hidpp/channel.rs
1//! Implements basic messaging across HID and HID++ channels.
2//!
3//! This includes mapping incoming messages to previously sent requests.
4
5use std::{
6 collections::{HashMap, VecDeque},
7 sync::{
8 Arc, Mutex, Weak,
9 atomic::{AtomicBool, AtomicU8, AtomicU32, AtomicU64, Ordering},
10 },
11 thread::{self, JoinHandle},
12 time::Duration,
13};
14
15use futures::{FutureExt, channel::oneshot, select};
16use tracing::trace;
17
18use crate::{nibble::U4, sync::lock};
19
20mod error;
21mod message;
22mod raw;
23
24#[cfg(test)]
25pub(crate) mod tests;
26
27pub use error::ChannelError;
28pub use message::{
29 HidppMessage, LONG_REPORT_ID, LONG_REPORT_LENGTH, SHORT_REPORT_ID, SHORT_REPORT_LENGTH,
30};
31pub use raw::RawHidChannel;
32
33use raw::supports_short_long_hidpp;
34
35/// This is the size of the buffer incoming reports are read into.
36/// As we only care about HID++ reports, this equals to [`LONG_REPORT_LENGTH`].
37const MAX_REPORT_LENGTH: usize = LONG_REPORT_LENGTH;
38
39/// Largest output report accepted by [`HidppChannel::write_raw_report`].
40/// Logitech's very-long HID++ lighting report (`0x12`) is 64 bytes.
41const MAX_RAW_REPORT_LENGTH: usize = 64;
42
43/// The default time budget for a [`HidppChannel::send`] request: the report
44/// write plus the wait for a matching response. Callers that need a different
45/// budget can use [`HidppChannel::send_with_timeout`].
46pub const SEND_RESPONSE_TIMEOUT: Duration = Duration::from_secs(5);
47
48type MessageListener = Arc<dyn Fn(HidppMessage, bool) + Send + Sync + 'static>;
49
50/// Removes a HID++ message listener when dropped.
51pub struct MessageListenerGuard {
52 message_listeners: Weak<Mutex<HashMap<u32, MessageListener>>>,
53 hdl: u32,
54}
55
56impl Drop for MessageListenerGuard {
57 fn drop(&mut self) {
58 if let Some(message_listeners) = self.message_listeners.upgrade() {
59 lock(&message_listeners).remove(&self.hdl);
60 }
61 }
62}
63
64/// Represents a HID communication channel supporting HID++.
65pub struct HidppChannel {
66 /// Whether the channel supports short (7 bytes) HID++ messages.
67 pub supports_short: bool,
68
69 /// Whether the channel supports long (20 bytes) HID++ messages.
70 pub supports_long: bool,
71
72 /// The vendor ID of the connected HID device.
73 pub vendor_id: u16,
74
75 /// The product ID of the connected HID device.
76 pub product_id: u16,
77
78 /// The underlying raw HID channel.
79 raw_channel: Arc<dyn RawHidChannel>,
80
81 /// Whether to rotate the [`Self::software_id`].
82 rotate_software_id: AtomicBool,
83
84 /// The software ID to provide at the next call to [`Self::get_sw_id`].
85 software_id: AtomicU8,
86
87 /// All sent messages that are waiting for a response.
88 pending_messages: Arc<Mutex<VecDeque<PendingMessage>>>,
89
90 /// The request ID assigned to the next pending message.
91 pending_message_id: AtomicU64,
92
93 /// Registered listeners that will receive notifications about incoming
94 /// messages.
95 message_listeners: Arc<Mutex<HashMap<u32, MessageListener>>>,
96
97 /// The handle assigned to the next registered message listener.
98 ///
99 /// A counter, not a random draw: a handle is only ever a key into
100 /// [`Self::message_listeners`], so counting up is collision-free by
101 /// construction where drawing needed a retry loop to be merely unlikely.
102 next_listener_hdl: AtomicU32,
103
104 /// The sender signaling the read thread to stop.
105 read_thread_close: Option<oneshot::Sender<()>>,
106
107 /// The handle to the read thread. Should be joined after signaling
108 /// [`Self::read_thread_close`].
109 read_thread_hdl: Option<JoinHandle<()>>,
110
111 /// Optional process-wide software-id lease: `(id, free)` run on drop.
112 ///
113 /// OpenLogi leases a unique HID++ software id per open so concurrent
114 /// channels on the same physical HID node never share a correlation id
115 /// (software id `0` is reserved for device notifications). Local addition.
116 sw_id_lease: Option<(u8, fn(u8))>,
117}
118
119impl Drop for HidppChannel {
120 fn drop(&mut self) {
121 if let Some((id, free)) = self.sw_id_lease.take() {
122 free(id);
123 }
124
125 if let Some(read_thread_close) = self.read_thread_close.take() {
126 // This only fails if the receiving end, which is owned by the read thread in
127 // this case, is dropped.
128 // This just means that the read thread is already stopped, so we can ignore the
129 // error here.
130 let _ = read_thread_close.send(());
131 }
132
133 if let Some(read_thread_hdl) = self.read_thread_hdl.take() {
134 // Joining is not politeness: it is what makes the OS handle closed
135 // by the time this returns, so a caller that drops a channel and
136 // reopens the same node never has two opens of it alive at once.
137 #[expect(
138 clippy::unwrap_used,
139 reason = "propagate a read-thread panic instead of ignoring a crashed background worker"
140 )]
141 read_thread_hdl.join().unwrap();
142 }
143 }
144}
145
146/// Represents a message that was sent and is waiting for a response.
147struct PendingMessage {
148 /// Unique ID used to remove this request if it times out.
149 id: u64,
150
151 /// The predicate that has to match for an incoming message to be classified
152 /// as the response.
153 response_predicate: Box<dyn Fn(&HidppMessage) -> bool + Send>,
154
155 /// The oneshot sender used to provide the response message to the receiving
156 /// end.
157 sender: oneshot::Sender<HidppMessage>,
158}
159
160impl HidppChannel {
161 /// Tries to construct a HID++ channel from a raw HID channel.
162 ///
163 /// Reads run on a thread this owns, joined on drop — so the underlying OS
164 /// handle is closed by the time a dropped channel's `drop` returns. Callers
165 /// that reopen the same node right after closing one depend on that.
166 ///
167 /// If the given HID channel does not support HID++,
168 /// [`ChannelError::HidppNotSupported`] will be returned.
169 pub async fn from_raw_channel(raw: impl RawHidChannel) -> Result<Self, ChannelError> {
170 let (supports_short, supports_long) = supports_short_long_hidpp(&raw).await?;
171
172 if !supports_short && !supports_long {
173 return Err(ChannelError::HidppNotSupported);
174 }
175
176 let raw_channel_rc = Arc::new(raw);
177 let pending_messages_rc = Arc::new(Mutex::new(VecDeque::<PendingMessage>::new()));
178 let message_listeners_rc = Arc::new(Mutex::new(HashMap::<u32, MessageListener>::new()));
179
180 let (close_sender, close_receiver) = oneshot::channel::<()>();
181
182 let read_thread_hdl = thread::spawn({
183 let raw_channel = Arc::clone(&raw_channel_rc);
184 let pending_messages = Arc::clone(&pending_messages_rc);
185 let message_listeners = Arc::clone(&message_listeners_rc);
186
187 move || {
188 futures::executor::block_on(read_loop(
189 &*raw_channel,
190 &pending_messages,
191 &message_listeners,
192 close_receiver,
193 ));
194 }
195 });
196
197 Ok(Self {
198 supports_short,
199 supports_long,
200 vendor_id: raw_channel_rc.vendor_id(),
201 product_id: raw_channel_rc.product_id(),
202 raw_channel: raw_channel_rc,
203 rotate_software_id: AtomicBool::new(false),
204 software_id: AtomicU8::new(0x01),
205 pending_messages: pending_messages_rc,
206 pending_message_id: AtomicU64::new(1),
207 next_listener_hdl: AtomicU32::new(1),
208 message_listeners: message_listeners_rc,
209 read_thread_close: Some(close_sender),
210 read_thread_hdl: Some(read_thread_hdl),
211 sw_id_lease: None,
212 })
213 }
214
215 /// Whether the underlying HID transport still reports a live connection.
216 pub fn is_connected(&self) -> bool {
217 self.raw_channel.is_connected()
218 }
219
220 /// Sets the software ID that should be returned by the next call to
221 /// [`Self::get_sw_id`].
222 ///
223 /// Using software ID `0` is highly discouraged as it is used for device
224 /// notifications.
225 pub fn set_sw_id(&self, sw_id: U4) {
226 self.software_id.store(sw_id.to_lo(), Ordering::SeqCst);
227 }
228
229 /// Sets whether the software ID returned by a call to [`Self::get_sw_id`]
230 /// should increment (and potentially wrap around) after each call.
231 ///
232 /// This comes in handy when trying to map responses to requests
233 /// consistently.
234 ///
235 /// Software ID `0` will be skipped in the rotation process as it is
236 /// reserved for device notifications.
237 pub fn set_rotating_sw_id(&self, enable: bool) {
238 self.rotate_software_id.store(enable, Ordering::SeqCst);
239 }
240
241 /// Lease software id `id` until this channel is dropped, then call `free(id)`.
242 ///
243 /// Replaces any previous lease. Used by OpenLogi so concurrent opens of the
244 /// same HID node hold distinct correlation ids for their full lifetime.
245 ///
246 /// OpenLogi local addition.
247 pub fn set_sw_id_lease(&mut self, id: u8, free: fn(u8)) {
248 self.sw_id_lease = Some((id, free));
249 }
250
251 /// Provides a software ID that can be used to send a HID++ message across
252 /// the channel.
253 ///
254 /// This method should be called separately for every message to send as it
255 /// may rotate (as indicated by [`Self::set_rotating_sw_id`]).
256 pub fn get_sw_id(&self) -> U4 {
257 if self.rotate_software_id.load(Ordering::SeqCst) {
258 // The closure always returns `Some`, so `fetch_update` never
259 // reports `Err`; both arms carry the same pre-update value.
260 let previous =
261 match self
262 .software_id
263 .fetch_update(Ordering::SeqCst, Ordering::SeqCst, |old| {
264 Some(if old & 0x0f == 0x0f {
265 0x01
266 } else {
267 old.wrapping_add(1)
268 })
269 }) {
270 Ok(previous) | Err(previous) => previous,
271 };
272 U4::from_lo(previous)
273 } else {
274 U4::from_lo(self.software_id.load(Ordering::SeqCst))
275 }
276 }
277
278 /// Checks whether the channel supports the given HID++ message.
279 pub fn supports_msg(&self, msg: &HidppMessage) -> bool {
280 match msg {
281 HidppMessage::Short(_) => self.supports_short,
282 HidppMessage::Long(_) => self.supports_long,
283 }
284 }
285
286 /// Re-frames a short message as long on a long-only channel — a device that
287 /// exposes only the long HID++ report (e.g. a Bluetooth-LE-direct mouse on
288 /// macOS, where `IOHIDDeviceSetReport` rejects the short report). The HID++
289 /// header bytes sit at the same offsets in both widths, so the only change
290 /// is the report id plus zero-padding the extra payload; the device answers
291 /// with a long report, which still matches the request by header. A no-op on
292 /// channels that advertise short support.
293 ///
294 /// (OpenLogi local addition — candidate for upstreaming.)
295 fn normalize_outgoing(&self, msg: HidppMessage) -> HidppMessage {
296 match msg {
297 HidppMessage::Short(_) if !self.supports_short && self.supports_long => msg.widened(),
298 other => other,
299 }
300 }
301
302 /// Sends a HID++ message across the channel and waits for a response.
303 ///
304 /// If no response is expected/required, use [`Self::send_and_forget`].
305 ///
306 /// The whole request — the report write plus the wait for a matching
307 /// response — is bounded by [`SEND_RESPONSE_TIMEOUT`]; the future resolves
308 /// to [`ChannelError::Timeout`] on elapse. Use [`Self::send_with_timeout`]
309 /// to choose a different budget.
310 pub async fn send(
311 &self,
312 msg: HidppMessage,
313 response_predicate: impl Fn(&HidppMessage) -> bool + Send + 'static,
314 ) -> Result<HidppMessage, ChannelError> {
315 self.send_with_timeout(msg, response_predicate, SEND_RESPONSE_TIMEOUT)
316 .await
317 }
318
319 /// Sends a HID++ message across the channel and waits for a response,
320 /// bounding the whole request — the report write plus the wait for a
321 /// matching response — by `timeout`.
322 ///
323 /// On elapse the request's pending entry is removed (concurrent in-flight
324 /// requests are unaffected) and [`ChannelError::Timeout`] is returned; a
325 /// response that still arrives later reaches message listeners as an
326 /// unmatched message.
327 ///
328 /// [`Self::send`] uses this with [`SEND_RESPONSE_TIMEOUT`], which suits
329 /// requests to a device that may be asleep. Requests that should fail
330 /// faster — e.g. probing a receiver that answers immediately or not at
331 /// all — can pass a tighter budget.
332 pub async fn send_with_timeout(
333 &self,
334 msg: HidppMessage,
335 response_predicate: impl Fn(&HidppMessage) -> bool + Send + 'static,
336 timeout: Duration,
337 ) -> Result<HidppMessage, ChannelError> {
338 let msg = self.normalize_outgoing(msg);
339 if !self.supports_msg(&msg) {
340 return Err(ChannelError::MessageTypeNotSupported);
341 }
342
343 // Wire trace (off by default; `OPENLOGI_LOG=hidpp=trace`). Capture the
344 // header before `msg` is moved into the send future so the outcome line
345 // below can name the same request.
346 let (dev, feat, func) = msg.header();
347 trace!(dev, feat, func, "hidpp request");
348
349 let (sender, receiver) = oneshot::channel::<HidppMessage>();
350 let pending_id = self.pending_message_id.fetch_add(1, Ordering::SeqCst);
351
352 {
353 let mut pending = lock(&self.pending_messages);
354 // Drop abandoned requests before queuing this one. Timeouts and
355 // write failures remove their entry eagerly below, but a caller
356 // cancelled mid-flight (an outer `timeout(..)` dropping the whole
357 // future) still leaves its `PendingMessage` behind. On a channel
358 // reused across inventory ticks those would accumulate unboundedly
359 // — and a late response could be mis-delivered to a recycled
360 // software id. `is_canceled()` is true once the receiver is gone,
361 // so this prunes exactly the give-ups.
362 pending.retain(|m| !m.sender.is_canceled());
363 pending.push_back(PendingMessage {
364 id: pending_id,
365 response_predicate: Box::new(response_predicate),
366 sender,
367 });
368 }
369
370 // The deadline covers the write as well: `write_report` has no
371 // bounded-time contract of its own, so a wedged device could otherwise
372 // park `send` forever before the response wait even starts.
373 let mut request = std::pin::pin!(
374 async {
375 self.send_and_forget(msg).await?;
376 receiver.await.map_err(|_| ChannelError::NoResponse)
377 }
378 .fuse()
379 );
380
381 let result = select! {
382 result = request => result,
383 () = futures_timer::Delay::new(timeout).fuse() => Err(ChannelError::Timeout),
384 };
385
386 match &result {
387 Ok(_) => trace!(dev, feat, "hidpp response"),
388 Err(e) => trace!(dev, feat, error = ?e, "hidpp no response"),
389 }
390
391 if result.is_err() {
392 // A timeout or write failure leaves the entry queued — remove it
393 // eagerly. After a matched response the read thread has already
394 // taken it, so this is a no-op then.
395 self.remove_pending_message(pending_id);
396 }
397
398 result
399 }
400
401 fn remove_pending_message(&self, id: u64) {
402 let mut pending = lock(&self.pending_messages);
403 if let Some(pos) = pending.iter().position(|msg| msg.id == id) {
404 pending.remove(pos);
405 }
406 }
407
408 /// Sends a HID++ message across the channel and does not wait for a
409 /// response.
410 ///
411 /// If a response is expected, use [`Self::send`],
412 pub async fn send_and_forget(&self, msg: HidppMessage) -> Result<(), ChannelError> {
413 let msg = self.normalize_outgoing(msg);
414 if !self.supports_msg(&msg) {
415 return Err(ChannelError::MessageTypeNotSupported);
416 }
417
418 let mut buf = [0u8; LONG_REPORT_LENGTH];
419 let len = msg.write_raw(&mut buf);
420 self.raw_channel
421 .write_report(&buf[..len])
422 .await
423 .map(|_| ())
424 .map_err(ChannelError::Implementation)
425 }
426
427 /// Write one raw HID report through this channel's already-owned transport.
428 ///
429 /// Reports must contain `1..=64` bytes, including their report ID. The
430 /// operation is bounded by [`SEND_RESPONSE_TIMEOUT`] and returns the exact
431 /// byte count reported by the transport. This is intended for HID++ report
432 /// widths such as the 64-byte `0x12` lighting frame that [`HidppMessage`]
433 /// cannot represent.
434 pub async fn write_raw_report(&self, report: &[u8]) -> Result<usize, ChannelError> {
435 self.write_raw_report_with_timeout(report, SEND_RESPONSE_TIMEOUT)
436 .await
437 }
438
439 async fn write_raw_report_with_timeout(
440 &self,
441 report: &[u8],
442 timeout: Duration,
443 ) -> Result<usize, ChannelError> {
444 if !(1..=MAX_RAW_REPORT_LENGTH).contains(&report.len()) {
445 return Err(ChannelError::InvalidRawReportLength(report.len()));
446 }
447
448 let mut write = std::pin::pin!(self.raw_channel.write_report(report).fuse());
449 select! {
450 result = write => result.map_err(ChannelError::Implementation),
451 () = futures_timer::Delay::new(timeout).fuse() => Err(ChannelError::Timeout),
452 }
453 }
454
455 /// Registers a listener that will be called for every incoming message.
456 ///
457 /// Returns a handle that can be used to remove the listener using a call to
458 /// [`Self::remove_msg_listener`].
459 pub fn add_msg_listener(
460 &self,
461 listener: impl Fn(HidppMessage, bool) + Send + Sync + 'static,
462 ) -> u32 {
463 let hdl = self.next_listener_hdl.fetch_add(1, Ordering::Relaxed);
464 lock(&self.message_listeners).insert(hdl, Arc::new(listener));
465 hdl
466 }
467
468 /// Registers a listener that is automatically removed when the returned
469 /// guard is dropped.
470 pub fn add_msg_listener_guarded(
471 &self,
472 listener: impl Fn(HidppMessage, bool) + Send + Sync + 'static,
473 ) -> MessageListenerGuard {
474 let hdl = self.add_msg_listener(listener);
475 MessageListenerGuard {
476 message_listeners: Arc::downgrade(&self.message_listeners),
477 hdl,
478 }
479 }
480
481 /// Removes a previously registered message listener.
482 ///
483 /// Returns whether a listener was found using the given handle.
484 pub fn remove_msg_listener(&self, hdl: u32) -> bool {
485 lock(&self.message_listeners).remove(&hdl).is_some()
486 }
487}
488
489/// Reads reports from `raw_channel` until `close` fires, resolving each one
490/// against the pending requests and then handing it to every listener.
491///
492/// Runs on the channel's dedicated read thread. `read_report` is always raced
493/// against `close` so a transport that parks forever on a dead device still
494/// lets the channel shut down — see [`RawHidChannel::read_report`].
495async fn read_loop(
496 raw_channel: &dyn RawHidChannel,
497 pending_messages: &Mutex<VecDeque<PendingMessage>>,
498 message_listeners: &Mutex<HashMap<u32, MessageListener>>,
499 mut close: oneshot::Receiver<()>,
500) {
501 let mut buf = [0u8; MAX_REPORT_LENGTH];
502
503 loop {
504 let res = select! {
505 _ = close => break,
506 res = raw_channel.read_report(&mut buf).fuse() => res,
507 };
508
509 let len = match res {
510 Ok(len) => len,
511 Err(error) => {
512 // A silently erroring handle is indistinguishable from a deaf
513 // one without this line.
514 trace!(?error, "read_report error");
515 continue;
516 }
517 };
518
519 let Some(msg) = HidppMessage::read_raw(&buf[..len]) else {
520 trace!(len, "report not HID++ — dropped");
521 continue;
522 };
523
524 let mut matched = false;
525 let pending_count;
526 {
527 let mut msgs = lock(pending_messages);
528 pending_count = msgs.len();
529 if let Some(pos) = msgs.iter().position(|elem| (elem.response_predicate)(&msg))
530 && let Some(waiting) = msgs.remove(pos)
531 {
532 let _ = waiting.sender.send(msg);
533 matched = true;
534 }
535 }
536
537 trace!(
538 len,
539 matched,
540 pending_count,
541 payload = format_args!("{:02x?}", &buf[..len.min(16)]),
542 "raw report received"
543 );
544
545 // Collected before dispatch so a listener may add or remove listeners
546 // without deadlocking on the lock it is being called under.
547 let listeners: Vec<_> = lock(message_listeners).values().cloned().collect();
548 for listener in listeners {
549 listener(msg, matched);
550 }
551 }
552}