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/StaticAnalyzer/Core/CheckerManager.h"
16 #include "clang/StaticAnalyzer/Core/PathSensitive/ExprEngine.h"
17 
18 using namespace clang;
19 using namespace ento;
20 using llvm::APSInt;
21 
22 void ExprEngine::VisitBinaryOperator(const BinaryOperator* B,
23                                      ExplodedNode *Pred,
24                                      ExplodedNodeSet &Dst) {
25 
26   Expr *LHS = B->getLHS()->IgnoreParens();
27   Expr *RHS = B->getRHS()->IgnoreParens();
28 
29   // FIXME: Prechecks eventually go in ::Visit().
30   ExplodedNodeSet CheckedSet;
31   ExplodedNodeSet Tmp2;
32   getCheckerManager().runCheckersForPreStmt(CheckedSet, Pred, B, *this);
33 
34   // With both the LHS and RHS evaluated, process the operation itself.
35   for (ExplodedNodeSet::iterator it=CheckedSet.begin(), ei=CheckedSet.end();
36          it != ei; ++it) {
37 
38     ProgramStateRef state = (*it)->getState();
39     const LocationContext *LCtx = (*it)->getLocationContext();
40     SVal LeftV = state->getSVal(LHS, LCtx);
41     SVal RightV = state->getSVal(RHS, LCtx);
42 
43     BinaryOperator::Opcode Op = B->getOpcode();
44 
45     if (Op == BO_Assign) {
46       // EXPERIMENTAL: "Conjured" symbols.
47       // FIXME: Handle structs.
48       if (RightV.isUnknown()) {
49         unsigned Count = currBldrCtx->blockCount();
50         RightV = svalBuilder.conjureSymbolVal(0, B->getRHS(), LCtx, Count);
51       }
52       // Simulate the effects of a "store":  bind the value of the RHS
53       // to the L-Value represented by the LHS.
54       SVal ExprVal = B->isGLValue() ? LeftV : RightV;
55       evalStore(Tmp2, B, LHS, *it, state->BindExpr(B, LCtx, ExprVal),
56                 LeftV, RightV);
57       continue;
58     }
59 
60     if (!B->isAssignmentOp()) {
61       StmtNodeBuilder Bldr(*it, Tmp2, *currBldrCtx);
62 
63       if (B->isAdditiveOp()) {
64         // If one of the operands is a location, conjure a symbol for the other
65         // one (offset) if it's unknown so that memory arithmetic always
66         // results in an ElementRegion.
67         // TODO: This can be removed after we enable history tracking with
68         // SymSymExpr.
69         unsigned Count = currBldrCtx->blockCount();
70         if (LeftV.getAs<Loc>() &&
71             RHS->getType()->isIntegralOrEnumerationType() &&
72             RightV.isUnknown()) {
73           RightV = svalBuilder.conjureSymbolVal(RHS, LCtx, RHS->getType(),
74                                                 Count);
75         }
76         if (RightV.getAs<Loc>() &&
77             LHS->getType()->isIntegralOrEnumerationType() &&
78             LeftV.isUnknown()) {
79           LeftV = svalBuilder.conjureSymbolVal(LHS, LCtx, LHS->getType(),
80                                                Count);
81         }
82       }
83 
84       // Process non-assignments except commas or short-circuited
85       // logical expressions (LAnd and LOr).
86       SVal Result = evalBinOp(state, Op, LeftV, RightV, B->getType());
87       if (Result.isUnknown()) {
88         Bldr.generateNode(B, *it, state);
89         continue;
90       }
91 
92       state = state->BindExpr(B, LCtx, Result);
93       Bldr.generateNode(B, *it, state);
94       continue;
95     }
96 
97     assert (B->isCompoundAssignmentOp());
98 
99     switch (Op) {
100       default:
101         llvm_unreachable("Invalid opcode for compound assignment.");
102       case BO_MulAssign: Op = BO_Mul; break;
103       case BO_DivAssign: Op = BO_Div; break;
104       case BO_RemAssign: Op = BO_Rem; break;
105       case BO_AddAssign: Op = BO_Add; break;
106       case BO_SubAssign: Op = BO_Sub; break;
107       case BO_ShlAssign: Op = BO_Shl; break;
108       case BO_ShrAssign: Op = BO_Shr; break;
109       case BO_AndAssign: Op = BO_And; break;
110       case BO_XorAssign: Op = BO_Xor; break;
111       case BO_OrAssign:  Op = BO_Or;  break;
112     }
113 
114     // Perform a load (the LHS).  This performs the checks for
115     // null dereferences, and so on.
116     ExplodedNodeSet Tmp;
117     SVal location = LeftV;
118     evalLoad(Tmp, B, LHS, *it, state, location);
119 
120     for (ExplodedNodeSet::iterator I = Tmp.begin(), E = Tmp.end(); I != E;
121          ++I) {
122 
123       state = (*I)->getState();
124       const LocationContext *LCtx = (*I)->getLocationContext();
125       SVal V = state->getSVal(LHS, LCtx);
126 
127       // Get the computation type.
128       QualType CTy =
129         cast<CompoundAssignOperator>(B)->getComputationResultType();
130       CTy = getContext().getCanonicalType(CTy);
131 
132       QualType CLHSTy =
133         cast<CompoundAssignOperator>(B)->getComputationLHSType();
134       CLHSTy = getContext().getCanonicalType(CLHSTy);
135 
136       QualType LTy = getContext().getCanonicalType(LHS->getType());
137 
138       // Promote LHS.
139       V = svalBuilder.evalCast(V, CLHSTy, LTy);
140 
141       // Compute the result of the operation.
142       SVal Result = svalBuilder.evalCast(evalBinOp(state, Op, V, RightV, CTy),
143                                          B->getType(), CTy);
144 
145       // EXPERIMENTAL: "Conjured" symbols.
146       // FIXME: Handle structs.
147 
148       SVal LHSVal;
149 
150       if (Result.isUnknown()) {
151         // The symbolic value is actually for the type of the left-hand side
152         // expression, not the computation type, as this is the value the
153         // LValue on the LHS will bind to.
154         LHSVal = svalBuilder.conjureSymbolVal(0, B->getRHS(), LCtx, LTy,
155                                               currBldrCtx->blockCount());
156         // However, we need to convert the symbol to the computation type.
157         Result = svalBuilder.evalCast(LHSVal, CTy, LTy);
158       }
159       else {
160         // The left-hand side may bind to a different value then the
161         // computation type.
162         LHSVal = svalBuilder.evalCast(Result, LTy, CTy);
163       }
164 
165       // In C++, assignment and compound assignment operators return an
166       // lvalue.
167       if (B->isGLValue())
168         state = state->BindExpr(B, LCtx, location);
169       else
170         state = state->BindExpr(B, LCtx, Result);
171 
172       evalStore(Tmp2, B, LHS, *I, state, location, LHSVal);
173     }
174   }
175 
176   // FIXME: postvisits eventually go in ::Visit()
177   getCheckerManager().runCheckersForPostStmt(Dst, Tmp2, B, *this);
178 }
179 
180 void ExprEngine::VisitBlockExpr(const BlockExpr *BE, ExplodedNode *Pred,
181                                 ExplodedNodeSet &Dst) {
182 
183   CanQualType T = getContext().getCanonicalType(BE->getType());
184 
185   // Get the value of the block itself.
186   SVal V = svalBuilder.getBlockPointer(BE->getBlockDecl(), T,
187                                        Pred->getLocationContext());
188 
189   ProgramStateRef State = Pred->getState();
190 
191   // If we created a new MemRegion for the block, we should explicitly bind
192   // the captured variables.
193   if (const BlockDataRegion *BDR =
194       dyn_cast_or_null<BlockDataRegion>(V.getAsRegion())) {
195 
196     BlockDataRegion::referenced_vars_iterator I = BDR->referenced_vars_begin(),
197                                               E = BDR->referenced_vars_end();
198 
199     for (; I != E; ++I) {
200       const MemRegion *capturedR = I.getCapturedRegion();
201       const MemRegion *originalR = I.getOriginalRegion();
202       if (capturedR != originalR) {
203         SVal originalV = State->getSVal(loc::MemRegionVal(originalR));
204         State = State->bindLoc(loc::MemRegionVal(capturedR), originalV);
205       }
206     }
207   }
208 
209   ExplodedNodeSet Tmp;
210   StmtNodeBuilder Bldr(Pred, Tmp, *currBldrCtx);
211   Bldr.generateNode(BE, Pred,
212                     State->BindExpr(BE, Pred->getLocationContext(), V),
213                     0, ProgramPoint::PostLValueKind);
214 
215   // FIXME: Move all post/pre visits to ::Visit().
216   getCheckerManager().runCheckersForPostStmt(Dst, Tmp, BE, *this);
217 }
218 
219 void ExprEngine::VisitCast(const CastExpr *CastE, const Expr *Ex,
220                            ExplodedNode *Pred, ExplodedNodeSet &Dst) {
221 
222   ExplodedNodeSet dstPreStmt;
223   getCheckerManager().runCheckersForPreStmt(dstPreStmt, Pred, CastE, *this);
224 
225   if (CastE->getCastKind() == CK_LValueToRValue) {
226     for (ExplodedNodeSet::iterator I = dstPreStmt.begin(), E = dstPreStmt.end();
227          I!=E; ++I) {
228       ExplodedNode *subExprNode = *I;
229       ProgramStateRef state = subExprNode->getState();
230       const LocationContext *LCtx = subExprNode->getLocationContext();
231       evalLoad(Dst, CastE, CastE, subExprNode, state, state->getSVal(Ex, LCtx));
232     }
233     return;
234   }
235 
236   // All other casts.
237   QualType T = CastE->getType();
238   QualType ExTy = Ex->getType();
239 
240   if (const ExplicitCastExpr *ExCast=dyn_cast_or_null<ExplicitCastExpr>(CastE))
241     T = ExCast->getTypeAsWritten();
242 
243   StmtNodeBuilder Bldr(dstPreStmt, Dst, *currBldrCtx);
244   for (ExplodedNodeSet::iterator I = dstPreStmt.begin(), E = dstPreStmt.end();
245        I != E; ++I) {
246 
247     Pred = *I;
248     ProgramStateRef state = Pred->getState();
249     const LocationContext *LCtx = Pred->getLocationContext();
250 
251     switch (CastE->getCastKind()) {
252       case CK_LValueToRValue:
253         llvm_unreachable("LValueToRValue casts handled earlier.");
254       case CK_ToVoid:
255         continue;
256         // The analyzer doesn't do anything special with these casts,
257         // since it understands retain/release semantics already.
258       case CK_ARCProduceObject:
259       case CK_ARCConsumeObject:
260       case CK_ARCReclaimReturnedObject:
261       case CK_ARCExtendBlockObject: // Fall-through.
262       case CK_CopyAndAutoreleaseBlockObject:
263         // The analyser can ignore atomic casts for now, although some future
264         // checkers may want to make certain that you're not modifying the same
265         // value through atomic and nonatomic pointers.
266       case CK_AtomicToNonAtomic:
267       case CK_NonAtomicToAtomic:
268         // True no-ops.
269       case CK_NoOp:
270       case CK_ConstructorConversion:
271       case CK_UserDefinedConversion:
272       case CK_FunctionToPointerDecay:
273       case CK_BuiltinFnToFnPtr: {
274         // Copy the SVal of Ex to CastE.
275         ProgramStateRef state = Pred->getState();
276         const LocationContext *LCtx = Pred->getLocationContext();
277         SVal V = state->getSVal(Ex, LCtx);
278         state = state->BindExpr(CastE, LCtx, V);
279         Bldr.generateNode(CastE, Pred, state);
280         continue;
281       }
282       case CK_MemberPointerToBoolean:
283         // FIXME: For now, member pointers are represented by void *.
284         // FALLTHROUGH
285       case CK_Dependent:
286       case CK_ArrayToPointerDecay:
287       case CK_BitCast:
288       case CK_IntegralCast:
289       case CK_NullToPointer:
290       case CK_IntegralToPointer:
291       case CK_PointerToIntegral:
292       case CK_PointerToBoolean:
293       case CK_IntegralToBoolean:
294       case CK_IntegralToFloating:
295       case CK_FloatingToIntegral:
296       case CK_FloatingToBoolean:
297       case CK_FloatingCast:
298       case CK_FloatingRealToComplex:
299       case CK_FloatingComplexToReal:
300       case CK_FloatingComplexToBoolean:
301       case CK_FloatingComplexCast:
302       case CK_FloatingComplexToIntegralComplex:
303       case CK_IntegralRealToComplex:
304       case CK_IntegralComplexToReal:
305       case CK_IntegralComplexToBoolean:
306       case CK_IntegralComplexCast:
307       case CK_IntegralComplexToFloatingComplex:
308       case CK_CPointerToObjCPointerCast:
309       case CK_BlockPointerToObjCPointerCast:
310       case CK_AnyPointerToBlockPointerCast:
311       case CK_ObjCObjectLValueCast:
312       case CK_ZeroToOCLEvent: {
313         // Delegate to SValBuilder to process.
314         SVal V = state->getSVal(Ex, LCtx);
315         V = svalBuilder.evalCast(V, T, ExTy);
316         state = state->BindExpr(CastE, LCtx, V);
317         Bldr.generateNode(CastE, Pred, state);
318         continue;
319       }
320       case CK_DerivedToBase:
321       case CK_UncheckedDerivedToBase: {
322         // For DerivedToBase cast, delegate to the store manager.
323         SVal val = state->getSVal(Ex, LCtx);
324         val = getStoreManager().evalDerivedToBase(val, CastE);
325         state = state->BindExpr(CastE, LCtx, val);
326         Bldr.generateNode(CastE, Pred, state);
327         continue;
328       }
329       // Handle C++ dyn_cast.
330       case CK_Dynamic: {
331         SVal val = state->getSVal(Ex, LCtx);
332 
333         // Compute the type of the result.
334         QualType resultType = CastE->getType();
335         if (CastE->isGLValue())
336           resultType = getContext().getPointerType(resultType);
337 
338         bool Failed = false;
339 
340         // Check if the value being cast evaluates to 0.
341         if (val.isZeroConstant())
342           Failed = true;
343         // Else, evaluate the cast.
344         else
345           val = getStoreManager().evalDynamicCast(val, T, Failed);
346 
347         if (Failed) {
348           if (T->isReferenceType()) {
349             // A bad_cast exception is thrown if input value is a reference.
350             // Currently, we model this, by generating a sink.
351             Bldr.generateSink(CastE, Pred, state);
352             continue;
353           } else {
354             // If the cast fails on a pointer, bind to 0.
355             state = state->BindExpr(CastE, LCtx, svalBuilder.makeNull());
356           }
357         } else {
358           // If we don't know if the cast succeeded, conjure a new symbol.
359           if (val.isUnknown()) {
360             DefinedOrUnknownSVal NewSym =
361               svalBuilder.conjureSymbolVal(0, CastE, LCtx, resultType,
362                                            currBldrCtx->blockCount());
363             state = state->BindExpr(CastE, LCtx, NewSym);
364           } else
365             // Else, bind to the derived region value.
366             state = state->BindExpr(CastE, LCtx, val);
367         }
368         Bldr.generateNode(CastE, Pred, state);
369         continue;
370       }
371       case CK_NullToMemberPointer: {
372         // FIXME: For now, member pointers are represented by void *.
373         SVal V = svalBuilder.makeIntValWithPtrWidth(0, true);
374         state = state->BindExpr(CastE, LCtx, V);
375         Bldr.generateNode(CastE, Pred, state);
376         continue;
377       }
378       // Various C++ casts that are not handled yet.
379       case CK_ToUnion:
380       case CK_BaseToDerived:
381       case CK_BaseToDerivedMemberPointer:
382       case CK_DerivedToBaseMemberPointer:
383       case CK_ReinterpretMemberPointer:
384       case CK_VectorSplat:
385       case CK_LValueBitCast: {
386         // Recover some path-sensitivty by conjuring a new value.
387         QualType resultType = CastE->getType();
388         if (CastE->isGLValue())
389           resultType = getContext().getPointerType(resultType);
390         SVal result = svalBuilder.conjureSymbolVal(0, CastE, LCtx,
391                                                    resultType,
392                                                    currBldrCtx->blockCount());
393         state = state->BindExpr(CastE, LCtx, result);
394         Bldr.generateNode(CastE, Pred, state);
395         continue;
396       }
397     }
398   }
399 }
400 
401 void ExprEngine::VisitCompoundLiteralExpr(const CompoundLiteralExpr *CL,
402                                           ExplodedNode *Pred,
403                                           ExplodedNodeSet &Dst) {
404   StmtNodeBuilder B(Pred, Dst, *currBldrCtx);
405 
406   const InitListExpr *ILE
407     = cast<InitListExpr>(CL->getInitializer()->IgnoreParens());
408 
409   ProgramStateRef state = Pred->getState();
410   SVal ILV = state->getSVal(ILE, Pred->getLocationContext());
411   const LocationContext *LC = Pred->getLocationContext();
412   state = state->bindCompoundLiteral(CL, LC, ILV);
413 
414   // Compound literal expressions are a GNU extension in C++.
415   // Unlike in C, where CLs are lvalues, in C++ CLs are prvalues,
416   // and like temporary objects created by the functional notation T()
417   // CLs are destroyed at the end of the containing full-expression.
418   // HOWEVER, an rvalue of array type is not something the analyzer can
419   // reason about, since we expect all regions to be wrapped in Locs.
420   // So we treat array CLs as lvalues as well, knowing that they will decay
421   // to pointers as soon as they are used.
422   if (CL->isGLValue() || CL->getType()->isArrayType())
423     B.generateNode(CL, Pred, state->BindExpr(CL, LC, state->getLValue(CL, LC)));
424   else
425     B.generateNode(CL, Pred, state->BindExpr(CL, LC, ILV));
426 }
427 
428 void ExprEngine::VisitDeclStmt(const DeclStmt *DS, ExplodedNode *Pred,
429                                ExplodedNodeSet &Dst) {
430   // Assumption: The CFG has one DeclStmt per Decl.
431   const VarDecl *VD = dyn_cast_or_null<VarDecl>(*DS->decl_begin());
432 
433   if (!VD) {
434     //TODO:AZ: remove explicit insertion after refactoring is done.
435     Dst.insert(Pred);
436     return;
437   }
438 
439   // FIXME: all pre/post visits should eventually be handled by ::Visit().
440   ExplodedNodeSet dstPreVisit;
441   getCheckerManager().runCheckersForPreStmt(dstPreVisit, Pred, DS, *this);
442 
443   StmtNodeBuilder B(dstPreVisit, Dst, *currBldrCtx);
444   for (ExplodedNodeSet::iterator I = dstPreVisit.begin(), E = dstPreVisit.end();
445        I!=E; ++I) {
446     ExplodedNode *N = *I;
447     ProgramStateRef state = N->getState();
448     const LocationContext *LC = N->getLocationContext();
449 
450     // Decls without InitExpr are not initialized explicitly.
451     if (const Expr *InitEx = VD->getInit()) {
452 
453       // Note in the state that the initialization has occurred.
454       ExplodedNode *UpdatedN = N;
455       SVal InitVal = state->getSVal(InitEx, LC);
456 
457       if (isa<CXXConstructExpr>(InitEx->IgnoreImplicit())) {
458         // We constructed the object directly in the variable.
459         // No need to bind anything.
460         B.generateNode(DS, UpdatedN, state);
461       } else {
462         // We bound the temp obj region to the CXXConstructExpr. Now recover
463         // the lazy compound value when the variable is not a reference.
464         if (AMgr.getLangOpts().CPlusPlus && VD->getType()->isRecordType() &&
465             !VD->getType()->isReferenceType()) {
466           if (Optional<loc::MemRegionVal> M =
467                   InitVal.getAs<loc::MemRegionVal>()) {
468             InitVal = state->getSVal(M->getRegion());
469             assert(InitVal.getAs<nonloc::LazyCompoundVal>());
470           }
471         }
472 
473         // Recover some path-sensitivity if a scalar value evaluated to
474         // UnknownVal.
475         if (InitVal.isUnknown()) {
476           QualType Ty = InitEx->getType();
477           if (InitEx->isGLValue()) {
478             Ty = getContext().getPointerType(Ty);
479           }
480 
481           InitVal = svalBuilder.conjureSymbolVal(0, InitEx, LC, Ty,
482                                                  currBldrCtx->blockCount());
483         }
484 
485 
486         B.takeNodes(UpdatedN);
487         ExplodedNodeSet Dst2;
488         evalBind(Dst2, DS, UpdatedN, state->getLValue(VD, LC), InitVal, true);
489         B.addNodes(Dst2);
490       }
491     }
492     else {
493       B.generateNode(DS, N, state);
494     }
495   }
496 }
497 
498 void ExprEngine::VisitLogicalExpr(const BinaryOperator* B, ExplodedNode *Pred,
499                                   ExplodedNodeSet &Dst) {
500   assert(B->getOpcode() == BO_LAnd ||
501          B->getOpcode() == BO_LOr);
502 
503   StmtNodeBuilder Bldr(Pred, Dst, *currBldrCtx);
504   ProgramStateRef state = Pred->getState();
505 
506   ExplodedNode *N = Pred;
507   while (!N->getLocation().getAs<BlockEntrance>()) {
508     ProgramPoint P = N->getLocation();
509     assert(P.getAs<PreStmt>()|| P.getAs<PreStmtPurgeDeadSymbols>());
510     (void) P;
511     assert(N->pred_size() == 1);
512     N = *N->pred_begin();
513   }
514   assert(N->pred_size() == 1);
515   N = *N->pred_begin();
516   BlockEdge BE = N->getLocation().castAs<BlockEdge>();
517   SVal X;
518 
519   // Determine the value of the expression by introspecting how we
520   // got this location in the CFG.  This requires looking at the previous
521   // block we were in and what kind of control-flow transfer was involved.
522   const CFGBlock *SrcBlock = BE.getSrc();
523   // The only terminator (if there is one) that makes sense is a logical op.
524   CFGTerminator T = SrcBlock->getTerminator();
525   if (const BinaryOperator *Term = cast_or_null<BinaryOperator>(T.getStmt())) {
526     (void) Term;
527     assert(Term->isLogicalOp());
528     assert(SrcBlock->succ_size() == 2);
529     // Did we take the true or false branch?
530     unsigned constant = (*SrcBlock->succ_begin() == BE.getDst()) ? 1 : 0;
531     X = svalBuilder.makeIntVal(constant, B->getType());
532   }
533   else {
534     // If there is no terminator, by construction the last statement
535     // in SrcBlock is the value of the enclosing expression.
536     // However, we still need to constrain that value to be 0 or 1.
537     assert(!SrcBlock->empty());
538     CFGStmt Elem = SrcBlock->rbegin()->castAs<CFGStmt>();
539     const Expr *RHS = cast<Expr>(Elem.getStmt());
540     SVal RHSVal = N->getState()->getSVal(RHS, Pred->getLocationContext());
541 
542     if (RHSVal.isUndef()) {
543       X = RHSVal;
544     } else {
545       DefinedOrUnknownSVal DefinedRHS = RHSVal.castAs<DefinedOrUnknownSVal>();
546       ProgramStateRef StTrue, StFalse;
547       llvm::tie(StTrue, StFalse) = N->getState()->assume(DefinedRHS);
548       if (StTrue) {
549         if (StFalse) {
550           // We can't constrain the value to 0 or 1.
551           // The best we can do is a cast.
552           X = getSValBuilder().evalCast(RHSVal, B->getType(), RHS->getType());
553         } else {
554           // The value is known to be true.
555           X = getSValBuilder().makeIntVal(1, B->getType());
556         }
557       } else {
558         // The value is known to be false.
559         assert(StFalse && "Infeasible path!");
560         X = getSValBuilder().makeIntVal(0, B->getType());
561       }
562     }
563   }
564   Bldr.generateNode(B, Pred, state->BindExpr(B, Pred->getLocationContext(), X));
565 }
566 
567 void ExprEngine::VisitInitListExpr(const InitListExpr *IE,
568                                    ExplodedNode *Pred,
569                                    ExplodedNodeSet &Dst) {
570   StmtNodeBuilder B(Pred, Dst, *currBldrCtx);
571 
572   ProgramStateRef state = Pred->getState();
573   const LocationContext *LCtx = Pred->getLocationContext();
574   QualType T = getContext().getCanonicalType(IE->getType());
575   unsigned NumInitElements = IE->getNumInits();
576 
577   if (T->isArrayType() || T->isRecordType() || T->isVectorType() ||
578       T->isAnyComplexType()) {
579     llvm::ImmutableList<SVal> vals = getBasicVals().getEmptySValList();
580 
581     // Handle base case where the initializer has no elements.
582     // e.g: static int* myArray[] = {};
583     if (NumInitElements == 0) {
584       SVal V = svalBuilder.makeCompoundVal(T, vals);
585       B.generateNode(IE, Pred, state->BindExpr(IE, LCtx, V));
586       return;
587     }
588 
589     for (InitListExpr::const_reverse_iterator it = IE->rbegin(),
590          ei = IE->rend(); it != ei; ++it) {
591       SVal V = state->getSVal(cast<Expr>(*it), LCtx);
592       if (dyn_cast_or_null<CXXTempObjectRegion>(V.getAsRegion()))
593         V = UnknownVal();
594       vals = getBasicVals().consVals(V, vals);
595     }
596 
597     B.generateNode(IE, Pred,
598                    state->BindExpr(IE, LCtx,
599                                    svalBuilder.makeCompoundVal(T, vals)));
600     return;
601   }
602 
603   // Handle scalars: int{5} and int{}.
604   assert(NumInitElements <= 1);
605 
606   SVal V;
607   if (NumInitElements == 0)
608     V = getSValBuilder().makeZeroVal(T);
609   else
610     V = state->getSVal(IE->getInit(0), LCtx);
611 
612   B.generateNode(IE, Pred, state->BindExpr(IE, LCtx, V));
613 }
614 
615 void ExprEngine::VisitGuardedExpr(const Expr *Ex,
616                                   const Expr *L,
617                                   const Expr *R,
618                                   ExplodedNode *Pred,
619                                   ExplodedNodeSet &Dst) {
620   assert(L && R);
621 
622   StmtNodeBuilder B(Pred, Dst, *currBldrCtx);
623   ProgramStateRef state = Pred->getState();
624   const LocationContext *LCtx = Pred->getLocationContext();
625   const CFGBlock *SrcBlock = 0;
626 
627   // Find the predecessor block.
628   ProgramStateRef SrcState = state;
629   for (const ExplodedNode *N = Pred ; N ; N = *N->pred_begin()) {
630     ProgramPoint PP = N->getLocation();
631     if (PP.getAs<PreStmtPurgeDeadSymbols>() || PP.getAs<BlockEntrance>()) {
632       assert(N->pred_size() == 1);
633       continue;
634     }
635     SrcBlock = PP.castAs<BlockEdge>().getSrc();
636     SrcState = N->getState();
637     break;
638   }
639 
640   assert(SrcBlock && "missing function entry");
641 
642   // Find the last expression in the predecessor block.  That is the
643   // expression that is used for the value of the ternary expression.
644   bool hasValue = false;
645   SVal V;
646 
647   for (CFGBlock::const_reverse_iterator I = SrcBlock->rbegin(),
648                                         E = SrcBlock->rend(); I != E; ++I) {
649     CFGElement CE = *I;
650     if (Optional<CFGStmt> CS = CE.getAs<CFGStmt>()) {
651       const Expr *ValEx = cast<Expr>(CS->getStmt());
652       ValEx = ValEx->IgnoreParens();
653 
654       // For GNU extension '?:' operator, the left hand side will be an
655       // OpaqueValueExpr, so get the underlying expression.
656       if (const OpaqueValueExpr *OpaqueEx = dyn_cast<OpaqueValueExpr>(L))
657         L = OpaqueEx->getSourceExpr();
658 
659       // If the last expression in the predecessor block matches true or false
660       // subexpression, get its the value.
661       if (ValEx == L->IgnoreParens() || ValEx == R->IgnoreParens()) {
662         hasValue = true;
663         V = SrcState->getSVal(ValEx, LCtx);
664       }
665       break;
666     }
667   }
668 
669   if (!hasValue)
670     V = svalBuilder.conjureSymbolVal(0, Ex, LCtx, currBldrCtx->blockCount());
671 
672   // Generate a new node with the binding from the appropriate path.
673   B.generateNode(Ex, Pred, state->BindExpr(Ex, LCtx, V, true));
674 }
675 
676 void ExprEngine::
677 VisitOffsetOfExpr(const OffsetOfExpr *OOE,
678                   ExplodedNode *Pred, ExplodedNodeSet &Dst) {
679   StmtNodeBuilder B(Pred, Dst, *currBldrCtx);
680   APSInt IV;
681   if (OOE->EvaluateAsInt(IV, getContext())) {
682     assert(IV.getBitWidth() == getContext().getTypeSize(OOE->getType()));
683     assert(OOE->getType()->isBuiltinType());
684     assert(OOE->getType()->getAs<BuiltinType>()->isInteger());
685     assert(IV.isSigned() == OOE->getType()->isSignedIntegerType());
686     SVal X = svalBuilder.makeIntVal(IV);
687     B.generateNode(OOE, Pred,
688                    Pred->getState()->BindExpr(OOE, Pred->getLocationContext(),
689                                               X));
690   }
691   // FIXME: Handle the case where __builtin_offsetof is not a constant.
692 }
693 
694 
695 void ExprEngine::
696 VisitUnaryExprOrTypeTraitExpr(const UnaryExprOrTypeTraitExpr *Ex,
697                               ExplodedNode *Pred,
698                               ExplodedNodeSet &Dst) {
699   StmtNodeBuilder Bldr(Pred, Dst, *currBldrCtx);
700 
701   QualType T = Ex->getTypeOfArgument();
702 
703   if (Ex->getKind() == UETT_SizeOf) {
704     if (!T->isIncompleteType() && !T->isConstantSizeType()) {
705       assert(T->isVariableArrayType() && "Unknown non-constant-sized type.");
706 
707       // FIXME: Add support for VLA type arguments and VLA expressions.
708       // When that happens, we should probably refactor VLASizeChecker's code.
709       return;
710     }
711     else if (T->getAs<ObjCObjectType>()) {
712       // Some code tries to take the sizeof an ObjCObjectType, relying that
713       // the compiler has laid out its representation.  Just report Unknown
714       // for these.
715       return;
716     }
717   }
718 
719   APSInt Value = Ex->EvaluateKnownConstInt(getContext());
720   CharUnits amt = CharUnits::fromQuantity(Value.getZExtValue());
721 
722   ProgramStateRef state = Pred->getState();
723   state = state->BindExpr(Ex, Pred->getLocationContext(),
724                           svalBuilder.makeIntVal(amt.getQuantity(),
725                                                      Ex->getType()));
726   Bldr.generateNode(Ex, Pred, state);
727 }
728 
729 void ExprEngine::VisitUnaryOperator(const UnaryOperator* U,
730                                     ExplodedNode *Pred,
731                                     ExplodedNodeSet &Dst) {
732   StmtNodeBuilder Bldr(Pred, Dst, *currBldrCtx);
733   switch (U->getOpcode()) {
734     default: {
735       Bldr.takeNodes(Pred);
736       ExplodedNodeSet Tmp;
737       VisitIncrementDecrementOperator(U, Pred, Tmp);
738       Bldr.addNodes(Tmp);
739     }
740       break;
741     case UO_Real: {
742       const Expr *Ex = U->getSubExpr()->IgnoreParens();
743 
744       // FIXME: We don't have complex SValues yet.
745       if (Ex->getType()->isAnyComplexType()) {
746         // Just report "Unknown."
747         break;
748       }
749 
750       // For all other types, UO_Real is an identity operation.
751       assert (U->getType() == Ex->getType());
752       ProgramStateRef state = Pred->getState();
753       const LocationContext *LCtx = Pred->getLocationContext();
754       Bldr.generateNode(U, Pred, state->BindExpr(U, LCtx,
755                                                  state->getSVal(Ex, LCtx)));
756       break;
757     }
758 
759     case UO_Imag: {
760       const Expr *Ex = U->getSubExpr()->IgnoreParens();
761       // FIXME: We don't have complex SValues yet.
762       if (Ex->getType()->isAnyComplexType()) {
763         // Just report "Unknown."
764         break;
765       }
766       // For all other types, UO_Imag returns 0.
767       ProgramStateRef state = Pred->getState();
768       const LocationContext *LCtx = Pred->getLocationContext();
769       SVal X = svalBuilder.makeZeroVal(Ex->getType());
770       Bldr.generateNode(U, Pred, state->BindExpr(U, LCtx, X));
771       break;
772     }
773 
774     case UO_Plus:
775       assert(!U->isGLValue());
776       // FALL-THROUGH.
777     case UO_Deref:
778     case UO_AddrOf:
779     case UO_Extension: {
780       // FIXME: We can probably just have some magic in Environment::getSVal()
781       // that propagates values, instead of creating a new node here.
782       //
783       // Unary "+" is a no-op, similar to a parentheses.  We still have places
784       // where it may be a block-level expression, so we need to
785       // generate an extra node that just propagates the value of the
786       // subexpression.
787       const Expr *Ex = U->getSubExpr()->IgnoreParens();
788       ProgramStateRef state = Pred->getState();
789       const LocationContext *LCtx = Pred->getLocationContext();
790       Bldr.generateNode(U, Pred, state->BindExpr(U, LCtx,
791                                                  state->getSVal(Ex, LCtx)));
792       break;
793     }
794 
795     case UO_LNot:
796     case UO_Minus:
797     case UO_Not: {
798       assert (!U->isGLValue());
799       const Expr *Ex = U->getSubExpr()->IgnoreParens();
800       ProgramStateRef state = Pred->getState();
801       const LocationContext *LCtx = Pred->getLocationContext();
802 
803       // Get the value of the subexpression.
804       SVal V = state->getSVal(Ex, LCtx);
805 
806       if (V.isUnknownOrUndef()) {
807         Bldr.generateNode(U, Pred, state->BindExpr(U, LCtx, V));
808         break;
809       }
810 
811       switch (U->getOpcode()) {
812         default:
813           llvm_unreachable("Invalid Opcode.");
814         case UO_Not:
815           // FIXME: Do we need to handle promotions?
816           state = state->BindExpr(U, LCtx, evalComplement(V.castAs<NonLoc>()));
817           break;
818         case UO_Minus:
819           // FIXME: Do we need to handle promotions?
820           state = state->BindExpr(U, LCtx, evalMinus(V.castAs<NonLoc>()));
821           break;
822         case UO_LNot:
823           // C99 6.5.3.3: "The expression !E is equivalent to (0==E)."
824           //
825           //  Note: technically we do "E == 0", but this is the same in the
826           //    transfer functions as "0 == E".
827           SVal Result;
828           if (Optional<Loc> LV = V.getAs<Loc>()) {
829             Loc X = svalBuilder.makeNull();
830             Result = evalBinOp(state, BO_EQ, *LV, X, U->getType());
831           }
832           else if (Ex->getType()->isFloatingType()) {
833             // FIXME: handle floating point types.
834             Result = UnknownVal();
835           } else {
836             nonloc::ConcreteInt X(getBasicVals().getValue(0, Ex->getType()));
837             Result = evalBinOp(state, BO_EQ, V.castAs<NonLoc>(), X,
838                                U->getType());
839           }
840 
841           state = state->BindExpr(U, LCtx, Result);
842           break;
843       }
844       Bldr.generateNode(U, Pred, state);
845       break;
846     }
847   }
848 
849 }
850 
851 void ExprEngine::VisitIncrementDecrementOperator(const UnaryOperator* U,
852                                                  ExplodedNode *Pred,
853                                                  ExplodedNodeSet &Dst) {
854   // Handle ++ and -- (both pre- and post-increment).
855   assert (U->isIncrementDecrementOp());
856   const Expr *Ex = U->getSubExpr()->IgnoreParens();
857 
858   const LocationContext *LCtx = Pred->getLocationContext();
859   ProgramStateRef state = Pred->getState();
860   SVal loc = state->getSVal(Ex, LCtx);
861 
862   // Perform a load.
863   ExplodedNodeSet Tmp;
864   evalLoad(Tmp, U, Ex, Pred, state, loc);
865 
866   ExplodedNodeSet Dst2;
867   StmtNodeBuilder Bldr(Tmp, Dst2, *currBldrCtx);
868   for (ExplodedNodeSet::iterator I=Tmp.begin(), E=Tmp.end();I!=E;++I) {
869 
870     state = (*I)->getState();
871     assert(LCtx == (*I)->getLocationContext());
872     SVal V2_untested = state->getSVal(Ex, LCtx);
873 
874     // Propagate unknown and undefined values.
875     if (V2_untested.isUnknownOrUndef()) {
876       Bldr.generateNode(U, *I, state->BindExpr(U, LCtx, V2_untested));
877       continue;
878     }
879     DefinedSVal V2 = V2_untested.castAs<DefinedSVal>();
880 
881     // Handle all other values.
882     BinaryOperator::Opcode Op = U->isIncrementOp() ? BO_Add : BO_Sub;
883 
884     // If the UnaryOperator has non-location type, use its type to create the
885     // constant value. If the UnaryOperator has location type, create the
886     // constant with int type and pointer width.
887     SVal RHS;
888 
889     if (U->getType()->isAnyPointerType())
890       RHS = svalBuilder.makeArrayIndex(1);
891     else if (U->getType()->isIntegralOrEnumerationType())
892       RHS = svalBuilder.makeIntVal(1, U->getType());
893     else
894       RHS = UnknownVal();
895 
896     SVal Result = evalBinOp(state, Op, V2, RHS, U->getType());
897 
898     // Conjure a new symbol if necessary to recover precision.
899     if (Result.isUnknown()){
900       DefinedOrUnknownSVal SymVal =
901         svalBuilder.conjureSymbolVal(0, Ex, LCtx, currBldrCtx->blockCount());
902       Result = SymVal;
903 
904       // If the value is a location, ++/-- should always preserve
905       // non-nullness.  Check if the original value was non-null, and if so
906       // propagate that constraint.
907       if (Loc::isLocType(U->getType())) {
908         DefinedOrUnknownSVal Constraint =
909         svalBuilder.evalEQ(state, V2,svalBuilder.makeZeroVal(U->getType()));
910 
911         if (!state->assume(Constraint, true)) {
912           // It isn't feasible for the original value to be null.
913           // Propagate this constraint.
914           Constraint = svalBuilder.evalEQ(state, SymVal,
915                                        svalBuilder.makeZeroVal(U->getType()));
916 
917 
918           state = state->assume(Constraint, false);
919           assert(state);
920         }
921       }
922     }
923 
924     // Since the lvalue-to-rvalue conversion is explicit in the AST,
925     // we bind an l-value if the operator is prefix and an lvalue (in C++).
926     if (U->isGLValue())
927       state = state->BindExpr(U, LCtx, loc);
928     else
929       state = state->BindExpr(U, LCtx, U->isPostfix() ? V2 : Result);
930 
931     // Perform the store.
932     Bldr.takeNodes(*I);
933     ExplodedNodeSet Dst3;
934     evalStore(Dst3, U, U, *I, state, loc, Result);
935     Bldr.addNodes(Dst3);
936   }
937   Dst.insert(Dst2);
938 }
939