use std::ffi::OsStr;
use std::io::{self, Read, Write};
use std::os::windows::io::{AsRawHandle, FromRawHandle, RawHandle};
use std::sync::atomic::Ordering::{Relaxed, SeqCst};
use std::sync::atomic::{AtomicBool, AtomicUsize};
use std::sync::{Arc, Mutex};
use std::{fmt, mem, slice};
use windows_sys::Win32::Foundation::{
ERROR_BROKEN_PIPE, ERROR_IO_INCOMPLETE, ERROR_IO_PENDING, ERROR_NO_DATA, ERROR_PIPE_CONNECTED,
ERROR_PIPE_LISTENING, HANDLE, INVALID_HANDLE_VALUE,
};
use windows_sys::Win32::Storage::FileSystem::{
ReadFile, WriteFile, FILE_FLAG_FIRST_PIPE_INSTANCE, FILE_FLAG_OVERLAPPED, PIPE_ACCESS_DUPLEX,
};
use windows_sys::Win32::System::Pipes::{
ConnectNamedPipe, CreateNamedPipeW, DisconnectNamedPipe, PIPE_TYPE_BYTE,
PIPE_UNLIMITED_INSTANCES,
};
use windows_sys::Win32::System::IO::{
CancelIoEx, GetOverlappedResult, OVERLAPPED, OVERLAPPED_ENTRY,
};
use crate::event::Source;
use crate::sys::windows::iocp::{CompletionPort, CompletionStatus};
use crate::sys::windows::{Event, Handle, Overlapped};
use crate::Registry;
use crate::{Interest, Token};
pub struct NamedPipe {
inner: Arc<Inner>,
}
#[repr(C)]
struct Inner {
connect: Overlapped,
read: Overlapped,
write: Overlapped,
handle: Handle,
connecting: AtomicBool,
io: Mutex<Io>,
pool: Mutex<BufferPool>,
}
impl Inner {
unsafe fn ptr_from_conn_overlapped(ptr: *mut OVERLAPPED) -> *const Inner {
ptr.cast()
}
unsafe fn ptr_from_read_overlapped(ptr: *mut OVERLAPPED) -> *const Inner {
(ptr as *mut Overlapped).wrapping_sub(1) as *const Inner
}
unsafe fn ptr_from_write_overlapped(ptr: *mut OVERLAPPED) -> *const Inner {
(ptr as *mut Overlapped).wrapping_sub(2) as *const Inner
}
pub unsafe fn connect_overlapped(&self, overlapped: *mut OVERLAPPED) -> io::Result<bool> {
if ConnectNamedPipe(self.handle.raw(), overlapped) != 0 {
return Ok(true);
}
let err = io::Error::last_os_error();
match err.raw_os_error().map(|e| e as u32) {
Some(ERROR_PIPE_CONNECTED) => Ok(true),
Some(ERROR_NO_DATA) => Ok(true),
Some(ERROR_IO_PENDING) => Ok(false),
_ => Err(err),
}
}
pub fn disconnect(&self) -> io::Result<()> {
if unsafe { DisconnectNamedPipe(self.handle.raw()) } == 0 {
Err(io::Error::last_os_error())
} else {
Ok(())
}
}
pub unsafe fn read_overlapped(
&self,
buf: &mut [u8],
overlapped: *mut OVERLAPPED,
) -> io::Result<Option<usize>> {
let len = std::cmp::min(buf.len(), u32::MAX as usize) as u32;
let res = ReadFile(
self.handle.raw(),
buf.as_mut_ptr() as *mut _,
len,
std::ptr::null_mut(),
overlapped,
);
if res == 0 {
let err = io::Error::last_os_error();
if err.raw_os_error() != Some(ERROR_IO_PENDING as i32) {
return Err(err);
}
}
let mut bytes = 0;
let res = GetOverlappedResult(self.handle.raw(), overlapped, &mut bytes, 0);
if res == 0 {
let err = io::Error::last_os_error();
if err.raw_os_error() == Some(ERROR_IO_INCOMPLETE as i32) {
Ok(None)
} else {
Err(err)
}
} else {
Ok(Some(bytes as usize))
}
}
pub unsafe fn write_overlapped(
&self,
buf: &[u8],
overlapped: *mut OVERLAPPED,
) -> io::Result<Option<usize>> {
let len = std::cmp::min(buf.len(), u32::MAX as usize) as u32;
let res = WriteFile(
self.handle.raw(),
buf.as_ptr() as *const _,
len,
std::ptr::null_mut(),
overlapped,
);
if res == 0 {
let err = io::Error::last_os_error();
if err.raw_os_error() != Some(ERROR_IO_PENDING as i32) {
return Err(err);
}
}
let mut bytes = 0;
let res = GetOverlappedResult(self.handle.raw(), overlapped, &mut bytes, 0);
if res == 0 {
let err = io::Error::last_os_error();
if err.raw_os_error() == Some(ERROR_IO_INCOMPLETE as i32) {
Ok(None)
} else {
Err(err)
}
} else {
Ok(Some(bytes as usize))
}
}
#[inline]
unsafe fn result(&self, overlapped: *mut OVERLAPPED) -> io::Result<usize> {
let mut transferred = 0;
let r = GetOverlappedResult(self.handle.raw(), overlapped, &mut transferred, 0);
if r == 0 {
Err(io::Error::last_os_error())
} else {
Ok(transferred as usize)
}
}
}
#[test]
fn ptr_from() {
use std::mem::ManuallyDrop;
use std::ptr;
let pipe = unsafe { ManuallyDrop::new(NamedPipe::from_raw_handle(ptr::null_mut())) };
let inner: &Inner = &pipe.inner;
assert_eq!(
inner as *const Inner,
unsafe { Inner::ptr_from_conn_overlapped(&inner.connect as *const _ as *mut OVERLAPPED) },
"`ptr_from_conn_overlapped` incorrect"
);
assert_eq!(
inner as *const Inner,
unsafe { Inner::ptr_from_read_overlapped(&inner.read as *const _ as *mut OVERLAPPED) },
"`ptr_from_read_overlapped` incorrect"
);
assert_eq!(
inner as *const Inner,
unsafe { Inner::ptr_from_write_overlapped(&inner.write as *const _ as *mut OVERLAPPED) },
"`ptr_from_write_overlapped` incorrect"
);
}
struct Io {
cp: Option<Arc<CompletionPort>>,
token: Option<Token>,
read: State,
write: State,
connect_error: Option<io::Error>,
}
#[derive(Debug)]
enum State {
None,
Pending(Vec<u8>, usize),
Ok(Vec<u8>, usize),
Err(io::Error),
}
static NEXT_TOKEN: AtomicUsize = AtomicUsize::new(1);
fn would_block() -> io::Error {
io::ErrorKind::WouldBlock.into()
}
impl NamedPipe {
pub fn new<A: AsRef<OsStr>>(addr: A) -> io::Result<NamedPipe> {
use std::os::windows::ffi::OsStrExt;
let name: Vec<_> = addr.as_ref().encode_wide().chain(Some(0)).collect();
let h = unsafe {
CreateNamedPipeW(
name.as_ptr(),
PIPE_ACCESS_DUPLEX | FILE_FLAG_FIRST_PIPE_INSTANCE | FILE_FLAG_OVERLAPPED,
PIPE_TYPE_BYTE,
PIPE_UNLIMITED_INSTANCES,
65536,
65536,
0,
std::ptr::null_mut(),
)
};
if h == INVALID_HANDLE_VALUE {
Err(io::Error::last_os_error())
} else {
Ok(unsafe { Self::from_raw_handle(h as RawHandle) })
}
}
pub fn connect(&self) -> io::Result<()> {
if self.inner.connecting.swap(true, SeqCst) {
return Err(would_block());
}
let res = unsafe {
let overlapped = self.inner.connect.as_ptr() as *mut _;
self.inner.connect_overlapped(overlapped)
};
match res {
Ok(true) => {
self.inner.connecting.store(false, SeqCst);
Inner::post_register(&self.inner, None);
Ok(())
}
Ok(false) => {
mem::forget(self.inner.clone());
Err(would_block())
}
Err(e) => {
self.inner.connecting.store(false, SeqCst);
Err(e)
}
}
}
pub fn take_error(&self) -> io::Result<Option<io::Error>> {
Ok(self.inner.io.lock().unwrap().connect_error.take())
}
pub fn disconnect(&self) -> io::Result<()> {
self.inner.disconnect()
}
}
impl FromRawHandle for NamedPipe {
unsafe fn from_raw_handle(handle: RawHandle) -> NamedPipe {
NamedPipe {
inner: Arc::new(Inner {
handle: Handle::new(handle as HANDLE),
connect: Overlapped::new(connect_done),
connecting: AtomicBool::new(false),
read: Overlapped::new(read_done),
write: Overlapped::new(write_done),
io: Mutex::new(Io {
cp: None,
token: None,
read: State::None,
write: State::None,
connect_error: None,
}),
pool: Mutex::new(BufferPool::with_capacity(2)),
}),
}
}
}
impl Read for NamedPipe {
fn read(&mut self, buf: &mut [u8]) -> io::Result<usize> {
<&NamedPipe as Read>::read(&mut &*self, buf)
}
}
impl Write for NamedPipe {
fn write(&mut self, buf: &[u8]) -> io::Result<usize> {
<&NamedPipe as Write>::write(&mut &*self, buf)
}
fn flush(&mut self) -> io::Result<()> {
<&NamedPipe as Write>::flush(&mut &*self)
}
}
impl<'a> Read for &'a NamedPipe {
fn read(&mut self, buf: &mut [u8]) -> io::Result<usize> {
let mut state = self.inner.io.lock().unwrap();
if state.token.is_none() {
return Err(would_block());
}
match mem::replace(&mut state.read, State::None) {
State::None => Err(would_block()),
State::Pending(buf, amt) => {
state.read = State::Pending(buf, amt);
Err(would_block())
}
State::Ok(data, cur) => {
let n = {
let mut remaining = &data[cur..];
remaining.read(buf)?
};
let next = cur + n;
if next != data.len() {
state.read = State::Ok(data, next);
} else {
self.inner.put_buffer(data);
Inner::schedule_read(&self.inner, &mut state, None);
}
Ok(n)
}
State::Err(e) => {
Inner::schedule_read(&self.inner, &mut state, None);
if e.raw_os_error() == Some(ERROR_BROKEN_PIPE as i32) {
Ok(0)
} else {
Err(e)
}
}
}
}
}
impl<'a> Write for &'a NamedPipe {
fn write(&mut self, buf: &[u8]) -> io::Result<usize> {
let mut io = self.inner.io.lock().unwrap();
if io.token.is_none() {
return Err(would_block());
}
match io.write {
State::None => {}
State::Err(_) => match mem::replace(&mut io.write, State::None) {
State::Err(e) => return Err(e),
_ => unreachable!(),
},
_ => {
return Err(would_block());
}
}
let mut owned_buf = self.inner.get_buffer();
owned_buf.extend(buf);
match Inner::maybe_schedule_write(&self.inner, owned_buf, 0, &mut io)? {
Some(n) => Ok(n),
None => Ok(buf.len()),
}
}
fn flush(&mut self) -> io::Result<()> {
Ok(())
}
}
impl Source for NamedPipe {
fn register(&mut self, registry: &Registry, token: Token, _: Interest) -> io::Result<()> {
let mut io = self.inner.io.lock().unwrap();
io.check_association(registry, false)?;
if io.token.is_some() {
return Err(io::Error::new(
io::ErrorKind::AlreadyExists,
"I/O source already registered with a `Registry`",
));
}
if io.cp.is_none() {
let selector = registry.selector();
io.cp = Some(selector.clone_port());
let inner_token = NEXT_TOKEN.fetch_add(2, Relaxed) + 2;
selector.inner.cp.add_handle(inner_token, self)?;
}
io.token = Some(token);
drop(io);
Inner::post_register(&self.inner, None);
Ok(())
}
fn reregister(&mut self, registry: &Registry, token: Token, _: Interest) -> io::Result<()> {
let mut io = self.inner.io.lock().unwrap();
io.check_association(registry, true)?;
io.token = Some(token);
drop(io);
Inner::post_register(&self.inner, None);
Ok(())
}
fn deregister(&mut self, registry: &Registry) -> io::Result<()> {
let mut io = self.inner.io.lock().unwrap();
io.check_association(registry, true)?;
if io.token.is_none() {
return Err(io::Error::new(
io::ErrorKind::NotFound,
"I/O source not registered with `Registry`",
));
}
io.token = None;
Ok(())
}
}
impl AsRawHandle for NamedPipe {
fn as_raw_handle(&self) -> RawHandle {
self.inner.handle.raw() as RawHandle
}
}
impl fmt::Debug for NamedPipe {
fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result {
self.inner.handle.fmt(f)
}
}
impl Drop for NamedPipe {
fn drop(&mut self) {
unsafe {
if self.inner.connecting.load(SeqCst) {
drop(cancel(&self.inner.handle, &self.inner.connect));
}
let io = self.inner.io.lock().unwrap();
if let State::Pending(..) = io.read {
drop(cancel(&self.inner.handle, &self.inner.read));
}
}
}
}
impl Inner {
fn schedule_read(me: &Arc<Inner>, io: &mut Io, events: Option<&mut Vec<Event>>) -> bool {
match io.read {
State::None => {}
_ => return true,
}
let mut buf = me.get_buffer();
let e = unsafe {
let overlapped = me.read.as_ptr() as *mut _;
let slice = slice::from_raw_parts_mut(buf.as_mut_ptr(), buf.capacity());
me.read_overlapped(slice, overlapped)
};
match e {
Ok(_) => {
io.read = State::Pending(buf, 0); mem::forget(me.clone());
true
}
Err(ref e) if e.raw_os_error() == Some(ERROR_PIPE_LISTENING as i32) => false,
Err(e) => {
io.read = State::Err(e);
io.notify_readable(events);
true
}
}
}
fn maybe_schedule_write(
me: &Arc<Inner>,
buf: Vec<u8>,
pos: usize,
io: &mut Io,
) -> io::Result<Option<usize>> {
let e = unsafe {
let overlapped = me.write.as_ptr() as *mut _;
me.write_overlapped(&buf[pos..], overlapped)
};
match e {
Ok(Some(n)) => {
io.write = State::Ok(buf, pos);
mem::forget(me.clone());
Ok(Some(n))
}
Ok(None) => {
io.write = State::Pending(buf, pos);
mem::forget(me.clone());
Ok(None)
}
Err(e) => Err(e),
}
}
fn schedule_write(
me: &Arc<Inner>,
buf: Vec<u8>,
pos: usize,
io: &mut Io,
events: Option<&mut Vec<Event>>,
) {
match Inner::maybe_schedule_write(me, buf, pos, io) {
Ok(Some(_)) => {
let state = mem::replace(&mut io.write, State::None);
io.write = match state {
State::Ok(buf, pos) => State::Pending(buf, pos),
_ => unreachable!(),
};
mem::forget(me.clone());
}
Ok(None) => (),
Err(e) => {
io.write = State::Err(e);
io.notify_writable(events);
}
}
}
fn post_register(me: &Arc<Inner>, mut events: Option<&mut Vec<Event>>) {
let mut io = me.io.lock().unwrap();
#[allow(clippy::needless_option_as_deref)]
if Inner::schedule_read(me, &mut io, events.as_deref_mut()) {
if let State::None = io.write {
io.notify_writable(events);
}
}
}
fn get_buffer(&self) -> Vec<u8> {
self.pool.lock().unwrap().get(4 * 1024)
}
fn put_buffer(&self, buf: Vec<u8>) {
self.pool.lock().unwrap().put(buf)
}
}
unsafe fn cancel(handle: &Handle, overlapped: &Overlapped) -> io::Result<()> {
let ret = CancelIoEx(handle.raw(), overlapped.as_ptr());
if ret == 0 {
Err(io::Error::last_os_error())
} else {
Ok(())
}
}
fn connect_done(status: &OVERLAPPED_ENTRY, events: Option<&mut Vec<Event>>) {
let status = CompletionStatus::from_entry(status);
let me = unsafe { Arc::from_raw(Inner::ptr_from_conn_overlapped(status.overlapped())) };
let prev = me.connecting.swap(false, SeqCst);
assert!(prev, "NamedPipe was not previously connecting");
debug_assert_eq!(status.bytes_transferred(), 0);
unsafe {
match me.result(status.overlapped()) {
Ok(n) => debug_assert_eq!(n, 0),
Err(e) => me.io.lock().unwrap().connect_error = Some(e),
}
}
Inner::post_register(&me, events);
}
fn read_done(status: &OVERLAPPED_ENTRY, events: Option<&mut Vec<Event>>) {
let status = CompletionStatus::from_entry(status);
let me = unsafe { Arc::from_raw(Inner::ptr_from_read_overlapped(status.overlapped())) };
let mut io = me.io.lock().unwrap();
let mut buf = match mem::replace(&mut io.read, State::None) {
State::Pending(buf, _) => buf,
_ => unreachable!(),
};
unsafe {
match me.result(status.overlapped()) {
Ok(n) => {
debug_assert_eq!(status.bytes_transferred() as usize, n);
buf.set_len(status.bytes_transferred() as usize);
io.read = State::Ok(buf, 0);
}
Err(e) => {
debug_assert_eq!(status.bytes_transferred(), 0);
io.read = State::Err(e);
}
}
}
io.notify_readable(events);
}
fn write_done(status: &OVERLAPPED_ENTRY, events: Option<&mut Vec<Event>>) {
let status = CompletionStatus::from_entry(status);
let me = unsafe { Arc::from_raw(Inner::ptr_from_write_overlapped(status.overlapped())) };
let mut io = me.io.lock().unwrap();
let (buf, pos) = match mem::replace(&mut io.write, State::None) {
State::Ok(..) => {
io.notify_writable(events);
return;
}
State::Pending(buf, pos) => (buf, pos),
_ => unreachable!(),
};
unsafe {
match me.result(status.overlapped()) {
Ok(n) => {
debug_assert_eq!(status.bytes_transferred() as usize, n);
let new_pos = pos + (status.bytes_transferred() as usize);
if new_pos == buf.len() {
me.put_buffer(buf);
io.notify_writable(events);
} else {
Inner::schedule_write(&me, buf, new_pos, &mut io, events);
}
}
Err(e) => {
debug_assert_eq!(status.bytes_transferred(), 0);
io.write = State::Err(e);
io.notify_writable(events);
}
}
}
}
impl Io {
fn check_association(&self, registry: &Registry, required: bool) -> io::Result<()> {
match self.cp {
Some(ref cp) if !registry.selector().same_port(cp) => Err(io::Error::new(
io::ErrorKind::AlreadyExists,
"I/O source already registered with a different `Registry`",
)),
None if required => Err(io::Error::new(
io::ErrorKind::NotFound,
"I/O source not registered with `Registry`",
)),
_ => Ok(()),
}
}
fn notify_readable(&self, events: Option<&mut Vec<Event>>) {
if let Some(token) = self.token {
let mut ev = Event::new(token);
ev.set_readable();
if let Some(events) = events {
events.push(ev);
} else {
let _ = self.cp.as_ref().unwrap().post(ev.to_completion_status());
}
}
}
fn notify_writable(&self, events: Option<&mut Vec<Event>>) {
if let Some(token) = self.token {
let mut ev = Event::new(token);
ev.set_writable();
if let Some(events) = events {
events.push(ev);
} else {
let _ = self.cp.as_ref().unwrap().post(ev.to_completion_status());
}
}
}
}
struct BufferPool {
pool: Vec<Vec<u8>>,
}
impl BufferPool {
fn with_capacity(cap: usize) -> BufferPool {
BufferPool {
pool: Vec::with_capacity(cap),
}
}
fn get(&mut self, default_cap: usize) -> Vec<u8> {
self.pool
.pop()
.unwrap_or_else(|| Vec::with_capacity(default_cap))
}
fn put(&mut self, mut buf: Vec<u8>) {
if self.pool.len() < self.pool.capacity() {
unsafe {
buf.set_len(0);
}
self.pool.push(buf);
}
}
}