mirror of
https://github.com/fafhrd91/actix-net
synced 2024-12-19 07:32:39 +01:00
256 lines
7.2 KiB
Rust
256 lines
7.2 KiB
Rust
use std::{
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cell::RefCell,
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collections::HashMap,
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future::Future,
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io,
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pin::Pin,
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sync::atomic::{AtomicUsize, Ordering},
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task::{Context, Poll},
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};
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use futures_core::ready;
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use tokio::sync::{mpsc, oneshot};
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use crate::{arbiter::ArbiterHandle, runtime::default_tokio_runtime, Arbiter, Runtime};
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static SYSTEM_COUNT: AtomicUsize = AtomicUsize::new(0);
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thread_local!(
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static CURRENT: RefCell<Option<System>> = RefCell::new(None);
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);
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/// A manager for a per-thread distributed async runtime.
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#[derive(Clone, Debug)]
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pub struct System {
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id: usize,
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sys_tx: mpsc::UnboundedSender<SystemCommand>,
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/// Handle to the first [Arbiter] that is created with the System.
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arbiter_handle: ArbiterHandle,
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}
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impl System {
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/// Create a new system.
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///
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/// # Panics
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/// Panics if underlying Tokio runtime can not be created.
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#[allow(clippy::new_ret_no_self)]
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pub fn new() -> SystemRunner {
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Self::with_tokio_rt(|| {
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default_tokio_runtime()
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.expect("Default Actix (Tokio) runtime could not be created.")
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})
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}
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/// Create a new System using the [Tokio Runtime](tokio-runtime) returned from a closure.
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///
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/// [tokio-runtime]: tokio::runtime::Runtime
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#[doc(hidden)]
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pub fn with_tokio_rt<F>(runtime_factory: F) -> SystemRunner
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where
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F: Fn() -> tokio::runtime::Runtime,
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{
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let (stop_tx, stop_rx) = oneshot::channel();
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let (sys_tx, sys_rx) = mpsc::unbounded_channel();
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let rt = Runtime::from(runtime_factory());
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let sys_arbiter = Arbiter::in_new_system(rt.local_set());
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let system = System::construct(sys_tx, sys_arbiter.clone());
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system
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.tx()
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.send(SystemCommand::RegisterArbiter(usize::MAX, sys_arbiter))
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.unwrap();
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// init background system arbiter
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let sys_ctrl = SystemController::new(sys_rx, stop_tx);
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rt.spawn(sys_ctrl);
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SystemRunner {
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rt,
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stop_rx,
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system,
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}
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}
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/// Constructs new system and registers it on the current thread.
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pub(crate) fn construct(
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sys_tx: mpsc::UnboundedSender<SystemCommand>,
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arbiter_handle: ArbiterHandle,
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) -> Self {
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let sys = System {
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sys_tx,
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arbiter_handle,
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id: SYSTEM_COUNT.fetch_add(1, Ordering::SeqCst),
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};
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System::set_current(sys.clone());
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sys
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}
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/// Get current running system.
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///
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/// # Panics
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/// Panics if no system is registered on the current thread.
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pub fn current() -> System {
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CURRENT.with(|cell| match *cell.borrow() {
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Some(ref sys) => sys.clone(),
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None => panic!("System is not running"),
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})
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}
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/// Try to get current running system.
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///
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/// Returns `None` if no System has been started.
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///
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/// Contrary to `current`, this never panics.
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pub fn try_current() -> Option<System> {
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CURRENT.with(|cell| cell.borrow().clone())
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}
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/// Get handle to a the System's initial [Arbiter].
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pub fn arbiter(&self) -> &ArbiterHandle {
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&self.arbiter_handle
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}
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/// Check if there is a System registered on the current thread.
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pub fn is_registered() -> bool {
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CURRENT.with(|sys| sys.borrow().is_some())
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}
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/// Register given system on current thread.
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#[doc(hidden)]
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pub fn set_current(sys: System) {
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CURRENT.with(|cell| {
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*cell.borrow_mut() = Some(sys);
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})
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}
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/// Numeric system identifier.
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///
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/// Useful when using multiple Systems.
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pub fn id(&self) -> usize {
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self.id
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}
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/// Stop the system (with code 0).
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pub fn stop(&self) {
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self.stop_with_code(0)
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}
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/// Stop the system with a given exit code.
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pub fn stop_with_code(&self, code: i32) {
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let _ = self.sys_tx.send(SystemCommand::Exit(code));
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}
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pub(crate) fn tx(&self) -> &mpsc::UnboundedSender<SystemCommand> {
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&self.sys_tx
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}
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}
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/// Runner that keeps a [System]'s event loop alive until stop message is received.
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#[must_use = "A SystemRunner does nothing unless `run` is called."]
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#[derive(Debug)]
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pub struct SystemRunner {
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rt: Runtime,
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stop_rx: oneshot::Receiver<i32>,
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system: System,
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}
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impl SystemRunner {
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/// Starts event loop and will return once [System] is [stopped](System::stop).
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pub fn run(self) -> io::Result<()> {
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let SystemRunner { rt, stop_rx, .. } = self;
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// run loop
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match rt.block_on(stop_rx) {
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Ok(code) => {
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if code != 0 {
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Err(io::Error::new(
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io::ErrorKind::Other,
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format!("Non-zero exit code: {}", code),
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))
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} else {
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Ok(())
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}
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}
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Err(e) => Err(io::Error::new(io::ErrorKind::Other, e)),
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}
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}
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/// Runs the provided future, blocking the current thread until the future completes.
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#[inline]
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pub fn block_on<F: Future>(&self, fut: F) -> F::Output {
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self.rt.block_on(fut)
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}
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}
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#[derive(Debug)]
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pub(crate) enum SystemCommand {
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Exit(i32),
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RegisterArbiter(usize, ArbiterHandle),
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DeregisterArbiter(usize),
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}
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/// There is one `SystemController` per [System]. It runs in the background, keeping track of
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/// [Arbiter]s and is able to distribute a system-wide stop command.
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#[derive(Debug)]
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pub(crate) struct SystemController {
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stop_tx: Option<oneshot::Sender<i32>>,
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cmd_rx: mpsc::UnboundedReceiver<SystemCommand>,
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arbiters: HashMap<usize, ArbiterHandle>,
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}
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impl SystemController {
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pub(crate) fn new(
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cmd_rx: mpsc::UnboundedReceiver<SystemCommand>,
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stop_tx: oneshot::Sender<i32>,
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) -> Self {
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SystemController {
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cmd_rx,
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stop_tx: Some(stop_tx),
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arbiters: HashMap::with_capacity(4),
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}
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}
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}
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impl Future for SystemController {
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type Output = ();
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fn poll(mut self: Pin<&mut Self>, cx: &mut Context<'_>) -> Poll<Self::Output> {
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// process all items currently buffered in channel
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loop {
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match ready!(Pin::new(&mut self.cmd_rx).poll_recv(cx)) {
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// channel closed; no more messages can be received
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None => return Poll::Ready(()),
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// process system command
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Some(cmd) => match cmd {
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SystemCommand::Exit(code) => {
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// stop all arbiters
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for arb in self.arbiters.values() {
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arb.stop();
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}
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// stop event loop
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// will only fire once
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if let Some(stop_tx) = self.stop_tx.take() {
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let _ = stop_tx.send(code);
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}
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}
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SystemCommand::RegisterArbiter(id, arb) => {
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self.arbiters.insert(id, arb);
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}
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SystemCommand::DeregisterArbiter(id) => {
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self.arbiters.remove(&id);
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}
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},
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}
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}
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}
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}
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