1 // SPDX-License-Identifier: GPL-2.0-or-later 2 /* SCTP kernel implementation 3 * Copyright (c) 1999-2000 Cisco, Inc. 4 * Copyright (c) 1999-2001 Motorola, Inc. 5 * Copyright (c) 2001-2003 International Business Machines Corp. 6 * Copyright (c) 2001 Intel Corp. 7 * Copyright (c) 2001 La Monte H.P. Yarroll 8 * 9 * This file is part of the SCTP kernel implementation 10 * 11 * This module provides the abstraction for an SCTP transport representing 12 * a remote transport address. For local transport addresses, we just use 13 * union sctp_addr. 14 * 15 * Please send any bug reports or fixes you make to the 16 * email address(es): 17 * lksctp developers <linux-sctp@vger.kernel.org> 18 * 19 * Written or modified by: 20 * La Monte H.P. Yarroll <piggy@acm.org> 21 * Karl Knutson <karl@athena.chicago.il.us> 22 * Jon Grimm <jgrimm@us.ibm.com> 23 * Xingang Guo <xingang.guo@intel.com> 24 * Hui Huang <hui.huang@nokia.com> 25 * Sridhar Samudrala <sri@us.ibm.com> 26 * Ardelle Fan <ardelle.fan@intel.com> 27 */ 28 29 #define pr_fmt(fmt) KBUILD_MODNAME ": " fmt 30 31 #include <linux/slab.h> 32 #include <linux/types.h> 33 #include <linux/random.h> 34 #include <net/sctp/sctp.h> 35 #include <net/sctp/sm.h> 36 37 /* 1st Level Abstractions. */ 38 39 /* Initialize a new transport from provided memory. */ 40 static struct sctp_transport *sctp_transport_init(struct net *net, 41 struct sctp_transport *peer, 42 const union sctp_addr *addr, 43 gfp_t gfp) 44 { 45 /* Copy in the address. */ 46 peer->af_specific = sctp_get_af_specific(addr->sa.sa_family); 47 memcpy(&peer->ipaddr, addr, peer->af_specific->sockaddr_len); 48 memset(&peer->saddr, 0, sizeof(union sctp_addr)); 49 50 peer->sack_generation = 0; 51 52 /* From 6.3.1 RTO Calculation: 53 * 54 * C1) Until an RTT measurement has been made for a packet sent to the 55 * given destination transport address, set RTO to the protocol 56 * parameter 'RTO.Initial'. 57 */ 58 peer->rto = msecs_to_jiffies(net->sctp.rto_initial); 59 60 peer->last_time_heard = 0; 61 peer->last_time_ecne_reduced = jiffies; 62 63 peer->param_flags = SPP_HB_DISABLE | 64 SPP_PMTUD_ENABLE | 65 SPP_SACKDELAY_ENABLE; 66 67 /* Initialize the default path max_retrans. */ 68 peer->pathmaxrxt = net->sctp.max_retrans_path; 69 peer->pf_retrans = net->sctp.pf_retrans; 70 71 INIT_LIST_HEAD(&peer->transmitted); 72 INIT_LIST_HEAD(&peer->send_ready); 73 INIT_LIST_HEAD(&peer->transports); 74 75 timer_setup(&peer->T3_rtx_timer, sctp_generate_t3_rtx_event, 0); 76 timer_setup(&peer->hb_timer, sctp_generate_heartbeat_event, 0); 77 timer_setup(&peer->reconf_timer, sctp_generate_reconf_event, 0); 78 timer_setup(&peer->probe_timer, sctp_generate_probe_event, 0); 79 timer_setup(&peer->proto_unreach_timer, 80 sctp_generate_proto_unreach_event, 0); 81 82 /* Initialize the 64-bit random nonce sent with heartbeat. */ 83 get_random_bytes(&peer->hb_nonce, sizeof(peer->hb_nonce)); 84 85 refcount_set(&peer->refcnt, 1); 86 87 return peer; 88 } 89 90 /* Allocate and initialize a new transport. */ 91 struct sctp_transport *sctp_transport_new(struct net *net, 92 const union sctp_addr *addr, 93 gfp_t gfp) 94 { 95 struct sctp_transport *transport; 96 97 transport = kzalloc(sizeof(*transport), gfp); 98 if (!transport) 99 goto fail; 100 101 if (!sctp_transport_init(net, transport, addr, gfp)) 102 goto fail_init; 103 104 SCTP_DBG_OBJCNT_INC(transport); 105 106 return transport; 107 108 fail_init: 109 kfree(transport); 110 111 fail: 112 return NULL; 113 } 114 115 /* This transport is no longer needed. Free up if possible, or 116 * delay until it last reference count. 117 */ 118 void sctp_transport_free(struct sctp_transport *transport) 119 { 120 /* Try to delete the heartbeat timer. */ 121 if (del_timer(&transport->hb_timer)) 122 sctp_transport_put(transport); 123 124 /* Delete the T3_rtx timer if it's active. 125 * There is no point in not doing this now and letting 126 * structure hang around in memory since we know 127 * the transport is going away. 128 */ 129 if (del_timer(&transport->T3_rtx_timer)) 130 sctp_transport_put(transport); 131 132 if (del_timer(&transport->reconf_timer)) 133 sctp_transport_put(transport); 134 135 if (del_timer(&transport->probe_timer)) 136 sctp_transport_put(transport); 137 138 /* Delete the ICMP proto unreachable timer if it's active. */ 139 if (del_timer(&transport->proto_unreach_timer)) 140 sctp_transport_put(transport); 141 142 sctp_transport_put(transport); 143 } 144 145 static void sctp_transport_destroy_rcu(struct rcu_head *head) 146 { 147 struct sctp_transport *transport; 148 149 transport = container_of(head, struct sctp_transport, rcu); 150 151 dst_release(transport->dst); 152 kfree(transport); 153 SCTP_DBG_OBJCNT_DEC(transport); 154 } 155 156 /* Destroy the transport data structure. 157 * Assumes there are no more users of this structure. 158 */ 159 static void sctp_transport_destroy(struct sctp_transport *transport) 160 { 161 if (unlikely(refcount_read(&transport->refcnt))) { 162 WARN(1, "Attempt to destroy undead transport %p!\n", transport); 163 return; 164 } 165 166 sctp_packet_free(&transport->packet); 167 168 if (transport->asoc) 169 sctp_association_put(transport->asoc); 170 171 call_rcu(&transport->rcu, sctp_transport_destroy_rcu); 172 } 173 174 /* Start T3_rtx timer if it is not already running and update the heartbeat 175 * timer. This routine is called every time a DATA chunk is sent. 176 */ 177 void sctp_transport_reset_t3_rtx(struct sctp_transport *transport) 178 { 179 /* RFC 2960 6.3.2 Retransmission Timer Rules 180 * 181 * R1) Every time a DATA chunk is sent to any address(including a 182 * retransmission), if the T3-rtx timer of that address is not running 183 * start it running so that it will expire after the RTO of that 184 * address. 185 */ 186 187 if (!timer_pending(&transport->T3_rtx_timer)) 188 if (!mod_timer(&transport->T3_rtx_timer, 189 jiffies + transport->rto)) 190 sctp_transport_hold(transport); 191 } 192 193 void sctp_transport_reset_hb_timer(struct sctp_transport *transport) 194 { 195 unsigned long expires; 196 197 /* When a data chunk is sent, reset the heartbeat interval. */ 198 expires = jiffies + sctp_transport_timeout(transport); 199 if ((time_before(transport->hb_timer.expires, expires) || 200 !timer_pending(&transport->hb_timer)) && 201 !mod_timer(&transport->hb_timer, 202 expires + prandom_u32_max(transport->rto))) 203 sctp_transport_hold(transport); 204 } 205 206 void sctp_transport_reset_reconf_timer(struct sctp_transport *transport) 207 { 208 if (!timer_pending(&transport->reconf_timer)) 209 if (!mod_timer(&transport->reconf_timer, 210 jiffies + transport->rto)) 211 sctp_transport_hold(transport); 212 } 213 214 void sctp_transport_reset_probe_timer(struct sctp_transport *transport) 215 { 216 if (timer_pending(&transport->probe_timer)) 217 return; 218 if (!mod_timer(&transport->probe_timer, 219 jiffies + transport->probe_interval)) 220 sctp_transport_hold(transport); 221 } 222 223 /* This transport has been assigned to an association. 224 * Initialize fields from the association or from the sock itself. 225 * Register the reference count in the association. 226 */ 227 void sctp_transport_set_owner(struct sctp_transport *transport, 228 struct sctp_association *asoc) 229 { 230 transport->asoc = asoc; 231 sctp_association_hold(asoc); 232 } 233 234 /* Initialize the pmtu of a transport. */ 235 void sctp_transport_pmtu(struct sctp_transport *transport, struct sock *sk) 236 { 237 /* If we don't have a fresh route, look one up */ 238 if (!transport->dst || transport->dst->obsolete) { 239 sctp_transport_dst_release(transport); 240 transport->af_specific->get_dst(transport, &transport->saddr, 241 &transport->fl, sk); 242 } 243 244 if (transport->param_flags & SPP_PMTUD_DISABLE) { 245 struct sctp_association *asoc = transport->asoc; 246 247 if (!transport->pathmtu && asoc && asoc->pathmtu) 248 transport->pathmtu = asoc->pathmtu; 249 if (transport->pathmtu) 250 return; 251 } 252 253 if (transport->dst) 254 transport->pathmtu = sctp_dst_mtu(transport->dst); 255 else 256 transport->pathmtu = SCTP_DEFAULT_MAXSEGMENT; 257 258 sctp_transport_pl_update(transport); 259 } 260 261 void sctp_transport_pl_send(struct sctp_transport *t) 262 { 263 pr_debug("%s: PLPMTUD: transport: %p, state: %d, pmtu: %d, size: %d, high: %d\n", 264 __func__, t, t->pl.state, t->pl.pmtu, t->pl.probe_size, t->pl.probe_high); 265 266 if (t->pl.probe_count < SCTP_MAX_PROBES) { 267 t->pl.probe_count++; 268 return; 269 } 270 271 if (t->pl.state == SCTP_PL_BASE) { 272 if (t->pl.probe_size == SCTP_BASE_PLPMTU) { /* BASE_PLPMTU Confirmation Failed */ 273 t->pl.state = SCTP_PL_ERROR; /* Base -> Error */ 274 275 t->pl.pmtu = SCTP_MIN_PLPMTU; 276 t->pathmtu = t->pl.pmtu + sctp_transport_pl_hlen(t); 277 sctp_assoc_sync_pmtu(t->asoc); 278 } 279 } else if (t->pl.state == SCTP_PL_SEARCH) { 280 if (t->pl.pmtu == t->pl.probe_size) { /* Black Hole Detected */ 281 t->pl.state = SCTP_PL_BASE; /* Search -> Base */ 282 t->pl.probe_size = SCTP_BASE_PLPMTU; 283 t->pl.probe_high = 0; 284 285 t->pl.pmtu = SCTP_BASE_PLPMTU; 286 t->pathmtu = t->pl.pmtu + sctp_transport_pl_hlen(t); 287 sctp_assoc_sync_pmtu(t->asoc); 288 } else { /* Normal probe failure. */ 289 t->pl.probe_high = t->pl.probe_size; 290 t->pl.probe_size = t->pl.pmtu; 291 } 292 } else if (t->pl.state == SCTP_PL_COMPLETE) { 293 if (t->pl.pmtu == t->pl.probe_size) { /* Black Hole Detected */ 294 t->pl.state = SCTP_PL_BASE; /* Search Complete -> Base */ 295 t->pl.probe_size = SCTP_BASE_PLPMTU; 296 297 t->pl.pmtu = SCTP_BASE_PLPMTU; 298 t->pathmtu = t->pl.pmtu + sctp_transport_pl_hlen(t); 299 sctp_assoc_sync_pmtu(t->asoc); 300 } 301 } 302 t->pl.probe_count = 1; 303 } 304 305 void sctp_transport_pl_recv(struct sctp_transport *t) 306 { 307 pr_debug("%s: PLPMTUD: transport: %p, state: %d, pmtu: %d, size: %d, high: %d\n", 308 __func__, t, t->pl.state, t->pl.pmtu, t->pl.probe_size, t->pl.probe_high); 309 310 t->pl.pmtu = t->pl.probe_size; 311 t->pl.probe_count = 0; 312 if (t->pl.state == SCTP_PL_BASE) { 313 t->pl.state = SCTP_PL_SEARCH; /* Base -> Search */ 314 t->pl.probe_size += SCTP_PL_BIG_STEP; 315 } else if (t->pl.state == SCTP_PL_ERROR) { 316 t->pl.state = SCTP_PL_SEARCH; /* Error -> Search */ 317 318 t->pl.pmtu = t->pl.probe_size; 319 t->pathmtu = t->pl.pmtu + sctp_transport_pl_hlen(t); 320 sctp_assoc_sync_pmtu(t->asoc); 321 t->pl.probe_size += SCTP_PL_BIG_STEP; 322 } else if (t->pl.state == SCTP_PL_SEARCH) { 323 if (!t->pl.probe_high) { 324 t->pl.probe_size = min(t->pl.probe_size + SCTP_PL_BIG_STEP, 325 SCTP_MAX_PLPMTU); 326 return; 327 } 328 t->pl.probe_size += SCTP_PL_MIN_STEP; 329 if (t->pl.probe_size >= t->pl.probe_high) { 330 t->pl.probe_high = 0; 331 t->pl.raise_count = 0; 332 t->pl.state = SCTP_PL_COMPLETE; /* Search -> Search Complete */ 333 334 t->pl.probe_size = t->pl.pmtu; 335 t->pathmtu = t->pl.pmtu + sctp_transport_pl_hlen(t); 336 sctp_assoc_sync_pmtu(t->asoc); 337 } 338 } else if (t->pl.state == SCTP_PL_COMPLETE && ++t->pl.raise_count == 30) { 339 /* Raise probe_size again after 30 * interval in Search Complete */ 340 t->pl.state = SCTP_PL_SEARCH; /* Search Complete -> Search */ 341 t->pl.probe_size += SCTP_PL_MIN_STEP; 342 } 343 } 344 345 static bool sctp_transport_pl_toobig(struct sctp_transport *t, u32 pmtu) 346 { 347 pr_debug("%s: PLPMTUD: transport: %p, state: %d, pmtu: %d, size: %d, ptb: %d\n", 348 __func__, t, t->pl.state, t->pl.pmtu, t->pl.probe_size, pmtu); 349 350 if (pmtu < SCTP_MIN_PLPMTU || pmtu >= t->pl.probe_size) 351 return false; 352 353 if (t->pl.state == SCTP_PL_BASE) { 354 if (pmtu >= SCTP_MIN_PLPMTU && pmtu < SCTP_BASE_PLPMTU) { 355 t->pl.state = SCTP_PL_ERROR; /* Base -> Error */ 356 357 t->pl.pmtu = SCTP_MIN_PLPMTU; 358 t->pathmtu = t->pl.pmtu + sctp_transport_pl_hlen(t); 359 } 360 } else if (t->pl.state == SCTP_PL_SEARCH) { 361 if (pmtu >= SCTP_BASE_PLPMTU && pmtu < t->pl.pmtu) { 362 t->pl.state = SCTP_PL_BASE; /* Search -> Base */ 363 t->pl.probe_size = SCTP_BASE_PLPMTU; 364 t->pl.probe_count = 0; 365 366 t->pl.probe_high = 0; 367 t->pl.pmtu = SCTP_BASE_PLPMTU; 368 t->pathmtu = t->pl.pmtu + sctp_transport_pl_hlen(t); 369 } else if (pmtu > t->pl.pmtu && pmtu < t->pl.probe_size) { 370 t->pl.probe_size = pmtu; 371 t->pl.probe_count = 0; 372 373 return false; 374 } 375 } else if (t->pl.state == SCTP_PL_COMPLETE) { 376 if (pmtu >= SCTP_BASE_PLPMTU && pmtu < t->pl.pmtu) { 377 t->pl.state = SCTP_PL_BASE; /* Complete -> Base */ 378 t->pl.probe_size = SCTP_BASE_PLPMTU; 379 t->pl.probe_count = 0; 380 381 t->pl.probe_high = 0; 382 t->pl.pmtu = SCTP_BASE_PLPMTU; 383 t->pathmtu = t->pl.pmtu + sctp_transport_pl_hlen(t); 384 } 385 } 386 387 return true; 388 } 389 390 bool sctp_transport_update_pmtu(struct sctp_transport *t, u32 pmtu) 391 { 392 struct sock *sk = t->asoc->base.sk; 393 struct dst_entry *dst; 394 bool change = true; 395 396 if (unlikely(pmtu < SCTP_DEFAULT_MINSEGMENT)) { 397 pr_warn_ratelimited("%s: Reported pmtu %d too low, using default minimum of %d\n", 398 __func__, pmtu, SCTP_DEFAULT_MINSEGMENT); 399 /* Use default minimum segment instead */ 400 pmtu = SCTP_DEFAULT_MINSEGMENT; 401 } 402 pmtu = SCTP_TRUNC4(pmtu); 403 404 if (sctp_transport_pl_enabled(t)) 405 return sctp_transport_pl_toobig(t, pmtu - sctp_transport_pl_hlen(t)); 406 407 dst = sctp_transport_dst_check(t); 408 if (dst) { 409 struct sctp_pf *pf = sctp_get_pf_specific(dst->ops->family); 410 union sctp_addr addr; 411 412 pf->af->from_sk(&addr, sk); 413 pf->to_sk_daddr(&t->ipaddr, sk); 414 dst->ops->update_pmtu(dst, sk, NULL, pmtu, true); 415 pf->to_sk_daddr(&addr, sk); 416 417 dst = sctp_transport_dst_check(t); 418 } 419 420 if (!dst) { 421 t->af_specific->get_dst(t, &t->saddr, &t->fl, sk); 422 dst = t->dst; 423 } 424 425 if (dst) { 426 /* Re-fetch, as under layers may have a higher minimum size */ 427 pmtu = sctp_dst_mtu(dst); 428 change = t->pathmtu != pmtu; 429 } 430 t->pathmtu = pmtu; 431 432 return change; 433 } 434 435 /* Caches the dst entry and source address for a transport's destination 436 * address. 437 */ 438 void sctp_transport_route(struct sctp_transport *transport, 439 union sctp_addr *saddr, struct sctp_sock *opt) 440 { 441 struct sctp_association *asoc = transport->asoc; 442 struct sctp_af *af = transport->af_specific; 443 444 sctp_transport_dst_release(transport); 445 af->get_dst(transport, saddr, &transport->fl, sctp_opt2sk(opt)); 446 447 if (saddr) 448 memcpy(&transport->saddr, saddr, sizeof(union sctp_addr)); 449 else 450 af->get_saddr(opt, transport, &transport->fl); 451 452 sctp_transport_pmtu(transport, sctp_opt2sk(opt)); 453 454 /* Initialize sk->sk_rcv_saddr, if the transport is the 455 * association's active path for getsockname(). 456 */ 457 if (transport->dst && asoc && 458 (!asoc->peer.primary_path || transport == asoc->peer.active_path)) 459 opt->pf->to_sk_saddr(&transport->saddr, asoc->base.sk); 460 } 461 462 /* Hold a reference to a transport. */ 463 int sctp_transport_hold(struct sctp_transport *transport) 464 { 465 return refcount_inc_not_zero(&transport->refcnt); 466 } 467 468 /* Release a reference to a transport and clean up 469 * if there are no more references. 470 */ 471 void sctp_transport_put(struct sctp_transport *transport) 472 { 473 if (refcount_dec_and_test(&transport->refcnt)) 474 sctp_transport_destroy(transport); 475 } 476 477 /* Update transport's RTO based on the newly calculated RTT. */ 478 void sctp_transport_update_rto(struct sctp_transport *tp, __u32 rtt) 479 { 480 if (unlikely(!tp->rto_pending)) 481 /* We should not be doing any RTO updates unless rto_pending is set. */ 482 pr_debug("%s: rto_pending not set on transport %p!\n", __func__, tp); 483 484 if (tp->rttvar || tp->srtt) { 485 struct net *net = tp->asoc->base.net; 486 /* 6.3.1 C3) When a new RTT measurement R' is made, set 487 * RTTVAR <- (1 - RTO.Beta) * RTTVAR + RTO.Beta * |SRTT - R'| 488 * SRTT <- (1 - RTO.Alpha) * SRTT + RTO.Alpha * R' 489 */ 490 491 /* Note: The above algorithm has been rewritten to 492 * express rto_beta and rto_alpha as inverse powers 493 * of two. 494 * For example, assuming the default value of RTO.Alpha of 495 * 1/8, rto_alpha would be expressed as 3. 496 */ 497 tp->rttvar = tp->rttvar - (tp->rttvar >> net->sctp.rto_beta) 498 + (((__u32)abs((__s64)tp->srtt - (__s64)rtt)) >> net->sctp.rto_beta); 499 tp->srtt = tp->srtt - (tp->srtt >> net->sctp.rto_alpha) 500 + (rtt >> net->sctp.rto_alpha); 501 } else { 502 /* 6.3.1 C2) When the first RTT measurement R is made, set 503 * SRTT <- R, RTTVAR <- R/2. 504 */ 505 tp->srtt = rtt; 506 tp->rttvar = rtt >> 1; 507 } 508 509 /* 6.3.1 G1) Whenever RTTVAR is computed, if RTTVAR = 0, then 510 * adjust RTTVAR <- G, where G is the CLOCK GRANULARITY. 511 */ 512 if (tp->rttvar == 0) 513 tp->rttvar = SCTP_CLOCK_GRANULARITY; 514 515 /* 6.3.1 C3) After the computation, update RTO <- SRTT + 4 * RTTVAR. */ 516 tp->rto = tp->srtt + (tp->rttvar << 2); 517 518 /* 6.3.1 C6) Whenever RTO is computed, if it is less than RTO.Min 519 * seconds then it is rounded up to RTO.Min seconds. 520 */ 521 if (tp->rto < tp->asoc->rto_min) 522 tp->rto = tp->asoc->rto_min; 523 524 /* 6.3.1 C7) A maximum value may be placed on RTO provided it is 525 * at least RTO.max seconds. 526 */ 527 if (tp->rto > tp->asoc->rto_max) 528 tp->rto = tp->asoc->rto_max; 529 530 sctp_max_rto(tp->asoc, tp); 531 tp->rtt = rtt; 532 533 /* Reset rto_pending so that a new RTT measurement is started when a 534 * new data chunk is sent. 535 */ 536 tp->rto_pending = 0; 537 538 pr_debug("%s: transport:%p, rtt:%d, srtt:%d rttvar:%d, rto:%ld\n", 539 __func__, tp, rtt, tp->srtt, tp->rttvar, tp->rto); 540 } 541 542 /* This routine updates the transport's cwnd and partial_bytes_acked 543 * parameters based on the bytes acked in the received SACK. 544 */ 545 void sctp_transport_raise_cwnd(struct sctp_transport *transport, 546 __u32 sack_ctsn, __u32 bytes_acked) 547 { 548 struct sctp_association *asoc = transport->asoc; 549 __u32 cwnd, ssthresh, flight_size, pba, pmtu; 550 551 cwnd = transport->cwnd; 552 flight_size = transport->flight_size; 553 554 /* See if we need to exit Fast Recovery first */ 555 if (asoc->fast_recovery && 556 TSN_lte(asoc->fast_recovery_exit, sack_ctsn)) 557 asoc->fast_recovery = 0; 558 559 ssthresh = transport->ssthresh; 560 pba = transport->partial_bytes_acked; 561 pmtu = transport->asoc->pathmtu; 562 563 if (cwnd <= ssthresh) { 564 /* RFC 4960 7.2.1 565 * o When cwnd is less than or equal to ssthresh, an SCTP 566 * endpoint MUST use the slow-start algorithm to increase 567 * cwnd only if the current congestion window is being fully 568 * utilized, an incoming SACK advances the Cumulative TSN 569 * Ack Point, and the data sender is not in Fast Recovery. 570 * Only when these three conditions are met can the cwnd be 571 * increased; otherwise, the cwnd MUST not be increased. 572 * If these conditions are met, then cwnd MUST be increased 573 * by, at most, the lesser of 1) the total size of the 574 * previously outstanding DATA chunk(s) acknowledged, and 575 * 2) the destination's path MTU. This upper bound protects 576 * against the ACK-Splitting attack outlined in [SAVAGE99]. 577 */ 578 if (asoc->fast_recovery) 579 return; 580 581 /* The appropriate cwnd increase algorithm is performed 582 * if, and only if the congestion window is being fully 583 * utilized. Note that RFC4960 Errata 3.22 removed the 584 * other condition on ctsn moving. 585 */ 586 if (flight_size < cwnd) 587 return; 588 589 if (bytes_acked > pmtu) 590 cwnd += pmtu; 591 else 592 cwnd += bytes_acked; 593 594 pr_debug("%s: slow start: transport:%p, bytes_acked:%d, " 595 "cwnd:%d, ssthresh:%d, flight_size:%d, pba:%d\n", 596 __func__, transport, bytes_acked, cwnd, ssthresh, 597 flight_size, pba); 598 } else { 599 /* RFC 2960 7.2.2 Whenever cwnd is greater than ssthresh, 600 * upon each SACK arrival, increase partial_bytes_acked 601 * by the total number of bytes of all new chunks 602 * acknowledged in that SACK including chunks 603 * acknowledged by the new Cumulative TSN Ack and by Gap 604 * Ack Blocks. (updated by RFC4960 Errata 3.22) 605 * 606 * When partial_bytes_acked is greater than cwnd and 607 * before the arrival of the SACK the sender had less 608 * bytes of data outstanding than cwnd (i.e., before 609 * arrival of the SACK, flightsize was less than cwnd), 610 * reset partial_bytes_acked to cwnd. (RFC 4960 Errata 611 * 3.26) 612 * 613 * When partial_bytes_acked is equal to or greater than 614 * cwnd and before the arrival of the SACK the sender 615 * had cwnd or more bytes of data outstanding (i.e., 616 * before arrival of the SACK, flightsize was greater 617 * than or equal to cwnd), partial_bytes_acked is reset 618 * to (partial_bytes_acked - cwnd). Next, cwnd is 619 * increased by MTU. (RFC 4960 Errata 3.12) 620 */ 621 pba += bytes_acked; 622 if (pba > cwnd && flight_size < cwnd) 623 pba = cwnd; 624 if (pba >= cwnd && flight_size >= cwnd) { 625 pba = pba - cwnd; 626 cwnd += pmtu; 627 } 628 629 pr_debug("%s: congestion avoidance: transport:%p, " 630 "bytes_acked:%d, cwnd:%d, ssthresh:%d, " 631 "flight_size:%d, pba:%d\n", __func__, 632 transport, bytes_acked, cwnd, ssthresh, 633 flight_size, pba); 634 } 635 636 transport->cwnd = cwnd; 637 transport->partial_bytes_acked = pba; 638 } 639 640 /* This routine is used to lower the transport's cwnd when congestion is 641 * detected. 642 */ 643 void sctp_transport_lower_cwnd(struct sctp_transport *transport, 644 enum sctp_lower_cwnd reason) 645 { 646 struct sctp_association *asoc = transport->asoc; 647 648 switch (reason) { 649 case SCTP_LOWER_CWND_T3_RTX: 650 /* RFC 2960 Section 7.2.3, sctpimpguide 651 * When the T3-rtx timer expires on an address, SCTP should 652 * perform slow start by: 653 * ssthresh = max(cwnd/2, 4*MTU) 654 * cwnd = 1*MTU 655 * partial_bytes_acked = 0 656 */ 657 transport->ssthresh = max(transport->cwnd/2, 658 4*asoc->pathmtu); 659 transport->cwnd = asoc->pathmtu; 660 661 /* T3-rtx also clears fast recovery */ 662 asoc->fast_recovery = 0; 663 break; 664 665 case SCTP_LOWER_CWND_FAST_RTX: 666 /* RFC 2960 7.2.4 Adjust the ssthresh and cwnd of the 667 * destination address(es) to which the missing DATA chunks 668 * were last sent, according to the formula described in 669 * Section 7.2.3. 670 * 671 * RFC 2960 7.2.3, sctpimpguide Upon detection of packet 672 * losses from SACK (see Section 7.2.4), An endpoint 673 * should do the following: 674 * ssthresh = max(cwnd/2, 4*MTU) 675 * cwnd = ssthresh 676 * partial_bytes_acked = 0 677 */ 678 if (asoc->fast_recovery) 679 return; 680 681 /* Mark Fast recovery */ 682 asoc->fast_recovery = 1; 683 asoc->fast_recovery_exit = asoc->next_tsn - 1; 684 685 transport->ssthresh = max(transport->cwnd/2, 686 4*asoc->pathmtu); 687 transport->cwnd = transport->ssthresh; 688 break; 689 690 case SCTP_LOWER_CWND_ECNE: 691 /* RFC 2481 Section 6.1.2. 692 * If the sender receives an ECN-Echo ACK packet 693 * then the sender knows that congestion was encountered in the 694 * network on the path from the sender to the receiver. The 695 * indication of congestion should be treated just as a 696 * congestion loss in non-ECN Capable TCP. That is, the TCP 697 * source halves the congestion window "cwnd" and reduces the 698 * slow start threshold "ssthresh". 699 * A critical condition is that TCP does not react to 700 * congestion indications more than once every window of 701 * data (or more loosely more than once every round-trip time). 702 */ 703 if (time_after(jiffies, transport->last_time_ecne_reduced + 704 transport->rtt)) { 705 transport->ssthresh = max(transport->cwnd/2, 706 4*asoc->pathmtu); 707 transport->cwnd = transport->ssthresh; 708 transport->last_time_ecne_reduced = jiffies; 709 } 710 break; 711 712 case SCTP_LOWER_CWND_INACTIVE: 713 /* RFC 2960 Section 7.2.1, sctpimpguide 714 * When the endpoint does not transmit data on a given 715 * transport address, the cwnd of the transport address 716 * should be adjusted to max(cwnd/2, 4*MTU) per RTO. 717 * NOTE: Although the draft recommends that this check needs 718 * to be done every RTO interval, we do it every hearbeat 719 * interval. 720 */ 721 transport->cwnd = max(transport->cwnd/2, 722 4*asoc->pathmtu); 723 /* RFC 4960 Errata 3.27.2: also adjust sshthresh */ 724 transport->ssthresh = transport->cwnd; 725 break; 726 } 727 728 transport->partial_bytes_acked = 0; 729 730 pr_debug("%s: transport:%p, reason:%d, cwnd:%d, ssthresh:%d\n", 731 __func__, transport, reason, transport->cwnd, 732 transport->ssthresh); 733 } 734 735 /* Apply Max.Burst limit to the congestion window: 736 * sctpimpguide-05 2.14.2 737 * D) When the time comes for the sender to 738 * transmit new DATA chunks, the protocol parameter Max.Burst MUST 739 * first be applied to limit how many new DATA chunks may be sent. 740 * The limit is applied by adjusting cwnd as follows: 741 * if ((flightsize+ Max.Burst * MTU) < cwnd) 742 * cwnd = flightsize + Max.Burst * MTU 743 */ 744 745 void sctp_transport_burst_limited(struct sctp_transport *t) 746 { 747 struct sctp_association *asoc = t->asoc; 748 u32 old_cwnd = t->cwnd; 749 u32 max_burst_bytes; 750 751 if (t->burst_limited || asoc->max_burst == 0) 752 return; 753 754 max_burst_bytes = t->flight_size + (asoc->max_burst * asoc->pathmtu); 755 if (max_burst_bytes < old_cwnd) { 756 t->cwnd = max_burst_bytes; 757 t->burst_limited = old_cwnd; 758 } 759 } 760 761 /* Restore the old cwnd congestion window, after the burst had it's 762 * desired effect. 763 */ 764 void sctp_transport_burst_reset(struct sctp_transport *t) 765 { 766 if (t->burst_limited) { 767 t->cwnd = t->burst_limited; 768 t->burst_limited = 0; 769 } 770 } 771 772 /* What is the next timeout value for this transport? */ 773 unsigned long sctp_transport_timeout(struct sctp_transport *trans) 774 { 775 /* RTO + timer slack +/- 50% of RTO */ 776 unsigned long timeout = trans->rto >> 1; 777 778 if (trans->state != SCTP_UNCONFIRMED && 779 trans->state != SCTP_PF) 780 timeout += trans->hbinterval; 781 782 return max_t(unsigned long, timeout, HZ / 5); 783 } 784 785 /* Reset transport variables to their initial values */ 786 void sctp_transport_reset(struct sctp_transport *t) 787 { 788 struct sctp_association *asoc = t->asoc; 789 790 /* RFC 2960 (bis), Section 5.2.4 791 * All the congestion control parameters (e.g., cwnd, ssthresh) 792 * related to this peer MUST be reset to their initial values 793 * (see Section 6.2.1) 794 */ 795 t->cwnd = min(4*asoc->pathmtu, max_t(__u32, 2*asoc->pathmtu, 4380)); 796 t->burst_limited = 0; 797 t->ssthresh = asoc->peer.i.a_rwnd; 798 t->rto = asoc->rto_initial; 799 sctp_max_rto(asoc, t); 800 t->rtt = 0; 801 t->srtt = 0; 802 t->rttvar = 0; 803 804 /* Reset these additional variables so that we have a clean slate. */ 805 t->partial_bytes_acked = 0; 806 t->flight_size = 0; 807 t->error_count = 0; 808 t->rto_pending = 0; 809 t->hb_sent = 0; 810 811 /* Initialize the state information for SFR-CACC */ 812 t->cacc.changeover_active = 0; 813 t->cacc.cycling_changeover = 0; 814 t->cacc.next_tsn_at_change = 0; 815 t->cacc.cacc_saw_newack = 0; 816 } 817 818 /* Schedule retransmission on the given transport */ 819 void sctp_transport_immediate_rtx(struct sctp_transport *t) 820 { 821 /* Stop pending T3_rtx_timer */ 822 if (del_timer(&t->T3_rtx_timer)) 823 sctp_transport_put(t); 824 825 sctp_retransmit(&t->asoc->outqueue, t, SCTP_RTXR_T3_RTX); 826 if (!timer_pending(&t->T3_rtx_timer)) { 827 if (!mod_timer(&t->T3_rtx_timer, jiffies + t->rto)) 828 sctp_transport_hold(t); 829 } 830 } 831 832 /* Drop dst */ 833 void sctp_transport_dst_release(struct sctp_transport *t) 834 { 835 dst_release(t->dst); 836 t->dst = NULL; 837 t->dst_pending_confirm = 0; 838 } 839 840 /* Schedule neighbour confirm */ 841 void sctp_transport_dst_confirm(struct sctp_transport *t) 842 { 843 t->dst_pending_confirm = 1; 844 } 845