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SemaDeclAttr.cpp
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//===--- SemaDeclAttr.cpp - Declaration Attribute Handling ----------------===//
//
// Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions.
// See https://llvm.org/LICENSE.txt for license information.
// SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
//
//===----------------------------------------------------------------------===//
//
// This file implements decl-related attribute processing.
//
//===----------------------------------------------------------------------===//
#include "clang/AST/ASTConsumer.h"
#include "clang/AST/ASTContext.h"
#include "clang/AST/ASTMutationListener.h"
#include "clang/AST/CXXInheritance.h"
#include "clang/AST/Decl.h"
#include "clang/AST/DeclCXX.h"
#include "clang/AST/DeclObjC.h"
#include "clang/AST/DeclTemplate.h"
#include "clang/AST/DynamicRecursiveASTVisitor.h"
#include "clang/AST/Expr.h"
#include "clang/AST/ExprCXX.h"
#include "clang/AST/Mangle.h"
#include "clang/AST/Type.h"
#include "clang/Basic/CharInfo.h"
#include "clang/Basic/Cuda.h"
#include "clang/Basic/DarwinSDKInfo.h"
#include "clang/Basic/IdentifierTable.h"
#include "clang/Basic/LangOptions.h"
#include "clang/Basic/SourceLocation.h"
#include "clang/Basic/SourceManager.h"
#include "clang/Basic/TargetInfo.h"
#include "clang/Lex/Preprocessor.h"
#include "clang/Sema/Attr.h"
#include "clang/Sema/DeclSpec.h"
#include "clang/Sema/DelayedDiagnostic.h"
#include "clang/Sema/Initialization.h"
#include "clang/Sema/Lookup.h"
#include "clang/Sema/ParsedAttr.h"
#include "clang/Sema/Scope.h"
#include "clang/Sema/ScopeInfo.h"
#include "clang/Sema/SemaAMDGPU.h"
#include "clang/Sema/SemaARM.h"
#include "clang/Sema/SemaAVR.h"
#include "clang/Sema/SemaBPF.h"
#include "clang/Sema/SemaCUDA.h"
#include "clang/Sema/SemaHLSL.h"
#include "clang/Sema/SemaM68k.h"
#include "clang/Sema/SemaMIPS.h"
#include "clang/Sema/SemaMSP430.h"
#include "clang/Sema/SemaObjC.h"
#include "clang/Sema/SemaOpenCL.h"
#include "clang/Sema/SemaOpenMP.h"
#include "clang/Sema/SemaRISCV.h"
#include "clang/Sema/SemaSYCL.h"
#include "clang/Sema/SemaSwift.h"
#include "clang/Sema/SemaWasm.h"
#include "clang/Sema/SemaX86.h"
#include "llvm/ADT/STLExtras.h"
#include "llvm/ADT/STLForwardCompat.h"
#include "llvm/ADT/StringExtras.h"
#include "llvm/Demangle/Demangle.h"
#include "llvm/IR/DerivedTypes.h"
#include "llvm/MC/MCSectionMachO.h"
#include "llvm/Support/Error.h"
#include "llvm/Support/ErrorHandling.h"
#include "llvm/Support/MathExtras.h"
#include "llvm/Support/raw_ostream.h"
#include "llvm/TargetParser/Triple.h"
#include <optional>
using namespace clang;
using namespace sema;
namespace AttributeLangSupport {
enum LANG {
C,
Cpp,
ObjC
};
} // end namespace AttributeLangSupport
static unsigned getNumAttributeArgs(const ParsedAttr &AL) {
// FIXME: Include the type in the argument list.
return AL.getNumArgs() + AL.hasParsedType();
}
SourceLocation Sema::getAttrLoc(const ParsedAttr &AL) { return AL.getLoc(); }
/// Wrapper around checkUInt32Argument, with an extra check to be sure
/// that the result will fit into a regular (signed) int. All args have the same
/// purpose as they do in checkUInt32Argument.
template <typename AttrInfo>
static bool checkPositiveIntArgument(Sema &S, const AttrInfo &AI, const Expr *Expr,
int &Val, unsigned Idx = UINT_MAX) {
uint32_t UVal;
if (!S.checkUInt32Argument(AI, Expr, UVal, Idx))
return false;
if (UVal > (uint32_t)std::numeric_limits<int>::max()) {
llvm::APSInt I(32); // for toString
I = UVal;
S.Diag(Expr->getExprLoc(), diag::err_ice_too_large)
<< toString(I, 10, false) << 32 << /* Unsigned */ 0;
return false;
}
Val = UVal;
return true;
}
bool Sema::checkStringLiteralArgumentAttr(const AttributeCommonInfo &CI,
const Expr *E, StringRef &Str,
SourceLocation *ArgLocation) {
const auto *Literal = dyn_cast<StringLiteral>(E->IgnoreParenCasts());
if (ArgLocation)
*ArgLocation = E->getBeginLoc();
if (!Literal || (!Literal->isUnevaluated() && !Literal->isOrdinary())) {
Diag(E->getBeginLoc(), diag::err_attribute_argument_type)
<< CI << AANT_ArgumentString;
return false;
}
Str = Literal->getString();
return true;
}
bool Sema::checkStringLiteralArgumentAttr(const ParsedAttr &AL, unsigned ArgNum,
StringRef &Str,
SourceLocation *ArgLocation) {
// Look for identifiers. If we have one emit a hint to fix it to a literal.
if (AL.isArgIdent(ArgNum)) {
IdentifierLoc *Loc = AL.getArgAsIdent(ArgNum);
Diag(Loc->Loc, diag::err_attribute_argument_type)
<< AL << AANT_ArgumentString
<< FixItHint::CreateInsertion(Loc->Loc, "\"")
<< FixItHint::CreateInsertion(getLocForEndOfToken(Loc->Loc), "\"");
Str = Loc->Ident->getName();
if (ArgLocation)
*ArgLocation = Loc->Loc;
return true;
}
// Now check for an actual string literal.
Expr *ArgExpr = AL.getArgAsExpr(ArgNum);
const auto *Literal = dyn_cast<StringLiteral>(ArgExpr->IgnoreParenCasts());
if (ArgLocation)
*ArgLocation = ArgExpr->getBeginLoc();
if (!Literal || (!Literal->isUnevaluated() && !Literal->isOrdinary())) {
Diag(ArgExpr->getBeginLoc(), diag::err_attribute_argument_type)
<< AL << AANT_ArgumentString;
return false;
}
Str = Literal->getString();
return checkStringLiteralArgumentAttr(AL, ArgExpr, Str, ArgLocation);
}
/// Check if the passed-in expression is of type int or bool.
static bool isIntOrBool(Expr *Exp) {
QualType QT = Exp->getType();
return QT->isBooleanType() || QT->isIntegerType();
}
// Check to see if the type is a smart pointer of some kind. We assume
// it's a smart pointer if it defines both operator-> and operator*.
static bool threadSafetyCheckIsSmartPointer(Sema &S, const RecordType* RT) {
auto IsOverloadedOperatorPresent = [&S](const RecordDecl *Record,
OverloadedOperatorKind Op) {
DeclContextLookupResult Result =
Record->lookup(S.Context.DeclarationNames.getCXXOperatorName(Op));
return !Result.empty();
};
const RecordDecl *Record = RT->getDecl();
bool foundStarOperator = IsOverloadedOperatorPresent(Record, OO_Star);
bool foundArrowOperator = IsOverloadedOperatorPresent(Record, OO_Arrow);
if (foundStarOperator && foundArrowOperator)
return true;
const CXXRecordDecl *CXXRecord = dyn_cast<CXXRecordDecl>(Record);
if (!CXXRecord)
return false;
for (const auto &BaseSpecifier : CXXRecord->bases()) {
if (!foundStarOperator)
foundStarOperator = IsOverloadedOperatorPresent(
BaseSpecifier.getType()->getAsRecordDecl(), OO_Star);
if (!foundArrowOperator)
foundArrowOperator = IsOverloadedOperatorPresent(
BaseSpecifier.getType()->getAsRecordDecl(), OO_Arrow);
}
if (foundStarOperator && foundArrowOperator)
return true;
return false;
}
/// Check if passed in Decl is a pointer type.
/// Note that this function may produce an error message.
/// \return true if the Decl is a pointer type; false otherwise
static bool threadSafetyCheckIsPointer(Sema &S, const Decl *D,
const ParsedAttr &AL) {
const auto *VD = cast<ValueDecl>(D);
QualType QT = VD->getType();
if (QT->isAnyPointerType())
return true;
if (const auto *RT = QT->getAs<RecordType>()) {
// If it's an incomplete type, it could be a smart pointer; skip it.
// (We don't want to force template instantiation if we can avoid it,
// since that would alter the order in which templates are instantiated.)
if (RT->isIncompleteType())
return true;
if (threadSafetyCheckIsSmartPointer(S, RT))
return true;
}
S.Diag(AL.getLoc(), diag::warn_thread_attribute_decl_not_pointer) << AL << QT;
return false;
}
/// Checks that the passed in QualType either is of RecordType or points
/// to RecordType. Returns the relevant RecordType, null if it does not exit.
static const RecordType *getRecordType(QualType QT) {
if (const auto *RT = QT->getAs<RecordType>())
return RT;
// Now check if we point to record type.
if (const auto *PT = QT->getAs<PointerType>())
return PT->getPointeeType()->getAs<RecordType>();
return nullptr;
}
template <typename AttrType>
static bool checkRecordDeclForAttr(const RecordDecl *RD) {
// Check if the record itself has the attribute.
if (RD->hasAttr<AttrType>())
return true;
// Else check if any base classes have the attribute.
if (const auto *CRD = dyn_cast<CXXRecordDecl>(RD)) {
if (!CRD->forallBases([](const CXXRecordDecl *Base) {
return !Base->hasAttr<AttrType>();
}))
return true;
}
return false;
}
static bool checkRecordTypeForCapability(Sema &S, QualType Ty) {
const RecordType *RT = getRecordType(Ty);
if (!RT)
return false;
// Don't check for the capability if the class hasn't been defined yet.
if (RT->isIncompleteType())
return true;
// Allow smart pointers to be used as capability objects.
// FIXME -- Check the type that the smart pointer points to.
if (threadSafetyCheckIsSmartPointer(S, RT))
return true;
return checkRecordDeclForAttr<CapabilityAttr>(RT->getDecl());
}
static bool checkRecordTypeForScopedCapability(Sema &S, QualType Ty) {
const RecordType *RT = getRecordType(Ty);
if (!RT)
return false;
// Don't check for the capability if the class hasn't been defined yet.
if (RT->isIncompleteType())
return true;
return checkRecordDeclForAttr<ScopedLockableAttr>(RT->getDecl());
}
static bool checkTypedefTypeForCapability(QualType Ty) {
const auto *TD = Ty->getAs<TypedefType>();
if (!TD)
return false;
TypedefNameDecl *TN = TD->getDecl();
if (!TN)
return false;
return TN->hasAttr<CapabilityAttr>();
}
static bool typeHasCapability(Sema &S, QualType Ty) {
if (checkTypedefTypeForCapability(Ty))
return true;
if (checkRecordTypeForCapability(S, Ty))
return true;
return false;
}
static bool isCapabilityExpr(Sema &S, const Expr *Ex) {
// Capability expressions are simple expressions involving the boolean logic
// operators &&, || or !, a simple DeclRefExpr, CastExpr or a ParenExpr. Once
// a DeclRefExpr is found, its type should be checked to determine whether it
// is a capability or not.
if (const auto *E = dyn_cast<CastExpr>(Ex))
return isCapabilityExpr(S, E->getSubExpr());
else if (const auto *E = dyn_cast<ParenExpr>(Ex))
return isCapabilityExpr(S, E->getSubExpr());
else if (const auto *E = dyn_cast<UnaryOperator>(Ex)) {
if (E->getOpcode() == UO_LNot || E->getOpcode() == UO_AddrOf ||
E->getOpcode() == UO_Deref)
return isCapabilityExpr(S, E->getSubExpr());
return false;
} else if (const auto *E = dyn_cast<BinaryOperator>(Ex)) {
if (E->getOpcode() == BO_LAnd || E->getOpcode() == BO_LOr)
return isCapabilityExpr(S, E->getLHS()) &&
isCapabilityExpr(S, E->getRHS());
return false;
}
return typeHasCapability(S, Ex->getType());
}
/// Checks that all attribute arguments, starting from Sidx, resolve to
/// a capability object.
/// \param Sidx The attribute argument index to start checking with.
/// \param ParamIdxOk Whether an argument can be indexing into a function
/// parameter list.
static void checkAttrArgsAreCapabilityObjs(Sema &S, Decl *D,
const ParsedAttr &AL,
SmallVectorImpl<Expr *> &Args,
unsigned Sidx = 0,
bool ParamIdxOk = false) {
if (Sidx == AL.getNumArgs()) {
// If we don't have any capability arguments, the attribute implicitly
// refers to 'this'. So we need to make sure that 'this' exists, i.e. we're
// a non-static method, and that the class is a (scoped) capability.
const auto *MD = dyn_cast<const CXXMethodDecl>(D);
if (MD && !MD->isStatic()) {
const CXXRecordDecl *RD = MD->getParent();
// FIXME -- need to check this again on template instantiation
if (!checkRecordDeclForAttr<CapabilityAttr>(RD) &&
!checkRecordDeclForAttr<ScopedLockableAttr>(RD))
S.Diag(AL.getLoc(),
diag::warn_thread_attribute_not_on_capability_member)
<< AL << MD->getParent();
} else {
S.Diag(AL.getLoc(), diag::warn_thread_attribute_not_on_non_static_member)
<< AL;
}
}
for (unsigned Idx = Sidx; Idx < AL.getNumArgs(); ++Idx) {
Expr *ArgExp = AL.getArgAsExpr(Idx);
if (ArgExp->isTypeDependent()) {
// FIXME -- need to check this again on template instantiation
Args.push_back(ArgExp);
continue;
}
if (const auto *StrLit = dyn_cast<StringLiteral>(ArgExp)) {
if (StrLit->getLength() == 0 ||
(StrLit->isOrdinary() && StrLit->getString() == "*")) {
// Pass empty strings to the analyzer without warnings.
// Treat "*" as the universal lock.
Args.push_back(ArgExp);
continue;
}
// We allow constant strings to be used as a placeholder for expressions
// that are not valid C++ syntax, but warn that they are ignored.
S.Diag(AL.getLoc(), diag::warn_thread_attribute_ignored) << AL;
Args.push_back(ArgExp);
continue;
}
QualType ArgTy = ArgExp->getType();
// A pointer to member expression of the form &MyClass::mu is treated
// specially -- we need to look at the type of the member.
if (const auto *UOp = dyn_cast<UnaryOperator>(ArgExp))
if (UOp->getOpcode() == UO_AddrOf)
if (const auto *DRE = dyn_cast<DeclRefExpr>(UOp->getSubExpr()))
if (DRE->getDecl()->isCXXInstanceMember())
ArgTy = DRE->getDecl()->getType();
// First see if we can just cast to record type, or pointer to record type.
const RecordType *RT = getRecordType(ArgTy);
// Now check if we index into a record type function param.
if(!RT && ParamIdxOk) {
const auto *FD = dyn_cast<FunctionDecl>(D);
const auto *IL = dyn_cast<IntegerLiteral>(ArgExp);
if(FD && IL) {
unsigned int NumParams = FD->getNumParams();
llvm::APInt ArgValue = IL->getValue();
uint64_t ParamIdxFromOne = ArgValue.getZExtValue();
uint64_t ParamIdxFromZero = ParamIdxFromOne - 1;
if (!ArgValue.isStrictlyPositive() || ParamIdxFromOne > NumParams) {
S.Diag(AL.getLoc(),
diag::err_attribute_argument_out_of_bounds_extra_info)
<< AL << Idx + 1 << NumParams;
continue;
}
ArgTy = FD->getParamDecl(ParamIdxFromZero)->getType();
}
}
// If the type does not have a capability, see if the components of the
// expression have capabilities. This allows for writing C code where the
// capability may be on the type, and the expression is a capability
// boolean logic expression. Eg) requires_capability(A || B && !C)
if (!typeHasCapability(S, ArgTy) && !isCapabilityExpr(S, ArgExp))
S.Diag(AL.getLoc(), diag::warn_thread_attribute_argument_not_lockable)
<< AL << ArgTy;
Args.push_back(ArgExp);
}
}
static bool checkFunParamsAreScopedLockable(Sema &S,
const ParmVarDecl *ParamDecl,
const ParsedAttr &AL) {
QualType ParamType = ParamDecl->getType();
if (const auto *RefType = ParamType->getAs<ReferenceType>();
RefType &&
checkRecordTypeForScopedCapability(S, RefType->getPointeeType()))
return true;
S.Diag(AL.getLoc(), diag::warn_thread_attribute_not_on_scoped_lockable_param)
<< AL;
return false;
}
//===----------------------------------------------------------------------===//
// Attribute Implementations
//===----------------------------------------------------------------------===//
static void handlePtGuardedVarAttr(Sema &S, Decl *D, const ParsedAttr &AL) {
if (!threadSafetyCheckIsPointer(S, D, AL))
return;
D->addAttr(::new (S.Context) PtGuardedVarAttr(S.Context, AL));
}
static bool checkGuardedByAttrCommon(Sema &S, Decl *D, const ParsedAttr &AL,
Expr *&Arg) {
SmallVector<Expr *, 1> Args;
// check that all arguments are lockable objects
checkAttrArgsAreCapabilityObjs(S, D, AL, Args);
unsigned Size = Args.size();
if (Size != 1)
return false;
Arg = Args[0];
return true;
}
static void handleGuardedByAttr(Sema &S, Decl *D, const ParsedAttr &AL) {
Expr *Arg = nullptr;
if (!checkGuardedByAttrCommon(S, D, AL, Arg))
return;
D->addAttr(::new (S.Context) GuardedByAttr(S.Context, AL, Arg));
}
static void handlePtGuardedByAttr(Sema &S, Decl *D, const ParsedAttr &AL) {
Expr *Arg = nullptr;
if (!checkGuardedByAttrCommon(S, D, AL, Arg))
return;
if (!threadSafetyCheckIsPointer(S, D, AL))
return;
D->addAttr(::new (S.Context) PtGuardedByAttr(S.Context, AL, Arg));
}
static bool checkAcquireOrderAttrCommon(Sema &S, Decl *D, const ParsedAttr &AL,
SmallVectorImpl<Expr *> &Args) {
if (!AL.checkAtLeastNumArgs(S, 1))
return false;
// Check that this attribute only applies to lockable types.
QualType QT = cast<ValueDecl>(D)->getType();
if (!QT->isDependentType() && !typeHasCapability(S, QT)) {
S.Diag(AL.getLoc(), diag::warn_thread_attribute_decl_not_lockable) << AL;
return false;
}
// Check that all arguments are lockable objects.
checkAttrArgsAreCapabilityObjs(S, D, AL, Args);
if (Args.empty())
return false;
return true;
}
static void handleAcquiredAfterAttr(Sema &S, Decl *D, const ParsedAttr &AL) {
SmallVector<Expr *, 1> Args;
if (!checkAcquireOrderAttrCommon(S, D, AL, Args))
return;
Expr **StartArg = &Args[0];
D->addAttr(::new (S.Context)
AcquiredAfterAttr(S.Context, AL, StartArg, Args.size()));
}
static void handleAcquiredBeforeAttr(Sema &S, Decl *D, const ParsedAttr &AL) {
SmallVector<Expr *, 1> Args;
if (!checkAcquireOrderAttrCommon(S, D, AL, Args))
return;
Expr **StartArg = &Args[0];
D->addAttr(::new (S.Context)
AcquiredBeforeAttr(S.Context, AL, StartArg, Args.size()));
}
static bool checkLockFunAttrCommon(Sema &S, Decl *D, const ParsedAttr &AL,
SmallVectorImpl<Expr *> &Args) {
// zero or more arguments ok
// check that all arguments are lockable objects
checkAttrArgsAreCapabilityObjs(S, D, AL, Args, 0, /*ParamIdxOk=*/true);
return true;
}
static void handleAssertSharedLockAttr(Sema &S, Decl *D, const ParsedAttr &AL) {
SmallVector<Expr *, 1> Args;
if (!checkLockFunAttrCommon(S, D, AL, Args))
return;
unsigned Size = Args.size();
Expr **StartArg = Size == 0 ? nullptr : &Args[0];
D->addAttr(::new (S.Context)
AssertSharedLockAttr(S.Context, AL, StartArg, Size));
}
static void handleAssertExclusiveLockAttr(Sema &S, Decl *D,
const ParsedAttr &AL) {
SmallVector<Expr *, 1> Args;
if (!checkLockFunAttrCommon(S, D, AL, Args))
return;
unsigned Size = Args.size();
Expr **StartArg = Size == 0 ? nullptr : &Args[0];
D->addAttr(::new (S.Context)
AssertExclusiveLockAttr(S.Context, AL, StartArg, Size));
}
/// Checks to be sure that the given parameter number is in bounds, and
/// is an integral type. Will emit appropriate diagnostics if this returns
/// false.
///
/// AttrArgNo is used to actually retrieve the argument, so it's base-0.
template <typename AttrInfo>
static bool checkParamIsIntegerType(Sema &S, const Decl *D, const AttrInfo &AI,
unsigned AttrArgNo) {
assert(AI.isArgExpr(AttrArgNo) && "Expected expression argument");
Expr *AttrArg = AI.getArgAsExpr(AttrArgNo);
ParamIdx Idx;
if (!S.checkFunctionOrMethodParameterIndex(D, AI, AttrArgNo + 1, AttrArg,
Idx))
return false;
QualType ParamTy = getFunctionOrMethodParamType(D, Idx.getASTIndex());
if (!ParamTy->isIntegerType() && !ParamTy->isCharType()) {
SourceLocation SrcLoc = AttrArg->getBeginLoc();
S.Diag(SrcLoc, diag::err_attribute_integers_only)
<< AI << getFunctionOrMethodParamRange(D, Idx.getASTIndex());
return false;
}
return true;
}
static void handleAllocSizeAttr(Sema &S, Decl *D, const ParsedAttr &AL) {
if (!AL.checkAtLeastNumArgs(S, 1) || !AL.checkAtMostNumArgs(S, 2))
return;
assert(isFuncOrMethodForAttrSubject(D) && hasFunctionProto(D));
QualType RetTy = getFunctionOrMethodResultType(D);
if (!RetTy->isPointerType()) {
S.Diag(AL.getLoc(), diag::warn_attribute_return_pointers_only) << AL;
return;
}
const Expr *SizeExpr = AL.getArgAsExpr(0);
int SizeArgNoVal;
// Parameter indices are 1-indexed, hence Index=1
if (!checkPositiveIntArgument(S, AL, SizeExpr, SizeArgNoVal, /*Idx=*/1))
return;
if (!checkParamIsIntegerType(S, D, AL, /*AttrArgNo=*/0))
return;
ParamIdx SizeArgNo(SizeArgNoVal, D);
ParamIdx NumberArgNo;
if (AL.getNumArgs() == 2) {
const Expr *NumberExpr = AL.getArgAsExpr(1);
int Val;
// Parameter indices are 1-based, hence Index=2
if (!checkPositiveIntArgument(S, AL, NumberExpr, Val, /*Idx=*/2))
return;
if (!checkParamIsIntegerType(S, D, AL, /*AttrArgNo=*/1))
return;
NumberArgNo = ParamIdx(Val, D);
}
D->addAttr(::new (S.Context)
AllocSizeAttr(S.Context, AL, SizeArgNo, NumberArgNo));
}
static bool checkTryLockFunAttrCommon(Sema &S, Decl *D, const ParsedAttr &AL,
SmallVectorImpl<Expr *> &Args) {
if (!AL.checkAtLeastNumArgs(S, 1))
return false;
if (!isIntOrBool(AL.getArgAsExpr(0))) {
S.Diag(AL.getLoc(), diag::err_attribute_argument_n_type)
<< AL << 1 << AANT_ArgumentIntOrBool;
return false;
}
// check that all arguments are lockable objects
checkAttrArgsAreCapabilityObjs(S, D, AL, Args, 1);
return true;
}
static void handleSharedTrylockFunctionAttr(Sema &S, Decl *D,
const ParsedAttr &AL) {
SmallVector<Expr*, 2> Args;
if (!checkTryLockFunAttrCommon(S, D, AL, Args))
return;
D->addAttr(::new (S.Context) SharedTrylockFunctionAttr(
S.Context, AL, AL.getArgAsExpr(0), Args.data(), Args.size()));
}
static void handleExclusiveTrylockFunctionAttr(Sema &S, Decl *D,
const ParsedAttr &AL) {
SmallVector<Expr*, 2> Args;
if (!checkTryLockFunAttrCommon(S, D, AL, Args))
return;
D->addAttr(::new (S.Context) ExclusiveTrylockFunctionAttr(
S.Context, AL, AL.getArgAsExpr(0), Args.data(), Args.size()));
}
static void handleLockReturnedAttr(Sema &S, Decl *D, const ParsedAttr &AL) {
// check that the argument is lockable object
SmallVector<Expr*, 1> Args;
checkAttrArgsAreCapabilityObjs(S, D, AL, Args);
unsigned Size = Args.size();
if (Size == 0)
return;
D->addAttr(::new (S.Context) LockReturnedAttr(S.Context, AL, Args[0]));
}
static void handleLocksExcludedAttr(Sema &S, Decl *D, const ParsedAttr &AL) {
if (const auto *ParmDecl = dyn_cast<ParmVarDecl>(D);
ParmDecl && !checkFunParamsAreScopedLockable(S, ParmDecl, AL))
return;
if (!AL.checkAtLeastNumArgs(S, 1))
return;
// check that all arguments are lockable objects
SmallVector<Expr*, 1> Args;
checkAttrArgsAreCapabilityObjs(S, D, AL, Args);
unsigned Size = Args.size();
if (Size == 0)
return;
Expr **StartArg = &Args[0];
D->addAttr(::new (S.Context)
LocksExcludedAttr(S.Context, AL, StartArg, Size));
}
static bool checkFunctionConditionAttr(Sema &S, Decl *D, const ParsedAttr &AL,
Expr *&Cond, StringRef &Msg) {
Cond = AL.getArgAsExpr(0);
if (!Cond->isTypeDependent()) {
ExprResult Converted = S.PerformContextuallyConvertToBool(Cond);
if (Converted.isInvalid())
return false;
Cond = Converted.get();
}
if (!S.checkStringLiteralArgumentAttr(AL, 1, Msg))
return false;
if (Msg.empty())
Msg = "<no message provided>";
SmallVector<PartialDiagnosticAt, 8> Diags;
if (isa<FunctionDecl>(D) && !Cond->isValueDependent() &&
!Expr::isPotentialConstantExprUnevaluated(Cond, cast<FunctionDecl>(D),
Diags)) {
S.Diag(AL.getLoc(), diag::err_attr_cond_never_constant_expr) << AL;
for (const PartialDiagnosticAt &PDiag : Diags)
S.Diag(PDiag.first, PDiag.second);
return false;
}
return true;
}
static void handleEnableIfAttr(Sema &S, Decl *D, const ParsedAttr &AL) {
S.Diag(AL.getLoc(), diag::ext_clang_enable_if);
Expr *Cond;
StringRef Msg;
if (checkFunctionConditionAttr(S, D, AL, Cond, Msg))
D->addAttr(::new (S.Context) EnableIfAttr(S.Context, AL, Cond, Msg));
}
static void handleErrorAttr(Sema &S, Decl *D, const ParsedAttr &AL) {
StringRef NewUserDiagnostic;
if (!S.checkStringLiteralArgumentAttr(AL, 0, NewUserDiagnostic))
return;
if (ErrorAttr *EA = S.mergeErrorAttr(D, AL, NewUserDiagnostic))
D->addAttr(EA);
}
static void handleExcludeFromExplicitInstantiationAttr(Sema &S, Decl *D,
const ParsedAttr &AL) {
const auto *PD = isa<CXXRecordDecl>(D)
? cast<DeclContext>(D)
: D->getDeclContext()->getRedeclContext();
if (const auto *RD = dyn_cast<CXXRecordDecl>(PD); RD && RD->isLocalClass()) {
S.Diag(AL.getLoc(),
diag::warn_attribute_exclude_from_explicit_instantiation_local_class)
<< AL << /*IsMember=*/!isa<CXXRecordDecl>(D);
return;
}
D->addAttr(::new (S.Context)
ExcludeFromExplicitInstantiationAttr(S.Context, AL));
}
namespace {
/// Determines if a given Expr references any of the given function's
/// ParmVarDecls, or the function's implicit `this` parameter (if applicable).
class ArgumentDependenceChecker : public DynamicRecursiveASTVisitor {
#ifndef NDEBUG
const CXXRecordDecl *ClassType;
#endif
llvm::SmallPtrSet<const ParmVarDecl *, 16> Parms;
bool Result;
public:
ArgumentDependenceChecker(const FunctionDecl *FD) {
#ifndef NDEBUG
if (const auto *MD = dyn_cast<CXXMethodDecl>(FD))
ClassType = MD->getParent();
else
ClassType = nullptr;
#endif
Parms.insert(FD->param_begin(), FD->param_end());
}
bool referencesArgs(Expr *E) {
Result = false;
TraverseStmt(E);
return Result;
}
bool VisitCXXThisExpr(CXXThisExpr *E) override {
assert(E->getType()->getPointeeCXXRecordDecl() == ClassType &&
"`this` doesn't refer to the enclosing class?");
Result = true;
return false;
}
bool VisitDeclRefExpr(DeclRefExpr *DRE) override {
if (const auto *PVD = dyn_cast<ParmVarDecl>(DRE->getDecl()))
if (Parms.count(PVD)) {
Result = true;
return false;
}
return true;
}
};
}
static void handleDiagnoseAsBuiltinAttr(Sema &S, Decl *D,
const ParsedAttr &AL) {
const auto *DeclFD = cast<FunctionDecl>(D);
if (const auto *MethodDecl = dyn_cast<CXXMethodDecl>(DeclFD))
if (!MethodDecl->isStatic()) {
S.Diag(AL.getLoc(), diag::err_attribute_no_member_function) << AL;
return;
}
auto DiagnoseType = [&](unsigned Index, AttributeArgumentNType T) {
SourceLocation Loc = [&]() {
auto Union = AL.getArg(Index - 1);
if (auto *E = dyn_cast<Expr *>(Union))
return E->getBeginLoc();
return cast<IdentifierLoc *>(Union)->Loc;
}();
S.Diag(Loc, diag::err_attribute_argument_n_type) << AL << Index << T;
};
FunctionDecl *AttrFD = [&]() -> FunctionDecl * {
if (!AL.isArgExpr(0))
return nullptr;
auto *F = dyn_cast_if_present<DeclRefExpr>(AL.getArgAsExpr(0));
if (!F)
return nullptr;
return dyn_cast_if_present<FunctionDecl>(F->getFoundDecl());
}();
if (!AttrFD || !AttrFD->getBuiltinID(true)) {
DiagnoseType(1, AANT_ArgumentBuiltinFunction);
return;
}
if (AttrFD->getNumParams() != AL.getNumArgs() - 1) {
S.Diag(AL.getLoc(), diag::err_attribute_wrong_number_arguments_for)
<< AL << AttrFD << AttrFD->getNumParams();
return;
}
SmallVector<unsigned, 8> Indices;
for (unsigned I = 1; I < AL.getNumArgs(); ++I) {
if (!AL.isArgExpr(I)) {
DiagnoseType(I + 1, AANT_ArgumentIntegerConstant);
return;
}
const Expr *IndexExpr = AL.getArgAsExpr(I);
uint32_t Index;
if (!S.checkUInt32Argument(AL, IndexExpr, Index, I + 1, false))
return;
if (Index > DeclFD->getNumParams()) {
S.Diag(AL.getLoc(), diag::err_attribute_bounds_for_function)
<< AL << Index << DeclFD << DeclFD->getNumParams();
return;
}
QualType T1 = AttrFD->getParamDecl(I - 1)->getType();
QualType T2 = DeclFD->getParamDecl(Index - 1)->getType();
if (T1.getCanonicalType().getUnqualifiedType() !=
T2.getCanonicalType().getUnqualifiedType()) {
S.Diag(IndexExpr->getBeginLoc(), diag::err_attribute_parameter_types)
<< AL << Index << DeclFD << T2 << I << AttrFD << T1;
return;
}
Indices.push_back(Index - 1);
}
D->addAttr(::new (S.Context) DiagnoseAsBuiltinAttr(
S.Context, AL, AttrFD, Indices.data(), Indices.size()));
}
static void handleDiagnoseIfAttr(Sema &S, Decl *D, const ParsedAttr &AL) {
S.Diag(AL.getLoc(), diag::ext_clang_diagnose_if);
Expr *Cond;
StringRef Msg;
if (!checkFunctionConditionAttr(S, D, AL, Cond, Msg))
return;
StringRef DefaultSevStr;
if (!S.checkStringLiteralArgumentAttr(AL, 2, DefaultSevStr))
return;
DiagnoseIfAttr::DefaultSeverity DefaultSev;
if (!DiagnoseIfAttr::ConvertStrToDefaultSeverity(DefaultSevStr, DefaultSev)) {
S.Diag(AL.getArgAsExpr(2)->getBeginLoc(),
diag::err_diagnose_if_invalid_diagnostic_type);
return;
}
StringRef WarningGroup;
SmallVector<StringRef, 2> Options;
if (AL.getNumArgs() > 3) {
if (!S.checkStringLiteralArgumentAttr(AL, 3, WarningGroup))
return;
if (WarningGroup.empty() ||
!S.getDiagnostics().getDiagnosticIDs()->getGroupForWarningOption(
WarningGroup)) {
S.Diag(AL.getArgAsExpr(3)->getBeginLoc(),
diag::err_diagnose_if_unknown_warning)
<< WarningGroup;
return;
}
}
bool ArgDependent = false;
if (const auto *FD = dyn_cast<FunctionDecl>(D))
ArgDependent = ArgumentDependenceChecker(FD).referencesArgs(Cond);
D->addAttr(::new (S.Context) DiagnoseIfAttr(
S.Context, AL, Cond, Msg, DefaultSev, WarningGroup, ArgDependent,
cast<NamedDecl>(D)));
}
static void handleNoBuiltinAttr(Sema &S, Decl *D, const ParsedAttr &AL) {
static constexpr const StringRef kWildcard = "*";
llvm::SmallVector<StringRef, 16> Names;
bool HasWildcard = false;
const auto AddBuiltinName = [&Names, &HasWildcard](StringRef Name) {
if (Name == kWildcard)
HasWildcard = true;
Names.push_back(Name);
};
// Add previously defined attributes.
if (const auto *NBA = D->getAttr<NoBuiltinAttr>())
for (StringRef BuiltinName : NBA->builtinNames())
AddBuiltinName(BuiltinName);
// Add current attributes.
if (AL.getNumArgs() == 0)
AddBuiltinName(kWildcard);
else
for (unsigned I = 0, E = AL.getNumArgs(); I != E; ++I) {
StringRef BuiltinName;
SourceLocation LiteralLoc;
if (!S.checkStringLiteralArgumentAttr(AL, I, BuiltinName, &LiteralLoc))
return;
if (Builtin::Context::isBuiltinFunc(BuiltinName))
AddBuiltinName(BuiltinName);
else
S.Diag(LiteralLoc, diag::warn_attribute_no_builtin_invalid_builtin_name)
<< BuiltinName << AL;
}
// Repeating the same attribute is fine.
llvm::sort(Names);
Names.erase(std::unique(Names.begin(), Names.end()), Names.end());
// Empty no_builtin must be on its own.
if (HasWildcard && Names.size() > 1)
S.Diag(D->getLocation(),
diag::err_attribute_no_builtin_wildcard_or_builtin_name)
<< AL;
if (D->hasAttr<NoBuiltinAttr>())
D->dropAttr<NoBuiltinAttr>();
D->addAttr(::new (S.Context)
NoBuiltinAttr(S.Context, AL, Names.data(), Names.size()));
}
static void handlePassObjectSizeAttr(Sema &S, Decl *D, const ParsedAttr &AL) {
if (D->hasAttr<PassObjectSizeAttr>()) {
S.Diag(D->getBeginLoc(), diag::err_attribute_only_once_per_parameter) << AL;
return;
}
Expr *E = AL.getArgAsExpr(0);
uint32_t Type;
if (!S.checkUInt32Argument(AL, E, Type, /*Idx=*/1))
return;
// pass_object_size's argument is passed in as the second argument of
// __builtin_object_size. So, it has the same constraints as that second
// argument; namely, it must be in the range [0, 3].
if (Type > 3) {
S.Diag(E->getBeginLoc(), diag::err_attribute_argument_out_of_range)
<< AL << 0 << 3 << E->getSourceRange();
return;
}
// pass_object_size is only supported on constant pointer parameters; as a
// kindness to users, we allow the parameter to be non-const for declarations.
// At this point, we have no clue if `D` belongs to a function declaration or
// definition, so we defer the constness check until later.
if (!cast<ParmVarDecl>(D)->getType()->isPointerType()) {
S.Diag(D->getBeginLoc(), diag::err_attribute_pointers_only) << AL << 1;
return;
}
D->addAttr(::new (S.Context) PassObjectSizeAttr(S.Context, AL, (int)Type));
}
static void handleConsumableAttr(Sema &S, Decl *D, const ParsedAttr &AL) {
ConsumableAttr::ConsumedState DefaultState;