forked from OSchip/llvm-project
273 lines
7.8 KiB
C++
273 lines
7.8 KiB
C++
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//= RValues.cpp - Abstract RValues for Path-Sens. Value Tracking -*- C++ -*-==//
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//
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// The LLVM Compiler Infrastructure
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//
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// This file is distributed under the University of Illinois Open Source
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// License. See LICENSE.TXT for details.
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//
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//===----------------------------------------------------------------------===//
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//
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// This files defines RValue, LValue, and NonLValue, classes that represent
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// abstract r-values for use with path-sensitive value tracking.
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//
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//===----------------------------------------------------------------------===//
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#include "RValues.h"
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using namespace clang;
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using llvm::dyn_cast;
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using llvm::cast;
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using llvm::APSInt;
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//===----------------------------------------------------------------------===//
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// SymbolManager.
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//===----------------------------------------------------------------------===//
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SymbolID SymbolManager::getSymbol(ParmVarDecl* D) {
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SymbolID& X = DataToSymbol[D];
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if (!X.isInitialized()) {
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X = SymbolToData.size();
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SymbolToData.push_back(D);
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}
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return X;
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}
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SymbolManager::SymbolManager() {}
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SymbolManager::~SymbolManager() {}
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//===----------------------------------------------------------------------===//
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// ValueManager.
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//===----------------------------------------------------------------------===//
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ValueManager::~ValueManager() {
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// Note that the dstor for the contents of APSIntSet will never be called,
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// so we iterate over the set and invoke the dstor for each APSInt. This
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// frees an aux. memory allocated to represent very large constants.
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for (APSIntSetTy::iterator I=APSIntSet.begin(), E=APSIntSet.end(); I!=E; ++I)
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I->getValue().~APSInt();
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}
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APSInt& ValueManager::getValue(const APSInt& X) {
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llvm::FoldingSetNodeID ID;
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void* InsertPos;
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typedef llvm::FoldingSetNodeWrapper<APSInt> FoldNodeTy;
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X.Profile(ID);
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FoldNodeTy* P = APSIntSet.FindNodeOrInsertPos(ID, InsertPos);
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if (!P) {
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P = (FoldNodeTy*) BPAlloc.Allocate<FoldNodeTy>();
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new (P) FoldNodeTy(X);
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APSIntSet.InsertNode(P, InsertPos);
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}
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return *P;
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}
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APSInt& ValueManager::getValue(uint64_t X, unsigned BitWidth, bool isUnsigned) {
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APSInt V(BitWidth, isUnsigned);
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V = X;
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return getValue(V);
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}
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APSInt& ValueManager::getValue(uint64_t X, QualType T, SourceLocation Loc) {
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unsigned bits = Ctx.getTypeSize(T, Loc);
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APSInt V(bits, T->isUnsignedIntegerType());
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V = X;
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return getValue(V);
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}
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//===----------------------------------------------------------------------===//
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// Transfer function dispatch for Non-LValues.
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//===----------------------------------------------------------------------===//
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RValue RValue::Cast(ValueManager& ValMgr, Expr* CastExpr) const {
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switch (getSubKind()) {
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case ConcreteIntKind:
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return cast<ConcreteInt>(this)->Cast(ValMgr, CastExpr);
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default:
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return InvalidValue();
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}
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}
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NonLValue NonLValue::UnaryMinus(ValueManager& ValMgr, UnaryOperator* U) const {
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switch (getSubKind()) {
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case ConcreteIntKind:
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return cast<ConcreteInt>(this)->UnaryMinus(ValMgr, U);
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default:
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return cast<NonLValue>(InvalidValue());
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}
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}
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#define NONLVALUE_DISPATCH_CASE(k1,k2,Op)\
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case (k1##Kind*NumNonLValueKind+k2##Kind):\
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return cast<k1>(*this).Op(ValMgr,cast<k2>(RHS));
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#define NONLVALUE_DISPATCH(Op)\
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switch (getSubKind()*NumNonLValueKind+RHS.getSubKind()){\
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NONLVALUE_DISPATCH_CASE(ConcreteInt,ConcreteInt,Op)\
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default:\
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if (getBaseKind() == UninitializedKind ||\
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RHS.getBaseKind() == UninitializedKind)\
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return cast<NonLValue>(UninitializedValue());\
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assert (!isValid() || !RHS.isValid() && "Missing case.");\
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break;\
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}\
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return cast<NonLValue>(InvalidValue());
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NonLValue NonLValue::Add(ValueManager& ValMgr, const NonLValue& RHS) const {
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NONLVALUE_DISPATCH(Add)
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}
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NonLValue NonLValue::Sub(ValueManager& ValMgr, const NonLValue& RHS) const {
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NONLVALUE_DISPATCH(Sub)
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}
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NonLValue NonLValue::Mul(ValueManager& ValMgr, const NonLValue& RHS) const {
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NONLVALUE_DISPATCH(Mul)
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}
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NonLValue NonLValue::Div(ValueManager& ValMgr, const NonLValue& RHS) const {
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NONLVALUE_DISPATCH(Div)
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}
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NonLValue NonLValue::Rem(ValueManager& ValMgr, const NonLValue& RHS) const {
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NONLVALUE_DISPATCH(Rem)
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}
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NonLValue NonLValue::EQ(ValueManager& ValMgr, const NonLValue& RHS) const {
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NONLVALUE_DISPATCH(EQ)
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}
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NonLValue NonLValue::NE(ValueManager& ValMgr, const NonLValue& RHS) const {
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NONLVALUE_DISPATCH(NE)
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}
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#undef NONLVALUE_DISPATCH_CASE
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#undef NONLVALUE_DISPATCH
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//===----------------------------------------------------------------------===//
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// Transfer function dispatch for LValues.
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//===----------------------------------------------------------------------===//
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NonLValue LValue::EQ(ValueManager& ValMgr, const LValue& RHS) const {
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if (getSubKind() != RHS.getSubKind())
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return NonLValue::GetIntTruthValue(ValMgr, false);
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switch (getSubKind()) {
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default:
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assert(false && "EQ not implemented for this LValue.");
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return cast<NonLValue>(InvalidValue());
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case LValueDeclKind: {
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bool b = cast<LValueDecl>(*this) == cast<LValueDecl>(RHS);
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return NonLValue::GetIntTruthValue(ValMgr, b);
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}
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}
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}
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NonLValue LValue::NE(ValueManager& ValMgr, const LValue& RHS) const {
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if (getSubKind() != RHS.getSubKind())
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return NonLValue::GetIntTruthValue(ValMgr, true);
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switch (getSubKind()) {
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default:
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assert(false && "EQ not implemented for this LValue.");
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return cast<NonLValue>(InvalidValue());
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case LValueDeclKind: {
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bool b = cast<LValueDecl>(*this) != cast<LValueDecl>(RHS);
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return NonLValue::GetIntTruthValue(ValMgr, b);
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}
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}
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}
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//===----------------------------------------------------------------------===//
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// Utility methods for constructing Non-LValues.
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//===----------------------------------------------------------------------===//
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NonLValue NonLValue::GetValue(ValueManager& ValMgr, uint64_t X, QualType T,
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SourceLocation Loc) {
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return ConcreteInt(ValMgr.getValue(X, T, Loc));
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}
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NonLValue NonLValue::GetValue(ValueManager& ValMgr, IntegerLiteral* I) {
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return ConcreteInt(ValMgr.getValue(APSInt(I->getValue(),
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I->getType()->isUnsignedIntegerType())));
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}
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RValue RValue::GetSymbolValue(SymbolManager& SymMgr, ParmVarDecl* D) {
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QualType T = D->getType();
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if (T->isPointerType() || T->isReferenceType())
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return SymbolicLValue(SymMgr.getSymbol(D));
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else
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return SymbolicNonLValue(SymMgr.getSymbol(D));
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}
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//===----------------------------------------------------------------------===//
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// Pretty-Printing.
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//===----------------------------------------------------------------------===//
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void RValue::print(std::ostream& Out) const {
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switch (getBaseKind()) {
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case InvalidKind:
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Out << "Invalid";
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break;
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case NonLValueKind:
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cast<NonLValue>(this)->print(Out);
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break;
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case LValueKind:
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cast<LValue>(this)->print(Out);
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break;
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case UninitializedKind:
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Out << "Uninitialized";
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break;
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default:
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assert (false && "Invalid RValue.");
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}
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}
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void NonLValue::print(std::ostream& Out) const {
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switch (getSubKind()) {
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case ConcreteIntKind:
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Out << cast<ConcreteInt>(this)->getValue().toString();
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break;
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case SymbolicNonLValueKind:
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Out << '$' << cast<SymbolicNonLValue>(this)->getSymbolID();
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break;
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default:
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assert (false && "Pretty-printed not implemented for this NonLValue.");
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break;
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}
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}
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void LValue::print(std::ostream& Out) const {
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switch (getSubKind()) {
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case SymbolicLValueKind:
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Out << '$' << cast<SymbolicLValue>(this)->getSymbolID();
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break;
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case LValueDeclKind:
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Out << '&'
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<< cast<LValueDecl>(this)->getDecl()->getIdentifier()->getName();
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break;
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default:
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assert (false && "Pretty-printed not implemented for this LValue.");
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break;
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}
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}
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