mirror of
https://github.com/tokio-rs/tokio.git
synced 2026-08-28 00:00:11 +02:00
Reorganize the entire crate:
Renamed APIs * Loop => reactor::Core * LoopHandle => reactor::Handle * LoopPin => reactor::Pinned * TcpStream => net::TcpStream * TcpListener => net::TcpListener * UdpSocket => net::UdpSocket * Sender => channel::Sender * Receiver => channel::Receiver * Timeout => reactor::Timeout * ReadinessStream => reactor::PollEvented * All `LoopHandle` methods to construct objects are now free functions on the associated types, e.g. `LoopHandle::tcp_listen` is now `TcpListener::bind` * All APIs taking a `Handle` now take a `Handle` as the last argument * All future-returning APIs now return concrete types instead of trait objects Added APIs * io::Io trait -- Read + Write + ability to poll Removed without replacement: * AddSource * AddTimeout * IoToken * TimeoutToken Closes #3 Closes #6
This commit is contained in:
@@ -0,0 +1,681 @@
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//! The core reactor driving all I/O
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//!
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//! This module contains the `Core` type which is the reactor for all I/O
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//! happening in `tokio-core`. This reactor (or event loop) is used to run
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//! futures, schedule tasks, issue I/O requests, etc.
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use std::cell::RefCell;
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use std::io::{self, ErrorKind};
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use std::mem;
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use std::rc::{Rc, Weak};
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use std::sync::Arc;
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use std::sync::atomic::{AtomicUsize, ATOMIC_USIZE_INIT, Ordering};
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use std::time::{Instant, Duration};
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use futures::{Future, Poll, IntoFuture, Async};
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use futures::task::{self, Unpark, Task, Spawn};
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use mio;
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use slab::Slab;
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use slot::{self, Slot};
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use timer_wheel::{TimerWheel, Timeout as WheelTimeout};
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mod channel;
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mod io_token;
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mod timeout_token;
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use self::channel::{Sender, Receiver, channel};
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mod poll_evented;
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mod timeout;
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pub use self::poll_evented::{PollEvented, PollEventedNew};
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pub use self::timeout::{Timeout, TimeoutNew};
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static NEXT_LOOP_ID: AtomicUsize = ATOMIC_USIZE_INIT;
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scoped_thread_local!(static CURRENT_LOOP: Core);
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const SLAB_CAPACITY: usize = 1024 * 64;
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/// An event loop.
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///
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/// The event loop is the main source of blocking in an application which drives
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/// all other I/O events and notifications happening. Each event loop can have
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/// multiple handles pointing to it, each of which can then be used to create
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/// various I/O objects to interact with the event loop in interesting ways.
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// TODO: expand this
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pub struct Core {
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id: usize,
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io: mio::Poll,
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events: mio::Events,
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tx: Sender<Message>,
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rx: Receiver<Message>,
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io_dispatch: RefCell<Slab<ScheduledIo, usize>>,
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task_dispatch: RefCell<Slab<ScheduledTask, usize>>,
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// Incoming queue of newly spawned futures
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new_futures: Rc<NewFutures>,
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_new_futures_registration: mio::Registration,
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// Used for determining when the future passed to `run` is ready. Once the
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// registration is passed to `io` above we never touch it again, just keep
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// it alive.
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_future_registration: mio::Registration,
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future_readiness: Arc<MySetReadiness>,
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// Timer wheel keeping track of all timeouts. The `usize` stored in the
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// timer wheel is an index into the slab below.
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//
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// The slab below keeps track of the timeouts themselves as well as the
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// state of the timeout itself. The `TimeoutToken` type is an index into the
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// `timeouts` slab.
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timer_wheel: RefCell<TimerWheel<usize>>,
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timeouts: RefCell<Slab<(WheelTimeout, TimeoutState), usize>>,
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}
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/// Handle to an event loop, used to construct I/O objects, send messages, and
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/// otherwise interact indirectly with the event loop itself.
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///
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/// Handles can be cloned, and when cloned they will still refer to the
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/// same underlying event loop.
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#[derive(Clone)]
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pub struct Handle {
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id: usize,
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tx: Sender<Message>,
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}
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/// A non-sendable handle to an event loop, useful for manufacturing instances
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/// of `LoopData`.
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#[derive(Clone)]
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pub struct Pinned {
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handle: Handle,
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futures: Weak<NewFutures>,
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}
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struct ScheduledIo {
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readiness: Arc<AtomicUsize>,
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reader: Option<Task>,
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writer: Option<Task>,
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}
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struct ScheduledTask {
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_registration: mio::Registration,
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spawn: Option<Spawn<Box<Future<Item=(), Error=()>>>>,
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wake: Arc<MySetReadiness>,
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}
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struct NewFutures {
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queue: RefCell<Vec<Box<Future<Item=(), Error=()>>>>,
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ready: mio::SetReadiness,
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}
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enum TimeoutState {
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NotFired,
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Fired,
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Waiting(Task),
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}
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enum Direction {
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Read,
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Write,
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}
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enum Message {
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DropSource(usize),
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Schedule(usize, Task, Direction),
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AddTimeout(Instant, Arc<Slot<io::Result<(usize, Instant)>>>),
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UpdateTimeout(usize, Task),
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CancelTimeout(usize),
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Run(Box<FnBox>),
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}
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const TOKEN_MESSAGES: mio::Token = mio::Token(0);
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const TOKEN_FUTURE: mio::Token = mio::Token(1);
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const TOKEN_NEW_FUTURES: mio::Token = mio::Token(2);
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const TOKEN_START: usize = 3;
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impl Core {
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/// Creates a new event loop, returning any error that happened during the
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/// creation.
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pub fn new() -> io::Result<Core> {
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let (tx, rx) = channel();
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let io = try!(mio::Poll::new());
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try!(io.register(&rx,
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TOKEN_MESSAGES,
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mio::Ready::readable(),
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mio::PollOpt::edge()));
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let future_pair = mio::Registration::new(&io,
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TOKEN_FUTURE,
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mio::Ready::readable(),
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mio::PollOpt::level());
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let new_future_pair = mio::Registration::new(&io,
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TOKEN_NEW_FUTURES,
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mio::Ready::readable(),
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mio::PollOpt::level());
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Ok(Core {
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id: NEXT_LOOP_ID.fetch_add(1, Ordering::Relaxed),
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io: io,
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events: mio::Events::with_capacity(1024),
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tx: tx,
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rx: rx,
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io_dispatch: RefCell::new(Slab::with_capacity(SLAB_CAPACITY)),
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task_dispatch: RefCell::new(Slab::with_capacity(SLAB_CAPACITY)),
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timeouts: RefCell::new(Slab::with_capacity(SLAB_CAPACITY)),
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timer_wheel: RefCell::new(TimerWheel::new()),
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_future_registration: future_pair.0,
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future_readiness: Arc::new(MySetReadiness(future_pair.1)),
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_new_futures_registration: new_future_pair.0,
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new_futures: Rc::new(NewFutures {
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queue: RefCell::new(Vec::new()),
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ready: new_future_pair.1,
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}),
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})
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}
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/// Generates a handle to this event loop used to construct I/O objects and
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/// send messages.
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///
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/// Handles to an event loop are cloneable as well and clones will always
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/// refer to the same event loop.
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pub fn handle(&self) -> Handle {
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Handle {
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id: self.id,
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tx: self.tx.clone(),
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}
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}
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/// Returns a "pin" of this event loop which cannot be sent across threads
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/// but can be used as a proxy to the event loop itself.
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///
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/// Currently the primary use for this is to use as a handle to add data
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/// to the event loop directly. The `Pinned::add_loop_data` method can
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/// be used to immediately create instances of `LoopData` structures.
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pub fn pin(&self) -> Pinned {
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Pinned {
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handle: self.handle(),
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futures: Rc::downgrade(&self.new_futures),
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}
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}
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/// Runs a future until completion, driving the event loop while we're
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/// otherwise waiting for the future to complete.
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///
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/// This function will begin executing the event loop and will finish once
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/// the provided future is resolve. Note that the future argument here
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/// crucially does not require the `'static` nor `Send` bounds. As a result
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/// the future will be "pinned" to not only this thread but also this stack
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/// frame.
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///
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/// This function will returns the value that the future resolves to once
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/// the future has finished. If the future never resolves then this function
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/// will never return.
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///
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/// # Panics
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///
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/// This method will **not** catch panics from polling the future `f`. If
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/// the future panics then it's the responsibility of the caller to catch
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/// that panic and handle it as appropriate.
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///
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/// Similarly, because the provided future will be pinned not only to this
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/// thread but also to this task, any attempt to poll the future on a
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/// separate thread will result in a panic. That is, calls to
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/// `task::poll_on` must be avoided.
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pub fn run<F>(&mut self, f: F) -> Result<F::Item, F::Error>
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where F: Future,
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{
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let mut task = task::spawn(f);
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let ready = self.future_readiness.clone();
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// Next, move all that data into a dynamically dispatched closure to cut
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// down on monomorphization costs. Inside this closure we unset the
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// readiness of the future (as we're about to poll it) and then we check
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// to see if it's done. If it's not then the event loop will turn again.
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let mut res = None;
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self._run(&mut || {
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assert!(res.is_none());
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match task.poll_future(ready.clone()) {
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Ok(Async::NotReady) => {}
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Ok(Async::Ready(e)) => res = Some(Ok(e)),
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Err(e) => res = Some(Err(e)),
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}
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res.is_some()
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});
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res.expect("run should not return until future is done")
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}
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fn _run(&mut self, done: &mut FnMut() -> bool) {
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// Check to see if we're done immediately, if so we shouldn't do any
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// work.
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if CURRENT_LOOP.set(self, || done()) {
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return
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}
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let mut finished = false;
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while !finished {
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let amt;
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// On Linux, Poll::poll is epoll_wait, which may return EINTR if a
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// ptracer attaches. This retry loop prevents crashing when
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// attaching strace, or similar.
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let start = Instant::now();
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loop {
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let timeout = self.timer_wheel.borrow().next_timeout().map(|t| {
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if t < start {
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Duration::new(0, 0)
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} else {
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t - start
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}
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});
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match self.io.poll(&mut self.events, timeout) {
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Ok(a) => {
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amt = a;
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break;
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}
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Err(ref e) if e.kind() == ErrorKind::Interrupted => {}
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err @ Err(_) => {
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err.unwrap();
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}
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}
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}
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debug!("loop poll - {:?}", start.elapsed());
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debug!("loop time - {:?}", Instant::now());
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// First up, process all timeouts that may have just occurred.
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let start = Instant::now();
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self.consume_timeouts(start);
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// Next, process all the events that came in.
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for i in 0..self.events.len() {
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let event = self.events.get(i).unwrap();
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let token = event.token();
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trace!("event {:?} {:?}", event.kind(), event.token());
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if token == TOKEN_MESSAGES {
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CURRENT_LOOP.set(&self, || self.consume_queue());
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} else if token == TOKEN_FUTURE {
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self.future_readiness.0.set_readiness(mio::Ready::none()).unwrap();
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if !finished && CURRENT_LOOP.set(self, || done()) {
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finished = true;
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}
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} else if token == TOKEN_NEW_FUTURES {
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self.new_futures.ready.set_readiness(mio::Ready::none()).unwrap();
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let mut new_futures = self.new_futures.queue.borrow_mut();
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for future in new_futures.drain(..) {
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self.spawn(future);
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}
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} else {
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self.dispatch(token, event.kind());
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}
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}
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debug!("loop process - {} events, {:?}", amt, start.elapsed());
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}
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}
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fn dispatch(&self, token: mio::Token, ready: mio::Ready) {
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let token = usize::from(token) - TOKEN_START;
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if token % 2 == 0 {
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self.dispatch_io(token / 2, ready)
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} else {
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self.dispatch_task(token / 2)
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}
|
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}
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fn dispatch_io(&self, token: usize, ready: mio::Ready) {
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let mut reader = None;
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let mut writer = None;
|
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if let Some(io) = self.io_dispatch.borrow_mut().get_mut(token) {
|
||||
if ready.is_readable() {
|
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reader = io.reader.take();
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io.readiness.fetch_or(1, Ordering::Relaxed);
|
||||
}
|
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if ready.is_writable() {
|
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writer = io.writer.take();
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io.readiness.fetch_or(2, Ordering::Relaxed);
|
||||
}
|
||||
}
|
||||
// TODO: don't notify the same task twice
|
||||
if let Some(reader) = reader {
|
||||
self.notify_handle(reader);
|
||||
}
|
||||
if let Some(writer) = writer {
|
||||
self.notify_handle(writer);
|
||||
}
|
||||
}
|
||||
|
||||
fn dispatch_task(&self, token: usize) {
|
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let (task, wake) = match self.task_dispatch.borrow_mut().get_mut(token) {
|
||||
Some(slot) => (slot.spawn.take(), slot.wake.clone()),
|
||||
None => return,
|
||||
};
|
||||
wake.0.set_readiness(mio::Ready::none()).unwrap();
|
||||
let mut task = match task {
|
||||
Some(task) => task,
|
||||
None => return,
|
||||
};
|
||||
let res = CURRENT_LOOP.set(self, || task.poll_future(wake));
|
||||
let mut dispatch = self.task_dispatch.borrow_mut();
|
||||
match res {
|
||||
Ok(Async::NotReady) => {
|
||||
assert!(dispatch[token].spawn.is_none());
|
||||
dispatch[token].spawn = Some(task);
|
||||
}
|
||||
Ok(Async::Ready(())) |
|
||||
Err(()) => {
|
||||
dispatch.remove(token).unwrap();
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
fn consume_timeouts(&mut self, now: Instant) {
|
||||
while let Some(idx) = self.timer_wheel.borrow_mut().poll(now) {
|
||||
trace!("firing timeout: {}", idx);
|
||||
let handle = self.timeouts.borrow_mut()[idx].1.fire();
|
||||
if let Some(handle) = handle {
|
||||
self.notify_handle(handle);
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
/// Method used to notify a task handle.
|
||||
///
|
||||
/// Note that this should be used instead fo `handle.unpark()` to ensure
|
||||
/// that the `CURRENT_LOOP` variable is set appropriately.
|
||||
fn notify_handle(&self, handle: Task) {
|
||||
debug!("notifying a task handle");
|
||||
CURRENT_LOOP.set(&self, || handle.unpark());
|
||||
}
|
||||
|
||||
fn add_source(&self, source: &mio::Evented)
|
||||
-> io::Result<(Arc<AtomicUsize>, usize)> {
|
||||
debug!("adding a new I/O source");
|
||||
let sched = ScheduledIo {
|
||||
readiness: Arc::new(AtomicUsize::new(0)),
|
||||
reader: None,
|
||||
writer: None,
|
||||
};
|
||||
let mut dispatch = self.io_dispatch.borrow_mut();
|
||||
if dispatch.vacant_entry().is_none() {
|
||||
let amt = dispatch.len();
|
||||
dispatch.reserve_exact(amt);
|
||||
}
|
||||
let entry = dispatch.vacant_entry().unwrap();
|
||||
try!(self.io.register(source,
|
||||
mio::Token(TOKEN_START + entry.index() * 2),
|
||||
mio::Ready::readable() | mio::Ready::writable(),
|
||||
mio::PollOpt::edge()));
|
||||
Ok((sched.readiness.clone(), entry.insert(sched).index()))
|
||||
}
|
||||
|
||||
fn drop_source(&self, token: usize) {
|
||||
debug!("dropping I/O source: {}", token);
|
||||
self.io_dispatch.borrow_mut().remove(token).unwrap();
|
||||
}
|
||||
|
||||
fn schedule(&self, token: usize, wake: Task, dir: Direction) {
|
||||
debug!("scheduling direction for: {}", token);
|
||||
let to_call = {
|
||||
let mut dispatch = self.io_dispatch.borrow_mut();
|
||||
let sched = dispatch.get_mut(token).unwrap();
|
||||
let (slot, bit) = match dir {
|
||||
Direction::Read => (&mut sched.reader, 1),
|
||||
Direction::Write => (&mut sched.writer, 2),
|
||||
};
|
||||
if sched.readiness.load(Ordering::SeqCst) & bit != 0 {
|
||||
*slot = None;
|
||||
Some(wake)
|
||||
} else {
|
||||
*slot = Some(wake);
|
||||
None
|
||||
}
|
||||
};
|
||||
if let Some(to_call) = to_call {
|
||||
debug!("schedule immediately done");
|
||||
self.notify_handle(to_call);
|
||||
}
|
||||
}
|
||||
|
||||
fn add_timeout(&self, at: Instant) -> io::Result<(usize, Instant)> {
|
||||
let mut timeouts = self.timeouts.borrow_mut();
|
||||
if timeouts.vacant_entry().is_none() {
|
||||
let len = timeouts.len();
|
||||
timeouts.reserve_exact(len);
|
||||
}
|
||||
let entry = timeouts.vacant_entry().unwrap();
|
||||
let timeout = self.timer_wheel.borrow_mut().insert(at, entry.index());
|
||||
let when = *timeout.when();
|
||||
let entry = entry.insert((timeout, TimeoutState::NotFired));
|
||||
debug!("added a timeout: {}", entry.index());
|
||||
Ok((entry.index(), when))
|
||||
}
|
||||
|
||||
fn update_timeout(&self, token: usize, handle: Task) {
|
||||
debug!("updating a timeout: {}", token);
|
||||
let to_wake = self.timeouts.borrow_mut()[token].1.block(handle);
|
||||
if let Some(to_wake) = to_wake {
|
||||
self.notify_handle(to_wake);
|
||||
}
|
||||
}
|
||||
|
||||
fn cancel_timeout(&self, token: usize) {
|
||||
debug!("cancel a timeout: {}", token);
|
||||
let pair = self.timeouts.borrow_mut().remove(token);
|
||||
if let Some((timeout, _state)) = pair {
|
||||
self.timer_wheel.borrow_mut().cancel(&timeout);
|
||||
}
|
||||
}
|
||||
|
||||
fn spawn(&self, future: Box<Future<Item=(), Error=()>>) {
|
||||
let unpark = {
|
||||
let mut dispatch = self.task_dispatch.borrow_mut();
|
||||
if dispatch.vacant_entry().is_none() {
|
||||
let len = dispatch.len();
|
||||
dispatch.reserve_exact(len);
|
||||
}
|
||||
let entry = dispatch.vacant_entry().unwrap();
|
||||
let token = TOKEN_START + 2 * entry.index() + 1;
|
||||
let pair = mio::Registration::new(&self.io,
|
||||
mio::Token(token),
|
||||
mio::Ready::readable(),
|
||||
mio::PollOpt::level());
|
||||
let unpark = Arc::new(MySetReadiness(pair.1));
|
||||
let entry = entry.insert(ScheduledTask {
|
||||
spawn: Some(task::spawn(future)),
|
||||
wake: unpark,
|
||||
_registration: pair.0,
|
||||
});
|
||||
entry.get().wake.clone()
|
||||
};
|
||||
unpark.unpark();
|
||||
}
|
||||
|
||||
fn consume_queue(&self) {
|
||||
debug!("consuming notification queue");
|
||||
// TODO: can we do better than `.unwrap()` here?
|
||||
while let Some(msg) = self.rx.recv().unwrap() {
|
||||
self.notify(msg);
|
||||
}
|
||||
}
|
||||
|
||||
fn notify(&self, msg: Message) {
|
||||
match msg {
|
||||
Message::DropSource(tok) => self.drop_source(tok),
|
||||
Message::Schedule(tok, wake, dir) => self.schedule(tok, wake, dir),
|
||||
|
||||
Message::AddTimeout(at, slot) => {
|
||||
slot.try_produce(self.add_timeout(at))
|
||||
.expect("interference with try_produce on timeout");
|
||||
}
|
||||
Message::UpdateTimeout(t, handle) => self.update_timeout(t, handle),
|
||||
Message::CancelTimeout(t) => self.cancel_timeout(t),
|
||||
Message::Run(r) => r.call_box(self),
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
impl Handle {
|
||||
fn send(&self, msg: Message) {
|
||||
self.with_loop(|lp| {
|
||||
match lp {
|
||||
Some(lp) => {
|
||||
// Need to execute all existing requests first, to ensure
|
||||
// that our message is processed "in order"
|
||||
lp.consume_queue();
|
||||
lp.notify(msg);
|
||||
}
|
||||
None => {
|
||||
match self.tx.send(msg) {
|
||||
Ok(()) => {}
|
||||
|
||||
// This should only happen when there was an error
|
||||
// writing to the pipe to wake up the event loop,
|
||||
// hopefully that never happens
|
||||
Err(e) => {
|
||||
panic!("error sending message to event loop: {}", e)
|
||||
}
|
||||
}
|
||||
}
|
||||
}
|
||||
})
|
||||
}
|
||||
|
||||
fn with_loop<F, R>(&self, f: F) -> R
|
||||
where F: FnOnce(Option<&Core>) -> R
|
||||
{
|
||||
if CURRENT_LOOP.is_set() {
|
||||
CURRENT_LOOP.with(|lp| {
|
||||
if lp.id == self.id {
|
||||
f(Some(lp))
|
||||
} else {
|
||||
f(None)
|
||||
}
|
||||
})
|
||||
} else {
|
||||
f(None)
|
||||
}
|
||||
}
|
||||
|
||||
/// Spawns a new future into the event loop this handle is associated this.
|
||||
///
|
||||
/// This function takes a closure which is executed within the context of
|
||||
/// the I/O loop itself. The future returned by the closure will be
|
||||
/// scheduled on the event loop an run to completion.
|
||||
///
|
||||
/// Note that while the closure, `F`, requires the `Send` bound as it might
|
||||
/// cross threads, the future `R` does not.
|
||||
pub fn spawn<F, R>(&self, f: F)
|
||||
where F: FnOnce(&Pinned) -> R + Send + 'static,
|
||||
R: IntoFuture<Item=(), Error=()>,
|
||||
R::Future: 'static,
|
||||
{
|
||||
self.send(Message::Run(Box::new(|lp: &Core| {
|
||||
let f = f(&lp.pin());
|
||||
lp.spawn(Box::new(f.into_future()));
|
||||
})));
|
||||
}
|
||||
}
|
||||
|
||||
impl Pinned {
|
||||
/// Returns a reference to the underlying handle to the event loop.
|
||||
pub fn handle(&self) -> &Handle {
|
||||
&self.handle
|
||||
}
|
||||
|
||||
/// Spawns a new future on the event loop this pin is associated this.
|
||||
pub fn spawn<F>(&self, f: F)
|
||||
where F: Future<Item=(), Error=()> + 'static,
|
||||
{
|
||||
let inner = match self.futures.upgrade() {
|
||||
Some(inner) => inner,
|
||||
None => return,
|
||||
};
|
||||
inner.queue.borrow_mut().push(Box::new(f));
|
||||
inner.ready.set_readiness(mio::Ready::readable()).unwrap();
|
||||
}
|
||||
}
|
||||
|
||||
struct CoreFuture<T, U> {
|
||||
handle: Handle,
|
||||
data: Option<U>,
|
||||
result: Option<(Arc<Slot<io::Result<T>>>, slot::Token)>,
|
||||
}
|
||||
|
||||
impl<T, U> CoreFuture<T, U>
|
||||
where T: 'static,
|
||||
{
|
||||
fn poll<F, G>(&mut self, f: F, g: G) -> Poll<T, io::Error>
|
||||
where F: FnOnce(&Core, U) -> io::Result<T>,
|
||||
G: FnOnce(U, Arc<Slot<io::Result<T>>>) -> Message,
|
||||
{
|
||||
match self.result {
|
||||
Some((ref result, ref mut token)) => {
|
||||
result.cancel(*token);
|
||||
match result.try_consume() {
|
||||
Ok(Ok(t)) => return Ok(t.into()),
|
||||
Ok(Err(e)) => return Err(e),
|
||||
Err(_) => {}
|
||||
}
|
||||
let task = task::park();
|
||||
*token = result.on_full(move |_| {
|
||||
task.unpark();
|
||||
});
|
||||
Ok(Async::NotReady)
|
||||
}
|
||||
None => {
|
||||
let data = &mut self.data;
|
||||
let ret = self.handle.with_loop(|lp| {
|
||||
lp.map(|lp| f(lp, data.take().unwrap()))
|
||||
});
|
||||
if let Some(ret) = ret {
|
||||
debug!("loop future done immediately on event loop");
|
||||
return ret.map(|e| e.into())
|
||||
}
|
||||
debug!("loop future needs to send info to event loop");
|
||||
|
||||
let task = task::park();
|
||||
let result = Arc::new(Slot::new(None));
|
||||
let token = result.on_full(move |_| {
|
||||
task.unpark();
|
||||
});
|
||||
self.result = Some((result.clone(), token));
|
||||
self.handle.send(g(data.take().unwrap(), result));
|
||||
Ok(Async::NotReady)
|
||||
}
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
impl TimeoutState {
|
||||
fn block(&mut self, handle: Task) -> Option<Task> {
|
||||
match *self {
|
||||
TimeoutState::Fired => return Some(handle),
|
||||
_ => {}
|
||||
}
|
||||
*self = TimeoutState::Waiting(handle);
|
||||
None
|
||||
}
|
||||
|
||||
fn fire(&mut self) -> Option<Task> {
|
||||
match mem::replace(self, TimeoutState::Fired) {
|
||||
TimeoutState::NotFired => None,
|
||||
TimeoutState::Fired => panic!("fired twice?"),
|
||||
TimeoutState::Waiting(handle) => Some(handle),
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
struct MySetReadiness(mio::SetReadiness);
|
||||
|
||||
impl Unpark for MySetReadiness {
|
||||
fn unpark(&self) {
|
||||
self.0.set_readiness(mio::Ready::readable())
|
||||
.expect("failed to set readiness");
|
||||
}
|
||||
}
|
||||
|
||||
trait FnBox: Send + 'static {
|
||||
fn call_box(self: Box<Self>, lp: &Core);
|
||||
}
|
||||
|
||||
impl<F: FnOnce(&Core) + Send + 'static> FnBox for F {
|
||||
fn call_box(self: Box<Self>, lp: &Core) {
|
||||
(*self)(lp)
|
||||
}
|
||||
}
|
||||
Reference in New Issue
Block a user