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196 lines
7.1 KiB
C++
196 lines
7.1 KiB
C++
//===--- Private.h - Private runtime declarations ---------------*- C++ -*-===//
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//
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// This source file is part of the Swift.org open source project
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//
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// Copyright (c) 2014 - 2017 Apple Inc. and the Swift project authors
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// Licensed under Apache License v2.0 with Runtime Library Exception
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//
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// See https://swift.org/LICENSE.txt for license information
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// See https://swift.org/CONTRIBUTORS.txt for the list of Swift project authors
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//
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//===----------------------------------------------------------------------===//
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//
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// Private declarations of the Swift runtime.
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//
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//===----------------------------------------------------------------------===//
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#ifndef SWIFT_RUNTIME_PRIVATE_H
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#define SWIFT_RUNTIME_PRIVATE_H
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#include "swift/Demangling/Demangler.h"
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#include "swift/Runtime/Config.h"
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#include "swift/Runtime/Metadata.h"
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#include "llvm/Support/Compiler.h"
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// Opaque ISAs need to use object_getClass which is in runtime.h
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#if SWIFT_HAS_OPAQUE_ISAS
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#include <objc/runtime.h>
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#endif
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namespace swift {
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#if SWIFT_HAS_ISA_MASKING
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SWIFT_RUNTIME_EXPORT
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uintptr_t swift_isaMask;
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#endif
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#if SWIFT_OBJC_INTEROP
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bool objectConformsToObjCProtocol(const void *theObject,
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const ProtocolDescriptor *theProtocol);
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bool classConformsToObjCProtocol(const void *theClass,
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const ProtocolDescriptor *theProtocol);
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#endif
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/// Is the given value a valid alignment mask?
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static inline bool isAlignmentMask(size_t mask) {
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// mask == xyz01111...
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// mask+1 == xyz10000...
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// mask&(mask+1) == xyz00000...
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// So this is nonzero if and only if there any bits set
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// other than an arbitrarily long sequence of low bits.
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return (mask & (mask + 1)) == 0;
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}
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/// Is the given value an Objective-C tagged pointer?
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static inline bool isObjCTaggedPointer(const void *object) {
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#if SWIFT_OBJC_INTEROP
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return (((uintptr_t) object) & heap_object_abi::ObjCReservedBitsMask);
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#else
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assert(!(((uintptr_t) object) & heap_object_abi::ObjCReservedBitsMask));
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return false;
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#endif
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}
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static inline bool isObjCTaggedPointerOrNull(const void *object) {
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return object == nullptr || isObjCTaggedPointer(object);
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}
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/// Return the class of an object which is known to be an allocated
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/// heap object.
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/// Note, in this case, the object may or may not have a non-pointer ISA.
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/// Masking, or otherwise, may be required to get a class pointer.
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static inline const ClassMetadata *_swift_getClassOfAllocated(const void *object) {
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#if SWIFT_HAS_OPAQUE_ISAS
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// The ISA is opaque so masking it will not return a pointer. We instead
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// need to call the objc runtime to get the class.
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return reinterpret_cast<const ClassMetadata*>(object_getClass((id)object));
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#else
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// Load the isa field.
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uintptr_t bits = *reinterpret_cast<const uintptr_t*>(object);
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#if SWIFT_HAS_ISA_MASKING
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// Apply the mask.
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bits &= swift_isaMask;
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#endif
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// The result is a class pointer.
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return reinterpret_cast<const ClassMetadata *>(bits);
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#endif
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}
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/// Return the class of an object which is known to be an allocated
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/// heap object.
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/// Note, in this case, the object is known to have a pointer ISA, and no
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/// masking is required to convert from non-pointer to pointer ISA.
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static inline const ClassMetadata *
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_swift_getClassOfAllocatedFromPointer(const void *object) {
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// Load the isa field.
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uintptr_t bits = *reinterpret_cast<const uintptr_t*>(object);
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// The result is a class pointer.
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return reinterpret_cast<const ClassMetadata *>(bits);
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}
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#if SWIFT_OBJC_INTEROP && SWIFT_HAS_OPAQUE_ISAS
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/// Return whether this object is of a class which uses non-pointer ISAs.
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static inline bool _swift_isNonPointerIsaObjCClass(const void *object) {
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// Load the isa field.
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uintptr_t bits = *reinterpret_cast<const uintptr_t*>(object);
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// If the low bit is set, then we are definitely an objc object.
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// FIXME: Use a variable for this.
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return bits & 1;
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}
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#endif
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LLVM_LIBRARY_VISIBILITY
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const ClassMetadata *_swift_getClass(const void *object);
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static inline
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const ClassMetadata *_swift_getSuperclass(const ClassMetadata *theClass) {
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return theClass->SuperClass;
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}
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LLVM_LIBRARY_VISIBILITY
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bool usesNativeSwiftReferenceCounting(const ClassMetadata *theClass);
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static inline
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bool objectUsesNativeSwiftReferenceCounting(const void *object) {
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assert(!isObjCTaggedPointerOrNull(object));
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#if SWIFT_HAS_OPAQUE_ISAS
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// Fast path for opaque ISAs. We don't want to call
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// _swift_getClassOfAllocated as that will call object_getClass.
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// Instead we can look at the bits in the ISA and tell if its a
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// non-pointer opaque ISA which means it is definitely an ObjC
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// object and doesn't use native swift reference counting.
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if (_swift_isNonPointerIsaObjCClass(object))
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return false;
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return usesNativeSwiftReferenceCounting(_swift_getClassOfAllocatedFromPointer(object));
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#else
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return usesNativeSwiftReferenceCounting(_swift_getClassOfAllocated(object));
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#endif
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}
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/// Get the superclass pointer value used for Swift root classes.
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/// Note that this function may return a nullptr on non-objc platforms,
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/// where there is no common root class. rdar://problem/18987058
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const ClassMetadata *getRootSuperclass();
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/// Check if a class has a formal superclass in the AST.
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static inline
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bool classHasSuperclass(const ClassMetadata *c) {
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return (c->SuperClass && c->SuperClass != getRootSuperclass());
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}
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/// Replace entries of a freshly-instantiated value witness table with more
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/// efficient common implementations where applicable.
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///
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/// For instance, if the value witness table represents a POD type, this will
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/// insert POD value witnesses into the table. The vwtable's flags must have
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/// been initialized before calling this function.
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///
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/// Returns true if common value witnesses were used, false otherwise.
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void installCommonValueWitnesses(ValueWitnessTable *vwtable);
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const Metadata *
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_matchMetadataByMangledTypeName(const llvm::StringRef metadataNameRef,
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const Metadata *metadata,
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const NominalTypeDescriptor *ntd);
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const Metadata *
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_searchConformancesByMangledTypeName(const llvm::StringRef typeName);
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Demangle::NodePointer _swift_buildDemanglingForMetadata(const Metadata *type,
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Demangle::Demangler &Dem);
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/// A helper function which avoids performing a store if the destination
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/// address already contains the source value. This is useful when
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/// "initializing" memory that might have been initialized to the correct
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/// value statically. In such a case, the compiler might have gone so far
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/// as to map the entire object readonly, or we might just want to avoid
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/// dirtying memory unnecessarily.
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template <class T>
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static void assignUnlessEqual(T &dest, T newValue) {
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if (dest != newValue)
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dest = newValue;
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}
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#if defined(__CYGWIN__)
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void _swift_once_f(uintptr_t *predicate, void *context,
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void (*function)(void *));
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#endif
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} // end namespace swift
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#endif /* SWIFT_RUNTIME_PRIVATE_H */
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