futures_util/stream/futures_unordered/mod.rs
1//! An unbounded set of futures.
2//!
3//! This module is only available when the `std` or `alloc` feature of this
4//! library is activated, and it is activated by default.
5
6#[cfg(not(feature = "portable-atomic"))]
7use core::sync::atomic;
8
9#[cfg(not(feature = "portable-atomic-alloc"))]
10use alloc::sync::{Arc, Weak};
11
12#[cfg(feature = "portable-atomic")]
13use portable_atomic_crate as atomic;
14
15#[cfg(feature = "portable-atomic-alloc")]
16use portable_atomic_util::{Arc, Weak};
17
18use crate::task::AtomicWaker;
19use atomic::Ordering::{AcqRel, Acquire, Relaxed, Release, SeqCst};
20use atomic::{AtomicBool, AtomicPtr};
21use core::cell::UnsafeCell;
22use core::fmt::{self, Debug};
23use core::iter::FromIterator;
24use core::marker::PhantomData;
25use core::mem;
26use core::pin::Pin;
27use core::ptr;
28use futures_core::future::Future;
29use futures_core::stream::{FusedStream, Stream};
30use futures_core::task::{Context, Poll};
31use futures_task::{FutureObj, LocalFutureObj, LocalSpawn, Spawn, SpawnError};
32
33mod abort;
34
35mod iter;
36#[allow(unreachable_pub)] // https://github.com/rust-lang/rust/issues/102352
37pub use self::iter::{IntoIter, Iter, IterMut, IterPinMut, IterPinRef};
38
39mod task;
40use self::task::Task;
41
42mod ready_to_run_queue;
43use self::ready_to_run_queue::{Dequeue, ReadyToRunQueue};
44
45/// A set of futures which may complete in any order.
46///
47/// See [`FuturesOrdered`](crate::stream::FuturesOrdered) for a version of this
48/// type that preserves a FIFO order.
49///
50/// This structure is optimized to manage a large number of futures.
51/// Futures managed by [`FuturesUnordered`] will only be polled when they
52/// generate wake-up notifications. This reduces the required amount of work
53/// needed to poll large numbers of futures.
54///
55/// [`FuturesUnordered`] can be filled by [`collect`](Iterator::collect)ing an
56/// iterator of futures into a [`FuturesUnordered`], or by
57/// [`push`](FuturesUnordered::push)ing futures onto an existing
58/// [`FuturesUnordered`]. When new futures are added,
59/// [`poll_next`](Stream::poll_next) must be called in order to begin receiving
60/// wake-ups for new futures.
61///
62/// Note that you can create a ready-made [`FuturesUnordered`] via the
63/// [`collect`](Iterator::collect) method, or you can start with an empty set
64/// with the [`FuturesUnordered::new`] constructor.
65///
66/// This type is only available when the `std` or `alloc` feature of this
67/// library is activated, and it is activated by default.
68#[must_use = "streams do nothing unless polled"]
69pub struct FuturesUnordered<Fut> {
70 ready_to_run_queue: Arc<ReadyToRunQueue<Fut>>,
71 head_all: AtomicPtr<Task<Fut>>,
72 is_terminated: AtomicBool,
73}
74
75unsafe impl<Fut: Send> Send for FuturesUnordered<Fut> {}
76unsafe impl<Fut: Send + Sync> Sync for FuturesUnordered<Fut> {}
77impl<Fut> Unpin for FuturesUnordered<Fut> {}
78
79impl Spawn for FuturesUnordered<FutureObj<'_, ()>> {
80 fn spawn_obj(&self, future_obj: FutureObj<'static, ()>) -> Result<(), SpawnError> {
81 self.push(future_obj);
82 Ok(())
83 }
84}
85
86impl LocalSpawn for FuturesUnordered<LocalFutureObj<'_, ()>> {
87 fn spawn_local_obj(&self, future_obj: LocalFutureObj<'static, ()>) -> Result<(), SpawnError> {
88 self.push(future_obj);
89 Ok(())
90 }
91}
92
93// FuturesUnordered is implemented using two linked lists. One which links all
94// futures managed by a `FuturesUnordered` and one that tracks futures that have
95// been scheduled for polling. The first linked list allows for thread safe
96// insertion of nodes at the head as well as forward iteration, but is otherwise
97// not thread safe and is only accessed by the thread that owns the
98// `FuturesUnordered` value for any other operations. The second linked list is
99// an implementation of the intrusive MPSC queue algorithm described by
100// 1024cores.net.
101//
102// When a future is submitted to the set, a task is allocated and inserted in
103// both linked lists. The next call to `poll_next` will (eventually) see this
104// task and call `poll` on the future.
105//
106// Before a managed future is polled, the current context's waker is replaced
107// with one that is aware of the specific future being run. This ensures that
108// wake-up notifications generated by that specific future are visible to
109// `FuturesUnordered`. When a wake-up notification is received, the task is
110// inserted into the ready to run queue, so that its future can be polled later.
111//
112// Each task is wrapped in an `Arc` and thereby atomically reference counted.
113// Also, each task contains an `AtomicBool` which acts as a flag that indicates
114// whether the task is currently inserted in the atomic queue. When a wake-up
115// notification is received, the task will only be inserted into the ready to
116// run queue if it isn't inserted already.
117
118impl<Fut> Default for FuturesUnordered<Fut> {
119 fn default() -> Self {
120 Self::new()
121 }
122}
123
124impl<Fut> FuturesUnordered<Fut> {
125 /// Constructs a new, empty [`FuturesUnordered`].
126 ///
127 /// The returned [`FuturesUnordered`] does not contain any futures.
128 /// In this state, [`FuturesUnordered::poll_next`](Stream::poll_next) will
129 /// return [`Poll::Ready(None)`](Poll::Ready).
130 pub fn new() -> Self {
131 let stub = Arc::new(Task {
132 future: UnsafeCell::new(None),
133 next_all: AtomicPtr::new(ptr::null_mut()),
134 prev_all: UnsafeCell::new(ptr::null()),
135 len_all: UnsafeCell::new(0),
136 next_ready_to_run: AtomicPtr::new(ptr::null_mut()),
137 queued: AtomicBool::new(true),
138 ready_to_run_queue: Weak::new(),
139 woken: AtomicBool::new(false),
140 });
141 let stub_ptr = Arc::as_ptr(&stub);
142 let ready_to_run_queue = Arc::new(ReadyToRunQueue {
143 waker: AtomicWaker::new(),
144 head: AtomicPtr::new(stub_ptr as *mut _),
145 tail: UnsafeCell::new(stub_ptr),
146 stub,
147 });
148
149 Self {
150 head_all: AtomicPtr::new(ptr::null_mut()),
151 ready_to_run_queue,
152 is_terminated: AtomicBool::new(false),
153 }
154 }
155
156 /// Returns the number of futures contained in the set.
157 ///
158 /// This represents the total number of in-flight futures.
159 pub fn len(&self) -> usize {
160 let (_, len) = self.atomic_load_head_and_len_all();
161 len
162 }
163
164 /// Returns `true` if the set contains no futures.
165 pub fn is_empty(&self) -> bool {
166 // Relaxed ordering can be used here since we don't need to read from
167 // the head pointer, only check whether it is null.
168 self.head_all.load(Relaxed).is_null()
169 }
170
171 /// Push a future into the set.
172 ///
173 /// This method adds the given future to the set. This method will not
174 /// call [`poll`](core::future::Future::poll) on the submitted future. The caller must
175 /// ensure that [`FuturesUnordered::poll_next`](Stream::poll_next) is called
176 /// in order to receive wake-up notifications for the given future.
177 pub fn push(&self, future: Fut) {
178 let task = Arc::new(Task {
179 future: UnsafeCell::new(Some(future)),
180 next_all: AtomicPtr::new(self.pending_next_all()),
181 prev_all: UnsafeCell::new(ptr::null_mut()),
182 len_all: UnsafeCell::new(0),
183 next_ready_to_run: AtomicPtr::new(ptr::null_mut()),
184 queued: AtomicBool::new(true),
185 ready_to_run_queue: Arc::downgrade(&self.ready_to_run_queue),
186 woken: AtomicBool::new(false),
187 });
188
189 // Reset the `is_terminated` flag if we've previously marked ourselves
190 // as terminated.
191 self.is_terminated.store(false, Relaxed);
192
193 // Right now our task has a strong reference count of 1. We transfer
194 // ownership of this reference count to our internal linked list
195 // and we'll reclaim ownership through the `unlink` method below.
196 let ptr = self.link(task);
197
198 // We'll need to get the future "into the system" to start tracking it,
199 // e.g. getting its wake-up notifications going to us tracking which
200 // futures are ready. To do that we unconditionally enqueue it for
201 // polling here.
202 self.ready_to_run_queue.enqueue(ptr);
203 }
204
205 /// Returns an iterator that allows inspecting each future in the set.
206 pub fn iter(&self) -> Iter<'_, Fut>
207 where
208 Fut: Unpin,
209 {
210 Iter(Pin::new(self).iter_pin_ref())
211 }
212
213 /// Returns an iterator that allows inspecting each future in the set.
214 pub fn iter_pin_ref(self: Pin<&Self>) -> IterPinRef<'_, Fut> {
215 let (task, len) = self.atomic_load_head_and_len_all();
216 let pending_next_all = self.pending_next_all();
217
218 IterPinRef { task, len, pending_next_all, _marker: PhantomData }
219 }
220
221 /// Returns an iterator that allows modifying each future in the set.
222 pub fn iter_mut(&mut self) -> IterMut<'_, Fut>
223 where
224 Fut: Unpin,
225 {
226 IterMut(Pin::new(self).iter_pin_mut())
227 }
228
229 /// Returns an iterator that allows modifying each future in the set.
230 pub fn iter_pin_mut(mut self: Pin<&mut Self>) -> IterPinMut<'_, Fut> {
231 // `head_all` can be accessed directly and we don't need to spin on
232 // `Task::next_all` since we have exclusive access to the set.
233 let task = *self.head_all.get_mut();
234 let len = if task.is_null() { 0 } else { unsafe { *(*task).len_all.get() } };
235
236 IterPinMut { task, len, _marker: PhantomData }
237 }
238
239 /// Returns the current head node and number of futures in the list of all
240 /// futures within a context where access is shared with other threads
241 /// (mostly for use with the `len` and `iter_pin_ref` methods).
242 fn atomic_load_head_and_len_all(&self) -> (*const Task<Fut>, usize) {
243 let task = self.head_all.load(Acquire);
244 let len = if task.is_null() {
245 0
246 } else {
247 unsafe {
248 (*task).spin_next_all(self.pending_next_all(), Acquire);
249 *(*task).len_all.get()
250 }
251 };
252
253 (task, len)
254 }
255
256 /// Releases the task. It destroys the future inside and either drops
257 /// the `Arc<Task>` or transfers ownership to the ready to run queue.
258 /// The task this method is called on must have been unlinked before.
259 fn release_task(&mut self, task: Arc<Task<Fut>>) {
260 // `release_task` must only be called on unlinked tasks
261 debug_assert_eq!(task.next_all.load(Relaxed), self.pending_next_all());
262 unsafe {
263 debug_assert!((*task.prev_all.get()).is_null());
264 }
265
266 // The future is done, try to reset the queued flag. This will prevent
267 // `wake` from doing any work in the future
268 let prev = task.queued.swap(true, SeqCst);
269
270 // If the queued flag was previously set, then it means that this task
271 // is still in our internal ready to run queue. We then transfer
272 // ownership of our reference count to the ready to run queue, and it'll
273 // come along and free it later, noticing that the future is `None`.
274 //
275 // If, however, the queued flag was *not* set then we're safe to
276 // release our reference count on the task. The queued flag was set
277 // above so all future `enqueue` operations will not actually
278 // enqueue the task, so our task will never see the ready to run queue
279 // again. The task itself will be deallocated once all reference counts
280 // have been dropped elsewhere by the various wakers that contain it.
281 //
282 // Use ManuallyDrop to transfer the reference count ownership before
283 // dropping the future so unwinding won't release the reference count.
284 let md_slot;
285 let task = if prev {
286 md_slot = mem::ManuallyDrop::new(task);
287 &*md_slot
288 } else {
289 &task
290 };
291
292 // Drop the future, even if it hasn't finished yet. This is safe
293 // because we're dropping the future on the thread that owns
294 // `FuturesUnordered`, which correctly tracks `Fut`'s lifetimes and
295 // such.
296 unsafe {
297 // Set to `None` rather than `take()`ing to prevent moving the
298 // future.
299 *task.future.get() = None;
300 }
301 }
302
303 /// Insert a new task into the internal linked list.
304 fn link(&self, task: Arc<Task<Fut>>) -> *const Task<Fut> {
305 // `next_all` should already be reset to the pending state before this
306 // function is called.
307 debug_assert_eq!(task.next_all.load(Relaxed), self.pending_next_all());
308 let ptr = Arc::into_raw(task);
309
310 // Atomically swap out the old head node to get the node that should be
311 // assigned to `next_all`.
312 let next = self.head_all.swap(ptr as *mut _, AcqRel);
313
314 unsafe {
315 // Store the new list length in the new node.
316 let new_len = if next.is_null() {
317 1
318 } else {
319 // Make sure `next_all` has been written to signal that it is
320 // safe to read `len_all`.
321 (*next).spin_next_all(self.pending_next_all(), Acquire);
322 *(*next).len_all.get() + 1
323 };
324 *(*ptr).len_all.get() = new_len;
325
326 // Write the old head as the next node pointer, signaling to other
327 // threads that `len_all` and `next_all` are ready to read.
328 (*ptr).next_all.store(next, Release);
329
330 // `prev_all` updates don't need to be synchronized, as the field is
331 // only ever used after exclusive access has been acquired.
332 if !next.is_null() {
333 *(*next).prev_all.get() = ptr;
334 }
335 }
336
337 ptr
338 }
339
340 /// Remove the task from the linked list tracking all tasks currently
341 /// managed by `FuturesUnordered`.
342 /// This method is unsafe because it has be guaranteed that `task` is a
343 /// valid pointer.
344 unsafe fn unlink(&mut self, task: *const Task<Fut>) -> Arc<Task<Fut>> {
345 unsafe {
346 // Compute the new list length now in case we're removing the head node
347 // and won't be able to retrieve the correct length later.
348 let head = *self.head_all.get_mut();
349 debug_assert!(!head.is_null());
350 let new_len = *(*head).len_all.get() - 1;
351
352 let task = Arc::from_raw(task);
353 let next = task.next_all.load(Relaxed);
354 let prev = *task.prev_all.get();
355 task.next_all.store(self.pending_next_all(), Relaxed);
356 *task.prev_all.get() = ptr::null_mut();
357
358 if !next.is_null() {
359 *(*next).prev_all.get() = prev;
360 }
361
362 if !prev.is_null() {
363 (*prev).next_all.store(next, Relaxed);
364 } else {
365 *self.head_all.get_mut() = next;
366 }
367
368 // Store the new list length in the head node.
369 let head = *self.head_all.get_mut();
370 if !head.is_null() {
371 *(*head).len_all.get() = new_len;
372 }
373
374 task
375 }
376 }
377
378 /// Returns the reserved value for `Task::next_all` to indicate a pending
379 /// assignment from the thread that inserted the task.
380 ///
381 /// `FuturesUnordered::link` needs to update `Task` pointers in an order
382 /// that ensures any iterators created on other threads can correctly
383 /// traverse the entire `Task` list using the chain of `next_all` pointers.
384 /// This could be solved with a compare-exchange loop that stores the
385 /// current `head_all` in `next_all` and swaps out `head_all` with the new
386 /// `Task` pointer if the head hasn't already changed. Under heavy thread
387 /// contention, this compare-exchange loop could become costly.
388 ///
389 /// An alternative is to initialize `next_all` to a reserved pending state
390 /// first, perform an atomic swap on `head_all`, and finally update
391 /// `next_all` with the old head node. Iterators will then either see the
392 /// pending state value or the correct next node pointer, and can reload
393 /// `next_all` as needed until the correct value is loaded. The number of
394 /// retries needed (if any) would be small and will always be finite, so
395 /// this should generally perform better than the compare-exchange loop.
396 ///
397 /// A valid `Task` pointer in the `head_all` list is guaranteed to never be
398 /// this value, so it is safe to use as a reserved value until the correct
399 /// value can be written.
400 fn pending_next_all(&self) -> *mut Task<Fut> {
401 // The `ReadyToRunQueue` stub is never inserted into the `head_all`
402 // list, and its pointer value will remain valid for the lifetime of
403 // this `FuturesUnordered`, so we can make use of its value here.
404 Arc::as_ptr(&self.ready_to_run_queue.stub) as *mut _
405 }
406}
407
408impl<Fut: Future> Stream for FuturesUnordered<Fut> {
409 type Item = Fut::Output;
410
411 fn poll_next(mut self: Pin<&mut Self>, cx: &mut Context<'_>) -> Poll<Option<Self::Item>> {
412 let len = self.len();
413
414 // Keep track of how many child futures we have polled,
415 // in case we want to forcibly yield.
416 let mut polled = 0;
417 let mut yielded = 0;
418
419 // Ensure `parent` is correctly set.
420 self.ready_to_run_queue.waker.register(cx.waker());
421
422 loop {
423 // Safety: &mut self guarantees the mutual exclusion `dequeue`
424 // expects
425 let task = match unsafe { self.ready_to_run_queue.dequeue() } {
426 Dequeue::Empty => {
427 if self.is_empty() {
428 // We can only consider ourselves terminated once we
429 // have yielded a `None`
430 *self.is_terminated.get_mut() = true;
431 return Poll::Ready(None);
432 } else {
433 return Poll::Pending;
434 }
435 }
436 Dequeue::Inconsistent => {
437 // At this point, it may be worth yielding the thread &
438 // spinning a few times... but for now, just yield using the
439 // task system.
440 cx.waker().wake_by_ref();
441 return Poll::Pending;
442 }
443 Dequeue::Data(task) => task,
444 };
445
446 debug_assert!(task != self.ready_to_run_queue.stub());
447
448 // Safety:
449 // - `task` is a valid pointer.
450 // - We are the only thread that accesses the `UnsafeCell` that
451 // contains the future
452 let future = match unsafe { &mut *(*task).future.get() } {
453 Some(future) => future,
454
455 // If the future has already gone away then we're just
456 // cleaning out this task. See the comment in
457 // `release_task` for more information, but we're basically
458 // just taking ownership of our reference count here.
459 None => {
460 // This case only happens when `release_task` was called
461 // for this task before and couldn't drop the task
462 // because it was already enqueued in the ready to run
463 // queue.
464
465 // Safety: `task` is a valid pointer
466 let task = unsafe { Arc::from_raw(task) };
467
468 // Double check that the call to `release_task` really
469 // happened. Calling it required the task to be unlinked.
470 debug_assert_eq!(task.next_all.load(Relaxed), self.pending_next_all());
471 unsafe {
472 debug_assert!((*task.prev_all.get()).is_null());
473 }
474 continue;
475 }
476 };
477
478 // Safety: `task` is a valid pointer
479 let task = unsafe { self.unlink(task) };
480
481 // Unset queued flag: This must be done before polling to ensure
482 // that the future's task gets rescheduled if it sends a wake-up
483 // notification **during** the call to `poll`.
484 let prev = task.queued.swap(false, SeqCst);
485 assert!(prev);
486
487 // We're going to need to be very careful if the `poll`
488 // method below panics. We need to (a) not leak memory and
489 // (b) ensure that we still don't have any use-after-frees. To
490 // manage this we do a few things:
491 //
492 // * A "bomb" is created which if dropped abnormally will call
493 // `release_task`. That way we'll be sure the memory management
494 // of the `task` is managed correctly. In particular
495 // `release_task` will drop the future. This ensures that it is
496 // dropped on this thread and not accidentally on a different
497 // thread (bad).
498 // * We unlink the task from our internal queue to preemptively
499 // assume it'll panic, in which case we'll want to discard it
500 // regardless.
501 struct Bomb<'a, Fut> {
502 queue: &'a mut FuturesUnordered<Fut>,
503 task: Option<Arc<Task<Fut>>>,
504 }
505
506 impl<Fut> Drop for Bomb<'_, Fut> {
507 fn drop(&mut self) {
508 if let Some(task) = self.task.take() {
509 self.queue.release_task(task);
510 }
511 }
512 }
513
514 let mut bomb = Bomb { task: Some(task), queue: &mut *self };
515
516 // Poll the underlying future with the appropriate waker
517 // implementation. This is where a large bit of the unsafety
518 // starts to stem from internally. The waker is basically just
519 // our `Arc<Task<Fut>>` and can schedule the future for polling by
520 // enqueuing itself in the ready to run queue.
521 //
522 // Critically though `Task<Fut>` won't actually access `Fut`, the
523 // future, while it's floating around inside of wakers.
524 // These structs will basically just use `Fut` to size
525 // the internal allocation, appropriately accessing fields and
526 // deallocating the task if need be.
527 let res = {
528 let task = bomb.task.as_ref().unwrap();
529 // We are only interested in whether the future is awoken before it
530 // finishes polling, so reset the flag here.
531 task.woken.store(false, Relaxed);
532 // SAFETY: see the comments of Bomb and this block.
533 let waker = unsafe { Task::waker_ref(task) };
534 let mut cx = Context::from_waker(&waker);
535
536 // Safety: We won't move the future ever again
537 let future = unsafe { Pin::new_unchecked(future) };
538
539 future.poll(&mut cx)
540 };
541 polled += 1;
542
543 match res {
544 Poll::Pending => {
545 let task = bomb.task.take().unwrap();
546 // If the future was awoken during polling, we assume
547 // the future wanted to explicitly yield.
548 yielded += task.woken.load(Relaxed) as usize;
549 bomb.queue.link(task);
550
551 // If a future yields, we respect it and yield here.
552 // If all futures have been polled, we also yield here to
553 // avoid starving other tasks waiting on the executor.
554 // (polling the same future twice per iteration may cause
555 // the problem: https://github.com/rust-lang/futures-rs/pull/2333)
556 if yielded >= 2 || polled == len {
557 cx.waker().wake_by_ref();
558 return Poll::Pending;
559 }
560 continue;
561 }
562 Poll::Ready(output) => return Poll::Ready(Some(output)),
563 }
564 }
565 }
566
567 fn size_hint(&self) -> (usize, Option<usize>) {
568 let len = self.len();
569 (len, Some(len))
570 }
571}
572
573impl<Fut> Debug for FuturesUnordered<Fut> {
574 fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result {
575 write!(f, "FuturesUnordered {{ ... }}")
576 }
577}
578
579impl<Fut> FuturesUnordered<Fut> {
580 /// Clears the set, removing all futures.
581 pub fn clear(&mut self) {
582 *self = Self::new();
583 }
584}
585
586impl<Fut> Drop for FuturesUnordered<Fut> {
587 fn drop(&mut self) {
588 // Before the strong reference to the queue is dropped we need all
589 // futures to be dropped. See note at the bottom of this method.
590 //
591 // If there is a panic before this completes, we leak the queue.
592 struct LeakQueueOnDrop<'a, Fut>(&'a mut FuturesUnordered<Fut>);
593 impl<Fut> Drop for LeakQueueOnDrop<'_, Fut> {
594 fn drop(&mut self) {
595 mem::forget(Arc::clone(&self.0.ready_to_run_queue));
596 }
597 }
598 let guard = LeakQueueOnDrop(self);
599 // When a `FuturesUnordered` is dropped we want to drop all futures
600 // associated with it. At the same time though there may be tons of
601 // wakers flying around which contain `Task<Fut>` references
602 // inside them. We'll let those naturally get deallocated.
603 while !guard.0.head_all.get_mut().is_null() {
604 let head = *guard.0.head_all.get_mut();
605 let task = unsafe { guard.0.unlink(head) };
606 guard.0.release_task(task);
607 }
608 mem::forget(guard); // safe to release strong reference to queue
609
610 // Note that at this point we could still have a bunch of tasks in the
611 // ready to run queue. None of those tasks, however, have futures
612 // associated with them so they're safe to destroy on any thread. At
613 // this point the `FuturesUnordered` struct, the owner of the one strong
614 // reference to the ready to run queue will drop the strong reference.
615 // At that point whichever thread releases the strong refcount last (be
616 // it this thread or some other thread as part of an `upgrade`) will
617 // clear out the ready to run queue and free all remaining tasks.
618 //
619 // While that freeing operation isn't guaranteed to happen here, it's
620 // guaranteed to happen "promptly" as no more "blocking work" will
621 // happen while there's a strong refcount held.
622 }
623}
624
625impl<'a, Fut: Unpin> IntoIterator for &'a FuturesUnordered<Fut> {
626 type Item = &'a Fut;
627 type IntoIter = Iter<'a, Fut>;
628
629 fn into_iter(self) -> Self::IntoIter {
630 self.iter()
631 }
632}
633
634impl<'a, Fut: Unpin> IntoIterator for &'a mut FuturesUnordered<Fut> {
635 type Item = &'a mut Fut;
636 type IntoIter = IterMut<'a, Fut>;
637
638 fn into_iter(self) -> Self::IntoIter {
639 self.iter_mut()
640 }
641}
642
643impl<Fut: Unpin> IntoIterator for FuturesUnordered<Fut> {
644 type Item = Fut;
645 type IntoIter = IntoIter<Fut>;
646
647 fn into_iter(mut self) -> Self::IntoIter {
648 // `head_all` can be accessed directly and we don't need to spin on
649 // `Task::next_all` since we have exclusive access to the set.
650 let task = *self.head_all.get_mut();
651 let len = if task.is_null() { 0 } else { unsafe { *(*task).len_all.get() } };
652
653 IntoIter { len, inner: self }
654 }
655}
656
657impl<Fut> FromIterator<Fut> for FuturesUnordered<Fut> {
658 fn from_iter<I>(iter: I) -> Self
659 where
660 I: IntoIterator<Item = Fut>,
661 {
662 let acc = Self::new();
663 iter.into_iter().fold(acc, |acc, item| {
664 acc.push(item);
665 acc
666 })
667 }
668}
669
670impl<Fut: Future> FusedStream for FuturesUnordered<Fut> {
671 fn is_terminated(&self) -> bool {
672 self.is_terminated.load(Relaxed)
673 }
674}
675
676impl<Fut> Extend<Fut> for FuturesUnordered<Fut> {
677 fn extend<I>(&mut self, iter: I)
678 where
679 I: IntoIterator<Item = Fut>,
680 {
681 for item in iter {
682 self.push(item);
683 }
684 }
685}