tcp_bbr.c 34 KB

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  1. /* Bottleneck Bandwidth and RTT (BBR) congestion control
  2. *
  3. * BBR congestion control computes the sending rate based on the delivery
  4. * rate (throughput) estimated from ACKs. In a nutshell:
  5. *
  6. * On each ACK, update our model of the network path:
  7. * bottleneck_bandwidth = windowed_max(delivered / elapsed, 10 round trips)
  8. * min_rtt = windowed_min(rtt, 10 seconds)
  9. * pacing_rate = pacing_gain * bottleneck_bandwidth
  10. * cwnd = max(cwnd_gain * bottleneck_bandwidth * min_rtt, 4)
  11. *
  12. * The core algorithm does not react directly to packet losses or delays,
  13. * although BBR may adjust the size of next send per ACK when loss is
  14. * observed, or adjust the sending rate if it estimates there is a
  15. * traffic policer, in order to keep the drop rate reasonable.
  16. *
  17. * Here is a state transition diagram for BBR:
  18. *
  19. * |
  20. * V
  21. * +---> STARTUP ----+
  22. * | | |
  23. * | V |
  24. * | DRAIN ----+
  25. * | | |
  26. * | V |
  27. * +---> PROBE_BW ----+
  28. * | ^ | |
  29. * | | | |
  30. * | +----+ |
  31. * | |
  32. * +---- PROBE_RTT <--+
  33. *
  34. * A BBR flow starts in STARTUP, and ramps up its sending rate quickly.
  35. * When it estimates the pipe is full, it enters DRAIN to drain the queue.
  36. * In steady state a BBR flow only uses PROBE_BW and PROBE_RTT.
  37. * A long-lived BBR flow spends the vast majority of its time remaining
  38. * (repeatedly) in PROBE_BW, fully probing and utilizing the pipe's bandwidth
  39. * in a fair manner, with a small, bounded queue. *If* a flow has been
  40. * continuously sending for the entire min_rtt window, and hasn't seen an RTT
  41. * sample that matches or decreases its min_rtt estimate for 10 seconds, then
  42. * it briefly enters PROBE_RTT to cut inflight to a minimum value to re-probe
  43. * the path's two-way propagation delay (min_rtt). When exiting PROBE_RTT, if
  44. * we estimated that we reached the full bw of the pipe then we enter PROBE_BW;
  45. * otherwise we enter STARTUP to try to fill the pipe.
  46. *
  47. * BBR is described in detail in:
  48. * "BBR: Congestion-Based Congestion Control",
  49. * Neal Cardwell, Yuchung Cheng, C. Stephen Gunn, Soheil Hassas Yeganeh,
  50. * Van Jacobson. ACM Queue, Vol. 14 No. 5, September-October 2016.
  51. *
  52. * There is a public e-mail list for discussing BBR development and testing:
  53. * https://groups.google.com/forum/#!forum/bbr-dev
  54. *
  55. * NOTE: BBR might be used with the fq qdisc ("man tc-fq") with pacing enabled,
  56. * otherwise TCP stack falls back to an internal pacing using one high
  57. * resolution timer per TCP socket and may use more resources.
  58. */
  59. #include <linux/module.h>
  60. #include <net/tcp.h>
  61. #include <linux/inet_diag.h>
  62. #include <linux/inet.h>
  63. #include <linux/random.h>
  64. #include <linux/win_minmax.h>
  65. /* Scale factor for rate in pkt/uSec unit to avoid truncation in bandwidth
  66. * estimation. The rate unit ~= (1500 bytes / 1 usec / 2^24) ~= 715 bps.
  67. * This handles bandwidths from 0.06pps (715bps) to 256Mpps (3Tbps) in a u32.
  68. * Since the minimum window is >=4 packets, the lower bound isn't
  69. * an issue. The upper bound isn't an issue with existing technologies.
  70. */
  71. #define BW_SCALE 24
  72. #define BW_UNIT (1 << BW_SCALE)
  73. #define BBR_SCALE 8 /* scaling factor for fractions in BBR (e.g. gains) */
  74. #define BBR_UNIT (1 << BBR_SCALE)
  75. /* BBR has the following modes for deciding how fast to send: */
  76. enum bbr_mode {
  77. BBR_STARTUP, /* ramp up sending rate rapidly to fill pipe */
  78. BBR_DRAIN, /* drain any queue created during startup */
  79. BBR_PROBE_BW, /* discover, share bw: pace around estimated bw */
  80. BBR_PROBE_RTT, /* cut inflight to min to probe min_rtt */
  81. };
  82. /* BBR congestion control block */
  83. struct bbr {
  84. u32 min_rtt_us; /* min RTT in min_rtt_win_sec window */
  85. u32 min_rtt_stamp; /* timestamp of min_rtt_us */
  86. u32 probe_rtt_done_stamp; /* end time for BBR_PROBE_RTT mode */
  87. struct minmax bw; /* Max recent delivery rate in pkts/uS << 24 */
  88. u32 rtt_cnt; /* count of packet-timed rounds elapsed */
  89. u32 next_rtt_delivered; /* scb->tx.delivered at end of round */
  90. u64 cycle_mstamp; /* time of this cycle phase start */
  91. u32 mode:3, /* current bbr_mode in state machine */
  92. prev_ca_state:3, /* CA state on previous ACK */
  93. packet_conservation:1, /* use packet conservation? */
  94. restore_cwnd:1, /* decided to revert cwnd to old value */
  95. round_start:1, /* start of packet-timed tx->ack round? */
  96. tso_segs_goal:7, /* segments we want in each skb we send */
  97. idle_restart:1, /* restarting after idle? */
  98. probe_rtt_round_done:1, /* a BBR_PROBE_RTT round at 4 pkts? */
  99. unused:5,
  100. lt_is_sampling:1, /* taking long-term ("LT") samples now? */
  101. lt_rtt_cnt:7, /* round trips in long-term interval */
  102. lt_use_bw:1; /* use lt_bw as our bw estimate? */
  103. u32 lt_bw; /* LT est delivery rate in pkts/uS << 24 */
  104. u32 lt_last_delivered; /* LT intvl start: tp->delivered */
  105. u32 lt_last_stamp; /* LT intvl start: tp->delivered_mstamp */
  106. u32 lt_last_lost; /* LT intvl start: tp->lost */
  107. u32 pacing_gain:10, /* current gain for setting pacing rate */
  108. cwnd_gain:10, /* current gain for setting cwnd */
  109. full_bw_cnt:3, /* number of rounds without large bw gains */
  110. cycle_idx:3, /* current index in pacing_gain cycle array */
  111. has_seen_rtt:1, /* have we seen an RTT sample yet? */
  112. unused_b:5;
  113. u32 prior_cwnd; /* prior cwnd upon entering loss recovery */
  114. u32 full_bw; /* recent bw, to estimate if pipe is full */
  115. };
  116. #define CYCLE_LEN 8 /* number of phases in a pacing gain cycle */
  117. /* Window length of bw filter (in rounds): */
  118. static const int bbr_bw_rtts = CYCLE_LEN + 2;
  119. /* Window length of min_rtt filter (in sec): */
  120. static const u32 bbr_min_rtt_win_sec = 10;
  121. /* Minimum time (in ms) spent at bbr_cwnd_min_target in BBR_PROBE_RTT mode: */
  122. static const u32 bbr_probe_rtt_mode_ms = 200;
  123. /* Skip TSO below the following bandwidth (bits/sec): */
  124. static const int bbr_min_tso_rate = 1200000;
  125. /* We use a high_gain value of 2/ln(2) because it's the smallest pacing gain
  126. * that will allow a smoothly increasing pacing rate that will double each RTT
  127. * and send the same number of packets per RTT that an un-paced, slow-starting
  128. * Reno or CUBIC flow would:
  129. */
  130. static const int bbr_high_gain = BBR_UNIT * 2885 / 1000 + 1;
  131. /* The pacing gain of 1/high_gain in BBR_DRAIN is calculated to typically drain
  132. * the queue created in BBR_STARTUP in a single round:
  133. */
  134. static const int bbr_drain_gain = BBR_UNIT * 1000 / 2885;
  135. /* The gain for deriving steady-state cwnd tolerates delayed/stretched ACKs: */
  136. static const int bbr_cwnd_gain = BBR_UNIT * 2;
  137. /* The pacing_gain values for the PROBE_BW gain cycle, to discover/share bw: */
  138. static const int bbr_pacing_gain[] = {
  139. BBR_UNIT * 5 / 4, /* probe for more available bw */
  140. BBR_UNIT * 3 / 4, /* drain queue and/or yield bw to other flows */
  141. BBR_UNIT, BBR_UNIT, BBR_UNIT, /* cruise at 1.0*bw to utilize pipe, */
  142. BBR_UNIT, BBR_UNIT, BBR_UNIT /* without creating excess queue... */
  143. };
  144. /* Randomize the starting gain cycling phase over N phases: */
  145. static const u32 bbr_cycle_rand = 7;
  146. /* Try to keep at least this many packets in flight, if things go smoothly. For
  147. * smooth functioning, a sliding window protocol ACKing every other packet
  148. * needs at least 4 packets in flight:
  149. */
  150. static const u32 bbr_cwnd_min_target = 4;
  151. /* To estimate if BBR_STARTUP mode (i.e. high_gain) has filled pipe... */
  152. /* If bw has increased significantly (1.25x), there may be more bw available: */
  153. static const u32 bbr_full_bw_thresh = BBR_UNIT * 5 / 4;
  154. /* But after 3 rounds w/o significant bw growth, estimate pipe is full: */
  155. static const u32 bbr_full_bw_cnt = 3;
  156. /* "long-term" ("LT") bandwidth estimator parameters... */
  157. /* The minimum number of rounds in an LT bw sampling interval: */
  158. static const u32 bbr_lt_intvl_min_rtts = 4;
  159. /* If lost/delivered ratio > 20%, interval is "lossy" and we may be policed: */
  160. static const u32 bbr_lt_loss_thresh = 50;
  161. /* If 2 intervals have a bw ratio <= 1/8, their bw is "consistent": */
  162. static const u32 bbr_lt_bw_ratio = BBR_UNIT / 8;
  163. /* If 2 intervals have a bw diff <= 4 Kbit/sec their bw is "consistent": */
  164. static const u32 bbr_lt_bw_diff = 4000 / 8;
  165. /* If we estimate we're policed, use lt_bw for this many round trips: */
  166. static const u32 bbr_lt_bw_max_rtts = 48;
  167. /* Do we estimate that STARTUP filled the pipe? */
  168. static bool bbr_full_bw_reached(const struct sock *sk)
  169. {
  170. const struct bbr *bbr = inet_csk_ca(sk);
  171. return bbr->full_bw_cnt >= bbr_full_bw_cnt;
  172. }
  173. /* Return the windowed max recent bandwidth sample, in pkts/uS << BW_SCALE. */
  174. static u32 bbr_max_bw(const struct sock *sk)
  175. {
  176. struct bbr *bbr = inet_csk_ca(sk);
  177. return minmax_get(&bbr->bw);
  178. }
  179. /* Return the estimated bandwidth of the path, in pkts/uS << BW_SCALE. */
  180. static u32 bbr_bw(const struct sock *sk)
  181. {
  182. struct bbr *bbr = inet_csk_ca(sk);
  183. return bbr->lt_use_bw ? bbr->lt_bw : bbr_max_bw(sk);
  184. }
  185. /* Return rate in bytes per second, optionally with a gain.
  186. * The order here is chosen carefully to avoid overflow of u64. This should
  187. * work for input rates of up to 2.9Tbit/sec and gain of 2.89x.
  188. */
  189. static u64 bbr_rate_bytes_per_sec(struct sock *sk, u64 rate, int gain)
  190. {
  191. rate *= tcp_mss_to_mtu(sk, tcp_sk(sk)->mss_cache);
  192. rate *= gain;
  193. rate >>= BBR_SCALE;
  194. rate *= USEC_PER_SEC;
  195. return rate >> BW_SCALE;
  196. }
  197. /* Convert a BBR bw and gain factor to a pacing rate in bytes per second. */
  198. static u32 bbr_bw_to_pacing_rate(struct sock *sk, u32 bw, int gain)
  199. {
  200. u64 rate = bw;
  201. rate = bbr_rate_bytes_per_sec(sk, rate, gain);
  202. rate = min_t(u64, rate, sk->sk_max_pacing_rate);
  203. return rate;
  204. }
  205. /* Initialize pacing rate to: high_gain * init_cwnd / RTT. */
  206. static void bbr_init_pacing_rate_from_rtt(struct sock *sk)
  207. {
  208. struct tcp_sock *tp = tcp_sk(sk);
  209. struct bbr *bbr = inet_csk_ca(sk);
  210. u64 bw;
  211. u32 rtt_us;
  212. if (tp->srtt_us) { /* any RTT sample yet? */
  213. rtt_us = max(tp->srtt_us >> 3, 1U);
  214. bbr->has_seen_rtt = 1;
  215. } else { /* no RTT sample yet */
  216. rtt_us = USEC_PER_MSEC; /* use nominal default RTT */
  217. }
  218. bw = (u64)tp->snd_cwnd * BW_UNIT;
  219. do_div(bw, rtt_us);
  220. sk->sk_pacing_rate = bbr_bw_to_pacing_rate(sk, bw, bbr_high_gain);
  221. }
  222. /* Pace using current bw estimate and a gain factor. In order to help drive the
  223. * network toward lower queues while maintaining high utilization and low
  224. * latency, the average pacing rate aims to be slightly (~1%) lower than the
  225. * estimated bandwidth. This is an important aspect of the design. In this
  226. * implementation this slightly lower pacing rate is achieved implicitly by not
  227. * including link-layer headers in the packet size used for the pacing rate.
  228. */
  229. static void bbr_set_pacing_rate(struct sock *sk, u32 bw, int gain)
  230. {
  231. struct tcp_sock *tp = tcp_sk(sk);
  232. struct bbr *bbr = inet_csk_ca(sk);
  233. u32 rate = bbr_bw_to_pacing_rate(sk, bw, gain);
  234. if (unlikely(!bbr->has_seen_rtt && tp->srtt_us))
  235. bbr_init_pacing_rate_from_rtt(sk);
  236. if (bbr_full_bw_reached(sk) || rate > sk->sk_pacing_rate)
  237. sk->sk_pacing_rate = rate;
  238. }
  239. /* Return count of segments we want in the skbs we send, or 0 for default. */
  240. static u32 bbr_tso_segs_goal(struct sock *sk)
  241. {
  242. struct bbr *bbr = inet_csk_ca(sk);
  243. return bbr->tso_segs_goal;
  244. }
  245. static void bbr_set_tso_segs_goal(struct sock *sk)
  246. {
  247. struct tcp_sock *tp = tcp_sk(sk);
  248. struct bbr *bbr = inet_csk_ca(sk);
  249. u32 min_segs;
  250. min_segs = sk->sk_pacing_rate < (bbr_min_tso_rate >> 3) ? 1 : 2;
  251. bbr->tso_segs_goal = min(tcp_tso_autosize(sk, tp->mss_cache, min_segs),
  252. 0x7FU);
  253. }
  254. /* Save "last known good" cwnd so we can restore it after losses or PROBE_RTT */
  255. static void bbr_save_cwnd(struct sock *sk)
  256. {
  257. struct tcp_sock *tp = tcp_sk(sk);
  258. struct bbr *bbr = inet_csk_ca(sk);
  259. if (bbr->prev_ca_state < TCP_CA_Recovery && bbr->mode != BBR_PROBE_RTT)
  260. bbr->prior_cwnd = tp->snd_cwnd; /* this cwnd is good enough */
  261. else /* loss recovery or BBR_PROBE_RTT have temporarily cut cwnd */
  262. bbr->prior_cwnd = max(bbr->prior_cwnd, tp->snd_cwnd);
  263. }
  264. static void bbr_cwnd_event(struct sock *sk, enum tcp_ca_event event)
  265. {
  266. struct tcp_sock *tp = tcp_sk(sk);
  267. struct bbr *bbr = inet_csk_ca(sk);
  268. if (event == CA_EVENT_TX_START && tp->app_limited) {
  269. bbr->idle_restart = 1;
  270. /* Avoid pointless buffer overflows: pace at est. bw if we don't
  271. * need more speed (we're restarting from idle and app-limited).
  272. */
  273. if (bbr->mode == BBR_PROBE_BW)
  274. bbr_set_pacing_rate(sk, bbr_bw(sk), BBR_UNIT);
  275. }
  276. }
  277. /* Find target cwnd. Right-size the cwnd based on min RTT and the
  278. * estimated bottleneck bandwidth:
  279. *
  280. * cwnd = bw * min_rtt * gain = BDP * gain
  281. *
  282. * The key factor, gain, controls the amount of queue. While a small gain
  283. * builds a smaller queue, it becomes more vulnerable to noise in RTT
  284. * measurements (e.g., delayed ACKs or other ACK compression effects). This
  285. * noise may cause BBR to under-estimate the rate.
  286. *
  287. * To achieve full performance in high-speed paths, we budget enough cwnd to
  288. * fit full-sized skbs in-flight on both end hosts to fully utilize the path:
  289. * - one skb in sending host Qdisc,
  290. * - one skb in sending host TSO/GSO engine
  291. * - one skb being received by receiver host LRO/GRO/delayed-ACK engine
  292. * Don't worry, at low rates (bbr_min_tso_rate) this won't bloat cwnd because
  293. * in such cases tso_segs_goal is 1. The minimum cwnd is 4 packets,
  294. * which allows 2 outstanding 2-packet sequences, to try to keep pipe
  295. * full even with ACK-every-other-packet delayed ACKs.
  296. */
  297. static u32 bbr_target_cwnd(struct sock *sk, u32 bw, int gain)
  298. {
  299. struct bbr *bbr = inet_csk_ca(sk);
  300. u32 cwnd;
  301. u64 w;
  302. /* If we've never had a valid RTT sample, cap cwnd at the initial
  303. * default. This should only happen when the connection is not using TCP
  304. * timestamps and has retransmitted all of the SYN/SYNACK/data packets
  305. * ACKed so far. In this case, an RTO can cut cwnd to 1, in which
  306. * case we need to slow-start up toward something safe: TCP_INIT_CWND.
  307. */
  308. if (unlikely(bbr->min_rtt_us == ~0U)) /* no valid RTT samples yet? */
  309. return TCP_INIT_CWND; /* be safe: cap at default initial cwnd*/
  310. w = (u64)bw * bbr->min_rtt_us;
  311. /* Apply a gain to the given value, then remove the BW_SCALE shift. */
  312. cwnd = (((w * gain) >> BBR_SCALE) + BW_UNIT - 1) / BW_UNIT;
  313. /* Allow enough full-sized skbs in flight to utilize end systems. */
  314. cwnd += 3 * bbr->tso_segs_goal;
  315. /* Reduce delayed ACKs by rounding up cwnd to the next even number. */
  316. cwnd = (cwnd + 1) & ~1U;
  317. return cwnd;
  318. }
  319. /* An optimization in BBR to reduce losses: On the first round of recovery, we
  320. * follow the packet conservation principle: send P packets per P packets acked.
  321. * After that, we slow-start and send at most 2*P packets per P packets acked.
  322. * After recovery finishes, or upon undo, we restore the cwnd we had when
  323. * recovery started (capped by the target cwnd based on estimated BDP).
  324. *
  325. * TODO(ycheng/ncardwell): implement a rate-based approach.
  326. */
  327. static bool bbr_set_cwnd_to_recover_or_restore(
  328. struct sock *sk, const struct rate_sample *rs, u32 acked, u32 *new_cwnd)
  329. {
  330. struct tcp_sock *tp = tcp_sk(sk);
  331. struct bbr *bbr = inet_csk_ca(sk);
  332. u8 prev_state = bbr->prev_ca_state, state = inet_csk(sk)->icsk_ca_state;
  333. u32 cwnd = tp->snd_cwnd;
  334. /* An ACK for P pkts should release at most 2*P packets. We do this
  335. * in two steps. First, here we deduct the number of lost packets.
  336. * Then, in bbr_set_cwnd() we slow start up toward the target cwnd.
  337. */
  338. if (rs->losses > 0)
  339. cwnd = max_t(s32, cwnd - rs->losses, 1);
  340. if (state == TCP_CA_Recovery && prev_state != TCP_CA_Recovery) {
  341. /* Starting 1st round of Recovery, so do packet conservation. */
  342. bbr->packet_conservation = 1;
  343. bbr->next_rtt_delivered = tp->delivered; /* start round now */
  344. /* Cut unused cwnd from app behavior, TSQ, or TSO deferral: */
  345. cwnd = tcp_packets_in_flight(tp) + acked;
  346. } else if (prev_state >= TCP_CA_Recovery && state < TCP_CA_Recovery) {
  347. /* Exiting loss recovery; restore cwnd saved before recovery. */
  348. bbr->restore_cwnd = 1;
  349. bbr->packet_conservation = 0;
  350. }
  351. bbr->prev_ca_state = state;
  352. if (bbr->restore_cwnd) {
  353. /* Restore cwnd after exiting loss recovery or PROBE_RTT. */
  354. cwnd = max(cwnd, bbr->prior_cwnd);
  355. bbr->restore_cwnd = 0;
  356. }
  357. if (bbr->packet_conservation) {
  358. *new_cwnd = max(cwnd, tcp_packets_in_flight(tp) + acked);
  359. return true; /* yes, using packet conservation */
  360. }
  361. *new_cwnd = cwnd;
  362. return false;
  363. }
  364. /* Slow-start up toward target cwnd (if bw estimate is growing, or packet loss
  365. * has drawn us down below target), or snap down to target if we're above it.
  366. */
  367. static void bbr_set_cwnd(struct sock *sk, const struct rate_sample *rs,
  368. u32 acked, u32 bw, int gain)
  369. {
  370. struct tcp_sock *tp = tcp_sk(sk);
  371. struct bbr *bbr = inet_csk_ca(sk);
  372. u32 cwnd = 0, target_cwnd = 0;
  373. if (!acked)
  374. return;
  375. if (bbr_set_cwnd_to_recover_or_restore(sk, rs, acked, &cwnd))
  376. goto done;
  377. /* If we're below target cwnd, slow start cwnd toward target cwnd. */
  378. target_cwnd = bbr_target_cwnd(sk, bw, gain);
  379. if (bbr_full_bw_reached(sk)) /* only cut cwnd if we filled the pipe */
  380. cwnd = min(cwnd + acked, target_cwnd);
  381. else if (cwnd < target_cwnd || tp->delivered < TCP_INIT_CWND)
  382. cwnd = cwnd + acked;
  383. cwnd = max(cwnd, bbr_cwnd_min_target);
  384. done:
  385. tp->snd_cwnd = min(cwnd, tp->snd_cwnd_clamp); /* apply global cap */
  386. if (bbr->mode == BBR_PROBE_RTT) /* drain queue, refresh min_rtt */
  387. tp->snd_cwnd = min(tp->snd_cwnd, bbr_cwnd_min_target);
  388. }
  389. /* End cycle phase if it's time and/or we hit the phase's in-flight target. */
  390. static bool bbr_is_next_cycle_phase(struct sock *sk,
  391. const struct rate_sample *rs)
  392. {
  393. struct tcp_sock *tp = tcp_sk(sk);
  394. struct bbr *bbr = inet_csk_ca(sk);
  395. bool is_full_length =
  396. tcp_stamp_us_delta(tp->delivered_mstamp, bbr->cycle_mstamp) >
  397. bbr->min_rtt_us;
  398. u32 inflight, bw;
  399. /* The pacing_gain of 1.0 paces at the estimated bw to try to fully
  400. * use the pipe without increasing the queue.
  401. */
  402. if (bbr->pacing_gain == BBR_UNIT)
  403. return is_full_length; /* just use wall clock time */
  404. inflight = rs->prior_in_flight; /* what was in-flight before ACK? */
  405. bw = bbr_max_bw(sk);
  406. /* A pacing_gain > 1.0 probes for bw by trying to raise inflight to at
  407. * least pacing_gain*BDP; this may take more than min_rtt if min_rtt is
  408. * small (e.g. on a LAN). We do not persist if packets are lost, since
  409. * a path with small buffers may not hold that much.
  410. */
  411. if (bbr->pacing_gain > BBR_UNIT)
  412. return is_full_length &&
  413. (rs->losses || /* perhaps pacing_gain*BDP won't fit */
  414. inflight >= bbr_target_cwnd(sk, bw, bbr->pacing_gain));
  415. /* A pacing_gain < 1.0 tries to drain extra queue we added if bw
  416. * probing didn't find more bw. If inflight falls to match BDP then we
  417. * estimate queue is drained; persisting would underutilize the pipe.
  418. */
  419. return is_full_length ||
  420. inflight <= bbr_target_cwnd(sk, bw, BBR_UNIT);
  421. }
  422. static void bbr_advance_cycle_phase(struct sock *sk)
  423. {
  424. struct tcp_sock *tp = tcp_sk(sk);
  425. struct bbr *bbr = inet_csk_ca(sk);
  426. bbr->cycle_idx = (bbr->cycle_idx + 1) & (CYCLE_LEN - 1);
  427. bbr->cycle_mstamp = tp->delivered_mstamp;
  428. bbr->pacing_gain = bbr_pacing_gain[bbr->cycle_idx];
  429. }
  430. /* Gain cycling: cycle pacing gain to converge to fair share of available bw. */
  431. static void bbr_update_cycle_phase(struct sock *sk,
  432. const struct rate_sample *rs)
  433. {
  434. struct bbr *bbr = inet_csk_ca(sk);
  435. if ((bbr->mode == BBR_PROBE_BW) && !bbr->lt_use_bw &&
  436. bbr_is_next_cycle_phase(sk, rs))
  437. bbr_advance_cycle_phase(sk);
  438. }
  439. static void bbr_reset_startup_mode(struct sock *sk)
  440. {
  441. struct bbr *bbr = inet_csk_ca(sk);
  442. bbr->mode = BBR_STARTUP;
  443. bbr->pacing_gain = bbr_high_gain;
  444. bbr->cwnd_gain = bbr_high_gain;
  445. }
  446. static void bbr_reset_probe_bw_mode(struct sock *sk)
  447. {
  448. struct bbr *bbr = inet_csk_ca(sk);
  449. bbr->mode = BBR_PROBE_BW;
  450. bbr->pacing_gain = BBR_UNIT;
  451. bbr->cwnd_gain = bbr_cwnd_gain;
  452. bbr->cycle_idx = CYCLE_LEN - 1 - prandom_u32_max(bbr_cycle_rand);
  453. bbr_advance_cycle_phase(sk); /* flip to next phase of gain cycle */
  454. }
  455. static void bbr_reset_mode(struct sock *sk)
  456. {
  457. if (!bbr_full_bw_reached(sk))
  458. bbr_reset_startup_mode(sk);
  459. else
  460. bbr_reset_probe_bw_mode(sk);
  461. }
  462. /* Start a new long-term sampling interval. */
  463. static void bbr_reset_lt_bw_sampling_interval(struct sock *sk)
  464. {
  465. struct tcp_sock *tp = tcp_sk(sk);
  466. struct bbr *bbr = inet_csk_ca(sk);
  467. bbr->lt_last_stamp = div_u64(tp->delivered_mstamp, USEC_PER_MSEC);
  468. bbr->lt_last_delivered = tp->delivered;
  469. bbr->lt_last_lost = tp->lost;
  470. bbr->lt_rtt_cnt = 0;
  471. }
  472. /* Completely reset long-term bandwidth sampling. */
  473. static void bbr_reset_lt_bw_sampling(struct sock *sk)
  474. {
  475. struct bbr *bbr = inet_csk_ca(sk);
  476. bbr->lt_bw = 0;
  477. bbr->lt_use_bw = 0;
  478. bbr->lt_is_sampling = false;
  479. bbr_reset_lt_bw_sampling_interval(sk);
  480. }
  481. /* Long-term bw sampling interval is done. Estimate whether we're policed. */
  482. static void bbr_lt_bw_interval_done(struct sock *sk, u32 bw)
  483. {
  484. struct bbr *bbr = inet_csk_ca(sk);
  485. u32 diff;
  486. if (bbr->lt_bw) { /* do we have bw from a previous interval? */
  487. /* Is new bw close to the lt_bw from the previous interval? */
  488. diff = abs(bw - bbr->lt_bw);
  489. if ((diff * BBR_UNIT <= bbr_lt_bw_ratio * bbr->lt_bw) ||
  490. (bbr_rate_bytes_per_sec(sk, diff, BBR_UNIT) <=
  491. bbr_lt_bw_diff)) {
  492. /* All criteria are met; estimate we're policed. */
  493. bbr->lt_bw = (bw + bbr->lt_bw) >> 1; /* avg 2 intvls */
  494. bbr->lt_use_bw = 1;
  495. bbr->pacing_gain = BBR_UNIT; /* try to avoid drops */
  496. bbr->lt_rtt_cnt = 0;
  497. return;
  498. }
  499. }
  500. bbr->lt_bw = bw;
  501. bbr_reset_lt_bw_sampling_interval(sk);
  502. }
  503. /* Token-bucket traffic policers are common (see "An Internet-Wide Analysis of
  504. * Traffic Policing", SIGCOMM 2016). BBR detects token-bucket policers and
  505. * explicitly models their policed rate, to reduce unnecessary losses. We
  506. * estimate that we're policed if we see 2 consecutive sampling intervals with
  507. * consistent throughput and high packet loss. If we think we're being policed,
  508. * set lt_bw to the "long-term" average delivery rate from those 2 intervals.
  509. */
  510. static void bbr_lt_bw_sampling(struct sock *sk, const struct rate_sample *rs)
  511. {
  512. struct tcp_sock *tp = tcp_sk(sk);
  513. struct bbr *bbr = inet_csk_ca(sk);
  514. u32 lost, delivered;
  515. u64 bw;
  516. u32 t;
  517. if (bbr->lt_use_bw) { /* already using long-term rate, lt_bw? */
  518. if (bbr->mode == BBR_PROBE_BW && bbr->round_start &&
  519. ++bbr->lt_rtt_cnt >= bbr_lt_bw_max_rtts) {
  520. bbr_reset_lt_bw_sampling(sk); /* stop using lt_bw */
  521. bbr_reset_probe_bw_mode(sk); /* restart gain cycling */
  522. }
  523. return;
  524. }
  525. /* Wait for the first loss before sampling, to let the policer exhaust
  526. * its tokens and estimate the steady-state rate allowed by the policer.
  527. * Starting samples earlier includes bursts that over-estimate the bw.
  528. */
  529. if (!bbr->lt_is_sampling) {
  530. if (!rs->losses)
  531. return;
  532. bbr_reset_lt_bw_sampling_interval(sk);
  533. bbr->lt_is_sampling = true;
  534. }
  535. /* To avoid underestimates, reset sampling if we run out of data. */
  536. if (rs->is_app_limited) {
  537. bbr_reset_lt_bw_sampling(sk);
  538. return;
  539. }
  540. if (bbr->round_start)
  541. bbr->lt_rtt_cnt++; /* count round trips in this interval */
  542. if (bbr->lt_rtt_cnt < bbr_lt_intvl_min_rtts)
  543. return; /* sampling interval needs to be longer */
  544. if (bbr->lt_rtt_cnt > 4 * bbr_lt_intvl_min_rtts) {
  545. bbr_reset_lt_bw_sampling(sk); /* interval is too long */
  546. return;
  547. }
  548. /* End sampling interval when a packet is lost, so we estimate the
  549. * policer tokens were exhausted. Stopping the sampling before the
  550. * tokens are exhausted under-estimates the policed rate.
  551. */
  552. if (!rs->losses)
  553. return;
  554. /* Calculate packets lost and delivered in sampling interval. */
  555. lost = tp->lost - bbr->lt_last_lost;
  556. delivered = tp->delivered - bbr->lt_last_delivered;
  557. /* Is loss rate (lost/delivered) >= lt_loss_thresh? If not, wait. */
  558. if (!delivered || (lost << BBR_SCALE) < bbr_lt_loss_thresh * delivered)
  559. return;
  560. /* Find average delivery rate in this sampling interval. */
  561. t = div_u64(tp->delivered_mstamp, USEC_PER_MSEC) - bbr->lt_last_stamp;
  562. if ((s32)t < 1)
  563. return; /* interval is less than one ms, so wait */
  564. /* Check if can multiply without overflow */
  565. if (t >= ~0U / USEC_PER_MSEC) {
  566. bbr_reset_lt_bw_sampling(sk); /* interval too long; reset */
  567. return;
  568. }
  569. t *= USEC_PER_MSEC;
  570. bw = (u64)delivered * BW_UNIT;
  571. do_div(bw, t);
  572. bbr_lt_bw_interval_done(sk, bw);
  573. }
  574. /* Estimate the bandwidth based on how fast packets are delivered */
  575. static void bbr_update_bw(struct sock *sk, const struct rate_sample *rs)
  576. {
  577. struct tcp_sock *tp = tcp_sk(sk);
  578. struct bbr *bbr = inet_csk_ca(sk);
  579. u64 bw;
  580. bbr->round_start = 0;
  581. if (rs->delivered < 0 || rs->interval_us <= 0)
  582. return; /* Not a valid observation */
  583. /* See if we've reached the next RTT */
  584. if (!before(rs->prior_delivered, bbr->next_rtt_delivered)) {
  585. bbr->next_rtt_delivered = tp->delivered;
  586. bbr->rtt_cnt++;
  587. bbr->round_start = 1;
  588. bbr->packet_conservation = 0;
  589. }
  590. bbr_lt_bw_sampling(sk, rs);
  591. /* Divide delivered by the interval to find a (lower bound) bottleneck
  592. * bandwidth sample. Delivered is in packets and interval_us in uS and
  593. * ratio will be <<1 for most connections. So delivered is first scaled.
  594. */
  595. bw = (u64)rs->delivered * BW_UNIT;
  596. do_div(bw, rs->interval_us);
  597. /* If this sample is application-limited, it is likely to have a very
  598. * low delivered count that represents application behavior rather than
  599. * the available network rate. Such a sample could drag down estimated
  600. * bw, causing needless slow-down. Thus, to continue to send at the
  601. * last measured network rate, we filter out app-limited samples unless
  602. * they describe the path bw at least as well as our bw model.
  603. *
  604. * So the goal during app-limited phase is to proceed with the best
  605. * network rate no matter how long. We automatically leave this
  606. * phase when app writes faster than the network can deliver :)
  607. */
  608. if (!rs->is_app_limited || bw >= bbr_max_bw(sk)) {
  609. /* Incorporate new sample into our max bw filter. */
  610. minmax_running_max(&bbr->bw, bbr_bw_rtts, bbr->rtt_cnt, bw);
  611. }
  612. }
  613. /* Estimate when the pipe is full, using the change in delivery rate: BBR
  614. * estimates that STARTUP filled the pipe if the estimated bw hasn't changed by
  615. * at least bbr_full_bw_thresh (25%) after bbr_full_bw_cnt (3) non-app-limited
  616. * rounds. Why 3 rounds: 1: rwin autotuning grows the rwin, 2: we fill the
  617. * higher rwin, 3: we get higher delivery rate samples. Or transient
  618. * cross-traffic or radio noise can go away. CUBIC Hystart shares a similar
  619. * design goal, but uses delay and inter-ACK spacing instead of bandwidth.
  620. */
  621. static void bbr_check_full_bw_reached(struct sock *sk,
  622. const struct rate_sample *rs)
  623. {
  624. struct bbr *bbr = inet_csk_ca(sk);
  625. u32 bw_thresh;
  626. if (bbr_full_bw_reached(sk) || !bbr->round_start || rs->is_app_limited)
  627. return;
  628. bw_thresh = (u64)bbr->full_bw * bbr_full_bw_thresh >> BBR_SCALE;
  629. if (bbr_max_bw(sk) >= bw_thresh) {
  630. bbr->full_bw = bbr_max_bw(sk);
  631. bbr->full_bw_cnt = 0;
  632. return;
  633. }
  634. ++bbr->full_bw_cnt;
  635. }
  636. /* If pipe is probably full, drain the queue and then enter steady-state. */
  637. static void bbr_check_drain(struct sock *sk, const struct rate_sample *rs)
  638. {
  639. struct bbr *bbr = inet_csk_ca(sk);
  640. if (bbr->mode == BBR_STARTUP && bbr_full_bw_reached(sk)) {
  641. bbr->mode = BBR_DRAIN; /* drain queue we created */
  642. bbr->pacing_gain = bbr_drain_gain; /* pace slow to drain */
  643. bbr->cwnd_gain = bbr_high_gain; /* maintain cwnd */
  644. } /* fall through to check if in-flight is already small: */
  645. if (bbr->mode == BBR_DRAIN &&
  646. tcp_packets_in_flight(tcp_sk(sk)) <=
  647. bbr_target_cwnd(sk, bbr_max_bw(sk), BBR_UNIT))
  648. bbr_reset_probe_bw_mode(sk); /* we estimate queue is drained */
  649. }
  650. /* The goal of PROBE_RTT mode is to have BBR flows cooperatively and
  651. * periodically drain the bottleneck queue, to converge to measure the true
  652. * min_rtt (unloaded propagation delay). This allows the flows to keep queues
  653. * small (reducing queuing delay and packet loss) and achieve fairness among
  654. * BBR flows.
  655. *
  656. * The min_rtt filter window is 10 seconds. When the min_rtt estimate expires,
  657. * we enter PROBE_RTT mode and cap the cwnd at bbr_cwnd_min_target=4 packets.
  658. * After at least bbr_probe_rtt_mode_ms=200ms and at least one packet-timed
  659. * round trip elapsed with that flight size <= 4, we leave PROBE_RTT mode and
  660. * re-enter the previous mode. BBR uses 200ms to approximately bound the
  661. * performance penalty of PROBE_RTT's cwnd capping to roughly 2% (200ms/10s).
  662. *
  663. * Note that flows need only pay 2% if they are busy sending over the last 10
  664. * seconds. Interactive applications (e.g., Web, RPCs, video chunks) often have
  665. * natural silences or low-rate periods within 10 seconds where the rate is low
  666. * enough for long enough to drain its queue in the bottleneck. We pick up
  667. * these min RTT measurements opportunistically with our min_rtt filter. :-)
  668. */
  669. static void bbr_update_min_rtt(struct sock *sk, const struct rate_sample *rs)
  670. {
  671. struct tcp_sock *tp = tcp_sk(sk);
  672. struct bbr *bbr = inet_csk_ca(sk);
  673. bool filter_expired;
  674. /* Track min RTT seen in the min_rtt_win_sec filter window: */
  675. filter_expired = after(tcp_jiffies32,
  676. bbr->min_rtt_stamp + bbr_min_rtt_win_sec * HZ);
  677. if (rs->rtt_us >= 0 &&
  678. (rs->rtt_us <= bbr->min_rtt_us || filter_expired)) {
  679. bbr->min_rtt_us = rs->rtt_us;
  680. bbr->min_rtt_stamp = tcp_jiffies32;
  681. }
  682. if (bbr_probe_rtt_mode_ms > 0 && filter_expired &&
  683. !bbr->idle_restart && bbr->mode != BBR_PROBE_RTT) {
  684. bbr->mode = BBR_PROBE_RTT; /* dip, drain queue */
  685. bbr->pacing_gain = BBR_UNIT;
  686. bbr->cwnd_gain = BBR_UNIT;
  687. bbr_save_cwnd(sk); /* note cwnd so we can restore it */
  688. bbr->probe_rtt_done_stamp = 0;
  689. }
  690. if (bbr->mode == BBR_PROBE_RTT) {
  691. /* Ignore low rate samples during this mode. */
  692. tp->app_limited =
  693. (tp->delivered + tcp_packets_in_flight(tp)) ? : 1;
  694. /* Maintain min packets in flight for max(200 ms, 1 round). */
  695. if (!bbr->probe_rtt_done_stamp &&
  696. tcp_packets_in_flight(tp) <= bbr_cwnd_min_target) {
  697. bbr->probe_rtt_done_stamp = tcp_jiffies32 +
  698. msecs_to_jiffies(bbr_probe_rtt_mode_ms);
  699. bbr->probe_rtt_round_done = 0;
  700. bbr->next_rtt_delivered = tp->delivered;
  701. } else if (bbr->probe_rtt_done_stamp) {
  702. if (bbr->round_start)
  703. bbr->probe_rtt_round_done = 1;
  704. if (bbr->probe_rtt_round_done &&
  705. after(tcp_jiffies32, bbr->probe_rtt_done_stamp)) {
  706. bbr->min_rtt_stamp = tcp_jiffies32;
  707. bbr->restore_cwnd = 1; /* snap to prior_cwnd */
  708. bbr_reset_mode(sk);
  709. }
  710. }
  711. }
  712. bbr->idle_restart = 0;
  713. }
  714. static void bbr_update_model(struct sock *sk, const struct rate_sample *rs)
  715. {
  716. bbr_update_bw(sk, rs);
  717. bbr_update_cycle_phase(sk, rs);
  718. bbr_check_full_bw_reached(sk, rs);
  719. bbr_check_drain(sk, rs);
  720. bbr_update_min_rtt(sk, rs);
  721. }
  722. static void bbr_main(struct sock *sk, const struct rate_sample *rs)
  723. {
  724. struct bbr *bbr = inet_csk_ca(sk);
  725. u32 bw;
  726. bbr_update_model(sk, rs);
  727. bw = bbr_bw(sk);
  728. bbr_set_pacing_rate(sk, bw, bbr->pacing_gain);
  729. bbr_set_tso_segs_goal(sk);
  730. bbr_set_cwnd(sk, rs, rs->acked_sacked, bw, bbr->cwnd_gain);
  731. }
  732. static void bbr_init(struct sock *sk)
  733. {
  734. struct tcp_sock *tp = tcp_sk(sk);
  735. struct bbr *bbr = inet_csk_ca(sk);
  736. bbr->prior_cwnd = 0;
  737. bbr->tso_segs_goal = 0; /* default segs per skb until first ACK */
  738. bbr->rtt_cnt = 0;
  739. bbr->next_rtt_delivered = 0;
  740. bbr->prev_ca_state = TCP_CA_Open;
  741. bbr->packet_conservation = 0;
  742. bbr->probe_rtt_done_stamp = 0;
  743. bbr->probe_rtt_round_done = 0;
  744. bbr->min_rtt_us = tcp_min_rtt(tp);
  745. bbr->min_rtt_stamp = tcp_jiffies32;
  746. minmax_reset(&bbr->bw, bbr->rtt_cnt, 0); /* init max bw to 0 */
  747. bbr->has_seen_rtt = 0;
  748. bbr_init_pacing_rate_from_rtt(sk);
  749. bbr->restore_cwnd = 0;
  750. bbr->round_start = 0;
  751. bbr->idle_restart = 0;
  752. bbr->full_bw = 0;
  753. bbr->full_bw_cnt = 0;
  754. bbr->cycle_mstamp = 0;
  755. bbr->cycle_idx = 0;
  756. bbr_reset_lt_bw_sampling(sk);
  757. bbr_reset_startup_mode(sk);
  758. cmpxchg(&sk->sk_pacing_status, SK_PACING_NONE, SK_PACING_NEEDED);
  759. }
  760. static u32 bbr_sndbuf_expand(struct sock *sk)
  761. {
  762. /* Provision 3 * cwnd since BBR may slow-start even during recovery. */
  763. return 3;
  764. }
  765. /* In theory BBR does not need to undo the cwnd since it does not
  766. * always reduce cwnd on losses (see bbr_main()). Keep it for now.
  767. */
  768. static u32 bbr_undo_cwnd(struct sock *sk)
  769. {
  770. return tcp_sk(sk)->snd_cwnd;
  771. }
  772. /* Entering loss recovery, so save cwnd for when we exit or undo recovery. */
  773. static u32 bbr_ssthresh(struct sock *sk)
  774. {
  775. bbr_save_cwnd(sk);
  776. return TCP_INFINITE_SSTHRESH; /* BBR does not use ssthresh */
  777. }
  778. static size_t bbr_get_info(struct sock *sk, u32 ext, int *attr,
  779. union tcp_cc_info *info)
  780. {
  781. if (ext & (1 << (INET_DIAG_BBRINFO - 1)) ||
  782. ext & (1 << (INET_DIAG_VEGASINFO - 1))) {
  783. struct tcp_sock *tp = tcp_sk(sk);
  784. struct bbr *bbr = inet_csk_ca(sk);
  785. u64 bw = bbr_bw(sk);
  786. bw = bw * tp->mss_cache * USEC_PER_SEC >> BW_SCALE;
  787. memset(&info->bbr, 0, sizeof(info->bbr));
  788. info->bbr.bbr_bw_lo = (u32)bw;
  789. info->bbr.bbr_bw_hi = (u32)(bw >> 32);
  790. info->bbr.bbr_min_rtt = bbr->min_rtt_us;
  791. info->bbr.bbr_pacing_gain = bbr->pacing_gain;
  792. info->bbr.bbr_cwnd_gain = bbr->cwnd_gain;
  793. *attr = INET_DIAG_BBRINFO;
  794. return sizeof(info->bbr);
  795. }
  796. return 0;
  797. }
  798. static void bbr_set_state(struct sock *sk, u8 new_state)
  799. {
  800. struct bbr *bbr = inet_csk_ca(sk);
  801. if (new_state == TCP_CA_Loss) {
  802. struct rate_sample rs = { .losses = 1 };
  803. bbr->prev_ca_state = TCP_CA_Loss;
  804. bbr->full_bw = 0;
  805. bbr->round_start = 1; /* treat RTO like end of a round */
  806. bbr_lt_bw_sampling(sk, &rs);
  807. }
  808. }
  809. static struct tcp_congestion_ops tcp_bbr_cong_ops __read_mostly = {
  810. .flags = TCP_CONG_NON_RESTRICTED,
  811. .name = "bbr",
  812. .owner = THIS_MODULE,
  813. .init = bbr_init,
  814. .cong_control = bbr_main,
  815. .sndbuf_expand = bbr_sndbuf_expand,
  816. .undo_cwnd = bbr_undo_cwnd,
  817. .cwnd_event = bbr_cwnd_event,
  818. .ssthresh = bbr_ssthresh,
  819. .tso_segs_goal = bbr_tso_segs_goal,
  820. .get_info = bbr_get_info,
  821. .set_state = bbr_set_state,
  822. };
  823. static int __init bbr_register(void)
  824. {
  825. BUILD_BUG_ON(sizeof(struct bbr) > ICSK_CA_PRIV_SIZE);
  826. return tcp_register_congestion_control(&tcp_bbr_cong_ops);
  827. }
  828. static void __exit bbr_unregister(void)
  829. {
  830. tcp_unregister_congestion_control(&tcp_bbr_cong_ops);
  831. }
  832. module_init(bbr_register);
  833. module_exit(bbr_unregister);
  834. MODULE_AUTHOR("Van Jacobson <vanj@google.com>");
  835. MODULE_AUTHOR("Neal Cardwell <ncardwell@google.com>");
  836. MODULE_AUTHOR("Yuchung Cheng <ycheng@google.com>");
  837. MODULE_AUTHOR("Soheil Hassas Yeganeh <soheil@google.com>");
  838. MODULE_LICENSE("Dual BSD/GPL");
  839. MODULE_DESCRIPTION("TCP BBR (Bottleneck Bandwidth and RTT)");