1 //===- CallEvent.h - Wrapper for all function and method calls --*- C++ -*-===// 2 // 3 // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions. 4 // See https://llvm.org/LICENSE.txt for license information. 5 // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception 6 // 7 //===----------------------------------------------------------------------===// 8 // 9 /// \file This file defines CallEvent and its subclasses, which represent path- 10 /// sensitive instances of different kinds of function and method calls 11 /// (C, C++, and Objective-C). 12 // 13 //===----------------------------------------------------------------------===// 14 15 #ifndef LLVM_CLANG_STATICANALYZER_CORE_PATHSENSITIVE_CALLEVENT_H 16 #define LLVM_CLANG_STATICANALYZER_CORE_PATHSENSITIVE_CALLEVENT_H 17 18 #include "clang/AST/Decl.h" 19 #include "clang/AST/DeclBase.h" 20 #include "clang/AST/DeclCXX.h" 21 #include "clang/AST/DeclObjC.h" 22 #include "clang/AST/Expr.h" 23 #include "clang/AST/ExprCXX.h" 24 #include "clang/AST/ExprObjC.h" 25 #include "clang/AST/Stmt.h" 26 #include "clang/AST/Type.h" 27 #include "clang/Basic/IdentifierTable.h" 28 #include "clang/Basic/LLVM.h" 29 #include "clang/Basic/SourceLocation.h" 30 #include "clang/Basic/SourceManager.h" 31 #include "clang/StaticAnalyzer/Core/PathSensitive/ExprEngine.h" 32 #include "clang/StaticAnalyzer/Core/PathSensitive/ProgramState.h" 33 #include "clang/StaticAnalyzer/Core/PathSensitive/ProgramState_Fwd.h" 34 #include "clang/StaticAnalyzer/Core/PathSensitive/SVals.h" 35 #include "llvm/ADT/ArrayRef.h" 36 #include "llvm/ADT/IntrusiveRefCntPtr.h" 37 #include "llvm/ADT/PointerIntPair.h" 38 #include "llvm/ADT/PointerUnion.h" 39 #include "llvm/ADT/STLExtras.h" 40 #include "llvm/ADT/SmallVector.h" 41 #include "llvm/ADT/StringRef.h" 42 #include "llvm/ADT/iterator_range.h" 43 #include "llvm/Support/Allocator.h" 44 #include "llvm/Support/Casting.h" 45 #include "llvm/Support/ErrorHandling.h" 46 #include <cassert> 47 #include <limits> 48 #include <optional> 49 #include <utility> 50 51 namespace clang { 52 53 class LocationContext; 54 class ProgramPoint; 55 class ProgramPointTag; 56 class StackFrameContext; 57 58 namespace ento { 59 60 enum CallEventKind { 61 CE_Function, 62 CE_CXXStaticOperator, 63 CE_CXXMember, 64 CE_CXXMemberOperator, 65 CE_CXXDestructor, 66 CE_BEG_CXX_INSTANCE_CALLS = CE_CXXMember, 67 CE_END_CXX_INSTANCE_CALLS = CE_CXXDestructor, 68 CE_CXXConstructor, 69 CE_CXXInheritedConstructor, 70 CE_BEG_CXX_CONSTRUCTOR_CALLS = CE_CXXConstructor, 71 CE_END_CXX_CONSTRUCTOR_CALLS = CE_CXXInheritedConstructor, 72 CE_CXXAllocator, 73 CE_CXXDeallocator, 74 CE_BEG_FUNCTION_CALLS = CE_Function, 75 CE_END_FUNCTION_CALLS = CE_CXXDeallocator, 76 CE_Block, 77 CE_ObjCMessage 78 }; 79 80 class CallEvent; 81 82 template <typename T = CallEvent> 83 class CallEventRef : public IntrusiveRefCntPtr<const T> { 84 public: 85 CallEventRef(const T *Call) : IntrusiveRefCntPtr<const T>(Call) {} 86 CallEventRef(const CallEventRef &Orig) : IntrusiveRefCntPtr<const T>(Orig) {} 87 88 // The copy assignment operator is defined as deleted pending further 89 // motivation. 90 CallEventRef &operator=(const CallEventRef &) = delete; 91 92 CallEventRef<T> cloneWithState(ProgramStateRef State) const { 93 return this->get()->template cloneWithState<T>(State); 94 } 95 96 // Allow implicit conversions to a superclass type, since CallEventRef 97 // behaves like a pointer-to-const. 98 template <typename SuperT> operator CallEventRef<SuperT>() const { 99 return this->get(); 100 } 101 }; 102 103 /// \class RuntimeDefinition 104 /// Defines the runtime definition of the called function. 105 /// 106 /// Encapsulates the information we have about which Decl will be used 107 /// when the call is executed on the given path. When dealing with dynamic 108 /// dispatch, the information is based on DynamicTypeInfo and might not be 109 /// precise. 110 class RuntimeDefinition { 111 /// The Declaration of the function which could be called at runtime. 112 /// NULL if not available. 113 const Decl *D = nullptr; 114 115 /// The region representing an object (ObjC/C++) on which the method is 116 /// called. With dynamic dispatch, the method definition depends on the 117 /// runtime type of this object. NULL when the DynamicTypeInfo is 118 /// precise. 119 const MemRegion *R = nullptr; 120 121 /// A definition is foreign if it has been imported and newly created by the 122 /// ASTImporter. This can be true only if CTU is enabled. 123 const bool Foreign = false; 124 125 public: 126 RuntimeDefinition() = default; 127 RuntimeDefinition(const Decl *InD) : D(InD) {} 128 RuntimeDefinition(const Decl *InD, bool Foreign) : D(InD), Foreign(Foreign) {} 129 RuntimeDefinition(const Decl *InD, const MemRegion *InR) : D(InD), R(InR) {} 130 131 const Decl *getDecl() { return D; } 132 bool isForeign() const { return Foreign; } 133 134 /// Check if the definition we have is precise. 135 /// If not, it is possible that the call dispatches to another definition at 136 /// execution time. 137 bool mayHaveOtherDefinitions() { return R != nullptr; } 138 139 /// When other definitions are possible, returns the region whose runtime type 140 /// determines the method definition. 141 const MemRegion *getDispatchRegion() { return R; } 142 }; 143 144 /// Represents an abstract call to a function or method along a 145 /// particular path. 146 /// 147 /// CallEvents are created through the factory methods of CallEventManager. 148 /// 149 /// CallEvents should always be cheap to create and destroy. In order for 150 /// CallEventManager to be able to re-use CallEvent-sized memory blocks, 151 /// subclasses of CallEvent may not add any data members to the base class. 152 /// Use the "Data" and "Location" fields instead. 153 class CallEvent { 154 public: 155 using Kind = CallEventKind; 156 157 private: 158 ProgramStateRef State; 159 const LocationContext *LCtx; 160 llvm::PointerUnion<const Expr *, const Decl *> Origin; 161 CFGBlock::ConstCFGElementRef ElemRef = {nullptr, 0}; 162 mutable std::optional<bool> Foreign; // Set by CTU analysis. 163 164 protected: 165 // This is user data for subclasses. 166 const void *Data; 167 168 // This is user data for subclasses. 169 // This should come right before RefCount, so that the two fields can be 170 // packed together on LP64 platforms. 171 SourceLocation Location; 172 173 private: 174 template <typename T> friend struct llvm::IntrusiveRefCntPtrInfo; 175 176 mutable unsigned RefCount = 0; 177 178 void Retain() const { ++RefCount; } 179 void Release() const; 180 181 protected: 182 friend class CallEventManager; 183 184 CallEvent(const Expr *E, ProgramStateRef state, const LocationContext *lctx, 185 CFGBlock::ConstCFGElementRef ElemRef) 186 : State(std::move(state)), LCtx(lctx), Origin(E), ElemRef(ElemRef) {} 187 188 CallEvent(const Decl *D, ProgramStateRef state, const LocationContext *lctx, 189 CFGBlock::ConstCFGElementRef ElemRef) 190 : State(std::move(state)), LCtx(lctx), Origin(D), ElemRef(ElemRef) {} 191 192 // DO NOT MAKE PUBLIC 193 CallEvent(const CallEvent &Original) 194 : State(Original.State), LCtx(Original.LCtx), Origin(Original.Origin), 195 ElemRef(Original.ElemRef), Data(Original.Data), 196 Location(Original.Location) {} 197 198 /// Copies this CallEvent, with vtable intact, into a new block of memory. 199 virtual void cloneTo(void *Dest) const = 0; 200 201 /// Get the value of arbitrary expressions at this point in the path. 202 SVal getSVal(const Stmt *S) const { 203 return getState()->getSVal(S, getLocationContext()); 204 } 205 206 using ValueList = SmallVectorImpl<SVal>; 207 208 /// Used to specify non-argument regions that will be invalidated as a 209 /// result of this call. 210 virtual void 211 getExtraInvalidatedValues(ValueList &Values, 212 RegionAndSymbolInvalidationTraits *ETraits) const {} 213 214 public: 215 CallEvent &operator=(const CallEvent &) = delete; 216 virtual ~CallEvent() = default; 217 218 /// Returns the kind of call this is. 219 virtual Kind getKind() const = 0; 220 virtual StringRef getKindAsString() const = 0; 221 222 /// Returns the declaration of the function or method that will be 223 /// called. May be null. 224 virtual const Decl *getDecl() const { 225 return Origin.dyn_cast<const Decl *>(); 226 } 227 228 bool isForeign() const { 229 assert(Foreign && "Foreign must be set before querying"); 230 return *Foreign; 231 } 232 void setForeign(bool B) const { Foreign = B; } 233 234 /// The state in which the call is being evaluated. 235 const ProgramStateRef &getState() const { return State; } 236 237 /// The context in which the call is being evaluated. 238 const LocationContext *getLocationContext() const { return LCtx; } 239 240 const CFGBlock::ConstCFGElementRef &getCFGElementRef() const { 241 return ElemRef; 242 } 243 244 /// Returns the definition of the function or method that will be 245 /// called. 246 virtual RuntimeDefinition getRuntimeDefinition() const = 0; 247 248 /// Returns the expression whose value will be the result of this call. 249 /// May be null. 250 virtual const Expr *getOriginExpr() const { 251 return Origin.dyn_cast<const Expr *>(); 252 } 253 254 /// Returns the number of arguments (explicit and implicit). 255 /// 256 /// Note that this may be greater than the number of parameters in the 257 /// callee's declaration, and that it may include arguments not written in 258 /// the source. 259 virtual unsigned getNumArgs() const = 0; 260 261 /// Returns true if the callee is known to be from a system header. 262 bool isInSystemHeader() const { 263 const Decl *D = getDecl(); 264 if (!D) 265 return false; 266 267 SourceLocation Loc = D->getLocation(); 268 if (Loc.isValid()) { 269 const SourceManager &SM = 270 getState()->getStateManager().getContext().getSourceManager(); 271 return SM.isInSystemHeader(D->getLocation()); 272 } 273 274 // Special case for implicitly-declared global operator new/delete. 275 // These should be considered system functions. 276 if (const auto *FD = dyn_cast<FunctionDecl>(D)) 277 return FD->isOverloadedOperator() && FD->isImplicit() && FD->isGlobal(); 278 279 return false; 280 } 281 282 /// Returns a source range for the entire call, suitable for 283 /// outputting in diagnostics. 284 virtual SourceRange getSourceRange() const { 285 return getOriginExpr()->getSourceRange(); 286 } 287 288 /// Returns the value of a given argument at the time of the call. 289 virtual SVal getArgSVal(unsigned Index) const; 290 291 /// Returns the expression associated with a given argument. 292 /// May be null if this expression does not appear in the source. 293 virtual const Expr *getArgExpr(unsigned Index) const { return nullptr; } 294 295 /// Returns the source range for errors associated with this argument. 296 /// 297 /// May be invalid if the argument is not written in the source. 298 virtual SourceRange getArgSourceRange(unsigned Index) const; 299 300 /// Returns the result type, adjusted for references. 301 QualType getResultType() const; 302 303 /// Returns the return value of the call. 304 /// 305 /// This should only be called if the CallEvent was created using a state in 306 /// which the return value has already been bound to the origin expression. 307 SVal getReturnValue() const; 308 309 /// Returns true if the type of any of the non-null arguments satisfies 310 /// the condition. 311 bool hasNonNullArgumentsWithType(bool (*Condition)(QualType)) const; 312 313 /// Returns true if any of the arguments appear to represent callbacks. 314 bool hasNonZeroCallbackArg() const; 315 316 /// Returns true if any of the arguments is void*. 317 bool hasVoidPointerToNonConstArg() const; 318 319 /// Returns true if any of the arguments are known to escape to long- 320 /// term storage, even if this method will not modify them. 321 // NOTE: The exact semantics of this are still being defined! 322 // We don't really want a list of hardcoded exceptions in the long run, 323 // but we don't want duplicated lists of known APIs in the short term either. 324 virtual bool argumentsMayEscape() const { return hasNonZeroCallbackArg(); } 325 326 /// Returns true if the callee is an externally-visible function in the 327 /// top-level namespace, such as \c malloc. 328 /// 329 /// You can use this call to determine that a particular function really is 330 /// a library function and not, say, a C++ member function with the same name. 331 /// 332 /// If a name is provided, the function must additionally match the given 333 /// name. 334 /// 335 /// Note that this deliberately excludes C++ library functions in the \c std 336 /// namespace, but will include C library functions accessed through the 337 /// \c std namespace. This also does not check if the function is declared 338 /// as 'extern "C"', or if it uses C++ name mangling. 339 // FIXME: Add a helper for checking namespaces. 340 // FIXME: Move this down to AnyFunctionCall once checkers have more 341 // precise callbacks. 342 bool isGlobalCFunction(StringRef SpecificName = StringRef()) const; 343 344 /// Returns the name of the callee, if its name is a simple identifier. 345 /// 346 /// Note that this will fail for Objective-C methods, blocks, and C++ 347 /// overloaded operators. The former is named by a Selector rather than a 348 /// simple identifier, and the latter two do not have names. 349 // FIXME: Move this down to AnyFunctionCall once checkers have more 350 // precise callbacks. 351 const IdentifierInfo *getCalleeIdentifier() const { 352 const auto *ND = dyn_cast_or_null<NamedDecl>(getDecl()); 353 if (!ND) 354 return nullptr; 355 return ND->getIdentifier(); 356 } 357 358 /// Returns an appropriate ProgramPoint for this call. 359 ProgramPoint getProgramPoint(bool IsPreVisit = false, 360 const ProgramPointTag *Tag = nullptr) const; 361 362 /// Returns a new state with all argument regions invalidated. 363 /// 364 /// This accepts an alternate state in case some processing has already 365 /// occurred. 366 ProgramStateRef invalidateRegions(unsigned BlockCount, 367 ProgramStateRef Orig = nullptr) const; 368 369 using FrameBindingTy = std::pair<SVal, SVal>; 370 using BindingsTy = SmallVectorImpl<FrameBindingTy>; 371 372 /// Populates the given SmallVector with the bindings in the callee's stack 373 /// frame at the start of this call. 374 virtual void getInitialStackFrameContents(const StackFrameContext *CalleeCtx, 375 BindingsTy &Bindings) const = 0; 376 377 /// Returns a copy of this CallEvent, but using the given state. 378 template <typename T> 379 CallEventRef<T> cloneWithState(ProgramStateRef NewState) const; 380 381 /// Returns a copy of this CallEvent, but using the given state. 382 CallEventRef<> cloneWithState(ProgramStateRef NewState) const { 383 return cloneWithState<CallEvent>(NewState); 384 } 385 386 /// Returns true if this is a statement is a function or method call 387 /// of some kind. 388 static bool isCallStmt(const Stmt *S); 389 390 /// Returns the result type of a function or method declaration. 391 /// 392 /// This will return a null QualType if the result type cannot be determined. 393 static QualType getDeclaredResultType(const Decl *D); 394 395 /// Returns true if the given decl is known to be variadic. 396 /// 397 /// \p D must not be null. 398 static bool isVariadic(const Decl *D); 399 400 /// Returns AnalysisDeclContext for the callee stack frame. 401 /// Currently may fail; returns null on failure. 402 AnalysisDeclContext *getCalleeAnalysisDeclContext() const; 403 404 /// Returns the callee stack frame. That stack frame will only be entered 405 /// during analysis if the call is inlined, but it may still be useful 406 /// in intermediate calculations even if the call isn't inlined. 407 /// May fail; returns null on failure. 408 const StackFrameContext *getCalleeStackFrame(unsigned BlockCount) const; 409 410 /// Returns memory location for a parameter variable within the callee stack 411 /// frame. The behavior is undefined if the block count is different from the 412 /// one that is there when call happens. May fail; returns null on failure. 413 const ParamVarRegion *getParameterLocation(unsigned Index, 414 unsigned BlockCount) const; 415 416 /// Returns true if on the current path, the argument was constructed by 417 /// calling a C++ constructor over it. This is an internal detail of the 418 /// analysis which doesn't necessarily represent the program semantics: 419 /// if we are supposed to construct an argument directly, we may still 420 /// not do that because we don't know how (i.e., construction context is 421 /// unavailable in the CFG or not supported by the analyzer). 422 bool isArgumentConstructedDirectly(unsigned Index) const { 423 // This assumes that the object was not yet removed from the state. 424 return ExprEngine::getObjectUnderConstruction( 425 getState(), {getOriginExpr(), Index}, getLocationContext()) 426 .has_value(); 427 } 428 429 /// Some calls have parameter numbering mismatched from argument numbering. 430 /// This function converts an argument index to the corresponding 431 /// parameter index. Returns std::nullopt is the argument doesn't correspond 432 /// to any parameter variable. 433 virtual std::optional<unsigned> 434 getAdjustedParameterIndex(unsigned ASTArgumentIndex) const { 435 return ASTArgumentIndex; 436 } 437 438 /// Some call event sub-classes conveniently adjust mismatching AST indices 439 /// to match parameter indices. This function converts an argument index 440 /// as understood by CallEvent to the argument index as understood by the AST. 441 virtual unsigned getASTArgumentIndex(unsigned CallArgumentIndex) const { 442 return CallArgumentIndex; 443 } 444 445 /// Returns the construction context of the call, if it is a C++ constructor 446 /// call or a call of a function returning a C++ class instance. Otherwise 447 /// return nullptr. 448 const ConstructionContext *getConstructionContext() const; 449 450 /// If the call returns a C++ record type then the region of its return value 451 /// can be retrieved from its construction context. 452 std::optional<SVal> getReturnValueUnderConstruction() const; 453 454 // Returns the CallEvent representing the caller of this function 455 const CallEventRef<> getCaller() const; 456 457 // Returns true if the function was called from a standard library function. 458 // If not or could not get the caller (it may be a top level function) 459 // returns false. 460 bool isCalledFromSystemHeader() const; 461 462 // Iterator access to formal parameters and their types. 463 private: 464 struct GetTypeFn { 465 QualType operator()(ParmVarDecl *PD) const { return PD->getType(); } 466 }; 467 468 public: 469 /// Return call's formal parameters. 470 /// 471 /// Remember that the number of formal parameters may not match the number 472 /// of arguments for all calls. However, the first parameter will always 473 /// correspond with the argument value returned by \c getArgSVal(0). 474 virtual ArrayRef<ParmVarDecl *> parameters() const = 0; 475 476 using param_type_iterator = 477 llvm::mapped_iterator<ArrayRef<ParmVarDecl *>::iterator, GetTypeFn>; 478 479 /// Returns an iterator over the types of the call's formal parameters. 480 /// 481 /// This uses the callee decl found by default name lookup rather than the 482 /// definition because it represents a public interface, and probably has 483 /// more annotations. 484 param_type_iterator param_type_begin() const { 485 return llvm::map_iterator(parameters().begin(), GetTypeFn()); 486 } 487 /// \sa param_type_begin() 488 param_type_iterator param_type_end() const { 489 return llvm::map_iterator(parameters().end(), GetTypeFn()); 490 } 491 492 // For debugging purposes only 493 void dump(raw_ostream &Out) const; 494 void dump() const; 495 }; 496 497 /// Represents a call to any sort of function that might have a 498 /// FunctionDecl. 499 class AnyFunctionCall : public CallEvent { 500 protected: 501 AnyFunctionCall(const Expr *E, ProgramStateRef St, 502 const LocationContext *LCtx, 503 CFGBlock::ConstCFGElementRef ElemRef) 504 : CallEvent(E, St, LCtx, ElemRef) {} 505 AnyFunctionCall(const Decl *D, ProgramStateRef St, 506 const LocationContext *LCtx, 507 CFGBlock::ConstCFGElementRef ElemRef) 508 : CallEvent(D, St, LCtx, ElemRef) {} 509 AnyFunctionCall(const AnyFunctionCall &Other) = default; 510 511 public: 512 // This function is overridden by subclasses, but they must return 513 // a FunctionDecl. 514 const FunctionDecl *getDecl() const override { 515 return cast<FunctionDecl>(CallEvent::getDecl()); 516 } 517 518 RuntimeDefinition getRuntimeDefinition() const override; 519 520 bool argumentsMayEscape() const override; 521 522 void getInitialStackFrameContents(const StackFrameContext *CalleeCtx, 523 BindingsTy &Bindings) const override; 524 525 ArrayRef<ParmVarDecl *> parameters() const override; 526 527 static bool classof(const CallEvent *CA) { 528 return CA->getKind() >= CE_BEG_FUNCTION_CALLS && 529 CA->getKind() <= CE_END_FUNCTION_CALLS; 530 } 531 }; 532 533 /// Represents a C function or static C++ member function call. 534 /// 535 /// Example: \c fun() 536 class SimpleFunctionCall : public AnyFunctionCall { 537 friend class CallEventManager; 538 539 protected: 540 SimpleFunctionCall(const CallExpr *CE, ProgramStateRef St, 541 const LocationContext *LCtx, 542 CFGBlock::ConstCFGElementRef ElemRef) 543 : AnyFunctionCall(CE, St, LCtx, ElemRef) {} 544 SimpleFunctionCall(const SimpleFunctionCall &Other) = default; 545 546 void cloneTo(void *Dest) const override { 547 new (Dest) SimpleFunctionCall(*this); 548 } 549 550 public: 551 const CallExpr *getOriginExpr() const override { 552 return cast<CallExpr>(AnyFunctionCall::getOriginExpr()); 553 } 554 555 const FunctionDecl *getDecl() const override; 556 557 unsigned getNumArgs() const override { return getOriginExpr()->getNumArgs(); } 558 559 const Expr *getArgExpr(unsigned Index) const override { 560 return getOriginExpr()->getArg(Index); 561 } 562 563 Kind getKind() const override { return CE_Function; } 564 StringRef getKindAsString() const override { return "SimpleFunctionCall"; } 565 566 static bool classof(const CallEvent *CA) { 567 return CA->getKind() == CE_Function; 568 } 569 }; 570 571 /// Represents a call to a block. 572 /// 573 /// Example: <tt>^{ statement-body }()</tt> 574 class BlockCall : public CallEvent { 575 friend class CallEventManager; 576 577 protected: 578 BlockCall(const CallExpr *CE, ProgramStateRef St, const LocationContext *LCtx, 579 CFGBlock::ConstCFGElementRef ElemRef) 580 : CallEvent(CE, St, LCtx, ElemRef) {} 581 BlockCall(const BlockCall &Other) = default; 582 583 void cloneTo(void *Dest) const override { new (Dest) BlockCall(*this); } 584 585 void getExtraInvalidatedValues( 586 ValueList &Values, 587 RegionAndSymbolInvalidationTraits *ETraits) const override; 588 589 public: 590 const CallExpr *getOriginExpr() const override { 591 return cast<CallExpr>(CallEvent::getOriginExpr()); 592 } 593 594 unsigned getNumArgs() const override { return getOriginExpr()->getNumArgs(); } 595 596 const Expr *getArgExpr(unsigned Index) const override { 597 return getOriginExpr()->getArg(Index); 598 } 599 600 /// Returns the region associated with this instance of the block. 601 /// 602 /// This may be NULL if the block's origin is unknown. 603 const BlockDataRegion *getBlockRegion() const; 604 605 const BlockDecl *getDecl() const override { 606 const BlockDataRegion *BR = getBlockRegion(); 607 if (!BR) 608 return nullptr; 609 return BR->getDecl(); 610 } 611 612 bool isConversionFromLambda() const { 613 const BlockDecl *BD = getDecl(); 614 if (!BD) 615 return false; 616 617 return BD->isConversionFromLambda(); 618 } 619 620 /// For a block converted from a C++ lambda, returns the block 621 /// VarRegion for the variable holding the captured C++ lambda record. 622 const VarRegion *getRegionStoringCapturedLambda() const { 623 assert(isConversionFromLambda()); 624 const BlockDataRegion *BR = getBlockRegion(); 625 assert(BR && "Block converted from lambda must have a block region"); 626 627 auto ReferencedVars = BR->referenced_vars(); 628 assert(!ReferencedVars.empty()); 629 return ReferencedVars.begin().getCapturedRegion(); 630 } 631 632 RuntimeDefinition getRuntimeDefinition() const override { 633 if (!isConversionFromLambda()) 634 return RuntimeDefinition(getDecl()); 635 636 // Clang converts lambdas to blocks with an implicit user-defined 637 // conversion operator method on the lambda record that looks (roughly) 638 // like: 639 // 640 // typedef R(^block_type)(P1, P2, ...); 641 // operator block_type() const { 642 // auto Lambda = *this; 643 // return ^(P1 p1, P2 p2, ...){ 644 // /* return Lambda(p1, p2, ...); */ 645 // }; 646 // } 647 // 648 // Here R is the return type of the lambda and P1, P2, ... are 649 // its parameter types. 'Lambda' is a fake VarDecl captured by the block 650 // that is initialized to a copy of the lambda. 651 // 652 // Sema leaves the body of a lambda-converted block empty (it is 653 // produced by CodeGen), so we can't analyze it directly. Instead, we skip 654 // the block body and analyze the operator() method on the captured lambda. 655 const VarDecl *LambdaVD = getRegionStoringCapturedLambda()->getDecl(); 656 const CXXRecordDecl *LambdaDecl = LambdaVD->getType()->getAsCXXRecordDecl(); 657 CXXMethodDecl *LambdaCallOperator = LambdaDecl->getLambdaCallOperator(); 658 659 return RuntimeDefinition(LambdaCallOperator); 660 } 661 662 bool argumentsMayEscape() const override { return true; } 663 664 void getInitialStackFrameContents(const StackFrameContext *CalleeCtx, 665 BindingsTy &Bindings) const override; 666 667 ArrayRef<ParmVarDecl *> parameters() const override; 668 669 Kind getKind() const override { return CE_Block; } 670 StringRef getKindAsString() const override { return "BlockCall"; } 671 672 static bool classof(const CallEvent *CA) { return CA->getKind() == CE_Block; } 673 }; 674 675 /// Represents a non-static C++ member function call, no matter how 676 /// it is written. 677 class CXXInstanceCall : public AnyFunctionCall { 678 protected: 679 CXXInstanceCall(const CallExpr *CE, ProgramStateRef St, 680 const LocationContext *LCtx, 681 CFGBlock::ConstCFGElementRef ElemRef) 682 : AnyFunctionCall(CE, St, LCtx, ElemRef) {} 683 CXXInstanceCall(const FunctionDecl *D, ProgramStateRef St, 684 const LocationContext *LCtx, 685 CFGBlock::ConstCFGElementRef ElemRef) 686 : AnyFunctionCall(D, St, LCtx, ElemRef) {} 687 CXXInstanceCall(const CXXInstanceCall &Other) = default; 688 689 void getExtraInvalidatedValues( 690 ValueList &Values, 691 RegionAndSymbolInvalidationTraits *ETraits) const override; 692 693 /// Returns the decl refered to by the "dynamic type" of the current object 694 /// and if the class can be a sub-class or not. 695 /// If the Pointer is null, the flag has no meaning. 696 std::pair<const CXXRecordDecl *, bool> getDeclForDynamicType() const; 697 698 public: 699 /// Returns the expression representing the implicit 'this' object. 700 virtual const Expr *getCXXThisExpr() const { return nullptr; } 701 702 /// Returns the value of the implicit 'this' object. 703 virtual SVal getCXXThisVal() const; 704 705 const FunctionDecl *getDecl() const override; 706 707 RuntimeDefinition getRuntimeDefinition() const override; 708 709 void getInitialStackFrameContents(const StackFrameContext *CalleeCtx, 710 BindingsTy &Bindings) const override; 711 712 static bool classof(const CallEvent *CA) { 713 return CA->getKind() >= CE_BEG_CXX_INSTANCE_CALLS && 714 CA->getKind() <= CE_END_CXX_INSTANCE_CALLS; 715 } 716 }; 717 718 /// Represents a static C++ operator call. 719 /// 720 /// "A" in this example. 721 /// However, "B" and "C" are represented by SimpleFunctionCall. 722 /// \code 723 /// struct S { 724 /// int pad; 725 /// static void operator()(int x, int y); 726 /// }; 727 /// S s{10}; 728 /// void (*fptr)(int, int) = &S::operator(); 729 /// 730 /// s(1, 2); // A 731 /// S::operator()(1, 2); // B 732 /// fptr(1, 2); // C 733 /// \endcode 734 class CXXStaticOperatorCall : public SimpleFunctionCall { 735 friend class CallEventManager; 736 737 protected: 738 CXXStaticOperatorCall(const CXXOperatorCallExpr *CE, ProgramStateRef St, 739 const LocationContext *LCtx, 740 CFGBlock::ConstCFGElementRef ElemRef) 741 : SimpleFunctionCall(CE, St, LCtx, ElemRef) {} 742 CXXStaticOperatorCall(const CXXStaticOperatorCall &Other) = default; 743 744 void cloneTo(void *Dest) const override { 745 new (Dest) CXXStaticOperatorCall(*this); 746 } 747 748 public: 749 const CXXOperatorCallExpr *getOriginExpr() const override { 750 return cast<CXXOperatorCallExpr>(SimpleFunctionCall::getOriginExpr()); 751 } 752 753 unsigned getNumArgs() const override { 754 // Ignore the object parameter that is not used for static member functions. 755 assert(getOriginExpr()->getNumArgs() > 0); 756 return getOriginExpr()->getNumArgs() - 1; 757 } 758 759 const Expr *getArgExpr(unsigned Index) const override { 760 // Ignore the object parameter that is not used for static member functions. 761 return getOriginExpr()->getArg(Index + 1); 762 } 763 764 std::optional<unsigned> 765 getAdjustedParameterIndex(unsigned ASTArgumentIndex) const override { 766 // Ignore the object parameter that is not used for static member functions. 767 if (ASTArgumentIndex == 0) 768 return std::nullopt; 769 return ASTArgumentIndex - 1; 770 } 771 772 unsigned getASTArgumentIndex(unsigned CallArgumentIndex) const override { 773 // Account for the object parameter for the static member function. 774 return CallArgumentIndex + 1; 775 } 776 777 OverloadedOperatorKind getOverloadedOperator() const { 778 return getOriginExpr()->getOperator(); 779 } 780 781 Kind getKind() const override { return CE_CXXStaticOperator; } 782 StringRef getKindAsString() const override { return "CXXStaticOperatorCall"; } 783 784 static bool classof(const CallEvent *CA) { 785 return CA->getKind() == CE_CXXStaticOperator; 786 } 787 }; 788 789 /// Represents a non-static C++ member function call. 790 /// 791 /// Example: \c obj.fun() 792 class CXXMemberCall : public CXXInstanceCall { 793 friend class CallEventManager; 794 795 protected: 796 CXXMemberCall(const CXXMemberCallExpr *CE, ProgramStateRef St, 797 const LocationContext *LCtx, 798 CFGBlock::ConstCFGElementRef ElemRef) 799 : CXXInstanceCall(CE, St, LCtx, ElemRef) {} 800 CXXMemberCall(const CXXMemberCall &Other) = default; 801 802 void cloneTo(void *Dest) const override { new (Dest) CXXMemberCall(*this); } 803 804 public: 805 const CXXMemberCallExpr *getOriginExpr() const override { 806 return cast<CXXMemberCallExpr>(CXXInstanceCall::getOriginExpr()); 807 } 808 809 unsigned getNumArgs() const override { 810 if (const CallExpr *CE = getOriginExpr()) 811 return CE->getNumArgs(); 812 return 0; 813 } 814 815 const Expr *getArgExpr(unsigned Index) const override { 816 return getOriginExpr()->getArg(Index); 817 } 818 819 const Expr *getCXXThisExpr() const override; 820 821 RuntimeDefinition getRuntimeDefinition() const override; 822 823 Kind getKind() const override { return CE_CXXMember; } 824 StringRef getKindAsString() const override { return "CXXMemberCall"; } 825 826 static bool classof(const CallEvent *CA) { 827 return CA->getKind() == CE_CXXMember; 828 } 829 }; 830 831 /// Represents a C++ overloaded operator call where the operator is 832 /// implemented as a non-static member function. 833 /// 834 /// Example: <tt>iter + 1</tt> 835 class CXXMemberOperatorCall : public CXXInstanceCall { 836 friend class CallEventManager; 837 838 protected: 839 CXXMemberOperatorCall(const CXXOperatorCallExpr *CE, ProgramStateRef St, 840 const LocationContext *LCtx, 841 CFGBlock::ConstCFGElementRef ElemRef) 842 : CXXInstanceCall(CE, St, LCtx, ElemRef) {} 843 CXXMemberOperatorCall(const CXXMemberOperatorCall &Other) = default; 844 845 void cloneTo(void *Dest) const override { 846 new (Dest) CXXMemberOperatorCall(*this); 847 } 848 849 public: 850 const CXXOperatorCallExpr *getOriginExpr() const override { 851 return cast<CXXOperatorCallExpr>(CXXInstanceCall::getOriginExpr()); 852 } 853 854 unsigned getNumArgs() const override { 855 return getOriginExpr()->getNumArgs() - 1; 856 } 857 858 const Expr *getArgExpr(unsigned Index) const override { 859 return getOriginExpr()->getArg(Index + 1); 860 } 861 862 const Expr *getCXXThisExpr() const override; 863 864 Kind getKind() const override { return CE_CXXMemberOperator; } 865 StringRef getKindAsString() const override { return "CXXMemberOperatorCall"; } 866 867 static bool classof(const CallEvent *CA) { 868 return CA->getKind() == CE_CXXMemberOperator; 869 } 870 871 std::optional<unsigned> 872 getAdjustedParameterIndex(unsigned ASTArgumentIndex) const override { 873 // For member operator calls argument 0 on the expression corresponds 874 // to implicit this-parameter on the declaration. 875 return (ASTArgumentIndex > 0) 876 ? std::optional<unsigned>(ASTArgumentIndex - 1) 877 : std::nullopt; 878 } 879 880 unsigned getASTArgumentIndex(unsigned CallArgumentIndex) const override { 881 // For member operator calls argument 0 on the expression corresponds 882 // to implicit this-parameter on the declaration. 883 return CallArgumentIndex + 1; 884 } 885 886 OverloadedOperatorKind getOverloadedOperator() const { 887 return getOriginExpr()->getOperator(); 888 } 889 }; 890 891 /// Represents an implicit call to a C++ destructor. 892 /// 893 /// This can occur at the end of a scope (for automatic objects), at the end 894 /// of a full-expression (for temporaries), or as part of a delete. 895 class CXXDestructorCall : public CXXInstanceCall { 896 friend class CallEventManager; 897 898 protected: 899 using DtorDataTy = llvm::PointerIntPair<const MemRegion *, 1, bool>; 900 901 /// Creates an implicit destructor. 902 /// 903 /// \param DD The destructor that will be called. 904 /// \param Trigger The statement whose completion causes this destructor call. 905 /// \param Target The object region to be destructed. 906 /// \param St The path-sensitive state at this point in the program. 907 /// \param LCtx The location context at this point in the program. 908 /// \param ElemRef The reference to this destructor in the CFG. 909 /// 910 /// FIXME: Eventually we want to drop \param Target and deduce it from 911 /// \param ElemRef. To do that we need to migrate the logic for target 912 /// region lookup from ExprEngine::ProcessImplicitDtor() and make it 913 /// independent from ExprEngine. 914 CXXDestructorCall(const CXXDestructorDecl *DD, const Stmt *Trigger, 915 const MemRegion *Target, bool IsBaseDestructor, 916 ProgramStateRef St, const LocationContext *LCtx, 917 CFGBlock::ConstCFGElementRef ElemRef) 918 : CXXInstanceCall(DD, St, LCtx, ElemRef) { 919 Data = DtorDataTy(Target, IsBaseDestructor).getOpaqueValue(); 920 Location = Trigger->getEndLoc(); 921 } 922 923 CXXDestructorCall(const CXXDestructorCall &Other) = default; 924 925 void cloneTo(void *Dest) const override { 926 new (Dest) CXXDestructorCall(*this); 927 } 928 929 public: 930 SourceRange getSourceRange() const override { return Location; } 931 unsigned getNumArgs() const override { return 0; } 932 933 RuntimeDefinition getRuntimeDefinition() const override; 934 935 /// Returns the value of the implicit 'this' object. 936 SVal getCXXThisVal() const override; 937 938 /// Returns true if this is a call to a base class destructor. 939 bool isBaseDestructor() const { 940 return DtorDataTy::getFromOpaqueValue(Data).getInt(); 941 } 942 943 Kind getKind() const override { return CE_CXXDestructor; } 944 StringRef getKindAsString() const override { return "CXXDestructorCall"; } 945 946 static bool classof(const CallEvent *CA) { 947 return CA->getKind() == CE_CXXDestructor; 948 } 949 }; 950 951 /// Represents any constructor invocation. This includes regular constructors 952 /// and inherited constructors. 953 class AnyCXXConstructorCall : public AnyFunctionCall { 954 protected: 955 AnyCXXConstructorCall(const Expr *E, const MemRegion *Target, 956 ProgramStateRef St, const LocationContext *LCtx, 957 CFGBlock::ConstCFGElementRef ElemRef) 958 : AnyFunctionCall(E, St, LCtx, ElemRef) { 959 assert(E && (isa<CXXConstructExpr>(E) || isa<CXXInheritedCtorInitExpr>(E))); 960 // Target may be null when the region is unknown. 961 Data = Target; 962 } 963 964 void getExtraInvalidatedValues( 965 ValueList &Values, 966 RegionAndSymbolInvalidationTraits *ETraits) const override; 967 968 void getInitialStackFrameContents(const StackFrameContext *CalleeCtx, 969 BindingsTy &Bindings) const override; 970 971 public: 972 /// Returns the value of the implicit 'this' object. 973 SVal getCXXThisVal() const; 974 975 static bool classof(const CallEvent *Call) { 976 return Call->getKind() >= CE_BEG_CXX_CONSTRUCTOR_CALLS && 977 Call->getKind() <= CE_END_CXX_CONSTRUCTOR_CALLS; 978 } 979 }; 980 981 /// Represents a call to a C++ constructor. 982 /// 983 /// Example: \c T(1) 984 class CXXConstructorCall : public AnyCXXConstructorCall { 985 friend class CallEventManager; 986 987 protected: 988 /// Creates a constructor call. 989 /// 990 /// \param CE The constructor expression as written in the source. 991 /// \param Target The region where the object should be constructed. If NULL, 992 /// a new symbolic region will be used. 993 /// \param St The path-sensitive state at this point in the program. 994 /// \param LCtx The location context at this point in the program. 995 /// \param ElemRef The reference to this constructor in the CFG. 996 /// 997 /// FIXME: Eventually we want to drop \param Target and deduce it from 998 /// \param ElemRef. 999 CXXConstructorCall(const CXXConstructExpr *CE, const MemRegion *Target, 1000 ProgramStateRef St, const LocationContext *LCtx, 1001 CFGBlock::ConstCFGElementRef ElemRef) 1002 : AnyCXXConstructorCall(CE, Target, St, LCtx, ElemRef) {} 1003 1004 CXXConstructorCall(const CXXConstructorCall &Other) = default; 1005 1006 void cloneTo(void *Dest) const override { 1007 new (Dest) CXXConstructorCall(*this); 1008 } 1009 1010 public: 1011 const CXXConstructExpr *getOriginExpr() const override { 1012 return cast<CXXConstructExpr>(AnyFunctionCall::getOriginExpr()); 1013 } 1014 1015 const CXXConstructorDecl *getDecl() const override { 1016 return getOriginExpr()->getConstructor(); 1017 } 1018 1019 unsigned getNumArgs() const override { return getOriginExpr()->getNumArgs(); } 1020 1021 const Expr *getArgExpr(unsigned Index) const override { 1022 return getOriginExpr()->getArg(Index); 1023 } 1024 1025 Kind getKind() const override { return CE_CXXConstructor; } 1026 StringRef getKindAsString() const override { return "CXXConstructorCall"; } 1027 1028 static bool classof(const CallEvent *CA) { 1029 return CA->getKind() == CE_CXXConstructor; 1030 } 1031 }; 1032 1033 /// Represents a call to a C++ inherited constructor. 1034 /// 1035 /// Example: \c class T : public S { using S::S; }; T(1); 1036 /// 1037 // Note, it is difficult to model the parameters. This is one of the reasons 1038 // why we skip analysis of inheriting constructors as top-level functions. 1039 // CXXInheritedCtorInitExpr doesn't take arguments and doesn't model parameter 1040 // initialization because there is none: the arguments in the outer 1041 // CXXConstructExpr directly initialize the parameters of the base class 1042 // constructor, and no copies are made. (Making a copy of the parameter is 1043 // incorrect, at least if it's done in an observable way.) The derived class 1044 // constructor doesn't even exist in the formal model. 1045 /// E.g., in: 1046 /// 1047 /// struct X { X *p = this; ~X() {} }; 1048 /// struct A { A(X x) : b(x.p == &x) {} bool b; }; 1049 /// struct B : A { using A::A; }; 1050 /// B b = X{}; 1051 /// 1052 /// ... b.b is initialized to true. 1053 class CXXInheritedConstructorCall : public AnyCXXConstructorCall { 1054 friend class CallEventManager; 1055 1056 protected: 1057 CXXInheritedConstructorCall(const CXXInheritedCtorInitExpr *CE, 1058 const MemRegion *Target, ProgramStateRef St, 1059 const LocationContext *LCtx, 1060 CFGBlock::ConstCFGElementRef ElemRef) 1061 : AnyCXXConstructorCall(CE, Target, St, LCtx, ElemRef) {} 1062 1063 CXXInheritedConstructorCall(const CXXInheritedConstructorCall &Other) = 1064 default; 1065 1066 void cloneTo(void *Dest) const override { 1067 new (Dest) CXXInheritedConstructorCall(*this); 1068 } 1069 1070 public: 1071 const CXXInheritedCtorInitExpr *getOriginExpr() const override { 1072 return cast<CXXInheritedCtorInitExpr>(AnyFunctionCall::getOriginExpr()); 1073 } 1074 1075 const CXXConstructorDecl *getDecl() const override { 1076 return getOriginExpr()->getConstructor(); 1077 } 1078 1079 /// Obtain the stack frame of the inheriting constructor. Argument expressions 1080 /// can be found on the call site of that stack frame. 1081 const StackFrameContext *getInheritingStackFrame() const; 1082 1083 /// Obtain the CXXConstructExpr for the sub-class that inherited the current 1084 /// constructor (possibly indirectly). It's the statement that contains 1085 /// argument expressions. 1086 const CXXConstructExpr *getInheritingConstructor() const { 1087 return cast<CXXConstructExpr>(getInheritingStackFrame()->getCallSite()); 1088 } 1089 1090 unsigned getNumArgs() const override { 1091 return getInheritingConstructor()->getNumArgs(); 1092 } 1093 1094 const Expr *getArgExpr(unsigned Index) const override { 1095 return getInheritingConstructor()->getArg(Index); 1096 } 1097 1098 SVal getArgSVal(unsigned Index) const override { 1099 return getState()->getSVal( 1100 getArgExpr(Index), 1101 getInheritingStackFrame()->getParent()->getStackFrame()); 1102 } 1103 1104 Kind getKind() const override { return CE_CXXInheritedConstructor; } 1105 StringRef getKindAsString() const override { 1106 return "CXXInheritedConstructorCall"; 1107 } 1108 1109 static bool classof(const CallEvent *CA) { 1110 return CA->getKind() == CE_CXXInheritedConstructor; 1111 } 1112 }; 1113 1114 /// Represents the memory allocation call in a C++ new-expression. 1115 /// 1116 /// This is a call to "operator new". 1117 class CXXAllocatorCall : public AnyFunctionCall { 1118 friend class CallEventManager; 1119 1120 protected: 1121 CXXAllocatorCall(const CXXNewExpr *E, ProgramStateRef St, 1122 const LocationContext *LCtx, 1123 CFGBlock::ConstCFGElementRef ElemRef) 1124 : AnyFunctionCall(E, St, LCtx, ElemRef) {} 1125 CXXAllocatorCall(const CXXAllocatorCall &Other) = default; 1126 1127 void cloneTo(void *Dest) const override { 1128 new (Dest) CXXAllocatorCall(*this); 1129 } 1130 1131 public: 1132 const CXXNewExpr *getOriginExpr() const override { 1133 return cast<CXXNewExpr>(AnyFunctionCall::getOriginExpr()); 1134 } 1135 1136 const FunctionDecl *getDecl() const override { 1137 return getOriginExpr()->getOperatorNew(); 1138 } 1139 1140 SVal getObjectUnderConstruction() const { 1141 return *ExprEngine::getObjectUnderConstruction(getState(), getOriginExpr(), 1142 getLocationContext()); 1143 } 1144 1145 /// Number of non-placement arguments to the call. It is equal to 2 for 1146 /// C++17 aligned operator new() calls that have alignment implicitly 1147 /// passed as the second argument, and to 1 for other operator new() calls. 1148 unsigned getNumImplicitArgs() const { 1149 return getOriginExpr()->passAlignment() ? 2 : 1; 1150 } 1151 1152 unsigned getNumArgs() const override { 1153 return getOriginExpr()->getNumPlacementArgs() + getNumImplicitArgs(); 1154 } 1155 1156 bool isArray() const { return getOriginExpr()->isArray(); } 1157 1158 std::optional<const clang::Expr *> getArraySizeExpr() const { 1159 return getOriginExpr()->getArraySize(); 1160 } 1161 1162 SVal getArraySizeVal() const { 1163 assert(isArray() && "The allocator call doesn't allocate and array!"); 1164 1165 return getState()->getSVal(*getArraySizeExpr(), getLocationContext()); 1166 } 1167 1168 const Expr *getArgExpr(unsigned Index) const override { 1169 // The first argument of an allocator call is the size of the allocation. 1170 if (Index < getNumImplicitArgs()) 1171 return nullptr; 1172 return getOriginExpr()->getPlacementArg(Index - getNumImplicitArgs()); 1173 } 1174 1175 /// Number of placement arguments to the operator new() call. For example, 1176 /// standard std::nothrow operator new and standard placement new both have 1177 /// 1 implicit argument (size) and 1 placement argument, while regular 1178 /// operator new() has 1 implicit argument and 0 placement arguments. 1179 const Expr *getPlacementArgExpr(unsigned Index) const { 1180 return getOriginExpr()->getPlacementArg(Index); 1181 } 1182 1183 Kind getKind() const override { return CE_CXXAllocator; } 1184 StringRef getKindAsString() const override { return "CXXAllocatorCall"; } 1185 1186 static bool classof(const CallEvent *CE) { 1187 return CE->getKind() == CE_CXXAllocator; 1188 } 1189 }; 1190 1191 /// Represents the memory deallocation call in a C++ delete-expression. 1192 /// 1193 /// This is a call to "operator delete". 1194 // FIXME: CXXDeleteExpr isn't present for custom delete operators, or even for 1195 // some those that are in the standard library, like the no-throw or align_val 1196 // versions. 1197 // Some pointers: 1198 // http://lists.llvm.org/pipermail/cfe-dev/2020-April/065080.html 1199 // clang/test/Analysis/cxx-dynamic-memory-analysis-order.cpp 1200 // clang/unittests/StaticAnalyzer/CallEventTest.cpp 1201 class CXXDeallocatorCall : public AnyFunctionCall { 1202 friend class CallEventManager; 1203 1204 protected: 1205 CXXDeallocatorCall(const CXXDeleteExpr *E, ProgramStateRef St, 1206 const LocationContext *LCtx, 1207 CFGBlock::ConstCFGElementRef ElemRef) 1208 : AnyFunctionCall(E, St, LCtx, ElemRef) {} 1209 CXXDeallocatorCall(const CXXDeallocatorCall &Other) = default; 1210 1211 void cloneTo(void *Dest) const override { 1212 new (Dest) CXXDeallocatorCall(*this); 1213 } 1214 1215 public: 1216 const CXXDeleteExpr *getOriginExpr() const override { 1217 return cast<CXXDeleteExpr>(AnyFunctionCall::getOriginExpr()); 1218 } 1219 1220 const FunctionDecl *getDecl() const override { 1221 return getOriginExpr()->getOperatorDelete(); 1222 } 1223 1224 unsigned getNumArgs() const override { return getDecl()->getNumParams(); } 1225 1226 const Expr *getArgExpr(unsigned Index) const override { 1227 // CXXDeleteExpr's only have a single argument. 1228 return getOriginExpr()->getArgument(); 1229 } 1230 1231 Kind getKind() const override { return CE_CXXDeallocator; } 1232 StringRef getKindAsString() const override { return "CXXDeallocatorCall"; } 1233 1234 static bool classof(const CallEvent *CE) { 1235 return CE->getKind() == CE_CXXDeallocator; 1236 } 1237 }; 1238 1239 /// Represents the ways an Objective-C message send can occur. 1240 // 1241 // Note to maintainers: OCM_Message should always be last, since it does not 1242 // need to fit in the Data field's low bits. 1243 enum ObjCMessageKind { OCM_PropertyAccess, OCM_Subscript, OCM_Message }; 1244 1245 /// Represents any expression that calls an Objective-C method. 1246 /// 1247 /// This includes all of the kinds listed in ObjCMessageKind. 1248 class ObjCMethodCall : public CallEvent { 1249 friend class CallEventManager; 1250 1251 const PseudoObjectExpr *getContainingPseudoObjectExpr() const; 1252 1253 protected: 1254 ObjCMethodCall(const ObjCMessageExpr *Msg, ProgramStateRef St, 1255 const LocationContext *LCtx, 1256 CFGBlock::ConstCFGElementRef ElemRef) 1257 : CallEvent(Msg, St, LCtx, ElemRef) { 1258 Data = nullptr; 1259 } 1260 1261 ObjCMethodCall(const ObjCMethodCall &Other) = default; 1262 1263 void cloneTo(void *Dest) const override { new (Dest) ObjCMethodCall(*this); } 1264 1265 void getExtraInvalidatedValues( 1266 ValueList &Values, 1267 RegionAndSymbolInvalidationTraits *ETraits) const override; 1268 1269 /// Check if the selector may have multiple definitions (may have overrides). 1270 virtual bool canBeOverridenInSubclass(ObjCInterfaceDecl *IDecl, 1271 Selector Sel) const; 1272 1273 public: 1274 const ObjCMessageExpr *getOriginExpr() const override { 1275 return cast<ObjCMessageExpr>(CallEvent::getOriginExpr()); 1276 } 1277 1278 const ObjCMethodDecl *getDecl() const override { 1279 return getOriginExpr()->getMethodDecl(); 1280 } 1281 1282 unsigned getNumArgs() const override { return getOriginExpr()->getNumArgs(); } 1283 1284 const Expr *getArgExpr(unsigned Index) const override { 1285 return getOriginExpr()->getArg(Index); 1286 } 1287 1288 bool isInstanceMessage() const { 1289 return getOriginExpr()->isInstanceMessage(); 1290 } 1291 1292 ObjCMethodFamily getMethodFamily() const { 1293 return getOriginExpr()->getMethodFamily(); 1294 } 1295 1296 Selector getSelector() const { return getOriginExpr()->getSelector(); } 1297 1298 SourceRange getSourceRange() const override; 1299 1300 /// Returns the value of the receiver at the time of this call. 1301 SVal getReceiverSVal() const; 1302 1303 /// Get the interface for the receiver. 1304 /// 1305 /// This works whether this is an instance message or a class message. 1306 /// However, it currently just uses the static type of the receiver. 1307 const ObjCInterfaceDecl *getReceiverInterface() const { 1308 return getOriginExpr()->getReceiverInterface(); 1309 } 1310 1311 /// Checks if the receiver refers to 'self' or 'super'. 1312 bool isReceiverSelfOrSuper() const; 1313 1314 /// Returns how the message was written in the source (property access, 1315 /// subscript, or explicit message send). 1316 ObjCMessageKind getMessageKind() const; 1317 1318 /// Returns true if this property access or subscript is a setter (has the 1319 /// form of an assignment). 1320 bool isSetter() const { 1321 switch (getMessageKind()) { 1322 case OCM_Message: 1323 llvm_unreachable("This is not a pseudo-object access!"); 1324 case OCM_PropertyAccess: 1325 return getNumArgs() > 0; 1326 case OCM_Subscript: 1327 return getNumArgs() > 1; 1328 } 1329 llvm_unreachable("Unknown message kind"); 1330 } 1331 1332 // Returns the property accessed by this method, either explicitly via 1333 // property syntax or implicitly via a getter or setter method. Returns 1334 // nullptr if the call is not a prooperty access. 1335 const ObjCPropertyDecl *getAccessedProperty() const; 1336 1337 RuntimeDefinition getRuntimeDefinition() const override; 1338 1339 bool argumentsMayEscape() const override; 1340 1341 void getInitialStackFrameContents(const StackFrameContext *CalleeCtx, 1342 BindingsTy &Bindings) const override; 1343 1344 ArrayRef<ParmVarDecl *> parameters() const override; 1345 1346 Kind getKind() const override { return CE_ObjCMessage; } 1347 StringRef getKindAsString() const override { return "ObjCMethodCall"; } 1348 1349 static bool classof(const CallEvent *CA) { 1350 return CA->getKind() == CE_ObjCMessage; 1351 } 1352 }; 1353 1354 /// Manages the lifetime of CallEvent objects. 1355 /// 1356 /// CallEventManager provides a way to create arbitrary CallEvents "on the 1357 /// stack" as if they were value objects by keeping a cache of CallEvent-sized 1358 /// memory blocks. The CallEvents created by CallEventManager are only valid 1359 /// for the lifetime of the OwnedCallEvent that holds them; right now these 1360 /// objects cannot be copied and ownership cannot be transferred. 1361 class CallEventManager { 1362 friend class CallEvent; 1363 1364 llvm::BumpPtrAllocator &Alloc; 1365 SmallVector<void *, 8> Cache; 1366 1367 using CallEventTemplateTy = SimpleFunctionCall; 1368 1369 void reclaim(const void *Memory) { 1370 Cache.push_back(const_cast<void *>(Memory)); 1371 } 1372 1373 /// Returns memory that can be initialized as a CallEvent. 1374 void *allocate() { 1375 if (Cache.empty()) 1376 return Alloc.Allocate<CallEventTemplateTy>(); 1377 else 1378 return Cache.pop_back_val(); 1379 } 1380 1381 template <typename T, typename Arg> 1382 T *create(Arg A, ProgramStateRef St, const LocationContext *LCtx, 1383 CFGBlock::ConstCFGElementRef ElemRef) { 1384 static_assert(sizeof(T) == sizeof(CallEventTemplateTy), 1385 "CallEvent subclasses are not all the same size"); 1386 return new (allocate()) T(A, St, LCtx, ElemRef); 1387 } 1388 1389 template <typename T, typename Arg1, typename Arg2> 1390 T *create(Arg1 A1, Arg2 A2, ProgramStateRef St, const LocationContext *LCtx, 1391 CFGBlock::ConstCFGElementRef ElemRef) { 1392 static_assert(sizeof(T) == sizeof(CallEventTemplateTy), 1393 "CallEvent subclasses are not all the same size"); 1394 return new (allocate()) T(A1, A2, St, LCtx, ElemRef); 1395 } 1396 1397 template <typename T, typename Arg1, typename Arg2, typename Arg3> 1398 T *create(Arg1 A1, Arg2 A2, Arg3 A3, ProgramStateRef St, 1399 const LocationContext *LCtx, CFGBlock::ConstCFGElementRef ElemRef) { 1400 static_assert(sizeof(T) == sizeof(CallEventTemplateTy), 1401 "CallEvent subclasses are not all the same size"); 1402 return new (allocate()) T(A1, A2, A3, St, LCtx, ElemRef); 1403 } 1404 1405 template <typename T, typename Arg1, typename Arg2, typename Arg3, 1406 typename Arg4> 1407 T *create(Arg1 A1, Arg2 A2, Arg3 A3, Arg4 A4, ProgramStateRef St, 1408 const LocationContext *LCtx, CFGBlock::ConstCFGElementRef ElemRef) { 1409 static_assert(sizeof(T) == sizeof(CallEventTemplateTy), 1410 "CallEvent subclasses are not all the same size"); 1411 return new (allocate()) T(A1, A2, A3, A4, St, LCtx, ElemRef); 1412 } 1413 1414 public: 1415 CallEventManager(llvm::BumpPtrAllocator &alloc) : Alloc(alloc) {} 1416 1417 /// Gets an outside caller given a callee context. 1418 CallEventRef<> getCaller(const StackFrameContext *CalleeCtx, 1419 ProgramStateRef State); 1420 1421 /// Gets a call event for a function call, Objective-C method call, 1422 /// a 'new', or a 'delete' call. 1423 CallEventRef<> getCall(const Stmt *S, ProgramStateRef State, 1424 const LocationContext *LC, 1425 CFGBlock::ConstCFGElementRef ElemRef); 1426 1427 CallEventRef<> getSimpleCall(const CallExpr *E, ProgramStateRef State, 1428 const LocationContext *LCtx, 1429 CFGBlock::ConstCFGElementRef ElemRef); 1430 1431 CallEventRef<ObjCMethodCall> 1432 getObjCMethodCall(const ObjCMessageExpr *E, ProgramStateRef State, 1433 const LocationContext *LCtx, 1434 CFGBlock::ConstCFGElementRef ElemRef) { 1435 return create<ObjCMethodCall>(E, State, LCtx, ElemRef); 1436 } 1437 1438 CallEventRef<CXXConstructorCall> 1439 getCXXConstructorCall(const CXXConstructExpr *E, const MemRegion *Target, 1440 ProgramStateRef State, const LocationContext *LCtx, 1441 CFGBlock::ConstCFGElementRef ElemRef) { 1442 return create<CXXConstructorCall>(E, Target, State, LCtx, ElemRef); 1443 } 1444 1445 CallEventRef<CXXInheritedConstructorCall> 1446 getCXXInheritedConstructorCall(const CXXInheritedCtorInitExpr *E, 1447 const MemRegion *Target, ProgramStateRef State, 1448 const LocationContext *LCtx, 1449 CFGBlock::ConstCFGElementRef ElemRef) { 1450 return create<CXXInheritedConstructorCall>(E, Target, State, LCtx, ElemRef); 1451 } 1452 1453 CallEventRef<CXXDestructorCall> 1454 getCXXDestructorCall(const CXXDestructorDecl *DD, const Stmt *Trigger, 1455 const MemRegion *Target, bool IsBase, 1456 ProgramStateRef State, const LocationContext *LCtx, 1457 CFGBlock::ConstCFGElementRef ElemRef) { 1458 return create<CXXDestructorCall>(DD, Trigger, Target, IsBase, State, LCtx, 1459 ElemRef); 1460 } 1461 1462 CallEventRef<CXXAllocatorCall> 1463 getCXXAllocatorCall(const CXXNewExpr *E, ProgramStateRef State, 1464 const LocationContext *LCtx, 1465 CFGBlock::ConstCFGElementRef ElemRef) { 1466 return create<CXXAllocatorCall>(E, State, LCtx, ElemRef); 1467 } 1468 1469 CallEventRef<CXXDeallocatorCall> 1470 getCXXDeallocatorCall(const CXXDeleteExpr *E, ProgramStateRef State, 1471 const LocationContext *LCtx, 1472 CFGBlock::ConstCFGElementRef ElemRef) { 1473 return create<CXXDeallocatorCall>(E, State, LCtx, ElemRef); 1474 } 1475 }; 1476 1477 template <typename T> 1478 CallEventRef<T> CallEvent::cloneWithState(ProgramStateRef NewState) const { 1479 assert(isa<T>(*this) && "Cloning to unrelated type"); 1480 static_assert(sizeof(T) == sizeof(CallEvent), 1481 "Subclasses may not add fields"); 1482 1483 if (NewState == State) 1484 return cast<T>(this); 1485 1486 CallEventManager &Mgr = State->getStateManager().getCallEventManager(); 1487 T *Copy = static_cast<T *>(Mgr.allocate()); 1488 cloneTo(Copy); 1489 assert(Copy->getKind() == this->getKind() && "Bad copy"); 1490 1491 Copy->State = NewState; 1492 return Copy; 1493 } 1494 1495 inline void CallEvent::Release() const { 1496 assert(RefCount > 0 && "Reference count is already zero."); 1497 --RefCount; 1498 1499 if (RefCount > 0) 1500 return; 1501 1502 CallEventManager &Mgr = State->getStateManager().getCallEventManager(); 1503 Mgr.reclaim(this); 1504 1505 this->~CallEvent(); 1506 } 1507 1508 } // namespace ento 1509 1510 } // namespace clang 1511 1512 namespace llvm { 1513 1514 // Support isa<>, cast<>, and dyn_cast<> for CallEventRef. 1515 template <class T> struct simplify_type<clang::ento::CallEventRef<T>> { 1516 using SimpleType = const T *; 1517 1518 static SimpleType getSimplifiedValue(clang::ento::CallEventRef<T> Val) { 1519 return Val.get(); 1520 } 1521 }; 1522 1523 } // namespace llvm 1524 1525 #endif // LLVM_CLANG_STATICANALYZER_CORE_PATHSENSITIVE_CALLEVENT_H 1526