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revng-revng/lib/Support/IRHelpers.cpp
2024-06-20 10:24:50 +02:00

530 lines
16 KiB
C++

/// \file IRHelpers.cpp
/// Implementation of IR helper functions.
//
// This file is distributed under the MIT License. See LICENSE.md for details.
//
#include <fstream>
#include "llvm/ADT/SmallSet.h"
#include "llvm/IR/DebugInfo.h"
#include "llvm/IR/DebugInfoMetadata.h"
#include "llvm/IR/TypedPointerType.h"
#include "llvm/IR/Verifier.h"
#include "llvm/Support/FileSystem.h"
#include "llvm/Support/SHA1.h"
#include "llvm/Support/raw_os_ostream.h"
#include "revng/ADT/Queue.h"
#include "revng/ADT/RecursiveCoroutine.h"
#include "revng/Support/BlockType.h"
#include "revng/Support/IRHelpers.h"
#include "revng/Support/ProgramCounterHandler.h"
// TODO: including GeneratedCodeBasicInfo.h is not very nice
using namespace llvm;
void dumpModule(const Module *M, const char *Path) {
std::ofstream FileStream(Path);
raw_os_ostream Stream(FileStream);
M->print(Stream, nullptr, false);
}
PointerType *getStringPtrType(LLVMContext &C) {
return Type::getInt8Ty(C)->getPointerTo();
}
GlobalVariable *buildString(Module *M, StringRef String, const Twine &Name) {
LLVMContext &C = M->getContext();
auto *Initializer = ConstantDataArray::getString(C, String, true);
return new GlobalVariable(*M,
Initializer->getType(),
true,
GlobalVariable::InternalLinkage,
Initializer,
Name);
}
StringRef extractFromConstantStringPtr(Value *V) {
revng_assert(V->getType()->isPointerTy());
auto *GV = dyn_cast_or_null<GlobalVariable>(V);
if (GV == nullptr)
return {};
auto *Initializer = dyn_cast_or_null<ConstantDataArray>(GV->getInitializer());
if (Initializer == nullptr or not Initializer->isCString())
return {};
return Initializer->getAsCString();
}
static std::string mangleName(StringRef String) {
auto IsPrintable = [](StringRef String) { return all_of(String, isPrint); };
auto ContainsSpaces = [](StringRef String) {
return any_of(String, isSpace);
};
constexpr auto SHA1HexLength = 40;
if (String.size() > SHA1HexLength or not IsPrintable(String)
or ContainsSpaces(String)) {
ArrayRef Data(reinterpret_cast<const uint8_t *>(String.data()),
String.size());
return llvm::toHex(SHA1::hash(Data), true);
} else {
return String.str();
}
}
Constant *getUniqueString(Module *M, StringRef String, StringRef Namespace) {
revng_assert(not Namespace.empty());
LLVMContext &Context = M->getContext();
std::string GlobalName = (Twine(Namespace) + mangleName(String)).str();
auto *Global = M->getGlobalVariable(GlobalName);
if (Global != nullptr) {
revng_assert(Global->hasInitializer());
if (not String.empty()) {
auto Initializer = cast<ConstantDataSequential>(Global->getInitializer());
revng_assert(Initializer->isCString());
revng_assert(Initializer->getAsCString() == String);
} else {
revng_assert(isa<ConstantAggregateZero>(Global->getInitializer()));
}
} else {
// This may return a ConstantAggregateZero in case of empty String.
Constant *Initializer = ConstantDataArray::getString(Context,
String,
/* AddNull */ true);
revng_assert(isa<ConstantDataArray>(Initializer)
or isa<ConstantAggregateZero>(Initializer));
if (String.empty()) {
revng_assert(isa<ConstantAggregateZero>(Initializer));
} else {
auto CDAInitializer = cast<ConstantDataArray>(Initializer);
revng_assert(CDAInitializer->isCString());
revng_assert(CDAInitializer->getAsCString() == String);
}
Global = new GlobalVariable(*M,
Initializer->getType(),
/* isConstant */ true,
GlobalValue::LinkOnceODRLinkage,
Initializer,
GlobalName);
}
auto *Int8PtrTy = getStringPtrType(Context);
return ConstantExpr::getBitCast(Global, Int8PtrTy);
}
CallInst *getLastNewPC(Instruction *TheInstruction) {
CallInst *Result = nullptr;
std::set<BasicBlock *> Visited;
std::queue<BasicBlock::reverse_iterator> WorkList;
// Initialize WorkList with an iterator pointing at the given instruction
if (TheInstruction->getIterator() == TheInstruction->getParent()->begin())
WorkList.push(--TheInstruction->getParent()->rend());
else
WorkList.push(++TheInstruction->getReverseIterator());
// Process the worklist
while (not WorkList.empty()) {
auto I = WorkList.front();
WorkList.pop();
auto *BB = I->getParent();
auto End = BB->rend();
// Go through the instructions looking for calls to newpc
bool Stop = false;
for (; not Stop and I != End; I++) {
if (CallInst *Marker = getCallTo(&*I, "newpc")) {
if (Result != nullptr)
return nullptr;
Result = Marker;
Stop = true;
}
}
if (Stop)
continue;
// If we didn't find a newpc call yet, continue exploration backward
// If one of the predecessors is the dispatcher, don't explore any further
for (BasicBlock *Predecessor : predecessors(BB)) {
// Assert we didn't reach the almighty dispatcher
revng_assert(isPartOfRootDispatcher(Predecessor) == false);
// Ignore already visited or empty BBs
if (!Predecessor->empty() && !Visited.contains(Predecessor)) {
WorkList.push(Predecessor->rbegin());
Visited.insert(Predecessor);
}
}
}
return Result;
}
std::pair<MetaAddress, uint64_t> getPC(Instruction *TheInstruction) {
CallInst *NewPCCall = getLastNewPC(TheInstruction);
// Couldn't find the current PC
if (NewPCCall == nullptr)
return { MetaAddress::invalid(), 0 };
MetaAddress PC = blockIDFromNewPC(NewPCCall).start();
using namespace NewPCArguments;
uint64_t Size = getLimitedValue(NewPCCall->getArgOperand(InstructionSize));
revng_assert(Size != 0);
return { PC, Size };
}
/// Boring code to get the text of the metadata with the specified kind
/// associated to the given instruction
StringRef getText(const Instruction *I, unsigned Kind) {
revng_assert(I != nullptr);
Metadata *MD = I->getMetadata(Kind);
if (MD == nullptr)
return StringRef();
auto Node = dyn_cast<MDNode>(MD);
revng_assert(Node != nullptr);
const MDOperand &Operand = Node->getOperand(0);
Metadata *MDOperand = Operand.get();
if (MDOperand == nullptr)
return StringRef();
if (auto *String = dyn_cast<MDString>(MDOperand)) {
return String->getString();
} else if (auto *CAM = dyn_cast<ConstantAsMetadata>(MDOperand)) {
auto *Cast = cast<ConstantExpr>(CAM->getValue());
auto *GV = cast<GlobalVariable>(Cast->getOperand(0));
auto *Initializer = GV->getInitializer();
return cast<ConstantDataArray>(Initializer)->getAsString().drop_back();
} else {
revng_abort();
}
}
void moveBlocksInto(Function &OldFunction, Function &NewFunction) {
// Steal body
std::vector<BasicBlock *> Body;
for (BasicBlock &BB : OldFunction)
Body.push_back(&BB);
for (BasicBlock *BB : Body) {
BB->removeFromParent();
revng_assert(BB->getParent() == nullptr);
NewFunction.insert(NewFunction.end(), BB);
revng_assert(BB->getParent() == &NewFunction);
}
}
Function &moveToNewFunctionType(Function &OldFunction, FunctionType &NewType) {
//
// Recreate the function as similar as possible
//
auto *NewFunction = Function::Create(&NewType,
GlobalValue::ExternalLinkage,
"",
OldFunction.getParent());
NewFunction->takeName(&OldFunction);
NewFunction->copyAttributesFrom(&OldFunction);
NewFunction->copyMetadata(&OldFunction, 0);
// Steal body
if (not OldFunction.isDeclaration())
moveBlocksInto(OldFunction, *NewFunction);
return *NewFunction;
}
Function *changeFunctionType(Function &OldFunction,
Type *NewReturnType,
ArrayRef<Type *> NewArguments) {
//
// Validation
//
FunctionType &OldFunctionType = *OldFunction.getFunctionType();
// Either the old type was returning void or the return type has to be same
auto OldReturnType = OldFunctionType.getReturnType();
if (NewReturnType != nullptr) {
if (not OldReturnType->isVoidTy())
revng_assert(OldReturnType == NewReturnType);
} else {
NewReturnType = OldReturnType;
}
// New arguments
SmallVector<Type *> NewFunctionArguments;
llvm::copy(OldFunctionType.params(),
std::back_inserter(NewFunctionArguments));
llvm::copy(NewArguments, std::back_inserter(NewFunctionArguments));
auto &NewFunctionType = *FunctionType::get(NewReturnType,
NewFunctionArguments,
OldFunctionType.isVarArg());
Function &NewFunction = moveToNewFunctionType(OldFunction, NewFunctionType);
// Replace arguments and copy their names
unsigned I = 0;
for (Argument &OldArgument : OldFunction.args()) {
Argument &NewArgument = *NewFunction.getArg(I);
NewArgument.setName(OldArgument.getName());
OldArgument.replaceAllUsesWith(&NewArgument);
++I;
}
// We do not delete OldFunction in order not to break call sites
return &NewFunction;
}
void dumpUsers(llvm::Value *V) {
using namespace llvm;
struct InstructionUser {
Function *F;
BasicBlock *BB;
Instruction *I;
bool operator<(const InstructionUser &Other) const {
return std::tie(F, BB, I) < std::tie(Other.F, Other.BB, Other.I);
}
};
SmallVector<InstructionUser> InstructionUsers;
for (User *U : V->users()) {
if (auto *I = dyn_cast<Instruction>(U)) {
BasicBlock *BB = I->getParent();
Function *F = BB->getParent();
InstructionUsers.push_back({ F, BB, I });
} else {
dbg << " ";
U->dump();
}
}
llvm::sort(InstructionUsers);
Function *LastF = nullptr;
BasicBlock *LastBB = nullptr;
for (InstructionUser &IU : InstructionUsers) {
if (IU.F != LastF) {
LastF = IU.F;
dbg << " Function " << getName(LastF) << "\n";
}
if (IU.BB != LastBB) {
LastBB = IU.BB;
dbg << " Block " << getName(LastBB) << "\n";
}
dbg << " ";
IU.I->dump();
}
}
static RecursiveCoroutine<void>
findJumpTarget(const llvm::BasicBlock *&Result,
const llvm::BasicBlock *BB,
std::set<const BasicBlock *> &Visited) {
Visited.insert(BB);
if (isJumpTarget(BB)) {
revng_assert(Result == nullptr,
"This block leads to multiple jump targets");
Result = BB;
} else {
for (const BasicBlock *Predecessor : predecessors(BB)) {
if (!Visited.contains(Predecessor))
rc_recur findJumpTarget(Result, Predecessor, Visited);
}
}
rc_return;
}
const llvm::BasicBlock *getJumpTargetBlock(const llvm::BasicBlock *BB) {
const llvm::BasicBlock *Result = nullptr;
std::set<const BasicBlock *> Visited;
findJumpTarget(Result, BB, Visited);
return Result;
}
void pruneDICompileUnits(Module &M) {
auto *CUs = M.getNamedMetadata("llvm.dbg.cu");
if (CUs == nullptr)
return;
// Purge CUs list
CUs->clearOperands();
std::set<DICompileUnit *> Reachable;
DebugInfoFinder DIFinder;
DIFinder.processModule(M);
for (DICompileUnit *CU : DIFinder.compile_units())
Reachable.insert(CU);
if (Reachable.size() == 0) {
CUs->eraseFromParent();
} else {
// Recreate CUs list
for (DICompileUnit *CU : Reachable)
CUs->addOperand(CU);
}
}
using ValueSet = SmallSet<Value *, 2>;
static RecursiveCoroutine<void>
findPhiTreeLeavesImpl(ValueSet &Leaves, ValueSet &Visited, llvm::Value *V) {
if (auto *Phi = dyn_cast<PHINode>(V)) {
revng_assert(!Visited.contains(V));
Visited.insert(V);
for (Value *Operand : Phi->operands())
rc_recur findPhiTreeLeavesImpl(Leaves, Visited, Operand);
} else {
Leaves.insert(V);
}
rc_return;
}
ValueSet findPhiTreeLeaves(Value *Root) {
ValueSet Result;
ValueSet Visited;
findPhiTreeLeavesImpl(Result, Visited, Root);
return Result;
}
void revng::verify(const llvm::Module *M) {
if (VerifyLog.isEnabled())
forceVerify(M);
}
void revng::verify(const llvm::Function *F) {
if (VerifyLog.isEnabled())
forceVerify(F);
}
void revng::forceVerify(const llvm::Module *M) {
// NOLINTNEXTLINE
if (llvm::verifyModule(*M, &llvm::dbgs()) != 0) {
int FD = 0;
SmallString<128> Path;
auto EC = llvm::sys::fs::createTemporaryFile("revng-failed-verify",
"ll",
FD,
Path);
revng_assert(!EC and FD != 0);
llvm::raw_fd_ostream Stream(FD, true);
M->print(Stream, nullptr);
dbg << "Module printed to " << Path.str().str() << "\n";
revng_abort();
}
}
void revng::forceVerify(const llvm::Function *F) {
// NOLINTNEXTLINE
if (llvm::verifyFunction(*F, &llvm::dbgs()) != 0) {
int FD = 0;
SmallString<128> Path;
auto EC = llvm::sys::fs::createTemporaryFile("revng-failed-verify",
"ll",
FD,
Path);
revng_assert(!EC and FD != 0);
llvm::raw_fd_ostream Stream(FD, true);
F->print(Stream, nullptr);
dbg << "Function printed to " << Path.str().str() << "\n";
revng_abort();
}
}
void collectTypes(Type *Root, std::set<Type *> &Set) {
std::queue<Type *> ToVisit;
ToVisit.push(Root);
while (not ToVisit.empty()) {
Type *T = ToVisit.front();
ToVisit.pop();
auto [_, IsNew] = Set.insert(T);
if (not IsNew)
continue;
if (auto *Array = dyn_cast<ArrayType>(T)) {
ToVisit.push(Array->getElementType());
} else if (auto *FT = dyn_cast<FunctionType>(T)) {
ToVisit.push(FT->getReturnType());
for (Type *ParameterType : FT->params())
ToVisit.push(ParameterType);
} else if (isa<IntegerType>(T)) {
// Nothing to do
} else if (isa<PointerType>(T)) {
// Nothing to do
} else if (auto *Struct = dyn_cast<StructType>(T)) {
for (Type *ElementType : Struct->elements())
ToVisit.push(ElementType);
} else if (auto *TET = dyn_cast<TargetExtType>(T)) {
for (Type *TypeParam : TET->type_params())
ToVisit.push(TypeParam);
} else if (auto *TPT = dyn_cast<TypedPointerType>(T)) {
ToVisit.push(TPT->getElementType());
} else if (auto *Vector = dyn_cast<VectorType>(T)) {
ToVisit.push(Vector->getElementType());
} else {
revng_abort();
}
}
}
void emitCall(llvm::IRBuilderBase &Builder,
Function *Callee,
const Twine &Reason,
const DebugLoc &DbgLocation,
const ProgramCounterHandler *PCH) {
revng_assert(Callee != nullptr);
llvm::Module *M = Callee->getParent();
SmallVector<llvm::Value *, 4> Arguments;
// Create the message string
Arguments.push_back(getUniqueString(M, Reason.str()));
// Populate the source PC
MetaAddress SourcePC = MetaAddress::invalid();
if (Instruction *T = Builder.GetInsertBlock()->getTerminator())
SourcePC = getPC(T).first;
if (PCH != nullptr) {
PCH->setLastPCPlainMetaAddress(Builder, SourcePC);
PCH->setCurrentPCPlainMetaAddress(Builder);
}
auto *NewCall = Builder.CreateCall(Callee, Arguments);
NewCall->setDebugLoc(DbgLocation);
Builder.CreateUnreachable();
// Assert there's one and only one terminator
auto *BB = Builder.GetInsertBlock();
unsigned Terminators = 0;
for (Instruction &I : *BB)
if (I.isTerminator())
++Terminators;
revng_assert(Terminators == 1);
}