1 //===- CallEvent.cpp - Wrapper for all function and method calls ----------===// 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 #include "clang/StaticAnalyzer/Core/PathSensitive/CallEvent.h" 16 #include "clang/AST/ASTContext.h" 17 #include "clang/AST/Attr.h" 18 #include "clang/AST/Decl.h" 19 #include "clang/AST/DeclBase.h" 20 #include "clang/AST/DeclCXX.h" 21 #include "clang/AST/DeclObjC.h" 22 #include "clang/AST/Expr.h" 23 #include "clang/AST/ExprCXX.h" 24 #include "clang/AST/ExprObjC.h" 25 #include "clang/AST/ParentMap.h" 26 #include "clang/AST/Stmt.h" 27 #include "clang/AST/Type.h" 28 #include "clang/Analysis/AnalysisDeclContext.h" 29 #include "clang/Analysis/CFG.h" 30 #include "clang/Analysis/CFGStmtMap.h" 31 #include "clang/Analysis/PathDiagnostic.h" 32 #include "clang/Analysis/ProgramPoint.h" 33 #include "clang/Basic/IdentifierTable.h" 34 #include "clang/Basic/LLVM.h" 35 #include "clang/Basic/SourceLocation.h" 36 #include "clang/Basic/SourceManager.h" 37 #include "clang/Basic/Specifiers.h" 38 #include "clang/CrossTU/CrossTranslationUnit.h" 39 #include "clang/StaticAnalyzer/Core/PathSensitive/CallDescription.h" 40 #include "clang/StaticAnalyzer/Core/PathSensitive/CheckerContext.h" 41 #include "clang/StaticAnalyzer/Core/PathSensitive/CheckerHelpers.h" 42 #include "clang/StaticAnalyzer/Core/PathSensitive/DynamicType.h" 43 #include "clang/StaticAnalyzer/Core/PathSensitive/DynamicTypeInfo.h" 44 #include "clang/StaticAnalyzer/Core/PathSensitive/MemRegion.h" 45 #include "clang/StaticAnalyzer/Core/PathSensitive/ProgramState.h" 46 #include "clang/StaticAnalyzer/Core/PathSensitive/ProgramState_Fwd.h" 47 #include "clang/StaticAnalyzer/Core/PathSensitive/SValBuilder.h" 48 #include "clang/StaticAnalyzer/Core/PathSensitive/SVals.h" 49 #include "clang/StaticAnalyzer/Core/PathSensitive/Store.h" 50 #include "llvm/ADT/ArrayRef.h" 51 #include "llvm/ADT/DenseMap.h" 52 #include "llvm/ADT/ImmutableList.h" 53 #include "llvm/ADT/PointerIntPair.h" 54 #include "llvm/ADT/SmallSet.h" 55 #include "llvm/ADT/SmallVector.h" 56 #include "llvm/ADT/StringExtras.h" 57 #include "llvm/ADT/StringRef.h" 58 #include "llvm/Support/Casting.h" 59 #include "llvm/Support/Compiler.h" 60 #include "llvm/Support/Debug.h" 61 #include "llvm/Support/ErrorHandling.h" 62 #include "llvm/Support/raw_ostream.h" 63 #include <cassert> 64 #include <optional> 65 #include <utility> 66 67 #define DEBUG_TYPE "static-analyzer-call-event" 68 69 using namespace clang; 70 using namespace ento; 71 72 QualType CallEvent::getResultType() const { 73 ASTContext &Ctx = getState()->getStateManager().getContext(); 74 const Expr *E = getOriginExpr(); 75 if (!E) 76 return Ctx.VoidTy; 77 return Ctx.getReferenceQualifiedType(E); 78 } 79 80 static bool isCallback(QualType T) { 81 // If a parameter is a block or a callback, assume it can modify pointer. 82 if (T->isBlockPointerType() || 83 T->isFunctionPointerType() || 84 T->isObjCSelType()) 85 return true; 86 87 // Check if a callback is passed inside a struct (for both, struct passed by 88 // reference and by value). Dig just one level into the struct for now. 89 90 if (T->isAnyPointerType() || T->isReferenceType()) 91 T = T->getPointeeType(); 92 93 if (const RecordType *RT = T->getAsStructureType()) { 94 const RecordDecl *RD = RT->getDecl(); 95 for (const auto *I : RD->fields()) { 96 QualType FieldT = I->getType(); 97 if (FieldT->isBlockPointerType() || FieldT->isFunctionPointerType()) 98 return true; 99 } 100 } 101 return false; 102 } 103 104 static bool isVoidPointerToNonConst(QualType T) { 105 if (const auto *PT = T->getAs<PointerType>()) { 106 QualType PointeeTy = PT->getPointeeType(); 107 if (PointeeTy.isConstQualified()) 108 return false; 109 return PointeeTy->isVoidType(); 110 } else 111 return false; 112 } 113 114 bool CallEvent::hasNonNullArgumentsWithType(bool (*Condition)(QualType)) const { 115 unsigned NumOfArgs = getNumArgs(); 116 117 // If calling using a function pointer, assume the function does not 118 // satisfy the callback. 119 // TODO: We could check the types of the arguments here. 120 if (!getDecl()) 121 return false; 122 123 unsigned Idx = 0; 124 for (CallEvent::param_type_iterator I = param_type_begin(), 125 E = param_type_end(); 126 I != E && Idx < NumOfArgs; ++I, ++Idx) { 127 // If the parameter is 0, it's harmless. 128 if (getArgSVal(Idx).isZeroConstant()) 129 continue; 130 131 if (Condition(*I)) 132 return true; 133 } 134 return false; 135 } 136 137 bool CallEvent::hasNonZeroCallbackArg() const { 138 return hasNonNullArgumentsWithType(isCallback); 139 } 140 141 bool CallEvent::hasVoidPointerToNonConstArg() const { 142 return hasNonNullArgumentsWithType(isVoidPointerToNonConst); 143 } 144 145 bool CallEvent::isGlobalCFunction(StringRef FunctionName) const { 146 const auto *FD = dyn_cast_or_null<FunctionDecl>(getDecl()); 147 if (!FD) 148 return false; 149 150 return CheckerContext::isCLibraryFunction(FD, FunctionName); 151 } 152 153 AnalysisDeclContext *CallEvent::getCalleeAnalysisDeclContext() const { 154 const Decl *D = getDecl(); 155 if (!D) 156 return nullptr; 157 158 AnalysisDeclContext *ADC = 159 LCtx->getAnalysisDeclContext()->getManager()->getContext(D); 160 161 return ADC; 162 } 163 164 const StackFrameContext * 165 CallEvent::getCalleeStackFrame(unsigned BlockCount) const { 166 AnalysisDeclContext *ADC = getCalleeAnalysisDeclContext(); 167 if (!ADC) 168 return nullptr; 169 170 const Expr *E = getOriginExpr(); 171 if (!E) 172 return nullptr; 173 174 // Recover CFG block via reverse lookup. 175 // TODO: If we were to keep CFG element information as part of the CallEvent 176 // instead of doing this reverse lookup, we would be able to build the stack 177 // frame for non-expression-based calls, and also we wouldn't need the reverse 178 // lookup. 179 CFGStmtMap *Map = LCtx->getAnalysisDeclContext()->getCFGStmtMap(); 180 const CFGBlock *B = Map->getBlock(E); 181 assert(B); 182 183 // Also recover CFG index by scanning the CFG block. 184 unsigned Idx = 0, Sz = B->size(); 185 for (; Idx < Sz; ++Idx) 186 if (auto StmtElem = (*B)[Idx].getAs<CFGStmt>()) 187 if (StmtElem->getStmt() == E) 188 break; 189 assert(Idx < Sz); 190 191 return ADC->getManager()->getStackFrame(ADC, LCtx, E, B, BlockCount, Idx); 192 } 193 194 const ParamVarRegion 195 *CallEvent::getParameterLocation(unsigned Index, unsigned BlockCount) const { 196 const StackFrameContext *SFC = getCalleeStackFrame(BlockCount); 197 // We cannot construct a VarRegion without a stack frame. 198 if (!SFC) 199 return nullptr; 200 201 const ParamVarRegion *PVR = 202 State->getStateManager().getRegionManager().getParamVarRegion( 203 getOriginExpr(), Index, SFC); 204 return PVR; 205 } 206 207 /// Returns true if a type is a pointer-to-const or reference-to-const 208 /// with no further indirection. 209 static bool isPointerToConst(QualType Ty) { 210 QualType PointeeTy = Ty->getPointeeType(); 211 if (PointeeTy == QualType()) 212 return false; 213 if (!PointeeTy.isConstQualified()) 214 return false; 215 if (PointeeTy->isAnyPointerType()) 216 return false; 217 return true; 218 } 219 220 // Try to retrieve the function declaration and find the function parameter 221 // types which are pointers/references to a non-pointer const. 222 // We will not invalidate the corresponding argument regions. 223 static void findPtrToConstParams(llvm::SmallSet<unsigned, 4> &PreserveArgs, 224 const CallEvent &Call) { 225 unsigned Idx = 0; 226 for (CallEvent::param_type_iterator I = Call.param_type_begin(), 227 E = Call.param_type_end(); 228 I != E; ++I, ++Idx) { 229 if (isPointerToConst(*I)) 230 PreserveArgs.insert(Idx); 231 } 232 } 233 234 ProgramStateRef CallEvent::invalidateRegions(unsigned BlockCount, 235 ProgramStateRef Orig) const { 236 ProgramStateRef Result = (Orig ? Orig : getState()); 237 238 // Don't invalidate anything if the callee is marked pure/const. 239 if (const Decl *callee = getDecl()) 240 if (callee->hasAttr<PureAttr>() || callee->hasAttr<ConstAttr>()) 241 return Result; 242 243 SmallVector<SVal, 8> ValuesToInvalidate; 244 RegionAndSymbolInvalidationTraits ETraits; 245 246 getExtraInvalidatedValues(ValuesToInvalidate, &ETraits); 247 248 // Indexes of arguments whose values will be preserved by the call. 249 llvm::SmallSet<unsigned, 4> PreserveArgs; 250 if (!argumentsMayEscape()) 251 findPtrToConstParams(PreserveArgs, *this); 252 253 for (unsigned Idx = 0, Count = getNumArgs(); Idx != Count; ++Idx) { 254 // Mark this region for invalidation. We batch invalidate regions 255 // below for efficiency. 256 if (PreserveArgs.count(Idx)) 257 if (const MemRegion *MR = getArgSVal(Idx).getAsRegion()) 258 ETraits.setTrait(MR->getBaseRegion(), 259 RegionAndSymbolInvalidationTraits::TK_PreserveContents); 260 // TODO: Factor this out + handle the lower level const pointers. 261 262 ValuesToInvalidate.push_back(getArgSVal(Idx)); 263 264 // If a function accepts an object by argument (which would of course be a 265 // temporary that isn't lifetime-extended), invalidate the object itself, 266 // not only other objects reachable from it. This is necessary because the 267 // destructor has access to the temporary object after the call. 268 // TODO: Support placement arguments once we start 269 // constructing them directly. 270 // TODO: This is unnecessary when there's no destructor, but that's 271 // currently hard to figure out. 272 if (getKind() != CE_CXXAllocator) 273 if (isArgumentConstructedDirectly(Idx)) 274 if (auto AdjIdx = getAdjustedParameterIndex(Idx)) 275 if (const TypedValueRegion *TVR = 276 getParameterLocation(*AdjIdx, BlockCount)) 277 ValuesToInvalidate.push_back(loc::MemRegionVal(TVR)); 278 } 279 280 // Invalidate designated regions using the batch invalidation API. 281 // NOTE: Even if RegionsToInvalidate is empty, we may still invalidate 282 // global variables. 283 return Result->invalidateRegions(ValuesToInvalidate, getOriginExpr(), 284 BlockCount, getLocationContext(), 285 /*CausedByPointerEscape*/ true, 286 /*Symbols=*/nullptr, this, &ETraits); 287 } 288 289 ProgramPoint CallEvent::getProgramPoint(bool IsPreVisit, 290 const ProgramPointTag *Tag) const { 291 292 if (const Expr *E = getOriginExpr()) { 293 if (IsPreVisit) 294 return PreStmt(E, getLocationContext(), Tag); 295 return PostStmt(E, getLocationContext(), Tag); 296 } 297 298 const Decl *D = getDecl(); 299 assert(D && "Cannot get a program point without a statement or decl"); 300 assert(ElemRef.getParent() && 301 "Cannot get a program point without a CFGElementRef"); 302 303 SourceLocation Loc = getSourceRange().getBegin(); 304 if (IsPreVisit) 305 return PreImplicitCall(D, Loc, getLocationContext(), ElemRef, Tag); 306 return PostImplicitCall(D, Loc, getLocationContext(), ElemRef, Tag); 307 } 308 309 SVal CallEvent::getArgSVal(unsigned Index) const { 310 const Expr *ArgE = getArgExpr(Index); 311 if (!ArgE) 312 return UnknownVal(); 313 return getSVal(ArgE); 314 } 315 316 SourceRange CallEvent::getArgSourceRange(unsigned Index) const { 317 const Expr *ArgE = getArgExpr(Index); 318 if (!ArgE) 319 return {}; 320 return ArgE->getSourceRange(); 321 } 322 323 SVal CallEvent::getReturnValue() const { 324 const Expr *E = getOriginExpr(); 325 if (!E) 326 return UndefinedVal(); 327 return getSVal(E); 328 } 329 330 LLVM_DUMP_METHOD void CallEvent::dump() const { dump(llvm::errs()); } 331 332 void CallEvent::dump(raw_ostream &Out) const { 333 ASTContext &Ctx = getState()->getStateManager().getContext(); 334 if (const Expr *E = getOriginExpr()) { 335 E->printPretty(Out, nullptr, Ctx.getPrintingPolicy()); 336 return; 337 } 338 339 if (const Decl *D = getDecl()) { 340 Out << "Call to "; 341 D->print(Out, Ctx.getPrintingPolicy()); 342 return; 343 } 344 345 Out << "Unknown call (type " << getKindAsString() << ")"; 346 } 347 348 bool CallEvent::isCallStmt(const Stmt *S) { 349 return isa<CallExpr, ObjCMessageExpr, CXXConstructExpr, CXXNewExpr>(S); 350 } 351 352 QualType CallEvent::getDeclaredResultType(const Decl *D) { 353 assert(D); 354 if (const auto *FD = dyn_cast<FunctionDecl>(D)) 355 return FD->getReturnType(); 356 if (const auto *MD = dyn_cast<ObjCMethodDecl>(D)) 357 return MD->getReturnType(); 358 if (const auto *BD = dyn_cast<BlockDecl>(D)) { 359 // Blocks are difficult because the return type may not be stored in the 360 // BlockDecl itself. The AST should probably be enhanced, but for now we 361 // just do what we can. 362 // If the block is declared without an explicit argument list, the 363 // signature-as-written just includes the return type, not the entire 364 // function type. 365 // FIXME: All blocks should have signatures-as-written, even if the return 366 // type is inferred. (That's signified with a dependent result type.) 367 if (const TypeSourceInfo *TSI = BD->getSignatureAsWritten()) { 368 QualType Ty = TSI->getType(); 369 if (const FunctionType *FT = Ty->getAs<FunctionType>()) 370 Ty = FT->getReturnType(); 371 if (!Ty->isDependentType()) 372 return Ty; 373 } 374 375 return {}; 376 } 377 378 llvm_unreachable("unknown callable kind"); 379 } 380 381 bool CallEvent::isVariadic(const Decl *D) { 382 assert(D); 383 384 if (const auto *FD = dyn_cast<FunctionDecl>(D)) 385 return FD->isVariadic(); 386 if (const auto *MD = dyn_cast<ObjCMethodDecl>(D)) 387 return MD->isVariadic(); 388 if (const auto *BD = dyn_cast<BlockDecl>(D)) 389 return BD->isVariadic(); 390 391 llvm_unreachable("unknown callable kind"); 392 } 393 394 static bool isTransparentUnion(QualType T) { 395 const RecordType *UT = T->getAsUnionType(); 396 return UT && UT->getDecl()->hasAttr<TransparentUnionAttr>(); 397 } 398 399 // In some cases, symbolic cases should be transformed before we associate 400 // them with parameters. This function incapsulates such cases. 401 static SVal processArgument(SVal Value, const Expr *ArgumentExpr, 402 const ParmVarDecl *Parameter, SValBuilder &SVB) { 403 QualType ParamType = Parameter->getType(); 404 QualType ArgumentType = ArgumentExpr->getType(); 405 406 // Transparent unions allow users to easily convert values of union field 407 // types into union-typed objects. 408 // 409 // Also, more importantly, they allow users to define functions with different 410 // different parameter types, substituting types matching transparent union 411 // field types with the union type itself. 412 // 413 // Here, we check specifically for latter cases and prevent binding 414 // field-typed values to union-typed regions. 415 if (isTransparentUnion(ParamType) && 416 // Let's check that we indeed trying to bind different types. 417 !isTransparentUnion(ArgumentType)) { 418 BasicValueFactory &BVF = SVB.getBasicValueFactory(); 419 420 llvm::ImmutableList<SVal> CompoundSVals = BVF.getEmptySValList(); 421 CompoundSVals = BVF.prependSVal(Value, CompoundSVals); 422 423 // Wrap it with compound value. 424 return SVB.makeCompoundVal(ParamType, CompoundSVals); 425 } 426 427 return Value; 428 } 429 430 /// Cast the argument value to the type of the parameter at the function 431 /// declaration. 432 /// Returns the argument value if it didn't need a cast. 433 /// Or returns the cast argument if it needed a cast. 434 /// Or returns 'Unknown' if it would need a cast but the callsite and the 435 /// runtime definition don't match in terms of argument and parameter count. 436 static SVal castArgToParamTypeIfNeeded(const CallEvent &Call, unsigned ArgIdx, 437 SVal ArgVal, SValBuilder &SVB) { 438 const auto *CallExprDecl = dyn_cast_or_null<FunctionDecl>(Call.getDecl()); 439 if (!CallExprDecl) 440 return ArgVal; 441 442 const FunctionDecl *Definition = CallExprDecl; 443 Definition->hasBody(Definition); 444 445 // The function decl of the Call (in the AST) will not have any parameter 446 // declarations, if it was 'only' declared without a prototype. However, the 447 // engine will find the appropriate runtime definition - basically a 448 // redeclaration, which has a function body (and a function prototype). 449 if (CallExprDecl->hasPrototype() || !Definition->hasPrototype()) 450 return ArgVal; 451 452 // Only do this cast if the number arguments at the callsite matches with 453 // the parameters at the runtime definition. 454 if (Call.getNumArgs() != Definition->getNumParams()) 455 return UnknownVal(); 456 457 const Expr *ArgExpr = Call.getArgExpr(ArgIdx); 458 const ParmVarDecl *Param = Definition->getParamDecl(ArgIdx); 459 return SVB.evalCast(ArgVal, Param->getType(), ArgExpr->getType()); 460 } 461 462 static void addParameterValuesToBindings(const StackFrameContext *CalleeCtx, 463 CallEvent::BindingsTy &Bindings, 464 SValBuilder &SVB, 465 const CallEvent &Call, 466 ArrayRef<ParmVarDecl*> parameters) { 467 MemRegionManager &MRMgr = SVB.getRegionManager(); 468 469 // If the function has fewer parameters than the call has arguments, we simply 470 // do not bind any values to them. 471 unsigned NumArgs = Call.getNumArgs(); 472 unsigned Idx = 0; 473 ArrayRef<ParmVarDecl*>::iterator I = parameters.begin(), E = parameters.end(); 474 for (; I != E && Idx < NumArgs; ++I, ++Idx) { 475 assert(*I && "Formal parameter has no decl?"); 476 477 // TODO: Support allocator calls. 478 if (Call.getKind() != CE_CXXAllocator) 479 if (Call.isArgumentConstructedDirectly(Call.getASTArgumentIndex(Idx))) 480 continue; 481 482 // TODO: Allocators should receive the correct size and possibly alignment, 483 // determined in compile-time but not represented as arg-expressions, 484 // which makes getArgSVal() fail and return UnknownVal. 485 SVal ArgVal = Call.getArgSVal(Idx); 486 const Expr *ArgExpr = Call.getArgExpr(Idx); 487 488 if (ArgVal.isUnknown()) 489 continue; 490 491 // Cast the argument value to match the type of the parameter in some 492 // edge-cases. 493 ArgVal = castArgToParamTypeIfNeeded(Call, Idx, ArgVal, SVB); 494 495 Loc ParamLoc = SVB.makeLoc( 496 MRMgr.getParamVarRegion(Call.getOriginExpr(), Idx, CalleeCtx)); 497 Bindings.push_back( 498 std::make_pair(ParamLoc, processArgument(ArgVal, ArgExpr, *I, SVB))); 499 } 500 501 // FIXME: Variadic arguments are not handled at all right now. 502 } 503 504 const ConstructionContext *CallEvent::getConstructionContext() const { 505 const StackFrameContext *StackFrame = getCalleeStackFrame(0); 506 if (!StackFrame) 507 return nullptr; 508 509 const CFGElement Element = StackFrame->getCallSiteCFGElement(); 510 if (const auto Ctor = Element.getAs<CFGConstructor>()) { 511 return Ctor->getConstructionContext(); 512 } 513 514 if (const auto RecCall = Element.getAs<CFGCXXRecordTypedCall>()) { 515 return RecCall->getConstructionContext(); 516 } 517 518 return nullptr; 519 } 520 521 const CallEventRef<> CallEvent::getCaller() const { 522 const auto *CallLocationContext = this->getLocationContext(); 523 if (!CallLocationContext || CallLocationContext->inTopFrame()) 524 return nullptr; 525 526 const auto *CallStackFrameContext = CallLocationContext->getStackFrame(); 527 if (!CallStackFrameContext) 528 return nullptr; 529 530 CallEventManager &CEMgr = State->getStateManager().getCallEventManager(); 531 return CEMgr.getCaller(CallStackFrameContext, State); 532 } 533 534 bool CallEvent::isCalledFromSystemHeader() const { 535 if (const CallEventRef<> Caller = getCaller()) 536 return Caller->isInSystemHeader(); 537 538 return false; 539 } 540 541 std::optional<SVal> CallEvent::getReturnValueUnderConstruction() const { 542 const auto *CC = getConstructionContext(); 543 if (!CC) 544 return std::nullopt; 545 546 EvalCallOptions CallOpts; 547 ExprEngine &Engine = getState()->getStateManager().getOwningEngine(); 548 SVal RetVal = Engine.computeObjectUnderConstruction( 549 getOriginExpr(), getState(), &Engine.getBuilderContext(), 550 getLocationContext(), CC, CallOpts); 551 return RetVal; 552 } 553 554 ArrayRef<ParmVarDecl*> AnyFunctionCall::parameters() const { 555 const FunctionDecl *D = getDecl(); 556 if (!D) 557 return {}; 558 return D->parameters(); 559 } 560 561 RuntimeDefinition AnyFunctionCall::getRuntimeDefinition() const { 562 const FunctionDecl *FD = getDecl(); 563 if (!FD) 564 return {}; 565 566 // Note that the AnalysisDeclContext will have the FunctionDecl with 567 // the definition (if one exists). 568 AnalysisDeclContext *AD = 569 getLocationContext()->getAnalysisDeclContext()-> 570 getManager()->getContext(FD); 571 bool IsAutosynthesized; 572 Stmt* Body = AD->getBody(IsAutosynthesized); 573 LLVM_DEBUG({ 574 if (IsAutosynthesized) 575 llvm::dbgs() << "Using autosynthesized body for " << FD->getName() 576 << "\n"; 577 }); 578 579 ExprEngine &Engine = getState()->getStateManager().getOwningEngine(); 580 cross_tu::CrossTranslationUnitContext &CTUCtx = 581 *Engine.getCrossTranslationUnitContext(); 582 583 AnalyzerOptions &Opts = Engine.getAnalysisManager().options; 584 585 if (Body) { 586 const Decl* Decl = AD->getDecl(); 587 if (Opts.IsNaiveCTUEnabled && CTUCtx.isImportedAsNew(Decl)) { 588 // A newly created definition, but we had error(s) during the import. 589 if (CTUCtx.hasError(Decl)) 590 return {}; 591 return RuntimeDefinition(Decl, /*Foreign=*/true); 592 } 593 return RuntimeDefinition(Decl, /*Foreign=*/false); 594 } 595 596 // Try to get CTU definition only if CTUDir is provided. 597 if (!Opts.IsNaiveCTUEnabled) 598 return {}; 599 600 llvm::Expected<const FunctionDecl *> CTUDeclOrError = 601 CTUCtx.getCrossTUDefinition(FD, Opts.CTUDir, Opts.CTUIndexName, 602 Opts.DisplayCTUProgress); 603 604 if (!CTUDeclOrError) { 605 handleAllErrors(CTUDeclOrError.takeError(), 606 [&](const cross_tu::IndexError &IE) { 607 CTUCtx.emitCrossTUDiagnostics(IE); 608 }); 609 return {}; 610 } 611 612 return RuntimeDefinition(*CTUDeclOrError, /*Foreign=*/true); 613 } 614 615 void AnyFunctionCall::getInitialStackFrameContents( 616 const StackFrameContext *CalleeCtx, 617 BindingsTy &Bindings) const { 618 const auto *D = cast<FunctionDecl>(CalleeCtx->getDecl()); 619 SValBuilder &SVB = getState()->getStateManager().getSValBuilder(); 620 addParameterValuesToBindings(CalleeCtx, Bindings, SVB, *this, 621 D->parameters()); 622 } 623 624 bool AnyFunctionCall::argumentsMayEscape() const { 625 if (CallEvent::argumentsMayEscape() || hasVoidPointerToNonConstArg()) 626 return true; 627 628 const FunctionDecl *D = getDecl(); 629 if (!D) 630 return true; 631 632 const IdentifierInfo *II = D->getIdentifier(); 633 if (!II) 634 return false; 635 636 // This set of "escaping" APIs is 637 638 // - 'int pthread_setspecific(ptheread_key k, const void *)' stores a 639 // value into thread local storage. The value can later be retrieved with 640 // 'void *ptheread_getspecific(pthread_key)'. So even thought the 641 // parameter is 'const void *', the region escapes through the call. 642 if (II->isStr("pthread_setspecific")) 643 return true; 644 645 // - xpc_connection_set_context stores a value which can be retrieved later 646 // with xpc_connection_get_context. 647 if (II->isStr("xpc_connection_set_context")) 648 return true; 649 650 // - funopen - sets a buffer for future IO calls. 651 if (II->isStr("funopen")) 652 return true; 653 654 // - __cxa_demangle - can reallocate memory and can return the pointer to 655 // the input buffer. 656 if (II->isStr("__cxa_demangle")) 657 return true; 658 659 StringRef FName = II->getName(); 660 661 // - CoreFoundation functions that end with "NoCopy" can free a passed-in 662 // buffer even if it is const. 663 if (FName.ends_with("NoCopy")) 664 return true; 665 666 // - NSXXInsertXX, for example NSMapInsertIfAbsent, since they can 667 // be deallocated by NSMapRemove. 668 if (FName.starts_with("NS") && FName.contains("Insert")) 669 return true; 670 671 // - Many CF containers allow objects to escape through custom 672 // allocators/deallocators upon container construction. (PR12101) 673 if (FName.starts_with("CF") || FName.starts_with("CG")) { 674 return StrInStrNoCase(FName, "InsertValue") != StringRef::npos || 675 StrInStrNoCase(FName, "AddValue") != StringRef::npos || 676 StrInStrNoCase(FName, "SetValue") != StringRef::npos || 677 StrInStrNoCase(FName, "WithData") != StringRef::npos || 678 StrInStrNoCase(FName, "AppendValue") != StringRef::npos || 679 StrInStrNoCase(FName, "SetAttribute") != StringRef::npos; 680 } 681 682 return false; 683 } 684 685 const FunctionDecl *SimpleFunctionCall::getDecl() const { 686 const FunctionDecl *D = getOriginExpr()->getDirectCallee(); 687 if (D) 688 return D; 689 690 return getSVal(getOriginExpr()->getCallee()).getAsFunctionDecl(); 691 } 692 693 const FunctionDecl *CXXInstanceCall::getDecl() const { 694 const auto *CE = cast_or_null<CallExpr>(getOriginExpr()); 695 if (!CE) 696 return AnyFunctionCall::getDecl(); 697 698 const FunctionDecl *D = CE->getDirectCallee(); 699 if (D) 700 return D; 701 702 return getSVal(CE->getCallee()).getAsFunctionDecl(); 703 } 704 705 void CXXInstanceCall::getExtraInvalidatedValues( 706 ValueList &Values, RegionAndSymbolInvalidationTraits *ETraits) const { 707 SVal ThisVal = getCXXThisVal(); 708 Values.push_back(ThisVal); 709 710 // Don't invalidate if the method is const and there are no mutable fields. 711 if (const auto *D = cast_or_null<CXXMethodDecl>(getDecl())) { 712 if (!D->isConst()) 713 return; 714 715 // Get the record decl for the class of 'This'. D->getParent() may return 716 // a base class decl, rather than the class of the instance which needs to 717 // be checked for mutable fields. 718 const CXXRecordDecl *ParentRecord = getDeclForDynamicType().first; 719 if (!ParentRecord || !ParentRecord->hasDefinition()) 720 return; 721 722 if (ParentRecord->hasMutableFields()) 723 return; 724 725 // Preserve CXXThis. 726 const MemRegion *ThisRegion = ThisVal.getAsRegion(); 727 if (!ThisRegion) 728 return; 729 730 ETraits->setTrait(ThisRegion->getBaseRegion(), 731 RegionAndSymbolInvalidationTraits::TK_PreserveContents); 732 } 733 } 734 735 SVal CXXInstanceCall::getCXXThisVal() const { 736 const Expr *Base = getCXXThisExpr(); 737 // FIXME: This doesn't handle an overloaded ->* operator. 738 SVal ThisVal = Base ? getSVal(Base) : UnknownVal(); 739 740 if (isa<NonLoc>(ThisVal)) { 741 SValBuilder &SVB = getState()->getStateManager().getSValBuilder(); 742 QualType OriginalTy = ThisVal.getType(SVB.getContext()); 743 return SVB.evalCast(ThisVal, Base->getType(), OriginalTy); 744 } 745 746 assert(ThisVal.isUnknownOrUndef() || isa<Loc>(ThisVal)); 747 return ThisVal; 748 } 749 750 std::pair<const CXXRecordDecl *, bool> 751 CXXInstanceCall::getDeclForDynamicType() const { 752 const MemRegion *R = getCXXThisVal().getAsRegion(); 753 if (!R) 754 return {}; 755 756 DynamicTypeInfo DynType = getDynamicTypeInfo(getState(), R); 757 if (!DynType.isValid()) 758 return {}; 759 760 assert(!DynType.getType()->getPointeeType().isNull()); 761 return {DynType.getType()->getPointeeCXXRecordDecl(), 762 DynType.canBeASubClass()}; 763 } 764 765 RuntimeDefinition CXXInstanceCall::getRuntimeDefinition() const { 766 // Do we have a decl at all? 767 const Decl *D = getDecl(); 768 if (!D) 769 return {}; 770 771 // If the method is non-virtual, we know we can inline it. 772 const auto *MD = cast<CXXMethodDecl>(D); 773 if (!MD->isVirtual()) 774 return AnyFunctionCall::getRuntimeDefinition(); 775 776 auto [RD, CanBeSubClass] = getDeclForDynamicType(); 777 if (!RD || !RD->hasDefinition()) 778 return {}; 779 780 // Find the decl for this method in that class. 781 const CXXMethodDecl *Result = MD->getCorrespondingMethodInClass(RD, true); 782 if (!Result) { 783 // We might not even get the original statically-resolved method due to 784 // some particularly nasty casting (e.g. casts to sister classes). 785 // However, we should at least be able to search up and down our own class 786 // hierarchy, and some real bugs have been caught by checking this. 787 assert(!RD->isDerivedFrom(MD->getParent()) && "Couldn't find known method"); 788 789 // FIXME: This is checking that our DynamicTypeInfo is at least as good as 790 // the static type. However, because we currently don't update 791 // DynamicTypeInfo when an object is cast, we can't actually be sure the 792 // DynamicTypeInfo is up to date. This assert should be re-enabled once 793 // this is fixed. 794 // 795 // assert(!MD->getParent()->isDerivedFrom(RD) && "Bad DynamicTypeInfo"); 796 797 return {}; 798 } 799 800 // Does the decl that we found have an implementation? 801 const FunctionDecl *Definition; 802 if (!Result->hasBody(Definition)) { 803 if (!CanBeSubClass) 804 return AnyFunctionCall::getRuntimeDefinition(); 805 return {}; 806 } 807 808 // We found a definition. If we're not sure that this devirtualization is 809 // actually what will happen at runtime, make sure to provide the region so 810 // that ExprEngine can decide what to do with it. 811 if (CanBeSubClass) 812 return RuntimeDefinition(Definition, 813 getCXXThisVal().getAsRegion()->StripCasts()); 814 return RuntimeDefinition(Definition, /*DispatchRegion=*/nullptr); 815 } 816 817 void CXXInstanceCall::getInitialStackFrameContents( 818 const StackFrameContext *CalleeCtx, 819 BindingsTy &Bindings) const { 820 AnyFunctionCall::getInitialStackFrameContents(CalleeCtx, Bindings); 821 822 // Handle the binding of 'this' in the new stack frame. 823 SVal ThisVal = getCXXThisVal(); 824 if (!ThisVal.isUnknown()) { 825 ProgramStateManager &StateMgr = getState()->getStateManager(); 826 SValBuilder &SVB = StateMgr.getSValBuilder(); 827 828 const auto *MD = cast<CXXMethodDecl>(CalleeCtx->getDecl()); 829 Loc ThisLoc = SVB.getCXXThis(MD, CalleeCtx); 830 831 // If we devirtualized to a different member function, we need to make sure 832 // we have the proper layering of CXXBaseObjectRegions. 833 if (MD->getCanonicalDecl() != getDecl()->getCanonicalDecl()) { 834 ASTContext &Ctx = SVB.getContext(); 835 const CXXRecordDecl *Class = MD->getParent(); 836 QualType Ty = Ctx.getPointerType(Ctx.getRecordType(Class)); 837 838 // FIXME: CallEvent maybe shouldn't be directly accessing StoreManager. 839 std::optional<SVal> V = 840 StateMgr.getStoreManager().evalBaseToDerived(ThisVal, Ty); 841 if (!V) { 842 // We might have suffered some sort of placement new earlier, so 843 // we're constructing in a completely unexpected storage. 844 // Fall back to a generic pointer cast for this-value. 845 const CXXMethodDecl *StaticMD = cast<CXXMethodDecl>(getDecl()); 846 const CXXRecordDecl *StaticClass = StaticMD->getParent(); 847 QualType StaticTy = Ctx.getPointerType(Ctx.getRecordType(StaticClass)); 848 ThisVal = SVB.evalCast(ThisVal, Ty, StaticTy); 849 } else 850 ThisVal = *V; 851 } 852 853 if (!ThisVal.isUnknown()) 854 Bindings.push_back(std::make_pair(ThisLoc, ThisVal)); 855 } 856 } 857 858 const Expr *CXXMemberCall::getCXXThisExpr() const { 859 return getOriginExpr()->getImplicitObjectArgument(); 860 } 861 862 RuntimeDefinition CXXMemberCall::getRuntimeDefinition() const { 863 // C++11 [expr.call]p1: ...If the selected function is non-virtual, or if the 864 // id-expression in the class member access expression is a qualified-id, 865 // that function is called. Otherwise, its final overrider in the dynamic type 866 // of the object expression is called. 867 if (const auto *ME = dyn_cast<MemberExpr>(getOriginExpr()->getCallee())) 868 if (ME->hasQualifier()) 869 return AnyFunctionCall::getRuntimeDefinition(); 870 871 return CXXInstanceCall::getRuntimeDefinition(); 872 } 873 874 const Expr *CXXMemberOperatorCall::getCXXThisExpr() const { 875 return getOriginExpr()->getArg(0); 876 } 877 878 const BlockDataRegion *BlockCall::getBlockRegion() const { 879 const Expr *Callee = getOriginExpr()->getCallee(); 880 const MemRegion *DataReg = getSVal(Callee).getAsRegion(); 881 882 return dyn_cast_or_null<BlockDataRegion>(DataReg); 883 } 884 885 ArrayRef<ParmVarDecl*> BlockCall::parameters() const { 886 const BlockDecl *D = getDecl(); 887 if (!D) 888 return {}; 889 return D->parameters(); 890 } 891 892 void BlockCall::getExtraInvalidatedValues(ValueList &Values, 893 RegionAndSymbolInvalidationTraits *ETraits) const { 894 // FIXME: This also needs to invalidate captured globals. 895 if (const MemRegion *R = getBlockRegion()) 896 Values.push_back(loc::MemRegionVal(R)); 897 } 898 899 void BlockCall::getInitialStackFrameContents(const StackFrameContext *CalleeCtx, 900 BindingsTy &Bindings) const { 901 SValBuilder &SVB = getState()->getStateManager().getSValBuilder(); 902 ArrayRef<ParmVarDecl*> Params; 903 if (isConversionFromLambda()) { 904 auto *LambdaOperatorDecl = cast<CXXMethodDecl>(CalleeCtx->getDecl()); 905 Params = LambdaOperatorDecl->parameters(); 906 907 // For blocks converted from a C++ lambda, the callee declaration is the 908 // operator() method on the lambda so we bind "this" to 909 // the lambda captured by the block. 910 const VarRegion *CapturedLambdaRegion = getRegionStoringCapturedLambda(); 911 SVal ThisVal = loc::MemRegionVal(CapturedLambdaRegion); 912 Loc ThisLoc = SVB.getCXXThis(LambdaOperatorDecl, CalleeCtx); 913 Bindings.push_back(std::make_pair(ThisLoc, ThisVal)); 914 } else { 915 Params = cast<BlockDecl>(CalleeCtx->getDecl())->parameters(); 916 } 917 918 addParameterValuesToBindings(CalleeCtx, Bindings, SVB, *this, 919 Params); 920 } 921 922 SVal AnyCXXConstructorCall::getCXXThisVal() const { 923 if (Data) 924 return loc::MemRegionVal(static_cast<const MemRegion *>(Data)); 925 return UnknownVal(); 926 } 927 928 void AnyCXXConstructorCall::getExtraInvalidatedValues(ValueList &Values, 929 RegionAndSymbolInvalidationTraits *ETraits) const { 930 SVal V = getCXXThisVal(); 931 if (SymbolRef Sym = V.getAsSymbol(true)) 932 ETraits->setTrait(Sym, 933 RegionAndSymbolInvalidationTraits::TK_SuppressEscape); 934 935 // Standard classes don't reinterpret-cast and modify super regions. 936 const bool IsStdClassCtor = isWithinStdNamespace(getDecl()); 937 if (const MemRegion *Obj = V.getAsRegion(); Obj && IsStdClassCtor) { 938 ETraits->setTrait( 939 Obj, RegionAndSymbolInvalidationTraits::TK_DoNotInvalidateSuperRegion); 940 } 941 942 Values.push_back(V); 943 } 944 945 void AnyCXXConstructorCall::getInitialStackFrameContents( 946 const StackFrameContext *CalleeCtx, 947 BindingsTy &Bindings) const { 948 AnyFunctionCall::getInitialStackFrameContents(CalleeCtx, Bindings); 949 950 SVal ThisVal = getCXXThisVal(); 951 if (!ThisVal.isUnknown()) { 952 SValBuilder &SVB = getState()->getStateManager().getSValBuilder(); 953 const auto *MD = cast<CXXMethodDecl>(CalleeCtx->getDecl()); 954 Loc ThisLoc = SVB.getCXXThis(MD, CalleeCtx); 955 Bindings.push_back(std::make_pair(ThisLoc, ThisVal)); 956 } 957 } 958 959 const StackFrameContext * 960 CXXInheritedConstructorCall::getInheritingStackFrame() const { 961 const StackFrameContext *SFC = getLocationContext()->getStackFrame(); 962 while (isa<CXXInheritedCtorInitExpr>(SFC->getCallSite())) 963 SFC = SFC->getParent()->getStackFrame(); 964 return SFC; 965 } 966 967 SVal CXXDestructorCall::getCXXThisVal() const { 968 if (Data) 969 return loc::MemRegionVal(DtorDataTy::getFromOpaqueValue(Data).getPointer()); 970 return UnknownVal(); 971 } 972 973 RuntimeDefinition CXXDestructorCall::getRuntimeDefinition() const { 974 // Base destructors are always called non-virtually. 975 // Skip CXXInstanceCall's devirtualization logic in this case. 976 if (isBaseDestructor()) 977 return AnyFunctionCall::getRuntimeDefinition(); 978 979 return CXXInstanceCall::getRuntimeDefinition(); 980 } 981 982 ArrayRef<ParmVarDecl*> ObjCMethodCall::parameters() const { 983 const ObjCMethodDecl *D = getDecl(); 984 if (!D) 985 return {}; 986 return D->parameters(); 987 } 988 989 void ObjCMethodCall::getExtraInvalidatedValues( 990 ValueList &Values, RegionAndSymbolInvalidationTraits *ETraits) const { 991 992 // If the method call is a setter for property known to be backed by 993 // an instance variable, don't invalidate the entire receiver, just 994 // the storage for that instance variable. 995 if (const ObjCPropertyDecl *PropDecl = getAccessedProperty()) { 996 if (const ObjCIvarDecl *PropIvar = PropDecl->getPropertyIvarDecl()) { 997 SVal IvarLVal = getState()->getLValue(PropIvar, getReceiverSVal()); 998 if (const MemRegion *IvarRegion = IvarLVal.getAsRegion()) { 999 ETraits->setTrait( 1000 IvarRegion, 1001 RegionAndSymbolInvalidationTraits::TK_DoNotInvalidateSuperRegion); 1002 ETraits->setTrait( 1003 IvarRegion, 1004 RegionAndSymbolInvalidationTraits::TK_SuppressEscape); 1005 Values.push_back(IvarLVal); 1006 } 1007 return; 1008 } 1009 } 1010 1011 Values.push_back(getReceiverSVal()); 1012 } 1013 1014 SVal ObjCMethodCall::getReceiverSVal() const { 1015 // FIXME: Is this the best way to handle class receivers? 1016 if (!isInstanceMessage()) 1017 return UnknownVal(); 1018 1019 if (const Expr *RecE = getOriginExpr()->getInstanceReceiver()) 1020 return getSVal(RecE); 1021 1022 // An instance message with no expression means we are sending to super. 1023 // In this case the object reference is the same as 'self'. 1024 assert(getOriginExpr()->getReceiverKind() == ObjCMessageExpr::SuperInstance); 1025 SVal SelfVal = getState()->getSelfSVal(getLocationContext()); 1026 assert(SelfVal.isValid() && "Calling super but not in ObjC method"); 1027 return SelfVal; 1028 } 1029 1030 bool ObjCMethodCall::isReceiverSelfOrSuper() const { 1031 if (getOriginExpr()->getReceiverKind() == ObjCMessageExpr::SuperInstance || 1032 getOriginExpr()->getReceiverKind() == ObjCMessageExpr::SuperClass) 1033 return true; 1034 1035 if (!isInstanceMessage()) 1036 return false; 1037 1038 SVal RecVal = getSVal(getOriginExpr()->getInstanceReceiver()); 1039 SVal SelfVal = getState()->getSelfSVal(getLocationContext()); 1040 1041 return (RecVal == SelfVal); 1042 } 1043 1044 SourceRange ObjCMethodCall::getSourceRange() const { 1045 switch (getMessageKind()) { 1046 case OCM_Message: 1047 return getOriginExpr()->getSourceRange(); 1048 case OCM_PropertyAccess: 1049 case OCM_Subscript: 1050 return getContainingPseudoObjectExpr()->getSourceRange(); 1051 } 1052 llvm_unreachable("unknown message kind"); 1053 } 1054 1055 using ObjCMessageDataTy = llvm::PointerIntPair<const PseudoObjectExpr *, 2>; 1056 1057 const PseudoObjectExpr *ObjCMethodCall::getContainingPseudoObjectExpr() const { 1058 assert(Data && "Lazy lookup not yet performed."); 1059 assert(getMessageKind() != OCM_Message && "Explicit message send."); 1060 return ObjCMessageDataTy::getFromOpaqueValue(Data).getPointer(); 1061 } 1062 1063 static const Expr * 1064 getSyntacticFromForPseudoObjectExpr(const PseudoObjectExpr *POE) { 1065 const Expr *Syntactic = POE->getSyntacticForm()->IgnoreParens(); 1066 1067 // This handles the funny case of assigning to the result of a getter. 1068 // This can happen if the getter returns a non-const reference. 1069 if (const auto *BO = dyn_cast<BinaryOperator>(Syntactic)) 1070 Syntactic = BO->getLHS()->IgnoreParens(); 1071 1072 return Syntactic; 1073 } 1074 1075 ObjCMessageKind ObjCMethodCall::getMessageKind() const { 1076 if (!Data) { 1077 // Find the parent, ignoring implicit casts. 1078 const ParentMap &PM = getLocationContext()->getParentMap(); 1079 const Stmt *S = PM.getParentIgnoreParenCasts(getOriginExpr()); 1080 1081 // Check if parent is a PseudoObjectExpr. 1082 if (const auto *POE = dyn_cast_or_null<PseudoObjectExpr>(S)) { 1083 const Expr *Syntactic = getSyntacticFromForPseudoObjectExpr(POE); 1084 1085 ObjCMessageKind K; 1086 switch (Syntactic->getStmtClass()) { 1087 case Stmt::ObjCPropertyRefExprClass: 1088 K = OCM_PropertyAccess; 1089 break; 1090 case Stmt::ObjCSubscriptRefExprClass: 1091 K = OCM_Subscript; 1092 break; 1093 default: 1094 // FIXME: Can this ever happen? 1095 K = OCM_Message; 1096 break; 1097 } 1098 1099 if (K != OCM_Message) { 1100 const_cast<ObjCMethodCall *>(this)->Data 1101 = ObjCMessageDataTy(POE, K).getOpaqueValue(); 1102 assert(getMessageKind() == K); 1103 return K; 1104 } 1105 } 1106 1107 const_cast<ObjCMethodCall *>(this)->Data 1108 = ObjCMessageDataTy(nullptr, 1).getOpaqueValue(); 1109 assert(getMessageKind() == OCM_Message); 1110 return OCM_Message; 1111 } 1112 1113 ObjCMessageDataTy Info = ObjCMessageDataTy::getFromOpaqueValue(Data); 1114 if (!Info.getPointer()) 1115 return OCM_Message; 1116 return static_cast<ObjCMessageKind>(Info.getInt()); 1117 } 1118 1119 const ObjCPropertyDecl *ObjCMethodCall::getAccessedProperty() const { 1120 // Look for properties accessed with property syntax (foo.bar = ...) 1121 if (getMessageKind() == OCM_PropertyAccess) { 1122 const PseudoObjectExpr *POE = getContainingPseudoObjectExpr(); 1123 assert(POE && "Property access without PseudoObjectExpr?"); 1124 1125 const Expr *Syntactic = getSyntacticFromForPseudoObjectExpr(POE); 1126 auto *RefExpr = cast<ObjCPropertyRefExpr>(Syntactic); 1127 1128 if (RefExpr->isExplicitProperty()) 1129 return RefExpr->getExplicitProperty(); 1130 } 1131 1132 // Look for properties accessed with method syntax ([foo setBar:...]). 1133 const ObjCMethodDecl *MD = getDecl(); 1134 if (!MD || !MD->isPropertyAccessor()) 1135 return nullptr; 1136 1137 // Note: This is potentially quite slow. 1138 return MD->findPropertyDecl(); 1139 } 1140 1141 bool ObjCMethodCall::canBeOverridenInSubclass(ObjCInterfaceDecl *IDecl, 1142 Selector Sel) const { 1143 assert(IDecl); 1144 AnalysisManager &AMgr = 1145 getState()->getStateManager().getOwningEngine().getAnalysisManager(); 1146 // If the class interface is declared inside the main file, assume it is not 1147 // subcassed. 1148 // TODO: It could actually be subclassed if the subclass is private as well. 1149 // This is probably very rare. 1150 SourceLocation InterfLoc = IDecl->getEndOfDefinitionLoc(); 1151 if (InterfLoc.isValid() && AMgr.isInCodeFile(InterfLoc)) 1152 return false; 1153 1154 // Assume that property accessors are not overridden. 1155 if (getMessageKind() == OCM_PropertyAccess) 1156 return false; 1157 1158 // We assume that if the method is public (declared outside of main file) or 1159 // has a parent which publicly declares the method, the method could be 1160 // overridden in a subclass. 1161 1162 // Find the first declaration in the class hierarchy that declares 1163 // the selector. 1164 ObjCMethodDecl *D = nullptr; 1165 while (true) { 1166 D = IDecl->lookupMethod(Sel, true); 1167 1168 // Cannot find a public definition. 1169 if (!D) 1170 return false; 1171 1172 // If outside the main file, 1173 if (D->getLocation().isValid() && !AMgr.isInCodeFile(D->getLocation())) 1174 return true; 1175 1176 if (D->isOverriding()) { 1177 // Search in the superclass on the next iteration. 1178 IDecl = D->getClassInterface(); 1179 if (!IDecl) 1180 return false; 1181 1182 IDecl = IDecl->getSuperClass(); 1183 if (!IDecl) 1184 return false; 1185 1186 continue; 1187 } 1188 1189 return false; 1190 }; 1191 1192 llvm_unreachable("The while loop should always terminate."); 1193 } 1194 1195 static const ObjCMethodDecl *findDefiningRedecl(const ObjCMethodDecl *MD) { 1196 if (!MD) 1197 return MD; 1198 1199 // Find the redeclaration that defines the method. 1200 if (!MD->hasBody()) { 1201 for (auto *I : MD->redecls()) 1202 if (I->hasBody()) 1203 MD = cast<ObjCMethodDecl>(I); 1204 } 1205 return MD; 1206 } 1207 1208 struct PrivateMethodKey { 1209 const ObjCInterfaceDecl *Interface; 1210 Selector LookupSelector; 1211 bool IsClassMethod; 1212 }; 1213 1214 namespace llvm { 1215 template <> struct DenseMapInfo<PrivateMethodKey> { 1216 using InterfaceInfo = DenseMapInfo<const ObjCInterfaceDecl *>; 1217 using SelectorInfo = DenseMapInfo<Selector>; 1218 1219 static inline PrivateMethodKey getEmptyKey() { 1220 return {InterfaceInfo::getEmptyKey(), SelectorInfo::getEmptyKey(), false}; 1221 } 1222 1223 static inline PrivateMethodKey getTombstoneKey() { 1224 return {InterfaceInfo::getTombstoneKey(), SelectorInfo::getTombstoneKey(), 1225 true}; 1226 } 1227 1228 static unsigned getHashValue(const PrivateMethodKey &Key) { 1229 return llvm::hash_combine( 1230 llvm::hash_code(InterfaceInfo::getHashValue(Key.Interface)), 1231 llvm::hash_code(SelectorInfo::getHashValue(Key.LookupSelector)), 1232 Key.IsClassMethod); 1233 } 1234 1235 static bool isEqual(const PrivateMethodKey &LHS, 1236 const PrivateMethodKey &RHS) { 1237 return InterfaceInfo::isEqual(LHS.Interface, RHS.Interface) && 1238 SelectorInfo::isEqual(LHS.LookupSelector, RHS.LookupSelector) && 1239 LHS.IsClassMethod == RHS.IsClassMethod; 1240 } 1241 }; 1242 } // end namespace llvm 1243 1244 static const ObjCMethodDecl * 1245 lookupRuntimeDefinition(const ObjCInterfaceDecl *Interface, 1246 Selector LookupSelector, bool InstanceMethod) { 1247 // Repeatedly calling lookupPrivateMethod() is expensive, especially 1248 // when in many cases it returns null. We cache the results so 1249 // that repeated queries on the same ObjCIntefaceDecl and Selector 1250 // don't incur the same cost. On some test cases, we can see the 1251 // same query being issued thousands of times. 1252 // 1253 // NOTE: This cache is essentially a "global" variable, but it 1254 // only gets lazily created when we get here. The value of the 1255 // cache probably comes from it being global across ExprEngines, 1256 // where the same queries may get issued. If we are worried about 1257 // concurrency, or possibly loading/unloading ASTs, etc., we may 1258 // need to revisit this someday. In terms of memory, this table 1259 // stays around until clang quits, which also may be bad if we 1260 // need to release memory. 1261 using PrivateMethodCache = 1262 llvm::DenseMap<PrivateMethodKey, std::optional<const ObjCMethodDecl *>>; 1263 1264 static PrivateMethodCache PMC; 1265 std::optional<const ObjCMethodDecl *> &Val = 1266 PMC[{Interface, LookupSelector, InstanceMethod}]; 1267 1268 // Query lookupPrivateMethod() if the cache does not hit. 1269 if (!Val) { 1270 Val = Interface->lookupPrivateMethod(LookupSelector, InstanceMethod); 1271 1272 if (!*Val) { 1273 // Query 'lookupMethod' as a backup. 1274 Val = Interface->lookupMethod(LookupSelector, InstanceMethod); 1275 } 1276 } 1277 1278 return *Val; 1279 } 1280 1281 RuntimeDefinition ObjCMethodCall::getRuntimeDefinition() const { 1282 const ObjCMessageExpr *E = getOriginExpr(); 1283 assert(E); 1284 Selector Sel = E->getSelector(); 1285 1286 if (E->isInstanceMessage()) { 1287 // Find the receiver type. 1288 const ObjCObjectType *ReceiverT = nullptr; 1289 bool CanBeSubClassed = false; 1290 bool LookingForInstanceMethod = true; 1291 QualType SupersType = E->getSuperType(); 1292 const MemRegion *Receiver = nullptr; 1293 1294 if (!SupersType.isNull()) { 1295 // The receiver is guaranteed to be 'super' in this case. 1296 // Super always means the type of immediate predecessor to the method 1297 // where the call occurs. 1298 ReceiverT = cast<ObjCObjectPointerType>(SupersType)->getObjectType(); 1299 } else { 1300 Receiver = getReceiverSVal().getAsRegion(); 1301 if (!Receiver) 1302 return {}; 1303 1304 DynamicTypeInfo DTI = getDynamicTypeInfo(getState(), Receiver); 1305 if (!DTI.isValid()) { 1306 assert(isa<AllocaRegion>(Receiver) && 1307 "Unhandled untyped region class!"); 1308 return {}; 1309 } 1310 1311 QualType DynType = DTI.getType(); 1312 CanBeSubClassed = DTI.canBeASubClass(); 1313 1314 const auto *ReceiverDynT = 1315 dyn_cast<ObjCObjectPointerType>(DynType.getCanonicalType()); 1316 1317 if (ReceiverDynT) { 1318 ReceiverT = ReceiverDynT->getObjectType(); 1319 1320 // It can be actually class methods called with Class object as a 1321 // receiver. This type of messages is treated by the compiler as 1322 // instance (not class). 1323 if (ReceiverT->isObjCClass()) { 1324 1325 SVal SelfVal = getState()->getSelfSVal(getLocationContext()); 1326 // For [self classMethod], return compiler visible declaration. 1327 if (Receiver == SelfVal.getAsRegion()) { 1328 return RuntimeDefinition(findDefiningRedecl(E->getMethodDecl())); 1329 } 1330 1331 // Otherwise, let's check if we know something about the type 1332 // inside of this class object. 1333 if (SymbolRef ReceiverSym = getReceiverSVal().getAsSymbol()) { 1334 DynamicTypeInfo DTI = 1335 getClassObjectDynamicTypeInfo(getState(), ReceiverSym); 1336 if (DTI.isValid()) { 1337 // Let's use this type for lookup. 1338 ReceiverT = 1339 cast<ObjCObjectType>(DTI.getType().getCanonicalType()); 1340 1341 CanBeSubClassed = DTI.canBeASubClass(); 1342 // And it should be a class method instead. 1343 LookingForInstanceMethod = false; 1344 } 1345 } 1346 } 1347 1348 if (CanBeSubClassed) 1349 if (ObjCInterfaceDecl *IDecl = ReceiverT->getInterface()) 1350 // Even if `DynamicTypeInfo` told us that it can be 1351 // not necessarily this type, but its descendants, we still want 1352 // to check again if this selector can be actually overridden. 1353 CanBeSubClassed = canBeOverridenInSubclass(IDecl, Sel); 1354 } 1355 } 1356 1357 // Lookup the instance method implementation. 1358 if (ReceiverT) 1359 if (ObjCInterfaceDecl *IDecl = ReceiverT->getInterface()) { 1360 const ObjCMethodDecl *MD = 1361 lookupRuntimeDefinition(IDecl, Sel, LookingForInstanceMethod); 1362 1363 if (MD && !MD->hasBody()) 1364 MD = MD->getCanonicalDecl(); 1365 1366 if (CanBeSubClassed) 1367 return RuntimeDefinition(MD, Receiver); 1368 else 1369 return RuntimeDefinition(MD, nullptr); 1370 } 1371 } else { 1372 // This is a class method. 1373 // If we have type info for the receiver class, we are calling via 1374 // class name. 1375 if (ObjCInterfaceDecl *IDecl = E->getReceiverInterface()) { 1376 // Find/Return the method implementation. 1377 return RuntimeDefinition(IDecl->lookupPrivateClassMethod(Sel)); 1378 } 1379 } 1380 1381 return {}; 1382 } 1383 1384 bool ObjCMethodCall::argumentsMayEscape() const { 1385 if (isInSystemHeader() && !isInstanceMessage()) { 1386 Selector Sel = getSelector(); 1387 if (Sel.getNumArgs() == 1 && 1388 Sel.getIdentifierInfoForSlot(0)->isStr("valueWithPointer")) 1389 return true; 1390 } 1391 1392 return CallEvent::argumentsMayEscape(); 1393 } 1394 1395 void ObjCMethodCall::getInitialStackFrameContents( 1396 const StackFrameContext *CalleeCtx, 1397 BindingsTy &Bindings) const { 1398 const auto *D = cast<ObjCMethodDecl>(CalleeCtx->getDecl()); 1399 SValBuilder &SVB = getState()->getStateManager().getSValBuilder(); 1400 addParameterValuesToBindings(CalleeCtx, Bindings, SVB, *this, 1401 D->parameters()); 1402 1403 SVal SelfVal = getReceiverSVal(); 1404 if (!SelfVal.isUnknown()) { 1405 const VarDecl *SelfD = CalleeCtx->getAnalysisDeclContext()->getSelfDecl(); 1406 MemRegionManager &MRMgr = SVB.getRegionManager(); 1407 Loc SelfLoc = SVB.makeLoc(MRMgr.getVarRegion(SelfD, CalleeCtx)); 1408 Bindings.push_back(std::make_pair(SelfLoc, SelfVal)); 1409 } 1410 } 1411 1412 CallEventRef<> 1413 CallEventManager::getSimpleCall(const CallExpr *CE, ProgramStateRef State, 1414 const LocationContext *LCtx, 1415 CFGBlock::ConstCFGElementRef ElemRef) { 1416 if (const auto *MCE = dyn_cast<CXXMemberCallExpr>(CE)) 1417 return create<CXXMemberCall>(MCE, State, LCtx, ElemRef); 1418 1419 if (const auto *OpCE = dyn_cast<CXXOperatorCallExpr>(CE)) { 1420 const FunctionDecl *DirectCallee = OpCE->getDirectCallee(); 1421 if (const auto *MD = dyn_cast<CXXMethodDecl>(DirectCallee)) { 1422 if (MD->isImplicitObjectMemberFunction()) 1423 return create<CXXMemberOperatorCall>(OpCE, State, LCtx, ElemRef); 1424 if (MD->isStatic()) 1425 return create<CXXStaticOperatorCall>(OpCE, State, LCtx, ElemRef); 1426 } 1427 1428 } else if (CE->getCallee()->getType()->isBlockPointerType()) { 1429 return create<BlockCall>(CE, State, LCtx, ElemRef); 1430 } 1431 1432 // Otherwise, it's a normal function call, static member function call, or 1433 // something we can't reason about. 1434 return create<SimpleFunctionCall>(CE, State, LCtx, ElemRef); 1435 } 1436 1437 CallEventRef<> 1438 CallEventManager::getCaller(const StackFrameContext *CalleeCtx, 1439 ProgramStateRef State) { 1440 const LocationContext *ParentCtx = CalleeCtx->getParent(); 1441 const LocationContext *CallerCtx = ParentCtx->getStackFrame(); 1442 CFGBlock::ConstCFGElementRef ElemRef = {CalleeCtx->getCallSiteBlock(), 1443 CalleeCtx->getIndex()}; 1444 assert(CallerCtx && "This should not be used for top-level stack frames"); 1445 1446 const Stmt *CallSite = CalleeCtx->getCallSite(); 1447 1448 if (CallSite) { 1449 if (CallEventRef<> Out = getCall(CallSite, State, CallerCtx, ElemRef)) 1450 return Out; 1451 1452 SValBuilder &SVB = State->getStateManager().getSValBuilder(); 1453 const auto *Ctor = cast<CXXMethodDecl>(CalleeCtx->getDecl()); 1454 Loc ThisPtr = SVB.getCXXThis(Ctor, CalleeCtx); 1455 SVal ThisVal = State->getSVal(ThisPtr); 1456 1457 if (const auto *CE = dyn_cast<CXXConstructExpr>(CallSite)) 1458 return getCXXConstructorCall(CE, ThisVal.getAsRegion(), State, CallerCtx, 1459 ElemRef); 1460 else if (const auto *CIE = dyn_cast<CXXInheritedCtorInitExpr>(CallSite)) 1461 return getCXXInheritedConstructorCall(CIE, ThisVal.getAsRegion(), State, 1462 CallerCtx, ElemRef); 1463 else { 1464 // All other cases are handled by getCall. 1465 llvm_unreachable("This is not an inlineable statement"); 1466 } 1467 } 1468 1469 // Fall back to the CFG. The only thing we haven't handled yet is 1470 // destructors, though this could change in the future. 1471 const CFGBlock *B = CalleeCtx->getCallSiteBlock(); 1472 CFGElement E = (*B)[CalleeCtx->getIndex()]; 1473 assert((E.getAs<CFGImplicitDtor>() || E.getAs<CFGTemporaryDtor>()) && 1474 "All other CFG elements should have exprs"); 1475 1476 SValBuilder &SVB = State->getStateManager().getSValBuilder(); 1477 const auto *Dtor = cast<CXXDestructorDecl>(CalleeCtx->getDecl()); 1478 Loc ThisPtr = SVB.getCXXThis(Dtor, CalleeCtx); 1479 SVal ThisVal = State->getSVal(ThisPtr); 1480 1481 const Stmt *Trigger; 1482 if (std::optional<CFGAutomaticObjDtor> AutoDtor = 1483 E.getAs<CFGAutomaticObjDtor>()) 1484 Trigger = AutoDtor->getTriggerStmt(); 1485 else if (std::optional<CFGDeleteDtor> DeleteDtor = E.getAs<CFGDeleteDtor>()) 1486 Trigger = DeleteDtor->getDeleteExpr(); 1487 else 1488 Trigger = Dtor->getBody(); 1489 1490 return getCXXDestructorCall(Dtor, Trigger, ThisVal.getAsRegion(), 1491 E.getAs<CFGBaseDtor>().has_value(), State, 1492 CallerCtx, ElemRef); 1493 } 1494 1495 CallEventRef<> CallEventManager::getCall(const Stmt *S, ProgramStateRef State, 1496 const LocationContext *LC, 1497 CFGBlock::ConstCFGElementRef ElemRef) { 1498 if (const auto *CE = dyn_cast<CallExpr>(S)) { 1499 return getSimpleCall(CE, State, LC, ElemRef); 1500 } else if (const auto *NE = dyn_cast<CXXNewExpr>(S)) { 1501 return getCXXAllocatorCall(NE, State, LC, ElemRef); 1502 } else if (const auto *DE = dyn_cast<CXXDeleteExpr>(S)) { 1503 return getCXXDeallocatorCall(DE, State, LC, ElemRef); 1504 } else if (const auto *ME = dyn_cast<ObjCMessageExpr>(S)) { 1505 return getObjCMethodCall(ME, State, LC, ElemRef); 1506 } else { 1507 return nullptr; 1508 } 1509 } 1510