xmr-btc-swap/swap/src/protocol/bob.rs

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//! Run an XMR/BTC swap in the role of Bob.
//! Bob holds BTC and wishes receive XMR.
use libp2p::{core::Multiaddr, NetworkBehaviour, PeerId};
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use tracing::{debug, info};
use crate::{
bitcoin,
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bitcoin::EncryptedSignature,
monero,
network::peer_tracker::{self, PeerTracker},
protocol::{alice, bob},
SwapAmounts,
};
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pub use self::{
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amounts::*,
event_loop::{EventLoop, EventLoopHandle},
message0::Message0,
message1::Message1,
message2::Message2,
message3::Message3,
state::*,
swap::{run, run_until},
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};
use crate::database::Database;
use std::sync::Arc;
use uuid::Uuid;
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mod amounts;
pub mod event_loop;
mod message0;
mod message1;
mod message2;
mod message3;
pub mod state;
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pub mod swap;
pub struct Swap {
pub state: BobState,
pub event_loop_handle: bob::EventLoopHandle,
pub db: Database,
pub bitcoin_wallet: Arc<bitcoin::Wallet>,
pub monero_wallet: Arc<monero::Wallet>,
pub swap_id: Uuid,
}
#[derive(Debug, Clone)]
pub enum OutEvent {
ConnectionEstablished(PeerId),
Amounts(SwapAmounts),
Message0(Box<alice::Message0>),
Message1(Box<alice::Message1>),
Message2(alice::Message2),
Message3,
}
impl From<peer_tracker::OutEvent> for OutEvent {
fn from(event: peer_tracker::OutEvent) -> Self {
match event {
peer_tracker::OutEvent::ConnectionEstablished(id) => {
OutEvent::ConnectionEstablished(id)
}
}
}
}
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impl From<amounts::OutEvent> for OutEvent {
fn from(event: amounts::OutEvent) -> Self {
match event {
amounts::OutEvent::Amounts(amounts) => OutEvent::Amounts(amounts),
}
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}
}
impl From<message0::OutEvent> for OutEvent {
fn from(event: message0::OutEvent) -> Self {
match event {
message0::OutEvent::Msg(msg) => OutEvent::Message0(Box::new(msg)),
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}
}
}
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impl From<message1::OutEvent> for OutEvent {
fn from(event: message1::OutEvent) -> Self {
match event {
message1::OutEvent::Msg(msg) => OutEvent::Message1(Box::new(msg)),
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}
}
}
impl From<message2::OutEvent> for OutEvent {
fn from(event: message2::OutEvent) -> Self {
match event {
message2::OutEvent::Msg(msg) => OutEvent::Message2(msg),
}
}
}
impl From<message3::OutEvent> for OutEvent {
fn from(event: message3::OutEvent) -> Self {
match event {
message3::OutEvent::Msg => OutEvent::Message3,
}
}
}
/// A `NetworkBehaviour` that represents an XMR/BTC swap node as Bob.
#[derive(NetworkBehaviour)]
#[behaviour(out_event = "OutEvent", event_process = false)]
#[allow(missing_debug_implementations)]
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pub struct Behaviour {
pt: PeerTracker,
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amounts: Amounts,
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message0: message0::Behaviour,
message1: message1::Behaviour,
message2: message2::Behaviour,
message3: message3::Behaviour,
}
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impl Behaviour {
/// Sends a message to Alice to get current amounts based on `btc`.
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pub fn request_amounts(&mut self, alice: PeerId, btc: u64) {
let btc = ::bitcoin::Amount::from_sat(btc);
let _id = self.amounts.request_amounts(alice.clone(), btc);
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info!("Requesting amounts from: {}", alice);
}
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/// Sends Bob's first message to Alice.
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pub fn send_message0(&mut self, alice: PeerId, msg: bob::Message0) {
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self.message0.send(alice, msg);
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debug!("Sent Message0");
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}
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/// Sends Bob's second message to Alice.
pub fn send_message1(&mut self, alice: PeerId, msg: bob::Message1) {
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self.message1.send(alice, msg);
debug!("Sent Message1");
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}
/// Sends Bob's third message to Alice.
pub fn send_message2(&mut self, alice: PeerId, msg: bob::Message2) {
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self.message2.send(alice, msg);
debug!("Sent Message2");
}
/// Sends Bob's fourth message to Alice.
pub fn send_message3(&mut self, alice: PeerId, tx_redeem_encsig: EncryptedSignature) {
let msg = bob::Message3 { tx_redeem_encsig };
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self.message3.send(alice, msg);
debug!("Sent Message3");
}
/// Add a known address for the given peer
pub fn add_address(&mut self, peer_id: PeerId, address: Multiaddr) {
self.pt.add_address(peer_id, address)
}
}
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impl Default for Behaviour {
fn default() -> Behaviour {
Self {
pt: PeerTracker::default(),
amounts: Amounts::default(),
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message0: message0::Behaviour::default(),
message1: message1::Behaviour::default(),
message2: message2::Behaviour::default(),
message3: message3::Behaviour::default(),
}
}
}