RetainCountChecker.cpp revision bf53dfac8195835028bd6347433f7dbebcc29fc1
1//==-- RetainCountChecker.cpp - Checks for leaks and other issues -*- 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 the methods for RetainCountChecker, which implements
11//  a reference count checker for Core Foundation and Cocoa on (Mac OS X).
12//
13//===----------------------------------------------------------------------===//
14
15#include "ClangSACheckers.h"
16#include "clang/AST/Attr.h"
17#include "clang/AST/DeclCXX.h"
18#include "clang/AST/DeclObjC.h"
19#include "clang/AST/ParentMap.h"
20#include "clang/Analysis/DomainSpecific/CocoaConventions.h"
21#include "clang/Basic/LangOptions.h"
22#include "clang/Basic/SourceManager.h"
23#include "clang/StaticAnalyzer/Core/BugReporter/BugType.h"
24#include "clang/StaticAnalyzer/Core/BugReporter/PathDiagnostic.h"
25#include "clang/StaticAnalyzer/Core/Checker.h"
26#include "clang/StaticAnalyzer/Core/CheckerManager.h"
27#include "clang/StaticAnalyzer/Core/PathSensitive/CallEvent.h"
28#include "clang/StaticAnalyzer/Core/PathSensitive/CheckerContext.h"
29#include "clang/StaticAnalyzer/Core/PathSensitive/ProgramStateTrait.h"
30#include "clang/StaticAnalyzer/Core/PathSensitive/SymbolManager.h"
31#include "llvm/ADT/DenseMap.h"
32#include "llvm/ADT/FoldingSet.h"
33#include "llvm/ADT/ImmutableList.h"
34#include "llvm/ADT/ImmutableMap.h"
35#include "llvm/ADT/STLExtras.h"
36#include "llvm/ADT/SmallString.h"
37#include "llvm/ADT/StringExtras.h"
38#include <cstdarg>
39
40using namespace clang;
41using namespace ento;
42using llvm::StrInStrNoCase;
43
44//===----------------------------------------------------------------------===//
45// Primitives used for constructing summaries for function/method calls.
46//===----------------------------------------------------------------------===//
47
48/// ArgEffect is used to summarize a function/method call's effect on a
49/// particular argument.
50enum ArgEffect { DoNothing, Autorelease, Dealloc, DecRef, DecRefMsg,
51                 DecRefBridgedTransfered,
52                 IncRefMsg, IncRef, MakeCollectable, MayEscape,
53                 NewAutoreleasePool,
54
55                 // Stop tracking the argument - the effect of the call is
56                 // unknown.
57                 StopTracking,
58
59                 // In some cases, we obtain a better summary for this checker
60                 // by looking at the call site than by inlining the function.
61                 // Signifies that we should stop tracking the symbol even if
62                 // the function is inlined.
63                 StopTrackingHard,
64
65                 // The function decrements the reference count and the checker
66                 // should stop tracking the argument.
67                 DecRefAndStopTrackingHard, DecRefMsgAndStopTrackingHard
68               };
69
70namespace llvm {
71template <> struct FoldingSetTrait<ArgEffect> {
72static inline void Profile(const ArgEffect X, FoldingSetNodeID& ID) {
73  ID.AddInteger((unsigned) X);
74}
75};
76} // end llvm namespace
77
78/// ArgEffects summarizes the effects of a function/method call on all of
79/// its arguments.
80typedef llvm::ImmutableMap<unsigned,ArgEffect> ArgEffects;
81
82namespace {
83
84///  RetEffect is used to summarize a function/method call's behavior with
85///  respect to its return value.
86class RetEffect {
87public:
88  enum Kind { NoRet, OwnedSymbol, OwnedAllocatedSymbol,
89              NotOwnedSymbol, GCNotOwnedSymbol, ARCNotOwnedSymbol,
90              OwnedWhenTrackedReceiver,
91              // Treat this function as returning a non-tracked symbol even if
92              // the function has been inlined. This is used where the call
93              // site summary is more presise than the summary indirectly produced
94              // by inlining the function
95              NoRetHard
96            };
97
98  enum ObjKind { CF, ObjC, AnyObj };
99
100private:
101  Kind K;
102  ObjKind O;
103
104  RetEffect(Kind k, ObjKind o = AnyObj) : K(k), O(o) {}
105
106public:
107  Kind getKind() const { return K; }
108
109  ObjKind getObjKind() const { return O; }
110
111  bool isOwned() const {
112    return K == OwnedSymbol || K == OwnedAllocatedSymbol ||
113           K == OwnedWhenTrackedReceiver;
114  }
115
116  bool operator==(const RetEffect &Other) const {
117    return K == Other.K && O == Other.O;
118  }
119
120  static RetEffect MakeOwnedWhenTrackedReceiver() {
121    return RetEffect(OwnedWhenTrackedReceiver, ObjC);
122  }
123
124  static RetEffect MakeOwned(ObjKind o, bool isAllocated = false) {
125    return RetEffect(isAllocated ? OwnedAllocatedSymbol : OwnedSymbol, o);
126  }
127  static RetEffect MakeNotOwned(ObjKind o) {
128    return RetEffect(NotOwnedSymbol, o);
129  }
130  static RetEffect MakeGCNotOwned() {
131    return RetEffect(GCNotOwnedSymbol, ObjC);
132  }
133  static RetEffect MakeARCNotOwned() {
134    return RetEffect(ARCNotOwnedSymbol, ObjC);
135  }
136  static RetEffect MakeNoRet() {
137    return RetEffect(NoRet);
138  }
139  static RetEffect MakeNoRetHard() {
140    return RetEffect(NoRetHard);
141  }
142
143  void Profile(llvm::FoldingSetNodeID& ID) const {
144    ID.AddInteger((unsigned) K);
145    ID.AddInteger((unsigned) O);
146  }
147};
148
149//===----------------------------------------------------------------------===//
150// Reference-counting logic (typestate + counts).
151//===----------------------------------------------------------------------===//
152
153class RefVal {
154public:
155  enum Kind {
156    Owned = 0, // Owning reference.
157    NotOwned,  // Reference is not owned by still valid (not freed).
158    Released,  // Object has been released.
159    ReturnedOwned, // Returned object passes ownership to caller.
160    ReturnedNotOwned, // Return object does not pass ownership to caller.
161    ERROR_START,
162    ErrorDeallocNotOwned, // -dealloc called on non-owned object.
163    ErrorDeallocGC, // Calling -dealloc with GC enabled.
164    ErrorUseAfterRelease, // Object used after released.
165    ErrorReleaseNotOwned, // Release of an object that was not owned.
166    ERROR_LEAK_START,
167    ErrorLeak,  // A memory leak due to excessive reference counts.
168    ErrorLeakReturned, // A memory leak due to the returning method not having
169                       // the correct naming conventions.
170    ErrorGCLeakReturned,
171    ErrorOverAutorelease,
172    ErrorReturnedNotOwned
173  };
174
175private:
176  Kind kind;
177  RetEffect::ObjKind okind;
178  unsigned Cnt;
179  unsigned ACnt;
180  QualType T;
181
182  RefVal(Kind k, RetEffect::ObjKind o, unsigned cnt, unsigned acnt, QualType t)
183  : kind(k), okind(o), Cnt(cnt), ACnt(acnt), T(t) {}
184
185public:
186  Kind getKind() const { return kind; }
187
188  RetEffect::ObjKind getObjKind() const { return okind; }
189
190  unsigned getCount() const { return Cnt; }
191  unsigned getAutoreleaseCount() const { return ACnt; }
192  unsigned getCombinedCounts() const { return Cnt + ACnt; }
193  void clearCounts() { Cnt = 0; ACnt = 0; }
194  void setCount(unsigned i) { Cnt = i; }
195  void setAutoreleaseCount(unsigned i) { ACnt = i; }
196
197  QualType getType() const { return T; }
198
199  bool isOwned() const {
200    return getKind() == Owned;
201  }
202
203  bool isNotOwned() const {
204    return getKind() == NotOwned;
205  }
206
207  bool isReturnedOwned() const {
208    return getKind() == ReturnedOwned;
209  }
210
211  bool isReturnedNotOwned() const {
212    return getKind() == ReturnedNotOwned;
213  }
214
215  static RefVal makeOwned(RetEffect::ObjKind o, QualType t,
216                          unsigned Count = 1) {
217    return RefVal(Owned, o, Count, 0, t);
218  }
219
220  static RefVal makeNotOwned(RetEffect::ObjKind o, QualType t,
221                             unsigned Count = 0) {
222    return RefVal(NotOwned, o, Count, 0, t);
223  }
224
225  // Comparison, profiling, and pretty-printing.
226
227  bool operator==(const RefVal& X) const {
228    return kind == X.kind && Cnt == X.Cnt && T == X.T && ACnt == X.ACnt;
229  }
230
231  RefVal operator-(size_t i) const {
232    return RefVal(getKind(), getObjKind(), getCount() - i,
233                  getAutoreleaseCount(), getType());
234  }
235
236  RefVal operator+(size_t i) const {
237    return RefVal(getKind(), getObjKind(), getCount() + i,
238                  getAutoreleaseCount(), getType());
239  }
240
241  RefVal operator^(Kind k) const {
242    return RefVal(k, getObjKind(), getCount(), getAutoreleaseCount(),
243                  getType());
244  }
245
246  RefVal autorelease() const {
247    return RefVal(getKind(), getObjKind(), getCount(), getAutoreleaseCount()+1,
248                  getType());
249  }
250
251  void Profile(llvm::FoldingSetNodeID& ID) const {
252    ID.AddInteger((unsigned) kind);
253    ID.AddInteger(Cnt);
254    ID.AddInteger(ACnt);
255    ID.Add(T);
256  }
257
258  void print(raw_ostream &Out) const;
259};
260
261void RefVal::print(raw_ostream &Out) const {
262  if (!T.isNull())
263    Out << "Tracked " << T.getAsString() << '/';
264
265  switch (getKind()) {
266    default: llvm_unreachable("Invalid RefVal kind");
267    case Owned: {
268      Out << "Owned";
269      unsigned cnt = getCount();
270      if (cnt) Out << " (+ " << cnt << ")";
271      break;
272    }
273
274    case NotOwned: {
275      Out << "NotOwned";
276      unsigned cnt = getCount();
277      if (cnt) Out << " (+ " << cnt << ")";
278      break;
279    }
280
281    case ReturnedOwned: {
282      Out << "ReturnedOwned";
283      unsigned cnt = getCount();
284      if (cnt) Out << " (+ " << cnt << ")";
285      break;
286    }
287
288    case ReturnedNotOwned: {
289      Out << "ReturnedNotOwned";
290      unsigned cnt = getCount();
291      if (cnt) Out << " (+ " << cnt << ")";
292      break;
293    }
294
295    case Released:
296      Out << "Released";
297      break;
298
299    case ErrorDeallocGC:
300      Out << "-dealloc (GC)";
301      break;
302
303    case ErrorDeallocNotOwned:
304      Out << "-dealloc (not-owned)";
305      break;
306
307    case ErrorLeak:
308      Out << "Leaked";
309      break;
310
311    case ErrorLeakReturned:
312      Out << "Leaked (Bad naming)";
313      break;
314
315    case ErrorGCLeakReturned:
316      Out << "Leaked (GC-ed at return)";
317      break;
318
319    case ErrorUseAfterRelease:
320      Out << "Use-After-Release [ERROR]";
321      break;
322
323    case ErrorReleaseNotOwned:
324      Out << "Release of Not-Owned [ERROR]";
325      break;
326
327    case RefVal::ErrorOverAutorelease:
328      Out << "Over autoreleased";
329      break;
330
331    case RefVal::ErrorReturnedNotOwned:
332      Out << "Non-owned object returned instead of owned";
333      break;
334  }
335
336  if (ACnt) {
337    Out << " [ARC +" << ACnt << ']';
338  }
339}
340} //end anonymous namespace
341
342//===----------------------------------------------------------------------===//
343// RefBindings - State used to track object reference counts.
344//===----------------------------------------------------------------------===//
345
346REGISTER_MAP_WITH_PROGRAMSTATE(RefBindings, SymbolRef, RefVal)
347
348static inline const RefVal *getRefBinding(ProgramStateRef State,
349                                          SymbolRef Sym) {
350  return State->get<RefBindings>(Sym);
351}
352
353static inline ProgramStateRef setRefBinding(ProgramStateRef State,
354                                            SymbolRef Sym, RefVal Val) {
355  return State->set<RefBindings>(Sym, Val);
356}
357
358static ProgramStateRef removeRefBinding(ProgramStateRef State, SymbolRef Sym) {
359  return State->remove<RefBindings>(Sym);
360}
361
362//===----------------------------------------------------------------------===//
363// Function/Method behavior summaries.
364//===----------------------------------------------------------------------===//
365
366namespace {
367class RetainSummary {
368  /// Args - a map of (index, ArgEffect) pairs, where index
369  ///  specifies the argument (starting from 0).  This can be sparsely
370  ///  populated; arguments with no entry in Args use 'DefaultArgEffect'.
371  ArgEffects Args;
372
373  /// DefaultArgEffect - The default ArgEffect to apply to arguments that
374  ///  do not have an entry in Args.
375  ArgEffect DefaultArgEffect;
376
377  /// Receiver - If this summary applies to an Objective-C message expression,
378  ///  this is the effect applied to the state of the receiver.
379  ArgEffect Receiver;
380
381  /// Ret - The effect on the return value.  Used to indicate if the
382  ///  function/method call returns a new tracked symbol.
383  RetEffect Ret;
384
385public:
386  RetainSummary(ArgEffects A, RetEffect R, ArgEffect defaultEff,
387                ArgEffect ReceiverEff)
388    : Args(A), DefaultArgEffect(defaultEff), Receiver(ReceiverEff), Ret(R) {}
389
390  /// getArg - Return the argument effect on the argument specified by
391  ///  idx (starting from 0).
392  ArgEffect getArg(unsigned idx) const {
393    if (const ArgEffect *AE = Args.lookup(idx))
394      return *AE;
395
396    return DefaultArgEffect;
397  }
398
399  void addArg(ArgEffects::Factory &af, unsigned idx, ArgEffect e) {
400    Args = af.add(Args, idx, e);
401  }
402
403  /// setDefaultArgEffect - Set the default argument effect.
404  void setDefaultArgEffect(ArgEffect E) {
405    DefaultArgEffect = E;
406  }
407
408  /// getRetEffect - Returns the effect on the return value of the call.
409  RetEffect getRetEffect() const { return Ret; }
410
411  /// setRetEffect - Set the effect of the return value of the call.
412  void setRetEffect(RetEffect E) { Ret = E; }
413
414
415  /// Sets the effect on the receiver of the message.
416  void setReceiverEffect(ArgEffect e) { Receiver = e; }
417
418  /// getReceiverEffect - Returns the effect on the receiver of the call.
419  ///  This is only meaningful if the summary applies to an ObjCMessageExpr*.
420  ArgEffect getReceiverEffect() const { return Receiver; }
421
422  /// Test if two retain summaries are identical. Note that merely equivalent
423  /// summaries are not necessarily identical (for example, if an explicit
424  /// argument effect matches the default effect).
425  bool operator==(const RetainSummary &Other) const {
426    return Args == Other.Args && DefaultArgEffect == Other.DefaultArgEffect &&
427           Receiver == Other.Receiver && Ret == Other.Ret;
428  }
429
430  /// Profile this summary for inclusion in a FoldingSet.
431  void Profile(llvm::FoldingSetNodeID& ID) const {
432    ID.Add(Args);
433    ID.Add(DefaultArgEffect);
434    ID.Add(Receiver);
435    ID.Add(Ret);
436  }
437
438  /// A retain summary is simple if it has no ArgEffects other than the default.
439  bool isSimple() const {
440    return Args.isEmpty();
441  }
442
443private:
444  ArgEffects getArgEffects() const { return Args; }
445  ArgEffect getDefaultArgEffect() const { return DefaultArgEffect; }
446
447  friend class RetainSummaryManager;
448};
449} // end anonymous namespace
450
451//===----------------------------------------------------------------------===//
452// Data structures for constructing summaries.
453//===----------------------------------------------------------------------===//
454
455namespace {
456class ObjCSummaryKey {
457  IdentifierInfo* II;
458  Selector S;
459public:
460  ObjCSummaryKey(IdentifierInfo* ii, Selector s)
461    : II(ii), S(s) {}
462
463  ObjCSummaryKey(const ObjCInterfaceDecl *d, Selector s)
464    : II(d ? d->getIdentifier() : 0), S(s) {}
465
466  ObjCSummaryKey(Selector s)
467    : II(0), S(s) {}
468
469  IdentifierInfo *getIdentifier() const { return II; }
470  Selector getSelector() const { return S; }
471};
472}
473
474namespace llvm {
475template <> struct DenseMapInfo<ObjCSummaryKey> {
476  static inline ObjCSummaryKey getEmptyKey() {
477    return ObjCSummaryKey(DenseMapInfo<IdentifierInfo*>::getEmptyKey(),
478                          DenseMapInfo<Selector>::getEmptyKey());
479  }
480
481  static inline ObjCSummaryKey getTombstoneKey() {
482    return ObjCSummaryKey(DenseMapInfo<IdentifierInfo*>::getTombstoneKey(),
483                          DenseMapInfo<Selector>::getTombstoneKey());
484  }
485
486  static unsigned getHashValue(const ObjCSummaryKey &V) {
487    typedef std::pair<IdentifierInfo*, Selector> PairTy;
488    return DenseMapInfo<PairTy>::getHashValue(PairTy(V.getIdentifier(),
489                                                     V.getSelector()));
490  }
491
492  static bool isEqual(const ObjCSummaryKey& LHS, const ObjCSummaryKey& RHS) {
493    return LHS.getIdentifier() == RHS.getIdentifier() &&
494           LHS.getSelector() == RHS.getSelector();
495  }
496
497};
498template <>
499struct isPodLike<ObjCSummaryKey> { static const bool value = true; };
500} // end llvm namespace
501
502namespace {
503class ObjCSummaryCache {
504  typedef llvm::DenseMap<ObjCSummaryKey, const RetainSummary *> MapTy;
505  MapTy M;
506public:
507  ObjCSummaryCache() {}
508
509  const RetainSummary * find(const ObjCInterfaceDecl *D, Selector S) {
510    // Do a lookup with the (D,S) pair.  If we find a match return
511    // the iterator.
512    ObjCSummaryKey K(D, S);
513    MapTy::iterator I = M.find(K);
514
515    if (I != M.end())
516      return I->second;
517    if (!D)
518      return NULL;
519
520    // Walk the super chain.  If we find a hit with a parent, we'll end
521    // up returning that summary.  We actually allow that key (null,S), as
522    // we cache summaries for the null ObjCInterfaceDecl* to allow us to
523    // generate initial summaries without having to worry about NSObject
524    // being declared.
525    // FIXME: We may change this at some point.
526    for (ObjCInterfaceDecl *C=D->getSuperClass() ;; C=C->getSuperClass()) {
527      if ((I = M.find(ObjCSummaryKey(C, S))) != M.end())
528        break;
529
530      if (!C)
531        return NULL;
532    }
533
534    // Cache the summary with original key to make the next lookup faster
535    // and return the iterator.
536    const RetainSummary *Summ = I->second;
537    M[K] = Summ;
538    return Summ;
539  }
540
541  const RetainSummary *find(IdentifierInfo* II, Selector S) {
542    // FIXME: Class method lookup.  Right now we dont' have a good way
543    // of going between IdentifierInfo* and the class hierarchy.
544    MapTy::iterator I = M.find(ObjCSummaryKey(II, S));
545
546    if (I == M.end())
547      I = M.find(ObjCSummaryKey(S));
548
549    return I == M.end() ? NULL : I->second;
550  }
551
552  const RetainSummary *& operator[](ObjCSummaryKey K) {
553    return M[K];
554  }
555
556  const RetainSummary *& operator[](Selector S) {
557    return M[ ObjCSummaryKey(S) ];
558  }
559};
560} // end anonymous namespace
561
562//===----------------------------------------------------------------------===//
563// Data structures for managing collections of summaries.
564//===----------------------------------------------------------------------===//
565
566namespace {
567class RetainSummaryManager {
568
569  //==-----------------------------------------------------------------==//
570  //  Typedefs.
571  //==-----------------------------------------------------------------==//
572
573  typedef llvm::DenseMap<const FunctionDecl*, const RetainSummary *>
574          FuncSummariesTy;
575
576  typedef ObjCSummaryCache ObjCMethodSummariesTy;
577
578  typedef llvm::FoldingSetNodeWrapper<RetainSummary> CachedSummaryNode;
579
580  //==-----------------------------------------------------------------==//
581  //  Data.
582  //==-----------------------------------------------------------------==//
583
584  /// Ctx - The ASTContext object for the analyzed ASTs.
585  ASTContext &Ctx;
586
587  /// GCEnabled - Records whether or not the analyzed code runs in GC mode.
588  const bool GCEnabled;
589
590  /// Records whether or not the analyzed code runs in ARC mode.
591  const bool ARCEnabled;
592
593  /// FuncSummaries - A map from FunctionDecls to summaries.
594  FuncSummariesTy FuncSummaries;
595
596  /// ObjCClassMethodSummaries - A map from selectors (for instance methods)
597  ///  to summaries.
598  ObjCMethodSummariesTy ObjCClassMethodSummaries;
599
600  /// ObjCMethodSummaries - A map from selectors to summaries.
601  ObjCMethodSummariesTy ObjCMethodSummaries;
602
603  /// BPAlloc - A BumpPtrAllocator used for allocating summaries, ArgEffects,
604  ///  and all other data used by the checker.
605  llvm::BumpPtrAllocator BPAlloc;
606
607  /// AF - A factory for ArgEffects objects.
608  ArgEffects::Factory AF;
609
610  /// ScratchArgs - A holding buffer for construct ArgEffects.
611  ArgEffects ScratchArgs;
612
613  /// ObjCAllocRetE - Default return effect for methods returning Objective-C
614  ///  objects.
615  RetEffect ObjCAllocRetE;
616
617  /// ObjCInitRetE - Default return effect for init methods returning
618  ///   Objective-C objects.
619  RetEffect ObjCInitRetE;
620
621  /// SimpleSummaries - Used for uniquing summaries that don't have special
622  /// effects.
623  llvm::FoldingSet<CachedSummaryNode> SimpleSummaries;
624
625  //==-----------------------------------------------------------------==//
626  //  Methods.
627  //==-----------------------------------------------------------------==//
628
629  /// getArgEffects - Returns a persistent ArgEffects object based on the
630  ///  data in ScratchArgs.
631  ArgEffects getArgEffects();
632
633  enum UnaryFuncKind { cfretain, cfrelease, cfmakecollectable };
634
635  const RetainSummary *getUnarySummary(const FunctionType* FT,
636                                       UnaryFuncKind func);
637
638  const RetainSummary *getCFSummaryCreateRule(const FunctionDecl *FD);
639  const RetainSummary *getCFSummaryGetRule(const FunctionDecl *FD);
640  const RetainSummary *getCFCreateGetRuleSummary(const FunctionDecl *FD);
641
642  const RetainSummary *getPersistentSummary(const RetainSummary &OldSumm);
643
644  const RetainSummary *getPersistentSummary(RetEffect RetEff,
645                                            ArgEffect ReceiverEff = DoNothing,
646                                            ArgEffect DefaultEff = MayEscape) {
647    RetainSummary Summ(getArgEffects(), RetEff, DefaultEff, ReceiverEff);
648    return getPersistentSummary(Summ);
649  }
650
651  const RetainSummary *getDoNothingSummary() {
652    return getPersistentSummary(RetEffect::MakeNoRet(), DoNothing, DoNothing);
653  }
654
655  const RetainSummary *getDefaultSummary() {
656    return getPersistentSummary(RetEffect::MakeNoRet(),
657                                DoNothing, MayEscape);
658  }
659
660  const RetainSummary *getPersistentStopSummary() {
661    return getPersistentSummary(RetEffect::MakeNoRet(),
662                                StopTracking, StopTracking);
663  }
664
665  void InitializeClassMethodSummaries();
666  void InitializeMethodSummaries();
667private:
668  void addNSObjectClsMethSummary(Selector S, const RetainSummary *Summ) {
669    ObjCClassMethodSummaries[S] = Summ;
670  }
671
672  void addNSObjectMethSummary(Selector S, const RetainSummary *Summ) {
673    ObjCMethodSummaries[S] = Summ;
674  }
675
676  void addClassMethSummary(const char* Cls, const char* name,
677                           const RetainSummary *Summ, bool isNullary = true) {
678    IdentifierInfo* ClsII = &Ctx.Idents.get(Cls);
679    Selector S = isNullary ? GetNullarySelector(name, Ctx)
680                           : GetUnarySelector(name, Ctx);
681    ObjCClassMethodSummaries[ObjCSummaryKey(ClsII, S)]  = Summ;
682  }
683
684  void addInstMethSummary(const char* Cls, const char* nullaryName,
685                          const RetainSummary *Summ) {
686    IdentifierInfo* ClsII = &Ctx.Idents.get(Cls);
687    Selector S = GetNullarySelector(nullaryName, Ctx);
688    ObjCMethodSummaries[ObjCSummaryKey(ClsII, S)]  = Summ;
689  }
690
691  Selector generateSelector(va_list argp) {
692    SmallVector<IdentifierInfo*, 10> II;
693
694    while (const char* s = va_arg(argp, const char*))
695      II.push_back(&Ctx.Idents.get(s));
696
697    return Ctx.Selectors.getSelector(II.size(), &II[0]);
698  }
699
700  void addMethodSummary(IdentifierInfo *ClsII, ObjCMethodSummariesTy& Summaries,
701                        const RetainSummary * Summ, va_list argp) {
702    Selector S = generateSelector(argp);
703    Summaries[ObjCSummaryKey(ClsII, S)] = Summ;
704  }
705
706  void addInstMethSummary(const char* Cls, const RetainSummary * Summ, ...) {
707    va_list argp;
708    va_start(argp, Summ);
709    addMethodSummary(&Ctx.Idents.get(Cls), ObjCMethodSummaries, Summ, argp);
710    va_end(argp);
711  }
712
713  void addClsMethSummary(const char* Cls, const RetainSummary * Summ, ...) {
714    va_list argp;
715    va_start(argp, Summ);
716    addMethodSummary(&Ctx.Idents.get(Cls),ObjCClassMethodSummaries, Summ, argp);
717    va_end(argp);
718  }
719
720  void addClsMethSummary(IdentifierInfo *II, const RetainSummary * Summ, ...) {
721    va_list argp;
722    va_start(argp, Summ);
723    addMethodSummary(II, ObjCClassMethodSummaries, Summ, argp);
724    va_end(argp);
725  }
726
727public:
728
729  RetainSummaryManager(ASTContext &ctx, bool gcenabled, bool usesARC)
730   : Ctx(ctx),
731     GCEnabled(gcenabled),
732     ARCEnabled(usesARC),
733     AF(BPAlloc), ScratchArgs(AF.getEmptyMap()),
734     ObjCAllocRetE(gcenabled
735                    ? RetEffect::MakeGCNotOwned()
736                    : (usesARC ? RetEffect::MakeARCNotOwned()
737                               : RetEffect::MakeOwned(RetEffect::ObjC, true))),
738     ObjCInitRetE(gcenabled
739                    ? RetEffect::MakeGCNotOwned()
740                    : (usesARC ? RetEffect::MakeARCNotOwned()
741                               : RetEffect::MakeOwnedWhenTrackedReceiver())) {
742    InitializeClassMethodSummaries();
743    InitializeMethodSummaries();
744  }
745
746  const RetainSummary *getSummary(const CallEvent &Call,
747                                  ProgramStateRef State = 0);
748
749  const RetainSummary *getFunctionSummary(const FunctionDecl *FD);
750
751  const RetainSummary *getMethodSummary(Selector S, const ObjCInterfaceDecl *ID,
752                                        const ObjCMethodDecl *MD,
753                                        QualType RetTy,
754                                        ObjCMethodSummariesTy &CachedSummaries);
755
756  const RetainSummary *getInstanceMethodSummary(const ObjCMethodCall &M,
757                                                ProgramStateRef State);
758
759  const RetainSummary *getClassMethodSummary(const ObjCMethodCall &M) {
760    assert(!M.isInstanceMessage());
761    const ObjCInterfaceDecl *Class = M.getReceiverInterface();
762
763    return getMethodSummary(M.getSelector(), Class, M.getDecl(),
764                            M.getResultType(), ObjCClassMethodSummaries);
765  }
766
767  /// getMethodSummary - This version of getMethodSummary is used to query
768  ///  the summary for the current method being analyzed.
769  const RetainSummary *getMethodSummary(const ObjCMethodDecl *MD) {
770    const ObjCInterfaceDecl *ID = MD->getClassInterface();
771    Selector S = MD->getSelector();
772    QualType ResultTy = MD->getResultType();
773
774    ObjCMethodSummariesTy *CachedSummaries;
775    if (MD->isInstanceMethod())
776      CachedSummaries = &ObjCMethodSummaries;
777    else
778      CachedSummaries = &ObjCClassMethodSummaries;
779
780    return getMethodSummary(S, ID, MD, ResultTy, *CachedSummaries);
781  }
782
783  const RetainSummary *getStandardMethodSummary(const ObjCMethodDecl *MD,
784                                                Selector S, QualType RetTy);
785
786  void updateSummaryFromAnnotations(const RetainSummary *&Summ,
787                                    const ObjCMethodDecl *MD);
788
789  void updateSummaryFromAnnotations(const RetainSummary *&Summ,
790                                    const FunctionDecl *FD);
791
792  void updateSummaryForCall(const RetainSummary *&Summ,
793                            const CallEvent &Call);
794
795  bool isGCEnabled() const { return GCEnabled; }
796
797  bool isARCEnabled() const { return ARCEnabled; }
798
799  bool isARCorGCEnabled() const { return GCEnabled || ARCEnabled; }
800
801  RetEffect getObjAllocRetEffect() const { return ObjCAllocRetE; }
802
803  friend class RetainSummaryTemplate;
804};
805
806// Used to avoid allocating long-term (BPAlloc'd) memory for default retain
807// summaries. If a function or method looks like it has a default summary, but
808// it has annotations, the annotations are added to the stack-based template
809// and then copied into managed memory.
810class RetainSummaryTemplate {
811  RetainSummaryManager &Manager;
812  const RetainSummary *&RealSummary;
813  RetainSummary ScratchSummary;
814  bool Accessed;
815public:
816  RetainSummaryTemplate(const RetainSummary *&real, RetainSummaryManager &mgr)
817    : Manager(mgr), RealSummary(real), ScratchSummary(*real), Accessed(false) {}
818
819  ~RetainSummaryTemplate() {
820    if (Accessed)
821      RealSummary = Manager.getPersistentSummary(ScratchSummary);
822  }
823
824  RetainSummary &operator*() {
825    Accessed = true;
826    return ScratchSummary;
827  }
828
829  RetainSummary *operator->() {
830    Accessed = true;
831    return &ScratchSummary;
832  }
833};
834
835} // end anonymous namespace
836
837//===----------------------------------------------------------------------===//
838// Implementation of checker data structures.
839//===----------------------------------------------------------------------===//
840
841ArgEffects RetainSummaryManager::getArgEffects() {
842  ArgEffects AE = ScratchArgs;
843  ScratchArgs = AF.getEmptyMap();
844  return AE;
845}
846
847const RetainSummary *
848RetainSummaryManager::getPersistentSummary(const RetainSummary &OldSumm) {
849  // Unique "simple" summaries -- those without ArgEffects.
850  if (OldSumm.isSimple()) {
851    llvm::FoldingSetNodeID ID;
852    OldSumm.Profile(ID);
853
854    void *Pos;
855    CachedSummaryNode *N = SimpleSummaries.FindNodeOrInsertPos(ID, Pos);
856
857    if (!N) {
858      N = (CachedSummaryNode *) BPAlloc.Allocate<CachedSummaryNode>();
859      new (N) CachedSummaryNode(OldSumm);
860      SimpleSummaries.InsertNode(N, Pos);
861    }
862
863    return &N->getValue();
864  }
865
866  RetainSummary *Summ = (RetainSummary *) BPAlloc.Allocate<RetainSummary>();
867  new (Summ) RetainSummary(OldSumm);
868  return Summ;
869}
870
871//===----------------------------------------------------------------------===//
872// Summary creation for functions (largely uses of Core Foundation).
873//===----------------------------------------------------------------------===//
874
875static bool isRetain(const FunctionDecl *FD, StringRef FName) {
876  return FName.endswith("Retain");
877}
878
879static bool isRelease(const FunctionDecl *FD, StringRef FName) {
880  return FName.endswith("Release");
881}
882
883static bool isMakeCollectable(const FunctionDecl *FD, StringRef FName) {
884  // FIXME: Remove FunctionDecl parameter.
885  // FIXME: Is it really okay if MakeCollectable isn't a suffix?
886  return FName.find("MakeCollectable") != StringRef::npos;
887}
888
889static ArgEffect getStopTrackingHardEquivalent(ArgEffect E) {
890  switch (E) {
891  case DoNothing:
892  case Autorelease:
893  case DecRefBridgedTransfered:
894  case IncRef:
895  case IncRefMsg:
896  case MakeCollectable:
897  case MayEscape:
898  case NewAutoreleasePool:
899  case StopTracking:
900  case StopTrackingHard:
901    return StopTrackingHard;
902  case DecRef:
903  case DecRefAndStopTrackingHard:
904    return DecRefAndStopTrackingHard;
905  case DecRefMsg:
906  case DecRefMsgAndStopTrackingHard:
907    return DecRefMsgAndStopTrackingHard;
908  case Dealloc:
909    return Dealloc;
910  }
911
912  llvm_unreachable("Unknown ArgEffect kind");
913}
914
915void RetainSummaryManager::updateSummaryForCall(const RetainSummary *&S,
916                                                const CallEvent &Call) {
917  if (Call.hasNonZeroCallbackArg()) {
918    ArgEffect RecEffect =
919      getStopTrackingHardEquivalent(S->getReceiverEffect());
920    ArgEffect DefEffect =
921      getStopTrackingHardEquivalent(S->getDefaultArgEffect());
922
923    ArgEffects CustomArgEffects = S->getArgEffects();
924    for (ArgEffects::iterator I = CustomArgEffects.begin(),
925                              E = CustomArgEffects.end();
926         I != E; ++I) {
927      ArgEffect Translated = getStopTrackingHardEquivalent(I->second);
928      if (Translated != DefEffect)
929        ScratchArgs = AF.add(ScratchArgs, I->first, Translated);
930    }
931
932    RetEffect RE = RetEffect::MakeNoRetHard();
933
934    // Special cases where the callback argument CANNOT free the return value.
935    // This can generally only happen if we know that the callback will only be
936    // called when the return value is already being deallocated.
937    if (const FunctionCall *FC = dyn_cast<FunctionCall>(&Call)) {
938      if (IdentifierInfo *Name = FC->getDecl()->getIdentifier()) {
939        // When the CGBitmapContext is deallocated, the callback here will free
940        // the associated data buffer.
941        if (Name->isStr("CGBitmapContextCreateWithData"))
942          RE = S->getRetEffect();
943      }
944    }
945
946    S = getPersistentSummary(RE, RecEffect, DefEffect);
947  }
948
949  // Special case '[super init];' and '[self init];'
950  //
951  // Even though calling '[super init]' without assigning the result to self
952  // and checking if the parent returns 'nil' is a bad pattern, it is common.
953  // Additionally, our Self Init checker already warns about it. To avoid
954  // overwhelming the user with messages from both checkers, we model the case
955  // of '[super init]' in cases when it is not consumed by another expression
956  // as if the call preserves the value of 'self'; essentially, assuming it can
957  // never fail and return 'nil'.
958  // Note, we don't want to just stop tracking the value since we want the
959  // RetainCount checker to report leaks and use-after-free if SelfInit checker
960  // is turned off.
961  if (const ObjCMethodCall *MC = dyn_cast<ObjCMethodCall>(&Call)) {
962    if (MC->getMethodFamily() == OMF_init && MC->isReceiverSelfOrSuper()) {
963
964      // Check if the message is not consumed, we know it will not be used in
965      // an assignment, ex: "self = [super init]".
966      const Expr *ME = MC->getOriginExpr();
967      const LocationContext *LCtx = MC->getLocationContext();
968      ParentMap &PM = LCtx->getAnalysisDeclContext()->getParentMap();
969      if (!PM.isConsumedExpr(ME)) {
970        RetainSummaryTemplate ModifiableSummaryTemplate(S, *this);
971        ModifiableSummaryTemplate->setReceiverEffect(DoNothing);
972        ModifiableSummaryTemplate->setRetEffect(RetEffect::MakeNoRet());
973      }
974    }
975
976  }
977}
978
979const RetainSummary *
980RetainSummaryManager::getSummary(const CallEvent &Call,
981                                 ProgramStateRef State) {
982  const RetainSummary *Summ;
983  switch (Call.getKind()) {
984  case CE_Function:
985    Summ = getFunctionSummary(cast<FunctionCall>(Call).getDecl());
986    break;
987  case CE_CXXMember:
988  case CE_CXXMemberOperator:
989  case CE_Block:
990  case CE_CXXConstructor:
991  case CE_CXXDestructor:
992  case CE_CXXAllocator:
993    // FIXME: These calls are currently unsupported.
994    return getPersistentStopSummary();
995  case CE_ObjCMessage: {
996    const ObjCMethodCall &Msg = cast<ObjCMethodCall>(Call);
997    if (Msg.isInstanceMessage())
998      Summ = getInstanceMethodSummary(Msg, State);
999    else
1000      Summ = getClassMethodSummary(Msg);
1001    break;
1002  }
1003  }
1004
1005  updateSummaryForCall(Summ, Call);
1006
1007  assert(Summ && "Unknown call type?");
1008  return Summ;
1009}
1010
1011const RetainSummary *
1012RetainSummaryManager::getFunctionSummary(const FunctionDecl *FD) {
1013  // If we don't know what function we're calling, use our default summary.
1014  if (!FD)
1015    return getDefaultSummary();
1016
1017  // Look up a summary in our cache of FunctionDecls -> Summaries.
1018  FuncSummariesTy::iterator I = FuncSummaries.find(FD);
1019  if (I != FuncSummaries.end())
1020    return I->second;
1021
1022  // No summary?  Generate one.
1023  const RetainSummary *S = 0;
1024  bool AllowAnnotations = true;
1025
1026  do {
1027    // We generate "stop" summaries for implicitly defined functions.
1028    if (FD->isImplicit()) {
1029      S = getPersistentStopSummary();
1030      break;
1031    }
1032
1033    // [PR 3337] Use 'getAs<FunctionType>' to strip away any typedefs on the
1034    // function's type.
1035    const FunctionType* FT = FD->getType()->getAs<FunctionType>();
1036    const IdentifierInfo *II = FD->getIdentifier();
1037    if (!II)
1038      break;
1039
1040    StringRef FName = II->getName();
1041
1042    // Strip away preceding '_'.  Doing this here will effect all the checks
1043    // down below.
1044    FName = FName.substr(FName.find_first_not_of('_'));
1045
1046    // Inspect the result type.
1047    QualType RetTy = FT->getResultType();
1048
1049    // FIXME: This should all be refactored into a chain of "summary lookup"
1050    //  filters.
1051    assert(ScratchArgs.isEmpty());
1052
1053    if (FName == "pthread_create" || FName == "pthread_setspecific") {
1054      // Part of: <rdar://problem/7299394> and <rdar://problem/11282706>.
1055      // This will be addressed better with IPA.
1056      S = getPersistentStopSummary();
1057    } else if (FName == "NSMakeCollectable") {
1058      // Handle: id NSMakeCollectable(CFTypeRef)
1059      S = (RetTy->isObjCIdType())
1060          ? getUnarySummary(FT, cfmakecollectable)
1061          : getPersistentStopSummary();
1062      // The headers on OS X 10.8 use cf_consumed/ns_returns_retained,
1063      // but we can fully model NSMakeCollectable ourselves.
1064      AllowAnnotations = false;
1065    } else if (FName == "CFPlugInInstanceCreate") {
1066      S = getPersistentSummary(RetEffect::MakeNoRet());
1067    } else if (FName == "IOBSDNameMatching" ||
1068               FName == "IOServiceMatching" ||
1069               FName == "IOServiceNameMatching" ||
1070               FName == "IORegistryEntrySearchCFProperty" ||
1071               FName == "IORegistryEntryIDMatching" ||
1072               FName == "IOOpenFirmwarePathMatching") {
1073      // Part of <rdar://problem/6961230>. (IOKit)
1074      // This should be addressed using a API table.
1075      S = getPersistentSummary(RetEffect::MakeOwned(RetEffect::CF, true),
1076                               DoNothing, DoNothing);
1077    } else if (FName == "IOServiceGetMatchingService" ||
1078               FName == "IOServiceGetMatchingServices") {
1079      // FIXES: <rdar://problem/6326900>
1080      // This should be addressed using a API table.  This strcmp is also
1081      // a little gross, but there is no need to super optimize here.
1082      ScratchArgs = AF.add(ScratchArgs, 1, DecRef);
1083      S = getPersistentSummary(RetEffect::MakeNoRet(), DoNothing, DoNothing);
1084    } else if (FName == "IOServiceAddNotification" ||
1085               FName == "IOServiceAddMatchingNotification") {
1086      // Part of <rdar://problem/6961230>. (IOKit)
1087      // This should be addressed using a API table.
1088      ScratchArgs = AF.add(ScratchArgs, 2, DecRef);
1089      S = getPersistentSummary(RetEffect::MakeNoRet(), DoNothing, DoNothing);
1090    } else if (FName == "CVPixelBufferCreateWithBytes") {
1091      // FIXES: <rdar://problem/7283567>
1092      // Eventually this can be improved by recognizing that the pixel
1093      // buffer passed to CVPixelBufferCreateWithBytes is released via
1094      // a callback and doing full IPA to make sure this is done correctly.
1095      // FIXME: This function has an out parameter that returns an
1096      // allocated object.
1097      ScratchArgs = AF.add(ScratchArgs, 7, StopTracking);
1098      S = getPersistentSummary(RetEffect::MakeNoRet(), DoNothing, DoNothing);
1099    } else if (FName == "CGBitmapContextCreateWithData") {
1100      // FIXES: <rdar://problem/7358899>
1101      // Eventually this can be improved by recognizing that 'releaseInfo'
1102      // passed to CGBitmapContextCreateWithData is released via
1103      // a callback and doing full IPA to make sure this is done correctly.
1104      ScratchArgs = AF.add(ScratchArgs, 8, StopTracking);
1105      S = getPersistentSummary(RetEffect::MakeOwned(RetEffect::CF, true),
1106                               DoNothing, DoNothing);
1107    } else if (FName == "CVPixelBufferCreateWithPlanarBytes") {
1108      // FIXES: <rdar://problem/7283567>
1109      // Eventually this can be improved by recognizing that the pixel
1110      // buffer passed to CVPixelBufferCreateWithPlanarBytes is released
1111      // via a callback and doing full IPA to make sure this is done
1112      // correctly.
1113      ScratchArgs = AF.add(ScratchArgs, 12, StopTracking);
1114      S = getPersistentSummary(RetEffect::MakeNoRet(), DoNothing, DoNothing);
1115    } else if (FName == "dispatch_set_context") {
1116      // <rdar://problem/11059275> - The analyzer currently doesn't have
1117      // a good way to reason about the finalizer function for libdispatch.
1118      // If we pass a context object that is memory managed, stop tracking it.
1119      // FIXME: this hack should possibly go away once we can handle
1120      // libdispatch finalizers.
1121      ScratchArgs = AF.add(ScratchArgs, 1, StopTracking);
1122      S = getPersistentSummary(RetEffect::MakeNoRet(), DoNothing, DoNothing);
1123    } else if (FName.startswith("NSLog")) {
1124      S = getDoNothingSummary();
1125    } else if (FName.startswith("NS") &&
1126                (FName.find("Insert") != StringRef::npos)) {
1127      // Whitelist NSXXInsertXX, for example NSMapInsertIfAbsent, since they can
1128      // be deallocated by NSMapRemove. (radar://11152419)
1129      ScratchArgs = AF.add(ScratchArgs, 1, StopTracking);
1130      ScratchArgs = AF.add(ScratchArgs, 2, StopTracking);
1131      S = getPersistentSummary(RetEffect::MakeNoRet(), DoNothing, DoNothing);
1132    }
1133
1134    // Did we get a summary?
1135    if (S)
1136      break;
1137
1138    if (RetTy->isPointerType()) {
1139      if (FD->getAttr<CFAuditedTransferAttr>()) {
1140        S = getCFCreateGetRuleSummary(FD);
1141        break;
1142      }
1143
1144      // For CoreFoundation ('CF') types.
1145      if (cocoa::isRefType(RetTy, "CF", FName)) {
1146        if (isRetain(FD, FName))
1147          S = getUnarySummary(FT, cfretain);
1148        else if (isMakeCollectable(FD, FName))
1149          S = getUnarySummary(FT, cfmakecollectable);
1150        else
1151          S = getCFCreateGetRuleSummary(FD);
1152
1153        break;
1154      }
1155
1156      // For CoreGraphics ('CG') types.
1157      if (cocoa::isRefType(RetTy, "CG", FName)) {
1158        if (isRetain(FD, FName))
1159          S = getUnarySummary(FT, cfretain);
1160        else
1161          S = getCFCreateGetRuleSummary(FD);
1162
1163        break;
1164      }
1165
1166      // For the Disk Arbitration API (DiskArbitration/DADisk.h)
1167      if (cocoa::isRefType(RetTy, "DADisk") ||
1168          cocoa::isRefType(RetTy, "DADissenter") ||
1169          cocoa::isRefType(RetTy, "DASessionRef")) {
1170        S = getCFCreateGetRuleSummary(FD);
1171        break;
1172      }
1173
1174      break;
1175    }
1176
1177    // Check for release functions, the only kind of functions that we care
1178    // about that don't return a pointer type.
1179    if (FName[0] == 'C' && (FName[1] == 'F' || FName[1] == 'G')) {
1180      // Test for 'CGCF'.
1181      FName = FName.substr(FName.startswith("CGCF") ? 4 : 2);
1182
1183      if (isRelease(FD, FName))
1184        S = getUnarySummary(FT, cfrelease);
1185      else {
1186        assert (ScratchArgs.isEmpty());
1187        // Remaining CoreFoundation and CoreGraphics functions.
1188        // We use to assume that they all strictly followed the ownership idiom
1189        // and that ownership cannot be transferred.  While this is technically
1190        // correct, many methods allow a tracked object to escape.  For example:
1191        //
1192        //   CFMutableDictionaryRef x = CFDictionaryCreateMutable(...);
1193        //   CFDictionaryAddValue(y, key, x);
1194        //   CFRelease(x);
1195        //   ... it is okay to use 'x' since 'y' has a reference to it
1196        //
1197        // We handle this and similar cases with the follow heuristic.  If the
1198        // function name contains "InsertValue", "SetValue", "AddValue",
1199        // "AppendValue", or "SetAttribute", then we assume that arguments may
1200        // "escape."  This means that something else holds on to the object,
1201        // allowing it be used even after its local retain count drops to 0.
1202        ArgEffect E = (StrInStrNoCase(FName, "InsertValue") != StringRef::npos||
1203                       StrInStrNoCase(FName, "AddValue") != StringRef::npos ||
1204                       StrInStrNoCase(FName, "SetValue") != StringRef::npos ||
1205                       StrInStrNoCase(FName, "AppendValue") != StringRef::npos||
1206                       StrInStrNoCase(FName, "SetAttribute") != StringRef::npos)
1207                      ? MayEscape : DoNothing;
1208
1209        S = getPersistentSummary(RetEffect::MakeNoRet(), DoNothing, E);
1210      }
1211    }
1212  }
1213  while (0);
1214
1215  // If we got all the way here without any luck, use a default summary.
1216  if (!S)
1217    S = getDefaultSummary();
1218
1219  // Annotations override defaults.
1220  if (AllowAnnotations)
1221    updateSummaryFromAnnotations(S, FD);
1222
1223  FuncSummaries[FD] = S;
1224  return S;
1225}
1226
1227const RetainSummary *
1228RetainSummaryManager::getCFCreateGetRuleSummary(const FunctionDecl *FD) {
1229  if (coreFoundation::followsCreateRule(FD))
1230    return getCFSummaryCreateRule(FD);
1231
1232  return getCFSummaryGetRule(FD);
1233}
1234
1235const RetainSummary *
1236RetainSummaryManager::getUnarySummary(const FunctionType* FT,
1237                                      UnaryFuncKind func) {
1238
1239  // Sanity check that this is *really* a unary function.  This can
1240  // happen if people do weird things.
1241  const FunctionProtoType* FTP = dyn_cast<FunctionProtoType>(FT);
1242  if (!FTP || FTP->getNumArgs() != 1)
1243    return getPersistentStopSummary();
1244
1245  assert (ScratchArgs.isEmpty());
1246
1247  ArgEffect Effect;
1248  switch (func) {
1249    case cfretain: Effect = IncRef; break;
1250    case cfrelease: Effect = DecRef; break;
1251    case cfmakecollectable: Effect = MakeCollectable; break;
1252  }
1253
1254  ScratchArgs = AF.add(ScratchArgs, 0, Effect);
1255  return getPersistentSummary(RetEffect::MakeNoRet(), DoNothing, DoNothing);
1256}
1257
1258const RetainSummary *
1259RetainSummaryManager::getCFSummaryCreateRule(const FunctionDecl *FD) {
1260  assert (ScratchArgs.isEmpty());
1261
1262  return getPersistentSummary(RetEffect::MakeOwned(RetEffect::CF, true));
1263}
1264
1265const RetainSummary *
1266RetainSummaryManager::getCFSummaryGetRule(const FunctionDecl *FD) {
1267  assert (ScratchArgs.isEmpty());
1268  return getPersistentSummary(RetEffect::MakeNotOwned(RetEffect::CF),
1269                              DoNothing, DoNothing);
1270}
1271
1272//===----------------------------------------------------------------------===//
1273// Summary creation for Selectors.
1274//===----------------------------------------------------------------------===//
1275
1276void
1277RetainSummaryManager::updateSummaryFromAnnotations(const RetainSummary *&Summ,
1278                                                   const FunctionDecl *FD) {
1279  if (!FD)
1280    return;
1281
1282  assert(Summ && "Must have a summary to add annotations to.");
1283  RetainSummaryTemplate Template(Summ, *this);
1284
1285  // Effects on the parameters.
1286  unsigned parm_idx = 0;
1287  for (FunctionDecl::param_const_iterator pi = FD->param_begin(),
1288         pe = FD->param_end(); pi != pe; ++pi, ++parm_idx) {
1289    const ParmVarDecl *pd = *pi;
1290    if (pd->getAttr<NSConsumedAttr>()) {
1291      if (!GCEnabled) {
1292        Template->addArg(AF, parm_idx, DecRef);
1293      }
1294    } else if (pd->getAttr<CFConsumedAttr>()) {
1295      Template->addArg(AF, parm_idx, DecRef);
1296    }
1297  }
1298
1299  QualType RetTy = FD->getResultType();
1300
1301  // Determine if there is a special return effect for this method.
1302  if (cocoa::isCocoaObjectRef(RetTy)) {
1303    if (FD->getAttr<NSReturnsRetainedAttr>()) {
1304      Template->setRetEffect(ObjCAllocRetE);
1305    }
1306    else if (FD->getAttr<CFReturnsRetainedAttr>()) {
1307      Template->setRetEffect(RetEffect::MakeOwned(RetEffect::CF, true));
1308    }
1309    else if (FD->getAttr<NSReturnsNotRetainedAttr>()) {
1310      Template->setRetEffect(RetEffect::MakeNotOwned(RetEffect::ObjC));
1311    }
1312    else if (FD->getAttr<CFReturnsNotRetainedAttr>()) {
1313      Template->setRetEffect(RetEffect::MakeNotOwned(RetEffect::CF));
1314    }
1315  } else if (RetTy->getAs<PointerType>()) {
1316    if (FD->getAttr<CFReturnsRetainedAttr>()) {
1317      Template->setRetEffect(RetEffect::MakeOwned(RetEffect::CF, true));
1318    }
1319    else if (FD->getAttr<CFReturnsNotRetainedAttr>()) {
1320      Template->setRetEffect(RetEffect::MakeNotOwned(RetEffect::CF));
1321    }
1322  }
1323}
1324
1325void
1326RetainSummaryManager::updateSummaryFromAnnotations(const RetainSummary *&Summ,
1327                                                   const ObjCMethodDecl *MD) {
1328  if (!MD)
1329    return;
1330
1331  assert(Summ && "Must have a valid summary to add annotations to");
1332  RetainSummaryTemplate Template(Summ, *this);
1333  bool isTrackedLoc = false;
1334
1335  // Effects on the receiver.
1336  if (MD->getAttr<NSConsumesSelfAttr>()) {
1337    if (!GCEnabled)
1338      Template->setReceiverEffect(DecRefMsg);
1339  }
1340
1341  // Effects on the parameters.
1342  unsigned parm_idx = 0;
1343  for (ObjCMethodDecl::param_const_iterator
1344         pi=MD->param_begin(), pe=MD->param_end();
1345       pi != pe; ++pi, ++parm_idx) {
1346    const ParmVarDecl *pd = *pi;
1347    if (pd->getAttr<NSConsumedAttr>()) {
1348      if (!GCEnabled)
1349        Template->addArg(AF, parm_idx, DecRef);
1350    }
1351    else if(pd->getAttr<CFConsumedAttr>()) {
1352      Template->addArg(AF, parm_idx, DecRef);
1353    }
1354  }
1355
1356  // Determine if there is a special return effect for this method.
1357  if (cocoa::isCocoaObjectRef(MD->getResultType())) {
1358    if (MD->getAttr<NSReturnsRetainedAttr>()) {
1359      Template->setRetEffect(ObjCAllocRetE);
1360      return;
1361    }
1362    if (MD->getAttr<NSReturnsNotRetainedAttr>()) {
1363      Template->setRetEffect(RetEffect::MakeNotOwned(RetEffect::ObjC));
1364      return;
1365    }
1366
1367    isTrackedLoc = true;
1368  } else {
1369    isTrackedLoc = MD->getResultType()->getAs<PointerType>() != NULL;
1370  }
1371
1372  if (isTrackedLoc) {
1373    if (MD->getAttr<CFReturnsRetainedAttr>())
1374      Template->setRetEffect(RetEffect::MakeOwned(RetEffect::CF, true));
1375    else if (MD->getAttr<CFReturnsNotRetainedAttr>())
1376      Template->setRetEffect(RetEffect::MakeNotOwned(RetEffect::CF));
1377  }
1378}
1379
1380const RetainSummary *
1381RetainSummaryManager::getStandardMethodSummary(const ObjCMethodDecl *MD,
1382                                               Selector S, QualType RetTy) {
1383  // Any special effects?
1384  ArgEffect ReceiverEff = DoNothing;
1385  RetEffect ResultEff = RetEffect::MakeNoRet();
1386
1387  // Check the method family, and apply any default annotations.
1388  switch (MD ? MD->getMethodFamily() : S.getMethodFamily()) {
1389    case OMF_None:
1390    case OMF_performSelector:
1391      // Assume all Objective-C methods follow Cocoa Memory Management rules.
1392      // FIXME: Does the non-threaded performSelector family really belong here?
1393      // The selector could be, say, @selector(copy).
1394      if (cocoa::isCocoaObjectRef(RetTy))
1395        ResultEff = RetEffect::MakeNotOwned(RetEffect::ObjC);
1396      else if (coreFoundation::isCFObjectRef(RetTy)) {
1397        // ObjCMethodDecl currently doesn't consider CF objects as valid return
1398        // values for alloc, new, copy, or mutableCopy, so we have to
1399        // double-check with the selector. This is ugly, but there aren't that
1400        // many Objective-C methods that return CF objects, right?
1401        if (MD) {
1402          switch (S.getMethodFamily()) {
1403          case OMF_alloc:
1404          case OMF_new:
1405          case OMF_copy:
1406          case OMF_mutableCopy:
1407            ResultEff = RetEffect::MakeOwned(RetEffect::CF, true);
1408            break;
1409          default:
1410            ResultEff = RetEffect::MakeNotOwned(RetEffect::CF);
1411            break;
1412          }
1413        } else {
1414          ResultEff = RetEffect::MakeNotOwned(RetEffect::CF);
1415        }
1416      }
1417      break;
1418    case OMF_init:
1419      ResultEff = ObjCInitRetE;
1420      ReceiverEff = DecRefMsg;
1421      break;
1422    case OMF_alloc:
1423    case OMF_new:
1424    case OMF_copy:
1425    case OMF_mutableCopy:
1426      if (cocoa::isCocoaObjectRef(RetTy))
1427        ResultEff = ObjCAllocRetE;
1428      else if (coreFoundation::isCFObjectRef(RetTy))
1429        ResultEff = RetEffect::MakeOwned(RetEffect::CF, true);
1430      break;
1431    case OMF_autorelease:
1432      ReceiverEff = Autorelease;
1433      break;
1434    case OMF_retain:
1435      ReceiverEff = IncRefMsg;
1436      break;
1437    case OMF_release:
1438      ReceiverEff = DecRefMsg;
1439      break;
1440    case OMF_dealloc:
1441      ReceiverEff = Dealloc;
1442      break;
1443    case OMF_self:
1444      // -self is handled specially by the ExprEngine to propagate the receiver.
1445      break;
1446    case OMF_retainCount:
1447    case OMF_finalize:
1448      // These methods don't return objects.
1449      break;
1450  }
1451
1452  // If one of the arguments in the selector has the keyword 'delegate' we
1453  // should stop tracking the reference count for the receiver.  This is
1454  // because the reference count is quite possibly handled by a delegate
1455  // method.
1456  if (S.isKeywordSelector()) {
1457    for (unsigned i = 0, e = S.getNumArgs(); i != e; ++i) {
1458      StringRef Slot = S.getNameForSlot(i);
1459      if (Slot.substr(Slot.size() - 8).equals_lower("delegate")) {
1460        if (ResultEff == ObjCInitRetE)
1461          ResultEff = RetEffect::MakeNoRetHard();
1462        else
1463          ReceiverEff = StopTrackingHard;
1464      }
1465    }
1466  }
1467
1468  if (ScratchArgs.isEmpty() && ReceiverEff == DoNothing &&
1469      ResultEff.getKind() == RetEffect::NoRet)
1470    return getDefaultSummary();
1471
1472  return getPersistentSummary(ResultEff, ReceiverEff, MayEscape);
1473}
1474
1475const RetainSummary *
1476RetainSummaryManager::getInstanceMethodSummary(const ObjCMethodCall &Msg,
1477                                               ProgramStateRef State) {
1478  const ObjCInterfaceDecl *ReceiverClass = 0;
1479
1480  // We do better tracking of the type of the object than the core ExprEngine.
1481  // See if we have its type in our private state.
1482  // FIXME: Eventually replace the use of state->get<RefBindings> with
1483  // a generic API for reasoning about the Objective-C types of symbolic
1484  // objects.
1485  SVal ReceiverV = Msg.getReceiverSVal();
1486  if (SymbolRef Sym = ReceiverV.getAsLocSymbol())
1487    if (const RefVal *T = getRefBinding(State, Sym))
1488      if (const ObjCObjectPointerType *PT =
1489            T->getType()->getAs<ObjCObjectPointerType>())
1490        ReceiverClass = PT->getInterfaceDecl();
1491
1492  // If we don't know what kind of object this is, fall back to its static type.
1493  if (!ReceiverClass)
1494    ReceiverClass = Msg.getReceiverInterface();
1495
1496  // FIXME: The receiver could be a reference to a class, meaning that
1497  //  we should use the class method.
1498  // id x = [NSObject class];
1499  // [x performSelector:... withObject:... afterDelay:...];
1500  Selector S = Msg.getSelector();
1501  const ObjCMethodDecl *Method = Msg.getDecl();
1502  if (!Method && ReceiverClass)
1503    Method = ReceiverClass->getInstanceMethod(S);
1504
1505  return getMethodSummary(S, ReceiverClass, Method, Msg.getResultType(),
1506                          ObjCMethodSummaries);
1507}
1508
1509const RetainSummary *
1510RetainSummaryManager::getMethodSummary(Selector S, const ObjCInterfaceDecl *ID,
1511                                       const ObjCMethodDecl *MD, QualType RetTy,
1512                                       ObjCMethodSummariesTy &CachedSummaries) {
1513
1514  // Look up a summary in our summary cache.
1515  const RetainSummary *Summ = CachedSummaries.find(ID, S);
1516
1517  if (!Summ) {
1518    Summ = getStandardMethodSummary(MD, S, RetTy);
1519
1520    // Annotations override defaults.
1521    updateSummaryFromAnnotations(Summ, MD);
1522
1523    // Memoize the summary.
1524    CachedSummaries[ObjCSummaryKey(ID, S)] = Summ;
1525  }
1526
1527  return Summ;
1528}
1529
1530void RetainSummaryManager::InitializeClassMethodSummaries() {
1531  assert(ScratchArgs.isEmpty());
1532  // Create the [NSAssertionHandler currentHander] summary.
1533  addClassMethSummary("NSAssertionHandler", "currentHandler",
1534                getPersistentSummary(RetEffect::MakeNotOwned(RetEffect::ObjC)));
1535
1536  // Create the [NSAutoreleasePool addObject:] summary.
1537  ScratchArgs = AF.add(ScratchArgs, 0, Autorelease);
1538  addClassMethSummary("NSAutoreleasePool", "addObject",
1539                      getPersistentSummary(RetEffect::MakeNoRet(),
1540                                           DoNothing, Autorelease));
1541}
1542
1543void RetainSummaryManager::InitializeMethodSummaries() {
1544
1545  assert (ScratchArgs.isEmpty());
1546
1547  // Create the "init" selector.  It just acts as a pass-through for the
1548  // receiver.
1549  const RetainSummary *InitSumm = getPersistentSummary(ObjCInitRetE, DecRefMsg);
1550  addNSObjectMethSummary(GetNullarySelector("init", Ctx), InitSumm);
1551
1552  // awakeAfterUsingCoder: behaves basically like an 'init' method.  It
1553  // claims the receiver and returns a retained object.
1554  addNSObjectMethSummary(GetUnarySelector("awakeAfterUsingCoder", Ctx),
1555                         InitSumm);
1556
1557  // The next methods are allocators.
1558  const RetainSummary *AllocSumm = getPersistentSummary(ObjCAllocRetE);
1559  const RetainSummary *CFAllocSumm =
1560    getPersistentSummary(RetEffect::MakeOwned(RetEffect::CF, true));
1561
1562  // Create the "retain" selector.
1563  RetEffect NoRet = RetEffect::MakeNoRet();
1564  const RetainSummary *Summ = getPersistentSummary(NoRet, IncRefMsg);
1565  addNSObjectMethSummary(GetNullarySelector("retain", Ctx), Summ);
1566
1567  // Create the "release" selector.
1568  Summ = getPersistentSummary(NoRet, DecRefMsg);
1569  addNSObjectMethSummary(GetNullarySelector("release", Ctx), Summ);
1570
1571  // Create the "drain" selector.
1572  Summ = getPersistentSummary(NoRet, isGCEnabled() ? DoNothing : DecRef);
1573  addNSObjectMethSummary(GetNullarySelector("drain", Ctx), Summ);
1574
1575  // Create the -dealloc summary.
1576  Summ = getPersistentSummary(NoRet, Dealloc);
1577  addNSObjectMethSummary(GetNullarySelector("dealloc", Ctx), Summ);
1578
1579  // Create the "autorelease" selector.
1580  Summ = getPersistentSummary(NoRet, Autorelease);
1581  addNSObjectMethSummary(GetNullarySelector("autorelease", Ctx), Summ);
1582
1583  // Specially handle NSAutoreleasePool.
1584  addInstMethSummary("NSAutoreleasePool", "init",
1585                     getPersistentSummary(NoRet, NewAutoreleasePool));
1586
1587  // For NSWindow, allocated objects are (initially) self-owned.
1588  // FIXME: For now we opt for false negatives with NSWindow, as these objects
1589  //  self-own themselves.  However, they only do this once they are displayed.
1590  //  Thus, we need to track an NSWindow's display status.
1591  //  This is tracked in <rdar://problem/6062711>.
1592  //  See also http://llvm.org/bugs/show_bug.cgi?id=3714.
1593  const RetainSummary *NoTrackYet = getPersistentSummary(RetEffect::MakeNoRet(),
1594                                                   StopTracking,
1595                                                   StopTracking);
1596
1597  addClassMethSummary("NSWindow", "alloc", NoTrackYet);
1598
1599  // For NSPanel (which subclasses NSWindow), allocated objects are not
1600  //  self-owned.
1601  // FIXME: For now we don't track NSPanels. object for the same reason
1602  //   as for NSWindow objects.
1603  addClassMethSummary("NSPanel", "alloc", NoTrackYet);
1604
1605  // Don't track allocated autorelease pools yet, as it is okay to prematurely
1606  // exit a method.
1607  addClassMethSummary("NSAutoreleasePool", "alloc", NoTrackYet);
1608  addClassMethSummary("NSAutoreleasePool", "allocWithZone", NoTrackYet, false);
1609
1610  // Create summaries QCRenderer/QCView -createSnapShotImageOfType:
1611  addInstMethSummary("QCRenderer", AllocSumm,
1612                     "createSnapshotImageOfType", NULL);
1613  addInstMethSummary("QCView", AllocSumm,
1614                     "createSnapshotImageOfType", NULL);
1615
1616  // Create summaries for CIContext, 'createCGImage' and
1617  // 'createCGLayerWithSize'.  These objects are CF objects, and are not
1618  // automatically garbage collected.
1619  addInstMethSummary("CIContext", CFAllocSumm,
1620                     "createCGImage", "fromRect", NULL);
1621  addInstMethSummary("CIContext", CFAllocSumm,
1622                     "createCGImage", "fromRect", "format", "colorSpace", NULL);
1623  addInstMethSummary("CIContext", CFAllocSumm, "createCGLayerWithSize",
1624           "info", NULL);
1625}
1626
1627//===----------------------------------------------------------------------===//
1628// Error reporting.
1629//===----------------------------------------------------------------------===//
1630namespace {
1631  typedef llvm::DenseMap<const ExplodedNode *, const RetainSummary *>
1632    SummaryLogTy;
1633
1634  //===-------------===//
1635  // Bug Descriptions. //
1636  //===-------------===//
1637
1638  class CFRefBug : public BugType {
1639  protected:
1640    CFRefBug(StringRef name)
1641    : BugType(name, categories::MemoryCoreFoundationObjectiveC) {}
1642  public:
1643
1644    // FIXME: Eventually remove.
1645    virtual const char *getDescription() const = 0;
1646
1647    virtual bool isLeak() const { return false; }
1648  };
1649
1650  class UseAfterRelease : public CFRefBug {
1651  public:
1652    UseAfterRelease() : CFRefBug("Use-after-release") {}
1653
1654    const char *getDescription() const {
1655      return "Reference-counted object is used after it is released";
1656    }
1657  };
1658
1659  class BadRelease : public CFRefBug {
1660  public:
1661    BadRelease() : CFRefBug("Bad release") {}
1662
1663    const char *getDescription() const {
1664      return "Incorrect decrement of the reference count of an object that is "
1665             "not owned at this point by the caller";
1666    }
1667  };
1668
1669  class DeallocGC : public CFRefBug {
1670  public:
1671    DeallocGC()
1672    : CFRefBug("-dealloc called while using garbage collection") {}
1673
1674    const char *getDescription() const {
1675      return "-dealloc called while using garbage collection";
1676    }
1677  };
1678
1679  class DeallocNotOwned : public CFRefBug {
1680  public:
1681    DeallocNotOwned()
1682    : CFRefBug("-dealloc sent to non-exclusively owned object") {}
1683
1684    const char *getDescription() const {
1685      return "-dealloc sent to object that may be referenced elsewhere";
1686    }
1687  };
1688
1689  class OverAutorelease : public CFRefBug {
1690  public:
1691    OverAutorelease()
1692    : CFRefBug("Object sent -autorelease too many times") {}
1693
1694    const char *getDescription() const {
1695      return "Object sent -autorelease too many times";
1696    }
1697  };
1698
1699  class ReturnedNotOwnedForOwned : public CFRefBug {
1700  public:
1701    ReturnedNotOwnedForOwned()
1702    : CFRefBug("Method should return an owned object") {}
1703
1704    const char *getDescription() const {
1705      return "Object with a +0 retain count returned to caller where a +1 "
1706             "(owning) retain count is expected";
1707    }
1708  };
1709
1710  class Leak : public CFRefBug {
1711  public:
1712    Leak(StringRef name)
1713    : CFRefBug(name) {
1714      // Leaks should not be reported if they are post-dominated by a sink.
1715      setSuppressOnSink(true);
1716    }
1717
1718    const char *getDescription() const { return ""; }
1719
1720    bool isLeak() const { return true; }
1721  };
1722
1723  //===---------===//
1724  // Bug Reports.  //
1725  //===---------===//
1726
1727  class CFRefReportVisitor : public BugReporterVisitorImpl<CFRefReportVisitor> {
1728  protected:
1729    SymbolRef Sym;
1730    const SummaryLogTy &SummaryLog;
1731    bool GCEnabled;
1732
1733  public:
1734    CFRefReportVisitor(SymbolRef sym, bool gcEnabled, const SummaryLogTy &log)
1735       : Sym(sym), SummaryLog(log), GCEnabled(gcEnabled) {}
1736
1737    virtual void Profile(llvm::FoldingSetNodeID &ID) const {
1738      static int x = 0;
1739      ID.AddPointer(&x);
1740      ID.AddPointer(Sym);
1741    }
1742
1743    virtual PathDiagnosticPiece *VisitNode(const ExplodedNode *N,
1744                                           const ExplodedNode *PrevN,
1745                                           BugReporterContext &BRC,
1746                                           BugReport &BR);
1747
1748    virtual PathDiagnosticPiece *getEndPath(BugReporterContext &BRC,
1749                                            const ExplodedNode *N,
1750                                            BugReport &BR);
1751  };
1752
1753  class CFRefLeakReportVisitor : public CFRefReportVisitor {
1754  public:
1755    CFRefLeakReportVisitor(SymbolRef sym, bool GCEnabled,
1756                           const SummaryLogTy &log)
1757       : CFRefReportVisitor(sym, GCEnabled, log) {}
1758
1759    PathDiagnosticPiece *getEndPath(BugReporterContext &BRC,
1760                                    const ExplodedNode *N,
1761                                    BugReport &BR);
1762
1763    virtual BugReporterVisitor *clone() const {
1764      // The curiously-recurring template pattern only works for one level of
1765      // subclassing. Rather than make a new template base for
1766      // CFRefReportVisitor, we simply override clone() to do the right thing.
1767      // This could be trouble someday if BugReporterVisitorImpl is ever
1768      // used for something else besides a convenient implementation of clone().
1769      return new CFRefLeakReportVisitor(*this);
1770    }
1771  };
1772
1773  class CFRefReport : public BugReport {
1774    void addGCModeDescription(const LangOptions &LOpts, bool GCEnabled);
1775
1776  public:
1777    CFRefReport(CFRefBug &D, const LangOptions &LOpts, bool GCEnabled,
1778                const SummaryLogTy &Log, ExplodedNode *n, SymbolRef sym,
1779                bool registerVisitor = true)
1780      : BugReport(D, D.getDescription(), n) {
1781      if (registerVisitor)
1782        addVisitor(new CFRefReportVisitor(sym, GCEnabled, Log));
1783      addGCModeDescription(LOpts, GCEnabled);
1784    }
1785
1786    CFRefReport(CFRefBug &D, const LangOptions &LOpts, bool GCEnabled,
1787                const SummaryLogTy &Log, ExplodedNode *n, SymbolRef sym,
1788                StringRef endText)
1789      : BugReport(D, D.getDescription(), endText, n) {
1790      addVisitor(new CFRefReportVisitor(sym, GCEnabled, Log));
1791      addGCModeDescription(LOpts, GCEnabled);
1792    }
1793
1794    virtual std::pair<ranges_iterator, ranges_iterator> getRanges() {
1795      const CFRefBug& BugTy = static_cast<CFRefBug&>(getBugType());
1796      if (!BugTy.isLeak())
1797        return BugReport::getRanges();
1798      else
1799        return std::make_pair(ranges_iterator(), ranges_iterator());
1800    }
1801  };
1802
1803  class CFRefLeakReport : public CFRefReport {
1804    const MemRegion* AllocBinding;
1805
1806  public:
1807    CFRefLeakReport(CFRefBug &D, const LangOptions &LOpts, bool GCEnabled,
1808                    const SummaryLogTy &Log, ExplodedNode *n, SymbolRef sym,
1809                    CheckerContext &Ctx);
1810
1811    PathDiagnosticLocation getLocation(const SourceManager &SM) const {
1812      assert(Location.isValid());
1813      return Location;
1814    }
1815  };
1816} // end anonymous namespace
1817
1818void CFRefReport::addGCModeDescription(const LangOptions &LOpts,
1819                                       bool GCEnabled) {
1820  const char *GCModeDescription = 0;
1821
1822  switch (LOpts.getGC()) {
1823  case LangOptions::GCOnly:
1824    assert(GCEnabled);
1825    GCModeDescription = "Code is compiled to only use garbage collection";
1826    break;
1827
1828  case LangOptions::NonGC:
1829    assert(!GCEnabled);
1830    GCModeDescription = "Code is compiled to use reference counts";
1831    break;
1832
1833  case LangOptions::HybridGC:
1834    if (GCEnabled) {
1835      GCModeDescription = "Code is compiled to use either garbage collection "
1836                          "(GC) or reference counts (non-GC).  The bug occurs "
1837                          "with GC enabled";
1838      break;
1839    } else {
1840      GCModeDescription = "Code is compiled to use either garbage collection "
1841                          "(GC) or reference counts (non-GC).  The bug occurs "
1842                          "in non-GC mode";
1843      break;
1844    }
1845  }
1846
1847  assert(GCModeDescription && "invalid/unknown GC mode");
1848  addExtraText(GCModeDescription);
1849}
1850
1851// FIXME: This should be a method on SmallVector.
1852static inline bool contains(const SmallVectorImpl<ArgEffect>& V,
1853                            ArgEffect X) {
1854  for (SmallVectorImpl<ArgEffect>::const_iterator I=V.begin(), E=V.end();
1855       I!=E; ++I)
1856    if (*I == X) return true;
1857
1858  return false;
1859}
1860
1861static bool isNumericLiteralExpression(const Expr *E) {
1862  // FIXME: This set of cases was copied from SemaExprObjC.
1863  return isa<IntegerLiteral>(E) ||
1864         isa<CharacterLiteral>(E) ||
1865         isa<FloatingLiteral>(E) ||
1866         isa<ObjCBoolLiteralExpr>(E) ||
1867         isa<CXXBoolLiteralExpr>(E);
1868}
1869
1870PathDiagnosticPiece *CFRefReportVisitor::VisitNode(const ExplodedNode *N,
1871                                                   const ExplodedNode *PrevN,
1872                                                   BugReporterContext &BRC,
1873                                                   BugReport &BR) {
1874  // FIXME: We will eventually need to handle non-statement-based events
1875  // (__attribute__((cleanup))).
1876  if (!isa<StmtPoint>(N->getLocation()))
1877    return NULL;
1878
1879  // Check if the type state has changed.
1880  ProgramStateRef PrevSt = PrevN->getState();
1881  ProgramStateRef CurrSt = N->getState();
1882  const LocationContext *LCtx = N->getLocationContext();
1883
1884  const RefVal* CurrT = getRefBinding(CurrSt, Sym);
1885  if (!CurrT) return NULL;
1886
1887  const RefVal &CurrV = *CurrT;
1888  const RefVal *PrevT = getRefBinding(PrevSt, Sym);
1889
1890  // Create a string buffer to constain all the useful things we want
1891  // to tell the user.
1892  std::string sbuf;
1893  llvm::raw_string_ostream os(sbuf);
1894
1895  // This is the allocation site since the previous node had no bindings
1896  // for this symbol.
1897  if (!PrevT) {
1898    const Stmt *S = cast<StmtPoint>(N->getLocation()).getStmt();
1899
1900    if (isa<ObjCArrayLiteral>(S)) {
1901      os << "NSArray literal is an object with a +0 retain count";
1902    }
1903    else if (isa<ObjCDictionaryLiteral>(S)) {
1904      os << "NSDictionary literal is an object with a +0 retain count";
1905    }
1906    else if (const ObjCBoxedExpr *BL = dyn_cast<ObjCBoxedExpr>(S)) {
1907      if (isNumericLiteralExpression(BL->getSubExpr()))
1908        os << "NSNumber literal is an object with a +0 retain count";
1909      else {
1910        const ObjCInterfaceDecl *BoxClass = 0;
1911        if (const ObjCMethodDecl *Method = BL->getBoxingMethod())
1912          BoxClass = Method->getClassInterface();
1913
1914        // We should always be able to find the boxing class interface,
1915        // but consider this future-proofing.
1916        if (BoxClass)
1917          os << *BoxClass << " b";
1918        else
1919          os << "B";
1920
1921        os << "oxed expression produces an object with a +0 retain count";
1922      }
1923    }
1924    else {
1925      if (const CallExpr *CE = dyn_cast<CallExpr>(S)) {
1926        // Get the name of the callee (if it is available).
1927        SVal X = CurrSt->getSValAsScalarOrLoc(CE->getCallee(), LCtx);
1928        if (const FunctionDecl *FD = X.getAsFunctionDecl())
1929          os << "Call to function '" << *FD << '\'';
1930        else
1931          os << "function call";
1932      }
1933      else {
1934        assert(isa<ObjCMessageExpr>(S));
1935        CallEventManager &Mgr = CurrSt->getStateManager().getCallEventManager();
1936        CallEventRef<ObjCMethodCall> Call
1937          = Mgr.getObjCMethodCall(cast<ObjCMessageExpr>(S), CurrSt, LCtx);
1938
1939        switch (Call->getMessageKind()) {
1940        case OCM_Message:
1941          os << "Method";
1942          break;
1943        case OCM_PropertyAccess:
1944          os << "Property";
1945          break;
1946        case OCM_Subscript:
1947          os << "Subscript";
1948          break;
1949        }
1950      }
1951
1952      if (CurrV.getObjKind() == RetEffect::CF) {
1953        os << " returns a Core Foundation object with a ";
1954      }
1955      else {
1956        assert (CurrV.getObjKind() == RetEffect::ObjC);
1957        os << " returns an Objective-C object with a ";
1958      }
1959
1960      if (CurrV.isOwned()) {
1961        os << "+1 retain count";
1962
1963        if (GCEnabled) {
1964          assert(CurrV.getObjKind() == RetEffect::CF);
1965          os << ".  "
1966          "Core Foundation objects are not automatically garbage collected.";
1967        }
1968      }
1969      else {
1970        assert (CurrV.isNotOwned());
1971        os << "+0 retain count";
1972      }
1973    }
1974
1975    PathDiagnosticLocation Pos(S, BRC.getSourceManager(),
1976                                  N->getLocationContext());
1977    return new PathDiagnosticEventPiece(Pos, os.str());
1978  }
1979
1980  // Gather up the effects that were performed on the object at this
1981  // program point
1982  SmallVector<ArgEffect, 2> AEffects;
1983
1984  const ExplodedNode *OrigNode = BRC.getNodeResolver().getOriginalNode(N);
1985  if (const RetainSummary *Summ = SummaryLog.lookup(OrigNode)) {
1986    // We only have summaries attached to nodes after evaluating CallExpr and
1987    // ObjCMessageExprs.
1988    const Stmt *S = cast<StmtPoint>(N->getLocation()).getStmt();
1989
1990    if (const CallExpr *CE = dyn_cast<CallExpr>(S)) {
1991      // Iterate through the parameter expressions and see if the symbol
1992      // was ever passed as an argument.
1993      unsigned i = 0;
1994
1995      for (CallExpr::const_arg_iterator AI=CE->arg_begin(), AE=CE->arg_end();
1996           AI!=AE; ++AI, ++i) {
1997
1998        // Retrieve the value of the argument.  Is it the symbol
1999        // we are interested in?
2000        if (CurrSt->getSValAsScalarOrLoc(*AI, LCtx).getAsLocSymbol() != Sym)
2001          continue;
2002
2003        // We have an argument.  Get the effect!
2004        AEffects.push_back(Summ->getArg(i));
2005      }
2006    }
2007    else if (const ObjCMessageExpr *ME = dyn_cast<ObjCMessageExpr>(S)) {
2008      if (const Expr *receiver = ME->getInstanceReceiver())
2009        if (CurrSt->getSValAsScalarOrLoc(receiver, LCtx)
2010              .getAsLocSymbol() == Sym) {
2011          // The symbol we are tracking is the receiver.
2012          AEffects.push_back(Summ->getReceiverEffect());
2013        }
2014    }
2015  }
2016
2017  do {
2018    // Get the previous type state.
2019    RefVal PrevV = *PrevT;
2020
2021    // Specially handle -dealloc.
2022    if (!GCEnabled && contains(AEffects, Dealloc)) {
2023      // Determine if the object's reference count was pushed to zero.
2024      assert(!(PrevV == CurrV) && "The typestate *must* have changed.");
2025      // We may not have transitioned to 'release' if we hit an error.
2026      // This case is handled elsewhere.
2027      if (CurrV.getKind() == RefVal::Released) {
2028        assert(CurrV.getCombinedCounts() == 0);
2029        os << "Object released by directly sending the '-dealloc' message";
2030        break;
2031      }
2032    }
2033
2034    // Specially handle CFMakeCollectable and friends.
2035    if (contains(AEffects, MakeCollectable)) {
2036      // Get the name of the function.
2037      const Stmt *S = cast<StmtPoint>(N->getLocation()).getStmt();
2038      SVal X =
2039        CurrSt->getSValAsScalarOrLoc(cast<CallExpr>(S)->getCallee(), LCtx);
2040      const FunctionDecl *FD = X.getAsFunctionDecl();
2041
2042      if (GCEnabled) {
2043        // Determine if the object's reference count was pushed to zero.
2044        assert(!(PrevV == CurrV) && "The typestate *must* have changed.");
2045
2046        os << "In GC mode a call to '" << *FD
2047        <<  "' decrements an object's retain count and registers the "
2048        "object with the garbage collector. ";
2049
2050        if (CurrV.getKind() == RefVal::Released) {
2051          assert(CurrV.getCount() == 0);
2052          os << "Since it now has a 0 retain count the object can be "
2053          "automatically collected by the garbage collector.";
2054        }
2055        else
2056          os << "An object must have a 0 retain count to be garbage collected. "
2057          "After this call its retain count is +" << CurrV.getCount()
2058          << '.';
2059      }
2060      else
2061        os << "When GC is not enabled a call to '" << *FD
2062        << "' has no effect on its argument.";
2063
2064      // Nothing more to say.
2065      break;
2066    }
2067
2068    // Determine if the typestate has changed.
2069    if (!(PrevV == CurrV))
2070      switch (CurrV.getKind()) {
2071        case RefVal::Owned:
2072        case RefVal::NotOwned:
2073
2074          if (PrevV.getCount() == CurrV.getCount()) {
2075            // Did an autorelease message get sent?
2076            if (PrevV.getAutoreleaseCount() == CurrV.getAutoreleaseCount())
2077              return 0;
2078
2079            assert(PrevV.getAutoreleaseCount() < CurrV.getAutoreleaseCount());
2080            os << "Object sent -autorelease message";
2081            break;
2082          }
2083
2084          if (PrevV.getCount() > CurrV.getCount())
2085            os << "Reference count decremented.";
2086          else
2087            os << "Reference count incremented.";
2088
2089          if (unsigned Count = CurrV.getCount())
2090            os << " The object now has a +" << Count << " retain count.";
2091
2092          if (PrevV.getKind() == RefVal::Released) {
2093            assert(GCEnabled && CurrV.getCount() > 0);
2094            os << " The object is not eligible for garbage collection until "
2095                  "the retain count reaches 0 again.";
2096          }
2097
2098          break;
2099
2100        case RefVal::Released:
2101          os << "Object released.";
2102          break;
2103
2104        case RefVal::ReturnedOwned:
2105          // Autoreleases can be applied after marking a node ReturnedOwned.
2106          if (CurrV.getAutoreleaseCount())
2107            return NULL;
2108
2109          os << "Object returned to caller as an owning reference (single "
2110                "retain count transferred to caller)";
2111          break;
2112
2113        case RefVal::ReturnedNotOwned:
2114          os << "Object returned to caller with a +0 retain count";
2115          break;
2116
2117        default:
2118          return NULL;
2119      }
2120
2121    // Emit any remaining diagnostics for the argument effects (if any).
2122    for (SmallVectorImpl<ArgEffect>::iterator I=AEffects.begin(),
2123         E=AEffects.end(); I != E; ++I) {
2124
2125      // A bunch of things have alternate behavior under GC.
2126      if (GCEnabled)
2127        switch (*I) {
2128          default: break;
2129          case Autorelease:
2130            os << "In GC mode an 'autorelease' has no effect.";
2131            continue;
2132          case IncRefMsg:
2133            os << "In GC mode the 'retain' message has no effect.";
2134            continue;
2135          case DecRefMsg:
2136            os << "In GC mode the 'release' message has no effect.";
2137            continue;
2138        }
2139    }
2140  } while (0);
2141
2142  if (os.str().empty())
2143    return 0; // We have nothing to say!
2144
2145  const Stmt *S = cast<StmtPoint>(N->getLocation()).getStmt();
2146  PathDiagnosticLocation Pos(S, BRC.getSourceManager(),
2147                                N->getLocationContext());
2148  PathDiagnosticPiece *P = new PathDiagnosticEventPiece(Pos, os.str());
2149
2150  // Add the range by scanning the children of the statement for any bindings
2151  // to Sym.
2152  for (Stmt::const_child_iterator I = S->child_begin(), E = S->child_end();
2153       I!=E; ++I)
2154    if (const Expr *Exp = dyn_cast_or_null<Expr>(*I))
2155      if (CurrSt->getSValAsScalarOrLoc(Exp, LCtx).getAsLocSymbol() == Sym) {
2156        P->addRange(Exp->getSourceRange());
2157        break;
2158      }
2159
2160  return P;
2161}
2162
2163// Find the first node in the current function context that referred to the
2164// tracked symbol and the memory location that value was stored to. Note, the
2165// value is only reported if the allocation occurred in the same function as
2166// the leak.
2167static std::pair<const ExplodedNode*,const MemRegion*>
2168GetAllocationSite(ProgramStateManager& StateMgr, const ExplodedNode *N,
2169                  SymbolRef Sym) {
2170  const ExplodedNode *Last = N;
2171  const MemRegion* FirstBinding = 0;
2172  const LocationContext *LeakContext = N->getLocationContext();
2173
2174  while (N) {
2175    ProgramStateRef St = N->getState();
2176
2177    if (!getRefBinding(St, Sym))
2178      break;
2179
2180    StoreManager::FindUniqueBinding FB(Sym);
2181    StateMgr.iterBindings(St, FB);
2182    if (FB) FirstBinding = FB.getRegion();
2183
2184    // Allocation node, is the last node in the current context in which the
2185    // symbol was tracked.
2186    if (N->getLocationContext() == LeakContext)
2187      Last = N;
2188
2189    N = N->pred_empty() ? NULL : *(N->pred_begin());
2190  }
2191
2192  // If allocation happened in a function different from the leak node context,
2193  // do not report the binding.
2194  assert(N && "Could not find allocation node");
2195  if (N->getLocationContext() != LeakContext) {
2196    FirstBinding = 0;
2197  }
2198
2199  return std::make_pair(Last, FirstBinding);
2200}
2201
2202PathDiagnosticPiece*
2203CFRefReportVisitor::getEndPath(BugReporterContext &BRC,
2204                               const ExplodedNode *EndN,
2205                               BugReport &BR) {
2206  BR.markInteresting(Sym);
2207  return BugReporterVisitor::getDefaultEndPath(BRC, EndN, BR);
2208}
2209
2210PathDiagnosticPiece*
2211CFRefLeakReportVisitor::getEndPath(BugReporterContext &BRC,
2212                                   const ExplodedNode *EndN,
2213                                   BugReport &BR) {
2214
2215  // Tell the BugReporterContext to report cases when the tracked symbol is
2216  // assigned to different variables, etc.
2217  BR.markInteresting(Sym);
2218
2219  // We are reporting a leak.  Walk up the graph to get to the first node where
2220  // the symbol appeared, and also get the first VarDecl that tracked object
2221  // is stored to.
2222  const ExplodedNode *AllocNode = 0;
2223  const MemRegion* FirstBinding = 0;
2224
2225  llvm::tie(AllocNode, FirstBinding) =
2226    GetAllocationSite(BRC.getStateManager(), EndN, Sym);
2227
2228  SourceManager& SM = BRC.getSourceManager();
2229
2230  // Compute an actual location for the leak.  Sometimes a leak doesn't
2231  // occur at an actual statement (e.g., transition between blocks; end
2232  // of function) so we need to walk the graph and compute a real location.
2233  const ExplodedNode *LeakN = EndN;
2234  PathDiagnosticLocation L = PathDiagnosticLocation::createEndOfPath(LeakN, SM);
2235
2236  std::string sbuf;
2237  llvm::raw_string_ostream os(sbuf);
2238
2239  os << "Object leaked: ";
2240
2241  if (FirstBinding) {
2242    os << "object allocated and stored into '"
2243       << FirstBinding->getString() << '\'';
2244  }
2245  else
2246    os << "allocated object";
2247
2248  // Get the retain count.
2249  const RefVal* RV = getRefBinding(EndN->getState(), Sym);
2250  assert(RV);
2251
2252  if (RV->getKind() == RefVal::ErrorLeakReturned) {
2253    // FIXME: Per comments in rdar://6320065, "create" only applies to CF
2254    // objects.  Only "copy", "alloc", "retain" and "new" transfer ownership
2255    // to the caller for NS objects.
2256    const Decl *D = &EndN->getCodeDecl();
2257
2258    os << (isa<ObjCMethodDecl>(D) ? " is returned from a method "
2259                                  : " is returned from a function ");
2260
2261    if (D->getAttr<CFReturnsNotRetainedAttr>())
2262      os << "that is annotated as CF_RETURNS_NOT_RETAINED";
2263    else if (D->getAttr<NSReturnsNotRetainedAttr>())
2264      os << "that is annotated as NS_RETURNS_NOT_RETAINED";
2265    else {
2266      if (const ObjCMethodDecl *MD = dyn_cast<ObjCMethodDecl>(D)) {
2267        os << "whose name ('" << MD->getSelector().getAsString()
2268           << "') does not start with 'copy', 'mutableCopy', 'alloc' or 'new'."
2269              "  This violates the naming convention rules"
2270              " given in the Memory Management Guide for Cocoa";
2271      }
2272      else {
2273        const FunctionDecl *FD = cast<FunctionDecl>(D);
2274        os << "whose name ('" << *FD
2275           << "') does not contain 'Copy' or 'Create'.  This violates the naming"
2276              " convention rules given in the Memory Management Guide for Core"
2277              " Foundation";
2278      }
2279    }
2280  }
2281  else if (RV->getKind() == RefVal::ErrorGCLeakReturned) {
2282    ObjCMethodDecl &MD = cast<ObjCMethodDecl>(EndN->getCodeDecl());
2283    os << " and returned from method '" << MD.getSelector().getAsString()
2284       << "' is potentially leaked when using garbage collection.  Callers "
2285          "of this method do not expect a returned object with a +1 retain "
2286          "count since they expect the object to be managed by the garbage "
2287          "collector";
2288  }
2289  else
2290    os << " is not referenced later in this execution path and has a retain "
2291          "count of +" << RV->getCount();
2292
2293  return new PathDiagnosticEventPiece(L, os.str());
2294}
2295
2296CFRefLeakReport::CFRefLeakReport(CFRefBug &D, const LangOptions &LOpts,
2297                                 bool GCEnabled, const SummaryLogTy &Log,
2298                                 ExplodedNode *n, SymbolRef sym,
2299                                 CheckerContext &Ctx)
2300: CFRefReport(D, LOpts, GCEnabled, Log, n, sym, false) {
2301
2302  // Most bug reports are cached at the location where they occurred.
2303  // With leaks, we want to unique them by the location where they were
2304  // allocated, and only report a single path.  To do this, we need to find
2305  // the allocation site of a piece of tracked memory, which we do via a
2306  // call to GetAllocationSite.  This will walk the ExplodedGraph backwards.
2307  // Note that this is *not* the trimmed graph; we are guaranteed, however,
2308  // that all ancestor nodes that represent the allocation site have the
2309  // same SourceLocation.
2310  const ExplodedNode *AllocNode = 0;
2311
2312  const SourceManager& SMgr = Ctx.getSourceManager();
2313
2314  llvm::tie(AllocNode, AllocBinding) =  // Set AllocBinding.
2315    GetAllocationSite(Ctx.getStateManager(), getErrorNode(), sym);
2316
2317  // Get the SourceLocation for the allocation site.
2318  // FIXME: This will crash the analyzer if an allocation comes from an
2319  // implicit call. (Currently there are no such allocations in Cocoa, though.)
2320  const Stmt *AllocStmt;
2321  ProgramPoint P = AllocNode->getLocation();
2322  if (CallExitEnd *Exit = dyn_cast<CallExitEnd>(&P))
2323    AllocStmt = Exit->getCalleeContext()->getCallSite();
2324  else
2325    AllocStmt = cast<PostStmt>(P).getStmt();
2326  assert(AllocStmt && "All allocations must come from explicit calls");
2327  Location = PathDiagnosticLocation::createBegin(AllocStmt, SMgr,
2328                                                  n->getLocationContext());
2329  // Fill in the description of the bug.
2330  Description.clear();
2331  llvm::raw_string_ostream os(Description);
2332  os << "Potential leak ";
2333  if (GCEnabled)
2334    os << "(when using garbage collection) ";
2335  os << "of an object";
2336
2337  // FIXME: AllocBinding doesn't get populated for RegionStore yet.
2338  if (AllocBinding)
2339    os << " stored into '" << AllocBinding->getString() << '\'';
2340
2341  addVisitor(new CFRefLeakReportVisitor(sym, GCEnabled, Log));
2342}
2343
2344//===----------------------------------------------------------------------===//
2345// Main checker logic.
2346//===----------------------------------------------------------------------===//
2347
2348namespace {
2349class RetainCountChecker
2350  : public Checker< check::Bind,
2351                    check::DeadSymbols,
2352                    check::EndAnalysis,
2353                    check::EndPath,
2354                    check::PostStmt<BlockExpr>,
2355                    check::PostStmt<CastExpr>,
2356                    check::PostStmt<ObjCArrayLiteral>,
2357                    check::PostStmt<ObjCDictionaryLiteral>,
2358                    check::PostStmt<ObjCBoxedExpr>,
2359                    check::PostCall,
2360                    check::PreStmt<ReturnStmt>,
2361                    check::RegionChanges,
2362                    eval::Assume,
2363                    eval::Call > {
2364  mutable OwningPtr<CFRefBug> useAfterRelease, releaseNotOwned;
2365  mutable OwningPtr<CFRefBug> deallocGC, deallocNotOwned;
2366  mutable OwningPtr<CFRefBug> overAutorelease, returnNotOwnedForOwned;
2367  mutable OwningPtr<CFRefBug> leakWithinFunction, leakAtReturn;
2368  mutable OwningPtr<CFRefBug> leakWithinFunctionGC, leakAtReturnGC;
2369
2370  typedef llvm::DenseMap<SymbolRef, const SimpleProgramPointTag *> SymbolTagMap;
2371
2372  // This map is only used to ensure proper deletion of any allocated tags.
2373  mutable SymbolTagMap DeadSymbolTags;
2374
2375  mutable OwningPtr<RetainSummaryManager> Summaries;
2376  mutable OwningPtr<RetainSummaryManager> SummariesGC;
2377  mutable SummaryLogTy SummaryLog;
2378  mutable bool ShouldResetSummaryLog;
2379
2380public:
2381  RetainCountChecker() : ShouldResetSummaryLog(false) {}
2382
2383  virtual ~RetainCountChecker() {
2384    DeleteContainerSeconds(DeadSymbolTags);
2385  }
2386
2387  void checkEndAnalysis(ExplodedGraph &G, BugReporter &BR,
2388                        ExprEngine &Eng) const {
2389    // FIXME: This is a hack to make sure the summary log gets cleared between
2390    // analyses of different code bodies.
2391    //
2392    // Why is this necessary? Because a checker's lifetime is tied to a
2393    // translation unit, but an ExplodedGraph's lifetime is just a code body.
2394    // Once in a blue moon, a new ExplodedNode will have the same address as an
2395    // old one with an associated summary, and the bug report visitor gets very
2396    // confused. (To make things worse, the summary lifetime is currently also
2397    // tied to a code body, so we get a crash instead of incorrect results.)
2398    //
2399    // Why is this a bad solution? Because if the lifetime of the ExplodedGraph
2400    // changes, things will start going wrong again. Really the lifetime of this
2401    // log needs to be tied to either the specific nodes in it or the entire
2402    // ExplodedGraph, not to a specific part of the code being analyzed.
2403    //
2404    // (Also, having stateful local data means that the same checker can't be
2405    // used from multiple threads, but a lot of checkers have incorrect
2406    // assumptions about that anyway. So that wasn't a priority at the time of
2407    // this fix.)
2408    //
2409    // This happens at the end of analysis, but bug reports are emitted /after/
2410    // this point. So we can't just clear the summary log now. Instead, we mark
2411    // that the next time we access the summary log, it should be cleared.
2412
2413    // If we never reset the summary log during /this/ code body analysis,
2414    // there were no new summaries. There might still have been summaries from
2415    // the /last/ analysis, so clear them out to make sure the bug report
2416    // visitors don't get confused.
2417    if (ShouldResetSummaryLog)
2418      SummaryLog.clear();
2419
2420    ShouldResetSummaryLog = !SummaryLog.empty();
2421  }
2422
2423  CFRefBug *getLeakWithinFunctionBug(const LangOptions &LOpts,
2424                                     bool GCEnabled) const {
2425    if (GCEnabled) {
2426      if (!leakWithinFunctionGC)
2427        leakWithinFunctionGC.reset(new Leak("Leak of object when using "
2428                                             "garbage collection"));
2429      return leakWithinFunctionGC.get();
2430    } else {
2431      if (!leakWithinFunction) {
2432        if (LOpts.getGC() == LangOptions::HybridGC) {
2433          leakWithinFunction.reset(new Leak("Leak of object when not using "
2434                                            "garbage collection (GC) in "
2435                                            "dual GC/non-GC code"));
2436        } else {
2437          leakWithinFunction.reset(new Leak("Leak"));
2438        }
2439      }
2440      return leakWithinFunction.get();
2441    }
2442  }
2443
2444  CFRefBug *getLeakAtReturnBug(const LangOptions &LOpts, bool GCEnabled) const {
2445    if (GCEnabled) {
2446      if (!leakAtReturnGC)
2447        leakAtReturnGC.reset(new Leak("Leak of returned object when using "
2448                                      "garbage collection"));
2449      return leakAtReturnGC.get();
2450    } else {
2451      if (!leakAtReturn) {
2452        if (LOpts.getGC() == LangOptions::HybridGC) {
2453          leakAtReturn.reset(new Leak("Leak of returned object when not using "
2454                                      "garbage collection (GC) in dual "
2455                                      "GC/non-GC code"));
2456        } else {
2457          leakAtReturn.reset(new Leak("Leak of returned object"));
2458        }
2459      }
2460      return leakAtReturn.get();
2461    }
2462  }
2463
2464  RetainSummaryManager &getSummaryManager(ASTContext &Ctx,
2465                                          bool GCEnabled) const {
2466    // FIXME: We don't support ARC being turned on and off during one analysis.
2467    // (nor, for that matter, do we support changing ASTContexts)
2468    bool ARCEnabled = (bool)Ctx.getLangOpts().ObjCAutoRefCount;
2469    if (GCEnabled) {
2470      if (!SummariesGC)
2471        SummariesGC.reset(new RetainSummaryManager(Ctx, true, ARCEnabled));
2472      else
2473        assert(SummariesGC->isARCEnabled() == ARCEnabled);
2474      return *SummariesGC;
2475    } else {
2476      if (!Summaries)
2477        Summaries.reset(new RetainSummaryManager(Ctx, false, ARCEnabled));
2478      else
2479        assert(Summaries->isARCEnabled() == ARCEnabled);
2480      return *Summaries;
2481    }
2482  }
2483
2484  RetainSummaryManager &getSummaryManager(CheckerContext &C) const {
2485    return getSummaryManager(C.getASTContext(), C.isObjCGCEnabled());
2486  }
2487
2488  void printState(raw_ostream &Out, ProgramStateRef State,
2489                  const char *NL, const char *Sep) const;
2490
2491  void checkBind(SVal loc, SVal val, const Stmt *S, CheckerContext &C) const;
2492  void checkPostStmt(const BlockExpr *BE, CheckerContext &C) const;
2493  void checkPostStmt(const CastExpr *CE, CheckerContext &C) const;
2494
2495  void checkPostStmt(const ObjCArrayLiteral *AL, CheckerContext &C) const;
2496  void checkPostStmt(const ObjCDictionaryLiteral *DL, CheckerContext &C) const;
2497  void checkPostStmt(const ObjCBoxedExpr *BE, CheckerContext &C) const;
2498
2499  void checkPostCall(const CallEvent &Call, CheckerContext &C) const;
2500
2501  void checkSummary(const RetainSummary &Summ, const CallEvent &Call,
2502                    CheckerContext &C) const;
2503
2504  void processSummaryOfInlined(const RetainSummary &Summ,
2505                               const CallEvent &Call,
2506                               CheckerContext &C) const;
2507
2508  bool evalCall(const CallExpr *CE, CheckerContext &C) const;
2509
2510  ProgramStateRef evalAssume(ProgramStateRef state, SVal Cond,
2511                                 bool Assumption) const;
2512
2513  ProgramStateRef
2514  checkRegionChanges(ProgramStateRef state,
2515                     const InvalidatedSymbols *invalidated,
2516                     ArrayRef<const MemRegion *> ExplicitRegions,
2517                     ArrayRef<const MemRegion *> Regions,
2518                     const CallEvent *Call) const;
2519
2520  bool wantsRegionChangeUpdate(ProgramStateRef state) const {
2521    return true;
2522  }
2523
2524  void checkPreStmt(const ReturnStmt *S, CheckerContext &C) const;
2525  void checkReturnWithRetEffect(const ReturnStmt *S, CheckerContext &C,
2526                                ExplodedNode *Pred, RetEffect RE, RefVal X,
2527                                SymbolRef Sym, ProgramStateRef state) const;
2528
2529  void checkDeadSymbols(SymbolReaper &SymReaper, CheckerContext &C) const;
2530  void checkEndPath(CheckerContext &C) const;
2531
2532  ProgramStateRef updateSymbol(ProgramStateRef state, SymbolRef sym,
2533                               RefVal V, ArgEffect E, RefVal::Kind &hasErr,
2534                               CheckerContext &C) const;
2535
2536  void processNonLeakError(ProgramStateRef St, SourceRange ErrorRange,
2537                           RefVal::Kind ErrorKind, SymbolRef Sym,
2538                           CheckerContext &C) const;
2539
2540  void processObjCLiterals(CheckerContext &C, const Expr *Ex) const;
2541
2542  const ProgramPointTag *getDeadSymbolTag(SymbolRef sym) const;
2543
2544  ProgramStateRef handleSymbolDeath(ProgramStateRef state,
2545                                    SymbolRef sid, RefVal V,
2546                                    SmallVectorImpl<SymbolRef> &Leaked) const;
2547
2548  ProgramStateRef
2549  handleAutoreleaseCounts(ProgramStateRef state, ExplodedNode *Pred,
2550                          const ProgramPointTag *Tag, CheckerContext &Ctx,
2551                          SymbolRef Sym, RefVal V) const;
2552
2553  ExplodedNode *processLeaks(ProgramStateRef state,
2554                             SmallVectorImpl<SymbolRef> &Leaked,
2555                             CheckerContext &Ctx,
2556                             ExplodedNode *Pred = 0) const;
2557};
2558} // end anonymous namespace
2559
2560namespace {
2561class StopTrackingCallback : public SymbolVisitor {
2562  ProgramStateRef state;
2563public:
2564  StopTrackingCallback(ProgramStateRef st) : state(st) {}
2565  ProgramStateRef getState() const { return state; }
2566
2567  bool VisitSymbol(SymbolRef sym) {
2568    state = state->remove<RefBindings>(sym);
2569    return true;
2570  }
2571};
2572} // end anonymous namespace
2573
2574//===----------------------------------------------------------------------===//
2575// Handle statements that may have an effect on refcounts.
2576//===----------------------------------------------------------------------===//
2577
2578void RetainCountChecker::checkPostStmt(const BlockExpr *BE,
2579                                       CheckerContext &C) const {
2580
2581  // Scan the BlockDecRefExprs for any object the retain count checker
2582  // may be tracking.
2583  if (!BE->getBlockDecl()->hasCaptures())
2584    return;
2585
2586  ProgramStateRef state = C.getState();
2587  const BlockDataRegion *R =
2588    cast<BlockDataRegion>(state->getSVal(BE,
2589                                         C.getLocationContext()).getAsRegion());
2590
2591  BlockDataRegion::referenced_vars_iterator I = R->referenced_vars_begin(),
2592                                            E = R->referenced_vars_end();
2593
2594  if (I == E)
2595    return;
2596
2597  // FIXME: For now we invalidate the tracking of all symbols passed to blocks
2598  // via captured variables, even though captured variables result in a copy
2599  // and in implicit increment/decrement of a retain count.
2600  SmallVector<const MemRegion*, 10> Regions;
2601  const LocationContext *LC = C.getLocationContext();
2602  MemRegionManager &MemMgr = C.getSValBuilder().getRegionManager();
2603
2604  for ( ; I != E; ++I) {
2605    const VarRegion *VR = I.getCapturedRegion();
2606    if (VR->getSuperRegion() == R) {
2607      VR = MemMgr.getVarRegion(VR->getDecl(), LC);
2608    }
2609    Regions.push_back(VR);
2610  }
2611
2612  state =
2613    state->scanReachableSymbols<StopTrackingCallback>(Regions.data(),
2614                                    Regions.data() + Regions.size()).getState();
2615  C.addTransition(state);
2616}
2617
2618void RetainCountChecker::checkPostStmt(const CastExpr *CE,
2619                                       CheckerContext &C) const {
2620  const ObjCBridgedCastExpr *BE = dyn_cast<ObjCBridgedCastExpr>(CE);
2621  if (!BE)
2622    return;
2623
2624  ArgEffect AE = IncRef;
2625
2626  switch (BE->getBridgeKind()) {
2627    case clang::OBC_Bridge:
2628      // Do nothing.
2629      return;
2630    case clang::OBC_BridgeRetained:
2631      AE = IncRef;
2632      break;
2633    case clang::OBC_BridgeTransfer:
2634      AE = DecRefBridgedTransfered;
2635      break;
2636  }
2637
2638  ProgramStateRef state = C.getState();
2639  SymbolRef Sym = state->getSVal(CE, C.getLocationContext()).getAsLocSymbol();
2640  if (!Sym)
2641    return;
2642  const RefVal* T = getRefBinding(state, Sym);
2643  if (!T)
2644    return;
2645
2646  RefVal::Kind hasErr = (RefVal::Kind) 0;
2647  state = updateSymbol(state, Sym, *T, AE, hasErr, C);
2648
2649  if (hasErr) {
2650    // FIXME: If we get an error during a bridge cast, should we report it?
2651    // Should we assert that there is no error?
2652    return;
2653  }
2654
2655  C.addTransition(state);
2656}
2657
2658void RetainCountChecker::processObjCLiterals(CheckerContext &C,
2659                                             const Expr *Ex) const {
2660  ProgramStateRef state = C.getState();
2661  const ExplodedNode *pred = C.getPredecessor();
2662  for (Stmt::const_child_iterator it = Ex->child_begin(), et = Ex->child_end() ;
2663       it != et ; ++it) {
2664    const Stmt *child = *it;
2665    SVal V = state->getSVal(child, pred->getLocationContext());
2666    if (SymbolRef sym = V.getAsSymbol())
2667      if (const RefVal* T = getRefBinding(state, sym)) {
2668        RefVal::Kind hasErr = (RefVal::Kind) 0;
2669        state = updateSymbol(state, sym, *T, MayEscape, hasErr, C);
2670        if (hasErr) {
2671          processNonLeakError(state, child->getSourceRange(), hasErr, sym, C);
2672          return;
2673        }
2674      }
2675  }
2676
2677  // Return the object as autoreleased.
2678  //  RetEffect RE = RetEffect::MakeNotOwned(RetEffect::ObjC);
2679  if (SymbolRef sym =
2680        state->getSVal(Ex, pred->getLocationContext()).getAsSymbol()) {
2681    QualType ResultTy = Ex->getType();
2682    state = setRefBinding(state, sym,
2683                          RefVal::makeNotOwned(RetEffect::ObjC, ResultTy));
2684  }
2685
2686  C.addTransition(state);
2687}
2688
2689void RetainCountChecker::checkPostStmt(const ObjCArrayLiteral *AL,
2690                                       CheckerContext &C) const {
2691  // Apply the 'MayEscape' to all values.
2692  processObjCLiterals(C, AL);
2693}
2694
2695void RetainCountChecker::checkPostStmt(const ObjCDictionaryLiteral *DL,
2696                                       CheckerContext &C) const {
2697  // Apply the 'MayEscape' to all keys and values.
2698  processObjCLiterals(C, DL);
2699}
2700
2701void RetainCountChecker::checkPostStmt(const ObjCBoxedExpr *Ex,
2702                                       CheckerContext &C) const {
2703  const ExplodedNode *Pred = C.getPredecessor();
2704  const LocationContext *LCtx = Pred->getLocationContext();
2705  ProgramStateRef State = Pred->getState();
2706
2707  if (SymbolRef Sym = State->getSVal(Ex, LCtx).getAsSymbol()) {
2708    QualType ResultTy = Ex->getType();
2709    State = setRefBinding(State, Sym,
2710                          RefVal::makeNotOwned(RetEffect::ObjC, ResultTy));
2711  }
2712
2713  C.addTransition(State);
2714}
2715
2716void RetainCountChecker::checkPostCall(const CallEvent &Call,
2717                                       CheckerContext &C) const {
2718  RetainSummaryManager &Summaries = getSummaryManager(C);
2719  const RetainSummary *Summ = Summaries.getSummary(Call, C.getState());
2720
2721  if (C.wasInlined) {
2722    processSummaryOfInlined(*Summ, Call, C);
2723    return;
2724  }
2725  checkSummary(*Summ, Call, C);
2726}
2727
2728/// GetReturnType - Used to get the return type of a message expression or
2729///  function call with the intention of affixing that type to a tracked symbol.
2730///  While the return type can be queried directly from RetEx, when
2731///  invoking class methods we augment to the return type to be that of
2732///  a pointer to the class (as opposed it just being id).
2733// FIXME: We may be able to do this with related result types instead.
2734// This function is probably overestimating.
2735static QualType GetReturnType(const Expr *RetE, ASTContext &Ctx) {
2736  QualType RetTy = RetE->getType();
2737  // If RetE is not a message expression just return its type.
2738  // If RetE is a message expression, return its types if it is something
2739  /// more specific than id.
2740  if (const ObjCMessageExpr *ME = dyn_cast<ObjCMessageExpr>(RetE))
2741    if (const ObjCObjectPointerType *PT = RetTy->getAs<ObjCObjectPointerType>())
2742      if (PT->isObjCQualifiedIdType() || PT->isObjCIdType() ||
2743          PT->isObjCClassType()) {
2744        // At this point we know the return type of the message expression is
2745        // id, id<...>, or Class. If we have an ObjCInterfaceDecl, we know this
2746        // is a call to a class method whose type we can resolve.  In such
2747        // cases, promote the return type to XXX* (where XXX is the class).
2748        const ObjCInterfaceDecl *D = ME->getReceiverInterface();
2749        return !D ? RetTy :
2750                    Ctx.getObjCObjectPointerType(Ctx.getObjCInterfaceType(D));
2751      }
2752
2753  return RetTy;
2754}
2755
2756// We don't always get the exact modeling of the function with regards to the
2757// retain count checker even when the function is inlined. For example, we need
2758// to stop tracking the symbols which were marked with StopTrackingHard.
2759void RetainCountChecker::processSummaryOfInlined(const RetainSummary &Summ,
2760                                                 const CallEvent &CallOrMsg,
2761                                                 CheckerContext &C) const {
2762  ProgramStateRef state = C.getState();
2763
2764  // Evaluate the effect of the arguments.
2765  for (unsigned idx = 0, e = CallOrMsg.getNumArgs(); idx != e; ++idx) {
2766    if (Summ.getArg(idx) == StopTrackingHard) {
2767      SVal V = CallOrMsg.getArgSVal(idx);
2768      if (SymbolRef Sym = V.getAsLocSymbol()) {
2769        state = removeRefBinding(state, Sym);
2770      }
2771    }
2772  }
2773
2774  // Evaluate the effect on the message receiver.
2775  const ObjCMethodCall *MsgInvocation = dyn_cast<ObjCMethodCall>(&CallOrMsg);
2776  if (MsgInvocation) {
2777    if (SymbolRef Sym = MsgInvocation->getReceiverSVal().getAsLocSymbol()) {
2778      if (Summ.getReceiverEffect() == StopTrackingHard) {
2779        state = removeRefBinding(state, Sym);
2780      }
2781    }
2782  }
2783
2784  // Consult the summary for the return value.
2785  RetEffect RE = Summ.getRetEffect();
2786  if (RE.getKind() == RetEffect::NoRetHard) {
2787    SymbolRef Sym = CallOrMsg.getReturnValue().getAsSymbol();
2788    if (Sym)
2789      state = removeRefBinding(state, Sym);
2790  }
2791
2792  C.addTransition(state);
2793}
2794
2795void RetainCountChecker::checkSummary(const RetainSummary &Summ,
2796                                      const CallEvent &CallOrMsg,
2797                                      CheckerContext &C) const {
2798  ProgramStateRef state = C.getState();
2799
2800  // Evaluate the effect of the arguments.
2801  RefVal::Kind hasErr = (RefVal::Kind) 0;
2802  SourceRange ErrorRange;
2803  SymbolRef ErrorSym = 0;
2804
2805  for (unsigned idx = 0, e = CallOrMsg.getNumArgs(); idx != e; ++idx) {
2806    SVal V = CallOrMsg.getArgSVal(idx);
2807
2808    if (SymbolRef Sym = V.getAsLocSymbol()) {
2809      if (const RefVal *T = getRefBinding(state, Sym)) {
2810        state = updateSymbol(state, Sym, *T, Summ.getArg(idx), hasErr, C);
2811        if (hasErr) {
2812          ErrorRange = CallOrMsg.getArgSourceRange(idx);
2813          ErrorSym = Sym;
2814          break;
2815        }
2816      }
2817    }
2818  }
2819
2820  // Evaluate the effect on the message receiver.
2821  bool ReceiverIsTracked = false;
2822  if (!hasErr) {
2823    const ObjCMethodCall *MsgInvocation = dyn_cast<ObjCMethodCall>(&CallOrMsg);
2824    if (MsgInvocation) {
2825      if (SymbolRef Sym = MsgInvocation->getReceiverSVal().getAsLocSymbol()) {
2826        if (const RefVal *T = getRefBinding(state, Sym)) {
2827          ReceiverIsTracked = true;
2828          state = updateSymbol(state, Sym, *T, Summ.getReceiverEffect(),
2829                                 hasErr, C);
2830          if (hasErr) {
2831            ErrorRange = MsgInvocation->getOriginExpr()->getReceiverRange();
2832            ErrorSym = Sym;
2833          }
2834        }
2835      }
2836    }
2837  }
2838
2839  // Process any errors.
2840  if (hasErr) {
2841    processNonLeakError(state, ErrorRange, hasErr, ErrorSym, C);
2842    return;
2843  }
2844
2845  // Consult the summary for the return value.
2846  RetEffect RE = Summ.getRetEffect();
2847
2848  if (RE.getKind() == RetEffect::OwnedWhenTrackedReceiver) {
2849    if (ReceiverIsTracked)
2850      RE = getSummaryManager(C).getObjAllocRetEffect();
2851    else
2852      RE = RetEffect::MakeNoRet();
2853  }
2854
2855  switch (RE.getKind()) {
2856    default:
2857      llvm_unreachable("Unhandled RetEffect.");
2858
2859    case RetEffect::NoRet:
2860    case RetEffect::NoRetHard:
2861      // No work necessary.
2862      break;
2863
2864    case RetEffect::OwnedAllocatedSymbol:
2865    case RetEffect::OwnedSymbol: {
2866      SymbolRef Sym = CallOrMsg.getReturnValue().getAsSymbol();
2867      if (!Sym)
2868        break;
2869
2870      // Use the result type from the CallEvent as it automatically adjusts
2871      // for methods/functions that return references.
2872      QualType ResultTy = CallOrMsg.getResultType();
2873      state = setRefBinding(state, Sym, RefVal::makeOwned(RE.getObjKind(),
2874                                                          ResultTy));
2875
2876      // FIXME: Add a flag to the checker where allocations are assumed to
2877      // *not* fail.
2878      break;
2879    }
2880
2881    case RetEffect::GCNotOwnedSymbol:
2882    case RetEffect::ARCNotOwnedSymbol:
2883    case RetEffect::NotOwnedSymbol: {
2884      const Expr *Ex = CallOrMsg.getOriginExpr();
2885      SymbolRef Sym = CallOrMsg.getReturnValue().getAsSymbol();
2886      if (!Sym)
2887        break;
2888      assert(Ex);
2889      // Use GetReturnType in order to give [NSFoo alloc] the type NSFoo *.
2890      QualType ResultTy = GetReturnType(Ex, C.getASTContext());
2891      state = setRefBinding(state, Sym, RefVal::makeNotOwned(RE.getObjKind(),
2892                                                             ResultTy));
2893      break;
2894    }
2895  }
2896
2897  // This check is actually necessary; otherwise the statement builder thinks
2898  // we've hit a previously-found path.
2899  // Normally addTransition takes care of this, but we want the node pointer.
2900  ExplodedNode *NewNode;
2901  if (state == C.getState()) {
2902    NewNode = C.getPredecessor();
2903  } else {
2904    NewNode = C.addTransition(state);
2905  }
2906
2907  // Annotate the node with summary we used.
2908  if (NewNode) {
2909    // FIXME: This is ugly. See checkEndAnalysis for why it's necessary.
2910    if (ShouldResetSummaryLog) {
2911      SummaryLog.clear();
2912      ShouldResetSummaryLog = false;
2913    }
2914    SummaryLog[NewNode] = &Summ;
2915  }
2916}
2917
2918
2919ProgramStateRef
2920RetainCountChecker::updateSymbol(ProgramStateRef state, SymbolRef sym,
2921                                 RefVal V, ArgEffect E, RefVal::Kind &hasErr,
2922                                 CheckerContext &C) const {
2923  // In GC mode [... release] and [... retain] do nothing.
2924  // In ARC mode they shouldn't exist at all, but we just ignore them.
2925  bool IgnoreRetainMsg = C.isObjCGCEnabled();
2926  if (!IgnoreRetainMsg)
2927    IgnoreRetainMsg = (bool)C.getASTContext().getLangOpts().ObjCAutoRefCount;
2928
2929  switch (E) {
2930  default:
2931    break;
2932  case IncRefMsg:
2933    E = IgnoreRetainMsg ? DoNothing : IncRef;
2934    break;
2935  case DecRefMsg:
2936    E = IgnoreRetainMsg ? DoNothing : DecRef;
2937    break;
2938  case DecRefMsgAndStopTrackingHard:
2939    E = IgnoreRetainMsg ? StopTracking : DecRefAndStopTrackingHard;
2940    break;
2941  case MakeCollectable:
2942    E = C.isObjCGCEnabled() ? DecRef : DoNothing;
2943    break;
2944  case NewAutoreleasePool:
2945    E = C.isObjCGCEnabled() ? DoNothing : NewAutoreleasePool;
2946    break;
2947  }
2948
2949  // Handle all use-after-releases.
2950  if (!C.isObjCGCEnabled() && V.getKind() == RefVal::Released) {
2951    V = V ^ RefVal::ErrorUseAfterRelease;
2952    hasErr = V.getKind();
2953    return setRefBinding(state, sym, V);
2954  }
2955
2956  switch (E) {
2957    case DecRefMsg:
2958    case IncRefMsg:
2959    case MakeCollectable:
2960    case DecRefMsgAndStopTrackingHard:
2961      llvm_unreachable("DecRefMsg/IncRefMsg/MakeCollectable already converted");
2962
2963    case Dealloc:
2964      // Any use of -dealloc in GC is *bad*.
2965      if (C.isObjCGCEnabled()) {
2966        V = V ^ RefVal::ErrorDeallocGC;
2967        hasErr = V.getKind();
2968        break;
2969      }
2970
2971      switch (V.getKind()) {
2972        default:
2973          llvm_unreachable("Invalid RefVal state for an explicit dealloc.");
2974        case RefVal::Owned:
2975          // The object immediately transitions to the released state.
2976          V = V ^ RefVal::Released;
2977          V.clearCounts();
2978          return setRefBinding(state, sym, V);
2979        case RefVal::NotOwned:
2980          V = V ^ RefVal::ErrorDeallocNotOwned;
2981          hasErr = V.getKind();
2982          break;
2983      }
2984      break;
2985
2986    case NewAutoreleasePool:
2987      assert(!C.isObjCGCEnabled());
2988      return state;
2989
2990    case MayEscape:
2991      if (V.getKind() == RefVal::Owned) {
2992        V = V ^ RefVal::NotOwned;
2993        break;
2994      }
2995
2996      // Fall-through.
2997
2998    case DoNothing:
2999      return state;
3000
3001    case Autorelease:
3002      if (C.isObjCGCEnabled())
3003        return state;
3004      // Update the autorelease counts.
3005      V = V.autorelease();
3006      break;
3007
3008    case StopTracking:
3009    case StopTrackingHard:
3010      return removeRefBinding(state, sym);
3011
3012    case IncRef:
3013      switch (V.getKind()) {
3014        default:
3015          llvm_unreachable("Invalid RefVal state for a retain.");
3016        case RefVal::Owned:
3017        case RefVal::NotOwned:
3018          V = V + 1;
3019          break;
3020        case RefVal::Released:
3021          // Non-GC cases are handled above.
3022          assert(C.isObjCGCEnabled());
3023          V = (V ^ RefVal::Owned) + 1;
3024          break;
3025      }
3026      break;
3027
3028    case DecRef:
3029    case DecRefBridgedTransfered:
3030    case DecRefAndStopTrackingHard:
3031      switch (V.getKind()) {
3032        default:
3033          // case 'RefVal::Released' handled above.
3034          llvm_unreachable("Invalid RefVal state for a release.");
3035
3036        case RefVal::Owned:
3037          assert(V.getCount() > 0);
3038          if (V.getCount() == 1)
3039            V = V ^ (E == DecRefBridgedTransfered ?
3040                      RefVal::NotOwned : RefVal::Released);
3041          else if (E == DecRefAndStopTrackingHard)
3042            return removeRefBinding(state, sym);
3043
3044          V = V - 1;
3045          break;
3046
3047        case RefVal::NotOwned:
3048          if (V.getCount() > 0) {
3049            if (E == DecRefAndStopTrackingHard)
3050              return removeRefBinding(state, sym);
3051            V = V - 1;
3052          } else {
3053            V = V ^ RefVal::ErrorReleaseNotOwned;
3054            hasErr = V.getKind();
3055          }
3056          break;
3057
3058        case RefVal::Released:
3059          // Non-GC cases are handled above.
3060          assert(C.isObjCGCEnabled());
3061          V = V ^ RefVal::ErrorUseAfterRelease;
3062          hasErr = V.getKind();
3063          break;
3064      }
3065      break;
3066  }
3067  return setRefBinding(state, sym, V);
3068}
3069
3070void RetainCountChecker::processNonLeakError(ProgramStateRef St,
3071                                             SourceRange ErrorRange,
3072                                             RefVal::Kind ErrorKind,
3073                                             SymbolRef Sym,
3074                                             CheckerContext &C) const {
3075  ExplodedNode *N = C.generateSink(St);
3076  if (!N)
3077    return;
3078
3079  CFRefBug *BT;
3080  switch (ErrorKind) {
3081    default:
3082      llvm_unreachable("Unhandled error.");
3083    case RefVal::ErrorUseAfterRelease:
3084      if (!useAfterRelease)
3085        useAfterRelease.reset(new UseAfterRelease());
3086      BT = &*useAfterRelease;
3087      break;
3088    case RefVal::ErrorReleaseNotOwned:
3089      if (!releaseNotOwned)
3090        releaseNotOwned.reset(new BadRelease());
3091      BT = &*releaseNotOwned;
3092      break;
3093    case RefVal::ErrorDeallocGC:
3094      if (!deallocGC)
3095        deallocGC.reset(new DeallocGC());
3096      BT = &*deallocGC;
3097      break;
3098    case RefVal::ErrorDeallocNotOwned:
3099      if (!deallocNotOwned)
3100        deallocNotOwned.reset(new DeallocNotOwned());
3101      BT = &*deallocNotOwned;
3102      break;
3103  }
3104
3105  assert(BT);
3106  CFRefReport *report = new CFRefReport(*BT, C.getASTContext().getLangOpts(),
3107                                        C.isObjCGCEnabled(), SummaryLog,
3108                                        N, Sym);
3109  report->addRange(ErrorRange);
3110  C.emitReport(report);
3111}
3112
3113//===----------------------------------------------------------------------===//
3114// Handle the return values of retain-count-related functions.
3115//===----------------------------------------------------------------------===//
3116
3117bool RetainCountChecker::evalCall(const CallExpr *CE, CheckerContext &C) const {
3118  // Get the callee. We're only interested in simple C functions.
3119  ProgramStateRef state = C.getState();
3120  const FunctionDecl *FD = C.getCalleeDecl(CE);
3121  if (!FD)
3122    return false;
3123
3124  IdentifierInfo *II = FD->getIdentifier();
3125  if (!II)
3126    return false;
3127
3128  // For now, we're only handling the functions that return aliases of their
3129  // arguments: CFRetain and CFMakeCollectable (and their families).
3130  // Eventually we should add other functions we can model entirely,
3131  // such as CFRelease, which don't invalidate their arguments or globals.
3132  if (CE->getNumArgs() != 1)
3133    return false;
3134
3135  // Get the name of the function.
3136  StringRef FName = II->getName();
3137  FName = FName.substr(FName.find_first_not_of('_'));
3138
3139  // See if it's one of the specific functions we know how to eval.
3140  bool canEval = false;
3141
3142  QualType ResultTy = CE->getCallReturnType();
3143  if (ResultTy->isObjCIdType()) {
3144    // Handle: id NSMakeCollectable(CFTypeRef)
3145    canEval = II->isStr("NSMakeCollectable");
3146  } else if (ResultTy->isPointerType()) {
3147    // Handle: (CF|CG)Retain
3148    //         CFMakeCollectable
3149    // It's okay to be a little sloppy here (CGMakeCollectable doesn't exist).
3150    if (cocoa::isRefType(ResultTy, "CF", FName) ||
3151        cocoa::isRefType(ResultTy, "CG", FName)) {
3152      canEval = isRetain(FD, FName) || isMakeCollectable(FD, FName);
3153    }
3154  }
3155
3156  if (!canEval)
3157    return false;
3158
3159  // Bind the return value.
3160  const LocationContext *LCtx = C.getLocationContext();
3161  SVal RetVal = state->getSVal(CE->getArg(0), LCtx);
3162  if (RetVal.isUnknown()) {
3163    // If the receiver is unknown, conjure a return value.
3164    SValBuilder &SVB = C.getSValBuilder();
3165    RetVal = SVB.conjureSymbolVal(0, CE, LCtx, ResultTy, C.blockCount());
3166  }
3167  state = state->BindExpr(CE, LCtx, RetVal, false);
3168
3169  // FIXME: This should not be necessary, but otherwise the argument seems to be
3170  // considered alive during the next statement.
3171  if (const MemRegion *ArgRegion = RetVal.getAsRegion()) {
3172    // Save the refcount status of the argument.
3173    SymbolRef Sym = RetVal.getAsLocSymbol();
3174    const RefVal *Binding = 0;
3175    if (Sym)
3176      Binding = getRefBinding(state, Sym);
3177
3178    // Invalidate the argument region.
3179    state = state->invalidateRegions(ArgRegion, CE, C.blockCount(), LCtx,
3180                                     /*ResultsInPointerEscape*/ false);
3181
3182    // Restore the refcount status of the argument.
3183    if (Binding)
3184      state = setRefBinding(state, Sym, *Binding);
3185  }
3186
3187  C.addTransition(state);
3188  return true;
3189}
3190
3191//===----------------------------------------------------------------------===//
3192// Handle return statements.
3193//===----------------------------------------------------------------------===//
3194
3195void RetainCountChecker::checkPreStmt(const ReturnStmt *S,
3196                                      CheckerContext &C) const {
3197
3198  // Only adjust the reference count if this is the top-level call frame,
3199  // and not the result of inlining.  In the future, we should do
3200  // better checking even for inlined calls, and see if they match
3201  // with their expected semantics (e.g., the method should return a retained
3202  // object, etc.).
3203  if (!C.inTopFrame())
3204    return;
3205
3206  const Expr *RetE = S->getRetValue();
3207  if (!RetE)
3208    return;
3209
3210  ProgramStateRef state = C.getState();
3211  SymbolRef Sym =
3212    state->getSValAsScalarOrLoc(RetE, C.getLocationContext()).getAsLocSymbol();
3213  if (!Sym)
3214    return;
3215
3216  // Get the reference count binding (if any).
3217  const RefVal *T = getRefBinding(state, Sym);
3218  if (!T)
3219    return;
3220
3221  // Change the reference count.
3222  RefVal X = *T;
3223
3224  switch (X.getKind()) {
3225    case RefVal::Owned: {
3226      unsigned cnt = X.getCount();
3227      assert(cnt > 0);
3228      X.setCount(cnt - 1);
3229      X = X ^ RefVal::ReturnedOwned;
3230      break;
3231    }
3232
3233    case RefVal::NotOwned: {
3234      unsigned cnt = X.getCount();
3235      if (cnt) {
3236        X.setCount(cnt - 1);
3237        X = X ^ RefVal::ReturnedOwned;
3238      }
3239      else {
3240        X = X ^ RefVal::ReturnedNotOwned;
3241      }
3242      break;
3243    }
3244
3245    default:
3246      return;
3247  }
3248
3249  // Update the binding.
3250  state = setRefBinding(state, Sym, X);
3251  ExplodedNode *Pred = C.addTransition(state);
3252
3253  // At this point we have updated the state properly.
3254  // Everything after this is merely checking to see if the return value has
3255  // been over- or under-retained.
3256
3257  // Did we cache out?
3258  if (!Pred)
3259    return;
3260
3261  // Update the autorelease counts.
3262  static SimpleProgramPointTag
3263         AutoreleaseTag("RetainCountChecker : Autorelease");
3264  state = handleAutoreleaseCounts(state, Pred, &AutoreleaseTag, C, Sym, X);
3265
3266  // Did we cache out?
3267  if (!state)
3268    return;
3269
3270  // Get the updated binding.
3271  T = getRefBinding(state, Sym);
3272  assert(T);
3273  X = *T;
3274
3275  // Consult the summary of the enclosing method.
3276  RetainSummaryManager &Summaries = getSummaryManager(C);
3277  const Decl *CD = &Pred->getCodeDecl();
3278  RetEffect RE = RetEffect::MakeNoRet();
3279
3280  // FIXME: What is the convention for blocks? Is there one?
3281  if (const ObjCMethodDecl *MD = dyn_cast<ObjCMethodDecl>(CD)) {
3282    const RetainSummary *Summ = Summaries.getMethodSummary(MD);
3283    RE = Summ->getRetEffect();
3284  } else if (const FunctionDecl *FD = dyn_cast<FunctionDecl>(CD)) {
3285    if (!isa<CXXMethodDecl>(FD)) {
3286      const RetainSummary *Summ = Summaries.getFunctionSummary(FD);
3287      RE = Summ->getRetEffect();
3288    }
3289  }
3290
3291  checkReturnWithRetEffect(S, C, Pred, RE, X, Sym, state);
3292}
3293
3294void RetainCountChecker::checkReturnWithRetEffect(const ReturnStmt *S,
3295                                                  CheckerContext &C,
3296                                                  ExplodedNode *Pred,
3297                                                  RetEffect RE, RefVal X,
3298                                                  SymbolRef Sym,
3299                                              ProgramStateRef state) const {
3300  // Any leaks or other errors?
3301  if (X.isReturnedOwned() && X.getCount() == 0) {
3302    if (RE.getKind() != RetEffect::NoRet) {
3303      bool hasError = false;
3304      if (C.isObjCGCEnabled() && RE.getObjKind() == RetEffect::ObjC) {
3305        // Things are more complicated with garbage collection.  If the
3306        // returned object is suppose to be an Objective-C object, we have
3307        // a leak (as the caller expects a GC'ed object) because no
3308        // method should return ownership unless it returns a CF object.
3309        hasError = true;
3310        X = X ^ RefVal::ErrorGCLeakReturned;
3311      }
3312      else if (!RE.isOwned()) {
3313        // Either we are using GC and the returned object is a CF type
3314        // or we aren't using GC.  In either case, we expect that the
3315        // enclosing method is expected to return ownership.
3316        hasError = true;
3317        X = X ^ RefVal::ErrorLeakReturned;
3318      }
3319
3320      if (hasError) {
3321        // Generate an error node.
3322        state = setRefBinding(state, Sym, X);
3323
3324        static SimpleProgramPointTag
3325               ReturnOwnLeakTag("RetainCountChecker : ReturnsOwnLeak");
3326        ExplodedNode *N = C.addTransition(state, Pred, &ReturnOwnLeakTag);
3327        if (N) {
3328          const LangOptions &LOpts = C.getASTContext().getLangOpts();
3329          bool GCEnabled = C.isObjCGCEnabled();
3330          CFRefReport *report =
3331            new CFRefLeakReport(*getLeakAtReturnBug(LOpts, GCEnabled),
3332                                LOpts, GCEnabled, SummaryLog,
3333                                N, Sym, C);
3334          C.emitReport(report);
3335        }
3336      }
3337    }
3338  } else if (X.isReturnedNotOwned()) {
3339    if (RE.isOwned()) {
3340      // Trying to return a not owned object to a caller expecting an
3341      // owned object.
3342      state = setRefBinding(state, Sym, X ^ RefVal::ErrorReturnedNotOwned);
3343
3344      static SimpleProgramPointTag
3345             ReturnNotOwnedTag("RetainCountChecker : ReturnNotOwnedForOwned");
3346      ExplodedNode *N = C.addTransition(state, Pred, &ReturnNotOwnedTag);
3347      if (N) {
3348        if (!returnNotOwnedForOwned)
3349          returnNotOwnedForOwned.reset(new ReturnedNotOwnedForOwned());
3350
3351        CFRefReport *report =
3352            new CFRefReport(*returnNotOwnedForOwned,
3353                            C.getASTContext().getLangOpts(),
3354                            C.isObjCGCEnabled(), SummaryLog, N, Sym);
3355        C.emitReport(report);
3356      }
3357    }
3358  }
3359}
3360
3361//===----------------------------------------------------------------------===//
3362// Check various ways a symbol can be invalidated.
3363//===----------------------------------------------------------------------===//
3364
3365void RetainCountChecker::checkBind(SVal loc, SVal val, const Stmt *S,
3366                                   CheckerContext &C) const {
3367  // Are we storing to something that causes the value to "escape"?
3368  bool escapes = true;
3369
3370  // A value escapes in three possible cases (this may change):
3371  //
3372  // (1) we are binding to something that is not a memory region.
3373  // (2) we are binding to a memregion that does not have stack storage
3374  // (3) we are binding to a memregion with stack storage that the store
3375  //     does not understand.
3376  ProgramStateRef state = C.getState();
3377
3378  if (loc::MemRegionVal *regionLoc = dyn_cast<loc::MemRegionVal>(&loc)) {
3379    escapes = !regionLoc->getRegion()->hasStackStorage();
3380
3381    if (!escapes) {
3382      // To test (3), generate a new state with the binding added.  If it is
3383      // the same state, then it escapes (since the store cannot represent
3384      // the binding).
3385      // Do this only if we know that the store is not supposed to generate the
3386      // same state.
3387      SVal StoredVal = state->getSVal(regionLoc->getRegion());
3388      if (StoredVal != val)
3389        escapes = (state == (state->bindLoc(*regionLoc, val)));
3390    }
3391    if (!escapes) {
3392      // Case 4: We do not currently model what happens when a symbol is
3393      // assigned to a struct field, so be conservative here and let the symbol
3394      // go. TODO: This could definitely be improved upon.
3395      escapes = !isa<VarRegion>(regionLoc->getRegion());
3396    }
3397  }
3398
3399  // If our store can represent the binding and we aren't storing to something
3400  // that doesn't have local storage then just return and have the simulation
3401  // state continue as is.
3402  if (!escapes)
3403      return;
3404
3405  // Otherwise, find all symbols referenced by 'val' that we are tracking
3406  // and stop tracking them.
3407  state = state->scanReachableSymbols<StopTrackingCallback>(val).getState();
3408  C.addTransition(state);
3409}
3410
3411ProgramStateRef RetainCountChecker::evalAssume(ProgramStateRef state,
3412                                                   SVal Cond,
3413                                                   bool Assumption) const {
3414
3415  // FIXME: We may add to the interface of evalAssume the list of symbols
3416  //  whose assumptions have changed.  For now we just iterate through the
3417  //  bindings and check if any of the tracked symbols are NULL.  This isn't
3418  //  too bad since the number of symbols we will track in practice are
3419  //  probably small and evalAssume is only called at branches and a few
3420  //  other places.
3421  RefBindingsTy B = state->get<RefBindings>();
3422
3423  if (B.isEmpty())
3424    return state;
3425
3426  bool changed = false;
3427  RefBindingsTy::Factory &RefBFactory = state->get_context<RefBindings>();
3428
3429  for (RefBindingsTy::iterator I = B.begin(), E = B.end(); I != E; ++I) {
3430    // Check if the symbol is null stop tracking the symbol.
3431    ConstraintManager &CMgr = state->getConstraintManager();
3432    ConditionTruthVal AllocFailed = CMgr.isNull(state, I.getKey());
3433    if (AllocFailed.isConstrainedTrue()) {
3434      changed = true;
3435      B = RefBFactory.remove(B, I.getKey());
3436    }
3437  }
3438
3439  if (changed)
3440    state = state->set<RefBindings>(B);
3441
3442  return state;
3443}
3444
3445ProgramStateRef
3446RetainCountChecker::checkRegionChanges(ProgramStateRef state,
3447                                    const InvalidatedSymbols *invalidated,
3448                                    ArrayRef<const MemRegion *> ExplicitRegions,
3449                                    ArrayRef<const MemRegion *> Regions,
3450                                    const CallEvent *Call) const {
3451  if (!invalidated)
3452    return state;
3453
3454  llvm::SmallPtrSet<SymbolRef, 8> WhitelistedSymbols;
3455  for (ArrayRef<const MemRegion *>::iterator I = ExplicitRegions.begin(),
3456       E = ExplicitRegions.end(); I != E; ++I) {
3457    if (const SymbolicRegion *SR = (*I)->StripCasts()->getAs<SymbolicRegion>())
3458      WhitelistedSymbols.insert(SR->getSymbol());
3459  }
3460
3461  for (InvalidatedSymbols::const_iterator I=invalidated->begin(),
3462       E = invalidated->end(); I!=E; ++I) {
3463    SymbolRef sym = *I;
3464    if (WhitelistedSymbols.count(sym))
3465      continue;
3466    // Remove any existing reference-count binding.
3467    state = removeRefBinding(state, sym);
3468  }
3469  return state;
3470}
3471
3472//===----------------------------------------------------------------------===//
3473// Handle dead symbols and end-of-path.
3474//===----------------------------------------------------------------------===//
3475
3476ProgramStateRef
3477RetainCountChecker::handleAutoreleaseCounts(ProgramStateRef state,
3478                                            ExplodedNode *Pred,
3479                                            const ProgramPointTag *Tag,
3480                                            CheckerContext &Ctx,
3481                                            SymbolRef Sym, RefVal V) const {
3482  unsigned ACnt = V.getAutoreleaseCount();
3483
3484  // No autorelease counts?  Nothing to be done.
3485  if (!ACnt)
3486    return state;
3487
3488  assert(!Ctx.isObjCGCEnabled() && "Autorelease counts in GC mode?");
3489  unsigned Cnt = V.getCount();
3490
3491  // FIXME: Handle sending 'autorelease' to already released object.
3492
3493  if (V.getKind() == RefVal::ReturnedOwned)
3494    ++Cnt;
3495
3496  if (ACnt <= Cnt) {
3497    if (ACnt == Cnt) {
3498      V.clearCounts();
3499      if (V.getKind() == RefVal::ReturnedOwned)
3500        V = V ^ RefVal::ReturnedNotOwned;
3501      else
3502        V = V ^ RefVal::NotOwned;
3503    } else {
3504      V.setCount(Cnt - ACnt);
3505      V.setAutoreleaseCount(0);
3506    }
3507    return setRefBinding(state, Sym, V);
3508  }
3509
3510  // Woah!  More autorelease counts then retain counts left.
3511  // Emit hard error.
3512  V = V ^ RefVal::ErrorOverAutorelease;
3513  state = setRefBinding(state, Sym, V);
3514
3515  ExplodedNode *N = Ctx.generateSink(state, Pred, Tag);
3516  if (N) {
3517    SmallString<128> sbuf;
3518    llvm::raw_svector_ostream os(sbuf);
3519    os << "Object over-autoreleased: object was sent -autorelease ";
3520    if (V.getAutoreleaseCount() > 1)
3521      os << V.getAutoreleaseCount() << " times ";
3522    os << "but the object has a +" << V.getCount() << " retain count";
3523
3524    if (!overAutorelease)
3525      overAutorelease.reset(new OverAutorelease());
3526
3527    const LangOptions &LOpts = Ctx.getASTContext().getLangOpts();
3528    CFRefReport *report =
3529      new CFRefReport(*overAutorelease, LOpts, /* GCEnabled = */ false,
3530                      SummaryLog, N, Sym, os.str());
3531    Ctx.emitReport(report);
3532  }
3533
3534  return 0;
3535}
3536
3537ProgramStateRef
3538RetainCountChecker::handleSymbolDeath(ProgramStateRef state,
3539                                      SymbolRef sid, RefVal V,
3540                                    SmallVectorImpl<SymbolRef> &Leaked) const {
3541  bool hasLeak = false;
3542  if (V.isOwned())
3543    hasLeak = true;
3544  else if (V.isNotOwned() || V.isReturnedOwned())
3545    hasLeak = (V.getCount() > 0);
3546
3547  if (!hasLeak)
3548    return removeRefBinding(state, sid);
3549
3550  Leaked.push_back(sid);
3551  return setRefBinding(state, sid, V ^ RefVal::ErrorLeak);
3552}
3553
3554ExplodedNode *
3555RetainCountChecker::processLeaks(ProgramStateRef state,
3556                                 SmallVectorImpl<SymbolRef> &Leaked,
3557                                 CheckerContext &Ctx,
3558                                 ExplodedNode *Pred) const {
3559  // Generate an intermediate node representing the leak point.
3560  ExplodedNode *N = Ctx.addTransition(state, Pred);
3561
3562  if (N) {
3563    for (SmallVectorImpl<SymbolRef>::iterator
3564         I = Leaked.begin(), E = Leaked.end(); I != E; ++I) {
3565
3566      const LangOptions &LOpts = Ctx.getASTContext().getLangOpts();
3567      bool GCEnabled = Ctx.isObjCGCEnabled();
3568      CFRefBug *BT = Pred ? getLeakWithinFunctionBug(LOpts, GCEnabled)
3569                          : getLeakAtReturnBug(LOpts, GCEnabled);
3570      assert(BT && "BugType not initialized.");
3571
3572      CFRefLeakReport *report = new CFRefLeakReport(*BT, LOpts, GCEnabled,
3573                                                    SummaryLog, N, *I, Ctx);
3574      Ctx.emitReport(report);
3575    }
3576  }
3577
3578  return N;
3579}
3580
3581void RetainCountChecker::checkEndPath(CheckerContext &Ctx) const {
3582  ProgramStateRef state = Ctx.getState();
3583  RefBindingsTy B = state->get<RefBindings>();
3584  ExplodedNode *Pred = Ctx.getPredecessor();
3585
3586  for (RefBindingsTy::iterator I = B.begin(), E = B.end(); I != E; ++I) {
3587    state = handleAutoreleaseCounts(state, Pred, /*Tag=*/0, Ctx,
3588                                    I->first, I->second);
3589    if (!state)
3590      return;
3591  }
3592
3593  // If the current LocationContext has a parent, don't check for leaks.
3594  // We will do that later.
3595  // FIXME: we should instead check for imbalances of the retain/releases,
3596  // and suggest annotations.
3597  if (Ctx.getLocationContext()->getParent())
3598    return;
3599
3600  B = state->get<RefBindings>();
3601  SmallVector<SymbolRef, 10> Leaked;
3602
3603  for (RefBindingsTy::iterator I = B.begin(), E = B.end(); I != E; ++I)
3604    state = handleSymbolDeath(state, I->first, I->second, Leaked);
3605
3606  processLeaks(state, Leaked, Ctx, Pred);
3607}
3608
3609const ProgramPointTag *
3610RetainCountChecker::getDeadSymbolTag(SymbolRef sym) const {
3611  const SimpleProgramPointTag *&tag = DeadSymbolTags[sym];
3612  if (!tag) {
3613    SmallString<64> buf;
3614    llvm::raw_svector_ostream out(buf);
3615    out << "RetainCountChecker : Dead Symbol : ";
3616    sym->dumpToStream(out);
3617    tag = new SimpleProgramPointTag(out.str());
3618  }
3619  return tag;
3620}
3621
3622void RetainCountChecker::checkDeadSymbols(SymbolReaper &SymReaper,
3623                                          CheckerContext &C) const {
3624  ExplodedNode *Pred = C.getPredecessor();
3625
3626  ProgramStateRef state = C.getState();
3627  RefBindingsTy B = state->get<RefBindings>();
3628  SmallVector<SymbolRef, 10> Leaked;
3629
3630  // Update counts from autorelease pools
3631  for (SymbolReaper::dead_iterator I = SymReaper.dead_begin(),
3632       E = SymReaper.dead_end(); I != E; ++I) {
3633    SymbolRef Sym = *I;
3634    if (const RefVal *T = B.lookup(Sym)){
3635      // Use the symbol as the tag.
3636      // FIXME: This might not be as unique as we would like.
3637      const ProgramPointTag *Tag = getDeadSymbolTag(Sym);
3638      state = handleAutoreleaseCounts(state, Pred, Tag, C, Sym, *T);
3639      if (!state)
3640        return;
3641
3642      // Fetch the new reference count from the state, and use it to handle
3643      // this symbol.
3644      state = handleSymbolDeath(state, *I, *getRefBinding(state, Sym), Leaked);
3645    }
3646  }
3647
3648  if (Leaked.empty()) {
3649    C.addTransition(state);
3650    return;
3651  }
3652
3653  Pred = processLeaks(state, Leaked, C, Pred);
3654
3655  // Did we cache out?
3656  if (!Pred)
3657    return;
3658
3659  // Now generate a new node that nukes the old bindings.
3660  // The only bindings left at this point are the leaked symbols.
3661  RefBindingsTy::Factory &F = state->get_context<RefBindings>();
3662  B = state->get<RefBindings>();
3663
3664  for (SmallVectorImpl<SymbolRef>::iterator I = Leaked.begin(),
3665                                            E = Leaked.end();
3666       I != E; ++I)
3667    B = F.remove(B, *I);
3668
3669  state = state->set<RefBindings>(B);
3670  C.addTransition(state, Pred);
3671}
3672
3673void RetainCountChecker::printState(raw_ostream &Out, ProgramStateRef State,
3674                                    const char *NL, const char *Sep) const {
3675
3676  RefBindingsTy B = State->get<RefBindings>();
3677
3678  if (!B.isEmpty())
3679    Out << Sep << NL;
3680
3681  for (RefBindingsTy::iterator I = B.begin(), E = B.end(); I != E; ++I) {
3682    Out << I->first << " : ";
3683    I->second.print(Out);
3684    Out << NL;
3685  }
3686}
3687
3688//===----------------------------------------------------------------------===//
3689// Checker registration.
3690//===----------------------------------------------------------------------===//
3691
3692void ento::registerRetainCountChecker(CheckerManager &Mgr) {
3693  Mgr.registerChecker<RetainCountChecker>();
3694}
3695
3696