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introduce a new RoundUpAlignment helper function, use it to
remove some more 64-bit divs and rems from the StructLayout ctor. git-svn-id: https://llvm.org/svn/llvm-project/llvm/trunk@60692 91177308-0d34-0410-b5e6-96231b3b80d8
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@ -178,12 +178,8 @@ public:
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/// that alloca reserves for this type. For example, returns 12 or 16 for
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/// x86_fp80, depending on alignment.
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uint64_t getABITypeSize(const Type* Ty) const {
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// The alignment of a type is always a power of two.
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unsigned char AlignMinusOne = getABITypeAlignment(Ty)-1;
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// Round up to the next alignment boundary.
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uint64_t RoundUp = getTypeStoreSize(Ty) + AlignMinusOne;
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return RoundUp &= ~uint64_t(AlignMinusOne);
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return RoundUpAlignment(getTypeStoreSize(Ty), getABITypeAlignment(Ty));
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}
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/// getABITypeSizeInBits - Return the offset in bits between successive
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@ -244,6 +240,16 @@ public:
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/// requested alignment (if the global has one).
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unsigned getPreferredAlignmentLog(const GlobalVariable *GV) const;
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/// RoundUpAlignment - Round the specified value up to the next alignment
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/// boundary specified by Alignment. For example, 7 rounded up to an
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/// alignment boundary of 4 is 8. 8 rounded up to the alignment boundary of 4
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/// is 8 because it is already aligned.
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template <typename UIntTy>
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static UIntTy RoundUpAlignment(UIntTy Val, unsigned Alignment) {
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assert((Alignment & (Alignment-1)) == 0 && "Alignment must be power of 2!");
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return (Val + (Alignment-1)) & ~UIntTy(Alignment-1);
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}
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static char ID; // Pass identification, replacement for typeid
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};
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@ -45,15 +45,16 @@ StructLayout::StructLayout(const StructType *ST, const TargetData &TD) {
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StructSize = 0;
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NumElements = ST->getNumElements();
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// Loop over each of the elements, placing them in memory...
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// Loop over each of the elements, placing them in memory.
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for (unsigned i = 0, e = NumElements; i != e; ++i) {
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const Type *Ty = ST->getElementType(i);
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unsigned TyAlign = ST->isPacked() ? 1 : TD.getABITypeAlignment(Ty);
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// Add padding if necessary to align the data element properly...
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StructSize = (StructSize + TyAlign - 1)/TyAlign * TyAlign;
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// Add padding if necessary to align the data element properly.
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if (StructSize & TyAlign-1)
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StructSize = TargetData::RoundUpAlignment(StructSize, TyAlign);
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// Keep track of maximum alignment constraint
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// Keep track of maximum alignment constraint.
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StructAlignment = std::max(TyAlign, StructAlignment);
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MemberOffsets[i] = StructSize;
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@ -65,8 +66,8 @@ StructLayout::StructLayout(const StructType *ST, const TargetData &TD) {
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// Add padding to the end of the struct so that it could be put in an array
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// and all array elements would be aligned correctly.
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if (StructSize % StructAlignment != 0)
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StructSize = (StructSize/StructAlignment + 1) * StructAlignment;
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if (StructSize & (StructAlignment-1) != 0)
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StructSize = TargetData::RoundUpAlignment(StructSize, StructAlignment);
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}
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@ -346,18 +347,18 @@ typedef DenseMap<LayoutKey, StructLayout*, DenseMapLayoutKeyInfo> LayoutInfoTy;
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static ManagedStatic<LayoutInfoTy> LayoutInfo;
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TargetData::~TargetData() {
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if (LayoutInfo.isConstructed()) {
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// Remove any layouts for this TD.
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LayoutInfoTy &TheMap = *LayoutInfo;
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for (LayoutInfoTy::iterator I = TheMap.begin(), E = TheMap.end();
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I != E; ) {
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if (I->first.first == this) {
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I->second->~StructLayout();
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free(I->second);
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TheMap.erase(I++);
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} else {
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++I;
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}
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if (!LayoutInfo.isConstructed())
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return;
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// Remove any layouts for this TD.
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LayoutInfoTy &TheMap = *LayoutInfo;
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for (LayoutInfoTy::iterator I = TheMap.begin(), E = TheMap.end(); I != E; ) {
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if (I->first.first == this) {
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I->second->~StructLayout();
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free(I->second);
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TheMap.erase(I++);
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} else {
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++I;
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}
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}
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}
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@ -390,11 +391,11 @@ void TargetData::InvalidateStructLayoutInfo(const StructType *Ty) const {
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if (!LayoutInfo.isConstructed()) return; // No cache.
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LayoutInfoTy::iterator I = LayoutInfo->find(LayoutKey(this, Ty));
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if (I != LayoutInfo->end()) {
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I->second->~StructLayout();
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free(I->second);
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LayoutInfo->erase(I);
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}
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if (I == LayoutInfo->end()) return;
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I->second->~StructLayout();
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free(I->second);
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LayoutInfo->erase(I);
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}
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@ -426,11 +427,9 @@ uint64_t TargetData::getTypeSizeInBits(const Type *Ty) const {
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const ArrayType *ATy = cast<ArrayType>(Ty);
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return getABITypeSizeInBits(ATy->getElementType())*ATy->getNumElements();
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}
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case Type::StructTyID: {
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case Type::StructTyID:
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// Get the layout annotation... which is lazily created on demand.
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const StructLayout *Layout = getStructLayout(cast<StructType>(Ty));
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return Layout->getSizeInBits();
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}
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return getStructLayout(cast<StructType>(Ty))->getSizeInBits();
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case Type::IntegerTyID:
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return cast<IntegerType>(Ty)->getBitWidth();
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case Type::VoidTyID:
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@ -446,10 +445,8 @@ uint64_t TargetData::getTypeSizeInBits(const Type *Ty) const {
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// only 80 bits contain information.
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case Type::X86_FP80TyID:
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return 80;
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case Type::VectorTyID: {
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const VectorType *PTy = cast<VectorType>(Ty);
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return PTy->getBitWidth();
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}
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case Type::VectorTyID:
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return cast<VectorType>(Ty)->getBitWidth();
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default:
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assert(0 && "TargetData::getTypeSizeInBits(): Unsupported type");
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break;
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@ -470,7 +467,7 @@ unsigned char TargetData::getAlignment(const Type *Ty, bool abi_or_pref) const {
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assert(Ty->isSized() && "Cannot getTypeInfo() on a type that is unsized!");
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switch (Ty->getTypeID()) {
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/* Early escape for the non-numeric types */
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// Early escape for the non-numeric types.
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case Type::LabelTyID:
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case Type::PointerTyID:
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return (abi_or_pref
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