1 //===- InstCombineCasts.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 visit functions for cast operations. 11 // 12 //===----------------------------------------------------------------------===// 13 14 #include "InstCombineInternal.h" 15 #include "llvm/ADT/SetVector.h" 16 #include "llvm/Analysis/ConstantFolding.h" 17 #include "llvm/Analysis/TargetLibraryInfo.h" 18 #include "llvm/IR/DataLayout.h" 19 #include "llvm/IR/DIBuilder.h" 20 #include "llvm/IR/PatternMatch.h" 21 #include "llvm/Support/KnownBits.h" 22 using namespace llvm; 23 using namespace PatternMatch; 24 25 #define DEBUG_TYPE "instcombine" 26 27 /// Analyze 'Val', seeing if it is a simple linear expression. 28 /// If so, decompose it, returning some value X, such that Val is 29 /// X*Scale+Offset. 30 /// 31 static Value *decomposeSimpleLinearExpr(Value *Val, unsigned &Scale, 32 uint64_t &Offset) { 33 if (ConstantInt *CI = dyn_cast<ConstantInt>(Val)) { 34 Offset = CI->getZExtValue(); 35 Scale = 0; 36 return ConstantInt::get(Val->getType(), 0); 37 } 38 39 if (BinaryOperator *I = dyn_cast<BinaryOperator>(Val)) { 40 // Cannot look past anything that might overflow. 41 OverflowingBinaryOperator *OBI = dyn_cast<OverflowingBinaryOperator>(Val); 42 if (OBI && !OBI->hasNoUnsignedWrap() && !OBI->hasNoSignedWrap()) { 43 Scale = 1; 44 Offset = 0; 45 return Val; 46 } 47 48 if (ConstantInt *RHS = dyn_cast<ConstantInt>(I->getOperand(1))) { 49 if (I->getOpcode() == Instruction::Shl) { 50 // This is a value scaled by '1 << the shift amt'. 51 Scale = UINT64_C(1) << RHS->getZExtValue(); 52 Offset = 0; 53 return I->getOperand(0); 54 } 55 56 if (I->getOpcode() == Instruction::Mul) { 57 // This value is scaled by 'RHS'. 58 Scale = RHS->getZExtValue(); 59 Offset = 0; 60 return I->getOperand(0); 61 } 62 63 if (I->getOpcode() == Instruction::Add) { 64 // We have X+C. Check to see if we really have (X*C2)+C1, 65 // where C1 is divisible by C2. 66 unsigned SubScale; 67 Value *SubVal = 68 decomposeSimpleLinearExpr(I->getOperand(0), SubScale, Offset); 69 Offset += RHS->getZExtValue(); 70 Scale = SubScale; 71 return SubVal; 72 } 73 } 74 } 75 76 // Otherwise, we can't look past this. 77 Scale = 1; 78 Offset = 0; 79 return Val; 80 } 81 82 /// If we find a cast of an allocation instruction, try to eliminate the cast by 83 /// moving the type information into the alloc. 84 Instruction *InstCombiner::PromoteCastOfAllocation(BitCastInst &CI, 85 AllocaInst &AI) { 86 PointerType *PTy = cast<PointerType>(CI.getType()); 87 88 BuilderTy AllocaBuilder(Builder); 89 AllocaBuilder.SetInsertPoint(&AI); 90 91 // Get the type really allocated and the type casted to. 92 Type *AllocElTy = AI.getAllocatedType(); 93 Type *CastElTy = PTy->getElementType(); 94 if (!AllocElTy->isSized() || !CastElTy->isSized()) return nullptr; 95 96 unsigned AllocElTyAlign = DL.getABITypeAlignment(AllocElTy); 97 unsigned CastElTyAlign = DL.getABITypeAlignment(CastElTy); 98 if (CastElTyAlign < AllocElTyAlign) return nullptr; 99 100 // If the allocation has multiple uses, only promote it if we are strictly 101 // increasing the alignment of the resultant allocation. If we keep it the 102 // same, we open the door to infinite loops of various kinds. 103 if (!AI.hasOneUse() && CastElTyAlign == AllocElTyAlign) return nullptr; 104 105 uint64_t AllocElTySize = DL.getTypeAllocSize(AllocElTy); 106 uint64_t CastElTySize = DL.getTypeAllocSize(CastElTy); 107 if (CastElTySize == 0 || AllocElTySize == 0) return nullptr; 108 109 // If the allocation has multiple uses, only promote it if we're not 110 // shrinking the amount of memory being allocated. 111 uint64_t AllocElTyStoreSize = DL.getTypeStoreSize(AllocElTy); 112 uint64_t CastElTyStoreSize = DL.getTypeStoreSize(CastElTy); 113 if (!AI.hasOneUse() && CastElTyStoreSize < AllocElTyStoreSize) return nullptr; 114 115 // See if we can satisfy the modulus by pulling a scale out of the array 116 // size argument. 117 unsigned ArraySizeScale; 118 uint64_t ArrayOffset; 119 Value *NumElements = // See if the array size is a decomposable linear expr. 120 decomposeSimpleLinearExpr(AI.getOperand(0), ArraySizeScale, ArrayOffset); 121 122 // If we can now satisfy the modulus, by using a non-1 scale, we really can 123 // do the xform. 124 if ((AllocElTySize*ArraySizeScale) % CastElTySize != 0 || 125 (AllocElTySize*ArrayOffset ) % CastElTySize != 0) return nullptr; 126 127 unsigned Scale = (AllocElTySize*ArraySizeScale)/CastElTySize; 128 Value *Amt = nullptr; 129 if (Scale == 1) { 130 Amt = NumElements; 131 } else { 132 Amt = ConstantInt::get(AI.getArraySize()->getType(), Scale); 133 // Insert before the alloca, not before the cast. 134 Amt = AllocaBuilder.CreateMul(Amt, NumElements); 135 } 136 137 if (uint64_t Offset = (AllocElTySize*ArrayOffset)/CastElTySize) { 138 Value *Off = ConstantInt::get(AI.getArraySize()->getType(), 139 Offset, true); 140 Amt = AllocaBuilder.CreateAdd(Amt, Off); 141 } 142 143 AllocaInst *New = AllocaBuilder.CreateAlloca(CastElTy, Amt); 144 New->setAlignment(AI.getAlignment()); 145 New->takeName(&AI); 146 New->setUsedWithInAlloca(AI.isUsedWithInAlloca()); 147 148 // If the allocation has multiple real uses, insert a cast and change all 149 // things that used it to use the new cast. This will also hack on CI, but it 150 // will die soon. 151 if (!AI.hasOneUse()) { 152 // New is the allocation instruction, pointer typed. AI is the original 153 // allocation instruction, also pointer typed. Thus, cast to use is BitCast. 154 Value *NewCast = AllocaBuilder.CreateBitCast(New, AI.getType(), "tmpcast"); 155 replaceInstUsesWith(AI, NewCast); 156 } 157 return replaceInstUsesWith(CI, New); 158 } 159 160 /// Given an expression that CanEvaluateTruncated or CanEvaluateSExtd returns 161 /// true for, actually insert the code to evaluate the expression. 162 Value *InstCombiner::EvaluateInDifferentType(Value *V, Type *Ty, 163 bool isSigned) { 164 if (Constant *C = dyn_cast<Constant>(V)) { 165 C = ConstantExpr::getIntegerCast(C, Ty, isSigned /*Sext or ZExt*/); 166 // If we got a constantexpr back, try to simplify it with DL info. 167 if (Constant *FoldedC = ConstantFoldConstant(C, DL, &TLI)) 168 C = FoldedC; 169 return C; 170 } 171 172 // Otherwise, it must be an instruction. 173 Instruction *I = cast<Instruction>(V); 174 Instruction *Res = nullptr; 175 unsigned Opc = I->getOpcode(); 176 switch (Opc) { 177 case Instruction::Add: 178 case Instruction::Sub: 179 case Instruction::Mul: 180 case Instruction::And: 181 case Instruction::Or: 182 case Instruction::Xor: 183 case Instruction::AShr: 184 case Instruction::LShr: 185 case Instruction::Shl: 186 case Instruction::UDiv: 187 case Instruction::URem: { 188 Value *LHS = EvaluateInDifferentType(I->getOperand(0), Ty, isSigned); 189 Value *RHS = EvaluateInDifferentType(I->getOperand(1), Ty, isSigned); 190 Res = BinaryOperator::Create((Instruction::BinaryOps)Opc, LHS, RHS); 191 break; 192 } 193 case Instruction::Trunc: 194 case Instruction::ZExt: 195 case Instruction::SExt: 196 // If the source type of the cast is the type we're trying for then we can 197 // just return the source. There's no need to insert it because it is not 198 // new. 199 if (I->getOperand(0)->getType() == Ty) 200 return I->getOperand(0); 201 202 // Otherwise, must be the same type of cast, so just reinsert a new one. 203 // This also handles the case of zext(trunc(x)) -> zext(x). 204 Res = CastInst::CreateIntegerCast(I->getOperand(0), Ty, 205 Opc == Instruction::SExt); 206 break; 207 case Instruction::Select: { 208 Value *True = EvaluateInDifferentType(I->getOperand(1), Ty, isSigned); 209 Value *False = EvaluateInDifferentType(I->getOperand(2), Ty, isSigned); 210 Res = SelectInst::Create(I->getOperand(0), True, False); 211 break; 212 } 213 case Instruction::PHI: { 214 PHINode *OPN = cast<PHINode>(I); 215 PHINode *NPN = PHINode::Create(Ty, OPN->getNumIncomingValues()); 216 for (unsigned i = 0, e = OPN->getNumIncomingValues(); i != e; ++i) { 217 Value *V = 218 EvaluateInDifferentType(OPN->getIncomingValue(i), Ty, isSigned); 219 NPN->addIncoming(V, OPN->getIncomingBlock(i)); 220 } 221 Res = NPN; 222 break; 223 } 224 default: 225 // TODO: Can handle more cases here. 226 llvm_unreachable("Unreachable!"); 227 } 228 229 Res->takeName(I); 230 return InsertNewInstWith(Res, *I); 231 } 232 233 Instruction::CastOps InstCombiner::isEliminableCastPair(const CastInst *CI1, 234 const CastInst *CI2) { 235 Type *SrcTy = CI1->getSrcTy(); 236 Type *MidTy = CI1->getDestTy(); 237 Type *DstTy = CI2->getDestTy(); 238 239 Instruction::CastOps firstOp = CI1->getOpcode(); 240 Instruction::CastOps secondOp = CI2->getOpcode(); 241 Type *SrcIntPtrTy = 242 SrcTy->isPtrOrPtrVectorTy() ? DL.getIntPtrType(SrcTy) : nullptr; 243 Type *MidIntPtrTy = 244 MidTy->isPtrOrPtrVectorTy() ? DL.getIntPtrType(MidTy) : nullptr; 245 Type *DstIntPtrTy = 246 DstTy->isPtrOrPtrVectorTy() ? DL.getIntPtrType(DstTy) : nullptr; 247 unsigned Res = CastInst::isEliminableCastPair(firstOp, secondOp, SrcTy, MidTy, 248 DstTy, SrcIntPtrTy, MidIntPtrTy, 249 DstIntPtrTy); 250 251 // We don't want to form an inttoptr or ptrtoint that converts to an integer 252 // type that differs from the pointer size. 253 if ((Res == Instruction::IntToPtr && SrcTy != DstIntPtrTy) || 254 (Res == Instruction::PtrToInt && DstTy != SrcIntPtrTy)) 255 Res = 0; 256 257 return Instruction::CastOps(Res); 258 } 259 260 /// Implement the transforms common to all CastInst visitors. 261 Instruction *InstCombiner::commonCastTransforms(CastInst &CI) { 262 Value *Src = CI.getOperand(0); 263 264 // Try to eliminate a cast of a cast. 265 if (auto *CSrc = dyn_cast<CastInst>(Src)) { // A->B->C cast 266 if (Instruction::CastOps NewOpc = isEliminableCastPair(CSrc, &CI)) { 267 // The first cast (CSrc) is eliminable so we need to fix up or replace 268 // the second cast (CI). CSrc will then have a good chance of being dead. 269 auto *Res = CastInst::Create(NewOpc, CSrc->getOperand(0), CI.getType()); 270 271 // Replace debug users of the eliminable cast by emitting debug values 272 // which refer to the new cast. 273 insertReplacementDbgValues( 274 *CSrc, *Res, *std::next(CI.getIterator()), 275 [](DbgInfoIntrinsic &OldDII) { return OldDII.getExpression(); }); 276 277 return Res; 278 } 279 } 280 281 if (auto *Sel = dyn_cast<SelectInst>(Src)) { 282 // We are casting a select. Try to fold the cast into the select, but only 283 // if the select does not have a compare instruction with matching operand 284 // types. Creating a select with operands that are different sizes than its 285 // condition may inhibit other folds and lead to worse codegen. 286 auto *Cmp = dyn_cast<CmpInst>(Sel->getCondition()); 287 if (!Cmp || Cmp->getOperand(0)->getType() != Sel->getType()) 288 if (Instruction *NV = FoldOpIntoSelect(CI, Sel)) 289 return NV; 290 } 291 292 // If we are casting a PHI, then fold the cast into the PHI. 293 if (auto *PN = dyn_cast<PHINode>(Src)) { 294 // Don't do this if it would create a PHI node with an illegal type from a 295 // legal type. 296 if (!Src->getType()->isIntegerTy() || !CI.getType()->isIntegerTy() || 297 shouldChangeType(CI.getType(), Src->getType())) 298 if (Instruction *NV = foldOpIntoPhi(CI, PN)) 299 return NV; 300 } 301 302 return nullptr; 303 } 304 305 /// Constants and extensions/truncates from the destination type are always 306 /// free to be evaluated in that type. This is a helper for canEvaluate*. 307 static bool canAlwaysEvaluateInType(Value *V, Type *Ty) { 308 if (isa<Constant>(V)) 309 return true; 310 Value *X; 311 if ((match(V, m_ZExtOrSExt(m_Value(X))) || match(V, m_Trunc(m_Value(X)))) && 312 X->getType() == Ty) 313 return true; 314 315 return false; 316 } 317 318 /// Filter out values that we can not evaluate in the destination type for free. 319 /// This is a helper for canEvaluate*. 320 static bool canNotEvaluateInType(Value *V, Type *Ty) { 321 assert(!isa<Constant>(V) && "Constant should already be handled."); 322 if (!isa<Instruction>(V)) 323 return true; 324 // We don't extend or shrink something that has multiple uses -- doing so 325 // would require duplicating the instruction which isn't profitable. 326 if (!V->hasOneUse()) 327 return true; 328 329 return false; 330 } 331 332 /// Return true if we can evaluate the specified expression tree as type Ty 333 /// instead of its larger type, and arrive with the same value. 334 /// This is used by code that tries to eliminate truncates. 335 /// 336 /// Ty will always be a type smaller than V. We should return true if trunc(V) 337 /// can be computed by computing V in the smaller type. If V is an instruction, 338 /// then trunc(inst(x,y)) can be computed as inst(trunc(x),trunc(y)), which only 339 /// makes sense if x and y can be efficiently truncated. 340 /// 341 /// This function works on both vectors and scalars. 342 /// 343 static bool canEvaluateTruncated(Value *V, Type *Ty, InstCombiner &IC, 344 Instruction *CxtI) { 345 if (canAlwaysEvaluateInType(V, Ty)) 346 return true; 347 if (canNotEvaluateInType(V, Ty)) 348 return false; 349 350 auto *I = cast<Instruction>(V); 351 Type *OrigTy = V->getType(); 352 switch (I->getOpcode()) { 353 case Instruction::Add: 354 case Instruction::Sub: 355 case Instruction::Mul: 356 case Instruction::And: 357 case Instruction::Or: 358 case Instruction::Xor: 359 // These operators can all arbitrarily be extended or truncated. 360 return canEvaluateTruncated(I->getOperand(0), Ty, IC, CxtI) && 361 canEvaluateTruncated(I->getOperand(1), Ty, IC, CxtI); 362 363 case Instruction::UDiv: 364 case Instruction::URem: { 365 // UDiv and URem can be truncated if all the truncated bits are zero. 366 uint32_t OrigBitWidth = OrigTy->getScalarSizeInBits(); 367 uint32_t BitWidth = Ty->getScalarSizeInBits(); 368 assert(BitWidth < OrigBitWidth && "Unexpected bitwidths!"); 369 APInt Mask = APInt::getBitsSetFrom(OrigBitWidth, BitWidth); 370 if (IC.MaskedValueIsZero(I->getOperand(0), Mask, 0, CxtI) && 371 IC.MaskedValueIsZero(I->getOperand(1), Mask, 0, CxtI)) { 372 return canEvaluateTruncated(I->getOperand(0), Ty, IC, CxtI) && 373 canEvaluateTruncated(I->getOperand(1), Ty, IC, CxtI); 374 } 375 break; 376 } 377 case Instruction::Shl: { 378 // If we are truncating the result of this SHL, and if it's a shift of a 379 // constant amount, we can always perform a SHL in a smaller type. 380 const APInt *Amt; 381 if (match(I->getOperand(1), m_APInt(Amt))) { 382 uint32_t BitWidth = Ty->getScalarSizeInBits(); 383 if (Amt->getLimitedValue(BitWidth) < BitWidth) 384 return canEvaluateTruncated(I->getOperand(0), Ty, IC, CxtI); 385 } 386 break; 387 } 388 case Instruction::LShr: { 389 // If this is a truncate of a logical shr, we can truncate it to a smaller 390 // lshr iff we know that the bits we would otherwise be shifting in are 391 // already zeros. 392 const APInt *Amt; 393 if (match(I->getOperand(1), m_APInt(Amt))) { 394 uint32_t OrigBitWidth = OrigTy->getScalarSizeInBits(); 395 uint32_t BitWidth = Ty->getScalarSizeInBits(); 396 if (Amt->getLimitedValue(BitWidth) < BitWidth && 397 IC.MaskedValueIsZero(I->getOperand(0), 398 APInt::getBitsSetFrom(OrigBitWidth, BitWidth), 0, CxtI)) { 399 return canEvaluateTruncated(I->getOperand(0), Ty, IC, CxtI); 400 } 401 } 402 break; 403 } 404 case Instruction::AShr: { 405 // If this is a truncate of an arithmetic shr, we can truncate it to a 406 // smaller ashr iff we know that all the bits from the sign bit of the 407 // original type and the sign bit of the truncate type are similar. 408 // TODO: It is enough to check that the bits we would be shifting in are 409 // similar to sign bit of the truncate type. 410 const APInt *Amt; 411 if (match(I->getOperand(1), m_APInt(Amt))) { 412 uint32_t OrigBitWidth = OrigTy->getScalarSizeInBits(); 413 uint32_t BitWidth = Ty->getScalarSizeInBits(); 414 if (Amt->getLimitedValue(BitWidth) < BitWidth && 415 OrigBitWidth - BitWidth < 416 IC.ComputeNumSignBits(I->getOperand(0), 0, CxtI)) 417 return canEvaluateTruncated(I->getOperand(0), Ty, IC, CxtI); 418 } 419 break; 420 } 421 case Instruction::Trunc: 422 // trunc(trunc(x)) -> trunc(x) 423 return true; 424 case Instruction::ZExt: 425 case Instruction::SExt: 426 // trunc(ext(x)) -> ext(x) if the source type is smaller than the new dest 427 // trunc(ext(x)) -> trunc(x) if the source type is larger than the new dest 428 return true; 429 case Instruction::Select: { 430 SelectInst *SI = cast<SelectInst>(I); 431 return canEvaluateTruncated(SI->getTrueValue(), Ty, IC, CxtI) && 432 canEvaluateTruncated(SI->getFalseValue(), Ty, IC, CxtI); 433 } 434 case Instruction::PHI: { 435 // We can change a phi if we can change all operands. Note that we never 436 // get into trouble with cyclic PHIs here because we only consider 437 // instructions with a single use. 438 PHINode *PN = cast<PHINode>(I); 439 for (Value *IncValue : PN->incoming_values()) 440 if (!canEvaluateTruncated(IncValue, Ty, IC, CxtI)) 441 return false; 442 return true; 443 } 444 default: 445 // TODO: Can handle more cases here. 446 break; 447 } 448 449 return false; 450 } 451 452 /// Given a vector that is bitcast to an integer, optionally logically 453 /// right-shifted, and truncated, convert it to an extractelement. 454 /// Example (big endian): 455 /// trunc (lshr (bitcast <4 x i32> %X to i128), 32) to i32 456 /// ---> 457 /// extractelement <4 x i32> %X, 1 458 static Instruction *foldVecTruncToExtElt(TruncInst &Trunc, InstCombiner &IC) { 459 Value *TruncOp = Trunc.getOperand(0); 460 Type *DestType = Trunc.getType(); 461 if (!TruncOp->hasOneUse() || !isa<IntegerType>(DestType)) 462 return nullptr; 463 464 Value *VecInput = nullptr; 465 ConstantInt *ShiftVal = nullptr; 466 if (!match(TruncOp, m_CombineOr(m_BitCast(m_Value(VecInput)), 467 m_LShr(m_BitCast(m_Value(VecInput)), 468 m_ConstantInt(ShiftVal)))) || 469 !isa<VectorType>(VecInput->getType())) 470 return nullptr; 471 472 VectorType *VecType = cast<VectorType>(VecInput->getType()); 473 unsigned VecWidth = VecType->getPrimitiveSizeInBits(); 474 unsigned DestWidth = DestType->getPrimitiveSizeInBits(); 475 unsigned ShiftAmount = ShiftVal ? ShiftVal->getZExtValue() : 0; 476 477 if ((VecWidth % DestWidth != 0) || (ShiftAmount % DestWidth != 0)) 478 return nullptr; 479 480 // If the element type of the vector doesn't match the result type, 481 // bitcast it to a vector type that we can extract from. 482 unsigned NumVecElts = VecWidth / DestWidth; 483 if (VecType->getElementType() != DestType) { 484 VecType = VectorType::get(DestType, NumVecElts); 485 VecInput = IC.Builder.CreateBitCast(VecInput, VecType, "bc"); 486 } 487 488 unsigned Elt = ShiftAmount / DestWidth; 489 if (IC.getDataLayout().isBigEndian()) 490 Elt = NumVecElts - 1 - Elt; 491 492 return ExtractElementInst::Create(VecInput, IC.Builder.getInt32(Elt)); 493 } 494 495 /// Rotate left/right may occur in a wider type than necessary because of type 496 /// promotion rules. Try to narrow all of the component instructions. 497 Instruction *InstCombiner::narrowRotate(TruncInst &Trunc) { 498 assert((isa<VectorType>(Trunc.getSrcTy()) || 499 shouldChangeType(Trunc.getSrcTy(), Trunc.getType())) && 500 "Don't narrow to an illegal scalar type"); 501 502 // First, find an or'd pair of opposite shifts with the same shifted operand: 503 // trunc (or (lshr ShVal, ShAmt0), (shl ShVal, ShAmt1)) 504 Value *Or0, *Or1; 505 if (!match(Trunc.getOperand(0), m_OneUse(m_Or(m_Value(Or0), m_Value(Or1))))) 506 return nullptr; 507 508 Value *ShVal, *ShAmt0, *ShAmt1; 509 if (!match(Or0, m_OneUse(m_LogicalShift(m_Value(ShVal), m_Value(ShAmt0)))) || 510 !match(Or1, m_OneUse(m_LogicalShift(m_Specific(ShVal), m_Value(ShAmt1))))) 511 return nullptr; 512 513 auto ShiftOpcode0 = cast<BinaryOperator>(Or0)->getOpcode(); 514 auto ShiftOpcode1 = cast<BinaryOperator>(Or1)->getOpcode(); 515 if (ShiftOpcode0 == ShiftOpcode1) 516 return nullptr; 517 518 // The shift amounts must add up to the narrow bit width. 519 Value *ShAmt; 520 bool SubIsOnLHS; 521 Type *DestTy = Trunc.getType(); 522 unsigned NarrowWidth = DestTy->getScalarSizeInBits(); 523 if (match(ShAmt0, 524 m_OneUse(m_Sub(m_SpecificInt(NarrowWidth), m_Specific(ShAmt1))))) { 525 ShAmt = ShAmt1; 526 SubIsOnLHS = true; 527 } else if (match(ShAmt1, m_OneUse(m_Sub(m_SpecificInt(NarrowWidth), 528 m_Specific(ShAmt0))))) { 529 ShAmt = ShAmt0; 530 SubIsOnLHS = false; 531 } else { 532 return nullptr; 533 } 534 535 // The shifted value must have high zeros in the wide type. Typically, this 536 // will be a zext, but it could also be the result of an 'and' or 'shift'. 537 unsigned WideWidth = Trunc.getSrcTy()->getScalarSizeInBits(); 538 APInt HiBitMask = APInt::getHighBitsSet(WideWidth, WideWidth - NarrowWidth); 539 if (!MaskedValueIsZero(ShVal, HiBitMask, 0, &Trunc)) 540 return nullptr; 541 542 // We have an unnecessarily wide rotate! 543 // trunc (or (lshr ShVal, ShAmt), (shl ShVal, BitWidth - ShAmt)) 544 // Narrow it down to eliminate the zext/trunc: 545 // or (lshr trunc(ShVal), ShAmt0'), (shl trunc(ShVal), ShAmt1') 546 Value *NarrowShAmt = Builder.CreateTrunc(ShAmt, DestTy); 547 Value *NegShAmt = Builder.CreateNeg(NarrowShAmt); 548 549 // Mask both shift amounts to ensure there's no UB from oversized shifts. 550 Constant *MaskC = ConstantInt::get(DestTy, NarrowWidth - 1); 551 Value *MaskedShAmt = Builder.CreateAnd(NarrowShAmt, MaskC); 552 Value *MaskedNegShAmt = Builder.CreateAnd(NegShAmt, MaskC); 553 554 // Truncate the original value and use narrow ops. 555 Value *X = Builder.CreateTrunc(ShVal, DestTy); 556 Value *NarrowShAmt0 = SubIsOnLHS ? MaskedNegShAmt : MaskedShAmt; 557 Value *NarrowShAmt1 = SubIsOnLHS ? MaskedShAmt : MaskedNegShAmt; 558 Value *NarrowSh0 = Builder.CreateBinOp(ShiftOpcode0, X, NarrowShAmt0); 559 Value *NarrowSh1 = Builder.CreateBinOp(ShiftOpcode1, X, NarrowShAmt1); 560 return BinaryOperator::CreateOr(NarrowSh0, NarrowSh1); 561 } 562 563 /// Try to narrow the width of math or bitwise logic instructions by pulling a 564 /// truncate ahead of binary operators. 565 /// TODO: Transforms for truncated shifts should be moved into here. 566 Instruction *InstCombiner::narrowBinOp(TruncInst &Trunc) { 567 Type *SrcTy = Trunc.getSrcTy(); 568 Type *DestTy = Trunc.getType(); 569 if (!isa<VectorType>(SrcTy) && !shouldChangeType(SrcTy, DestTy)) 570 return nullptr; 571 572 BinaryOperator *BinOp; 573 if (!match(Trunc.getOperand(0), m_OneUse(m_BinOp(BinOp)))) 574 return nullptr; 575 576 Value *BinOp0 = BinOp->getOperand(0); 577 Value *BinOp1 = BinOp->getOperand(1); 578 switch (BinOp->getOpcode()) { 579 case Instruction::And: 580 case Instruction::Or: 581 case Instruction::Xor: 582 case Instruction::Add: 583 case Instruction::Sub: 584 case Instruction::Mul: { 585 Constant *C; 586 if (match(BinOp0, m_Constant(C))) { 587 // trunc (binop C, X) --> binop (trunc C', X) 588 Constant *NarrowC = ConstantExpr::getTrunc(C, DestTy); 589 Value *TruncX = Builder.CreateTrunc(BinOp1, DestTy); 590 return BinaryOperator::Create(BinOp->getOpcode(), NarrowC, TruncX); 591 } 592 if (match(BinOp1, m_Constant(C))) { 593 // trunc (binop X, C) --> binop (trunc X, C') 594 Constant *NarrowC = ConstantExpr::getTrunc(C, DestTy); 595 Value *TruncX = Builder.CreateTrunc(BinOp0, DestTy); 596 return BinaryOperator::Create(BinOp->getOpcode(), TruncX, NarrowC); 597 } 598 Value *X; 599 if (match(BinOp0, m_ZExtOrSExt(m_Value(X))) && X->getType() == DestTy) { 600 // trunc (binop (ext X), Y) --> binop X, (trunc Y) 601 Value *NarrowOp1 = Builder.CreateTrunc(BinOp1, DestTy); 602 return BinaryOperator::Create(BinOp->getOpcode(), X, NarrowOp1); 603 } 604 if (match(BinOp1, m_ZExtOrSExt(m_Value(X))) && X->getType() == DestTy) { 605 // trunc (binop Y, (ext X)) --> binop (trunc Y), X 606 Value *NarrowOp0 = Builder.CreateTrunc(BinOp0, DestTy); 607 return BinaryOperator::Create(BinOp->getOpcode(), NarrowOp0, X); 608 } 609 break; 610 } 611 612 default: break; 613 } 614 615 if (Instruction *NarrowOr = narrowRotate(Trunc)) 616 return NarrowOr; 617 618 return nullptr; 619 } 620 621 /// Try to narrow the width of a splat shuffle. This could be generalized to any 622 /// shuffle with a constant operand, but we limit the transform to avoid 623 /// creating a shuffle type that targets may not be able to lower effectively. 624 static Instruction *shrinkSplatShuffle(TruncInst &Trunc, 625 InstCombiner::BuilderTy &Builder) { 626 auto *Shuf = dyn_cast<ShuffleVectorInst>(Trunc.getOperand(0)); 627 if (Shuf && Shuf->hasOneUse() && isa<UndefValue>(Shuf->getOperand(1)) && 628 Shuf->getMask()->getSplatValue() && 629 Shuf->getType() == Shuf->getOperand(0)->getType()) { 630 // trunc (shuf X, Undef, SplatMask) --> shuf (trunc X), Undef, SplatMask 631 Constant *NarrowUndef = UndefValue::get(Trunc.getType()); 632 Value *NarrowOp = Builder.CreateTrunc(Shuf->getOperand(0), Trunc.getType()); 633 return new ShuffleVectorInst(NarrowOp, NarrowUndef, Shuf->getMask()); 634 } 635 636 return nullptr; 637 } 638 639 /// Try to narrow the width of an insert element. This could be generalized for 640 /// any vector constant, but we limit the transform to insertion into undef to 641 /// avoid potential backend problems from unsupported insertion widths. This 642 /// could also be extended to handle the case of inserting a scalar constant 643 /// into a vector variable. 644 static Instruction *shrinkInsertElt(CastInst &Trunc, 645 InstCombiner::BuilderTy &Builder) { 646 Instruction::CastOps Opcode = Trunc.getOpcode(); 647 assert((Opcode == Instruction::Trunc || Opcode == Instruction::FPTrunc) && 648 "Unexpected instruction for shrinking"); 649 650 auto *InsElt = dyn_cast<InsertElementInst>(Trunc.getOperand(0)); 651 if (!InsElt || !InsElt->hasOneUse()) 652 return nullptr; 653 654 Type *DestTy = Trunc.getType(); 655 Type *DestScalarTy = DestTy->getScalarType(); 656 Value *VecOp = InsElt->getOperand(0); 657 Value *ScalarOp = InsElt->getOperand(1); 658 Value *Index = InsElt->getOperand(2); 659 660 if (isa<UndefValue>(VecOp)) { 661 // trunc (inselt undef, X, Index) --> inselt undef, (trunc X), Index 662 // fptrunc (inselt undef, X, Index) --> inselt undef, (fptrunc X), Index 663 UndefValue *NarrowUndef = UndefValue::get(DestTy); 664 Value *NarrowOp = Builder.CreateCast(Opcode, ScalarOp, DestScalarTy); 665 return InsertElementInst::Create(NarrowUndef, NarrowOp, Index); 666 } 667 668 return nullptr; 669 } 670 671 Instruction *InstCombiner::visitTrunc(TruncInst &CI) { 672 if (Instruction *Result = commonCastTransforms(CI)) 673 return Result; 674 675 // Test if the trunc is the user of a select which is part of a 676 // minimum or maximum operation. If so, don't do any more simplification. 677 // Even simplifying demanded bits can break the canonical form of a 678 // min/max. 679 Value *LHS, *RHS; 680 if (SelectInst *SI = dyn_cast<SelectInst>(CI.getOperand(0))) 681 if (matchSelectPattern(SI, LHS, RHS).Flavor != SPF_UNKNOWN) 682 return nullptr; 683 684 // See if we can simplify any instructions used by the input whose sole 685 // purpose is to compute bits we don't care about. 686 if (SimplifyDemandedInstructionBits(CI)) 687 return &CI; 688 689 Value *Src = CI.getOperand(0); 690 Type *DestTy = CI.getType(), *SrcTy = Src->getType(); 691 692 // Attempt to truncate the entire input expression tree to the destination 693 // type. Only do this if the dest type is a simple type, don't convert the 694 // expression tree to something weird like i93 unless the source is also 695 // strange. 696 if ((DestTy->isVectorTy() || shouldChangeType(SrcTy, DestTy)) && 697 canEvaluateTruncated(Src, DestTy, *this, &CI)) { 698 699 // If this cast is a truncate, evaluting in a different type always 700 // eliminates the cast, so it is always a win. 701 LLVM_DEBUG( 702 dbgs() << "ICE: EvaluateInDifferentType converting expression type" 703 " to avoid cast: " 704 << CI << '\n'); 705 Value *Res = EvaluateInDifferentType(Src, DestTy, false); 706 assert(Res->getType() == DestTy); 707 return replaceInstUsesWith(CI, Res); 708 } 709 710 // Canonicalize trunc x to i1 -> (icmp ne (and x, 1), 0), likewise for vector. 711 if (DestTy->getScalarSizeInBits() == 1) { 712 Constant *One = ConstantInt::get(SrcTy, 1); 713 Src = Builder.CreateAnd(Src, One); 714 Value *Zero = Constant::getNullValue(Src->getType()); 715 return new ICmpInst(ICmpInst::ICMP_NE, Src, Zero); 716 } 717 718 // FIXME: Maybe combine the next two transforms to handle the no cast case 719 // more efficiently. Support vector types. Cleanup code by using m_OneUse. 720 721 // Transform trunc(lshr (zext A), Cst) to eliminate one type conversion. 722 Value *A = nullptr; ConstantInt *Cst = nullptr; 723 if (Src->hasOneUse() && 724 match(Src, m_LShr(m_ZExt(m_Value(A)), m_ConstantInt(Cst)))) { 725 // We have three types to worry about here, the type of A, the source of 726 // the truncate (MidSize), and the destination of the truncate. We know that 727 // ASize < MidSize and MidSize > ResultSize, but don't know the relation 728 // between ASize and ResultSize. 729 unsigned ASize = A->getType()->getPrimitiveSizeInBits(); 730 731 // If the shift amount is larger than the size of A, then the result is 732 // known to be zero because all the input bits got shifted out. 733 if (Cst->getZExtValue() >= ASize) 734 return replaceInstUsesWith(CI, Constant::getNullValue(DestTy)); 735 736 // Since we're doing an lshr and a zero extend, and know that the shift 737 // amount is smaller than ASize, it is always safe to do the shift in A's 738 // type, then zero extend or truncate to the result. 739 Value *Shift = Builder.CreateLShr(A, Cst->getZExtValue()); 740 Shift->takeName(Src); 741 return CastInst::CreateIntegerCast(Shift, DestTy, false); 742 } 743 744 // FIXME: We should canonicalize to zext/trunc and remove this transform. 745 // Transform trunc(lshr (sext A), Cst) to ashr A, Cst to eliminate type 746 // conversion. 747 // It works because bits coming from sign extension have the same value as 748 // the sign bit of the original value; performing ashr instead of lshr 749 // generates bits of the same value as the sign bit. 750 if (Src->hasOneUse() && 751 match(Src, m_LShr(m_SExt(m_Value(A)), m_ConstantInt(Cst)))) { 752 Value *SExt = cast<Instruction>(Src)->getOperand(0); 753 const unsigned SExtSize = SExt->getType()->getPrimitiveSizeInBits(); 754 const unsigned ASize = A->getType()->getPrimitiveSizeInBits(); 755 const unsigned CISize = CI.getType()->getPrimitiveSizeInBits(); 756 const unsigned MaxAmt = SExtSize - std::max(CISize, ASize); 757 unsigned ShiftAmt = Cst->getZExtValue(); 758 759 // This optimization can be only performed when zero bits generated by 760 // the original lshr aren't pulled into the value after truncation, so we 761 // can only shift by values no larger than the number of extension bits. 762 // FIXME: Instead of bailing when the shift is too large, use and to clear 763 // the extra bits. 764 if (ShiftAmt <= MaxAmt) { 765 if (CISize == ASize) 766 return BinaryOperator::CreateAShr(A, ConstantInt::get(CI.getType(), 767 std::min(ShiftAmt, ASize - 1))); 768 if (SExt->hasOneUse()) { 769 Value *Shift = Builder.CreateAShr(A, std::min(ShiftAmt, ASize - 1)); 770 Shift->takeName(Src); 771 return CastInst::CreateIntegerCast(Shift, CI.getType(), true); 772 } 773 } 774 } 775 776 if (Instruction *I = narrowBinOp(CI)) 777 return I; 778 779 if (Instruction *I = shrinkSplatShuffle(CI, Builder)) 780 return I; 781 782 if (Instruction *I = shrinkInsertElt(CI, Builder)) 783 return I; 784 785 if (Src->hasOneUse() && isa<IntegerType>(SrcTy) && 786 shouldChangeType(SrcTy, DestTy)) { 787 // Transform "trunc (shl X, cst)" -> "shl (trunc X), cst" so long as the 788 // dest type is native and cst < dest size. 789 if (match(Src, m_Shl(m_Value(A), m_ConstantInt(Cst))) && 790 !match(A, m_Shr(m_Value(), m_Constant()))) { 791 // Skip shifts of shift by constants. It undoes a combine in 792 // FoldShiftByConstant and is the extend in reg pattern. 793 const unsigned DestSize = DestTy->getScalarSizeInBits(); 794 if (Cst->getValue().ult(DestSize)) { 795 Value *NewTrunc = Builder.CreateTrunc(A, DestTy, A->getName() + ".tr"); 796 797 return BinaryOperator::Create( 798 Instruction::Shl, NewTrunc, 799 ConstantInt::get(DestTy, Cst->getValue().trunc(DestSize))); 800 } 801 } 802 } 803 804 if (Instruction *I = foldVecTruncToExtElt(CI, *this)) 805 return I; 806 807 return nullptr; 808 } 809 810 Instruction *InstCombiner::transformZExtICmp(ICmpInst *ICI, ZExtInst &CI, 811 bool DoTransform) { 812 // If we are just checking for a icmp eq of a single bit and zext'ing it 813 // to an integer, then shift the bit to the appropriate place and then 814 // cast to integer to avoid the comparison. 815 const APInt *Op1CV; 816 if (match(ICI->getOperand(1), m_APInt(Op1CV))) { 817 818 // zext (x <s 0) to i32 --> x>>u31 true if signbit set. 819 // zext (x >s -1) to i32 --> (x>>u31)^1 true if signbit clear. 820 if ((ICI->getPredicate() == ICmpInst::ICMP_SLT && Op1CV->isNullValue()) || 821 (ICI->getPredicate() == ICmpInst::ICMP_SGT && Op1CV->isAllOnesValue())) { 822 if (!DoTransform) return ICI; 823 824 Value *In = ICI->getOperand(0); 825 Value *Sh = ConstantInt::get(In->getType(), 826 In->getType()->getScalarSizeInBits() - 1); 827 In = Builder.CreateLShr(In, Sh, In->getName() + ".lobit"); 828 if (In->getType() != CI.getType()) 829 In = Builder.CreateIntCast(In, CI.getType(), false /*ZExt*/); 830 831 if (ICI->getPredicate() == ICmpInst::ICMP_SGT) { 832 Constant *One = ConstantInt::get(In->getType(), 1); 833 In = Builder.CreateXor(In, One, In->getName() + ".not"); 834 } 835 836 return replaceInstUsesWith(CI, In); 837 } 838 839 // zext (X == 0) to i32 --> X^1 iff X has only the low bit set. 840 // zext (X == 0) to i32 --> (X>>1)^1 iff X has only the 2nd bit set. 841 // zext (X == 1) to i32 --> X iff X has only the low bit set. 842 // zext (X == 2) to i32 --> X>>1 iff X has only the 2nd bit set. 843 // zext (X != 0) to i32 --> X iff X has only the low bit set. 844 // zext (X != 0) to i32 --> X>>1 iff X has only the 2nd bit set. 845 // zext (X != 1) to i32 --> X^1 iff X has only the low bit set. 846 // zext (X != 2) to i32 --> (X>>1)^1 iff X has only the 2nd bit set. 847 if ((Op1CV->isNullValue() || Op1CV->isPowerOf2()) && 848 // This only works for EQ and NE 849 ICI->isEquality()) { 850 // If Op1C some other power of two, convert: 851 KnownBits Known = computeKnownBits(ICI->getOperand(0), 0, &CI); 852 853 APInt KnownZeroMask(~Known.Zero); 854 if (KnownZeroMask.isPowerOf2()) { // Exactly 1 possible 1? 855 if (!DoTransform) return ICI; 856 857 bool isNE = ICI->getPredicate() == ICmpInst::ICMP_NE; 858 if (!Op1CV->isNullValue() && (*Op1CV != KnownZeroMask)) { 859 // (X&4) == 2 --> false 860 // (X&4) != 2 --> true 861 Constant *Res = ConstantInt::get(CI.getType(), isNE); 862 return replaceInstUsesWith(CI, Res); 863 } 864 865 uint32_t ShAmt = KnownZeroMask.logBase2(); 866 Value *In = ICI->getOperand(0); 867 if (ShAmt) { 868 // Perform a logical shr by shiftamt. 869 // Insert the shift to put the result in the low bit. 870 In = Builder.CreateLShr(In, ConstantInt::get(In->getType(), ShAmt), 871 In->getName() + ".lobit"); 872 } 873 874 if (!Op1CV->isNullValue() == isNE) { // Toggle the low bit. 875 Constant *One = ConstantInt::get(In->getType(), 1); 876 In = Builder.CreateXor(In, One); 877 } 878 879 if (CI.getType() == In->getType()) 880 return replaceInstUsesWith(CI, In); 881 882 Value *IntCast = Builder.CreateIntCast(In, CI.getType(), false); 883 return replaceInstUsesWith(CI, IntCast); 884 } 885 } 886 } 887 888 // icmp ne A, B is equal to xor A, B when A and B only really have one bit. 889 // It is also profitable to transform icmp eq into not(xor(A, B)) because that 890 // may lead to additional simplifications. 891 if (ICI->isEquality() && CI.getType() == ICI->getOperand(0)->getType()) { 892 if (IntegerType *ITy = dyn_cast<IntegerType>(CI.getType())) { 893 Value *LHS = ICI->getOperand(0); 894 Value *RHS = ICI->getOperand(1); 895 896 KnownBits KnownLHS = computeKnownBits(LHS, 0, &CI); 897 KnownBits KnownRHS = computeKnownBits(RHS, 0, &CI); 898 899 if (KnownLHS.Zero == KnownRHS.Zero && KnownLHS.One == KnownRHS.One) { 900 APInt KnownBits = KnownLHS.Zero | KnownLHS.One; 901 APInt UnknownBit = ~KnownBits; 902 if (UnknownBit.countPopulation() == 1) { 903 if (!DoTransform) return ICI; 904 905 Value *Result = Builder.CreateXor(LHS, RHS); 906 907 // Mask off any bits that are set and won't be shifted away. 908 if (KnownLHS.One.uge(UnknownBit)) 909 Result = Builder.CreateAnd(Result, 910 ConstantInt::get(ITy, UnknownBit)); 911 912 // Shift the bit we're testing down to the lsb. 913 Result = Builder.CreateLShr( 914 Result, ConstantInt::get(ITy, UnknownBit.countTrailingZeros())); 915 916 if (ICI->getPredicate() == ICmpInst::ICMP_EQ) 917 Result = Builder.CreateXor(Result, ConstantInt::get(ITy, 1)); 918 Result->takeName(ICI); 919 return replaceInstUsesWith(CI, Result); 920 } 921 } 922 } 923 } 924 925 return nullptr; 926 } 927 928 /// Determine if the specified value can be computed in the specified wider type 929 /// and produce the same low bits. If not, return false. 930 /// 931 /// If this function returns true, it can also return a non-zero number of bits 932 /// (in BitsToClear) which indicates that the value it computes is correct for 933 /// the zero extend, but that the additional BitsToClear bits need to be zero'd 934 /// out. For example, to promote something like: 935 /// 936 /// %B = trunc i64 %A to i32 937 /// %C = lshr i32 %B, 8 938 /// %E = zext i32 %C to i64 939 /// 940 /// CanEvaluateZExtd for the 'lshr' will return true, and BitsToClear will be 941 /// set to 8 to indicate that the promoted value needs to have bits 24-31 942 /// cleared in addition to bits 32-63. Since an 'and' will be generated to 943 /// clear the top bits anyway, doing this has no extra cost. 944 /// 945 /// This function works on both vectors and scalars. 946 static bool canEvaluateZExtd(Value *V, Type *Ty, unsigned &BitsToClear, 947 InstCombiner &IC, Instruction *CxtI) { 948 BitsToClear = 0; 949 if (canAlwaysEvaluateInType(V, Ty)) 950 return true; 951 if (canNotEvaluateInType(V, Ty)) 952 return false; 953 954 auto *I = cast<Instruction>(V); 955 unsigned Tmp; 956 switch (I->getOpcode()) { 957 case Instruction::ZExt: // zext(zext(x)) -> zext(x). 958 case Instruction::SExt: // zext(sext(x)) -> sext(x). 959 case Instruction::Trunc: // zext(trunc(x)) -> trunc(x) or zext(x) 960 return true; 961 case Instruction::And: 962 case Instruction::Or: 963 case Instruction::Xor: 964 case Instruction::Add: 965 case Instruction::Sub: 966 case Instruction::Mul: 967 if (!canEvaluateZExtd(I->getOperand(0), Ty, BitsToClear, IC, CxtI) || 968 !canEvaluateZExtd(I->getOperand(1), Ty, Tmp, IC, CxtI)) 969 return false; 970 // These can all be promoted if neither operand has 'bits to clear'. 971 if (BitsToClear == 0 && Tmp == 0) 972 return true; 973 974 // If the operation is an AND/OR/XOR and the bits to clear are zero in the 975 // other side, BitsToClear is ok. 976 if (Tmp == 0 && I->isBitwiseLogicOp()) { 977 // We use MaskedValueIsZero here for generality, but the case we care 978 // about the most is constant RHS. 979 unsigned VSize = V->getType()->getScalarSizeInBits(); 980 if (IC.MaskedValueIsZero(I->getOperand(1), 981 APInt::getHighBitsSet(VSize, BitsToClear), 982 0, CxtI)) { 983 // If this is an And instruction and all of the BitsToClear are 984 // known to be zero we can reset BitsToClear. 985 if (I->getOpcode() == Instruction::And) 986 BitsToClear = 0; 987 return true; 988 } 989 } 990 991 // Otherwise, we don't know how to analyze this BitsToClear case yet. 992 return false; 993 994 case Instruction::Shl: { 995 // We can promote shl(x, cst) if we can promote x. Since shl overwrites the 996 // upper bits we can reduce BitsToClear by the shift amount. 997 const APInt *Amt; 998 if (match(I->getOperand(1), m_APInt(Amt))) { 999 if (!canEvaluateZExtd(I->getOperand(0), Ty, BitsToClear, IC, CxtI)) 1000 return false; 1001 uint64_t ShiftAmt = Amt->getZExtValue(); 1002 BitsToClear = ShiftAmt < BitsToClear ? BitsToClear - ShiftAmt : 0; 1003 return true; 1004 } 1005 return false; 1006 } 1007 case Instruction::LShr: { 1008 // We can promote lshr(x, cst) if we can promote x. This requires the 1009 // ultimate 'and' to clear out the high zero bits we're clearing out though. 1010 const APInt *Amt; 1011 if (match(I->getOperand(1), m_APInt(Amt))) { 1012 if (!canEvaluateZExtd(I->getOperand(0), Ty, BitsToClear, IC, CxtI)) 1013 return false; 1014 BitsToClear += Amt->getZExtValue(); 1015 if (BitsToClear > V->getType()->getScalarSizeInBits()) 1016 BitsToClear = V->getType()->getScalarSizeInBits(); 1017 return true; 1018 } 1019 // Cannot promote variable LSHR. 1020 return false; 1021 } 1022 case Instruction::Select: 1023 if (!canEvaluateZExtd(I->getOperand(1), Ty, Tmp, IC, CxtI) || 1024 !canEvaluateZExtd(I->getOperand(2), Ty, BitsToClear, IC, CxtI) || 1025 // TODO: If important, we could handle the case when the BitsToClear are 1026 // known zero in the disagreeing side. 1027 Tmp != BitsToClear) 1028 return false; 1029 return true; 1030 1031 case Instruction::PHI: { 1032 // We can change a phi if we can change all operands. Note that we never 1033 // get into trouble with cyclic PHIs here because we only consider 1034 // instructions with a single use. 1035 PHINode *PN = cast<PHINode>(I); 1036 if (!canEvaluateZExtd(PN->getIncomingValue(0), Ty, BitsToClear, IC, CxtI)) 1037 return false; 1038 for (unsigned i = 1, e = PN->getNumIncomingValues(); i != e; ++i) 1039 if (!canEvaluateZExtd(PN->getIncomingValue(i), Ty, Tmp, IC, CxtI) || 1040 // TODO: If important, we could handle the case when the BitsToClear 1041 // are known zero in the disagreeing input. 1042 Tmp != BitsToClear) 1043 return false; 1044 return true; 1045 } 1046 default: 1047 // TODO: Can handle more cases here. 1048 return false; 1049 } 1050 } 1051 1052 Instruction *InstCombiner::visitZExt(ZExtInst &CI) { 1053 // If this zero extend is only used by a truncate, let the truncate be 1054 // eliminated before we try to optimize this zext. 1055 if (CI.hasOneUse() && isa<TruncInst>(CI.user_back())) 1056 return nullptr; 1057 1058 // If one of the common conversion will work, do it. 1059 if (Instruction *Result = commonCastTransforms(CI)) 1060 return Result; 1061 1062 Value *Src = CI.getOperand(0); 1063 Type *SrcTy = Src->getType(), *DestTy = CI.getType(); 1064 1065 // Attempt to extend the entire input expression tree to the destination 1066 // type. Only do this if the dest type is a simple type, don't convert the 1067 // expression tree to something weird like i93 unless the source is also 1068 // strange. 1069 unsigned BitsToClear; 1070 if ((DestTy->isVectorTy() || shouldChangeType(SrcTy, DestTy)) && 1071 canEvaluateZExtd(Src, DestTy, BitsToClear, *this, &CI)) { 1072 assert(BitsToClear <= SrcTy->getScalarSizeInBits() && 1073 "Can't clear more bits than in SrcTy"); 1074 1075 // Okay, we can transform this! Insert the new expression now. 1076 LLVM_DEBUG( 1077 dbgs() << "ICE: EvaluateInDifferentType converting expression type" 1078 " to avoid zero extend: " 1079 << CI << '\n'); 1080 Value *Res = EvaluateInDifferentType(Src, DestTy, false); 1081 assert(Res->getType() == DestTy); 1082 1083 uint32_t SrcBitsKept = SrcTy->getScalarSizeInBits()-BitsToClear; 1084 uint32_t DestBitSize = DestTy->getScalarSizeInBits(); 1085 1086 // If the high bits are already filled with zeros, just replace this 1087 // cast with the result. 1088 if (MaskedValueIsZero(Res, 1089 APInt::getHighBitsSet(DestBitSize, 1090 DestBitSize-SrcBitsKept), 1091 0, &CI)) 1092 return replaceInstUsesWith(CI, Res); 1093 1094 // We need to emit an AND to clear the high bits. 1095 Constant *C = ConstantInt::get(Res->getType(), 1096 APInt::getLowBitsSet(DestBitSize, SrcBitsKept)); 1097 return BinaryOperator::CreateAnd(Res, C); 1098 } 1099 1100 // If this is a TRUNC followed by a ZEXT then we are dealing with integral 1101 // types and if the sizes are just right we can convert this into a logical 1102 // 'and' which will be much cheaper than the pair of casts. 1103 if (TruncInst *CSrc = dyn_cast<TruncInst>(Src)) { // A->B->C cast 1104 // TODO: Subsume this into EvaluateInDifferentType. 1105 1106 // Get the sizes of the types involved. We know that the intermediate type 1107 // will be smaller than A or C, but don't know the relation between A and C. 1108 Value *A = CSrc->getOperand(0); 1109 unsigned SrcSize = A->getType()->getScalarSizeInBits(); 1110 unsigned MidSize = CSrc->getType()->getScalarSizeInBits(); 1111 unsigned DstSize = CI.getType()->getScalarSizeInBits(); 1112 // If we're actually extending zero bits, then if 1113 // SrcSize < DstSize: zext(a & mask) 1114 // SrcSize == DstSize: a & mask 1115 // SrcSize > DstSize: trunc(a) & mask 1116 if (SrcSize < DstSize) { 1117 APInt AndValue(APInt::getLowBitsSet(SrcSize, MidSize)); 1118 Constant *AndConst = ConstantInt::get(A->getType(), AndValue); 1119 Value *And = Builder.CreateAnd(A, AndConst, CSrc->getName() + ".mask"); 1120 return new ZExtInst(And, CI.getType()); 1121 } 1122 1123 if (SrcSize == DstSize) { 1124 APInt AndValue(APInt::getLowBitsSet(SrcSize, MidSize)); 1125 return BinaryOperator::CreateAnd(A, ConstantInt::get(A->getType(), 1126 AndValue)); 1127 } 1128 if (SrcSize > DstSize) { 1129 Value *Trunc = Builder.CreateTrunc(A, CI.getType()); 1130 APInt AndValue(APInt::getLowBitsSet(DstSize, MidSize)); 1131 return BinaryOperator::CreateAnd(Trunc, 1132 ConstantInt::get(Trunc->getType(), 1133 AndValue)); 1134 } 1135 } 1136 1137 if (ICmpInst *ICI = dyn_cast<ICmpInst>(Src)) 1138 return transformZExtICmp(ICI, CI); 1139 1140 BinaryOperator *SrcI = dyn_cast<BinaryOperator>(Src); 1141 if (SrcI && SrcI->getOpcode() == Instruction::Or) { 1142 // zext (or icmp, icmp) -> or (zext icmp), (zext icmp) if at least one 1143 // of the (zext icmp) can be eliminated. If so, immediately perform the 1144 // according elimination. 1145 ICmpInst *LHS = dyn_cast<ICmpInst>(SrcI->getOperand(0)); 1146 ICmpInst *RHS = dyn_cast<ICmpInst>(SrcI->getOperand(1)); 1147 if (LHS && RHS && LHS->hasOneUse() && RHS->hasOneUse() && 1148 (transformZExtICmp(LHS, CI, false) || 1149 transformZExtICmp(RHS, CI, false))) { 1150 // zext (or icmp, icmp) -> or (zext icmp), (zext icmp) 1151 Value *LCast = Builder.CreateZExt(LHS, CI.getType(), LHS->getName()); 1152 Value *RCast = Builder.CreateZExt(RHS, CI.getType(), RHS->getName()); 1153 BinaryOperator *Or = BinaryOperator::Create(Instruction::Or, LCast, RCast); 1154 1155 // Perform the elimination. 1156 if (auto *LZExt = dyn_cast<ZExtInst>(LCast)) 1157 transformZExtICmp(LHS, *LZExt); 1158 if (auto *RZExt = dyn_cast<ZExtInst>(RCast)) 1159 transformZExtICmp(RHS, *RZExt); 1160 1161 return Or; 1162 } 1163 } 1164 1165 // zext(trunc(X) & C) -> (X & zext(C)). 1166 Constant *C; 1167 Value *X; 1168 if (SrcI && 1169 match(SrcI, m_OneUse(m_And(m_Trunc(m_Value(X)), m_Constant(C)))) && 1170 X->getType() == CI.getType()) 1171 return BinaryOperator::CreateAnd(X, ConstantExpr::getZExt(C, CI.getType())); 1172 1173 // zext((trunc(X) & C) ^ C) -> ((X & zext(C)) ^ zext(C)). 1174 Value *And; 1175 if (SrcI && match(SrcI, m_OneUse(m_Xor(m_Value(And), m_Constant(C)))) && 1176 match(And, m_OneUse(m_And(m_Trunc(m_Value(X)), m_Specific(C)))) && 1177 X->getType() == CI.getType()) { 1178 Constant *ZC = ConstantExpr::getZExt(C, CI.getType()); 1179 return BinaryOperator::CreateXor(Builder.CreateAnd(X, ZC), ZC); 1180 } 1181 1182 return nullptr; 1183 } 1184 1185 /// Transform (sext icmp) to bitwise / integer operations to eliminate the icmp. 1186 Instruction *InstCombiner::transformSExtICmp(ICmpInst *ICI, Instruction &CI) { 1187 Value *Op0 = ICI->getOperand(0), *Op1 = ICI->getOperand(1); 1188 ICmpInst::Predicate Pred = ICI->getPredicate(); 1189 1190 // Don't bother if Op1 isn't of vector or integer type. 1191 if (!Op1->getType()->isIntOrIntVectorTy()) 1192 return nullptr; 1193 1194 if ((Pred == ICmpInst::ICMP_SLT && match(Op1, m_ZeroInt())) || 1195 (Pred == ICmpInst::ICMP_SGT && match(Op1, m_AllOnes()))) { 1196 // (x <s 0) ? -1 : 0 -> ashr x, 31 -> all ones if negative 1197 // (x >s -1) ? -1 : 0 -> not (ashr x, 31) -> all ones if positive 1198 Value *Sh = ConstantInt::get(Op0->getType(), 1199 Op0->getType()->getScalarSizeInBits() - 1); 1200 Value *In = Builder.CreateAShr(Op0, Sh, Op0->getName() + ".lobit"); 1201 if (In->getType() != CI.getType()) 1202 In = Builder.CreateIntCast(In, CI.getType(), true /*SExt*/); 1203 1204 if (Pred == ICmpInst::ICMP_SGT) 1205 In = Builder.CreateNot(In, In->getName() + ".not"); 1206 return replaceInstUsesWith(CI, In); 1207 } 1208 1209 if (ConstantInt *Op1C = dyn_cast<ConstantInt>(Op1)) { 1210 // If we know that only one bit of the LHS of the icmp can be set and we 1211 // have an equality comparison with zero or a power of 2, we can transform 1212 // the icmp and sext into bitwise/integer operations. 1213 if (ICI->hasOneUse() && 1214 ICI->isEquality() && (Op1C->isZero() || Op1C->getValue().isPowerOf2())){ 1215 KnownBits Known = computeKnownBits(Op0, 0, &CI); 1216 1217 APInt KnownZeroMask(~Known.Zero); 1218 if (KnownZeroMask.isPowerOf2()) { 1219 Value *In = ICI->getOperand(0); 1220 1221 // If the icmp tests for a known zero bit we can constant fold it. 1222 if (!Op1C->isZero() && Op1C->getValue() != KnownZeroMask) { 1223 Value *V = Pred == ICmpInst::ICMP_NE ? 1224 ConstantInt::getAllOnesValue(CI.getType()) : 1225 ConstantInt::getNullValue(CI.getType()); 1226 return replaceInstUsesWith(CI, V); 1227 } 1228 1229 if (!Op1C->isZero() == (Pred == ICmpInst::ICMP_NE)) { 1230 // sext ((x & 2^n) == 0) -> (x >> n) - 1 1231 // sext ((x & 2^n) != 2^n) -> (x >> n) - 1 1232 unsigned ShiftAmt = KnownZeroMask.countTrailingZeros(); 1233 // Perform a right shift to place the desired bit in the LSB. 1234 if (ShiftAmt) 1235 In = Builder.CreateLShr(In, 1236 ConstantInt::get(In->getType(), ShiftAmt)); 1237 1238 // At this point "In" is either 1 or 0. Subtract 1 to turn 1239 // {1, 0} -> {0, -1}. 1240 In = Builder.CreateAdd(In, 1241 ConstantInt::getAllOnesValue(In->getType()), 1242 "sext"); 1243 } else { 1244 // sext ((x & 2^n) != 0) -> (x << bitwidth-n) a>> bitwidth-1 1245 // sext ((x & 2^n) == 2^n) -> (x << bitwidth-n) a>> bitwidth-1 1246 unsigned ShiftAmt = KnownZeroMask.countLeadingZeros(); 1247 // Perform a left shift to place the desired bit in the MSB. 1248 if (ShiftAmt) 1249 In = Builder.CreateShl(In, 1250 ConstantInt::get(In->getType(), ShiftAmt)); 1251 1252 // Distribute the bit over the whole bit width. 1253 In = Builder.CreateAShr(In, ConstantInt::get(In->getType(), 1254 KnownZeroMask.getBitWidth() - 1), "sext"); 1255 } 1256 1257 if (CI.getType() == In->getType()) 1258 return replaceInstUsesWith(CI, In); 1259 return CastInst::CreateIntegerCast(In, CI.getType(), true/*SExt*/); 1260 } 1261 } 1262 } 1263 1264 return nullptr; 1265 } 1266 1267 /// Return true if we can take the specified value and return it as type Ty 1268 /// without inserting any new casts and without changing the value of the common 1269 /// low bits. This is used by code that tries to promote integer operations to 1270 /// a wider types will allow us to eliminate the extension. 1271 /// 1272 /// This function works on both vectors and scalars. 1273 /// 1274 static bool canEvaluateSExtd(Value *V, Type *Ty) { 1275 assert(V->getType()->getScalarSizeInBits() < Ty->getScalarSizeInBits() && 1276 "Can't sign extend type to a smaller type"); 1277 if (canAlwaysEvaluateInType(V, Ty)) 1278 return true; 1279 if (canNotEvaluateInType(V, Ty)) 1280 return false; 1281 1282 auto *I = cast<Instruction>(V); 1283 switch (I->getOpcode()) { 1284 case Instruction::SExt: // sext(sext(x)) -> sext(x) 1285 case Instruction::ZExt: // sext(zext(x)) -> zext(x) 1286 case Instruction::Trunc: // sext(trunc(x)) -> trunc(x) or sext(x) 1287 return true; 1288 case Instruction::And: 1289 case Instruction::Or: 1290 case Instruction::Xor: 1291 case Instruction::Add: 1292 case Instruction::Sub: 1293 case Instruction::Mul: 1294 // These operators can all arbitrarily be extended if their inputs can. 1295 return canEvaluateSExtd(I->getOperand(0), Ty) && 1296 canEvaluateSExtd(I->getOperand(1), Ty); 1297 1298 //case Instruction::Shl: TODO 1299 //case Instruction::LShr: TODO 1300 1301 case Instruction::Select: 1302 return canEvaluateSExtd(I->getOperand(1), Ty) && 1303 canEvaluateSExtd(I->getOperand(2), Ty); 1304 1305 case Instruction::PHI: { 1306 // We can change a phi if we can change all operands. Note that we never 1307 // get into trouble with cyclic PHIs here because we only consider 1308 // instructions with a single use. 1309 PHINode *PN = cast<PHINode>(I); 1310 for (Value *IncValue : PN->incoming_values()) 1311 if (!canEvaluateSExtd(IncValue, Ty)) return false; 1312 return true; 1313 } 1314 default: 1315 // TODO: Can handle more cases here. 1316 break; 1317 } 1318 1319 return false; 1320 } 1321 1322 Instruction *InstCombiner::visitSExt(SExtInst &CI) { 1323 // If this sign extend is only used by a truncate, let the truncate be 1324 // eliminated before we try to optimize this sext. 1325 if (CI.hasOneUse() && isa<TruncInst>(CI.user_back())) 1326 return nullptr; 1327 1328 if (Instruction *I = commonCastTransforms(CI)) 1329 return I; 1330 1331 Value *Src = CI.getOperand(0); 1332 Type *SrcTy = Src->getType(), *DestTy = CI.getType(); 1333 1334 // If we know that the value being extended is positive, we can use a zext 1335 // instead. 1336 KnownBits Known = computeKnownBits(Src, 0, &CI); 1337 if (Known.isNonNegative()) { 1338 Value *ZExt = Builder.CreateZExt(Src, DestTy); 1339 return replaceInstUsesWith(CI, ZExt); 1340 } 1341 1342 // Attempt to extend the entire input expression tree to the destination 1343 // type. Only do this if the dest type is a simple type, don't convert the 1344 // expression tree to something weird like i93 unless the source is also 1345 // strange. 1346 if ((DestTy->isVectorTy() || shouldChangeType(SrcTy, DestTy)) && 1347 canEvaluateSExtd(Src, DestTy)) { 1348 // Okay, we can transform this! Insert the new expression now. 1349 LLVM_DEBUG( 1350 dbgs() << "ICE: EvaluateInDifferentType converting expression type" 1351 " to avoid sign extend: " 1352 << CI << '\n'); 1353 Value *Res = EvaluateInDifferentType(Src, DestTy, true); 1354 assert(Res->getType() == DestTy); 1355 1356 uint32_t SrcBitSize = SrcTy->getScalarSizeInBits(); 1357 uint32_t DestBitSize = DestTy->getScalarSizeInBits(); 1358 1359 // If the high bits are already filled with sign bit, just replace this 1360 // cast with the result. 1361 if (ComputeNumSignBits(Res, 0, &CI) > DestBitSize - SrcBitSize) 1362 return replaceInstUsesWith(CI, Res); 1363 1364 // We need to emit a shl + ashr to do the sign extend. 1365 Value *ShAmt = ConstantInt::get(DestTy, DestBitSize-SrcBitSize); 1366 return BinaryOperator::CreateAShr(Builder.CreateShl(Res, ShAmt, "sext"), 1367 ShAmt); 1368 } 1369 1370 // If the input is a trunc from the destination type, then turn sext(trunc(x)) 1371 // into shifts. 1372 Value *X; 1373 if (match(Src, m_OneUse(m_Trunc(m_Value(X)))) && X->getType() == DestTy) { 1374 // sext(trunc(X)) --> ashr(shl(X, C), C) 1375 unsigned SrcBitSize = SrcTy->getScalarSizeInBits(); 1376 unsigned DestBitSize = DestTy->getScalarSizeInBits(); 1377 Constant *ShAmt = ConstantInt::get(DestTy, DestBitSize - SrcBitSize); 1378 return BinaryOperator::CreateAShr(Builder.CreateShl(X, ShAmt), ShAmt); 1379 } 1380 1381 if (ICmpInst *ICI = dyn_cast<ICmpInst>(Src)) 1382 return transformSExtICmp(ICI, CI); 1383 1384 // If the input is a shl/ashr pair of a same constant, then this is a sign 1385 // extension from a smaller value. If we could trust arbitrary bitwidth 1386 // integers, we could turn this into a truncate to the smaller bit and then 1387 // use a sext for the whole extension. Since we don't, look deeper and check 1388 // for a truncate. If the source and dest are the same type, eliminate the 1389 // trunc and extend and just do shifts. For example, turn: 1390 // %a = trunc i32 %i to i8 1391 // %b = shl i8 %a, 6 1392 // %c = ashr i8 %b, 6 1393 // %d = sext i8 %c to i32 1394 // into: 1395 // %a = shl i32 %i, 30 1396 // %d = ashr i32 %a, 30 1397 Value *A = nullptr; 1398 // TODO: Eventually this could be subsumed by EvaluateInDifferentType. 1399 ConstantInt *BA = nullptr, *CA = nullptr; 1400 if (match(Src, m_AShr(m_Shl(m_Trunc(m_Value(A)), m_ConstantInt(BA)), 1401 m_ConstantInt(CA))) && 1402 BA == CA && A->getType() == CI.getType()) { 1403 unsigned MidSize = Src->getType()->getScalarSizeInBits(); 1404 unsigned SrcDstSize = CI.getType()->getScalarSizeInBits(); 1405 unsigned ShAmt = CA->getZExtValue()+SrcDstSize-MidSize; 1406 Constant *ShAmtV = ConstantInt::get(CI.getType(), ShAmt); 1407 A = Builder.CreateShl(A, ShAmtV, CI.getName()); 1408 return BinaryOperator::CreateAShr(A, ShAmtV); 1409 } 1410 1411 return nullptr; 1412 } 1413 1414 1415 /// Return a Constant* for the specified floating-point constant if it fits 1416 /// in the specified FP type without changing its value. 1417 static bool fitsInFPType(ConstantFP *CFP, const fltSemantics &Sem) { 1418 bool losesInfo; 1419 APFloat F = CFP->getValueAPF(); 1420 (void)F.convert(Sem, APFloat::rmNearestTiesToEven, &losesInfo); 1421 return !losesInfo; 1422 } 1423 1424 static Type *shrinkFPConstant(ConstantFP *CFP) { 1425 if (CFP->getType() == Type::getPPC_FP128Ty(CFP->getContext())) 1426 return nullptr; // No constant folding of this. 1427 // See if the value can be truncated to half and then reextended. 1428 if (fitsInFPType(CFP, APFloat::IEEEhalf())) 1429 return Type::getHalfTy(CFP->getContext()); 1430 // See if the value can be truncated to float and then reextended. 1431 if (fitsInFPType(CFP, APFloat::IEEEsingle())) 1432 return Type::getFloatTy(CFP->getContext()); 1433 if (CFP->getType()->isDoubleTy()) 1434 return nullptr; // Won't shrink. 1435 if (fitsInFPType(CFP, APFloat::IEEEdouble())) 1436 return Type::getDoubleTy(CFP->getContext()); 1437 // Don't try to shrink to various long double types. 1438 return nullptr; 1439 } 1440 1441 // Determine if this is a vector of ConstantFPs and if so, return the minimal 1442 // type we can safely truncate all elements to. 1443 // TODO: Make these support undef elements. 1444 static Type *shrinkFPConstantVector(Value *V) { 1445 auto *CV = dyn_cast<Constant>(V); 1446 if (!CV || !CV->getType()->isVectorTy()) 1447 return nullptr; 1448 1449 Type *MinType = nullptr; 1450 1451 unsigned NumElts = CV->getType()->getVectorNumElements(); 1452 for (unsigned i = 0; i != NumElts; ++i) { 1453 auto *CFP = dyn_cast_or_null<ConstantFP>(CV->getAggregateElement(i)); 1454 if (!CFP) 1455 return nullptr; 1456 1457 Type *T = shrinkFPConstant(CFP); 1458 if (!T) 1459 return nullptr; 1460 1461 // If we haven't found a type yet or this type has a larger mantissa than 1462 // our previous type, this is our new minimal type. 1463 if (!MinType || T->getFPMantissaWidth() > MinType->getFPMantissaWidth()) 1464 MinType = T; 1465 } 1466 1467 // Make a vector type from the minimal type. 1468 return VectorType::get(MinType, NumElts); 1469 } 1470 1471 /// Find the minimum FP type we can safely truncate to. 1472 static Type *getMinimumFPType(Value *V) { 1473 if (auto *FPExt = dyn_cast<FPExtInst>(V)) 1474 return FPExt->getOperand(0)->getType(); 1475 1476 // If this value is a constant, return the constant in the smallest FP type 1477 // that can accurately represent it. This allows us to turn 1478 // (float)((double)X+2.0) into x+2.0f. 1479 if (auto *CFP = dyn_cast<ConstantFP>(V)) 1480 if (Type *T = shrinkFPConstant(CFP)) 1481 return T; 1482 1483 // Try to shrink a vector of FP constants. 1484 if (Type *T = shrinkFPConstantVector(V)) 1485 return T; 1486 1487 return V->getType(); 1488 } 1489 1490 Instruction *InstCombiner::visitFPTrunc(FPTruncInst &FPT) { 1491 if (Instruction *I = commonCastTransforms(FPT)) 1492 return I; 1493 1494 // If we have fptrunc(OpI (fpextend x), (fpextend y)), we would like to 1495 // simplify this expression to avoid one or more of the trunc/extend 1496 // operations if we can do so without changing the numerical results. 1497 // 1498 // The exact manner in which the widths of the operands interact to limit 1499 // what we can and cannot do safely varies from operation to operation, and 1500 // is explained below in the various case statements. 1501 Type *Ty = FPT.getType(); 1502 BinaryOperator *OpI = dyn_cast<BinaryOperator>(FPT.getOperand(0)); 1503 if (OpI && OpI->hasOneUse()) { 1504 Type *LHSMinType = getMinimumFPType(OpI->getOperand(0)); 1505 Type *RHSMinType = getMinimumFPType(OpI->getOperand(1)); 1506 unsigned OpWidth = OpI->getType()->getFPMantissaWidth(); 1507 unsigned LHSWidth = LHSMinType->getFPMantissaWidth(); 1508 unsigned RHSWidth = RHSMinType->getFPMantissaWidth(); 1509 unsigned SrcWidth = std::max(LHSWidth, RHSWidth); 1510 unsigned DstWidth = Ty->getFPMantissaWidth(); 1511 switch (OpI->getOpcode()) { 1512 default: break; 1513 case Instruction::FAdd: 1514 case Instruction::FSub: 1515 // For addition and subtraction, the infinitely precise result can 1516 // essentially be arbitrarily wide; proving that double rounding 1517 // will not occur because the result of OpI is exact (as we will for 1518 // FMul, for example) is hopeless. However, we *can* nonetheless 1519 // frequently know that double rounding cannot occur (or that it is 1520 // innocuous) by taking advantage of the specific structure of 1521 // infinitely-precise results that admit double rounding. 1522 // 1523 // Specifically, if OpWidth >= 2*DstWdith+1 and DstWidth is sufficient 1524 // to represent both sources, we can guarantee that the double 1525 // rounding is innocuous (See p50 of Figueroa's 2000 PhD thesis, 1526 // "A Rigorous Framework for Fully Supporting the IEEE Standard ..." 1527 // for proof of this fact). 1528 // 1529 // Note: Figueroa does not consider the case where DstFormat != 1530 // SrcFormat. It's possible (likely even!) that this analysis 1531 // could be tightened for those cases, but they are rare (the main 1532 // case of interest here is (float)((double)float + float)). 1533 if (OpWidth >= 2*DstWidth+1 && DstWidth >= SrcWidth) { 1534 Value *LHS = Builder.CreateFPTrunc(OpI->getOperand(0), Ty); 1535 Value *RHS = Builder.CreateFPTrunc(OpI->getOperand(1), Ty); 1536 Instruction *RI = BinaryOperator::Create(OpI->getOpcode(), LHS, RHS); 1537 RI->copyFastMathFlags(OpI); 1538 return RI; 1539 } 1540 break; 1541 case Instruction::FMul: 1542 // For multiplication, the infinitely precise result has at most 1543 // LHSWidth + RHSWidth significant bits; if OpWidth is sufficient 1544 // that such a value can be exactly represented, then no double 1545 // rounding can possibly occur; we can safely perform the operation 1546 // in the destination format if it can represent both sources. 1547 if (OpWidth >= LHSWidth + RHSWidth && DstWidth >= SrcWidth) { 1548 Value *LHS = Builder.CreateFPTrunc(OpI->getOperand(0), Ty); 1549 Value *RHS = Builder.CreateFPTrunc(OpI->getOperand(1), Ty); 1550 return BinaryOperator::CreateFMulFMF(LHS, RHS, OpI); 1551 } 1552 break; 1553 case Instruction::FDiv: 1554 // For division, we use again use the bound from Figueroa's 1555 // dissertation. I am entirely certain that this bound can be 1556 // tightened in the unbalanced operand case by an analysis based on 1557 // the diophantine rational approximation bound, but the well-known 1558 // condition used here is a good conservative first pass. 1559 // TODO: Tighten bound via rigorous analysis of the unbalanced case. 1560 if (OpWidth >= 2*DstWidth && DstWidth >= SrcWidth) { 1561 Value *LHS = Builder.CreateFPTrunc(OpI->getOperand(0), Ty); 1562 Value *RHS = Builder.CreateFPTrunc(OpI->getOperand(1), Ty); 1563 return BinaryOperator::CreateFDivFMF(LHS, RHS, OpI); 1564 } 1565 break; 1566 case Instruction::FRem: { 1567 // Remainder is straightforward. Remainder is always exact, so the 1568 // type of OpI doesn't enter into things at all. We simply evaluate 1569 // in whichever source type is larger, then convert to the 1570 // destination type. 1571 if (SrcWidth == OpWidth) 1572 break; 1573 Value *LHS, *RHS; 1574 if (LHSWidth == SrcWidth) { 1575 LHS = Builder.CreateFPTrunc(OpI->getOperand(0), LHSMinType); 1576 RHS = Builder.CreateFPTrunc(OpI->getOperand(1), LHSMinType); 1577 } else { 1578 LHS = Builder.CreateFPTrunc(OpI->getOperand(0), RHSMinType); 1579 RHS = Builder.CreateFPTrunc(OpI->getOperand(1), RHSMinType); 1580 } 1581 1582 Value *ExactResult = Builder.CreateFRemFMF(LHS, RHS, OpI); 1583 return CastInst::CreateFPCast(ExactResult, Ty); 1584 } 1585 } 1586 1587 // (fptrunc (fneg x)) -> (fneg (fptrunc x)) 1588 if (BinaryOperator::isFNeg(OpI)) { 1589 Value *InnerTrunc = Builder.CreateFPTrunc(OpI->getOperand(1), Ty); 1590 return BinaryOperator::CreateFNegFMF(InnerTrunc, OpI); 1591 } 1592 } 1593 1594 if (auto *II = dyn_cast<IntrinsicInst>(FPT.getOperand(0))) { 1595 switch (II->getIntrinsicID()) { 1596 default: break; 1597 case Intrinsic::ceil: 1598 case Intrinsic::fabs: 1599 case Intrinsic::floor: 1600 case Intrinsic::nearbyint: 1601 case Intrinsic::rint: 1602 case Intrinsic::round: 1603 case Intrinsic::trunc: { 1604 Value *Src = II->getArgOperand(0); 1605 if (!Src->hasOneUse()) 1606 break; 1607 1608 // Except for fabs, this transformation requires the input of the unary FP 1609 // operation to be itself an fpext from the type to which we're 1610 // truncating. 1611 if (II->getIntrinsicID() != Intrinsic::fabs) { 1612 FPExtInst *FPExtSrc = dyn_cast<FPExtInst>(Src); 1613 if (!FPExtSrc || FPExtSrc->getSrcTy() != Ty) 1614 break; 1615 } 1616 1617 // Do unary FP operation on smaller type. 1618 // (fptrunc (fabs x)) -> (fabs (fptrunc x)) 1619 Value *InnerTrunc = Builder.CreateFPTrunc(Src, Ty); 1620 Function *Overload = Intrinsic::getDeclaration(FPT.getModule(), 1621 II->getIntrinsicID(), Ty); 1622 SmallVector<OperandBundleDef, 1> OpBundles; 1623 II->getOperandBundlesAsDefs(OpBundles); 1624 CallInst *NewCI = CallInst::Create(Overload, { InnerTrunc }, OpBundles, 1625 II->getName()); 1626 NewCI->copyFastMathFlags(II); 1627 return NewCI; 1628 } 1629 } 1630 } 1631 1632 if (Instruction *I = shrinkInsertElt(FPT, Builder)) 1633 return I; 1634 1635 return nullptr; 1636 } 1637 1638 Instruction *InstCombiner::visitFPExt(CastInst &CI) { 1639 return commonCastTransforms(CI); 1640 } 1641 1642 // fpto{s/u}i({u/s}itofp(X)) --> X or zext(X) or sext(X) or trunc(X) 1643 // This is safe if the intermediate type has enough bits in its mantissa to 1644 // accurately represent all values of X. For example, this won't work with 1645 // i64 -> float -> i64. 1646 Instruction *InstCombiner::FoldItoFPtoI(Instruction &FI) { 1647 if (!isa<UIToFPInst>(FI.getOperand(0)) && !isa<SIToFPInst>(FI.getOperand(0))) 1648 return nullptr; 1649 Instruction *OpI = cast<Instruction>(FI.getOperand(0)); 1650 1651 Value *SrcI = OpI->getOperand(0); 1652 Type *FITy = FI.getType(); 1653 Type *OpITy = OpI->getType(); 1654 Type *SrcTy = SrcI->getType(); 1655 bool IsInputSigned = isa<SIToFPInst>(OpI); 1656 bool IsOutputSigned = isa<FPToSIInst>(FI); 1657 1658 // We can safely assume the conversion won't overflow the output range, 1659 // because (for example) (uint8_t)18293.f is undefined behavior. 1660 1661 // Since we can assume the conversion won't overflow, our decision as to 1662 // whether the input will fit in the float should depend on the minimum 1663 // of the input range and output range. 1664 1665 // This means this is also safe for a signed input and unsigned output, since 1666 // a negative input would lead to undefined behavior. 1667 int InputSize = (int)SrcTy->getScalarSizeInBits() - IsInputSigned; 1668 int OutputSize = (int)FITy->getScalarSizeInBits() - IsOutputSigned; 1669 int ActualSize = std::min(InputSize, OutputSize); 1670 1671 if (ActualSize <= OpITy->getFPMantissaWidth()) { 1672 if (FITy->getScalarSizeInBits() > SrcTy->getScalarSizeInBits()) { 1673 if (IsInputSigned && IsOutputSigned) 1674 return new SExtInst(SrcI, FITy); 1675 return new ZExtInst(SrcI, FITy); 1676 } 1677 if (FITy->getScalarSizeInBits() < SrcTy->getScalarSizeInBits()) 1678 return new TruncInst(SrcI, FITy); 1679 if (SrcTy == FITy) 1680 return replaceInstUsesWith(FI, SrcI); 1681 return new BitCastInst(SrcI, FITy); 1682 } 1683 return nullptr; 1684 } 1685 1686 Instruction *InstCombiner::visitFPToUI(FPToUIInst &FI) { 1687 Instruction *OpI = dyn_cast<Instruction>(FI.getOperand(0)); 1688 if (!OpI) 1689 return commonCastTransforms(FI); 1690 1691 if (Instruction *I = FoldItoFPtoI(FI)) 1692 return I; 1693 1694 return commonCastTransforms(FI); 1695 } 1696 1697 Instruction *InstCombiner::visitFPToSI(FPToSIInst &FI) { 1698 Instruction *OpI = dyn_cast<Instruction>(FI.getOperand(0)); 1699 if (!OpI) 1700 return commonCastTransforms(FI); 1701 1702 if (Instruction *I = FoldItoFPtoI(FI)) 1703 return I; 1704 1705 return commonCastTransforms(FI); 1706 } 1707 1708 Instruction *InstCombiner::visitUIToFP(CastInst &CI) { 1709 return commonCastTransforms(CI); 1710 } 1711 1712 Instruction *InstCombiner::visitSIToFP(CastInst &CI) { 1713 return commonCastTransforms(CI); 1714 } 1715 1716 Instruction *InstCombiner::visitIntToPtr(IntToPtrInst &CI) { 1717 // If the source integer type is not the intptr_t type for this target, do a 1718 // trunc or zext to the intptr_t type, then inttoptr of it. This allows the 1719 // cast to be exposed to other transforms. 1720 unsigned AS = CI.getAddressSpace(); 1721 if (CI.getOperand(0)->getType()->getScalarSizeInBits() != 1722 DL.getPointerSizeInBits(AS)) { 1723 Type *Ty = DL.getIntPtrType(CI.getContext(), AS); 1724 if (CI.getType()->isVectorTy()) // Handle vectors of pointers. 1725 Ty = VectorType::get(Ty, CI.getType()->getVectorNumElements()); 1726 1727 Value *P = Builder.CreateZExtOrTrunc(CI.getOperand(0), Ty); 1728 return new IntToPtrInst(P, CI.getType()); 1729 } 1730 1731 if (Instruction *I = commonCastTransforms(CI)) 1732 return I; 1733 1734 return nullptr; 1735 } 1736 1737 /// Implement the transforms for cast of pointer (bitcast/ptrtoint) 1738 Instruction *InstCombiner::commonPointerCastTransforms(CastInst &CI) { 1739 Value *Src = CI.getOperand(0); 1740 1741 if (GetElementPtrInst *GEP = dyn_cast<GetElementPtrInst>(Src)) { 1742 // If casting the result of a getelementptr instruction with no offset, turn 1743 // this into a cast of the original pointer! 1744 if (GEP->hasAllZeroIndices() && 1745 // If CI is an addrspacecast and GEP changes the poiner type, merging 1746 // GEP into CI would undo canonicalizing addrspacecast with different 1747 // pointer types, causing infinite loops. 1748 (!isa<AddrSpaceCastInst>(CI) || 1749 GEP->getType() == GEP->getPointerOperandType())) { 1750 // Changing the cast operand is usually not a good idea but it is safe 1751 // here because the pointer operand is being replaced with another 1752 // pointer operand so the opcode doesn't need to change. 1753 Worklist.Add(GEP); 1754 CI.setOperand(0, GEP->getOperand(0)); 1755 return &CI; 1756 } 1757 } 1758 1759 return commonCastTransforms(CI); 1760 } 1761 1762 Instruction *InstCombiner::visitPtrToInt(PtrToIntInst &CI) { 1763 // If the destination integer type is not the intptr_t type for this target, 1764 // do a ptrtoint to intptr_t then do a trunc or zext. This allows the cast 1765 // to be exposed to other transforms. 1766 1767 Type *Ty = CI.getType(); 1768 unsigned AS = CI.getPointerAddressSpace(); 1769 1770 if (Ty->getScalarSizeInBits() == DL.getIndexSizeInBits(AS)) 1771 return commonPointerCastTransforms(CI); 1772 1773 Type *PtrTy = DL.getIntPtrType(CI.getContext(), AS); 1774 if (Ty->isVectorTy()) // Handle vectors of pointers. 1775 PtrTy = VectorType::get(PtrTy, Ty->getVectorNumElements()); 1776 1777 Value *P = Builder.CreatePtrToInt(CI.getOperand(0), PtrTy); 1778 return CastInst::CreateIntegerCast(P, Ty, /*isSigned=*/false); 1779 } 1780 1781 /// This input value (which is known to have vector type) is being zero extended 1782 /// or truncated to the specified vector type. 1783 /// Try to replace it with a shuffle (and vector/vector bitcast) if possible. 1784 /// 1785 /// The source and destination vector types may have different element types. 1786 static Instruction *optimizeVectorResize(Value *InVal, VectorType *DestTy, 1787 InstCombiner &IC) { 1788 // We can only do this optimization if the output is a multiple of the input 1789 // element size, or the input is a multiple of the output element size. 1790 // Convert the input type to have the same element type as the output. 1791 VectorType *SrcTy = cast<VectorType>(InVal->getType()); 1792 1793 if (SrcTy->getElementType() != DestTy->getElementType()) { 1794 // The input types don't need to be identical, but for now they must be the 1795 // same size. There is no specific reason we couldn't handle things like 1796 // <4 x i16> -> <4 x i32> by bitcasting to <2 x i32> but haven't gotten 1797 // there yet. 1798 if (SrcTy->getElementType()->getPrimitiveSizeInBits() != 1799 DestTy->getElementType()->getPrimitiveSizeInBits()) 1800 return nullptr; 1801 1802 SrcTy = VectorType::get(DestTy->getElementType(), SrcTy->getNumElements()); 1803 InVal = IC.Builder.CreateBitCast(InVal, SrcTy); 1804 } 1805 1806 // Now that the element types match, get the shuffle mask and RHS of the 1807 // shuffle to use, which depends on whether we're increasing or decreasing the 1808 // size of the input. 1809 SmallVector<uint32_t, 16> ShuffleMask; 1810 Value *V2; 1811 1812 if (SrcTy->getNumElements() > DestTy->getNumElements()) { 1813 // If we're shrinking the number of elements, just shuffle in the low 1814 // elements from the input and use undef as the second shuffle input. 1815 V2 = UndefValue::get(SrcTy); 1816 for (unsigned i = 0, e = DestTy->getNumElements(); i != e; ++i) 1817 ShuffleMask.push_back(i); 1818 1819 } else { 1820 // If we're increasing the number of elements, shuffle in all of the 1821 // elements from InVal and fill the rest of the result elements with zeros 1822 // from a constant zero. 1823 V2 = Constant::getNullValue(SrcTy); 1824 unsigned SrcElts = SrcTy->getNumElements(); 1825 for (unsigned i = 0, e = SrcElts; i != e; ++i) 1826 ShuffleMask.push_back(i); 1827 1828 // The excess elements reference the first element of the zero input. 1829 for (unsigned i = 0, e = DestTy->getNumElements()-SrcElts; i != e; ++i) 1830 ShuffleMask.push_back(SrcElts); 1831 } 1832 1833 return new ShuffleVectorInst(InVal, V2, 1834 ConstantDataVector::get(V2->getContext(), 1835 ShuffleMask)); 1836 } 1837 1838 static bool isMultipleOfTypeSize(unsigned Value, Type *Ty) { 1839 return Value % Ty->getPrimitiveSizeInBits() == 0; 1840 } 1841 1842 static unsigned getTypeSizeIndex(unsigned Value, Type *Ty) { 1843 return Value / Ty->getPrimitiveSizeInBits(); 1844 } 1845 1846 /// V is a value which is inserted into a vector of VecEltTy. 1847 /// Look through the value to see if we can decompose it into 1848 /// insertions into the vector. See the example in the comment for 1849 /// OptimizeIntegerToVectorInsertions for the pattern this handles. 1850 /// The type of V is always a non-zero multiple of VecEltTy's size. 1851 /// Shift is the number of bits between the lsb of V and the lsb of 1852 /// the vector. 1853 /// 1854 /// This returns false if the pattern can't be matched or true if it can, 1855 /// filling in Elements with the elements found here. 1856 static bool collectInsertionElements(Value *V, unsigned Shift, 1857 SmallVectorImpl<Value *> &Elements, 1858 Type *VecEltTy, bool isBigEndian) { 1859 assert(isMultipleOfTypeSize(Shift, VecEltTy) && 1860 "Shift should be a multiple of the element type size"); 1861 1862 // Undef values never contribute useful bits to the result. 1863 if (isa<UndefValue>(V)) return true; 1864 1865 // If we got down to a value of the right type, we win, try inserting into the 1866 // right element. 1867 if (V->getType() == VecEltTy) { 1868 // Inserting null doesn't actually insert any elements. 1869 if (Constant *C = dyn_cast<Constant>(V)) 1870 if (C->isNullValue()) 1871 return true; 1872 1873 unsigned ElementIndex = getTypeSizeIndex(Shift, VecEltTy); 1874 if (isBigEndian) 1875 ElementIndex = Elements.size() - ElementIndex - 1; 1876 1877 // Fail if multiple elements are inserted into this slot. 1878 if (Elements[ElementIndex]) 1879 return false; 1880 1881 Elements[ElementIndex] = V; 1882 return true; 1883 } 1884 1885 if (Constant *C = dyn_cast<Constant>(V)) { 1886 // Figure out the # elements this provides, and bitcast it or slice it up 1887 // as required. 1888 unsigned NumElts = getTypeSizeIndex(C->getType()->getPrimitiveSizeInBits(), 1889 VecEltTy); 1890 // If the constant is the size of a vector element, we just need to bitcast 1891 // it to the right type so it gets properly inserted. 1892 if (NumElts == 1) 1893 return collectInsertionElements(ConstantExpr::getBitCast(C, VecEltTy), 1894 Shift, Elements, VecEltTy, isBigEndian); 1895 1896 // Okay, this is a constant that covers multiple elements. Slice it up into 1897 // pieces and insert each element-sized piece into the vector. 1898 if (!isa<IntegerType>(C->getType())) 1899 C = ConstantExpr::getBitCast(C, IntegerType::get(V->getContext(), 1900 C->getType()->getPrimitiveSizeInBits())); 1901 unsigned ElementSize = VecEltTy->getPrimitiveSizeInBits(); 1902 Type *ElementIntTy = IntegerType::get(C->getContext(), ElementSize); 1903 1904 for (unsigned i = 0; i != NumElts; ++i) { 1905 unsigned ShiftI = Shift+i*ElementSize; 1906 Constant *Piece = ConstantExpr::getLShr(C, ConstantInt::get(C->getType(), 1907 ShiftI)); 1908 Piece = ConstantExpr::getTrunc(Piece, ElementIntTy); 1909 if (!collectInsertionElements(Piece, ShiftI, Elements, VecEltTy, 1910 isBigEndian)) 1911 return false; 1912 } 1913 return true; 1914 } 1915 1916 if (!V->hasOneUse()) return false; 1917 1918 Instruction *I = dyn_cast<Instruction>(V); 1919 if (!I) return false; 1920 switch (I->getOpcode()) { 1921 default: return false; // Unhandled case. 1922 case Instruction::BitCast: 1923 return collectInsertionElements(I->getOperand(0), Shift, Elements, VecEltTy, 1924 isBigEndian); 1925 case Instruction::ZExt: 1926 if (!isMultipleOfTypeSize( 1927 I->getOperand(0)->getType()->getPrimitiveSizeInBits(), 1928 VecEltTy)) 1929 return false; 1930 return collectInsertionElements(I->getOperand(0), Shift, Elements, VecEltTy, 1931 isBigEndian); 1932 case Instruction::Or: 1933 return collectInsertionElements(I->getOperand(0), Shift, Elements, VecEltTy, 1934 isBigEndian) && 1935 collectInsertionElements(I->getOperand(1), Shift, Elements, VecEltTy, 1936 isBigEndian); 1937 case Instruction::Shl: { 1938 // Must be shifting by a constant that is a multiple of the element size. 1939 ConstantInt *CI = dyn_cast<ConstantInt>(I->getOperand(1)); 1940 if (!CI) return false; 1941 Shift += CI->getZExtValue(); 1942 if (!isMultipleOfTypeSize(Shift, VecEltTy)) return false; 1943 return collectInsertionElements(I->getOperand(0), Shift, Elements, VecEltTy, 1944 isBigEndian); 1945 } 1946 1947 } 1948 } 1949 1950 1951 /// If the input is an 'or' instruction, we may be doing shifts and ors to 1952 /// assemble the elements of the vector manually. 1953 /// Try to rip the code out and replace it with insertelements. This is to 1954 /// optimize code like this: 1955 /// 1956 /// %tmp37 = bitcast float %inc to i32 1957 /// %tmp38 = zext i32 %tmp37 to i64 1958 /// %tmp31 = bitcast float %inc5 to i32 1959 /// %tmp32 = zext i32 %tmp31 to i64 1960 /// %tmp33 = shl i64 %tmp32, 32 1961 /// %ins35 = or i64 %tmp33, %tmp38 1962 /// %tmp43 = bitcast i64 %ins35 to <2 x float> 1963 /// 1964 /// Into two insertelements that do "buildvector{%inc, %inc5}". 1965 static Value *optimizeIntegerToVectorInsertions(BitCastInst &CI, 1966 InstCombiner &IC) { 1967 VectorType *DestVecTy = cast<VectorType>(CI.getType()); 1968 Value *IntInput = CI.getOperand(0); 1969 1970 SmallVector<Value*, 8> Elements(DestVecTy->getNumElements()); 1971 if (!collectInsertionElements(IntInput, 0, Elements, 1972 DestVecTy->getElementType(), 1973 IC.getDataLayout().isBigEndian())) 1974 return nullptr; 1975 1976 // If we succeeded, we know that all of the element are specified by Elements 1977 // or are zero if Elements has a null entry. Recast this as a set of 1978 // insertions. 1979 Value *Result = Constant::getNullValue(CI.getType()); 1980 for (unsigned i = 0, e = Elements.size(); i != e; ++i) { 1981 if (!Elements[i]) continue; // Unset element. 1982 1983 Result = IC.Builder.CreateInsertElement(Result, Elements[i], 1984 IC.Builder.getInt32(i)); 1985 } 1986 1987 return Result; 1988 } 1989 1990 /// Canonicalize scalar bitcasts of extracted elements into a bitcast of the 1991 /// vector followed by extract element. The backend tends to handle bitcasts of 1992 /// vectors better than bitcasts of scalars because vector registers are 1993 /// usually not type-specific like scalar integer or scalar floating-point. 1994 static Instruction *canonicalizeBitCastExtElt(BitCastInst &BitCast, 1995 InstCombiner &IC) { 1996 // TODO: Create and use a pattern matcher for ExtractElementInst. 1997 auto *ExtElt = dyn_cast<ExtractElementInst>(BitCast.getOperand(0)); 1998 if (!ExtElt || !ExtElt->hasOneUse()) 1999 return nullptr; 2000 2001 // The bitcast must be to a vectorizable type, otherwise we can't make a new 2002 // type to extract from. 2003 Type *DestType = BitCast.getType(); 2004 if (!VectorType::isValidElementType(DestType)) 2005 return nullptr; 2006 2007 unsigned NumElts = ExtElt->getVectorOperandType()->getNumElements(); 2008 auto *NewVecType = VectorType::get(DestType, NumElts); 2009 auto *NewBC = IC.Builder.CreateBitCast(ExtElt->getVectorOperand(), 2010 NewVecType, "bc"); 2011 return ExtractElementInst::Create(NewBC, ExtElt->getIndexOperand()); 2012 } 2013 2014 /// Change the type of a bitwise logic operation if we can eliminate a bitcast. 2015 static Instruction *foldBitCastBitwiseLogic(BitCastInst &BitCast, 2016 InstCombiner::BuilderTy &Builder) { 2017 Type *DestTy = BitCast.getType(); 2018 BinaryOperator *BO; 2019 if (!DestTy->isIntOrIntVectorTy() || 2020 !match(BitCast.getOperand(0), m_OneUse(m_BinOp(BO))) || 2021 !BO->isBitwiseLogicOp()) 2022 return nullptr; 2023 2024 // FIXME: This transform is restricted to vector types to avoid backend 2025 // problems caused by creating potentially illegal operations. If a fix-up is 2026 // added to handle that situation, we can remove this check. 2027 if (!DestTy->isVectorTy() || !BO->getType()->isVectorTy()) 2028 return nullptr; 2029 2030 Value *X; 2031 if (match(BO->getOperand(0), m_OneUse(m_BitCast(m_Value(X)))) && 2032 X->getType() == DestTy && !isa<Constant>(X)) { 2033 // bitcast(logic(bitcast(X), Y)) --> logic'(X, bitcast(Y)) 2034 Value *CastedOp1 = Builder.CreateBitCast(BO->getOperand(1), DestTy); 2035 return BinaryOperator::Create(BO->getOpcode(), X, CastedOp1); 2036 } 2037 2038 if (match(BO->getOperand(1), m_OneUse(m_BitCast(m_Value(X)))) && 2039 X->getType() == DestTy && !isa<Constant>(X)) { 2040 // bitcast(logic(Y, bitcast(X))) --> logic'(bitcast(Y), X) 2041 Value *CastedOp0 = Builder.CreateBitCast(BO->getOperand(0), DestTy); 2042 return BinaryOperator::Create(BO->getOpcode(), CastedOp0, X); 2043 } 2044 2045 // Canonicalize vector bitcasts to come before vector bitwise logic with a 2046 // constant. This eases recognition of special constants for later ops. 2047 // Example: 2048 // icmp u/s (a ^ signmask), (b ^ signmask) --> icmp s/u a, b 2049 Constant *C; 2050 if (match(BO->getOperand(1), m_Constant(C))) { 2051 // bitcast (logic X, C) --> logic (bitcast X, C') 2052 Value *CastedOp0 = Builder.CreateBitCast(BO->getOperand(0), DestTy); 2053 Value *CastedC = ConstantExpr::getBitCast(C, DestTy); 2054 return BinaryOperator::Create(BO->getOpcode(), CastedOp0, CastedC); 2055 } 2056 2057 return nullptr; 2058 } 2059 2060 /// Change the type of a select if we can eliminate a bitcast. 2061 static Instruction *foldBitCastSelect(BitCastInst &BitCast, 2062 InstCombiner::BuilderTy &Builder) { 2063 Value *Cond, *TVal, *FVal; 2064 if (!match(BitCast.getOperand(0), 2065 m_OneUse(m_Select(m_Value(Cond), m_Value(TVal), m_Value(FVal))))) 2066 return nullptr; 2067 2068 // A vector select must maintain the same number of elements in its operands. 2069 Type *CondTy = Cond->getType(); 2070 Type *DestTy = BitCast.getType(); 2071 if (CondTy->isVectorTy()) { 2072 if (!DestTy->isVectorTy()) 2073 return nullptr; 2074 if (DestTy->getVectorNumElements() != CondTy->getVectorNumElements()) 2075 return nullptr; 2076 } 2077 2078 // FIXME: This transform is restricted from changing the select between 2079 // scalars and vectors to avoid backend problems caused by creating 2080 // potentially illegal operations. If a fix-up is added to handle that 2081 // situation, we can remove this check. 2082 if (DestTy->isVectorTy() != TVal->getType()->isVectorTy()) 2083 return nullptr; 2084 2085 auto *Sel = cast<Instruction>(BitCast.getOperand(0)); 2086 Value *X; 2087 if (match(TVal, m_OneUse(m_BitCast(m_Value(X)))) && X->getType() == DestTy && 2088 !isa<Constant>(X)) { 2089 // bitcast(select(Cond, bitcast(X), Y)) --> select'(Cond, X, bitcast(Y)) 2090 Value *CastedVal = Builder.CreateBitCast(FVal, DestTy); 2091 return SelectInst::Create(Cond, X, CastedVal, "", nullptr, Sel); 2092 } 2093 2094 if (match(FVal, m_OneUse(m_BitCast(m_Value(X)))) && X->getType() == DestTy && 2095 !isa<Constant>(X)) { 2096 // bitcast(select(Cond, Y, bitcast(X))) --> select'(Cond, bitcast(Y), X) 2097 Value *CastedVal = Builder.CreateBitCast(TVal, DestTy); 2098 return SelectInst::Create(Cond, CastedVal, X, "", nullptr, Sel); 2099 } 2100 2101 return nullptr; 2102 } 2103 2104 /// Check if all users of CI are StoreInsts. 2105 static bool hasStoreUsersOnly(CastInst &CI) { 2106 for (User *U : CI.users()) { 2107 if (!isa<StoreInst>(U)) 2108 return false; 2109 } 2110 return true; 2111 } 2112 2113 /// This function handles following case 2114 /// 2115 /// A -> B cast 2116 /// PHI 2117 /// B -> A cast 2118 /// 2119 /// All the related PHI nodes can be replaced by new PHI nodes with type A. 2120 /// The uses of \p CI can be changed to the new PHI node corresponding to \p PN. 2121 Instruction *InstCombiner::optimizeBitCastFromPhi(CastInst &CI, PHINode *PN) { 2122 // BitCast used by Store can be handled in InstCombineLoadStoreAlloca.cpp. 2123 if (hasStoreUsersOnly(CI)) 2124 return nullptr; 2125 2126 Value *Src = CI.getOperand(0); 2127 Type *SrcTy = Src->getType(); // Type B 2128 Type *DestTy = CI.getType(); // Type A 2129 2130 SmallVector<PHINode *, 4> PhiWorklist; 2131 SmallSetVector<PHINode *, 4> OldPhiNodes; 2132 2133 // Find all of the A->B casts and PHI nodes. 2134 // We need to inpect all related PHI nodes, but PHIs can be cyclic, so 2135 // OldPhiNodes is used to track all known PHI nodes, before adding a new 2136 // PHI to PhiWorklist, it is checked against and added to OldPhiNodes first. 2137 PhiWorklist.push_back(PN); 2138 OldPhiNodes.insert(PN); 2139 while (!PhiWorklist.empty()) { 2140 auto *OldPN = PhiWorklist.pop_back_val(); 2141 for (Value *IncValue : OldPN->incoming_values()) { 2142 if (isa<Constant>(IncValue)) 2143 continue; 2144 2145 if (auto *LI = dyn_cast<LoadInst>(IncValue)) { 2146 // If there is a sequence of one or more load instructions, each loaded 2147 // value is used as address of later load instruction, bitcast is 2148 // necessary to change the value type, don't optimize it. For 2149 // simplicity we give up if the load address comes from another load. 2150 Value *Addr = LI->getOperand(0); 2151 if (Addr == &CI || isa<LoadInst>(Addr)) 2152 return nullptr; 2153 if (LI->hasOneUse() && LI->isSimple()) 2154 continue; 2155 // If a LoadInst has more than one use, changing the type of loaded 2156 // value may create another bitcast. 2157 return nullptr; 2158 } 2159 2160 if (auto *PNode = dyn_cast<PHINode>(IncValue)) { 2161 if (OldPhiNodes.insert(PNode)) 2162 PhiWorklist.push_back(PNode); 2163 continue; 2164 } 2165 2166 auto *BCI = dyn_cast<BitCastInst>(IncValue); 2167 // We can't handle other instructions. 2168 if (!BCI) 2169 return nullptr; 2170 2171 // Verify it's a A->B cast. 2172 Type *TyA = BCI->getOperand(0)->getType(); 2173 Type *TyB = BCI->getType(); 2174 if (TyA != DestTy || TyB != SrcTy) 2175 return nullptr; 2176 } 2177 } 2178 2179 // For each old PHI node, create a corresponding new PHI node with a type A. 2180 SmallDenseMap<PHINode *, PHINode *> NewPNodes; 2181 for (auto *OldPN : OldPhiNodes) { 2182 Builder.SetInsertPoint(OldPN); 2183 PHINode *NewPN = Builder.CreatePHI(DestTy, OldPN->getNumOperands()); 2184 NewPNodes[OldPN] = NewPN; 2185 } 2186 2187 // Fill in the operands of new PHI nodes. 2188 for (auto *OldPN : OldPhiNodes) { 2189 PHINode *NewPN = NewPNodes[OldPN]; 2190 for (unsigned j = 0, e = OldPN->getNumOperands(); j != e; ++j) { 2191 Value *V = OldPN->getOperand(j); 2192 Value *NewV = nullptr; 2193 if (auto *C = dyn_cast<Constant>(V)) { 2194 NewV = ConstantExpr::getBitCast(C, DestTy); 2195 } else if (auto *LI = dyn_cast<LoadInst>(V)) { 2196 Builder.SetInsertPoint(LI->getNextNode()); 2197 NewV = Builder.CreateBitCast(LI, DestTy); 2198 Worklist.Add(LI); 2199 } else if (auto *BCI = dyn_cast<BitCastInst>(V)) { 2200 NewV = BCI->getOperand(0); 2201 } else if (auto *PrevPN = dyn_cast<PHINode>(V)) { 2202 NewV = NewPNodes[PrevPN]; 2203 } 2204 assert(NewV); 2205 NewPN->addIncoming(NewV, OldPN->getIncomingBlock(j)); 2206 } 2207 } 2208 2209 // If there is a store with type B, change it to type A. 2210 for (User *U : PN->users()) { 2211 auto *SI = dyn_cast<StoreInst>(U); 2212 if (SI && SI->isSimple() && SI->getOperand(0) == PN) { 2213 Builder.SetInsertPoint(SI); 2214 auto *NewBC = 2215 cast<BitCastInst>(Builder.CreateBitCast(NewPNodes[PN], SrcTy)); 2216 SI->setOperand(0, NewBC); 2217 Worklist.Add(SI); 2218 assert(hasStoreUsersOnly(*NewBC)); 2219 } 2220 } 2221 2222 return replaceInstUsesWith(CI, NewPNodes[PN]); 2223 } 2224 2225 Instruction *InstCombiner::visitBitCast(BitCastInst &CI) { 2226 // If the operands are integer typed then apply the integer transforms, 2227 // otherwise just apply the common ones. 2228 Value *Src = CI.getOperand(0); 2229 Type *SrcTy = Src->getType(); 2230 Type *DestTy = CI.getType(); 2231 2232 // Get rid of casts from one type to the same type. These are useless and can 2233 // be replaced by the operand. 2234 if (DestTy == Src->getType()) 2235 return replaceInstUsesWith(CI, Src); 2236 2237 if (PointerType *DstPTy = dyn_cast<PointerType>(DestTy)) { 2238 PointerType *SrcPTy = cast<PointerType>(SrcTy); 2239 Type *DstElTy = DstPTy->getElementType(); 2240 Type *SrcElTy = SrcPTy->getElementType(); 2241 2242 // If we are casting a alloca to a pointer to a type of the same 2243 // size, rewrite the allocation instruction to allocate the "right" type. 2244 // There is no need to modify malloc calls because it is their bitcast that 2245 // needs to be cleaned up. 2246 if (AllocaInst *AI = dyn_cast<AllocaInst>(Src)) 2247 if (Instruction *V = PromoteCastOfAllocation(CI, *AI)) 2248 return V; 2249 2250 // When the type pointed to is not sized the cast cannot be 2251 // turned into a gep. 2252 Type *PointeeType = 2253 cast<PointerType>(Src->getType()->getScalarType())->getElementType(); 2254 if (!PointeeType->isSized()) 2255 return nullptr; 2256 2257 // If the source and destination are pointers, and this cast is equivalent 2258 // to a getelementptr X, 0, 0, 0... turn it into the appropriate gep. 2259 // This can enhance SROA and other transforms that want type-safe pointers. 2260 unsigned NumZeros = 0; 2261 while (SrcElTy != DstElTy && 2262 isa<CompositeType>(SrcElTy) && !SrcElTy->isPointerTy() && 2263 SrcElTy->getNumContainedTypes() /* not "{}" */) { 2264 SrcElTy = cast<CompositeType>(SrcElTy)->getTypeAtIndex(0U); 2265 ++NumZeros; 2266 } 2267 2268 // If we found a path from the src to dest, create the getelementptr now. 2269 if (SrcElTy == DstElTy) { 2270 SmallVector<Value *, 8> Idxs(NumZeros + 1, Builder.getInt32(0)); 2271 return GetElementPtrInst::CreateInBounds(Src, Idxs); 2272 } 2273 } 2274 2275 if (VectorType *DestVTy = dyn_cast<VectorType>(DestTy)) { 2276 if (DestVTy->getNumElements() == 1 && !SrcTy->isVectorTy()) { 2277 Value *Elem = Builder.CreateBitCast(Src, DestVTy->getElementType()); 2278 return InsertElementInst::Create(UndefValue::get(DestTy), Elem, 2279 Constant::getNullValue(Type::getInt32Ty(CI.getContext()))); 2280 // FIXME: Canonicalize bitcast(insertelement) -> insertelement(bitcast) 2281 } 2282 2283 if (isa<IntegerType>(SrcTy)) { 2284 // If this is a cast from an integer to vector, check to see if the input 2285 // is a trunc or zext of a bitcast from vector. If so, we can replace all 2286 // the casts with a shuffle and (potentially) a bitcast. 2287 if (isa<TruncInst>(Src) || isa<ZExtInst>(Src)) { 2288 CastInst *SrcCast = cast<CastInst>(Src); 2289 if (BitCastInst *BCIn = dyn_cast<BitCastInst>(SrcCast->getOperand(0))) 2290 if (isa<VectorType>(BCIn->getOperand(0)->getType())) 2291 if (Instruction *I = optimizeVectorResize(BCIn->getOperand(0), 2292 cast<VectorType>(DestTy), *this)) 2293 return I; 2294 } 2295 2296 // If the input is an 'or' instruction, we may be doing shifts and ors to 2297 // assemble the elements of the vector manually. Try to rip the code out 2298 // and replace it with insertelements. 2299 if (Value *V = optimizeIntegerToVectorInsertions(CI, *this)) 2300 return replaceInstUsesWith(CI, V); 2301 } 2302 } 2303 2304 if (VectorType *SrcVTy = dyn_cast<VectorType>(SrcTy)) { 2305 if (SrcVTy->getNumElements() == 1) { 2306 // If our destination is not a vector, then make this a straight 2307 // scalar-scalar cast. 2308 if (!DestTy->isVectorTy()) { 2309 Value *Elem = 2310 Builder.CreateExtractElement(Src, 2311 Constant::getNullValue(Type::getInt32Ty(CI.getContext()))); 2312 return CastInst::Create(Instruction::BitCast, Elem, DestTy); 2313 } 2314 2315 // Otherwise, see if our source is an insert. If so, then use the scalar 2316 // component directly. 2317 if (InsertElementInst *IEI = 2318 dyn_cast<InsertElementInst>(CI.getOperand(0))) 2319 return CastInst::Create(Instruction::BitCast, IEI->getOperand(1), 2320 DestTy); 2321 } 2322 } 2323 2324 if (ShuffleVectorInst *SVI = dyn_cast<ShuffleVectorInst>(Src)) { 2325 // Okay, we have (bitcast (shuffle ..)). Check to see if this is 2326 // a bitcast to a vector with the same # elts. 2327 if (SVI->hasOneUse() && DestTy->isVectorTy() && 2328 DestTy->getVectorNumElements() == SVI->getType()->getNumElements() && 2329 SVI->getType()->getNumElements() == 2330 SVI->getOperand(0)->getType()->getVectorNumElements()) { 2331 BitCastInst *Tmp; 2332 // If either of the operands is a cast from CI.getType(), then 2333 // evaluating the shuffle in the casted destination's type will allow 2334 // us to eliminate at least one cast. 2335 if (((Tmp = dyn_cast<BitCastInst>(SVI->getOperand(0))) && 2336 Tmp->getOperand(0)->getType() == DestTy) || 2337 ((Tmp = dyn_cast<BitCastInst>(SVI->getOperand(1))) && 2338 Tmp->getOperand(0)->getType() == DestTy)) { 2339 Value *LHS = Builder.CreateBitCast(SVI->getOperand(0), DestTy); 2340 Value *RHS = Builder.CreateBitCast(SVI->getOperand(1), DestTy); 2341 // Return a new shuffle vector. Use the same element ID's, as we 2342 // know the vector types match #elts. 2343 return new ShuffleVectorInst(LHS, RHS, SVI->getOperand(2)); 2344 } 2345 } 2346 } 2347 2348 // Handle the A->B->A cast, and there is an intervening PHI node. 2349 if (PHINode *PN = dyn_cast<PHINode>(Src)) 2350 if (Instruction *I = optimizeBitCastFromPhi(CI, PN)) 2351 return I; 2352 2353 if (Instruction *I = canonicalizeBitCastExtElt(CI, *this)) 2354 return I; 2355 2356 if (Instruction *I = foldBitCastBitwiseLogic(CI, Builder)) 2357 return I; 2358 2359 if (Instruction *I = foldBitCastSelect(CI, Builder)) 2360 return I; 2361 2362 if (SrcTy->isPointerTy()) 2363 return commonPointerCastTransforms(CI); 2364 return commonCastTransforms(CI); 2365 } 2366 2367 Instruction *InstCombiner::visitAddrSpaceCast(AddrSpaceCastInst &CI) { 2368 // If the destination pointer element type is not the same as the source's 2369 // first do a bitcast to the destination type, and then the addrspacecast. 2370 // This allows the cast to be exposed to other transforms. 2371 Value *Src = CI.getOperand(0); 2372 PointerType *SrcTy = cast<PointerType>(Src->getType()->getScalarType()); 2373 PointerType *DestTy = cast<PointerType>(CI.getType()->getScalarType()); 2374 2375 Type *DestElemTy = DestTy->getElementType(); 2376 if (SrcTy->getElementType() != DestElemTy) { 2377 Type *MidTy = PointerType::get(DestElemTy, SrcTy->getAddressSpace()); 2378 if (VectorType *VT = dyn_cast<VectorType>(CI.getType())) { 2379 // Handle vectors of pointers. 2380 MidTy = VectorType::get(MidTy, VT->getNumElements()); 2381 } 2382 2383 Value *NewBitCast = Builder.CreateBitCast(Src, MidTy); 2384 return new AddrSpaceCastInst(NewBitCast, CI.getType()); 2385 } 2386 2387 return commonPointerCastTransforms(CI); 2388 } 2389