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Revision: 1.68
Committed: Sat Oct 16 16:48:01 2010 UTC (13 years, 7 months ago) by jsr166
Branch: MAIN
Changes since 1.67: +1 -1 lines
Log Message:
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File Contents

# User Rev Content
1 dl 1.2 /*
2     * Written by Doug Lea with assistance from members of JCP JSR-166
3 dl 1.17 * Expert Group. Adapted and released, under explicit permission,
4 dl 1.15 * from JDK ArrayList.java which carries the following copyright:
5 dl 1.3 *
6     * Copyright 1997 by Sun Microsystems, Inc.,
7     * 901 San Antonio Road, Palo Alto, California, 94303, U.S.A.
8     * All rights reserved.
9     *
10     * This software is the confidential and proprietary information
11     * of Sun Microsystems, Inc. ("Confidential Information"). You
12     * shall not disclose such Confidential Information and shall use
13     * it only in accordance with the terms of the license agreement
14     * you entered into with Sun.
15 dl 1.2 */
16    
17 tim 1.1 package java.util.concurrent;
18     import java.util.*;
19 dl 1.42 import java.util.concurrent.locks.*;
20 jsr166 1.45 import sun.misc.Unsafe;
21 tim 1.1
22     /**
23 dl 1.28 * A thread-safe variant of {@link java.util.ArrayList} in which all mutative
24 jsr166 1.35 * operations (<tt>add</tt>, <tt>set</tt>, and so on) are implemented by
25     * making a fresh copy of the underlying array.
26 tim 1.1 *
27 dl 1.26 * <p> This is ordinarily too costly, but may be <em>more</em> efficient
28 dl 1.12 * than alternatives when traversal operations vastly outnumber
29     * mutations, and is useful when you cannot or don't want to
30     * synchronize traversals, yet need to preclude interference among
31 dl 1.15 * concurrent threads. The "snapshot" style iterator method uses a
32     * reference to the state of the array at the point that the iterator
33     * was created. This array never changes during the lifetime of the
34     * iterator, so interference is impossible and the iterator is
35     * guaranteed not to throw <tt>ConcurrentModificationException</tt>.
36     * The iterator will not reflect additions, removals, or changes to
37     * the list since the iterator was created. Element-changing
38 jsr166 1.35 * operations on iterators themselves (<tt>remove</tt>, <tt>set</tt>, and
39     * <tt>add</tt>) are not supported. These methods throw
40 dl 1.15 * <tt>UnsupportedOperationException</tt>.
41 dl 1.24 *
42 jsr166 1.35 * <p>All elements are permitted, including <tt>null</tt>.
43     *
44 jsr166 1.56 * <p>Memory consistency effects: As with other concurrent
45     * collections, actions in a thread prior to placing an object into a
46     * {@code CopyOnWriteArrayList}
47     * <a href="package-summary.html#MemoryVisibility"><i>happen-before</i></a>
48     * actions subsequent to the access or removal of that element from
49     * the {@code CopyOnWriteArrayList} in another thread.
50     *
51 dl 1.24 * <p>This class is a member of the
52 jsr166 1.64 * <a href="{@docRoot}/../technotes/guides/collections/index.html">
53 dl 1.24 * Java Collections Framework</a>.
54     *
55 dl 1.6 * @since 1.5
56     * @author Doug Lea
57 dl 1.19 * @param <E> the type of elements held in this collection
58 dl 1.6 */
59 tim 1.1 public class CopyOnWriteArrayList<E>
60 dl 1.40 implements List<E>, RandomAccess, Cloneable, java.io.Serializable {
61 dl 1.11 private static final long serialVersionUID = 8673264195747942595L;
62 tim 1.1
63 dl 1.42 /** The lock protecting all mutators */
64     transient final ReentrantLock lock = new ReentrantLock();
65    
66 dl 1.40 /** The array, accessed only via getArray/setArray. */
67 dl 1.41 private volatile transient Object[] array;
68 tim 1.1
69 dl 1.57 /**
70 jsr166 1.60 * Gets the array. Non-private so as to also be accessible
71     * from CopyOnWriteArraySet class.
72 dl 1.57 */
73 jsr166 1.63 final Object[] getArray() {
74 jsr166 1.59 return array;
75 dl 1.57 }
76    
77     /**
78 jsr166 1.60 * Sets the array.
79 dl 1.57 */
80 jsr166 1.59 final void setArray(Object[] a) {
81     array = a;
82 dl 1.57 }
83 tim 1.1
84     /**
85 dl 1.15 * Creates an empty list.
86 tim 1.1 */
87     public CopyOnWriteArrayList() {
88 dl 1.41 setArray(new Object[0]);
89 tim 1.1 }
90    
91     /**
92 dl 1.15 * Creates a list containing the elements of the specified
93 jsr166 1.32 * collection, in the order they are returned by the collection's
94 tim 1.1 * iterator.
95 jsr166 1.32 *
96 dl 1.6 * @param c the collection of initially held elements
97 jsr166 1.35 * @throws NullPointerException if the specified collection is null
98 tim 1.1 */
99 tim 1.22 public CopyOnWriteArrayList(Collection<? extends E> c) {
100 jsr166 1.67 Object[] elements = c.toArray();
101     // c.toArray might (incorrectly) not return Object[] (see 6260652)
102     if (elements.getClass() != Object[].class)
103     elements = Arrays.copyOf(elements, elements.length, Object[].class);
104     setArray(elements);
105 tim 1.1 }
106    
107     /**
108 jsr166 1.35 * Creates a list holding a copy of the given array.
109 tim 1.9 *
110     * @param toCopyIn the array (a copy of this array is used as the
111     * internal array)
112 jsr166 1.38 * @throws NullPointerException if the specified array is null
113 jsr166 1.30 */
114 tim 1.1 public CopyOnWriteArrayList(E[] toCopyIn) {
115 jsr166 1.67 setArray(Arrays.copyOf(toCopyIn, toCopyIn.length, Object[].class));
116 tim 1.1 }
117    
118     /**
119 dl 1.15 * Returns the number of elements in this list.
120 tim 1.1 *
121 jsr166 1.35 * @return the number of elements in this list
122 tim 1.1 */
123     public int size() {
124 dl 1.40 return getArray().length;
125 tim 1.1 }
126    
127     /**
128 jsr166 1.35 * Returns <tt>true</tt> if this list contains no elements.
129 tim 1.1 *
130 jsr166 1.35 * @return <tt>true</tt> if this list contains no elements
131 tim 1.1 */
132     public boolean isEmpty() {
133     return size() == 0;
134     }
135    
136 dl 1.43 /**
137     * Test for equality, coping with nulls.
138     */
139     private static boolean eq(Object o1, Object o2) {
140     return (o1 == null ? o2 == null : o1.equals(o2));
141     }
142    
143 dl 1.41 /**
144 dl 1.40 * static version of indexOf, to allow repeated calls without
145 dl 1.41 * needing to re-acquire array each time.
146 dl 1.40 * @param o element to search for
147     * @param elements the array
148     * @param index first index to search
149     * @param fence one past last index to search
150     * @return index of element, or -1 if absent
151     */
152 dl 1.41 private static int indexOf(Object o, Object[] elements,
153 dl 1.40 int index, int fence) {
154     if (o == null) {
155     for (int i = index; i < fence; i++)
156     if (elements[i] == null)
157     return i;
158     } else {
159     for (int i = index; i < fence; i++)
160     if (o.equals(elements[i]))
161     return i;
162     }
163     return -1;
164     }
165 dl 1.41
166     /**
167 dl 1.40 * static version of lastIndexOf.
168     * @param o element to search for
169     * @param elements the array
170     * @param index first index to search
171     * @return index of element, or -1 if absent
172     */
173     private static int lastIndexOf(Object o, Object[] elements, int index) {
174     if (o == null) {
175     for (int i = index; i >= 0; i--)
176     if (elements[i] == null)
177     return i;
178     } else {
179     for (int i = index; i >= 0; i--)
180     if (o.equals(elements[i]))
181     return i;
182     }
183     return -1;
184     }
185    
186 tim 1.1 /**
187 dl 1.15 * Returns <tt>true</tt> if this list contains the specified element.
188 jsr166 1.35 * More formally, returns <tt>true</tt> if and only if this list contains
189     * at least one element <tt>e</tt> such that
190     * <tt>(o==null&nbsp;?&nbsp;e==null&nbsp;:&nbsp;o.equals(e))</tt>.
191 tim 1.1 *
192 jsr166 1.35 * @param o element whose presence in this list is to be tested
193     * @return <tt>true</tt> if this list contains the specified element
194 tim 1.1 */
195 jsr166 1.35 public boolean contains(Object o) {
196 dl 1.41 Object[] elements = getArray();
197 dl 1.40 return indexOf(o, elements, 0, elements.length) >= 0;
198 tim 1.1 }
199    
200     /**
201 jsr166 1.35 * {@inheritDoc}
202 tim 1.1 */
203 jsr166 1.35 public int indexOf(Object o) {
204 dl 1.41 Object[] elements = getArray();
205 dl 1.40 return indexOf(o, elements, 0, elements.length);
206 tim 1.1 }
207    
208     /**
209 jsr166 1.35 * Returns the index of the first occurrence of the specified element in
210     * this list, searching forwards from <tt>index</tt>, or returns -1 if
211     * the element is not found.
212     * More formally, returns the lowest index <tt>i</tt> such that
213     * <tt>(i&nbsp;&gt;=&nbsp;index&nbsp;&amp;&amp;&nbsp;(e==null&nbsp;?&nbsp;get(i)==null&nbsp;:&nbsp;e.equals(get(i))))</tt>,
214     * or -1 if there is no such index.
215     *
216     * @param e element to search for
217     * @param index index to start searching from
218     * @return the index of the first occurrence of the element in
219     * this list at position <tt>index</tt> or later in the list;
220     * <tt>-1</tt> if the element is not found.
221     * @throws IndexOutOfBoundsException if the specified index is negative
222 tim 1.1 */
223 jsr166 1.35 public int indexOf(E e, int index) {
224 dl 1.41 Object[] elements = getArray();
225 jsr166 1.67 return indexOf(e, elements, index, elements.length);
226 tim 1.1 }
227    
228     /**
229 jsr166 1.35 * {@inheritDoc}
230 tim 1.1 */
231 jsr166 1.35 public int lastIndexOf(Object o) {
232 dl 1.41 Object[] elements = getArray();
233 dl 1.40 return lastIndexOf(o, elements, elements.length - 1);
234 tim 1.1 }
235    
236     /**
237 jsr166 1.35 * Returns the index of the last occurrence of the specified element in
238     * this list, searching backwards from <tt>index</tt>, or returns -1 if
239     * the element is not found.
240     * More formally, returns the highest index <tt>i</tt> such that
241     * <tt>(i&nbsp;&lt;=&nbsp;index&nbsp;&amp;&amp;&nbsp;(e==null&nbsp;?&nbsp;get(i)==null&nbsp;:&nbsp;e.equals(get(i))))</tt>,
242     * or -1 if there is no such index.
243     *
244     * @param e element to search for
245     * @param index index to start searching backwards from
246     * @return the index of the last occurrence of the element at position
247     * less than or equal to <tt>index</tt> in this list;
248     * -1 if the element is not found.
249     * @throws IndexOutOfBoundsException if the specified index is greater
250     * than or equal to the current size of this list
251 tim 1.1 */
252 jsr166 1.35 public int lastIndexOf(E e, int index) {
253 dl 1.41 Object[] elements = getArray();
254 jsr166 1.67 return lastIndexOf(e, elements, index);
255 tim 1.1 }
256    
257     /**
258     * Returns a shallow copy of this list. (The elements themselves
259     * are not copied.)
260     *
261 jsr166 1.35 * @return a clone of this list
262 tim 1.1 */
263     public Object clone() {
264     try {
265 dl 1.52 CopyOnWriteArrayList c = (CopyOnWriteArrayList)(super.clone());
266     c.resetLock();
267     return c;
268 tim 1.1 } catch (CloneNotSupportedException e) {
269     // this shouldn't happen, since we are Cloneable
270     throw new InternalError();
271     }
272     }
273    
274     /**
275     * Returns an array containing all of the elements in this list
276 jsr166 1.35 * in proper sequence (from first to last element).
277     *
278     * <p>The returned array will be "safe" in that no references to it are
279     * maintained by this list. (In other words, this method must allocate
280     * a new array). The caller is thus free to modify the returned array.
281 jsr166 1.36 *
282 jsr166 1.35 * <p>This method acts as bridge between array-based and collection-based
283     * APIs.
284     *
285     * @return an array containing all the elements in this list
286 tim 1.1 */
287     public Object[] toArray() {
288 dl 1.40 Object[] elements = getArray();
289 jsr166 1.67 return Arrays.copyOf(elements, elements.length);
290 tim 1.1 }
291    
292     /**
293 jsr166 1.35 * Returns an array containing all of the elements in this list in
294     * proper sequence (from first to last element); the runtime type of
295     * the returned array is that of the specified array. If the list fits
296     * in the specified array, it is returned therein. Otherwise, a new
297     * array is allocated with the runtime type of the specified array and
298     * the size of this list.
299 jsr166 1.32 *
300     * <p>If this list fits in the specified array with room to spare
301 jsr166 1.35 * (i.e., the array has more elements than this list), the element in
302     * the array immediately following the end of the list is set to
303     * <tt>null</tt>. (This is useful in determining the length of this
304     * list <i>only</i> if the caller knows that this list does not contain
305     * any null elements.)
306     *
307     * <p>Like the {@link #toArray()} method, this method acts as bridge between
308     * array-based and collection-based APIs. Further, this method allows
309     * precise control over the runtime type of the output array, and may,
310     * under certain circumstances, be used to save allocation costs.
311     *
312     * <p>Suppose <tt>x</tt> is a list known to contain only strings.
313     * The following code can be used to dump the list into a newly
314     * allocated array of <tt>String</tt>:
315     *
316     * <pre>
317     * String[] y = x.toArray(new String[0]);</pre>
318     *
319     * Note that <tt>toArray(new Object[0])</tt> is identical in function to
320     * <tt>toArray()</tt>.
321 tim 1.1 *
322     * @param a the array into which the elements of the list are to
323 jsr166 1.35 * be stored, if it is big enough; otherwise, a new array of the
324     * same runtime type is allocated for this purpose.
325     * @return an array containing all the elements in this list
326     * @throws ArrayStoreException if the runtime type of the specified array
327     * is not a supertype of the runtime type of every element in
328     * this list
329     * @throws NullPointerException if the specified array is null
330 tim 1.1 */
331 jsr166 1.66 @SuppressWarnings("unchecked")
332 tim 1.1 public <T> T[] toArray(T a[]) {
333 dl 1.41 Object[] elements = getArray();
334 dl 1.40 int len = elements.length;
335     if (a.length < len)
336 jsr166 1.67 return (T[]) Arrays.copyOf(elements, len, a.getClass());
337     else {
338     System.arraycopy(elements, 0, a, 0, len);
339     if (a.length > len)
340     a[len] = null;
341     return a;
342     }
343 tim 1.1 }
344    
345     // Positional Access Operations
346    
347 jsr166 1.66 @SuppressWarnings("unchecked")
348     private E get(Object[] a, int index) {
349 jsr166 1.67 return (E) a[index];
350 jsr166 1.66 }
351    
352 tim 1.1 /**
353 jsr166 1.35 * {@inheritDoc}
354 tim 1.1 *
355 jsr166 1.35 * @throws IndexOutOfBoundsException {@inheritDoc}
356 tim 1.1 */
357     public E get(int index) {
358 jsr166 1.66 return get(getArray(), index);
359 tim 1.1 }
360    
361     /**
362 jsr166 1.35 * Replaces the element at the specified position in this list with the
363     * specified element.
364 tim 1.1 *
365 jsr166 1.35 * @throws IndexOutOfBoundsException {@inheritDoc}
366 tim 1.1 */
367 dl 1.42 public E set(int index, E element) {
368 jsr166 1.67 final ReentrantLock lock = this.lock;
369     lock.lock();
370     try {
371     Object[] elements = getArray();
372     E oldValue = get(elements, index);
373    
374     if (oldValue != element) {
375     int len = elements.length;
376     Object[] newElements = Arrays.copyOf(elements, len);
377     newElements[index] = element;
378     setArray(newElements);
379     } else {
380     // Not quite a no-op; ensures volatile write semantics
381     setArray(elements);
382     }
383     return oldValue;
384     } finally {
385     lock.unlock();
386     }
387 tim 1.1 }
388    
389     /**
390     * Appends the specified element to the end of this list.
391     *
392 dl 1.40 * @param e element to be appended to this list
393 jsr166 1.49 * @return <tt>true</tt> (as specified by {@link Collection#add})
394 tim 1.1 */
395 dl 1.42 public boolean add(E e) {
396 jsr166 1.67 final ReentrantLock lock = this.lock;
397     lock.lock();
398     try {
399     Object[] elements = getArray();
400     int len = elements.length;
401     Object[] newElements = Arrays.copyOf(elements, len + 1);
402     newElements[len] = e;
403     setArray(newElements);
404     return true;
405     } finally {
406     lock.unlock();
407     }
408 tim 1.1 }
409    
410     /**
411     * Inserts the specified element at the specified position in this
412     * list. Shifts the element currently at that position (if any) and
413     * any subsequent elements to the right (adds one to their indices).
414     *
415 jsr166 1.35 * @throws IndexOutOfBoundsException {@inheritDoc}
416 tim 1.1 */
417 dl 1.42 public void add(int index, E element) {
418 jsr166 1.67 final ReentrantLock lock = this.lock;
419     lock.lock();
420     try {
421     Object[] elements = getArray();
422     int len = elements.length;
423     if (index > len || index < 0)
424     throw new IndexOutOfBoundsException("Index: "+index+
425     ", Size: "+len);
426     Object[] newElements;
427     int numMoved = len - index;
428     if (numMoved == 0)
429     newElements = Arrays.copyOf(elements, len + 1);
430     else {
431     newElements = new Object[len + 1];
432     System.arraycopy(elements, 0, newElements, 0, index);
433     System.arraycopy(elements, index, newElements, index + 1,
434     numMoved);
435     }
436     newElements[index] = element;
437     setArray(newElements);
438     } finally {
439     lock.unlock();
440     }
441 tim 1.1 }
442    
443     /**
444     * Removes the element at the specified position in this list.
445     * Shifts any subsequent elements to the left (subtracts one from their
446 jsr166 1.35 * indices). Returns the element that was removed from the list.
447 tim 1.1 *
448 jsr166 1.35 * @throws IndexOutOfBoundsException {@inheritDoc}
449 tim 1.1 */
450 dl 1.42 public E remove(int index) {
451 jsr166 1.67 final ReentrantLock lock = this.lock;
452     lock.lock();
453     try {
454     Object[] elements = getArray();
455     int len = elements.length;
456     E oldValue = get(elements, index);
457     int numMoved = len - index - 1;
458     if (numMoved == 0)
459     setArray(Arrays.copyOf(elements, len - 1));
460     else {
461     Object[] newElements = new Object[len - 1];
462     System.arraycopy(elements, 0, newElements, 0, index);
463     System.arraycopy(elements, index + 1, newElements, index,
464     numMoved);
465     setArray(newElements);
466     }
467     return oldValue;
468     } finally {
469     lock.unlock();
470     }
471 tim 1.1 }
472    
473     /**
474 jsr166 1.35 * Removes the first occurrence of the specified element from this list,
475     * if it is present. If this list does not contain the element, it is
476     * unchanged. More formally, removes the element with the lowest index
477     * <tt>i</tt> such that
478     * <tt>(o==null&nbsp;?&nbsp;get(i)==null&nbsp;:&nbsp;o.equals(get(i)))</tt>
479     * (if such an element exists). Returns <tt>true</tt> if this list
480     * contained the specified element (or equivalently, if this list
481     * changed as a result of the call).
482 tim 1.1 *
483 jsr166 1.35 * @param o element to be removed from this list, if present
484     * @return <tt>true</tt> if this list contained the specified element
485 tim 1.1 */
486 dl 1.42 public boolean remove(Object o) {
487 jsr166 1.67 final ReentrantLock lock = this.lock;
488     lock.lock();
489     try {
490     Object[] elements = getArray();
491     int len = elements.length;
492     if (len != 0) {
493     // Copy while searching for element to remove
494     // This wins in the normal case of element being present
495     int newlen = len - 1;
496     Object[] newElements = new Object[newlen];
497    
498     for (int i = 0; i < newlen; ++i) {
499     if (eq(o, elements[i])) {
500     // found one; copy remaining and exit
501     for (int k = i + 1; k < len; ++k)
502     newElements[k-1] = elements[k];
503     setArray(newElements);
504     return true;
505     } else
506     newElements[i] = elements[i];
507     }
508    
509     // special handling for last cell
510     if (eq(o, elements[newlen])) {
511     setArray(newElements);
512     return true;
513     }
514     }
515     return false;
516     } finally {
517     lock.unlock();
518     }
519 tim 1.1 }
520    
521     /**
522 jsr166 1.35 * Removes from this list all of the elements whose index is between
523     * <tt>fromIndex</tt>, inclusive, and <tt>toIndex</tt>, exclusive.
524     * Shifts any succeeding elements to the left (reduces their index).
525 dl 1.15 * This call shortens the list by <tt>(toIndex - fromIndex)</tt> elements.
526     * (If <tt>toIndex==fromIndex</tt>, this operation has no effect.)
527 tim 1.1 *
528 jsr166 1.35 * @param fromIndex index of first element to be removed
529     * @param toIndex index after last element to be removed
530 jsr166 1.66 * @throws IndexOutOfBoundsException if fromIndex or toIndex out of range
531     * (@code{fromIndex < 0 || toIndex > size() || toIndex < fromIndex})
532 tim 1.1 */
533 dl 1.42 private void removeRange(int fromIndex, int toIndex) {
534 jsr166 1.67 final ReentrantLock lock = this.lock;
535     lock.lock();
536     try {
537     Object[] elements = getArray();
538     int len = elements.length;
539    
540     if (fromIndex < 0 || toIndex > len || toIndex < fromIndex)
541     throw new IndexOutOfBoundsException();
542     int newlen = len - (toIndex - fromIndex);
543     int numMoved = len - toIndex;
544     if (numMoved == 0)
545     setArray(Arrays.copyOf(elements, newlen));
546     else {
547     Object[] newElements = new Object[newlen];
548     System.arraycopy(elements, 0, newElements, 0, fromIndex);
549     System.arraycopy(elements, toIndex, newElements,
550     fromIndex, numMoved);
551     setArray(newElements);
552     }
553     } finally {
554     lock.unlock();
555     }
556 tim 1.1 }
557    
558     /**
559     * Append the element if not present.
560 jsr166 1.38 *
561 dl 1.40 * @param e element to be added to this list, if absent
562 jsr166 1.38 * @return <tt>true</tt> if the element was added
563 jsr166 1.30 */
564 dl 1.42 public boolean addIfAbsent(E e) {
565 jsr166 1.67 final ReentrantLock lock = this.lock;
566     lock.lock();
567     try {
568     // Copy while checking if already present.
569     // This wins in the most common case where it is not present
570     Object[] elements = getArray();
571     int len = elements.length;
572     Object[] newElements = new Object[len + 1];
573     for (int i = 0; i < len; ++i) {
574     if (eq(e, elements[i]))
575     return false; // exit, throwing away copy
576     else
577     newElements[i] = elements[i];
578     }
579     newElements[len] = e;
580     setArray(newElements);
581     return true;
582     } finally {
583     lock.unlock();
584     }
585 tim 1.1 }
586    
587     /**
588 jsr166 1.35 * Returns <tt>true</tt> if this list contains all of the elements of the
589 jsr166 1.32 * specified collection.
590 jsr166 1.34 *
591 jsr166 1.36 * @param c collection to be checked for containment in this list
592 jsr166 1.35 * @return <tt>true</tt> if this list contains all of the elements of the
593     * specified collection
594     * @throws NullPointerException if the specified collection is null
595 jsr166 1.38 * @see #contains(Object)
596 tim 1.1 */
597 tim 1.7 public boolean containsAll(Collection<?> c) {
598 dl 1.41 Object[] elements = getArray();
599 dl 1.40 int len = elements.length;
600 jsr166 1.67 for (Object e : c) {
601 dl 1.41 if (indexOf(e, elements, 0, len) < 0)
602 tim 1.1 return false;
603 jsr166 1.67 }
604 tim 1.1 return true;
605     }
606    
607     /**
608 jsr166 1.32 * Removes from this list all of its elements that are contained in
609     * the specified collection. This is a particularly expensive operation
610 tim 1.1 * in this class because of the need for an internal temporary array.
611     *
612 jsr166 1.35 * @param c collection containing elements to be removed from this list
613     * @return <tt>true</tt> if this list changed as a result of the call
614 jsr166 1.38 * @throws ClassCastException if the class of an element of this list
615     * is incompatible with the specified collection (optional)
616     * @throws NullPointerException if this list contains a null element and the
617     * specified collection does not permit null elements (optional),
618     * or if the specified collection is null
619     * @see #remove(Object)
620 tim 1.1 */
621 dl 1.42 public boolean removeAll(Collection<?> c) {
622 jsr166 1.67 final ReentrantLock lock = this.lock;
623     lock.lock();
624     try {
625     Object[] elements = getArray();
626     int len = elements.length;
627     if (len != 0) {
628     // temp array holds those elements we know we want to keep
629     int newlen = 0;
630     Object[] temp = new Object[len];
631     for (int i = 0; i < len; ++i) {
632     Object element = elements[i];
633     if (!c.contains(element))
634     temp[newlen++] = element;
635     }
636     if (newlen != len) {
637     setArray(Arrays.copyOf(temp, newlen));
638     return true;
639     }
640     }
641     return false;
642     } finally {
643     lock.unlock();
644     }
645 tim 1.1 }
646    
647     /**
648 jsr166 1.32 * Retains only the elements in this list that are contained in the
649 jsr166 1.35 * specified collection. In other words, removes from this list all of
650     * its elements that are not contained in the specified collection.
651 jsr166 1.32 *
652 jsr166 1.35 * @param c collection containing elements to be retained in this list
653     * @return <tt>true</tt> if this list changed as a result of the call
654 jsr166 1.38 * @throws ClassCastException if the class of an element of this list
655     * is incompatible with the specified collection (optional)
656     * @throws NullPointerException if this list contains a null element and the
657     * specified collection does not permit null elements (optional),
658     * or if the specified collection is null
659     * @see #remove(Object)
660 tim 1.1 */
661 dl 1.42 public boolean retainAll(Collection<?> c) {
662 jsr166 1.67 final ReentrantLock lock = this.lock;
663     lock.lock();
664     try {
665     Object[] elements = getArray();
666     int len = elements.length;
667     if (len != 0) {
668     // temp array holds those elements we know we want to keep
669     int newlen = 0;
670     Object[] temp = new Object[len];
671     for (int i = 0; i < len; ++i) {
672     Object element = elements[i];
673     if (c.contains(element))
674     temp[newlen++] = element;
675     }
676     if (newlen != len) {
677     setArray(Arrays.copyOf(temp, newlen));
678     return true;
679     }
680     }
681     return false;
682     } finally {
683     lock.unlock();
684     }
685 tim 1.1 }
686    
687     /**
688 jsr166 1.32 * Appends all of the elements in the specified collection that
689 tim 1.1 * are not already contained in this list, to the end of
690     * this list, in the order that they are returned by the
691 jsr166 1.32 * specified collection's iterator.
692 tim 1.1 *
693 jsr166 1.36 * @param c collection containing elements to be added to this list
694 tim 1.1 * @return the number of elements added
695 jsr166 1.35 * @throws NullPointerException if the specified collection is null
696 jsr166 1.38 * @see #addIfAbsent(Object)
697 tim 1.1 */
698 dl 1.42 public int addAllAbsent(Collection<? extends E> c) {
699 jsr166 1.67 Object[] cs = c.toArray();
700     if (cs.length == 0)
701     return 0;
702     Object[] uniq = new Object[cs.length];
703     final ReentrantLock lock = this.lock;
704     lock.lock();
705     try {
706     Object[] elements = getArray();
707     int len = elements.length;
708     int added = 0;
709     for (int i = 0; i < cs.length; ++i) { // scan for duplicates
710     Object e = cs[i];
711     if (indexOf(e, elements, 0, len) < 0 &&
712     indexOf(e, uniq, 0, added) < 0)
713     uniq[added++] = e;
714     }
715     if (added > 0) {
716     Object[] newElements = Arrays.copyOf(elements, len + added);
717     System.arraycopy(uniq, 0, newElements, len, added);
718     setArray(newElements);
719     }
720     return added;
721     } finally {
722     lock.unlock();
723     }
724 tim 1.1 }
725    
726     /**
727     * Removes all of the elements from this list.
728 jsr166 1.38 * The list will be empty after this call returns.
729 tim 1.1 */
730 dl 1.42 public void clear() {
731 jsr166 1.67 final ReentrantLock lock = this.lock;
732     lock.lock();
733     try {
734     setArray(new Object[0]);
735     } finally {
736     lock.unlock();
737     }
738 tim 1.1 }
739    
740     /**
741 jsr166 1.32 * Appends all of the elements in the specified collection to the end
742     * of this list, in the order that they are returned by the specified
743     * collection's iterator.
744 tim 1.1 *
745 jsr166 1.36 * @param c collection containing elements to be added to this list
746 jsr166 1.38 * @return <tt>true</tt> if this list changed as a result of the call
747 jsr166 1.35 * @throws NullPointerException if the specified collection is null
748 jsr166 1.38 * @see #add(Object)
749 tim 1.1 */
750 dl 1.42 public boolean addAll(Collection<? extends E> c) {
751 jsr166 1.67 Object[] cs = c.toArray();
752     if (cs.length == 0)
753     return false;
754     final ReentrantLock lock = this.lock;
755     lock.lock();
756     try {
757     Object[] elements = getArray();
758     int len = elements.length;
759     Object[] newElements = Arrays.copyOf(elements, len + cs.length);
760     System.arraycopy(cs, 0, newElements, len, cs.length);
761     setArray(newElements);
762     return true;
763     } finally {
764     lock.unlock();
765     }
766 tim 1.1 }
767    
768     /**
769 jsr166 1.35 * Inserts all of the elements in the specified collection into this
770 tim 1.1 * list, starting at the specified position. Shifts the element
771     * currently at that position (if any) and any subsequent elements to
772     * the right (increases their indices). The new elements will appear
773 jsr166 1.38 * in this list in the order that they are returned by the
774     * specified collection's iterator.
775 tim 1.1 *
776 jsr166 1.35 * @param index index at which to insert the first element
777     * from the specified collection
778 jsr166 1.36 * @param c collection containing elements to be added to this list
779 jsr166 1.35 * @return <tt>true</tt> if this list changed as a result of the call
780     * @throws IndexOutOfBoundsException {@inheritDoc}
781     * @throws NullPointerException if the specified collection is null
782 jsr166 1.38 * @see #add(int,Object)
783 tim 1.1 */
784 dl 1.42 public boolean addAll(int index, Collection<? extends E> c) {
785 jsr166 1.67 Object[] cs = c.toArray();
786     final ReentrantLock lock = this.lock;
787     lock.lock();
788     try {
789     Object[] elements = getArray();
790     int len = elements.length;
791     if (index > len || index < 0)
792     throw new IndexOutOfBoundsException("Index: "+index+
793     ", Size: "+len);
794     if (cs.length == 0)
795     return false;
796     int numMoved = len - index;
797     Object[] newElements;
798     if (numMoved == 0)
799     newElements = Arrays.copyOf(elements, len + cs.length);
800     else {
801     newElements = new Object[len + cs.length];
802     System.arraycopy(elements, 0, newElements, 0, index);
803     System.arraycopy(elements, index,
804     newElements, index + cs.length,
805     numMoved);
806     }
807     System.arraycopy(cs, 0, newElements, index, cs.length);
808     setArray(newElements);
809     return true;
810     } finally {
811     lock.unlock();
812     }
813 tim 1.1 }
814    
815     /**
816     * Save the state of the list to a stream (i.e., serialize it).
817     *
818     * @serialData The length of the array backing the list is emitted
819     * (int), followed by all of its elements (each an Object)
820     * in the proper order.
821 dl 1.6 * @param s the stream
822 tim 1.1 */
823     private void writeObject(java.io.ObjectOutputStream s)
824     throws java.io.IOException{
825    
826     // Write out element count, and any hidden stuff
827     s.defaultWriteObject();
828    
829 dl 1.41 Object[] elements = getArray();
830 jsr166 1.67 int len = elements.length;
831 tim 1.1 // Write out array length
832 dl 1.40 s.writeInt(len);
833 tim 1.1
834     // Write out all elements in the proper order.
835 dl 1.40 for (int i = 0; i < len; i++)
836     s.writeObject(elements[i]);
837 tim 1.1 }
838    
839     /**
840     * Reconstitute the list from a stream (i.e., deserialize it).
841 dl 1.6 * @param s the stream
842 tim 1.1 */
843 dl 1.12 private void readObject(java.io.ObjectInputStream s)
844 tim 1.1 throws java.io.IOException, ClassNotFoundException {
845    
846     // Read in size, and any hidden stuff
847     s.defaultReadObject();
848    
849 dl 1.42 // bind to new lock
850     resetLock();
851    
852 tim 1.1 // Read in array length and allocate array
853 dl 1.40 int len = s.readInt();
854 dl 1.41 Object[] elements = new Object[len];
855 tim 1.1
856     // Read in all elements in the proper order.
857 dl 1.40 for (int i = 0; i < len; i++)
858 dl 1.41 elements[i] = s.readObject();
859 dl 1.40 setArray(elements);
860 tim 1.1 }
861    
862     /**
863 jsr166 1.55 * Returns a string representation of this list. The string
864     * representation consists of the string representations of the list's
865     * elements in the order they are returned by its iterator, enclosed in
866     * square brackets (<tt>"[]"</tt>). Adjacent elements are separated by
867     * the characters <tt>", "</tt> (comma and space). Elements are
868     * converted to strings as by {@link String#valueOf(Object)}.
869     *
870     * @return a string representation of this list
871 tim 1.1 */
872     public String toString() {
873 jsr166 1.67 return Arrays.toString(getArray());
874 tim 1.1 }
875    
876     /**
877 jsr166 1.35 * Compares the specified object with this list for equality.
878 jsr166 1.60 * Returns {@code true} if the specified object is the same object
879     * as this object, or if it is also a {@link List} and the sequence
880     * of elements returned by an {@linkplain List#iterator() iterator}
881     * over the specified list is the same as the sequence returned by
882     * an iterator over this list. The two sequences are considered to
883     * be the same if they have the same length and corresponding
884     * elements at the same position in the sequence are <em>equal</em>.
885     * Two elements {@code e1} and {@code e2} are considered
886     * <em>equal</em> if {@code (e1==null ? e2==null : e1.equals(e2))}.
887 tim 1.1 *
888 jsr166 1.35 * @param o the object to be compared for equality with this list
889 jsr166 1.60 * @return {@code true} if the specified object is equal to this list
890 tim 1.1 */
891     public boolean equals(Object o) {
892     if (o == this)
893     return true;
894     if (!(o instanceof List))
895     return false;
896    
897 dl 1.57 List<?> list = (List<?>)(o);
898 jsr166 1.67 Iterator<?> it = list.iterator();
899     Object[] elements = getArray();
900     int len = elements.length;
901 jsr166 1.60 for (int i = 0; i < len; ++i)
902     if (!it.hasNext() || !eq(elements[i], it.next()))
903 dl 1.57 return false;
904 jsr166 1.60 if (it.hasNext())
905 tim 1.1 return false;
906     return true;
907     }
908    
909     /**
910 jsr166 1.35 * Returns the hash code value for this list.
911 dl 1.26 *
912 jsr166 1.47 * <p>This implementation uses the definition in {@link List#hashCode}.
913     *
914     * @return the hash code value for this list
915 tim 1.1 */
916     public int hashCode() {
917     int hashCode = 1;
918 jsr166 1.67 Object[] elements = getArray();
919     int len = elements.length;
920     for (int i = 0; i < len; ++i) {
921     Object obj = elements[i];
922 jsr166 1.45 hashCode = 31*hashCode + (obj==null ? 0 : obj.hashCode());
923 tim 1.1 }
924     return hashCode;
925     }
926    
927     /**
928 jsr166 1.35 * Returns an iterator over the elements in this list in proper sequence.
929     *
930     * <p>The returned iterator provides a snapshot of the state of the list
931     * when the iterator was constructed. No synchronization is needed while
932     * traversing the iterator. The iterator does <em>NOT</em> support the
933     * <tt>remove</tt> method.
934     *
935     * @return an iterator over the elements in this list in proper sequence
936 tim 1.1 */
937     public Iterator<E> iterator() {
938 dl 1.40 return new COWIterator<E>(getArray(), 0);
939 tim 1.1 }
940    
941     /**
942 jsr166 1.35 * {@inheritDoc}
943 tim 1.1 *
944 jsr166 1.35 * <p>The returned iterator provides a snapshot of the state of the list
945     * when the iterator was constructed. No synchronization is needed while
946     * traversing the iterator. The iterator does <em>NOT</em> support the
947     * <tt>remove</tt>, <tt>set</tt> or <tt>add</tt> methods.
948 tim 1.1 */
949     public ListIterator<E> listIterator() {
950 dl 1.40 return new COWIterator<E>(getArray(), 0);
951 tim 1.1 }
952    
953     /**
954 jsr166 1.35 * {@inheritDoc}
955     *
956 jsr166 1.50 * <p>The returned iterator provides a snapshot of the state of the list
957     * when the iterator was constructed. No synchronization is needed while
958     * traversing the iterator. The iterator does <em>NOT</em> support the
959     * <tt>remove</tt>, <tt>set</tt> or <tt>add</tt> methods.
960 jsr166 1.35 *
961     * @throws IndexOutOfBoundsException {@inheritDoc}
962 tim 1.1 */
963     public ListIterator<E> listIterator(final int index) {
964 dl 1.41 Object[] elements = getArray();
965 dl 1.40 int len = elements.length;
966 jsr166 1.45 if (index<0 || index>len)
967     throw new IndexOutOfBoundsException("Index: "+index);
968 tim 1.1
969 dl 1.48 return new COWIterator<E>(elements, index);
970 tim 1.1 }
971    
972     private static class COWIterator<E> implements ListIterator<E> {
973 jsr166 1.68 /** Snapshot of the array */
974 dl 1.41 private final Object[] snapshot;
975 dl 1.40 /** Index of element to be returned by subsequent call to next. */
976 tim 1.1 private int cursor;
977    
978 dl 1.41 private COWIterator(Object[] elements, int initialCursor) {
979 tim 1.1 cursor = initialCursor;
980 dl 1.40 snapshot = elements;
981 tim 1.1 }
982    
983     public boolean hasNext() {
984 dl 1.40 return cursor < snapshot.length;
985 tim 1.1 }
986    
987     public boolean hasPrevious() {
988     return cursor > 0;
989     }
990    
991 jsr166 1.67 @SuppressWarnings("unchecked")
992 tim 1.1 public E next() {
993 jsr166 1.67 if (! hasNext())
994 tim 1.1 throw new NoSuchElementException();
995 jsr166 1.67 return (E) snapshot[cursor++];
996 tim 1.1 }
997    
998 jsr166 1.67 @SuppressWarnings("unchecked")
999 tim 1.1 public E previous() {
1000 jsr166 1.67 if (! hasPrevious())
1001 tim 1.1 throw new NoSuchElementException();
1002 jsr166 1.67 return (E) snapshot[--cursor];
1003 tim 1.1 }
1004    
1005     public int nextIndex() {
1006     return cursor;
1007     }
1008    
1009     public int previousIndex() {
1010 jsr166 1.45 return cursor-1;
1011 tim 1.1 }
1012    
1013     /**
1014     * Not supported. Always throws UnsupportedOperationException.
1015 jsr166 1.32 * @throws UnsupportedOperationException always; <tt>remove</tt>
1016     * is not supported by this iterator.
1017 tim 1.1 */
1018     public void remove() {
1019     throw new UnsupportedOperationException();
1020     }
1021    
1022     /**
1023     * Not supported. Always throws UnsupportedOperationException.
1024 jsr166 1.32 * @throws UnsupportedOperationException always; <tt>set</tt>
1025     * is not supported by this iterator.
1026 tim 1.1 */
1027 jsr166 1.33 public void set(E e) {
1028 tim 1.1 throw new UnsupportedOperationException();
1029     }
1030    
1031     /**
1032     * Not supported. Always throws UnsupportedOperationException.
1033 jsr166 1.32 * @throws UnsupportedOperationException always; <tt>add</tt>
1034     * is not supported by this iterator.
1035 tim 1.1 */
1036 jsr166 1.33 public void add(E e) {
1037 tim 1.1 throw new UnsupportedOperationException();
1038     }
1039     }
1040    
1041     /**
1042 dl 1.40 * Returns a view of the portion of this list between
1043     * <tt>fromIndex</tt>, inclusive, and <tt>toIndex</tt>, exclusive.
1044     * The returned list is backed by this list, so changes in the
1045 jsr166 1.66 * returned list are reflected in this list.
1046 dl 1.40 *
1047     * <p>The semantics of the list returned by this method become
1048 jsr166 1.66 * undefined if the backing list (i.e., this list) is modified in
1049     * any way other than via the returned list.
1050 tim 1.1 *
1051 jsr166 1.35 * @param fromIndex low endpoint (inclusive) of the subList
1052     * @param toIndex high endpoint (exclusive) of the subList
1053     * @return a view of the specified range within this list
1054     * @throws IndexOutOfBoundsException {@inheritDoc}
1055 tim 1.1 */
1056 dl 1.42 public List<E> subList(int fromIndex, int toIndex) {
1057 jsr166 1.67 final ReentrantLock lock = this.lock;
1058     lock.lock();
1059     try {
1060     Object[] elements = getArray();
1061     int len = elements.length;
1062     if (fromIndex < 0 || toIndex > len || fromIndex > toIndex)
1063     throw new IndexOutOfBoundsException();
1064     return new COWSubList<E>(this, fromIndex, toIndex);
1065     } finally {
1066     lock.unlock();
1067     }
1068 tim 1.1 }
1069    
1070 dl 1.42 /**
1071     * Sublist for CopyOnWriteArrayList.
1072     * This class extends AbstractList merely for convenience, to
1073     * avoid having to define addAll, etc. This doesn't hurt, but
1074     * is wasteful. This class does not need or use modCount
1075     * mechanics in AbstractList, but does need to check for
1076     * concurrent modification using similar mechanics. On each
1077     * operation, the array that we expect the backing list to use
1078     * is checked and updated. Since we do this for all of the
1079     * base operations invoked by those defined in AbstractList,
1080     * all is well. While inefficient, this is not worth
1081     * improving. The kinds of list operations inherited from
1082     * AbstractList are already so slow on COW sublists that
1083     * adding a bit more space/time doesn't seem even noticeable.
1084     */
1085 jsr166 1.66 private static class COWSubList<E>
1086 jsr166 1.67 extends AbstractList<E>
1087     implements RandomAccess
1088 jsr166 1.66 {
1089 tim 1.1 private final CopyOnWriteArrayList<E> l;
1090     private final int offset;
1091     private int size;
1092 dl 1.41 private Object[] expectedArray;
1093 tim 1.1
1094 jsr166 1.45 // only call this holding l's lock
1095 jsr166 1.66 COWSubList(CopyOnWriteArrayList<E> list,
1096 jsr166 1.67 int fromIndex, int toIndex) {
1097 tim 1.1 l = list;
1098 dl 1.40 expectedArray = l.getArray();
1099 tim 1.1 offset = fromIndex;
1100     size = toIndex - fromIndex;
1101     }
1102    
1103     // only call this holding l's lock
1104     private void checkForComodification() {
1105 dl 1.40 if (l.getArray() != expectedArray)
1106 tim 1.1 throw new ConcurrentModificationException();
1107     }
1108    
1109     // only call this holding l's lock
1110     private void rangeCheck(int index) {
1111 jsr166 1.45 if (index<0 || index>=size)
1112     throw new IndexOutOfBoundsException("Index: "+index+
1113 jsr166 1.67 ",Size: "+size);
1114 tim 1.1 }
1115    
1116     public E set(int index, E element) {
1117 jsr166 1.67 final ReentrantLock lock = l.lock;
1118     lock.lock();
1119     try {
1120 tim 1.1 rangeCheck(index);
1121     checkForComodification();
1122 jsr166 1.45 E x = l.set(index+offset, element);
1123 dl 1.40 expectedArray = l.getArray();
1124 tim 1.1 return x;
1125 jsr166 1.67 } finally {
1126     lock.unlock();
1127     }
1128 tim 1.1 }
1129    
1130     public E get(int index) {
1131 jsr166 1.67 final ReentrantLock lock = l.lock;
1132     lock.lock();
1133     try {
1134 tim 1.1 rangeCheck(index);
1135     checkForComodification();
1136 jsr166 1.45 return l.get(index+offset);
1137 jsr166 1.67 } finally {
1138     lock.unlock();
1139     }
1140 tim 1.1 }
1141    
1142     public int size() {
1143 jsr166 1.67 final ReentrantLock lock = l.lock;
1144     lock.lock();
1145     try {
1146 tim 1.1 checkForComodification();
1147     return size;
1148 jsr166 1.67 } finally {
1149     lock.unlock();
1150     }
1151 tim 1.1 }
1152    
1153     public void add(int index, E element) {
1154 jsr166 1.67 final ReentrantLock lock = l.lock;
1155     lock.lock();
1156     try {
1157 tim 1.1 checkForComodification();
1158     if (index<0 || index>size)
1159     throw new IndexOutOfBoundsException();
1160 jsr166 1.45 l.add(index+offset, element);
1161 dl 1.40 expectedArray = l.getArray();
1162 tim 1.1 size++;
1163 jsr166 1.67 } finally {
1164     lock.unlock();
1165     }
1166 tim 1.1 }
1167    
1168 dl 1.13 public void clear() {
1169 jsr166 1.67 final ReentrantLock lock = l.lock;
1170     lock.lock();
1171     try {
1172 dl 1.13 checkForComodification();
1173     l.removeRange(offset, offset+size);
1174 dl 1.40 expectedArray = l.getArray();
1175 dl 1.13 size = 0;
1176 jsr166 1.67 } finally {
1177     lock.unlock();
1178     }
1179 dl 1.13 }
1180    
1181 tim 1.1 public E remove(int index) {
1182 jsr166 1.67 final ReentrantLock lock = l.lock;
1183     lock.lock();
1184     try {
1185 tim 1.1 rangeCheck(index);
1186     checkForComodification();
1187 jsr166 1.45 E result = l.remove(index+offset);
1188 dl 1.40 expectedArray = l.getArray();
1189 tim 1.1 size--;
1190     return result;
1191 jsr166 1.67 } finally {
1192     lock.unlock();
1193     }
1194 tim 1.1 }
1195    
1196 jsr166 1.66 public boolean remove(Object o) {
1197 jsr166 1.67 int index = indexOf(o);
1198     if (index == -1)
1199     return false;
1200     remove(index);
1201     return true;
1202 jsr166 1.66 }
1203    
1204 tim 1.1 public Iterator<E> iterator() {
1205 jsr166 1.67 final ReentrantLock lock = l.lock;
1206     lock.lock();
1207     try {
1208 tim 1.1 checkForComodification();
1209 tim 1.8 return new COWSubListIterator<E>(l, 0, offset, size);
1210 jsr166 1.67 } finally {
1211     lock.unlock();
1212     }
1213 tim 1.1 }
1214    
1215     public ListIterator<E> listIterator(final int index) {
1216 jsr166 1.67 final ReentrantLock lock = l.lock;
1217     lock.lock();
1218     try {
1219 tim 1.1 checkForComodification();
1220     if (index<0 || index>size)
1221 dl 1.40 throw new IndexOutOfBoundsException("Index: "+index+
1222 jsr166 1.67 ", Size: "+size);
1223 tim 1.8 return new COWSubListIterator<E>(l, index, offset, size);
1224 jsr166 1.67 } finally {
1225     lock.unlock();
1226     }
1227 tim 1.1 }
1228    
1229 tim 1.7 public List<E> subList(int fromIndex, int toIndex) {
1230 jsr166 1.67 final ReentrantLock lock = l.lock;
1231     lock.lock();
1232     try {
1233 tim 1.7 checkForComodification();
1234     if (fromIndex<0 || toIndex>size)
1235     throw new IndexOutOfBoundsException();
1236 dl 1.41 return new COWSubList<E>(l, fromIndex + offset,
1237 jsr166 1.67 toIndex + offset);
1238     } finally {
1239     lock.unlock();
1240     }
1241 tim 1.7 }
1242 tim 1.1
1243 tim 1.7 }
1244 tim 1.1
1245    
1246 tim 1.7 private static class COWSubListIterator<E> implements ListIterator<E> {
1247     private final ListIterator<E> i;
1248     private final int index;
1249     private final int offset;
1250     private final int size;
1251 jsr166 1.66
1252 jsr166 1.67 COWSubListIterator(List<E> l, int index, int offset,
1253     int size) {
1254 tim 1.7 this.index = index;
1255     this.offset = offset;
1256     this.size = size;
1257 jsr166 1.45 i = l.listIterator(index+offset);
1258 tim 1.7 }
1259 tim 1.1
1260 tim 1.7 public boolean hasNext() {
1261     return nextIndex() < size;
1262     }
1263 tim 1.1
1264 tim 1.7 public E next() {
1265     if (hasNext())
1266     return i.next();
1267     else
1268     throw new NoSuchElementException();
1269     }
1270 tim 1.1
1271 tim 1.7 public boolean hasPrevious() {
1272     return previousIndex() >= 0;
1273     }
1274 tim 1.1
1275 tim 1.7 public E previous() {
1276     if (hasPrevious())
1277     return i.previous();
1278     else
1279     throw new NoSuchElementException();
1280     }
1281 tim 1.1
1282 tim 1.7 public int nextIndex() {
1283     return i.nextIndex() - offset;
1284     }
1285 tim 1.1
1286 tim 1.7 public int previousIndex() {
1287     return i.previousIndex() - offset;
1288 tim 1.1 }
1289    
1290 tim 1.7 public void remove() {
1291     throw new UnsupportedOperationException();
1292     }
1293 tim 1.1
1294 jsr166 1.33 public void set(E e) {
1295 tim 1.7 throw new UnsupportedOperationException();
1296 tim 1.1 }
1297    
1298 jsr166 1.33 public void add(E e) {
1299 tim 1.7 throw new UnsupportedOperationException();
1300     }
1301 tim 1.1 }
1302    
1303 dl 1.42 // Support for resetting lock while deserializing
1304 jsr166 1.56 private static final Unsafe unsafe = Unsafe.getUnsafe();
1305 dl 1.42 private static final long lockOffset;
1306     static {
1307     try {
1308     lockOffset = unsafe.objectFieldOffset
1309     (CopyOnWriteArrayList.class.getDeclaredField("lock"));
1310     } catch (Exception ex) { throw new Error(ex); }
1311     }
1312     private void resetLock() {
1313     unsafe.putObjectVolatile(this, lockOffset, new ReentrantLock());
1314     }
1315    
1316 tim 1.1 }