1 //===-- ConstantFolding.cpp - Fold instructions into constants ------------===// 2 // 3 // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions. 4 // See https://llvm.org/LICENSE.txt for license information. 5 // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception 6 // 7 //===----------------------------------------------------------------------===// 8 // 9 // This file defines routines for folding instructions into constants. 10 // 11 // Also, to supplement the basic IR ConstantExpr simplifications, 12 // this file defines some additional folding routines that can make use of 13 // DataLayout information. These functions cannot go in IR due to library 14 // dependency issues. 15 // 16 //===----------------------------------------------------------------------===// 17 18 #include "llvm/Analysis/ConstantFolding.h" 19 #include "llvm/ADT/APFloat.h" 20 #include "llvm/ADT/APInt.h" 21 #include "llvm/ADT/APSInt.h" 22 #include "llvm/ADT/ArrayRef.h" 23 #include "llvm/ADT/DenseMap.h" 24 #include "llvm/ADT/STLExtras.h" 25 #include "llvm/ADT/SmallVector.h" 26 #include "llvm/ADT/StringRef.h" 27 #include "llvm/Analysis/TargetFolder.h" 28 #include "llvm/Analysis/TargetLibraryInfo.h" 29 #include "llvm/Analysis/ValueTracking.h" 30 #include "llvm/Analysis/VectorUtils.h" 31 #include "llvm/Config/config.h" 32 #include "llvm/IR/Constant.h" 33 #include "llvm/IR/Constants.h" 34 #include "llvm/IR/DataLayout.h" 35 #include "llvm/IR/DerivedTypes.h" 36 #include "llvm/IR/Function.h" 37 #include "llvm/IR/GlobalValue.h" 38 #include "llvm/IR/GlobalVariable.h" 39 #include "llvm/IR/InstrTypes.h" 40 #include "llvm/IR/Instruction.h" 41 #include "llvm/IR/Instructions.h" 42 #include "llvm/IR/IntrinsicInst.h" 43 #include "llvm/IR/Intrinsics.h" 44 #include "llvm/IR/IntrinsicsAArch64.h" 45 #include "llvm/IR/IntrinsicsAMDGPU.h" 46 #include "llvm/IR/IntrinsicsARM.h" 47 #include "llvm/IR/IntrinsicsWebAssembly.h" 48 #include "llvm/IR/IntrinsicsX86.h" 49 #include "llvm/IR/Operator.h" 50 #include "llvm/IR/Type.h" 51 #include "llvm/IR/Value.h" 52 #include "llvm/Support/Casting.h" 53 #include "llvm/Support/ErrorHandling.h" 54 #include "llvm/Support/KnownBits.h" 55 #include "llvm/Support/MathExtras.h" 56 #include <cassert> 57 #include <cerrno> 58 #include <cfenv> 59 #include <cmath> 60 #include <cstddef> 61 #include <cstdint> 62 63 using namespace llvm; 64 65 namespace { 66 Constant *SymbolicallyEvaluateGEP(const GEPOperator *GEP, 67 ArrayRef<Constant *> Ops, 68 const DataLayout &DL, 69 const TargetLibraryInfo *TLI, 70 bool ForLoadOperand); 71 72 //===----------------------------------------------------------------------===// 73 // Constant Folding internal helper functions 74 //===----------------------------------------------------------------------===// 75 76 static Constant *foldConstVectorToAPInt(APInt &Result, Type *DestTy, 77 Constant *C, Type *SrcEltTy, 78 unsigned NumSrcElts, 79 const DataLayout &DL) { 80 // Now that we know that the input value is a vector of integers, just shift 81 // and insert them into our result. 82 unsigned BitShift = DL.getTypeSizeInBits(SrcEltTy); 83 for (unsigned i = 0; i != NumSrcElts; ++i) { 84 Constant *Element; 85 if (DL.isLittleEndian()) 86 Element = C->getAggregateElement(NumSrcElts - i - 1); 87 else 88 Element = C->getAggregateElement(i); 89 90 if (Element && isa<UndefValue>(Element)) { 91 Result <<= BitShift; 92 continue; 93 } 94 95 auto *ElementCI = dyn_cast_or_null<ConstantInt>(Element); 96 if (!ElementCI) 97 return ConstantExpr::getBitCast(C, DestTy); 98 99 Result <<= BitShift; 100 Result |= ElementCI->getValue().zextOrSelf(Result.getBitWidth()); 101 } 102 103 return nullptr; 104 } 105 106 /// Constant fold bitcast, symbolically evaluating it with DataLayout. 107 /// This always returns a non-null constant, but it may be a 108 /// ConstantExpr if unfoldable. 109 Constant *FoldBitCast(Constant *C, Type *DestTy, const DataLayout &DL) { 110 assert(CastInst::castIsValid(Instruction::BitCast, C, DestTy) && 111 "Invalid constantexpr bitcast!"); 112 113 // Catch the obvious splat cases. 114 if (C->isNullValue() && !DestTy->isX86_MMXTy() && !DestTy->isX86_AMXTy()) 115 return Constant::getNullValue(DestTy); 116 if (C->isAllOnesValue() && !DestTy->isX86_MMXTy() && !DestTy->isX86_AMXTy() && 117 !DestTy->isPtrOrPtrVectorTy()) // Don't get ones for ptr types! 118 return Constant::getAllOnesValue(DestTy); 119 120 if (auto *VTy = dyn_cast<VectorType>(C->getType())) { 121 // Handle a vector->scalar integer/fp cast. 122 if (isa<IntegerType>(DestTy) || DestTy->isFloatingPointTy()) { 123 unsigned NumSrcElts = cast<FixedVectorType>(VTy)->getNumElements(); 124 Type *SrcEltTy = VTy->getElementType(); 125 126 // If the vector is a vector of floating point, convert it to vector of int 127 // to simplify things. 128 if (SrcEltTy->isFloatingPointTy()) { 129 unsigned FPWidth = SrcEltTy->getPrimitiveSizeInBits(); 130 auto *SrcIVTy = FixedVectorType::get( 131 IntegerType::get(C->getContext(), FPWidth), NumSrcElts); 132 // Ask IR to do the conversion now that #elts line up. 133 C = ConstantExpr::getBitCast(C, SrcIVTy); 134 } 135 136 APInt Result(DL.getTypeSizeInBits(DestTy), 0); 137 if (Constant *CE = foldConstVectorToAPInt(Result, DestTy, C, 138 SrcEltTy, NumSrcElts, DL)) 139 return CE; 140 141 if (isa<IntegerType>(DestTy)) 142 return ConstantInt::get(DestTy, Result); 143 144 APFloat FP(DestTy->getFltSemantics(), Result); 145 return ConstantFP::get(DestTy->getContext(), FP); 146 } 147 } 148 149 // The code below only handles casts to vectors currently. 150 auto *DestVTy = dyn_cast<VectorType>(DestTy); 151 if (!DestVTy) 152 return ConstantExpr::getBitCast(C, DestTy); 153 154 // If this is a scalar -> vector cast, convert the input into a <1 x scalar> 155 // vector so the code below can handle it uniformly. 156 if (isa<ConstantFP>(C) || isa<ConstantInt>(C)) { 157 Constant *Ops = C; // don't take the address of C! 158 return FoldBitCast(ConstantVector::get(Ops), DestTy, DL); 159 } 160 161 // If this is a bitcast from constant vector -> vector, fold it. 162 if (!isa<ConstantDataVector>(C) && !isa<ConstantVector>(C)) 163 return ConstantExpr::getBitCast(C, DestTy); 164 165 // If the element types match, IR can fold it. 166 unsigned NumDstElt = cast<FixedVectorType>(DestVTy)->getNumElements(); 167 unsigned NumSrcElt = cast<FixedVectorType>(C->getType())->getNumElements(); 168 if (NumDstElt == NumSrcElt) 169 return ConstantExpr::getBitCast(C, DestTy); 170 171 Type *SrcEltTy = cast<VectorType>(C->getType())->getElementType(); 172 Type *DstEltTy = DestVTy->getElementType(); 173 174 // Otherwise, we're changing the number of elements in a vector, which 175 // requires endianness information to do the right thing. For example, 176 // bitcast (<2 x i64> <i64 0, i64 1> to <4 x i32>) 177 // folds to (little endian): 178 // <4 x i32> <i32 0, i32 0, i32 1, i32 0> 179 // and to (big endian): 180 // <4 x i32> <i32 0, i32 0, i32 0, i32 1> 181 182 // First thing is first. We only want to think about integer here, so if 183 // we have something in FP form, recast it as integer. 184 if (DstEltTy->isFloatingPointTy()) { 185 // Fold to an vector of integers with same size as our FP type. 186 unsigned FPWidth = DstEltTy->getPrimitiveSizeInBits(); 187 auto *DestIVTy = FixedVectorType::get( 188 IntegerType::get(C->getContext(), FPWidth), NumDstElt); 189 // Recursively handle this integer conversion, if possible. 190 C = FoldBitCast(C, DestIVTy, DL); 191 192 // Finally, IR can handle this now that #elts line up. 193 return ConstantExpr::getBitCast(C, DestTy); 194 } 195 196 // Okay, we know the destination is integer, if the input is FP, convert 197 // it to integer first. 198 if (SrcEltTy->isFloatingPointTy()) { 199 unsigned FPWidth = SrcEltTy->getPrimitiveSizeInBits(); 200 auto *SrcIVTy = FixedVectorType::get( 201 IntegerType::get(C->getContext(), FPWidth), NumSrcElt); 202 // Ask IR to do the conversion now that #elts line up. 203 C = ConstantExpr::getBitCast(C, SrcIVTy); 204 // If IR wasn't able to fold it, bail out. 205 if (!isa<ConstantVector>(C) && // FIXME: Remove ConstantVector. 206 !isa<ConstantDataVector>(C)) 207 return C; 208 } 209 210 // Now we know that the input and output vectors are both integer vectors 211 // of the same size, and that their #elements is not the same. Do the 212 // conversion here, which depends on whether the input or output has 213 // more elements. 214 bool isLittleEndian = DL.isLittleEndian(); 215 216 SmallVector<Constant*, 32> Result; 217 if (NumDstElt < NumSrcElt) { 218 // Handle: bitcast (<4 x i32> <i32 0, i32 1, i32 2, i32 3> to <2 x i64>) 219 Constant *Zero = Constant::getNullValue(DstEltTy); 220 unsigned Ratio = NumSrcElt/NumDstElt; 221 unsigned SrcBitSize = SrcEltTy->getPrimitiveSizeInBits(); 222 unsigned SrcElt = 0; 223 for (unsigned i = 0; i != NumDstElt; ++i) { 224 // Build each element of the result. 225 Constant *Elt = Zero; 226 unsigned ShiftAmt = isLittleEndian ? 0 : SrcBitSize*(Ratio-1); 227 for (unsigned j = 0; j != Ratio; ++j) { 228 Constant *Src = C->getAggregateElement(SrcElt++); 229 if (Src && isa<UndefValue>(Src)) 230 Src = Constant::getNullValue( 231 cast<VectorType>(C->getType())->getElementType()); 232 else 233 Src = dyn_cast_or_null<ConstantInt>(Src); 234 if (!Src) // Reject constantexpr elements. 235 return ConstantExpr::getBitCast(C, DestTy); 236 237 // Zero extend the element to the right size. 238 Src = ConstantExpr::getZExt(Src, Elt->getType()); 239 240 // Shift it to the right place, depending on endianness. 241 Src = ConstantExpr::getShl(Src, 242 ConstantInt::get(Src->getType(), ShiftAmt)); 243 ShiftAmt += isLittleEndian ? SrcBitSize : -SrcBitSize; 244 245 // Mix it in. 246 Elt = ConstantExpr::getOr(Elt, Src); 247 } 248 Result.push_back(Elt); 249 } 250 return ConstantVector::get(Result); 251 } 252 253 // Handle: bitcast (<2 x i64> <i64 0, i64 1> to <4 x i32>) 254 unsigned Ratio = NumDstElt/NumSrcElt; 255 unsigned DstBitSize = DL.getTypeSizeInBits(DstEltTy); 256 257 // Loop over each source value, expanding into multiple results. 258 for (unsigned i = 0; i != NumSrcElt; ++i) { 259 auto *Element = C->getAggregateElement(i); 260 261 if (!Element) // Reject constantexpr elements. 262 return ConstantExpr::getBitCast(C, DestTy); 263 264 if (isa<UndefValue>(Element)) { 265 // Correctly Propagate undef values. 266 Result.append(Ratio, UndefValue::get(DstEltTy)); 267 continue; 268 } 269 270 auto *Src = dyn_cast<ConstantInt>(Element); 271 if (!Src) 272 return ConstantExpr::getBitCast(C, DestTy); 273 274 unsigned ShiftAmt = isLittleEndian ? 0 : DstBitSize*(Ratio-1); 275 for (unsigned j = 0; j != Ratio; ++j) { 276 // Shift the piece of the value into the right place, depending on 277 // endianness. 278 Constant *Elt = ConstantExpr::getLShr(Src, 279 ConstantInt::get(Src->getType(), ShiftAmt)); 280 ShiftAmt += isLittleEndian ? DstBitSize : -DstBitSize; 281 282 // Truncate the element to an integer with the same pointer size and 283 // convert the element back to a pointer using a inttoptr. 284 if (DstEltTy->isPointerTy()) { 285 IntegerType *DstIntTy = Type::getIntNTy(C->getContext(), DstBitSize); 286 Constant *CE = ConstantExpr::getTrunc(Elt, DstIntTy); 287 Result.push_back(ConstantExpr::getIntToPtr(CE, DstEltTy)); 288 continue; 289 } 290 291 // Truncate and remember this piece. 292 Result.push_back(ConstantExpr::getTrunc(Elt, DstEltTy)); 293 } 294 } 295 296 return ConstantVector::get(Result); 297 } 298 299 } // end anonymous namespace 300 301 /// If this constant is a constant offset from a global, return the global and 302 /// the constant. Because of constantexprs, this function is recursive. 303 bool llvm::IsConstantOffsetFromGlobal(Constant *C, GlobalValue *&GV, 304 APInt &Offset, const DataLayout &DL, 305 DSOLocalEquivalent **DSOEquiv) { 306 if (DSOEquiv) 307 *DSOEquiv = nullptr; 308 309 // Trivial case, constant is the global. 310 if ((GV = dyn_cast<GlobalValue>(C))) { 311 unsigned BitWidth = DL.getIndexTypeSizeInBits(GV->getType()); 312 Offset = APInt(BitWidth, 0); 313 return true; 314 } 315 316 if (auto *FoundDSOEquiv = dyn_cast<DSOLocalEquivalent>(C)) { 317 if (DSOEquiv) 318 *DSOEquiv = FoundDSOEquiv; 319 GV = FoundDSOEquiv->getGlobalValue(); 320 unsigned BitWidth = DL.getIndexTypeSizeInBits(GV->getType()); 321 Offset = APInt(BitWidth, 0); 322 return true; 323 } 324 325 // Otherwise, if this isn't a constant expr, bail out. 326 auto *CE = dyn_cast<ConstantExpr>(C); 327 if (!CE) return false; 328 329 // Look through ptr->int and ptr->ptr casts. 330 if (CE->getOpcode() == Instruction::PtrToInt || 331 CE->getOpcode() == Instruction::BitCast) 332 return IsConstantOffsetFromGlobal(CE->getOperand(0), GV, Offset, DL, 333 DSOEquiv); 334 335 // i32* getelementptr ([5 x i32]* @a, i32 0, i32 5) 336 auto *GEP = dyn_cast<GEPOperator>(CE); 337 if (!GEP) 338 return false; 339 340 unsigned BitWidth = DL.getIndexTypeSizeInBits(GEP->getType()); 341 APInt TmpOffset(BitWidth, 0); 342 343 // If the base isn't a global+constant, we aren't either. 344 if (!IsConstantOffsetFromGlobal(CE->getOperand(0), GV, TmpOffset, DL, 345 DSOEquiv)) 346 return false; 347 348 // Otherwise, add any offset that our operands provide. 349 if (!GEP->accumulateConstantOffset(DL, TmpOffset)) 350 return false; 351 352 Offset = TmpOffset; 353 return true; 354 } 355 356 Constant *llvm::ConstantFoldLoadThroughBitcast(Constant *C, Type *DestTy, 357 const DataLayout &DL) { 358 do { 359 Type *SrcTy = C->getType(); 360 uint64_t DestSize = DL.getTypeSizeInBits(DestTy); 361 uint64_t SrcSize = DL.getTypeSizeInBits(SrcTy); 362 if (SrcSize < DestSize) 363 return nullptr; 364 365 // Catch the obvious splat cases (since all-zeros can coerce non-integral 366 // pointers legally). 367 if (C->isNullValue() && !DestTy->isX86_MMXTy() && !DestTy->isX86_AMXTy()) 368 return Constant::getNullValue(DestTy); 369 if (C->isAllOnesValue() && 370 (DestTy->isIntegerTy() || DestTy->isFloatingPointTy() || 371 DestTy->isVectorTy()) && 372 !DestTy->isX86_AMXTy() && !DestTy->isX86_MMXTy() && 373 !DestTy->isPtrOrPtrVectorTy()) 374 // Get ones when the input is trivial, but 375 // only for supported types inside getAllOnesValue. 376 return Constant::getAllOnesValue(DestTy); 377 378 // If the type sizes are the same and a cast is legal, just directly 379 // cast the constant. 380 // But be careful not to coerce non-integral pointers illegally. 381 if (SrcSize == DestSize && 382 DL.isNonIntegralPointerType(SrcTy->getScalarType()) == 383 DL.isNonIntegralPointerType(DestTy->getScalarType())) { 384 Instruction::CastOps Cast = Instruction::BitCast; 385 // If we are going from a pointer to int or vice versa, we spell the cast 386 // differently. 387 if (SrcTy->isIntegerTy() && DestTy->isPointerTy()) 388 Cast = Instruction::IntToPtr; 389 else if (SrcTy->isPointerTy() && DestTy->isIntegerTy()) 390 Cast = Instruction::PtrToInt; 391 392 if (CastInst::castIsValid(Cast, C, DestTy)) 393 return ConstantExpr::getCast(Cast, C, DestTy); 394 } 395 396 // If this isn't an aggregate type, there is nothing we can do to drill down 397 // and find a bitcastable constant. 398 if (!SrcTy->isAggregateType() && !SrcTy->isVectorTy()) 399 return nullptr; 400 401 // We're simulating a load through a pointer that was bitcast to point to 402 // a different type, so we can try to walk down through the initial 403 // elements of an aggregate to see if some part of the aggregate is 404 // castable to implement the "load" semantic model. 405 if (SrcTy->isStructTy()) { 406 // Struct types might have leading zero-length elements like [0 x i32], 407 // which are certainly not what we are looking for, so skip them. 408 unsigned Elem = 0; 409 Constant *ElemC; 410 do { 411 ElemC = C->getAggregateElement(Elem++); 412 } while (ElemC && DL.getTypeSizeInBits(ElemC->getType()).isZero()); 413 C = ElemC; 414 } else { 415 C = C->getAggregateElement(0u); 416 } 417 } while (C); 418 419 return nullptr; 420 } 421 422 namespace { 423 424 /// Recursive helper to read bits out of global. C is the constant being copied 425 /// out of. ByteOffset is an offset into C. CurPtr is the pointer to copy 426 /// results into and BytesLeft is the number of bytes left in 427 /// the CurPtr buffer. DL is the DataLayout. 428 bool ReadDataFromGlobal(Constant *C, uint64_t ByteOffset, unsigned char *CurPtr, 429 unsigned BytesLeft, const DataLayout &DL) { 430 assert(ByteOffset <= DL.getTypeAllocSize(C->getType()) && 431 "Out of range access"); 432 433 // If this element is zero or undefined, we can just return since *CurPtr is 434 // zero initialized. 435 if (isa<ConstantAggregateZero>(C) || isa<UndefValue>(C)) 436 return true; 437 438 if (auto *CI = dyn_cast<ConstantInt>(C)) { 439 if (CI->getBitWidth() > 64 || 440 (CI->getBitWidth() & 7) != 0) 441 return false; 442 443 uint64_t Val = CI->getZExtValue(); 444 unsigned IntBytes = unsigned(CI->getBitWidth()/8); 445 446 for (unsigned i = 0; i != BytesLeft && ByteOffset != IntBytes; ++i) { 447 int n = ByteOffset; 448 if (!DL.isLittleEndian()) 449 n = IntBytes - n - 1; 450 CurPtr[i] = (unsigned char)(Val >> (n * 8)); 451 ++ByteOffset; 452 } 453 return true; 454 } 455 456 if (auto *CFP = dyn_cast<ConstantFP>(C)) { 457 if (CFP->getType()->isDoubleTy()) { 458 C = FoldBitCast(C, Type::getInt64Ty(C->getContext()), DL); 459 return ReadDataFromGlobal(C, ByteOffset, CurPtr, BytesLeft, DL); 460 } 461 if (CFP->getType()->isFloatTy()){ 462 C = FoldBitCast(C, Type::getInt32Ty(C->getContext()), DL); 463 return ReadDataFromGlobal(C, ByteOffset, CurPtr, BytesLeft, DL); 464 } 465 if (CFP->getType()->isHalfTy()){ 466 C = FoldBitCast(C, Type::getInt16Ty(C->getContext()), DL); 467 return ReadDataFromGlobal(C, ByteOffset, CurPtr, BytesLeft, DL); 468 } 469 return false; 470 } 471 472 if (auto *CS = dyn_cast<ConstantStruct>(C)) { 473 const StructLayout *SL = DL.getStructLayout(CS->getType()); 474 unsigned Index = SL->getElementContainingOffset(ByteOffset); 475 uint64_t CurEltOffset = SL->getElementOffset(Index); 476 ByteOffset -= CurEltOffset; 477 478 while (true) { 479 // If the element access is to the element itself and not to tail padding, 480 // read the bytes from the element. 481 uint64_t EltSize = DL.getTypeAllocSize(CS->getOperand(Index)->getType()); 482 483 if (ByteOffset < EltSize && 484 !ReadDataFromGlobal(CS->getOperand(Index), ByteOffset, CurPtr, 485 BytesLeft, DL)) 486 return false; 487 488 ++Index; 489 490 // Check to see if we read from the last struct element, if so we're done. 491 if (Index == CS->getType()->getNumElements()) 492 return true; 493 494 // If we read all of the bytes we needed from this element we're done. 495 uint64_t NextEltOffset = SL->getElementOffset(Index); 496 497 if (BytesLeft <= NextEltOffset - CurEltOffset - ByteOffset) 498 return true; 499 500 // Move to the next element of the struct. 501 CurPtr += NextEltOffset - CurEltOffset - ByteOffset; 502 BytesLeft -= NextEltOffset - CurEltOffset - ByteOffset; 503 ByteOffset = 0; 504 CurEltOffset = NextEltOffset; 505 } 506 // not reached. 507 } 508 509 if (isa<ConstantArray>(C) || isa<ConstantVector>(C) || 510 isa<ConstantDataSequential>(C)) { 511 uint64_t NumElts; 512 Type *EltTy; 513 if (auto *AT = dyn_cast<ArrayType>(C->getType())) { 514 NumElts = AT->getNumElements(); 515 EltTy = AT->getElementType(); 516 } else { 517 NumElts = cast<FixedVectorType>(C->getType())->getNumElements(); 518 EltTy = cast<FixedVectorType>(C->getType())->getElementType(); 519 } 520 uint64_t EltSize = DL.getTypeAllocSize(EltTy); 521 uint64_t Index = ByteOffset / EltSize; 522 uint64_t Offset = ByteOffset - Index * EltSize; 523 524 for (; Index != NumElts; ++Index) { 525 if (!ReadDataFromGlobal(C->getAggregateElement(Index), Offset, CurPtr, 526 BytesLeft, DL)) 527 return false; 528 529 uint64_t BytesWritten = EltSize - Offset; 530 assert(BytesWritten <= EltSize && "Not indexing into this element?"); 531 if (BytesWritten >= BytesLeft) 532 return true; 533 534 Offset = 0; 535 BytesLeft -= BytesWritten; 536 CurPtr += BytesWritten; 537 } 538 return true; 539 } 540 541 if (auto *CE = dyn_cast<ConstantExpr>(C)) { 542 if (CE->getOpcode() == Instruction::IntToPtr && 543 CE->getOperand(0)->getType() == DL.getIntPtrType(CE->getType())) { 544 return ReadDataFromGlobal(CE->getOperand(0), ByteOffset, CurPtr, 545 BytesLeft, DL); 546 } 547 } 548 549 // Otherwise, unknown initializer type. 550 return false; 551 } 552 553 Constant *FoldReinterpretLoadFromConstPtr(Constant *C, Type *LoadTy, 554 const DataLayout &DL) { 555 // Bail out early. Not expect to load from scalable global variable. 556 if (isa<ScalableVectorType>(LoadTy)) 557 return nullptr; 558 559 auto *PTy = cast<PointerType>(C->getType()); 560 auto *IntType = dyn_cast<IntegerType>(LoadTy); 561 562 // If this isn't an integer load we can't fold it directly. 563 if (!IntType) { 564 unsigned AS = PTy->getAddressSpace(); 565 566 // If this is a float/double load, we can try folding it as an int32/64 load 567 // and then bitcast the result. This can be useful for union cases. Note 568 // that address spaces don't matter here since we're not going to result in 569 // an actual new load. 570 Type *MapTy; 571 if (LoadTy->isHalfTy()) 572 MapTy = Type::getInt16Ty(C->getContext()); 573 else if (LoadTy->isFloatTy()) 574 MapTy = Type::getInt32Ty(C->getContext()); 575 else if (LoadTy->isDoubleTy()) 576 MapTy = Type::getInt64Ty(C->getContext()); 577 else if (LoadTy->isVectorTy()) { 578 MapTy = PointerType::getIntNTy( 579 C->getContext(), DL.getTypeSizeInBits(LoadTy).getFixedSize()); 580 } else 581 return nullptr; 582 583 C = FoldBitCast(C, MapTy->getPointerTo(AS), DL); 584 if (Constant *Res = FoldReinterpretLoadFromConstPtr(C, MapTy, DL)) { 585 if (Res->isNullValue() && !LoadTy->isX86_MMXTy() && 586 !LoadTy->isX86_AMXTy()) 587 // Materializing a zero can be done trivially without a bitcast 588 return Constant::getNullValue(LoadTy); 589 Type *CastTy = LoadTy->isPtrOrPtrVectorTy() ? DL.getIntPtrType(LoadTy) : LoadTy; 590 Res = FoldBitCast(Res, CastTy, DL); 591 if (LoadTy->isPtrOrPtrVectorTy()) { 592 // For vector of pointer, we needed to first convert to a vector of integer, then do vector inttoptr 593 if (Res->isNullValue() && !LoadTy->isX86_MMXTy() && 594 !LoadTy->isX86_AMXTy()) 595 return Constant::getNullValue(LoadTy); 596 if (DL.isNonIntegralPointerType(LoadTy->getScalarType())) 597 // Be careful not to replace a load of an addrspace value with an inttoptr here 598 return nullptr; 599 Res = ConstantExpr::getCast(Instruction::IntToPtr, Res, LoadTy); 600 } 601 return Res; 602 } 603 return nullptr; 604 } 605 606 unsigned BytesLoaded = (IntType->getBitWidth() + 7) / 8; 607 if (BytesLoaded > 32 || BytesLoaded == 0) 608 return nullptr; 609 610 GlobalValue *GVal; 611 APInt OffsetAI; 612 if (!IsConstantOffsetFromGlobal(C, GVal, OffsetAI, DL)) 613 return nullptr; 614 615 auto *GV = dyn_cast<GlobalVariable>(GVal); 616 if (!GV || !GV->isConstant() || !GV->hasDefinitiveInitializer() || 617 !GV->getInitializer()->getType()->isSized()) 618 return nullptr; 619 620 int64_t Offset = OffsetAI.getSExtValue(); 621 int64_t InitializerSize = 622 DL.getTypeAllocSize(GV->getInitializer()->getType()).getFixedSize(); 623 624 // If we're not accessing anything in this constant, the result is undefined. 625 if (Offset <= -1 * static_cast<int64_t>(BytesLoaded)) 626 return UndefValue::get(IntType); 627 628 // If we're not accessing anything in this constant, the result is undefined. 629 if (Offset >= InitializerSize) 630 return UndefValue::get(IntType); 631 632 unsigned char RawBytes[32] = {0}; 633 unsigned char *CurPtr = RawBytes; 634 unsigned BytesLeft = BytesLoaded; 635 636 // If we're loading off the beginning of the global, some bytes may be valid. 637 if (Offset < 0) { 638 CurPtr += -Offset; 639 BytesLeft += Offset; 640 Offset = 0; 641 } 642 643 if (!ReadDataFromGlobal(GV->getInitializer(), Offset, CurPtr, BytesLeft, DL)) 644 return nullptr; 645 646 APInt ResultVal = APInt(IntType->getBitWidth(), 0); 647 if (DL.isLittleEndian()) { 648 ResultVal = RawBytes[BytesLoaded - 1]; 649 for (unsigned i = 1; i != BytesLoaded; ++i) { 650 ResultVal <<= 8; 651 ResultVal |= RawBytes[BytesLoaded - 1 - i]; 652 } 653 } else { 654 ResultVal = RawBytes[0]; 655 for (unsigned i = 1; i != BytesLoaded; ++i) { 656 ResultVal <<= 8; 657 ResultVal |= RawBytes[i]; 658 } 659 } 660 661 return ConstantInt::get(IntType->getContext(), ResultVal); 662 } 663 664 Constant *ConstantFoldLoadThroughBitcastExpr(ConstantExpr *CE, Type *DestTy, 665 const DataLayout &DL) { 666 auto *SrcPtr = CE->getOperand(0); 667 if (!SrcPtr->getType()->isPointerTy()) 668 return nullptr; 669 670 return ConstantFoldLoadFromConstPtr(SrcPtr, DestTy, DL); 671 } 672 673 } // end anonymous namespace 674 675 Constant *llvm::ConstantFoldLoadFromConstPtr(Constant *C, Type *Ty, 676 const DataLayout &DL) { 677 // First, try the easy cases: 678 if (auto *GV = dyn_cast<GlobalVariable>(C)) 679 if (GV->isConstant() && GV->hasDefinitiveInitializer()) 680 return ConstantFoldLoadThroughBitcast(GV->getInitializer(), Ty, DL); 681 682 if (auto *GA = dyn_cast<GlobalAlias>(C)) 683 if (GA->getAliasee() && !GA->isInterposable()) 684 return ConstantFoldLoadFromConstPtr(GA->getAliasee(), Ty, DL); 685 686 // If the loaded value isn't a constant expr, we can't handle it. 687 auto *CE = dyn_cast<ConstantExpr>(C); 688 if (!CE) 689 return nullptr; 690 691 if (CE->getOpcode() == Instruction::GetElementPtr) { 692 if (auto *GV = dyn_cast<GlobalVariable>(CE->getOperand(0))) { 693 if (GV->isConstant() && GV->hasDefinitiveInitializer()) { 694 if (Constant *V = ConstantFoldLoadThroughGEPConstantExpr( 695 GV->getInitializer(), CE, Ty, DL)) 696 return V; 697 } 698 } else { 699 // Try to simplify GEP if the pointer operand wasn't a GlobalVariable. 700 // SymbolicallyEvaluateGEP() with `ForLoadOperand = true` can potentially 701 // simplify the GEP more than it normally would have been, but should only 702 // be used for const folding loads. 703 SmallVector<Constant *> Ops; 704 for (unsigned I = 0, E = CE->getNumOperands(); I != E; ++I) 705 Ops.push_back(cast<Constant>(CE->getOperand(I))); 706 if (auto *Simplified = dyn_cast_or_null<ConstantExpr>( 707 SymbolicallyEvaluateGEP(cast<GEPOperator>(CE), Ops, DL, nullptr, 708 /*ForLoadOperand*/ true))) { 709 // If the symbolically evaluated GEP is another GEP, we can only const 710 // fold it if the resulting pointer operand is a GlobalValue. Otherwise 711 // there is nothing else to simplify since the GEP is already in the 712 // most simplified form. 713 if (isa<GEPOperator>(Simplified)) { 714 if (auto *GV = dyn_cast<GlobalVariable>(Simplified->getOperand(0))) { 715 if (GV->isConstant() && GV->hasDefinitiveInitializer()) { 716 if (Constant *V = ConstantFoldLoadThroughGEPConstantExpr( 717 GV->getInitializer(), Simplified, Ty, DL)) 718 return V; 719 } 720 } 721 } else { 722 return ConstantFoldLoadFromConstPtr(Simplified, Ty, DL); 723 } 724 } 725 } 726 } 727 728 if (CE->getOpcode() == Instruction::BitCast) 729 if (Constant *LoadedC = ConstantFoldLoadThroughBitcastExpr(CE, Ty, DL)) 730 return LoadedC; 731 732 // Instead of loading constant c string, use corresponding integer value 733 // directly if string length is small enough. 734 StringRef Str; 735 if (getConstantStringInfo(CE, Str) && !Str.empty()) { 736 size_t StrLen = Str.size(); 737 unsigned NumBits = Ty->getPrimitiveSizeInBits(); 738 // Replace load with immediate integer if the result is an integer or fp 739 // value. 740 if ((NumBits >> 3) == StrLen + 1 && (NumBits & 7) == 0 && 741 (isa<IntegerType>(Ty) || Ty->isFloatingPointTy())) { 742 APInt StrVal(NumBits, 0); 743 APInt SingleChar(NumBits, 0); 744 if (DL.isLittleEndian()) { 745 for (unsigned char C : reverse(Str.bytes())) { 746 SingleChar = static_cast<uint64_t>(C); 747 StrVal = (StrVal << 8) | SingleChar; 748 } 749 } else { 750 for (unsigned char C : Str.bytes()) { 751 SingleChar = static_cast<uint64_t>(C); 752 StrVal = (StrVal << 8) | SingleChar; 753 } 754 // Append NULL at the end. 755 SingleChar = 0; 756 StrVal = (StrVal << 8) | SingleChar; 757 } 758 759 Constant *Res = ConstantInt::get(CE->getContext(), StrVal); 760 if (Ty->isFloatingPointTy()) 761 Res = ConstantExpr::getBitCast(Res, Ty); 762 return Res; 763 } 764 } 765 766 // If this load comes from anywhere in a constant global, and if the global 767 // is all undef or zero, we know what it loads. 768 if (auto *GV = dyn_cast<GlobalVariable>(getUnderlyingObject(CE))) { 769 if (GV->isConstant() && GV->hasDefinitiveInitializer()) { 770 if (GV->getInitializer()->isNullValue()) 771 return Constant::getNullValue(Ty); 772 if (isa<UndefValue>(GV->getInitializer())) 773 return UndefValue::get(Ty); 774 } 775 } 776 777 // Try hard to fold loads from bitcasted strange and non-type-safe things. 778 return FoldReinterpretLoadFromConstPtr(CE, Ty, DL); 779 } 780 781 namespace { 782 783 /// One of Op0/Op1 is a constant expression. 784 /// Attempt to symbolically evaluate the result of a binary operator merging 785 /// these together. If target data info is available, it is provided as DL, 786 /// otherwise DL is null. 787 Constant *SymbolicallyEvaluateBinop(unsigned Opc, Constant *Op0, Constant *Op1, 788 const DataLayout &DL) { 789 // SROA 790 791 // Fold (and 0xffffffff00000000, (shl x, 32)) -> shl. 792 // Fold (lshr (or X, Y), 32) -> (lshr [X/Y], 32) if one doesn't contribute 793 // bits. 794 795 if (Opc == Instruction::And) { 796 KnownBits Known0 = computeKnownBits(Op0, DL); 797 KnownBits Known1 = computeKnownBits(Op1, DL); 798 if ((Known1.One | Known0.Zero).isAllOnesValue()) { 799 // All the bits of Op0 that the 'and' could be masking are already zero. 800 return Op0; 801 } 802 if ((Known0.One | Known1.Zero).isAllOnesValue()) { 803 // All the bits of Op1 that the 'and' could be masking are already zero. 804 return Op1; 805 } 806 807 Known0 &= Known1; 808 if (Known0.isConstant()) 809 return ConstantInt::get(Op0->getType(), Known0.getConstant()); 810 } 811 812 // If the constant expr is something like &A[123] - &A[4].f, fold this into a 813 // constant. This happens frequently when iterating over a global array. 814 if (Opc == Instruction::Sub) { 815 GlobalValue *GV1, *GV2; 816 APInt Offs1, Offs2; 817 818 if (IsConstantOffsetFromGlobal(Op0, GV1, Offs1, DL)) 819 if (IsConstantOffsetFromGlobal(Op1, GV2, Offs2, DL) && GV1 == GV2) { 820 unsigned OpSize = DL.getTypeSizeInBits(Op0->getType()); 821 822 // (&GV+C1) - (&GV+C2) -> C1-C2, pointer arithmetic cannot overflow. 823 // PtrToInt may change the bitwidth so we have convert to the right size 824 // first. 825 return ConstantInt::get(Op0->getType(), Offs1.zextOrTrunc(OpSize) - 826 Offs2.zextOrTrunc(OpSize)); 827 } 828 } 829 830 return nullptr; 831 } 832 833 /// If array indices are not pointer-sized integers, explicitly cast them so 834 /// that they aren't implicitly casted by the getelementptr. 835 Constant *CastGEPIndices(Type *SrcElemTy, ArrayRef<Constant *> Ops, 836 Type *ResultTy, Optional<unsigned> InRangeIndex, 837 const DataLayout &DL, const TargetLibraryInfo *TLI) { 838 Type *IntIdxTy = DL.getIndexType(ResultTy); 839 Type *IntIdxScalarTy = IntIdxTy->getScalarType(); 840 841 bool Any = false; 842 SmallVector<Constant*, 32> NewIdxs; 843 for (unsigned i = 1, e = Ops.size(); i != e; ++i) { 844 if ((i == 1 || 845 !isa<StructType>(GetElementPtrInst::getIndexedType( 846 SrcElemTy, Ops.slice(1, i - 1)))) && 847 Ops[i]->getType()->getScalarType() != IntIdxScalarTy) { 848 Any = true; 849 Type *NewType = Ops[i]->getType()->isVectorTy() 850 ? IntIdxTy 851 : IntIdxScalarTy; 852 NewIdxs.push_back(ConstantExpr::getCast(CastInst::getCastOpcode(Ops[i], 853 true, 854 NewType, 855 true), 856 Ops[i], NewType)); 857 } else 858 NewIdxs.push_back(Ops[i]); 859 } 860 861 if (!Any) 862 return nullptr; 863 864 Constant *C = ConstantExpr::getGetElementPtr( 865 SrcElemTy, Ops[0], NewIdxs, /*InBounds=*/false, InRangeIndex); 866 return ConstantFoldConstant(C, DL, TLI); 867 } 868 869 /// Strip the pointer casts, but preserve the address space information. 870 Constant *StripPtrCastKeepAS(Constant *Ptr, bool ForLoadOperand) { 871 assert(Ptr->getType()->isPointerTy() && "Not a pointer type"); 872 auto *OldPtrTy = cast<PointerType>(Ptr->getType()); 873 Ptr = cast<Constant>(Ptr->stripPointerCasts()); 874 if (ForLoadOperand) { 875 while (isa<GlobalAlias>(Ptr) && !cast<GlobalAlias>(Ptr)->isInterposable() && 876 !cast<GlobalAlias>(Ptr)->getBaseObject()->isInterposable()) { 877 Ptr = cast<GlobalAlias>(Ptr)->getAliasee(); 878 } 879 } 880 881 auto *NewPtrTy = cast<PointerType>(Ptr->getType()); 882 883 // Preserve the address space number of the pointer. 884 if (NewPtrTy->getAddressSpace() != OldPtrTy->getAddressSpace()) { 885 Ptr = ConstantExpr::getPointerCast( 886 Ptr, PointerType::getWithSamePointeeType(NewPtrTy, 887 OldPtrTy->getAddressSpace())); 888 } 889 return Ptr; 890 } 891 892 /// If we can symbolically evaluate the GEP constant expression, do so. 893 Constant *SymbolicallyEvaluateGEP(const GEPOperator *GEP, 894 ArrayRef<Constant *> Ops, 895 const DataLayout &DL, 896 const TargetLibraryInfo *TLI, 897 bool ForLoadOperand) { 898 const GEPOperator *InnermostGEP = GEP; 899 bool InBounds = GEP->isInBounds(); 900 901 Type *SrcElemTy = GEP->getSourceElementType(); 902 Type *ResElemTy = GEP->getResultElementType(); 903 Type *ResTy = GEP->getType(); 904 if (!SrcElemTy->isSized() || isa<ScalableVectorType>(SrcElemTy)) 905 return nullptr; 906 907 if (Constant *C = CastGEPIndices(SrcElemTy, Ops, ResTy, 908 GEP->getInRangeIndex(), DL, TLI)) 909 return C; 910 911 Constant *Ptr = Ops[0]; 912 if (!Ptr->getType()->isPointerTy()) 913 return nullptr; 914 915 Type *IntIdxTy = DL.getIndexType(Ptr->getType()); 916 917 // If this is "gep i8* Ptr, (sub 0, V)", fold this as: 918 // "inttoptr (sub (ptrtoint Ptr), V)" 919 if (Ops.size() == 2 && ResElemTy->isIntegerTy(8)) { 920 auto *CE = dyn_cast<ConstantExpr>(Ops[1]); 921 assert((!CE || CE->getType() == IntIdxTy) && 922 "CastGEPIndices didn't canonicalize index types!"); 923 if (CE && CE->getOpcode() == Instruction::Sub && 924 CE->getOperand(0)->isNullValue()) { 925 Constant *Res = ConstantExpr::getPtrToInt(Ptr, CE->getType()); 926 Res = ConstantExpr::getSub(Res, CE->getOperand(1)); 927 Res = ConstantExpr::getIntToPtr(Res, ResTy); 928 return ConstantFoldConstant(Res, DL, TLI); 929 } 930 } 931 932 for (unsigned i = 1, e = Ops.size(); i != e; ++i) 933 if (!isa<ConstantInt>(Ops[i])) 934 return nullptr; 935 936 unsigned BitWidth = DL.getTypeSizeInBits(IntIdxTy); 937 APInt Offset = 938 APInt(BitWidth, 939 DL.getIndexedOffsetInType( 940 SrcElemTy, 941 makeArrayRef((Value * const *)Ops.data() + 1, Ops.size() - 1))); 942 Ptr = StripPtrCastKeepAS(Ptr, ForLoadOperand); 943 944 // If this is a GEP of a GEP, fold it all into a single GEP. 945 while (auto *GEP = dyn_cast<GEPOperator>(Ptr)) { 946 InnermostGEP = GEP; 947 InBounds &= GEP->isInBounds(); 948 949 SmallVector<Value *, 4> NestedOps(GEP->op_begin() + 1, GEP->op_end()); 950 951 // Do not try the incorporate the sub-GEP if some index is not a number. 952 bool AllConstantInt = true; 953 for (Value *NestedOp : NestedOps) 954 if (!isa<ConstantInt>(NestedOp)) { 955 AllConstantInt = false; 956 break; 957 } 958 if (!AllConstantInt) 959 break; 960 961 Ptr = cast<Constant>(GEP->getOperand(0)); 962 SrcElemTy = GEP->getSourceElementType(); 963 Offset += APInt(BitWidth, DL.getIndexedOffsetInType(SrcElemTy, NestedOps)); 964 Ptr = StripPtrCastKeepAS(Ptr, ForLoadOperand); 965 } 966 967 // If the base value for this address is a literal integer value, fold the 968 // getelementptr to the resulting integer value casted to the pointer type. 969 APInt BasePtr(BitWidth, 0); 970 if (auto *CE = dyn_cast<ConstantExpr>(Ptr)) { 971 if (CE->getOpcode() == Instruction::IntToPtr) { 972 if (auto *Base = dyn_cast<ConstantInt>(CE->getOperand(0))) 973 BasePtr = Base->getValue().zextOrTrunc(BitWidth); 974 } 975 } 976 977 auto *PTy = cast<PointerType>(Ptr->getType()); 978 if ((Ptr->isNullValue() || BasePtr != 0) && 979 !DL.isNonIntegralPointerType(PTy)) { 980 Constant *C = ConstantInt::get(Ptr->getContext(), Offset + BasePtr); 981 return ConstantExpr::getIntToPtr(C, ResTy); 982 } 983 984 // Otherwise form a regular getelementptr. Recompute the indices so that 985 // we eliminate over-indexing of the notional static type array bounds. 986 // This makes it easy to determine if the getelementptr is "inbounds". 987 // Also, this helps GlobalOpt do SROA on GlobalVariables. 988 SmallVector<Constant *, 32> NewIdxs; 989 Type *Ty = PTy; 990 SrcElemTy = PTy->getElementType(); 991 992 do { 993 if (!Ty->isStructTy()) { 994 if (Ty->isPointerTy()) { 995 // The only pointer indexing we'll do is on the first index of the GEP. 996 if (!NewIdxs.empty()) 997 break; 998 999 Ty = SrcElemTy; 1000 1001 // Only handle pointers to sized types, not pointers to functions. 1002 if (!Ty->isSized()) 1003 return nullptr; 1004 } else { 1005 Type *NextTy = GetElementPtrInst::getTypeAtIndex(Ty, (uint64_t)0); 1006 if (!NextTy) 1007 break; 1008 Ty = NextTy; 1009 } 1010 1011 // Determine which element of the array the offset points into. 1012 APInt ElemSize(BitWidth, DL.getTypeAllocSize(Ty)); 1013 if (ElemSize == 0) { 1014 // The element size is 0. This may be [0 x Ty]*, so just use a zero 1015 // index for this level and proceed to the next level to see if it can 1016 // accommodate the offset. 1017 NewIdxs.push_back(ConstantInt::get(IntIdxTy, 0)); 1018 } else { 1019 // The element size is non-zero divide the offset by the element 1020 // size (rounding down), to compute the index at this level. 1021 bool Overflow; 1022 APInt NewIdx = Offset.sdiv_ov(ElemSize, Overflow); 1023 if (Overflow) 1024 break; 1025 Offset -= NewIdx * ElemSize; 1026 NewIdxs.push_back(ConstantInt::get(IntIdxTy, NewIdx)); 1027 } 1028 } else { 1029 auto *STy = cast<StructType>(Ty); 1030 // If we end up with an offset that isn't valid for this struct type, we 1031 // can't re-form this GEP in a regular form, so bail out. The pointer 1032 // operand likely went through casts that are necessary to make the GEP 1033 // sensible. 1034 const StructLayout &SL = *DL.getStructLayout(STy); 1035 if (Offset.isNegative() || Offset.uge(SL.getSizeInBytes())) 1036 break; 1037 1038 // Determine which field of the struct the offset points into. The 1039 // getZExtValue is fine as we've already ensured that the offset is 1040 // within the range representable by the StructLayout API. 1041 unsigned ElIdx = SL.getElementContainingOffset(Offset.getZExtValue()); 1042 NewIdxs.push_back(ConstantInt::get(Type::getInt32Ty(Ty->getContext()), 1043 ElIdx)); 1044 Offset -= APInt(BitWidth, SL.getElementOffset(ElIdx)); 1045 Ty = STy->getTypeAtIndex(ElIdx); 1046 } 1047 } while (Ty != ResElemTy); 1048 1049 // If we haven't used up the entire offset by descending the static 1050 // type, then the offset is pointing into the middle of an indivisible 1051 // member, so we can't simplify it. 1052 if (Offset != 0) 1053 return nullptr; 1054 1055 // Preserve the inrange index from the innermost GEP if possible. We must 1056 // have calculated the same indices up to and including the inrange index. 1057 Optional<unsigned> InRangeIndex; 1058 if (Optional<unsigned> LastIRIndex = InnermostGEP->getInRangeIndex()) 1059 if (SrcElemTy == InnermostGEP->getSourceElementType() && 1060 NewIdxs.size() > *LastIRIndex) { 1061 InRangeIndex = LastIRIndex; 1062 for (unsigned I = 0; I <= *LastIRIndex; ++I) 1063 if (NewIdxs[I] != InnermostGEP->getOperand(I + 1)) 1064 return nullptr; 1065 } 1066 1067 // Create a GEP. 1068 Constant *C = ConstantExpr::getGetElementPtr(SrcElemTy, Ptr, NewIdxs, 1069 InBounds, InRangeIndex); 1070 assert(C->getType()->getPointerElementType() == Ty && 1071 "Computed GetElementPtr has unexpected type!"); 1072 1073 // If we ended up indexing a member with a type that doesn't match 1074 // the type of what the original indices indexed, add a cast. 1075 if (C->getType() != ResTy) 1076 C = FoldBitCast(C, ResTy, DL); 1077 1078 return C; 1079 } 1080 1081 /// Attempt to constant fold an instruction with the 1082 /// specified opcode and operands. If successful, the constant result is 1083 /// returned, if not, null is returned. Note that this function can fail when 1084 /// attempting to fold instructions like loads and stores, which have no 1085 /// constant expression form. 1086 Constant *ConstantFoldInstOperandsImpl(const Value *InstOrCE, unsigned Opcode, 1087 ArrayRef<Constant *> Ops, 1088 const DataLayout &DL, 1089 const TargetLibraryInfo *TLI) { 1090 Type *DestTy = InstOrCE->getType(); 1091 1092 if (Instruction::isUnaryOp(Opcode)) 1093 return ConstantFoldUnaryOpOperand(Opcode, Ops[0], DL); 1094 1095 if (Instruction::isBinaryOp(Opcode)) 1096 return ConstantFoldBinaryOpOperands(Opcode, Ops[0], Ops[1], DL); 1097 1098 if (Instruction::isCast(Opcode)) 1099 return ConstantFoldCastOperand(Opcode, Ops[0], DestTy, DL); 1100 1101 if (auto *GEP = dyn_cast<GEPOperator>(InstOrCE)) { 1102 if (Constant *C = SymbolicallyEvaluateGEP(GEP, Ops, DL, TLI, 1103 /*ForLoadOperand*/ false)) 1104 return C; 1105 1106 return ConstantExpr::getGetElementPtr(GEP->getSourceElementType(), Ops[0], 1107 Ops.slice(1), GEP->isInBounds(), 1108 GEP->getInRangeIndex()); 1109 } 1110 1111 if (auto *CE = dyn_cast<ConstantExpr>(InstOrCE)) 1112 return CE->getWithOperands(Ops); 1113 1114 switch (Opcode) { 1115 default: return nullptr; 1116 case Instruction::ICmp: 1117 case Instruction::FCmp: llvm_unreachable("Invalid for compares"); 1118 case Instruction::Freeze: 1119 return isGuaranteedNotToBeUndefOrPoison(Ops[0]) ? Ops[0] : nullptr; 1120 case Instruction::Call: 1121 if (auto *F = dyn_cast<Function>(Ops.back())) { 1122 const auto *Call = cast<CallBase>(InstOrCE); 1123 if (canConstantFoldCallTo(Call, F)) 1124 return ConstantFoldCall(Call, F, Ops.slice(0, Ops.size() - 1), TLI); 1125 } 1126 return nullptr; 1127 case Instruction::Select: 1128 return ConstantExpr::getSelect(Ops[0], Ops[1], Ops[2]); 1129 case Instruction::ExtractElement: 1130 return ConstantExpr::getExtractElement(Ops[0], Ops[1]); 1131 case Instruction::ExtractValue: 1132 return ConstantExpr::getExtractValue( 1133 Ops[0], cast<ExtractValueInst>(InstOrCE)->getIndices()); 1134 case Instruction::InsertElement: 1135 return ConstantExpr::getInsertElement(Ops[0], Ops[1], Ops[2]); 1136 case Instruction::ShuffleVector: 1137 return ConstantExpr::getShuffleVector( 1138 Ops[0], Ops[1], cast<ShuffleVectorInst>(InstOrCE)->getShuffleMask()); 1139 } 1140 } 1141 1142 } // end anonymous namespace 1143 1144 //===----------------------------------------------------------------------===// 1145 // Constant Folding public APIs 1146 //===----------------------------------------------------------------------===// 1147 1148 namespace { 1149 1150 Constant * 1151 ConstantFoldConstantImpl(const Constant *C, const DataLayout &DL, 1152 const TargetLibraryInfo *TLI, 1153 SmallDenseMap<Constant *, Constant *> &FoldedOps) { 1154 if (!isa<ConstantVector>(C) && !isa<ConstantExpr>(C)) 1155 return const_cast<Constant *>(C); 1156 1157 SmallVector<Constant *, 8> Ops; 1158 for (const Use &OldU : C->operands()) { 1159 Constant *OldC = cast<Constant>(&OldU); 1160 Constant *NewC = OldC; 1161 // Recursively fold the ConstantExpr's operands. If we have already folded 1162 // a ConstantExpr, we don't have to process it again. 1163 if (isa<ConstantVector>(OldC) || isa<ConstantExpr>(OldC)) { 1164 auto It = FoldedOps.find(OldC); 1165 if (It == FoldedOps.end()) { 1166 NewC = ConstantFoldConstantImpl(OldC, DL, TLI, FoldedOps); 1167 FoldedOps.insert({OldC, NewC}); 1168 } else { 1169 NewC = It->second; 1170 } 1171 } 1172 Ops.push_back(NewC); 1173 } 1174 1175 if (auto *CE = dyn_cast<ConstantExpr>(C)) { 1176 if (CE->isCompare()) 1177 return ConstantFoldCompareInstOperands(CE->getPredicate(), Ops[0], Ops[1], 1178 DL, TLI); 1179 1180 return ConstantFoldInstOperandsImpl(CE, CE->getOpcode(), Ops, DL, TLI); 1181 } 1182 1183 assert(isa<ConstantVector>(C)); 1184 return ConstantVector::get(Ops); 1185 } 1186 1187 } // end anonymous namespace 1188 1189 Constant *llvm::ConstantFoldInstruction(Instruction *I, const DataLayout &DL, 1190 const TargetLibraryInfo *TLI) { 1191 // Handle PHI nodes quickly here... 1192 if (auto *PN = dyn_cast<PHINode>(I)) { 1193 Constant *CommonValue = nullptr; 1194 1195 SmallDenseMap<Constant *, Constant *> FoldedOps; 1196 for (Value *Incoming : PN->incoming_values()) { 1197 // If the incoming value is undef then skip it. Note that while we could 1198 // skip the value if it is equal to the phi node itself we choose not to 1199 // because that would break the rule that constant folding only applies if 1200 // all operands are constants. 1201 if (isa<UndefValue>(Incoming)) 1202 continue; 1203 // If the incoming value is not a constant, then give up. 1204 auto *C = dyn_cast<Constant>(Incoming); 1205 if (!C) 1206 return nullptr; 1207 // Fold the PHI's operands. 1208 C = ConstantFoldConstantImpl(C, DL, TLI, FoldedOps); 1209 // If the incoming value is a different constant to 1210 // the one we saw previously, then give up. 1211 if (CommonValue && C != CommonValue) 1212 return nullptr; 1213 CommonValue = C; 1214 } 1215 1216 // If we reach here, all incoming values are the same constant or undef. 1217 return CommonValue ? CommonValue : UndefValue::get(PN->getType()); 1218 } 1219 1220 // Scan the operand list, checking to see if they are all constants, if so, 1221 // hand off to ConstantFoldInstOperandsImpl. 1222 if (!all_of(I->operands(), [](Use &U) { return isa<Constant>(U); })) 1223 return nullptr; 1224 1225 SmallDenseMap<Constant *, Constant *> FoldedOps; 1226 SmallVector<Constant *, 8> Ops; 1227 for (const Use &OpU : I->operands()) { 1228 auto *Op = cast<Constant>(&OpU); 1229 // Fold the Instruction's operands. 1230 Op = ConstantFoldConstantImpl(Op, DL, TLI, FoldedOps); 1231 Ops.push_back(Op); 1232 } 1233 1234 if (const auto *CI = dyn_cast<CmpInst>(I)) 1235 return ConstantFoldCompareInstOperands(CI->getPredicate(), Ops[0], Ops[1], 1236 DL, TLI); 1237 1238 if (const auto *LI = dyn_cast<LoadInst>(I)) { 1239 if (LI->isVolatile()) 1240 return nullptr; 1241 return ConstantFoldLoadFromConstPtr(Ops[0], LI->getType(), DL); 1242 } 1243 1244 if (auto *IVI = dyn_cast<InsertValueInst>(I)) 1245 return ConstantExpr::getInsertValue(Ops[0], Ops[1], IVI->getIndices()); 1246 1247 if (auto *EVI = dyn_cast<ExtractValueInst>(I)) 1248 return ConstantExpr::getExtractValue(Ops[0], EVI->getIndices()); 1249 1250 return ConstantFoldInstOperands(I, Ops, DL, TLI); 1251 } 1252 1253 Constant *llvm::ConstantFoldConstant(const Constant *C, const DataLayout &DL, 1254 const TargetLibraryInfo *TLI) { 1255 SmallDenseMap<Constant *, Constant *> FoldedOps; 1256 return ConstantFoldConstantImpl(C, DL, TLI, FoldedOps); 1257 } 1258 1259 Constant *llvm::ConstantFoldInstOperands(Instruction *I, 1260 ArrayRef<Constant *> Ops, 1261 const DataLayout &DL, 1262 const TargetLibraryInfo *TLI) { 1263 return ConstantFoldInstOperandsImpl(I, I->getOpcode(), Ops, DL, TLI); 1264 } 1265 1266 Constant *llvm::ConstantFoldCompareInstOperands(unsigned Predicate, 1267 Constant *Ops0, Constant *Ops1, 1268 const DataLayout &DL, 1269 const TargetLibraryInfo *TLI) { 1270 // fold: icmp (inttoptr x), null -> icmp x, 0 1271 // fold: icmp null, (inttoptr x) -> icmp 0, x 1272 // fold: icmp (ptrtoint x), 0 -> icmp x, null 1273 // fold: icmp 0, (ptrtoint x) -> icmp null, x 1274 // fold: icmp (inttoptr x), (inttoptr y) -> icmp trunc/zext x, trunc/zext y 1275 // fold: icmp (ptrtoint x), (ptrtoint y) -> icmp x, y 1276 // 1277 // FIXME: The following comment is out of data and the DataLayout is here now. 1278 // ConstantExpr::getCompare cannot do this, because it doesn't have DL 1279 // around to know if bit truncation is happening. 1280 if (auto *CE0 = dyn_cast<ConstantExpr>(Ops0)) { 1281 if (Ops1->isNullValue()) { 1282 if (CE0->getOpcode() == Instruction::IntToPtr) { 1283 Type *IntPtrTy = DL.getIntPtrType(CE0->getType()); 1284 // Convert the integer value to the right size to ensure we get the 1285 // proper extension or truncation. 1286 Constant *C = ConstantExpr::getIntegerCast(CE0->getOperand(0), 1287 IntPtrTy, false); 1288 Constant *Null = Constant::getNullValue(C->getType()); 1289 return ConstantFoldCompareInstOperands(Predicate, C, Null, DL, TLI); 1290 } 1291 1292 // Only do this transformation if the int is intptrty in size, otherwise 1293 // there is a truncation or extension that we aren't modeling. 1294 if (CE0->getOpcode() == Instruction::PtrToInt) { 1295 Type *IntPtrTy = DL.getIntPtrType(CE0->getOperand(0)->getType()); 1296 if (CE0->getType() == IntPtrTy) { 1297 Constant *C = CE0->getOperand(0); 1298 Constant *Null = Constant::getNullValue(C->getType()); 1299 return ConstantFoldCompareInstOperands(Predicate, C, Null, DL, TLI); 1300 } 1301 } 1302 } 1303 1304 if (auto *CE1 = dyn_cast<ConstantExpr>(Ops1)) { 1305 if (CE0->getOpcode() == CE1->getOpcode()) { 1306 if (CE0->getOpcode() == Instruction::IntToPtr) { 1307 Type *IntPtrTy = DL.getIntPtrType(CE0->getType()); 1308 1309 // Convert the integer value to the right size to ensure we get the 1310 // proper extension or truncation. 1311 Constant *C0 = ConstantExpr::getIntegerCast(CE0->getOperand(0), 1312 IntPtrTy, false); 1313 Constant *C1 = ConstantExpr::getIntegerCast(CE1->getOperand(0), 1314 IntPtrTy, false); 1315 return ConstantFoldCompareInstOperands(Predicate, C0, C1, DL, TLI); 1316 } 1317 1318 // Only do this transformation if the int is intptrty in size, otherwise 1319 // there is a truncation or extension that we aren't modeling. 1320 if (CE0->getOpcode() == Instruction::PtrToInt) { 1321 Type *IntPtrTy = DL.getIntPtrType(CE0->getOperand(0)->getType()); 1322 if (CE0->getType() == IntPtrTy && 1323 CE0->getOperand(0)->getType() == CE1->getOperand(0)->getType()) { 1324 return ConstantFoldCompareInstOperands( 1325 Predicate, CE0->getOperand(0), CE1->getOperand(0), DL, TLI); 1326 } 1327 } 1328 } 1329 } 1330 1331 // icmp eq (or x, y), 0 -> (icmp eq x, 0) & (icmp eq y, 0) 1332 // icmp ne (or x, y), 0 -> (icmp ne x, 0) | (icmp ne y, 0) 1333 if ((Predicate == ICmpInst::ICMP_EQ || Predicate == ICmpInst::ICMP_NE) && 1334 CE0->getOpcode() == Instruction::Or && Ops1->isNullValue()) { 1335 Constant *LHS = ConstantFoldCompareInstOperands( 1336 Predicate, CE0->getOperand(0), Ops1, DL, TLI); 1337 Constant *RHS = ConstantFoldCompareInstOperands( 1338 Predicate, CE0->getOperand(1), Ops1, DL, TLI); 1339 unsigned OpC = 1340 Predicate == ICmpInst::ICMP_EQ ? Instruction::And : Instruction::Or; 1341 return ConstantFoldBinaryOpOperands(OpC, LHS, RHS, DL); 1342 } 1343 } else if (isa<ConstantExpr>(Ops1)) { 1344 // If RHS is a constant expression, but the left side isn't, swap the 1345 // operands and try again. 1346 Predicate = ICmpInst::getSwappedPredicate((ICmpInst::Predicate)Predicate); 1347 return ConstantFoldCompareInstOperands(Predicate, Ops1, Ops0, DL, TLI); 1348 } 1349 1350 return ConstantExpr::getCompare(Predicate, Ops0, Ops1); 1351 } 1352 1353 Constant *llvm::ConstantFoldUnaryOpOperand(unsigned Opcode, Constant *Op, 1354 const DataLayout &DL) { 1355 assert(Instruction::isUnaryOp(Opcode)); 1356 1357 return ConstantExpr::get(Opcode, Op); 1358 } 1359 1360 Constant *llvm::ConstantFoldBinaryOpOperands(unsigned Opcode, Constant *LHS, 1361 Constant *RHS, 1362 const DataLayout &DL) { 1363 assert(Instruction::isBinaryOp(Opcode)); 1364 if (isa<ConstantExpr>(LHS) || isa<ConstantExpr>(RHS)) 1365 if (Constant *C = SymbolicallyEvaluateBinop(Opcode, LHS, RHS, DL)) 1366 return C; 1367 1368 return ConstantExpr::get(Opcode, LHS, RHS); 1369 } 1370 1371 Constant *llvm::ConstantFoldCastOperand(unsigned Opcode, Constant *C, 1372 Type *DestTy, const DataLayout &DL) { 1373 assert(Instruction::isCast(Opcode)); 1374 switch (Opcode) { 1375 default: 1376 llvm_unreachable("Missing case"); 1377 case Instruction::PtrToInt: 1378 // If the input is a inttoptr, eliminate the pair. This requires knowing 1379 // the width of a pointer, so it can't be done in ConstantExpr::getCast. 1380 if (auto *CE = dyn_cast<ConstantExpr>(C)) { 1381 if (CE->getOpcode() == Instruction::IntToPtr) { 1382 Constant *Input = CE->getOperand(0); 1383 unsigned InWidth = Input->getType()->getScalarSizeInBits(); 1384 unsigned PtrWidth = DL.getPointerTypeSizeInBits(CE->getType()); 1385 if (PtrWidth < InWidth) { 1386 Constant *Mask = 1387 ConstantInt::get(CE->getContext(), 1388 APInt::getLowBitsSet(InWidth, PtrWidth)); 1389 Input = ConstantExpr::getAnd(Input, Mask); 1390 } 1391 // Do a zext or trunc to get to the dest size. 1392 return ConstantExpr::getIntegerCast(Input, DestTy, false); 1393 } 1394 } 1395 return ConstantExpr::getCast(Opcode, C, DestTy); 1396 case Instruction::IntToPtr: 1397 // If the input is a ptrtoint, turn the pair into a ptr to ptr bitcast if 1398 // the int size is >= the ptr size and the address spaces are the same. 1399 // This requires knowing the width of a pointer, so it can't be done in 1400 // ConstantExpr::getCast. 1401 if (auto *CE = dyn_cast<ConstantExpr>(C)) { 1402 if (CE->getOpcode() == Instruction::PtrToInt) { 1403 Constant *SrcPtr = CE->getOperand(0); 1404 unsigned SrcPtrSize = DL.getPointerTypeSizeInBits(SrcPtr->getType()); 1405 unsigned MidIntSize = CE->getType()->getScalarSizeInBits(); 1406 1407 if (MidIntSize >= SrcPtrSize) { 1408 unsigned SrcAS = SrcPtr->getType()->getPointerAddressSpace(); 1409 if (SrcAS == DestTy->getPointerAddressSpace()) 1410 return FoldBitCast(CE->getOperand(0), DestTy, DL); 1411 } 1412 } 1413 } 1414 1415 return ConstantExpr::getCast(Opcode, C, DestTy); 1416 case Instruction::Trunc: 1417 case Instruction::ZExt: 1418 case Instruction::SExt: 1419 case Instruction::FPTrunc: 1420 case Instruction::FPExt: 1421 case Instruction::UIToFP: 1422 case Instruction::SIToFP: 1423 case Instruction::FPToUI: 1424 case Instruction::FPToSI: 1425 case Instruction::AddrSpaceCast: 1426 return ConstantExpr::getCast(Opcode, C, DestTy); 1427 case Instruction::BitCast: 1428 return FoldBitCast(C, DestTy, DL); 1429 } 1430 } 1431 1432 Constant *llvm::ConstantFoldLoadThroughGEPConstantExpr(Constant *C, 1433 ConstantExpr *CE, 1434 Type *Ty, 1435 const DataLayout &DL) { 1436 if (!CE->getOperand(1)->isNullValue()) 1437 return nullptr; // Do not allow stepping over the value! 1438 1439 // Loop over all of the operands, tracking down which value we are 1440 // addressing. 1441 for (unsigned i = 2, e = CE->getNumOperands(); i != e; ++i) { 1442 C = C->getAggregateElement(CE->getOperand(i)); 1443 if (!C) 1444 return nullptr; 1445 } 1446 return ConstantFoldLoadThroughBitcast(C, Ty, DL); 1447 } 1448 1449 Constant * 1450 llvm::ConstantFoldLoadThroughGEPIndices(Constant *C, 1451 ArrayRef<Constant *> Indices) { 1452 // Loop over all of the operands, tracking down which value we are 1453 // addressing. 1454 for (Constant *Index : Indices) { 1455 C = C->getAggregateElement(Index); 1456 if (!C) 1457 return nullptr; 1458 } 1459 return C; 1460 } 1461 1462 //===----------------------------------------------------------------------===// 1463 // Constant Folding for Calls 1464 // 1465 1466 bool llvm::canConstantFoldCallTo(const CallBase *Call, const Function *F) { 1467 if (Call->isNoBuiltin()) 1468 return false; 1469 switch (F->getIntrinsicID()) { 1470 // Operations that do not operate floating-point numbers and do not depend on 1471 // FP environment can be folded even in strictfp functions. 1472 case Intrinsic::bswap: 1473 case Intrinsic::ctpop: 1474 case Intrinsic::ctlz: 1475 case Intrinsic::cttz: 1476 case Intrinsic::fshl: 1477 case Intrinsic::fshr: 1478 case Intrinsic::launder_invariant_group: 1479 case Intrinsic::strip_invariant_group: 1480 case Intrinsic::masked_load: 1481 case Intrinsic::get_active_lane_mask: 1482 case Intrinsic::abs: 1483 case Intrinsic::smax: 1484 case Intrinsic::smin: 1485 case Intrinsic::umax: 1486 case Intrinsic::umin: 1487 case Intrinsic::sadd_with_overflow: 1488 case Intrinsic::uadd_with_overflow: 1489 case Intrinsic::ssub_with_overflow: 1490 case Intrinsic::usub_with_overflow: 1491 case Intrinsic::smul_with_overflow: 1492 case Intrinsic::umul_with_overflow: 1493 case Intrinsic::sadd_sat: 1494 case Intrinsic::uadd_sat: 1495 case Intrinsic::ssub_sat: 1496 case Intrinsic::usub_sat: 1497 case Intrinsic::smul_fix: 1498 case Intrinsic::smul_fix_sat: 1499 case Intrinsic::bitreverse: 1500 case Intrinsic::is_constant: 1501 case Intrinsic::vector_reduce_add: 1502 case Intrinsic::vector_reduce_mul: 1503 case Intrinsic::vector_reduce_and: 1504 case Intrinsic::vector_reduce_or: 1505 case Intrinsic::vector_reduce_xor: 1506 case Intrinsic::vector_reduce_smin: 1507 case Intrinsic::vector_reduce_smax: 1508 case Intrinsic::vector_reduce_umin: 1509 case Intrinsic::vector_reduce_umax: 1510 // Target intrinsics 1511 case Intrinsic::amdgcn_perm: 1512 case Intrinsic::arm_mve_vctp8: 1513 case Intrinsic::arm_mve_vctp16: 1514 case Intrinsic::arm_mve_vctp32: 1515 case Intrinsic::arm_mve_vctp64: 1516 case Intrinsic::aarch64_sve_convert_from_svbool: 1517 // WebAssembly float semantics are always known 1518 case Intrinsic::wasm_trunc_signed: 1519 case Intrinsic::wasm_trunc_unsigned: 1520 return true; 1521 1522 // Floating point operations cannot be folded in strictfp functions in 1523 // general case. They can be folded if FP environment is known to compiler. 1524 case Intrinsic::minnum: 1525 case Intrinsic::maxnum: 1526 case Intrinsic::minimum: 1527 case Intrinsic::maximum: 1528 case Intrinsic::log: 1529 case Intrinsic::log2: 1530 case Intrinsic::log10: 1531 case Intrinsic::exp: 1532 case Intrinsic::exp2: 1533 case Intrinsic::sqrt: 1534 case Intrinsic::sin: 1535 case Intrinsic::cos: 1536 case Intrinsic::pow: 1537 case Intrinsic::powi: 1538 case Intrinsic::fma: 1539 case Intrinsic::fmuladd: 1540 case Intrinsic::fptoui_sat: 1541 case Intrinsic::fptosi_sat: 1542 case Intrinsic::convert_from_fp16: 1543 case Intrinsic::convert_to_fp16: 1544 case Intrinsic::amdgcn_cos: 1545 case Intrinsic::amdgcn_cubeid: 1546 case Intrinsic::amdgcn_cubema: 1547 case Intrinsic::amdgcn_cubesc: 1548 case Intrinsic::amdgcn_cubetc: 1549 case Intrinsic::amdgcn_fmul_legacy: 1550 case Intrinsic::amdgcn_fma_legacy: 1551 case Intrinsic::amdgcn_fract: 1552 case Intrinsic::amdgcn_ldexp: 1553 case Intrinsic::amdgcn_sin: 1554 // The intrinsics below depend on rounding mode in MXCSR. 1555 case Intrinsic::x86_sse_cvtss2si: 1556 case Intrinsic::x86_sse_cvtss2si64: 1557 case Intrinsic::x86_sse_cvttss2si: 1558 case Intrinsic::x86_sse_cvttss2si64: 1559 case Intrinsic::x86_sse2_cvtsd2si: 1560 case Intrinsic::x86_sse2_cvtsd2si64: 1561 case Intrinsic::x86_sse2_cvttsd2si: 1562 case Intrinsic::x86_sse2_cvttsd2si64: 1563 case Intrinsic::x86_avx512_vcvtss2si32: 1564 case Intrinsic::x86_avx512_vcvtss2si64: 1565 case Intrinsic::x86_avx512_cvttss2si: 1566 case Intrinsic::x86_avx512_cvttss2si64: 1567 case Intrinsic::x86_avx512_vcvtsd2si32: 1568 case Intrinsic::x86_avx512_vcvtsd2si64: 1569 case Intrinsic::x86_avx512_cvttsd2si: 1570 case Intrinsic::x86_avx512_cvttsd2si64: 1571 case Intrinsic::x86_avx512_vcvtss2usi32: 1572 case Intrinsic::x86_avx512_vcvtss2usi64: 1573 case Intrinsic::x86_avx512_cvttss2usi: 1574 case Intrinsic::x86_avx512_cvttss2usi64: 1575 case Intrinsic::x86_avx512_vcvtsd2usi32: 1576 case Intrinsic::x86_avx512_vcvtsd2usi64: 1577 case Intrinsic::x86_avx512_cvttsd2usi: 1578 case Intrinsic::x86_avx512_cvttsd2usi64: 1579 return !Call->isStrictFP(); 1580 1581 // Sign operations are actually bitwise operations, they do not raise 1582 // exceptions even for SNANs. The same applies to classification functions. 1583 case Intrinsic::fabs: 1584 case Intrinsic::copysign: 1585 case Intrinsic::isnan: 1586 // Non-constrained variants of rounding operations means default FP 1587 // environment, they can be folded in any case. 1588 case Intrinsic::ceil: 1589 case Intrinsic::floor: 1590 case Intrinsic::round: 1591 case Intrinsic::roundeven: 1592 case Intrinsic::trunc: 1593 case Intrinsic::nearbyint: 1594 case Intrinsic::rint: 1595 // Constrained intrinsics can be folded if FP environment is known 1596 // to compiler. 1597 case Intrinsic::experimental_constrained_fma: 1598 case Intrinsic::experimental_constrained_fmuladd: 1599 case Intrinsic::experimental_constrained_fadd: 1600 case Intrinsic::experimental_constrained_fsub: 1601 case Intrinsic::experimental_constrained_fmul: 1602 case Intrinsic::experimental_constrained_fdiv: 1603 case Intrinsic::experimental_constrained_frem: 1604 case Intrinsic::experimental_constrained_ceil: 1605 case Intrinsic::experimental_constrained_floor: 1606 case Intrinsic::experimental_constrained_round: 1607 case Intrinsic::experimental_constrained_roundeven: 1608 case Intrinsic::experimental_constrained_trunc: 1609 case Intrinsic::experimental_constrained_nearbyint: 1610 case Intrinsic::experimental_constrained_rint: 1611 return true; 1612 default: 1613 return false; 1614 case Intrinsic::not_intrinsic: break; 1615 } 1616 1617 if (!F->hasName() || Call->isStrictFP()) 1618 return false; 1619 1620 // In these cases, the check of the length is required. We don't want to 1621 // return true for a name like "cos\0blah" which strcmp would return equal to 1622 // "cos", but has length 8. 1623 StringRef Name = F->getName(); 1624 switch (Name[0]) { 1625 default: 1626 return false; 1627 case 'a': 1628 return Name == "acos" || Name == "acosf" || 1629 Name == "asin" || Name == "asinf" || 1630 Name == "atan" || Name == "atanf" || 1631 Name == "atan2" || Name == "atan2f"; 1632 case 'c': 1633 return Name == "ceil" || Name == "ceilf" || 1634 Name == "cos" || Name == "cosf" || 1635 Name == "cosh" || Name == "coshf"; 1636 case 'e': 1637 return Name == "exp" || Name == "expf" || 1638 Name == "exp2" || Name == "exp2f"; 1639 case 'f': 1640 return Name == "fabs" || Name == "fabsf" || 1641 Name == "floor" || Name == "floorf" || 1642 Name == "fmod" || Name == "fmodf"; 1643 case 'l': 1644 return Name == "log" || Name == "logf" || 1645 Name == "log2" || Name == "log2f" || 1646 Name == "log10" || Name == "log10f"; 1647 case 'n': 1648 return Name == "nearbyint" || Name == "nearbyintf"; 1649 case 'p': 1650 return Name == "pow" || Name == "powf"; 1651 case 'r': 1652 return Name == "remainder" || Name == "remainderf" || 1653 Name == "rint" || Name == "rintf" || 1654 Name == "round" || Name == "roundf"; 1655 case 's': 1656 return Name == "sin" || Name == "sinf" || 1657 Name == "sinh" || Name == "sinhf" || 1658 Name == "sqrt" || Name == "sqrtf"; 1659 case 't': 1660 return Name == "tan" || Name == "tanf" || 1661 Name == "tanh" || Name == "tanhf" || 1662 Name == "trunc" || Name == "truncf"; 1663 case '_': 1664 // Check for various function names that get used for the math functions 1665 // when the header files are preprocessed with the macro 1666 // __FINITE_MATH_ONLY__ enabled. 1667 // The '12' here is the length of the shortest name that can match. 1668 // We need to check the size before looking at Name[1] and Name[2] 1669 // so we may as well check a limit that will eliminate mismatches. 1670 if (Name.size() < 12 || Name[1] != '_') 1671 return false; 1672 switch (Name[2]) { 1673 default: 1674 return false; 1675 case 'a': 1676 return Name == "__acos_finite" || Name == "__acosf_finite" || 1677 Name == "__asin_finite" || Name == "__asinf_finite" || 1678 Name == "__atan2_finite" || Name == "__atan2f_finite"; 1679 case 'c': 1680 return Name == "__cosh_finite" || Name == "__coshf_finite"; 1681 case 'e': 1682 return Name == "__exp_finite" || Name == "__expf_finite" || 1683 Name == "__exp2_finite" || Name == "__exp2f_finite"; 1684 case 'l': 1685 return Name == "__log_finite" || Name == "__logf_finite" || 1686 Name == "__log10_finite" || Name == "__log10f_finite"; 1687 case 'p': 1688 return Name == "__pow_finite" || Name == "__powf_finite"; 1689 case 's': 1690 return Name == "__sinh_finite" || Name == "__sinhf_finite"; 1691 } 1692 } 1693 } 1694 1695 namespace { 1696 1697 Constant *GetConstantFoldFPValue(double V, Type *Ty) { 1698 if (Ty->isHalfTy() || Ty->isFloatTy()) { 1699 APFloat APF(V); 1700 bool unused; 1701 APF.convert(Ty->getFltSemantics(), APFloat::rmNearestTiesToEven, &unused); 1702 return ConstantFP::get(Ty->getContext(), APF); 1703 } 1704 if (Ty->isDoubleTy()) 1705 return ConstantFP::get(Ty->getContext(), APFloat(V)); 1706 llvm_unreachable("Can only constant fold half/float/double"); 1707 } 1708 1709 /// Clear the floating-point exception state. 1710 inline void llvm_fenv_clearexcept() { 1711 #if defined(HAVE_FENV_H) && HAVE_DECL_FE_ALL_EXCEPT 1712 feclearexcept(FE_ALL_EXCEPT); 1713 #endif 1714 errno = 0; 1715 } 1716 1717 /// Test if a floating-point exception was raised. 1718 inline bool llvm_fenv_testexcept() { 1719 int errno_val = errno; 1720 if (errno_val == ERANGE || errno_val == EDOM) 1721 return true; 1722 #if defined(HAVE_FENV_H) && HAVE_DECL_FE_ALL_EXCEPT && HAVE_DECL_FE_INEXACT 1723 if (fetestexcept(FE_ALL_EXCEPT & ~FE_INEXACT)) 1724 return true; 1725 #endif 1726 return false; 1727 } 1728 1729 Constant *ConstantFoldFP(double (*NativeFP)(double), const APFloat &V, 1730 Type *Ty) { 1731 llvm_fenv_clearexcept(); 1732 double Result = NativeFP(V.convertToDouble()); 1733 if (llvm_fenv_testexcept()) { 1734 llvm_fenv_clearexcept(); 1735 return nullptr; 1736 } 1737 1738 return GetConstantFoldFPValue(Result, Ty); 1739 } 1740 1741 Constant *ConstantFoldBinaryFP(double (*NativeFP)(double, double), 1742 const APFloat &V, const APFloat &W, Type *Ty) { 1743 llvm_fenv_clearexcept(); 1744 double Result = NativeFP(V.convertToDouble(), W.convertToDouble()); 1745 if (llvm_fenv_testexcept()) { 1746 llvm_fenv_clearexcept(); 1747 return nullptr; 1748 } 1749 1750 return GetConstantFoldFPValue(Result, Ty); 1751 } 1752 1753 Constant *constantFoldVectorReduce(Intrinsic::ID IID, Constant *Op) { 1754 FixedVectorType *VT = dyn_cast<FixedVectorType>(Op->getType()); 1755 if (!VT) 1756 return nullptr; 1757 1758 // This isn't strictly necessary, but handle the special/common case of zero: 1759 // all integer reductions of a zero input produce zero. 1760 if (isa<ConstantAggregateZero>(Op)) 1761 return ConstantInt::get(VT->getElementType(), 0); 1762 1763 // This is the same as the underlying binops - poison propagates. 1764 if (isa<PoisonValue>(Op) || Op->containsPoisonElement()) 1765 return PoisonValue::get(VT->getElementType()); 1766 1767 // TODO: Handle undef. 1768 if (!isa<ConstantVector>(Op) && !isa<ConstantDataVector>(Op)) 1769 return nullptr; 1770 1771 auto *EltC = dyn_cast<ConstantInt>(Op->getAggregateElement(0U)); 1772 if (!EltC) 1773 return nullptr; 1774 1775 APInt Acc = EltC->getValue(); 1776 for (unsigned I = 1, E = VT->getNumElements(); I != E; I++) { 1777 if (!(EltC = dyn_cast<ConstantInt>(Op->getAggregateElement(I)))) 1778 return nullptr; 1779 const APInt &X = EltC->getValue(); 1780 switch (IID) { 1781 case Intrinsic::vector_reduce_add: 1782 Acc = Acc + X; 1783 break; 1784 case Intrinsic::vector_reduce_mul: 1785 Acc = Acc * X; 1786 break; 1787 case Intrinsic::vector_reduce_and: 1788 Acc = Acc & X; 1789 break; 1790 case Intrinsic::vector_reduce_or: 1791 Acc = Acc | X; 1792 break; 1793 case Intrinsic::vector_reduce_xor: 1794 Acc = Acc ^ X; 1795 break; 1796 case Intrinsic::vector_reduce_smin: 1797 Acc = APIntOps::smin(Acc, X); 1798 break; 1799 case Intrinsic::vector_reduce_smax: 1800 Acc = APIntOps::smax(Acc, X); 1801 break; 1802 case Intrinsic::vector_reduce_umin: 1803 Acc = APIntOps::umin(Acc, X); 1804 break; 1805 case Intrinsic::vector_reduce_umax: 1806 Acc = APIntOps::umax(Acc, X); 1807 break; 1808 } 1809 } 1810 1811 return ConstantInt::get(Op->getContext(), Acc); 1812 } 1813 1814 /// Attempt to fold an SSE floating point to integer conversion of a constant 1815 /// floating point. If roundTowardZero is false, the default IEEE rounding is 1816 /// used (toward nearest, ties to even). This matches the behavior of the 1817 /// non-truncating SSE instructions in the default rounding mode. The desired 1818 /// integer type Ty is used to select how many bits are available for the 1819 /// result. Returns null if the conversion cannot be performed, otherwise 1820 /// returns the Constant value resulting from the conversion. 1821 Constant *ConstantFoldSSEConvertToInt(const APFloat &Val, bool roundTowardZero, 1822 Type *Ty, bool IsSigned) { 1823 // All of these conversion intrinsics form an integer of at most 64bits. 1824 unsigned ResultWidth = Ty->getIntegerBitWidth(); 1825 assert(ResultWidth <= 64 && 1826 "Can only constant fold conversions to 64 and 32 bit ints"); 1827 1828 uint64_t UIntVal; 1829 bool isExact = false; 1830 APFloat::roundingMode mode = roundTowardZero? APFloat::rmTowardZero 1831 : APFloat::rmNearestTiesToEven; 1832 APFloat::opStatus status = 1833 Val.convertToInteger(makeMutableArrayRef(UIntVal), ResultWidth, 1834 IsSigned, mode, &isExact); 1835 if (status != APFloat::opOK && 1836 (!roundTowardZero || status != APFloat::opInexact)) 1837 return nullptr; 1838 return ConstantInt::get(Ty, UIntVal, IsSigned); 1839 } 1840 1841 double getValueAsDouble(ConstantFP *Op) { 1842 Type *Ty = Op->getType(); 1843 1844 if (Ty->isBFloatTy() || Ty->isHalfTy() || Ty->isFloatTy() || Ty->isDoubleTy()) 1845 return Op->getValueAPF().convertToDouble(); 1846 1847 bool unused; 1848 APFloat APF = Op->getValueAPF(); 1849 APF.convert(APFloat::IEEEdouble(), APFloat::rmNearestTiesToEven, &unused); 1850 return APF.convertToDouble(); 1851 } 1852 1853 static bool getConstIntOrUndef(Value *Op, const APInt *&C) { 1854 if (auto *CI = dyn_cast<ConstantInt>(Op)) { 1855 C = &CI->getValue(); 1856 return true; 1857 } 1858 if (isa<UndefValue>(Op)) { 1859 C = nullptr; 1860 return true; 1861 } 1862 return false; 1863 } 1864 1865 /// Checks if the given intrinsic call, which evaluates to constant, is allowed 1866 /// to be folded. 1867 /// 1868 /// \param CI Constrained intrinsic call. 1869 /// \param St Exception flags raised during constant evaluation. 1870 static bool mayFoldConstrained(ConstrainedFPIntrinsic *CI, 1871 APFloat::opStatus St) { 1872 Optional<RoundingMode> ORM = CI->getRoundingMode(); 1873 Optional<fp::ExceptionBehavior> EB = CI->getExceptionBehavior(); 1874 1875 // If the operation does not change exception status flags, it is safe 1876 // to fold. 1877 if (St == APFloat::opStatus::opOK) { 1878 // When FP exceptions are not ignored, intrinsic call will not be 1879 // eliminated, because it is considered as having side effect. But we 1880 // know that its evaluation does not raise exceptions, so side effect 1881 // is absent. To allow removing the call, mark it as not accessing memory. 1882 if (EB && *EB != fp::ExceptionBehavior::ebIgnore) 1883 CI->addFnAttr(Attribute::ReadNone); 1884 return true; 1885 } 1886 1887 // If evaluation raised FP exception, the result can depend on rounding 1888 // mode. If the latter is unknown, folding is not possible. 1889 if (!ORM || *ORM == RoundingMode::Dynamic) 1890 return false; 1891 1892 // If FP exceptions are ignored, fold the call, even if such exception is 1893 // raised. 1894 if (!EB || *EB != fp::ExceptionBehavior::ebStrict) 1895 return true; 1896 1897 // Leave the calculation for runtime so that exception flags be correctly set 1898 // in hardware. 1899 return false; 1900 } 1901 1902 /// Returns the rounding mode that should be used for constant evaluation. 1903 static RoundingMode 1904 getEvaluationRoundingMode(const ConstrainedFPIntrinsic *CI) { 1905 Optional<RoundingMode> ORM = CI->getRoundingMode(); 1906 if (!ORM || *ORM == RoundingMode::Dynamic) 1907 // Even if the rounding mode is unknown, try evaluating the operation. 1908 // If it does not raise inexact exception, rounding was not applied, 1909 // so the result is exact and does not depend on rounding mode. Whether 1910 // other FP exceptions are raised, it does not depend on rounding mode. 1911 return RoundingMode::NearestTiesToEven; 1912 return *ORM; 1913 } 1914 1915 static Constant *ConstantFoldScalarCall1(StringRef Name, 1916 Intrinsic::ID IntrinsicID, 1917 Type *Ty, 1918 ArrayRef<Constant *> Operands, 1919 const TargetLibraryInfo *TLI, 1920 const CallBase *Call) { 1921 assert(Operands.size() == 1 && "Wrong number of operands."); 1922 1923 if (IntrinsicID == Intrinsic::is_constant) { 1924 // We know we have a "Constant" argument. But we want to only 1925 // return true for manifest constants, not those that depend on 1926 // constants with unknowable values, e.g. GlobalValue or BlockAddress. 1927 if (Operands[0]->isManifestConstant()) 1928 return ConstantInt::getTrue(Ty->getContext()); 1929 return nullptr; 1930 } 1931 if (isa<UndefValue>(Operands[0])) { 1932 // cosine(arg) is between -1 and 1. cosine(invalid arg) is NaN. 1933 // ctpop() is between 0 and bitwidth, pick 0 for undef. 1934 // fptoui.sat and fptosi.sat can always fold to zero (for a zero input). 1935 if (IntrinsicID == Intrinsic::cos || 1936 IntrinsicID == Intrinsic::ctpop || 1937 IntrinsicID == Intrinsic::fptoui_sat || 1938 IntrinsicID == Intrinsic::fptosi_sat) 1939 return Constant::getNullValue(Ty); 1940 if (IntrinsicID == Intrinsic::bswap || 1941 IntrinsicID == Intrinsic::bitreverse || 1942 IntrinsicID == Intrinsic::launder_invariant_group || 1943 IntrinsicID == Intrinsic::strip_invariant_group) 1944 return Operands[0]; 1945 } 1946 1947 if (isa<ConstantPointerNull>(Operands[0])) { 1948 // launder(null) == null == strip(null) iff in addrspace 0 1949 if (IntrinsicID == Intrinsic::launder_invariant_group || 1950 IntrinsicID == Intrinsic::strip_invariant_group) { 1951 // If instruction is not yet put in a basic block (e.g. when cloning 1952 // a function during inlining), Call's caller may not be available. 1953 // So check Call's BB first before querying Call->getCaller. 1954 const Function *Caller = 1955 Call->getParent() ? Call->getCaller() : nullptr; 1956 if (Caller && 1957 !NullPointerIsDefined( 1958 Caller, Operands[0]->getType()->getPointerAddressSpace())) { 1959 return Operands[0]; 1960 } 1961 return nullptr; 1962 } 1963 } 1964 1965 if (auto *Op = dyn_cast<ConstantFP>(Operands[0])) { 1966 if (IntrinsicID == Intrinsic::convert_to_fp16) { 1967 APFloat Val(Op->getValueAPF()); 1968 1969 bool lost = false; 1970 Val.convert(APFloat::IEEEhalf(), APFloat::rmNearestTiesToEven, &lost); 1971 1972 return ConstantInt::get(Ty->getContext(), Val.bitcastToAPInt()); 1973 } 1974 1975 APFloat U = Op->getValueAPF(); 1976 1977 if (IntrinsicID == Intrinsic::wasm_trunc_signed || 1978 IntrinsicID == Intrinsic::wasm_trunc_unsigned) { 1979 bool Signed = IntrinsicID == Intrinsic::wasm_trunc_signed; 1980 1981 if (U.isNaN()) 1982 return nullptr; 1983 1984 unsigned Width = Ty->getIntegerBitWidth(); 1985 APSInt Int(Width, !Signed); 1986 bool IsExact = false; 1987 APFloat::opStatus Status = 1988 U.convertToInteger(Int, APFloat::rmTowardZero, &IsExact); 1989 1990 if (Status == APFloat::opOK || Status == APFloat::opInexact) 1991 return ConstantInt::get(Ty, Int); 1992 1993 return nullptr; 1994 } 1995 1996 if (IntrinsicID == Intrinsic::fptoui_sat || 1997 IntrinsicID == Intrinsic::fptosi_sat) { 1998 // convertToInteger() already has the desired saturation semantics. 1999 APSInt Int(Ty->getIntegerBitWidth(), 2000 IntrinsicID == Intrinsic::fptoui_sat); 2001 bool IsExact; 2002 U.convertToInteger(Int, APFloat::rmTowardZero, &IsExact); 2003 return ConstantInt::get(Ty, Int); 2004 } 2005 2006 if (IntrinsicID == Intrinsic::isnan) 2007 return ConstantInt::get(Ty, U.isNaN()); 2008 2009 if (!Ty->isHalfTy() && !Ty->isFloatTy() && !Ty->isDoubleTy()) 2010 return nullptr; 2011 2012 // Use internal versions of these intrinsics. 2013 2014 if (IntrinsicID == Intrinsic::nearbyint || IntrinsicID == Intrinsic::rint) { 2015 U.roundToIntegral(APFloat::rmNearestTiesToEven); 2016 return ConstantFP::get(Ty->getContext(), U); 2017 } 2018 2019 if (IntrinsicID == Intrinsic::round) { 2020 U.roundToIntegral(APFloat::rmNearestTiesToAway); 2021 return ConstantFP::get(Ty->getContext(), U); 2022 } 2023 2024 if (IntrinsicID == Intrinsic::roundeven) { 2025 U.roundToIntegral(APFloat::rmNearestTiesToEven); 2026 return ConstantFP::get(Ty->getContext(), U); 2027 } 2028 2029 if (IntrinsicID == Intrinsic::ceil) { 2030 U.roundToIntegral(APFloat::rmTowardPositive); 2031 return ConstantFP::get(Ty->getContext(), U); 2032 } 2033 2034 if (IntrinsicID == Intrinsic::floor) { 2035 U.roundToIntegral(APFloat::rmTowardNegative); 2036 return ConstantFP::get(Ty->getContext(), U); 2037 } 2038 2039 if (IntrinsicID == Intrinsic::trunc) { 2040 U.roundToIntegral(APFloat::rmTowardZero); 2041 return ConstantFP::get(Ty->getContext(), U); 2042 } 2043 2044 if (IntrinsicID == Intrinsic::fabs) { 2045 U.clearSign(); 2046 return ConstantFP::get(Ty->getContext(), U); 2047 } 2048 2049 if (IntrinsicID == Intrinsic::amdgcn_fract) { 2050 // The v_fract instruction behaves like the OpenCL spec, which defines 2051 // fract(x) as fmin(x - floor(x), 0x1.fffffep-1f): "The min() operator is 2052 // there to prevent fract(-small) from returning 1.0. It returns the 2053 // largest positive floating-point number less than 1.0." 2054 APFloat FloorU(U); 2055 FloorU.roundToIntegral(APFloat::rmTowardNegative); 2056 APFloat FractU(U - FloorU); 2057 APFloat AlmostOne(U.getSemantics(), 1); 2058 AlmostOne.next(/*nextDown*/ true); 2059 return ConstantFP::get(Ty->getContext(), minimum(FractU, AlmostOne)); 2060 } 2061 2062 // Rounding operations (floor, trunc, ceil, round and nearbyint) do not 2063 // raise FP exceptions, unless the argument is signaling NaN. 2064 2065 Optional<APFloat::roundingMode> RM; 2066 switch (IntrinsicID) { 2067 default: 2068 break; 2069 case Intrinsic::experimental_constrained_nearbyint: 2070 case Intrinsic::experimental_constrained_rint: { 2071 auto CI = cast<ConstrainedFPIntrinsic>(Call); 2072 RM = CI->getRoundingMode(); 2073 if (!RM || RM.getValue() == RoundingMode::Dynamic) 2074 return nullptr; 2075 break; 2076 } 2077 case Intrinsic::experimental_constrained_round: 2078 RM = APFloat::rmNearestTiesToAway; 2079 break; 2080 case Intrinsic::experimental_constrained_ceil: 2081 RM = APFloat::rmTowardPositive; 2082 break; 2083 case Intrinsic::experimental_constrained_floor: 2084 RM = APFloat::rmTowardNegative; 2085 break; 2086 case Intrinsic::experimental_constrained_trunc: 2087 RM = APFloat::rmTowardZero; 2088 break; 2089 } 2090 if (RM) { 2091 auto CI = cast<ConstrainedFPIntrinsic>(Call); 2092 if (U.isFinite()) { 2093 APFloat::opStatus St = U.roundToIntegral(*RM); 2094 if (IntrinsicID == Intrinsic::experimental_constrained_rint && 2095 St == APFloat::opInexact) { 2096 Optional<fp::ExceptionBehavior> EB = CI->getExceptionBehavior(); 2097 if (EB && *EB == fp::ebStrict) 2098 return nullptr; 2099 } 2100 } else if (U.isSignaling()) { 2101 Optional<fp::ExceptionBehavior> EB = CI->getExceptionBehavior(); 2102 if (EB && *EB != fp::ebIgnore) 2103 return nullptr; 2104 U = APFloat::getQNaN(U.getSemantics()); 2105 } 2106 return ConstantFP::get(Ty->getContext(), U); 2107 } 2108 2109 /// We only fold functions with finite arguments. Folding NaN and inf is 2110 /// likely to be aborted with an exception anyway, and some host libms 2111 /// have known errors raising exceptions. 2112 if (!U.isFinite()) 2113 return nullptr; 2114 2115 /// Currently APFloat versions of these functions do not exist, so we use 2116 /// the host native double versions. Float versions are not called 2117 /// directly but for all these it is true (float)(f((double)arg)) == 2118 /// f(arg). Long double not supported yet. 2119 APFloat APF = Op->getValueAPF(); 2120 2121 switch (IntrinsicID) { 2122 default: break; 2123 case Intrinsic::log: 2124 return ConstantFoldFP(log, APF, Ty); 2125 case Intrinsic::log2: 2126 // TODO: What about hosts that lack a C99 library? 2127 return ConstantFoldFP(Log2, APF, Ty); 2128 case Intrinsic::log10: 2129 // TODO: What about hosts that lack a C99 library? 2130 return ConstantFoldFP(log10, APF, Ty); 2131 case Intrinsic::exp: 2132 return ConstantFoldFP(exp, APF, Ty); 2133 case Intrinsic::exp2: 2134 // Fold exp2(x) as pow(2, x), in case the host lacks a C99 library. 2135 return ConstantFoldBinaryFP(pow, APFloat(2.0), APF, Ty); 2136 case Intrinsic::sin: 2137 return ConstantFoldFP(sin, APF, Ty); 2138 case Intrinsic::cos: 2139 return ConstantFoldFP(cos, APF, Ty); 2140 case Intrinsic::sqrt: 2141 return ConstantFoldFP(sqrt, APF, Ty); 2142 case Intrinsic::amdgcn_cos: 2143 case Intrinsic::amdgcn_sin: { 2144 double V = getValueAsDouble(Op); 2145 if (V < -256.0 || V > 256.0) 2146 // The gfx8 and gfx9 architectures handle arguments outside the range 2147 // [-256, 256] differently. This should be a rare case so bail out 2148 // rather than trying to handle the difference. 2149 return nullptr; 2150 bool IsCos = IntrinsicID == Intrinsic::amdgcn_cos; 2151 double V4 = V * 4.0; 2152 if (V4 == floor(V4)) { 2153 // Force exact results for quarter-integer inputs. 2154 const double SinVals[4] = { 0.0, 1.0, 0.0, -1.0 }; 2155 V = SinVals[((int)V4 + (IsCos ? 1 : 0)) & 3]; 2156 } else { 2157 if (IsCos) 2158 V = cos(V * 2.0 * numbers::pi); 2159 else 2160 V = sin(V * 2.0 * numbers::pi); 2161 } 2162 return GetConstantFoldFPValue(V, Ty); 2163 } 2164 } 2165 2166 if (!TLI) 2167 return nullptr; 2168 2169 LibFunc Func = NotLibFunc; 2170 TLI->getLibFunc(Name, Func); 2171 switch (Func) { 2172 default: 2173 break; 2174 case LibFunc_acos: 2175 case LibFunc_acosf: 2176 case LibFunc_acos_finite: 2177 case LibFunc_acosf_finite: 2178 if (TLI->has(Func)) 2179 return ConstantFoldFP(acos, APF, Ty); 2180 break; 2181 case LibFunc_asin: 2182 case LibFunc_asinf: 2183 case LibFunc_asin_finite: 2184 case LibFunc_asinf_finite: 2185 if (TLI->has(Func)) 2186 return ConstantFoldFP(asin, APF, Ty); 2187 break; 2188 case LibFunc_atan: 2189 case LibFunc_atanf: 2190 if (TLI->has(Func)) 2191 return ConstantFoldFP(atan, APF, Ty); 2192 break; 2193 case LibFunc_ceil: 2194 case LibFunc_ceilf: 2195 if (TLI->has(Func)) { 2196 U.roundToIntegral(APFloat::rmTowardPositive); 2197 return ConstantFP::get(Ty->getContext(), U); 2198 } 2199 break; 2200 case LibFunc_cos: 2201 case LibFunc_cosf: 2202 if (TLI->has(Func)) 2203 return ConstantFoldFP(cos, APF, Ty); 2204 break; 2205 case LibFunc_cosh: 2206 case LibFunc_coshf: 2207 case LibFunc_cosh_finite: 2208 case LibFunc_coshf_finite: 2209 if (TLI->has(Func)) 2210 return ConstantFoldFP(cosh, APF, Ty); 2211 break; 2212 case LibFunc_exp: 2213 case LibFunc_expf: 2214 case LibFunc_exp_finite: 2215 case LibFunc_expf_finite: 2216 if (TLI->has(Func)) 2217 return ConstantFoldFP(exp, APF, Ty); 2218 break; 2219 case LibFunc_exp2: 2220 case LibFunc_exp2f: 2221 case LibFunc_exp2_finite: 2222 case LibFunc_exp2f_finite: 2223 if (TLI->has(Func)) 2224 // Fold exp2(x) as pow(2, x), in case the host lacks a C99 library. 2225 return ConstantFoldBinaryFP(pow, APFloat(2.0), APF, Ty); 2226 break; 2227 case LibFunc_fabs: 2228 case LibFunc_fabsf: 2229 if (TLI->has(Func)) { 2230 U.clearSign(); 2231 return ConstantFP::get(Ty->getContext(), U); 2232 } 2233 break; 2234 case LibFunc_floor: 2235 case LibFunc_floorf: 2236 if (TLI->has(Func)) { 2237 U.roundToIntegral(APFloat::rmTowardNegative); 2238 return ConstantFP::get(Ty->getContext(), U); 2239 } 2240 break; 2241 case LibFunc_log: 2242 case LibFunc_logf: 2243 case LibFunc_log_finite: 2244 case LibFunc_logf_finite: 2245 if (!APF.isNegative() && !APF.isZero() && TLI->has(Func)) 2246 return ConstantFoldFP(log, APF, Ty); 2247 break; 2248 case LibFunc_log2: 2249 case LibFunc_log2f: 2250 case LibFunc_log2_finite: 2251 case LibFunc_log2f_finite: 2252 if (!APF.isNegative() && !APF.isZero() && TLI->has(Func)) 2253 // TODO: What about hosts that lack a C99 library? 2254 return ConstantFoldFP(Log2, APF, Ty); 2255 break; 2256 case LibFunc_log10: 2257 case LibFunc_log10f: 2258 case LibFunc_log10_finite: 2259 case LibFunc_log10f_finite: 2260 if (!APF.isNegative() && !APF.isZero() && TLI->has(Func)) 2261 // TODO: What about hosts that lack a C99 library? 2262 return ConstantFoldFP(log10, APF, Ty); 2263 break; 2264 case LibFunc_nearbyint: 2265 case LibFunc_nearbyintf: 2266 case LibFunc_rint: 2267 case LibFunc_rintf: 2268 if (TLI->has(Func)) { 2269 U.roundToIntegral(APFloat::rmNearestTiesToEven); 2270 return ConstantFP::get(Ty->getContext(), U); 2271 } 2272 break; 2273 case LibFunc_round: 2274 case LibFunc_roundf: 2275 if (TLI->has(Func)) { 2276 U.roundToIntegral(APFloat::rmNearestTiesToAway); 2277 return ConstantFP::get(Ty->getContext(), U); 2278 } 2279 break; 2280 case LibFunc_sin: 2281 case LibFunc_sinf: 2282 if (TLI->has(Func)) 2283 return ConstantFoldFP(sin, APF, Ty); 2284 break; 2285 case LibFunc_sinh: 2286 case LibFunc_sinhf: 2287 case LibFunc_sinh_finite: 2288 case LibFunc_sinhf_finite: 2289 if (TLI->has(Func)) 2290 return ConstantFoldFP(sinh, APF, Ty); 2291 break; 2292 case LibFunc_sqrt: 2293 case LibFunc_sqrtf: 2294 if (!APF.isNegative() && TLI->has(Func)) 2295 return ConstantFoldFP(sqrt, APF, Ty); 2296 break; 2297 case LibFunc_tan: 2298 case LibFunc_tanf: 2299 if (TLI->has(Func)) 2300 return ConstantFoldFP(tan, APF, Ty); 2301 break; 2302 case LibFunc_tanh: 2303 case LibFunc_tanhf: 2304 if (TLI->has(Func)) 2305 return ConstantFoldFP(tanh, APF, Ty); 2306 break; 2307 case LibFunc_trunc: 2308 case LibFunc_truncf: 2309 if (TLI->has(Func)) { 2310 U.roundToIntegral(APFloat::rmTowardZero); 2311 return ConstantFP::get(Ty->getContext(), U); 2312 } 2313 break; 2314 } 2315 return nullptr; 2316 } 2317 2318 if (auto *Op = dyn_cast<ConstantInt>(Operands[0])) { 2319 switch (IntrinsicID) { 2320 case Intrinsic::bswap: 2321 return ConstantInt::get(Ty->getContext(), Op->getValue().byteSwap()); 2322 case Intrinsic::ctpop: 2323 return ConstantInt::get(Ty, Op->getValue().countPopulation()); 2324 case Intrinsic::bitreverse: 2325 return ConstantInt::get(Ty->getContext(), Op->getValue().reverseBits()); 2326 case Intrinsic::convert_from_fp16: { 2327 APFloat Val(APFloat::IEEEhalf(), Op->getValue()); 2328 2329 bool lost = false; 2330 APFloat::opStatus status = Val.convert( 2331 Ty->getFltSemantics(), APFloat::rmNearestTiesToEven, &lost); 2332 2333 // Conversion is always precise. 2334 (void)status; 2335 assert(status == APFloat::opOK && !lost && 2336 "Precision lost during fp16 constfolding"); 2337 2338 return ConstantFP::get(Ty->getContext(), Val); 2339 } 2340 default: 2341 return nullptr; 2342 } 2343 } 2344 2345 switch (IntrinsicID) { 2346 default: break; 2347 case Intrinsic::vector_reduce_add: 2348 case Intrinsic::vector_reduce_mul: 2349 case Intrinsic::vector_reduce_and: 2350 case Intrinsic::vector_reduce_or: 2351 case Intrinsic::vector_reduce_xor: 2352 case Intrinsic::vector_reduce_smin: 2353 case Intrinsic::vector_reduce_smax: 2354 case Intrinsic::vector_reduce_umin: 2355 case Intrinsic::vector_reduce_umax: 2356 if (Constant *C = constantFoldVectorReduce(IntrinsicID, Operands[0])) 2357 return C; 2358 break; 2359 } 2360 2361 // Support ConstantVector in case we have an Undef in the top. 2362 if (isa<ConstantVector>(Operands[0]) || 2363 isa<ConstantDataVector>(Operands[0])) { 2364 auto *Op = cast<Constant>(Operands[0]); 2365 switch (IntrinsicID) { 2366 default: break; 2367 case Intrinsic::x86_sse_cvtss2si: 2368 case Intrinsic::x86_sse_cvtss2si64: 2369 case Intrinsic::x86_sse2_cvtsd2si: 2370 case Intrinsic::x86_sse2_cvtsd2si64: 2371 if (ConstantFP *FPOp = 2372 dyn_cast_or_null<ConstantFP>(Op->getAggregateElement(0U))) 2373 return ConstantFoldSSEConvertToInt(FPOp->getValueAPF(), 2374 /*roundTowardZero=*/false, Ty, 2375 /*IsSigned*/true); 2376 break; 2377 case Intrinsic::x86_sse_cvttss2si: 2378 case Intrinsic::x86_sse_cvttss2si64: 2379 case Intrinsic::x86_sse2_cvttsd2si: 2380 case Intrinsic::x86_sse2_cvttsd2si64: 2381 if (ConstantFP *FPOp = 2382 dyn_cast_or_null<ConstantFP>(Op->getAggregateElement(0U))) 2383 return ConstantFoldSSEConvertToInt(FPOp->getValueAPF(), 2384 /*roundTowardZero=*/true, Ty, 2385 /*IsSigned*/true); 2386 break; 2387 } 2388 } 2389 2390 return nullptr; 2391 } 2392 2393 static Constant *ConstantFoldScalarCall2(StringRef Name, 2394 Intrinsic::ID IntrinsicID, 2395 Type *Ty, 2396 ArrayRef<Constant *> Operands, 2397 const TargetLibraryInfo *TLI, 2398 const CallBase *Call) { 2399 assert(Operands.size() == 2 && "Wrong number of operands."); 2400 2401 if (Ty->isFloatingPointTy()) { 2402 // TODO: We should have undef handling for all of the FP intrinsics that 2403 // are attempted to be folded in this function. 2404 bool IsOp0Undef = isa<UndefValue>(Operands[0]); 2405 bool IsOp1Undef = isa<UndefValue>(Operands[1]); 2406 switch (IntrinsicID) { 2407 case Intrinsic::maxnum: 2408 case Intrinsic::minnum: 2409 case Intrinsic::maximum: 2410 case Intrinsic::minimum: 2411 // If one argument is undef, return the other argument. 2412 if (IsOp0Undef) 2413 return Operands[1]; 2414 if (IsOp1Undef) 2415 return Operands[0]; 2416 break; 2417 } 2418 } 2419 2420 if (const auto *Op1 = dyn_cast<ConstantFP>(Operands[0])) { 2421 if (!Ty->isFloatingPointTy()) 2422 return nullptr; 2423 APFloat Op1V = Op1->getValueAPF(); 2424 2425 if (const auto *Op2 = dyn_cast<ConstantFP>(Operands[1])) { 2426 if (Op2->getType() != Op1->getType()) 2427 return nullptr; 2428 APFloat Op2V = Op2->getValueAPF(); 2429 2430 if (const auto *ConstrIntr = dyn_cast<ConstrainedFPIntrinsic>(Call)) { 2431 RoundingMode RM = getEvaluationRoundingMode(ConstrIntr); 2432 APFloat Res = Op1V; 2433 APFloat::opStatus St; 2434 switch (IntrinsicID) { 2435 default: 2436 return nullptr; 2437 case Intrinsic::experimental_constrained_fadd: 2438 St = Res.add(Op2V, RM); 2439 break; 2440 case Intrinsic::experimental_constrained_fsub: 2441 St = Res.subtract(Op2V, RM); 2442 break; 2443 case Intrinsic::experimental_constrained_fmul: 2444 St = Res.multiply(Op2V, RM); 2445 break; 2446 case Intrinsic::experimental_constrained_fdiv: 2447 St = Res.divide(Op2V, RM); 2448 break; 2449 case Intrinsic::experimental_constrained_frem: 2450 St = Res.mod(Op2V); 2451 break; 2452 } 2453 if (mayFoldConstrained(const_cast<ConstrainedFPIntrinsic *>(ConstrIntr), 2454 St)) 2455 return ConstantFP::get(Ty->getContext(), Res); 2456 return nullptr; 2457 } 2458 2459 switch (IntrinsicID) { 2460 default: 2461 break; 2462 case Intrinsic::copysign: 2463 return ConstantFP::get(Ty->getContext(), APFloat::copySign(Op1V, Op2V)); 2464 case Intrinsic::minnum: 2465 return ConstantFP::get(Ty->getContext(), minnum(Op1V, Op2V)); 2466 case Intrinsic::maxnum: 2467 return ConstantFP::get(Ty->getContext(), maxnum(Op1V, Op2V)); 2468 case Intrinsic::minimum: 2469 return ConstantFP::get(Ty->getContext(), minimum(Op1V, Op2V)); 2470 case Intrinsic::maximum: 2471 return ConstantFP::get(Ty->getContext(), maximum(Op1V, Op2V)); 2472 } 2473 2474 if (!Ty->isHalfTy() && !Ty->isFloatTy() && !Ty->isDoubleTy()) 2475 return nullptr; 2476 2477 switch (IntrinsicID) { 2478 default: 2479 break; 2480 case Intrinsic::pow: 2481 return ConstantFoldBinaryFP(pow, Op1V, Op2V, Ty); 2482 case Intrinsic::amdgcn_fmul_legacy: 2483 // The legacy behaviour is that multiplying +/- 0.0 by anything, even 2484 // NaN or infinity, gives +0.0. 2485 if (Op1V.isZero() || Op2V.isZero()) 2486 return ConstantFP::getNullValue(Ty); 2487 return ConstantFP::get(Ty->getContext(), Op1V * Op2V); 2488 } 2489 2490 if (!TLI) 2491 return nullptr; 2492 2493 LibFunc Func = NotLibFunc; 2494 TLI->getLibFunc(Name, Func); 2495 switch (Func) { 2496 default: 2497 break; 2498 case LibFunc_pow: 2499 case LibFunc_powf: 2500 case LibFunc_pow_finite: 2501 case LibFunc_powf_finite: 2502 if (TLI->has(Func)) 2503 return ConstantFoldBinaryFP(pow, Op1V, Op2V, Ty); 2504 break; 2505 case LibFunc_fmod: 2506 case LibFunc_fmodf: 2507 if (TLI->has(Func)) { 2508 APFloat V = Op1->getValueAPF(); 2509 if (APFloat::opStatus::opOK == V.mod(Op2->getValueAPF())) 2510 return ConstantFP::get(Ty->getContext(), V); 2511 } 2512 break; 2513 case LibFunc_remainder: 2514 case LibFunc_remainderf: 2515 if (TLI->has(Func)) { 2516 APFloat V = Op1->getValueAPF(); 2517 if (APFloat::opStatus::opOK == V.remainder(Op2->getValueAPF())) 2518 return ConstantFP::get(Ty->getContext(), V); 2519 } 2520 break; 2521 case LibFunc_atan2: 2522 case LibFunc_atan2f: 2523 case LibFunc_atan2_finite: 2524 case LibFunc_atan2f_finite: 2525 if (TLI->has(Func)) 2526 return ConstantFoldBinaryFP(atan2, Op1V, Op2V, Ty); 2527 break; 2528 } 2529 } else if (auto *Op2C = dyn_cast<ConstantInt>(Operands[1])) { 2530 if (!Ty->isHalfTy() && !Ty->isFloatTy() && !Ty->isDoubleTy()) 2531 return nullptr; 2532 if (IntrinsicID == Intrinsic::powi && Ty->isHalfTy()) 2533 return ConstantFP::get( 2534 Ty->getContext(), 2535 APFloat((float)std::pow((float)Op1V.convertToDouble(), 2536 (int)Op2C->getZExtValue()))); 2537 if (IntrinsicID == Intrinsic::powi && Ty->isFloatTy()) 2538 return ConstantFP::get( 2539 Ty->getContext(), 2540 APFloat((float)std::pow((float)Op1V.convertToDouble(), 2541 (int)Op2C->getZExtValue()))); 2542 if (IntrinsicID == Intrinsic::powi && Ty->isDoubleTy()) 2543 return ConstantFP::get( 2544 Ty->getContext(), 2545 APFloat((double)std::pow(Op1V.convertToDouble(), 2546 (int)Op2C->getZExtValue()))); 2547 2548 if (IntrinsicID == Intrinsic::amdgcn_ldexp) { 2549 // FIXME: Should flush denorms depending on FP mode, but that's ignored 2550 // everywhere else. 2551 2552 // scalbn is equivalent to ldexp with float radix 2 2553 APFloat Result = scalbn(Op1->getValueAPF(), Op2C->getSExtValue(), 2554 APFloat::rmNearestTiesToEven); 2555 return ConstantFP::get(Ty->getContext(), Result); 2556 } 2557 } 2558 return nullptr; 2559 } 2560 2561 if (Operands[0]->getType()->isIntegerTy() && 2562 Operands[1]->getType()->isIntegerTy()) { 2563 const APInt *C0, *C1; 2564 if (!getConstIntOrUndef(Operands[0], C0) || 2565 !getConstIntOrUndef(Operands[1], C1)) 2566 return nullptr; 2567 2568 unsigned BitWidth = Ty->getScalarSizeInBits(); 2569 switch (IntrinsicID) { 2570 default: break; 2571 case Intrinsic::smax: 2572 if (!C0 && !C1) 2573 return UndefValue::get(Ty); 2574 if (!C0 || !C1) 2575 return ConstantInt::get(Ty, APInt::getSignedMaxValue(BitWidth)); 2576 return ConstantInt::get(Ty, C0->sgt(*C1) ? *C0 : *C1); 2577 2578 case Intrinsic::smin: 2579 if (!C0 && !C1) 2580 return UndefValue::get(Ty); 2581 if (!C0 || !C1) 2582 return ConstantInt::get(Ty, APInt::getSignedMinValue(BitWidth)); 2583 return ConstantInt::get(Ty, C0->slt(*C1) ? *C0 : *C1); 2584 2585 case Intrinsic::umax: 2586 if (!C0 && !C1) 2587 return UndefValue::get(Ty); 2588 if (!C0 || !C1) 2589 return ConstantInt::get(Ty, APInt::getMaxValue(BitWidth)); 2590 return ConstantInt::get(Ty, C0->ugt(*C1) ? *C0 : *C1); 2591 2592 case Intrinsic::umin: 2593 if (!C0 && !C1) 2594 return UndefValue::get(Ty); 2595 if (!C0 || !C1) 2596 return ConstantInt::get(Ty, APInt::getMinValue(BitWidth)); 2597 return ConstantInt::get(Ty, C0->ult(*C1) ? *C0 : *C1); 2598 2599 case Intrinsic::usub_with_overflow: 2600 case Intrinsic::ssub_with_overflow: 2601 // X - undef -> { 0, false } 2602 // undef - X -> { 0, false } 2603 if (!C0 || !C1) 2604 return Constant::getNullValue(Ty); 2605 LLVM_FALLTHROUGH; 2606 case Intrinsic::uadd_with_overflow: 2607 case Intrinsic::sadd_with_overflow: 2608 // X + undef -> { -1, false } 2609 // undef + x -> { -1, false } 2610 if (!C0 || !C1) { 2611 return ConstantStruct::get( 2612 cast<StructType>(Ty), 2613 {Constant::getAllOnesValue(Ty->getStructElementType(0)), 2614 Constant::getNullValue(Ty->getStructElementType(1))}); 2615 } 2616 LLVM_FALLTHROUGH; 2617 case Intrinsic::smul_with_overflow: 2618 case Intrinsic::umul_with_overflow: { 2619 // undef * X -> { 0, false } 2620 // X * undef -> { 0, false } 2621 if (!C0 || !C1) 2622 return Constant::getNullValue(Ty); 2623 2624 APInt Res; 2625 bool Overflow; 2626 switch (IntrinsicID) { 2627 default: llvm_unreachable("Invalid case"); 2628 case Intrinsic::sadd_with_overflow: 2629 Res = C0->sadd_ov(*C1, Overflow); 2630 break; 2631 case Intrinsic::uadd_with_overflow: 2632 Res = C0->uadd_ov(*C1, Overflow); 2633 break; 2634 case Intrinsic::ssub_with_overflow: 2635 Res = C0->ssub_ov(*C1, Overflow); 2636 break; 2637 case Intrinsic::usub_with_overflow: 2638 Res = C0->usub_ov(*C1, Overflow); 2639 break; 2640 case Intrinsic::smul_with_overflow: 2641 Res = C0->smul_ov(*C1, Overflow); 2642 break; 2643 case Intrinsic::umul_with_overflow: 2644 Res = C0->umul_ov(*C1, Overflow); 2645 break; 2646 } 2647 Constant *Ops[] = { 2648 ConstantInt::get(Ty->getContext(), Res), 2649 ConstantInt::get(Type::getInt1Ty(Ty->getContext()), Overflow) 2650 }; 2651 return ConstantStruct::get(cast<StructType>(Ty), Ops); 2652 } 2653 case Intrinsic::uadd_sat: 2654 case Intrinsic::sadd_sat: 2655 if (!C0 && !C1) 2656 return UndefValue::get(Ty); 2657 if (!C0 || !C1) 2658 return Constant::getAllOnesValue(Ty); 2659 if (IntrinsicID == Intrinsic::uadd_sat) 2660 return ConstantInt::get(Ty, C0->uadd_sat(*C1)); 2661 else 2662 return ConstantInt::get(Ty, C0->sadd_sat(*C1)); 2663 case Intrinsic::usub_sat: 2664 case Intrinsic::ssub_sat: 2665 if (!C0 && !C1) 2666 return UndefValue::get(Ty); 2667 if (!C0 || !C1) 2668 return Constant::getNullValue(Ty); 2669 if (IntrinsicID == Intrinsic::usub_sat) 2670 return ConstantInt::get(Ty, C0->usub_sat(*C1)); 2671 else 2672 return ConstantInt::get(Ty, C0->ssub_sat(*C1)); 2673 case Intrinsic::cttz: 2674 case Intrinsic::ctlz: 2675 assert(C1 && "Must be constant int"); 2676 2677 // cttz(0, 1) and ctlz(0, 1) are undef. 2678 if (C1->isOneValue() && (!C0 || C0->isNullValue())) 2679 return UndefValue::get(Ty); 2680 if (!C0) 2681 return Constant::getNullValue(Ty); 2682 if (IntrinsicID == Intrinsic::cttz) 2683 return ConstantInt::get(Ty, C0->countTrailingZeros()); 2684 else 2685 return ConstantInt::get(Ty, C0->countLeadingZeros()); 2686 2687 case Intrinsic::abs: 2688 // Undef or minimum val operand with poison min --> undef 2689 assert(C1 && "Must be constant int"); 2690 if (C1->isOneValue() && (!C0 || C0->isMinSignedValue())) 2691 return UndefValue::get(Ty); 2692 2693 // Undef operand with no poison min --> 0 (sign bit must be clear) 2694 if (C1->isNullValue() && !C0) 2695 return Constant::getNullValue(Ty); 2696 2697 return ConstantInt::get(Ty, C0->abs()); 2698 } 2699 2700 return nullptr; 2701 } 2702 2703 // Support ConstantVector in case we have an Undef in the top. 2704 if ((isa<ConstantVector>(Operands[0]) || 2705 isa<ConstantDataVector>(Operands[0])) && 2706 // Check for default rounding mode. 2707 // FIXME: Support other rounding modes? 2708 isa<ConstantInt>(Operands[1]) && 2709 cast<ConstantInt>(Operands[1])->getValue() == 4) { 2710 auto *Op = cast<Constant>(Operands[0]); 2711 switch (IntrinsicID) { 2712 default: break; 2713 case Intrinsic::x86_avx512_vcvtss2si32: 2714 case Intrinsic::x86_avx512_vcvtss2si64: 2715 case Intrinsic::x86_avx512_vcvtsd2si32: 2716 case Intrinsic::x86_avx512_vcvtsd2si64: 2717 if (ConstantFP *FPOp = 2718 dyn_cast_or_null<ConstantFP>(Op->getAggregateElement(0U))) 2719 return ConstantFoldSSEConvertToInt(FPOp->getValueAPF(), 2720 /*roundTowardZero=*/false, Ty, 2721 /*IsSigned*/true); 2722 break; 2723 case Intrinsic::x86_avx512_vcvtss2usi32: 2724 case Intrinsic::x86_avx512_vcvtss2usi64: 2725 case Intrinsic::x86_avx512_vcvtsd2usi32: 2726 case Intrinsic::x86_avx512_vcvtsd2usi64: 2727 if (ConstantFP *FPOp = 2728 dyn_cast_or_null<ConstantFP>(Op->getAggregateElement(0U))) 2729 return ConstantFoldSSEConvertToInt(FPOp->getValueAPF(), 2730 /*roundTowardZero=*/false, Ty, 2731 /*IsSigned*/false); 2732 break; 2733 case Intrinsic::x86_avx512_cvttss2si: 2734 case Intrinsic::x86_avx512_cvttss2si64: 2735 case Intrinsic::x86_avx512_cvttsd2si: 2736 case Intrinsic::x86_avx512_cvttsd2si64: 2737 if (ConstantFP *FPOp = 2738 dyn_cast_or_null<ConstantFP>(Op->getAggregateElement(0U))) 2739 return ConstantFoldSSEConvertToInt(FPOp->getValueAPF(), 2740 /*roundTowardZero=*/true, Ty, 2741 /*IsSigned*/true); 2742 break; 2743 case Intrinsic::x86_avx512_cvttss2usi: 2744 case Intrinsic::x86_avx512_cvttss2usi64: 2745 case Intrinsic::x86_avx512_cvttsd2usi: 2746 case Intrinsic::x86_avx512_cvttsd2usi64: 2747 if (ConstantFP *FPOp = 2748 dyn_cast_or_null<ConstantFP>(Op->getAggregateElement(0U))) 2749 return ConstantFoldSSEConvertToInt(FPOp->getValueAPF(), 2750 /*roundTowardZero=*/true, Ty, 2751 /*IsSigned*/false); 2752 break; 2753 } 2754 } 2755 return nullptr; 2756 } 2757 2758 static APFloat ConstantFoldAMDGCNCubeIntrinsic(Intrinsic::ID IntrinsicID, 2759 const APFloat &S0, 2760 const APFloat &S1, 2761 const APFloat &S2) { 2762 unsigned ID; 2763 const fltSemantics &Sem = S0.getSemantics(); 2764 APFloat MA(Sem), SC(Sem), TC(Sem); 2765 if (abs(S2) >= abs(S0) && abs(S2) >= abs(S1)) { 2766 if (S2.isNegative() && S2.isNonZero() && !S2.isNaN()) { 2767 // S2 < 0 2768 ID = 5; 2769 SC = -S0; 2770 } else { 2771 ID = 4; 2772 SC = S0; 2773 } 2774 MA = S2; 2775 TC = -S1; 2776 } else if (abs(S1) >= abs(S0)) { 2777 if (S1.isNegative() && S1.isNonZero() && !S1.isNaN()) { 2778 // S1 < 0 2779 ID = 3; 2780 TC = -S2; 2781 } else { 2782 ID = 2; 2783 TC = S2; 2784 } 2785 MA = S1; 2786 SC = S0; 2787 } else { 2788 if (S0.isNegative() && S0.isNonZero() && !S0.isNaN()) { 2789 // S0 < 0 2790 ID = 1; 2791 SC = S2; 2792 } else { 2793 ID = 0; 2794 SC = -S2; 2795 } 2796 MA = S0; 2797 TC = -S1; 2798 } 2799 switch (IntrinsicID) { 2800 default: 2801 llvm_unreachable("unhandled amdgcn cube intrinsic"); 2802 case Intrinsic::amdgcn_cubeid: 2803 return APFloat(Sem, ID); 2804 case Intrinsic::amdgcn_cubema: 2805 return MA + MA; 2806 case Intrinsic::amdgcn_cubesc: 2807 return SC; 2808 case Intrinsic::amdgcn_cubetc: 2809 return TC; 2810 } 2811 } 2812 2813 static Constant *ConstantFoldAMDGCNPermIntrinsic(ArrayRef<Constant *> Operands, 2814 Type *Ty) { 2815 const APInt *C0, *C1, *C2; 2816 if (!getConstIntOrUndef(Operands[0], C0) || 2817 !getConstIntOrUndef(Operands[1], C1) || 2818 !getConstIntOrUndef(Operands[2], C2)) 2819 return nullptr; 2820 2821 if (!C2) 2822 return UndefValue::get(Ty); 2823 2824 APInt Val(32, 0); 2825 unsigned NumUndefBytes = 0; 2826 for (unsigned I = 0; I < 32; I += 8) { 2827 unsigned Sel = C2->extractBitsAsZExtValue(8, I); 2828 unsigned B = 0; 2829 2830 if (Sel >= 13) 2831 B = 0xff; 2832 else if (Sel == 12) 2833 B = 0x00; 2834 else { 2835 const APInt *Src = ((Sel & 10) == 10 || (Sel & 12) == 4) ? C0 : C1; 2836 if (!Src) 2837 ++NumUndefBytes; 2838 else if (Sel < 8) 2839 B = Src->extractBitsAsZExtValue(8, (Sel & 3) * 8); 2840 else 2841 B = Src->extractBitsAsZExtValue(1, (Sel & 1) ? 31 : 15) * 0xff; 2842 } 2843 2844 Val.insertBits(B, I, 8); 2845 } 2846 2847 if (NumUndefBytes == 4) 2848 return UndefValue::get(Ty); 2849 2850 return ConstantInt::get(Ty, Val); 2851 } 2852 2853 static Constant *ConstantFoldScalarCall3(StringRef Name, 2854 Intrinsic::ID IntrinsicID, 2855 Type *Ty, 2856 ArrayRef<Constant *> Operands, 2857 const TargetLibraryInfo *TLI, 2858 const CallBase *Call) { 2859 assert(Operands.size() == 3 && "Wrong number of operands."); 2860 2861 if (const auto *Op1 = dyn_cast<ConstantFP>(Operands[0])) { 2862 if (const auto *Op2 = dyn_cast<ConstantFP>(Operands[1])) { 2863 if (const auto *Op3 = dyn_cast<ConstantFP>(Operands[2])) { 2864 const APFloat &C1 = Op1->getValueAPF(); 2865 const APFloat &C2 = Op2->getValueAPF(); 2866 const APFloat &C3 = Op3->getValueAPF(); 2867 2868 if (const auto *ConstrIntr = dyn_cast<ConstrainedFPIntrinsic>(Call)) { 2869 RoundingMode RM = getEvaluationRoundingMode(ConstrIntr); 2870 APFloat Res = C1; 2871 APFloat::opStatus St; 2872 switch (IntrinsicID) { 2873 default: 2874 return nullptr; 2875 case Intrinsic::experimental_constrained_fma: 2876 case Intrinsic::experimental_constrained_fmuladd: 2877 St = Res.fusedMultiplyAdd(C2, C3, RM); 2878 break; 2879 } 2880 if (mayFoldConstrained( 2881 const_cast<ConstrainedFPIntrinsic *>(ConstrIntr), St)) 2882 return ConstantFP::get(Ty->getContext(), Res); 2883 return nullptr; 2884 } 2885 2886 switch (IntrinsicID) { 2887 default: break; 2888 case Intrinsic::amdgcn_fma_legacy: { 2889 // The legacy behaviour is that multiplying +/- 0.0 by anything, even 2890 // NaN or infinity, gives +0.0. 2891 if (C1.isZero() || C2.isZero()) { 2892 // It's tempting to just return C3 here, but that would give the 2893 // wrong result if C3 was -0.0. 2894 return ConstantFP::get(Ty->getContext(), APFloat(0.0f) + C3); 2895 } 2896 LLVM_FALLTHROUGH; 2897 } 2898 case Intrinsic::fma: 2899 case Intrinsic::fmuladd: { 2900 APFloat V = C1; 2901 V.fusedMultiplyAdd(C2, C3, APFloat::rmNearestTiesToEven); 2902 return ConstantFP::get(Ty->getContext(), V); 2903 } 2904 case Intrinsic::amdgcn_cubeid: 2905 case Intrinsic::amdgcn_cubema: 2906 case Intrinsic::amdgcn_cubesc: 2907 case Intrinsic::amdgcn_cubetc: { 2908 APFloat V = ConstantFoldAMDGCNCubeIntrinsic(IntrinsicID, C1, C2, C3); 2909 return ConstantFP::get(Ty->getContext(), V); 2910 } 2911 } 2912 } 2913 } 2914 } 2915 2916 if (IntrinsicID == Intrinsic::smul_fix || 2917 IntrinsicID == Intrinsic::smul_fix_sat) { 2918 // poison * C -> poison 2919 // C * poison -> poison 2920 if (isa<PoisonValue>(Operands[0]) || isa<PoisonValue>(Operands[1])) 2921 return PoisonValue::get(Ty); 2922 2923 const APInt *C0, *C1; 2924 if (!getConstIntOrUndef(Operands[0], C0) || 2925 !getConstIntOrUndef(Operands[1], C1)) 2926 return nullptr; 2927 2928 // undef * C -> 0 2929 // C * undef -> 0 2930 if (!C0 || !C1) 2931 return Constant::getNullValue(Ty); 2932 2933 // This code performs rounding towards negative infinity in case the result 2934 // cannot be represented exactly for the given scale. Targets that do care 2935 // about rounding should use a target hook for specifying how rounding 2936 // should be done, and provide their own folding to be consistent with 2937 // rounding. This is the same approach as used by 2938 // DAGTypeLegalizer::ExpandIntRes_MULFIX. 2939 unsigned Scale = cast<ConstantInt>(Operands[2])->getZExtValue(); 2940 unsigned Width = C0->getBitWidth(); 2941 assert(Scale < Width && "Illegal scale."); 2942 unsigned ExtendedWidth = Width * 2; 2943 APInt Product = (C0->sextOrSelf(ExtendedWidth) * 2944 C1->sextOrSelf(ExtendedWidth)).ashr(Scale); 2945 if (IntrinsicID == Intrinsic::smul_fix_sat) { 2946 APInt Max = APInt::getSignedMaxValue(Width).sextOrSelf(ExtendedWidth); 2947 APInt Min = APInt::getSignedMinValue(Width).sextOrSelf(ExtendedWidth); 2948 Product = APIntOps::smin(Product, Max); 2949 Product = APIntOps::smax(Product, Min); 2950 } 2951 return ConstantInt::get(Ty->getContext(), Product.sextOrTrunc(Width)); 2952 } 2953 2954 if (IntrinsicID == Intrinsic::fshl || IntrinsicID == Intrinsic::fshr) { 2955 const APInt *C0, *C1, *C2; 2956 if (!getConstIntOrUndef(Operands[0], C0) || 2957 !getConstIntOrUndef(Operands[1], C1) || 2958 !getConstIntOrUndef(Operands[2], C2)) 2959 return nullptr; 2960 2961 bool IsRight = IntrinsicID == Intrinsic::fshr; 2962 if (!C2) 2963 return Operands[IsRight ? 1 : 0]; 2964 if (!C0 && !C1) 2965 return UndefValue::get(Ty); 2966 2967 // The shift amount is interpreted as modulo the bitwidth. If the shift 2968 // amount is effectively 0, avoid UB due to oversized inverse shift below. 2969 unsigned BitWidth = C2->getBitWidth(); 2970 unsigned ShAmt = C2->urem(BitWidth); 2971 if (!ShAmt) 2972 return Operands[IsRight ? 1 : 0]; 2973 2974 // (C0 << ShlAmt) | (C1 >> LshrAmt) 2975 unsigned LshrAmt = IsRight ? ShAmt : BitWidth - ShAmt; 2976 unsigned ShlAmt = !IsRight ? ShAmt : BitWidth - ShAmt; 2977 if (!C0) 2978 return ConstantInt::get(Ty, C1->lshr(LshrAmt)); 2979 if (!C1) 2980 return ConstantInt::get(Ty, C0->shl(ShlAmt)); 2981 return ConstantInt::get(Ty, C0->shl(ShlAmt) | C1->lshr(LshrAmt)); 2982 } 2983 2984 if (IntrinsicID == Intrinsic::amdgcn_perm) 2985 return ConstantFoldAMDGCNPermIntrinsic(Operands, Ty); 2986 2987 return nullptr; 2988 } 2989 2990 static Constant *ConstantFoldScalarCall(StringRef Name, 2991 Intrinsic::ID IntrinsicID, 2992 Type *Ty, 2993 ArrayRef<Constant *> Operands, 2994 const TargetLibraryInfo *TLI, 2995 const CallBase *Call) { 2996 if (Operands.size() == 1) 2997 return ConstantFoldScalarCall1(Name, IntrinsicID, Ty, Operands, TLI, Call); 2998 2999 if (Operands.size() == 2) 3000 return ConstantFoldScalarCall2(Name, IntrinsicID, Ty, Operands, TLI, Call); 3001 3002 if (Operands.size() == 3) 3003 return ConstantFoldScalarCall3(Name, IntrinsicID, Ty, Operands, TLI, Call); 3004 3005 return nullptr; 3006 } 3007 3008 static Constant *ConstantFoldFixedVectorCall( 3009 StringRef Name, Intrinsic::ID IntrinsicID, FixedVectorType *FVTy, 3010 ArrayRef<Constant *> Operands, const DataLayout &DL, 3011 const TargetLibraryInfo *TLI, const CallBase *Call) { 3012 SmallVector<Constant *, 4> Result(FVTy->getNumElements()); 3013 SmallVector<Constant *, 4> Lane(Operands.size()); 3014 Type *Ty = FVTy->getElementType(); 3015 3016 switch (IntrinsicID) { 3017 case Intrinsic::masked_load: { 3018 auto *SrcPtr = Operands[0]; 3019 auto *Mask = Operands[2]; 3020 auto *Passthru = Operands[3]; 3021 3022 Constant *VecData = ConstantFoldLoadFromConstPtr(SrcPtr, FVTy, DL); 3023 3024 SmallVector<Constant *, 32> NewElements; 3025 for (unsigned I = 0, E = FVTy->getNumElements(); I != E; ++I) { 3026 auto *MaskElt = Mask->getAggregateElement(I); 3027 if (!MaskElt) 3028 break; 3029 auto *PassthruElt = Passthru->getAggregateElement(I); 3030 auto *VecElt = VecData ? VecData->getAggregateElement(I) : nullptr; 3031 if (isa<UndefValue>(MaskElt)) { 3032 if (PassthruElt) 3033 NewElements.push_back(PassthruElt); 3034 else if (VecElt) 3035 NewElements.push_back(VecElt); 3036 else 3037 return nullptr; 3038 } 3039 if (MaskElt->isNullValue()) { 3040 if (!PassthruElt) 3041 return nullptr; 3042 NewElements.push_back(PassthruElt); 3043 } else if (MaskElt->isOneValue()) { 3044 if (!VecElt) 3045 return nullptr; 3046 NewElements.push_back(VecElt); 3047 } else { 3048 return nullptr; 3049 } 3050 } 3051 if (NewElements.size() != FVTy->getNumElements()) 3052 return nullptr; 3053 return ConstantVector::get(NewElements); 3054 } 3055 case Intrinsic::arm_mve_vctp8: 3056 case Intrinsic::arm_mve_vctp16: 3057 case Intrinsic::arm_mve_vctp32: 3058 case Intrinsic::arm_mve_vctp64: { 3059 if (auto *Op = dyn_cast<ConstantInt>(Operands[0])) { 3060 unsigned Lanes = FVTy->getNumElements(); 3061 uint64_t Limit = Op->getZExtValue(); 3062 // vctp64 are currently modelled as returning a v4i1, not a v2i1. Make 3063 // sure we get the limit right in that case and set all relevant lanes. 3064 if (IntrinsicID == Intrinsic::arm_mve_vctp64) 3065 Limit *= 2; 3066 3067 SmallVector<Constant *, 16> NCs; 3068 for (unsigned i = 0; i < Lanes; i++) { 3069 if (i < Limit) 3070 NCs.push_back(ConstantInt::getTrue(Ty)); 3071 else 3072 NCs.push_back(ConstantInt::getFalse(Ty)); 3073 } 3074 return ConstantVector::get(NCs); 3075 } 3076 break; 3077 } 3078 case Intrinsic::get_active_lane_mask: { 3079 auto *Op0 = dyn_cast<ConstantInt>(Operands[0]); 3080 auto *Op1 = dyn_cast<ConstantInt>(Operands[1]); 3081 if (Op0 && Op1) { 3082 unsigned Lanes = FVTy->getNumElements(); 3083 uint64_t Base = Op0->getZExtValue(); 3084 uint64_t Limit = Op1->getZExtValue(); 3085 3086 SmallVector<Constant *, 16> NCs; 3087 for (unsigned i = 0; i < Lanes; i++) { 3088 if (Base + i < Limit) 3089 NCs.push_back(ConstantInt::getTrue(Ty)); 3090 else 3091 NCs.push_back(ConstantInt::getFalse(Ty)); 3092 } 3093 return ConstantVector::get(NCs); 3094 } 3095 break; 3096 } 3097 default: 3098 break; 3099 } 3100 3101 for (unsigned I = 0, E = FVTy->getNumElements(); I != E; ++I) { 3102 // Gather a column of constants. 3103 for (unsigned J = 0, JE = Operands.size(); J != JE; ++J) { 3104 // Some intrinsics use a scalar type for certain arguments. 3105 if (hasVectorInstrinsicScalarOpd(IntrinsicID, J)) { 3106 Lane[J] = Operands[J]; 3107 continue; 3108 } 3109 3110 Constant *Agg = Operands[J]->getAggregateElement(I); 3111 if (!Agg) 3112 return nullptr; 3113 3114 Lane[J] = Agg; 3115 } 3116 3117 // Use the regular scalar folding to simplify this column. 3118 Constant *Folded = 3119 ConstantFoldScalarCall(Name, IntrinsicID, Ty, Lane, TLI, Call); 3120 if (!Folded) 3121 return nullptr; 3122 Result[I] = Folded; 3123 } 3124 3125 return ConstantVector::get(Result); 3126 } 3127 3128 static Constant *ConstantFoldScalableVectorCall( 3129 StringRef Name, Intrinsic::ID IntrinsicID, ScalableVectorType *SVTy, 3130 ArrayRef<Constant *> Operands, const DataLayout &DL, 3131 const TargetLibraryInfo *TLI, const CallBase *Call) { 3132 switch (IntrinsicID) { 3133 case Intrinsic::aarch64_sve_convert_from_svbool: { 3134 auto *Src = dyn_cast<Constant>(Operands[0]); 3135 if (!Src || !Src->isNullValue()) 3136 break; 3137 3138 return ConstantInt::getFalse(SVTy); 3139 } 3140 default: 3141 break; 3142 } 3143 return nullptr; 3144 } 3145 3146 } // end anonymous namespace 3147 3148 Constant *llvm::ConstantFoldCall(const CallBase *Call, Function *F, 3149 ArrayRef<Constant *> Operands, 3150 const TargetLibraryInfo *TLI) { 3151 if (Call->isNoBuiltin()) 3152 return nullptr; 3153 if (!F->hasName()) 3154 return nullptr; 3155 3156 // If this is not an intrinsic and not recognized as a library call, bail out. 3157 if (F->getIntrinsicID() == Intrinsic::not_intrinsic) { 3158 if (!TLI) 3159 return nullptr; 3160 LibFunc LibF; 3161 if (!TLI->getLibFunc(*F, LibF)) 3162 return nullptr; 3163 } 3164 3165 StringRef Name = F->getName(); 3166 Type *Ty = F->getReturnType(); 3167 if (auto *FVTy = dyn_cast<FixedVectorType>(Ty)) 3168 return ConstantFoldFixedVectorCall( 3169 Name, F->getIntrinsicID(), FVTy, Operands, 3170 F->getParent()->getDataLayout(), TLI, Call); 3171 3172 if (auto *SVTy = dyn_cast<ScalableVectorType>(Ty)) 3173 return ConstantFoldScalableVectorCall( 3174 Name, F->getIntrinsicID(), SVTy, Operands, 3175 F->getParent()->getDataLayout(), TLI, Call); 3176 3177 // TODO: If this is a library function, we already discovered that above, 3178 // so we should pass the LibFunc, not the name (and it might be better 3179 // still to separate intrinsic handling from libcalls). 3180 return ConstantFoldScalarCall(Name, F->getIntrinsicID(), Ty, Operands, TLI, 3181 Call); 3182 } 3183 3184 bool llvm::isMathLibCallNoop(const CallBase *Call, 3185 const TargetLibraryInfo *TLI) { 3186 // FIXME: Refactor this code; this duplicates logic in LibCallsShrinkWrap 3187 // (and to some extent ConstantFoldScalarCall). 3188 if (Call->isNoBuiltin() || Call->isStrictFP()) 3189 return false; 3190 Function *F = Call->getCalledFunction(); 3191 if (!F) 3192 return false; 3193 3194 LibFunc Func; 3195 if (!TLI || !TLI->getLibFunc(*F, Func)) 3196 return false; 3197 3198 if (Call->getNumArgOperands() == 1) { 3199 if (ConstantFP *OpC = dyn_cast<ConstantFP>(Call->getArgOperand(0))) { 3200 const APFloat &Op = OpC->getValueAPF(); 3201 switch (Func) { 3202 case LibFunc_logl: 3203 case LibFunc_log: 3204 case LibFunc_logf: 3205 case LibFunc_log2l: 3206 case LibFunc_log2: 3207 case LibFunc_log2f: 3208 case LibFunc_log10l: 3209 case LibFunc_log10: 3210 case LibFunc_log10f: 3211 return Op.isNaN() || (!Op.isZero() && !Op.isNegative()); 3212 3213 case LibFunc_expl: 3214 case LibFunc_exp: 3215 case LibFunc_expf: 3216 // FIXME: These boundaries are slightly conservative. 3217 if (OpC->getType()->isDoubleTy()) 3218 return !(Op < APFloat(-745.0) || Op > APFloat(709.0)); 3219 if (OpC->getType()->isFloatTy()) 3220 return !(Op < APFloat(-103.0f) || Op > APFloat(88.0f)); 3221 break; 3222 3223 case LibFunc_exp2l: 3224 case LibFunc_exp2: 3225 case LibFunc_exp2f: 3226 // FIXME: These boundaries are slightly conservative. 3227 if (OpC->getType()->isDoubleTy()) 3228 return !(Op < APFloat(-1074.0) || Op > APFloat(1023.0)); 3229 if (OpC->getType()->isFloatTy()) 3230 return !(Op < APFloat(-149.0f) || Op > APFloat(127.0f)); 3231 break; 3232 3233 case LibFunc_sinl: 3234 case LibFunc_sin: 3235 case LibFunc_sinf: 3236 case LibFunc_cosl: 3237 case LibFunc_cos: 3238 case LibFunc_cosf: 3239 return !Op.isInfinity(); 3240 3241 case LibFunc_tanl: 3242 case LibFunc_tan: 3243 case LibFunc_tanf: { 3244 // FIXME: Stop using the host math library. 3245 // FIXME: The computation isn't done in the right precision. 3246 Type *Ty = OpC->getType(); 3247 if (Ty->isDoubleTy() || Ty->isFloatTy() || Ty->isHalfTy()) 3248 return ConstantFoldFP(tan, OpC->getValueAPF(), Ty) != nullptr; 3249 break; 3250 } 3251 3252 case LibFunc_asinl: 3253 case LibFunc_asin: 3254 case LibFunc_asinf: 3255 case LibFunc_acosl: 3256 case LibFunc_acos: 3257 case LibFunc_acosf: 3258 return !(Op < APFloat(Op.getSemantics(), "-1") || 3259 Op > APFloat(Op.getSemantics(), "1")); 3260 3261 case LibFunc_sinh: 3262 case LibFunc_cosh: 3263 case LibFunc_sinhf: 3264 case LibFunc_coshf: 3265 case LibFunc_sinhl: 3266 case LibFunc_coshl: 3267 // FIXME: These boundaries are slightly conservative. 3268 if (OpC->getType()->isDoubleTy()) 3269 return !(Op < APFloat(-710.0) || Op > APFloat(710.0)); 3270 if (OpC->getType()->isFloatTy()) 3271 return !(Op < APFloat(-89.0f) || Op > APFloat(89.0f)); 3272 break; 3273 3274 case LibFunc_sqrtl: 3275 case LibFunc_sqrt: 3276 case LibFunc_sqrtf: 3277 return Op.isNaN() || Op.isZero() || !Op.isNegative(); 3278 3279 // FIXME: Add more functions: sqrt_finite, atanh, expm1, log1p, 3280 // maybe others? 3281 default: 3282 break; 3283 } 3284 } 3285 } 3286 3287 if (Call->getNumArgOperands() == 2) { 3288 ConstantFP *Op0C = dyn_cast<ConstantFP>(Call->getArgOperand(0)); 3289 ConstantFP *Op1C = dyn_cast<ConstantFP>(Call->getArgOperand(1)); 3290 if (Op0C && Op1C) { 3291 const APFloat &Op0 = Op0C->getValueAPF(); 3292 const APFloat &Op1 = Op1C->getValueAPF(); 3293 3294 switch (Func) { 3295 case LibFunc_powl: 3296 case LibFunc_pow: 3297 case LibFunc_powf: { 3298 // FIXME: Stop using the host math library. 3299 // FIXME: The computation isn't done in the right precision. 3300 Type *Ty = Op0C->getType(); 3301 if (Ty->isDoubleTy() || Ty->isFloatTy() || Ty->isHalfTy()) { 3302 if (Ty == Op1C->getType()) 3303 return ConstantFoldBinaryFP(pow, Op0, Op1, Ty) != nullptr; 3304 } 3305 break; 3306 } 3307 3308 case LibFunc_fmodl: 3309 case LibFunc_fmod: 3310 case LibFunc_fmodf: 3311 case LibFunc_remainderl: 3312 case LibFunc_remainder: 3313 case LibFunc_remainderf: 3314 return Op0.isNaN() || Op1.isNaN() || 3315 (!Op0.isInfinity() && !Op1.isZero()); 3316 3317 default: 3318 break; 3319 } 3320 } 3321 } 3322 3323 return false; 3324 } 3325 3326 void TargetFolder::anchor() {} 3327