xref: /llvm-project/clang/lib/StaticAnalyzer/Checkers/MallocChecker.cpp (revision 6cd16c5152afcf00b3097d1326301e84dae55c33)
1 //=== MallocChecker.cpp - A malloc/free checker -------------------*- C++ -*--//
2 //
3 //                     The LLVM Compiler Infrastructure
4 //
5 // This file is distributed under the University of Illinois Open Source
6 // License. See LICENSE.TXT for details.
7 //
8 //===----------------------------------------------------------------------===//
9 //
10 // This file defines malloc/free checker, which checks for potential memory
11 // leaks, double free, and use-after-free problems.
12 //
13 //===----------------------------------------------------------------------===//
14 
15 #include "ClangSACheckers.h"
16 #include "InterCheckerAPI.h"
17 #include "clang/StaticAnalyzer/Core/Checker.h"
18 #include "clang/StaticAnalyzer/Core/CheckerManager.h"
19 #include "clang/StaticAnalyzer/Core/PathSensitive/CheckerContext.h"
20 #include "clang/StaticAnalyzer/Core/BugReporter/BugType.h"
21 #include "clang/StaticAnalyzer/Core/PathSensitive/Calls.h"
22 #include "clang/StaticAnalyzer/Core/PathSensitive/ProgramState.h"
23 #include "clang/StaticAnalyzer/Core/PathSensitive/ProgramStateTrait.h"
24 #include "clang/StaticAnalyzer/Core/PathSensitive/SymbolManager.h"
25 #include "clang/Basic/SourceManager.h"
26 #include "llvm/ADT/ImmutableMap.h"
27 #include "llvm/ADT/SmallString.h"
28 #include "llvm/ADT/STLExtras.h"
29 #include <climits>
30 
31 using namespace clang;
32 using namespace ento;
33 
34 namespace {
35 
36 class RefState {
37   enum Kind { // Reference to allocated memory.
38               Allocated,
39               // Reference to released/freed memory.
40               Released,
41               // Reference to escaped memory - no assumptions can be made of
42               // the state after the reference escapes.
43               Escaped,
44               // The responsibility for freeing resources has transfered from
45               // this reference. A relinquished symbol should not be freed.
46               Relinquished } K;
47   const Stmt *S;
48 
49 public:
50   RefState(Kind k, const Stmt *s) : K(k), S(s) {}
51 
52   bool isAllocated() const { return K == Allocated; }
53   bool isReleased() const { return K == Released; }
54   bool isRelinquished() const { return K == Relinquished; }
55 
56   const Stmt *getStmt() const { return S; }
57 
58   bool operator==(const RefState &X) const {
59     return K == X.K && S == X.S;
60   }
61 
62   static RefState getAllocated(const Stmt *s) {
63     return RefState(Allocated, s);
64   }
65   static RefState getReleased(const Stmt *s) { return RefState(Released, s); }
66   static RefState getEscaped(const Stmt *s) { return RefState(Escaped, s); }
67   static RefState getRelinquished(const Stmt *s) {
68     return RefState(Relinquished, s);
69   }
70 
71   void Profile(llvm::FoldingSetNodeID &ID) const {
72     ID.AddInteger(K);
73     ID.AddPointer(S);
74   }
75 };
76 
77 struct ReallocPair {
78   SymbolRef ReallocatedSym;
79   bool IsFreeOnFailure;
80   ReallocPair(SymbolRef S, bool F) : ReallocatedSym(S), IsFreeOnFailure(F) {}
81   void Profile(llvm::FoldingSetNodeID &ID) const {
82     ID.AddInteger(IsFreeOnFailure);
83     ID.AddPointer(ReallocatedSym);
84   }
85   bool operator==(const ReallocPair &X) const {
86     return ReallocatedSym == X.ReallocatedSym &&
87            IsFreeOnFailure == X.IsFreeOnFailure;
88   }
89 };
90 
91 typedef std::pair<const Stmt*, const MemRegion*> LeakInfo;
92 
93 class MallocChecker : public Checker<check::DeadSymbols,
94                                      check::EndPath,
95                                      check::PreStmt<ReturnStmt>,
96                                      check::PreStmt<CallExpr>,
97                                      check::PostStmt<CallExpr>,
98                                      check::PostStmt<BlockExpr>,
99                                      check::PreObjCMessage,
100                                      check::Location,
101                                      check::Bind,
102                                      eval::Assume,
103                                      check::RegionChanges>
104 {
105   mutable OwningPtr<BugType> BT_DoubleFree;
106   mutable OwningPtr<BugType> BT_Leak;
107   mutable OwningPtr<BugType> BT_UseFree;
108   mutable OwningPtr<BugType> BT_BadFree;
109   mutable IdentifierInfo *II_malloc, *II_free, *II_realloc, *II_calloc,
110                          *II_valloc, *II_reallocf, *II_strndup, *II_strdup;
111 
112 public:
113   MallocChecker() : II_malloc(0), II_free(0), II_realloc(0), II_calloc(0),
114                     II_valloc(0), II_reallocf(0), II_strndup(0), II_strdup(0) {}
115 
116   /// In pessimistic mode, the checker assumes that it does not know which
117   /// functions might free the memory.
118   struct ChecksFilter {
119     DefaultBool CMallocPessimistic;
120     DefaultBool CMallocOptimistic;
121   };
122 
123   ChecksFilter Filter;
124 
125   void checkPreStmt(const CallExpr *S, CheckerContext &C) const;
126   void checkPostStmt(const CallExpr *CE, CheckerContext &C) const;
127   void checkPreObjCMessage(const ObjCMethodCall &Call, CheckerContext &C) const;
128   void checkPostStmt(const BlockExpr *BE, CheckerContext &C) const;
129   void checkDeadSymbols(SymbolReaper &SymReaper, CheckerContext &C) const;
130   void checkEndPath(CheckerContext &C) const;
131   void checkPreStmt(const ReturnStmt *S, CheckerContext &C) const;
132   ProgramStateRef evalAssume(ProgramStateRef state, SVal Cond,
133                             bool Assumption) const;
134   void checkLocation(SVal l, bool isLoad, const Stmt *S,
135                      CheckerContext &C) const;
136   void checkBind(SVal location, SVal val, const Stmt*S,
137                  CheckerContext &C) const;
138   ProgramStateRef
139   checkRegionChanges(ProgramStateRef state,
140                      const StoreManager::InvalidatedSymbols *invalidated,
141                      ArrayRef<const MemRegion *> ExplicitRegions,
142                      ArrayRef<const MemRegion *> Regions,
143                      const CallEvent *Call) const;
144   bool wantsRegionChangeUpdate(ProgramStateRef state) const {
145     return true;
146   }
147 
148   void printState(raw_ostream &Out, ProgramStateRef State,
149                   const char *NL, const char *Sep) const;
150 
151 private:
152   void initIdentifierInfo(ASTContext &C) const;
153 
154   /// Check if this is one of the functions which can allocate/reallocate memory
155   /// pointed to by one of its arguments.
156   bool isMemFunction(const FunctionDecl *FD, ASTContext &C) const;
157   bool isFreeFunction(const FunctionDecl *FD, ASTContext &C) const;
158   bool isAllocationFunction(const FunctionDecl *FD, ASTContext &C) const;
159 
160   static ProgramStateRef MallocMemReturnsAttr(CheckerContext &C,
161                                               const CallExpr *CE,
162                                               const OwnershipAttr* Att);
163   static ProgramStateRef MallocMemAux(CheckerContext &C, const CallExpr *CE,
164                                      const Expr *SizeEx, SVal Init,
165                                      ProgramStateRef state) {
166     return MallocMemAux(C, CE,
167                         state->getSVal(SizeEx, C.getLocationContext()),
168                         Init, state);
169   }
170 
171   static ProgramStateRef MallocMemAux(CheckerContext &C, const CallExpr *CE,
172                                      SVal SizeEx, SVal Init,
173                                      ProgramStateRef state);
174 
175   /// Update the RefState to reflect the new memory allocation.
176   static ProgramStateRef MallocUpdateRefState(CheckerContext &C,
177                                               const CallExpr *CE,
178                                               ProgramStateRef state);
179 
180   ProgramStateRef FreeMemAttr(CheckerContext &C, const CallExpr *CE,
181                               const OwnershipAttr* Att) const;
182   ProgramStateRef FreeMemAux(CheckerContext &C, const CallExpr *CE,
183                              ProgramStateRef state, unsigned Num,
184                              bool Hold) const;
185   ProgramStateRef FreeMemAux(CheckerContext &C, const Expr *Arg,
186                              const Expr *ParentExpr,
187                              ProgramStateRef state,
188                              bool Hold) const;
189 
190   ProgramStateRef ReallocMem(CheckerContext &C, const CallExpr *CE,
191                              bool FreesMemOnFailure) const;
192   static ProgramStateRef CallocMem(CheckerContext &C, const CallExpr *CE);
193 
194   ///\brief Check if the memory associated with this symbol was released.
195   bool isReleased(SymbolRef Sym, CheckerContext &C) const;
196 
197   bool checkEscape(SymbolRef Sym, const Stmt *S, CheckerContext &C) const;
198   bool checkUseAfterFree(SymbolRef Sym, CheckerContext &C,
199                          const Stmt *S = 0) const;
200 
201   /// Check if the function is not known to us. So, for example, we could
202   /// conservatively assume it can free/reallocate it's pointer arguments.
203   bool doesNotFreeMemory(const CallEvent *Call,
204                          ProgramStateRef State) const;
205 
206   static bool SummarizeValue(raw_ostream &os, SVal V);
207   static bool SummarizeRegion(raw_ostream &os, const MemRegion *MR);
208   void ReportBadFree(CheckerContext &C, SVal ArgVal, SourceRange range) const;
209 
210   /// Find the location of the allocation for Sym on the path leading to the
211   /// exploded node N.
212   LeakInfo getAllocationSite(const ExplodedNode *N, SymbolRef Sym,
213                              CheckerContext &C) const;
214 
215   void reportLeak(SymbolRef Sym, ExplodedNode *N, CheckerContext &C) const;
216 
217   /// The bug visitor which allows us to print extra diagnostics along the
218   /// BugReport path. For example, showing the allocation site of the leaked
219   /// region.
220   class MallocBugVisitor : public BugReporterVisitorImpl<MallocBugVisitor> {
221   protected:
222     enum NotificationMode {
223       Normal,
224       ReallocationFailed
225     };
226 
227     // The allocated region symbol tracked by the main analysis.
228     SymbolRef Sym;
229 
230     // The mode we are in, i.e. what kind of diagnostics will be emitted.
231     NotificationMode Mode;
232 
233     // A symbol from when the primary region should have been reallocated.
234     SymbolRef FailedReallocSymbol;
235 
236     bool IsLeak;
237 
238   public:
239     MallocBugVisitor(SymbolRef S, bool isLeak = false)
240        : Sym(S), Mode(Normal), FailedReallocSymbol(0), IsLeak(isLeak) {}
241 
242     virtual ~MallocBugVisitor() {}
243 
244     void Profile(llvm::FoldingSetNodeID &ID) const {
245       static int X = 0;
246       ID.AddPointer(&X);
247       ID.AddPointer(Sym);
248     }
249 
250     inline bool isAllocated(const RefState *S, const RefState *SPrev,
251                             const Stmt *Stmt) {
252       // Did not track -> allocated. Other state (released) -> allocated.
253       return (Stmt && isa<CallExpr>(Stmt) &&
254               (S && S->isAllocated()) && (!SPrev || !SPrev->isAllocated()));
255     }
256 
257     inline bool isReleased(const RefState *S, const RefState *SPrev,
258                            const Stmt *Stmt) {
259       // Did not track -> released. Other state (allocated) -> released.
260       return (Stmt && isa<CallExpr>(Stmt) &&
261               (S && S->isReleased()) && (!SPrev || !SPrev->isReleased()));
262     }
263 
264     inline bool isRelinquished(const RefState *S, const RefState *SPrev,
265                                const Stmt *Stmt) {
266       // Did not track -> relinquished. Other state (allocated) -> relinquished.
267       return (Stmt && (isa<CallExpr>(Stmt) || isa<ObjCMessageExpr>(Stmt) ||
268                                               isa<ObjCPropertyRefExpr>(Stmt)) &&
269               (S && S->isRelinquished()) &&
270               (!SPrev || !SPrev->isRelinquished()));
271     }
272 
273     inline bool isReallocFailedCheck(const RefState *S, const RefState *SPrev,
274                                      const Stmt *Stmt) {
275       // If the expression is not a call, and the state change is
276       // released -> allocated, it must be the realloc return value
277       // check. If we have to handle more cases here, it might be cleaner just
278       // to track this extra bit in the state itself.
279       return ((!Stmt || !isa<CallExpr>(Stmt)) &&
280               (S && S->isAllocated()) && (SPrev && !SPrev->isAllocated()));
281     }
282 
283     PathDiagnosticPiece *VisitNode(const ExplodedNode *N,
284                                    const ExplodedNode *PrevN,
285                                    BugReporterContext &BRC,
286                                    BugReport &BR);
287 
288     PathDiagnosticPiece* getEndPath(BugReporterContext &BRC,
289                                     const ExplodedNode *EndPathNode,
290                                     BugReport &BR) {
291       if (!IsLeak)
292         return 0;
293 
294       PathDiagnosticLocation L =
295         PathDiagnosticLocation::createEndOfPath(EndPathNode,
296                                                 BRC.getSourceManager());
297       // Do not add the statement itself as a range in case of leak.
298       return new PathDiagnosticEventPiece(L, BR.getDescription(), false);
299     }
300 
301   private:
302     class StackHintGeneratorForReallocationFailed
303         : public StackHintGeneratorForSymbol {
304     public:
305       StackHintGeneratorForReallocationFailed(SymbolRef S, StringRef M)
306         : StackHintGeneratorForSymbol(S, M) {}
307 
308       virtual std::string getMessageForArg(const Expr *ArgE, unsigned ArgIndex) {
309         SmallString<200> buf;
310         llvm::raw_svector_ostream os(buf);
311 
312         os << "Reallocation of ";
313         // Printed parameters start at 1, not 0.
314         printOrdinal(++ArgIndex, os);
315         os << " parameter failed";
316 
317         return os.str();
318       }
319 
320       virtual std::string getMessageForReturn(const CallExpr *CallExpr) {
321         return "Reallocation of returned value failed";
322       }
323     };
324   };
325 };
326 } // end anonymous namespace
327 
328 typedef llvm::ImmutableMap<SymbolRef, RefState> RegionStateTy;
329 typedef llvm::ImmutableMap<SymbolRef, ReallocPair > ReallocMap;
330 class RegionState {};
331 class ReallocPairs {};
332 namespace clang {
333 namespace ento {
334   template <>
335   struct ProgramStateTrait<RegionState>
336     : public ProgramStatePartialTrait<RegionStateTy> {
337     static void *GDMIndex() { static int x; return &x; }
338   };
339 
340   template <>
341   struct ProgramStateTrait<ReallocPairs>
342     : public ProgramStatePartialTrait<ReallocMap> {
343     static void *GDMIndex() { static int x; return &x; }
344   };
345 }
346 }
347 
348 namespace {
349 class StopTrackingCallback : public SymbolVisitor {
350   ProgramStateRef state;
351 public:
352   StopTrackingCallback(ProgramStateRef st) : state(st) {}
353   ProgramStateRef getState() const { return state; }
354 
355   bool VisitSymbol(SymbolRef sym) {
356     state = state->remove<RegionState>(sym);
357     return true;
358   }
359 };
360 } // end anonymous namespace
361 
362 void MallocChecker::initIdentifierInfo(ASTContext &Ctx) const {
363   if (II_malloc)
364     return;
365   II_malloc = &Ctx.Idents.get("malloc");
366   II_free = &Ctx.Idents.get("free");
367   II_realloc = &Ctx.Idents.get("realloc");
368   II_reallocf = &Ctx.Idents.get("reallocf");
369   II_calloc = &Ctx.Idents.get("calloc");
370   II_valloc = &Ctx.Idents.get("valloc");
371   II_strdup = &Ctx.Idents.get("strdup");
372   II_strndup = &Ctx.Idents.get("strndup");
373 }
374 
375 bool MallocChecker::isMemFunction(const FunctionDecl *FD, ASTContext &C) const {
376   if (isFreeFunction(FD, C))
377     return true;
378 
379   if (isAllocationFunction(FD, C))
380     return true;
381 
382   return false;
383 }
384 
385 bool MallocChecker::isAllocationFunction(const FunctionDecl *FD,
386                                          ASTContext &C) const {
387   if (!FD)
388     return false;
389 
390   if (FD->getKind() == Decl::Function) {
391     IdentifierInfo *FunI = FD->getIdentifier();
392     initIdentifierInfo(C);
393 
394     if (FunI == II_malloc || FunI == II_realloc ||
395         FunI == II_reallocf || FunI == II_calloc || FunI == II_valloc ||
396         FunI == II_strdup || FunI == II_strndup)
397       return true;
398   }
399 
400   if (Filter.CMallocOptimistic && FD->hasAttrs())
401     for (specific_attr_iterator<OwnershipAttr>
402            i = FD->specific_attr_begin<OwnershipAttr>(),
403            e = FD->specific_attr_end<OwnershipAttr>();
404            i != e; ++i)
405       if ((*i)->getOwnKind() == OwnershipAttr::Returns)
406         return true;
407   return false;
408 }
409 
410 bool MallocChecker::isFreeFunction(const FunctionDecl *FD, ASTContext &C) const {
411   if (!FD)
412     return false;
413 
414   if (FD->getKind() == Decl::Function) {
415     IdentifierInfo *FunI = FD->getIdentifier();
416     initIdentifierInfo(C);
417 
418     if (FunI == II_free || FunI == II_realloc || FunI == II_reallocf)
419       return true;
420   }
421 
422   if (Filter.CMallocOptimistic && FD->hasAttrs())
423     for (specific_attr_iterator<OwnershipAttr>
424            i = FD->specific_attr_begin<OwnershipAttr>(),
425            e = FD->specific_attr_end<OwnershipAttr>();
426            i != e; ++i)
427       if ((*i)->getOwnKind() == OwnershipAttr::Takes ||
428           (*i)->getOwnKind() == OwnershipAttr::Holds)
429         return true;
430   return false;
431 }
432 
433 void MallocChecker::checkPostStmt(const CallExpr *CE, CheckerContext &C) const {
434   const FunctionDecl *FD = C.getCalleeDecl(CE);
435   if (!FD)
436     return;
437 
438   ProgramStateRef State = C.getState();
439 
440   if (FD->getKind() == Decl::Function) {
441     initIdentifierInfo(C.getASTContext());
442     IdentifierInfo *FunI = FD->getIdentifier();
443 
444     if (FunI == II_malloc || FunI == II_valloc) {
445       if (CE->getNumArgs() < 1)
446         return;
447       State = MallocMemAux(C, CE, CE->getArg(0), UndefinedVal(), State);
448     } else if (FunI == II_realloc) {
449       State = ReallocMem(C, CE, false);
450     } else if (FunI == II_reallocf) {
451       State = ReallocMem(C, CE, true);
452     } else if (FunI == II_calloc) {
453       State = CallocMem(C, CE);
454     } else if (FunI == II_free) {
455       State = FreeMemAux(C, CE, State, 0, false);
456     } else if (FunI == II_strdup) {
457       State = MallocUpdateRefState(C, CE, State);
458     } else if (FunI == II_strndup) {
459       State = MallocUpdateRefState(C, CE, State);
460     }
461   }
462 
463   if (Filter.CMallocOptimistic) {
464     // Check all the attributes, if there are any.
465     // There can be multiple of these attributes.
466     if (FD->hasAttrs())
467       for (specific_attr_iterator<OwnershipAttr>
468           i = FD->specific_attr_begin<OwnershipAttr>(),
469           e = FD->specific_attr_end<OwnershipAttr>();
470           i != e; ++i) {
471         switch ((*i)->getOwnKind()) {
472         case OwnershipAttr::Returns:
473           State = MallocMemReturnsAttr(C, CE, *i);
474           break;
475         case OwnershipAttr::Takes:
476         case OwnershipAttr::Holds:
477           State = FreeMemAttr(C, CE, *i);
478           break;
479         }
480       }
481   }
482   C.addTransition(State);
483 }
484 
485 static bool isFreeWhenDoneSetToZero(const ObjCMethodCall &Call) {
486   Selector S = Call.getSelector();
487   for (unsigned i = 1; i < S.getNumArgs(); ++i)
488     if (S.getNameForSlot(i).equals("freeWhenDone"))
489       if (Call.getArgSVal(i).isConstant(0))
490         return true;
491 
492   return false;
493 }
494 
495 void MallocChecker::checkPreObjCMessage(const ObjCMethodCall &Call,
496                                         CheckerContext &C) const {
497   // If the first selector is dataWithBytesNoCopy, assume that the memory will
498   // be released with 'free' by the new object.
499   // Ex:  [NSData dataWithBytesNoCopy:bytes length:10];
500   // Unless 'freeWhenDone' param set to 0.
501   // TODO: Check that the memory was allocated with malloc.
502   Selector S = Call.getSelector();
503   if ((S.getNameForSlot(0) == "dataWithBytesNoCopy" ||
504        S.getNameForSlot(0) == "initWithBytesNoCopy" ||
505        S.getNameForSlot(0) == "initWithCharactersNoCopy") &&
506       !isFreeWhenDoneSetToZero(Call)){
507     unsigned int argIdx  = 0;
508     C.addTransition(FreeMemAux(C, Call.getArgExpr(argIdx),
509                     Call.getOriginExpr(), C.getState(), true));
510   }
511 }
512 
513 ProgramStateRef MallocChecker::MallocMemReturnsAttr(CheckerContext &C,
514                                                     const CallExpr *CE,
515                                                     const OwnershipAttr* Att) {
516   if (Att->getModule() != "malloc")
517     return 0;
518 
519   OwnershipAttr::args_iterator I = Att->args_begin(), E = Att->args_end();
520   if (I != E) {
521     return MallocMemAux(C, CE, CE->getArg(*I), UndefinedVal(), C.getState());
522   }
523   return MallocMemAux(C, CE, UnknownVal(), UndefinedVal(), C.getState());
524 }
525 
526 ProgramStateRef MallocChecker::MallocMemAux(CheckerContext &C,
527                                            const CallExpr *CE,
528                                            SVal Size, SVal Init,
529                                            ProgramStateRef state) {
530 
531   // Bind the return value to the symbolic value from the heap region.
532   // TODO: We could rewrite post visit to eval call; 'malloc' does not have
533   // side effects other than what we model here.
534   unsigned Count = C.getCurrentBlockCount();
535   SValBuilder &svalBuilder = C.getSValBuilder();
536   const LocationContext *LCtx = C.getPredecessor()->getLocationContext();
537   DefinedSVal RetVal =
538     cast<DefinedSVal>(svalBuilder.getConjuredHeapSymbolVal(CE, LCtx, Count));
539   state = state->BindExpr(CE, C.getLocationContext(), RetVal);
540 
541   // We expect the malloc functions to return a pointer.
542   if (!isa<Loc>(RetVal))
543     return 0;
544 
545   // Fill the region with the initialization value.
546   state = state->bindDefault(RetVal, Init);
547 
548   // Set the region's extent equal to the Size parameter.
549   const SymbolicRegion *R =
550       dyn_cast_or_null<SymbolicRegion>(RetVal.getAsRegion());
551   if (!R)
552     return 0;
553   if (isa<DefinedOrUnknownSVal>(Size)) {
554     SValBuilder &svalBuilder = C.getSValBuilder();
555     DefinedOrUnknownSVal Extent = R->getExtent(svalBuilder);
556     DefinedOrUnknownSVal DefinedSize = cast<DefinedOrUnknownSVal>(Size);
557     DefinedOrUnknownSVal extentMatchesSize =
558         svalBuilder.evalEQ(state, Extent, DefinedSize);
559 
560     state = state->assume(extentMatchesSize, true);
561     assert(state);
562   }
563 
564   return MallocUpdateRefState(C, CE, state);
565 }
566 
567 ProgramStateRef MallocChecker::MallocUpdateRefState(CheckerContext &C,
568                                                     const CallExpr *CE,
569                                                     ProgramStateRef state) {
570   // Get the return value.
571   SVal retVal = state->getSVal(CE, C.getLocationContext());
572 
573   // We expect the malloc functions to return a pointer.
574   if (!isa<Loc>(retVal))
575     return 0;
576 
577   SymbolRef Sym = retVal.getAsLocSymbol();
578   assert(Sym);
579 
580   // Set the symbol's state to Allocated.
581   return state->set<RegionState>(Sym, RefState::getAllocated(CE));
582 
583 }
584 
585 ProgramStateRef MallocChecker::FreeMemAttr(CheckerContext &C,
586                                            const CallExpr *CE,
587                                            const OwnershipAttr* Att) const {
588   if (Att->getModule() != "malloc")
589     return 0;
590 
591   ProgramStateRef State = C.getState();
592 
593   for (OwnershipAttr::args_iterator I = Att->args_begin(), E = Att->args_end();
594        I != E; ++I) {
595     ProgramStateRef StateI = FreeMemAux(C, CE, State, *I,
596                                Att->getOwnKind() == OwnershipAttr::Holds);
597     if (StateI)
598       State = StateI;
599   }
600   return State;
601 }
602 
603 ProgramStateRef MallocChecker::FreeMemAux(CheckerContext &C,
604                                           const CallExpr *CE,
605                                           ProgramStateRef state,
606                                           unsigned Num,
607                                           bool Hold) const {
608   if (CE->getNumArgs() < (Num + 1))
609     return 0;
610 
611   return FreeMemAux(C, CE->getArg(Num), CE, state, Hold);
612 }
613 
614 ProgramStateRef MallocChecker::FreeMemAux(CheckerContext &C,
615                                           const Expr *ArgExpr,
616                                           const Expr *ParentExpr,
617                                           ProgramStateRef state,
618                                           bool Hold) const {
619 
620   SVal ArgVal = state->getSVal(ArgExpr, C.getLocationContext());
621   if (!isa<DefinedOrUnknownSVal>(ArgVal))
622     return 0;
623   DefinedOrUnknownSVal location = cast<DefinedOrUnknownSVal>(ArgVal);
624 
625   // Check for null dereferences.
626   if (!isa<Loc>(location))
627     return 0;
628 
629   // The explicit NULL case, no operation is performed.
630   ProgramStateRef notNullState, nullState;
631   llvm::tie(notNullState, nullState) = state->assume(location);
632   if (nullState && !notNullState)
633     return 0;
634 
635   // Unknown values could easily be okay
636   // Undefined values are handled elsewhere
637   if (ArgVal.isUnknownOrUndef())
638     return 0;
639 
640   const MemRegion *R = ArgVal.getAsRegion();
641 
642   // Nonlocs can't be freed, of course.
643   // Non-region locations (labels and fixed addresses) also shouldn't be freed.
644   if (!R) {
645     ReportBadFree(C, ArgVal, ArgExpr->getSourceRange());
646     return 0;
647   }
648 
649   R = R->StripCasts();
650 
651   // Blocks might show up as heap data, but should not be free()d
652   if (isa<BlockDataRegion>(R)) {
653     ReportBadFree(C, ArgVal, ArgExpr->getSourceRange());
654     return 0;
655   }
656 
657   const MemSpaceRegion *MS = R->getMemorySpace();
658 
659   // Parameters, locals, statics, and globals shouldn't be freed.
660   if (!(isa<UnknownSpaceRegion>(MS) || isa<HeapSpaceRegion>(MS))) {
661     // FIXME: at the time this code was written, malloc() regions were
662     // represented by conjured symbols, which are all in UnknownSpaceRegion.
663     // This means that there isn't actually anything from HeapSpaceRegion
664     // that should be freed, even though we allow it here.
665     // Of course, free() can work on memory allocated outside the current
666     // function, so UnknownSpaceRegion is always a possibility.
667     // False negatives are better than false positives.
668 
669     ReportBadFree(C, ArgVal, ArgExpr->getSourceRange());
670     return 0;
671   }
672 
673   const SymbolicRegion *SR = dyn_cast<SymbolicRegion>(R);
674   // Various cases could lead to non-symbol values here.
675   // For now, ignore them.
676   if (!SR)
677     return 0;
678 
679   SymbolRef Sym = SR->getSymbol();
680   const RefState *RS = state->get<RegionState>(Sym);
681 
682   // If the symbol has not been tracked, return. This is possible when free() is
683   // called on a pointer that does not get its pointee directly from malloc().
684   // Full support of this requires inter-procedural analysis.
685   if (!RS)
686     return 0;
687 
688   // Check double free.
689   if (RS->isReleased() || RS->isRelinquished()) {
690     if (ExplodedNode *N = C.generateSink()) {
691       if (!BT_DoubleFree)
692         BT_DoubleFree.reset(
693           new BugType("Double free", "Memory Error"));
694       BugReport *R = new BugReport(*BT_DoubleFree,
695         (RS->isReleased() ? "Attempt to free released memory" :
696                             "Attempt to free non-owned memory"), N);
697       R->addRange(ArgExpr->getSourceRange());
698       R->markInteresting(Sym);
699       R->addVisitor(new MallocBugVisitor(Sym));
700       C.EmitReport(R);
701     }
702     return 0;
703   }
704 
705   // Normal free.
706   if (Hold)
707     return state->set<RegionState>(Sym, RefState::getRelinquished(ParentExpr));
708   return state->set<RegionState>(Sym, RefState::getReleased(ParentExpr));
709 }
710 
711 bool MallocChecker::SummarizeValue(raw_ostream &os, SVal V) {
712   if (nonloc::ConcreteInt *IntVal = dyn_cast<nonloc::ConcreteInt>(&V))
713     os << "an integer (" << IntVal->getValue() << ")";
714   else if (loc::ConcreteInt *ConstAddr = dyn_cast<loc::ConcreteInt>(&V))
715     os << "a constant address (" << ConstAddr->getValue() << ")";
716   else if (loc::GotoLabel *Label = dyn_cast<loc::GotoLabel>(&V))
717     os << "the address of the label '" << Label->getLabel()->getName() << "'";
718   else
719     return false;
720 
721   return true;
722 }
723 
724 bool MallocChecker::SummarizeRegion(raw_ostream &os,
725                                     const MemRegion *MR) {
726   switch (MR->getKind()) {
727   case MemRegion::FunctionTextRegionKind: {
728     const FunctionDecl *FD = cast<FunctionTextRegion>(MR)->getDecl();
729     if (FD)
730       os << "the address of the function '" << *FD << '\'';
731     else
732       os << "the address of a function";
733     return true;
734   }
735   case MemRegion::BlockTextRegionKind:
736     os << "block text";
737     return true;
738   case MemRegion::BlockDataRegionKind:
739     // FIXME: where the block came from?
740     os << "a block";
741     return true;
742   default: {
743     const MemSpaceRegion *MS = MR->getMemorySpace();
744 
745     if (isa<StackLocalsSpaceRegion>(MS)) {
746       const VarRegion *VR = dyn_cast<VarRegion>(MR);
747       const VarDecl *VD;
748       if (VR)
749         VD = VR->getDecl();
750       else
751         VD = NULL;
752 
753       if (VD)
754         os << "the address of the local variable '" << VD->getName() << "'";
755       else
756         os << "the address of a local stack variable";
757       return true;
758     }
759 
760     if (isa<StackArgumentsSpaceRegion>(MS)) {
761       const VarRegion *VR = dyn_cast<VarRegion>(MR);
762       const VarDecl *VD;
763       if (VR)
764         VD = VR->getDecl();
765       else
766         VD = NULL;
767 
768       if (VD)
769         os << "the address of the parameter '" << VD->getName() << "'";
770       else
771         os << "the address of a parameter";
772       return true;
773     }
774 
775     if (isa<GlobalsSpaceRegion>(MS)) {
776       const VarRegion *VR = dyn_cast<VarRegion>(MR);
777       const VarDecl *VD;
778       if (VR)
779         VD = VR->getDecl();
780       else
781         VD = NULL;
782 
783       if (VD) {
784         if (VD->isStaticLocal())
785           os << "the address of the static variable '" << VD->getName() << "'";
786         else
787           os << "the address of the global variable '" << VD->getName() << "'";
788       } else
789         os << "the address of a global variable";
790       return true;
791     }
792 
793     return false;
794   }
795   }
796 }
797 
798 void MallocChecker::ReportBadFree(CheckerContext &C, SVal ArgVal,
799                                   SourceRange range) const {
800   if (ExplodedNode *N = C.generateSink()) {
801     if (!BT_BadFree)
802       BT_BadFree.reset(new BugType("Bad free", "Memory Error"));
803 
804     SmallString<100> buf;
805     llvm::raw_svector_ostream os(buf);
806 
807     const MemRegion *MR = ArgVal.getAsRegion();
808     if (MR) {
809       while (const ElementRegion *ER = dyn_cast<ElementRegion>(MR))
810         MR = ER->getSuperRegion();
811 
812       // Special case for alloca()
813       if (isa<AllocaRegion>(MR))
814         os << "Argument to free() was allocated by alloca(), not malloc()";
815       else {
816         os << "Argument to free() is ";
817         if (SummarizeRegion(os, MR))
818           os << ", which is not memory allocated by malloc()";
819         else
820           os << "not memory allocated by malloc()";
821       }
822     } else {
823       os << "Argument to free() is ";
824       if (SummarizeValue(os, ArgVal))
825         os << ", which is not memory allocated by malloc()";
826       else
827         os << "not memory allocated by malloc()";
828     }
829 
830     BugReport *R = new BugReport(*BT_BadFree, os.str(), N);
831     R->markInteresting(MR);
832     R->addRange(range);
833     C.EmitReport(R);
834   }
835 }
836 
837 ProgramStateRef MallocChecker::ReallocMem(CheckerContext &C,
838                                           const CallExpr *CE,
839                                           bool FreesOnFail) const {
840   if (CE->getNumArgs() < 2)
841     return 0;
842 
843   ProgramStateRef state = C.getState();
844   const Expr *arg0Expr = CE->getArg(0);
845   const LocationContext *LCtx = C.getLocationContext();
846   SVal Arg0Val = state->getSVal(arg0Expr, LCtx);
847   if (!isa<DefinedOrUnknownSVal>(Arg0Val))
848     return 0;
849   DefinedOrUnknownSVal arg0Val = cast<DefinedOrUnknownSVal>(Arg0Val);
850 
851   SValBuilder &svalBuilder = C.getSValBuilder();
852 
853   DefinedOrUnknownSVal PtrEQ =
854     svalBuilder.evalEQ(state, arg0Val, svalBuilder.makeNull());
855 
856   // Get the size argument. If there is no size arg then give up.
857   const Expr *Arg1 = CE->getArg(1);
858   if (!Arg1)
859     return 0;
860 
861   // Get the value of the size argument.
862   SVal Arg1ValG = state->getSVal(Arg1, LCtx);
863   if (!isa<DefinedOrUnknownSVal>(Arg1ValG))
864     return 0;
865   DefinedOrUnknownSVal Arg1Val = cast<DefinedOrUnknownSVal>(Arg1ValG);
866 
867   // Compare the size argument to 0.
868   DefinedOrUnknownSVal SizeZero =
869     svalBuilder.evalEQ(state, Arg1Val,
870                        svalBuilder.makeIntValWithPtrWidth(0, false));
871 
872   ProgramStateRef StatePtrIsNull, StatePtrNotNull;
873   llvm::tie(StatePtrIsNull, StatePtrNotNull) = state->assume(PtrEQ);
874   ProgramStateRef StateSizeIsZero, StateSizeNotZero;
875   llvm::tie(StateSizeIsZero, StateSizeNotZero) = state->assume(SizeZero);
876   // We only assume exceptional states if they are definitely true; if the
877   // state is under-constrained, assume regular realloc behavior.
878   bool PrtIsNull = StatePtrIsNull && !StatePtrNotNull;
879   bool SizeIsZero = StateSizeIsZero && !StateSizeNotZero;
880 
881   // If the ptr is NULL and the size is not 0, the call is equivalent to
882   // malloc(size).
883   if ( PrtIsNull && !SizeIsZero) {
884     ProgramStateRef stateMalloc = MallocMemAux(C, CE, CE->getArg(1),
885                                                UndefinedVal(), StatePtrIsNull);
886     return stateMalloc;
887   }
888 
889   if (PrtIsNull && SizeIsZero)
890     return 0;
891 
892   // Get the from and to pointer symbols as in toPtr = realloc(fromPtr, size).
893   assert(!PrtIsNull);
894   SymbolRef FromPtr = arg0Val.getAsSymbol();
895   SVal RetVal = state->getSVal(CE, LCtx);
896   SymbolRef ToPtr = RetVal.getAsSymbol();
897   if (!FromPtr || !ToPtr)
898     return 0;
899 
900   // If the size is 0, free the memory.
901   if (SizeIsZero)
902     if (ProgramStateRef stateFree = FreeMemAux(C, CE, StateSizeIsZero,0,false)){
903       // The semantics of the return value are:
904       // If size was equal to 0, either NULL or a pointer suitable to be passed
905       // to free() is returned.
906       stateFree = stateFree->set<ReallocPairs>(ToPtr,
907                                             ReallocPair(FromPtr, FreesOnFail));
908       C.getSymbolManager().addSymbolDependency(ToPtr, FromPtr);
909       return stateFree;
910     }
911 
912   // Default behavior.
913   if (ProgramStateRef stateFree = FreeMemAux(C, CE, state, 0, false)) {
914     // FIXME: We should copy the content of the original buffer.
915     ProgramStateRef stateRealloc = MallocMemAux(C, CE, CE->getArg(1),
916                                                 UnknownVal(), stateFree);
917     if (!stateRealloc)
918       return 0;
919     stateRealloc = stateRealloc->set<ReallocPairs>(ToPtr,
920                                             ReallocPair(FromPtr, FreesOnFail));
921     C.getSymbolManager().addSymbolDependency(ToPtr, FromPtr);
922     return stateRealloc;
923   }
924   return 0;
925 }
926 
927 ProgramStateRef MallocChecker::CallocMem(CheckerContext &C, const CallExpr *CE){
928   if (CE->getNumArgs() < 2)
929     return 0;
930 
931   ProgramStateRef state = C.getState();
932   SValBuilder &svalBuilder = C.getSValBuilder();
933   const LocationContext *LCtx = C.getLocationContext();
934   SVal count = state->getSVal(CE->getArg(0), LCtx);
935   SVal elementSize = state->getSVal(CE->getArg(1), LCtx);
936   SVal TotalSize = svalBuilder.evalBinOp(state, BO_Mul, count, elementSize,
937                                         svalBuilder.getContext().getSizeType());
938   SVal zeroVal = svalBuilder.makeZeroVal(svalBuilder.getContext().CharTy);
939 
940   return MallocMemAux(C, CE, TotalSize, zeroVal, state);
941 }
942 
943 LeakInfo
944 MallocChecker::getAllocationSite(const ExplodedNode *N, SymbolRef Sym,
945                                  CheckerContext &C) const {
946   const LocationContext *LeakContext = N->getLocationContext();
947   // Walk the ExplodedGraph backwards and find the first node that referred to
948   // the tracked symbol.
949   const ExplodedNode *AllocNode = N;
950   const MemRegion *ReferenceRegion = 0;
951 
952   while (N) {
953     ProgramStateRef State = N->getState();
954     if (!State->get<RegionState>(Sym))
955       break;
956 
957     // Find the most recent expression bound to the symbol in the current
958     // context.
959     if (!ReferenceRegion) {
960       if (const MemRegion *MR = C.getLocationRegionIfPostStore(N)) {
961         SVal Val = State->getSVal(MR);
962         if (Val.getAsLocSymbol() == Sym)
963           ReferenceRegion = MR;
964       }
965     }
966 
967     // Allocation node, is the last node in the current context in which the
968     // symbol was tracked.
969     if (N->getLocationContext() == LeakContext)
970       AllocNode = N;
971     N = N->pred_empty() ? NULL : *(N->pred_begin());
972   }
973 
974   ProgramPoint P = AllocNode->getLocation();
975   const Stmt *AllocationStmt = 0;
976   if (CallExitEnd *Exit = dyn_cast<CallExitEnd>(&P))
977     AllocationStmt = Exit->getCalleeContext()->getCallSite();
978   else if (StmtPoint *SP = dyn_cast<StmtPoint>(&P))
979     AllocationStmt = SP->getStmt();
980 
981   return LeakInfo(AllocationStmt, ReferenceRegion);
982 }
983 
984 void MallocChecker::reportLeak(SymbolRef Sym, ExplodedNode *N,
985                                CheckerContext &C) const {
986   assert(N);
987   if (!BT_Leak) {
988     BT_Leak.reset(new BugType("Memory leak", "Memory Error"));
989     // Leaks should not be reported if they are post-dominated by a sink:
990     // (1) Sinks are higher importance bugs.
991     // (2) NoReturnFunctionChecker uses sink nodes to represent paths ending
992     //     with __noreturn functions such as assert() or exit(). We choose not
993     //     to report leaks on such paths.
994     BT_Leak->setSuppressOnSink(true);
995   }
996 
997   // Most bug reports are cached at the location where they occurred.
998   // With leaks, we want to unique them by the location where they were
999   // allocated, and only report a single path.
1000   PathDiagnosticLocation LocUsedForUniqueing;
1001   const Stmt *AllocStmt = 0;
1002   const MemRegion *Region = 0;
1003   llvm::tie(AllocStmt, Region) = getAllocationSite(N, Sym, C);
1004   if (AllocStmt)
1005     LocUsedForUniqueing = PathDiagnosticLocation::createBegin(AllocStmt,
1006                             C.getSourceManager(), N->getLocationContext());
1007 
1008   SmallString<200> buf;
1009   llvm::raw_svector_ostream os(buf);
1010   os << "Memory is never released; potential leak";
1011   if (Region) {
1012     os << " of memory pointed to by '";
1013     Region->dumpPretty(os);
1014     os <<'\'';
1015   }
1016 
1017   BugReport *R = new BugReport(*BT_Leak, os.str(), N, LocUsedForUniqueing);
1018   R->markInteresting(Sym);
1019   R->addVisitor(new MallocBugVisitor(Sym, true));
1020   C.EmitReport(R);
1021 }
1022 
1023 void MallocChecker::checkDeadSymbols(SymbolReaper &SymReaper,
1024                                      CheckerContext &C) const
1025 {
1026   if (!SymReaper.hasDeadSymbols())
1027     return;
1028 
1029   ProgramStateRef state = C.getState();
1030   RegionStateTy RS = state->get<RegionState>();
1031   RegionStateTy::Factory &F = state->get_context<RegionState>();
1032 
1033   bool generateReport = false;
1034   llvm::SmallVector<SymbolRef, 2> Errors;
1035   for (RegionStateTy::iterator I = RS.begin(), E = RS.end(); I != E; ++I) {
1036     if (SymReaper.isDead(I->first)) {
1037       if (I->second.isAllocated()) {
1038         generateReport = true;
1039         Errors.push_back(I->first);
1040       }
1041       // Remove the dead symbol from the map.
1042       RS = F.remove(RS, I->first);
1043 
1044     }
1045   }
1046 
1047   // Cleanup the Realloc Pairs Map.
1048   ReallocMap RP = state->get<ReallocPairs>();
1049   for (ReallocMap::iterator I = RP.begin(), E = RP.end(); I != E; ++I) {
1050     if (SymReaper.isDead(I->first) ||
1051         SymReaper.isDead(I->second.ReallocatedSym)) {
1052       state = state->remove<ReallocPairs>(I->first);
1053     }
1054   }
1055 
1056   // Generate leak node.
1057   static SimpleProgramPointTag Tag("MallocChecker : DeadSymbolsLeak");
1058   ExplodedNode *N = C.addTransition(C.getState(), C.getPredecessor(), &Tag);
1059 
1060   if (generateReport) {
1061     for (llvm::SmallVector<SymbolRef, 2>::iterator
1062          I = Errors.begin(), E = Errors.end(); I != E; ++I) {
1063       reportLeak(*I, N, C);
1064     }
1065   }
1066   C.addTransition(state->set<RegionState>(RS), N);
1067 }
1068 
1069 void MallocChecker::checkEndPath(CheckerContext &C) const {
1070   ProgramStateRef state = C.getState();
1071   RegionStateTy M = state->get<RegionState>();
1072 
1073   // If inside inlined call, skip it.
1074   if (C.getLocationContext()->getParent() != 0)
1075     return;
1076 
1077   for (RegionStateTy::iterator I = M.begin(), E = M.end(); I != E; ++I) {
1078     RefState RS = I->second;
1079     if (RS.isAllocated()) {
1080       ExplodedNode *N = C.addTransition(state);
1081       if (N)
1082         reportLeak(I->first, N, C);
1083     }
1084   }
1085 }
1086 
1087 bool MallocChecker::checkEscape(SymbolRef Sym, const Stmt *S,
1088                                 CheckerContext &C) const {
1089   ProgramStateRef state = C.getState();
1090   const RefState *RS = state->get<RegionState>(Sym);
1091   if (!RS)
1092     return false;
1093 
1094   if (RS->isAllocated()) {
1095     state = state->set<RegionState>(Sym, RefState::getEscaped(S));
1096     C.addTransition(state);
1097     return true;
1098   }
1099   return false;
1100 }
1101 
1102 void MallocChecker::checkPreStmt(const CallExpr *CE, CheckerContext &C) const {
1103   // We will check for double free in the post visit.
1104   if (isFreeFunction(C.getCalleeDecl(CE), C.getASTContext()))
1105     return;
1106 
1107   // Check use after free, when a freed pointer is passed to a call.
1108   ProgramStateRef State = C.getState();
1109   for (CallExpr::const_arg_iterator I = CE->arg_begin(),
1110                                     E = CE->arg_end(); I != E; ++I) {
1111     const Expr *A = *I;
1112     if (A->getType().getTypePtr()->isAnyPointerType()) {
1113       SymbolRef Sym = State->getSVal(A, C.getLocationContext()).getAsSymbol();
1114       if (!Sym)
1115         continue;
1116       if (checkUseAfterFree(Sym, C, A))
1117         return;
1118     }
1119   }
1120 }
1121 
1122 void MallocChecker::checkPreStmt(const ReturnStmt *S, CheckerContext &C) const {
1123   const Expr *E = S->getRetValue();
1124   if (!E)
1125     return;
1126 
1127   // Check if we are returning a symbol.
1128   SVal RetVal = C.getState()->getSVal(E, C.getLocationContext());
1129   SymbolRef Sym = RetVal.getAsSymbol();
1130   if (!Sym)
1131     // If we are returning a field of the allocated struct or an array element,
1132     // the callee could still free the memory.
1133     // TODO: This logic should be a part of generic symbol escape callback.
1134     if (const MemRegion *MR = RetVal.getAsRegion())
1135       if (isa<FieldRegion>(MR) || isa<ElementRegion>(MR))
1136         if (const SymbolicRegion *BMR =
1137               dyn_cast<SymbolicRegion>(MR->getBaseRegion()))
1138           Sym = BMR->getSymbol();
1139   if (!Sym)
1140     return;
1141 
1142   // Check if we are returning freed memory.
1143   if (checkUseAfterFree(Sym, C, E))
1144     return;
1145 
1146   // If this function body is not inlined, check if the symbol is escaping.
1147   if (C.getLocationContext()->getParent() == 0)
1148     checkEscape(Sym, E, C);
1149 }
1150 
1151 // TODO: Blocks should be either inlined or should call invalidate regions
1152 // upon invocation. After that's in place, special casing here will not be
1153 // needed.
1154 void MallocChecker::checkPostStmt(const BlockExpr *BE,
1155                                   CheckerContext &C) const {
1156 
1157   // Scan the BlockDecRefExprs for any object the retain count checker
1158   // may be tracking.
1159   if (!BE->getBlockDecl()->hasCaptures())
1160     return;
1161 
1162   ProgramStateRef state = C.getState();
1163   const BlockDataRegion *R =
1164     cast<BlockDataRegion>(state->getSVal(BE,
1165                                          C.getLocationContext()).getAsRegion());
1166 
1167   BlockDataRegion::referenced_vars_iterator I = R->referenced_vars_begin(),
1168                                             E = R->referenced_vars_end();
1169 
1170   if (I == E)
1171     return;
1172 
1173   SmallVector<const MemRegion*, 10> Regions;
1174   const LocationContext *LC = C.getLocationContext();
1175   MemRegionManager &MemMgr = C.getSValBuilder().getRegionManager();
1176 
1177   for ( ; I != E; ++I) {
1178     const VarRegion *VR = *I;
1179     if (VR->getSuperRegion() == R) {
1180       VR = MemMgr.getVarRegion(VR->getDecl(), LC);
1181     }
1182     Regions.push_back(VR);
1183   }
1184 
1185   state =
1186     state->scanReachableSymbols<StopTrackingCallback>(Regions.data(),
1187                                     Regions.data() + Regions.size()).getState();
1188   C.addTransition(state);
1189 }
1190 
1191 bool MallocChecker::isReleased(SymbolRef Sym, CheckerContext &C) const {
1192   assert(Sym);
1193   const RefState *RS = C.getState()->get<RegionState>(Sym);
1194   return (RS && RS->isReleased());
1195 }
1196 
1197 bool MallocChecker::checkUseAfterFree(SymbolRef Sym, CheckerContext &C,
1198                                       const Stmt *S) const {
1199   if (isReleased(Sym, C)) {
1200     if (ExplodedNode *N = C.generateSink()) {
1201       if (!BT_UseFree)
1202         BT_UseFree.reset(new BugType("Use-after-free", "Memory Error"));
1203 
1204       BugReport *R = new BugReport(*BT_UseFree,
1205                                    "Use of memory after it is freed",N);
1206       if (S)
1207         R->addRange(S->getSourceRange());
1208       R->markInteresting(Sym);
1209       R->addVisitor(new MallocBugVisitor(Sym));
1210       C.EmitReport(R);
1211       return true;
1212     }
1213   }
1214   return false;
1215 }
1216 
1217 // Check if the location is a freed symbolic region.
1218 void MallocChecker::checkLocation(SVal l, bool isLoad, const Stmt *S,
1219                                   CheckerContext &C) const {
1220   SymbolRef Sym = l.getLocSymbolInBase();
1221   if (Sym)
1222     checkUseAfterFree(Sym, C, S);
1223 }
1224 
1225 //===----------------------------------------------------------------------===//
1226 // Check various ways a symbol can be invalidated.
1227 // TODO: This logic (the next 3 functions) is copied/similar to the
1228 // RetainRelease checker. We might want to factor this out.
1229 //===----------------------------------------------------------------------===//
1230 
1231 // Stop tracking symbols when a value escapes as a result of checkBind.
1232 // A value escapes in three possible cases:
1233 // (1) we are binding to something that is not a memory region.
1234 // (2) we are binding to a memregion that does not have stack storage
1235 // (3) we are binding to a memregion with stack storage that the store
1236 //     does not understand.
1237 void MallocChecker::checkBind(SVal loc, SVal val, const Stmt *S,
1238                               CheckerContext &C) const {
1239   // Are we storing to something that causes the value to "escape"?
1240   bool escapes = true;
1241   ProgramStateRef state = C.getState();
1242 
1243   if (loc::MemRegionVal *regionLoc = dyn_cast<loc::MemRegionVal>(&loc)) {
1244     escapes = !regionLoc->getRegion()->hasStackStorage();
1245 
1246     if (!escapes) {
1247       // To test (3), generate a new state with the binding added.  If it is
1248       // the same state, then it escapes (since the store cannot represent
1249       // the binding).
1250       // Do this only if we know that the store is not supposed to generate the
1251       // same state.
1252       SVal StoredVal = state->getSVal(regionLoc->getRegion());
1253       if (StoredVal != val)
1254         escapes = (state == (state->bindLoc(*regionLoc, val)));
1255     }
1256     if (!escapes) {
1257       // Case 4: We do not currently model what happens when a symbol is
1258       // assigned to a struct field, so be conservative here and let the symbol
1259       // go. TODO: This could definitely be improved upon.
1260       escapes = !isa<VarRegion>(regionLoc->getRegion());
1261     }
1262   }
1263 
1264   // If our store can represent the binding and we aren't storing to something
1265   // that doesn't have local storage then just return and have the simulation
1266   // state continue as is.
1267   if (!escapes)
1268       return;
1269 
1270   // Otherwise, find all symbols referenced by 'val' that we are tracking
1271   // and stop tracking them.
1272   state = state->scanReachableSymbols<StopTrackingCallback>(val).getState();
1273   C.addTransition(state);
1274 }
1275 
1276 // If a symbolic region is assumed to NULL (or another constant), stop tracking
1277 // it - assuming that allocation failed on this path.
1278 ProgramStateRef MallocChecker::evalAssume(ProgramStateRef state,
1279                                               SVal Cond,
1280                                               bool Assumption) const {
1281   RegionStateTy RS = state->get<RegionState>();
1282   for (RegionStateTy::iterator I = RS.begin(), E = RS.end(); I != E; ++I) {
1283     // If the symbol is assumed to NULL or another constant, this will
1284     // return an APSInt*.
1285     if (state->getSymVal(I.getKey()))
1286       state = state->remove<RegionState>(I.getKey());
1287   }
1288 
1289   // Realloc returns 0 when reallocation fails, which means that we should
1290   // restore the state of the pointer being reallocated.
1291   ReallocMap RP = state->get<ReallocPairs>();
1292   for (ReallocMap::iterator I = RP.begin(), E = RP.end(); I != E; ++I) {
1293     // If the symbol is assumed to NULL or another constant, this will
1294     // return an APSInt*.
1295     if (state->getSymVal(I.getKey())) {
1296       SymbolRef ReallocSym = I.getData().ReallocatedSym;
1297       const RefState *RS = state->get<RegionState>(ReallocSym);
1298       if (RS) {
1299         if (RS->isReleased() && ! I.getData().IsFreeOnFailure)
1300           state = state->set<RegionState>(ReallocSym,
1301                              RefState::getAllocated(RS->getStmt()));
1302       }
1303       state = state->remove<ReallocPairs>(I.getKey());
1304     }
1305   }
1306 
1307   return state;
1308 }
1309 
1310 // Check if the function is known to us. So, for example, we could
1311 // conservatively assume it can free/reallocate its pointer arguments.
1312 // (We assume that the pointers cannot escape through calls to system
1313 // functions not handled by this checker.)
1314 bool MallocChecker::doesNotFreeMemory(const CallEvent *Call,
1315                                       ProgramStateRef State) const {
1316   assert(Call);
1317 
1318   // For now, assume that any C++ call can free memory.
1319   // TODO: If we want to be more optimistic here, we'll need to make sure that
1320   // regions escape to C++ containers. They seem to do that even now, but for
1321   // mysterious reasons.
1322   if (!(isa<FunctionCall>(Call) || isa<ObjCMethodCall>(Call)))
1323     return false;
1324 
1325   // Check Objective-C messages by selector name.
1326   if (const ObjCMethodCall *Msg = dyn_cast<ObjCMethodCall>(Call)) {
1327     // If it's not a framework call, or if it takes a callback, assume it
1328     // can free memory.
1329     if (!Call->isInSystemHeader() || Call->hasNonZeroCallbackArg())
1330       return false;
1331 
1332     Selector S = Msg->getSelector();
1333 
1334     // Whitelist the ObjC methods which do free memory.
1335     // - Anything containing 'freeWhenDone' param set to 1.
1336     //   Ex: dataWithBytesNoCopy:length:freeWhenDone.
1337     for (unsigned i = 1; i < S.getNumArgs(); ++i) {
1338       if (S.getNameForSlot(i).equals("freeWhenDone")) {
1339         if (Call->getArgSVal(i).isConstant(1))
1340           return false;
1341         else
1342           return true;
1343       }
1344     }
1345 
1346     // If the first selector ends with NoCopy, assume that the ownership is
1347     // transferred as well.
1348     // Ex:  [NSData dataWithBytesNoCopy:bytes length:10];
1349     StringRef FirstSlot = S.getNameForSlot(0);
1350     if (FirstSlot.endswith("NoCopy"))
1351       return false;
1352 
1353     // If the first selector starts with addPointer, insertPointer,
1354     // or replacePointer, assume we are dealing with NSPointerArray or similar.
1355     // This is similar to C++ containers (vector); we still might want to check
1356     // that the pointers get freed by following the container itself.
1357     if (FirstSlot.startswith("addPointer") ||
1358         FirstSlot.startswith("insertPointer") ||
1359         FirstSlot.startswith("replacePointer")) {
1360       return false;
1361     }
1362 
1363     // Otherwise, assume that the method does not free memory.
1364     // Most framework methods do not free memory.
1365     return true;
1366   }
1367 
1368   // At this point the only thing left to handle is straight function calls.
1369   const FunctionDecl *FD = cast<FunctionCall>(Call)->getDecl();
1370   if (!FD)
1371     return false;
1372 
1373   ASTContext &ASTC = State->getStateManager().getContext();
1374 
1375   // If it's one of the allocation functions we can reason about, we model
1376   // its behavior explicitly.
1377   if (isMemFunction(FD, ASTC))
1378     return true;
1379 
1380   // If it's not a system call, assume it frees memory.
1381   if (!Call->isInSystemHeader())
1382     return false;
1383 
1384   // White list the system functions whose arguments escape.
1385   const IdentifierInfo *II = FD->getIdentifier();
1386   if (!II)
1387     return false;
1388   StringRef FName = II->getName();
1389 
1390   // White list the 'XXXNoCopy' CoreFoundation functions.
1391   // We specifically check these before
1392   if (FName.endswith("NoCopy")) {
1393     // Look for the deallocator argument. We know that the memory ownership
1394     // is not transferred only if the deallocator argument is
1395     // 'kCFAllocatorNull'.
1396     for (unsigned i = 1; i < Call->getNumArgs(); ++i) {
1397       const Expr *ArgE = Call->getArgExpr(i)->IgnoreParenCasts();
1398       if (const DeclRefExpr *DE = dyn_cast<DeclRefExpr>(ArgE)) {
1399         StringRef DeallocatorName = DE->getFoundDecl()->getName();
1400         if (DeallocatorName == "kCFAllocatorNull")
1401           return true;
1402       }
1403     }
1404     return false;
1405   }
1406 
1407   // Associating streams with malloced buffers. The pointer can escape if
1408   // 'closefn' is specified (and if that function does free memory),
1409   // but it will not if closefn is not specified.
1410   // Currently, we do not inspect the 'closefn' function (PR12101).
1411   if (FName == "funopen")
1412     if (Call->getNumArgs() >= 4 && Call->getArgSVal(4).isConstant(0))
1413       return true;
1414 
1415   // Do not warn on pointers passed to 'setbuf' when used with std streams,
1416   // these leaks might be intentional when setting the buffer for stdio.
1417   // http://stackoverflow.com/questions/2671151/who-frees-setvbuf-buffer
1418   if (FName == "setbuf" || FName =="setbuffer" ||
1419       FName == "setlinebuf" || FName == "setvbuf") {
1420     if (Call->getNumArgs() >= 1) {
1421       const Expr *ArgE = Call->getArgExpr(0)->IgnoreParenCasts();
1422       if (const DeclRefExpr *ArgDRE = dyn_cast<DeclRefExpr>(ArgE))
1423         if (const VarDecl *D = dyn_cast<VarDecl>(ArgDRE->getDecl()))
1424           if (D->getCanonicalDecl()->getName().find("std") != StringRef::npos)
1425             return false;
1426     }
1427   }
1428 
1429   // A bunch of other functions which either take ownership of a pointer or
1430   // wrap the result up in a struct or object, meaning it can be freed later.
1431   // (See RetainCountChecker.) Not all the parameters here are invalidated,
1432   // but the Malloc checker cannot differentiate between them. The right way
1433   // of doing this would be to implement a pointer escapes callback.
1434   if (FName == "CGBitmapContextCreate" ||
1435       FName == "CGBitmapContextCreateWithData" ||
1436       FName == "CVPixelBufferCreateWithBytes" ||
1437       FName == "CVPixelBufferCreateWithPlanarBytes" ||
1438       FName == "OSAtomicEnqueue") {
1439     return false;
1440   }
1441 
1442   // Handle cases where we know a buffer's /address/ can escape.
1443   // Note that the above checks handle some special cases where we know that
1444   // even though the address escapes, it's still our responsibility to free the
1445   // buffer.
1446   if (Call->argumentsMayEscape())
1447     return false;
1448 
1449   // Otherwise, assume that the function does not free memory.
1450   // Most system calls do not free the memory.
1451   return true;
1452 }
1453 
1454 // If the symbol we are tracking is invalidated, but not explicitly (ex: the &p
1455 // escapes, when we are tracking p), do not track the symbol as we cannot reason
1456 // about it anymore.
1457 ProgramStateRef
1458 MallocChecker::checkRegionChanges(ProgramStateRef State,
1459                             const StoreManager::InvalidatedSymbols *invalidated,
1460                                     ArrayRef<const MemRegion *> ExplicitRegions,
1461                                     ArrayRef<const MemRegion *> Regions,
1462                                     const CallEvent *Call) const {
1463   if (!invalidated || invalidated->empty())
1464     return State;
1465   llvm::SmallPtrSet<SymbolRef, 8> WhitelistedSymbols;
1466 
1467   // If it's a call which might free or reallocate memory, we assume that all
1468   // regions (explicit and implicit) escaped.
1469 
1470   // Otherwise, whitelist explicit pointers; we still can track them.
1471   if (!Call || doesNotFreeMemory(Call, State)) {
1472     for (ArrayRef<const MemRegion *>::iterator I = ExplicitRegions.begin(),
1473         E = ExplicitRegions.end(); I != E; ++I) {
1474       if (const SymbolicRegion *R = (*I)->StripCasts()->getAs<SymbolicRegion>())
1475         WhitelistedSymbols.insert(R->getSymbol());
1476     }
1477   }
1478 
1479   for (StoreManager::InvalidatedSymbols::const_iterator I=invalidated->begin(),
1480        E = invalidated->end(); I!=E; ++I) {
1481     SymbolRef sym = *I;
1482     if (WhitelistedSymbols.count(sym))
1483       continue;
1484     // The symbol escaped. Note, we assume that if the symbol is released,
1485     // passing it out will result in a use after free. We also keep tracking
1486     // relinquished symbols.
1487     if (const RefState *RS = State->get<RegionState>(sym)) {
1488       if (RS->isAllocated())
1489         State = State->set<RegionState>(sym,
1490                                         RefState::getEscaped(RS->getStmt()));
1491     }
1492   }
1493   return State;
1494 }
1495 
1496 static SymbolRef findFailedReallocSymbol(ProgramStateRef currState,
1497                                          ProgramStateRef prevState) {
1498   ReallocMap currMap = currState->get<ReallocPairs>();
1499   ReallocMap prevMap = prevState->get<ReallocPairs>();
1500 
1501   for (ReallocMap::iterator I = prevMap.begin(), E = prevMap.end();
1502        I != E; ++I) {
1503     SymbolRef sym = I.getKey();
1504     if (!currMap.lookup(sym))
1505       return sym;
1506   }
1507 
1508   return NULL;
1509 }
1510 
1511 PathDiagnosticPiece *
1512 MallocChecker::MallocBugVisitor::VisitNode(const ExplodedNode *N,
1513                                            const ExplodedNode *PrevN,
1514                                            BugReporterContext &BRC,
1515                                            BugReport &BR) {
1516   ProgramStateRef state = N->getState();
1517   ProgramStateRef statePrev = PrevN->getState();
1518 
1519   const RefState *RS = state->get<RegionState>(Sym);
1520   const RefState *RSPrev = statePrev->get<RegionState>(Sym);
1521   if (!RS && !RSPrev)
1522     return 0;
1523 
1524   const Stmt *S = 0;
1525   const char *Msg = 0;
1526   StackHintGeneratorForSymbol *StackHint = 0;
1527 
1528   // Retrieve the associated statement.
1529   ProgramPoint ProgLoc = N->getLocation();
1530   if (StmtPoint *SP = dyn_cast<StmtPoint>(&ProgLoc))
1531     S = SP->getStmt();
1532   else if (CallExitEnd *Exit = dyn_cast<CallExitEnd>(&ProgLoc))
1533     S = Exit->getCalleeContext()->getCallSite();
1534   // If an assumption was made on a branch, it should be caught
1535   // here by looking at the state transition.
1536   else if (BlockEdge *Edge = dyn_cast<BlockEdge>(&ProgLoc)) {
1537     const CFGBlock *srcBlk = Edge->getSrc();
1538     S = srcBlk->getTerminator();
1539   }
1540   if (!S)
1541     return 0;
1542 
1543   // FIXME: We will eventually need to handle non-statement-based events
1544   // (__attribute__((cleanup))).
1545 
1546   // Find out if this is an interesting point and what is the kind.
1547   if (Mode == Normal) {
1548     if (isAllocated(RS, RSPrev, S)) {
1549       Msg = "Memory is allocated";
1550       StackHint = new StackHintGeneratorForSymbol(Sym,
1551                                                   "Returned allocated memory");
1552     } else if (isReleased(RS, RSPrev, S)) {
1553       Msg = "Memory is released";
1554       StackHint = new StackHintGeneratorForSymbol(Sym,
1555                                                   "Returned released memory");
1556     } else if (isRelinquished(RS, RSPrev, S)) {
1557       Msg = "Memory ownership is transfered";
1558       StackHint = new StackHintGeneratorForSymbol(Sym, "");
1559     } else if (isReallocFailedCheck(RS, RSPrev, S)) {
1560       Mode = ReallocationFailed;
1561       Msg = "Reallocation failed";
1562       StackHint = new StackHintGeneratorForReallocationFailed(Sym,
1563                                                        "Reallocation failed");
1564 
1565       if (SymbolRef sym = findFailedReallocSymbol(state, statePrev)) {
1566         // Is it possible to fail two reallocs WITHOUT testing in between?
1567         assert((!FailedReallocSymbol || FailedReallocSymbol == sym) &&
1568           "We only support one failed realloc at a time.");
1569         BR.markInteresting(sym);
1570         FailedReallocSymbol = sym;
1571       }
1572     }
1573 
1574   // We are in a special mode if a reallocation failed later in the path.
1575   } else if (Mode == ReallocationFailed) {
1576     assert(FailedReallocSymbol && "No symbol to look for.");
1577 
1578     // Is this is the first appearance of the reallocated symbol?
1579     if (!statePrev->get<RegionState>(FailedReallocSymbol)) {
1580       // If we ever hit this assert, that means BugReporter has decided to skip
1581       // node pairs or visit them out of order.
1582       assert(state->get<RegionState>(FailedReallocSymbol) &&
1583         "Missed the reallocation point");
1584 
1585       // We're at the reallocation point.
1586       Msg = "Attempt to reallocate memory";
1587       StackHint = new StackHintGeneratorForSymbol(Sym,
1588                                                  "Returned reallocated memory");
1589       FailedReallocSymbol = NULL;
1590       Mode = Normal;
1591     }
1592   }
1593 
1594   if (!Msg)
1595     return 0;
1596   assert(StackHint);
1597 
1598   // Generate the extra diagnostic.
1599   PathDiagnosticLocation Pos(S, BRC.getSourceManager(),
1600                              N->getLocationContext());
1601   return new PathDiagnosticEventPiece(Pos, Msg, true, StackHint);
1602 }
1603 
1604 void MallocChecker::printState(raw_ostream &Out, ProgramStateRef State,
1605                                const char *NL, const char *Sep) const {
1606 
1607   RegionStateTy RS = State->get<RegionState>();
1608 
1609   if (!RS.isEmpty())
1610     Out << "Has Malloc data" << NL;
1611 }
1612 
1613 #define REGISTER_CHECKER(name) \
1614 void ento::register##name(CheckerManager &mgr) {\
1615   registerCStringCheckerBasic(mgr); \
1616   mgr.registerChecker<MallocChecker>()->Filter.C##name = true;\
1617 }
1618 
1619 REGISTER_CHECKER(MallocPessimistic)
1620 REGISTER_CHECKER(MallocOptimistic)
1621