mirror of
https://github.com/revng/revng
synced 2026-06-21 14:07:57 +00:00
7d235f4fd0
Also do some basic cleanup: capitalize first letters, add `.` at the end of the sentences, and so on.
620 lines
15 KiB
C++
620 lines
15 KiB
C++
/// \file Binary.cpp
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//
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// This file is distributed under the MIT License. See LICENSE.md for details.
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//
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#include "llvm/ADT/DepthFirstIterator.h"
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#include "llvm/BinaryFormat/ELF.h"
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#include "llvm/Support/DOTGraphTraits.h"
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#include "llvm/Support/GraphWriter.h"
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#include "llvm/Support/raw_os_ostream.h"
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#include "revng/ADT/GenericGraph.h"
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#include "revng/Model/Binary.h"
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#include "revng/Model/TypeSystemPrinter.h"
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#include "revng/Model/VerifyHelper.h"
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#include "revng/Support/OverflowSafeInt.h"
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using namespace llvm;
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namespace model {
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model::TypePath Binary::getPrimitiveType(PrimitiveTypeKind::Values V,
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uint8_t ByteSize) {
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PrimitiveType Temporary(V, ByteSize);
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Type::Key PrimitiveKey{ TypeKind::PrimitiveType, Temporary.ID() };
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auto It = Types().find(PrimitiveKey);
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// If we couldn't find it, create it
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if (It == Types().end()) {
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auto *NewPrimitiveType = new PrimitiveType(V, ByteSize);
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It = Types().insert(UpcastablePointer<model::Type>(NewPrimitiveType)).first;
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}
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return getTypePath(It->get());
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}
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model::TypePath Binary::getPrimitiveType(PrimitiveTypeKind::Values V,
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uint8_t ByteSize) const {
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PrimitiveType Temporary(V, ByteSize);
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Type::Key PrimitiveKey{ TypeKind::PrimitiveType, Temporary.ID() };
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return getTypePath(Types().at(PrimitiveKey).get());
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}
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TypePath Binary::recordNewType(UpcastablePointer<Type> &&T) {
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auto [It, Success] = Types().insert(T);
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revng_assert(Success);
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return getTypePath(It->get());
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}
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bool Binary::verifyTypes() const {
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return verifyTypes(false);
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}
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bool Binary::verifyTypes(bool Assert) const {
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VerifyHelper VH(Assert);
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return verifyTypes(VH);
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}
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bool Binary::verifyTypes(VerifyHelper &VH) const {
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// All types on their own should verify
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std::set<Identifier> Names;
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for (auto &Type : Types()) {
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// Verify the type
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if (not Type.get()->verify(VH))
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return VH.fail();
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// Ensure the names are unique
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auto Name = Type->name();
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if (not Names.insert(Name).second)
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return VH.fail(Twine("Multiple types with the following name: ") + Name);
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}
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return true;
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}
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void Binary::dump() const {
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serialize(dbg, *this);
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}
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void Binary::dumpTypeGraph(const char *Path) const {
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std::error_code EC;
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llvm::raw_fd_ostream Out(Path, EC);
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if (EC)
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revng_abort(EC.message().c_str());
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TypeSystemPrinter TSPrinter(Out);
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TSPrinter.print(*this);
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}
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std::string Binary::toString() const {
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std::string S;
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llvm::raw_string_ostream OS(S);
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serialize(OS, *this);
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return S;
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}
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bool Binary::verify(bool Assert) const {
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VerifyHelper VH(Assert);
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return verify(VH);
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}
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bool Binary::verify() const {
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VerifyHelper VH(false);
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return verify(VH);
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}
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bool Binary::verify(VerifyHelper &VH) const {
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// Prepare for checking symbol names. We will populate and check this against
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// functions, dynamic functions, segments, types and enum entries
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std::set<Identifier> Symbols;
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auto CheckCustomName = [&VH, &Symbols, this](const Identifier &CustomName) {
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if (CustomName.empty())
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return true;
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return VH.maybeFail(Symbols.insert(CustomName).second,
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"Duplicate name: " + CustomName.str().str(),
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*this);
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};
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for (const Function &F : Functions()) {
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// Verify individual functions
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if (not F.verify(VH))
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return VH.fail();
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if (not CheckCustomName(F.CustomName()))
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return VH.fail("Duplicate name", F);
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}
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// Verify DynamicFunctions
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for (const DynamicFunction &DF : ImportedDynamicFunctions()) {
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if (not DF.verify(VH))
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return VH.fail();
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if (not CheckCustomName(DF.CustomName()))
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return VH.fail();
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}
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for (auto &Type : Types()) {
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if (not CheckCustomName(Type->CustomName()))
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return VH.fail();
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if (auto *Enum = dyn_cast<EnumType>(Type.get()))
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for (auto &Entry : Enum->Entries())
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if (not CheckCustomName(Entry.CustomName()))
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return VH.fail();
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}
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// Verify Segments
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for (const Segment &S : Segments()) {
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if (not S.verify(VH))
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return VH.fail();
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if (not CheckCustomName(S.CustomName()))
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return VH.fail();
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}
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// Make sure no segments overlap
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for (const auto &[LHS, RHS] : zip_pairs(Segments())) {
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revng_assert(LHS.StartAddress() <= RHS.StartAddress());
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if (LHS.endAddress() > RHS.StartAddress()) {
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std::string Error = "Overlapping segments:\n" + serializeToString(LHS)
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+ "and\n" + serializeToString(RHS);
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return VH.fail(Error);
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}
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}
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//
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// Verify the type system
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//
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return verifyTypes(VH);
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}
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Identifier Function::name() const {
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using llvm::Twine;
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if (not CustomName().empty()) {
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return CustomName();
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} else {
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auto AutomaticName = (Twine("function_") + Entry().toString()).str();
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return Identifier::fromString(AutomaticName);
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}
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}
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static const model::TypePath &prototypeOr(const model::TypePath &Prototype,
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const model::TypePath &Default) {
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if (Prototype.isValid())
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return Prototype;
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revng_assert(Default.isValid());
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return Default;
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}
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const model::TypePath &Function::prototype(const model::Binary &Root) const {
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return prototypeOr(Prototype(), Root.DefaultPrototype());
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}
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Identifier DynamicFunction::name() const {
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using llvm::Twine;
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if (not CustomName().empty()) {
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return CustomName();
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} else {
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auto AutomaticName = (Twine("dynamic_function_") + OriginalName()).str();
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return Identifier::fromString(AutomaticName);
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}
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}
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const model::TypePath &
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DynamicFunction::prototype(const model::Binary &Root) const {
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return prototypeOr(Prototype(), Root.DefaultPrototype());
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}
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bool Relocation::verify() const {
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return verify(false);
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}
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bool Relocation::verify(bool Assert) const {
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VerifyHelper VH(Assert);
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return verify(VH);
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}
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bool Relocation::verify(VerifyHelper &VH) const {
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if (Type() == model::RelocationType::Invalid)
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return VH.fail("Invalid relocation", *this);
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return true;
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}
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bool Section::verify() const {
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return verify(false);
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}
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bool Section::verify(bool Assert) const {
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VerifyHelper VH(Assert);
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return verify(VH);
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}
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bool Section::verify(VerifyHelper &VH) const {
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auto EndAddress = StartAddress() + Size();
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if (not EndAddress.isValid())
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return VH.fail("Computing the end address leads to overflow");
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return true;
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}
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Identifier Segment::name() const {
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using llvm::Twine;
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if (not CustomName().empty()) {
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return CustomName();
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} else {
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auto AutomaticName = (Twine("segment_") + StartAddress().toString() + "_"
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+ Twine(VirtualSize()))
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.str();
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return Identifier::fromString(AutomaticName);
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}
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}
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void Segment::dump() const {
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serialize(dbg, *this);
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}
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bool Segment::verify() const {
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return verify(false);
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}
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bool Segment::verify(bool Assert) const {
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VerifyHelper VH(Assert);
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return verify(VH);
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}
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bool Segment::verify(VerifyHelper &VH) const {
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using OverflowSafeInt = OverflowSafeInt<uint64_t>;
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if (FileSize() > VirtualSize())
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return VH.fail("FileSize cannot be larger than VirtualSize", *this);
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auto EndOffset = OverflowSafeInt(StartOffset()) + FileSize();
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if (not EndOffset)
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return VH.fail("Computing the segment end offset leads to overflow", *this);
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auto EndAddress = StartAddress() + VirtualSize();
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if (not EndAddress.isValid())
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return VH.fail("Computing the end address leads to overflow", *this);
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for (const model::Section &Section : Sections()) {
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if (not Section.verify(VH))
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return VH.fail("Invalid section", Section);
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if (not contains(Section.StartAddress())
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or (VirtualSize() > 0 and not contains(Section.endAddress() - 1))) {
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return VH.fail("The segment contains a section out of its boundaries",
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Section);
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}
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if (Section.ContainsCode() and not IsExecutable()) {
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return VH.fail("A Section is marked as containing code but the "
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"containing segment is not executable",
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*this);
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}
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}
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for (const model::Relocation &Relocation : Relocations()) {
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if (not Relocation.verify(VH))
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return VH.fail("Invalid relocation", Relocation);
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}
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return true;
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}
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void Function::dump() const {
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serialize(dbg, *this);
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}
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void Function::dumpTypeGraph(const char *Path) const {
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std::error_code EC;
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llvm::raw_fd_ostream Out(Path, EC);
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if (EC)
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revng_abort(EC.message().c_str());
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TypeSystemPrinter TSPrinter(Out);
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TSPrinter.print(*this);
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}
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bool Function::verify() const {
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return verify(false);
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}
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bool Function::verify(bool Assert) const {
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VerifyHelper VH(Assert);
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return verify(VH);
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}
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bool Function::verify(VerifyHelper &VH) const {
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if (Prototype().isValid()) {
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// The function has a prototype
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if (not Prototype().get()->verify(VH))
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return VH.fail("Function prototype does not verify", *this);
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const model::Type *FunctionType = Prototype().get();
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if (not(isa<RawFunctionType>(FunctionType)
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or isa<CABIFunctionType>(FunctionType))) {
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return VH.fail("Function prototype is not a RawFunctionType or "
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"CABIFunctionType",
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*this);
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}
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}
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for (auto &CallSitePrototype : CallSitePrototypes())
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if (not CallSitePrototype.verify(VH))
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return VH.fail();
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return true;
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}
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void DynamicFunction::dump() const {
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serialize(dbg, *this);
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}
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bool DynamicFunction::verify() const {
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return verify(false);
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}
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bool DynamicFunction::verify(bool Assert) const {
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VerifyHelper VH(Assert);
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return verify(VH);
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}
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bool DynamicFunction::verify(VerifyHelper &VH) const {
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// Ensure we have a name
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if (OriginalName().size() == 0)
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return VH.fail("Dynamic functions must have a OriginalName", *this);
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// Prototype is valid
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if (Prototype().isValid()) {
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if (not Prototype().get()->verify(VH))
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return VH.fail();
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const model::Type *FunctionType = Prototype().get();
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if (not(isa<RawFunctionType>(FunctionType)
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or isa<CABIFunctionType>(FunctionType))) {
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return VH.fail("The prototype is neither a RawFunctionType nor a "
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"CABIFunctionType",
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*this);
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}
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}
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for (auto &Attribute : Attributes()) {
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if (Attribute == model::FunctionAttribute::Inline) {
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return VH.fail("Dynamic function cannot have Inline attribute", *this);
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}
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}
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return true;
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}
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void CallSitePrototype::dump() const {
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serialize(dbg, *this);
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}
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bool CallSitePrototype::verify() const {
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return verify(false);
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}
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bool CallSitePrototype::verify(bool Assert) const {
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VerifyHelper VH(Assert);
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return verify(VH);
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}
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bool CallSitePrototype::verify(VerifyHelper &VH) const {
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// Prototype is present
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if (not Prototype().isValid())
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return VH.fail("Invalid prototype", *this);
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// Prototype is valid
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if (not Prototype().get()->verify(VH))
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return VH.fail();
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return true;
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}
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namespace RelocationType {
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Values fromELFRelocation(model::Architecture::Values Architecture,
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unsigned char ELFRelocation) {
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using namespace llvm::ELF;
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switch (Architecture) {
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case model::Architecture::x86:
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switch (ELFRelocation) {
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case R_386_RELATIVE:
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case R_386_32:
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return AddAbsoluteAddress32;
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case R_386_JUMP_SLOT:
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case R_386_GLOB_DAT:
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return WriteAbsoluteAddress32;
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case R_386_COPY:
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// TODO: use
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default:
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return Invalid;
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}
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case model::Architecture::x86_64:
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switch (ELFRelocation) {
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case R_X86_64_RELATIVE:
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return AddAbsoluteAddress64;
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case R_X86_64_JUMP_SLOT:
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case R_X86_64_GLOB_DAT:
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case R_X86_64_64:
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return WriteAbsoluteAddress64;
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case R_X86_64_32:
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return WriteAbsoluteAddress32;
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case R_X86_64_COPY:
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// TODO: use
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default:
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return Invalid;
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}
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case model::Architecture::arm:
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switch (ELFRelocation) {
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case R_ARM_RELATIVE:
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return AddAbsoluteAddress32;
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case R_ARM_JUMP_SLOT:
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case R_ARM_GLOB_DAT:
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return WriteAbsoluteAddress32;
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case R_ARM_COPY:
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// TODO: use
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default:
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return Invalid;
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}
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case model::Architecture::aarch64:
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return Invalid;
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case model::Architecture::mips:
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case model::Architecture::mipsel:
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switch (ELFRelocation) {
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case R_MIPS_IMPLICIT_RELATIVE:
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return AddAbsoluteAddress32;
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case R_MIPS_JUMP_SLOT:
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case R_MIPS_GLOB_DAT:
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return WriteAbsoluteAddress32;
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case R_MIPS_COPY:
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// TODO: use
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default:
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return Invalid;
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}
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case model::Architecture::systemz:
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switch (ELFRelocation) {
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case R_390_GLOB_DAT:
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return WriteAbsoluteAddress64;
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case R_390_COPY:
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// TODO: use
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default:
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return Invalid;
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}
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default:
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revng_abort();
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}
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}
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bool isELFRelocationBaseRelative(model::Architecture::Values Architecture,
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unsigned char ELFRelocation) {
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using namespace llvm::ELF;
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switch (Architecture) {
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case model::Architecture::x86:
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switch (ELFRelocation) {
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case R_386_RELATIVE:
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return true;
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case R_386_32:
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case R_386_JUMP_SLOT:
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case R_386_GLOB_DAT:
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return false;
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case R_386_COPY:
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// TODO: use
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default:
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return Invalid;
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}
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case model::Architecture::x86_64:
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switch (ELFRelocation) {
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case R_X86_64_RELATIVE:
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return true;
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case R_X86_64_JUMP_SLOT:
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case R_X86_64_GLOB_DAT:
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case R_X86_64_64:
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case R_X86_64_32:
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return false;
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case R_X86_64_COPY:
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// TODO: use
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default:
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return Invalid;
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}
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case model::Architecture::arm:
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switch (ELFRelocation) {
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case R_ARM_RELATIVE:
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return true;
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case R_ARM_JUMP_SLOT:
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case R_ARM_GLOB_DAT:
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return false;
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case R_ARM_COPY:
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// TODO: use
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default:
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return Invalid;
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}
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case model::Architecture::aarch64:
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return Invalid;
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case model::Architecture::mips:
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case model::Architecture::mipsel:
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switch (ELFRelocation) {
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case R_MIPS_IMPLICIT_RELATIVE:
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return true;
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case R_MIPS_JUMP_SLOT:
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case R_MIPS_GLOB_DAT:
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return false;
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case R_MIPS_COPY:
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// TODO: use
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default:
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return Invalid;
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}
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case model::Architecture::systemz:
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switch (ELFRelocation) {
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|
case R_390_GLOB_DAT:
|
|
return false;
|
|
|
|
case R_390_COPY:
|
|
// TODO: use
|
|
default:
|
|
return Invalid;
|
|
}
|
|
|
|
default:
|
|
revng_abort();
|
|
}
|
|
}
|
|
|
|
Values formCOFFRelocation(model::Architecture::Values Architecture) {
|
|
switch (Architecture) {
|
|
case model::Architecture::x86:
|
|
case model::Architecture::arm:
|
|
case model::Architecture::mips:
|
|
case model::Architecture::mipsel:
|
|
return WriteAbsoluteAddress32;
|
|
|
|
case model::Architecture::x86_64:
|
|
case model::Architecture::aarch64:
|
|
case model::Architecture::systemz:
|
|
return WriteAbsoluteAddress64;
|
|
default:
|
|
revng_abort();
|
|
}
|
|
}
|
|
|
|
} // namespace RelocationType
|
|
|
|
} // namespace model
|