mirror of
https://github.com/tokio-rs/tokio.git
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222 lines
5.7 KiB
Rust
222 lines
5.7 KiB
Rust
//! Unix handling of child processes
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//!
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//! Right now the only "fancy" thing about this is how we implement the
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//! `Future` implementation on `Child` to get the exit status. Unix offers
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//! no way to register a child with epoll, and the only real way to get a
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//! notification when a process exits is the SIGCHLD signal.
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//!
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//! Signal handling in general is *super* hairy and complicated, and it's even
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//! more complicated here with the fact that signals are coalesced, so we may
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//! not get a SIGCHLD-per-child.
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//!
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//! Our best approximation here is to check *all spawned processes* for all
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//! SIGCHLD signals received. To do that we create a `Signal`, implemented in
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//! the `tokio-signal` crate, which is a stream over signals being received.
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//!
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//! Later when we poll the process's exit status we simply check to see if a
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//! SIGCHLD has happened since we last checked, and while that returns "yes" we
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//! keep trying.
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//!
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//! Note that this means that this isn't really scalable, but then again
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//! processes in general aren't scalable (e.g. millions) so it shouldn't be that
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//! bad in theory...
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extern crate libc;
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extern crate mio;
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extern crate tokio_signal;
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mod orphan;
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mod reap;
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use self::mio::event::Evented;
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use self::mio::unix::{EventedFd, UnixReady};
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use self::mio::{Poll as MioPoll, PollOpt, Ready, Token};
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use self::orphan::{AtomicOrphanQueue, OrphanQueue, Wait};
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use self::reap::Reaper;
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use self::tokio_signal::unix::Signal;
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use super::SpawnedChild;
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use crate::kill::Kill;
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use futures::future::FlattenStream;
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use futures::{Future, Poll};
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use std::fmt;
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use std::io;
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use std::os::unix::io::{AsRawFd, RawFd};
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use std::process::{self, ExitStatus};
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use tokio_io::IoFuture;
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use tokio_reactor::{Handle, PollEvented};
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impl Wait for process::Child {
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fn id(&self) -> u32 {
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self.id()
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}
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fn try_wait(&mut self) -> io::Result<Option<ExitStatus>> {
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self.try_wait()
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}
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}
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impl Kill for process::Child {
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fn kill(&mut self) -> io::Result<()> {
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self.kill()
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}
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}
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lazy_static! {
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static ref ORPHAN_QUEUE: AtomicOrphanQueue<process::Child> = AtomicOrphanQueue::new();
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}
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struct GlobalOrphanQueue;
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impl fmt::Debug for GlobalOrphanQueue {
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fn fmt(&self, fmt: &mut fmt::Formatter) -> fmt::Result {
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ORPHAN_QUEUE.fmt(fmt)
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}
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}
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impl OrphanQueue<process::Child> for GlobalOrphanQueue {
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fn push_orphan(&self, orphan: process::Child) {
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ORPHAN_QUEUE.push_orphan(orphan)
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}
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fn reap_orphans(&self) {
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ORPHAN_QUEUE.reap_orphans()
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}
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}
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#[must_use = "futures do nothing unless polled"]
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pub struct Child {
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inner: Reaper<process::Child, GlobalOrphanQueue, FlattenStream<IoFuture<Signal>>>,
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}
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impl fmt::Debug for Child {
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fn fmt(&self, fmt: &mut fmt::Formatter) -> fmt::Result {
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fmt.debug_struct("Child")
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.field("pid", &self.inner.id())
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.finish()
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}
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}
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pub(crate) fn spawn_child(cmd: &mut process::Command, handle: &Handle) -> io::Result<SpawnedChild> {
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let mut child = cmd.spawn()?;
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let stdin = stdio(child.stdin.take(), handle)?;
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let stdout = stdio(child.stdout.take(), handle)?;
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let stderr = stdio(child.stderr.take(), handle)?;
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let signal = Signal::with_handle(libc::SIGCHLD, handle).flatten_stream();
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Ok(SpawnedChild {
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child: Child {
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inner: Reaper::new(child, GlobalOrphanQueue, signal),
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},
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stdin,
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stdout,
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stderr,
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})
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}
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impl Child {
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pub fn id(&self) -> u32 {
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self.inner.id()
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}
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}
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impl Kill for Child {
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fn kill(&mut self) -> io::Result<()> {
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self.inner.kill()
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}
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}
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impl Future for Child {
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type Item = ExitStatus;
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type Error = io::Error;
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fn poll(&mut self) -> Poll<Self::Item, Self::Error> {
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self.inner.poll()
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}
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}
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#[derive(Debug)]
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pub struct Fd<T>(T);
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impl<T: io::Read> io::Read for Fd<T> {
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fn read(&mut self, bytes: &mut [u8]) -> io::Result<usize> {
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self.0.read(bytes)
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}
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}
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impl<T: io::Write> io::Write for Fd<T> {
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fn write(&mut self, bytes: &[u8]) -> io::Result<usize> {
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self.0.write(bytes)
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}
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fn flush(&mut self) -> io::Result<()> {
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self.0.flush()
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}
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}
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impl<T> AsRawFd for Fd<T>
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where
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T: AsRawFd,
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{
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fn as_raw_fd(&self) -> RawFd {
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self.0.as_raw_fd()
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}
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}
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pub type ChildStdin = PollEvented<Fd<process::ChildStdin>>;
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pub type ChildStdout = PollEvented<Fd<process::ChildStdout>>;
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pub type ChildStderr = PollEvented<Fd<process::ChildStderr>>;
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impl<T> Evented for Fd<T>
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where
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T: AsRawFd,
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{
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fn register(
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&self,
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poll: &MioPoll,
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token: Token,
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interest: Ready,
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opts: PollOpt,
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) -> io::Result<()> {
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EventedFd(&self.as_raw_fd()).register(poll, token, interest | UnixReady::hup(), opts)
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}
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fn reregister(
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&self,
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poll: &MioPoll,
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token: Token,
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interest: Ready,
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opts: PollOpt,
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) -> io::Result<()> {
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EventedFd(&self.as_raw_fd()).reregister(poll, token, interest | UnixReady::hup(), opts)
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}
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fn deregister(&self, poll: &MioPoll) -> io::Result<()> {
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EventedFd(&self.as_raw_fd()).deregister(poll)
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}
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}
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fn stdio<T>(option: Option<T>, handle: &Handle) -> io::Result<Option<PollEvented<Fd<T>>>>
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where
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T: AsRawFd,
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{
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let io = match option {
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Some(io) => io,
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None => return Ok(None),
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};
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// Set the fd to nonblocking before we pass it to the event loop
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unsafe {
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let fd = io.as_raw_fd();
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let r = libc::fcntl(fd, libc::F_GETFL);
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if r == -1 {
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return Err(io::Error::last_os_error());
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}
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let r = libc::fcntl(fd, libc::F_SETFL, r | libc::O_NONBLOCK);
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if r == -1 {
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return Err(io::Error::last_os_error());
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}
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}
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let io = PollEvented::new_with_handle(Fd(io), handle)?;
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Ok(Some(io))
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}
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