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// Copyright 2017 Parity Technologies (UK) Ltd.
//
// Permission is hereby granted, free of charge, to any person obtaining a
// copy of this software and associated documentation files (the "Software"),
// to deal in the Software without restriction, including without limitation
// the rights to use, copy, modify, merge, publish, distribute, sublicense,
// and/or sell copies of the Software, and to permit persons to whom the
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// Software is furnished to do so, subject to the following conditions:
//
// The above copyright notice and this permission notice shall be included in
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// all copies or substantial portions of the Software.
//
// THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS
// OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
// FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL THE
// AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER
// LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING
// FROM, OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER
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// DEALINGS IN THE SOFTWARE.
// TODO: use this once stable ; for now we just copy-paste the content of the README.md
//#![doc(include = "../README.md")]
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//! Implementation of the libp2p `Transport` trait for TCP/IP.
//!
//! Uses [the *tokio* library](https://tokio.rs).
//!
//! # Usage
//!
//! Example:
//!
//! ```
//! extern crate libp2p_tcp_transport;
//! use libp2p_tcp_transport::TcpConfig;
//!
//! # fn main() {
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//! let tcp = TcpConfig::new();
//! # }
//! ```
//!
//! The `TcpConfig` structs implements the `Transport` trait of the `swarm` library. See the
//! documentation of `swarm` and of libp2p in general to learn how to use the `Transport` trait.
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extern crate futures;
extern crate libp2p_core as swarm;
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#[macro_use]
extern crate log;
extern crate multiaddr;
extern crate tk_listen;
extern crate tokio_io;
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extern crate tokio_tcp;
#[cfg(test)]
extern crate tokio_current_thread;
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use futures::Poll;
use futures::future::{self, Future, FutureResult};
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use futures::stream::Stream;
use multiaddr::{AddrComponent, Multiaddr, ToMultiaddr};
use std::io::{Error as IoError, Read, Write};
use std::iter;
use std::net::SocketAddr;
use std::time::Duration;
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use swarm::Transport;
use tk_listen::ListenExt;
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use tokio_tcp::{TcpListener, TcpStream};
use tokio_io::{AsyncRead, AsyncWrite};
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/// Represents the configuration for a TCP/IP transport capability for libp2p.
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///
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/// The TCP sockets created by libp2p will need to be progressed by running the futures and streams
/// obtained by libp2p through the tokio reactor.
#[derive(Debug, Clone, Default)]
pub struct TcpConfig {
sleep_on_error: Duration,
}
impl TcpConfig {
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/// Creates a new configuration object for TCP/IP.
#[inline]
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pub fn new() -> TcpConfig {
TcpConfig {
sleep_on_error: Duration::from_millis(100),
}
}
}
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impl Transport for TcpConfig {
type Output = TcpTransStream;
type Listener = Box<Stream<Item = Self::ListenerUpgrade, Error = IoError>>;
type ListenerUpgrade = FutureResult<(Self::Output, Self::MultiaddrFuture), IoError>;
type MultiaddrFuture = FutureResult<Multiaddr, IoError>;
type Dial = Box<Future<Item = (TcpTransStream, Self::MultiaddrFuture), Error = IoError>>;
fn listen_on(self, addr: Multiaddr) -> Result<(Self::Listener, Multiaddr), (Self, Multiaddr)> {
if let Ok(socket_addr) = multiaddr_to_socketaddr(&addr) {
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let listener = TcpListener::bind(&socket_addr);
// We need to build the `Multiaddr` to return from this function. If an error happened,
// just return the original multiaddr.
let new_addr = match listener {
Ok(ref l) => if let Ok(new_s_addr) = l.local_addr() {
new_s_addr.to_multiaddr().expect(
"multiaddr generated from socket addr is \
always valid",
)
} else {
addr
},
Err(_) => addr,
};
debug!("Now listening on {}", new_addr);
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let sleep_on_error = self.sleep_on_error;
let future = future::result(listener)
.map(move |listener| {
// Pull out a stream of sockets for incoming connections
listener.incoming()
.sleep_on_error(sleep_on_error)
.map_err(|()| unreachable!("sleep_on_error cannot err"))
.map(|sock| {
let addr = match sock.peer_addr() {
Ok(addr) => addr.to_multiaddr()
.expect("generating a multiaddr from a socket addr never fails"),
Err(err) => return future::err(err),
};
debug!("Incoming connection from {}", addr);
future::ok((TcpTransStream { inner: sock }, future::ok(addr)))
})
})
.flatten_stream();
Ok((Box::new(future), new_addr))
} else {
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Err((self, addr))
}
}
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fn dial(self, addr: Multiaddr) -> Result<Self::Dial, (Self, Multiaddr)> {
if let Ok(socket_addr) = multiaddr_to_socketaddr(&addr) {
// As an optimization, we check that the address is not of the form `0.0.0.0`.
// If so, we instantly refuse dialing instead of going through the kernel.
if socket_addr.port() != 0 && !socket_addr.ip().is_unspecified() {
debug!("Dialing {}", addr);
let fut = TcpStream::connect(&socket_addr)
.map(|t| {
(TcpTransStream { inner: t }, future::ok(addr))
})
.map_err(move |err| {
debug!("Error while dialing {:?} => {:?}", socket_addr, err);
err
});
Ok(Box::new(fut) as Box<_>)
} else {
debug!("Instantly refusing dialing {}, as it is invalid", addr);
Err((self, addr))
}
} else {
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Err((self, addr))
}
}
fn nat_traversal(&self, server: &Multiaddr, observed: &Multiaddr) -> Option<Multiaddr> {
let server_protocols: Vec<_> = server.iter().collect();
let observed_protocols: Vec<_> = observed.iter().collect();
if server_protocols.len() != 2 || observed_protocols.len() != 2 {
return None;
}
// Check that `server` is a valid TCP/IP address.
match (&server_protocols[0], &server_protocols[1]) {
(&AddrComponent::IP4(_), &AddrComponent::TCP(_))
| (&AddrComponent::IP6(_), &AddrComponent::TCP(_)) => {}
_ => return None,
}
// Check that `observed` is a valid TCP/IP address.
match (&observed_protocols[0], &observed_protocols[1]) {
(&AddrComponent::IP4(_), &AddrComponent::TCP(_))
| (&AddrComponent::IP6(_), &AddrComponent::TCP(_)) => {}
_ => return None,
}
let result = iter::once(observed_protocols[0].clone())
.chain(iter::once(server_protocols[1].clone()))
.collect();
Some(result)
}
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}
// This type of logic should probably be moved into the multiaddr package
fn multiaddr_to_socketaddr(addr: &Multiaddr) -> Result<SocketAddr, ()> {
let protocols: Vec<_> = addr.iter().collect();
if protocols.len() != 2 {
return Err(());
}
match (&protocols[0], &protocols[1]) {
(&AddrComponent::IP4(ref ip), &AddrComponent::TCP(port)) => {
Ok(SocketAddr::new(ip.clone().into(), port))
}
(&AddrComponent::IP6(ref ip), &AddrComponent::TCP(port)) => {
Ok(SocketAddr::new(ip.clone().into(), port))
}
_ => Err(()),
}
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}
/// Wraps around a `TcpStream` and adds logging for important events.
pub struct TcpTransStream {
inner: TcpStream
}
impl Read for TcpTransStream {
#[inline]
fn read(&mut self, buf: &mut [u8]) -> Result<usize, IoError> {
self.inner.read(buf)
}
}
impl AsyncRead for TcpTransStream {
}
impl Write for TcpTransStream {
#[inline]
fn write(&mut self, buf: &[u8]) -> Result<usize, IoError> {
self.inner.write(buf)
}
#[inline]
fn flush(&mut self) -> Result<(), IoError> {
self.inner.flush()
}
}
impl AsyncWrite for TcpTransStream {
#[inline]
fn shutdown(&mut self) -> Poll<(), IoError> {
AsyncWrite::shutdown(&mut self.inner)
}
}
impl Drop for TcpTransStream {
#[inline]
fn drop(&mut self) {
if let Ok(addr) = self.inner.peer_addr() {
debug!("Dropped TCP connection to {:?}", addr);
} else {
debug!("Dropped TCP connection to undeterminate peer");
}
}
}
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#[cfg(test)]
mod tests {
use super::{multiaddr_to_socketaddr, TcpConfig};
use futures::stream::Stream;
use futures::Future;
use multiaddr::Multiaddr;
use std;
use std::net::{IpAddr, Ipv4Addr, SocketAddr};
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use swarm::Transport;
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use tokio_current_thread;
use tokio_io;
#[test]
fn multiaddr_to_tcp_conversion() {
use std::net::Ipv6Addr;
assert!(
multiaddr_to_socketaddr(&"/ip4/127.0.0.1/udp/1234".parse::<Multiaddr>().unwrap())
.is_err()
);
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assert_eq!(
multiaddr_to_socketaddr(&"/ip4/127.0.0.1/tcp/12345".parse::<Multiaddr>().unwrap()),
Ok(SocketAddr::new(
IpAddr::V4(Ipv4Addr::new(127, 0, 0, 1)),
12345,
))
);
assert_eq!(
multiaddr_to_socketaddr(&"/ip4/255.255.255.255/tcp/8080"
.parse::<Multiaddr>()
.unwrap()),
Ok(SocketAddr::new(
IpAddr::V4(Ipv4Addr::new(255, 255, 255, 255)),
8080,
))
);
assert_eq!(
multiaddr_to_socketaddr(&"/ip6/::1/tcp/12345".parse::<Multiaddr>().unwrap()),
Ok(SocketAddr::new(
IpAddr::V6(Ipv6Addr::new(0, 0, 0, 0, 0, 0, 0, 1)),
12345,
))
);
assert_eq!(
multiaddr_to_socketaddr(&"/ip6/ffff:ffff:ffff:ffff:ffff:ffff:ffff:ffff/tcp/8080"
.parse::<Multiaddr>()
.unwrap()),
Ok(SocketAddr::new(
IpAddr::V6(Ipv6Addr::new(
65535, 65535, 65535, 65535, 65535, 65535, 65535, 65535,
)),
8080,
))
);
}
#[test]
fn communicating_between_dialer_and_listener() {
use std::io::Write;
std::thread::spawn(move || {
let addr = "/ip4/127.0.0.1/tcp/12345".parse::<Multiaddr>().unwrap();
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let tcp = TcpConfig::new();
let listener = tcp.listen_on(addr).unwrap().0.for_each(|sock| {
sock.and_then(|(sock, _)| {
// Define what to do with the socket that just connected to us
// Which in this case is read 3 bytes
let handle_conn = tokio_io::io::read_exact(sock, [0; 3])
.map(|(_, buf)| assert_eq!(buf, [1, 2, 3]))
.map_err(|err| panic!("IO error {:?}", err));
// Spawn the future as a concurrent task
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tokio_current_thread::spawn(handle_conn);
Ok(())
})
});
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tokio_current_thread::block_on_all(listener).unwrap();
});
std::thread::sleep(std::time::Duration::from_millis(100));
let addr = "/ip4/127.0.0.1/tcp/12345".parse::<Multiaddr>().unwrap();
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let tcp = TcpConfig::new();
// Obtain a future socket through dialing
let socket = tcp.dial(addr.clone()).unwrap();
// Define what to do with the socket once it's obtained
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let action = socket.then(|sock| -> Result<(), ()> {
sock.unwrap().0.write(&[0x1, 0x2, 0x3]).unwrap();
Ok(())
});
// Execute the future in our event loop
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tokio_current_thread::block_on_all(action).unwrap();
std::thread::sleep(std::time::Duration::from_millis(100));
}
#[test]
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fn replace_port_0_in_returned_multiaddr_ipv4() {
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let tcp = TcpConfig::new();
let addr = "/ip4/127.0.0.1/tcp/0".parse::<Multiaddr>().unwrap();
assert!(addr.to_string().contains("tcp/0"));
let (_, new_addr) = tcp.listen_on(addr).unwrap();
assert!(!new_addr.to_string().contains("tcp/0"));
}
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#[test]
fn replace_port_0_in_returned_multiaddr_ipv6() {
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let tcp = TcpConfig::new();
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let addr: Multiaddr = "/ip6/::1/tcp/0".parse().unwrap();
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assert!(addr.to_string().contains("tcp/0"));
let (_, new_addr) = tcp.listen_on(addr).unwrap();
assert!(!new_addr.to_string().contains("tcp/0"));
}
#[test]
fn larger_addr_denied() {
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let tcp = TcpConfig::new();
let addr = "/ip4/127.0.0.1/tcp/12345/tcp/12345"
.parse::<Multiaddr>()
.unwrap();
assert!(tcp.listen_on(addr).is_err());
}
#[test]
fn nat_traversal() {
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let tcp = TcpConfig::new();
let server = "/ip4/127.0.0.1/tcp/10000".parse::<Multiaddr>().unwrap();
let observed = "/ip4/80.81.82.83/tcp/25000".parse::<Multiaddr>().unwrap();
let out = tcp.nat_traversal(&server, &observed);
assert_eq!(
out.unwrap(),
"/ip4/80.81.82.83/tcp/10000".parse::<Multiaddr>().unwrap()
);
}
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}