[LifetimeSafety] Implement a basic use-after-free diagnostic (#149731)
Implement use-after-free detection in the lifetime safety analysis with two warning levels. - Added a `LifetimeSafetyReporter` interface for reporting lifetime safety issues - Created two warning levels: - Definite errors (reported with `-Wexperimental-lifetime-safety-permissive`) - Potential errors (reported with `-Wexperimental-lifetime-safety-strict`) - Implemented a `LifetimeChecker` class that analyzes loan propagation and expired loans to detect use-after-free issues. - Added tracking of use sites through a new `UseFact` class. - Enhanced the `ExpireFact` to track the expressions where objects are destroyed. - Added test cases for both definite and potential use-after-free scenarios. The implementation now tracks pointer uses and can determine when a pointer is dereferenced after its loan has been expired, with appropriate diagnostics. The two warning levels provide flexibility - definite errors for high-confidence issues and potential errors for cases that depend on control flow.
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@ -19,14 +19,35 @@
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#define LLVM_CLANG_ANALYSIS_ANALYSES_LIFETIMESAFETY_H
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#include "clang/Analysis/AnalysisDeclContext.h"
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#include "clang/Analysis/CFG.h"
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#include "clang/Basic/SourceLocation.h"
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#include "llvm/ADT/DenseMapInfo.h"
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#include "llvm/ADT/ImmutableMap.h"
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#include "llvm/ADT/ImmutableSet.h"
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#include "llvm/ADT/StringMap.h"
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#include <memory>
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namespace clang::lifetimes {
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/// Enum to track the confidence level of a potential error.
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enum class Confidence {
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None,
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Maybe, // Reported as a potential error (-Wlifetime-safety-strict)
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Definite // Reported as a definite error (-Wlifetime-safety-permissive)
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};
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class LifetimeSafetyReporter {
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public:
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LifetimeSafetyReporter() = default;
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virtual ~LifetimeSafetyReporter() = default;
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virtual void reportUseAfterFree(const Expr *IssueExpr, const Expr *UseExpr,
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SourceLocation FreeLoc,
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Confidence Confidence) {}
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};
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/// The main entry point for the analysis.
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void runLifetimeSafetyAnalysis(AnalysisDeclContext &AC);
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void runLifetimeSafetyAnalysis(AnalysisDeclContext &AC,
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LifetimeSafetyReporter *Reporter);
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namespace internal {
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// Forward declarations of internal types.
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@ -53,6 +74,7 @@ template <typename Tag> struct ID {
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IDBuilder.AddInteger(Value);
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}
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};
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template <typename Tag>
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inline llvm::raw_ostream &operator<<(llvm::raw_ostream &OS, ID<Tag> ID) {
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return OS << ID.Value;
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@ -78,7 +100,8 @@ using ProgramPoint = const Fact *;
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/// encapsulates the various dataflow analyses.
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class LifetimeSafetyAnalysis {
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public:
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LifetimeSafetyAnalysis(AnalysisDeclContext &AC);
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LifetimeSafetyAnalysis(AnalysisDeclContext &AC,
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LifetimeSafetyReporter *Reporter);
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~LifetimeSafetyAnalysis();
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void run();
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@ -87,7 +110,7 @@ public:
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LoanSet getLoansAtPoint(OriginID OID, ProgramPoint PP) const;
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/// Returns the set of loans that have expired at a specific program point.
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LoanSet getExpiredLoansAtPoint(ProgramPoint PP) const;
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std::vector<LoanID> getExpiredLoansAtPoint(ProgramPoint PP) const;
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/// Finds the OriginID for a given declaration.
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/// Returns a null optional if not found.
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@ -110,6 +133,7 @@ public:
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private:
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AnalysisDeclContext &AC;
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LifetimeSafetyReporter *Reporter;
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std::unique_ptr<LifetimeFactory> Factory;
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std::unique_ptr<FactManager> FactMgr;
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std::unique_ptr<LoanPropagationAnalysis> LoanPropagation;
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@ -118,4 +142,25 @@ private:
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} // namespace internal
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} // namespace clang::lifetimes
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namespace llvm {
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template <typename Tag>
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struct DenseMapInfo<clang::lifetimes::internal::ID<Tag>> {
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using ID = clang::lifetimes::internal::ID<Tag>;
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static inline ID getEmptyKey() {
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return {DenseMapInfo<uint32_t>::getEmptyKey()};
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}
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static inline ID getTombstoneKey() {
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return {DenseMapInfo<uint32_t>::getTombstoneKey()};
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}
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static unsigned getHashValue(const ID &Val) {
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return DenseMapInfo<uint32_t>::getHashValue(Val.Value);
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}
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static bool isEqual(const ID &LHS, const ID &RHS) { return LHS == RHS; }
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};
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} // namespace llvm
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#endif // LLVM_CLANG_ANALYSIS_ANALYSES_LIFETIMESAFETY_H
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@ -533,7 +533,14 @@ def Dangling : DiagGroup<"dangling", [DanglingAssignment,
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DanglingGsl,
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ReturnStackAddress]>;
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def LifetimeSafety : DiagGroup<"experimental-lifetime-safety">;
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def LifetimeSafetyPermissive : DiagGroup<"experimental-lifetime-safety-permissive">;
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def LifetimeSafetyStrict : DiagGroup<"experimental-lifetime-safety-strict">;
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def LifetimeSafety : DiagGroup<"experimental-lifetime-safety",
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[LifetimeSafetyPermissive, LifetimeSafetyStrict]> {
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code Documentation = [{
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Experimental warnings to detect use-after-free and related temporal safety bugs based on lifetime safety analysis.
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}];
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}
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def DistributedObjectModifiers : DiagGroup<"distributed-object-modifiers">;
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def DllexportExplicitInstantiationDecl : DiagGroup<"dllexport-explicit-instantiation-decl">;
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@ -10671,9 +10671,15 @@ def warn_dangling_reference_captured_by_unknown : Warning<
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"object whose reference is captured will be destroyed at the end of "
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"the full-expression">, InGroup<DanglingCapture>;
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def warn_experimental_lifetime_safety_dummy_warning : Warning<
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"todo: remove this warning after we have atleast one warning based on the lifetime analysis">,
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InGroup<LifetimeSafety>, DefaultIgnore;
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// Diagnostics based on the Lifetime safety analysis.
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def warn_lifetime_safety_loan_expires_permissive : Warning<
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"object whose reference is captured does not live long enough">,
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InGroup<LifetimeSafetyPermissive>, DefaultIgnore;
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def warn_lifetime_safety_loan_expires_strict : Warning<
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"object whose reference is captured may not live long enough">,
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InGroup<LifetimeSafetyStrict>, DefaultIgnore;
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def note_lifetime_safety_used_here : Note<"later used here">;
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def note_lifetime_safety_destroyed_here : Note<"destroyed here">;
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// For non-floating point, expressions of the form x == x or x != x
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// should result in a warning, since these always evaluate to a constant.
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@ -45,10 +45,11 @@ struct Loan {
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/// is represented as empty LoanSet
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LoanID ID;
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AccessPath Path;
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SourceLocation IssueLoc;
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/// The expression that creates the loan, e.g., &x.
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const Expr *IssueExpr;
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Loan(LoanID id, AccessPath path, SourceLocation loc)
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: ID(id), Path(path), IssueLoc(loc) {}
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Loan(LoanID id, AccessPath path, const Expr *IssueExpr)
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: ID(id), Path(path), IssueExpr(IssueExpr) {}
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};
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/// An Origin is a symbolic identifier that represents the set of possible
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@ -82,8 +83,8 @@ class LoanManager {
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public:
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LoanManager() = default;
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Loan &addLoan(AccessPath Path, SourceLocation Loc) {
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AllLoans.emplace_back(getNextLoanID(), Path, Loc);
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Loan &addLoan(AccessPath Path, const Expr *IssueExpr) {
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AllLoans.emplace_back(getNextLoanID(), Path, IssueExpr);
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return AllLoans.back();
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}
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@ -199,6 +200,8 @@ public:
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AssignOrigin,
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/// An origin escapes the function by flowing into the return value.
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ReturnOfOrigin,
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/// An origin is used (eg. dereferencing a pointer).
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Use,
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/// A marker for a specific point in the code, for testing.
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TestPoint,
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};
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@ -242,12 +245,17 @@ public:
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class ExpireFact : public Fact {
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LoanID LID;
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SourceLocation ExpiryLoc;
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public:
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static bool classof(const Fact *F) { return F->getKind() == Kind::Expire; }
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ExpireFact(LoanID LID) : Fact(Kind::Expire), LID(LID) {}
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ExpireFact(LoanID LID, SourceLocation ExpiryLoc)
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: Fact(Kind::Expire), LID(LID), ExpiryLoc(ExpiryLoc) {}
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LoanID getLoanID() const { return LID; }
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SourceLocation getExpiryLoc() const { return ExpiryLoc; }
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void dump(llvm::raw_ostream &OS) const override {
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OS << "Expire (LoanID: " << getLoanID() << ")\n";
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}
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@ -287,6 +295,24 @@ public:
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}
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};
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class UseFact : public Fact {
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OriginID UsedOrigin;
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const Expr *UseExpr;
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public:
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static bool classof(const Fact *F) { return F->getKind() == Kind::Use; }
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UseFact(OriginID UsedOrigin, const Expr *UseExpr)
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: Fact(Kind::Use), UsedOrigin(UsedOrigin), UseExpr(UseExpr) {}
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OriginID getUsedOrigin() const { return UsedOrigin; }
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const Expr *getUseExpr() const { return UseExpr; }
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void dump(llvm::raw_ostream &OS) const override {
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OS << "Use (OriginID: " << UsedOrigin << ")\n";
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}
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};
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/// A dummy-fact used to mark a specific point in the code for testing.
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/// It is generated by recognizing a `void("__lifetime_test_point_...")` cast.
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class TestPointFact : public Fact {
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@ -417,13 +443,17 @@ public:
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if (VD->hasLocalStorage()) {
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OriginID OID = FactMgr.getOriginMgr().getOrCreate(*UO);
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AccessPath AddrOfLocalVarPath(VD);
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const Loan &L = FactMgr.getLoanMgr().addLoan(AddrOfLocalVarPath,
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UO->getOperatorLoc());
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const Loan &L =
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FactMgr.getLoanMgr().addLoan(AddrOfLocalVarPath, UO);
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CurrentBlockFacts.push_back(
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FactMgr.createFact<IssueFact>(L.ID, OID));
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}
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}
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}
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} else if (UO->getOpcode() == UO_Deref) {
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// This is a pointer use, like '*p'.
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OriginID OID = FactMgr.getOriginMgr().get(*UO->getSubExpr());
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CurrentBlockFacts.push_back(FactMgr.createFact<UseFact>(OID, UO));
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}
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}
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@ -492,7 +522,8 @@ private:
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// Check if the loan is for a stack variable and if that variable
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// is the one being destructed.
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if (LoanPath.D == DestructedVD)
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CurrentBlockFacts.push_back(FactMgr.createFact<ExpireFact>(L.ID));
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CurrentBlockFacts.push_back(FactMgr.createFact<ExpireFact>(
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L.ID, DtorOpt.getTriggerStmt()->getEndLoc()));
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}
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}
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@ -618,6 +649,7 @@ public:
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}
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}
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protected:
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Lattice getState(ProgramPoint P) const { return PerPointStates.lookup(P); }
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Lattice getInState(const CFGBlock *B) const { return InStates.lookup(B); }
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@ -665,6 +697,8 @@ private:
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return D->transfer(In, *F->getAs<AssignOriginFact>());
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case Fact::Kind::ReturnOfOrigin:
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return D->transfer(In, *F->getAs<ReturnOfOriginFact>());
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case Fact::Kind::Use:
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return D->transfer(In, *F->getAs<UseFact>());
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case Fact::Kind::TestPoint:
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return D->transfer(In, *F->getAs<TestPointFact>());
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}
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@ -676,6 +710,7 @@ public:
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Lattice transfer(Lattice In, const ExpireFact &) { return In; }
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Lattice transfer(Lattice In, const AssignOriginFact &) { return In; }
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Lattice transfer(Lattice In, const ReturnOfOriginFact &) { return In; }
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Lattice transfer(Lattice In, const UseFact &) { return In; }
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Lattice transfer(Lattice In, const TestPointFact &) { return In; }
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};
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@ -693,6 +728,20 @@ static llvm::ImmutableSet<T> join(llvm::ImmutableSet<T> A,
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return A;
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}
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/// Checks if set A is a subset of set B.
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template <typename T>
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static bool isSubsetOf(const llvm::ImmutableSet<T> &A,
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const llvm::ImmutableSet<T> &B) {
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// Empty set is a subset of all sets.
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if (A.isEmpty())
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return true;
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for (const T &Elem : A)
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if (!B.contains(Elem))
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return false;
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return true;
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}
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/// Computes the key-wise union of two ImmutableMaps.
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// TODO(opt): This key-wise join is a performance bottleneck. A more
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// efficient merge could be implemented using a Patricia Trie or HAMT
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@ -700,7 +749,7 @@ static llvm::ImmutableSet<T> join(llvm::ImmutableSet<T> A,
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template <typename K, typename V, typename Joiner>
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static llvm::ImmutableMap<K, V>
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join(llvm::ImmutableMap<K, V> A, llvm::ImmutableMap<K, V> B,
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typename llvm::ImmutableMap<K, V>::Factory &F, Joiner joinValues) {
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typename llvm::ImmutableMap<K, V>::Factory &F, Joiner JoinValues) {
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if (A.getHeight() < B.getHeight())
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std::swap(A, B);
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@ -710,7 +759,7 @@ join(llvm::ImmutableMap<K, V> A, llvm::ImmutableMap<K, V> B,
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const K &Key = Entry.first;
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const V &ValB = Entry.second;
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if (const V *ValA = A.lookup(Key))
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A = F.add(A, Key, joinValues(*ValA, ValB));
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A = F.add(A, Key, JoinValues(*ValA, ValB));
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else
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A = F.add(A, Key, ValB);
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}
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@ -723,17 +772,14 @@ join(llvm::ImmutableMap<K, V> A, llvm::ImmutableMap<K, V> B,
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// ========================================================================= //
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using OriginLoanMap = llvm::ImmutableMap<OriginID, LoanSet>;
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using ExpiredLoanMap = llvm::ImmutableMap<LoanID, const ExpireFact *>;
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/// An object to hold the factories for immutable collections, ensuring
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/// that all created states share the same underlying memory management.
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struct LifetimeFactory {
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OriginLoanMap::Factory OriginMapFactory;
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LoanSet::Factory LoanSetFactory;
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/// Creates a singleton set containing only the given loan ID.
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LoanSet createLoanSet(LoanID LID) {
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return LoanSetFactory.add(LoanSetFactory.getEmptySet(), LID);
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}
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ExpiredLoanMap::Factory ExpiredLoanMapFactory;
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};
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/// Represents the dataflow lattice for loan propagation.
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@ -774,13 +820,15 @@ struct LoanPropagationLattice {
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class LoanPropagationAnalysis
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: public DataflowAnalysis<LoanPropagationAnalysis, LoanPropagationLattice,
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Direction::Forward> {
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LifetimeFactory &Factory;
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OriginLoanMap::Factory &OriginLoanMapFactory;
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LoanSet::Factory &LoanSetFactory;
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public:
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LoanPropagationAnalysis(const CFG &C, AnalysisDeclContext &AC, FactManager &F,
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LifetimeFactory &Factory)
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: DataflowAnalysis(C, AC, F), Factory(Factory) {}
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LifetimeFactory &LFactory)
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: DataflowAnalysis(C, AC, F),
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OriginLoanMapFactory(LFactory.OriginMapFactory),
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LoanSetFactory(LFactory.LoanSetFactory) {}
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using Base::transfer;
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@ -792,9 +840,9 @@ public:
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// TODO(opt): Keep the state small by removing origins which become dead.
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Lattice join(Lattice A, Lattice B) {
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OriginLoanMap JoinedOrigins =
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utils::join(A.Origins, B.Origins, Factory.OriginMapFactory,
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[this](LoanSet S1, LoanSet S2) {
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return utils::join(S1, S2, Factory.LoanSetFactory);
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utils::join(A.Origins, B.Origins, OriginLoanMapFactory,
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[&](LoanSet S1, LoanSet S2) {
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return utils::join(S1, S2, LoanSetFactory);
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});
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return Lattice(JoinedOrigins);
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}
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@ -803,8 +851,9 @@ public:
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Lattice transfer(Lattice In, const IssueFact &F) {
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OriginID OID = F.getOriginID();
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LoanID LID = F.getLoanID();
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return LoanPropagationLattice(Factory.OriginMapFactory.add(
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In.Origins, OID, Factory.createLoanSet(LID)));
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return LoanPropagationLattice(OriginLoanMapFactory.add(
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In.Origins, OID,
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LoanSetFactory.add(LoanSetFactory.getEmptySet(), LID)));
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}
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/// The destination origin's loan set is replaced by the source's.
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@ -814,7 +863,7 @@ public:
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OriginID SrcOID = F.getSrcOriginID();
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LoanSet SrcLoans = getLoans(In, SrcOID);
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return LoanPropagationLattice(
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Factory.OriginMapFactory.add(In.Origins, DestOID, SrcLoans));
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OriginLoanMapFactory.add(In.Origins, DestOID, SrcLoans));
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}
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LoanSet getLoans(OriginID OID, ProgramPoint P) {
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@ -825,7 +874,7 @@ private:
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LoanSet getLoans(Lattice L, OriginID OID) {
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if (auto *Loans = L.Origins.lookup(OID))
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return *Loans;
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return Factory.LoanSetFactory.getEmptySet();
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return LoanSetFactory.getEmptySet();
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}
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};
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@ -835,10 +884,11 @@ private:
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/// The dataflow lattice for tracking the set of expired loans.
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struct ExpiredLattice {
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LoanSet Expired;
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/// Map from an expired `LoanID` to the `ExpireFact` that made it expire.
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ExpiredLoanMap Expired;
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ExpiredLattice() : Expired(nullptr) {};
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explicit ExpiredLattice(LoanSet S) : Expired(S) {}
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explicit ExpiredLattice(ExpiredLoanMap M) : Expired(M) {}
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bool operator==(const ExpiredLattice &Other) const {
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return Expired == Other.Expired;
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@ -851,8 +901,8 @@ struct ExpiredLattice {
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OS << "ExpiredLattice State:\n";
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if (Expired.isEmpty())
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OS << " <empty>\n";
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for (const LoanID &LID : Expired)
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OS << " Loan " << LID << " is expired\n";
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for (const auto &[ID, _] : Expired)
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OS << " Loan " << ID << " is expired\n";
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}
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};
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@ -861,26 +911,31 @@ class ExpiredLoansAnalysis
|
||||
: public DataflowAnalysis<ExpiredLoansAnalysis, ExpiredLattice,
|
||||
Direction::Forward> {
|
||||
|
||||
LoanSet::Factory &Factory;
|
||||
ExpiredLoanMap::Factory &Factory;
|
||||
|
||||
public:
|
||||
ExpiredLoansAnalysis(const CFG &C, AnalysisDeclContext &AC, FactManager &F,
|
||||
LifetimeFactory &Factory)
|
||||
: DataflowAnalysis(C, AC, F), Factory(Factory.LoanSetFactory) {}
|
||||
: DataflowAnalysis(C, AC, F), Factory(Factory.ExpiredLoanMapFactory) {}
|
||||
|
||||
using Base::transfer;
|
||||
|
||||
StringRef getAnalysisName() const { return "ExpiredLoans"; }
|
||||
|
||||
Lattice getInitialState() { return Lattice(Factory.getEmptySet()); }
|
||||
Lattice getInitialState() { return Lattice(Factory.getEmptyMap()); }
|
||||
|
||||
/// Merges two lattices by taking the union of the expired loan sets.
|
||||
Lattice join(Lattice L1, Lattice L2) const {
|
||||
return Lattice(utils::join(L1.Expired, L2.Expired, Factory));
|
||||
/// Merges two lattices by taking the union of the two expired loans.
|
||||
Lattice join(Lattice L1, Lattice L2) {
|
||||
return Lattice(
|
||||
utils::join(L1.Expired, L2.Expired, Factory,
|
||||
// Take the last expiry fact to make this hermetic.
|
||||
[](const ExpireFact *F1, const ExpireFact *F2) {
|
||||
return F1->getExpiryLoc() > F2->getExpiryLoc() ? F1 : F2;
|
||||
}));
|
||||
}
|
||||
|
||||
Lattice transfer(Lattice In, const ExpireFact &F) {
|
||||
return Lattice(Factory.add(In.Expired, F.getLoanID()));
|
||||
return Lattice(Factory.add(In.Expired, F.getLoanID(), &F));
|
||||
}
|
||||
|
||||
// Removes the loan from the set of expired loans.
|
||||
@ -912,15 +967,116 @@ public:
|
||||
Lattice transfer(Lattice In, const IssueFact &F) {
|
||||
return Lattice(Factory.remove(In.Expired, F.getLoanID()));
|
||||
}
|
||||
|
||||
ExpiredLoanMap getExpiredLoans(ProgramPoint P) { return getState(P).Expired; }
|
||||
};
|
||||
|
||||
// ========================================================================= //
|
||||
// TODO:
|
||||
// - Modify loan expiry analysis to answer `bool isExpired(Loan L, Point P)`
|
||||
// - Modify origin liveness analysis to answer `bool isLive(Origin O, Point P)`
|
||||
// - Using the above three to perform the final error reporting.
|
||||
// Lifetime checker and Error reporter
|
||||
// ========================================================================= //
|
||||
|
||||
/// Struct to store the complete context for a potential lifetime violation.
|
||||
struct PendingWarning {
|
||||
SourceLocation ExpiryLoc; // Where the loan expired.
|
||||
const Expr *UseExpr; // Where the origin holding this loan was used.
|
||||
Confidence ConfidenceLevel;
|
||||
};
|
||||
|
||||
class LifetimeChecker {
|
||||
private:
|
||||
llvm::DenseMap<LoanID, PendingWarning> FinalWarningsMap;
|
||||
LoanPropagationAnalysis &LoanPropagation;
|
||||
ExpiredLoansAnalysis &ExpiredLoans;
|
||||
FactManager &FactMgr;
|
||||
AnalysisDeclContext &ADC;
|
||||
LifetimeSafetyReporter *Reporter;
|
||||
|
||||
public:
|
||||
LifetimeChecker(LoanPropagationAnalysis &LPA, ExpiredLoansAnalysis &ELA,
|
||||
FactManager &FM, AnalysisDeclContext &ADC,
|
||||
LifetimeSafetyReporter *Reporter)
|
||||
: LoanPropagation(LPA), ExpiredLoans(ELA), FactMgr(FM), ADC(ADC),
|
||||
Reporter(Reporter) {}
|
||||
|
||||
void run() {
|
||||
llvm::TimeTraceScope TimeProfile("LifetimeChecker");
|
||||
for (const CFGBlock *B : *ADC.getAnalysis<PostOrderCFGView>())
|
||||
for (const Fact *F : FactMgr.getFacts(B))
|
||||
if (const auto *UF = F->getAs<UseFact>())
|
||||
checkUse(UF);
|
||||
issuePendingWarnings();
|
||||
}
|
||||
|
||||
/// Checks for use-after-free errors for a given use of an Origin.
|
||||
///
|
||||
/// This method is called for each 'UseFact' identified in the control flow
|
||||
/// graph. It determines if the loans held by the used origin have expired
|
||||
/// at the point of use.
|
||||
void checkUse(const UseFact *UF) {
|
||||
|
||||
OriginID O = UF->getUsedOrigin();
|
||||
|
||||
// Get the set of loans that the origin might hold at this program point.
|
||||
LoanSet HeldLoans = LoanPropagation.getLoans(O, UF);
|
||||
|
||||
// Get the set of all loans that have expired at this program point.
|
||||
ExpiredLoanMap AllExpiredLoans = ExpiredLoans.getExpiredLoans(UF);
|
||||
|
||||
// If the pointer holds no loans or no loans have expired, there's nothing
|
||||
// to check.
|
||||
if (HeldLoans.isEmpty() || AllExpiredLoans.isEmpty())
|
||||
return;
|
||||
|
||||
// Identify loans that which have expired but are held by the pointer. Using
|
||||
// them is a use-after-free.
|
||||
llvm::SmallVector<LoanID> DefaultedLoans;
|
||||
// A definite UaF error occurs if all loans the origin might hold have
|
||||
// expired.
|
||||
bool IsDefiniteError = true;
|
||||
for (LoanID L : HeldLoans) {
|
||||
if (AllExpiredLoans.contains(L))
|
||||
DefaultedLoans.push_back(L);
|
||||
else
|
||||
// If at least one loan is not expired, this use is not a definite UaF.
|
||||
IsDefiniteError = false;
|
||||
}
|
||||
// If there are no defaulted loans, the use is safe.
|
||||
if (DefaultedLoans.empty())
|
||||
return;
|
||||
|
||||
// Determine the confidence level of the error (definite or maybe).
|
||||
Confidence CurrentConfidence =
|
||||
IsDefiniteError ? Confidence::Definite : Confidence::Maybe;
|
||||
|
||||
// For each expired loan, create a pending warning.
|
||||
for (LoanID DefaultedLoan : DefaultedLoans) {
|
||||
// If we already have a warning for this loan with a higher or equal
|
||||
// confidence, skip this one.
|
||||
if (FinalWarningsMap.count(DefaultedLoan) &&
|
||||
CurrentConfidence <= FinalWarningsMap[DefaultedLoan].ConfidenceLevel)
|
||||
continue;
|
||||
|
||||
auto *EF = AllExpiredLoans.lookup(DefaultedLoan);
|
||||
assert(EF && "Could not find ExpireFact for an expired loan.");
|
||||
|
||||
FinalWarningsMap[DefaultedLoan] = {/*ExpiryLoc=*/(*EF)->getExpiryLoc(),
|
||||
/*UseExpr=*/UF->getUseExpr(),
|
||||
/*ConfidenceLevel=*/CurrentConfidence};
|
||||
}
|
||||
}
|
||||
|
||||
void issuePendingWarnings() {
|
||||
if (!Reporter)
|
||||
return;
|
||||
for (const auto &[LID, Warning] : FinalWarningsMap) {
|
||||
const Loan &L = FactMgr.getLoanMgr().getLoan(LID);
|
||||
const Expr *IssueExpr = L.IssueExpr;
|
||||
Reporter->reportUseAfterFree(IssueExpr, Warning.UseExpr,
|
||||
Warning.ExpiryLoc, Warning.ConfidenceLevel);
|
||||
}
|
||||
}
|
||||
};
|
||||
|
||||
// ========================================================================= //
|
||||
// LifetimeSafetyAnalysis Class Implementation
|
||||
// ========================================================================= //
|
||||
@ -928,8 +1084,9 @@ public:
|
||||
// We need this here for unique_ptr with forward declared class.
|
||||
LifetimeSafetyAnalysis::~LifetimeSafetyAnalysis() = default;
|
||||
|
||||
LifetimeSafetyAnalysis::LifetimeSafetyAnalysis(AnalysisDeclContext &AC)
|
||||
: AC(AC), Factory(std::make_unique<LifetimeFactory>()),
|
||||
LifetimeSafetyAnalysis::LifetimeSafetyAnalysis(AnalysisDeclContext &AC,
|
||||
LifetimeSafetyReporter *Reporter)
|
||||
: AC(AC), Reporter(Reporter), Factory(std::make_unique<LifetimeFactory>()),
|
||||
FactMgr(std::make_unique<FactManager>()) {}
|
||||
|
||||
void LifetimeSafetyAnalysis::run() {
|
||||
@ -952,6 +1109,8 @@ void LifetimeSafetyAnalysis::run() {
|
||||
/// blocks; only Decls are visible. Therefore, loans in a block that
|
||||
/// never reach an Origin associated with a Decl can be safely dropped by
|
||||
/// the analysis.
|
||||
/// 3. Collapse ExpireFacts belonging to same source location into a single
|
||||
/// Fact.
|
||||
LoanPropagation =
|
||||
std::make_unique<LoanPropagationAnalysis>(Cfg, AC, *FactMgr, *Factory);
|
||||
LoanPropagation->run();
|
||||
@ -959,6 +1118,10 @@ void LifetimeSafetyAnalysis::run() {
|
||||
ExpiredLoans =
|
||||
std::make_unique<ExpiredLoansAnalysis>(Cfg, AC, *FactMgr, *Factory);
|
||||
ExpiredLoans->run();
|
||||
|
||||
LifetimeChecker Checker(*LoanPropagation, *ExpiredLoans, *FactMgr, AC,
|
||||
Reporter);
|
||||
Checker.run();
|
||||
}
|
||||
|
||||
LoanSet LifetimeSafetyAnalysis::getLoansAtPoint(OriginID OID,
|
||||
@ -967,9 +1130,13 @@ LoanSet LifetimeSafetyAnalysis::getLoansAtPoint(OriginID OID,
|
||||
return LoanPropagation->getLoans(OID, PP);
|
||||
}
|
||||
|
||||
LoanSet LifetimeSafetyAnalysis::getExpiredLoansAtPoint(ProgramPoint PP) const {
|
||||
std::vector<LoanID>
|
||||
LifetimeSafetyAnalysis::getExpiredLoansAtPoint(ProgramPoint PP) const {
|
||||
assert(ExpiredLoans && "ExpiredLoansAnalysis has not been run.");
|
||||
return ExpiredLoans->getState(PP).Expired;
|
||||
std::vector<LoanID> Result;
|
||||
for (const auto &pair : ExpiredLoans->getExpiredLoans(PP))
|
||||
Result.push_back(pair.first);
|
||||
return Result;
|
||||
}
|
||||
|
||||
std::optional<OriginID>
|
||||
@ -1009,8 +1176,9 @@ llvm::StringMap<ProgramPoint> LifetimeSafetyAnalysis::getTestPoints() const {
|
||||
}
|
||||
} // namespace internal
|
||||
|
||||
void runLifetimeSafetyAnalysis(AnalysisDeclContext &AC) {
|
||||
internal::LifetimeSafetyAnalysis Analysis(AC);
|
||||
void runLifetimeSafetyAnalysis(AnalysisDeclContext &AC,
|
||||
LifetimeSafetyReporter *Reporter) {
|
||||
internal::LifetimeSafetyAnalysis Analysis(AC, Reporter);
|
||||
Analysis.run();
|
||||
}
|
||||
} // namespace clang::lifetimes
|
||||
|
@ -2780,6 +2780,31 @@ public:
|
||||
}
|
||||
};
|
||||
|
||||
namespace clang::lifetimes {
|
||||
namespace {
|
||||
class LifetimeSafetyReporterImpl : public LifetimeSafetyReporter {
|
||||
|
||||
public:
|
||||
LifetimeSafetyReporterImpl(Sema &S) : S(S) {}
|
||||
|
||||
void reportUseAfterFree(const Expr *IssueExpr, const Expr *UseExpr,
|
||||
SourceLocation FreeLoc, Confidence C) override {
|
||||
S.Diag(IssueExpr->getExprLoc(),
|
||||
C == Confidence::Definite
|
||||
? diag::warn_lifetime_safety_loan_expires_permissive
|
||||
: diag::warn_lifetime_safety_loan_expires_strict)
|
||||
<< IssueExpr->getEndLoc();
|
||||
S.Diag(FreeLoc, diag::note_lifetime_safety_destroyed_here);
|
||||
S.Diag(UseExpr->getExprLoc(), diag::note_lifetime_safety_used_here)
|
||||
<< UseExpr->getEndLoc();
|
||||
}
|
||||
|
||||
private:
|
||||
Sema &S;
|
||||
};
|
||||
} // namespace
|
||||
} // namespace clang::lifetimes
|
||||
|
||||
void clang::sema::AnalysisBasedWarnings::IssueWarnings(
|
||||
TranslationUnitDecl *TU) {
|
||||
if (!TU)
|
||||
@ -3029,8 +3054,10 @@ void clang::sema::AnalysisBasedWarnings::IssueWarnings(
|
||||
// TODO: Enable lifetime safety analysis for other languages once it is
|
||||
// stable.
|
||||
if (EnableLifetimeSafetyAnalysis && S.getLangOpts().CPlusPlus) {
|
||||
if (AC.getCFG())
|
||||
lifetimes::runLifetimeSafetyAnalysis(AC);
|
||||
if (AC.getCFG()) {
|
||||
lifetimes::LifetimeSafetyReporterImpl LifetimeSafetyReporter(S);
|
||||
lifetimes::runLifetimeSafetyAnalysis(AC, &LifetimeSafetyReporter);
|
||||
}
|
||||
}
|
||||
// Check for violations of "called once" parameter properties.
|
||||
if (S.getLangOpts().ObjC && !S.getLangOpts().CPlusPlus &&
|
||||
|
273
clang/test/Sema/warn-lifetime-safety.cpp
Normal file
273
clang/test/Sema/warn-lifetime-safety.cpp
Normal file
@ -0,0 +1,273 @@
|
||||
// RUN: %clang_cc1 -fsyntax-only -fexperimental-lifetime-safety -Wexperimental-lifetime-safety -verify %s
|
||||
|
||||
struct MyObj {
|
||||
int id;
|
||||
~MyObj() {} // Non-trivial destructor
|
||||
MyObj operator+(MyObj);
|
||||
};
|
||||
|
||||
//===----------------------------------------------------------------------===//
|
||||
// Basic Definite Use-After-Free (-W...permissive)
|
||||
// These are cases where the pointer is guaranteed to be dangling at the use site.
|
||||
//===----------------------------------------------------------------------===//
|
||||
|
||||
void definite_simple_case() {
|
||||
MyObj* p;
|
||||
{
|
||||
MyObj s;
|
||||
p = &s; // expected-warning {{object whose reference is captured does not live long enough}}
|
||||
} // expected-note {{destroyed here}}
|
||||
(void)*p; // expected-note {{later used here}}
|
||||
}
|
||||
|
||||
void no_use_no_error() {
|
||||
MyObj* p;
|
||||
{
|
||||
MyObj s;
|
||||
p = &s;
|
||||
}
|
||||
}
|
||||
|
||||
void definite_pointer_chain() {
|
||||
MyObj* p;
|
||||
MyObj* q;
|
||||
{
|
||||
MyObj s;
|
||||
p = &s; // expected-warning {{does not live long enough}}
|
||||
q = p;
|
||||
} // expected-note {{destroyed here}}
|
||||
(void)*q; // expected-note {{later used here}}
|
||||
}
|
||||
|
||||
void definite_multiple_uses_one_warning() {
|
||||
MyObj* p;
|
||||
{
|
||||
MyObj s;
|
||||
p = &s; // expected-warning {{does not live long enough}}
|
||||
} // expected-note {{destroyed here}}
|
||||
(void)*p; // expected-note {{later used here}}
|
||||
// No second warning for the same loan.
|
||||
p->id = 1;
|
||||
MyObj* q = p;
|
||||
(void)*q;
|
||||
}
|
||||
|
||||
void definite_multiple_pointers() {
|
||||
MyObj *p, *q, *r;
|
||||
{
|
||||
MyObj s;
|
||||
p = &s; // expected-warning {{does not live long enough}}
|
||||
q = &s; // expected-warning {{does not live long enough}}
|
||||
r = &s; // expected-warning {{does not live long enough}}
|
||||
} // expected-note 3 {{destroyed here}}
|
||||
(void)*p; // expected-note {{later used here}}
|
||||
(void)*q; // expected-note {{later used here}}
|
||||
(void)*r; // expected-note {{later used here}}
|
||||
}
|
||||
|
||||
void definite_single_pointer_multiple_loans(bool cond) {
|
||||
MyObj *p;
|
||||
if (cond){
|
||||
MyObj s;
|
||||
p = &s; // expected-warning {{does not live long enough}}
|
||||
} // expected-note {{destroyed here}}
|
||||
else {
|
||||
MyObj t;
|
||||
p = &t; // expected-warning {{does not live long enough}}
|
||||
} // expected-note {{destroyed here}}
|
||||
(void)*p; // expected-note 2 {{later used here}}
|
||||
}
|
||||
|
||||
|
||||
//===----------------------------------------------------------------------===//
|
||||
// Potential (Maybe) Use-After-Free (-W...strict)
|
||||
// These are cases where the pointer *may* become dangling, depending on the path taken.
|
||||
//===----------------------------------------------------------------------===//
|
||||
|
||||
void potential_if_branch(bool cond) {
|
||||
MyObj safe;
|
||||
MyObj* p = &safe;
|
||||
if (cond) {
|
||||
MyObj temp;
|
||||
p = &temp; // expected-warning {{object whose reference is captured may not live long enough}}
|
||||
} // expected-note {{destroyed here}}
|
||||
(void)*p; // expected-note {{later used here}}
|
||||
}
|
||||
|
||||
// If all paths lead to a dangle, it becomes a definite error.
|
||||
void potential_becomes_definite(bool cond) {
|
||||
MyObj* p;
|
||||
if (cond) {
|
||||
MyObj temp1;
|
||||
p = &temp1; // expected-warning {{does not live long enough}}
|
||||
} // expected-note {{destroyed here}}
|
||||
else {
|
||||
MyObj temp2;
|
||||
p = &temp2; // expected-warning {{does not live long enough}}
|
||||
} // expected-note {{destroyed here}}
|
||||
(void)*p; // expected-note 2 {{later used here}}
|
||||
}
|
||||
|
||||
void definite_potential_together(bool cond) {
|
||||
MyObj safe;
|
||||
MyObj* p_maybe = &safe;
|
||||
MyObj* p_definite = nullptr;
|
||||
|
||||
{
|
||||
MyObj s;
|
||||
p_definite = &s; // expected-warning {{does not live long enough}}
|
||||
if (cond) {
|
||||
p_maybe = &s; // expected-warning {{may not live long enough}}
|
||||
}
|
||||
} // expected-note 2 {{destroyed here}}
|
||||
(void)*p_definite; // expected-note {{later used here}}
|
||||
(void)*p_maybe; // expected-note {{later used here}}
|
||||
}
|
||||
|
||||
void definite_overrides_potential(bool cond) {
|
||||
MyObj safe;
|
||||
MyObj* p;
|
||||
MyObj* q;
|
||||
{
|
||||
MyObj s;
|
||||
q = &s; // expected-warning {{does not live long enough}}
|
||||
p = q;
|
||||
} // expected-note {{destroyed here}}
|
||||
|
||||
if (cond) {
|
||||
// 'q' is conditionally "rescued". 'p' is not.
|
||||
q = &safe;
|
||||
}
|
||||
|
||||
// The use of 'p' is a definite error because it was never rescued.
|
||||
(void)*q;
|
||||
(void)*p; // expected-note {{later used here}}
|
||||
(void)*q;
|
||||
}
|
||||
|
||||
|
||||
//===----------------------------------------------------------------------===//
|
||||
// Control Flow Tests
|
||||
//===----------------------------------------------------------------------===//
|
||||
|
||||
void potential_for_loop_use_after_loop_body(MyObj safe) {
|
||||
MyObj* p = &safe;
|
||||
for (int i = 0; i < 1; ++i) {
|
||||
MyObj s;
|
||||
p = &s; // expected-warning {{may not live long enough}}
|
||||
} // expected-note {{destroyed here}}
|
||||
(void)*p; // expected-note {{later used here}}
|
||||
}
|
||||
|
||||
void potential_for_loop_use_before_loop_body(MyObj safe) {
|
||||
MyObj* p = &safe;
|
||||
for (int i = 0; i < 1; ++i) {
|
||||
(void)*p; // expected-note {{later used here}}
|
||||
MyObj s;
|
||||
p = &s; // expected-warning {{may not live long enough}}
|
||||
} // expected-note {{destroyed here}}
|
||||
(void)*p;
|
||||
}
|
||||
|
||||
void potential_loop_with_break(bool cond) {
|
||||
MyObj safe;
|
||||
MyObj* p = &safe;
|
||||
for (int i = 0; i < 10; ++i) {
|
||||
if (cond) {
|
||||
MyObj temp;
|
||||
p = &temp; // expected-warning {{may not live long enough}}
|
||||
break; // expected-note {{destroyed here}}
|
||||
}
|
||||
}
|
||||
(void)*p; // expected-note {{later used here}}
|
||||
}
|
||||
|
||||
void potential_multiple_expiry_of_same_loan(bool cond) {
|
||||
// Choose the last expiry location for the loan.
|
||||
MyObj safe;
|
||||
MyObj* p = &safe;
|
||||
for (int i = 0; i < 10; ++i) {
|
||||
MyObj unsafe;
|
||||
if (cond) {
|
||||
p = &unsafe; // expected-warning {{may not live long enough}}
|
||||
break;
|
||||
}
|
||||
} // expected-note {{destroyed here}}
|
||||
(void)*p; // expected-note {{later used here}}
|
||||
|
||||
p = &safe;
|
||||
for (int i = 0; i < 10; ++i) {
|
||||
MyObj unsafe;
|
||||
if (cond) {
|
||||
p = &unsafe; // expected-warning {{may not live long enough}}
|
||||
if (cond)
|
||||
break;
|
||||
}
|
||||
} // expected-note {{destroyed here}}
|
||||
(void)*p; // expected-note {{later used here}}
|
||||
|
||||
p = &safe;
|
||||
for (int i = 0; i < 10; ++i) {
|
||||
if (cond) {
|
||||
MyObj unsafe2;
|
||||
p = &unsafe2; // expected-warning {{may not live long enough}}
|
||||
break; // expected-note {{destroyed here}}
|
||||
}
|
||||
}
|
||||
(void)*p; // expected-note {{later used here}}
|
||||
}
|
||||
|
||||
void potential_switch(int mode) {
|
||||
MyObj safe;
|
||||
MyObj* p = &safe;
|
||||
switch (mode) {
|
||||
case 1: {
|
||||
MyObj temp;
|
||||
p = &temp; // expected-warning {{object whose reference is captured may not live long enough}}
|
||||
break; // expected-note {{destroyed here}}
|
||||
}
|
||||
case 2: {
|
||||
p = &safe; // This path is okay.
|
||||
break;
|
||||
}
|
||||
}
|
||||
(void)*p; // expected-note {{later used here}}
|
||||
}
|
||||
|
||||
void definite_switch(int mode) {
|
||||
MyObj safe;
|
||||
MyObj* p = &safe;
|
||||
// All cases are UaF --> Definite error.
|
||||
switch (mode) {
|
||||
case 1: {
|
||||
MyObj temp1;
|
||||
p = &temp1; // expected-warning {{does not live long enough}}
|
||||
break; // expected-note {{destroyed here}}
|
||||
}
|
||||
case 2: {
|
||||
MyObj temp2;
|
||||
p = &temp2; // expected-warning {{does not live long enough}}
|
||||
break; // expected-note {{destroyed here}}
|
||||
}
|
||||
default: {
|
||||
MyObj temp2;
|
||||
p = &temp2; // expected-warning {{does not live long enough}}
|
||||
break; // expected-note {{destroyed here}}
|
||||
}
|
||||
}
|
||||
(void)*p; // expected-note 3 {{later used here}}
|
||||
}
|
||||
|
||||
//===----------------------------------------------------------------------===//
|
||||
// No-Error Cases
|
||||
//===----------------------------------------------------------------------===//
|
||||
void no_error_if_dangle_then_rescue() {
|
||||
MyObj safe;
|
||||
MyObj* p;
|
||||
{
|
||||
MyObj temp;
|
||||
p = &temp; // p is temporarily dangling.
|
||||
}
|
||||
p = &safe; // p is "rescued" before use.
|
||||
(void)*p; // This is safe.
|
||||
}
|
@ -33,7 +33,9 @@ public:
|
||||
)";
|
||||
FullCode += Code.str();
|
||||
|
||||
AST = std::make_unique<clang::TestAST>(FullCode);
|
||||
Inputs = TestInputs(FullCode);
|
||||
Inputs.Language = TestLanguage::Lang_CXX20;
|
||||
AST = std::make_unique<clang::TestAST>(Inputs);
|
||||
ASTCtx = &AST->context();
|
||||
|
||||
// Find the target function using AST matchers.
|
||||
@ -51,7 +53,7 @@ public:
|
||||
BuildOptions.AddTemporaryDtors = true;
|
||||
|
||||
// Run the main analysis.
|
||||
Analysis = std::make_unique<LifetimeSafetyAnalysis>(*AnalysisCtx);
|
||||
Analysis = std::make_unique<LifetimeSafetyAnalysis>(*AnalysisCtx, nullptr);
|
||||
Analysis->run();
|
||||
|
||||
AnnotationToPointMap = Analysis->getTestPoints();
|
||||
@ -70,6 +72,7 @@ public:
|
||||
}
|
||||
|
||||
private:
|
||||
TestInputs Inputs;
|
||||
std::unique_ptr<TestAST> AST;
|
||||
ASTContext *ASTCtx = nullptr;
|
||||
std::unique_ptr<AnalysisDeclContext> AnalysisCtx;
|
||||
@ -118,11 +121,13 @@ public:
|
||||
return Analysis.getLoansAtPoint(OID, PP);
|
||||
}
|
||||
|
||||
std::optional<LoanSet> getExpiredLoansAtPoint(llvm::StringRef Annotation) {
|
||||
std::optional<llvm::DenseSet<LoanID>>
|
||||
getExpiredLoansAtPoint(llvm::StringRef Annotation) {
|
||||
ProgramPoint PP = Runner.getProgramPoint(Annotation);
|
||||
if (!PP)
|
||||
return std::nullopt;
|
||||
return Analysis.getExpiredLoansAtPoint(PP);
|
||||
auto Expired = Analysis.getExpiredLoansAtPoint(PP);
|
||||
return llvm::DenseSet<LoanID>{Expired.begin(), Expired.end()};
|
||||
}
|
||||
|
||||
private:
|
||||
|
Loading…
x
Reference in New Issue
Block a user