1 //=-- ExprEngineC.cpp - ExprEngine support for C expressions ----*- C++ -*-===//
2 //
3 //                     The LLVM Compiler Infrastructure
4 //
5 // This file is distributed under the University of Illinois Open Source
6 // License. See LICENSE.TXT for details.
7 //
8 //===----------------------------------------------------------------------===//
9 //
10 //  This file defines ExprEngine's support for C expressions.
11 //
12 //===----------------------------------------------------------------------===//
13 
14 #include "clang/AST/ExprCXX.h"
15 #include "clang/AST/DeclCXX.h"
16 #include "clang/StaticAnalyzer/Core/CheckerManager.h"
17 #include "clang/StaticAnalyzer/Core/PathSensitive/ExprEngine.h"
18 
19 using namespace clang;
20 using namespace ento;
21 using llvm::APSInt;
22 
23 /// Optionally conjure and return a symbol for offset when processing
24 /// an expression \p Expression.
25 /// If \p Other is a location, conjure a symbol for \p Symbol
26 /// (offset) if it is unknown so that memory arithmetic always
27 /// results in an ElementRegion.
28 /// \p Count The number of times the current basic block was visited.
29 static SVal conjureOffsetSymbolOnLocation(
30     SVal Symbol, SVal Other, Expr* Expression, SValBuilder &svalBuilder,
31     unsigned Count, const LocationContext *LCtx) {
32   QualType Ty = Expression->getType();
33   if (Other.getAs<Loc>() &&
34       Ty->isIntegralOrEnumerationType() &&
35       Symbol.isUnknown()) {
36     return svalBuilder.conjureSymbolVal(Expression, LCtx, Ty, Count);
37   }
38   return Symbol;
39 }
40 
41 void ExprEngine::VisitBinaryOperator(const BinaryOperator* B,
42                                      ExplodedNode *Pred,
43                                      ExplodedNodeSet &Dst) {
44 
45   Expr *LHS = B->getLHS()->IgnoreParens();
46   Expr *RHS = B->getRHS()->IgnoreParens();
47 
48   // FIXME: Prechecks eventually go in ::Visit().
49   ExplodedNodeSet CheckedSet;
50   ExplodedNodeSet Tmp2;
51   getCheckerManager().runCheckersForPreStmt(CheckedSet, Pred, B, *this);
52 
53   // With both the LHS and RHS evaluated, process the operation itself.
54   for (ExplodedNodeSet::iterator it=CheckedSet.begin(), ei=CheckedSet.end();
55          it != ei; ++it) {
56 
57     ProgramStateRef state = (*it)->getState();
58     const LocationContext *LCtx = (*it)->getLocationContext();
59     SVal LeftV = state->getSVal(LHS, LCtx);
60     SVal RightV = state->getSVal(RHS, LCtx);
61 
62     BinaryOperator::Opcode Op = B->getOpcode();
63 
64     if (Op == BO_Assign) {
65       // EXPERIMENTAL: "Conjured" symbols.
66       // FIXME: Handle structs.
67       if (RightV.isUnknown()) {
68         unsigned Count = currBldrCtx->blockCount();
69         RightV = svalBuilder.conjureSymbolVal(nullptr, B->getRHS(), LCtx,
70                                               Count);
71       }
72       // Simulate the effects of a "store":  bind the value of the RHS
73       // to the L-Value represented by the LHS.
74       SVal ExprVal = B->isGLValue() ? LeftV : RightV;
75       evalStore(Tmp2, B, LHS, *it, state->BindExpr(B, LCtx, ExprVal),
76                 LeftV, RightV);
77       continue;
78     }
79 
80     if (!B->isAssignmentOp()) {
81       StmtNodeBuilder Bldr(*it, Tmp2, *currBldrCtx);
82 
83       if (B->isAdditiveOp()) {
84         // TODO: This can be removed after we enable history tracking with
85         // SymSymExpr.
86         unsigned Count = currBldrCtx->blockCount();
87         RightV = conjureOffsetSymbolOnLocation(
88             RightV, LeftV, RHS, svalBuilder, Count, LCtx);
89         LeftV = conjureOffsetSymbolOnLocation(
90             LeftV, RightV, LHS, svalBuilder, Count, LCtx);
91       }
92 
93       // Although we don't yet model pointers-to-members, we do need to make
94       // sure that the members of temporaries have a valid 'this' pointer for
95       // other checks.
96       if (B->getOpcode() == BO_PtrMemD)
97         state = createTemporaryRegionIfNeeded(state, LCtx, LHS);
98 
99       // Process non-assignments except commas or short-circuited
100       // logical expressions (LAnd and LOr).
101       SVal Result = evalBinOp(state, Op, LeftV, RightV, B->getType());
102       if (!Result.isUnknown()) {
103         state = state->BindExpr(B, LCtx, Result);
104       }
105 
106       Bldr.generateNode(B, *it, state);
107       continue;
108     }
109 
110     assert (B->isCompoundAssignmentOp());
111 
112     switch (Op) {
113       default:
114         llvm_unreachable("Invalid opcode for compound assignment.");
115       case BO_MulAssign: Op = BO_Mul; break;
116       case BO_DivAssign: Op = BO_Div; break;
117       case BO_RemAssign: Op = BO_Rem; break;
118       case BO_AddAssign: Op = BO_Add; break;
119       case BO_SubAssign: Op = BO_Sub; break;
120       case BO_ShlAssign: Op = BO_Shl; break;
121       case BO_ShrAssign: Op = BO_Shr; break;
122       case BO_AndAssign: Op = BO_And; break;
123       case BO_XorAssign: Op = BO_Xor; break;
124       case BO_OrAssign:  Op = BO_Or;  break;
125     }
126 
127     // Perform a load (the LHS).  This performs the checks for
128     // null dereferences, and so on.
129     ExplodedNodeSet Tmp;
130     SVal location = LeftV;
131     evalLoad(Tmp, B, LHS, *it, state, location);
132 
133     for (ExplodedNodeSet::iterator I = Tmp.begin(), E = Tmp.end(); I != E;
134          ++I) {
135 
136       state = (*I)->getState();
137       const LocationContext *LCtx = (*I)->getLocationContext();
138       SVal V = state->getSVal(LHS, LCtx);
139 
140       // Get the computation type.
141       QualType CTy =
142         cast<CompoundAssignOperator>(B)->getComputationResultType();
143       CTy = getContext().getCanonicalType(CTy);
144 
145       QualType CLHSTy =
146         cast<CompoundAssignOperator>(B)->getComputationLHSType();
147       CLHSTy = getContext().getCanonicalType(CLHSTy);
148 
149       QualType LTy = getContext().getCanonicalType(LHS->getType());
150 
151       // Promote LHS.
152       V = svalBuilder.evalCast(V, CLHSTy, LTy);
153 
154       // Compute the result of the operation.
155       SVal Result = svalBuilder.evalCast(evalBinOp(state, Op, V, RightV, CTy),
156                                          B->getType(), CTy);
157 
158       // EXPERIMENTAL: "Conjured" symbols.
159       // FIXME: Handle structs.
160 
161       SVal LHSVal;
162 
163       if (Result.isUnknown()) {
164         // The symbolic value is actually for the type of the left-hand side
165         // expression, not the computation type, as this is the value the
166         // LValue on the LHS will bind to.
167         LHSVal = svalBuilder.conjureSymbolVal(nullptr, B->getRHS(), LCtx, LTy,
168                                               currBldrCtx->blockCount());
169         // However, we need to convert the symbol to the computation type.
170         Result = svalBuilder.evalCast(LHSVal, CTy, LTy);
171       }
172       else {
173         // The left-hand side may bind to a different value then the
174         // computation type.
175         LHSVal = svalBuilder.evalCast(Result, LTy, CTy);
176       }
177 
178       // In C++, assignment and compound assignment operators return an
179       // lvalue.
180       if (B->isGLValue())
181         state = state->BindExpr(B, LCtx, location);
182       else
183         state = state->BindExpr(B, LCtx, Result);
184 
185       evalStore(Tmp2, B, LHS, *I, state, location, LHSVal);
186     }
187   }
188 
189   // FIXME: postvisits eventually go in ::Visit()
190   getCheckerManager().runCheckersForPostStmt(Dst, Tmp2, B, *this);
191 }
192 
193 void ExprEngine::VisitBlockExpr(const BlockExpr *BE, ExplodedNode *Pred,
194                                 ExplodedNodeSet &Dst) {
195 
196   CanQualType T = getContext().getCanonicalType(BE->getType());
197 
198   const BlockDecl *BD = BE->getBlockDecl();
199   // Get the value of the block itself.
200   SVal V = svalBuilder.getBlockPointer(BD, T,
201                                        Pred->getLocationContext(),
202                                        currBldrCtx->blockCount());
203 
204   ProgramStateRef State = Pred->getState();
205 
206   // If we created a new MemRegion for the block, we should explicitly bind
207   // the captured variables.
208   if (const BlockDataRegion *BDR =
209       dyn_cast_or_null<BlockDataRegion>(V.getAsRegion())) {
210 
211     BlockDataRegion::referenced_vars_iterator I = BDR->referenced_vars_begin(),
212                                               E = BDR->referenced_vars_end();
213 
214     auto CI = BD->capture_begin();
215     auto CE = BD->capture_end();
216     for (; I != E; ++I) {
217       const VarRegion *capturedR = I.getCapturedRegion();
218       const VarRegion *originalR = I.getOriginalRegion();
219 
220       // If the capture had a copy expression, use the result of evaluating
221       // that expression, otherwise use the original value.
222       // We rely on the invariant that the block declaration's capture variables
223       // are a prefix of the BlockDataRegion's referenced vars (which may include
224       // referenced globals, etc.) to enable fast lookup of the capture for a
225       // given referenced var.
226       const Expr *copyExpr = nullptr;
227       if (CI != CE) {
228         assert(CI->getVariable() == capturedR->getDecl());
229         copyExpr = CI->getCopyExpr();
230         CI++;
231       }
232 
233       if (capturedR != originalR) {
234         SVal originalV;
235         const LocationContext *LCtx = Pred->getLocationContext();
236         if (copyExpr) {
237           originalV = State->getSVal(copyExpr, LCtx);
238         } else {
239           originalV = State->getSVal(loc::MemRegionVal(originalR));
240         }
241         State = State->bindLoc(loc::MemRegionVal(capturedR), originalV, LCtx);
242       }
243     }
244   }
245 
246   ExplodedNodeSet Tmp;
247   StmtNodeBuilder Bldr(Pred, Tmp, *currBldrCtx);
248   Bldr.generateNode(BE, Pred,
249                     State->BindExpr(BE, Pred->getLocationContext(), V),
250                     nullptr, ProgramPoint::PostLValueKind);
251 
252   // FIXME: Move all post/pre visits to ::Visit().
253   getCheckerManager().runCheckersForPostStmt(Dst, Tmp, BE, *this);
254 }
255 
256 ProgramStateRef ExprEngine::handleLValueBitCast(
257     ProgramStateRef state, const Expr* Ex, const LocationContext* LCtx,
258     QualType T, QualType ExTy, const CastExpr* CastE, StmtNodeBuilder& Bldr,
259     ExplodedNode* Pred) {
260   if (T->isLValueReferenceType()) {
261     assert(!CastE->getType()->isLValueReferenceType());
262     ExTy = getContext().getLValueReferenceType(ExTy);
263   } else if (T->isRValueReferenceType()) {
264     assert(!CastE->getType()->isRValueReferenceType());
265     ExTy = getContext().getRValueReferenceType(ExTy);
266   }
267   // Delegate to SValBuilder to process.
268   SVal OrigV = state->getSVal(Ex, LCtx);
269   SVal V = svalBuilder.evalCast(OrigV, T, ExTy);
270   // Negate the result if we're treating the boolean as a signed i1
271   if (CastE->getCastKind() == CK_BooleanToSignedIntegral)
272     V = evalMinus(V);
273   state = state->BindExpr(CastE, LCtx, V);
274   if (V.isUnknown() && !OrigV.isUnknown()) {
275     state = escapeValue(state, OrigV, PSK_EscapeOther);
276   }
277   Bldr.generateNode(CastE, Pred, state);
278 
279   return state;
280 }
281 
282 ProgramStateRef ExprEngine::handleLVectorSplat(
283     ProgramStateRef state, const LocationContext* LCtx, const CastExpr* CastE,
284     StmtNodeBuilder &Bldr, ExplodedNode* Pred) {
285   // Recover some path sensitivity by conjuring a new value.
286   QualType resultType = CastE->getType();
287   if (CastE->isGLValue())
288     resultType = getContext().getPointerType(resultType);
289   SVal result = svalBuilder.conjureSymbolVal(nullptr, CastE, LCtx,
290                                              resultType,
291                                              currBldrCtx->blockCount());
292   state = state->BindExpr(CastE, LCtx, result);
293   Bldr.generateNode(CastE, Pred, state);
294 
295   return state;
296 }
297 
298 void ExprEngine::VisitCast(const CastExpr *CastE, const Expr *Ex,
299                            ExplodedNode *Pred, ExplodedNodeSet &Dst) {
300 
301   ExplodedNodeSet dstPreStmt;
302   getCheckerManager().runCheckersForPreStmt(dstPreStmt, Pred, CastE, *this);
303 
304   if (CastE->getCastKind() == CK_LValueToRValue) {
305     for (ExplodedNodeSet::iterator I = dstPreStmt.begin(), E = dstPreStmt.end();
306          I!=E; ++I) {
307       ExplodedNode *subExprNode = *I;
308       ProgramStateRef state = subExprNode->getState();
309       const LocationContext *LCtx = subExprNode->getLocationContext();
310       evalLoad(Dst, CastE, CastE, subExprNode, state, state->getSVal(Ex, LCtx));
311     }
312     return;
313   }
314 
315   // All other casts.
316   QualType T = CastE->getType();
317   QualType ExTy = Ex->getType();
318 
319   if (const ExplicitCastExpr *ExCast=dyn_cast_or_null<ExplicitCastExpr>(CastE))
320     T = ExCast->getTypeAsWritten();
321 
322   StmtNodeBuilder Bldr(dstPreStmt, Dst, *currBldrCtx);
323   for (ExplodedNodeSet::iterator I = dstPreStmt.begin(), E = dstPreStmt.end();
324        I != E; ++I) {
325 
326     Pred = *I;
327     ProgramStateRef state = Pred->getState();
328     const LocationContext *LCtx = Pred->getLocationContext();
329 
330     switch (CastE->getCastKind()) {
331       case CK_LValueToRValue:
332         llvm_unreachable("LValueToRValue casts handled earlier.");
333       case CK_ToVoid:
334         continue;
335         // The analyzer doesn't do anything special with these casts,
336         // since it understands retain/release semantics already.
337       case CK_ARCProduceObject:
338       case CK_ARCConsumeObject:
339       case CK_ARCReclaimReturnedObject:
340       case CK_ARCExtendBlockObject: // Fall-through.
341       case CK_CopyAndAutoreleaseBlockObject:
342         // The analyser can ignore atomic casts for now, although some future
343         // checkers may want to make certain that you're not modifying the same
344         // value through atomic and nonatomic pointers.
345       case CK_AtomicToNonAtomic:
346       case CK_NonAtomicToAtomic:
347         // True no-ops.
348       case CK_NoOp:
349       case CK_ConstructorConversion:
350       case CK_UserDefinedConversion:
351       case CK_FunctionToPointerDecay:
352       case CK_BuiltinFnToFnPtr: {
353         // Copy the SVal of Ex to CastE.
354         ProgramStateRef state = Pred->getState();
355         const LocationContext *LCtx = Pred->getLocationContext();
356         SVal V = state->getSVal(Ex, LCtx);
357         state = state->BindExpr(CastE, LCtx, V);
358         Bldr.generateNode(CastE, Pred, state);
359         continue;
360       }
361       case CK_MemberPointerToBoolean:
362       case CK_PointerToBoolean: {
363         SVal V = state->getSVal(Ex, LCtx);
364         auto PTMSV = V.getAs<nonloc::PointerToMember>();
365         if (PTMSV)
366           V = svalBuilder.makeTruthVal(!PTMSV->isNullMemberPointer(), ExTy);
367         if (V.isUndef() || PTMSV) {
368           state = state->BindExpr(CastE, LCtx, V);
369           Bldr.generateNode(CastE, Pred, state);
370           continue;
371         }
372         // Explicitly proceed with default handler for this case cascade.
373         state =
374             handleLValueBitCast(state, Ex, LCtx, T, ExTy, CastE, Bldr, Pred);
375         continue;
376       }
377       case CK_Dependent:
378       case CK_ArrayToPointerDecay:
379       case CK_BitCast:
380       case CK_AddressSpaceConversion:
381       case CK_BooleanToSignedIntegral:
382       case CK_IntegralToPointer:
383       case CK_PointerToIntegral: {
384         SVal V = state->getSVal(Ex, LCtx);
385         if (V.getAs<nonloc::PointerToMember>()) {
386           state = state->BindExpr(CastE, LCtx, UnknownVal());
387           Bldr.generateNode(CastE, Pred, state);
388           continue;
389         }
390         // Explicitly proceed with default handler for this case cascade.
391         state =
392             handleLValueBitCast(state, Ex, LCtx, T, ExTy, CastE, Bldr, Pred);
393         continue;
394       }
395       case CK_IntegralToBoolean:
396       case CK_IntegralToFloating:
397       case CK_FloatingToIntegral:
398       case CK_FloatingToBoolean:
399       case CK_FloatingCast:
400       case CK_FloatingRealToComplex:
401       case CK_FloatingComplexToReal:
402       case CK_FloatingComplexToBoolean:
403       case CK_FloatingComplexCast:
404       case CK_FloatingComplexToIntegralComplex:
405       case CK_IntegralRealToComplex:
406       case CK_IntegralComplexToReal:
407       case CK_IntegralComplexToBoolean:
408       case CK_IntegralComplexCast:
409       case CK_IntegralComplexToFloatingComplex:
410       case CK_CPointerToObjCPointerCast:
411       case CK_BlockPointerToObjCPointerCast:
412       case CK_AnyPointerToBlockPointerCast:
413       case CK_ObjCObjectLValueCast:
414       case CK_ZeroToOCLOpaqueType:
415       case CK_IntToOCLSampler:
416       case CK_LValueBitCast:
417       case CK_FixedPointCast:
418       case CK_FixedPointToBoolean: {
419         state =
420             handleLValueBitCast(state, Ex, LCtx, T, ExTy, CastE, Bldr, Pred);
421         continue;
422       }
423       case CK_IntegralCast: {
424         // Delegate to SValBuilder to process.
425         SVal V = state->getSVal(Ex, LCtx);
426         V = svalBuilder.evalIntegralCast(state, V, T, ExTy);
427         state = state->BindExpr(CastE, LCtx, V);
428         Bldr.generateNode(CastE, Pred, state);
429         continue;
430       }
431       case CK_DerivedToBase:
432       case CK_UncheckedDerivedToBase: {
433         // For DerivedToBase cast, delegate to the store manager.
434         SVal val = state->getSVal(Ex, LCtx);
435         val = getStoreManager().evalDerivedToBase(val, CastE);
436         state = state->BindExpr(CastE, LCtx, val);
437         Bldr.generateNode(CastE, Pred, state);
438         continue;
439       }
440       // Handle C++ dyn_cast.
441       case CK_Dynamic: {
442         SVal val = state->getSVal(Ex, LCtx);
443 
444         // Compute the type of the result.
445         QualType resultType = CastE->getType();
446         if (CastE->isGLValue())
447           resultType = getContext().getPointerType(resultType);
448 
449         bool Failed = false;
450 
451         // Check if the value being cast evaluates to 0.
452         if (val.isZeroConstant())
453           Failed = true;
454         // Else, evaluate the cast.
455         else
456           val = getStoreManager().attemptDownCast(val, T, Failed);
457 
458         if (Failed) {
459           if (T->isReferenceType()) {
460             // A bad_cast exception is thrown if input value is a reference.
461             // Currently, we model this, by generating a sink.
462             Bldr.generateSink(CastE, Pred, state);
463             continue;
464           } else {
465             // If the cast fails on a pointer, bind to 0.
466             state = state->BindExpr(CastE, LCtx, svalBuilder.makeNull());
467           }
468         } else {
469           // If we don't know if the cast succeeded, conjure a new symbol.
470           if (val.isUnknown()) {
471             DefinedOrUnknownSVal NewSym =
472               svalBuilder.conjureSymbolVal(nullptr, CastE, LCtx, resultType,
473                                            currBldrCtx->blockCount());
474             state = state->BindExpr(CastE, LCtx, NewSym);
475           } else
476             // Else, bind to the derived region value.
477             state = state->BindExpr(CastE, LCtx, val);
478         }
479         Bldr.generateNode(CastE, Pred, state);
480         continue;
481       }
482       case CK_BaseToDerived: {
483         SVal val = state->getSVal(Ex, LCtx);
484         QualType resultType = CastE->getType();
485         if (CastE->isGLValue())
486           resultType = getContext().getPointerType(resultType);
487 
488         bool Failed = false;
489 
490         if (!val.isConstant()) {
491           val = getStoreManager().attemptDownCast(val, T, Failed);
492         }
493 
494         // Failed to cast or the result is unknown, fall back to conservative.
495         if (Failed || val.isUnknown()) {
496           val =
497             svalBuilder.conjureSymbolVal(nullptr, CastE, LCtx, resultType,
498                                          currBldrCtx->blockCount());
499         }
500         state = state->BindExpr(CastE, LCtx, val);
501         Bldr.generateNode(CastE, Pred, state);
502         continue;
503       }
504       case CK_NullToPointer: {
505         SVal V = svalBuilder.makeNull();
506         state = state->BindExpr(CastE, LCtx, V);
507         Bldr.generateNode(CastE, Pred, state);
508         continue;
509       }
510       case CK_NullToMemberPointer: {
511         SVal V = svalBuilder.getMemberPointer(nullptr);
512         state = state->BindExpr(CastE, LCtx, V);
513         Bldr.generateNode(CastE, Pred, state);
514         continue;
515       }
516       case CK_DerivedToBaseMemberPointer:
517       case CK_BaseToDerivedMemberPointer:
518       case CK_ReinterpretMemberPointer: {
519         SVal V = state->getSVal(Ex, LCtx);
520         if (auto PTMSV = V.getAs<nonloc::PointerToMember>()) {
521           SVal CastedPTMSV = svalBuilder.makePointerToMember(
522               getBasicVals().accumCXXBase(
523                   llvm::make_range<CastExpr::path_const_iterator>(
524                       CastE->path_begin(), CastE->path_end()), *PTMSV));
525           state = state->BindExpr(CastE, LCtx, CastedPTMSV);
526           Bldr.generateNode(CastE, Pred, state);
527           continue;
528         }
529         // Explicitly proceed with default handler for this case cascade.
530         state = handleLVectorSplat(state, LCtx, CastE, Bldr, Pred);
531         continue;
532       }
533       // Various C++ casts that are not handled yet.
534       case CK_ToUnion:
535       case CK_VectorSplat: {
536         state = handleLVectorSplat(state, LCtx, CastE, Bldr, Pred);
537         continue;
538       }
539     }
540   }
541 }
542 
543 void ExprEngine::VisitCompoundLiteralExpr(const CompoundLiteralExpr *CL,
544                                           ExplodedNode *Pred,
545                                           ExplodedNodeSet &Dst) {
546   StmtNodeBuilder B(Pred, Dst, *currBldrCtx);
547 
548   ProgramStateRef State = Pred->getState();
549   const LocationContext *LCtx = Pred->getLocationContext();
550 
551   const Expr *Init = CL->getInitializer();
552   SVal V = State->getSVal(CL->getInitializer(), LCtx);
553 
554   if (isa<CXXConstructExpr>(Init) || isa<CXXStdInitializerListExpr>(Init)) {
555     // No work needed. Just pass the value up to this expression.
556   } else {
557     assert(isa<InitListExpr>(Init));
558     Loc CLLoc = State->getLValue(CL, LCtx);
559     State = State->bindLoc(CLLoc, V, LCtx);
560 
561     if (CL->isGLValue())
562       V = CLLoc;
563   }
564 
565   B.generateNode(CL, Pred, State->BindExpr(CL, LCtx, V));
566 }
567 
568 void ExprEngine::VisitDeclStmt(const DeclStmt *DS, ExplodedNode *Pred,
569                                ExplodedNodeSet &Dst) {
570   // Assumption: The CFG has one DeclStmt per Decl.
571   const VarDecl *VD = dyn_cast_or_null<VarDecl>(*DS->decl_begin());
572 
573   if (!VD) {
574     //TODO:AZ: remove explicit insertion after refactoring is done.
575     Dst.insert(Pred);
576     return;
577   }
578 
579   // FIXME: all pre/post visits should eventually be handled by ::Visit().
580   ExplodedNodeSet dstPreVisit;
581   getCheckerManager().runCheckersForPreStmt(dstPreVisit, Pred, DS, *this);
582 
583   ExplodedNodeSet dstEvaluated;
584   StmtNodeBuilder B(dstPreVisit, dstEvaluated, *currBldrCtx);
585   for (ExplodedNodeSet::iterator I = dstPreVisit.begin(), E = dstPreVisit.end();
586        I!=E; ++I) {
587     ExplodedNode *N = *I;
588     ProgramStateRef state = N->getState();
589     const LocationContext *LC = N->getLocationContext();
590 
591     // Decls without InitExpr are not initialized explicitly.
592     if (const Expr *InitEx = VD->getInit()) {
593 
594       // Note in the state that the initialization has occurred.
595       ExplodedNode *UpdatedN = N;
596       SVal InitVal = state->getSVal(InitEx, LC);
597 
598       assert(DS->isSingleDecl());
599       if (getObjectUnderConstruction(state, DS, LC)) {
600         state = finishObjectConstruction(state, DS, LC);
601         // We constructed the object directly in the variable.
602         // No need to bind anything.
603         B.generateNode(DS, UpdatedN, state);
604       } else {
605         // Recover some path-sensitivity if a scalar value evaluated to
606         // UnknownVal.
607         if (InitVal.isUnknown()) {
608           QualType Ty = InitEx->getType();
609           if (InitEx->isGLValue()) {
610             Ty = getContext().getPointerType(Ty);
611           }
612 
613           InitVal = svalBuilder.conjureSymbolVal(nullptr, InitEx, LC, Ty,
614                                                  currBldrCtx->blockCount());
615         }
616 
617 
618         B.takeNodes(UpdatedN);
619         ExplodedNodeSet Dst2;
620         evalBind(Dst2, DS, UpdatedN, state->getLValue(VD, LC), InitVal, true);
621         B.addNodes(Dst2);
622       }
623     }
624     else {
625       B.generateNode(DS, N, state);
626     }
627   }
628 
629   getCheckerManager().runCheckersForPostStmt(Dst, B.getResults(), DS, *this);
630 }
631 
632 void ExprEngine::VisitLogicalExpr(const BinaryOperator* B, ExplodedNode *Pred,
633                                   ExplodedNodeSet &Dst) {
634   assert(B->getOpcode() == BO_LAnd ||
635          B->getOpcode() == BO_LOr);
636 
637   StmtNodeBuilder Bldr(Pred, Dst, *currBldrCtx);
638   ProgramStateRef state = Pred->getState();
639 
640   if (B->getType()->isVectorType()) {
641     // FIXME: We do not model vector arithmetic yet. When adding support for
642     // that, note that the CFG-based reasoning below does not apply, because
643     // logical operators on vectors are not short-circuit. Currently they are
644     // modeled as short-circuit in Clang CFG but this is incorrect.
645     // Do not set the value for the expression. It'd be UnknownVal by default.
646     Bldr.generateNode(B, Pred, state);
647     return;
648   }
649 
650   ExplodedNode *N = Pred;
651   while (!N->getLocation().getAs<BlockEntrance>()) {
652     ProgramPoint P = N->getLocation();
653     assert(P.getAs<PreStmt>()|| P.getAs<PreStmtPurgeDeadSymbols>());
654     (void) P;
655     assert(N->pred_size() == 1);
656     N = *N->pred_begin();
657   }
658   assert(N->pred_size() == 1);
659   N = *N->pred_begin();
660   BlockEdge BE = N->getLocation().castAs<BlockEdge>();
661   SVal X;
662 
663   // Determine the value of the expression by introspecting how we
664   // got this location in the CFG.  This requires looking at the previous
665   // block we were in and what kind of control-flow transfer was involved.
666   const CFGBlock *SrcBlock = BE.getSrc();
667   // The only terminator (if there is one) that makes sense is a logical op.
668   CFGTerminator T = SrcBlock->getTerminator();
669   if (const BinaryOperator *Term = cast_or_null<BinaryOperator>(T.getStmt())) {
670     (void) Term;
671     assert(Term->isLogicalOp());
672     assert(SrcBlock->succ_size() == 2);
673     // Did we take the true or false branch?
674     unsigned constant = (*SrcBlock->succ_begin() == BE.getDst()) ? 1 : 0;
675     X = svalBuilder.makeIntVal(constant, B->getType());
676   }
677   else {
678     // If there is no terminator, by construction the last statement
679     // in SrcBlock is the value of the enclosing expression.
680     // However, we still need to constrain that value to be 0 or 1.
681     assert(!SrcBlock->empty());
682     CFGStmt Elem = SrcBlock->rbegin()->castAs<CFGStmt>();
683     const Expr *RHS = cast<Expr>(Elem.getStmt());
684     SVal RHSVal = N->getState()->getSVal(RHS, Pred->getLocationContext());
685 
686     if (RHSVal.isUndef()) {
687       X = RHSVal;
688     } else {
689       // We evaluate "RHSVal != 0" expression which result in 0 if the value is
690       // known to be false, 1 if the value is known to be true and a new symbol
691       // when the assumption is unknown.
692       nonloc::ConcreteInt Zero(getBasicVals().getValue(0, B->getType()));
693       X = evalBinOp(N->getState(), BO_NE,
694                     svalBuilder.evalCast(RHSVal, B->getType(), RHS->getType()),
695                     Zero, B->getType());
696     }
697   }
698   Bldr.generateNode(B, Pred, state->BindExpr(B, Pred->getLocationContext(), X));
699 }
700 
701 void ExprEngine::VisitInitListExpr(const InitListExpr *IE,
702                                    ExplodedNode *Pred,
703                                    ExplodedNodeSet &Dst) {
704   StmtNodeBuilder B(Pred, Dst, *currBldrCtx);
705 
706   ProgramStateRef state = Pred->getState();
707   const LocationContext *LCtx = Pred->getLocationContext();
708   QualType T = getContext().getCanonicalType(IE->getType());
709   unsigned NumInitElements = IE->getNumInits();
710 
711   if (!IE->isGLValue() &&
712       (T->isArrayType() || T->isRecordType() || T->isVectorType() ||
713        T->isAnyComplexType())) {
714     llvm::ImmutableList<SVal> vals = getBasicVals().getEmptySValList();
715 
716     // Handle base case where the initializer has no elements.
717     // e.g: static int* myArray[] = {};
718     if (NumInitElements == 0) {
719       SVal V = svalBuilder.makeCompoundVal(T, vals);
720       B.generateNode(IE, Pred, state->BindExpr(IE, LCtx, V));
721       return;
722     }
723 
724     for (InitListExpr::const_reverse_iterator it = IE->rbegin(),
725          ei = IE->rend(); it != ei; ++it) {
726       SVal V = state->getSVal(cast<Expr>(*it), LCtx);
727       vals = getBasicVals().prependSVal(V, vals);
728     }
729 
730     B.generateNode(IE, Pred,
731                    state->BindExpr(IE, LCtx,
732                                    svalBuilder.makeCompoundVal(T, vals)));
733     return;
734   }
735 
736   // Handle scalars: int{5} and int{} and GLvalues.
737   // Note, if the InitListExpr is a GLvalue, it means that there is an address
738   // representing it, so it must have a single init element.
739   assert(NumInitElements <= 1);
740 
741   SVal V;
742   if (NumInitElements == 0)
743     V = getSValBuilder().makeZeroVal(T);
744   else
745     V = state->getSVal(IE->getInit(0), LCtx);
746 
747   B.generateNode(IE, Pred, state->BindExpr(IE, LCtx, V));
748 }
749 
750 void ExprEngine::VisitGuardedExpr(const Expr *Ex,
751                                   const Expr *L,
752                                   const Expr *R,
753                                   ExplodedNode *Pred,
754                                   ExplodedNodeSet &Dst) {
755   assert(L && R);
756 
757   StmtNodeBuilder B(Pred, Dst, *currBldrCtx);
758   ProgramStateRef state = Pred->getState();
759   const LocationContext *LCtx = Pred->getLocationContext();
760   const CFGBlock *SrcBlock = nullptr;
761 
762   // Find the predecessor block.
763   ProgramStateRef SrcState = state;
764   for (const ExplodedNode *N = Pred ; N ; N = *N->pred_begin()) {
765     ProgramPoint PP = N->getLocation();
766     if (PP.getAs<PreStmtPurgeDeadSymbols>() || PP.getAs<BlockEntrance>()) {
767       // If the state N has multiple predecessors P, it means that successors
768       // of P are all equivalent.
769       // In turn, that means that all nodes at P are equivalent in terms
770       // of observable behavior at N, and we can follow any of them.
771       // FIXME: a more robust solution which does not walk up the tree.
772       continue;
773     }
774     SrcBlock = PP.castAs<BlockEdge>().getSrc();
775     SrcState = N->getState();
776     break;
777   }
778 
779   assert(SrcBlock && "missing function entry");
780 
781   // Find the last expression in the predecessor block.  That is the
782   // expression that is used for the value of the ternary expression.
783   bool hasValue = false;
784   SVal V;
785 
786   for (CFGElement CE : llvm::reverse(*SrcBlock)) {
787     if (Optional<CFGStmt> CS = CE.getAs<CFGStmt>()) {
788       const Expr *ValEx = cast<Expr>(CS->getStmt());
789       ValEx = ValEx->IgnoreParens();
790 
791       // For GNU extension '?:' operator, the left hand side will be an
792       // OpaqueValueExpr, so get the underlying expression.
793       if (const OpaqueValueExpr *OpaqueEx = dyn_cast<OpaqueValueExpr>(L))
794         L = OpaqueEx->getSourceExpr();
795 
796       // If the last expression in the predecessor block matches true or false
797       // subexpression, get its the value.
798       if (ValEx == L->IgnoreParens() || ValEx == R->IgnoreParens()) {
799         hasValue = true;
800         V = SrcState->getSVal(ValEx, LCtx);
801       }
802       break;
803     }
804   }
805 
806   if (!hasValue)
807     V = svalBuilder.conjureSymbolVal(nullptr, Ex, LCtx,
808                                      currBldrCtx->blockCount());
809 
810   // Generate a new node with the binding from the appropriate path.
811   B.generateNode(Ex, Pred, state->BindExpr(Ex, LCtx, V, true));
812 }
813 
814 void ExprEngine::
815 VisitOffsetOfExpr(const OffsetOfExpr *OOE,
816                   ExplodedNode *Pred, ExplodedNodeSet &Dst) {
817   StmtNodeBuilder B(Pred, Dst, *currBldrCtx);
818   APSInt IV;
819   if (OOE->EvaluateAsInt(IV, getContext())) {
820     assert(IV.getBitWidth() == getContext().getTypeSize(OOE->getType()));
821     assert(OOE->getType()->isBuiltinType());
822     assert(OOE->getType()->getAs<BuiltinType>()->isInteger());
823     assert(IV.isSigned() == OOE->getType()->isSignedIntegerType());
824     SVal X = svalBuilder.makeIntVal(IV);
825     B.generateNode(OOE, Pred,
826                    Pred->getState()->BindExpr(OOE, Pred->getLocationContext(),
827                                               X));
828   }
829   // FIXME: Handle the case where __builtin_offsetof is not a constant.
830 }
831 
832 
833 void ExprEngine::
834 VisitUnaryExprOrTypeTraitExpr(const UnaryExprOrTypeTraitExpr *Ex,
835                               ExplodedNode *Pred,
836                               ExplodedNodeSet &Dst) {
837   // FIXME: Prechecks eventually go in ::Visit().
838   ExplodedNodeSet CheckedSet;
839   getCheckerManager().runCheckersForPreStmt(CheckedSet, Pred, Ex, *this);
840 
841   ExplodedNodeSet EvalSet;
842   StmtNodeBuilder Bldr(CheckedSet, EvalSet, *currBldrCtx);
843 
844   QualType T = Ex->getTypeOfArgument();
845 
846   for (ExplodedNodeSet::iterator I = CheckedSet.begin(), E = CheckedSet.end();
847        I != E; ++I) {
848     if (Ex->getKind() == UETT_SizeOf) {
849       if (!T->isIncompleteType() && !T->isConstantSizeType()) {
850         assert(T->isVariableArrayType() && "Unknown non-constant-sized type.");
851 
852         // FIXME: Add support for VLA type arguments and VLA expressions.
853         // When that happens, we should probably refactor VLASizeChecker's code.
854         continue;
855       } else if (T->getAs<ObjCObjectType>()) {
856         // Some code tries to take the sizeof an ObjCObjectType, relying that
857         // the compiler has laid out its representation.  Just report Unknown
858         // for these.
859         continue;
860       }
861     }
862 
863     APSInt Value = Ex->EvaluateKnownConstInt(getContext());
864     CharUnits amt = CharUnits::fromQuantity(Value.getZExtValue());
865 
866     ProgramStateRef state = (*I)->getState();
867     state = state->BindExpr(Ex, (*I)->getLocationContext(),
868                             svalBuilder.makeIntVal(amt.getQuantity(),
869                                                    Ex->getType()));
870     Bldr.generateNode(Ex, *I, state);
871   }
872 
873   getCheckerManager().runCheckersForPostStmt(Dst, EvalSet, Ex, *this);
874 }
875 
876 void ExprEngine::handleUOExtension(ExplodedNodeSet::iterator I,
877                                    const UnaryOperator *U,
878                                    StmtNodeBuilder &Bldr) {
879   // FIXME: We can probably just have some magic in Environment::getSVal()
880   // that propagates values, instead of creating a new node here.
881   //
882   // Unary "+" is a no-op, similar to a parentheses.  We still have places
883   // where it may be a block-level expression, so we need to
884   // generate an extra node that just propagates the value of the
885   // subexpression.
886   const Expr *Ex = U->getSubExpr()->IgnoreParens();
887   ProgramStateRef state = (*I)->getState();
888   const LocationContext *LCtx = (*I)->getLocationContext();
889   Bldr.generateNode(U, *I, state->BindExpr(U, LCtx,
890                                            state->getSVal(Ex, LCtx)));
891 }
892 
893 void ExprEngine::VisitUnaryOperator(const UnaryOperator* U, ExplodedNode *Pred,
894                                     ExplodedNodeSet &Dst) {
895   // FIXME: Prechecks eventually go in ::Visit().
896   ExplodedNodeSet CheckedSet;
897   getCheckerManager().runCheckersForPreStmt(CheckedSet, Pred, U, *this);
898 
899   ExplodedNodeSet EvalSet;
900   StmtNodeBuilder Bldr(CheckedSet, EvalSet, *currBldrCtx);
901 
902   for (ExplodedNodeSet::iterator I = CheckedSet.begin(), E = CheckedSet.end();
903        I != E; ++I) {
904     switch (U->getOpcode()) {
905     default: {
906       Bldr.takeNodes(*I);
907       ExplodedNodeSet Tmp;
908       VisitIncrementDecrementOperator(U, *I, Tmp);
909       Bldr.addNodes(Tmp);
910       break;
911     }
912     case UO_Real: {
913       const Expr *Ex = U->getSubExpr()->IgnoreParens();
914 
915       // FIXME: We don't have complex SValues yet.
916       if (Ex->getType()->isAnyComplexType()) {
917         // Just report "Unknown."
918         break;
919       }
920 
921       // For all other types, UO_Real is an identity operation.
922       assert (U->getType() == Ex->getType());
923       ProgramStateRef state = (*I)->getState();
924       const LocationContext *LCtx = (*I)->getLocationContext();
925       Bldr.generateNode(U, *I, state->BindExpr(U, LCtx,
926                                                state->getSVal(Ex, LCtx)));
927       break;
928     }
929 
930     case UO_Imag: {
931       const Expr *Ex = U->getSubExpr()->IgnoreParens();
932       // FIXME: We don't have complex SValues yet.
933       if (Ex->getType()->isAnyComplexType()) {
934         // Just report "Unknown."
935         break;
936       }
937       // For all other types, UO_Imag returns 0.
938       ProgramStateRef state = (*I)->getState();
939       const LocationContext *LCtx = (*I)->getLocationContext();
940       SVal X = svalBuilder.makeZeroVal(Ex->getType());
941       Bldr.generateNode(U, *I, state->BindExpr(U, LCtx, X));
942       break;
943     }
944 
945     case UO_AddrOf: {
946       // Process pointer-to-member address operation.
947       const Expr *Ex = U->getSubExpr()->IgnoreParens();
948       if (const DeclRefExpr *DRE = dyn_cast<DeclRefExpr>(Ex)) {
949         const ValueDecl *VD = DRE->getDecl();
950 
951         if (isa<CXXMethodDecl>(VD) || isa<FieldDecl>(VD)) {
952           ProgramStateRef State = (*I)->getState();
953           const LocationContext *LCtx = (*I)->getLocationContext();
954           SVal SV = svalBuilder.getMemberPointer(cast<DeclaratorDecl>(VD));
955           Bldr.generateNode(U, *I, State->BindExpr(U, LCtx, SV));
956           break;
957         }
958       }
959       // Explicitly proceed with default handler for this case cascade.
960       handleUOExtension(I, U, Bldr);
961       break;
962     }
963     case UO_Plus:
964       assert(!U->isGLValue());
965       // FALL-THROUGH.
966     case UO_Deref:
967     case UO_Extension: {
968       handleUOExtension(I, U, Bldr);
969       break;
970     }
971 
972     case UO_LNot:
973     case UO_Minus:
974     case UO_Not: {
975       assert (!U->isGLValue());
976       const Expr *Ex = U->getSubExpr()->IgnoreParens();
977       ProgramStateRef state = (*I)->getState();
978       const LocationContext *LCtx = (*I)->getLocationContext();
979 
980       // Get the value of the subexpression.
981       SVal V = state->getSVal(Ex, LCtx);
982 
983       if (V.isUnknownOrUndef()) {
984         Bldr.generateNode(U, *I, state->BindExpr(U, LCtx, V));
985         break;
986       }
987 
988       switch (U->getOpcode()) {
989         default:
990           llvm_unreachable("Invalid Opcode.");
991         case UO_Not:
992           // FIXME: Do we need to handle promotions?
993           state = state->BindExpr(U, LCtx, evalComplement(V.castAs<NonLoc>()));
994           break;
995         case UO_Minus:
996           // FIXME: Do we need to handle promotions?
997           state = state->BindExpr(U, LCtx, evalMinus(V.castAs<NonLoc>()));
998           break;
999         case UO_LNot:
1000           // C99 6.5.3.3: "The expression !E is equivalent to (0==E)."
1001           //
1002           //  Note: technically we do "E == 0", but this is the same in the
1003           //    transfer functions as "0 == E".
1004           SVal Result;
1005           if (Optional<Loc> LV = V.getAs<Loc>()) {
1006             Loc X = svalBuilder.makeNullWithType(Ex->getType());
1007             Result = evalBinOp(state, BO_EQ, *LV, X, U->getType());
1008           } else if (Ex->getType()->isFloatingType()) {
1009             // FIXME: handle floating point types.
1010             Result = UnknownVal();
1011           } else {
1012             nonloc::ConcreteInt X(getBasicVals().getValue(0, Ex->getType()));
1013             Result = evalBinOp(state, BO_EQ, V.castAs<NonLoc>(), X,
1014                                U->getType());
1015           }
1016 
1017           state = state->BindExpr(U, LCtx, Result);
1018           break;
1019       }
1020       Bldr.generateNode(U, *I, state);
1021       break;
1022     }
1023     }
1024   }
1025 
1026   getCheckerManager().runCheckersForPostStmt(Dst, EvalSet, U, *this);
1027 }
1028 
1029 void ExprEngine::VisitIncrementDecrementOperator(const UnaryOperator* U,
1030                                                  ExplodedNode *Pred,
1031                                                  ExplodedNodeSet &Dst) {
1032   // Handle ++ and -- (both pre- and post-increment).
1033   assert (U->isIncrementDecrementOp());
1034   const Expr *Ex = U->getSubExpr()->IgnoreParens();
1035 
1036   const LocationContext *LCtx = Pred->getLocationContext();
1037   ProgramStateRef state = Pred->getState();
1038   SVal loc = state->getSVal(Ex, LCtx);
1039 
1040   // Perform a load.
1041   ExplodedNodeSet Tmp;
1042   evalLoad(Tmp, U, Ex, Pred, state, loc);
1043 
1044   ExplodedNodeSet Dst2;
1045   StmtNodeBuilder Bldr(Tmp, Dst2, *currBldrCtx);
1046   for (ExplodedNodeSet::iterator I=Tmp.begin(), E=Tmp.end();I!=E;++I) {
1047 
1048     state = (*I)->getState();
1049     assert(LCtx == (*I)->getLocationContext());
1050     SVal V2_untested = state->getSVal(Ex, LCtx);
1051 
1052     // Propagate unknown and undefined values.
1053     if (V2_untested.isUnknownOrUndef()) {
1054       state = state->BindExpr(U, LCtx, V2_untested);
1055 
1056       // Perform the store, so that the uninitialized value detection happens.
1057       Bldr.takeNodes(*I);
1058       ExplodedNodeSet Dst3;
1059       evalStore(Dst3, U, U, *I, state, loc, V2_untested);
1060       Bldr.addNodes(Dst3);
1061 
1062       continue;
1063     }
1064     DefinedSVal V2 = V2_untested.castAs<DefinedSVal>();
1065 
1066     // Handle all other values.
1067     BinaryOperator::Opcode Op = U->isIncrementOp() ? BO_Add : BO_Sub;
1068 
1069     // If the UnaryOperator has non-location type, use its type to create the
1070     // constant value. If the UnaryOperator has location type, create the
1071     // constant with int type and pointer width.
1072     SVal RHS;
1073     SVal Result;
1074 
1075     if (U->getType()->isAnyPointerType())
1076       RHS = svalBuilder.makeArrayIndex(1);
1077     else if (U->getType()->isIntegralOrEnumerationType())
1078       RHS = svalBuilder.makeIntVal(1, U->getType());
1079     else
1080       RHS = UnknownVal();
1081 
1082     // The use of an operand of type bool with the ++ operators is deprecated
1083     // but valid until C++17. And if the operand of the ++ operator is of type
1084     // bool, it is set to true until C++17. Note that for '_Bool', it is also
1085     // set to true when it encounters ++ operator.
1086     if (U->getType()->isBooleanType() && U->isIncrementOp())
1087       Result = svalBuilder.makeTruthVal(true, U->getType());
1088     else
1089       Result = evalBinOp(state, Op, V2, RHS, U->getType());
1090 
1091     // Conjure a new symbol if necessary to recover precision.
1092     if (Result.isUnknown()){
1093       DefinedOrUnknownSVal SymVal =
1094         svalBuilder.conjureSymbolVal(nullptr, U, LCtx,
1095                                      currBldrCtx->blockCount());
1096       Result = SymVal;
1097 
1098       // If the value is a location, ++/-- should always preserve
1099       // non-nullness.  Check if the original value was non-null, and if so
1100       // propagate that constraint.
1101       if (Loc::isLocType(U->getType())) {
1102         DefinedOrUnknownSVal Constraint =
1103         svalBuilder.evalEQ(state, V2,svalBuilder.makeZeroVal(U->getType()));
1104 
1105         if (!state->assume(Constraint, true)) {
1106           // It isn't feasible for the original value to be null.
1107           // Propagate this constraint.
1108           Constraint = svalBuilder.evalEQ(state, SymVal,
1109                                        svalBuilder.makeZeroVal(U->getType()));
1110 
1111           state = state->assume(Constraint, false);
1112           assert(state);
1113         }
1114       }
1115     }
1116 
1117     // Since the lvalue-to-rvalue conversion is explicit in the AST,
1118     // we bind an l-value if the operator is prefix and an lvalue (in C++).
1119     if (U->isGLValue())
1120       state = state->BindExpr(U, LCtx, loc);
1121     else
1122       state = state->BindExpr(U, LCtx, U->isPostfix() ? V2 : Result);
1123 
1124     // Perform the store.
1125     Bldr.takeNodes(*I);
1126     ExplodedNodeSet Dst3;
1127     evalStore(Dst3, U, U, *I, state, loc, Result);
1128     Bldr.addNodes(Dst3);
1129   }
1130   Dst.insert(Dst2);
1131 }
1132