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revng-revng/lib/Canonicalize/TwosComplementArithmeticNormalizationPass.cpp
2026-06-19 09:18:16 +02:00

324 lines
12 KiB
C++

//
// This file is distributed under the MIT License. See LICENSE.md for details.
//
#include "llvm/IR/Constants.h"
#include "llvm/IR/DerivedTypes.h"
#include "llvm/IR/Instruction.h"
#include "llvm/IR/Instructions.h"
#include "llvm/IR/LLVMContext.h"
#include "llvm/IR/MDBuilder.h"
#include "llvm/IR/PatternMatch.h"
#include "llvm/Pass.h"
#include "llvm/Transforms/Utils/Local.h"
#include "revng/Model/FunctionTags.h"
#include "revng/Support/IRBuilder.h"
#include "revng/Support/OpaqueFunctionsPool.h"
struct TwosComplementArithmeticNormalizationPass : public llvm::FunctionPass {
public:
static char ID;
TwosComplementArithmeticNormalizationPass() : FunctionPass(ID) {}
bool runOnFunction(llvm::Function &F) override;
void getAnalysisUsage(llvm::AnalysisUsage &AU) const override {
AU.setPreservesCFG();
}
};
using TANP = TwosComplementArithmeticNormalizationPass;
class UnaryMinusBuilder {
OpaqueFunctionsPool<llvm::Type *> Pool;
// Here we should definitely use the builder that checks the debug info,
// but since this going to go away soon, let it stay as is.
revng::NonDebugInfoCheckingIRBuilder Builder;
public:
UnaryMinusBuilder(llvm::Function &F) :
Pool(FunctionTags::UnaryMinus.getPool(*F.getParent())),
Builder(F.getContext()) {}
void SetInsertPoint(llvm::Instruction *I) { Builder.SetInsertPoint(I); }
llvm::CallInst *operator()(llvm::Type *IntType, llvm::APInt Value) {
revng_assert(llvm::isa<llvm::IntegerType>(IntType));
llvm::Function *Func = Pool.get(IntType, IntType, IntType, "unary_minus");
auto ConstInt = llvm::ConstantInt::getSigned(IntType,
Value.abs().getLimitedValue());
return Builder.CreateCall(Func, { ConstInt });
}
};
class BinaryNotBuilder {
OpaqueFunctionsPool<llvm::Type *> Pool;
// Here we should definitely use the builder that checks the debug info,
// but since this going to go away soon, let it stay as is.
revng::NonDebugInfoCheckingIRBuilder Builder;
public:
BinaryNotBuilder(llvm::Function &F) :
Pool(FunctionTags::BinaryNot.getPool(*F.getParent())),
Builder(F.getContext()) {}
void SetInsertPoint(llvm::Instruction *I) { Builder.SetInsertPoint(I); }
llvm::CallInst *operator()(llvm::Type *IntType, llvm::Value *Val) {
revng_assert(isa<llvm::IntegerType>(IntType));
llvm::Function *Func = Pool.get(IntType, IntType, IntType, "binary_not");
return Builder.CreateCall(Func, { Val });
}
};
class BooleanNotBuilder {
OpaqueFunctionsPool<llvm::Type *> Pool;
// Here we should definitely use the builder that checks the debug info,
// but since this going to go away soon, let it stay as is.
revng::NonDebugInfoCheckingIRBuilder Builder;
public:
BooleanNotBuilder(llvm::Function &F) :
Pool(FunctionTags::BooleanNot.getPool(*F.getParent())),
Builder(F.getContext()) {}
void SetInsertPoint(llvm::Instruction *I) { Builder.SetInsertPoint(I); }
llvm::CallInst *operator()(llvm::Type *IntType, llvm::Value *Val) {
revng_assert(isa<llvm::IntegerType>(IntType));
llvm::Function *Func = Pool.get(IntType,
Builder.getIntNTy(1),
IntType,
"boolean_not");
return Builder.CreateCall(Func, { Val });
}
};
using Predicate = llvm::ICmpInst::Predicate;
bool TANP::runOnFunction(llvm::Function &F) {
using namespace llvm;
using namespace PatternMatch;
UnaryMinusBuilder BuildUnaryMinus{ F };
BinaryNotBuilder BuildBinaryNot{ F };
BooleanNotBuilder BuildBooleanNot{ F };
// Here we should definitely use the builder that checks the debug info,
// but since this going to go away soon, let it stay as is.
revng::NonDebugInfoCheckingIRBuilder Builder{ F.getContext() };
bool Changed = false;
llvm::SmallVector<llvm::WeakTrackingVH, 8> DeadInsts;
for (BasicBlock &BB : F) {
for (Instruction &I : BB) {
if (auto *CallToIsolated = getCallToIsolatedFunction(&I)) {
for (Use &OperandUse : CallToIsolated->operands()) {
auto *ConstantOperand = dyn_cast<ConstantInt>(OperandUse.get());
if (not ConstantOperand)
continue;
if (ConstantOperand->isNegative()) {
BuildUnaryMinus.SetInsertPoint(&I);
auto UnaryMinus = BuildUnaryMinus(ConstantOperand->getType(),
ConstantOperand->getValue());
OperandUse.set(UnaryMinus);
}
}
continue;
}
Value *NewV = nullptr;
Value *Val = nullptr;
const APInt *Int = nullptr;
if ((match(&I, m_Xor(m_Value(Val), m_APInt(Int)))
or match(&I, m_Xor(m_APInt(Int), m_Value(Val))))
and Int->isAllOnesValue()) {
BuildBinaryNot.SetInsertPoint(&I);
NewV = BuildBinaryNot(I.getType(), Val);
} else if (match(&I, m_Add(m_Value(Val), m_APInt(Int)))
and Int->isNegative()) {
Builder.SetInsertPoint(&I);
NewV = Builder.CreateSub(Val,
ConstantInt::get(I.getType(), ~(*Int) + 1));
} else if (match(&I, m_Sub(m_Value(Val), m_APInt(Int)))
and Int->isNegative()) {
Builder.SetInsertPoint(&I);
NewV = Builder.CreateAdd(Val,
ConstantInt::get(I.getType(), ~(*Int) + 1));
} else if ((match(&I, m_Mul(m_Value(Val), m_APInt(Int)))
or match(&I, m_Mul(m_APInt(Int), m_Value(Val))))
and Int->isNegative()) {
const auto IntType = Val->getType();
if (Int->isSignBitSet()
and Int->isSignedIntN(IntType->getIntegerBitWidth())) {
BuildUnaryMinus.SetInsertPoint(&I);
auto UnaryMinus = BuildUnaryMinus(Val->getType(), *Int);
Builder.SetInsertPoint(UnaryMinus->getNextNonDebugInstruction());
NewV = Builder.CreateMul(Val, UnaryMinus);
}
} else if (match(&I, m_SDiv(m_Value(Val), m_APInt(Int)))
and Int->isNegative()) {
const auto IntType = Val->getType();
if (Int->isSignBitSet()
and Int->isSignedIntN(IntType->getIntegerBitWidth())) {
BuildUnaryMinus.SetInsertPoint(&I);
auto UnaryMinus = BuildUnaryMinus(Val->getType(), *Int);
Builder.SetInsertPoint(UnaryMinus->getNextNonDebugInstruction());
NewV = Builder.CreateSDiv(Val, UnaryMinus);
}
} else if (match(&I, m_SDiv(m_APInt(Int), m_Value(Val)))
and Int->isNegative()) {
const auto IntType = Val->getType();
if (Int->isSignBitSet()
and Int->isSignedIntN(IntType->getIntegerBitWidth())) {
BuildUnaryMinus.SetInsertPoint(&I);
auto UnaryMinus = BuildUnaryMinus(Val->getType(), *Int);
Builder.SetInsertPoint(UnaryMinus->getNextNonDebugInstruction());
NewV = Builder.CreateSDiv(UnaryMinus, Val);
}
} else if (match(&I, m_SRem(m_Value(Val), m_APInt(Int)))
and Int->isNegative()) {
const auto IntType = Val->getType();
if (Int->isSignBitSet()
and Int->isSignedIntN(IntType->getIntegerBitWidth())) {
BuildUnaryMinus.SetInsertPoint(&I);
auto UnaryMinus = BuildUnaryMinus(Val->getType(), *Int);
Builder.SetInsertPoint(UnaryMinus->getNextNonDebugInstruction());
NewV = Builder.CreateSRem(Val, UnaryMinus);
}
} else if (match(&I, m_SRem(m_APInt(Int), m_Value(Val)))
and Int->isNegative()) {
const auto IntType = Val->getType();
if (Int->isSignBitSet()
and Int->isSignedIntN(IntType->getIntegerBitWidth())) {
BuildUnaryMinus.SetInsertPoint(&I);
auto UnaryMinus = BuildUnaryMinus(Val->getType(), *Int);
Builder.SetInsertPoint(UnaryMinus->getNextNonDebugInstruction());
NewV = Builder.CreateSRem(UnaryMinus, Val);
}
} else if (Predicate Pred;
match(&I, m_ICmp(Pred, m_Value(Val), m_APInt(Int)))) {
const auto IntType = Val->getType();
llvm::Value *X = nullptr;
const APInt *RHS = nullptr;
if (match(Val, m_Add(m_Value(X), m_APInt(RHS)))
or match(Val, m_Sub(m_Value(X), m_APInt(RHS)))) {
// Compute the new RHS if we move the RHS to the right of the
// comparison operator, adjusting the old value of Int.
using llvm::Instruction::Add;
bool IsAdd = cast<llvm::Instruction>(Val)->getOpcode() == Add;
APInt NewRHS = IsAdd ? (*Int - *RHS) : (*Int + *RHS);
Builder.SetInsertPoint(I.getNextNonDebugInstruction());
NewV = Builder.CreateICmp(Pred, X, ConstantInt::get(IntType, NewRHS));
// If the predicate is relational, I is an inequality, meaning that it
// has a range of results, that wraps around, and we have to take care
// of that to avoid breaking semantics.
if (llvm::ICmpInst::isRelational(Pred)) {
unsigned BitWidth = RHS->getBitWidth();
bool IsSigned = llvm::ICmpInst::isSigned(Pred);
APInt Min = IsSigned ? APInt::getSignedMinValue(BitWidth) :
/*Unsigned*/ APInt::getMinValue(BitWidth);
APInt Max = IsSigned ? APInt::getSignedMaxValue(BitWidth) :
/*Unsigned*/ APInt::getMaxValue(BitWidth);
// Helper constant to discriminate between the two cases for the
// solution of the inequalities.
APInt MaxAddSubRHS = IsAdd ? (Max + *RHS) : (Max - *RHS);
bool IntIntersectsAfterWrap = IsSigned ? Int->sle(MaxAddSubRHS) :
Int->ule(MaxAddSubRHS);
// Compute the wrapping predicate, that always depends only on the
// old predicate and its signedness.
Predicate InversePred = llvm::ICmpInst::getInversePredicate(Pred);
Predicate
WrappingPred = llvm::ICmpInst::getStrictPredicate(InversePred);
// Helper limits for computing the new constant operand of the
// comparison after wrapping.
APInt LastXBeforeWrap = IsAdd ? (Max - *RHS) : (Max + *RHS);
APInt FirstXAfterWrap = IsAdd ? (Min - *RHS) : (Min + *RHS);
// Here WrappingPred can only be GT or LT.
// The WrapConstant we want to use for the new comparison only
// depends on this.
// Signedness may vary but it's not important because it's been
// taken care of in our computation of WrappingPred.
bool WrappedIsGreater = llvm::ICmpInst::isGT(WrappingPred);
auto *WrapConstant = llvm::ConstantInt::get(IntType,
WrappedIsGreater ?
LastXBeforeWrap :
FirstXAfterWrap);
llvm::Value *WrappingComparison = Builder.CreateICmp(WrappingPred,
X,
WrapConstant);
if (IntIntersectsAfterWrap == WrappedIsGreater)
NewV = Builder.CreateAnd(NewV, WrappingComparison);
else
NewV = Builder.CreateOr(NewV, WrappingComparison);
}
} else if (Int->isNegative()) {
BuildUnaryMinus.SetInsertPoint(&I);
auto UnaryMinus = BuildUnaryMinus(IntType, *Int);
Builder.SetInsertPoint(UnaryMinus->getNextNonDebugInstruction());
NewV = Builder.CreateICmp(Pred, Val, UnaryMinus);
} else if (Pred == Predicate::ICMP_EQ and Int->isNullValue()) {
BuildBooleanNot.SetInsertPoint(&I);
NewV = BuildBooleanNot(Val->getType(), Val);
}
}
if (NewV) {
Changed = true;
I.replaceAllUsesWith(NewV);
DeadInsts.emplace_back(&I);
}
}
}
llvm::RecursivelyDeleteTriviallyDeadInstructions(DeadInsts);
return Changed;
}
char TANP::ID = 0;
static llvm::RegisterPass<TANP> X("twoscomplement-normalization",
"A simple pass that transforms arithmetic "
"operations based on their two complements.",
false,
false);