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root/jsr166/jsr166/src/main/java/util/concurrent/Phaser.java
Revision: 1.86
Committed: Wed Apr 27 18:26:57 2016 UTC (8 years, 1 month ago) by jsr166
Branch: MAIN
Changes since 1.85: +0 -4 lines
Log Message:
delete no-longer-used method queueFor(int phase)

File Contents

# User Rev Content
1 jsr166 1.1 /*
2     * Written by Doug Lea with assistance from members of JCP JSR-166
3     * Expert Group and released to the public domain, as explained at
4 jsr166 1.60 * http://creativecommons.org/publicdomain/zero/1.0/
5 jsr166 1.1 */
6    
7     package java.util.concurrent;
8    
9     import java.util.concurrent.atomic.AtomicReference;
10     import java.util.concurrent.locks.LockSupport;
11    
12     /**
13 jsr166 1.10 * A reusable synchronization barrier, similar in functionality to
14 jsr166 1.1 * {@link java.util.concurrent.CyclicBarrier CyclicBarrier} and
15     * {@link java.util.concurrent.CountDownLatch CountDownLatch}
16     * but supporting more flexible usage.
17     *
18 jsr166 1.73 * <p><b>Registration.</b> Unlike the case for other barriers, the
19 dl 1.37 * number of parties <em>registered</em> to synchronize on a phaser
20 jsr166 1.10 * may vary over time. Tasks may be registered at any time (using
21     * methods {@link #register}, {@link #bulkRegister}, or forms of
22     * constructors establishing initial numbers of parties), and
23     * optionally deregistered upon any arrival (using {@link
24     * #arriveAndDeregister}). As is the case with most basic
25     * synchronization constructs, registration and deregistration affect
26     * only internal counts; they do not establish any further internal
27     * bookkeeping, so tasks cannot query whether they are registered.
28     * (However, you can introduce such bookkeeping by subclassing this
29     * class.)
30     *
31 jsr166 1.73 * <p><b>Synchronization.</b> Like a {@code CyclicBarrier}, a {@code
32 jsr166 1.10 * Phaser} may be repeatedly awaited. Method {@link
33     * #arriveAndAwaitAdvance} has effect analogous to {@link
34     * java.util.concurrent.CyclicBarrier#await CyclicBarrier.await}. Each
35 dl 1.37 * generation of a phaser has an associated phase number. The phase
36     * number starts at zero, and advances when all parties arrive at the
37     * phaser, wrapping around to zero after reaching {@code
38 jsr166 1.10 * Integer.MAX_VALUE}. The use of phase numbers enables independent
39 dl 1.37 * control of actions upon arrival at a phaser and upon awaiting
40 jsr166 1.10 * others, via two kinds of methods that may be invoked by any
41     * registered party:
42     *
43 jsr166 1.1 * <ul>
44     *
45 jsr166 1.82 * <li><b>Arrival.</b> Methods {@link #arrive} and
46 dl 1.37 * {@link #arriveAndDeregister} record arrival. These methods
47     * do not block, but return an associated <em>arrival phase
48     * number</em>; that is, the phase number of the phaser to which
49     * the arrival applied. When the final party for a given phase
50     * arrives, an optional action is performed and the phase
51     * advances. These actions are performed by the party
52     * triggering a phase advance, and are arranged by overriding
53     * method {@link #onAdvance(int, int)}, which also controls
54     * termination. Overriding this method is similar to, but more
55     * flexible than, providing a barrier action to a {@code
56     * CyclicBarrier}.
57 jsr166 1.10 *
58 jsr166 1.82 * <li><b>Waiting.</b> Method {@link #awaitAdvance} requires an
59 jsr166 1.10 * argument indicating an arrival phase number, and returns when
60 dl 1.37 * the phaser advances to (or is already at) a different phase.
61 jsr166 1.10 * Unlike similar constructions using {@code CyclicBarrier},
62     * method {@code awaitAdvance} continues to wait even if the
63     * waiting thread is interrupted. Interruptible and timeout
64     * versions are also available, but exceptions encountered while
65     * tasks wait interruptibly or with timeout do not change the
66 dl 1.37 * state of the phaser. If necessary, you can perform any
67 jsr166 1.10 * associated recovery within handlers of those exceptions,
68     * often after invoking {@code forceTermination}. Phasers may
69 dl 1.81 * also be used by tasks executing in a {@link ForkJoinPool}.
70     * Progress is ensured if the pool's parallelismLevel can
71     * accommodate the maximum number of simultaneously blocked
72     * parties.
73 jsr166 1.1 *
74     * </ul>
75     *
76 jsr166 1.73 * <p><b>Termination.</b> A phaser may enter a <em>termination</em>
77 dl 1.50 * state, that may be checked using method {@link #isTerminated}. Upon
78     * termination, all synchronization methods immediately return without
79 jsr166 1.51 * waiting for advance, as indicated by a negative return value.
80     * Similarly, attempts to register upon termination have no effect.
81     * Termination is triggered when an invocation of {@code onAdvance}
82     * returns {@code true}. The default implementation returns {@code
83     * true} if a deregistration has caused the number of registered
84     * parties to become zero. As illustrated below, when phasers control
85     * actions with a fixed number of iterations, it is often convenient
86     * to override this method to cause termination when the current phase
87     * number reaches a threshold. Method {@link #forceTermination} is
88     * also available to abruptly release waiting threads and allow them
89     * to terminate.
90 jsr166 1.1 *
91 jsr166 1.73 * <p><b>Tiering.</b> Phasers may be <em>tiered</em> (i.e.,
92 dl 1.32 * constructed in tree structures) to reduce contention. Phasers with
93     * large numbers of parties that would otherwise experience heavy
94 jsr166 1.10 * synchronization contention costs may instead be set up so that
95     * groups of sub-phasers share a common parent. This may greatly
96     * increase throughput even though it incurs greater per-operation
97     * overhead.
98     *
99 jsr166 1.44 * <p>In a tree of tiered phasers, registration and deregistration of
100     * child phasers with their parent are managed automatically.
101     * Whenever the number of registered parties of a child phaser becomes
102     * non-zero (as established in the {@link #Phaser(Phaser,int)}
103 dl 1.50 * constructor, {@link #register}, or {@link #bulkRegister}), the
104 jsr166 1.44 * child phaser is registered with its parent. Whenever the number of
105     * registered parties becomes zero as the result of an invocation of
106 dl 1.50 * {@link #arriveAndDeregister}, the child phaser is deregistered
107 jsr166 1.44 * from its parent.
108     *
109 jsr166 1.10 * <p><b>Monitoring.</b> While synchronization methods may be invoked
110 dl 1.37 * only by registered parties, the current state of a phaser may be
111 jsr166 1.10 * monitored by any caller. At any given moment there are {@link
112     * #getRegisteredParties} parties in total, of which {@link
113     * #getArrivedParties} have arrived at the current phase ({@link
114     * #getPhase}). When the remaining ({@link #getUnarrivedParties})
115     * parties arrive, the phase advances. The values returned by these
116     * methods may reflect transient states and so are not in general
117     * useful for synchronization control. Method {@link #toString}
118     * returns snapshots of these state queries in a form convenient for
119     * informal monitoring.
120 jsr166 1.1 *
121     * <p><b>Sample usages:</b>
122     *
123 jsr166 1.4 * <p>A {@code Phaser} may be used instead of a {@code CountDownLatch}
124 jsr166 1.12 * to control a one-shot action serving a variable number of parties.
125     * The typical idiom is for the method setting this up to first
126     * register, then start the actions, then deregister, as in:
127 jsr166 1.1 *
128 jsr166 1.79 * <pre> {@code
129 jsr166 1.8 * void runTasks(List<Runnable> tasks) {
130 jsr166 1.1 * final Phaser phaser = new Phaser(1); // "1" to register self
131 jsr166 1.7 * // create and start threads
132 dl 1.61 * for (final Runnable task : tasks) {
133 jsr166 1.1 * phaser.register();
134     * new Thread() {
135     * public void run() {
136     * phaser.arriveAndAwaitAdvance(); // await all creation
137 jsr166 1.8 * task.run();
138 jsr166 1.1 * }
139     * }.start();
140     * }
141     *
142 jsr166 1.7 * // allow threads to start and deregister self
143     * phaser.arriveAndDeregister();
144 jsr166 1.1 * }}</pre>
145     *
146     * <p>One way to cause a set of threads to repeatedly perform actions
147     * for a given number of iterations is to override {@code onAdvance}:
148     *
149 jsr166 1.79 * <pre> {@code
150 jsr166 1.8 * void startTasks(List<Runnable> tasks, final int iterations) {
151 jsr166 1.1 * final Phaser phaser = new Phaser() {
152 jsr166 1.10 * protected boolean onAdvance(int phase, int registeredParties) {
153 jsr166 1.1 * return phase >= iterations || registeredParties == 0;
154     * }
155     * };
156     * phaser.register();
157 jsr166 1.10 * for (final Runnable task : tasks) {
158 jsr166 1.1 * phaser.register();
159     * new Thread() {
160     * public void run() {
161     * do {
162 jsr166 1.8 * task.run();
163 jsr166 1.1 * phaser.arriveAndAwaitAdvance();
164 jsr166 1.10 * } while (!phaser.isTerminated());
165 jsr166 1.1 * }
166     * }.start();
167     * }
168     * phaser.arriveAndDeregister(); // deregister self, don't wait
169     * }}</pre>
170     *
171 jsr166 1.10 * If the main task must later await termination, it
172     * may re-register and then execute a similar loop:
173 jsr166 1.79 * <pre> {@code
174 jsr166 1.10 * // ...
175     * phaser.register();
176     * while (!phaser.isTerminated())
177     * phaser.arriveAndAwaitAdvance();}</pre>
178     *
179     * <p>Related constructions may be used to await particular phase numbers
180     * in contexts where you are sure that the phase will never wrap around
181     * {@code Integer.MAX_VALUE}. For example:
182     *
183 jsr166 1.79 * <pre> {@code
184 jsr166 1.10 * void awaitPhase(Phaser phaser, int phase) {
185     * int p = phaser.register(); // assumes caller not already registered
186     * while (p < phase) {
187     * if (phaser.isTerminated())
188     * // ... deal with unexpected termination
189     * else
190     * p = phaser.arriveAndAwaitAdvance();
191     * }
192     * phaser.arriveAndDeregister();
193     * }}</pre>
194     *
195     *
196 dl 1.39 * <p>To create a set of {@code n} tasks using a tree of phasers, you
197     * could use code of the following form, assuming a Task class with a
198     * constructor accepting a {@code Phaser} that it registers with upon
199     * construction. After invocation of {@code build(new Task[n], 0, n,
200     * new Phaser())}, these tasks could then be started, for example by
201     * submitting to a pool:
202 jsr166 1.10 *
203 jsr166 1.79 * <pre> {@code
204 dl 1.39 * void build(Task[] tasks, int lo, int hi, Phaser ph) {
205 jsr166 1.10 * if (hi - lo > TASKS_PER_PHASER) {
206     * for (int i = lo; i < hi; i += TASKS_PER_PHASER) {
207     * int j = Math.min(i + TASKS_PER_PHASER, hi);
208 dl 1.39 * build(tasks, i, j, new Phaser(ph));
209 jsr166 1.1 * }
210     * } else {
211     * for (int i = lo; i < hi; ++i)
212 dl 1.39 * tasks[i] = new Task(ph);
213 jsr166 1.10 * // assumes new Task(ph) performs ph.register()
214 jsr166 1.1 * }
215 dl 1.39 * }}</pre>
216 jsr166 1.1 *
217     * The best value of {@code TASKS_PER_PHASER} depends mainly on
218 dl 1.37 * expected synchronization rates. A value as low as four may
219     * be appropriate for extremely small per-phase task bodies (thus
220 jsr166 1.1 * high rates), or up to hundreds for extremely large ones.
221     *
222     * <p><b>Implementation notes</b>: This implementation restricts the
223     * maximum number of parties to 65535. Attempts to register additional
224 jsr166 1.8 * parties result in {@code IllegalStateException}. However, you can and
225 dl 1.37 * should create tiered phasers to accommodate arbitrarily large sets
226 jsr166 1.1 * of participants.
227     *
228     * @since 1.7
229     * @author Doug Lea
230     */
231     public class Phaser {
232     /*
233     * This class implements an extension of X10 "clocks". Thanks to
234     * Vijay Saraswat for the idea, and to Vivek Sarkar for
235     * enhancements to extend functionality.
236     */
237    
238     /**
239 jsr166 1.55 * Primary state representation, holding four bit-fields:
240 jsr166 1.1 *
241 jsr166 1.55 * unarrived -- the number of parties yet to hit barrier (bits 0-15)
242     * parties -- the number of parties to wait (bits 16-31)
243     * phase -- the generation of the barrier (bits 32-62)
244     * terminated -- set if barrier is terminated (bit 63 / sign)
245 jsr166 1.1 *
246 dl 1.39 * Except that a phaser with no registered parties is
247 jsr166 1.55 * distinguished by the otherwise illegal state of having zero
248 dl 1.39 * parties and one unarrived parties (encoded as EMPTY below).
249     *
250     * To efficiently maintain atomicity, these values are packed into
251     * a single (atomic) long. Good performance relies on keeping
252     * state decoding and encoding simple, and keeping race windows
253     * short.
254     *
255     * All state updates are performed via CAS except initial
256     * registration of a sub-phaser (i.e., one with a non-null
257     * parent). In this (relatively rare) case, we use built-in
258     * synchronization to lock while first registering with its
259     * parent.
260     *
261     * The phase of a subphaser is allowed to lag that of its
262 dl 1.53 * ancestors until it is actually accessed -- see method
263     * reconcileState.
264 jsr166 1.1 */
265     private volatile long state;
266    
267 dl 1.33 private static final int MAX_PARTIES = 0xffff;
268 jsr166 1.56 private static final int MAX_PHASE = Integer.MAX_VALUE;
269 dl 1.33 private static final int PARTIES_SHIFT = 16;
270     private static final int PHASE_SHIFT = 32;
271     private static final int UNARRIVED_MASK = 0xffff; // to mask ints
272     private static final long PARTIES_MASK = 0xffff0000L; // to mask longs
273 jsr166 1.71 private static final long COUNTS_MASK = 0xffffffffL;
274 dl 1.33 private static final long TERMINATION_BIT = 1L << 63;
275 dl 1.17
276 dl 1.39 // some special values
277     private static final int ONE_ARRIVAL = 1;
278     private static final int ONE_PARTY = 1 << PARTIES_SHIFT;
279 jsr166 1.66 private static final int ONE_DEREGISTER = ONE_ARRIVAL|ONE_PARTY;
280 dl 1.39 private static final int EMPTY = 1;
281    
282 dl 1.17 // The following unpacking methods are usually manually inlined
283 jsr166 1.1
284     private static int unarrivedOf(long s) {
285 dl 1.39 int counts = (int)s;
286 jsr166 1.64 return (counts == EMPTY) ? 0 : (counts & UNARRIVED_MASK);
287 jsr166 1.1 }
288    
289     private static int partiesOf(long s) {
290 jsr166 1.41 return (int)s >>> PARTIES_SHIFT;
291 jsr166 1.1 }
292    
293     private static int phaseOf(long s) {
294 jsr166 1.54 return (int)(s >>> PHASE_SHIFT);
295 jsr166 1.1 }
296    
297     private static int arrivedOf(long s) {
298 dl 1.39 int counts = (int)s;
299 jsr166 1.40 return (counts == EMPTY) ? 0 :
300 dl 1.39 (counts >>> PARTIES_SHIFT) - (counts & UNARRIVED_MASK);
301 jsr166 1.1 }
302    
303     /**
304 jsr166 1.83 * The parent of this phaser, or null if none.
305 jsr166 1.1 */
306     private final Phaser parent;
307    
308     /**
309 dl 1.39 * The root of phaser tree. Equals this if not in a tree.
310 jsr166 1.1 */
311     private final Phaser root;
312    
313     /**
314     * Heads of Treiber stacks for waiting threads. To eliminate
315 dl 1.14 * contention when releasing some threads while adding others, we
316 jsr166 1.1 * use two of them, alternating across even and odd phases.
317 dl 1.14 * Subphasers share queues with root to speed up releases.
318 jsr166 1.1 */
319 dl 1.15 private final AtomicReference<QNode> evenQ;
320     private final AtomicReference<QNode> oddQ;
321 jsr166 1.1
322     /**
323 dl 1.33 * Returns message string for bounds exceptions on arrival.
324     */
325     private String badArrive(long s) {
326     return "Attempted arrival of unregistered party for " +
327     stateToString(s);
328     }
329    
330     /**
331     * Returns message string for bounds exceptions on registration.
332     */
333     private String badRegister(long s) {
334     return "Attempt to register more than " +
335     MAX_PARTIES + " parties for " + stateToString(s);
336     }
337    
338     /**
339 dl 1.17 * Main implementation for methods arrive and arriveAndDeregister.
340     * Manually tuned to speed up and minimize race windows for the
341     * common case of just decrementing unarrived field.
342     *
343 jsr166 1.66 * @param adjust value to subtract from state;
344     * ONE_ARRIVAL for arrive,
345     * ONE_DEREGISTER for arriveAndDeregister
346 dl 1.17 */
347 jsr166 1.66 private int doArrive(int adjust) {
348 dl 1.50 final Phaser root = this.root;
349     for (;;) {
350     long s = (root == this) ? state : reconcileState();
351     int phase = (int)(s >>> PHASE_SHIFT);
352     if (phase < 0)
353     return phase;
354 jsr166 1.64 int counts = (int)s;
355     int unarrived = (counts == EMPTY) ? 0 : (counts & UNARRIVED_MASK);
356     if (unarrived <= 0)
357     throw new IllegalStateException(badArrive(s));
358 jsr166 1.78 if (U.compareAndSwapLong(this, STATE, s, s-=adjust)) {
359 jsr166 1.64 if (unarrived == 1) {
360 jsr166 1.65 long n = s & PARTIES_MASK; // base of next state
361     int nextUnarrived = (int)n >>> PARTIES_SHIFT;
362 dl 1.63 if (root == this) {
363     if (onAdvance(phase, nextUnarrived))
364     n |= TERMINATION_BIT;
365     else if (nextUnarrived == 0)
366     n |= EMPTY;
367     else
368     n |= nextUnarrived;
369 jsr166 1.64 int nextPhase = (phase + 1) & MAX_PHASE;
370     n |= (long)nextPhase << PHASE_SHIFT;
371 jsr166 1.78 U.compareAndSwapLong(this, STATE, s, n);
372 jsr166 1.68 releaseWaiters(phase);
373 dl 1.63 }
374     else if (nextUnarrived == 0) { // propagate deregistration
375 jsr166 1.66 phase = parent.doArrive(ONE_DEREGISTER);
376 jsr166 1.78 U.compareAndSwapLong(this, STATE, s, s | EMPTY);
377 dl 1.63 }
378 dl 1.50 else
379 jsr166 1.66 phase = parent.doArrive(ONE_ARRIVAL);
380 dl 1.17 }
381 dl 1.50 return phase;
382 dl 1.17 }
383     }
384     }
385    
386     /**
387 jsr166 1.83 * Implementation of register, bulkRegister.
388 dl 1.17 *
389 dl 1.32 * @param registrations number to add to both parties and
390     * unarrived fields. Must be greater than zero.
391 jsr166 1.1 */
392 dl 1.17 private int doRegister(int registrations) {
393 jsr166 1.26 // adjustment to state
394 jsr166 1.66 long adjust = ((long)registrations << PARTIES_SHIFT) | registrations;
395 jsr166 1.57 final Phaser parent = this.parent;
396 dl 1.39 int phase;
397 dl 1.21 for (;;) {
398 dl 1.63 long s = (parent == null) ? state : reconcileState();
399 dl 1.39 int counts = (int)s;
400     int parties = counts >>> PARTIES_SHIFT;
401     int unarrived = counts & UNARRIVED_MASK;
402     if (registrations > MAX_PARTIES - parties)
403 dl 1.21 throw new IllegalStateException(badRegister(s));
404 jsr166 1.69 phase = (int)(s >>> PHASE_SHIFT);
405     if (phase < 0)
406 dl 1.39 break;
407 jsr166 1.69 if (counts != EMPTY) { // not 1st registration
408 jsr166 1.57 if (parent == null || reconcileState() == s) {
409 dl 1.39 if (unarrived == 0) // wait out advance
410     root.internalAwaitAdvance(phase, null);
411 jsr166 1.78 else if (U.compareAndSwapLong(this, STATE, s, s + adjust))
412 dl 1.39 break;
413     }
414     }
415 jsr166 1.57 else if (parent == null) { // 1st root registration
416 jsr166 1.66 long next = ((long)phase << PHASE_SHIFT) | adjust;
417 jsr166 1.78 if (U.compareAndSwapLong(this, STATE, s, next))
418 dl 1.39 break;
419     }
420     else {
421 jsr166 1.40 synchronized (this) { // 1st sub registration
422 dl 1.39 if (state == s) { // recheck under lock
423 jsr166 1.70 phase = parent.doRegister(1);
424     if (phase < 0)
425     break;
426     // finish registration whenever parent registration
427     // succeeded, even when racing with termination,
428     // since these are part of the same "transaction".
429 jsr166 1.78 while (!U.compareAndSwapLong
430     (this, STATE, s,
431 jsr166 1.70 ((long)phase << PHASE_SHIFT) | adjust)) {
432     s = state;
433 dl 1.39 phase = (int)(root.state >>> PHASE_SHIFT);
434 jsr166 1.70 // assert (int)s == EMPTY;
435     }
436 dl 1.39 break;
437 dl 1.33 }
438     }
439     }
440 dl 1.17 }
441 dl 1.39 return phase;
442 dl 1.17 }
443    
444     /**
445 dl 1.39 * Resolves lagged phase propagation from root if necessary.
446 dl 1.53 * Reconciliation normally occurs when root has advanced but
447     * subphasers have not yet done so, in which case they must finish
448     * their own advance by setting unarrived to parties (or if
449     * parties is zero, resetting to unregistered EMPTY state).
450     *
451     * @return reconciled state
452 jsr166 1.1 */
453     private long reconcileState() {
454 jsr166 1.52 final Phaser root = this.root;
455 dl 1.31 long s = state;
456 jsr166 1.52 if (root != this) {
457 jsr166 1.71 int phase, p;
458     // CAS to root phase with current parties, tripping unarrived
459 dl 1.53 while ((phase = (int)(root.state >>> PHASE_SHIFT)) !=
460     (int)(s >>> PHASE_SHIFT) &&
461 jsr166 1.78 !U.compareAndSwapLong
462     (this, STATE, s,
463 jsr166 1.54 s = (((long)phase << PHASE_SHIFT) |
464 jsr166 1.71 ((phase < 0) ? (s & COUNTS_MASK) :
465     (((p = (int)s >>> PARTIES_SHIFT) == 0) ? EMPTY :
466     ((s & PARTIES_MASK) | p))))))
467 dl 1.53 s = state;
468 jsr166 1.1 }
469 dl 1.31 return s;
470 jsr166 1.1 }
471    
472     /**
473 dl 1.37 * Creates a new phaser with no initially registered parties, no
474     * parent, and initial phase number 0. Any thread using this
475     * phaser will need to first register for it.
476 jsr166 1.1 */
477     public Phaser() {
478 dl 1.15 this(null, 0);
479 jsr166 1.1 }
480    
481     /**
482 dl 1.37 * Creates a new phaser with the given number of registered
483     * unarrived parties, no parent, and initial phase number 0.
484 jsr166 1.1 *
485 dl 1.37 * @param parties the number of parties required to advance to the
486     * next phase
487 jsr166 1.1 * @throws IllegalArgumentException if parties less than zero
488     * or greater than the maximum number of parties supported
489     */
490     public Phaser(int parties) {
491     this(null, parties);
492     }
493    
494     /**
495 dl 1.32 * Equivalent to {@link #Phaser(Phaser, int) Phaser(parent, 0)}.
496 jsr166 1.1 *
497 dl 1.37 * @param parent the parent phaser
498 jsr166 1.1 */
499     public Phaser(Phaser parent) {
500 dl 1.15 this(parent, 0);
501 jsr166 1.1 }
502    
503     /**
504 dl 1.37 * Creates a new phaser with the given parent and number of
505 dl 1.50 * registered unarrived parties. When the given parent is non-null
506 jsr166 1.44 * and the given number of parties is greater than zero, this
507     * child phaser is registered with its parent.
508 jsr166 1.1 *
509 dl 1.37 * @param parent the parent phaser
510     * @param parties the number of parties required to advance to the
511     * next phase
512 jsr166 1.1 * @throws IllegalArgumentException if parties less than zero
513     * or greater than the maximum number of parties supported
514     */
515     public Phaser(Phaser parent, int parties) {
516 dl 1.24 if (parties >>> PARTIES_SHIFT != 0)
517 jsr166 1.1 throw new IllegalArgumentException("Illegal number of parties");
518 dl 1.39 int phase = 0;
519 jsr166 1.1 this.parent = parent;
520     if (parent != null) {
521 jsr166 1.42 final Phaser root = parent.root;
522     this.root = root;
523     this.evenQ = root.evenQ;
524     this.oddQ = root.oddQ;
525 dl 1.34 if (parties != 0)
526 dl 1.39 phase = parent.doRegister(1);
527 jsr166 1.1 }
528 dl 1.15 else {
529 jsr166 1.1 this.root = this;
530 dl 1.15 this.evenQ = new AtomicReference<QNode>();
531     this.oddQ = new AtomicReference<QNode>();
532     }
533 jsr166 1.54 this.state = (parties == 0) ? (long)EMPTY :
534     ((long)phase << PHASE_SHIFT) |
535     ((long)parties << PARTIES_SHIFT) |
536     ((long)parties);
537 jsr166 1.1 }
538    
539     /**
540 dl 1.37 * Adds a new unarrived party to this phaser. If an ongoing
541 dl 1.33 * invocation of {@link #onAdvance} is in progress, this method
542 dl 1.37 * may await its completion before returning. If this phaser has
543     * a parent, and this phaser previously had no registered parties,
544 dl 1.50 * this child phaser is also registered with its parent. If
545     * this phaser is terminated, the attempt to register has
546     * no effect, and a negative value is returned.
547     *
548     * @return the arrival phase number to which this registration
549     * applied. If this value is negative, then this phaser has
550 jsr166 1.51 * terminated, in which case registration has no effect.
551 jsr166 1.1 * @throws IllegalStateException if attempting to register more
552     * than the maximum supported number of parties
553     */
554     public int register() {
555     return doRegister(1);
556     }
557    
558     /**
559 dl 1.37 * Adds the given number of new unarrived parties to this phaser.
560 dl 1.14 * If an ongoing invocation of {@link #onAdvance} is in progress,
561 dl 1.34 * this method may await its completion before returning. If this
562 dl 1.50 * phaser has a parent, and the given number of parties is greater
563     * than zero, and this phaser previously had no registered
564 jsr166 1.44 * parties, this child phaser is also registered with its parent.
565 dl 1.50 * If this phaser is terminated, the attempt to register has no
566     * effect, and a negative value is returned.
567 jsr166 1.1 *
568 dl 1.37 * @param parties the number of additional parties required to
569     * advance to the next phase
570 dl 1.50 * @return the arrival phase number to which this registration
571     * applied. If this value is negative, then this phaser has
572 jsr166 1.51 * terminated, in which case registration has no effect.
573 jsr166 1.1 * @throws IllegalStateException if attempting to register more
574     * than the maximum supported number of parties
575 dl 1.13 * @throws IllegalArgumentException if {@code parties < 0}
576 jsr166 1.1 */
577     public int bulkRegister(int parties) {
578     if (parties < 0)
579     throw new IllegalArgumentException();
580 dl 1.34 if (parties == 0)
581 jsr166 1.1 return getPhase();
582     return doRegister(parties);
583     }
584    
585     /**
586 dl 1.37 * Arrives at this phaser, without waiting for others to arrive.
587 dl 1.34 *
588     * <p>It is a usage error for an unregistered party to invoke this
589     * method. However, this error may result in an {@code
590     * IllegalStateException} only upon some subsequent operation on
591 dl 1.37 * this phaser, if ever.
592 jsr166 1.1 *
593 jsr166 1.10 * @return the arrival phase number, or a negative value if terminated
594 jsr166 1.1 * @throws IllegalStateException if not terminated and the number
595     * of unarrived parties would become negative
596     */
597     public int arrive() {
598 jsr166 1.66 return doArrive(ONE_ARRIVAL);
599 jsr166 1.1 }
600    
601     /**
602 dl 1.37 * Arrives at this phaser and deregisters from it without waiting
603 dl 1.34 * for others to arrive. Deregistration reduces the number of
604 dl 1.37 * parties required to advance in future phases. If this phaser
605     * has a parent, and deregistration causes this phaser to have
606     * zero parties, this phaser is also deregistered from its parent.
607 dl 1.34 *
608     * <p>It is a usage error for an unregistered party to invoke this
609     * method. However, this error may result in an {@code
610     * IllegalStateException} only upon some subsequent operation on
611 dl 1.37 * this phaser, if ever.
612 jsr166 1.1 *
613 jsr166 1.10 * @return the arrival phase number, or a negative value if terminated
614 jsr166 1.1 * @throws IllegalStateException if not terminated and the number
615     * of registered or unarrived parties would become negative
616     */
617     public int arriveAndDeregister() {
618 jsr166 1.66 return doArrive(ONE_DEREGISTER);
619 jsr166 1.1 }
620    
621     /**
622 dl 1.37 * Arrives at this phaser and awaits others. Equivalent in effect
623 jsr166 1.7 * to {@code awaitAdvance(arrive())}. If you need to await with
624     * interruption or timeout, you can arrange this with an analogous
625 jsr166 1.12 * construction using one of the other forms of the {@code
626     * awaitAdvance} method. If instead you need to deregister upon
627 dl 1.34 * arrival, use {@code awaitAdvance(arriveAndDeregister())}.
628     *
629     * <p>It is a usage error for an unregistered party to invoke this
630     * method. However, this error may result in an {@code
631     * IllegalStateException} only upon some subsequent operation on
632 dl 1.37 * this phaser, if ever.
633 jsr166 1.1 *
634 jsr166 1.49 * @return the arrival phase number, or the (negative)
635     * {@linkplain #getPhase() current phase} if terminated
636 jsr166 1.1 * @throws IllegalStateException if not terminated and the number
637     * of unarrived parties would become negative
638     */
639     public int arriveAndAwaitAdvance() {
640 dl 1.50 // Specialization of doArrive+awaitAdvance eliminating some reads/paths
641     final Phaser root = this.root;
642     for (;;) {
643     long s = (root == this) ? state : reconcileState();
644     int phase = (int)(s >>> PHASE_SHIFT);
645     if (phase < 0)
646     return phase;
647 jsr166 1.64 int counts = (int)s;
648     int unarrived = (counts == EMPTY) ? 0 : (counts & UNARRIVED_MASK);
649     if (unarrived <= 0)
650     throw new IllegalStateException(badArrive(s));
651 jsr166 1.78 if (U.compareAndSwapLong(this, STATE, s, s -= ONE_ARRIVAL)) {
652 jsr166 1.64 if (unarrived > 1)
653 dl 1.50 return root.internalAwaitAdvance(phase, null);
654     if (root != this)
655     return parent.arriveAndAwaitAdvance();
656     long n = s & PARTIES_MASK; // base of next state
657 jsr166 1.54 int nextUnarrived = (int)n >>> PARTIES_SHIFT;
658 dl 1.50 if (onAdvance(phase, nextUnarrived))
659     n |= TERMINATION_BIT;
660     else if (nextUnarrived == 0)
661     n |= EMPTY;
662     else
663     n |= nextUnarrived;
664     int nextPhase = (phase + 1) & MAX_PHASE;
665     n |= (long)nextPhase << PHASE_SHIFT;
666 jsr166 1.78 if (!U.compareAndSwapLong(this, STATE, s, n))
667 dl 1.50 return (int)(state >>> PHASE_SHIFT); // terminated
668     releaseWaiters(phase);
669     return nextPhase;
670     }
671     }
672 jsr166 1.1 }
673    
674     /**
675 dl 1.37 * Awaits the phase of this phaser to advance from the given phase
676     * value, returning immediately if the current phase is not equal
677     * to the given phase value or this phaser is terminated.
678 jsr166 1.1 *
679 jsr166 1.10 * @param phase an arrival phase number, or negative value if
680     * terminated; this argument is normally the value returned by a
681 dl 1.37 * previous call to {@code arrive} or {@code arriveAndDeregister}.
682 jsr166 1.48 * @return the next arrival phase number, or the argument if it is
683     * negative, or the (negative) {@linkplain #getPhase() current phase}
684     * if terminated
685 jsr166 1.1 */
686     public int awaitAdvance(int phase) {
687 dl 1.50 final Phaser root = this.root;
688 jsr166 1.51 long s = (root == this) ? state : reconcileState();
689     int p = (int)(s >>> PHASE_SHIFT);
690 jsr166 1.1 if (phase < 0)
691     return phase;
692 dl 1.50 if (p == phase)
693     return root.internalAwaitAdvance(phase, null);
694 dl 1.34 return p;
695 jsr166 1.1 }
696    
697     /**
698 dl 1.37 * Awaits the phase of this phaser to advance from the given phase
699 jsr166 1.10 * value, throwing {@code InterruptedException} if interrupted
700 dl 1.37 * while waiting, or returning immediately if the current phase is
701     * not equal to the given phase value or this phaser is
702     * terminated.
703 jsr166 1.10 *
704     * @param phase an arrival phase number, or negative value if
705     * terminated; this argument is normally the value returned by a
706 dl 1.37 * previous call to {@code arrive} or {@code arriveAndDeregister}.
707 jsr166 1.48 * @return the next arrival phase number, or the argument if it is
708     * negative, or the (negative) {@linkplain #getPhase() current phase}
709     * if terminated
710 jsr166 1.1 * @throws InterruptedException if thread interrupted while waiting
711     */
712     public int awaitAdvanceInterruptibly(int phase)
713     throws InterruptedException {
714 dl 1.50 final Phaser root = this.root;
715 jsr166 1.51 long s = (root == this) ? state : reconcileState();
716     int p = (int)(s >>> PHASE_SHIFT);
717 jsr166 1.1 if (phase < 0)
718     return phase;
719 dl 1.39 if (p == phase) {
720 dl 1.50 QNode node = new QNode(this, phase, true, false, 0L);
721     p = root.internalAwaitAdvance(phase, node);
722     if (node.wasInterrupted)
723     throw new InterruptedException();
724 dl 1.24 }
725     return p;
726 jsr166 1.1 }
727    
728     /**
729 dl 1.37 * Awaits the phase of this phaser to advance from the given phase
730 jsr166 1.10 * value or the given timeout to elapse, throwing {@code
731     * InterruptedException} if interrupted while waiting, or
732 dl 1.37 * returning immediately if the current phase is not equal to the
733     * given phase value or this phaser is terminated.
734 jsr166 1.10 *
735     * @param phase an arrival phase number, or negative value if
736     * terminated; this argument is normally the value returned by a
737 dl 1.37 * previous call to {@code arrive} or {@code arriveAndDeregister}.
738 jsr166 1.8 * @param timeout how long to wait before giving up, in units of
739     * {@code unit}
740     * @param unit a {@code TimeUnit} determining how to interpret the
741     * {@code timeout} parameter
742 jsr166 1.48 * @return the next arrival phase number, or the argument if it is
743     * negative, or the (negative) {@linkplain #getPhase() current phase}
744     * if terminated
745 jsr166 1.1 * @throws InterruptedException if thread interrupted while waiting
746     * @throws TimeoutException if timed out while waiting
747     */
748     public int awaitAdvanceInterruptibly(int phase,
749     long timeout, TimeUnit unit)
750     throws InterruptedException, TimeoutException {
751 dl 1.50 long nanos = unit.toNanos(timeout);
752     final Phaser root = this.root;
753 jsr166 1.51 long s = (root == this) ? state : reconcileState();
754     int p = (int)(s >>> PHASE_SHIFT);
755 jsr166 1.47 if (phase < 0)
756     return phase;
757 dl 1.39 if (p == phase) {
758 dl 1.50 QNode node = new QNode(this, phase, true, true, nanos);
759     p = root.internalAwaitAdvance(phase, node);
760     if (node.wasInterrupted)
761     throw new InterruptedException();
762     else if (p == phase)
763     throw new TimeoutException();
764 dl 1.24 }
765     return p;
766 jsr166 1.1 }
767    
768     /**
769 dl 1.37 * Forces this phaser to enter termination state. Counts of
770 dl 1.39 * registered parties are unaffected. If this phaser is a member
771     * of a tiered set of phasers, then all of the phasers in the set
772     * are terminated. If this phaser is already terminated, this
773     * method has no effect. This method may be useful for
774     * coordinating recovery after one or more tasks encounter
775     * unexpected exceptions.
776 jsr166 1.1 */
777     public void forceTermination() {
778 jsr166 1.23 // Only need to change root state
779     final Phaser root = this.root;
780 dl 1.14 long s;
781 jsr166 1.23 while ((s = root.state) >= 0) {
782 jsr166 1.78 if (U.compareAndSwapLong(root, STATE, s, s | TERMINATION_BIT)) {
783 jsr166 1.45 // signal all threads
784 jsr166 1.67 releaseWaiters(0); // Waiters on evenQ
785     releaseWaiters(1); // Waiters on oddQ
786 jsr166 1.23 return;
787     }
788     }
789 jsr166 1.1 }
790    
791     /**
792     * Returns the current phase number. The maximum phase number is
793     * {@code Integer.MAX_VALUE}, after which it restarts at
794 dl 1.37 * zero. Upon termination, the phase number is negative,
795     * in which case the prevailing phase prior to termination
796     * may be obtained via {@code getPhase() + Integer.MIN_VALUE}.
797 jsr166 1.1 *
798     * @return the phase number, or a negative value if terminated
799     */
800     public final int getPhase() {
801 dl 1.31 return (int)(root.state >>> PHASE_SHIFT);
802 jsr166 1.1 }
803    
804     /**
805 dl 1.37 * Returns the number of parties registered at this phaser.
806 jsr166 1.1 *
807     * @return the number of parties
808     */
809     public int getRegisteredParties() {
810 dl 1.31 return partiesOf(state);
811 jsr166 1.1 }
812    
813     /**
814 jsr166 1.10 * Returns the number of registered parties that have arrived at
815 dl 1.53 * the current phase of this phaser. If this phaser has terminated,
816     * the returned value is meaningless and arbitrary.
817 jsr166 1.1 *
818     * @return the number of arrived parties
819     */
820     public int getArrivedParties() {
821 dl 1.39 return arrivedOf(reconcileState());
822 jsr166 1.1 }
823    
824     /**
825     * Returns the number of registered parties that have not yet
826 dl 1.53 * arrived at the current phase of this phaser. If this phaser has
827     * terminated, the returned value is meaningless and arbitrary.
828 jsr166 1.1 *
829     * @return the number of unarrived parties
830     */
831     public int getUnarrivedParties() {
832 dl 1.39 return unarrivedOf(reconcileState());
833 jsr166 1.1 }
834    
835     /**
836 dl 1.37 * Returns the parent of this phaser, or {@code null} if none.
837 jsr166 1.1 *
838 dl 1.37 * @return the parent of this phaser, or {@code null} if none
839 jsr166 1.1 */
840     public Phaser getParent() {
841     return parent;
842     }
843    
844     /**
845 dl 1.37 * Returns the root ancestor of this phaser, which is the same as
846     * this phaser if it has no parent.
847 jsr166 1.1 *
848 dl 1.37 * @return the root ancestor of this phaser
849 jsr166 1.1 */
850     public Phaser getRoot() {
851     return root;
852     }
853    
854     /**
855 dl 1.37 * Returns {@code true} if this phaser has been terminated.
856 jsr166 1.1 *
857 dl 1.37 * @return {@code true} if this phaser has been terminated
858 jsr166 1.1 */
859     public boolean isTerminated() {
860 dl 1.31 return root.state < 0L;
861 jsr166 1.1 }
862    
863     /**
864 jsr166 1.10 * Overridable method to perform an action upon impending phase
865     * advance, and to control termination. This method is invoked
866 dl 1.37 * upon arrival of the party advancing this phaser (when all other
867 jsr166 1.10 * waiting parties are dormant). If this method returns {@code
868 dl 1.39 * true}, this phaser will be set to a final termination state
869     * upon advance, and subsequent calls to {@link #isTerminated}
870     * will return true. Any (unchecked) Exception or Error thrown by
871     * an invocation of this method is propagated to the party
872     * attempting to advance this phaser, in which case no advance
873     * occurs.
874 jsr166 1.10 *
875 dl 1.37 * <p>The arguments to this method provide the state of the phaser
876 dl 1.17 * prevailing for the current transition. The effects of invoking
877 dl 1.37 * arrival, registration, and waiting methods on this phaser from
878 dl 1.15 * within {@code onAdvance} are unspecified and should not be
879 dl 1.17 * relied on.
880     *
881 dl 1.37 * <p>If this phaser is a member of a tiered set of phasers, then
882     * {@code onAdvance} is invoked only for its root phaser on each
883 dl 1.17 * advance.
884 jsr166 1.1 *
885 dl 1.33 * <p>To support the most common use cases, the default
886     * implementation of this method returns {@code true} when the
887     * number of registered parties has become zero as the result of a
888     * party invoking {@code arriveAndDeregister}. You can disable
889     * this behavior, thus enabling continuation upon future
890     * registrations, by overriding this method to always return
891     * {@code false}:
892     *
893     * <pre> {@code
894     * Phaser phaser = new Phaser() {
895     * protected boolean onAdvance(int phase, int parties) { return false; }
896     * }}</pre>
897 jsr166 1.1 *
898 dl 1.37 * @param phase the current phase number on entry to this method,
899     * before this phaser is advanced
900 jsr166 1.1 * @param registeredParties the current number of registered parties
901 dl 1.37 * @return {@code true} if this phaser should terminate
902 jsr166 1.1 */
903     protected boolean onAdvance(int phase, int registeredParties) {
904 dl 1.36 return registeredParties == 0;
905 jsr166 1.1 }
906    
907     /**
908 dl 1.37 * Returns a string identifying this phaser, as well as its
909 dl 1.21 * state. The state, in brackets, includes the String {@code
910     * "phase = "} followed by the phase number, {@code "parties = "}
911     * followed by the number of registered parties, and {@code
912     * "arrived = "} followed by the number of arrived parties.
913 jsr166 1.1 *
914 dl 1.37 * @return a string identifying this phaser, as well as its state
915 jsr166 1.1 */
916     public String toString() {
917 dl 1.21 return stateToString(reconcileState());
918     }
919    
920     /**
921 jsr166 1.83 * Implementation of toString and string-based error messages.
922 dl 1.21 */
923     private String stateToString(long s) {
924 jsr166 1.1 return super.toString() +
925     "[phase = " + phaseOf(s) +
926     " parties = " + partiesOf(s) +
927     " arrived = " + arrivedOf(s) + "]";
928     }
929    
930 dl 1.21 // Waiting mechanics
931    
932 jsr166 1.1 /**
933 jsr166 1.30 * Removes and signals threads from queue for phase.
934 jsr166 1.1 */
935     private void releaseWaiters(int phase) {
936 dl 1.37 QNode q; // first element of queue
937     Thread t; // its thread
938 dl 1.36 AtomicReference<QNode> head = (phase & 1) == 0 ? evenQ : oddQ;
939 dl 1.17 while ((q = head.get()) != null &&
940 dl 1.39 q.phase != (int)(root.state >>> PHASE_SHIFT)) {
941 dl 1.37 if (head.compareAndSet(q, q.next) &&
942     (t = q.thread) != null) {
943     q.thread = null;
944     LockSupport.unpark(t);
945     }
946 jsr166 1.1 }
947     }
948    
949 dl 1.50 /**
950     * Variant of releaseWaiters that additionally tries to remove any
951     * nodes no longer waiting for advance due to timeout or
952     * interrupt. Currently, nodes are removed only if they are at
953     * head of queue, which suffices to reduce memory footprint in
954     * most usages.
955     *
956     * @return current phase on exit
957     */
958     private int abortWait(int phase) {
959     AtomicReference<QNode> head = (phase & 1) == 0 ? evenQ : oddQ;
960     for (;;) {
961     Thread t;
962     QNode q = head.get();
963     int p = (int)(root.state >>> PHASE_SHIFT);
964     if (q == null || ((t = q.thread) != null && q.phase == p))
965     return p;
966     if (head.compareAndSet(q, q.next) && t != null) {
967     q.thread = null;
968     LockSupport.unpark(t);
969     }
970     }
971     }
972    
973 dl 1.17 /** The number of CPUs, for spin control */
974     private static final int NCPU = Runtime.getRuntime().availableProcessors();
975    
976 jsr166 1.1 /**
977 dl 1.17 * The number of times to spin before blocking while waiting for
978     * advance, per arrival while waiting. On multiprocessors, fully
979     * blocking and waking up a large number of threads all at once is
980     * usually a very slow process, so we use rechargeable spins to
981     * avoid it when threads regularly arrive: When a thread in
982     * internalAwaitAdvance notices another arrival before blocking,
983     * and there appear to be enough CPUs available, it spins
984 dl 1.36 * SPINS_PER_ARRIVAL more times before blocking. The value trades
985     * off good-citizenship vs big unnecessary slowdowns.
986 dl 1.15 */
987 jsr166 1.22 static final int SPINS_PER_ARRIVAL = (NCPU < 2) ? 1 : 1 << 8;
988 dl 1.15
989     /**
990 dl 1.17 * Possibly blocks and waits for phase to advance unless aborted.
991 jsr166 1.64 * Call only on root phaser.
992 jsr166 1.1 *
993 dl 1.17 * @param phase current phase
994 jsr166 1.22 * @param node if non-null, the wait node to track interrupt and timeout;
995 dl 1.17 * if null, denotes noninterruptible wait
996 jsr166 1.1 * @return current phase
997     */
998 dl 1.17 private int internalAwaitAdvance(int phase, QNode node) {
999 jsr166 1.64 // assert root == this;
1000 dl 1.37 releaseWaiters(phase-1); // ensure old queue clean
1001     boolean queued = false; // true when node is enqueued
1002     int lastUnarrived = 0; // to increase spins upon change
1003 dl 1.17 int spins = SPINS_PER_ARRIVAL;
1004 dl 1.31 long s;
1005     int p;
1006 dl 1.34 while ((p = (int)((s = state) >>> PHASE_SHIFT)) == phase) {
1007 dl 1.37 if (node == null) { // spinning in noninterruptible mode
1008     int unarrived = (int)s & UNARRIVED_MASK;
1009     if (unarrived != lastUnarrived &&
1010     (lastUnarrived = unarrived) < NCPU)
1011 dl 1.31 spins += SPINS_PER_ARRIVAL;
1012 dl 1.37 boolean interrupted = Thread.interrupted();
1013     if (interrupted || --spins < 0) { // need node to record intr
1014     node = new QNode(this, phase, false, false, 0L);
1015     node.wasInterrupted = interrupted;
1016     }
1017 dl 1.21 }
1018 dl 1.37 else if (node.isReleasable()) // done or aborted
1019     break;
1020     else if (!queued) { // push onto queue
1021 dl 1.36 AtomicReference<QNode> head = (phase & 1) == 0 ? evenQ : oddQ;
1022 dl 1.37 QNode q = node.next = head.get();
1023     if ((q == null || q.phase == phase) &&
1024     (int)(state >>> PHASE_SHIFT) == phase) // avoid stale enq
1025 dl 1.36 queued = head.compareAndSet(q, node);
1026 dl 1.31 }
1027 dl 1.17 else {
1028     try {
1029     ForkJoinPool.managedBlock(node);
1030 jsr166 1.74 } catch (InterruptedException cantHappen) {
1031 dl 1.17 node.wasInterrupted = true;
1032     }
1033     }
1034     }
1035 dl 1.34
1036     if (node != null) {
1037     if (node.thread != null)
1038 dl 1.37 node.thread = null; // avoid need for unpark()
1039 dl 1.36 if (node.wasInterrupted && !node.interruptible)
1040 dl 1.34 Thread.currentThread().interrupt();
1041 dl 1.39 if (p == phase && (p = (int)(state >>> PHASE_SHIFT)) == phase)
1042 dl 1.50 return abortWait(phase); // possibly clean up on abort
1043 dl 1.34 }
1044 dl 1.37 releaseWaiters(phase);
1045 dl 1.31 return p;
1046 jsr166 1.1 }
1047    
1048     /**
1049 jsr166 1.83 * Wait nodes for Treiber stack representing wait queue.
1050 jsr166 1.1 */
1051 dl 1.17 static final class QNode implements ForkJoinPool.ManagedBlocker {
1052     final Phaser phaser;
1053     final int phase;
1054     final boolean interruptible;
1055     final boolean timed;
1056     boolean wasInterrupted;
1057     long nanos;
1058 jsr166 1.72 final long deadline;
1059 dl 1.17 volatile Thread thread; // nulled to cancel wait
1060     QNode next;
1061    
1062     QNode(Phaser phaser, int phase, boolean interruptible,
1063     boolean timed, long nanos) {
1064     this.phaser = phaser;
1065     this.phase = phase;
1066     this.interruptible = interruptible;
1067     this.nanos = nanos;
1068     this.timed = timed;
1069 jsr166 1.72 this.deadline = timed ? System.nanoTime() + nanos : 0L;
1070 dl 1.17 thread = Thread.currentThread();
1071     }
1072    
1073     public boolean isReleasable() {
1074 dl 1.37 if (thread == null)
1075     return true;
1076     if (phaser.getPhase() != phase) {
1077     thread = null;
1078     return true;
1079     }
1080     if (Thread.interrupted())
1081     wasInterrupted = true;
1082     if (wasInterrupted && interruptible) {
1083     thread = null;
1084     return true;
1085     }
1086 jsr166 1.84 if (timed &&
1087     (nanos <= 0L || (nanos = deadline - System.nanoTime()) <= 0L)) {
1088     thread = null;
1089     return true;
1090 dl 1.15 }
1091 dl 1.37 return false;
1092 dl 1.17 }
1093    
1094     public boolean block() {
1095 jsr166 1.74 while (!isReleasable()) {
1096 jsr166 1.75 if (timed)
1097     LockSupport.parkNanos(this, nanos);
1098     else
1099 jsr166 1.74 LockSupport.park(this);
1100     }
1101     return true;
1102 dl 1.17 }
1103 jsr166 1.1 }
1104    
1105     // Unsafe mechanics
1106    
1107 jsr166 1.85 private static final jdk.internal.misc.Unsafe U = jdk.internal.misc.Unsafe.getUnsafe();
1108 jsr166 1.78 private static final long STATE;
1109 dl 1.59 static {
1110 jsr166 1.3 try {
1111 jsr166 1.78 STATE = U.objectFieldOffset
1112     (Phaser.class.getDeclaredField("state"));
1113 jsr166 1.77 } catch (ReflectiveOperationException e) {
1114 dl 1.59 throw new Error(e);
1115 jsr166 1.3 }
1116 jsr166 1.80
1117     // Reduce the risk of rare disastrous classloading in first call to
1118     // LockSupport.park: https://bugs.openjdk.java.net/browse/JDK-8074773
1119     Class<?> ensureLoaded = LockSupport.class;
1120 jsr166 1.3 }
1121 jsr166 1.1 }