tcp_input.c 176 KB

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  1. /*
  2. * INET An implementation of the TCP/IP protocol suite for the LINUX
  3. * operating system. INET is implemented using the BSD Socket
  4. * interface as the means of communication with the user level.
  5. *
  6. * Implementation of the Transmission Control Protocol(TCP).
  7. *
  8. * Authors: Ross Biro
  9. * Fred N. van Kempen, <waltje@uWalt.NL.Mugnet.ORG>
  10. * Mark Evans, <evansmp@uhura.aston.ac.uk>
  11. * Corey Minyard <wf-rch!minyard@relay.EU.net>
  12. * Florian La Roche, <flla@stud.uni-sb.de>
  13. * Charles Hedrick, <hedrick@klinzhai.rutgers.edu>
  14. * Linus Torvalds, <torvalds@cs.helsinki.fi>
  15. * Alan Cox, <gw4pts@gw4pts.ampr.org>
  16. * Matthew Dillon, <dillon@apollo.west.oic.com>
  17. * Arnt Gulbrandsen, <agulbra@nvg.unit.no>
  18. * Jorge Cwik, <jorge@laser.satlink.net>
  19. */
  20. /*
  21. * Changes:
  22. * Pedro Roque : Fast Retransmit/Recovery.
  23. * Two receive queues.
  24. * Retransmit queue handled by TCP.
  25. * Better retransmit timer handling.
  26. * New congestion avoidance.
  27. * Header prediction.
  28. * Variable renaming.
  29. *
  30. * Eric : Fast Retransmit.
  31. * Randy Scott : MSS option defines.
  32. * Eric Schenk : Fixes to slow start algorithm.
  33. * Eric Schenk : Yet another double ACK bug.
  34. * Eric Schenk : Delayed ACK bug fixes.
  35. * Eric Schenk : Floyd style fast retrans war avoidance.
  36. * David S. Miller : Don't allow zero congestion window.
  37. * Eric Schenk : Fix retransmitter so that it sends
  38. * next packet on ack of previous packet.
  39. * Andi Kleen : Moved open_request checking here
  40. * and process RSTs for open_requests.
  41. * Andi Kleen : Better prune_queue, and other fixes.
  42. * Andrey Savochkin: Fix RTT measurements in the presence of
  43. * timestamps.
  44. * Andrey Savochkin: Check sequence numbers correctly when
  45. * removing SACKs due to in sequence incoming
  46. * data segments.
  47. * Andi Kleen: Make sure we never ack data there is not
  48. * enough room for. Also make this condition
  49. * a fatal error if it might still happen.
  50. * Andi Kleen: Add tcp_measure_rcv_mss to make
  51. * connections with MSS<min(MTU,ann. MSS)
  52. * work without delayed acks.
  53. * Andi Kleen: Process packets with PSH set in the
  54. * fast path.
  55. * J Hadi Salim: ECN support
  56. * Andrei Gurtov,
  57. * Pasi Sarolahti,
  58. * Panu Kuhlberg: Experimental audit of TCP (re)transmission
  59. * engine. Lots of bugs are found.
  60. * Pasi Sarolahti: F-RTO for dealing with spurious RTOs
  61. */
  62. #define pr_fmt(fmt) "TCP: " fmt
  63. #include <linux/mm.h>
  64. #include <linux/slab.h>
  65. #include <linux/module.h>
  66. #include <linux/sysctl.h>
  67. #include <linux/kernel.h>
  68. #include <linux/prefetch.h>
  69. #include <net/dst.h>
  70. #include <net/tcp.h>
  71. #include <net/inet_common.h>
  72. #include <linux/ipsec.h>
  73. #include <asm/unaligned.h>
  74. #include <linux/errqueue.h>
  75. int sysctl_tcp_fack __read_mostly;
  76. int sysctl_tcp_max_reordering __read_mostly = 300;
  77. int sysctl_tcp_dsack __read_mostly = 1;
  78. int sysctl_tcp_app_win __read_mostly = 31;
  79. int sysctl_tcp_adv_win_scale __read_mostly = 1;
  80. EXPORT_SYMBOL(sysctl_tcp_adv_win_scale);
  81. /* rfc5961 challenge ack rate limiting */
  82. int sysctl_tcp_challenge_ack_limit = 1000;
  83. int sysctl_tcp_stdurg __read_mostly;
  84. int sysctl_tcp_rfc1337 __read_mostly;
  85. int sysctl_tcp_max_orphans __read_mostly = NR_FILE;
  86. int sysctl_tcp_frto __read_mostly = 2;
  87. int sysctl_tcp_min_rtt_wlen __read_mostly = 300;
  88. int sysctl_tcp_moderate_rcvbuf __read_mostly = 1;
  89. int sysctl_tcp_early_retrans __read_mostly = 3;
  90. int sysctl_tcp_invalid_ratelimit __read_mostly = HZ/2;
  91. #define FLAG_DATA 0x01 /* Incoming frame contained data. */
  92. #define FLAG_WIN_UPDATE 0x02 /* Incoming ACK was a window update. */
  93. #define FLAG_DATA_ACKED 0x04 /* This ACK acknowledged new data. */
  94. #define FLAG_RETRANS_DATA_ACKED 0x08 /* "" "" some of which was retransmitted. */
  95. #define FLAG_SYN_ACKED 0x10 /* This ACK acknowledged SYN. */
  96. #define FLAG_DATA_SACKED 0x20 /* New SACK. */
  97. #define FLAG_ECE 0x40 /* ECE in this ACK */
  98. #define FLAG_LOST_RETRANS 0x80 /* This ACK marks some retransmission lost */
  99. #define FLAG_ORIG_SACK_ACKED 0x200 /* Never retransmitted data are (s)acked */
  100. #define FLAG_SND_UNA_ADVANCED 0x400 /* Snd_una was changed (!= FLAG_DATA_ACKED) */
  101. #define FLAG_DSACKING_ACK 0x800 /* SACK blocks contained D-SACK info */
  102. #define FLAG_SACK_RENEGING 0x2000 /* snd_una advanced to a sacked seq */
  103. #define FLAG_UPDATE_TS_RECENT 0x4000 /* tcp_replace_ts_recent() */
  104. #define FLAG_NO_CHALLENGE_ACK 0x8000 /* do not call tcp_send_challenge_ack() */
  105. #define FLAG_ACKED (FLAG_DATA_ACKED|FLAG_SYN_ACKED)
  106. #define FLAG_NOT_DUP (FLAG_DATA|FLAG_WIN_UPDATE|FLAG_ACKED)
  107. #define FLAG_CA_ALERT (FLAG_DATA_SACKED|FLAG_ECE)
  108. #define FLAG_FORWARD_PROGRESS (FLAG_ACKED|FLAG_DATA_SACKED)
  109. #define TCP_REMNANT (TCP_FLAG_FIN|TCP_FLAG_URG|TCP_FLAG_SYN|TCP_FLAG_PSH)
  110. #define TCP_HP_BITS (~(TCP_RESERVED_BITS|TCP_FLAG_PSH))
  111. #define REXMIT_NONE 0 /* no loss recovery to do */
  112. #define REXMIT_LOST 1 /* retransmit packets marked lost */
  113. #define REXMIT_NEW 2 /* FRTO-style transmit of unsent/new packets */
  114. static void tcp_gro_dev_warn(struct sock *sk, const struct sk_buff *skb,
  115. unsigned int len)
  116. {
  117. static bool __once __read_mostly;
  118. if (!__once) {
  119. struct net_device *dev;
  120. __once = true;
  121. rcu_read_lock();
  122. dev = dev_get_by_index_rcu(sock_net(sk), skb->skb_iif);
  123. if (!dev || len >= dev->mtu)
  124. pr_warn("%s: Driver has suspect GRO implementation, TCP performance may be compromised.\n",
  125. dev ? dev->name : "Unknown driver");
  126. rcu_read_unlock();
  127. }
  128. }
  129. /* Adapt the MSS value used to make delayed ack decision to the
  130. * real world.
  131. */
  132. static void tcp_measure_rcv_mss(struct sock *sk, const struct sk_buff *skb)
  133. {
  134. struct inet_connection_sock *icsk = inet_csk(sk);
  135. const unsigned int lss = icsk->icsk_ack.last_seg_size;
  136. unsigned int len;
  137. icsk->icsk_ack.last_seg_size = 0;
  138. /* skb->len may jitter because of SACKs, even if peer
  139. * sends good full-sized frames.
  140. */
  141. len = skb_shinfo(skb)->gso_size ? : skb->len;
  142. if (len >= icsk->icsk_ack.rcv_mss) {
  143. icsk->icsk_ack.rcv_mss = min_t(unsigned int, len,
  144. tcp_sk(sk)->advmss);
  145. /* Account for possibly-removed options */
  146. if (unlikely(len > icsk->icsk_ack.rcv_mss +
  147. MAX_TCP_OPTION_SPACE))
  148. tcp_gro_dev_warn(sk, skb, len);
  149. } else {
  150. /* Otherwise, we make more careful check taking into account,
  151. * that SACKs block is variable.
  152. *
  153. * "len" is invariant segment length, including TCP header.
  154. */
  155. len += skb->data - skb_transport_header(skb);
  156. if (len >= TCP_MSS_DEFAULT + sizeof(struct tcphdr) ||
  157. /* If PSH is not set, packet should be
  158. * full sized, provided peer TCP is not badly broken.
  159. * This observation (if it is correct 8)) allows
  160. * to handle super-low mtu links fairly.
  161. */
  162. (len >= TCP_MIN_MSS + sizeof(struct tcphdr) &&
  163. !(tcp_flag_word(tcp_hdr(skb)) & TCP_REMNANT))) {
  164. /* Subtract also invariant (if peer is RFC compliant),
  165. * tcp header plus fixed timestamp option length.
  166. * Resulting "len" is MSS free of SACK jitter.
  167. */
  168. len -= tcp_sk(sk)->tcp_header_len;
  169. icsk->icsk_ack.last_seg_size = len;
  170. if (len == lss) {
  171. icsk->icsk_ack.rcv_mss = len;
  172. return;
  173. }
  174. }
  175. if (icsk->icsk_ack.pending & ICSK_ACK_PUSHED)
  176. icsk->icsk_ack.pending |= ICSK_ACK_PUSHED2;
  177. icsk->icsk_ack.pending |= ICSK_ACK_PUSHED;
  178. }
  179. }
  180. static void tcp_incr_quickack(struct sock *sk)
  181. {
  182. struct inet_connection_sock *icsk = inet_csk(sk);
  183. unsigned int quickacks = tcp_sk(sk)->rcv_wnd / (2 * icsk->icsk_ack.rcv_mss);
  184. if (quickacks == 0)
  185. quickacks = 2;
  186. if (quickacks > icsk->icsk_ack.quick)
  187. icsk->icsk_ack.quick = min(quickacks, TCP_MAX_QUICKACKS);
  188. }
  189. static void tcp_enter_quickack_mode(struct sock *sk)
  190. {
  191. struct inet_connection_sock *icsk = inet_csk(sk);
  192. tcp_incr_quickack(sk);
  193. icsk->icsk_ack.pingpong = 0;
  194. icsk->icsk_ack.ato = TCP_ATO_MIN;
  195. }
  196. /* Send ACKs quickly, if "quick" count is not exhausted
  197. * and the session is not interactive.
  198. */
  199. static bool tcp_in_quickack_mode(struct sock *sk)
  200. {
  201. const struct inet_connection_sock *icsk = inet_csk(sk);
  202. const struct dst_entry *dst = __sk_dst_get(sk);
  203. return (dst && dst_metric(dst, RTAX_QUICKACK)) ||
  204. (icsk->icsk_ack.quick && !icsk->icsk_ack.pingpong);
  205. }
  206. static void tcp_ecn_queue_cwr(struct tcp_sock *tp)
  207. {
  208. if (tp->ecn_flags & TCP_ECN_OK)
  209. tp->ecn_flags |= TCP_ECN_QUEUE_CWR;
  210. }
  211. static void tcp_ecn_accept_cwr(struct tcp_sock *tp, const struct sk_buff *skb)
  212. {
  213. if (tcp_hdr(skb)->cwr)
  214. tp->ecn_flags &= ~TCP_ECN_DEMAND_CWR;
  215. }
  216. static void tcp_ecn_withdraw_cwr(struct tcp_sock *tp)
  217. {
  218. tp->ecn_flags &= ~TCP_ECN_DEMAND_CWR;
  219. }
  220. static void __tcp_ecn_check_ce(struct tcp_sock *tp, const struct sk_buff *skb)
  221. {
  222. switch (TCP_SKB_CB(skb)->ip_dsfield & INET_ECN_MASK) {
  223. case INET_ECN_NOT_ECT:
  224. /* Funny extension: if ECT is not set on a segment,
  225. * and we already seen ECT on a previous segment,
  226. * it is probably a retransmit.
  227. */
  228. if (tp->ecn_flags & TCP_ECN_SEEN)
  229. tcp_enter_quickack_mode((struct sock *)tp);
  230. break;
  231. case INET_ECN_CE:
  232. if (tcp_ca_needs_ecn((struct sock *)tp))
  233. tcp_ca_event((struct sock *)tp, CA_EVENT_ECN_IS_CE);
  234. if (!(tp->ecn_flags & TCP_ECN_DEMAND_CWR)) {
  235. /* Better not delay acks, sender can have a very low cwnd */
  236. tcp_enter_quickack_mode((struct sock *)tp);
  237. tp->ecn_flags |= TCP_ECN_DEMAND_CWR;
  238. }
  239. tp->ecn_flags |= TCP_ECN_SEEN;
  240. break;
  241. default:
  242. if (tcp_ca_needs_ecn((struct sock *)tp))
  243. tcp_ca_event((struct sock *)tp, CA_EVENT_ECN_NO_CE);
  244. tp->ecn_flags |= TCP_ECN_SEEN;
  245. break;
  246. }
  247. }
  248. static void tcp_ecn_check_ce(struct tcp_sock *tp, const struct sk_buff *skb)
  249. {
  250. if (tp->ecn_flags & TCP_ECN_OK)
  251. __tcp_ecn_check_ce(tp, skb);
  252. }
  253. static void tcp_ecn_rcv_synack(struct tcp_sock *tp, const struct tcphdr *th)
  254. {
  255. if ((tp->ecn_flags & TCP_ECN_OK) && (!th->ece || th->cwr))
  256. tp->ecn_flags &= ~TCP_ECN_OK;
  257. }
  258. static void tcp_ecn_rcv_syn(struct tcp_sock *tp, const struct tcphdr *th)
  259. {
  260. if ((tp->ecn_flags & TCP_ECN_OK) && (!th->ece || !th->cwr))
  261. tp->ecn_flags &= ~TCP_ECN_OK;
  262. }
  263. static bool tcp_ecn_rcv_ecn_echo(const struct tcp_sock *tp, const struct tcphdr *th)
  264. {
  265. if (th->ece && !th->syn && (tp->ecn_flags & TCP_ECN_OK))
  266. return true;
  267. return false;
  268. }
  269. /* Buffer size and advertised window tuning.
  270. *
  271. * 1. Tuning sk->sk_sndbuf, when connection enters established state.
  272. */
  273. static void tcp_sndbuf_expand(struct sock *sk)
  274. {
  275. const struct tcp_sock *tp = tcp_sk(sk);
  276. const struct tcp_congestion_ops *ca_ops = inet_csk(sk)->icsk_ca_ops;
  277. int sndmem, per_mss;
  278. u32 nr_segs;
  279. /* Worst case is non GSO/TSO : each frame consumes one skb
  280. * and skb->head is kmalloced using power of two area of memory
  281. */
  282. per_mss = max_t(u32, tp->rx_opt.mss_clamp, tp->mss_cache) +
  283. MAX_TCP_HEADER +
  284. SKB_DATA_ALIGN(sizeof(struct skb_shared_info));
  285. per_mss = roundup_pow_of_two(per_mss) +
  286. SKB_DATA_ALIGN(sizeof(struct sk_buff));
  287. nr_segs = max_t(u32, TCP_INIT_CWND, tp->snd_cwnd);
  288. nr_segs = max_t(u32, nr_segs, tp->reordering + 1);
  289. /* Fast Recovery (RFC 5681 3.2) :
  290. * Cubic needs 1.7 factor, rounded to 2 to include
  291. * extra cushion (application might react slowly to POLLOUT)
  292. */
  293. sndmem = ca_ops->sndbuf_expand ? ca_ops->sndbuf_expand(sk) : 2;
  294. sndmem *= nr_segs * per_mss;
  295. if (sk->sk_sndbuf < sndmem)
  296. sk->sk_sndbuf = min(sndmem, sysctl_tcp_wmem[2]);
  297. }
  298. /* 2. Tuning advertised window (window_clamp, rcv_ssthresh)
  299. *
  300. * All tcp_full_space() is split to two parts: "network" buffer, allocated
  301. * forward and advertised in receiver window (tp->rcv_wnd) and
  302. * "application buffer", required to isolate scheduling/application
  303. * latencies from network.
  304. * window_clamp is maximal advertised window. It can be less than
  305. * tcp_full_space(), in this case tcp_full_space() - window_clamp
  306. * is reserved for "application" buffer. The less window_clamp is
  307. * the smoother our behaviour from viewpoint of network, but the lower
  308. * throughput and the higher sensitivity of the connection to losses. 8)
  309. *
  310. * rcv_ssthresh is more strict window_clamp used at "slow start"
  311. * phase to predict further behaviour of this connection.
  312. * It is used for two goals:
  313. * - to enforce header prediction at sender, even when application
  314. * requires some significant "application buffer". It is check #1.
  315. * - to prevent pruning of receive queue because of misprediction
  316. * of receiver window. Check #2.
  317. *
  318. * The scheme does not work when sender sends good segments opening
  319. * window and then starts to feed us spaghetti. But it should work
  320. * in common situations. Otherwise, we have to rely on queue collapsing.
  321. */
  322. /* Slow part of check#2. */
  323. static int __tcp_grow_window(const struct sock *sk, const struct sk_buff *skb)
  324. {
  325. struct tcp_sock *tp = tcp_sk(sk);
  326. /* Optimize this! */
  327. int truesize = tcp_win_from_space(skb->truesize) >> 1;
  328. int window = tcp_win_from_space(sysctl_tcp_rmem[2]) >> 1;
  329. while (tp->rcv_ssthresh <= window) {
  330. if (truesize <= skb->len)
  331. return 2 * inet_csk(sk)->icsk_ack.rcv_mss;
  332. truesize >>= 1;
  333. window >>= 1;
  334. }
  335. return 0;
  336. }
  337. static void tcp_grow_window(struct sock *sk, const struct sk_buff *skb)
  338. {
  339. struct tcp_sock *tp = tcp_sk(sk);
  340. /* Check #1 */
  341. if (tp->rcv_ssthresh < tp->window_clamp &&
  342. (int)tp->rcv_ssthresh < tcp_space(sk) &&
  343. !tcp_under_memory_pressure(sk)) {
  344. int incr;
  345. /* Check #2. Increase window, if skb with such overhead
  346. * will fit to rcvbuf in future.
  347. */
  348. if (tcp_win_from_space(skb->truesize) <= skb->len)
  349. incr = 2 * tp->advmss;
  350. else
  351. incr = __tcp_grow_window(sk, skb);
  352. if (incr) {
  353. incr = max_t(int, incr, 2 * skb->len);
  354. tp->rcv_ssthresh = min(tp->rcv_ssthresh + incr,
  355. tp->window_clamp);
  356. inet_csk(sk)->icsk_ack.quick |= 1;
  357. }
  358. }
  359. }
  360. /* 3. Tuning rcvbuf, when connection enters established state. */
  361. static void tcp_fixup_rcvbuf(struct sock *sk)
  362. {
  363. u32 mss = tcp_sk(sk)->advmss;
  364. int rcvmem;
  365. rcvmem = 2 * SKB_TRUESIZE(mss + MAX_TCP_HEADER) *
  366. tcp_default_init_rwnd(mss);
  367. /* Dynamic Right Sizing (DRS) has 2 to 3 RTT latency
  368. * Allow enough cushion so that sender is not limited by our window
  369. */
  370. if (sysctl_tcp_moderate_rcvbuf)
  371. rcvmem <<= 2;
  372. if (sk->sk_rcvbuf < rcvmem)
  373. sk->sk_rcvbuf = min(rcvmem, sysctl_tcp_rmem[2]);
  374. }
  375. /* 4. Try to fixup all. It is made immediately after connection enters
  376. * established state.
  377. */
  378. void tcp_init_buffer_space(struct sock *sk)
  379. {
  380. struct tcp_sock *tp = tcp_sk(sk);
  381. int maxwin;
  382. if (!(sk->sk_userlocks & SOCK_RCVBUF_LOCK))
  383. tcp_fixup_rcvbuf(sk);
  384. if (!(sk->sk_userlocks & SOCK_SNDBUF_LOCK))
  385. tcp_sndbuf_expand(sk);
  386. tp->rcvq_space.space = tp->rcv_wnd;
  387. tcp_mstamp_refresh(tp);
  388. tp->rcvq_space.time = tp->tcp_mstamp;
  389. tp->rcvq_space.seq = tp->copied_seq;
  390. maxwin = tcp_full_space(sk);
  391. if (tp->window_clamp >= maxwin) {
  392. tp->window_clamp = maxwin;
  393. if (sysctl_tcp_app_win && maxwin > 4 * tp->advmss)
  394. tp->window_clamp = max(maxwin -
  395. (maxwin >> sysctl_tcp_app_win),
  396. 4 * tp->advmss);
  397. }
  398. /* Force reservation of one segment. */
  399. if (sysctl_tcp_app_win &&
  400. tp->window_clamp > 2 * tp->advmss &&
  401. tp->window_clamp + tp->advmss > maxwin)
  402. tp->window_clamp = max(2 * tp->advmss, maxwin - tp->advmss);
  403. tp->rcv_ssthresh = min(tp->rcv_ssthresh, tp->window_clamp);
  404. tp->snd_cwnd_stamp = tcp_jiffies32;
  405. }
  406. /* 5. Recalculate window clamp after socket hit its memory bounds. */
  407. static void tcp_clamp_window(struct sock *sk)
  408. {
  409. struct tcp_sock *tp = tcp_sk(sk);
  410. struct inet_connection_sock *icsk = inet_csk(sk);
  411. icsk->icsk_ack.quick = 0;
  412. if (sk->sk_rcvbuf < sysctl_tcp_rmem[2] &&
  413. !(sk->sk_userlocks & SOCK_RCVBUF_LOCK) &&
  414. !tcp_under_memory_pressure(sk) &&
  415. sk_memory_allocated(sk) < sk_prot_mem_limits(sk, 0)) {
  416. sk->sk_rcvbuf = min(atomic_read(&sk->sk_rmem_alloc),
  417. sysctl_tcp_rmem[2]);
  418. }
  419. if (atomic_read(&sk->sk_rmem_alloc) > sk->sk_rcvbuf)
  420. tp->rcv_ssthresh = min(tp->window_clamp, 2U * tp->advmss);
  421. }
  422. /* Initialize RCV_MSS value.
  423. * RCV_MSS is an our guess about MSS used by the peer.
  424. * We haven't any direct information about the MSS.
  425. * It's better to underestimate the RCV_MSS rather than overestimate.
  426. * Overestimations make us ACKing less frequently than needed.
  427. * Underestimations are more easy to detect and fix by tcp_measure_rcv_mss().
  428. */
  429. void tcp_initialize_rcv_mss(struct sock *sk)
  430. {
  431. const struct tcp_sock *tp = tcp_sk(sk);
  432. unsigned int hint = min_t(unsigned int, tp->advmss, tp->mss_cache);
  433. hint = min(hint, tp->rcv_wnd / 2);
  434. hint = min(hint, TCP_MSS_DEFAULT);
  435. hint = max(hint, TCP_MIN_MSS);
  436. inet_csk(sk)->icsk_ack.rcv_mss = hint;
  437. }
  438. EXPORT_SYMBOL(tcp_initialize_rcv_mss);
  439. /* Receiver "autotuning" code.
  440. *
  441. * The algorithm for RTT estimation w/o timestamps is based on
  442. * Dynamic Right-Sizing (DRS) by Wu Feng and Mike Fisk of LANL.
  443. * <http://public.lanl.gov/radiant/pubs.html#DRS>
  444. *
  445. * More detail on this code can be found at
  446. * <http://staff.psc.edu/jheffner/>,
  447. * though this reference is out of date. A new paper
  448. * is pending.
  449. */
  450. static void tcp_rcv_rtt_update(struct tcp_sock *tp, u32 sample, int win_dep)
  451. {
  452. u32 new_sample = tp->rcv_rtt_est.rtt_us;
  453. long m = sample;
  454. if (m == 0)
  455. m = 1;
  456. if (new_sample != 0) {
  457. /* If we sample in larger samples in the non-timestamp
  458. * case, we could grossly overestimate the RTT especially
  459. * with chatty applications or bulk transfer apps which
  460. * are stalled on filesystem I/O.
  461. *
  462. * Also, since we are only going for a minimum in the
  463. * non-timestamp case, we do not smooth things out
  464. * else with timestamps disabled convergence takes too
  465. * long.
  466. */
  467. if (!win_dep) {
  468. m -= (new_sample >> 3);
  469. new_sample += m;
  470. } else {
  471. m <<= 3;
  472. if (m < new_sample)
  473. new_sample = m;
  474. }
  475. } else {
  476. /* No previous measure. */
  477. new_sample = m << 3;
  478. }
  479. tp->rcv_rtt_est.rtt_us = new_sample;
  480. }
  481. static inline void tcp_rcv_rtt_measure(struct tcp_sock *tp)
  482. {
  483. u32 delta_us;
  484. if (tp->rcv_rtt_est.time == 0)
  485. goto new_measure;
  486. if (before(tp->rcv_nxt, tp->rcv_rtt_est.seq))
  487. return;
  488. delta_us = tcp_stamp_us_delta(tp->tcp_mstamp, tp->rcv_rtt_est.time);
  489. tcp_rcv_rtt_update(tp, delta_us, 1);
  490. new_measure:
  491. tp->rcv_rtt_est.seq = tp->rcv_nxt + tp->rcv_wnd;
  492. tp->rcv_rtt_est.time = tp->tcp_mstamp;
  493. }
  494. static inline void tcp_rcv_rtt_measure_ts(struct sock *sk,
  495. const struct sk_buff *skb)
  496. {
  497. struct tcp_sock *tp = tcp_sk(sk);
  498. if (tp->rx_opt.rcv_tsecr &&
  499. (TCP_SKB_CB(skb)->end_seq -
  500. TCP_SKB_CB(skb)->seq >= inet_csk(sk)->icsk_ack.rcv_mss)) {
  501. u32 delta = tcp_time_stamp(tp) - tp->rx_opt.rcv_tsecr;
  502. u32 delta_us = delta * (USEC_PER_SEC / TCP_TS_HZ);
  503. tcp_rcv_rtt_update(tp, delta_us, 0);
  504. }
  505. }
  506. /*
  507. * This function should be called every time data is copied to user space.
  508. * It calculates the appropriate TCP receive buffer space.
  509. */
  510. void tcp_rcv_space_adjust(struct sock *sk)
  511. {
  512. struct tcp_sock *tp = tcp_sk(sk);
  513. int time;
  514. int copied;
  515. time = tcp_stamp_us_delta(tp->tcp_mstamp, tp->rcvq_space.time);
  516. if (time < (tp->rcv_rtt_est.rtt_us >> 3) || tp->rcv_rtt_est.rtt_us == 0)
  517. return;
  518. /* Number of bytes copied to user in last RTT */
  519. copied = tp->copied_seq - tp->rcvq_space.seq;
  520. if (copied <= tp->rcvq_space.space)
  521. goto new_measure;
  522. /* A bit of theory :
  523. * copied = bytes received in previous RTT, our base window
  524. * To cope with packet losses, we need a 2x factor
  525. * To cope with slow start, and sender growing its cwin by 100 %
  526. * every RTT, we need a 4x factor, because the ACK we are sending
  527. * now is for the next RTT, not the current one :
  528. * <prev RTT . ><current RTT .. ><next RTT .... >
  529. */
  530. if (sysctl_tcp_moderate_rcvbuf &&
  531. !(sk->sk_userlocks & SOCK_RCVBUF_LOCK)) {
  532. int rcvwin, rcvmem, rcvbuf;
  533. /* minimal window to cope with packet losses, assuming
  534. * steady state. Add some cushion because of small variations.
  535. */
  536. rcvwin = (copied << 1) + 16 * tp->advmss;
  537. /* If rate increased by 25%,
  538. * assume slow start, rcvwin = 3 * copied
  539. * If rate increased by 50%,
  540. * assume sender can use 2x growth, rcvwin = 4 * copied
  541. */
  542. if (copied >=
  543. tp->rcvq_space.space + (tp->rcvq_space.space >> 2)) {
  544. if (copied >=
  545. tp->rcvq_space.space + (tp->rcvq_space.space >> 1))
  546. rcvwin <<= 1;
  547. else
  548. rcvwin += (rcvwin >> 1);
  549. }
  550. rcvmem = SKB_TRUESIZE(tp->advmss + MAX_TCP_HEADER);
  551. while (tcp_win_from_space(rcvmem) < tp->advmss)
  552. rcvmem += 128;
  553. rcvbuf = min(rcvwin / tp->advmss * rcvmem, sysctl_tcp_rmem[2]);
  554. if (rcvbuf > sk->sk_rcvbuf) {
  555. sk->sk_rcvbuf = rcvbuf;
  556. /* Make the window clamp follow along. */
  557. tp->window_clamp = rcvwin;
  558. }
  559. }
  560. tp->rcvq_space.space = copied;
  561. new_measure:
  562. tp->rcvq_space.seq = tp->copied_seq;
  563. tp->rcvq_space.time = tp->tcp_mstamp;
  564. }
  565. /* There is something which you must keep in mind when you analyze the
  566. * behavior of the tp->ato delayed ack timeout interval. When a
  567. * connection starts up, we want to ack as quickly as possible. The
  568. * problem is that "good" TCP's do slow start at the beginning of data
  569. * transmission. The means that until we send the first few ACK's the
  570. * sender will sit on his end and only queue most of his data, because
  571. * he can only send snd_cwnd unacked packets at any given time. For
  572. * each ACK we send, he increments snd_cwnd and transmits more of his
  573. * queue. -DaveM
  574. */
  575. static void tcp_event_data_recv(struct sock *sk, struct sk_buff *skb)
  576. {
  577. struct tcp_sock *tp = tcp_sk(sk);
  578. struct inet_connection_sock *icsk = inet_csk(sk);
  579. u32 now;
  580. inet_csk_schedule_ack(sk);
  581. tcp_measure_rcv_mss(sk, skb);
  582. tcp_rcv_rtt_measure(tp);
  583. now = tcp_jiffies32;
  584. if (!icsk->icsk_ack.ato) {
  585. /* The _first_ data packet received, initialize
  586. * delayed ACK engine.
  587. */
  588. tcp_incr_quickack(sk);
  589. icsk->icsk_ack.ato = TCP_ATO_MIN;
  590. } else {
  591. int m = now - icsk->icsk_ack.lrcvtime;
  592. if (m <= TCP_ATO_MIN / 2) {
  593. /* The fastest case is the first. */
  594. icsk->icsk_ack.ato = (icsk->icsk_ack.ato >> 1) + TCP_ATO_MIN / 2;
  595. } else if (m < icsk->icsk_ack.ato) {
  596. icsk->icsk_ack.ato = (icsk->icsk_ack.ato >> 1) + m;
  597. if (icsk->icsk_ack.ato > icsk->icsk_rto)
  598. icsk->icsk_ack.ato = icsk->icsk_rto;
  599. } else if (m > icsk->icsk_rto) {
  600. /* Too long gap. Apparently sender failed to
  601. * restart window, so that we send ACKs quickly.
  602. */
  603. tcp_incr_quickack(sk);
  604. sk_mem_reclaim(sk);
  605. }
  606. }
  607. icsk->icsk_ack.lrcvtime = now;
  608. tcp_ecn_check_ce(tp, skb);
  609. if (skb->len >= 128)
  610. tcp_grow_window(sk, skb);
  611. }
  612. /* Called to compute a smoothed rtt estimate. The data fed to this
  613. * routine either comes from timestamps, or from segments that were
  614. * known _not_ to have been retransmitted [see Karn/Partridge
  615. * Proceedings SIGCOMM 87]. The algorithm is from the SIGCOMM 88
  616. * piece by Van Jacobson.
  617. * NOTE: the next three routines used to be one big routine.
  618. * To save cycles in the RFC 1323 implementation it was better to break
  619. * it up into three procedures. -- erics
  620. */
  621. static void tcp_rtt_estimator(struct sock *sk, long mrtt_us)
  622. {
  623. struct tcp_sock *tp = tcp_sk(sk);
  624. long m = mrtt_us; /* RTT */
  625. u32 srtt = tp->srtt_us;
  626. /* The following amusing code comes from Jacobson's
  627. * article in SIGCOMM '88. Note that rtt and mdev
  628. * are scaled versions of rtt and mean deviation.
  629. * This is designed to be as fast as possible
  630. * m stands for "measurement".
  631. *
  632. * On a 1990 paper the rto value is changed to:
  633. * RTO = rtt + 4 * mdev
  634. *
  635. * Funny. This algorithm seems to be very broken.
  636. * These formulae increase RTO, when it should be decreased, increase
  637. * too slowly, when it should be increased quickly, decrease too quickly
  638. * etc. I guess in BSD RTO takes ONE value, so that it is absolutely
  639. * does not matter how to _calculate_ it. Seems, it was trap
  640. * that VJ failed to avoid. 8)
  641. */
  642. if (srtt != 0) {
  643. m -= (srtt >> 3); /* m is now error in rtt est */
  644. srtt += m; /* rtt = 7/8 rtt + 1/8 new */
  645. if (m < 0) {
  646. m = -m; /* m is now abs(error) */
  647. m -= (tp->mdev_us >> 2); /* similar update on mdev */
  648. /* This is similar to one of Eifel findings.
  649. * Eifel blocks mdev updates when rtt decreases.
  650. * This solution is a bit different: we use finer gain
  651. * for mdev in this case (alpha*beta).
  652. * Like Eifel it also prevents growth of rto,
  653. * but also it limits too fast rto decreases,
  654. * happening in pure Eifel.
  655. */
  656. if (m > 0)
  657. m >>= 3;
  658. } else {
  659. m -= (tp->mdev_us >> 2); /* similar update on mdev */
  660. }
  661. tp->mdev_us += m; /* mdev = 3/4 mdev + 1/4 new */
  662. if (tp->mdev_us > tp->mdev_max_us) {
  663. tp->mdev_max_us = tp->mdev_us;
  664. if (tp->mdev_max_us > tp->rttvar_us)
  665. tp->rttvar_us = tp->mdev_max_us;
  666. }
  667. if (after(tp->snd_una, tp->rtt_seq)) {
  668. if (tp->mdev_max_us < tp->rttvar_us)
  669. tp->rttvar_us -= (tp->rttvar_us - tp->mdev_max_us) >> 2;
  670. tp->rtt_seq = tp->snd_nxt;
  671. tp->mdev_max_us = tcp_rto_min_us(sk);
  672. }
  673. } else {
  674. /* no previous measure. */
  675. srtt = m << 3; /* take the measured time to be rtt */
  676. tp->mdev_us = m << 1; /* make sure rto = 3*rtt */
  677. tp->rttvar_us = max(tp->mdev_us, tcp_rto_min_us(sk));
  678. tp->mdev_max_us = tp->rttvar_us;
  679. tp->rtt_seq = tp->snd_nxt;
  680. }
  681. tp->srtt_us = max(1U, srtt);
  682. }
  683. /* Set the sk_pacing_rate to allow proper sizing of TSO packets.
  684. * Note: TCP stack does not yet implement pacing.
  685. * FQ packet scheduler can be used to implement cheap but effective
  686. * TCP pacing, to smooth the burst on large writes when packets
  687. * in flight is significantly lower than cwnd (or rwin)
  688. */
  689. int sysctl_tcp_pacing_ss_ratio __read_mostly = 200;
  690. int sysctl_tcp_pacing_ca_ratio __read_mostly = 120;
  691. static void tcp_update_pacing_rate(struct sock *sk)
  692. {
  693. const struct tcp_sock *tp = tcp_sk(sk);
  694. u64 rate;
  695. /* set sk_pacing_rate to 200 % of current rate (mss * cwnd / srtt) */
  696. rate = (u64)tp->mss_cache * ((USEC_PER_SEC / 100) << 3);
  697. /* current rate is (cwnd * mss) / srtt
  698. * In Slow Start [1], set sk_pacing_rate to 200 % the current rate.
  699. * In Congestion Avoidance phase, set it to 120 % the current rate.
  700. *
  701. * [1] : Normal Slow Start condition is (tp->snd_cwnd < tp->snd_ssthresh)
  702. * If snd_cwnd >= (tp->snd_ssthresh / 2), we are approaching
  703. * end of slow start and should slow down.
  704. */
  705. if (tp->snd_cwnd < tp->snd_ssthresh / 2)
  706. rate *= sysctl_tcp_pacing_ss_ratio;
  707. else
  708. rate *= sysctl_tcp_pacing_ca_ratio;
  709. rate *= max(tp->snd_cwnd, tp->packets_out);
  710. if (likely(tp->srtt_us))
  711. do_div(rate, tp->srtt_us);
  712. /* ACCESS_ONCE() is needed because sch_fq fetches sk_pacing_rate
  713. * without any lock. We want to make sure compiler wont store
  714. * intermediate values in this location.
  715. */
  716. ACCESS_ONCE(sk->sk_pacing_rate) = min_t(u64, rate,
  717. sk->sk_max_pacing_rate);
  718. }
  719. /* Calculate rto without backoff. This is the second half of Van Jacobson's
  720. * routine referred to above.
  721. */
  722. static void tcp_set_rto(struct sock *sk)
  723. {
  724. const struct tcp_sock *tp = tcp_sk(sk);
  725. /* Old crap is replaced with new one. 8)
  726. *
  727. * More seriously:
  728. * 1. If rtt variance happened to be less 50msec, it is hallucination.
  729. * It cannot be less due to utterly erratic ACK generation made
  730. * at least by solaris and freebsd. "Erratic ACKs" has _nothing_
  731. * to do with delayed acks, because at cwnd>2 true delack timeout
  732. * is invisible. Actually, Linux-2.4 also generates erratic
  733. * ACKs in some circumstances.
  734. */
  735. inet_csk(sk)->icsk_rto = __tcp_set_rto(tp);
  736. /* 2. Fixups made earlier cannot be right.
  737. * If we do not estimate RTO correctly without them,
  738. * all the algo is pure shit and should be replaced
  739. * with correct one. It is exactly, which we pretend to do.
  740. */
  741. /* NOTE: clamping at TCP_RTO_MIN is not required, current algo
  742. * guarantees that rto is higher.
  743. */
  744. tcp_bound_rto(sk);
  745. }
  746. __u32 tcp_init_cwnd(const struct tcp_sock *tp, const struct dst_entry *dst)
  747. {
  748. __u32 cwnd = (dst ? dst_metric(dst, RTAX_INITCWND) : 0);
  749. if (!cwnd)
  750. cwnd = TCP_INIT_CWND;
  751. return min_t(__u32, cwnd, tp->snd_cwnd_clamp);
  752. }
  753. /*
  754. * Packet counting of FACK is based on in-order assumptions, therefore TCP
  755. * disables it when reordering is detected
  756. */
  757. void tcp_disable_fack(struct tcp_sock *tp)
  758. {
  759. /* RFC3517 uses different metric in lost marker => reset on change */
  760. if (tcp_is_fack(tp))
  761. tp->lost_skb_hint = NULL;
  762. tp->rx_opt.sack_ok &= ~TCP_FACK_ENABLED;
  763. }
  764. /* Take a notice that peer is sending D-SACKs */
  765. static void tcp_dsack_seen(struct tcp_sock *tp)
  766. {
  767. tp->rx_opt.sack_ok |= TCP_DSACK_SEEN;
  768. }
  769. static void tcp_update_reordering(struct sock *sk, const int metric,
  770. const int ts)
  771. {
  772. struct tcp_sock *tp = tcp_sk(sk);
  773. int mib_idx;
  774. if (WARN_ON_ONCE(metric < 0))
  775. return;
  776. if (metric > tp->reordering) {
  777. tp->reordering = min(sysctl_tcp_max_reordering, metric);
  778. #if FASTRETRANS_DEBUG > 1
  779. pr_debug("Disorder%d %d %u f%u s%u rr%d\n",
  780. tp->rx_opt.sack_ok, inet_csk(sk)->icsk_ca_state,
  781. tp->reordering,
  782. tp->fackets_out,
  783. tp->sacked_out,
  784. tp->undo_marker ? tp->undo_retrans : 0);
  785. #endif
  786. tcp_disable_fack(tp);
  787. }
  788. tp->rack.reord = 1;
  789. /* This exciting event is worth to be remembered. 8) */
  790. if (ts)
  791. mib_idx = LINUX_MIB_TCPTSREORDER;
  792. else if (tcp_is_reno(tp))
  793. mib_idx = LINUX_MIB_TCPRENOREORDER;
  794. else if (tcp_is_fack(tp))
  795. mib_idx = LINUX_MIB_TCPFACKREORDER;
  796. else
  797. mib_idx = LINUX_MIB_TCPSACKREORDER;
  798. NET_INC_STATS(sock_net(sk), mib_idx);
  799. }
  800. /* This must be called before lost_out is incremented */
  801. static void tcp_verify_retransmit_hint(struct tcp_sock *tp, struct sk_buff *skb)
  802. {
  803. if (!tp->retransmit_skb_hint ||
  804. before(TCP_SKB_CB(skb)->seq,
  805. TCP_SKB_CB(tp->retransmit_skb_hint)->seq))
  806. tp->retransmit_skb_hint = skb;
  807. }
  808. /* Sum the number of packets on the wire we have marked as lost.
  809. * There are two cases we care about here:
  810. * a) Packet hasn't been marked lost (nor retransmitted),
  811. * and this is the first loss.
  812. * b) Packet has been marked both lost and retransmitted,
  813. * and this means we think it was lost again.
  814. */
  815. static void tcp_sum_lost(struct tcp_sock *tp, struct sk_buff *skb)
  816. {
  817. __u8 sacked = TCP_SKB_CB(skb)->sacked;
  818. if (!(sacked & TCPCB_LOST) ||
  819. ((sacked & TCPCB_LOST) && (sacked & TCPCB_SACKED_RETRANS)))
  820. tp->lost += tcp_skb_pcount(skb);
  821. }
  822. static void tcp_skb_mark_lost(struct tcp_sock *tp, struct sk_buff *skb)
  823. {
  824. if (!(TCP_SKB_CB(skb)->sacked & (TCPCB_LOST|TCPCB_SACKED_ACKED))) {
  825. tcp_verify_retransmit_hint(tp, skb);
  826. tp->lost_out += tcp_skb_pcount(skb);
  827. tcp_sum_lost(tp, skb);
  828. TCP_SKB_CB(skb)->sacked |= TCPCB_LOST;
  829. }
  830. }
  831. void tcp_skb_mark_lost_uncond_verify(struct tcp_sock *tp, struct sk_buff *skb)
  832. {
  833. tcp_verify_retransmit_hint(tp, skb);
  834. tcp_sum_lost(tp, skb);
  835. if (!(TCP_SKB_CB(skb)->sacked & (TCPCB_LOST|TCPCB_SACKED_ACKED))) {
  836. tp->lost_out += tcp_skb_pcount(skb);
  837. TCP_SKB_CB(skb)->sacked |= TCPCB_LOST;
  838. }
  839. }
  840. /* This procedure tags the retransmission queue when SACKs arrive.
  841. *
  842. * We have three tag bits: SACKED(S), RETRANS(R) and LOST(L).
  843. * Packets in queue with these bits set are counted in variables
  844. * sacked_out, retrans_out and lost_out, correspondingly.
  845. *
  846. * Valid combinations are:
  847. * Tag InFlight Description
  848. * 0 1 - orig segment is in flight.
  849. * S 0 - nothing flies, orig reached receiver.
  850. * L 0 - nothing flies, orig lost by net.
  851. * R 2 - both orig and retransmit are in flight.
  852. * L|R 1 - orig is lost, retransmit is in flight.
  853. * S|R 1 - orig reached receiver, retrans is still in flight.
  854. * (L|S|R is logically valid, it could occur when L|R is sacked,
  855. * but it is equivalent to plain S and code short-curcuits it to S.
  856. * L|S is logically invalid, it would mean -1 packet in flight 8))
  857. *
  858. * These 6 states form finite state machine, controlled by the following events:
  859. * 1. New ACK (+SACK) arrives. (tcp_sacktag_write_queue())
  860. * 2. Retransmission. (tcp_retransmit_skb(), tcp_xmit_retransmit_queue())
  861. * 3. Loss detection event of two flavors:
  862. * A. Scoreboard estimator decided the packet is lost.
  863. * A'. Reno "three dupacks" marks head of queue lost.
  864. * A''. Its FACK modification, head until snd.fack is lost.
  865. * B. SACK arrives sacking SND.NXT at the moment, when the
  866. * segment was retransmitted.
  867. * 4. D-SACK added new rule: D-SACK changes any tag to S.
  868. *
  869. * It is pleasant to note, that state diagram turns out to be commutative,
  870. * so that we are allowed not to be bothered by order of our actions,
  871. * when multiple events arrive simultaneously. (see the function below).
  872. *
  873. * Reordering detection.
  874. * --------------------
  875. * Reordering metric is maximal distance, which a packet can be displaced
  876. * in packet stream. With SACKs we can estimate it:
  877. *
  878. * 1. SACK fills old hole and the corresponding segment was not
  879. * ever retransmitted -> reordering. Alas, we cannot use it
  880. * when segment was retransmitted.
  881. * 2. The last flaw is solved with D-SACK. D-SACK arrives
  882. * for retransmitted and already SACKed segment -> reordering..
  883. * Both of these heuristics are not used in Loss state, when we cannot
  884. * account for retransmits accurately.
  885. *
  886. * SACK block validation.
  887. * ----------------------
  888. *
  889. * SACK block range validation checks that the received SACK block fits to
  890. * the expected sequence limits, i.e., it is between SND.UNA and SND.NXT.
  891. * Note that SND.UNA is not included to the range though being valid because
  892. * it means that the receiver is rather inconsistent with itself reporting
  893. * SACK reneging when it should advance SND.UNA. Such SACK block this is
  894. * perfectly valid, however, in light of RFC2018 which explicitly states
  895. * that "SACK block MUST reflect the newest segment. Even if the newest
  896. * segment is going to be discarded ...", not that it looks very clever
  897. * in case of head skb. Due to potentional receiver driven attacks, we
  898. * choose to avoid immediate execution of a walk in write queue due to
  899. * reneging and defer head skb's loss recovery to standard loss recovery
  900. * procedure that will eventually trigger (nothing forbids us doing this).
  901. *
  902. * Implements also blockage to start_seq wrap-around. Problem lies in the
  903. * fact that though start_seq (s) is before end_seq (i.e., not reversed),
  904. * there's no guarantee that it will be before snd_nxt (n). The problem
  905. * happens when start_seq resides between end_seq wrap (e_w) and snd_nxt
  906. * wrap (s_w):
  907. *
  908. * <- outs wnd -> <- wrapzone ->
  909. * u e n u_w e_w s n_w
  910. * | | | | | | |
  911. * |<------------+------+----- TCP seqno space --------------+---------->|
  912. * ...-- <2^31 ->| |<--------...
  913. * ...---- >2^31 ------>| |<--------...
  914. *
  915. * Current code wouldn't be vulnerable but it's better still to discard such
  916. * crazy SACK blocks. Doing this check for start_seq alone closes somewhat
  917. * similar case (end_seq after snd_nxt wrap) as earlier reversed check in
  918. * snd_nxt wrap -> snd_una region will then become "well defined", i.e.,
  919. * equal to the ideal case (infinite seqno space without wrap caused issues).
  920. *
  921. * With D-SACK the lower bound is extended to cover sequence space below
  922. * SND.UNA down to undo_marker, which is the last point of interest. Yet
  923. * again, D-SACK block must not to go across snd_una (for the same reason as
  924. * for the normal SACK blocks, explained above). But there all simplicity
  925. * ends, TCP might receive valid D-SACKs below that. As long as they reside
  926. * fully below undo_marker they do not affect behavior in anyway and can
  927. * therefore be safely ignored. In rare cases (which are more or less
  928. * theoretical ones), the D-SACK will nicely cross that boundary due to skb
  929. * fragmentation and packet reordering past skb's retransmission. To consider
  930. * them correctly, the acceptable range must be extended even more though
  931. * the exact amount is rather hard to quantify. However, tp->max_window can
  932. * be used as an exaggerated estimate.
  933. */
  934. static bool tcp_is_sackblock_valid(struct tcp_sock *tp, bool is_dsack,
  935. u32 start_seq, u32 end_seq)
  936. {
  937. /* Too far in future, or reversed (interpretation is ambiguous) */
  938. if (after(end_seq, tp->snd_nxt) || !before(start_seq, end_seq))
  939. return false;
  940. /* Nasty start_seq wrap-around check (see comments above) */
  941. if (!before(start_seq, tp->snd_nxt))
  942. return false;
  943. /* In outstanding window? ...This is valid exit for D-SACKs too.
  944. * start_seq == snd_una is non-sensical (see comments above)
  945. */
  946. if (after(start_seq, tp->snd_una))
  947. return true;
  948. if (!is_dsack || !tp->undo_marker)
  949. return false;
  950. /* ...Then it's D-SACK, and must reside below snd_una completely */
  951. if (after(end_seq, tp->snd_una))
  952. return false;
  953. if (!before(start_seq, tp->undo_marker))
  954. return true;
  955. /* Too old */
  956. if (!after(end_seq, tp->undo_marker))
  957. return false;
  958. /* Undo_marker boundary crossing (overestimates a lot). Known already:
  959. * start_seq < undo_marker and end_seq >= undo_marker.
  960. */
  961. return !before(start_seq, end_seq - tp->max_window);
  962. }
  963. static bool tcp_check_dsack(struct sock *sk, const struct sk_buff *ack_skb,
  964. struct tcp_sack_block_wire *sp, int num_sacks,
  965. u32 prior_snd_una)
  966. {
  967. struct tcp_sock *tp = tcp_sk(sk);
  968. u32 start_seq_0 = get_unaligned_be32(&sp[0].start_seq);
  969. u32 end_seq_0 = get_unaligned_be32(&sp[0].end_seq);
  970. bool dup_sack = false;
  971. if (before(start_seq_0, TCP_SKB_CB(ack_skb)->ack_seq)) {
  972. dup_sack = true;
  973. tcp_dsack_seen(tp);
  974. NET_INC_STATS(sock_net(sk), LINUX_MIB_TCPDSACKRECV);
  975. } else if (num_sacks > 1) {
  976. u32 end_seq_1 = get_unaligned_be32(&sp[1].end_seq);
  977. u32 start_seq_1 = get_unaligned_be32(&sp[1].start_seq);
  978. if (!after(end_seq_0, end_seq_1) &&
  979. !before(start_seq_0, start_seq_1)) {
  980. dup_sack = true;
  981. tcp_dsack_seen(tp);
  982. NET_INC_STATS(sock_net(sk),
  983. LINUX_MIB_TCPDSACKOFORECV);
  984. }
  985. }
  986. /* D-SACK for already forgotten data... Do dumb counting. */
  987. if (dup_sack && tp->undo_marker && tp->undo_retrans > 0 &&
  988. !after(end_seq_0, prior_snd_una) &&
  989. after(end_seq_0, tp->undo_marker))
  990. tp->undo_retrans--;
  991. return dup_sack;
  992. }
  993. struct tcp_sacktag_state {
  994. int reord;
  995. int fack_count;
  996. /* Timestamps for earliest and latest never-retransmitted segment
  997. * that was SACKed. RTO needs the earliest RTT to stay conservative,
  998. * but congestion control should still get an accurate delay signal.
  999. */
  1000. u64 first_sackt;
  1001. u64 last_sackt;
  1002. struct rate_sample *rate;
  1003. int flag;
  1004. };
  1005. /* Check if skb is fully within the SACK block. In presence of GSO skbs,
  1006. * the incoming SACK may not exactly match but we can find smaller MSS
  1007. * aligned portion of it that matches. Therefore we might need to fragment
  1008. * which may fail and creates some hassle (caller must handle error case
  1009. * returns).
  1010. *
  1011. * FIXME: this could be merged to shift decision code
  1012. */
  1013. static int tcp_match_skb_to_sack(struct sock *sk, struct sk_buff *skb,
  1014. u32 start_seq, u32 end_seq)
  1015. {
  1016. int err;
  1017. bool in_sack;
  1018. unsigned int pkt_len;
  1019. unsigned int mss;
  1020. in_sack = !after(start_seq, TCP_SKB_CB(skb)->seq) &&
  1021. !before(end_seq, TCP_SKB_CB(skb)->end_seq);
  1022. if (tcp_skb_pcount(skb) > 1 && !in_sack &&
  1023. after(TCP_SKB_CB(skb)->end_seq, start_seq)) {
  1024. mss = tcp_skb_mss(skb);
  1025. in_sack = !after(start_seq, TCP_SKB_CB(skb)->seq);
  1026. if (!in_sack) {
  1027. pkt_len = start_seq - TCP_SKB_CB(skb)->seq;
  1028. if (pkt_len < mss)
  1029. pkt_len = mss;
  1030. } else {
  1031. pkt_len = end_seq - TCP_SKB_CB(skb)->seq;
  1032. if (pkt_len < mss)
  1033. return -EINVAL;
  1034. }
  1035. /* Round if necessary so that SACKs cover only full MSSes
  1036. * and/or the remaining small portion (if present)
  1037. */
  1038. if (pkt_len > mss) {
  1039. unsigned int new_len = (pkt_len / mss) * mss;
  1040. if (!in_sack && new_len < pkt_len)
  1041. new_len += mss;
  1042. pkt_len = new_len;
  1043. }
  1044. if (pkt_len >= skb->len && !in_sack)
  1045. return 0;
  1046. err = tcp_fragment(sk, skb, pkt_len, mss, GFP_ATOMIC);
  1047. if (err < 0)
  1048. return err;
  1049. }
  1050. return in_sack;
  1051. }
  1052. /* Mark the given newly-SACKed range as such, adjusting counters and hints. */
  1053. static u8 tcp_sacktag_one(struct sock *sk,
  1054. struct tcp_sacktag_state *state, u8 sacked,
  1055. u32 start_seq, u32 end_seq,
  1056. int dup_sack, int pcount,
  1057. u64 xmit_time)
  1058. {
  1059. struct tcp_sock *tp = tcp_sk(sk);
  1060. int fack_count = state->fack_count;
  1061. /* Account D-SACK for retransmitted packet. */
  1062. if (dup_sack && (sacked & TCPCB_RETRANS)) {
  1063. if (tp->undo_marker && tp->undo_retrans > 0 &&
  1064. after(end_seq, tp->undo_marker))
  1065. tp->undo_retrans--;
  1066. if (sacked & TCPCB_SACKED_ACKED)
  1067. state->reord = min(fack_count, state->reord);
  1068. }
  1069. /* Nothing to do; acked frame is about to be dropped (was ACKed). */
  1070. if (!after(end_seq, tp->snd_una))
  1071. return sacked;
  1072. if (!(sacked & TCPCB_SACKED_ACKED)) {
  1073. tcp_rack_advance(tp, sacked, end_seq, xmit_time);
  1074. if (sacked & TCPCB_SACKED_RETRANS) {
  1075. /* If the segment is not tagged as lost,
  1076. * we do not clear RETRANS, believing
  1077. * that retransmission is still in flight.
  1078. */
  1079. if (sacked & TCPCB_LOST) {
  1080. sacked &= ~(TCPCB_LOST|TCPCB_SACKED_RETRANS);
  1081. tp->lost_out -= pcount;
  1082. tp->retrans_out -= pcount;
  1083. }
  1084. } else {
  1085. if (!(sacked & TCPCB_RETRANS)) {
  1086. /* New sack for not retransmitted frame,
  1087. * which was in hole. It is reordering.
  1088. */
  1089. if (before(start_seq,
  1090. tcp_highest_sack_seq(tp)))
  1091. state->reord = min(fack_count,
  1092. state->reord);
  1093. if (!after(end_seq, tp->high_seq))
  1094. state->flag |= FLAG_ORIG_SACK_ACKED;
  1095. if (state->first_sackt == 0)
  1096. state->first_sackt = xmit_time;
  1097. state->last_sackt = xmit_time;
  1098. }
  1099. if (sacked & TCPCB_LOST) {
  1100. sacked &= ~TCPCB_LOST;
  1101. tp->lost_out -= pcount;
  1102. }
  1103. }
  1104. sacked |= TCPCB_SACKED_ACKED;
  1105. state->flag |= FLAG_DATA_SACKED;
  1106. tp->sacked_out += pcount;
  1107. tp->delivered += pcount; /* Out-of-order packets delivered */
  1108. fack_count += pcount;
  1109. /* Lost marker hint past SACKed? Tweak RFC3517 cnt */
  1110. if (!tcp_is_fack(tp) && tp->lost_skb_hint &&
  1111. before(start_seq, TCP_SKB_CB(tp->lost_skb_hint)->seq))
  1112. tp->lost_cnt_hint += pcount;
  1113. if (fack_count > tp->fackets_out)
  1114. tp->fackets_out = fack_count;
  1115. }
  1116. /* D-SACK. We can detect redundant retransmission in S|R and plain R
  1117. * frames and clear it. undo_retrans is decreased above, L|R frames
  1118. * are accounted above as well.
  1119. */
  1120. if (dup_sack && (sacked & TCPCB_SACKED_RETRANS)) {
  1121. sacked &= ~TCPCB_SACKED_RETRANS;
  1122. tp->retrans_out -= pcount;
  1123. }
  1124. return sacked;
  1125. }
  1126. /* Shift newly-SACKed bytes from this skb to the immediately previous
  1127. * already-SACKed sk_buff. Mark the newly-SACKed bytes as such.
  1128. */
  1129. static bool tcp_shifted_skb(struct sock *sk, struct sk_buff *skb,
  1130. struct tcp_sacktag_state *state,
  1131. unsigned int pcount, int shifted, int mss,
  1132. bool dup_sack)
  1133. {
  1134. struct tcp_sock *tp = tcp_sk(sk);
  1135. struct sk_buff *prev = tcp_write_queue_prev(sk, skb);
  1136. u32 start_seq = TCP_SKB_CB(skb)->seq; /* start of newly-SACKed */
  1137. u32 end_seq = start_seq + shifted; /* end of newly-SACKed */
  1138. BUG_ON(!pcount);
  1139. /* Adjust counters and hints for the newly sacked sequence
  1140. * range but discard the return value since prev is already
  1141. * marked. We must tag the range first because the seq
  1142. * advancement below implicitly advances
  1143. * tcp_highest_sack_seq() when skb is highest_sack.
  1144. */
  1145. tcp_sacktag_one(sk, state, TCP_SKB_CB(skb)->sacked,
  1146. start_seq, end_seq, dup_sack, pcount,
  1147. skb->skb_mstamp);
  1148. tcp_rate_skb_delivered(sk, skb, state->rate);
  1149. if (skb == tp->lost_skb_hint)
  1150. tp->lost_cnt_hint += pcount;
  1151. TCP_SKB_CB(prev)->end_seq += shifted;
  1152. TCP_SKB_CB(skb)->seq += shifted;
  1153. tcp_skb_pcount_add(prev, pcount);
  1154. BUG_ON(tcp_skb_pcount(skb) < pcount);
  1155. tcp_skb_pcount_add(skb, -pcount);
  1156. /* When we're adding to gso_segs == 1, gso_size will be zero,
  1157. * in theory this shouldn't be necessary but as long as DSACK
  1158. * code can come after this skb later on it's better to keep
  1159. * setting gso_size to something.
  1160. */
  1161. if (!TCP_SKB_CB(prev)->tcp_gso_size)
  1162. TCP_SKB_CB(prev)->tcp_gso_size = mss;
  1163. /* CHECKME: To clear or not to clear? Mimics normal skb currently */
  1164. if (tcp_skb_pcount(skb) <= 1)
  1165. TCP_SKB_CB(skb)->tcp_gso_size = 0;
  1166. /* Difference in this won't matter, both ACKed by the same cumul. ACK */
  1167. TCP_SKB_CB(prev)->sacked |= (TCP_SKB_CB(skb)->sacked & TCPCB_EVER_RETRANS);
  1168. if (skb->len > 0) {
  1169. BUG_ON(!tcp_skb_pcount(skb));
  1170. NET_INC_STATS(sock_net(sk), LINUX_MIB_SACKSHIFTED);
  1171. return false;
  1172. }
  1173. /* Whole SKB was eaten :-) */
  1174. if (skb == tp->retransmit_skb_hint)
  1175. tp->retransmit_skb_hint = prev;
  1176. if (skb == tp->lost_skb_hint) {
  1177. tp->lost_skb_hint = prev;
  1178. tp->lost_cnt_hint -= tcp_skb_pcount(prev);
  1179. }
  1180. TCP_SKB_CB(prev)->tcp_flags |= TCP_SKB_CB(skb)->tcp_flags;
  1181. TCP_SKB_CB(prev)->eor = TCP_SKB_CB(skb)->eor;
  1182. if (TCP_SKB_CB(skb)->tcp_flags & TCPHDR_FIN)
  1183. TCP_SKB_CB(prev)->end_seq++;
  1184. if (skb == tcp_highest_sack(sk))
  1185. tcp_advance_highest_sack(sk, skb);
  1186. tcp_skb_collapse_tstamp(prev, skb);
  1187. if (unlikely(TCP_SKB_CB(prev)->tx.delivered_mstamp))
  1188. TCP_SKB_CB(prev)->tx.delivered_mstamp = 0;
  1189. tcp_unlink_write_queue(skb, sk);
  1190. sk_wmem_free_skb(sk, skb);
  1191. NET_INC_STATS(sock_net(sk), LINUX_MIB_SACKMERGED);
  1192. return true;
  1193. }
  1194. /* I wish gso_size would have a bit more sane initialization than
  1195. * something-or-zero which complicates things
  1196. */
  1197. static int tcp_skb_seglen(const struct sk_buff *skb)
  1198. {
  1199. return tcp_skb_pcount(skb) == 1 ? skb->len : tcp_skb_mss(skb);
  1200. }
  1201. /* Shifting pages past head area doesn't work */
  1202. static int skb_can_shift(const struct sk_buff *skb)
  1203. {
  1204. return !skb_headlen(skb) && skb_is_nonlinear(skb);
  1205. }
  1206. /* Try collapsing SACK blocks spanning across multiple skbs to a single
  1207. * skb.
  1208. */
  1209. static struct sk_buff *tcp_shift_skb_data(struct sock *sk, struct sk_buff *skb,
  1210. struct tcp_sacktag_state *state,
  1211. u32 start_seq, u32 end_seq,
  1212. bool dup_sack)
  1213. {
  1214. struct tcp_sock *tp = tcp_sk(sk);
  1215. struct sk_buff *prev;
  1216. int mss;
  1217. int pcount = 0;
  1218. int len;
  1219. int in_sack;
  1220. if (!sk_can_gso(sk))
  1221. goto fallback;
  1222. /* Normally R but no L won't result in plain S */
  1223. if (!dup_sack &&
  1224. (TCP_SKB_CB(skb)->sacked & (TCPCB_LOST|TCPCB_SACKED_RETRANS)) == TCPCB_SACKED_RETRANS)
  1225. goto fallback;
  1226. if (!skb_can_shift(skb))
  1227. goto fallback;
  1228. /* This frame is about to be dropped (was ACKed). */
  1229. if (!after(TCP_SKB_CB(skb)->end_seq, tp->snd_una))
  1230. goto fallback;
  1231. /* Can only happen with delayed DSACK + discard craziness */
  1232. if (unlikely(skb == tcp_write_queue_head(sk)))
  1233. goto fallback;
  1234. prev = tcp_write_queue_prev(sk, skb);
  1235. if ((TCP_SKB_CB(prev)->sacked & TCPCB_TAGBITS) != TCPCB_SACKED_ACKED)
  1236. goto fallback;
  1237. if (!tcp_skb_can_collapse_to(prev))
  1238. goto fallback;
  1239. in_sack = !after(start_seq, TCP_SKB_CB(skb)->seq) &&
  1240. !before(end_seq, TCP_SKB_CB(skb)->end_seq);
  1241. if (in_sack) {
  1242. len = skb->len;
  1243. pcount = tcp_skb_pcount(skb);
  1244. mss = tcp_skb_seglen(skb);
  1245. /* TODO: Fix DSACKs to not fragment already SACKed and we can
  1246. * drop this restriction as unnecessary
  1247. */
  1248. if (mss != tcp_skb_seglen(prev))
  1249. goto fallback;
  1250. } else {
  1251. if (!after(TCP_SKB_CB(skb)->end_seq, start_seq))
  1252. goto noop;
  1253. /* CHECKME: This is non-MSS split case only?, this will
  1254. * cause skipped skbs due to advancing loop btw, original
  1255. * has that feature too
  1256. */
  1257. if (tcp_skb_pcount(skb) <= 1)
  1258. goto noop;
  1259. in_sack = !after(start_seq, TCP_SKB_CB(skb)->seq);
  1260. if (!in_sack) {
  1261. /* TODO: head merge to next could be attempted here
  1262. * if (!after(TCP_SKB_CB(skb)->end_seq, end_seq)),
  1263. * though it might not be worth of the additional hassle
  1264. *
  1265. * ...we can probably just fallback to what was done
  1266. * previously. We could try merging non-SACKed ones
  1267. * as well but it probably isn't going to buy off
  1268. * because later SACKs might again split them, and
  1269. * it would make skb timestamp tracking considerably
  1270. * harder problem.
  1271. */
  1272. goto fallback;
  1273. }
  1274. len = end_seq - TCP_SKB_CB(skb)->seq;
  1275. BUG_ON(len < 0);
  1276. BUG_ON(len > skb->len);
  1277. /* MSS boundaries should be honoured or else pcount will
  1278. * severely break even though it makes things bit trickier.
  1279. * Optimize common case to avoid most of the divides
  1280. */
  1281. mss = tcp_skb_mss(skb);
  1282. /* TODO: Fix DSACKs to not fragment already SACKed and we can
  1283. * drop this restriction as unnecessary
  1284. */
  1285. if (mss != tcp_skb_seglen(prev))
  1286. goto fallback;
  1287. if (len == mss) {
  1288. pcount = 1;
  1289. } else if (len < mss) {
  1290. goto noop;
  1291. } else {
  1292. pcount = len / mss;
  1293. len = pcount * mss;
  1294. }
  1295. }
  1296. /* tcp_sacktag_one() won't SACK-tag ranges below snd_una */
  1297. if (!after(TCP_SKB_CB(skb)->seq + len, tp->snd_una))
  1298. goto fallback;
  1299. if (!skb_shift(prev, skb, len))
  1300. goto fallback;
  1301. if (!tcp_shifted_skb(sk, skb, state, pcount, len, mss, dup_sack))
  1302. goto out;
  1303. /* Hole filled allows collapsing with the next as well, this is very
  1304. * useful when hole on every nth skb pattern happens
  1305. */
  1306. if (prev == tcp_write_queue_tail(sk))
  1307. goto out;
  1308. skb = tcp_write_queue_next(sk, prev);
  1309. if (!skb_can_shift(skb) ||
  1310. (skb == tcp_send_head(sk)) ||
  1311. ((TCP_SKB_CB(skb)->sacked & TCPCB_TAGBITS) != TCPCB_SACKED_ACKED) ||
  1312. (mss != tcp_skb_seglen(skb)))
  1313. goto out;
  1314. len = skb->len;
  1315. if (skb_shift(prev, skb, len)) {
  1316. pcount += tcp_skb_pcount(skb);
  1317. tcp_shifted_skb(sk, skb, state, tcp_skb_pcount(skb), len, mss, 0);
  1318. }
  1319. out:
  1320. state->fack_count += pcount;
  1321. return prev;
  1322. noop:
  1323. return skb;
  1324. fallback:
  1325. NET_INC_STATS(sock_net(sk), LINUX_MIB_SACKSHIFTFALLBACK);
  1326. return NULL;
  1327. }
  1328. static struct sk_buff *tcp_sacktag_walk(struct sk_buff *skb, struct sock *sk,
  1329. struct tcp_sack_block *next_dup,
  1330. struct tcp_sacktag_state *state,
  1331. u32 start_seq, u32 end_seq,
  1332. bool dup_sack_in)
  1333. {
  1334. struct tcp_sock *tp = tcp_sk(sk);
  1335. struct sk_buff *tmp;
  1336. tcp_for_write_queue_from(skb, sk) {
  1337. int in_sack = 0;
  1338. bool dup_sack = dup_sack_in;
  1339. if (skb == tcp_send_head(sk))
  1340. break;
  1341. /* queue is in-order => we can short-circuit the walk early */
  1342. if (!before(TCP_SKB_CB(skb)->seq, end_seq))
  1343. break;
  1344. if (next_dup &&
  1345. before(TCP_SKB_CB(skb)->seq, next_dup->end_seq)) {
  1346. in_sack = tcp_match_skb_to_sack(sk, skb,
  1347. next_dup->start_seq,
  1348. next_dup->end_seq);
  1349. if (in_sack > 0)
  1350. dup_sack = true;
  1351. }
  1352. /* skb reference here is a bit tricky to get right, since
  1353. * shifting can eat and free both this skb and the next,
  1354. * so not even _safe variant of the loop is enough.
  1355. */
  1356. if (in_sack <= 0) {
  1357. tmp = tcp_shift_skb_data(sk, skb, state,
  1358. start_seq, end_seq, dup_sack);
  1359. if (tmp) {
  1360. if (tmp != skb) {
  1361. skb = tmp;
  1362. continue;
  1363. }
  1364. in_sack = 0;
  1365. } else {
  1366. in_sack = tcp_match_skb_to_sack(sk, skb,
  1367. start_seq,
  1368. end_seq);
  1369. }
  1370. }
  1371. if (unlikely(in_sack < 0))
  1372. break;
  1373. if (in_sack) {
  1374. TCP_SKB_CB(skb)->sacked =
  1375. tcp_sacktag_one(sk,
  1376. state,
  1377. TCP_SKB_CB(skb)->sacked,
  1378. TCP_SKB_CB(skb)->seq,
  1379. TCP_SKB_CB(skb)->end_seq,
  1380. dup_sack,
  1381. tcp_skb_pcount(skb),
  1382. skb->skb_mstamp);
  1383. tcp_rate_skb_delivered(sk, skb, state->rate);
  1384. if (!before(TCP_SKB_CB(skb)->seq,
  1385. tcp_highest_sack_seq(tp)))
  1386. tcp_advance_highest_sack(sk, skb);
  1387. }
  1388. state->fack_count += tcp_skb_pcount(skb);
  1389. }
  1390. return skb;
  1391. }
  1392. /* Avoid all extra work that is being done by sacktag while walking in
  1393. * a normal way
  1394. */
  1395. static struct sk_buff *tcp_sacktag_skip(struct sk_buff *skb, struct sock *sk,
  1396. struct tcp_sacktag_state *state,
  1397. u32 skip_to_seq)
  1398. {
  1399. tcp_for_write_queue_from(skb, sk) {
  1400. if (skb == tcp_send_head(sk))
  1401. break;
  1402. if (after(TCP_SKB_CB(skb)->end_seq, skip_to_seq))
  1403. break;
  1404. state->fack_count += tcp_skb_pcount(skb);
  1405. }
  1406. return skb;
  1407. }
  1408. static struct sk_buff *tcp_maybe_skipping_dsack(struct sk_buff *skb,
  1409. struct sock *sk,
  1410. struct tcp_sack_block *next_dup,
  1411. struct tcp_sacktag_state *state,
  1412. u32 skip_to_seq)
  1413. {
  1414. if (!next_dup)
  1415. return skb;
  1416. if (before(next_dup->start_seq, skip_to_seq)) {
  1417. skb = tcp_sacktag_skip(skb, sk, state, next_dup->start_seq);
  1418. skb = tcp_sacktag_walk(skb, sk, NULL, state,
  1419. next_dup->start_seq, next_dup->end_seq,
  1420. 1);
  1421. }
  1422. return skb;
  1423. }
  1424. static int tcp_sack_cache_ok(const struct tcp_sock *tp, const struct tcp_sack_block *cache)
  1425. {
  1426. return cache < tp->recv_sack_cache + ARRAY_SIZE(tp->recv_sack_cache);
  1427. }
  1428. static int
  1429. tcp_sacktag_write_queue(struct sock *sk, const struct sk_buff *ack_skb,
  1430. u32 prior_snd_una, struct tcp_sacktag_state *state)
  1431. {
  1432. struct tcp_sock *tp = tcp_sk(sk);
  1433. const unsigned char *ptr = (skb_transport_header(ack_skb) +
  1434. TCP_SKB_CB(ack_skb)->sacked);
  1435. struct tcp_sack_block_wire *sp_wire = (struct tcp_sack_block_wire *)(ptr+2);
  1436. struct tcp_sack_block sp[TCP_NUM_SACKS];
  1437. struct tcp_sack_block *cache;
  1438. struct sk_buff *skb;
  1439. int num_sacks = min(TCP_NUM_SACKS, (ptr[1] - TCPOLEN_SACK_BASE) >> 3);
  1440. int used_sacks;
  1441. bool found_dup_sack = false;
  1442. int i, j;
  1443. int first_sack_index;
  1444. state->flag = 0;
  1445. state->reord = tp->packets_out;
  1446. if (!tp->sacked_out) {
  1447. if (WARN_ON(tp->fackets_out))
  1448. tp->fackets_out = 0;
  1449. tcp_highest_sack_reset(sk);
  1450. }
  1451. found_dup_sack = tcp_check_dsack(sk, ack_skb, sp_wire,
  1452. num_sacks, prior_snd_una);
  1453. if (found_dup_sack) {
  1454. state->flag |= FLAG_DSACKING_ACK;
  1455. tp->delivered++; /* A spurious retransmission is delivered */
  1456. }
  1457. /* Eliminate too old ACKs, but take into
  1458. * account more or less fresh ones, they can
  1459. * contain valid SACK info.
  1460. */
  1461. if (before(TCP_SKB_CB(ack_skb)->ack_seq, prior_snd_una - tp->max_window))
  1462. return 0;
  1463. if (!tp->packets_out)
  1464. goto out;
  1465. used_sacks = 0;
  1466. first_sack_index = 0;
  1467. for (i = 0; i < num_sacks; i++) {
  1468. bool dup_sack = !i && found_dup_sack;
  1469. sp[used_sacks].start_seq = get_unaligned_be32(&sp_wire[i].start_seq);
  1470. sp[used_sacks].end_seq = get_unaligned_be32(&sp_wire[i].end_seq);
  1471. if (!tcp_is_sackblock_valid(tp, dup_sack,
  1472. sp[used_sacks].start_seq,
  1473. sp[used_sacks].end_seq)) {
  1474. int mib_idx;
  1475. if (dup_sack) {
  1476. if (!tp->undo_marker)
  1477. mib_idx = LINUX_MIB_TCPDSACKIGNOREDNOUNDO;
  1478. else
  1479. mib_idx = LINUX_MIB_TCPDSACKIGNOREDOLD;
  1480. } else {
  1481. /* Don't count olds caused by ACK reordering */
  1482. if ((TCP_SKB_CB(ack_skb)->ack_seq != tp->snd_una) &&
  1483. !after(sp[used_sacks].end_seq, tp->snd_una))
  1484. continue;
  1485. mib_idx = LINUX_MIB_TCPSACKDISCARD;
  1486. }
  1487. NET_INC_STATS(sock_net(sk), mib_idx);
  1488. if (i == 0)
  1489. first_sack_index = -1;
  1490. continue;
  1491. }
  1492. /* Ignore very old stuff early */
  1493. if (!after(sp[used_sacks].end_seq, prior_snd_una))
  1494. continue;
  1495. used_sacks++;
  1496. }
  1497. /* order SACK blocks to allow in order walk of the retrans queue */
  1498. for (i = used_sacks - 1; i > 0; i--) {
  1499. for (j = 0; j < i; j++) {
  1500. if (after(sp[j].start_seq, sp[j + 1].start_seq)) {
  1501. swap(sp[j], sp[j + 1]);
  1502. /* Track where the first SACK block goes to */
  1503. if (j == first_sack_index)
  1504. first_sack_index = j + 1;
  1505. }
  1506. }
  1507. }
  1508. skb = tcp_write_queue_head(sk);
  1509. state->fack_count = 0;
  1510. i = 0;
  1511. if (!tp->sacked_out) {
  1512. /* It's already past, so skip checking against it */
  1513. cache = tp->recv_sack_cache + ARRAY_SIZE(tp->recv_sack_cache);
  1514. } else {
  1515. cache = tp->recv_sack_cache;
  1516. /* Skip empty blocks in at head of the cache */
  1517. while (tcp_sack_cache_ok(tp, cache) && !cache->start_seq &&
  1518. !cache->end_seq)
  1519. cache++;
  1520. }
  1521. while (i < used_sacks) {
  1522. u32 start_seq = sp[i].start_seq;
  1523. u32 end_seq = sp[i].end_seq;
  1524. bool dup_sack = (found_dup_sack && (i == first_sack_index));
  1525. struct tcp_sack_block *next_dup = NULL;
  1526. if (found_dup_sack && ((i + 1) == first_sack_index))
  1527. next_dup = &sp[i + 1];
  1528. /* Skip too early cached blocks */
  1529. while (tcp_sack_cache_ok(tp, cache) &&
  1530. !before(start_seq, cache->end_seq))
  1531. cache++;
  1532. /* Can skip some work by looking recv_sack_cache? */
  1533. if (tcp_sack_cache_ok(tp, cache) && !dup_sack &&
  1534. after(end_seq, cache->start_seq)) {
  1535. /* Head todo? */
  1536. if (before(start_seq, cache->start_seq)) {
  1537. skb = tcp_sacktag_skip(skb, sk, state,
  1538. start_seq);
  1539. skb = tcp_sacktag_walk(skb, sk, next_dup,
  1540. state,
  1541. start_seq,
  1542. cache->start_seq,
  1543. dup_sack);
  1544. }
  1545. /* Rest of the block already fully processed? */
  1546. if (!after(end_seq, cache->end_seq))
  1547. goto advance_sp;
  1548. skb = tcp_maybe_skipping_dsack(skb, sk, next_dup,
  1549. state,
  1550. cache->end_seq);
  1551. /* ...tail remains todo... */
  1552. if (tcp_highest_sack_seq(tp) == cache->end_seq) {
  1553. /* ...but better entrypoint exists! */
  1554. skb = tcp_highest_sack(sk);
  1555. if (!skb)
  1556. break;
  1557. state->fack_count = tp->fackets_out;
  1558. cache++;
  1559. goto walk;
  1560. }
  1561. skb = tcp_sacktag_skip(skb, sk, state, cache->end_seq);
  1562. /* Check overlap against next cached too (past this one already) */
  1563. cache++;
  1564. continue;
  1565. }
  1566. if (!before(start_seq, tcp_highest_sack_seq(tp))) {
  1567. skb = tcp_highest_sack(sk);
  1568. if (!skb)
  1569. break;
  1570. state->fack_count = tp->fackets_out;
  1571. }
  1572. skb = tcp_sacktag_skip(skb, sk, state, start_seq);
  1573. walk:
  1574. skb = tcp_sacktag_walk(skb, sk, next_dup, state,
  1575. start_seq, end_seq, dup_sack);
  1576. advance_sp:
  1577. i++;
  1578. }
  1579. /* Clear the head of the cache sack blocks so we can skip it next time */
  1580. for (i = 0; i < ARRAY_SIZE(tp->recv_sack_cache) - used_sacks; i++) {
  1581. tp->recv_sack_cache[i].start_seq = 0;
  1582. tp->recv_sack_cache[i].end_seq = 0;
  1583. }
  1584. for (j = 0; j < used_sacks; j++)
  1585. tp->recv_sack_cache[i++] = sp[j];
  1586. if ((state->reord < tp->fackets_out) &&
  1587. ((inet_csk(sk)->icsk_ca_state != TCP_CA_Loss) || tp->undo_marker))
  1588. tcp_update_reordering(sk, tp->fackets_out - state->reord, 0);
  1589. tcp_verify_left_out(tp);
  1590. out:
  1591. #if FASTRETRANS_DEBUG > 0
  1592. WARN_ON((int)tp->sacked_out < 0);
  1593. WARN_ON((int)tp->lost_out < 0);
  1594. WARN_ON((int)tp->retrans_out < 0);
  1595. WARN_ON((int)tcp_packets_in_flight(tp) < 0);
  1596. #endif
  1597. return state->flag;
  1598. }
  1599. /* Limits sacked_out so that sum with lost_out isn't ever larger than
  1600. * packets_out. Returns false if sacked_out adjustement wasn't necessary.
  1601. */
  1602. static bool tcp_limit_reno_sacked(struct tcp_sock *tp)
  1603. {
  1604. u32 holes;
  1605. holes = max(tp->lost_out, 1U);
  1606. holes = min(holes, tp->packets_out);
  1607. if ((tp->sacked_out + holes) > tp->packets_out) {
  1608. tp->sacked_out = tp->packets_out - holes;
  1609. return true;
  1610. }
  1611. return false;
  1612. }
  1613. /* If we receive more dupacks than we expected counting segments
  1614. * in assumption of absent reordering, interpret this as reordering.
  1615. * The only another reason could be bug in receiver TCP.
  1616. */
  1617. static void tcp_check_reno_reordering(struct sock *sk, const int addend)
  1618. {
  1619. struct tcp_sock *tp = tcp_sk(sk);
  1620. if (tcp_limit_reno_sacked(tp))
  1621. tcp_update_reordering(sk, tp->packets_out + addend, 0);
  1622. }
  1623. /* Emulate SACKs for SACKless connection: account for a new dupack. */
  1624. static void tcp_add_reno_sack(struct sock *sk)
  1625. {
  1626. struct tcp_sock *tp = tcp_sk(sk);
  1627. u32 prior_sacked = tp->sacked_out;
  1628. tp->sacked_out++;
  1629. tcp_check_reno_reordering(sk, 0);
  1630. if (tp->sacked_out > prior_sacked)
  1631. tp->delivered++; /* Some out-of-order packet is delivered */
  1632. tcp_verify_left_out(tp);
  1633. }
  1634. /* Account for ACK, ACKing some data in Reno Recovery phase. */
  1635. static void tcp_remove_reno_sacks(struct sock *sk, int acked)
  1636. {
  1637. struct tcp_sock *tp = tcp_sk(sk);
  1638. if (acked > 0) {
  1639. /* One ACK acked hole. The rest eat duplicate ACKs. */
  1640. tp->delivered += max_t(int, acked - tp->sacked_out, 1);
  1641. if (acked - 1 >= tp->sacked_out)
  1642. tp->sacked_out = 0;
  1643. else
  1644. tp->sacked_out -= acked - 1;
  1645. }
  1646. tcp_check_reno_reordering(sk, acked);
  1647. tcp_verify_left_out(tp);
  1648. }
  1649. static inline void tcp_reset_reno_sack(struct tcp_sock *tp)
  1650. {
  1651. tp->sacked_out = 0;
  1652. }
  1653. void tcp_clear_retrans(struct tcp_sock *tp)
  1654. {
  1655. tp->retrans_out = 0;
  1656. tp->lost_out = 0;
  1657. tp->undo_marker = 0;
  1658. tp->undo_retrans = -1;
  1659. tp->fackets_out = 0;
  1660. tp->sacked_out = 0;
  1661. }
  1662. static inline void tcp_init_undo(struct tcp_sock *tp)
  1663. {
  1664. tp->undo_marker = tp->snd_una;
  1665. /* Retransmission still in flight may cause DSACKs later. */
  1666. tp->undo_retrans = tp->retrans_out ? : -1;
  1667. }
  1668. /* Enter Loss state. If we detect SACK reneging, forget all SACK information
  1669. * and reset tags completely, otherwise preserve SACKs. If receiver
  1670. * dropped its ofo queue, we will know this due to reneging detection.
  1671. */
  1672. void tcp_enter_loss(struct sock *sk)
  1673. {
  1674. const struct inet_connection_sock *icsk = inet_csk(sk);
  1675. struct tcp_sock *tp = tcp_sk(sk);
  1676. struct net *net = sock_net(sk);
  1677. struct sk_buff *skb;
  1678. bool new_recovery = icsk->icsk_ca_state < TCP_CA_Recovery;
  1679. bool is_reneg; /* is receiver reneging on SACKs? */
  1680. bool mark_lost;
  1681. /* Reduce ssthresh if it has not yet been made inside this window. */
  1682. if (icsk->icsk_ca_state <= TCP_CA_Disorder ||
  1683. !after(tp->high_seq, tp->snd_una) ||
  1684. (icsk->icsk_ca_state == TCP_CA_Loss && !icsk->icsk_retransmits)) {
  1685. tp->prior_ssthresh = tcp_current_ssthresh(sk);
  1686. tp->snd_ssthresh = icsk->icsk_ca_ops->ssthresh(sk);
  1687. tcp_ca_event(sk, CA_EVENT_LOSS);
  1688. tcp_init_undo(tp);
  1689. }
  1690. tp->snd_cwnd = 1;
  1691. tp->snd_cwnd_cnt = 0;
  1692. tp->snd_cwnd_stamp = tcp_jiffies32;
  1693. tp->retrans_out = 0;
  1694. tp->lost_out = 0;
  1695. if (tcp_is_reno(tp))
  1696. tcp_reset_reno_sack(tp);
  1697. skb = tcp_write_queue_head(sk);
  1698. is_reneg = skb && (TCP_SKB_CB(skb)->sacked & TCPCB_SACKED_ACKED);
  1699. if (is_reneg) {
  1700. NET_INC_STATS(sock_net(sk), LINUX_MIB_TCPSACKRENEGING);
  1701. tp->sacked_out = 0;
  1702. tp->fackets_out = 0;
  1703. }
  1704. tcp_clear_all_retrans_hints(tp);
  1705. tcp_for_write_queue(skb, sk) {
  1706. if (skb == tcp_send_head(sk))
  1707. break;
  1708. mark_lost = (!(TCP_SKB_CB(skb)->sacked & TCPCB_SACKED_ACKED) ||
  1709. is_reneg);
  1710. if (mark_lost)
  1711. tcp_sum_lost(tp, skb);
  1712. TCP_SKB_CB(skb)->sacked &= (~TCPCB_TAGBITS)|TCPCB_SACKED_ACKED;
  1713. if (mark_lost) {
  1714. TCP_SKB_CB(skb)->sacked &= ~TCPCB_SACKED_ACKED;
  1715. TCP_SKB_CB(skb)->sacked |= TCPCB_LOST;
  1716. tp->lost_out += tcp_skb_pcount(skb);
  1717. }
  1718. }
  1719. tcp_verify_left_out(tp);
  1720. /* Timeout in disordered state after receiving substantial DUPACKs
  1721. * suggests that the degree of reordering is over-estimated.
  1722. */
  1723. if (icsk->icsk_ca_state <= TCP_CA_Disorder &&
  1724. tp->sacked_out >= net->ipv4.sysctl_tcp_reordering)
  1725. tp->reordering = min_t(unsigned int, tp->reordering,
  1726. net->ipv4.sysctl_tcp_reordering);
  1727. tcp_set_ca_state(sk, TCP_CA_Loss);
  1728. tp->high_seq = tp->snd_nxt;
  1729. tcp_ecn_queue_cwr(tp);
  1730. /* F-RTO RFC5682 sec 3.1 step 1: retransmit SND.UNA if no previous
  1731. * loss recovery is underway except recurring timeout(s) on
  1732. * the same SND.UNA (sec 3.2). Disable F-RTO on path MTU probing
  1733. *
  1734. * In theory F-RTO can be used repeatedly during loss recovery.
  1735. * In practice this interacts badly with broken middle-boxes that
  1736. * falsely raise the receive window, which results in repeated
  1737. * timeouts and stop-and-go behavior.
  1738. */
  1739. tp->frto = sysctl_tcp_frto &&
  1740. (new_recovery || icsk->icsk_retransmits) &&
  1741. !inet_csk(sk)->icsk_mtup.probe_size;
  1742. }
  1743. /* If ACK arrived pointing to a remembered SACK, it means that our
  1744. * remembered SACKs do not reflect real state of receiver i.e.
  1745. * receiver _host_ is heavily congested (or buggy).
  1746. *
  1747. * To avoid big spurious retransmission bursts due to transient SACK
  1748. * scoreboard oddities that look like reneging, we give the receiver a
  1749. * little time (max(RTT/2, 10ms)) to send us some more ACKs that will
  1750. * restore sanity to the SACK scoreboard. If the apparent reneging
  1751. * persists until this RTO then we'll clear the SACK scoreboard.
  1752. */
  1753. static bool tcp_check_sack_reneging(struct sock *sk, int flag)
  1754. {
  1755. if (flag & FLAG_SACK_RENEGING) {
  1756. struct tcp_sock *tp = tcp_sk(sk);
  1757. unsigned long delay = max(usecs_to_jiffies(tp->srtt_us >> 4),
  1758. msecs_to_jiffies(10));
  1759. inet_csk_reset_xmit_timer(sk, ICSK_TIME_RETRANS,
  1760. delay, TCP_RTO_MAX);
  1761. return true;
  1762. }
  1763. return false;
  1764. }
  1765. static inline int tcp_fackets_out(const struct tcp_sock *tp)
  1766. {
  1767. return tcp_is_reno(tp) ? tp->sacked_out + 1 : tp->fackets_out;
  1768. }
  1769. /* Heurestics to calculate number of duplicate ACKs. There's no dupACKs
  1770. * counter when SACK is enabled (without SACK, sacked_out is used for
  1771. * that purpose).
  1772. *
  1773. * Instead, with FACK TCP uses fackets_out that includes both SACKed
  1774. * segments up to the highest received SACK block so far and holes in
  1775. * between them.
  1776. *
  1777. * With reordering, holes may still be in flight, so RFC3517 recovery
  1778. * uses pure sacked_out (total number of SACKed segments) even though
  1779. * it violates the RFC that uses duplicate ACKs, often these are equal
  1780. * but when e.g. out-of-window ACKs or packet duplication occurs,
  1781. * they differ. Since neither occurs due to loss, TCP should really
  1782. * ignore them.
  1783. */
  1784. static inline int tcp_dupack_heuristics(const struct tcp_sock *tp)
  1785. {
  1786. return tcp_is_fack(tp) ? tp->fackets_out : tp->sacked_out + 1;
  1787. }
  1788. /* Linux NewReno/SACK/FACK/ECN state machine.
  1789. * --------------------------------------
  1790. *
  1791. * "Open" Normal state, no dubious events, fast path.
  1792. * "Disorder" In all the respects it is "Open",
  1793. * but requires a bit more attention. It is entered when
  1794. * we see some SACKs or dupacks. It is split of "Open"
  1795. * mainly to move some processing from fast path to slow one.
  1796. * "CWR" CWND was reduced due to some Congestion Notification event.
  1797. * It can be ECN, ICMP source quench, local device congestion.
  1798. * "Recovery" CWND was reduced, we are fast-retransmitting.
  1799. * "Loss" CWND was reduced due to RTO timeout or SACK reneging.
  1800. *
  1801. * tcp_fastretrans_alert() is entered:
  1802. * - each incoming ACK, if state is not "Open"
  1803. * - when arrived ACK is unusual, namely:
  1804. * * SACK
  1805. * * Duplicate ACK.
  1806. * * ECN ECE.
  1807. *
  1808. * Counting packets in flight is pretty simple.
  1809. *
  1810. * in_flight = packets_out - left_out + retrans_out
  1811. *
  1812. * packets_out is SND.NXT-SND.UNA counted in packets.
  1813. *
  1814. * retrans_out is number of retransmitted segments.
  1815. *
  1816. * left_out is number of segments left network, but not ACKed yet.
  1817. *
  1818. * left_out = sacked_out + lost_out
  1819. *
  1820. * sacked_out: Packets, which arrived to receiver out of order
  1821. * and hence not ACKed. With SACKs this number is simply
  1822. * amount of SACKed data. Even without SACKs
  1823. * it is easy to give pretty reliable estimate of this number,
  1824. * counting duplicate ACKs.
  1825. *
  1826. * lost_out: Packets lost by network. TCP has no explicit
  1827. * "loss notification" feedback from network (for now).
  1828. * It means that this number can be only _guessed_.
  1829. * Actually, it is the heuristics to predict lossage that
  1830. * distinguishes different algorithms.
  1831. *
  1832. * F.e. after RTO, when all the queue is considered as lost,
  1833. * lost_out = packets_out and in_flight = retrans_out.
  1834. *
  1835. * Essentially, we have now a few algorithms detecting
  1836. * lost packets.
  1837. *
  1838. * If the receiver supports SACK:
  1839. *
  1840. * RFC6675/3517: It is the conventional algorithm. A packet is
  1841. * considered lost if the number of higher sequence packets
  1842. * SACKed is greater than or equal the DUPACK thoreshold
  1843. * (reordering). This is implemented in tcp_mark_head_lost and
  1844. * tcp_update_scoreboard.
  1845. *
  1846. * RACK (draft-ietf-tcpm-rack-01): it is a newer algorithm
  1847. * (2017-) that checks timing instead of counting DUPACKs.
  1848. * Essentially a packet is considered lost if it's not S/ACKed
  1849. * after RTT + reordering_window, where both metrics are
  1850. * dynamically measured and adjusted. This is implemented in
  1851. * tcp_rack_mark_lost.
  1852. *
  1853. * FACK (Disabled by default. Subsumbed by RACK):
  1854. * It is the simplest heuristics. As soon as we decided
  1855. * that something is lost, we decide that _all_ not SACKed
  1856. * packets until the most forward SACK are lost. I.e.
  1857. * lost_out = fackets_out - sacked_out and left_out = fackets_out.
  1858. * It is absolutely correct estimate, if network does not reorder
  1859. * packets. And it loses any connection to reality when reordering
  1860. * takes place. We use FACK by default until reordering
  1861. * is suspected on the path to this destination.
  1862. *
  1863. * If the receiver does not support SACK:
  1864. *
  1865. * NewReno (RFC6582): in Recovery we assume that one segment
  1866. * is lost (classic Reno). While we are in Recovery and
  1867. * a partial ACK arrives, we assume that one more packet
  1868. * is lost (NewReno). This heuristics are the same in NewReno
  1869. * and SACK.
  1870. *
  1871. * Really tricky (and requiring careful tuning) part of algorithm
  1872. * is hidden in functions tcp_time_to_recover() and tcp_xmit_retransmit_queue().
  1873. * The first determines the moment _when_ we should reduce CWND and,
  1874. * hence, slow down forward transmission. In fact, it determines the moment
  1875. * when we decide that hole is caused by loss, rather than by a reorder.
  1876. *
  1877. * tcp_xmit_retransmit_queue() decides, _what_ we should retransmit to fill
  1878. * holes, caused by lost packets.
  1879. *
  1880. * And the most logically complicated part of algorithm is undo
  1881. * heuristics. We detect false retransmits due to both too early
  1882. * fast retransmit (reordering) and underestimated RTO, analyzing
  1883. * timestamps and D-SACKs. When we detect that some segments were
  1884. * retransmitted by mistake and CWND reduction was wrong, we undo
  1885. * window reduction and abort recovery phase. This logic is hidden
  1886. * inside several functions named tcp_try_undo_<something>.
  1887. */
  1888. /* This function decides, when we should leave Disordered state
  1889. * and enter Recovery phase, reducing congestion window.
  1890. *
  1891. * Main question: may we further continue forward transmission
  1892. * with the same cwnd?
  1893. */
  1894. static bool tcp_time_to_recover(struct sock *sk, int flag)
  1895. {
  1896. struct tcp_sock *tp = tcp_sk(sk);
  1897. /* Trick#1: The loss is proven. */
  1898. if (tp->lost_out)
  1899. return true;
  1900. /* Not-A-Trick#2 : Classic rule... */
  1901. if (tcp_dupack_heuristics(tp) > tp->reordering)
  1902. return true;
  1903. return false;
  1904. }
  1905. /* Detect loss in event "A" above by marking head of queue up as lost.
  1906. * For FACK or non-SACK(Reno) senders, the first "packets" number of segments
  1907. * are considered lost. For RFC3517 SACK, a segment is considered lost if it
  1908. * has at least tp->reordering SACKed seqments above it; "packets" refers to
  1909. * the maximum SACKed segments to pass before reaching this limit.
  1910. */
  1911. static void tcp_mark_head_lost(struct sock *sk, int packets, int mark_head)
  1912. {
  1913. struct tcp_sock *tp = tcp_sk(sk);
  1914. struct sk_buff *skb;
  1915. int cnt, oldcnt, lost;
  1916. unsigned int mss;
  1917. /* Use SACK to deduce losses of new sequences sent during recovery */
  1918. const u32 loss_high = tcp_is_sack(tp) ? tp->snd_nxt : tp->high_seq;
  1919. WARN_ON(packets > tp->packets_out);
  1920. if (tp->lost_skb_hint) {
  1921. skb = tp->lost_skb_hint;
  1922. cnt = tp->lost_cnt_hint;
  1923. /* Head already handled? */
  1924. if (mark_head && skb != tcp_write_queue_head(sk))
  1925. return;
  1926. } else {
  1927. skb = tcp_write_queue_head(sk);
  1928. cnt = 0;
  1929. }
  1930. tcp_for_write_queue_from(skb, sk) {
  1931. if (skb == tcp_send_head(sk))
  1932. break;
  1933. /* TODO: do this better */
  1934. /* this is not the most efficient way to do this... */
  1935. tp->lost_skb_hint = skb;
  1936. tp->lost_cnt_hint = cnt;
  1937. if (after(TCP_SKB_CB(skb)->end_seq, loss_high))
  1938. break;
  1939. oldcnt = cnt;
  1940. if (tcp_is_fack(tp) || tcp_is_reno(tp) ||
  1941. (TCP_SKB_CB(skb)->sacked & TCPCB_SACKED_ACKED))
  1942. cnt += tcp_skb_pcount(skb);
  1943. if (cnt > packets) {
  1944. if ((tcp_is_sack(tp) && !tcp_is_fack(tp)) ||
  1945. (TCP_SKB_CB(skb)->sacked & TCPCB_SACKED_ACKED) ||
  1946. (oldcnt >= packets))
  1947. break;
  1948. mss = tcp_skb_mss(skb);
  1949. /* If needed, chop off the prefix to mark as lost. */
  1950. lost = (packets - oldcnt) * mss;
  1951. if (lost < skb->len &&
  1952. tcp_fragment(sk, skb, lost, mss, GFP_ATOMIC) < 0)
  1953. break;
  1954. cnt = packets;
  1955. }
  1956. tcp_skb_mark_lost(tp, skb);
  1957. if (mark_head)
  1958. break;
  1959. }
  1960. tcp_verify_left_out(tp);
  1961. }
  1962. /* Account newly detected lost packet(s) */
  1963. static void tcp_update_scoreboard(struct sock *sk, int fast_rexmit)
  1964. {
  1965. struct tcp_sock *tp = tcp_sk(sk);
  1966. if (tcp_is_reno(tp)) {
  1967. tcp_mark_head_lost(sk, 1, 1);
  1968. } else if (tcp_is_fack(tp)) {
  1969. int lost = tp->fackets_out - tp->reordering;
  1970. if (lost <= 0)
  1971. lost = 1;
  1972. tcp_mark_head_lost(sk, lost, 0);
  1973. } else {
  1974. int sacked_upto = tp->sacked_out - tp->reordering;
  1975. if (sacked_upto >= 0)
  1976. tcp_mark_head_lost(sk, sacked_upto, 0);
  1977. else if (fast_rexmit)
  1978. tcp_mark_head_lost(sk, 1, 1);
  1979. }
  1980. }
  1981. static bool tcp_tsopt_ecr_before(const struct tcp_sock *tp, u32 when)
  1982. {
  1983. return tp->rx_opt.saw_tstamp && tp->rx_opt.rcv_tsecr &&
  1984. before(tp->rx_opt.rcv_tsecr, when);
  1985. }
  1986. /* skb is spurious retransmitted if the returned timestamp echo
  1987. * reply is prior to the skb transmission time
  1988. */
  1989. static bool tcp_skb_spurious_retrans(const struct tcp_sock *tp,
  1990. const struct sk_buff *skb)
  1991. {
  1992. return (TCP_SKB_CB(skb)->sacked & TCPCB_RETRANS) &&
  1993. tcp_tsopt_ecr_before(tp, tcp_skb_timestamp(skb));
  1994. }
  1995. /* Nothing was retransmitted or returned timestamp is less
  1996. * than timestamp of the first retransmission.
  1997. */
  1998. static inline bool tcp_packet_delayed(const struct tcp_sock *tp)
  1999. {
  2000. return !tp->retrans_stamp ||
  2001. tcp_tsopt_ecr_before(tp, tp->retrans_stamp);
  2002. }
  2003. /* Undo procedures. */
  2004. /* We can clear retrans_stamp when there are no retransmissions in the
  2005. * window. It would seem that it is trivially available for us in
  2006. * tp->retrans_out, however, that kind of assumptions doesn't consider
  2007. * what will happen if errors occur when sending retransmission for the
  2008. * second time. ...It could the that such segment has only
  2009. * TCPCB_EVER_RETRANS set at the present time. It seems that checking
  2010. * the head skb is enough except for some reneging corner cases that
  2011. * are not worth the effort.
  2012. *
  2013. * Main reason for all this complexity is the fact that connection dying
  2014. * time now depends on the validity of the retrans_stamp, in particular,
  2015. * that successive retransmissions of a segment must not advance
  2016. * retrans_stamp under any conditions.
  2017. */
  2018. static bool tcp_any_retrans_done(const struct sock *sk)
  2019. {
  2020. const struct tcp_sock *tp = tcp_sk(sk);
  2021. struct sk_buff *skb;
  2022. if (tp->retrans_out)
  2023. return true;
  2024. skb = tcp_write_queue_head(sk);
  2025. if (unlikely(skb && TCP_SKB_CB(skb)->sacked & TCPCB_EVER_RETRANS))
  2026. return true;
  2027. return false;
  2028. }
  2029. #if FASTRETRANS_DEBUG > 1
  2030. static void DBGUNDO(struct sock *sk, const char *msg)
  2031. {
  2032. struct tcp_sock *tp = tcp_sk(sk);
  2033. struct inet_sock *inet = inet_sk(sk);
  2034. if (sk->sk_family == AF_INET) {
  2035. pr_debug("Undo %s %pI4/%u c%u l%u ss%u/%u p%u\n",
  2036. msg,
  2037. &inet->inet_daddr, ntohs(inet->inet_dport),
  2038. tp->snd_cwnd, tcp_left_out(tp),
  2039. tp->snd_ssthresh, tp->prior_ssthresh,
  2040. tp->packets_out);
  2041. }
  2042. #if IS_ENABLED(CONFIG_IPV6)
  2043. else if (sk->sk_family == AF_INET6) {
  2044. pr_debug("Undo %s %pI6/%u c%u l%u ss%u/%u p%u\n",
  2045. msg,
  2046. &sk->sk_v6_daddr, ntohs(inet->inet_dport),
  2047. tp->snd_cwnd, tcp_left_out(tp),
  2048. tp->snd_ssthresh, tp->prior_ssthresh,
  2049. tp->packets_out);
  2050. }
  2051. #endif
  2052. }
  2053. #else
  2054. #define DBGUNDO(x...) do { } while (0)
  2055. #endif
  2056. static void tcp_undo_cwnd_reduction(struct sock *sk, bool unmark_loss)
  2057. {
  2058. struct tcp_sock *tp = tcp_sk(sk);
  2059. if (unmark_loss) {
  2060. struct sk_buff *skb;
  2061. tcp_for_write_queue(skb, sk) {
  2062. if (skb == tcp_send_head(sk))
  2063. break;
  2064. TCP_SKB_CB(skb)->sacked &= ~TCPCB_LOST;
  2065. }
  2066. tp->lost_out = 0;
  2067. tcp_clear_all_retrans_hints(tp);
  2068. }
  2069. if (tp->prior_ssthresh) {
  2070. const struct inet_connection_sock *icsk = inet_csk(sk);
  2071. tp->snd_cwnd = icsk->icsk_ca_ops->undo_cwnd(sk);
  2072. if (tp->prior_ssthresh > tp->snd_ssthresh) {
  2073. tp->snd_ssthresh = tp->prior_ssthresh;
  2074. tcp_ecn_withdraw_cwr(tp);
  2075. }
  2076. }
  2077. tp->snd_cwnd_stamp = tcp_jiffies32;
  2078. tp->undo_marker = 0;
  2079. }
  2080. static inline bool tcp_may_undo(const struct tcp_sock *tp)
  2081. {
  2082. return tp->undo_marker && (!tp->undo_retrans || tcp_packet_delayed(tp));
  2083. }
  2084. /* People celebrate: "We love our President!" */
  2085. static bool tcp_try_undo_recovery(struct sock *sk)
  2086. {
  2087. struct tcp_sock *tp = tcp_sk(sk);
  2088. if (tcp_may_undo(tp)) {
  2089. int mib_idx;
  2090. /* Happy end! We did not retransmit anything
  2091. * or our original transmission succeeded.
  2092. */
  2093. DBGUNDO(sk, inet_csk(sk)->icsk_ca_state == TCP_CA_Loss ? "loss" : "retrans");
  2094. tcp_undo_cwnd_reduction(sk, false);
  2095. if (inet_csk(sk)->icsk_ca_state == TCP_CA_Loss)
  2096. mib_idx = LINUX_MIB_TCPLOSSUNDO;
  2097. else
  2098. mib_idx = LINUX_MIB_TCPFULLUNDO;
  2099. NET_INC_STATS(sock_net(sk), mib_idx);
  2100. }
  2101. if (tp->snd_una == tp->high_seq && tcp_is_reno(tp)) {
  2102. /* Hold old state until something *above* high_seq
  2103. * is ACKed. For Reno it is MUST to prevent false
  2104. * fast retransmits (RFC2582). SACK TCP is safe. */
  2105. if (!tcp_any_retrans_done(sk))
  2106. tp->retrans_stamp = 0;
  2107. return true;
  2108. }
  2109. tcp_set_ca_state(sk, TCP_CA_Open);
  2110. return false;
  2111. }
  2112. /* Try to undo cwnd reduction, because D-SACKs acked all retransmitted data */
  2113. static bool tcp_try_undo_dsack(struct sock *sk)
  2114. {
  2115. struct tcp_sock *tp = tcp_sk(sk);
  2116. if (tp->undo_marker && !tp->undo_retrans) {
  2117. DBGUNDO(sk, "D-SACK");
  2118. tcp_undo_cwnd_reduction(sk, false);
  2119. NET_INC_STATS(sock_net(sk), LINUX_MIB_TCPDSACKUNDO);
  2120. return true;
  2121. }
  2122. return false;
  2123. }
  2124. /* Undo during loss recovery after partial ACK or using F-RTO. */
  2125. static bool tcp_try_undo_loss(struct sock *sk, bool frto_undo)
  2126. {
  2127. struct tcp_sock *tp = tcp_sk(sk);
  2128. if (frto_undo || tcp_may_undo(tp)) {
  2129. tcp_undo_cwnd_reduction(sk, true);
  2130. DBGUNDO(sk, "partial loss");
  2131. NET_INC_STATS(sock_net(sk), LINUX_MIB_TCPLOSSUNDO);
  2132. if (frto_undo)
  2133. NET_INC_STATS(sock_net(sk),
  2134. LINUX_MIB_TCPSPURIOUSRTOS);
  2135. inet_csk(sk)->icsk_retransmits = 0;
  2136. if (frto_undo || tcp_is_sack(tp))
  2137. tcp_set_ca_state(sk, TCP_CA_Open);
  2138. return true;
  2139. }
  2140. return false;
  2141. }
  2142. /* The cwnd reduction in CWR and Recovery uses the PRR algorithm in RFC 6937.
  2143. * It computes the number of packets to send (sndcnt) based on packets newly
  2144. * delivered:
  2145. * 1) If the packets in flight is larger than ssthresh, PRR spreads the
  2146. * cwnd reductions across a full RTT.
  2147. * 2) Otherwise PRR uses packet conservation to send as much as delivered.
  2148. * But when the retransmits are acked without further losses, PRR
  2149. * slow starts cwnd up to ssthresh to speed up the recovery.
  2150. */
  2151. static void tcp_init_cwnd_reduction(struct sock *sk)
  2152. {
  2153. struct tcp_sock *tp = tcp_sk(sk);
  2154. tp->high_seq = tp->snd_nxt;
  2155. tp->tlp_high_seq = 0;
  2156. tp->snd_cwnd_cnt = 0;
  2157. tp->prior_cwnd = tp->snd_cwnd;
  2158. tp->prr_delivered = 0;
  2159. tp->prr_out = 0;
  2160. tp->snd_ssthresh = inet_csk(sk)->icsk_ca_ops->ssthresh(sk);
  2161. tcp_ecn_queue_cwr(tp);
  2162. }
  2163. void tcp_cwnd_reduction(struct sock *sk, int newly_acked_sacked, int flag)
  2164. {
  2165. struct tcp_sock *tp = tcp_sk(sk);
  2166. int sndcnt = 0;
  2167. int delta = tp->snd_ssthresh - tcp_packets_in_flight(tp);
  2168. if (newly_acked_sacked <= 0 || WARN_ON_ONCE(!tp->prior_cwnd))
  2169. return;
  2170. tp->prr_delivered += newly_acked_sacked;
  2171. if (delta < 0) {
  2172. u64 dividend = (u64)tp->snd_ssthresh * tp->prr_delivered +
  2173. tp->prior_cwnd - 1;
  2174. sndcnt = div_u64(dividend, tp->prior_cwnd) - tp->prr_out;
  2175. } else if ((flag & FLAG_RETRANS_DATA_ACKED) &&
  2176. !(flag & FLAG_LOST_RETRANS)) {
  2177. sndcnt = min_t(int, delta,
  2178. max_t(int, tp->prr_delivered - tp->prr_out,
  2179. newly_acked_sacked) + 1);
  2180. } else {
  2181. sndcnt = min(delta, newly_acked_sacked);
  2182. }
  2183. /* Force a fast retransmit upon entering fast recovery */
  2184. sndcnt = max(sndcnt, (tp->prr_out ? 0 : 1));
  2185. tp->snd_cwnd = tcp_packets_in_flight(tp) + sndcnt;
  2186. }
  2187. static inline void tcp_end_cwnd_reduction(struct sock *sk)
  2188. {
  2189. struct tcp_sock *tp = tcp_sk(sk);
  2190. if (inet_csk(sk)->icsk_ca_ops->cong_control)
  2191. return;
  2192. /* Reset cwnd to ssthresh in CWR or Recovery (unless it's undone) */
  2193. if (inet_csk(sk)->icsk_ca_state == TCP_CA_CWR ||
  2194. (tp->undo_marker && tp->snd_ssthresh < TCP_INFINITE_SSTHRESH)) {
  2195. tp->snd_cwnd = tp->snd_ssthresh;
  2196. tp->snd_cwnd_stamp = tcp_jiffies32;
  2197. }
  2198. tcp_ca_event(sk, CA_EVENT_COMPLETE_CWR);
  2199. }
  2200. /* Enter CWR state. Disable cwnd undo since congestion is proven with ECN */
  2201. void tcp_enter_cwr(struct sock *sk)
  2202. {
  2203. struct tcp_sock *tp = tcp_sk(sk);
  2204. tp->prior_ssthresh = 0;
  2205. if (inet_csk(sk)->icsk_ca_state < TCP_CA_CWR) {
  2206. tp->undo_marker = 0;
  2207. tcp_init_cwnd_reduction(sk);
  2208. tcp_set_ca_state(sk, TCP_CA_CWR);
  2209. }
  2210. }
  2211. EXPORT_SYMBOL(tcp_enter_cwr);
  2212. static void tcp_try_keep_open(struct sock *sk)
  2213. {
  2214. struct tcp_sock *tp = tcp_sk(sk);
  2215. int state = TCP_CA_Open;
  2216. if (tcp_left_out(tp) || tcp_any_retrans_done(sk))
  2217. state = TCP_CA_Disorder;
  2218. if (inet_csk(sk)->icsk_ca_state != state) {
  2219. tcp_set_ca_state(sk, state);
  2220. tp->high_seq = tp->snd_nxt;
  2221. }
  2222. }
  2223. static void tcp_try_to_open(struct sock *sk, int flag)
  2224. {
  2225. struct tcp_sock *tp = tcp_sk(sk);
  2226. tcp_verify_left_out(tp);
  2227. if (!tcp_any_retrans_done(sk))
  2228. tp->retrans_stamp = 0;
  2229. if (flag & FLAG_ECE)
  2230. tcp_enter_cwr(sk);
  2231. if (inet_csk(sk)->icsk_ca_state != TCP_CA_CWR) {
  2232. tcp_try_keep_open(sk);
  2233. }
  2234. }
  2235. static void tcp_mtup_probe_failed(struct sock *sk)
  2236. {
  2237. struct inet_connection_sock *icsk = inet_csk(sk);
  2238. icsk->icsk_mtup.search_high = icsk->icsk_mtup.probe_size - 1;
  2239. icsk->icsk_mtup.probe_size = 0;
  2240. NET_INC_STATS(sock_net(sk), LINUX_MIB_TCPMTUPFAIL);
  2241. }
  2242. static void tcp_mtup_probe_success(struct sock *sk)
  2243. {
  2244. struct tcp_sock *tp = tcp_sk(sk);
  2245. struct inet_connection_sock *icsk = inet_csk(sk);
  2246. /* FIXME: breaks with very large cwnd */
  2247. tp->prior_ssthresh = tcp_current_ssthresh(sk);
  2248. tp->snd_cwnd = tp->snd_cwnd *
  2249. tcp_mss_to_mtu(sk, tp->mss_cache) /
  2250. icsk->icsk_mtup.probe_size;
  2251. tp->snd_cwnd_cnt = 0;
  2252. tp->snd_cwnd_stamp = tcp_jiffies32;
  2253. tp->snd_ssthresh = tcp_current_ssthresh(sk);
  2254. icsk->icsk_mtup.search_low = icsk->icsk_mtup.probe_size;
  2255. icsk->icsk_mtup.probe_size = 0;
  2256. tcp_sync_mss(sk, icsk->icsk_pmtu_cookie);
  2257. NET_INC_STATS(sock_net(sk), LINUX_MIB_TCPMTUPSUCCESS);
  2258. }
  2259. /* Do a simple retransmit without using the backoff mechanisms in
  2260. * tcp_timer. This is used for path mtu discovery.
  2261. * The socket is already locked here.
  2262. */
  2263. void tcp_simple_retransmit(struct sock *sk)
  2264. {
  2265. const struct inet_connection_sock *icsk = inet_csk(sk);
  2266. struct tcp_sock *tp = tcp_sk(sk);
  2267. struct sk_buff *skb;
  2268. unsigned int mss = tcp_current_mss(sk);
  2269. u32 prior_lost = tp->lost_out;
  2270. tcp_for_write_queue(skb, sk) {
  2271. if (skb == tcp_send_head(sk))
  2272. break;
  2273. if (tcp_skb_seglen(skb) > mss &&
  2274. !(TCP_SKB_CB(skb)->sacked & TCPCB_SACKED_ACKED)) {
  2275. if (TCP_SKB_CB(skb)->sacked & TCPCB_SACKED_RETRANS) {
  2276. TCP_SKB_CB(skb)->sacked &= ~TCPCB_SACKED_RETRANS;
  2277. tp->retrans_out -= tcp_skb_pcount(skb);
  2278. }
  2279. tcp_skb_mark_lost_uncond_verify(tp, skb);
  2280. }
  2281. }
  2282. tcp_clear_retrans_hints_partial(tp);
  2283. if (prior_lost == tp->lost_out)
  2284. return;
  2285. if (tcp_is_reno(tp))
  2286. tcp_limit_reno_sacked(tp);
  2287. tcp_verify_left_out(tp);
  2288. /* Don't muck with the congestion window here.
  2289. * Reason is that we do not increase amount of _data_
  2290. * in network, but units changed and effective
  2291. * cwnd/ssthresh really reduced now.
  2292. */
  2293. if (icsk->icsk_ca_state != TCP_CA_Loss) {
  2294. tp->high_seq = tp->snd_nxt;
  2295. tp->snd_ssthresh = tcp_current_ssthresh(sk);
  2296. tp->prior_ssthresh = 0;
  2297. tp->undo_marker = 0;
  2298. tcp_set_ca_state(sk, TCP_CA_Loss);
  2299. }
  2300. tcp_xmit_retransmit_queue(sk);
  2301. }
  2302. EXPORT_SYMBOL(tcp_simple_retransmit);
  2303. void tcp_enter_recovery(struct sock *sk, bool ece_ack)
  2304. {
  2305. struct tcp_sock *tp = tcp_sk(sk);
  2306. int mib_idx;
  2307. if (tcp_is_reno(tp))
  2308. mib_idx = LINUX_MIB_TCPRENORECOVERY;
  2309. else
  2310. mib_idx = LINUX_MIB_TCPSACKRECOVERY;
  2311. NET_INC_STATS(sock_net(sk), mib_idx);
  2312. tp->prior_ssthresh = 0;
  2313. tcp_init_undo(tp);
  2314. if (!tcp_in_cwnd_reduction(sk)) {
  2315. if (!ece_ack)
  2316. tp->prior_ssthresh = tcp_current_ssthresh(sk);
  2317. tcp_init_cwnd_reduction(sk);
  2318. }
  2319. tcp_set_ca_state(sk, TCP_CA_Recovery);
  2320. }
  2321. /* Process an ACK in CA_Loss state. Move to CA_Open if lost data are
  2322. * recovered or spurious. Otherwise retransmits more on partial ACKs.
  2323. */
  2324. static void tcp_process_loss(struct sock *sk, int flag, bool is_dupack,
  2325. int *rexmit)
  2326. {
  2327. struct tcp_sock *tp = tcp_sk(sk);
  2328. bool recovered = !before(tp->snd_una, tp->high_seq);
  2329. if ((flag & FLAG_SND_UNA_ADVANCED) &&
  2330. tcp_try_undo_loss(sk, false))
  2331. return;
  2332. /* The ACK (s)acks some never-retransmitted data meaning not all
  2333. * the data packets before the timeout were lost. Therefore we
  2334. * undo the congestion window and state. This is essentially
  2335. * the operation in F-RTO (RFC5682 section 3.1 step 3.b). Since
  2336. * a retransmitted skb is permantly marked, we can apply such an
  2337. * operation even if F-RTO was not used.
  2338. */
  2339. if ((flag & FLAG_ORIG_SACK_ACKED) &&
  2340. tcp_try_undo_loss(sk, tp->undo_marker))
  2341. return;
  2342. if (tp->frto) { /* F-RTO RFC5682 sec 3.1 (sack enhanced version). */
  2343. if (after(tp->snd_nxt, tp->high_seq)) {
  2344. if (flag & FLAG_DATA_SACKED || is_dupack)
  2345. tp->frto = 0; /* Step 3.a. loss was real */
  2346. } else if (flag & FLAG_SND_UNA_ADVANCED && !recovered) {
  2347. tp->high_seq = tp->snd_nxt;
  2348. /* Step 2.b. Try send new data (but deferred until cwnd
  2349. * is updated in tcp_ack()). Otherwise fall back to
  2350. * the conventional recovery.
  2351. */
  2352. if (tcp_send_head(sk) &&
  2353. after(tcp_wnd_end(tp), tp->snd_nxt)) {
  2354. *rexmit = REXMIT_NEW;
  2355. return;
  2356. }
  2357. tp->frto = 0;
  2358. }
  2359. }
  2360. if (recovered) {
  2361. /* F-RTO RFC5682 sec 3.1 step 2.a and 1st part of step 3.a */
  2362. tcp_try_undo_recovery(sk);
  2363. return;
  2364. }
  2365. if (tcp_is_reno(tp)) {
  2366. /* A Reno DUPACK means new data in F-RTO step 2.b above are
  2367. * delivered. Lower inflight to clock out (re)tranmissions.
  2368. */
  2369. if (after(tp->snd_nxt, tp->high_seq) && is_dupack)
  2370. tcp_add_reno_sack(sk);
  2371. else if (flag & FLAG_SND_UNA_ADVANCED)
  2372. tcp_reset_reno_sack(tp);
  2373. }
  2374. *rexmit = REXMIT_LOST;
  2375. }
  2376. /* Undo during fast recovery after partial ACK. */
  2377. static bool tcp_try_undo_partial(struct sock *sk, const int acked)
  2378. {
  2379. struct tcp_sock *tp = tcp_sk(sk);
  2380. if (tp->undo_marker && tcp_packet_delayed(tp)) {
  2381. /* Plain luck! Hole if filled with delayed
  2382. * packet, rather than with a retransmit.
  2383. */
  2384. tcp_update_reordering(sk, tcp_fackets_out(tp) + acked, 1);
  2385. /* We are getting evidence that the reordering degree is higher
  2386. * than we realized. If there are no retransmits out then we
  2387. * can undo. Otherwise we clock out new packets but do not
  2388. * mark more packets lost or retransmit more.
  2389. */
  2390. if (tp->retrans_out)
  2391. return true;
  2392. if (!tcp_any_retrans_done(sk))
  2393. tp->retrans_stamp = 0;
  2394. DBGUNDO(sk, "partial recovery");
  2395. tcp_undo_cwnd_reduction(sk, true);
  2396. NET_INC_STATS(sock_net(sk), LINUX_MIB_TCPPARTIALUNDO);
  2397. tcp_try_keep_open(sk);
  2398. return true;
  2399. }
  2400. return false;
  2401. }
  2402. static void tcp_rack_identify_loss(struct sock *sk, int *ack_flag)
  2403. {
  2404. struct tcp_sock *tp = tcp_sk(sk);
  2405. /* Use RACK to detect loss */
  2406. if (sysctl_tcp_recovery & TCP_RACK_LOSS_DETECTION) {
  2407. u32 prior_retrans = tp->retrans_out;
  2408. tcp_rack_mark_lost(sk);
  2409. if (prior_retrans > tp->retrans_out)
  2410. *ack_flag |= FLAG_LOST_RETRANS;
  2411. }
  2412. }
  2413. /* Process an event, which can update packets-in-flight not trivially.
  2414. * Main goal of this function is to calculate new estimate for left_out,
  2415. * taking into account both packets sitting in receiver's buffer and
  2416. * packets lost by network.
  2417. *
  2418. * Besides that it updates the congestion state when packet loss or ECN
  2419. * is detected. But it does not reduce the cwnd, it is done by the
  2420. * congestion control later.
  2421. *
  2422. * It does _not_ decide what to send, it is made in function
  2423. * tcp_xmit_retransmit_queue().
  2424. */
  2425. static void tcp_fastretrans_alert(struct sock *sk, const int acked,
  2426. bool is_dupack, int *ack_flag, int *rexmit)
  2427. {
  2428. struct inet_connection_sock *icsk = inet_csk(sk);
  2429. struct tcp_sock *tp = tcp_sk(sk);
  2430. int fast_rexmit = 0, flag = *ack_flag;
  2431. bool do_lost = is_dupack || ((flag & FLAG_DATA_SACKED) &&
  2432. (tcp_fackets_out(tp) > tp->reordering));
  2433. if (WARN_ON(!tp->packets_out && tp->sacked_out))
  2434. tp->sacked_out = 0;
  2435. if (WARN_ON(!tp->sacked_out && tp->fackets_out))
  2436. tp->fackets_out = 0;
  2437. /* Now state machine starts.
  2438. * A. ECE, hence prohibit cwnd undoing, the reduction is required. */
  2439. if (flag & FLAG_ECE)
  2440. tp->prior_ssthresh = 0;
  2441. /* B. In all the states check for reneging SACKs. */
  2442. if (tcp_check_sack_reneging(sk, flag))
  2443. return;
  2444. /* C. Check consistency of the current state. */
  2445. tcp_verify_left_out(tp);
  2446. /* D. Check state exit conditions. State can be terminated
  2447. * when high_seq is ACKed. */
  2448. if (icsk->icsk_ca_state == TCP_CA_Open) {
  2449. WARN_ON(tp->retrans_out != 0);
  2450. tp->retrans_stamp = 0;
  2451. } else if (!before(tp->snd_una, tp->high_seq)) {
  2452. switch (icsk->icsk_ca_state) {
  2453. case TCP_CA_CWR:
  2454. /* CWR is to be held something *above* high_seq
  2455. * is ACKed for CWR bit to reach receiver. */
  2456. if (tp->snd_una != tp->high_seq) {
  2457. tcp_end_cwnd_reduction(sk);
  2458. tcp_set_ca_state(sk, TCP_CA_Open);
  2459. }
  2460. break;
  2461. case TCP_CA_Recovery:
  2462. if (tcp_is_reno(tp))
  2463. tcp_reset_reno_sack(tp);
  2464. if (tcp_try_undo_recovery(sk))
  2465. return;
  2466. tcp_end_cwnd_reduction(sk);
  2467. break;
  2468. }
  2469. }
  2470. /* E. Process state. */
  2471. switch (icsk->icsk_ca_state) {
  2472. case TCP_CA_Recovery:
  2473. if (!(flag & FLAG_SND_UNA_ADVANCED)) {
  2474. if (tcp_is_reno(tp) && is_dupack)
  2475. tcp_add_reno_sack(sk);
  2476. } else {
  2477. if (tcp_try_undo_partial(sk, acked))
  2478. return;
  2479. /* Partial ACK arrived. Force fast retransmit. */
  2480. do_lost = tcp_is_reno(tp) ||
  2481. tcp_fackets_out(tp) > tp->reordering;
  2482. }
  2483. if (tcp_try_undo_dsack(sk)) {
  2484. tcp_try_keep_open(sk);
  2485. return;
  2486. }
  2487. tcp_rack_identify_loss(sk, ack_flag);
  2488. break;
  2489. case TCP_CA_Loss:
  2490. tcp_process_loss(sk, flag, is_dupack, rexmit);
  2491. tcp_rack_identify_loss(sk, ack_flag);
  2492. if (!(icsk->icsk_ca_state == TCP_CA_Open ||
  2493. (*ack_flag & FLAG_LOST_RETRANS)))
  2494. return;
  2495. /* Change state if cwnd is undone or retransmits are lost */
  2496. default:
  2497. if (tcp_is_reno(tp)) {
  2498. if (flag & FLAG_SND_UNA_ADVANCED)
  2499. tcp_reset_reno_sack(tp);
  2500. if (is_dupack)
  2501. tcp_add_reno_sack(sk);
  2502. }
  2503. if (icsk->icsk_ca_state <= TCP_CA_Disorder)
  2504. tcp_try_undo_dsack(sk);
  2505. tcp_rack_identify_loss(sk, ack_flag);
  2506. if (!tcp_time_to_recover(sk, flag)) {
  2507. tcp_try_to_open(sk, flag);
  2508. return;
  2509. }
  2510. /* MTU probe failure: don't reduce cwnd */
  2511. if (icsk->icsk_ca_state < TCP_CA_CWR &&
  2512. icsk->icsk_mtup.probe_size &&
  2513. tp->snd_una == tp->mtu_probe.probe_seq_start) {
  2514. tcp_mtup_probe_failed(sk);
  2515. /* Restores the reduction we did in tcp_mtup_probe() */
  2516. tp->snd_cwnd++;
  2517. tcp_simple_retransmit(sk);
  2518. return;
  2519. }
  2520. /* Otherwise enter Recovery state */
  2521. tcp_enter_recovery(sk, (flag & FLAG_ECE));
  2522. fast_rexmit = 1;
  2523. }
  2524. if (do_lost)
  2525. tcp_update_scoreboard(sk, fast_rexmit);
  2526. *rexmit = REXMIT_LOST;
  2527. }
  2528. static void tcp_update_rtt_min(struct sock *sk, u32 rtt_us)
  2529. {
  2530. struct tcp_sock *tp = tcp_sk(sk);
  2531. u32 wlen = sysctl_tcp_min_rtt_wlen * HZ;
  2532. minmax_running_min(&tp->rtt_min, wlen, tcp_jiffies32,
  2533. rtt_us ? : jiffies_to_usecs(1));
  2534. }
  2535. static bool tcp_ack_update_rtt(struct sock *sk, const int flag,
  2536. long seq_rtt_us, long sack_rtt_us,
  2537. long ca_rtt_us, struct rate_sample *rs)
  2538. {
  2539. const struct tcp_sock *tp = tcp_sk(sk);
  2540. /* Prefer RTT measured from ACK's timing to TS-ECR. This is because
  2541. * broken middle-boxes or peers may corrupt TS-ECR fields. But
  2542. * Karn's algorithm forbids taking RTT if some retransmitted data
  2543. * is acked (RFC6298).
  2544. */
  2545. if (seq_rtt_us < 0)
  2546. seq_rtt_us = sack_rtt_us;
  2547. /* RTTM Rule: A TSecr value received in a segment is used to
  2548. * update the averaged RTT measurement only if the segment
  2549. * acknowledges some new data, i.e., only if it advances the
  2550. * left edge of the send window.
  2551. * See draft-ietf-tcplw-high-performance-00, section 3.3.
  2552. */
  2553. if (seq_rtt_us < 0 && tp->rx_opt.saw_tstamp && tp->rx_opt.rcv_tsecr &&
  2554. flag & FLAG_ACKED) {
  2555. u32 delta = tcp_time_stamp(tp) - tp->rx_opt.rcv_tsecr;
  2556. u32 delta_us = delta * (USEC_PER_SEC / TCP_TS_HZ);
  2557. seq_rtt_us = ca_rtt_us = delta_us;
  2558. }
  2559. rs->rtt_us = ca_rtt_us; /* RTT of last (S)ACKed packet (or -1) */
  2560. if (seq_rtt_us < 0)
  2561. return false;
  2562. /* ca_rtt_us >= 0 is counting on the invariant that ca_rtt_us is
  2563. * always taken together with ACK, SACK, or TS-opts. Any negative
  2564. * values will be skipped with the seq_rtt_us < 0 check above.
  2565. */
  2566. tcp_update_rtt_min(sk, ca_rtt_us);
  2567. tcp_rtt_estimator(sk, seq_rtt_us);
  2568. tcp_set_rto(sk);
  2569. /* RFC6298: only reset backoff on valid RTT measurement. */
  2570. inet_csk(sk)->icsk_backoff = 0;
  2571. return true;
  2572. }
  2573. /* Compute time elapsed between (last) SYNACK and the ACK completing 3WHS. */
  2574. void tcp_synack_rtt_meas(struct sock *sk, struct request_sock *req)
  2575. {
  2576. struct rate_sample rs;
  2577. long rtt_us = -1L;
  2578. if (req && !req->num_retrans && tcp_rsk(req)->snt_synack)
  2579. rtt_us = tcp_stamp_us_delta(tcp_clock_us(), tcp_rsk(req)->snt_synack);
  2580. tcp_ack_update_rtt(sk, FLAG_SYN_ACKED, rtt_us, -1L, rtt_us, &rs);
  2581. }
  2582. static void tcp_cong_avoid(struct sock *sk, u32 ack, u32 acked)
  2583. {
  2584. const struct inet_connection_sock *icsk = inet_csk(sk);
  2585. icsk->icsk_ca_ops->cong_avoid(sk, ack, acked);
  2586. tcp_sk(sk)->snd_cwnd_stamp = tcp_jiffies32;
  2587. }
  2588. /* Restart timer after forward progress on connection.
  2589. * RFC2988 recommends to restart timer to now+rto.
  2590. */
  2591. void tcp_rearm_rto(struct sock *sk)
  2592. {
  2593. const struct inet_connection_sock *icsk = inet_csk(sk);
  2594. struct tcp_sock *tp = tcp_sk(sk);
  2595. /* If the retrans timer is currently being used by Fast Open
  2596. * for SYN-ACK retrans purpose, stay put.
  2597. */
  2598. if (tp->fastopen_rsk)
  2599. return;
  2600. if (!tp->packets_out) {
  2601. inet_csk_clear_xmit_timer(sk, ICSK_TIME_RETRANS);
  2602. } else {
  2603. u32 rto = inet_csk(sk)->icsk_rto;
  2604. /* Offset the time elapsed after installing regular RTO */
  2605. if (icsk->icsk_pending == ICSK_TIME_REO_TIMEOUT ||
  2606. icsk->icsk_pending == ICSK_TIME_LOSS_PROBE) {
  2607. struct sk_buff *skb = tcp_write_queue_head(sk);
  2608. u64 rto_time_stamp = skb->skb_mstamp +
  2609. jiffies_to_usecs(rto);
  2610. s64 delta_us = rto_time_stamp - tp->tcp_mstamp;
  2611. /* delta_us may not be positive if the socket is locked
  2612. * when the retrans timer fires and is rescheduled.
  2613. */
  2614. if (delta_us > 0)
  2615. rto = usecs_to_jiffies(delta_us);
  2616. }
  2617. inet_csk_reset_xmit_timer(sk, ICSK_TIME_RETRANS, rto,
  2618. TCP_RTO_MAX);
  2619. }
  2620. }
  2621. /* If we get here, the whole TSO packet has not been acked. */
  2622. static u32 tcp_tso_acked(struct sock *sk, struct sk_buff *skb)
  2623. {
  2624. struct tcp_sock *tp = tcp_sk(sk);
  2625. u32 packets_acked;
  2626. BUG_ON(!after(TCP_SKB_CB(skb)->end_seq, tp->snd_una));
  2627. packets_acked = tcp_skb_pcount(skb);
  2628. if (tcp_trim_head(sk, skb, tp->snd_una - TCP_SKB_CB(skb)->seq))
  2629. return 0;
  2630. packets_acked -= tcp_skb_pcount(skb);
  2631. if (packets_acked) {
  2632. BUG_ON(tcp_skb_pcount(skb) == 0);
  2633. BUG_ON(!before(TCP_SKB_CB(skb)->seq, TCP_SKB_CB(skb)->end_seq));
  2634. }
  2635. return packets_acked;
  2636. }
  2637. static void tcp_ack_tstamp(struct sock *sk, struct sk_buff *skb,
  2638. u32 prior_snd_una)
  2639. {
  2640. const struct skb_shared_info *shinfo;
  2641. /* Avoid cache line misses to get skb_shinfo() and shinfo->tx_flags */
  2642. if (likely(!TCP_SKB_CB(skb)->txstamp_ack))
  2643. return;
  2644. shinfo = skb_shinfo(skb);
  2645. if (!before(shinfo->tskey, prior_snd_una) &&
  2646. before(shinfo->tskey, tcp_sk(sk)->snd_una))
  2647. __skb_tstamp_tx(skb, NULL, sk, SCM_TSTAMP_ACK);
  2648. }
  2649. /* Remove acknowledged frames from the retransmission queue. If our packet
  2650. * is before the ack sequence we can discard it as it's confirmed to have
  2651. * arrived at the other end.
  2652. */
  2653. static int tcp_clean_rtx_queue(struct sock *sk, int prior_fackets,
  2654. u32 prior_snd_una, int *acked,
  2655. struct tcp_sacktag_state *sack)
  2656. {
  2657. const struct inet_connection_sock *icsk = inet_csk(sk);
  2658. u64 first_ackt, last_ackt;
  2659. struct tcp_sock *tp = tcp_sk(sk);
  2660. u32 prior_sacked = tp->sacked_out;
  2661. u32 reord = tp->packets_out;
  2662. bool fully_acked = true;
  2663. long sack_rtt_us = -1L;
  2664. long seq_rtt_us = -1L;
  2665. long ca_rtt_us = -1L;
  2666. struct sk_buff *skb;
  2667. u32 pkts_acked = 0;
  2668. u32 last_in_flight = 0;
  2669. bool rtt_update;
  2670. int flag = 0;
  2671. first_ackt = 0;
  2672. while ((skb = tcp_write_queue_head(sk)) && skb != tcp_send_head(sk)) {
  2673. struct tcp_skb_cb *scb = TCP_SKB_CB(skb);
  2674. u8 sacked = scb->sacked;
  2675. u32 acked_pcount;
  2676. tcp_ack_tstamp(sk, skb, prior_snd_una);
  2677. /* Determine how many packets and what bytes were acked, tso and else */
  2678. if (after(scb->end_seq, tp->snd_una)) {
  2679. if (tcp_skb_pcount(skb) == 1 ||
  2680. !after(tp->snd_una, scb->seq))
  2681. break;
  2682. acked_pcount = tcp_tso_acked(sk, skb);
  2683. if (!acked_pcount)
  2684. break;
  2685. fully_acked = false;
  2686. } else {
  2687. /* Speedup tcp_unlink_write_queue() and next loop */
  2688. prefetchw(skb->next);
  2689. acked_pcount = tcp_skb_pcount(skb);
  2690. }
  2691. if (unlikely(sacked & TCPCB_RETRANS)) {
  2692. if (sacked & TCPCB_SACKED_RETRANS)
  2693. tp->retrans_out -= acked_pcount;
  2694. flag |= FLAG_RETRANS_DATA_ACKED;
  2695. } else if (!(sacked & TCPCB_SACKED_ACKED)) {
  2696. last_ackt = skb->skb_mstamp;
  2697. WARN_ON_ONCE(last_ackt == 0);
  2698. if (!first_ackt)
  2699. first_ackt = last_ackt;
  2700. last_in_flight = TCP_SKB_CB(skb)->tx.in_flight;
  2701. reord = min(pkts_acked, reord);
  2702. if (!after(scb->end_seq, tp->high_seq))
  2703. flag |= FLAG_ORIG_SACK_ACKED;
  2704. }
  2705. if (sacked & TCPCB_SACKED_ACKED) {
  2706. tp->sacked_out -= acked_pcount;
  2707. } else if (tcp_is_sack(tp)) {
  2708. tp->delivered += acked_pcount;
  2709. if (!tcp_skb_spurious_retrans(tp, skb))
  2710. tcp_rack_advance(tp, sacked, scb->end_seq,
  2711. skb->skb_mstamp);
  2712. }
  2713. if (sacked & TCPCB_LOST)
  2714. tp->lost_out -= acked_pcount;
  2715. tp->packets_out -= acked_pcount;
  2716. pkts_acked += acked_pcount;
  2717. tcp_rate_skb_delivered(sk, skb, sack->rate);
  2718. /* Initial outgoing SYN's get put onto the write_queue
  2719. * just like anything else we transmit. It is not
  2720. * true data, and if we misinform our callers that
  2721. * this ACK acks real data, we will erroneously exit
  2722. * connection startup slow start one packet too
  2723. * quickly. This is severely frowned upon behavior.
  2724. */
  2725. if (likely(!(scb->tcp_flags & TCPHDR_SYN))) {
  2726. flag |= FLAG_DATA_ACKED;
  2727. } else {
  2728. flag |= FLAG_SYN_ACKED;
  2729. tp->retrans_stamp = 0;
  2730. }
  2731. if (!fully_acked)
  2732. break;
  2733. tcp_unlink_write_queue(skb, sk);
  2734. sk_wmem_free_skb(sk, skb);
  2735. if (unlikely(skb == tp->retransmit_skb_hint))
  2736. tp->retransmit_skb_hint = NULL;
  2737. if (unlikely(skb == tp->lost_skb_hint))
  2738. tp->lost_skb_hint = NULL;
  2739. }
  2740. if (!skb)
  2741. tcp_chrono_stop(sk, TCP_CHRONO_BUSY);
  2742. if (likely(between(tp->snd_up, prior_snd_una, tp->snd_una)))
  2743. tp->snd_up = tp->snd_una;
  2744. if (skb && (TCP_SKB_CB(skb)->sacked & TCPCB_SACKED_ACKED))
  2745. flag |= FLAG_SACK_RENEGING;
  2746. if (likely(first_ackt) && !(flag & FLAG_RETRANS_DATA_ACKED)) {
  2747. seq_rtt_us = tcp_stamp_us_delta(tp->tcp_mstamp, first_ackt);
  2748. ca_rtt_us = tcp_stamp_us_delta(tp->tcp_mstamp, last_ackt);
  2749. }
  2750. if (sack->first_sackt) {
  2751. sack_rtt_us = tcp_stamp_us_delta(tp->tcp_mstamp, sack->first_sackt);
  2752. ca_rtt_us = tcp_stamp_us_delta(tp->tcp_mstamp, sack->last_sackt);
  2753. }
  2754. rtt_update = tcp_ack_update_rtt(sk, flag, seq_rtt_us, sack_rtt_us,
  2755. ca_rtt_us, sack->rate);
  2756. if (flag & FLAG_ACKED) {
  2757. tcp_rearm_rto(sk);
  2758. if (unlikely(icsk->icsk_mtup.probe_size &&
  2759. !after(tp->mtu_probe.probe_seq_end, tp->snd_una))) {
  2760. tcp_mtup_probe_success(sk);
  2761. }
  2762. if (tcp_is_reno(tp)) {
  2763. tcp_remove_reno_sacks(sk, pkts_acked);
  2764. } else {
  2765. int delta;
  2766. /* Non-retransmitted hole got filled? That's reordering */
  2767. if (reord < prior_fackets && reord <= tp->fackets_out)
  2768. tcp_update_reordering(sk, tp->fackets_out - reord, 0);
  2769. delta = tcp_is_fack(tp) ? pkts_acked :
  2770. prior_sacked - tp->sacked_out;
  2771. tp->lost_cnt_hint -= min(tp->lost_cnt_hint, delta);
  2772. }
  2773. tp->fackets_out -= min(pkts_acked, tp->fackets_out);
  2774. } else if (skb && rtt_update && sack_rtt_us >= 0 &&
  2775. sack_rtt_us > tcp_stamp_us_delta(tp->tcp_mstamp, skb->skb_mstamp)) {
  2776. /* Do not re-arm RTO if the sack RTT is measured from data sent
  2777. * after when the head was last (re)transmitted. Otherwise the
  2778. * timeout may continue to extend in loss recovery.
  2779. */
  2780. tcp_rearm_rto(sk);
  2781. }
  2782. if (icsk->icsk_ca_ops->pkts_acked) {
  2783. struct ack_sample sample = { .pkts_acked = pkts_acked,
  2784. .rtt_us = sack->rate->rtt_us,
  2785. .in_flight = last_in_flight };
  2786. icsk->icsk_ca_ops->pkts_acked(sk, &sample);
  2787. }
  2788. #if FASTRETRANS_DEBUG > 0
  2789. WARN_ON((int)tp->sacked_out < 0);
  2790. WARN_ON((int)tp->lost_out < 0);
  2791. WARN_ON((int)tp->retrans_out < 0);
  2792. if (!tp->packets_out && tcp_is_sack(tp)) {
  2793. icsk = inet_csk(sk);
  2794. if (tp->lost_out) {
  2795. pr_debug("Leak l=%u %d\n",
  2796. tp->lost_out, icsk->icsk_ca_state);
  2797. tp->lost_out = 0;
  2798. }
  2799. if (tp->sacked_out) {
  2800. pr_debug("Leak s=%u %d\n",
  2801. tp->sacked_out, icsk->icsk_ca_state);
  2802. tp->sacked_out = 0;
  2803. }
  2804. if (tp->retrans_out) {
  2805. pr_debug("Leak r=%u %d\n",
  2806. tp->retrans_out, icsk->icsk_ca_state);
  2807. tp->retrans_out = 0;
  2808. }
  2809. }
  2810. #endif
  2811. *acked = pkts_acked;
  2812. return flag;
  2813. }
  2814. static void tcp_ack_probe(struct sock *sk)
  2815. {
  2816. const struct tcp_sock *tp = tcp_sk(sk);
  2817. struct inet_connection_sock *icsk = inet_csk(sk);
  2818. /* Was it a usable window open? */
  2819. if (!after(TCP_SKB_CB(tcp_send_head(sk))->end_seq, tcp_wnd_end(tp))) {
  2820. icsk->icsk_backoff = 0;
  2821. inet_csk_clear_xmit_timer(sk, ICSK_TIME_PROBE0);
  2822. /* Socket must be waked up by subsequent tcp_data_snd_check().
  2823. * This function is not for random using!
  2824. */
  2825. } else {
  2826. unsigned long when = tcp_probe0_when(sk, TCP_RTO_MAX);
  2827. inet_csk_reset_xmit_timer(sk, ICSK_TIME_PROBE0,
  2828. when, TCP_RTO_MAX);
  2829. }
  2830. }
  2831. static inline bool tcp_ack_is_dubious(const struct sock *sk, const int flag)
  2832. {
  2833. return !(flag & FLAG_NOT_DUP) || (flag & FLAG_CA_ALERT) ||
  2834. inet_csk(sk)->icsk_ca_state != TCP_CA_Open;
  2835. }
  2836. /* Decide wheather to run the increase function of congestion control. */
  2837. static inline bool tcp_may_raise_cwnd(const struct sock *sk, const int flag)
  2838. {
  2839. /* If reordering is high then always grow cwnd whenever data is
  2840. * delivered regardless of its ordering. Otherwise stay conservative
  2841. * and only grow cwnd on in-order delivery (RFC5681). A stretched ACK w/
  2842. * new SACK or ECE mark may first advance cwnd here and later reduce
  2843. * cwnd in tcp_fastretrans_alert() based on more states.
  2844. */
  2845. if (tcp_sk(sk)->reordering > sock_net(sk)->ipv4.sysctl_tcp_reordering)
  2846. return flag & FLAG_FORWARD_PROGRESS;
  2847. return flag & FLAG_DATA_ACKED;
  2848. }
  2849. /* The "ultimate" congestion control function that aims to replace the rigid
  2850. * cwnd increase and decrease control (tcp_cong_avoid,tcp_*cwnd_reduction).
  2851. * It's called toward the end of processing an ACK with precise rate
  2852. * information. All transmission or retransmission are delayed afterwards.
  2853. */
  2854. static void tcp_cong_control(struct sock *sk, u32 ack, u32 acked_sacked,
  2855. int flag, const struct rate_sample *rs)
  2856. {
  2857. const struct inet_connection_sock *icsk = inet_csk(sk);
  2858. if (icsk->icsk_ca_ops->cong_control) {
  2859. icsk->icsk_ca_ops->cong_control(sk, rs);
  2860. return;
  2861. }
  2862. if (tcp_in_cwnd_reduction(sk)) {
  2863. /* Reduce cwnd if state mandates */
  2864. tcp_cwnd_reduction(sk, acked_sacked, flag);
  2865. } else if (tcp_may_raise_cwnd(sk, flag)) {
  2866. /* Advance cwnd if state allows */
  2867. tcp_cong_avoid(sk, ack, acked_sacked);
  2868. }
  2869. tcp_update_pacing_rate(sk);
  2870. }
  2871. /* Check that window update is acceptable.
  2872. * The function assumes that snd_una<=ack<=snd_next.
  2873. */
  2874. static inline bool tcp_may_update_window(const struct tcp_sock *tp,
  2875. const u32 ack, const u32 ack_seq,
  2876. const u32 nwin)
  2877. {
  2878. return after(ack, tp->snd_una) ||
  2879. after(ack_seq, tp->snd_wl1) ||
  2880. (ack_seq == tp->snd_wl1 && nwin > tp->snd_wnd);
  2881. }
  2882. /* If we update tp->snd_una, also update tp->bytes_acked */
  2883. static void tcp_snd_una_update(struct tcp_sock *tp, u32 ack)
  2884. {
  2885. u32 delta = ack - tp->snd_una;
  2886. sock_owned_by_me((struct sock *)tp);
  2887. tp->bytes_acked += delta;
  2888. tp->snd_una = ack;
  2889. }
  2890. /* If we update tp->rcv_nxt, also update tp->bytes_received */
  2891. static void tcp_rcv_nxt_update(struct tcp_sock *tp, u32 seq)
  2892. {
  2893. u32 delta = seq - tp->rcv_nxt;
  2894. sock_owned_by_me((struct sock *)tp);
  2895. tp->bytes_received += delta;
  2896. tp->rcv_nxt = seq;
  2897. }
  2898. /* Update our send window.
  2899. *
  2900. * Window update algorithm, described in RFC793/RFC1122 (used in linux-2.2
  2901. * and in FreeBSD. NetBSD's one is even worse.) is wrong.
  2902. */
  2903. static int tcp_ack_update_window(struct sock *sk, const struct sk_buff *skb, u32 ack,
  2904. u32 ack_seq)
  2905. {
  2906. struct tcp_sock *tp = tcp_sk(sk);
  2907. int flag = 0;
  2908. u32 nwin = ntohs(tcp_hdr(skb)->window);
  2909. if (likely(!tcp_hdr(skb)->syn))
  2910. nwin <<= tp->rx_opt.snd_wscale;
  2911. if (tcp_may_update_window(tp, ack, ack_seq, nwin)) {
  2912. flag |= FLAG_WIN_UPDATE;
  2913. tcp_update_wl(tp, ack_seq);
  2914. if (tp->snd_wnd != nwin) {
  2915. tp->snd_wnd = nwin;
  2916. if (tcp_send_head(sk))
  2917. tcp_slow_start_after_idle_check(sk);
  2918. if (nwin > tp->max_window) {
  2919. tp->max_window = nwin;
  2920. tcp_sync_mss(sk, inet_csk(sk)->icsk_pmtu_cookie);
  2921. }
  2922. }
  2923. }
  2924. tcp_snd_una_update(tp, ack);
  2925. return flag;
  2926. }
  2927. static bool __tcp_oow_rate_limited(struct net *net, int mib_idx,
  2928. u32 *last_oow_ack_time)
  2929. {
  2930. if (*last_oow_ack_time) {
  2931. s32 elapsed = (s32)(tcp_jiffies32 - *last_oow_ack_time);
  2932. if (0 <= elapsed && elapsed < sysctl_tcp_invalid_ratelimit) {
  2933. NET_INC_STATS(net, mib_idx);
  2934. return true; /* rate-limited: don't send yet! */
  2935. }
  2936. }
  2937. *last_oow_ack_time = tcp_jiffies32;
  2938. return false; /* not rate-limited: go ahead, send dupack now! */
  2939. }
  2940. /* Return true if we're currently rate-limiting out-of-window ACKs and
  2941. * thus shouldn't send a dupack right now. We rate-limit dupacks in
  2942. * response to out-of-window SYNs or ACKs to mitigate ACK loops or DoS
  2943. * attacks that send repeated SYNs or ACKs for the same connection. To
  2944. * do this, we do not send a duplicate SYNACK or ACK if the remote
  2945. * endpoint is sending out-of-window SYNs or pure ACKs at a high rate.
  2946. */
  2947. bool tcp_oow_rate_limited(struct net *net, const struct sk_buff *skb,
  2948. int mib_idx, u32 *last_oow_ack_time)
  2949. {
  2950. /* Data packets without SYNs are not likely part of an ACK loop. */
  2951. if ((TCP_SKB_CB(skb)->seq != TCP_SKB_CB(skb)->end_seq) &&
  2952. !tcp_hdr(skb)->syn)
  2953. return false;
  2954. return __tcp_oow_rate_limited(net, mib_idx, last_oow_ack_time);
  2955. }
  2956. /* RFC 5961 7 [ACK Throttling] */
  2957. static void tcp_send_challenge_ack(struct sock *sk, const struct sk_buff *skb)
  2958. {
  2959. /* unprotected vars, we dont care of overwrites */
  2960. static u32 challenge_timestamp;
  2961. static unsigned int challenge_count;
  2962. struct tcp_sock *tp = tcp_sk(sk);
  2963. u32 count, now;
  2964. /* First check our per-socket dupack rate limit. */
  2965. if (__tcp_oow_rate_limited(sock_net(sk),
  2966. LINUX_MIB_TCPACKSKIPPEDCHALLENGE,
  2967. &tp->last_oow_ack_time))
  2968. return;
  2969. /* Then check host-wide RFC 5961 rate limit. */
  2970. now = jiffies / HZ;
  2971. if (now != challenge_timestamp) {
  2972. u32 half = (sysctl_tcp_challenge_ack_limit + 1) >> 1;
  2973. challenge_timestamp = now;
  2974. WRITE_ONCE(challenge_count, half +
  2975. prandom_u32_max(sysctl_tcp_challenge_ack_limit));
  2976. }
  2977. count = READ_ONCE(challenge_count);
  2978. if (count > 0) {
  2979. WRITE_ONCE(challenge_count, count - 1);
  2980. NET_INC_STATS(sock_net(sk), LINUX_MIB_TCPCHALLENGEACK);
  2981. tcp_send_ack(sk);
  2982. }
  2983. }
  2984. static void tcp_store_ts_recent(struct tcp_sock *tp)
  2985. {
  2986. tp->rx_opt.ts_recent = tp->rx_opt.rcv_tsval;
  2987. tp->rx_opt.ts_recent_stamp = get_seconds();
  2988. }
  2989. static void tcp_replace_ts_recent(struct tcp_sock *tp, u32 seq)
  2990. {
  2991. if (tp->rx_opt.saw_tstamp && !after(seq, tp->rcv_wup)) {
  2992. /* PAWS bug workaround wrt. ACK frames, the PAWS discard
  2993. * extra check below makes sure this can only happen
  2994. * for pure ACK frames. -DaveM
  2995. *
  2996. * Not only, also it occurs for expired timestamps.
  2997. */
  2998. if (tcp_paws_check(&tp->rx_opt, 0))
  2999. tcp_store_ts_recent(tp);
  3000. }
  3001. }
  3002. /* This routine deals with acks during a TLP episode.
  3003. * We mark the end of a TLP episode on receiving TLP dupack or when
  3004. * ack is after tlp_high_seq.
  3005. * Ref: loss detection algorithm in draft-dukkipati-tcpm-tcp-loss-probe.
  3006. */
  3007. static void tcp_process_tlp_ack(struct sock *sk, u32 ack, int flag)
  3008. {
  3009. struct tcp_sock *tp = tcp_sk(sk);
  3010. if (before(ack, tp->tlp_high_seq))
  3011. return;
  3012. if (flag & FLAG_DSACKING_ACK) {
  3013. /* This DSACK means original and TLP probe arrived; no loss */
  3014. tp->tlp_high_seq = 0;
  3015. } else if (after(ack, tp->tlp_high_seq)) {
  3016. /* ACK advances: there was a loss, so reduce cwnd. Reset
  3017. * tlp_high_seq in tcp_init_cwnd_reduction()
  3018. */
  3019. tcp_init_cwnd_reduction(sk);
  3020. tcp_set_ca_state(sk, TCP_CA_CWR);
  3021. tcp_end_cwnd_reduction(sk);
  3022. tcp_try_keep_open(sk);
  3023. NET_INC_STATS(sock_net(sk),
  3024. LINUX_MIB_TCPLOSSPROBERECOVERY);
  3025. } else if (!(flag & (FLAG_SND_UNA_ADVANCED |
  3026. FLAG_NOT_DUP | FLAG_DATA_SACKED))) {
  3027. /* Pure dupack: original and TLP probe arrived; no loss */
  3028. tp->tlp_high_seq = 0;
  3029. }
  3030. }
  3031. static inline void tcp_in_ack_event(struct sock *sk, u32 flags)
  3032. {
  3033. const struct inet_connection_sock *icsk = inet_csk(sk);
  3034. if (icsk->icsk_ca_ops->in_ack_event)
  3035. icsk->icsk_ca_ops->in_ack_event(sk, flags);
  3036. }
  3037. /* Congestion control has updated the cwnd already. So if we're in
  3038. * loss recovery then now we do any new sends (for FRTO) or
  3039. * retransmits (for CA_Loss or CA_recovery) that make sense.
  3040. */
  3041. static void tcp_xmit_recovery(struct sock *sk, int rexmit)
  3042. {
  3043. struct tcp_sock *tp = tcp_sk(sk);
  3044. if (rexmit == REXMIT_NONE)
  3045. return;
  3046. if (unlikely(rexmit == 2)) {
  3047. __tcp_push_pending_frames(sk, tcp_current_mss(sk),
  3048. TCP_NAGLE_OFF);
  3049. if (after(tp->snd_nxt, tp->high_seq))
  3050. return;
  3051. tp->frto = 0;
  3052. }
  3053. tcp_xmit_retransmit_queue(sk);
  3054. }
  3055. /* This routine deals with incoming acks, but not outgoing ones. */
  3056. static int tcp_ack(struct sock *sk, const struct sk_buff *skb, int flag)
  3057. {
  3058. struct inet_connection_sock *icsk = inet_csk(sk);
  3059. struct tcp_sock *tp = tcp_sk(sk);
  3060. struct tcp_sacktag_state sack_state;
  3061. struct rate_sample rs = { .prior_delivered = 0 };
  3062. u32 prior_snd_una = tp->snd_una;
  3063. u32 ack_seq = TCP_SKB_CB(skb)->seq;
  3064. u32 ack = TCP_SKB_CB(skb)->ack_seq;
  3065. bool is_dupack = false;
  3066. u32 prior_fackets;
  3067. int prior_packets = tp->packets_out;
  3068. u32 delivered = tp->delivered;
  3069. u32 lost = tp->lost;
  3070. int acked = 0; /* Number of packets newly acked */
  3071. int rexmit = REXMIT_NONE; /* Flag to (re)transmit to recover losses */
  3072. u32 ack_ev_flags = 0;
  3073. sack_state.first_sackt = 0;
  3074. sack_state.rate = &rs;
  3075. /* We very likely will need to access write queue head. */
  3076. prefetchw(sk->sk_write_queue.next);
  3077. /* If the ack is older than previous acks
  3078. * then we can probably ignore it.
  3079. */
  3080. if (before(ack, prior_snd_una)) {
  3081. /* RFC 5961 5.2 [Blind Data Injection Attack].[Mitigation] */
  3082. if (before(ack, prior_snd_una - tp->max_window)) {
  3083. if (!(flag & FLAG_NO_CHALLENGE_ACK))
  3084. tcp_send_challenge_ack(sk, skb);
  3085. return -1;
  3086. }
  3087. goto old_ack;
  3088. }
  3089. /* If the ack includes data we haven't sent yet, discard
  3090. * this segment (RFC793 Section 3.9).
  3091. */
  3092. if (after(ack, tp->snd_nxt))
  3093. goto invalid_ack;
  3094. if (icsk->icsk_pending == ICSK_TIME_LOSS_PROBE)
  3095. tcp_rearm_rto(sk);
  3096. if (after(ack, prior_snd_una)) {
  3097. flag |= FLAG_SND_UNA_ADVANCED;
  3098. icsk->icsk_retransmits = 0;
  3099. }
  3100. prior_fackets = tp->fackets_out;
  3101. rs.prior_in_flight = tcp_packets_in_flight(tp);
  3102. /* ts_recent update must be made after we are sure that the packet
  3103. * is in window.
  3104. */
  3105. if (flag & FLAG_UPDATE_TS_RECENT)
  3106. tcp_replace_ts_recent(tp, TCP_SKB_CB(skb)->seq);
  3107. if (ack_seq != TCP_SKB_CB(skb)->end_seq)
  3108. flag |= FLAG_DATA;
  3109. else
  3110. NET_INC_STATS(sock_net(sk), LINUX_MIB_TCPPUREACKS);
  3111. flag |= tcp_ack_update_window(sk, skb, ack, ack_seq);
  3112. if (TCP_SKB_CB(skb)->sacked)
  3113. flag |= tcp_sacktag_write_queue(sk, skb, prior_snd_una,
  3114. &sack_state);
  3115. if (tcp_ecn_rcv_ecn_echo(tp, tcp_hdr(skb))) {
  3116. flag |= FLAG_ECE;
  3117. ack_ev_flags = CA_ACK_ECE;
  3118. }
  3119. if (flag & FLAG_WIN_UPDATE)
  3120. ack_ev_flags |= CA_ACK_WIN_UPDATE;
  3121. tcp_in_ack_event(sk, ack_ev_flags);
  3122. /* We passed data and got it acked, remove any soft error
  3123. * log. Something worked...
  3124. */
  3125. sk->sk_err_soft = 0;
  3126. icsk->icsk_probes_out = 0;
  3127. tp->rcv_tstamp = tcp_jiffies32;
  3128. if (!prior_packets)
  3129. goto no_queue;
  3130. /* See if we can take anything off of the retransmit queue. */
  3131. flag |= tcp_clean_rtx_queue(sk, prior_fackets, prior_snd_una, &acked,
  3132. &sack_state);
  3133. if (tcp_ack_is_dubious(sk, flag)) {
  3134. is_dupack = !(flag & (FLAG_SND_UNA_ADVANCED | FLAG_NOT_DUP));
  3135. tcp_fastretrans_alert(sk, acked, is_dupack, &flag, &rexmit);
  3136. }
  3137. if (tp->tlp_high_seq)
  3138. tcp_process_tlp_ack(sk, ack, flag);
  3139. if ((flag & FLAG_FORWARD_PROGRESS) || !(flag & FLAG_NOT_DUP))
  3140. sk_dst_confirm(sk);
  3141. if (icsk->icsk_pending == ICSK_TIME_RETRANS)
  3142. tcp_schedule_loss_probe(sk);
  3143. delivered = tp->delivered - delivered; /* freshly ACKed or SACKed */
  3144. lost = tp->lost - lost; /* freshly marked lost */
  3145. tcp_rate_gen(sk, delivered, lost, sack_state.rate);
  3146. tcp_cong_control(sk, ack, delivered, flag, sack_state.rate);
  3147. tcp_xmit_recovery(sk, rexmit);
  3148. return 1;
  3149. no_queue:
  3150. /* If data was DSACKed, see if we can undo a cwnd reduction. */
  3151. if (flag & FLAG_DSACKING_ACK)
  3152. tcp_fastretrans_alert(sk, acked, is_dupack, &flag, &rexmit);
  3153. /* If this ack opens up a zero window, clear backoff. It was
  3154. * being used to time the probes, and is probably far higher than
  3155. * it needs to be for normal retransmission.
  3156. */
  3157. if (tcp_send_head(sk))
  3158. tcp_ack_probe(sk);
  3159. if (tp->tlp_high_seq)
  3160. tcp_process_tlp_ack(sk, ack, flag);
  3161. return 1;
  3162. invalid_ack:
  3163. SOCK_DEBUG(sk, "Ack %u after %u:%u\n", ack, tp->snd_una, tp->snd_nxt);
  3164. return -1;
  3165. old_ack:
  3166. /* If data was SACKed, tag it and see if we should send more data.
  3167. * If data was DSACKed, see if we can undo a cwnd reduction.
  3168. */
  3169. if (TCP_SKB_CB(skb)->sacked) {
  3170. flag |= tcp_sacktag_write_queue(sk, skb, prior_snd_una,
  3171. &sack_state);
  3172. tcp_fastretrans_alert(sk, acked, is_dupack, &flag, &rexmit);
  3173. tcp_xmit_recovery(sk, rexmit);
  3174. }
  3175. SOCK_DEBUG(sk, "Ack %u before %u:%u\n", ack, tp->snd_una, tp->snd_nxt);
  3176. return 0;
  3177. }
  3178. static void tcp_parse_fastopen_option(int len, const unsigned char *cookie,
  3179. bool syn, struct tcp_fastopen_cookie *foc,
  3180. bool exp_opt)
  3181. {
  3182. /* Valid only in SYN or SYN-ACK with an even length. */
  3183. if (!foc || !syn || len < 0 || (len & 1))
  3184. return;
  3185. if (len >= TCP_FASTOPEN_COOKIE_MIN &&
  3186. len <= TCP_FASTOPEN_COOKIE_MAX)
  3187. memcpy(foc->val, cookie, len);
  3188. else if (len != 0)
  3189. len = -1;
  3190. foc->len = len;
  3191. foc->exp = exp_opt;
  3192. }
  3193. /* Look for tcp options. Normally only called on SYN and SYNACK packets.
  3194. * But, this can also be called on packets in the established flow when
  3195. * the fast version below fails.
  3196. */
  3197. void tcp_parse_options(const struct net *net,
  3198. const struct sk_buff *skb,
  3199. struct tcp_options_received *opt_rx, int estab,
  3200. struct tcp_fastopen_cookie *foc)
  3201. {
  3202. const unsigned char *ptr;
  3203. const struct tcphdr *th = tcp_hdr(skb);
  3204. int length = (th->doff * 4) - sizeof(struct tcphdr);
  3205. ptr = (const unsigned char *)(th + 1);
  3206. opt_rx->saw_tstamp = 0;
  3207. while (length > 0) {
  3208. int opcode = *ptr++;
  3209. int opsize;
  3210. switch (opcode) {
  3211. case TCPOPT_EOL:
  3212. return;
  3213. case TCPOPT_NOP: /* Ref: RFC 793 section 3.1 */
  3214. length--;
  3215. continue;
  3216. default:
  3217. opsize = *ptr++;
  3218. if (opsize < 2) /* "silly options" */
  3219. return;
  3220. if (opsize > length)
  3221. return; /* don't parse partial options */
  3222. switch (opcode) {
  3223. case TCPOPT_MSS:
  3224. if (opsize == TCPOLEN_MSS && th->syn && !estab) {
  3225. u16 in_mss = get_unaligned_be16(ptr);
  3226. if (in_mss) {
  3227. if (opt_rx->user_mss &&
  3228. opt_rx->user_mss < in_mss)
  3229. in_mss = opt_rx->user_mss;
  3230. opt_rx->mss_clamp = in_mss;
  3231. }
  3232. }
  3233. break;
  3234. case TCPOPT_WINDOW:
  3235. if (opsize == TCPOLEN_WINDOW && th->syn &&
  3236. !estab && net->ipv4.sysctl_tcp_window_scaling) {
  3237. __u8 snd_wscale = *(__u8 *)ptr;
  3238. opt_rx->wscale_ok = 1;
  3239. if (snd_wscale > TCP_MAX_WSCALE) {
  3240. net_info_ratelimited("%s: Illegal window scaling value %d > %u received\n",
  3241. __func__,
  3242. snd_wscale,
  3243. TCP_MAX_WSCALE);
  3244. snd_wscale = TCP_MAX_WSCALE;
  3245. }
  3246. opt_rx->snd_wscale = snd_wscale;
  3247. }
  3248. break;
  3249. case TCPOPT_TIMESTAMP:
  3250. if ((opsize == TCPOLEN_TIMESTAMP) &&
  3251. ((estab && opt_rx->tstamp_ok) ||
  3252. (!estab && net->ipv4.sysctl_tcp_timestamps))) {
  3253. opt_rx->saw_tstamp = 1;
  3254. opt_rx->rcv_tsval = get_unaligned_be32(ptr);
  3255. opt_rx->rcv_tsecr = get_unaligned_be32(ptr + 4);
  3256. }
  3257. break;
  3258. case TCPOPT_SACK_PERM:
  3259. if (opsize == TCPOLEN_SACK_PERM && th->syn &&
  3260. !estab && net->ipv4.sysctl_tcp_sack) {
  3261. opt_rx->sack_ok = TCP_SACK_SEEN;
  3262. tcp_sack_reset(opt_rx);
  3263. }
  3264. break;
  3265. case TCPOPT_SACK:
  3266. if ((opsize >= (TCPOLEN_SACK_BASE + TCPOLEN_SACK_PERBLOCK)) &&
  3267. !((opsize - TCPOLEN_SACK_BASE) % TCPOLEN_SACK_PERBLOCK) &&
  3268. opt_rx->sack_ok) {
  3269. TCP_SKB_CB(skb)->sacked = (ptr - 2) - (unsigned char *)th;
  3270. }
  3271. break;
  3272. #ifdef CONFIG_TCP_MD5SIG
  3273. case TCPOPT_MD5SIG:
  3274. /*
  3275. * The MD5 Hash has already been
  3276. * checked (see tcp_v{4,6}_do_rcv()).
  3277. */
  3278. break;
  3279. #endif
  3280. case TCPOPT_FASTOPEN:
  3281. tcp_parse_fastopen_option(
  3282. opsize - TCPOLEN_FASTOPEN_BASE,
  3283. ptr, th->syn, foc, false);
  3284. break;
  3285. case TCPOPT_EXP:
  3286. /* Fast Open option shares code 254 using a
  3287. * 16 bits magic number.
  3288. */
  3289. if (opsize >= TCPOLEN_EXP_FASTOPEN_BASE &&
  3290. get_unaligned_be16(ptr) ==
  3291. TCPOPT_FASTOPEN_MAGIC)
  3292. tcp_parse_fastopen_option(opsize -
  3293. TCPOLEN_EXP_FASTOPEN_BASE,
  3294. ptr + 2, th->syn, foc, true);
  3295. break;
  3296. }
  3297. ptr += opsize-2;
  3298. length -= opsize;
  3299. }
  3300. }
  3301. }
  3302. EXPORT_SYMBOL(tcp_parse_options);
  3303. static bool tcp_parse_aligned_timestamp(struct tcp_sock *tp, const struct tcphdr *th)
  3304. {
  3305. const __be32 *ptr = (const __be32 *)(th + 1);
  3306. if (*ptr == htonl((TCPOPT_NOP << 24) | (TCPOPT_NOP << 16)
  3307. | (TCPOPT_TIMESTAMP << 8) | TCPOLEN_TIMESTAMP)) {
  3308. tp->rx_opt.saw_tstamp = 1;
  3309. ++ptr;
  3310. tp->rx_opt.rcv_tsval = ntohl(*ptr);
  3311. ++ptr;
  3312. if (*ptr)
  3313. tp->rx_opt.rcv_tsecr = ntohl(*ptr) - tp->tsoffset;
  3314. else
  3315. tp->rx_opt.rcv_tsecr = 0;
  3316. return true;
  3317. }
  3318. return false;
  3319. }
  3320. /* Fast parse options. This hopes to only see timestamps.
  3321. * If it is wrong it falls back on tcp_parse_options().
  3322. */
  3323. static bool tcp_fast_parse_options(const struct net *net,
  3324. const struct sk_buff *skb,
  3325. const struct tcphdr *th, struct tcp_sock *tp)
  3326. {
  3327. /* In the spirit of fast parsing, compare doff directly to constant
  3328. * values. Because equality is used, short doff can be ignored here.
  3329. */
  3330. if (th->doff == (sizeof(*th) / 4)) {
  3331. tp->rx_opt.saw_tstamp = 0;
  3332. return false;
  3333. } else if (tp->rx_opt.tstamp_ok &&
  3334. th->doff == ((sizeof(*th) + TCPOLEN_TSTAMP_ALIGNED) / 4)) {
  3335. if (tcp_parse_aligned_timestamp(tp, th))
  3336. return true;
  3337. }
  3338. tcp_parse_options(net, skb, &tp->rx_opt, 1, NULL);
  3339. if (tp->rx_opt.saw_tstamp && tp->rx_opt.rcv_tsecr)
  3340. tp->rx_opt.rcv_tsecr -= tp->tsoffset;
  3341. return true;
  3342. }
  3343. #ifdef CONFIG_TCP_MD5SIG
  3344. /*
  3345. * Parse MD5 Signature option
  3346. */
  3347. const u8 *tcp_parse_md5sig_option(const struct tcphdr *th)
  3348. {
  3349. int length = (th->doff << 2) - sizeof(*th);
  3350. const u8 *ptr = (const u8 *)(th + 1);
  3351. /* If the TCP option is too short, we can short cut */
  3352. if (length < TCPOLEN_MD5SIG)
  3353. return NULL;
  3354. while (length > 0) {
  3355. int opcode = *ptr++;
  3356. int opsize;
  3357. switch (opcode) {
  3358. case TCPOPT_EOL:
  3359. return NULL;
  3360. case TCPOPT_NOP:
  3361. length--;
  3362. continue;
  3363. default:
  3364. opsize = *ptr++;
  3365. if (opsize < 2 || opsize > length)
  3366. return NULL;
  3367. if (opcode == TCPOPT_MD5SIG)
  3368. return opsize == TCPOLEN_MD5SIG ? ptr : NULL;
  3369. }
  3370. ptr += opsize - 2;
  3371. length -= opsize;
  3372. }
  3373. return NULL;
  3374. }
  3375. EXPORT_SYMBOL(tcp_parse_md5sig_option);
  3376. #endif
  3377. /* Sorry, PAWS as specified is broken wrt. pure-ACKs -DaveM
  3378. *
  3379. * It is not fatal. If this ACK does _not_ change critical state (seqs, window)
  3380. * it can pass through stack. So, the following predicate verifies that
  3381. * this segment is not used for anything but congestion avoidance or
  3382. * fast retransmit. Moreover, we even are able to eliminate most of such
  3383. * second order effects, if we apply some small "replay" window (~RTO)
  3384. * to timestamp space.
  3385. *
  3386. * All these measures still do not guarantee that we reject wrapped ACKs
  3387. * on networks with high bandwidth, when sequence space is recycled fastly,
  3388. * but it guarantees that such events will be very rare and do not affect
  3389. * connection seriously. This doesn't look nice, but alas, PAWS is really
  3390. * buggy extension.
  3391. *
  3392. * [ Later note. Even worse! It is buggy for segments _with_ data. RFC
  3393. * states that events when retransmit arrives after original data are rare.
  3394. * It is a blatant lie. VJ forgot about fast retransmit! 8)8) It is
  3395. * the biggest problem on large power networks even with minor reordering.
  3396. * OK, let's give it small replay window. If peer clock is even 1hz, it is safe
  3397. * up to bandwidth of 18Gigabit/sec. 8) ]
  3398. */
  3399. static int tcp_disordered_ack(const struct sock *sk, const struct sk_buff *skb)
  3400. {
  3401. const struct tcp_sock *tp = tcp_sk(sk);
  3402. const struct tcphdr *th = tcp_hdr(skb);
  3403. u32 seq = TCP_SKB_CB(skb)->seq;
  3404. u32 ack = TCP_SKB_CB(skb)->ack_seq;
  3405. return (/* 1. Pure ACK with correct sequence number. */
  3406. (th->ack && seq == TCP_SKB_CB(skb)->end_seq && seq == tp->rcv_nxt) &&
  3407. /* 2. ... and duplicate ACK. */
  3408. ack == tp->snd_una &&
  3409. /* 3. ... and does not update window. */
  3410. !tcp_may_update_window(tp, ack, seq, ntohs(th->window) << tp->rx_opt.snd_wscale) &&
  3411. /* 4. ... and sits in replay window. */
  3412. (s32)(tp->rx_opt.ts_recent - tp->rx_opt.rcv_tsval) <= (inet_csk(sk)->icsk_rto * 1024) / HZ);
  3413. }
  3414. static inline bool tcp_paws_discard(const struct sock *sk,
  3415. const struct sk_buff *skb)
  3416. {
  3417. const struct tcp_sock *tp = tcp_sk(sk);
  3418. return !tcp_paws_check(&tp->rx_opt, TCP_PAWS_WINDOW) &&
  3419. !tcp_disordered_ack(sk, skb);
  3420. }
  3421. /* Check segment sequence number for validity.
  3422. *
  3423. * Segment controls are considered valid, if the segment
  3424. * fits to the window after truncation to the window. Acceptability
  3425. * of data (and SYN, FIN, of course) is checked separately.
  3426. * See tcp_data_queue(), for example.
  3427. *
  3428. * Also, controls (RST is main one) are accepted using RCV.WUP instead
  3429. * of RCV.NXT. Peer still did not advance his SND.UNA when we
  3430. * delayed ACK, so that hisSND.UNA<=ourRCV.WUP.
  3431. * (borrowed from freebsd)
  3432. */
  3433. static inline bool tcp_sequence(const struct tcp_sock *tp, u32 seq, u32 end_seq)
  3434. {
  3435. return !before(end_seq, tp->rcv_wup) &&
  3436. !after(seq, tp->rcv_nxt + tcp_receive_window(tp));
  3437. }
  3438. /* When we get a reset we do this. */
  3439. void tcp_reset(struct sock *sk)
  3440. {
  3441. /* We want the right error as BSD sees it (and indeed as we do). */
  3442. switch (sk->sk_state) {
  3443. case TCP_SYN_SENT:
  3444. sk->sk_err = ECONNREFUSED;
  3445. break;
  3446. case TCP_CLOSE_WAIT:
  3447. sk->sk_err = EPIPE;
  3448. break;
  3449. case TCP_CLOSE:
  3450. return;
  3451. default:
  3452. sk->sk_err = ECONNRESET;
  3453. }
  3454. /* This barrier is coupled with smp_rmb() in tcp_poll() */
  3455. smp_wmb();
  3456. tcp_done(sk);
  3457. if (!sock_flag(sk, SOCK_DEAD))
  3458. sk->sk_error_report(sk);
  3459. }
  3460. /*
  3461. * Process the FIN bit. This now behaves as it is supposed to work
  3462. * and the FIN takes effect when it is validly part of sequence
  3463. * space. Not before when we get holes.
  3464. *
  3465. * If we are ESTABLISHED, a received fin moves us to CLOSE-WAIT
  3466. * (and thence onto LAST-ACK and finally, CLOSE, we never enter
  3467. * TIME-WAIT)
  3468. *
  3469. * If we are in FINWAIT-1, a received FIN indicates simultaneous
  3470. * close and we go into CLOSING (and later onto TIME-WAIT)
  3471. *
  3472. * If we are in FINWAIT-2, a received FIN moves us to TIME-WAIT.
  3473. */
  3474. void tcp_fin(struct sock *sk)
  3475. {
  3476. struct tcp_sock *tp = tcp_sk(sk);
  3477. inet_csk_schedule_ack(sk);
  3478. sk->sk_shutdown |= RCV_SHUTDOWN;
  3479. sock_set_flag(sk, SOCK_DONE);
  3480. switch (sk->sk_state) {
  3481. case TCP_SYN_RECV:
  3482. case TCP_ESTABLISHED:
  3483. /* Move to CLOSE_WAIT */
  3484. tcp_set_state(sk, TCP_CLOSE_WAIT);
  3485. inet_csk(sk)->icsk_ack.pingpong = 1;
  3486. break;
  3487. case TCP_CLOSE_WAIT:
  3488. case TCP_CLOSING:
  3489. /* Received a retransmission of the FIN, do
  3490. * nothing.
  3491. */
  3492. break;
  3493. case TCP_LAST_ACK:
  3494. /* RFC793: Remain in the LAST-ACK state. */
  3495. break;
  3496. case TCP_FIN_WAIT1:
  3497. /* This case occurs when a simultaneous close
  3498. * happens, we must ack the received FIN and
  3499. * enter the CLOSING state.
  3500. */
  3501. tcp_send_ack(sk);
  3502. tcp_set_state(sk, TCP_CLOSING);
  3503. break;
  3504. case TCP_FIN_WAIT2:
  3505. /* Received a FIN -- send ACK and enter TIME_WAIT. */
  3506. tcp_send_ack(sk);
  3507. tcp_time_wait(sk, TCP_TIME_WAIT, 0);
  3508. break;
  3509. default:
  3510. /* Only TCP_LISTEN and TCP_CLOSE are left, in these
  3511. * cases we should never reach this piece of code.
  3512. */
  3513. pr_err("%s: Impossible, sk->sk_state=%d\n",
  3514. __func__, sk->sk_state);
  3515. break;
  3516. }
  3517. /* It _is_ possible, that we have something out-of-order _after_ FIN.
  3518. * Probably, we should reset in this case. For now drop them.
  3519. */
  3520. skb_rbtree_purge(&tp->out_of_order_queue);
  3521. if (tcp_is_sack(tp))
  3522. tcp_sack_reset(&tp->rx_opt);
  3523. sk_mem_reclaim(sk);
  3524. if (!sock_flag(sk, SOCK_DEAD)) {
  3525. sk->sk_state_change(sk);
  3526. /* Do not send POLL_HUP for half duplex close. */
  3527. if (sk->sk_shutdown == SHUTDOWN_MASK ||
  3528. sk->sk_state == TCP_CLOSE)
  3529. sk_wake_async(sk, SOCK_WAKE_WAITD, POLL_HUP);
  3530. else
  3531. sk_wake_async(sk, SOCK_WAKE_WAITD, POLL_IN);
  3532. }
  3533. }
  3534. static inline bool tcp_sack_extend(struct tcp_sack_block *sp, u32 seq,
  3535. u32 end_seq)
  3536. {
  3537. if (!after(seq, sp->end_seq) && !after(sp->start_seq, end_seq)) {
  3538. if (before(seq, sp->start_seq))
  3539. sp->start_seq = seq;
  3540. if (after(end_seq, sp->end_seq))
  3541. sp->end_seq = end_seq;
  3542. return true;
  3543. }
  3544. return false;
  3545. }
  3546. static void tcp_dsack_set(struct sock *sk, u32 seq, u32 end_seq)
  3547. {
  3548. struct tcp_sock *tp = tcp_sk(sk);
  3549. if (tcp_is_sack(tp) && sysctl_tcp_dsack) {
  3550. int mib_idx;
  3551. if (before(seq, tp->rcv_nxt))
  3552. mib_idx = LINUX_MIB_TCPDSACKOLDSENT;
  3553. else
  3554. mib_idx = LINUX_MIB_TCPDSACKOFOSENT;
  3555. NET_INC_STATS(sock_net(sk), mib_idx);
  3556. tp->rx_opt.dsack = 1;
  3557. tp->duplicate_sack[0].start_seq = seq;
  3558. tp->duplicate_sack[0].end_seq = end_seq;
  3559. }
  3560. }
  3561. static void tcp_dsack_extend(struct sock *sk, u32 seq, u32 end_seq)
  3562. {
  3563. struct tcp_sock *tp = tcp_sk(sk);
  3564. if (!tp->rx_opt.dsack)
  3565. tcp_dsack_set(sk, seq, end_seq);
  3566. else
  3567. tcp_sack_extend(tp->duplicate_sack, seq, end_seq);
  3568. }
  3569. static void tcp_send_dupack(struct sock *sk, const struct sk_buff *skb)
  3570. {
  3571. struct tcp_sock *tp = tcp_sk(sk);
  3572. if (TCP_SKB_CB(skb)->end_seq != TCP_SKB_CB(skb)->seq &&
  3573. before(TCP_SKB_CB(skb)->seq, tp->rcv_nxt)) {
  3574. NET_INC_STATS(sock_net(sk), LINUX_MIB_DELAYEDACKLOST);
  3575. tcp_enter_quickack_mode(sk);
  3576. if (tcp_is_sack(tp) && sysctl_tcp_dsack) {
  3577. u32 end_seq = TCP_SKB_CB(skb)->end_seq;
  3578. if (after(TCP_SKB_CB(skb)->end_seq, tp->rcv_nxt))
  3579. end_seq = tp->rcv_nxt;
  3580. tcp_dsack_set(sk, TCP_SKB_CB(skb)->seq, end_seq);
  3581. }
  3582. }
  3583. tcp_send_ack(sk);
  3584. }
  3585. /* These routines update the SACK block as out-of-order packets arrive or
  3586. * in-order packets close up the sequence space.
  3587. */
  3588. static void tcp_sack_maybe_coalesce(struct tcp_sock *tp)
  3589. {
  3590. int this_sack;
  3591. struct tcp_sack_block *sp = &tp->selective_acks[0];
  3592. struct tcp_sack_block *swalk = sp + 1;
  3593. /* See if the recent change to the first SACK eats into
  3594. * or hits the sequence space of other SACK blocks, if so coalesce.
  3595. */
  3596. for (this_sack = 1; this_sack < tp->rx_opt.num_sacks;) {
  3597. if (tcp_sack_extend(sp, swalk->start_seq, swalk->end_seq)) {
  3598. int i;
  3599. /* Zap SWALK, by moving every further SACK up by one slot.
  3600. * Decrease num_sacks.
  3601. */
  3602. tp->rx_opt.num_sacks--;
  3603. for (i = this_sack; i < tp->rx_opt.num_sacks; i++)
  3604. sp[i] = sp[i + 1];
  3605. continue;
  3606. }
  3607. this_sack++, swalk++;
  3608. }
  3609. }
  3610. static void tcp_sack_new_ofo_skb(struct sock *sk, u32 seq, u32 end_seq)
  3611. {
  3612. struct tcp_sock *tp = tcp_sk(sk);
  3613. struct tcp_sack_block *sp = &tp->selective_acks[0];
  3614. int cur_sacks = tp->rx_opt.num_sacks;
  3615. int this_sack;
  3616. if (!cur_sacks)
  3617. goto new_sack;
  3618. for (this_sack = 0; this_sack < cur_sacks; this_sack++, sp++) {
  3619. if (tcp_sack_extend(sp, seq, end_seq)) {
  3620. /* Rotate this_sack to the first one. */
  3621. for (; this_sack > 0; this_sack--, sp--)
  3622. swap(*sp, *(sp - 1));
  3623. if (cur_sacks > 1)
  3624. tcp_sack_maybe_coalesce(tp);
  3625. return;
  3626. }
  3627. }
  3628. /* Could not find an adjacent existing SACK, build a new one,
  3629. * put it at the front, and shift everyone else down. We
  3630. * always know there is at least one SACK present already here.
  3631. *
  3632. * If the sack array is full, forget about the last one.
  3633. */
  3634. if (this_sack >= TCP_NUM_SACKS) {
  3635. this_sack--;
  3636. tp->rx_opt.num_sacks--;
  3637. sp--;
  3638. }
  3639. for (; this_sack > 0; this_sack--, sp--)
  3640. *sp = *(sp - 1);
  3641. new_sack:
  3642. /* Build the new head SACK, and we're done. */
  3643. sp->start_seq = seq;
  3644. sp->end_seq = end_seq;
  3645. tp->rx_opt.num_sacks++;
  3646. }
  3647. /* RCV.NXT advances, some SACKs should be eaten. */
  3648. static void tcp_sack_remove(struct tcp_sock *tp)
  3649. {
  3650. struct tcp_sack_block *sp = &tp->selective_acks[0];
  3651. int num_sacks = tp->rx_opt.num_sacks;
  3652. int this_sack;
  3653. /* Empty ofo queue, hence, all the SACKs are eaten. Clear. */
  3654. if (RB_EMPTY_ROOT(&tp->out_of_order_queue)) {
  3655. tp->rx_opt.num_sacks = 0;
  3656. return;
  3657. }
  3658. for (this_sack = 0; this_sack < num_sacks;) {
  3659. /* Check if the start of the sack is covered by RCV.NXT. */
  3660. if (!before(tp->rcv_nxt, sp->start_seq)) {
  3661. int i;
  3662. /* RCV.NXT must cover all the block! */
  3663. WARN_ON(before(tp->rcv_nxt, sp->end_seq));
  3664. /* Zap this SACK, by moving forward any other SACKS. */
  3665. for (i = this_sack+1; i < num_sacks; i++)
  3666. tp->selective_acks[i-1] = tp->selective_acks[i];
  3667. num_sacks--;
  3668. continue;
  3669. }
  3670. this_sack++;
  3671. sp++;
  3672. }
  3673. tp->rx_opt.num_sacks = num_sacks;
  3674. }
  3675. /**
  3676. * tcp_try_coalesce - try to merge skb to prior one
  3677. * @sk: socket
  3678. * @to: prior buffer
  3679. * @from: buffer to add in queue
  3680. * @fragstolen: pointer to boolean
  3681. *
  3682. * Before queueing skb @from after @to, try to merge them
  3683. * to reduce overall memory use and queue lengths, if cost is small.
  3684. * Packets in ofo or receive queues can stay a long time.
  3685. * Better try to coalesce them right now to avoid future collapses.
  3686. * Returns true if caller should free @from instead of queueing it
  3687. */
  3688. static bool tcp_try_coalesce(struct sock *sk,
  3689. struct sk_buff *to,
  3690. struct sk_buff *from,
  3691. bool *fragstolen)
  3692. {
  3693. int delta;
  3694. *fragstolen = false;
  3695. /* Its possible this segment overlaps with prior segment in queue */
  3696. if (TCP_SKB_CB(from)->seq != TCP_SKB_CB(to)->end_seq)
  3697. return false;
  3698. if (!skb_try_coalesce(to, from, fragstolen, &delta))
  3699. return false;
  3700. atomic_add(delta, &sk->sk_rmem_alloc);
  3701. sk_mem_charge(sk, delta);
  3702. NET_INC_STATS(sock_net(sk), LINUX_MIB_TCPRCVCOALESCE);
  3703. TCP_SKB_CB(to)->end_seq = TCP_SKB_CB(from)->end_seq;
  3704. TCP_SKB_CB(to)->ack_seq = TCP_SKB_CB(from)->ack_seq;
  3705. TCP_SKB_CB(to)->tcp_flags |= TCP_SKB_CB(from)->tcp_flags;
  3706. return true;
  3707. }
  3708. static void tcp_drop(struct sock *sk, struct sk_buff *skb)
  3709. {
  3710. sk_drops_add(sk, skb);
  3711. __kfree_skb(skb);
  3712. }
  3713. /* This one checks to see if we can put data from the
  3714. * out_of_order queue into the receive_queue.
  3715. */
  3716. static void tcp_ofo_queue(struct sock *sk)
  3717. {
  3718. struct tcp_sock *tp = tcp_sk(sk);
  3719. __u32 dsack_high = tp->rcv_nxt;
  3720. bool fin, fragstolen, eaten;
  3721. struct sk_buff *skb, *tail;
  3722. struct rb_node *p;
  3723. p = rb_first(&tp->out_of_order_queue);
  3724. while (p) {
  3725. skb = rb_entry(p, struct sk_buff, rbnode);
  3726. if (after(TCP_SKB_CB(skb)->seq, tp->rcv_nxt))
  3727. break;
  3728. if (before(TCP_SKB_CB(skb)->seq, dsack_high)) {
  3729. __u32 dsack = dsack_high;
  3730. if (before(TCP_SKB_CB(skb)->end_seq, dsack_high))
  3731. dsack_high = TCP_SKB_CB(skb)->end_seq;
  3732. tcp_dsack_extend(sk, TCP_SKB_CB(skb)->seq, dsack);
  3733. }
  3734. p = rb_next(p);
  3735. rb_erase(&skb->rbnode, &tp->out_of_order_queue);
  3736. if (unlikely(!after(TCP_SKB_CB(skb)->end_seq, tp->rcv_nxt))) {
  3737. SOCK_DEBUG(sk, "ofo packet was already received\n");
  3738. tcp_drop(sk, skb);
  3739. continue;
  3740. }
  3741. SOCK_DEBUG(sk, "ofo requeuing : rcv_next %X seq %X - %X\n",
  3742. tp->rcv_nxt, TCP_SKB_CB(skb)->seq,
  3743. TCP_SKB_CB(skb)->end_seq);
  3744. tail = skb_peek_tail(&sk->sk_receive_queue);
  3745. eaten = tail && tcp_try_coalesce(sk, tail, skb, &fragstolen);
  3746. tcp_rcv_nxt_update(tp, TCP_SKB_CB(skb)->end_seq);
  3747. fin = TCP_SKB_CB(skb)->tcp_flags & TCPHDR_FIN;
  3748. if (!eaten)
  3749. __skb_queue_tail(&sk->sk_receive_queue, skb);
  3750. else
  3751. kfree_skb_partial(skb, fragstolen);
  3752. if (unlikely(fin)) {
  3753. tcp_fin(sk);
  3754. /* tcp_fin() purges tp->out_of_order_queue,
  3755. * so we must end this loop right now.
  3756. */
  3757. break;
  3758. }
  3759. }
  3760. }
  3761. static bool tcp_prune_ofo_queue(struct sock *sk);
  3762. static int tcp_prune_queue(struct sock *sk);
  3763. static int tcp_try_rmem_schedule(struct sock *sk, struct sk_buff *skb,
  3764. unsigned int size)
  3765. {
  3766. if (atomic_read(&sk->sk_rmem_alloc) > sk->sk_rcvbuf ||
  3767. !sk_rmem_schedule(sk, skb, size)) {
  3768. if (tcp_prune_queue(sk) < 0)
  3769. return -1;
  3770. while (!sk_rmem_schedule(sk, skb, size)) {
  3771. if (!tcp_prune_ofo_queue(sk))
  3772. return -1;
  3773. }
  3774. }
  3775. return 0;
  3776. }
  3777. static void tcp_data_queue_ofo(struct sock *sk, struct sk_buff *skb)
  3778. {
  3779. struct tcp_sock *tp = tcp_sk(sk);
  3780. struct rb_node **p, *q, *parent;
  3781. struct sk_buff *skb1;
  3782. u32 seq, end_seq;
  3783. bool fragstolen;
  3784. tcp_ecn_check_ce(tp, skb);
  3785. if (unlikely(tcp_try_rmem_schedule(sk, skb, skb->truesize))) {
  3786. NET_INC_STATS(sock_net(sk), LINUX_MIB_TCPOFODROP);
  3787. tcp_drop(sk, skb);
  3788. return;
  3789. }
  3790. inet_csk_schedule_ack(sk);
  3791. NET_INC_STATS(sock_net(sk), LINUX_MIB_TCPOFOQUEUE);
  3792. seq = TCP_SKB_CB(skb)->seq;
  3793. end_seq = TCP_SKB_CB(skb)->end_seq;
  3794. SOCK_DEBUG(sk, "out of order segment: rcv_next %X seq %X - %X\n",
  3795. tp->rcv_nxt, seq, end_seq);
  3796. p = &tp->out_of_order_queue.rb_node;
  3797. if (RB_EMPTY_ROOT(&tp->out_of_order_queue)) {
  3798. /* Initial out of order segment, build 1 SACK. */
  3799. if (tcp_is_sack(tp)) {
  3800. tp->rx_opt.num_sacks = 1;
  3801. tp->selective_acks[0].start_seq = seq;
  3802. tp->selective_acks[0].end_seq = end_seq;
  3803. }
  3804. rb_link_node(&skb->rbnode, NULL, p);
  3805. rb_insert_color(&skb->rbnode, &tp->out_of_order_queue);
  3806. tp->ooo_last_skb = skb;
  3807. goto end;
  3808. }
  3809. /* In the typical case, we are adding an skb to the end of the list.
  3810. * Use of ooo_last_skb avoids the O(Log(N)) rbtree lookup.
  3811. */
  3812. if (tcp_try_coalesce(sk, tp->ooo_last_skb, skb, &fragstolen)) {
  3813. coalesce_done:
  3814. tcp_grow_window(sk, skb);
  3815. kfree_skb_partial(skb, fragstolen);
  3816. skb = NULL;
  3817. goto add_sack;
  3818. }
  3819. /* Can avoid an rbtree lookup if we are adding skb after ooo_last_skb */
  3820. if (!before(seq, TCP_SKB_CB(tp->ooo_last_skb)->end_seq)) {
  3821. parent = &tp->ooo_last_skb->rbnode;
  3822. p = &parent->rb_right;
  3823. goto insert;
  3824. }
  3825. /* Find place to insert this segment. Handle overlaps on the way. */
  3826. parent = NULL;
  3827. while (*p) {
  3828. parent = *p;
  3829. skb1 = rb_entry(parent, struct sk_buff, rbnode);
  3830. if (before(seq, TCP_SKB_CB(skb1)->seq)) {
  3831. p = &parent->rb_left;
  3832. continue;
  3833. }
  3834. if (before(seq, TCP_SKB_CB(skb1)->end_seq)) {
  3835. if (!after(end_seq, TCP_SKB_CB(skb1)->end_seq)) {
  3836. /* All the bits are present. Drop. */
  3837. NET_INC_STATS(sock_net(sk),
  3838. LINUX_MIB_TCPOFOMERGE);
  3839. __kfree_skb(skb);
  3840. skb = NULL;
  3841. tcp_dsack_set(sk, seq, end_seq);
  3842. goto add_sack;
  3843. }
  3844. if (after(seq, TCP_SKB_CB(skb1)->seq)) {
  3845. /* Partial overlap. */
  3846. tcp_dsack_set(sk, seq, TCP_SKB_CB(skb1)->end_seq);
  3847. } else {
  3848. /* skb's seq == skb1's seq and skb covers skb1.
  3849. * Replace skb1 with skb.
  3850. */
  3851. rb_replace_node(&skb1->rbnode, &skb->rbnode,
  3852. &tp->out_of_order_queue);
  3853. tcp_dsack_extend(sk,
  3854. TCP_SKB_CB(skb1)->seq,
  3855. TCP_SKB_CB(skb1)->end_seq);
  3856. NET_INC_STATS(sock_net(sk),
  3857. LINUX_MIB_TCPOFOMERGE);
  3858. __kfree_skb(skb1);
  3859. goto merge_right;
  3860. }
  3861. } else if (tcp_try_coalesce(sk, skb1, skb, &fragstolen)) {
  3862. goto coalesce_done;
  3863. }
  3864. p = &parent->rb_right;
  3865. }
  3866. insert:
  3867. /* Insert segment into RB tree. */
  3868. rb_link_node(&skb->rbnode, parent, p);
  3869. rb_insert_color(&skb->rbnode, &tp->out_of_order_queue);
  3870. merge_right:
  3871. /* Remove other segments covered by skb. */
  3872. while ((q = rb_next(&skb->rbnode)) != NULL) {
  3873. skb1 = rb_entry(q, struct sk_buff, rbnode);
  3874. if (!after(end_seq, TCP_SKB_CB(skb1)->seq))
  3875. break;
  3876. if (before(end_seq, TCP_SKB_CB(skb1)->end_seq)) {
  3877. tcp_dsack_extend(sk, TCP_SKB_CB(skb1)->seq,
  3878. end_seq);
  3879. break;
  3880. }
  3881. rb_erase(&skb1->rbnode, &tp->out_of_order_queue);
  3882. tcp_dsack_extend(sk, TCP_SKB_CB(skb1)->seq,
  3883. TCP_SKB_CB(skb1)->end_seq);
  3884. NET_INC_STATS(sock_net(sk), LINUX_MIB_TCPOFOMERGE);
  3885. tcp_drop(sk, skb1);
  3886. }
  3887. /* If there is no skb after us, we are the last_skb ! */
  3888. if (!q)
  3889. tp->ooo_last_skb = skb;
  3890. add_sack:
  3891. if (tcp_is_sack(tp))
  3892. tcp_sack_new_ofo_skb(sk, seq, end_seq);
  3893. end:
  3894. if (skb) {
  3895. tcp_grow_window(sk, skb);
  3896. skb_condense(skb);
  3897. skb_set_owner_r(skb, sk);
  3898. }
  3899. }
  3900. static int __must_check tcp_queue_rcv(struct sock *sk, struct sk_buff *skb, int hdrlen,
  3901. bool *fragstolen)
  3902. {
  3903. int eaten;
  3904. struct sk_buff *tail = skb_peek_tail(&sk->sk_receive_queue);
  3905. __skb_pull(skb, hdrlen);
  3906. eaten = (tail &&
  3907. tcp_try_coalesce(sk, tail, skb, fragstolen)) ? 1 : 0;
  3908. tcp_rcv_nxt_update(tcp_sk(sk), TCP_SKB_CB(skb)->end_seq);
  3909. if (!eaten) {
  3910. __skb_queue_tail(&sk->sk_receive_queue, skb);
  3911. skb_set_owner_r(skb, sk);
  3912. }
  3913. return eaten;
  3914. }
  3915. int tcp_send_rcvq(struct sock *sk, struct msghdr *msg, size_t size)
  3916. {
  3917. struct sk_buff *skb;
  3918. int err = -ENOMEM;
  3919. int data_len = 0;
  3920. bool fragstolen;
  3921. if (size == 0)
  3922. return 0;
  3923. if (size > PAGE_SIZE) {
  3924. int npages = min_t(size_t, size >> PAGE_SHIFT, MAX_SKB_FRAGS);
  3925. data_len = npages << PAGE_SHIFT;
  3926. size = data_len + (size & ~PAGE_MASK);
  3927. }
  3928. skb = alloc_skb_with_frags(size - data_len, data_len,
  3929. PAGE_ALLOC_COSTLY_ORDER,
  3930. &err, sk->sk_allocation);
  3931. if (!skb)
  3932. goto err;
  3933. skb_put(skb, size - data_len);
  3934. skb->data_len = data_len;
  3935. skb->len = size;
  3936. if (tcp_try_rmem_schedule(sk, skb, skb->truesize))
  3937. goto err_free;
  3938. err = skb_copy_datagram_from_iter(skb, 0, &msg->msg_iter, size);
  3939. if (err)
  3940. goto err_free;
  3941. TCP_SKB_CB(skb)->seq = tcp_sk(sk)->rcv_nxt;
  3942. TCP_SKB_CB(skb)->end_seq = TCP_SKB_CB(skb)->seq + size;
  3943. TCP_SKB_CB(skb)->ack_seq = tcp_sk(sk)->snd_una - 1;
  3944. if (tcp_queue_rcv(sk, skb, 0, &fragstolen)) {
  3945. WARN_ON_ONCE(fragstolen); /* should not happen */
  3946. __kfree_skb(skb);
  3947. }
  3948. return size;
  3949. err_free:
  3950. kfree_skb(skb);
  3951. err:
  3952. return err;
  3953. }
  3954. static void tcp_data_queue(struct sock *sk, struct sk_buff *skb)
  3955. {
  3956. struct tcp_sock *tp = tcp_sk(sk);
  3957. bool fragstolen;
  3958. int eaten;
  3959. if (TCP_SKB_CB(skb)->seq == TCP_SKB_CB(skb)->end_seq) {
  3960. __kfree_skb(skb);
  3961. return;
  3962. }
  3963. skb_dst_drop(skb);
  3964. __skb_pull(skb, tcp_hdr(skb)->doff * 4);
  3965. tcp_ecn_accept_cwr(tp, skb);
  3966. tp->rx_opt.dsack = 0;
  3967. /* Queue data for delivery to the user.
  3968. * Packets in sequence go to the receive queue.
  3969. * Out of sequence packets to the out_of_order_queue.
  3970. */
  3971. if (TCP_SKB_CB(skb)->seq == tp->rcv_nxt) {
  3972. if (tcp_receive_window(tp) == 0)
  3973. goto out_of_window;
  3974. /* Ok. In sequence. In window. */
  3975. queue_and_out:
  3976. if (skb_queue_len(&sk->sk_receive_queue) == 0)
  3977. sk_forced_mem_schedule(sk, skb->truesize);
  3978. else if (tcp_try_rmem_schedule(sk, skb, skb->truesize))
  3979. goto drop;
  3980. eaten = tcp_queue_rcv(sk, skb, 0, &fragstolen);
  3981. tcp_rcv_nxt_update(tp, TCP_SKB_CB(skb)->end_seq);
  3982. if (skb->len)
  3983. tcp_event_data_recv(sk, skb);
  3984. if (TCP_SKB_CB(skb)->tcp_flags & TCPHDR_FIN)
  3985. tcp_fin(sk);
  3986. if (!RB_EMPTY_ROOT(&tp->out_of_order_queue)) {
  3987. tcp_ofo_queue(sk);
  3988. /* RFC2581. 4.2. SHOULD send immediate ACK, when
  3989. * gap in queue is filled.
  3990. */
  3991. if (RB_EMPTY_ROOT(&tp->out_of_order_queue))
  3992. inet_csk(sk)->icsk_ack.pingpong = 0;
  3993. }
  3994. if (tp->rx_opt.num_sacks)
  3995. tcp_sack_remove(tp);
  3996. if (eaten > 0)
  3997. kfree_skb_partial(skb, fragstolen);
  3998. if (!sock_flag(sk, SOCK_DEAD))
  3999. sk->sk_data_ready(sk);
  4000. return;
  4001. }
  4002. if (!after(TCP_SKB_CB(skb)->end_seq, tp->rcv_nxt)) {
  4003. /* A retransmit, 2nd most common case. Force an immediate ack. */
  4004. NET_INC_STATS(sock_net(sk), LINUX_MIB_DELAYEDACKLOST);
  4005. tcp_dsack_set(sk, TCP_SKB_CB(skb)->seq, TCP_SKB_CB(skb)->end_seq);
  4006. out_of_window:
  4007. tcp_enter_quickack_mode(sk);
  4008. inet_csk_schedule_ack(sk);
  4009. drop:
  4010. tcp_drop(sk, skb);
  4011. return;
  4012. }
  4013. /* Out of window. F.e. zero window probe. */
  4014. if (!before(TCP_SKB_CB(skb)->seq, tp->rcv_nxt + tcp_receive_window(tp)))
  4015. goto out_of_window;
  4016. tcp_enter_quickack_mode(sk);
  4017. if (before(TCP_SKB_CB(skb)->seq, tp->rcv_nxt)) {
  4018. /* Partial packet, seq < rcv_next < end_seq */
  4019. SOCK_DEBUG(sk, "partial packet: rcv_next %X seq %X - %X\n",
  4020. tp->rcv_nxt, TCP_SKB_CB(skb)->seq,
  4021. TCP_SKB_CB(skb)->end_seq);
  4022. tcp_dsack_set(sk, TCP_SKB_CB(skb)->seq, tp->rcv_nxt);
  4023. /* If window is closed, drop tail of packet. But after
  4024. * remembering D-SACK for its head made in previous line.
  4025. */
  4026. if (!tcp_receive_window(tp))
  4027. goto out_of_window;
  4028. goto queue_and_out;
  4029. }
  4030. tcp_data_queue_ofo(sk, skb);
  4031. }
  4032. static struct sk_buff *tcp_skb_next(struct sk_buff *skb, struct sk_buff_head *list)
  4033. {
  4034. if (list)
  4035. return !skb_queue_is_last(list, skb) ? skb->next : NULL;
  4036. return rb_entry_safe(rb_next(&skb->rbnode), struct sk_buff, rbnode);
  4037. }
  4038. static struct sk_buff *tcp_collapse_one(struct sock *sk, struct sk_buff *skb,
  4039. struct sk_buff_head *list,
  4040. struct rb_root *root)
  4041. {
  4042. struct sk_buff *next = tcp_skb_next(skb, list);
  4043. if (list)
  4044. __skb_unlink(skb, list);
  4045. else
  4046. rb_erase(&skb->rbnode, root);
  4047. __kfree_skb(skb);
  4048. NET_INC_STATS(sock_net(sk), LINUX_MIB_TCPRCVCOLLAPSED);
  4049. return next;
  4050. }
  4051. /* Insert skb into rb tree, ordered by TCP_SKB_CB(skb)->seq */
  4052. static void tcp_rbtree_insert(struct rb_root *root, struct sk_buff *skb)
  4053. {
  4054. struct rb_node **p = &root->rb_node;
  4055. struct rb_node *parent = NULL;
  4056. struct sk_buff *skb1;
  4057. while (*p) {
  4058. parent = *p;
  4059. skb1 = rb_entry(parent, struct sk_buff, rbnode);
  4060. if (before(TCP_SKB_CB(skb)->seq, TCP_SKB_CB(skb1)->seq))
  4061. p = &parent->rb_left;
  4062. else
  4063. p = &parent->rb_right;
  4064. }
  4065. rb_link_node(&skb->rbnode, parent, p);
  4066. rb_insert_color(&skb->rbnode, root);
  4067. }
  4068. /* Collapse contiguous sequence of skbs head..tail with
  4069. * sequence numbers start..end.
  4070. *
  4071. * If tail is NULL, this means until the end of the queue.
  4072. *
  4073. * Segments with FIN/SYN are not collapsed (only because this
  4074. * simplifies code)
  4075. */
  4076. static void
  4077. tcp_collapse(struct sock *sk, struct sk_buff_head *list, struct rb_root *root,
  4078. struct sk_buff *head, struct sk_buff *tail, u32 start, u32 end)
  4079. {
  4080. struct sk_buff *skb = head, *n;
  4081. struct sk_buff_head tmp;
  4082. bool end_of_skbs;
  4083. /* First, check that queue is collapsible and find
  4084. * the point where collapsing can be useful.
  4085. */
  4086. restart:
  4087. for (end_of_skbs = true; skb != NULL && skb != tail; skb = n) {
  4088. n = tcp_skb_next(skb, list);
  4089. /* No new bits? It is possible on ofo queue. */
  4090. if (!before(start, TCP_SKB_CB(skb)->end_seq)) {
  4091. skb = tcp_collapse_one(sk, skb, list, root);
  4092. if (!skb)
  4093. break;
  4094. goto restart;
  4095. }
  4096. /* The first skb to collapse is:
  4097. * - not SYN/FIN and
  4098. * - bloated or contains data before "start" or
  4099. * overlaps to the next one.
  4100. */
  4101. if (!(TCP_SKB_CB(skb)->tcp_flags & (TCPHDR_SYN | TCPHDR_FIN)) &&
  4102. (tcp_win_from_space(skb->truesize) > skb->len ||
  4103. before(TCP_SKB_CB(skb)->seq, start))) {
  4104. end_of_skbs = false;
  4105. break;
  4106. }
  4107. if (n && n != tail &&
  4108. TCP_SKB_CB(skb)->end_seq != TCP_SKB_CB(n)->seq) {
  4109. end_of_skbs = false;
  4110. break;
  4111. }
  4112. /* Decided to skip this, advance start seq. */
  4113. start = TCP_SKB_CB(skb)->end_seq;
  4114. }
  4115. if (end_of_skbs ||
  4116. (TCP_SKB_CB(skb)->tcp_flags & (TCPHDR_SYN | TCPHDR_FIN)))
  4117. return;
  4118. __skb_queue_head_init(&tmp);
  4119. while (before(start, end)) {
  4120. int copy = min_t(int, SKB_MAX_ORDER(0, 0), end - start);
  4121. struct sk_buff *nskb;
  4122. nskb = alloc_skb(copy, GFP_ATOMIC);
  4123. if (!nskb)
  4124. break;
  4125. memcpy(nskb->cb, skb->cb, sizeof(skb->cb));
  4126. TCP_SKB_CB(nskb)->seq = TCP_SKB_CB(nskb)->end_seq = start;
  4127. if (list)
  4128. __skb_queue_before(list, skb, nskb);
  4129. else
  4130. __skb_queue_tail(&tmp, nskb); /* defer rbtree insertion */
  4131. skb_set_owner_r(nskb, sk);
  4132. /* Copy data, releasing collapsed skbs. */
  4133. while (copy > 0) {
  4134. int offset = start - TCP_SKB_CB(skb)->seq;
  4135. int size = TCP_SKB_CB(skb)->end_seq - start;
  4136. BUG_ON(offset < 0);
  4137. if (size > 0) {
  4138. size = min(copy, size);
  4139. if (skb_copy_bits(skb, offset, skb_put(nskb, size), size))
  4140. BUG();
  4141. TCP_SKB_CB(nskb)->end_seq += size;
  4142. copy -= size;
  4143. start += size;
  4144. }
  4145. if (!before(start, TCP_SKB_CB(skb)->end_seq)) {
  4146. skb = tcp_collapse_one(sk, skb, list, root);
  4147. if (!skb ||
  4148. skb == tail ||
  4149. (TCP_SKB_CB(skb)->tcp_flags & (TCPHDR_SYN | TCPHDR_FIN)))
  4150. goto end;
  4151. }
  4152. }
  4153. }
  4154. end:
  4155. skb_queue_walk_safe(&tmp, skb, n)
  4156. tcp_rbtree_insert(root, skb);
  4157. }
  4158. /* Collapse ofo queue. Algorithm: select contiguous sequence of skbs
  4159. * and tcp_collapse() them until all the queue is collapsed.
  4160. */
  4161. static void tcp_collapse_ofo_queue(struct sock *sk)
  4162. {
  4163. struct tcp_sock *tp = tcp_sk(sk);
  4164. struct sk_buff *skb, *head;
  4165. struct rb_node *p;
  4166. u32 start, end;
  4167. p = rb_first(&tp->out_of_order_queue);
  4168. skb = rb_entry_safe(p, struct sk_buff, rbnode);
  4169. new_range:
  4170. if (!skb) {
  4171. p = rb_last(&tp->out_of_order_queue);
  4172. /* Note: This is possible p is NULL here. We do not
  4173. * use rb_entry_safe(), as ooo_last_skb is valid only
  4174. * if rbtree is not empty.
  4175. */
  4176. tp->ooo_last_skb = rb_entry(p, struct sk_buff, rbnode);
  4177. return;
  4178. }
  4179. start = TCP_SKB_CB(skb)->seq;
  4180. end = TCP_SKB_CB(skb)->end_seq;
  4181. for (head = skb;;) {
  4182. skb = tcp_skb_next(skb, NULL);
  4183. /* Range is terminated when we see a gap or when
  4184. * we are at the queue end.
  4185. */
  4186. if (!skb ||
  4187. after(TCP_SKB_CB(skb)->seq, end) ||
  4188. before(TCP_SKB_CB(skb)->end_seq, start)) {
  4189. tcp_collapse(sk, NULL, &tp->out_of_order_queue,
  4190. head, skb, start, end);
  4191. goto new_range;
  4192. }
  4193. if (unlikely(before(TCP_SKB_CB(skb)->seq, start)))
  4194. start = TCP_SKB_CB(skb)->seq;
  4195. if (after(TCP_SKB_CB(skb)->end_seq, end))
  4196. end = TCP_SKB_CB(skb)->end_seq;
  4197. }
  4198. }
  4199. /*
  4200. * Clean the out-of-order queue to make room.
  4201. * We drop high sequences packets to :
  4202. * 1) Let a chance for holes to be filled.
  4203. * 2) not add too big latencies if thousands of packets sit there.
  4204. * (But if application shrinks SO_RCVBUF, we could still end up
  4205. * freeing whole queue here)
  4206. *
  4207. * Return true if queue has shrunk.
  4208. */
  4209. static bool tcp_prune_ofo_queue(struct sock *sk)
  4210. {
  4211. struct tcp_sock *tp = tcp_sk(sk);
  4212. struct rb_node *node, *prev;
  4213. if (RB_EMPTY_ROOT(&tp->out_of_order_queue))
  4214. return false;
  4215. NET_INC_STATS(sock_net(sk), LINUX_MIB_OFOPRUNED);
  4216. node = &tp->ooo_last_skb->rbnode;
  4217. do {
  4218. prev = rb_prev(node);
  4219. rb_erase(node, &tp->out_of_order_queue);
  4220. tcp_drop(sk, rb_entry(node, struct sk_buff, rbnode));
  4221. sk_mem_reclaim(sk);
  4222. if (atomic_read(&sk->sk_rmem_alloc) <= sk->sk_rcvbuf &&
  4223. !tcp_under_memory_pressure(sk))
  4224. break;
  4225. node = prev;
  4226. } while (node);
  4227. tp->ooo_last_skb = rb_entry(prev, struct sk_buff, rbnode);
  4228. /* Reset SACK state. A conforming SACK implementation will
  4229. * do the same at a timeout based retransmit. When a connection
  4230. * is in a sad state like this, we care only about integrity
  4231. * of the connection not performance.
  4232. */
  4233. if (tp->rx_opt.sack_ok)
  4234. tcp_sack_reset(&tp->rx_opt);
  4235. return true;
  4236. }
  4237. /* Reduce allocated memory if we can, trying to get
  4238. * the socket within its memory limits again.
  4239. *
  4240. * Return less than zero if we should start dropping frames
  4241. * until the socket owning process reads some of the data
  4242. * to stabilize the situation.
  4243. */
  4244. static int tcp_prune_queue(struct sock *sk)
  4245. {
  4246. struct tcp_sock *tp = tcp_sk(sk);
  4247. SOCK_DEBUG(sk, "prune_queue: c=%x\n", tp->copied_seq);
  4248. NET_INC_STATS(sock_net(sk), LINUX_MIB_PRUNECALLED);
  4249. if (atomic_read(&sk->sk_rmem_alloc) >= sk->sk_rcvbuf)
  4250. tcp_clamp_window(sk);
  4251. else if (tcp_under_memory_pressure(sk))
  4252. tp->rcv_ssthresh = min(tp->rcv_ssthresh, 4U * tp->advmss);
  4253. tcp_collapse_ofo_queue(sk);
  4254. if (!skb_queue_empty(&sk->sk_receive_queue))
  4255. tcp_collapse(sk, &sk->sk_receive_queue, NULL,
  4256. skb_peek(&sk->sk_receive_queue),
  4257. NULL,
  4258. tp->copied_seq, tp->rcv_nxt);
  4259. sk_mem_reclaim(sk);
  4260. if (atomic_read(&sk->sk_rmem_alloc) <= sk->sk_rcvbuf)
  4261. return 0;
  4262. /* Collapsing did not help, destructive actions follow.
  4263. * This must not ever occur. */
  4264. tcp_prune_ofo_queue(sk);
  4265. if (atomic_read(&sk->sk_rmem_alloc) <= sk->sk_rcvbuf)
  4266. return 0;
  4267. /* If we are really being abused, tell the caller to silently
  4268. * drop receive data on the floor. It will get retransmitted
  4269. * and hopefully then we'll have sufficient space.
  4270. */
  4271. NET_INC_STATS(sock_net(sk), LINUX_MIB_RCVPRUNED);
  4272. /* Massive buffer overcommit. */
  4273. return -1;
  4274. }
  4275. static bool tcp_should_expand_sndbuf(const struct sock *sk)
  4276. {
  4277. const struct tcp_sock *tp = tcp_sk(sk);
  4278. /* If the user specified a specific send buffer setting, do
  4279. * not modify it.
  4280. */
  4281. if (sk->sk_userlocks & SOCK_SNDBUF_LOCK)
  4282. return false;
  4283. /* If we are under global TCP memory pressure, do not expand. */
  4284. if (tcp_under_memory_pressure(sk))
  4285. return false;
  4286. /* If we are under soft global TCP memory pressure, do not expand. */
  4287. if (sk_memory_allocated(sk) >= sk_prot_mem_limits(sk, 0))
  4288. return false;
  4289. /* If we filled the congestion window, do not expand. */
  4290. if (tcp_packets_in_flight(tp) >= tp->snd_cwnd)
  4291. return false;
  4292. return true;
  4293. }
  4294. /* When incoming ACK allowed to free some skb from write_queue,
  4295. * we remember this event in flag SOCK_QUEUE_SHRUNK and wake up socket
  4296. * on the exit from tcp input handler.
  4297. *
  4298. * PROBLEM: sndbuf expansion does not work well with largesend.
  4299. */
  4300. static void tcp_new_space(struct sock *sk)
  4301. {
  4302. struct tcp_sock *tp = tcp_sk(sk);
  4303. if (tcp_should_expand_sndbuf(sk)) {
  4304. tcp_sndbuf_expand(sk);
  4305. tp->snd_cwnd_stamp = tcp_jiffies32;
  4306. }
  4307. sk->sk_write_space(sk);
  4308. }
  4309. static void tcp_check_space(struct sock *sk)
  4310. {
  4311. if (sock_flag(sk, SOCK_QUEUE_SHRUNK)) {
  4312. sock_reset_flag(sk, SOCK_QUEUE_SHRUNK);
  4313. /* pairs with tcp_poll() */
  4314. smp_mb();
  4315. if (sk->sk_socket &&
  4316. test_bit(SOCK_NOSPACE, &sk->sk_socket->flags)) {
  4317. tcp_new_space(sk);
  4318. if (!test_bit(SOCK_NOSPACE, &sk->sk_socket->flags))
  4319. tcp_chrono_stop(sk, TCP_CHRONO_SNDBUF_LIMITED);
  4320. }
  4321. }
  4322. }
  4323. static inline void tcp_data_snd_check(struct sock *sk)
  4324. {
  4325. tcp_push_pending_frames(sk);
  4326. tcp_check_space(sk);
  4327. }
  4328. /*
  4329. * Check if sending an ack is needed.
  4330. */
  4331. static void __tcp_ack_snd_check(struct sock *sk, int ofo_possible)
  4332. {
  4333. struct tcp_sock *tp = tcp_sk(sk);
  4334. /* More than one full frame received... */
  4335. if (((tp->rcv_nxt - tp->rcv_wup) > inet_csk(sk)->icsk_ack.rcv_mss &&
  4336. /* ... and right edge of window advances far enough.
  4337. * (tcp_recvmsg() will send ACK otherwise). Or...
  4338. */
  4339. __tcp_select_window(sk) >= tp->rcv_wnd) ||
  4340. /* We ACK each frame or... */
  4341. tcp_in_quickack_mode(sk) ||
  4342. /* We have out of order data. */
  4343. (ofo_possible && !RB_EMPTY_ROOT(&tp->out_of_order_queue))) {
  4344. /* Then ack it now */
  4345. tcp_send_ack(sk);
  4346. } else {
  4347. /* Else, send delayed ack. */
  4348. tcp_send_delayed_ack(sk);
  4349. }
  4350. }
  4351. static inline void tcp_ack_snd_check(struct sock *sk)
  4352. {
  4353. if (!inet_csk_ack_scheduled(sk)) {
  4354. /* We sent a data segment already. */
  4355. return;
  4356. }
  4357. __tcp_ack_snd_check(sk, 1);
  4358. }
  4359. /*
  4360. * This routine is only called when we have urgent data
  4361. * signaled. Its the 'slow' part of tcp_urg. It could be
  4362. * moved inline now as tcp_urg is only called from one
  4363. * place. We handle URGent data wrong. We have to - as
  4364. * BSD still doesn't use the correction from RFC961.
  4365. * For 1003.1g we should support a new option TCP_STDURG to permit
  4366. * either form (or just set the sysctl tcp_stdurg).
  4367. */
  4368. static void tcp_check_urg(struct sock *sk, const struct tcphdr *th)
  4369. {
  4370. struct tcp_sock *tp = tcp_sk(sk);
  4371. u32 ptr = ntohs(th->urg_ptr);
  4372. if (ptr && !sysctl_tcp_stdurg)
  4373. ptr--;
  4374. ptr += ntohl(th->seq);
  4375. /* Ignore urgent data that we've already seen and read. */
  4376. if (after(tp->copied_seq, ptr))
  4377. return;
  4378. /* Do not replay urg ptr.
  4379. *
  4380. * NOTE: interesting situation not covered by specs.
  4381. * Misbehaving sender may send urg ptr, pointing to segment,
  4382. * which we already have in ofo queue. We are not able to fetch
  4383. * such data and will stay in TCP_URG_NOTYET until will be eaten
  4384. * by recvmsg(). Seems, we are not obliged to handle such wicked
  4385. * situations. But it is worth to think about possibility of some
  4386. * DoSes using some hypothetical application level deadlock.
  4387. */
  4388. if (before(ptr, tp->rcv_nxt))
  4389. return;
  4390. /* Do we already have a newer (or duplicate) urgent pointer? */
  4391. if (tp->urg_data && !after(ptr, tp->urg_seq))
  4392. return;
  4393. /* Tell the world about our new urgent pointer. */
  4394. sk_send_sigurg(sk);
  4395. /* We may be adding urgent data when the last byte read was
  4396. * urgent. To do this requires some care. We cannot just ignore
  4397. * tp->copied_seq since we would read the last urgent byte again
  4398. * as data, nor can we alter copied_seq until this data arrives
  4399. * or we break the semantics of SIOCATMARK (and thus sockatmark())
  4400. *
  4401. * NOTE. Double Dutch. Rendering to plain English: author of comment
  4402. * above did something sort of send("A", MSG_OOB); send("B", MSG_OOB);
  4403. * and expect that both A and B disappear from stream. This is _wrong_.
  4404. * Though this happens in BSD with high probability, this is occasional.
  4405. * Any application relying on this is buggy. Note also, that fix "works"
  4406. * only in this artificial test. Insert some normal data between A and B and we will
  4407. * decline of BSD again. Verdict: it is better to remove to trap
  4408. * buggy users.
  4409. */
  4410. if (tp->urg_seq == tp->copied_seq && tp->urg_data &&
  4411. !sock_flag(sk, SOCK_URGINLINE) && tp->copied_seq != tp->rcv_nxt) {
  4412. struct sk_buff *skb = skb_peek(&sk->sk_receive_queue);
  4413. tp->copied_seq++;
  4414. if (skb && !before(tp->copied_seq, TCP_SKB_CB(skb)->end_seq)) {
  4415. __skb_unlink(skb, &sk->sk_receive_queue);
  4416. __kfree_skb(skb);
  4417. }
  4418. }
  4419. tp->urg_data = TCP_URG_NOTYET;
  4420. tp->urg_seq = ptr;
  4421. }
  4422. /* This is the 'fast' part of urgent handling. */
  4423. static void tcp_urg(struct sock *sk, struct sk_buff *skb, const struct tcphdr *th)
  4424. {
  4425. struct tcp_sock *tp = tcp_sk(sk);
  4426. /* Check if we get a new urgent pointer - normally not. */
  4427. if (th->urg)
  4428. tcp_check_urg(sk, th);
  4429. /* Do we wait for any urgent data? - normally not... */
  4430. if (tp->urg_data == TCP_URG_NOTYET) {
  4431. u32 ptr = tp->urg_seq - ntohl(th->seq) + (th->doff * 4) -
  4432. th->syn;
  4433. /* Is the urgent pointer pointing into this packet? */
  4434. if (ptr < skb->len) {
  4435. u8 tmp;
  4436. if (skb_copy_bits(skb, ptr, &tmp, 1))
  4437. BUG();
  4438. tp->urg_data = TCP_URG_VALID | tmp;
  4439. if (!sock_flag(sk, SOCK_DEAD))
  4440. sk->sk_data_ready(sk);
  4441. }
  4442. }
  4443. }
  4444. /* Accept RST for rcv_nxt - 1 after a FIN.
  4445. * When tcp connections are abruptly terminated from Mac OSX (via ^C), a
  4446. * FIN is sent followed by a RST packet. The RST is sent with the same
  4447. * sequence number as the FIN, and thus according to RFC 5961 a challenge
  4448. * ACK should be sent. However, Mac OSX rate limits replies to challenge
  4449. * ACKs on the closed socket. In addition middleboxes can drop either the
  4450. * challenge ACK or a subsequent RST.
  4451. */
  4452. static bool tcp_reset_check(const struct sock *sk, const struct sk_buff *skb)
  4453. {
  4454. struct tcp_sock *tp = tcp_sk(sk);
  4455. return unlikely(TCP_SKB_CB(skb)->seq == (tp->rcv_nxt - 1) &&
  4456. (1 << sk->sk_state) & (TCPF_CLOSE_WAIT | TCPF_LAST_ACK |
  4457. TCPF_CLOSING));
  4458. }
  4459. /* Does PAWS and seqno based validation of an incoming segment, flags will
  4460. * play significant role here.
  4461. */
  4462. static bool tcp_validate_incoming(struct sock *sk, struct sk_buff *skb,
  4463. const struct tcphdr *th, int syn_inerr)
  4464. {
  4465. struct tcp_sock *tp = tcp_sk(sk);
  4466. bool rst_seq_match = false;
  4467. /* RFC1323: H1. Apply PAWS check first. */
  4468. if (tcp_fast_parse_options(sock_net(sk), skb, th, tp) &&
  4469. tp->rx_opt.saw_tstamp &&
  4470. tcp_paws_discard(sk, skb)) {
  4471. if (!th->rst) {
  4472. NET_INC_STATS(sock_net(sk), LINUX_MIB_PAWSESTABREJECTED);
  4473. if (!tcp_oow_rate_limited(sock_net(sk), skb,
  4474. LINUX_MIB_TCPACKSKIPPEDPAWS,
  4475. &tp->last_oow_ack_time))
  4476. tcp_send_dupack(sk, skb);
  4477. goto discard;
  4478. }
  4479. /* Reset is accepted even if it did not pass PAWS. */
  4480. }
  4481. /* Step 1: check sequence number */
  4482. if (!tcp_sequence(tp, TCP_SKB_CB(skb)->seq, TCP_SKB_CB(skb)->end_seq)) {
  4483. /* RFC793, page 37: "In all states except SYN-SENT, all reset
  4484. * (RST) segments are validated by checking their SEQ-fields."
  4485. * And page 69: "If an incoming segment is not acceptable,
  4486. * an acknowledgment should be sent in reply (unless the RST
  4487. * bit is set, if so drop the segment and return)".
  4488. */
  4489. if (!th->rst) {
  4490. if (th->syn)
  4491. goto syn_challenge;
  4492. if (!tcp_oow_rate_limited(sock_net(sk), skb,
  4493. LINUX_MIB_TCPACKSKIPPEDSEQ,
  4494. &tp->last_oow_ack_time))
  4495. tcp_send_dupack(sk, skb);
  4496. } else if (tcp_reset_check(sk, skb)) {
  4497. tcp_reset(sk);
  4498. }
  4499. goto discard;
  4500. }
  4501. /* Step 2: check RST bit */
  4502. if (th->rst) {
  4503. /* RFC 5961 3.2 (extend to match against (RCV.NXT - 1) after a
  4504. * FIN and SACK too if available):
  4505. * If seq num matches RCV.NXT or (RCV.NXT - 1) after a FIN, or
  4506. * the right-most SACK block,
  4507. * then
  4508. * RESET the connection
  4509. * else
  4510. * Send a challenge ACK
  4511. */
  4512. if (TCP_SKB_CB(skb)->seq == tp->rcv_nxt ||
  4513. tcp_reset_check(sk, skb)) {
  4514. rst_seq_match = true;
  4515. } else if (tcp_is_sack(tp) && tp->rx_opt.num_sacks > 0) {
  4516. struct tcp_sack_block *sp = &tp->selective_acks[0];
  4517. int max_sack = sp[0].end_seq;
  4518. int this_sack;
  4519. for (this_sack = 1; this_sack < tp->rx_opt.num_sacks;
  4520. ++this_sack) {
  4521. max_sack = after(sp[this_sack].end_seq,
  4522. max_sack) ?
  4523. sp[this_sack].end_seq : max_sack;
  4524. }
  4525. if (TCP_SKB_CB(skb)->seq == max_sack)
  4526. rst_seq_match = true;
  4527. }
  4528. if (rst_seq_match)
  4529. tcp_reset(sk);
  4530. else {
  4531. /* Disable TFO if RST is out-of-order
  4532. * and no data has been received
  4533. * for current active TFO socket
  4534. */
  4535. if (tp->syn_fastopen && !tp->data_segs_in &&
  4536. sk->sk_state == TCP_ESTABLISHED)
  4537. tcp_fastopen_active_disable(sk);
  4538. tcp_send_challenge_ack(sk, skb);
  4539. }
  4540. goto discard;
  4541. }
  4542. /* step 3: check security and precedence [ignored] */
  4543. /* step 4: Check for a SYN
  4544. * RFC 5961 4.2 : Send a challenge ack
  4545. */
  4546. if (th->syn) {
  4547. syn_challenge:
  4548. if (syn_inerr)
  4549. TCP_INC_STATS(sock_net(sk), TCP_MIB_INERRS);
  4550. NET_INC_STATS(sock_net(sk), LINUX_MIB_TCPSYNCHALLENGE);
  4551. tcp_send_challenge_ack(sk, skb);
  4552. goto discard;
  4553. }
  4554. return true;
  4555. discard:
  4556. tcp_drop(sk, skb);
  4557. return false;
  4558. }
  4559. /*
  4560. * TCP receive function for the ESTABLISHED state.
  4561. */
  4562. void tcp_rcv_established(struct sock *sk, struct sk_buff *skb,
  4563. const struct tcphdr *th)
  4564. {
  4565. unsigned int len = skb->len;
  4566. struct tcp_sock *tp = tcp_sk(sk);
  4567. tcp_mstamp_refresh(tp);
  4568. if (unlikely(!sk->sk_rx_dst))
  4569. inet_csk(sk)->icsk_af_ops->sk_rx_dst_set(sk, skb);
  4570. tp->rx_opt.saw_tstamp = 0;
  4571. if (len < (th->doff << 2) || tcp_checksum_complete(skb))
  4572. goto csum_error;
  4573. if (!th->ack && !th->rst && !th->syn)
  4574. goto discard;
  4575. if (!tcp_validate_incoming(sk, skb, th, 1))
  4576. return;
  4577. if (tcp_ack(sk, skb, FLAG_UPDATE_TS_RECENT) < 0)
  4578. goto discard;
  4579. tcp_rcv_rtt_measure_ts(sk, skb);
  4580. /* Process urgent data. */
  4581. tcp_urg(sk, skb, th);
  4582. /* step 7: process the segment text */
  4583. tcp_data_queue(sk, skb);
  4584. tcp_data_snd_check(sk);
  4585. tcp_ack_snd_check(sk);
  4586. return;
  4587. csum_error:
  4588. TCP_INC_STATS(sock_net(sk), TCP_MIB_CSUMERRORS);
  4589. TCP_INC_STATS(sock_net(sk), TCP_MIB_INERRS);
  4590. discard:
  4591. tcp_drop(sk, skb);
  4592. }
  4593. EXPORT_SYMBOL(tcp_rcv_established);
  4594. void tcp_finish_connect(struct sock *sk, struct sk_buff *skb)
  4595. {
  4596. struct tcp_sock *tp = tcp_sk(sk);
  4597. struct inet_connection_sock *icsk = inet_csk(sk);
  4598. tcp_set_state(sk, TCP_ESTABLISHED);
  4599. icsk->icsk_ack.lrcvtime = tcp_jiffies32;
  4600. if (skb) {
  4601. icsk->icsk_af_ops->sk_rx_dst_set(sk, skb);
  4602. security_inet_conn_established(sk, skb);
  4603. }
  4604. /* Make sure socket is routed, for correct metrics. */
  4605. icsk->icsk_af_ops->rebuild_header(sk);
  4606. tcp_init_metrics(sk);
  4607. tcp_call_bpf(sk, BPF_SOCK_OPS_ACTIVE_ESTABLISHED_CB);
  4608. tcp_init_congestion_control(sk);
  4609. /* Prevent spurious tcp_cwnd_restart() on first data
  4610. * packet.
  4611. */
  4612. tp->lsndtime = tcp_jiffies32;
  4613. tcp_init_buffer_space(sk);
  4614. if (sock_flag(sk, SOCK_KEEPOPEN))
  4615. inet_csk_reset_keepalive_timer(sk, keepalive_time_when(tp));
  4616. }
  4617. static bool tcp_rcv_fastopen_synack(struct sock *sk, struct sk_buff *synack,
  4618. struct tcp_fastopen_cookie *cookie)
  4619. {
  4620. struct tcp_sock *tp = tcp_sk(sk);
  4621. struct sk_buff *data = tp->syn_data ? tcp_write_queue_head(sk) : NULL;
  4622. u16 mss = tp->rx_opt.mss_clamp, try_exp = 0;
  4623. bool syn_drop = false;
  4624. if (mss == tp->rx_opt.user_mss) {
  4625. struct tcp_options_received opt;
  4626. /* Get original SYNACK MSS value if user MSS sets mss_clamp */
  4627. tcp_clear_options(&opt);
  4628. opt.user_mss = opt.mss_clamp = 0;
  4629. tcp_parse_options(sock_net(sk), synack, &opt, 0, NULL);
  4630. mss = opt.mss_clamp;
  4631. }
  4632. if (!tp->syn_fastopen) {
  4633. /* Ignore an unsolicited cookie */
  4634. cookie->len = -1;
  4635. } else if (tp->total_retrans) {
  4636. /* SYN timed out and the SYN-ACK neither has a cookie nor
  4637. * acknowledges data. Presumably the remote received only
  4638. * the retransmitted (regular) SYNs: either the original
  4639. * SYN-data or the corresponding SYN-ACK was dropped.
  4640. */
  4641. syn_drop = (cookie->len < 0 && data);
  4642. } else if (cookie->len < 0 && !tp->syn_data) {
  4643. /* We requested a cookie but didn't get it. If we did not use
  4644. * the (old) exp opt format then try so next time (try_exp=1).
  4645. * Otherwise we go back to use the RFC7413 opt (try_exp=2).
  4646. */
  4647. try_exp = tp->syn_fastopen_exp ? 2 : 1;
  4648. }
  4649. tcp_fastopen_cache_set(sk, mss, cookie, syn_drop, try_exp);
  4650. if (data) { /* Retransmit unacked data in SYN */
  4651. tcp_for_write_queue_from(data, sk) {
  4652. if (data == tcp_send_head(sk) ||
  4653. __tcp_retransmit_skb(sk, data, 1))
  4654. break;
  4655. }
  4656. tcp_rearm_rto(sk);
  4657. NET_INC_STATS(sock_net(sk),
  4658. LINUX_MIB_TCPFASTOPENACTIVEFAIL);
  4659. return true;
  4660. }
  4661. tp->syn_data_acked = tp->syn_data;
  4662. if (tp->syn_data_acked)
  4663. NET_INC_STATS(sock_net(sk),
  4664. LINUX_MIB_TCPFASTOPENACTIVE);
  4665. tcp_fastopen_add_skb(sk, synack);
  4666. return false;
  4667. }
  4668. static int tcp_rcv_synsent_state_process(struct sock *sk, struct sk_buff *skb,
  4669. const struct tcphdr *th)
  4670. {
  4671. struct inet_connection_sock *icsk = inet_csk(sk);
  4672. struct tcp_sock *tp = tcp_sk(sk);
  4673. struct tcp_fastopen_cookie foc = { .len = -1 };
  4674. int saved_clamp = tp->rx_opt.mss_clamp;
  4675. bool fastopen_fail;
  4676. tcp_parse_options(sock_net(sk), skb, &tp->rx_opt, 0, &foc);
  4677. if (tp->rx_opt.saw_tstamp && tp->rx_opt.rcv_tsecr)
  4678. tp->rx_opt.rcv_tsecr -= tp->tsoffset;
  4679. if (th->ack) {
  4680. /* rfc793:
  4681. * "If the state is SYN-SENT then
  4682. * first check the ACK bit
  4683. * If the ACK bit is set
  4684. * If SEG.ACK =< ISS, or SEG.ACK > SND.NXT, send
  4685. * a reset (unless the RST bit is set, if so drop
  4686. * the segment and return)"
  4687. */
  4688. if (!after(TCP_SKB_CB(skb)->ack_seq, tp->snd_una) ||
  4689. after(TCP_SKB_CB(skb)->ack_seq, tp->snd_nxt))
  4690. goto reset_and_undo;
  4691. if (tp->rx_opt.saw_tstamp && tp->rx_opt.rcv_tsecr &&
  4692. !between(tp->rx_opt.rcv_tsecr, tp->retrans_stamp,
  4693. tcp_time_stamp(tp))) {
  4694. NET_INC_STATS(sock_net(sk),
  4695. LINUX_MIB_PAWSACTIVEREJECTED);
  4696. goto reset_and_undo;
  4697. }
  4698. /* Now ACK is acceptable.
  4699. *
  4700. * "If the RST bit is set
  4701. * If the ACK was acceptable then signal the user "error:
  4702. * connection reset", drop the segment, enter CLOSED state,
  4703. * delete TCB, and return."
  4704. */
  4705. if (th->rst) {
  4706. tcp_reset(sk);
  4707. goto discard;
  4708. }
  4709. /* rfc793:
  4710. * "fifth, if neither of the SYN or RST bits is set then
  4711. * drop the segment and return."
  4712. *
  4713. * See note below!
  4714. * --ANK(990513)
  4715. */
  4716. if (!th->syn)
  4717. goto discard_and_undo;
  4718. /* rfc793:
  4719. * "If the SYN bit is on ...
  4720. * are acceptable then ...
  4721. * (our SYN has been ACKed), change the connection
  4722. * state to ESTABLISHED..."
  4723. */
  4724. tcp_ecn_rcv_synack(tp, th);
  4725. tcp_init_wl(tp, TCP_SKB_CB(skb)->seq);
  4726. tcp_ack(sk, skb, 0);
  4727. /* Ok.. it's good. Set up sequence numbers and
  4728. * move to established.
  4729. */
  4730. tp->rcv_nxt = TCP_SKB_CB(skb)->seq + 1;
  4731. tp->rcv_wup = TCP_SKB_CB(skb)->seq + 1;
  4732. /* RFC1323: The window in SYN & SYN/ACK segments is
  4733. * never scaled.
  4734. */
  4735. tp->snd_wnd = ntohs(th->window);
  4736. if (!tp->rx_opt.wscale_ok) {
  4737. tp->rx_opt.snd_wscale = tp->rx_opt.rcv_wscale = 0;
  4738. tp->window_clamp = min(tp->window_clamp, 65535U);
  4739. }
  4740. if (tp->rx_opt.saw_tstamp) {
  4741. tp->rx_opt.tstamp_ok = 1;
  4742. tp->tcp_header_len =
  4743. sizeof(struct tcphdr) + TCPOLEN_TSTAMP_ALIGNED;
  4744. tp->advmss -= TCPOLEN_TSTAMP_ALIGNED;
  4745. tcp_store_ts_recent(tp);
  4746. } else {
  4747. tp->tcp_header_len = sizeof(struct tcphdr);
  4748. }
  4749. if (tcp_is_sack(tp) && sysctl_tcp_fack)
  4750. tcp_enable_fack(tp);
  4751. tcp_mtup_init(sk);
  4752. tcp_sync_mss(sk, icsk->icsk_pmtu_cookie);
  4753. tcp_initialize_rcv_mss(sk);
  4754. /* Remember, tcp_poll() does not lock socket!
  4755. * Change state from SYN-SENT only after copied_seq
  4756. * is initialized. */
  4757. tp->copied_seq = tp->rcv_nxt;
  4758. smp_mb();
  4759. tcp_finish_connect(sk, skb);
  4760. fastopen_fail = (tp->syn_fastopen || tp->syn_data) &&
  4761. tcp_rcv_fastopen_synack(sk, skb, &foc);
  4762. if (!sock_flag(sk, SOCK_DEAD)) {
  4763. sk->sk_state_change(sk);
  4764. sk_wake_async(sk, SOCK_WAKE_IO, POLL_OUT);
  4765. }
  4766. if (fastopen_fail)
  4767. return -1;
  4768. if (sk->sk_write_pending ||
  4769. icsk->icsk_accept_queue.rskq_defer_accept ||
  4770. icsk->icsk_ack.pingpong) {
  4771. /* Save one ACK. Data will be ready after
  4772. * several ticks, if write_pending is set.
  4773. *
  4774. * It may be deleted, but with this feature tcpdumps
  4775. * look so _wonderfully_ clever, that I was not able
  4776. * to stand against the temptation 8) --ANK
  4777. */
  4778. inet_csk_schedule_ack(sk);
  4779. tcp_enter_quickack_mode(sk);
  4780. inet_csk_reset_xmit_timer(sk, ICSK_TIME_DACK,
  4781. TCP_DELACK_MAX, TCP_RTO_MAX);
  4782. discard:
  4783. tcp_drop(sk, skb);
  4784. return 0;
  4785. } else {
  4786. tcp_send_ack(sk);
  4787. }
  4788. return -1;
  4789. }
  4790. /* No ACK in the segment */
  4791. if (th->rst) {
  4792. /* rfc793:
  4793. * "If the RST bit is set
  4794. *
  4795. * Otherwise (no ACK) drop the segment and return."
  4796. */
  4797. goto discard_and_undo;
  4798. }
  4799. /* PAWS check. */
  4800. if (tp->rx_opt.ts_recent_stamp && tp->rx_opt.saw_tstamp &&
  4801. tcp_paws_reject(&tp->rx_opt, 0))
  4802. goto discard_and_undo;
  4803. if (th->syn) {
  4804. /* We see SYN without ACK. It is attempt of
  4805. * simultaneous connect with crossed SYNs.
  4806. * Particularly, it can be connect to self.
  4807. */
  4808. tcp_set_state(sk, TCP_SYN_RECV);
  4809. if (tp->rx_opt.saw_tstamp) {
  4810. tp->rx_opt.tstamp_ok = 1;
  4811. tcp_store_ts_recent(tp);
  4812. tp->tcp_header_len =
  4813. sizeof(struct tcphdr) + TCPOLEN_TSTAMP_ALIGNED;
  4814. } else {
  4815. tp->tcp_header_len = sizeof(struct tcphdr);
  4816. }
  4817. tp->rcv_nxt = TCP_SKB_CB(skb)->seq + 1;
  4818. tp->copied_seq = tp->rcv_nxt;
  4819. tp->rcv_wup = TCP_SKB_CB(skb)->seq + 1;
  4820. /* RFC1323: The window in SYN & SYN/ACK segments is
  4821. * never scaled.
  4822. */
  4823. tp->snd_wnd = ntohs(th->window);
  4824. tp->snd_wl1 = TCP_SKB_CB(skb)->seq;
  4825. tp->max_window = tp->snd_wnd;
  4826. tcp_ecn_rcv_syn(tp, th);
  4827. tcp_mtup_init(sk);
  4828. tcp_sync_mss(sk, icsk->icsk_pmtu_cookie);
  4829. tcp_initialize_rcv_mss(sk);
  4830. tcp_send_synack(sk);
  4831. #if 0
  4832. /* Note, we could accept data and URG from this segment.
  4833. * There are no obstacles to make this (except that we must
  4834. * either change tcp_recvmsg() to prevent it from returning data
  4835. * before 3WHS completes per RFC793, or employ TCP Fast Open).
  4836. *
  4837. * However, if we ignore data in ACKless segments sometimes,
  4838. * we have no reasons to accept it sometimes.
  4839. * Also, seems the code doing it in step6 of tcp_rcv_state_process
  4840. * is not flawless. So, discard packet for sanity.
  4841. * Uncomment this return to process the data.
  4842. */
  4843. return -1;
  4844. #else
  4845. goto discard;
  4846. #endif
  4847. }
  4848. /* "fifth, if neither of the SYN or RST bits is set then
  4849. * drop the segment and return."
  4850. */
  4851. discard_and_undo:
  4852. tcp_clear_options(&tp->rx_opt);
  4853. tp->rx_opt.mss_clamp = saved_clamp;
  4854. goto discard;
  4855. reset_and_undo:
  4856. tcp_clear_options(&tp->rx_opt);
  4857. tp->rx_opt.mss_clamp = saved_clamp;
  4858. return 1;
  4859. }
  4860. /*
  4861. * This function implements the receiving procedure of RFC 793 for
  4862. * all states except ESTABLISHED and TIME_WAIT.
  4863. * It's called from both tcp_v4_rcv and tcp_v6_rcv and should be
  4864. * address independent.
  4865. */
  4866. int tcp_rcv_state_process(struct sock *sk, struct sk_buff *skb)
  4867. {
  4868. struct tcp_sock *tp = tcp_sk(sk);
  4869. struct inet_connection_sock *icsk = inet_csk(sk);
  4870. const struct tcphdr *th = tcp_hdr(skb);
  4871. struct request_sock *req;
  4872. int queued = 0;
  4873. bool acceptable;
  4874. switch (sk->sk_state) {
  4875. case TCP_CLOSE:
  4876. goto discard;
  4877. case TCP_LISTEN:
  4878. if (th->ack)
  4879. return 1;
  4880. if (th->rst)
  4881. goto discard;
  4882. if (th->syn) {
  4883. if (th->fin)
  4884. goto discard;
  4885. /* It is possible that we process SYN packets from backlog,
  4886. * so we need to make sure to disable BH right there.
  4887. */
  4888. local_bh_disable();
  4889. acceptable = icsk->icsk_af_ops->conn_request(sk, skb) >= 0;
  4890. local_bh_enable();
  4891. if (!acceptable)
  4892. return 1;
  4893. consume_skb(skb);
  4894. return 0;
  4895. }
  4896. goto discard;
  4897. case TCP_SYN_SENT:
  4898. tp->rx_opt.saw_tstamp = 0;
  4899. tcp_mstamp_refresh(tp);
  4900. queued = tcp_rcv_synsent_state_process(sk, skb, th);
  4901. if (queued >= 0)
  4902. return queued;
  4903. /* Do step6 onward by hand. */
  4904. tcp_urg(sk, skb, th);
  4905. __kfree_skb(skb);
  4906. tcp_data_snd_check(sk);
  4907. return 0;
  4908. }
  4909. tcp_mstamp_refresh(tp);
  4910. tp->rx_opt.saw_tstamp = 0;
  4911. req = tp->fastopen_rsk;
  4912. if (req) {
  4913. WARN_ON_ONCE(sk->sk_state != TCP_SYN_RECV &&
  4914. sk->sk_state != TCP_FIN_WAIT1);
  4915. if (!tcp_check_req(sk, skb, req, true))
  4916. goto discard;
  4917. }
  4918. if (!th->ack && !th->rst && !th->syn)
  4919. goto discard;
  4920. if (!tcp_validate_incoming(sk, skb, th, 0))
  4921. return 0;
  4922. /* step 5: check the ACK field */
  4923. acceptable = tcp_ack(sk, skb, FLAG_UPDATE_TS_RECENT |
  4924. FLAG_NO_CHALLENGE_ACK) > 0;
  4925. if (!acceptable) {
  4926. if (sk->sk_state == TCP_SYN_RECV)
  4927. return 1; /* send one RST */
  4928. tcp_send_challenge_ack(sk, skb);
  4929. goto discard;
  4930. }
  4931. switch (sk->sk_state) {
  4932. case TCP_SYN_RECV:
  4933. if (!tp->srtt_us)
  4934. tcp_synack_rtt_meas(sk, req);
  4935. /* Once we leave TCP_SYN_RECV, we no longer need req
  4936. * so release it.
  4937. */
  4938. if (req) {
  4939. inet_csk(sk)->icsk_retransmits = 0;
  4940. reqsk_fastopen_remove(sk, req, false);
  4941. } else {
  4942. /* Make sure socket is routed, for correct metrics. */
  4943. icsk->icsk_af_ops->rebuild_header(sk);
  4944. tcp_call_bpf(sk, BPF_SOCK_OPS_PASSIVE_ESTABLISHED_CB);
  4945. tcp_init_congestion_control(sk);
  4946. tcp_mtup_init(sk);
  4947. tp->copied_seq = tp->rcv_nxt;
  4948. tcp_init_buffer_space(sk);
  4949. }
  4950. smp_mb();
  4951. tcp_set_state(sk, TCP_ESTABLISHED);
  4952. sk->sk_state_change(sk);
  4953. /* Note, that this wakeup is only for marginal crossed SYN case.
  4954. * Passively open sockets are not waked up, because
  4955. * sk->sk_sleep == NULL and sk->sk_socket == NULL.
  4956. */
  4957. if (sk->sk_socket)
  4958. sk_wake_async(sk, SOCK_WAKE_IO, POLL_OUT);
  4959. tp->snd_una = TCP_SKB_CB(skb)->ack_seq;
  4960. tp->snd_wnd = ntohs(th->window) << tp->rx_opt.snd_wscale;
  4961. tcp_init_wl(tp, TCP_SKB_CB(skb)->seq);
  4962. if (tp->rx_opt.tstamp_ok)
  4963. tp->advmss -= TCPOLEN_TSTAMP_ALIGNED;
  4964. if (req) {
  4965. /* Re-arm the timer because data may have been sent out.
  4966. * This is similar to the regular data transmission case
  4967. * when new data has just been ack'ed.
  4968. *
  4969. * (TFO) - we could try to be more aggressive and
  4970. * retransmitting any data sooner based on when they
  4971. * are sent out.
  4972. */
  4973. tcp_rearm_rto(sk);
  4974. } else
  4975. tcp_init_metrics(sk);
  4976. if (!inet_csk(sk)->icsk_ca_ops->cong_control)
  4977. tcp_update_pacing_rate(sk);
  4978. /* Prevent spurious tcp_cwnd_restart() on first data packet */
  4979. tp->lsndtime = tcp_jiffies32;
  4980. tcp_initialize_rcv_mss(sk);
  4981. break;
  4982. case TCP_FIN_WAIT1: {
  4983. int tmo;
  4984. /* If we enter the TCP_FIN_WAIT1 state and we are a
  4985. * Fast Open socket and this is the first acceptable
  4986. * ACK we have received, this would have acknowledged
  4987. * our SYNACK so stop the SYNACK timer.
  4988. */
  4989. if (req) {
  4990. /* We no longer need the request sock. */
  4991. reqsk_fastopen_remove(sk, req, false);
  4992. tcp_rearm_rto(sk);
  4993. }
  4994. if (tp->snd_una != tp->write_seq)
  4995. break;
  4996. tcp_set_state(sk, TCP_FIN_WAIT2);
  4997. sk->sk_shutdown |= SEND_SHUTDOWN;
  4998. sk_dst_confirm(sk);
  4999. if (!sock_flag(sk, SOCK_DEAD)) {
  5000. /* Wake up lingering close() */
  5001. sk->sk_state_change(sk);
  5002. break;
  5003. }
  5004. if (tp->linger2 < 0) {
  5005. tcp_done(sk);
  5006. NET_INC_STATS(sock_net(sk), LINUX_MIB_TCPABORTONDATA);
  5007. return 1;
  5008. }
  5009. if (TCP_SKB_CB(skb)->end_seq != TCP_SKB_CB(skb)->seq &&
  5010. after(TCP_SKB_CB(skb)->end_seq - th->fin, tp->rcv_nxt)) {
  5011. /* Receive out of order FIN after close() */
  5012. if (tp->syn_fastopen && th->fin)
  5013. tcp_fastopen_active_disable(sk);
  5014. tcp_done(sk);
  5015. NET_INC_STATS(sock_net(sk), LINUX_MIB_TCPABORTONDATA);
  5016. return 1;
  5017. }
  5018. tmo = tcp_fin_time(sk);
  5019. if (tmo > TCP_TIMEWAIT_LEN) {
  5020. inet_csk_reset_keepalive_timer(sk, tmo - TCP_TIMEWAIT_LEN);
  5021. } else if (th->fin || sock_owned_by_user(sk)) {
  5022. /* Bad case. We could lose such FIN otherwise.
  5023. * It is not a big problem, but it looks confusing
  5024. * and not so rare event. We still can lose it now,
  5025. * if it spins in bh_lock_sock(), but it is really
  5026. * marginal case.
  5027. */
  5028. inet_csk_reset_keepalive_timer(sk, tmo);
  5029. } else {
  5030. tcp_time_wait(sk, TCP_FIN_WAIT2, tmo);
  5031. goto discard;
  5032. }
  5033. break;
  5034. }
  5035. case TCP_CLOSING:
  5036. if (tp->snd_una == tp->write_seq) {
  5037. tcp_time_wait(sk, TCP_TIME_WAIT, 0);
  5038. goto discard;
  5039. }
  5040. break;
  5041. case TCP_LAST_ACK:
  5042. if (tp->snd_una == tp->write_seq) {
  5043. tcp_update_metrics(sk);
  5044. tcp_done(sk);
  5045. goto discard;
  5046. }
  5047. break;
  5048. }
  5049. /* step 6: check the URG bit */
  5050. tcp_urg(sk, skb, th);
  5051. /* step 7: process the segment text */
  5052. switch (sk->sk_state) {
  5053. case TCP_CLOSE_WAIT:
  5054. case TCP_CLOSING:
  5055. case TCP_LAST_ACK:
  5056. if (!before(TCP_SKB_CB(skb)->seq, tp->rcv_nxt))
  5057. break;
  5058. case TCP_FIN_WAIT1:
  5059. case TCP_FIN_WAIT2:
  5060. /* RFC 793 says to queue data in these states,
  5061. * RFC 1122 says we MUST send a reset.
  5062. * BSD 4.4 also does reset.
  5063. */
  5064. if (sk->sk_shutdown & RCV_SHUTDOWN) {
  5065. if (TCP_SKB_CB(skb)->end_seq != TCP_SKB_CB(skb)->seq &&
  5066. after(TCP_SKB_CB(skb)->end_seq - th->fin, tp->rcv_nxt)) {
  5067. NET_INC_STATS(sock_net(sk), LINUX_MIB_TCPABORTONDATA);
  5068. tcp_reset(sk);
  5069. return 1;
  5070. }
  5071. }
  5072. /* Fall through */
  5073. case TCP_ESTABLISHED:
  5074. tcp_data_queue(sk, skb);
  5075. queued = 1;
  5076. break;
  5077. }
  5078. /* tcp_data could move socket to TIME-WAIT */
  5079. if (sk->sk_state != TCP_CLOSE) {
  5080. tcp_data_snd_check(sk);
  5081. tcp_ack_snd_check(sk);
  5082. }
  5083. if (!queued) {
  5084. discard:
  5085. tcp_drop(sk, skb);
  5086. }
  5087. return 0;
  5088. }
  5089. EXPORT_SYMBOL(tcp_rcv_state_process);
  5090. static inline void pr_drop_req(struct request_sock *req, __u16 port, int family)
  5091. {
  5092. struct inet_request_sock *ireq = inet_rsk(req);
  5093. if (family == AF_INET)
  5094. net_dbg_ratelimited("drop open request from %pI4/%u\n",
  5095. &ireq->ir_rmt_addr, port);
  5096. #if IS_ENABLED(CONFIG_IPV6)
  5097. else if (family == AF_INET6)
  5098. net_dbg_ratelimited("drop open request from %pI6/%u\n",
  5099. &ireq->ir_v6_rmt_addr, port);
  5100. #endif
  5101. }
  5102. /* RFC3168 : 6.1.1 SYN packets must not have ECT/ECN bits set
  5103. *
  5104. * If we receive a SYN packet with these bits set, it means a
  5105. * network is playing bad games with TOS bits. In order to
  5106. * avoid possible false congestion notifications, we disable
  5107. * TCP ECN negotiation.
  5108. *
  5109. * Exception: tcp_ca wants ECN. This is required for DCTCP
  5110. * congestion control: Linux DCTCP asserts ECT on all packets,
  5111. * including SYN, which is most optimal solution; however,
  5112. * others, such as FreeBSD do not.
  5113. */
  5114. static void tcp_ecn_create_request(struct request_sock *req,
  5115. const struct sk_buff *skb,
  5116. const struct sock *listen_sk,
  5117. const struct dst_entry *dst)
  5118. {
  5119. const struct tcphdr *th = tcp_hdr(skb);
  5120. const struct net *net = sock_net(listen_sk);
  5121. bool th_ecn = th->ece && th->cwr;
  5122. bool ect, ecn_ok;
  5123. u32 ecn_ok_dst;
  5124. if (!th_ecn)
  5125. return;
  5126. ect = !INET_ECN_is_not_ect(TCP_SKB_CB(skb)->ip_dsfield);
  5127. ecn_ok_dst = dst_feature(dst, DST_FEATURE_ECN_MASK);
  5128. ecn_ok = net->ipv4.sysctl_tcp_ecn || ecn_ok_dst;
  5129. if ((!ect && ecn_ok) || tcp_ca_needs_ecn(listen_sk) ||
  5130. (ecn_ok_dst & DST_FEATURE_ECN_CA) ||
  5131. tcp_bpf_ca_needs_ecn((struct sock *)req))
  5132. inet_rsk(req)->ecn_ok = 1;
  5133. }
  5134. static void tcp_openreq_init(struct request_sock *req,
  5135. const struct tcp_options_received *rx_opt,
  5136. struct sk_buff *skb, const struct sock *sk)
  5137. {
  5138. struct inet_request_sock *ireq = inet_rsk(req);
  5139. req->rsk_rcv_wnd = 0; /* So that tcp_send_synack() knows! */
  5140. req->cookie_ts = 0;
  5141. tcp_rsk(req)->rcv_isn = TCP_SKB_CB(skb)->seq;
  5142. tcp_rsk(req)->rcv_nxt = TCP_SKB_CB(skb)->seq + 1;
  5143. tcp_rsk(req)->snt_synack = tcp_clock_us();
  5144. tcp_rsk(req)->last_oow_ack_time = 0;
  5145. req->mss = rx_opt->mss_clamp;
  5146. req->ts_recent = rx_opt->saw_tstamp ? rx_opt->rcv_tsval : 0;
  5147. ireq->tstamp_ok = rx_opt->tstamp_ok;
  5148. ireq->sack_ok = rx_opt->sack_ok;
  5149. ireq->snd_wscale = rx_opt->snd_wscale;
  5150. ireq->wscale_ok = rx_opt->wscale_ok;
  5151. ireq->acked = 0;
  5152. ireq->ecn_ok = 0;
  5153. ireq->ir_rmt_port = tcp_hdr(skb)->source;
  5154. ireq->ir_num = ntohs(tcp_hdr(skb)->dest);
  5155. ireq->ir_mark = inet_request_mark(sk, skb);
  5156. }
  5157. struct request_sock *inet_reqsk_alloc(const struct request_sock_ops *ops,
  5158. struct sock *sk_listener,
  5159. bool attach_listener)
  5160. {
  5161. struct request_sock *req = reqsk_alloc(ops, sk_listener,
  5162. attach_listener);
  5163. if (req) {
  5164. struct inet_request_sock *ireq = inet_rsk(req);
  5165. kmemcheck_annotate_bitfield(ireq, flags);
  5166. ireq->opt = NULL;
  5167. #if IS_ENABLED(CONFIG_IPV6)
  5168. ireq->pktopts = NULL;
  5169. #endif
  5170. atomic64_set(&ireq->ir_cookie, 0);
  5171. ireq->ireq_state = TCP_NEW_SYN_RECV;
  5172. write_pnet(&ireq->ireq_net, sock_net(sk_listener));
  5173. ireq->ireq_family = sk_listener->sk_family;
  5174. }
  5175. return req;
  5176. }
  5177. EXPORT_SYMBOL(inet_reqsk_alloc);
  5178. /*
  5179. * Return true if a syncookie should be sent
  5180. */
  5181. static bool tcp_syn_flood_action(const struct sock *sk,
  5182. const struct sk_buff *skb,
  5183. const char *proto)
  5184. {
  5185. struct request_sock_queue *queue = &inet_csk(sk)->icsk_accept_queue;
  5186. const char *msg = "Dropping request";
  5187. bool want_cookie = false;
  5188. struct net *net = sock_net(sk);
  5189. #ifdef CONFIG_SYN_COOKIES
  5190. if (net->ipv4.sysctl_tcp_syncookies) {
  5191. msg = "Sending cookies";
  5192. want_cookie = true;
  5193. __NET_INC_STATS(sock_net(sk), LINUX_MIB_TCPREQQFULLDOCOOKIES);
  5194. } else
  5195. #endif
  5196. __NET_INC_STATS(sock_net(sk), LINUX_MIB_TCPREQQFULLDROP);
  5197. if (!queue->synflood_warned &&
  5198. net->ipv4.sysctl_tcp_syncookies != 2 &&
  5199. xchg(&queue->synflood_warned, 1) == 0)
  5200. pr_info("%s: Possible SYN flooding on port %d. %s. Check SNMP counters.\n",
  5201. proto, ntohs(tcp_hdr(skb)->dest), msg);
  5202. return want_cookie;
  5203. }
  5204. static void tcp_reqsk_record_syn(const struct sock *sk,
  5205. struct request_sock *req,
  5206. const struct sk_buff *skb)
  5207. {
  5208. if (tcp_sk(sk)->save_syn) {
  5209. u32 len = skb_network_header_len(skb) + tcp_hdrlen(skb);
  5210. u32 *copy;
  5211. copy = kmalloc(len + sizeof(u32), GFP_ATOMIC);
  5212. if (copy) {
  5213. copy[0] = len;
  5214. memcpy(&copy[1], skb_network_header(skb), len);
  5215. req->saved_syn = copy;
  5216. }
  5217. }
  5218. }
  5219. int tcp_conn_request(struct request_sock_ops *rsk_ops,
  5220. const struct tcp_request_sock_ops *af_ops,
  5221. struct sock *sk, struct sk_buff *skb)
  5222. {
  5223. struct tcp_fastopen_cookie foc = { .len = -1 };
  5224. __u32 isn = TCP_SKB_CB(skb)->tcp_tw_isn;
  5225. struct tcp_options_received tmp_opt;
  5226. struct tcp_sock *tp = tcp_sk(sk);
  5227. struct net *net = sock_net(sk);
  5228. struct sock *fastopen_sk = NULL;
  5229. struct dst_entry *dst = NULL;
  5230. struct request_sock *req;
  5231. bool want_cookie = false;
  5232. struct flowi fl;
  5233. /* TW buckets are converted to open requests without
  5234. * limitations, they conserve resources and peer is
  5235. * evidently real one.
  5236. */
  5237. if ((net->ipv4.sysctl_tcp_syncookies == 2 ||
  5238. inet_csk_reqsk_queue_is_full(sk)) && !isn) {
  5239. want_cookie = tcp_syn_flood_action(sk, skb, rsk_ops->slab_name);
  5240. if (!want_cookie)
  5241. goto drop;
  5242. }
  5243. if (sk_acceptq_is_full(sk)) {
  5244. NET_INC_STATS(sock_net(sk), LINUX_MIB_LISTENOVERFLOWS);
  5245. goto drop;
  5246. }
  5247. req = inet_reqsk_alloc(rsk_ops, sk, !want_cookie);
  5248. if (!req)
  5249. goto drop;
  5250. tcp_rsk(req)->af_specific = af_ops;
  5251. tcp_rsk(req)->ts_off = 0;
  5252. tcp_clear_options(&tmp_opt);
  5253. tmp_opt.mss_clamp = af_ops->mss_clamp;
  5254. tmp_opt.user_mss = tp->rx_opt.user_mss;
  5255. tcp_parse_options(sock_net(sk), skb, &tmp_opt, 0,
  5256. want_cookie ? NULL : &foc);
  5257. if (want_cookie && !tmp_opt.saw_tstamp)
  5258. tcp_clear_options(&tmp_opt);
  5259. tmp_opt.tstamp_ok = tmp_opt.saw_tstamp;
  5260. tcp_openreq_init(req, &tmp_opt, skb, sk);
  5261. inet_rsk(req)->no_srccheck = inet_sk(sk)->transparent;
  5262. /* Note: tcp_v6_init_req() might override ir_iif for link locals */
  5263. inet_rsk(req)->ir_iif = inet_request_bound_dev_if(sk, skb);
  5264. af_ops->init_req(req, sk, skb);
  5265. if (security_inet_conn_request(sk, skb, req))
  5266. goto drop_and_free;
  5267. if (tmp_opt.tstamp_ok)
  5268. tcp_rsk(req)->ts_off = af_ops->init_ts_off(net, skb);
  5269. if (!want_cookie && !isn) {
  5270. /* Kill the following clause, if you dislike this way. */
  5271. if (!net->ipv4.sysctl_tcp_syncookies &&
  5272. (net->ipv4.sysctl_max_syn_backlog - inet_csk_reqsk_queue_len(sk) <
  5273. (net->ipv4.sysctl_max_syn_backlog >> 2)) &&
  5274. !tcp_peer_is_proven(req, dst)) {
  5275. /* Without syncookies last quarter of
  5276. * backlog is filled with destinations,
  5277. * proven to be alive.
  5278. * It means that we continue to communicate
  5279. * to destinations, already remembered
  5280. * to the moment of synflood.
  5281. */
  5282. pr_drop_req(req, ntohs(tcp_hdr(skb)->source),
  5283. rsk_ops->family);
  5284. goto drop_and_release;
  5285. }
  5286. isn = af_ops->init_seq(skb);
  5287. }
  5288. if (!dst) {
  5289. dst = af_ops->route_req(sk, &fl, req);
  5290. if (!dst)
  5291. goto drop_and_free;
  5292. }
  5293. tcp_ecn_create_request(req, skb, sk, dst);
  5294. if (want_cookie) {
  5295. isn = cookie_init_sequence(af_ops, sk, skb, &req->mss);
  5296. req->cookie_ts = tmp_opt.tstamp_ok;
  5297. if (!tmp_opt.tstamp_ok)
  5298. inet_rsk(req)->ecn_ok = 0;
  5299. }
  5300. tcp_rsk(req)->snt_isn = isn;
  5301. tcp_rsk(req)->txhash = net_tx_rndhash();
  5302. tcp_openreq_init_rwin(req, sk, dst);
  5303. if (!want_cookie) {
  5304. tcp_reqsk_record_syn(sk, req, skb);
  5305. fastopen_sk = tcp_try_fastopen(sk, skb, req, &foc, dst);
  5306. }
  5307. if (fastopen_sk) {
  5308. af_ops->send_synack(fastopen_sk, dst, &fl, req,
  5309. &foc, TCP_SYNACK_FASTOPEN);
  5310. /* Add the child socket directly into the accept queue */
  5311. inet_csk_reqsk_queue_add(sk, req, fastopen_sk);
  5312. sk->sk_data_ready(sk);
  5313. bh_unlock_sock(fastopen_sk);
  5314. sock_put(fastopen_sk);
  5315. } else {
  5316. tcp_rsk(req)->tfo_listener = false;
  5317. if (!want_cookie)
  5318. inet_csk_reqsk_queue_hash_add(sk, req,
  5319. tcp_timeout_init((struct sock *)req));
  5320. af_ops->send_synack(sk, dst, &fl, req, &foc,
  5321. !want_cookie ? TCP_SYNACK_NORMAL :
  5322. TCP_SYNACK_COOKIE);
  5323. if (want_cookie) {
  5324. reqsk_free(req);
  5325. return 0;
  5326. }
  5327. }
  5328. reqsk_put(req);
  5329. return 0;
  5330. drop_and_release:
  5331. dst_release(dst);
  5332. drop_and_free:
  5333. reqsk_free(req);
  5334. drop:
  5335. tcp_listendrop(sk);
  5336. return 0;
  5337. }
  5338. EXPORT_SYMBOL(tcp_conn_request);