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      1 #include "llvm/Transforms/Utils/VNCoercion.h"
      2 #include "llvm/Analysis/ConstantFolding.h"
      3 #include "llvm/Analysis/ValueTracking.h"
      4 #include "llvm/IR/IRBuilder.h"
      5 #include "llvm/Support/Debug.h"
      6 
      7 #define DEBUG_TYPE "vncoerce"
      8 
      9 namespace llvm {
     10 namespace VNCoercion {
     11 
     12 static bool isFirstClassAggregateOrScalableType(Type *Ty) {
     13   return Ty->isStructTy() || Ty->isArrayTy() || isa<ScalableVectorType>(Ty);
     14 }
     15 
     16 /// Return true if coerceAvailableValueToLoadType will succeed.
     17 bool canCoerceMustAliasedValueToLoad(Value *StoredVal, Type *LoadTy,
     18                                      const DataLayout &DL) {
     19   Type *StoredTy = StoredVal->getType();
     20 
     21   if (StoredTy == LoadTy)
     22     return true;
     23 
     24   // If the loaded/stored value is a first class array/struct, or scalable type,
     25   // don't try to transform them. We need to be able to bitcast to integer.
     26   if (isFirstClassAggregateOrScalableType(LoadTy) ||
     27       isFirstClassAggregateOrScalableType(StoredTy))
     28     return false;
     29 
     30   uint64_t StoreSize = DL.getTypeSizeInBits(StoredTy).getFixedSize();
     31 
     32   // The store size must be byte-aligned to support future type casts.
     33   if (llvm::alignTo(StoreSize, 8) != StoreSize)
     34     return false;
     35 
     36   // The store has to be at least as big as the load.
     37   if (StoreSize < DL.getTypeSizeInBits(LoadTy).getFixedSize())
     38     return false;
     39 
     40   bool StoredNI = DL.isNonIntegralPointerType(StoredTy->getScalarType());
     41   bool LoadNI = DL.isNonIntegralPointerType(LoadTy->getScalarType());
     42   // Don't coerce non-integral pointers to integers or vice versa.
     43   if (StoredNI != LoadNI) {
     44     // As a special case, allow coercion of memset used to initialize
     45     // an array w/null.  Despite non-integral pointers not generally having a
     46     // specific bit pattern, we do assume null is zero.
     47     if (auto *CI = dyn_cast<Constant>(StoredVal))
     48       return CI->isNullValue();
     49     return false;
     50   } else if (StoredNI && LoadNI &&
     51              StoredTy->getPointerAddressSpace() !=
     52                  LoadTy->getPointerAddressSpace()) {
     53     return false;
     54   }
     55 
     56 
     57   // The implementation below uses inttoptr for vectors of unequal size; we
     58   // can't allow this for non integral pointers. We could teach it to extract
     59   // exact subvectors if desired.
     60   if (StoredNI && StoreSize != DL.getTypeSizeInBits(LoadTy).getFixedSize())
     61     return false;
     62 
     63   return true;
     64 }
     65 
     66 template <class T, class HelperClass>
     67 static T *coerceAvailableValueToLoadTypeHelper(T *StoredVal, Type *LoadedTy,
     68                                                HelperClass &Helper,
     69                                                const DataLayout &DL) {
     70   assert(canCoerceMustAliasedValueToLoad(StoredVal, LoadedTy, DL) &&
     71          "precondition violation - materialization can't fail");
     72   if (auto *C = dyn_cast<Constant>(StoredVal))
     73     StoredVal = ConstantFoldConstant(C, DL);
     74 
     75   // If this is already the right type, just return it.
     76   Type *StoredValTy = StoredVal->getType();
     77 
     78   uint64_t StoredValSize = DL.getTypeSizeInBits(StoredValTy).getFixedSize();
     79   uint64_t LoadedValSize = DL.getTypeSizeInBits(LoadedTy).getFixedSize();
     80 
     81   // If the store and reload are the same size, we can always reuse it.
     82   if (StoredValSize == LoadedValSize) {
     83     // Pointer to Pointer -> use bitcast.
     84     if (StoredValTy->isPtrOrPtrVectorTy() && LoadedTy->isPtrOrPtrVectorTy()) {
     85       StoredVal = Helper.CreateBitCast(StoredVal, LoadedTy);
     86     } else {
     87       // Convert source pointers to integers, which can be bitcast.
     88       if (StoredValTy->isPtrOrPtrVectorTy()) {
     89         StoredValTy = DL.getIntPtrType(StoredValTy);
     90         StoredVal = Helper.CreatePtrToInt(StoredVal, StoredValTy);
     91       }
     92 
     93       Type *TypeToCastTo = LoadedTy;
     94       if (TypeToCastTo->isPtrOrPtrVectorTy())
     95         TypeToCastTo = DL.getIntPtrType(TypeToCastTo);
     96 
     97       if (StoredValTy != TypeToCastTo)
     98         StoredVal = Helper.CreateBitCast(StoredVal, TypeToCastTo);
     99 
    100       // Cast to pointer if the load needs a pointer type.
    101       if (LoadedTy->isPtrOrPtrVectorTy())
    102         StoredVal = Helper.CreateIntToPtr(StoredVal, LoadedTy);
    103     }
    104 
    105     if (auto *C = dyn_cast<ConstantExpr>(StoredVal))
    106       StoredVal = ConstantFoldConstant(C, DL);
    107 
    108     return StoredVal;
    109   }
    110   // If the loaded value is smaller than the available value, then we can
    111   // extract out a piece from it.  If the available value is too small, then we
    112   // can't do anything.
    113   assert(StoredValSize >= LoadedValSize &&
    114          "canCoerceMustAliasedValueToLoad fail");
    115 
    116   // Convert source pointers to integers, which can be manipulated.
    117   if (StoredValTy->isPtrOrPtrVectorTy()) {
    118     StoredValTy = DL.getIntPtrType(StoredValTy);
    119     StoredVal = Helper.CreatePtrToInt(StoredVal, StoredValTy);
    120   }
    121 
    122   // Convert vectors and fp to integer, which can be manipulated.
    123   if (!StoredValTy->isIntegerTy()) {
    124     StoredValTy = IntegerType::get(StoredValTy->getContext(), StoredValSize);
    125     StoredVal = Helper.CreateBitCast(StoredVal, StoredValTy);
    126   }
    127 
    128   // If this is a big-endian system, we need to shift the value down to the low
    129   // bits so that a truncate will work.
    130   if (DL.isBigEndian()) {
    131     uint64_t ShiftAmt = DL.getTypeStoreSizeInBits(StoredValTy).getFixedSize() -
    132                         DL.getTypeStoreSizeInBits(LoadedTy).getFixedSize();
    133     StoredVal = Helper.CreateLShr(
    134         StoredVal, ConstantInt::get(StoredVal->getType(), ShiftAmt));
    135   }
    136 
    137   // Truncate the integer to the right size now.
    138   Type *NewIntTy = IntegerType::get(StoredValTy->getContext(), LoadedValSize);
    139   StoredVal = Helper.CreateTruncOrBitCast(StoredVal, NewIntTy);
    140 
    141   if (LoadedTy != NewIntTy) {
    142     // If the result is a pointer, inttoptr.
    143     if (LoadedTy->isPtrOrPtrVectorTy())
    144       StoredVal = Helper.CreateIntToPtr(StoredVal, LoadedTy);
    145     else
    146       // Otherwise, bitcast.
    147       StoredVal = Helper.CreateBitCast(StoredVal, LoadedTy);
    148   }
    149 
    150   if (auto *C = dyn_cast<Constant>(StoredVal))
    151     StoredVal = ConstantFoldConstant(C, DL);
    152 
    153   return StoredVal;
    154 }
    155 
    156 /// If we saw a store of a value to memory, and
    157 /// then a load from a must-aliased pointer of a different type, try to coerce
    158 /// the stored value.  LoadedTy is the type of the load we want to replace.
    159 /// IRB is IRBuilder used to insert new instructions.
    160 ///
    161 /// If we can't do it, return null.
    162 Value *coerceAvailableValueToLoadType(Value *StoredVal, Type *LoadedTy,
    163                                       IRBuilderBase &IRB,
    164                                       const DataLayout &DL) {
    165   return coerceAvailableValueToLoadTypeHelper(StoredVal, LoadedTy, IRB, DL);
    166 }
    167 
    168 /// This function is called when we have a memdep query of a load that ends up
    169 /// being a clobbering memory write (store, memset, memcpy, memmove).  This
    170 /// means that the write *may* provide bits used by the load but we can't be
    171 /// sure because the pointers don't must-alias.
    172 ///
    173 /// Check this case to see if there is anything more we can do before we give
    174 /// up.  This returns -1 if we have to give up, or a byte number in the stored
    175 /// value of the piece that feeds the load.
    176 static int analyzeLoadFromClobberingWrite(Type *LoadTy, Value *LoadPtr,
    177                                           Value *WritePtr,
    178                                           uint64_t WriteSizeInBits,
    179                                           const DataLayout &DL) {
    180   // If the loaded/stored value is a first class array/struct, or scalable type,
    181   // don't try to transform them. We need to be able to bitcast to integer.
    182   if (isFirstClassAggregateOrScalableType(LoadTy))
    183     return -1;
    184 
    185   int64_t StoreOffset = 0, LoadOffset = 0;
    186   Value *StoreBase =
    187       GetPointerBaseWithConstantOffset(WritePtr, StoreOffset, DL);
    188   Value *LoadBase = GetPointerBaseWithConstantOffset(LoadPtr, LoadOffset, DL);
    189   if (StoreBase != LoadBase)
    190     return -1;
    191 
    192   uint64_t LoadSize = DL.getTypeSizeInBits(LoadTy).getFixedSize();
    193 
    194   if ((WriteSizeInBits & 7) | (LoadSize & 7))
    195     return -1;
    196   uint64_t StoreSize = WriteSizeInBits / 8; // Convert to bytes.
    197   LoadSize /= 8;
    198 
    199   // If the Load isn't completely contained within the stored bits, we don't
    200   // have all the bits to feed it.  We could do something crazy in the future
    201   // (issue a smaller load then merge the bits in) but this seems unlikely to be
    202   // valuable.
    203   if (StoreOffset > LoadOffset ||
    204       StoreOffset + StoreSize < LoadOffset + LoadSize)
    205     return -1;
    206 
    207   // If the load and store are to the exact same address, they should have been
    208   // a must alias.  AA must have gotten confused.
    209   // FIXME: Study to see if/when this happens.  One case is forwarding a memset
    210   // to a load from the base of the memset.
    211 
    212   // If the load and store don't overlap at all, the store doesn't provide
    213   // anything to the load.  In this case, they really don't alias at all, AA
    214   // must have gotten confused.  The if statement above ensure the condition
    215   // that StoreOffset <= LoadOffset.
    216   if (StoreOffset + int64_t(StoreSize) <= LoadOffset)
    217     return -1;
    218 
    219   // Okay, we can do this transformation.  Return the number of bytes into the
    220   // store that the load is.
    221   return LoadOffset - StoreOffset;
    222 }
    223 
    224 /// This function is called when we have a
    225 /// memdep query of a load that ends up being a clobbering store.
    226 int analyzeLoadFromClobberingStore(Type *LoadTy, Value *LoadPtr,
    227                                    StoreInst *DepSI, const DataLayout &DL) {
    228   auto *StoredVal = DepSI->getValueOperand();
    229 
    230   // Cannot handle reading from store of first-class aggregate or scalable type.
    231   if (isFirstClassAggregateOrScalableType(StoredVal->getType()))
    232     return -1;
    233 
    234   if (!canCoerceMustAliasedValueToLoad(StoredVal, LoadTy, DL))
    235     return -1;
    236 
    237   Value *StorePtr = DepSI->getPointerOperand();
    238   uint64_t StoreSize =
    239       DL.getTypeSizeInBits(DepSI->getValueOperand()->getType()).getFixedSize();
    240   return analyzeLoadFromClobberingWrite(LoadTy, LoadPtr, StorePtr, StoreSize,
    241                                         DL);
    242 }
    243 
    244 /// Looks at a memory location for a load (specified by MemLocBase, Offs, and
    245 /// Size) and compares it against a load.
    246 ///
    247 /// If the specified load could be safely widened to a larger integer load
    248 /// that is 1) still efficient, 2) safe for the target, and 3) would provide
    249 /// the specified memory location value, then this function returns the size
    250 /// in bytes of the load width to use.  If not, this returns zero.
    251 static unsigned getLoadLoadClobberFullWidthSize(const Value *MemLocBase,
    252                                                 int64_t MemLocOffs,
    253                                                 unsigned MemLocSize,
    254                                                 const LoadInst *LI) {
    255   // We can only extend simple integer loads.
    256   if (!isa<IntegerType>(LI->getType()) || !LI->isSimple())
    257     return 0;
    258 
    259   // Load widening is hostile to ThreadSanitizer: it may cause false positives
    260   // or make the reports more cryptic (access sizes are wrong).
    261   if (LI->getParent()->getParent()->hasFnAttribute(Attribute::SanitizeThread))
    262     return 0;
    263 
    264   const DataLayout &DL = LI->getModule()->getDataLayout();
    265 
    266   // Get the base of this load.
    267   int64_t LIOffs = 0;
    268   const Value *LIBase =
    269       GetPointerBaseWithConstantOffset(LI->getPointerOperand(), LIOffs, DL);
    270 
    271   // If the two pointers are not based on the same pointer, we can't tell that
    272   // they are related.
    273   if (LIBase != MemLocBase)
    274     return 0;
    275 
    276   // Okay, the two values are based on the same pointer, but returned as
    277   // no-alias.  This happens when we have things like two byte loads at "P+1"
    278   // and "P+3".  Check to see if increasing the size of the "LI" load up to its
    279   // alignment (or the largest native integer type) will allow us to load all
    280   // the bits required by MemLoc.
    281 
    282   // If MemLoc is before LI, then no widening of LI will help us out.
    283   if (MemLocOffs < LIOffs)
    284     return 0;
    285 
    286   // Get the alignment of the load in bytes.  We assume that it is safe to load
    287   // any legal integer up to this size without a problem.  For example, if we're
    288   // looking at an i8 load on x86-32 that is known 1024 byte aligned, we can
    289   // widen it up to an i32 load.  If it is known 2-byte aligned, we can widen it
    290   // to i16.
    291   unsigned LoadAlign = LI->getAlignment();
    292 
    293   int64_t MemLocEnd = MemLocOffs + MemLocSize;
    294 
    295   // If no amount of rounding up will let MemLoc fit into LI, then bail out.
    296   if (LIOffs + LoadAlign < MemLocEnd)
    297     return 0;
    298 
    299   // This is the size of the load to try.  Start with the next larger power of
    300   // two.
    301   unsigned NewLoadByteSize = LI->getType()->getPrimitiveSizeInBits() / 8U;
    302   NewLoadByteSize = NextPowerOf2(NewLoadByteSize);
    303 
    304   while (true) {
    305     // If this load size is bigger than our known alignment or would not fit
    306     // into a native integer register, then we fail.
    307     if (NewLoadByteSize > LoadAlign ||
    308         !DL.fitsInLegalInteger(NewLoadByteSize * 8))
    309       return 0;
    310 
    311     if (LIOffs + NewLoadByteSize > MemLocEnd &&
    312         (LI->getParent()->getParent()->hasFnAttribute(
    313              Attribute::SanitizeAddress) ||
    314          LI->getParent()->getParent()->hasFnAttribute(
    315              Attribute::SanitizeHWAddress)))
    316       // We will be reading past the location accessed by the original program.
    317       // While this is safe in a regular build, Address Safety analysis tools
    318       // may start reporting false warnings. So, don't do widening.
    319       return 0;
    320 
    321     // If a load of this width would include all of MemLoc, then we succeed.
    322     if (LIOffs + NewLoadByteSize >= MemLocEnd)
    323       return NewLoadByteSize;
    324 
    325     NewLoadByteSize <<= 1;
    326   }
    327 }
    328 
    329 /// This function is called when we have a
    330 /// memdep query of a load that ends up being clobbered by another load.  See if
    331 /// the other load can feed into the second load.
    332 int analyzeLoadFromClobberingLoad(Type *LoadTy, Value *LoadPtr, LoadInst *DepLI,
    333                                   const DataLayout &DL) {
    334   // Cannot handle reading from store of first-class aggregate yet.
    335   if (DepLI->getType()->isStructTy() || DepLI->getType()->isArrayTy())
    336     return -1;
    337 
    338   if (!canCoerceMustAliasedValueToLoad(DepLI, LoadTy, DL))
    339     return -1;
    340 
    341   Value *DepPtr = DepLI->getPointerOperand();
    342   uint64_t DepSize = DL.getTypeSizeInBits(DepLI->getType()).getFixedSize();
    343   int R = analyzeLoadFromClobberingWrite(LoadTy, LoadPtr, DepPtr, DepSize, DL);
    344   if (R != -1)
    345     return R;
    346 
    347   // If we have a load/load clobber an DepLI can be widened to cover this load,
    348   // then we should widen it!
    349   int64_t LoadOffs = 0;
    350   const Value *LoadBase =
    351       GetPointerBaseWithConstantOffset(LoadPtr, LoadOffs, DL);
    352   unsigned LoadSize = DL.getTypeStoreSize(LoadTy).getFixedSize();
    353 
    354   unsigned Size =
    355       getLoadLoadClobberFullWidthSize(LoadBase, LoadOffs, LoadSize, DepLI);
    356   if (Size == 0)
    357     return -1;
    358 
    359   // Check non-obvious conditions enforced by MDA which we rely on for being
    360   // able to materialize this potentially available value
    361   assert(DepLI->isSimple() && "Cannot widen volatile/atomic load!");
    362   assert(DepLI->getType()->isIntegerTy() && "Can't widen non-integer load");
    363 
    364   return analyzeLoadFromClobberingWrite(LoadTy, LoadPtr, DepPtr, Size * 8, DL);
    365 }
    366 
    367 int analyzeLoadFromClobberingMemInst(Type *LoadTy, Value *LoadPtr,
    368                                      MemIntrinsic *MI, const DataLayout &DL) {
    369   // If the mem operation is a non-constant size, we can't handle it.
    370   ConstantInt *SizeCst = dyn_cast<ConstantInt>(MI->getLength());
    371   if (!SizeCst)
    372     return -1;
    373   uint64_t MemSizeInBits = SizeCst->getZExtValue() * 8;
    374 
    375   // If this is memset, we just need to see if the offset is valid in the size
    376   // of the memset..
    377   if (MI->getIntrinsicID() == Intrinsic::memset) {
    378     if (DL.isNonIntegralPointerType(LoadTy->getScalarType())) {
    379       auto *CI = dyn_cast<ConstantInt>(cast<MemSetInst>(MI)->getValue());
    380       if (!CI || !CI->isZero())
    381         return -1;
    382     }
    383     return analyzeLoadFromClobberingWrite(LoadTy, LoadPtr, MI->getDest(),
    384                                           MemSizeInBits, DL);
    385   }
    386 
    387   // If we have a memcpy/memmove, the only case we can handle is if this is a
    388   // copy from constant memory.  In that case, we can read directly from the
    389   // constant memory.
    390   MemTransferInst *MTI = cast<MemTransferInst>(MI);
    391 
    392   Constant *Src = dyn_cast<Constant>(MTI->getSource());
    393   if (!Src)
    394     return -1;
    395 
    396   GlobalVariable *GV = dyn_cast<GlobalVariable>(getUnderlyingObject(Src));
    397   if (!GV || !GV->isConstant() || !GV->hasDefinitiveInitializer())
    398     return -1;
    399 
    400   // See if the access is within the bounds of the transfer.
    401   int Offset = analyzeLoadFromClobberingWrite(LoadTy, LoadPtr, MI->getDest(),
    402                                               MemSizeInBits, DL);
    403   if (Offset == -1)
    404     return Offset;
    405 
    406   unsigned AS = Src->getType()->getPointerAddressSpace();
    407   // Otherwise, see if we can constant fold a load from the constant with the
    408   // offset applied as appropriate.
    409   if (Offset) {
    410     Src = ConstantExpr::getBitCast(Src,
    411                                    Type::getInt8PtrTy(Src->getContext(), AS));
    412     Constant *OffsetCst =
    413         ConstantInt::get(Type::getInt64Ty(Src->getContext()), (unsigned)Offset);
    414     Src = ConstantExpr::getGetElementPtr(Type::getInt8Ty(Src->getContext()),
    415                                          Src, OffsetCst);
    416   }
    417   Src = ConstantExpr::getBitCast(Src, PointerType::get(LoadTy, AS));
    418   if (ConstantFoldLoadFromConstPtr(Src, LoadTy, DL))
    419     return Offset;
    420   return -1;
    421 }
    422 
    423 template <class T, class HelperClass>
    424 static T *getStoreValueForLoadHelper(T *SrcVal, unsigned Offset, Type *LoadTy,
    425                                      HelperClass &Helper,
    426                                      const DataLayout &DL) {
    427   LLVMContext &Ctx = SrcVal->getType()->getContext();
    428 
    429   // If two pointers are in the same address space, they have the same size,
    430   // so we don't need to do any truncation, etc. This avoids introducing
    431   // ptrtoint instructions for pointers that may be non-integral.
    432   if (SrcVal->getType()->isPointerTy() && LoadTy->isPointerTy() &&
    433       cast<PointerType>(SrcVal->getType())->getAddressSpace() ==
    434           cast<PointerType>(LoadTy)->getAddressSpace()) {
    435     return SrcVal;
    436   }
    437 
    438   uint64_t StoreSize =
    439       (DL.getTypeSizeInBits(SrcVal->getType()).getFixedSize() + 7) / 8;
    440   uint64_t LoadSize = (DL.getTypeSizeInBits(LoadTy).getFixedSize() + 7) / 8;
    441   // Compute which bits of the stored value are being used by the load.  Convert
    442   // to an integer type to start with.
    443   if (SrcVal->getType()->isPtrOrPtrVectorTy())
    444     SrcVal = Helper.CreatePtrToInt(SrcVal, DL.getIntPtrType(SrcVal->getType()));
    445   if (!SrcVal->getType()->isIntegerTy())
    446     SrcVal = Helper.CreateBitCast(SrcVal, IntegerType::get(Ctx, StoreSize * 8));
    447 
    448   // Shift the bits to the least significant depending on endianness.
    449   unsigned ShiftAmt;
    450   if (DL.isLittleEndian())
    451     ShiftAmt = Offset * 8;
    452   else
    453     ShiftAmt = (StoreSize - LoadSize - Offset) * 8;
    454   if (ShiftAmt)
    455     SrcVal = Helper.CreateLShr(SrcVal,
    456                                ConstantInt::get(SrcVal->getType(), ShiftAmt));
    457 
    458   if (LoadSize != StoreSize)
    459     SrcVal = Helper.CreateTruncOrBitCast(SrcVal,
    460                                          IntegerType::get(Ctx, LoadSize * 8));
    461   return SrcVal;
    462 }
    463 
    464 /// This function is called when we have a memdep query of a load that ends up
    465 /// being a clobbering store.  This means that the store provides bits used by
    466 /// the load but the pointers don't must-alias.  Check this case to see if
    467 /// there is anything more we can do before we give up.
    468 Value *getStoreValueForLoad(Value *SrcVal, unsigned Offset, Type *LoadTy,
    469                             Instruction *InsertPt, const DataLayout &DL) {
    470 
    471   IRBuilder<> Builder(InsertPt);
    472   SrcVal = getStoreValueForLoadHelper(SrcVal, Offset, LoadTy, Builder, DL);
    473   return coerceAvailableValueToLoadTypeHelper(SrcVal, LoadTy, Builder, DL);
    474 }
    475 
    476 Constant *getConstantStoreValueForLoad(Constant *SrcVal, unsigned Offset,
    477                                        Type *LoadTy, const DataLayout &DL) {
    478   ConstantFolder F;
    479   SrcVal = getStoreValueForLoadHelper(SrcVal, Offset, LoadTy, F, DL);
    480   return coerceAvailableValueToLoadTypeHelper(SrcVal, LoadTy, F, DL);
    481 }
    482 
    483 /// This function is called when we have a memdep query of a load that ends up
    484 /// being a clobbering load.  This means that the load *may* provide bits used
    485 /// by the load but we can't be sure because the pointers don't must-alias.
    486 /// Check this case to see if there is anything more we can do before we give
    487 /// up.
    488 Value *getLoadValueForLoad(LoadInst *SrcVal, unsigned Offset, Type *LoadTy,
    489                            Instruction *InsertPt, const DataLayout &DL) {
    490   // If Offset+LoadTy exceeds the size of SrcVal, then we must be wanting to
    491   // widen SrcVal out to a larger load.
    492   unsigned SrcValStoreSize =
    493       DL.getTypeStoreSize(SrcVal->getType()).getFixedSize();
    494   unsigned LoadSize = DL.getTypeStoreSize(LoadTy).getFixedSize();
    495   if (Offset + LoadSize > SrcValStoreSize) {
    496     assert(SrcVal->isSimple() && "Cannot widen volatile/atomic load!");
    497     assert(SrcVal->getType()->isIntegerTy() && "Can't widen non-integer load");
    498     // If we have a load/load clobber an DepLI can be widened to cover this
    499     // load, then we should widen it to the next power of 2 size big enough!
    500     unsigned NewLoadSize = Offset + LoadSize;
    501     if (!isPowerOf2_32(NewLoadSize))
    502       NewLoadSize = NextPowerOf2(NewLoadSize);
    503 
    504     Value *PtrVal = SrcVal->getPointerOperand();
    505     // Insert the new load after the old load.  This ensures that subsequent
    506     // memdep queries will find the new load.  We can't easily remove the old
    507     // load completely because it is already in the value numbering table.
    508     IRBuilder<> Builder(SrcVal->getParent(), ++BasicBlock::iterator(SrcVal));
    509     Type *DestTy = IntegerType::get(LoadTy->getContext(), NewLoadSize * 8);
    510     Type *DestPTy =
    511         PointerType::get(DestTy, PtrVal->getType()->getPointerAddressSpace());
    512     Builder.SetCurrentDebugLocation(SrcVal->getDebugLoc());
    513     PtrVal = Builder.CreateBitCast(PtrVal, DestPTy);
    514     LoadInst *NewLoad = Builder.CreateLoad(DestTy, PtrVal);
    515     NewLoad->takeName(SrcVal);
    516     NewLoad->setAlignment(SrcVal->getAlign());
    517 
    518     LLVM_DEBUG(dbgs() << "GVN WIDENED LOAD: " << *SrcVal << "\n");
    519     LLVM_DEBUG(dbgs() << "TO: " << *NewLoad << "\n");
    520 
    521     // Replace uses of the original load with the wider load.  On a big endian
    522     // system, we need to shift down to get the relevant bits.
    523     Value *RV = NewLoad;
    524     if (DL.isBigEndian())
    525       RV = Builder.CreateLShr(RV, (NewLoadSize - SrcValStoreSize) * 8);
    526     RV = Builder.CreateTrunc(RV, SrcVal->getType());
    527     SrcVal->replaceAllUsesWith(RV);
    528 
    529     SrcVal = NewLoad;
    530   }
    531 
    532   return getStoreValueForLoad(SrcVal, Offset, LoadTy, InsertPt, DL);
    533 }
    534 
    535 Constant *getConstantLoadValueForLoad(Constant *SrcVal, unsigned Offset,
    536                                       Type *LoadTy, const DataLayout &DL) {
    537   unsigned SrcValStoreSize =
    538       DL.getTypeStoreSize(SrcVal->getType()).getFixedSize();
    539   unsigned LoadSize = DL.getTypeStoreSize(LoadTy).getFixedSize();
    540   if (Offset + LoadSize > SrcValStoreSize)
    541     return nullptr;
    542   return getConstantStoreValueForLoad(SrcVal, Offset, LoadTy, DL);
    543 }
    544 
    545 template <class T, class HelperClass>
    546 T *getMemInstValueForLoadHelper(MemIntrinsic *SrcInst, unsigned Offset,
    547                                 Type *LoadTy, HelperClass &Helper,
    548                                 const DataLayout &DL) {
    549   LLVMContext &Ctx = LoadTy->getContext();
    550   uint64_t LoadSize = DL.getTypeSizeInBits(LoadTy).getFixedSize() / 8;
    551 
    552   // We know that this method is only called when the mem transfer fully
    553   // provides the bits for the load.
    554   if (MemSetInst *MSI = dyn_cast<MemSetInst>(SrcInst)) {
    555     // memset(P, 'x', 1234) -> splat('x'), even if x is a variable, and
    556     // independently of what the offset is.
    557     T *Val = cast<T>(MSI->getValue());
    558     if (LoadSize != 1)
    559       Val =
    560           Helper.CreateZExtOrBitCast(Val, IntegerType::get(Ctx, LoadSize * 8));
    561     T *OneElt = Val;
    562 
    563     // Splat the value out to the right number of bits.
    564     for (unsigned NumBytesSet = 1; NumBytesSet != LoadSize;) {
    565       // If we can double the number of bytes set, do it.
    566       if (NumBytesSet * 2 <= LoadSize) {
    567         T *ShVal = Helper.CreateShl(
    568             Val, ConstantInt::get(Val->getType(), NumBytesSet * 8));
    569         Val = Helper.CreateOr(Val, ShVal);
    570         NumBytesSet <<= 1;
    571         continue;
    572       }
    573 
    574       // Otherwise insert one byte at a time.
    575       T *ShVal = Helper.CreateShl(Val, ConstantInt::get(Val->getType(), 1 * 8));
    576       Val = Helper.CreateOr(OneElt, ShVal);
    577       ++NumBytesSet;
    578     }
    579 
    580     return coerceAvailableValueToLoadTypeHelper(Val, LoadTy, Helper, DL);
    581   }
    582 
    583   // Otherwise, this is a memcpy/memmove from a constant global.
    584   MemTransferInst *MTI = cast<MemTransferInst>(SrcInst);
    585   Constant *Src = cast<Constant>(MTI->getSource());
    586 
    587   unsigned AS = Src->getType()->getPointerAddressSpace();
    588   // Otherwise, see if we can constant fold a load from the constant with the
    589   // offset applied as appropriate.
    590   if (Offset) {
    591     Src = ConstantExpr::getBitCast(Src,
    592                                    Type::getInt8PtrTy(Src->getContext(), AS));
    593     Constant *OffsetCst =
    594         ConstantInt::get(Type::getInt64Ty(Src->getContext()), (unsigned)Offset);
    595     Src = ConstantExpr::getGetElementPtr(Type::getInt8Ty(Src->getContext()),
    596                                          Src, OffsetCst);
    597   }
    598   Src = ConstantExpr::getBitCast(Src, PointerType::get(LoadTy, AS));
    599   return ConstantFoldLoadFromConstPtr(Src, LoadTy, DL);
    600 }
    601 
    602 /// This function is called when we have a
    603 /// memdep query of a load that ends up being a clobbering mem intrinsic.
    604 Value *getMemInstValueForLoad(MemIntrinsic *SrcInst, unsigned Offset,
    605                               Type *LoadTy, Instruction *InsertPt,
    606                               const DataLayout &DL) {
    607   IRBuilder<> Builder(InsertPt);
    608   return getMemInstValueForLoadHelper<Value, IRBuilder<>>(SrcInst, Offset,
    609                                                           LoadTy, Builder, DL);
    610 }
    611 
    612 Constant *getConstantMemInstValueForLoad(MemIntrinsic *SrcInst, unsigned Offset,
    613                                          Type *LoadTy, const DataLayout &DL) {
    614   // The only case analyzeLoadFromClobberingMemInst cannot be converted to a
    615   // constant is when it's a memset of a non-constant.
    616   if (auto *MSI = dyn_cast<MemSetInst>(SrcInst))
    617     if (!isa<Constant>(MSI->getValue()))
    618       return nullptr;
    619   ConstantFolder F;
    620   return getMemInstValueForLoadHelper<Constant, ConstantFolder>(SrcInst, Offset,
    621                                                                 LoadTy, F, DL);
    622 }
    623 } // namespace VNCoercion
    624 } // namespace llvm
    625