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463 lines
13 KiB
Swift
463 lines
13 KiB
Swift
//===--- ArrayBuffer.swift - Dynamic storage for Swift Array --------------===//
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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 - 2015 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 http://swift.org/LICENSE.txt for license information
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// See http://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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// This is the class that implements the storage and object management for
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// Swift Array.
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//
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//===----------------------------------------------------------------------===//
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import SwiftShims
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enum _ArrayCastKind { case Up, Down, DeferredDown }
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final internal
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class _IndirectArrayBuffer {
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init<T>(
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nativeBuffer: _ContiguousArrayBuffer<T>,
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isMutable: Bool,
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needsElementTypeCheck: Bool
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) {
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self.buffer = nativeBuffer._storage
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self.isMutable = isMutable
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self.isCocoa = false
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self.needsElementTypeCheck = needsElementTypeCheck
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}
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init(cocoa: _CocoaArrayType, needsElementTypeCheck: Bool) {
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self.buffer = cocoa
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self.isMutable = false
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self.isCocoa = true
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self.needsElementTypeCheck = needsElementTypeCheck
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}
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init<Target>(
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castFrom source: _IndirectArrayBuffer,
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toElementType _: Target.Type
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) {
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self.buffer = source.buffer
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self.isCocoa = source.isCocoa
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if source.isCocoa {
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self.isMutable = false
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}
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else {
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self.isMutable = source
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.getNativeBufferOf(AnyObject.self)
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.canStoreElementsOfDynamicType(Target.self)
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}
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self.needsElementTypeCheck = source.needsElementTypeCheck
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? !(AnyObject.self is Target.Type)
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: false
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}
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// When this buffer has immutable storage and it is modified, the
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// storage is replaced with mutable storage.
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func replaceStorage<T>(newBuffer: _ContiguousArrayBuffer<T>) {
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self.buffer = newBuffer._storage
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self.isMutable = true
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self.isCocoa = false
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self.needsElementTypeCheck = false
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}
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var buffer: AnyObject?
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var isMutable: Bool
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var isCocoa: Bool
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var needsElementTypeCheck: Bool
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func getNativeBufferOf<T>(_: T.Type) -> _ContiguousArrayBuffer<T> {
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_sanityCheck(!isCocoa)
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return _ContiguousArrayBuffer(
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buffer ? reinterpretCast(buffer) as _ContiguousArrayStorage<T> : nil)
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}
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func getCocoa() -> _CocoaArrayType {
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_sanityCheck(isCocoa)
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return reinterpretCast(buffer!) as _CocoaArrayType
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}
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}
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public struct _ArrayBuffer<T> : _ArrayBufferType {
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var storage: Builtin.NativeObject?
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var indirect: _IndirectArrayBuffer {
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_sanityCheck(_isClassOrObjCExistential(T.self))
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return Builtin.castFromNativeObject(storage!)
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}
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public typealias Element = T
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/// create an empty buffer
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public
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init() {
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storage = !_isClassOrObjCExistential(T.self)
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? nil : Builtin.castToNativeObject(
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_IndirectArrayBuffer(
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nativeBuffer: _ContiguousArrayBuffer<T>(),
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isMutable: false,
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needsElementTypeCheck: false
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))
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}
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public init(_ cocoa: _CocoaArrayType) {
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_sanityCheck(_isClassOrObjCExistential(T.self))
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storage = Builtin.castToNativeObject(
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_IndirectArrayBuffer(
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cocoa: cocoa,
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// FIXME: it may be possible to avoid a deferred check if we can
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// verify that source is backed by a ContiguousArray<T>.
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needsElementTypeCheck: !(AnyObject.self is T.Type)))
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}
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init(_ buffer: _IndirectArrayBuffer) {
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storage = Builtin.castToNativeObject(buffer)
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}
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/// Returns an `_ArrayBuffer<U>` containing the same elements.
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/// Requires: the elements actually have dynamic type `U`, and `U`
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/// is a class or `@objc` existential.
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func castToBufferOf<U>(_: U.Type) -> _ArrayBuffer<U> {
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_sanityCheck(_isClassOrObjCExistential(T.self))
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_sanityCheck(_isClassOrObjCExistential(U.self))
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return _ArrayBuffer<U>(
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_IndirectArrayBuffer(castFrom: self.indirect, toElementType: U.self))
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}
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}
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extension _ArrayBuffer {
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/// Adopt the storage of source
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public
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init(_ source: NativeBuffer) {
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if !_isClassOrObjCExistential(T.self) {
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self.storage
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= source._storage ? Builtin.castToNativeObject(source._storage!) : nil
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}
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else {
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self.storage = Builtin.castToNativeObject(
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_IndirectArrayBuffer(
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nativeBuffer: source, isMutable: true, needsElementTypeCheck: false))
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}
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}
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/// Return true iff this buffer's storage is uniquely-referenced.
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mutating func isUniquelyReferenced() -> Bool {
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return Swift._isUniquelyReferenced(&storage)
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}
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/// Convert to an NSArray.
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/// Precondition: _isBridgedToObjectiveC(Element.self)
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/// O(1) if the element type is bridged verbatim, O(N) otherwise
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public func _asCocoaArray() -> _CocoaArrayType {
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_sanityCheck(
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_isBridgedToObjectiveC(T.self),
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"Array element type is not bridged to ObjectiveC")
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return _fastPath(_isNative) ? _native._asCocoaArray() : _nonNative!
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}
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var _hasMutableBuffer: Bool {
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if !_isClassOrObjCExistential(T.self) {
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return true
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}
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return indirect.isMutable && Swift._isUniquelyReferenced(&indirect.buffer)
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}
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/// If this buffer is backed by a uniquely-referenced mutable
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/// _ContiguousArrayBuffer that can be grown in-place to allow the self
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/// buffer store minimumCapacity elements, returns that buffer.
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/// Otherwise, returns nil
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public
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mutating func requestUniqueMutableBackingBuffer(minimumCapacity: Int)
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-> NativeBuffer?
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{
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if _fastPath(Swift._isUniquelyReferenced(&storage) && _hasMutableBuffer) {
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let b = _native
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return b.capacity >= minimumCapacity ? b : nil
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}
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return nil
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}
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public
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mutating func isMutableAndUniquelyReferenced() -> Bool {
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return Swift._isUniquelyReferenced(&storage) && _hasMutableBuffer
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}
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/// If this buffer is backed by a _ContiguousArrayBuffer, return it.
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/// Otherwise, return nil. Note: the result's baseAddress may
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/// not match ours, if we are a _SliceBuffer.
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public
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func requestNativeBuffer() -> NativeBuffer? {
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let result = self._native
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if result.hasStorage { return result }
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return nil
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}
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/// Replace the given subRange with the first newCount elements of
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/// the given collection.
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///
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/// Requires: this buffer is backed by a uniquely-referenced
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/// _ContiguousArrayBuffer
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public
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mutating func replace<C: CollectionType where C.Generator.Element == Element>(
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#subRange: Range<Int>, with newCount: Int, elementsOf newValues: C
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) {
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_arrayNonSliceInPlaceReplace(&self, subRange, newCount, newValues)
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}
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func _typeCheck(subRange: Range<Int>) {
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if !_isClassOrObjCExistential(T.self) {
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return
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}
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if _slowPath(indirect.needsElementTypeCheck) {
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if _fastPath(_isNative) {
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for x in _native[subRange] {
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_precondition(
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reinterpretCast(x) as AnyObject is T,
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"NSArray element failed to match the Swift Array Element type")
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}
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}
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else if !subRange.isEmpty {
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let ns = _nonNative!
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// Could be sped up, e.g. by using
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// enumerateObjectsAtIndexes:options:usingBlock:
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for i in subRange {
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_precondition(ns.objectAtIndex(i) is T,
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"NSArray element failed to match the Swift Array Element type")
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}
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}
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}
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}
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/// Copy the given subRange of this buffer into uninitialized memory
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/// starting at target. Return a pointer past-the-end of the
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/// just-initialized memory.
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public
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func _uninitializedCopy(subRange: Range<Int>, target: UnsafeMutablePointer<T>)
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-> UnsafeMutablePointer<T> {
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_typeCheck(subRange)
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if _fastPath(_isNative) {
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return _native._uninitializedCopy(subRange, target: target)
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}
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let nonNative = _nonNative!
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let nsSubRange = SwiftShims._SwiftNSRange(
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location:subRange.startIndex,
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length: subRange.endIndex - subRange.startIndex)
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let buffer = reinterpretCast(target) as UnsafeMutablePointer<AnyObject>
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// Copies the references out of the NSArray without retaining them
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nonNative.getObjects(buffer, range: nsSubRange)
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// Make another pass to retain the copied objects
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var result = target
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for i in subRange {
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result.initialize(result.memory)
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++result
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}
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return result
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}
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/// Return a _SliceBuffer containing the given subRange of values
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/// from this buffer.
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public
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subscript(subRange: Range<Int>) -> _SliceBuffer<T> {
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_typeCheck(subRange)
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if _fastPath(_isNative) {
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return _native[subRange]
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}
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let nonNative = self._nonNative
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let subRangeCount = countElements(subRange)
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// Look for contiguous storage in the NSArray
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let cocoa = _CocoaArrayWrapper(nonNative!)
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let start = cocoa.contiguousStorage(subRange)
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if start != nil {
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return _SliceBuffer(owner: nonNative, start: UnsafeMutablePointer(start),
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count: subRangeCount, hasNativeBuffer: false)
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}
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// No contiguous storage found; we must allocate
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var result = _ContiguousArrayBuffer<T>(
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count: subRangeCount, minimumCapacity: 0)
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// Tell Cocoa to copy the objects into our storage
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cocoa.buffer.getObjects(
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UnsafeMutablePointer(result.baseAddress),
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range: _SwiftNSRange(location: subRange.startIndex, length: subRangeCount)
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)
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return _SliceBuffer(result)
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}
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/// If the elements are stored contiguously, a pointer to the first
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/// element. Otherwise, nil.
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public
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var baseAddress: UnsafeMutablePointer<T> {
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if (_fastPath(_isNative)) {
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return _native.baseAddress
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}
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return nil
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}
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/// How many elements the buffer stores
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public
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var count: Int {
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get {
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return _fastPath(_isNative) ? _native.count : _nonNative!.count
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}
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set {
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_sanityCheck(_isNative, "attempting to update count of Cocoa array")
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_native.count = newValue
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}
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}
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/// How many elements the buffer can store without reallocation
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public
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var capacity: Int {
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return _fastPath(_isNative) ? _native.capacity : _nonNative!.count
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}
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/// Get/set the value of the ith element
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public
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subscript(i: Int) -> T {
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get {
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_typeCheck(i..<i)
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if _fastPath(_isNative) {
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return _native[i]
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}
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return reinterpretCast(_nonNative!.objectAtIndex(i))
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}
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nonmutating set {
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if _fastPath(_hasMutableBuffer) {
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_native[i] = newValue
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}
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else {
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indirect.replaceStorage(_copyCollectionToNativeArrayBuffer(self))
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_native[i] = newValue
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}
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}
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}
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/// Call `body(p)`, where `p` is a pointer to the underlying
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/// contiguous storage. If no contiguous storage exists, it is
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/// created on-demand.
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public
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func withUnsafePointerToElements<R>(
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body: (UnsafePointer<T>)->R
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) -> R {
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if _isClassOrObjCExistential(T.self) {
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if _nonNative {
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indirect.replaceStorage(_copyCollectionToNativeArrayBuffer(self))
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}
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}
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let ret = body(self.baseAddress)
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_fixLifetime(self)
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return ret
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}
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/// Call `body(p)`, where `p` is a pointer to the underlying contiguous
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/// storage. Requires: Contiguous storage already exists
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public
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mutating func withUnsafeMutablePointerToElements<R>(
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body: (UnsafeMutablePointer<T>)->R
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) -> R {
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_sanityCheck(
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baseAddress != nil || count == 0,
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"Array is bridging an opaque NSArray; can't get a pointer to the elements"
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)
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let ret = body(baseAddress)
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_fixLifetime(self)
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return ret
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}
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/// An object that keeps the elements stored in this buffer alive
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public
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var owner: AnyObject? {
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return _fastPath(_isNative) ? _native._storage : _nonNative!
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}
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/// A value that identifies first mutable element, if any. Two
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/// arrays compare === iff they are both empty or if their buffers
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/// have the same identity and count.
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public
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var identity: Word {
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let p = baseAddress
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return p != nil ? reinterpretCast(p) : reinterpretCast(owner)
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}
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//===--- CollectionType conformance -------------------------------------===//
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public
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var startIndex: Int {
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return 0
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}
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public
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var endIndex: Int {
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return count
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}
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public
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func generate() -> IndexingGenerator<_ArrayBuffer> {
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return IndexingGenerator(self)
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}
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//===--- private --------------------------------------------------------===//
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typealias Storage = _ContiguousArrayStorage<T>
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typealias NativeBuffer = _ContiguousArrayBuffer<T>
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func _invariantCheck() -> Bool {
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return true
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}
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var _isNative: Bool {
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if !_isClassOrObjCExistential(T.self) {
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return true
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}
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else {
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return !indirect.isCocoa
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}
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}
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/// Our native representation, if any. If there's no native
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/// representation, the result is an empty buffer.
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var _native: NativeBuffer {
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if !_isClassOrObjCExistential(T.self) {
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return NativeBuffer(
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reinterpretCast(storage) as _ContiguousArrayStorage<T>?)
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}
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else {
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let i = indirect
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return _fastPath(!i.isCocoa)
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? i.getNativeBufferOf(T.self)
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: NativeBuffer()
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}
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}
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var _nonNative: _CocoaArrayType? {
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if !_isClassOrObjCExistential(T.self) {
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return nil
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}
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else {
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let i = indirect
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return _fastPath(!i.isCocoa) ? nil : i.getCocoa()
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}
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}
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}
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