solana/src/thin_client.rs

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//! The `thin_client` module is a client-side object that interfaces with
//! a server-side TPU. Client code should use this object instead of writing
//! messages to the network directly. The binary encoding of its messages are
//! unstable and may change in future releases.
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use bincode::{deserialize, serialize};
use hash::Hash;
use request::{Request, Response};
use signature::{KeyPair, PublicKey, Signature};
use std::collections::HashMap;
use std::io;
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use std::net::{SocketAddr, UdpSocket};
use transaction::Transaction;
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/// An object for querying and sending transactions to the network.
pub struct ThinClient {
requests_addr: SocketAddr,
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requests_socket: UdpSocket,
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transactions_addr: SocketAddr,
transactions_socket: UdpSocket,
last_id: Option<Hash>,
transaction_count: u64,
balances: HashMap<PublicKey, Option<i64>>,
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signature_status: bool,
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}
impl ThinClient {
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/// Create a new ThinClient that will interface with Rpu
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/// over `requests_socket` and `transactions_socket`. To receive responses, the caller must bind `socket`
/// to a public address before invoking ThinClient methods.
pub fn new(
requests_addr: SocketAddr,
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requests_socket: UdpSocket,
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transactions_addr: SocketAddr,
transactions_socket: UdpSocket,
) -> Self {
let client = ThinClient {
requests_addr,
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requests_socket,
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transactions_addr,
transactions_socket,
last_id: None,
transaction_count: 0,
balances: HashMap::new(),
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signature_status: false,
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};
client
}
pub fn recv_response(&self) -> io::Result<Response> {
let mut buf = vec![0u8; 1024];
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trace!("start recv_from");
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self.requests_socket.recv_from(&mut buf)?;
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trace!("end recv_from");
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let resp = deserialize(&buf).expect("deserialize balance in thin_client");
Ok(resp)
}
pub fn process_response(&mut self, resp: Response) {
match resp {
Response::Balance { key, val } => {
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trace!("Response balance {:?} {:?}", key, val);
self.balances.insert(key, val);
}
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Response::LastId { id } => {
trace!("Response last_id {:?}", id);
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self.last_id = Some(id);
}
Response::TransactionCount { transaction_count } => {
trace!("Response transaction count {:?}", transaction_count);
self.transaction_count = transaction_count;
}
Response::SignatureStatus { signature_status } => {
self.signature_status = signature_status;
match signature_status {
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true => {
trace!("Response found signature");
}
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false => {
trace!("Response signature not found");
}
}
}
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}
}
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/// Send a signed Transaction to the server for processing. This method
/// does not wait for a response.
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pub fn transfer_signed(&self, tx: Transaction) -> io::Result<usize> {
let data = serialize(&tx).expect("serialize Transaction in pub fn transfer_signed");
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self.transactions_socket
.send_to(&data, &self.transactions_addr)
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}
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/// Creates, signs, and processes a Transaction. Useful for writing unit-tests.
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pub fn transfer(
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&self,
n: i64,
keypair: &KeyPair,
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to: PublicKey,
last_id: &Hash,
) -> io::Result<Signature> {
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let tx = Transaction::new(keypair, to, n, *last_id);
let sig = tx.sig;
self.transfer_signed(tx).map(|_| sig)
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}
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/// Request the balance of the user holding `pubkey`. This method blocks
/// until the server sends a response. If the response packet is dropped
/// by the network, this method will hang indefinitely.
pub fn get_balance(&mut self, pubkey: &PublicKey) -> io::Result<i64> {
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trace!("get_balance");
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let req = Request::GetBalance { key: *pubkey };
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let data = serialize(&req).expect("serialize GetBalance in pub fn get_balance");
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self.requests_socket
.send_to(&data, &self.requests_addr)
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.expect("buffer error in pub fn get_balance");
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let mut done = false;
while !done {
let resp = self.recv_response()?;
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trace!("recv_response {:?}", resp);
if let Response::Balance { key, .. } = &resp {
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done = key == pubkey;
}
self.process_response(resp);
}
self.balances[pubkey].ok_or(io::Error::new(io::ErrorKind::Other, "nokey"))
}
/// Request the transaction count. If the response packet is dropped by the network,
/// this method will hang.
pub fn transaction_count(&mut self) -> u64 {
info!("transaction_count");
let req = Request::GetTransactionCount;
let data =
serialize(&req).expect("serialize GetTransactionCount in pub fn transaction_count");
let mut done = false;
while !done {
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self.requests_socket
.send_to(&data, &self.requests_addr)
.expect("buffer error in pub fn transaction_count");
if let Ok(resp) = self.recv_response() {
info!("recv_response {:?}", resp);
if let &Response::TransactionCount { .. } = &resp {
done = true;
}
self.process_response(resp);
}
}
self.transaction_count
}
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/// Request the last Entry ID from the server. This method blocks
/// until the server sends a response.
pub fn get_last_id(&mut self) -> Hash {
trace!("get_last_id");
let req = Request::GetLastId;
let data = serialize(&req).expect("serialize GetLastId in pub fn get_last_id");
let mut done = false;
while !done {
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debug!("get_last_id send_to {}", &self.requests_addr);
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self.requests_socket
.send_to(&data, &self.requests_addr)
.expect("buffer error in pub fn get_last_id");
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match self.recv_response() {
Ok(resp) => {
if let &Response::LastId { .. } = &resp {
done = true;
}
self.process_response(resp);
}
Err(e) => {
debug!("thin_client get_last_id error: {}", e);
}
}
}
self.last_id.expect("some last_id")
}
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pub fn poll_get_balance(&mut self, pubkey: &PublicKey) -> io::Result<i64> {
use std::time::Instant;
let mut balance;
let now = Instant::now();
loop {
balance = self.get_balance(pubkey);
if balance.is_ok() || now.elapsed().as_secs() > 1 {
break;
}
}
balance
}
/// Check a signature in the bank. This method blocks
/// until the server sends a response.
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pub fn check_signature(&mut self, sig: &Signature) -> bool {
trace!("check_signature");
let req = Request::GetSignature { signature: *sig };
let data = serialize(&req).expect("serialize GetSignature in pub fn check_signature");
let mut done = false;
while !done {
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self.requests_socket
.send_to(&data, &self.requests_addr)
.expect("buffer error in pub fn get_last_id");
if let Ok(resp) = self.recv_response() {
if let &Response::SignatureStatus { .. } = &resp {
done = true;
}
self.process_response(resp);
}
}
self.signature_status
}
}
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#[cfg(test)]
mod tests {
use super::*;
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use bank::Bank;
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use budget::Budget;
use crdt::TestNode;
use logger;
use mint::Mint;
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use server::Server;
use signature::{KeyPair, KeyPairUtil};
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use std::io::sink;
use std::sync::atomic::{AtomicBool, Ordering};
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use std::sync::Arc;
use std::thread::sleep;
use std::time::Duration;
use transaction::{Instruction, Plan};
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#[test]
fn test_thin_client() {
logger::setup();
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let leader = TestNode::new();
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let alice = Mint::new(10_000);
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let bank = Bank::new(&alice);
let bob_pubkey = KeyPair::new().pubkey();
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let exit = Arc::new(AtomicBool::new(false));
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let server = Server::new_leader(
bank,
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0,
Some(Duration::from_millis(30)),
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leader.data.clone(),
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leader.sockets.requests,
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leader.sockets.transaction,
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leader.sockets.broadcast,
leader.sockets.respond,
leader.sockets.gossip,
exit.clone(),
sink(),
);
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sleep(Duration::from_millis(900));
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let requests_socket = UdpSocket::bind("0.0.0.0:0").unwrap();
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let transactions_socket = UdpSocket::bind("0.0.0.0:0").unwrap();
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let mut client = ThinClient::new(
leader.data.requests_addr,
requests_socket,
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leader.data.transactions_addr,
transactions_socket,
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);
let last_id = client.get_last_id();
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let _sig = client
.transfer(500, &alice.keypair(), bob_pubkey, &last_id)
.unwrap();
let balance = client.poll_get_balance(&bob_pubkey);
assert_eq!(balance.unwrap(), 500);
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exit.store(true, Ordering::Relaxed);
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for t in server.thread_hdls {
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t.join().unwrap();
}
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}
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#[test]
fn test_bad_sig() {
logger::setup();
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let leader = TestNode::new();
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let alice = Mint::new(10_000);
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let bank = Bank::new(&alice);
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let bob_pubkey = KeyPair::new().pubkey();
let exit = Arc::new(AtomicBool::new(false));
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let server = Server::new_leader(
bank,
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0,
Some(Duration::from_millis(30)),
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leader.data.clone(),
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leader.sockets.requests,
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leader.sockets.transaction,
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leader.sockets.broadcast,
leader.sockets.respond,
leader.sockets.gossip,
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exit.clone(),
sink(),
);
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sleep(Duration::from_millis(300));
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let requests_socket = UdpSocket::bind("0.0.0.0:0").unwrap();
requests_socket
.set_read_timeout(Some(Duration::new(5, 0)))
.unwrap();
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let transactions_socket = UdpSocket::bind("0.0.0.0:0").unwrap();
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let mut client = ThinClient::new(
leader.data.requests_addr,
requests_socket,
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leader.data.transactions_addr,
transactions_socket,
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);
let last_id = client.get_last_id();
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let tx = Transaction::new(&alice.keypair(), bob_pubkey, 500, last_id);
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let _sig = client.transfer_signed(tx).unwrap();
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let last_id = client.get_last_id();
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let mut tr2 = Transaction::new(&alice.keypair(), bob_pubkey, 501, last_id);
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if let Instruction::NewContract(contract) = &mut tr2.instruction {
contract.tokens = 502;
contract.plan = Plan::Budget(Budget::new_payment(502, bob_pubkey));
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}
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let _sig = client.transfer_signed(tr2).unwrap();
let balance = client.poll_get_balance(&bob_pubkey);
assert_eq!(balance.unwrap(), 500);
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exit.store(true, Ordering::Relaxed);
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for t in server.thread_hdls {
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t.join().unwrap();
}
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}
#[test]
fn test_client_check_signature() {
logger::setup();
let leader = TestNode::new();
let alice = Mint::new(10_000);
let bank = Bank::new(&alice);
let bob_pubkey = KeyPair::new().pubkey();
let exit = Arc::new(AtomicBool::new(false));
let server = Server::new_leader(
bank,
0,
Some(Duration::from_millis(30)),
leader.data.clone(),
leader.sockets.requests,
leader.sockets.transaction,
leader.sockets.broadcast,
leader.sockets.respond,
leader.sockets.gossip,
exit.clone(),
sink(),
);
sleep(Duration::from_millis(300));
let requests_socket = UdpSocket::bind("0.0.0.0:0").unwrap();
requests_socket
.set_read_timeout(Some(Duration::new(5, 0)))
.unwrap();
let transactions_socket = UdpSocket::bind("0.0.0.0:0").unwrap();
let mut client = ThinClient::new(
leader.data.requests_addr,
requests_socket,
leader.data.transactions_addr,
transactions_socket,
);
let last_id = client.get_last_id();
let sig = client
.transfer(500, &alice.keypair(), bob_pubkey, &last_id)
.unwrap();
sleep(Duration::from_millis(100));
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assert!(client.check_signature(&sig));
exit.store(true, Ordering::Relaxed);
for t in server.thread_hdls {
t.join().unwrap();
}
}
}