1 //===- ExprEngine.cpp - Path-Sensitive Expression-Level Dataflow ----------===//
2 //
3 // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions.
4 // See https://llvm.org/LICENSE.txt for license information.
5 // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
6 //
7 //===----------------------------------------------------------------------===//
8 //
9 //  This file defines a meta-engine for path-sensitive dataflow analysis that
10 //  is built on GREngine, but provides the boilerplate to execute transfer
11 //  functions and build the ExplodedGraph at the expression level.
12 //
13 //===----------------------------------------------------------------------===//
14 
15 #include "clang/StaticAnalyzer/Core/PathSensitive/ExprEngine.h"
16 #include "PrettyStackTraceLocationContext.h"
17 #include "clang/AST/ASTContext.h"
18 #include "clang/AST/Decl.h"
19 #include "clang/AST/DeclBase.h"
20 #include "clang/AST/DeclCXX.h"
21 #include "clang/AST/DeclObjC.h"
22 #include "clang/AST/Expr.h"
23 #include "clang/AST/ExprCXX.h"
24 #include "clang/AST/ExprObjC.h"
25 #include "clang/AST/ParentMap.h"
26 #include "clang/AST/PrettyPrinter.h"
27 #include "clang/AST/Stmt.h"
28 #include "clang/AST/StmtCXX.h"
29 #include "clang/AST/StmtObjC.h"
30 #include "clang/AST/Type.h"
31 #include "clang/Analysis/AnalysisDeclContext.h"
32 #include "clang/Analysis/CFG.h"
33 #include "clang/Analysis/ConstructionContext.h"
34 #include "clang/Analysis/ProgramPoint.h"
35 #include "clang/Basic/IdentifierTable.h"
36 #include "clang/Basic/JsonSupport.h"
37 #include "clang/Basic/LLVM.h"
38 #include "clang/Basic/LangOptions.h"
39 #include "clang/Basic/PrettyStackTrace.h"
40 #include "clang/Basic/SourceLocation.h"
41 #include "clang/Basic/SourceManager.h"
42 #include "clang/Basic/Specifiers.h"
43 #include "clang/StaticAnalyzer/Core/AnalyzerOptions.h"
44 #include "clang/StaticAnalyzer/Core/BugReporter/BugReporter.h"
45 #include "clang/StaticAnalyzer/Core/BugReporter/BugType.h"
46 #include "clang/StaticAnalyzer/Core/CheckerManager.h"
47 #include "clang/StaticAnalyzer/Core/PathSensitive/AnalysisManager.h"
48 #include "clang/StaticAnalyzer/Core/PathSensitive/CallEvent.h"
49 #include "clang/StaticAnalyzer/Core/PathSensitive/ConstraintManager.h"
50 #include "clang/StaticAnalyzer/Core/PathSensitive/CoreEngine.h"
51 #include "clang/StaticAnalyzer/Core/PathSensitive/ExplodedGraph.h"
52 #include "clang/StaticAnalyzer/Core/PathSensitive/LoopUnrolling.h"
53 #include "clang/StaticAnalyzer/Core/PathSensitive/LoopWidening.h"
54 #include "clang/StaticAnalyzer/Core/PathSensitive/MemRegion.h"
55 #include "clang/StaticAnalyzer/Core/PathSensitive/ProgramState.h"
56 #include "clang/StaticAnalyzer/Core/PathSensitive/ProgramStateTrait.h"
57 #include "clang/StaticAnalyzer/Core/PathSensitive/ProgramState_Fwd.h"
58 #include "clang/StaticAnalyzer/Core/PathSensitive/SValBuilder.h"
59 #include "clang/StaticAnalyzer/Core/PathSensitive/SVals.h"
60 #include "clang/StaticAnalyzer/Core/PathSensitive/Store.h"
61 #include "clang/StaticAnalyzer/Core/PathSensitive/SymExpr.h"
62 #include "clang/StaticAnalyzer/Core/PathSensitive/SymbolManager.h"
63 #include "llvm/ADT/APSInt.h"
64 #include "llvm/ADT/DenseMap.h"
65 #include "llvm/ADT/ImmutableMap.h"
66 #include "llvm/ADT/ImmutableSet.h"
67 #include "llvm/ADT/Optional.h"
68 #include "llvm/ADT/SmallVector.h"
69 #include "llvm/ADT/Statistic.h"
70 #include "llvm/Support/Casting.h"
71 #include "llvm/Support/Compiler.h"
72 #include "llvm/Support/DOTGraphTraits.h"
73 #include "llvm/Support/ErrorHandling.h"
74 #include "llvm/Support/GraphWriter.h"
75 #include "llvm/Support/SaveAndRestore.h"
76 #include "llvm/Support/raw_ostream.h"
77 #include <cassert>
78 #include <cstdint>
79 #include <memory>
80 #include <string>
81 #include <tuple>
82 #include <utility>
83 #include <vector>
84 
85 using namespace clang;
86 using namespace ento;
87 
88 #define DEBUG_TYPE "ExprEngine"
89 
90 STATISTIC(NumRemoveDeadBindings,
91             "The # of times RemoveDeadBindings is called");
92 STATISTIC(NumMaxBlockCountReached,
93             "The # of aborted paths due to reaching the maximum block count in "
94             "a top level function");
95 STATISTIC(NumMaxBlockCountReachedInInlined,
96             "The # of aborted paths due to reaching the maximum block count in "
97             "an inlined function");
98 STATISTIC(NumTimesRetriedWithoutInlining,
99             "The # of times we re-evaluated a call without inlining");
100 
101 //===----------------------------------------------------------------------===//
102 // Internal program state traits.
103 //===----------------------------------------------------------------------===//
104 
105 namespace {
106 
107 // When modeling a C++ constructor, for a variety of reasons we need to track
108 // the location of the object for the duration of its ConstructionContext.
109 // ObjectsUnderConstruction maps statements within the construction context
110 // to the object's location, so that on every such statement the location
111 // could have been retrieved.
112 
113 /// ConstructedObjectKey is used for being able to find the path-sensitive
114 /// memory region of a freshly constructed object while modeling the AST node
115 /// that syntactically represents the object that is being constructed.
116 /// Semantics of such nodes may sometimes require access to the region that's
117 /// not otherwise present in the program state, or to the very fact that
118 /// the construction context was present and contained references to these
119 /// AST nodes.
120 class ConstructedObjectKey {
121   typedef std::pair<ConstructionContextItem, const LocationContext *>
122       ConstructedObjectKeyImpl;
123 
124   const ConstructedObjectKeyImpl Impl;
125 
126   const void *getAnyASTNodePtr() const {
127     if (const Stmt *S = getItem().getStmtOrNull())
128       return S;
129     else
130       return getItem().getCXXCtorInitializer();
131   }
132 
133 public:
134   explicit ConstructedObjectKey(const ConstructionContextItem &Item,
135                        const LocationContext *LC)
136       : Impl(Item, LC) {}
137 
138   const ConstructionContextItem &getItem() const { return Impl.first; }
139   const LocationContext *getLocationContext() const { return Impl.second; }
140 
141   ASTContext &getASTContext() const {
142     return getLocationContext()->getDecl()->getASTContext();
143   }
144 
145   void printJson(llvm::raw_ostream &Out, PrinterHelper *Helper,
146                  PrintingPolicy &PP) const {
147     const Stmt *S = getItem().getStmtOrNull();
148     const CXXCtorInitializer *I = nullptr;
149     if (!S)
150       I = getItem().getCXXCtorInitializer();
151 
152     if (S)
153       Out << "\"stmt_id\": " << S->getID(getASTContext());
154     else
155       Out << "\"init_id\": " << I->getID(getASTContext());
156 
157     // Kind
158     Out << ", \"kind\": \"" << getItem().getKindAsString()
159         << "\", \"argument_index\": ";
160 
161     if (getItem().getKind() == ConstructionContextItem::ArgumentKind)
162       Out << getItem().getIndex();
163     else
164       Out << "null";
165 
166     // Pretty-print
167     Out << ", \"pretty\": ";
168 
169     if (S) {
170       S->printJson(Out, Helper, PP, /*AddQuotes=*/true);
171     } else {
172       Out << '\"' << I->getAnyMember()->getDeclName() << '\"';
173     }
174   }
175 
176   void Profile(llvm::FoldingSetNodeID &ID) const {
177     ID.Add(Impl.first);
178     ID.AddPointer(Impl.second);
179   }
180 
181   bool operator==(const ConstructedObjectKey &RHS) const {
182     return Impl == RHS.Impl;
183   }
184 
185   bool operator<(const ConstructedObjectKey &RHS) const {
186     return Impl < RHS.Impl;
187   }
188 };
189 } // namespace
190 
191 typedef llvm::ImmutableMap<ConstructedObjectKey, SVal>
192     ObjectsUnderConstructionMap;
193 REGISTER_TRAIT_WITH_PROGRAMSTATE(ObjectsUnderConstruction,
194                                  ObjectsUnderConstructionMap)
195 
196 //===----------------------------------------------------------------------===//
197 // Engine construction and deletion.
198 //===----------------------------------------------------------------------===//
199 
200 static const char* TagProviderName = "ExprEngine";
201 
202 ExprEngine::ExprEngine(cross_tu::CrossTranslationUnitContext &CTU,
203                        AnalysisManager &mgr,
204                        SetOfConstDecls *VisitedCalleesIn,
205                        FunctionSummariesTy *FS,
206                        InliningModes HowToInlineIn)
207     : CTU(CTU), AMgr(mgr),
208       AnalysisDeclContexts(mgr.getAnalysisDeclContextManager()),
209       Engine(*this, FS, mgr.getAnalyzerOptions()), G(Engine.getGraph()),
210       StateMgr(getContext(), mgr.getStoreManagerCreator(),
211                mgr.getConstraintManagerCreator(), G.getAllocator(),
212                this),
213       SymMgr(StateMgr.getSymbolManager()),
214       MRMgr(StateMgr.getRegionManager()),
215       svalBuilder(StateMgr.getSValBuilder()),
216       ObjCNoRet(mgr.getASTContext()),
217       BR(mgr, *this),
218       VisitedCallees(VisitedCalleesIn),
219       HowToInline(HowToInlineIn)
220   {
221   unsigned TrimInterval = mgr.options.GraphTrimInterval;
222   if (TrimInterval != 0) {
223     // Enable eager node reclamation when constructing the ExplodedGraph.
224     G.enableNodeReclamation(TrimInterval);
225   }
226 }
227 
228 //===----------------------------------------------------------------------===//
229 // Utility methods.
230 //===----------------------------------------------------------------------===//
231 
232 ProgramStateRef ExprEngine::getInitialState(const LocationContext *InitLoc) {
233   ProgramStateRef state = StateMgr.getInitialState(InitLoc);
234   const Decl *D = InitLoc->getDecl();
235 
236   // Preconditions.
237   // FIXME: It would be nice if we had a more general mechanism to add
238   // such preconditions.  Some day.
239   do {
240     if (const auto *FD = dyn_cast<FunctionDecl>(D)) {
241       // Precondition: the first argument of 'main' is an integer guaranteed
242       //  to be > 0.
243       const IdentifierInfo *II = FD->getIdentifier();
244       if (!II || !(II->getName() == "main" && FD->getNumParams() > 0))
245         break;
246 
247       const ParmVarDecl *PD = FD->getParamDecl(0);
248       QualType T = PD->getType();
249       const auto *BT = dyn_cast<BuiltinType>(T);
250       if (!BT || !BT->isInteger())
251         break;
252 
253       const MemRegion *R = state->getRegion(PD, InitLoc);
254       if (!R)
255         break;
256 
257       SVal V = state->getSVal(loc::MemRegionVal(R));
258       SVal Constraint_untested = evalBinOp(state, BO_GT, V,
259                                            svalBuilder.makeZeroVal(T),
260                                            svalBuilder.getConditionType());
261 
262       Optional<DefinedOrUnknownSVal> Constraint =
263           Constraint_untested.getAs<DefinedOrUnknownSVal>();
264 
265       if (!Constraint)
266         break;
267 
268       if (ProgramStateRef newState = state->assume(*Constraint, true))
269         state = newState;
270     }
271     break;
272   }
273   while (false);
274 
275   if (const auto *MD = dyn_cast<ObjCMethodDecl>(D)) {
276     // Precondition: 'self' is always non-null upon entry to an Objective-C
277     // method.
278     const ImplicitParamDecl *SelfD = MD->getSelfDecl();
279     const MemRegion *R = state->getRegion(SelfD, InitLoc);
280     SVal V = state->getSVal(loc::MemRegionVal(R));
281 
282     if (Optional<Loc> LV = V.getAs<Loc>()) {
283       // Assume that the pointer value in 'self' is non-null.
284       state = state->assume(*LV, true);
285       assert(state && "'self' cannot be null");
286     }
287   }
288 
289   if (const auto *MD = dyn_cast<CXXMethodDecl>(D)) {
290     if (!MD->isStatic()) {
291       // Precondition: 'this' is always non-null upon entry to the
292       // top-level function.  This is our starting assumption for
293       // analyzing an "open" program.
294       const StackFrameContext *SFC = InitLoc->getStackFrame();
295       if (SFC->getParent() == nullptr) {
296         loc::MemRegionVal L = svalBuilder.getCXXThis(MD, SFC);
297         SVal V = state->getSVal(L);
298         if (Optional<Loc> LV = V.getAs<Loc>()) {
299           state = state->assume(*LV, true);
300           assert(state && "'this' cannot be null");
301         }
302       }
303     }
304   }
305 
306   return state;
307 }
308 
309 ProgramStateRef ExprEngine::createTemporaryRegionIfNeeded(
310     ProgramStateRef State, const LocationContext *LC,
311     const Expr *InitWithAdjustments, const Expr *Result,
312     const SubRegion **OutRegionWithAdjustments) {
313   // FIXME: This function is a hack that works around the quirky AST
314   // we're often having with respect to C++ temporaries. If only we modelled
315   // the actual execution order of statements properly in the CFG,
316   // all the hassle with adjustments would not be necessary,
317   // and perhaps the whole function would be removed.
318   SVal InitValWithAdjustments = State->getSVal(InitWithAdjustments, LC);
319   if (!Result) {
320     // If we don't have an explicit result expression, we're in "if needed"
321     // mode. Only create a region if the current value is a NonLoc.
322     if (!InitValWithAdjustments.getAs<NonLoc>()) {
323       if (OutRegionWithAdjustments)
324         *OutRegionWithAdjustments = nullptr;
325       return State;
326     }
327     Result = InitWithAdjustments;
328   } else {
329     // We need to create a region no matter what. For sanity, make sure we don't
330     // try to stuff a Loc into a non-pointer temporary region.
331     assert(!InitValWithAdjustments.getAs<Loc>() ||
332            Loc::isLocType(Result->getType()) ||
333            Result->getType()->isMemberPointerType());
334   }
335 
336   ProgramStateManager &StateMgr = State->getStateManager();
337   MemRegionManager &MRMgr = StateMgr.getRegionManager();
338   StoreManager &StoreMgr = StateMgr.getStoreManager();
339 
340   // MaterializeTemporaryExpr may appear out of place, after a few field and
341   // base-class accesses have been made to the object, even though semantically
342   // it is the whole object that gets materialized and lifetime-extended.
343   //
344   // For example:
345   //
346   //   `-MaterializeTemporaryExpr
347   //     `-MemberExpr
348   //       `-CXXTemporaryObjectExpr
349   //
350   // instead of the more natural
351   //
352   //   `-MemberExpr
353   //     `-MaterializeTemporaryExpr
354   //       `-CXXTemporaryObjectExpr
355   //
356   // Use the usual methods for obtaining the expression of the base object,
357   // and record the adjustments that we need to make to obtain the sub-object
358   // that the whole expression 'Ex' refers to. This trick is usual,
359   // in the sense that CodeGen takes a similar route.
360 
361   SmallVector<const Expr *, 2> CommaLHSs;
362   SmallVector<SubobjectAdjustment, 2> Adjustments;
363 
364   const Expr *Init = InitWithAdjustments->skipRValueSubobjectAdjustments(
365       CommaLHSs, Adjustments);
366 
367   // Take the region for Init, i.e. for the whole object. If we do not remember
368   // the region in which the object originally was constructed, come up with
369   // a new temporary region out of thin air and copy the contents of the object
370   // (which are currently present in the Environment, because Init is an rvalue)
371   // into that region. This is not correct, but it is better than nothing.
372   const TypedValueRegion *TR = nullptr;
373   if (const auto *MT = dyn_cast<MaterializeTemporaryExpr>(Result)) {
374     if (Optional<SVal> V = getObjectUnderConstruction(State, MT, LC)) {
375       State = finishObjectConstruction(State, MT, LC);
376       State = State->BindExpr(Result, LC, *V);
377       return State;
378     } else {
379       StorageDuration SD = MT->getStorageDuration();
380       // If this object is bound to a reference with static storage duration, we
381       // put it in a different region to prevent "address leakage" warnings.
382       if (SD == SD_Static || SD == SD_Thread) {
383         TR = MRMgr.getCXXStaticTempObjectRegion(Init);
384       } else {
385         TR = MRMgr.getCXXTempObjectRegion(Init, LC);
386       }
387     }
388   } else {
389     TR = MRMgr.getCXXTempObjectRegion(Init, LC);
390   }
391 
392   SVal Reg = loc::MemRegionVal(TR);
393   SVal BaseReg = Reg;
394 
395   // Make the necessary adjustments to obtain the sub-object.
396   for (auto I = Adjustments.rbegin(), E = Adjustments.rend(); I != E; ++I) {
397     const SubobjectAdjustment &Adj = *I;
398     switch (Adj.Kind) {
399     case SubobjectAdjustment::DerivedToBaseAdjustment:
400       Reg = StoreMgr.evalDerivedToBase(Reg, Adj.DerivedToBase.BasePath);
401       break;
402     case SubobjectAdjustment::FieldAdjustment:
403       Reg = StoreMgr.getLValueField(Adj.Field, Reg);
404       break;
405     case SubobjectAdjustment::MemberPointerAdjustment:
406       // FIXME: Unimplemented.
407       State = State->invalidateRegions(Reg, InitWithAdjustments,
408                                        currBldrCtx->blockCount(), LC, true,
409                                        nullptr, nullptr, nullptr);
410       return State;
411     }
412   }
413 
414   // What remains is to copy the value of the object to the new region.
415   // FIXME: In other words, what we should always do is copy value of the
416   // Init expression (which corresponds to the bigger object) to the whole
417   // temporary region TR. However, this value is often no longer present
418   // in the Environment. If it has disappeared, we instead invalidate TR.
419   // Still, what we can do is assign the value of expression Ex (which
420   // corresponds to the sub-object) to the TR's sub-region Reg. At least,
421   // values inside Reg would be correct.
422   SVal InitVal = State->getSVal(Init, LC);
423   if (InitVal.isUnknown()) {
424     InitVal = getSValBuilder().conjureSymbolVal(Result, LC, Init->getType(),
425                                                 currBldrCtx->blockCount());
426     State = State->bindLoc(BaseReg.castAs<Loc>(), InitVal, LC, false);
427 
428     // Then we'd need to take the value that certainly exists and bind it
429     // over.
430     if (InitValWithAdjustments.isUnknown()) {
431       // Try to recover some path sensitivity in case we couldn't
432       // compute the value.
433       InitValWithAdjustments = getSValBuilder().conjureSymbolVal(
434           Result, LC, InitWithAdjustments->getType(),
435           currBldrCtx->blockCount());
436     }
437     State =
438         State->bindLoc(Reg.castAs<Loc>(), InitValWithAdjustments, LC, false);
439   } else {
440     State = State->bindLoc(BaseReg.castAs<Loc>(), InitVal, LC, false);
441   }
442 
443   // The result expression would now point to the correct sub-region of the
444   // newly created temporary region. Do this last in order to getSVal of Init
445   // correctly in case (Result == Init).
446   if (Result->isGLValue()) {
447     State = State->BindExpr(Result, LC, Reg);
448   } else {
449     State = State->BindExpr(Result, LC, InitValWithAdjustments);
450   }
451 
452   // Notify checkers once for two bindLoc()s.
453   State = processRegionChange(State, TR, LC);
454 
455   if (OutRegionWithAdjustments)
456     *OutRegionWithAdjustments = cast<SubRegion>(Reg.getAsRegion());
457   return State;
458 }
459 
460 ProgramStateRef
461 ExprEngine::addObjectUnderConstruction(ProgramStateRef State,
462                                        const ConstructionContextItem &Item,
463                                        const LocationContext *LC, SVal V) {
464   ConstructedObjectKey Key(Item, LC->getStackFrame());
465   // FIXME: Currently the state might already contain the marker due to
466   // incorrect handling of temporaries bound to default parameters.
467   assert(!State->get<ObjectsUnderConstruction>(Key) ||
468          Key.getItem().getKind() ==
469              ConstructionContextItem::TemporaryDestructorKind);
470   return State->set<ObjectsUnderConstruction>(Key, V);
471 }
472 
473 Optional<SVal>
474 ExprEngine::getObjectUnderConstruction(ProgramStateRef State,
475                                        const ConstructionContextItem &Item,
476                                        const LocationContext *LC) {
477   ConstructedObjectKey Key(Item, LC->getStackFrame());
478   return Optional<SVal>::create(State->get<ObjectsUnderConstruction>(Key));
479 }
480 
481 ProgramStateRef
482 ExprEngine::finishObjectConstruction(ProgramStateRef State,
483                                      const ConstructionContextItem &Item,
484                                      const LocationContext *LC) {
485   ConstructedObjectKey Key(Item, LC->getStackFrame());
486   assert(State->contains<ObjectsUnderConstruction>(Key));
487   return State->remove<ObjectsUnderConstruction>(Key);
488 }
489 
490 ProgramStateRef ExprEngine::elideDestructor(ProgramStateRef State,
491                                             const CXXBindTemporaryExpr *BTE,
492                                             const LocationContext *LC) {
493   ConstructedObjectKey Key({BTE, /*IsElided=*/true}, LC);
494   // FIXME: Currently the state might already contain the marker due to
495   // incorrect handling of temporaries bound to default parameters.
496   return State->set<ObjectsUnderConstruction>(Key, UnknownVal());
497 }
498 
499 ProgramStateRef
500 ExprEngine::cleanupElidedDestructor(ProgramStateRef State,
501                                     const CXXBindTemporaryExpr *BTE,
502                                     const LocationContext *LC) {
503   ConstructedObjectKey Key({BTE, /*IsElided=*/true}, LC);
504   assert(State->contains<ObjectsUnderConstruction>(Key));
505   return State->remove<ObjectsUnderConstruction>(Key);
506 }
507 
508 bool ExprEngine::isDestructorElided(ProgramStateRef State,
509                                     const CXXBindTemporaryExpr *BTE,
510                                     const LocationContext *LC) {
511   ConstructedObjectKey Key({BTE, /*IsElided=*/true}, LC);
512   return State->contains<ObjectsUnderConstruction>(Key);
513 }
514 
515 bool ExprEngine::areAllObjectsFullyConstructed(ProgramStateRef State,
516                                                const LocationContext *FromLC,
517                                                const LocationContext *ToLC) {
518   const LocationContext *LC = FromLC;
519   while (LC != ToLC) {
520     assert(LC && "ToLC must be a parent of FromLC!");
521     for (auto I : State->get<ObjectsUnderConstruction>())
522       if (I.first.getLocationContext() == LC)
523         return false;
524 
525     LC = LC->getParent();
526   }
527   return true;
528 }
529 
530 
531 //===----------------------------------------------------------------------===//
532 // Top-level transfer function logic (Dispatcher).
533 //===----------------------------------------------------------------------===//
534 
535 /// evalAssume - Called by ConstraintManager. Used to call checker-specific
536 ///  logic for handling assumptions on symbolic values.
537 ProgramStateRef ExprEngine::processAssume(ProgramStateRef state,
538                                               SVal cond, bool assumption) {
539   return getCheckerManager().runCheckersForEvalAssume(state, cond, assumption);
540 }
541 
542 ProgramStateRef
543 ExprEngine::processRegionChanges(ProgramStateRef state,
544                                  const InvalidatedSymbols *invalidated,
545                                  ArrayRef<const MemRegion *> Explicits,
546                                  ArrayRef<const MemRegion *> Regions,
547                                  const LocationContext *LCtx,
548                                  const CallEvent *Call) {
549   return getCheckerManager().runCheckersForRegionChanges(state, invalidated,
550                                                          Explicits, Regions,
551                                                          LCtx, Call);
552 }
553 
554 static void
555 printObjectsUnderConstructionJson(raw_ostream &Out, ProgramStateRef State,
556                                   const char *NL, const LocationContext *LCtx,
557                                   unsigned int Space = 0, bool IsDot = false) {
558   PrintingPolicy PP =
559       LCtx->getAnalysisDeclContext()->getASTContext().getPrintingPolicy();
560 
561   ++Space;
562   bool HasItem = false;
563 
564   // Store the last key.
565   const ConstructedObjectKey *LastKey = nullptr;
566   for (const auto &I : State->get<ObjectsUnderConstruction>()) {
567     const ConstructedObjectKey &Key = I.first;
568     if (Key.getLocationContext() != LCtx)
569       continue;
570 
571     if (!HasItem) {
572       Out << "[" << NL;
573       HasItem = true;
574     }
575 
576     LastKey = &Key;
577   }
578 
579   for (const auto &I : State->get<ObjectsUnderConstruction>()) {
580     const ConstructedObjectKey &Key = I.first;
581     SVal Value = I.second;
582     if (Key.getLocationContext() != LCtx)
583       continue;
584 
585     Indent(Out, Space, IsDot) << "{ ";
586     Key.printJson(Out, nullptr, PP);
587     Out << ", \"value\": \"" << Value << "\" }";
588 
589     if (&Key != LastKey)
590       Out << ',';
591     Out << NL;
592   }
593 
594   if (HasItem)
595     Indent(Out, --Space, IsDot) << ']'; // End of "location_context".
596   else {
597     Out << "null ";
598   }
599 }
600 
601 void ExprEngine::printJson(raw_ostream &Out, ProgramStateRef State,
602                            const LocationContext *LCtx, const char *NL,
603                            unsigned int Space, bool IsDot) const {
604   Indent(Out, Space, IsDot) << "\"constructing_objects\": ";
605 
606   if (LCtx && !State->get<ObjectsUnderConstruction>().isEmpty()) {
607     ++Space;
608     Out << '[' << NL;
609     LCtx->printJson(Out, NL, Space, IsDot, [&](const LocationContext *LC) {
610       printObjectsUnderConstructionJson(Out, State, NL, LC, Space, IsDot);
611     });
612 
613     --Space;
614     Indent(Out, Space, IsDot) << "]," << NL; // End of "constructing_objects".
615   } else {
616     Out << "null," << NL;
617   }
618 
619   getCheckerManager().runCheckersForPrintStateJson(Out, State, NL, Space,
620                                                    IsDot);
621 }
622 
623 void ExprEngine::processEndWorklist() {
624   getCheckerManager().runCheckersForEndAnalysis(G, BR, *this);
625 }
626 
627 void ExprEngine::processCFGElement(const CFGElement E, ExplodedNode *Pred,
628                                    unsigned StmtIdx, NodeBuilderContext *Ctx) {
629   PrettyStackTraceLocationContext CrashInfo(Pred->getLocationContext());
630   currStmtIdx = StmtIdx;
631   currBldrCtx = Ctx;
632 
633   switch (E.getKind()) {
634     case CFGElement::Statement:
635     case CFGElement::Constructor:
636     case CFGElement::CXXRecordTypedCall:
637       ProcessStmt(E.castAs<CFGStmt>().getStmt(), Pred);
638       return;
639     case CFGElement::Initializer:
640       ProcessInitializer(E.castAs<CFGInitializer>(), Pred);
641       return;
642     case CFGElement::NewAllocator:
643       ProcessNewAllocator(E.castAs<CFGNewAllocator>().getAllocatorExpr(),
644                           Pred);
645       return;
646     case CFGElement::AutomaticObjectDtor:
647     case CFGElement::DeleteDtor:
648     case CFGElement::BaseDtor:
649     case CFGElement::MemberDtor:
650     case CFGElement::TemporaryDtor:
651       ProcessImplicitDtor(E.castAs<CFGImplicitDtor>(), Pred);
652       return;
653     case CFGElement::LoopExit:
654       ProcessLoopExit(E.castAs<CFGLoopExit>().getLoopStmt(), Pred);
655       return;
656     case CFGElement::LifetimeEnds:
657     case CFGElement::ScopeBegin:
658     case CFGElement::ScopeEnd:
659       return;
660   }
661 }
662 
663 static bool shouldRemoveDeadBindings(AnalysisManager &AMgr,
664                                      const Stmt *S,
665                                      const ExplodedNode *Pred,
666                                      const LocationContext *LC) {
667   // Are we never purging state values?
668   if (AMgr.options.AnalysisPurgeOpt == PurgeNone)
669     return false;
670 
671   // Is this the beginning of a basic block?
672   if (Pred->getLocation().getAs<BlockEntrance>())
673     return true;
674 
675   // Is this on a non-expression?
676   if (!isa<Expr>(S))
677     return true;
678 
679   // Run before processing a call.
680   if (CallEvent::isCallStmt(S))
681     return true;
682 
683   // Is this an expression that is consumed by another expression?  If so,
684   // postpone cleaning out the state.
685   ParentMap &PM = LC->getAnalysisDeclContext()->getParentMap();
686   return !PM.isConsumedExpr(cast<Expr>(S));
687 }
688 
689 void ExprEngine::removeDead(ExplodedNode *Pred, ExplodedNodeSet &Out,
690                             const Stmt *ReferenceStmt,
691                             const LocationContext *LC,
692                             const Stmt *DiagnosticStmt,
693                             ProgramPoint::Kind K) {
694   assert((K == ProgramPoint::PreStmtPurgeDeadSymbolsKind ||
695           ReferenceStmt == nullptr || isa<ReturnStmt>(ReferenceStmt))
696           && "PostStmt is not generally supported by the SymbolReaper yet");
697   assert(LC && "Must pass the current (or expiring) LocationContext");
698 
699   if (!DiagnosticStmt) {
700     DiagnosticStmt = ReferenceStmt;
701     assert(DiagnosticStmt && "Required for clearing a LocationContext");
702   }
703 
704   NumRemoveDeadBindings++;
705   ProgramStateRef CleanedState = Pred->getState();
706 
707   // LC is the location context being destroyed, but SymbolReaper wants a
708   // location context that is still live. (If this is the top-level stack
709   // frame, this will be null.)
710   if (!ReferenceStmt) {
711     assert(K == ProgramPoint::PostStmtPurgeDeadSymbolsKind &&
712            "Use PostStmtPurgeDeadSymbolsKind for clearing a LocationContext");
713     LC = LC->getParent();
714   }
715 
716   const StackFrameContext *SFC = LC ? LC->getStackFrame() : nullptr;
717   SymbolReaper SymReaper(SFC, ReferenceStmt, SymMgr, getStoreManager());
718 
719   for (auto I : CleanedState->get<ObjectsUnderConstruction>()) {
720     if (SymbolRef Sym = I.second.getAsSymbol())
721       SymReaper.markLive(Sym);
722     if (const MemRegion *MR = I.second.getAsRegion())
723       SymReaper.markLive(MR);
724   }
725 
726   getCheckerManager().runCheckersForLiveSymbols(CleanedState, SymReaper);
727 
728   // Create a state in which dead bindings are removed from the environment
729   // and the store. TODO: The function should just return new env and store,
730   // not a new state.
731   CleanedState = StateMgr.removeDeadBindingsFromEnvironmentAndStore(
732       CleanedState, SFC, SymReaper);
733 
734   // Process any special transfer function for dead symbols.
735   // A tag to track convenience transitions, which can be removed at cleanup.
736   static SimpleProgramPointTag cleanupTag(TagProviderName, "Clean Node");
737   // Call checkers with the non-cleaned state so that they could query the
738   // values of the soon to be dead symbols.
739   ExplodedNodeSet CheckedSet;
740   getCheckerManager().runCheckersForDeadSymbols(CheckedSet, Pred, SymReaper,
741                                                 DiagnosticStmt, *this, K);
742 
743   // For each node in CheckedSet, generate CleanedNodes that have the
744   // environment, the store, and the constraints cleaned up but have the
745   // user-supplied states as the predecessors.
746   StmtNodeBuilder Bldr(CheckedSet, Out, *currBldrCtx);
747   for (const auto I : CheckedSet) {
748     ProgramStateRef CheckerState = I->getState();
749 
750     // The constraint manager has not been cleaned up yet, so clean up now.
751     CheckerState =
752         getConstraintManager().removeDeadBindings(CheckerState, SymReaper);
753 
754     assert(StateMgr.haveEqualEnvironments(CheckerState, Pred->getState()) &&
755            "Checkers are not allowed to modify the Environment as a part of "
756            "checkDeadSymbols processing.");
757     assert(StateMgr.haveEqualStores(CheckerState, Pred->getState()) &&
758            "Checkers are not allowed to modify the Store as a part of "
759            "checkDeadSymbols processing.");
760 
761     // Create a state based on CleanedState with CheckerState GDM and
762     // generate a transition to that state.
763     ProgramStateRef CleanedCheckerSt =
764         StateMgr.getPersistentStateWithGDM(CleanedState, CheckerState);
765     Bldr.generateNode(DiagnosticStmt, I, CleanedCheckerSt, &cleanupTag, K);
766   }
767 }
768 
769 void ExprEngine::ProcessStmt(const Stmt *currStmt, ExplodedNode *Pred) {
770   // Reclaim any unnecessary nodes in the ExplodedGraph.
771   G.reclaimRecentlyAllocatedNodes();
772 
773   PrettyStackTraceLoc CrashInfo(getContext().getSourceManager(),
774                                 currStmt->getBeginLoc(),
775                                 "Error evaluating statement");
776 
777   // Remove dead bindings and symbols.
778   ExplodedNodeSet CleanedStates;
779   if (shouldRemoveDeadBindings(AMgr, currStmt, Pred,
780                                Pred->getLocationContext())) {
781     removeDead(Pred, CleanedStates, currStmt,
782                                     Pred->getLocationContext());
783   } else
784     CleanedStates.Add(Pred);
785 
786   // Visit the statement.
787   ExplodedNodeSet Dst;
788   for (const auto I : CleanedStates) {
789     ExplodedNodeSet DstI;
790     // Visit the statement.
791     Visit(currStmt, I, DstI);
792     Dst.insert(DstI);
793   }
794 
795   // Enqueue the new nodes onto the work list.
796   Engine.enqueue(Dst, currBldrCtx->getBlock(), currStmtIdx);
797 }
798 
799 void ExprEngine::ProcessLoopExit(const Stmt* S, ExplodedNode *Pred) {
800   PrettyStackTraceLoc CrashInfo(getContext().getSourceManager(),
801                                 S->getBeginLoc(),
802                                 "Error evaluating end of the loop");
803   ExplodedNodeSet Dst;
804   Dst.Add(Pred);
805   NodeBuilder Bldr(Pred, Dst, *currBldrCtx);
806   ProgramStateRef NewState = Pred->getState();
807 
808   if(AMgr.options.ShouldUnrollLoops)
809     NewState = processLoopEnd(S, NewState);
810 
811   LoopExit PP(S, Pred->getLocationContext());
812   Bldr.generateNode(PP, NewState, Pred);
813   // Enqueue the new nodes onto the work list.
814   Engine.enqueue(Dst, currBldrCtx->getBlock(), currStmtIdx);
815 }
816 
817 void ExprEngine::ProcessInitializer(const CFGInitializer CFGInit,
818                                     ExplodedNode *Pred) {
819   const CXXCtorInitializer *BMI = CFGInit.getInitializer();
820   const Expr *Init = BMI->getInit()->IgnoreImplicit();
821   const LocationContext *LC = Pred->getLocationContext();
822 
823   PrettyStackTraceLoc CrashInfo(getContext().getSourceManager(),
824                                 BMI->getSourceLocation(),
825                                 "Error evaluating initializer");
826 
827   // We don't clean up dead bindings here.
828   const auto *stackFrame = cast<StackFrameContext>(Pred->getLocationContext());
829   const auto *decl = cast<CXXConstructorDecl>(stackFrame->getDecl());
830 
831   ProgramStateRef State = Pred->getState();
832   SVal thisVal = State->getSVal(svalBuilder.getCXXThis(decl, stackFrame));
833 
834   ExplodedNodeSet Tmp;
835   SVal FieldLoc;
836 
837   // Evaluate the initializer, if necessary
838   if (BMI->isAnyMemberInitializer()) {
839     // Constructors build the object directly in the field,
840     // but non-objects must be copied in from the initializer.
841     if (getObjectUnderConstruction(State, BMI, LC)) {
842       // The field was directly constructed, so there is no need to bind.
843       // But we still need to stop tracking the object under construction.
844       State = finishObjectConstruction(State, BMI, LC);
845       NodeBuilder Bldr(Pred, Tmp, *currBldrCtx);
846       PostStore PS(Init, LC, /*Loc*/ nullptr, /*tag*/ nullptr);
847       Bldr.generateNode(PS, State, Pred);
848     } else {
849       const ValueDecl *Field;
850       if (BMI->isIndirectMemberInitializer()) {
851         Field = BMI->getIndirectMember();
852         FieldLoc = State->getLValue(BMI->getIndirectMember(), thisVal);
853       } else {
854         Field = BMI->getMember();
855         FieldLoc = State->getLValue(BMI->getMember(), thisVal);
856       }
857 
858       SVal InitVal;
859       if (Init->getType()->isArrayType()) {
860         // Handle arrays of trivial type. We can represent this with a
861         // primitive load/copy from the base array region.
862         const ArraySubscriptExpr *ASE;
863         while ((ASE = dyn_cast<ArraySubscriptExpr>(Init)))
864           Init = ASE->getBase()->IgnoreImplicit();
865 
866         SVal LValue = State->getSVal(Init, stackFrame);
867         if (!Field->getType()->isReferenceType())
868           if (Optional<Loc> LValueLoc = LValue.getAs<Loc>())
869             InitVal = State->getSVal(*LValueLoc);
870 
871         // If we fail to get the value for some reason, use a symbolic value.
872         if (InitVal.isUnknownOrUndef()) {
873           SValBuilder &SVB = getSValBuilder();
874           InitVal = SVB.conjureSymbolVal(BMI->getInit(), stackFrame,
875                                          Field->getType(),
876                                          currBldrCtx->blockCount());
877         }
878       } else {
879         InitVal = State->getSVal(BMI->getInit(), stackFrame);
880       }
881 
882       PostInitializer PP(BMI, FieldLoc.getAsRegion(), stackFrame);
883       evalBind(Tmp, Init, Pred, FieldLoc, InitVal, /*isInit=*/true, &PP);
884     }
885   } else {
886     assert(BMI->isBaseInitializer() || BMI->isDelegatingInitializer());
887     Tmp.insert(Pred);
888     // We already did all the work when visiting the CXXConstructExpr.
889   }
890 
891   // Construct PostInitializer nodes whether the state changed or not,
892   // so that the diagnostics don't get confused.
893   PostInitializer PP(BMI, FieldLoc.getAsRegion(), stackFrame);
894   ExplodedNodeSet Dst;
895   NodeBuilder Bldr(Tmp, Dst, *currBldrCtx);
896   for (const auto I : Tmp) {
897     ProgramStateRef State = I->getState();
898     Bldr.generateNode(PP, State, I);
899   }
900 
901   // Enqueue the new nodes onto the work list.
902   Engine.enqueue(Dst, currBldrCtx->getBlock(), currStmtIdx);
903 }
904 
905 void ExprEngine::ProcessImplicitDtor(const CFGImplicitDtor D,
906                                      ExplodedNode *Pred) {
907   ExplodedNodeSet Dst;
908   switch (D.getKind()) {
909   case CFGElement::AutomaticObjectDtor:
910     ProcessAutomaticObjDtor(D.castAs<CFGAutomaticObjDtor>(), Pred, Dst);
911     break;
912   case CFGElement::BaseDtor:
913     ProcessBaseDtor(D.castAs<CFGBaseDtor>(), Pred, Dst);
914     break;
915   case CFGElement::MemberDtor:
916     ProcessMemberDtor(D.castAs<CFGMemberDtor>(), Pred, Dst);
917     break;
918   case CFGElement::TemporaryDtor:
919     ProcessTemporaryDtor(D.castAs<CFGTemporaryDtor>(), Pred, Dst);
920     break;
921   case CFGElement::DeleteDtor:
922     ProcessDeleteDtor(D.castAs<CFGDeleteDtor>(), Pred, Dst);
923     break;
924   default:
925     llvm_unreachable("Unexpected dtor kind.");
926   }
927 
928   // Enqueue the new nodes onto the work list.
929   Engine.enqueue(Dst, currBldrCtx->getBlock(), currStmtIdx);
930 }
931 
932 void ExprEngine::ProcessNewAllocator(const CXXNewExpr *NE,
933                                      ExplodedNode *Pred) {
934   ExplodedNodeSet Dst;
935   AnalysisManager &AMgr = getAnalysisManager();
936   AnalyzerOptions &Opts = AMgr.options;
937   // TODO: We're not evaluating allocators for all cases just yet as
938   // we're not handling the return value correctly, which causes false
939   // positives when the alpha.cplusplus.NewDeleteLeaks check is on.
940   if (Opts.MayInlineCXXAllocator)
941     VisitCXXNewAllocatorCall(NE, Pred, Dst);
942   else {
943     NodeBuilder Bldr(Pred, Dst, *currBldrCtx);
944     const LocationContext *LCtx = Pred->getLocationContext();
945     PostImplicitCall PP(NE->getOperatorNew(), NE->getBeginLoc(), LCtx);
946     Bldr.generateNode(PP, Pred->getState(), Pred);
947   }
948   Engine.enqueue(Dst, currBldrCtx->getBlock(), currStmtIdx);
949 }
950 
951 void ExprEngine::ProcessAutomaticObjDtor(const CFGAutomaticObjDtor Dtor,
952                                          ExplodedNode *Pred,
953                                          ExplodedNodeSet &Dst) {
954   const VarDecl *varDecl = Dtor.getVarDecl();
955   QualType varType = varDecl->getType();
956 
957   ProgramStateRef state = Pred->getState();
958   SVal dest = state->getLValue(varDecl, Pred->getLocationContext());
959   const MemRegion *Region = dest.castAs<loc::MemRegionVal>().getRegion();
960 
961   if (varType->isReferenceType()) {
962     const MemRegion *ValueRegion = state->getSVal(Region).getAsRegion();
963     if (!ValueRegion) {
964       // FIXME: This should not happen. The language guarantees a presence
965       // of a valid initializer here, so the reference shall not be undefined.
966       // It seems that we're calling destructors over variables that
967       // were not initialized yet.
968       return;
969     }
970     Region = ValueRegion->getBaseRegion();
971     varType = cast<TypedValueRegion>(Region)->getValueType();
972   }
973 
974   // FIXME: We need to run the same destructor on every element of the array.
975   // This workaround will just run the first destructor (which will still
976   // invalidate the entire array).
977   EvalCallOptions CallOpts;
978   Region = makeZeroElementRegion(state, loc::MemRegionVal(Region), varType,
979                                  CallOpts.IsArrayCtorOrDtor).getAsRegion();
980 
981   VisitCXXDestructor(varType, Region, Dtor.getTriggerStmt(),
982                      /*IsBase=*/false, Pred, Dst, CallOpts);
983 }
984 
985 void ExprEngine::ProcessDeleteDtor(const CFGDeleteDtor Dtor,
986                                    ExplodedNode *Pred,
987                                    ExplodedNodeSet &Dst) {
988   ProgramStateRef State = Pred->getState();
989   const LocationContext *LCtx = Pred->getLocationContext();
990   const CXXDeleteExpr *DE = Dtor.getDeleteExpr();
991   const Stmt *Arg = DE->getArgument();
992   QualType DTy = DE->getDestroyedType();
993   SVal ArgVal = State->getSVal(Arg, LCtx);
994 
995   // If the argument to delete is known to be a null value,
996   // don't run destructor.
997   if (State->isNull(ArgVal).isConstrainedTrue()) {
998     QualType BTy = getContext().getBaseElementType(DTy);
999     const CXXRecordDecl *RD = BTy->getAsCXXRecordDecl();
1000     const CXXDestructorDecl *Dtor = RD->getDestructor();
1001 
1002     PostImplicitCall PP(Dtor, DE->getBeginLoc(), LCtx);
1003     NodeBuilder Bldr(Pred, Dst, *currBldrCtx);
1004     Bldr.generateNode(PP, Pred->getState(), Pred);
1005     return;
1006   }
1007 
1008   EvalCallOptions CallOpts;
1009   const MemRegion *ArgR = ArgVal.getAsRegion();
1010   if (DE->isArrayForm()) {
1011     // FIXME: We need to run the same destructor on every element of the array.
1012     // This workaround will just run the first destructor (which will still
1013     // invalidate the entire array).
1014     CallOpts.IsArrayCtorOrDtor = true;
1015     // Yes, it may even be a multi-dimensional array.
1016     while (const auto *AT = getContext().getAsArrayType(DTy))
1017       DTy = AT->getElementType();
1018     if (ArgR)
1019       ArgR = getStoreManager().GetElementZeroRegion(cast<SubRegion>(ArgR), DTy);
1020   }
1021 
1022   VisitCXXDestructor(DTy, ArgR, DE, /*IsBase=*/false, Pred, Dst, CallOpts);
1023 }
1024 
1025 void ExprEngine::ProcessBaseDtor(const CFGBaseDtor D,
1026                                  ExplodedNode *Pred, ExplodedNodeSet &Dst) {
1027   const LocationContext *LCtx = Pred->getLocationContext();
1028 
1029   const auto *CurDtor = cast<CXXDestructorDecl>(LCtx->getDecl());
1030   Loc ThisPtr = getSValBuilder().getCXXThis(CurDtor,
1031                                             LCtx->getStackFrame());
1032   SVal ThisVal = Pred->getState()->getSVal(ThisPtr);
1033 
1034   // Create the base object region.
1035   const CXXBaseSpecifier *Base = D.getBaseSpecifier();
1036   QualType BaseTy = Base->getType();
1037   SVal BaseVal = getStoreManager().evalDerivedToBase(ThisVal, BaseTy,
1038                                                      Base->isVirtual());
1039 
1040   EvalCallOptions CallOpts;
1041   VisitCXXDestructor(BaseTy, BaseVal.getAsRegion(), CurDtor->getBody(),
1042                      /*IsBase=*/true, Pred, Dst, CallOpts);
1043 }
1044 
1045 void ExprEngine::ProcessMemberDtor(const CFGMemberDtor D,
1046                                    ExplodedNode *Pred, ExplodedNodeSet &Dst) {
1047   const FieldDecl *Member = D.getFieldDecl();
1048   QualType T = Member->getType();
1049   ProgramStateRef State = Pred->getState();
1050   const LocationContext *LCtx = Pred->getLocationContext();
1051 
1052   const auto *CurDtor = cast<CXXDestructorDecl>(LCtx->getDecl());
1053   Loc ThisStorageLoc =
1054       getSValBuilder().getCXXThis(CurDtor, LCtx->getStackFrame());
1055   Loc ThisLoc = State->getSVal(ThisStorageLoc).castAs<Loc>();
1056   SVal FieldVal = State->getLValue(Member, ThisLoc);
1057 
1058   // FIXME: We need to run the same destructor on every element of the array.
1059   // This workaround will just run the first destructor (which will still
1060   // invalidate the entire array).
1061   EvalCallOptions CallOpts;
1062   FieldVal = makeZeroElementRegion(State, FieldVal, T,
1063                                    CallOpts.IsArrayCtorOrDtor);
1064 
1065   VisitCXXDestructor(T, FieldVal.getAsRegion(), CurDtor->getBody(),
1066                      /*IsBase=*/false, Pred, Dst, CallOpts);
1067 }
1068 
1069 void ExprEngine::ProcessTemporaryDtor(const CFGTemporaryDtor D,
1070                                       ExplodedNode *Pred,
1071                                       ExplodedNodeSet &Dst) {
1072   const CXXBindTemporaryExpr *BTE = D.getBindTemporaryExpr();
1073   ProgramStateRef State = Pred->getState();
1074   const LocationContext *LC = Pred->getLocationContext();
1075   const MemRegion *MR = nullptr;
1076 
1077   if (Optional<SVal> V =
1078           getObjectUnderConstruction(State, D.getBindTemporaryExpr(),
1079                                      Pred->getLocationContext())) {
1080     // FIXME: Currently we insert temporary destructors for default parameters,
1081     // but we don't insert the constructors, so the entry in
1082     // ObjectsUnderConstruction may be missing.
1083     State = finishObjectConstruction(State, D.getBindTemporaryExpr(),
1084                                      Pred->getLocationContext());
1085     MR = V->getAsRegion();
1086   }
1087 
1088   // If copy elision has occurred, and the constructor corresponding to the
1089   // destructor was elided, we need to skip the destructor as well.
1090   if (isDestructorElided(State, BTE, LC)) {
1091     State = cleanupElidedDestructor(State, BTE, LC);
1092     NodeBuilder Bldr(Pred, Dst, *currBldrCtx);
1093     PostImplicitCall PP(D.getDestructorDecl(getContext()),
1094                         D.getBindTemporaryExpr()->getBeginLoc(),
1095                         Pred->getLocationContext());
1096     Bldr.generateNode(PP, State, Pred);
1097     return;
1098   }
1099 
1100   ExplodedNodeSet CleanDtorState;
1101   StmtNodeBuilder StmtBldr(Pred, CleanDtorState, *currBldrCtx);
1102   StmtBldr.generateNode(D.getBindTemporaryExpr(), Pred, State);
1103 
1104   QualType T = D.getBindTemporaryExpr()->getSubExpr()->getType();
1105   // FIXME: Currently CleanDtorState can be empty here due to temporaries being
1106   // bound to default parameters.
1107   assert(CleanDtorState.size() <= 1);
1108   ExplodedNode *CleanPred =
1109       CleanDtorState.empty() ? Pred : *CleanDtorState.begin();
1110 
1111   EvalCallOptions CallOpts;
1112   CallOpts.IsTemporaryCtorOrDtor = true;
1113   if (!MR) {
1114     // If we have no MR, we still need to unwrap the array to avoid destroying
1115     // the whole array at once. Regardless, we'd eventually need to model array
1116     // destructors properly, element-by-element.
1117     while (const ArrayType *AT = getContext().getAsArrayType(T)) {
1118       T = AT->getElementType();
1119       CallOpts.IsArrayCtorOrDtor = true;
1120     }
1121   } else {
1122     // We'd eventually need to makeZeroElementRegion() trick here,
1123     // but for now we don't have the respective construction contexts,
1124     // so MR would always be null in this case. Do nothing for now.
1125   }
1126   VisitCXXDestructor(T, MR, D.getBindTemporaryExpr(),
1127                      /*IsBase=*/false, CleanPred, Dst, CallOpts);
1128 }
1129 
1130 void ExprEngine::processCleanupTemporaryBranch(const CXXBindTemporaryExpr *BTE,
1131                                                NodeBuilderContext &BldCtx,
1132                                                ExplodedNode *Pred,
1133                                                ExplodedNodeSet &Dst,
1134                                                const CFGBlock *DstT,
1135                                                const CFGBlock *DstF) {
1136   BranchNodeBuilder TempDtorBuilder(Pred, Dst, BldCtx, DstT, DstF);
1137   ProgramStateRef State = Pred->getState();
1138   const LocationContext *LC = Pred->getLocationContext();
1139   if (getObjectUnderConstruction(State, BTE, LC)) {
1140     TempDtorBuilder.markInfeasible(false);
1141     TempDtorBuilder.generateNode(State, true, Pred);
1142   } else {
1143     TempDtorBuilder.markInfeasible(true);
1144     TempDtorBuilder.generateNode(State, false, Pred);
1145   }
1146 }
1147 
1148 void ExprEngine::VisitCXXBindTemporaryExpr(const CXXBindTemporaryExpr *BTE,
1149                                            ExplodedNodeSet &PreVisit,
1150                                            ExplodedNodeSet &Dst) {
1151   // This is a fallback solution in case we didn't have a construction
1152   // context when we were constructing the temporary. Otherwise the map should
1153   // have been populated there.
1154   if (!getAnalysisManager().options.ShouldIncludeTemporaryDtorsInCFG) {
1155     // In case we don't have temporary destructors in the CFG, do not mark
1156     // the initialization - we would otherwise never clean it up.
1157     Dst = PreVisit;
1158     return;
1159   }
1160   StmtNodeBuilder StmtBldr(PreVisit, Dst, *currBldrCtx);
1161   for (ExplodedNode *Node : PreVisit) {
1162     ProgramStateRef State = Node->getState();
1163     const LocationContext *LC = Node->getLocationContext();
1164     if (!getObjectUnderConstruction(State, BTE, LC)) {
1165       // FIXME: Currently the state might also already contain the marker due to
1166       // incorrect handling of temporaries bound to default parameters; for
1167       // those, we currently skip the CXXBindTemporaryExpr but rely on adding
1168       // temporary destructor nodes.
1169       State = addObjectUnderConstruction(State, BTE, LC, UnknownVal());
1170     }
1171     StmtBldr.generateNode(BTE, Node, State);
1172   }
1173 }
1174 
1175 ProgramStateRef ExprEngine::escapeValues(ProgramStateRef State,
1176                                          ArrayRef<SVal> Vs,
1177                                          PointerEscapeKind K,
1178                                          const CallEvent *Call) const {
1179   class CollectReachableSymbolsCallback final : public SymbolVisitor {
1180     InvalidatedSymbols &Symbols;
1181 
1182   public:
1183     explicit CollectReachableSymbolsCallback(InvalidatedSymbols &Symbols)
1184         : Symbols(Symbols) {}
1185 
1186     const InvalidatedSymbols &getSymbols() const { return Symbols; }
1187 
1188     bool VisitSymbol(SymbolRef Sym) override {
1189       Symbols.insert(Sym);
1190       return true;
1191     }
1192   };
1193   InvalidatedSymbols Symbols;
1194   CollectReachableSymbolsCallback CallBack(Symbols);
1195   for (SVal V : Vs)
1196     State->scanReachableSymbols(V, CallBack);
1197 
1198   return getCheckerManager().runCheckersForPointerEscape(
1199       State, CallBack.getSymbols(), Call, K, nullptr);
1200 }
1201 
1202 void ExprEngine::Visit(const Stmt *S, ExplodedNode *Pred,
1203                        ExplodedNodeSet &DstTop) {
1204   PrettyStackTraceLoc CrashInfo(getContext().getSourceManager(),
1205                                 S->getBeginLoc(), "Error evaluating statement");
1206   ExplodedNodeSet Dst;
1207   StmtNodeBuilder Bldr(Pred, DstTop, *currBldrCtx);
1208 
1209   assert(!isa<Expr>(S) || S == cast<Expr>(S)->IgnoreParens());
1210 
1211   switch (S->getStmtClass()) {
1212     // C++, OpenMP and ARC stuff we don't support yet.
1213     case Stmt::CXXDependentScopeMemberExprClass:
1214     case Stmt::CXXTryStmtClass:
1215     case Stmt::CXXTypeidExprClass:
1216     case Stmt::CXXUuidofExprClass:
1217     case Stmt::CXXFoldExprClass:
1218     case Stmt::MSPropertyRefExprClass:
1219     case Stmt::MSPropertySubscriptExprClass:
1220     case Stmt::CXXUnresolvedConstructExprClass:
1221     case Stmt::DependentScopeDeclRefExprClass:
1222     case Stmt::ArrayTypeTraitExprClass:
1223     case Stmt::ExpressionTraitExprClass:
1224     case Stmt::UnresolvedLookupExprClass:
1225     case Stmt::UnresolvedMemberExprClass:
1226     case Stmt::TypoExprClass:
1227     case Stmt::RecoveryExprClass:
1228     case Stmt::CXXNoexceptExprClass:
1229     case Stmt::PackExpansionExprClass:
1230     case Stmt::SubstNonTypeTemplateParmPackExprClass:
1231     case Stmt::FunctionParmPackExprClass:
1232     case Stmt::CoroutineBodyStmtClass:
1233     case Stmt::CoawaitExprClass:
1234     case Stmt::DependentCoawaitExprClass:
1235     case Stmt::CoreturnStmtClass:
1236     case Stmt::CoyieldExprClass:
1237     case Stmt::SEHTryStmtClass:
1238     case Stmt::SEHExceptStmtClass:
1239     case Stmt::SEHLeaveStmtClass:
1240     case Stmt::SEHFinallyStmtClass:
1241     case Stmt::OMPCanonicalLoopClass:
1242     case Stmt::OMPParallelDirectiveClass:
1243     case Stmt::OMPSimdDirectiveClass:
1244     case Stmt::OMPForDirectiveClass:
1245     case Stmt::OMPForSimdDirectiveClass:
1246     case Stmt::OMPSectionsDirectiveClass:
1247     case Stmt::OMPSectionDirectiveClass:
1248     case Stmt::OMPSingleDirectiveClass:
1249     case Stmt::OMPMasterDirectiveClass:
1250     case Stmt::OMPCriticalDirectiveClass:
1251     case Stmt::OMPParallelForDirectiveClass:
1252     case Stmt::OMPParallelForSimdDirectiveClass:
1253     case Stmt::OMPParallelSectionsDirectiveClass:
1254     case Stmt::OMPParallelMasterDirectiveClass:
1255     case Stmt::OMPTaskDirectiveClass:
1256     case Stmt::OMPTaskyieldDirectiveClass:
1257     case Stmt::OMPBarrierDirectiveClass:
1258     case Stmt::OMPTaskwaitDirectiveClass:
1259     case Stmt::OMPTaskgroupDirectiveClass:
1260     case Stmt::OMPFlushDirectiveClass:
1261     case Stmt::OMPDepobjDirectiveClass:
1262     case Stmt::OMPScanDirectiveClass:
1263     case Stmt::OMPOrderedDirectiveClass:
1264     case Stmt::OMPAtomicDirectiveClass:
1265     case Stmt::OMPTargetDirectiveClass:
1266     case Stmt::OMPTargetDataDirectiveClass:
1267     case Stmt::OMPTargetEnterDataDirectiveClass:
1268     case Stmt::OMPTargetExitDataDirectiveClass:
1269     case Stmt::OMPTargetParallelDirectiveClass:
1270     case Stmt::OMPTargetParallelForDirectiveClass:
1271     case Stmt::OMPTargetUpdateDirectiveClass:
1272     case Stmt::OMPTeamsDirectiveClass:
1273     case Stmt::OMPCancellationPointDirectiveClass:
1274     case Stmt::OMPCancelDirectiveClass:
1275     case Stmt::OMPTaskLoopDirectiveClass:
1276     case Stmt::OMPTaskLoopSimdDirectiveClass:
1277     case Stmt::OMPMasterTaskLoopDirectiveClass:
1278     case Stmt::OMPMasterTaskLoopSimdDirectiveClass:
1279     case Stmt::OMPParallelMasterTaskLoopDirectiveClass:
1280     case Stmt::OMPParallelMasterTaskLoopSimdDirectiveClass:
1281     case Stmt::OMPDistributeDirectiveClass:
1282     case Stmt::OMPDistributeParallelForDirectiveClass:
1283     case Stmt::OMPDistributeParallelForSimdDirectiveClass:
1284     case Stmt::OMPDistributeSimdDirectiveClass:
1285     case Stmt::OMPTargetParallelForSimdDirectiveClass:
1286     case Stmt::OMPTargetSimdDirectiveClass:
1287     case Stmt::OMPTeamsDistributeDirectiveClass:
1288     case Stmt::OMPTeamsDistributeSimdDirectiveClass:
1289     case Stmt::OMPTeamsDistributeParallelForSimdDirectiveClass:
1290     case Stmt::OMPTeamsDistributeParallelForDirectiveClass:
1291     case Stmt::OMPTargetTeamsDirectiveClass:
1292     case Stmt::OMPTargetTeamsDistributeDirectiveClass:
1293     case Stmt::OMPTargetTeamsDistributeParallelForDirectiveClass:
1294     case Stmt::OMPTargetTeamsDistributeParallelForSimdDirectiveClass:
1295     case Stmt::OMPTargetTeamsDistributeSimdDirectiveClass:
1296     case Stmt::OMPTileDirectiveClass:
1297     case Stmt::OMPInteropDirectiveClass:
1298     case Stmt::CapturedStmtClass: {
1299       const ExplodedNode *node = Bldr.generateSink(S, Pred, Pred->getState());
1300       Engine.addAbortedBlock(node, currBldrCtx->getBlock());
1301       break;
1302     }
1303 
1304     case Stmt::ParenExprClass:
1305       llvm_unreachable("ParenExprs already handled.");
1306     case Stmt::GenericSelectionExprClass:
1307       llvm_unreachable("GenericSelectionExprs already handled.");
1308     // Cases that should never be evaluated simply because they shouldn't
1309     // appear in the CFG.
1310     case Stmt::BreakStmtClass:
1311     case Stmt::CaseStmtClass:
1312     case Stmt::CompoundStmtClass:
1313     case Stmt::ContinueStmtClass:
1314     case Stmt::CXXForRangeStmtClass:
1315     case Stmt::DefaultStmtClass:
1316     case Stmt::DoStmtClass:
1317     case Stmt::ForStmtClass:
1318     case Stmt::GotoStmtClass:
1319     case Stmt::IfStmtClass:
1320     case Stmt::IndirectGotoStmtClass:
1321     case Stmt::LabelStmtClass:
1322     case Stmt::NoStmtClass:
1323     case Stmt::NullStmtClass:
1324     case Stmt::SwitchStmtClass:
1325     case Stmt::WhileStmtClass:
1326     case Expr::MSDependentExistsStmtClass:
1327       llvm_unreachable("Stmt should not be in analyzer evaluation loop");
1328     case Stmt::ImplicitValueInitExprClass:
1329       // These nodes are shared in the CFG and would case caching out.
1330       // Moreover, no additional evaluation required for them, the
1331       // analyzer can reconstruct these values from the AST.
1332       llvm_unreachable("Should be pruned from CFG");
1333 
1334     case Stmt::ObjCSubscriptRefExprClass:
1335     case Stmt::ObjCPropertyRefExprClass:
1336       llvm_unreachable("These are handled by PseudoObjectExpr");
1337 
1338     case Stmt::GNUNullExprClass: {
1339       // GNU __null is a pointer-width integer, not an actual pointer.
1340       ProgramStateRef state = Pred->getState();
1341       state = state->BindExpr(S, Pred->getLocationContext(),
1342                               svalBuilder.makeIntValWithPtrWidth(0, false));
1343       Bldr.generateNode(S, Pred, state);
1344       break;
1345     }
1346 
1347     case Stmt::ObjCAtSynchronizedStmtClass:
1348       Bldr.takeNodes(Pred);
1349       VisitObjCAtSynchronizedStmt(cast<ObjCAtSynchronizedStmt>(S), Pred, Dst);
1350       Bldr.addNodes(Dst);
1351       break;
1352 
1353     case Expr::ConstantExprClass:
1354     case Stmt::ExprWithCleanupsClass:
1355       // Handled due to fully linearised CFG.
1356       break;
1357 
1358     case Stmt::CXXBindTemporaryExprClass: {
1359       Bldr.takeNodes(Pred);
1360       ExplodedNodeSet PreVisit;
1361       getCheckerManager().runCheckersForPreStmt(PreVisit, Pred, S, *this);
1362       ExplodedNodeSet Next;
1363       VisitCXXBindTemporaryExpr(cast<CXXBindTemporaryExpr>(S), PreVisit, Next);
1364       getCheckerManager().runCheckersForPostStmt(Dst, Next, S, *this);
1365       Bldr.addNodes(Dst);
1366       break;
1367     }
1368 
1369     // Cases not handled yet; but will handle some day.
1370     case Stmt::DesignatedInitExprClass:
1371     case Stmt::DesignatedInitUpdateExprClass:
1372     case Stmt::ArrayInitLoopExprClass:
1373     case Stmt::ArrayInitIndexExprClass:
1374     case Stmt::ExtVectorElementExprClass:
1375     case Stmt::ImaginaryLiteralClass:
1376     case Stmt::ObjCAtCatchStmtClass:
1377     case Stmt::ObjCAtFinallyStmtClass:
1378     case Stmt::ObjCAtTryStmtClass:
1379     case Stmt::ObjCAutoreleasePoolStmtClass:
1380     case Stmt::ObjCEncodeExprClass:
1381     case Stmt::ObjCIsaExprClass:
1382     case Stmt::ObjCProtocolExprClass:
1383     case Stmt::ObjCSelectorExprClass:
1384     case Stmt::ParenListExprClass:
1385     case Stmt::ShuffleVectorExprClass:
1386     case Stmt::ConvertVectorExprClass:
1387     case Stmt::VAArgExprClass:
1388     case Stmt::CUDAKernelCallExprClass:
1389     case Stmt::OpaqueValueExprClass:
1390     case Stmt::AsTypeExprClass:
1391     case Stmt::ConceptSpecializationExprClass:
1392     case Stmt::CXXRewrittenBinaryOperatorClass:
1393     case Stmt::RequiresExprClass:
1394       // Fall through.
1395 
1396     // Cases we intentionally don't evaluate, since they don't need
1397     // to be explicitly evaluated.
1398     case Stmt::PredefinedExprClass:
1399     case Stmt::AddrLabelExprClass:
1400     case Stmt::AttributedStmtClass:
1401     case Stmt::IntegerLiteralClass:
1402     case Stmt::FixedPointLiteralClass:
1403     case Stmt::CharacterLiteralClass:
1404     case Stmt::CXXScalarValueInitExprClass:
1405     case Stmt::CXXBoolLiteralExprClass:
1406     case Stmt::ObjCBoolLiteralExprClass:
1407     case Stmt::ObjCAvailabilityCheckExprClass:
1408     case Stmt::FloatingLiteralClass:
1409     case Stmt::NoInitExprClass:
1410     case Stmt::SizeOfPackExprClass:
1411     case Stmt::StringLiteralClass:
1412     case Stmt::SourceLocExprClass:
1413     case Stmt::ObjCStringLiteralClass:
1414     case Stmt::CXXPseudoDestructorExprClass:
1415     case Stmt::SubstNonTypeTemplateParmExprClass:
1416     case Stmt::CXXNullPtrLiteralExprClass:
1417     case Stmt::OMPArraySectionExprClass:
1418     case Stmt::OMPArrayShapingExprClass:
1419     case Stmt::OMPIteratorExprClass:
1420     case Stmt::TypeTraitExprClass: {
1421       Bldr.takeNodes(Pred);
1422       ExplodedNodeSet preVisit;
1423       getCheckerManager().runCheckersForPreStmt(preVisit, Pred, S, *this);
1424       getCheckerManager().runCheckersForPostStmt(Dst, preVisit, S, *this);
1425       Bldr.addNodes(Dst);
1426       break;
1427     }
1428 
1429     case Stmt::CXXDefaultArgExprClass:
1430     case Stmt::CXXDefaultInitExprClass: {
1431       Bldr.takeNodes(Pred);
1432       ExplodedNodeSet PreVisit;
1433       getCheckerManager().runCheckersForPreStmt(PreVisit, Pred, S, *this);
1434 
1435       ExplodedNodeSet Tmp;
1436       StmtNodeBuilder Bldr2(PreVisit, Tmp, *currBldrCtx);
1437 
1438       const Expr *ArgE;
1439       if (const auto *DefE = dyn_cast<CXXDefaultArgExpr>(S))
1440         ArgE = DefE->getExpr();
1441       else if (const auto *DefE = dyn_cast<CXXDefaultInitExpr>(S))
1442         ArgE = DefE->getExpr();
1443       else
1444         llvm_unreachable("unknown constant wrapper kind");
1445 
1446       bool IsTemporary = false;
1447       if (const auto *MTE = dyn_cast<MaterializeTemporaryExpr>(ArgE)) {
1448         ArgE = MTE->getSubExpr();
1449         IsTemporary = true;
1450       }
1451 
1452       Optional<SVal> ConstantVal = svalBuilder.getConstantVal(ArgE);
1453       if (!ConstantVal)
1454         ConstantVal = UnknownVal();
1455 
1456       const LocationContext *LCtx = Pred->getLocationContext();
1457       for (const auto I : PreVisit) {
1458         ProgramStateRef State = I->getState();
1459         State = State->BindExpr(S, LCtx, *ConstantVal);
1460         if (IsTemporary)
1461           State = createTemporaryRegionIfNeeded(State, LCtx,
1462                                                 cast<Expr>(S),
1463                                                 cast<Expr>(S));
1464         Bldr2.generateNode(S, I, State);
1465       }
1466 
1467       getCheckerManager().runCheckersForPostStmt(Dst, Tmp, S, *this);
1468       Bldr.addNodes(Dst);
1469       break;
1470     }
1471 
1472     // Cases we evaluate as opaque expressions, conjuring a symbol.
1473     case Stmt::CXXStdInitializerListExprClass:
1474     case Expr::ObjCArrayLiteralClass:
1475     case Expr::ObjCDictionaryLiteralClass:
1476     case Expr::ObjCBoxedExprClass: {
1477       Bldr.takeNodes(Pred);
1478 
1479       ExplodedNodeSet preVisit;
1480       getCheckerManager().runCheckersForPreStmt(preVisit, Pred, S, *this);
1481 
1482       ExplodedNodeSet Tmp;
1483       StmtNodeBuilder Bldr2(preVisit, Tmp, *currBldrCtx);
1484 
1485       const auto *Ex = cast<Expr>(S);
1486       QualType resultType = Ex->getType();
1487 
1488       for (const auto N : preVisit) {
1489         const LocationContext *LCtx = N->getLocationContext();
1490         SVal result = svalBuilder.conjureSymbolVal(nullptr, Ex, LCtx,
1491                                                    resultType,
1492                                                    currBldrCtx->blockCount());
1493         ProgramStateRef State = N->getState()->BindExpr(Ex, LCtx, result);
1494 
1495         // Escape pointers passed into the list, unless it's an ObjC boxed
1496         // expression which is not a boxable C structure.
1497         if (!(isa<ObjCBoxedExpr>(Ex) &&
1498               !cast<ObjCBoxedExpr>(Ex)->getSubExpr()
1499                                       ->getType()->isRecordType()))
1500           for (auto Child : Ex->children()) {
1501             assert(Child);
1502             SVal Val = State->getSVal(Child, LCtx);
1503             State = escapeValues(State, Val, PSK_EscapeOther);
1504           }
1505 
1506         Bldr2.generateNode(S, N, State);
1507       }
1508 
1509       getCheckerManager().runCheckersForPostStmt(Dst, Tmp, S, *this);
1510       Bldr.addNodes(Dst);
1511       break;
1512     }
1513 
1514     case Stmt::ArraySubscriptExprClass:
1515       Bldr.takeNodes(Pred);
1516       VisitArraySubscriptExpr(cast<ArraySubscriptExpr>(S), Pred, Dst);
1517       Bldr.addNodes(Dst);
1518       break;
1519 
1520     case Stmt::MatrixSubscriptExprClass:
1521       llvm_unreachable("Support for MatrixSubscriptExpr is not implemented.");
1522       break;
1523 
1524     case Stmt::GCCAsmStmtClass:
1525       Bldr.takeNodes(Pred);
1526       VisitGCCAsmStmt(cast<GCCAsmStmt>(S), Pred, Dst);
1527       Bldr.addNodes(Dst);
1528       break;
1529 
1530     case Stmt::MSAsmStmtClass:
1531       Bldr.takeNodes(Pred);
1532       VisitMSAsmStmt(cast<MSAsmStmt>(S), Pred, Dst);
1533       Bldr.addNodes(Dst);
1534       break;
1535 
1536     case Stmt::BlockExprClass:
1537       Bldr.takeNodes(Pred);
1538       VisitBlockExpr(cast<BlockExpr>(S), Pred, Dst);
1539       Bldr.addNodes(Dst);
1540       break;
1541 
1542     case Stmt::LambdaExprClass:
1543       if (AMgr.options.ShouldInlineLambdas) {
1544         Bldr.takeNodes(Pred);
1545         VisitLambdaExpr(cast<LambdaExpr>(S), Pred, Dst);
1546         Bldr.addNodes(Dst);
1547       } else {
1548         const ExplodedNode *node = Bldr.generateSink(S, Pred, Pred->getState());
1549         Engine.addAbortedBlock(node, currBldrCtx->getBlock());
1550       }
1551       break;
1552 
1553     case Stmt::BinaryOperatorClass: {
1554       const auto *B = cast<BinaryOperator>(S);
1555       if (B->isLogicalOp()) {
1556         Bldr.takeNodes(Pred);
1557         VisitLogicalExpr(B, Pred, Dst);
1558         Bldr.addNodes(Dst);
1559         break;
1560       }
1561       else if (B->getOpcode() == BO_Comma) {
1562         ProgramStateRef state = Pred->getState();
1563         Bldr.generateNode(B, Pred,
1564                           state->BindExpr(B, Pred->getLocationContext(),
1565                                           state->getSVal(B->getRHS(),
1566                                                   Pred->getLocationContext())));
1567         break;
1568       }
1569 
1570       Bldr.takeNodes(Pred);
1571 
1572       if (AMgr.options.ShouldEagerlyAssume &&
1573           (B->isRelationalOp() || B->isEqualityOp())) {
1574         ExplodedNodeSet Tmp;
1575         VisitBinaryOperator(cast<BinaryOperator>(S), Pred, Tmp);
1576         evalEagerlyAssumeBinOpBifurcation(Dst, Tmp, cast<Expr>(S));
1577       }
1578       else
1579         VisitBinaryOperator(cast<BinaryOperator>(S), Pred, Dst);
1580 
1581       Bldr.addNodes(Dst);
1582       break;
1583     }
1584 
1585     case Stmt::CXXOperatorCallExprClass: {
1586       const auto *OCE = cast<CXXOperatorCallExpr>(S);
1587 
1588       // For instance method operators, make sure the 'this' argument has a
1589       // valid region.
1590       const Decl *Callee = OCE->getCalleeDecl();
1591       if (const auto *MD = dyn_cast_or_null<CXXMethodDecl>(Callee)) {
1592         if (MD->isInstance()) {
1593           ProgramStateRef State = Pred->getState();
1594           const LocationContext *LCtx = Pred->getLocationContext();
1595           ProgramStateRef NewState =
1596             createTemporaryRegionIfNeeded(State, LCtx, OCE->getArg(0));
1597           if (NewState != State) {
1598             Pred = Bldr.generateNode(OCE, Pred, NewState, /*tag=*/nullptr,
1599                                      ProgramPoint::PreStmtKind);
1600             // Did we cache out?
1601             if (!Pred)
1602               break;
1603           }
1604         }
1605       }
1606       // FALLTHROUGH
1607       LLVM_FALLTHROUGH;
1608     }
1609 
1610     case Stmt::CallExprClass:
1611     case Stmt::CXXMemberCallExprClass:
1612     case Stmt::UserDefinedLiteralClass:
1613       Bldr.takeNodes(Pred);
1614       VisitCallExpr(cast<CallExpr>(S), Pred, Dst);
1615       Bldr.addNodes(Dst);
1616       break;
1617 
1618     case Stmt::CXXCatchStmtClass:
1619       Bldr.takeNodes(Pred);
1620       VisitCXXCatchStmt(cast<CXXCatchStmt>(S), Pred, Dst);
1621       Bldr.addNodes(Dst);
1622       break;
1623 
1624     case Stmt::CXXTemporaryObjectExprClass:
1625     case Stmt::CXXConstructExprClass:
1626       Bldr.takeNodes(Pred);
1627       VisitCXXConstructExpr(cast<CXXConstructExpr>(S), Pred, Dst);
1628       Bldr.addNodes(Dst);
1629       break;
1630 
1631     case Stmt::CXXInheritedCtorInitExprClass:
1632       Bldr.takeNodes(Pred);
1633       VisitCXXInheritedCtorInitExpr(cast<CXXInheritedCtorInitExpr>(S), Pred,
1634                                     Dst);
1635       Bldr.addNodes(Dst);
1636       break;
1637 
1638     case Stmt::CXXNewExprClass: {
1639       Bldr.takeNodes(Pred);
1640 
1641       ExplodedNodeSet PreVisit;
1642       getCheckerManager().runCheckersForPreStmt(PreVisit, Pred, S, *this);
1643 
1644       ExplodedNodeSet PostVisit;
1645       for (const auto i : PreVisit)
1646         VisitCXXNewExpr(cast<CXXNewExpr>(S), i, PostVisit);
1647 
1648       getCheckerManager().runCheckersForPostStmt(Dst, PostVisit, S, *this);
1649       Bldr.addNodes(Dst);
1650       break;
1651     }
1652 
1653     case Stmt::CXXDeleteExprClass: {
1654       Bldr.takeNodes(Pred);
1655       ExplodedNodeSet PreVisit;
1656       const auto *CDE = cast<CXXDeleteExpr>(S);
1657       getCheckerManager().runCheckersForPreStmt(PreVisit, Pred, S, *this);
1658       ExplodedNodeSet PostVisit;
1659       getCheckerManager().runCheckersForPostStmt(PostVisit, PreVisit, S, *this);
1660 
1661       for (const auto i : PostVisit)
1662         VisitCXXDeleteExpr(CDE, i, Dst);
1663 
1664       Bldr.addNodes(Dst);
1665       break;
1666     }
1667       // FIXME: ChooseExpr is really a constant.  We need to fix
1668       //        the CFG do not model them as explicit control-flow.
1669 
1670     case Stmt::ChooseExprClass: { // __builtin_choose_expr
1671       Bldr.takeNodes(Pred);
1672       const auto *C = cast<ChooseExpr>(S);
1673       VisitGuardedExpr(C, C->getLHS(), C->getRHS(), Pred, Dst);
1674       Bldr.addNodes(Dst);
1675       break;
1676     }
1677 
1678     case Stmt::CompoundAssignOperatorClass:
1679       Bldr.takeNodes(Pred);
1680       VisitBinaryOperator(cast<BinaryOperator>(S), Pred, Dst);
1681       Bldr.addNodes(Dst);
1682       break;
1683 
1684     case Stmt::CompoundLiteralExprClass:
1685       Bldr.takeNodes(Pred);
1686       VisitCompoundLiteralExpr(cast<CompoundLiteralExpr>(S), Pred, Dst);
1687       Bldr.addNodes(Dst);
1688       break;
1689 
1690     case Stmt::BinaryConditionalOperatorClass:
1691     case Stmt::ConditionalOperatorClass: { // '?' operator
1692       Bldr.takeNodes(Pred);
1693       const auto *C = cast<AbstractConditionalOperator>(S);
1694       VisitGuardedExpr(C, C->getTrueExpr(), C->getFalseExpr(), Pred, Dst);
1695       Bldr.addNodes(Dst);
1696       break;
1697     }
1698 
1699     case Stmt::CXXThisExprClass:
1700       Bldr.takeNodes(Pred);
1701       VisitCXXThisExpr(cast<CXXThisExpr>(S), Pred, Dst);
1702       Bldr.addNodes(Dst);
1703       break;
1704 
1705     case Stmt::DeclRefExprClass: {
1706       Bldr.takeNodes(Pred);
1707       const auto *DE = cast<DeclRefExpr>(S);
1708       VisitCommonDeclRefExpr(DE, DE->getDecl(), Pred, Dst);
1709       Bldr.addNodes(Dst);
1710       break;
1711     }
1712 
1713     case Stmt::DeclStmtClass:
1714       Bldr.takeNodes(Pred);
1715       VisitDeclStmt(cast<DeclStmt>(S), Pred, Dst);
1716       Bldr.addNodes(Dst);
1717       break;
1718 
1719     case Stmt::ImplicitCastExprClass:
1720     case Stmt::CStyleCastExprClass:
1721     case Stmt::CXXStaticCastExprClass:
1722     case Stmt::CXXDynamicCastExprClass:
1723     case Stmt::CXXReinterpretCastExprClass:
1724     case Stmt::CXXConstCastExprClass:
1725     case Stmt::CXXFunctionalCastExprClass:
1726     case Stmt::BuiltinBitCastExprClass:
1727     case Stmt::ObjCBridgedCastExprClass:
1728     case Stmt::CXXAddrspaceCastExprClass: {
1729       Bldr.takeNodes(Pred);
1730       const auto *C = cast<CastExpr>(S);
1731       ExplodedNodeSet dstExpr;
1732       VisitCast(C, C->getSubExpr(), Pred, dstExpr);
1733 
1734       // Handle the postvisit checks.
1735       getCheckerManager().runCheckersForPostStmt(Dst, dstExpr, C, *this);
1736       Bldr.addNodes(Dst);
1737       break;
1738     }
1739 
1740     case Expr::MaterializeTemporaryExprClass: {
1741       Bldr.takeNodes(Pred);
1742       const auto *MTE = cast<MaterializeTemporaryExpr>(S);
1743       ExplodedNodeSet dstPrevisit;
1744       getCheckerManager().runCheckersForPreStmt(dstPrevisit, Pred, MTE, *this);
1745       ExplodedNodeSet dstExpr;
1746       for (const auto i : dstPrevisit)
1747         CreateCXXTemporaryObject(MTE, i, dstExpr);
1748       getCheckerManager().runCheckersForPostStmt(Dst, dstExpr, MTE, *this);
1749       Bldr.addNodes(Dst);
1750       break;
1751     }
1752 
1753     case Stmt::InitListExprClass:
1754       Bldr.takeNodes(Pred);
1755       VisitInitListExpr(cast<InitListExpr>(S), Pred, Dst);
1756       Bldr.addNodes(Dst);
1757       break;
1758 
1759     case Stmt::MemberExprClass:
1760       Bldr.takeNodes(Pred);
1761       VisitMemberExpr(cast<MemberExpr>(S), Pred, Dst);
1762       Bldr.addNodes(Dst);
1763       break;
1764 
1765     case Stmt::AtomicExprClass:
1766       Bldr.takeNodes(Pred);
1767       VisitAtomicExpr(cast<AtomicExpr>(S), Pred, Dst);
1768       Bldr.addNodes(Dst);
1769       break;
1770 
1771     case Stmt::ObjCIvarRefExprClass:
1772       Bldr.takeNodes(Pred);
1773       VisitLvalObjCIvarRefExpr(cast<ObjCIvarRefExpr>(S), Pred, Dst);
1774       Bldr.addNodes(Dst);
1775       break;
1776 
1777     case Stmt::ObjCForCollectionStmtClass:
1778       Bldr.takeNodes(Pred);
1779       VisitObjCForCollectionStmt(cast<ObjCForCollectionStmt>(S), Pred, Dst);
1780       Bldr.addNodes(Dst);
1781       break;
1782 
1783     case Stmt::ObjCMessageExprClass:
1784       Bldr.takeNodes(Pred);
1785       VisitObjCMessage(cast<ObjCMessageExpr>(S), Pred, Dst);
1786       Bldr.addNodes(Dst);
1787       break;
1788 
1789     case Stmt::ObjCAtThrowStmtClass:
1790     case Stmt::CXXThrowExprClass:
1791       // FIXME: This is not complete.  We basically treat @throw as
1792       // an abort.
1793       Bldr.generateSink(S, Pred, Pred->getState());
1794       break;
1795 
1796     case Stmt::ReturnStmtClass:
1797       Bldr.takeNodes(Pred);
1798       VisitReturnStmt(cast<ReturnStmt>(S), Pred, Dst);
1799       Bldr.addNodes(Dst);
1800       break;
1801 
1802     case Stmt::OffsetOfExprClass: {
1803       Bldr.takeNodes(Pred);
1804       ExplodedNodeSet PreVisit;
1805       getCheckerManager().runCheckersForPreStmt(PreVisit, Pred, S, *this);
1806 
1807       ExplodedNodeSet PostVisit;
1808       for (const auto Node : PreVisit)
1809         VisitOffsetOfExpr(cast<OffsetOfExpr>(S), Node, PostVisit);
1810 
1811       getCheckerManager().runCheckersForPostStmt(Dst, PostVisit, S, *this);
1812       Bldr.addNodes(Dst);
1813       break;
1814     }
1815 
1816     case Stmt::UnaryExprOrTypeTraitExprClass:
1817       Bldr.takeNodes(Pred);
1818       VisitUnaryExprOrTypeTraitExpr(cast<UnaryExprOrTypeTraitExpr>(S),
1819                                     Pred, Dst);
1820       Bldr.addNodes(Dst);
1821       break;
1822 
1823     case Stmt::StmtExprClass: {
1824       const auto *SE = cast<StmtExpr>(S);
1825 
1826       if (SE->getSubStmt()->body_empty()) {
1827         // Empty statement expression.
1828         assert(SE->getType() == getContext().VoidTy
1829                && "Empty statement expression must have void type.");
1830         break;
1831       }
1832 
1833       if (const auto *LastExpr =
1834               dyn_cast<Expr>(*SE->getSubStmt()->body_rbegin())) {
1835         ProgramStateRef state = Pred->getState();
1836         Bldr.generateNode(SE, Pred,
1837                           state->BindExpr(SE, Pred->getLocationContext(),
1838                                           state->getSVal(LastExpr,
1839                                                   Pred->getLocationContext())));
1840       }
1841       break;
1842     }
1843 
1844     case Stmt::UnaryOperatorClass: {
1845       Bldr.takeNodes(Pred);
1846       const auto *U = cast<UnaryOperator>(S);
1847       if (AMgr.options.ShouldEagerlyAssume && (U->getOpcode() == UO_LNot)) {
1848         ExplodedNodeSet Tmp;
1849         VisitUnaryOperator(U, Pred, Tmp);
1850         evalEagerlyAssumeBinOpBifurcation(Dst, Tmp, U);
1851       }
1852       else
1853         VisitUnaryOperator(U, Pred, Dst);
1854       Bldr.addNodes(Dst);
1855       break;
1856     }
1857 
1858     case Stmt::PseudoObjectExprClass: {
1859       Bldr.takeNodes(Pred);
1860       ProgramStateRef state = Pred->getState();
1861       const auto *PE = cast<PseudoObjectExpr>(S);
1862       if (const Expr *Result = PE->getResultExpr()) {
1863         SVal V = state->getSVal(Result, Pred->getLocationContext());
1864         Bldr.generateNode(S, Pred,
1865                           state->BindExpr(S, Pred->getLocationContext(), V));
1866       }
1867       else
1868         Bldr.generateNode(S, Pred,
1869                           state->BindExpr(S, Pred->getLocationContext(),
1870                                                    UnknownVal()));
1871 
1872       Bldr.addNodes(Dst);
1873       break;
1874     }
1875 
1876     case Expr::ObjCIndirectCopyRestoreExprClass: {
1877       // ObjCIndirectCopyRestoreExpr implies passing a temporary for
1878       // correctness of lifetime management.  Due to limited analysis
1879       // of ARC, this is implemented as direct arg passing.
1880       Bldr.takeNodes(Pred);
1881       ProgramStateRef state = Pred->getState();
1882       const auto *OIE = cast<ObjCIndirectCopyRestoreExpr>(S);
1883       const Expr *E = OIE->getSubExpr();
1884       SVal V = state->getSVal(E, Pred->getLocationContext());
1885       Bldr.generateNode(S, Pred,
1886               state->BindExpr(S, Pred->getLocationContext(), V));
1887       Bldr.addNodes(Dst);
1888       break;
1889     }
1890   }
1891 }
1892 
1893 bool ExprEngine::replayWithoutInlining(ExplodedNode *N,
1894                                        const LocationContext *CalleeLC) {
1895   const StackFrameContext *CalleeSF = CalleeLC->getStackFrame();
1896   const StackFrameContext *CallerSF = CalleeSF->getParent()->getStackFrame();
1897   assert(CalleeSF && CallerSF);
1898   ExplodedNode *BeforeProcessingCall = nullptr;
1899   const Stmt *CE = CalleeSF->getCallSite();
1900 
1901   // Find the first node before we started processing the call expression.
1902   while (N) {
1903     ProgramPoint L = N->getLocation();
1904     BeforeProcessingCall = N;
1905     N = N->pred_empty() ? nullptr : *(N->pred_begin());
1906 
1907     // Skip the nodes corresponding to the inlined code.
1908     if (L.getStackFrame() != CallerSF)
1909       continue;
1910     // We reached the caller. Find the node right before we started
1911     // processing the call.
1912     if (L.isPurgeKind())
1913       continue;
1914     if (L.getAs<PreImplicitCall>())
1915       continue;
1916     if (L.getAs<CallEnter>())
1917       continue;
1918     if (Optional<StmtPoint> SP = L.getAs<StmtPoint>())
1919       if (SP->getStmt() == CE)
1920         continue;
1921     break;
1922   }
1923 
1924   if (!BeforeProcessingCall)
1925     return false;
1926 
1927   // TODO: Clean up the unneeded nodes.
1928 
1929   // Build an Epsilon node from which we will restart the analyzes.
1930   // Note that CE is permitted to be NULL!
1931   ProgramPoint NewNodeLoc =
1932                EpsilonPoint(BeforeProcessingCall->getLocationContext(), CE);
1933   // Add the special flag to GDM to signal retrying with no inlining.
1934   // Note, changing the state ensures that we are not going to cache out.
1935   ProgramStateRef NewNodeState = BeforeProcessingCall->getState();
1936   NewNodeState =
1937     NewNodeState->set<ReplayWithoutInlining>(const_cast<Stmt *>(CE));
1938 
1939   // Make the new node a successor of BeforeProcessingCall.
1940   bool IsNew = false;
1941   ExplodedNode *NewNode = G.getNode(NewNodeLoc, NewNodeState, false, &IsNew);
1942   // We cached out at this point. Caching out is common due to us backtracking
1943   // from the inlined function, which might spawn several paths.
1944   if (!IsNew)
1945     return true;
1946 
1947   NewNode->addPredecessor(BeforeProcessingCall, G);
1948 
1949   // Add the new node to the work list.
1950   Engine.enqueueStmtNode(NewNode, CalleeSF->getCallSiteBlock(),
1951                                   CalleeSF->getIndex());
1952   NumTimesRetriedWithoutInlining++;
1953   return true;
1954 }
1955 
1956 /// Block entrance.  (Update counters).
1957 void ExprEngine::processCFGBlockEntrance(const BlockEdge &L,
1958                                          NodeBuilderWithSinks &nodeBuilder,
1959                                          ExplodedNode *Pred) {
1960   PrettyStackTraceLocationContext CrashInfo(Pred->getLocationContext());
1961   // If we reach a loop which has a known bound (and meets
1962   // other constraints) then consider completely unrolling it.
1963   if(AMgr.options.ShouldUnrollLoops) {
1964     unsigned maxBlockVisitOnPath = AMgr.options.maxBlockVisitOnPath;
1965     const Stmt *Term = nodeBuilder.getContext().getBlock()->getTerminatorStmt();
1966     if (Term) {
1967       ProgramStateRef NewState = updateLoopStack(Term, AMgr.getASTContext(),
1968                                                  Pred, maxBlockVisitOnPath);
1969       if (NewState != Pred->getState()) {
1970         ExplodedNode *UpdatedNode = nodeBuilder.generateNode(NewState, Pred);
1971         if (!UpdatedNode)
1972           return;
1973         Pred = UpdatedNode;
1974       }
1975     }
1976     // Is we are inside an unrolled loop then no need the check the counters.
1977     if(isUnrolledState(Pred->getState()))
1978       return;
1979   }
1980 
1981   // If this block is terminated by a loop and it has already been visited the
1982   // maximum number of times, widen the loop.
1983   unsigned int BlockCount = nodeBuilder.getContext().blockCount();
1984   if (BlockCount == AMgr.options.maxBlockVisitOnPath - 1 &&
1985       AMgr.options.ShouldWidenLoops) {
1986     const Stmt *Term = nodeBuilder.getContext().getBlock()->getTerminatorStmt();
1987     if (!(Term &&
1988           (isa<ForStmt>(Term) || isa<WhileStmt>(Term) || isa<DoStmt>(Term))))
1989       return;
1990     // Widen.
1991     const LocationContext *LCtx = Pred->getLocationContext();
1992     ProgramStateRef WidenedState =
1993         getWidenedLoopState(Pred->getState(), LCtx, BlockCount, Term);
1994     nodeBuilder.generateNode(WidenedState, Pred);
1995     return;
1996   }
1997 
1998   // FIXME: Refactor this into a checker.
1999   if (BlockCount >= AMgr.options.maxBlockVisitOnPath) {
2000     static SimpleProgramPointTag tag(TagProviderName, "Block count exceeded");
2001     const ExplodedNode *Sink =
2002                    nodeBuilder.generateSink(Pred->getState(), Pred, &tag);
2003 
2004     // Check if we stopped at the top level function or not.
2005     // Root node should have the location context of the top most function.
2006     const LocationContext *CalleeLC = Pred->getLocation().getLocationContext();
2007     const LocationContext *CalleeSF = CalleeLC->getStackFrame();
2008     const LocationContext *RootLC =
2009                         (*G.roots_begin())->getLocation().getLocationContext();
2010     if (RootLC->getStackFrame() != CalleeSF) {
2011       Engine.FunctionSummaries->markReachedMaxBlockCount(CalleeSF->getDecl());
2012 
2013       // Re-run the call evaluation without inlining it, by storing the
2014       // no-inlining policy in the state and enqueuing the new work item on
2015       // the list. Replay should almost never fail. Use the stats to catch it
2016       // if it does.
2017       if ((!AMgr.options.NoRetryExhausted &&
2018            replayWithoutInlining(Pred, CalleeLC)))
2019         return;
2020       NumMaxBlockCountReachedInInlined++;
2021     } else
2022       NumMaxBlockCountReached++;
2023 
2024     // Make sink nodes as exhausted(for stats) only if retry failed.
2025     Engine.blocksExhausted.push_back(std::make_pair(L, Sink));
2026   }
2027 }
2028 
2029 //===----------------------------------------------------------------------===//
2030 // Branch processing.
2031 //===----------------------------------------------------------------------===//
2032 
2033 /// RecoverCastedSymbol - A helper function for ProcessBranch that is used
2034 /// to try to recover some path-sensitivity for casts of symbolic
2035 /// integers that promote their values (which are currently not tracked well).
2036 /// This function returns the SVal bound to Condition->IgnoreCasts if all the
2037 //  cast(s) did was sign-extend the original value.
2038 static SVal RecoverCastedSymbol(ProgramStateRef state,
2039                                 const Stmt *Condition,
2040                                 const LocationContext *LCtx,
2041                                 ASTContext &Ctx) {
2042 
2043   const auto *Ex = dyn_cast<Expr>(Condition);
2044   if (!Ex)
2045     return UnknownVal();
2046 
2047   uint64_t bits = 0;
2048   bool bitsInit = false;
2049 
2050   while (const auto *CE = dyn_cast<CastExpr>(Ex)) {
2051     QualType T = CE->getType();
2052 
2053     if (!T->isIntegralOrEnumerationType())
2054       return UnknownVal();
2055 
2056     uint64_t newBits = Ctx.getTypeSize(T);
2057     if (!bitsInit || newBits < bits) {
2058       bitsInit = true;
2059       bits = newBits;
2060     }
2061 
2062     Ex = CE->getSubExpr();
2063   }
2064 
2065   // We reached a non-cast.  Is it a symbolic value?
2066   QualType T = Ex->getType();
2067 
2068   if (!bitsInit || !T->isIntegralOrEnumerationType() ||
2069       Ctx.getTypeSize(T) > bits)
2070     return UnknownVal();
2071 
2072   return state->getSVal(Ex, LCtx);
2073 }
2074 
2075 #ifndef NDEBUG
2076 static const Stmt *getRightmostLeaf(const Stmt *Condition) {
2077   while (Condition) {
2078     const auto *BO = dyn_cast<BinaryOperator>(Condition);
2079     if (!BO || !BO->isLogicalOp()) {
2080       return Condition;
2081     }
2082     Condition = BO->getRHS()->IgnoreParens();
2083   }
2084   return nullptr;
2085 }
2086 #endif
2087 
2088 // Returns the condition the branch at the end of 'B' depends on and whose value
2089 // has been evaluated within 'B'.
2090 // In most cases, the terminator condition of 'B' will be evaluated fully in
2091 // the last statement of 'B'; in those cases, the resolved condition is the
2092 // given 'Condition'.
2093 // If the condition of the branch is a logical binary operator tree, the CFG is
2094 // optimized: in that case, we know that the expression formed by all but the
2095 // rightmost leaf of the logical binary operator tree must be true, and thus
2096 // the branch condition is at this point equivalent to the truth value of that
2097 // rightmost leaf; the CFG block thus only evaluates this rightmost leaf
2098 // expression in its final statement. As the full condition in that case was
2099 // not evaluated, and is thus not in the SVal cache, we need to use that leaf
2100 // expression to evaluate the truth value of the condition in the current state
2101 // space.
2102 static const Stmt *ResolveCondition(const Stmt *Condition,
2103                                     const CFGBlock *B) {
2104   if (const auto *Ex = dyn_cast<Expr>(Condition))
2105     Condition = Ex->IgnoreParens();
2106 
2107   const auto *BO = dyn_cast<BinaryOperator>(Condition);
2108   if (!BO || !BO->isLogicalOp())
2109     return Condition;
2110 
2111   assert(B->getTerminator().isStmtBranch() &&
2112          "Other kinds of branches are handled separately!");
2113 
2114   // For logical operations, we still have the case where some branches
2115   // use the traditional "merge" approach and others sink the branch
2116   // directly into the basic blocks representing the logical operation.
2117   // We need to distinguish between those two cases here.
2118 
2119   // The invariants are still shifting, but it is possible that the
2120   // last element in a CFGBlock is not a CFGStmt.  Look for the last
2121   // CFGStmt as the value of the condition.
2122   CFGBlock::const_reverse_iterator I = B->rbegin(), E = B->rend();
2123   for (; I != E; ++I) {
2124     CFGElement Elem = *I;
2125     Optional<CFGStmt> CS = Elem.getAs<CFGStmt>();
2126     if (!CS)
2127       continue;
2128     const Stmt *LastStmt = CS->getStmt();
2129     assert(LastStmt == Condition || LastStmt == getRightmostLeaf(Condition));
2130     return LastStmt;
2131   }
2132   llvm_unreachable("could not resolve condition");
2133 }
2134 
2135 using ObjCForLctxPair =
2136     std::pair<const ObjCForCollectionStmt *, const LocationContext *>;
2137 
2138 REGISTER_MAP_WITH_PROGRAMSTATE(ObjCForHasMoreIterations, ObjCForLctxPair, bool)
2139 
2140 ProgramStateRef ExprEngine::setWhetherHasMoreIteration(
2141     ProgramStateRef State, const ObjCForCollectionStmt *O,
2142     const LocationContext *LC, bool HasMoreIteraton) {
2143   assert(!State->contains<ObjCForHasMoreIterations>({O, LC}));
2144   return State->set<ObjCForHasMoreIterations>({O, LC}, HasMoreIteraton);
2145 }
2146 
2147 ProgramStateRef
2148 ExprEngine::removeIterationState(ProgramStateRef State,
2149                                  const ObjCForCollectionStmt *O,
2150                                  const LocationContext *LC) {
2151   assert(State->contains<ObjCForHasMoreIterations>({O, LC}));
2152   return State->remove<ObjCForHasMoreIterations>({O, LC});
2153 }
2154 
2155 bool ExprEngine::hasMoreIteration(ProgramStateRef State,
2156                                   const ObjCForCollectionStmt *O,
2157                                   const LocationContext *LC) {
2158   assert(State->contains<ObjCForHasMoreIterations>({O, LC}));
2159   return *State->get<ObjCForHasMoreIterations>({O, LC});
2160 }
2161 
2162 /// Split the state on whether there are any more iterations left for this loop.
2163 /// Returns a (HasMoreIteration, HasNoMoreIteration) pair, or None when the
2164 /// acquisition of the loop condition value failed.
2165 static Optional<std::pair<ProgramStateRef, ProgramStateRef>>
2166 assumeCondition(const Stmt *Condition, ExplodedNode *N) {
2167   ProgramStateRef State = N->getState();
2168   if (const auto *ObjCFor = dyn_cast<ObjCForCollectionStmt>(Condition)) {
2169     bool HasMoreIteraton =
2170         ExprEngine::hasMoreIteration(State, ObjCFor, N->getLocationContext());
2171     // Checkers have already ran on branch conditions, so the current
2172     // information as to whether the loop has more iteration becomes outdated
2173     // after this point.
2174     State = ExprEngine::removeIterationState(State, ObjCFor,
2175                                              N->getLocationContext());
2176     if (HasMoreIteraton)
2177       return std::pair<ProgramStateRef, ProgramStateRef>{State, nullptr};
2178     else
2179       return std::pair<ProgramStateRef, ProgramStateRef>{nullptr, State};
2180   }
2181   SVal X = State->getSVal(Condition, N->getLocationContext());
2182 
2183   if (X.isUnknownOrUndef()) {
2184     // Give it a chance to recover from unknown.
2185     if (const auto *Ex = dyn_cast<Expr>(Condition)) {
2186       if (Ex->getType()->isIntegralOrEnumerationType()) {
2187         // Try to recover some path-sensitivity.  Right now casts of symbolic
2188         // integers that promote their values are currently not tracked well.
2189         // If 'Condition' is such an expression, try and recover the
2190         // underlying value and use that instead.
2191         SVal recovered =
2192             RecoverCastedSymbol(State, Condition, N->getLocationContext(),
2193                                 N->getState()->getStateManager().getContext());
2194 
2195         if (!recovered.isUnknown()) {
2196           X = recovered;
2197         }
2198       }
2199     }
2200   }
2201 
2202   // If the condition is still unknown, give up.
2203   if (X.isUnknownOrUndef())
2204     return None;
2205 
2206   DefinedSVal V = X.castAs<DefinedSVal>();
2207 
2208   ProgramStateRef StTrue, StFalse;
2209   return State->assume(V);
2210 }
2211 
2212 void ExprEngine::processBranch(const Stmt *Condition,
2213                                NodeBuilderContext& BldCtx,
2214                                ExplodedNode *Pred,
2215                                ExplodedNodeSet &Dst,
2216                                const CFGBlock *DstT,
2217                                const CFGBlock *DstF) {
2218   assert((!Condition || !isa<CXXBindTemporaryExpr>(Condition)) &&
2219          "CXXBindTemporaryExprs are handled by processBindTemporary.");
2220   const LocationContext *LCtx = Pred->getLocationContext();
2221   PrettyStackTraceLocationContext StackCrashInfo(LCtx);
2222   currBldrCtx = &BldCtx;
2223 
2224   // Check for NULL conditions; e.g. "for(;;)"
2225   if (!Condition) {
2226     BranchNodeBuilder NullCondBldr(Pred, Dst, BldCtx, DstT, DstF);
2227     NullCondBldr.markInfeasible(false);
2228     NullCondBldr.generateNode(Pred->getState(), true, Pred);
2229     return;
2230   }
2231 
2232   if (const auto *Ex = dyn_cast<Expr>(Condition))
2233     Condition = Ex->IgnoreParens();
2234 
2235   Condition = ResolveCondition(Condition, BldCtx.getBlock());
2236   PrettyStackTraceLoc CrashInfo(getContext().getSourceManager(),
2237                                 Condition->getBeginLoc(),
2238                                 "Error evaluating branch");
2239 
2240   ExplodedNodeSet CheckersOutSet;
2241   getCheckerManager().runCheckersForBranchCondition(Condition, CheckersOutSet,
2242                                                     Pred, *this);
2243   // We generated only sinks.
2244   if (CheckersOutSet.empty())
2245     return;
2246 
2247   BranchNodeBuilder builder(CheckersOutSet, Dst, BldCtx, DstT, DstF);
2248   for (ExplodedNode *PredN : CheckersOutSet) {
2249     if (PredN->isSink())
2250       continue;
2251 
2252     ProgramStateRef PrevState = PredN->getState();
2253 
2254     ProgramStateRef StTrue, StFalse;
2255     if (const auto KnownCondValueAssumption = assumeCondition(Condition, PredN))
2256       std::tie(StTrue, StFalse) = *KnownCondValueAssumption;
2257     else {
2258       assert(!isa<ObjCForCollectionStmt>(Condition));
2259       builder.generateNode(PrevState, true, PredN);
2260       builder.generateNode(PrevState, false, PredN);
2261       continue;
2262     }
2263     if (StTrue && StFalse)
2264       assert(!isa<ObjCForCollectionStmt>(Condition));;
2265 
2266     // Process the true branch.
2267     if (builder.isFeasible(true)) {
2268       if (StTrue)
2269         builder.generateNode(StTrue, true, PredN);
2270       else
2271         builder.markInfeasible(true);
2272     }
2273 
2274     // Process the false branch.
2275     if (builder.isFeasible(false)) {
2276       if (StFalse)
2277         builder.generateNode(StFalse, false, PredN);
2278       else
2279         builder.markInfeasible(false);
2280     }
2281   }
2282   currBldrCtx = nullptr;
2283 }
2284 
2285 /// The GDM component containing the set of global variables which have been
2286 /// previously initialized with explicit initializers.
2287 REGISTER_TRAIT_WITH_PROGRAMSTATE(InitializedGlobalsSet,
2288                                  llvm::ImmutableSet<const VarDecl *>)
2289 
2290 void ExprEngine::processStaticInitializer(const DeclStmt *DS,
2291                                           NodeBuilderContext &BuilderCtx,
2292                                           ExplodedNode *Pred,
2293                                           ExplodedNodeSet &Dst,
2294                                           const CFGBlock *DstT,
2295                                           const CFGBlock *DstF) {
2296   PrettyStackTraceLocationContext CrashInfo(Pred->getLocationContext());
2297   currBldrCtx = &BuilderCtx;
2298 
2299   const auto *VD = cast<VarDecl>(DS->getSingleDecl());
2300   ProgramStateRef state = Pred->getState();
2301   bool initHasRun = state->contains<InitializedGlobalsSet>(VD);
2302   BranchNodeBuilder builder(Pred, Dst, BuilderCtx, DstT, DstF);
2303 
2304   if (!initHasRun) {
2305     state = state->add<InitializedGlobalsSet>(VD);
2306   }
2307 
2308   builder.generateNode(state, initHasRun, Pred);
2309   builder.markInfeasible(!initHasRun);
2310 
2311   currBldrCtx = nullptr;
2312 }
2313 
2314 /// processIndirectGoto - Called by CoreEngine.  Used to generate successor
2315 ///  nodes by processing the 'effects' of a computed goto jump.
2316 void ExprEngine::processIndirectGoto(IndirectGotoNodeBuilder &builder) {
2317   ProgramStateRef state = builder.getState();
2318   SVal V = state->getSVal(builder.getTarget(), builder.getLocationContext());
2319 
2320   // Three possibilities:
2321   //
2322   //   (1) We know the computed label.
2323   //   (2) The label is NULL (or some other constant), or Undefined.
2324   //   (3) We have no clue about the label.  Dispatch to all targets.
2325   //
2326 
2327   using iterator = IndirectGotoNodeBuilder::iterator;
2328 
2329   if (Optional<loc::GotoLabel> LV = V.getAs<loc::GotoLabel>()) {
2330     const LabelDecl *L = LV->getLabel();
2331 
2332     for (iterator I = builder.begin(), E = builder.end(); I != E; ++I) {
2333       if (I.getLabel() == L) {
2334         builder.generateNode(I, state);
2335         return;
2336       }
2337     }
2338 
2339     llvm_unreachable("No block with label.");
2340   }
2341 
2342   if (V.getAs<loc::ConcreteInt>() || V.getAs<UndefinedVal>()) {
2343     // Dispatch to the first target and mark it as a sink.
2344     //ExplodedNode* N = builder.generateNode(builder.begin(), state, true);
2345     // FIXME: add checker visit.
2346     //    UndefBranches.insert(N);
2347     return;
2348   }
2349 
2350   // This is really a catch-all.  We don't support symbolics yet.
2351   // FIXME: Implement dispatch for symbolic pointers.
2352 
2353   for (iterator I = builder.begin(), E = builder.end(); I != E; ++I)
2354     builder.generateNode(I, state);
2355 }
2356 
2357 void ExprEngine::processBeginOfFunction(NodeBuilderContext &BC,
2358                                         ExplodedNode *Pred,
2359                                         ExplodedNodeSet &Dst,
2360                                         const BlockEdge &L) {
2361   SaveAndRestore<const NodeBuilderContext *> NodeContextRAII(currBldrCtx, &BC);
2362   getCheckerManager().runCheckersForBeginFunction(Dst, L, Pred, *this);
2363 }
2364 
2365 /// ProcessEndPath - Called by CoreEngine.  Used to generate end-of-path
2366 ///  nodes when the control reaches the end of a function.
2367 void ExprEngine::processEndOfFunction(NodeBuilderContext& BC,
2368                                       ExplodedNode *Pred,
2369                                       const ReturnStmt *RS) {
2370   ProgramStateRef State = Pred->getState();
2371 
2372   if (!Pred->getStackFrame()->inTopFrame())
2373     State = finishArgumentConstruction(
2374         State, *getStateManager().getCallEventManager().getCaller(
2375                    Pred->getStackFrame(), Pred->getState()));
2376 
2377   // FIXME: We currently cannot assert that temporaries are clear, because
2378   // lifetime extended temporaries are not always modelled correctly. In some
2379   // cases when we materialize the temporary, we do
2380   // createTemporaryRegionIfNeeded(), and the region changes, and also the
2381   // respective destructor becomes automatic from temporary. So for now clean up
2382   // the state manually before asserting. Ideally, this braced block of code
2383   // should go away.
2384   {
2385     const LocationContext *FromLC = Pred->getLocationContext();
2386     const LocationContext *ToLC = FromLC->getStackFrame()->getParent();
2387     const LocationContext *LC = FromLC;
2388     while (LC != ToLC) {
2389       assert(LC && "ToLC must be a parent of FromLC!");
2390       for (auto I : State->get<ObjectsUnderConstruction>())
2391         if (I.first.getLocationContext() == LC) {
2392           // The comment above only pardons us for not cleaning up a
2393           // temporary destructor. If any other statements are found here,
2394           // it must be a separate problem.
2395           assert(I.first.getItem().getKind() ==
2396                      ConstructionContextItem::TemporaryDestructorKind ||
2397                  I.first.getItem().getKind() ==
2398                      ConstructionContextItem::ElidedDestructorKind);
2399           State = State->remove<ObjectsUnderConstruction>(I.first);
2400         }
2401       LC = LC->getParent();
2402     }
2403   }
2404 
2405   // Perform the transition with cleanups.
2406   if (State != Pred->getState()) {
2407     ExplodedNodeSet PostCleanup;
2408     NodeBuilder Bldr(Pred, PostCleanup, BC);
2409     Pred = Bldr.generateNode(Pred->getLocation(), State, Pred);
2410     if (!Pred) {
2411       // The node with clean temporaries already exists. We might have reached
2412       // it on a path on which we initialize different temporaries.
2413       return;
2414     }
2415   }
2416 
2417   assert(areAllObjectsFullyConstructed(Pred->getState(),
2418                                        Pred->getLocationContext(),
2419                                        Pred->getStackFrame()->getParent()));
2420 
2421   PrettyStackTraceLocationContext CrashInfo(Pred->getLocationContext());
2422 
2423   ExplodedNodeSet Dst;
2424   if (Pred->getLocationContext()->inTopFrame()) {
2425     // Remove dead symbols.
2426     ExplodedNodeSet AfterRemovedDead;
2427     removeDeadOnEndOfFunction(BC, Pred, AfterRemovedDead);
2428 
2429     // Notify checkers.
2430     for (const auto I : AfterRemovedDead)
2431       getCheckerManager().runCheckersForEndFunction(BC, Dst, I, *this, RS);
2432   } else {
2433     getCheckerManager().runCheckersForEndFunction(BC, Dst, Pred, *this, RS);
2434   }
2435 
2436   Engine.enqueueEndOfFunction(Dst, RS);
2437 }
2438 
2439 /// ProcessSwitch - Called by CoreEngine.  Used to generate successor
2440 ///  nodes by processing the 'effects' of a switch statement.
2441 void ExprEngine::processSwitch(SwitchNodeBuilder& builder) {
2442   using iterator = SwitchNodeBuilder::iterator;
2443 
2444   ProgramStateRef state = builder.getState();
2445   const Expr *CondE = builder.getCondition();
2446   SVal  CondV_untested = state->getSVal(CondE, builder.getLocationContext());
2447 
2448   if (CondV_untested.isUndef()) {
2449     //ExplodedNode* N = builder.generateDefaultCaseNode(state, true);
2450     // FIXME: add checker
2451     //UndefBranches.insert(N);
2452 
2453     return;
2454   }
2455   DefinedOrUnknownSVal CondV = CondV_untested.castAs<DefinedOrUnknownSVal>();
2456 
2457   ProgramStateRef DefaultSt = state;
2458 
2459   iterator I = builder.begin(), EI = builder.end();
2460   bool defaultIsFeasible = I == EI;
2461 
2462   for ( ; I != EI; ++I) {
2463     // Successor may be pruned out during CFG construction.
2464     if (!I.getBlock())
2465       continue;
2466 
2467     const CaseStmt *Case = I.getCase();
2468 
2469     // Evaluate the LHS of the case value.
2470     llvm::APSInt V1 = Case->getLHS()->EvaluateKnownConstInt(getContext());
2471     assert(V1.getBitWidth() == getContext().getIntWidth(CondE->getType()));
2472 
2473     // Get the RHS of the case, if it exists.
2474     llvm::APSInt V2;
2475     if (const Expr *E = Case->getRHS())
2476       V2 = E->EvaluateKnownConstInt(getContext());
2477     else
2478       V2 = V1;
2479 
2480     ProgramStateRef StateCase;
2481     if (Optional<NonLoc> NL = CondV.getAs<NonLoc>())
2482       std::tie(StateCase, DefaultSt) =
2483           DefaultSt->assumeInclusiveRange(*NL, V1, V2);
2484     else // UnknownVal
2485       StateCase = DefaultSt;
2486 
2487     if (StateCase)
2488       builder.generateCaseStmtNode(I, StateCase);
2489 
2490     // Now "assume" that the case doesn't match.  Add this state
2491     // to the default state (if it is feasible).
2492     if (DefaultSt)
2493       defaultIsFeasible = true;
2494     else {
2495       defaultIsFeasible = false;
2496       break;
2497     }
2498   }
2499 
2500   if (!defaultIsFeasible)
2501     return;
2502 
2503   // If we have switch(enum value), the default branch is not
2504   // feasible if all of the enum constants not covered by 'case:' statements
2505   // are not feasible values for the switch condition.
2506   //
2507   // Note that this isn't as accurate as it could be.  Even if there isn't
2508   // a case for a particular enum value as long as that enum value isn't
2509   // feasible then it shouldn't be considered for making 'default:' reachable.
2510   const SwitchStmt *SS = builder.getSwitch();
2511   const Expr *CondExpr = SS->getCond()->IgnoreParenImpCasts();
2512   if (CondExpr->getType()->getAs<EnumType>()) {
2513     if (SS->isAllEnumCasesCovered())
2514       return;
2515   }
2516 
2517   builder.generateDefaultCaseNode(DefaultSt);
2518 }
2519 
2520 //===----------------------------------------------------------------------===//
2521 // Transfer functions: Loads and stores.
2522 //===----------------------------------------------------------------------===//
2523 
2524 void ExprEngine::VisitCommonDeclRefExpr(const Expr *Ex, const NamedDecl *D,
2525                                         ExplodedNode *Pred,
2526                                         ExplodedNodeSet &Dst) {
2527   StmtNodeBuilder Bldr(Pred, Dst, *currBldrCtx);
2528 
2529   ProgramStateRef state = Pred->getState();
2530   const LocationContext *LCtx = Pred->getLocationContext();
2531 
2532   if (const auto *VD = dyn_cast<VarDecl>(D)) {
2533     // C permits "extern void v", and if you cast the address to a valid type,
2534     // you can even do things with it. We simply pretend
2535     assert(Ex->isGLValue() || VD->getType()->isVoidType());
2536     const LocationContext *LocCtxt = Pred->getLocationContext();
2537     const Decl *D = LocCtxt->getDecl();
2538     const auto *MD = dyn_cast_or_null<CXXMethodDecl>(D);
2539     const auto *DeclRefEx = dyn_cast<DeclRefExpr>(Ex);
2540     Optional<std::pair<SVal, QualType>> VInfo;
2541 
2542     if (AMgr.options.ShouldInlineLambdas && DeclRefEx &&
2543         DeclRefEx->refersToEnclosingVariableOrCapture() && MD &&
2544         MD->getParent()->isLambda()) {
2545       // Lookup the field of the lambda.
2546       const CXXRecordDecl *CXXRec = MD->getParent();
2547       llvm::DenseMap<const VarDecl *, FieldDecl *> LambdaCaptureFields;
2548       FieldDecl *LambdaThisCaptureField;
2549       CXXRec->getCaptureFields(LambdaCaptureFields, LambdaThisCaptureField);
2550 
2551       // Sema follows a sequence of complex rules to determine whether the
2552       // variable should be captured.
2553       if (const FieldDecl *FD = LambdaCaptureFields[VD]) {
2554         Loc CXXThis =
2555             svalBuilder.getCXXThis(MD, LocCtxt->getStackFrame());
2556         SVal CXXThisVal = state->getSVal(CXXThis);
2557         VInfo = std::make_pair(state->getLValue(FD, CXXThisVal), FD->getType());
2558       }
2559     }
2560 
2561     if (!VInfo)
2562       VInfo = std::make_pair(state->getLValue(VD, LocCtxt), VD->getType());
2563 
2564     SVal V = VInfo->first;
2565     bool IsReference = VInfo->second->isReferenceType();
2566 
2567     // For references, the 'lvalue' is the pointer address stored in the
2568     // reference region.
2569     if (IsReference) {
2570       if (const MemRegion *R = V.getAsRegion())
2571         V = state->getSVal(R);
2572       else
2573         V = UnknownVal();
2574     }
2575 
2576     Bldr.generateNode(Ex, Pred, state->BindExpr(Ex, LCtx, V), nullptr,
2577                       ProgramPoint::PostLValueKind);
2578     return;
2579   }
2580   if (const auto *ED = dyn_cast<EnumConstantDecl>(D)) {
2581     assert(!Ex->isGLValue());
2582     SVal V = svalBuilder.makeIntVal(ED->getInitVal());
2583     Bldr.generateNode(Ex, Pred, state->BindExpr(Ex, LCtx, V));
2584     return;
2585   }
2586   if (const auto *FD = dyn_cast<FunctionDecl>(D)) {
2587     SVal V = svalBuilder.getFunctionPointer(FD);
2588     Bldr.generateNode(Ex, Pred, state->BindExpr(Ex, LCtx, V), nullptr,
2589                       ProgramPoint::PostLValueKind);
2590     return;
2591   }
2592   if (isa<FieldDecl>(D) || isa<IndirectFieldDecl>(D)) {
2593     // Delegate all work related to pointer to members to the surrounding
2594     // operator&.
2595     return;
2596   }
2597   if (isa<BindingDecl>(D)) {
2598     // FIXME: proper support for bound declarations.
2599     // For now, let's just prevent crashing.
2600     return;
2601   }
2602 
2603   llvm_unreachable("Support for this Decl not implemented.");
2604 }
2605 
2606 /// VisitArraySubscriptExpr - Transfer function for array accesses
2607 void ExprEngine::VisitArraySubscriptExpr(const ArraySubscriptExpr *A,
2608                                              ExplodedNode *Pred,
2609                                              ExplodedNodeSet &Dst){
2610   const Expr *Base = A->getBase()->IgnoreParens();
2611   const Expr *Idx  = A->getIdx()->IgnoreParens();
2612 
2613   ExplodedNodeSet CheckerPreStmt;
2614   getCheckerManager().runCheckersForPreStmt(CheckerPreStmt, Pred, A, *this);
2615 
2616   ExplodedNodeSet EvalSet;
2617   StmtNodeBuilder Bldr(CheckerPreStmt, EvalSet, *currBldrCtx);
2618 
2619   bool IsVectorType = A->getBase()->getType()->isVectorType();
2620 
2621   // The "like" case is for situations where C standard prohibits the type to
2622   // be an lvalue, e.g. taking the address of a subscript of an expression of
2623   // type "void *".
2624   bool IsGLValueLike = A->isGLValue() ||
2625     (A->getType().isCForbiddenLValueType() && !AMgr.getLangOpts().CPlusPlus);
2626 
2627   for (auto *Node : CheckerPreStmt) {
2628     const LocationContext *LCtx = Node->getLocationContext();
2629     ProgramStateRef state = Node->getState();
2630 
2631     if (IsGLValueLike) {
2632       QualType T = A->getType();
2633 
2634       // One of the forbidden LValue types! We still need to have sensible
2635       // symbolic locations to represent this stuff. Note that arithmetic on
2636       // void pointers is a GCC extension.
2637       if (T->isVoidType())
2638         T = getContext().CharTy;
2639 
2640       SVal V = state->getLValue(T,
2641                                 state->getSVal(Idx, LCtx),
2642                                 state->getSVal(Base, LCtx));
2643       Bldr.generateNode(A, Node, state->BindExpr(A, LCtx, V), nullptr,
2644           ProgramPoint::PostLValueKind);
2645     } else if (IsVectorType) {
2646       // FIXME: non-glvalue vector reads are not modelled.
2647       Bldr.generateNode(A, Node, state, nullptr);
2648     } else {
2649       llvm_unreachable("Array subscript should be an lValue when not \
2650 a vector and not a forbidden lvalue type");
2651     }
2652   }
2653 
2654   getCheckerManager().runCheckersForPostStmt(Dst, EvalSet, A, *this);
2655 }
2656 
2657 /// VisitMemberExpr - Transfer function for member expressions.
2658 void ExprEngine::VisitMemberExpr(const MemberExpr *M, ExplodedNode *Pred,
2659                                  ExplodedNodeSet &Dst) {
2660   // FIXME: Prechecks eventually go in ::Visit().
2661   ExplodedNodeSet CheckedSet;
2662   getCheckerManager().runCheckersForPreStmt(CheckedSet, Pred, M, *this);
2663 
2664   ExplodedNodeSet EvalSet;
2665   ValueDecl *Member = M->getMemberDecl();
2666 
2667   // Handle static member variables and enum constants accessed via
2668   // member syntax.
2669   if (isa<VarDecl>(Member) || isa<EnumConstantDecl>(Member)) {
2670     for (const auto I : CheckedSet)
2671       VisitCommonDeclRefExpr(M, Member, I, EvalSet);
2672   } else {
2673     StmtNodeBuilder Bldr(CheckedSet, EvalSet, *currBldrCtx);
2674     ExplodedNodeSet Tmp;
2675 
2676     for (const auto I : CheckedSet) {
2677       ProgramStateRef state = I->getState();
2678       const LocationContext *LCtx = I->getLocationContext();
2679       Expr *BaseExpr = M->getBase();
2680 
2681       // Handle C++ method calls.
2682       if (const auto *MD = dyn_cast<CXXMethodDecl>(Member)) {
2683         if (MD->isInstance())
2684           state = createTemporaryRegionIfNeeded(state, LCtx, BaseExpr);
2685 
2686         SVal MDVal = svalBuilder.getFunctionPointer(MD);
2687         state = state->BindExpr(M, LCtx, MDVal);
2688 
2689         Bldr.generateNode(M, I, state);
2690         continue;
2691       }
2692 
2693       // Handle regular struct fields / member variables.
2694       const SubRegion *MR = nullptr;
2695       state = createTemporaryRegionIfNeeded(state, LCtx, BaseExpr,
2696                                             /*Result=*/nullptr,
2697                                             /*OutRegionWithAdjustments=*/&MR);
2698       SVal baseExprVal =
2699           MR ? loc::MemRegionVal(MR) : state->getSVal(BaseExpr, LCtx);
2700 
2701       const auto *field = cast<FieldDecl>(Member);
2702       SVal L = state->getLValue(field, baseExprVal);
2703 
2704       if (M->isGLValue() || M->getType()->isArrayType()) {
2705         // We special-case rvalues of array type because the analyzer cannot
2706         // reason about them, since we expect all regions to be wrapped in Locs.
2707         // We instead treat these as lvalues and assume that they will decay to
2708         // pointers as soon as they are used.
2709         if (!M->isGLValue()) {
2710           assert(M->getType()->isArrayType());
2711           const auto *PE =
2712             dyn_cast<ImplicitCastExpr>(I->getParentMap().getParentIgnoreParens(M));
2713           if (!PE || PE->getCastKind() != CK_ArrayToPointerDecay) {
2714             llvm_unreachable("should always be wrapped in ArrayToPointerDecay");
2715           }
2716         }
2717 
2718         if (field->getType()->isReferenceType()) {
2719           if (const MemRegion *R = L.getAsRegion())
2720             L = state->getSVal(R);
2721           else
2722             L = UnknownVal();
2723         }
2724 
2725         Bldr.generateNode(M, I, state->BindExpr(M, LCtx, L), nullptr,
2726                           ProgramPoint::PostLValueKind);
2727       } else {
2728         Bldr.takeNodes(I);
2729         evalLoad(Tmp, M, M, I, state, L);
2730         Bldr.addNodes(Tmp);
2731       }
2732     }
2733   }
2734 
2735   getCheckerManager().runCheckersForPostStmt(Dst, EvalSet, M, *this);
2736 }
2737 
2738 void ExprEngine::VisitAtomicExpr(const AtomicExpr *AE, ExplodedNode *Pred,
2739                                  ExplodedNodeSet &Dst) {
2740   ExplodedNodeSet AfterPreSet;
2741   getCheckerManager().runCheckersForPreStmt(AfterPreSet, Pred, AE, *this);
2742 
2743   // For now, treat all the arguments to C11 atomics as escaping.
2744   // FIXME: Ideally we should model the behavior of the atomics precisely here.
2745 
2746   ExplodedNodeSet AfterInvalidateSet;
2747   StmtNodeBuilder Bldr(AfterPreSet, AfterInvalidateSet, *currBldrCtx);
2748 
2749   for (const auto I : AfterPreSet) {
2750     ProgramStateRef State = I->getState();
2751     const LocationContext *LCtx = I->getLocationContext();
2752 
2753     SmallVector<SVal, 8> ValuesToInvalidate;
2754     for (unsigned SI = 0, Count = AE->getNumSubExprs(); SI != Count; SI++) {
2755       const Expr *SubExpr = AE->getSubExprs()[SI];
2756       SVal SubExprVal = State->getSVal(SubExpr, LCtx);
2757       ValuesToInvalidate.push_back(SubExprVal);
2758     }
2759 
2760     State = State->invalidateRegions(ValuesToInvalidate, AE,
2761                                     currBldrCtx->blockCount(),
2762                                     LCtx,
2763                                     /*CausedByPointerEscape*/true,
2764                                     /*Symbols=*/nullptr);
2765 
2766     SVal ResultVal = UnknownVal();
2767     State = State->BindExpr(AE, LCtx, ResultVal);
2768     Bldr.generateNode(AE, I, State, nullptr,
2769                       ProgramPoint::PostStmtKind);
2770   }
2771 
2772   getCheckerManager().runCheckersForPostStmt(Dst, AfterInvalidateSet, AE, *this);
2773 }
2774 
2775 // A value escapes in four possible cases:
2776 // (1) We are binding to something that is not a memory region.
2777 // (2) We are binding to a MemRegion that does not have stack storage.
2778 // (3) We are binding to a top-level parameter region with a non-trivial
2779 //     destructor. We won't see the destructor during analysis, but it's there.
2780 // (4) We are binding to a MemRegion with stack storage that the store
2781 //     does not understand.
2782 ProgramStateRef ExprEngine::processPointerEscapedOnBind(
2783     ProgramStateRef State, ArrayRef<std::pair<SVal, SVal>> LocAndVals,
2784     const LocationContext *LCtx, PointerEscapeKind Kind,
2785     const CallEvent *Call) {
2786   SmallVector<SVal, 8> Escaped;
2787   for (const std::pair<SVal, SVal> &LocAndVal : LocAndVals) {
2788     // Cases (1) and (2).
2789     const MemRegion *MR = LocAndVal.first.getAsRegion();
2790     if (!MR || !MR->hasStackStorage()) {
2791       Escaped.push_back(LocAndVal.second);
2792       continue;
2793     }
2794 
2795     // Case (3).
2796     if (const auto *VR = dyn_cast<VarRegion>(MR->getBaseRegion()))
2797       if (VR->hasStackParametersStorage() && VR->getStackFrame()->inTopFrame())
2798         if (const auto *RD = VR->getValueType()->getAsCXXRecordDecl())
2799           if (!RD->hasTrivialDestructor()) {
2800             Escaped.push_back(LocAndVal.second);
2801             continue;
2802           }
2803 
2804     // Case (4): in order to test that, generate a new state with the binding
2805     // added. If it is the same state, then it escapes (since the store cannot
2806     // represent the binding).
2807     // Do this only if we know that the store is not supposed to generate the
2808     // same state.
2809     SVal StoredVal = State->getSVal(MR);
2810     if (StoredVal != LocAndVal.second)
2811       if (State ==
2812           (State->bindLoc(loc::MemRegionVal(MR), LocAndVal.second, LCtx)))
2813         Escaped.push_back(LocAndVal.second);
2814   }
2815 
2816   if (Escaped.empty())
2817     return State;
2818 
2819   return escapeValues(State, Escaped, Kind, Call);
2820 }
2821 
2822 ProgramStateRef
2823 ExprEngine::processPointerEscapedOnBind(ProgramStateRef State, SVal Loc,
2824                                         SVal Val, const LocationContext *LCtx) {
2825   std::pair<SVal, SVal> LocAndVal(Loc, Val);
2826   return processPointerEscapedOnBind(State, LocAndVal, LCtx, PSK_EscapeOnBind,
2827                                      nullptr);
2828 }
2829 
2830 ProgramStateRef
2831 ExprEngine::notifyCheckersOfPointerEscape(ProgramStateRef State,
2832     const InvalidatedSymbols *Invalidated,
2833     ArrayRef<const MemRegion *> ExplicitRegions,
2834     const CallEvent *Call,
2835     RegionAndSymbolInvalidationTraits &ITraits) {
2836   if (!Invalidated || Invalidated->empty())
2837     return State;
2838 
2839   if (!Call)
2840     return getCheckerManager().runCheckersForPointerEscape(State,
2841                                                            *Invalidated,
2842                                                            nullptr,
2843                                                            PSK_EscapeOther,
2844                                                            &ITraits);
2845 
2846   // If the symbols were invalidated by a call, we want to find out which ones
2847   // were invalidated directly due to being arguments to the call.
2848   InvalidatedSymbols SymbolsDirectlyInvalidated;
2849   for (const auto I : ExplicitRegions) {
2850     if (const SymbolicRegion *R = I->StripCasts()->getAs<SymbolicRegion>())
2851       SymbolsDirectlyInvalidated.insert(R->getSymbol());
2852   }
2853 
2854   InvalidatedSymbols SymbolsIndirectlyInvalidated;
2855   for (const auto &sym : *Invalidated) {
2856     if (SymbolsDirectlyInvalidated.count(sym))
2857       continue;
2858     SymbolsIndirectlyInvalidated.insert(sym);
2859   }
2860 
2861   if (!SymbolsDirectlyInvalidated.empty())
2862     State = getCheckerManager().runCheckersForPointerEscape(State,
2863         SymbolsDirectlyInvalidated, Call, PSK_DirectEscapeOnCall, &ITraits);
2864 
2865   // Notify about the symbols that get indirectly invalidated by the call.
2866   if (!SymbolsIndirectlyInvalidated.empty())
2867     State = getCheckerManager().runCheckersForPointerEscape(State,
2868         SymbolsIndirectlyInvalidated, Call, PSK_IndirectEscapeOnCall, &ITraits);
2869 
2870   return State;
2871 }
2872 
2873 /// evalBind - Handle the semantics of binding a value to a specific location.
2874 ///  This method is used by evalStore and (soon) VisitDeclStmt, and others.
2875 void ExprEngine::evalBind(ExplodedNodeSet &Dst, const Stmt *StoreE,
2876                           ExplodedNode *Pred,
2877                           SVal location, SVal Val,
2878                           bool atDeclInit, const ProgramPoint *PP) {
2879   const LocationContext *LC = Pred->getLocationContext();
2880   PostStmt PS(StoreE, LC);
2881   if (!PP)
2882     PP = &PS;
2883 
2884   // Do a previsit of the bind.
2885   ExplodedNodeSet CheckedSet;
2886   getCheckerManager().runCheckersForBind(CheckedSet, Pred, location, Val,
2887                                          StoreE, *this, *PP);
2888 
2889   StmtNodeBuilder Bldr(CheckedSet, Dst, *currBldrCtx);
2890 
2891   // If the location is not a 'Loc', it will already be handled by
2892   // the checkers.  There is nothing left to do.
2893   if (!location.getAs<Loc>()) {
2894     const ProgramPoint L = PostStore(StoreE, LC, /*Loc*/nullptr,
2895                                      /*tag*/nullptr);
2896     ProgramStateRef state = Pred->getState();
2897     state = processPointerEscapedOnBind(state, location, Val, LC);
2898     Bldr.generateNode(L, state, Pred);
2899     return;
2900   }
2901 
2902   for (const auto PredI : CheckedSet) {
2903     ProgramStateRef state = PredI->getState();
2904 
2905     state = processPointerEscapedOnBind(state, location, Val, LC);
2906 
2907     // When binding the value, pass on the hint that this is a initialization.
2908     // For initializations, we do not need to inform clients of region
2909     // changes.
2910     state = state->bindLoc(location.castAs<Loc>(),
2911                            Val, LC, /* notifyChanges = */ !atDeclInit);
2912 
2913     const MemRegion *LocReg = nullptr;
2914     if (Optional<loc::MemRegionVal> LocRegVal =
2915             location.getAs<loc::MemRegionVal>()) {
2916       LocReg = LocRegVal->getRegion();
2917     }
2918 
2919     const ProgramPoint L = PostStore(StoreE, LC, LocReg, nullptr);
2920     Bldr.generateNode(L, state, PredI);
2921   }
2922 }
2923 
2924 /// evalStore - Handle the semantics of a store via an assignment.
2925 ///  @param Dst The node set to store generated state nodes
2926 ///  @param AssignE The assignment expression if the store happens in an
2927 ///         assignment.
2928 ///  @param LocationE The location expression that is stored to.
2929 ///  @param state The current simulation state
2930 ///  @param location The location to store the value
2931 ///  @param Val The value to be stored
2932 void ExprEngine::evalStore(ExplodedNodeSet &Dst, const Expr *AssignE,
2933                              const Expr *LocationE,
2934                              ExplodedNode *Pred,
2935                              ProgramStateRef state, SVal location, SVal Val,
2936                              const ProgramPointTag *tag) {
2937   // Proceed with the store.  We use AssignE as the anchor for the PostStore
2938   // ProgramPoint if it is non-NULL, and LocationE otherwise.
2939   const Expr *StoreE = AssignE ? AssignE : LocationE;
2940 
2941   // Evaluate the location (checks for bad dereferences).
2942   ExplodedNodeSet Tmp;
2943   evalLocation(Tmp, AssignE, LocationE, Pred, state, location, false);
2944 
2945   if (Tmp.empty())
2946     return;
2947 
2948   if (location.isUndef())
2949     return;
2950 
2951   for (const auto I : Tmp)
2952     evalBind(Dst, StoreE, I, location, Val, false);
2953 }
2954 
2955 void ExprEngine::evalLoad(ExplodedNodeSet &Dst,
2956                           const Expr *NodeEx,
2957                           const Expr *BoundEx,
2958                           ExplodedNode *Pred,
2959                           ProgramStateRef state,
2960                           SVal location,
2961                           const ProgramPointTag *tag,
2962                           QualType LoadTy) {
2963   assert(!location.getAs<NonLoc>() && "location cannot be a NonLoc.");
2964   assert(NodeEx);
2965   assert(BoundEx);
2966   // Evaluate the location (checks for bad dereferences).
2967   ExplodedNodeSet Tmp;
2968   evalLocation(Tmp, NodeEx, BoundEx, Pred, state, location, true);
2969   if (Tmp.empty())
2970     return;
2971 
2972   StmtNodeBuilder Bldr(Tmp, Dst, *currBldrCtx);
2973   if (location.isUndef())
2974     return;
2975 
2976   // Proceed with the load.
2977   for (const auto I : Tmp) {
2978     state = I->getState();
2979     const LocationContext *LCtx = I->getLocationContext();
2980 
2981     SVal V = UnknownVal();
2982     if (location.isValid()) {
2983       if (LoadTy.isNull())
2984         LoadTy = BoundEx->getType();
2985       V = state->getSVal(location.castAs<Loc>(), LoadTy);
2986     }
2987 
2988     Bldr.generateNode(NodeEx, I, state->BindExpr(BoundEx, LCtx, V), tag,
2989                       ProgramPoint::PostLoadKind);
2990   }
2991 }
2992 
2993 void ExprEngine::evalLocation(ExplodedNodeSet &Dst,
2994                               const Stmt *NodeEx,
2995                               const Stmt *BoundEx,
2996                               ExplodedNode *Pred,
2997                               ProgramStateRef state,
2998                               SVal location,
2999                               bool isLoad) {
3000   StmtNodeBuilder BldrTop(Pred, Dst, *currBldrCtx);
3001   // Early checks for performance reason.
3002   if (location.isUnknown()) {
3003     return;
3004   }
3005 
3006   ExplodedNodeSet Src;
3007   BldrTop.takeNodes(Pred);
3008   StmtNodeBuilder Bldr(Pred, Src, *currBldrCtx);
3009   if (Pred->getState() != state) {
3010     // Associate this new state with an ExplodedNode.
3011     // FIXME: If I pass null tag, the graph is incorrect, e.g for
3012     //   int *p;
3013     //   p = 0;
3014     //   *p = 0xDEADBEEF;
3015     // "p = 0" is not noted as "Null pointer value stored to 'p'" but
3016     // instead "int *p" is noted as
3017     // "Variable 'p' initialized to a null pointer value"
3018 
3019     static SimpleProgramPointTag tag(TagProviderName, "Location");
3020     Bldr.generateNode(NodeEx, Pred, state, &tag);
3021   }
3022   ExplodedNodeSet Tmp;
3023   getCheckerManager().runCheckersForLocation(Tmp, Src, location, isLoad,
3024                                              NodeEx, BoundEx, *this);
3025   BldrTop.addNodes(Tmp);
3026 }
3027 
3028 std::pair<const ProgramPointTag *, const ProgramPointTag*>
3029 ExprEngine::geteagerlyAssumeBinOpBifurcationTags() {
3030   static SimpleProgramPointTag
3031          eagerlyAssumeBinOpBifurcationTrue(TagProviderName,
3032                                            "Eagerly Assume True"),
3033          eagerlyAssumeBinOpBifurcationFalse(TagProviderName,
3034                                             "Eagerly Assume False");
3035   return std::make_pair(&eagerlyAssumeBinOpBifurcationTrue,
3036                         &eagerlyAssumeBinOpBifurcationFalse);
3037 }
3038 
3039 void ExprEngine::evalEagerlyAssumeBinOpBifurcation(ExplodedNodeSet &Dst,
3040                                                    ExplodedNodeSet &Src,
3041                                                    const Expr *Ex) {
3042   StmtNodeBuilder Bldr(Src, Dst, *currBldrCtx);
3043 
3044   for (const auto Pred : Src) {
3045     // Test if the previous node was as the same expression.  This can happen
3046     // when the expression fails to evaluate to anything meaningful and
3047     // (as an optimization) we don't generate a node.
3048     ProgramPoint P = Pred->getLocation();
3049     if (!P.getAs<PostStmt>() || P.castAs<PostStmt>().getStmt() != Ex) {
3050       continue;
3051     }
3052 
3053     ProgramStateRef state = Pred->getState();
3054     SVal V = state->getSVal(Ex, Pred->getLocationContext());
3055     Optional<nonloc::SymbolVal> SEV = V.getAs<nonloc::SymbolVal>();
3056     if (SEV && SEV->isExpression()) {
3057       const std::pair<const ProgramPointTag *, const ProgramPointTag*> &tags =
3058         geteagerlyAssumeBinOpBifurcationTags();
3059 
3060       ProgramStateRef StateTrue, StateFalse;
3061       std::tie(StateTrue, StateFalse) = state->assume(*SEV);
3062 
3063       // First assume that the condition is true.
3064       if (StateTrue) {
3065         SVal Val = svalBuilder.makeIntVal(1U, Ex->getType());
3066         StateTrue = StateTrue->BindExpr(Ex, Pred->getLocationContext(), Val);
3067         Bldr.generateNode(Ex, Pred, StateTrue, tags.first);
3068       }
3069 
3070       // Next, assume that the condition is false.
3071       if (StateFalse) {
3072         SVal Val = svalBuilder.makeIntVal(0U, Ex->getType());
3073         StateFalse = StateFalse->BindExpr(Ex, Pred->getLocationContext(), Val);
3074         Bldr.generateNode(Ex, Pred, StateFalse, tags.second);
3075       }
3076     }
3077   }
3078 }
3079 
3080 void ExprEngine::VisitGCCAsmStmt(const GCCAsmStmt *A, ExplodedNode *Pred,
3081                                  ExplodedNodeSet &Dst) {
3082   StmtNodeBuilder Bldr(Pred, Dst, *currBldrCtx);
3083   // We have processed both the inputs and the outputs.  All of the outputs
3084   // should evaluate to Locs.  Nuke all of their values.
3085 
3086   // FIXME: Some day in the future it would be nice to allow a "plug-in"
3087   // which interprets the inline asm and stores proper results in the
3088   // outputs.
3089 
3090   ProgramStateRef state = Pred->getState();
3091 
3092   for (const Expr *O : A->outputs()) {
3093     SVal X = state->getSVal(O, Pred->getLocationContext());
3094     assert(!X.getAs<NonLoc>());  // Should be an Lval, or unknown, undef.
3095 
3096     if (Optional<Loc> LV = X.getAs<Loc>())
3097       state = state->bindLoc(*LV, UnknownVal(), Pred->getLocationContext());
3098   }
3099 
3100   Bldr.generateNode(A, Pred, state);
3101 }
3102 
3103 void ExprEngine::VisitMSAsmStmt(const MSAsmStmt *A, ExplodedNode *Pred,
3104                                 ExplodedNodeSet &Dst) {
3105   StmtNodeBuilder Bldr(Pred, Dst, *currBldrCtx);
3106   Bldr.generateNode(A, Pred, Pred->getState());
3107 }
3108 
3109 //===----------------------------------------------------------------------===//
3110 // Visualization.
3111 //===----------------------------------------------------------------------===//
3112 
3113 #ifndef NDEBUG
3114 namespace llvm {
3115 
3116 template<>
3117 struct DOTGraphTraits<ExplodedGraph*> : public DefaultDOTGraphTraits {
3118   DOTGraphTraits (bool isSimple = false) : DefaultDOTGraphTraits(isSimple) {}
3119 
3120   static bool nodeHasBugReport(const ExplodedNode *N) {
3121     BugReporter &BR = static_cast<ExprEngine &>(
3122       N->getState()->getStateManager().getOwningEngine()).getBugReporter();
3123 
3124     const auto EQClasses =
3125         llvm::make_range(BR.EQClasses_begin(), BR.EQClasses_end());
3126 
3127     for (const auto &EQ : EQClasses) {
3128       for (const auto &I : EQ.getReports()) {
3129         const auto *PR = dyn_cast<PathSensitiveBugReport>(I.get());
3130         if (!PR)
3131           continue;
3132         const ExplodedNode *EN = PR->getErrorNode();
3133         if (EN->getState() == N->getState() &&
3134             EN->getLocation() == N->getLocation())
3135           return true;
3136       }
3137     }
3138     return false;
3139   }
3140 
3141   /// \p PreCallback: callback before break.
3142   /// \p PostCallback: callback after break.
3143   /// \p Stop: stop iteration if returns @c true
3144   /// \return Whether @c Stop ever returned @c true.
3145   static bool traverseHiddenNodes(
3146       const ExplodedNode *N,
3147       llvm::function_ref<void(const ExplodedNode *)> PreCallback,
3148       llvm::function_ref<void(const ExplodedNode *)> PostCallback,
3149       llvm::function_ref<bool(const ExplodedNode *)> Stop) {
3150     while (true) {
3151       PreCallback(N);
3152       if (Stop(N))
3153         return true;
3154 
3155       if (N->succ_size() != 1 || !isNodeHidden(N->getFirstSucc(), nullptr))
3156         break;
3157       PostCallback(N);
3158 
3159       N = N->getFirstSucc();
3160     }
3161     return false;
3162   }
3163 
3164   static bool isNodeHidden(const ExplodedNode *N, const ExplodedGraph *G) {
3165     return N->isTrivial();
3166   }
3167 
3168   static std::string getNodeLabel(const ExplodedNode *N, ExplodedGraph *G){
3169     std::string Buf;
3170     llvm::raw_string_ostream Out(Buf);
3171 
3172     const bool IsDot = true;
3173     const unsigned int Space = 1;
3174     ProgramStateRef State = N->getState();
3175 
3176     Out << "{ \"state_id\": " << State->getID()
3177         << ",\\l";
3178 
3179     Indent(Out, Space, IsDot) << "\"program_points\": [\\l";
3180 
3181     // Dump program point for all the previously skipped nodes.
3182     traverseHiddenNodes(
3183         N,
3184         [&](const ExplodedNode *OtherNode) {
3185           Indent(Out, Space + 1, IsDot) << "{ ";
3186           OtherNode->getLocation().printJson(Out, /*NL=*/"\\l");
3187           Out << ", \"tag\": ";
3188           if (const ProgramPointTag *Tag = OtherNode->getLocation().getTag())
3189             Out << '\"' << Tag->getTagDescription() << "\"";
3190           else
3191             Out << "null";
3192           Out << ", \"node_id\": " << OtherNode->getID() <<
3193                  ", \"is_sink\": " << OtherNode->isSink() <<
3194                  ", \"has_report\": " << nodeHasBugReport(OtherNode) << " }";
3195         },
3196         // Adds a comma and a new-line between each program point.
3197         [&](const ExplodedNode *) { Out << ",\\l"; },
3198         [&](const ExplodedNode *) { return false; });
3199 
3200     Out << "\\l"; // Adds a new-line to the last program point.
3201     Indent(Out, Space, IsDot) << "],\\l";
3202 
3203     State->printDOT(Out, N->getLocationContext(), Space);
3204 
3205     Out << "\\l}\\l";
3206     return Out.str();
3207   }
3208 };
3209 
3210 } // namespace llvm
3211 #endif
3212 
3213 void ExprEngine::ViewGraph(bool trim) {
3214 #ifndef NDEBUG
3215   std::string Filename = DumpGraph(trim);
3216   llvm::DisplayGraph(Filename, false, llvm::GraphProgram::DOT);
3217 #else
3218   llvm::errs() << "Warning: viewing graph requires assertions" << "\n";
3219 #endif
3220 }
3221 
3222 
3223 void ExprEngine::ViewGraph(ArrayRef<const ExplodedNode*> Nodes) {
3224 #ifndef NDEBUG
3225   std::string Filename = DumpGraph(Nodes);
3226   llvm::DisplayGraph(Filename, false, llvm::GraphProgram::DOT);
3227 #else
3228   llvm::errs() << "Warning: viewing graph requires assertions" << "\n";
3229 #endif
3230 }
3231 
3232 std::string ExprEngine::DumpGraph(bool trim, StringRef Filename) {
3233 #ifndef NDEBUG
3234   if (trim) {
3235     std::vector<const ExplodedNode *> Src;
3236 
3237     // Iterate through the reports and get their nodes.
3238     for (BugReporter::EQClasses_iterator
3239            EI = BR.EQClasses_begin(), EE = BR.EQClasses_end(); EI != EE; ++EI) {
3240       const auto *R =
3241           dyn_cast<PathSensitiveBugReport>(EI->getReports()[0].get());
3242       if (!R)
3243         continue;
3244       const auto *N = const_cast<ExplodedNode *>(R->getErrorNode());
3245       Src.push_back(N);
3246     }
3247     return DumpGraph(Src, Filename);
3248   } else {
3249     return llvm::WriteGraph(&G, "ExprEngine", /*ShortNames=*/false,
3250                             /*Title=*/"Exploded Graph",
3251                             /*Filename=*/std::string(Filename));
3252   }
3253 #else
3254   llvm::errs() << "Warning: dumping graph requires assertions" << "\n";
3255   return "";
3256 #endif
3257 }
3258 
3259 std::string ExprEngine::DumpGraph(ArrayRef<const ExplodedNode*> Nodes,
3260                                   StringRef Filename) {
3261 #ifndef NDEBUG
3262   std::unique_ptr<ExplodedGraph> TrimmedG(G.trim(Nodes));
3263 
3264   if (!TrimmedG.get()) {
3265     llvm::errs() << "warning: Trimmed ExplodedGraph is empty.\n";
3266     return "";
3267   } else {
3268     return llvm::WriteGraph(TrimmedG.get(), "TrimmedExprEngine",
3269                             /*ShortNames=*/false,
3270                             /*Title=*/"Trimmed Exploded Graph",
3271                             /*Filename=*/std::string(Filename));
3272   }
3273 #else
3274   llvm::errs() << "Warning: dumping graph requires assertions" << "\n";
3275   return "";
3276 #endif
3277 }
3278 
3279 void *ProgramStateTrait<ReplayWithoutInlining>::GDMIndex() {
3280   static int index = 0;
3281   return &index;
3282 }
3283 
3284 void ExprEngine::anchor() { }
3285