feat(server): support HTTP1 and HTTP2 automatically
If an HTTP/1 connection has a parse error, but it starts with the HTTP2 preface, converts the connection automatically into an HTTP2 server connection. Closes #1486
This commit is contained in:
@@ -45,6 +45,7 @@ num_cpus = "1.0"
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pretty_env_logger = "0.2.0"
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spmc = "0.2"
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url = "1.0"
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tokio-mockstream = "1.1.0"
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[features]
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default = [
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@@ -69,6 +69,7 @@ pub(crate) enum Kind {
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pub(crate) enum Parse {
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Method,
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Version,
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VersionH2,
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Uri,
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Header,
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TooLarge,
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@@ -164,6 +165,10 @@ impl Error {
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Error::new(Kind::Parse(Parse::Version), None)
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}
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pub(crate) fn new_version_h2() -> Error {
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Error::new(Kind::Parse(Parse::VersionH2), None)
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}
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pub(crate) fn new_mismatched_response() -> Error {
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Error::new(Kind::MismatchedResponse, None)
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}
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@@ -250,6 +255,7 @@ impl StdError for Error {
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match self.inner.kind {
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Kind::Parse(Parse::Method) => "invalid Method specified",
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Kind::Parse(Parse::Version) => "invalid HTTP version specified",
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Kind::Parse(Parse::VersionH2) => "invalid HTTP version specified (Http2)",
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Kind::Parse(Parse::Uri) => "invalid URI",
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Kind::Parse(Parse::Header) => "invalid Header provided",
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Kind::Parse(Parse::TooLarge) => "message head is too large",
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@@ -12,6 +12,7 @@ use proto::{BodyLength, Decode, Http1Transaction, MessageHead};
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use super::io::{Buffered};
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use super::{EncodedBuf, Encoder, Decoder};
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const H2_PREFACE: &'static [u8] = b"PRI * HTTP/2.0\r\n\r\nSM\r\n\r\n";
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/// This handles a connection, which will have been established over an
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/// `AsyncRead + AsyncWrite` (like a socket), and will likely include multiple
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@@ -107,6 +108,11 @@ where I: AsyncRead + AsyncWrite,
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T::should_error_on_parse_eof() && !self.state.is_idle()
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}
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fn has_h2_prefix(&self) -> bool {
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let read_buf = self.io.read_buf();
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read_buf.len() >= 24 && read_buf[..24] == *H2_PREFACE
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}
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pub fn read_head(&mut self) -> Poll<Option<(MessageHead<T::Incoming>, bool)>, ::Error> {
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debug_assert!(self.can_read_head());
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trace!("Conn::read_head");
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@@ -124,6 +130,7 @@ where I: AsyncRead + AsyncWrite,
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self.io.consume_leading_lines();
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let was_mid_parse = e.is_parse() || !self.io.read_buf().is_empty();
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return if was_mid_parse || must_error {
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// We check if the buf contains the h2 Preface
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debug!("parse error ({}) with {} bytes", e, self.io.read_buf().len());
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self.on_parse_error(e)
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.map(|()| Async::NotReady)
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@@ -529,8 +536,12 @@ where I: AsyncRead + AsyncWrite,
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// - Client: there is nothing we can do
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// - Server: if Response hasn't been written yet, we can send a 4xx response
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fn on_parse_error(&mut self, err: ::Error) -> ::Result<()> {
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match self.state.writing {
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Writing::Init => {
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if self.has_h2_prefix() {
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return Err(::Error::new_version_h2())
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}
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if let Some(msg) = T::on_error(&err) {
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self.write_head(msg, None);
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self.state.error = Some(err);
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@@ -332,6 +332,9 @@ impl<S> Server<S> where S: Service {
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service: service,
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}
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}
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pub fn into_service(self) -> S {
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self.service
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}
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}
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impl<S, Bs> Dispatch for Server<S>
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@@ -186,14 +186,14 @@ where
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use ::error::{Kind, Parse};
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let status = match *err.kind() {
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Kind::Parse(Parse::Method) |
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Kind::Parse(Parse::Version) |
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Kind::Parse(Parse::Header) |
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Kind::Parse(Parse::Uri) => {
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Kind::Parse(Parse::Uri) |
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Kind::Parse(Parse::Version) => {
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StatusCode::BAD_REQUEST
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},
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Kind::Parse(Parse::TooLarge) => {
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StatusCode::REQUEST_HEADER_FIELDS_TOO_LARGE
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}
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},
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_ => return None,
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};
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@@ -13,6 +13,7 @@ use std::fmt;
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use std::sync::Arc;
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#[cfg(feature = "runtime")] use std::time::Duration;
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use super::rewind::Rewind;
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use bytes::Bytes;
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use futures::{Async, Future, Poll, Stream};
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use futures::future::{Either, Executor};
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@@ -23,6 +24,7 @@ use common::Exec;
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use proto;
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use body::{Body, Payload};
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use service::{NewService, Service};
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use error::{Kind, Parse};
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#[cfg(feature = "runtime")] pub use super::tcp::AddrIncoming;
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@@ -74,23 +76,24 @@ pub(super) struct SpawnAll<I, S> {
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///
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/// Polling this future will drive HTTP forward.
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#[must_use = "futures do nothing unless polled"]
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pub struct Connection<I, S>
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pub struct Connection<T, S>
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where
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S: Service,
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{
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pub(super) conn: Either<
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pub(super) conn: Option<
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Either<
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proto::h1::Dispatcher<
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proto::h1::dispatch::Server<S>,
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S::ResBody,
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I,
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T,
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proto::ServerTransaction,
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>,
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proto::h2::Server<
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I,
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Rewind<T>,
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S,
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S::ResBody,
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>,
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>,
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>>,
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}
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/// Deconstructed parts of a `Connection`.
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@@ -98,7 +101,7 @@ where
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/// This allows taking apart a `Connection` at a later time, in order to
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/// reclaim the IO object, and additional related pieces.
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#[derive(Debug)]
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pub struct Parts<T, S> {
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pub struct Parts<T, S> {
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/// The original IO object used in the handshake.
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pub io: T,
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/// A buffer of bytes that have been read but not processed as HTTP.
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@@ -239,12 +242,13 @@ impl Http {
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let sd = proto::h1::dispatch::Server::new(service);
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Either::A(proto::h1::Dispatcher::new(sd, conn))
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} else {
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let h2 = proto::h2::Server::new(io, service, self.exec.clone());
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let rewind_io = Rewind::new(io);
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let h2 = proto::h2::Server::new(rewind_io, service, self.exec.clone());
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Either::B(h2)
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};
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Connection {
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conn: either,
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conn: Some(either),
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}
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}
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@@ -322,7 +326,7 @@ where
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/// This `Connection` should continue to be polled until shutdown
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/// can finish.
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pub fn graceful_shutdown(&mut self) {
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match self.conn {
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match *self.conn.as_mut().unwrap() {
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Either::A(ref mut h1) => {
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h1.disable_keep_alive();
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},
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@@ -334,11 +338,12 @@ where
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/// Return the inner IO object, and additional information.
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///
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/// If the IO object has been "rewound" the io will not contain those bytes rewound.
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/// This should only be called after `poll_without_shutdown` signals
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/// that the connection is "done". Otherwise, it may not have finished
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/// flushing all necessary HTTP bytes.
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pub fn into_parts(self) -> Parts<I, S> {
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let (io, read_buf, dispatch) = match self.conn {
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let (io, read_buf, dispatch) = match self.conn.unwrap() {
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Either::A(h1) => {
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h1.into_inner()
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},
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@@ -349,7 +354,7 @@ where
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Parts {
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io: io,
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read_buf: read_buf,
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service: dispatch.service,
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service: dispatch.into_service(),
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_inner: (),
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}
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}
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@@ -362,7 +367,7 @@ where
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/// but it is not desired to actally shutdown the IO object. Instead you
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/// would take it back using `into_parts`.
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pub fn poll_without_shutdown(&mut self) -> Poll<(), ::Error> {
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match self.conn {
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match *self.conn.as_mut().unwrap() {
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Either::A(ref mut h1) => {
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try_ready!(h1.poll_without_shutdown());
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Ok(().into())
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@@ -370,6 +375,29 @@ where
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Either::B(ref mut h2) => h2.poll(),
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}
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}
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fn try_h2(&mut self) -> Poll<(), ::Error> {
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trace!("Trying to upgrade connection to h2");
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let conn = self.conn.take();
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let (io, read_buf, dispatch) = match conn.unwrap() {
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Either::A(h1) => {
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h1.into_inner()
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},
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Either::B(_h2) => {
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panic!("h2 cannot into_inner");
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}
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};
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let mut rewind_io = Rewind::new(io);
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rewind_io.rewind(read_buf);
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let mut h2 = proto::h2::Server::new(rewind_io, dispatch.into_service(), Exec::Default);
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let pr = h2.poll();
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debug_assert!(self.conn.is_none());
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self.conn = Some(Either::B(h2));
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pr
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}
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}
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impl<I, B, S> Future for Connection<I, S>
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@@ -384,7 +412,16 @@ where
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type Error = ::Error;
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fn poll(&mut self) -> Poll<Self::Item, Self::Error> {
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self.conn.poll()
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match self.conn.poll() {
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Ok(x) => Ok(x.map(|o| o.unwrap_or_else(|| ()))),
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Err(e) => {
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debug!("error polling connection protocol: {}", e);
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match *e.kind() {
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Kind::Parse(Parse::VersionH2) => self.try_h2(),
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_ => Err(e),
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}
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}
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}
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}
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}
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@@ -50,6 +50,7 @@
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pub mod conn;
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#[cfg(feature = "runtime")] mod tcp;
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mod rewind;
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use std::fmt;
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#[cfg(feature = "runtime")] use std::net::SocketAddr;
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208
src/server/rewind.rs
Normal file
208
src/server/rewind.rs
Normal file
@@ -0,0 +1,208 @@
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use bytes::{Buf, BufMut, Bytes, IntoBuf};
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use futures::{Async, Poll};
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use std::io::{self, Read, Write};
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use std::cmp;
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use tokio_io::{AsyncRead, AsyncWrite};
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#[derive(Debug)]
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pub struct Rewind<T> {
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pre: Option<Bytes>,
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inner: T,
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}
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impl<T> Rewind<T> {
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pub(super) fn new(tcp: T) -> Rewind<T> {
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Rewind {
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pre: None,
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inner: tcp,
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}
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}
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pub fn rewind(&mut self, bs: Bytes) {
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debug_assert!(self.pre.is_none());
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self.pre = Some(bs);
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}
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}
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impl<T> Read for Rewind<T>
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where
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T: Read,
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{
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#[inline]
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fn read(&mut self, buf: &mut [u8]) -> io::Result<usize> {
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if let Some(pre_bs) = self.pre.take() {
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// If there are no remaining bytes, let the bytes get dropped.
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if pre_bs.len() > 0 {
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let mut pre_reader = pre_bs.into_buf().reader();
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let read_cnt = pre_reader.read(buf)?;
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let mut new_pre = pre_reader.into_inner().into_inner();
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new_pre.advance(read_cnt);
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// Put back whats left
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if new_pre.len() > 0 {
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self.pre = Some(new_pre);
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}
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return Ok(read_cnt);
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}
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}
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self.inner.read(buf)
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}
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}
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impl<T> Write for Rewind<T>
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where
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T: Write,
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{
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#[inline]
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fn write(&mut self, buf: &[u8]) -> io::Result<usize> {
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self.inner.write(buf)
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}
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#[inline]
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fn flush(&mut self) -> io::Result<()> {
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self.inner.flush()
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}
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}
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impl<T> AsyncRead for Rewind<T>
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where
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T: AsyncRead,
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{
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#[inline]
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unsafe fn prepare_uninitialized_buffer(&self, buf: &mut [u8]) -> bool {
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self.inner.prepare_uninitialized_buffer(buf)
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}
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#[inline]
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fn read_buf<B: BufMut>(&mut self, buf: &mut B) -> Poll<usize, io::Error> {
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if let Some(bs) = self.pre.take() {
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let pre_len = bs.len();
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// If there are no remaining bytes, let the bytes get dropped.
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if pre_len > 0 {
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let cnt = cmp::min(buf.remaining_mut(), pre_len);
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let pre_buf = bs.into_buf();
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let mut xfer = Buf::take(pre_buf, cnt);
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buf.put(&mut xfer);
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let mut new_pre = xfer.into_inner().into_inner();
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new_pre.advance(cnt);
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// Put back whats left
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if new_pre.len() > 0 {
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self.pre = Some(new_pre);
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}
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return Ok(Async::Ready(cnt));
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}
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}
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self.inner.read_buf(buf)
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}
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}
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impl<T> AsyncWrite for Rewind<T>
|
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where
|
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T: AsyncWrite,
|
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{
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#[inline]
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fn shutdown(&mut self) -> Poll<(), io::Error> {
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AsyncWrite::shutdown(&mut self.inner)
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}
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#[inline]
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fn write_buf<B: Buf>(&mut self, buf: &mut B) -> Poll<usize, io::Error> {
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self.inner.write_buf(buf)
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}
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}
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#[cfg(test)]
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mod tests {
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use super::*;
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extern crate tokio_mockstream;
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use self::tokio_mockstream::MockStream;
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use std::io::Cursor;
|
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|
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// Test a partial rewind
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#[test]
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fn async_partial_rewind() {
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let bs = &mut [104, 101, 108, 108, 111];
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let o1 = &mut [0, 0];
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let o2 = &mut [0, 0, 0, 0, 0];
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let mut stream = Rewind::new(MockStream::new(bs));
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let mut o1_cursor = Cursor::new(o1);
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// Read off some bytes, ensure we filled o1
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match stream.read_buf(&mut o1_cursor).unwrap() {
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Async::NotReady => panic!("should be ready"),
|
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Async::Ready(cnt) => assert_eq!(2, cnt),
|
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}
|
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|
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// Rewind the stream so that it is as if we never read in the first place.
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let read_buf = Bytes::from(&o1_cursor.into_inner()[..]);
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stream.rewind(read_buf);
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|
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// We poll 2x here since the first time we'll only get what is in the
|
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// prefix (the rewinded part) of the Rewind.\
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let mut o2_cursor = Cursor::new(o2);
|
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stream.read_buf(&mut o2_cursor).unwrap();
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stream.read_buf(&mut o2_cursor).unwrap();
|
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let o2_final = o2_cursor.into_inner();
|
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|
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// At this point we should have read everything that was in the MockStream
|
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assert_eq!(&o2_final, &bs);
|
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}
|
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// Test a full rewind
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#[test]
|
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fn async_full_rewind() {
|
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let bs = &mut [104, 101, 108, 108, 111];
|
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let o1 = &mut [0, 0, 0, 0, 0];
|
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let o2 = &mut [0, 0, 0, 0, 0];
|
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|
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let mut stream = Rewind::new(MockStream::new(bs));
|
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let mut o1_cursor = Cursor::new(o1);
|
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match stream.read_buf(&mut o1_cursor).unwrap() {
|
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Async::NotReady => panic!("should be ready"),
|
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Async::Ready(cnt) => assert_eq!(5, cnt),
|
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}
|
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|
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let read_buf = Bytes::from(&o1_cursor.into_inner()[..]);
|
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stream.rewind(read_buf);
|
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|
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let mut o2_cursor = Cursor::new(o2);
|
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stream.read_buf(&mut o2_cursor).unwrap();
|
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stream.read_buf(&mut o2_cursor).unwrap();
|
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let o2_final = o2_cursor.into_inner();
|
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|
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assert_eq!(&o2_final, &bs);
|
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}
|
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#[test]
|
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fn partial_rewind() {
|
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let bs = &mut [104, 101, 108, 108, 111];
|
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let o1 = &mut [0, 0];
|
||||
let o2 = &mut [0, 0, 0, 0, 0];
|
||||
|
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let mut stream = Rewind::new(MockStream::new(bs));
|
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stream.read(o1).unwrap();
|
||||
|
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let read_buf = Bytes::from(&o1[..]);
|
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stream.rewind(read_buf);
|
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let cnt = stream.read(o2).unwrap();
|
||||
stream.read(&mut o2[cnt..]).unwrap();
|
||||
assert_eq!(&o2, &bs);
|
||||
}
|
||||
#[test]
|
||||
fn full_rewind() {
|
||||
let bs = &mut [104, 101, 108, 108, 111];
|
||||
let o1 = &mut [0, 0, 0, 0, 0];
|
||||
let o2 = &mut [0, 0, 0, 0, 0];
|
||||
|
||||
let mut stream = Rewind::new(MockStream::new(bs));
|
||||
stream.read(o1).unwrap();
|
||||
|
||||
let read_buf = Bytes::from(&o1[..]);
|
||||
stream.rewind(read_buf);
|
||||
let cnt = stream.read(o2).unwrap();
|
||||
stream.read(&mut o2[cnt..]).unwrap();
|
||||
assert_eq!(&o2, &bs);
|
||||
}
|
||||
}
|
||||
@@ -31,6 +31,7 @@ use tokio_io::{AsyncRead, AsyncWrite};
|
||||
|
||||
|
||||
use hyper::{Body, Request, Response, StatusCode};
|
||||
use hyper::client::Client;
|
||||
use hyper::server::conn::Http;
|
||||
use hyper::service::{service_fn, Service};
|
||||
|
||||
@@ -39,6 +40,24 @@ fn tcp_bind(addr: &SocketAddr, handle: &Handle) -> ::tokio::io::Result<TcpListen
|
||||
TcpListener::from_std(std_listener, handle)
|
||||
}
|
||||
|
||||
#[test]
|
||||
fn try_h2() {
|
||||
let server = serve();
|
||||
let addr_str = format!("http://{}", server.addr());
|
||||
|
||||
hyper::rt::run(hyper::rt::lazy(move || {
|
||||
let client: Client<_, hyper::Body> = Client::builder().http2_only(true).build_http();
|
||||
let uri = addr_str.parse::<hyper::Uri>().expect("server addr should parse");
|
||||
|
||||
client.get(uri)
|
||||
.and_then(|_res| { Ok(()) })
|
||||
.map(|_| { () })
|
||||
.map_err(|_e| { () })
|
||||
}));
|
||||
|
||||
assert_eq!(server.body(), b"");
|
||||
}
|
||||
|
||||
#[test]
|
||||
fn get_should_ignore_body() {
|
||||
let server = serve();
|
||||
|
||||
Reference in New Issue
Block a user