зеркало из https://github.com/microsoft/clang-1.git
830 строки
30 KiB
C++
830 строки
30 KiB
C++
//===--- Overload.h - C++ Overloading ---------------------------*- C++ -*-===//
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//
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// The LLVM Compiler Infrastructure
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//
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// This file is distributed under the University of Illinois Open Source
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// License. See LICENSE.TXT for details.
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//
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//===----------------------------------------------------------------------===//
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//
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// This file defines the data structures and types used in C++
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// overload resolution.
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//
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//===----------------------------------------------------------------------===//
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#ifndef LLVM_CLANG_SEMA_OVERLOAD_H
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#define LLVM_CLANG_SEMA_OVERLOAD_H
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#include "clang/AST/Decl.h"
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#include "clang/AST/DeclTemplate.h"
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#include "clang/AST/Expr.h"
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#include "clang/AST/TemplateBase.h"
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#include "clang/AST/Type.h"
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#include "clang/AST/UnresolvedSet.h"
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#include "clang/Sema/SemaFixItUtils.h"
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#include "llvm/ADT/SmallPtrSet.h"
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#include "llvm/ADT/SmallVector.h"
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#include "llvm/Support/Allocator.h"
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namespace clang {
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class ASTContext;
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class CXXConstructorDecl;
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class CXXConversionDecl;
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class FunctionDecl;
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class Sema;
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/// OverloadingResult - Capture the result of performing overload
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/// resolution.
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enum OverloadingResult {
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OR_Success, ///< Overload resolution succeeded.
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OR_No_Viable_Function, ///< No viable function found.
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OR_Ambiguous, ///< Ambiguous candidates found.
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OR_Deleted ///< Succeeded, but refers to a deleted function.
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};
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enum OverloadCandidateDisplayKind {
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/// Requests that all candidates be shown. Viable candidates will
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/// be printed first.
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OCD_AllCandidates,
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/// Requests that only viable candidates be shown.
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OCD_ViableCandidates
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};
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/// ImplicitConversionKind - The kind of implicit conversion used to
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/// convert an argument to a parameter's type. The enumerator values
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/// match with Table 9 of (C++ 13.3.3.1.1) and are listed such that
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/// better conversion kinds have smaller values.
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enum ImplicitConversionKind {
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ICK_Identity = 0, ///< Identity conversion (no conversion)
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ICK_Lvalue_To_Rvalue, ///< Lvalue-to-rvalue conversion (C++ 4.1)
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ICK_Array_To_Pointer, ///< Array-to-pointer conversion (C++ 4.2)
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ICK_Function_To_Pointer, ///< Function-to-pointer (C++ 4.3)
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ICK_NoReturn_Adjustment, ///< Removal of noreturn from a type (Clang)
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ICK_Qualification, ///< Qualification conversions (C++ 4.4)
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ICK_Integral_Promotion, ///< Integral promotions (C++ 4.5)
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ICK_Floating_Promotion, ///< Floating point promotions (C++ 4.6)
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ICK_Complex_Promotion, ///< Complex promotions (Clang extension)
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ICK_Integral_Conversion, ///< Integral conversions (C++ 4.7)
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ICK_Floating_Conversion, ///< Floating point conversions (C++ 4.8)
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ICK_Complex_Conversion, ///< Complex conversions (C99 6.3.1.6)
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ICK_Floating_Integral, ///< Floating-integral conversions (C++ 4.9)
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ICK_Pointer_Conversion, ///< Pointer conversions (C++ 4.10)
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ICK_Pointer_Member, ///< Pointer-to-member conversions (C++ 4.11)
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ICK_Boolean_Conversion, ///< Boolean conversions (C++ 4.12)
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ICK_Compatible_Conversion, ///< Conversions between compatible types in C99
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ICK_Derived_To_Base, ///< Derived-to-base (C++ [over.best.ics])
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ICK_Vector_Conversion, ///< Vector conversions
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ICK_Vector_Splat, ///< A vector splat from an arithmetic type
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ICK_Complex_Real, ///< Complex-real conversions (C99 6.3.1.7)
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ICK_Block_Pointer_Conversion, ///< Block Pointer conversions
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ICK_TransparentUnionConversion, ///< Transparent Union Conversions
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ICK_Writeback_Conversion, ///< Objective-C ARC writeback conversion
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ICK_Zero_Event_Conversion, ///< Zero constant to event (OpenCL1.2 6.12.10)
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ICK_Num_Conversion_Kinds ///< The number of conversion kinds
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};
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/// ImplicitConversionCategory - The category of an implicit
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/// conversion kind. The enumerator values match with Table 9 of
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/// (C++ 13.3.3.1.1) and are listed such that better conversion
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/// categories have smaller values.
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enum ImplicitConversionCategory {
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ICC_Identity = 0, ///< Identity
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ICC_Lvalue_Transformation, ///< Lvalue transformation
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ICC_Qualification_Adjustment, ///< Qualification adjustment
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ICC_Promotion, ///< Promotion
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ICC_Conversion ///< Conversion
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};
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ImplicitConversionCategory
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GetConversionCategory(ImplicitConversionKind Kind);
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/// ImplicitConversionRank - The rank of an implicit conversion
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/// kind. The enumerator values match with Table 9 of (C++
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/// 13.3.3.1.1) and are listed such that better conversion ranks
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/// have smaller values.
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enum ImplicitConversionRank {
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ICR_Exact_Match = 0, ///< Exact Match
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ICR_Promotion, ///< Promotion
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ICR_Conversion, ///< Conversion
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ICR_Complex_Real_Conversion, ///< Complex <-> Real conversion
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ICR_Writeback_Conversion ///< ObjC ARC writeback conversion
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};
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ImplicitConversionRank GetConversionRank(ImplicitConversionKind Kind);
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/// NarrowingKind - The kind of narrowing conversion being performed by a
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/// standard conversion sequence according to C++11 [dcl.init.list]p7.
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enum NarrowingKind {
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/// Not a narrowing conversion.
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NK_Not_Narrowing,
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/// A narrowing conversion by virtue of the source and destination types.
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NK_Type_Narrowing,
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/// A narrowing conversion, because a constant expression got narrowed.
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NK_Constant_Narrowing,
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/// A narrowing conversion, because a non-constant-expression variable might
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/// have got narrowed.
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NK_Variable_Narrowing
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};
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/// StandardConversionSequence - represents a standard conversion
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/// sequence (C++ 13.3.3.1.1). A standard conversion sequence
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/// contains between zero and three conversions. If a particular
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/// conversion is not needed, it will be set to the identity conversion
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/// (ICK_Identity). Note that the three conversions are
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/// specified as separate members (rather than in an array) so that
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/// we can keep the size of a standard conversion sequence to a
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/// single word.
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class StandardConversionSequence {
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public:
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/// First -- The first conversion can be an lvalue-to-rvalue
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/// conversion, array-to-pointer conversion, or
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/// function-to-pointer conversion.
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ImplicitConversionKind First : 8;
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/// Second - The second conversion can be an integral promotion,
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/// floating point promotion, integral conversion, floating point
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/// conversion, floating-integral conversion, pointer conversion,
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/// pointer-to-member conversion, or boolean conversion.
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ImplicitConversionKind Second : 8;
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/// Third - The third conversion can be a qualification conversion.
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ImplicitConversionKind Third : 8;
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/// \brief Whether this is the deprecated conversion of a
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/// string literal to a pointer to non-const character data
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/// (C++ 4.2p2).
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unsigned DeprecatedStringLiteralToCharPtr : 1;
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/// \brief Whether the qualification conversion involves a change in the
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/// Objective-C lifetime (for automatic reference counting).
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unsigned QualificationIncludesObjCLifetime : 1;
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/// IncompatibleObjC - Whether this is an Objective-C conversion
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/// that we should warn about (if we actually use it).
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unsigned IncompatibleObjC : 1;
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/// ReferenceBinding - True when this is a reference binding
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/// (C++ [over.ics.ref]).
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unsigned ReferenceBinding : 1;
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/// DirectBinding - True when this is a reference binding that is a
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/// direct binding (C++ [dcl.init.ref]).
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unsigned DirectBinding : 1;
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/// \brief Whether this is an lvalue reference binding (otherwise, it's
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/// an rvalue reference binding).
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unsigned IsLvalueReference : 1;
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/// \brief Whether we're binding to a function lvalue.
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unsigned BindsToFunctionLvalue : 1;
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/// \brief Whether we're binding to an rvalue.
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unsigned BindsToRvalue : 1;
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/// \brief Whether this binds an implicit object argument to a
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/// non-static member function without a ref-qualifier.
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unsigned BindsImplicitObjectArgumentWithoutRefQualifier : 1;
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/// \brief Whether this binds a reference to an object with a different
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/// Objective-C lifetime qualifier.
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unsigned ObjCLifetimeConversionBinding : 1;
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/// FromType - The type that this conversion is converting
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/// from. This is an opaque pointer that can be translated into a
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/// QualType.
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void *FromTypePtr;
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/// ToType - The types that this conversion is converting to in
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/// each step. This is an opaque pointer that can be translated
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/// into a QualType.
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void *ToTypePtrs[3];
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/// CopyConstructor - The copy constructor that is used to perform
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/// this conversion, when the conversion is actually just the
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/// initialization of an object via copy constructor. Such
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/// conversions are either identity conversions or derived-to-base
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/// conversions.
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CXXConstructorDecl *CopyConstructor;
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void setFromType(QualType T) { FromTypePtr = T.getAsOpaquePtr(); }
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void setToType(unsigned Idx, QualType T) {
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assert(Idx < 3 && "To type index is out of range");
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ToTypePtrs[Idx] = T.getAsOpaquePtr();
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}
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void setAllToTypes(QualType T) {
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ToTypePtrs[0] = T.getAsOpaquePtr();
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ToTypePtrs[1] = ToTypePtrs[0];
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ToTypePtrs[2] = ToTypePtrs[0];
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}
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QualType getFromType() const {
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return QualType::getFromOpaquePtr(FromTypePtr);
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}
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QualType getToType(unsigned Idx) const {
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assert(Idx < 3 && "To type index is out of range");
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return QualType::getFromOpaquePtr(ToTypePtrs[Idx]);
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}
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void setAsIdentityConversion();
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bool isIdentityConversion() const {
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return Second == ICK_Identity && Third == ICK_Identity;
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}
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ImplicitConversionRank getRank() const;
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NarrowingKind getNarrowingKind(ASTContext &Context, const Expr *Converted,
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APValue &ConstantValue,
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QualType &ConstantType) const;
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bool isPointerConversionToBool() const;
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bool isPointerConversionToVoidPointer(ASTContext& Context) const;
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void DebugPrint() const;
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};
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/// UserDefinedConversionSequence - Represents a user-defined
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/// conversion sequence (C++ 13.3.3.1.2).
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struct UserDefinedConversionSequence {
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/// \brief Represents the standard conversion that occurs before
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/// the actual user-defined conversion.
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///
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/// C++11 13.3.3.1.2p1:
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/// If the user-defined conversion is specified by a constructor
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/// (12.3.1), the initial standard conversion sequence converts
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/// the source type to the type required by the argument of the
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/// constructor. If the user-defined conversion is specified by
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/// a conversion function (12.3.2), the initial standard
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/// conversion sequence converts the source type to the implicit
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/// object parameter of the conversion function.
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StandardConversionSequence Before;
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/// EllipsisConversion - When this is true, it means user-defined
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/// conversion sequence starts with a ... (elipsis) conversion, instead of
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/// a standard conversion. In this case, 'Before' field must be ignored.
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// FIXME. I much rather put this as the first field. But there seems to be
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// a gcc code gen. bug which causes a crash in a test. Putting it here seems
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// to work around the crash.
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bool EllipsisConversion : 1;
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/// HadMultipleCandidates - When this is true, it means that the
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/// conversion function was resolved from an overloaded set having
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/// size greater than 1.
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bool HadMultipleCandidates : 1;
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/// After - Represents the standard conversion that occurs after
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/// the actual user-defined conversion.
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StandardConversionSequence After;
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/// ConversionFunction - The function that will perform the
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/// user-defined conversion. Null if the conversion is an
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/// aggregate initialization from an initializer list.
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FunctionDecl* ConversionFunction;
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/// \brief The declaration that we found via name lookup, which might be
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/// the same as \c ConversionFunction or it might be a using declaration
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/// that refers to \c ConversionFunction.
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DeclAccessPair FoundConversionFunction;
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void DebugPrint() const;
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};
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/// Represents an ambiguous user-defined conversion sequence.
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struct AmbiguousConversionSequence {
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typedef SmallVector<FunctionDecl*, 4> ConversionSet;
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void *FromTypePtr;
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void *ToTypePtr;
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char Buffer[sizeof(ConversionSet)];
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QualType getFromType() const {
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return QualType::getFromOpaquePtr(FromTypePtr);
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}
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QualType getToType() const {
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return QualType::getFromOpaquePtr(ToTypePtr);
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}
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void setFromType(QualType T) { FromTypePtr = T.getAsOpaquePtr(); }
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void setToType(QualType T) { ToTypePtr = T.getAsOpaquePtr(); }
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ConversionSet &conversions() {
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return *reinterpret_cast<ConversionSet*>(Buffer);
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}
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const ConversionSet &conversions() const {
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return *reinterpret_cast<const ConversionSet*>(Buffer);
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}
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void addConversion(FunctionDecl *D) {
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conversions().push_back(D);
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}
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typedef ConversionSet::iterator iterator;
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iterator begin() { return conversions().begin(); }
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iterator end() { return conversions().end(); }
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typedef ConversionSet::const_iterator const_iterator;
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const_iterator begin() const { return conversions().begin(); }
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const_iterator end() const { return conversions().end(); }
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void construct();
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void destruct();
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void copyFrom(const AmbiguousConversionSequence &);
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};
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/// BadConversionSequence - Records information about an invalid
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/// conversion sequence.
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struct BadConversionSequence {
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enum FailureKind {
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no_conversion,
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unrelated_class,
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suppressed_user,
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bad_qualifiers,
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lvalue_ref_to_rvalue,
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rvalue_ref_to_lvalue
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};
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// This can be null, e.g. for implicit object arguments.
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Expr *FromExpr;
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FailureKind Kind;
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private:
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// The type we're converting from (an opaque QualType).
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void *FromTy;
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// The type we're converting to (an opaque QualType).
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void *ToTy;
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public:
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void init(FailureKind K, Expr *From, QualType To) {
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init(K, From->getType(), To);
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FromExpr = From;
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}
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void init(FailureKind K, QualType From, QualType To) {
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Kind = K;
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FromExpr = 0;
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setFromType(From);
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setToType(To);
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}
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QualType getFromType() const { return QualType::getFromOpaquePtr(FromTy); }
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QualType getToType() const { return QualType::getFromOpaquePtr(ToTy); }
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void setFromExpr(Expr *E) {
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FromExpr = E;
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setFromType(E->getType());
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}
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void setFromType(QualType T) { FromTy = T.getAsOpaquePtr(); }
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void setToType(QualType T) { ToTy = T.getAsOpaquePtr(); }
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};
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/// ImplicitConversionSequence - Represents an implicit conversion
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/// sequence, which may be a standard conversion sequence
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/// (C++ 13.3.3.1.1), user-defined conversion sequence (C++ 13.3.3.1.2),
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/// or an ellipsis conversion sequence (C++ 13.3.3.1.3).
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class ImplicitConversionSequence {
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public:
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/// Kind - The kind of implicit conversion sequence. BadConversion
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/// specifies that there is no conversion from the source type to
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/// the target type. AmbiguousConversion represents the unique
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/// ambiguous conversion (C++0x [over.best.ics]p10).
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enum Kind {
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StandardConversion = 0,
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UserDefinedConversion,
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AmbiguousConversion,
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EllipsisConversion,
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BadConversion
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};
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private:
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enum {
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Uninitialized = BadConversion + 1
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};
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/// ConversionKind - The kind of implicit conversion sequence.
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unsigned ConversionKind : 30;
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/// \brief Whether the argument is an initializer list.
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bool ListInitializationSequence : 1;
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/// \brief Whether the target is really a std::initializer_list, and the
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/// sequence only represents the worst element conversion.
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bool StdInitializerListElement : 1;
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void setKind(Kind K) {
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destruct();
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ConversionKind = K;
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}
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void destruct() {
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if (ConversionKind == AmbiguousConversion) Ambiguous.destruct();
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}
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public:
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union {
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/// When ConversionKind == StandardConversion, provides the
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/// details of the standard conversion sequence.
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StandardConversionSequence Standard;
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/// When ConversionKind == UserDefinedConversion, provides the
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/// details of the user-defined conversion sequence.
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UserDefinedConversionSequence UserDefined;
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/// When ConversionKind == AmbiguousConversion, provides the
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/// details of the ambiguous conversion.
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AmbiguousConversionSequence Ambiguous;
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/// When ConversionKind == BadConversion, provides the details
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/// of the bad conversion.
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BadConversionSequence Bad;
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};
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ImplicitConversionSequence()
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: ConversionKind(Uninitialized), ListInitializationSequence(false),
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StdInitializerListElement(false)
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{}
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~ImplicitConversionSequence() {
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destruct();
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}
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ImplicitConversionSequence(const ImplicitConversionSequence &Other)
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: ConversionKind(Other.ConversionKind),
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ListInitializationSequence(Other.ListInitializationSequence),
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StdInitializerListElement(Other.StdInitializerListElement)
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{
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switch (ConversionKind) {
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case Uninitialized: break;
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case StandardConversion: Standard = Other.Standard; break;
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case UserDefinedConversion: UserDefined = Other.UserDefined; break;
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case AmbiguousConversion: Ambiguous.copyFrom(Other.Ambiguous); break;
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case EllipsisConversion: break;
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case BadConversion: Bad = Other.Bad; break;
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}
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}
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ImplicitConversionSequence &
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operator=(const ImplicitConversionSequence &Other) {
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destruct();
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new (this) ImplicitConversionSequence(Other);
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return *this;
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}
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Kind getKind() const {
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assert(isInitialized() && "querying uninitialized conversion");
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return Kind(ConversionKind);
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}
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/// \brief Return a ranking of the implicit conversion sequence
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/// kind, where smaller ranks represent better conversion
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/// sequences.
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///
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/// In particular, this routine gives user-defined conversion
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/// sequences and ambiguous conversion sequences the same rank,
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/// per C++ [over.best.ics]p10.
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unsigned getKindRank() const {
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switch (getKind()) {
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case StandardConversion:
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return 0;
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case UserDefinedConversion:
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case AmbiguousConversion:
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return 1;
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case EllipsisConversion:
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return 2;
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case BadConversion:
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return 3;
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}
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llvm_unreachable("Invalid ImplicitConversionSequence::Kind!");
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}
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bool isBad() const { return getKind() == BadConversion; }
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bool isStandard() const { return getKind() == StandardConversion; }
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bool isEllipsis() const { return getKind() == EllipsisConversion; }
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bool isAmbiguous() const { return getKind() == AmbiguousConversion; }
|
|
bool isUserDefined() const { return getKind() == UserDefinedConversion; }
|
|
bool isFailure() const { return isBad() || isAmbiguous(); }
|
|
|
|
/// Determines whether this conversion sequence has been
|
|
/// initialized. Most operations should never need to query
|
|
/// uninitialized conversions and should assert as above.
|
|
bool isInitialized() const { return ConversionKind != Uninitialized; }
|
|
|
|
/// Sets this sequence as a bad conversion for an explicit argument.
|
|
void setBad(BadConversionSequence::FailureKind Failure,
|
|
Expr *FromExpr, QualType ToType) {
|
|
setKind(BadConversion);
|
|
Bad.init(Failure, FromExpr, ToType);
|
|
}
|
|
|
|
/// Sets this sequence as a bad conversion for an implicit argument.
|
|
void setBad(BadConversionSequence::FailureKind Failure,
|
|
QualType FromType, QualType ToType) {
|
|
setKind(BadConversion);
|
|
Bad.init(Failure, FromType, ToType);
|
|
}
|
|
|
|
void setStandard() { setKind(StandardConversion); }
|
|
void setEllipsis() { setKind(EllipsisConversion); }
|
|
void setUserDefined() { setKind(UserDefinedConversion); }
|
|
void setAmbiguous() {
|
|
if (ConversionKind == AmbiguousConversion) return;
|
|
ConversionKind = AmbiguousConversion;
|
|
Ambiguous.construct();
|
|
}
|
|
|
|
/// \brief Whether this sequence was created by the rules of
|
|
/// list-initialization sequences.
|
|
bool isListInitializationSequence() const {
|
|
return ListInitializationSequence;
|
|
}
|
|
|
|
void setListInitializationSequence() {
|
|
ListInitializationSequence = true;
|
|
}
|
|
|
|
/// \brief Whether the target is really a std::initializer_list, and the
|
|
/// sequence only represents the worst element conversion.
|
|
bool isStdInitializerListElement() const {
|
|
return StdInitializerListElement;
|
|
}
|
|
|
|
void setStdInitializerListElement(bool V = true) {
|
|
StdInitializerListElement = V;
|
|
}
|
|
|
|
// The result of a comparison between implicit conversion
|
|
// sequences. Use Sema::CompareImplicitConversionSequences to
|
|
// actually perform the comparison.
|
|
enum CompareKind {
|
|
Better = -1,
|
|
Indistinguishable = 0,
|
|
Worse = 1
|
|
};
|
|
|
|
void DiagnoseAmbiguousConversion(Sema &S,
|
|
SourceLocation CaretLoc,
|
|
const PartialDiagnostic &PDiag) const;
|
|
|
|
void DebugPrint() const;
|
|
};
|
|
|
|
enum OverloadFailureKind {
|
|
ovl_fail_too_many_arguments,
|
|
ovl_fail_too_few_arguments,
|
|
ovl_fail_bad_conversion,
|
|
ovl_fail_bad_deduction,
|
|
|
|
/// This conversion candidate was not considered because it
|
|
/// duplicates the work of a trivial or derived-to-base
|
|
/// conversion.
|
|
ovl_fail_trivial_conversion,
|
|
|
|
/// This conversion candidate is not viable because its result
|
|
/// type is not implicitly convertible to the desired type.
|
|
ovl_fail_bad_final_conversion,
|
|
|
|
/// This conversion function template specialization candidate is not
|
|
/// viable because the final conversion was not an exact match.
|
|
ovl_fail_final_conversion_not_exact,
|
|
|
|
/// (CUDA) This candidate was not viable because the callee
|
|
/// was not accessible from the caller's target (i.e. host->device,
|
|
/// global->host, device->host).
|
|
ovl_fail_bad_target
|
|
};
|
|
|
|
/// OverloadCandidate - A single candidate in an overload set (C++ 13.3).
|
|
struct OverloadCandidate {
|
|
/// Function - The actual function that this candidate
|
|
/// represents. When NULL, this is a built-in candidate
|
|
/// (C++ [over.oper]) or a surrogate for a conversion to a
|
|
/// function pointer or reference (C++ [over.call.object]).
|
|
FunctionDecl *Function;
|
|
|
|
/// FoundDecl - The original declaration that was looked up /
|
|
/// invented / otherwise found, together with its access.
|
|
/// Might be a UsingShadowDecl or a FunctionTemplateDecl.
|
|
DeclAccessPair FoundDecl;
|
|
|
|
// BuiltinTypes - Provides the return and parameter types of a
|
|
// built-in overload candidate. Only valid when Function is NULL.
|
|
struct {
|
|
QualType ResultTy;
|
|
QualType ParamTypes[3];
|
|
} BuiltinTypes;
|
|
|
|
/// Surrogate - The conversion function for which this candidate
|
|
/// is a surrogate, but only if IsSurrogate is true.
|
|
CXXConversionDecl *Surrogate;
|
|
|
|
/// Conversions - The conversion sequences used to convert the
|
|
/// function arguments to the function parameters, the pointer points to a
|
|
/// fixed size array with NumConversions elements. The memory is owned by
|
|
/// the OverloadCandidateSet.
|
|
ImplicitConversionSequence *Conversions;
|
|
|
|
/// The FixIt hints which can be used to fix the Bad candidate.
|
|
ConversionFixItGenerator Fix;
|
|
|
|
/// NumConversions - The number of elements in the Conversions array.
|
|
unsigned NumConversions;
|
|
|
|
/// Viable - True to indicate that this overload candidate is viable.
|
|
bool Viable;
|
|
|
|
/// IsSurrogate - True to indicate that this candidate is a
|
|
/// surrogate for a conversion to a function pointer or reference
|
|
/// (C++ [over.call.object]).
|
|
bool IsSurrogate;
|
|
|
|
/// IgnoreObjectArgument - True to indicate that the first
|
|
/// argument's conversion, which for this function represents the
|
|
/// implicit object argument, should be ignored. This will be true
|
|
/// when the candidate is a static member function (where the
|
|
/// implicit object argument is just a placeholder) or a
|
|
/// non-static member function when the call doesn't have an
|
|
/// object argument.
|
|
bool IgnoreObjectArgument;
|
|
|
|
/// FailureKind - The reason why this candidate is not viable.
|
|
/// Actually an OverloadFailureKind.
|
|
unsigned char FailureKind;
|
|
|
|
/// \brief The number of call arguments that were explicitly provided,
|
|
/// to be used while performing partial ordering of function templates.
|
|
unsigned ExplicitCallArguments;
|
|
|
|
/// A structure used to record information about a failed
|
|
/// template argument deduction.
|
|
struct DeductionFailureInfo {
|
|
/// A Sema::TemplateDeductionResult.
|
|
unsigned Result : 8;
|
|
|
|
/// \brief Indicates whether a diagnostic is stored in Diagnostic.
|
|
unsigned HasDiagnostic : 1;
|
|
|
|
/// \brief Opaque pointer containing additional data about
|
|
/// this deduction failure.
|
|
void *Data;
|
|
|
|
/// \brief A diagnostic indicating why deduction failed.
|
|
union {
|
|
void *Align;
|
|
char Diagnostic[sizeof(PartialDiagnosticAt)];
|
|
};
|
|
|
|
/// \brief Retrieve the diagnostic which caused this deduction failure,
|
|
/// if any.
|
|
PartialDiagnosticAt *getSFINAEDiagnostic();
|
|
|
|
/// \brief Retrieve the template parameter this deduction failure
|
|
/// refers to, if any.
|
|
TemplateParameter getTemplateParameter();
|
|
|
|
/// \brief Retrieve the template argument list associated with this
|
|
/// deduction failure, if any.
|
|
TemplateArgumentList *getTemplateArgumentList();
|
|
|
|
/// \brief Return the first template argument this deduction failure
|
|
/// refers to, if any.
|
|
const TemplateArgument *getFirstArg();
|
|
|
|
/// \brief Return the second template argument this deduction failure
|
|
/// refers to, if any.
|
|
const TemplateArgument *getSecondArg();
|
|
|
|
/// \brief Return the expression this deduction failure refers to,
|
|
/// if any.
|
|
Expr *getExpr();
|
|
|
|
/// \brief Free any memory associated with this deduction failure.
|
|
void Destroy();
|
|
};
|
|
|
|
union {
|
|
DeductionFailureInfo DeductionFailure;
|
|
|
|
/// FinalConversion - For a conversion function (where Function is
|
|
/// a CXXConversionDecl), the standard conversion that occurs
|
|
/// after the call to the overload candidate to convert the result
|
|
/// of calling the conversion function to the required type.
|
|
StandardConversionSequence FinalConversion;
|
|
};
|
|
|
|
/// hasAmbiguousConversion - Returns whether this overload
|
|
/// candidate requires an ambiguous conversion or not.
|
|
bool hasAmbiguousConversion() const {
|
|
for (unsigned i = 0, e = NumConversions; i != e; ++i) {
|
|
if (!Conversions[i].isInitialized()) return false;
|
|
if (Conversions[i].isAmbiguous()) return true;
|
|
}
|
|
return false;
|
|
}
|
|
|
|
bool TryToFixBadConversion(unsigned Idx, Sema &S) {
|
|
bool CanFix = Fix.tryToFixConversion(
|
|
Conversions[Idx].Bad.FromExpr,
|
|
Conversions[Idx].Bad.getFromType(),
|
|
Conversions[Idx].Bad.getToType(), S);
|
|
|
|
// If at least one conversion fails, the candidate cannot be fixed.
|
|
if (!CanFix)
|
|
Fix.clear();
|
|
|
|
return CanFix;
|
|
}
|
|
};
|
|
|
|
/// OverloadCandidateSet - A set of overload candidates, used in C++
|
|
/// overload resolution (C++ 13.3).
|
|
class OverloadCandidateSet {
|
|
SmallVector<OverloadCandidate, 16> Candidates;
|
|
llvm::SmallPtrSet<Decl *, 16> Functions;
|
|
|
|
// Allocator for OverloadCandidate::Conversions. We store the first few
|
|
// elements inline to avoid allocation for small sets.
|
|
llvm::BumpPtrAllocator ConversionSequenceAllocator;
|
|
|
|
SourceLocation Loc;
|
|
|
|
unsigned NumInlineSequences;
|
|
char InlineSpace[16 * sizeof(ImplicitConversionSequence)];
|
|
|
|
OverloadCandidateSet(const OverloadCandidateSet &) LLVM_DELETED_FUNCTION;
|
|
void operator=(const OverloadCandidateSet &) LLVM_DELETED_FUNCTION;
|
|
|
|
void destroyCandidates();
|
|
|
|
public:
|
|
OverloadCandidateSet(SourceLocation Loc) : Loc(Loc), NumInlineSequences(0){}
|
|
~OverloadCandidateSet() { destroyCandidates(); }
|
|
|
|
SourceLocation getLocation() const { return Loc; }
|
|
|
|
/// \brief Determine when this overload candidate will be new to the
|
|
/// overload set.
|
|
bool isNewCandidate(Decl *F) {
|
|
return Functions.insert(F->getCanonicalDecl());
|
|
}
|
|
|
|
/// \brief Clear out all of the candidates.
|
|
void clear();
|
|
|
|
typedef SmallVector<OverloadCandidate, 16>::iterator iterator;
|
|
iterator begin() { return Candidates.begin(); }
|
|
iterator end() { return Candidates.end(); }
|
|
|
|
size_t size() const { return Candidates.size(); }
|
|
bool empty() const { return Candidates.empty(); }
|
|
|
|
/// \brief Add a new candidate with NumConversions conversion sequence slots
|
|
/// to the overload set.
|
|
OverloadCandidate &addCandidate(unsigned NumConversions = 0) {
|
|
Candidates.push_back(OverloadCandidate());
|
|
OverloadCandidate &C = Candidates.back();
|
|
|
|
// Assign space from the inline array if there are enough free slots
|
|
// available.
|
|
if (NumConversions + NumInlineSequences <= 16) {
|
|
ImplicitConversionSequence *I =
|
|
(ImplicitConversionSequence*)InlineSpace;
|
|
C.Conversions = &I[NumInlineSequences];
|
|
NumInlineSequences += NumConversions;
|
|
} else {
|
|
// Otherwise get memory from the allocator.
|
|
C.Conversions = ConversionSequenceAllocator
|
|
.Allocate<ImplicitConversionSequence>(NumConversions);
|
|
}
|
|
|
|
// Construct the new objects.
|
|
for (unsigned i = 0; i != NumConversions; ++i)
|
|
new (&C.Conversions[i]) ImplicitConversionSequence();
|
|
|
|
C.NumConversions = NumConversions;
|
|
return C;
|
|
}
|
|
|
|
/// Find the best viable function on this overload set, if it exists.
|
|
OverloadingResult BestViableFunction(Sema &S, SourceLocation Loc,
|
|
OverloadCandidateSet::iterator& Best,
|
|
bool UserDefinedConversion = false);
|
|
|
|
void NoteCandidates(Sema &S,
|
|
OverloadCandidateDisplayKind OCD,
|
|
ArrayRef<Expr *> Args,
|
|
StringRef Opc = "",
|
|
SourceLocation Loc = SourceLocation());
|
|
};
|
|
|
|
bool isBetterOverloadCandidate(Sema &S,
|
|
const OverloadCandidate& Cand1,
|
|
const OverloadCandidate& Cand2,
|
|
SourceLocation Loc,
|
|
bool UserDefinedConversion = false);
|
|
} // end namespace clang
|
|
|
|
#endif // LLVM_CLANG_SEMA_OVERLOAD_H
|