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clang 20.0.0git
ExprEngine.cpp
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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 CoreEngine, but provides the boilerplate to execute transfer
11// functions and build the ExplodedGraph at the expression level.
12//
13//===----------------------------------------------------------------------===//
14
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"
27#include "clang/AST/Stmt.h"
28#include "clang/AST/StmtCXX.h"
29#include "clang/AST/StmtObjC.h"
30#include "clang/AST/Type.h"
32#include "clang/Analysis/CFG.h"
37#include "clang/Basic/LLVM.h"
64#include "llvm/ADT/APSInt.h"
65#include "llvm/ADT/DenseMap.h"
66#include "llvm/ADT/ImmutableMap.h"
67#include "llvm/ADT/ImmutableSet.h"
68#include "llvm/ADT/STLExtras.h"
69#include "llvm/ADT/SmallVector.h"
70#include "llvm/ADT/Statistic.h"
71#include "llvm/Support/Casting.h"
72#include "llvm/Support/Compiler.h"
73#include "llvm/Support/DOTGraphTraits.h"
74#include "llvm/Support/ErrorHandling.h"
75#include "llvm/Support/GraphWriter.h"
76#include "llvm/Support/SaveAndRestore.h"
77#include "llvm/Support/raw_ostream.h"
78#include <cassert>
79#include <cstdint>
80#include <memory>
81#include <optional>
82#include <string>
83#include <tuple>
84#include <utility>
85#include <vector>
86
87using namespace clang;
88using namespace ento;
89
90#define DEBUG_TYPE "ExprEngine"
91
92STATISTIC(NumRemoveDeadBindings,
93 "The # of times RemoveDeadBindings is called");
94STATISTIC(NumMaxBlockCountReached,
95 "The # of aborted paths due to reaching the maximum block count in "
96 "a top level function");
97STATISTIC(NumMaxBlockCountReachedInInlined,
98 "The # of aborted paths due to reaching the maximum block count in "
99 "an inlined function");
100STATISTIC(NumTimesRetriedWithoutInlining,
101 "The # of times we re-evaluated a call without inlining");
102
103//===----------------------------------------------------------------------===//
104// Internal program state traits.
105//===----------------------------------------------------------------------===//
106
107namespace {
108
109// When modeling a C++ constructor, for a variety of reasons we need to track
110// the location of the object for the duration of its ConstructionContext.
111// ObjectsUnderConstruction maps statements within the construction context
112// to the object's location, so that on every such statement the location
113// could have been retrieved.
114
115/// ConstructedObjectKey is used for being able to find the path-sensitive
116/// memory region of a freshly constructed object while modeling the AST node
117/// that syntactically represents the object that is being constructed.
118/// Semantics of such nodes may sometimes require access to the region that's
119/// not otherwise present in the program state, or to the very fact that
120/// the construction context was present and contained references to these
121/// AST nodes.
122class ConstructedObjectKey {
123 using ConstructedObjectKeyImpl =
124 std::pair<ConstructionContextItem, const LocationContext *>;
125 const ConstructedObjectKeyImpl Impl;
126
127public:
128 explicit ConstructedObjectKey(const ConstructionContextItem &Item,
129 const LocationContext *LC)
130 : Impl(Item, LC) {}
131
132 const ConstructionContextItem &getItem() const { return Impl.first; }
133 const LocationContext *getLocationContext() const { return Impl.second; }
134
135 ASTContext &getASTContext() const {
136 return getLocationContext()->getDecl()->getASTContext();
137 }
138
139 void printJson(llvm::raw_ostream &Out, PrinterHelper *Helper,
140 PrintingPolicy &PP) const {
141 const Stmt *S = getItem().getStmtOrNull();
142 const CXXCtorInitializer *I = nullptr;
143 if (!S)
144 I = getItem().getCXXCtorInitializer();
145
146 if (S)
147 Out << "\"stmt_id\": " << S->getID(getASTContext());
148 else
149 Out << "\"init_id\": " << I->getID(getASTContext());
150
151 // Kind
152 Out << ", \"kind\": \"" << getItem().getKindAsString()
153 << "\", \"argument_index\": ";
154
156 Out << getItem().getIndex();
157 else
158 Out << "null";
159
160 // Pretty-print
161 Out << ", \"pretty\": ";
162
163 if (S) {
164 S->printJson(Out, Helper, PP, /*AddQuotes=*/true);
165 } else {
166 Out << '\"' << I->getAnyMember()->getDeclName() << '\"';
167 }
168 }
169
170 void Profile(llvm::FoldingSetNodeID &ID) const {
171 ID.Add(Impl.first);
172 ID.AddPointer(Impl.second);
173 }
174
175 bool operator==(const ConstructedObjectKey &RHS) const {
176 return Impl == RHS.Impl;
177 }
178
179 bool operator<(const ConstructedObjectKey &RHS) const {
180 return Impl < RHS.Impl;
181 }
182};
183} // namespace
184
185typedef llvm::ImmutableMap<ConstructedObjectKey, SVal>
187REGISTER_TRAIT_WITH_PROGRAMSTATE(ObjectsUnderConstruction,
189
190// This trait is responsible for storing the index of the element that is to be
191// constructed in the next iteration. As a result a CXXConstructExpr is only
192// stored if it is array type. Also the index is the index of the continuous
193// memory region, which is important for multi-dimensional arrays. E.g:: int
194// arr[2][2]; assume arr[1][1] will be the next element under construction, so
195// the index is 3.
196typedef llvm::ImmutableMap<
197 std::pair<const CXXConstructExpr *, const LocationContext *>, unsigned>
198 IndexOfElementToConstructMap;
199REGISTER_TRAIT_WITH_PROGRAMSTATE(IndexOfElementToConstruct,
200 IndexOfElementToConstructMap)
201
202// This trait is responsible for holding our pending ArrayInitLoopExprs.
203// It pairs the LocationContext and the initializer CXXConstructExpr with
204// the size of the array that's being copy initialized.
205typedef llvm::ImmutableMap<
206 std::pair<const CXXConstructExpr *, const LocationContext *>, unsigned>
207 PendingInitLoopMap;
208REGISTER_TRAIT_WITH_PROGRAMSTATE(PendingInitLoop, PendingInitLoopMap)
209
210typedef llvm::ImmutableMap<const LocationContext *, unsigned>
212REGISTER_TRAIT_WITH_PROGRAMSTATE(PendingArrayDestruction,
214
215//===----------------------------------------------------------------------===//
216// Engine construction and deletion.
217//===----------------------------------------------------------------------===//
218
219static const char* TagProviderName = "ExprEngine";
220
222 AnalysisManager &mgr, SetOfConstDecls *VisitedCalleesIn,
223 FunctionSummariesTy *FS, InliningModes HowToInlineIn)
224 : CTU(CTU), IsCTUEnabled(mgr.getAnalyzerOptions().IsNaiveCTUEnabled),
225 AMgr(mgr), AnalysisDeclContexts(mgr.getAnalysisDeclContextManager()),
226 Engine(*this, FS, mgr.getAnalyzerOptions()), G(Engine.getGraph()),
227 StateMgr(getContext(), mgr.getStoreManagerCreator(),
228 mgr.getConstraintManagerCreator(), G.getAllocator(), this),
229 SymMgr(StateMgr.getSymbolManager()), MRMgr(StateMgr.getRegionManager()),
230 svalBuilder(StateMgr.getSValBuilder()), ObjCNoRet(mgr.getASTContext()),
231 BR(mgr, *this), VisitedCallees(VisitedCalleesIn),
232 HowToInline(HowToInlineIn) {
233 unsigned TrimInterval = mgr.options.GraphTrimInterval;
234 if (TrimInterval != 0) {
235 // Enable eager node reclamation when constructing the ExplodedGraph.
236 G.enableNodeReclamation(TrimInterval);
237 }
238}
239
240//===----------------------------------------------------------------------===//
241// Utility methods.
242//===----------------------------------------------------------------------===//
243
245 ProgramStateRef state = StateMgr.getInitialState(InitLoc);
246 const Decl *D = InitLoc->getDecl();
247
248 // Preconditions.
249 // FIXME: It would be nice if we had a more general mechanism to add
250 // such preconditions. Some day.
251 do {
252 if (const auto *FD = dyn_cast<FunctionDecl>(D)) {
253 // Precondition: the first argument of 'main' is an integer guaranteed
254 // to be > 0.
255 const IdentifierInfo *II = FD->getIdentifier();
256 if (!II || !(II->getName() == "main" && FD->getNumParams() > 0))
257 break;
258
259 const ParmVarDecl *PD = FD->getParamDecl(0);
260 QualType T = PD->getType();
261 const auto *BT = dyn_cast<BuiltinType>(T);
262 if (!BT || !BT->isInteger())
263 break;
264
265 const MemRegion *R = state->getRegion(PD, InitLoc);
266 if (!R)
267 break;
268
269 SVal V = state->getSVal(loc::MemRegionVal(R));
270 SVal Constraint_untested = evalBinOp(state, BO_GT, V,
271 svalBuilder.makeZeroVal(T),
272 svalBuilder.getConditionType());
273
274 std::optional<DefinedOrUnknownSVal> Constraint =
275 Constraint_untested.getAs<DefinedOrUnknownSVal>();
276
277 if (!Constraint)
278 break;
279
280 if (ProgramStateRef newState = state->assume(*Constraint, true))
281 state = newState;
282 }
283 break;
284 }
285 while (false);
286
287 if (const auto *MD = dyn_cast<ObjCMethodDecl>(D)) {
288 // Precondition: 'self' is always non-null upon entry to an Objective-C
289 // method.
290 const ImplicitParamDecl *SelfD = MD->getSelfDecl();
291 const MemRegion *R = state->getRegion(SelfD, InitLoc);
292 SVal V = state->getSVal(loc::MemRegionVal(R));
293
294 if (std::optional<Loc> LV = V.getAs<Loc>()) {
295 // Assume that the pointer value in 'self' is non-null.
296 state = state->assume(*LV, true);
297 assert(state && "'self' cannot be null");
298 }
299 }
300
301 if (const auto *MD = dyn_cast<CXXMethodDecl>(D)) {
302 if (MD->isImplicitObjectMemberFunction()) {
303 // Precondition: 'this' is always non-null upon entry to the
304 // top-level function. This is our starting assumption for
305 // analyzing an "open" program.
306 const StackFrameContext *SFC = InitLoc->getStackFrame();
307 if (SFC->getParent() == nullptr) {
308 loc::MemRegionVal L = svalBuilder.getCXXThis(MD, SFC);
309 SVal V = state->getSVal(L);
310 if (std::optional<Loc> LV = V.getAs<Loc>()) {
311 state = state->assume(*LV, true);
312 assert(state && "'this' cannot be null");
313 }
314 }
315 }
316 }
317
318 return state;
319}
320
321ProgramStateRef ExprEngine::createTemporaryRegionIfNeeded(
322 ProgramStateRef State, const LocationContext *LC,
323 const Expr *InitWithAdjustments, const Expr *Result,
324 const SubRegion **OutRegionWithAdjustments) {
325 // FIXME: This function is a hack that works around the quirky AST
326 // we're often having with respect to C++ temporaries. If only we modelled
327 // the actual execution order of statements properly in the CFG,
328 // all the hassle with adjustments would not be necessary,
329 // and perhaps the whole function would be removed.
330 SVal InitValWithAdjustments = State->getSVal(InitWithAdjustments, LC);
331 if (!Result) {
332 // If we don't have an explicit result expression, we're in "if needed"
333 // mode. Only create a region if the current value is a NonLoc.
334 if (!isa<NonLoc>(InitValWithAdjustments)) {
335 if (OutRegionWithAdjustments)
336 *OutRegionWithAdjustments = nullptr;
337 return State;
338 }
339 Result = InitWithAdjustments;
340 } else {
341 // We need to create a region no matter what. Make sure we don't try to
342 // stuff a Loc into a non-pointer temporary region.
343 assert(!isa<Loc>(InitValWithAdjustments) ||
344 Loc::isLocType(Result->getType()) ||
345 Result->getType()->isMemberPointerType());
346 }
347
348 ProgramStateManager &StateMgr = State->getStateManager();
349 MemRegionManager &MRMgr = StateMgr.getRegionManager();
350 StoreManager &StoreMgr = StateMgr.getStoreManager();
351
352 // MaterializeTemporaryExpr may appear out of place, after a few field and
353 // base-class accesses have been made to the object, even though semantically
354 // it is the whole object that gets materialized and lifetime-extended.
355 //
356 // For example:
357 //
358 // `-MaterializeTemporaryExpr
359 // `-MemberExpr
360 // `-CXXTemporaryObjectExpr
361 //
362 // instead of the more natural
363 //
364 // `-MemberExpr
365 // `-MaterializeTemporaryExpr
366 // `-CXXTemporaryObjectExpr
367 //
368 // Use the usual methods for obtaining the expression of the base object,
369 // and record the adjustments that we need to make to obtain the sub-object
370 // that the whole expression 'Ex' refers to. This trick is usual,
371 // in the sense that CodeGen takes a similar route.
372
375
376 const Expr *Init = InitWithAdjustments->skipRValueSubobjectAdjustments(
377 CommaLHSs, Adjustments);
378
379 // Take the region for Init, i.e. for the whole object. If we do not remember
380 // the region in which the object originally was constructed, come up with
381 // a new temporary region out of thin air and copy the contents of the object
382 // (which are currently present in the Environment, because Init is an rvalue)
383 // into that region. This is not correct, but it is better than nothing.
384 const TypedValueRegion *TR = nullptr;
385 if (const auto *MT = dyn_cast<MaterializeTemporaryExpr>(Result)) {
386 if (std::optional<SVal> V = getObjectUnderConstruction(State, MT, LC)) {
387 State = finishObjectConstruction(State, MT, LC);
388 State = State->BindExpr(Result, LC, *V);
389 return State;
390 } else if (const ValueDecl *VD = MT->getExtendingDecl()) {
391 StorageDuration SD = MT->getStorageDuration();
392 assert(SD != SD_FullExpression);
393 // If this object is bound to a reference with static storage duration, we
394 // put it in a different region to prevent "address leakage" warnings.
395 if (SD == SD_Static || SD == SD_Thread) {
397 } else {
398 TR = MRMgr.getCXXLifetimeExtendedObjectRegion(Init, VD, LC);
399 }
400 } else {
401 assert(MT->getStorageDuration() == SD_FullExpression);
402 TR = MRMgr.getCXXTempObjectRegion(Init, LC);
403 }
404 } else {
405 TR = MRMgr.getCXXTempObjectRegion(Init, LC);
406 }
407
408 SVal Reg = loc::MemRegionVal(TR);
409 SVal BaseReg = Reg;
410
411 // Make the necessary adjustments to obtain the sub-object.
412 for (const SubobjectAdjustment &Adj : llvm::reverse(Adjustments)) {
413 switch (Adj.Kind) {
415 Reg = StoreMgr.evalDerivedToBase(Reg, Adj.DerivedToBase.BasePath);
416 break;
418 Reg = StoreMgr.getLValueField(Adj.Field, Reg);
419 break;
421 // FIXME: Unimplemented.
422 State = State->invalidateRegions(Reg, InitWithAdjustments,
423 currBldrCtx->blockCount(), LC, true,
424 nullptr, nullptr, nullptr);
425 return State;
426 }
427 }
428
429 // What remains is to copy the value of the object to the new region.
430 // FIXME: In other words, what we should always do is copy value of the
431 // Init expression (which corresponds to the bigger object) to the whole
432 // temporary region TR. However, this value is often no longer present
433 // in the Environment. If it has disappeared, we instead invalidate TR.
434 // Still, what we can do is assign the value of expression Ex (which
435 // corresponds to the sub-object) to the TR's sub-region Reg. At least,
436 // values inside Reg would be correct.
437 SVal InitVal = State->getSVal(Init, LC);
438 if (InitVal.isUnknown()) {
439 InitVal = getSValBuilder().conjureSymbolVal(Result, LC, Init->getType(),
440 currBldrCtx->blockCount());
441 State = State->bindLoc(BaseReg.castAs<Loc>(), InitVal, LC, false);
442
443 // Then we'd need to take the value that certainly exists and bind it
444 // over.
445 if (InitValWithAdjustments.isUnknown()) {
446 // Try to recover some path sensitivity in case we couldn't
447 // compute the value.
448 InitValWithAdjustments = getSValBuilder().conjureSymbolVal(
449 Result, LC, InitWithAdjustments->getType(),
450 currBldrCtx->blockCount());
451 }
452 State =
453 State->bindLoc(Reg.castAs<Loc>(), InitValWithAdjustments, LC, false);
454 } else {
455 State = State->bindLoc(BaseReg.castAs<Loc>(), InitVal, LC, false);
456 }
457
458 // The result expression would now point to the correct sub-region of the
459 // newly created temporary region. Do this last in order to getSVal of Init
460 // correctly in case (Result == Init).
461 if (Result->isGLValue()) {
462 State = State->BindExpr(Result, LC, Reg);
463 } else {
464 State = State->BindExpr(Result, LC, InitValWithAdjustments);
465 }
466
467 // Notify checkers once for two bindLoc()s.
468 State = processRegionChange(State, TR, LC);
469
470 if (OutRegionWithAdjustments)
471 *OutRegionWithAdjustments = cast<SubRegion>(Reg.getAsRegion());
472 return State;
473}
474
475ProgramStateRef ExprEngine::setIndexOfElementToConstruct(
476 ProgramStateRef State, const CXXConstructExpr *E,
477 const LocationContext *LCtx, unsigned Idx) {
478 auto Key = std::make_pair(E, LCtx->getStackFrame());
479
480 assert(!State->contains<IndexOfElementToConstruct>(Key) || Idx > 0);
481
482 return State->set<IndexOfElementToConstruct>(Key, Idx);
483}
484
485std::optional<unsigned>
487 const LocationContext *LCtx) {
488 const unsigned *V = State->get<PendingInitLoop>({E, LCtx->getStackFrame()});
489 return V ? std::make_optional(*V) : std::nullopt;
490}
491
492ProgramStateRef ExprEngine::removePendingInitLoop(ProgramStateRef State,
493 const CXXConstructExpr *E,
494 const LocationContext *LCtx) {
495 auto Key = std::make_pair(E, LCtx->getStackFrame());
496
497 assert(E && State->contains<PendingInitLoop>(Key));
498 return State->remove<PendingInitLoop>(Key);
499}
500
501ProgramStateRef ExprEngine::setPendingInitLoop(ProgramStateRef State,
502 const CXXConstructExpr *E,
503 const LocationContext *LCtx,
504 unsigned Size) {
505 auto Key = std::make_pair(E, LCtx->getStackFrame());
506
507 assert(!State->contains<PendingInitLoop>(Key) && Size > 0);
508
509 return State->set<PendingInitLoop>(Key, Size);
510}
511
512std::optional<unsigned>
514 const CXXConstructExpr *E,
515 const LocationContext *LCtx) {
516 const unsigned *V =
517 State->get<IndexOfElementToConstruct>({E, LCtx->getStackFrame()});
518 return V ? std::make_optional(*V) : std::nullopt;
519}
520
522ExprEngine::removeIndexOfElementToConstruct(ProgramStateRef State,
523 const CXXConstructExpr *E,
524 const LocationContext *LCtx) {
525 auto Key = std::make_pair(E, LCtx->getStackFrame());
526
527 assert(E && State->contains<IndexOfElementToConstruct>(Key));
528 return State->remove<IndexOfElementToConstruct>(Key);
529}
530
531std::optional<unsigned>
533 const LocationContext *LCtx) {
534 assert(LCtx && "LocationContext shouldn't be null!");
535
536 const unsigned *V =
537 State->get<PendingArrayDestruction>(LCtx->getStackFrame());
538 return V ? std::make_optional(*V) : std::nullopt;
539}
540
541ProgramStateRef ExprEngine::setPendingArrayDestruction(
542 ProgramStateRef State, const LocationContext *LCtx, unsigned Idx) {
543 assert(LCtx && "LocationContext shouldn't be null!");
544
545 auto Key = LCtx->getStackFrame();
546
547 return State->set<PendingArrayDestruction>(Key, Idx);
548}
549
551ExprEngine::removePendingArrayDestruction(ProgramStateRef State,
552 const LocationContext *LCtx) {
553 assert(LCtx && "LocationContext shouldn't be null!");
554
555 auto Key = LCtx->getStackFrame();
556
557 assert(LCtx && State->contains<PendingArrayDestruction>(Key));
558 return State->remove<PendingArrayDestruction>(Key);
559}
560
562ExprEngine::addObjectUnderConstruction(ProgramStateRef State,
563 const ConstructionContextItem &Item,
564 const LocationContext *LC, SVal V) {
565 ConstructedObjectKey Key(Item, LC->getStackFrame());
566
567 const Expr *Init = nullptr;
568
569 if (auto DS = dyn_cast_or_null<DeclStmt>(Item.getStmtOrNull())) {
570 if (auto VD = dyn_cast_or_null<VarDecl>(DS->getSingleDecl()))
571 Init = VD->getInit();
572 }
573
574 if (auto LE = dyn_cast_or_null<LambdaExpr>(Item.getStmtOrNull()))
575 Init = *(LE->capture_init_begin() + Item.getIndex());
576
577 if (!Init && !Item.getStmtOrNull())
579
580 // In an ArrayInitLoopExpr the real initializer is returned by
581 // getSubExpr(). Note that AILEs can be nested in case of
582 // multidimesnional arrays.
583 if (const auto *AILE = dyn_cast_or_null<ArrayInitLoopExpr>(Init))
585
586 // FIXME: Currently the state might already contain the marker due to
587 // incorrect handling of temporaries bound to default parameters.
588 // The state will already contain the marker if we construct elements
589 // in an array, as we visit the same statement multiple times before
590 // the array declaration. The marker is removed when we exit the
591 // constructor call.
592 assert((!State->get<ObjectsUnderConstruction>(Key) ||
593 Key.getItem().getKind() ==
595 State->contains<IndexOfElementToConstruct>(
596 {dyn_cast_or_null<CXXConstructExpr>(Init), LC})) &&
597 "The object is already marked as `UnderConstruction`, when it's not "
598 "supposed to!");
599 return State->set<ObjectsUnderConstruction>(Key, V);
600}
601
602std::optional<SVal>
604 const ConstructionContextItem &Item,
605 const LocationContext *LC) {
606 ConstructedObjectKey Key(Item, LC->getStackFrame());
607 const SVal *V = State->get<ObjectsUnderConstruction>(Key);
608 return V ? std::make_optional(*V) : std::nullopt;
609}
610
612ExprEngine::finishObjectConstruction(ProgramStateRef State,
613 const ConstructionContextItem &Item,
614 const LocationContext *LC) {
615 ConstructedObjectKey Key(Item, LC->getStackFrame());
616 assert(State->contains<ObjectsUnderConstruction>(Key));
617 return State->remove<ObjectsUnderConstruction>(Key);
618}
619
620ProgramStateRef ExprEngine::elideDestructor(ProgramStateRef State,
621 const CXXBindTemporaryExpr *BTE,
622 const LocationContext *LC) {
623 ConstructedObjectKey Key({BTE, /*IsElided=*/true}, LC);
624 // FIXME: Currently the state might already contain the marker due to
625 // incorrect handling of temporaries bound to default parameters.
626 return State->set<ObjectsUnderConstruction>(Key, UnknownVal());
627}
628
630ExprEngine::cleanupElidedDestructor(ProgramStateRef State,
631 const CXXBindTemporaryExpr *BTE,
632 const LocationContext *LC) {
633 ConstructedObjectKey Key({BTE, /*IsElided=*/true}, LC);
634 assert(State->contains<ObjectsUnderConstruction>(Key));
635 return State->remove<ObjectsUnderConstruction>(Key);
636}
637
638bool ExprEngine::isDestructorElided(ProgramStateRef State,
639 const CXXBindTemporaryExpr *BTE,
640 const LocationContext *LC) {
641 ConstructedObjectKey Key({BTE, /*IsElided=*/true}, LC);
642 return State->contains<ObjectsUnderConstruction>(Key);
643}
644
645bool ExprEngine::areAllObjectsFullyConstructed(ProgramStateRef State,
646 const LocationContext *FromLC,
647 const LocationContext *ToLC) {
648 const LocationContext *LC = FromLC;
649 while (LC != ToLC) {
650 assert(LC && "ToLC must be a parent of FromLC!");
651 for (auto I : State->get<ObjectsUnderConstruction>())
652 if (I.first.getLocationContext() == LC)
653 return false;
654
655 LC = LC->getParent();
656 }
657 return true;
658}
659
660
661//===----------------------------------------------------------------------===//
662// Top-level transfer function logic (Dispatcher).
663//===----------------------------------------------------------------------===//
664
665/// evalAssume - Called by ConstraintManager. Used to call checker-specific
666/// logic for handling assumptions on symbolic values.
668 SVal cond, bool assumption) {
669 return getCheckerManager().runCheckersForEvalAssume(state, cond, assumption);
670}
671
674 const InvalidatedSymbols *invalidated,
677 const LocationContext *LCtx,
678 const CallEvent *Call) {
679 return getCheckerManager().runCheckersForRegionChanges(state, invalidated,
680 Explicits, Regions,
681 LCtx, Call);
682}
683
684static void
686 const char *NL, const LocationContext *LCtx,
687 unsigned int Space = 0, bool IsDot = false) {
688 PrintingPolicy PP =
690
691 ++Space;
692 bool HasItem = false;
693
694 // Store the last key.
695 const ConstructedObjectKey *LastKey = nullptr;
696 for (const auto &I : State->get<ObjectsUnderConstruction>()) {
697 const ConstructedObjectKey &Key = I.first;
698 if (Key.getLocationContext() != LCtx)
699 continue;
700
701 if (!HasItem) {
702 Out << '[' << NL;
703 HasItem = true;
704 }
705
706 LastKey = &Key;
707 }
708
709 for (const auto &I : State->get<ObjectsUnderConstruction>()) {
710 const ConstructedObjectKey &Key = I.first;
711 SVal Value = I.second;
712 if (Key.getLocationContext() != LCtx)
713 continue;
714
715 Indent(Out, Space, IsDot) << "{ ";
716 Key.printJson(Out, nullptr, PP);
717 Out << ", \"value\": \"" << Value << "\" }";
718
719 if (&Key != LastKey)
720 Out << ',';
721 Out << NL;
722 }
723
724 if (HasItem)
725 Indent(Out, --Space, IsDot) << ']'; // End of "location_context".
726 else {
727 Out << "null ";
728 }
729}
730
732 raw_ostream &Out, ProgramStateRef State, const char *NL,
733 const LocationContext *LCtx, unsigned int Space = 0, bool IsDot = false) {
734 using KeyT = std::pair<const Expr *, const LocationContext *>;
735
736 const auto &Context = LCtx->getAnalysisDeclContext()->getASTContext();
737 PrintingPolicy PP = Context.getPrintingPolicy();
738
739 ++Space;
740 bool HasItem = false;
741
742 // Store the last key.
743 KeyT LastKey;
744 for (const auto &I : State->get<IndexOfElementToConstruct>()) {
745 const KeyT &Key = I.first;
746 if (Key.second != LCtx)
747 continue;
748
749 if (!HasItem) {
750 Out << '[' << NL;
751 HasItem = true;
752 }
753
754 LastKey = Key;
755 }
756
757 for (const auto &I : State->get<IndexOfElementToConstruct>()) {
758 const KeyT &Key = I.first;
759 unsigned Value = I.second;
760 if (Key.second != LCtx)
761 continue;
762
763 Indent(Out, Space, IsDot) << "{ ";
764
765 // Expr
766 const Expr *E = Key.first;
767 Out << "\"stmt_id\": " << E->getID(Context);
768
769 // Kind
770 Out << ", \"kind\": null";
771
772 // Pretty-print
773 Out << ", \"pretty\": ";
774 Out << "\"" << E->getStmtClassName() << ' '
775 << E->getSourceRange().printToString(Context.getSourceManager()) << " '"
777 Out << "'\"";
778
779 Out << ", \"value\": \"Current index: " << Value - 1 << "\" }";
780
781 if (Key != LastKey)
782 Out << ',';
783 Out << NL;
784 }
785
786 if (HasItem)
787 Indent(Out, --Space, IsDot) << ']'; // End of "location_context".
788 else {
789 Out << "null ";
790 }
791}
792
793static void printPendingInitLoopJson(raw_ostream &Out, ProgramStateRef State,
794 const char *NL,
795 const LocationContext *LCtx,
796 unsigned int Space = 0,
797 bool IsDot = false) {
798 using KeyT = std::pair<const CXXConstructExpr *, const LocationContext *>;
799
800 const auto &Context = LCtx->getAnalysisDeclContext()->getASTContext();
801 PrintingPolicy PP = Context.getPrintingPolicy();
802
803 ++Space;
804 bool HasItem = false;
805
806 // Store the last key.
807 KeyT LastKey;
808 for (const auto &I : State->get<PendingInitLoop>()) {
809 const KeyT &Key = I.first;
810 if (Key.second != LCtx)
811 continue;
812
813 if (!HasItem) {
814 Out << '[' << NL;
815 HasItem = true;
816 }
817
818 LastKey = Key;
819 }
820
821 for (const auto &I : State->get<PendingInitLoop>()) {
822 const KeyT &Key = I.first;
823 unsigned Value = I.second;
824 if (Key.second != LCtx)
825 continue;
826
827 Indent(Out, Space, IsDot) << "{ ";
828
829 const CXXConstructExpr *E = Key.first;
830 Out << "\"stmt_id\": " << E->getID(Context);
831
832 Out << ", \"kind\": null";
833 Out << ", \"pretty\": ";
834 Out << '\"' << E->getStmtClassName() << ' '
835 << E->getSourceRange().printToString(Context.getSourceManager()) << " '"
837 Out << "'\"";
838
839 Out << ", \"value\": \"Flattened size: " << Value << "\"}";
840
841 if (Key != LastKey)
842 Out << ',';
843 Out << NL;
844 }
845
846 if (HasItem)
847 Indent(Out, --Space, IsDot) << ']'; // End of "location_context".
848 else {
849 Out << "null ";
850 }
851}
852
853static void
855 const char *NL, const LocationContext *LCtx,
856 unsigned int Space = 0, bool IsDot = false) {
857 using KeyT = const LocationContext *;
858
859 ++Space;
860 bool HasItem = false;
861
862 // Store the last key.
863 KeyT LastKey = nullptr;
864 for (const auto &I : State->get<PendingArrayDestruction>()) {
865 const KeyT &Key = I.first;
866 if (Key != LCtx)
867 continue;
868
869 if (!HasItem) {
870 Out << '[' << NL;
871 HasItem = true;
872 }
873
874 LastKey = Key;
875 }
876
877 for (const auto &I : State->get<PendingArrayDestruction>()) {
878 const KeyT &Key = I.first;
879 if (Key != LCtx)
880 continue;
881
882 Indent(Out, Space, IsDot) << "{ ";
883
884 Out << "\"stmt_id\": null";
885 Out << ", \"kind\": null";
886 Out << ", \"pretty\": \"Current index: \"";
887 Out << ", \"value\": \"" << I.second << "\" }";
888
889 if (Key != LastKey)
890 Out << ',';
891 Out << NL;
892 }
893
894 if (HasItem)
895 Indent(Out, --Space, IsDot) << ']'; // End of "location_context".
896 else {
897 Out << "null ";
898 }
899}
900
901/// A helper function to generalize program state trait printing.
902/// The function invokes Printer as 'Printer(Out, State, NL, LC, Space, IsDot,
903/// std::forward<Args>(args)...)'. \n One possible type for Printer is
904/// 'void()(raw_ostream &, ProgramStateRef, const char *, const LocationContext
905/// *, unsigned int, bool, ...)' \n \param Trait The state trait to be printed.
906/// \param Printer A void function that prints Trait.
907/// \param Args An additional parameter pack that is passed to Print upon
908/// invocation.
909template <typename Trait, typename Printer, typename... Args>
911 raw_ostream &Out, ProgramStateRef State, const LocationContext *LCtx,
912 const char *NL, unsigned int Space, bool IsDot,
913 const char *jsonPropertyName, Printer printer, Args &&...args) {
914
915 using RequiredType =
916 void (*)(raw_ostream &, ProgramStateRef, const char *,
917 const LocationContext *, unsigned int, bool, Args &&...);
918
919 // Try to do as much compile time checking as possible.
920 // FIXME: check for invocable instead of function?
921 static_assert(std::is_function_v<std::remove_pointer_t<Printer>>,
922 "Printer is not a function!");
923 static_assert(std::is_convertible_v<Printer, RequiredType>,
924 "Printer doesn't have the required type!");
925
926 if (LCtx && !State->get<Trait>().isEmpty()) {
927 Indent(Out, Space, IsDot) << '\"' << jsonPropertyName << "\": ";
928 ++Space;
929 Out << '[' << NL;
930 LCtx->printJson(Out, NL, Space, IsDot, [&](const LocationContext *LC) {
931 printer(Out, State, NL, LC, Space, IsDot, std::forward<Args>(args)...);
932 });
933
934 --Space;
935 Indent(Out, Space, IsDot) << "]," << NL; // End of "jsonPropertyName".
936 }
937}
938
939void ExprEngine::printJson(raw_ostream &Out, ProgramStateRef State,
940 const LocationContext *LCtx, const char *NL,
941 unsigned int Space, bool IsDot) const {
942
943 printStateTraitWithLocationContextJson<ObjectsUnderConstruction>(
944 Out, State, LCtx, NL, Space, IsDot, "constructing_objects",
946 printStateTraitWithLocationContextJson<IndexOfElementToConstruct>(
947 Out, State, LCtx, NL, Space, IsDot, "index_of_element",
949 printStateTraitWithLocationContextJson<PendingInitLoop>(
950 Out, State, LCtx, NL, Space, IsDot, "pending_init_loops",
952 printStateTraitWithLocationContextJson<PendingArrayDestruction>(
953 Out, State, LCtx, NL, Space, IsDot, "pending_destructors",
955
956 getCheckerManager().runCheckersForPrintStateJson(Out, State, NL, Space,
957 IsDot);
958}
959
961 // This prints the name of the top-level function if we crash.
964}
965
967 unsigned StmtIdx, NodeBuilderContext *Ctx) {
969 currStmtIdx = StmtIdx;
970 currBldrCtx = Ctx;
971
972 switch (E.getKind()) {
976 ProcessStmt(E.castAs<CFGStmt>().getStmt(), Pred);
977 return;
979 ProcessInitializer(E.castAs<CFGInitializer>(), Pred);
980 return;
983 Pred);
984 return;
990 ProcessImplicitDtor(E.castAs<CFGImplicitDtor>(), Pred);
991 return;
993 ProcessLoopExit(E.castAs<CFGLoopExit>().getLoopStmt(), Pred);
994 return;
999 return;
1000 }
1001}
1002
1004 const Stmt *S,
1005 const ExplodedNode *Pred,
1006 const LocationContext *LC) {
1007 // Are we never purging state values?
1008 if (AMgr.options.AnalysisPurgeOpt == PurgeNone)
1009 return false;
1010
1011 // Is this the beginning of a basic block?
1012 if (Pred->getLocation().getAs<BlockEntrance>())
1013 return true;
1014
1015 // Is this on a non-expression?
1016 if (!isa<Expr>(S))
1017 return true;
1018
1019 // Run before processing a call.
1020 if (CallEvent::isCallStmt(S))
1021 return true;
1022
1023 // Is this an expression that is consumed by another expression? If so,
1024 // postpone cleaning out the state.
1026 return !PM.isConsumedExpr(cast<Expr>(S));
1027}
1028
1030 const Stmt *ReferenceStmt,
1031 const LocationContext *LC,
1032 const Stmt *DiagnosticStmt,
1035 ReferenceStmt == nullptr || isa<ReturnStmt>(ReferenceStmt))
1036 && "PostStmt is not generally supported by the SymbolReaper yet");
1037 assert(LC && "Must pass the current (or expiring) LocationContext");
1038
1039 if (!DiagnosticStmt) {
1040 DiagnosticStmt = ReferenceStmt;
1041 assert(DiagnosticStmt && "Required for clearing a LocationContext");
1042 }
1043
1044 NumRemoveDeadBindings++;
1045 ProgramStateRef CleanedState = Pred->getState();
1046
1047 // LC is the location context being destroyed, but SymbolReaper wants a
1048 // location context that is still live. (If this is the top-level stack
1049 // frame, this will be null.)
1050 if (!ReferenceStmt) {
1052 "Use PostStmtPurgeDeadSymbolsKind for clearing a LocationContext");
1053 LC = LC->getParent();
1054 }
1055
1056 const StackFrameContext *SFC = LC ? LC->getStackFrame() : nullptr;
1057 SymbolReaper SymReaper(SFC, ReferenceStmt, SymMgr, getStoreManager());
1058
1059 for (auto I : CleanedState->get<ObjectsUnderConstruction>()) {
1060 if (SymbolRef Sym = I.second.getAsSymbol())
1061 SymReaper.markLive(Sym);
1062 if (const MemRegion *MR = I.second.getAsRegion())
1063 SymReaper.markLive(MR);
1064 }
1065
1066 getCheckerManager().runCheckersForLiveSymbols(CleanedState, SymReaper);
1067
1068 // Create a state in which dead bindings are removed from the environment
1069 // and the store. TODO: The function should just return new env and store,
1070 // not a new state.
1071 CleanedState = StateMgr.removeDeadBindingsFromEnvironmentAndStore(
1072 CleanedState, SFC, SymReaper);
1073
1074 // Process any special transfer function for dead symbols.
1075 // Call checkers with the non-cleaned state so that they could query the
1076 // values of the soon to be dead symbols.
1077 ExplodedNodeSet CheckedSet;
1078 getCheckerManager().runCheckersForDeadSymbols(CheckedSet, Pred, SymReaper,
1079 DiagnosticStmt, *this, K);
1080
1081 // For each node in CheckedSet, generate CleanedNodes that have the
1082 // environment, the store, and the constraints cleaned up but have the
1083 // user-supplied states as the predecessors.
1084 StmtNodeBuilder Bldr(CheckedSet, Out, *currBldrCtx);
1085 for (const auto I : CheckedSet) {
1086 ProgramStateRef CheckerState = I->getState();
1087
1088 // The constraint manager has not been cleaned up yet, so clean up now.
1089 CheckerState =
1090 getConstraintManager().removeDeadBindings(CheckerState, SymReaper);
1091
1092 assert(StateMgr.haveEqualEnvironments(CheckerState, Pred->getState()) &&
1093 "Checkers are not allowed to modify the Environment as a part of "
1094 "checkDeadSymbols processing.");
1095 assert(StateMgr.haveEqualStores(CheckerState, Pred->getState()) &&
1096 "Checkers are not allowed to modify the Store as a part of "
1097 "checkDeadSymbols processing.");
1098
1099 // Create a state based on CleanedState with CheckerState GDM and
1100 // generate a transition to that state.
1101 ProgramStateRef CleanedCheckerSt =
1102 StateMgr.getPersistentStateWithGDM(CleanedState, CheckerState);
1103 Bldr.generateNode(DiagnosticStmt, I, CleanedCheckerSt, cleanupNodeTag(), K);
1104 }
1105}
1106
1108 static SimpleProgramPointTag cleanupTag(TagProviderName, "Clean Node");
1109 return &cleanupTag;
1110}
1111
1112void ExprEngine::ProcessStmt(const Stmt *currStmt, ExplodedNode *Pred) {
1113 // Reclaim any unnecessary nodes in the ExplodedGraph.
1115
1116 PrettyStackTraceLoc CrashInfo(getContext().getSourceManager(),
1117 currStmt->getBeginLoc(),
1118 "Error evaluating statement");
1119
1120 // Remove dead bindings and symbols.
1121 ExplodedNodeSet CleanedStates;
1122 if (shouldRemoveDeadBindings(AMgr, currStmt, Pred,
1123 Pred->getLocationContext())) {
1124 removeDead(Pred, CleanedStates, currStmt,
1125 Pred->getLocationContext());
1126 } else
1127 CleanedStates.Add(Pred);
1128
1129 // Visit the statement.
1130 ExplodedNodeSet Dst;
1131 for (const auto I : CleanedStates) {
1132 ExplodedNodeSet DstI;
1133 // Visit the statement.
1134 Visit(currStmt, I, DstI);
1135 Dst.insert(DstI);
1136 }
1137
1138 // Enqueue the new nodes onto the work list.
1139 Engine.enqueue(Dst, currBldrCtx->getBlock(), currStmtIdx);
1140}
1141
1143 PrettyStackTraceLoc CrashInfo(getContext().getSourceManager(),
1144 S->getBeginLoc(),
1145 "Error evaluating end of the loop");
1146 ExplodedNodeSet Dst;
1147 Dst.Add(Pred);
1148 NodeBuilder Bldr(Pred, Dst, *currBldrCtx);
1149 ProgramStateRef NewState = Pred->getState();
1150
1151 if(AMgr.options.ShouldUnrollLoops)
1152 NewState = processLoopEnd(S, NewState);
1153
1154 LoopExit PP(S, Pred->getLocationContext());
1155 Bldr.generateNode(PP, NewState, Pred);
1156 // Enqueue the new nodes onto the work list.
1157 Engine.enqueue(Dst, currBldrCtx->getBlock(), currStmtIdx);
1158}
1159
1161 ExplodedNode *Pred) {
1162 const CXXCtorInitializer *BMI = CFGInit.getInitializer();
1163 const Expr *Init = BMI->getInit()->IgnoreImplicit();
1164 const LocationContext *LC = Pred->getLocationContext();
1165
1166 PrettyStackTraceLoc CrashInfo(getContext().getSourceManager(),
1167 BMI->getSourceLocation(),
1168 "Error evaluating initializer");
1169
1170 // We don't clean up dead bindings here.
1171 const auto *stackFrame = cast<StackFrameContext>(Pred->getLocationContext());
1172 const auto *decl = cast<CXXConstructorDecl>(stackFrame->getDecl());
1173
1174 ProgramStateRef State = Pred->getState();
1175 SVal thisVal = State->getSVal(svalBuilder.getCXXThis(decl, stackFrame));
1176
1177 ExplodedNodeSet Tmp;
1178 SVal FieldLoc;
1179
1180 // Evaluate the initializer, if necessary
1181 if (BMI->isAnyMemberInitializer()) {
1182 // Constructors build the object directly in the field,
1183 // but non-objects must be copied in from the initializer.
1184 if (getObjectUnderConstruction(State, BMI, LC)) {
1185 // The field was directly constructed, so there is no need to bind.
1186 // But we still need to stop tracking the object under construction.
1187 State = finishObjectConstruction(State, BMI, LC);
1188 NodeBuilder Bldr(Pred, Tmp, *currBldrCtx);
1189 PostStore PS(Init, LC, /*Loc*/ nullptr, /*tag*/ nullptr);
1190 Bldr.generateNode(PS, State, Pred);
1191 } else {
1192 const ValueDecl *Field;
1193 if (BMI->isIndirectMemberInitializer()) {
1194 Field = BMI->getIndirectMember();
1195 FieldLoc = State->getLValue(BMI->getIndirectMember(), thisVal);
1196 } else {
1197 Field = BMI->getMember();
1198 FieldLoc = State->getLValue(BMI->getMember(), thisVal);
1199 }
1200
1201 SVal InitVal;
1202 if (Init->getType()->isArrayType()) {
1203 // Handle arrays of trivial type. We can represent this with a
1204 // primitive load/copy from the base array region.
1205 const ArraySubscriptExpr *ASE;
1206 while ((ASE = dyn_cast<ArraySubscriptExpr>(Init)))
1207 Init = ASE->getBase()->IgnoreImplicit();
1208
1209 InitVal = State->getSVal(Init, stackFrame);
1210
1211 // If we fail to get the value for some reason, use a symbolic value.
1212 if (InitVal.isUnknownOrUndef()) {
1213 SValBuilder &SVB = getSValBuilder();
1214 InitVal = SVB.conjureSymbolVal(BMI->getInit(), stackFrame,
1215 Field->getType(),
1216 currBldrCtx->blockCount());
1217 }
1218 } else {
1219 InitVal = State->getSVal(BMI->getInit(), stackFrame);
1220 }
1221
1222 PostInitializer PP(BMI, FieldLoc.getAsRegion(), stackFrame);
1223 evalBind(Tmp, Init, Pred, FieldLoc, InitVal, /*isInit=*/true, &PP);
1224 }
1225 } else if (BMI->isBaseInitializer() && isa<InitListExpr>(Init)) {
1226 // When the base class is initialized with an initialization list and the
1227 // base class does not have a ctor, there will not be a CXXConstructExpr to
1228 // initialize the base region. Hence, we need to make the bind for it.
1230 thisVal, QualType(BMI->getBaseClass(), 0), BMI->isBaseVirtual());
1231 SVal InitVal = State->getSVal(Init, stackFrame);
1232 evalBind(Tmp, Init, Pred, BaseLoc, InitVal, /*isInit=*/true);
1233 } else {
1234 assert(BMI->isBaseInitializer() || BMI->isDelegatingInitializer());
1235 Tmp.insert(Pred);
1236 // We already did all the work when visiting the CXXConstructExpr.
1237 }
1238
1239 // Construct PostInitializer nodes whether the state changed or not,
1240 // so that the diagnostics don't get confused.
1241 PostInitializer PP(BMI, FieldLoc.getAsRegion(), stackFrame);
1242 ExplodedNodeSet Dst;
1243 NodeBuilder Bldr(Tmp, Dst, *currBldrCtx);
1244 for (const auto I : Tmp) {
1245 ProgramStateRef State = I->getState();
1246 Bldr.generateNode(PP, State, I);
1247 }
1248
1249 // Enqueue the new nodes onto the work list.
1250 Engine.enqueue(Dst, currBldrCtx->getBlock(), currStmtIdx);
1251}
1252
1253std::pair<ProgramStateRef, uint64_t>
1254ExprEngine::prepareStateForArrayDestruction(const ProgramStateRef State,
1255 const MemRegion *Region,
1256 const QualType &ElementTy,
1257 const LocationContext *LCtx,
1258 SVal *ElementCountVal) {
1259 assert(Region != nullptr && "Not-null region expected");
1260
1261 QualType Ty = ElementTy.getDesugaredType(getContext());
1262 while (const auto *NTy = dyn_cast<ArrayType>(Ty))
1263 Ty = NTy->getElementType().getDesugaredType(getContext());
1264
1265 auto ElementCount = getDynamicElementCount(State, Region, svalBuilder, Ty);
1266
1267 if (ElementCountVal)
1268 *ElementCountVal = ElementCount;
1269
1270 // Note: the destructors are called in reverse order.
1271 unsigned Idx = 0;
1272 if (auto OptionalIdx = getPendingArrayDestruction(State, LCtx)) {
1273 Idx = *OptionalIdx;
1274 } else {
1275 // The element count is either unknown, or an SVal that's not an integer.
1276 if (!ElementCount.isConstant())
1277 return {State, 0};
1278
1279 Idx = ElementCount.getAsInteger()->getLimitedValue();
1280 }
1281
1282 if (Idx == 0)
1283 return {State, 0};
1284
1285 --Idx;
1286
1287 return {setPendingArrayDestruction(State, LCtx, Idx), Idx};
1288}
1289
1291 ExplodedNode *Pred) {
1292 ExplodedNodeSet Dst;
1293 switch (D.getKind()) {
1295 ProcessAutomaticObjDtor(D.castAs<CFGAutomaticObjDtor>(), Pred, Dst);
1296 break;
1298 ProcessBaseDtor(D.castAs<CFGBaseDtor>(), Pred, Dst);
1299 break;
1301 ProcessMemberDtor(D.castAs<CFGMemberDtor>(), Pred, Dst);
1302 break;
1304 ProcessTemporaryDtor(D.castAs<CFGTemporaryDtor>(), Pred, Dst);
1305 break;
1307 ProcessDeleteDtor(D.castAs<CFGDeleteDtor>(), Pred, Dst);
1308 break;
1309 default:
1310 llvm_unreachable("Unexpected dtor kind.");
1311 }
1312
1313 // Enqueue the new nodes onto the work list.
1314 Engine.enqueue(Dst, currBldrCtx->getBlock(), currStmtIdx);
1315}
1316
1318 ExplodedNode *Pred) {
1319 ExplodedNodeSet Dst;
1321 AnalyzerOptions &Opts = AMgr.options;
1322 // TODO: We're not evaluating allocators for all cases just yet as
1323 // we're not handling the return value correctly, which causes false
1324 // positives when the alpha.cplusplus.NewDeleteLeaks check is on.
1325 if (Opts.MayInlineCXXAllocator)
1326 VisitCXXNewAllocatorCall(NE, Pred, Dst);
1327 else {
1328 NodeBuilder Bldr(Pred, Dst, *currBldrCtx);
1329 const LocationContext *LCtx = Pred->getLocationContext();
1330 PostImplicitCall PP(NE->getOperatorNew(), NE->getBeginLoc(), LCtx,
1332 Bldr.generateNode(PP, Pred->getState(), Pred);
1333 }
1334 Engine.enqueue(Dst, currBldrCtx->getBlock(), currStmtIdx);
1335}
1336
1338 ExplodedNode *Pred,
1339 ExplodedNodeSet &Dst) {
1340 const auto *DtorDecl = Dtor.getDestructorDecl(getContext());
1341 const VarDecl *varDecl = Dtor.getVarDecl();
1342 QualType varType = varDecl->getType();
1343
1344 ProgramStateRef state = Pred->getState();
1345 const LocationContext *LCtx = Pred->getLocationContext();
1346
1347 SVal dest = state->getLValue(varDecl, LCtx);
1348 const MemRegion *Region = dest.castAs<loc::MemRegionVal>().getRegion();
1349
1350 if (varType->isReferenceType()) {
1351 const MemRegion *ValueRegion = state->getSVal(Region).getAsRegion();
1352 if (!ValueRegion) {
1353 // FIXME: This should not happen. The language guarantees a presence
1354 // of a valid initializer here, so the reference shall not be undefined.
1355 // It seems that we're calling destructors over variables that
1356 // were not initialized yet.
1357 return;
1358 }
1359 Region = ValueRegion->getBaseRegion();
1360 varType = cast<TypedValueRegion>(Region)->getValueType();
1361 }
1362
1363 unsigned Idx = 0;
1364 if (isa<ArrayType>(varType)) {
1365 SVal ElementCount;
1366 std::tie(state, Idx) = prepareStateForArrayDestruction(
1367 state, Region, varType, LCtx, &ElementCount);
1368
1369 if (ElementCount.isConstant()) {
1370 uint64_t ArrayLength = ElementCount.getAsInteger()->getLimitedValue();
1371 assert(ArrayLength &&
1372 "An automatic dtor for a 0 length array shouldn't be triggered!");
1373
1374 // Still handle this case if we don't have assertions enabled.
1375 if (!ArrayLength) {
1376 static SimpleProgramPointTag PT(
1377 "ExprEngine", "Skipping automatic 0 length array destruction, "
1378 "which shouldn't be in the CFG.");
1379 PostImplicitCall PP(DtorDecl, varDecl->getLocation(), LCtx,
1380 getCFGElementRef(), &PT);
1381 NodeBuilder Bldr(Pred, Dst, *currBldrCtx);
1382 Bldr.generateSink(PP, Pred->getState(), Pred);
1383 return;
1384 }
1385 }
1386 }
1387
1388 EvalCallOptions CallOpts;
1389 Region = makeElementRegion(state, loc::MemRegionVal(Region), varType,
1390 CallOpts.IsArrayCtorOrDtor, Idx)
1391 .getAsRegion();
1392
1393 NodeBuilder Bldr(Pred, Dst, getBuilderContext());
1394
1395 static SimpleProgramPointTag PT("ExprEngine",
1396 "Prepare for object destruction");
1397 PreImplicitCall PP(DtorDecl, varDecl->getLocation(), LCtx, getCFGElementRef(),
1398 &PT);
1399 Pred = Bldr.generateNode(PP, state, Pred);
1400
1401 if (!Pred)
1402 return;
1403 Bldr.takeNodes(Pred);
1404
1405 VisitCXXDestructor(varType, Region, Dtor.getTriggerStmt(),
1406 /*IsBase=*/false, Pred, Dst, CallOpts);
1407}
1408
1410 ExplodedNode *Pred,
1411 ExplodedNodeSet &Dst) {
1412 ProgramStateRef State = Pred->getState();
1413 const LocationContext *LCtx = Pred->getLocationContext();
1414 const CXXDeleteExpr *DE = Dtor.getDeleteExpr();
1415 const Stmt *Arg = DE->getArgument();
1416 QualType DTy = DE->getDestroyedType();
1417 SVal ArgVal = State->getSVal(Arg, LCtx);
1418
1419 // If the argument to delete is known to be a null value,
1420 // don't run destructor.
1421 if (State->isNull(ArgVal).isConstrainedTrue()) {
1423 const CXXRecordDecl *RD = BTy->getAsCXXRecordDecl();
1424 const CXXDestructorDecl *Dtor = RD->getDestructor();
1425
1426 PostImplicitCall PP(Dtor, DE->getBeginLoc(), LCtx, getCFGElementRef());
1427 NodeBuilder Bldr(Pred, Dst, *currBldrCtx);
1428 Bldr.generateNode(PP, Pred->getState(), Pred);
1429 return;
1430 }
1431
1432 auto getDtorDecl = [](const QualType &DTy) {
1433 const CXXRecordDecl *RD = DTy->getAsCXXRecordDecl();
1434 return RD->getDestructor();
1435 };
1436
1437 unsigned Idx = 0;
1438 EvalCallOptions CallOpts;
1439 const MemRegion *ArgR = ArgVal.getAsRegion();
1440
1441 if (DE->isArrayForm()) {
1442 CallOpts.IsArrayCtorOrDtor = true;
1443 // Yes, it may even be a multi-dimensional array.
1444 while (const auto *AT = getContext().getAsArrayType(DTy))
1445 DTy = AT->getElementType();
1446
1447 if (ArgR) {
1448 SVal ElementCount;
1449 std::tie(State, Idx) = prepareStateForArrayDestruction(
1450 State, ArgR, DTy, LCtx, &ElementCount);
1451
1452 // If we're about to destruct a 0 length array, don't run any of the
1453 // destructors.
1454 if (ElementCount.isConstant() &&
1455 ElementCount.getAsInteger()->getLimitedValue() == 0) {
1456
1457 static SimpleProgramPointTag PT(
1458 "ExprEngine", "Skipping 0 length array delete destruction");
1459 PostImplicitCall PP(getDtorDecl(DTy), DE->getBeginLoc(), LCtx,
1460 getCFGElementRef(), &PT);
1461 NodeBuilder Bldr(Pred, Dst, *currBldrCtx);
1462 Bldr.generateNode(PP, Pred->getState(), Pred);
1463 return;
1464 }
1465
1466 ArgR = State->getLValue(DTy, svalBuilder.makeArrayIndex(Idx), ArgVal)
1467 .getAsRegion();
1468 }
1469 }
1470
1471 NodeBuilder Bldr(Pred, Dst, getBuilderContext());
1472 static SimpleProgramPointTag PT("ExprEngine",
1473 "Prepare for object destruction");
1474 PreImplicitCall PP(getDtorDecl(DTy), DE->getBeginLoc(), LCtx,
1475 getCFGElementRef(), &PT);
1476 Pred = Bldr.generateNode(PP, State, Pred);
1477
1478 if (!Pred)
1479 return;
1480 Bldr.takeNodes(Pred);
1481
1482 VisitCXXDestructor(DTy, ArgR, DE, /*IsBase=*/false, Pred, Dst, CallOpts);
1483}
1484
1486 ExplodedNode *Pred, ExplodedNodeSet &Dst) {
1487 const LocationContext *LCtx = Pred->getLocationContext();
1488
1489 const auto *CurDtor = cast<CXXDestructorDecl>(LCtx->getDecl());
1490 Loc ThisPtr = getSValBuilder().getCXXThis(CurDtor,
1491 LCtx->getStackFrame());
1492 SVal ThisVal = Pred->getState()->getSVal(ThisPtr);
1493
1494 // Create the base object region.
1495 const CXXBaseSpecifier *Base = D.getBaseSpecifier();
1496 QualType BaseTy = Base->getType();
1497 SVal BaseVal = getStoreManager().evalDerivedToBase(ThisVal, BaseTy,
1498 Base->isVirtual());
1499
1500 EvalCallOptions CallOpts;
1501 VisitCXXDestructor(BaseTy, BaseVal.getAsRegion(), CurDtor->getBody(),
1502 /*IsBase=*/true, Pred, Dst, CallOpts);
1503}
1504
1506 ExplodedNode *Pred, ExplodedNodeSet &Dst) {
1507 const auto *DtorDecl = D.getDestructorDecl(getContext());
1508 const FieldDecl *Member = D.getFieldDecl();
1509 QualType T = Member->getType();
1510 ProgramStateRef State = Pred->getState();
1511 const LocationContext *LCtx = Pred->getLocationContext();
1512
1513 const auto *CurDtor = cast<CXXDestructorDecl>(LCtx->getDecl());
1514 Loc ThisStorageLoc =
1515 getSValBuilder().getCXXThis(CurDtor, LCtx->getStackFrame());
1516 Loc ThisLoc = State->getSVal(ThisStorageLoc).castAs<Loc>();
1517 SVal FieldVal = State->getLValue(Member, ThisLoc);
1518
1519 unsigned Idx = 0;
1520 if (isa<ArrayType>(T)) {
1521 SVal ElementCount;
1522 std::tie(State, Idx) = prepareStateForArrayDestruction(
1523 State, FieldVal.getAsRegion(), T, LCtx, &ElementCount);
1524
1525 if (ElementCount.isConstant()) {
1526 uint64_t ArrayLength = ElementCount.getAsInteger()->getLimitedValue();
1527 assert(ArrayLength &&
1528 "A member dtor for a 0 length array shouldn't be triggered!");
1529
1530 // Still handle this case if we don't have assertions enabled.
1531 if (!ArrayLength) {
1532 static SimpleProgramPointTag PT(
1533 "ExprEngine", "Skipping member 0 length array destruction, which "
1534 "shouldn't be in the CFG.");
1535 PostImplicitCall PP(DtorDecl, Member->getLocation(), LCtx,
1536 getCFGElementRef(), &PT);
1537 NodeBuilder Bldr(Pred, Dst, *currBldrCtx);
1538 Bldr.generateSink(PP, Pred->getState(), Pred);
1539 return;
1540 }
1541 }
1542 }
1543
1544 EvalCallOptions CallOpts;
1545 FieldVal =
1546 makeElementRegion(State, FieldVal, T, CallOpts.IsArrayCtorOrDtor, Idx);
1547
1548 NodeBuilder Bldr(Pred, Dst, getBuilderContext());
1549
1550 static SimpleProgramPointTag PT("ExprEngine",
1551 "Prepare for object destruction");
1552 PreImplicitCall PP(DtorDecl, Member->getLocation(), LCtx, getCFGElementRef(),
1553 &PT);
1554 Pred = Bldr.generateNode(PP, State, Pred);
1555
1556 if (!Pred)
1557 return;
1558 Bldr.takeNodes(Pred);
1559
1560 VisitCXXDestructor(T, FieldVal.getAsRegion(), CurDtor->getBody(),
1561 /*IsBase=*/false, Pred, Dst, CallOpts);
1562}
1563
1565 ExplodedNode *Pred,
1566 ExplodedNodeSet &Dst) {
1567 const CXXBindTemporaryExpr *BTE = D.getBindTemporaryExpr();
1568 ProgramStateRef State = Pred->getState();
1569 const LocationContext *LC = Pred->getLocationContext();
1570 const MemRegion *MR = nullptr;
1571
1572 if (std::optional<SVal> V = getObjectUnderConstruction(
1573 State, D.getBindTemporaryExpr(), Pred->getLocationContext())) {
1574 // FIXME: Currently we insert temporary destructors for default parameters,
1575 // but we don't insert the constructors, so the entry in
1576 // ObjectsUnderConstruction may be missing.
1577 State = finishObjectConstruction(State, D.getBindTemporaryExpr(),
1578 Pred->getLocationContext());
1579 MR = V->getAsRegion();
1580 }
1581
1582 // If copy elision has occurred, and the constructor corresponding to the
1583 // destructor was elided, we need to skip the destructor as well.
1584 if (isDestructorElided(State, BTE, LC)) {
1585 State = cleanupElidedDestructor(State, BTE, LC);
1586 NodeBuilder Bldr(Pred, Dst, *currBldrCtx);
1587 PostImplicitCall PP(D.getDestructorDecl(getContext()),
1588 D.getBindTemporaryExpr()->getBeginLoc(),
1590 Bldr.generateNode(PP, State, Pred);
1591 return;
1592 }
1593
1594 ExplodedNodeSet CleanDtorState;
1595 StmtNodeBuilder StmtBldr(Pred, CleanDtorState, *currBldrCtx);
1596 StmtBldr.generateNode(D.getBindTemporaryExpr(), Pred, State);
1597
1598 QualType T = D.getBindTemporaryExpr()->getSubExpr()->getType();
1599 // FIXME: Currently CleanDtorState can be empty here due to temporaries being
1600 // bound to default parameters.
1601 assert(CleanDtorState.size() <= 1);
1602 ExplodedNode *CleanPred =
1603 CleanDtorState.empty() ? Pred : *CleanDtorState.begin();
1604
1605 EvalCallOptions CallOpts;
1606 CallOpts.IsTemporaryCtorOrDtor = true;
1607 if (!MR) {
1608 // FIXME: If we have no MR, we still need to unwrap the array to avoid
1609 // destroying the whole array at once.
1610 //
1611 // For this case there is no universal solution as there is no way to
1612 // directly create an array of temporary objects. There are some expressions
1613 // however which can create temporary objects and have an array type.
1614 //
1615 // E.g.: std::initializer_list<S>{S(), S()};
1616 //
1617 // The expression above has a type of 'const struct S[2]' but it's a single
1618 // 'std::initializer_list<>'. The destructors of the 2 temporary 'S()'
1619 // objects will be called anyway, because they are 2 separate objects in 2
1620 // separate clusters, i.e.: not an array.
1621 //
1622 // Now the 'std::initializer_list<>' is not an array either even though it
1623 // has the type of an array. The point is, we only want to invoke the
1624 // destructor for the initializer list once not twice or so.
1625 while (const ArrayType *AT = getContext().getAsArrayType(T)) {
1626 T = AT->getElementType();
1627
1628 // FIXME: Enable this flag once we handle this case properly.
1629 // CallOpts.IsArrayCtorOrDtor = true;
1630 }
1631 } else {
1632 // FIXME: We'd eventually need to makeElementRegion() trick here,
1633 // but for now we don't have the respective construction contexts,
1634 // so MR would always be null in this case. Do nothing for now.
1635 }
1636 VisitCXXDestructor(T, MR, D.getBindTemporaryExpr(),
1637 /*IsBase=*/false, CleanPred, Dst, CallOpts);
1638}
1639
1641 NodeBuilderContext &BldCtx,
1642 ExplodedNode *Pred,
1643 ExplodedNodeSet &Dst,
1644 const CFGBlock *DstT,
1645 const CFGBlock *DstF) {
1646 BranchNodeBuilder TempDtorBuilder(Pred, Dst, BldCtx, DstT, DstF);
1647 ProgramStateRef State = Pred->getState();
1648 const LocationContext *LC = Pred->getLocationContext();
1649 if (getObjectUnderConstruction(State, BTE, LC)) {
1650 TempDtorBuilder.generateNode(State, true, Pred);
1651 } else {
1652 TempDtorBuilder.generateNode(State, false, Pred);
1653 }
1654}
1655
1657 ExplodedNodeSet &PreVisit,
1658 ExplodedNodeSet &Dst) {
1659 // This is a fallback solution in case we didn't have a construction
1660 // context when we were constructing the temporary. Otherwise the map should
1661 // have been populated there.
1662 if (!getAnalysisManager().options.ShouldIncludeTemporaryDtorsInCFG) {
1663 // In case we don't have temporary destructors in the CFG, do not mark
1664 // the initialization - we would otherwise never clean it up.
1665 Dst = PreVisit;
1666 return;
1667 }
1668 StmtNodeBuilder StmtBldr(PreVisit, Dst, *currBldrCtx);
1669 for (ExplodedNode *Node : PreVisit) {
1670 ProgramStateRef State = Node->getState();
1671 const LocationContext *LC = Node->getLocationContext();
1672 if (!getObjectUnderConstruction(State, BTE, LC)) {
1673 // FIXME: Currently the state might also already contain the marker due to
1674 // incorrect handling of temporaries bound to default parameters; for
1675 // those, we currently skip the CXXBindTemporaryExpr but rely on adding
1676 // temporary destructor nodes.
1677 State = addObjectUnderConstruction(State, BTE, LC, UnknownVal());
1678 }
1679 StmtBldr.generateNode(BTE, Node, State);
1680 }
1681}
1682
1683ProgramStateRef ExprEngine::escapeValues(ProgramStateRef State,
1684 ArrayRef<SVal> Vs,
1686 const CallEvent *Call) const {
1687 class CollectReachableSymbolsCallback final : public SymbolVisitor {
1688 InvalidatedSymbols &Symbols;
1689
1690 public:
1691 explicit CollectReachableSymbolsCallback(InvalidatedSymbols &Symbols)
1692 : Symbols(Symbols) {}
1693
1694 const InvalidatedSymbols &getSymbols() const { return Symbols; }
1695
1696 bool VisitSymbol(SymbolRef Sym) override {
1697 Symbols.insert(Sym);
1698 return true;
1699 }
1700 };
1701 InvalidatedSymbols Symbols;
1702 CollectReachableSymbolsCallback CallBack(Symbols);
1703 for (SVal V : Vs)
1704 State->scanReachableSymbols(V, CallBack);
1705
1707 State, CallBack.getSymbols(), Call, K, nullptr);
1708}
1709
1711 ExplodedNodeSet &DstTop) {
1712 PrettyStackTraceLoc CrashInfo(getContext().getSourceManager(),
1713 S->getBeginLoc(), "Error evaluating statement");
1714 ExplodedNodeSet Dst;
1715 StmtNodeBuilder Bldr(Pred, DstTop, *currBldrCtx);
1716
1717 assert(!isa<Expr>(S) || S == cast<Expr>(S)->IgnoreParens());
1718
1719 switch (S->getStmtClass()) {
1720 // C++, OpenMP and ARC stuff we don't support yet.
1721 case Stmt::CXXDependentScopeMemberExprClass:
1722 case Stmt::CXXTryStmtClass:
1723 case Stmt::CXXTypeidExprClass:
1724 case Stmt::CXXUuidofExprClass:
1725 case Stmt::CXXFoldExprClass:
1726 case Stmt::MSPropertyRefExprClass:
1727 case Stmt::MSPropertySubscriptExprClass:
1728 case Stmt::CXXUnresolvedConstructExprClass:
1729 case Stmt::DependentScopeDeclRefExprClass:
1730 case Stmt::ArrayTypeTraitExprClass:
1731 case Stmt::ExpressionTraitExprClass:
1732 case Stmt::UnresolvedLookupExprClass:
1733 case Stmt::UnresolvedMemberExprClass:
1734 case Stmt::TypoExprClass:
1735 case Stmt::RecoveryExprClass:
1736 case Stmt::CXXNoexceptExprClass:
1737 case Stmt::PackExpansionExprClass:
1738 case Stmt::PackIndexingExprClass:
1739 case Stmt::SubstNonTypeTemplateParmPackExprClass:
1740 case Stmt::FunctionParmPackExprClass:
1741 case Stmt::CoroutineBodyStmtClass:
1742 case Stmt::CoawaitExprClass:
1743 case Stmt::DependentCoawaitExprClass:
1744 case Stmt::CoreturnStmtClass:
1745 case Stmt::CoyieldExprClass:
1746 case Stmt::SEHTryStmtClass:
1747 case Stmt::SEHExceptStmtClass:
1748 case Stmt::SEHLeaveStmtClass:
1749 case Stmt::SEHFinallyStmtClass:
1750 case Stmt::OMPCanonicalLoopClass:
1751 case Stmt::OMPParallelDirectiveClass:
1752 case Stmt::OMPSimdDirectiveClass:
1753 case Stmt::OMPForDirectiveClass:
1754 case Stmt::OMPForSimdDirectiveClass:
1755 case Stmt::OMPSectionsDirectiveClass:
1756 case Stmt::OMPSectionDirectiveClass:
1757 case Stmt::OMPScopeDirectiveClass:
1758 case Stmt::OMPSingleDirectiveClass:
1759 case Stmt::OMPMasterDirectiveClass:
1760 case Stmt::OMPCriticalDirectiveClass:
1761 case Stmt::OMPParallelForDirectiveClass:
1762 case Stmt::OMPParallelForSimdDirectiveClass:
1763 case Stmt::OMPParallelSectionsDirectiveClass:
1764 case Stmt::OMPParallelMasterDirectiveClass:
1765 case Stmt::OMPParallelMaskedDirectiveClass:
1766 case Stmt::OMPTaskDirectiveClass:
1767 case Stmt::OMPTaskyieldDirectiveClass:
1768 case Stmt::OMPBarrierDirectiveClass:
1769 case Stmt::OMPTaskwaitDirectiveClass:
1770 case Stmt::OMPErrorDirectiveClass:
1771 case Stmt::OMPTaskgroupDirectiveClass:
1772 case Stmt::OMPFlushDirectiveClass:
1773 case Stmt::OMPDepobjDirectiveClass:
1774 case Stmt::OMPScanDirectiveClass:
1775 case Stmt::OMPOrderedDirectiveClass:
1776 case Stmt::OMPAtomicDirectiveClass:
1777 case Stmt::OMPAssumeDirectiveClass:
1778 case Stmt::OMPTargetDirectiveClass:
1779 case Stmt::OMPTargetDataDirectiveClass:
1780 case Stmt::OMPTargetEnterDataDirectiveClass:
1781 case Stmt::OMPTargetExitDataDirectiveClass:
1782 case Stmt::OMPTargetParallelDirectiveClass:
1783 case Stmt::OMPTargetParallelForDirectiveClass:
1784 case Stmt::OMPTargetUpdateDirectiveClass:
1785 case Stmt::OMPTeamsDirectiveClass:
1786 case Stmt::OMPCancellationPointDirectiveClass:
1787 case Stmt::OMPCancelDirectiveClass:
1788 case Stmt::OMPTaskLoopDirectiveClass:
1789 case Stmt::OMPTaskLoopSimdDirectiveClass:
1790 case Stmt::OMPMasterTaskLoopDirectiveClass:
1791 case Stmt::OMPMaskedTaskLoopDirectiveClass:
1792 case Stmt::OMPMasterTaskLoopSimdDirectiveClass:
1793 case Stmt::OMPMaskedTaskLoopSimdDirectiveClass:
1794 case Stmt::OMPParallelMasterTaskLoopDirectiveClass:
1795 case Stmt::OMPParallelMaskedTaskLoopDirectiveClass:
1796 case Stmt::OMPParallelMasterTaskLoopSimdDirectiveClass:
1797 case Stmt::OMPParallelMaskedTaskLoopSimdDirectiveClass:
1798 case Stmt::OMPDistributeDirectiveClass:
1799 case Stmt::OMPDistributeParallelForDirectiveClass:
1800 case Stmt::OMPDistributeParallelForSimdDirectiveClass:
1801 case Stmt::OMPDistributeSimdDirectiveClass:
1802 case Stmt::OMPTargetParallelForSimdDirectiveClass:
1803 case Stmt::OMPTargetSimdDirectiveClass:
1804 case Stmt::OMPTeamsDistributeDirectiveClass:
1805 case Stmt::OMPTeamsDistributeSimdDirectiveClass:
1806 case Stmt::OMPTeamsDistributeParallelForSimdDirectiveClass:
1807 case Stmt::OMPTeamsDistributeParallelForDirectiveClass:
1808 case Stmt::OMPTargetTeamsDirectiveClass:
1809 case Stmt::OMPTargetTeamsDistributeDirectiveClass:
1810 case Stmt::OMPTargetTeamsDistributeParallelForDirectiveClass:
1811 case Stmt::OMPTargetTeamsDistributeParallelForSimdDirectiveClass:
1812 case Stmt::OMPTargetTeamsDistributeSimdDirectiveClass:
1813 case Stmt::OMPReverseDirectiveClass:
1814 case Stmt::OMPTileDirectiveClass:
1815 case Stmt::OMPInterchangeDirectiveClass:
1816 case Stmt::OMPInteropDirectiveClass:
1817 case Stmt::OMPDispatchDirectiveClass:
1818 case Stmt::OMPMaskedDirectiveClass:
1819 case Stmt::OMPGenericLoopDirectiveClass:
1820 case Stmt::OMPTeamsGenericLoopDirectiveClass:
1821 case Stmt::OMPTargetTeamsGenericLoopDirectiveClass:
1822 case Stmt::OMPParallelGenericLoopDirectiveClass:
1823 case Stmt::OMPTargetParallelGenericLoopDirectiveClass:
1824 case Stmt::CapturedStmtClass:
1825 case Stmt::SYCLKernelCallStmtClass:
1826 case Stmt::OpenACCComputeConstructClass:
1827 case Stmt::OpenACCLoopConstructClass:
1828 case Stmt::OpenACCCombinedConstructClass:
1829 case Stmt::OpenACCDataConstructClass:
1830 case Stmt::OpenACCEnterDataConstructClass:
1831 case Stmt::OpenACCExitDataConstructClass:
1832 case Stmt::OpenACCHostDataConstructClass:
1833 case Stmt::OpenACCWaitConstructClass:
1834 case Stmt::OpenACCInitConstructClass:
1835 case Stmt::OpenACCShutdownConstructClass:
1836 case Stmt::OpenACCSetConstructClass:
1837 case Stmt::OpenACCUpdateConstructClass:
1838 case Stmt::OMPUnrollDirectiveClass:
1839 case Stmt::OMPMetaDirectiveClass:
1840 case Stmt::HLSLOutArgExprClass: {
1841 const ExplodedNode *node = Bldr.generateSink(S, Pred, Pred->getState());
1842 Engine.addAbortedBlock(node, currBldrCtx->getBlock());
1843 break;
1844 }
1845
1846 case Stmt::ParenExprClass:
1847 llvm_unreachable("ParenExprs already handled.");
1848 case Stmt::GenericSelectionExprClass:
1849 llvm_unreachable("GenericSelectionExprs already handled.");
1850 // Cases that should never be evaluated simply because they shouldn't
1851 // appear in the CFG.
1852 case Stmt::BreakStmtClass:
1853 case Stmt::CaseStmtClass:
1854 case Stmt::CompoundStmtClass:
1855 case Stmt::ContinueStmtClass:
1856 case Stmt::CXXForRangeStmtClass:
1857 case Stmt::DefaultStmtClass:
1858 case Stmt::DoStmtClass:
1859 case Stmt::ForStmtClass:
1860 case Stmt::GotoStmtClass:
1861 case Stmt::IfStmtClass:
1862 case Stmt::IndirectGotoStmtClass:
1863 case Stmt::LabelStmtClass:
1864 case Stmt::NoStmtClass:
1865 case Stmt::NullStmtClass:
1866 case Stmt::SwitchStmtClass:
1867 case Stmt::WhileStmtClass:
1868 case Expr::MSDependentExistsStmtClass:
1869 llvm_unreachable("Stmt should not be in analyzer evaluation loop");
1870 case Stmt::ImplicitValueInitExprClass:
1871 // These nodes are shared in the CFG and would case caching out.
1872 // Moreover, no additional evaluation required for them, the
1873 // analyzer can reconstruct these values from the AST.
1874 llvm_unreachable("Should be pruned from CFG");
1875
1876 case Stmt::ObjCSubscriptRefExprClass:
1877 case Stmt::ObjCPropertyRefExprClass:
1878 llvm_unreachable("These are handled by PseudoObjectExpr");
1879
1880 case Stmt::GNUNullExprClass: {
1881 // GNU __null is a pointer-width integer, not an actual pointer.
1882 ProgramStateRef state = Pred->getState();
1883 state = state->BindExpr(
1884 S, Pred->getLocationContext(),
1885 svalBuilder.makeIntValWithWidth(getContext().VoidPtrTy, 0));
1886 Bldr.generateNode(S, Pred, state);
1887 break;
1888 }
1889
1890 case Stmt::ObjCAtSynchronizedStmtClass:
1891 Bldr.takeNodes(Pred);
1892 VisitObjCAtSynchronizedStmt(cast<ObjCAtSynchronizedStmt>(S), Pred, Dst);
1893 Bldr.addNodes(Dst);
1894 break;
1895
1896 case Expr::ConstantExprClass:
1897 case Stmt::ExprWithCleanupsClass:
1898 // Handled due to fully linearised CFG.
1899 break;
1900
1901 case Stmt::CXXBindTemporaryExprClass: {
1902 Bldr.takeNodes(Pred);
1903 ExplodedNodeSet PreVisit;
1904 getCheckerManager().runCheckersForPreStmt(PreVisit, Pred, S, *this);
1905 ExplodedNodeSet Next;
1906 VisitCXXBindTemporaryExpr(cast<CXXBindTemporaryExpr>(S), PreVisit, Next);
1907 getCheckerManager().runCheckersForPostStmt(Dst, Next, S, *this);
1908 Bldr.addNodes(Dst);
1909 break;
1910 }
1911
1912 case Stmt::ArrayInitLoopExprClass:
1913 Bldr.takeNodes(Pred);
1914 VisitArrayInitLoopExpr(cast<ArrayInitLoopExpr>(S), Pred, Dst);
1915 Bldr.addNodes(Dst);
1916 break;
1917 // Cases not handled yet; but will handle some day.
1918 case Stmt::DesignatedInitExprClass:
1919 case Stmt::DesignatedInitUpdateExprClass:
1920 case Stmt::ArrayInitIndexExprClass:
1921 case Stmt::ExtVectorElementExprClass:
1922 case Stmt::ImaginaryLiteralClass:
1923 case Stmt::ObjCAtCatchStmtClass:
1924 case Stmt::ObjCAtFinallyStmtClass:
1925 case Stmt::ObjCAtTryStmtClass:
1926 case Stmt::ObjCAutoreleasePoolStmtClass:
1927 case Stmt::ObjCEncodeExprClass:
1928 case Stmt::ObjCIsaExprClass:
1929 case Stmt::ObjCProtocolExprClass:
1930 case Stmt::ObjCSelectorExprClass:
1931 case Stmt::ParenListExprClass:
1932 case Stmt::ShuffleVectorExprClass:
1933 case Stmt::ConvertVectorExprClass:
1934 case Stmt::VAArgExprClass:
1935 case Stmt::CUDAKernelCallExprClass:
1936 case Stmt::OpaqueValueExprClass:
1937 case Stmt::AsTypeExprClass:
1938 case Stmt::ConceptSpecializationExprClass:
1939 case Stmt::CXXRewrittenBinaryOperatorClass:
1940 case Stmt::RequiresExprClass:
1941 case Expr::CXXParenListInitExprClass:
1942 case Stmt::EmbedExprClass:
1943 // Fall through.
1944
1945 // Cases we intentionally don't evaluate, since they don't need
1946 // to be explicitly evaluated.
1947 case Stmt::PredefinedExprClass:
1948 case Stmt::AddrLabelExprClass:
1949 case Stmt::AttributedStmtClass:
1950 case Stmt::IntegerLiteralClass:
1951 case Stmt::FixedPointLiteralClass:
1952 case Stmt::CharacterLiteralClass:
1953 case Stmt::CXXScalarValueInitExprClass:
1954 case Stmt::CXXBoolLiteralExprClass:
1955 case Stmt::ObjCBoolLiteralExprClass:
1956 case Stmt::ObjCAvailabilityCheckExprClass:
1957 case Stmt::FloatingLiteralClass:
1958 case Stmt::NoInitExprClass:
1959 case Stmt::SizeOfPackExprClass:
1960 case Stmt::StringLiteralClass:
1961 case Stmt::SourceLocExprClass:
1962 case Stmt::ObjCStringLiteralClass:
1963 case Stmt::CXXPseudoDestructorExprClass:
1964 case Stmt::SubstNonTypeTemplateParmExprClass:
1965 case Stmt::CXXNullPtrLiteralExprClass:
1966 case Stmt::ArraySectionExprClass:
1967 case Stmt::OMPArrayShapingExprClass:
1968 case Stmt::OMPIteratorExprClass:
1969 case Stmt::SYCLUniqueStableNameExprClass:
1970 case Stmt::OpenACCAsteriskSizeExprClass:
1971 case Stmt::TypeTraitExprClass: {
1972 Bldr.takeNodes(Pred);
1973 ExplodedNodeSet preVisit;
1974 getCheckerManager().runCheckersForPreStmt(preVisit, Pred, S, *this);
1975 getCheckerManager().runCheckersForPostStmt(Dst, preVisit, S, *this);
1976 Bldr.addNodes(Dst);
1977 break;
1978 }
1979
1980 case Stmt::CXXDefaultArgExprClass:
1981 case Stmt::CXXDefaultInitExprClass: {
1982 Bldr.takeNodes(Pred);
1983 ExplodedNodeSet PreVisit;
1984 getCheckerManager().runCheckersForPreStmt(PreVisit, Pred, S, *this);
1985
1986 ExplodedNodeSet Tmp;
1987 StmtNodeBuilder Bldr2(PreVisit, Tmp, *currBldrCtx);
1988
1989 const Expr *ArgE;
1990 if (const auto *DefE = dyn_cast<CXXDefaultArgExpr>(S))
1991 ArgE = DefE->getExpr();
1992 else if (const auto *DefE = dyn_cast<CXXDefaultInitExpr>(S))
1993 ArgE = DefE->getExpr();
1994 else
1995 llvm_unreachable("unknown constant wrapper kind");
1996
1997 bool IsTemporary = false;
1998 if (const auto *MTE = dyn_cast<MaterializeTemporaryExpr>(ArgE)) {
1999 ArgE = MTE->getSubExpr();
2000 IsTemporary = true;
2001 }
2002
2003 std::optional<SVal> ConstantVal = svalBuilder.getConstantVal(ArgE);
2004 if (!ConstantVal)
2005 ConstantVal = UnknownVal();
2006
2007 const LocationContext *LCtx = Pred->getLocationContext();
2008 for (const auto I : PreVisit) {
2009 ProgramStateRef State = I->getState();
2010 State = State->BindExpr(S, LCtx, *ConstantVal);
2011 if (IsTemporary)
2012 State = createTemporaryRegionIfNeeded(State, LCtx,
2013 cast<Expr>(S),
2014 cast<Expr>(S));
2015 Bldr2.generateNode(S, I, State);
2016 }
2017
2018 getCheckerManager().runCheckersForPostStmt(Dst, Tmp, S, *this);
2019 Bldr.addNodes(Dst);
2020 break;
2021 }
2022
2023 // Cases we evaluate as opaque expressions, conjuring a symbol.
2024 case Stmt::CXXStdInitializerListExprClass:
2025 case Expr::ObjCArrayLiteralClass:
2026 case Expr::ObjCDictionaryLiteralClass:
2027 case Expr::ObjCBoxedExprClass: {
2028 Bldr.takeNodes(Pred);
2029
2030 ExplodedNodeSet preVisit;
2031 getCheckerManager().runCheckersForPreStmt(preVisit, Pred, S, *this);
2032
2033 ExplodedNodeSet Tmp;
2034 StmtNodeBuilder Bldr2(preVisit, Tmp, *currBldrCtx);
2035
2036 const auto *Ex = cast<Expr>(S);
2037 QualType resultType = Ex->getType();
2038
2039 for (const auto N : preVisit) {
2040 const LocationContext *LCtx = N->getLocationContext();
2041 SVal result = svalBuilder.conjureSymbolVal(nullptr, Ex, LCtx,
2042 resultType,
2043 currBldrCtx->blockCount());
2044 ProgramStateRef State = N->getState()->BindExpr(Ex, LCtx, result);
2045
2046 // Escape pointers passed into the list, unless it's an ObjC boxed
2047 // expression which is not a boxable C structure.
2048 if (!(isa<ObjCBoxedExpr>(Ex) &&
2049 !cast<ObjCBoxedExpr>(Ex)->getSubExpr()
2050 ->getType()->isRecordType()))
2051 for (auto Child : Ex->children()) {
2052 assert(Child);
2053 SVal Val = State->getSVal(Child, LCtx);
2054 State = escapeValues(State, Val, PSK_EscapeOther);
2055 }
2056
2057 Bldr2.generateNode(S, N, State);
2058 }
2059
2060 getCheckerManager().runCheckersForPostStmt(Dst, Tmp, S, *this);
2061 Bldr.addNodes(Dst);
2062 break;
2063 }
2064
2065 case Stmt::ArraySubscriptExprClass:
2066 Bldr.takeNodes(Pred);
2067 VisitArraySubscriptExpr(cast<ArraySubscriptExpr>(S), Pred, Dst);
2068 Bldr.addNodes(Dst);
2069 break;
2070
2071 case Stmt::MatrixSubscriptExprClass:
2072 llvm_unreachable("Support for MatrixSubscriptExpr is not implemented.");
2073 break;
2074
2075 case Stmt::GCCAsmStmtClass: {
2076 Bldr.takeNodes(Pred);
2077 ExplodedNodeSet PreVisit;
2078 getCheckerManager().runCheckersForPreStmt(PreVisit, Pred, S, *this);
2080 for (ExplodedNode *const N : PreVisit)
2081 VisitGCCAsmStmt(cast<GCCAsmStmt>(S), N, PostVisit);
2083 Bldr.addNodes(Dst);
2084 break;
2085 }
2086
2087 case Stmt::MSAsmStmtClass:
2088 Bldr.takeNodes(Pred);
2089 VisitMSAsmStmt(cast<MSAsmStmt>(S), Pred, Dst);
2090 Bldr.addNodes(Dst);
2091 break;
2092
2093 case Stmt::BlockExprClass:
2094 Bldr.takeNodes(Pred);
2095 VisitBlockExpr(cast<BlockExpr>(S), Pred, Dst);
2096 Bldr.addNodes(Dst);
2097 break;
2098
2099 case Stmt::LambdaExprClass:
2100 if (AMgr.options.ShouldInlineLambdas) {
2101 Bldr.takeNodes(Pred);
2102 VisitLambdaExpr(cast<LambdaExpr>(S), Pred, Dst);
2103 Bldr.addNodes(Dst);
2104 } else {
2105 const ExplodedNode *node = Bldr.generateSink(S, Pred, Pred->getState());
2106 Engine.addAbortedBlock(node, currBldrCtx->getBlock());
2107 }
2108 break;
2109
2110 case Stmt::BinaryOperatorClass: {
2111 const auto *B = cast<BinaryOperator>(S);
2112 if (B->isLogicalOp()) {
2113 Bldr.takeNodes(Pred);
2114 VisitLogicalExpr(B, Pred, Dst);
2115 Bldr.addNodes(Dst);
2116 break;
2117 }
2118 else if (B->getOpcode() == BO_Comma) {
2119 ProgramStateRef state = Pred->getState();
2120 Bldr.generateNode(B, Pred,
2121 state->BindExpr(B, Pred->getLocationContext(),
2122 state->getSVal(B->getRHS(),
2123 Pred->getLocationContext())));
2124 break;
2125 }
2126
2127 Bldr.takeNodes(Pred);
2128
2129 if (AMgr.options.ShouldEagerlyAssume &&
2130 (B->isRelationalOp() || B->isEqualityOp())) {
2131 ExplodedNodeSet Tmp;
2132 VisitBinaryOperator(cast<BinaryOperator>(S), Pred, Tmp);
2133 evalEagerlyAssumeBifurcation(Dst, Tmp, cast<Expr>(S));
2134 }
2135 else
2136 VisitBinaryOperator(cast<BinaryOperator>(S), Pred, Dst);
2137
2138 Bldr.addNodes(Dst);
2139 break;
2140 }
2141
2142 case Stmt::CXXOperatorCallExprClass: {
2143 const auto *OCE = cast<CXXOperatorCallExpr>(S);
2144
2145 // For instance method operators, make sure the 'this' argument has a
2146 // valid region.
2147 const Decl *Callee = OCE->getCalleeDecl();
2148 if (const auto *MD = dyn_cast_or_null<CXXMethodDecl>(Callee)) {
2149 if (MD->isImplicitObjectMemberFunction()) {
2150 ProgramStateRef State = Pred->getState();
2151 const LocationContext *LCtx = Pred->getLocationContext();
2152 ProgramStateRef NewState =
2153 createTemporaryRegionIfNeeded(State, LCtx, OCE->getArg(0));
2154 if (NewState != State) {
2155 Pred = Bldr.generateNode(OCE, Pred, NewState, /*tag=*/nullptr,
2157 // Did we cache out?
2158 if (!Pred)
2159 break;
2160 }
2161 }
2162 }
2163 [[fallthrough]];
2164 }
2165
2166 case Stmt::CallExprClass:
2167 case Stmt::CXXMemberCallExprClass:
2168 case Stmt::UserDefinedLiteralClass:
2169 Bldr.takeNodes(Pred);
2170 VisitCallExpr(cast<CallExpr>(S), Pred, Dst);
2171 Bldr.addNodes(Dst);
2172 break;
2173
2174 case Stmt::CXXCatchStmtClass:
2175 Bldr.takeNodes(Pred);
2176 VisitCXXCatchStmt(cast<CXXCatchStmt>(S), Pred, Dst);
2177 Bldr.addNodes(Dst);
2178 break;
2179
2180 case Stmt::CXXTemporaryObjectExprClass:
2181 case Stmt::CXXConstructExprClass:
2182 Bldr.takeNodes(Pred);
2183 VisitCXXConstructExpr(cast<CXXConstructExpr>(S), Pred, Dst);
2184 Bldr.addNodes(Dst);
2185 break;
2186
2187 case Stmt::CXXInheritedCtorInitExprClass:
2188 Bldr.takeNodes(Pred);
2189 VisitCXXInheritedCtorInitExpr(cast<CXXInheritedCtorInitExpr>(S), Pred,
2190 Dst);
2191 Bldr.addNodes(Dst);
2192 break;
2193
2194 case Stmt::CXXNewExprClass: {
2195 Bldr.takeNodes(Pred);
2196
2197 ExplodedNodeSet PreVisit;
2198 getCheckerManager().runCheckersForPreStmt(PreVisit, Pred, S, *this);
2199
2201 for (const auto i : PreVisit)
2202 VisitCXXNewExpr(cast<CXXNewExpr>(S), i, PostVisit);
2203
2205 Bldr.addNodes(Dst);
2206 break;
2207 }
2208
2209 case Stmt::CXXDeleteExprClass: {
2210 Bldr.takeNodes(Pred);
2211 ExplodedNodeSet PreVisit;
2212 const auto *CDE = cast<CXXDeleteExpr>(S);
2213 getCheckerManager().runCheckersForPreStmt(PreVisit, Pred, S, *this);
2215 getCheckerManager().runCheckersForPostStmt(PostVisit, PreVisit, S, *this);
2216
2217 for (const auto i : PostVisit)
2218 VisitCXXDeleteExpr(CDE, i, Dst);
2219
2220 Bldr.addNodes(Dst);
2221 break;
2222 }
2223 // FIXME: ChooseExpr is really a constant. We need to fix
2224 // the CFG do not model them as explicit control-flow.
2225
2226 case Stmt::ChooseExprClass: { // __builtin_choose_expr
2227 Bldr.takeNodes(Pred);
2228 const auto *C = cast<ChooseExpr>(S);
2229 VisitGuardedExpr(C, C->getLHS(), C->getRHS(), Pred, Dst);
2230 Bldr.addNodes(Dst);
2231 break;
2232 }
2233
2234 case Stmt::CompoundAssignOperatorClass:
2235 Bldr.takeNodes(Pred);
2236 VisitBinaryOperator(cast<BinaryOperator>(S), Pred, Dst);
2237 Bldr.addNodes(Dst);
2238 break;
2239
2240 case Stmt::CompoundLiteralExprClass:
2241 Bldr.takeNodes(Pred);
2242 VisitCompoundLiteralExpr(cast<CompoundLiteralExpr>(S), Pred, Dst);
2243 Bldr.addNodes(Dst);
2244 break;
2245
2246 case Stmt::BinaryConditionalOperatorClass:
2247 case Stmt::ConditionalOperatorClass: { // '?' operator
2248 Bldr.takeNodes(Pred);
2249 const auto *C = cast<AbstractConditionalOperator>(S);
2250 VisitGuardedExpr(C, C->getTrueExpr(), C->getFalseExpr(), Pred, Dst);
2251 Bldr.addNodes(Dst);
2252 break;
2253 }
2254
2255 case Stmt::CXXThisExprClass:
2256 Bldr.takeNodes(Pred);
2257 VisitCXXThisExpr(cast<CXXThisExpr>(S), Pred, Dst);
2258 Bldr.addNodes(Dst);
2259 break;
2260
2261 case Stmt::DeclRefExprClass: {
2262 Bldr.takeNodes(Pred);
2263 const auto *DE = cast<DeclRefExpr>(S);
2264 VisitCommonDeclRefExpr(DE, DE->getDecl(), Pred, Dst);
2265 Bldr.addNodes(Dst);
2266 break;
2267 }
2268
2269 case Stmt::DeclStmtClass:
2270 Bldr.takeNodes(Pred);
2271 VisitDeclStmt(cast<DeclStmt>(S), Pred, Dst);
2272 Bldr.addNodes(Dst);
2273 break;
2274
2275 case Stmt::ImplicitCastExprClass:
2276 case Stmt::CStyleCastExprClass:
2277 case Stmt::CXXStaticCastExprClass:
2278 case Stmt::CXXDynamicCastExprClass:
2279 case Stmt::CXXReinterpretCastExprClass:
2280 case Stmt::CXXConstCastExprClass:
2281 case Stmt::CXXFunctionalCastExprClass:
2282 case Stmt::BuiltinBitCastExprClass:
2283 case Stmt::ObjCBridgedCastExprClass:
2284 case Stmt::CXXAddrspaceCastExprClass: {
2285 Bldr.takeNodes(Pred);
2286 const auto *C = cast<CastExpr>(S);
2287 ExplodedNodeSet dstExpr;
2288 VisitCast(C, C->getSubExpr(), Pred, dstExpr);
2289
2290 // Handle the postvisit checks.
2291 getCheckerManager().runCheckersForPostStmt(Dst, dstExpr, C, *this);
2292 Bldr.addNodes(Dst);
2293 break;
2294 }
2295
2296 case Expr::MaterializeTemporaryExprClass: {
2297 Bldr.takeNodes(Pred);
2298 const auto *MTE = cast<MaterializeTemporaryExpr>(S);
2299 ExplodedNodeSet dstPrevisit;
2300 getCheckerManager().runCheckersForPreStmt(dstPrevisit, Pred, MTE, *this);
2301 ExplodedNodeSet dstExpr;
2302 for (const auto i : dstPrevisit)
2303 CreateCXXTemporaryObject(MTE, i, dstExpr);
2304 getCheckerManager().runCheckersForPostStmt(Dst, dstExpr, MTE, *this);
2305 Bldr.addNodes(Dst);
2306 break;
2307 }
2308
2309 case Stmt::InitListExprClass:
2310 Bldr.takeNodes(Pred);
2311 VisitInitListExpr(cast<InitListExpr>(S), Pred, Dst);
2312 Bldr.addNodes(Dst);
2313 break;
2314
2315 case Stmt::MemberExprClass:
2316 Bldr.takeNodes(Pred);
2317 VisitMemberExpr(cast<MemberExpr>(S), Pred, Dst);
2318 Bldr.addNodes(Dst);
2319 break;
2320
2321 case Stmt::AtomicExprClass:
2322 Bldr.takeNodes(Pred);
2323 VisitAtomicExpr(cast<AtomicExpr>(S), Pred, Dst);
2324 Bldr.addNodes(Dst);
2325 break;
2326
2327 case Stmt::ObjCIvarRefExprClass:
2328 Bldr.takeNodes(Pred);
2329 VisitLvalObjCIvarRefExpr(cast<ObjCIvarRefExpr>(S), Pred, Dst);
2330 Bldr.addNodes(Dst);
2331 break;
2332
2333 case Stmt::ObjCForCollectionStmtClass:
2334 Bldr.takeNodes(Pred);
2335 VisitObjCForCollectionStmt(cast<ObjCForCollectionStmt>(S), Pred, Dst);
2336 Bldr.addNodes(Dst);
2337 break;
2338
2339 case Stmt::ObjCMessageExprClass:
2340 Bldr.takeNodes(Pred);
2341 VisitObjCMessage(cast<ObjCMessageExpr>(S), Pred, Dst);
2342 Bldr.addNodes(Dst);
2343 break;
2344
2345 case Stmt::ObjCAtThrowStmtClass:
2346 case Stmt::CXXThrowExprClass:
2347 // FIXME: This is not complete. We basically treat @throw as
2348 // an abort.
2349 Bldr.generateSink(S, Pred, Pred->getState());
2350 break;
2351
2352 case Stmt::ReturnStmtClass:
2353 Bldr.takeNodes(Pred);
2354 VisitReturnStmt(cast<ReturnStmt>(S), Pred, Dst);
2355 Bldr.addNodes(Dst);
2356 break;
2357
2358 case Stmt::OffsetOfExprClass: {
2359 Bldr.takeNodes(Pred);
2360 ExplodedNodeSet PreVisit;
2361 getCheckerManager().runCheckersForPreStmt(PreVisit, Pred, S, *this);
2362
2364 for (const auto Node : PreVisit)
2365 VisitOffsetOfExpr(cast<OffsetOfExpr>(S), Node, PostVisit);
2366
2368 Bldr.addNodes(Dst);
2369 break;
2370 }
2371
2372 case Stmt::UnaryExprOrTypeTraitExprClass:
2373 Bldr.takeNodes(Pred);
2374 VisitUnaryExprOrTypeTraitExpr(cast<UnaryExprOrTypeTraitExpr>(S),
2375 Pred, Dst);
2376 Bldr.addNodes(Dst);
2377 break;
2378
2379 case Stmt::StmtExprClass: {
2380 const auto *SE = cast<StmtExpr>(S);
2381
2382 if (SE->getSubStmt()->body_empty()) {
2383 // Empty statement expression.
2384 assert(SE->getType() == getContext().VoidTy
2385 && "Empty statement expression must have void type.");
2386 break;
2387 }
2388
2389 if (const auto *LastExpr =
2390 dyn_cast<Expr>(*SE->getSubStmt()->body_rbegin())) {
2391 ProgramStateRef state = Pred->getState();
2392 Bldr.generateNode(SE, Pred,
2393 state->BindExpr(SE, Pred->getLocationContext(),
2394 state->getSVal(LastExpr,
2395 Pred->getLocationContext())));
2396 }
2397 break;
2398 }
2399
2400 case Stmt::UnaryOperatorClass: {
2401 Bldr.takeNodes(Pred);
2402 const auto *U = cast<UnaryOperator>(S);
2403 if (AMgr.options.ShouldEagerlyAssume && (U->getOpcode() == UO_LNot)) {
2404 ExplodedNodeSet Tmp;
2405 VisitUnaryOperator(U, Pred, Tmp);
2407 }
2408 else
2409 VisitUnaryOperator(U, Pred, Dst);
2410 Bldr.addNodes(Dst);
2411 break;
2412 }
2413
2414 case Stmt::PseudoObjectExprClass: {
2415 Bldr.takeNodes(Pred);
2416 ProgramStateRef state = Pred->getState();
2417 const auto *PE = cast<PseudoObjectExpr>(S);
2418 if (const Expr *Result = PE->getResultExpr()) {
2419 SVal V = state->getSVal(Result, Pred->getLocationContext());
2420 Bldr.generateNode(S, Pred,
2421 state->BindExpr(S, Pred->getLocationContext(), V));
2422 }
2423 else
2424 Bldr.generateNode(S, Pred,
2425 state->BindExpr(S, Pred->getLocationContext(),
2426 UnknownVal()));
2427
2428 Bldr.addNodes(Dst);
2429 break;
2430 }
2431
2432 case Expr::ObjCIndirectCopyRestoreExprClass: {
2433 // ObjCIndirectCopyRestoreExpr implies passing a temporary for
2434 // correctness of lifetime management. Due to limited analysis
2435 // of ARC, this is implemented as direct arg passing.
2436 Bldr.takeNodes(Pred);
2437 ProgramStateRef state = Pred->getState();
2438 const auto *OIE = cast<ObjCIndirectCopyRestoreExpr>(S);
2439 const Expr *E = OIE->getSubExpr();
2440 SVal V = state->getSVal(E, Pred->getLocationContext());
2441 Bldr.generateNode(S, Pred,
2442 state->BindExpr(S, Pred->getLocationContext(), V));
2443 Bldr.addNodes(Dst);
2444 break;
2445 }
2446 }
2447}
2448
2449bool ExprEngine::replayWithoutInlining(ExplodedNode *N,
2450 const LocationContext *CalleeLC) {
2451 const StackFrameContext *CalleeSF = CalleeLC->getStackFrame();
2452 const StackFrameContext *CallerSF = CalleeSF->getParent()->getStackFrame();
2453 assert(CalleeSF && CallerSF);
2454 ExplodedNode *BeforeProcessingCall = nullptr;
2455 const Stmt *CE = CalleeSF->getCallSite();
2456
2457 // Find the first node before we started processing the call expression.
2458 while (N) {
2459 ProgramPoint L = N->getLocation();
2460 BeforeProcessingCall = N;
2461 N = N->pred_empty() ? nullptr : *(N->pred_begin());
2462
2463 // Skip the nodes corresponding to the inlined code.
2464 if (L.getStackFrame() != CallerSF)
2465 continue;
2466 // We reached the caller. Find the node right before we started
2467 // processing the call.
2468 if (L.isPurgeKind())
2469 continue;
2470 if (L.getAs<PreImplicitCall>())
2471 continue;
2472 if (L.getAs<CallEnter>())
2473 continue;
2474 if (std::optional<StmtPoint> SP = L.getAs<StmtPoint>())
2475 if (SP->getStmt() == CE)
2476 continue;
2477 break;
2478 }
2479
2480 if (!BeforeProcessingCall)
2481 return false;
2482
2483 // TODO: Clean up the unneeded nodes.
2484
2485 // Build an Epsilon node from which we will restart the analyzes.
2486 // Note that CE is permitted to be NULL!
2487 static SimpleProgramPointTag PT("ExprEngine", "Replay without inlining");
2488 ProgramPoint NewNodeLoc = EpsilonPoint(
2489 BeforeProcessingCall->getLocationContext(), CE, nullptr, &PT);
2490 // Add the special flag to GDM to signal retrying with no inlining.
2491 // Note, changing the state ensures that we are not going to cache out.
2492 ProgramStateRef NewNodeState = BeforeProcessingCall->getState();
2493 NewNodeState =
2494 NewNodeState->set<ReplayWithoutInlining>(const_cast<Stmt *>(CE));
2495
2496 // Make the new node a successor of BeforeProcessingCall.
2497 bool IsNew = false;
2498 ExplodedNode *NewNode = G.getNode(NewNodeLoc, NewNodeState, false, &IsNew);
2499 // We cached out at this point. Caching out is common due to us backtracking
2500 // from the inlined function, which might spawn several paths.
2501 if (!IsNew)
2502 return true;
2503
2504 NewNode->addPredecessor(BeforeProcessingCall, G);
2505
2506 // Add the new node to the work list.
2507 Engine.enqueueStmtNode(NewNode, CalleeSF->getCallSiteBlock(),
2508 CalleeSF->getIndex());
2509 NumTimesRetriedWithoutInlining++;
2510 return true;
2511}
2512
2513/// Block entrance. (Update counters).
2515 NodeBuilderWithSinks &nodeBuilder,
2516 ExplodedNode *Pred) {
2518 // If we reach a loop which has a known bound (and meets
2519 // other constraints) then consider completely unrolling it.
2520 if(AMgr.options.ShouldUnrollLoops) {
2521 unsigned maxBlockVisitOnPath = AMgr.options.maxBlockVisitOnPath;
2522 const Stmt *Term = nodeBuilder.getContext().getBlock()->getTerminatorStmt();
2523 if (Term) {
2524 ProgramStateRef NewState = updateLoopStack(Term, AMgr.getASTContext(),
2525 Pred, maxBlockVisitOnPath);
2526 if (NewState != Pred->getState()) {
2527 ExplodedNode *UpdatedNode = nodeBuilder.generateNode(NewState, Pred);
2528 if (!UpdatedNode)
2529 return;
2530 Pred = UpdatedNode;
2531 }
2532 }
2533 // Is we are inside an unrolled loop then no need the check the counters.
2534 if(isUnrolledState(Pred->getState()))
2535 return;
2536 }
2537
2538 // If this block is terminated by a loop and it has already been visited the
2539 // maximum number of times, widen the loop.
2540 unsigned int BlockCount = nodeBuilder.getContext().blockCount();
2541 if (BlockCount == AMgr.options.maxBlockVisitOnPath - 1 &&
2542 AMgr.options.ShouldWidenLoops) {
2543 const Stmt *Term = nodeBuilder.getContext().getBlock()->getTerminatorStmt();
2544 if (!isa_and_nonnull<ForStmt, WhileStmt, DoStmt, CXXForRangeStmt>(Term))
2545 return;
2546 // Widen.
2547 const LocationContext *LCtx = Pred->getLocationContext();
2548 ProgramStateRef WidenedState =
2549 getWidenedLoopState(Pred->getState(), LCtx, BlockCount, Term);
2550 nodeBuilder.generateNode(WidenedState, Pred);
2551 return;
2552 }
2553
2554 // FIXME: Refactor this into a checker.
2555 if (BlockCount >= AMgr.options.maxBlockVisitOnPath) {
2556 static SimpleProgramPointTag tag(TagProviderName, "Block count exceeded");
2557 const ExplodedNode *Sink =
2558 nodeBuilder.generateSink(Pred->getState(), Pred, &tag);
2559
2560 // Check if we stopped at the top level function or not.
2561 // Root node should have the location context of the top most function.
2562 const LocationContext *CalleeLC = Pred->getLocation().getLocationContext();
2563 const LocationContext *CalleeSF = CalleeLC->getStackFrame();
2564 const LocationContext *RootLC =
2565 (*G.roots_begin())->getLocation().getLocationContext();
2566 if (RootLC->getStackFrame() != CalleeSF) {
2567 Engine.FunctionSummaries->markReachedMaxBlockCount(CalleeSF->getDecl());
2568
2569 // Re-run the call evaluation without inlining it, by storing the
2570 // no-inlining policy in the state and enqueuing the new work item on
2571 // the list. Replay should almost never fail. Use the stats to catch it
2572 // if it does.
2573 if ((!AMgr.options.NoRetryExhausted &&
2574 replayWithoutInlining(Pred, CalleeLC)))
2575 return;
2576 NumMaxBlockCountReachedInInlined++;
2577 } else
2578 NumMaxBlockCountReached++;
2579
2580 // Make sink nodes as exhausted(for stats) only if retry failed.
2581 Engine.blocksExhausted.push_back(std::make_pair(L, Sink));
2582 }
2583}
2584
2585//===----------------------------------------------------------------------===//
2586// Branch processing.
2587//===----------------------------------------------------------------------===//
2588
2589/// RecoverCastedSymbol - A helper function for ProcessBranch that is used
2590/// to try to recover some path-sensitivity for casts of symbolic
2591/// integers that promote their values (which are currently not tracked well).
2592/// This function returns the SVal bound to Condition->IgnoreCasts if all the
2593// cast(s) did was sign-extend the original value.
2595 const Stmt *Condition,
2596 const LocationContext *LCtx,
2597 ASTContext &Ctx) {
2598
2599 const auto *Ex = dyn_cast<Expr>(Condition);
2600 if (!Ex)
2601 return UnknownVal();
2602
2603 uint64_t bits = 0;
2604 bool bitsInit = false;
2605
2606 while (const auto *CE = dyn_cast<CastExpr>(Ex)) {
2607 QualType T = CE->getType();
2608
2610 return UnknownVal();
2611
2612 uint64_t newBits = Ctx.getTypeSize(T);
2613 if (!bitsInit || newBits < bits) {
2614 bitsInit = true;
2615 bits = newBits;
2616 }
2617
2618 Ex = CE->getSubExpr();
2619 }
2620
2621 // We reached a non-cast. Is it a symbolic value?
2622 QualType T = Ex->getType();
2623
2624 if (!bitsInit || !T->isIntegralOrEnumerationType() ||
2625 Ctx.getTypeSize(T) > bits)
2626 return UnknownVal();
2627
2628 return state->getSVal(Ex, LCtx);
2629}
2630
2631#ifndef NDEBUG
2632static const Stmt *getRightmostLeaf(const Stmt *Condition) {
2633 while (Condition) {
2634 const auto *BO = dyn_cast<BinaryOperator>(Condition);
2635 if (!BO || !BO->isLogicalOp()) {
2636 return Condition;
2637 }
2638 Condition = BO->getRHS()->IgnoreParens();
2639 }
2640 return nullptr;
2641}
2642#endif
2643
2644// Returns the condition the branch at the end of 'B' depends on and whose value
2645// has been evaluated within 'B'.
2646// In most cases, the terminator condition of 'B' will be evaluated fully in
2647// the last statement of 'B'; in those cases, the resolved condition is the
2648// given 'Condition'.
2649// If the condition of the branch is a logical binary operator tree, the CFG is
2650// optimized: in that case, we know that the expression formed by all but the
2651// rightmost leaf of the logical binary operator tree must be true, and thus
2652// the branch condition is at this point equivalent to the truth value of that
2653// rightmost leaf; the CFG block thus only evaluates this rightmost leaf
2654// expression in its final statement. As the full condition in that case was
2655// not evaluated, and is thus not in the SVal cache, we need to use that leaf
2656// expression to evaluate the truth value of the condition in the current state
2657// space.
2659 const CFGBlock *B) {
2660 if (const auto *Ex = dyn_cast<Expr>(Condition))
2661 Condition = Ex->IgnoreParens();
2662
2663 const auto *BO = dyn_cast<BinaryOperator>(Condition);
2664 if (!BO || !BO->isLogicalOp())
2665 return Condition;
2666
2667 assert(B->getTerminator().isStmtBranch() &&
2668 "Other kinds of branches are handled separately!");
2669
2670 // For logical operations, we still have the case where some branches
2671 // use the traditional "merge" approach and others sink the branch
2672 // directly into the basic blocks representing the logical operation.
2673 // We need to distinguish between those two cases here.
2674
2675 // The invariants are still shifting, but it is possible that the
2676 // last element in a CFGBlock is not a CFGStmt. Look for the last
2677 // CFGStmt as the value of the condition.
2678 for (CFGElement Elem : llvm::reverse(*B)) {
2679 std::optional<CFGStmt> CS = Elem.getAs<CFGStmt>();
2680 if (!CS)
2681 continue;
2682 const Stmt *LastStmt = CS->getStmt();
2683 assert(LastStmt == Condition || LastStmt == getRightmostLeaf(Condition));
2684 return LastStmt;
2685 }
2686 llvm_unreachable("could not resolve condition");
2687}
2688
2690 std::pair<const ObjCForCollectionStmt *, const LocationContext *>;
2691
2692REGISTER_MAP_WITH_PROGRAMSTATE(ObjCForHasMoreIterations, ObjCForLctxPair, bool)
2693
2694ProgramStateRef ExprEngine::setWhetherHasMoreIteration(
2695 ProgramStateRef State, const ObjCForCollectionStmt *O,
2696 const LocationContext *LC, bool HasMoreIteraton) {
2697 assert(!State->contains<ObjCForHasMoreIterations>({O, LC}));
2698 return State->set<ObjCForHasMoreIterations>({O, LC}, HasMoreIteraton);
2699}
2700
2703 const ObjCForCollectionStmt *O,
2704 const LocationContext *LC) {
2705 assert(State->contains<ObjCForHasMoreIterations>({O, LC}));
2706 return State->remove<ObjCForHasMoreIterations>({O, LC});
2707}
2708
2710 const ObjCForCollectionStmt *O,
2711 const LocationContext *LC) {
2712 assert(State->contains<ObjCForHasMoreIterations>({O, LC}));
2713 return *State->get<ObjCForHasMoreIterations>({O, LC});
2714}
2715
2716/// Split the state on whether there are any more iterations left for this loop.
2717/// Returns a (HasMoreIteration, HasNoMoreIteration) pair, or std::nullopt when
2718/// the acquisition of the loop condition value failed.
2719static std::optional<std::pair<ProgramStateRef, ProgramStateRef>>
2721 ProgramStateRef State = N->getState();
2722 if (const auto *ObjCFor = dyn_cast<ObjCForCollectionStmt>(Condition)) {
2723 bool HasMoreIteraton =
2725 // Checkers have already ran on branch conditions, so the current
2726 // information as to whether the loop has more iteration becomes outdated
2727 // after this point.
2728 State = ExprEngine::removeIterationState(State, ObjCFor,
2729 N->getLocationContext());
2730 if (HasMoreIteraton)
2731 return std::pair<ProgramStateRef, ProgramStateRef>{State, nullptr};
2732 else
2733 return std::pair<ProgramStateRef, ProgramStateRef>{nullptr, State};
2734 }
2735 SVal X = State->getSVal(Condition, N->getLocationContext());
2736
2737 if (X.isUnknownOrUndef()) {
2738 // Give it a chance to recover from unknown.
2739 if (const auto *Ex = dyn_cast<Expr>(Condition)) {
2740 if (Ex->getType()->isIntegralOrEnumerationType()) {
2741 // Try to recover some path-sensitivity. Right now casts of symbolic
2742 // integers that promote their values are currently not tracked well.
2743 // If 'Condition' is such an expression, try and recover the
2744 // underlying value and use that instead.
2745 SVal recovered =
2747 N->getState()->getStateManager().getContext());
2748
2749 if (!recovered.isUnknown()) {
2750 X = recovered;
2751 }
2752 }
2753 }
2754 }
2755
2756 // If the condition is still unknown, give up.
2757 if (X.isUnknownOrUndef())
2758 return std::nullopt;
2759
2760 DefinedSVal V = X.castAs<DefinedSVal>();
2761
2762 ProgramStateRef StTrue, StFalse;
2763 return State->assume(V);
2764}
2765
2767 const Stmt *Condition, NodeBuilderContext &BldCtx, ExplodedNode *Pred,
2768 ExplodedNodeSet &Dst, const CFGBlock *DstT, const CFGBlock *DstF,
2769 std::optional<unsigned> IterationsCompletedInLoop) {
2770 assert((!Condition || !isa<CXXBindTemporaryExpr>(Condition)) &&
2771 "CXXBindTemporaryExprs are handled by processBindTemporary.");
2772 const LocationContext *LCtx = Pred->getLocationContext();
2773 PrettyStackTraceLocationContext StackCrashInfo(LCtx);
2774 currBldrCtx = &BldCtx;
2775
2776 // Check for NULL conditions; e.g. "for(;;)"
2777 if (!Condition) {
2778 BranchNodeBuilder NullCondBldr(Pred, Dst, BldCtx, DstT, DstF);
2779 NullCondBldr.generateNode(Pred->getState(), true, Pred);
2780 return;
2781 }
2782
2783 if (const auto *Ex = dyn_cast<Expr>(Condition))
2784 Condition = Ex->IgnoreParens();
2785
2787 PrettyStackTraceLoc CrashInfo(getContext().getSourceManager(),
2788 Condition->getBeginLoc(),
2789 "Error evaluating branch");
2790
2791 ExplodedNodeSet CheckersOutSet;
2793 Pred, *this);
2794 // We generated only sinks.
2795 if (CheckersOutSet.empty())
2796 return;
2797
2798 BranchNodeBuilder Builder(CheckersOutSet, Dst, BldCtx, DstT, DstF);
2799 for (ExplodedNode *PredN : CheckersOutSet) {
2800 if (PredN->isSink())
2801 continue;
2802
2803 ProgramStateRef PrevState = PredN->getState();
2804
2805 ProgramStateRef StTrue = PrevState, StFalse = PrevState;
2806 if (const auto KnownCondValueAssumption = assumeCondition(Condition, PredN))
2807 std::tie(StTrue, StFalse) = *KnownCondValueAssumption;
2808
2809 if (StTrue && StFalse)
2810 assert(!isa<ObjCForCollectionStmt>(Condition));
2811
2812 if (StTrue) {
2813 // If we are processing a loop condition where two iterations have
2814 // already been completed and the false branch is also feasible, then
2815 // don't assume a third iteration because it is a redundant execution
2816 // path (unlikely to be different from earlier loop exits) and can cause
2817 // false positives if e.g. the loop iterates over a two-element structure
2818 // with an opaque condition.
2819 //
2820 // The iteration count "2" is hardcoded because it's the natural limit:
2821 // * the fact that the programmer wrote a loop (and not just an `if`)
2822 // implies that they thought that the loop body might be executed twice;
2823 // * however, there are situations where the programmer knows that there
2824 // are at most two iterations but writes a loop that appears to be
2825 // generic, because there is no special syntax for "loop with at most
2826 // two iterations". (This pattern is common in FFMPEG and appears in
2827 // many other projects as well.)
2828 bool CompletedTwoIterations = IterationsCompletedInLoop.value_or(0) >= 2;
2829 bool FalseAlsoFeasible =
2830 StFalse ||
2831 didEagerlyAssumeBifurcateAt(PrevState, dyn_cast<Expr>(Condition));
2832 bool SkipTrueBranch = CompletedTwoIterations && FalseAlsoFeasible;
2833
2834 // FIXME: This "don't assume third iteration" heuristic partially
2835 // conflicts with the widen-loop analysis option (which is off by
2836 // default). If we intend to support and stabilize the loop widening,
2837 // we must ensure that it 'plays nicely' with this logic.
2838 if (!SkipTrueBranch || AMgr.options.ShouldWidenLoops)
2839 Builder.generateNode(StTrue, true, PredN);
2840 }
2841
2842 if (StFalse)
2843 Builder.generateNode(StFalse, false, PredN);
2844 }
2845 currBldrCtx = nullptr;
2846}
2847
2848/// The GDM component containing the set of global variables which have been
2849/// previously initialized with explicit initializers.
2851 llvm::ImmutableSet<const VarDecl *>)
2852
2854 NodeBuilderContext &BuilderCtx,
2855 ExplodedNode *Pred,
2856 ExplodedNodeSet &Dst,
2857 const CFGBlock *DstT,
2858 const CFGBlock *DstF) {
2860 currBldrCtx = &BuilderCtx;
2861
2862 const auto *VD = cast<VarDecl>(DS->getSingleDecl());
2863 ProgramStateRef state = Pred->getState();
2864 bool initHasRun = state->contains<InitializedGlobalsSet>(VD);
2865 BranchNodeBuilder Builder(Pred, Dst, BuilderCtx, DstT, DstF);
2866
2867 if (!initHasRun) {
2868 state = state->add<InitializedGlobalsSet>(VD);
2869 }
2870
2871 Builder.generateNode(state, initHasRun, Pred);
2872
2873 currBldrCtx = nullptr;
2874}
2875
2876/// processIndirectGoto - Called by CoreEngine. Used to generate successor
2877/// nodes by processing the 'effects' of a computed goto jump.
2879 ProgramStateRef state = builder.getState();
2880 SVal V = state->getSVal(builder.getTarget(), builder.getLocationContext());
2881
2882 // Three possibilities:
2883 //
2884 // (1) We know the computed label.
2885 // (2) The label is NULL (or some other constant), or Undefined.
2886 // (3) We have no clue about the label. Dispatch to all targets.
2887 //
2888
2889 using iterator = IndirectGotoNodeBuilder::iterator;
2890
2891 if (std::optional<loc::GotoLabel> LV = V.getAs<loc::GotoLabel>()) {
2892 const LabelDecl *L = LV->getLabel();
2893
2894 for (iterator Succ : builder) {
2895 if (Succ.getLabel() == L) {
2896 builder.generateNode(Succ, state);
2897 return;
2898 }
2899 }
2900
2901 llvm_unreachable("No block with label.");
2902 }
2903
2904 if (isa<UndefinedVal, loc::ConcreteInt>(V)) {
2905 // Dispatch to the first target and mark it as a sink.
2906 //ExplodedNode* N = builder.generateNode(builder.begin(), state, true);
2907 // FIXME: add checker visit.
2908 // UndefBranches.insert(N);
2909 return;
2910 }
2911
2912 // This is really a catch-all. We don't support symbolics yet.
2913 // FIXME: Implement dispatch for symbolic pointers.
2914
2915 for (iterator Succ : builder)
2916 builder.generateNode(Succ, state);
2917}
2918
2920 ExplodedNode *Pred,
2921 ExplodedNodeSet &Dst,
2922 const BlockEdge &L) {
2923 SaveAndRestore<const NodeBuilderContext *> NodeContextRAII(currBldrCtx, &BC);
2924 getCheckerManager().runCheckersForBeginFunction(Dst, L, Pred, *this);
2925}
2926
2927/// ProcessEndPath - Called by CoreEngine. Used to generate end-of-path
2928/// nodes when the control reaches the end of a function.
2930 ExplodedNode *Pred,
2931 const ReturnStmt *RS) {
2932 ProgramStateRef State = Pred->getState();
2933
2934 if (!Pred->getStackFrame()->inTopFrame())
2935 State = finishArgumentConstruction(
2936 State, *getStateManager().getCallEventManager().getCaller(
2937 Pred->getStackFrame(), Pred->getState()));
2938
2939 // FIXME: We currently cannot assert that temporaries are clear, because
2940 // lifetime extended temporaries are not always modelled correctly. In some
2941 // cases when we materialize the temporary, we do
2942 // createTemporaryRegionIfNeeded(), and the region changes, and also the
2943 // respective destructor becomes automatic from temporary. So for now clean up
2944 // the state manually before asserting. Ideally, this braced block of code
2945 // should go away.
2946 {
2947 const LocationContext *FromLC = Pred->getLocationContext();
2948 const LocationContext *ToLC = FromLC->getStackFrame()->getParent();
2949 const LocationContext *LC = FromLC;
2950 while (LC != ToLC) {
2951 assert(LC && "ToLC must be a parent of FromLC!");
2952 for (auto I : State->get<ObjectsUnderConstruction>())
2953 if (I.first.getLocationContext() == LC) {
2954 // The comment above only pardons us for not cleaning up a
2955 // temporary destructor. If any other statements are found here,
2956 // it must be a separate problem.
2957 assert(I.first.getItem().getKind() ==
2959 I.first.getItem().getKind() ==
2961 State = State->remove<ObjectsUnderConstruction>(I.first);
2962 }
2963 LC = LC->getParent();
2964 }
2965 }
2966
2967 // Perform the transition with cleanups.
2968 if (State != Pred->getState()) {
2969 ExplodedNodeSet PostCleanup;
2970 NodeBuilder Bldr(Pred, PostCleanup, BC);
2971 Pred = Bldr.generateNode(Pred->getLocation(), State, Pred);
2972 if (!Pred) {
2973 // The node with clean temporaries already exists. We might have reached
2974 // it on a path on which we initialize different temporaries.
2975 return;
2976 }
2977 }
2978
2979 assert(areAllObjectsFullyConstructed(Pred->getState(),
2980 Pred->getLocationContext(),
2981 Pred->getStackFrame()->getParent()));
2982
2984
2985 ExplodedNodeSet Dst;
2986 if (Pred->getLocationContext()->inTopFrame()) {
2987 // Remove dead symbols.
2988 ExplodedNodeSet AfterRemovedDead;
2989 removeDeadOnEndOfFunction(BC, Pred, AfterRemovedDead);
2990
2991 // Notify checkers.
2992 for (const auto I : AfterRemovedDead)
2993 getCheckerManager().runCheckersForEndFunction(BC, Dst, I, *this, RS);
2994 } else {
2995 getCheckerManager().runCheckersForEndFunction(BC, Dst, Pred, *this, RS);
2996 }
2997
2998 Engine.enqueueEndOfFunction(Dst, RS);
2999}
3000
3001/// ProcessSwitch - Called by CoreEngine. Used to generate successor
3002/// nodes by processing the 'effects' of a switch statement.
3004 using iterator = SwitchNodeBuilder::iterator;
3005
3006 ProgramStateRef state = builder.getState();
3007 const Expr *CondE = builder.getCondition();
3008 SVal CondV_untested = state->getSVal(CondE, builder.getLocationContext());
3009
3010 if (CondV_untested.isUndef()) {
3011 //ExplodedNode* N = builder.generateDefaultCaseNode(state, true);
3012 // FIXME: add checker
3013 //UndefBranches.insert(N);
3014
3015 return;
3016 }
3017 DefinedOrUnknownSVal CondV = CondV_untested.castAs<DefinedOrUnknownSVal>();
3018
3019 ProgramStateRef DefaultSt = state;
3020
3021 iterator I = builder.begin(), EI = builder.end();
3022 bool defaultIsFeasible = I == EI;
3023
3024 for ( ; I != EI; ++I) {
3025 // Successor may be pruned out during CFG construction.
3026 if (!I.getBlock())
3027 continue;
3028
3029 const CaseStmt *Case = I.getCase();
3030
3031 // Evaluate the LHS of the case value.
3032 llvm::APSInt V1 = Case->getLHS()->EvaluateKnownConstInt(getContext());
3033 assert(V1.getBitWidth() == getContext().getIntWidth(CondE->getType()));
3034
3035 // Get the RHS of the case, if it exists.
3036 llvm::APSInt V2;
3037 if (const Expr *E = Case->getRHS())
3039 else
3040 V2 = V1;
3041
3042 ProgramStateRef StateCase;
3043 if (std::optional<NonLoc> NL = CondV.getAs<NonLoc>())
3044 std::tie(StateCase, DefaultSt) =
3045 DefaultSt->assumeInclusiveRange(*NL, V1, V2);
3046 else // UnknownVal
3047 StateCase = DefaultSt;
3048
3049 if (StateCase)
3050 builder.generateCaseStmtNode(I, StateCase);
3051
3052 // Now "assume" that the case doesn't match. Add this state
3053 // to the default state (if it is feasible).
3054 if (DefaultSt)
3055 defaultIsFeasible = true;
3056 else {
3057 defaultIsFeasible = false;
3058 break;
3059 }
3060 }
3061
3062 if (!defaultIsFeasible)
3063 return;
3064
3065 // If we have switch(enum value), the default branch is not
3066 // feasible if all of the enum constants not covered by 'case:' statements
3067 // are not feasible values for the switch condition.
3068 //
3069 // Note that this isn't as accurate as it could be. Even if there isn't
3070 // a case for a particular enum value as long as that enum value isn't
3071 // feasible then it shouldn't be considered for making 'default:' reachable.
3072 const SwitchStmt *SS = builder.getSwitch();
3073 const Expr *CondExpr = SS->getCond()->IgnoreParenImpCasts();
3074 if (CondExpr->getType()->getAs<EnumType>()) {
3075 if (SS->isAllEnumCasesCovered())
3076 return;
3077 }
3078
3079 builder.generateDefaultCaseNode(DefaultSt);
3080}
3081
3082//===----------------------------------------------------------------------===//
3083// Transfer functions: Loads and stores.
3084//===----------------------------------------------------------------------===//
3085
3087 ExplodedNode *Pred,
3088 ExplodedNodeSet &Dst) {
3089 StmtNodeBuilder Bldr(Pred, Dst, *currBldrCtx);
3090
3091 ProgramStateRef state = Pred->getState();
3092 const LocationContext *LCtx = Pred->getLocationContext();
3093
3094 if (const auto *VD = dyn_cast<VarDecl>(D)) {
3095 // C permits "extern void v", and if you cast the address to a valid type,
3096 // you can even do things with it. We simply pretend
3097 assert(Ex->isGLValue() || VD->getType()->isVoidType());
3098 const LocationContext *LocCtxt = Pred->getLocationContext();
3099 const Decl *D = LocCtxt->getDecl();
3100 const auto *MD = dyn_cast_or_null<CXXMethodDecl>(D);
3101 const auto *DeclRefEx = dyn_cast<DeclRefExpr>(Ex);
3102 std::optional<std::pair<SVal, QualType>> VInfo;
3103
3104 if (AMgr.options.ShouldInlineLambdas && DeclRefEx &&
3105 DeclRefEx->refersToEnclosingVariableOrCapture() && MD &&
3106 MD->getParent()->isLambda()) {
3107 // Lookup the field of the lambda.
3108 const CXXRecordDecl *CXXRec = MD->getParent();
3109 llvm::DenseMap<const ValueDecl *, FieldDecl *> LambdaCaptureFields;
3110 FieldDecl *LambdaThisCaptureField;
3111 CXXRec->getCaptureFields(LambdaCaptureFields, LambdaThisCaptureField);
3112
3113 // Sema follows a sequence of complex rules to determine whether the
3114 // variable should be captured.
3115 if (const FieldDecl *FD = LambdaCaptureFields[VD]) {
3116 Loc CXXThis =
3117 svalBuilder.getCXXThis(MD, LocCtxt->getStackFrame());
3118 SVal CXXThisVal = state->getSVal(CXXThis);
3119 VInfo = std::make_pair(state->getLValue(FD, CXXThisVal), FD->getType());
3120 }
3121 }
3122
3123 if (!VInfo)
3124 VInfo = std::make_pair(state->getLValue(VD, LocCtxt), VD->getType());
3125
3126 SVal V = VInfo->first;
3127 bool IsReference = VInfo->second->isReferenceType();
3128
3129 // For references, the 'lvalue' is the pointer address stored in the
3130 // reference region.
3131 if (IsReference) {
3132 if (const MemRegion *R = V.getAsRegion())
3133 V = state->getSVal(R);
3134 else
3135 V = UnknownVal();
3136 }
3137
3138 Bldr.generateNode(Ex, Pred, state->BindExpr(Ex, LCtx, V), nullptr,
3140 return;
3141 }
3142 if (const auto *ED = dyn_cast<EnumConstantDecl>(D)) {
3143 assert(!Ex->isGLValue());
3144 SVal V = svalBuilder.makeIntVal(ED->getInitVal());
3145 Bldr.generateNode(Ex, Pred, state->BindExpr(Ex, LCtx, V));
3146 return;
3147 }
3148 if (const auto *FD = dyn_cast<FunctionDecl>(D)) {
3149 SVal V = svalBuilder.getFunctionPointer(FD);
3150 Bldr.generateNode(Ex, Pred, state->BindExpr(Ex, LCtx, V), nullptr,
3152 return;
3153 }
3154 if (isa<FieldDecl, IndirectFieldDecl>(D)) {
3155 // Delegate all work related to pointer to members to the surrounding
3156 // operator&.
3157 return;
3158 }
3159 if (const auto *BD = dyn_cast<BindingDecl>(D)) {
3160 const auto *DD = cast<DecompositionDecl>(BD->getDecomposedDecl());
3161
3162 SVal Base = state->getLValue(DD, LCtx);
3163 if (DD->getType()->isReferenceType()) {
3164 if (const MemRegion *R = Base.getAsRegion())
3165 Base = state->getSVal(R);
3166 else
3167 Base = UnknownVal();
3168 }
3169
3170 SVal V = UnknownVal();
3171
3172 // Handle binding to data members
3173 if (const auto *ME = dyn_cast<MemberExpr>(BD->getBinding())) {
3174 const auto *Field = cast<FieldDecl>(ME->getMemberDecl());
3175 V = state->getLValue(Field, Base);
3176 }
3177 // Handle binding to arrays
3178 else if (const auto *ASE = dyn_cast<ArraySubscriptExpr>(BD->getBinding())) {
3179 SVal Idx = state->getSVal(ASE->getIdx(), LCtx);
3180
3181 // Note: the index of an element in a structured binding is automatically
3182 // created and it is a unique identifier of the specific element. Thus it
3183 // cannot be a value that varies at runtime.
3184 assert(Idx.isConstant() && "BindingDecl array index is not a constant!");
3185
3186 V = state->getLValue(BD->getType(), Idx, Base);
3187 }
3188 // Handle binding to tuple-like structures
3189 else if (const auto *HV = BD->getHoldingVar()) {
3190 V = state->getLValue(HV, LCtx);
3191
3192 if (HV->getType()->isReferenceType()) {
3193 if (const MemRegion *R = V.getAsRegion())
3194 V = state->getSVal(R);
3195 else
3196 V = UnknownVal();
3197 }
3198 } else
3199 llvm_unreachable("An unknown case of structured binding encountered!");
3200
3201 // In case of tuple-like types the references are already handled, so we
3202 // don't want to handle them again.
3203 if (BD->getType()->isReferenceType() && !BD->getHoldingVar()) {
3204 if (const MemRegion *R = V.getAsRegion())
3205 V = state->getSVal(R);
3206 else
3207 V = UnknownVal();
3208 }
3209
3210 Bldr.generateNode(Ex, Pred, state->BindExpr(Ex, LCtx, V), nullptr,
3212
3213 return;
3214 }
3215
3216 if (const auto *TPO = dyn_cast<TemplateParamObjectDecl>(D)) {
3217 // FIXME: We should meaningfully implement this.
3218 (void)TPO;
3219 return;
3220 }
3221
3222 llvm_unreachable("Support for this Decl not implemented.");
3223}
3224
3225/// VisitArrayInitLoopExpr - Transfer function for array init loop.
3227 ExplodedNode *Pred,
3228 ExplodedNodeSet &Dst) {
3229 ExplodedNodeSet CheckerPreStmt;
3230 getCheckerManager().runCheckersForPreStmt(CheckerPreStmt, Pred, Ex, *this);
3231
3232 ExplodedNodeSet EvalSet;
3233 StmtNodeBuilder Bldr(CheckerPreStmt, EvalSet, *currBldrCtx);
3234
3235 const Expr *Arr = Ex->getCommonExpr()->getSourceExpr();
3236
3237 for (auto *Node : CheckerPreStmt) {
3238
3239 // The constructor visitior has already taken care of everything.
3240 if (isa<CXXConstructExpr>(Ex->getSubExpr()))
3241 break;
3242
3243 const LocationContext *LCtx = Node->getLocationContext();
3244 ProgramStateRef state = Node->getState();
3245
3246 SVal Base = UnknownVal();
3247
3248 // As in case of this expression the sub-expressions are not visited by any
3249 // other transfer functions, they are handled by matching their AST.
3250
3251 // Case of implicit copy or move ctor of object with array member
3252 //
3253 // Note: ExprEngine::VisitMemberExpr is not able to bind the array to the
3254 // environment.
3255 //
3256 // struct S {
3257 // int arr[2];
3258 // };
3259 //
3260 //
3261 // S a;
3262 // S b = a;
3263 //
3264 // The AST in case of a *copy constructor* looks like this:
3265 // ArrayInitLoopExpr
3266 // |-OpaqueValueExpr
3267 // | `-MemberExpr <-- match this
3268 // | `-DeclRefExpr
3269 // ` ...
3270 //
3271 //
3272 // S c;
3273 // S d = std::move(d);
3274 //
3275 // In case of a *move constructor* the resulting AST looks like:
3276 // ArrayInitLoopExpr
3277 // |-OpaqueValueExpr
3278 // | `-MemberExpr <-- match this first
3279 // | `-CXXStaticCastExpr <-- match this after
3280 // | `-DeclRefExpr
3281 // ` ...
3282 if (const auto *ME = dyn_cast<MemberExpr>(Arr)) {
3283 Expr *MEBase = ME->getBase();
3284
3285 // Move ctor
3286 if (auto CXXSCE = dyn_cast<CXXStaticCastExpr>(MEBase)) {
3287 MEBase = CXXSCE->getSubExpr();
3288 }
3289
3290 auto ObjDeclExpr = cast<DeclRefExpr>(MEBase);
3291 SVal Obj = state->getLValue(cast<VarDecl>(ObjDeclExpr->getDecl()), LCtx);
3292
3293 Base = state->getLValue(cast<FieldDecl>(ME->getMemberDecl()), Obj);
3294 }
3295
3296 // Case of lambda capture and decomposition declaration
3297 //
3298 // int arr[2];
3299 //
3300 // [arr]{ int a = arr[0]; }();
3301 // auto[a, b] = arr;
3302 //
3303 // In both of these cases the AST looks like the following:
3304 // ArrayInitLoopExpr
3305 // |-OpaqueValueExpr
3306 // | `-DeclRefExpr <-- match this
3307 // ` ...
3308 if (const DeclRefExpr *DRE = dyn_cast<DeclRefExpr>(Arr))
3309 Base = state->getLValue(cast<VarDecl>(DRE->getDecl()), LCtx);
3310
3311 // Create a lazy compound value to the original array
3312 if (const MemRegion *R = Base.getAsRegion())
3313 Base = state->getSVal(R);
3314 else
3315 Base = UnknownVal();
3316
3317 Bldr.generateNode(Ex, Pred, state->BindExpr(Ex, LCtx, Base));
3318 }
3319
3320 getCheckerManager().runCheckersForPostStmt(Dst, EvalSet, Ex, *this);
3321}
3322
3323/// VisitArraySubscriptExpr - Transfer function for array accesses
3325 ExplodedNode *Pred,
3326 ExplodedNodeSet &Dst){
3327 const Expr *Base = A->getBase()->IgnoreParens();
3328 const Expr *Idx = A->getIdx()->IgnoreParens();
3329
3330 ExplodedNodeSet CheckerPreStmt;
3331 getCheckerManager().runCheckersForPreStmt(CheckerPreStmt, Pred, A, *this);
3332
3333 ExplodedNodeSet EvalSet;
3334 StmtNodeBuilder Bldr(CheckerPreStmt, EvalSet, *currBldrCtx);
3335
3336 bool IsVectorType = A->getBase()->getType()->isVectorType();
3337
3338 // The "like" case is for situations where C standard prohibits the type to
3339 // be an lvalue, e.g. taking the address of a subscript of an expression of
3340 // type "void *".
3341 bool IsGLValueLike = A->isGLValue() ||
3342 (A->getType().isCForbiddenLValueType() && !AMgr.getLangOpts().CPlusPlus);
3343
3344 for (auto *Node : CheckerPreStmt) {
3345 const LocationContext *LCtx = Node->getLocationContext();
3346 ProgramStateRef state = Node->getState();
3347
3348 if (IsGLValueLike) {
3349 QualType T = A->getType();
3350
3351 // One of the forbidden LValue types! We still need to have sensible
3352 // symbolic locations to represent this stuff. Note that arithmetic on
3353 // void pointers is a GCC extension.
3354 if (T->isVoidType())
3355 T = getContext().CharTy;
3356
3357 SVal V = state->getLValue(T,
3358 state->getSVal(Idx, LCtx),
3359 state->getSVal(Base, LCtx));
3360 Bldr.generateNode(A, Node, state->BindExpr(A, LCtx, V), nullptr,
3362 } else if (IsVectorType) {
3363 // FIXME: non-glvalue vector reads are not modelled.
3364 Bldr.generateNode(A, Node, state, nullptr);
3365 } else {
3366 llvm_unreachable("Array subscript should be an lValue when not \
3367a vector and not a forbidden lvalue type");
3368 }
3369 }
3370
3371 getCheckerManager().runCheckersForPostStmt(Dst, EvalSet, A, *this);
3372}
3373
3374/// VisitMemberExpr - Transfer function for member expressions.
3376 ExplodedNodeSet &Dst) {
3377 // FIXME: Prechecks eventually go in ::Visit().
3378 ExplodedNodeSet CheckedSet;
3379 getCheckerManager().runCheckersForPreStmt(CheckedSet, Pred, M, *this);
3380
3381 ExplodedNodeSet EvalSet;
3383
3384 // Handle static member variables and enum constants accessed via
3385 // member syntax.
3386 if (isa<VarDecl, EnumConstantDecl>(Member)) {
3387 for (const auto I : CheckedSet)
3388 VisitCommonDeclRefExpr(M, Member, I, EvalSet);
3389 } else {
3390 StmtNodeBuilder Bldr(CheckedSet, EvalSet, *currBldrCtx);
3391 ExplodedNodeSet Tmp;
3392
3393 for (const auto I : CheckedSet) {
3394 ProgramStateRef state = I->getState();
3395 const LocationContext *LCtx = I->getLocationContext();
3396 Expr *BaseExpr = M->getBase();
3397
3398 // Handle C++ method calls.
3399 if (const auto *MD = dyn_cast<CXXMethodDecl>(Member)) {
3400 if (MD->isImplicitObjectMemberFunction())
3401 state = createTemporaryRegionIfNeeded(state, LCtx, BaseExpr);
3402
3403 SVal MDVal = svalBuilder.getFunctionPointer(MD);
3404 state = state->BindExpr(M, LCtx, MDVal);
3405
3406 Bldr.generateNode(M, I, state);
3407 continue;
3408 }
3409
3410 // Handle regular struct fields / member variables.
3411 const SubRegion *MR = nullptr;
3412 state = createTemporaryRegionIfNeeded(state, LCtx, BaseExpr,
3413 /*Result=*/nullptr,
3414 /*OutRegionWithAdjustments=*/&MR);
3415 SVal baseExprVal =
3416 MR ? loc::MemRegionVal(MR) : state->getSVal(BaseExpr, LCtx);
3417
3418 // FIXME: Copied from RegionStoreManager::bind()
3419 if (const auto *SR =
3420 dyn_cast_or_null<SymbolicRegion>(baseExprVal.getAsRegion())) {
3421 QualType T = SR->getPointeeStaticType();
3422 baseExprVal =
3423 loc::MemRegionVal(getStoreManager().GetElementZeroRegion(SR, T));
3424 }
3425
3426 const auto *field = cast<FieldDecl>(Member);
3427 SVal L = state->getLValue(field, baseExprVal);
3428
3429 if (M->isGLValue() || M->getType()->isArrayType()) {
3430 // We special-case rvalues of array type because the analyzer cannot
3431 // reason about them, since we expect all regions to be wrapped in Locs.
3432 // We instead treat these as lvalues and assume that they will decay to
3433 // pointers as soon as they are used.
3434 if (!M->isGLValue()) {
3435 assert(M->getType()->isArrayType());
3436 const auto *PE =
3437 dyn_cast<ImplicitCastExpr>(I->getParentMap().getParentIgnoreParens(M));
3438 if (!PE || PE->getCastKind() != CK_ArrayToPointerDecay) {
3439 llvm_unreachable("should always be wrapped in ArrayToPointerDecay");
3440 }
3441 }
3442
3443 if (field->getType()->isReferenceType()) {
3444 if (const MemRegion *R = L.getAsRegion())
3445 L = state->getSVal(R);
3446 else
3447 L = UnknownVal();
3448 }
3449
3450 Bldr.generateNode(M, I, state->BindExpr(M, LCtx, L), nullptr,
3452 } else {
3453 Bldr.takeNodes(I);
3454 evalLoad(Tmp, M, M, I, state, L);
3455 Bldr.addNodes(Tmp);
3456 }
3457 }
3458 }
3459
3460 getCheckerManager().runCheckersForPostStmt(Dst, EvalSet, M, *this);
3461}
3462
3464 ExplodedNodeSet &Dst) {
3465 ExplodedNodeSet AfterPreSet;
3466 getCheckerManager().runCheckersForPreStmt(AfterPreSet, Pred, AE, *this);
3467
3468 // For now, treat all the arguments to C11 atomics as escaping.
3469 // FIXME: Ideally we should model the behavior of the atomics precisely here.
3470
3471 ExplodedNodeSet AfterInvalidateSet;
3472 StmtNodeBuilder Bldr(AfterPreSet, AfterInvalidateSet, *currBldrCtx);
3473
3474 for (const auto I : AfterPreSet) {
3475 ProgramStateRef State = I->getState();
3476 const LocationContext *LCtx = I->getLocationContext();
3477
3478 SmallVector<SVal, 8> ValuesToInvalidate;
3479 for (unsigned SI = 0, Count = AE->getNumSubExprs(); SI != Count; SI++) {
3480 const Expr *SubExpr = AE->getSubExprs()[SI];
3481 SVal SubExprVal = State->getSVal(SubExpr, LCtx);
3482 ValuesToInvalidate.push_back(SubExprVal);
3483 }
3484
3485 State = State->invalidateRegions(ValuesToInvalidate, AE,
3486 currBldrCtx->blockCount(),
3487 LCtx,
3488 /*CausedByPointerEscape*/true,
3489 /*Symbols=*/nullptr);
3490
3491 SVal ResultVal = UnknownVal();
3492 State = State->BindExpr(AE, LCtx, ResultVal);
3493 Bldr.generateNode(AE, I, State, nullptr,
3495 }
3496
3497 getCheckerManager().runCheckersForPostStmt(Dst, AfterInvalidateSet, AE, *this);
3498}
3499
3500// A value escapes in four possible cases:
3501// (1) We are binding to something that is not a memory region.
3502// (2) We are binding to a MemRegion that does not have stack storage.
3503// (3) We are binding to a top-level parameter region with a non-trivial
3504// destructor. We won't see the destructor during analysis, but it's there.
3505// (4) We are binding to a MemRegion with stack storage that the store
3506// does not understand.
3508 ProgramStateRef State, ArrayRef<std::pair<SVal, SVal>> LocAndVals,
3509 const LocationContext *LCtx, PointerEscapeKind Kind,
3510 const CallEvent *Call) {
3511 SmallVector<SVal, 8> Escaped;
3512 for (const std::pair<SVal, SVal> &LocAndVal : LocAndVals) {
3513 // Cases (1) and (2).
3514 const MemRegion *MR = LocAndVal.first.getAsRegion();
3515 if (!MR ||
3516 !isa<StackSpaceRegion, StaticGlobalSpaceRegion>(MR->getMemorySpace())) {
3517 Escaped.push_back(LocAndVal.second);
3518 continue;
3519 }
3520
3521 // Case (3).
3522 if (const auto *VR = dyn_cast<VarRegion>(MR->getBaseRegion()))
3523 if (VR->hasStackParametersStorage() && VR->getStackFrame()->inTopFrame())
3524 if (const auto *RD = VR->getValueType()->getAsCXXRecordDecl())
3525 if (!RD->hasTrivialDestructor()) {
3526 Escaped.push_back(LocAndVal.second);
3527 continue;
3528 }
3529
3530 // Case (4): in order to test that, generate a new state with the binding
3531 // added. If it is the same state, then it escapes (since the store cannot
3532 // represent the binding).
3533 // Do this only if we know that the store is not supposed to generate the
3534 // same state.
3535 SVal StoredVal = State->getSVal(MR);
3536 if (StoredVal != LocAndVal.second)
3537 if (State ==
3538 (State->bindLoc(loc::MemRegionVal(MR), LocAndVal.second, LCtx)))
3539 Escaped.push_back(LocAndVal.second);
3540 }
3541
3542 if (Escaped.empty())
3543 return State;
3544
3545 return escapeValues(State, Escaped, Kind, Call);
3546}
3547
3550 SVal Val, const LocationContext *LCtx) {
3551 std::pair<SVal, SVal> LocAndVal(Loc, Val);
3552 return processPointerEscapedOnBind(State, LocAndVal, LCtx, PSK_EscapeOnBind,
3553 nullptr);
3554}
3555
3558 const InvalidatedSymbols *Invalidated,
3559 ArrayRef<const MemRegion *> ExplicitRegions,
3560 const CallEvent *Call,
3562 if (!Invalidated || Invalidated->empty())
3563 return State;
3564
3565 if (!Call)
3567 *Invalidated,
3568 nullptr,
3570 &ITraits);
3571
3572 // If the symbols were invalidated by a call, we want to find out which ones
3573 // were invalidated directly due to being arguments to the call.
3574 InvalidatedSymbols SymbolsDirectlyInvalidated;
3575 for (const auto I : ExplicitRegions) {
3576 if (const SymbolicRegion *R = I->StripCasts()->getAs<SymbolicRegion>())
3577 SymbolsDirectlyInvalidated.insert(R->getSymbol());
3578 }
3579
3580 InvalidatedSymbols SymbolsIndirectlyInvalidated;
3581 for (const auto &sym : *Invalidated) {
3582 if (SymbolsDirectlyInvalidated.count(sym))
3583 continue;
3584 SymbolsIndirectlyInvalidated.insert(sym);
3585 }
3586
3587 if (!SymbolsDirectlyInvalidated.empty())
3589 SymbolsDirectlyInvalidated, Call, PSK_DirectEscapeOnCall, &ITraits);
3590
3591 // Notify about the symbols that get indirectly invalidated by the call.
3592 if (!SymbolsIndirectlyInvalidated.empty())
3594 SymbolsIndirectlyInvalidated, Call, PSK_IndirectEscapeOnCall, &ITraits);
3595
3596 return State;
3597}
3598
3599/// evalBind - Handle the semantics of binding a value to a specific location.
3600/// This method is used by evalStore and (soon) VisitDeclStmt, and others.
3601void ExprEngine::evalBind(ExplodedNodeSet &Dst, const Stmt *StoreE,
3602 ExplodedNode *Pred,
3603 SVal location, SVal Val,
3604 bool atDeclInit, const ProgramPoint *PP) {
3605 const LocationContext *LC = Pred->getLocationContext();
3606 PostStmt PS(StoreE, LC);
3607 if (!PP)
3608 PP = &PS;
3609
3610 // Do a previsit of the bind.
3611 ExplodedNodeSet CheckedSet;
3612 getCheckerManager().runCheckersForBind(CheckedSet, Pred, location, Val,
3613 StoreE, *this, *PP);
3614
3615 StmtNodeBuilder Bldr(CheckedSet, Dst, *currBldrCtx);
3616
3617 // If the location is not a 'Loc', it will already be handled by
3618 // the checkers. There is nothing left to do.
3619 if (!isa<Loc>(location)) {
3620 const ProgramPoint L = PostStore(StoreE, LC, /*Loc*/nullptr,
3621 /*tag*/nullptr);
3622 ProgramStateRef state = Pred->getState();
3623 state = processPointerEscapedOnBind(state, location, Val, LC);
3624 Bldr.generateNode(L, state, Pred);
3625 return;
3626 }
3627
3628 for (const auto PredI : CheckedSet) {
3629 ProgramStateRef state = PredI->getState();
3630
3631 state = processPointerEscapedOnBind(state, location, Val, LC);
3632
3633 // When binding the value, pass on the hint that this is a initialization.
3634 // For initializations, we do not need to inform clients of region
3635 // changes.
3636 state = state->bindLoc(location.castAs<Loc>(),
3637 Val, LC, /* notifyChanges = */ !atDeclInit);
3638
3639 const MemRegion *LocReg = nullptr;
3640 if (std::optional<loc::MemRegionVal> LocRegVal =
3641 location.getAs<loc::MemRegionVal>()) {
3642 LocReg = LocRegVal->getRegion();
3643 }
3644
3645 const ProgramPoint L = PostStore(StoreE, LC, LocReg, nullptr);
3646 Bldr.generateNode(L, state, PredI);
3647 }
3648}
3649
3650/// evalStore - Handle the semantics of a store via an assignment.
3651/// @param Dst The node set to store generated state nodes
3652/// @param AssignE The assignment expression if the store happens in an
3653/// assignment.
3654/// @param LocationE The location expression that is stored to.
3655/// @param state The current simulation state
3656/// @param location The location to store the value
3657/// @param Val The value to be stored
3659 const Expr *LocationE,
3660 ExplodedNode *Pred,
3661 ProgramStateRef state, SVal location, SVal Val,
3662 const ProgramPointTag *tag) {
3663 // Proceed with the store. We use AssignE as the anchor for the PostStore
3664 // ProgramPoint if it is non-NULL, and LocationE otherwise.
3665 const Expr *StoreE = AssignE ? AssignE : LocationE;
3666
3667 // Evaluate the location (checks for bad dereferences).
3668 ExplodedNodeSet Tmp;
3669 evalLocation(Tmp, AssignE, LocationE, Pred, state, location, false);
3670
3671 if (Tmp.empty())
3672 return;
3673
3674 if (location.isUndef())
3675 return;
3676
3677 for (const auto I : Tmp)
3678 evalBind(Dst, StoreE, I, location, Val, false);
3679}
3680
3682 const Expr *NodeEx,
3683 const Expr *BoundEx,
3684 ExplodedNode *Pred,
3685 ProgramStateRef state,
3686 SVal location,
3687 const ProgramPointTag *tag,
3688 QualType LoadTy) {
3689 assert(!isa<NonLoc>(location) && "location cannot be a NonLoc.");
3690 assert(NodeEx);
3691 assert(BoundEx);
3692 // Evaluate the location (checks for bad dereferences).
3693 ExplodedNodeSet Tmp;
3694 evalLocation(Tmp, NodeEx, BoundEx, Pred, state, location, true);
3695 if (Tmp.empty())
3696 return;
3697
3698 StmtNodeBuilder Bldr(Tmp, Dst, *currBldrCtx);
3699 if (location.isUndef())
3700 return;
3701
3702 // Proceed with the load.
3703 for (const auto I : Tmp) {
3704 state = I->getState();
3705 const LocationContext *LCtx = I->getLocationContext();
3706
3707 SVal V = UnknownVal();
3708 if (location.isValid()) {
3709 if (LoadTy.isNull())
3710 LoadTy = BoundEx->getType();
3711 V = state->getSVal(location.castAs<Loc>(), LoadTy);
3712 }
3713
3714 Bldr.generateNode(NodeEx, I, state->BindExpr(BoundEx, LCtx, V), tag,
3716 }
3717}
3718
3719void ExprEngine::evalLocation(ExplodedNodeSet &Dst,
3720 const Stmt *NodeEx,
3721 const Stmt *BoundEx,
3722 ExplodedNode *Pred,
3723 ProgramStateRef state,
3724 SVal location,
3725 bool isLoad) {
3726 StmtNodeBuilder BldrTop(Pred, Dst, *currBldrCtx);
3727 // Early checks for performance reason.
3728 if (location.isUnknown()) {
3729 return;
3730 }
3731
3732 ExplodedNodeSet Src;
3733 BldrTop.takeNodes(Pred);
3734 StmtNodeBuilder Bldr(Pred, Src, *currBldrCtx);
3735 if (Pred->getState() != state) {
3736 // Associate this new state with an ExplodedNode.
3737 // FIXME: If I pass null tag, the graph is incorrect, e.g for
3738 // int *p;
3739 // p = 0;
3740 // *p = 0xDEADBEEF;
3741 // "p = 0" is not noted as "Null pointer value stored to 'p'" but
3742 // instead "int *p" is noted as
3743 // "Variable 'p' initialized to a null pointer value"
3744
3745 static SimpleProgramPointTag tag(TagProviderName, "Location");
3746 Bldr.generateNode(NodeEx, Pred, state, &tag);
3747 }
3748 ExplodedNodeSet Tmp;
3749 getCheckerManager().runCheckersForLocation(Tmp, Src, location, isLoad,
3750 NodeEx, BoundEx, *this);
3751 BldrTop.addNodes(Tmp);
3752}
3753
3754std::pair<const ProgramPointTag *, const ProgramPointTag *>
3756 static SimpleProgramPointTag TrueTag(TagProviderName, "Eagerly Assume True"),
3757 FalseTag(TagProviderName, "Eagerly Assume False");
3758
3759 return std::make_pair(&TrueTag, &FalseTag);
3760}
3761
3762/// If the last EagerlyAssume attempt was successful (i.e. the true and false
3763/// cases were both feasible), this state trait stores the expression where it
3764/// happened; otherwise this holds nullptr.
3765REGISTER_TRAIT_WITH_PROGRAMSTATE(LastEagerlyAssumeExprIfSuccessful,
3766 const Expr *)
3767
3769 ExplodedNodeSet &Src,
3770 const Expr *Ex) {
3771 StmtNodeBuilder Bldr(Src, Dst, *currBldrCtx);
3772
3773 for (ExplodedNode *Pred : Src) {
3774 // Test if the previous node was as the same expression. This can happen
3775 // when the expression fails to evaluate to anything meaningful and
3776 // (as an optimization) we don't generate a node.
3777 ProgramPoint P = Pred->getLocation();
3778 if (!P.getAs<PostStmt>() || P.castAs<PostStmt>().getStmt() != Ex) {
3779 continue;
3780 }
3781
3782 ProgramStateRef State = Pred->getState();
3783 State = State->set<LastEagerlyAssumeExprIfSuccessful>(nullptr);
3784 SVal V = State->getSVal(Ex, Pred->getLocationContext());
3785 std::optional<nonloc::SymbolVal> SEV = V.getAs<nonloc::SymbolVal>();
3786 if (SEV && SEV->isExpression()) {
3787 const auto &[TrueTag, FalseTag] = getEagerlyAssumeBifurcationTags();
3788
3789 auto [StateTrue, StateFalse] = State->assume(*SEV);
3790
3791 if (StateTrue && StateFalse) {
3792 StateTrue = StateTrue->set<LastEagerlyAssumeExprIfSuccessful>(Ex);
3793 StateFalse = StateFalse->set<LastEagerlyAssumeExprIfSuccessful>(Ex);
3794 }
3795
3796 // First assume that the condition is true.
3797 if (StateTrue) {
3798 SVal Val = svalBuilder.makeIntVal(1U, Ex->getType());
3799 StateTrue = StateTrue->BindExpr(Ex, Pred->getLocationContext(), Val);
3800 Bldr.generateNode(Ex, Pred, StateTrue, TrueTag);
3801 }
3802
3803 // Next, assume that the condition is false.
3804 if (StateFalse) {
3805 SVal Val = svalBuilder.makeIntVal(0U, Ex->getType());
3806 StateFalse = StateFalse->BindExpr(Ex, Pred->getLocationContext(), Val);
3807 Bldr.generateNode(Ex, Pred, StateFalse, FalseTag);
3808 }
3809 }
3810 }
3811}
3812
3814 const Expr *Ex) const {
3815 return Ex && State->get<LastEagerlyAssumeExprIfSuccessful>() == Ex;
3816}
3817
3819 ExplodedNodeSet &Dst) {
3820 StmtNodeBuilder Bldr(Pred, Dst, *currBldrCtx);
3821 // We have processed both the inputs and the outputs. All of the outputs
3822 // should evaluate to Locs. Nuke all of their values.
3823
3824 // FIXME: Some day in the future it would be nice to allow a "plug-in"
3825 // which interprets the inline asm and stores proper results in the
3826 // outputs.
3827
3828 ProgramStateRef state = Pred->getState();
3829
3830 for (const Expr *O : A->outputs()) {
3831 SVal X = state->getSVal(O, Pred->getLocationContext());
3832 assert(!isa<NonLoc>(X)); // Should be an Lval, or unknown, undef.
3833
3834 if (std::optional<Loc> LV = X.getAs<Loc>())
3835 state = state->invalidateRegions(*LV, A, currBldrCtx->blockCount(),
3836 Pred->getLocationContext(),
3837 /*CausedByPointerEscape=*/true);
3838 }
3839
3840 // Do not reason about locations passed inside inline assembly.
3841 for (const Expr *I : A->inputs()) {
3842 SVal X = state->getSVal(I, Pred->getLocationContext());
3843
3844 if (std::optional<Loc> LV = X.getAs<Loc>())
3845 state = state->invalidateRegions(*LV, A, currBldrCtx->blockCount(),
3846 Pred->getLocationContext(),
3847 /*CausedByPointerEscape=*/true);
3848 }
3849
3850 Bldr.generateNode(A, Pred, state);
3851}
3852
3854 ExplodedNodeSet &Dst) {
3855 StmtNodeBuilder Bldr(Pred, Dst, *currBldrCtx);
3856 Bldr.generateNode(A, Pred, Pred->getState());
3857}
3858
3859//===----------------------------------------------------------------------===//
3860// Visualization.
3861//===----------------------------------------------------------------------===//
3862
3863namespace llvm {
3864
3865template<>
3866struct DOTGraphTraits<ExplodedGraph*> : public DefaultDOTGraphTraits {
3867 DOTGraphTraits (bool isSimple = false) : DefaultDOTGraphTraits(isSimple) {}
3868
3869 static bool nodeHasBugReport(const ExplodedNode *N) {
3870 BugReporter &BR = static_cast<ExprEngine &>(
3871 N->getState()->getStateManager().getOwningEngine()).getBugReporter();
3872
3873 for (const auto &Class : BR.equivalenceClasses()) {
3874 for (const auto &Report : Class.getReports()) {
3875 const auto *PR = dyn_cast<PathSensitiveBugReport>(Report.get());
3876 if (!PR)
3877 continue;
3878 const ExplodedNode *EN = PR->getErrorNode();
3879 if (EN->getState() == N->getState() &&
3880 EN->getLocation() == N->getLocation())
3881 return true;
3882 }
3883 }
3884 return false;
3885 }
3886
3887 /// \p PreCallback: callback before break.
3888 /// \p PostCallback: callback after break.
3889 /// \p Stop: stop iteration if returns @c true
3890 /// \return Whether @c Stop ever returned @c true.
3892 const ExplodedNode *N,
3893 llvm::function_ref<void(const ExplodedNode *)> PreCallback,
3894 llvm::function_ref<void(const ExplodedNode *)> PostCallback,
3895 llvm::function_ref<bool(const ExplodedNode *)> Stop) {
3896 while (true) {
3897 PreCallback(N);
3898 if (Stop(N))
3899 return true;
3900
3901 if (N->succ_size() != 1 || !isNodeHidden(N->getFirstSucc(), nullptr))
3902 break;
3903 PostCallback(N);
3904
3905 N = N->getFirstSucc();
3906 }
3907 return false;
3908 }
3909
3910 static bool isNodeHidden(const ExplodedNode *N, const ExplodedGraph *G) {
3911 return N->isTrivial();
3912 }
3913
3914 static std::string getNodeLabel(const ExplodedNode *N, ExplodedGraph *G){
3915 std::string Buf;
3916 llvm::raw_string_ostream Out(Buf);
3917
3918 const bool IsDot = true;
3919 const unsigned int Space = 1;
3920 ProgramStateRef State = N->getState();
3921
3922 Out << "{ \"state_id\": " << State->getID()
3923 << ",\\l";
3924
3925 Indent(Out, Space, IsDot) << "\"program_points\": [\\l";
3926
3927 // Dump program point for all the previously skipped nodes.
3928 traverseHiddenNodes(
3929 N,
3930 [&](const ExplodedNode *OtherNode) {
3931 Indent(Out, Space + 1, IsDot) << "{ ";
3932 OtherNode->getLocation().printJson(Out, /*NL=*/"\\l");
3933 Out << ", \"tag\": ";
3934 if (const ProgramPointTag *Tag = OtherNode->getLocation().getTag())
3935 Out << '\"' << Tag->getTagDescription() << '\"';
3936 else
3937 Out << "null";
3938 Out << ", \"node_id\": " << OtherNode->getID() <<
3939 ", \"is_sink\": " << OtherNode->isSink() <<
3940 ", \"has_report\": " << nodeHasBugReport(OtherNode) << " }";
3941 },
3942 // Adds a comma and a new-line between each program point.
3943 [&](const ExplodedNode *) { Out << ",\\l"; },
3944 [&](const ExplodedNode *) { return false; });
3945
3946 Out << "\\l"; // Adds a new-line to the last program point.
3947 Indent(Out, Space, IsDot) << "],\\l";
3948
3949 State->printDOT(Out, N->getLocationContext(), Space);
3950
3951 Out << "\\l}\\l";
3952 return Buf;
3953 }
3954};
3955
3956} // namespace llvm
3957
3958void ExprEngine::ViewGraph(bool trim) {
3959 std::string Filename = DumpGraph(trim);
3960 llvm::DisplayGraph(Filename, false, llvm::GraphProgram::DOT);
3961}
3962
3964 std::string Filename = DumpGraph(Nodes);
3965 llvm::DisplayGraph(Filename, false, llvm::GraphProgram::DOT);
3966}
3967
3968std::string ExprEngine::DumpGraph(bool trim, StringRef Filename) {
3969 if (trim) {
3970 std::vector<const ExplodedNode *> Src;
3971
3972 // Iterate through the reports and get their nodes.
3973 for (const auto &Class : BR.equivalenceClasses()) {
3974 const auto *R =
3975 dyn_cast<PathSensitiveBugReport>(Class.getReports()[0].get());
3976 if (!R)
3977 continue;
3978 const auto *N = const_cast<ExplodedNode *>(R->getErrorNode());
3979 Src.push_back(N);
3980 }
3981 return DumpGraph(Src, Filename);
3982 }
3983
3984 return llvm::WriteGraph(&G, "ExprEngine", /*ShortNames=*/false,
3985 /*Title=*/"Exploded Graph",
3986 /*Filename=*/std::string(Filename));
3987}
3988
3990 StringRef Filename) {
3991 std::unique_ptr<ExplodedGraph> TrimmedG(G.trim(Nodes));
3992
3993 if (!TrimmedG.get()) {
3994 llvm::errs() << "warning: Trimmed ExplodedGraph is empty.\n";
3995 return "";
3996 }
3997
3998 return llvm::WriteGraph(TrimmedG.get(), "TrimmedExprEngine",
3999 /*ShortNames=*/false,
4000 /*Title=*/"Trimmed Exploded Graph",
4001 /*Filename=*/std::string(Filename));
4002}
4003
4005 static int index = 0;
4006 return &index;
4007}
4008
4009void ExprEngine::anchor() { }
Defines the clang::ASTContext interface.
#define V(N, I)
Definition: ASTContext.h:3460
BoundNodesTreeBuilder Nodes
DynTypedNode Node
StringRef P
This file defines AnalysisDeclContext, a class that manages the analysis context data for context sen...
static const MemRegion * getRegion(const CallEvent &Call, const MutexDescriptor &Descriptor, bool IsLock)
const Decl * D
Expr * E
static Decl::Kind getKind(const Decl *D)
Definition: DeclBase.cpp:1181
Defines the C++ Decl subclasses, other than those for templates (found in DeclTemplate....
Defines the clang::Expr interface and subclasses for C++ expressions.
static const Stmt * getRightmostLeaf(const Stmt *Condition)
std::pair< const ObjCForCollectionStmt *, const LocationContext * > ObjCForLctxPair
static SVal RecoverCastedSymbol(ProgramStateRef state, const Stmt *Condition, const LocationContext *LCtx, ASTContext &Ctx)
RecoverCastedSymbol - A helper function for ProcessBranch that is used to try to recover some path-se...
static void printObjectsUnderConstructionJson(raw_ostream &Out, ProgramStateRef State, const char *NL, const LocationContext *LCtx, unsigned int Space=0, bool IsDot=false)
Definition: ExprEngine.cpp:685
static void printIndicesOfElementsToConstructJson(raw_ostream &Out, ProgramStateRef State, const char *NL, const LocationContext *LCtx, unsigned int Space=0, bool IsDot=false)
Definition: ExprEngine.cpp:731
static void printStateTraitWithLocationContextJson(raw_ostream &Out, ProgramStateRef State, const LocationContext *LCtx, const char *NL, unsigned int Space, bool IsDot, const char *jsonPropertyName, Printer printer, Args &&...args)
A helper function to generalize program state trait printing.
Definition: ExprEngine.cpp:910
static void printPendingArrayDestructionsJson(raw_ostream &Out, ProgramStateRef State, const char *NL, const LocationContext *LCtx, unsigned int Space=0, bool IsDot=false)
Definition: ExprEngine.cpp:854
static bool shouldRemoveDeadBindings(AnalysisManager &AMgr, const Stmt *S, const ExplodedNode *Pred, const LocationContext *LC)
static const Stmt * ResolveCondition(const Stmt *Condition, const CFGBlock *B)
REGISTER_TRAIT_WITH_PROGRAMSTATE(ObjectsUnderConstruction, ObjectsUnderConstructionMap) typedef llvm REGISTER_TRAIT_WITH_PROGRAMSTATE(IndexOfElementToConstruct, IndexOfElementToConstructMap) typedef llvm typedef llvm::ImmutableMap< const LocationContext *, unsigned > PendingArrayDestructionMap
Definition: ExprEngine.cpp:199
static void printPendingInitLoopJson(raw_ostream &Out, ProgramStateRef State, const char *NL, const LocationContext *LCtx, unsigned int Space=0, bool IsDot=false)
Definition: ExprEngine.cpp:793
llvm::ImmutableMap< ConstructedObjectKey, SVal > ObjectsUnderConstructionMap
Definition: ExprEngine.cpp:186
static std::optional< std::pair< ProgramStateRef, ProgramStateRef > > assumeCondition(const Stmt *Condition, ExplodedNode *N)
Split the state on whether there are any more iterations left for this loop.
STATISTIC(NumRemoveDeadBindings, "The # of times RemoveDeadBindings is called")
StringRef Filename
Definition: Format.cpp:3053
bool PostVisit
Definition: HTMLLogger.cpp:154
Defines the clang::IdentifierInfo, clang::IdentifierTable, and clang::Selector interfaces.
#define X(type, name)
Definition: Value.h:144
Forward-declares and imports various common LLVM datatypes that clang wants to use unqualified.
Defines the clang::LangOptions interface.
This header contains the declarations of functions which are used to decide which loops should be com...
This header contains the declarations of functions which are used to widen loops which do not otherwi...
Defines the PrettyStackTraceEntry class, which is used to make crashes give more contextual informati...
#define REGISTER_MAP_WITH_PROGRAMSTATE(Name, Key, Value)
Declares an immutable map of type NameTy, suitable for placement into the ProgramState.
#define REGISTER_TRAIT_WITH_PROGRAMSTATE(Name, Type)
Declares a program state trait for type Type called Name, and introduce a type named NameTy.
static bool isRecordType(QualType T)
Defines the clang::SourceLocation class and associated facilities.
Defines the SourceManager interface.
Defines various enumerations that describe declaration and type specifiers.
Defines the Objective-C statement AST node classes.
C Language Family Type Representation.
__device__ int
#define bool
Definition: amdgpuintrin.h:20
Holds long-lived AST nodes (such as types and decls) that can be referred to throughout the semantic ...
Definition: ASTContext.h:188
SourceManager & getSourceManager()
Definition: ASTContext.h:741
QualType getBaseElementType(const ArrayType *VAT) const
Return the innermost element type of an array type.
CanQualType CharTy
Definition: ASTContext.h:1162
const clang::PrintingPolicy & getPrintingPolicy() const
Definition: ASTContext.h:733
const ArrayType * getAsArrayType(QualType T) const
Type Query functions.
uint64_t getTypeSize(QualType T) const
Return the size of the specified (complete) type T, in bits.
Definition: ASTContext.h:2489
ASTContext & getASTContext() const
Stores options for the analyzer from the command line.
unsigned NoRetryExhausted
Do not re-analyze paths leading to exhausted nodes with a different strategy.
unsigned maxBlockVisitOnPath
The maximum number of times the analyzer visits a block.
AnalysisPurgeMode AnalysisPurgeOpt
Represents a loop initializing the elements of an array.
Definition: Expr.h:5752
OpaqueValueExpr * getCommonExpr() const
Get the common subexpression shared by all initializations (the source array).
Definition: Expr.h:5767
Expr * getSubExpr() const
Get the initializer to use for each array element.
Definition: Expr.h:5772
ArraySubscriptExpr - [C99 6.5.2.1] Array Subscripting.
Definition: Expr.h:2718
Represents an array type, per C99 6.7.5.2 - Array Declarators.
Definition: Type.h:3577
outputs_range outputs()
Definition: Stmt.h:3260
inputs_range inputs()
Definition: Stmt.h:3231
AtomicExpr - Variadic atomic builtins: __atomic_exchange, __atomic_fetch_*, __atomic_load,...
Definition: Expr.h:6678
Expr ** getSubExprs()
Definition: Expr.h:6755
static unsigned getNumSubExprs(AtomicOp Op)
Determine the number of arguments the specified atomic builtin should have.
Definition: Expr.cpp:5074
Represents C++ object destructor implicitly generated for automatic object or temporary bound to cons...
Definition: CFG.h:417
const VarDecl * getVarDecl() const
Definition: CFG.h:422
const Stmt * getTriggerStmt() const
Definition: CFG.h:427
Represents C++ object destructor implicitly generated for base object in destructor.
Definition: CFG.h:468
Represents a single basic block in a source-level CFG.
Definition: CFG.h:604
CFGTerminator getTerminator() const
Definition: CFG.h:1079
Stmt * getTerminatorStmt()
Definition: CFG.h:1081
Represents C++ object destructor generated from a call to delete.
Definition: CFG.h:442
const CXXDeleteExpr * getDeleteExpr() const
Definition: CFG.h:452
Represents a top-level expression in a basic block.
Definition: CFG.h:55
@ CleanupFunction
Definition: CFG.h:79
@ LifetimeEnds
Definition: CFG.h:63
@ CXXRecordTypedCall
Definition: CFG.h:68
@ AutomaticObjectDtor
Definition: CFG.h:72
@ TemporaryDtor
Definition: CFG.h:76
@ NewAllocator
Definition: CFG.h:62
Represents C++ object destructor implicitly generated by compiler on various occasions.
Definition: CFG.h:366
const CXXDestructorDecl * getDestructorDecl(ASTContext &astContext) const
Definition: CFG.cpp:5295
Represents C++ base or member initializer from constructor's initialization list.
Definition: CFG.h:227
CXXCtorInitializer * getInitializer() const
Definition: CFG.h:232
Represents the point where a loop ends.
Definition: CFG.h:273
const Stmt * getLoopStmt() const
Definition: CFG.h:277
Represents C++ object destructor implicitly generated for member object in destructor.
Definition: CFG.h:489
Represents C++ allocator call.
Definition: CFG.h:247
const CXXNewExpr * getAllocatorExpr() const
Definition: CFG.h:253
const Stmt * getStmt() const
Definition: CFG.h:138
Represents C++ object destructor implicitly generated at the end of full expression for temporary obj...
Definition: CFG.h:510
bool isStmtBranch() const
Definition: CFG.h:567
Represents a base class of a C++ class.
Definition: DeclCXX.h:146
Represents binding an expression to a temporary.
Definition: ExprCXX.h:1491
Represents a call to a C++ constructor.
Definition: ExprCXX.h:1546
Represents a C++ base or member initializer.
Definition: DeclCXX.h:2318
FieldDecl * getMember() const
If this is a member initializer, returns the declaration of the non-static data member being initiali...
Definition: DeclCXX.h:2458
bool isDelegatingInitializer() const
Determine whether this initializer is creating a delegating constructor.
Definition: DeclCXX.h:2418
Expr * getInit() const
Get the initializer.
Definition: DeclCXX.h:2520
SourceLocation getSourceLocation() const
Determine the source location of the initializer.
Definition: DeclCXX.cpp:2790
bool isAnyMemberInitializer() const
Definition: DeclCXX.h:2398
bool isBaseInitializer() const
Determine whether this initializer is initializing a base class.
Definition: DeclCXX.h:2390
bool isIndirectMemberInitializer() const
Definition: DeclCXX.h:2402
int64_t getID(const ASTContext &Context) const
Definition: DeclCXX.cpp:2771
const Type * getBaseClass() const
If this is a base class initializer, returns the type of the base class.
Definition: DeclCXX.cpp:2783
FieldDecl * getAnyMember() const
Definition: DeclCXX.h:2464
IndirectFieldDecl * getIndirectMember() const
Definition: DeclCXX.h:2472
bool isBaseVirtual() const
Returns whether the base is virtual or not.
Definition: DeclCXX.h:2444
Represents a delete expression for memory deallocation and destructor calls, e.g.
Definition: ExprCXX.h:2498
bool isArrayForm() const
Definition: ExprCXX.h:2524
SourceLocation getBeginLoc() const
Definition: ExprCXX.h:2548
Expr * getArgument()
Definition: ExprCXX.h:2539
QualType getDestroyedType() const
Retrieve the type being destroyed.
Definition: ExprCXX.cpp:337
Represents a C++ destructor within a class.
Definition: DeclCXX.h:2817
Represents a new-expression for memory allocation and constructor calls, e.g: "new CXXNewExpr(foo)".
Definition: ExprCXX.h:2241
Represents a C++ struct/union/class.
Definition: DeclCXX.h:258
void getCaptureFields(llvm::DenseMap< const ValueDecl *, FieldDecl * > &Captures, FieldDecl *&ThisCapture) const
For a closure type, retrieve the mapping from captured variables and this to the non-static data memb...
Definition: DeclCXX.cpp:1747
CXXDestructorDecl * getDestructor() const
Returns the destructor decl for this class.
Definition: DeclCXX.cpp:2081
Represents a point when we begin processing an inlined call.
Definition: ProgramPoint.h:628
CaseStmt - Represent a case statement.
Definition: Stmt.h:1828
Expr * getLHS()
Definition: Stmt.h:1915
Expr * getRHS()
Definition: Stmt.h:1927
Represents a single point (AST node) in the program that requires attention during construction of an...
unsigned getIndex() const
If a single trigger statement triggers multiple constructors, they are usually being enumerated.
const CXXCtorInitializer * getCXXCtorInitializer() const
The construction site is not necessarily a statement.
DeclContext * getParent()
getParent - Returns the containing DeclContext.
Definition: DeclBase.h:2104
A reference to a declared variable, function, enum, etc.
Definition: Expr.h:1265
DeclStmt - Adaptor class for mixing declarations with statements and expressions.
Definition: Stmt.h:1519
const Decl * getSingleDecl() const
Definition: Stmt.h:1534
Decl - This represents one declaration (or definition), e.g.
Definition: DeclBase.h:86
SourceLocation getBeginLoc() const LLVM_READONLY
Definition: DeclBase.h:434
Kind getKind() const
Definition: DeclBase.h:445
A helper class that allows the use of isa/cast/dyncast to detect TagType objects of enums.
Definition: Type.h:6103
This is a meta program point, which should be skipped by all the diagnostic reasoning etc.
Definition: ProgramPoint.h:730
This represents one expression.
Definition: Expr.h:110
const Expr * skipRValueSubobjectAdjustments(SmallVectorImpl< const Expr * > &CommaLHS, SmallVectorImpl< SubobjectAdjustment > &Adjustments) const
Walk outwards from an expression we want to bind a reference to and find the expression whose lifetim...
Definition: Expr.cpp:82
bool isGLValue() const
Definition: Expr.h:280
llvm::APSInt EvaluateKnownConstInt(const ASTContext &Ctx, SmallVectorImpl< PartialDiagnosticAt > *Diag=nullptr) const
EvaluateKnownConstInt - Call EvaluateAsRValue and return the folded integer.
Expr * IgnoreParenImpCasts() LLVM_READONLY
Skip past any parentheses and implicit casts which might surround this expression until reaching a fi...
Definition: Expr.cpp:3097
Expr * IgnoreImplicit() LLVM_READONLY
Skip past any implicit AST nodes which might surround this expression until reaching a fixed point.
Definition: Expr.cpp:3085
Expr * IgnoreParens() LLVM_READONLY
Skip past any parentheses which might surround this expression until reaching a fixed point.
Definition: Expr.cpp:3093
QualType getType() const
Definition: Expr.h:142
Represents a member of a struct/union/class.
Definition: Decl.h:3033
This represents a GCC inline-assembly statement extension.
Definition: Stmt.h:3286
One of these records is kept for each identifier that is lexed.
StringRef getName() const
Return the actual identifier string.
Represents the declaration of a label.
Definition: Decl.h:503
It wraps the AnalysisDeclContext to represent both the call stack with the help of StackFrameContext ...
const Decl * getDecl() const
LLVM_ATTRIBUTE_RETURNS_NONNULL AnalysisDeclContext * getAnalysisDeclContext() const
const LocationContext * getParent() const
It might return null.
const StackFrameContext * getStackFrame() const
virtual bool inTopFrame() const
void printJson(raw_ostream &Out, const char *NL="\n", unsigned int Space=0, bool IsDot=false, std::function< void(const LocationContext *)> printMoreInfoPerContext=[](const LocationContext *) {}) const
Prints out the call stack in json format.
Represents a point when we exit a loop.
Definition: ProgramPoint.h:711
This represents a Microsoft inline-assembly statement extension.
Definition: Stmt.h:3509
MemberExpr - [C99 6.5.2.3] Structure and Union Members.
Definition: Expr.h:3236
ValueDecl * getMemberDecl() const
Retrieve the member declaration to which this expression refers.
Definition: Expr.h:3319
Expr * getBase() const
Definition: Expr.h:3313
This represents a decl that may have a name.
Definition: Decl.h:253
DeclarationName getDeclName() const
Get the actual, stored name of the declaration, which may be a special name.
Definition: Decl.h:319
Represents Objective-C's collection statement.
Definition: StmtObjC.h:23
Expr * getSourceExpr() const
The source expression of an opaque value expression is the expression which originally generated the ...
Definition: Expr.h:1223
bool isConsumedExpr(Expr *E) const
Definition: ParentMap.cpp:181
Represents a parameter to a function.
Definition: Decl.h:1725
Represents a program point just after an implicit call event.
Definition: ProgramPoint.h:597
Represents a program point after a store evaluation.
Definition: ProgramPoint.h:426
Represents a program point just before an implicit call event.
Definition: ProgramPoint.h:579
If a crash happens while one of these objects are live, the message is printed out along with the spe...
ProgramPoints can be "tagged" as representing points specific to a given analysis entity.
Definition: ProgramPoint.h:38
const ProgramPointTag * getTag() const
Definition: ProgramPoint.h:173
bool isPurgeKind()
Is this a program point corresponding to purge/removal of dead symbols and bindings.
Definition: ProgramPoint.h:167
void printJson(llvm::raw_ostream &Out, const char *NL="\n") const
const StackFrameContext * getStackFrame() const
Definition: ProgramPoint.h:179
std::optional< T > getAs() const
Convert to the specified ProgramPoint type, returning std::nullopt if this ProgramPoint is not of the...
Definition: ProgramPoint.h:147
const LocationContext * getLocationContext() const
Definition: ProgramPoint.h:175
A (possibly-)qualified type.
Definition: Type.h:929
QualType getDesugaredType(const ASTContext &Context) const
Return the specified type with any "sugar" removed from the type.
Definition: Type.h:1291
bool isNull() const
Return true if this QualType doesn't point to a type yet.
Definition: Type.h:996
SplitQualType split() const
Divides a QualType into its unqualified type and a set of local qualifiers.
Definition: Type.h:7957
bool isCForbiddenLValueType() const
Determine whether expressions of the given type are forbidden from being lvalues in C.
Definition: Type.h:8146
std::string getAsString() const
ReturnStmt - This represents a return, optionally of an expression: return; return 4;.
Definition: Stmt.h:3046
std::string printToString(const SourceManager &SM) const
It represents a stack frame of the call stack (based on CallEvent).
const Stmt * getCallSite() const
const CFGBlock * getCallSiteBlock() const
bool inTopFrame() const override
const Stmt * getStmt() const
Definition: ProgramPoint.h:274
Stmt - This represents one statement.
Definition: Stmt.h:84
@ NoStmtClass
Definition: Stmt.h:87
SourceRange getSourceRange() const LLVM_READONLY
SourceLocation tokens are not useful in isolation - they are low level value objects created/interpre...
Definition: Stmt.cpp:334
const char * getStmtClassName() const
Definition: Stmt.cpp:87
int64_t getID(const ASTContext &Context) const
Definition: Stmt.cpp:370
SourceLocation getBeginLoc() const LLVM_READONLY
Definition: Stmt.cpp:346
SwitchStmt - This represents a 'switch' stmt.
Definition: Stmt.h:2415
bool isAllEnumCasesCovered() const
Returns true if the SwitchStmt is a switch of an enum value and all cases have been explicitly covere...
Definition: Stmt.h:2581
Expr * getCond()
Definition: Stmt.h:2478
CXXRecordDecl * getAsCXXRecordDecl() const
Retrieves the CXXRecordDecl that this type refers to, either because the type is a RecordType or beca...
Definition: Type.cpp:1916
bool isVoidType() const
Definition: Type.h:8515
bool isArrayType() const
Definition: Type.h:8263
bool isReferenceType() const
Definition: Type.h:8209
bool isIntegralOrEnumerationType() const
Determine whether this type is an integral or enumeration type.
Definition: Type.h:8630
bool isVectorType() const
Definition: Type.h:8303
const T * getAs() const
Member-template getAs<specific type>'.
Definition: Type.h:8736
Represent the declaration of a variable (in which case it is an lvalue) a function (in which case it ...
Definition: Decl.h:671
QualType getType() const
Definition: Decl.h:682
Represents a variable declaration or definition.
Definition: Decl.h:882
This class is used for tools that requires cross translation unit capability.
const LangOptions & getLangOpts() const
ASTContext & getASTContext() override
BranchNodeBuilder is responsible for constructing the nodes corresponding to the two branches of the ...
Definition: CoreEngine.h:436
ExplodedNode * generateNode(ProgramStateRef State, bool branch, ExplodedNode *Pred)
Definition: CoreEngine.cpp:676
BugReporter is a utility class for generating PathDiagnostics for analysis.
Definition: BugReporter.h:585
llvm::iterator_range< EQClasses_iterator > equivalenceClasses()
Definition: BugReporter.h:617
Represents an abstract call to a function or method along a particular path.
Definition: CallEvent.h:153
static bool isCallStmt(const Stmt *S)
Returns true if this is a statement is a function or method call of some kind.
Definition: CallEvent.cpp:348
void runCheckersForBind(ExplodedNodeSet &Dst, const ExplodedNodeSet &Src, SVal location, SVal val, const Stmt *S, ExprEngine &Eng, const ProgramPoint &PP)
Run checkers for binding of a value to a location.
void runCheckersForEndFunction(NodeBuilderContext &BC, ExplodedNodeSet &Dst, ExplodedNode *Pred, ExprEngine &Eng, const ReturnStmt *RS)
Run checkers on end of function.
void runCheckersForLocation(ExplodedNodeSet &Dst, const ExplodedNodeSet &Src, SVal location, bool isLoad, const Stmt *NodeEx, const Stmt *BoundEx, ExprEngine &Eng)
Run checkers for load/store of a location.
void runCheckersForEndAnalysis(ExplodedGraph &G, BugReporter &BR, ExprEngine &Eng)
Run checkers for end of analysis.
void runCheckersForPrintStateJson(raw_ostream &Out, ProgramStateRef State, const char *NL="\n", unsigned int Space=0, bool IsDot=false) const
Run checkers for debug-printing a ProgramState.
void runCheckersForDeadSymbols(ExplodedNodeSet &Dst, const ExplodedNodeSet &Src, SymbolReaper &SymReaper, const Stmt *S, ExprEngine &Eng, ProgramPoint::Kind K)
Run checkers for dead symbols.
ProgramStateRef runCheckersForRegionChanges(ProgramStateRef state, const InvalidatedSymbols *invalidated, ArrayRef< const MemRegion * > ExplicitRegions, ArrayRef< const MemRegion * > Regions, const LocationContext *LCtx, const CallEvent *Call)
Run checkers for region changes.
void runCheckersForLiveSymbols(ProgramStateRef state, SymbolReaper &SymReaper)
Run checkers for live symbols.
void runCheckersForBeginFunction(ExplodedNodeSet &Dst, const BlockEdge &L, ExplodedNode *Pred, ExprEngine &Eng)
Run checkers on beginning of function.
void runCheckersForPostStmt(ExplodedNodeSet &Dst, const ExplodedNodeSet &Src, const Stmt *S, ExprEngine &Eng, bool wasInlined=false)
Run checkers for post-visiting Stmts.
void runCheckersForPreStmt(ExplodedNodeSet &Dst, const ExplodedNodeSet &Src, const Stmt *S, ExprEngine &Eng)
Run checkers for pre-visiting Stmts.
void runCheckersForBranchCondition(const Stmt *condition, ExplodedNodeSet &Dst, ExplodedNode *Pred, ExprEngine &Eng)
Run checkers for branch condition.
ProgramStateRef runCheckersForPointerEscape(ProgramStateRef State, const InvalidatedSymbols &Escaped, const CallEvent *Call, PointerEscapeKind Kind, RegionAndSymbolInvalidationTraits *ITraits)
Run checkers when pointers escape.
ProgramStateRef runCheckersForEvalAssume(ProgramStateRef state, SVal Cond, bool Assumption)
Run checkers for handling assumptions on symbolic values.
virtual ProgramStateRef removeDeadBindings(ProgramStateRef state, SymbolReaper &SymReaper)=0
Scan all symbols referenced by the constraints.
void addAbortedBlock(const ExplodedNode *node, const CFGBlock *block)
Inform the CoreEngine that a basic block was aborted because it could not be completely analyzed.
Definition: CoreEngine.h:168
void enqueueStmtNode(ExplodedNode *N, const CFGBlock *Block, unsigned Idx)
Enqueue a single node created as a result of statement processing.
Definition: CoreEngine.cpp:531
void enqueueEndOfFunction(ExplodedNodeSet &Set, const ReturnStmt *RS)
enqueue the nodes corresponding to the end of function onto the end of path / work list.
Definition: CoreEngine.cpp:630
void enqueue(ExplodedNodeSet &Set)
Enqueue the given set of nodes onto the work list.
Definition: CoreEngine.cpp:619
std::unique_ptr< ExplodedGraph > trim(ArrayRef< const NodeTy * > Nodes, InterExplodedGraphMap *ForwardMap=nullptr, InterExplodedGraphMap *InverseMap=nullptr) const
Creates a trimmed version of the graph that only contains paths leading to the given nodes.
void enableNodeReclamation(unsigned Interval)
Enable tracking of recently allocated nodes for potential reclamation when calling reclaimRecentlyAll...
void reclaimRecentlyAllocatedNodes()
Reclaim "uninteresting" nodes created since the last time this method was called.
ExplodedNode * getNode(const ProgramPoint &L, ProgramStateRef State, bool IsSink=false, bool *IsNew=nullptr)
Retrieve the node associated with a (Location,State) pair, where the 'Location' is a ProgramPoint in ...
roots_iterator roots_begin()
void insert(const ExplodedNodeSet &S)
void Add(ExplodedNode *N)
const ProgramStateRef & getState() const
pred_iterator pred_begin()
bool isTrivial() const
The node is trivial if it has only one successor, only one predecessor, it's predecessor has only one...
ProgramPoint getLocation() const
getLocation - Returns the edge associated with the given node.
void addPredecessor(ExplodedNode *V, ExplodedGraph &G)
addPredeccessor - Adds a predecessor to the current node, and in tandem add this node as a successor ...
ExplodedNode * getFirstSucc()
const StackFrameContext * getStackFrame() const
const LocationContext * getLocationContext() const
unsigned succ_size() const
void processEndOfFunction(NodeBuilderContext &BC, ExplodedNode *Pred, const ReturnStmt *RS=nullptr)
Called by CoreEngine.
void VisitBinaryOperator(const BinaryOperator *B, ExplodedNode *Pred, ExplodedNodeSet &Dst)
VisitBinaryOperator - Transfer function logic for binary operators.
Definition: ExprEngineC.cpp:40
ProgramStateManager & getStateManager()
Definition: ExprEngine.h:414
void VisitArraySubscriptExpr(const ArraySubscriptExpr *Ex, ExplodedNode *Pred, ExplodedNodeSet &Dst)
VisitArraySubscriptExpr - Transfer function for array accesses.
void VisitCommonDeclRefExpr(const Expr *DR, const NamedDecl *D, ExplodedNode *Pred, ExplodedNodeSet &Dst)
Transfer function logic for DeclRefExprs and BlockDeclRefExprs.
void ProcessInitializer(const CFGInitializer I, ExplodedNode *Pred)
void VisitObjCMessage(const ObjCMessageExpr *ME, ExplodedNode *Pred, ExplodedNodeSet &Dst)
void ProcessTemporaryDtor(const CFGTemporaryDtor D, ExplodedNode *Pred, ExplodedNodeSet &Dst)
void VisitGuardedExpr(const Expr *Ex, const Expr *L, const Expr *R, ExplodedNode *Pred, ExplodedNodeSet &Dst)
VisitGuardedExpr - Transfer function logic for ?, __builtin_choose.
void processBeginOfFunction(NodeBuilderContext &BC, ExplodedNode *Pred, ExplodedNodeSet &Dst, const BlockEdge &L)
Called by CoreEngine.
void VisitCast(const CastExpr *CastE, const Expr *Ex, ExplodedNode *Pred, ExplodedNodeSet &Dst)
VisitCast - Transfer function logic for all casts (implicit and explicit).
void removeDead(ExplodedNode *Node, ExplodedNodeSet &Out, const Stmt *ReferenceStmt, const LocationContext *LC, const Stmt *DiagnosticStmt=nullptr, ProgramPoint::Kind K=ProgramPoint::PreStmtPurgeDeadSymbolsKind)
Run the analyzer's garbage collection - remove dead symbols and bindings from the state.
void VisitLogicalExpr(const BinaryOperator *B, ExplodedNode *Pred, ExplodedNodeSet &Dst)
VisitLogicalExpr - Transfer function logic for '&&', '||'.
void VisitCXXDestructor(QualType ObjectType, const MemRegion *Dest, const Stmt *S, bool IsBaseDtor, ExplodedNode *Pred, ExplodedNodeSet &Dst, EvalCallOptions &Options)
void evalEagerlyAssumeBifurcation(ExplodedNodeSet &Dst, ExplodedNodeSet &Src, const Expr *Ex)
evalEagerlyAssumeBifurcation - Given the nodes in 'Src', eagerly assume concrete boolean values for '...
void VisitObjCAtSynchronizedStmt(const ObjCAtSynchronizedStmt *S, ExplodedNode *Pred, ExplodedNodeSet &Dst)
Transfer function logic for ObjCAtSynchronizedStmts.
void VisitReturnStmt(const ReturnStmt *R, ExplodedNode *Pred, ExplodedNodeSet &Dst)
VisitReturnStmt - Transfer function logic for return statements.
SVal evalBinOp(ProgramStateRef ST, BinaryOperator::Opcode Op, SVal LHS, SVal RHS, QualType T)
Definition: ExprEngine.h:606
void VisitCXXNewExpr(const CXXNewExpr *CNE, ExplodedNode *Pred, ExplodedNodeSet &Dst)
ProgramStateRef processRegionChange(ProgramStateRef state, const MemRegion *MR, const LocationContext *LCtx)
Definition: ExprEngine.h:403
void VisitLambdaExpr(const LambdaExpr *LE, ExplodedNode *Pred, ExplodedNodeSet &Dst)
VisitLambdaExpr - Transfer function logic for LambdaExprs.
void ProcessImplicitDtor(const CFGImplicitDtor D, ExplodedNode *Pred)
void VisitObjCForCollectionStmt(const ObjCForCollectionStmt *S, ExplodedNode *Pred, ExplodedNodeSet &Dst)
VisitObjCForCollectionStmt - Transfer function logic for ObjCForCollectionStmt.
void VisitUnaryOperator(const UnaryOperator *B, ExplodedNode *Pred, ExplodedNodeSet &Dst)
VisitUnaryOperator - Transfer function logic for unary operators.
ProgramStateRef getInitialState(const LocationContext *InitLoc)
getInitialState - Return the initial state used for the root vertex in the ExplodedGraph.
Definition: ExprEngine.cpp:244
void VisitLvalObjCIvarRefExpr(const ObjCIvarRefExpr *DR, ExplodedNode *Pred, ExplodedNodeSet &Dst)
Transfer function logic for computing the lvalue of an Objective-C ivar.
static bool hasMoreIteration(ProgramStateRef State, const ObjCForCollectionStmt *O, const LocationContext *LC)
void VisitDeclStmt(const DeclStmt *DS, ExplodedNode *Pred, ExplodedNodeSet &Dst)
VisitDeclStmt - Transfer function logic for DeclStmts.
void VisitMSAsmStmt(const MSAsmStmt *A, ExplodedNode *Pred, ExplodedNodeSet &Dst)
VisitMSAsmStmt - Transfer function logic for MS inline asm.
static std::optional< SVal > getObjectUnderConstruction(ProgramStateRef State, const ConstructionContextItem &Item, const LocationContext *LC)
By looking at a certain item that may be potentially part of an object's ConstructionContext,...
Definition: ExprEngine.cpp:603
std::string DumpGraph(bool trim=false, StringRef Filename="")
Dump graph to the specified filename.
void printJson(raw_ostream &Out, ProgramStateRef State, const LocationContext *LCtx, const char *NL, unsigned int Space, bool IsDot) const
printJson - Called by ProgramStateManager to print checker-specific data.
Definition: ExprEngine.cpp:939
InliningModes
The modes of inlining, which override the default analysis-wide settings.
Definition: ExprEngine.h:129
ProgramStateRef processPointerEscapedOnBind(ProgramStateRef State, ArrayRef< std::pair< SVal, SVal > > LocAndVals, const LocationContext *LCtx, PointerEscapeKind Kind, const CallEvent *Call)
Call PointerEscape callback when a value escapes as a result of bind.
const LocationContext * getRootLocationContext() const
Definition: ExprEngine.h:224
static ProgramStateRef removeIterationState(ProgramStateRef State, const ObjCForCollectionStmt *O, const LocationContext *LC)
ProgramStateRef processAssume(ProgramStateRef state, SVal cond, bool assumption)
evalAssume - Callback function invoked by the ConstraintManager when making assumptions about state v...
Definition: ExprEngine.cpp:667
static std::optional< unsigned > getIndexOfElementToConstruct(ProgramStateRef State, const CXXConstructExpr *E, const LocationContext *LCtx)
Retreives which element is being constructed in a non-POD type array.
Definition: ExprEngine.cpp:513
void VisitBlockExpr(const BlockExpr *BE, ExplodedNode *Pred, ExplodedNodeSet &Dst)
VisitBlockExpr - Transfer function logic for BlockExprs.
void ProcessBaseDtor(const CFGBaseDtor D, ExplodedNode *Pred, ExplodedNodeSet &Dst)
static std::pair< const ProgramPointTag *, const ProgramPointTag * > getEagerlyAssumeBifurcationTags()
void VisitCallExpr(const CallExpr *CE, ExplodedNode *Pred, ExplodedNodeSet &Dst)
VisitCall - Transfer function for function calls.
ASTContext & getContext() const
getContext - Return the ASTContext associated with this analysis.
Definition: ExprEngine.h:196
StoreManager & getStoreManager()
Definition: ExprEngine.h:416
void VisitCXXNewAllocatorCall(const CXXNewExpr *CNE, ExplodedNode *Pred, ExplodedNodeSet &Dst)
void CreateCXXTemporaryObject(const MaterializeTemporaryExpr *ME, ExplodedNode *Pred, ExplodedNodeSet &Dst)
Create a C++ temporary object for an rvalue.
CFGBlock::ConstCFGElementRef getCFGElementRef() const
Definition: ExprEngine.h:229
void VisitGCCAsmStmt(const GCCAsmStmt *A, ExplodedNode *Pred, ExplodedNodeSet &Dst)
VisitGCCAsmStmt - Transfer function logic for inline asm.
void processCFGBlockEntrance(const BlockEdge &L, NodeBuilderWithSinks &nodeBuilder, ExplodedNode *Pred)
Called by CoreEngine when processing the entrance of a CFGBlock.
void VisitInitListExpr(const InitListExpr *E, ExplodedNode *Pred, ExplodedNodeSet &Dst)
ProgramStateRef processRegionChanges(ProgramStateRef state, const InvalidatedSymbols *invalidated, ArrayRef< const MemRegion * > ExplicitRegions, ArrayRef< const MemRegion * > Regions, const LocationContext *LCtx, const CallEvent *Call)
processRegionChanges - Called by ProgramStateManager whenever a change is made to the store.
Definition: ExprEngine.cpp:673
void ProcessStmt(const Stmt *S, ExplodedNode *Pred)
ExprEngine(cross_tu::CrossTranslationUnitContext &CTU, AnalysisManager &mgr, SetOfConstDecls *VisitedCalleesIn, FunctionSummariesTy *FS, InliningModes HowToInlineIn)
Definition: ExprEngine.cpp:221
void ViewGraph(bool trim=false)
Visualize the ExplodedGraph created by executing the simulation.
static std::optional< unsigned > getPendingArrayDestruction(ProgramStateRef State, const LocationContext *LCtx)
Retreives which element is being destructed in a non-POD type array.
Definition: ExprEngine.cpp:532
ProgramStateRef notifyCheckersOfPointerEscape(ProgramStateRef State, const InvalidatedSymbols *Invalidated, ArrayRef< const MemRegion * > ExplicitRegions, const CallEvent *Call, RegionAndSymbolInvalidationTraits &ITraits)
Call PointerEscape callback when a value escapes as a result of region invalidation.
static const ProgramPointTag * cleanupNodeTag()
A tag to track convenience transitions, which can be removed at cleanup.
void processCFGElement(const CFGElement E, ExplodedNode *Pred, unsigned StmtIdx, NodeBuilderContext *Ctx)
processCFGElement - Called by CoreEngine.
Definition: ExprEngine.cpp:966
void processStaticInitializer(const DeclStmt *DS, NodeBuilderContext &BuilderCtx, ExplodedNode *Pred, ExplodedNodeSet &Dst, const CFGBlock *DstT, const CFGBlock *DstF)
Called by CoreEngine.
void VisitUnaryExprOrTypeTraitExpr(const UnaryExprOrTypeTraitExpr *Ex, ExplodedNode *Pred, ExplodedNodeSet &Dst)
VisitUnaryExprOrTypeTraitExpr - Transfer function for sizeof.
void processBranch(const Stmt *Condition, NodeBuilderContext &BuilderCtx, ExplodedNode *Pred, ExplodedNodeSet &Dst, const CFGBlock *DstT, const CFGBlock *DstF, std::optional< unsigned > IterationsCompletedInLoop)
ProcessBranch - Called by CoreEngine.
void ProcessLoopExit(const Stmt *S, ExplodedNode *Pred)
void processSwitch(SwitchNodeBuilder &builder)
ProcessSwitch - Called by CoreEngine.
void processEndWorklist()
Called by CoreEngine when the analysis worklist has terminated.
Definition: ExprEngine.cpp:960
CheckerManager & getCheckerManager() const
Definition: ExprEngine.h:204
void VisitAtomicExpr(const AtomicExpr *E, ExplodedNode *Pred, ExplodedNodeSet &Dst)
VisitAtomicExpr - Transfer function for builtin atomic expressions.
void ProcessMemberDtor(const CFGMemberDtor D, ExplodedNode *Pred, ExplodedNodeSet &Dst)
void VisitCXXThisExpr(const CXXThisExpr *TE, ExplodedNode *Pred, ExplodedNodeSet &Dst)
void VisitCXXDeleteExpr(const CXXDeleteExpr *CDE, ExplodedNode *Pred, ExplodedNodeSet &Dst)
void VisitMemberExpr(const MemberExpr *M, ExplodedNode *Pred, ExplodedNodeSet &Dst)
VisitMemberExpr - Transfer function for member expressions.
void VisitCXXConstructExpr(const CXXConstructExpr *E, ExplodedNode *Pred, ExplodedNodeSet &Dst)
void VisitCXXInheritedCtorInitExpr(const CXXInheritedCtorInitExpr *E, ExplodedNode *Pred, ExplodedNodeSet &Dst)
bool didEagerlyAssumeBifurcateAt(ProgramStateRef State, const Expr *Ex) const
ConstraintManager & getConstraintManager()
Definition: ExprEngine.h:418
void processCleanupTemporaryBranch(const CXXBindTemporaryExpr *BTE, NodeBuilderContext &BldCtx, ExplodedNode *Pred, ExplodedNodeSet &Dst, const CFGBlock *DstT, const CFGBlock *DstF)
Called by CoreEngine.
void ProcessAutomaticObjDtor(const CFGAutomaticObjDtor D, ExplodedNode *Pred, ExplodedNodeSet &Dst)
void VisitOffsetOfExpr(const OffsetOfExpr *Ex, ExplodedNode *Pred, ExplodedNodeSet &Dst)
VisitOffsetOfExpr - Transfer function for offsetof.
void evalLoad(ExplodedNodeSet &Dst, const Expr *NodeEx, const Expr *BoundExpr, ExplodedNode *Pred, ProgramStateRef St, SVal location, const ProgramPointTag *tag=nullptr, QualType LoadTy=QualType())
Simulate a read of the result of Ex.
void removeDeadOnEndOfFunction(NodeBuilderContext &BC, ExplodedNode *Pred, ExplodedNodeSet &Dst)
Remove dead bindings/symbols before exiting a function.
void Visit(const Stmt *S, ExplodedNode *Pred, ExplodedNodeSet &Dst)
Visit - Transfer function logic for all statements.
AnalysisManager & getAnalysisManager()
Definition: ExprEngine.h:198
void ProcessDeleteDtor(const CFGDeleteDtor D, ExplodedNode *Pred, ExplodedNodeSet &Dst)
void VisitCXXCatchStmt(const CXXCatchStmt *CS, ExplodedNode *Pred, ExplodedNodeSet &Dst)
void VisitCompoundLiteralExpr(const CompoundLiteralExpr *CL, ExplodedNode *Pred, ExplodedNodeSet &Dst)
VisitCompoundLiteralExpr - Transfer function logic for compound literals.
SValBuilder & getSValBuilder()
Definition: ExprEngine.h:208
void VisitArrayInitLoopExpr(const ArrayInitLoopExpr *Ex, ExplodedNode *Pred, ExplodedNodeSet &Dst)
VisitArrayInitLoopExpr - Transfer function for array init loop.
void evalStore(ExplodedNodeSet &Dst, const Expr *AssignE, const Expr *StoreE, ExplodedNode *Pred, ProgramStateRef St, SVal TargetLV, SVal Val, const ProgramPointTag *tag=nullptr)
evalStore - Handle the semantics of a store via an assignment.
void VisitCXXBindTemporaryExpr(const CXXBindTemporaryExpr *BTE, ExplodedNodeSet &PreVisit, ExplodedNodeSet &Dst)
void processIndirectGoto(IndirectGotoNodeBuilder &builder)
processIndirectGoto - Called by CoreEngine.
const NodeBuilderContext & getBuilderContext()
Definition: ExprEngine.h:217
static std::optional< unsigned > getPendingInitLoop(ProgramStateRef State, const CXXConstructExpr *E, const LocationContext *LCtx)
Retreives the size of the array in the pending ArrayInitLoopExpr.
Definition: ExprEngine.cpp:486
void ProcessNewAllocator(const CXXNewExpr *NE, ExplodedNode *Pred)
void markReachedMaxBlockCount(const Decl *D)
const Expr * getTarget() const
Definition: CoreEngine.h:507
const LocationContext * getLocationContext() const
Definition: CoreEngine.h:511
ProgramStateRef getState() const
Definition: CoreEngine.h:509
ExplodedNode * generateNode(const iterator &I, ProgramStateRef State, bool isSink=false)
Definition: CoreEngine.cpp:691
static bool isLocType(QualType T)
Definition: SVals.h:262
const CXXLifetimeExtendedObjectRegion * getCXXLifetimeExtendedObjectRegion(Expr const *Ex, ValueDecl const *VD, LocationContext const *LC)
Create a CXXLifetimeExtendedObjectRegion for temporaries which are lifetime-extended by local referen...
Definition: MemRegion.cpp:1258
const CXXTempObjectRegion * getCXXTempObjectRegion(Expr const *Ex, LocationContext const *LC)
Definition: MemRegion.cpp:1250
const CXXLifetimeExtendedObjectRegion * getCXXStaticLifetimeExtendedObjectRegion(const Expr *Ex, ValueDecl const *VD)
Create a CXXLifetimeExtendedObjectRegion for temporaries which are lifetime-extended by static refere...
Definition: MemRegion.cpp:1267
MemRegion - The root abstract class for all memory regions.
Definition: MemRegion.h:97
LLVM_ATTRIBUTE_RETURNS_NONNULL const MemSpaceRegion * getMemorySpace() const
Definition: MemRegion.cpp:1351
LLVM_ATTRIBUTE_RETURNS_NONNULL const MemRegion * getBaseRegion() const
Definition: MemRegion.cpp:1377
const CFGBlock * getBlock() const
Return the CFGBlock associated with this builder.
Definition: CoreEngine.h:217
unsigned blockCount() const
Returns the number of times the current basic block has been visited on the exploded graph path.
Definition: CoreEngine.h:224
This node builder keeps track of the generated sink nodes.
Definition: CoreEngine.h:347
ExplodedNode * generateNode(ProgramStateRef State, ExplodedNode *Pred, const ProgramPointTag *Tag=nullptr)
Definition: CoreEngine.h:359
ExplodedNode * generateSink(ProgramStateRef State, ExplodedNode *Pred, const ProgramPointTag *Tag=nullptr)
Definition: CoreEngine.h:366
This is the simplest builder which generates nodes in the ExplodedGraph.
Definition: CoreEngine.h:240
ExplodedNode * generateNode(const ProgramPoint &PP, ProgramStateRef State, ExplodedNode *Pred)
Generates a node in the ExplodedGraph.
Definition: CoreEngine.h:293
void takeNodes(const ExplodedNodeSet &S)
Definition: CoreEngine.h:335
ExplodedNode * generateSink(const ProgramPoint &PP, ProgramStateRef State, ExplodedNode *Pred)
Generates a sink in the ExplodedGraph.
Definition: CoreEngine.h:306
void addNodes(const ExplodedNodeSet &S)
Definition: CoreEngine.h:341
const NodeBuilderContext & getContext()
Definition: CoreEngine.h:332
While alive, includes the current analysis stack in a crash trace.
ProgramStateRef removeDeadBindingsFromEnvironmentAndStore(ProgramStateRef St, const StackFrameContext *LCtx, SymbolReaper &SymReaper)
bool haveEqualStores(ProgramStateRef S1, ProgramStateRef S2) const
Definition: ProgramState.h:610
bool haveEqualEnvironments(ProgramStateRef S1, ProgramStateRef S2) const
Definition: ProgramState.h:606
ProgramStateRef getPersistentStateWithGDM(ProgramStateRef FromState, ProgramStateRef GDMState)
MemRegionManager & getRegionManager()
Definition: ProgramState.h:564
ProgramStateRef getInitialState(const LocationContext *InitLoc)
Information about invalidation for a particular region/symbol.
Definition: MemRegion.h:1629
DefinedOrUnknownSVal makeZeroVal(QualType type)
Construct an SVal representing '0' for the specified type.
Definition: SValBuilder.cpp:62
DefinedSVal getFunctionPointer(const FunctionDecl *func)
NonLoc makeIntValWithWidth(QualType ptrType, uint64_t integer)
Definition: SValBuilder.h:323
NonLoc makeArrayIndex(uint64_t idx)
Definition: SValBuilder.h:282
nonloc::ConcreteInt makeIntVal(const IntegerLiteral *integer)
Definition: SValBuilder.h:288
DefinedOrUnknownSVal conjureSymbolVal(const void *symbolTag, const Expr *expr, const LocationContext *LCtx, unsigned count)
Create a new symbol with a unique 'name'.
QualType getConditionType() const
Definition: SValBuilder.h:153
loc::MemRegionVal getCXXThis(const CXXMethodDecl *D, const StackFrameContext *SFC)
Return a memory region for the 'this' object reference.
std::optional< SVal > getConstantVal(const Expr *E)
Returns the value of E, if it can be determined in a non-path-sensitive manner.
SVal - This represents a symbolic expression, which can be either an L-value or an R-value.
Definition: SVals.h:56
bool isUndef() const
Definition: SVals.h:107
bool isUnknownOrUndef() const
Definition: SVals.h:109
bool isConstant() const
Definition: SVals.cpp:246
std::optional< T > getAs() const
Convert to the specified SVal type, returning std::nullopt if this SVal is not of the desired type.
Definition: SVals.h:87
const llvm::APSInt * getAsInteger() const
If this SVal is loc::ConcreteInt or nonloc::ConcreteInt, return a pointer to APSInt which is held in ...
Definition: SVals.cpp:112
const MemRegion * getAsRegion() const
Definition: SVals.cpp:120
bool isValid() const
Definition: SVals.h:111
T castAs() const
Convert to the specified SVal type, asserting that this SVal is of the desired type.
Definition: SVals.h:83
bool isUnknown() const
Definition: SVals.h:105
This builder class is useful for generating nodes that resulted from visiting a statement.
Definition: CoreEngine.h:384
ExplodedNode * generateNode(const Stmt *S, ExplodedNode *Pred, ProgramStateRef St, const ProgramPointTag *tag=nullptr, ProgramPoint::Kind K=ProgramPoint::PostStmtKind)
Definition: CoreEngine.h:413
ExplodedNode * generateSink(const Stmt *S, ExplodedNode *Pred, ProgramStateRef St, const ProgramPointTag *tag=nullptr, ProgramPoint::Kind K=ProgramPoint::PostStmtKind)
Definition: CoreEngine.h:423
SVal evalDerivedToBase(SVal Derived, const CastExpr *Cast)
Evaluates a chain of derived-to-base casts through the path specified in Cast.
Definition: Store.cpp:252
virtual SVal getLValueField(const FieldDecl *D, SVal Base)
Definition: Store.h:146
SubRegion - A region that subsets another larger region.
Definition: MemRegion.h:446
ProgramStateRef getState() const
Definition: CoreEngine.h:563
const Expr * getCondition() const
Definition: CoreEngine.h:561
ExplodedNode * generateDefaultCaseNode(ProgramStateRef State, bool isSink=false)
Definition: CoreEngine.cpp:725
ExplodedNode * generateCaseStmtNode(const iterator &I, ProgramStateRef State)
Definition: CoreEngine.cpp:710
const LocationContext * getLocationContext() const
Definition: CoreEngine.h:565
const SwitchStmt * getSwitch() const
Definition: CoreEngine.h:551
Symbolic value.
Definition: SymExpr.h:32
A class responsible for cleaning up unused symbols.
void markLive(SymbolRef sym)
Unconditionally marks a symbol as live.
SymbolicRegion - A special, "non-concrete" region.
Definition: MemRegion.h:780
TypedValueRegion - An abstract class representing regions having a typed value.
Definition: MemRegion.h:535
Represents symbolic expression that isn't a location.
Definition: SVals.h:279
const internal::VariadicDynCastAllOfMatcher< Decl, VarDecl > varDecl
Matches variable declarations.
const internal::VariadicAllOfMatcher< Decl > decl
Matches declarations.
llvm::DenseSet< const Decl * > SetOfConstDecls
PointerEscapeKind
Describes the different reasons a pointer escapes during analysis.
@ PSK_DirectEscapeOnCall
The pointer has been passed to a function call directly.
@ PSK_EscapeOnBind
A pointer escapes due to binding its value to a location that the analyzer cannot track.
@ PSK_IndirectEscapeOnCall
The pointer has been passed to a function indirectly.
@ PSK_EscapeOther
The reason for pointer escape is unknown.
DefinedOrUnknownSVal getDynamicElementCount(ProgramStateRef State, const MemRegion *MR, SValBuilder &SVB, QualType Ty)
IntrusiveRefCntPtr< const ProgramState > ProgramStateRef
ProgramStateRef processLoopEnd(const Stmt *LoopStmt, ProgramStateRef State)
Updates the given ProgramState.
ProgramStateRef getWidenedLoopState(ProgramStateRef PrevState, const LocationContext *LCtx, unsigned BlockCount, const Stmt *LoopStmt)
Get the states that result from widening the loop.
llvm::DenseSet< SymbolRef > InvalidatedSymbols
Definition: Store.h:51
bool isUnrolledState(ProgramStateRef State)
Returns if the given State indicates that is inside a completely unrolled loop.
ProgramStateRef updateLoopStack(const Stmt *LoopStmt, ASTContext &ASTCtx, ExplodedNode *Pred, unsigned maxVisitOnPath)
Updates the stack of loops contained by the ProgramState.
bool LE(InterpState &S, CodePtr OpPC)
Definition: Interp.h:1171
The JSON file list parser is used to communicate input to InstallAPI.
bool operator==(const CallGraphNode::CallRecord &LHS, const CallGraphNode::CallRecord &RHS)
Definition: CallGraph.h:204
bool operator<(DeclarationName LHS, DeclarationName RHS)
Ordering on two declaration names.
StorageDuration
The storage duration for an object (per C++ [basic.stc]).
Definition: Specifiers.h:327
@ SD_Thread
Thread storage duration.
Definition: Specifiers.h:330
@ SD_Static
Static storage duration.
Definition: Specifiers.h:331
@ SD_FullExpression
Full-expression storage duration (for temporaries).
Definition: Specifiers.h:328
@ Result
The result type of a method or function.
const FunctionProtoType * T
@ Class
The "class" keyword introduces the elaborated-type-specifier.
Expr * extractElementInitializerFromNestedAILE(const ArrayInitLoopExpr *AILE)
Definition: CFG.cpp:1367
@ CXXThis
Parameter for C++ 'this' argument.
Diagnostic wrappers for TextAPI types for error reporting.
Definition: Dominators.h:30
Describes how types, statements, expressions, and declarations should be printed.
Definition: PrettyPrinter.h:57
An adjustment to be made to the temporary created when emitting a reference binding,...
Definition: Expr.h:66
Hints for figuring out of a call should be inlined during evalCall().
Definition: ExprEngine.h:97
bool IsTemporaryCtorOrDtor
This call is a constructor or a destructor of a temporary value.
Definition: ExprEngine.h:107
bool IsArrayCtorOrDtor
This call is a constructor or a destructor for a single element within an array, a part of array cons...
Definition: ExprEngine.h:104
Traits for storing the call processing policy inside GDM.
Definition: ExprEngine.h:1006
static std::string getNodeLabel(const ExplodedNode *N, ExplodedGraph *G)
static bool nodeHasBugReport(const ExplodedNode *N)
static bool traverseHiddenNodes(const ExplodedNode *N, llvm::function_ref< void(const ExplodedNode *)> PreCallback, llvm::function_ref< void(const ExplodedNode *)> PostCallback, llvm::function_ref< bool(const ExplodedNode *)> Stop)
PreCallback: callback before break.
static bool isNodeHidden(const ExplodedNode *N, const ExplodedGraph *G)