflowCheckFlavor OCF, Value *LHS, 3573 Value *RHS, Instruction &OrigI, 3574 Value *&Result, Constant *&Overflow) { 3575 if (OrigI.isCommutative() && isa<Constant>(LHS) && !isa<Constant>(RHS)) 3576 std::swap(LHS, RHS); 3577 3578 auto SetResult = [&](Value *OpResult, Constant *OverflowVal, bool ReuseName) { 3579 Result = OpResult; 3580 Overflow = OverflowVal; 3581 if (ReuseName) 3582 Result->takeName(&OrigI); 3583 return true; 3584 }; 3585 3586 // If the overflow check was an add followed by a compare, the insertion point 3587 // may be pointing to the compare. We want to insert the new instructions 3588 // before the add in case there are uses of the add between the add and the 3589 // compare. 3590 Builder.SetInsertPoint(&OrigI); 3591 3592 switch (OCF) { 3593 case OCF_INVALID: 3594 llvm_unreachable("bad overflow check kind!"); 3595 3596 case OCF_UNSIGNED_ADD: { 3597 OverflowResult OR = computeOverflowForUnsignedAdd(LHS, RHS, &OrigI); 3598 if (OR == OverflowResult::NeverOverflows) 3599 return SetResult(Builder.CreateNUWAdd(LHS, RHS), Builder.getFalse(), 3600 true); 3601 3602 if (OR == OverflowResult::AlwaysOverflows) 3603 return SetResult(Builder.CreateAdd(LHS, RHS), Builder.getTrue(), true); 3604 3605 // Fall through uadd into sadd 3606 LLVM_FALLTHROUGH; 3607 } 3608 case OCF_SIGNED_ADD: { 3609 // X + 0 -> {X, false} 3610 if (match(RHS, m_Zero())) 3611 return SetResult(LHS, Builder.getFalse(), false); 3612 3613 // We can strength reduce this signed add into a regular add if we can prove 3614 // that it will never overflow. 3615 if (OCF == OCF_SIGNED_ADD) 3616 if (willNotOverflowSignedAdd(LHS, RHS, OrigI)) 3617 return SetResult(Builder.CreateNSWAdd(LHS, RHS), Builder.getFalse(), 3618 true); 3619 break; 3620 } 3621 3622 case OCF_UNSIGNED_SUB: 3623 case OCF_SIGNED_SUB: { 3624 // X - 0 -> {X, false} 3625 if (match(RHS, m_Zero())) 3626 return SetResult(LHS, Builder.getFalse(), false); 3627 3628 if (OCF == OCF_SIGNED_SUB) { 3629 if (willNotOverflowSignedSub(LHS, RHS, OrigI)) 3630 return SetResult(Builder.CreateNSWSub(LHS, RHS), Builder.getFalse(), 3631 true); 3632 } else { 3633 if (willNotOverflowUnsignedSub(LHS, RHS, OrigI)) 3634 return SetResult(Builder.CreateNUWSub(LHS, RHS), Builder.getFalse(), 3635 true); 3636 } 3637 break; 3638 } 3639 3640 case OCF_UNSIGNED_MUL: { 3641 OverflowResult OR = computeOverflowForUnsignedMul(LHS, RHS, &OrigI); 3642 if (OR == OverflowResult::NeverOverflows) 3643 return SetResult(Builder.CreateNUWMul(LHS, RHS), Builder.getFalse(), 3644 true); 3645 if (OR == OverflowResult::AlwaysOverflows) 3646 return SetResult(Builder.CreateMul(LHS, RHS), Builder.getTrue(), true); 3647 LLVM_FALLTHROUGH; 3648 } 3649 case OCF_SIGNED_MUL: 3650 // X * undef -> undef 3651 if (isa<UndefValue>(RHS)) 3652 return SetResult(RHS, UndefValue::get(Builder.getInt1Ty()), false); 3653 3654 // X * 0 -> {0, false} 3655 if (match(RHS, m_Zero())) 3656 return SetResult(RHS, Builder.getFalse(), false); 3657 3658 // X * 1 -> {X, false} 3659 if (match(RHS, m_One())) 3660 return SetResult(LHS, Builder.getFalse(), false); 3661 3662 if (OCF == OCF_SIGNED_MUL) 3663 if (willNotOverflowSignedMul(LHS, RHS, OrigI)) 3664 return SetResult(Builder.CreateNSWMul(LHS, RHS), Builder.getFalse(), 3665 true); 3666 break; 3667 } 3668 3669 return false; 3670 } 3671 3672 /// \brief Recognize and process idiom involving test for multiplication 3673 /// overflow. 3674 /// 3675 /// The caller has matched a pattern of the form: 3676 /// I = cmp u (mul(zext A, zext B), V 3677 /// The function checks if this is a test for overflow and if so replaces 3678 /// multiplication with call to 'mul.with.overflow' intrinsic. 3679 /// 3680 /// \param I Compare instruction. 3681 /// \param MulVal Result of 'mult' instruction. It is one of the arguments of 3682 /// the compare instruction. Must be of integer type. 3683 /// \param OtherVal The other argument of compare instruction. 3684 /// \returns Instruction which must replace the compare instruction, NULL if no 3685 /// replacement required. 3686 static Instruction *processUMulZExtIdiom(ICmpInst &I, Value *MulVal, 3687 Value *OtherVal, InstCombiner &IC) { 3688 // Don't bother doing this transformation for pointers, don't do it for 3689 // vectors. 3690 if (!isa<IntegerType>(MulVal->getType())) 3691 return nullptr; 3692 3693 assert(I.getOperand(0) == MulVal || I.getOperand(1) == MulVal); 3694 assert(I.getOperand(0) == OtherVal || I.getOperand(1) == OtherVal); 3695 auto *MulInstr = dyn_cast<Instruction>(MulVal); 3696 if (!MulInstr) 3697 return nullptr; 3698 assert(MulInstr->getOpcode() == Instruction::Mul); 3699 3700 auto *LHS = cast<ZExtOperator>(MulInstr->getOperand(0)), 3701 *RHS = cast<ZExtOperator>(MulInstr->getOperand(1)); 3702 assert(LHS->getOpcode() == Instruction::ZExt); 3703 assert(RHS->getOpcode() == Instruction::ZExt); 3704 Value *A = LHS->getOperand(0), *B = RHS->getOperand(0); 3705 3706 // Calculate type and width of the result produced by mul.with.overflow. 3707 Type *TyA = A->getType(), *TyB = B->getType(); 3708 unsigned WidthA = TyA->getPrimitiveSizeInBits(), 3709 WidthB = TyB->getPrimitiveSizeInBits(); 3710 unsigned MulWidth; 3711 Type *MulType; 3712 if (WidthB > WidthA) { 3713 MulWidth = WidthB; 3714 MulType = TyB; 3715 } else { 3716 MulWidth = WidthA; 3717 MulType = TyA; 3718 } 3719 3720 // In order to replace the original mul with a narrower mul.with.overflow, 3721 // all uses must ignore upper bits of the product. The number of used low 3722 // bits must be not greater than the width of mul.with.overflow. 3723 if (MulVal->hasNUsesOrMore(2)) 3724 for (User *U : MulVal->users()) { 3725 if (U == &I) 3726 continue; 3727 if (TruncInst *TI = dyn_cast<TruncInst>(U)) { 3728 // Check if truncation ignores bits above MulWidth. 3729 unsigned TruncWidth = TI->getType()->getPrimitiveSizeInBits(); 3730 if (TruncWidth > MulWidth) 3731 return nullptr; 3732 } else if (BinaryOperator *BO = dyn_cast<BinaryOperator>(U)) { 3733 // Check if AND ignores bits above MulWidth. 3734 if (BO->getOpcode() != Instruction::And) 3735 return nullptr; 3736 if (ConstantInt *CI = dyn_cast<ConstantInt>(BO->getOperand(1))) { 3737 const APInt &CVal = CI->getValue(); 3738 if (CVal.getBitWidth() - CVal.countLeadingZeros() > MulWidth) 3739 return nullptr; 3740 } 3741 } else { 3742 // Other uses prohibit this transformation. 3743 return nullptr; 3744 } 3745 } 3746 3747 // Recognize patterns 3748 switch (I.getPredicate()) { 3749 case ICmpInst::ICMP_EQ: 3750 case ICmpInst::ICMP_NE: 3751 // Recognize pattern: 3752 // mulval = mul(zext A, zext B) 3753 // cmp eq/neq mulval, zext trunc mulval 3754 if (ZExtInst *Zext = dyn_cast<ZExtInst>(OtherVal)) 3755 if (Zext->hasOneUse()) { 3756 Value *ZextArg = Zext->getOperand(0); 3757 if (TruncInst *Trunc = dyn_cast<TruncInst>(ZextArg)) 3758 if (Trunc->getType()->getPrimitiveSizeInBits() == MulWidth) 3759 break; //Recognized 3760 } 3761 3762 // Recognize pattern: 3763 // mulval = mul(zext A, zext B) 3764 // cmp eq/neq mulval, and(mulval, mask), mask selects low MulWidth bits. 3765 ConstantInt *CI; 3766 Value *ValToMask; 3767 if (match(OtherVal, m_And(m_Value(ValToMask), m_ConstantInt(CI)))) { 3768 if (ValToMask != MulVal) 3769 return nullptr; 3770 const APInt &CVal = CI->getValue() + 1; 3771 if (CVal.isPowerOf2()) { 3772 unsigned MaskWidth = CVal.logBase2(); 3773 if (MaskWidth == MulWidth) 3774 break; // Recognized 3775 } 3776 } 3777 return nullptr; 3778 3779 case ICmpInst::ICMP_UGT: 3780 // Recognize pattern: 3781 // mulval = mul(zext A, zext B) 3782 // cmp ugt mulval, max 3783 if (ConstantInt *CI = dyn_cast<ConstantInt>(OtherVal)) { 3784 APInt MaxVal = APInt::getMaxValue(MulWidth); 3785 MaxVal = MaxVal.zext(CI->getBitWidth()); 3786 if (MaxVal.eq(CI->getValue())) 3787 break; // Recognized 3788 } 3789 return nullptr; 3790 3791 case ICmpInst::ICMP_UGE: 3792 // Recognize pattern: 3793 // mulval = mul(zext A, zext B) 3794 // cmp uge mulval, max+1 3795 if (ConstantInt *CI = dyn_cast<ConstantInt>(OtherVal)) { 3796 APInt MaxVal = APInt::getOneBitSet(CI->getBitWidth(), MulWidth); 3797 if (MaxVal.eq(CI->getValue())) 3798 break; // Recognized 3799 } 3800 return nullptr; 3801 3802 case ICmpInst::ICMP_ULE: 3803 // Recognize pattern: 3804 // mulval = mul(zext A, zext B) 3805 // cmp ule mulval, max 3806 if (ConstantInt *CI = dyn_cast<ConstantInt>(OtherVal)) { 3807 APInt MaxVal = APInt::getMaxValue(MulWidth); 3808 MaxVal = MaxVal.zext(CI->getBitWidth()); 3809 if (MaxVal.eq(CI->getValue())) 3810 break; // Recognized 3811 } 3812 return nullptr; 3813 3814 case ICmpInst::ICMP_ULT: 3815 // Recognize pattern: 3816 // mulval = mul(zext A, zext B) 3817 // cmp ule mulval, max + 1 3818 if (ConstantInt *CI = dyn_cast<ConstantInt>(OtherVal)) { 3819 APInt MaxVal = APInt::getOneBitSet(CI->getBitWidth(), MulWidth); 3820 if (MaxVal.eq(CI->getValue())) 3821 break; // Recognized 3822 } 3823 return nullptr; 3824 3825 default: 3826 return nullptr; 3827 } 3828 3829 InstCombiner::BuilderTy &Builder = IC.Builder; 3830 Builder.SetInsertPoint(MulInstr); 3831 3832 // Replace: mul(zext A, zext B) --> mul.with.overflow(A, B) 3833 Value *MulA = A, *MulB = B; 3834 if (WidthA < MulWidth) 3835 MulA = Builder.CreateZExt(A, MulType); 3836 if (WidthB < MulWidth) 3837 MulB = Builder.CreateZExt(B, MulType); 3838 Value *F = Intrinsic::getDeclaration(I.getModule(), 3839 Intrinsic::umul_with_overflow, MulType); 3840 CallInst *Call = Builder.CreateCall(F, {MulA, MulB}, "umul"); 3841 IC.Worklist.Add(MulInstr); 3842 3843 // If there are uses of mul result other than the comparison, we know that 3844 // they are truncation or binary AND. Change them to use result of 3845 // mul.with.overflow and adjust properly mask/size. 3846 if (MulVal->hasNUsesOrMore(2)) { 3847 Value *Mul = Builder.CreateExtractValue(Call, 0, "umul.value"); 3848 for (User *U : MulVal->users()) { 3849 if (U == &I || U == OtherVal) 3850 continue; 3851 if (TruncInst *TI = dyn_cast<TruncInst>(U)) { 3852 if (TI->getType()->getPrimitiveSizeInBits() == MulWidth) 3853 IC.replaceInstUsesWith(*TI, Mul); 3854 else 3855 TI->setOperand(0, Mul); 3856 } else if (BinaryOperator *BO = dyn_cast<BinaryOperator>(U)) { 3857 assert(BO->getOpcode() == Instruction::And); 3858 // Replace (mul & mask) --> zext (mul.with.overflow & short_mask) 3859 Value *ShortMask = 3860 Builder.CreateTrunc(BO->getOperand(1), Builder.getIntNTy(MulWidth)); 3861 Value *ShortAnd = Builder.CreateAnd(Mul, ShortMask); 3862 Value *Zext = Builder.CreateZExt(ShortAnd, BO->getType()); 3863 if (auto *ZextI = dyn_cast<Instruction>(Zext)) 3864 IC.Worklist.Add(ZextI); 3865 IC.replaceInstUsesWith(*BO, Zext); 3866 } else { 3867 llvm_unreachable("Unexpected Binary operation"); 3868 } 3869 if (auto *UI = dyn_cast<Instruction>(U)) 3870 IC.Worklist.Add(UI); 3871 } 3872 } 3873 if (isa<Instruction>(OtherVal)) 3874 IC.Worklist.Add(cast<Instruction>(OtherVal)); 3875 3876 // The original icmp gets replaced with the overflow value, maybe inverted 3877 // depending on predicate. 3878 bool Inverse = false; 3879 switch (I.getPredicate()) { 3880 case ICmpInst::ICMP_NE: 3881 break; 3882 case ICmpInst::ICMP_EQ: 3883 Inverse = true; 3884 break; 3885 case ICmpInst::ICMP_UGT: 3886 case ICmpInst::ICMP_UGE: 3887 if (I.getOperand(0) == MulVal) 3888 break; 3889 Inverse = true; 3890 break; 3891 case ICmpInst::ICMP_ULT: 3892 case ICmpInst::ICMP_ULE: 3893 if (I.getOperand(1) == MulVal) 3894 break; 3895 Inverse = true; 3896 break; 3897 default: 3898 llvm_unreachable("Unexpected predicate"); 3899 } 3900 if (Inverse) { 3901 Value *Res = Builder.CreateExtractValue(Call, 1); 3902 return BinaryOperator::CreateNot(Res); 3903 } 3904 3905 return ExtractValueInst::Create(Call, 1); 3906 } 3907 3908 /// When performing a comparison against a constant, it is possible that not all 3909 /// the bits in the LHS are demanded. This helper method computes the mask that 3910 /// IS demanded. 3911 static APInt getDemandedBitsLHSMask(ICmpInst &I, unsigned BitWidth, 3912 bool isSignCheck) { 3913 if (isSignCheck) 3914 return APInt::getSignMask(BitWidth); 3915 3916 ConstantInt *CI = dyn_cast<ConstantInt>(I.getOperand(1)); 3917 if (!CI) return APInt::getAllOnesValue(BitWidth); 3918 const APInt &RHS = CI->getValue(); 3919 3920 switch (I.getPredicate()) { 3921 // For a UGT comparison, we don't care about any bits that 3922 // correspond to the trailing ones of the comparand. The value of these 3923 // bits doesn't impact the outcome of the comparison, because any value 3924 // greater than the RHS must differ in a bit higher than these due to carry. 3925 case ICmpInst::ICMP_UGT: { 3926 unsigned trailingOnes = RHS.countTrailingOnes(); 3927 return APInt::getBitsSetFrom(BitWidth, trailingOnes); 3928 } 3929 3930 // Similarly, for a ULT comparison, we don't care about the trailing zeros. 3931 // Any value less than the RHS must differ in a higher bit because of carries. 3932 case ICmpInst::ICMP_ULT: { 3933 unsigned trailingZeros = RHS.countTrailingZeros(); 3934 return APInt::getBitsSetFrom(BitWidth, trailingZeros); 3935 } 3936 3937 default: 3938 return APInt::getAllOnesValue(BitWidth); 3939 } 3940 } 3941 3942 /// \brief Check if the order of \p Op0 and \p Op1 as operand in an ICmpInst 3943 /// should be swapped. 3944 /// The decision is based on how many times these two operands are reused 3945 /// as subtract operands and their positions in those instructions. 3946 /// The rational is that several architectures use the same instruction for 3947 /// both subtract and cmp, thus it is better if the order of those operands 3948 /// match. 3949 /// \return true if Op0 and Op1 should be swapped. 3950 static bool swapMayExposeCSEOpportunities(const Value * Op0, 3951 const Value * Op1) { 3952 // Filter out pointer value as those cannot appears directly in subtract. 3953 // FIXME: we may want to go through inttoptrs or bitcasts. 3954 if (Op0->getType()->isPointerTy()) 3955 return false; 3956 // Count every uses of both Op0 and Op1 in a subtract. 3957 // Each time Op0 is the first operand, count -1: swapping is bad, the 3958 // subtract has already the same layout as the compare. 3959 // Each time Op0 is the second operand, count +1: swapping is good, the 3960 // subtract has a different layout as the compare. 3961 // At the end, if the benefit is greater than 0, Op0 should come second to 3962 // expose more CSE opportunities. 3963 int GlobalSwapBenefits = 0; 3964 for (const User *U : Op0->users()) { 3965 const BinaryOperator *BinOp = dyn_cast<BinaryOperator>(U); 3966 if (!BinOp || BinOp->getOpcode() != Instruction::Sub) 3967 continue; 3968 // If Op0 is the first argument, this is not beneficial to swap the 3969 // arguments. 3970 int LocalSwapBenefits = -1; 3971 unsigned Op1Idx = 1; 3972 if (BinOp->getOperand(Op1Idx) == Op0) { 3973 Op1Idx = 0; 3974 LocalSwapBenefits = 1; 3975 } 3976 if (BinOp->getOperand(Op1Idx) != Op1) 3977 continue; 3978 GlobalSwapBenefits += LocalSwapBenefits; 3979 } 3980 return GlobalSwapBenefits > 0; 3981 } 3982 3983 /// \brief Check that one use is in the same block as the definition and all 3984 /// other uses are in blocks dominated by a given block. 3985 /// 3986 /// \param DI Definition 3987 /// \param UI Use 3988 /// \param DB Block that must dominate all uses of \p DI outside 3989 /// the parent block 3990 /// \return true when \p UI is the only use of \p DI in the parent block 3991 /// and all other uses of \p DI are in blocks dominated by \p DB. 3992 /// 3993 bool InstCombiner::dominatesAllUses(const Instruction *DI, 3994 const Instruction *UI, 3995 const BasicBlock *DB) const { 3996 assert(DI && UI && "Instruction not defined\n"); 3997 // Ignore incomplete definitions. 3998 if (!DI->getParent()) 3999 return false; 4000 // DI and UI must be in the same block. 4001 if (DI->getParent() != UI->getParent()) 4002 return false; 4003 // Protect from self-referencing blocks. 4004 if (DI->getParent() == DB) 4005 return false; 4006 for (const User *U : DI->users()) { 4007 auto *Usr = cast<Instruction>(U); 4008 if (Usr != UI && !DT.dominates(DB, Usr->getParent())) 4009 return false; 4010 } 4011 return true; 4012 } 4013 4014 /// Return true when the instruction sequence within a block is select-cmp-br. 4015 static bool isChainSelectCmpBranch(const SelectInst *SI) { 4016 const BasicBlock *BB = SI->getParent(); 4017 if (!BB) 4018 return false; 4019 auto *BI = dyn_cast_or_null<BranchInst>(BB->getTerminator()); 4020 if (!BI || BI->getNumSuccessors() != 2) 4021 return false; 4022 auto *IC = dyn_cast<ICmpInst>(BI->getCondition()); 4023 if (!IC || (IC->getOperand(0) != SI && IC->getOperand(1) != SI)) 4024 return false; 4025 return true; 4026 } 4027 4028 /// \brief True when a select result is replaced by one of its operands 4029 /// in select-icmp sequence. This will eventually result in the elimination 4030 /// of the select. 4031 /// 4032 /// \param SI Select instruction 4033 /// \param Icmp Compare instruction 4034 /// \param SIOpd Operand that replaces the select 4035 /// 4036 /// Notes: 4037 /// - The replacement is global and requires dominator information 4038 /// - The caller is responsible for the actual replacement 4039 /// 4040 /// Example: 4041 /// 4042 /// entry: 4043 /// %4 = select i1 %3, %C* %0, %C* null 4044 /// %5 = icmp eq %C* %4, null 4045 /// br i1 %5, label %9, label %7 4046 /// ... 4047 /// ; <label>:7 ; preds = %entry 4048 /// %8 = getelementptr inbounds %C* %4, i64 0, i32 0 4049 /// ... 4050 /// 4051 /// can be transformed to 4052 /// 4053 /// %5 = icmp eq %C* %0, null 4054 /// %6 = select i1 %3, i1 %5, i1 true 4055 /// br i1 %6, label %9, label %7 4056 /// ... 4057 /// ; <label>:7 ; preds = %entry 4058 /// %8 = getelementptr inbounds %C* %0, i64 0, i32 0 // replace by %0! 4059 /// 4060 /// Similar when the first operand of the select is a constant or/and 4061 /// the compare is for not equal rather than equal. 4062 /// 4063 /// NOTE: The function is only called when the select and compare constants 4064 /// are equal, the optimization can work only for EQ predicates. This is not a 4065 /// major restriction since a NE compare should be 'normalized' to an equal 4066 /// compare, which usually happens in the combiner and test case 4067 /// select-cmp-br.ll checks for it. 4068 bool InstCombiner::replacedSelectWithOperand(SelectInst *SI, 4069 const ICmpInst *Icmp, 4070 const unsigned SIOpd) { 4071 assert((SIOpd == 1 || SIOpd == 2) && "Invalid select operand!"); 4072 if (isChainSelectCmpBranch(SI) && Icmp->getPredicate() == ICmpInst::ICMP_EQ) { 4073 BasicBlock *Succ = SI->getParent()->getTerminator()->getSuccessor(1); 4074 // The check for the single predecessor is not the best that can be 4075 // done. But it protects efficiently against cases like when SI's 4076 // home block has two successors, Succ and Succ1, and Succ1 predecessor 4077 // of Succ. Then SI can't be replaced by SIOpd because the use that gets 4078 // replaced can be reached on either path. So the uniqueness check 4079 // guarantees that the path all uses of SI (outside SI's parent) are on 4080 // is disjoint from all other paths out of SI. But that information 4081 // is more expensive to compute, and the trade-off here is in favor 4082 // of compile-time. It should also be noticed that we check for a single 4083 // predecessor and not only uniqueness. This to handle the situation when 4084 // Succ and Succ1 points to the same basic block. 4085 if (Succ->getSinglePredecessor() && dominatesAllUses(SI, Icmp, Succ)) { 4086 NumSel++; 4087 SI->replaceUsesOutsideBlock(SI->getOperand(SIOpd), SI->getParent()); 4088 return true; 4089 } 4090 } 4091 return false; 4092 } 4093 4094 /// Try to fold the comparison based on range information we can get by checking 4095 /// whether bits are known to be zero or one in the inputs. 4096 Instruction *InstCombiner::foldICmpUsingKnownBits(ICmpInst &I) { 4097 Value *Op0 = I.getOperand(0), *Op1 = I.getOperand(1); 4098 Type *Ty = Op0->getType(); 4099 ICmpInst::Predicate Pred = I.getPredicate(); 4100 4101 // Get scalar or pointer size. 4102 unsigned BitWidth = Ty->isIntOrIntVectorTy() 4103 ? Ty->getScalarSizeInBits() 4104 : DL.getTypeSizeInBits(Ty->getScalarType()); 4105 4106 if (!BitWidth) 4107 return nullptr; 4108 4109 // If this is a normal comparison, it demands all bits. If it is a sign bit 4110 // comparison, it only demands the sign bit. 4111 bool IsSignBit = false; 4112 const APInt *CmpC; 4113 if (match(Op1, m_APInt(CmpC))) { 4114 bool UnusedBit; 4115 IsSignBit = isSignBitCheck(Pred, *CmpC, UnusedBit); 4116 } 4117 4118 KnownBits Op0Known(BitWidth); 4119 KnownBits Op1Known(BitWidth); 4120 4121 if (SimplifyDemandedBits(&I, 0, 4122 getDemandedBitsLHSMask(I, BitWidth, IsSignBit), 4123 Op0Known, 0)) 4124 return &I; 4125 4126 if (SimplifyDemandedBits(&I, 1, APInt::getAllOnesValue(BitWidth), 4127 Op1Known, 0)) 4128 return &I; 4129 4130 // Given the known and unknown bits, compute a range that the LHS could be 4131 // in. Compute the Min, Max and RHS values based on the known bits. For the 4132 // EQ and NE we use unsigned values. 4133 APInt Op0Min(BitWidth, 0), Op0Max(BitWidth, 0); 4134 APInt Op1Min(BitWidth, 0), Op1Max(BitWidth, 0); 4135 if (I.isSigned()) { 4136 computeSignedMinMaxValuesFromKnownBits(Op0Known, Op0Min, Op0Max); 4137 computeSignedMinMaxValuesFromKnownBits(Op1Known, Op1Min, Op1Max); 4138 } else { 4139 computeUnsignedMinMaxValuesFromKnownBits(Op0Known, Op0Min, Op0Max); 4140 computeUnsignedMinMaxValuesFromKnownBits(Op1Known, Op1Min, Op1Max); 4141 } 4142 4143 // If Min and Max are known to be the same, then SimplifyDemandedBits 4144 // figured out that the LHS is a constant. Constant fold this now, so that 4145 // code below can assume that Min != Max. 4146 if (!isa<Constant>(Op0) && Op0Min == Op0Max) 4147 return new ICmpInst(Pred, ConstantInt::get(Op0->getType(), Op0Min), Op1); 4148 if (!isa<Constant>(Op1) && Op1Min == Op1Max) 4149 return new ICmpInst(Pred, Op0, ConstantInt::get(Op1->getType(), Op1Min)); 4150 4151 // Based on the range information we know about the LHS, see if we can 4152 // simplify this comparison. For example, (x&4) < 8 is always true. 4153 switch (Pred) { 4154 default: 4155 llvm_unreachable("Unknown icmp opcode!"); 4156 case ICmpInst::ICMP_EQ: 4157 case ICmpInst::ICMP_NE: { 4158 if (Op0Max.ult(Op1Min) || Op0Min.ugt(Op1Max)) { 4159 return Pred == CmpInst::ICMP_EQ 4160 ? replaceInstUsesWith(I, ConstantInt::getFalse(I.getType())) 4161 : replaceInstUsesWith(I, ConstantInt::getTrue(I.getType())); 4162 } 4163 4164 // If all bits are known zero except for one, then we know at most one bit 4165 // is set. If the comparison is against zero, then this is a check to see if 4166 // *that* bit is set. 4167 APInt Op0KnownZeroInverted = ~Op0Known.Zero; 4168 if (Op1Known.isZero()) { 4169 // If the LHS is an AND with the same constant, look through it. 4170 Value *LHS = nullptr; 4171 const APInt *LHSC; 4172 if (!match(Op0, m_And(m_Value(LHS), m_APInt(LHSC))) || 4173 *LHSC != Op0KnownZeroInverted) 4174 LHS = Op0; 4175 4176 Value *X; 4177 if (match(LHS, m_Shl(m_One(), m_Value(X)))) { 4178 APInt ValToCheck = Op0KnownZeroInverted; 4179 Type *XTy = X->getType(); 4180 if (ValToCheck.isPowerOf2()) { 4181 // ((1 << X) & 8) == 0 -> X != 3 4182 // ((1 << X) & 8) != 0 -> X == 3 4183 auto *CmpC = ConstantInt::get(XTy, ValToCheck.countTrailingZeros()); 4184 auto NewPred = ICmpInst::getInversePredicate(Pred); 4185 return new ICmpInst(NewPred, X, CmpC); 4186 } else if ((++ValToCheck).isPowerOf2()) { 4187 // ((1 << X) & 7) == 0 -> X >= 3 4188 // ((1 << X) & 7) != 0 -> X < 3 4189 auto *CmpC = ConstantInt::get(XTy, ValToCheck.countTrailingZeros()); 4190 auto NewPred = 4191 Pred == CmpInst::ICMP_EQ ? CmpInst::ICMP_UGE : CmpInst::ICMP_ULT; 4192 return new ICmpInst(NewPred, X, CmpC); 4193 } 4194 } 4195 4196 // Check if the LHS is 8 >>u x and the result is a power of 2 like 1. 4197 const APInt *CI; 4198 if (Op0KnownZeroInverted.isOneValue() && 4199 match(LHS, m_LShr(m_Power2(CI), m_Value(X)))) { 4200 // ((8 >>u X) & 1) == 0 -> X != 3 4201 // ((8 >>u X) & 1) != 0 -> X == 3 4202 unsigned CmpVal = CI->countTrailingZeros(); 4203 auto NewPred = ICmpInst::getInversePredicate(Pred); 4204 return new ICmpInst(NewPred, X, ConstantInt::get(X->getType(), CmpVal)); 4205 } 4206 } 4207 break; 4208 } 4209 case ICmpInst::ICMP_ULT: { 4210 if (Op0Max.ult(Op1Min)) // A <u B -> true if max(A) < min(B) 4211 return replaceInstUsesWith(I, ConstantInt::getTrue(I.getType())); 4212 if (Op0Min.uge(Op1Max)) // A <u B -> false if min(A) >= max(B) 4213 return replaceInstUsesWith(I, ConstantInt::getFalse(I.getType())); 4214 if (Op1Min == Op0Max) // A <u B -> A != B if max(A) == min(B) 4215 return new ICmpInst(ICmpInst::ICMP_NE, Op0, Op1); 4216 4217 const APInt *CmpC; 4218 if (match(Op1, m_APInt(CmpC))) { 4219 // A <u C -> A == C-1 if min(A)+1 == C 4220 if (Op1Max == Op0Min + 1) { 4221 Constant *CMinus1 = ConstantInt::get(Op0->getType(), *CmpC - 1); 4222 return new ICmpInst(ICmpInst::ICMP_EQ, Op0, CMinus1); 4223 } 4224 } 4225 break; 4226 } 4227 case ICmpInst::ICMP_UGT: { 4228 if (Op0Min.ugt(Op1Max)) // A >u B -> true if min(A) > max(B) 4229 return replaceInstUsesWith(I, ConstantInt::getTrue(I.getType())); 4230 4231 if (Op0Max.ule(Op1Min)) // A >u B -> false if max(A) <= max(B) 4232 return replaceInstUsesWith(I, ConstantInt::getFalse(I.getType())); 4233 4234 if (Op1Max == Op0Min) // A >u B -> A != B if min(A) == max(B) 4235 return new ICmpInst(ICmpInst::ICMP_NE, Op0, Op1); 4236 4237 const APInt *CmpC; 4238 if (match(Op1, m_APInt(CmpC))) { 4239 // A >u C -> A == C+1 if max(a)-1 == C 4240 if (*CmpC == Op0Max - 1) 4241 return new ICmpInst(ICmpInst::ICMP_EQ, Op0, 4242 ConstantInt::get(Op1->getType(), *CmpC + 1)); 4243 } 4244 break; 4245 } 4246 case ICmpInst::ICMP_SLT: 4247 if (Op0Max.slt(Op1Min)) // A <s B -> true if max(A) < min(C) 4248 return replaceInstUsesWith(I, ConstantInt::getTrue(I.getType())); 4249 if (Op0Min.sge(Op1Max)) // A <s B -> false if min(A) >= max(C) 4250 return replaceInstUsesWith(I, ConstantInt::getFalse(I.getType())); 4251 if (Op1Min == Op0Max) // A <s B -> A != B if max(A) == min(B) 4252 return new ICmpInst(ICmpInst::ICMP_NE, Op0, Op1); 4253 if (ConstantInt *CI = dyn_cast<ConstantInt>(Op1)) { 4254 if (Op1Max == Op0Min + 1) // A <s C -> A == C-1 if min(A)+1 == C 4255 return new ICmpInst(ICmpInst::ICMP_EQ, Op0, 4256 Builder.getInt(CI->getValue() - 1)); 4257 } 4258 break; 4259 case ICmpInst::ICMP_SGT: 4260 if (Op0Min.sgt(Op1Max)) // A >s B -> true if min(A) > max(B) 4261 return replaceInstUsesWith(I, ConstantInt::getTrue(I.getType())); 4262 if (Op0Max.sle(Op1Min)) // A >s B -> false if max(A) <= min(B) 4263 return replaceInstUsesWith(I, ConstantInt::getFalse(I.getType())); 4264 4265 if (Op1Max == Op0Min) // A >s B -> A != B if min(A) == max(B) 4266 return new ICmpInst(ICmpInst::ICMP_NE, Op0, Op1); 4267 if (ConstantInt *CI = dyn_cast<ConstantInt>(Op1)) { 4268 if (Op1Min == Op0Max - 1) // A >s C -> A == C+1 if max(A)-1 == C 4269 return new ICmpInst(ICmpInst::ICMP_EQ, Op0, 4270 Builder.getInt(CI->getValue() + 1)); 4271 } 4272 break; 4273 case ICmpInst::ICMP_SGE: 4274 assert(!isa<ConstantInt>(Op1) && "ICMP_SGE with ConstantInt not folded!"); 4275 if (Op0Min.sge(Op1Max)) // A >=s B -> true if min(A) >= max(B) 4276 return replaceInstUsesWith(I, ConstantInt::getTrue(I.getType())); 4277 if (Op0Max.slt(Op1Min)) // A >=s B -> false if max(A) < min(B) 4278 return replaceInstUsesWith(I, ConstantInt::getFalse(I.getType())); 4279 break; 4280 case ICmpInst::ICMP_SLE: 4281 assert(!isa<ConstantInt>(Op1) && "ICMP_SLE with ConstantInt not folded!"); 4282 if (Op0Max.sle(Op1Min)) // A <=s B -> true if max(A) <= min(B) 4283 return replaceInstUsesWith(I, ConstantInt::getTrue(I.getType())); 4284 if (Op0Min.sgt(Op1Max)) // A <=s B -> false if min(A) > max(B) 4285 return replaceInstUsesWith(I, ConstantInt::getFalse(I.getType())); 4286 break; 4287 case ICmpInst::ICMP_UGE: 4288 assert(!isa<ConstantInt>(Op1) && "ICMP_UGE with ConstantInt not folded!"); 4289 if (Op0Min.uge(Op1Max)) // A >=u B -> true if min(A) >= max(B) 4290 return replaceInstUsesWith(I, ConstantInt::getTrue(I.getType())); 4291 if (Op0Max.ult(Op1Min)) // A >=u B -> false if max(A) < min(B) 4292 return replaceInstUsesWith(I, ConstantInt::getFalse(I.getType())); 4293 break; 4294 case ICmpInst::ICMP_ULE: 4295 assert(!isa<ConstantInt>(Op1) && "ICMP_ULE with ConstantInt not folded!"); 4296 if (Op0Max.ule(Op1Min)) // A <=u B -> true if max(A) <= min(B) 4297 return replaceInstUsesWith(I, ConstantInt::getTrue(I.getType())); 4298 if (Op0Min.ugt(Op1Max)) // A <=u B -> false if min(A) > max(B) 4299 return replaceInstUsesWith(I, ConstantInt::getFalse(I.getType())); 4300 break; 4301 } 4302 4303 // Turn a signed comparison into an unsigned one if both operands are known to 4304 // have the same sign. 4305 if (I.isSigned() && 4306 ((Op0Known.Zero.isNegative() && Op1Known.Zero.isNegative()) || 4307 (Op0Known.One.isNegative() && Op1Known.One.isNegative()))) 4308 return new ICmpInst(I.getUnsignedPredicate(), Op0, Op1); 4309 4310 return nullptr; 4311 } 4312 4313 /// If we have an icmp le or icmp ge instruction with a constant operand, turn 4314 /// it into the appropriate icmp lt or icmp gt instruction. This transform 4315 /// allows them to be folded in visitICmpInst. 4316 static ICmpInst *canonicalizeCmpWithConstant(ICmpInst &I) { 4317 ICmpInst::Predicate Pred = I.getPredicate(); 4318 if (Pred != ICmpInst::ICMP_SLE && Pred != ICmpInst::ICMP_SGE && 4319 Pred != ICmpInst::ICMP_ULE && Pred != ICmpInst::ICMP_UGE) 4320 return nullptr; 4321 4322 Value *Op0 = I.getOperand(0); 4323 Value *Op1 = I.getOperand(1); 4324 auto *Op1C = dyn_cast<Constant>(Op1); 4325 if (!Op1C) 4326 return nullptr; 4327 4328 // Check if the constant operand can be safely incremented/decremented without 4329 // overflowing/underflowing. For scalars, SimplifyICmpInst has already handled 4330 // the edge cases for us, so we just assert on them. For vectors, we must 4331 // handle the edge cases. 4332 Type *Op1Type = Op1->getType(); 4333 bool IsSigned = I.isSigned(); 4334 bool IsLE = (Pred == ICmpInst::ICMP_SLE || Pred == ICmpInst::ICMP_ULE); 4335 auto *CI = dyn_cast<ConstantInt>(Op1C); 4336 if (CI) { 4337 // A <= MAX -> TRUE ; A >= MIN -> TRUE 4338 assert(IsLE ? !CI->isMaxValue(IsSigned) : !CI->isMinValue(IsSigned)); 4339 } else if (Op1Type->isVectorTy()) { 4340 // TODO? If the edge cases for vectors were guaranteed to be handled as they 4341 // are for scalar, we could remove the min/max checks. However, to do that, 4342 // we would have to use insertelement/shufflevector to replace edge values. 4343 unsigned NumElts = Op1Type->getVectorNumElements(); 4344 for (unsigned i = 0; i != NumElts; ++i) { 4345 Constant *Elt = Op1C->getAggregateElement(i); 4346 if (!Elt) 4347 return nullptr; 4348 4349 if (isa<UndefValue>(Elt)) 4350 continue; 4351 4352 // Bail out if we can't determine if this constant is min/max or if we 4353 // know that this constant is min/max. 4354 auto *CI = dyn_cast<ConstantInt>(Elt); 4355 if (!CI || (IsLE ? CI->isMaxValue(IsSigned) : CI->isMinValue(IsSigned))) 4356 return nullptr; 4357 } 4358 } else { 4359 // ConstantExpr? 4360 return nullptr; 4361 } 4362 4363 // Increment or decrement the constant and set the new comparison predicate: 4364 // ULE -> ULT ; UGE -> UGT ; SLE -> SLT ; SGE -> SGT 4365 Constant *OneOrNegOne = ConstantInt::get(Op1Type, IsLE ? 1 : -1, true); 4366 CmpInst::Predicate NewPred = IsLE ? ICmpInst::ICMP_ULT: ICmpInst::ICMP_UGT; 4367 NewPred = IsSigned ? ICmpInst::getSignedPredicate(NewPred) : NewPred; 4368 return new ICmpInst(NewPred, Op0, ConstantExpr::getAdd(Op1C, OneOrNegOne)); 4369 } 4370 4371 /// Integer compare with boolean values can always be turned into bitwise ops. 4372 static Instruction *canonicalizeICmpBool(ICmpInst &I, 4373 InstCombiner::BuilderTy &Builder) { 4374 Value *A = I.getOperand(0), *B = I.getOperand(1); 4375 assert(A->getType()->isIntOrIntVectorTy(1) && "Bools only"); 4376 4377 // A boolean compared to true/false can be simplified to Op0/true/false in 4378 // 14 out of the 20 (10 predicates * 2 constants) possible combinations. 4379 // Cases not handled by InstSimplify are always 'not' of Op0. 4380 if (match(B, m_Zero())) { 4381 switch (I.getPredicate()) { 4382 case CmpInst::ICMP_EQ: // A == 0 -> !A 4383 case CmpInst::ICMP_ULE: // A <=u 0 -> !A 4384 case CmpInst::ICMP_SGE: // A >=s 0 -> !A 4385 return BinaryOperator::CreateNot(A); 4386 default: 4387 llvm_unreachable("ICmp i1 X, C not simplified as expected."); 4388 } 4389 } else if (match(B, m_One())) { 4390 switch (I.getPredicate()) { 4391 case CmpInst::ICMP_NE: // A != 1 -> !A 4392 case CmpInst::ICMP_ULT: // A <u 1 -> !A 4393 case CmpInst::ICMP_SGT: // A >s -1 -> !A 4394 return BinaryOperator::CreateNot(A); 4395 default: 4396 llvm_unreachable("ICmp i1 X, C not simplified as expected."); 4397 } 4398 } 4399 4400 switch (I.getPredicate()) { 4401 default: 4402 llvm_unreachable("Invalid icmp instruction!"); 4403 case ICmpInst::ICMP_EQ: 4404 // icmp eq i1 A, B -> ~(A ^ B) 4405 return BinaryOperator::CreateNot(Builder.CreateXor(A, B)); 4406 4407 case ICmpInst::ICMP_NE: 4408 // icmp ne i1 A, B -> A ^ B 4409 return BinaryOperator::CreateXor(A, B); 4410 4411 case ICmpInst::ICMP_UGT: 4412 // icmp ugt -> icmp ult 4413 std::swap(A, B); 4414 LLVM_FALLTHROUGH; 4415 case ICmpInst::ICMP_ULT: 4416 // icmp ult i1 A, B -> ~A & B 4417 return BinaryOperator::CreateAnd(Builder.CreateNot(A), B); 4418 4419 case ICmpInst::ICMP_SGT: 4420 // icmp sgt -> icmp slt 4421 std::swap(A, B); 4422 LLVM_FALLTHROUGH; 4423 case ICmpInst::ICMP_SLT: 4424 // icmp slt i1 A, B -> A & ~B 4425 return BinaryOperator::CreateAnd(Builder.CreateNot(B), A); 4426 4427 case ICmpInst::ICMP_UGE: 4428 // icmp uge -> icmp ule 4429 std::swap(A, B); 4430 LLVM_FALLTHROUGH; 4431 case ICmpInst::ICMP_ULE: 4432 // icmp ule i1 A, B -> ~A | B 4433 return BinaryOperator::CreateOr(Builder.CreateNot(A), B); 4434 4435 case ICmpInst::ICMP_SGE: 4436 // icmp sge -> icmp sle 4437 std::swap(A, B); 4438 LLVM_FALLTHROUGH; 4439 case ICmpInst::ICMP_SLE: 4440 // icmp sle i1 A, B -> A | ~B 4441 return BinaryOperator::CreateOr(Builder.CreateNot(B), A); 4442 } 4443 } 4444 4445 Instruction *InstCombiner::visitICmpInst(ICmpInst &I) { 4446 bool Changed = false; 4447 Value *Op0 = I.getOperand(0), *Op1 = I.getOperand(1); 4448 unsigned Op0Cplxity = getComplexity(Op0); 4449 unsigned Op1Cplxity = getComplexity(Op1); 4450 4451 /// Orders the operands of the compare so that they are listed from most 4452 /// complex to least complex. This puts constants before unary operators, 4453 /// before binary operators. 4454 if (Op0Cplxity < Op1Cplxity || 4455 (Op0Cplxity == Op1Cplxity && swapMayExposeCSEOpportunities(Op0, Op1))) { 4456 I.swapOperands(); 4457 std::swap(Op0, Op1); 4458 Changed = true; 4459 } 4460 4461 if (Value *V = SimplifyICmpInst(I.getPredicate(), Op0, Op1, 4462 SQ.getWithInstruction(&I))) 4463 return replaceInstUsesWith(I, V); 4464 4465 // comparing -val or val with non-zero is the same as just comparing val 4466 // ie, abs(val) != 0 -> val != 0 4467 if (I.getPredicate() == ICmpInst::ICMP_NE && match(Op1, m_Zero())) { 4468 Value *Cond, *SelectTrue, *SelectFalse; 4469 if (match(Op0, m_Select(m_Value(Cond), m_Value(SelectTrue), 4470 m_Value(SelectFalse)))) { 4471 if (Value *V = dyn_castNegVal(SelectTrue)) { 4472 if (V == SelectFalse) 4473 return CmpInst::Create(Instruction::ICmp, I.getPredicate(), V, Op1); 4474 } 4475 else if (Value *V = dyn_castNegVal(SelectFalse)) { 4476 if (V == SelectTrue) 4477 return CmpInst::Create(Instruction::ICmp, I.getPredicate(), V, Op1); 4478 } 4479 } 4480 } 4481 4482 if (Op0->getType()->isIntOrIntVectorTy(1)) 4483 if (Instruction *Res = canonicalizeICmpBool(I, Builder)) 4484 return Res; 4485 4486 if (ICmpInst *NewICmp = canonicalizeCmpWithConstant(I)) 4487 return NewICmp; 4488 4489 if (Instruction *Res = foldICmpWithConstant(I)) 4490 return Res; 4491 4492 if (Instruction *Res = foldICmpUsingKnownBits(I)) 4493 return Res; 4494 4495 // Test if the ICmpInst instruction is used exclusively by a select as 4496 // part of a minimum or maximum operation. If so, refrain from doing 4497 // any other folding. This helps out other analyses which understand 4498 // non-obfuscated minimum and maximum idioms, such as ScalarEvolution 4499 // and CodeGen. And in this case, at least one of the comparison 4500 // operands has at least one user besides the compare (the select), 4501 // which would often largely negate the benefit of folding anyway. 4502 if (I.hasOneUse()) 4503 if (SelectInst *SI = dyn_cast<SelectInst>(*I.user_begin())) 4504 if ((SI->getOperand(1) == Op0 && SI->getOperand(2) == Op1) || 4505 (SI->getOperand(2) == Op0 && SI->getOperand(1) == Op1)) 4506 return nullptr; 4507 4508 // FIXME: We only do this after checking for min/max to prevent infinite 4509 // looping caused by a reverse canonicalization of these patterns for min/max. 4510 // FIXME: The organization of folds is a mess. These would naturally go into 4511 // canonicalizeCmpWithConstant(), but we can't move all of the above folds 4512 // down here after the min/max restriction. 4513 ICmpInst::Predicate Pred = I.getPredicate(); 4514 const APInt *C; 4515 if (match(Op1, m_APInt(C))) { 4516 // For i32: x >u 2147483647 -> x <s 0 -> true if sign bit set 4517 if (Pred == ICmpInst::ICMP_UGT && C->isMaxSignedValue()) { 4518 Constant *Zero = Constant::getNullValue(Op0->getType()); 4519 return new ICmpInst(ICmpInst::ICMP_SLT, Op0, Zero); 4520 } 4521 4522 // For i32: x <u 2147483648 -> x >s -1 -> true if sign bit clear 4523 if (Pred == ICmpInst::ICMP_ULT && C->isMinSignedValue()) { 4524 Constant *AllOnes = Constant::getAllOnesValue(Op0->getType()); 4525 return new ICmpInst(ICmpInst::ICMP_SGT, Op0, AllOnes); 4526 } 4527 } 4528 4529 if (Instruction *Res = foldICmpInstWithConstant(I)) 4530 return Res; 4531 4532 if (Instruction *Res = foldICmpInstWithConstantNotInt(I)) 4533 return Res; 4534 4535 // If we can optimize a 'icmp GEP, P' or 'icmp P, GEP', do so now. 4536 if (GEPOperator *GEP = dyn_cast<GEPOperator>(Op0)) 4537 if (Instruction *NI = foldGEPICmp(GEP, Op1, I.getPredicate(), I)) 4538 return NI; 4539 if (GEPOperator *GEP = dyn_cast<GEPOperator>(Op1)) 4540 if (Instruction *NI = foldGEPICmp(GEP, Op0, 4541 ICmpInst::getSwappedPredicate(I.getPredicate()), I)) 4542 return NI; 4543 4544 // Try to optimize equality comparisons against alloca-based pointers. 4545 if (Op0->getType()->isPointerTy() && I.isEquality()) { 4546 assert(Op1->getType()->isPointerTy() && "Comparing pointer with non-pointer?"); 4547 if (auto *Alloca = dyn_cast<AllocaInst>(GetUnderlyingObject(Op0, DL))) 4548 if (Instruction *New = foldAllocaCmp(I, Alloca, Op1)) 4549 return New; 4550 if (auto *Alloca = dyn_cast<AllocaInst>(GetUnderlyingObject(Op1, DL))) 4551 if (Instruction *New = foldAllocaCmp(I, Alloca, Op0)) 4552 return New; 4553 } 4554 4555 // Test to see if the operands of the icmp are casted versions of other 4556 // values. If the ptr->ptr cast can be stripped off both arguments, we do so 4557 // now. 4558 if (BitCastInst *CI = dyn_cast<BitCastInst>(Op0)) { 4559 if (Op0->getType()->isPointerTy() && 4560 (isa<Constant>(Op1) || isa<BitCastInst>(Op1))) { 4561 // We keep moving the cast from the left operand over to the right 4562 // operand, where it can often be eliminated completely. 4563 Op0 = CI->getOperand(0); 4564 4565 // If operand #1 is a bitcast instruction, it must also be a ptr->ptr cast 4566 // so eliminate it as well. 4567 if (BitCastInst *CI2 = dyn_cast<BitCastInst>(Op1)) 4568 Op1 = CI2->getOperand(0); 4569 4570 // If Op1 is a constant, we can fold the cast into the constant. 4571 if (Op0->getType() != Op1->getType()) { 4572 if (Constant *Op1C = dyn_cast<Constant>(Op1)) { 4573 Op1 = ConstantExpr::getBitCast(Op1C, Op0->getType()); 4574 } else { 4575 // Otherwise, cast the RHS right before the icmp 4576 Op1 = Builder.CreateBitCast(Op1, Op0->getType()); 4577 } 4578 } 4579 return new ICmpInst(I.getPredicate(), Op0, Op1); 4580 } 4581 } 4582 4583 if (isa<CastInst>(Op0)) { 4584 // Handle the special case of: icmp (cast bool to X), <cst> 4585 // This comes up when you have code like 4586 // int X = A < B; 4587 // if (X) ... 4588 // For generality, we handle any zero-extension of any operand comparison 4589 // with a constant or another cast from the same type. 4590 if (isa<Constant>(Op1) || isa<CastInst>(Op1)) 4591 if (Instruction *R = foldICmpWithCastAndCast(I)) 4592 return R; 4593 } 4594 4595 if (Instruction *Res = foldICmpBinOp(I)) 4596 return Res; 4597 4598 if (Instruction *Res = foldICmpWithMinMax(I)) 4599 return Res; 4600 4601 { 4602 Value *A, *B; 4603 // Transform (A & ~B) == 0 --> (A & B) != 0 4604 // and (A & ~B) != 0 --> (A & B) == 0 4605 // if A is a power of 2. 4606 if (match(Op0, m_And(m_Value(A), m_Not(m_Value(B)))) && 4607 match(Op1, m_Zero()) && 4608 isKnownToBeAPowerOfTwo(A, false, 0, &I) && I.isEquality()) 4609 return new ICmpInst(I.getInversePredicate(), Builder.CreateAnd(A, B), 4610 Op1); 4611 4612 // ~X < ~Y --> Y < X 4613 // ~X < C --> X > ~C 4614 if (match(Op0, m_Not(m_Value(A)))) { 4615 if (match(Op1, m_Not(m_Value(B)))) 4616 return new ICmpInst(I.getPredicate(), B, A); 4617 4618 const APInt *C; 4619 if (match(Op1, m_APInt(C))) 4620 return new ICmpInst(I.getSwappedPredicate(), A, 4621 ConstantInt::get(Op1->getType(), ~(*C))); 4622 } 4623 4624 Instruction *AddI = nullptr; 4625 if (match(&I, m_UAddWithOverflow(m_Value(A), m_Value(B), 4626 m_Instruction(AddI))) && 4627 isa<IntegerType>(A->getType())) { 4628 Value *Result; 4629 Constant *Overflow; 4630 if (OptimizeOverflowCheck(OCF_UNSIGNED_ADD, A, B, *AddI, Result, 4631 Overflow)) { 4632 replaceInstUsesWith(*AddI, Result); 4633 return replaceInstUsesWith(I, Overflow); 4634 } 4635 } 4636 4637 // (zext a) * (zext b) --> llvm.umul.with.overflow. 4638 if (match(Op0, m_Mul(m_ZExt(m_Value(A)), m_ZExt(m_Value(B))))) { 4639 if (Instruction *R = processUMulZExtIdiom(I, Op0, Op1, *this)) 4640 return R; 4641 } 4642 if (match(Op1, m_Mul(m_ZExt(m_Value(A)), m_ZExt(m_Value(B))))) { 4643 if (Instruction *R = processUMulZExtIdiom(I, Op1, Op0, *this)) 4644 return R; 4645 } 4646 } 4647 4648 if (Instruction *Res = foldICmpEquality(I)) 4649 return Res; 4650 4651 // The 'cmpxchg' instruction returns an aggregate containing the old value and 4652 // an i1 which indicates whether or not we successfully did the swap. 4653 // 4654 // Replace comparisons between the old value and the expected value with the 4655 // indicator that 'cmpxchg' returns. 4656 // 4657 // N.B. This transform is only valid when the 'cmpxchg' is not permitted to 4658 // spuriously fail. In those cases, the old value may equal the expected 4659 // value but it is possible for the swap to not occur. 4660 if (I.getPredicate() == ICmpInst::ICMP_EQ) 4661 if (auto *EVI = dyn_cast<ExtractValueInst>(Op0)) 4662 if (auto *ACXI = dyn_cast<AtomicCmpXchgInst>(EVI->getAggregateOperand())) 4663 if (EVI->getIndices()[0] == 0 && ACXI->getCompareOperand() == Op1 && 4664 !ACXI->isWeak()) 4665 return ExtractValueInst::Create(ACXI, 1); 4666 4667 { 4668 Value *X; ConstantInt *Cst; 4669 // icmp X+Cst, X 4670 if (match(Op0, m_Add(m_Value(X), m_ConstantInt(Cst))) && Op1 == X) 4671 return foldICmpAddOpConst(I, X, Cst, I.getPredicate()); 4672 4673 // icmp X, X+Cst 4674 if (match(Op1, m_Add(m_Value(X), m_ConstantInt(Cst))) && Op0 == X) 4675 return foldICmpAddOpConst(I, X, Cst, I.getSwappedPredicate()); 4676 } 4677 return Changed ? &I : nullptr; 4678 } 4679 4680 /// Fold fcmp ([us]itofp x, cst) if possible. 4681 Instruction *InstCombiner::foldFCmpIntToFPConst(FCmpInst &I, Instruction *LHSI, 4682 Constant *RHSC) { 4683 if (!isa<ConstantFP>(RHSC)) return nullptr; 4684 const APFloat &RHS = cast<ConstantFP>(RHSC)->getValueAPF(); 4685 4686 // Get the width of the mantissa. We don't want to hack on conversions that 4687 // might lose information from the integer, e.g. "i64 -> float" 4688 int MantissaWidth = LHSI->getType()->getFPMantissaWidth(); 4689 if (MantissaWidth == -1) return nullptr; // Unknown. 4690 4691 IntegerType *IntTy = cast<IntegerType>(LHSI->getOperand(0)->getType()); 4692 4693 bool LHSUnsigned = isa<UIToFPInst>(LHSI); 4694 4695 if (I.isEquality()) { 4696 FCmpInst::Predicate P = I.getPredicate(); 4697 bool IsExact = false; 4698 APSInt RHSCvt(IntTy->getBitWidth(), LHSUnsigned); 4699 RHS.convertToInteger(RHSCvt, APFloat::rmNearestTiesToEven, &IsExact); 4700 4701 // If the floating point constant isn't an integer value, we know if we will 4702 // ever compare equal / not equal to it. 4703 if (!IsExact) { 4704 // TODO: Can never be -0.0 and other non-representable values 4705 APFloat RHSRoundInt(RHS); 4706 RHSRoundInt.roundToIntegral(APFloat::rmNearestTiesToEven); 4707 if (RHS.compare(RHSRoundInt) != APFloat::cmpEqual) { 4708 if (P == FCmpInst::FCMP_OEQ || P == FCmpInst::FCMP_UEQ) 4709 return replaceInstUsesWith(I, Builder.getFalse()); 4710 4711 assert(P == FCmpInst::FCMP_ONE || P == FCmpInst::FCMP_UNE); 4712 return replaceInstUsesWith(I, Builder.getTrue()); 4713 } 4714 } 4715 4716 // TODO: If the constant is exactly representable, is it always OK to do 4717 // equality compares as integer? 4718 } 4719 4720 // Check to see that the input is converted from an integer type that is small 4721 // enough that preserves all bits. TODO: check here for "known" sign bits. 4722 // This would allow us to handle (fptosi (x >>s 62) to float) if x is i64 f.e. 4723 unsigned InputSize = IntTy->getScalarSizeInBits(); 4724 4725 // Following test does NOT adjust InputSize downwards for signed inputs, 4726 // because the most negative value still requires all the mantissa bits 4727 // to distinguish it from one less than that value. 4728 if ((int)InputSize > MantissaWidth) { 4729 // Conversion would lose accuracy. Check if loss can impact comparison. 4730 int Exp = ilogb(RHS); 4731 if (Exp == APFloat::IEK_Inf) { 4732 int MaxExponent = ilogb(APFloat::getLargest(RHS.getSemantics())); 4733 if (MaxExponent < (int)InputSize - !LHSUnsigned) 4734 // Conversion could create infinity. 4735 return nullptr; 4736 } else { 4737 // Note that if RHS is zero or NaN, then Exp is negative 4738 // and first condition is trivially false. 4739 if (MantissaWidth <= Exp && Exp <= (int)InputSize - !LHSUnsigned) 4740 // Conversion could affect comparison. 4741 return nullptr; 4742 } 4743 } 4744 4745 // Otherwise, we can potentially simplify the comparison. We know that it 4746 // will always come through as an integer value and we know the constant is 4747 // not a NAN (it would have been previously simplified). 4748 assert(!RHS.isNaN() && "NaN comparison not already folded!"); 4749 4750 ICmpInst::Predicate Pred; 4751 switch (I.getPredicate()) { 4752 default: llvm_unreachable("Unexpected predicate!"); 4753 case FCmpInst::FCMP_UEQ: 4754 case FCmpInst::FCMP_OEQ: 4755 Pred = ICmpInst::ICMP_EQ; 4756 break; 4757 case FCmpInst::FCMP_UGT: 4758 case FCmpInst::FCMP_OGT: 4759 Pred = LHSUnsigned ? ICmpInst::ICMP_UGT : ICmpInst::ICMP_SGT; 4760 break; 4761 case FCmpInst::FCMP_UGE: 4762 case FCmpInst::FCMP_OGE: 4763 Pred = LHSUnsigned ? ICmpInst::ICMP_UGE : ICmpInst::ICMP_SGE; 4764 break; 4765 case FCmpInst::FCMP_ULT: 4766 case FCmpInst::FCMP_OLT: 4767 Pred = LHSUnsigned ? ICmpInst::ICMP_ULT : ICmpInst::ICMP_SLT; 4768 break; 4769 case FCmpInst::FCMP_ULE: 4770 case FCmpInst::FCMP_OLE: 4771 Pred = LHSUnsigned ? ICmpInst::ICMP_ULE : ICmpInst::ICMP_SLE; 4772 break; 4773 case FCmpInst::FCMP_UNE: 4774 case FCmpInst::FCMP_ONE: 4775 Pred = ICmpInst::ICMP_NE; 4776 break; 4777 case FCmpInst::FCMP_ORD: 4778 return replaceInstUsesWith(I, Builder.getTrue()); 4779 case FCmpInst::FCMP_UNO: 4780 return replaceInstUsesWith(I, Builder.getFalse()); 4781 } 4782 4783 // Now we know that the APFloat is a normal number, zero or inf. 4784 4785 // See if the FP constant is too large for the integer. For example, 4786 // comparing an i8 to 300.0. 4787 unsigned IntWidth = IntTy->getScalarSizeInBits(); 4788 4789 if (!LHSUnsigned) { 4790 // If the RHS value is > SignedMax, fold the comparison. This handles +INF 4791 // and large values. 4792 APFloat SMax(RHS.getSemantics()); 4793 SMax.convertFromAPInt(APInt::getSignedMaxValue(IntWidth), true, 4794 APFloat::rmNearestTiesToEven); 4795 if (SMax.compare(RHS) == APFloat::cmpLessThan) { // smax < 13123.0 4796 if (Pred == ICmpInst::ICMP_NE || Pred == ICmpInst::ICMP_SLT || 4797 Pred == ICmpInst::ICMP_SLE) 4798 return replaceInstUsesWith(I, Builder.getTrue()); 4799 return replaceInstUsesWith(I, Builder.getFalse()); 4800 } 4801 } else { 4802 // If the RHS value is > UnsignedMax, fold the comparison. This handles 4803 // +INF and large values. 4804 APFloat UMax(RHS.getSemantics()); 4805 UMax.convertFromAPInt(APInt::getMaxValue(IntWidth), false, 4806 APFloat::rmNearestTiesToEven); 4807 if (UMax.compare(RHS) == APFloat::cmpLessThan) { // umax < 13123.0 4808 if (Pred == ICmpInst::ICMP_NE || Pred == ICmpInst::ICMP_ULT || 4809 Pred == ICmpInst::ICMP_ULE) 4810 return replaceInstUsesWith(I, Builder.getTrue()); 4811 return replaceInstUsesWith(I, Builder.getFalse()); 4812 } 4813 } 4814 4815 if (!LHSUnsigned) { 4816 // See if the RHS value is < SignedMin. 4817 APFloat SMin(RHS.getSemantics()); 4818 SMin.convertFromAPInt(APInt::getSignedMinValue(IntWidth), true, 4819 APFloat::rmNearestTiesToEven); 4820 if (SMin.compare(RHS) == APFloat::cmpGreaterThan) { // smin > 12312.0 4821 if (Pred == ICmpInst::ICMP_NE || Pred == ICmpInst::ICMP_SGT || 4822 Pred == ICmpInst::ICMP_SGE) 4823 return replaceInstUsesWith(I, Builder.getTrue()); 4824 return replaceInstUsesWith(I, Builder.getFalse()); 4825 } 4826 } else { 4827 // See if the RHS value is < UnsignedMin. 4828 APFloat SMin(RHS.getSemantics()); 4829 SMin.convertFromAPInt(APInt::getMinValue(IntWidth), true, 4830 APFloat::rmNearestTiesToEven); 4831 if (SMin.compare(RHS) == APFloat::cmpGreaterThan) { // umin > 12312.0 4832 if (Pred == ICmpInst::ICMP_NE || Pred == ICmpInst::ICMP_UGT || 4833 Pred == ICmpInst::ICMP_UGE) 4834 return replaceInstUsesWith(I, Builder.getTrue()); 4835 return replaceInstUsesWith(I, Builder.getFalse()); 4836 } 4837 } 4838 4839 // Okay, now we know that the FP constant fits in the range [SMIN, SMAX] or 4840 // [0, UMAX], but it may still be fractional. See if it is fractional by 4841 // casting the FP value to the integer value and back, checking for equality. 4842 // Don't do this for zero, because -0.0 is not fractional. 4843 Constant *RHSInt = LHSUnsigned 4844 ? ConstantExpr::getFPToUI(RHSC, IntTy) 4845 : ConstantExpr::getFPToSI(RHSC, IntTy); 4846 if (!RHS.isZero()) { 4847 bool Equal = LHSUnsigned 4848 ? ConstantExpr::getUIToFP(RHSInt, RHSC->getType()) == RHSC 4849 : ConstantExpr::getSIToFP(RHSInt, RHSC->getType()) == RHSC; 4850 if (!Equal) { 4851 // If we had a comparison against a fractional value, we have to adjust 4852 // the compare predicate and sometimes the value. RHSC is rounded towards 4853 // zero at this point. 4854 switch (Pred) { 4855 default: llvm_unreachable("Unexpected integer comparison!"); 4856 case ICmpInst::ICMP_NE: // (float)int != 4.4 --> true 4857 return replaceInstUsesWith(I, Builder.getTrue()); 4858 case ICmpInst::ICMP_EQ: // (float)int == 4.4 --> false 4859 return replaceInstUsesWith(I, Builder.getFalse()); 4860 case ICmpInst::ICMP_ULE: 4861 // (float)int <= 4.4 --> int <= 4 4862 // (float)int <= -4.4 --> false 4863 if (RHS.isNegative()) 4864 return replaceInstUsesWith(I, Builder.getFalse()); 4865 break; 4866 case ICmpInst::ICMP_SLE: 4867 // (float)int <= 4.4 --> int <= 4 4868 // (float)int <= -4.4 --> int < -4 4869 if (RHS.isNegative()) 4870 Pred = ICmpInst::ICMP_SLT; 4871 break; 4872 case ICmpInst::ICMP_ULT: 4873 // (float)int < -4.4 --> false 4874 // (float)int < 4.4 --> int <= 4 4875 if (RHS.isNegative()) 4876 return replaceInstUsesWith(I, Builder.getFalse()); 4877 Pred = ICmpInst::ICMP_ULE; 4878 break; 4879 case ICmpInst::ICMP_SLT: 4880 // (float)int < -4.4 --> int < -4 4881 // (float)int < 4.4 --> int <= 4 4882 if (!RHS.isNegative()) 4883 Pred = ICmpInst::ICMP_SLE; 4884 break; 4885 case ICmpInst::ICMP_UGT: 4886 // (float)int > 4.4 --> int > 4 4887 // (float)int > -4.4 --> true 4888 if (RHS.isNegative()) 4889 return replaceInstUsesWith(I, Builder.getTrue()); 4890 break; 4891 case ICmpInst::ICMP_SGT: 4892 // (float)int > 4.4 --> int > 4 4893 // (float)int > -4.4 --> int >= -4 4894 if (RHS.isNegative()) 4895 Pred = ICmpInst::ICMP_SGE; 4896 break; 4897 case ICmpInst::ICMP_UGE: 4898 // (float)int >= -4.4 --> true 4899 // (float)int >= 4.4 --> int > 4 4900 if (RHS.isNegative()) 4901 return replaceInstUsesWith(I, Builder.getTrue()); 4902 Pred = ICmpInst::ICMP_UGT; 4903 break; 4904 case ICmpInst::ICMP_SGE: 4905 // (float)int >= -4.4 --> int >= -4 4906 // (float)int >= 4.4 --> int > 4 4907 if (!RHS.isNegative()) 4908 Pred = ICmpInst::ICMP_SGT; 4909 break; 4910 } 4911 } 4912 } 4913 4914 // Lower this FP comparison into an appropriate integer version of the 4915 // comparison. 4916 return new ICmpInst(Pred, LHSI->getOperand(0), RHSInt); 4917 } 4918 4919 Instruction *InstCombiner::visitFCmpInst(FCmpInst &I) { 4920 bool Changed = false; 4921 4922 /// Orders the operands of the compare so that they are listed from most 4923 /// complex to least complex. This puts constants before unary operators, 4924 /// before binary operators. 4925 if (getComplexity(I.getOperand(0)) < getComplexity(I.getOperand(1))) { 4926 I.swapOperands(); 4927 Changed = true; 4928 } 4929 4930 Value *Op0 = I.getOperand(0), *Op1 = I.getOperand(1); 4931 4932 if (Value *V = 4933 SimplifyFCmpInst(I.getPredicate(), Op0, Op1, I.getFastMathFlags(), 4934 SQ.getWithInstruction(&I))) 4935 return replaceInstUsesWith(I, V); 4936 4937 // Simplify 'fcmp pred X, X' 4938 if (Op0 == Op1) { 4939 switch (I.getPredicate()) { 4940 default: llvm_unreachable("Unknown predicate!"); 4941 case FCmpInst::FCMP_UNO: // True if unordered: isnan(X) | isnan(Y) 4942 case FCmpInst::FCMP_ULT: // True if unordered or less than 4943 case FCmpInst::FCMP_UGT: // True if unordered or greater than 4944 case FCmpInst::FCMP_UNE: // True if unordered or not equal 4945 // Canonicalize these to be 'fcmp uno %X, 0.0'. 4946 I.setPredicate(FCmpInst::FCMP_UNO); 4947 I.setOperand(1, Constant::getNullValue(Op0->getType())); 4948 return &I; 4949 4950 case FCmpInst::FCMP_ORD: // True if ordered (no nans) 4951 case FCmpInst::FCMP_OEQ: // True if ordered and equal 4952 case FCmpInst::FCMP_OGE: // True if ordered and greater than or equal 4953 case FCmpInst::FCMP_OLE: // True if ordered and less than or equal 4954 // Canonicalize these to be 'fcmp ord %X, 0.0'. 4955 I.setPredicate(FCmpInst::FCMP_ORD); 4956 I.setOperand(1, Constant::getNullValue(Op0->getType())); 4957 return &I; 4958 } 4959 } 4960 4961 // Test if the FCmpInst instruction is used exclusively by a select as 4962 // part of a minimum or maximum operation. If so, refrain from doing 4963 // any other folding. This helps out other analyses which understand 4964 // non-obfuscated minimum and maximum idioms, such as ScalarEvolution 4965 // and CodeGen. And in this case, at least one of the comparison 4966 // operands has at least one user besides the compare (the select), 4967 // which would often largely negate the benefit of folding anyway. 4968 if (I.hasOneUse()) 4969 if (SelectInst *SI = dyn_cast<SelectInst>(*I.user_begin())) 4970 if ((SI->getOperand(1) == Op0 && SI->getOperand(2) == Op1) || 4971 (SI->getOperand(2) == Op0 && SI->getOperand(1) == Op1)) 4972 return nullptr; 4973 4974 // Handle fcmp with constant RHS 4975 if (Constant *RHSC = dyn_cast<Constant>(Op1)) { 4976 if (Instruction *LHSI = dyn_cast<Instruction>(Op0)) 4977 switch (LHSI->getOpcode()) { 4978 case Instruction::FPExt: { 4979 // fcmp (fpext x), C -> fcmp x, (fptrunc C) if fptrunc is lossless 4980 FPExtInst *LHSExt = cast<FPExtInst>(LHSI); 4981 ConstantFP *RHSF = dyn_cast<ConstantFP>(RHSC); 4982 if (!RHSF) 4983 break; 4984 4985 const fltSemantics *Sem; 4986 // FIXME: This shouldn't be here. 4987 if (LHSExt->getSrcTy()->isHalfTy()) 4988 Sem = &APFloat::IEEEhalf(); 4989 else if (LHSExt->getSrcTy()->isFloatTy()) 4990 Sem = &APFloat::IEEEsingle(); 4991 else if (LHSExt->getSrcTy()->isDoubleTy()) 4992 Sem = &APFloat::IEEEdouble(); 4993 else if (LHSExt->getSrcTy()->isFP128Ty()) 4994 Sem = &APFloat::IEEEquad(); 4995 else if (LHSExt->getSrcTy()->isX86_FP80Ty()) 4996 Sem = &APFloat::x87DoubleExtended(); 4997 else if (LHSExt->getSrcTy()->isPPC_FP128Ty()) 4998 Sem = &APFloat::PPCDoubleDouble(); 4999 else 5000 break; 5001 5002 bool Lossy; 5003 APFloat F = RHSF->getValueAPF(); 5004 F.convert(*Sem, APFloat::rmNearestTiesToEven, &Lossy); 5005 5006 // Avoid lossy conversions and denormals. Zero is a special case 5007 // that's OK to convert. 5008 APFloat Fabs = F; 5009 Fabs.clearSign(); 5010 if (!Lossy && 5011 ((Fabs.compare(APFloat::getSmallestNormalized(*Sem)) != 5012 APFloat::cmpLessThan) || Fabs.isZero())) 5013 5014 return new FCmpInst(I.getPredicate(), LHSExt->getOperand(0), 5015 ConstantFP::get(RHSC->getContext(), F)); 5016 break; 5017 } 5018 case Instruction::PHI: 5019 // Only fold fcmp into the PHI if the phi and fcmp are in the same 5020 // block. If in the same block, we're encouraging jump threading. If 5021 // not, we are just pessimizing the code by making an i1 phi. 5022 if (LHSI->getParent() == I.getParent()) 5023 if (Instruction *NV = foldOpIntoPhi(I, cast<PHINode>(LHSI))) 5024 return NV; 5025 break; 5026 case Instruction::SIToFP: 5027 case Instruction::UIToFP: 5028 if (Instruction *NV = foldFCmpIntToFPConst(I, LHSI, RHSC)) 5029 return NV; 5030 break; 5031 case Instruction::FSub: { 5032 // fcmp pred (fneg x), C -> fcmp swap(pred) x, -C 5033 Value *Op; 5034 if (match(LHSI, m_FNeg(m_Value(Op)))) 5035 return new FCmpInst(I.getSwappedPredicate(), Op, 5036 ConstantExpr::getFNeg(RHSC)); 5037 break; 5038 } 5039 case Instruction::Load: 5040 if (GetElementPtrInst *GEP = 5041 dyn_cast<GetElementPtrInst>(LHSI->getOperand(0))) { 5042 if (GlobalVariable *GV = dyn_cast<GlobalVariable>(GEP->getOperand(0))) 5043 if (GV->isConstant() && GV->hasDefinitiveInitializer() && 5044 !cast<LoadInst>(LHSI)->isVolatile()) 5045 if (Instruction *Res = foldCmpLoadFromIndexedGlobal(GEP, GV, I)) 5046 return Res; 5047 } 5048 break; 5049 case Instruction::Call: { 5050 if (!RHSC->isNullValue()) 5051 break; 5052 5053 CallInst *CI = cast<CallInst>(LHSI); 5054 Intrinsic::ID IID = getIntrinsicForCallSite(CI, &TLI); 5055 if (IID != Intrinsic::fabs) 5056 break; 5057 5058 // Various optimization for fabs compared with zero. 5059 switch (I.getPredicate()) { 5060 default: 5061 break; 5062 // fabs(x) < 0 --> false 5063 case FCmpInst::FCMP_OLT: 5064 llvm_unreachable("handled by SimplifyFCmpInst"); 5065 // fabs(x) > 0 --> x != 0 5066 case FCmpInst::FCMP_OGT: 5067 return new FCmpInst(FCmpInst::FCMP_ONE, CI->getArgOperand(0), RHSC); 5068 // fabs(x) <= 0 --> x == 0 5069 case FCmpInst::FCMP_OLE: 5070 return new FCmpInst(FCmpInst::FCMP_OEQ, CI->getArgOperand(0), RHSC); 5071 // fabs(x) >= 0 --> !isnan(x) 5072 case FCmpInst::FCMP_OGE: 5073 return new FCmpInst(FCmpInst::FCMP_ORD, CI->getArgOperand(0), RHSC); 5074 // fabs(x) == 0 --> x == 0 5075 // fabs(x) != 0 --> x != 0 5076 case FCmpInst::FCMP_OEQ: 5077 case FCmpInst::FCMP_UEQ: 5078 case FCmpInst::FCMP_ONE: 5079 case FCmpInst::FCMP_UNE: 5080 return new FCmpInst(I.getPredicate(), CI->getArgOperand(0), RHSC); 5081 } 5082 } 5083 } 5084 } 5085 5086 // fcmp pred (fneg x), (fneg y) -> fcmp swap(pred) x, y 5087 Value *X, *Y; 5088 if (match(Op0, m_FNeg(m_Value(X))) && match(Op1, m_FNeg(m_Value(Y)))) 5089 return new FCmpInst(I.getSwappedPredicate(), X, Y); 5090 5091 // fcmp (fpext x), (fpext y) -> fcmp x, y 5092 if (FPExtInst *LHSExt = dyn_cast<FPExtInst>(Op0)) 5093 if (FPExtInst *RHSExt = dyn_cast<FPExtInst>(Op1)) 5094 if (LHSExt->getSrcTy() == RHSExt->getSrcTy()) 5095 return new FCmpInst(I.getPredicate(), LHSExt->getOperand(0), 5096 RHSExt->getOperand(0)); 5097 5098 return Changed ? &I : nullptr; 5099 } 5100