2022-01-14 19:58:28 +01:00
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// Copyright 2021 Protocol Labs.
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//
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// Permission is hereby granted, free of charge, to any person obtaining a
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// copy of this software and associated documentation files (the "Software"),
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// to deal in the Software without restriction, including without limitation
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// the rights to use, copy, modify, merge, publish, distribute, sublicense,
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// 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:
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//
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// The above copyright notice and this permission notice shall be included in
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// all copies or substantial portions of the Software.
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//
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// THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS
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// OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
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// FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL THE
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// AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER
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// LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING
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// FROM, OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER
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// DEALINGS IN THE SOFTWARE.
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//! [`NetworkBehaviour`] to act as a circuit relay v2 **client**.
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mod handler;
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pub mod transport;
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use crate::v2::protocol::{self, inbound_stop, outbound_hop};
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use bytes::Bytes;
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use either::Either;
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use futures::channel::mpsc::Receiver;
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use futures::channel::oneshot;
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use futures::future::{BoxFuture, FutureExt};
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use futures::io::{AsyncRead, AsyncWrite};
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use futures::ready;
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use futures::stream::StreamExt;
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use libp2p_core::connection::{ConnectedPoint, ConnectionId};
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use libp2p_core::{Multiaddr, PeerId};
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use libp2p_swarm::dial_opts::DialOpts;
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use libp2p_swarm::handler::DummyConnectionHandler;
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use libp2p_swarm::{
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ConnectionHandlerUpgrErr, NegotiatedSubstream, NetworkBehaviour, NetworkBehaviourAction,
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NotifyHandler, PollParameters,
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};
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use std::collections::{hash_map, HashMap, VecDeque};
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use std::io::{Error, IoSlice};
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use std::ops::DerefMut;
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use std::pin::Pin;
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use std::task::{Context, Poll};
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/// The events produced by the [`Client`] behaviour.
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#[derive(Debug)]
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pub enum Event {
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/// An outbound reservation has been accepted.
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ReservationReqAccepted {
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relay_peer_id: PeerId,
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/// Indicates whether the request replaces an existing reservation.
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renewal: bool,
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limit: Option<protocol::Limit>,
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},
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ReservationReqFailed {
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relay_peer_id: PeerId,
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/// Indicates whether the request replaces an existing reservation.
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renewal: bool,
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error: ConnectionHandlerUpgrErr<outbound_hop::ReservationFailedReason>,
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},
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OutboundCircuitEstablished {
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relay_peer_id: PeerId,
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limit: Option<protocol::Limit>,
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},
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OutboundCircuitReqFailed {
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relay_peer_id: PeerId,
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error: ConnectionHandlerUpgrErr<outbound_hop::CircuitFailedReason>,
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},
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/// An inbound circuit has been established.
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InboundCircuitEstablished {
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src_peer_id: PeerId,
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limit: Option<protocol::Limit>,
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},
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InboundCircuitReqFailed {
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relay_peer_id: PeerId,
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error: ConnectionHandlerUpgrErr<void::Void>,
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},
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/// An inbound circuit request has been denied.
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InboundCircuitReqDenied { src_peer_id: PeerId },
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/// Denying an inbound circuit request failed.
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InboundCircuitReqDenyFailed {
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src_peer_id: PeerId,
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error: std::io::Error,
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},
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}
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pub struct Client {
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local_peer_id: PeerId,
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from_transport: Receiver<transport::TransportToBehaviourMsg>,
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/// Set of directly connected peers, i.e. not connected via a relayed
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/// connection.
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directly_connected_peers: HashMap<PeerId, Vec<ConnectionId>>,
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/// Queue of actions to return when polled.
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queued_actions: VecDeque<Event>,
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}
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impl Client {
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pub fn new_transport_and_behaviour(
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local_peer_id: PeerId,
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) -> (transport::ClientTransport, Self) {
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let (transport, from_transport) = transport::ClientTransport::new();
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let behaviour = Client {
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local_peer_id,
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from_transport,
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directly_connected_peers: Default::default(),
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queued_actions: Default::default(),
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};
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(transport, behaviour)
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}
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}
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impl NetworkBehaviour for Client {
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type ConnectionHandler = handler::Prototype;
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type OutEvent = Event;
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fn new_handler(&mut self) -> Self::ConnectionHandler {
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handler::Prototype::new(self.local_peer_id, None)
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}
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fn inject_connection_established(
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&mut self,
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peer_id: &PeerId,
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connection_id: &ConnectionId,
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endpoint: &ConnectedPoint,
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_failed_addresses: Option<&Vec<Multiaddr>>,
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_other_established: usize,
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) {
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if !endpoint.is_relayed() {
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self.directly_connected_peers
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.entry(*peer_id)
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.or_default()
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.push(*connection_id);
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}
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}
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fn inject_connection_closed(
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&mut self,
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peer_id: &PeerId,
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connection_id: &ConnectionId,
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endpoint: &ConnectedPoint,
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_handler: Either<handler::Handler, DummyConnectionHandler>,
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_remaining_established: usize,
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) {
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if !endpoint.is_relayed() {
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match self.directly_connected_peers.entry(*peer_id) {
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hash_map::Entry::Occupied(mut connections) => {
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let position = connections
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.get()
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.iter()
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.position(|c| c == connection_id)
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.expect("Connection to be known.");
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connections.get_mut().remove(position);
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if connections.get().is_empty() {
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connections.remove();
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}
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}
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hash_map::Entry::Vacant(_) => {
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unreachable!("`inject_connection_closed` for unconnected peer.")
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}
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};
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}
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}
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fn inject_event(
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&mut self,
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event_source: PeerId,
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_connection: ConnectionId,
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handler_event: Either<handler::Event, void::Void>,
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) {
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let handler_event = match handler_event {
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Either::Left(e) => e,
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Either::Right(v) => void::unreachable(v),
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};
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match handler_event {
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handler::Event::ReservationReqAccepted { renewal, limit } => self
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.queued_actions
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.push_back(Event::ReservationReqAccepted {
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relay_peer_id: event_source,
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renewal,
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limit,
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}),
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handler::Event::ReservationReqFailed { renewal, error } => {
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self.queued_actions.push_back(Event::ReservationReqFailed {
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relay_peer_id: event_source,
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renewal,
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error,
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})
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}
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handler::Event::OutboundCircuitEstablished { limit } => {
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self.queued_actions
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.push_back(Event::OutboundCircuitEstablished {
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relay_peer_id: event_source,
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limit,
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})
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}
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handler::Event::OutboundCircuitReqFailed { error } => {
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self.queued_actions
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.push_back(Event::OutboundCircuitReqFailed {
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relay_peer_id: event_source,
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error,
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})
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}
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handler::Event::InboundCircuitEstablished { src_peer_id, limit } => self
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.queued_actions
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.push_back(Event::InboundCircuitEstablished { src_peer_id, limit }),
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handler::Event::InboundCircuitReqFailed { error } => {
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self.queued_actions
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.push_back(Event::InboundCircuitReqFailed {
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relay_peer_id: event_source,
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error,
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})
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}
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handler::Event::InboundCircuitReqDenied { src_peer_id } => self
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.queued_actions
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.push_back(Event::InboundCircuitReqDenied { src_peer_id }),
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handler::Event::InboundCircuitReqDenyFailed { src_peer_id, error } => self
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.queued_actions
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.push_back(Event::InboundCircuitReqDenyFailed { src_peer_id, error }),
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}
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}
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fn poll(
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&mut self,
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cx: &mut Context<'_>,
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_poll_parameters: &mut impl PollParameters,
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) -> Poll<NetworkBehaviourAction<Self::OutEvent, Self::ConnectionHandler>> {
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if let Some(event) = self.queued_actions.pop_front() {
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return Poll::Ready(NetworkBehaviourAction::GenerateEvent(event));
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}
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let action = match ready!(self.from_transport.poll_next_unpin(cx)) {
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Some(transport::TransportToBehaviourMsg::ListenReq {
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relay_peer_id,
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relay_addr,
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to_listener,
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}) => {
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match self
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.directly_connected_peers
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.get(&relay_peer_id)
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.and_then(|cs| cs.get(0))
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{
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Some(connection_id) => NetworkBehaviourAction::NotifyHandler {
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peer_id: relay_peer_id,
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handler: NotifyHandler::One(*connection_id),
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event: Either::Left(handler::In::Reserve { to_listener }),
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},
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None => {
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let handler = handler::Prototype::new(
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self.local_peer_id,
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Some(handler::In::Reserve { to_listener }),
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);
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NetworkBehaviourAction::Dial {
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opts: DialOpts::peer_id(relay_peer_id)
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.addresses(vec![relay_addr])
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.extend_addresses_through_behaviour()
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.build(),
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handler,
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}
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}
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}
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}
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Some(transport::TransportToBehaviourMsg::DialReq {
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relay_addr,
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relay_peer_id,
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dst_peer_id,
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send_back,
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..
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}) => {
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match self
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.directly_connected_peers
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.get(&relay_peer_id)
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.and_then(|cs| cs.get(0))
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{
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Some(connection_id) => NetworkBehaviourAction::NotifyHandler {
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peer_id: relay_peer_id,
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handler: NotifyHandler::One(*connection_id),
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event: Either::Left(handler::In::EstablishCircuit {
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send_back,
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dst_peer_id,
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}),
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},
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None => {
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let handler = handler::Prototype::new(
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self.local_peer_id,
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Some(handler::In::EstablishCircuit {
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send_back,
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dst_peer_id,
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}),
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);
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NetworkBehaviourAction::Dial {
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opts: DialOpts::peer_id(relay_peer_id)
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.addresses(vec![relay_addr])
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.extend_addresses_through_behaviour()
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.build(),
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handler,
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}
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}
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}
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}
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None => unreachable!(
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"`Relay` `NetworkBehaviour` polled after channel from \
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`RelayTransport` has been closed. Unreachable under \
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the assumption that the `Client` is never polled after \
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`ClientTransport` is dropped.",
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),
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};
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2022-05-03 13:11:48 +02:00
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Poll::Ready(action)
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}
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}
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/// A [`NegotiatedSubstream`] acting as a [`RelayedConnection`].
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pub enum RelayedConnection {
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InboundAccepting {
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accept: BoxFuture<'static, Result<RelayedConnection, std::io::Error>>,
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},
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Operational {
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read_buffer: Bytes,
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substream: NegotiatedSubstream,
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drop_notifier: oneshot::Sender<void::Void>,
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},
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}
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impl Unpin for RelayedConnection {}
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impl RelayedConnection {
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pub(crate) fn new_inbound(
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circuit: inbound_stop::Circuit,
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drop_notifier: oneshot::Sender<void::Void>,
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) -> Self {
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RelayedConnection::InboundAccepting {
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accept: async {
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let (substream, read_buffer) = circuit.accept().await?;
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Ok(RelayedConnection::Operational {
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read_buffer,
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substream,
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drop_notifier,
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})
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}
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.boxed(),
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}
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}
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pub(crate) fn new_outbound(
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substream: NegotiatedSubstream,
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read_buffer: Bytes,
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drop_notifier: oneshot::Sender<void::Void>,
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) -> Self {
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RelayedConnection::Operational {
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substream,
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read_buffer,
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drop_notifier,
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}
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}
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}
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impl AsyncWrite for RelayedConnection {
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fn poll_write(
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mut self: Pin<&mut Self>,
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cx: &mut Context,
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buf: &[u8],
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) -> Poll<Result<usize, Error>> {
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loop {
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match self.deref_mut() {
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RelayedConnection::InboundAccepting { accept } => {
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*self = ready!(accept.poll_unpin(cx))?;
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}
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RelayedConnection::Operational { substream, .. } => {
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return Pin::new(substream).poll_write(cx, buf);
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}
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}
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}
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}
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fn poll_flush(mut self: Pin<&mut Self>, cx: &mut Context) -> Poll<Result<(), Error>> {
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loop {
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match self.deref_mut() {
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RelayedConnection::InboundAccepting { accept } => {
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*self = ready!(accept.poll_unpin(cx))?;
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}
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RelayedConnection::Operational { substream, .. } => {
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return Pin::new(substream).poll_flush(cx);
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}
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}
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}
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}
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fn poll_close(mut self: Pin<&mut Self>, cx: &mut Context) -> Poll<Result<(), Error>> {
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loop {
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match self.deref_mut() {
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RelayedConnection::InboundAccepting { accept } => {
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*self = ready!(accept.poll_unpin(cx))?;
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}
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RelayedConnection::Operational { substream, .. } => {
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return Pin::new(substream).poll_close(cx);
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}
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}
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}
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}
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fn poll_write_vectored(
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mut self: Pin<&mut Self>,
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|
cx: &mut Context,
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|
|
bufs: &[IoSlice],
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|
|
) -> Poll<Result<usize, Error>> {
|
|
|
|
loop {
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|
|
|
match self.deref_mut() {
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|
|
RelayedConnection::InboundAccepting { accept } => {
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|
|
|
*self = ready!(accept.poll_unpin(cx))?;
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|
}
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|
RelayedConnection::Operational { substream, .. } => {
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return Pin::new(substream).poll_write_vectored(cx, bufs);
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}
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}
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}
|
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}
|
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|
|
}
|
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|
|
impl AsyncRead for RelayedConnection {
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|
|
fn poll_read(
|
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|
|
mut self: Pin<&mut Self>,
|
|
|
|
cx: &mut Context<'_>,
|
|
|
|
buf: &mut [u8],
|
|
|
|
) -> Poll<Result<usize, Error>> {
|
|
|
|
loop {
|
|
|
|
match self.deref_mut() {
|
|
|
|
RelayedConnection::InboundAccepting { accept } => {
|
|
|
|
*self = ready!(accept.poll_unpin(cx))?;
|
|
|
|
}
|
|
|
|
RelayedConnection::Operational {
|
|
|
|
read_buffer,
|
|
|
|
substream,
|
|
|
|
..
|
|
|
|
} => {
|
|
|
|
if !read_buffer.is_empty() {
|
|
|
|
let n = std::cmp::min(read_buffer.len(), buf.len());
|
|
|
|
let data = read_buffer.split_to(n);
|
|
|
|
buf[0..n].copy_from_slice(&data[..]);
|
|
|
|
return Poll::Ready(Ok(n));
|
|
|
|
}
|
|
|
|
|
|
|
|
return Pin::new(substream).poll_read(cx, buf);
|
|
|
|
}
|
|
|
|
}
|
|
|
|
}
|
|
|
|
}
|
|
|
|
}
|