forked from OSchip/llvm-project
204 lines
6.0 KiB
C++
204 lines
6.0 KiB
C++
//== SymbolManager.h - Management of Symbolic Values ------------*- 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 file defines SymbolManager, a class that manages symbolic values
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// created for use by GRExprEngine and related classes.
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//
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//===----------------------------------------------------------------------===//
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#include "clang/Analysis/PathSensitive/SymbolManager.h"
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#include "clang/Analysis/PathSensitive/MemRegion.h"
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#include "llvm/Support/raw_ostream.h"
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using namespace clang;
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static void print(llvm::raw_ostream& os, const SymExpr *SE);
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static void print(llvm::raw_ostream& os, BinaryOperator::Opcode Op) {
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switch (Op) {
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default:
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assert(false && "operator printing not implemented");
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break;
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case BinaryOperator::Mul: os << '*' ; break;
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case BinaryOperator::Div: os << '/' ; break;
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case BinaryOperator::Rem: os << '%' ; break;
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case BinaryOperator::Add: os << '+' ; break;
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case BinaryOperator::Sub: os << '-' ; break;
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case BinaryOperator::Shl: os << "<<" ; break;
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case BinaryOperator::Shr: os << ">>" ; break;
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case BinaryOperator::LT: os << "<" ; break;
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case BinaryOperator::GT: os << '>' ; break;
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case BinaryOperator::LE: os << "<=" ; break;
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case BinaryOperator::GE: os << ">=" ; break;
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case BinaryOperator::EQ: os << "==" ; break;
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case BinaryOperator::NE: os << "!=" ; break;
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case BinaryOperator::And: os << '&' ; break;
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case BinaryOperator::Xor: os << '^' ; break;
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case BinaryOperator::Or: os << '|' ; break;
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}
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}
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static void print(llvm::raw_ostream& os, const SymIntExpr *SE) {
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os << '(';
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print(os, SE->getLHS());
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os << ") ";
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print(os, SE->getOpcode());
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os << ' ' << SE->getRHS().getZExtValue();
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if (SE->getRHS().isUnsigned()) os << 'U';
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}
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static void print(llvm::raw_ostream& os, const SymSymExpr *SE) {
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os << '(';
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print(os, SE->getLHS());
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os << ") ";
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os << '(';
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print(os, SE->getRHS());
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os << ')';
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}
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static void print(llvm::raw_ostream& os, const SymExpr *SE) {
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switch (SE->getKind()) {
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case SymExpr::BEGIN_SYMBOLS:
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case SymExpr::RegionRValue:
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case SymExpr::ConjuredKind:
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case SymExpr::END_SYMBOLS:
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os << '$' << cast<SymbolData>(SE)->getSymbolID();
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return;
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case SymExpr::SymIntKind:
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print(os, cast<SymIntExpr>(SE));
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return;
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case SymExpr::SymSymKind:
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print(os, cast<SymSymExpr>(SE));
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return;
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}
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}
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llvm::raw_ostream& llvm::operator<<(llvm::raw_ostream& os, const SymExpr *SE) {
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print(os, SE);
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return os;
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}
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std::ostream& std::operator<<(std::ostream& os, const SymExpr *SE) {
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llvm::raw_os_ostream O(os);
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print(O, SE);
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return os;
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}
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const SymbolRegionRValue*
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SymbolManager::getRegionRValueSymbol(const MemRegion* R) {
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llvm::FoldingSetNodeID profile;
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SymbolRegionRValue::Profile(profile, R);
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void* InsertPos;
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SymExpr *SD = DataSet.FindNodeOrInsertPos(profile, InsertPos);
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if (!SD) {
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SD = (SymExpr*) BPAlloc.Allocate<SymbolRegionRValue>();
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new (SD) SymbolRegionRValue(SymbolCounter, R);
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DataSet.InsertNode(SD, InsertPos);
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++SymbolCounter;
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}
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return cast<SymbolRegionRValue>(SD);
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}
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const SymbolConjured*
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SymbolManager::getConjuredSymbol(const Stmt* E, QualType T, unsigned Count,
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const void* SymbolTag) {
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llvm::FoldingSetNodeID profile;
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SymbolConjured::Profile(profile, E, T, Count, SymbolTag);
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void* InsertPos;
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SymExpr *SD = DataSet.FindNodeOrInsertPos(profile, InsertPos);
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if (!SD) {
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SD = (SymExpr*) BPAlloc.Allocate<SymbolConjured>();
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new (SD) SymbolConjured(SymbolCounter, E, T, Count, SymbolTag);
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DataSet.InsertNode(SD, InsertPos);
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++SymbolCounter;
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}
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return cast<SymbolConjured>(SD);
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}
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const SymIntExpr *SymbolManager::getSymIntExpr(const SymExpr *lhs,
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BinaryOperator::Opcode op,
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const llvm::APSInt& v,
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QualType t) {
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llvm::FoldingSetNodeID ID;
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SymIntExpr::Profile(ID, lhs, op, v, t);
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void *InsertPos;
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SymExpr *data = DataSet.FindNodeOrInsertPos(ID, InsertPos);
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if (!data) {
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data = (SymIntExpr*) BPAlloc.Allocate<SymIntExpr>();
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new (data) SymIntExpr(lhs, op, v, t);
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DataSet.InsertNode(data, InsertPos);
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}
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return cast<SymIntExpr>(data);
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}
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const SymSymExpr *SymbolManager::getSymSymExpr(const SymExpr *lhs,
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BinaryOperator::Opcode op,
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const SymExpr *rhs,
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QualType t) {
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llvm::FoldingSetNodeID ID;
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SymSymExpr::Profile(ID, lhs, op, rhs, t);
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void *InsertPos;
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SymExpr *data = DataSet.FindNodeOrInsertPos(ID, InsertPos);
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if (!data) {
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data = (SymSymExpr*) BPAlloc.Allocate<SymSymExpr>();
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new (data) SymSymExpr(lhs, op, rhs, t);
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DataSet.InsertNode(data, InsertPos);
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}
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return cast<SymSymExpr>(data);
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}
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QualType SymbolConjured::getType(ASTContext&) const {
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return T;
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}
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QualType SymbolRegionRValue::getType(ASTContext& C) const {
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if (const TypedRegion* TR = dyn_cast<TypedRegion>(R))
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return TR->getRValueType(C);
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return QualType();
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}
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SymbolManager::~SymbolManager() {}
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bool SymbolManager::canSymbolicate(QualType T) {
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return Loc::IsLocType(T) || T->isIntegerType();
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}
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void SymbolReaper::markLive(SymbolRef sym) {
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TheLiving = F.Add(TheLiving, sym);
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TheDead = F.Remove(TheDead, sym);
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}
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bool SymbolReaper::maybeDead(SymbolRef sym) {
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if (isLive(sym))
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return false;
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TheDead = F.Add(TheDead, sym);
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return true;
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}
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bool SymbolReaper::isLive(SymbolRef sym) {
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if (TheLiving.contains(sym))
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return true;
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// Interogate the symbol. It may derive from an input value to
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// the analyzed function/method.
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return isa<SymbolRegionRValue>(sym);
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}
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SymbolVisitor::~SymbolVisitor() {}
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