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