noq_proto/connection/paths.rs
1use std::{cmp, net::SocketAddr};
2
3use identity_hash::IntMap;
4use thiserror::Error;
5use tracing::{debug, trace};
6
7use super::{
8 PathStats, SpaceKind,
9 mtud::MtuDiscovery,
10 pacing::Pacer,
11 spaces::{PacketNumberSpace, SentPacket},
12};
13use crate::{
14 ConnectionId, Duration, FourTuple, Instant, TIMER_GRANULARITY, TransportConfig,
15 TransportErrorCode, VarInt,
16 coding::{self, Decodable, Encodable},
17 congestion,
18 connection::{MAX_BACKOFF_EXPONENT, MAX_PTO_INTERVAL},
19 frame::ObservedAddr,
20};
21
22#[cfg(feature = "qlog")]
23use qlog::events::quic::RecoveryMetricsUpdated;
24
25/// Id representing different paths when using multipath extension
26#[cfg_attr(test, derive(test_strategy::Arbitrary))]
27#[derive(Debug, PartialEq, Eq, PartialOrd, Ord, Clone, Copy, Default)]
28pub struct PathId(pub(crate) u32);
29
30impl std::hash::Hash for PathId {
31 fn hash<H: std::hash::Hasher>(&self, state: &mut H) {
32 state.write_u32(self.0);
33 }
34}
35
36impl Decodable for PathId {
37 fn decode<B: bytes::Buf>(r: &mut B) -> coding::Result<Self> {
38 let v = VarInt::decode(r)?;
39 let v = u32::try_from(v.0).map_err(|_| coding::UnexpectedEnd)?;
40 Ok(Self(v))
41 }
42}
43
44impl Encodable for PathId {
45 fn encode<B: bytes::BufMut>(&self, w: &mut B) {
46 VarInt(self.0.into()).encode(w)
47 }
48}
49
50impl PathId {
51 /// The maximum path ID allowed.
52 pub const MAX: Self = Self(u32::MAX);
53
54 /// The 0 path id.
55 pub const ZERO: Self = Self(0);
56
57 /// The number of bytes this [`PathId`] uses when encoded as a [`VarInt`]
58 pub(crate) const fn size(&self) -> usize {
59 VarInt(self.0 as u64).size()
60 }
61
62 /// Saturating integer addition. Computes self + rhs, saturating at the numeric bounds instead
63 /// of overflowing.
64 pub fn saturating_add(self, rhs: impl Into<Self>) -> Self {
65 let rhs = rhs.into();
66 let inner = self.0.saturating_add(rhs.0);
67 Self(inner)
68 }
69
70 /// Saturating integer subtraction. Computes self - rhs, saturating at the numeric bounds
71 /// instead of overflowing.
72 pub fn saturating_sub(self, rhs: impl Into<Self>) -> Self {
73 let rhs = rhs.into();
74 let inner = self.0.saturating_sub(rhs.0);
75 Self(inner)
76 }
77
78 /// Get the next [`PathId`]
79 pub(crate) fn next(&self) -> Self {
80 self.saturating_add(Self(1))
81 }
82
83 /// Get the underlying u32
84 pub(crate) fn as_u32(&self) -> u32 {
85 self.0
86 }
87}
88
89impl std::fmt::Display for PathId {
90 fn fmt(&self, f: &mut std::fmt::Formatter<'_>) -> std::fmt::Result {
91 self.0.fmt(f)
92 }
93}
94
95impl<T: Into<u32>> From<T> for PathId {
96 fn from(source: T) -> Self {
97 Self(source.into())
98 }
99}
100
101/// State needed for a single path ID.
102///
103/// A single path ID can migrate according to the rules in RFC9000 §9, either voluntary or
104/// involuntary. We need to keep the [`PathData`] of the previously used such path available
105/// in order to defend against migration attacks (see RFC9000 §9.3.1, §9.3.2 and §9.3.3) as
106/// well as to support path probing (RFC9000 §9.1).
107#[derive(Debug)]
108pub(super) struct PathState {
109 pub(super) data: PathData,
110 pub(super) prev: Option<(ConnectionId, PathData)>,
111}
112
113impl PathState {
114 /// Update counters to account for a packet becoming acknowledged, lost, or abandoned
115 pub(super) fn remove_in_flight(&mut self, packet: &SentPacket) {
116 // Visit known paths from newest to oldest to find the one `pn` was sent on
117 for path_data in [&mut self.data]
118 .into_iter()
119 .chain(self.prev.as_mut().map(|(_, data)| data))
120 {
121 if path_data.remove_in_flight(packet) {
122 return;
123 }
124 }
125 }
126}
127
128#[derive(Debug)]
129pub(super) struct SentChallengeInfo {
130 /// When was the challenge sent on the wire.
131 pub(super) sent_instant: Instant,
132 /// The 4-tuple on which this path challenge was sent.
133 pub(super) network_path: FourTuple,
134}
135
136/// State of particular network path 4-tuple within a [`PacketNumberSpace`].
137///
138/// With QUIC-Multipath a path is identified by a [`PathId`] and it is possible to have
139/// multiple paths on the same 4-tuple. Furthermore a single QUIC-Multipath path can migrate
140/// to a different 4-tuple, in a similar manner as an RFC9000 connection can use "path
141/// migration" to move to a different 4-tuple. There are thus two states we keep for paths:
142///
143/// - [`PacketNumberSpace`]: The state for a single packet number space, i.e. [`PathId`],
144/// which remains in place across path migrations to different 4-tuples.
145///
146/// This is stored in [`PacketSpace::number_spaces`] indexed on [`PathId`].
147///
148/// - [`PathData`]: The state we keep for each unique 4-tuple within a space. Of note is
149/// that a single [`PathData`] can never belong to a different [`PacketNumberSpace`].
150///
151/// This is stored in [`Connection::paths`] indexed by the current [`PathId`] for which
152/// space it exists. Either as the primary 4-tuple or as the previous 4-tuple just after a
153/// migration.
154///
155/// It follows that there might be several [`PathData`] structs for the same 4-tuple if
156/// several spaces are sharing the same 4-tuple. Note that during the handshake, the
157/// Initial, Handshake and Data spaces for [`PathId::ZERO`] all share the same [`PathData`].
158///
159/// [`PacketSpace::number_spaces`]: super::spaces::PacketSpace::number_spaces
160/// [`Connection::paths`]: super::Connection::paths
161#[derive(Debug)]
162pub(super) struct PathData {
163 pub(super) network_path: FourTuple,
164 pub(super) rtt: RttEstimator,
165 /// Whether we're enabling ECN on outgoing packets
166 pub(super) sending_ecn: bool,
167 /// Congestion controller state
168 pub(super) congestion: Box<dyn congestion::Controller>,
169 /// Pacing state
170 pub(super) pacing: Pacer,
171 /// Whether the last `poll_transmit_on_path` call yielded no data because there was
172 /// no outgoing application data.
173 ///
174 /// The RFC writes:
175 /// > When bytes in flight is smaller than the congestion window and sending is not pacing limited,
176 /// > the congestion window is underutilized. This can happen due to insufficient application data
177 /// > or flow control limits. When this occurs, the congestion window SHOULD NOT be increased in
178 /// > either slow start or congestion avoidance.
179 ///
180 /// (RFC9002, section 7.8)
181 ///
182 /// I.e. when app_limited is true, the congestion controller doesn't increase the congestion window.
183 pub(super) app_limited: bool,
184
185 /// Whether to trigger sending another PATH_CHALLENGE in the next poll_transmit.
186 ///
187 /// This is picked up by [`super::Connection::space_can_send`]. These are **not**
188 /// retransmittable, which is why they are not part of the `PathRetransmits`.
189 ///
190 /// Only used for **on-path** challenges, like RFC9000-style path migration and
191 /// multipath path validation (for opening).
192 ///
193 /// This is **not used** for n0 nat traversal challenge sending, which is off-path.
194 pub(super) pending_challenge: bool,
195 /// On-path path challenges sent that we didn't receive a path response for yet.
196 unconfirmed_challenges: IntMap<u64, SentChallengeInfo>,
197 /// How often we've deemed a path challenge to be lost.
198 ///
199 /// Similar to [`Self::pto_count`], but for on-path path challenges.
200 /// Used to calculate exponential backoff for retrying path challenges.
201 pub(super) lost_challenge_count: u32,
202 /// Whether we're certain the peer can both send and receive on this address
203 ///
204 /// Initially equal to `use_stateless_retry` for servers, and becomes false again on every
205 /// migration. Always true for clients.
206 pub(super) validated: bool,
207 /// Total size of all UDP datagrams sent on this path
208 pub(super) total_sent: u64,
209 /// Total size of all UDP datagrams received on this path
210 pub(super) total_recvd: u64,
211 /// The state of the MTU discovery process
212 pub(super) mtud: MtuDiscovery,
213 /// Packet number of the first packet sent after an RTT sample was collected on this path
214 ///
215 /// Used in persistent congestion determination.
216 pub(super) first_packet_after_rtt_sample: Option<(SpaceKind, u64)>,
217 /// The in-flight packets and bytes
218 ///
219 /// Note that this is across all spaces on this path
220 pub(super) in_flight: InFlight,
221 /// Queue of data that must be sent over this specific [`PathData::generation`] path.
222 pub(super) pending: PathRetransmits,
223 /// Observed address frame with the largest sequence number received from the peer on this path.
224 pub(super) last_observed_addr_report: Option<ObservedAddr>,
225 /// The QUIC-MULTIPATH path status
226 pub(super) status: PathStatusState,
227 /// Number of the first packet sent on this path
228 ///
229 /// With RFC9000 §9 style migration (i.e. not multipath) the PathId does not change and
230 /// hence packet numbers continue. This is used to determine whether a packet was sent
231 /// on such an earlier path. Insufficient to determine if a packet was sent on a later
232 /// path.
233 first_packet: Option<u64>,
234 /// The number of times a tail-loss probe has been sent without receiving an ack.
235 ///
236 /// This is incremented by one every time the [`LossDetection`] timer fires because a
237 /// tail-loss probe needs to be sent. Once an acknowledgement for a packet is received
238 /// again it is reset to 0. Used to compute the PTO duration.
239 ///
240 /// [`LossDetection`]: super::timer::PathTimer::LossDetection
241 pub(super) pto_count: u32,
242
243 //
244 // Per-path idle & keep alive
245 //
246 /// Idle timeout for the path
247 ///
248 /// If expired, the path will be abandoned. This is different from the connection-wide
249 /// idle timeout which closes the connection if expired.
250 pub(super) idle_timeout: Option<Duration>,
251 /// Keep alives to send on this path
252 ///
253 /// There is also a connection-level keep alive configured in the
254 /// [`TransportParameters`]. This triggers activity on any path which can keep the
255 /// connection alive.
256 ///
257 /// [`TransportParameters`]: crate::transport_parameters::TransportParameters
258 pub(super) keep_alive: Option<Duration>,
259 /// Whether to reset the idle timer when the next ack-eliciting packet is sent.
260 ///
261 /// Whenever we receive an authenticated packet the connection and path idle timers are
262 /// reset if a maximum idle timeout was negotiated. However on the first ack-eliciting
263 /// packet *sent* after this the idle timer also needs to be reset to avoid the idle
264 /// timer firing while the sent packet is in-fight. See
265 /// <https://www.rfc-editor.org/rfc/rfc9000.html#section-10.1>.
266 pub(super) permit_idle_reset: bool,
267
268 /// Whether we're currently draining the path after having abandoned it.
269 ///
270 /// This should only be true when a path discard timer is armed, and after the path was
271 /// abandoned (and added to the abandoned_paths set).
272 ///
273 /// This will only ever be set from false to true.
274 pub(super) draining: bool,
275
276 /// Snapshot of the qlog recovery metrics
277 #[cfg(feature = "qlog")]
278 recovery_metrics: RecoveryMetrics,
279
280 /// Tag uniquely identifying a path in a connection.
281 ///
282 /// When a migration happens on the same [`PathId`] we still detect a change in the
283 /// 4-tuple and generate a new [`PathData`] for it. Each such generation has a unique
284 /// value to keep track of which 4-tuple a packet belonged to.
285 generation: u64,
286}
287
288impl PathData {
289 pub(super) fn new(
290 network_path: FourTuple,
291 allow_mtud: bool,
292 peer_max_udp_payload_size: Option<u16>,
293 generation: u64,
294 now: Instant,
295 config: &TransportConfig,
296 ) -> Self {
297 let congestion = config
298 .congestion_controller_factory
299 .clone()
300 .build(now, config.get_initial_mtu());
301 Self {
302 network_path,
303 rtt: RttEstimator::new(config.initial_rtt),
304 sending_ecn: true,
305 pacing: Pacer::new(
306 config.initial_rtt,
307 congestion.initial_window(),
308 config.get_initial_mtu(),
309 config.max_outgoing_bytes_per_second,
310 now,
311 ),
312 congestion,
313 app_limited: false,
314 unconfirmed_challenges: Default::default(),
315 lost_challenge_count: 0,
316 pending_challenge: false,
317 validated: false,
318 total_sent: 0,
319 total_recvd: 0,
320 mtud: config
321 .mtu_discovery_config
322 .as_ref()
323 .filter(|_| allow_mtud)
324 .map_or_else(
325 || MtuDiscovery::disabled(config.get_initial_mtu(), config.min_mtu),
326 |mtud_config| {
327 MtuDiscovery::new(
328 config.get_initial_mtu(),
329 config.min_mtu,
330 peer_max_udp_payload_size,
331 mtud_config.clone(),
332 )
333 },
334 ),
335 first_packet_after_rtt_sample: None,
336 in_flight: InFlight::new(),
337 pending: PathRetransmits::default(),
338 last_observed_addr_report: None,
339 status: Default::default(),
340 first_packet: None,
341 pto_count: 0,
342 idle_timeout: config.default_path_max_idle_timeout,
343 keep_alive: config.default_path_keep_alive_interval,
344 permit_idle_reset: true,
345 draining: false,
346 #[cfg(feature = "qlog")]
347 recovery_metrics: RecoveryMetrics::default(),
348 generation,
349 }
350 }
351
352 /// Create a new path from a previous one.
353 ///
354 /// This should only be called when migrating paths.
355 pub(super) fn from_previous(
356 network_path: FourTuple,
357 prev: &Self,
358 generation: u64,
359 now: Instant,
360 ) -> Self {
361 let congestion = prev.congestion.clone_box();
362 let smoothed_rtt = prev.rtt.get();
363 Self {
364 network_path,
365 rtt: prev.rtt,
366 pacing: Pacer::new(
367 smoothed_rtt,
368 congestion.window(),
369 prev.current_mtu(),
370 prev.pacing.max_bytes_per_second(),
371 now,
372 ),
373 sending_ecn: true,
374 congestion,
375 app_limited: false,
376 unconfirmed_challenges: Default::default(),
377 lost_challenge_count: 0,
378 pending_challenge: false,
379 validated: false,
380 total_sent: 0,
381 total_recvd: 0,
382 mtud: prev.mtud.clone(),
383 first_packet_after_rtt_sample: prev.first_packet_after_rtt_sample,
384 in_flight: InFlight::new(),
385 pending: PathRetransmits::default(),
386 last_observed_addr_report: None,
387 status: prev.status.clone(),
388 first_packet: None,
389 pto_count: 0,
390 idle_timeout: prev.idle_timeout,
391 keep_alive: prev.keep_alive,
392 permit_idle_reset: true,
393 draining: false,
394 #[cfg(feature = "qlog")]
395 recovery_metrics: prev.recovery_metrics.clone(),
396 generation,
397 }
398 }
399
400 /// Whether we're in the process of validating this path with PATH_CHALLENGEs
401 pub(super) fn is_validating_path(&self) -> bool {
402 !self.unconfirmed_challenges.is_empty() || self.pending_challenge
403 }
404
405 /// Indicates whether we're a server that hasn't validated the peer's address and hasn't
406 /// received enough data from the peer to permit sending `bytes_to_send` additional bytes
407 pub(super) fn anti_amplification_blocked(&self, bytes_to_send: u64) -> bool {
408 !self.validated && self.total_recvd * 3 < self.total_sent + bytes_to_send
409 }
410
411 /// Returns the path's current MTU
412 pub(super) fn current_mtu(&self) -> u16 {
413 self.mtud.current_mtu()
414 }
415
416 /// Account for transmission of `packet` with number `pn` in `space`
417 pub(super) fn sent(&mut self, pn: u64, packet: SentPacket, space: &mut PacketNumberSpace) {
418 self.in_flight.insert(&packet);
419 if self.first_packet.is_none() {
420 self.first_packet = Some(pn);
421 }
422 if let Some(forgotten) = space.sent(pn, packet) {
423 self.remove_in_flight(&forgotten);
424 }
425 }
426
427 pub(super) fn record_path_challenge_sent(
428 &mut self,
429 now: Instant,
430 token: u64,
431 network_path: FourTuple,
432 ) {
433 let info = SentChallengeInfo {
434 sent_instant: now,
435 network_path,
436 };
437 debug_assert_eq!(network_path, self.network_path);
438 self.unconfirmed_challenges.insert(token, info);
439 }
440
441 /// Remove `packet` with number `pn` from this path's congestion control counters, or return
442 /// `false` if `pn` was sent before this path was established.
443 pub(super) fn remove_in_flight(&mut self, packet: &SentPacket) -> bool {
444 if packet.path_generation != self.generation {
445 return false;
446 }
447 self.in_flight.remove(packet);
448 true
449 }
450
451 /// Increment the total size of sent UDP datagrams
452 pub(super) fn inc_total_sent(&mut self, inc: u64) {
453 self.total_sent = self.total_sent.saturating_add(inc);
454 if !self.validated {
455 trace!(
456 network_path = %self.network_path,
457 anti_amplification_budget = %(self.total_recvd * 3).saturating_sub(self.total_sent),
458 "anti amplification budget decreased"
459 );
460 }
461 }
462
463 /// Increment the total size of received UDP datagrams
464 pub(super) fn inc_total_recvd(&mut self, inc: u64) {
465 self.total_recvd = self.total_recvd.saturating_add(inc);
466 if !self.validated {
467 trace!(
468 network_path = %self.network_path,
469 anti_amplification_budget = %(self.total_recvd * 3).saturating_sub(self.total_sent),
470 "anti amplification budget increased"
471 );
472 }
473 }
474
475 /// The earliest time at which an on-path challenge we sent is considered lost.
476 pub(super) fn earliest_on_path_expiring_challenge(&self) -> Option<Instant> {
477 if self.unconfirmed_challenges.is_empty() {
478 return None;
479 }
480 let duration = self.on_path_challenge_pto();
481 self.unconfirmed_challenges
482 .values()
483 .map(|info| info.sent_instant + duration)
484 .min()
485 }
486
487 /// The duration after which a PTO expires for an on-path challenge, if sent now.
488 ///
489 /// Since challenges need an on-path response rather than just an ACK that can be sent
490 /// on any path they need a different timer from the
491 /// [`PathTimer::LossDetection`]. Functionally this behaves as the probe timeout
492 /// however.
493 ///
494 /// [`PathTimer::LossDetection`]: super::timer::PathTimer::LossDetection
495 pub(super) fn on_path_challenge_pto(&self) -> Duration {
496 let backoff = 2u32.pow(self.lost_challenge_count.min(MAX_BACKOFF_EXPONENT));
497 let duration = self.rtt.pto_base() * backoff;
498 duration.min(MAX_PTO_INTERVAL)
499 }
500
501 /// Handle receiving a PATH_RESPONSE.
502 pub(super) fn on_path_response_received(
503 &mut self,
504 now: Instant,
505 token: u64,
506 ) -> OnPathResponseReceived {
507 // > § 8.2.3
508 // > Path validation succeeds when a PATH_RESPONSE frame is received that contains the
509 // > data that was sent in a previous PATH_CHALLENGE frame. A PATH_RESPONSE frame
510 // > received on any network path validates the path on which the PATH_CHALLENGE was
511 // > sent.
512 //
513 // At this point we have three potentially different network paths:
514 // - current network path (`Self::network_path`)
515 // - network path used to send the path challenge (`SentChallengeInfo::network_path`)
516 // - network path over which the response arrived (not needed)
517 //
518 // As per above spec quote, this only validates the network path on which this was
519 // *sent*, regardless of the path on which it was received in order to protect
520 // against off-path packet forwarding attacks.
521 match self.unconfirmed_challenges.remove(&token) {
522 // Response to an on-path PathChallenge that validates this path.
523 // The sent path should match the current path. However, it's possible that the
524 // challenge was sent when no local_ip was known. This case is allowed as well.
525 Some(info) if info.network_path.is_probably_same_path(&self.network_path) => {
526 // Do not update or set the self.network_path.local_ip:
527 // Connection::process_payload handles this later when required. We can mark
528 // the path as validated though, because for a change in local_ip only we do
529 // not need to re-validate the path.
530 let sent_instant = info.sent_instant;
531 if !std::mem::replace(&mut self.validated, true) {
532 trace!("new path validated");
533 }
534 // Clear any other on-path sent challenges and stop sending new ones.
535 self.reset_on_path_challenges();
536
537 // This RTT can only be used for the initial RTT, not as a normal
538 // sample: https://www.rfc-editor.org/rfc/rfc9002#section-6.2.2-2.
539 let rtt = now.saturating_duration_since(sent_instant);
540 self.rtt.reset_initial_rtt(rtt);
541
542 OnPathResponseReceived::OnPath
543 }
544 // Response to an on-path PathChallenge that does not validate this path.
545 Some(info) => {
546 // This is a valid path response, but this validates a 4-tuple we no longer
547 // have in use. Keep only sent challenges for the current path.
548 self.unconfirmed_challenges
549 .retain(|_token, i| i.network_path == self.network_path);
550
551 // If there are no challenges for the current path, schedule one
552 if !self.unconfirmed_challenges.is_empty() {
553 self.pending_challenge = true;
554 }
555 OnPathResponseReceived::Ignored {
556 sent_on: info.network_path,
557 current_path: self.network_path,
558 }
559 }
560 None => {
561 // Response to an unknown PathChallenge. Does not indicate failure.
562 OnPathResponseReceived::Unknown
563 }
564 }
565 }
566
567 /// Removes all on-path challenges we remember and cancels sending new on-path challenges.
568 pub(super) fn reset_on_path_challenges(&mut self) {
569 self.unconfirmed_challenges.clear();
570 self.pending_challenge = false;
571 self.lost_challenge_count = 0;
572 }
573
574 #[cfg(feature = "qlog")]
575 pub(super) fn qlog_recovery_metrics(
576 &mut self,
577 path_id: PathId,
578 ) -> Option<RecoveryMetricsUpdated> {
579 let controller_metrics = self.congestion.metrics();
580
581 let metrics = RecoveryMetrics {
582 min_rtt: Some(self.rtt.min),
583 smoothed_rtt: Some(self.rtt.get()),
584 latest_rtt: Some(self.rtt.latest),
585 rtt_variance: Some(self.rtt.var),
586 pto_count: Some(self.pto_count),
587 bytes_in_flight: Some(self.in_flight.bytes),
588 packets_in_flight: Some(self.in_flight.ack_eliciting),
589
590 congestion_window: Some(controller_metrics.congestion_window),
591 ssthresh: controller_metrics.ssthresh,
592 pacing_rate: controller_metrics.pacing_rate,
593 };
594
595 let event = metrics.to_qlog_event(path_id, &self.recovery_metrics);
596 self.recovery_metrics = metrics;
597 event
598 }
599
600 /// Return how long we need to wait before sending `bytes_to_send`
601 ///
602 /// See [`Pacer::delay`].
603 pub(super) fn pacing_delay(&mut self, bytes_to_send: u64, now: Instant) -> Option<Duration> {
604 let smoothed_rtt = self.rtt.get();
605 let metrics = self.congestion.metrics();
606 self.pacing.delay(
607 smoothed_rtt,
608 bytes_to_send,
609 self.current_mtu(),
610 metrics.congestion_window,
611 now,
612 metrics.send_quantum,
613 metrics.pacing_rate,
614 )
615 }
616
617 /// Updates the last observed address report received on this path.
618 ///
619 /// If the address was updated, it's returned to be informed to the application.
620 #[must_use = "updated observed address must be reported to the application"]
621 pub(super) fn update_observed_addr_report(
622 &mut self,
623 observed: ObservedAddr,
624 ) -> Option<SocketAddr> {
625 match self.last_observed_addr_report.as_mut() {
626 Some(prev) => {
627 if prev.seq_no >= observed.seq_no {
628 // frames that do not increase the sequence number on this path are ignored
629 None
630 } else if prev.ip == observed.ip && prev.port == observed.port {
631 // keep track of the last seq_no but do not report the address as updated
632 prev.seq_no = observed.seq_no;
633 None
634 } else {
635 let addr = observed.socket_addr();
636 self.last_observed_addr_report = Some(observed);
637 Some(addr)
638 }
639 }
640 None => {
641 let addr = observed.socket_addr();
642 self.last_observed_addr_report = Some(observed);
643 Some(addr)
644 }
645 }
646 }
647
648 pub(crate) fn remote_status(&self) -> Option<PathStatus> {
649 self.status.remote_status.map(|(_seq, status)| status)
650 }
651
652 pub(crate) fn local_status(&self) -> PathStatus {
653 self.status.local_status
654 }
655
656 /// Tag uniquely identifying a path in a connection.
657 ///
658 /// When a migration happens on the same [`PathId`] we still detect a change in the
659 /// 4-tuple and generate a new [`PathData`] for it. Each such generation has a unique
660 /// value to keep track of which 4-tuple a packet belonged to.
661 pub(super) fn generation(&self) -> u64 {
662 self.generation
663 }
664}
665
666pub(super) enum OnPathResponseReceived {
667 /// This response validates the path on its current remote address.
668 OnPath,
669 /// The received token is unknown.
670 Unknown,
671 /// The response is valid but it's not usable for path validation.
672 Ignored {
673 sent_on: FourTuple,
674 current_path: FourTuple,
675 },
676}
677
678/// Congestion metrics as described in [`recovery_metrics_updated`].
679///
680/// [`recovery_metrics_updated`]: https://datatracker.ietf.org/doc/html/draft-ietf-quic-qlog-quic-events.html#name-recovery_metrics_updated
681#[cfg(feature = "qlog")]
682#[derive(Default, Clone, PartialEq, Debug)]
683#[non_exhaustive]
684struct RecoveryMetrics {
685 pub min_rtt: Option<Duration>,
686 pub smoothed_rtt: Option<Duration>,
687 pub latest_rtt: Option<Duration>,
688 pub rtt_variance: Option<Duration>,
689 pub pto_count: Option<u32>,
690 pub bytes_in_flight: Option<u64>,
691 pub packets_in_flight: Option<u64>,
692 pub congestion_window: Option<u64>,
693 pub ssthresh: Option<u64>,
694 pub pacing_rate: Option<u64>,
695}
696
697#[cfg(feature = "qlog")]
698impl RecoveryMetrics {
699 /// Retain only values that have been updated since the last snapshot.
700 fn retain_updated(&self, previous: &Self) -> Self {
701 macro_rules! keep_if_changed {
702 ($name:ident) => {
703 if previous.$name == self.$name {
704 None
705 } else {
706 self.$name
707 }
708 };
709 }
710
711 Self {
712 min_rtt: keep_if_changed!(min_rtt),
713 smoothed_rtt: keep_if_changed!(smoothed_rtt),
714 latest_rtt: keep_if_changed!(latest_rtt),
715 rtt_variance: keep_if_changed!(rtt_variance),
716 pto_count: keep_if_changed!(pto_count),
717 bytes_in_flight: keep_if_changed!(bytes_in_flight),
718 packets_in_flight: keep_if_changed!(packets_in_flight),
719 congestion_window: keep_if_changed!(congestion_window),
720 ssthresh: keep_if_changed!(ssthresh),
721 pacing_rate: keep_if_changed!(pacing_rate),
722 }
723 }
724
725 /// Emit a `MetricsUpdated` event containing only updated values
726 fn to_qlog_event(&self, path_id: PathId, previous: &Self) -> Option<RecoveryMetricsUpdated> {
727 let updated = self.retain_updated(previous);
728
729 if updated == Self::default() {
730 return None;
731 }
732
733 Some(RecoveryMetricsUpdated {
734 min_rtt: updated.min_rtt.map(|rtt| rtt.as_micros() as f32 / 1000.0),
735 smoothed_rtt: updated
736 .smoothed_rtt
737 .map(|rtt| rtt.as_micros() as f32 / 1000.0),
738 latest_rtt: updated
739 .latest_rtt
740 .map(|rtt| rtt.as_micros() as f32 / 1000.0),
741 rtt_variance: updated
742 .rtt_variance
743 .map(|rtt| rtt.as_micros() as f32 / 1000.0),
744 pto_count: updated
745 .pto_count
746 .map(|count| count.try_into().unwrap_or(u16::MAX)),
747 bytes_in_flight: updated.bytes_in_flight,
748 packets_in_flight: updated.packets_in_flight,
749 congestion_window: updated.congestion_window,
750 ssthresh: updated.ssthresh,
751 pacing_rate: updated.pacing_rate,
752 path_id: Some(path_id.as_u32() as u64),
753 ex_data: Default::default(),
754 })
755 }
756}
757
758/// RTT estimation for a particular network path
759#[derive(Copy, Clone, Debug)]
760pub struct RttEstimator {
761 /// The most recent RTT measurement made when receiving an ack for a previously unacked packet
762 latest: Duration,
763 /// The smoothed RTT of the connection, computed as described in RFC6298
764 smoothed: Option<Duration>,
765 /// The RTT variance, computed as described in RFC6298
766 var: Duration,
767 /// The minimum RTT seen in the connection, ignoring ack delay.
768 min: Duration,
769}
770
771impl RttEstimator {
772 pub(crate) fn new(initial_rtt: Duration) -> Self {
773 Self {
774 latest: initial_rtt,
775 smoothed: None,
776 var: initial_rtt / 2,
777 min: initial_rtt,
778 }
779 }
780
781 /// Resets the estimator using a new initial_rtt value.
782 ///
783 /// This only resets the initial_rtt **if** no samples have been recorded yet. If there
784 /// are any recorded samples the initial estimate can not be adjusted after the fact.
785 ///
786 /// This is useful when you receive a PATH_RESPONSE in the first packet received on a
787 /// new path. In this case you can use the delay of the PATH_CHALLENGE-PATH_RESPONSE as
788 /// the initial RTT to get a better expected estimation.
789 ///
790 /// A PATH_CHALLENGE-PATH_RESPONSE pair later in the connection should not be used
791 /// explicitly as an estimation since PATH_CHALLENGE is an ACK-eliciting packet itself
792 /// already.
793 pub(crate) fn reset_initial_rtt(&mut self, initial_rtt: Duration) {
794 if self.smoothed.is_none() {
795 self.latest = initial_rtt;
796 self.var = initial_rtt / 2;
797 self.min = initial_rtt;
798 }
799 }
800
801 /// The current best RTT estimation.
802 pub fn get(&self) -> Duration {
803 self.smoothed.unwrap_or(self.latest)
804 }
805
806 /// Conservative estimate of RTT
807 ///
808 /// Takes the maximum of smoothed and latest RTT, as recommended
809 /// in 6.1.2 of the recovery spec (draft 29).
810 pub fn conservative(&self) -> Duration {
811 self.get().max(self.latest)
812 }
813
814 /// Minimum RTT registered so far for this estimator.
815 pub fn min(&self) -> Duration {
816 self.min
817 }
818
819 /// PTO computed as described in RFC9002#6.2.1.
820 pub(crate) fn pto_base(&self) -> Duration {
821 self.get() + cmp::max(4 * self.var, TIMER_GRANULARITY)
822 }
823
824 /// Records an RTT sample.
825 pub(crate) fn update(&mut self, ack_delay: Duration, rtt: Duration) {
826 self.latest = rtt;
827 // https://www.rfc-editor.org/rfc/rfc9002.html#section-5.2-3:
828 // min_rtt does not adjust for ack_delay to avoid underestimating.
829 self.min = cmp::min(self.min, self.latest);
830 // Based on RFC6298.
831 if let Some(smoothed) = self.smoothed {
832 let adjusted_rtt = if self.min + ack_delay <= self.latest {
833 self.latest - ack_delay
834 } else {
835 self.latest
836 };
837 let var_sample = smoothed.abs_diff(adjusted_rtt);
838 self.var = (3 * self.var + var_sample) / 4;
839 self.smoothed = Some((7 * smoothed + adjusted_rtt) / 8);
840 } else {
841 self.smoothed = Some(self.latest);
842 self.var = self.latest / 2;
843 self.min = self.latest;
844 }
845 }
846}
847
848#[derive(Default, Debug)]
849pub(crate) struct PathResponses {
850 pending: Vec<PathResponse>,
851}
852
853impl PathResponses {
854 pub(crate) fn push(&mut self, packet: u64, token: u64, network_path: FourTuple) {
855 /// An arbitrary permissive limit to prevent abuse.
856 ///
857 /// If we've negotiated the n0 NAT Traversal extension, and one user might have a lot
858 /// of addresses, e.g. because of having lots of interfaces (we've seen >25 interfaces
859 /// on Macs with docker and other things), then we need to be able to process at least
860 /// as many PATH_CHALLENGE frames as there are interfaces.
861 /// On top of that, there are retries, which make it possible that we need to process
862 /// even more.
863 ///
864 /// Considering that there can be up to 2 `PathData`s per active `PathId`, and
865 /// reasonable default values for maximum concurrent multipath paths are ~8 and each
866 /// `PathResponse` struct takes up 72 bytes at the moment this, means an attacker can
867 /// cause us to keep `32 * 2 * 8 * 72 = ~37KB` of data around.
868 const MAX_PATH_RESPONSES: usize = 32;
869 let response = PathResponse {
870 packet,
871 token,
872 network_path,
873 };
874 let existing = self
875 .pending
876 .iter_mut()
877 .find(|x| x.network_path.remote == network_path.remote);
878 if let Some(existing) = existing {
879 // Update a queued response
880 if existing.packet <= packet {
881 *existing = response;
882 }
883 return;
884 }
885 if self.pending.len() < MAX_PATH_RESPONSES {
886 self.pending.push(response);
887 } else {
888 // We don't expect to ever hit this with well-behaved peers, so we don't bother dropping
889 // older challenges.
890 trace!("ignoring excessive PATH_CHALLENGE");
891 }
892 }
893
894 pub(crate) fn pop_off_path(&mut self, network_path: FourTuple) -> Option<(u64, FourTuple)> {
895 let response = *self.pending.last()?;
896 // We use an exact comparison here, because once we've received for the first time,
897 // we really should either already have a local_ip, or we will never get one
898 // (because our OS doesn't support it). And even if we get it wrong we are only
899 // slightly less efficient and would not include other on-path data in the packet.
900 if response.network_path == network_path {
901 // We don't bother searching further because we expect that the on-path response will
902 // get drained in the immediate future by a call to `pop_on_path`
903 return None;
904 }
905 self.pending.pop();
906 Some((response.token, response.network_path))
907 }
908
909 pub(crate) fn pop_on_path(&mut self, network_path: FourTuple) -> Option<u64> {
910 let response = *self.pending.last()?;
911 // Using an exact comparison. See explanation in `pop_off_path`.
912 if response.network_path != network_path {
913 // We don't bother searching further because we expect that the off-path response will
914 // get drained in the immediate future by a call to `pop_off_path`
915 return None;
916 }
917 self.pending.pop();
918 Some(response.token)
919 }
920
921 /// Whether the next [`Self::pop_on_path`] will return something to send.
922 pub(crate) fn has_pending_on_path(&self, network_path: FourTuple) -> bool {
923 self.pending
924 .last()
925 .is_some_and(|response| response.network_path == network_path)
926 }
927
928 pub(crate) fn is_empty(&self) -> bool {
929 self.pending.is_empty()
930 }
931}
932
933#[derive(Copy, Clone, Debug)]
934struct PathResponse {
935 /// The packet number the corresponding PATH_CHALLENGE was received in
936 packet: u64,
937 /// The token of the PATH_CHALLENGE
938 token: u64,
939 /// The path the corresponding PATH_CHALLENGE was received from
940 network_path: FourTuple,
941}
942
943/// Summary statistics of packets that have been sent on a particular path, but which have not yet
944/// been acked or deemed lost
945#[derive(Debug)]
946pub(super) struct InFlight {
947 /// Sum of the sizes of all sent packets considered "in flight" by congestion control
948 ///
949 /// The size does not include IP or UDP overhead. Packets only containing ACK frames do not
950 /// count towards this to ensure congestion control does not impede congestion feedback.
951 pub(super) bytes: u64,
952 /// Number of packets in flight containing frames other than ACK and PADDING
953 ///
954 /// This can be 0 even when bytes is not 0 because PADDING frames cause a packet to be
955 /// considered "in flight" by congestion control. However, if this is nonzero, bytes will always
956 /// also be nonzero.
957 pub(super) ack_eliciting: u64,
958}
959
960impl InFlight {
961 fn new() -> Self {
962 Self {
963 bytes: 0,
964 ack_eliciting: 0,
965 }
966 }
967
968 fn insert(&mut self, packet: &SentPacket) {
969 self.bytes += u64::from(packet.size);
970 self.ack_eliciting += u64::from(packet.ack_eliciting);
971 }
972
973 /// Update counters to account for a packet becoming acknowledged, lost, or abandoned
974 fn remove(&mut self, packet: &SentPacket) {
975 self.bytes -= u64::from(packet.size);
976 self.ack_eliciting -= u64::from(packet.ack_eliciting);
977 }
978}
979
980/// State for QUIC-MULTIPATH PATH_STATUS_AVAILABLE and PATH_STATUS_BACKUP frames
981#[derive(Debug, Clone, Default)]
982pub(super) struct PathStatusState {
983 /// The local status
984 local_status: PathStatus,
985 /// Local sequence number, for both PATH_STATUS_AVAILABLE and PATH_STATUS_BACKUP
986 ///
987 /// This is the number of the *next* path status frame to be sent.
988 local_seq: VarInt,
989 /// The status set by the remote
990 remote_status: Option<(VarInt, PathStatus)>,
991}
992
993impl PathStatusState {
994 /// To be called on received PATH_STATUS_AVAILABLE/PATH_STATUS_BACKUP frames
995 pub(super) fn remote_update(&mut self, status: PathStatus, seq: VarInt) {
996 if self.remote_status.is_some_and(|(curr, _)| curr >= seq) {
997 return trace!(%seq, "ignoring path status update");
998 }
999
1000 let prev = self.remote_status.replace((seq, status)).map(|(_, s)| s);
1001 if prev != Some(status) {
1002 debug!(?status, ?seq, "remote changed path status");
1003 }
1004 }
1005
1006 /// Updates the local status
1007 ///
1008 /// If the local status changed, the previous value is returned
1009 pub(super) fn local_update(&mut self, status: PathStatus) -> Option<PathStatus> {
1010 if self.local_status == status {
1011 return None;
1012 }
1013
1014 self.local_seq = self.local_seq.saturating_add(1u8);
1015 Some(std::mem::replace(&mut self.local_status, status))
1016 }
1017
1018 pub(crate) fn seq(&self) -> VarInt {
1019 self.local_seq
1020 }
1021}
1022
1023/// The QUIC-MULTIPATH path status
1024///
1025/// See section "3.3 Path Status Management":
1026/// <https://quicwg.org/multipath/draft-ietf-quic-multipath.html#name-path-status-management>
1027#[cfg_attr(test, derive(test_strategy::Arbitrary))]
1028#[derive(Debug, Copy, Clone, Default, PartialEq, Eq)]
1029pub enum PathStatus {
1030 /// Paths marked with as available will be used when scheduling packets
1031 ///
1032 /// If multiple paths are available, packets will be scheduled on whichever has
1033 /// capacity.
1034 #[default]
1035 Available,
1036 /// Paths marked as backup will only be used if there are no available paths
1037 ///
1038 /// If the max_idle_timeout is specified the path will be kept alive so that it does not
1039 /// expire.
1040 Backup,
1041}
1042
1043/// Application events about paths
1044#[derive(Debug, Clone, PartialEq, Eq)]
1045#[non_exhaustive]
1046pub enum PathEvent {
1047 /// A new path has established connection with the peer.
1048 #[non_exhaustive]
1049 Established {
1050 /// The path which can now be used for application data.
1051 id: PathId,
1052 },
1053 /// A path was abandoned and is no longer usable.
1054 ///
1055 /// Note that this may be the first event for a path: If a path is abandoned
1056 /// before having been established, no [`Self::Established`] event is emitted.
1057 ///
1058 /// This event will always be followed by [`Self::Discarded`] after some time.
1059 #[non_exhaustive]
1060 Abandoned {
1061 /// The path that was abandoned.
1062 id: PathId,
1063 /// Reason why this path was abandoned.
1064 reason: PathAbandonReason,
1065 },
1066 /// A path was discarded and all remaining state for it has been removed.
1067 ///
1068 /// This event is the last event for a path, and is always emitted after [`Self::Abandoned`].
1069 #[non_exhaustive]
1070 Discarded {
1071 /// Which path had its state dropped
1072 id: PathId,
1073 /// The final path stats, they are no longer available via [`Connection::stats`]
1074 ///
1075 /// [`Connection::stats`]: super::Connection::stats
1076 path_stats: Box<PathStats>,
1077 },
1078 /// The remote changed the status of the path
1079 ///
1080 /// The local status is not changed because of this event. It is up to the application
1081 /// to update the local status, which is used for packet scheduling, when the remote
1082 /// changes the status.
1083 #[non_exhaustive]
1084 RemoteStatus {
1085 /// Path which has changed status
1086 id: PathId,
1087 /// The new status set by the remote
1088 status: PathStatus,
1089 },
1090 /// Received an observation of our external address from the peer.
1091 #[non_exhaustive]
1092 ObservedAddr {
1093 /// Path over which the observed address was reported, [`PathId::ZERO`] when multipath is
1094 /// not negotiated
1095 id: PathId,
1096 /// The address observed by the remote over this path
1097 addr: SocketAddr,
1098 },
1099}
1100
1101/// Reason for why a path was abandoned.
1102#[derive(Debug, Clone, Eq, PartialEq)]
1103pub enum PathAbandonReason {
1104 /// The path was closed locally by the application.
1105 ApplicationClosed {
1106 /// The error code to be sent with the abandon frame.
1107 error_code: VarInt,
1108 },
1109 /// We didn't receive a path response in time after opening this path.
1110 ///
1111 /// This event is no longer emitted, when validation fails a path is only abandoned once
1112 /// there's a path timeout and the [`Self::TimedOut`] event will be emitted instead.
1113 #[deprecated(
1114 since = "1.1.0",
1115 note = "This event is no longer emitted, TimedOut will be emitted instead"
1116 )]
1117 ValidationFailed,
1118 /// We didn't receive any data from the remote within the path's idle timeout.
1119 TimedOut,
1120 /// The path became unusable after a local network change.
1121 UnusableAfterNetworkChange,
1122 /// The remote closed the path.
1123 RemoteAbandoned {
1124 /// The error that was sent with the abandon frame.
1125 error_code: VarInt,
1126 },
1127}
1128
1129impl PathAbandonReason {
1130 /// Whether this abandon was initiated by the remote peer.
1131 pub(crate) fn is_remote(&self) -> bool {
1132 matches!(self, Self::RemoteAbandoned { .. })
1133 }
1134
1135 /// Returns the error code to send with a PATH_ABANDON frame.
1136 pub(crate) fn error_code(&self) -> TransportErrorCode {
1137 match self {
1138 Self::ApplicationClosed { error_code } => (*error_code).into(),
1139 #[allow(deprecated)]
1140 Self::ValidationFailed | Self::TimedOut | Self::UnusableAfterNetworkChange => {
1141 TransportErrorCode::PATH_UNSTABLE_OR_POOR
1142 }
1143 Self::RemoteAbandoned { error_code } => (*error_code).into(),
1144 }
1145 }
1146}
1147
1148/// Error from setting path status
1149#[derive(Debug, Error, Clone, PartialEq, Eq)]
1150pub enum SetPathStatusError {
1151 /// Error indicating that a path has not been opened or has already been abandoned
1152 #[error("closed path")]
1153 ClosedPath,
1154 /// Error indicating that this operation requires multipath to be negotiated whereas it hasn't been
1155 #[error("multipath not negotiated")]
1156 MultipathNotNegotiated,
1157}
1158
1159/// Error indicating that a path has not been opened or has already been abandoned
1160#[derive(Debug, Default, Error, Clone, PartialEq, Eq)]
1161#[error("closed path")]
1162pub struct ClosedPath {
1163 pub(super) _private: (),
1164}
1165
1166/// Retransmittable data specific to a [`PathData::generation`].
1167#[derive(Debug, Default, Clone)]
1168pub(super) struct PathRetransmits {
1169 /// Whether this path needs to report its remote address back to the peer.
1170 ///
1171 /// This only happens if both peers agree to do so based on their transport parameters.
1172 pub(super) observed_address: bool,
1173}
1174
1175impl PathRetransmits {
1176 pub(super) fn is_empty(&self) -> bool {
1177 let Self { observed_address } = self;
1178 !observed_address
1179 }
1180}
1181
1182impl std::ops::BitOrAssign for PathRetransmits {
1183 fn bitor_assign(&mut self, rhs: Self) {
1184 let Self { observed_address } = rhs;
1185 self.observed_address |= observed_address;
1186 }
1187}
1188
1189#[cfg(test)]
1190mod tests {
1191 use super::*;
1192
1193 #[test]
1194 fn test_path_id_saturating_add() {
1195 // add within range behaves normally
1196 let large: PathId = u16::MAX.into();
1197 let next = u32::from(u16::MAX) + 1;
1198 assert_eq!(large.saturating_add(1u8), PathId::from(next));
1199
1200 // outside range saturates
1201 assert_eq!(PathId::MAX.saturating_add(1u8), PathId::MAX)
1202 }
1203}