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