mirror of
https://github.com/revng/revng
synced 2026-06-21 14:07:57 +00:00
486 lines
18 KiB
C++
486 lines
18 KiB
C++
//
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// Copyright rev.ng Labs Srl. See LICENSE.md for details.
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//
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#include "llvm/ADT/Optional.h"
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#include "llvm/ADT/PostOrderIterator.h"
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#include "llvm/ADT/STLExtras.h"
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#include "llvm/IR/BasicBlock.h"
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#include "llvm/IR/Constants.h"
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#include "llvm/IR/DerivedTypes.h"
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#include "llvm/IR/Type.h"
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#include "llvm/IR/Value.h"
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#include "llvm/Support/Casting.h"
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#include "revng/ABI/FunctionType.h"
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#include "revng/EarlyFunctionAnalysis/FunctionMetadataCache.h"
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#include "revng/Model/Architecture.h"
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#include "revng/Model/Binary.h"
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#include "revng/Model/CABIFunctionType.h"
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#include "revng/Model/IRHelpers.h"
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#include "revng/Model/QualifiedType.h"
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#include "revng/Model/Qualifier.h"
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#include "revng/Model/RawFunctionType.h"
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#include "revng/Model/TypedefType.h"
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#include "revng/Support/Assert.h"
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#include "revng/Support/FunctionTags.h"
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#include "revng/Support/YAMLTraits.h"
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#include "revng-c/InitModelTypes/InitModelTypes.h"
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#include "revng-c/Support/DecompilationHelpers.h"
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#include "revng-c/Support/FunctionTags.h"
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#include "revng-c/Support/IRHelpers.h"
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#include "revng-c/Support/ModelHelpers.h"
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#include "revng-c/ValueManipulationAnalysis/VMAPipeline.h"
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using llvm::BasicBlock;
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using llvm::Function;
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using llvm::Instruction;
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using llvm::StringRef;
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using llvm::cast;
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using llvm::dyn_cast;
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using llvm::isa;
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using model::Binary;
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using model::CABIFunctionType;
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using model::QualifiedType;
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using model::RawFunctionType;
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template<typename T>
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using RPOT = llvm::ReversePostOrderTraversal<T>;
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using TypeVector = llvm::SmallVector<QualifiedType, 8>;
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using ModelTypesMap = std::map<const llvm::Value *, const model::QualifiedType>;
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/// Map each llvm::Argument of the given llvm::Function to its
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/// QualifiedType in the model.
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static void addArgumentsTypes(const llvm::Function &LLVMFunc,
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const model::Type *Prototype,
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const Binary &Model,
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ModelTypesMap &TypeMap,
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bool PointersOnly) {
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const auto Layout = abi::FunctionType::Layout::make(*Prototype);
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const auto IsNonShadow = [](const abi::FunctionType::Layout::Argument &A) {
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using namespace abi::FunctionType::ArgumentKind;
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return A.Kind != ShadowPointerToAggregateReturnValue;
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};
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auto NumArgs = LLVMFunc.arg_size();
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size_t NumNonShadowArgs = llvm::count_if(Layout.Arguments, IsNonShadow);
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revng_assert(NumNonShadowArgs == NumArgs);
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auto NonShadowArgs = llvm::make_filter_range(Layout.Arguments, IsNonShadow);
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for (const auto &[ArgModelType, LLVMArg] :
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llvm::zip_first(NonShadowArgs, LLVMFunc.args())) {
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QualifiedType ArgQualifiedType = ArgModelType.Type;
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if (not PointersOnly or ArgQualifiedType.isPointer())
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TypeMap.insert({ &LLVMArg, std::move(ArgQualifiedType) });
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}
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}
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/// Create a QualifiedType for unvisited operands, i.e. constants,
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/// globals and constexprs.
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/// \return true if a new token has been generated for the operand
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static RecursiveCoroutine<bool> addOperandType(const llvm::Value *Operand,
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const Binary &Model,
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ModelTypesMap &TypeMap,
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bool PointersOnly) {
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// For ConstExprs, check their OpCode
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if (auto *Expr = dyn_cast<llvm::ConstantExpr>(Operand)) {
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// A constant expression might have its own uninitialized constant operands
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for (const llvm::Value *Op : Expr->operand_values())
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rc_recur addOperandType(Op, Model, TypeMap, PointersOnly);
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if (Expr->getOpcode() == Instruction::IntToPtr) {
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auto It = TypeMap.find(Expr->getOperand(0));
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if (It != TypeMap.end()) {
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const QualifiedType &OperandType = It->second;
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if (OperandType.isPointer()) {
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// If the operand has already a pointer qualified type, forward it
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TypeMap.insert({ Operand, OperandType });
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} else if (not PointersOnly) {
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// Fallback to the LLVM type
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auto ConstType = llvmIntToModelType(Operand->getType(), Model);
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TypeMap.insert({ Operand, ConstType });
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}
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rc_return true;
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}
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}
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} else if (isa<llvm::ConstantInt>(Operand)
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or isa<llvm::GlobalVariable>(Operand)) {
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// For constants and globals, fallback to the LLVM type
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revng_assert(Operand->getType()->isIntOrPtrTy());
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auto ConstType = llvmIntToModelType(Operand->getType(), Model);
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// Skip if it's not a pointer and we are only interested in pointers
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if (not PointersOnly or ConstType.isPointer()) {
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TypeMap.insert({ Operand, ConstType });
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}
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rc_return true;
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} else if (isa<llvm::PoisonValue>(Operand)
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or isa<llvm::UndefValue>(Operand)) {
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// poison and undef are always integers
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llvm::Type *OperandType = Operand->getType();
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revng_assert(OperandType->isIntOrPtrTy());
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auto *IntType = dyn_cast<llvm::IntegerType>(OperandType);
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if (not IntType) { // It's a pointer
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auto ByteSize = model::Architecture::getPointerSize(Model.Architecture);
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auto BitWidth = 8 * ByteSize;
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IntType = llvm::IntegerType::getIntNTy(Operand->getContext(), BitWidth);
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}
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auto ConstType = llvmIntToModelType(IntType, Model);
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revng_assert(not ConstType.isPointer());
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// Skip if it's not a pointer and we are only interested in pointers
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if (not PointersOnly)
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TypeMap.insert({ Operand, ConstType });
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rc_return true;
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} else if (auto *NullPtr = dyn_cast<llvm::ConstantPointerNull>(Operand)) {
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if (not PointersOnly) {
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auto PtrSize = model::Architecture::getPointerSize(Model.Architecture);
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auto NullPointerType = model::QualifiedType{
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Model.getPrimitiveType(model::PrimitiveTypeKind::Generic, PtrSize),
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/*Qualifiers*/ {}
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};
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TypeMap.insert({ Operand, NullPointerType });
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}
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rc_return true;
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}
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rc_return false;
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}
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/// Reconstruct the return type(s) of a Call instruction from its
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/// prototype, if it's an isolated function. For non-isolated functions,
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/// special rules apply to recover the returned type.
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static TypeVector getReturnTypes(FunctionMetadataCache &Cache,
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const llvm::CallInst *Call,
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const model::Function *ParentFunc,
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const Binary &Model,
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ModelTypesMap &TypeMap) {
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TypeVector ReturnTypes;
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if (Call->getType()->isVoidTy())
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return {};
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// Check if we already have strong model information for this call
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ReturnTypes = getStrongModelInfo(Cache, Call, Model);
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if (not ReturnTypes.empty())
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return ReturnTypes;
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auto *CalledFunc = Call->getCalledFunction();
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revng_assert(CalledFunc);
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if (FunctionTags::AssignmentMarker.isTagOf(CalledFunc)
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|| FunctionTags::Parentheses.isTagOf(CalledFunc)
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|| FunctionTags::Copy.isTagOf(CalledFunc)) {
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const llvm::Value *Arg = Call->getArgOperand(0);
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// Forward the type
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auto It = TypeMap.find(Arg);
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if (It != TypeMap.end())
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ReturnTypes.push_back(It->second);
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} else if (FunctionTags::QEMU.isTagOf(CalledFunc)
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or FunctionTags::Helper.isTagOf(CalledFunc)
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or CalledFunc->isIntrinsic()
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or FunctionTags::OpaqueCSVValue.isTagOf(CalledFunc)) {
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llvm::Type *ReturnedType = Call->getType();
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if (ReturnedType->isSingleValueType()) {
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ReturnTypes.push_back(llvmIntToModelType(ReturnedType, Model));
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} else if (ReturnedType->isAggregateType()) {
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// For intrinsics and helpers returning aggregate types, we simply
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// return a list of all the subtypes, after transforming each in the
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// corresponding primitive QualifiedType
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for (llvm::Type *Subtype : ReturnedType->subtypes()) {
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ReturnTypes.push_back(llvmIntToModelType(Subtype, Model));
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}
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} else {
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revng_abort("Unknown value returned by non-isolated function");
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}
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} else {
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revng_abort("Unknown non-isolated function");
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}
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return ReturnTypes;
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}
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/// Given a call instruction, to either an isolated or a non-isolated
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/// function, assign to it its return type. If the call returns more than
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/// one type, infect the uses of the returned value with those types.
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static void handleCallInstruction(FunctionMetadataCache &Cache,
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const llvm::CallInst *Call,
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const model::Function *ParentFunc,
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const Binary &Model,
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ModelTypesMap &TypeMap,
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bool PointersOnly) {
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TypeVector ReturnedQualTypes = getReturnTypes(Cache,
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Call,
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ParentFunc,
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Model,
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TypeMap);
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if (ReturnedQualTypes.size() == 0)
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return;
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llvm::Type *CallType = Call->getType();
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if (ReturnedQualTypes.size() == 1) {
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// If the function returns just one value, associate the computed
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// QualifiedType to the Call Instruction
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revng_assert(CallType->isSingleValueType());
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// Skip if it's not a pointer and we are only interested in pointers
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if (not PointersOnly or ReturnedQualTypes[0].isPointer()) {
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TypeMap.insert({ Call, ReturnedQualTypes[0] });
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}
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} else if (not CallType->isAggregateType()) {
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// If we reach this point, we have many types in ReturnedQualTypes, but the
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// Call on LLVM IR returns an integer.
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revng_assert(CallType->isIntegerTy());
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// In this case we cannot attach a rich type to the integer on LLVM IR, we
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// just have to fall back to a Generic PrimitiveType
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if (not PointersOnly) {
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const auto GenericKind = model::PrimitiveTypeKind::Generic;
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auto BitWidth = CallType->getIntegerBitWidth();
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revng_assert(BitWidth > 0 and not(BitWidth % 8));
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auto Generic = QualifiedType(Model.getPrimitiveType(GenericKind,
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BitWidth / 8),
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{});
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TypeMap.insert({ Call, std::move(Generic) });
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}
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} else {
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// If we reach this point, we have many types in ReturnedQualTypes, and
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// the Call also returns a struct on LLVM IR
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// Functions that return aggregate types have more than one return type.
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// In this case, we cannot assign all the returned types to the returned
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// llvm::Value. Hence, we collect the returned types in a vector and
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// assign them to the values extracted from the returned struct.
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const auto ExtractedValues = getExtractedValuesFromInstruction(Call);
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revng_assert(ReturnedQualTypes.size() == ExtractedValues.size());
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for (const auto &ZippedRetVals : zip(ReturnedQualTypes, ExtractedValues)) {
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const auto &[QualType, ExtractedSet] = ZippedRetVals;
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revng_assert(QualType.isScalar());
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// Each extractedSet contains the set of instructions that extract the
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// same value from the struct
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for (const llvm::ExtractValueInst *ExtractValInst : ExtractedSet)
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// Skip if it's not a pointer and we are only interested in pointers
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if (not PointersOnly or QualType.isPointer())
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TypeMap.insert({ ExtractValInst, QualType });
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}
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}
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}
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ModelTypesMap initModelTypes(FunctionMetadataCache &Cache,
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const llvm::Function &F,
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const model::Function *ModelF,
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const Binary &Model,
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bool PointersOnly) {
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ModelTypesMap TypeMap;
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const model::Type *Prototype = ModelF->Prototype.getConst();
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revng_assert(Prototype);
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addArgumentsTypes(F, Prototype, Model, TypeMap, PointersOnly);
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for (const BasicBlock *BB : RPOT<const llvm::Function *>(&F)) {
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for (const Instruction &I : *BB) {
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const auto *InstType = I.getType();
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// Visit operands, in case they are constants, globals or constexprs
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for (const llvm::Value *Op : I.operand_values()) {
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// Ignore operands of some custom opcodes
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if (isCallTo(&I, "revng_call_stack_arguments"))
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continue;
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addOperandType(Op, Model, TypeMap, PointersOnly);
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}
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// Insert void types for consistency
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if (InstType->isVoidTy()) {
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using model::PrimitiveTypeKind::Values::Void;
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QualifiedType VoidTy(Model.getPrimitiveType(Void, 0), {});
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TypeMap.insert({ &I, VoidTy });
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continue;
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}
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// Function calls in the IR might correspond to real function calls in
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// the binary or to special intrinsics used by the backend, so they need
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// to be handled separately
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if (auto *Call = dyn_cast<llvm::CallInst>(&I)) {
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handleCallInstruction(Cache,
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Call,
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ModelF,
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Model,
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TypeMap,
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PointersOnly);
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continue;
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}
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// Only Call instructions can return aggregates
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revng_assert(not InstType->isAggregateType());
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// All InsertValues and ExtractValues should have been assigned when
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// handling Call instructions that return an aggregate
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if (isa<llvm::ExtractValueInst>(&I)) {
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if (not PointersOnly)
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revng_assert(TypeMap.contains(&I));
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continue;
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}
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llvm::Optional<QualifiedType> Type;
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switch (I.getOpcode()) {
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case Instruction::Load: {
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auto *Load = dyn_cast<llvm::LoadInst>(&I);
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auto It = TypeMap.find(Load->getPointerOperand());
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if (It == TypeMap.end())
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continue;
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const auto &PtrOperandType = It->second;
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// If the pointer operand is a pointer in the model, we can exploit
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// this information to assign a model type to the loaded value. Note
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// that this makes sense only if the pointee is itself a pointer or a
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// scalar value: if we find a lod of N bits from a struct pointer, we
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// don't know if we are loading the entire struct or only some of its
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// fields.
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// TODO: inspect the model to understand if we are loading the first
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// field.
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if (PtrOperandType.isPointer()) {
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model::QualifiedType Pointee = dropPointer(PtrOperandType);
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if (areMemOpCompatible(Pointee, *Load->getType(), Model))
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Type = Pointee;
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}
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// If it's not a pointer or a scalar of the right size, just
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// fallback to the LLVM type
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} break;
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case Instruction::Alloca: {
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// TODO: eventually AllocaInst will be replaced by calls to
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// revng_local_variable with a type annotation
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llvm::PointerType *PtrType = llvm::cast<llvm::PointerType>(I.getType());
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llvm::Type *BaseType = PtrType->getElementType();
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revng_assert(BaseType->isSingleValueType());
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const model::Architecture::Values &Architecture = Model.Architecture;
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Type = llvmIntToModelType(BaseType, Model).getPointerTo(Architecture);
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} break;
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case Instruction::Select: {
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auto *Select = dyn_cast<llvm::SelectInst>(&I);
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const auto &Op1Entry = TypeMap.find(Select->getOperand(1));
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const auto &Op2Entry = TypeMap.find(Select->getOperand(2));
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// If the two selected values have the same type, assign that type to
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// the result
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if (Op1Entry != TypeMap.end() and Op2Entry != TypeMap.end()
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and Op1Entry->second == Op2Entry->second)
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Type = Op1Entry->second;
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} break;
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// Handle zext from i1 to i8
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case Instruction::ZExt: {
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auto *ZExt = dyn_cast<llvm::ZExtInst>(&I);
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auto IsBoolZext = ZExt->getSrcTy()->getScalarSizeInBits() == 1
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and ZExt->getDestTy()->getScalarSizeInBits() == 8;
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if (not PointersOnly and IsBoolZext) {
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const llvm::Value *Operand = I.getOperand(0);
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// Forward the type if there is one
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auto It = TypeMap.find(Operand);
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if (It != TypeMap.end())
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Type = It->second;
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}
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} break;
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// Handle trunc from i8 to i1
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case Instruction::Trunc: {
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auto *Trunc = dyn_cast<llvm::TruncInst>(&I);
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auto IsBoolTrunc = Trunc->getSrcTy()->getScalarSizeInBits() == 8
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and Trunc->getDestTy()->getScalarSizeInBits() == 1;
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if (not PointersOnly and IsBoolTrunc) {
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const llvm::Value *Operand = I.getOperand(0);
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// Forward the type if there is one
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auto It = TypeMap.find(Operand);
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if (It != TypeMap.end())
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Type = It->second;
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}
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} break;
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case Instruction::IntToPtr:
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case Instruction::PtrToInt: {
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// If the PointersOnly flag is set, we ignore IntToPtr and PtrToInt
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if (not PointersOnly) {
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const llvm::Value *Operand = I.getOperand(0);
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// Forward the type if there is one
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auto It = TypeMap.find(Operand);
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if (It != TypeMap.end())
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Type = It->second;
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}
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} break;
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default:
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break;
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}
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if (PointersOnly) {
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// Skip if it's not a pointer and we are only interested in pointers
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if (Type and Type->isPointer())
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TypeMap.insert({ &I, *Type });
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} else {
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// As a fallback, use the LLVM type to build the QualifiedType
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if (not Type)
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Type = llvmIntToModelType(InstType, Model);
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TypeMap.insert({ &I, *Type });
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}
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}
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}
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// Run VMA
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VMAPipeline VMA(Model);
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VMA.addInitializer(std::make_unique<LLVMInitializer>());
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VMA.addInitializer(std::make_unique<TypeMapInitializer>(TypeMap));
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VMA.setUpdater(std::make_unique<TypeMapUpdater>(TypeMap, &Model));
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VMA.disableSolver();
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VMA.run(Cache, &F);
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return TypeMap;
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}
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