mirror of
https://github.com/obfuscator-llvm/obfuscator
synced 2026-06-08 16:28:34 +00:00
Initial commit of LLVM 3.4
This commit is contained in:
@@ -60,10 +60,7 @@ enum {
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FUNCTION_INST_CAST_ABBREV,
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FUNCTION_INST_RET_VOID_ABBREV,
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FUNCTION_INST_RET_VAL_ABBREV,
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FUNCTION_INST_UNREACHABLE_ABBREV,
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// SwitchInst Magic
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SWITCH_INST_MAGIC = 0x4B5 // May 2012 => 1205 => Hex
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FUNCTION_INST_UNREACHABLE_ABBREV
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};
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static unsigned GetEncodedCastOpcode(unsigned Opcode) {
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@@ -81,6 +78,7 @@ static unsigned GetEncodedCastOpcode(unsigned Opcode) {
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case Instruction::PtrToInt: return bitc::CAST_PTRTOINT;
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case Instruction::IntToPtr: return bitc::CAST_INTTOPTR;
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case Instruction::BitCast : return bitc::CAST_BITCAST;
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case Instruction::AddrSpaceCast: return bitc::CAST_ADDRSPACECAST;
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}
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}
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@@ -161,6 +159,91 @@ static void WriteStringRecord(unsigned Code, StringRef Str,
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Stream.EmitRecord(Code, Vals, AbbrevToUse);
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}
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static uint64_t getAttrKindEncoding(Attribute::AttrKind Kind) {
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switch (Kind) {
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case Attribute::Alignment:
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return bitc::ATTR_KIND_ALIGNMENT;
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case Attribute::AlwaysInline:
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return bitc::ATTR_KIND_ALWAYS_INLINE;
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case Attribute::Builtin:
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return bitc::ATTR_KIND_BUILTIN;
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case Attribute::ByVal:
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return bitc::ATTR_KIND_BY_VAL;
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case Attribute::Cold:
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return bitc::ATTR_KIND_COLD;
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case Attribute::InlineHint:
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return bitc::ATTR_KIND_INLINE_HINT;
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case Attribute::InReg:
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return bitc::ATTR_KIND_IN_REG;
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case Attribute::MinSize:
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return bitc::ATTR_KIND_MIN_SIZE;
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case Attribute::Naked:
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return bitc::ATTR_KIND_NAKED;
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case Attribute::Nest:
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return bitc::ATTR_KIND_NEST;
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case Attribute::NoAlias:
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return bitc::ATTR_KIND_NO_ALIAS;
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case Attribute::NoBuiltin:
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return bitc::ATTR_KIND_NO_BUILTIN;
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case Attribute::NoCapture:
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return bitc::ATTR_KIND_NO_CAPTURE;
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case Attribute::NoDuplicate:
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return bitc::ATTR_KIND_NO_DUPLICATE;
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case Attribute::NoImplicitFloat:
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return bitc::ATTR_KIND_NO_IMPLICIT_FLOAT;
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case Attribute::NoInline:
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return bitc::ATTR_KIND_NO_INLINE;
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case Attribute::NonLazyBind:
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return bitc::ATTR_KIND_NON_LAZY_BIND;
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case Attribute::NoRedZone:
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return bitc::ATTR_KIND_NO_RED_ZONE;
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case Attribute::NoReturn:
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return bitc::ATTR_KIND_NO_RETURN;
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case Attribute::NoUnwind:
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return bitc::ATTR_KIND_NO_UNWIND;
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case Attribute::OptimizeForSize:
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return bitc::ATTR_KIND_OPTIMIZE_FOR_SIZE;
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case Attribute::OptimizeNone:
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return bitc::ATTR_KIND_OPTIMIZE_NONE;
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case Attribute::ReadNone:
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return bitc::ATTR_KIND_READ_NONE;
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case Attribute::ReadOnly:
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return bitc::ATTR_KIND_READ_ONLY;
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case Attribute::Returned:
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return bitc::ATTR_KIND_RETURNED;
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case Attribute::ReturnsTwice:
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return bitc::ATTR_KIND_RETURNS_TWICE;
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case Attribute::SExt:
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return bitc::ATTR_KIND_S_EXT;
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case Attribute::StackAlignment:
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return bitc::ATTR_KIND_STACK_ALIGNMENT;
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case Attribute::StackProtect:
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return bitc::ATTR_KIND_STACK_PROTECT;
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case Attribute::StackProtectReq:
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return bitc::ATTR_KIND_STACK_PROTECT_REQ;
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case Attribute::StackProtectStrong:
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return bitc::ATTR_KIND_STACK_PROTECT_STRONG;
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case Attribute::StructRet:
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return bitc::ATTR_KIND_STRUCT_RET;
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case Attribute::SanitizeAddress:
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return bitc::ATTR_KIND_SANITIZE_ADDRESS;
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case Attribute::SanitizeThread:
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return bitc::ATTR_KIND_SANITIZE_THREAD;
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case Attribute::SanitizeMemory:
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return bitc::ATTR_KIND_SANITIZE_MEMORY;
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case Attribute::UWTable:
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return bitc::ATTR_KIND_UW_TABLE;
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case Attribute::ZExt:
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return bitc::ATTR_KIND_Z_EXT;
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case Attribute::EndAttrKinds:
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llvm_unreachable("Can not encode end-attribute kinds marker.");
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case Attribute::None:
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llvm_unreachable("Can not encode none-attribute.");
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}
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llvm_unreachable("Trying to encode unknown attribute");
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}
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static void WriteAttributeGroupTable(const ValueEnumerator &VE,
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BitstreamWriter &Stream) {
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const std::vector<AttributeSet> &AttrGrps = VE.getAttributeGroups();
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@@ -182,10 +265,10 @@ static void WriteAttributeGroupTable(const ValueEnumerator &VE,
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Attribute Attr = *I;
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if (Attr.isEnumAttribute()) {
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Record.push_back(0);
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Record.push_back(Attr.getKindAsEnum());
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Record.push_back(getAttrKindEncoding(Attr.getKindAsEnum()));
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} else if (Attr.isAlignAttribute()) {
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Record.push_back(1);
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Record.push_back(Attr.getKindAsEnum());
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Record.push_back(getAttrKindEncoding(Attr.getKindAsEnum()));
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Record.push_back(Attr.getValueAsInt());
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} else {
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StringRef Kind = Attr.getKindAsString();
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@@ -407,7 +490,6 @@ static unsigned getEncodedLinkage(const GlobalValue *GV) {
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case GlobalValue::AvailableExternallyLinkage: return 12;
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case GlobalValue::LinkerPrivateLinkage: return 13;
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case GlobalValue::LinkerPrivateWeakLinkage: return 14;
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case GlobalValue::LinkOnceODRAutoHideLinkage: return 15;
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}
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llvm_unreachable("Invalid linkage");
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}
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@@ -524,7 +606,7 @@ static void WriteModuleInfo(const Module *M, const ValueEnumerator &VE,
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// GLOBALVAR: [type, isconst, initid,
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// linkage, alignment, section, visibility, threadlocal,
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// unnamed_addr]
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// unnamed_addr, externally_initialized]
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Vals.push_back(VE.getTypeID(GV->getType()));
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Vals.push_back(GV->isConstant());
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Vals.push_back(GV->isDeclaration() ? 0 :
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@@ -550,7 +632,7 @@ static void WriteModuleInfo(const Module *M, const ValueEnumerator &VE,
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// Emit the function proto information.
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for (Module::const_iterator F = M->begin(), E = M->end(); F != E; ++F) {
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// FUNCTION: [type, callingconv, isproto, linkage, paramattrs, alignment,
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// section, visibility, gc, unnamed_addr]
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// section, visibility, gc, unnamed_addr, prefix]
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Vals.push_back(VE.getTypeID(F->getType()));
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Vals.push_back(F->getCallingConv());
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Vals.push_back(F->isDeclaration());
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@@ -561,6 +643,8 @@ static void WriteModuleInfo(const Module *M, const ValueEnumerator &VE,
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Vals.push_back(getEncodedVisibility(F));
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Vals.push_back(F->hasGC() ? GCMap[F->getGC()] : 0);
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Vals.push_back(F->hasUnnamedAddr());
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Vals.push_back(F->hasPrefixData() ? (VE.getValueID(F->getPrefixData()) + 1)
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: 0);
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unsigned AbbrevToUse = 0;
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Stream.EmitRecord(bitc::MODULE_CODE_FUNCTION, Vals, AbbrevToUse);
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@@ -614,7 +698,7 @@ static uint64_t GetOptimizationFlags(const Value *V) {
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static void WriteMDNode(const MDNode *N,
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const ValueEnumerator &VE,
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BitstreamWriter &Stream,
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SmallVector<uint64_t, 64> &Record) {
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SmallVectorImpl<uint64_t> &Record) {
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for (unsigned i = 0, e = N->getNumOperands(); i != e; ++i) {
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if (N->getOperand(i)) {
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Record.push_back(VE.getTypeID(N->getOperand(i)->getType()));
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@@ -701,7 +785,7 @@ static void WriteFunctionLocalMetadata(const Function &F,
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BitstreamWriter &Stream) {
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bool StartedMetadataBlock = false;
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SmallVector<uint64_t, 64> Record;
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const SmallVector<const MDNode *, 8> &Vals = VE.getFunctionLocalMDValues();
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const SmallVectorImpl<const MDNode *> &Vals = VE.getFunctionLocalMDValues();
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for (unsigned i = 0, e = Vals.size(); i != e; ++i)
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if (const MDNode *N = Vals[i])
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if (N->isFunctionLocal() && N->getFunction() == &F) {
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@@ -780,34 +864,6 @@ static void emitSignedInt64(SmallVectorImpl<uint64_t> &Vals, uint64_t V) {
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Vals.push_back((-V << 1) | 1);
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}
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static void EmitAPInt(SmallVectorImpl<uint64_t> &Vals,
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unsigned &Code, unsigned &AbbrevToUse, const APInt &Val,
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bool EmitSizeForWideNumbers = false
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) {
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if (Val.getBitWidth() <= 64) {
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uint64_t V = Val.getSExtValue();
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emitSignedInt64(Vals, V);
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Code = bitc::CST_CODE_INTEGER;
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AbbrevToUse = CONSTANTS_INTEGER_ABBREV;
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} else {
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// Wide integers, > 64 bits in size.
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// We have an arbitrary precision integer value to write whose
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// bit width is > 64. However, in canonical unsigned integer
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// format it is likely that the high bits are going to be zero.
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// So, we only write the number of active words.
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unsigned NWords = Val.getActiveWords();
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if (EmitSizeForWideNumbers)
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Vals.push_back(NWords);
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const uint64_t *RawWords = Val.getRawData();
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for (unsigned i = 0; i != NWords; ++i) {
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emitSignedInt64(Vals, RawWords[i]);
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}
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Code = bitc::CST_CODE_WIDE_INTEGER;
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}
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}
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static void WriteConstants(unsigned FirstVal, unsigned LastVal,
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const ValueEnumerator &VE,
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BitstreamWriter &Stream, bool isGlobal) {
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@@ -891,7 +947,23 @@ static void WriteConstants(unsigned FirstVal, unsigned LastVal,
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} else if (isa<UndefValue>(C)) {
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Code = bitc::CST_CODE_UNDEF;
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} else if (const ConstantInt *IV = dyn_cast<ConstantInt>(C)) {
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EmitAPInt(Record, Code, AbbrevToUse, IV->getValue());
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if (IV->getBitWidth() <= 64) {
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uint64_t V = IV->getSExtValue();
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emitSignedInt64(Record, V);
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Code = bitc::CST_CODE_INTEGER;
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AbbrevToUse = CONSTANTS_INTEGER_ABBREV;
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} else { // Wide integers, > 64 bits in size.
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// We have an arbitrary precision integer value to write whose
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// bit width is > 64. However, in canonical unsigned integer
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// format it is likely that the high bits are going to be zero.
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// So, we only write the number of active words.
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unsigned NWords = IV->getValue().getActiveWords();
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const uint64_t *RawWords = IV->getValue().getRawData();
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for (unsigned i = 0; i != NWords; ++i) {
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emitSignedInt64(Record, RawWords[i]);
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}
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Code = bitc::CST_CODE_WIDE_INTEGER;
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}
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} else if (const ConstantFP *CFP = dyn_cast<ConstantFP>(C)) {
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Code = bitc::CST_CODE_FLOAT;
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Type *Ty = CFP->getType();
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@@ -1078,7 +1150,7 @@ static void WriteModuleConstants(const ValueEnumerator &VE,
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/// instruction ID, then it is a forward reference, and it also includes the
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/// type ID. The value ID that is written is encoded relative to the InstID.
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static bool PushValueAndType(const Value *V, unsigned InstID,
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SmallVector<unsigned, 64> &Vals,
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SmallVectorImpl<unsigned> &Vals,
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ValueEnumerator &VE) {
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unsigned ValID = VE.getValueID(V);
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// Make encoding relative to the InstID.
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@@ -1093,21 +1165,14 @@ static bool PushValueAndType(const Value *V, unsigned InstID,
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/// pushValue - Like PushValueAndType, but where the type of the value is
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/// omitted (perhaps it was already encoded in an earlier operand).
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static void pushValue(const Value *V, unsigned InstID,
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SmallVector<unsigned, 64> &Vals,
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SmallVectorImpl<unsigned> &Vals,
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ValueEnumerator &VE) {
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unsigned ValID = VE.getValueID(V);
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Vals.push_back(InstID - ValID);
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}
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static void pushValue64(const Value *V, unsigned InstID,
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SmallVector<uint64_t, 128> &Vals,
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ValueEnumerator &VE) {
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uint64_t ValID = VE.getValueID(V);
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Vals.push_back(InstID - ValID);
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}
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static void pushValueSigned(const Value *V, unsigned InstID,
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SmallVector<uint64_t, 128> &Vals,
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SmallVectorImpl<uint64_t> &Vals,
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ValueEnumerator &VE) {
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unsigned ValID = VE.getValueID(V);
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int64_t diff = ((int32_t)InstID - (int32_t)ValID);
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@@ -1117,7 +1182,7 @@ static void pushValueSigned(const Value *V, unsigned InstID,
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/// WriteInstruction - Emit an instruction to the specified stream.
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static void WriteInstruction(const Instruction &I, unsigned InstID,
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ValueEnumerator &VE, BitstreamWriter &Stream,
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SmallVector<unsigned, 64> &Vals) {
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SmallVectorImpl<unsigned> &Vals) {
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unsigned Code = 0;
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unsigned AbbrevToUse = 0;
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VE.setInstructionID(&I);
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@@ -1229,63 +1294,16 @@ static void WriteInstruction(const Instruction &I, unsigned InstID,
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break;
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case Instruction::Switch:
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{
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// Redefine Vals, since here we need to use 64 bit values
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// explicitly to store large APInt numbers.
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SmallVector<uint64_t, 128> Vals64;
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Code = bitc::FUNC_CODE_INST_SWITCH;
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const SwitchInst &SI = cast<SwitchInst>(I);
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uint32_t SwitchRecordHeader = SI.hash() | (SWITCH_INST_MAGIC << 16);
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Vals64.push_back(SwitchRecordHeader);
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Vals64.push_back(VE.getTypeID(SI.getCondition()->getType()));
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pushValue64(SI.getCondition(), InstID, Vals64, VE);
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Vals64.push_back(VE.getValueID(SI.getDefaultDest()));
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Vals64.push_back(SI.getNumCases());
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Vals.push_back(VE.getTypeID(SI.getCondition()->getType()));
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pushValue(SI.getCondition(), InstID, Vals, VE);
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Vals.push_back(VE.getValueID(SI.getDefaultDest()));
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for (SwitchInst::ConstCaseIt i = SI.case_begin(), e = SI.case_end();
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i != e; ++i) {
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const IntegersSubset& CaseRanges = i.getCaseValueEx();
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unsigned Code, Abbrev; // will unused.
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if (CaseRanges.isSingleNumber()) {
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Vals64.push_back(1/*NumItems = 1*/);
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Vals64.push_back(true/*IsSingleNumber = true*/);
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EmitAPInt(Vals64, Code, Abbrev, CaseRanges.getSingleNumber(0), true);
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} else {
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Vals64.push_back(CaseRanges.getNumItems());
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if (CaseRanges.isSingleNumbersOnly()) {
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for (unsigned ri = 0, rn = CaseRanges.getNumItems();
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ri != rn; ++ri) {
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Vals64.push_back(true/*IsSingleNumber = true*/);
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EmitAPInt(Vals64, Code, Abbrev,
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CaseRanges.getSingleNumber(ri), true);
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}
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} else
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for (unsigned ri = 0, rn = CaseRanges.getNumItems();
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ri != rn; ++ri) {
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IntegersSubset::Range r = CaseRanges.getItem(ri);
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bool IsSingleNumber = CaseRanges.isSingleNumber(ri);
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Vals64.push_back(IsSingleNumber);
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EmitAPInt(Vals64, Code, Abbrev, r.getLow(), true);
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if (!IsSingleNumber)
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EmitAPInt(Vals64, Code, Abbrev, r.getHigh(), true);
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}
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}
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Vals64.push_back(VE.getValueID(i.getCaseSuccessor()));
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Vals.push_back(VE.getValueID(i.getCaseValue()));
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Vals.push_back(VE.getValueID(i.getCaseSuccessor()));
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}
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Stream.EmitRecord(Code, Vals64, AbbrevToUse);
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// Also do expected action - clear external Vals collection:
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Vals.clear();
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return;
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}
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break;
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case Instruction::IndirectBr:
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@@ -1847,6 +1865,8 @@ static void WriteModuleUseLists(const Module *M, ValueEnumerator &VE,
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WriteUseList(FI, VE, Stream);
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if (!FI->isDeclaration())
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WriteFunctionUseList(FI, VE, Stream);
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if (FI->hasPrefixData())
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WriteUseList(FI->getPrefixData(), VE, Stream);
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}
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// Write the aliases.
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Block a user