#![warn(missing_docs, missing_debug_implementations, rust_2018_idioms)]
use std::future::Future;
use std::marker::PhantomData;
use std::panic::{RefUnwindSafe, UnwindSafe};
use std::rc::Rc;
use std::sync::atomic::{AtomicBool, AtomicUsize, Ordering};
use std::sync::{Arc, Mutex, RwLock};
use std::task::{Poll, Waker};
use async_task::Runnable;
use concurrent_queue::ConcurrentQueue;
use futures_lite::{future, prelude::*};
use slab::Slab;
#[doc(no_inline)]
pub use async_task::Task;
#[derive(Debug)]
pub struct Executor<'a> {
state: once_cell::sync::OnceCell<Arc<State>>,
_marker: PhantomData<std::cell::UnsafeCell<&'a ()>>,
}
unsafe impl Send for Executor<'_> {}
unsafe impl Sync for Executor<'_> {}
impl UnwindSafe for Executor<'_> {}
impl RefUnwindSafe for Executor<'_> {}
impl<'a> Executor<'a> {
pub const fn new() -> Executor<'a> {
Executor {
state: once_cell::sync::OnceCell::new(),
_marker: PhantomData,
}
}
pub fn is_empty(&self) -> bool {
self.state().active.lock().unwrap().is_empty()
}
pub fn spawn<T: Send + 'a>(&self, future: impl Future<Output = T> + Send + 'a) -> Task<T> {
let mut active = self.state().active.lock().unwrap();
let index = active.vacant_entry().key();
let state = self.state().clone();
let future = async move {
let _guard = CallOnDrop(move || {
let mut active = state.active.lock().unwrap();
if active.contains(index) {
drop(active.remove(index));
}
});
future.await
};
let (runnable, task) = unsafe { async_task::spawn_unchecked(future, self.schedule()) };
active.insert(runnable.waker());
runnable.schedule();
task
}
pub fn try_tick(&self) -> bool {
match self.state().queue.pop() {
Err(_) => false,
Ok(runnable) => {
self.state().notify();
runnable.run();
true
}
}
}
pub async fn tick(&self) {
let state = self.state();
let runnable = Ticker::new(state).runnable().await;
runnable.run();
}
pub async fn run<T>(&self, future: impl Future<Output = T>) -> T {
let runner = Runner::new(self.state());
let run_forever = async {
loop {
for _ in 0..200 {
let runnable = runner.runnable().await;
runnable.run();
}
future::yield_now().await;
}
};
future.or(run_forever).await
}
fn schedule(&self) -> impl Fn(Runnable) + Send + Sync + 'static {
let state = self.state().clone();
move |runnable| {
state.queue.push(runnable).unwrap();
state.notify();
}
}
fn state(&self) -> &Arc<State> {
self.state.get_or_init(|| Arc::new(State::new()))
}
}
impl Drop for Executor<'_> {
fn drop(&mut self) {
if let Some(state) = self.state.get() {
let mut active = state.active.lock().unwrap();
for w in active.drain() {
w.wake();
}
drop(active);
while state.queue.pop().is_ok() {}
}
}
}
impl<'a> Default for Executor<'a> {
fn default() -> Executor<'a> {
Executor::new()
}
}
#[derive(Debug)]
pub struct LocalExecutor<'a> {
inner: once_cell::unsync::OnceCell<Executor<'a>>,
_marker: PhantomData<Rc<()>>,
}
impl UnwindSafe for LocalExecutor<'_> {}
impl RefUnwindSafe for LocalExecutor<'_> {}
impl<'a> LocalExecutor<'a> {
pub const fn new() -> LocalExecutor<'a> {
LocalExecutor {
inner: once_cell::unsync::OnceCell::new(),
_marker: PhantomData,
}
}
pub fn is_empty(&self) -> bool {
self.inner().is_empty()
}
pub fn spawn<T: 'a>(&self, future: impl Future<Output = T> + 'a) -> Task<T> {
let mut active = self.inner().state().active.lock().unwrap();
let index = active.vacant_entry().key();
let state = self.inner().state().clone();
let future = async move {
let _guard = CallOnDrop(move || {
let mut active = state.active.lock().unwrap();
if active.contains(index) {
drop(active.remove(index));
}
});
future.await
};
let (runnable, task) = unsafe { async_task::spawn_unchecked(future, self.schedule()) };
active.insert(runnable.waker());
runnable.schedule();
task
}
pub fn try_tick(&self) -> bool {
self.inner().try_tick()
}
pub async fn tick(&self) {
self.inner().tick().await
}
pub async fn run<T>(&self, future: impl Future<Output = T>) -> T {
self.inner().run(future).await
}
fn schedule(&self) -> impl Fn(Runnable) + Send + Sync + 'static {
let state = self.inner().state().clone();
move |runnable| {
state.queue.push(runnable).unwrap();
state.notify();
}
}
fn inner(&self) -> &Executor<'a> {
self.inner.get_or_init(|| Executor::new())
}
}
impl<'a> Default for LocalExecutor<'a> {
fn default() -> LocalExecutor<'a> {
LocalExecutor::new()
}
}
#[derive(Debug)]
struct State {
queue: ConcurrentQueue<Runnable>,
local_queues: RwLock<Vec<Arc<ConcurrentQueue<Runnable>>>>,
notified: AtomicBool,
sleepers: Mutex<Sleepers>,
active: Mutex<Slab<Waker>>,
}
impl State {
fn new() -> State {
State {
queue: ConcurrentQueue::unbounded(),
local_queues: RwLock::new(Vec::new()),
notified: AtomicBool::new(true),
sleepers: Mutex::new(Sleepers {
count: 0,
wakers: Vec::new(),
free_ids: Vec::new(),
}),
active: Mutex::new(Slab::new()),
}
}
#[inline]
fn notify(&self) {
if self
.notified
.compare_exchange(false, true, Ordering::SeqCst, Ordering::SeqCst)
.is_ok()
{
let waker = self.sleepers.lock().unwrap().notify();
if let Some(w) = waker {
w.wake();
}
}
}
}
#[derive(Debug)]
struct Sleepers {
count: usize,
wakers: Vec<(usize, Waker)>,
free_ids: Vec<usize>,
}
impl Sleepers {
fn insert(&mut self, waker: &Waker) -> usize {
let id = match self.free_ids.pop() {
Some(id) => id,
None => self.count + 1,
};
self.count += 1;
self.wakers.push((id, waker.clone()));
id
}
fn update(&mut self, id: usize, waker: &Waker) -> bool {
for item in &mut self.wakers {
if item.0 == id {
if !item.1.will_wake(waker) {
item.1 = waker.clone();
}
return false;
}
}
self.wakers.push((id, waker.clone()));
true
}
fn remove(&mut self, id: usize) -> bool {
self.count -= 1;
self.free_ids.push(id);
for i in (0..self.wakers.len()).rev() {
if self.wakers[i].0 == id {
self.wakers.remove(i);
return false;
}
}
true
}
fn is_notified(&self) -> bool {
self.count == 0 || self.count > self.wakers.len()
}
fn notify(&mut self) -> Option<Waker> {
if self.wakers.len() == self.count {
self.wakers.pop().map(|item| item.1)
} else {
None
}
}
}
#[derive(Debug)]
struct Ticker<'a> {
state: &'a State,
sleeping: AtomicUsize,
}
impl Ticker<'_> {
fn new(state: &State) -> Ticker<'_> {
Ticker {
state,
sleeping: AtomicUsize::new(0),
}
}
fn sleep(&self, waker: &Waker) -> bool {
let mut sleepers = self.state.sleepers.lock().unwrap();
match self.sleeping.load(Ordering::SeqCst) {
0 => self
.sleeping
.store(sleepers.insert(waker), Ordering::SeqCst),
id => {
if !sleepers.update(id, waker) {
return false;
}
}
}
self.state
.notified
.swap(sleepers.is_notified(), Ordering::SeqCst);
true
}
fn wake(&self) {
let id = self.sleeping.swap(0, Ordering::SeqCst);
if id != 0 {
let mut sleepers = self.state.sleepers.lock().unwrap();
sleepers.remove(id);
self.state
.notified
.swap(sleepers.is_notified(), Ordering::SeqCst);
}
}
async fn runnable(&self) -> Runnable {
self.runnable_with(|| self.state.queue.pop().ok()).await
}
async fn runnable_with(&self, mut search: impl FnMut() -> Option<Runnable>) -> Runnable {
future::poll_fn(|cx| {
loop {
match search() {
None => {
if !self.sleep(cx.waker()) {
return Poll::Pending;
}
}
Some(r) => {
self.wake();
self.state.notify();
return Poll::Ready(r);
}
}
}
})
.await
}
}
impl Drop for Ticker<'_> {
fn drop(&mut self) {
let id = self.sleeping.swap(0, Ordering::SeqCst);
if id != 0 {
let mut sleepers = self.state.sleepers.lock().unwrap();
let notified = sleepers.remove(id);
self.state
.notified
.swap(sleepers.is_notified(), Ordering::SeqCst);
if notified {
drop(sleepers);
self.state.notify();
}
}
}
}
#[derive(Debug)]
struct Runner<'a> {
state: &'a State,
ticker: Ticker<'a>,
local: Arc<ConcurrentQueue<Runnable>>,
ticks: AtomicUsize,
}
impl Runner<'_> {
fn new(state: &State) -> Runner<'_> {
let runner = Runner {
state,
ticker: Ticker::new(state),
local: Arc::new(ConcurrentQueue::bounded(512)),
ticks: AtomicUsize::new(0),
};
state
.local_queues
.write()
.unwrap()
.push(runner.local.clone());
runner
}
async fn runnable(&self) -> Runnable {
let runnable = self
.ticker
.runnable_with(|| {
if let Ok(r) = self.local.pop() {
return Some(r);
}
if let Ok(r) = self.state.queue.pop() {
steal(&self.state.queue, &self.local);
return Some(r);
}
let local_queues = self.state.local_queues.read().unwrap();
let n = local_queues.len();
let start = fastrand::usize(..n);
let iter = local_queues
.iter()
.chain(local_queues.iter())
.skip(start)
.take(n);
let iter = iter.filter(|local| !Arc::ptr_eq(local, &self.local));
for local in iter {
steal(local, &self.local);
if let Ok(r) = self.local.pop() {
return Some(r);
}
}
None
})
.await;
let ticks = self.ticks.fetch_add(1, Ordering::SeqCst);
if ticks % 64 == 0 {
steal(&self.state.queue, &self.local);
}
runnable
}
}
impl Drop for Runner<'_> {
fn drop(&mut self) {
self.state
.local_queues
.write()
.unwrap()
.retain(|local| !Arc::ptr_eq(local, &self.local));
while let Ok(r) = self.local.pop() {
r.schedule();
}
}
}
fn steal<T>(src: &ConcurrentQueue<T>, dest: &ConcurrentQueue<T>) {
let mut count = (src.len() + 1) / 2;
if count > 0 {
if let Some(cap) = dest.capacity() {
count = count.min(cap - dest.len());
}
for _ in 0..count {
if let Ok(t) = src.pop() {
assert!(dest.push(t).is_ok());
} else {
break;
}
}
}
}
struct CallOnDrop<F: Fn()>(F);
impl<F: Fn()> Drop for CallOnDrop<F> {
fn drop(&mut self) {
(self.0)();
}
}