use byteorder::{BigEndian, ReadBytesExt, WriteBytesExt};
use std::cmp;
use std::io;
use std::io::{Read, Write};
use super::{TReadTransport, TReadTransportFactory, TWriteTransport, TWriteTransportFactory};
const READ_CAPACITY: usize = 4096;
const WRITE_CAPACITY: usize = 4096;
#[derive(Debug)]
pub struct TFramedReadTransport<C>
where
C: Read,
{
buf: Vec<u8>,
pos: usize,
cap: usize,
chan: C,
}
impl<C> TFramedReadTransport<C>
where
C: Read,
{
pub fn new(channel: C) -> TFramedReadTransport<C> {
TFramedReadTransport::with_capacity(READ_CAPACITY, channel)
}
pub fn with_capacity(read_capacity: usize, channel: C) -> TFramedReadTransport<C> {
TFramedReadTransport {
buf: vec![0; read_capacity], pos: 0,
cap: 0,
chan: channel,
}
}
}
impl<C> Read for TFramedReadTransport<C>
where
C: Read,
{
fn read(&mut self, b: &mut [u8]) -> io::Result<usize> {
if self.cap - self.pos == 0 {
let message_size = self.chan.read_i32::<BigEndian>()? as usize;
let buf_capacity = cmp::max(message_size, READ_CAPACITY);
self.buf.resize(buf_capacity, 0);
self.chan.read_exact(&mut self.buf[..message_size])?;
self.cap = message_size as usize;
self.pos = 0;
}
let nread = cmp::min(b.len(), self.cap - self.pos);
b[..nread].clone_from_slice(&self.buf[self.pos..self.pos + nread]);
self.pos += nread;
Ok(nread)
}
}
#[derive(Default)]
pub struct TFramedReadTransportFactory;
impl TFramedReadTransportFactory {
pub fn new() -> TFramedReadTransportFactory {
TFramedReadTransportFactory {}
}
}
impl TReadTransportFactory for TFramedReadTransportFactory {
fn create(&self, channel: Box<dyn Read + Send>) -> Box<dyn TReadTransport + Send> {
Box::new(TFramedReadTransport::new(channel))
}
}
#[derive(Debug)]
pub struct TFramedWriteTransport<C>
where
C: Write,
{
buf: Vec<u8>,
channel: C,
}
impl<C> TFramedWriteTransport<C>
where
C: Write,
{
pub fn new(channel: C) -> TFramedWriteTransport<C> {
TFramedWriteTransport::with_capacity(WRITE_CAPACITY, channel)
}
pub fn with_capacity(write_capacity: usize, channel: C) -> TFramedWriteTransport<C> {
TFramedWriteTransport {
buf: Vec::with_capacity(write_capacity),
channel,
}
}
}
impl<C> Write for TFramedWriteTransport<C>
where
C: Write,
{
fn write(&mut self, b: &[u8]) -> io::Result<usize> {
let current_capacity = self.buf.capacity();
let available_space = current_capacity - self.buf.len();
if b.len() > available_space {
let additional_space = cmp::max(b.len() - available_space, current_capacity);
self.buf.reserve(additional_space);
}
self.buf.extend_from_slice(b);
Ok(b.len())
}
fn flush(&mut self) -> io::Result<()> {
let message_size = self.buf.len();
if let 0 = message_size {
return Ok(());
} else {
self.channel.write_i32::<BigEndian>(message_size as i32)?;
}
let mut byte_index = 0;
while byte_index < message_size {
let nwrite = self.channel.write(&self.buf[byte_index..message_size])?;
byte_index = cmp::min(byte_index + nwrite, message_size);
}
let buf_capacity = cmp::min(self.buf.capacity(), WRITE_CAPACITY);
self.buf.resize(buf_capacity, 0);
self.buf.clear();
self.channel.flush()
}
}
#[derive(Default)]
pub struct TFramedWriteTransportFactory;
impl TFramedWriteTransportFactory {
pub fn new() -> TFramedWriteTransportFactory {
TFramedWriteTransportFactory {}
}
}
impl TWriteTransportFactory for TFramedWriteTransportFactory {
fn create(&self, channel: Box<dyn Write + Send>) -> Box<dyn TWriteTransport + Send> {
Box::new(TFramedWriteTransport::new(channel))
}
}
#[cfg(test)]
mod tests {
use super::*;
use crate::transport::mem::TBufferChannel;
#[test]
fn must_read_message_smaller_than_initial_buffer_size() {
let c = TBufferChannel::with_capacity(10, 10);
let mut t = TFramedReadTransport::with_capacity(8, c);
t.chan.set_readable_bytes(&[
0x00, 0x00, 0x00, 0x04,
0x00, 0x01, 0x02, 0x03,
]);
let mut buf = vec![0; 8];
assert_eq!(t.read(&mut buf).unwrap(), 4);
assert_eq!(&buf[..4], &[0x00, 0x01, 0x02, 0x03]);
}
#[test]
fn must_read_message_greater_than_initial_buffer_size() {
let c = TBufferChannel::with_capacity(10, 10);
let mut t = TFramedReadTransport::with_capacity(2, c);
t.chan.set_readable_bytes(&[
0x00, 0x00, 0x00, 0x04,
0x00, 0x01, 0x02, 0x03,
]);
let mut buf = vec![0; 8];
assert_eq!(t.read(&mut buf).unwrap(), 4);
assert_eq!(&buf[..4], &[0x00, 0x01, 0x02, 0x03]);
}
#[test]
fn must_read_multiple_messages_in_sequence_correctly() {
let c = TBufferChannel::with_capacity(10, 10);
let mut t = TFramedReadTransport::with_capacity(2, c);
t.chan.set_readable_bytes(&[
0x00, 0x00, 0x00, 0x04,
0x00, 0x01, 0x02, 0x03,
]);
let mut buf = vec![0; 8];
assert_eq!(t.read(&mut buf).unwrap(), 4);
assert_eq!(&buf, &[0x00, 0x01, 0x02, 0x03, 0x00, 0x00, 0x00, 0x00]);
t.chan.set_readable_bytes(&[
0x00, 0x00, 0x00, 0x01,
0x04,
]);
let mut buf = vec![0; 8];
assert_eq!(t.read(&mut buf).unwrap(), 1);
assert_eq!(&buf, &[0x04, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00]);
}
#[test]
fn must_write_message_smaller_than_buffer_size() {
let mem = TBufferChannel::with_capacity(0, 0);
let mut t = TFramedWriteTransport::with_capacity(20, mem);
let b = vec![0; 10];
assert_eq!(t.write(&b).unwrap(), 10);
}
#[test]
fn must_return_zero_if_caller_calls_write_with_empty_buffer() {
let mem = TBufferChannel::with_capacity(0, 10);
let mut t = TFramedWriteTransport::with_capacity(10, mem);
let expected: [u8; 0] = [];
assert_eq!(t.write(&[]).unwrap(), 0);
assert_eq_transport_written_bytes!(t, expected);
}
#[test]
fn must_write_to_inner_transport_on_flush() {
let mem = TBufferChannel::with_capacity(10, 10);
let mut t = TFramedWriteTransport::new(mem);
let b: [u8; 5] = [0x00, 0x01, 0x02, 0x03, 0x04];
assert_eq!(t.write(&b).unwrap(), 5);
assert_eq_transport_num_written_bytes!(t, 0);
assert!(t.flush().is_ok());
let expected_bytes = [
0x00, 0x00, 0x00, 0x05,
0x00, 0x01, 0x02, 0x03, 0x04,
];
assert_eq_transport_written_bytes!(t, expected_bytes);
}
#[test]
fn must_write_message_greater_than_buffer_size_00() {
let mem = TBufferChannel::with_capacity(0, 10);
let mut t = TFramedWriteTransport::with_capacity(1, mem);
let b = [0x00, 0x01, 0x02];
assert_eq!(t.write(&b).unwrap(), 3);
assert_eq_transport_num_written_bytes!(t, 0);
assert!(t.flush().is_ok());
let expected_bytes = [
0x00, 0x00, 0x00, 0x03,
0x00, 0x01, 0x02,
];
assert_eq_transport_written_bytes!(t, expected_bytes);
}
#[test]
fn must_write_message_greater_than_buffer_size_01() {
let mem = TBufferChannel::with_capacity(0, 10);
let mut t = TFramedWriteTransport::with_capacity(2, mem);
let b = [0x00, 0x01, 0x02];
assert_eq!(t.write(&b).unwrap(), 3);
assert_eq_transport_num_written_bytes!(t, 0);
assert!(t.flush().is_ok());
let expected_bytes = [
0x00, 0x00, 0x00, 0x03,
0x00, 0x01, 0x02,
];
assert_eq_transport_written_bytes!(t, expected_bytes);
}
#[test]
fn must_return_error_if_nothing_can_be_written_to_inner_transport_on_flush() {
let mem = TBufferChannel::with_capacity(0, 0);
let mut t = TFramedWriteTransport::with_capacity(1, mem);
let b = vec![0; 10];
assert_eq!(t.write(&b).unwrap(), 10);
let r = t.flush();
assert!(r.is_err());
}
#[test]
fn must_write_successfully_after_flush() {
let mem = TBufferChannel::with_capacity(0, 10);
let mut t = TFramedWriteTransport::with_capacity(5, mem);
let first_message: [u8; 5] = [0x00, 0x01, 0x02, 0x03, 0x04];
assert_eq!(t.write(&first_message).unwrap(), 5);
assert!(t.flush().is_ok());
let mut expected = Vec::new();
expected.write_all(&[0x00, 0x00, 0x00, 0x05]).unwrap(); expected.extend_from_slice(&first_message);
assert_eq!(t.channel.write_bytes(), expected);
t.channel.empty_write_buffer();
let second_message: [u8; 3] = [0x05, 0x06, 0x07];
assert_eq!(t.write(&second_message).unwrap(), 3);
assert!(t.flush().is_ok());
expected.clear();
expected.write_all(&[0x00, 0x00, 0x00, 0x03]).unwrap(); expected.extend_from_slice(&second_message);
assert_eq!(t.channel.write_bytes(), expected);
}
}