ccid3.c 26 KB

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  1. /*
  2. * net/dccp/ccids/ccid3.c
  3. *
  4. * Copyright (c) 2007 The University of Aberdeen, Scotland, UK
  5. * Copyright (c) 2005-7 The University of Waikato, Hamilton, New Zealand.
  6. * Copyright (c) 2005-7 Ian McDonald <ian.mcdonald@jandi.co.nz>
  7. *
  8. * An implementation of the DCCP protocol
  9. *
  10. * This code has been developed by the University of Waikato WAND
  11. * research group. For further information please see http://www.wand.net.nz/
  12. *
  13. * This code also uses code from Lulea University, rereleased as GPL by its
  14. * authors:
  15. * Copyright (c) 2003 Nils-Erik Mattsson, Joacim Haggmark, Magnus Erixzon
  16. *
  17. * Changes to meet Linux coding standards, to make it meet latest ccid3 draft
  18. * and to make it work as a loadable module in the DCCP stack written by
  19. * Arnaldo Carvalho de Melo <acme@conectiva.com.br>.
  20. *
  21. * Copyright (c) 2005 Arnaldo Carvalho de Melo <acme@conectiva.com.br>
  22. *
  23. * This program is free software; you can redistribute it and/or modify
  24. * it under the terms of the GNU General Public License as published by
  25. * the Free Software Foundation; either version 2 of the License, or
  26. * (at your option) any later version.
  27. *
  28. * This program is distributed in the hope that it will be useful,
  29. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  30. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  31. * GNU General Public License for more details.
  32. *
  33. * You should have received a copy of the GNU General Public License
  34. * along with this program; if not, write to the Free Software
  35. * Foundation, Inc., 675 Mass Ave, Cambridge, MA 02139, USA.
  36. */
  37. #include "../dccp.h"
  38. #include "ccid3.h"
  39. #include <asm/unaligned.h>
  40. #ifdef CONFIG_IP_DCCP_CCID3_DEBUG
  41. static int ccid3_debug;
  42. #define ccid3_pr_debug(format, a...) DCCP_PR_DEBUG(ccid3_debug, format, ##a)
  43. #else
  44. #define ccid3_pr_debug(format, a...)
  45. #endif
  46. /*
  47. * Transmitter Half-Connection Routines
  48. */
  49. #ifdef CONFIG_IP_DCCP_CCID3_DEBUG
  50. static const char *ccid3_tx_state_name(enum ccid3_hc_tx_states state)
  51. {
  52. static char *ccid3_state_names[] = {
  53. [TFRC_SSTATE_NO_SENT] = "NO_SENT",
  54. [TFRC_SSTATE_NO_FBACK] = "NO_FBACK",
  55. [TFRC_SSTATE_FBACK] = "FBACK",
  56. [TFRC_SSTATE_TERM] = "TERM",
  57. };
  58. return ccid3_state_names[state];
  59. }
  60. #endif
  61. static void ccid3_hc_tx_set_state(struct sock *sk,
  62. enum ccid3_hc_tx_states state)
  63. {
  64. struct ccid3_hc_tx_sock *hctx = ccid3_hc_tx_sk(sk);
  65. enum ccid3_hc_tx_states oldstate = hctx->state;
  66. ccid3_pr_debug("%s(%p) %-8.8s -> %s\n",
  67. dccp_role(sk), sk, ccid3_tx_state_name(oldstate),
  68. ccid3_tx_state_name(state));
  69. WARN_ON(state == oldstate);
  70. hctx->state = state;
  71. }
  72. /*
  73. * Compute the initial sending rate X_init in the manner of RFC 3390:
  74. *
  75. * X_init = min(4 * s, max(2 * s, 4380 bytes)) / RTT
  76. *
  77. * Note that RFC 3390 uses MSS, RFC 4342 refers to RFC 3390, and rfc3448bis
  78. * (rev-02) clarifies the use of RFC 3390 with regard to the above formula.
  79. * For consistency with other parts of the code, X_init is scaled by 2^6.
  80. */
  81. static inline u64 rfc3390_initial_rate(struct sock *sk)
  82. {
  83. const struct ccid3_hc_tx_sock *hctx = ccid3_hc_tx_sk(sk);
  84. const __u32 w_init = clamp_t(__u32, 4380U, 2 * hctx->s, 4 * hctx->s);
  85. return scaled_div(w_init << 6, hctx->rtt);
  86. }
  87. /**
  88. * ccid3_update_send_interval - Calculate new t_ipi = s / X_inst
  89. * This respects the granularity of X_inst (64 * bytes/second).
  90. */
  91. static void ccid3_update_send_interval(struct ccid3_hc_tx_sock *hctx)
  92. {
  93. hctx->t_ipi = scaled_div32(((u64)hctx->s) << 6, hctx->x);
  94. ccid3_pr_debug("t_ipi=%u, s=%u, X=%u\n", hctx->t_ipi,
  95. hctx->s, (unsigned)(hctx->x >> 6));
  96. }
  97. static u32 ccid3_hc_tx_idle_rtt(struct ccid3_hc_tx_sock *hctx, ktime_t now)
  98. {
  99. u32 delta = ktime_us_delta(now, hctx->t_last_win_count);
  100. return delta / hctx->rtt;
  101. }
  102. /**
  103. * ccid3_hc_tx_update_x - Update allowed sending rate X
  104. * @stamp: most recent time if available - can be left NULL.
  105. * This function tracks draft rfc3448bis, check there for latest details.
  106. *
  107. * Note: X and X_recv are both stored in units of 64 * bytes/second, to support
  108. * fine-grained resolution of sending rates. This requires scaling by 2^6
  109. * throughout the code. Only X_calc is unscaled (in bytes/second).
  110. *
  111. */
  112. static void ccid3_hc_tx_update_x(struct sock *sk, ktime_t *stamp)
  113. {
  114. struct ccid3_hc_tx_sock *hctx = ccid3_hc_tx_sk(sk);
  115. u64 min_rate = 2 * hctx->x_recv;
  116. const u64 old_x = hctx->x;
  117. ktime_t now = stamp ? *stamp : ktime_get_real();
  118. /*
  119. * Handle IDLE periods: do not reduce below RFC3390 initial sending rate
  120. * when idling [RFC 4342, 5.1]. Definition of idling is from rfc3448bis:
  121. * a sender is idle if it has not sent anything over a 2-RTT-period.
  122. * For consistency with X and X_recv, min_rate is also scaled by 2^6.
  123. */
  124. if (ccid3_hc_tx_idle_rtt(hctx, now) >= 2) {
  125. min_rate = rfc3390_initial_rate(sk);
  126. min_rate = max(min_rate, 2 * hctx->x_recv);
  127. }
  128. if (hctx->p > 0) {
  129. hctx->x = min(((u64)hctx->x_calc) << 6, min_rate);
  130. hctx->x = max(hctx->x, (((u64)hctx->s) << 6) / TFRC_T_MBI);
  131. } else if (ktime_us_delta(now, hctx->t_ld) - (s64)hctx->rtt >= 0) {
  132. hctx->x = min(2 * hctx->x, min_rate);
  133. hctx->x = max(hctx->x,
  134. scaled_div(((u64)hctx->s) << 6, hctx->rtt));
  135. hctx->t_ld = now;
  136. }
  137. if (hctx->x != old_x) {
  138. ccid3_pr_debug("X_prev=%u, X_now=%u, X_calc=%u, "
  139. "X_recv=%u\n", (unsigned)(old_x >> 6),
  140. (unsigned)(hctx->x >> 6), hctx->x_calc,
  141. (unsigned)(hctx->x_recv >> 6));
  142. ccid3_update_send_interval(hctx);
  143. }
  144. }
  145. /*
  146. * Track the mean packet size `s' (cf. RFC 4342, 5.3 and RFC 3448, 4.1)
  147. * @len: DCCP packet payload size in bytes
  148. */
  149. static inline void ccid3_hc_tx_update_s(struct ccid3_hc_tx_sock *hctx, int len)
  150. {
  151. const u16 old_s = hctx->s;
  152. hctx->s = tfrc_ewma(hctx->s, len, 9);
  153. if (hctx->s != old_s)
  154. ccid3_update_send_interval(hctx);
  155. }
  156. /*
  157. * Update Window Counter using the algorithm from [RFC 4342, 8.1].
  158. * As elsewhere, RTT > 0 is assumed by using dccp_sample_rtt().
  159. */
  160. static inline void ccid3_hc_tx_update_win_count(struct ccid3_hc_tx_sock *hctx,
  161. ktime_t now)
  162. {
  163. u32 delta = ktime_us_delta(now, hctx->t_last_win_count),
  164. quarter_rtts = (4 * delta) / hctx->rtt;
  165. if (quarter_rtts > 0) {
  166. hctx->t_last_win_count = now;
  167. hctx->last_win_count += min(quarter_rtts, 5U);
  168. hctx->last_win_count &= 0xF; /* mod 16 */
  169. }
  170. }
  171. static void ccid3_hc_tx_no_feedback_timer(unsigned long data)
  172. {
  173. struct sock *sk = (struct sock *)data;
  174. struct ccid3_hc_tx_sock *hctx = ccid3_hc_tx_sk(sk);
  175. unsigned long t_nfb = USEC_PER_SEC / 5;
  176. bh_lock_sock(sk);
  177. if (sock_owned_by_user(sk)) {
  178. /* Try again later. */
  179. /* XXX: set some sensible MIB */
  180. goto restart_timer;
  181. }
  182. ccid3_pr_debug("%s(%p, state=%s) - entry \n", dccp_role(sk), sk,
  183. ccid3_tx_state_name(hctx->state));
  184. if (hctx->state == TFRC_SSTATE_FBACK)
  185. ccid3_hc_tx_set_state(sk, TFRC_SSTATE_NO_FBACK);
  186. else if (hctx->state != TFRC_SSTATE_NO_FBACK)
  187. goto out;
  188. /*
  189. * Determine new allowed sending rate X as per draft rfc3448bis-00, 4.4
  190. * RTO is 0 if and only if no feedback has been received yet.
  191. */
  192. if (hctx->t_rto == 0 || hctx->p == 0) {
  193. /* halve send rate directly */
  194. hctx->x = max(hctx->x / 2, (((u64)hctx->s) << 6) / TFRC_T_MBI);
  195. ccid3_update_send_interval(hctx);
  196. } else {
  197. /*
  198. * Modify the cached value of X_recv
  199. *
  200. * If (X_calc > 2 * X_recv)
  201. * X_recv = max(X_recv / 2, s / (2 * t_mbi));
  202. * Else
  203. * X_recv = X_calc / 4;
  204. *
  205. * Note that X_recv is scaled by 2^6 while X_calc is not
  206. */
  207. BUG_ON(hctx->p && !hctx->x_calc);
  208. if (hctx->x_calc > (hctx->x_recv >> 5))
  209. hctx->x_recv =
  210. max(hctx->x_recv / 2,
  211. (((__u64)hctx->s) << 6) / (2 * TFRC_T_MBI));
  212. else {
  213. hctx->x_recv = hctx->x_calc;
  214. hctx->x_recv <<= 4;
  215. }
  216. ccid3_hc_tx_update_x(sk, NULL);
  217. }
  218. ccid3_pr_debug("Reduced X to %llu/64 bytes/sec\n",
  219. (unsigned long long)hctx->x);
  220. /*
  221. * Set new timeout for the nofeedback timer.
  222. * See comments in packet_recv() regarding the value of t_RTO.
  223. */
  224. if (unlikely(hctx->t_rto == 0)) /* no feedback received yet */
  225. t_nfb = TFRC_INITIAL_TIMEOUT;
  226. else
  227. t_nfb = max(hctx->t_rto, 2 * hctx->t_ipi);
  228. restart_timer:
  229. sk_reset_timer(sk, &hctx->no_feedback_timer,
  230. jiffies + usecs_to_jiffies(t_nfb));
  231. out:
  232. bh_unlock_sock(sk);
  233. sock_put(sk);
  234. }
  235. /*
  236. * returns
  237. * > 0: delay (in msecs) that should pass before actually sending
  238. * = 0: can send immediately
  239. * < 0: error condition; do not send packet
  240. */
  241. static int ccid3_hc_tx_send_packet(struct sock *sk, struct sk_buff *skb)
  242. {
  243. struct dccp_sock *dp = dccp_sk(sk);
  244. struct ccid3_hc_tx_sock *hctx = ccid3_hc_tx_sk(sk);
  245. ktime_t now = ktime_get_real();
  246. s64 delay;
  247. /*
  248. * This function is called only for Data and DataAck packets. Sending
  249. * zero-sized Data(Ack)s is theoretically possible, but for congestion
  250. * control this case is pathological - ignore it.
  251. */
  252. if (unlikely(skb->len == 0))
  253. return -EBADMSG;
  254. switch (hctx->state) {
  255. case TFRC_SSTATE_NO_SENT:
  256. sk_reset_timer(sk, &hctx->no_feedback_timer, (jiffies +
  257. usecs_to_jiffies(TFRC_INITIAL_TIMEOUT)));
  258. hctx->last_win_count = 0;
  259. hctx->t_last_win_count = now;
  260. /* Set t_0 for initial packet */
  261. hctx->t_nom = now;
  262. hctx->s = skb->len;
  263. /*
  264. * Use initial RTT sample when available: recommended by erratum
  265. * to RFC 4342. This implements the initialisation procedure of
  266. * draft rfc3448bis, section 4.2. Remember, X is scaled by 2^6.
  267. */
  268. if (dp->dccps_syn_rtt) {
  269. ccid3_pr_debug("SYN RTT = %uus\n", dp->dccps_syn_rtt);
  270. hctx->rtt = dp->dccps_syn_rtt;
  271. hctx->x = rfc3390_initial_rate(sk);
  272. hctx->t_ld = now;
  273. } else {
  274. /*
  275. * Sender does not have RTT sample:
  276. * - set fallback RTT (RFC 4340, 3.4) since a RTT value
  277. * is needed in several parts (e.g. window counter);
  278. * - set sending rate X_pps = 1pps as per RFC 3448, 4.2.
  279. */
  280. hctx->rtt = DCCP_FALLBACK_RTT;
  281. hctx->x = hctx->s;
  282. hctx->x <<= 6;
  283. }
  284. ccid3_update_send_interval(hctx);
  285. ccid3_hc_tx_set_state(sk, TFRC_SSTATE_NO_FBACK);
  286. break;
  287. case TFRC_SSTATE_NO_FBACK:
  288. case TFRC_SSTATE_FBACK:
  289. delay = ktime_us_delta(hctx->t_nom, now);
  290. ccid3_pr_debug("delay=%ld\n", (long)delay);
  291. /*
  292. * Scheduling of packet transmissions [RFC 3448, 4.6]
  293. *
  294. * if (t_now > t_nom - delta)
  295. * // send the packet now
  296. * else
  297. * // send the packet in (t_nom - t_now) milliseconds.
  298. */
  299. if (delay >= TFRC_T_DELTA)
  300. return (u32)delay / USEC_PER_MSEC;
  301. ccid3_hc_tx_update_win_count(hctx, now);
  302. break;
  303. case TFRC_SSTATE_TERM:
  304. DCCP_BUG("%s(%p) - Illegal state TERM", dccp_role(sk), sk);
  305. return -EINVAL;
  306. }
  307. /* prepare to send now (add options etc.) */
  308. dp->dccps_hc_tx_insert_options = 1;
  309. DCCP_SKB_CB(skb)->dccpd_ccval = hctx->last_win_count;
  310. /* set the nominal send time for the next following packet */
  311. hctx->t_nom = ktime_add_us(hctx->t_nom, hctx->t_ipi);
  312. return 0;
  313. }
  314. static void ccid3_hc_tx_packet_sent(struct sock *sk, int more,
  315. unsigned int len)
  316. {
  317. struct ccid3_hc_tx_sock *hctx = ccid3_hc_tx_sk(sk);
  318. ccid3_hc_tx_update_s(hctx, len);
  319. if (tfrc_tx_hist_add(&hctx->hist, dccp_sk(sk)->dccps_gss))
  320. DCCP_CRIT("packet history - out of memory!");
  321. }
  322. static void ccid3_hc_tx_packet_recv(struct sock *sk, struct sk_buff *skb)
  323. {
  324. struct ccid3_hc_tx_sock *hctx = ccid3_hc_tx_sk(sk);
  325. struct ccid3_options_received *opt_recv = &hctx->options_received;
  326. struct tfrc_tx_hist_entry *acked;
  327. ktime_t now;
  328. unsigned long t_nfb;
  329. u32 pinv, r_sample;
  330. /* we are only interested in ACKs */
  331. if (!(DCCP_SKB_CB(skb)->dccpd_type == DCCP_PKT_ACK ||
  332. DCCP_SKB_CB(skb)->dccpd_type == DCCP_PKT_DATAACK))
  333. return;
  334. /* ... and only in the established state */
  335. if (hctx->state != TFRC_SSTATE_FBACK &&
  336. hctx->state != TFRC_SSTATE_NO_FBACK)
  337. return;
  338. /*
  339. * Locate the acknowledged packet in the TX history.
  340. *
  341. * Returning "entry not found" here can for instance happen when
  342. * - the host has not sent out anything (e.g. a passive server),
  343. * - the Ack is outdated (packet with higher Ack number was received),
  344. * - it is a bogus Ack (for a packet not sent on this connection).
  345. */
  346. acked = tfrc_tx_hist_find_entry(hctx->hist, dccp_hdr_ack_seq(skb));
  347. if (acked == NULL)
  348. return;
  349. /* For the sake of RTT sampling, ignore/remove all older entries */
  350. tfrc_tx_hist_purge(&acked->next);
  351. /* Update the moving average for the RTT estimate (RFC 3448, 4.3) */
  352. now = ktime_get_real();
  353. r_sample = dccp_sample_rtt(sk, ktime_us_delta(now, acked->stamp));
  354. hctx->rtt = tfrc_ewma(hctx->rtt, r_sample, 9);
  355. /* Update receive rate in units of 64 * bytes/second */
  356. hctx->x_recv = opt_recv->ccid3or_receive_rate;
  357. hctx->x_recv <<= 6;
  358. /* Update loss event rate (which is scaled by 1e6) */
  359. pinv = opt_recv->ccid3or_loss_event_rate;
  360. if (pinv == 0)
  361. hctx->p = 0;
  362. else
  363. hctx->p = tfrc_invert_loss_event_rate(pinv);
  364. /*
  365. * Update allowed sending rate X as per draft rfc3448bis-00, 4.2/3
  366. */
  367. if (hctx->state == TFRC_SSTATE_NO_FBACK) {
  368. ccid3_hc_tx_set_state(sk, TFRC_SSTATE_FBACK);
  369. if (hctx->t_rto == 0) {
  370. /*
  371. * Initial feedback packet: Larger Initial Windows (4.2)
  372. */
  373. hctx->x = rfc3390_initial_rate(sk);
  374. hctx->t_ld = now;
  375. ccid3_update_send_interval(hctx);
  376. goto done_computing_x;
  377. } else if (hctx->p == 0) {
  378. /*
  379. * First feedback after nofeedback timer expiry (4.3)
  380. */
  381. goto done_computing_x;
  382. }
  383. }
  384. /* Update sending rate (step 4 of [RFC 3448, 4.3]) */
  385. if (hctx->p > 0)
  386. hctx->x_calc = tfrc_calc_x(hctx->s, hctx->rtt, hctx->p);
  387. ccid3_hc_tx_update_x(sk, &now);
  388. done_computing_x:
  389. ccid3_pr_debug("%s(%p), RTT=%uus (sample=%uus), s=%u, "
  390. "p=%u, X_calc=%u, X_recv=%u, X=%u\n",
  391. dccp_role(sk), sk, hctx->rtt, r_sample,
  392. hctx->s, hctx->p, hctx->x_calc,
  393. (unsigned)(hctx->x_recv >> 6),
  394. (unsigned)(hctx->x >> 6));
  395. /* unschedule no feedback timer */
  396. sk_stop_timer(sk, &hctx->no_feedback_timer);
  397. /*
  398. * As we have calculated new ipi, delta, t_nom it is possible
  399. * that we now can send a packet, so wake up dccp_wait_for_ccid
  400. */
  401. sk->sk_write_space(sk);
  402. /*
  403. * Update timeout interval for the nofeedback timer.
  404. * We use a configuration option to increase the lower bound.
  405. * This can help avoid triggering the nofeedback timer too
  406. * often ('spinning') on LANs with small RTTs.
  407. */
  408. hctx->t_rto = max_t(u32, 4 * hctx->rtt, (CONFIG_IP_DCCP_CCID3_RTO *
  409. (USEC_PER_SEC / 1000)));
  410. /*
  411. * Schedule no feedback timer to expire in
  412. * max(t_RTO, 2 * s/X) = max(t_RTO, 2 * t_ipi)
  413. */
  414. t_nfb = max(hctx->t_rto, 2 * hctx->t_ipi);
  415. ccid3_pr_debug("%s(%p), Scheduled no feedback timer to "
  416. "expire in %lu jiffies (%luus)\n",
  417. dccp_role(sk), sk, usecs_to_jiffies(t_nfb), t_nfb);
  418. sk_reset_timer(sk, &hctx->no_feedback_timer,
  419. jiffies + usecs_to_jiffies(t_nfb));
  420. }
  421. static int ccid3_hc_tx_parse_options(struct sock *sk, u8 packet_type,
  422. u8 option, u8 *optval, u8 optlen)
  423. {
  424. struct ccid3_hc_tx_sock *hctx = ccid3_hc_tx_sk(sk);
  425. struct ccid3_options_received *opt_recv = &hctx->options_received;
  426. __be32 opt_val;
  427. switch (option) {
  428. case TFRC_OPT_RECEIVE_RATE:
  429. case TFRC_OPT_LOSS_EVENT_RATE:
  430. /* Must be ignored on Data packets, cf. RFC 4342 8.3 and 8.5 */
  431. if (packet_type == DCCP_PKT_DATA)
  432. break;
  433. if (unlikely(optlen != 4)) {
  434. DCCP_WARN("%s(%p), invalid len %d for %u\n",
  435. dccp_role(sk), sk, optlen, option);
  436. return -EINVAL;
  437. }
  438. opt_val = ntohl(get_unaligned((__be32 *)optval));
  439. if (option == TFRC_OPT_RECEIVE_RATE) {
  440. opt_recv->ccid3or_receive_rate = opt_val;
  441. ccid3_pr_debug("%s(%p), RECEIVE_RATE=%u\n",
  442. dccp_role(sk), sk, opt_val);
  443. } else {
  444. opt_recv->ccid3or_loss_event_rate = opt_val;
  445. ccid3_pr_debug("%s(%p), LOSS_EVENT_RATE=%u\n",
  446. dccp_role(sk), sk, opt_val);
  447. }
  448. }
  449. return 0;
  450. }
  451. static int ccid3_hc_tx_init(struct ccid *ccid, struct sock *sk)
  452. {
  453. struct ccid3_hc_tx_sock *hctx = ccid_priv(ccid);
  454. hctx->state = TFRC_SSTATE_NO_SENT;
  455. hctx->hist = NULL;
  456. setup_timer(&hctx->no_feedback_timer,
  457. ccid3_hc_tx_no_feedback_timer, (unsigned long)sk);
  458. return 0;
  459. }
  460. static void ccid3_hc_tx_exit(struct sock *sk)
  461. {
  462. struct ccid3_hc_tx_sock *hctx = ccid3_hc_tx_sk(sk);
  463. ccid3_hc_tx_set_state(sk, TFRC_SSTATE_TERM);
  464. sk_stop_timer(sk, &hctx->no_feedback_timer);
  465. tfrc_tx_hist_purge(&hctx->hist);
  466. }
  467. static void ccid3_hc_tx_get_info(struct sock *sk, struct tcp_info *info)
  468. {
  469. info->tcpi_rto = ccid3_hc_tx_sk(sk)->t_rto;
  470. info->tcpi_rtt = ccid3_hc_tx_sk(sk)->rtt;
  471. }
  472. static int ccid3_hc_tx_getsockopt(struct sock *sk, const int optname, int len,
  473. u32 __user *optval, int __user *optlen)
  474. {
  475. const struct ccid3_hc_tx_sock *hctx = ccid3_hc_tx_sk(sk);
  476. struct tfrc_tx_info tfrc;
  477. const void *val;
  478. switch (optname) {
  479. case DCCP_SOCKOPT_CCID_TX_INFO:
  480. if (len < sizeof(tfrc))
  481. return -EINVAL;
  482. tfrc.tfrctx_x = hctx->x;
  483. tfrc.tfrctx_x_recv = hctx->x_recv;
  484. tfrc.tfrctx_x_calc = hctx->x_calc;
  485. tfrc.tfrctx_rtt = hctx->rtt;
  486. tfrc.tfrctx_p = hctx->p;
  487. tfrc.tfrctx_rto = hctx->t_rto;
  488. tfrc.tfrctx_ipi = hctx->t_ipi;
  489. len = sizeof(tfrc);
  490. val = &tfrc;
  491. break;
  492. default:
  493. return -ENOPROTOOPT;
  494. }
  495. if (put_user(len, optlen) || copy_to_user(optval, val, len))
  496. return -EFAULT;
  497. return 0;
  498. }
  499. /*
  500. * Receiver Half-Connection Routines
  501. */
  502. /* CCID3 feedback types */
  503. enum ccid3_fback_type {
  504. CCID3_FBACK_NONE = 0,
  505. CCID3_FBACK_INITIAL,
  506. CCID3_FBACK_PERIODIC,
  507. CCID3_FBACK_PARAM_CHANGE
  508. };
  509. #ifdef CONFIG_IP_DCCP_CCID3_DEBUG
  510. static const char *ccid3_rx_state_name(enum ccid3_hc_rx_states state)
  511. {
  512. static char *ccid3_rx_state_names[] = {
  513. [TFRC_RSTATE_NO_DATA] = "NO_DATA",
  514. [TFRC_RSTATE_DATA] = "DATA",
  515. [TFRC_RSTATE_TERM] = "TERM",
  516. };
  517. return ccid3_rx_state_names[state];
  518. }
  519. #endif
  520. static void ccid3_hc_rx_set_state(struct sock *sk,
  521. enum ccid3_hc_rx_states state)
  522. {
  523. struct ccid3_hc_rx_sock *hcrx = ccid3_hc_rx_sk(sk);
  524. enum ccid3_hc_rx_states oldstate = hcrx->state;
  525. ccid3_pr_debug("%s(%p) %-8.8s -> %s\n",
  526. dccp_role(sk), sk, ccid3_rx_state_name(oldstate),
  527. ccid3_rx_state_name(state));
  528. WARN_ON(state == oldstate);
  529. hcrx->state = state;
  530. }
  531. static void ccid3_hc_rx_send_feedback(struct sock *sk,
  532. const struct sk_buff *skb,
  533. enum ccid3_fback_type fbtype)
  534. {
  535. struct ccid3_hc_rx_sock *hcrx = ccid3_hc_rx_sk(sk);
  536. struct dccp_sock *dp = dccp_sk(sk);
  537. ktime_t now;
  538. s64 delta = 0;
  539. if (unlikely(hcrx->state == TFRC_RSTATE_TERM))
  540. return;
  541. now = ktime_get_real();
  542. switch (fbtype) {
  543. case CCID3_FBACK_INITIAL:
  544. hcrx->x_recv = 0;
  545. hcrx->p_inverse = ~0U; /* see RFC 4342, 8.5 */
  546. break;
  547. case CCID3_FBACK_PARAM_CHANGE:
  548. /*
  549. * When parameters change (new loss or p > p_prev), we do not
  550. * have a reliable estimate for R_m of [RFC 3448, 6.2] and so
  551. * need to reuse the previous value of X_recv. However, when
  552. * X_recv was 0 (due to early loss), this would kill X down to
  553. * s/t_mbi (i.e. one packet in 64 seconds).
  554. * To avoid such drastic reduction, we approximate X_recv as
  555. * the number of bytes since last feedback.
  556. * This is a safe fallback, since X is bounded above by X_calc.
  557. */
  558. if (hcrx->x_recv > 0)
  559. break;
  560. /* fall through */
  561. case CCID3_FBACK_PERIODIC:
  562. delta = ktime_us_delta(now, hcrx->tstamp_last_feedback);
  563. if (delta <= 0)
  564. DCCP_BUG("delta (%ld) <= 0", (long)delta);
  565. else
  566. hcrx->x_recv = scaled_div32(hcrx->bytes_recv, delta);
  567. break;
  568. default:
  569. return;
  570. }
  571. ccid3_pr_debug("Interval %ldusec, X_recv=%u, 1/p=%u\n",
  572. (long)delta, hcrx->x_recv, hcrx->p_inverse);
  573. hcrx->tstamp_last_feedback = now;
  574. hcrx->last_counter = dccp_hdr(skb)->dccph_ccval;
  575. hcrx->bytes_recv = 0;
  576. dp->dccps_hc_rx_insert_options = 1;
  577. dccp_send_ack(sk);
  578. }
  579. static int ccid3_hc_rx_insert_options(struct sock *sk, struct sk_buff *skb)
  580. {
  581. const struct ccid3_hc_rx_sock *hcrx = ccid3_hc_rx_sk(sk);
  582. __be32 x_recv, pinv;
  583. if (!(sk->sk_state == DCCP_OPEN || sk->sk_state == DCCP_PARTOPEN))
  584. return 0;
  585. if (dccp_packet_without_ack(skb))
  586. return 0;
  587. x_recv = htonl(hcrx->x_recv);
  588. pinv = htonl(hcrx->p_inverse);
  589. if (dccp_insert_option(sk, skb, TFRC_OPT_LOSS_EVENT_RATE,
  590. &pinv, sizeof(pinv)) ||
  591. dccp_insert_option(sk, skb, TFRC_OPT_RECEIVE_RATE,
  592. &x_recv, sizeof(x_recv)))
  593. return -1;
  594. return 0;
  595. }
  596. /** ccid3_first_li - Implements [RFC 3448, 6.3.1]
  597. *
  598. * Determine the length of the first loss interval via inverse lookup.
  599. * Assume that X_recv can be computed by the throughput equation
  600. * s
  601. * X_recv = --------
  602. * R * fval
  603. * Find some p such that f(p) = fval; return 1/p (scaled).
  604. */
  605. static u32 ccid3_first_li(struct sock *sk)
  606. {
  607. struct ccid3_hc_rx_sock *hcrx = ccid3_hc_rx_sk(sk);
  608. u32 x_recv, p, delta;
  609. u64 fval;
  610. if (hcrx->rtt == 0) {
  611. DCCP_WARN("No RTT estimate available, using fallback RTT\n");
  612. hcrx->rtt = DCCP_FALLBACK_RTT;
  613. }
  614. delta = ktime_to_us(net_timedelta(hcrx->tstamp_last_feedback));
  615. x_recv = scaled_div32(hcrx->bytes_recv, delta);
  616. if (x_recv == 0) { /* would also trigger divide-by-zero */
  617. DCCP_WARN("X_recv==0\n");
  618. if (hcrx->x_recv == 0) {
  619. DCCP_BUG("stored value of X_recv is zero");
  620. return ~0U;
  621. }
  622. x_recv = hcrx->x_recv;
  623. }
  624. fval = scaled_div(hcrx->s, hcrx->rtt);
  625. fval = scaled_div32(fval, x_recv);
  626. p = tfrc_calc_x_reverse_lookup(fval);
  627. ccid3_pr_debug("%s(%p), receive rate=%u bytes/s, implied "
  628. "loss rate=%u\n", dccp_role(sk), sk, x_recv, p);
  629. return p == 0 ? ~0U : scaled_div(1, p);
  630. }
  631. static void ccid3_hc_rx_packet_recv(struct sock *sk, struct sk_buff *skb)
  632. {
  633. struct ccid3_hc_rx_sock *hcrx = ccid3_hc_rx_sk(sk);
  634. enum ccid3_fback_type do_feedback = CCID3_FBACK_NONE;
  635. const u64 ndp = dccp_sk(sk)->dccps_options_received.dccpor_ndp;
  636. const bool is_data_packet = dccp_data_packet(skb);
  637. if (unlikely(hcrx->state == TFRC_RSTATE_NO_DATA)) {
  638. if (is_data_packet) {
  639. const u32 payload = skb->len - dccp_hdr(skb)->dccph_doff * 4;
  640. do_feedback = CCID3_FBACK_INITIAL;
  641. ccid3_hc_rx_set_state(sk, TFRC_RSTATE_DATA);
  642. hcrx->s = payload;
  643. /*
  644. * Not necessary to update bytes_recv here,
  645. * since X_recv = 0 for the first feedback packet (cf.
  646. * RFC 3448, 6.3) -- gerrit
  647. */
  648. }
  649. goto update_records;
  650. }
  651. if (tfrc_rx_hist_duplicate(&hcrx->hist, skb))
  652. return; /* done receiving */
  653. if (is_data_packet) {
  654. const u32 payload = skb->len - dccp_hdr(skb)->dccph_doff * 4;
  655. /*
  656. * Update moving-average of s and the sum of received payload bytes
  657. */
  658. hcrx->s = tfrc_ewma(hcrx->s, payload, 9);
  659. hcrx->bytes_recv += payload;
  660. }
  661. /*
  662. * Perform loss detection and handle pending losses
  663. */
  664. if (tfrc_rx_handle_loss(&hcrx->hist, &hcrx->li_hist,
  665. skb, ndp, ccid3_first_li, sk)) {
  666. do_feedback = CCID3_FBACK_PARAM_CHANGE;
  667. goto done_receiving;
  668. }
  669. if (tfrc_rx_hist_loss_pending(&hcrx->hist))
  670. return; /* done receiving */
  671. /*
  672. * Handle data packets: RTT sampling and monitoring p
  673. */
  674. if (unlikely(!is_data_packet))
  675. goto update_records;
  676. if (!tfrc_lh_is_initialised(&hcrx->li_hist)) {
  677. const u32 sample = tfrc_rx_hist_sample_rtt(&hcrx->hist, skb);
  678. /*
  679. * Empty loss history: no loss so far, hence p stays 0.
  680. * Sample RTT values, since an RTT estimate is required for the
  681. * computation of p when the first loss occurs; RFC 3448, 6.3.1.
  682. */
  683. if (sample != 0)
  684. hcrx->rtt = tfrc_ewma(hcrx->rtt, sample, 9);
  685. } else if (tfrc_lh_update_i_mean(&hcrx->li_hist, skb)) {
  686. /*
  687. * Step (3) of [RFC 3448, 6.1]: Recompute I_mean and, if I_mean
  688. * has decreased (resp. p has increased), send feedback now.
  689. */
  690. do_feedback = CCID3_FBACK_PARAM_CHANGE;
  691. }
  692. /*
  693. * Check if the periodic once-per-RTT feedback is due; RFC 4342, 10.3
  694. */
  695. if (SUB16(dccp_hdr(skb)->dccph_ccval, hcrx->last_counter) > 3)
  696. do_feedback = CCID3_FBACK_PERIODIC;
  697. update_records:
  698. tfrc_rx_hist_add_packet(&hcrx->hist, skb, ndp);
  699. done_receiving:
  700. if (do_feedback)
  701. ccid3_hc_rx_send_feedback(sk, skb, do_feedback);
  702. }
  703. static int ccid3_hc_rx_init(struct ccid *ccid, struct sock *sk)
  704. {
  705. struct ccid3_hc_rx_sock *hcrx = ccid_priv(ccid);
  706. hcrx->state = TFRC_RSTATE_NO_DATA;
  707. tfrc_lh_init(&hcrx->li_hist);
  708. return tfrc_rx_hist_alloc(&hcrx->hist);
  709. }
  710. static void ccid3_hc_rx_exit(struct sock *sk)
  711. {
  712. struct ccid3_hc_rx_sock *hcrx = ccid3_hc_rx_sk(sk);
  713. ccid3_hc_rx_set_state(sk, TFRC_RSTATE_TERM);
  714. tfrc_rx_hist_purge(&hcrx->hist);
  715. tfrc_lh_cleanup(&hcrx->li_hist);
  716. }
  717. static void ccid3_hc_rx_get_info(struct sock *sk, struct tcp_info *info)
  718. {
  719. info->tcpi_ca_state = ccid3_hc_rx_sk(sk)->state;
  720. info->tcpi_options |= TCPI_OPT_TIMESTAMPS;
  721. info->tcpi_rcv_rtt = ccid3_hc_rx_sk(sk)->rtt;
  722. }
  723. static int ccid3_hc_rx_getsockopt(struct sock *sk, const int optname, int len,
  724. u32 __user *optval, int __user *optlen)
  725. {
  726. const struct ccid3_hc_rx_sock *hcrx = ccid3_hc_rx_sk(sk);
  727. struct tfrc_rx_info rx_info;
  728. const void *val;
  729. switch (optname) {
  730. case DCCP_SOCKOPT_CCID_RX_INFO:
  731. if (len < sizeof(rx_info))
  732. return -EINVAL;
  733. rx_info.tfrcrx_x_recv = hcrx->x_recv;
  734. rx_info.tfrcrx_rtt = hcrx->rtt;
  735. rx_info.tfrcrx_p = tfrc_invert_loss_event_rate(hcrx->p_inverse);
  736. len = sizeof(rx_info);
  737. val = &rx_info;
  738. break;
  739. default:
  740. return -ENOPROTOOPT;
  741. }
  742. if (put_user(len, optlen) || copy_to_user(optval, val, len))
  743. return -EFAULT;
  744. return 0;
  745. }
  746. static struct ccid_operations ccid3 = {
  747. .ccid_id = DCCPC_CCID3,
  748. .ccid_name = "TCP-Friendly Rate Control",
  749. .ccid_owner = THIS_MODULE,
  750. .ccid_hc_tx_obj_size = sizeof(struct ccid3_hc_tx_sock),
  751. .ccid_hc_tx_init = ccid3_hc_tx_init,
  752. .ccid_hc_tx_exit = ccid3_hc_tx_exit,
  753. .ccid_hc_tx_send_packet = ccid3_hc_tx_send_packet,
  754. .ccid_hc_tx_packet_sent = ccid3_hc_tx_packet_sent,
  755. .ccid_hc_tx_packet_recv = ccid3_hc_tx_packet_recv,
  756. .ccid_hc_tx_parse_options = ccid3_hc_tx_parse_options,
  757. .ccid_hc_rx_obj_size = sizeof(struct ccid3_hc_rx_sock),
  758. .ccid_hc_rx_init = ccid3_hc_rx_init,
  759. .ccid_hc_rx_exit = ccid3_hc_rx_exit,
  760. .ccid_hc_rx_insert_options = ccid3_hc_rx_insert_options,
  761. .ccid_hc_rx_packet_recv = ccid3_hc_rx_packet_recv,
  762. .ccid_hc_rx_get_info = ccid3_hc_rx_get_info,
  763. .ccid_hc_tx_get_info = ccid3_hc_tx_get_info,
  764. .ccid_hc_rx_getsockopt = ccid3_hc_rx_getsockopt,
  765. .ccid_hc_tx_getsockopt = ccid3_hc_tx_getsockopt,
  766. };
  767. #ifdef CONFIG_IP_DCCP_CCID3_DEBUG
  768. module_param(ccid3_debug, bool, 0644);
  769. MODULE_PARM_DESC(ccid3_debug, "Enable debug messages");
  770. #endif
  771. static __init int ccid3_module_init(void)
  772. {
  773. return ccid_register(&ccid3);
  774. }
  775. module_init(ccid3_module_init);
  776. static __exit void ccid3_module_exit(void)
  777. {
  778. ccid_unregister(&ccid3);
  779. }
  780. module_exit(ccid3_module_exit);
  781. MODULE_AUTHOR("Ian McDonald <ian.mcdonald@jandi.co.nz>, "
  782. "Arnaldo Carvalho de Melo <acme@ghostprotocols.net>");
  783. MODULE_DESCRIPTION("DCCP TFRC CCID3 CCID");
  784. MODULE_LICENSE("GPL");
  785. MODULE_ALIAS("net-dccp-ccid-3");