2018-10-05 22:07:09 +02:00
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use std::fmt;
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use bytes::BytesMut;
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2018-12-06 23:04:42 +01:00
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use futures::{try_ready, Async, Poll, Sink, StartSend, Stream};
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use log::trace;
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2018-10-05 22:07:09 +02:00
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use tokio_codec::Decoder;
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use tokio_io::AsyncRead;
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use super::framed::Fuse;
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/// A `Stream` of messages decoded from an `AsyncRead`.
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pub struct FramedRead<T, D> {
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inner: FramedRead2<Fuse<T, D>>,
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}
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pub struct FramedRead2<T> {
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inner: T,
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eof: bool,
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is_readable: bool,
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buffer: BytesMut,
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}
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const INITIAL_CAPACITY: usize = 8 * 1024;
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// ===== impl FramedRead =====
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impl<T, D> FramedRead<T, D>
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where
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T: AsyncRead,
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D: Decoder,
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{
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/// Creates a new `FramedRead` with the given `decoder`.
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pub fn new(inner: T, decoder: D) -> FramedRead<T, D> {
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FramedRead {
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inner: framed_read2(Fuse(inner, decoder)),
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}
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}
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}
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impl<T, D> FramedRead<T, D> {
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/// Returns a reference to the underlying I/O stream wrapped by
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/// `FramedRead`.
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///
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/// Note that care should be taken to not tamper with the underlying stream
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/// of data coming in as it may corrupt the stream of frames otherwise
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/// being worked with.
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pub fn get_ref(&self) -> &T {
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&self.inner.inner.0
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}
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/// Returns a mutable reference to the underlying I/O stream wrapped by
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/// `FramedRead`.
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///
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/// Note that care should be taken to not tamper with the underlying stream
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/// of data coming in as it may corrupt the stream of frames otherwise
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/// being worked with.
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pub fn get_mut(&mut self) -> &mut T {
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&mut self.inner.inner.0
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}
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/// Consumes the `FramedRead`, returning its underlying I/O stream.
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///
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/// Note that care should be taken to not tamper with the underlying stream
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/// of data coming in as it may corrupt the stream of frames otherwise
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/// being worked with.
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pub fn into_inner(self) -> T {
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self.inner.inner.0
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}
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/// Returns a reference to the underlying decoder.
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pub fn decoder(&self) -> &D {
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&self.inner.inner.1
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}
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/// Returns a mutable reference to the underlying decoder.
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pub fn decoder_mut(&mut self) -> &mut D {
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&mut self.inner.inner.1
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}
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}
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impl<T, D> Stream for FramedRead<T, D>
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where
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T: AsyncRead,
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D: Decoder,
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{
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type Item = D::Item;
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type Error = D::Error;
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fn poll(&mut self) -> Poll<Option<Self::Item>, Self::Error> {
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self.inner.poll()
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}
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}
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impl<T, D> Sink for FramedRead<T, D>
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where
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T: Sink,
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{
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type SinkItem = T::SinkItem;
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type SinkError = T::SinkError;
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fn start_send(
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2018-10-30 04:29:47 +01:00
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&mut self,
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item: Self::SinkItem,
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2018-10-05 22:07:09 +02:00
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) -> StartSend<Self::SinkItem, Self::SinkError> {
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self.inner.inner.0.start_send(item)
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}
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fn poll_complete(&mut self) -> Poll<(), Self::SinkError> {
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self.inner.inner.0.poll_complete()
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}
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fn close(&mut self) -> Poll<(), Self::SinkError> {
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self.inner.inner.0.close()
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}
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}
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impl<T, D> fmt::Debug for FramedRead<T, D>
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where
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T: fmt::Debug,
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D: fmt::Debug,
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{
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fn fmt(&self, f: &mut fmt::Formatter) -> fmt::Result {
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f.debug_struct("FramedRead")
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.field("inner", &self.inner.inner.0)
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.field("decoder", &self.inner.inner.1)
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.field("eof", &self.inner.eof)
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.field("is_readable", &self.inner.is_readable)
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.field("buffer", &self.inner.buffer)
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.finish()
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}
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}
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// ===== impl FramedRead2 =====
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pub fn framed_read2<T>(inner: T) -> FramedRead2<T> {
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FramedRead2 {
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2018-12-06 23:04:42 +01:00
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inner,
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2018-10-05 22:07:09 +02:00
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eof: false,
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is_readable: false,
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buffer: BytesMut::with_capacity(INITIAL_CAPACITY),
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}
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}
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pub fn framed_read2_with_buffer<T>(inner: T, mut buf: BytesMut) -> FramedRead2<T> {
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if buf.capacity() < INITIAL_CAPACITY {
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let bytes_to_reserve = INITIAL_CAPACITY - buf.capacity();
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buf.reserve(bytes_to_reserve);
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}
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FramedRead2 {
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2018-12-06 23:04:42 +01:00
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inner,
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2018-10-05 22:07:09 +02:00
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eof: false,
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2018-12-06 23:04:42 +01:00
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is_readable: !buf.is_empty(),
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2018-10-05 22:07:09 +02:00
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buffer: buf,
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}
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}
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impl<T> FramedRead2<T> {
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pub fn get_ref(&self) -> &T {
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&self.inner
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}
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pub fn into_inner(self) -> T {
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self.inner
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}
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pub fn into_parts(self) -> (T, BytesMut) {
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(self.inner, self.buffer)
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}
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pub fn get_mut(&mut self) -> &mut T {
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&mut self.inner
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}
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}
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impl<T> Stream for FramedRead2<T>
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where
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T: AsyncRead + Decoder,
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{
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type Item = T::Item;
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type Error = T::Error;
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fn poll(&mut self) -> Poll<Option<Self::Item>, Self::Error> {
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loop {
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// Repeatedly call `decode` or `decode_eof` as long as it is
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// "readable". Readable is defined as not having returned `None`. If
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// the upstream has returned EOF, and the decoder is no longer
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// readable, it can be assumed that the decoder will never become
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// readable again, at which point the stream is terminated.
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if self.is_readable {
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if self.eof {
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2018-12-06 23:04:42 +01:00
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let frame = self.inner.decode_eof(&mut self.buffer)?;
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2018-10-05 22:07:09 +02:00
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return Ok(Async::Ready(frame));
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}
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trace!("attempting to decode a frame");
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2018-12-06 23:04:42 +01:00
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if let Some(frame) = self.inner.decode(&mut self.buffer)? {
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2018-10-05 22:07:09 +02:00
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trace!("frame decoded from buffer");
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return Ok(Async::Ready(Some(frame)));
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}
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self.is_readable = false;
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}
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assert!(!self.eof);
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// Otherwise, try to read more data and try again. Make sure we've
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// got room for at least one byte to read to ensure that we don't
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// get a spurious 0 that looks like EOF
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self.buffer.reserve(1);
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if 0 == try_ready!(self.inner.read_buf(&mut self.buffer)) {
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self.eof = true;
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}
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self.is_readable = true;
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}
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}
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}
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