use std::collections::HashSet;
use std::rc::Rc;
use std::sync::mpsc::Sender;
use byteorder::*;
use core::{EndpointId, Message};
use core::socket::{Protocol, Reply};
use core::endpoint::Pipe;
use core::context::Context;
use super::priolist::Priolist;
use super::pipes::PipeCollection;
use super::{Timeout, REQ, REP};
use super::policy::fair_queue;
use io_error::*;
pub struct Rep {
inner: Inner,
state: Option<State>
}
enum State {
Idle,
Receiving(EndpointId, Timeout),
RecvOnHold(Timeout),
Active(EndpointId),
Sending(EndpointId, Rc<Message>, Timeout),
SendOnHold(EndpointId, Rc<Message>, Timeout)
}
struct Inner {
reply_tx: Sender<Reply>,
pipes: PipeCollection,
fq: Priolist,
sd: HashSet<EndpointId>,
ttl: u8,
backtrace: Vec<u8>,
is_device_item: bool
}
impl Rep {
fn apply<F>(&mut self, ctx: &mut Context, transition: F) where F : FnOnce(State, &mut Context, &mut Inner) -> State {
if let Some(old_state) = self.state.take() {
#[cfg(debug_assertions)] let old_name = old_state.name();
let was_send_ready = old_state.is_send_ready(&self.inner);
let was_recv_ready = old_state.is_recv_ready(&self.inner);
let new_state = transition(old_state, ctx, &mut self.inner);
let is_send_ready = new_state.is_send_ready(&self.inner);
let is_recv_ready = new_state.is_recv_ready(&self.inner);
#[cfg(debug_assertions)] let new_name = new_state.name();
self.state = Some(new_state);
ctx.check_send_ready_change(was_send_ready, is_send_ready);
ctx.check_recv_ready_change(was_recv_ready, is_recv_ready);
#[cfg(debug_assertions)] debug!("[{:?}] switch from {} to {}", ctx, old_name, new_name);
}
}
}
impl From<Sender<Reply>> for Rep {
fn from(tx: Sender<Reply>) -> Rep {
Rep {
inner: Inner::new(tx),
state: Some(State::Idle)
}
}
}
impl Protocol for Rep {
fn id(&self) -> u16 { REP }
fn peer_id(&self) -> u16 { REQ }
fn add_pipe(&mut self, _: &mut Context, eid: EndpointId, pipe: Pipe) {
self.inner.add_pipe(eid, pipe)
}
fn remove_pipe(&mut self, ctx: &mut Context, eid: EndpointId) -> Option<Pipe> {
let was_send_ready = self.is_send_ready();
let was_recv_ready = self.is_recv_ready();
let pipe = self.inner.remove_pipe(eid);
let is_send_ready = self.is_send_ready();
let is_recv_ready = self.is_recv_ready();
if pipe.is_some() {
self.apply(ctx, |s, ctx, inner| s.on_pipe_removed(ctx, inner, eid));
}
ctx.check_send_ready_change(was_send_ready, is_send_ready);
ctx.check_recv_ready_change(was_recv_ready, is_recv_ready);
pipe
}
fn send(&mut self, ctx: &mut Context, msg: Message, timeout: Timeout) {
if let Some((raw_msg, eid)) = self.inner.msg_to_raw_msg(msg) {
self.apply(ctx, |s, ctx, inner| s.send(ctx, inner, Rc::new(raw_msg), timeout, eid))
} else {
self.inner.on_send_malformed(ctx, timeout);
}
}
fn on_send_ack(&mut self, ctx: &mut Context, eid: EndpointId) {
self.inner.clear_backtrace();
self.apply(ctx, |s, ctx, inner| s.on_send_ack(ctx, inner, eid))
}
fn on_send_timeout(&mut self, ctx: &mut Context) {
self.apply(ctx, |s, ctx, inner| s.on_send_timeout(ctx, inner))
}
fn on_send_ready(&mut self, ctx: &mut Context, eid: EndpointId) {
self.apply(ctx, |s, ctx, inner| s.on_send_ready(ctx, inner, eid))
}
fn on_send_not_ready(&mut self, ctx: &mut Context, eid: EndpointId) {
self.apply(ctx, |s, ctx, inner| s.on_send_not_ready(ctx, inner, eid))
}
fn recv(&mut self, ctx: &mut Context, timeout: Timeout) {
self.apply(ctx, |s, ctx, inner| s.recv(ctx, inner, timeout))
}
fn on_recv_ack(&mut self, ctx: &mut Context, eid: EndpointId, raw_msg: Message) {
if let Some(msg) = self.inner.raw_msg_to_msg(raw_msg, eid) {
self.apply(ctx, |s, ctx, inner| s.on_recv_ack(ctx, inner, eid, msg))
} else {
self.inner.on_recv_ack_malformed(ctx)
}
}
fn on_recv_timeout(&mut self, ctx: &mut Context) {
self.apply(ctx, |s, ctx, inner| s.on_recv_timeout(ctx, inner))
}
fn on_recv_ready(&mut self, ctx: &mut Context, eid: EndpointId) {
self.apply(ctx, |s, ctx, inner| s.on_recv_ready(ctx, inner, eid))
}
fn on_recv_not_ready(&mut self, ctx: &mut Context, eid: EndpointId) {
self.apply(ctx, |s, ctx, inner| s.on_recv_not_ready(ctx, inner, eid))
}
fn on_device_plugged(&mut self, _: &mut Context) {
self.inner.is_device_item = true;
}
fn is_send_ready(&self) -> bool {
if let Some(ref state) = self.state {
state.is_send_ready(&self.inner)
} else {
false
}
}
fn is_recv_ready(&self) -> bool {
if let Some(ref state) = self.state {
state.is_recv_ready(&self.inner)
} else {
false
}
}
fn close(&mut self, ctx: &mut Context) {
self.inner.close(ctx)
}
}
impl State {
#[cfg(debug_assertions)]
fn name(&self) -> &'static str {
match *self {
State::Idle => "Idle",
State::Sending(..) => "Sending",
State::SendOnHold(..) => "SendOnHold",
State::Active(..) => "Active",
State::Receiving(..) => "Receiving",
State::RecvOnHold(..) => "RecvOnHold"
}
}
fn on_pipe_removed(self, ctx: &mut Context, inner: &mut Inner, eid: EndpointId) -> State {
match self {
State::Receiving(id, timeout) => {
if id == eid {
State::Idle.recv(ctx, inner, timeout)
} else {
State::Receiving(id, timeout)
}
},
any => any
}
}
fn send(self, ctx: &mut Context, inner: &mut Inner, msg: Rc<Message>, timeout: Timeout, eid: EndpointId) -> State {
if inner.is_device_item {
if inner.is_send_ready_to(&eid) {
State::Idle.send_reply_to(ctx, inner, msg, timeout, eid)
} else {
inner.on_send_ack(ctx, timeout);
State::Idle
}
} else if let State::Active(_) = self {
if inner.is_send_ready_to(&eid) {
State::Idle.send_reply_to(ctx, inner, msg, timeout, eid)
} else {
State::SendOnHold(eid, msg, timeout)
}
} else {
inner.send_when_inactive(ctx, timeout);
State::Idle
}
}
fn send_reply_to(self, ctx: &mut Context, inner: &mut Inner, msg: Rc<Message>, timeout: Timeout, eid: EndpointId) -> State {
if inner.send_to(ctx, msg.clone(), eid) {
State::Sending(eid, msg, timeout)
} else {
State::SendOnHold(eid, msg, timeout)
}
}
fn on_send_ack(self, ctx: &mut Context, inner: &mut Inner, eid: EndpointId) -> State {
match self {
State::Sending(id, msg, timeout) => {
if id == eid {
inner.on_send_ack(ctx, timeout);
State::Idle
} else {
State::Sending(id, msg, timeout)
}
},
any => any
}
}
fn on_send_timeout(self, _: &mut Context, inner: &mut Inner) -> State {
inner.on_send_timeout();
State::Idle
}
fn on_send_ready(self, ctx: &mut Context, inner: &mut Inner, eid: EndpointId) -> State {
inner.on_send_ready(eid);
match self {
State::SendOnHold(id, msg, timeout) => {
if id == eid {
State::Idle.send_reply_to(ctx, inner, msg, timeout, eid)
} else {
State::SendOnHold(id, msg, timeout)
}
},
any => any
}
}
fn on_send_not_ready(self, _: &mut Context, inner: &mut Inner, eid: EndpointId) -> State {
inner.on_send_not_ready(eid);
self
}
fn is_send_ready(&self, inner: &Inner) -> bool {
if inner.is_device_item {
inner.is_send_ready()
}
else if let State::Active(ref eid) = *self {
inner.is_send_ready_to(eid)
} else {
false
}
}
fn recv(self, ctx: &mut Context, inner: &mut Inner, timeout: Timeout) -> State {
inner.recv(ctx).map_or_else(
| | State::RecvOnHold(timeout),
|eid| State::Receiving(eid, timeout))
}
fn on_recv_ack(self, ctx: &mut Context, inner: &mut Inner, eid: EndpointId, msg: Message) -> State {
match self {
State::Receiving(id, timeout) => {
if id == eid {
inner.on_recv_ack(ctx, timeout, msg);
if inner.is_device_item {
State::Idle
} else {
State::Active(eid)
}
} else {
State::Receiving(id, timeout)
}
},
any => any
}
}
fn on_recv_timeout(self, _: &mut Context, inner: &mut Inner) -> State {
inner.on_recv_timeout();
State::Idle
}
fn on_recv_ready(self, ctx: &mut Context, inner: &mut Inner, eid: EndpointId) -> State {
inner.on_recv_ready(eid);
match self {
State::RecvOnHold(timeout) => State::Idle.recv(ctx, inner, timeout),
any => any
}
}
fn on_recv_not_ready(self, _: &mut Context, inner: &mut Inner, eid: EndpointId) -> State {
inner.on_recv_not_ready(eid);
self
}
fn is_recv_ready(&self, inner: &Inner) -> bool {
inner.is_recv_ready()
}
}
impl Inner {
fn new(tx: Sender<Reply>) -> Inner {
Inner {
reply_tx: tx,
pipes:PipeCollection::new(),
fq: Priolist::new(),
sd: HashSet::new(),
ttl: 8,
backtrace: Vec::new(),
is_device_item: false
}
}
fn add_pipe(&mut self, eid: EndpointId, pipe: Pipe) {
self.fq.insert(eid, pipe.get_recv_priority());
self.pipes.insert(eid, pipe);
}
fn remove_pipe(&mut self, eid: EndpointId) -> Option<Pipe> {
self.fq.remove(&eid);
self.sd.remove(&eid);
self.pipes.remove(&eid)
}
fn on_send_malformed(&mut self, ctx: &mut Context, timeout: Timeout) {
let error = invalid_data_io_error("Sending without eid");
let _ = self.reply_tx.send(Reply::Err(error));
if let Some(sched) = timeout {
ctx.cancel(sched);
}
}
fn send_to(&mut self, ctx: &mut Context, msg: Rc<Message>, eid: EndpointId) -> bool {
self.sd.remove(&eid);
self.pipes.send_to(ctx, msg, eid).is_some()
}
fn on_send_ack(&self, ctx: &mut Context, timeout: Timeout) {
let _ = self.reply_tx.send(Reply::Send);
if let Some(sched) = timeout {
ctx.cancel(sched);
}
}
fn send_when_inactive(&mut self, ctx: &mut Context, timeout: Timeout) {
let error = other_io_error("Can't send: no active request");
let _ = self.reply_tx.send(Reply::Err(error));
if let Some(sched) = timeout {
ctx.cancel(sched);
}
}
fn on_send_timeout(&self) {
let error = timedout_io_error("Send timed out");
let _ = self.reply_tx.send(Reply::Err(error));
}
fn on_send_ready(&mut self, eid: EndpointId) {
self.sd.insert(eid);
}
fn on_send_not_ready(&mut self, eid: EndpointId) {
self.sd.remove(&eid);
}
fn is_send_ready(&self) -> bool {
!self.sd.is_empty()
}
fn is_send_ready_to(&self, eid: &EndpointId) -> bool {
self.sd.contains(eid)
}
fn recv(&mut self, ctx: &mut Context) -> Option<EndpointId> {
fair_queue::recv(&mut self.fq, &mut self.pipes, ctx)
}
fn on_recv_ready(&mut self, eid: EndpointId) {
self.fq.activate(&eid)
}
fn on_recv_not_ready(&mut self, eid: EndpointId) {
self.fq.deactivate(&eid)
}
fn on_recv_ack(&mut self, ctx: &mut Context, timeout: Timeout, mut msg: Message) {
if !self.is_device_item {
self.set_backtrace(&msg.header);
msg.header.clear();
}
let _ = self.reply_tx.send(Reply::Recv(msg));
if let Some(sched) = timeout {
ctx.cancel(sched);
}
}
fn on_recv_timeout(&self) {
let error = timedout_io_error("Recv timed out");
let _ = self.reply_tx.send(Reply::Err(error));
}
fn on_recv_ack_malformed(&self, _: &mut Context) {
let error = invalid_data_io_error("Received request without id");
let _ = self.reply_tx.send(Reply::Err(error));
}
fn is_recv_ready(&self) -> bool {
self.fq.peek()
}
fn raw_msg_to_msg(&self, raw_msg: Message, eid: EndpointId) -> Option<Message> {
let (mut header, mut body) = raw_msg.split();
let mut hops = 0;
let mut eid_bytes: [u8; 4] = [0; 4];
let eid_usize: usize = eid.into();
BigEndian::write_u32(&mut eid_bytes[0..4], eid_usize as u32);
header.reserve(4);
header.extend_from_slice(&eid_bytes[..]);
loop {
if hops >= self.ttl {
return None;
}
hops += 1;
if body.len() < 4 {
return None;
}
let tail = body.split_off(4);
header.reserve(4);
header.extend_from_slice(&body);
let position = header.len() - 4;
if header[position] & 0x80 != 0 {
return Some(Message::from_header_and_body(header, tail));
}
body = tail;
}
}
fn msg_to_raw_msg(&self, msg: Message) -> Option<(Message, EndpointId)> {
let (mut header, body) = msg.split();
if !self.is_device_item {
let backtrace = self.get_backtrace();
header.clear();
header.extend_from_slice(backtrace);
}
if header.len() < 4 {
return None;
}
let tail = header.split_off(4);
let eid_u32 = BigEndian::read_u32(&header);
let eid = EndpointId::from(eid_u32 as usize);
Some((Message::from_header_and_body(tail, body), eid))
}
fn set_backtrace(&mut self, bt: &[u8]) {
self.backtrace.clear();
self.backtrace.extend_from_slice(bt);
}
fn get_backtrace(&self) -> &[u8] {
&self.backtrace
}
fn clear_backtrace(&mut self) {
self.backtrace.clear();
}
fn close(&mut self, ctx: &mut Context) {
self.pipes.close_all(ctx)
}
}
#[cfg(test)]
mod tests {
use std::cell::RefCell;
use std::rc::Rc;
use std::sync::mpsc;
use byteorder::*;
use core::{EndpointId, Message, Scheduled};
use core::socket::{Protocol, Reply};
use core::context::{Event};
use core::tests::*;
use super::*;
#[test]
fn when_recv_succeed_it_is_notified_and_timeout_is_cancelled() {
let (tx, rx) = mpsc::channel();
let mut rep = Rep::from(tx);
let ctx_sensor = Rc::new(RefCell::new(TestContextSensor::default()));
let mut ctx = TestContext::with_sensor(ctx_sensor.clone());
let eid = EndpointId::from(0);
let pipe = new_test_pipe(eid);
let timeout = Scheduled::from(1);
let request_id = 666 | 0x80000000;
let mut body: Vec<u8> = vec![0, 0, 0, 0, 4, 2, 1];
BigEndian::write_u32(&mut body[0..4], request_id);
let msg = Message::from_body(body);
rep.add_pipe(&mut ctx, eid, pipe);
rep.on_recv_ready(&mut ctx, eid);
rep.recv(&mut ctx, Some(timeout));
rep.on_recv_ack(&mut ctx, eid, msg);
let reply = rx.recv().expect("facade should have been sent a reply !");
let is_reply_ok = match reply {
Reply::Recv(_) => true,
_ => false
};
assert!(is_reply_ok);
let sensor = ctx_sensor.borrow();
sensor.assert_one_recv_from(eid);
sensor.assert_one_cancellation(timeout);
}
#[test]
fn send_before_recv_notifies_an_error() {
let (tx, rx) = mpsc::channel();
let mut rep = Rep::from(tx);
let ctx_sensor = Rc::new(RefCell::new(TestContextSensor::default()));
let mut ctx = TestContext::with_sensor(ctx_sensor.clone());
let eid = EndpointId::from(0);
let pipe = new_test_pipe(eid);
rep.add_pipe(&mut ctx, eid, pipe);
rep.on_send_ready(&mut ctx, eid);
let msg = Message::new();
let timeout = Scheduled::from(1);
rep.send(&mut ctx, msg, Some(timeout));
rep.on_send_ack(&mut ctx, eid);
let reply = rx.recv().expect("facade should have been sent a reply !");
let is_reply_err = match reply {
Reply::Err(..) => true,
_ => false
};
assert!(is_reply_err);
let sensor = ctx_sensor.borrow();
sensor.assert_no_send_call();
sensor.assert_one_cancellation(timeout);
}
#[test]
fn when_send_succeed_it_is_notified_and_timeout_is_cancelled() {
let (tx, rx) = mpsc::channel();
let mut rep = Rep::from(tx);
let ctx_sensor = Rc::new(RefCell::new(TestContextSensor::default()));
let mut ctx = TestContext::with_sensor(ctx_sensor.clone());
let eid = EndpointId::from(0);
let pipe = new_test_pipe(eid);
let timeout = Scheduled::from(1);
let request_id = 666 | 0x80000000;
let mut body: Vec<u8> = vec![0, 0, 0, 0, 4, 2, 1];
BigEndian::write_u32(&mut body[0..4], request_id);
let msg = Message::from_body(body);
rep.add_pipe(&mut ctx, eid, pipe);
rep.on_recv_ready(&mut ctx, eid);
rep.recv(&mut ctx, None);
rep.on_recv_ack(&mut ctx, eid, msg);
let _ = rx.recv();
rep.on_send_ready(&mut ctx, eid);
rep.send(&mut ctx, Message::new(), Some(timeout));
rep.on_send_ack(&mut ctx, eid);
let reply = rx.recv().expect("facade should have been sent a reply !");
let is_reply_ok = match reply {
Reply::Send => true,
_ => false
};
assert!(is_reply_ok);
let sensor = ctx_sensor.borrow();
sensor.assert_one_send_to(eid);
sensor.assert_one_cancellation(timeout);
}
#[test]
fn when_recv_starts_event_is_raised() {
let (tx, _) = mpsc::channel();
let mut rep = Rep::from(tx);
let ctx_sensor = Rc::new(RefCell::new(TestContextSensor::default()));
let mut ctx = TestContext::with_sensor(ctx_sensor.clone());
let eid = EndpointId::from(1);
let pipe = new_test_pipe(eid);
rep.add_pipe(&mut ctx, eid, pipe);
rep.on_recv_ready(&mut ctx, eid);
rep.recv(&mut ctx, None);
rep.on_recv_ack(&mut ctx, eid, Message::new());
rep.on_recv_ready(&mut ctx, eid);
let sensor = ctx_sensor.borrow();
let raised_evts = sensor.get_raised_events();
assert_eq!(3, raised_evts.len());
assert_eq!(Event::CanRecv(true), raised_evts[0]);
assert_eq!(Event::CanRecv(false), raised_evts[1]);
assert_eq!(Event::CanRecv(true), raised_evts[2]);
}
#[test]
fn when_send_starts_event_is_raised() {
let (tx, rx) = mpsc::channel();
let mut rep = Rep::from(tx);
let ctx_sensor = Rc::new(RefCell::new(TestContextSensor::default()));
let mut ctx = TestContext::with_sensor(ctx_sensor.clone());
let eid = EndpointId::from(1);
let pipe = new_test_pipe(eid);
let request_id = 666 | 0x80000000;
let mut body: Vec<u8> = vec![0, 0, 0, 0, 4, 2, 1];
BigEndian::write_u32(&mut body[0..4], request_id);
let msg = Message::from_body(body);
rep.add_pipe(&mut ctx, eid, pipe);
rep.on_recv_ready(&mut ctx, eid);
rep.recv(&mut ctx, None);
rep.on_recv_ack(&mut ctx, eid, msg);
let _ = rx.recv();
rep.on_send_ready(&mut ctx, eid);
rep.send(&mut ctx, Message::new(), None);
rep.on_send_ack(&mut ctx, eid);
let sensor = ctx_sensor.borrow();
let raised_evts = sensor.get_raised_events();
assert_eq!(4, raised_evts.len());
assert_eq!(Event::CanRecv(true), raised_evts[0]);
assert_eq!(Event::CanRecv(false), raised_evts[1]);
assert_eq!(Event::CanSend(true), raised_evts[2]);
assert_eq!(Event::CanSend(false), raised_evts[3]);
}
#[test]
fn when_recv_ready_pipe_is_removed_event_is_raised() {
let (tx, _) = mpsc::channel();
let mut rep = Rep::from(tx);
let ctx_sensor = Rc::new(RefCell::new(TestContextSensor::default()));
let mut ctx = TestContext::with_sensor(ctx_sensor.clone());
let eid = EndpointId::from(2);
let pipe = new_test_pipe(eid);
rep.add_pipe(&mut ctx, eid, pipe);
rep.on_recv_ready(&mut ctx, eid);
rep.remove_pipe(&mut ctx, eid);
let sensor = ctx_sensor.borrow();
let raised_evts = sensor.get_raised_events();
assert_eq!(2, raised_evts.len());
assert_eq!(Event::CanRecv(true), raised_evts[0]);
assert_eq!(Event::CanRecv(false), raised_evts[1]);
}
#[test]
fn when_in_regular_mode_recv_will_store_endpoint_and_backtrace_in_socket_state() {
let (tx, rx) = mpsc::channel();
let mut rep = Rep::from(tx);
let ctx_sensor = Rc::new(RefCell::new(TestContextSensor::default()));
let mut ctx = TestContext::with_sensor(ctx_sensor.clone());
let eid = EndpointId::from(0);
let pipe = new_test_pipe(eid);
let request_id = 666 | 0x80000000;
let mut body: Vec<u8> = vec![0, 2, 4, 2, 0, 0, 0, 0, 4, 2, 1];
BigEndian::write_u32(&mut body[4..8], request_id);
let msg = Message::from_body(body);
rep.add_pipe(&mut ctx, eid, pipe);
rep.on_recv_ready(&mut ctx, eid);
rep.recv(&mut ctx, None);
rep.on_recv_ack(&mut ctx, eid, msg);
let reply = rx.try_recv().expect("facade should have been sent a reply !");
let reply_msg = match reply {
Reply::Recv(msg) => Some(msg),
_ => None
};
let app_msg = reply_msg.unwrap();
assert_eq!(0, app_msg.get_header().len());
assert_eq!(3, app_msg.get_body().len());
assert_eq!(12, rep.inner.get_backtrace().len());
}
#[test]
fn when_in_raw_mode_recv_will_store_endpoint_and_backtrace_in_msg_header() {
let (tx, rx) = mpsc::channel();
let mut rep = Rep::from(tx);
let ctx_sensor = Rc::new(RefCell::new(TestContextSensor::default()));
let mut ctx = TestContext::with_sensor(ctx_sensor.clone());
let eid = EndpointId::from(0);
let pipe = new_test_pipe(eid);
let request_id = 666 | 0x80000000;
let mut body: Vec<u8> = vec![0, 2, 4, 2, 0, 0, 0, 0, 4, 2, 1];
BigEndian::write_u32(&mut body[4..8], request_id);
let msg = Message::from_body(body);
rep.on_device_plugged(&mut ctx);
rep.add_pipe(&mut ctx, eid, pipe);
rep.on_recv_ready(&mut ctx, eid);
rep.recv(&mut ctx, None);
rep.on_recv_ack(&mut ctx, eid, msg);
let reply = rx.try_recv().expect("facade should have been sent a reply !");
let reply_msg = match reply {
Reply::Recv(msg) => Some(msg),
_ => None
};
let app_msg = reply_msg.unwrap();
assert_eq!(12, app_msg.get_header().len());
assert_eq!(3, app_msg.get_body().len());
assert_eq!(0, rep.inner.get_backtrace().len());
}
#[test]
fn when_in_regular_mode_send_will_restore_backtrace_from_socket_state_in_header_before_removing_endoint_id() {
let (tx, rx) = mpsc::channel();
let mut rep = Rep::from(tx);
let ctx_sensor = Rc::new(RefCell::new(TestContextSensor::default()));
let mut ctx = TestContext::with_sensor(ctx_sensor.clone());
let eid = EndpointId::from(0);
let pipe = new_test_pipe(eid);
let request_id = 666 | 0x80000000;
let mut body: Vec<u8> = vec![0, 2, 4, 2, 0, 0, 0, 0, 4, 2, 1];
BigEndian::write_u32(&mut body[4..8], request_id);
let msg = Message::from_body(body);
rep.add_pipe(&mut ctx, eid, pipe);
rep.on_recv_ready(&mut ctx, eid);
rep.recv(&mut ctx, None);
rep.on_recv_ack(&mut ctx, eid, msg);
let reply = rx.try_recv().expect("facade should have been sent a reply !");
let reply_msg = match reply {
Reply::Recv(msg) => Some(msg),
_ => None
};
let app_msg = reply_msg.unwrap();
assert_eq!(0, app_msg.get_header().len());
assert_eq!(3, app_msg.get_body().len());
assert_eq!(12, rep.inner.get_backtrace().len());
rep.on_send_ready(&mut ctx, eid);
rep.send(&mut ctx, Message::new(), None);
rep.on_send_ack(&mut ctx, eid);
let sensor = ctx_sensor.borrow();
sensor.assert_one_send_to(eid);
assert_eq!(0, rep.inner.get_backtrace().len());
}
#[test]
fn when_in_raw_mode_send_will_remove_endpoint_id_from_header() {
let (tx, _) = mpsc::channel();
let mut rep = Rep::from(tx);
let ctx_sensor = Rc::new(RefCell::new(TestContextSensor::default()));
let mut ctx = TestContext::with_sensor(ctx_sensor.clone());
let eid = EndpointId::from(1);
let pipe = new_test_pipe(eid);
let header: Vec<u8> = vec![0, 0, 0, 1];
let body: Vec<u8> = vec![6, 6, 6, 6, 4, 2, 1];
let msg = Message::from_header_and_body(header, body);
rep.on_device_plugged(&mut ctx);
rep.add_pipe(&mut ctx, eid, pipe);
rep.on_send_ready(&mut ctx, eid);
rep.send(&mut ctx, msg, None);
rep.on_send_ack(&mut ctx, eid);
let sensor = ctx_sensor.borrow();
sensor.assert_one_send_to(eid);
let send_calls = sensor.get_send_calls();
assert_eq!(1, send_calls.len());
let &(_, ref proto_msg) = &send_calls[0];
let header = proto_msg.get_header();
let body = proto_msg.get_body();
assert_eq!(0, header.len());
assert_eq!(7, body.len());
}
#[test]
fn when_in_raw_mode_send_while_peer_is_not_ready_drops_the_message_and_reports_success() {
let (tx, rx) = mpsc::channel();
let mut rep = Rep::from(tx);
let ctx_sensor = Rc::new(RefCell::new(TestContextSensor::default()));
let mut ctx = TestContext::with_sensor(ctx_sensor.clone());
let eid = EndpointId::from(1);
let pipe = new_test_pipe(eid);
let header: Vec<u8> = vec![0, 0, 0, 1];
let body: Vec<u8> = vec![6, 6, 6, 6, 4, 2, 1];
let msg = Message::from_header_and_body(header, body);
rep.on_device_plugged(&mut ctx);
rep.add_pipe(&mut ctx, eid, pipe);
rep.send(&mut ctx, msg, None);
rep.on_send_ack(&mut ctx, eid);
let reply = rx.recv().expect("facade should have been sent a reply !");
let is_reply_ok = match reply {
Reply::Send => true,
_ => false
};
assert!(is_reply_ok);
ctx_sensor.borrow().assert_no_send_call();
}
}