sch_pie.c 16 KB

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  1. /* Copyright (C) 2013 Cisco Systems, Inc, 2013.
  2. *
  3. * This program is free software; you can redistribute it and/or
  4. * modify it under the terms of the GNU General Public License
  5. * as published by the Free Software Foundation; either version 2
  6. * of the License.
  7. *
  8. * This program is distributed in the hope that it will be useful,
  9. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  10. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  11. * GNU General Public License for more details.
  12. *
  13. * Author: Vijay Subramanian <vijaynsu@cisco.com>
  14. * Author: Mythili Prabhu <mysuryan@cisco.com>
  15. *
  16. * ECN support is added by Naeem Khademi <naeemk@ifi.uio.no>
  17. * University of Oslo, Norway.
  18. *
  19. * References:
  20. * IETF draft submission: http://tools.ietf.org/html/draft-pan-aqm-pie-00
  21. * IEEE Conference on High Performance Switching and Routing 2013 :
  22. * "PIE: A * Lightweight Control Scheme to Address the Bufferbloat Problem"
  23. */
  24. #include <linux/module.h>
  25. #include <linux/slab.h>
  26. #include <linux/types.h>
  27. #include <linux/kernel.h>
  28. #include <linux/errno.h>
  29. #include <linux/skbuff.h>
  30. #include <net/pkt_sched.h>
  31. #include <net/inet_ecn.h>
  32. #define QUEUE_THRESHOLD 10000
  33. #define DQCOUNT_INVALID -1
  34. #define MAX_PROB 0xffffffff
  35. #define PIE_SCALE 8
  36. /* parameters used */
  37. struct pie_params {
  38. psched_time_t target; /* user specified target delay in pschedtime */
  39. u32 tupdate; /* timer frequency (in jiffies) */
  40. u32 limit; /* number of packets that can be enqueued */
  41. u32 alpha; /* alpha and beta are between 0 and 32 */
  42. u32 beta; /* and are used for shift relative to 1 */
  43. bool ecn; /* true if ecn is enabled */
  44. bool bytemode; /* to scale drop early prob based on pkt size */
  45. };
  46. /* variables used */
  47. struct pie_vars {
  48. u32 prob; /* probability but scaled by u32 limit. */
  49. psched_time_t burst_time;
  50. psched_time_t qdelay;
  51. psched_time_t qdelay_old;
  52. u64 dq_count; /* measured in bytes */
  53. psched_time_t dq_tstamp; /* drain rate */
  54. u32 avg_dq_rate; /* bytes per pschedtime tick,scaled */
  55. u32 qlen_old; /* in bytes */
  56. };
  57. /* statistics gathering */
  58. struct pie_stats {
  59. u32 packets_in; /* total number of packets enqueued */
  60. u32 dropped; /* packets dropped due to pie_action */
  61. u32 overlimit; /* dropped due to lack of space in queue */
  62. u32 maxq; /* maximum queue size */
  63. u32 ecn_mark; /* packets marked with ECN */
  64. };
  65. /* private data for the Qdisc */
  66. struct pie_sched_data {
  67. struct pie_params params;
  68. struct pie_vars vars;
  69. struct pie_stats stats;
  70. struct timer_list adapt_timer;
  71. };
  72. static void pie_params_init(struct pie_params *params)
  73. {
  74. params->alpha = 2;
  75. params->beta = 20;
  76. params->tupdate = usecs_to_jiffies(30 * USEC_PER_MSEC); /* 30 ms */
  77. params->limit = 1000; /* default of 1000 packets */
  78. params->target = PSCHED_NS2TICKS(20 * NSEC_PER_MSEC); /* 20 ms */
  79. params->ecn = false;
  80. params->bytemode = false;
  81. }
  82. static void pie_vars_init(struct pie_vars *vars)
  83. {
  84. vars->dq_count = DQCOUNT_INVALID;
  85. vars->avg_dq_rate = 0;
  86. /* default of 100 ms in pschedtime */
  87. vars->burst_time = PSCHED_NS2TICKS(100 * NSEC_PER_MSEC);
  88. }
  89. static bool drop_early(struct Qdisc *sch, u32 packet_size)
  90. {
  91. struct pie_sched_data *q = qdisc_priv(sch);
  92. u32 rnd;
  93. u32 local_prob = q->vars.prob;
  94. u32 mtu = psched_mtu(qdisc_dev(sch));
  95. /* If there is still burst allowance left skip random early drop */
  96. if (q->vars.burst_time > 0)
  97. return false;
  98. /* If current delay is less than half of target, and
  99. * if drop prob is low already, disable early_drop
  100. */
  101. if ((q->vars.qdelay < q->params.target / 2)
  102. && (q->vars.prob < MAX_PROB / 5))
  103. return false;
  104. /* If we have fewer than 2 mtu-sized packets, disable drop_early,
  105. * similar to min_th in RED
  106. */
  107. if (sch->qstats.backlog < 2 * mtu)
  108. return false;
  109. /* If bytemode is turned on, use packet size to compute new
  110. * probablity. Smaller packets will have lower drop prob in this case
  111. */
  112. if (q->params.bytemode && packet_size <= mtu)
  113. local_prob = (local_prob / mtu) * packet_size;
  114. else
  115. local_prob = q->vars.prob;
  116. rnd = prandom_u32();
  117. if (rnd < local_prob)
  118. return true;
  119. return false;
  120. }
  121. static int pie_qdisc_enqueue(struct sk_buff *skb, struct Qdisc *sch)
  122. {
  123. struct pie_sched_data *q = qdisc_priv(sch);
  124. bool enqueue = false;
  125. if (unlikely(qdisc_qlen(sch) >= sch->limit)) {
  126. q->stats.overlimit++;
  127. goto out;
  128. }
  129. if (!drop_early(sch, skb->len)) {
  130. enqueue = true;
  131. } else if (q->params.ecn && (q->vars.prob <= MAX_PROB / 10) &&
  132. INET_ECN_set_ce(skb)) {
  133. /* If packet is ecn capable, mark it if drop probability
  134. * is lower than 10%, else drop it.
  135. */
  136. q->stats.ecn_mark++;
  137. enqueue = true;
  138. }
  139. /* we can enqueue the packet */
  140. if (enqueue) {
  141. q->stats.packets_in++;
  142. if (qdisc_qlen(sch) > q->stats.maxq)
  143. q->stats.maxq = qdisc_qlen(sch);
  144. return qdisc_enqueue_tail(skb, sch);
  145. }
  146. out:
  147. q->stats.dropped++;
  148. return qdisc_drop(skb, sch);
  149. }
  150. static const struct nla_policy pie_policy[TCA_PIE_MAX + 1] = {
  151. [TCA_PIE_TARGET] = {.type = NLA_U32},
  152. [TCA_PIE_LIMIT] = {.type = NLA_U32},
  153. [TCA_PIE_TUPDATE] = {.type = NLA_U32},
  154. [TCA_PIE_ALPHA] = {.type = NLA_U32},
  155. [TCA_PIE_BETA] = {.type = NLA_U32},
  156. [TCA_PIE_ECN] = {.type = NLA_U32},
  157. [TCA_PIE_BYTEMODE] = {.type = NLA_U32},
  158. };
  159. static int pie_change(struct Qdisc *sch, struct nlattr *opt)
  160. {
  161. struct pie_sched_data *q = qdisc_priv(sch);
  162. struct nlattr *tb[TCA_PIE_MAX + 1];
  163. unsigned int qlen;
  164. int err;
  165. if (!opt)
  166. return -EINVAL;
  167. err = nla_parse_nested(tb, TCA_PIE_MAX, opt, pie_policy);
  168. if (err < 0)
  169. return err;
  170. sch_tree_lock(sch);
  171. /* convert from microseconds to pschedtime */
  172. if (tb[TCA_PIE_TARGET]) {
  173. /* target is in us */
  174. u32 target = nla_get_u32(tb[TCA_PIE_TARGET]);
  175. /* convert to pschedtime */
  176. q->params.target = PSCHED_NS2TICKS((u64)target * NSEC_PER_USEC);
  177. }
  178. /* tupdate is in jiffies */
  179. if (tb[TCA_PIE_TUPDATE])
  180. q->params.tupdate = usecs_to_jiffies(nla_get_u32(tb[TCA_PIE_TUPDATE]));
  181. if (tb[TCA_PIE_LIMIT]) {
  182. u32 limit = nla_get_u32(tb[TCA_PIE_LIMIT]);
  183. q->params.limit = limit;
  184. sch->limit = limit;
  185. }
  186. if (tb[TCA_PIE_ALPHA])
  187. q->params.alpha = nla_get_u32(tb[TCA_PIE_ALPHA]);
  188. if (tb[TCA_PIE_BETA])
  189. q->params.beta = nla_get_u32(tb[TCA_PIE_BETA]);
  190. if (tb[TCA_PIE_ECN])
  191. q->params.ecn = nla_get_u32(tb[TCA_PIE_ECN]);
  192. if (tb[TCA_PIE_BYTEMODE])
  193. q->params.bytemode = nla_get_u32(tb[TCA_PIE_BYTEMODE]);
  194. /* Drop excess packets if new limit is lower */
  195. qlen = sch->q.qlen;
  196. while (sch->q.qlen > sch->limit) {
  197. struct sk_buff *skb = __skb_dequeue(&sch->q);
  198. qdisc_qstats_backlog_dec(sch, skb);
  199. qdisc_drop(skb, sch);
  200. }
  201. qdisc_tree_decrease_qlen(sch, qlen - sch->q.qlen);
  202. sch_tree_unlock(sch);
  203. return 0;
  204. }
  205. static void pie_process_dequeue(struct Qdisc *sch, struct sk_buff *skb)
  206. {
  207. struct pie_sched_data *q = qdisc_priv(sch);
  208. int qlen = sch->qstats.backlog; /* current queue size in bytes */
  209. /* If current queue is about 10 packets or more and dq_count is unset
  210. * we have enough packets to calculate the drain rate. Save
  211. * current time as dq_tstamp and start measurement cycle.
  212. */
  213. if (qlen >= QUEUE_THRESHOLD && q->vars.dq_count == DQCOUNT_INVALID) {
  214. q->vars.dq_tstamp = psched_get_time();
  215. q->vars.dq_count = 0;
  216. }
  217. /* Calculate the average drain rate from this value. If queue length
  218. * has receded to a small value viz., <= QUEUE_THRESHOLD bytes,reset
  219. * the dq_count to -1 as we don't have enough packets to calculate the
  220. * drain rate anymore The following if block is entered only when we
  221. * have a substantial queue built up (QUEUE_THRESHOLD bytes or more)
  222. * and we calculate the drain rate for the threshold here. dq_count is
  223. * in bytes, time difference in psched_time, hence rate is in
  224. * bytes/psched_time.
  225. */
  226. if (q->vars.dq_count != DQCOUNT_INVALID) {
  227. q->vars.dq_count += skb->len;
  228. if (q->vars.dq_count >= QUEUE_THRESHOLD) {
  229. psched_time_t now = psched_get_time();
  230. u32 dtime = now - q->vars.dq_tstamp;
  231. u32 count = q->vars.dq_count << PIE_SCALE;
  232. if (dtime == 0)
  233. return;
  234. count = count / dtime;
  235. if (q->vars.avg_dq_rate == 0)
  236. q->vars.avg_dq_rate = count;
  237. else
  238. q->vars.avg_dq_rate =
  239. (q->vars.avg_dq_rate -
  240. (q->vars.avg_dq_rate >> 3)) + (count >> 3);
  241. /* If the queue has receded below the threshold, we hold
  242. * on to the last drain rate calculated, else we reset
  243. * dq_count to 0 to re-enter the if block when the next
  244. * packet is dequeued
  245. */
  246. if (qlen < QUEUE_THRESHOLD)
  247. q->vars.dq_count = DQCOUNT_INVALID;
  248. else {
  249. q->vars.dq_count = 0;
  250. q->vars.dq_tstamp = psched_get_time();
  251. }
  252. if (q->vars.burst_time > 0) {
  253. if (q->vars.burst_time > dtime)
  254. q->vars.burst_time -= dtime;
  255. else
  256. q->vars.burst_time = 0;
  257. }
  258. }
  259. }
  260. }
  261. static void calculate_probability(struct Qdisc *sch)
  262. {
  263. struct pie_sched_data *q = qdisc_priv(sch);
  264. u32 qlen = sch->qstats.backlog; /* queue size in bytes */
  265. psched_time_t qdelay = 0; /* in pschedtime */
  266. psched_time_t qdelay_old = q->vars.qdelay; /* in pschedtime */
  267. s32 delta = 0; /* determines the change in probability */
  268. u32 oldprob;
  269. u32 alpha, beta;
  270. bool update_prob = true;
  271. q->vars.qdelay_old = q->vars.qdelay;
  272. if (q->vars.avg_dq_rate > 0)
  273. qdelay = (qlen << PIE_SCALE) / q->vars.avg_dq_rate;
  274. else
  275. qdelay = 0;
  276. /* If qdelay is zero and qlen is not, it means qlen is very small, less
  277. * than dequeue_rate, so we do not update probabilty in this round
  278. */
  279. if (qdelay == 0 && qlen != 0)
  280. update_prob = false;
  281. /* In the algorithm, alpha and beta are between 0 and 2 with typical
  282. * value for alpha as 0.125. In this implementation, we use values 0-32
  283. * passed from user space to represent this. Also, alpha and beta have
  284. * unit of HZ and need to be scaled before they can used to update
  285. * probability. alpha/beta are updated locally below by 1) scaling them
  286. * appropriately 2) scaling down by 16 to come to 0-2 range.
  287. * Please see paper for details.
  288. *
  289. * We scale alpha and beta differently depending on whether we are in
  290. * light, medium or high dropping mode.
  291. */
  292. if (q->vars.prob < MAX_PROB / 100) {
  293. alpha =
  294. (q->params.alpha * (MAX_PROB / PSCHED_TICKS_PER_SEC)) >> 7;
  295. beta =
  296. (q->params.beta * (MAX_PROB / PSCHED_TICKS_PER_SEC)) >> 7;
  297. } else if (q->vars.prob < MAX_PROB / 10) {
  298. alpha =
  299. (q->params.alpha * (MAX_PROB / PSCHED_TICKS_PER_SEC)) >> 5;
  300. beta =
  301. (q->params.beta * (MAX_PROB / PSCHED_TICKS_PER_SEC)) >> 5;
  302. } else {
  303. alpha =
  304. (q->params.alpha * (MAX_PROB / PSCHED_TICKS_PER_SEC)) >> 4;
  305. beta =
  306. (q->params.beta * (MAX_PROB / PSCHED_TICKS_PER_SEC)) >> 4;
  307. }
  308. /* alpha and beta should be between 0 and 32, in multiples of 1/16 */
  309. delta += alpha * ((qdelay - q->params.target));
  310. delta += beta * ((qdelay - qdelay_old));
  311. oldprob = q->vars.prob;
  312. /* to ensure we increase probability in steps of no more than 2% */
  313. if (delta > (s32) (MAX_PROB / (100 / 2)) &&
  314. q->vars.prob >= MAX_PROB / 10)
  315. delta = (MAX_PROB / 100) * 2;
  316. /* Non-linear drop:
  317. * Tune drop probability to increase quickly for high delays(>= 250ms)
  318. * 250ms is derived through experiments and provides error protection
  319. */
  320. if (qdelay > (PSCHED_NS2TICKS(250 * NSEC_PER_MSEC)))
  321. delta += MAX_PROB / (100 / 2);
  322. q->vars.prob += delta;
  323. if (delta > 0) {
  324. /* prevent overflow */
  325. if (q->vars.prob < oldprob) {
  326. q->vars.prob = MAX_PROB;
  327. /* Prevent normalization error. If probability is at
  328. * maximum value already, we normalize it here, and
  329. * skip the check to do a non-linear drop in the next
  330. * section.
  331. */
  332. update_prob = false;
  333. }
  334. } else {
  335. /* prevent underflow */
  336. if (q->vars.prob > oldprob)
  337. q->vars.prob = 0;
  338. }
  339. /* Non-linear drop in probability: Reduce drop probability quickly if
  340. * delay is 0 for 2 consecutive Tupdate periods.
  341. */
  342. if ((qdelay == 0) && (qdelay_old == 0) && update_prob)
  343. q->vars.prob = (q->vars.prob * 98) / 100;
  344. q->vars.qdelay = qdelay;
  345. q->vars.qlen_old = qlen;
  346. /* We restart the measurement cycle if the following conditions are met
  347. * 1. If the delay has been low for 2 consecutive Tupdate periods
  348. * 2. Calculated drop probability is zero
  349. * 3. We have atleast one estimate for the avg_dq_rate ie.,
  350. * is a non-zero value
  351. */
  352. if ((q->vars.qdelay < q->params.target / 2) &&
  353. (q->vars.qdelay_old < q->params.target / 2) &&
  354. (q->vars.prob == 0) &&
  355. (q->vars.avg_dq_rate > 0))
  356. pie_vars_init(&q->vars);
  357. }
  358. static void pie_timer(unsigned long arg)
  359. {
  360. struct Qdisc *sch = (struct Qdisc *)arg;
  361. struct pie_sched_data *q = qdisc_priv(sch);
  362. spinlock_t *root_lock = qdisc_lock(qdisc_root_sleeping(sch));
  363. spin_lock(root_lock);
  364. calculate_probability(sch);
  365. /* reset the timer to fire after 'tupdate'. tupdate is in jiffies. */
  366. if (q->params.tupdate)
  367. mod_timer(&q->adapt_timer, jiffies + q->params.tupdate);
  368. spin_unlock(root_lock);
  369. }
  370. static int pie_init(struct Qdisc *sch, struct nlattr *opt)
  371. {
  372. struct pie_sched_data *q = qdisc_priv(sch);
  373. pie_params_init(&q->params);
  374. pie_vars_init(&q->vars);
  375. sch->limit = q->params.limit;
  376. setup_timer(&q->adapt_timer, pie_timer, (unsigned long)sch);
  377. if (opt) {
  378. int err = pie_change(sch, opt);
  379. if (err)
  380. return err;
  381. }
  382. mod_timer(&q->adapt_timer, jiffies + HZ / 2);
  383. return 0;
  384. }
  385. static int pie_dump(struct Qdisc *sch, struct sk_buff *skb)
  386. {
  387. struct pie_sched_data *q = qdisc_priv(sch);
  388. struct nlattr *opts;
  389. opts = nla_nest_start(skb, TCA_OPTIONS);
  390. if (opts == NULL)
  391. goto nla_put_failure;
  392. /* convert target from pschedtime to us */
  393. if (nla_put_u32(skb, TCA_PIE_TARGET,
  394. ((u32) PSCHED_TICKS2NS(q->params.target)) /
  395. NSEC_PER_USEC) ||
  396. nla_put_u32(skb, TCA_PIE_LIMIT, sch->limit) ||
  397. nla_put_u32(skb, TCA_PIE_TUPDATE, jiffies_to_usecs(q->params.tupdate)) ||
  398. nla_put_u32(skb, TCA_PIE_ALPHA, q->params.alpha) ||
  399. nla_put_u32(skb, TCA_PIE_BETA, q->params.beta) ||
  400. nla_put_u32(skb, TCA_PIE_ECN, q->params.ecn) ||
  401. nla_put_u32(skb, TCA_PIE_BYTEMODE, q->params.bytemode))
  402. goto nla_put_failure;
  403. return nla_nest_end(skb, opts);
  404. nla_put_failure:
  405. nla_nest_cancel(skb, opts);
  406. return -1;
  407. }
  408. static int pie_dump_stats(struct Qdisc *sch, struct gnet_dump *d)
  409. {
  410. struct pie_sched_data *q = qdisc_priv(sch);
  411. struct tc_pie_xstats st = {
  412. .prob = q->vars.prob,
  413. .delay = ((u32) PSCHED_TICKS2NS(q->vars.qdelay)) /
  414. NSEC_PER_USEC,
  415. /* unscale and return dq_rate in bytes per sec */
  416. .avg_dq_rate = q->vars.avg_dq_rate *
  417. (PSCHED_TICKS_PER_SEC) >> PIE_SCALE,
  418. .packets_in = q->stats.packets_in,
  419. .overlimit = q->stats.overlimit,
  420. .maxq = q->stats.maxq,
  421. .dropped = q->stats.dropped,
  422. .ecn_mark = q->stats.ecn_mark,
  423. };
  424. return gnet_stats_copy_app(d, &st, sizeof(st));
  425. }
  426. static struct sk_buff *pie_qdisc_dequeue(struct Qdisc *sch)
  427. {
  428. struct sk_buff *skb;
  429. skb = __qdisc_dequeue_head(sch, &sch->q);
  430. if (!skb)
  431. return NULL;
  432. pie_process_dequeue(sch, skb);
  433. return skb;
  434. }
  435. static void pie_reset(struct Qdisc *sch)
  436. {
  437. struct pie_sched_data *q = qdisc_priv(sch);
  438. qdisc_reset_queue(sch);
  439. pie_vars_init(&q->vars);
  440. }
  441. static void pie_destroy(struct Qdisc *sch)
  442. {
  443. struct pie_sched_data *q = qdisc_priv(sch);
  444. q->params.tupdate = 0;
  445. del_timer_sync(&q->adapt_timer);
  446. }
  447. static struct Qdisc_ops pie_qdisc_ops __read_mostly = {
  448. .id = "pie",
  449. .priv_size = sizeof(struct pie_sched_data),
  450. .enqueue = pie_qdisc_enqueue,
  451. .dequeue = pie_qdisc_dequeue,
  452. .peek = qdisc_peek_dequeued,
  453. .init = pie_init,
  454. .destroy = pie_destroy,
  455. .reset = pie_reset,
  456. .change = pie_change,
  457. .dump = pie_dump,
  458. .dump_stats = pie_dump_stats,
  459. .owner = THIS_MODULE,
  460. };
  461. static int __init pie_module_init(void)
  462. {
  463. return register_qdisc(&pie_qdisc_ops);
  464. }
  465. static void __exit pie_module_exit(void)
  466. {
  467. unregister_qdisc(&pie_qdisc_ops);
  468. }
  469. module_init(pie_module_init);
  470. module_exit(pie_module_exit);
  471. MODULE_DESCRIPTION("Proportional Integral controller Enhanced (PIE) scheduler");
  472. MODULE_AUTHOR("Vijay Subramanian");
  473. MODULE_AUTHOR("Mythili Prabhu");
  474. MODULE_LICENSE("GPL");