tcp.rs 225 KB

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  1. // Heads up! Before working on this file you should read, at least, RFC 793 and
  2. // the parts of RFC 1122 that discuss TCP. Consult RFC 7414 when implementing
  3. // a new feature.
  4. use core::fmt::Display;
  5. #[cfg(feature = "async")]
  6. use core::task::Waker;
  7. use core::{cmp, fmt, mem};
  8. #[cfg(feature = "async")]
  9. use crate::socket::WakerRegistration;
  10. use crate::socket::{Context, PollAt};
  11. use crate::storage::{Assembler, RingBuffer};
  12. use crate::time::{Duration, Instant};
  13. use crate::wire::{
  14. IpAddress, IpEndpoint, IpListenEndpoint, IpProtocol, IpRepr, TcpControl, TcpRepr, TcpSeqNumber,
  15. TCP_HEADER_LEN,
  16. };
  17. macro_rules! tcp_trace {
  18. ($($arg:expr),*) => (net_log!(trace, $($arg),*));
  19. }
  20. /// Error returned by [`Socket::listen`]
  21. #[derive(Debug, PartialEq, Eq, Clone, Copy)]
  22. #[cfg_attr(feature = "defmt", derive(defmt::Format))]
  23. pub enum ListenError {
  24. InvalidState,
  25. Unaddressable,
  26. }
  27. /// Error returned by [`Socket::connect`]
  28. #[derive(Debug, PartialEq, Eq, Clone, Copy)]
  29. #[cfg_attr(feature = "defmt", derive(defmt::Format))]
  30. pub enum ConnectError {
  31. InvalidState,
  32. Unaddressable,
  33. }
  34. /// Error returned by [`Socket::send`]
  35. #[derive(Debug, PartialEq, Eq, Clone, Copy)]
  36. #[cfg_attr(feature = "defmt", derive(defmt::Format))]
  37. pub enum SendError {
  38. InvalidState,
  39. }
  40. /// Error returned by [`Socket::recv`]
  41. #[derive(Debug, PartialEq, Eq, Clone, Copy)]
  42. #[cfg_attr(feature = "defmt", derive(defmt::Format))]
  43. pub enum RecvError {
  44. InvalidState,
  45. Finished,
  46. }
  47. /// A TCP socket ring buffer.
  48. pub type SocketBuffer<'a> = RingBuffer<'a, u8>;
  49. /// The state of a TCP socket, according to [RFC 793].
  50. ///
  51. /// [RFC 793]: https://tools.ietf.org/html/rfc793
  52. #[derive(Debug, PartialEq, Eq, Clone, Copy)]
  53. #[cfg_attr(feature = "defmt", derive(defmt::Format))]
  54. pub enum State {
  55. Closed,
  56. Listen,
  57. SynSent,
  58. SynReceived,
  59. Established,
  60. FinWait1,
  61. FinWait2,
  62. CloseWait,
  63. Closing,
  64. LastAck,
  65. TimeWait,
  66. }
  67. impl fmt::Display for State {
  68. fn fmt(&self, f: &mut fmt::Formatter) -> fmt::Result {
  69. match *self {
  70. State::Closed => write!(f, "CLOSED"),
  71. State::Listen => write!(f, "LISTEN"),
  72. State::SynSent => write!(f, "SYN-SENT"),
  73. State::SynReceived => write!(f, "SYN-RECEIVED"),
  74. State::Established => write!(f, "ESTABLISHED"),
  75. State::FinWait1 => write!(f, "FIN-WAIT-1"),
  76. State::FinWait2 => write!(f, "FIN-WAIT-2"),
  77. State::CloseWait => write!(f, "CLOSE-WAIT"),
  78. State::Closing => write!(f, "CLOSING"),
  79. State::LastAck => write!(f, "LAST-ACK"),
  80. State::TimeWait => write!(f, "TIME-WAIT"),
  81. }
  82. }
  83. }
  84. // Conservative initial RTT estimate.
  85. const RTTE_INITIAL_RTT: u32 = 300;
  86. const RTTE_INITIAL_DEV: u32 = 100;
  87. // Minimum "safety margin" for the RTO that kicks in when the
  88. // variance gets very low.
  89. const RTTE_MIN_MARGIN: u32 = 5;
  90. const RTTE_MIN_RTO: u32 = 10;
  91. const RTTE_MAX_RTO: u32 = 10000;
  92. #[derive(Debug, Clone, Copy)]
  93. #[cfg_attr(feature = "defmt", derive(defmt::Format))]
  94. struct RttEstimator {
  95. // Using u32 instead of Duration to save space (Duration is i64)
  96. rtt: u32,
  97. deviation: u32,
  98. timestamp: Option<(Instant, TcpSeqNumber)>,
  99. max_seq_sent: Option<TcpSeqNumber>,
  100. rto_count: u8,
  101. }
  102. impl Default for RttEstimator {
  103. fn default() -> Self {
  104. Self {
  105. rtt: RTTE_INITIAL_RTT,
  106. deviation: RTTE_INITIAL_DEV,
  107. timestamp: None,
  108. max_seq_sent: None,
  109. rto_count: 0,
  110. }
  111. }
  112. }
  113. impl RttEstimator {
  114. fn retransmission_timeout(&self) -> Duration {
  115. let margin = RTTE_MIN_MARGIN.max(self.deviation * 4);
  116. let ms = (self.rtt + margin).max(RTTE_MIN_RTO).min(RTTE_MAX_RTO);
  117. Duration::from_millis(ms as u64)
  118. }
  119. fn sample(&mut self, new_rtt: u32) {
  120. // "Congestion Avoidance and Control", Van Jacobson, Michael J. Karels, 1988
  121. self.rtt = (self.rtt * 7 + new_rtt + 7) / 8;
  122. let diff = (self.rtt as i32 - new_rtt as i32).unsigned_abs();
  123. self.deviation = (self.deviation * 3 + diff + 3) / 4;
  124. self.rto_count = 0;
  125. let rto = self.retransmission_timeout().total_millis();
  126. tcp_trace!(
  127. "rtte: sample={:?} rtt={:?} dev={:?} rto={:?}",
  128. new_rtt,
  129. self.rtt,
  130. self.deviation,
  131. rto
  132. );
  133. }
  134. fn on_send(&mut self, timestamp: Instant, seq: TcpSeqNumber) {
  135. if self
  136. .max_seq_sent
  137. .map(|max_seq_sent| seq > max_seq_sent)
  138. .unwrap_or(true)
  139. {
  140. self.max_seq_sent = Some(seq);
  141. if self.timestamp.is_none() {
  142. self.timestamp = Some((timestamp, seq));
  143. tcp_trace!("rtte: sampling at seq={:?}", seq);
  144. }
  145. }
  146. }
  147. fn on_ack(&mut self, timestamp: Instant, seq: TcpSeqNumber) {
  148. if let Some((sent_timestamp, sent_seq)) = self.timestamp {
  149. if seq >= sent_seq {
  150. self.sample((timestamp - sent_timestamp).total_millis() as u32);
  151. self.timestamp = None;
  152. }
  153. }
  154. }
  155. fn on_retransmit(&mut self) {
  156. if self.timestamp.is_some() {
  157. tcp_trace!("rtte: abort sampling due to retransmit");
  158. }
  159. self.timestamp = None;
  160. self.rto_count = self.rto_count.saturating_add(1);
  161. if self.rto_count >= 3 {
  162. // This happens in 2 scenarios:
  163. // - The RTT is higher than the initial estimate
  164. // - The network conditions change, suddenly making the RTT much higher
  165. // In these cases, the estimator can get stuck, because it can't sample because
  166. // all packets sent would incur a retransmit. To avoid this, force an estimate
  167. // increase if we see 3 consecutive retransmissions without any successful sample.
  168. self.rto_count = 0;
  169. self.rtt = RTTE_MAX_RTO.min(self.rtt * 2);
  170. let rto = self.retransmission_timeout().total_millis();
  171. tcp_trace!(
  172. "rtte: too many retransmissions, increasing: rtt={:?} dev={:?} rto={:?}",
  173. self.rtt,
  174. self.deviation,
  175. rto
  176. );
  177. }
  178. }
  179. }
  180. #[derive(Debug, Clone, Copy, PartialEq)]
  181. #[cfg_attr(feature = "defmt", derive(defmt::Format))]
  182. enum Timer {
  183. Idle {
  184. keep_alive_at: Option<Instant>,
  185. },
  186. Retransmit {
  187. expires_at: Instant,
  188. delay: Duration,
  189. },
  190. FastRetransmit,
  191. Close {
  192. expires_at: Instant,
  193. },
  194. }
  195. const ACK_DELAY_DEFAULT: Duration = Duration::from_millis(10);
  196. const CLOSE_DELAY: Duration = Duration::from_millis(10_000);
  197. impl Timer {
  198. fn new() -> Timer {
  199. Timer::Idle {
  200. keep_alive_at: None,
  201. }
  202. }
  203. fn should_keep_alive(&self, timestamp: Instant) -> bool {
  204. match *self {
  205. Timer::Idle {
  206. keep_alive_at: Some(keep_alive_at),
  207. } if timestamp >= keep_alive_at => true,
  208. _ => false,
  209. }
  210. }
  211. fn should_retransmit(&self, timestamp: Instant) -> Option<Duration> {
  212. match *self {
  213. Timer::Retransmit { expires_at, delay } if timestamp >= expires_at => {
  214. Some(timestamp - expires_at + delay)
  215. }
  216. Timer::FastRetransmit => Some(Duration::from_millis(0)),
  217. _ => None,
  218. }
  219. }
  220. fn should_close(&self, timestamp: Instant) -> bool {
  221. match *self {
  222. Timer::Close { expires_at } if timestamp >= expires_at => true,
  223. _ => false,
  224. }
  225. }
  226. fn poll_at(&self) -> PollAt {
  227. match *self {
  228. Timer::Idle {
  229. keep_alive_at: Some(keep_alive_at),
  230. } => PollAt::Time(keep_alive_at),
  231. Timer::Idle {
  232. keep_alive_at: None,
  233. } => PollAt::Ingress,
  234. Timer::Retransmit { expires_at, .. } => PollAt::Time(expires_at),
  235. Timer::FastRetransmit => PollAt::Now,
  236. Timer::Close { expires_at } => PollAt::Time(expires_at),
  237. }
  238. }
  239. fn set_for_idle(&mut self, timestamp: Instant, interval: Option<Duration>) {
  240. *self = Timer::Idle {
  241. keep_alive_at: interval.map(|interval| timestamp + interval),
  242. }
  243. }
  244. fn set_keep_alive(&mut self) {
  245. if let Timer::Idle {
  246. ref mut keep_alive_at,
  247. } = *self
  248. {
  249. if keep_alive_at.is_none() {
  250. *keep_alive_at = Some(Instant::from_millis(0))
  251. }
  252. }
  253. }
  254. fn rewind_keep_alive(&mut self, timestamp: Instant, interval: Option<Duration>) {
  255. if let Timer::Idle {
  256. ref mut keep_alive_at,
  257. } = *self
  258. {
  259. *keep_alive_at = interval.map(|interval| timestamp + interval)
  260. }
  261. }
  262. fn set_for_retransmit(&mut self, timestamp: Instant, delay: Duration) {
  263. match *self {
  264. Timer::Idle { .. } | Timer::FastRetransmit { .. } => {
  265. *self = Timer::Retransmit {
  266. expires_at: timestamp + delay,
  267. delay,
  268. }
  269. }
  270. Timer::Retransmit { expires_at, delay } if timestamp >= expires_at => {
  271. *self = Timer::Retransmit {
  272. expires_at: timestamp + delay,
  273. delay: delay * 2,
  274. }
  275. }
  276. Timer::Retransmit { .. } => (),
  277. Timer::Close { .. } => (),
  278. }
  279. }
  280. fn set_for_fast_retransmit(&mut self) {
  281. *self = Timer::FastRetransmit
  282. }
  283. fn set_for_close(&mut self, timestamp: Instant) {
  284. *self = Timer::Close {
  285. expires_at: timestamp + CLOSE_DELAY,
  286. }
  287. }
  288. fn is_retransmit(&self) -> bool {
  289. match *self {
  290. Timer::Retransmit { .. } | Timer::FastRetransmit => true,
  291. _ => false,
  292. }
  293. }
  294. }
  295. #[derive(Debug, PartialEq, Eq, Clone, Copy)]
  296. enum AckDelayTimer {
  297. Idle,
  298. Waiting(Instant),
  299. Immediate,
  300. }
  301. #[derive(Debug, Copy, Clone, Eq, PartialEq)]
  302. #[cfg_attr(feature = "defmt", derive(defmt::Format))]
  303. struct Tuple {
  304. local: IpEndpoint,
  305. remote: IpEndpoint,
  306. }
  307. impl Display for Tuple {
  308. fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result {
  309. write!(f, "{}:{}", self.local, self.remote)
  310. }
  311. }
  312. /// A Transmission Control Protocol socket.
  313. ///
  314. /// A TCP socket may passively listen for connections or actively connect to another endpoint.
  315. /// Note that, for listening sockets, there is no "backlog"; to be able to simultaneously
  316. /// accept several connections, as many sockets must be allocated, or any new connection
  317. /// attempts will be reset.
  318. #[derive(Debug)]
  319. pub struct Socket<'a> {
  320. state: State,
  321. timer: Timer,
  322. rtte: RttEstimator,
  323. assembler: Assembler,
  324. rx_buffer: SocketBuffer<'a>,
  325. rx_fin_received: bool,
  326. tx_buffer: SocketBuffer<'a>,
  327. /// Interval after which, if no inbound packets are received, the connection is aborted.
  328. timeout: Option<Duration>,
  329. /// Interval at which keep-alive packets will be sent.
  330. keep_alive: Option<Duration>,
  331. /// The time-to-live (IPv4) or hop limit (IPv6) value used in outgoing packets.
  332. hop_limit: Option<u8>,
  333. /// Address passed to listen(). Listen address is set when listen() is called and
  334. /// used every time the socket is reset back to the LISTEN state.
  335. listen_endpoint: IpListenEndpoint,
  336. /// Current 4-tuple (local and remote endpoints).
  337. tuple: Option<Tuple>,
  338. /// The sequence number corresponding to the beginning of the transmit buffer.
  339. /// I.e. an ACK(local_seq_no+n) packet removes n bytes from the transmit buffer.
  340. local_seq_no: TcpSeqNumber,
  341. /// The sequence number corresponding to the beginning of the receive buffer.
  342. /// I.e. userspace reading n bytes adds n to remote_seq_no.
  343. remote_seq_no: TcpSeqNumber,
  344. /// The last sequence number sent.
  345. /// I.e. in an idle socket, local_seq_no+tx_buffer.len().
  346. remote_last_seq: TcpSeqNumber,
  347. /// The last acknowledgement number sent.
  348. /// I.e. in an idle socket, remote_seq_no+rx_buffer.len().
  349. remote_last_ack: Option<TcpSeqNumber>,
  350. /// The last window length sent.
  351. remote_last_win: u16,
  352. /// The sending window scaling factor advertised to remotes which support RFC 1323.
  353. /// It is zero if the window <= 64KiB and/or the remote does not support it.
  354. remote_win_shift: u8,
  355. /// The remote window size, relative to local_seq_no
  356. /// I.e. we're allowed to send octets until local_seq_no+remote_win_len
  357. remote_win_len: usize,
  358. /// The receive window scaling factor for remotes which support RFC 1323, None if unsupported.
  359. remote_win_scale: Option<u8>,
  360. /// Whether or not the remote supports selective ACK as described in RFC 2018.
  361. remote_has_sack: bool,
  362. /// The maximum number of data octets that the remote side may receive.
  363. remote_mss: usize,
  364. /// The timestamp of the last packet received.
  365. remote_last_ts: Option<Instant>,
  366. /// The sequence number of the last packet received, used for sACK
  367. local_rx_last_seq: Option<TcpSeqNumber>,
  368. /// The ACK number of the last packet received.
  369. local_rx_last_ack: Option<TcpSeqNumber>,
  370. /// The number of packets received directly after
  371. /// each other which have the same ACK number.
  372. local_rx_dup_acks: u8,
  373. /// Duration for Delayed ACK. If None no ACKs will be delayed.
  374. ack_delay: Option<Duration>,
  375. /// Delayed ack timer. If set, packets containing exclusively
  376. /// ACK or window updates (ie, no data) won't be sent until expiry.
  377. ack_delay_timer: AckDelayTimer,
  378. /// Used for rate-limiting: No more challenge ACKs will be sent until this instant.
  379. challenge_ack_timer: Instant,
  380. /// Nagle's Algorithm enabled.
  381. nagle: bool,
  382. #[cfg(feature = "async")]
  383. rx_waker: WakerRegistration,
  384. #[cfg(feature = "async")]
  385. tx_waker: WakerRegistration,
  386. }
  387. const DEFAULT_MSS: usize = 536;
  388. impl<'a> Socket<'a> {
  389. #[allow(unused_comparisons)] // small usize platforms always pass rx_capacity check
  390. /// Create a socket using the given buffers.
  391. pub fn new<T>(rx_buffer: T, tx_buffer: T) -> Socket<'a>
  392. where
  393. T: Into<SocketBuffer<'a>>,
  394. {
  395. let (rx_buffer, tx_buffer) = (rx_buffer.into(), tx_buffer.into());
  396. let rx_capacity = rx_buffer.capacity();
  397. // From RFC 1323:
  398. // [...] the above constraints imply that 2 * the max window size must be less
  399. // than 2**31 [...] Thus, the shift count must be limited to 14 (which allows
  400. // windows of 2**30 = 1 Gbyte).
  401. if rx_capacity > (1 << 30) {
  402. panic!("receiving buffer too large, cannot exceed 1 GiB")
  403. }
  404. let rx_cap_log2 = mem::size_of::<usize>() * 8 - rx_capacity.leading_zeros() as usize;
  405. Socket {
  406. state: State::Closed,
  407. timer: Timer::new(),
  408. rtte: RttEstimator::default(),
  409. assembler: Assembler::new(rx_buffer.capacity()),
  410. tx_buffer,
  411. rx_buffer,
  412. rx_fin_received: false,
  413. timeout: None,
  414. keep_alive: None,
  415. hop_limit: None,
  416. listen_endpoint: IpListenEndpoint::default(),
  417. tuple: None,
  418. local_seq_no: TcpSeqNumber::default(),
  419. remote_seq_no: TcpSeqNumber::default(),
  420. remote_last_seq: TcpSeqNumber::default(),
  421. remote_last_ack: None,
  422. remote_last_win: 0,
  423. remote_win_len: 0,
  424. remote_win_shift: rx_cap_log2.saturating_sub(16) as u8,
  425. remote_win_scale: None,
  426. remote_has_sack: false,
  427. remote_mss: DEFAULT_MSS,
  428. remote_last_ts: None,
  429. local_rx_last_ack: None,
  430. local_rx_last_seq: None,
  431. local_rx_dup_acks: 0,
  432. ack_delay: Some(ACK_DELAY_DEFAULT),
  433. ack_delay_timer: AckDelayTimer::Idle,
  434. challenge_ack_timer: Instant::from_secs(0),
  435. nagle: true,
  436. #[cfg(feature = "async")]
  437. rx_waker: WakerRegistration::new(),
  438. #[cfg(feature = "async")]
  439. tx_waker: WakerRegistration::new(),
  440. }
  441. }
  442. /// Register a waker for receive operations.
  443. ///
  444. /// The waker is woken on state changes that might affect the return value
  445. /// of `recv` method calls, such as receiving data, or the socket closing.
  446. ///
  447. /// Notes:
  448. ///
  449. /// - Only one waker can be registered at a time. If another waker was previously registered,
  450. /// it is overwritten and will no longer be woken.
  451. /// - The Waker is woken only once. Once woken, you must register it again to receive more wakes.
  452. /// - "Spurious wakes" are allowed: a wake doesn't guarantee the result of `recv` has
  453. /// necessarily changed.
  454. #[cfg(feature = "async")]
  455. pub fn register_recv_waker(&mut self, waker: &Waker) {
  456. self.rx_waker.register(waker)
  457. }
  458. /// Register a waker for send operations.
  459. ///
  460. /// The waker is woken on state changes that might affect the return value
  461. /// of `send` method calls, such as space becoming available in the transmit
  462. /// buffer, or the socket closing.
  463. ///
  464. /// Notes:
  465. ///
  466. /// - Only one waker can be registered at a time. If another waker was previously registered,
  467. /// it is overwritten and will no longer be woken.
  468. /// - The Waker is woken only once. Once woken, you must register it again to receive more wakes.
  469. /// - "Spurious wakes" are allowed: a wake doesn't guarantee the result of `send` has
  470. /// necessarily changed.
  471. #[cfg(feature = "async")]
  472. pub fn register_send_waker(&mut self, waker: &Waker) {
  473. self.tx_waker.register(waker)
  474. }
  475. /// Return the timeout duration.
  476. ///
  477. /// See also the [set_timeout](#method.set_timeout) method.
  478. pub fn timeout(&self) -> Option<Duration> {
  479. self.timeout
  480. }
  481. /// Return the ACK delay duration.
  482. ///
  483. /// See also the [set_ack_delay](#method.set_ack_delay) method.
  484. pub fn ack_delay(&self) -> Option<Duration> {
  485. self.ack_delay
  486. }
  487. /// Return whether Nagle's Algorithm is enabled.
  488. ///
  489. /// See also the [set_nagle_enabled](#method.set_nagle_enabled) method.
  490. pub fn nagle_enabled(&self) -> bool {
  491. self.nagle
  492. }
  493. /// Return the current window field value, including scaling according to RFC 1323.
  494. ///
  495. /// Used in internal calculations as well as packet generation.
  496. ///
  497. #[inline]
  498. fn scaled_window(&self) -> u16 {
  499. cmp::min(
  500. self.rx_buffer.window() >> self.remote_win_shift as usize,
  501. (1 << 16) - 1,
  502. ) as u16
  503. }
  504. /// Set the timeout duration.
  505. ///
  506. /// A socket with a timeout duration set will abort the connection if either of the following
  507. /// occurs:
  508. ///
  509. /// * After a [connect](#method.connect) call, the remote endpoint does not respond within
  510. /// the specified duration;
  511. /// * After establishing a connection, there is data in the transmit buffer and the remote
  512. /// endpoint exceeds the specified duration between any two packets it sends;
  513. /// * After enabling [keep-alive](#method.set_keep_alive), the remote endpoint exceeds
  514. /// the specified duration between any two packets it sends.
  515. pub fn set_timeout(&mut self, duration: Option<Duration>) {
  516. self.timeout = duration
  517. }
  518. /// Set the ACK delay duration.
  519. ///
  520. /// By default, the ACK delay is set to 10ms.
  521. pub fn set_ack_delay(&mut self, duration: Option<Duration>) {
  522. self.ack_delay = duration
  523. }
  524. /// Enable or disable Nagle's Algorithm.
  525. ///
  526. /// Also known as "tinygram prevention". By default, it is enabled.
  527. /// Disabling it is equivalent to Linux's TCP_NODELAY flag.
  528. ///
  529. /// When enabled, Nagle's Algorithm prevents sending segments smaller than MSS if
  530. /// there is data in flight (sent but not acknowledged). In other words, it ensures
  531. /// at most only one segment smaller than MSS is in flight at a time.
  532. ///
  533. /// It ensures better network utilization by preventing sending many very small packets,
  534. /// at the cost of increased latency in some situations, particularly when the remote peer
  535. /// has ACK delay enabled.
  536. pub fn set_nagle_enabled(&mut self, enabled: bool) {
  537. self.nagle = enabled
  538. }
  539. /// Return the keep-alive interval.
  540. ///
  541. /// See also the [set_keep_alive](#method.set_keep_alive) method.
  542. pub fn keep_alive(&self) -> Option<Duration> {
  543. self.keep_alive
  544. }
  545. /// Set the keep-alive interval.
  546. ///
  547. /// An idle socket with a keep-alive interval set will transmit a "keep-alive ACK" packet
  548. /// every time it receives no communication during that interval. As a result, three things
  549. /// may happen:
  550. ///
  551. /// * The remote endpoint is fine and answers with an ACK packet.
  552. /// * The remote endpoint has rebooted and answers with an RST packet.
  553. /// * The remote endpoint has crashed and does not answer.
  554. ///
  555. /// The keep-alive functionality together with the timeout functionality allows to react
  556. /// to these error conditions.
  557. pub fn set_keep_alive(&mut self, interval: Option<Duration>) {
  558. self.keep_alive = interval;
  559. if self.keep_alive.is_some() {
  560. // If the connection is idle and we've just set the option, it would not take effect
  561. // until the next packet, unless we wind up the timer explicitly.
  562. self.timer.set_keep_alive();
  563. }
  564. }
  565. /// Return the time-to-live (IPv4) or hop limit (IPv6) value used in outgoing packets.
  566. ///
  567. /// See also the [set_hop_limit](#method.set_hop_limit) method
  568. pub fn hop_limit(&self) -> Option<u8> {
  569. self.hop_limit
  570. }
  571. /// Set the time-to-live (IPv4) or hop limit (IPv6) value used in outgoing packets.
  572. ///
  573. /// A socket without an explicitly set hop limit value uses the default [IANA recommended]
  574. /// value (64).
  575. ///
  576. /// # Panics
  577. ///
  578. /// This function panics if a hop limit value of 0 is given. See [RFC 1122 § 3.2.1.7].
  579. ///
  580. /// [IANA recommended]: https://www.iana.org/assignments/ip-parameters/ip-parameters.xhtml
  581. /// [RFC 1122 § 3.2.1.7]: https://tools.ietf.org/html/rfc1122#section-3.2.1.7
  582. pub fn set_hop_limit(&mut self, hop_limit: Option<u8>) {
  583. // A host MUST NOT send a datagram with a hop limit value of 0
  584. if let Some(0) = hop_limit {
  585. panic!("the time-to-live value of a packet must not be zero")
  586. }
  587. self.hop_limit = hop_limit
  588. }
  589. /// Return the local endpoint, or None if not connected.
  590. #[inline]
  591. pub fn local_endpoint(&self) -> Option<IpEndpoint> {
  592. Some(self.tuple?.local)
  593. }
  594. /// Return the remote endpoint, or None if not connected.
  595. #[inline]
  596. pub fn remote_endpoint(&self) -> Option<IpEndpoint> {
  597. Some(self.tuple?.remote)
  598. }
  599. /// Return the connection state, in terms of the TCP state machine.
  600. #[inline]
  601. pub fn state(&self) -> State {
  602. self.state
  603. }
  604. fn reset(&mut self) {
  605. let rx_cap_log2 =
  606. mem::size_of::<usize>() * 8 - self.rx_buffer.capacity().leading_zeros() as usize;
  607. self.state = State::Closed;
  608. self.timer = Timer::new();
  609. self.rtte = RttEstimator::default();
  610. self.assembler = Assembler::new(self.rx_buffer.capacity());
  611. self.tx_buffer.clear();
  612. self.rx_buffer.clear();
  613. self.rx_fin_received = false;
  614. self.listen_endpoint = IpListenEndpoint::default();
  615. self.tuple = None;
  616. self.local_seq_no = TcpSeqNumber::default();
  617. self.remote_seq_no = TcpSeqNumber::default();
  618. self.remote_last_seq = TcpSeqNumber::default();
  619. self.remote_last_ack = None;
  620. self.remote_last_win = 0;
  621. self.remote_win_len = 0;
  622. self.remote_win_scale = None;
  623. self.remote_win_shift = rx_cap_log2.saturating_sub(16) as u8;
  624. self.remote_mss = DEFAULT_MSS;
  625. self.remote_last_ts = None;
  626. self.ack_delay_timer = AckDelayTimer::Idle;
  627. self.challenge_ack_timer = Instant::from_secs(0);
  628. #[cfg(feature = "async")]
  629. {
  630. self.rx_waker.wake();
  631. self.tx_waker.wake();
  632. }
  633. }
  634. /// Start listening on the given endpoint.
  635. ///
  636. /// This function returns `Err(Error::Illegal)` if the socket was already open
  637. /// (see [is_open](#method.is_open)), and `Err(Error::Unaddressable)`
  638. /// if the port in the given endpoint is zero.
  639. pub fn listen<T>(&mut self, local_endpoint: T) -> Result<(), ListenError>
  640. where
  641. T: Into<IpListenEndpoint>,
  642. {
  643. let local_endpoint = local_endpoint.into();
  644. if local_endpoint.port == 0 {
  645. return Err(ListenError::Unaddressable);
  646. }
  647. if self.is_open() {
  648. return Err(ListenError::InvalidState);
  649. }
  650. self.reset();
  651. self.listen_endpoint = local_endpoint;
  652. self.tuple = None;
  653. self.set_state(State::Listen);
  654. Ok(())
  655. }
  656. /// Connect to a given endpoint.
  657. ///
  658. /// The local port must be provided explicitly. Assuming `fn get_ephemeral_port() -> u16`
  659. /// allocates a port between 49152 and 65535, a connection may be established as follows:
  660. ///
  661. /// ```rust,ignore
  662. /// socket.connect((IpAddress::v4(10, 0, 0, 1), 80), get_ephemeral_port())
  663. /// ```
  664. ///
  665. /// The local address may optionally be provided.
  666. ///
  667. /// This function returns an error if the socket was open; see [is_open](#method.is_open).
  668. /// It also returns an error if the local or remote port is zero, or if the remote address
  669. /// is unspecified.
  670. pub fn connect<T, U>(
  671. &mut self,
  672. cx: &mut Context,
  673. remote_endpoint: T,
  674. local_endpoint: U,
  675. ) -> Result<(), ConnectError>
  676. where
  677. T: Into<IpEndpoint>,
  678. U: Into<IpListenEndpoint>,
  679. {
  680. let remote_endpoint: IpEndpoint = remote_endpoint.into();
  681. let local_endpoint: IpListenEndpoint = local_endpoint.into();
  682. if self.is_open() {
  683. return Err(ConnectError::InvalidState);
  684. }
  685. if remote_endpoint.port == 0 || remote_endpoint.addr.is_unspecified() {
  686. return Err(ConnectError::Unaddressable);
  687. }
  688. if local_endpoint.port == 0 {
  689. return Err(ConnectError::Unaddressable);
  690. }
  691. // If local address is not provided, choose it automatically.
  692. let local_endpoint = IpEndpoint {
  693. addr: match local_endpoint.addr {
  694. Some(addr) => {
  695. if addr.is_unspecified() {
  696. return Err(ConnectError::Unaddressable);
  697. }
  698. addr
  699. }
  700. None => cx
  701. .get_source_address(remote_endpoint.addr)
  702. .ok_or(ConnectError::Unaddressable)?,
  703. },
  704. port: local_endpoint.port,
  705. };
  706. if local_endpoint.addr.version() != remote_endpoint.addr.version() {
  707. return Err(ConnectError::Unaddressable);
  708. }
  709. self.reset();
  710. self.tuple = Some(Tuple {
  711. local: local_endpoint,
  712. remote: remote_endpoint,
  713. });
  714. self.set_state(State::SynSent);
  715. let seq = Self::random_seq_no(cx);
  716. self.local_seq_no = seq;
  717. self.remote_last_seq = seq;
  718. Ok(())
  719. }
  720. #[cfg(test)]
  721. fn random_seq_no(_cx: &mut Context) -> TcpSeqNumber {
  722. TcpSeqNumber(10000)
  723. }
  724. #[cfg(not(test))]
  725. fn random_seq_no(cx: &mut Context) -> TcpSeqNumber {
  726. TcpSeqNumber(cx.rand().rand_u32() as i32)
  727. }
  728. /// Close the transmit half of the full-duplex connection.
  729. ///
  730. /// Note that there is no corresponding function for the receive half of the full-duplex
  731. /// connection; only the remote end can close it. If you no longer wish to receive any
  732. /// data and would like to reuse the socket right away, use [abort](#method.abort).
  733. pub fn close(&mut self) {
  734. match self.state {
  735. // In the LISTEN state there is no established connection.
  736. State::Listen => self.set_state(State::Closed),
  737. // In the SYN-SENT state the remote endpoint is not yet synchronized and, upon
  738. // receiving an RST, will abort the connection.
  739. State::SynSent => self.set_state(State::Closed),
  740. // In the SYN-RECEIVED, ESTABLISHED and CLOSE-WAIT states the transmit half
  741. // of the connection is open, and needs to be explicitly closed with a FIN.
  742. State::SynReceived | State::Established => self.set_state(State::FinWait1),
  743. State::CloseWait => self.set_state(State::LastAck),
  744. // In the FIN-WAIT-1, FIN-WAIT-2, CLOSING, LAST-ACK, TIME-WAIT and CLOSED states,
  745. // the transmit half of the connection is already closed, and no further
  746. // action is needed.
  747. State::FinWait1
  748. | State::FinWait2
  749. | State::Closing
  750. | State::TimeWait
  751. | State::LastAck
  752. | State::Closed => (),
  753. }
  754. }
  755. /// Aborts the connection, if any.
  756. ///
  757. /// This function instantly closes the socket. One reset packet will be sent to the remote
  758. /// endpoint.
  759. ///
  760. /// In terms of the TCP state machine, the socket may be in any state and is moved to
  761. /// the `CLOSED` state.
  762. pub fn abort(&mut self) {
  763. self.set_state(State::Closed);
  764. }
  765. /// Return whether the socket is passively listening for incoming connections.
  766. ///
  767. /// In terms of the TCP state machine, the socket must be in the `LISTEN` state.
  768. #[inline]
  769. pub fn is_listening(&self) -> bool {
  770. match self.state {
  771. State::Listen => true,
  772. _ => false,
  773. }
  774. }
  775. /// Return whether the socket is open.
  776. ///
  777. /// This function returns true if the socket will process incoming or dispatch outgoing
  778. /// packets. Note that this does not mean that it is possible to send or receive data through
  779. /// the socket; for that, use [can_send](#method.can_send) or [can_recv](#method.can_recv).
  780. ///
  781. /// In terms of the TCP state machine, the socket must not be in the `CLOSED`
  782. /// or `TIME-WAIT` states.
  783. #[inline]
  784. pub fn is_open(&self) -> bool {
  785. match self.state {
  786. State::Closed => false,
  787. State::TimeWait => false,
  788. _ => true,
  789. }
  790. }
  791. /// Return whether a connection is active.
  792. ///
  793. /// This function returns true if the socket is actively exchanging packets with
  794. /// a remote endpoint. Note that this does not mean that it is possible to send or receive
  795. /// data through the socket; for that, use [can_send](#method.can_send) or
  796. /// [can_recv](#method.can_recv).
  797. ///
  798. /// If a connection is established, [abort](#method.close) will send a reset to
  799. /// the remote endpoint.
  800. ///
  801. /// In terms of the TCP state machine, the socket must not be in the `CLOSED`, `TIME-WAIT`,
  802. /// or `LISTEN` state.
  803. #[inline]
  804. pub fn is_active(&self) -> bool {
  805. match self.state {
  806. State::Closed => false,
  807. State::TimeWait => false,
  808. State::Listen => false,
  809. _ => true,
  810. }
  811. }
  812. /// Return whether the transmit half of the full-duplex connection is open.
  813. ///
  814. /// This function returns true if it's possible to send data and have it arrive
  815. /// to the remote endpoint. However, it does not make any guarantees about the state
  816. /// of the transmit buffer, and even if it returns true, [send](#method.send) may
  817. /// not be able to enqueue any octets.
  818. ///
  819. /// In terms of the TCP state machine, the socket must be in the `ESTABLISHED` or
  820. /// `CLOSE-WAIT` state.
  821. #[inline]
  822. pub fn may_send(&self) -> bool {
  823. match self.state {
  824. State::Established => true,
  825. // In CLOSE-WAIT, the remote endpoint has closed our receive half of the connection
  826. // but we still can transmit indefinitely.
  827. State::CloseWait => true,
  828. _ => false,
  829. }
  830. }
  831. /// Return whether the receive half of the full-duplex connection is open.
  832. ///
  833. /// This function returns true if it's possible to receive data from the remote endpoint.
  834. /// It will return true while there is data in the receive buffer, and if there isn't,
  835. /// as long as the remote endpoint has not closed the connection.
  836. ///
  837. /// In terms of the TCP state machine, the socket must be in the `ESTABLISHED`,
  838. /// `FIN-WAIT-1`, or `FIN-WAIT-2` state, or have data in the receive buffer instead.
  839. #[inline]
  840. pub fn may_recv(&self) -> bool {
  841. match self.state {
  842. State::Established => true,
  843. // In FIN-WAIT-1/2, we have closed our transmit half of the connection but
  844. // we still can receive indefinitely.
  845. State::FinWait1 | State::FinWait2 => true,
  846. // If we have something in the receive buffer, we can receive that.
  847. _ if !self.rx_buffer.is_empty() => true,
  848. _ => false,
  849. }
  850. }
  851. /// Check whether the transmit half of the full-duplex connection is open
  852. /// (see [may_send](#method.may_send)), and the transmit buffer is not full.
  853. #[inline]
  854. pub fn can_send(&self) -> bool {
  855. if !self.may_send() {
  856. return false;
  857. }
  858. !self.tx_buffer.is_full()
  859. }
  860. /// Return the maximum number of bytes inside the recv buffer.
  861. #[inline]
  862. pub fn recv_capacity(&self) -> usize {
  863. self.rx_buffer.capacity()
  864. }
  865. /// Return the maximum number of bytes inside the transmit buffer.
  866. #[inline]
  867. pub fn send_capacity(&self) -> usize {
  868. self.tx_buffer.capacity()
  869. }
  870. /// Check whether the receive half of the full-duplex connection buffer is open
  871. /// (see [may_recv](#method.may_recv)), and the receive buffer is not empty.
  872. #[inline]
  873. pub fn can_recv(&self) -> bool {
  874. if !self.may_recv() {
  875. return false;
  876. }
  877. !self.rx_buffer.is_empty()
  878. }
  879. fn send_impl<'b, F, R>(&'b mut self, f: F) -> Result<R, SendError>
  880. where
  881. F: FnOnce(&'b mut SocketBuffer<'a>) -> (usize, R),
  882. {
  883. if !self.may_send() {
  884. return Err(SendError::InvalidState);
  885. }
  886. // The connection might have been idle for a long time, and so remote_last_ts
  887. // would be far in the past. Unless we clear it here, we'll abort the connection
  888. // down over in dispatch() by erroneously detecting it as timed out.
  889. if self.tx_buffer.is_empty() {
  890. self.remote_last_ts = None
  891. }
  892. let _old_length = self.tx_buffer.len();
  893. let (size, result) = f(&mut self.tx_buffer);
  894. if size > 0 {
  895. #[cfg(any(test, feature = "verbose"))]
  896. tcp_trace!(
  897. "tx buffer: enqueueing {} octets (now {})",
  898. size,
  899. _old_length + size
  900. );
  901. }
  902. Ok(result)
  903. }
  904. /// Call `f` with the largest contiguous slice of octets in the transmit buffer,
  905. /// and enqueue the amount of elements returned by `f`.
  906. ///
  907. /// This function returns `Err(Error::Illegal)` if the transmit half of
  908. /// the connection is not open; see [may_send](#method.may_send).
  909. pub fn send<'b, F, R>(&'b mut self, f: F) -> Result<R, SendError>
  910. where
  911. F: FnOnce(&'b mut [u8]) -> (usize, R),
  912. {
  913. self.send_impl(|tx_buffer| tx_buffer.enqueue_many_with(f))
  914. }
  915. /// Enqueue a sequence of octets to be sent, and fill it from a slice.
  916. ///
  917. /// This function returns the amount of octets actually enqueued, which is limited
  918. /// by the amount of free space in the transmit buffer; down to zero.
  919. ///
  920. /// See also [send](#method.send).
  921. pub fn send_slice(&mut self, data: &[u8]) -> Result<usize, SendError> {
  922. self.send_impl(|tx_buffer| {
  923. let size = tx_buffer.enqueue_slice(data);
  924. (size, size)
  925. })
  926. }
  927. fn recv_error_check(&mut self) -> Result<(), RecvError> {
  928. // We may have received some data inside the initial SYN, but until the connection
  929. // is fully open we must not dequeue any data, as it may be overwritten by e.g.
  930. // another (stale) SYN. (We do not support TCP Fast Open.)
  931. if !self.may_recv() {
  932. if self.rx_fin_received {
  933. return Err(RecvError::Finished);
  934. }
  935. return Err(RecvError::InvalidState);
  936. }
  937. Ok(())
  938. }
  939. fn recv_impl<'b, F, R>(&'b mut self, f: F) -> Result<R, RecvError>
  940. where
  941. F: FnOnce(&'b mut SocketBuffer<'a>) -> (usize, R),
  942. {
  943. self.recv_error_check()?;
  944. let _old_length = self.rx_buffer.len();
  945. let (size, result) = f(&mut self.rx_buffer);
  946. self.remote_seq_no += size;
  947. if size > 0 {
  948. #[cfg(any(test, feature = "verbose"))]
  949. tcp_trace!(
  950. "rx buffer: dequeueing {} octets (now {})",
  951. size,
  952. _old_length - size
  953. );
  954. }
  955. Ok(result)
  956. }
  957. /// Call `f` with the largest contiguous slice of octets in the receive buffer,
  958. /// and dequeue the amount of elements returned by `f`.
  959. ///
  960. /// This function errors if the receive half of the connection is not open.
  961. ///
  962. /// If the receive half has been gracefully closed (with a FIN packet), `Err(Error::Finished)`
  963. /// is returned. In this case, the previously received data is guaranteed to be complete.
  964. ///
  965. /// In all other cases, `Err(Error::Illegal)` is returned and previously received data (if any)
  966. /// may be incomplete (truncated).
  967. pub fn recv<'b, F, R>(&'b mut self, f: F) -> Result<R, RecvError>
  968. where
  969. F: FnOnce(&'b mut [u8]) -> (usize, R),
  970. {
  971. self.recv_impl(|rx_buffer| rx_buffer.dequeue_many_with(f))
  972. }
  973. /// Dequeue a sequence of received octets, and fill a slice from it.
  974. ///
  975. /// This function returns the amount of octets actually dequeued, which is limited
  976. /// by the amount of occupied space in the receive buffer; down to zero.
  977. ///
  978. /// See also [recv](#method.recv).
  979. pub fn recv_slice(&mut self, data: &mut [u8]) -> Result<usize, RecvError> {
  980. self.recv_impl(|rx_buffer| {
  981. let size = rx_buffer.dequeue_slice(data);
  982. (size, size)
  983. })
  984. }
  985. /// Peek at a sequence of received octets without removing them from
  986. /// the receive buffer, and return a pointer to it.
  987. ///
  988. /// This function otherwise behaves identically to [recv](#method.recv).
  989. pub fn peek(&mut self, size: usize) -> Result<&[u8], RecvError> {
  990. self.recv_error_check()?;
  991. let buffer = self.rx_buffer.get_allocated(0, size);
  992. if !buffer.is_empty() {
  993. #[cfg(any(test, feature = "verbose"))]
  994. tcp_trace!("rx buffer: peeking at {} octets", buffer.len());
  995. }
  996. Ok(buffer)
  997. }
  998. /// Peek at a sequence of received octets without removing them from
  999. /// the receive buffer, and fill a slice from it.
  1000. ///
  1001. /// This function otherwise behaves identically to [recv_slice](#method.recv_slice).
  1002. pub fn peek_slice(&mut self, data: &mut [u8]) -> Result<usize, RecvError> {
  1003. let buffer = self.peek(data.len())?;
  1004. let data = &mut data[..buffer.len()];
  1005. data.copy_from_slice(buffer);
  1006. Ok(buffer.len())
  1007. }
  1008. /// Return the amount of octets queued in the transmit buffer.
  1009. ///
  1010. /// Note that the Berkeley sockets interface does not have an equivalent of this API.
  1011. pub fn send_queue(&self) -> usize {
  1012. self.tx_buffer.len()
  1013. }
  1014. /// Return the amount of octets queued in the receive buffer. This value can be larger than
  1015. /// the slice read by the next `recv` or `peek` call because it includes all queued octets,
  1016. /// and not only the octets that may be returned as a contiguous slice.
  1017. ///
  1018. /// Note that the Berkeley sockets interface does not have an equivalent of this API.
  1019. pub fn recv_queue(&self) -> usize {
  1020. self.rx_buffer.len()
  1021. }
  1022. fn set_state(&mut self, state: State) {
  1023. if self.state != state {
  1024. tcp_trace!("state={}=>{}", self.state, state);
  1025. }
  1026. self.state = state;
  1027. #[cfg(feature = "async")]
  1028. {
  1029. // Wake all tasks waiting. Even if we haven't received/sent data, this
  1030. // is needed because return values of functions may change depending on the state.
  1031. // For example, a pending read has to fail with an error if the socket is closed.
  1032. self.rx_waker.wake();
  1033. self.tx_waker.wake();
  1034. }
  1035. }
  1036. pub(crate) fn reply(ip_repr: &IpRepr, repr: &TcpRepr) -> (IpRepr, TcpRepr<'static>) {
  1037. let reply_repr = TcpRepr {
  1038. src_port: repr.dst_port,
  1039. dst_port: repr.src_port,
  1040. control: TcpControl::None,
  1041. seq_number: TcpSeqNumber(0),
  1042. ack_number: None,
  1043. window_len: 0,
  1044. window_scale: None,
  1045. max_seg_size: None,
  1046. sack_permitted: false,
  1047. sack_ranges: [None, None, None],
  1048. payload: &[],
  1049. };
  1050. let ip_reply_repr = IpRepr::new(
  1051. ip_repr.dst_addr(),
  1052. ip_repr.src_addr(),
  1053. IpProtocol::Tcp,
  1054. reply_repr.buffer_len(),
  1055. 64,
  1056. );
  1057. (ip_reply_repr, reply_repr)
  1058. }
  1059. pub(crate) fn rst_reply(ip_repr: &IpRepr, repr: &TcpRepr) -> (IpRepr, TcpRepr<'static>) {
  1060. debug_assert!(repr.control != TcpControl::Rst);
  1061. let (ip_reply_repr, mut reply_repr) = Self::reply(ip_repr, repr);
  1062. // See https://www.snellman.net/blog/archive/2016-02-01-tcp-rst/ for explanation
  1063. // of why we sometimes send an RST and sometimes an RST|ACK
  1064. reply_repr.control = TcpControl::Rst;
  1065. reply_repr.seq_number = repr.ack_number.unwrap_or_default();
  1066. if repr.control == TcpControl::Syn && repr.ack_number.is_none() {
  1067. reply_repr.ack_number = Some(repr.seq_number + repr.segment_len());
  1068. }
  1069. (ip_reply_repr, reply_repr)
  1070. }
  1071. fn ack_reply(&mut self, ip_repr: &IpRepr, repr: &TcpRepr) -> (IpRepr, TcpRepr<'static>) {
  1072. let (mut ip_reply_repr, mut reply_repr) = Self::reply(ip_repr, repr);
  1073. // From RFC 793:
  1074. // [...] an empty acknowledgment segment containing the current send-sequence number
  1075. // and an acknowledgment indicating the next sequence number expected
  1076. // to be received.
  1077. reply_repr.seq_number = self.remote_last_seq;
  1078. reply_repr.ack_number = Some(self.remote_seq_no + self.rx_buffer.len());
  1079. self.remote_last_ack = reply_repr.ack_number;
  1080. // From RFC 1323:
  1081. // The window field [...] of every outgoing segment, with the exception of SYN
  1082. // segments, is right-shifted by [advertised scale value] bits[...]
  1083. reply_repr.window_len = self.scaled_window();
  1084. self.remote_last_win = reply_repr.window_len;
  1085. // If the remote supports selective acknowledgement, add the option to the outgoing
  1086. // segment.
  1087. if self.remote_has_sack {
  1088. net_debug!("sending sACK option with current assembler ranges");
  1089. // RFC 2018: The first SACK block (i.e., the one immediately following the kind and
  1090. // length fields in the option) MUST specify the contiguous block of data containing
  1091. // the segment which triggered this ACK, unless that segment advanced the
  1092. // Acknowledgment Number field in the header.
  1093. reply_repr.sack_ranges[0] = None;
  1094. if let Some(last_seg_seq) = self.local_rx_last_seq.map(|s| s.0 as u32) {
  1095. reply_repr.sack_ranges[0] = self
  1096. .assembler
  1097. .iter_data(reply_repr.ack_number.map(|s| s.0 as usize).unwrap_or(0))
  1098. .map(|(left, right)| (left as u32, right as u32))
  1099. .find(|(left, right)| *left <= last_seg_seq && *right >= last_seg_seq);
  1100. }
  1101. if reply_repr.sack_ranges[0].is_none() {
  1102. // The matching segment was removed from the assembler, meaning the acknowledgement
  1103. // number has advanced, or there was no previous sACK.
  1104. //
  1105. // While the RFC says we SHOULD keep a list of reported sACK ranges, and iterate
  1106. // through those, that is currently infeasible. Instead, we offer the range with
  1107. // the lowest sequence number (if one exists) to hint at what segments would
  1108. // most quickly advance the acknowledgement number.
  1109. reply_repr.sack_ranges[0] = self
  1110. .assembler
  1111. .iter_data(reply_repr.ack_number.map(|s| s.0 as usize).unwrap_or(0))
  1112. .map(|(left, right)| (left as u32, right as u32))
  1113. .next();
  1114. }
  1115. }
  1116. // Since the sACK option may have changed the length of the payload, update that.
  1117. ip_reply_repr.set_payload_len(reply_repr.buffer_len());
  1118. (ip_reply_repr, reply_repr)
  1119. }
  1120. fn challenge_ack_reply(
  1121. &mut self,
  1122. cx: &mut Context,
  1123. ip_repr: &IpRepr,
  1124. repr: &TcpRepr,
  1125. ) -> Option<(IpRepr, TcpRepr<'static>)> {
  1126. if cx.now() < self.challenge_ack_timer {
  1127. return None;
  1128. }
  1129. // Rate-limit to 1 per second max.
  1130. self.challenge_ack_timer = cx.now() + Duration::from_secs(1);
  1131. return Some(self.ack_reply(ip_repr, repr));
  1132. }
  1133. pub(crate) fn accepts(&self, _cx: &mut Context, ip_repr: &IpRepr, repr: &TcpRepr) -> bool {
  1134. if self.state == State::Closed {
  1135. return false;
  1136. }
  1137. // If we're still listening for SYNs and the packet has an ACK, it cannot
  1138. // be destined to this socket, but another one may well listen on the same
  1139. // local endpoint.
  1140. if self.state == State::Listen && repr.ack_number.is_some() {
  1141. return false;
  1142. }
  1143. if let Some(tuple) = &self.tuple {
  1144. // Reject packets not matching the 4-tuple
  1145. ip_repr.dst_addr() == tuple.local.addr
  1146. && repr.dst_port == tuple.local.port
  1147. && ip_repr.src_addr() == tuple.remote.addr
  1148. && repr.src_port == tuple.remote.port
  1149. } else {
  1150. // We're listening, reject packets not matching the listen endpoint.
  1151. let addr_ok = match self.listen_endpoint.addr {
  1152. Some(addr) => ip_repr.dst_addr() == addr,
  1153. None => true,
  1154. };
  1155. addr_ok && repr.dst_port != 0 && repr.dst_port == self.listen_endpoint.port
  1156. }
  1157. }
  1158. pub(crate) fn process(
  1159. &mut self,
  1160. cx: &mut Context,
  1161. ip_repr: &IpRepr,
  1162. repr: &TcpRepr,
  1163. ) -> Option<(IpRepr, TcpRepr<'static>)> {
  1164. debug_assert!(self.accepts(cx, ip_repr, repr));
  1165. // Consider how much the sequence number space differs from the transmit buffer space.
  1166. let (sent_syn, sent_fin) = match self.state {
  1167. // In SYN-SENT or SYN-RECEIVED, we've just sent a SYN.
  1168. State::SynSent | State::SynReceived => (true, false),
  1169. // In FIN-WAIT-1, LAST-ACK, or CLOSING, we've just sent a FIN.
  1170. State::FinWait1 | State::LastAck | State::Closing => (false, true),
  1171. // In all other states we've already got acknowledgements for
  1172. // all of the control flags we sent.
  1173. _ => (false, false),
  1174. };
  1175. let control_len = (sent_syn as usize) + (sent_fin as usize);
  1176. // Reject unacceptable acknowledgements.
  1177. match (self.state, repr.control, repr.ack_number) {
  1178. // An RST received in response to initial SYN is acceptable if it acknowledges
  1179. // the initial SYN.
  1180. (State::SynSent, TcpControl::Rst, None) => {
  1181. net_debug!("unacceptable RST (expecting RST|ACK) in response to initial SYN");
  1182. return None;
  1183. }
  1184. (State::SynSent, TcpControl::Rst, Some(ack_number)) => {
  1185. if ack_number != self.local_seq_no + 1 {
  1186. net_debug!("unacceptable RST|ACK in response to initial SYN");
  1187. return None;
  1188. }
  1189. }
  1190. // Any other RST need only have a valid sequence number.
  1191. (_, TcpControl::Rst, _) => (),
  1192. // The initial SYN cannot contain an acknowledgement.
  1193. (State::Listen, _, None) => (),
  1194. // This case is handled in `accepts()`.
  1195. (State::Listen, _, Some(_)) => unreachable!(),
  1196. // Every packet after the initial SYN must be an acknowledgement.
  1197. (_, _, None) => {
  1198. net_debug!("expecting an ACK");
  1199. return None;
  1200. }
  1201. // SYN|ACK in the SYN-SENT state must have the exact ACK number.
  1202. (State::SynSent, TcpControl::Syn, Some(ack_number)) => {
  1203. if ack_number != self.local_seq_no + 1 {
  1204. net_debug!("unacceptable SYN|ACK in response to initial SYN");
  1205. return Some(Self::rst_reply(ip_repr, repr));
  1206. }
  1207. }
  1208. // ACKs in the SYN-SENT state are invalid.
  1209. (State::SynSent, TcpControl::None, Some(ack_number)) => {
  1210. // If the sequence number matches, ignore it instead of RSTing.
  1211. // I'm not sure why, I think it may be a workaround for broken TCP
  1212. // servers, or a defense against reordering. Either way, if Linux
  1213. // does it, we do too.
  1214. if ack_number == self.local_seq_no + 1 {
  1215. net_debug!(
  1216. "expecting a SYN|ACK, received an ACK with the right ack_number, ignoring."
  1217. );
  1218. return None;
  1219. }
  1220. net_debug!(
  1221. "expecting a SYN|ACK, received an ACK with the wrong ack_number, sending RST."
  1222. );
  1223. return Some(Self::rst_reply(ip_repr, repr));
  1224. }
  1225. // Anything else in the SYN-SENT state is invalid.
  1226. (State::SynSent, _, _) => {
  1227. net_debug!("expecting a SYN|ACK");
  1228. return None;
  1229. }
  1230. // ACK in the SYN-RECEIVED state must have the exact ACK number, or we RST it.
  1231. (State::SynReceived, _, Some(ack_number)) => {
  1232. if ack_number != self.local_seq_no + 1 {
  1233. net_debug!("unacceptable ACK in response to SYN|ACK");
  1234. return Some(Self::rst_reply(ip_repr, repr));
  1235. }
  1236. }
  1237. // Every acknowledgement must be for transmitted but unacknowledged data.
  1238. (_, _, Some(ack_number)) => {
  1239. let unacknowledged = self.tx_buffer.len() + control_len;
  1240. // Acceptable ACK range (both inclusive)
  1241. let mut ack_min = self.local_seq_no;
  1242. let ack_max = self.local_seq_no + unacknowledged;
  1243. // If we have sent a SYN, it MUST be acknowledged.
  1244. if sent_syn {
  1245. ack_min += 1;
  1246. }
  1247. if ack_number < ack_min {
  1248. net_debug!(
  1249. "duplicate ACK ({} not in {}...{})",
  1250. ack_number,
  1251. ack_min,
  1252. ack_max
  1253. );
  1254. return None;
  1255. }
  1256. if ack_number > ack_max {
  1257. net_debug!(
  1258. "unacceptable ACK ({} not in {}...{})",
  1259. ack_number,
  1260. ack_min,
  1261. ack_max
  1262. );
  1263. return self.challenge_ack_reply(cx, ip_repr, repr);
  1264. }
  1265. }
  1266. }
  1267. let window_start = self.remote_seq_no + self.rx_buffer.len();
  1268. let window_end = self.remote_seq_no + self.rx_buffer.capacity();
  1269. let segment_start = repr.seq_number;
  1270. let segment_end = repr.seq_number + repr.segment_len();
  1271. let payload_offset;
  1272. match self.state {
  1273. // In LISTEN and SYN-SENT states, we have not yet synchronized with the remote end.
  1274. State::Listen | State::SynSent => payload_offset = 0,
  1275. // In all other states, segments must occupy a valid portion of the receive window.
  1276. _ => {
  1277. let mut segment_in_window = true;
  1278. if window_start == window_end && segment_start != segment_end {
  1279. net_debug!(
  1280. "non-zero-length segment with zero receive window, will only send an ACK"
  1281. );
  1282. segment_in_window = false;
  1283. }
  1284. if segment_start == segment_end && segment_end == window_start - 1 {
  1285. net_debug!("received a keep-alive or window probe packet, will send an ACK");
  1286. segment_in_window = false;
  1287. } else if !((window_start <= segment_start && segment_start <= window_end)
  1288. && (window_start <= segment_end && segment_end <= window_end))
  1289. {
  1290. net_debug!(
  1291. "segment not in receive window ({}..{} not intersecting {}..{}), will send challenge ACK",
  1292. segment_start,
  1293. segment_end,
  1294. window_start,
  1295. window_end
  1296. );
  1297. segment_in_window = false;
  1298. }
  1299. if segment_in_window {
  1300. // We've checked that segment_start >= window_start above.
  1301. payload_offset = (segment_start - window_start) as usize;
  1302. self.local_rx_last_seq = Some(repr.seq_number);
  1303. } else {
  1304. // If we're in the TIME-WAIT state, restart the TIME-WAIT timeout, since
  1305. // the remote end may not have realized we've closed the connection.
  1306. if self.state == State::TimeWait {
  1307. self.timer.set_for_close(cx.now());
  1308. }
  1309. return self.challenge_ack_reply(cx, ip_repr, repr);
  1310. }
  1311. }
  1312. }
  1313. // Compute the amount of acknowledged octets, removing the SYN and FIN bits
  1314. // from the sequence space.
  1315. let mut ack_len = 0;
  1316. let mut ack_of_fin = false;
  1317. let mut ack_all = false;
  1318. if repr.control != TcpControl::Rst {
  1319. if let Some(ack_number) = repr.ack_number {
  1320. // Sequence number corresponding to the first byte in `tx_buffer`.
  1321. // This normally equals `local_seq_no`, but is 1 higher if we have sent a SYN,
  1322. // as the SYN occupies 1 sequence number "before" the data.
  1323. let tx_buffer_start_seq = self.local_seq_no + (sent_syn as usize);
  1324. if ack_number >= tx_buffer_start_seq {
  1325. ack_len = ack_number - tx_buffer_start_seq;
  1326. // We could've sent data before the FIN, so only remove FIN from the sequence
  1327. // space if all of that data is acknowledged.
  1328. if sent_fin && self.tx_buffer.len() + 1 == ack_len {
  1329. ack_len -= 1;
  1330. tcp_trace!("received ACK of FIN");
  1331. ack_of_fin = true;
  1332. }
  1333. ack_all = self.remote_last_seq == ack_number
  1334. }
  1335. self.rtte.on_ack(cx.now(), ack_number);
  1336. }
  1337. }
  1338. // Disregard control flags we don't care about or shouldn't act on yet.
  1339. let mut control = repr.control;
  1340. control = control.quash_psh();
  1341. // If a FIN is received at the end of the current segment but the start of the segment
  1342. // is not at the start of the receive window, disregard this FIN.
  1343. if control == TcpControl::Fin && window_start != segment_start {
  1344. control = TcpControl::None;
  1345. }
  1346. // Validate and update the state.
  1347. match (self.state, control) {
  1348. // RSTs are not accepted in the LISTEN state.
  1349. (State::Listen, TcpControl::Rst) => return None,
  1350. // RSTs in SYN-RECEIVED flip the socket back to the LISTEN state.
  1351. (State::SynReceived, TcpControl::Rst) => {
  1352. tcp_trace!("received RST");
  1353. self.tuple = None;
  1354. self.set_state(State::Listen);
  1355. return None;
  1356. }
  1357. // RSTs in any other state close the socket.
  1358. (_, TcpControl::Rst) => {
  1359. tcp_trace!("received RST");
  1360. self.set_state(State::Closed);
  1361. self.tuple = None;
  1362. return None;
  1363. }
  1364. // SYN packets in the LISTEN state change it to SYN-RECEIVED.
  1365. (State::Listen, TcpControl::Syn) => {
  1366. tcp_trace!("received SYN");
  1367. if let Some(max_seg_size) = repr.max_seg_size {
  1368. if max_seg_size == 0 {
  1369. tcp_trace!("received SYNACK with zero MSS, ignoring");
  1370. return None;
  1371. }
  1372. self.remote_mss = max_seg_size as usize
  1373. }
  1374. self.tuple = Some(Tuple {
  1375. local: IpEndpoint::new(ip_repr.dst_addr(), repr.dst_port),
  1376. remote: IpEndpoint::new(ip_repr.src_addr(), repr.src_port),
  1377. });
  1378. self.local_seq_no = Self::random_seq_no(cx);
  1379. self.remote_seq_no = repr.seq_number + 1;
  1380. self.remote_last_seq = self.local_seq_no;
  1381. self.remote_has_sack = repr.sack_permitted;
  1382. self.remote_win_scale = repr.window_scale;
  1383. // Remote doesn't support window scaling, don't do it.
  1384. if self.remote_win_scale.is_none() {
  1385. self.remote_win_shift = 0;
  1386. }
  1387. self.set_state(State::SynReceived);
  1388. self.timer.set_for_idle(cx.now(), self.keep_alive);
  1389. }
  1390. // ACK packets in the SYN-RECEIVED state change it to ESTABLISHED.
  1391. (State::SynReceived, TcpControl::None) => {
  1392. self.set_state(State::Established);
  1393. self.timer.set_for_idle(cx.now(), self.keep_alive);
  1394. }
  1395. // FIN packets in the SYN-RECEIVED state change it to CLOSE-WAIT.
  1396. // It's not obvious from RFC 793 that this is permitted, but
  1397. // 7th and 8th steps in the "SEGMENT ARRIVES" event describe this behavior.
  1398. (State::SynReceived, TcpControl::Fin) => {
  1399. self.remote_seq_no += 1;
  1400. self.rx_fin_received = true;
  1401. self.set_state(State::CloseWait);
  1402. self.timer.set_for_idle(cx.now(), self.keep_alive);
  1403. }
  1404. // SYN|ACK packets in the SYN-SENT state change it to ESTABLISHED.
  1405. (State::SynSent, TcpControl::Syn) => {
  1406. tcp_trace!("received SYN|ACK");
  1407. if let Some(max_seg_size) = repr.max_seg_size {
  1408. if max_seg_size == 0 {
  1409. tcp_trace!("received SYNACK with zero MSS, ignoring");
  1410. return None;
  1411. }
  1412. self.remote_mss = max_seg_size as usize;
  1413. }
  1414. self.remote_seq_no = repr.seq_number + 1;
  1415. self.remote_last_seq = self.local_seq_no + 1;
  1416. self.remote_last_ack = Some(repr.seq_number);
  1417. self.remote_win_scale = repr.window_scale;
  1418. // Remote doesn't support window scaling, don't do it.
  1419. if self.remote_win_scale.is_none() {
  1420. self.remote_win_shift = 0;
  1421. }
  1422. self.set_state(State::Established);
  1423. self.timer.set_for_idle(cx.now(), self.keep_alive);
  1424. }
  1425. // ACK packets in ESTABLISHED state reset the retransmit timer,
  1426. // except for duplicate ACK packets which preserve it.
  1427. (State::Established, TcpControl::None) => {
  1428. if !self.timer.is_retransmit() || ack_all {
  1429. self.timer.set_for_idle(cx.now(), self.keep_alive);
  1430. }
  1431. }
  1432. // FIN packets in ESTABLISHED state indicate the remote side has closed.
  1433. (State::Established, TcpControl::Fin) => {
  1434. self.remote_seq_no += 1;
  1435. self.rx_fin_received = true;
  1436. self.set_state(State::CloseWait);
  1437. self.timer.set_for_idle(cx.now(), self.keep_alive);
  1438. }
  1439. // ACK packets in FIN-WAIT-1 state change it to FIN-WAIT-2, if we've already
  1440. // sent everything in the transmit buffer. If not, they reset the retransmit timer.
  1441. (State::FinWait1, TcpControl::None) => {
  1442. if ack_of_fin {
  1443. self.set_state(State::FinWait2);
  1444. }
  1445. if ack_all {
  1446. self.timer.set_for_idle(cx.now(), self.keep_alive);
  1447. }
  1448. }
  1449. // FIN packets in FIN-WAIT-1 state change it to CLOSING, or to TIME-WAIT
  1450. // if they also acknowledge our FIN.
  1451. (State::FinWait1, TcpControl::Fin) => {
  1452. self.remote_seq_no += 1;
  1453. self.rx_fin_received = true;
  1454. if ack_of_fin {
  1455. self.set_state(State::TimeWait);
  1456. self.timer.set_for_close(cx.now());
  1457. } else {
  1458. self.set_state(State::Closing);
  1459. self.timer.set_for_idle(cx.now(), self.keep_alive);
  1460. }
  1461. }
  1462. // Data packets in FIN-WAIT-2 reset the idle timer.
  1463. (State::FinWait2, TcpControl::None) => {
  1464. self.timer.set_for_idle(cx.now(), self.keep_alive);
  1465. }
  1466. // FIN packets in FIN-WAIT-2 state change it to TIME-WAIT.
  1467. (State::FinWait2, TcpControl::Fin) => {
  1468. self.remote_seq_no += 1;
  1469. self.rx_fin_received = true;
  1470. self.set_state(State::TimeWait);
  1471. self.timer.set_for_close(cx.now());
  1472. }
  1473. // ACK packets in CLOSING state change it to TIME-WAIT.
  1474. (State::Closing, TcpControl::None) => {
  1475. if ack_of_fin {
  1476. self.set_state(State::TimeWait);
  1477. self.timer.set_for_close(cx.now());
  1478. } else {
  1479. self.timer.set_for_idle(cx.now(), self.keep_alive);
  1480. }
  1481. }
  1482. // ACK packets in CLOSE-WAIT state reset the retransmit timer.
  1483. (State::CloseWait, TcpControl::None) => {
  1484. self.timer.set_for_idle(cx.now(), self.keep_alive);
  1485. }
  1486. // ACK packets in LAST-ACK state change it to CLOSED.
  1487. (State::LastAck, TcpControl::None) => {
  1488. if ack_of_fin {
  1489. // Clear the remote endpoint, or we'll send an RST there.
  1490. self.set_state(State::Closed);
  1491. self.tuple = None;
  1492. } else {
  1493. self.timer.set_for_idle(cx.now(), self.keep_alive);
  1494. }
  1495. }
  1496. _ => {
  1497. net_debug!("unexpected packet {}", repr);
  1498. return None;
  1499. }
  1500. }
  1501. // Update remote state.
  1502. self.remote_last_ts = Some(cx.now());
  1503. // RFC 1323: The window field (SEG.WND) in the header of every incoming segment, with the
  1504. // exception of SYN segments, is left-shifted by Snd.Wind.Scale bits before updating SND.WND.
  1505. let scale = match repr.control {
  1506. TcpControl::Syn => 0,
  1507. _ => self.remote_win_scale.unwrap_or(0),
  1508. };
  1509. self.remote_win_len = (repr.window_len as usize) << (scale as usize);
  1510. if ack_len > 0 {
  1511. // Dequeue acknowledged octets.
  1512. debug_assert!(self.tx_buffer.len() >= ack_len);
  1513. tcp_trace!(
  1514. "tx buffer: dequeueing {} octets (now {})",
  1515. ack_len,
  1516. self.tx_buffer.len() - ack_len
  1517. );
  1518. self.tx_buffer.dequeue_allocated(ack_len);
  1519. // There's new room available in tx_buffer, wake the waiting task if any.
  1520. #[cfg(feature = "async")]
  1521. self.tx_waker.wake();
  1522. }
  1523. if let Some(ack_number) = repr.ack_number {
  1524. // TODO: When flow control is implemented,
  1525. // refractor the following block within that implementation
  1526. // Detect and react to duplicate ACKs by:
  1527. // 1. Check if duplicate ACK and change self.local_rx_dup_acks accordingly
  1528. // 2. If exactly 3 duplicate ACKs received, set for fast retransmit
  1529. // 3. Update the last received ACK (self.local_rx_last_ack)
  1530. match self.local_rx_last_ack {
  1531. // Duplicate ACK if payload empty and ACK doesn't move send window ->
  1532. // Increment duplicate ACK count and set for retransmit if we just received
  1533. // the third duplicate ACK
  1534. Some(ref last_rx_ack)
  1535. if repr.payload.is_empty()
  1536. && *last_rx_ack == ack_number
  1537. && ack_number < self.remote_last_seq =>
  1538. {
  1539. // Increment duplicate ACK count
  1540. self.local_rx_dup_acks = self.local_rx_dup_acks.saturating_add(1);
  1541. net_debug!(
  1542. "received duplicate ACK for seq {} (duplicate nr {}{})",
  1543. ack_number,
  1544. self.local_rx_dup_acks,
  1545. if self.local_rx_dup_acks == u8::max_value() {
  1546. "+"
  1547. } else {
  1548. ""
  1549. }
  1550. );
  1551. if self.local_rx_dup_acks == 3 {
  1552. self.timer.set_for_fast_retransmit();
  1553. net_debug!("started fast retransmit");
  1554. }
  1555. }
  1556. // No duplicate ACK -> Reset state and update last received ACK
  1557. _ => {
  1558. if self.local_rx_dup_acks > 0 {
  1559. self.local_rx_dup_acks = 0;
  1560. net_debug!("reset duplicate ACK count");
  1561. }
  1562. self.local_rx_last_ack = Some(ack_number);
  1563. }
  1564. };
  1565. // We've processed everything in the incoming segment, so advance the local
  1566. // sequence number past it.
  1567. self.local_seq_no = ack_number;
  1568. // During retransmission, if an earlier segment got lost but later was
  1569. // successfully received, self.local_seq_no can move past self.remote_last_seq.
  1570. // Do not attempt to retransmit the latter segments; not only this is pointless
  1571. // in theory but also impossible in practice, since they have been already
  1572. // deallocated from the buffer.
  1573. if self.remote_last_seq < self.local_seq_no {
  1574. self.remote_last_seq = self.local_seq_no
  1575. }
  1576. }
  1577. let payload_len = repr.payload.len();
  1578. if payload_len == 0 {
  1579. return None;
  1580. }
  1581. let assembler_was_empty = self.assembler.is_empty();
  1582. // Try adding payload octets to the assembler.
  1583. match self.assembler.add(payload_offset, payload_len) {
  1584. Ok(_) => {
  1585. debug_assert!(self.assembler.total_size() == self.rx_buffer.capacity());
  1586. // Place payload octets into the buffer.
  1587. tcp_trace!(
  1588. "rx buffer: receiving {} octets at offset {}",
  1589. payload_len,
  1590. payload_offset
  1591. );
  1592. let len_written = self
  1593. .rx_buffer
  1594. .write_unallocated(payload_offset, repr.payload);
  1595. debug_assert!(len_written == payload_len);
  1596. }
  1597. Err(_) => {
  1598. net_debug!(
  1599. "assembler: too many holes to add {} octets at offset {}",
  1600. payload_len,
  1601. payload_offset
  1602. );
  1603. return None;
  1604. }
  1605. }
  1606. if let Some(contig_len) = self.assembler.remove_front() {
  1607. debug_assert!(self.assembler.total_size() == self.rx_buffer.capacity());
  1608. // Enqueue the contiguous data octets in front of the buffer.
  1609. tcp_trace!(
  1610. "rx buffer: enqueueing {} octets (now {})",
  1611. contig_len,
  1612. self.rx_buffer.len() + contig_len
  1613. );
  1614. self.rx_buffer.enqueue_unallocated(contig_len);
  1615. // There's new data in rx_buffer, notify waiting task if any.
  1616. #[cfg(feature = "async")]
  1617. self.rx_waker.wake();
  1618. }
  1619. if !self.assembler.is_empty() {
  1620. // Print the ranges recorded in the assembler.
  1621. tcp_trace!("assembler: {}", self.assembler);
  1622. }
  1623. // Handle delayed acks
  1624. if let Some(ack_delay) = self.ack_delay {
  1625. if self.ack_to_transmit() || self.window_to_update() {
  1626. self.ack_delay_timer = match self.ack_delay_timer {
  1627. AckDelayTimer::Idle => {
  1628. tcp_trace!("starting delayed ack timer");
  1629. AckDelayTimer::Waiting(cx.now() + ack_delay)
  1630. }
  1631. // RFC1122 says "in a stream of full-sized segments there SHOULD be an ACK
  1632. // for at least every second segment".
  1633. // For now, we send an ACK every second received packet, full-sized or not.
  1634. AckDelayTimer::Waiting(_) => {
  1635. tcp_trace!("delayed ack timer already started, forcing expiry");
  1636. AckDelayTimer::Immediate
  1637. }
  1638. AckDelayTimer::Immediate => {
  1639. tcp_trace!("delayed ack timer already force-expired");
  1640. AckDelayTimer::Immediate
  1641. }
  1642. };
  1643. }
  1644. }
  1645. // Per RFC 5681, we should send an immediate ACK when either:
  1646. // 1) an out-of-order segment is received, or
  1647. // 2) a segment arrives that fills in all or part of a gap in sequence space.
  1648. if !self.assembler.is_empty() || !assembler_was_empty {
  1649. // Note that we change the transmitter state here.
  1650. // This is fine because smoltcp assumes that it can always transmit zero or one
  1651. // packets for every packet it receives.
  1652. tcp_trace!("ACKing incoming segment");
  1653. Some(self.ack_reply(ip_repr, repr))
  1654. } else {
  1655. None
  1656. }
  1657. }
  1658. fn timed_out(&self, timestamp: Instant) -> bool {
  1659. match (self.remote_last_ts, self.timeout) {
  1660. (Some(remote_last_ts), Some(timeout)) => timestamp >= remote_last_ts + timeout,
  1661. (_, _) => false,
  1662. }
  1663. }
  1664. fn seq_to_transmit(&self, cx: &mut Context) -> bool {
  1665. let ip_header_len = match self.tuple.unwrap().local.addr {
  1666. #[cfg(feature = "proto-ipv4")]
  1667. IpAddress::Ipv4(_) => crate::wire::IPV4_HEADER_LEN,
  1668. #[cfg(feature = "proto-ipv6")]
  1669. IpAddress::Ipv6(_) => crate::wire::IPV6_HEADER_LEN,
  1670. };
  1671. // Max segment size we're able to send due to MTU limitations.
  1672. let local_mss = cx.ip_mtu() - ip_header_len - TCP_HEADER_LEN;
  1673. // The effective max segment size, taking into account our and remote's limits.
  1674. let effective_mss = local_mss.min(self.remote_mss);
  1675. // Have we sent data that hasn't been ACKed yet?
  1676. let data_in_flight = self.remote_last_seq != self.local_seq_no;
  1677. // If we want to send a SYN and we haven't done so, do it!
  1678. if matches!(self.state, State::SynSent | State::SynReceived) && !data_in_flight {
  1679. return true;
  1680. }
  1681. // max sequence number we can send.
  1682. let max_send_seq =
  1683. self.local_seq_no + core::cmp::min(self.remote_win_len, self.tx_buffer.len());
  1684. // Max amount of octets we can send.
  1685. let max_send = if max_send_seq >= self.remote_last_seq {
  1686. max_send_seq - self.remote_last_seq
  1687. } else {
  1688. 0
  1689. };
  1690. // Can we send at least 1 octet?
  1691. let mut can_send = max_send != 0;
  1692. // Can we send at least 1 full segment?
  1693. let can_send_full = max_send >= effective_mss;
  1694. // Do we have to send a FIN?
  1695. let want_fin = match self.state {
  1696. State::FinWait1 => true,
  1697. State::Closing => true,
  1698. State::LastAck => true,
  1699. _ => false,
  1700. };
  1701. if self.nagle && data_in_flight && !can_send_full {
  1702. can_send = false;
  1703. }
  1704. // Can we actually send the FIN? We can send it if:
  1705. // 1. We have unsent data that fits in the remote window.
  1706. // 2. We have no unsent data.
  1707. // This condition matches only if #2, because #1 is already covered by can_data and we're ORing them.
  1708. let can_fin = want_fin && self.remote_last_seq == self.local_seq_no + self.tx_buffer.len();
  1709. can_send || can_fin
  1710. }
  1711. fn delayed_ack_expired(&self, timestamp: Instant) -> bool {
  1712. match self.ack_delay_timer {
  1713. AckDelayTimer::Idle => true,
  1714. AckDelayTimer::Waiting(t) => t <= timestamp,
  1715. AckDelayTimer::Immediate => true,
  1716. }
  1717. }
  1718. fn ack_to_transmit(&self) -> bool {
  1719. if let Some(remote_last_ack) = self.remote_last_ack {
  1720. remote_last_ack < self.remote_seq_no + self.rx_buffer.len()
  1721. } else {
  1722. false
  1723. }
  1724. }
  1725. fn window_to_update(&self) -> bool {
  1726. match self.state {
  1727. State::SynSent
  1728. | State::SynReceived
  1729. | State::Established
  1730. | State::FinWait1
  1731. | State::FinWait2 => self.scaled_window() > self.remote_last_win,
  1732. _ => false,
  1733. }
  1734. }
  1735. pub(crate) fn dispatch<F, E>(&mut self, cx: &mut Context, emit: F) -> Result<(), E>
  1736. where
  1737. F: FnOnce(&mut Context, (IpRepr, TcpRepr)) -> Result<(), E>,
  1738. {
  1739. if self.tuple.is_none() {
  1740. return Ok(());
  1741. }
  1742. if self.remote_last_ts.is_none() {
  1743. // We get here in exactly two cases:
  1744. // 1) This socket just transitioned into SYN-SENT.
  1745. // 2) This socket had an empty transmit buffer and some data was added there.
  1746. // Both are similar in that the socket has been quiet for an indefinite
  1747. // period of time, it isn't anymore, and the local endpoint is talking.
  1748. // So, we start counting the timeout not from the last received packet
  1749. // but from the first transmitted one.
  1750. self.remote_last_ts = Some(cx.now());
  1751. }
  1752. // Check if any state needs to be changed because of a timer.
  1753. if self.timed_out(cx.now()) {
  1754. // If a timeout expires, we should abort the connection.
  1755. net_debug!("timeout exceeded");
  1756. self.set_state(State::Closed);
  1757. } else if !self.seq_to_transmit(cx) {
  1758. if let Some(retransmit_delta) = self.timer.should_retransmit(cx.now()) {
  1759. // If a retransmit timer expired, we should resend data starting at the last ACK.
  1760. net_debug!("retransmitting at t+{}", retransmit_delta);
  1761. // Rewind "last sequence number sent", as if we never
  1762. // had sent them. This will cause all data in the queue
  1763. // to be sent again.
  1764. self.remote_last_seq = self.local_seq_no;
  1765. // Clear the `should_retransmit` state. If we can't retransmit right
  1766. // now for whatever reason (like zero window), this avoids an
  1767. // infinite polling loop where `poll_at` returns `Now` but `dispatch`
  1768. // can't actually do anything.
  1769. self.timer.set_for_idle(cx.now(), self.keep_alive);
  1770. // Inform RTTE, so that it can avoid bogus measurements.
  1771. self.rtte.on_retransmit();
  1772. }
  1773. }
  1774. // Decide whether we're sending a packet.
  1775. if self.seq_to_transmit(cx) {
  1776. // If we have data to transmit and it fits into partner's window, do it.
  1777. tcp_trace!("outgoing segment will send data or flags");
  1778. } else if self.ack_to_transmit() && self.delayed_ack_expired(cx.now()) {
  1779. // If we have data to acknowledge, do it.
  1780. tcp_trace!("outgoing segment will acknowledge");
  1781. } else if self.window_to_update() && self.delayed_ack_expired(cx.now()) {
  1782. // If we have window length increase to advertise, do it.
  1783. tcp_trace!("outgoing segment will update window");
  1784. } else if self.state == State::Closed {
  1785. // If we need to abort the connection, do it.
  1786. tcp_trace!("outgoing segment will abort connection");
  1787. } else if self.timer.should_keep_alive(cx.now()) {
  1788. // If we need to transmit a keep-alive packet, do it.
  1789. tcp_trace!("keep-alive timer expired");
  1790. } else if self.timer.should_close(cx.now()) {
  1791. // If we have spent enough time in the TIME-WAIT state, close the socket.
  1792. tcp_trace!("TIME-WAIT timer expired");
  1793. self.reset();
  1794. return Ok(());
  1795. } else {
  1796. return Ok(());
  1797. }
  1798. // NOTE(unwrap): we check tuple is not None the first thing in this function.
  1799. let tuple = self.tuple.unwrap();
  1800. // Construct the lowered IP representation.
  1801. // We might need this to calculate the MSS, so do it early.
  1802. let mut ip_repr = IpRepr::new(
  1803. tuple.local.addr,
  1804. tuple.remote.addr,
  1805. IpProtocol::Tcp,
  1806. 0,
  1807. self.hop_limit.unwrap_or(64),
  1808. );
  1809. // Construct the basic TCP representation, an empty ACK packet.
  1810. // We'll adjust this to be more specific as needed.
  1811. let mut repr = TcpRepr {
  1812. src_port: tuple.local.port,
  1813. dst_port: tuple.remote.port,
  1814. control: TcpControl::None,
  1815. seq_number: self.remote_last_seq,
  1816. ack_number: Some(self.remote_seq_no + self.rx_buffer.len()),
  1817. window_len: self.scaled_window(),
  1818. window_scale: None,
  1819. max_seg_size: None,
  1820. sack_permitted: false,
  1821. sack_ranges: [None, None, None],
  1822. payload: &[],
  1823. };
  1824. match self.state {
  1825. // We transmit an RST in the CLOSED state. If we ended up in the CLOSED state
  1826. // with a specified endpoint, it means that the socket was aborted.
  1827. State::Closed => {
  1828. repr.control = TcpControl::Rst;
  1829. }
  1830. // We never transmit anything in the LISTEN state.
  1831. State::Listen => return Ok(()),
  1832. // We transmit a SYN in the SYN-SENT state.
  1833. // We transmit a SYN|ACK in the SYN-RECEIVED state.
  1834. State::SynSent | State::SynReceived => {
  1835. repr.control = TcpControl::Syn;
  1836. // window len must NOT be scaled in SYNs.
  1837. repr.window_len = self.rx_buffer.window().min((1 << 16) - 1) as u16;
  1838. if self.state == State::SynSent {
  1839. repr.ack_number = None;
  1840. repr.window_scale = Some(self.remote_win_shift);
  1841. repr.sack_permitted = true;
  1842. } else {
  1843. repr.sack_permitted = self.remote_has_sack;
  1844. repr.window_scale = self.remote_win_scale.map(|_| self.remote_win_shift);
  1845. }
  1846. }
  1847. // We transmit data in all states where we may have data in the buffer,
  1848. // or the transmit half of the connection is still open.
  1849. State::Established
  1850. | State::FinWait1
  1851. | State::Closing
  1852. | State::CloseWait
  1853. | State::LastAck => {
  1854. // Extract as much data as the remote side can receive in this packet
  1855. // from the transmit buffer.
  1856. // Right edge of window, ie the max sequence number we're allowed to send.
  1857. let win_right_edge = self.local_seq_no + self.remote_win_len;
  1858. // Max amount of octets we're allowed to send according to the remote window.
  1859. let win_limit = if win_right_edge >= self.remote_last_seq {
  1860. win_right_edge - self.remote_last_seq
  1861. } else {
  1862. // This can happen if we've sent some data and later the remote side
  1863. // has shrunk its window so that data is no longer inside the window.
  1864. // This should be very rare and is strongly discouraged by the RFCs,
  1865. // but it does happen in practice.
  1866. // http://www.tcpipguide.com/free/t_TCPWindowManagementIssues.htm
  1867. 0
  1868. };
  1869. // Maximum size we're allowed to send. This can be limited by 3 factors:
  1870. // 1. remote window
  1871. // 2. MSS the remote is willing to accept, probably determined by their MTU
  1872. // 3. MSS we can send, determined by our MTU.
  1873. let size = win_limit
  1874. .min(self.remote_mss)
  1875. .min(cx.ip_mtu() - ip_repr.buffer_len() - TCP_HEADER_LEN);
  1876. let offset = self.remote_last_seq - self.local_seq_no;
  1877. repr.payload = self.tx_buffer.get_allocated(offset, size);
  1878. // If we've sent everything we had in the buffer, follow it with the PSH or FIN
  1879. // flags, depending on whether the transmit half of the connection is open.
  1880. if offset + repr.payload.len() == self.tx_buffer.len() {
  1881. match self.state {
  1882. State::FinWait1 | State::LastAck | State::Closing => {
  1883. repr.control = TcpControl::Fin
  1884. }
  1885. State::Established | State::CloseWait if !repr.payload.is_empty() => {
  1886. repr.control = TcpControl::Psh
  1887. }
  1888. _ => (),
  1889. }
  1890. }
  1891. }
  1892. // In FIN-WAIT-2 and TIME-WAIT states we may only transmit ACKs for incoming data or FIN
  1893. State::FinWait2 | State::TimeWait => {}
  1894. }
  1895. // There might be more than one reason to send a packet. E.g. the keep-alive timer
  1896. // has expired, and we also have data in transmit buffer. Since any packet that occupies
  1897. // sequence space will elicit an ACK, we only need to send an explicit packet if we
  1898. // couldn't fill the sequence space with anything.
  1899. let is_keep_alive;
  1900. if self.timer.should_keep_alive(cx.now()) && repr.is_empty() {
  1901. repr.seq_number = repr.seq_number - 1;
  1902. repr.payload = b"\x00"; // RFC 1122 says we should do this
  1903. is_keep_alive = true;
  1904. } else {
  1905. is_keep_alive = false;
  1906. }
  1907. // Trace a summary of what will be sent.
  1908. if is_keep_alive {
  1909. tcp_trace!("sending a keep-alive");
  1910. } else if !repr.payload.is_empty() {
  1911. tcp_trace!(
  1912. "tx buffer: sending {} octets at offset {}",
  1913. repr.payload.len(),
  1914. self.remote_last_seq - self.local_seq_no
  1915. );
  1916. }
  1917. if repr.control != TcpControl::None || repr.payload.is_empty() {
  1918. let flags = match (repr.control, repr.ack_number) {
  1919. (TcpControl::Syn, None) => "SYN",
  1920. (TcpControl::Syn, Some(_)) => "SYN|ACK",
  1921. (TcpControl::Fin, Some(_)) => "FIN|ACK",
  1922. (TcpControl::Rst, Some(_)) => "RST|ACK",
  1923. (TcpControl::Psh, Some(_)) => "PSH|ACK",
  1924. (TcpControl::None, Some(_)) => "ACK",
  1925. _ => "<unreachable>",
  1926. };
  1927. tcp_trace!("sending {}", flags);
  1928. }
  1929. if repr.control == TcpControl::Syn {
  1930. // Fill the MSS option. See RFC 6691 for an explanation of this calculation.
  1931. let max_segment_size = cx.ip_mtu() - ip_repr.buffer_len() - TCP_HEADER_LEN;
  1932. repr.max_seg_size = Some(max_segment_size as u16);
  1933. }
  1934. // Actually send the packet. If this succeeds, it means the packet is in
  1935. // the device buffer, and its transmission is imminent. If not, we might have
  1936. // a number of problems, e.g. we need neighbor discovery.
  1937. //
  1938. // Bailing out if the packet isn't placed in the device buffer allows us
  1939. // to not waste time waiting for the retransmit timer on packets that we know
  1940. // for sure will not be successfully transmitted.
  1941. ip_repr.set_payload_len(repr.buffer_len());
  1942. emit(cx, (ip_repr, repr))?;
  1943. // We've sent something, whether useful data or a keep-alive packet, so rewind
  1944. // the keep-alive timer.
  1945. self.timer.rewind_keep_alive(cx.now(), self.keep_alive);
  1946. // Reset delayed-ack timer
  1947. match self.ack_delay_timer {
  1948. AckDelayTimer::Idle => {}
  1949. AckDelayTimer::Waiting(_) => {
  1950. tcp_trace!("stop delayed ack timer")
  1951. }
  1952. AckDelayTimer::Immediate => {
  1953. tcp_trace!("stop delayed ack timer (was force-expired)")
  1954. }
  1955. }
  1956. self.ack_delay_timer = AckDelayTimer::Idle;
  1957. // Leave the rest of the state intact if sending a keep-alive packet, since those
  1958. // carry a fake segment.
  1959. if is_keep_alive {
  1960. return Ok(());
  1961. }
  1962. // We've sent a packet successfully, so we can update the internal state now.
  1963. self.remote_last_seq = repr.seq_number + repr.segment_len();
  1964. self.remote_last_ack = repr.ack_number;
  1965. self.remote_last_win = repr.window_len;
  1966. if repr.segment_len() > 0 {
  1967. self.rtte
  1968. .on_send(cx.now(), repr.seq_number + repr.segment_len());
  1969. }
  1970. if !self.seq_to_transmit(cx) && repr.segment_len() > 0 {
  1971. // If we've transmitted all data we could (and there was something at all,
  1972. // data or flag, to transmit, not just an ACK), wind up the retransmit timer.
  1973. self.timer
  1974. .set_for_retransmit(cx.now(), self.rtte.retransmission_timeout());
  1975. }
  1976. if self.state == State::Closed {
  1977. // When aborting a connection, forget about it after sending a single RST packet.
  1978. self.tuple = None;
  1979. }
  1980. Ok(())
  1981. }
  1982. #[allow(clippy::if_same_then_else)]
  1983. pub(crate) fn poll_at(&self, cx: &mut Context) -> PollAt {
  1984. // The logic here mirrors the beginning of dispatch() closely.
  1985. if self.tuple.is_none() {
  1986. // No one to talk to, nothing to transmit.
  1987. PollAt::Ingress
  1988. } else if self.remote_last_ts.is_none() {
  1989. // Socket stopped being quiet recently, we need to acquire a timestamp.
  1990. PollAt::Now
  1991. } else if self.state == State::Closed {
  1992. // Socket was aborted, we have an RST packet to transmit.
  1993. PollAt::Now
  1994. } else if self.seq_to_transmit(cx) {
  1995. // We have a data or flag packet to transmit.
  1996. PollAt::Now
  1997. } else {
  1998. let want_ack = self.ack_to_transmit() || self.window_to_update();
  1999. let delayed_ack_poll_at = match (want_ack, self.ack_delay_timer) {
  2000. (false, _) => PollAt::Ingress,
  2001. (true, AckDelayTimer::Idle) => PollAt::Now,
  2002. (true, AckDelayTimer::Waiting(t)) => PollAt::Time(t),
  2003. (true, AckDelayTimer::Immediate) => PollAt::Now,
  2004. };
  2005. let timeout_poll_at = match (self.remote_last_ts, self.timeout) {
  2006. // If we're transmitting or retransmitting data, we need to poll at the moment
  2007. // when the timeout would expire.
  2008. (Some(remote_last_ts), Some(timeout)) => PollAt::Time(remote_last_ts + timeout),
  2009. // Otherwise we have no timeout.
  2010. (_, _) => PollAt::Ingress,
  2011. };
  2012. // We wait for the earliest of our timers to fire.
  2013. *[self.timer.poll_at(), timeout_poll_at, delayed_ack_poll_at]
  2014. .iter()
  2015. .min()
  2016. .unwrap_or(&PollAt::Ingress)
  2017. }
  2018. }
  2019. }
  2020. impl<'a> fmt::Write for Socket<'a> {
  2021. fn write_str(&mut self, slice: &str) -> fmt::Result {
  2022. let slice = slice.as_bytes();
  2023. if self.send_slice(slice) == Ok(slice.len()) {
  2024. Ok(())
  2025. } else {
  2026. Err(fmt::Error)
  2027. }
  2028. }
  2029. }
  2030. #[cfg(test)]
  2031. mod test {
  2032. use super::*;
  2033. use crate::wire::IpRepr;
  2034. use crate::Error;
  2035. use core::i32;
  2036. use std::ops::{Deref, DerefMut};
  2037. use std::vec::Vec;
  2038. // =========================================================================================//
  2039. // Constants
  2040. // =========================================================================================//
  2041. const LOCAL_PORT: u16 = 80;
  2042. const REMOTE_PORT: u16 = 49500;
  2043. const LISTEN_END: IpListenEndpoint = IpListenEndpoint {
  2044. addr: None,
  2045. port: LOCAL_PORT,
  2046. };
  2047. const LOCAL_END: IpEndpoint = IpEndpoint {
  2048. addr: LOCAL_ADDR.into_address(),
  2049. port: LOCAL_PORT,
  2050. };
  2051. const REMOTE_END: IpEndpoint = IpEndpoint {
  2052. addr: REMOTE_ADDR.into_address(),
  2053. port: REMOTE_PORT,
  2054. };
  2055. const TUPLE: Tuple = Tuple {
  2056. local: LOCAL_END,
  2057. remote: REMOTE_END,
  2058. };
  2059. const LOCAL_SEQ: TcpSeqNumber = TcpSeqNumber(10000);
  2060. const REMOTE_SEQ: TcpSeqNumber = TcpSeqNumber(-10001);
  2061. cfg_if::cfg_if! {
  2062. if #[cfg(feature = "proto-ipv4")] {
  2063. use crate::wire::Ipv4Address as IpvXAddress;
  2064. use crate::wire::Ipv4Repr as IpvXRepr;
  2065. use IpRepr::Ipv4 as IpReprIpvX;
  2066. const LOCAL_ADDR: IpvXAddress = IpvXAddress([192, 168, 1, 1]);
  2067. const REMOTE_ADDR: IpvXAddress = IpvXAddress([192, 168, 1, 2]);
  2068. const OTHER_ADDR: IpvXAddress = IpvXAddress([192, 168, 1, 3]);
  2069. const BASE_MSS: u16 = 1460;
  2070. } else {
  2071. use crate::wire::Ipv6Address as IpvXAddress;
  2072. use crate::wire::Ipv6Repr as IpvXRepr;
  2073. use IpRepr::Ipv6 as IpReprIpvX;
  2074. const LOCAL_ADDR: IpvXAddress = IpvXAddress([
  2075. 0xfe, 0x80, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 1,
  2076. ]);
  2077. const REMOTE_ADDR: IpvXAddress = IpvXAddress([
  2078. 0xfe, 0x80, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 2,
  2079. ]);
  2080. const OTHER_ADDR: IpvXAddress = IpvXAddress([
  2081. 0xfe, 0x80, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 3,
  2082. ]);
  2083. const BASE_MSS: u16 = 1440;
  2084. }
  2085. }
  2086. const SEND_IP_TEMPL: IpRepr = IpReprIpvX(IpvXRepr {
  2087. src_addr: LOCAL_ADDR,
  2088. dst_addr: REMOTE_ADDR,
  2089. next_header: IpProtocol::Tcp,
  2090. payload_len: 20,
  2091. hop_limit: 64,
  2092. });
  2093. const SEND_TEMPL: TcpRepr<'static> = TcpRepr {
  2094. src_port: REMOTE_PORT,
  2095. dst_port: LOCAL_PORT,
  2096. control: TcpControl::None,
  2097. seq_number: TcpSeqNumber(0),
  2098. ack_number: Some(TcpSeqNumber(0)),
  2099. window_len: 256,
  2100. window_scale: None,
  2101. max_seg_size: None,
  2102. sack_permitted: false,
  2103. sack_ranges: [None, None, None],
  2104. payload: &[],
  2105. };
  2106. const _RECV_IP_TEMPL: IpRepr = IpReprIpvX(IpvXRepr {
  2107. src_addr: LOCAL_ADDR,
  2108. dst_addr: REMOTE_ADDR,
  2109. next_header: IpProtocol::Tcp,
  2110. payload_len: 20,
  2111. hop_limit: 64,
  2112. });
  2113. const RECV_TEMPL: TcpRepr<'static> = TcpRepr {
  2114. src_port: LOCAL_PORT,
  2115. dst_port: REMOTE_PORT,
  2116. control: TcpControl::None,
  2117. seq_number: TcpSeqNumber(0),
  2118. ack_number: Some(TcpSeqNumber(0)),
  2119. window_len: 64,
  2120. window_scale: None,
  2121. max_seg_size: None,
  2122. sack_permitted: false,
  2123. sack_ranges: [None, None, None],
  2124. payload: &[],
  2125. };
  2126. // =========================================================================================//
  2127. // Helper functions
  2128. // =========================================================================================//
  2129. struct TestSocket {
  2130. socket: Socket<'static>,
  2131. cx: Context<'static>,
  2132. }
  2133. impl Deref for TestSocket {
  2134. type Target = Socket<'static>;
  2135. fn deref(&self) -> &Self::Target {
  2136. &self.socket
  2137. }
  2138. }
  2139. impl DerefMut for TestSocket {
  2140. fn deref_mut(&mut self) -> &mut Self::Target {
  2141. &mut self.socket
  2142. }
  2143. }
  2144. fn send(
  2145. socket: &mut TestSocket,
  2146. timestamp: Instant,
  2147. repr: &TcpRepr,
  2148. ) -> Option<TcpRepr<'static>> {
  2149. socket.cx.set_now(timestamp);
  2150. let ip_repr = IpReprIpvX(IpvXRepr {
  2151. src_addr: REMOTE_ADDR,
  2152. dst_addr: LOCAL_ADDR,
  2153. next_header: IpProtocol::Tcp,
  2154. payload_len: repr.buffer_len(),
  2155. hop_limit: 64,
  2156. });
  2157. net_trace!("send: {}", repr);
  2158. assert!(socket.socket.accepts(&mut socket.cx, &ip_repr, repr));
  2159. match socket.socket.process(&mut socket.cx, &ip_repr, repr) {
  2160. Some((_ip_repr, repr)) => {
  2161. net_trace!("recv: {}", repr);
  2162. Some(repr)
  2163. }
  2164. None => None,
  2165. }
  2166. }
  2167. fn recv<F>(socket: &mut TestSocket, timestamp: Instant, mut f: F)
  2168. where
  2169. F: FnMut(Result<TcpRepr, Error>),
  2170. {
  2171. socket.cx.set_now(timestamp);
  2172. let mut sent = 0;
  2173. let result = socket
  2174. .socket
  2175. .dispatch(&mut socket.cx, |_, (ip_repr, tcp_repr)| {
  2176. assert_eq!(ip_repr.next_header(), IpProtocol::Tcp);
  2177. assert_eq!(ip_repr.src_addr(), LOCAL_ADDR.into());
  2178. assert_eq!(ip_repr.dst_addr(), REMOTE_ADDR.into());
  2179. assert_eq!(ip_repr.payload_len(), tcp_repr.buffer_len());
  2180. net_trace!("recv: {}", tcp_repr);
  2181. sent += 1;
  2182. Ok(f(Ok(tcp_repr)))
  2183. });
  2184. match result {
  2185. Ok(()) => assert_eq!(sent, 1, "Exactly one packet should be sent"),
  2186. Err(e) => f(Err(e)),
  2187. }
  2188. }
  2189. fn recv_nothing(socket: &mut TestSocket, timestamp: Instant) {
  2190. socket.cx.set_now(timestamp);
  2191. let result: Result<(), ()> = socket
  2192. .socket
  2193. .dispatch(&mut socket.cx, |_, (_ip_repr, _tcp_repr)| {
  2194. panic!("Should not send a packet")
  2195. });
  2196. assert_eq!(result, Ok(()))
  2197. }
  2198. macro_rules! send {
  2199. ($socket:ident, $repr:expr) =>
  2200. (send!($socket, time 0, $repr));
  2201. ($socket:ident, $repr:expr, $result:expr) =>
  2202. (send!($socket, time 0, $repr, $result));
  2203. ($socket:ident, time $time:expr, $repr:expr) =>
  2204. (send!($socket, time $time, $repr, None));
  2205. ($socket:ident, time $time:expr, $repr:expr, $result:expr) =>
  2206. (assert_eq!(send(&mut $socket, Instant::from_millis($time), &$repr), $result));
  2207. }
  2208. macro_rules! recv {
  2209. ($socket:ident, [$( $repr:expr ),*]) => ({
  2210. $( recv!($socket, Ok($repr)); )*
  2211. recv_nothing!($socket)
  2212. });
  2213. ($socket:ident, $result:expr) =>
  2214. (recv!($socket, time 0, $result));
  2215. ($socket:ident, time $time:expr, $result:expr) =>
  2216. (recv(&mut $socket, Instant::from_millis($time), |result| {
  2217. // Most of the time we don't care about the PSH flag.
  2218. let result = result.map(|mut repr| {
  2219. repr.control = repr.control.quash_psh();
  2220. repr
  2221. });
  2222. assert_eq!(result, $result)
  2223. }));
  2224. ($socket:ident, time $time:expr, $result:expr, exact) =>
  2225. (recv(&mut $socket, Instant::from_millis($time), |repr| assert_eq!(repr, $result)));
  2226. }
  2227. macro_rules! recv_nothing {
  2228. ($socket:ident) => (recv_nothing!($socket, time 0));
  2229. ($socket:ident, time $time:expr) => (recv_nothing(&mut $socket, Instant::from_millis($time)));
  2230. }
  2231. macro_rules! sanity {
  2232. ($socket1:expr, $socket2:expr) => {{
  2233. let (s1, s2) = ($socket1, $socket2);
  2234. assert_eq!(s1.state, s2.state, "state");
  2235. assert_eq!(s1.tuple, s2.tuple, "tuple");
  2236. assert_eq!(s1.local_seq_no, s2.local_seq_no, "local_seq_no");
  2237. assert_eq!(s1.remote_seq_no, s2.remote_seq_no, "remote_seq_no");
  2238. assert_eq!(s1.remote_last_seq, s2.remote_last_seq, "remote_last_seq");
  2239. assert_eq!(s1.remote_last_ack, s2.remote_last_ack, "remote_last_ack");
  2240. assert_eq!(s1.remote_last_win, s2.remote_last_win, "remote_last_win");
  2241. assert_eq!(s1.remote_win_len, s2.remote_win_len, "remote_win_len");
  2242. assert_eq!(s1.timer, s2.timer, "timer");
  2243. }};
  2244. }
  2245. fn socket() -> TestSocket {
  2246. socket_with_buffer_sizes(64, 64)
  2247. }
  2248. fn socket_with_buffer_sizes(tx_len: usize, rx_len: usize) -> TestSocket {
  2249. let rx_buffer = SocketBuffer::new(vec![0; rx_len]);
  2250. let tx_buffer = SocketBuffer::new(vec![0; tx_len]);
  2251. let mut socket = Socket::new(rx_buffer, tx_buffer);
  2252. socket.set_ack_delay(None);
  2253. let cx = Context::mock();
  2254. TestSocket { socket, cx }
  2255. }
  2256. fn socket_syn_received_with_buffer_sizes(tx_len: usize, rx_len: usize) -> TestSocket {
  2257. let mut s = socket_with_buffer_sizes(tx_len, rx_len);
  2258. s.state = State::SynReceived;
  2259. s.tuple = Some(TUPLE);
  2260. s.local_seq_no = LOCAL_SEQ;
  2261. s.remote_seq_no = REMOTE_SEQ + 1;
  2262. s.remote_last_seq = LOCAL_SEQ;
  2263. s.remote_win_len = 256;
  2264. s
  2265. }
  2266. fn socket_syn_received() -> TestSocket {
  2267. socket_syn_received_with_buffer_sizes(64, 64)
  2268. }
  2269. fn socket_syn_sent_with_buffer_sizes(tx_len: usize, rx_len: usize) -> TestSocket {
  2270. let mut s = socket_with_buffer_sizes(tx_len, rx_len);
  2271. s.state = State::SynSent;
  2272. s.tuple = Some(TUPLE);
  2273. s.local_seq_no = LOCAL_SEQ;
  2274. s.remote_last_seq = LOCAL_SEQ;
  2275. s
  2276. }
  2277. fn socket_syn_sent() -> TestSocket {
  2278. socket_syn_sent_with_buffer_sizes(64, 64)
  2279. }
  2280. fn socket_established_with_buffer_sizes(tx_len: usize, rx_len: usize) -> TestSocket {
  2281. let mut s = socket_syn_received_with_buffer_sizes(tx_len, rx_len);
  2282. s.state = State::Established;
  2283. s.local_seq_no = LOCAL_SEQ + 1;
  2284. s.remote_last_seq = LOCAL_SEQ + 1;
  2285. s.remote_last_ack = Some(REMOTE_SEQ + 1);
  2286. s.remote_last_win = 64;
  2287. s
  2288. }
  2289. fn socket_established() -> TestSocket {
  2290. socket_established_with_buffer_sizes(64, 64)
  2291. }
  2292. fn socket_fin_wait_1() -> TestSocket {
  2293. let mut s = socket_established();
  2294. s.state = State::FinWait1;
  2295. s
  2296. }
  2297. fn socket_fin_wait_2() -> TestSocket {
  2298. let mut s = socket_fin_wait_1();
  2299. s.state = State::FinWait2;
  2300. s.local_seq_no = LOCAL_SEQ + 1 + 1;
  2301. s.remote_last_seq = LOCAL_SEQ + 1 + 1;
  2302. s
  2303. }
  2304. fn socket_closing() -> TestSocket {
  2305. let mut s = socket_fin_wait_1();
  2306. s.state = State::Closing;
  2307. s.remote_last_seq = LOCAL_SEQ + 1 + 1;
  2308. s.remote_seq_no = REMOTE_SEQ + 1 + 1;
  2309. s
  2310. }
  2311. fn socket_time_wait(from_closing: bool) -> TestSocket {
  2312. let mut s = socket_fin_wait_2();
  2313. s.state = State::TimeWait;
  2314. s.remote_seq_no = REMOTE_SEQ + 1 + 1;
  2315. if from_closing {
  2316. s.remote_last_ack = Some(REMOTE_SEQ + 1 + 1);
  2317. }
  2318. s.timer = Timer::Close {
  2319. expires_at: Instant::from_secs(1) + CLOSE_DELAY,
  2320. };
  2321. s
  2322. }
  2323. fn socket_close_wait() -> TestSocket {
  2324. let mut s = socket_established();
  2325. s.state = State::CloseWait;
  2326. s.remote_seq_no = REMOTE_SEQ + 1 + 1;
  2327. s.remote_last_ack = Some(REMOTE_SEQ + 1 + 1);
  2328. s
  2329. }
  2330. fn socket_last_ack() -> TestSocket {
  2331. let mut s = socket_close_wait();
  2332. s.state = State::LastAck;
  2333. s
  2334. }
  2335. fn socket_recved() -> TestSocket {
  2336. let mut s = socket_established();
  2337. send!(
  2338. s,
  2339. TcpRepr {
  2340. seq_number: REMOTE_SEQ + 1,
  2341. ack_number: Some(LOCAL_SEQ + 1),
  2342. payload: &b"abcdef"[..],
  2343. ..SEND_TEMPL
  2344. }
  2345. );
  2346. recv!(
  2347. s,
  2348. [TcpRepr {
  2349. seq_number: LOCAL_SEQ + 1,
  2350. ack_number: Some(REMOTE_SEQ + 1 + 6),
  2351. window_len: 58,
  2352. ..RECV_TEMPL
  2353. }]
  2354. );
  2355. s
  2356. }
  2357. // =========================================================================================//
  2358. // Tests for the CLOSED state.
  2359. // =========================================================================================//
  2360. #[test]
  2361. fn test_closed_reject() {
  2362. let mut s = socket();
  2363. assert_eq!(s.state, State::Closed);
  2364. let tcp_repr = TcpRepr {
  2365. control: TcpControl::Syn,
  2366. ..SEND_TEMPL
  2367. };
  2368. assert!(!s.socket.accepts(&mut s.cx, &SEND_IP_TEMPL, &tcp_repr));
  2369. }
  2370. #[test]
  2371. fn test_closed_reject_after_listen() {
  2372. let mut s = socket();
  2373. s.listen(LOCAL_END).unwrap();
  2374. s.close();
  2375. let tcp_repr = TcpRepr {
  2376. control: TcpControl::Syn,
  2377. ..SEND_TEMPL
  2378. };
  2379. assert!(!s.socket.accepts(&mut s.cx, &SEND_IP_TEMPL, &tcp_repr));
  2380. }
  2381. #[test]
  2382. fn test_closed_close() {
  2383. let mut s = socket();
  2384. s.close();
  2385. assert_eq!(s.state, State::Closed);
  2386. }
  2387. // =========================================================================================//
  2388. // Tests for the LISTEN state.
  2389. // =========================================================================================//
  2390. fn socket_listen() -> TestSocket {
  2391. let mut s = socket();
  2392. s.state = State::Listen;
  2393. s.listen_endpoint = LISTEN_END;
  2394. s
  2395. }
  2396. #[test]
  2397. fn test_listen_sack_option() {
  2398. let mut s = socket_listen();
  2399. send!(
  2400. s,
  2401. TcpRepr {
  2402. control: TcpControl::Syn,
  2403. seq_number: REMOTE_SEQ,
  2404. ack_number: None,
  2405. sack_permitted: false,
  2406. ..SEND_TEMPL
  2407. }
  2408. );
  2409. assert!(!s.remote_has_sack);
  2410. recv!(
  2411. s,
  2412. [TcpRepr {
  2413. control: TcpControl::Syn,
  2414. seq_number: LOCAL_SEQ,
  2415. ack_number: Some(REMOTE_SEQ + 1),
  2416. max_seg_size: Some(BASE_MSS),
  2417. ..RECV_TEMPL
  2418. }]
  2419. );
  2420. let mut s = socket_listen();
  2421. send!(
  2422. s,
  2423. TcpRepr {
  2424. control: TcpControl::Syn,
  2425. seq_number: REMOTE_SEQ,
  2426. ack_number: None,
  2427. sack_permitted: true,
  2428. ..SEND_TEMPL
  2429. }
  2430. );
  2431. assert!(s.remote_has_sack);
  2432. recv!(
  2433. s,
  2434. [TcpRepr {
  2435. control: TcpControl::Syn,
  2436. seq_number: LOCAL_SEQ,
  2437. ack_number: Some(REMOTE_SEQ + 1),
  2438. max_seg_size: Some(BASE_MSS),
  2439. sack_permitted: true,
  2440. ..RECV_TEMPL
  2441. }]
  2442. );
  2443. }
  2444. #[test]
  2445. fn test_listen_syn_win_scale_buffers() {
  2446. for (buffer_size, shift_amt) in &[
  2447. (64, 0),
  2448. (128, 0),
  2449. (1024, 0),
  2450. (65535, 0),
  2451. (65536, 1),
  2452. (65537, 1),
  2453. (131071, 1),
  2454. (131072, 2),
  2455. (524287, 3),
  2456. (524288, 4),
  2457. (655350, 4),
  2458. (1048576, 5),
  2459. ] {
  2460. let mut s = socket_with_buffer_sizes(64, *buffer_size);
  2461. s.state = State::Listen;
  2462. s.listen_endpoint = LISTEN_END;
  2463. assert_eq!(s.remote_win_shift, *shift_amt);
  2464. send!(
  2465. s,
  2466. TcpRepr {
  2467. control: TcpControl::Syn,
  2468. seq_number: REMOTE_SEQ,
  2469. ack_number: None,
  2470. window_scale: Some(0),
  2471. ..SEND_TEMPL
  2472. }
  2473. );
  2474. assert_eq!(s.remote_win_shift, *shift_amt);
  2475. recv!(
  2476. s,
  2477. [TcpRepr {
  2478. control: TcpControl::Syn,
  2479. seq_number: LOCAL_SEQ,
  2480. ack_number: Some(REMOTE_SEQ + 1),
  2481. max_seg_size: Some(BASE_MSS),
  2482. window_scale: Some(*shift_amt),
  2483. window_len: cmp::min(*buffer_size, 65535) as u16,
  2484. ..RECV_TEMPL
  2485. }]
  2486. );
  2487. }
  2488. }
  2489. #[test]
  2490. fn test_listen_sanity() {
  2491. let mut s = socket();
  2492. s.listen(LOCAL_PORT).unwrap();
  2493. sanity!(s, socket_listen());
  2494. }
  2495. #[test]
  2496. fn test_listen_validation() {
  2497. let mut s = socket();
  2498. assert_eq!(s.listen(0), Err(ListenError::Unaddressable));
  2499. }
  2500. #[test]
  2501. fn test_listen_twice() {
  2502. let mut s = socket();
  2503. assert_eq!(s.listen(80), Ok(()));
  2504. assert_eq!(s.listen(80), Err(ListenError::InvalidState));
  2505. }
  2506. #[test]
  2507. fn test_listen_syn() {
  2508. let mut s = socket_listen();
  2509. send!(
  2510. s,
  2511. TcpRepr {
  2512. control: TcpControl::Syn,
  2513. seq_number: REMOTE_SEQ,
  2514. ack_number: None,
  2515. ..SEND_TEMPL
  2516. }
  2517. );
  2518. sanity!(s, socket_syn_received());
  2519. }
  2520. #[test]
  2521. fn test_listen_syn_reject_ack() {
  2522. let mut s = socket_listen();
  2523. let tcp_repr = TcpRepr {
  2524. control: TcpControl::Syn,
  2525. seq_number: REMOTE_SEQ,
  2526. ack_number: Some(LOCAL_SEQ),
  2527. ..SEND_TEMPL
  2528. };
  2529. assert!(!s.socket.accepts(&mut s.cx, &SEND_IP_TEMPL, &tcp_repr));
  2530. assert_eq!(s.state, State::Listen);
  2531. }
  2532. #[test]
  2533. fn test_listen_rst() {
  2534. let mut s = socket_listen();
  2535. send!(
  2536. s,
  2537. TcpRepr {
  2538. control: TcpControl::Rst,
  2539. seq_number: REMOTE_SEQ,
  2540. ack_number: None,
  2541. ..SEND_TEMPL
  2542. }
  2543. );
  2544. assert_eq!(s.state, State::Listen);
  2545. }
  2546. #[test]
  2547. fn test_listen_close() {
  2548. let mut s = socket_listen();
  2549. s.close();
  2550. assert_eq!(s.state, State::Closed);
  2551. }
  2552. // =========================================================================================//
  2553. // Tests for the SYN-RECEIVED state.
  2554. // =========================================================================================//
  2555. #[test]
  2556. fn test_syn_received_ack() {
  2557. let mut s = socket_syn_received();
  2558. recv!(
  2559. s,
  2560. [TcpRepr {
  2561. control: TcpControl::Syn,
  2562. seq_number: LOCAL_SEQ,
  2563. ack_number: Some(REMOTE_SEQ + 1),
  2564. max_seg_size: Some(BASE_MSS),
  2565. ..RECV_TEMPL
  2566. }]
  2567. );
  2568. send!(
  2569. s,
  2570. TcpRepr {
  2571. seq_number: REMOTE_SEQ + 1,
  2572. ack_number: Some(LOCAL_SEQ + 1),
  2573. ..SEND_TEMPL
  2574. }
  2575. );
  2576. assert_eq!(s.state, State::Established);
  2577. sanity!(s, socket_established());
  2578. }
  2579. #[test]
  2580. fn test_syn_received_ack_too_low() {
  2581. let mut s = socket_syn_received();
  2582. recv!(
  2583. s,
  2584. [TcpRepr {
  2585. control: TcpControl::Syn,
  2586. seq_number: LOCAL_SEQ,
  2587. ack_number: Some(REMOTE_SEQ + 1),
  2588. max_seg_size: Some(BASE_MSS),
  2589. ..RECV_TEMPL
  2590. }]
  2591. );
  2592. send!(
  2593. s,
  2594. TcpRepr {
  2595. seq_number: REMOTE_SEQ + 1,
  2596. ack_number: Some(LOCAL_SEQ), // wrong
  2597. ..SEND_TEMPL
  2598. },
  2599. Some(TcpRepr {
  2600. control: TcpControl::Rst,
  2601. seq_number: LOCAL_SEQ,
  2602. ack_number: None,
  2603. window_len: 0,
  2604. ..RECV_TEMPL
  2605. })
  2606. );
  2607. assert_eq!(s.state, State::SynReceived);
  2608. }
  2609. #[test]
  2610. fn test_syn_received_ack_too_high() {
  2611. let mut s = socket_syn_received();
  2612. recv!(
  2613. s,
  2614. [TcpRepr {
  2615. control: TcpControl::Syn,
  2616. seq_number: LOCAL_SEQ,
  2617. ack_number: Some(REMOTE_SEQ + 1),
  2618. max_seg_size: Some(BASE_MSS),
  2619. ..RECV_TEMPL
  2620. }]
  2621. );
  2622. send!(
  2623. s,
  2624. TcpRepr {
  2625. seq_number: REMOTE_SEQ + 1,
  2626. ack_number: Some(LOCAL_SEQ + 2), // wrong
  2627. ..SEND_TEMPL
  2628. },
  2629. Some(TcpRepr {
  2630. control: TcpControl::Rst,
  2631. seq_number: LOCAL_SEQ + 2,
  2632. ack_number: None,
  2633. window_len: 0,
  2634. ..RECV_TEMPL
  2635. })
  2636. );
  2637. assert_eq!(s.state, State::SynReceived);
  2638. }
  2639. #[test]
  2640. fn test_syn_received_fin() {
  2641. let mut s = socket_syn_received();
  2642. recv!(
  2643. s,
  2644. [TcpRepr {
  2645. control: TcpControl::Syn,
  2646. seq_number: LOCAL_SEQ,
  2647. ack_number: Some(REMOTE_SEQ + 1),
  2648. max_seg_size: Some(BASE_MSS),
  2649. ..RECV_TEMPL
  2650. }]
  2651. );
  2652. send!(
  2653. s,
  2654. TcpRepr {
  2655. control: TcpControl::Fin,
  2656. seq_number: REMOTE_SEQ + 1,
  2657. ack_number: Some(LOCAL_SEQ + 1),
  2658. payload: &b"abcdef"[..],
  2659. ..SEND_TEMPL
  2660. }
  2661. );
  2662. recv!(
  2663. s,
  2664. [TcpRepr {
  2665. seq_number: LOCAL_SEQ + 1,
  2666. ack_number: Some(REMOTE_SEQ + 1 + 6 + 1),
  2667. window_len: 58,
  2668. ..RECV_TEMPL
  2669. }]
  2670. );
  2671. assert_eq!(s.state, State::CloseWait);
  2672. let mut s2 = socket_close_wait();
  2673. s2.remote_last_ack = Some(REMOTE_SEQ + 1 + 6 + 1);
  2674. s2.remote_last_win = 58;
  2675. sanity!(s, s2);
  2676. }
  2677. #[test]
  2678. fn test_syn_received_rst() {
  2679. let mut s = socket_syn_received();
  2680. s.listen_endpoint = LISTEN_END;
  2681. recv!(
  2682. s,
  2683. [TcpRepr {
  2684. control: TcpControl::Syn,
  2685. seq_number: LOCAL_SEQ,
  2686. ack_number: Some(REMOTE_SEQ + 1),
  2687. max_seg_size: Some(BASE_MSS),
  2688. ..RECV_TEMPL
  2689. }]
  2690. );
  2691. send!(
  2692. s,
  2693. TcpRepr {
  2694. control: TcpControl::Rst,
  2695. seq_number: REMOTE_SEQ + 1,
  2696. ack_number: Some(LOCAL_SEQ),
  2697. ..SEND_TEMPL
  2698. }
  2699. );
  2700. assert_eq!(s.state, State::Listen);
  2701. assert_eq!(s.listen_endpoint, LISTEN_END);
  2702. assert_eq!(s.tuple, None);
  2703. }
  2704. #[test]
  2705. fn test_syn_received_no_window_scaling() {
  2706. let mut s = socket_listen();
  2707. send!(
  2708. s,
  2709. TcpRepr {
  2710. control: TcpControl::Syn,
  2711. seq_number: REMOTE_SEQ,
  2712. ack_number: None,
  2713. ..SEND_TEMPL
  2714. }
  2715. );
  2716. assert_eq!(s.state(), State::SynReceived);
  2717. assert_eq!(s.tuple, Some(TUPLE));
  2718. recv!(
  2719. s,
  2720. [TcpRepr {
  2721. control: TcpControl::Syn,
  2722. seq_number: LOCAL_SEQ,
  2723. ack_number: Some(REMOTE_SEQ + 1),
  2724. max_seg_size: Some(BASE_MSS),
  2725. window_scale: None,
  2726. ..RECV_TEMPL
  2727. }]
  2728. );
  2729. send!(
  2730. s,
  2731. TcpRepr {
  2732. seq_number: REMOTE_SEQ + 1,
  2733. ack_number: Some(LOCAL_SEQ + 1),
  2734. window_scale: None,
  2735. ..SEND_TEMPL
  2736. }
  2737. );
  2738. assert_eq!(s.remote_win_shift, 0);
  2739. assert_eq!(s.remote_win_scale, None);
  2740. }
  2741. #[test]
  2742. fn test_syn_received_window_scaling() {
  2743. for scale in 0..14 {
  2744. let mut s = socket_listen();
  2745. send!(
  2746. s,
  2747. TcpRepr {
  2748. control: TcpControl::Syn,
  2749. seq_number: REMOTE_SEQ,
  2750. ack_number: None,
  2751. window_scale: Some(scale),
  2752. ..SEND_TEMPL
  2753. }
  2754. );
  2755. assert_eq!(s.state(), State::SynReceived);
  2756. assert_eq!(s.tuple, Some(TUPLE));
  2757. recv!(
  2758. s,
  2759. [TcpRepr {
  2760. control: TcpControl::Syn,
  2761. seq_number: LOCAL_SEQ,
  2762. ack_number: Some(REMOTE_SEQ + 1),
  2763. max_seg_size: Some(BASE_MSS),
  2764. window_scale: Some(0),
  2765. ..RECV_TEMPL
  2766. }]
  2767. );
  2768. send!(
  2769. s,
  2770. TcpRepr {
  2771. seq_number: REMOTE_SEQ + 1,
  2772. ack_number: Some(LOCAL_SEQ + 1),
  2773. window_scale: None,
  2774. ..SEND_TEMPL
  2775. }
  2776. );
  2777. assert_eq!(s.remote_win_scale, Some(scale));
  2778. }
  2779. }
  2780. #[test]
  2781. fn test_syn_received_close() {
  2782. let mut s = socket_syn_received();
  2783. s.close();
  2784. assert_eq!(s.state, State::FinWait1);
  2785. }
  2786. // =========================================================================================//
  2787. // Tests for the SYN-SENT state.
  2788. // =========================================================================================//
  2789. #[test]
  2790. fn test_connect_validation() {
  2791. let mut s = socket();
  2792. assert_eq!(
  2793. s.socket
  2794. .connect(&mut s.cx, REMOTE_END, (IpvXAddress::UNSPECIFIED, 0)),
  2795. Err(ConnectError::Unaddressable)
  2796. );
  2797. assert_eq!(
  2798. s.socket
  2799. .connect(&mut s.cx, REMOTE_END, (IpvXAddress::UNSPECIFIED, 1024)),
  2800. Err(ConnectError::Unaddressable)
  2801. );
  2802. assert_eq!(
  2803. s.socket
  2804. .connect(&mut s.cx, (IpvXAddress::UNSPECIFIED, 0), LOCAL_END),
  2805. Err(ConnectError::Unaddressable)
  2806. );
  2807. s.socket
  2808. .connect(&mut s.cx, REMOTE_END, LOCAL_END)
  2809. .expect("Connect failed with valid parameters");
  2810. assert_eq!(s.tuple, Some(TUPLE));
  2811. }
  2812. #[test]
  2813. fn test_connect() {
  2814. let mut s = socket();
  2815. s.local_seq_no = LOCAL_SEQ;
  2816. s.socket
  2817. .connect(&mut s.cx, REMOTE_END, LOCAL_END.port)
  2818. .unwrap();
  2819. assert_eq!(s.tuple, Some(TUPLE));
  2820. recv!(
  2821. s,
  2822. [TcpRepr {
  2823. control: TcpControl::Syn,
  2824. seq_number: LOCAL_SEQ,
  2825. ack_number: None,
  2826. max_seg_size: Some(BASE_MSS),
  2827. window_scale: Some(0),
  2828. sack_permitted: true,
  2829. ..RECV_TEMPL
  2830. }]
  2831. );
  2832. send!(
  2833. s,
  2834. TcpRepr {
  2835. control: TcpControl::Syn,
  2836. seq_number: REMOTE_SEQ,
  2837. ack_number: Some(LOCAL_SEQ + 1),
  2838. max_seg_size: Some(BASE_MSS - 80),
  2839. window_scale: Some(0),
  2840. ..SEND_TEMPL
  2841. }
  2842. );
  2843. assert_eq!(s.tuple, Some(TUPLE));
  2844. }
  2845. #[test]
  2846. fn test_connect_unspecified_local() {
  2847. let mut s = socket();
  2848. assert_eq!(s.socket.connect(&mut s.cx, REMOTE_END, 80), Ok(()));
  2849. }
  2850. #[test]
  2851. fn test_connect_specified_local() {
  2852. let mut s = socket();
  2853. assert_eq!(
  2854. s.socket.connect(&mut s.cx, REMOTE_END, (REMOTE_ADDR, 80)),
  2855. Ok(())
  2856. );
  2857. }
  2858. #[test]
  2859. fn test_connect_twice() {
  2860. let mut s = socket();
  2861. assert_eq!(s.socket.connect(&mut s.cx, REMOTE_END, 80), Ok(()));
  2862. assert_eq!(
  2863. s.socket.connect(&mut s.cx, REMOTE_END, 80),
  2864. Err(ConnectError::InvalidState)
  2865. );
  2866. }
  2867. #[test]
  2868. fn test_syn_sent_sanity() {
  2869. let mut s = socket();
  2870. s.local_seq_no = LOCAL_SEQ;
  2871. s.socket.connect(&mut s.cx, REMOTE_END, LOCAL_END).unwrap();
  2872. sanity!(s, socket_syn_sent());
  2873. }
  2874. #[test]
  2875. fn test_syn_sent_syn_ack() {
  2876. let mut s = socket_syn_sent();
  2877. recv!(
  2878. s,
  2879. [TcpRepr {
  2880. control: TcpControl::Syn,
  2881. seq_number: LOCAL_SEQ,
  2882. ack_number: None,
  2883. max_seg_size: Some(BASE_MSS),
  2884. window_scale: Some(0),
  2885. sack_permitted: true,
  2886. ..RECV_TEMPL
  2887. }]
  2888. );
  2889. send!(
  2890. s,
  2891. TcpRepr {
  2892. control: TcpControl::Syn,
  2893. seq_number: REMOTE_SEQ,
  2894. ack_number: Some(LOCAL_SEQ + 1),
  2895. max_seg_size: Some(BASE_MSS - 80),
  2896. window_scale: Some(0),
  2897. ..SEND_TEMPL
  2898. }
  2899. );
  2900. recv!(
  2901. s,
  2902. [TcpRepr {
  2903. seq_number: LOCAL_SEQ + 1,
  2904. ack_number: Some(REMOTE_SEQ + 1),
  2905. ..RECV_TEMPL
  2906. }]
  2907. );
  2908. recv_nothing!(s, time 1000);
  2909. assert_eq!(s.state, State::Established);
  2910. sanity!(s, socket_established());
  2911. }
  2912. #[test]
  2913. fn test_syn_sent_syn_ack_not_incremented() {
  2914. let mut s = socket_syn_sent();
  2915. recv!(
  2916. s,
  2917. [TcpRepr {
  2918. control: TcpControl::Syn,
  2919. seq_number: LOCAL_SEQ,
  2920. ack_number: None,
  2921. max_seg_size: Some(BASE_MSS),
  2922. window_scale: Some(0),
  2923. sack_permitted: true,
  2924. ..RECV_TEMPL
  2925. }]
  2926. );
  2927. send!(
  2928. s,
  2929. TcpRepr {
  2930. control: TcpControl::Syn,
  2931. seq_number: REMOTE_SEQ,
  2932. ack_number: Some(LOCAL_SEQ), // WRONG
  2933. max_seg_size: Some(BASE_MSS - 80),
  2934. window_scale: Some(0),
  2935. ..SEND_TEMPL
  2936. },
  2937. Some(TcpRepr {
  2938. control: TcpControl::Rst,
  2939. seq_number: LOCAL_SEQ,
  2940. ack_number: None,
  2941. window_len: 0,
  2942. ..RECV_TEMPL
  2943. })
  2944. );
  2945. assert_eq!(s.state, State::SynSent);
  2946. }
  2947. #[test]
  2948. fn test_syn_sent_rst() {
  2949. let mut s = socket_syn_sent();
  2950. send!(
  2951. s,
  2952. TcpRepr {
  2953. control: TcpControl::Rst,
  2954. seq_number: REMOTE_SEQ,
  2955. ack_number: Some(LOCAL_SEQ + 1),
  2956. ..SEND_TEMPL
  2957. }
  2958. );
  2959. assert_eq!(s.state, State::Closed);
  2960. }
  2961. #[test]
  2962. fn test_syn_sent_rst_no_ack() {
  2963. let mut s = socket_syn_sent();
  2964. send!(
  2965. s,
  2966. TcpRepr {
  2967. control: TcpControl::Rst,
  2968. seq_number: REMOTE_SEQ,
  2969. ack_number: None,
  2970. ..SEND_TEMPL
  2971. }
  2972. );
  2973. assert_eq!(s.state, State::SynSent);
  2974. }
  2975. #[test]
  2976. fn test_syn_sent_rst_bad_ack() {
  2977. let mut s = socket_syn_sent();
  2978. send!(
  2979. s,
  2980. TcpRepr {
  2981. control: TcpControl::Rst,
  2982. seq_number: REMOTE_SEQ,
  2983. ack_number: Some(TcpSeqNumber(1234)),
  2984. ..SEND_TEMPL
  2985. }
  2986. );
  2987. assert_eq!(s.state, State::SynSent);
  2988. }
  2989. #[test]
  2990. fn test_syn_sent_bad_ack() {
  2991. let mut s = socket_syn_sent();
  2992. recv!(
  2993. s,
  2994. [TcpRepr {
  2995. control: TcpControl::Syn,
  2996. seq_number: LOCAL_SEQ,
  2997. ack_number: None,
  2998. max_seg_size: Some(BASE_MSS),
  2999. window_scale: Some(0),
  3000. sack_permitted: true,
  3001. ..RECV_TEMPL
  3002. }]
  3003. );
  3004. send!(
  3005. s,
  3006. TcpRepr {
  3007. control: TcpControl::None, // Unexpected
  3008. seq_number: REMOTE_SEQ,
  3009. ack_number: Some(LOCAL_SEQ + 1), // Correct
  3010. ..SEND_TEMPL
  3011. }
  3012. );
  3013. // It should trigger no response and change no state
  3014. recv!(s, []);
  3015. assert_eq!(s.state, State::SynSent);
  3016. }
  3017. #[test]
  3018. fn test_syn_sent_bad_ack_seq_1() {
  3019. let mut s = socket_syn_sent();
  3020. recv!(
  3021. s,
  3022. [TcpRepr {
  3023. control: TcpControl::Syn,
  3024. seq_number: LOCAL_SEQ,
  3025. ack_number: None,
  3026. max_seg_size: Some(BASE_MSS),
  3027. window_scale: Some(0),
  3028. sack_permitted: true,
  3029. ..RECV_TEMPL
  3030. }]
  3031. );
  3032. send!(
  3033. s,
  3034. TcpRepr {
  3035. control: TcpControl::None,
  3036. seq_number: REMOTE_SEQ,
  3037. ack_number: Some(LOCAL_SEQ), // WRONG
  3038. ..SEND_TEMPL
  3039. },
  3040. Some(TcpRepr {
  3041. control: TcpControl::Rst,
  3042. seq_number: LOCAL_SEQ, // matching the ack_number of the unexpected ack
  3043. ack_number: None,
  3044. window_len: 0,
  3045. ..RECV_TEMPL
  3046. })
  3047. );
  3048. // It should trigger a RST, and change no state
  3049. assert_eq!(s.state, State::SynSent);
  3050. }
  3051. #[test]
  3052. fn test_syn_sent_bad_ack_seq_2() {
  3053. let mut s = socket_syn_sent();
  3054. recv!(
  3055. s,
  3056. [TcpRepr {
  3057. control: TcpControl::Syn,
  3058. seq_number: LOCAL_SEQ,
  3059. ack_number: None,
  3060. max_seg_size: Some(BASE_MSS),
  3061. window_scale: Some(0),
  3062. sack_permitted: true,
  3063. ..RECV_TEMPL
  3064. }]
  3065. );
  3066. send!(
  3067. s,
  3068. TcpRepr {
  3069. control: TcpControl::None,
  3070. seq_number: REMOTE_SEQ,
  3071. ack_number: Some(LOCAL_SEQ + 123456), // WRONG
  3072. ..SEND_TEMPL
  3073. },
  3074. Some(TcpRepr {
  3075. control: TcpControl::Rst,
  3076. seq_number: LOCAL_SEQ + 123456, // matching the ack_number of the unexpected ack
  3077. ack_number: None,
  3078. window_len: 0,
  3079. ..RECV_TEMPL
  3080. })
  3081. );
  3082. // It should trigger a RST, and change no state
  3083. assert_eq!(s.state, State::SynSent);
  3084. }
  3085. #[test]
  3086. fn test_syn_sent_close() {
  3087. let mut s = socket();
  3088. s.close();
  3089. assert_eq!(s.state, State::Closed);
  3090. }
  3091. #[test]
  3092. fn test_syn_sent_win_scale_buffers() {
  3093. for (buffer_size, shift_amt) in &[
  3094. (64, 0),
  3095. (128, 0),
  3096. (1024, 0),
  3097. (65535, 0),
  3098. (65536, 1),
  3099. (65537, 1),
  3100. (131071, 1),
  3101. (131072, 2),
  3102. (524287, 3),
  3103. (524288, 4),
  3104. (655350, 4),
  3105. (1048576, 5),
  3106. ] {
  3107. let mut s = socket_with_buffer_sizes(64, *buffer_size);
  3108. s.local_seq_no = LOCAL_SEQ;
  3109. assert_eq!(s.remote_win_shift, *shift_amt);
  3110. s.socket.connect(&mut s.cx, REMOTE_END, LOCAL_END).unwrap();
  3111. recv!(
  3112. s,
  3113. [TcpRepr {
  3114. control: TcpControl::Syn,
  3115. seq_number: LOCAL_SEQ,
  3116. ack_number: None,
  3117. max_seg_size: Some(BASE_MSS),
  3118. window_scale: Some(*shift_amt),
  3119. window_len: cmp::min(*buffer_size, 65535) as u16,
  3120. sack_permitted: true,
  3121. ..RECV_TEMPL
  3122. }]
  3123. );
  3124. }
  3125. }
  3126. #[test]
  3127. fn test_syn_sent_syn_ack_no_window_scaling() {
  3128. let mut s = socket_syn_sent_with_buffer_sizes(1048576, 1048576);
  3129. recv!(
  3130. s,
  3131. [TcpRepr {
  3132. control: TcpControl::Syn,
  3133. seq_number: LOCAL_SEQ,
  3134. ack_number: None,
  3135. max_seg_size: Some(BASE_MSS),
  3136. // scaling does NOT apply to the window value in SYN packets
  3137. window_len: 65535,
  3138. window_scale: Some(5),
  3139. sack_permitted: true,
  3140. ..RECV_TEMPL
  3141. }]
  3142. );
  3143. assert_eq!(s.remote_win_shift, 5);
  3144. send!(
  3145. s,
  3146. TcpRepr {
  3147. control: TcpControl::Syn,
  3148. seq_number: REMOTE_SEQ,
  3149. ack_number: Some(LOCAL_SEQ + 1),
  3150. max_seg_size: Some(BASE_MSS - 80),
  3151. window_scale: None,
  3152. window_len: 42,
  3153. ..SEND_TEMPL
  3154. }
  3155. );
  3156. assert_eq!(s.state, State::Established);
  3157. assert_eq!(s.remote_win_shift, 0);
  3158. assert_eq!(s.remote_win_scale, None);
  3159. assert_eq!(s.remote_win_len, 42);
  3160. }
  3161. #[test]
  3162. fn test_syn_sent_syn_ack_window_scaling() {
  3163. let mut s = socket_syn_sent();
  3164. recv!(
  3165. s,
  3166. [TcpRepr {
  3167. control: TcpControl::Syn,
  3168. seq_number: LOCAL_SEQ,
  3169. ack_number: None,
  3170. max_seg_size: Some(BASE_MSS),
  3171. window_scale: Some(0),
  3172. sack_permitted: true,
  3173. ..RECV_TEMPL
  3174. }]
  3175. );
  3176. send!(
  3177. s,
  3178. TcpRepr {
  3179. control: TcpControl::Syn,
  3180. seq_number: REMOTE_SEQ,
  3181. ack_number: Some(LOCAL_SEQ + 1),
  3182. max_seg_size: Some(BASE_MSS - 80),
  3183. window_scale: Some(7),
  3184. window_len: 42,
  3185. ..SEND_TEMPL
  3186. }
  3187. );
  3188. assert_eq!(s.state, State::Established);
  3189. assert_eq!(s.remote_win_scale, Some(7));
  3190. // scaling does NOT apply to the window value in SYN packets
  3191. assert_eq!(s.remote_win_len, 42);
  3192. }
  3193. // =========================================================================================//
  3194. // Tests for the ESTABLISHED state.
  3195. // =========================================================================================//
  3196. #[test]
  3197. fn test_established_recv() {
  3198. let mut s = socket_established();
  3199. send!(
  3200. s,
  3201. TcpRepr {
  3202. seq_number: REMOTE_SEQ + 1,
  3203. ack_number: Some(LOCAL_SEQ + 1),
  3204. payload: &b"abcdef"[..],
  3205. ..SEND_TEMPL
  3206. }
  3207. );
  3208. recv!(
  3209. s,
  3210. [TcpRepr {
  3211. seq_number: LOCAL_SEQ + 1,
  3212. ack_number: Some(REMOTE_SEQ + 1 + 6),
  3213. window_len: 58,
  3214. ..RECV_TEMPL
  3215. }]
  3216. );
  3217. assert_eq!(s.rx_buffer.dequeue_many(6), &b"abcdef"[..]);
  3218. }
  3219. fn setup_rfc2018_cases() -> (TestSocket, Vec<u8>) {
  3220. // This is a utility function used by the tests for RFC 2018 cases. It configures a socket
  3221. // in a particular way suitable for those cases.
  3222. //
  3223. // RFC 2018: Assume the left window edge is 5000 and that the data transmitter sends [...]
  3224. // segments, each containing 500 data bytes.
  3225. let mut s = socket_established_with_buffer_sizes(4000, 4000);
  3226. s.remote_has_sack = true;
  3227. // create a segment that is 500 bytes long
  3228. let mut segment: Vec<u8> = Vec::with_capacity(500);
  3229. // move the last ack to 5000 by sending ten of them
  3230. for _ in 0..50 {
  3231. segment.extend_from_slice(b"abcdefghij")
  3232. }
  3233. for offset in (0..5000).step_by(500) {
  3234. send!(
  3235. s,
  3236. TcpRepr {
  3237. seq_number: REMOTE_SEQ + 1 + offset,
  3238. ack_number: Some(LOCAL_SEQ + 1),
  3239. payload: &segment,
  3240. ..SEND_TEMPL
  3241. }
  3242. );
  3243. recv!(
  3244. s,
  3245. [TcpRepr {
  3246. seq_number: LOCAL_SEQ + 1,
  3247. ack_number: Some(REMOTE_SEQ + 1 + offset + 500),
  3248. window_len: 3500,
  3249. ..RECV_TEMPL
  3250. }]
  3251. );
  3252. s.recv(|data| {
  3253. assert_eq!(data.len(), 500);
  3254. assert_eq!(data, segment.as_slice());
  3255. (500, ())
  3256. })
  3257. .unwrap();
  3258. }
  3259. assert_eq!(s.remote_last_win, 3500);
  3260. (s, segment)
  3261. }
  3262. #[test]
  3263. fn test_established_rfc2018_cases() {
  3264. // This test case verifies the exact scenarios described on pages 8-9 of RFC 2018. Please
  3265. // ensure its behavior does not deviate from those scenarios.
  3266. let (mut s, segment) = setup_rfc2018_cases();
  3267. // RFC 2018:
  3268. //
  3269. // Case 2: The first segment is dropped but the remaining 7 are received.
  3270. //
  3271. // Upon receiving each of the last seven packets, the data receiver will return a TCP ACK
  3272. // segment that acknowledges sequence number 5000 and contains a SACK option specifying one
  3273. // block of queued data:
  3274. //
  3275. // Triggering ACK Left Edge Right Edge
  3276. // Segment
  3277. //
  3278. // 5000 (lost)
  3279. // 5500 5000 5500 6000
  3280. // 6000 5000 5500 6500
  3281. // 6500 5000 5500 7000
  3282. // 7000 5000 5500 7500
  3283. // 7500 5000 5500 8000
  3284. // 8000 5000 5500 8500
  3285. // 8500 5000 5500 9000
  3286. //
  3287. for offset in (500..3500).step_by(500) {
  3288. send!(
  3289. s,
  3290. TcpRepr {
  3291. seq_number: REMOTE_SEQ + 1 + offset + 5000,
  3292. ack_number: Some(LOCAL_SEQ + 1),
  3293. payload: &segment,
  3294. ..SEND_TEMPL
  3295. },
  3296. Some(TcpRepr {
  3297. seq_number: LOCAL_SEQ + 1,
  3298. ack_number: Some(REMOTE_SEQ + 1 + 5000),
  3299. window_len: 4000,
  3300. sack_ranges: [
  3301. Some((
  3302. REMOTE_SEQ.0 as u32 + 1 + 5500,
  3303. REMOTE_SEQ.0 as u32 + 1 + 5500 + offset as u32
  3304. )),
  3305. None,
  3306. None
  3307. ],
  3308. ..RECV_TEMPL
  3309. })
  3310. );
  3311. }
  3312. }
  3313. #[test]
  3314. fn test_established_sliding_window_recv() {
  3315. let mut s = socket_established();
  3316. // Update our scaling parameters for a TCP with a scaled buffer.
  3317. assert_eq!(s.rx_buffer.len(), 0);
  3318. s.rx_buffer = SocketBuffer::new(vec![0; 262143]);
  3319. s.assembler = Assembler::new(s.rx_buffer.capacity());
  3320. s.remote_win_scale = Some(0);
  3321. s.remote_last_win = 65535;
  3322. s.remote_win_shift = 2;
  3323. // Create a TCP segment that will mostly fill an IP frame.
  3324. let mut segment: Vec<u8> = Vec::with_capacity(1400);
  3325. for _ in 0..100 {
  3326. segment.extend_from_slice(b"abcdefghijklmn")
  3327. }
  3328. assert_eq!(segment.len(), 1400);
  3329. // Send the frame
  3330. send!(
  3331. s,
  3332. TcpRepr {
  3333. seq_number: REMOTE_SEQ + 1,
  3334. ack_number: Some(LOCAL_SEQ + 1),
  3335. payload: &segment,
  3336. ..SEND_TEMPL
  3337. }
  3338. );
  3339. // Ensure that the received window size is shifted right by 2.
  3340. recv!(
  3341. s,
  3342. [TcpRepr {
  3343. seq_number: LOCAL_SEQ + 1,
  3344. ack_number: Some(REMOTE_SEQ + 1 + 1400),
  3345. window_len: 65185,
  3346. ..RECV_TEMPL
  3347. }]
  3348. );
  3349. }
  3350. #[test]
  3351. fn test_established_send() {
  3352. let mut s = socket_established();
  3353. // First roundtrip after establishing.
  3354. s.send_slice(b"abcdef").unwrap();
  3355. recv!(
  3356. s,
  3357. [TcpRepr {
  3358. seq_number: LOCAL_SEQ + 1,
  3359. ack_number: Some(REMOTE_SEQ + 1),
  3360. payload: &b"abcdef"[..],
  3361. ..RECV_TEMPL
  3362. }]
  3363. );
  3364. assert_eq!(s.tx_buffer.len(), 6);
  3365. send!(
  3366. s,
  3367. TcpRepr {
  3368. seq_number: REMOTE_SEQ + 1,
  3369. ack_number: Some(LOCAL_SEQ + 1 + 6),
  3370. ..SEND_TEMPL
  3371. }
  3372. );
  3373. assert_eq!(s.tx_buffer.len(), 0);
  3374. // Second roundtrip.
  3375. s.send_slice(b"foobar").unwrap();
  3376. recv!(
  3377. s,
  3378. [TcpRepr {
  3379. seq_number: LOCAL_SEQ + 1 + 6,
  3380. ack_number: Some(REMOTE_SEQ + 1),
  3381. payload: &b"foobar"[..],
  3382. ..RECV_TEMPL
  3383. }]
  3384. );
  3385. send!(
  3386. s,
  3387. TcpRepr {
  3388. seq_number: REMOTE_SEQ + 1,
  3389. ack_number: Some(LOCAL_SEQ + 1 + 6 + 6),
  3390. ..SEND_TEMPL
  3391. }
  3392. );
  3393. assert_eq!(s.tx_buffer.len(), 0);
  3394. }
  3395. #[test]
  3396. fn test_established_send_no_ack_send() {
  3397. let mut s = socket_established();
  3398. s.set_nagle_enabled(false);
  3399. s.send_slice(b"abcdef").unwrap();
  3400. recv!(
  3401. s,
  3402. [TcpRepr {
  3403. seq_number: LOCAL_SEQ + 1,
  3404. ack_number: Some(REMOTE_SEQ + 1),
  3405. payload: &b"abcdef"[..],
  3406. ..RECV_TEMPL
  3407. }]
  3408. );
  3409. s.send_slice(b"foobar").unwrap();
  3410. recv!(
  3411. s,
  3412. [TcpRepr {
  3413. seq_number: LOCAL_SEQ + 1 + 6,
  3414. ack_number: Some(REMOTE_SEQ + 1),
  3415. payload: &b"foobar"[..],
  3416. ..RECV_TEMPL
  3417. }]
  3418. );
  3419. }
  3420. #[test]
  3421. fn test_established_send_buf_gt_win() {
  3422. let mut data = [0; 32];
  3423. for (i, elem) in data.iter_mut().enumerate() {
  3424. *elem = i as u8
  3425. }
  3426. let mut s = socket_established();
  3427. s.remote_win_len = 16;
  3428. s.send_slice(&data[..]).unwrap();
  3429. recv!(
  3430. s,
  3431. [TcpRepr {
  3432. seq_number: LOCAL_SEQ + 1,
  3433. ack_number: Some(REMOTE_SEQ + 1),
  3434. payload: &data[0..16],
  3435. ..RECV_TEMPL
  3436. }]
  3437. );
  3438. }
  3439. #[test]
  3440. fn test_established_send_window_shrink() {
  3441. let mut s = socket_established();
  3442. // 6 octets fit on the remote side's window, so we send them.
  3443. s.send_slice(b"abcdef").unwrap();
  3444. recv!(
  3445. s,
  3446. [TcpRepr {
  3447. seq_number: LOCAL_SEQ + 1,
  3448. ack_number: Some(REMOTE_SEQ + 1),
  3449. payload: &b"abcdef"[..],
  3450. ..RECV_TEMPL
  3451. }]
  3452. );
  3453. assert_eq!(s.tx_buffer.len(), 6);
  3454. println!(
  3455. "local_seq_no={} remote_win_len={} remote_last_seq={}",
  3456. s.local_seq_no, s.remote_win_len, s.remote_last_seq
  3457. );
  3458. // - Peer doesn't ack them yet
  3459. // - Sends data so we need to reply with an ACK
  3460. // - ...AND and sends a window announcement that SHRINKS the window, so data we've
  3461. // previously sent is now outside the window. Yes, this is allowed by TCP.
  3462. send!(
  3463. s,
  3464. TcpRepr {
  3465. seq_number: REMOTE_SEQ + 1,
  3466. ack_number: Some(LOCAL_SEQ + 1),
  3467. window_len: 3,
  3468. payload: &b"xyzxyz"[..],
  3469. ..SEND_TEMPL
  3470. }
  3471. );
  3472. assert_eq!(s.tx_buffer.len(), 6);
  3473. println!(
  3474. "local_seq_no={} remote_win_len={} remote_last_seq={}",
  3475. s.local_seq_no, s.remote_win_len, s.remote_last_seq
  3476. );
  3477. // More data should not get sent since it doesn't fit in the window
  3478. s.send_slice(b"foobar").unwrap();
  3479. recv!(
  3480. s,
  3481. [TcpRepr {
  3482. seq_number: LOCAL_SEQ + 1 + 6,
  3483. ack_number: Some(REMOTE_SEQ + 1 + 6),
  3484. window_len: 64 - 6,
  3485. ..RECV_TEMPL
  3486. }]
  3487. );
  3488. }
  3489. #[test]
  3490. fn test_established_send_wrap() {
  3491. let mut s = socket_established();
  3492. let local_seq_start = TcpSeqNumber(i32::MAX - 1);
  3493. s.local_seq_no = local_seq_start + 1;
  3494. s.remote_last_seq = local_seq_start + 1;
  3495. s.send_slice(b"abc").unwrap();
  3496. recv!(s, time 1000, Ok(TcpRepr {
  3497. seq_number: local_seq_start + 1,
  3498. ack_number: Some(REMOTE_SEQ + 1),
  3499. payload: &b"abc"[..],
  3500. ..RECV_TEMPL
  3501. }));
  3502. }
  3503. #[test]
  3504. fn test_established_no_ack() {
  3505. let mut s = socket_established();
  3506. send!(
  3507. s,
  3508. TcpRepr {
  3509. seq_number: REMOTE_SEQ + 1,
  3510. ack_number: None,
  3511. ..SEND_TEMPL
  3512. }
  3513. );
  3514. }
  3515. #[test]
  3516. fn test_established_bad_ack() {
  3517. let mut s = socket_established();
  3518. // Already acknowledged data.
  3519. send!(
  3520. s,
  3521. TcpRepr {
  3522. seq_number: REMOTE_SEQ + 1,
  3523. ack_number: Some(TcpSeqNumber(LOCAL_SEQ.0 - 1)),
  3524. ..SEND_TEMPL
  3525. }
  3526. );
  3527. assert_eq!(s.local_seq_no, LOCAL_SEQ + 1);
  3528. // Data not yet transmitted.
  3529. send!(
  3530. s,
  3531. TcpRepr {
  3532. seq_number: REMOTE_SEQ + 1,
  3533. ack_number: Some(LOCAL_SEQ + 10),
  3534. ..SEND_TEMPL
  3535. },
  3536. Some(TcpRepr {
  3537. seq_number: LOCAL_SEQ + 1,
  3538. ack_number: Some(REMOTE_SEQ + 1),
  3539. ..RECV_TEMPL
  3540. })
  3541. );
  3542. assert_eq!(s.local_seq_no, LOCAL_SEQ + 1);
  3543. }
  3544. #[test]
  3545. fn test_established_bad_seq() {
  3546. let mut s = socket_established();
  3547. // Data outside of receive window.
  3548. send!(
  3549. s,
  3550. TcpRepr {
  3551. seq_number: REMOTE_SEQ + 1 + 256,
  3552. ack_number: Some(LOCAL_SEQ + 1),
  3553. ..SEND_TEMPL
  3554. },
  3555. Some(TcpRepr {
  3556. seq_number: LOCAL_SEQ + 1,
  3557. ack_number: Some(REMOTE_SEQ + 1),
  3558. ..RECV_TEMPL
  3559. })
  3560. );
  3561. assert_eq!(s.remote_seq_no, REMOTE_SEQ + 1);
  3562. // Challenge ACKs are rate-limited, we don't get a second one immediately.
  3563. send!(
  3564. s,
  3565. time 100,
  3566. TcpRepr {
  3567. seq_number: REMOTE_SEQ + 1 + 256,
  3568. ack_number: Some(LOCAL_SEQ + 1),
  3569. ..SEND_TEMPL
  3570. }
  3571. );
  3572. // If we wait a bit, we do get a new one.
  3573. send!(
  3574. s,
  3575. time 2000,
  3576. TcpRepr {
  3577. seq_number: REMOTE_SEQ + 1 + 256,
  3578. ack_number: Some(LOCAL_SEQ + 1),
  3579. ..SEND_TEMPL
  3580. },
  3581. Some(TcpRepr {
  3582. seq_number: LOCAL_SEQ + 1,
  3583. ack_number: Some(REMOTE_SEQ + 1),
  3584. ..RECV_TEMPL
  3585. })
  3586. );
  3587. assert_eq!(s.remote_seq_no, REMOTE_SEQ + 1);
  3588. }
  3589. #[test]
  3590. fn test_established_fin() {
  3591. let mut s = socket_established();
  3592. send!(
  3593. s,
  3594. TcpRepr {
  3595. control: TcpControl::Fin,
  3596. seq_number: REMOTE_SEQ + 1,
  3597. ack_number: Some(LOCAL_SEQ + 1),
  3598. ..SEND_TEMPL
  3599. }
  3600. );
  3601. recv!(
  3602. s,
  3603. [TcpRepr {
  3604. seq_number: LOCAL_SEQ + 1,
  3605. ack_number: Some(REMOTE_SEQ + 1 + 1),
  3606. ..RECV_TEMPL
  3607. }]
  3608. );
  3609. assert_eq!(s.state, State::CloseWait);
  3610. sanity!(s, socket_close_wait());
  3611. }
  3612. #[test]
  3613. fn test_established_fin_after_missing() {
  3614. let mut s = socket_established();
  3615. send!(
  3616. s,
  3617. TcpRepr {
  3618. control: TcpControl::Fin,
  3619. seq_number: REMOTE_SEQ + 1 + 6,
  3620. ack_number: Some(LOCAL_SEQ + 1),
  3621. payload: &b"123456"[..],
  3622. ..SEND_TEMPL
  3623. },
  3624. Some(TcpRepr {
  3625. seq_number: LOCAL_SEQ + 1,
  3626. ack_number: Some(REMOTE_SEQ + 1),
  3627. ..RECV_TEMPL
  3628. })
  3629. );
  3630. assert_eq!(s.state, State::Established);
  3631. send!(
  3632. s,
  3633. TcpRepr {
  3634. seq_number: REMOTE_SEQ + 1,
  3635. ack_number: Some(LOCAL_SEQ + 1),
  3636. payload: &b"abcdef"[..],
  3637. ..SEND_TEMPL
  3638. },
  3639. Some(TcpRepr {
  3640. seq_number: LOCAL_SEQ + 1,
  3641. ack_number: Some(REMOTE_SEQ + 1 + 6 + 6),
  3642. window_len: 52,
  3643. ..RECV_TEMPL
  3644. })
  3645. );
  3646. assert_eq!(s.state, State::Established);
  3647. }
  3648. #[test]
  3649. fn test_established_send_fin() {
  3650. let mut s = socket_established();
  3651. s.send_slice(b"abcdef").unwrap();
  3652. send!(
  3653. s,
  3654. TcpRepr {
  3655. control: TcpControl::Fin,
  3656. seq_number: REMOTE_SEQ + 1,
  3657. ack_number: Some(LOCAL_SEQ + 1),
  3658. ..SEND_TEMPL
  3659. }
  3660. );
  3661. assert_eq!(s.state, State::CloseWait);
  3662. recv!(
  3663. s,
  3664. [TcpRepr {
  3665. seq_number: LOCAL_SEQ + 1,
  3666. ack_number: Some(REMOTE_SEQ + 1 + 1),
  3667. payload: &b"abcdef"[..],
  3668. ..RECV_TEMPL
  3669. }]
  3670. );
  3671. }
  3672. #[test]
  3673. fn test_established_rst() {
  3674. let mut s = socket_established();
  3675. send!(
  3676. s,
  3677. TcpRepr {
  3678. control: TcpControl::Rst,
  3679. seq_number: REMOTE_SEQ + 1,
  3680. ack_number: Some(LOCAL_SEQ + 1),
  3681. ..SEND_TEMPL
  3682. }
  3683. );
  3684. assert_eq!(s.state, State::Closed);
  3685. }
  3686. #[test]
  3687. fn test_established_rst_no_ack() {
  3688. let mut s = socket_established();
  3689. send!(
  3690. s,
  3691. TcpRepr {
  3692. control: TcpControl::Rst,
  3693. seq_number: REMOTE_SEQ + 1,
  3694. ack_number: None,
  3695. ..SEND_TEMPL
  3696. }
  3697. );
  3698. assert_eq!(s.state, State::Closed);
  3699. }
  3700. #[test]
  3701. fn test_established_close() {
  3702. let mut s = socket_established();
  3703. s.close();
  3704. assert_eq!(s.state, State::FinWait1);
  3705. sanity!(s, socket_fin_wait_1());
  3706. }
  3707. #[test]
  3708. fn test_established_abort() {
  3709. let mut s = socket_established();
  3710. s.abort();
  3711. assert_eq!(s.state, State::Closed);
  3712. recv!(
  3713. s,
  3714. [TcpRepr {
  3715. control: TcpControl::Rst,
  3716. seq_number: LOCAL_SEQ + 1,
  3717. ack_number: Some(REMOTE_SEQ + 1),
  3718. ..RECV_TEMPL
  3719. }]
  3720. );
  3721. }
  3722. #[test]
  3723. fn test_established_rst_bad_seq() {
  3724. let mut s = socket_established();
  3725. send!(
  3726. s,
  3727. TcpRepr {
  3728. control: TcpControl::Rst,
  3729. seq_number: REMOTE_SEQ, // Wrong seq
  3730. ack_number: None,
  3731. ..SEND_TEMPL
  3732. },
  3733. Some(TcpRepr {
  3734. seq_number: LOCAL_SEQ + 1,
  3735. ack_number: Some(REMOTE_SEQ + 1),
  3736. ..RECV_TEMPL
  3737. })
  3738. );
  3739. assert_eq!(s.state, State::Established);
  3740. // Send something to advance seq by 1
  3741. send!(
  3742. s,
  3743. TcpRepr {
  3744. seq_number: REMOTE_SEQ + 1, // correct seq
  3745. ack_number: Some(LOCAL_SEQ + 1),
  3746. payload: &b"a"[..],
  3747. ..SEND_TEMPL
  3748. }
  3749. );
  3750. // Send wrong rst again, check that the challenge ack is correctly updated
  3751. // The ack number must be updated even if we don't call dispatch on the socket
  3752. // See https://github.com/smoltcp-rs/smoltcp/issues/338
  3753. send!(
  3754. s,
  3755. time 2000,
  3756. TcpRepr {
  3757. control: TcpControl::Rst,
  3758. seq_number: REMOTE_SEQ, // Wrong seq
  3759. ack_number: None,
  3760. ..SEND_TEMPL
  3761. },
  3762. Some(TcpRepr {
  3763. seq_number: LOCAL_SEQ + 1,
  3764. ack_number: Some(REMOTE_SEQ + 2), // this has changed
  3765. window_len: 63,
  3766. ..RECV_TEMPL
  3767. })
  3768. );
  3769. }
  3770. // =========================================================================================//
  3771. // Tests for the FIN-WAIT-1 state.
  3772. // =========================================================================================//
  3773. #[test]
  3774. fn test_fin_wait_1_fin_ack() {
  3775. let mut s = socket_fin_wait_1();
  3776. recv!(
  3777. s,
  3778. [TcpRepr {
  3779. control: TcpControl::Fin,
  3780. seq_number: LOCAL_SEQ + 1,
  3781. ack_number: Some(REMOTE_SEQ + 1),
  3782. ..RECV_TEMPL
  3783. }]
  3784. );
  3785. send!(
  3786. s,
  3787. TcpRepr {
  3788. seq_number: REMOTE_SEQ + 1,
  3789. ack_number: Some(LOCAL_SEQ + 1 + 1),
  3790. ..SEND_TEMPL
  3791. }
  3792. );
  3793. assert_eq!(s.state, State::FinWait2);
  3794. sanity!(s, socket_fin_wait_2());
  3795. }
  3796. #[test]
  3797. fn test_fin_wait_1_fin_fin() {
  3798. let mut s = socket_fin_wait_1();
  3799. recv!(
  3800. s,
  3801. [TcpRepr {
  3802. control: TcpControl::Fin,
  3803. seq_number: LOCAL_SEQ + 1,
  3804. ack_number: Some(REMOTE_SEQ + 1),
  3805. ..RECV_TEMPL
  3806. }]
  3807. );
  3808. send!(
  3809. s,
  3810. TcpRepr {
  3811. control: TcpControl::Fin,
  3812. seq_number: REMOTE_SEQ + 1,
  3813. ack_number: Some(LOCAL_SEQ + 1),
  3814. ..SEND_TEMPL
  3815. }
  3816. );
  3817. assert_eq!(s.state, State::Closing);
  3818. sanity!(s, socket_closing());
  3819. }
  3820. #[test]
  3821. fn test_fin_wait_1_fin_with_data_queued() {
  3822. let mut s = socket_established();
  3823. s.remote_win_len = 6;
  3824. s.send_slice(b"abcdef123456").unwrap();
  3825. s.close();
  3826. recv!(
  3827. s,
  3828. Ok(TcpRepr {
  3829. seq_number: LOCAL_SEQ + 1,
  3830. ack_number: Some(REMOTE_SEQ + 1),
  3831. payload: &b"abcdef"[..],
  3832. ..RECV_TEMPL
  3833. })
  3834. );
  3835. send!(
  3836. s,
  3837. TcpRepr {
  3838. seq_number: REMOTE_SEQ + 1,
  3839. ack_number: Some(LOCAL_SEQ + 1 + 6),
  3840. ..SEND_TEMPL
  3841. }
  3842. );
  3843. assert_eq!(s.state, State::FinWait1);
  3844. }
  3845. #[test]
  3846. fn test_fin_wait_1_recv() {
  3847. let mut s = socket_fin_wait_1();
  3848. send!(
  3849. s,
  3850. TcpRepr {
  3851. seq_number: REMOTE_SEQ + 1,
  3852. ack_number: Some(LOCAL_SEQ + 1),
  3853. payload: &b"abc"[..],
  3854. ..SEND_TEMPL
  3855. }
  3856. );
  3857. assert_eq!(s.state, State::FinWait1);
  3858. s.recv(|data| {
  3859. assert_eq!(data, b"abc");
  3860. (3, ())
  3861. })
  3862. .unwrap();
  3863. }
  3864. #[test]
  3865. fn test_fin_wait_1_close() {
  3866. let mut s = socket_fin_wait_1();
  3867. s.close();
  3868. assert_eq!(s.state, State::FinWait1);
  3869. }
  3870. // =========================================================================================//
  3871. // Tests for the FIN-WAIT-2 state.
  3872. // =========================================================================================//
  3873. #[test]
  3874. fn test_fin_wait_2_fin() {
  3875. let mut s = socket_fin_wait_2();
  3876. send!(s, time 1_000, TcpRepr {
  3877. control: TcpControl::Fin,
  3878. seq_number: REMOTE_SEQ + 1,
  3879. ack_number: Some(LOCAL_SEQ + 1 + 1),
  3880. ..SEND_TEMPL
  3881. });
  3882. assert_eq!(s.state, State::TimeWait);
  3883. sanity!(s, socket_time_wait(false));
  3884. }
  3885. #[test]
  3886. fn test_fin_wait_2_recv() {
  3887. let mut s = socket_fin_wait_2();
  3888. send!(
  3889. s,
  3890. TcpRepr {
  3891. seq_number: REMOTE_SEQ + 1,
  3892. ack_number: Some(LOCAL_SEQ + 1 + 1),
  3893. payload: &b"abc"[..],
  3894. ..SEND_TEMPL
  3895. }
  3896. );
  3897. assert_eq!(s.state, State::FinWait2);
  3898. s.recv(|data| {
  3899. assert_eq!(data, b"abc");
  3900. (3, ())
  3901. })
  3902. .unwrap();
  3903. recv!(
  3904. s,
  3905. [TcpRepr {
  3906. seq_number: LOCAL_SEQ + 1 + 1,
  3907. ack_number: Some(REMOTE_SEQ + 1 + 3),
  3908. ..RECV_TEMPL
  3909. }]
  3910. );
  3911. }
  3912. #[test]
  3913. fn test_fin_wait_2_close() {
  3914. let mut s = socket_fin_wait_2();
  3915. s.close();
  3916. assert_eq!(s.state, State::FinWait2);
  3917. }
  3918. // =========================================================================================//
  3919. // Tests for the CLOSING state.
  3920. // =========================================================================================//
  3921. #[test]
  3922. fn test_closing_ack_fin() {
  3923. let mut s = socket_closing();
  3924. recv!(
  3925. s,
  3926. [TcpRepr {
  3927. seq_number: LOCAL_SEQ + 1 + 1,
  3928. ack_number: Some(REMOTE_SEQ + 1 + 1),
  3929. ..RECV_TEMPL
  3930. }]
  3931. );
  3932. send!(s, time 1_000, TcpRepr {
  3933. seq_number: REMOTE_SEQ + 1 + 1,
  3934. ack_number: Some(LOCAL_SEQ + 1 + 1),
  3935. ..SEND_TEMPL
  3936. });
  3937. assert_eq!(s.state, State::TimeWait);
  3938. sanity!(s, socket_time_wait(true));
  3939. }
  3940. #[test]
  3941. fn test_closing_close() {
  3942. let mut s = socket_closing();
  3943. s.close();
  3944. assert_eq!(s.state, State::Closing);
  3945. }
  3946. // =========================================================================================//
  3947. // Tests for the TIME-WAIT state.
  3948. // =========================================================================================//
  3949. #[test]
  3950. fn test_time_wait_from_fin_wait_2_ack() {
  3951. let mut s = socket_time_wait(false);
  3952. recv!(
  3953. s,
  3954. [TcpRepr {
  3955. seq_number: LOCAL_SEQ + 1 + 1,
  3956. ack_number: Some(REMOTE_SEQ + 1 + 1),
  3957. ..RECV_TEMPL
  3958. }]
  3959. );
  3960. }
  3961. #[test]
  3962. fn test_time_wait_from_closing_no_ack() {
  3963. let mut s = socket_time_wait(true);
  3964. recv!(s, []);
  3965. }
  3966. #[test]
  3967. fn test_time_wait_close() {
  3968. let mut s = socket_time_wait(false);
  3969. s.close();
  3970. assert_eq!(s.state, State::TimeWait);
  3971. }
  3972. #[test]
  3973. fn test_time_wait_retransmit() {
  3974. let mut s = socket_time_wait(false);
  3975. recv!(
  3976. s,
  3977. [TcpRepr {
  3978. seq_number: LOCAL_SEQ + 1 + 1,
  3979. ack_number: Some(REMOTE_SEQ + 1 + 1),
  3980. ..RECV_TEMPL
  3981. }]
  3982. );
  3983. send!(s, time 5_000, TcpRepr {
  3984. control: TcpControl::Fin,
  3985. seq_number: REMOTE_SEQ + 1,
  3986. ack_number: Some(LOCAL_SEQ + 1 + 1),
  3987. ..SEND_TEMPL
  3988. }, Some(TcpRepr {
  3989. seq_number: LOCAL_SEQ + 1 + 1,
  3990. ack_number: Some(REMOTE_SEQ + 1 + 1),
  3991. ..RECV_TEMPL
  3992. }));
  3993. assert_eq!(
  3994. s.timer,
  3995. Timer::Close {
  3996. expires_at: Instant::from_secs(5) + CLOSE_DELAY
  3997. }
  3998. );
  3999. }
  4000. #[test]
  4001. fn test_time_wait_timeout() {
  4002. let mut s = socket_time_wait(false);
  4003. recv!(
  4004. s,
  4005. [TcpRepr {
  4006. seq_number: LOCAL_SEQ + 1 + 1,
  4007. ack_number: Some(REMOTE_SEQ + 1 + 1),
  4008. ..RECV_TEMPL
  4009. }]
  4010. );
  4011. assert_eq!(s.state, State::TimeWait);
  4012. recv_nothing!(s, time 60_000);
  4013. assert_eq!(s.state, State::Closed);
  4014. }
  4015. // =========================================================================================//
  4016. // Tests for the CLOSE-WAIT state.
  4017. // =========================================================================================//
  4018. #[test]
  4019. fn test_close_wait_ack() {
  4020. let mut s = socket_close_wait();
  4021. s.send_slice(b"abcdef").unwrap();
  4022. recv!(
  4023. s,
  4024. [TcpRepr {
  4025. seq_number: LOCAL_SEQ + 1,
  4026. ack_number: Some(REMOTE_SEQ + 1 + 1),
  4027. payload: &b"abcdef"[..],
  4028. ..RECV_TEMPL
  4029. }]
  4030. );
  4031. send!(
  4032. s,
  4033. TcpRepr {
  4034. seq_number: REMOTE_SEQ + 1 + 1,
  4035. ack_number: Some(LOCAL_SEQ + 1 + 6),
  4036. ..SEND_TEMPL
  4037. }
  4038. );
  4039. }
  4040. #[test]
  4041. fn test_close_wait_close() {
  4042. let mut s = socket_close_wait();
  4043. s.close();
  4044. assert_eq!(s.state, State::LastAck);
  4045. sanity!(s, socket_last_ack());
  4046. }
  4047. // =========================================================================================//
  4048. // Tests for the LAST-ACK state.
  4049. // =========================================================================================//
  4050. #[test]
  4051. fn test_last_ack_fin_ack() {
  4052. let mut s = socket_last_ack();
  4053. recv!(
  4054. s,
  4055. [TcpRepr {
  4056. control: TcpControl::Fin,
  4057. seq_number: LOCAL_SEQ + 1,
  4058. ack_number: Some(REMOTE_SEQ + 1 + 1),
  4059. ..RECV_TEMPL
  4060. }]
  4061. );
  4062. assert_eq!(s.state, State::LastAck);
  4063. send!(
  4064. s,
  4065. TcpRepr {
  4066. seq_number: REMOTE_SEQ + 1 + 1,
  4067. ack_number: Some(LOCAL_SEQ + 1 + 1),
  4068. ..SEND_TEMPL
  4069. }
  4070. );
  4071. assert_eq!(s.state, State::Closed);
  4072. }
  4073. #[test]
  4074. fn test_last_ack_ack_not_of_fin() {
  4075. let mut s = socket_last_ack();
  4076. recv!(
  4077. s,
  4078. [TcpRepr {
  4079. control: TcpControl::Fin,
  4080. seq_number: LOCAL_SEQ + 1,
  4081. ack_number: Some(REMOTE_SEQ + 1 + 1),
  4082. ..RECV_TEMPL
  4083. }]
  4084. );
  4085. assert_eq!(s.state, State::LastAck);
  4086. // ACK received that doesn't ack the FIN: socket should stay in LastAck.
  4087. send!(
  4088. s,
  4089. TcpRepr {
  4090. seq_number: REMOTE_SEQ + 1 + 1,
  4091. ack_number: Some(LOCAL_SEQ + 1),
  4092. ..SEND_TEMPL
  4093. }
  4094. );
  4095. assert_eq!(s.state, State::LastAck);
  4096. // ACK received of fin: socket should change to Closed.
  4097. send!(
  4098. s,
  4099. TcpRepr {
  4100. seq_number: REMOTE_SEQ + 1 + 1,
  4101. ack_number: Some(LOCAL_SEQ + 1 + 1),
  4102. ..SEND_TEMPL
  4103. }
  4104. );
  4105. assert_eq!(s.state, State::Closed);
  4106. }
  4107. #[test]
  4108. fn test_last_ack_close() {
  4109. let mut s = socket_last_ack();
  4110. s.close();
  4111. assert_eq!(s.state, State::LastAck);
  4112. }
  4113. // =========================================================================================//
  4114. // Tests for transitioning through multiple states.
  4115. // =========================================================================================//
  4116. #[test]
  4117. fn test_listen() {
  4118. let mut s = socket();
  4119. s.listen(LISTEN_END).unwrap();
  4120. assert_eq!(s.state, State::Listen);
  4121. }
  4122. #[test]
  4123. fn test_three_way_handshake() {
  4124. let mut s = socket_listen();
  4125. send!(
  4126. s,
  4127. TcpRepr {
  4128. control: TcpControl::Syn,
  4129. seq_number: REMOTE_SEQ,
  4130. ack_number: None,
  4131. ..SEND_TEMPL
  4132. }
  4133. );
  4134. assert_eq!(s.state(), State::SynReceived);
  4135. assert_eq!(s.tuple, Some(TUPLE));
  4136. recv!(
  4137. s,
  4138. [TcpRepr {
  4139. control: TcpControl::Syn,
  4140. seq_number: LOCAL_SEQ,
  4141. ack_number: Some(REMOTE_SEQ + 1),
  4142. max_seg_size: Some(BASE_MSS),
  4143. ..RECV_TEMPL
  4144. }]
  4145. );
  4146. send!(
  4147. s,
  4148. TcpRepr {
  4149. seq_number: REMOTE_SEQ + 1,
  4150. ack_number: Some(LOCAL_SEQ + 1),
  4151. ..SEND_TEMPL
  4152. }
  4153. );
  4154. assert_eq!(s.state(), State::Established);
  4155. assert_eq!(s.local_seq_no, LOCAL_SEQ + 1);
  4156. assert_eq!(s.remote_seq_no, REMOTE_SEQ + 1);
  4157. }
  4158. #[test]
  4159. fn test_remote_close() {
  4160. let mut s = socket_established();
  4161. send!(
  4162. s,
  4163. TcpRepr {
  4164. control: TcpControl::Fin,
  4165. seq_number: REMOTE_SEQ + 1,
  4166. ack_number: Some(LOCAL_SEQ + 1),
  4167. ..SEND_TEMPL
  4168. }
  4169. );
  4170. assert_eq!(s.state, State::CloseWait);
  4171. recv!(
  4172. s,
  4173. [TcpRepr {
  4174. seq_number: LOCAL_SEQ + 1,
  4175. ack_number: Some(REMOTE_SEQ + 1 + 1),
  4176. ..RECV_TEMPL
  4177. }]
  4178. );
  4179. s.close();
  4180. assert_eq!(s.state, State::LastAck);
  4181. recv!(
  4182. s,
  4183. [TcpRepr {
  4184. control: TcpControl::Fin,
  4185. seq_number: LOCAL_SEQ + 1,
  4186. ack_number: Some(REMOTE_SEQ + 1 + 1),
  4187. ..RECV_TEMPL
  4188. }]
  4189. );
  4190. send!(
  4191. s,
  4192. TcpRepr {
  4193. seq_number: REMOTE_SEQ + 1 + 1,
  4194. ack_number: Some(LOCAL_SEQ + 1 + 1),
  4195. ..SEND_TEMPL
  4196. }
  4197. );
  4198. assert_eq!(s.state, State::Closed);
  4199. }
  4200. #[test]
  4201. fn test_local_close() {
  4202. let mut s = socket_established();
  4203. s.close();
  4204. assert_eq!(s.state, State::FinWait1);
  4205. recv!(
  4206. s,
  4207. [TcpRepr {
  4208. control: TcpControl::Fin,
  4209. seq_number: LOCAL_SEQ + 1,
  4210. ack_number: Some(REMOTE_SEQ + 1),
  4211. ..RECV_TEMPL
  4212. }]
  4213. );
  4214. send!(
  4215. s,
  4216. TcpRepr {
  4217. seq_number: REMOTE_SEQ + 1,
  4218. ack_number: Some(LOCAL_SEQ + 1 + 1),
  4219. ..SEND_TEMPL
  4220. }
  4221. );
  4222. assert_eq!(s.state, State::FinWait2);
  4223. send!(
  4224. s,
  4225. TcpRepr {
  4226. control: TcpControl::Fin,
  4227. seq_number: REMOTE_SEQ + 1,
  4228. ack_number: Some(LOCAL_SEQ + 1 + 1),
  4229. ..SEND_TEMPL
  4230. }
  4231. );
  4232. assert_eq!(s.state, State::TimeWait);
  4233. recv!(
  4234. s,
  4235. [TcpRepr {
  4236. seq_number: LOCAL_SEQ + 1 + 1,
  4237. ack_number: Some(REMOTE_SEQ + 1 + 1),
  4238. ..RECV_TEMPL
  4239. }]
  4240. );
  4241. }
  4242. #[test]
  4243. fn test_simultaneous_close() {
  4244. let mut s = socket_established();
  4245. s.close();
  4246. assert_eq!(s.state, State::FinWait1);
  4247. recv!(
  4248. s,
  4249. [TcpRepr {
  4250. // due to reordering, this is logically located...
  4251. control: TcpControl::Fin,
  4252. seq_number: LOCAL_SEQ + 1,
  4253. ack_number: Some(REMOTE_SEQ + 1),
  4254. ..RECV_TEMPL
  4255. }]
  4256. );
  4257. send!(
  4258. s,
  4259. TcpRepr {
  4260. control: TcpControl::Fin,
  4261. seq_number: REMOTE_SEQ + 1,
  4262. ack_number: Some(LOCAL_SEQ + 1),
  4263. ..SEND_TEMPL
  4264. }
  4265. );
  4266. assert_eq!(s.state, State::Closing);
  4267. recv!(
  4268. s,
  4269. [TcpRepr {
  4270. seq_number: LOCAL_SEQ + 1 + 1,
  4271. ack_number: Some(REMOTE_SEQ + 1 + 1),
  4272. ..RECV_TEMPL
  4273. }]
  4274. );
  4275. // ... at this point
  4276. send!(
  4277. s,
  4278. TcpRepr {
  4279. seq_number: REMOTE_SEQ + 1 + 1,
  4280. ack_number: Some(LOCAL_SEQ + 1 + 1),
  4281. ..SEND_TEMPL
  4282. }
  4283. );
  4284. assert_eq!(s.state, State::TimeWait);
  4285. recv!(s, []);
  4286. }
  4287. #[test]
  4288. fn test_simultaneous_close_combined_fin_ack() {
  4289. let mut s = socket_established();
  4290. s.close();
  4291. assert_eq!(s.state, State::FinWait1);
  4292. recv!(
  4293. s,
  4294. [TcpRepr {
  4295. control: TcpControl::Fin,
  4296. seq_number: LOCAL_SEQ + 1,
  4297. ack_number: Some(REMOTE_SEQ + 1),
  4298. ..RECV_TEMPL
  4299. }]
  4300. );
  4301. send!(
  4302. s,
  4303. TcpRepr {
  4304. control: TcpControl::Fin,
  4305. seq_number: REMOTE_SEQ + 1,
  4306. ack_number: Some(LOCAL_SEQ + 1 + 1),
  4307. ..SEND_TEMPL
  4308. }
  4309. );
  4310. assert_eq!(s.state, State::TimeWait);
  4311. recv!(
  4312. s,
  4313. [TcpRepr {
  4314. seq_number: LOCAL_SEQ + 1 + 1,
  4315. ack_number: Some(REMOTE_SEQ + 1 + 1),
  4316. ..RECV_TEMPL
  4317. }]
  4318. );
  4319. }
  4320. #[test]
  4321. fn test_simultaneous_close_raced() {
  4322. let mut s = socket_established();
  4323. s.close();
  4324. assert_eq!(s.state, State::FinWait1);
  4325. // Socket receives FIN before it has a chance to send its own FIN
  4326. send!(
  4327. s,
  4328. TcpRepr {
  4329. control: TcpControl::Fin,
  4330. seq_number: REMOTE_SEQ + 1,
  4331. ack_number: Some(LOCAL_SEQ + 1),
  4332. ..SEND_TEMPL
  4333. }
  4334. );
  4335. assert_eq!(s.state, State::Closing);
  4336. // FIN + ack-of-FIN
  4337. recv!(
  4338. s,
  4339. [TcpRepr {
  4340. control: TcpControl::Fin,
  4341. seq_number: LOCAL_SEQ + 1,
  4342. ack_number: Some(REMOTE_SEQ + 1 + 1),
  4343. ..RECV_TEMPL
  4344. }]
  4345. );
  4346. assert_eq!(s.state, State::Closing);
  4347. send!(
  4348. s,
  4349. TcpRepr {
  4350. seq_number: REMOTE_SEQ + 1 + 1,
  4351. ack_number: Some(LOCAL_SEQ + 1 + 1),
  4352. ..SEND_TEMPL
  4353. }
  4354. );
  4355. assert_eq!(s.state, State::TimeWait);
  4356. recv!(s, []);
  4357. }
  4358. #[test]
  4359. fn test_simultaneous_close_raced_with_data() {
  4360. let mut s = socket_established();
  4361. s.send_slice(b"abcdef").unwrap();
  4362. s.close();
  4363. assert_eq!(s.state, State::FinWait1);
  4364. // Socket receives FIN before it has a chance to send its own data+FIN
  4365. send!(
  4366. s,
  4367. TcpRepr {
  4368. control: TcpControl::Fin,
  4369. seq_number: REMOTE_SEQ + 1,
  4370. ack_number: Some(LOCAL_SEQ + 1),
  4371. ..SEND_TEMPL
  4372. }
  4373. );
  4374. assert_eq!(s.state, State::Closing);
  4375. // data + FIN + ack-of-FIN
  4376. recv!(
  4377. s,
  4378. [TcpRepr {
  4379. control: TcpControl::Fin,
  4380. seq_number: LOCAL_SEQ + 1,
  4381. ack_number: Some(REMOTE_SEQ + 1 + 1),
  4382. payload: &b"abcdef"[..],
  4383. ..RECV_TEMPL
  4384. }]
  4385. );
  4386. assert_eq!(s.state, State::Closing);
  4387. send!(
  4388. s,
  4389. TcpRepr {
  4390. seq_number: REMOTE_SEQ + 1 + 1,
  4391. ack_number: Some(LOCAL_SEQ + 1 + 6 + 1),
  4392. ..SEND_TEMPL
  4393. }
  4394. );
  4395. assert_eq!(s.state, State::TimeWait);
  4396. recv!(s, []);
  4397. }
  4398. #[test]
  4399. fn test_fin_with_data() {
  4400. let mut s = socket_established();
  4401. s.send_slice(b"abcdef").unwrap();
  4402. s.close();
  4403. recv!(
  4404. s,
  4405. [TcpRepr {
  4406. control: TcpControl::Fin,
  4407. seq_number: LOCAL_SEQ + 1,
  4408. ack_number: Some(REMOTE_SEQ + 1),
  4409. payload: &b"abcdef"[..],
  4410. ..RECV_TEMPL
  4411. }]
  4412. )
  4413. }
  4414. #[test]
  4415. fn test_mutual_close_with_data_1() {
  4416. let mut s = socket_established();
  4417. s.send_slice(b"abcdef").unwrap();
  4418. s.close();
  4419. assert_eq!(s.state, State::FinWait1);
  4420. recv!(
  4421. s,
  4422. [TcpRepr {
  4423. control: TcpControl::Fin,
  4424. seq_number: LOCAL_SEQ + 1,
  4425. ack_number: Some(REMOTE_SEQ + 1),
  4426. payload: &b"abcdef"[..],
  4427. ..RECV_TEMPL
  4428. }]
  4429. );
  4430. send!(
  4431. s,
  4432. TcpRepr {
  4433. control: TcpControl::Fin,
  4434. seq_number: REMOTE_SEQ + 1,
  4435. ack_number: Some(LOCAL_SEQ + 1 + 6 + 1),
  4436. ..SEND_TEMPL
  4437. }
  4438. );
  4439. }
  4440. #[test]
  4441. fn test_mutual_close_with_data_2() {
  4442. let mut s = socket_established();
  4443. s.send_slice(b"abcdef").unwrap();
  4444. s.close();
  4445. assert_eq!(s.state, State::FinWait1);
  4446. recv!(
  4447. s,
  4448. [TcpRepr {
  4449. control: TcpControl::Fin,
  4450. seq_number: LOCAL_SEQ + 1,
  4451. ack_number: Some(REMOTE_SEQ + 1),
  4452. payload: &b"abcdef"[..],
  4453. ..RECV_TEMPL
  4454. }]
  4455. );
  4456. send!(
  4457. s,
  4458. TcpRepr {
  4459. seq_number: REMOTE_SEQ + 1,
  4460. ack_number: Some(LOCAL_SEQ + 1 + 6 + 1),
  4461. ..SEND_TEMPL
  4462. }
  4463. );
  4464. assert_eq!(s.state, State::FinWait2);
  4465. send!(
  4466. s,
  4467. TcpRepr {
  4468. control: TcpControl::Fin,
  4469. seq_number: REMOTE_SEQ + 1,
  4470. ack_number: Some(LOCAL_SEQ + 1 + 6 + 1),
  4471. ..SEND_TEMPL
  4472. }
  4473. );
  4474. recv!(
  4475. s,
  4476. [TcpRepr {
  4477. seq_number: LOCAL_SEQ + 1 + 6 + 1,
  4478. ack_number: Some(REMOTE_SEQ + 1 + 1),
  4479. ..RECV_TEMPL
  4480. }]
  4481. );
  4482. assert_eq!(s.state, State::TimeWait);
  4483. }
  4484. // =========================================================================================//
  4485. // Tests for retransmission on packet loss.
  4486. // =========================================================================================//
  4487. #[test]
  4488. fn test_duplicate_seq_ack() {
  4489. let mut s = socket_recved();
  4490. // remote retransmission
  4491. send!(
  4492. s,
  4493. TcpRepr {
  4494. seq_number: REMOTE_SEQ + 1,
  4495. ack_number: Some(LOCAL_SEQ + 1),
  4496. payload: &b"abcdef"[..],
  4497. ..SEND_TEMPL
  4498. },
  4499. Some(TcpRepr {
  4500. seq_number: LOCAL_SEQ + 1,
  4501. ack_number: Some(REMOTE_SEQ + 1 + 6),
  4502. window_len: 58,
  4503. ..RECV_TEMPL
  4504. })
  4505. );
  4506. }
  4507. #[test]
  4508. fn test_data_retransmit() {
  4509. let mut s = socket_established();
  4510. s.send_slice(b"abcdef").unwrap();
  4511. recv!(s, time 1000, Ok(TcpRepr {
  4512. seq_number: LOCAL_SEQ + 1,
  4513. ack_number: Some(REMOTE_SEQ + 1),
  4514. payload: &b"abcdef"[..],
  4515. ..RECV_TEMPL
  4516. }));
  4517. recv_nothing!(s, time 1050);
  4518. recv!(s, time 2000, Ok(TcpRepr {
  4519. seq_number: LOCAL_SEQ + 1,
  4520. ack_number: Some(REMOTE_SEQ + 1),
  4521. payload: &b"abcdef"[..],
  4522. ..RECV_TEMPL
  4523. }));
  4524. }
  4525. #[test]
  4526. fn test_data_retransmit_bursts() {
  4527. let mut s = socket_established();
  4528. s.remote_mss = 6;
  4529. s.send_slice(b"abcdef012345").unwrap();
  4530. recv!(s, time 0, Ok(TcpRepr {
  4531. control: TcpControl::None,
  4532. seq_number: LOCAL_SEQ + 1,
  4533. ack_number: Some(REMOTE_SEQ + 1),
  4534. payload: &b"abcdef"[..],
  4535. ..RECV_TEMPL
  4536. }), exact);
  4537. recv!(s, time 0, Ok(TcpRepr {
  4538. control: TcpControl::Psh,
  4539. seq_number: LOCAL_SEQ + 1 + 6,
  4540. ack_number: Some(REMOTE_SEQ + 1),
  4541. payload: &b"012345"[..],
  4542. ..RECV_TEMPL
  4543. }), exact);
  4544. recv_nothing!(s, time 0);
  4545. recv_nothing!(s, time 50);
  4546. recv!(s, time 1000, Ok(TcpRepr {
  4547. control: TcpControl::None,
  4548. seq_number: LOCAL_SEQ + 1,
  4549. ack_number: Some(REMOTE_SEQ + 1),
  4550. payload: &b"abcdef"[..],
  4551. ..RECV_TEMPL
  4552. }), exact);
  4553. recv!(s, time 1500, Ok(TcpRepr {
  4554. control: TcpControl::Psh,
  4555. seq_number: LOCAL_SEQ + 1 + 6,
  4556. ack_number: Some(REMOTE_SEQ + 1),
  4557. payload: &b"012345"[..],
  4558. ..RECV_TEMPL
  4559. }), exact);
  4560. recv_nothing!(s, time 1550);
  4561. }
  4562. #[test]
  4563. fn test_data_retransmit_bursts_half_ack() {
  4564. let mut s = socket_established();
  4565. s.remote_mss = 6;
  4566. s.send_slice(b"abcdef012345").unwrap();
  4567. recv!(s, time 0, Ok(TcpRepr {
  4568. control: TcpControl::None,
  4569. seq_number: LOCAL_SEQ + 1,
  4570. ack_number: Some(REMOTE_SEQ + 1),
  4571. payload: &b"abcdef"[..],
  4572. ..RECV_TEMPL
  4573. }), exact);
  4574. recv!(s, time 0, Ok(TcpRepr {
  4575. control: TcpControl::Psh,
  4576. seq_number: LOCAL_SEQ + 1 + 6,
  4577. ack_number: Some(REMOTE_SEQ + 1),
  4578. payload: &b"012345"[..],
  4579. ..RECV_TEMPL
  4580. }), exact);
  4581. // Acknowledge the first packet
  4582. send!(s, time 5, TcpRepr {
  4583. seq_number: REMOTE_SEQ + 1,
  4584. ack_number: Some(LOCAL_SEQ + 1 + 6),
  4585. window_len: 6,
  4586. ..SEND_TEMPL
  4587. });
  4588. // The second packet should be re-sent.
  4589. recv!(s, time 1500, Ok(TcpRepr {
  4590. control: TcpControl::Psh,
  4591. seq_number: LOCAL_SEQ + 1 + 6,
  4592. ack_number: Some(REMOTE_SEQ + 1),
  4593. payload: &b"012345"[..],
  4594. ..RECV_TEMPL
  4595. }), exact);
  4596. recv_nothing!(s, time 1550);
  4597. }
  4598. #[test]
  4599. fn test_data_retransmit_bursts_half_ack_close() {
  4600. let mut s = socket_established();
  4601. s.remote_mss = 6;
  4602. s.send_slice(b"abcdef012345").unwrap();
  4603. s.close();
  4604. recv!(s, time 0, Ok(TcpRepr {
  4605. control: TcpControl::None,
  4606. seq_number: LOCAL_SEQ + 1,
  4607. ack_number: Some(REMOTE_SEQ + 1),
  4608. payload: &b"abcdef"[..],
  4609. ..RECV_TEMPL
  4610. }), exact);
  4611. recv!(s, time 0, Ok(TcpRepr {
  4612. control: TcpControl::Fin,
  4613. seq_number: LOCAL_SEQ + 1 + 6,
  4614. ack_number: Some(REMOTE_SEQ + 1),
  4615. payload: &b"012345"[..],
  4616. ..RECV_TEMPL
  4617. }), exact);
  4618. // Acknowledge the first packet
  4619. send!(s, time 5, TcpRepr {
  4620. seq_number: REMOTE_SEQ + 1,
  4621. ack_number: Some(LOCAL_SEQ + 1 + 6),
  4622. window_len: 6,
  4623. ..SEND_TEMPL
  4624. });
  4625. // The second packet should be re-sent.
  4626. recv!(s, time 1500, Ok(TcpRepr {
  4627. control: TcpControl::Fin,
  4628. seq_number: LOCAL_SEQ + 1 + 6,
  4629. ack_number: Some(REMOTE_SEQ + 1),
  4630. payload: &b"012345"[..],
  4631. ..RECV_TEMPL
  4632. }), exact);
  4633. recv_nothing!(s, time 1550);
  4634. }
  4635. #[test]
  4636. fn test_send_data_after_syn_ack_retransmit() {
  4637. let mut s = socket_syn_received();
  4638. recv!(s, time 50, Ok(TcpRepr {
  4639. control: TcpControl::Syn,
  4640. seq_number: LOCAL_SEQ,
  4641. ack_number: Some(REMOTE_SEQ + 1),
  4642. max_seg_size: Some(BASE_MSS),
  4643. ..RECV_TEMPL
  4644. }));
  4645. recv!(s, time 750, Ok(TcpRepr { // retransmit
  4646. control: TcpControl::Syn,
  4647. seq_number: LOCAL_SEQ,
  4648. ack_number: Some(REMOTE_SEQ + 1),
  4649. max_seg_size: Some(BASE_MSS),
  4650. ..RECV_TEMPL
  4651. }));
  4652. send!(
  4653. s,
  4654. TcpRepr {
  4655. seq_number: REMOTE_SEQ + 1,
  4656. ack_number: Some(LOCAL_SEQ + 1),
  4657. ..SEND_TEMPL
  4658. }
  4659. );
  4660. assert_eq!(s.state(), State::Established);
  4661. s.send_slice(b"abcdef").unwrap();
  4662. recv!(
  4663. s,
  4664. [TcpRepr {
  4665. seq_number: LOCAL_SEQ + 1,
  4666. ack_number: Some(REMOTE_SEQ + 1),
  4667. payload: &b"abcdef"[..],
  4668. ..RECV_TEMPL
  4669. }]
  4670. )
  4671. }
  4672. #[test]
  4673. fn test_established_retransmit_for_dup_ack() {
  4674. let mut s = socket_established();
  4675. // Duplicate ACKs do not replace the retransmission timer
  4676. s.send_slice(b"abc").unwrap();
  4677. recv!(s, time 1000, Ok(TcpRepr {
  4678. seq_number: LOCAL_SEQ + 1,
  4679. ack_number: Some(REMOTE_SEQ + 1),
  4680. payload: &b"abc"[..],
  4681. ..RECV_TEMPL
  4682. }));
  4683. // Retransmit timer is on because all data was sent
  4684. assert_eq!(s.tx_buffer.len(), 3);
  4685. // ACK nothing new
  4686. send!(
  4687. s,
  4688. TcpRepr {
  4689. seq_number: REMOTE_SEQ + 1,
  4690. ack_number: Some(LOCAL_SEQ + 1),
  4691. ..SEND_TEMPL
  4692. }
  4693. );
  4694. // Retransmit
  4695. recv!(s, time 4000, Ok(TcpRepr {
  4696. seq_number: LOCAL_SEQ + 1,
  4697. ack_number: Some(REMOTE_SEQ + 1),
  4698. payload: &b"abc"[..],
  4699. ..RECV_TEMPL
  4700. }));
  4701. }
  4702. #[test]
  4703. fn test_established_retransmit_reset_after_ack() {
  4704. let mut s = socket_established();
  4705. s.remote_win_len = 6;
  4706. s.send_slice(b"abcdef").unwrap();
  4707. s.send_slice(b"123456").unwrap();
  4708. s.send_slice(b"ABCDEF").unwrap();
  4709. recv!(s, time 1000, Ok(TcpRepr {
  4710. seq_number: LOCAL_SEQ + 1,
  4711. ack_number: Some(REMOTE_SEQ + 1),
  4712. payload: &b"abcdef"[..],
  4713. ..RECV_TEMPL
  4714. }));
  4715. send!(s, time 1005, TcpRepr {
  4716. seq_number: REMOTE_SEQ + 1,
  4717. ack_number: Some(LOCAL_SEQ + 1 + 6),
  4718. window_len: 6,
  4719. ..SEND_TEMPL
  4720. });
  4721. recv!(s, time 1010, Ok(TcpRepr {
  4722. seq_number: LOCAL_SEQ + 1 + 6,
  4723. ack_number: Some(REMOTE_SEQ + 1),
  4724. payload: &b"123456"[..],
  4725. ..RECV_TEMPL
  4726. }));
  4727. send!(s, time 1015, TcpRepr {
  4728. seq_number: REMOTE_SEQ + 1,
  4729. ack_number: Some(LOCAL_SEQ + 1 + 6 + 6),
  4730. window_len: 6,
  4731. ..SEND_TEMPL
  4732. });
  4733. recv!(s, time 1020, Ok(TcpRepr {
  4734. seq_number: LOCAL_SEQ + 1 + 6 + 6,
  4735. ack_number: Some(REMOTE_SEQ + 1),
  4736. payload: &b"ABCDEF"[..],
  4737. ..RECV_TEMPL
  4738. }));
  4739. }
  4740. #[test]
  4741. fn test_established_queue_during_retransmission() {
  4742. let mut s = socket_established();
  4743. s.remote_mss = 6;
  4744. s.send_slice(b"abcdef123456ABCDEF").unwrap();
  4745. recv!(s, time 1000, Ok(TcpRepr {
  4746. seq_number: LOCAL_SEQ + 1,
  4747. ack_number: Some(REMOTE_SEQ + 1),
  4748. payload: &b"abcdef"[..],
  4749. ..RECV_TEMPL
  4750. })); // this one is dropped
  4751. recv!(s, time 1005, Ok(TcpRepr {
  4752. seq_number: LOCAL_SEQ + 1 + 6,
  4753. ack_number: Some(REMOTE_SEQ + 1),
  4754. payload: &b"123456"[..],
  4755. ..RECV_TEMPL
  4756. })); // this one is received
  4757. recv!(s, time 1010, Ok(TcpRepr {
  4758. seq_number: LOCAL_SEQ + 1 + 6 + 6,
  4759. ack_number: Some(REMOTE_SEQ + 1),
  4760. payload: &b"ABCDEF"[..],
  4761. ..RECV_TEMPL
  4762. })); // also dropped
  4763. recv!(s, time 2000, Ok(TcpRepr {
  4764. seq_number: LOCAL_SEQ + 1,
  4765. ack_number: Some(REMOTE_SEQ + 1),
  4766. payload: &b"abcdef"[..],
  4767. ..RECV_TEMPL
  4768. })); // retransmission
  4769. send!(s, time 2005, TcpRepr {
  4770. seq_number: REMOTE_SEQ + 1,
  4771. ack_number: Some(LOCAL_SEQ + 1 + 6 + 6),
  4772. ..SEND_TEMPL
  4773. }); // acknowledgement of both segments
  4774. recv!(s, time 2010, Ok(TcpRepr {
  4775. seq_number: LOCAL_SEQ + 1 + 6 + 6,
  4776. ack_number: Some(REMOTE_SEQ + 1),
  4777. payload: &b"ABCDEF"[..],
  4778. ..RECV_TEMPL
  4779. })); // retransmission of only unacknowledged data
  4780. }
  4781. #[test]
  4782. fn test_close_wait_retransmit_reset_after_ack() {
  4783. let mut s = socket_close_wait();
  4784. s.remote_win_len = 6;
  4785. s.send_slice(b"abcdef").unwrap();
  4786. s.send_slice(b"123456").unwrap();
  4787. s.send_slice(b"ABCDEF").unwrap();
  4788. recv!(s, time 1000, Ok(TcpRepr {
  4789. seq_number: LOCAL_SEQ + 1,
  4790. ack_number: Some(REMOTE_SEQ + 1 + 1),
  4791. payload: &b"abcdef"[..],
  4792. ..RECV_TEMPL
  4793. }));
  4794. send!(s, time 1005, TcpRepr {
  4795. seq_number: REMOTE_SEQ + 1 + 1,
  4796. ack_number: Some(LOCAL_SEQ + 1 + 6),
  4797. window_len: 6,
  4798. ..SEND_TEMPL
  4799. });
  4800. recv!(s, time 1010, Ok(TcpRepr {
  4801. seq_number: LOCAL_SEQ + 1 + 6,
  4802. ack_number: Some(REMOTE_SEQ + 1 + 1),
  4803. payload: &b"123456"[..],
  4804. ..RECV_TEMPL
  4805. }));
  4806. send!(s, time 1015, TcpRepr {
  4807. seq_number: REMOTE_SEQ + 1 + 1,
  4808. ack_number: Some(LOCAL_SEQ + 1 + 6 + 6),
  4809. window_len: 6,
  4810. ..SEND_TEMPL
  4811. });
  4812. recv!(s, time 1020, Ok(TcpRepr {
  4813. seq_number: LOCAL_SEQ + 1 + 6 + 6,
  4814. ack_number: Some(REMOTE_SEQ + 1 + 1),
  4815. payload: &b"ABCDEF"[..],
  4816. ..RECV_TEMPL
  4817. }));
  4818. }
  4819. #[test]
  4820. fn test_fin_wait_1_retransmit_reset_after_ack() {
  4821. let mut s = socket_established();
  4822. s.remote_win_len = 6;
  4823. s.send_slice(b"abcdef").unwrap();
  4824. s.send_slice(b"123456").unwrap();
  4825. s.send_slice(b"ABCDEF").unwrap();
  4826. s.close();
  4827. recv!(s, time 1000, Ok(TcpRepr {
  4828. seq_number: LOCAL_SEQ + 1,
  4829. ack_number: Some(REMOTE_SEQ + 1),
  4830. payload: &b"abcdef"[..],
  4831. ..RECV_TEMPL
  4832. }));
  4833. send!(s, time 1005, TcpRepr {
  4834. seq_number: REMOTE_SEQ + 1,
  4835. ack_number: Some(LOCAL_SEQ + 1 + 6),
  4836. window_len: 6,
  4837. ..SEND_TEMPL
  4838. });
  4839. recv!(s, time 1010, Ok(TcpRepr {
  4840. seq_number: LOCAL_SEQ + 1 + 6,
  4841. ack_number: Some(REMOTE_SEQ + 1),
  4842. payload: &b"123456"[..],
  4843. ..RECV_TEMPL
  4844. }));
  4845. send!(s, time 1015, TcpRepr {
  4846. seq_number: REMOTE_SEQ + 1,
  4847. ack_number: Some(LOCAL_SEQ + 1 + 6 + 6),
  4848. window_len: 6,
  4849. ..SEND_TEMPL
  4850. });
  4851. recv!(s, time 1020, Ok(TcpRepr {
  4852. control: TcpControl::Fin,
  4853. seq_number: LOCAL_SEQ + 1 + 6 + 6,
  4854. ack_number: Some(REMOTE_SEQ + 1),
  4855. payload: &b"ABCDEF"[..],
  4856. ..RECV_TEMPL
  4857. }));
  4858. }
  4859. #[test]
  4860. fn test_fast_retransmit_after_triple_duplicate_ack() {
  4861. let mut s = socket_established();
  4862. s.remote_mss = 6;
  4863. // Normal ACK of previously recived segment
  4864. send!(s, time 0, TcpRepr {
  4865. seq_number: REMOTE_SEQ + 1,
  4866. ack_number: Some(LOCAL_SEQ + 1),
  4867. ..SEND_TEMPL
  4868. });
  4869. // Send a long string of text divided into several packets
  4870. // because of previously received "window_len"
  4871. s.send_slice(b"xxxxxxyyyyyywwwwwwzzzzzz").unwrap();
  4872. // This packet is lost
  4873. recv!(s, time 1000, Ok(TcpRepr {
  4874. seq_number: LOCAL_SEQ + 1,
  4875. ack_number: Some(REMOTE_SEQ + 1),
  4876. payload: &b"xxxxxx"[..],
  4877. ..RECV_TEMPL
  4878. }));
  4879. recv!(s, time 1005, Ok(TcpRepr {
  4880. seq_number: LOCAL_SEQ + 1 + 6,
  4881. ack_number: Some(REMOTE_SEQ + 1),
  4882. payload: &b"yyyyyy"[..],
  4883. ..RECV_TEMPL
  4884. }));
  4885. recv!(s, time 1010, Ok(TcpRepr {
  4886. seq_number: LOCAL_SEQ + 1 + (6 * 2),
  4887. ack_number: Some(REMOTE_SEQ + 1),
  4888. payload: &b"wwwwww"[..],
  4889. ..RECV_TEMPL
  4890. }));
  4891. recv!(s, time 1015, Ok(TcpRepr {
  4892. seq_number: LOCAL_SEQ + 1 + (6 * 3),
  4893. ack_number: Some(REMOTE_SEQ + 1),
  4894. payload: &b"zzzzzz"[..],
  4895. ..RECV_TEMPL
  4896. }));
  4897. // First duplicate ACK
  4898. send!(s, time 1050, TcpRepr {
  4899. seq_number: REMOTE_SEQ + 1,
  4900. ack_number: Some(LOCAL_SEQ + 1),
  4901. ..SEND_TEMPL
  4902. });
  4903. // Second duplicate ACK
  4904. send!(s, time 1055, TcpRepr {
  4905. seq_number: REMOTE_SEQ + 1,
  4906. ack_number: Some(LOCAL_SEQ + 1),
  4907. ..SEND_TEMPL
  4908. });
  4909. // Third duplicate ACK
  4910. // Should trigger a fast retransmit of dropped packet
  4911. send!(s, time 1060, TcpRepr {
  4912. seq_number: REMOTE_SEQ + 1,
  4913. ack_number: Some(LOCAL_SEQ + 1),
  4914. ..SEND_TEMPL
  4915. });
  4916. // Fast retransmit packet
  4917. recv!(s, time 1100, Ok(TcpRepr {
  4918. seq_number: LOCAL_SEQ + 1,
  4919. ack_number: Some(REMOTE_SEQ + 1),
  4920. payload: &b"xxxxxx"[..],
  4921. ..RECV_TEMPL
  4922. }));
  4923. recv!(s, time 1105, Ok(TcpRepr {
  4924. seq_number: LOCAL_SEQ + 1 + 6,
  4925. ack_number: Some(REMOTE_SEQ + 1),
  4926. payload: &b"yyyyyy"[..],
  4927. ..RECV_TEMPL
  4928. }));
  4929. recv!(s, time 1110, Ok(TcpRepr {
  4930. seq_number: LOCAL_SEQ + 1 + (6 * 2),
  4931. ack_number: Some(REMOTE_SEQ + 1),
  4932. payload: &b"wwwwww"[..],
  4933. ..RECV_TEMPL
  4934. }));
  4935. recv!(s, time 1115, Ok(TcpRepr {
  4936. seq_number: LOCAL_SEQ + 1 + (6 * 3),
  4937. ack_number: Some(REMOTE_SEQ + 1),
  4938. payload: &b"zzzzzz"[..],
  4939. ..RECV_TEMPL
  4940. }));
  4941. // After all was send out, enter *normal* retransmission,
  4942. // don't stay in fast retransmission.
  4943. assert!(match s.timer {
  4944. Timer::Retransmit { expires_at, .. } => expires_at > Instant::from_millis(1115),
  4945. _ => false,
  4946. });
  4947. // ACK all received segments
  4948. send!(s, time 1120, TcpRepr {
  4949. seq_number: REMOTE_SEQ + 1,
  4950. ack_number: Some(LOCAL_SEQ + 1 + (6 * 4)),
  4951. ..SEND_TEMPL
  4952. });
  4953. }
  4954. #[test]
  4955. fn test_fast_retransmit_duplicate_detection_with_data() {
  4956. let mut s = socket_established();
  4957. s.send_slice(b"abc").unwrap(); // This is lost
  4958. recv!(s, time 1000, Ok(TcpRepr {
  4959. seq_number: LOCAL_SEQ + 1,
  4960. ack_number: Some(REMOTE_SEQ + 1),
  4961. payload: &b"abc"[..],
  4962. ..RECV_TEMPL
  4963. }));
  4964. // Normal ACK of previously received segment
  4965. send!(
  4966. s,
  4967. TcpRepr {
  4968. seq_number: REMOTE_SEQ + 1,
  4969. ack_number: Some(LOCAL_SEQ + 1),
  4970. ..SEND_TEMPL
  4971. }
  4972. );
  4973. // First duplicate
  4974. send!(
  4975. s,
  4976. TcpRepr {
  4977. seq_number: REMOTE_SEQ + 1,
  4978. ack_number: Some(LOCAL_SEQ + 1),
  4979. ..SEND_TEMPL
  4980. }
  4981. );
  4982. // Second duplicate
  4983. send!(
  4984. s,
  4985. TcpRepr {
  4986. seq_number: REMOTE_SEQ + 1,
  4987. ack_number: Some(LOCAL_SEQ + 1),
  4988. ..SEND_TEMPL
  4989. }
  4990. );
  4991. assert_eq!(s.local_rx_dup_acks, 2, "duplicate ACK counter is not set");
  4992. // This packet has content, hence should not be detected
  4993. // as a duplicate ACK and should reset the duplicate ACK count
  4994. send!(
  4995. s,
  4996. TcpRepr {
  4997. seq_number: REMOTE_SEQ + 1,
  4998. ack_number: Some(LOCAL_SEQ + 1),
  4999. payload: &b"xxxxxx"[..],
  5000. ..SEND_TEMPL
  5001. }
  5002. );
  5003. recv!(
  5004. s,
  5005. [TcpRepr {
  5006. seq_number: LOCAL_SEQ + 1 + 3,
  5007. ack_number: Some(REMOTE_SEQ + 1 + 6),
  5008. window_len: 58,
  5009. ..RECV_TEMPL
  5010. }]
  5011. );
  5012. assert_eq!(
  5013. s.local_rx_dup_acks, 0,
  5014. "duplicate ACK counter is not reset when receiving data"
  5015. );
  5016. }
  5017. #[test]
  5018. fn test_fast_retransmit_duplicate_detection() {
  5019. let mut s = socket_established();
  5020. s.remote_mss = 6;
  5021. // Normal ACK of previously received segment
  5022. send!(s, time 0, TcpRepr {
  5023. seq_number: REMOTE_SEQ + 1,
  5024. ack_number: Some(LOCAL_SEQ + 1),
  5025. ..SEND_TEMPL
  5026. });
  5027. // First duplicate, should not be counted as there is nothing to resend
  5028. send!(s, time 0, TcpRepr {
  5029. seq_number: REMOTE_SEQ + 1,
  5030. ack_number: Some(LOCAL_SEQ + 1),
  5031. ..SEND_TEMPL
  5032. });
  5033. assert_eq!(
  5034. s.local_rx_dup_acks, 0,
  5035. "duplicate ACK counter is set but wound not transmit data"
  5036. );
  5037. // Send a long string of text divided into several packets
  5038. // because of small remote_mss
  5039. s.send_slice(b"xxxxxxyyyyyywwwwwwzzzzzz").unwrap();
  5040. // This packet is reordered in network
  5041. recv!(s, time 1000, Ok(TcpRepr {
  5042. seq_number: LOCAL_SEQ + 1,
  5043. ack_number: Some(REMOTE_SEQ + 1),
  5044. payload: &b"xxxxxx"[..],
  5045. ..RECV_TEMPL
  5046. }));
  5047. recv!(s, time 1005, Ok(TcpRepr {
  5048. seq_number: LOCAL_SEQ + 1 + 6,
  5049. ack_number: Some(REMOTE_SEQ + 1),
  5050. payload: &b"yyyyyy"[..],
  5051. ..RECV_TEMPL
  5052. }));
  5053. recv!(s, time 1010, Ok(TcpRepr {
  5054. seq_number: LOCAL_SEQ + 1 + (6 * 2),
  5055. ack_number: Some(REMOTE_SEQ + 1),
  5056. payload: &b"wwwwww"[..],
  5057. ..RECV_TEMPL
  5058. }));
  5059. recv!(s, time 1015, Ok(TcpRepr {
  5060. seq_number: LOCAL_SEQ + 1 + (6 * 3),
  5061. ack_number: Some(REMOTE_SEQ + 1),
  5062. payload: &b"zzzzzz"[..],
  5063. ..RECV_TEMPL
  5064. }));
  5065. // First duplicate ACK
  5066. send!(s, time 1050, TcpRepr {
  5067. seq_number: REMOTE_SEQ + 1,
  5068. ack_number: Some(LOCAL_SEQ + 1),
  5069. ..SEND_TEMPL
  5070. });
  5071. // Second duplicate ACK
  5072. send!(s, time 1055, TcpRepr {
  5073. seq_number: REMOTE_SEQ + 1,
  5074. ack_number: Some(LOCAL_SEQ + 1),
  5075. ..SEND_TEMPL
  5076. });
  5077. // Reordered packet arrives which should reset duplicate ACK count
  5078. send!(s, time 1060, TcpRepr {
  5079. seq_number: REMOTE_SEQ + 1,
  5080. ack_number: Some(LOCAL_SEQ + 1 + (6 * 3)),
  5081. ..SEND_TEMPL
  5082. });
  5083. assert_eq!(
  5084. s.local_rx_dup_acks, 0,
  5085. "duplicate ACK counter is not reset when receiving ACK which updates send window"
  5086. );
  5087. // ACK all received segments
  5088. send!(s, time 1120, TcpRepr {
  5089. seq_number: REMOTE_SEQ + 1,
  5090. ack_number: Some(LOCAL_SEQ + 1 + (6 * 4)),
  5091. ..SEND_TEMPL
  5092. });
  5093. }
  5094. #[test]
  5095. fn test_fast_retransmit_dup_acks_counter() {
  5096. let mut s = socket_established();
  5097. s.send_slice(b"abc").unwrap(); // This is lost
  5098. recv!(s, time 0, Ok(TcpRepr {
  5099. seq_number: LOCAL_SEQ + 1,
  5100. ack_number: Some(REMOTE_SEQ + 1),
  5101. payload: &b"abc"[..],
  5102. ..RECV_TEMPL
  5103. }));
  5104. send!(s, time 0, TcpRepr {
  5105. seq_number: REMOTE_SEQ + 1,
  5106. ack_number: Some(LOCAL_SEQ + 1),
  5107. ..SEND_TEMPL
  5108. });
  5109. // A lot of retransmits happen here
  5110. s.local_rx_dup_acks = u8::max_value() - 1;
  5111. // Send 3 more ACKs, which could overflow local_rx_dup_acks,
  5112. // but intended behaviour is that we saturate the bounds
  5113. // of local_rx_dup_acks
  5114. send!(s, time 0, TcpRepr {
  5115. seq_number: REMOTE_SEQ + 1,
  5116. ack_number: Some(LOCAL_SEQ + 1),
  5117. ..SEND_TEMPL
  5118. });
  5119. send!(s, time 0, TcpRepr {
  5120. seq_number: REMOTE_SEQ + 1,
  5121. ack_number: Some(LOCAL_SEQ + 1),
  5122. ..SEND_TEMPL
  5123. });
  5124. send!(s, time 0, TcpRepr {
  5125. seq_number: REMOTE_SEQ + 1,
  5126. ack_number: Some(LOCAL_SEQ + 1),
  5127. ..SEND_TEMPL
  5128. });
  5129. assert_eq!(
  5130. s.local_rx_dup_acks,
  5131. u8::max_value(),
  5132. "duplicate ACK count should not overflow but saturate"
  5133. );
  5134. }
  5135. #[test]
  5136. fn test_fast_retransmit_zero_window() {
  5137. let mut s = socket_established();
  5138. send!(s, time 1000, TcpRepr {
  5139. seq_number: REMOTE_SEQ + 1,
  5140. ack_number: Some(LOCAL_SEQ + 1),
  5141. ..SEND_TEMPL
  5142. });
  5143. s.send_slice(b"abc").unwrap();
  5144. recv!(s, time 0, Ok(TcpRepr {
  5145. seq_number: LOCAL_SEQ + 1,
  5146. ack_number: Some(REMOTE_SEQ + 1),
  5147. payload: &b"abc"[..],
  5148. ..RECV_TEMPL
  5149. }));
  5150. // 3 dup acks
  5151. send!(s, time 1050, TcpRepr {
  5152. seq_number: REMOTE_SEQ + 1,
  5153. ack_number: Some(LOCAL_SEQ + 1),
  5154. ..SEND_TEMPL
  5155. });
  5156. send!(s, time 1050, TcpRepr {
  5157. seq_number: REMOTE_SEQ + 1,
  5158. ack_number: Some(LOCAL_SEQ + 1),
  5159. ..SEND_TEMPL
  5160. });
  5161. send!(s, time 1050, TcpRepr {
  5162. seq_number: REMOTE_SEQ + 1,
  5163. ack_number: Some(LOCAL_SEQ + 1),
  5164. window_len: 0, // boom
  5165. ..SEND_TEMPL
  5166. });
  5167. // even though we're in "fast retransmit", we shouldn't
  5168. // force-send anything because the remote's window is full.
  5169. recv_nothing!(s);
  5170. }
  5171. // =========================================================================================//
  5172. // Tests for window management.
  5173. // =========================================================================================//
  5174. #[test]
  5175. fn test_maximum_segment_size() {
  5176. let mut s = socket_listen();
  5177. s.tx_buffer = SocketBuffer::new(vec![0; 32767]);
  5178. send!(
  5179. s,
  5180. TcpRepr {
  5181. control: TcpControl::Syn,
  5182. seq_number: REMOTE_SEQ,
  5183. ack_number: None,
  5184. max_seg_size: Some(1000),
  5185. ..SEND_TEMPL
  5186. }
  5187. );
  5188. recv!(
  5189. s,
  5190. [TcpRepr {
  5191. control: TcpControl::Syn,
  5192. seq_number: LOCAL_SEQ,
  5193. ack_number: Some(REMOTE_SEQ + 1),
  5194. max_seg_size: Some(BASE_MSS),
  5195. ..RECV_TEMPL
  5196. }]
  5197. );
  5198. send!(
  5199. s,
  5200. TcpRepr {
  5201. seq_number: REMOTE_SEQ + 1,
  5202. ack_number: Some(LOCAL_SEQ + 1),
  5203. window_len: 32767,
  5204. ..SEND_TEMPL
  5205. }
  5206. );
  5207. s.send_slice(&[0; 1200][..]).unwrap();
  5208. recv!(
  5209. s,
  5210. Ok(TcpRepr {
  5211. seq_number: LOCAL_SEQ + 1,
  5212. ack_number: Some(REMOTE_SEQ + 1),
  5213. payload: &[0; 1000][..],
  5214. ..RECV_TEMPL
  5215. })
  5216. );
  5217. }
  5218. #[test]
  5219. fn test_close_wait_no_window_update() {
  5220. let mut s = socket_established();
  5221. send!(
  5222. s,
  5223. TcpRepr {
  5224. control: TcpControl::Fin,
  5225. seq_number: REMOTE_SEQ + 1,
  5226. ack_number: Some(LOCAL_SEQ + 1),
  5227. payload: &[1, 2, 3, 4],
  5228. ..SEND_TEMPL
  5229. }
  5230. );
  5231. assert_eq!(s.state, State::CloseWait);
  5232. // we ack the FIN, with the reduced window size.
  5233. recv!(
  5234. s,
  5235. Ok(TcpRepr {
  5236. seq_number: LOCAL_SEQ + 1,
  5237. ack_number: Some(REMOTE_SEQ + 6),
  5238. window_len: 60,
  5239. ..RECV_TEMPL
  5240. })
  5241. );
  5242. let rx_buf = &mut [0; 32];
  5243. assert_eq!(s.recv_slice(rx_buf), Ok(4));
  5244. // check that we do NOT send a window update even if it has changed.
  5245. recv_nothing!(s);
  5246. }
  5247. #[test]
  5248. fn test_time_wait_no_window_update() {
  5249. let mut s = socket_fin_wait_2();
  5250. send!(
  5251. s,
  5252. TcpRepr {
  5253. control: TcpControl::Fin,
  5254. seq_number: REMOTE_SEQ + 1,
  5255. ack_number: Some(LOCAL_SEQ + 2),
  5256. payload: &[1, 2, 3, 4],
  5257. ..SEND_TEMPL
  5258. }
  5259. );
  5260. assert_eq!(s.state, State::TimeWait);
  5261. // we ack the FIN, with the reduced window size.
  5262. recv!(
  5263. s,
  5264. Ok(TcpRepr {
  5265. seq_number: LOCAL_SEQ + 2,
  5266. ack_number: Some(REMOTE_SEQ + 6),
  5267. window_len: 60,
  5268. ..RECV_TEMPL
  5269. })
  5270. );
  5271. let rx_buf = &mut [0; 32];
  5272. assert_eq!(s.recv_slice(rx_buf), Ok(4));
  5273. // check that we do NOT send a window update even if it has changed.
  5274. recv_nothing!(s);
  5275. }
  5276. // =========================================================================================//
  5277. // Tests for flow control.
  5278. // =========================================================================================//
  5279. #[test]
  5280. fn test_psh_transmit() {
  5281. let mut s = socket_established();
  5282. s.remote_mss = 6;
  5283. s.send_slice(b"abcdef").unwrap();
  5284. s.send_slice(b"123456").unwrap();
  5285. recv!(s, time 0, Ok(TcpRepr {
  5286. control: TcpControl::None,
  5287. seq_number: LOCAL_SEQ + 1,
  5288. ack_number: Some(REMOTE_SEQ + 1),
  5289. payload: &b"abcdef"[..],
  5290. ..RECV_TEMPL
  5291. }), exact);
  5292. recv!(s, time 0, Ok(TcpRepr {
  5293. control: TcpControl::Psh,
  5294. seq_number: LOCAL_SEQ + 1 + 6,
  5295. ack_number: Some(REMOTE_SEQ + 1),
  5296. payload: &b"123456"[..],
  5297. ..RECV_TEMPL
  5298. }), exact);
  5299. }
  5300. #[test]
  5301. fn test_psh_receive() {
  5302. let mut s = socket_established();
  5303. send!(
  5304. s,
  5305. TcpRepr {
  5306. control: TcpControl::Psh,
  5307. seq_number: REMOTE_SEQ + 1,
  5308. ack_number: Some(LOCAL_SEQ + 1),
  5309. payload: &b"abcdef"[..],
  5310. ..SEND_TEMPL
  5311. }
  5312. );
  5313. recv!(
  5314. s,
  5315. [TcpRepr {
  5316. seq_number: LOCAL_SEQ + 1,
  5317. ack_number: Some(REMOTE_SEQ + 1 + 6),
  5318. window_len: 58,
  5319. ..RECV_TEMPL
  5320. }]
  5321. );
  5322. }
  5323. #[test]
  5324. fn test_zero_window_ack() {
  5325. let mut s = socket_established();
  5326. s.rx_buffer = SocketBuffer::new(vec![0; 6]);
  5327. s.assembler = Assembler::new(s.rx_buffer.capacity());
  5328. send!(
  5329. s,
  5330. TcpRepr {
  5331. seq_number: REMOTE_SEQ + 1,
  5332. ack_number: Some(LOCAL_SEQ + 1),
  5333. payload: &b"abcdef"[..],
  5334. ..SEND_TEMPL
  5335. }
  5336. );
  5337. recv!(
  5338. s,
  5339. [TcpRepr {
  5340. seq_number: LOCAL_SEQ + 1,
  5341. ack_number: Some(REMOTE_SEQ + 1 + 6),
  5342. window_len: 0,
  5343. ..RECV_TEMPL
  5344. }]
  5345. );
  5346. send!(
  5347. s,
  5348. TcpRepr {
  5349. seq_number: REMOTE_SEQ + 1 + 6,
  5350. ack_number: Some(LOCAL_SEQ + 1),
  5351. payload: &b"123456"[..],
  5352. ..SEND_TEMPL
  5353. },
  5354. Some(TcpRepr {
  5355. seq_number: LOCAL_SEQ + 1,
  5356. ack_number: Some(REMOTE_SEQ + 1 + 6),
  5357. window_len: 0,
  5358. ..RECV_TEMPL
  5359. })
  5360. );
  5361. }
  5362. #[test]
  5363. fn test_zero_window_ack_on_window_growth() {
  5364. let mut s = socket_established();
  5365. s.rx_buffer = SocketBuffer::new(vec![0; 6]);
  5366. s.assembler = Assembler::new(s.rx_buffer.capacity());
  5367. send!(
  5368. s,
  5369. TcpRepr {
  5370. seq_number: REMOTE_SEQ + 1,
  5371. ack_number: Some(LOCAL_SEQ + 1),
  5372. payload: &b"abcdef"[..],
  5373. ..SEND_TEMPL
  5374. }
  5375. );
  5376. recv!(
  5377. s,
  5378. [TcpRepr {
  5379. seq_number: LOCAL_SEQ + 1,
  5380. ack_number: Some(REMOTE_SEQ + 1 + 6),
  5381. window_len: 0,
  5382. ..RECV_TEMPL
  5383. }]
  5384. );
  5385. recv_nothing!(s, time 0);
  5386. s.recv(|buffer| {
  5387. assert_eq!(&buffer[..3], b"abc");
  5388. (3, ())
  5389. })
  5390. .unwrap();
  5391. recv!(s, time 0, Ok(TcpRepr {
  5392. seq_number: LOCAL_SEQ + 1,
  5393. ack_number: Some(REMOTE_SEQ + 1 + 6),
  5394. window_len: 3,
  5395. ..RECV_TEMPL
  5396. }));
  5397. recv_nothing!(s, time 0);
  5398. s.recv(|buffer| {
  5399. assert_eq!(buffer, b"def");
  5400. (buffer.len(), ())
  5401. })
  5402. .unwrap();
  5403. recv!(s, time 0, Ok(TcpRepr {
  5404. seq_number: LOCAL_SEQ + 1,
  5405. ack_number: Some(REMOTE_SEQ + 1 + 6),
  5406. window_len: 6,
  5407. ..RECV_TEMPL
  5408. }));
  5409. }
  5410. #[test]
  5411. fn test_fill_peer_window() {
  5412. let mut s = socket_established();
  5413. s.remote_mss = 6;
  5414. s.send_slice(b"abcdef123456!@#$%^").unwrap();
  5415. recv!(
  5416. s,
  5417. [
  5418. TcpRepr {
  5419. seq_number: LOCAL_SEQ + 1,
  5420. ack_number: Some(REMOTE_SEQ + 1),
  5421. payload: &b"abcdef"[..],
  5422. ..RECV_TEMPL
  5423. },
  5424. TcpRepr {
  5425. seq_number: LOCAL_SEQ + 1 + 6,
  5426. ack_number: Some(REMOTE_SEQ + 1),
  5427. payload: &b"123456"[..],
  5428. ..RECV_TEMPL
  5429. },
  5430. TcpRepr {
  5431. seq_number: LOCAL_SEQ + 1 + 6 + 6,
  5432. ack_number: Some(REMOTE_SEQ + 1),
  5433. payload: &b"!@#$%^"[..],
  5434. ..RECV_TEMPL
  5435. }
  5436. ]
  5437. );
  5438. }
  5439. #[test]
  5440. fn test_announce_window_after_read() {
  5441. let mut s = socket_established();
  5442. s.rx_buffer = SocketBuffer::new(vec![0; 6]);
  5443. s.assembler = Assembler::new(s.rx_buffer.capacity());
  5444. send!(
  5445. s,
  5446. TcpRepr {
  5447. seq_number: REMOTE_SEQ + 1,
  5448. ack_number: Some(LOCAL_SEQ + 1),
  5449. payload: &b"abc"[..],
  5450. ..SEND_TEMPL
  5451. }
  5452. );
  5453. recv!(
  5454. s,
  5455. [TcpRepr {
  5456. seq_number: LOCAL_SEQ + 1,
  5457. ack_number: Some(REMOTE_SEQ + 1 + 3),
  5458. window_len: 3,
  5459. ..RECV_TEMPL
  5460. }]
  5461. );
  5462. // Test that `dispatch` updates `remote_last_win`
  5463. assert_eq!(s.remote_last_win, s.rx_buffer.window() as u16);
  5464. s.recv(|buffer| (buffer.len(), ())).unwrap();
  5465. assert!(s.window_to_update());
  5466. recv!(
  5467. s,
  5468. [TcpRepr {
  5469. seq_number: LOCAL_SEQ + 1,
  5470. ack_number: Some(REMOTE_SEQ + 1 + 3),
  5471. window_len: 6,
  5472. ..RECV_TEMPL
  5473. }]
  5474. );
  5475. assert_eq!(s.remote_last_win, s.rx_buffer.window() as u16);
  5476. // Provoke immediate ACK to test that `process` updates `remote_last_win`
  5477. send!(
  5478. s,
  5479. TcpRepr {
  5480. seq_number: REMOTE_SEQ + 1 + 6,
  5481. ack_number: Some(LOCAL_SEQ + 1),
  5482. payload: &b"def"[..],
  5483. ..SEND_TEMPL
  5484. },
  5485. Some(TcpRepr {
  5486. seq_number: LOCAL_SEQ + 1,
  5487. ack_number: Some(REMOTE_SEQ + 1 + 3),
  5488. window_len: 6,
  5489. ..RECV_TEMPL
  5490. })
  5491. );
  5492. send!(
  5493. s,
  5494. TcpRepr {
  5495. seq_number: REMOTE_SEQ + 1 + 3,
  5496. ack_number: Some(LOCAL_SEQ + 1),
  5497. payload: &b"abc"[..],
  5498. ..SEND_TEMPL
  5499. },
  5500. Some(TcpRepr {
  5501. seq_number: LOCAL_SEQ + 1,
  5502. ack_number: Some(REMOTE_SEQ + 1 + 9),
  5503. window_len: 0,
  5504. ..RECV_TEMPL
  5505. })
  5506. );
  5507. assert_eq!(s.remote_last_win, s.rx_buffer.window() as u16);
  5508. s.recv(|buffer| (buffer.len(), ())).unwrap();
  5509. assert!(s.window_to_update());
  5510. }
  5511. // =========================================================================================//
  5512. // Tests for timeouts.
  5513. // =========================================================================================//
  5514. #[test]
  5515. fn test_listen_timeout() {
  5516. let mut s = socket_listen();
  5517. s.set_timeout(Some(Duration::from_millis(100)));
  5518. assert_eq!(s.socket.poll_at(&mut s.cx), PollAt::Ingress);
  5519. }
  5520. #[test]
  5521. fn test_connect_timeout() {
  5522. let mut s = socket();
  5523. s.local_seq_no = LOCAL_SEQ;
  5524. s.socket
  5525. .connect(&mut s.cx, REMOTE_END, LOCAL_END.port)
  5526. .unwrap();
  5527. s.set_timeout(Some(Duration::from_millis(100)));
  5528. recv!(s, time 150, Ok(TcpRepr {
  5529. control: TcpControl::Syn,
  5530. seq_number: LOCAL_SEQ,
  5531. ack_number: None,
  5532. max_seg_size: Some(BASE_MSS),
  5533. window_scale: Some(0),
  5534. sack_permitted: true,
  5535. ..RECV_TEMPL
  5536. }));
  5537. assert_eq!(s.state, State::SynSent);
  5538. assert_eq!(
  5539. s.socket.poll_at(&mut s.cx),
  5540. PollAt::Time(Instant::from_millis(250))
  5541. );
  5542. recv!(s, time 250, Ok(TcpRepr {
  5543. control: TcpControl::Rst,
  5544. seq_number: LOCAL_SEQ + 1,
  5545. ack_number: Some(TcpSeqNumber(0)),
  5546. window_scale: None,
  5547. ..RECV_TEMPL
  5548. }));
  5549. assert_eq!(s.state, State::Closed);
  5550. }
  5551. #[test]
  5552. fn test_established_timeout() {
  5553. let mut s = socket_established();
  5554. s.set_timeout(Some(Duration::from_millis(1000)));
  5555. recv_nothing!(s, time 250);
  5556. assert_eq!(
  5557. s.socket.poll_at(&mut s.cx),
  5558. PollAt::Time(Instant::from_millis(1250))
  5559. );
  5560. s.send_slice(b"abcdef").unwrap();
  5561. assert_eq!(s.socket.poll_at(&mut s.cx), PollAt::Now);
  5562. recv!(s, time 255, Ok(TcpRepr {
  5563. seq_number: LOCAL_SEQ + 1,
  5564. ack_number: Some(REMOTE_SEQ + 1),
  5565. payload: &b"abcdef"[..],
  5566. ..RECV_TEMPL
  5567. }));
  5568. assert_eq!(
  5569. s.socket.poll_at(&mut s.cx),
  5570. PollAt::Time(Instant::from_millis(955))
  5571. );
  5572. recv!(s, time 955, Ok(TcpRepr {
  5573. seq_number: LOCAL_SEQ + 1,
  5574. ack_number: Some(REMOTE_SEQ + 1),
  5575. payload: &b"abcdef"[..],
  5576. ..RECV_TEMPL
  5577. }));
  5578. assert_eq!(
  5579. s.socket.poll_at(&mut s.cx),
  5580. PollAt::Time(Instant::from_millis(1255))
  5581. );
  5582. recv!(s, time 1255, Ok(TcpRepr {
  5583. control: TcpControl::Rst,
  5584. seq_number: LOCAL_SEQ + 1 + 6,
  5585. ack_number: Some(REMOTE_SEQ + 1),
  5586. ..RECV_TEMPL
  5587. }));
  5588. assert_eq!(s.state, State::Closed);
  5589. }
  5590. #[test]
  5591. fn test_established_keep_alive_timeout() {
  5592. let mut s = socket_established();
  5593. s.set_keep_alive(Some(Duration::from_millis(50)));
  5594. s.set_timeout(Some(Duration::from_millis(100)));
  5595. recv!(s, time 100, Ok(TcpRepr {
  5596. seq_number: LOCAL_SEQ,
  5597. ack_number: Some(REMOTE_SEQ + 1),
  5598. payload: &[0],
  5599. ..RECV_TEMPL
  5600. }));
  5601. recv_nothing!(s, time 100);
  5602. assert_eq!(
  5603. s.socket.poll_at(&mut s.cx),
  5604. PollAt::Time(Instant::from_millis(150))
  5605. );
  5606. send!(s, time 105, TcpRepr {
  5607. seq_number: REMOTE_SEQ + 1,
  5608. ack_number: Some(LOCAL_SEQ + 1),
  5609. ..SEND_TEMPL
  5610. });
  5611. assert_eq!(
  5612. s.socket.poll_at(&mut s.cx),
  5613. PollAt::Time(Instant::from_millis(155))
  5614. );
  5615. recv!(s, time 155, Ok(TcpRepr {
  5616. seq_number: LOCAL_SEQ,
  5617. ack_number: Some(REMOTE_SEQ + 1),
  5618. payload: &[0],
  5619. ..RECV_TEMPL
  5620. }));
  5621. recv_nothing!(s, time 155);
  5622. assert_eq!(
  5623. s.socket.poll_at(&mut s.cx),
  5624. PollAt::Time(Instant::from_millis(205))
  5625. );
  5626. recv_nothing!(s, time 200);
  5627. recv!(s, time 205, Ok(TcpRepr {
  5628. control: TcpControl::Rst,
  5629. seq_number: LOCAL_SEQ + 1,
  5630. ack_number: Some(REMOTE_SEQ + 1),
  5631. ..RECV_TEMPL
  5632. }));
  5633. recv_nothing!(s, time 205);
  5634. assert_eq!(s.state, State::Closed);
  5635. }
  5636. #[test]
  5637. fn test_fin_wait_1_timeout() {
  5638. let mut s = socket_fin_wait_1();
  5639. s.set_timeout(Some(Duration::from_millis(1000)));
  5640. recv!(s, time 100, Ok(TcpRepr {
  5641. control: TcpControl::Fin,
  5642. seq_number: LOCAL_SEQ + 1,
  5643. ack_number: Some(REMOTE_SEQ + 1),
  5644. ..RECV_TEMPL
  5645. }));
  5646. recv!(s, time 1100, Ok(TcpRepr {
  5647. control: TcpControl::Rst,
  5648. seq_number: LOCAL_SEQ + 1 + 1,
  5649. ack_number: Some(REMOTE_SEQ + 1),
  5650. ..RECV_TEMPL
  5651. }));
  5652. assert_eq!(s.state, State::Closed);
  5653. }
  5654. #[test]
  5655. fn test_last_ack_timeout() {
  5656. let mut s = socket_last_ack();
  5657. s.set_timeout(Some(Duration::from_millis(1000)));
  5658. recv!(s, time 100, Ok(TcpRepr {
  5659. control: TcpControl::Fin,
  5660. seq_number: LOCAL_SEQ + 1,
  5661. ack_number: Some(REMOTE_SEQ + 1 + 1),
  5662. ..RECV_TEMPL
  5663. }));
  5664. recv!(s, time 1100, Ok(TcpRepr {
  5665. control: TcpControl::Rst,
  5666. seq_number: LOCAL_SEQ + 1 + 1,
  5667. ack_number: Some(REMOTE_SEQ + 1 + 1),
  5668. ..RECV_TEMPL
  5669. }));
  5670. assert_eq!(s.state, State::Closed);
  5671. }
  5672. #[test]
  5673. fn test_closed_timeout() {
  5674. let mut s = socket_established();
  5675. s.set_timeout(Some(Duration::from_millis(200)));
  5676. s.remote_last_ts = Some(Instant::from_millis(100));
  5677. s.abort();
  5678. assert_eq!(s.socket.poll_at(&mut s.cx), PollAt::Now);
  5679. recv!(s, time 100, Ok(TcpRepr {
  5680. control: TcpControl::Rst,
  5681. seq_number: LOCAL_SEQ + 1,
  5682. ack_number: Some(REMOTE_SEQ + 1),
  5683. ..RECV_TEMPL
  5684. }));
  5685. assert_eq!(s.socket.poll_at(&mut s.cx), PollAt::Ingress);
  5686. }
  5687. // =========================================================================================//
  5688. // Tests for keep-alive.
  5689. // =========================================================================================//
  5690. #[test]
  5691. fn test_responds_to_keep_alive() {
  5692. let mut s = socket_established();
  5693. send!(
  5694. s,
  5695. TcpRepr {
  5696. seq_number: REMOTE_SEQ,
  5697. ack_number: Some(LOCAL_SEQ + 1),
  5698. ..SEND_TEMPL
  5699. },
  5700. Some(TcpRepr {
  5701. seq_number: LOCAL_SEQ + 1,
  5702. ack_number: Some(REMOTE_SEQ + 1),
  5703. ..RECV_TEMPL
  5704. })
  5705. );
  5706. }
  5707. #[test]
  5708. fn test_sends_keep_alive() {
  5709. let mut s = socket_established();
  5710. s.set_keep_alive(Some(Duration::from_millis(100)));
  5711. // drain the forced keep-alive packet
  5712. assert_eq!(s.socket.poll_at(&mut s.cx), PollAt::Now);
  5713. recv!(s, time 0, Ok(TcpRepr {
  5714. seq_number: LOCAL_SEQ,
  5715. ack_number: Some(REMOTE_SEQ + 1),
  5716. payload: &[0],
  5717. ..RECV_TEMPL
  5718. }));
  5719. assert_eq!(
  5720. s.socket.poll_at(&mut s.cx),
  5721. PollAt::Time(Instant::from_millis(100))
  5722. );
  5723. recv_nothing!(s, time 95);
  5724. recv!(s, time 100, Ok(TcpRepr {
  5725. seq_number: LOCAL_SEQ,
  5726. ack_number: Some(REMOTE_SEQ + 1),
  5727. payload: &[0],
  5728. ..RECV_TEMPL
  5729. }));
  5730. assert_eq!(
  5731. s.socket.poll_at(&mut s.cx),
  5732. PollAt::Time(Instant::from_millis(200))
  5733. );
  5734. recv_nothing!(s, time 195);
  5735. recv!(s, time 200, Ok(TcpRepr {
  5736. seq_number: LOCAL_SEQ,
  5737. ack_number: Some(REMOTE_SEQ + 1),
  5738. payload: &[0],
  5739. ..RECV_TEMPL
  5740. }));
  5741. send!(s, time 250, TcpRepr {
  5742. seq_number: REMOTE_SEQ + 1,
  5743. ack_number: Some(LOCAL_SEQ + 1),
  5744. ..SEND_TEMPL
  5745. });
  5746. assert_eq!(
  5747. s.socket.poll_at(&mut s.cx),
  5748. PollAt::Time(Instant::from_millis(350))
  5749. );
  5750. recv_nothing!(s, time 345);
  5751. recv!(s, time 350, Ok(TcpRepr {
  5752. seq_number: LOCAL_SEQ,
  5753. ack_number: Some(REMOTE_SEQ + 1),
  5754. payload: &b"\x00"[..],
  5755. ..RECV_TEMPL
  5756. }));
  5757. }
  5758. // =========================================================================================//
  5759. // Tests for time-to-live configuration.
  5760. // =========================================================================================//
  5761. #[test]
  5762. fn test_set_hop_limit() {
  5763. let mut s = socket_syn_received();
  5764. s.set_hop_limit(Some(0x2a));
  5765. assert_eq!(
  5766. s.socket.dispatch(&mut s.cx, |_, (ip_repr, _)| {
  5767. assert_eq!(ip_repr.hop_limit(), 0x2a);
  5768. Ok::<_, Error>(())
  5769. }),
  5770. Ok(())
  5771. );
  5772. // assert that user-configurable settings are kept,
  5773. // see https://github.com/smoltcp-rs/smoltcp/issues/601.
  5774. s.reset();
  5775. assert_eq!(s.hop_limit(), Some(0x2a));
  5776. }
  5777. #[test]
  5778. #[should_panic(expected = "the time-to-live value of a packet must not be zero")]
  5779. fn test_set_hop_limit_zero() {
  5780. let mut s = socket_syn_received();
  5781. s.set_hop_limit(Some(0));
  5782. }
  5783. // =========================================================================================//
  5784. // Tests for reassembly.
  5785. // =========================================================================================//
  5786. #[test]
  5787. fn test_out_of_order() {
  5788. let mut s = socket_established();
  5789. send!(
  5790. s,
  5791. TcpRepr {
  5792. seq_number: REMOTE_SEQ + 1 + 3,
  5793. ack_number: Some(LOCAL_SEQ + 1),
  5794. payload: &b"def"[..],
  5795. ..SEND_TEMPL
  5796. },
  5797. Some(TcpRepr {
  5798. seq_number: LOCAL_SEQ + 1,
  5799. ack_number: Some(REMOTE_SEQ + 1),
  5800. ..RECV_TEMPL
  5801. })
  5802. );
  5803. s.recv(|buffer| {
  5804. assert_eq!(buffer, b"");
  5805. (buffer.len(), ())
  5806. })
  5807. .unwrap();
  5808. send!(
  5809. s,
  5810. TcpRepr {
  5811. seq_number: REMOTE_SEQ + 1,
  5812. ack_number: Some(LOCAL_SEQ + 1),
  5813. payload: &b"abcdef"[..],
  5814. ..SEND_TEMPL
  5815. },
  5816. Some(TcpRepr {
  5817. seq_number: LOCAL_SEQ + 1,
  5818. ack_number: Some(REMOTE_SEQ + 1 + 6),
  5819. window_len: 58,
  5820. ..RECV_TEMPL
  5821. })
  5822. );
  5823. s.recv(|buffer| {
  5824. assert_eq!(buffer, b"abcdef");
  5825. (buffer.len(), ())
  5826. })
  5827. .unwrap();
  5828. }
  5829. #[test]
  5830. fn test_buffer_wraparound_rx() {
  5831. let mut s = socket_established();
  5832. s.rx_buffer = SocketBuffer::new(vec![0; 6]);
  5833. s.assembler = Assembler::new(s.rx_buffer.capacity());
  5834. send!(
  5835. s,
  5836. TcpRepr {
  5837. seq_number: REMOTE_SEQ + 1,
  5838. ack_number: Some(LOCAL_SEQ + 1),
  5839. payload: &b"abc"[..],
  5840. ..SEND_TEMPL
  5841. }
  5842. );
  5843. s.recv(|buffer| {
  5844. assert_eq!(buffer, b"abc");
  5845. (buffer.len(), ())
  5846. })
  5847. .unwrap();
  5848. send!(
  5849. s,
  5850. TcpRepr {
  5851. seq_number: REMOTE_SEQ + 1 + 3,
  5852. ack_number: Some(LOCAL_SEQ + 1),
  5853. payload: &b"defghi"[..],
  5854. ..SEND_TEMPL
  5855. }
  5856. );
  5857. let mut data = [0; 6];
  5858. assert_eq!(s.recv_slice(&mut data[..]), Ok(6));
  5859. assert_eq!(data, &b"defghi"[..]);
  5860. }
  5861. #[test]
  5862. fn test_buffer_wraparound_tx() {
  5863. let mut s = socket_established();
  5864. s.set_nagle_enabled(false);
  5865. s.tx_buffer = SocketBuffer::new(vec![b'.'; 9]);
  5866. assert_eq!(s.send_slice(b"xxxyyy"), Ok(6));
  5867. assert_eq!(s.tx_buffer.dequeue_many(3), &b"xxx"[..]);
  5868. assert_eq!(s.tx_buffer.len(), 3);
  5869. // "abcdef" not contiguous in tx buffer
  5870. assert_eq!(s.send_slice(b"abcdef"), Ok(6));
  5871. recv!(
  5872. s,
  5873. Ok(TcpRepr {
  5874. seq_number: LOCAL_SEQ + 1,
  5875. ack_number: Some(REMOTE_SEQ + 1),
  5876. payload: &b"yyyabc"[..],
  5877. ..RECV_TEMPL
  5878. })
  5879. );
  5880. recv!(
  5881. s,
  5882. Ok(TcpRepr {
  5883. seq_number: LOCAL_SEQ + 1 + 6,
  5884. ack_number: Some(REMOTE_SEQ + 1),
  5885. payload: &b"def"[..],
  5886. ..RECV_TEMPL
  5887. })
  5888. );
  5889. }
  5890. // =========================================================================================//
  5891. // Tests for graceful vs ungraceful rx close
  5892. // =========================================================================================//
  5893. #[test]
  5894. fn test_rx_close_fin() {
  5895. let mut s = socket_established();
  5896. send!(
  5897. s,
  5898. TcpRepr {
  5899. control: TcpControl::Fin,
  5900. seq_number: REMOTE_SEQ + 1,
  5901. ack_number: Some(LOCAL_SEQ + 1),
  5902. payload: &b"abc"[..],
  5903. ..SEND_TEMPL
  5904. }
  5905. );
  5906. s.recv(|data| {
  5907. assert_eq!(data, b"abc");
  5908. (3, ())
  5909. })
  5910. .unwrap();
  5911. assert_eq!(s.recv(|_| (0, ())), Err(RecvError::Finished));
  5912. }
  5913. #[test]
  5914. fn test_rx_close_fin_in_fin_wait_1() {
  5915. let mut s = socket_fin_wait_1();
  5916. send!(
  5917. s,
  5918. TcpRepr {
  5919. control: TcpControl::Fin,
  5920. seq_number: REMOTE_SEQ + 1,
  5921. ack_number: Some(LOCAL_SEQ + 1),
  5922. payload: &b"abc"[..],
  5923. ..SEND_TEMPL
  5924. }
  5925. );
  5926. assert_eq!(s.state, State::Closing);
  5927. s.recv(|data| {
  5928. assert_eq!(data, b"abc");
  5929. (3, ())
  5930. })
  5931. .unwrap();
  5932. assert_eq!(s.recv(|_| (0, ())), Err(RecvError::Finished));
  5933. }
  5934. #[test]
  5935. fn test_rx_close_fin_in_fin_wait_2() {
  5936. let mut s = socket_fin_wait_2();
  5937. send!(
  5938. s,
  5939. TcpRepr {
  5940. control: TcpControl::Fin,
  5941. seq_number: REMOTE_SEQ + 1,
  5942. ack_number: Some(LOCAL_SEQ + 1 + 1),
  5943. payload: &b"abc"[..],
  5944. ..SEND_TEMPL
  5945. }
  5946. );
  5947. assert_eq!(s.state, State::TimeWait);
  5948. s.recv(|data| {
  5949. assert_eq!(data, b"abc");
  5950. (3, ())
  5951. })
  5952. .unwrap();
  5953. assert_eq!(s.recv(|_| (0, ())), Err(RecvError::Finished));
  5954. }
  5955. #[test]
  5956. fn test_rx_close_fin_with_hole() {
  5957. let mut s = socket_established();
  5958. send!(
  5959. s,
  5960. TcpRepr {
  5961. seq_number: REMOTE_SEQ + 1,
  5962. ack_number: Some(LOCAL_SEQ + 1),
  5963. payload: &b"abc"[..],
  5964. ..SEND_TEMPL
  5965. }
  5966. );
  5967. send!(
  5968. s,
  5969. TcpRepr {
  5970. control: TcpControl::Fin,
  5971. seq_number: REMOTE_SEQ + 1 + 6,
  5972. ack_number: Some(LOCAL_SEQ + 1),
  5973. payload: &b"ghi"[..],
  5974. ..SEND_TEMPL
  5975. },
  5976. Some(TcpRepr {
  5977. seq_number: LOCAL_SEQ + 1,
  5978. ack_number: Some(REMOTE_SEQ + 1 + 3),
  5979. window_len: 61,
  5980. ..RECV_TEMPL
  5981. })
  5982. );
  5983. s.recv(|data| {
  5984. assert_eq!(data, b"abc");
  5985. (3, ())
  5986. })
  5987. .unwrap();
  5988. s.recv(|data| {
  5989. assert_eq!(data, b"");
  5990. (0, ())
  5991. })
  5992. .unwrap();
  5993. send!(
  5994. s,
  5995. TcpRepr {
  5996. control: TcpControl::Rst,
  5997. seq_number: REMOTE_SEQ + 1 + 9,
  5998. ack_number: Some(LOCAL_SEQ + 1),
  5999. ..SEND_TEMPL
  6000. }
  6001. );
  6002. // Error must be `Illegal` even if we've received a FIN,
  6003. // because we are missing data.
  6004. assert_eq!(s.recv(|_| (0, ())), Err(RecvError::InvalidState));
  6005. }
  6006. #[test]
  6007. fn test_rx_close_rst() {
  6008. let mut s = socket_established();
  6009. send!(
  6010. s,
  6011. TcpRepr {
  6012. seq_number: REMOTE_SEQ + 1,
  6013. ack_number: Some(LOCAL_SEQ + 1),
  6014. payload: &b"abc"[..],
  6015. ..SEND_TEMPL
  6016. }
  6017. );
  6018. send!(
  6019. s,
  6020. TcpRepr {
  6021. control: TcpControl::Rst,
  6022. seq_number: REMOTE_SEQ + 1 + 3,
  6023. ack_number: Some(LOCAL_SEQ + 1),
  6024. ..SEND_TEMPL
  6025. }
  6026. );
  6027. s.recv(|data| {
  6028. assert_eq!(data, b"abc");
  6029. (3, ())
  6030. })
  6031. .unwrap();
  6032. assert_eq!(s.recv(|_| (0, ())), Err(RecvError::InvalidState));
  6033. }
  6034. #[test]
  6035. fn test_rx_close_rst_with_hole() {
  6036. let mut s = socket_established();
  6037. send!(
  6038. s,
  6039. TcpRepr {
  6040. seq_number: REMOTE_SEQ + 1,
  6041. ack_number: Some(LOCAL_SEQ + 1),
  6042. payload: &b"abc"[..],
  6043. ..SEND_TEMPL
  6044. }
  6045. );
  6046. send!(
  6047. s,
  6048. TcpRepr {
  6049. seq_number: REMOTE_SEQ + 1 + 6,
  6050. ack_number: Some(LOCAL_SEQ + 1),
  6051. payload: &b"ghi"[..],
  6052. ..SEND_TEMPL
  6053. },
  6054. Some(TcpRepr {
  6055. seq_number: LOCAL_SEQ + 1,
  6056. ack_number: Some(REMOTE_SEQ + 1 + 3),
  6057. window_len: 61,
  6058. ..RECV_TEMPL
  6059. })
  6060. );
  6061. send!(
  6062. s,
  6063. TcpRepr {
  6064. control: TcpControl::Rst,
  6065. seq_number: REMOTE_SEQ + 1 + 9,
  6066. ack_number: Some(LOCAL_SEQ + 1),
  6067. ..SEND_TEMPL
  6068. }
  6069. );
  6070. s.recv(|data| {
  6071. assert_eq!(data, b"abc");
  6072. (3, ())
  6073. })
  6074. .unwrap();
  6075. assert_eq!(s.recv(|_| (0, ())), Err(RecvError::InvalidState));
  6076. }
  6077. // =========================================================================================//
  6078. // Tests for delayed ACK
  6079. // =========================================================================================//
  6080. #[test]
  6081. fn test_delayed_ack() {
  6082. let mut s = socket_established();
  6083. s.set_ack_delay(Some(ACK_DELAY_DEFAULT));
  6084. send!(
  6085. s,
  6086. TcpRepr {
  6087. seq_number: REMOTE_SEQ + 1,
  6088. ack_number: Some(LOCAL_SEQ + 1),
  6089. payload: &b"abc"[..],
  6090. ..SEND_TEMPL
  6091. }
  6092. );
  6093. // No ACK is immediately sent.
  6094. recv_nothing!(s);
  6095. // After 10ms, it is sent.
  6096. recv!(s, time 11, Ok(TcpRepr {
  6097. seq_number: LOCAL_SEQ + 1,
  6098. ack_number: Some(REMOTE_SEQ + 1 + 3),
  6099. window_len: 61,
  6100. ..RECV_TEMPL
  6101. }));
  6102. }
  6103. #[test]
  6104. fn test_delayed_ack_win() {
  6105. let mut s = socket_established();
  6106. s.set_ack_delay(Some(ACK_DELAY_DEFAULT));
  6107. send!(
  6108. s,
  6109. TcpRepr {
  6110. seq_number: REMOTE_SEQ + 1,
  6111. ack_number: Some(LOCAL_SEQ + 1),
  6112. payload: &b"abc"[..],
  6113. ..SEND_TEMPL
  6114. }
  6115. );
  6116. // Reading the data off the buffer should cause a window update.
  6117. s.recv(|data| {
  6118. assert_eq!(data, b"abc");
  6119. (3, ())
  6120. })
  6121. .unwrap();
  6122. // However, no ACK or window update is immediately sent.
  6123. recv_nothing!(s);
  6124. // After 10ms, it is sent.
  6125. recv!(s, time 11, Ok(TcpRepr {
  6126. seq_number: LOCAL_SEQ + 1,
  6127. ack_number: Some(REMOTE_SEQ + 1 + 3),
  6128. ..RECV_TEMPL
  6129. }));
  6130. }
  6131. #[test]
  6132. fn test_delayed_ack_reply() {
  6133. let mut s = socket_established();
  6134. s.set_ack_delay(Some(ACK_DELAY_DEFAULT));
  6135. send!(
  6136. s,
  6137. TcpRepr {
  6138. seq_number: REMOTE_SEQ + 1,
  6139. ack_number: Some(LOCAL_SEQ + 1),
  6140. payload: &b"abc"[..],
  6141. ..SEND_TEMPL
  6142. }
  6143. );
  6144. s.recv(|data| {
  6145. assert_eq!(data, b"abc");
  6146. (3, ())
  6147. })
  6148. .unwrap();
  6149. s.send_slice(&b"xyz"[..]).unwrap();
  6150. // Writing data to the socket causes ACK to not be delayed,
  6151. // because it is immediately sent with the data.
  6152. recv!(
  6153. s,
  6154. Ok(TcpRepr {
  6155. seq_number: LOCAL_SEQ + 1,
  6156. ack_number: Some(REMOTE_SEQ + 1 + 3),
  6157. payload: &b"xyz"[..],
  6158. ..RECV_TEMPL
  6159. })
  6160. );
  6161. }
  6162. #[test]
  6163. fn test_delayed_ack_every_second_packet() {
  6164. let mut s = socket_established();
  6165. s.set_ack_delay(Some(ACK_DELAY_DEFAULT));
  6166. send!(
  6167. s,
  6168. TcpRepr {
  6169. seq_number: REMOTE_SEQ + 1,
  6170. ack_number: Some(LOCAL_SEQ + 1),
  6171. payload: &b"abc"[..],
  6172. ..SEND_TEMPL
  6173. }
  6174. );
  6175. // No ACK is immediately sent.
  6176. recv_nothing!(s);
  6177. send!(
  6178. s,
  6179. TcpRepr {
  6180. seq_number: REMOTE_SEQ + 1 + 3,
  6181. ack_number: Some(LOCAL_SEQ + 1),
  6182. payload: &b"def"[..],
  6183. ..SEND_TEMPL
  6184. }
  6185. );
  6186. // Every 2nd packet, ACK is sent without delay.
  6187. recv!(
  6188. s,
  6189. Ok(TcpRepr {
  6190. seq_number: LOCAL_SEQ + 1,
  6191. ack_number: Some(REMOTE_SEQ + 1 + 6),
  6192. window_len: 58,
  6193. ..RECV_TEMPL
  6194. })
  6195. );
  6196. }
  6197. #[test]
  6198. fn test_delayed_ack_three_packets() {
  6199. let mut s = socket_established();
  6200. s.set_ack_delay(Some(ACK_DELAY_DEFAULT));
  6201. send!(
  6202. s,
  6203. TcpRepr {
  6204. seq_number: REMOTE_SEQ + 1,
  6205. ack_number: Some(LOCAL_SEQ + 1),
  6206. payload: &b"abc"[..],
  6207. ..SEND_TEMPL
  6208. }
  6209. );
  6210. // No ACK is immediately sent.
  6211. recv_nothing!(s);
  6212. send!(
  6213. s,
  6214. TcpRepr {
  6215. seq_number: REMOTE_SEQ + 1 + 3,
  6216. ack_number: Some(LOCAL_SEQ + 1),
  6217. payload: &b"def"[..],
  6218. ..SEND_TEMPL
  6219. }
  6220. );
  6221. send!(
  6222. s,
  6223. TcpRepr {
  6224. seq_number: REMOTE_SEQ + 1 + 6,
  6225. ack_number: Some(LOCAL_SEQ + 1),
  6226. payload: &b"ghi"[..],
  6227. ..SEND_TEMPL
  6228. }
  6229. );
  6230. // Every 2nd (or more) packet, ACK is sent without delay.
  6231. recv!(
  6232. s,
  6233. Ok(TcpRepr {
  6234. seq_number: LOCAL_SEQ + 1,
  6235. ack_number: Some(REMOTE_SEQ + 1 + 9),
  6236. window_len: 55,
  6237. ..RECV_TEMPL
  6238. })
  6239. );
  6240. }
  6241. // =========================================================================================//
  6242. // Tests for Nagle's Algorithm
  6243. // =========================================================================================//
  6244. #[test]
  6245. fn test_nagle() {
  6246. let mut s = socket_established();
  6247. s.remote_mss = 6;
  6248. s.send_slice(b"abcdef").unwrap();
  6249. recv!(
  6250. s,
  6251. [TcpRepr {
  6252. seq_number: LOCAL_SEQ + 1,
  6253. ack_number: Some(REMOTE_SEQ + 1),
  6254. payload: &b"abcdef"[..],
  6255. ..RECV_TEMPL
  6256. }]
  6257. );
  6258. // If there's data in flight, full segments get sent.
  6259. s.send_slice(b"foobar").unwrap();
  6260. recv!(
  6261. s,
  6262. [TcpRepr {
  6263. seq_number: LOCAL_SEQ + 1 + 6,
  6264. ack_number: Some(REMOTE_SEQ + 1),
  6265. payload: &b"foobar"[..],
  6266. ..RECV_TEMPL
  6267. }]
  6268. );
  6269. s.send_slice(b"aaabbbccc").unwrap();
  6270. // If there's data in flight, not-full segments don't get sent.
  6271. recv!(
  6272. s,
  6273. [TcpRepr {
  6274. seq_number: LOCAL_SEQ + 1 + 6 + 6,
  6275. ack_number: Some(REMOTE_SEQ + 1),
  6276. payload: &b"aaabbb"[..],
  6277. ..RECV_TEMPL
  6278. }]
  6279. );
  6280. // Data gets ACKd, so there's no longer data in flight
  6281. send!(
  6282. s,
  6283. TcpRepr {
  6284. seq_number: REMOTE_SEQ + 1,
  6285. ack_number: Some(LOCAL_SEQ + 1 + 6 + 6 + 6),
  6286. ..SEND_TEMPL
  6287. }
  6288. );
  6289. // Now non-full segment gets sent.
  6290. recv!(
  6291. s,
  6292. [TcpRepr {
  6293. seq_number: LOCAL_SEQ + 1 + 6 + 6 + 6,
  6294. ack_number: Some(REMOTE_SEQ + 1),
  6295. payload: &b"ccc"[..],
  6296. ..RECV_TEMPL
  6297. }]
  6298. );
  6299. }
  6300. // =========================================================================================//
  6301. // Tests for packet filtering.
  6302. // =========================================================================================//
  6303. #[test]
  6304. fn test_doesnt_accept_wrong_port() {
  6305. let mut s = socket_established();
  6306. s.rx_buffer = SocketBuffer::new(vec![0; 6]);
  6307. s.assembler = Assembler::new(s.rx_buffer.capacity());
  6308. let tcp_repr = TcpRepr {
  6309. seq_number: REMOTE_SEQ + 1,
  6310. ack_number: Some(LOCAL_SEQ + 1),
  6311. dst_port: LOCAL_PORT + 1,
  6312. ..SEND_TEMPL
  6313. };
  6314. assert!(!s.socket.accepts(&mut s.cx, &SEND_IP_TEMPL, &tcp_repr));
  6315. let tcp_repr = TcpRepr {
  6316. seq_number: REMOTE_SEQ + 1,
  6317. ack_number: Some(LOCAL_SEQ + 1),
  6318. src_port: REMOTE_PORT + 1,
  6319. ..SEND_TEMPL
  6320. };
  6321. assert!(!s.socket.accepts(&mut s.cx, &SEND_IP_TEMPL, &tcp_repr));
  6322. }
  6323. #[test]
  6324. fn test_doesnt_accept_wrong_ip() {
  6325. let mut s = socket_established();
  6326. let tcp_repr = TcpRepr {
  6327. seq_number: REMOTE_SEQ + 1,
  6328. ack_number: Some(LOCAL_SEQ + 1),
  6329. payload: &b"abcdef"[..],
  6330. ..SEND_TEMPL
  6331. };
  6332. let ip_repr = IpReprIpvX(IpvXRepr {
  6333. src_addr: REMOTE_ADDR,
  6334. dst_addr: LOCAL_ADDR,
  6335. next_header: IpProtocol::Tcp,
  6336. payload_len: tcp_repr.buffer_len(),
  6337. hop_limit: 64,
  6338. });
  6339. assert!(s.socket.accepts(&mut s.cx, &ip_repr, &tcp_repr));
  6340. let ip_repr_wrong_src = IpReprIpvX(IpvXRepr {
  6341. src_addr: OTHER_ADDR,
  6342. dst_addr: LOCAL_ADDR,
  6343. next_header: IpProtocol::Tcp,
  6344. payload_len: tcp_repr.buffer_len(),
  6345. hop_limit: 64,
  6346. });
  6347. assert!(!s.socket.accepts(&mut s.cx, &ip_repr_wrong_src, &tcp_repr));
  6348. let ip_repr_wrong_dst = IpReprIpvX(IpvXRepr {
  6349. src_addr: REMOTE_ADDR,
  6350. dst_addr: OTHER_ADDR,
  6351. next_header: IpProtocol::Tcp,
  6352. payload_len: tcp_repr.buffer_len(),
  6353. hop_limit: 64,
  6354. });
  6355. assert!(!s.socket.accepts(&mut s.cx, &ip_repr_wrong_dst, &tcp_repr));
  6356. }
  6357. // =========================================================================================//
  6358. // Timer tests
  6359. // =========================================================================================//
  6360. #[test]
  6361. fn test_timer_retransmit() {
  6362. const RTO: Duration = Duration::from_millis(100);
  6363. let mut r = Timer::new();
  6364. assert_eq!(r.should_retransmit(Instant::from_secs(1)), None);
  6365. r.set_for_retransmit(Instant::from_millis(1000), RTO);
  6366. assert_eq!(r.should_retransmit(Instant::from_millis(1000)), None);
  6367. assert_eq!(r.should_retransmit(Instant::from_millis(1050)), None);
  6368. assert_eq!(
  6369. r.should_retransmit(Instant::from_millis(1101)),
  6370. Some(Duration::from_millis(101))
  6371. );
  6372. r.set_for_retransmit(Instant::from_millis(1101), RTO);
  6373. assert_eq!(r.should_retransmit(Instant::from_millis(1101)), None);
  6374. assert_eq!(r.should_retransmit(Instant::from_millis(1150)), None);
  6375. assert_eq!(r.should_retransmit(Instant::from_millis(1200)), None);
  6376. assert_eq!(
  6377. r.should_retransmit(Instant::from_millis(1301)),
  6378. Some(Duration::from_millis(300))
  6379. );
  6380. r.set_for_idle(Instant::from_millis(1301), None);
  6381. assert_eq!(r.should_retransmit(Instant::from_millis(1350)), None);
  6382. }
  6383. #[test]
  6384. fn test_rtt_estimator() {
  6385. let mut r = RttEstimator::default();
  6386. let rtos = &[
  6387. 751, 766, 755, 731, 697, 656, 613, 567, 523, 484, 445, 411, 378, 350, 322, 299, 280,
  6388. 261, 243, 229, 215, 206, 197, 188,
  6389. ];
  6390. for &rto in rtos {
  6391. r.sample(100);
  6392. assert_eq!(r.retransmission_timeout(), Duration::from_millis(rto));
  6393. }
  6394. }
  6395. }