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revng-revng/lib/Yield/Assembly/DisassemblyHelper.cpp
Alessandro Di Federico 5820908675 Remove and ban \file
2025-12-16 17:41:55 +01:00

225 lines
8.5 KiB
C++

//
// This file is distributed under the MIT License. See LICENSE.md for details.
//
#include "revng/EarlyFunctionAnalysis/CFGHelpers.h"
#include "revng/EarlyFunctionAnalysis/ControlFlowGraph.h"
#include "revng/Model/Binary.h"
#include "revng/Model/Function.h"
#include "revng/Model/RawBinaryView.h"
#include "revng/Support/Debug.h"
#include "revng/Yield/Assembly/DisassemblyHelper.h"
#include "revng/Yield/Assembly/LLVMDisassemblerInterface.h"
static Logger Log("disassemble");
namespace detail {
class DissassemblyHelperImpl
: public std::map<MetaAddressType::Values, LLVMDisassemblerInterface> {};
} // namespace detail
using DH = DissassemblyHelper;
DH::DissassemblyHelper() :
Internal{ std::make_unique<detail::DissassemblyHelperImpl>() } {
}
DH::~DissassemblyHelper() {
}
static UpcastablePointer<yield::FunctionEdgeBase>
convert(const UpcastablePointer<efa::FunctionEdgeBase> &Source) {
auto Converter =
[](auto &Upcasted) -> UpcastablePointer<yield::FunctionEdgeBase> {
using Result = UpcastablePointer<yield::FunctionEdgeBase>;
if constexpr (std::is_same_v<std::decay_t<decltype(Upcasted)>,
efa::CallEdge>) {
return Result::make<yield::CallEdge>(yield::CallEdge(Upcasted));
} else {
return Result::make<yield::FunctionEdge>(yield::FunctionEdge(Upcasted));
}
};
return upcast(Source,
Converter,
UpcastablePointer<yield::FunctionEdgeBase>(nullptr));
}
static void analyzeBasicBlocks(yield::Function &Function,
const efa::ControlFlowGraph &Metadata,
const model::Binary &Binary) {
if (Metadata.Blocks().empty())
return;
// Gather all the basic blocks that only have a single predecessor.
std::map<BasicBlockID, std::optional<BasicBlockID>> Predecessors;
for (const efa::BasicBlock &BasicBlock : Metadata.Blocks()) {
auto &&[It, Success] = Predecessors.try_emplace(BasicBlock.ID());
revng_assert(Success,
"Duplicate basic blocks in a `SortedVector`? "
"Something is clearly very wrong.");
}
// Remove the entry block from the analysis - its label is always required.
size_t RemovedCount = Predecessors.erase(BasicBlockID(Function.Entry()));
revng_assert(RemovedCount == 1,
"No basic block at the function entry address!");
for (const efa::BasicBlock &BasicBlock : Metadata.Blocks()) {
for (const auto &Edge : BasicBlock.Successors()) {
auto &&[NextBlock, _] = efa::parseSuccessor(*convert(Edge).get(),
BasicBlock.nextBlock(),
Binary);
if (not NextBlock.isValid()) {
// Ignore edges with unknown destinations (like indirect jumps).
continue;
}
auto Iterator = Predecessors.find(NextBlock);
if (Iterator != Predecessors.end()) {
if (Iterator->second.has_value()) {
// This basic block already has a predecessor, remove it.
Predecessors.erase(Iterator);
} else {
// First predecessor found - save it.
Iterator->second = BasicBlock.ID();
}
}
}
}
// Save the results of the analysis
for (auto &&[CurrentAddress, PredecessorAddress] : Predecessors) {
if (PredecessorAddress.has_value()) {
auto Current = Metadata.Blocks().find(CurrentAddress);
revng_assert(Current != Metadata.Blocks().end());
auto Predecessor = Metadata.Blocks().find(*PredecessorAddress);
revng_assert(Predecessor != Metadata.Blocks().end());
auto CurrentBlock = Function.Blocks().find(CurrentAddress);
revng_assert(CurrentBlock != Function.Blocks().end());
if (Predecessor->nextBlock() == Current->ID())
CurrentBlock->IsLabelAlwaysRequired() = false;
}
}
}
void DH::disassemble(const model::Function &Function,
const efa::ControlFlowGraph &Metadata,
const RawBinaryView &BinaryView,
const model::Binary &Binary,
const model::AssemblyNameBuilder &NameBuilder,
yield::Function &ResultFunction) {
revng_log(Log, "Disassembling function at " << Function.Entry().toString());
LoggerIndent Indent(Log);
ResultFunction.Entry() = Function.Entry();
for (auto BasicBlockInserter = ResultFunction.Blocks().batch_insert();
const efa::BasicBlock &BasicBlock : Metadata.Blocks()) {
revng_log(Log,
"Disassembling block " << BasicBlock.ID().toString() << "-"
<< BasicBlock.End().toString());
LoggerIndent Indent2(Log);
auto &Helper = getDisassemblerFor(BasicBlock.ID().start().type(),
Binary.Configuration().Disassembly());
yield::BasicBlock ResultBasicBlock;
ResultBasicBlock.ID() = BasicBlock.ID();
ResultBasicBlock.End() = BasicBlock.End();
for (const auto &Successor : BasicBlock.Successors())
ResultBasicBlock.Successors().insert(convert(Successor));
ResultBasicBlock.IsLabelAlwaysRequired() = true;
namespace Arch = model::Architecture;
auto Comment = Arch::getAssemblyCommentIndicator(Binary.Architecture());
revng_assert(Helper.getCommentString() == llvm::StringRef{ Comment });
auto Label = Arch::getAssemblyLabelIndicator(Binary.Architecture());
revng_assert(Helper.getLabelSuffix() == llvm::StringRef{ Label });
auto MaybeBBSize = BasicBlock.End() - BasicBlock.ID().start();
revng_assert(MaybeBBSize.has_value());
auto RawBytes = BinaryView.getByAddress(BasicBlock.ID().start(),
*MaybeBBSize);
revng_assert(RawBytes.has_value());
const MetaAddress StartAddress = BasicBlock.ID().start();
MetaAddress CurrentAddress = StartAddress;
MetaAddress InstructionWithTheDelaySlot = MetaAddress::invalid();
for (auto InstrInserter = ResultBasicBlock.Instructions().batch_insert();
CurrentAddress < BasicBlock.End();) {
revng_log(Log,
"Disassembling instruction at " << CurrentAddress.toString());
auto MaybeInstructionOffset = CurrentAddress - StartAddress;
revng_assert(MaybeInstructionOffset.has_value());
auto InstructionBytes = RawBytes->drop_front(*MaybeInstructionOffset);
auto Disassembled = Helper.instruction(CurrentAddress, InstructionBytes);
revng_assert(Disassembled.Address.isValid());
yield::Instruction Result;
Result.Address() = std::move(Disassembled.Address);
Result.OpcodeIdentifier() = std::move(Disassembled.OpcodeIdentifier);
Result.Comment() = std::move(Disassembled.Comment);
Result.Error() = std::move(Disassembled.Error);
if (Disassembled.HasDelaySlot)
InstructionWithTheDelaySlot = Disassembled.Address;
auto Bytes = BinaryView.getByAddress(CurrentAddress, Disassembled.Size);
revng_assert(Bytes.has_value());
Result.RawBytes() = yield::ByteContainer(Bytes->begin(), Bytes->end());
CurrentAddress += Disassembled.Size;
revng_assert(CurrentAddress.isValid());
revng_assert(CurrentAddress <= BasicBlock.End());
Result.importTags(std::move(Disassembled.Tags),
std::move(Disassembled.Text));
Result.verify(true);
InstrInserter.insert(std::move(Result));
}
if (InstructionWithTheDelaySlot.isValid()) {
revng_assert(ResultBasicBlock.Instructions().size() > 1);
auto Last = std::prev(ResultBasicBlock.Instructions().end());
ResultBasicBlock.HasDelaySlot() = true;
}
BasicBlockInserter.insert(std::move(ResultBasicBlock));
}
analyzeBasicBlocks(ResultFunction, Metadata, Binary);
for (yield::BasicBlock &BasicBlock : ResultFunction.Blocks()) {
BasicBlock.setLabel(ResultFunction, Binary, NameBuilder);
for (yield::Instruction &Instruction : BasicBlock.Instructions())
Instruction.handleSpecialTags(BasicBlock,
ResultFunction,
Binary,
NameBuilder);
}
ResultFunction.verify(true);
}
LLVMDisassemblerInterface &
DH::getDisassemblerFor(MetaAddressType::Values AddressType,
const model::DisassemblyConfiguration &Configuration) {
revng_assert(Internal != nullptr);
if (auto It = Internal->find(AddressType); It != Internal->end())
return It->second;
using DI = LLVMDisassemblerInterface;
auto &&[R, Success] = Internal->try_emplace(AddressType,
DI(AddressType, Configuration));
revng_assert(Success);
return R->second;
}