mirror of
https://github.com/autc04/Retro68.git
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1022 lines
29 KiB
Java
1022 lines
29 KiB
Java
/*
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* Written by Doug Lea with assistance from members of JCP JSR-166
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* Expert Group and released to the public domain, as explained at
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* http://creativecommons.org/licenses/publicdomain
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*/
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package java.util.concurrent;
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import java.util.*;
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import java.util.concurrent.locks.*;
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/**
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* An optionally-bounded {@linkplain BlockingDeque blocking deque} based on
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* linked nodes.
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*
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* <p> The optional capacity bound constructor argument serves as a
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* way to prevent excessive expansion. The capacity, if unspecified,
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* is equal to {@link Integer#MAX_VALUE}. Linked nodes are
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* dynamically created upon each insertion unless this would bring the
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* deque above capacity.
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*
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* <p>Most operations run in constant time (ignoring time spent
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* blocking). Exceptions include {@link #remove(Object) remove},
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* {@link #removeFirstOccurrence removeFirstOccurrence}, {@link
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* #removeLastOccurrence removeLastOccurrence}, {@link #contains
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* contains}, {@link #iterator iterator.remove()}, and the bulk
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* operations, all of which run in linear time.
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*
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* <p>This class and its iterator implement all of the
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* <em>optional</em> methods of the {@link Collection} and {@link
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* Iterator} interfaces.
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*
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* <p>This class is a member of the
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* <a href="{@docRoot}/../technotes/guides/collections/index.html">
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* Java Collections Framework</a>.
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*
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* @since 1.6
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* @author Doug Lea
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* @param <E> the type of elements held in this collection
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*/
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public class LinkedBlockingDeque<E>
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extends AbstractQueue<E>
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implements BlockingDeque<E>, java.io.Serializable {
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/*
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* Implemented as a simple doubly-linked list protected by a
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* single lock and using conditions to manage blocking.
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*/
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/*
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* We have "diamond" multiple interface/abstract class inheritance
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* here, and that introduces ambiguities. Often we want the
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* BlockingDeque javadoc combined with the AbstractQueue
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* implementation, so a lot of method specs are duplicated here.
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*/
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private static final long serialVersionUID = -387911632671998426L;
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/** Doubly-linked list node class */
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static final class Node<E> {
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E item;
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Node<E> prev;
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Node<E> next;
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Node(E x, Node<E> p, Node<E> n) {
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item = x;
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prev = p;
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next = n;
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}
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}
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/** Pointer to first node */
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private transient Node<E> first;
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/** Pointer to last node */
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private transient Node<E> last;
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/** Number of items in the deque */
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private transient int count;
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/** Maximum number of items in the deque */
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private final int capacity;
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/** Main lock guarding all access */
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private final ReentrantLock lock = new ReentrantLock();
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/** Condition for waiting takes */
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private final Condition notEmpty = lock.newCondition();
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/** Condition for waiting puts */
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private final Condition notFull = lock.newCondition();
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/**
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* Creates a <tt>LinkedBlockingDeque</tt> with a capacity of
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* {@link Integer#MAX_VALUE}.
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*/
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public LinkedBlockingDeque() {
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this(Integer.MAX_VALUE);
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}
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/**
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* Creates a <tt>LinkedBlockingDeque</tt> with the given (fixed) capacity.
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*
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* @param capacity the capacity of this deque
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* @throws IllegalArgumentException if <tt>capacity</tt> is less than 1
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*/
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public LinkedBlockingDeque(int capacity) {
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if (capacity <= 0) throw new IllegalArgumentException();
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this.capacity = capacity;
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}
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/**
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* Creates a <tt>LinkedBlockingDeque</tt> with a capacity of
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* {@link Integer#MAX_VALUE}, initially containing the elements of
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* the given collection, added in traversal order of the
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* collection's iterator.
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*
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* @param c the collection of elements to initially contain
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* @throws NullPointerException if the specified collection or any
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* of its elements are null
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*/
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public LinkedBlockingDeque(Collection<? extends E> c) {
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this(Integer.MAX_VALUE);
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for (E e : c)
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add(e);
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}
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// Basic linking and unlinking operations, called only while holding lock
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/**
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* Links e as first element, or returns false if full.
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*/
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private boolean linkFirst(E e) {
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if (count >= capacity)
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return false;
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++count;
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Node<E> f = first;
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Node<E> x = new Node<E>(e, null, f);
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first = x;
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if (last == null)
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last = x;
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else
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f.prev = x;
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notEmpty.signal();
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return true;
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}
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/**
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* Links e as last element, or returns false if full.
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*/
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private boolean linkLast(E e) {
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if (count >= capacity)
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return false;
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++count;
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Node<E> l = last;
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Node<E> x = new Node<E>(e, l, null);
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last = x;
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if (first == null)
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first = x;
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else
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l.next = x;
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notEmpty.signal();
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return true;
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}
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/**
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* Removes and returns first element, or null if empty.
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*/
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private E unlinkFirst() {
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Node<E> f = first;
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if (f == null)
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return null;
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Node<E> n = f.next;
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first = n;
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if (n == null)
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last = null;
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else
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n.prev = null;
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--count;
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notFull.signal();
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return f.item;
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}
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/**
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* Removes and returns last element, or null if empty.
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*/
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private E unlinkLast() {
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Node<E> l = last;
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if (l == null)
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return null;
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Node<E> p = l.prev;
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last = p;
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if (p == null)
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first = null;
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else
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p.next = null;
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--count;
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notFull.signal();
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return l.item;
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}
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/**
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* Unlink e
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*/
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private void unlink(Node<E> x) {
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Node<E> p = x.prev;
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Node<E> n = x.next;
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if (p == null) {
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if (n == null)
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first = last = null;
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else {
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n.prev = null;
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first = n;
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}
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} else if (n == null) {
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p.next = null;
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last = p;
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} else {
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p.next = n;
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n.prev = p;
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}
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--count;
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notFull.signalAll();
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}
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// BlockingDeque methods
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/**
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* @throws IllegalStateException {@inheritDoc}
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* @throws NullPointerException {@inheritDoc}
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*/
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public void addFirst(E e) {
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if (!offerFirst(e))
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throw new IllegalStateException("Deque full");
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}
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/**
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* @throws IllegalStateException {@inheritDoc}
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* @throws NullPointerException {@inheritDoc}
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*/
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public void addLast(E e) {
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if (!offerLast(e))
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throw new IllegalStateException("Deque full");
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}
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/**
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* @throws NullPointerException {@inheritDoc}
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*/
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public boolean offerFirst(E e) {
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if (e == null) throw new NullPointerException();
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lock.lock();
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try {
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return linkFirst(e);
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} finally {
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lock.unlock();
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}
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}
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/**
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* @throws NullPointerException {@inheritDoc}
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*/
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public boolean offerLast(E e) {
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if (e == null) throw new NullPointerException();
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lock.lock();
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try {
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return linkLast(e);
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} finally {
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lock.unlock();
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}
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}
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/**
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* @throws NullPointerException {@inheritDoc}
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* @throws InterruptedException {@inheritDoc}
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*/
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public void putFirst(E e) throws InterruptedException {
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if (e == null) throw new NullPointerException();
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lock.lock();
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try {
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while (!linkFirst(e))
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notFull.await();
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} finally {
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lock.unlock();
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}
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}
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/**
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* @throws NullPointerException {@inheritDoc}
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* @throws InterruptedException {@inheritDoc}
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*/
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public void putLast(E e) throws InterruptedException {
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if (e == null) throw new NullPointerException();
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lock.lock();
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try {
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while (!linkLast(e))
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notFull.await();
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} finally {
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lock.unlock();
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}
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}
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/**
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* @throws NullPointerException {@inheritDoc}
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* @throws InterruptedException {@inheritDoc}
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*/
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public boolean offerFirst(E e, long timeout, TimeUnit unit)
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throws InterruptedException {
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if (e == null) throw new NullPointerException();
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long nanos = unit.toNanos(timeout);
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lock.lockInterruptibly();
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try {
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for (;;) {
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if (linkFirst(e))
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return true;
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if (nanos <= 0)
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return false;
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nanos = notFull.awaitNanos(nanos);
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}
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} finally {
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lock.unlock();
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}
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}
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/**
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* @throws NullPointerException {@inheritDoc}
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* @throws InterruptedException {@inheritDoc}
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*/
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public boolean offerLast(E e, long timeout, TimeUnit unit)
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throws InterruptedException {
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if (e == null) throw new NullPointerException();
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long nanos = unit.toNanos(timeout);
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lock.lockInterruptibly();
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try {
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for (;;) {
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if (linkLast(e))
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return true;
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if (nanos <= 0)
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return false;
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nanos = notFull.awaitNanos(nanos);
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}
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} finally {
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lock.unlock();
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}
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}
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/**
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* @throws NoSuchElementException {@inheritDoc}
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*/
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public E removeFirst() {
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E x = pollFirst();
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if (x == null) throw new NoSuchElementException();
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return x;
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}
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/**
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* @throws NoSuchElementException {@inheritDoc}
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*/
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public E removeLast() {
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E x = pollLast();
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if (x == null) throw new NoSuchElementException();
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return x;
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}
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public E pollFirst() {
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lock.lock();
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try {
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return unlinkFirst();
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} finally {
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lock.unlock();
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}
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}
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public E pollLast() {
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lock.lock();
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try {
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return unlinkLast();
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} finally {
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lock.unlock();
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}
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}
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public E takeFirst() throws InterruptedException {
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lock.lock();
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try {
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E x;
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while ( (x = unlinkFirst()) == null)
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notEmpty.await();
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return x;
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} finally {
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lock.unlock();
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}
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}
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public E takeLast() throws InterruptedException {
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lock.lock();
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try {
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E x;
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while ( (x = unlinkLast()) == null)
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notEmpty.await();
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return x;
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} finally {
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lock.unlock();
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}
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}
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public E pollFirst(long timeout, TimeUnit unit)
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throws InterruptedException {
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long nanos = unit.toNanos(timeout);
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lock.lockInterruptibly();
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try {
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for (;;) {
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E x = unlinkFirst();
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if (x != null)
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return x;
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if (nanos <= 0)
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return null;
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nanos = notEmpty.awaitNanos(nanos);
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}
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} finally {
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lock.unlock();
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}
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}
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public E pollLast(long timeout, TimeUnit unit)
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throws InterruptedException {
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long nanos = unit.toNanos(timeout);
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lock.lockInterruptibly();
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try {
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for (;;) {
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E x = unlinkLast();
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if (x != null)
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return x;
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if (nanos <= 0)
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return null;
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nanos = notEmpty.awaitNanos(nanos);
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}
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} finally {
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lock.unlock();
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}
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}
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/**
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* @throws NoSuchElementException {@inheritDoc}
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*/
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public E getFirst() {
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E x = peekFirst();
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if (x == null) throw new NoSuchElementException();
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return x;
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}
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/**
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* @throws NoSuchElementException {@inheritDoc}
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*/
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public E getLast() {
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E x = peekLast();
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if (x == null) throw new NoSuchElementException();
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return x;
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}
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public E peekFirst() {
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lock.lock();
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try {
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return (first == null) ? null : first.item;
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} finally {
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lock.unlock();
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}
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}
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public E peekLast() {
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lock.lock();
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try {
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return (last == null) ? null : last.item;
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} finally {
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lock.unlock();
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}
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}
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public boolean removeFirstOccurrence(Object o) {
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if (o == null) return false;
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lock.lock();
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try {
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for (Node<E> p = first; p != null; p = p.next) {
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if (o.equals(p.item)) {
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unlink(p);
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return true;
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}
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}
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return false;
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} finally {
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lock.unlock();
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}
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}
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public boolean removeLastOccurrence(Object o) {
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if (o == null) return false;
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lock.lock();
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try {
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for (Node<E> p = last; p != null; p = p.prev) {
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if (o.equals(p.item)) {
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unlink(p);
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return true;
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}
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}
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return false;
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} finally {
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lock.unlock();
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}
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}
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// BlockingQueue methods
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/**
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* Inserts the specified element at the end of this deque unless it would
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* violate capacity restrictions. When using a capacity-restricted deque,
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* it is generally preferable to use method {@link #offer(Object) offer}.
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*
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* <p>This method is equivalent to {@link #addLast}.
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*
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* @throws IllegalStateException if the element cannot be added at this
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* time due to capacity restrictions
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* @throws NullPointerException if the specified element is null
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*/
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public boolean add(E e) {
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addLast(e);
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return true;
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}
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/**
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* @throws NullPointerException if the specified element is null
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*/
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public boolean offer(E e) {
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return offerLast(e);
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}
|
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|
|
/**
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* @throws NullPointerException {@inheritDoc}
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* @throws InterruptedException {@inheritDoc}
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*/
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public void put(E e) throws InterruptedException {
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putLast(e);
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}
|
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|
/**
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* @throws NullPointerException {@inheritDoc}
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* @throws InterruptedException {@inheritDoc}
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*/
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public boolean offer(E e, long timeout, TimeUnit unit)
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throws InterruptedException {
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return offerLast(e, timeout, unit);
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}
|
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|
|
/**
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* Retrieves and removes the head of the queue represented by this deque.
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* This method differs from {@link #poll poll} only in that it throws an
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* exception if this deque is empty.
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*
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* <p>This method is equivalent to {@link #removeFirst() removeFirst}.
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*
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* @return the head of the queue represented by this deque
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* @throws NoSuchElementException if this deque is empty
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*/
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public E remove() {
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return removeFirst();
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}
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public E poll() {
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return pollFirst();
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}
|
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public E take() throws InterruptedException {
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return takeFirst();
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}
|
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public E poll(long timeout, TimeUnit unit) throws InterruptedException {
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return pollFirst(timeout, unit);
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}
|
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|
|
/**
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* Retrieves, but does not remove, the head of the queue represented by
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* this deque. This method differs from {@link #peek peek} only in that
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* it throws an exception if this deque is empty.
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*
|
|
* <p>This method is equivalent to {@link #getFirst() getFirst}.
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*
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* @return the head of the queue represented by this deque
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* @throws NoSuchElementException if this deque is empty
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*/
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public E element() {
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return getFirst();
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}
|
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|
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public E peek() {
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return peekFirst();
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}
|
|
|
|
/**
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|
* Returns the number of additional elements that this deque can ideally
|
|
* (in the absence of memory or resource constraints) accept without
|
|
* blocking. This is always equal to the initial capacity of this deque
|
|
* less the current <tt>size</tt> of this deque.
|
|
*
|
|
* <p>Note that you <em>cannot</em> always tell if an attempt to insert
|
|
* an element will succeed by inspecting <tt>remainingCapacity</tt>
|
|
* because it may be the case that another thread is about to
|
|
* insert or remove an element.
|
|
*/
|
|
public int remainingCapacity() {
|
|
lock.lock();
|
|
try {
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return capacity - count;
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|
} finally {
|
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lock.unlock();
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}
|
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}
|
|
|
|
/**
|
|
* @throws UnsupportedOperationException {@inheritDoc}
|
|
* @throws ClassCastException {@inheritDoc}
|
|
* @throws NullPointerException {@inheritDoc}
|
|
* @throws IllegalArgumentException {@inheritDoc}
|
|
*/
|
|
public int drainTo(Collection<? super E> c) {
|
|
if (c == null)
|
|
throw new NullPointerException();
|
|
if (c == this)
|
|
throw new IllegalArgumentException();
|
|
lock.lock();
|
|
try {
|
|
for (Node<E> p = first; p != null; p = p.next)
|
|
c.add(p.item);
|
|
int n = count;
|
|
count = 0;
|
|
first = last = null;
|
|
notFull.signalAll();
|
|
return n;
|
|
} finally {
|
|
lock.unlock();
|
|
}
|
|
}
|
|
|
|
/**
|
|
* @throws UnsupportedOperationException {@inheritDoc}
|
|
* @throws ClassCastException {@inheritDoc}
|
|
* @throws NullPointerException {@inheritDoc}
|
|
* @throws IllegalArgumentException {@inheritDoc}
|
|
*/
|
|
public int drainTo(Collection<? super E> c, int maxElements) {
|
|
if (c == null)
|
|
throw new NullPointerException();
|
|
if (c == this)
|
|
throw new IllegalArgumentException();
|
|
lock.lock();
|
|
try {
|
|
int n = 0;
|
|
while (n < maxElements && first != null) {
|
|
c.add(first.item);
|
|
first.prev = null;
|
|
first = first.next;
|
|
--count;
|
|
++n;
|
|
}
|
|
if (first == null)
|
|
last = null;
|
|
notFull.signalAll();
|
|
return n;
|
|
} finally {
|
|
lock.unlock();
|
|
}
|
|
}
|
|
|
|
// Stack methods
|
|
|
|
/**
|
|
* @throws IllegalStateException {@inheritDoc}
|
|
* @throws NullPointerException {@inheritDoc}
|
|
*/
|
|
public void push(E e) {
|
|
addFirst(e);
|
|
}
|
|
|
|
/**
|
|
* @throws NoSuchElementException {@inheritDoc}
|
|
*/
|
|
public E pop() {
|
|
return removeFirst();
|
|
}
|
|
|
|
// Collection methods
|
|
|
|
/**
|
|
* Removes the first occurrence of the specified element from this deque.
|
|
* If the deque does not contain the element, it is unchanged.
|
|
* More formally, removes the first element <tt>e</tt> such that
|
|
* <tt>o.equals(e)</tt> (if such an element exists).
|
|
* Returns <tt>true</tt> if this deque contained the specified element
|
|
* (or equivalently, if this deque changed as a result of the call).
|
|
*
|
|
* <p>This method is equivalent to
|
|
* {@link #removeFirstOccurrence(Object) removeFirstOccurrence}.
|
|
*
|
|
* @param o element to be removed from this deque, if present
|
|
* @return <tt>true</tt> if this deque changed as a result of the call
|
|
*/
|
|
public boolean remove(Object o) {
|
|
return removeFirstOccurrence(o);
|
|
}
|
|
|
|
/**
|
|
* Returns the number of elements in this deque.
|
|
*
|
|
* @return the number of elements in this deque
|
|
*/
|
|
public int size() {
|
|
lock.lock();
|
|
try {
|
|
return count;
|
|
} finally {
|
|
lock.unlock();
|
|
}
|
|
}
|
|
|
|
/**
|
|
* Returns <tt>true</tt> if this deque contains the specified element.
|
|
* More formally, returns <tt>true</tt> if and only if this deque contains
|
|
* at least one element <tt>e</tt> such that <tt>o.equals(e)</tt>.
|
|
*
|
|
* @param o object to be checked for containment in this deque
|
|
* @return <tt>true</tt> if this deque contains the specified element
|
|
*/
|
|
public boolean contains(Object o) {
|
|
if (o == null) return false;
|
|
lock.lock();
|
|
try {
|
|
for (Node<E> p = first; p != null; p = p.next)
|
|
if (o.equals(p.item))
|
|
return true;
|
|
return false;
|
|
} finally {
|
|
lock.unlock();
|
|
}
|
|
}
|
|
|
|
/**
|
|
* Variant of removeFirstOccurrence needed by iterator.remove.
|
|
* Searches for the node, not its contents.
|
|
*/
|
|
boolean removeNode(Node<E> e) {
|
|
lock.lock();
|
|
try {
|
|
for (Node<E> p = first; p != null; p = p.next) {
|
|
if (p == e) {
|
|
unlink(p);
|
|
return true;
|
|
}
|
|
}
|
|
return false;
|
|
} finally {
|
|
lock.unlock();
|
|
}
|
|
}
|
|
|
|
/**
|
|
* Returns an array containing all of the elements in this deque, in
|
|
* proper sequence (from first to last element).
|
|
*
|
|
* <p>The returned array will be "safe" in that no references to it are
|
|
* maintained by this deque. (In other words, this method must allocate
|
|
* a new array). The caller is thus free to modify the returned array.
|
|
*
|
|
* <p>This method acts as bridge between array-based and collection-based
|
|
* APIs.
|
|
*
|
|
* @return an array containing all of the elements in this deque
|
|
*/
|
|
public Object[] toArray() {
|
|
lock.lock();
|
|
try {
|
|
Object[] a = new Object[count];
|
|
int k = 0;
|
|
for (Node<E> p = first; p != null; p = p.next)
|
|
a[k++] = p.item;
|
|
return a;
|
|
} finally {
|
|
lock.unlock();
|
|
}
|
|
}
|
|
|
|
/**
|
|
* Returns an array containing all of the elements in this deque, in
|
|
* proper sequence; the runtime type of the returned array is that of
|
|
* the specified array. If the deque fits in the specified array, it
|
|
* is returned therein. Otherwise, a new array is allocated with the
|
|
* runtime type of the specified array and the size of this deque.
|
|
*
|
|
* <p>If this deque fits in the specified array with room to spare
|
|
* (i.e., the array has more elements than this deque), the element in
|
|
* the array immediately following the end of the deque is set to
|
|
* <tt>null</tt>.
|
|
*
|
|
* <p>Like the {@link #toArray()} method, this method acts as bridge between
|
|
* array-based and collection-based APIs. Further, this method allows
|
|
* precise control over the runtime type of the output array, and may,
|
|
* under certain circumstances, be used to save allocation costs.
|
|
*
|
|
* <p>Suppose <tt>x</tt> is a deque known to contain only strings.
|
|
* The following code can be used to dump the deque into a newly
|
|
* allocated array of <tt>String</tt>:
|
|
*
|
|
* <pre>
|
|
* String[] y = x.toArray(new String[0]);</pre>
|
|
*
|
|
* Note that <tt>toArray(new Object[0])</tt> is identical in function to
|
|
* <tt>toArray()</tt>.
|
|
*
|
|
* @param a the array into which the elements of the deque are to
|
|
* be stored, if it is big enough; otherwise, a new array of the
|
|
* same runtime type is allocated for this purpose
|
|
* @return an array containing all of the elements in this deque
|
|
* @throws ArrayStoreException if the runtime type of the specified array
|
|
* is not a supertype of the runtime type of every element in
|
|
* this deque
|
|
* @throws NullPointerException if the specified array is null
|
|
*/
|
|
public <T> T[] toArray(T[] a) {
|
|
lock.lock();
|
|
try {
|
|
if (a.length < count)
|
|
a = (T[])java.lang.reflect.Array.newInstance(
|
|
a.getClass().getComponentType(),
|
|
count
|
|
);
|
|
|
|
int k = 0;
|
|
for (Node<E> p = first; p != null; p = p.next)
|
|
a[k++] = (T)p.item;
|
|
if (a.length > k)
|
|
a[k] = null;
|
|
return a;
|
|
} finally {
|
|
lock.unlock();
|
|
}
|
|
}
|
|
|
|
public String toString() {
|
|
lock.lock();
|
|
try {
|
|
return super.toString();
|
|
} finally {
|
|
lock.unlock();
|
|
}
|
|
}
|
|
|
|
/**
|
|
* Atomically removes all of the elements from this deque.
|
|
* The deque will be empty after this call returns.
|
|
*/
|
|
public void clear() {
|
|
lock.lock();
|
|
try {
|
|
first = last = null;
|
|
count = 0;
|
|
notFull.signalAll();
|
|
} finally {
|
|
lock.unlock();
|
|
}
|
|
}
|
|
|
|
/**
|
|
* Returns an iterator over the elements in this deque in proper sequence.
|
|
* The elements will be returned in order from first (head) to last (tail).
|
|
* The returned <tt>Iterator</tt> is a "weakly consistent" iterator that
|
|
* will never throw {@link ConcurrentModificationException},
|
|
* and guarantees to traverse elements as they existed upon
|
|
* construction of the iterator, and may (but is not guaranteed to)
|
|
* reflect any modifications subsequent to construction.
|
|
*
|
|
* @return an iterator over the elements in this deque in proper sequence
|
|
*/
|
|
public Iterator<E> iterator() {
|
|
return new Itr();
|
|
}
|
|
|
|
/**
|
|
* Returns an iterator over the elements in this deque in reverse
|
|
* sequential order. The elements will be returned in order from
|
|
* last (tail) to first (head).
|
|
* The returned <tt>Iterator</tt> is a "weakly consistent" iterator that
|
|
* will never throw {@link ConcurrentModificationException},
|
|
* and guarantees to traverse elements as they existed upon
|
|
* construction of the iterator, and may (but is not guaranteed to)
|
|
* reflect any modifications subsequent to construction.
|
|
*/
|
|
public Iterator<E> descendingIterator() {
|
|
return new DescendingItr();
|
|
}
|
|
|
|
/**
|
|
* Base class for Iterators for LinkedBlockingDeque
|
|
*/
|
|
private abstract class AbstractItr implements Iterator<E> {
|
|
/**
|
|
* The next node to return in next
|
|
*/
|
|
Node<E> next;
|
|
|
|
/**
|
|
* nextItem holds on to item fields because once we claim that
|
|
* an element exists in hasNext(), we must return item read
|
|
* under lock (in advance()) even if it was in the process of
|
|
* being removed when hasNext() was called.
|
|
*/
|
|
E nextItem;
|
|
|
|
/**
|
|
* Node returned by most recent call to next. Needed by remove.
|
|
* Reset to null if this element is deleted by a call to remove.
|
|
*/
|
|
private Node<E> lastRet;
|
|
|
|
AbstractItr() {
|
|
advance(); // set to initial position
|
|
}
|
|
|
|
/**
|
|
* Advances next, or if not yet initialized, sets to first node.
|
|
* Implemented to move forward vs backward in the two subclasses.
|
|
*/
|
|
abstract void advance();
|
|
|
|
public boolean hasNext() {
|
|
return next != null;
|
|
}
|
|
|
|
public E next() {
|
|
if (next == null)
|
|
throw new NoSuchElementException();
|
|
lastRet = next;
|
|
E x = nextItem;
|
|
advance();
|
|
return x;
|
|
}
|
|
|
|
public void remove() {
|
|
Node<E> n = lastRet;
|
|
if (n == null)
|
|
throw new IllegalStateException();
|
|
lastRet = null;
|
|
// Note: removeNode rescans looking for this node to make
|
|
// sure it was not already removed. Otherwise, trying to
|
|
// re-remove could corrupt list.
|
|
removeNode(n);
|
|
}
|
|
}
|
|
|
|
/** Forward iterator */
|
|
private class Itr extends AbstractItr {
|
|
void advance() {
|
|
final ReentrantLock lock = LinkedBlockingDeque.this.lock;
|
|
lock.lock();
|
|
try {
|
|
next = (next == null)? first : next.next;
|
|
nextItem = (next == null)? null : next.item;
|
|
} finally {
|
|
lock.unlock();
|
|
}
|
|
}
|
|
}
|
|
|
|
/**
|
|
* Descending iterator for LinkedBlockingDeque
|
|
*/
|
|
private class DescendingItr extends AbstractItr {
|
|
void advance() {
|
|
final ReentrantLock lock = LinkedBlockingDeque.this.lock;
|
|
lock.lock();
|
|
try {
|
|
next = (next == null)? last : next.prev;
|
|
nextItem = (next == null)? null : next.item;
|
|
} finally {
|
|
lock.unlock();
|
|
}
|
|
}
|
|
}
|
|
|
|
/**
|
|
* Save the state of this deque to a stream (that is, serialize it).
|
|
*
|
|
* @serialData The capacity (int), followed by elements (each an
|
|
* <tt>Object</tt>) in the proper order, followed by a null
|
|
* @param s the stream
|
|
*/
|
|
private void writeObject(java.io.ObjectOutputStream s)
|
|
throws java.io.IOException {
|
|
lock.lock();
|
|
try {
|
|
// Write out capacity and any hidden stuff
|
|
s.defaultWriteObject();
|
|
// Write out all elements in the proper order.
|
|
for (Node<E> p = first; p != null; p = p.next)
|
|
s.writeObject(p.item);
|
|
// Use trailing null as sentinel
|
|
s.writeObject(null);
|
|
} finally {
|
|
lock.unlock();
|
|
}
|
|
}
|
|
|
|
/**
|
|
* Reconstitute this deque from a stream (that is,
|
|
* deserialize it).
|
|
* @param s the stream
|
|
*/
|
|
private void readObject(java.io.ObjectInputStream s)
|
|
throws java.io.IOException, ClassNotFoundException {
|
|
s.defaultReadObject();
|
|
count = 0;
|
|
first = null;
|
|
last = null;
|
|
// Read in all elements and place in queue
|
|
for (;;) {
|
|
E item = (E)s.readObject();
|
|
if (item == null)
|
|
break;
|
|
add(item);
|
|
}
|
|
}
|
|
|
|
}
|