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root/jsr166/jsr166/src/jdk8/java/util/concurrent/CompletableFuture.java
Revision: 1.9
Committed: Tue Sep 26 03:44:53 2017 UTC (6 years, 7 months ago) by jsr166
Branch: MAIN
Changes since 1.8: +7 -7 lines
Log Message:
backport 8186265: Make toString() methods of "task" objects more useful

File Contents

# Content
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 * http://creativecommons.org/publicdomain/zero/1.0/
5 */
6
7 package java.util.concurrent;
8
9 import java.util.concurrent.locks.LockSupport;
10 import java.util.function.BiConsumer;
11 import java.util.function.BiFunction;
12 import java.util.function.Consumer;
13 import java.util.function.Function;
14 import java.util.function.Supplier;
15
16 /**
17 * A {@link Future} that may be explicitly completed (setting its
18 * value and status), and may be used as a {@link CompletionStage},
19 * supporting dependent functions and actions that trigger upon its
20 * completion.
21 *
22 * <p>When two or more threads attempt to
23 * {@link #complete complete},
24 * {@link #completeExceptionally completeExceptionally}, or
25 * {@link #cancel cancel}
26 * a CompletableFuture, only one of them succeeds.
27 *
28 * <p>In addition to these and related methods for directly
29 * manipulating status and results, CompletableFuture implements
30 * interface {@link CompletionStage} with the following policies: <ul>
31 *
32 * <li>Actions supplied for dependent completions of
33 * <em>non-async</em> methods may be performed by the thread that
34 * completes the current CompletableFuture, or by any other caller of
35 * a completion method.
36 *
37 * <li>All <em>async</em> methods without an explicit Executor
38 * argument are performed using the {@link ForkJoinPool#commonPool()}
39 * (unless it does not support a parallelism level of at least two, in
40 * which case, a new Thread is created to run each task). This may be
41 * overridden for non-static methods in subclasses by defining method
42 * {@link #defaultExecutor()}. To simplify monitoring, debugging,
43 * and tracking, all generated asynchronous tasks are instances of the
44 * marker interface {@link AsynchronousCompletionTask}. Operations
45 * with time-delays can use adapter methods defined in this class, for
46 * example: {@code supplyAsync(supplier, delayedExecutor(timeout,
47 * timeUnit))}. To support methods with delays and timeouts, this
48 * class maintains at most one daemon thread for triggering and
49 * cancelling actions, not for running them.
50 *
51 * <li>All CompletionStage methods are implemented independently of
52 * other public methods, so the behavior of one method is not impacted
53 * by overrides of others in subclasses.
54 *
55 * <li>All CompletionStage methods return CompletableFutures. To
56 * restrict usages to only those methods defined in interface
57 * CompletionStage, use method {@link #minimalCompletionStage}. Or to
58 * ensure only that clients do not themselves modify a future, use
59 * method {@link #copy}.
60 * </ul>
61 *
62 * <p>CompletableFuture also implements {@link Future} with the following
63 * policies: <ul>
64 *
65 * <li>Since (unlike {@link FutureTask}) this class has no direct
66 * control over the computation that causes it to be completed,
67 * cancellation is treated as just another form of exceptional
68 * completion. Method {@link #cancel cancel} has the same effect as
69 * {@code completeExceptionally(new CancellationException())}. Method
70 * {@link #isCompletedExceptionally} can be used to determine if a
71 * CompletableFuture completed in any exceptional fashion.
72 *
73 * <li>In case of exceptional completion with a CompletionException,
74 * methods {@link #get()} and {@link #get(long, TimeUnit)} throw an
75 * {@link ExecutionException} with the same cause as held in the
76 * corresponding CompletionException. To simplify usage in most
77 * contexts, this class also defines methods {@link #join()} and
78 * {@link #getNow} that instead throw the CompletionException directly
79 * in these cases.
80 * </ul>
81 *
82 * <p>Arguments used to pass a completion result (that is, for
83 * parameters of type {@code T}) for methods accepting them may be
84 * null, but passing a null value for any other parameter will result
85 * in a {@link NullPointerException} being thrown.
86 *
87 * <p>Subclasses of this class should normally override the "virtual
88 * constructor" method {@link #newIncompleteFuture}, which establishes
89 * the concrete type returned by CompletionStage methods. For example,
90 * here is a class that substitutes a different default Executor and
91 * disables the {@code obtrude} methods:
92 *
93 * <pre> {@code
94 * class MyCompletableFuture<T> extends CompletableFuture<T> {
95 * static final Executor myExecutor = ...;
96 * public MyCompletableFuture() { }
97 * public <U> CompletableFuture<U> newIncompleteFuture() {
98 * return new MyCompletableFuture<U>(); }
99 * public Executor defaultExecutor() {
100 * return myExecutor; }
101 * public void obtrudeValue(T value) {
102 * throw new UnsupportedOperationException(); }
103 * public void obtrudeException(Throwable ex) {
104 * throw new UnsupportedOperationException(); }
105 * }}</pre>
106 *
107 * @author Doug Lea
108 * @param <T> The result type returned by this future's {@code join}
109 * and {@code get} methods
110 * @since 1.8
111 */
112 public class CompletableFuture<T> implements Future<T>, CompletionStage<T> {
113
114 /*
115 * Overview:
116 *
117 * A CompletableFuture may have dependent completion actions,
118 * collected in a linked stack. It atomically completes by CASing
119 * a result field, and then pops off and runs those actions. This
120 * applies across normal vs exceptional outcomes, sync vs async
121 * actions, binary triggers, and various forms of completions.
122 *
123 * Non-nullness of volatile field "result" indicates done. It may
124 * be set directly if known to be thread-confined, else via CAS.
125 * An AltResult is used to box null as a result, as well as to
126 * hold exceptions. Using a single field makes completion simple
127 * to detect and trigger. Result encoding and decoding is
128 * straightforward but tedious and adds to the sprawl of trapping
129 * and associating exceptions with targets. Minor simplifications
130 * rely on (static) NIL (to box null results) being the only
131 * AltResult with a null exception field, so we don't usually need
132 * explicit comparisons. Even though some of the generics casts
133 * are unchecked (see SuppressWarnings annotations), they are
134 * placed to be appropriate even if checked.
135 *
136 * Dependent actions are represented by Completion objects linked
137 * as Treiber stacks headed by field "stack". There are Completion
138 * classes for each kind of action, grouped into:
139 * - single-input (UniCompletion),
140 * - two-input (BiCompletion),
141 * - projected (BiCompletions using exactly one of two inputs),
142 * - shared (CoCompletion, used by the second of two sources),
143 * - zero-input source actions,
144 * - Signallers that unblock waiters.
145 * Class Completion extends ForkJoinTask to enable async execution
146 * (adding no space overhead because we exploit its "tag" methods
147 * to maintain claims). It is also declared as Runnable to allow
148 * usage with arbitrary executors.
149 *
150 * Support for each kind of CompletionStage relies on a separate
151 * class, along with two CompletableFuture methods:
152 *
153 * * A Completion class with name X corresponding to function,
154 * prefaced with "Uni", "Bi", or "Or". Each class contains
155 * fields for source(s), actions, and dependent. They are
156 * boringly similar, differing from others only with respect to
157 * underlying functional forms. We do this so that users don't
158 * encounter layers of adapters in common usages.
159 *
160 * * Boolean CompletableFuture method x(...) (for example
161 * biApply) takes all of the arguments needed to check that an
162 * action is triggerable, and then either runs the action or
163 * arranges its async execution by executing its Completion
164 * argument, if present. The method returns true if known to be
165 * complete.
166 *
167 * * Completion method tryFire(int mode) invokes the associated x
168 * method with its held arguments, and on success cleans up.
169 * The mode argument allows tryFire to be called twice (SYNC,
170 * then ASYNC); the first to screen and trap exceptions while
171 * arranging to execute, and the second when called from a task.
172 * (A few classes are not used async so take slightly different
173 * forms.) The claim() callback suppresses function invocation
174 * if already claimed by another thread.
175 *
176 * * Some classes (for example UniApply) have separate handling
177 * code for when known to be thread-confined ("now" methods) and
178 * for when shared (in tryFire), for efficiency.
179 *
180 * * CompletableFuture method xStage(...) is called from a public
181 * stage method of CompletableFuture f. It screens user
182 * arguments and invokes and/or creates the stage object. If
183 * not async and already triggerable, the action is run
184 * immediately. Otherwise a Completion c is created, and
185 * submitted to the executor if triggerable, or pushed onto f's
186 * stack if not. Completion actions are started via c.tryFire.
187 * We recheck after pushing to a source future's stack to cover
188 * possible races if the source completes while pushing.
189 * Classes with two inputs (for example BiApply) deal with races
190 * across both while pushing actions. The second completion is
191 * a CoCompletion pointing to the first, shared so that at most
192 * one performs the action. The multiple-arity methods allOf
193 * does this pairwise to form trees of completions. Method
194 * anyOf is handled differently from allOf because completion of
195 * any source should trigger a cleanStack of other sources.
196 * Each AnyOf completion can reach others via a shared array.
197 *
198 * Note that the generic type parameters of methods vary according
199 * to whether "this" is a source, dependent, or completion.
200 *
201 * Method postComplete is called upon completion unless the target
202 * is guaranteed not to be observable (i.e., not yet returned or
203 * linked). Multiple threads can call postComplete, which
204 * atomically pops each dependent action, and tries to trigger it
205 * via method tryFire, in NESTED mode. Triggering can propagate
206 * recursively, so NESTED mode returns its completed dependent (if
207 * one exists) for further processing by its caller (see method
208 * postFire).
209 *
210 * Blocking methods get() and join() rely on Signaller Completions
211 * that wake up waiting threads. The mechanics are similar to
212 * Treiber stack wait-nodes used in FutureTask, Phaser, and
213 * SynchronousQueue. See their internal documentation for
214 * algorithmic details.
215 *
216 * Without precautions, CompletableFutures would be prone to
217 * garbage accumulation as chains of Completions build up, each
218 * pointing back to its sources. So we null out fields as soon as
219 * possible. The screening checks needed anyway harmlessly ignore
220 * null arguments that may have been obtained during races with
221 * threads nulling out fields. We also try to unlink non-isLive
222 * (fired or cancelled) Completions from stacks that might
223 * otherwise never be popped: Method cleanStack always unlinks non
224 * isLive completions from the head of stack; others may
225 * occasionally remain if racing with other cancellations or
226 * removals.
227 *
228 * Completion fields need not be declared as final or volatile
229 * because they are only visible to other threads upon safe
230 * publication.
231 */
232
233 volatile Object result; // Either the result or boxed AltResult
234 volatile Completion stack; // Top of Treiber stack of dependent actions
235
236 final boolean internalComplete(Object r) { // CAS from null to r
237 return U.compareAndSwapObject(this, RESULT, null, r);
238 }
239
240 final boolean casStack(Completion cmp, Completion val) {
241 return U.compareAndSwapObject(this, STACK, cmp, val);
242 }
243
244 /** Returns true if successfully pushed c onto stack. */
245 final boolean tryPushStack(Completion c) {
246 Completion h = stack;
247 lazySetNext(c, h);
248 return U.compareAndSwapObject(this, STACK, h, c);
249 }
250
251 /** Unconditionally pushes c onto stack, retrying if necessary. */
252 final void pushStack(Completion c) {
253 do {} while (!tryPushStack(c));
254 }
255
256 /* ------------- Encoding and decoding outcomes -------------- */
257
258 static final class AltResult { // See above
259 final Throwable ex; // null only for NIL
260 AltResult(Throwable x) { this.ex = x; }
261 }
262
263 /** The encoding of the null value. */
264 static final AltResult NIL = new AltResult(null);
265
266 /** Completes with the null value, unless already completed. */
267 final boolean completeNull() {
268 return U.compareAndSwapObject(this, RESULT, null,
269 NIL);
270 }
271
272 /** Returns the encoding of the given non-exceptional value. */
273 final Object encodeValue(T t) {
274 return (t == null) ? NIL : t;
275 }
276
277 /** Completes with a non-exceptional result, unless already completed. */
278 final boolean completeValue(T t) {
279 return U.compareAndSwapObject(this, RESULT, null,
280 (t == null) ? NIL : t);
281 }
282
283 /**
284 * Returns the encoding of the given (non-null) exception as a
285 * wrapped CompletionException unless it is one already.
286 */
287 static AltResult encodeThrowable(Throwable x) {
288 return new AltResult((x instanceof CompletionException) ? x :
289 new CompletionException(x));
290 }
291
292 /** Completes with an exceptional result, unless already completed. */
293 final boolean completeThrowable(Throwable x) {
294 return U.compareAndSwapObject(this, RESULT, null,
295 encodeThrowable(x));
296 }
297
298 /**
299 * Returns the encoding of the given (non-null) exception as a
300 * wrapped CompletionException unless it is one already. May
301 * return the given Object r (which must have been the result of a
302 * source future) if it is equivalent, i.e. if this is a simple
303 * relay of an existing CompletionException.
304 */
305 static Object encodeThrowable(Throwable x, Object r) {
306 if (!(x instanceof CompletionException))
307 x = new CompletionException(x);
308 else if (r instanceof AltResult && x == ((AltResult)r).ex)
309 return r;
310 return new AltResult(x);
311 }
312
313 /**
314 * Completes with the given (non-null) exceptional result as a
315 * wrapped CompletionException unless it is one already, unless
316 * already completed. May complete with the given Object r
317 * (which must have been the result of a source future) if it is
318 * equivalent, i.e. if this is a simple propagation of an
319 * existing CompletionException.
320 */
321 final boolean completeThrowable(Throwable x, Object r) {
322 return U.compareAndSwapObject(this, RESULT, null,
323 encodeThrowable(x, r));
324 }
325
326 /**
327 * Returns the encoding of the given arguments: if the exception
328 * is non-null, encodes as AltResult. Otherwise uses the given
329 * value, boxed as NIL if null.
330 */
331 Object encodeOutcome(T t, Throwable x) {
332 return (x == null) ? (t == null) ? NIL : t : encodeThrowable(x);
333 }
334
335 /**
336 * Returns the encoding of a copied outcome; if exceptional,
337 * rewraps as a CompletionException, else returns argument.
338 */
339 static Object encodeRelay(Object r) {
340 Throwable x;
341 if (r instanceof AltResult
342 && (x = ((AltResult)r).ex) != null
343 && !(x instanceof CompletionException))
344 r = new AltResult(new CompletionException(x));
345 return r;
346 }
347
348 /**
349 * Completes with r or a copy of r, unless already completed.
350 * If exceptional, r is first coerced to a CompletionException.
351 */
352 final boolean completeRelay(Object r) {
353 return U.compareAndSwapObject(this, RESULT, null,
354 encodeRelay(r));
355 }
356
357 /**
358 * Reports result using Future.get conventions.
359 */
360 private static Object reportGet(Object r)
361 throws InterruptedException, ExecutionException {
362 if (r == null) // by convention below, null means interrupted
363 throw new InterruptedException();
364 if (r instanceof AltResult) {
365 Throwable x, cause;
366 if ((x = ((AltResult)r).ex) == null)
367 return null;
368 if (x instanceof CancellationException)
369 throw (CancellationException)x;
370 if ((x instanceof CompletionException) &&
371 (cause = x.getCause()) != null)
372 x = cause;
373 throw new ExecutionException(x);
374 }
375 return r;
376 }
377
378 /**
379 * Decodes outcome to return result or throw unchecked exception.
380 */
381 private static Object reportJoin(Object r) {
382 if (r instanceof AltResult) {
383 Throwable x;
384 if ((x = ((AltResult)r).ex) == null)
385 return null;
386 if (x instanceof CancellationException)
387 throw (CancellationException)x;
388 if (x instanceof CompletionException)
389 throw (CompletionException)x;
390 throw new CompletionException(x);
391 }
392 return r;
393 }
394
395 /* ------------- Async task preliminaries -------------- */
396
397 /**
398 * A marker interface identifying asynchronous tasks produced by
399 * {@code async} methods. This may be useful for monitoring,
400 * debugging, and tracking asynchronous activities.
401 *
402 * @since 1.8
403 */
404 public static interface AsynchronousCompletionTask {
405 }
406
407 private static final boolean USE_COMMON_POOL =
408 (ForkJoinPool.getCommonPoolParallelism() > 1);
409
410 /**
411 * Default executor -- ForkJoinPool.commonPool() unless it cannot
412 * support parallelism.
413 */
414 private static final Executor ASYNC_POOL = USE_COMMON_POOL ?
415 ForkJoinPool.commonPool() : new ThreadPerTaskExecutor();
416
417 /** Fallback if ForkJoinPool.commonPool() cannot support parallelism */
418 static final class ThreadPerTaskExecutor implements Executor {
419 public void execute(Runnable r) { new Thread(r).start(); }
420 }
421
422 /**
423 * Null-checks user executor argument, and translates uses of
424 * commonPool to ASYNC_POOL in case parallelism disabled.
425 */
426 static Executor screenExecutor(Executor e) {
427 if (!USE_COMMON_POOL && e == ForkJoinPool.commonPool())
428 return ASYNC_POOL;
429 if (e == null) throw new NullPointerException();
430 return e;
431 }
432
433 // Modes for Completion.tryFire. Signedness matters.
434 static final int SYNC = 0;
435 static final int ASYNC = 1;
436 static final int NESTED = -1;
437
438 /* ------------- Base Completion classes and operations -------------- */
439
440 @SuppressWarnings("serial")
441 abstract static class Completion extends ForkJoinTask<Void>
442 implements Runnable, AsynchronousCompletionTask {
443 volatile Completion next; // Treiber stack link
444
445 /**
446 * Performs completion action if triggered, returning a
447 * dependent that may need propagation, if one exists.
448 *
449 * @param mode SYNC, ASYNC, or NESTED
450 */
451 abstract CompletableFuture<?> tryFire(int mode);
452
453 /** Returns true if possibly still triggerable. Used by cleanStack. */
454 abstract boolean isLive();
455
456 public final void run() { tryFire(ASYNC); }
457 public final boolean exec() { tryFire(ASYNC); return false; }
458 public final Void getRawResult() { return null; }
459 public final void setRawResult(Void v) {}
460 }
461
462 static void lazySetNext(Completion c, Completion next) {
463 U.putOrderedObject(c, NEXT, next);
464 }
465
466 static boolean casNext(Completion c, Completion cmp, Completion val) {
467 return U.compareAndSwapObject(c, NEXT, cmp, val);
468 }
469
470 /**
471 * Pops and tries to trigger all reachable dependents. Call only
472 * when known to be done.
473 */
474 final void postComplete() {
475 /*
476 * On each step, variable f holds current dependents to pop
477 * and run. It is extended along only one path at a time,
478 * pushing others to avoid unbounded recursion.
479 */
480 CompletableFuture<?> f = this; Completion h;
481 while ((h = f.stack) != null ||
482 (f != this && (h = (f = this).stack) != null)) {
483 CompletableFuture<?> d; Completion t;
484 if (f.casStack(h, t = h.next)) {
485 if (t != null) {
486 if (f != this) {
487 pushStack(h);
488 continue;
489 }
490 casNext(h, t, null); // try to detach
491 }
492 f = (d = h.tryFire(NESTED)) == null ? this : d;
493 }
494 }
495 }
496
497 /** Traverses stack and unlinks one or more dead Completions, if found. */
498 final void cleanStack() {
499 Completion p = stack;
500 // ensure head of stack live
501 for (boolean unlinked = false;;) {
502 if (p == null)
503 return;
504 else if (p.isLive()) {
505 if (unlinked)
506 return;
507 else
508 break;
509 }
510 else if (casStack(p, (p = p.next)))
511 unlinked = true;
512 else
513 p = stack;
514 }
515 // try to unlink first non-live
516 for (Completion q = p.next; q != null;) {
517 Completion s = q.next;
518 if (q.isLive()) {
519 p = q;
520 q = s;
521 } else if (casNext(p, q, s))
522 break;
523 else
524 q = p.next;
525 }
526 }
527
528 /* ------------- One-input Completions -------------- */
529
530 /** A Completion with a source, dependent, and executor. */
531 @SuppressWarnings("serial")
532 abstract static class UniCompletion<T,V> extends Completion {
533 Executor executor; // executor to use (null if none)
534 CompletableFuture<V> dep; // the dependent to complete
535 CompletableFuture<T> src; // source for action
536
537 UniCompletion(Executor executor, CompletableFuture<V> dep,
538 CompletableFuture<T> src) {
539 this.executor = executor; this.dep = dep; this.src = src;
540 }
541
542 /**
543 * Returns true if action can be run. Call only when known to
544 * be triggerable. Uses FJ tag bit to ensure that only one
545 * thread claims ownership. If async, starts as task -- a
546 * later call to tryFire will run action.
547 */
548 final boolean claim() {
549 Executor e = executor;
550 if (compareAndSetForkJoinTaskTag((short)0, (short)1)) {
551 if (e == null)
552 return true;
553 executor = null; // disable
554 e.execute(this);
555 }
556 return false;
557 }
558
559 final boolean isLive() { return dep != null; }
560 }
561
562 /**
563 * Pushes the given completion unless it completes while trying.
564 * Caller should first check that result is null.
565 */
566 final void unipush(Completion c) {
567 if (c != null) {
568 while (!tryPushStack(c)) {
569 if (result != null) {
570 lazySetNext(c, null);
571 break;
572 }
573 }
574 if (result != null)
575 c.tryFire(SYNC);
576 }
577 }
578
579 /**
580 * Post-processing by dependent after successful UniCompletion tryFire.
581 * Tries to clean stack of source a, and then either runs postComplete
582 * or returns this to caller, depending on mode.
583 */
584 final CompletableFuture<T> postFire(CompletableFuture<?> a, int mode) {
585 if (a != null && a.stack != null) {
586 Object r;
587 if ((r = a.result) == null)
588 a.cleanStack();
589 if (mode >= 0 && (r != null || a.result != null))
590 a.postComplete();
591 }
592 if (result != null && stack != null) {
593 if (mode < 0)
594 return this;
595 else
596 postComplete();
597 }
598 return null;
599 }
600
601 @SuppressWarnings("serial")
602 static final class UniApply<T,V> extends UniCompletion<T,V> {
603 Function<? super T,? extends V> fn;
604 UniApply(Executor executor, CompletableFuture<V> dep,
605 CompletableFuture<T> src,
606 Function<? super T,? extends V> fn) {
607 super(executor, dep, src); this.fn = fn;
608 }
609 final CompletableFuture<V> tryFire(int mode) {
610 CompletableFuture<V> d; CompletableFuture<T> a;
611 Object r; Throwable x; Function<? super T,? extends V> f;
612 if ((d = dep) == null || (f = fn) == null
613 || (a = src) == null || (r = a.result) == null)
614 return null;
615 tryComplete: if (d.result == null) {
616 if (r instanceof AltResult) {
617 if ((x = ((AltResult)r).ex) != null) {
618 d.completeThrowable(x, r);
619 break tryComplete;
620 }
621 r = null;
622 }
623 try {
624 if (mode <= 0 && !claim())
625 return null;
626 else {
627 @SuppressWarnings("unchecked") T t = (T) r;
628 d.completeValue(f.apply(t));
629 }
630 } catch (Throwable ex) {
631 d.completeThrowable(ex);
632 }
633 }
634 dep = null; src = null; fn = null;
635 return d.postFire(a, mode);
636 }
637 }
638
639 private <V> CompletableFuture<V> uniApplyStage(
640 Executor e, Function<? super T,? extends V> f) {
641 if (f == null) throw new NullPointerException();
642 Object r;
643 if ((r = result) != null)
644 return uniApplyNow(r, e, f);
645 CompletableFuture<V> d = newIncompleteFuture();
646 unipush(new UniApply<T,V>(e, d, this, f));
647 return d;
648 }
649
650 private <V> CompletableFuture<V> uniApplyNow(
651 Object r, Executor e, Function<? super T,? extends V> f) {
652 Throwable x;
653 CompletableFuture<V> d = newIncompleteFuture();
654 if (r instanceof AltResult) {
655 if ((x = ((AltResult)r).ex) != null) {
656 d.result = encodeThrowable(x, r);
657 return d;
658 }
659 r = null;
660 }
661 try {
662 if (e != null) {
663 e.execute(new UniApply<T,V>(null, d, this, f));
664 } else {
665 @SuppressWarnings("unchecked") T t = (T) r;
666 d.result = d.encodeValue(f.apply(t));
667 }
668 } catch (Throwable ex) {
669 d.result = encodeThrowable(ex);
670 }
671 return d;
672 }
673
674 @SuppressWarnings("serial")
675 static final class UniAccept<T> extends UniCompletion<T,Void> {
676 Consumer<? super T> fn;
677 UniAccept(Executor executor, CompletableFuture<Void> dep,
678 CompletableFuture<T> src, Consumer<? super T> fn) {
679 super(executor, dep, src); this.fn = fn;
680 }
681 final CompletableFuture<Void> tryFire(int mode) {
682 CompletableFuture<Void> d; CompletableFuture<T> a;
683 Object r; Throwable x; Consumer<? super T> f;
684 if ((d = dep) == null || (f = fn) == null
685 || (a = src) == null || (r = a.result) == null)
686 return null;
687 tryComplete: if (d.result == null) {
688 if (r instanceof AltResult) {
689 if ((x = ((AltResult)r).ex) != null) {
690 d.completeThrowable(x, r);
691 break tryComplete;
692 }
693 r = null;
694 }
695 try {
696 if (mode <= 0 && !claim())
697 return null;
698 else {
699 @SuppressWarnings("unchecked") T t = (T) r;
700 f.accept(t);
701 d.completeNull();
702 }
703 } catch (Throwable ex) {
704 d.completeThrowable(ex);
705 }
706 }
707 dep = null; src = null; fn = null;
708 return d.postFire(a, mode);
709 }
710 }
711
712 private CompletableFuture<Void> uniAcceptStage(Executor e,
713 Consumer<? super T> f) {
714 if (f == null) throw new NullPointerException();
715 Object r;
716 if ((r = result) != null)
717 return uniAcceptNow(r, e, f);
718 CompletableFuture<Void> d = newIncompleteFuture();
719 unipush(new UniAccept<T>(e, d, this, f));
720 return d;
721 }
722
723 private CompletableFuture<Void> uniAcceptNow(
724 Object r, Executor e, Consumer<? super T> f) {
725 Throwable x;
726 CompletableFuture<Void> d = newIncompleteFuture();
727 if (r instanceof AltResult) {
728 if ((x = ((AltResult)r).ex) != null) {
729 d.result = encodeThrowable(x, r);
730 return d;
731 }
732 r = null;
733 }
734 try {
735 if (e != null) {
736 e.execute(new UniAccept<T>(null, d, this, f));
737 } else {
738 @SuppressWarnings("unchecked") T t = (T) r;
739 f.accept(t);
740 d.result = NIL;
741 }
742 } catch (Throwable ex) {
743 d.result = encodeThrowable(ex);
744 }
745 return d;
746 }
747
748 @SuppressWarnings("serial")
749 static final class UniRun<T> extends UniCompletion<T,Void> {
750 Runnable fn;
751 UniRun(Executor executor, CompletableFuture<Void> dep,
752 CompletableFuture<T> src, Runnable fn) {
753 super(executor, dep, src); this.fn = fn;
754 }
755 final CompletableFuture<Void> tryFire(int mode) {
756 CompletableFuture<Void> d; CompletableFuture<T> a;
757 Object r; Throwable x; Runnable f;
758 if ((d = dep) == null || (f = fn) == null
759 || (a = src) == null || (r = a.result) == null)
760 return null;
761 if (d.result == null) {
762 if (r instanceof AltResult && (x = ((AltResult)r).ex) != null)
763 d.completeThrowable(x, r);
764 else
765 try {
766 if (mode <= 0 && !claim())
767 return null;
768 else {
769 f.run();
770 d.completeNull();
771 }
772 } catch (Throwable ex) {
773 d.completeThrowable(ex);
774 }
775 }
776 dep = null; src = null; fn = null;
777 return d.postFire(a, mode);
778 }
779 }
780
781 private CompletableFuture<Void> uniRunStage(Executor e, Runnable f) {
782 if (f == null) throw new NullPointerException();
783 Object r;
784 if ((r = result) != null)
785 return uniRunNow(r, e, f);
786 CompletableFuture<Void> d = newIncompleteFuture();
787 unipush(new UniRun<T>(e, d, this, f));
788 return d;
789 }
790
791 private CompletableFuture<Void> uniRunNow(Object r, Executor e, Runnable f) {
792 Throwable x;
793 CompletableFuture<Void> d = newIncompleteFuture();
794 if (r instanceof AltResult && (x = ((AltResult)r).ex) != null)
795 d.result = encodeThrowable(x, r);
796 else
797 try {
798 if (e != null) {
799 e.execute(new UniRun<T>(null, d, this, f));
800 } else {
801 f.run();
802 d.result = NIL;
803 }
804 } catch (Throwable ex) {
805 d.result = encodeThrowable(ex);
806 }
807 return d;
808 }
809
810 @SuppressWarnings("serial")
811 static final class UniWhenComplete<T> extends UniCompletion<T,T> {
812 BiConsumer<? super T, ? super Throwable> fn;
813 UniWhenComplete(Executor executor, CompletableFuture<T> dep,
814 CompletableFuture<T> src,
815 BiConsumer<? super T, ? super Throwable> fn) {
816 super(executor, dep, src); this.fn = fn;
817 }
818 final CompletableFuture<T> tryFire(int mode) {
819 CompletableFuture<T> d; CompletableFuture<T> a;
820 Object r; BiConsumer<? super T, ? super Throwable> f;
821 if ((d = dep) == null || (f = fn) == null
822 || (a = src) == null || (r = a.result) == null
823 || !d.uniWhenComplete(r, f, mode > 0 ? null : this))
824 return null;
825 dep = null; src = null; fn = null;
826 return d.postFire(a, mode);
827 }
828 }
829
830 final boolean uniWhenComplete(Object r,
831 BiConsumer<? super T,? super Throwable> f,
832 UniWhenComplete<T> c) {
833 T t; Throwable x = null;
834 if (result == null) {
835 try {
836 if (c != null && !c.claim())
837 return false;
838 if (r instanceof AltResult) {
839 x = ((AltResult)r).ex;
840 t = null;
841 } else {
842 @SuppressWarnings("unchecked") T tr = (T) r;
843 t = tr;
844 }
845 f.accept(t, x);
846 if (x == null) {
847 internalComplete(r);
848 return true;
849 }
850 } catch (Throwable ex) {
851 if (x == null)
852 x = ex;
853 else if (x != ex)
854 x.addSuppressed(ex);
855 }
856 completeThrowable(x, r);
857 }
858 return true;
859 }
860
861 private CompletableFuture<T> uniWhenCompleteStage(
862 Executor e, BiConsumer<? super T, ? super Throwable> f) {
863 if (f == null) throw new NullPointerException();
864 CompletableFuture<T> d = newIncompleteFuture();
865 Object r;
866 if ((r = result) == null)
867 unipush(new UniWhenComplete<T>(e, d, this, f));
868 else if (e == null)
869 d.uniWhenComplete(r, f, null);
870 else {
871 try {
872 e.execute(new UniWhenComplete<T>(null, d, this, f));
873 } catch (Throwable ex) {
874 d.result = encodeThrowable(ex);
875 }
876 }
877 return d;
878 }
879
880 @SuppressWarnings("serial")
881 static final class UniHandle<T,V> extends UniCompletion<T,V> {
882 BiFunction<? super T, Throwable, ? extends V> fn;
883 UniHandle(Executor executor, CompletableFuture<V> dep,
884 CompletableFuture<T> src,
885 BiFunction<? super T, Throwable, ? extends V> fn) {
886 super(executor, dep, src); this.fn = fn;
887 }
888 final CompletableFuture<V> tryFire(int mode) {
889 CompletableFuture<V> d; CompletableFuture<T> a;
890 Object r; BiFunction<? super T, Throwable, ? extends V> f;
891 if ((d = dep) == null || (f = fn) == null
892 || (a = src) == null || (r = a.result) == null
893 || !d.uniHandle(r, f, mode > 0 ? null : this))
894 return null;
895 dep = null; src = null; fn = null;
896 return d.postFire(a, mode);
897 }
898 }
899
900 final <S> boolean uniHandle(Object r,
901 BiFunction<? super S, Throwable, ? extends T> f,
902 UniHandle<S,T> c) {
903 S s; Throwable x;
904 if (result == null) {
905 try {
906 if (c != null && !c.claim())
907 return false;
908 if (r instanceof AltResult) {
909 x = ((AltResult)r).ex;
910 s = null;
911 } else {
912 x = null;
913 @SuppressWarnings("unchecked") S ss = (S) r;
914 s = ss;
915 }
916 completeValue(f.apply(s, x));
917 } catch (Throwable ex) {
918 completeThrowable(ex);
919 }
920 }
921 return true;
922 }
923
924 private <V> CompletableFuture<V> uniHandleStage(
925 Executor e, BiFunction<? super T, Throwable, ? extends V> f) {
926 if (f == null) throw new NullPointerException();
927 CompletableFuture<V> d = newIncompleteFuture();
928 Object r;
929 if ((r = result) == null)
930 unipush(new UniHandle<T,V>(e, d, this, f));
931 else if (e == null)
932 d.uniHandle(r, f, null);
933 else {
934 try {
935 e.execute(new UniHandle<T,V>(null, d, this, f));
936 } catch (Throwable ex) {
937 d.result = encodeThrowable(ex);
938 }
939 }
940 return d;
941 }
942
943 @SuppressWarnings("serial")
944 static final class UniExceptionally<T> extends UniCompletion<T,T> {
945 Function<? super Throwable, ? extends T> fn;
946 UniExceptionally(CompletableFuture<T> dep, CompletableFuture<T> src,
947 Function<? super Throwable, ? extends T> fn) {
948 super(null, dep, src); this.fn = fn;
949 }
950 final CompletableFuture<T> tryFire(int mode) { // never ASYNC
951 // assert mode != ASYNC;
952 CompletableFuture<T> d; CompletableFuture<T> a;
953 Object r; Function<? super Throwable, ? extends T> f;
954 if ((d = dep) == null || (f = fn) == null
955 || (a = src) == null || (r = a.result) == null
956 || !d.uniExceptionally(r, f, this))
957 return null;
958 dep = null; src = null; fn = null;
959 return d.postFire(a, mode);
960 }
961 }
962
963 final boolean uniExceptionally(Object r,
964 Function<? super Throwable, ? extends T> f,
965 UniExceptionally<T> c) {
966 Throwable x;
967 if (result == null) {
968 try {
969 if (r instanceof AltResult && (x = ((AltResult)r).ex) != null) {
970 if (c != null && !c.claim())
971 return false;
972 completeValue(f.apply(x));
973 } else
974 internalComplete(r);
975 } catch (Throwable ex) {
976 completeThrowable(ex);
977 }
978 }
979 return true;
980 }
981
982 private CompletableFuture<T> uniExceptionallyStage(
983 Function<Throwable, ? extends T> f) {
984 if (f == null) throw new NullPointerException();
985 CompletableFuture<T> d = newIncompleteFuture();
986 Object r;
987 if ((r = result) == null)
988 unipush(new UniExceptionally<T>(d, this, f));
989 else
990 d.uniExceptionally(r, f, null);
991 return d;
992 }
993
994 @SuppressWarnings("serial")
995 static final class UniRelay<U, T extends U> extends UniCompletion<T,U> {
996 UniRelay(CompletableFuture<U> dep, CompletableFuture<T> src) {
997 super(null, dep, src);
998 }
999 final CompletableFuture<U> tryFire(int mode) {
1000 CompletableFuture<U> d; CompletableFuture<T> a; Object r;
1001 if ((d = dep) == null
1002 || (a = src) == null || (r = a.result) == null)
1003 return null;
1004 if (d.result == null)
1005 d.completeRelay(r);
1006 src = null; dep = null;
1007 return d.postFire(a, mode);
1008 }
1009 }
1010
1011 private static <U, T extends U> CompletableFuture<U> uniCopyStage(
1012 CompletableFuture<T> src) {
1013 Object r;
1014 CompletableFuture<U> d = src.newIncompleteFuture();
1015 if ((r = src.result) != null)
1016 d.result = encodeRelay(r);
1017 else
1018 src.unipush(new UniRelay<U,T>(d, src));
1019 return d;
1020 }
1021
1022 private MinimalStage<T> uniAsMinimalStage() {
1023 Object r;
1024 if ((r = result) != null)
1025 return new MinimalStage<T>(encodeRelay(r));
1026 MinimalStage<T> d = new MinimalStage<T>();
1027 unipush(new UniRelay<T,T>(d, this));
1028 return d;
1029 }
1030
1031 @SuppressWarnings("serial")
1032 static final class UniCompose<T,V> extends UniCompletion<T,V> {
1033 Function<? super T, ? extends CompletionStage<V>> fn;
1034 UniCompose(Executor executor, CompletableFuture<V> dep,
1035 CompletableFuture<T> src,
1036 Function<? super T, ? extends CompletionStage<V>> fn) {
1037 super(executor, dep, src); this.fn = fn;
1038 }
1039 final CompletableFuture<V> tryFire(int mode) {
1040 CompletableFuture<V> d; CompletableFuture<T> a;
1041 Function<? super T, ? extends CompletionStage<V>> f;
1042 Object r; Throwable x;
1043 if ((d = dep) == null || (f = fn) == null
1044 || (a = src) == null || (r = a.result) == null)
1045 return null;
1046 tryComplete: if (d.result == null) {
1047 if (r instanceof AltResult) {
1048 if ((x = ((AltResult)r).ex) != null) {
1049 d.completeThrowable(x, r);
1050 break tryComplete;
1051 }
1052 r = null;
1053 }
1054 try {
1055 if (mode <= 0 && !claim())
1056 return null;
1057 @SuppressWarnings("unchecked") T t = (T) r;
1058 CompletableFuture<V> g = f.apply(t).toCompletableFuture();
1059 if ((r = g.result) != null)
1060 d.completeRelay(r);
1061 else {
1062 g.unipush(new UniRelay<V,V>(d, g));
1063 if (d.result == null)
1064 return null;
1065 }
1066 } catch (Throwable ex) {
1067 d.completeThrowable(ex);
1068 }
1069 }
1070 dep = null; src = null; fn = null;
1071 return d.postFire(a, mode);
1072 }
1073 }
1074
1075 private <V> CompletableFuture<V> uniComposeStage(
1076 Executor e, Function<? super T, ? extends CompletionStage<V>> f) {
1077 if (f == null) throw new NullPointerException();
1078 CompletableFuture<V> d = newIncompleteFuture();
1079 Object r, s; Throwable x;
1080 if ((r = result) == null)
1081 unipush(new UniCompose<T,V>(e, d, this, f));
1082 else if (e == null) {
1083 if (r instanceof AltResult) {
1084 if ((x = ((AltResult)r).ex) != null) {
1085 d.result = encodeThrowable(x, r);
1086 return d;
1087 }
1088 r = null;
1089 }
1090 try {
1091 @SuppressWarnings("unchecked") T t = (T) r;
1092 CompletableFuture<V> g = f.apply(t).toCompletableFuture();
1093 if ((s = g.result) != null)
1094 d.result = encodeRelay(s);
1095 else {
1096 g.unipush(new UniRelay<V,V>(d, g));
1097 }
1098 } catch (Throwable ex) {
1099 d.result = encodeThrowable(ex);
1100 }
1101 }
1102 else
1103 try {
1104 e.execute(new UniCompose<T,V>(null, d, this, f));
1105 } catch (Throwable ex) {
1106 d.result = encodeThrowable(ex);
1107 }
1108 return d;
1109 }
1110
1111 /* ------------- Two-input Completions -------------- */
1112
1113 /** A Completion for an action with two sources */
1114 @SuppressWarnings("serial")
1115 abstract static class BiCompletion<T,U,V> extends UniCompletion<T,V> {
1116 CompletableFuture<U> snd; // second source for action
1117 BiCompletion(Executor executor, CompletableFuture<V> dep,
1118 CompletableFuture<T> src, CompletableFuture<U> snd) {
1119 super(executor, dep, src); this.snd = snd;
1120 }
1121 }
1122
1123 /** A Completion delegating to a BiCompletion */
1124 @SuppressWarnings("serial")
1125 static final class CoCompletion extends Completion {
1126 BiCompletion<?,?,?> base;
1127 CoCompletion(BiCompletion<?,?,?> base) { this.base = base; }
1128 final CompletableFuture<?> tryFire(int mode) {
1129 BiCompletion<?,?,?> c; CompletableFuture<?> d;
1130 if ((c = base) == null || (d = c.tryFire(mode)) == null)
1131 return null;
1132 base = null; // detach
1133 return d;
1134 }
1135 final boolean isLive() {
1136 BiCompletion<?,?,?> c;
1137 return (c = base) != null
1138 // && c.isLive()
1139 && c.dep != null;
1140 }
1141 }
1142
1143 /**
1144 * Pushes completion to this and b unless both done.
1145 * Caller should first check that either result or b.result is null.
1146 */
1147 final void bipush(CompletableFuture<?> b, BiCompletion<?,?,?> c) {
1148 if (c != null) {
1149 while (result == null) {
1150 if (tryPushStack(c)) {
1151 if (b.result == null)
1152 b.unipush(new CoCompletion(c));
1153 else if (result != null)
1154 c.tryFire(SYNC);
1155 return;
1156 }
1157 }
1158 b.unipush(c);
1159 }
1160 }
1161
1162 /** Post-processing after successful BiCompletion tryFire. */
1163 final CompletableFuture<T> postFire(CompletableFuture<?> a,
1164 CompletableFuture<?> b, int mode) {
1165 if (b != null && b.stack != null) { // clean second source
1166 Object r;
1167 if ((r = b.result) == null)
1168 b.cleanStack();
1169 if (mode >= 0 && (r != null || b.result != null))
1170 b.postComplete();
1171 }
1172 return postFire(a, mode);
1173 }
1174
1175 @SuppressWarnings("serial")
1176 static final class BiApply<T,U,V> extends BiCompletion<T,U,V> {
1177 BiFunction<? super T,? super U,? extends V> fn;
1178 BiApply(Executor executor, CompletableFuture<V> dep,
1179 CompletableFuture<T> src, CompletableFuture<U> snd,
1180 BiFunction<? super T,? super U,? extends V> fn) {
1181 super(executor, dep, src, snd); this.fn = fn;
1182 }
1183 final CompletableFuture<V> tryFire(int mode) {
1184 CompletableFuture<V> d;
1185 CompletableFuture<T> a;
1186 CompletableFuture<U> b;
1187 Object r, s; BiFunction<? super T,? super U,? extends V> f;
1188 if ((d = dep) == null || (f = fn) == null
1189 || (a = src) == null || (r = a.result) == null
1190 || (b = snd) == null || (s = b.result) == null
1191 || !d.biApply(r, s, f, mode > 0 ? null : this))
1192 return null;
1193 dep = null; src = null; snd = null; fn = null;
1194 return d.postFire(a, b, mode);
1195 }
1196 }
1197
1198 final <R,S> boolean biApply(Object r, Object s,
1199 BiFunction<? super R,? super S,? extends T> f,
1200 BiApply<R,S,T> c) {
1201 Throwable x;
1202 tryComplete: if (result == null) {
1203 if (r instanceof AltResult) {
1204 if ((x = ((AltResult)r).ex) != null) {
1205 completeThrowable(x, r);
1206 break tryComplete;
1207 }
1208 r = null;
1209 }
1210 if (s instanceof AltResult) {
1211 if ((x = ((AltResult)s).ex) != null) {
1212 completeThrowable(x, s);
1213 break tryComplete;
1214 }
1215 s = null;
1216 }
1217 try {
1218 if (c != null && !c.claim())
1219 return false;
1220 @SuppressWarnings("unchecked") R rr = (R) r;
1221 @SuppressWarnings("unchecked") S ss = (S) s;
1222 completeValue(f.apply(rr, ss));
1223 } catch (Throwable ex) {
1224 completeThrowable(ex);
1225 }
1226 }
1227 return true;
1228 }
1229
1230 private <U,V> CompletableFuture<V> biApplyStage(
1231 Executor e, CompletionStage<U> o,
1232 BiFunction<? super T,? super U,? extends V> f) {
1233 CompletableFuture<U> b; Object r, s;
1234 if (f == null || (b = o.toCompletableFuture()) == null)
1235 throw new NullPointerException();
1236 CompletableFuture<V> d = newIncompleteFuture();
1237 if ((r = result) == null || (s = b.result) == null)
1238 bipush(b, new BiApply<T,U,V>(e, d, this, b, f));
1239 else if (e == null)
1240 d.biApply(r, s, f, null);
1241 else
1242 try {
1243 e.execute(new BiApply<T,U,V>(null, d, this, b, f));
1244 } catch (Throwable ex) {
1245 d.result = encodeThrowable(ex);
1246 }
1247 return d;
1248 }
1249
1250 @SuppressWarnings("serial")
1251 static final class BiAccept<T,U> extends BiCompletion<T,U,Void> {
1252 BiConsumer<? super T,? super U> fn;
1253 BiAccept(Executor executor, CompletableFuture<Void> dep,
1254 CompletableFuture<T> src, CompletableFuture<U> snd,
1255 BiConsumer<? super T,? super U> fn) {
1256 super(executor, dep, src, snd); this.fn = fn;
1257 }
1258 final CompletableFuture<Void> tryFire(int mode) {
1259 CompletableFuture<Void> d;
1260 CompletableFuture<T> a;
1261 CompletableFuture<U> b;
1262 Object r, s; BiConsumer<? super T,? super U> f;
1263 if ((d = dep) == null || (f = fn) == null
1264 || (a = src) == null || (r = a.result) == null
1265 || (b = snd) == null || (s = b.result) == null
1266 || !d.biAccept(r, s, f, mode > 0 ? null : this))
1267 return null;
1268 dep = null; src = null; snd = null; fn = null;
1269 return d.postFire(a, b, mode);
1270 }
1271 }
1272
1273 final <R,S> boolean biAccept(Object r, Object s,
1274 BiConsumer<? super R,? super S> f,
1275 BiAccept<R,S> c) {
1276 Throwable x;
1277 tryComplete: if (result == null) {
1278 if (r instanceof AltResult) {
1279 if ((x = ((AltResult)r).ex) != null) {
1280 completeThrowable(x, r);
1281 break tryComplete;
1282 }
1283 r = null;
1284 }
1285 if (s instanceof AltResult) {
1286 if ((x = ((AltResult)s).ex) != null) {
1287 completeThrowable(x, s);
1288 break tryComplete;
1289 }
1290 s = null;
1291 }
1292 try {
1293 if (c != null && !c.claim())
1294 return false;
1295 @SuppressWarnings("unchecked") R rr = (R) r;
1296 @SuppressWarnings("unchecked") S ss = (S) s;
1297 f.accept(rr, ss);
1298 completeNull();
1299 } catch (Throwable ex) {
1300 completeThrowable(ex);
1301 }
1302 }
1303 return true;
1304 }
1305
1306 private <U> CompletableFuture<Void> biAcceptStage(
1307 Executor e, CompletionStage<U> o,
1308 BiConsumer<? super T,? super U> f) {
1309 CompletableFuture<U> b; Object r, s;
1310 if (f == null || (b = o.toCompletableFuture()) == null)
1311 throw new NullPointerException();
1312 CompletableFuture<Void> d = newIncompleteFuture();
1313 if ((r = result) == null || (s = b.result) == null)
1314 bipush(b, new BiAccept<T,U>(e, d, this, b, f));
1315 else if (e == null)
1316 d.biAccept(r, s, f, null);
1317 else
1318 try {
1319 e.execute(new BiAccept<T,U>(null, d, this, b, f));
1320 } catch (Throwable ex) {
1321 d.result = encodeThrowable(ex);
1322 }
1323 return d;
1324 }
1325
1326 @SuppressWarnings("serial")
1327 static final class BiRun<T,U> extends BiCompletion<T,U,Void> {
1328 Runnable fn;
1329 BiRun(Executor executor, CompletableFuture<Void> dep,
1330 CompletableFuture<T> src, CompletableFuture<U> snd,
1331 Runnable fn) {
1332 super(executor, dep, src, snd); this.fn = fn;
1333 }
1334 final CompletableFuture<Void> tryFire(int mode) {
1335 CompletableFuture<Void> d;
1336 CompletableFuture<T> a;
1337 CompletableFuture<U> b;
1338 Object r, s; Runnable f;
1339 if ((d = dep) == null || (f = fn) == null
1340 || (a = src) == null || (r = a.result) == null
1341 || (b = snd) == null || (s = b.result) == null
1342 || !d.biRun(r, s, f, mode > 0 ? null : this))
1343 return null;
1344 dep = null; src = null; snd = null; fn = null;
1345 return d.postFire(a, b, mode);
1346 }
1347 }
1348
1349 final boolean biRun(Object r, Object s, Runnable f, BiRun<?,?> c) {
1350 Throwable x; Object z;
1351 if (result == null) {
1352 if ((r instanceof AltResult
1353 && (x = ((AltResult)(z = r)).ex) != null) ||
1354 (s instanceof AltResult
1355 && (x = ((AltResult)(z = s)).ex) != null))
1356 completeThrowable(x, z);
1357 else
1358 try {
1359 if (c != null && !c.claim())
1360 return false;
1361 f.run();
1362 completeNull();
1363 } catch (Throwable ex) {
1364 completeThrowable(ex);
1365 }
1366 }
1367 return true;
1368 }
1369
1370 private CompletableFuture<Void> biRunStage(Executor e, CompletionStage<?> o,
1371 Runnable f) {
1372 CompletableFuture<?> b; Object r, s;
1373 if (f == null || (b = o.toCompletableFuture()) == null)
1374 throw new NullPointerException();
1375 CompletableFuture<Void> d = newIncompleteFuture();
1376 if ((r = result) == null || (s = b.result) == null)
1377 bipush(b, new BiRun<>(e, d, this, b, f));
1378 else if (e == null)
1379 d.biRun(r, s, f, null);
1380 else
1381 try {
1382 e.execute(new BiRun<>(null, d, this, b, f));
1383 } catch (Throwable ex) {
1384 d.result = encodeThrowable(ex);
1385 }
1386 return d;
1387 }
1388
1389 @SuppressWarnings("serial")
1390 static final class BiRelay<T,U> extends BiCompletion<T,U,Void> { // for And
1391 BiRelay(CompletableFuture<Void> dep,
1392 CompletableFuture<T> src, CompletableFuture<U> snd) {
1393 super(null, dep, src, snd);
1394 }
1395 final CompletableFuture<Void> tryFire(int mode) {
1396 CompletableFuture<Void> d;
1397 CompletableFuture<T> a;
1398 CompletableFuture<U> b;
1399 Object r, s, z; Throwable x;
1400 if ((d = dep) == null
1401 || (a = src) == null || (r = a.result) == null
1402 || (b = snd) == null || (s = b.result) == null)
1403 return null;
1404 if (d.result == null) {
1405 if ((r instanceof AltResult
1406 && (x = ((AltResult)(z = r)).ex) != null) ||
1407 (s instanceof AltResult
1408 && (x = ((AltResult)(z = s)).ex) != null))
1409 d.completeThrowable(x, z);
1410 else
1411 d.completeNull();
1412 }
1413 src = null; snd = null; dep = null;
1414 return d.postFire(a, b, mode);
1415 }
1416 }
1417
1418 /** Recursively constructs a tree of completions. */
1419 static CompletableFuture<Void> andTree(CompletableFuture<?>[] cfs,
1420 int lo, int hi) {
1421 CompletableFuture<Void> d = new CompletableFuture<Void>();
1422 if (lo > hi) // empty
1423 d.result = NIL;
1424 else {
1425 CompletableFuture<?> a, b; Object r, s, z; Throwable x;
1426 int mid = (lo + hi) >>> 1;
1427 if ((a = (lo == mid ? cfs[lo] :
1428 andTree(cfs, lo, mid))) == null ||
1429 (b = (lo == hi ? a : (hi == mid+1) ? cfs[hi] :
1430 andTree(cfs, mid+1, hi))) == null)
1431 throw new NullPointerException();
1432 if ((r = a.result) == null || (s = b.result) == null)
1433 a.bipush(b, new BiRelay<>(d, a, b));
1434 else if ((r instanceof AltResult
1435 && (x = ((AltResult)(z = r)).ex) != null) ||
1436 (s instanceof AltResult
1437 && (x = ((AltResult)(z = s)).ex) != null))
1438 d.result = encodeThrowable(x, z);
1439 else
1440 d.result = NIL;
1441 }
1442 return d;
1443 }
1444
1445 /* ------------- Projected (Ored) BiCompletions -------------- */
1446
1447 /**
1448 * Pushes completion to this and b unless either done.
1449 * Caller should first check that result and b.result are both null.
1450 */
1451 final void orpush(CompletableFuture<?> b, BiCompletion<?,?,?> c) {
1452 if (c != null) {
1453 while (!tryPushStack(c)) {
1454 if (result != null) {
1455 lazySetNext(c, null);
1456 break;
1457 }
1458 }
1459 if (result != null)
1460 c.tryFire(SYNC);
1461 else
1462 b.unipush(new CoCompletion(c));
1463 }
1464 }
1465
1466 @SuppressWarnings("serial")
1467 static final class OrApply<T,U extends T,V> extends BiCompletion<T,U,V> {
1468 Function<? super T,? extends V> fn;
1469 OrApply(Executor executor, CompletableFuture<V> dep,
1470 CompletableFuture<T> src, CompletableFuture<U> snd,
1471 Function<? super T,? extends V> fn) {
1472 super(executor, dep, src, snd); this.fn = fn;
1473 }
1474 final CompletableFuture<V> tryFire(int mode) {
1475 CompletableFuture<V> d;
1476 CompletableFuture<T> a;
1477 CompletableFuture<U> b;
1478 Object r; Throwable x; Function<? super T,? extends V> f;
1479 if ((d = dep) == null || (f = fn) == null
1480 || (a = src) == null || (b = snd) == null
1481 || ((r = a.result) == null && (r = b.result) == null))
1482 return null;
1483 tryComplete: if (d.result == null) {
1484 try {
1485 if (mode <= 0 && !claim())
1486 return null;
1487 if (r instanceof AltResult) {
1488 if ((x = ((AltResult)r).ex) != null) {
1489 d.completeThrowable(x, r);
1490 break tryComplete;
1491 }
1492 r = null;
1493 }
1494 @SuppressWarnings("unchecked") T t = (T) r;
1495 d.completeValue(f.apply(t));
1496 } catch (Throwable ex) {
1497 d.completeThrowable(ex);
1498 }
1499 }
1500 dep = null; src = null; snd = null; fn = null;
1501 return d.postFire(a, b, mode);
1502 }
1503 }
1504
1505 private <U extends T,V> CompletableFuture<V> orApplyStage(
1506 Executor e, CompletionStage<U> o, Function<? super T, ? extends V> f) {
1507 CompletableFuture<U> b;
1508 if (f == null || (b = o.toCompletableFuture()) == null)
1509 throw new NullPointerException();
1510
1511 Object r; CompletableFuture<? extends T> z;
1512 if ((r = (z = this).result) != null ||
1513 (r = (z = b).result) != null)
1514 return z.uniApplyNow(r, e, f);
1515
1516 CompletableFuture<V> d = newIncompleteFuture();
1517 orpush(b, new OrApply<T,U,V>(e, d, this, b, f));
1518 return d;
1519 }
1520
1521 @SuppressWarnings("serial")
1522 static final class OrAccept<T,U extends T> extends BiCompletion<T,U,Void> {
1523 Consumer<? super T> fn;
1524 OrAccept(Executor executor, CompletableFuture<Void> dep,
1525 CompletableFuture<T> src, CompletableFuture<U> snd,
1526 Consumer<? super T> fn) {
1527 super(executor, dep, src, snd); this.fn = fn;
1528 }
1529 final CompletableFuture<Void> tryFire(int mode) {
1530 CompletableFuture<Void> d;
1531 CompletableFuture<T> a;
1532 CompletableFuture<U> b;
1533 Object r; Throwable x; Consumer<? super T> f;
1534 if ((d = dep) == null || (f = fn) == null
1535 || (a = src) == null || (b = snd) == null
1536 || ((r = a.result) == null && (r = b.result) == null))
1537 return null;
1538 tryComplete: if (d.result == null) {
1539 try {
1540 if (mode <= 0 && !claim())
1541 return null;
1542 if (r instanceof AltResult) {
1543 if ((x = ((AltResult)r).ex) != null) {
1544 d.completeThrowable(x, r);
1545 break tryComplete;
1546 }
1547 r = null;
1548 }
1549 @SuppressWarnings("unchecked") T t = (T) r;
1550 f.accept(t);
1551 d.completeNull();
1552 } catch (Throwable ex) {
1553 d.completeThrowable(ex);
1554 }
1555 }
1556 dep = null; src = null; snd = null; fn = null;
1557 return d.postFire(a, b, mode);
1558 }
1559 }
1560
1561 private <U extends T> CompletableFuture<Void> orAcceptStage(
1562 Executor e, CompletionStage<U> o, Consumer<? super T> f) {
1563 CompletableFuture<U> b;
1564 if (f == null || (b = o.toCompletableFuture()) == null)
1565 throw new NullPointerException();
1566
1567 Object r; CompletableFuture<? extends T> z;
1568 if ((r = (z = this).result) != null ||
1569 (r = (z = b).result) != null)
1570 return z.uniAcceptNow(r, e, f);
1571
1572 CompletableFuture<Void> d = newIncompleteFuture();
1573 orpush(b, new OrAccept<T,U>(e, d, this, b, f));
1574 return d;
1575 }
1576
1577 @SuppressWarnings("serial")
1578 static final class OrRun<T,U> extends BiCompletion<T,U,Void> {
1579 Runnable fn;
1580 OrRun(Executor executor, CompletableFuture<Void> dep,
1581 CompletableFuture<T> src, CompletableFuture<U> snd,
1582 Runnable fn) {
1583 super(executor, dep, src, snd); this.fn = fn;
1584 }
1585 final CompletableFuture<Void> tryFire(int mode) {
1586 CompletableFuture<Void> d;
1587 CompletableFuture<T> a;
1588 CompletableFuture<U> b;
1589 Object r; Throwable x; Runnable f;
1590 if ((d = dep) == null || (f = fn) == null
1591 || (a = src) == null || (b = snd) == null
1592 || ((r = a.result) == null && (r = b.result) == null))
1593 return null;
1594 if (d.result == null) {
1595 try {
1596 if (mode <= 0 && !claim())
1597 return null;
1598 else if (r instanceof AltResult
1599 && (x = ((AltResult)r).ex) != null)
1600 d.completeThrowable(x, r);
1601 else {
1602 f.run();
1603 d.completeNull();
1604 }
1605 } catch (Throwable ex) {
1606 d.completeThrowable(ex);
1607 }
1608 }
1609 dep = null; src = null; snd = null; fn = null;
1610 return d.postFire(a, b, mode);
1611 }
1612 }
1613
1614 private CompletableFuture<Void> orRunStage(Executor e, CompletionStage<?> o,
1615 Runnable f) {
1616 CompletableFuture<?> b;
1617 if (f == null || (b = o.toCompletableFuture()) == null)
1618 throw new NullPointerException();
1619
1620 Object r; CompletableFuture<?> z;
1621 if ((r = (z = this).result) != null ||
1622 (r = (z = b).result) != null)
1623 return z.uniRunNow(r, e, f);
1624
1625 CompletableFuture<Void> d = newIncompleteFuture();
1626 orpush(b, new OrRun<>(e, d, this, b, f));
1627 return d;
1628 }
1629
1630 /** Completion for an anyOf input future. */
1631 @SuppressWarnings("serial")
1632 static class AnyOf extends Completion {
1633 CompletableFuture<Object> dep; CompletableFuture<?> src;
1634 CompletableFuture<?>[] srcs;
1635 AnyOf(CompletableFuture<Object> dep, CompletableFuture<?> src,
1636 CompletableFuture<?>[] srcs) {
1637 this.dep = dep; this.src = src; this.srcs = srcs;
1638 }
1639 final CompletableFuture<Object> tryFire(int mode) {
1640 // assert mode != ASYNC;
1641 CompletableFuture<Object> d; CompletableFuture<?> a;
1642 CompletableFuture<?>[] as;
1643 Object r;
1644 if ((d = dep) == null
1645 || (a = src) == null || (r = a.result) == null
1646 || (as = srcs) == null)
1647 return null;
1648 dep = null; src = null; srcs = null;
1649 if (d.completeRelay(r)) {
1650 for (CompletableFuture<?> b : as)
1651 if (b != a)
1652 b.cleanStack();
1653 if (mode < 0)
1654 return d;
1655 else
1656 d.postComplete();
1657 }
1658 return null;
1659 }
1660 final boolean isLive() {
1661 CompletableFuture<Object> d;
1662 return (d = dep) != null && d.result == null;
1663 }
1664 }
1665
1666 /* ------------- Zero-input Async forms -------------- */
1667
1668 @SuppressWarnings("serial")
1669 static final class AsyncSupply<T> extends ForkJoinTask<Void>
1670 implements Runnable, AsynchronousCompletionTask {
1671 CompletableFuture<T> dep; Supplier<? extends T> fn;
1672 AsyncSupply(CompletableFuture<T> dep, Supplier<? extends T> fn) {
1673 this.dep = dep; this.fn = fn;
1674 }
1675
1676 public final Void getRawResult() { return null; }
1677 public final void setRawResult(Void v) {}
1678 public final boolean exec() { run(); return false; }
1679
1680 public void run() {
1681 CompletableFuture<T> d; Supplier<? extends T> f;
1682 if ((d = dep) != null && (f = fn) != null) {
1683 dep = null; fn = null;
1684 if (d.result == null) {
1685 try {
1686 d.completeValue(f.get());
1687 } catch (Throwable ex) {
1688 d.completeThrowable(ex);
1689 }
1690 }
1691 d.postComplete();
1692 }
1693 }
1694 }
1695
1696 static <U> CompletableFuture<U> asyncSupplyStage(Executor e,
1697 Supplier<U> f) {
1698 if (f == null) throw new NullPointerException();
1699 CompletableFuture<U> d = new CompletableFuture<U>();
1700 e.execute(new AsyncSupply<U>(d, f));
1701 return d;
1702 }
1703
1704 @SuppressWarnings("serial")
1705 static final class AsyncRun extends ForkJoinTask<Void>
1706 implements Runnable, AsynchronousCompletionTask {
1707 CompletableFuture<Void> dep; Runnable fn;
1708 AsyncRun(CompletableFuture<Void> dep, Runnable fn) {
1709 this.dep = dep; this.fn = fn;
1710 }
1711
1712 public final Void getRawResult() { return null; }
1713 public final void setRawResult(Void v) {}
1714 public final boolean exec() { run(); return false; }
1715
1716 public void run() {
1717 CompletableFuture<Void> d; Runnable f;
1718 if ((d = dep) != null && (f = fn) != null) {
1719 dep = null; fn = null;
1720 if (d.result == null) {
1721 try {
1722 f.run();
1723 d.completeNull();
1724 } catch (Throwable ex) {
1725 d.completeThrowable(ex);
1726 }
1727 }
1728 d.postComplete();
1729 }
1730 }
1731 }
1732
1733 static CompletableFuture<Void> asyncRunStage(Executor e, Runnable f) {
1734 if (f == null) throw new NullPointerException();
1735 CompletableFuture<Void> d = new CompletableFuture<Void>();
1736 e.execute(new AsyncRun(d, f));
1737 return d;
1738 }
1739
1740 /* ------------- Signallers -------------- */
1741
1742 /**
1743 * Completion for recording and releasing a waiting thread. This
1744 * class implements ManagedBlocker to avoid starvation when
1745 * blocking actions pile up in ForkJoinPools.
1746 */
1747 @SuppressWarnings("serial")
1748 static final class Signaller extends Completion
1749 implements ForkJoinPool.ManagedBlocker {
1750 long nanos; // remaining wait time if timed
1751 final long deadline; // non-zero if timed
1752 final boolean interruptible;
1753 boolean interrupted;
1754 volatile Thread thread;
1755
1756 Signaller(boolean interruptible, long nanos, long deadline) {
1757 this.thread = Thread.currentThread();
1758 this.interruptible = interruptible;
1759 this.nanos = nanos;
1760 this.deadline = deadline;
1761 }
1762 final CompletableFuture<?> tryFire(int ignore) {
1763 Thread w; // no need to atomically claim
1764 if ((w = thread) != null) {
1765 thread = null;
1766 LockSupport.unpark(w);
1767 }
1768 return null;
1769 }
1770 public boolean isReleasable() {
1771 if (Thread.interrupted())
1772 interrupted = true;
1773 return ((interrupted && interruptible) ||
1774 (deadline != 0L &&
1775 (nanos <= 0L ||
1776 (nanos = deadline - System.nanoTime()) <= 0L)) ||
1777 thread == null);
1778 }
1779 public boolean block() {
1780 while (!isReleasable()) {
1781 if (deadline == 0L)
1782 LockSupport.park(this);
1783 else
1784 LockSupport.parkNanos(this, nanos);
1785 }
1786 return true;
1787 }
1788 final boolean isLive() { return thread != null; }
1789 }
1790
1791 /**
1792 * Returns raw result after waiting, or null if interruptible and
1793 * interrupted.
1794 */
1795 private Object waitingGet(boolean interruptible) {
1796 Signaller q = null;
1797 boolean queued = false;
1798 Object r;
1799 while ((r = result) == null) {
1800 if (q == null) {
1801 q = new Signaller(interruptible, 0L, 0L);
1802 if (Thread.currentThread() instanceof ForkJoinWorkerThread)
1803 ForkJoinPool.helpAsyncBlocker(defaultExecutor(), q);
1804 }
1805 else if (!queued)
1806 queued = tryPushStack(q);
1807 else {
1808 try {
1809 ForkJoinPool.managedBlock(q);
1810 } catch (InterruptedException ie) { // currently cannot happen
1811 q.interrupted = true;
1812 }
1813 if (q.interrupted && interruptible)
1814 break;
1815 }
1816 }
1817 if (q != null && queued) {
1818 q.thread = null;
1819 if (!interruptible && q.interrupted)
1820 Thread.currentThread().interrupt();
1821 if (r == null)
1822 cleanStack();
1823 }
1824 if (r != null || (r = result) != null)
1825 postComplete();
1826 return r;
1827 }
1828
1829 /**
1830 * Returns raw result after waiting, or null if interrupted, or
1831 * throws TimeoutException on timeout.
1832 */
1833 private Object timedGet(long nanos) throws TimeoutException {
1834 if (Thread.interrupted())
1835 return null;
1836 if (nanos > 0L) {
1837 long d = System.nanoTime() + nanos;
1838 long deadline = (d == 0L) ? 1L : d; // avoid 0
1839 Signaller q = null;
1840 boolean queued = false;
1841 Object r;
1842 while ((r = result) == null) { // similar to untimed
1843 if (q == null) {
1844 q = new Signaller(true, nanos, deadline);
1845 if (Thread.currentThread() instanceof ForkJoinWorkerThread)
1846 ForkJoinPool.helpAsyncBlocker(defaultExecutor(), q);
1847 }
1848 else if (!queued)
1849 queued = tryPushStack(q);
1850 else if (q.nanos <= 0L)
1851 break;
1852 else {
1853 try {
1854 ForkJoinPool.managedBlock(q);
1855 } catch (InterruptedException ie) {
1856 q.interrupted = true;
1857 }
1858 if (q.interrupted)
1859 break;
1860 }
1861 }
1862 if (q != null && queued) {
1863 q.thread = null;
1864 if (r == null)
1865 cleanStack();
1866 }
1867 if (r != null || (r = result) != null)
1868 postComplete();
1869 if (r != null || (q != null && q.interrupted))
1870 return r;
1871 }
1872 throw new TimeoutException();
1873 }
1874
1875 /* ------------- public methods -------------- */
1876
1877 /**
1878 * Creates a new incomplete CompletableFuture.
1879 */
1880 public CompletableFuture() {
1881 }
1882
1883 /**
1884 * Creates a new complete CompletableFuture with given encoded result.
1885 */
1886 CompletableFuture(Object r) {
1887 this.result = r;
1888 }
1889
1890 /**
1891 * Returns a new CompletableFuture that is asynchronously completed
1892 * by a task running in the {@link ForkJoinPool#commonPool()} with
1893 * the value obtained by calling the given Supplier.
1894 *
1895 * @param supplier a function returning the value to be used
1896 * to complete the returned CompletableFuture
1897 * @param <U> the function's return type
1898 * @return the new CompletableFuture
1899 */
1900 public static <U> CompletableFuture<U> supplyAsync(Supplier<U> supplier) {
1901 return asyncSupplyStage(ASYNC_POOL, supplier);
1902 }
1903
1904 /**
1905 * Returns a new CompletableFuture that is asynchronously completed
1906 * by a task running in the given executor with the value obtained
1907 * by calling the given Supplier.
1908 *
1909 * @param supplier a function returning the value to be used
1910 * to complete the returned CompletableFuture
1911 * @param executor the executor to use for asynchronous execution
1912 * @param <U> the function's return type
1913 * @return the new CompletableFuture
1914 */
1915 public static <U> CompletableFuture<U> supplyAsync(Supplier<U> supplier,
1916 Executor executor) {
1917 return asyncSupplyStage(screenExecutor(executor), supplier);
1918 }
1919
1920 /**
1921 * Returns a new CompletableFuture that is asynchronously completed
1922 * by a task running in the {@link ForkJoinPool#commonPool()} after
1923 * it runs the given action.
1924 *
1925 * @param runnable the action to run before completing the
1926 * returned CompletableFuture
1927 * @return the new CompletableFuture
1928 */
1929 public static CompletableFuture<Void> runAsync(Runnable runnable) {
1930 return asyncRunStage(ASYNC_POOL, runnable);
1931 }
1932
1933 /**
1934 * Returns a new CompletableFuture that is asynchronously completed
1935 * by a task running in the given executor after it runs the given
1936 * action.
1937 *
1938 * @param runnable the action to run before completing the
1939 * returned CompletableFuture
1940 * @param executor the executor to use for asynchronous execution
1941 * @return the new CompletableFuture
1942 */
1943 public static CompletableFuture<Void> runAsync(Runnable runnable,
1944 Executor executor) {
1945 return asyncRunStage(screenExecutor(executor), runnable);
1946 }
1947
1948 /**
1949 * Returns a new CompletableFuture that is already completed with
1950 * the given value.
1951 *
1952 * @param value the value
1953 * @param <U> the type of the value
1954 * @return the completed CompletableFuture
1955 */
1956 public static <U> CompletableFuture<U> completedFuture(U value) {
1957 return new CompletableFuture<U>((value == null) ? NIL : value);
1958 }
1959
1960 /**
1961 * Returns {@code true} if completed in any fashion: normally,
1962 * exceptionally, or via cancellation.
1963 *
1964 * @return {@code true} if completed
1965 */
1966 public boolean isDone() {
1967 return result != null;
1968 }
1969
1970 /**
1971 * Waits if necessary for this future to complete, and then
1972 * returns its result.
1973 *
1974 * @return the result value
1975 * @throws CancellationException if this future was cancelled
1976 * @throws ExecutionException if this future completed exceptionally
1977 * @throws InterruptedException if the current thread was interrupted
1978 * while waiting
1979 */
1980 @SuppressWarnings("unchecked")
1981 public T get() throws InterruptedException, ExecutionException {
1982 Object r;
1983 if ((r = result) == null)
1984 r = waitingGet(true);
1985 return (T) reportGet(r);
1986 }
1987
1988 /**
1989 * Waits if necessary for at most the given time for this future
1990 * to complete, and then returns its result, if available.
1991 *
1992 * @param timeout the maximum time to wait
1993 * @param unit the time unit of the timeout argument
1994 * @return the result value
1995 * @throws CancellationException if this future was cancelled
1996 * @throws ExecutionException if this future completed exceptionally
1997 * @throws InterruptedException if the current thread was interrupted
1998 * while waiting
1999 * @throws TimeoutException if the wait timed out
2000 */
2001 @SuppressWarnings("unchecked")
2002 public T get(long timeout, TimeUnit unit)
2003 throws InterruptedException, ExecutionException, TimeoutException {
2004 long nanos = unit.toNanos(timeout);
2005 Object r;
2006 if ((r = result) == null)
2007 r = timedGet(nanos);
2008 return (T) reportGet(r);
2009 }
2010
2011 /**
2012 * Returns the result value when complete, or throws an
2013 * (unchecked) exception if completed exceptionally. To better
2014 * conform with the use of common functional forms, if a
2015 * computation involved in the completion of this
2016 * CompletableFuture threw an exception, this method throws an
2017 * (unchecked) {@link CompletionException} with the underlying
2018 * exception as its cause.
2019 *
2020 * @return the result value
2021 * @throws CancellationException if the computation was cancelled
2022 * @throws CompletionException if this future completed
2023 * exceptionally or a completion computation threw an exception
2024 */
2025 @SuppressWarnings("unchecked")
2026 public T join() {
2027 Object r;
2028 if ((r = result) == null)
2029 r = waitingGet(false);
2030 return (T) reportJoin(r);
2031 }
2032
2033 /**
2034 * Returns the result value (or throws any encountered exception)
2035 * if completed, else returns the given valueIfAbsent.
2036 *
2037 * @param valueIfAbsent the value to return if not completed
2038 * @return the result value, if completed, else the given valueIfAbsent
2039 * @throws CancellationException if the computation was cancelled
2040 * @throws CompletionException if this future completed
2041 * exceptionally or a completion computation threw an exception
2042 */
2043 @SuppressWarnings("unchecked")
2044 public T getNow(T valueIfAbsent) {
2045 Object r;
2046 return ((r = result) == null) ? valueIfAbsent : (T) reportJoin(r);
2047 }
2048
2049 /**
2050 * If not already completed, sets the value returned by {@link
2051 * #get()} and related methods to the given value.
2052 *
2053 * @param value the result value
2054 * @return {@code true} if this invocation caused this CompletableFuture
2055 * to transition to a completed state, else {@code false}
2056 */
2057 public boolean complete(T value) {
2058 boolean triggered = completeValue(value);
2059 postComplete();
2060 return triggered;
2061 }
2062
2063 /**
2064 * If not already completed, causes invocations of {@link #get()}
2065 * and related methods to throw the given exception.
2066 *
2067 * @param ex the exception
2068 * @return {@code true} if this invocation caused this CompletableFuture
2069 * to transition to a completed state, else {@code false}
2070 */
2071 public boolean completeExceptionally(Throwable ex) {
2072 if (ex == null) throw new NullPointerException();
2073 boolean triggered = internalComplete(new AltResult(ex));
2074 postComplete();
2075 return triggered;
2076 }
2077
2078 public <U> CompletableFuture<U> thenApply(
2079 Function<? super T,? extends U> fn) {
2080 return uniApplyStage(null, fn);
2081 }
2082
2083 public <U> CompletableFuture<U> thenApplyAsync(
2084 Function<? super T,? extends U> fn) {
2085 return uniApplyStage(defaultExecutor(), fn);
2086 }
2087
2088 public <U> CompletableFuture<U> thenApplyAsync(
2089 Function<? super T,? extends U> fn, Executor executor) {
2090 return uniApplyStage(screenExecutor(executor), fn);
2091 }
2092
2093 public CompletableFuture<Void> thenAccept(Consumer<? super T> action) {
2094 return uniAcceptStage(null, action);
2095 }
2096
2097 public CompletableFuture<Void> thenAcceptAsync(Consumer<? super T> action) {
2098 return uniAcceptStage(defaultExecutor(), action);
2099 }
2100
2101 public CompletableFuture<Void> thenAcceptAsync(Consumer<? super T> action,
2102 Executor executor) {
2103 return uniAcceptStage(screenExecutor(executor), action);
2104 }
2105
2106 public CompletableFuture<Void> thenRun(Runnable action) {
2107 return uniRunStage(null, action);
2108 }
2109
2110 public CompletableFuture<Void> thenRunAsync(Runnable action) {
2111 return uniRunStage(defaultExecutor(), action);
2112 }
2113
2114 public CompletableFuture<Void> thenRunAsync(Runnable action,
2115 Executor executor) {
2116 return uniRunStage(screenExecutor(executor), action);
2117 }
2118
2119 public <U,V> CompletableFuture<V> thenCombine(
2120 CompletionStage<? extends U> other,
2121 BiFunction<? super T,? super U,? extends V> fn) {
2122 return biApplyStage(null, other, fn);
2123 }
2124
2125 public <U,V> CompletableFuture<V> thenCombineAsync(
2126 CompletionStage<? extends U> other,
2127 BiFunction<? super T,? super U,? extends V> fn) {
2128 return biApplyStage(defaultExecutor(), other, fn);
2129 }
2130
2131 public <U,V> CompletableFuture<V> thenCombineAsync(
2132 CompletionStage<? extends U> other,
2133 BiFunction<? super T,? super U,? extends V> fn, Executor executor) {
2134 return biApplyStage(screenExecutor(executor), other, fn);
2135 }
2136
2137 public <U> CompletableFuture<Void> thenAcceptBoth(
2138 CompletionStage<? extends U> other,
2139 BiConsumer<? super T, ? super U> action) {
2140 return biAcceptStage(null, other, action);
2141 }
2142
2143 public <U> CompletableFuture<Void> thenAcceptBothAsync(
2144 CompletionStage<? extends U> other,
2145 BiConsumer<? super T, ? super U> action) {
2146 return biAcceptStage(defaultExecutor(), other, action);
2147 }
2148
2149 public <U> CompletableFuture<Void> thenAcceptBothAsync(
2150 CompletionStage<? extends U> other,
2151 BiConsumer<? super T, ? super U> action, Executor executor) {
2152 return biAcceptStage(screenExecutor(executor), other, action);
2153 }
2154
2155 public CompletableFuture<Void> runAfterBoth(CompletionStage<?> other,
2156 Runnable action) {
2157 return biRunStage(null, other, action);
2158 }
2159
2160 public CompletableFuture<Void> runAfterBothAsync(CompletionStage<?> other,
2161 Runnable action) {
2162 return biRunStage(defaultExecutor(), other, action);
2163 }
2164
2165 public CompletableFuture<Void> runAfterBothAsync(CompletionStage<?> other,
2166 Runnable action,
2167 Executor executor) {
2168 return biRunStage(screenExecutor(executor), other, action);
2169 }
2170
2171 public <U> CompletableFuture<U> applyToEither(
2172 CompletionStage<? extends T> other, Function<? super T, U> fn) {
2173 return orApplyStage(null, other, fn);
2174 }
2175
2176 public <U> CompletableFuture<U> applyToEitherAsync(
2177 CompletionStage<? extends T> other, Function<? super T, U> fn) {
2178 return orApplyStage(defaultExecutor(), other, fn);
2179 }
2180
2181 public <U> CompletableFuture<U> applyToEitherAsync(
2182 CompletionStage<? extends T> other, Function<? super T, U> fn,
2183 Executor executor) {
2184 return orApplyStage(screenExecutor(executor), other, fn);
2185 }
2186
2187 public CompletableFuture<Void> acceptEither(
2188 CompletionStage<? extends T> other, Consumer<? super T> action) {
2189 return orAcceptStage(null, other, action);
2190 }
2191
2192 public CompletableFuture<Void> acceptEitherAsync(
2193 CompletionStage<? extends T> other, Consumer<? super T> action) {
2194 return orAcceptStage(defaultExecutor(), other, action);
2195 }
2196
2197 public CompletableFuture<Void> acceptEitherAsync(
2198 CompletionStage<? extends T> other, Consumer<? super T> action,
2199 Executor executor) {
2200 return orAcceptStage(screenExecutor(executor), other, action);
2201 }
2202
2203 public CompletableFuture<Void> runAfterEither(CompletionStage<?> other,
2204 Runnable action) {
2205 return orRunStage(null, other, action);
2206 }
2207
2208 public CompletableFuture<Void> runAfterEitherAsync(CompletionStage<?> other,
2209 Runnable action) {
2210 return orRunStage(defaultExecutor(), other, action);
2211 }
2212
2213 public CompletableFuture<Void> runAfterEitherAsync(CompletionStage<?> other,
2214 Runnable action,
2215 Executor executor) {
2216 return orRunStage(screenExecutor(executor), other, action);
2217 }
2218
2219 public <U> CompletableFuture<U> thenCompose(
2220 Function<? super T, ? extends CompletionStage<U>> fn) {
2221 return uniComposeStage(null, fn);
2222 }
2223
2224 public <U> CompletableFuture<U> thenComposeAsync(
2225 Function<? super T, ? extends CompletionStage<U>> fn) {
2226 return uniComposeStage(defaultExecutor(), fn);
2227 }
2228
2229 public <U> CompletableFuture<U> thenComposeAsync(
2230 Function<? super T, ? extends CompletionStage<U>> fn,
2231 Executor executor) {
2232 return uniComposeStage(screenExecutor(executor), fn);
2233 }
2234
2235 public CompletableFuture<T> whenComplete(
2236 BiConsumer<? super T, ? super Throwable> action) {
2237 return uniWhenCompleteStage(null, action);
2238 }
2239
2240 public CompletableFuture<T> whenCompleteAsync(
2241 BiConsumer<? super T, ? super Throwable> action) {
2242 return uniWhenCompleteStage(defaultExecutor(), action);
2243 }
2244
2245 public CompletableFuture<T> whenCompleteAsync(
2246 BiConsumer<? super T, ? super Throwable> action, Executor executor) {
2247 return uniWhenCompleteStage(screenExecutor(executor), action);
2248 }
2249
2250 public <U> CompletableFuture<U> handle(
2251 BiFunction<? super T, Throwable, ? extends U> fn) {
2252 return uniHandleStage(null, fn);
2253 }
2254
2255 public <U> CompletableFuture<U> handleAsync(
2256 BiFunction<? super T, Throwable, ? extends U> fn) {
2257 return uniHandleStage(defaultExecutor(), fn);
2258 }
2259
2260 public <U> CompletableFuture<U> handleAsync(
2261 BiFunction<? super T, Throwable, ? extends U> fn, Executor executor) {
2262 return uniHandleStage(screenExecutor(executor), fn);
2263 }
2264
2265 /**
2266 * Returns this CompletableFuture.
2267 *
2268 * @return this CompletableFuture
2269 */
2270 public CompletableFuture<T> toCompletableFuture() {
2271 return this;
2272 }
2273
2274 // not in interface CompletionStage
2275
2276 /**
2277 * Returns a new CompletableFuture that is completed when this
2278 * CompletableFuture completes, with the result of the given
2279 * function of the exception triggering this CompletableFuture's
2280 * completion when it completes exceptionally; otherwise, if this
2281 * CompletableFuture completes normally, then the returned
2282 * CompletableFuture also completes normally with the same value.
2283 * Note: More flexible versions of this functionality are
2284 * available using methods {@code whenComplete} and {@code handle}.
2285 *
2286 * @param fn the function to use to compute the value of the
2287 * returned CompletableFuture if this CompletableFuture completed
2288 * exceptionally
2289 * @return the new CompletableFuture
2290 */
2291 public CompletableFuture<T> exceptionally(
2292 Function<Throwable, ? extends T> fn) {
2293 return uniExceptionallyStage(fn);
2294 }
2295
2296
2297 /* ------------- Arbitrary-arity constructions -------------- */
2298
2299 /**
2300 * Returns a new CompletableFuture that is completed when all of
2301 * the given CompletableFutures complete. If any of the given
2302 * CompletableFutures complete exceptionally, then the returned
2303 * CompletableFuture also does so, with a CompletionException
2304 * holding this exception as its cause. Otherwise, the results,
2305 * if any, of the given CompletableFutures are not reflected in
2306 * the returned CompletableFuture, but may be obtained by
2307 * inspecting them individually. If no CompletableFutures are
2308 * provided, returns a CompletableFuture completed with the value
2309 * {@code null}.
2310 *
2311 * <p>Among the applications of this method is to await completion
2312 * of a set of independent CompletableFutures before continuing a
2313 * program, as in: {@code CompletableFuture.allOf(c1, c2,
2314 * c3).join();}.
2315 *
2316 * @param cfs the CompletableFutures
2317 * @return a new CompletableFuture that is completed when all of the
2318 * given CompletableFutures complete
2319 * @throws NullPointerException if the array or any of its elements are
2320 * {@code null}
2321 */
2322 public static CompletableFuture<Void> allOf(CompletableFuture<?>... cfs) {
2323 return andTree(cfs, 0, cfs.length - 1);
2324 }
2325
2326 /**
2327 * Returns a new CompletableFuture that is completed when any of
2328 * the given CompletableFutures complete, with the same result.
2329 * Otherwise, if it completed exceptionally, the returned
2330 * CompletableFuture also does so, with a CompletionException
2331 * holding this exception as its cause. If no CompletableFutures
2332 * are provided, returns an incomplete CompletableFuture.
2333 *
2334 * @param cfs the CompletableFutures
2335 * @return a new CompletableFuture that is completed with the
2336 * result or exception of any of the given CompletableFutures when
2337 * one completes
2338 * @throws NullPointerException if the array or any of its elements are
2339 * {@code null}
2340 */
2341 public static CompletableFuture<Object> anyOf(CompletableFuture<?>... cfs) {
2342 int n; Object r;
2343 if ((n = cfs.length) <= 1)
2344 return (n == 0)
2345 ? new CompletableFuture<Object>()
2346 : uniCopyStage(cfs[0]);
2347 for (CompletableFuture<?> cf : cfs)
2348 if ((r = cf.result) != null)
2349 return new CompletableFuture<Object>(encodeRelay(r));
2350 cfs = cfs.clone();
2351 CompletableFuture<Object> d = new CompletableFuture<>();
2352 for (CompletableFuture<?> cf : cfs)
2353 cf.unipush(new AnyOf(d, cf, cfs));
2354 // If d was completed while we were adding completions, we should
2355 // clean the stack of any sources that may have had completions
2356 // pushed on their stack after d was completed.
2357 if (d.result != null)
2358 for (int i = 0, len = cfs.length; i < len; i++)
2359 if (cfs[i].result != null)
2360 for (i++; i < len; i++)
2361 if (cfs[i].result == null)
2362 cfs[i].cleanStack();
2363 return d;
2364 }
2365
2366 /* ------------- Control and status methods -------------- */
2367
2368 /**
2369 * If not already completed, completes this CompletableFuture with
2370 * a {@link CancellationException}. Dependent CompletableFutures
2371 * that have not already completed will also complete
2372 * exceptionally, with a {@link CompletionException} caused by
2373 * this {@code CancellationException}.
2374 *
2375 * @param mayInterruptIfRunning this value has no effect in this
2376 * implementation because interrupts are not used to control
2377 * processing.
2378 *
2379 * @return {@code true} if this task is now cancelled
2380 */
2381 public boolean cancel(boolean mayInterruptIfRunning) {
2382 boolean cancelled = (result == null) &&
2383 internalComplete(new AltResult(new CancellationException()));
2384 postComplete();
2385 return cancelled || isCancelled();
2386 }
2387
2388 /**
2389 * Returns {@code true} if this CompletableFuture was cancelled
2390 * before it completed normally.
2391 *
2392 * @return {@code true} if this CompletableFuture was cancelled
2393 * before it completed normally
2394 */
2395 public boolean isCancelled() {
2396 Object r;
2397 return ((r = result) instanceof AltResult) &&
2398 (((AltResult)r).ex instanceof CancellationException);
2399 }
2400
2401 /**
2402 * Returns {@code true} if this CompletableFuture completed
2403 * exceptionally, in any way. Possible causes include
2404 * cancellation, explicit invocation of {@code
2405 * completeExceptionally}, and abrupt termination of a
2406 * CompletionStage action.
2407 *
2408 * @return {@code true} if this CompletableFuture completed
2409 * exceptionally
2410 */
2411 public boolean isCompletedExceptionally() {
2412 Object r;
2413 return ((r = result) instanceof AltResult) && r != NIL;
2414 }
2415
2416 /**
2417 * Forcibly sets or resets the value subsequently returned by
2418 * method {@link #get()} and related methods, whether or not
2419 * already completed. This method is designed for use only in
2420 * error recovery actions, and even in such situations may result
2421 * in ongoing dependent completions using established versus
2422 * overwritten outcomes.
2423 *
2424 * @param value the completion value
2425 */
2426 public void obtrudeValue(T value) {
2427 result = (value == null) ? NIL : value;
2428 postComplete();
2429 }
2430
2431 /**
2432 * Forcibly causes subsequent invocations of method {@link #get()}
2433 * and related methods to throw the given exception, whether or
2434 * not already completed. This method is designed for use only in
2435 * error recovery actions, and even in such situations may result
2436 * in ongoing dependent completions using established versus
2437 * overwritten outcomes.
2438 *
2439 * @param ex the exception
2440 * @throws NullPointerException if the exception is null
2441 */
2442 public void obtrudeException(Throwable ex) {
2443 if (ex == null) throw new NullPointerException();
2444 result = new AltResult(ex);
2445 postComplete();
2446 }
2447
2448 /**
2449 * Returns the estimated number of CompletableFutures whose
2450 * completions are awaiting completion of this CompletableFuture.
2451 * This method is designed for use in monitoring system state, not
2452 * for synchronization control.
2453 *
2454 * @return the number of dependent CompletableFutures
2455 */
2456 public int getNumberOfDependents() {
2457 int count = 0;
2458 for (Completion p = stack; p != null; p = p.next)
2459 ++count;
2460 return count;
2461 }
2462
2463 /**
2464 * Returns a string identifying this CompletableFuture, as well as
2465 * its completion state. The state, in brackets, contains the
2466 * String {@code "Completed Normally"} or the String {@code
2467 * "Completed Exceptionally"}, or the String {@code "Not
2468 * completed"} followed by the number of CompletableFutures
2469 * dependent upon its completion, if any.
2470 *
2471 * @return a string identifying this CompletableFuture, as well as its state
2472 */
2473 public String toString() {
2474 Object r = result;
2475 int count = 0; // avoid call to getNumberOfDependents in case disabled
2476 for (Completion p = stack; p != null; p = p.next)
2477 ++count;
2478 return super.toString() +
2479 ((r == null)
2480 ? ((count == 0)
2481 ? "[Not completed]"
2482 : "[Not completed, " + count + " dependents]")
2483 : (((r instanceof AltResult) && ((AltResult)r).ex != null)
2484 ? "[Completed exceptionally: " + ((AltResult)r).ex + "]"
2485 : "[Completed normally]"));
2486 }
2487
2488 // jdk9 additions
2489
2490 /**
2491 * Returns a new incomplete CompletableFuture of the type to be
2492 * returned by a CompletionStage method. Subclasses should
2493 * normally override this method to return an instance of the same
2494 * class as this CompletableFuture. The default implementation
2495 * returns an instance of class CompletableFuture.
2496 *
2497 * @param <U> the type of the value
2498 * @return a new CompletableFuture
2499 * @since 9
2500 */
2501 public <U> CompletableFuture<U> newIncompleteFuture() {
2502 return new CompletableFuture<U>();
2503 }
2504
2505 /**
2506 * Returns the default Executor used for async methods that do not
2507 * specify an Executor. This class uses the {@link
2508 * ForkJoinPool#commonPool()} if it supports more than one
2509 * parallel thread, or else an Executor using one thread per async
2510 * task. This method may be overridden in subclasses to return
2511 * an Executor that provides at least one independent thread.
2512 *
2513 * @return the executor
2514 * @since 9
2515 */
2516 public Executor defaultExecutor() {
2517 return ASYNC_POOL;
2518 }
2519
2520 /**
2521 * Returns a new CompletableFuture that is completed normally with
2522 * the same value as this CompletableFuture when it completes
2523 * normally. If this CompletableFuture completes exceptionally,
2524 * then the returned CompletableFuture completes exceptionally
2525 * with a CompletionException with this exception as cause. The
2526 * behavior is equivalent to {@code thenApply(x -> x)}. This
2527 * method may be useful as a form of "defensive copying", to
2528 * prevent clients from completing, while still being able to
2529 * arrange dependent actions.
2530 *
2531 * @return the new CompletableFuture
2532 * @since 9
2533 */
2534 public CompletableFuture<T> copy() {
2535 return uniCopyStage(this);
2536 }
2537
2538 /**
2539 * Returns a new CompletionStage that is completed normally with
2540 * the same value as this CompletableFuture when it completes
2541 * normally, and cannot be independently completed or otherwise
2542 * used in ways not defined by the methods of interface {@link
2543 * CompletionStage}. If this CompletableFuture completes
2544 * exceptionally, then the returned CompletionStage completes
2545 * exceptionally with a CompletionException with this exception as
2546 * cause.
2547 *
2548 * <p>Unless overridden by a subclass, a new non-minimal
2549 * CompletableFuture with all methods available can be obtained from
2550 * a minimal CompletionStage via {@link #toCompletableFuture()}.
2551 * For example, completion of a minimal stage can be awaited by
2552 *
2553 * <pre> {@code minimalStage.toCompletableFuture().join(); }</pre>
2554 *
2555 * @return the new CompletionStage
2556 * @since 9
2557 */
2558 public CompletionStage<T> minimalCompletionStage() {
2559 return uniAsMinimalStage();
2560 }
2561
2562 /**
2563 * Completes this CompletableFuture with the result of
2564 * the given Supplier function invoked from an asynchronous
2565 * task using the given executor.
2566 *
2567 * @param supplier a function returning the value to be used
2568 * to complete this CompletableFuture
2569 * @param executor the executor to use for asynchronous execution
2570 * @return this CompletableFuture
2571 * @since 9
2572 */
2573 public CompletableFuture<T> completeAsync(Supplier<? extends T> supplier,
2574 Executor executor) {
2575 if (supplier == null || executor == null)
2576 throw new NullPointerException();
2577 executor.execute(new AsyncSupply<T>(this, supplier));
2578 return this;
2579 }
2580
2581 /**
2582 * Completes this CompletableFuture with the result of the given
2583 * Supplier function invoked from an asynchronous task using the
2584 * default executor.
2585 *
2586 * @param supplier a function returning the value to be used
2587 * to complete this CompletableFuture
2588 * @return this CompletableFuture
2589 * @since 9
2590 */
2591 public CompletableFuture<T> completeAsync(Supplier<? extends T> supplier) {
2592 return completeAsync(supplier, defaultExecutor());
2593 }
2594
2595 /**
2596 * Exceptionally completes this CompletableFuture with
2597 * a {@link TimeoutException} if not otherwise completed
2598 * before the given timeout.
2599 *
2600 * @param timeout how long to wait before completing exceptionally
2601 * with a TimeoutException, in units of {@code unit}
2602 * @param unit a {@code TimeUnit} determining how to interpret the
2603 * {@code timeout} parameter
2604 * @return this CompletableFuture
2605 * @since 9
2606 */
2607 public CompletableFuture<T> orTimeout(long timeout, TimeUnit unit) {
2608 if (unit == null)
2609 throw new NullPointerException();
2610 if (result == null)
2611 whenComplete(new Canceller(Delayer.delay(new Timeout(this),
2612 timeout, unit)));
2613 return this;
2614 }
2615
2616 /**
2617 * Completes this CompletableFuture with the given value if not
2618 * otherwise completed before the given timeout.
2619 *
2620 * @param value the value to use upon timeout
2621 * @param timeout how long to wait before completing normally
2622 * with the given value, in units of {@code unit}
2623 * @param unit a {@code TimeUnit} determining how to interpret the
2624 * {@code timeout} parameter
2625 * @return this CompletableFuture
2626 * @since 9
2627 */
2628 public CompletableFuture<T> completeOnTimeout(T value, long timeout,
2629 TimeUnit unit) {
2630 if (unit == null)
2631 throw new NullPointerException();
2632 if (result == null)
2633 whenComplete(new Canceller(Delayer.delay(
2634 new DelayedCompleter<T>(this, value),
2635 timeout, unit)));
2636 return this;
2637 }
2638
2639 /**
2640 * Returns a new Executor that submits a task to the given base
2641 * executor after the given delay (or no delay if non-positive).
2642 * Each delay commences upon invocation of the returned executor's
2643 * {@code execute} method.
2644 *
2645 * @param delay how long to delay, in units of {@code unit}
2646 * @param unit a {@code TimeUnit} determining how to interpret the
2647 * {@code delay} parameter
2648 * @param executor the base executor
2649 * @return the new delayed executor
2650 * @since 9
2651 */
2652 public static Executor delayedExecutor(long delay, TimeUnit unit,
2653 Executor executor) {
2654 if (unit == null || executor == null)
2655 throw new NullPointerException();
2656 return new DelayedExecutor(delay, unit, executor);
2657 }
2658
2659 /**
2660 * Returns a new Executor that submits a task to the default
2661 * executor after the given delay (or no delay if non-positive).
2662 * Each delay commences upon invocation of the returned executor's
2663 * {@code execute} method.
2664 *
2665 * @param delay how long to delay, in units of {@code unit}
2666 * @param unit a {@code TimeUnit} determining how to interpret the
2667 * {@code delay} parameter
2668 * @return the new delayed executor
2669 * @since 9
2670 */
2671 public static Executor delayedExecutor(long delay, TimeUnit unit) {
2672 if (unit == null)
2673 throw new NullPointerException();
2674 return new DelayedExecutor(delay, unit, ASYNC_POOL);
2675 }
2676
2677 /**
2678 * Returns a new CompletionStage that is already completed with
2679 * the given value and supports only those methods in
2680 * interface {@link CompletionStage}.
2681 *
2682 * @param value the value
2683 * @param <U> the type of the value
2684 * @return the completed CompletionStage
2685 * @since 9
2686 */
2687 public static <U> CompletionStage<U> completedStage(U value) {
2688 return new MinimalStage<U>((value == null) ? NIL : value);
2689 }
2690
2691 /**
2692 * Returns a new CompletableFuture that is already completed
2693 * exceptionally with the given exception.
2694 *
2695 * @param ex the exception
2696 * @param <U> the type of the value
2697 * @return the exceptionally completed CompletableFuture
2698 * @since 9
2699 */
2700 public static <U> CompletableFuture<U> failedFuture(Throwable ex) {
2701 if (ex == null) throw new NullPointerException();
2702 return new CompletableFuture<U>(new AltResult(ex));
2703 }
2704
2705 /**
2706 * Returns a new CompletionStage that is already completed
2707 * exceptionally with the given exception and supports only those
2708 * methods in interface {@link CompletionStage}.
2709 *
2710 * @param ex the exception
2711 * @param <U> the type of the value
2712 * @return the exceptionally completed CompletionStage
2713 * @since 9
2714 */
2715 public static <U> CompletionStage<U> failedStage(Throwable ex) {
2716 if (ex == null) throw new NullPointerException();
2717 return new MinimalStage<U>(new AltResult(ex));
2718 }
2719
2720 /**
2721 * Singleton delay scheduler, used only for starting and
2722 * cancelling tasks.
2723 */
2724 static final class Delayer {
2725 static ScheduledFuture<?> delay(Runnable command, long delay,
2726 TimeUnit unit) {
2727 return delayer.schedule(command, delay, unit);
2728 }
2729
2730 static final class DaemonThreadFactory implements ThreadFactory {
2731 public Thread newThread(Runnable r) {
2732 Thread t = new Thread(r);
2733 t.setDaemon(true);
2734 t.setName("CompletableFutureDelayScheduler");
2735 return t;
2736 }
2737 }
2738
2739 static final ScheduledThreadPoolExecutor delayer;
2740 static {
2741 (delayer = new ScheduledThreadPoolExecutor(
2742 1, new DaemonThreadFactory())).
2743 setRemoveOnCancelPolicy(true);
2744 }
2745 }
2746
2747 // Little class-ified lambdas to better support monitoring
2748
2749 static final class DelayedExecutor implements Executor {
2750 final long delay;
2751 final TimeUnit unit;
2752 final Executor executor;
2753 DelayedExecutor(long delay, TimeUnit unit, Executor executor) {
2754 this.delay = delay; this.unit = unit; this.executor = executor;
2755 }
2756 public void execute(Runnable r) {
2757 Delayer.delay(new TaskSubmitter(executor, r), delay, unit);
2758 }
2759 }
2760
2761 /** Action to submit user task */
2762 static final class TaskSubmitter implements Runnable {
2763 final Executor executor;
2764 final Runnable action;
2765 TaskSubmitter(Executor executor, Runnable action) {
2766 this.executor = executor;
2767 this.action = action;
2768 }
2769 public void run() { executor.execute(action); }
2770 }
2771
2772 /** Action to completeExceptionally on timeout */
2773 static final class Timeout implements Runnable {
2774 final CompletableFuture<?> f;
2775 Timeout(CompletableFuture<?> f) { this.f = f; }
2776 public void run() {
2777 if (f != null && !f.isDone())
2778 f.completeExceptionally(new TimeoutException());
2779 }
2780 }
2781
2782 /** Action to complete on timeout */
2783 static final class DelayedCompleter<U> implements Runnable {
2784 final CompletableFuture<U> f;
2785 final U u;
2786 DelayedCompleter(CompletableFuture<U> f, U u) { this.f = f; this.u = u; }
2787 public void run() {
2788 if (f != null)
2789 f.complete(u);
2790 }
2791 }
2792
2793 /** Action to cancel unneeded timeouts */
2794 static final class Canceller implements BiConsumer<Object, Throwable> {
2795 final Future<?> f;
2796 Canceller(Future<?> f) { this.f = f; }
2797 public void accept(Object ignore, Throwable ex) {
2798 if (ex == null && f != null && !f.isDone())
2799 f.cancel(false);
2800 }
2801 }
2802
2803 /**
2804 * A subclass that just throws UOE for most non-CompletionStage methods.
2805 */
2806 static final class MinimalStage<T> extends CompletableFuture<T> {
2807 MinimalStage() { }
2808 MinimalStage(Object r) { super(r); }
2809 @Override public <U> CompletableFuture<U> newIncompleteFuture() {
2810 return new MinimalStage<U>(); }
2811 @Override public T get() {
2812 throw new UnsupportedOperationException(); }
2813 @Override public T get(long timeout, TimeUnit unit) {
2814 throw new UnsupportedOperationException(); }
2815 @Override public T getNow(T valueIfAbsent) {
2816 throw new UnsupportedOperationException(); }
2817 @Override public T join() {
2818 throw new UnsupportedOperationException(); }
2819 @Override public boolean complete(T value) {
2820 throw new UnsupportedOperationException(); }
2821 @Override public boolean completeExceptionally(Throwable ex) {
2822 throw new UnsupportedOperationException(); }
2823 @Override public boolean cancel(boolean mayInterruptIfRunning) {
2824 throw new UnsupportedOperationException(); }
2825 @Override public void obtrudeValue(T value) {
2826 throw new UnsupportedOperationException(); }
2827 @Override public void obtrudeException(Throwable ex) {
2828 throw new UnsupportedOperationException(); }
2829 @Override public boolean isDone() {
2830 throw new UnsupportedOperationException(); }
2831 @Override public boolean isCancelled() {
2832 throw new UnsupportedOperationException(); }
2833 @Override public boolean isCompletedExceptionally() {
2834 throw new UnsupportedOperationException(); }
2835 @Override public int getNumberOfDependents() {
2836 throw new UnsupportedOperationException(); }
2837 @Override public CompletableFuture<T> completeAsync
2838 (Supplier<? extends T> supplier, Executor executor) {
2839 throw new UnsupportedOperationException(); }
2840 @Override public CompletableFuture<T> completeAsync
2841 (Supplier<? extends T> supplier) {
2842 throw new UnsupportedOperationException(); }
2843 @Override public CompletableFuture<T> orTimeout
2844 (long timeout, TimeUnit unit) {
2845 throw new UnsupportedOperationException(); }
2846 @Override public CompletableFuture<T> completeOnTimeout
2847 (T value, long timeout, TimeUnit unit) {
2848 throw new UnsupportedOperationException(); }
2849 @Override public CompletableFuture<T> toCompletableFuture() {
2850 Object r;
2851 if ((r = result) != null)
2852 return new CompletableFuture<T>(encodeRelay(r));
2853 else {
2854 CompletableFuture<T> d = new CompletableFuture<>();
2855 unipush(new UniRelay<T,T>(d, this));
2856 return d;
2857 }
2858 }
2859 }
2860
2861 // Unsafe mechanics
2862 private static final sun.misc.Unsafe U = sun.misc.Unsafe.getUnsafe();
2863 private static final long RESULT;
2864 private static final long STACK;
2865 private static final long NEXT;
2866 static {
2867 try {
2868 RESULT = U.objectFieldOffset
2869 (CompletableFuture.class.getDeclaredField("result"));
2870 STACK = U.objectFieldOffset
2871 (CompletableFuture.class.getDeclaredField("stack"));
2872 NEXT = U.objectFieldOffset
2873 (Completion.class.getDeclaredField("next"));
2874 } catch (ReflectiveOperationException e) {
2875 throw new Error(e);
2876 }
2877
2878 // Reduce the risk of rare disastrous classloading in first call to
2879 // LockSupport.park: https://bugs.openjdk.java.net/browse/JDK-8074773
2880 Class<?> ensureLoaded = LockSupport.class;
2881 }
2882 }