SCTP: Explicitely discard OOTB chunks
[deliverable/linux.git] / net / sctp / sm_statefuns.c
1 /* SCTP kernel reference Implementation
2 * (C) Copyright IBM Corp. 2001, 2004
3 * Copyright (c) 1999-2000 Cisco, Inc.
4 * Copyright (c) 1999-2001 Motorola, Inc.
5 * Copyright (c) 2001-2002 Intel Corp.
6 * Copyright (c) 2002 Nokia Corp.
7 *
8 * This file is part of the SCTP kernel reference Implementation
9 *
10 * This is part of the SCTP Linux Kernel Reference Implementation.
11 *
12 * These are the state functions for the state machine.
13 *
14 * The SCTP reference implementation is free software;
15 * you can redistribute it and/or modify it under the terms of
16 * the GNU General Public License as published by
17 * the Free Software Foundation; either version 2, or (at your option)
18 * any later version.
19 *
20 * The SCTP reference implementation is distributed in the hope that it
21 * will be useful, but WITHOUT ANY WARRANTY; without even the implied
22 * ************************
23 * warranty of MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.
24 * See the GNU General Public License for more details.
25 *
26 * You should have received a copy of the GNU General Public License
27 * along with GNU CC; see the file COPYING. If not, write to
28 * the Free Software Foundation, 59 Temple Place - Suite 330,
29 * Boston, MA 02111-1307, USA.
30 *
31 * Please send any bug reports or fixes you make to the
32 * email address(es):
33 * lksctp developers <lksctp-developers@lists.sourceforge.net>
34 *
35 * Or submit a bug report through the following website:
36 * http://www.sf.net/projects/lksctp
37 *
38 * Written or modified by:
39 * La Monte H.P. Yarroll <piggy@acm.org>
40 * Karl Knutson <karl@athena.chicago.il.us>
41 * Mathew Kotowsky <kotowsky@sctp.org>
42 * Sridhar Samudrala <samudrala@us.ibm.com>
43 * Jon Grimm <jgrimm@us.ibm.com>
44 * Hui Huang <hui.huang@nokia.com>
45 * Dajiang Zhang <dajiang.zhang@nokia.com>
46 * Daisy Chang <daisyc@us.ibm.com>
47 * Ardelle Fan <ardelle.fan@intel.com>
48 * Ryan Layer <rmlayer@us.ibm.com>
49 * Kevin Gao <kevin.gao@intel.com>
50 *
51 * Any bugs reported given to us we will try to fix... any fixes shared will
52 * be incorporated into the next SCTP release.
53 */
54
55 #include <linux/types.h>
56 #include <linux/kernel.h>
57 #include <linux/ip.h>
58 #include <linux/ipv6.h>
59 #include <linux/net.h>
60 #include <linux/inet.h>
61 #include <net/sock.h>
62 #include <net/inet_ecn.h>
63 #include <linux/skbuff.h>
64 #include <net/sctp/sctp.h>
65 #include <net/sctp/sm.h>
66 #include <net/sctp/structs.h>
67
68 static struct sctp_packet *sctp_abort_pkt_new(const struct sctp_endpoint *ep,
69 const struct sctp_association *asoc,
70 struct sctp_chunk *chunk,
71 const void *payload,
72 size_t paylen);
73 static int sctp_eat_data(const struct sctp_association *asoc,
74 struct sctp_chunk *chunk,
75 sctp_cmd_seq_t *commands);
76 static struct sctp_packet *sctp_ootb_pkt_new(const struct sctp_association *asoc,
77 const struct sctp_chunk *chunk);
78 static void sctp_send_stale_cookie_err(const struct sctp_endpoint *ep,
79 const struct sctp_association *asoc,
80 const struct sctp_chunk *chunk,
81 sctp_cmd_seq_t *commands,
82 struct sctp_chunk *err_chunk);
83 static sctp_disposition_t sctp_sf_do_5_2_6_stale(const struct sctp_endpoint *ep,
84 const struct sctp_association *asoc,
85 const sctp_subtype_t type,
86 void *arg,
87 sctp_cmd_seq_t *commands);
88 static sctp_disposition_t sctp_sf_shut_8_4_5(const struct sctp_endpoint *ep,
89 const struct sctp_association *asoc,
90 const sctp_subtype_t type,
91 void *arg,
92 sctp_cmd_seq_t *commands);
93 static struct sctp_sackhdr *sctp_sm_pull_sack(struct sctp_chunk *chunk);
94
95 static sctp_disposition_t sctp_stop_t1_and_abort(sctp_cmd_seq_t *commands,
96 __be16 error, int sk_err,
97 const struct sctp_association *asoc,
98 struct sctp_transport *transport);
99
100 static sctp_disposition_t sctp_sf_abort_violation(
101 const struct sctp_association *asoc,
102 void *arg,
103 sctp_cmd_seq_t *commands,
104 const __u8 *payload,
105 const size_t paylen);
106
107 static sctp_disposition_t sctp_sf_violation_chunklen(
108 const struct sctp_endpoint *ep,
109 const struct sctp_association *asoc,
110 const sctp_subtype_t type,
111 void *arg,
112 sctp_cmd_seq_t *commands);
113
114 static sctp_disposition_t sctp_sf_violation_ctsn(
115 const struct sctp_endpoint *ep,
116 const struct sctp_association *asoc,
117 const sctp_subtype_t type,
118 void *arg,
119 sctp_cmd_seq_t *commands);
120
121 /* Small helper function that checks if the chunk length
122 * is of the appropriate length. The 'required_length' argument
123 * is set to be the size of a specific chunk we are testing.
124 * Return Values: 1 = Valid length
125 * 0 = Invalid length
126 *
127 */
128 static inline int
129 sctp_chunk_length_valid(struct sctp_chunk *chunk,
130 __u16 required_length)
131 {
132 __u16 chunk_length = ntohs(chunk->chunk_hdr->length);
133
134 if (unlikely(chunk_length < required_length))
135 return 0;
136
137 return 1;
138 }
139
140 /**********************************************************
141 * These are the state functions for handling chunk events.
142 **********************************************************/
143
144 /*
145 * Process the final SHUTDOWN COMPLETE.
146 *
147 * Section: 4 (C) (diagram), 9.2
148 * Upon reception of the SHUTDOWN COMPLETE chunk the endpoint will verify
149 * that it is in SHUTDOWN-ACK-SENT state, if it is not the chunk should be
150 * discarded. If the endpoint is in the SHUTDOWN-ACK-SENT state the endpoint
151 * should stop the T2-shutdown timer and remove all knowledge of the
152 * association (and thus the association enters the CLOSED state).
153 *
154 * Verification Tag: 8.5.1(C), sctpimpguide 2.41.
155 * C) Rules for packet carrying SHUTDOWN COMPLETE:
156 * ...
157 * - The receiver of a SHUTDOWN COMPLETE shall accept the packet
158 * if the Verification Tag field of the packet matches its own tag and
159 * the T bit is not set
160 * OR
161 * it is set to its peer's tag and the T bit is set in the Chunk
162 * Flags.
163 * Otherwise, the receiver MUST silently discard the packet
164 * and take no further action. An endpoint MUST ignore the
165 * SHUTDOWN COMPLETE if it is not in the SHUTDOWN-ACK-SENT state.
166 *
167 * Inputs
168 * (endpoint, asoc, chunk)
169 *
170 * Outputs
171 * (asoc, reply_msg, msg_up, timers, counters)
172 *
173 * The return value is the disposition of the chunk.
174 */
175 sctp_disposition_t sctp_sf_do_4_C(const struct sctp_endpoint *ep,
176 const struct sctp_association *asoc,
177 const sctp_subtype_t type,
178 void *arg,
179 sctp_cmd_seq_t *commands)
180 {
181 struct sctp_chunk *chunk = arg;
182 struct sctp_ulpevent *ev;
183
184 /* RFC 2960 6.10 Bundling
185 *
186 * An endpoint MUST NOT bundle INIT, INIT ACK or
187 * SHUTDOWN COMPLETE with any other chunks.
188 */
189 if (!chunk->singleton)
190 return SCTP_DISPOSITION_VIOLATION;
191
192 if (!sctp_vtag_verify_either(chunk, asoc))
193 return sctp_sf_pdiscard(ep, asoc, type, arg, commands);
194
195 /* RFC 2960 10.2 SCTP-to-ULP
196 *
197 * H) SHUTDOWN COMPLETE notification
198 *
199 * When SCTP completes the shutdown procedures (section 9.2) this
200 * notification is passed to the upper layer.
201 */
202 ev = sctp_ulpevent_make_assoc_change(asoc, 0, SCTP_SHUTDOWN_COMP,
203 0, 0, 0, NULL, GFP_ATOMIC);
204 if (ev)
205 sctp_add_cmd_sf(commands, SCTP_CMD_EVENT_ULP,
206 SCTP_ULPEVENT(ev));
207
208 /* Upon reception of the SHUTDOWN COMPLETE chunk the endpoint
209 * will verify that it is in SHUTDOWN-ACK-SENT state, if it is
210 * not the chunk should be discarded. If the endpoint is in
211 * the SHUTDOWN-ACK-SENT state the endpoint should stop the
212 * T2-shutdown timer and remove all knowledge of the
213 * association (and thus the association enters the CLOSED
214 * state).
215 */
216 sctp_add_cmd_sf(commands, SCTP_CMD_TIMER_STOP,
217 SCTP_TO(SCTP_EVENT_TIMEOUT_T2_SHUTDOWN));
218
219 sctp_add_cmd_sf(commands, SCTP_CMD_TIMER_STOP,
220 SCTP_TO(SCTP_EVENT_TIMEOUT_T5_SHUTDOWN_GUARD));
221
222 sctp_add_cmd_sf(commands, SCTP_CMD_NEW_STATE,
223 SCTP_STATE(SCTP_STATE_CLOSED));
224
225 SCTP_INC_STATS(SCTP_MIB_SHUTDOWNS);
226 SCTP_DEC_STATS(SCTP_MIB_CURRESTAB);
227
228 sctp_add_cmd_sf(commands, SCTP_CMD_DELETE_TCB, SCTP_NULL());
229
230 return SCTP_DISPOSITION_DELETE_TCB;
231 }
232
233 /*
234 * Respond to a normal INIT chunk.
235 * We are the side that is being asked for an association.
236 *
237 * Section: 5.1 Normal Establishment of an Association, B
238 * B) "Z" shall respond immediately with an INIT ACK chunk. The
239 * destination IP address of the INIT ACK MUST be set to the source
240 * IP address of the INIT to which this INIT ACK is responding. In
241 * the response, besides filling in other parameters, "Z" must set the
242 * Verification Tag field to Tag_A, and also provide its own
243 * Verification Tag (Tag_Z) in the Initiate Tag field.
244 *
245 * Verification Tag: Must be 0.
246 *
247 * Inputs
248 * (endpoint, asoc, chunk)
249 *
250 * Outputs
251 * (asoc, reply_msg, msg_up, timers, counters)
252 *
253 * The return value is the disposition of the chunk.
254 */
255 sctp_disposition_t sctp_sf_do_5_1B_init(const struct sctp_endpoint *ep,
256 const struct sctp_association *asoc,
257 const sctp_subtype_t type,
258 void *arg,
259 sctp_cmd_seq_t *commands)
260 {
261 struct sctp_chunk *chunk = arg;
262 struct sctp_chunk *repl;
263 struct sctp_association *new_asoc;
264 struct sctp_chunk *err_chunk;
265 struct sctp_packet *packet;
266 sctp_unrecognized_param_t *unk_param;
267 int len;
268
269 /* 6.10 Bundling
270 * An endpoint MUST NOT bundle INIT, INIT ACK or
271 * SHUTDOWN COMPLETE with any other chunks.
272 *
273 * IG Section 2.11.2
274 * Furthermore, we require that the receiver of an INIT chunk MUST
275 * enforce these rules by silently discarding an arriving packet
276 * with an INIT chunk that is bundled with other chunks.
277 */
278 if (!chunk->singleton)
279 return sctp_sf_pdiscard(ep, asoc, type, arg, commands);
280
281 /* If the packet is an OOTB packet which is temporarily on the
282 * control endpoint, respond with an ABORT.
283 */
284 if (ep == sctp_sk((sctp_get_ctl_sock()))->ep)
285 return sctp_sf_tabort_8_4_8(ep, asoc, type, arg, commands);
286
287 /* 3.1 A packet containing an INIT chunk MUST have a zero Verification
288 * Tag.
289 */
290 if (chunk->sctp_hdr->vtag != 0)
291 return sctp_sf_tabort_8_4_8(ep, asoc, type, arg, commands);
292
293 /* Make sure that the INIT chunk has a valid length.
294 * Normally, this would cause an ABORT with a Protocol Violation
295 * error, but since we don't have an association, we'll
296 * just discard the packet.
297 */
298 if (!sctp_chunk_length_valid(chunk, sizeof(sctp_init_chunk_t)))
299 return sctp_sf_pdiscard(ep, asoc, type, arg, commands);
300
301 /* Verify the INIT chunk before processing it. */
302 err_chunk = NULL;
303 if (!sctp_verify_init(asoc, chunk->chunk_hdr->type,
304 (sctp_init_chunk_t *)chunk->chunk_hdr, chunk,
305 &err_chunk)) {
306 /* This chunk contains fatal error. It is to be discarded.
307 * Send an ABORT, with causes if there is any.
308 */
309 if (err_chunk) {
310 packet = sctp_abort_pkt_new(ep, asoc, arg,
311 (__u8 *)(err_chunk->chunk_hdr) +
312 sizeof(sctp_chunkhdr_t),
313 ntohs(err_chunk->chunk_hdr->length) -
314 sizeof(sctp_chunkhdr_t));
315
316 sctp_chunk_free(err_chunk);
317
318 if (packet) {
319 sctp_add_cmd_sf(commands, SCTP_CMD_SEND_PKT,
320 SCTP_PACKET(packet));
321 SCTP_INC_STATS(SCTP_MIB_OUTCTRLCHUNKS);
322 return SCTP_DISPOSITION_CONSUME;
323 } else {
324 return SCTP_DISPOSITION_NOMEM;
325 }
326 } else {
327 return sctp_sf_tabort_8_4_8(ep, asoc, type, arg,
328 commands);
329 }
330 }
331
332 /* Grab the INIT header. */
333 chunk->subh.init_hdr = (sctp_inithdr_t *)chunk->skb->data;
334
335 /* Tag the variable length parameters. */
336 chunk->param_hdr.v = skb_pull(chunk->skb, sizeof(sctp_inithdr_t));
337
338 new_asoc = sctp_make_temp_asoc(ep, chunk, GFP_ATOMIC);
339 if (!new_asoc)
340 goto nomem;
341
342 /* The call, sctp_process_init(), can fail on memory allocation. */
343 if (!sctp_process_init(new_asoc, chunk->chunk_hdr->type,
344 sctp_source(chunk),
345 (sctp_init_chunk_t *)chunk->chunk_hdr,
346 GFP_ATOMIC))
347 goto nomem_init;
348
349 /* B) "Z" shall respond immediately with an INIT ACK chunk. */
350
351 /* If there are errors need to be reported for unknown parameters,
352 * make sure to reserve enough room in the INIT ACK for them.
353 */
354 len = 0;
355 if (err_chunk)
356 len = ntohs(err_chunk->chunk_hdr->length) -
357 sizeof(sctp_chunkhdr_t);
358
359 if (sctp_assoc_set_bind_addr_from_ep(new_asoc, GFP_ATOMIC) < 0)
360 goto nomem_init;
361
362 repl = sctp_make_init_ack(new_asoc, chunk, GFP_ATOMIC, len);
363 if (!repl)
364 goto nomem_init;
365
366 /* If there are errors need to be reported for unknown parameters,
367 * include them in the outgoing INIT ACK as "Unrecognized parameter"
368 * parameter.
369 */
370 if (err_chunk) {
371 /* Get the "Unrecognized parameter" parameter(s) out of the
372 * ERROR chunk generated by sctp_verify_init(). Since the
373 * error cause code for "unknown parameter" and the
374 * "Unrecognized parameter" type is the same, we can
375 * construct the parameters in INIT ACK by copying the
376 * ERROR causes over.
377 */
378 unk_param = (sctp_unrecognized_param_t *)
379 ((__u8 *)(err_chunk->chunk_hdr) +
380 sizeof(sctp_chunkhdr_t));
381 /* Replace the cause code with the "Unrecognized parameter"
382 * parameter type.
383 */
384 sctp_addto_chunk(repl, len, unk_param);
385 sctp_chunk_free(err_chunk);
386 }
387
388 sctp_add_cmd_sf(commands, SCTP_CMD_NEW_ASOC, SCTP_ASOC(new_asoc));
389
390 sctp_add_cmd_sf(commands, SCTP_CMD_REPLY, SCTP_CHUNK(repl));
391
392 /*
393 * Note: After sending out INIT ACK with the State Cookie parameter,
394 * "Z" MUST NOT allocate any resources, nor keep any states for the
395 * new association. Otherwise, "Z" will be vulnerable to resource
396 * attacks.
397 */
398 sctp_add_cmd_sf(commands, SCTP_CMD_DELETE_TCB, SCTP_NULL());
399
400 return SCTP_DISPOSITION_DELETE_TCB;
401
402 nomem_init:
403 sctp_association_free(new_asoc);
404 nomem:
405 if (err_chunk)
406 sctp_chunk_free(err_chunk);
407 return SCTP_DISPOSITION_NOMEM;
408 }
409
410 /*
411 * Respond to a normal INIT ACK chunk.
412 * We are the side that is initiating the association.
413 *
414 * Section: 5.1 Normal Establishment of an Association, C
415 * C) Upon reception of the INIT ACK from "Z", "A" shall stop the T1-init
416 * timer and leave COOKIE-WAIT state. "A" shall then send the State
417 * Cookie received in the INIT ACK chunk in a COOKIE ECHO chunk, start
418 * the T1-cookie timer, and enter the COOKIE-ECHOED state.
419 *
420 * Note: The COOKIE ECHO chunk can be bundled with any pending outbound
421 * DATA chunks, but it MUST be the first chunk in the packet and
422 * until the COOKIE ACK is returned the sender MUST NOT send any
423 * other packets to the peer.
424 *
425 * Verification Tag: 3.3.3
426 * If the value of the Initiate Tag in a received INIT ACK chunk is
427 * found to be 0, the receiver MUST treat it as an error and close the
428 * association by transmitting an ABORT.
429 *
430 * Inputs
431 * (endpoint, asoc, chunk)
432 *
433 * Outputs
434 * (asoc, reply_msg, msg_up, timers, counters)
435 *
436 * The return value is the disposition of the chunk.
437 */
438 sctp_disposition_t sctp_sf_do_5_1C_ack(const struct sctp_endpoint *ep,
439 const struct sctp_association *asoc,
440 const sctp_subtype_t type,
441 void *arg,
442 sctp_cmd_seq_t *commands)
443 {
444 struct sctp_chunk *chunk = arg;
445 sctp_init_chunk_t *initchunk;
446 struct sctp_chunk *err_chunk;
447 struct sctp_packet *packet;
448 sctp_error_t error;
449
450 if (!sctp_vtag_verify(chunk, asoc))
451 return sctp_sf_pdiscard(ep, asoc, type, arg, commands);
452
453 /* Make sure that the INIT-ACK chunk has a valid length */
454 if (!sctp_chunk_length_valid(chunk, sizeof(sctp_initack_chunk_t)))
455 return sctp_sf_violation_chunklen(ep, asoc, type, arg,
456 commands);
457 /* 6.10 Bundling
458 * An endpoint MUST NOT bundle INIT, INIT ACK or
459 * SHUTDOWN COMPLETE with any other chunks.
460 */
461 if (!chunk->singleton)
462 return SCTP_DISPOSITION_VIOLATION;
463
464 /* Grab the INIT header. */
465 chunk->subh.init_hdr = (sctp_inithdr_t *) chunk->skb->data;
466
467 /* Verify the INIT chunk before processing it. */
468 err_chunk = NULL;
469 if (!sctp_verify_init(asoc, chunk->chunk_hdr->type,
470 (sctp_init_chunk_t *)chunk->chunk_hdr, chunk,
471 &err_chunk)) {
472
473 SCTP_INC_STATS(SCTP_MIB_ABORTEDS);
474
475 /* This chunk contains fatal error. It is to be discarded.
476 * Send an ABORT, with causes if there is any.
477 */
478 if (err_chunk) {
479 packet = sctp_abort_pkt_new(ep, asoc, arg,
480 (__u8 *)(err_chunk->chunk_hdr) +
481 sizeof(sctp_chunkhdr_t),
482 ntohs(err_chunk->chunk_hdr->length) -
483 sizeof(sctp_chunkhdr_t));
484
485 sctp_chunk_free(err_chunk);
486
487 if (packet) {
488 sctp_add_cmd_sf(commands, SCTP_CMD_SEND_PKT,
489 SCTP_PACKET(packet));
490 SCTP_INC_STATS(SCTP_MIB_OUTCTRLCHUNKS);
491 error = SCTP_ERROR_INV_PARAM;
492 } else {
493 error = SCTP_ERROR_NO_RESOURCE;
494 }
495 } else {
496 sctp_sf_tabort_8_4_8(ep, asoc, type, arg, commands);
497 error = SCTP_ERROR_INV_PARAM;
498 }
499 return sctp_stop_t1_and_abort(commands, error, ECONNREFUSED,
500 asoc, chunk->transport);
501 }
502
503 /* Tag the variable length parameters. Note that we never
504 * convert the parameters in an INIT chunk.
505 */
506 chunk->param_hdr.v = skb_pull(chunk->skb, sizeof(sctp_inithdr_t));
507
508 initchunk = (sctp_init_chunk_t *) chunk->chunk_hdr;
509
510 sctp_add_cmd_sf(commands, SCTP_CMD_PEER_INIT,
511 SCTP_PEER_INIT(initchunk));
512
513 /* Reset init error count upon receipt of INIT-ACK. */
514 sctp_add_cmd_sf(commands, SCTP_CMD_INIT_COUNTER_RESET, SCTP_NULL());
515
516 /* 5.1 C) "A" shall stop the T1-init timer and leave
517 * COOKIE-WAIT state. "A" shall then ... start the T1-cookie
518 * timer, and enter the COOKIE-ECHOED state.
519 */
520 sctp_add_cmd_sf(commands, SCTP_CMD_TIMER_STOP,
521 SCTP_TO(SCTP_EVENT_TIMEOUT_T1_INIT));
522 sctp_add_cmd_sf(commands, SCTP_CMD_TIMER_START,
523 SCTP_TO(SCTP_EVENT_TIMEOUT_T1_COOKIE));
524 sctp_add_cmd_sf(commands, SCTP_CMD_NEW_STATE,
525 SCTP_STATE(SCTP_STATE_COOKIE_ECHOED));
526
527 /* 5.1 C) "A" shall then send the State Cookie received in the
528 * INIT ACK chunk in a COOKIE ECHO chunk, ...
529 */
530 /* If there is any errors to report, send the ERROR chunk generated
531 * for unknown parameters as well.
532 */
533 sctp_add_cmd_sf(commands, SCTP_CMD_GEN_COOKIE_ECHO,
534 SCTP_CHUNK(err_chunk));
535
536 return SCTP_DISPOSITION_CONSUME;
537 }
538
539 /*
540 * Respond to a normal COOKIE ECHO chunk.
541 * We are the side that is being asked for an association.
542 *
543 * Section: 5.1 Normal Establishment of an Association, D
544 * D) Upon reception of the COOKIE ECHO chunk, Endpoint "Z" will reply
545 * with a COOKIE ACK chunk after building a TCB and moving to
546 * the ESTABLISHED state. A COOKIE ACK chunk may be bundled with
547 * any pending DATA chunks (and/or SACK chunks), but the COOKIE ACK
548 * chunk MUST be the first chunk in the packet.
549 *
550 * IMPLEMENTATION NOTE: An implementation may choose to send the
551 * Communication Up notification to the SCTP user upon reception
552 * of a valid COOKIE ECHO chunk.
553 *
554 * Verification Tag: 8.5.1 Exceptions in Verification Tag Rules
555 * D) Rules for packet carrying a COOKIE ECHO
556 *
557 * - When sending a COOKIE ECHO, the endpoint MUST use the value of the
558 * Initial Tag received in the INIT ACK.
559 *
560 * - The receiver of a COOKIE ECHO follows the procedures in Section 5.
561 *
562 * Inputs
563 * (endpoint, asoc, chunk)
564 *
565 * Outputs
566 * (asoc, reply_msg, msg_up, timers, counters)
567 *
568 * The return value is the disposition of the chunk.
569 */
570 sctp_disposition_t sctp_sf_do_5_1D_ce(const struct sctp_endpoint *ep,
571 const struct sctp_association *asoc,
572 const sctp_subtype_t type, void *arg,
573 sctp_cmd_seq_t *commands)
574 {
575 struct sctp_chunk *chunk = arg;
576 struct sctp_association *new_asoc;
577 sctp_init_chunk_t *peer_init;
578 struct sctp_chunk *repl;
579 struct sctp_ulpevent *ev, *ai_ev = NULL;
580 int error = 0;
581 struct sctp_chunk *err_chk_p;
582 struct sock *sk;
583
584 /* If the packet is an OOTB packet which is temporarily on the
585 * control endpoint, respond with an ABORT.
586 */
587 if (ep == sctp_sk((sctp_get_ctl_sock()))->ep)
588 return sctp_sf_ootb(ep, asoc, type, arg, commands);
589
590 /* Make sure that the COOKIE_ECHO chunk has a valid length.
591 * In this case, we check that we have enough for at least a
592 * chunk header. More detailed verification is done
593 * in sctp_unpack_cookie().
594 */
595 if (!sctp_chunk_length_valid(chunk, sizeof(sctp_chunkhdr_t)))
596 return sctp_sf_pdiscard(ep, asoc, type, arg, commands);
597
598 /* If the endpoint is not listening or if the number of associations
599 * on the TCP-style socket exceed the max backlog, respond with an
600 * ABORT.
601 */
602 sk = ep->base.sk;
603 if (!sctp_sstate(sk, LISTENING) ||
604 (sctp_style(sk, TCP) && sk_acceptq_is_full(sk)))
605 return sctp_sf_tabort_8_4_8(ep, asoc, type, arg, commands);
606
607 /* "Decode" the chunk. We have no optional parameters so we
608 * are in good shape.
609 */
610 chunk->subh.cookie_hdr =
611 (struct sctp_signed_cookie *)chunk->skb->data;
612 if (!pskb_pull(chunk->skb, ntohs(chunk->chunk_hdr->length) -
613 sizeof(sctp_chunkhdr_t)))
614 goto nomem;
615
616 /* 5.1 D) Upon reception of the COOKIE ECHO chunk, Endpoint
617 * "Z" will reply with a COOKIE ACK chunk after building a TCB
618 * and moving to the ESTABLISHED state.
619 */
620 new_asoc = sctp_unpack_cookie(ep, asoc, chunk, GFP_ATOMIC, &error,
621 &err_chk_p);
622
623 /* FIXME:
624 * If the re-build failed, what is the proper error path
625 * from here?
626 *
627 * [We should abort the association. --piggy]
628 */
629 if (!new_asoc) {
630 /* FIXME: Several errors are possible. A bad cookie should
631 * be silently discarded, but think about logging it too.
632 */
633 switch (error) {
634 case -SCTP_IERROR_NOMEM:
635 goto nomem;
636
637 case -SCTP_IERROR_STALE_COOKIE:
638 sctp_send_stale_cookie_err(ep, asoc, chunk, commands,
639 err_chk_p);
640 return sctp_sf_pdiscard(ep, asoc, type, arg, commands);
641
642 case -SCTP_IERROR_BAD_SIG:
643 default:
644 return sctp_sf_pdiscard(ep, asoc, type, arg, commands);
645 }
646 }
647
648
649 /* Delay state machine commands until later.
650 *
651 * Re-build the bind address for the association is done in
652 * the sctp_unpack_cookie() already.
653 */
654 /* This is a brand-new association, so these are not yet side
655 * effects--it is safe to run them here.
656 */
657 peer_init = &chunk->subh.cookie_hdr->c.peer_init[0];
658
659 if (!sctp_process_init(new_asoc, chunk->chunk_hdr->type,
660 &chunk->subh.cookie_hdr->c.peer_addr,
661 peer_init, GFP_ATOMIC))
662 goto nomem_init;
663
664 repl = sctp_make_cookie_ack(new_asoc, chunk);
665 if (!repl)
666 goto nomem_init;
667
668 /* RFC 2960 5.1 Normal Establishment of an Association
669 *
670 * D) IMPLEMENTATION NOTE: An implementation may choose to
671 * send the Communication Up notification to the SCTP user
672 * upon reception of a valid COOKIE ECHO chunk.
673 */
674 ev = sctp_ulpevent_make_assoc_change(new_asoc, 0, SCTP_COMM_UP, 0,
675 new_asoc->c.sinit_num_ostreams,
676 new_asoc->c.sinit_max_instreams,
677 NULL, GFP_ATOMIC);
678 if (!ev)
679 goto nomem_ev;
680
681 /* Sockets API Draft Section 5.3.1.6
682 * When a peer sends a Adaptation Layer Indication parameter , SCTP
683 * delivers this notification to inform the application that of the
684 * peers requested adaptation layer.
685 */
686 if (new_asoc->peer.adaptation_ind) {
687 ai_ev = sctp_ulpevent_make_adaptation_indication(new_asoc,
688 GFP_ATOMIC);
689 if (!ai_ev)
690 goto nomem_aiev;
691 }
692
693 /* Add all the state machine commands now since we've created
694 * everything. This way we don't introduce memory corruptions
695 * during side-effect processing and correclty count established
696 * associations.
697 */
698 sctp_add_cmd_sf(commands, SCTP_CMD_NEW_ASOC, SCTP_ASOC(new_asoc));
699 sctp_add_cmd_sf(commands, SCTP_CMD_NEW_STATE,
700 SCTP_STATE(SCTP_STATE_ESTABLISHED));
701 SCTP_INC_STATS(SCTP_MIB_CURRESTAB);
702 SCTP_INC_STATS(SCTP_MIB_PASSIVEESTABS);
703 sctp_add_cmd_sf(commands, SCTP_CMD_HB_TIMERS_START, SCTP_NULL());
704
705 if (new_asoc->autoclose)
706 sctp_add_cmd_sf(commands, SCTP_CMD_TIMER_START,
707 SCTP_TO(SCTP_EVENT_TIMEOUT_AUTOCLOSE));
708
709 sctp_add_cmd_sf(commands, SCTP_CMD_TRANSMIT, SCTP_NULL());
710
711 /* This will send the COOKIE ACK */
712 sctp_add_cmd_sf(commands, SCTP_CMD_REPLY, SCTP_CHUNK(repl));
713
714 /* Queue the ASSOC_CHANGE event */
715 sctp_add_cmd_sf(commands, SCTP_CMD_EVENT_ULP, SCTP_ULPEVENT(ev));
716
717 /* Send up the Adaptation Layer Indication event */
718 if (ai_ev)
719 sctp_add_cmd_sf(commands, SCTP_CMD_EVENT_ULP,
720 SCTP_ULPEVENT(ai_ev));
721
722 return SCTP_DISPOSITION_CONSUME;
723
724 nomem_aiev:
725 sctp_ulpevent_free(ev);
726 nomem_ev:
727 sctp_chunk_free(repl);
728 nomem_init:
729 sctp_association_free(new_asoc);
730 nomem:
731 return SCTP_DISPOSITION_NOMEM;
732 }
733
734 /*
735 * Respond to a normal COOKIE ACK chunk.
736 * We are the side that is being asked for an association.
737 *
738 * RFC 2960 5.1 Normal Establishment of an Association
739 *
740 * E) Upon reception of the COOKIE ACK, endpoint "A" will move from the
741 * COOKIE-ECHOED state to the ESTABLISHED state, stopping the T1-cookie
742 * timer. It may also notify its ULP about the successful
743 * establishment of the association with a Communication Up
744 * notification (see Section 10).
745 *
746 * Verification Tag:
747 * Inputs
748 * (endpoint, asoc, chunk)
749 *
750 * Outputs
751 * (asoc, reply_msg, msg_up, timers, counters)
752 *
753 * The return value is the disposition of the chunk.
754 */
755 sctp_disposition_t sctp_sf_do_5_1E_ca(const struct sctp_endpoint *ep,
756 const struct sctp_association *asoc,
757 const sctp_subtype_t type, void *arg,
758 sctp_cmd_seq_t *commands)
759 {
760 struct sctp_chunk *chunk = arg;
761 struct sctp_ulpevent *ev;
762
763 if (!sctp_vtag_verify(chunk, asoc))
764 return sctp_sf_pdiscard(ep, asoc, type, arg, commands);
765
766 /* Verify that the chunk length for the COOKIE-ACK is OK.
767 * If we don't do this, any bundled chunks may be junked.
768 */
769 if (!sctp_chunk_length_valid(chunk, sizeof(sctp_chunkhdr_t)))
770 return sctp_sf_violation_chunklen(ep, asoc, type, arg,
771 commands);
772
773 /* Reset init error count upon receipt of COOKIE-ACK,
774 * to avoid problems with the managemement of this
775 * counter in stale cookie situations when a transition back
776 * from the COOKIE-ECHOED state to the COOKIE-WAIT
777 * state is performed.
778 */
779 sctp_add_cmd_sf(commands, SCTP_CMD_INIT_COUNTER_RESET, SCTP_NULL());
780
781 /* RFC 2960 5.1 Normal Establishment of an Association
782 *
783 * E) Upon reception of the COOKIE ACK, endpoint "A" will move
784 * from the COOKIE-ECHOED state to the ESTABLISHED state,
785 * stopping the T1-cookie timer.
786 */
787 sctp_add_cmd_sf(commands, SCTP_CMD_TIMER_STOP,
788 SCTP_TO(SCTP_EVENT_TIMEOUT_T1_COOKIE));
789 sctp_add_cmd_sf(commands, SCTP_CMD_NEW_STATE,
790 SCTP_STATE(SCTP_STATE_ESTABLISHED));
791 SCTP_INC_STATS(SCTP_MIB_CURRESTAB);
792 SCTP_INC_STATS(SCTP_MIB_ACTIVEESTABS);
793 sctp_add_cmd_sf(commands, SCTP_CMD_HB_TIMERS_START, SCTP_NULL());
794 if (asoc->autoclose)
795 sctp_add_cmd_sf(commands, SCTP_CMD_TIMER_START,
796 SCTP_TO(SCTP_EVENT_TIMEOUT_AUTOCLOSE));
797 sctp_add_cmd_sf(commands, SCTP_CMD_TRANSMIT, SCTP_NULL());
798
799 /* It may also notify its ULP about the successful
800 * establishment of the association with a Communication Up
801 * notification (see Section 10).
802 */
803 ev = sctp_ulpevent_make_assoc_change(asoc, 0, SCTP_COMM_UP,
804 0, asoc->c.sinit_num_ostreams,
805 asoc->c.sinit_max_instreams,
806 NULL, GFP_ATOMIC);
807
808 if (!ev)
809 goto nomem;
810
811 sctp_add_cmd_sf(commands, SCTP_CMD_EVENT_ULP, SCTP_ULPEVENT(ev));
812
813 /* Sockets API Draft Section 5.3.1.6
814 * When a peer sends a Adaptation Layer Indication parameter , SCTP
815 * delivers this notification to inform the application that of the
816 * peers requested adaptation layer.
817 */
818 if (asoc->peer.adaptation_ind) {
819 ev = sctp_ulpevent_make_adaptation_indication(asoc, GFP_ATOMIC);
820 if (!ev)
821 goto nomem;
822
823 sctp_add_cmd_sf(commands, SCTP_CMD_EVENT_ULP,
824 SCTP_ULPEVENT(ev));
825 }
826
827 return SCTP_DISPOSITION_CONSUME;
828 nomem:
829 return SCTP_DISPOSITION_NOMEM;
830 }
831
832 /* Generate and sendout a heartbeat packet. */
833 static sctp_disposition_t sctp_sf_heartbeat(const struct sctp_endpoint *ep,
834 const struct sctp_association *asoc,
835 const sctp_subtype_t type,
836 void *arg,
837 sctp_cmd_seq_t *commands)
838 {
839 struct sctp_transport *transport = (struct sctp_transport *) arg;
840 struct sctp_chunk *reply;
841 sctp_sender_hb_info_t hbinfo;
842 size_t paylen = 0;
843
844 hbinfo.param_hdr.type = SCTP_PARAM_HEARTBEAT_INFO;
845 hbinfo.param_hdr.length = htons(sizeof(sctp_sender_hb_info_t));
846 hbinfo.daddr = transport->ipaddr;
847 hbinfo.sent_at = jiffies;
848 hbinfo.hb_nonce = transport->hb_nonce;
849
850 /* Send a heartbeat to our peer. */
851 paylen = sizeof(sctp_sender_hb_info_t);
852 reply = sctp_make_heartbeat(asoc, transport, &hbinfo, paylen);
853 if (!reply)
854 return SCTP_DISPOSITION_NOMEM;
855
856 /* Set rto_pending indicating that an RTT measurement
857 * is started with this heartbeat chunk.
858 */
859 sctp_add_cmd_sf(commands, SCTP_CMD_RTO_PENDING,
860 SCTP_TRANSPORT(transport));
861
862 sctp_add_cmd_sf(commands, SCTP_CMD_REPLY, SCTP_CHUNK(reply));
863 return SCTP_DISPOSITION_CONSUME;
864 }
865
866 /* Generate a HEARTBEAT packet on the given transport. */
867 sctp_disposition_t sctp_sf_sendbeat_8_3(const struct sctp_endpoint *ep,
868 const struct sctp_association *asoc,
869 const sctp_subtype_t type,
870 void *arg,
871 sctp_cmd_seq_t *commands)
872 {
873 struct sctp_transport *transport = (struct sctp_transport *) arg;
874
875 if (asoc->overall_error_count >= asoc->max_retrans) {
876 sctp_add_cmd_sf(commands, SCTP_CMD_SET_SK_ERR,
877 SCTP_ERROR(ETIMEDOUT));
878 /* CMD_ASSOC_FAILED calls CMD_DELETE_TCB. */
879 sctp_add_cmd_sf(commands, SCTP_CMD_ASSOC_FAILED,
880 SCTP_PERR(SCTP_ERROR_NO_ERROR));
881 SCTP_INC_STATS(SCTP_MIB_ABORTEDS);
882 SCTP_DEC_STATS(SCTP_MIB_CURRESTAB);
883 return SCTP_DISPOSITION_DELETE_TCB;
884 }
885
886 /* Section 3.3.5.
887 * The Sender-specific Heartbeat Info field should normally include
888 * information about the sender's current time when this HEARTBEAT
889 * chunk is sent and the destination transport address to which this
890 * HEARTBEAT is sent (see Section 8.3).
891 */
892
893 if (transport->param_flags & SPP_HB_ENABLE) {
894 if (SCTP_DISPOSITION_NOMEM ==
895 sctp_sf_heartbeat(ep, asoc, type, arg,
896 commands))
897 return SCTP_DISPOSITION_NOMEM;
898 /* Set transport error counter and association error counter
899 * when sending heartbeat.
900 */
901 sctp_add_cmd_sf(commands, SCTP_CMD_TRANSPORT_RESET,
902 SCTP_TRANSPORT(transport));
903 }
904 sctp_add_cmd_sf(commands, SCTP_CMD_HB_TIMER_UPDATE,
905 SCTP_TRANSPORT(transport));
906
907 return SCTP_DISPOSITION_CONSUME;
908 }
909
910 /*
911 * Process an heartbeat request.
912 *
913 * Section: 8.3 Path Heartbeat
914 * The receiver of the HEARTBEAT should immediately respond with a
915 * HEARTBEAT ACK that contains the Heartbeat Information field copied
916 * from the received HEARTBEAT chunk.
917 *
918 * Verification Tag: 8.5 Verification Tag [Normal verification]
919 * When receiving an SCTP packet, the endpoint MUST ensure that the
920 * value in the Verification Tag field of the received SCTP packet
921 * matches its own Tag. If the received Verification Tag value does not
922 * match the receiver's own tag value, the receiver shall silently
923 * discard the packet and shall not process it any further except for
924 * those cases listed in Section 8.5.1 below.
925 *
926 * Inputs
927 * (endpoint, asoc, chunk)
928 *
929 * Outputs
930 * (asoc, reply_msg, msg_up, timers, counters)
931 *
932 * The return value is the disposition of the chunk.
933 */
934 sctp_disposition_t sctp_sf_beat_8_3(const struct sctp_endpoint *ep,
935 const struct sctp_association *asoc,
936 const sctp_subtype_t type,
937 void *arg,
938 sctp_cmd_seq_t *commands)
939 {
940 struct sctp_chunk *chunk = arg;
941 struct sctp_chunk *reply;
942 size_t paylen = 0;
943
944 if (!sctp_vtag_verify(chunk, asoc))
945 return sctp_sf_pdiscard(ep, asoc, type, arg, commands);
946
947 /* Make sure that the HEARTBEAT chunk has a valid length. */
948 if (!sctp_chunk_length_valid(chunk, sizeof(sctp_heartbeat_chunk_t)))
949 return sctp_sf_violation_chunklen(ep, asoc, type, arg,
950 commands);
951
952 /* 8.3 The receiver of the HEARTBEAT should immediately
953 * respond with a HEARTBEAT ACK that contains the Heartbeat
954 * Information field copied from the received HEARTBEAT chunk.
955 */
956 chunk->subh.hb_hdr = (sctp_heartbeathdr_t *) chunk->skb->data;
957 paylen = ntohs(chunk->chunk_hdr->length) - sizeof(sctp_chunkhdr_t);
958 if (!pskb_pull(chunk->skb, paylen))
959 goto nomem;
960
961 reply = sctp_make_heartbeat_ack(asoc, chunk,
962 chunk->subh.hb_hdr, paylen);
963 if (!reply)
964 goto nomem;
965
966 sctp_add_cmd_sf(commands, SCTP_CMD_REPLY, SCTP_CHUNK(reply));
967 return SCTP_DISPOSITION_CONSUME;
968
969 nomem:
970 return SCTP_DISPOSITION_NOMEM;
971 }
972
973 /*
974 * Process the returning HEARTBEAT ACK.
975 *
976 * Section: 8.3 Path Heartbeat
977 * Upon the receipt of the HEARTBEAT ACK, the sender of the HEARTBEAT
978 * should clear the error counter of the destination transport
979 * address to which the HEARTBEAT was sent, and mark the destination
980 * transport address as active if it is not so marked. The endpoint may
981 * optionally report to the upper layer when an inactive destination
982 * address is marked as active due to the reception of the latest
983 * HEARTBEAT ACK. The receiver of the HEARTBEAT ACK must also
984 * clear the association overall error count as well (as defined
985 * in section 8.1).
986 *
987 * The receiver of the HEARTBEAT ACK should also perform an RTT
988 * measurement for that destination transport address using the time
989 * value carried in the HEARTBEAT ACK chunk.
990 *
991 * Verification Tag: 8.5 Verification Tag [Normal verification]
992 *
993 * Inputs
994 * (endpoint, asoc, chunk)
995 *
996 * Outputs
997 * (asoc, reply_msg, msg_up, timers, counters)
998 *
999 * The return value is the disposition of the chunk.
1000 */
1001 sctp_disposition_t sctp_sf_backbeat_8_3(const struct sctp_endpoint *ep,
1002 const struct sctp_association *asoc,
1003 const sctp_subtype_t type,
1004 void *arg,
1005 sctp_cmd_seq_t *commands)
1006 {
1007 struct sctp_chunk *chunk = arg;
1008 union sctp_addr from_addr;
1009 struct sctp_transport *link;
1010 sctp_sender_hb_info_t *hbinfo;
1011 unsigned long max_interval;
1012
1013 if (!sctp_vtag_verify(chunk, asoc))
1014 return sctp_sf_pdiscard(ep, asoc, type, arg, commands);
1015
1016 /* Make sure that the HEARTBEAT-ACK chunk has a valid length. */
1017 if (!sctp_chunk_length_valid(chunk, sizeof(sctp_heartbeat_chunk_t)))
1018 return sctp_sf_violation_chunklen(ep, asoc, type, arg,
1019 commands);
1020
1021 hbinfo = (sctp_sender_hb_info_t *) chunk->skb->data;
1022 /* Make sure that the length of the parameter is what we expect */
1023 if (ntohs(hbinfo->param_hdr.length) !=
1024 sizeof(sctp_sender_hb_info_t)) {
1025 return SCTP_DISPOSITION_DISCARD;
1026 }
1027
1028 from_addr = hbinfo->daddr;
1029 link = sctp_assoc_lookup_paddr(asoc, &from_addr);
1030
1031 /* This should never happen, but lets log it if so. */
1032 if (unlikely(!link)) {
1033 if (from_addr.sa.sa_family == AF_INET6) {
1034 if (net_ratelimit())
1035 printk(KERN_WARNING
1036 "%s association %p could not find address "
1037 NIP6_FMT "\n",
1038 __FUNCTION__,
1039 asoc,
1040 NIP6(from_addr.v6.sin6_addr));
1041 } else {
1042 if (net_ratelimit())
1043 printk(KERN_WARNING
1044 "%s association %p could not find address "
1045 NIPQUAD_FMT "\n",
1046 __FUNCTION__,
1047 asoc,
1048 NIPQUAD(from_addr.v4.sin_addr.s_addr));
1049 }
1050 return SCTP_DISPOSITION_DISCARD;
1051 }
1052
1053 /* Validate the 64-bit random nonce. */
1054 if (hbinfo->hb_nonce != link->hb_nonce)
1055 return SCTP_DISPOSITION_DISCARD;
1056
1057 max_interval = link->hbinterval + link->rto;
1058
1059 /* Check if the timestamp looks valid. */
1060 if (time_after(hbinfo->sent_at, jiffies) ||
1061 time_after(jiffies, hbinfo->sent_at + max_interval)) {
1062 SCTP_DEBUG_PRINTK("%s: HEARTBEAT ACK with invalid timestamp"
1063 "received for transport: %p\n",
1064 __FUNCTION__, link);
1065 return SCTP_DISPOSITION_DISCARD;
1066 }
1067
1068 /* 8.3 Upon the receipt of the HEARTBEAT ACK, the sender of
1069 * the HEARTBEAT should clear the error counter of the
1070 * destination transport address to which the HEARTBEAT was
1071 * sent and mark the destination transport address as active if
1072 * it is not so marked.
1073 */
1074 sctp_add_cmd_sf(commands, SCTP_CMD_TRANSPORT_ON, SCTP_TRANSPORT(link));
1075
1076 return SCTP_DISPOSITION_CONSUME;
1077 }
1078
1079 /* Helper function to send out an abort for the restart
1080 * condition.
1081 */
1082 static int sctp_sf_send_restart_abort(union sctp_addr *ssa,
1083 struct sctp_chunk *init,
1084 sctp_cmd_seq_t *commands)
1085 {
1086 int len;
1087 struct sctp_packet *pkt;
1088 union sctp_addr_param *addrparm;
1089 struct sctp_errhdr *errhdr;
1090 struct sctp_endpoint *ep;
1091 char buffer[sizeof(struct sctp_errhdr)+sizeof(union sctp_addr_param)];
1092 struct sctp_af *af = sctp_get_af_specific(ssa->v4.sin_family);
1093
1094 /* Build the error on the stack. We are way to malloc crazy
1095 * throughout the code today.
1096 */
1097 errhdr = (struct sctp_errhdr *)buffer;
1098 addrparm = (union sctp_addr_param *)errhdr->variable;
1099
1100 /* Copy into a parm format. */
1101 len = af->to_addr_param(ssa, addrparm);
1102 len += sizeof(sctp_errhdr_t);
1103
1104 errhdr->cause = SCTP_ERROR_RESTART;
1105 errhdr->length = htons(len);
1106
1107 /* Assign to the control socket. */
1108 ep = sctp_sk((sctp_get_ctl_sock()))->ep;
1109
1110 /* Association is NULL since this may be a restart attack and we
1111 * want to send back the attacker's vtag.
1112 */
1113 pkt = sctp_abort_pkt_new(ep, NULL, init, errhdr, len);
1114
1115 if (!pkt)
1116 goto out;
1117 sctp_add_cmd_sf(commands, SCTP_CMD_SEND_PKT, SCTP_PACKET(pkt));
1118
1119 SCTP_INC_STATS(SCTP_MIB_OUTCTRLCHUNKS);
1120
1121 /* Discard the rest of the inbound packet. */
1122 sctp_add_cmd_sf(commands, SCTP_CMD_DISCARD_PACKET, SCTP_NULL());
1123
1124 out:
1125 /* Even if there is no memory, treat as a failure so
1126 * the packet will get dropped.
1127 */
1128 return 0;
1129 }
1130
1131 /* A restart is occurring, check to make sure no new addresses
1132 * are being added as we may be under a takeover attack.
1133 */
1134 static int sctp_sf_check_restart_addrs(const struct sctp_association *new_asoc,
1135 const struct sctp_association *asoc,
1136 struct sctp_chunk *init,
1137 sctp_cmd_seq_t *commands)
1138 {
1139 struct sctp_transport *new_addr, *addr;
1140 struct list_head *pos, *pos2;
1141 int found;
1142
1143 /* Implementor's Guide - Sectin 5.2.2
1144 * ...
1145 * Before responding the endpoint MUST check to see if the
1146 * unexpected INIT adds new addresses to the association. If new
1147 * addresses are added to the association, the endpoint MUST respond
1148 * with an ABORT..
1149 */
1150
1151 /* Search through all current addresses and make sure
1152 * we aren't adding any new ones.
1153 */
1154 new_addr = NULL;
1155 found = 0;
1156
1157 list_for_each(pos, &new_asoc->peer.transport_addr_list) {
1158 new_addr = list_entry(pos, struct sctp_transport, transports);
1159 found = 0;
1160 list_for_each(pos2, &asoc->peer.transport_addr_list) {
1161 addr = list_entry(pos2, struct sctp_transport,
1162 transports);
1163 if (sctp_cmp_addr_exact(&new_addr->ipaddr,
1164 &addr->ipaddr)) {
1165 found = 1;
1166 break;
1167 }
1168 }
1169 if (!found)
1170 break;
1171 }
1172
1173 /* If a new address was added, ABORT the sender. */
1174 if (!found && new_addr) {
1175 sctp_sf_send_restart_abort(&new_addr->ipaddr, init, commands);
1176 }
1177
1178 /* Return success if all addresses were found. */
1179 return found;
1180 }
1181
1182 /* Populate the verification/tie tags based on overlapping INIT
1183 * scenario.
1184 *
1185 * Note: Do not use in CLOSED or SHUTDOWN-ACK-SENT state.
1186 */
1187 static void sctp_tietags_populate(struct sctp_association *new_asoc,
1188 const struct sctp_association *asoc)
1189 {
1190 switch (asoc->state) {
1191
1192 /* 5.2.1 INIT received in COOKIE-WAIT or COOKIE-ECHOED State */
1193
1194 case SCTP_STATE_COOKIE_WAIT:
1195 new_asoc->c.my_vtag = asoc->c.my_vtag;
1196 new_asoc->c.my_ttag = asoc->c.my_vtag;
1197 new_asoc->c.peer_ttag = 0;
1198 break;
1199
1200 case SCTP_STATE_COOKIE_ECHOED:
1201 new_asoc->c.my_vtag = asoc->c.my_vtag;
1202 new_asoc->c.my_ttag = asoc->c.my_vtag;
1203 new_asoc->c.peer_ttag = asoc->c.peer_vtag;
1204 break;
1205
1206 /* 5.2.2 Unexpected INIT in States Other than CLOSED, COOKIE-ECHOED,
1207 * COOKIE-WAIT and SHUTDOWN-ACK-SENT
1208 */
1209 default:
1210 new_asoc->c.my_ttag = asoc->c.my_vtag;
1211 new_asoc->c.peer_ttag = asoc->c.peer_vtag;
1212 break;
1213 }
1214
1215 /* Other parameters for the endpoint SHOULD be copied from the
1216 * existing parameters of the association (e.g. number of
1217 * outbound streams) into the INIT ACK and cookie.
1218 */
1219 new_asoc->rwnd = asoc->rwnd;
1220 new_asoc->c.sinit_num_ostreams = asoc->c.sinit_num_ostreams;
1221 new_asoc->c.sinit_max_instreams = asoc->c.sinit_max_instreams;
1222 new_asoc->c.initial_tsn = asoc->c.initial_tsn;
1223 }
1224
1225 /*
1226 * Compare vtag/tietag values to determine unexpected COOKIE-ECHO
1227 * handling action.
1228 *
1229 * RFC 2960 5.2.4 Handle a COOKIE ECHO when a TCB exists.
1230 *
1231 * Returns value representing action to be taken. These action values
1232 * correspond to Action/Description values in RFC 2960, Table 2.
1233 */
1234 static char sctp_tietags_compare(struct sctp_association *new_asoc,
1235 const struct sctp_association *asoc)
1236 {
1237 /* In this case, the peer may have restarted. */
1238 if ((asoc->c.my_vtag != new_asoc->c.my_vtag) &&
1239 (asoc->c.peer_vtag != new_asoc->c.peer_vtag) &&
1240 (asoc->c.my_vtag == new_asoc->c.my_ttag) &&
1241 (asoc->c.peer_vtag == new_asoc->c.peer_ttag))
1242 return 'A';
1243
1244 /* Collision case B. */
1245 if ((asoc->c.my_vtag == new_asoc->c.my_vtag) &&
1246 ((asoc->c.peer_vtag != new_asoc->c.peer_vtag) ||
1247 (0 == asoc->c.peer_vtag))) {
1248 return 'B';
1249 }
1250
1251 /* Collision case D. */
1252 if ((asoc->c.my_vtag == new_asoc->c.my_vtag) &&
1253 (asoc->c.peer_vtag == new_asoc->c.peer_vtag))
1254 return 'D';
1255
1256 /* Collision case C. */
1257 if ((asoc->c.my_vtag != new_asoc->c.my_vtag) &&
1258 (asoc->c.peer_vtag == new_asoc->c.peer_vtag) &&
1259 (0 == new_asoc->c.my_ttag) &&
1260 (0 == new_asoc->c.peer_ttag))
1261 return 'C';
1262
1263 /* No match to any of the special cases; discard this packet. */
1264 return 'E';
1265 }
1266
1267 /* Common helper routine for both duplicate and simulataneous INIT
1268 * chunk handling.
1269 */
1270 static sctp_disposition_t sctp_sf_do_unexpected_init(
1271 const struct sctp_endpoint *ep,
1272 const struct sctp_association *asoc,
1273 const sctp_subtype_t type,
1274 void *arg, sctp_cmd_seq_t *commands)
1275 {
1276 sctp_disposition_t retval;
1277 struct sctp_chunk *chunk = arg;
1278 struct sctp_chunk *repl;
1279 struct sctp_association *new_asoc;
1280 struct sctp_chunk *err_chunk;
1281 struct sctp_packet *packet;
1282 sctp_unrecognized_param_t *unk_param;
1283 int len;
1284
1285 /* 6.10 Bundling
1286 * An endpoint MUST NOT bundle INIT, INIT ACK or
1287 * SHUTDOWN COMPLETE with any other chunks.
1288 *
1289 * IG Section 2.11.2
1290 * Furthermore, we require that the receiver of an INIT chunk MUST
1291 * enforce these rules by silently discarding an arriving packet
1292 * with an INIT chunk that is bundled with other chunks.
1293 */
1294 if (!chunk->singleton)
1295 return sctp_sf_pdiscard(ep, asoc, type, arg, commands);
1296
1297 /* 3.1 A packet containing an INIT chunk MUST have a zero Verification
1298 * Tag.
1299 */
1300 if (chunk->sctp_hdr->vtag != 0)
1301 return sctp_sf_tabort_8_4_8(ep, asoc, type, arg, commands);
1302
1303 /* Make sure that the INIT chunk has a valid length.
1304 * In this case, we generate a protocol violation since we have
1305 * an association established.
1306 */
1307 if (!sctp_chunk_length_valid(chunk, sizeof(sctp_init_chunk_t)))
1308 return sctp_sf_violation_chunklen(ep, asoc, type, arg,
1309 commands);
1310 /* Grab the INIT header. */
1311 chunk->subh.init_hdr = (sctp_inithdr_t *) chunk->skb->data;
1312
1313 /* Tag the variable length parameters. */
1314 chunk->param_hdr.v = skb_pull(chunk->skb, sizeof(sctp_inithdr_t));
1315
1316 /* Verify the INIT chunk before processing it. */
1317 err_chunk = NULL;
1318 if (!sctp_verify_init(asoc, chunk->chunk_hdr->type,
1319 (sctp_init_chunk_t *)chunk->chunk_hdr, chunk,
1320 &err_chunk)) {
1321 /* This chunk contains fatal error. It is to be discarded.
1322 * Send an ABORT, with causes if there is any.
1323 */
1324 if (err_chunk) {
1325 packet = sctp_abort_pkt_new(ep, asoc, arg,
1326 (__u8 *)(err_chunk->chunk_hdr) +
1327 sizeof(sctp_chunkhdr_t),
1328 ntohs(err_chunk->chunk_hdr->length) -
1329 sizeof(sctp_chunkhdr_t));
1330
1331 if (packet) {
1332 sctp_add_cmd_sf(commands, SCTP_CMD_SEND_PKT,
1333 SCTP_PACKET(packet));
1334 SCTP_INC_STATS(SCTP_MIB_OUTCTRLCHUNKS);
1335 retval = SCTP_DISPOSITION_CONSUME;
1336 } else {
1337 retval = SCTP_DISPOSITION_NOMEM;
1338 }
1339 goto cleanup;
1340 } else {
1341 return sctp_sf_tabort_8_4_8(ep, asoc, type, arg,
1342 commands);
1343 }
1344 }
1345
1346 /*
1347 * Other parameters for the endpoint SHOULD be copied from the
1348 * existing parameters of the association (e.g. number of
1349 * outbound streams) into the INIT ACK and cookie.
1350 * FIXME: We are copying parameters from the endpoint not the
1351 * association.
1352 */
1353 new_asoc = sctp_make_temp_asoc(ep, chunk, GFP_ATOMIC);
1354 if (!new_asoc)
1355 goto nomem;
1356
1357 /* In the outbound INIT ACK the endpoint MUST copy its current
1358 * Verification Tag and Peers Verification tag into a reserved
1359 * place (local tie-tag and per tie-tag) within the state cookie.
1360 */
1361 if (!sctp_process_init(new_asoc, chunk->chunk_hdr->type,
1362 sctp_source(chunk),
1363 (sctp_init_chunk_t *)chunk->chunk_hdr,
1364 GFP_ATOMIC))
1365 goto nomem;
1366
1367 /* Make sure no new addresses are being added during the
1368 * restart. Do not do this check for COOKIE-WAIT state,
1369 * since there are no peer addresses to check against.
1370 * Upon return an ABORT will have been sent if needed.
1371 */
1372 if (!sctp_state(asoc, COOKIE_WAIT)) {
1373 if (!sctp_sf_check_restart_addrs(new_asoc, asoc, chunk,
1374 commands)) {
1375 retval = SCTP_DISPOSITION_CONSUME;
1376 goto nomem_retval;
1377 }
1378 }
1379
1380 sctp_tietags_populate(new_asoc, asoc);
1381
1382 /* B) "Z" shall respond immediately with an INIT ACK chunk. */
1383
1384 /* If there are errors need to be reported for unknown parameters,
1385 * make sure to reserve enough room in the INIT ACK for them.
1386 */
1387 len = 0;
1388 if (err_chunk) {
1389 len = ntohs(err_chunk->chunk_hdr->length) -
1390 sizeof(sctp_chunkhdr_t);
1391 }
1392
1393 if (sctp_assoc_set_bind_addr_from_ep(new_asoc, GFP_ATOMIC) < 0)
1394 goto nomem;
1395
1396 repl = sctp_make_init_ack(new_asoc, chunk, GFP_ATOMIC, len);
1397 if (!repl)
1398 goto nomem;
1399
1400 /* If there are errors need to be reported for unknown parameters,
1401 * include them in the outgoing INIT ACK as "Unrecognized parameter"
1402 * parameter.
1403 */
1404 if (err_chunk) {
1405 /* Get the "Unrecognized parameter" parameter(s) out of the
1406 * ERROR chunk generated by sctp_verify_init(). Since the
1407 * error cause code for "unknown parameter" and the
1408 * "Unrecognized parameter" type is the same, we can
1409 * construct the parameters in INIT ACK by copying the
1410 * ERROR causes over.
1411 */
1412 unk_param = (sctp_unrecognized_param_t *)
1413 ((__u8 *)(err_chunk->chunk_hdr) +
1414 sizeof(sctp_chunkhdr_t));
1415 /* Replace the cause code with the "Unrecognized parameter"
1416 * parameter type.
1417 */
1418 sctp_addto_chunk(repl, len, unk_param);
1419 }
1420
1421 sctp_add_cmd_sf(commands, SCTP_CMD_NEW_ASOC, SCTP_ASOC(new_asoc));
1422 sctp_add_cmd_sf(commands, SCTP_CMD_REPLY, SCTP_CHUNK(repl));
1423
1424 /*
1425 * Note: After sending out INIT ACK with the State Cookie parameter,
1426 * "Z" MUST NOT allocate any resources for this new association.
1427 * Otherwise, "Z" will be vulnerable to resource attacks.
1428 */
1429 sctp_add_cmd_sf(commands, SCTP_CMD_DELETE_TCB, SCTP_NULL());
1430 retval = SCTP_DISPOSITION_CONSUME;
1431
1432 return retval;
1433
1434 nomem:
1435 retval = SCTP_DISPOSITION_NOMEM;
1436 nomem_retval:
1437 if (new_asoc)
1438 sctp_association_free(new_asoc);
1439 cleanup:
1440 if (err_chunk)
1441 sctp_chunk_free(err_chunk);
1442 return retval;
1443 }
1444
1445 /*
1446 * Handle simultanous INIT.
1447 * This means we started an INIT and then we got an INIT request from
1448 * our peer.
1449 *
1450 * Section: 5.2.1 INIT received in COOKIE-WAIT or COOKIE-ECHOED State (Item B)
1451 * This usually indicates an initialization collision, i.e., each
1452 * endpoint is attempting, at about the same time, to establish an
1453 * association with the other endpoint.
1454 *
1455 * Upon receipt of an INIT in the COOKIE-WAIT or COOKIE-ECHOED state, an
1456 * endpoint MUST respond with an INIT ACK using the same parameters it
1457 * sent in its original INIT chunk (including its Verification Tag,
1458 * unchanged). These original parameters are combined with those from the
1459 * newly received INIT chunk. The endpoint shall also generate a State
1460 * Cookie with the INIT ACK. The endpoint uses the parameters sent in its
1461 * INIT to calculate the State Cookie.
1462 *
1463 * After that, the endpoint MUST NOT change its state, the T1-init
1464 * timer shall be left running and the corresponding TCB MUST NOT be
1465 * destroyed. The normal procedures for handling State Cookies when
1466 * a TCB exists will resolve the duplicate INITs to a single association.
1467 *
1468 * For an endpoint that is in the COOKIE-ECHOED state it MUST populate
1469 * its Tie-Tags with the Tag information of itself and its peer (see
1470 * section 5.2.2 for a description of the Tie-Tags).
1471 *
1472 * Verification Tag: Not explicit, but an INIT can not have a valid
1473 * verification tag, so we skip the check.
1474 *
1475 * Inputs
1476 * (endpoint, asoc, chunk)
1477 *
1478 * Outputs
1479 * (asoc, reply_msg, msg_up, timers, counters)
1480 *
1481 * The return value is the disposition of the chunk.
1482 */
1483 sctp_disposition_t sctp_sf_do_5_2_1_siminit(const struct sctp_endpoint *ep,
1484 const struct sctp_association *asoc,
1485 const sctp_subtype_t type,
1486 void *arg,
1487 sctp_cmd_seq_t *commands)
1488 {
1489 /* Call helper to do the real work for both simulataneous and
1490 * duplicate INIT chunk handling.
1491 */
1492 return sctp_sf_do_unexpected_init(ep, asoc, type, arg, commands);
1493 }
1494
1495 /*
1496 * Handle duplicated INIT messages. These are usually delayed
1497 * restransmissions.
1498 *
1499 * Section: 5.2.2 Unexpected INIT in States Other than CLOSED,
1500 * COOKIE-ECHOED and COOKIE-WAIT
1501 *
1502 * Unless otherwise stated, upon reception of an unexpected INIT for
1503 * this association, the endpoint shall generate an INIT ACK with a
1504 * State Cookie. In the outbound INIT ACK the endpoint MUST copy its
1505 * current Verification Tag and peer's Verification Tag into a reserved
1506 * place within the state cookie. We shall refer to these locations as
1507 * the Peer's-Tie-Tag and the Local-Tie-Tag. The outbound SCTP packet
1508 * containing this INIT ACK MUST carry a Verification Tag value equal to
1509 * the Initiation Tag found in the unexpected INIT. And the INIT ACK
1510 * MUST contain a new Initiation Tag (randomly generated see Section
1511 * 5.3.1). Other parameters for the endpoint SHOULD be copied from the
1512 * existing parameters of the association (e.g. number of outbound
1513 * streams) into the INIT ACK and cookie.
1514 *
1515 * After sending out the INIT ACK, the endpoint shall take no further
1516 * actions, i.e., the existing association, including its current state,
1517 * and the corresponding TCB MUST NOT be changed.
1518 *
1519 * Note: Only when a TCB exists and the association is not in a COOKIE-
1520 * WAIT state are the Tie-Tags populated. For a normal association INIT
1521 * (i.e. the endpoint is in a COOKIE-WAIT state), the Tie-Tags MUST be
1522 * set to 0 (indicating that no previous TCB existed). The INIT ACK and
1523 * State Cookie are populated as specified in section 5.2.1.
1524 *
1525 * Verification Tag: Not specified, but an INIT has no way of knowing
1526 * what the verification tag could be, so we ignore it.
1527 *
1528 * Inputs
1529 * (endpoint, asoc, chunk)
1530 *
1531 * Outputs
1532 * (asoc, reply_msg, msg_up, timers, counters)
1533 *
1534 * The return value is the disposition of the chunk.
1535 */
1536 sctp_disposition_t sctp_sf_do_5_2_2_dupinit(const struct sctp_endpoint *ep,
1537 const struct sctp_association *asoc,
1538 const sctp_subtype_t type,
1539 void *arg,
1540 sctp_cmd_seq_t *commands)
1541 {
1542 /* Call helper to do the real work for both simulataneous and
1543 * duplicate INIT chunk handling.
1544 */
1545 return sctp_sf_do_unexpected_init(ep, asoc, type, arg, commands);
1546 }
1547
1548
1549 /*
1550 * Unexpected INIT-ACK handler.
1551 *
1552 * Section 5.2.3
1553 * If an INIT ACK received by an endpoint in any state other than the
1554 * COOKIE-WAIT state, the endpoint should discard the INIT ACK chunk.
1555 * An unexpected INIT ACK usually indicates the processing of an old or
1556 * duplicated INIT chunk.
1557 */
1558 sctp_disposition_t sctp_sf_do_5_2_3_initack(const struct sctp_endpoint *ep,
1559 const struct sctp_association *asoc,
1560 const sctp_subtype_t type,
1561 void *arg, sctp_cmd_seq_t *commands)
1562 {
1563 /* Per the above section, we'll discard the chunk if we have an
1564 * endpoint. If this is an OOTB INIT-ACK, treat it as such.
1565 */
1566 if (ep == sctp_sk((sctp_get_ctl_sock()))->ep)
1567 return sctp_sf_ootb(ep, asoc, type, arg, commands);
1568 else
1569 return sctp_sf_discard_chunk(ep, asoc, type, arg, commands);
1570 }
1571
1572 /* Unexpected COOKIE-ECHO handler for peer restart (Table 2, action 'A')
1573 *
1574 * Section 5.2.4
1575 * A) In this case, the peer may have restarted.
1576 */
1577 static sctp_disposition_t sctp_sf_do_dupcook_a(const struct sctp_endpoint *ep,
1578 const struct sctp_association *asoc,
1579 struct sctp_chunk *chunk,
1580 sctp_cmd_seq_t *commands,
1581 struct sctp_association *new_asoc)
1582 {
1583 sctp_init_chunk_t *peer_init;
1584 struct sctp_ulpevent *ev;
1585 struct sctp_chunk *repl;
1586 struct sctp_chunk *err;
1587 sctp_disposition_t disposition;
1588
1589 /* new_asoc is a brand-new association, so these are not yet
1590 * side effects--it is safe to run them here.
1591 */
1592 peer_init = &chunk->subh.cookie_hdr->c.peer_init[0];
1593
1594 if (!sctp_process_init(new_asoc, chunk->chunk_hdr->type,
1595 sctp_source(chunk), peer_init,
1596 GFP_ATOMIC))
1597 goto nomem;
1598
1599 /* Make sure no new addresses are being added during the
1600 * restart. Though this is a pretty complicated attack
1601 * since you'd have to get inside the cookie.
1602 */
1603 if (!sctp_sf_check_restart_addrs(new_asoc, asoc, chunk, commands)) {
1604 return SCTP_DISPOSITION_CONSUME;
1605 }
1606
1607 /* If the endpoint is in the SHUTDOWN-ACK-SENT state and recognizes
1608 * the peer has restarted (Action A), it MUST NOT setup a new
1609 * association but instead resend the SHUTDOWN ACK and send an ERROR
1610 * chunk with a "Cookie Received while Shutting Down" error cause to
1611 * its peer.
1612 */
1613 if (sctp_state(asoc, SHUTDOWN_ACK_SENT)) {
1614 disposition = sctp_sf_do_9_2_reshutack(ep, asoc,
1615 SCTP_ST_CHUNK(chunk->chunk_hdr->type),
1616 chunk, commands);
1617 if (SCTP_DISPOSITION_NOMEM == disposition)
1618 goto nomem;
1619
1620 err = sctp_make_op_error(asoc, chunk,
1621 SCTP_ERROR_COOKIE_IN_SHUTDOWN,
1622 NULL, 0);
1623 if (err)
1624 sctp_add_cmd_sf(commands, SCTP_CMD_REPLY,
1625 SCTP_CHUNK(err));
1626
1627 return SCTP_DISPOSITION_CONSUME;
1628 }
1629
1630 /* For now, fail any unsent/unacked data. Consider the optional
1631 * choice of resending of this data.
1632 */
1633 sctp_add_cmd_sf(commands, SCTP_CMD_PURGE_OUTQUEUE, SCTP_NULL());
1634
1635 repl = sctp_make_cookie_ack(new_asoc, chunk);
1636 if (!repl)
1637 goto nomem;
1638
1639 /* Report association restart to upper layer. */
1640 ev = sctp_ulpevent_make_assoc_change(asoc, 0, SCTP_RESTART, 0,
1641 new_asoc->c.sinit_num_ostreams,
1642 new_asoc->c.sinit_max_instreams,
1643 NULL, GFP_ATOMIC);
1644 if (!ev)
1645 goto nomem_ev;
1646
1647 /* Update the content of current association. */
1648 sctp_add_cmd_sf(commands, SCTP_CMD_UPDATE_ASSOC, SCTP_ASOC(new_asoc));
1649 sctp_add_cmd_sf(commands, SCTP_CMD_REPLY, SCTP_CHUNK(repl));
1650 sctp_add_cmd_sf(commands, SCTP_CMD_EVENT_ULP, SCTP_ULPEVENT(ev));
1651 return SCTP_DISPOSITION_CONSUME;
1652
1653 nomem_ev:
1654 sctp_chunk_free(repl);
1655 nomem:
1656 return SCTP_DISPOSITION_NOMEM;
1657 }
1658
1659 /* Unexpected COOKIE-ECHO handler for setup collision (Table 2, action 'B')
1660 *
1661 * Section 5.2.4
1662 * B) In this case, both sides may be attempting to start an association
1663 * at about the same time but the peer endpoint started its INIT
1664 * after responding to the local endpoint's INIT
1665 */
1666 /* This case represents an initialization collision. */
1667 static sctp_disposition_t sctp_sf_do_dupcook_b(const struct sctp_endpoint *ep,
1668 const struct sctp_association *asoc,
1669 struct sctp_chunk *chunk,
1670 sctp_cmd_seq_t *commands,
1671 struct sctp_association *new_asoc)
1672 {
1673 sctp_init_chunk_t *peer_init;
1674 struct sctp_chunk *repl;
1675
1676 /* new_asoc is a brand-new association, so these are not yet
1677 * side effects--it is safe to run them here.
1678 */
1679 peer_init = &chunk->subh.cookie_hdr->c.peer_init[0];
1680 if (!sctp_process_init(new_asoc, chunk->chunk_hdr->type,
1681 sctp_source(chunk), peer_init,
1682 GFP_ATOMIC))
1683 goto nomem;
1684
1685 /* Update the content of current association. */
1686 sctp_add_cmd_sf(commands, SCTP_CMD_UPDATE_ASSOC, SCTP_ASOC(new_asoc));
1687 sctp_add_cmd_sf(commands, SCTP_CMD_NEW_STATE,
1688 SCTP_STATE(SCTP_STATE_ESTABLISHED));
1689 SCTP_INC_STATS(SCTP_MIB_CURRESTAB);
1690 sctp_add_cmd_sf(commands, SCTP_CMD_HB_TIMERS_START, SCTP_NULL());
1691
1692 repl = sctp_make_cookie_ack(new_asoc, chunk);
1693 if (!repl)
1694 goto nomem;
1695
1696 sctp_add_cmd_sf(commands, SCTP_CMD_REPLY, SCTP_CHUNK(repl));
1697 sctp_add_cmd_sf(commands, SCTP_CMD_TRANSMIT, SCTP_NULL());
1698
1699 /* RFC 2960 5.1 Normal Establishment of an Association
1700 *
1701 * D) IMPLEMENTATION NOTE: An implementation may choose to
1702 * send the Communication Up notification to the SCTP user
1703 * upon reception of a valid COOKIE ECHO chunk.
1704 *
1705 * Sadly, this needs to be implemented as a side-effect, because
1706 * we are not guaranteed to have set the association id of the real
1707 * association and so these notifications need to be delayed until
1708 * the association id is allocated.
1709 */
1710
1711 sctp_add_cmd_sf(commands, SCTP_CMD_ASSOC_CHANGE, SCTP_U8(SCTP_COMM_UP));
1712
1713 /* Sockets API Draft Section 5.3.1.6
1714 * When a peer sends a Adaptation Layer Indication parameter , SCTP
1715 * delivers this notification to inform the application that of the
1716 * peers requested adaptation layer.
1717 *
1718 * This also needs to be done as a side effect for the same reason as
1719 * above.
1720 */
1721 if (asoc->peer.adaptation_ind)
1722 sctp_add_cmd_sf(commands, SCTP_CMD_ADAPTATION_IND, SCTP_NULL());
1723
1724 return SCTP_DISPOSITION_CONSUME;
1725
1726 nomem:
1727 return SCTP_DISPOSITION_NOMEM;
1728 }
1729
1730 /* Unexpected COOKIE-ECHO handler for setup collision (Table 2, action 'C')
1731 *
1732 * Section 5.2.4
1733 * C) In this case, the local endpoint's cookie has arrived late.
1734 * Before it arrived, the local endpoint sent an INIT and received an
1735 * INIT-ACK and finally sent a COOKIE ECHO with the peer's same tag
1736 * but a new tag of its own.
1737 */
1738 /* This case represents an initialization collision. */
1739 static sctp_disposition_t sctp_sf_do_dupcook_c(const struct sctp_endpoint *ep,
1740 const struct sctp_association *asoc,
1741 struct sctp_chunk *chunk,
1742 sctp_cmd_seq_t *commands,
1743 struct sctp_association *new_asoc)
1744 {
1745 /* The cookie should be silently discarded.
1746 * The endpoint SHOULD NOT change states and should leave
1747 * any timers running.
1748 */
1749 return SCTP_DISPOSITION_DISCARD;
1750 }
1751
1752 /* Unexpected COOKIE-ECHO handler lost chunk (Table 2, action 'D')
1753 *
1754 * Section 5.2.4
1755 *
1756 * D) When both local and remote tags match the endpoint should always
1757 * enter the ESTABLISHED state, if it has not already done so.
1758 */
1759 /* This case represents an initialization collision. */
1760 static sctp_disposition_t sctp_sf_do_dupcook_d(const struct sctp_endpoint *ep,
1761 const struct sctp_association *asoc,
1762 struct sctp_chunk *chunk,
1763 sctp_cmd_seq_t *commands,
1764 struct sctp_association *new_asoc)
1765 {
1766 struct sctp_ulpevent *ev = NULL, *ai_ev = NULL;
1767 struct sctp_chunk *repl;
1768
1769 /* Clarification from Implementor's Guide:
1770 * D) When both local and remote tags match the endpoint should
1771 * enter the ESTABLISHED state, if it is in the COOKIE-ECHOED state.
1772 * It should stop any cookie timer that may be running and send
1773 * a COOKIE ACK.
1774 */
1775
1776 /* Don't accidentally move back into established state. */
1777 if (asoc->state < SCTP_STATE_ESTABLISHED) {
1778 sctp_add_cmd_sf(commands, SCTP_CMD_TIMER_STOP,
1779 SCTP_TO(SCTP_EVENT_TIMEOUT_T1_COOKIE));
1780 sctp_add_cmd_sf(commands, SCTP_CMD_NEW_STATE,
1781 SCTP_STATE(SCTP_STATE_ESTABLISHED));
1782 SCTP_INC_STATS(SCTP_MIB_CURRESTAB);
1783 sctp_add_cmd_sf(commands, SCTP_CMD_HB_TIMERS_START,
1784 SCTP_NULL());
1785
1786 /* RFC 2960 5.1 Normal Establishment of an Association
1787 *
1788 * D) IMPLEMENTATION NOTE: An implementation may choose
1789 * to send the Communication Up notification to the
1790 * SCTP user upon reception of a valid COOKIE
1791 * ECHO chunk.
1792 */
1793 ev = sctp_ulpevent_make_assoc_change(asoc, 0,
1794 SCTP_COMM_UP, 0,
1795 asoc->c.sinit_num_ostreams,
1796 asoc->c.sinit_max_instreams,
1797 NULL, GFP_ATOMIC);
1798 if (!ev)
1799 goto nomem;
1800
1801 /* Sockets API Draft Section 5.3.1.6
1802 * When a peer sends a Adaptation Layer Indication parameter,
1803 * SCTP delivers this notification to inform the application
1804 * that of the peers requested adaptation layer.
1805 */
1806 if (asoc->peer.adaptation_ind) {
1807 ai_ev = sctp_ulpevent_make_adaptation_indication(asoc,
1808 GFP_ATOMIC);
1809 if (!ai_ev)
1810 goto nomem;
1811
1812 }
1813 }
1814 sctp_add_cmd_sf(commands, SCTP_CMD_TRANSMIT, SCTP_NULL());
1815
1816 repl = sctp_make_cookie_ack(new_asoc, chunk);
1817 if (!repl)
1818 goto nomem;
1819
1820 if (ev)
1821 sctp_add_cmd_sf(commands, SCTP_CMD_EVENT_ULP,
1822 SCTP_ULPEVENT(ev));
1823 if (ai_ev)
1824 sctp_add_cmd_sf(commands, SCTP_CMD_EVENT_ULP,
1825 SCTP_ULPEVENT(ai_ev));
1826
1827 sctp_add_cmd_sf(commands, SCTP_CMD_REPLY, SCTP_CHUNK(repl));
1828 sctp_add_cmd_sf(commands, SCTP_CMD_TRANSMIT, SCTP_NULL());
1829
1830 return SCTP_DISPOSITION_CONSUME;
1831
1832 nomem:
1833 if (ai_ev)
1834 sctp_ulpevent_free(ai_ev);
1835 if (ev)
1836 sctp_ulpevent_free(ev);
1837 return SCTP_DISPOSITION_NOMEM;
1838 }
1839
1840 /*
1841 * Handle a duplicate COOKIE-ECHO. This usually means a cookie-carrying
1842 * chunk was retransmitted and then delayed in the network.
1843 *
1844 * Section: 5.2.4 Handle a COOKIE ECHO when a TCB exists
1845 *
1846 * Verification Tag: None. Do cookie validation.
1847 *
1848 * Inputs
1849 * (endpoint, asoc, chunk)
1850 *
1851 * Outputs
1852 * (asoc, reply_msg, msg_up, timers, counters)
1853 *
1854 * The return value is the disposition of the chunk.
1855 */
1856 sctp_disposition_t sctp_sf_do_5_2_4_dupcook(const struct sctp_endpoint *ep,
1857 const struct sctp_association *asoc,
1858 const sctp_subtype_t type,
1859 void *arg,
1860 sctp_cmd_seq_t *commands)
1861 {
1862 sctp_disposition_t retval;
1863 struct sctp_chunk *chunk = arg;
1864 struct sctp_association *new_asoc;
1865 int error = 0;
1866 char action;
1867 struct sctp_chunk *err_chk_p;
1868
1869 /* Make sure that the chunk has a valid length from the protocol
1870 * perspective. In this case check to make sure we have at least
1871 * enough for the chunk header. Cookie length verification is
1872 * done later.
1873 */
1874 if (!sctp_chunk_length_valid(chunk, sizeof(sctp_chunkhdr_t)))
1875 return sctp_sf_violation_chunklen(ep, asoc, type, arg,
1876 commands);
1877
1878 /* "Decode" the chunk. We have no optional parameters so we
1879 * are in good shape.
1880 */
1881 chunk->subh.cookie_hdr = (struct sctp_signed_cookie *)chunk->skb->data;
1882 if (!pskb_pull(chunk->skb, ntohs(chunk->chunk_hdr->length) -
1883 sizeof(sctp_chunkhdr_t)))
1884 goto nomem;
1885
1886 /* In RFC 2960 5.2.4 3, if both Verification Tags in the State Cookie
1887 * of a duplicate COOKIE ECHO match the Verification Tags of the
1888 * current association, consider the State Cookie valid even if
1889 * the lifespan is exceeded.
1890 */
1891 new_asoc = sctp_unpack_cookie(ep, asoc, chunk, GFP_ATOMIC, &error,
1892 &err_chk_p);
1893
1894 /* FIXME:
1895 * If the re-build failed, what is the proper error path
1896 * from here?
1897 *
1898 * [We should abort the association. --piggy]
1899 */
1900 if (!new_asoc) {
1901 /* FIXME: Several errors are possible. A bad cookie should
1902 * be silently discarded, but think about logging it too.
1903 */
1904 switch (error) {
1905 case -SCTP_IERROR_NOMEM:
1906 goto nomem;
1907
1908 case -SCTP_IERROR_STALE_COOKIE:
1909 sctp_send_stale_cookie_err(ep, asoc, chunk, commands,
1910 err_chk_p);
1911 return sctp_sf_pdiscard(ep, asoc, type, arg, commands);
1912 case -SCTP_IERROR_BAD_SIG:
1913 default:
1914 return sctp_sf_pdiscard(ep, asoc, type, arg, commands);
1915 }
1916 }
1917
1918 /* Compare the tie_tag in cookie with the verification tag of
1919 * current association.
1920 */
1921 action = sctp_tietags_compare(new_asoc, asoc);
1922
1923 switch (action) {
1924 case 'A': /* Association restart. */
1925 retval = sctp_sf_do_dupcook_a(ep, asoc, chunk, commands,
1926 new_asoc);
1927 break;
1928
1929 case 'B': /* Collision case B. */
1930 retval = sctp_sf_do_dupcook_b(ep, asoc, chunk, commands,
1931 new_asoc);
1932 break;
1933
1934 case 'C': /* Collision case C. */
1935 retval = sctp_sf_do_dupcook_c(ep, asoc, chunk, commands,
1936 new_asoc);
1937 break;
1938
1939 case 'D': /* Collision case D. */
1940 retval = sctp_sf_do_dupcook_d(ep, asoc, chunk, commands,
1941 new_asoc);
1942 break;
1943
1944 default: /* Discard packet for all others. */
1945 retval = sctp_sf_pdiscard(ep, asoc, type, arg, commands);
1946 break;
1947 }
1948
1949 /* Delete the tempory new association. */
1950 sctp_add_cmd_sf(commands, SCTP_CMD_NEW_ASOC, SCTP_ASOC(new_asoc));
1951 sctp_add_cmd_sf(commands, SCTP_CMD_DELETE_TCB, SCTP_NULL());
1952
1953 return retval;
1954
1955 nomem:
1956 return SCTP_DISPOSITION_NOMEM;
1957 }
1958
1959 /*
1960 * Process an ABORT. (SHUTDOWN-PENDING state)
1961 *
1962 * See sctp_sf_do_9_1_abort().
1963 */
1964 sctp_disposition_t sctp_sf_shutdown_pending_abort(
1965 const struct sctp_endpoint *ep,
1966 const struct sctp_association *asoc,
1967 const sctp_subtype_t type,
1968 void *arg,
1969 sctp_cmd_seq_t *commands)
1970 {
1971 struct sctp_chunk *chunk = arg;
1972
1973 if (!sctp_vtag_verify_either(chunk, asoc))
1974 return sctp_sf_pdiscard(ep, asoc, type, arg, commands);
1975
1976 /* Make sure that the ABORT chunk has a valid length.
1977 * Since this is an ABORT chunk, we have to discard it
1978 * because of the following text:
1979 * RFC 2960, Section 3.3.7
1980 * If an endpoint receives an ABORT with a format error or for an
1981 * association that doesn't exist, it MUST silently discard it.
1982 * Becasue the length is "invalid", we can't really discard just
1983 * as we do not know its true length. So, to be safe, discard the
1984 * packet.
1985 */
1986 if (!sctp_chunk_length_valid(chunk, sizeof(sctp_abort_chunk_t)))
1987 return sctp_sf_pdiscard(ep, asoc, type, arg, commands);
1988
1989 /* Stop the T5-shutdown guard timer. */
1990 sctp_add_cmd_sf(commands, SCTP_CMD_TIMER_STOP,
1991 SCTP_TO(SCTP_EVENT_TIMEOUT_T5_SHUTDOWN_GUARD));
1992
1993 return sctp_sf_do_9_1_abort(ep, asoc, type, arg, commands);
1994 }
1995
1996 /*
1997 * Process an ABORT. (SHUTDOWN-SENT state)
1998 *
1999 * See sctp_sf_do_9_1_abort().
2000 */
2001 sctp_disposition_t sctp_sf_shutdown_sent_abort(const struct sctp_endpoint *ep,
2002 const struct sctp_association *asoc,
2003 const sctp_subtype_t type,
2004 void *arg,
2005 sctp_cmd_seq_t *commands)
2006 {
2007 struct sctp_chunk *chunk = arg;
2008
2009 if (!sctp_vtag_verify_either(chunk, asoc))
2010 return sctp_sf_pdiscard(ep, asoc, type, arg, commands);
2011
2012 /* Make sure that the ABORT chunk has a valid length.
2013 * Since this is an ABORT chunk, we have to discard it
2014 * because of the following text:
2015 * RFC 2960, Section 3.3.7
2016 * If an endpoint receives an ABORT with a format error or for an
2017 * association that doesn't exist, it MUST silently discard it.
2018 * Becasue the length is "invalid", we can't really discard just
2019 * as we do not know its true length. So, to be safe, discard the
2020 * packet.
2021 */
2022 if (!sctp_chunk_length_valid(chunk, sizeof(sctp_abort_chunk_t)))
2023 return sctp_sf_pdiscard(ep, asoc, type, arg, commands);
2024
2025 /* Stop the T2-shutdown timer. */
2026 sctp_add_cmd_sf(commands, SCTP_CMD_TIMER_STOP,
2027 SCTP_TO(SCTP_EVENT_TIMEOUT_T2_SHUTDOWN));
2028
2029 /* Stop the T5-shutdown guard timer. */
2030 sctp_add_cmd_sf(commands, SCTP_CMD_TIMER_STOP,
2031 SCTP_TO(SCTP_EVENT_TIMEOUT_T5_SHUTDOWN_GUARD));
2032
2033 return sctp_sf_do_9_1_abort(ep, asoc, type, arg, commands);
2034 }
2035
2036 /*
2037 * Process an ABORT. (SHUTDOWN-ACK-SENT state)
2038 *
2039 * See sctp_sf_do_9_1_abort().
2040 */
2041 sctp_disposition_t sctp_sf_shutdown_ack_sent_abort(
2042 const struct sctp_endpoint *ep,
2043 const struct sctp_association *asoc,
2044 const sctp_subtype_t type,
2045 void *arg,
2046 sctp_cmd_seq_t *commands)
2047 {
2048 /* The same T2 timer, so we should be able to use
2049 * common function with the SHUTDOWN-SENT state.
2050 */
2051 return sctp_sf_shutdown_sent_abort(ep, asoc, type, arg, commands);
2052 }
2053
2054 /*
2055 * Handle an Error received in COOKIE_ECHOED state.
2056 *
2057 * Only handle the error type of stale COOKIE Error, the other errors will
2058 * be ignored.
2059 *
2060 * Inputs
2061 * (endpoint, asoc, chunk)
2062 *
2063 * Outputs
2064 * (asoc, reply_msg, msg_up, timers, counters)
2065 *
2066 * The return value is the disposition of the chunk.
2067 */
2068 sctp_disposition_t sctp_sf_cookie_echoed_err(const struct sctp_endpoint *ep,
2069 const struct sctp_association *asoc,
2070 const sctp_subtype_t type,
2071 void *arg,
2072 sctp_cmd_seq_t *commands)
2073 {
2074 struct sctp_chunk *chunk = arg;
2075 sctp_errhdr_t *err;
2076
2077 if (!sctp_vtag_verify(chunk, asoc))
2078 return sctp_sf_pdiscard(ep, asoc, type, arg, commands);
2079
2080 /* Make sure that the ERROR chunk has a valid length.
2081 * The parameter walking depends on this as well.
2082 */
2083 if (!sctp_chunk_length_valid(chunk, sizeof(sctp_operr_chunk_t)))
2084 return sctp_sf_violation_chunklen(ep, asoc, type, arg,
2085 commands);
2086
2087 /* Process the error here */
2088 /* FUTURE FIXME: When PR-SCTP related and other optional
2089 * parms are emitted, this will have to change to handle multiple
2090 * errors.
2091 */
2092 sctp_walk_errors(err, chunk->chunk_hdr) {
2093 if (SCTP_ERROR_STALE_COOKIE == err->cause)
2094 return sctp_sf_do_5_2_6_stale(ep, asoc, type,
2095 arg, commands);
2096 }
2097
2098 /* It is possible to have malformed error causes, and that
2099 * will cause us to end the walk early. However, since
2100 * we are discarding the packet, there should be no adverse
2101 * affects.
2102 */
2103 return sctp_sf_pdiscard(ep, asoc, type, arg, commands);
2104 }
2105
2106 /*
2107 * Handle a Stale COOKIE Error
2108 *
2109 * Section: 5.2.6 Handle Stale COOKIE Error
2110 * If the association is in the COOKIE-ECHOED state, the endpoint may elect
2111 * one of the following three alternatives.
2112 * ...
2113 * 3) Send a new INIT chunk to the endpoint, adding a Cookie
2114 * Preservative parameter requesting an extension to the lifetime of
2115 * the State Cookie. When calculating the time extension, an
2116 * implementation SHOULD use the RTT information measured based on the
2117 * previous COOKIE ECHO / ERROR exchange, and should add no more
2118 * than 1 second beyond the measured RTT, due to long State Cookie
2119 * lifetimes making the endpoint more subject to a replay attack.
2120 *
2121 * Verification Tag: Not explicit, but safe to ignore.
2122 *
2123 * Inputs
2124 * (endpoint, asoc, chunk)
2125 *
2126 * Outputs
2127 * (asoc, reply_msg, msg_up, timers, counters)
2128 *
2129 * The return value is the disposition of the chunk.
2130 */
2131 static sctp_disposition_t sctp_sf_do_5_2_6_stale(const struct sctp_endpoint *ep,
2132 const struct sctp_association *asoc,
2133 const sctp_subtype_t type,
2134 void *arg,
2135 sctp_cmd_seq_t *commands)
2136 {
2137 struct sctp_chunk *chunk = arg;
2138 time_t stale;
2139 sctp_cookie_preserve_param_t bht;
2140 sctp_errhdr_t *err;
2141 struct sctp_chunk *reply;
2142 struct sctp_bind_addr *bp;
2143 int attempts = asoc->init_err_counter + 1;
2144
2145 if (attempts > asoc->max_init_attempts) {
2146 sctp_add_cmd_sf(commands, SCTP_CMD_SET_SK_ERR,
2147 SCTP_ERROR(ETIMEDOUT));
2148 sctp_add_cmd_sf(commands, SCTP_CMD_INIT_FAILED,
2149 SCTP_PERR(SCTP_ERROR_STALE_COOKIE));
2150 return SCTP_DISPOSITION_DELETE_TCB;
2151 }
2152
2153 err = (sctp_errhdr_t *)(chunk->skb->data);
2154
2155 /* When calculating the time extension, an implementation
2156 * SHOULD use the RTT information measured based on the
2157 * previous COOKIE ECHO / ERROR exchange, and should add no
2158 * more than 1 second beyond the measured RTT, due to long
2159 * State Cookie lifetimes making the endpoint more subject to
2160 * a replay attack.
2161 * Measure of Staleness's unit is usec. (1/1000000 sec)
2162 * Suggested Cookie Life-span Increment's unit is msec.
2163 * (1/1000 sec)
2164 * In general, if you use the suggested cookie life, the value
2165 * found in the field of measure of staleness should be doubled
2166 * to give ample time to retransmit the new cookie and thus
2167 * yield a higher probability of success on the reattempt.
2168 */
2169 stale = ntohl(*(__be32 *)((u8 *)err + sizeof(sctp_errhdr_t)));
2170 stale = (stale * 2) / 1000;
2171
2172 bht.param_hdr.type = SCTP_PARAM_COOKIE_PRESERVATIVE;
2173 bht.param_hdr.length = htons(sizeof(bht));
2174 bht.lifespan_increment = htonl(stale);
2175
2176 /* Build that new INIT chunk. */
2177 bp = (struct sctp_bind_addr *) &asoc->base.bind_addr;
2178 reply = sctp_make_init(asoc, bp, GFP_ATOMIC, sizeof(bht));
2179 if (!reply)
2180 goto nomem;
2181
2182 sctp_addto_chunk(reply, sizeof(bht), &bht);
2183
2184 /* Clear peer's init_tag cached in assoc as we are sending a new INIT */
2185 sctp_add_cmd_sf(commands, SCTP_CMD_CLEAR_INIT_TAG, SCTP_NULL());
2186
2187 /* Stop pending T3-rtx and heartbeat timers */
2188 sctp_add_cmd_sf(commands, SCTP_CMD_T3_RTX_TIMERS_STOP, SCTP_NULL());
2189 sctp_add_cmd_sf(commands, SCTP_CMD_HB_TIMERS_STOP, SCTP_NULL());
2190
2191 /* Delete non-primary peer ip addresses since we are transitioning
2192 * back to the COOKIE-WAIT state
2193 */
2194 sctp_add_cmd_sf(commands, SCTP_CMD_DEL_NON_PRIMARY, SCTP_NULL());
2195
2196 /* If we've sent any data bundled with COOKIE-ECHO we will need to
2197 * resend
2198 */
2199 sctp_add_cmd_sf(commands, SCTP_CMD_RETRAN,
2200 SCTP_TRANSPORT(asoc->peer.primary_path));
2201
2202 /* Cast away the const modifier, as we want to just
2203 * rerun it through as a sideffect.
2204 */
2205 sctp_add_cmd_sf(commands, SCTP_CMD_INIT_COUNTER_INC, SCTP_NULL());
2206
2207 sctp_add_cmd_sf(commands, SCTP_CMD_TIMER_STOP,
2208 SCTP_TO(SCTP_EVENT_TIMEOUT_T1_COOKIE));
2209 sctp_add_cmd_sf(commands, SCTP_CMD_NEW_STATE,
2210 SCTP_STATE(SCTP_STATE_COOKIE_WAIT));
2211 sctp_add_cmd_sf(commands, SCTP_CMD_TIMER_START,
2212 SCTP_TO(SCTP_EVENT_TIMEOUT_T1_INIT));
2213
2214 sctp_add_cmd_sf(commands, SCTP_CMD_REPLY, SCTP_CHUNK(reply));
2215
2216 return SCTP_DISPOSITION_CONSUME;
2217
2218 nomem:
2219 return SCTP_DISPOSITION_NOMEM;
2220 }
2221
2222 /*
2223 * Process an ABORT.
2224 *
2225 * Section: 9.1
2226 * After checking the Verification Tag, the receiving endpoint shall
2227 * remove the association from its record, and shall report the
2228 * termination to its upper layer.
2229 *
2230 * Verification Tag: 8.5.1 Exceptions in Verification Tag Rules
2231 * B) Rules for packet carrying ABORT:
2232 *
2233 * - The endpoint shall always fill in the Verification Tag field of the
2234 * outbound packet with the destination endpoint's tag value if it
2235 * is known.
2236 *
2237 * - If the ABORT is sent in response to an OOTB packet, the endpoint
2238 * MUST follow the procedure described in Section 8.4.
2239 *
2240 * - The receiver MUST accept the packet if the Verification Tag
2241 * matches either its own tag, OR the tag of its peer. Otherwise, the
2242 * receiver MUST silently discard the packet and take no further
2243 * action.
2244 *
2245 * Inputs
2246 * (endpoint, asoc, chunk)
2247 *
2248 * Outputs
2249 * (asoc, reply_msg, msg_up, timers, counters)
2250 *
2251 * The return value is the disposition of the chunk.
2252 */
2253 sctp_disposition_t sctp_sf_do_9_1_abort(const struct sctp_endpoint *ep,
2254 const struct sctp_association *asoc,
2255 const sctp_subtype_t type,
2256 void *arg,
2257 sctp_cmd_seq_t *commands)
2258 {
2259 struct sctp_chunk *chunk = arg;
2260 unsigned len;
2261 __be16 error = SCTP_ERROR_NO_ERROR;
2262
2263 if (!sctp_vtag_verify_either(chunk, asoc))
2264 return sctp_sf_pdiscard(ep, asoc, type, arg, commands);
2265
2266 /* Make sure that the ABORT chunk has a valid length.
2267 * Since this is an ABORT chunk, we have to discard it
2268 * because of the following text:
2269 * RFC 2960, Section 3.3.7
2270 * If an endpoint receives an ABORT with a format error or for an
2271 * association that doesn't exist, it MUST silently discard it.
2272 * Becasue the length is "invalid", we can't really discard just
2273 * as we do not know its true length. So, to be safe, discard the
2274 * packet.
2275 */
2276 if (!sctp_chunk_length_valid(chunk, sizeof(sctp_abort_chunk_t)))
2277 return sctp_sf_pdiscard(ep, asoc, type, arg, commands);
2278
2279 /* See if we have an error cause code in the chunk. */
2280 len = ntohs(chunk->chunk_hdr->length);
2281 if (len >= sizeof(struct sctp_chunkhdr) + sizeof(struct sctp_errhdr))
2282 error = ((sctp_errhdr_t *)chunk->skb->data)->cause;
2283
2284 sctp_add_cmd_sf(commands, SCTP_CMD_SET_SK_ERR, SCTP_ERROR(ECONNRESET));
2285 /* ASSOC_FAILED will DELETE_TCB. */
2286 sctp_add_cmd_sf(commands, SCTP_CMD_ASSOC_FAILED, SCTP_PERR(error));
2287 SCTP_INC_STATS(SCTP_MIB_ABORTEDS);
2288 SCTP_DEC_STATS(SCTP_MIB_CURRESTAB);
2289
2290 return SCTP_DISPOSITION_ABORT;
2291 }
2292
2293 /*
2294 * Process an ABORT. (COOKIE-WAIT state)
2295 *
2296 * See sctp_sf_do_9_1_abort() above.
2297 */
2298 sctp_disposition_t sctp_sf_cookie_wait_abort(const struct sctp_endpoint *ep,
2299 const struct sctp_association *asoc,
2300 const sctp_subtype_t type,
2301 void *arg,
2302 sctp_cmd_seq_t *commands)
2303 {
2304 struct sctp_chunk *chunk = arg;
2305 unsigned len;
2306 __be16 error = SCTP_ERROR_NO_ERROR;
2307
2308 if (!sctp_vtag_verify_either(chunk, asoc))
2309 return sctp_sf_pdiscard(ep, asoc, type, arg, commands);
2310
2311 /* Make sure that the ABORT chunk has a valid length.
2312 * Since this is an ABORT chunk, we have to discard it
2313 * because of the following text:
2314 * RFC 2960, Section 3.3.7
2315 * If an endpoint receives an ABORT with a format error or for an
2316 * association that doesn't exist, it MUST silently discard it.
2317 * Becasue the length is "invalid", we can't really discard just
2318 * as we do not know its true length. So, to be safe, discard the
2319 * packet.
2320 */
2321 if (!sctp_chunk_length_valid(chunk, sizeof(sctp_abort_chunk_t)))
2322 return sctp_sf_pdiscard(ep, asoc, type, arg, commands);
2323
2324 /* See if we have an error cause code in the chunk. */
2325 len = ntohs(chunk->chunk_hdr->length);
2326 if (len >= sizeof(struct sctp_chunkhdr) + sizeof(struct sctp_errhdr))
2327 error = ((sctp_errhdr_t *)chunk->skb->data)->cause;
2328
2329 return sctp_stop_t1_and_abort(commands, error, ECONNREFUSED, asoc,
2330 chunk->transport);
2331 }
2332
2333 /*
2334 * Process an incoming ICMP as an ABORT. (COOKIE-WAIT state)
2335 */
2336 sctp_disposition_t sctp_sf_cookie_wait_icmp_abort(const struct sctp_endpoint *ep,
2337 const struct sctp_association *asoc,
2338 const sctp_subtype_t type,
2339 void *arg,
2340 sctp_cmd_seq_t *commands)
2341 {
2342 return sctp_stop_t1_and_abort(commands, SCTP_ERROR_NO_ERROR,
2343 ENOPROTOOPT, asoc,
2344 (struct sctp_transport *)arg);
2345 }
2346
2347 /*
2348 * Process an ABORT. (COOKIE-ECHOED state)
2349 */
2350 sctp_disposition_t sctp_sf_cookie_echoed_abort(const struct sctp_endpoint *ep,
2351 const struct sctp_association *asoc,
2352 const sctp_subtype_t type,
2353 void *arg,
2354 sctp_cmd_seq_t *commands)
2355 {
2356 /* There is a single T1 timer, so we should be able to use
2357 * common function with the COOKIE-WAIT state.
2358 */
2359 return sctp_sf_cookie_wait_abort(ep, asoc, type, arg, commands);
2360 }
2361
2362 /*
2363 * Stop T1 timer and abort association with "INIT failed".
2364 *
2365 * This is common code called by several sctp_sf_*_abort() functions above.
2366 */
2367 static sctp_disposition_t sctp_stop_t1_and_abort(sctp_cmd_seq_t *commands,
2368 __be16 error, int sk_err,
2369 const struct sctp_association *asoc,
2370 struct sctp_transport *transport)
2371 {
2372 SCTP_DEBUG_PRINTK("ABORT received (INIT).\n");
2373 sctp_add_cmd_sf(commands, SCTP_CMD_NEW_STATE,
2374 SCTP_STATE(SCTP_STATE_CLOSED));
2375 SCTP_INC_STATS(SCTP_MIB_ABORTEDS);
2376 sctp_add_cmd_sf(commands, SCTP_CMD_TIMER_STOP,
2377 SCTP_TO(SCTP_EVENT_TIMEOUT_T1_INIT));
2378 sctp_add_cmd_sf(commands, SCTP_CMD_SET_SK_ERR, SCTP_ERROR(sk_err));
2379 /* CMD_INIT_FAILED will DELETE_TCB. */
2380 sctp_add_cmd_sf(commands, SCTP_CMD_INIT_FAILED,
2381 SCTP_PERR(error));
2382 return SCTP_DISPOSITION_ABORT;
2383 }
2384
2385 /*
2386 * sctp_sf_do_9_2_shut
2387 *
2388 * Section: 9.2
2389 * Upon the reception of the SHUTDOWN, the peer endpoint shall
2390 * - enter the SHUTDOWN-RECEIVED state,
2391 *
2392 * - stop accepting new data from its SCTP user
2393 *
2394 * - verify, by checking the Cumulative TSN Ack field of the chunk,
2395 * that all its outstanding DATA chunks have been received by the
2396 * SHUTDOWN sender.
2397 *
2398 * Once an endpoint as reached the SHUTDOWN-RECEIVED state it MUST NOT
2399 * send a SHUTDOWN in response to a ULP request. And should discard
2400 * subsequent SHUTDOWN chunks.
2401 *
2402 * If there are still outstanding DATA chunks left, the SHUTDOWN
2403 * receiver shall continue to follow normal data transmission
2404 * procedures defined in Section 6 until all outstanding DATA chunks
2405 * are acknowledged; however, the SHUTDOWN receiver MUST NOT accept
2406 * new data from its SCTP user.
2407 *
2408 * Verification Tag: 8.5 Verification Tag [Normal verification]
2409 *
2410 * Inputs
2411 * (endpoint, asoc, chunk)
2412 *
2413 * Outputs
2414 * (asoc, reply_msg, msg_up, timers, counters)
2415 *
2416 * The return value is the disposition of the chunk.
2417 */
2418 sctp_disposition_t sctp_sf_do_9_2_shutdown(const struct sctp_endpoint *ep,
2419 const struct sctp_association *asoc,
2420 const sctp_subtype_t type,
2421 void *arg,
2422 sctp_cmd_seq_t *commands)
2423 {
2424 struct sctp_chunk *chunk = arg;
2425 sctp_shutdownhdr_t *sdh;
2426 sctp_disposition_t disposition;
2427 struct sctp_ulpevent *ev;
2428
2429 if (!sctp_vtag_verify(chunk, asoc))
2430 return sctp_sf_pdiscard(ep, asoc, type, arg, commands);
2431
2432 /* Make sure that the SHUTDOWN chunk has a valid length. */
2433 if (!sctp_chunk_length_valid(chunk,
2434 sizeof(struct sctp_shutdown_chunk_t)))
2435 return sctp_sf_violation_chunklen(ep, asoc, type, arg,
2436 commands);
2437
2438 /* Convert the elaborate header. */
2439 sdh = (sctp_shutdownhdr_t *)chunk->skb->data;
2440 skb_pull(chunk->skb, sizeof(sctp_shutdownhdr_t));
2441 chunk->subh.shutdown_hdr = sdh;
2442
2443 /* API 5.3.1.5 SCTP_SHUTDOWN_EVENT
2444 * When a peer sends a SHUTDOWN, SCTP delivers this notification to
2445 * inform the application that it should cease sending data.
2446 */
2447 ev = sctp_ulpevent_make_shutdown_event(asoc, 0, GFP_ATOMIC);
2448 if (!ev) {
2449 disposition = SCTP_DISPOSITION_NOMEM;
2450 goto out;
2451 }
2452 sctp_add_cmd_sf(commands, SCTP_CMD_EVENT_ULP, SCTP_ULPEVENT(ev));
2453
2454 /* Upon the reception of the SHUTDOWN, the peer endpoint shall
2455 * - enter the SHUTDOWN-RECEIVED state,
2456 * - stop accepting new data from its SCTP user
2457 *
2458 * [This is implicit in the new state.]
2459 */
2460 sctp_add_cmd_sf(commands, SCTP_CMD_NEW_STATE,
2461 SCTP_STATE(SCTP_STATE_SHUTDOWN_RECEIVED));
2462 disposition = SCTP_DISPOSITION_CONSUME;
2463
2464 if (sctp_outq_is_empty(&asoc->outqueue)) {
2465 disposition = sctp_sf_do_9_2_shutdown_ack(ep, asoc, type,
2466 arg, commands);
2467 }
2468
2469 if (SCTP_DISPOSITION_NOMEM == disposition)
2470 goto out;
2471
2472 /* - verify, by checking the Cumulative TSN Ack field of the
2473 * chunk, that all its outstanding DATA chunks have been
2474 * received by the SHUTDOWN sender.
2475 */
2476 sctp_add_cmd_sf(commands, SCTP_CMD_PROCESS_CTSN,
2477 SCTP_BE32(chunk->subh.shutdown_hdr->cum_tsn_ack));
2478
2479 out:
2480 return disposition;
2481 }
2482
2483 /* RFC 2960 9.2
2484 * If an endpoint is in SHUTDOWN-ACK-SENT state and receives an INIT chunk
2485 * (e.g., if the SHUTDOWN COMPLETE was lost) with source and destination
2486 * transport addresses (either in the IP addresses or in the INIT chunk)
2487 * that belong to this association, it should discard the INIT chunk and
2488 * retransmit the SHUTDOWN ACK chunk.
2489 */
2490 sctp_disposition_t sctp_sf_do_9_2_reshutack(const struct sctp_endpoint *ep,
2491 const struct sctp_association *asoc,
2492 const sctp_subtype_t type,
2493 void *arg,
2494 sctp_cmd_seq_t *commands)
2495 {
2496 struct sctp_chunk *chunk = (struct sctp_chunk *) arg;
2497 struct sctp_chunk *reply;
2498
2499 /* Since we are not going to really process this INIT, there
2500 * is no point in verifying chunk boundries. Just generate
2501 * the SHUTDOWN ACK.
2502 */
2503 reply = sctp_make_shutdown_ack(asoc, chunk);
2504 if (NULL == reply)
2505 goto nomem;
2506
2507 /* Set the transport for the SHUTDOWN ACK chunk and the timeout for
2508 * the T2-SHUTDOWN timer.
2509 */
2510 sctp_add_cmd_sf(commands, SCTP_CMD_SETUP_T2, SCTP_CHUNK(reply));
2511
2512 /* and restart the T2-shutdown timer. */
2513 sctp_add_cmd_sf(commands, SCTP_CMD_TIMER_RESTART,
2514 SCTP_TO(SCTP_EVENT_TIMEOUT_T2_SHUTDOWN));
2515
2516 sctp_add_cmd_sf(commands, SCTP_CMD_REPLY, SCTP_CHUNK(reply));
2517
2518 return SCTP_DISPOSITION_CONSUME;
2519 nomem:
2520 return SCTP_DISPOSITION_NOMEM;
2521 }
2522
2523 /*
2524 * sctp_sf_do_ecn_cwr
2525 *
2526 * Section: Appendix A: Explicit Congestion Notification
2527 *
2528 * CWR:
2529 *
2530 * RFC 2481 details a specific bit for a sender to send in the header of
2531 * its next outbound TCP segment to indicate to its peer that it has
2532 * reduced its congestion window. This is termed the CWR bit. For
2533 * SCTP the same indication is made by including the CWR chunk.
2534 * This chunk contains one data element, i.e. the TSN number that
2535 * was sent in the ECNE chunk. This element represents the lowest
2536 * TSN number in the datagram that was originally marked with the
2537 * CE bit.
2538 *
2539 * Verification Tag: 8.5 Verification Tag [Normal verification]
2540 * Inputs
2541 * (endpoint, asoc, chunk)
2542 *
2543 * Outputs
2544 * (asoc, reply_msg, msg_up, timers, counters)
2545 *
2546 * The return value is the disposition of the chunk.
2547 */
2548 sctp_disposition_t sctp_sf_do_ecn_cwr(const struct sctp_endpoint *ep,
2549 const struct sctp_association *asoc,
2550 const sctp_subtype_t type,
2551 void *arg,
2552 sctp_cmd_seq_t *commands)
2553 {
2554 sctp_cwrhdr_t *cwr;
2555 struct sctp_chunk *chunk = arg;
2556 u32 lowest_tsn;
2557
2558 if (!sctp_vtag_verify(chunk, asoc))
2559 return sctp_sf_pdiscard(ep, asoc, type, arg, commands);
2560
2561 if (!sctp_chunk_length_valid(chunk, sizeof(sctp_ecne_chunk_t)))
2562 return sctp_sf_violation_chunklen(ep, asoc, type, arg,
2563 commands);
2564
2565 cwr = (sctp_cwrhdr_t *) chunk->skb->data;
2566 skb_pull(chunk->skb, sizeof(sctp_cwrhdr_t));
2567
2568 lowest_tsn = ntohl(cwr->lowest_tsn);
2569
2570 /* Does this CWR ack the last sent congestion notification? */
2571 if (TSN_lte(asoc->last_ecne_tsn, lowest_tsn)) {
2572 /* Stop sending ECNE. */
2573 sctp_add_cmd_sf(commands,
2574 SCTP_CMD_ECN_CWR,
2575 SCTP_U32(lowest_tsn));
2576 }
2577 return SCTP_DISPOSITION_CONSUME;
2578 }
2579
2580 /*
2581 * sctp_sf_do_ecne
2582 *
2583 * Section: Appendix A: Explicit Congestion Notification
2584 *
2585 * ECN-Echo
2586 *
2587 * RFC 2481 details a specific bit for a receiver to send back in its
2588 * TCP acknowledgements to notify the sender of the Congestion
2589 * Experienced (CE) bit having arrived from the network. For SCTP this
2590 * same indication is made by including the ECNE chunk. This chunk
2591 * contains one data element, i.e. the lowest TSN associated with the IP
2592 * datagram marked with the CE bit.....
2593 *
2594 * Verification Tag: 8.5 Verification Tag [Normal verification]
2595 * Inputs
2596 * (endpoint, asoc, chunk)
2597 *
2598 * Outputs
2599 * (asoc, reply_msg, msg_up, timers, counters)
2600 *
2601 * The return value is the disposition of the chunk.
2602 */
2603 sctp_disposition_t sctp_sf_do_ecne(const struct sctp_endpoint *ep,
2604 const struct sctp_association *asoc,
2605 const sctp_subtype_t type,
2606 void *arg,
2607 sctp_cmd_seq_t *commands)
2608 {
2609 sctp_ecnehdr_t *ecne;
2610 struct sctp_chunk *chunk = arg;
2611
2612 if (!sctp_vtag_verify(chunk, asoc))
2613 return sctp_sf_pdiscard(ep, asoc, type, arg, commands);
2614
2615 if (!sctp_chunk_length_valid(chunk, sizeof(sctp_ecne_chunk_t)))
2616 return sctp_sf_violation_chunklen(ep, asoc, type, arg,
2617 commands);
2618
2619 ecne = (sctp_ecnehdr_t *) chunk->skb->data;
2620 skb_pull(chunk->skb, sizeof(sctp_ecnehdr_t));
2621
2622 /* If this is a newer ECNE than the last CWR packet we sent out */
2623 sctp_add_cmd_sf(commands, SCTP_CMD_ECN_ECNE,
2624 SCTP_U32(ntohl(ecne->lowest_tsn)));
2625
2626 return SCTP_DISPOSITION_CONSUME;
2627 }
2628
2629 /*
2630 * Section: 6.2 Acknowledgement on Reception of DATA Chunks
2631 *
2632 * The SCTP endpoint MUST always acknowledge the reception of each valid
2633 * DATA chunk.
2634 *
2635 * The guidelines on delayed acknowledgement algorithm specified in
2636 * Section 4.2 of [RFC2581] SHOULD be followed. Specifically, an
2637 * acknowledgement SHOULD be generated for at least every second packet
2638 * (not every second DATA chunk) received, and SHOULD be generated within
2639 * 200 ms of the arrival of any unacknowledged DATA chunk. In some
2640 * situations it may be beneficial for an SCTP transmitter to be more
2641 * conservative than the algorithms detailed in this document allow.
2642 * However, an SCTP transmitter MUST NOT be more aggressive than the
2643 * following algorithms allow.
2644 *
2645 * A SCTP receiver MUST NOT generate more than one SACK for every
2646 * incoming packet, other than to update the offered window as the
2647 * receiving application consumes new data.
2648 *
2649 * Verification Tag: 8.5 Verification Tag [Normal verification]
2650 *
2651 * Inputs
2652 * (endpoint, asoc, chunk)
2653 *
2654 * Outputs
2655 * (asoc, reply_msg, msg_up, timers, counters)
2656 *
2657 * The return value is the disposition of the chunk.
2658 */
2659 sctp_disposition_t sctp_sf_eat_data_6_2(const struct sctp_endpoint *ep,
2660 const struct sctp_association *asoc,
2661 const sctp_subtype_t type,
2662 void *arg,
2663 sctp_cmd_seq_t *commands)
2664 {
2665 struct sctp_chunk *chunk = arg;
2666 int error;
2667
2668 if (!sctp_vtag_verify(chunk, asoc)) {
2669 sctp_add_cmd_sf(commands, SCTP_CMD_REPORT_BAD_TAG,
2670 SCTP_NULL());
2671 return sctp_sf_pdiscard(ep, asoc, type, arg, commands);
2672 }
2673
2674 if (!sctp_chunk_length_valid(chunk, sizeof(sctp_data_chunk_t)))
2675 return sctp_sf_violation_chunklen(ep, asoc, type, arg,
2676 commands);
2677
2678 error = sctp_eat_data(asoc, chunk, commands );
2679 switch (error) {
2680 case SCTP_IERROR_NO_ERROR:
2681 break;
2682 case SCTP_IERROR_HIGH_TSN:
2683 case SCTP_IERROR_BAD_STREAM:
2684 SCTP_INC_STATS(SCTP_MIB_IN_DATA_CHUNK_DISCARDS);
2685 goto discard_noforce;
2686 case SCTP_IERROR_DUP_TSN:
2687 case SCTP_IERROR_IGNORE_TSN:
2688 SCTP_INC_STATS(SCTP_MIB_IN_DATA_CHUNK_DISCARDS);
2689 goto discard_force;
2690 case SCTP_IERROR_NO_DATA:
2691 goto consume;
2692 default:
2693 BUG();
2694 }
2695
2696 if (asoc->autoclose) {
2697 sctp_add_cmd_sf(commands, SCTP_CMD_TIMER_RESTART,
2698 SCTP_TO(SCTP_EVENT_TIMEOUT_AUTOCLOSE));
2699 }
2700
2701 /* If this is the last chunk in a packet, we need to count it
2702 * toward sack generation. Note that we need to SACK every
2703 * OTHER packet containing data chunks, EVEN IF WE DISCARD
2704 * THEM. We elect to NOT generate SACK's if the chunk fails
2705 * the verification tag test.
2706 *
2707 * RFC 2960 6.2 Acknowledgement on Reception of DATA Chunks
2708 *
2709 * The SCTP endpoint MUST always acknowledge the reception of
2710 * each valid DATA chunk.
2711 *
2712 * The guidelines on delayed acknowledgement algorithm
2713 * specified in Section 4.2 of [RFC2581] SHOULD be followed.
2714 * Specifically, an acknowledgement SHOULD be generated for at
2715 * least every second packet (not every second DATA chunk)
2716 * received, and SHOULD be generated within 200 ms of the
2717 * arrival of any unacknowledged DATA chunk. In some
2718 * situations it may be beneficial for an SCTP transmitter to
2719 * be more conservative than the algorithms detailed in this
2720 * document allow. However, an SCTP transmitter MUST NOT be
2721 * more aggressive than the following algorithms allow.
2722 */
2723 if (chunk->end_of_packet)
2724 sctp_add_cmd_sf(commands, SCTP_CMD_GEN_SACK, SCTP_NOFORCE());
2725
2726 return SCTP_DISPOSITION_CONSUME;
2727
2728 discard_force:
2729 /* RFC 2960 6.2 Acknowledgement on Reception of DATA Chunks
2730 *
2731 * When a packet arrives with duplicate DATA chunk(s) and with
2732 * no new DATA chunk(s), the endpoint MUST immediately send a
2733 * SACK with no delay. If a packet arrives with duplicate
2734 * DATA chunk(s) bundled with new DATA chunks, the endpoint
2735 * MAY immediately send a SACK. Normally receipt of duplicate
2736 * DATA chunks will occur when the original SACK chunk was lost
2737 * and the peer's RTO has expired. The duplicate TSN number(s)
2738 * SHOULD be reported in the SACK as duplicate.
2739 */
2740 /* In our case, we split the MAY SACK advice up whether or not
2741 * the last chunk is a duplicate.'
2742 */
2743 if (chunk->end_of_packet)
2744 sctp_add_cmd_sf(commands, SCTP_CMD_GEN_SACK, SCTP_FORCE());
2745 return SCTP_DISPOSITION_DISCARD;
2746
2747 discard_noforce:
2748 if (chunk->end_of_packet)
2749 sctp_add_cmd_sf(commands, SCTP_CMD_GEN_SACK, SCTP_NOFORCE());
2750
2751 return SCTP_DISPOSITION_DISCARD;
2752 consume:
2753 return SCTP_DISPOSITION_CONSUME;
2754
2755 }
2756
2757 /*
2758 * sctp_sf_eat_data_fast_4_4
2759 *
2760 * Section: 4 (4)
2761 * (4) In SHUTDOWN-SENT state the endpoint MUST acknowledge any received
2762 * DATA chunks without delay.
2763 *
2764 * Verification Tag: 8.5 Verification Tag [Normal verification]
2765 * Inputs
2766 * (endpoint, asoc, chunk)
2767 *
2768 * Outputs
2769 * (asoc, reply_msg, msg_up, timers, counters)
2770 *
2771 * The return value is the disposition of the chunk.
2772 */
2773 sctp_disposition_t sctp_sf_eat_data_fast_4_4(const struct sctp_endpoint *ep,
2774 const struct sctp_association *asoc,
2775 const sctp_subtype_t type,
2776 void *arg,
2777 sctp_cmd_seq_t *commands)
2778 {
2779 struct sctp_chunk *chunk = arg;
2780 int error;
2781
2782 if (!sctp_vtag_verify(chunk, asoc)) {
2783 sctp_add_cmd_sf(commands, SCTP_CMD_REPORT_BAD_TAG,
2784 SCTP_NULL());
2785 return sctp_sf_pdiscard(ep, asoc, type, arg, commands);
2786 }
2787
2788 if (!sctp_chunk_length_valid(chunk, sizeof(sctp_data_chunk_t)))
2789 return sctp_sf_violation_chunklen(ep, asoc, type, arg,
2790 commands);
2791
2792 error = sctp_eat_data(asoc, chunk, commands );
2793 switch (error) {
2794 case SCTP_IERROR_NO_ERROR:
2795 case SCTP_IERROR_HIGH_TSN:
2796 case SCTP_IERROR_DUP_TSN:
2797 case SCTP_IERROR_IGNORE_TSN:
2798 case SCTP_IERROR_BAD_STREAM:
2799 break;
2800 case SCTP_IERROR_NO_DATA:
2801 goto consume;
2802 default:
2803 BUG();
2804 }
2805
2806 /* Go a head and force a SACK, since we are shutting down. */
2807
2808 /* Implementor's Guide.
2809 *
2810 * While in SHUTDOWN-SENT state, the SHUTDOWN sender MUST immediately
2811 * respond to each received packet containing one or more DATA chunk(s)
2812 * with a SACK, a SHUTDOWN chunk, and restart the T2-shutdown timer
2813 */
2814 if (chunk->end_of_packet) {
2815 /* We must delay the chunk creation since the cumulative
2816 * TSN has not been updated yet.
2817 */
2818 sctp_add_cmd_sf(commands, SCTP_CMD_GEN_SHUTDOWN, SCTP_NULL());
2819 sctp_add_cmd_sf(commands, SCTP_CMD_GEN_SACK, SCTP_FORCE());
2820 sctp_add_cmd_sf(commands, SCTP_CMD_TIMER_RESTART,
2821 SCTP_TO(SCTP_EVENT_TIMEOUT_T2_SHUTDOWN));
2822 }
2823
2824 consume:
2825 return SCTP_DISPOSITION_CONSUME;
2826 }
2827
2828 /*
2829 * Section: 6.2 Processing a Received SACK
2830 * D) Any time a SACK arrives, the endpoint performs the following:
2831 *
2832 * i) If Cumulative TSN Ack is less than the Cumulative TSN Ack Point,
2833 * then drop the SACK. Since Cumulative TSN Ack is monotonically
2834 * increasing, a SACK whose Cumulative TSN Ack is less than the
2835 * Cumulative TSN Ack Point indicates an out-of-order SACK.
2836 *
2837 * ii) Set rwnd equal to the newly received a_rwnd minus the number
2838 * of bytes still outstanding after processing the Cumulative TSN Ack
2839 * and the Gap Ack Blocks.
2840 *
2841 * iii) If the SACK is missing a TSN that was previously
2842 * acknowledged via a Gap Ack Block (e.g., the data receiver
2843 * reneged on the data), then mark the corresponding DATA chunk
2844 * as available for retransmit: Mark it as missing for fast
2845 * retransmit as described in Section 7.2.4 and if no retransmit
2846 * timer is running for the destination address to which the DATA
2847 * chunk was originally transmitted, then T3-rtx is started for
2848 * that destination address.
2849 *
2850 * Verification Tag: 8.5 Verification Tag [Normal verification]
2851 *
2852 * Inputs
2853 * (endpoint, asoc, chunk)
2854 *
2855 * Outputs
2856 * (asoc, reply_msg, msg_up, timers, counters)
2857 *
2858 * The return value is the disposition of the chunk.
2859 */
2860 sctp_disposition_t sctp_sf_eat_sack_6_2(const struct sctp_endpoint *ep,
2861 const struct sctp_association *asoc,
2862 const sctp_subtype_t type,
2863 void *arg,
2864 sctp_cmd_seq_t *commands)
2865 {
2866 struct sctp_chunk *chunk = arg;
2867 sctp_sackhdr_t *sackh;
2868 __u32 ctsn;
2869
2870 if (!sctp_vtag_verify(chunk, asoc))
2871 return sctp_sf_pdiscard(ep, asoc, type, arg, commands);
2872
2873 /* Make sure that the SACK chunk has a valid length. */
2874 if (!sctp_chunk_length_valid(chunk, sizeof(sctp_sack_chunk_t)))
2875 return sctp_sf_violation_chunklen(ep, asoc, type, arg,
2876 commands);
2877
2878 /* Pull the SACK chunk from the data buffer */
2879 sackh = sctp_sm_pull_sack(chunk);
2880 /* Was this a bogus SACK? */
2881 if (!sackh)
2882 return sctp_sf_pdiscard(ep, asoc, type, arg, commands);
2883 chunk->subh.sack_hdr = sackh;
2884 ctsn = ntohl(sackh->cum_tsn_ack);
2885
2886 /* i) If Cumulative TSN Ack is less than the Cumulative TSN
2887 * Ack Point, then drop the SACK. Since Cumulative TSN
2888 * Ack is monotonically increasing, a SACK whose
2889 * Cumulative TSN Ack is less than the Cumulative TSN Ack
2890 * Point indicates an out-of-order SACK.
2891 */
2892 if (TSN_lt(ctsn, asoc->ctsn_ack_point)) {
2893 SCTP_DEBUG_PRINTK("ctsn %x\n", ctsn);
2894 SCTP_DEBUG_PRINTK("ctsn_ack_point %x\n", asoc->ctsn_ack_point);
2895 return SCTP_DISPOSITION_DISCARD;
2896 }
2897
2898 /* If Cumulative TSN Ack beyond the max tsn currently
2899 * send, terminating the association and respond to the
2900 * sender with an ABORT.
2901 */
2902 if (!TSN_lt(ctsn, asoc->next_tsn))
2903 return sctp_sf_violation_ctsn(ep, asoc, type, arg, commands);
2904
2905 /* Return this SACK for further processing. */
2906 sctp_add_cmd_sf(commands, SCTP_CMD_PROCESS_SACK, SCTP_SACKH(sackh));
2907
2908 /* Note: We do the rest of the work on the PROCESS_SACK
2909 * sideeffect.
2910 */
2911 return SCTP_DISPOSITION_CONSUME;
2912 }
2913
2914 /*
2915 * Generate an ABORT in response to a packet.
2916 *
2917 * Section: 8.4 Handle "Out of the blue" Packets, sctpimpguide 2.41
2918 *
2919 * 8) The receiver should respond to the sender of the OOTB packet with
2920 * an ABORT. When sending the ABORT, the receiver of the OOTB packet
2921 * MUST fill in the Verification Tag field of the outbound packet
2922 * with the value found in the Verification Tag field of the OOTB
2923 * packet and set the T-bit in the Chunk Flags to indicate that the
2924 * Verification Tag is reflected. After sending this ABORT, the
2925 * receiver of the OOTB packet shall discard the OOTB packet and take
2926 * no further action.
2927 *
2928 * Verification Tag:
2929 *
2930 * The return value is the disposition of the chunk.
2931 */
2932 sctp_disposition_t sctp_sf_tabort_8_4_8(const struct sctp_endpoint *ep,
2933 const struct sctp_association *asoc,
2934 const sctp_subtype_t type,
2935 void *arg,
2936 sctp_cmd_seq_t *commands)
2937 {
2938 struct sctp_packet *packet = NULL;
2939 struct sctp_chunk *chunk = arg;
2940 struct sctp_chunk *abort;
2941
2942 packet = sctp_ootb_pkt_new(asoc, chunk);
2943
2944 if (packet) {
2945 /* Make an ABORT. The T bit will be set if the asoc
2946 * is NULL.
2947 */
2948 abort = sctp_make_abort(asoc, chunk, 0);
2949 if (!abort) {
2950 sctp_ootb_pkt_free(packet);
2951 return SCTP_DISPOSITION_NOMEM;
2952 }
2953
2954 /* Reflect vtag if T-Bit is set */
2955 if (sctp_test_T_bit(abort))
2956 packet->vtag = ntohl(chunk->sctp_hdr->vtag);
2957
2958 /* Set the skb to the belonging sock for accounting. */
2959 abort->skb->sk = ep->base.sk;
2960
2961 sctp_packet_append_chunk(packet, abort);
2962
2963 sctp_add_cmd_sf(commands, SCTP_CMD_SEND_PKT,
2964 SCTP_PACKET(packet));
2965
2966 SCTP_INC_STATS(SCTP_MIB_OUTCTRLCHUNKS);
2967
2968 sctp_sf_pdiscard(ep, asoc, type, arg, commands);
2969 return SCTP_DISPOSITION_CONSUME;
2970 }
2971
2972 return SCTP_DISPOSITION_NOMEM;
2973 }
2974
2975 /*
2976 * Received an ERROR chunk from peer. Generate SCTP_REMOTE_ERROR
2977 * event as ULP notification for each cause included in the chunk.
2978 *
2979 * API 5.3.1.3 - SCTP_REMOTE_ERROR
2980 *
2981 * The return value is the disposition of the chunk.
2982 */
2983 sctp_disposition_t sctp_sf_operr_notify(const struct sctp_endpoint *ep,
2984 const struct sctp_association *asoc,
2985 const sctp_subtype_t type,
2986 void *arg,
2987 sctp_cmd_seq_t *commands)
2988 {
2989 struct sctp_chunk *chunk = arg;
2990 struct sctp_ulpevent *ev;
2991
2992 if (!sctp_vtag_verify(chunk, asoc))
2993 return sctp_sf_pdiscard(ep, asoc, type, arg, commands);
2994
2995 /* Make sure that the ERROR chunk has a valid length. */
2996 if (!sctp_chunk_length_valid(chunk, sizeof(sctp_operr_chunk_t)))
2997 return sctp_sf_violation_chunklen(ep, asoc, type, arg,
2998 commands);
2999
3000 while (chunk->chunk_end > chunk->skb->data) {
3001 ev = sctp_ulpevent_make_remote_error(asoc, chunk, 0,
3002 GFP_ATOMIC);
3003 if (!ev)
3004 goto nomem;
3005
3006 if (!sctp_add_cmd(commands, SCTP_CMD_EVENT_ULP,
3007 SCTP_ULPEVENT(ev))) {
3008 sctp_ulpevent_free(ev);
3009 goto nomem;
3010 }
3011
3012 sctp_add_cmd_sf(commands, SCTP_CMD_PROCESS_OPERR,
3013 SCTP_CHUNK(chunk));
3014 }
3015 return SCTP_DISPOSITION_CONSUME;
3016
3017 nomem:
3018 return SCTP_DISPOSITION_NOMEM;
3019 }
3020
3021 /*
3022 * Process an inbound SHUTDOWN ACK.
3023 *
3024 * From Section 9.2:
3025 * Upon the receipt of the SHUTDOWN ACK, the SHUTDOWN sender shall
3026 * stop the T2-shutdown timer, send a SHUTDOWN COMPLETE chunk to its
3027 * peer, and remove all record of the association.
3028 *
3029 * The return value is the disposition.
3030 */
3031 sctp_disposition_t sctp_sf_do_9_2_final(const struct sctp_endpoint *ep,
3032 const struct sctp_association *asoc,
3033 const sctp_subtype_t type,
3034 void *arg,
3035 sctp_cmd_seq_t *commands)
3036 {
3037 struct sctp_chunk *chunk = arg;
3038 struct sctp_chunk *reply;
3039 struct sctp_ulpevent *ev;
3040
3041 if (!sctp_vtag_verify(chunk, asoc))
3042 return sctp_sf_pdiscard(ep, asoc, type, arg, commands);
3043
3044 /* Make sure that the SHUTDOWN_ACK chunk has a valid length. */
3045 if (!sctp_chunk_length_valid(chunk, sizeof(sctp_chunkhdr_t)))
3046 return sctp_sf_violation_chunklen(ep, asoc, type, arg,
3047 commands);
3048 /* 10.2 H) SHUTDOWN COMPLETE notification
3049 *
3050 * When SCTP completes the shutdown procedures (section 9.2) this
3051 * notification is passed to the upper layer.
3052 */
3053 ev = sctp_ulpevent_make_assoc_change(asoc, 0, SCTP_SHUTDOWN_COMP,
3054 0, 0, 0, NULL, GFP_ATOMIC);
3055 if (!ev)
3056 goto nomem;
3057
3058 /* ...send a SHUTDOWN COMPLETE chunk to its peer, */
3059 reply = sctp_make_shutdown_complete(asoc, chunk);
3060 if (!reply)
3061 goto nomem_chunk;
3062
3063 /* Do all the commands now (after allocation), so that we
3064 * have consistent state if memory allocation failes
3065 */
3066 sctp_add_cmd_sf(commands, SCTP_CMD_EVENT_ULP, SCTP_ULPEVENT(ev));
3067
3068 /* Upon the receipt of the SHUTDOWN ACK, the SHUTDOWN sender shall
3069 * stop the T2-shutdown timer,
3070 */
3071 sctp_add_cmd_sf(commands, SCTP_CMD_TIMER_STOP,
3072 SCTP_TO(SCTP_EVENT_TIMEOUT_T2_SHUTDOWN));
3073
3074 sctp_add_cmd_sf(commands, SCTP_CMD_TIMER_STOP,
3075 SCTP_TO(SCTP_EVENT_TIMEOUT_T5_SHUTDOWN_GUARD));
3076
3077 sctp_add_cmd_sf(commands, SCTP_CMD_NEW_STATE,
3078 SCTP_STATE(SCTP_STATE_CLOSED));
3079 SCTP_INC_STATS(SCTP_MIB_SHUTDOWNS);
3080 SCTP_DEC_STATS(SCTP_MIB_CURRESTAB);
3081 sctp_add_cmd_sf(commands, SCTP_CMD_REPLY, SCTP_CHUNK(reply));
3082
3083 /* ...and remove all record of the association. */
3084 sctp_add_cmd_sf(commands, SCTP_CMD_DELETE_TCB, SCTP_NULL());
3085 return SCTP_DISPOSITION_DELETE_TCB;
3086
3087 nomem_chunk:
3088 sctp_ulpevent_free(ev);
3089 nomem:
3090 return SCTP_DISPOSITION_NOMEM;
3091 }
3092
3093 /*
3094 * RFC 2960, 8.4 - Handle "Out of the blue" Packets, sctpimpguide 2.41.
3095 *
3096 * 5) If the packet contains a SHUTDOWN ACK chunk, the receiver should
3097 * respond to the sender of the OOTB packet with a SHUTDOWN COMPLETE.
3098 * When sending the SHUTDOWN COMPLETE, the receiver of the OOTB
3099 * packet must fill in the Verification Tag field of the outbound
3100 * packet with the Verification Tag received in the SHUTDOWN ACK and
3101 * set the T-bit in the Chunk Flags to indicate that the Verification
3102 * Tag is reflected.
3103 *
3104 * 8) The receiver should respond to the sender of the OOTB packet with
3105 * an ABORT. When sending the ABORT, the receiver of the OOTB packet
3106 * MUST fill in the Verification Tag field of the outbound packet
3107 * with the value found in the Verification Tag field of the OOTB
3108 * packet and set the T-bit in the Chunk Flags to indicate that the
3109 * Verification Tag is reflected. After sending this ABORT, the
3110 * receiver of the OOTB packet shall discard the OOTB packet and take
3111 * no further action.
3112 */
3113 sctp_disposition_t sctp_sf_ootb(const struct sctp_endpoint *ep,
3114 const struct sctp_association *asoc,
3115 const sctp_subtype_t type,
3116 void *arg,
3117 sctp_cmd_seq_t *commands)
3118 {
3119 struct sctp_chunk *chunk = arg;
3120 struct sk_buff *skb = chunk->skb;
3121 sctp_chunkhdr_t *ch;
3122 __u8 *ch_end;
3123 int ootb_shut_ack = 0;
3124
3125 SCTP_INC_STATS(SCTP_MIB_OUTOFBLUES);
3126
3127 ch = (sctp_chunkhdr_t *) chunk->chunk_hdr;
3128 do {
3129 /* Break out if chunk length is less then minimal. */
3130 if (ntohs(ch->length) < sizeof(sctp_chunkhdr_t))
3131 break;
3132
3133 ch_end = ((__u8 *)ch) + WORD_ROUND(ntohs(ch->length));
3134 if (ch_end > skb_tail_pointer(skb))
3135 break;
3136
3137 if (SCTP_CID_SHUTDOWN_ACK == ch->type)
3138 ootb_shut_ack = 1;
3139
3140 /* RFC 2960, Section 3.3.7
3141 * Moreover, under any circumstances, an endpoint that
3142 * receives an ABORT MUST NOT respond to that ABORT by
3143 * sending an ABORT of its own.
3144 */
3145 if (SCTP_CID_ABORT == ch->type)
3146 return sctp_sf_pdiscard(ep, asoc, type, arg, commands);
3147
3148 ch = (sctp_chunkhdr_t *) ch_end;
3149 } while (ch_end < skb_tail_pointer(skb));
3150
3151 if (ootb_shut_ack)
3152 return sctp_sf_shut_8_4_5(ep, asoc, type, arg, commands);
3153 else
3154 return sctp_sf_tabort_8_4_8(ep, asoc, type, arg, commands);
3155 }
3156
3157 /*
3158 * Handle an "Out of the blue" SHUTDOWN ACK.
3159 *
3160 * Section: 8.4 5, sctpimpguide 2.41.
3161 *
3162 * 5) If the packet contains a SHUTDOWN ACK chunk, the receiver should
3163 * respond to the sender of the OOTB packet with a SHUTDOWN COMPLETE.
3164 * When sending the SHUTDOWN COMPLETE, the receiver of the OOTB
3165 * packet must fill in the Verification Tag field of the outbound
3166 * packet with the Verification Tag received in the SHUTDOWN ACK and
3167 * set the T-bit in the Chunk Flags to indicate that the Verification
3168 * Tag is reflected.
3169 *
3170 * Inputs
3171 * (endpoint, asoc, type, arg, commands)
3172 *
3173 * Outputs
3174 * (sctp_disposition_t)
3175 *
3176 * The return value is the disposition of the chunk.
3177 */
3178 static sctp_disposition_t sctp_sf_shut_8_4_5(const struct sctp_endpoint *ep,
3179 const struct sctp_association *asoc,
3180 const sctp_subtype_t type,
3181 void *arg,
3182 sctp_cmd_seq_t *commands)
3183 {
3184 struct sctp_packet *packet = NULL;
3185 struct sctp_chunk *chunk = arg;
3186 struct sctp_chunk *shut;
3187
3188 packet = sctp_ootb_pkt_new(asoc, chunk);
3189
3190 if (packet) {
3191 /* Make an SHUTDOWN_COMPLETE.
3192 * The T bit will be set if the asoc is NULL.
3193 */
3194 shut = sctp_make_shutdown_complete(asoc, chunk);
3195 if (!shut) {
3196 sctp_ootb_pkt_free(packet);
3197 return SCTP_DISPOSITION_NOMEM;
3198 }
3199
3200 /* Reflect vtag if T-Bit is set */
3201 if (sctp_test_T_bit(shut))
3202 packet->vtag = ntohl(chunk->sctp_hdr->vtag);
3203
3204 /* Set the skb to the belonging sock for accounting. */
3205 shut->skb->sk = ep->base.sk;
3206
3207 sctp_packet_append_chunk(packet, shut);
3208
3209 sctp_add_cmd_sf(commands, SCTP_CMD_SEND_PKT,
3210 SCTP_PACKET(packet));
3211
3212 SCTP_INC_STATS(SCTP_MIB_OUTCTRLCHUNKS);
3213
3214 /* If the chunk length is invalid, we don't want to process
3215 * the reset of the packet.
3216 */
3217 if (!sctp_chunk_length_valid(chunk, sizeof(sctp_chunkhdr_t)))
3218 return sctp_sf_pdiscard(ep, asoc, type, arg, commands);
3219
3220 /* We need to discard the rest of the packet to prevent
3221 * potential bomming attacks from additional bundled chunks.
3222 * This is documented in SCTP Threats ID.
3223 */
3224 return sctp_sf_pdiscard(ep, asoc, type, arg, commands);
3225 }
3226
3227 return SCTP_DISPOSITION_NOMEM;
3228 }
3229
3230 /*
3231 * Handle SHUTDOWN ACK in COOKIE_ECHOED or COOKIE_WAIT state.
3232 *
3233 * Verification Tag: 8.5.1 E) Rules for packet carrying a SHUTDOWN ACK
3234 * If the receiver is in COOKIE-ECHOED or COOKIE-WAIT state the
3235 * procedures in section 8.4 SHOULD be followed, in other words it
3236 * should be treated as an Out Of The Blue packet.
3237 * [This means that we do NOT check the Verification Tag on these
3238 * chunks. --piggy ]
3239 *
3240 */
3241 sctp_disposition_t sctp_sf_do_8_5_1_E_sa(const struct sctp_endpoint *ep,
3242 const struct sctp_association *asoc,
3243 const sctp_subtype_t type,
3244 void *arg,
3245 sctp_cmd_seq_t *commands)
3246 {
3247 /* Although we do have an association in this case, it corresponds
3248 * to a restarted association. So the packet is treated as an OOTB
3249 * packet and the state function that handles OOTB SHUTDOWN_ACK is
3250 * called with a NULL association.
3251 */
3252 return sctp_sf_shut_8_4_5(ep, NULL, type, arg, commands);
3253 }
3254
3255 /* ADDIP Section 4.2 Upon reception of an ASCONF Chunk. */
3256 sctp_disposition_t sctp_sf_do_asconf(const struct sctp_endpoint *ep,
3257 const struct sctp_association *asoc,
3258 const sctp_subtype_t type, void *arg,
3259 sctp_cmd_seq_t *commands)
3260 {
3261 struct sctp_chunk *chunk = arg;
3262 struct sctp_chunk *asconf_ack = NULL;
3263 sctp_addiphdr_t *hdr;
3264 __u32 serial;
3265
3266 if (!sctp_vtag_verify(chunk, asoc)) {
3267 sctp_add_cmd_sf(commands, SCTP_CMD_REPORT_BAD_TAG,
3268 SCTP_NULL());
3269 return sctp_sf_pdiscard(ep, asoc, type, arg, commands);
3270 }
3271
3272 /* Make sure that the ASCONF ADDIP chunk has a valid length. */
3273 if (!sctp_chunk_length_valid(chunk, sizeof(sctp_addip_chunk_t)))
3274 return sctp_sf_violation_chunklen(ep, asoc, type, arg,
3275 commands);
3276
3277 hdr = (sctp_addiphdr_t *)chunk->skb->data;
3278 serial = ntohl(hdr->serial);
3279
3280 /* ADDIP 4.2 C1) Compare the value of the serial number to the value
3281 * the endpoint stored in a new association variable
3282 * 'Peer-Serial-Number'.
3283 */
3284 if (serial == asoc->peer.addip_serial + 1) {
3285 /* ADDIP 4.2 C2) If the value found in the serial number is
3286 * equal to the ('Peer-Serial-Number' + 1), the endpoint MUST
3287 * do V1-V5.
3288 */
3289 asconf_ack = sctp_process_asconf((struct sctp_association *)
3290 asoc, chunk);
3291 if (!asconf_ack)
3292 return SCTP_DISPOSITION_NOMEM;
3293 } else if (serial == asoc->peer.addip_serial) {
3294 /* ADDIP 4.2 C3) If the value found in the serial number is
3295 * equal to the value stored in the 'Peer-Serial-Number'
3296 * IMPLEMENTATION NOTE: As an optimization a receiver may wish
3297 * to save the last ASCONF-ACK for some predetermined period of
3298 * time and instead of re-processing the ASCONF (with the same
3299 * serial number) it may just re-transmit the ASCONF-ACK.
3300 */
3301 if (asoc->addip_last_asconf_ack)
3302 asconf_ack = asoc->addip_last_asconf_ack;
3303 else
3304 return SCTP_DISPOSITION_DISCARD;
3305 } else {
3306 /* ADDIP 4.2 C4) Otherwise, the ASCONF Chunk is discarded since
3307 * it must be either a stale packet or from an attacker.
3308 */
3309 return SCTP_DISPOSITION_DISCARD;
3310 }
3311
3312 /* ADDIP 4.2 C5) In both cases C2 and C3 the ASCONF-ACK MUST be sent
3313 * back to the source address contained in the IP header of the ASCONF
3314 * being responded to.
3315 */
3316 sctp_add_cmd_sf(commands, SCTP_CMD_REPLY, SCTP_CHUNK(asconf_ack));
3317
3318 return SCTP_DISPOSITION_CONSUME;
3319 }
3320
3321 /*
3322 * ADDIP Section 4.3 General rules for address manipulation
3323 * When building TLV parameters for the ASCONF Chunk that will add or
3324 * delete IP addresses the D0 to D13 rules should be applied:
3325 */
3326 sctp_disposition_t sctp_sf_do_asconf_ack(const struct sctp_endpoint *ep,
3327 const struct sctp_association *asoc,
3328 const sctp_subtype_t type, void *arg,
3329 sctp_cmd_seq_t *commands)
3330 {
3331 struct sctp_chunk *asconf_ack = arg;
3332 struct sctp_chunk *last_asconf = asoc->addip_last_asconf;
3333 struct sctp_chunk *abort;
3334 sctp_addiphdr_t *addip_hdr;
3335 __u32 sent_serial, rcvd_serial;
3336
3337 if (!sctp_vtag_verify(asconf_ack, asoc)) {
3338 sctp_add_cmd_sf(commands, SCTP_CMD_REPORT_BAD_TAG,
3339 SCTP_NULL());
3340 return sctp_sf_pdiscard(ep, asoc, type, arg, commands);
3341 }
3342
3343 /* Make sure that the ADDIP chunk has a valid length. */
3344 if (!sctp_chunk_length_valid(asconf_ack, sizeof(sctp_addip_chunk_t)))
3345 return sctp_sf_violation_chunklen(ep, asoc, type, arg,
3346 commands);
3347
3348 addip_hdr = (sctp_addiphdr_t *)asconf_ack->skb->data;
3349 rcvd_serial = ntohl(addip_hdr->serial);
3350
3351 if (last_asconf) {
3352 addip_hdr = (sctp_addiphdr_t *)last_asconf->subh.addip_hdr;
3353 sent_serial = ntohl(addip_hdr->serial);
3354 } else {
3355 sent_serial = asoc->addip_serial - 1;
3356 }
3357
3358 /* D0) If an endpoint receives an ASCONF-ACK that is greater than or
3359 * equal to the next serial number to be used but no ASCONF chunk is
3360 * outstanding the endpoint MUST ABORT the association. Note that a
3361 * sequence number is greater than if it is no more than 2^^31-1
3362 * larger than the current sequence number (using serial arithmetic).
3363 */
3364 if (ADDIP_SERIAL_gte(rcvd_serial, sent_serial + 1) &&
3365 !(asoc->addip_last_asconf)) {
3366 abort = sctp_make_abort(asoc, asconf_ack,
3367 sizeof(sctp_errhdr_t));
3368 if (abort) {
3369 sctp_init_cause(abort, SCTP_ERROR_ASCONF_ACK, 0);
3370 sctp_add_cmd_sf(commands, SCTP_CMD_REPLY,
3371 SCTP_CHUNK(abort));
3372 }
3373 /* We are going to ABORT, so we might as well stop
3374 * processing the rest of the chunks in the packet.
3375 */
3376 sctp_add_cmd_sf(commands, SCTP_CMD_TIMER_STOP,
3377 SCTP_TO(SCTP_EVENT_TIMEOUT_T4_RTO));
3378 sctp_add_cmd_sf(commands, SCTP_CMD_DISCARD_PACKET,SCTP_NULL());
3379 sctp_add_cmd_sf(commands, SCTP_CMD_SET_SK_ERR,
3380 SCTP_ERROR(ECONNABORTED));
3381 sctp_add_cmd_sf(commands, SCTP_CMD_ASSOC_FAILED,
3382 SCTP_PERR(SCTP_ERROR_ASCONF_ACK));
3383 SCTP_INC_STATS(SCTP_MIB_ABORTEDS);
3384 SCTP_DEC_STATS(SCTP_MIB_CURRESTAB);
3385 return SCTP_DISPOSITION_ABORT;
3386 }
3387
3388 if ((rcvd_serial == sent_serial) && asoc->addip_last_asconf) {
3389 sctp_add_cmd_sf(commands, SCTP_CMD_TIMER_STOP,
3390 SCTP_TO(SCTP_EVENT_TIMEOUT_T4_RTO));
3391
3392 if (!sctp_process_asconf_ack((struct sctp_association *)asoc,
3393 asconf_ack))
3394 return SCTP_DISPOSITION_CONSUME;
3395
3396 abort = sctp_make_abort(asoc, asconf_ack,
3397 sizeof(sctp_errhdr_t));
3398 if (abort) {
3399 sctp_init_cause(abort, SCTP_ERROR_RSRC_LOW, 0);
3400 sctp_add_cmd_sf(commands, SCTP_CMD_REPLY,
3401 SCTP_CHUNK(abort));
3402 }
3403 /* We are going to ABORT, so we might as well stop
3404 * processing the rest of the chunks in the packet.
3405 */
3406 sctp_add_cmd_sf(commands, SCTP_CMD_DISCARD_PACKET,SCTP_NULL());
3407 sctp_add_cmd_sf(commands, SCTP_CMD_SET_SK_ERR,
3408 SCTP_ERROR(ECONNABORTED));
3409 sctp_add_cmd_sf(commands, SCTP_CMD_ASSOC_FAILED,
3410 SCTP_PERR(SCTP_ERROR_ASCONF_ACK));
3411 SCTP_INC_STATS(SCTP_MIB_ABORTEDS);
3412 SCTP_DEC_STATS(SCTP_MIB_CURRESTAB);
3413 return SCTP_DISPOSITION_ABORT;
3414 }
3415
3416 return SCTP_DISPOSITION_DISCARD;
3417 }
3418
3419 /*
3420 * PR-SCTP Section 3.6 Receiver Side Implementation of PR-SCTP
3421 *
3422 * When a FORWARD TSN chunk arrives, the data receiver MUST first update
3423 * its cumulative TSN point to the value carried in the FORWARD TSN
3424 * chunk, and then MUST further advance its cumulative TSN point locally
3425 * if possible.
3426 * After the above processing, the data receiver MUST stop reporting any
3427 * missing TSNs earlier than or equal to the new cumulative TSN point.
3428 *
3429 * Verification Tag: 8.5 Verification Tag [Normal verification]
3430 *
3431 * The return value is the disposition of the chunk.
3432 */
3433 sctp_disposition_t sctp_sf_eat_fwd_tsn(const struct sctp_endpoint *ep,
3434 const struct sctp_association *asoc,
3435 const sctp_subtype_t type,
3436 void *arg,
3437 sctp_cmd_seq_t *commands)
3438 {
3439 struct sctp_chunk *chunk = arg;
3440 struct sctp_fwdtsn_hdr *fwdtsn_hdr;
3441 __u16 len;
3442 __u32 tsn;
3443
3444 if (!sctp_vtag_verify(chunk, asoc)) {
3445 sctp_add_cmd_sf(commands, SCTP_CMD_REPORT_BAD_TAG,
3446 SCTP_NULL());
3447 return sctp_sf_pdiscard(ep, asoc, type, arg, commands);
3448 }
3449
3450 /* Make sure that the FORWARD_TSN chunk has valid length. */
3451 if (!sctp_chunk_length_valid(chunk, sizeof(struct sctp_fwdtsn_chunk)))
3452 return sctp_sf_violation_chunklen(ep, asoc, type, arg,
3453 commands);
3454
3455 fwdtsn_hdr = (struct sctp_fwdtsn_hdr *)chunk->skb->data;
3456 chunk->subh.fwdtsn_hdr = fwdtsn_hdr;
3457 len = ntohs(chunk->chunk_hdr->length);
3458 len -= sizeof(struct sctp_chunkhdr);
3459 skb_pull(chunk->skb, len);
3460
3461 tsn = ntohl(fwdtsn_hdr->new_cum_tsn);
3462 SCTP_DEBUG_PRINTK("%s: TSN 0x%x.\n", __FUNCTION__, tsn);
3463
3464 /* The TSN is too high--silently discard the chunk and count on it
3465 * getting retransmitted later.
3466 */
3467 if (sctp_tsnmap_check(&asoc->peer.tsn_map, tsn) < 0)
3468 goto discard_noforce;
3469
3470 sctp_add_cmd_sf(commands, SCTP_CMD_REPORT_FWDTSN, SCTP_U32(tsn));
3471 if (len > sizeof(struct sctp_fwdtsn_hdr))
3472 sctp_add_cmd_sf(commands, SCTP_CMD_PROCESS_FWDTSN,
3473 SCTP_CHUNK(chunk));
3474
3475 /* Count this as receiving DATA. */
3476 if (asoc->autoclose) {
3477 sctp_add_cmd_sf(commands, SCTP_CMD_TIMER_RESTART,
3478 SCTP_TO(SCTP_EVENT_TIMEOUT_AUTOCLOSE));
3479 }
3480
3481 /* FIXME: For now send a SACK, but DATA processing may
3482 * send another.
3483 */
3484 sctp_add_cmd_sf(commands, SCTP_CMD_GEN_SACK, SCTP_NOFORCE());
3485
3486 return SCTP_DISPOSITION_CONSUME;
3487
3488 discard_noforce:
3489 return SCTP_DISPOSITION_DISCARD;
3490 }
3491
3492 sctp_disposition_t sctp_sf_eat_fwd_tsn_fast(
3493 const struct sctp_endpoint *ep,
3494 const struct sctp_association *asoc,
3495 const sctp_subtype_t type,
3496 void *arg,
3497 sctp_cmd_seq_t *commands)
3498 {
3499 struct sctp_chunk *chunk = arg;
3500 struct sctp_fwdtsn_hdr *fwdtsn_hdr;
3501 __u16 len;
3502 __u32 tsn;
3503
3504 if (!sctp_vtag_verify(chunk, asoc)) {
3505 sctp_add_cmd_sf(commands, SCTP_CMD_REPORT_BAD_TAG,
3506 SCTP_NULL());
3507 return sctp_sf_pdiscard(ep, asoc, type, arg, commands);
3508 }
3509
3510 /* Make sure that the FORWARD_TSN chunk has a valid length. */
3511 if (!sctp_chunk_length_valid(chunk, sizeof(struct sctp_fwdtsn_chunk)))
3512 return sctp_sf_violation_chunklen(ep, asoc, type, arg,
3513 commands);
3514
3515 fwdtsn_hdr = (struct sctp_fwdtsn_hdr *)chunk->skb->data;
3516 chunk->subh.fwdtsn_hdr = fwdtsn_hdr;
3517 len = ntohs(chunk->chunk_hdr->length);
3518 len -= sizeof(struct sctp_chunkhdr);
3519 skb_pull(chunk->skb, len);
3520
3521 tsn = ntohl(fwdtsn_hdr->new_cum_tsn);
3522 SCTP_DEBUG_PRINTK("%s: TSN 0x%x.\n", __FUNCTION__, tsn);
3523
3524 /* The TSN is too high--silently discard the chunk and count on it
3525 * getting retransmitted later.
3526 */
3527 if (sctp_tsnmap_check(&asoc->peer.tsn_map, tsn) < 0)
3528 goto gen_shutdown;
3529
3530 sctp_add_cmd_sf(commands, SCTP_CMD_REPORT_FWDTSN, SCTP_U32(tsn));
3531 if (len > sizeof(struct sctp_fwdtsn_hdr))
3532 sctp_add_cmd_sf(commands, SCTP_CMD_PROCESS_FWDTSN,
3533 SCTP_CHUNK(chunk));
3534
3535 /* Go a head and force a SACK, since we are shutting down. */
3536 gen_shutdown:
3537 /* Implementor's Guide.
3538 *
3539 * While in SHUTDOWN-SENT state, the SHUTDOWN sender MUST immediately
3540 * respond to each received packet containing one or more DATA chunk(s)
3541 * with a SACK, a SHUTDOWN chunk, and restart the T2-shutdown timer
3542 */
3543 sctp_add_cmd_sf(commands, SCTP_CMD_GEN_SHUTDOWN, SCTP_NULL());
3544 sctp_add_cmd_sf(commands, SCTP_CMD_GEN_SACK, SCTP_FORCE());
3545 sctp_add_cmd_sf(commands, SCTP_CMD_TIMER_RESTART,
3546 SCTP_TO(SCTP_EVENT_TIMEOUT_T2_SHUTDOWN));
3547
3548 return SCTP_DISPOSITION_CONSUME;
3549 }
3550
3551 /*
3552 * Process an unknown chunk.
3553 *
3554 * Section: 3.2. Also, 2.1 in the implementor's guide.
3555 *
3556 * Chunk Types are encoded such that the highest-order two bits specify
3557 * the action that must be taken if the processing endpoint does not
3558 * recognize the Chunk Type.
3559 *
3560 * 00 - Stop processing this SCTP packet and discard it, do not process
3561 * any further chunks within it.
3562 *
3563 * 01 - Stop processing this SCTP packet and discard it, do not process
3564 * any further chunks within it, and report the unrecognized
3565 * chunk in an 'Unrecognized Chunk Type'.
3566 *
3567 * 10 - Skip this chunk and continue processing.
3568 *
3569 * 11 - Skip this chunk and continue processing, but report in an ERROR
3570 * Chunk using the 'Unrecognized Chunk Type' cause of error.
3571 *
3572 * The return value is the disposition of the chunk.
3573 */
3574 sctp_disposition_t sctp_sf_unk_chunk(const struct sctp_endpoint *ep,
3575 const struct sctp_association *asoc,
3576 const sctp_subtype_t type,
3577 void *arg,
3578 sctp_cmd_seq_t *commands)
3579 {
3580 struct sctp_chunk *unk_chunk = arg;
3581 struct sctp_chunk *err_chunk;
3582 sctp_chunkhdr_t *hdr;
3583
3584 SCTP_DEBUG_PRINTK("Processing the unknown chunk id %d.\n", type.chunk);
3585
3586 if (!sctp_vtag_verify(unk_chunk, asoc))
3587 return sctp_sf_pdiscard(ep, asoc, type, arg, commands);
3588
3589 /* Make sure that the chunk has a valid length.
3590 * Since we don't know the chunk type, we use a general
3591 * chunkhdr structure to make a comparison.
3592 */
3593 if (!sctp_chunk_length_valid(unk_chunk, sizeof(sctp_chunkhdr_t)))
3594 return sctp_sf_violation_chunklen(ep, asoc, type, arg,
3595 commands);
3596
3597 switch (type.chunk & SCTP_CID_ACTION_MASK) {
3598 case SCTP_CID_ACTION_DISCARD:
3599 /* Discard the packet. */
3600 return sctp_sf_pdiscard(ep, asoc, type, arg, commands);
3601 break;
3602 case SCTP_CID_ACTION_DISCARD_ERR:
3603 /* Discard the packet. */
3604 sctp_sf_pdiscard(ep, asoc, type, arg, commands);
3605
3606 /* Generate an ERROR chunk as response. */
3607 hdr = unk_chunk->chunk_hdr;
3608 err_chunk = sctp_make_op_error(asoc, unk_chunk,
3609 SCTP_ERROR_UNKNOWN_CHUNK, hdr,
3610 WORD_ROUND(ntohs(hdr->length)));
3611 if (err_chunk) {
3612 sctp_add_cmd_sf(commands, SCTP_CMD_REPLY,
3613 SCTP_CHUNK(err_chunk));
3614 }
3615 return SCTP_DISPOSITION_CONSUME;
3616 break;
3617 case SCTP_CID_ACTION_SKIP:
3618 /* Skip the chunk. */
3619 return SCTP_DISPOSITION_DISCARD;
3620 break;
3621 case SCTP_CID_ACTION_SKIP_ERR:
3622 /* Generate an ERROR chunk as response. */
3623 hdr = unk_chunk->chunk_hdr;
3624 err_chunk = sctp_make_op_error(asoc, unk_chunk,
3625 SCTP_ERROR_UNKNOWN_CHUNK, hdr,
3626 WORD_ROUND(ntohs(hdr->length)));
3627 if (err_chunk) {
3628 sctp_add_cmd_sf(commands, SCTP_CMD_REPLY,
3629 SCTP_CHUNK(err_chunk));
3630 }
3631 /* Skip the chunk. */
3632 return SCTP_DISPOSITION_CONSUME;
3633 break;
3634 default:
3635 break;
3636 }
3637
3638 return SCTP_DISPOSITION_DISCARD;
3639 }
3640
3641 /*
3642 * Discard the chunk.
3643 *
3644 * Section: 0.2, 5.2.3, 5.2.5, 5.2.6, 6.0, 8.4.6, 8.5.1c, 9.2
3645 * [Too numerous to mention...]
3646 * Verification Tag: No verification needed.
3647 * Inputs
3648 * (endpoint, asoc, chunk)
3649 *
3650 * Outputs
3651 * (asoc, reply_msg, msg_up, timers, counters)
3652 *
3653 * The return value is the disposition of the chunk.
3654 */
3655 sctp_disposition_t sctp_sf_discard_chunk(const struct sctp_endpoint *ep,
3656 const struct sctp_association *asoc,
3657 const sctp_subtype_t type,
3658 void *arg,
3659 sctp_cmd_seq_t *commands)
3660 {
3661 SCTP_DEBUG_PRINTK("Chunk %d is discarded\n", type.chunk);
3662 return SCTP_DISPOSITION_DISCARD;
3663 }
3664
3665 /*
3666 * Discard the whole packet.
3667 *
3668 * Section: 8.4 2)
3669 *
3670 * 2) If the OOTB packet contains an ABORT chunk, the receiver MUST
3671 * silently discard the OOTB packet and take no further action.
3672 *
3673 * Verification Tag: No verification necessary
3674 *
3675 * Inputs
3676 * (endpoint, asoc, chunk)
3677 *
3678 * Outputs
3679 * (asoc, reply_msg, msg_up, timers, counters)
3680 *
3681 * The return value is the disposition of the chunk.
3682 */
3683 sctp_disposition_t sctp_sf_pdiscard(const struct sctp_endpoint *ep,
3684 const struct sctp_association *asoc,
3685 const sctp_subtype_t type,
3686 void *arg,
3687 sctp_cmd_seq_t *commands)
3688 {
3689 SCTP_INC_STATS(SCTP_MIB_IN_PKT_DISCARDS);
3690 sctp_add_cmd_sf(commands, SCTP_CMD_DISCARD_PACKET, SCTP_NULL());
3691
3692 return SCTP_DISPOSITION_CONSUME;
3693 }
3694
3695
3696 /*
3697 * The other end is violating protocol.
3698 *
3699 * Section: Not specified
3700 * Verification Tag: Not specified
3701 * Inputs
3702 * (endpoint, asoc, chunk)
3703 *
3704 * Outputs
3705 * (asoc, reply_msg, msg_up, timers, counters)
3706 *
3707 * We simply tag the chunk as a violation. The state machine will log
3708 * the violation and continue.
3709 */
3710 sctp_disposition_t sctp_sf_violation(const struct sctp_endpoint *ep,
3711 const struct sctp_association *asoc,
3712 const sctp_subtype_t type,
3713 void *arg,
3714 sctp_cmd_seq_t *commands)
3715 {
3716 return SCTP_DISPOSITION_VIOLATION;
3717 }
3718
3719 /*
3720 * Common function to handle a protocol violation.
3721 */
3722 static sctp_disposition_t sctp_sf_abort_violation(
3723 const struct sctp_association *asoc,
3724 void *arg,
3725 sctp_cmd_seq_t *commands,
3726 const __u8 *payload,
3727 const size_t paylen)
3728 {
3729 struct sctp_chunk *chunk = arg;
3730 struct sctp_chunk *abort = NULL;
3731
3732 /* Make the abort chunk. */
3733 abort = sctp_make_abort_violation(asoc, chunk, payload, paylen);
3734 if (!abort)
3735 goto nomem;
3736
3737 sctp_add_cmd_sf(commands, SCTP_CMD_REPLY, SCTP_CHUNK(abort));
3738 SCTP_INC_STATS(SCTP_MIB_OUTCTRLCHUNKS);
3739
3740 if (asoc->state <= SCTP_STATE_COOKIE_ECHOED) {
3741 sctp_add_cmd_sf(commands, SCTP_CMD_TIMER_STOP,
3742 SCTP_TO(SCTP_EVENT_TIMEOUT_T1_INIT));
3743 sctp_add_cmd_sf(commands, SCTP_CMD_SET_SK_ERR,
3744 SCTP_ERROR(ECONNREFUSED));
3745 sctp_add_cmd_sf(commands, SCTP_CMD_INIT_FAILED,
3746 SCTP_PERR(SCTP_ERROR_PROTO_VIOLATION));
3747 } else {
3748 sctp_add_cmd_sf(commands, SCTP_CMD_SET_SK_ERR,
3749 SCTP_ERROR(ECONNABORTED));
3750 sctp_add_cmd_sf(commands, SCTP_CMD_ASSOC_FAILED,
3751 SCTP_PERR(SCTP_ERROR_PROTO_VIOLATION));
3752 SCTP_DEC_STATS(SCTP_MIB_CURRESTAB);
3753 }
3754
3755 sctp_add_cmd_sf(commands, SCTP_CMD_DISCARD_PACKET, SCTP_NULL());
3756
3757 SCTP_INC_STATS(SCTP_MIB_ABORTEDS);
3758
3759 return SCTP_DISPOSITION_ABORT;
3760
3761 nomem:
3762 return SCTP_DISPOSITION_NOMEM;
3763 }
3764
3765 /*
3766 * Handle a protocol violation when the chunk length is invalid.
3767 * "Invalid" length is identified as smaller then the minimal length a
3768 * given chunk can be. For example, a SACK chunk has invalid length
3769 * if it's length is set to be smaller then the size of sctp_sack_chunk_t.
3770 *
3771 * We inform the other end by sending an ABORT with a Protocol Violation
3772 * error code.
3773 *
3774 * Section: Not specified
3775 * Verification Tag: Nothing to do
3776 * Inputs
3777 * (endpoint, asoc, chunk)
3778 *
3779 * Outputs
3780 * (reply_msg, msg_up, counters)
3781 *
3782 * Generate an ABORT chunk and terminate the association.
3783 */
3784 static sctp_disposition_t sctp_sf_violation_chunklen(
3785 const struct sctp_endpoint *ep,
3786 const struct sctp_association *asoc,
3787 const sctp_subtype_t type,
3788 void *arg,
3789 sctp_cmd_seq_t *commands)
3790 {
3791 char err_str[]="The following chunk had invalid length:";
3792
3793 return sctp_sf_abort_violation(asoc, arg, commands, err_str,
3794 sizeof(err_str));
3795 }
3796
3797 /* Handle a protocol violation when the peer trying to advance the
3798 * cumulative tsn ack to a point beyond the max tsn currently sent.
3799 *
3800 * We inform the other end by sending an ABORT with a Protocol Violation
3801 * error code.
3802 */
3803 static sctp_disposition_t sctp_sf_violation_ctsn(
3804 const struct sctp_endpoint *ep,
3805 const struct sctp_association *asoc,
3806 const sctp_subtype_t type,
3807 void *arg,
3808 sctp_cmd_seq_t *commands)
3809 {
3810 char err_str[]="The cumulative tsn ack beyond the max tsn currently sent:";
3811
3812 return sctp_sf_abort_violation(asoc, arg, commands, err_str,
3813 sizeof(err_str));
3814 }
3815
3816 /***************************************************************************
3817 * These are the state functions for handling primitive (Section 10) events.
3818 ***************************************************************************/
3819 /*
3820 * sctp_sf_do_prm_asoc
3821 *
3822 * Section: 10.1 ULP-to-SCTP
3823 * B) Associate
3824 *
3825 * Format: ASSOCIATE(local SCTP instance name, destination transport addr,
3826 * outbound stream count)
3827 * -> association id [,destination transport addr list] [,outbound stream
3828 * count]
3829 *
3830 * This primitive allows the upper layer to initiate an association to a
3831 * specific peer endpoint.
3832 *
3833 * The peer endpoint shall be specified by one of the transport addresses
3834 * which defines the endpoint (see Section 1.4). If the local SCTP
3835 * instance has not been initialized, the ASSOCIATE is considered an
3836 * error.
3837 * [This is not relevant for the kernel implementation since we do all
3838 * initialization at boot time. It we hadn't initialized we wouldn't
3839 * get anywhere near this code.]
3840 *
3841 * An association id, which is a local handle to the SCTP association,
3842 * will be returned on successful establishment of the association. If
3843 * SCTP is not able to open an SCTP association with the peer endpoint,
3844 * an error is returned.
3845 * [In the kernel implementation, the struct sctp_association needs to
3846 * be created BEFORE causing this primitive to run.]
3847 *
3848 * Other association parameters may be returned, including the
3849 * complete destination transport addresses of the peer as well as the
3850 * outbound stream count of the local endpoint. One of the transport
3851 * address from the returned destination addresses will be selected by
3852 * the local endpoint as default primary path for sending SCTP packets
3853 * to this peer. The returned "destination transport addr list" can
3854 * be used by the ULP to change the default primary path or to force
3855 * sending a packet to a specific transport address. [All of this
3856 * stuff happens when the INIT ACK arrives. This is a NON-BLOCKING
3857 * function.]
3858 *
3859 * Mandatory attributes:
3860 *
3861 * o local SCTP instance name - obtained from the INITIALIZE operation.
3862 * [This is the argument asoc.]
3863 * o destination transport addr - specified as one of the transport
3864 * addresses of the peer endpoint with which the association is to be
3865 * established.
3866 * [This is asoc->peer.active_path.]
3867 * o outbound stream count - the number of outbound streams the ULP
3868 * would like to open towards this peer endpoint.
3869 * [BUG: This is not currently implemented.]
3870 * Optional attributes:
3871 *
3872 * None.
3873 *
3874 * The return value is a disposition.
3875 */
3876 sctp_disposition_t sctp_sf_do_prm_asoc(const struct sctp_endpoint *ep,
3877 const struct sctp_association *asoc,
3878 const sctp_subtype_t type,
3879 void *arg,
3880 sctp_cmd_seq_t *commands)
3881 {
3882 struct sctp_chunk *repl;
3883
3884 /* The comment below says that we enter COOKIE-WAIT AFTER
3885 * sending the INIT, but that doesn't actually work in our
3886 * implementation...
3887 */
3888 sctp_add_cmd_sf(commands, SCTP_CMD_NEW_STATE,
3889 SCTP_STATE(SCTP_STATE_COOKIE_WAIT));
3890
3891 /* RFC 2960 5.1 Normal Establishment of an Association
3892 *
3893 * A) "A" first sends an INIT chunk to "Z". In the INIT, "A"
3894 * must provide its Verification Tag (Tag_A) in the Initiate
3895 * Tag field. Tag_A SHOULD be a random number in the range of
3896 * 1 to 4294967295 (see 5.3.1 for Tag value selection). ...
3897 */
3898
3899 repl = sctp_make_init(asoc, &asoc->base.bind_addr, GFP_ATOMIC, 0);
3900 if (!repl)
3901 goto nomem;
3902
3903 /* Cast away the const modifier, as we want to just
3904 * rerun it through as a sideffect.
3905 */
3906 sctp_add_cmd_sf(commands, SCTP_CMD_NEW_ASOC,
3907 SCTP_ASOC((struct sctp_association *) asoc));
3908
3909 /* Choose transport for INIT. */
3910 sctp_add_cmd_sf(commands, SCTP_CMD_INIT_CHOOSE_TRANSPORT,
3911 SCTP_CHUNK(repl));
3912
3913 /* After sending the INIT, "A" starts the T1-init timer and
3914 * enters the COOKIE-WAIT state.
3915 */
3916 sctp_add_cmd_sf(commands, SCTP_CMD_TIMER_START,
3917 SCTP_TO(SCTP_EVENT_TIMEOUT_T1_INIT));
3918 sctp_add_cmd_sf(commands, SCTP_CMD_REPLY, SCTP_CHUNK(repl));
3919 return SCTP_DISPOSITION_CONSUME;
3920
3921 nomem:
3922 return SCTP_DISPOSITION_NOMEM;
3923 }
3924
3925 /*
3926 * Process the SEND primitive.
3927 *
3928 * Section: 10.1 ULP-to-SCTP
3929 * E) Send
3930 *
3931 * Format: SEND(association id, buffer address, byte count [,context]
3932 * [,stream id] [,life time] [,destination transport address]
3933 * [,unorder flag] [,no-bundle flag] [,payload protocol-id] )
3934 * -> result
3935 *
3936 * This is the main method to send user data via SCTP.
3937 *
3938 * Mandatory attributes:
3939 *
3940 * o association id - local handle to the SCTP association
3941 *
3942 * o buffer address - the location where the user message to be
3943 * transmitted is stored;
3944 *
3945 * o byte count - The size of the user data in number of bytes;
3946 *
3947 * Optional attributes:
3948 *
3949 * o context - an optional 32 bit integer that will be carried in the
3950 * sending failure notification to the ULP if the transportation of
3951 * this User Message fails.
3952 *
3953 * o stream id - to indicate which stream to send the data on. If not
3954 * specified, stream 0 will be used.
3955 *
3956 * o life time - specifies the life time of the user data. The user data
3957 * will not be sent by SCTP after the life time expires. This
3958 * parameter can be used to avoid efforts to transmit stale
3959 * user messages. SCTP notifies the ULP if the data cannot be
3960 * initiated to transport (i.e. sent to the destination via SCTP's
3961 * send primitive) within the life time variable. However, the
3962 * user data will be transmitted if SCTP has attempted to transmit a
3963 * chunk before the life time expired.
3964 *
3965 * o destination transport address - specified as one of the destination
3966 * transport addresses of the peer endpoint to which this packet
3967 * should be sent. Whenever possible, SCTP should use this destination
3968 * transport address for sending the packets, instead of the current
3969 * primary path.
3970 *
3971 * o unorder flag - this flag, if present, indicates that the user
3972 * would like the data delivered in an unordered fashion to the peer
3973 * (i.e., the U flag is set to 1 on all DATA chunks carrying this
3974 * message).
3975 *
3976 * o no-bundle flag - instructs SCTP not to bundle this user data with
3977 * other outbound DATA chunks. SCTP MAY still bundle even when
3978 * this flag is present, when faced with network congestion.
3979 *
3980 * o payload protocol-id - A 32 bit unsigned integer that is to be
3981 * passed to the peer indicating the type of payload protocol data
3982 * being transmitted. This value is passed as opaque data by SCTP.
3983 *
3984 * The return value is the disposition.
3985 */
3986 sctp_disposition_t sctp_sf_do_prm_send(const struct sctp_endpoint *ep,
3987 const struct sctp_association *asoc,
3988 const sctp_subtype_t type,
3989 void *arg,
3990 sctp_cmd_seq_t *commands)
3991 {
3992 struct sctp_chunk *chunk = arg;
3993
3994 sctp_add_cmd_sf(commands, SCTP_CMD_REPLY, SCTP_CHUNK(chunk));
3995 return SCTP_DISPOSITION_CONSUME;
3996 }
3997
3998 /*
3999 * Process the SHUTDOWN primitive.
4000 *
4001 * Section: 10.1:
4002 * C) Shutdown
4003 *
4004 * Format: SHUTDOWN(association id)
4005 * -> result
4006 *
4007 * Gracefully closes an association. Any locally queued user data
4008 * will be delivered to the peer. The association will be terminated only
4009 * after the peer acknowledges all the SCTP packets sent. A success code
4010 * will be returned on successful termination of the association. If
4011 * attempting to terminate the association results in a failure, an error
4012 * code shall be returned.
4013 *
4014 * Mandatory attributes:
4015 *
4016 * o association id - local handle to the SCTP association
4017 *
4018 * Optional attributes:
4019 *
4020 * None.
4021 *
4022 * The return value is the disposition.
4023 */
4024 sctp_disposition_t sctp_sf_do_9_2_prm_shutdown(
4025 const struct sctp_endpoint *ep,
4026 const struct sctp_association *asoc,
4027 const sctp_subtype_t type,
4028 void *arg,
4029 sctp_cmd_seq_t *commands)
4030 {
4031 int disposition;
4032
4033 /* From 9.2 Shutdown of an Association
4034 * Upon receipt of the SHUTDOWN primitive from its upper
4035 * layer, the endpoint enters SHUTDOWN-PENDING state and
4036 * remains there until all outstanding data has been
4037 * acknowledged by its peer. The endpoint accepts no new data
4038 * from its upper layer, but retransmits data to the far end
4039 * if necessary to fill gaps.
4040 */
4041 sctp_add_cmd_sf(commands, SCTP_CMD_NEW_STATE,
4042 SCTP_STATE(SCTP_STATE_SHUTDOWN_PENDING));
4043
4044 /* sctpimpguide-05 Section 2.12.2
4045 * The sender of the SHUTDOWN MAY also start an overall guard timer
4046 * 'T5-shutdown-guard' to bound the overall time for shutdown sequence.
4047 */
4048 sctp_add_cmd_sf(commands, SCTP_CMD_TIMER_START,
4049 SCTP_TO(SCTP_EVENT_TIMEOUT_T5_SHUTDOWN_GUARD));
4050
4051 disposition = SCTP_DISPOSITION_CONSUME;
4052 if (sctp_outq_is_empty(&asoc->outqueue)) {
4053 disposition = sctp_sf_do_9_2_start_shutdown(ep, asoc, type,
4054 arg, commands);
4055 }
4056 return disposition;
4057 }
4058
4059 /*
4060 * Process the ABORT primitive.
4061 *
4062 * Section: 10.1:
4063 * C) Abort
4064 *
4065 * Format: Abort(association id [, cause code])
4066 * -> result
4067 *
4068 * Ungracefully closes an association. Any locally queued user data
4069 * will be discarded and an ABORT chunk is sent to the peer. A success code
4070 * will be returned on successful abortion of the association. If
4071 * attempting to abort the association results in a failure, an error
4072 * code shall be returned.
4073 *
4074 * Mandatory attributes:
4075 *
4076 * o association id - local handle to the SCTP association
4077 *
4078 * Optional attributes:
4079 *
4080 * o cause code - reason of the abort to be passed to the peer
4081 *
4082 * None.
4083 *
4084 * The return value is the disposition.
4085 */
4086 sctp_disposition_t sctp_sf_do_9_1_prm_abort(
4087 const struct sctp_endpoint *ep,
4088 const struct sctp_association *asoc,
4089 const sctp_subtype_t type,
4090 void *arg,
4091 sctp_cmd_seq_t *commands)
4092 {
4093 /* From 9.1 Abort of an Association
4094 * Upon receipt of the ABORT primitive from its upper
4095 * layer, the endpoint enters CLOSED state and
4096 * discard all outstanding data has been
4097 * acknowledged by its peer. The endpoint accepts no new data
4098 * from its upper layer, but retransmits data to the far end
4099 * if necessary to fill gaps.
4100 */
4101 struct sctp_chunk *abort = arg;
4102 sctp_disposition_t retval;
4103
4104 retval = SCTP_DISPOSITION_CONSUME;
4105
4106 sctp_add_cmd_sf(commands, SCTP_CMD_REPLY, SCTP_CHUNK(abort));
4107
4108 /* Even if we can't send the ABORT due to low memory delete the
4109 * TCB. This is a departure from our typical NOMEM handling.
4110 */
4111
4112 sctp_add_cmd_sf(commands, SCTP_CMD_SET_SK_ERR,
4113 SCTP_ERROR(ECONNABORTED));
4114 /* Delete the established association. */
4115 sctp_add_cmd_sf(commands, SCTP_CMD_ASSOC_FAILED,
4116 SCTP_PERR(SCTP_ERROR_USER_ABORT));
4117
4118 SCTP_INC_STATS(SCTP_MIB_ABORTEDS);
4119 SCTP_DEC_STATS(SCTP_MIB_CURRESTAB);
4120
4121 return retval;
4122 }
4123
4124 /* We tried an illegal operation on an association which is closed. */
4125 sctp_disposition_t sctp_sf_error_closed(const struct sctp_endpoint *ep,
4126 const struct sctp_association *asoc,
4127 const sctp_subtype_t type,
4128 void *arg,
4129 sctp_cmd_seq_t *commands)
4130 {
4131 sctp_add_cmd_sf(commands, SCTP_CMD_REPORT_ERROR, SCTP_ERROR(-EINVAL));
4132 return SCTP_DISPOSITION_CONSUME;
4133 }
4134
4135 /* We tried an illegal operation on an association which is shutting
4136 * down.
4137 */
4138 sctp_disposition_t sctp_sf_error_shutdown(const struct sctp_endpoint *ep,
4139 const struct sctp_association *asoc,
4140 const sctp_subtype_t type,
4141 void *arg,
4142 sctp_cmd_seq_t *commands)
4143 {
4144 sctp_add_cmd_sf(commands, SCTP_CMD_REPORT_ERROR,
4145 SCTP_ERROR(-ESHUTDOWN));
4146 return SCTP_DISPOSITION_CONSUME;
4147 }
4148
4149 /*
4150 * sctp_cookie_wait_prm_shutdown
4151 *
4152 * Section: 4 Note: 2
4153 * Verification Tag:
4154 * Inputs
4155 * (endpoint, asoc)
4156 *
4157 * The RFC does not explicitly address this issue, but is the route through the
4158 * state table when someone issues a shutdown while in COOKIE_WAIT state.
4159 *
4160 * Outputs
4161 * (timers)
4162 */
4163 sctp_disposition_t sctp_sf_cookie_wait_prm_shutdown(
4164 const struct sctp_endpoint *ep,
4165 const struct sctp_association *asoc,
4166 const sctp_subtype_t type,
4167 void *arg,
4168 sctp_cmd_seq_t *commands)
4169 {
4170 sctp_add_cmd_sf(commands, SCTP_CMD_TIMER_STOP,
4171 SCTP_TO(SCTP_EVENT_TIMEOUT_T1_INIT));
4172
4173 sctp_add_cmd_sf(commands, SCTP_CMD_NEW_STATE,
4174 SCTP_STATE(SCTP_STATE_CLOSED));
4175
4176 SCTP_INC_STATS(SCTP_MIB_SHUTDOWNS);
4177
4178 sctp_add_cmd_sf(commands, SCTP_CMD_DELETE_TCB, SCTP_NULL());
4179
4180 return SCTP_DISPOSITION_DELETE_TCB;
4181 }
4182
4183 /*
4184 * sctp_cookie_echoed_prm_shutdown
4185 *
4186 * Section: 4 Note: 2
4187 * Verification Tag:
4188 * Inputs
4189 * (endpoint, asoc)
4190 *
4191 * The RFC does not explcitly address this issue, but is the route through the
4192 * state table when someone issues a shutdown while in COOKIE_ECHOED state.
4193 *
4194 * Outputs
4195 * (timers)
4196 */
4197 sctp_disposition_t sctp_sf_cookie_echoed_prm_shutdown(
4198 const struct sctp_endpoint *ep,
4199 const struct sctp_association *asoc,
4200 const sctp_subtype_t type,
4201 void *arg, sctp_cmd_seq_t *commands)
4202 {
4203 /* There is a single T1 timer, so we should be able to use
4204 * common function with the COOKIE-WAIT state.
4205 */
4206 return sctp_sf_cookie_wait_prm_shutdown(ep, asoc, type, arg, commands);
4207 }
4208
4209 /*
4210 * sctp_sf_cookie_wait_prm_abort
4211 *
4212 * Section: 4 Note: 2
4213 * Verification Tag:
4214 * Inputs
4215 * (endpoint, asoc)
4216 *
4217 * The RFC does not explicitly address this issue, but is the route through the
4218 * state table when someone issues an abort while in COOKIE_WAIT state.
4219 *
4220 * Outputs
4221 * (timers)
4222 */
4223 sctp_disposition_t sctp_sf_cookie_wait_prm_abort(
4224 const struct sctp_endpoint *ep,
4225 const struct sctp_association *asoc,
4226 const sctp_subtype_t type,
4227 void *arg,
4228 sctp_cmd_seq_t *commands)
4229 {
4230 struct sctp_chunk *abort = arg;
4231 sctp_disposition_t retval;
4232
4233 /* Stop T1-init timer */
4234 sctp_add_cmd_sf(commands, SCTP_CMD_TIMER_STOP,
4235 SCTP_TO(SCTP_EVENT_TIMEOUT_T1_INIT));
4236 retval = SCTP_DISPOSITION_CONSUME;
4237
4238 sctp_add_cmd_sf(commands, SCTP_CMD_REPLY, SCTP_CHUNK(abort));
4239
4240 sctp_add_cmd_sf(commands, SCTP_CMD_NEW_STATE,
4241 SCTP_STATE(SCTP_STATE_CLOSED));
4242
4243 SCTP_INC_STATS(SCTP_MIB_ABORTEDS);
4244
4245 /* Even if we can't send the ABORT due to low memory delete the
4246 * TCB. This is a departure from our typical NOMEM handling.
4247 */
4248
4249 sctp_add_cmd_sf(commands, SCTP_CMD_SET_SK_ERR,
4250 SCTP_ERROR(ECONNREFUSED));
4251 /* Delete the established association. */
4252 sctp_add_cmd_sf(commands, SCTP_CMD_INIT_FAILED,
4253 SCTP_PERR(SCTP_ERROR_USER_ABORT));
4254
4255 return retval;
4256 }
4257
4258 /*
4259 * sctp_sf_cookie_echoed_prm_abort
4260 *
4261 * Section: 4 Note: 3
4262 * Verification Tag:
4263 * Inputs
4264 * (endpoint, asoc)
4265 *
4266 * The RFC does not explcitly address this issue, but is the route through the
4267 * state table when someone issues an abort while in COOKIE_ECHOED state.
4268 *
4269 * Outputs
4270 * (timers)
4271 */
4272 sctp_disposition_t sctp_sf_cookie_echoed_prm_abort(
4273 const struct sctp_endpoint *ep,
4274 const struct sctp_association *asoc,
4275 const sctp_subtype_t type,
4276 void *arg,
4277 sctp_cmd_seq_t *commands)
4278 {
4279 /* There is a single T1 timer, so we should be able to use
4280 * common function with the COOKIE-WAIT state.
4281 */
4282 return sctp_sf_cookie_wait_prm_abort(ep, asoc, type, arg, commands);
4283 }
4284
4285 /*
4286 * sctp_sf_shutdown_pending_prm_abort
4287 *
4288 * Inputs
4289 * (endpoint, asoc)
4290 *
4291 * The RFC does not explicitly address this issue, but is the route through the
4292 * state table when someone issues an abort while in SHUTDOWN-PENDING state.
4293 *
4294 * Outputs
4295 * (timers)
4296 */
4297 sctp_disposition_t sctp_sf_shutdown_pending_prm_abort(
4298 const struct sctp_endpoint *ep,
4299 const struct sctp_association *asoc,
4300 const sctp_subtype_t type,
4301 void *arg,
4302 sctp_cmd_seq_t *commands)
4303 {
4304 /* Stop the T5-shutdown guard timer. */
4305 sctp_add_cmd_sf(commands, SCTP_CMD_TIMER_STOP,
4306 SCTP_TO(SCTP_EVENT_TIMEOUT_T5_SHUTDOWN_GUARD));
4307
4308 return sctp_sf_do_9_1_prm_abort(ep, asoc, type, arg, commands);
4309 }
4310
4311 /*
4312 * sctp_sf_shutdown_sent_prm_abort
4313 *
4314 * Inputs
4315 * (endpoint, asoc)
4316 *
4317 * The RFC does not explicitly address this issue, but is the route through the
4318 * state table when someone issues an abort while in SHUTDOWN-SENT state.
4319 *
4320 * Outputs
4321 * (timers)
4322 */
4323 sctp_disposition_t sctp_sf_shutdown_sent_prm_abort(
4324 const struct sctp_endpoint *ep,
4325 const struct sctp_association *asoc,
4326 const sctp_subtype_t type,
4327 void *arg,
4328 sctp_cmd_seq_t *commands)
4329 {
4330 /* Stop the T2-shutdown timer. */
4331 sctp_add_cmd_sf(commands, SCTP_CMD_TIMER_STOP,
4332 SCTP_TO(SCTP_EVENT_TIMEOUT_T2_SHUTDOWN));
4333
4334 /* Stop the T5-shutdown guard timer. */
4335 sctp_add_cmd_sf(commands, SCTP_CMD_TIMER_STOP,
4336 SCTP_TO(SCTP_EVENT_TIMEOUT_T5_SHUTDOWN_GUARD));
4337
4338 return sctp_sf_do_9_1_prm_abort(ep, asoc, type, arg, commands);
4339 }
4340
4341 /*
4342 * sctp_sf_cookie_echoed_prm_abort
4343 *
4344 * Inputs
4345 * (endpoint, asoc)
4346 *
4347 * The RFC does not explcitly address this issue, but is the route through the
4348 * state table when someone issues an abort while in COOKIE_ECHOED state.
4349 *
4350 * Outputs
4351 * (timers)
4352 */
4353 sctp_disposition_t sctp_sf_shutdown_ack_sent_prm_abort(
4354 const struct sctp_endpoint *ep,
4355 const struct sctp_association *asoc,
4356 const sctp_subtype_t type,
4357 void *arg,
4358 sctp_cmd_seq_t *commands)
4359 {
4360 /* The same T2 timer, so we should be able to use
4361 * common function with the SHUTDOWN-SENT state.
4362 */
4363 return sctp_sf_shutdown_sent_prm_abort(ep, asoc, type, arg, commands);
4364 }
4365
4366 /*
4367 * Process the REQUESTHEARTBEAT primitive
4368 *
4369 * 10.1 ULP-to-SCTP
4370 * J) Request Heartbeat
4371 *
4372 * Format: REQUESTHEARTBEAT(association id, destination transport address)
4373 *
4374 * -> result
4375 *
4376 * Instructs the local endpoint to perform a HeartBeat on the specified
4377 * destination transport address of the given association. The returned
4378 * result should indicate whether the transmission of the HEARTBEAT
4379 * chunk to the destination address is successful.
4380 *
4381 * Mandatory attributes:
4382 *
4383 * o association id - local handle to the SCTP association
4384 *
4385 * o destination transport address - the transport address of the
4386 * association on which a heartbeat should be issued.
4387 */
4388 sctp_disposition_t sctp_sf_do_prm_requestheartbeat(
4389 const struct sctp_endpoint *ep,
4390 const struct sctp_association *asoc,
4391 const sctp_subtype_t type,
4392 void *arg,
4393 sctp_cmd_seq_t *commands)
4394 {
4395 if (SCTP_DISPOSITION_NOMEM == sctp_sf_heartbeat(ep, asoc, type,
4396 (struct sctp_transport *)arg, commands))
4397 return SCTP_DISPOSITION_NOMEM;
4398
4399 /*
4400 * RFC 2960 (bis), section 8.3
4401 *
4402 * D) Request an on-demand HEARTBEAT on a specific destination
4403 * transport address of a given association.
4404 *
4405 * The endpoint should increment the respective error counter of
4406 * the destination transport address each time a HEARTBEAT is sent
4407 * to that address and not acknowledged within one RTO.
4408 *
4409 */
4410 sctp_add_cmd_sf(commands, SCTP_CMD_TRANSPORT_RESET,
4411 SCTP_TRANSPORT(arg));
4412 return SCTP_DISPOSITION_CONSUME;
4413 }
4414
4415 /*
4416 * ADDIP Section 4.1 ASCONF Chunk Procedures
4417 * When an endpoint has an ASCONF signaled change to be sent to the
4418 * remote endpoint it should do A1 to A9
4419 */
4420 sctp_disposition_t sctp_sf_do_prm_asconf(const struct sctp_endpoint *ep,
4421 const struct sctp_association *asoc,
4422 const sctp_subtype_t type,
4423 void *arg,
4424 sctp_cmd_seq_t *commands)
4425 {
4426 struct sctp_chunk *chunk = arg;
4427
4428 sctp_add_cmd_sf(commands, SCTP_CMD_SETUP_T4, SCTP_CHUNK(chunk));
4429 sctp_add_cmd_sf(commands, SCTP_CMD_TIMER_START,
4430 SCTP_TO(SCTP_EVENT_TIMEOUT_T4_RTO));
4431 sctp_add_cmd_sf(commands, SCTP_CMD_REPLY, SCTP_CHUNK(chunk));
4432 return SCTP_DISPOSITION_CONSUME;
4433 }
4434
4435 /*
4436 * Ignore the primitive event
4437 *
4438 * The return value is the disposition of the primitive.
4439 */
4440 sctp_disposition_t sctp_sf_ignore_primitive(
4441 const struct sctp_endpoint *ep,
4442 const struct sctp_association *asoc,
4443 const sctp_subtype_t type,
4444 void *arg,
4445 sctp_cmd_seq_t *commands)
4446 {
4447 SCTP_DEBUG_PRINTK("Primitive type %d is ignored.\n", type.primitive);
4448 return SCTP_DISPOSITION_DISCARD;
4449 }
4450
4451 /***************************************************************************
4452 * These are the state functions for the OTHER events.
4453 ***************************************************************************/
4454
4455 /*
4456 * Start the shutdown negotiation.
4457 *
4458 * From Section 9.2:
4459 * Once all its outstanding data has been acknowledged, the endpoint
4460 * shall send a SHUTDOWN chunk to its peer including in the Cumulative
4461 * TSN Ack field the last sequential TSN it has received from the peer.
4462 * It shall then start the T2-shutdown timer and enter the SHUTDOWN-SENT
4463 * state. If the timer expires, the endpoint must re-send the SHUTDOWN
4464 * with the updated last sequential TSN received from its peer.
4465 *
4466 * The return value is the disposition.
4467 */
4468 sctp_disposition_t sctp_sf_do_9_2_start_shutdown(
4469 const struct sctp_endpoint *ep,
4470 const struct sctp_association *asoc,
4471 const sctp_subtype_t type,
4472 void *arg,
4473 sctp_cmd_seq_t *commands)
4474 {
4475 struct sctp_chunk *reply;
4476
4477 /* Once all its outstanding data has been acknowledged, the
4478 * endpoint shall send a SHUTDOWN chunk to its peer including
4479 * in the Cumulative TSN Ack field the last sequential TSN it
4480 * has received from the peer.
4481 */
4482 reply = sctp_make_shutdown(asoc, NULL);
4483 if (!reply)
4484 goto nomem;
4485
4486 /* Set the transport for the SHUTDOWN chunk and the timeout for the
4487 * T2-shutdown timer.
4488 */
4489 sctp_add_cmd_sf(commands, SCTP_CMD_SETUP_T2, SCTP_CHUNK(reply));
4490
4491 /* It shall then start the T2-shutdown timer */
4492 sctp_add_cmd_sf(commands, SCTP_CMD_TIMER_START,
4493 SCTP_TO(SCTP_EVENT_TIMEOUT_T2_SHUTDOWN));
4494
4495 if (asoc->autoclose)
4496 sctp_add_cmd_sf(commands, SCTP_CMD_TIMER_STOP,
4497 SCTP_TO(SCTP_EVENT_TIMEOUT_AUTOCLOSE));
4498
4499 /* and enter the SHUTDOWN-SENT state. */
4500 sctp_add_cmd_sf(commands, SCTP_CMD_NEW_STATE,
4501 SCTP_STATE(SCTP_STATE_SHUTDOWN_SENT));
4502
4503 /* sctp-implguide 2.10 Issues with Heartbeating and failover
4504 *
4505 * HEARTBEAT ... is discontinued after sending either SHUTDOWN
4506 * or SHUTDOWN-ACK.
4507 */
4508 sctp_add_cmd_sf(commands, SCTP_CMD_HB_TIMERS_STOP, SCTP_NULL());
4509
4510 sctp_add_cmd_sf(commands, SCTP_CMD_REPLY, SCTP_CHUNK(reply));
4511
4512 return SCTP_DISPOSITION_CONSUME;
4513
4514 nomem:
4515 return SCTP_DISPOSITION_NOMEM;
4516 }
4517
4518 /*
4519 * Generate a SHUTDOWN ACK now that everything is SACK'd.
4520 *
4521 * From Section 9.2:
4522 *
4523 * If it has no more outstanding DATA chunks, the SHUTDOWN receiver
4524 * shall send a SHUTDOWN ACK and start a T2-shutdown timer of its own,
4525 * entering the SHUTDOWN-ACK-SENT state. If the timer expires, the
4526 * endpoint must re-send the SHUTDOWN ACK.
4527 *
4528 * The return value is the disposition.
4529 */
4530 sctp_disposition_t sctp_sf_do_9_2_shutdown_ack(
4531 const struct sctp_endpoint *ep,
4532 const struct sctp_association *asoc,
4533 const sctp_subtype_t type,
4534 void *arg,
4535 sctp_cmd_seq_t *commands)
4536 {
4537 struct sctp_chunk *chunk = (struct sctp_chunk *) arg;
4538 struct sctp_chunk *reply;
4539
4540 /* There are 2 ways of getting here:
4541 * 1) called in response to a SHUTDOWN chunk
4542 * 2) called when SCTP_EVENT_NO_PENDING_TSN event is issued.
4543 *
4544 * For the case (2), the arg parameter is set to NULL. We need
4545 * to check that we have a chunk before accessing it's fields.
4546 */
4547 if (chunk) {
4548 if (!sctp_vtag_verify(chunk, asoc))
4549 return sctp_sf_pdiscard(ep, asoc, type, arg, commands);
4550
4551 /* Make sure that the SHUTDOWN chunk has a valid length. */
4552 if (!sctp_chunk_length_valid(chunk, sizeof(struct sctp_shutdown_chunk_t)))
4553 return sctp_sf_violation_chunklen(ep, asoc, type, arg,
4554 commands);
4555 }
4556
4557 /* If it has no more outstanding DATA chunks, the SHUTDOWN receiver
4558 * shall send a SHUTDOWN ACK ...
4559 */
4560 reply = sctp_make_shutdown_ack(asoc, chunk);
4561 if (!reply)
4562 goto nomem;
4563
4564 /* Set the transport for the SHUTDOWN ACK chunk and the timeout for
4565 * the T2-shutdown timer.
4566 */
4567 sctp_add_cmd_sf(commands, SCTP_CMD_SETUP_T2, SCTP_CHUNK(reply));
4568
4569 /* and start/restart a T2-shutdown timer of its own, */
4570 sctp_add_cmd_sf(commands, SCTP_CMD_TIMER_RESTART,
4571 SCTP_TO(SCTP_EVENT_TIMEOUT_T2_SHUTDOWN));
4572
4573 if (asoc->autoclose)
4574 sctp_add_cmd_sf(commands, SCTP_CMD_TIMER_STOP,
4575 SCTP_TO(SCTP_EVENT_TIMEOUT_AUTOCLOSE));
4576
4577 /* Enter the SHUTDOWN-ACK-SENT state. */
4578 sctp_add_cmd_sf(commands, SCTP_CMD_NEW_STATE,
4579 SCTP_STATE(SCTP_STATE_SHUTDOWN_ACK_SENT));
4580
4581 /* sctp-implguide 2.10 Issues with Heartbeating and failover
4582 *
4583 * HEARTBEAT ... is discontinued after sending either SHUTDOWN
4584 * or SHUTDOWN-ACK.
4585 */
4586 sctp_add_cmd_sf(commands, SCTP_CMD_HB_TIMERS_STOP, SCTP_NULL());
4587
4588 sctp_add_cmd_sf(commands, SCTP_CMD_REPLY, SCTP_CHUNK(reply));
4589
4590 return SCTP_DISPOSITION_CONSUME;
4591
4592 nomem:
4593 return SCTP_DISPOSITION_NOMEM;
4594 }
4595
4596 /*
4597 * Ignore the event defined as other
4598 *
4599 * The return value is the disposition of the event.
4600 */
4601 sctp_disposition_t sctp_sf_ignore_other(const struct sctp_endpoint *ep,
4602 const struct sctp_association *asoc,
4603 const sctp_subtype_t type,
4604 void *arg,
4605 sctp_cmd_seq_t *commands)
4606 {
4607 SCTP_DEBUG_PRINTK("The event other type %d is ignored\n", type.other);
4608 return SCTP_DISPOSITION_DISCARD;
4609 }
4610
4611 /************************************************************
4612 * These are the state functions for handling timeout events.
4613 ************************************************************/
4614
4615 /*
4616 * RTX Timeout
4617 *
4618 * Section: 6.3.3 Handle T3-rtx Expiration
4619 *
4620 * Whenever the retransmission timer T3-rtx expires for a destination
4621 * address, do the following:
4622 * [See below]
4623 *
4624 * The return value is the disposition of the chunk.
4625 */
4626 sctp_disposition_t sctp_sf_do_6_3_3_rtx(const struct sctp_endpoint *ep,
4627 const struct sctp_association *asoc,
4628 const sctp_subtype_t type,
4629 void *arg,
4630 sctp_cmd_seq_t *commands)
4631 {
4632 struct sctp_transport *transport = arg;
4633
4634 SCTP_INC_STATS(SCTP_MIB_T3_RTX_EXPIREDS);
4635
4636 if (asoc->overall_error_count >= asoc->max_retrans) {
4637 sctp_add_cmd_sf(commands, SCTP_CMD_SET_SK_ERR,
4638 SCTP_ERROR(ETIMEDOUT));
4639 /* CMD_ASSOC_FAILED calls CMD_DELETE_TCB. */
4640 sctp_add_cmd_sf(commands, SCTP_CMD_ASSOC_FAILED,
4641 SCTP_PERR(SCTP_ERROR_NO_ERROR));
4642 SCTP_INC_STATS(SCTP_MIB_ABORTEDS);
4643 SCTP_DEC_STATS(SCTP_MIB_CURRESTAB);
4644 return SCTP_DISPOSITION_DELETE_TCB;
4645 }
4646
4647 /* E1) For the destination address for which the timer
4648 * expires, adjust its ssthresh with rules defined in Section
4649 * 7.2.3 and set the cwnd <- MTU.
4650 */
4651
4652 /* E2) For the destination address for which the timer
4653 * expires, set RTO <- RTO * 2 ("back off the timer"). The
4654 * maximum value discussed in rule C7 above (RTO.max) may be
4655 * used to provide an upper bound to this doubling operation.
4656 */
4657
4658 /* E3) Determine how many of the earliest (i.e., lowest TSN)
4659 * outstanding DATA chunks for the address for which the
4660 * T3-rtx has expired will fit into a single packet, subject
4661 * to the MTU constraint for the path corresponding to the
4662 * destination transport address to which the retransmission
4663 * is being sent (this may be different from the address for
4664 * which the timer expires [see Section 6.4]). Call this
4665 * value K. Bundle and retransmit those K DATA chunks in a
4666 * single packet to the destination endpoint.
4667 *
4668 * Note: Any DATA chunks that were sent to the address for
4669 * which the T3-rtx timer expired but did not fit in one MTU
4670 * (rule E3 above), should be marked for retransmission and
4671 * sent as soon as cwnd allows (normally when a SACK arrives).
4672 */
4673
4674 /* Do some failure management (Section 8.2). */
4675 sctp_add_cmd_sf(commands, SCTP_CMD_STRIKE, SCTP_TRANSPORT(transport));
4676
4677 /* NB: Rules E4 and F1 are implicit in R1. */
4678 sctp_add_cmd_sf(commands, SCTP_CMD_RETRAN, SCTP_TRANSPORT(transport));
4679
4680 return SCTP_DISPOSITION_CONSUME;
4681 }
4682
4683 /*
4684 * Generate delayed SACK on timeout
4685 *
4686 * Section: 6.2 Acknowledgement on Reception of DATA Chunks
4687 *
4688 * The guidelines on delayed acknowledgement algorithm specified in
4689 * Section 4.2 of [RFC2581] SHOULD be followed. Specifically, an
4690 * acknowledgement SHOULD be generated for at least every second packet
4691 * (not every second DATA chunk) received, and SHOULD be generated
4692 * within 200 ms of the arrival of any unacknowledged DATA chunk. In
4693 * some situations it may be beneficial for an SCTP transmitter to be
4694 * more conservative than the algorithms detailed in this document
4695 * allow. However, an SCTP transmitter MUST NOT be more aggressive than
4696 * the following algorithms allow.
4697 */
4698 sctp_disposition_t sctp_sf_do_6_2_sack(const struct sctp_endpoint *ep,
4699 const struct sctp_association *asoc,
4700 const sctp_subtype_t type,
4701 void *arg,
4702 sctp_cmd_seq_t *commands)
4703 {
4704 SCTP_INC_STATS(SCTP_MIB_DELAY_SACK_EXPIREDS);
4705 sctp_add_cmd_sf(commands, SCTP_CMD_GEN_SACK, SCTP_FORCE());
4706 return SCTP_DISPOSITION_CONSUME;
4707 }
4708
4709 /*
4710 * sctp_sf_t1_init_timer_expire
4711 *
4712 * Section: 4 Note: 2
4713 * Verification Tag:
4714 * Inputs
4715 * (endpoint, asoc)
4716 *
4717 * RFC 2960 Section 4 Notes
4718 * 2) If the T1-init timer expires, the endpoint MUST retransmit INIT
4719 * and re-start the T1-init timer without changing state. This MUST
4720 * be repeated up to 'Max.Init.Retransmits' times. After that, the
4721 * endpoint MUST abort the initialization process and report the
4722 * error to SCTP user.
4723 *
4724 * Outputs
4725 * (timers, events)
4726 *
4727 */
4728 sctp_disposition_t sctp_sf_t1_init_timer_expire(const struct sctp_endpoint *ep,
4729 const struct sctp_association *asoc,
4730 const sctp_subtype_t type,
4731 void *arg,
4732 sctp_cmd_seq_t *commands)
4733 {
4734 struct sctp_chunk *repl = NULL;
4735 struct sctp_bind_addr *bp;
4736 int attempts = asoc->init_err_counter + 1;
4737
4738 SCTP_DEBUG_PRINTK("Timer T1 expired (INIT).\n");
4739 SCTP_INC_STATS(SCTP_MIB_T1_INIT_EXPIREDS);
4740
4741 if (attempts <= asoc->max_init_attempts) {
4742 bp = (struct sctp_bind_addr *) &asoc->base.bind_addr;
4743 repl = sctp_make_init(asoc, bp, GFP_ATOMIC, 0);
4744 if (!repl)
4745 return SCTP_DISPOSITION_NOMEM;
4746
4747 /* Choose transport for INIT. */
4748 sctp_add_cmd_sf(commands, SCTP_CMD_INIT_CHOOSE_TRANSPORT,
4749 SCTP_CHUNK(repl));
4750
4751 /* Issue a sideeffect to do the needed accounting. */
4752 sctp_add_cmd_sf(commands, SCTP_CMD_INIT_RESTART,
4753 SCTP_TO(SCTP_EVENT_TIMEOUT_T1_INIT));
4754
4755 sctp_add_cmd_sf(commands, SCTP_CMD_REPLY, SCTP_CHUNK(repl));
4756 } else {
4757 SCTP_DEBUG_PRINTK("Giving up on INIT, attempts: %d"
4758 " max_init_attempts: %d\n",
4759 attempts, asoc->max_init_attempts);
4760 sctp_add_cmd_sf(commands, SCTP_CMD_SET_SK_ERR,
4761 SCTP_ERROR(ETIMEDOUT));
4762 sctp_add_cmd_sf(commands, SCTP_CMD_INIT_FAILED,
4763 SCTP_PERR(SCTP_ERROR_NO_ERROR));
4764 return SCTP_DISPOSITION_DELETE_TCB;
4765 }
4766
4767 return SCTP_DISPOSITION_CONSUME;
4768 }
4769
4770 /*
4771 * sctp_sf_t1_cookie_timer_expire
4772 *
4773 * Section: 4 Note: 2
4774 * Verification Tag:
4775 * Inputs
4776 * (endpoint, asoc)
4777 *
4778 * RFC 2960 Section 4 Notes
4779 * 3) If the T1-cookie timer expires, the endpoint MUST retransmit
4780 * COOKIE ECHO and re-start the T1-cookie timer without changing
4781 * state. This MUST be repeated up to 'Max.Init.Retransmits' times.
4782 * After that, the endpoint MUST abort the initialization process and
4783 * report the error to SCTP user.
4784 *
4785 * Outputs
4786 * (timers, events)
4787 *
4788 */
4789 sctp_disposition_t sctp_sf_t1_cookie_timer_expire(const struct sctp_endpoint *ep,
4790 const struct sctp_association *asoc,
4791 const sctp_subtype_t type,
4792 void *arg,
4793 sctp_cmd_seq_t *commands)
4794 {
4795 struct sctp_chunk *repl = NULL;
4796 int attempts = asoc->init_err_counter + 1;
4797
4798 SCTP_DEBUG_PRINTK("Timer T1 expired (COOKIE-ECHO).\n");
4799 SCTP_INC_STATS(SCTP_MIB_T1_COOKIE_EXPIREDS);
4800
4801 if (attempts <= asoc->max_init_attempts) {
4802 repl = sctp_make_cookie_echo(asoc, NULL);
4803 if (!repl)
4804 return SCTP_DISPOSITION_NOMEM;
4805
4806 /* Issue a sideeffect to do the needed accounting. */
4807 sctp_add_cmd_sf(commands, SCTP_CMD_COOKIEECHO_RESTART,
4808 SCTP_TO(SCTP_EVENT_TIMEOUT_T1_COOKIE));
4809
4810 sctp_add_cmd_sf(commands, SCTP_CMD_REPLY, SCTP_CHUNK(repl));
4811 } else {
4812 sctp_add_cmd_sf(commands, SCTP_CMD_SET_SK_ERR,
4813 SCTP_ERROR(ETIMEDOUT));
4814 sctp_add_cmd_sf(commands, SCTP_CMD_INIT_FAILED,
4815 SCTP_PERR(SCTP_ERROR_NO_ERROR));
4816 return SCTP_DISPOSITION_DELETE_TCB;
4817 }
4818
4819 return SCTP_DISPOSITION_CONSUME;
4820 }
4821
4822 /* RFC2960 9.2 If the timer expires, the endpoint must re-send the SHUTDOWN
4823 * with the updated last sequential TSN received from its peer.
4824 *
4825 * An endpoint should limit the number of retransmissions of the
4826 * SHUTDOWN chunk to the protocol parameter 'Association.Max.Retrans'.
4827 * If this threshold is exceeded the endpoint should destroy the TCB and
4828 * MUST report the peer endpoint unreachable to the upper layer (and
4829 * thus the association enters the CLOSED state). The reception of any
4830 * packet from its peer (i.e. as the peer sends all of its queued DATA
4831 * chunks) should clear the endpoint's retransmission count and restart
4832 * the T2-Shutdown timer, giving its peer ample opportunity to transmit
4833 * all of its queued DATA chunks that have not yet been sent.
4834 */
4835 sctp_disposition_t sctp_sf_t2_timer_expire(const struct sctp_endpoint *ep,
4836 const struct sctp_association *asoc,
4837 const sctp_subtype_t type,
4838 void *arg,
4839 sctp_cmd_seq_t *commands)
4840 {
4841 struct sctp_chunk *reply = NULL;
4842
4843 SCTP_DEBUG_PRINTK("Timer T2 expired.\n");
4844 SCTP_INC_STATS(SCTP_MIB_T2_SHUTDOWN_EXPIREDS);
4845
4846 if (asoc->overall_error_count >= asoc->max_retrans) {
4847 sctp_add_cmd_sf(commands, SCTP_CMD_SET_SK_ERR,
4848 SCTP_ERROR(ETIMEDOUT));
4849 /* Note: CMD_ASSOC_FAILED calls CMD_DELETE_TCB. */
4850 sctp_add_cmd_sf(commands, SCTP_CMD_ASSOC_FAILED,
4851 SCTP_PERR(SCTP_ERROR_NO_ERROR));
4852 SCTP_INC_STATS(SCTP_MIB_ABORTEDS);
4853 SCTP_DEC_STATS(SCTP_MIB_CURRESTAB);
4854 return SCTP_DISPOSITION_DELETE_TCB;
4855 }
4856
4857 switch (asoc->state) {
4858 case SCTP_STATE_SHUTDOWN_SENT:
4859 reply = sctp_make_shutdown(asoc, NULL);
4860 break;
4861
4862 case SCTP_STATE_SHUTDOWN_ACK_SENT:
4863 reply = sctp_make_shutdown_ack(asoc, NULL);
4864 break;
4865
4866 default:
4867 BUG();
4868 break;
4869 }
4870
4871 if (!reply)
4872 goto nomem;
4873
4874 /* Do some failure management (Section 8.2). */
4875 sctp_add_cmd_sf(commands, SCTP_CMD_STRIKE,
4876 SCTP_TRANSPORT(asoc->shutdown_last_sent_to));
4877
4878 /* Set the transport for the SHUTDOWN/ACK chunk and the timeout for
4879 * the T2-shutdown timer.
4880 */
4881 sctp_add_cmd_sf(commands, SCTP_CMD_SETUP_T2, SCTP_CHUNK(reply));
4882
4883 /* Restart the T2-shutdown timer. */
4884 sctp_add_cmd_sf(commands, SCTP_CMD_TIMER_RESTART,
4885 SCTP_TO(SCTP_EVENT_TIMEOUT_T2_SHUTDOWN));
4886 sctp_add_cmd_sf(commands, SCTP_CMD_REPLY, SCTP_CHUNK(reply));
4887 return SCTP_DISPOSITION_CONSUME;
4888
4889 nomem:
4890 return SCTP_DISPOSITION_NOMEM;
4891 }
4892
4893 /*
4894 * ADDIP Section 4.1 ASCONF CHunk Procedures
4895 * If the T4 RTO timer expires the endpoint should do B1 to B5
4896 */
4897 sctp_disposition_t sctp_sf_t4_timer_expire(
4898 const struct sctp_endpoint *ep,
4899 const struct sctp_association *asoc,
4900 const sctp_subtype_t type,
4901 void *arg,
4902 sctp_cmd_seq_t *commands)
4903 {
4904 struct sctp_chunk *chunk = asoc->addip_last_asconf;
4905 struct sctp_transport *transport = chunk->transport;
4906
4907 SCTP_INC_STATS(SCTP_MIB_T4_RTO_EXPIREDS);
4908
4909 /* ADDIP 4.1 B1) Increment the error counters and perform path failure
4910 * detection on the appropriate destination address as defined in
4911 * RFC2960 [5] section 8.1 and 8.2.
4912 */
4913 sctp_add_cmd_sf(commands, SCTP_CMD_STRIKE, SCTP_TRANSPORT(transport));
4914
4915 /* Reconfig T4 timer and transport. */
4916 sctp_add_cmd_sf(commands, SCTP_CMD_SETUP_T4, SCTP_CHUNK(chunk));
4917
4918 /* ADDIP 4.1 B2) Increment the association error counters and perform
4919 * endpoint failure detection on the association as defined in
4920 * RFC2960 [5] section 8.1 and 8.2.
4921 * association error counter is incremented in SCTP_CMD_STRIKE.
4922 */
4923 if (asoc->overall_error_count >= asoc->max_retrans) {
4924 sctp_add_cmd_sf(commands, SCTP_CMD_TIMER_STOP,
4925 SCTP_TO(SCTP_EVENT_TIMEOUT_T4_RTO));
4926 sctp_add_cmd_sf(commands, SCTP_CMD_SET_SK_ERR,
4927 SCTP_ERROR(ETIMEDOUT));
4928 sctp_add_cmd_sf(commands, SCTP_CMD_ASSOC_FAILED,
4929 SCTP_PERR(SCTP_ERROR_NO_ERROR));
4930 SCTP_INC_STATS(SCTP_MIB_ABORTEDS);
4931 SCTP_INC_STATS(SCTP_MIB_CURRESTAB);
4932 return SCTP_DISPOSITION_ABORT;
4933 }
4934
4935 /* ADDIP 4.1 B3) Back-off the destination address RTO value to which
4936 * the ASCONF chunk was sent by doubling the RTO timer value.
4937 * This is done in SCTP_CMD_STRIKE.
4938 */
4939
4940 /* ADDIP 4.1 B4) Re-transmit the ASCONF Chunk last sent and if possible
4941 * choose an alternate destination address (please refer to RFC2960
4942 * [5] section 6.4.1). An endpoint MUST NOT add new parameters to this
4943 * chunk, it MUST be the same (including its serial number) as the last
4944 * ASCONF sent.
4945 */
4946 sctp_chunk_hold(asoc->addip_last_asconf);
4947 sctp_add_cmd_sf(commands, SCTP_CMD_REPLY,
4948 SCTP_CHUNK(asoc->addip_last_asconf));
4949
4950 /* ADDIP 4.1 B5) Restart the T-4 RTO timer. Note that if a different
4951 * destination is selected, then the RTO used will be that of the new
4952 * destination address.
4953 */
4954 sctp_add_cmd_sf(commands, SCTP_CMD_TIMER_RESTART,
4955 SCTP_TO(SCTP_EVENT_TIMEOUT_T4_RTO));
4956
4957 return SCTP_DISPOSITION_CONSUME;
4958 }
4959
4960 /* sctpimpguide-05 Section 2.12.2
4961 * The sender of the SHUTDOWN MAY also start an overall guard timer
4962 * 'T5-shutdown-guard' to bound the overall time for shutdown sequence.
4963 * At the expiration of this timer the sender SHOULD abort the association
4964 * by sending an ABORT chunk.
4965 */
4966 sctp_disposition_t sctp_sf_t5_timer_expire(const struct sctp_endpoint *ep,
4967 const struct sctp_association *asoc,
4968 const sctp_subtype_t type,
4969 void *arg,
4970 sctp_cmd_seq_t *commands)
4971 {
4972 struct sctp_chunk *reply = NULL;
4973
4974 SCTP_DEBUG_PRINTK("Timer T5 expired.\n");
4975 SCTP_INC_STATS(SCTP_MIB_T5_SHUTDOWN_GUARD_EXPIREDS);
4976
4977 reply = sctp_make_abort(asoc, NULL, 0);
4978 if (!reply)
4979 goto nomem;
4980
4981 sctp_add_cmd_sf(commands, SCTP_CMD_REPLY, SCTP_CHUNK(reply));
4982 sctp_add_cmd_sf(commands, SCTP_CMD_SET_SK_ERR,
4983 SCTP_ERROR(ETIMEDOUT));
4984 sctp_add_cmd_sf(commands, SCTP_CMD_ASSOC_FAILED,
4985 SCTP_PERR(SCTP_ERROR_NO_ERROR));
4986
4987 return SCTP_DISPOSITION_DELETE_TCB;
4988 nomem:
4989 return SCTP_DISPOSITION_NOMEM;
4990 }
4991
4992 /* Handle expiration of AUTOCLOSE timer. When the autoclose timer expires,
4993 * the association is automatically closed by starting the shutdown process.
4994 * The work that needs to be done is same as when SHUTDOWN is initiated by
4995 * the user. So this routine looks same as sctp_sf_do_9_2_prm_shutdown().
4996 */
4997 sctp_disposition_t sctp_sf_autoclose_timer_expire(
4998 const struct sctp_endpoint *ep,
4999 const struct sctp_association *asoc,
5000 const sctp_subtype_t type,
5001 void *arg,
5002 sctp_cmd_seq_t *commands)
5003 {
5004 int disposition;
5005
5006 SCTP_INC_STATS(SCTP_MIB_AUTOCLOSE_EXPIREDS);
5007
5008 /* From 9.2 Shutdown of an Association
5009 * Upon receipt of the SHUTDOWN primitive from its upper
5010 * layer, the endpoint enters SHUTDOWN-PENDING state and
5011 * remains there until all outstanding data has been
5012 * acknowledged by its peer. The endpoint accepts no new data
5013 * from its upper layer, but retransmits data to the far end
5014 * if necessary to fill gaps.
5015 */
5016 sctp_add_cmd_sf(commands, SCTP_CMD_NEW_STATE,
5017 SCTP_STATE(SCTP_STATE_SHUTDOWN_PENDING));
5018
5019 /* sctpimpguide-05 Section 2.12.2
5020 * The sender of the SHUTDOWN MAY also start an overall guard timer
5021 * 'T5-shutdown-guard' to bound the overall time for shutdown sequence.
5022 */
5023 sctp_add_cmd_sf(commands, SCTP_CMD_TIMER_START,
5024 SCTP_TO(SCTP_EVENT_TIMEOUT_T5_SHUTDOWN_GUARD));
5025 disposition = SCTP_DISPOSITION_CONSUME;
5026 if (sctp_outq_is_empty(&asoc->outqueue)) {
5027 disposition = sctp_sf_do_9_2_start_shutdown(ep, asoc, type,
5028 arg, commands);
5029 }
5030 return disposition;
5031 }
5032
5033 /*****************************************************************************
5034 * These are sa state functions which could apply to all types of events.
5035 ****************************************************************************/
5036
5037 /*
5038 * This table entry is not implemented.
5039 *
5040 * Inputs
5041 * (endpoint, asoc, chunk)
5042 *
5043 * The return value is the disposition of the chunk.
5044 */
5045 sctp_disposition_t sctp_sf_not_impl(const struct sctp_endpoint *ep,
5046 const struct sctp_association *asoc,
5047 const sctp_subtype_t type,
5048 void *arg,
5049 sctp_cmd_seq_t *commands)
5050 {
5051 return SCTP_DISPOSITION_NOT_IMPL;
5052 }
5053
5054 /*
5055 * This table entry represents a bug.
5056 *
5057 * Inputs
5058 * (endpoint, asoc, chunk)
5059 *
5060 * The return value is the disposition of the chunk.
5061 */
5062 sctp_disposition_t sctp_sf_bug(const struct sctp_endpoint *ep,
5063 const struct sctp_association *asoc,
5064 const sctp_subtype_t type,
5065 void *arg,
5066 sctp_cmd_seq_t *commands)
5067 {
5068 return SCTP_DISPOSITION_BUG;
5069 }
5070
5071 /*
5072 * This table entry represents the firing of a timer in the wrong state.
5073 * Since timer deletion cannot be guaranteed a timer 'may' end up firing
5074 * when the association is in the wrong state. This event should
5075 * be ignored, so as to prevent any rearming of the timer.
5076 *
5077 * Inputs
5078 * (endpoint, asoc, chunk)
5079 *
5080 * The return value is the disposition of the chunk.
5081 */
5082 sctp_disposition_t sctp_sf_timer_ignore(const struct sctp_endpoint *ep,
5083 const struct sctp_association *asoc,
5084 const sctp_subtype_t type,
5085 void *arg,
5086 sctp_cmd_seq_t *commands)
5087 {
5088 SCTP_DEBUG_PRINTK("Timer %d ignored.\n", type.chunk);
5089 return SCTP_DISPOSITION_CONSUME;
5090 }
5091
5092 /********************************************************************
5093 * 2nd Level Abstractions
5094 ********************************************************************/
5095
5096 /* Pull the SACK chunk based on the SACK header. */
5097 static struct sctp_sackhdr *sctp_sm_pull_sack(struct sctp_chunk *chunk)
5098 {
5099 struct sctp_sackhdr *sack;
5100 unsigned int len;
5101 __u16 num_blocks;
5102 __u16 num_dup_tsns;
5103
5104 /* Protect ourselves from reading too far into
5105 * the skb from a bogus sender.
5106 */
5107 sack = (struct sctp_sackhdr *) chunk->skb->data;
5108
5109 num_blocks = ntohs(sack->num_gap_ack_blocks);
5110 num_dup_tsns = ntohs(sack->num_dup_tsns);
5111 len = sizeof(struct sctp_sackhdr);
5112 len += (num_blocks + num_dup_tsns) * sizeof(__u32);
5113 if (len > chunk->skb->len)
5114 return NULL;
5115
5116 skb_pull(chunk->skb, len);
5117
5118 return sack;
5119 }
5120
5121 /* Create an ABORT packet to be sent as a response, with the specified
5122 * error causes.
5123 */
5124 static struct sctp_packet *sctp_abort_pkt_new(const struct sctp_endpoint *ep,
5125 const struct sctp_association *asoc,
5126 struct sctp_chunk *chunk,
5127 const void *payload,
5128 size_t paylen)
5129 {
5130 struct sctp_packet *packet;
5131 struct sctp_chunk *abort;
5132
5133 packet = sctp_ootb_pkt_new(asoc, chunk);
5134
5135 if (packet) {
5136 /* Make an ABORT.
5137 * The T bit will be set if the asoc is NULL.
5138 */
5139 abort = sctp_make_abort(asoc, chunk, paylen);
5140 if (!abort) {
5141 sctp_ootb_pkt_free(packet);
5142 return NULL;
5143 }
5144
5145 /* Reflect vtag if T-Bit is set */
5146 if (sctp_test_T_bit(abort))
5147 packet->vtag = ntohl(chunk->sctp_hdr->vtag);
5148
5149 /* Add specified error causes, i.e., payload, to the
5150 * end of the chunk.
5151 */
5152 sctp_addto_chunk(abort, paylen, payload);
5153
5154 /* Set the skb to the belonging sock for accounting. */
5155 abort->skb->sk = ep->base.sk;
5156
5157 sctp_packet_append_chunk(packet, abort);
5158
5159 }
5160
5161 return packet;
5162 }
5163
5164 /* Allocate a packet for responding in the OOTB conditions. */
5165 static struct sctp_packet *sctp_ootb_pkt_new(const struct sctp_association *asoc,
5166 const struct sctp_chunk *chunk)
5167 {
5168 struct sctp_packet *packet;
5169 struct sctp_transport *transport;
5170 __u16 sport;
5171 __u16 dport;
5172 __u32 vtag;
5173
5174 /* Get the source and destination port from the inbound packet. */
5175 sport = ntohs(chunk->sctp_hdr->dest);
5176 dport = ntohs(chunk->sctp_hdr->source);
5177
5178 /* The V-tag is going to be the same as the inbound packet if no
5179 * association exists, otherwise, use the peer's vtag.
5180 */
5181 if (asoc) {
5182 /* Special case the INIT-ACK as there is no peer's vtag
5183 * yet.
5184 */
5185 switch(chunk->chunk_hdr->type) {
5186 case SCTP_CID_INIT_ACK:
5187 {
5188 sctp_initack_chunk_t *initack;
5189
5190 initack = (sctp_initack_chunk_t *)chunk->chunk_hdr;
5191 vtag = ntohl(initack->init_hdr.init_tag);
5192 break;
5193 }
5194 default:
5195 vtag = asoc->peer.i.init_tag;
5196 break;
5197 }
5198 } else {
5199 /* Special case the INIT and stale COOKIE_ECHO as there is no
5200 * vtag yet.
5201 */
5202 switch(chunk->chunk_hdr->type) {
5203 case SCTP_CID_INIT:
5204 {
5205 sctp_init_chunk_t *init;
5206
5207 init = (sctp_init_chunk_t *)chunk->chunk_hdr;
5208 vtag = ntohl(init->init_hdr.init_tag);
5209 break;
5210 }
5211 default:
5212 vtag = ntohl(chunk->sctp_hdr->vtag);
5213 break;
5214 }
5215 }
5216
5217 /* Make a transport for the bucket, Eliza... */
5218 transport = sctp_transport_new(sctp_source(chunk), GFP_ATOMIC);
5219 if (!transport)
5220 goto nomem;
5221
5222 /* Cache a route for the transport with the chunk's destination as
5223 * the source address.
5224 */
5225 sctp_transport_route(transport, (union sctp_addr *)&chunk->dest,
5226 sctp_sk(sctp_get_ctl_sock()));
5227
5228 packet = sctp_packet_init(&transport->packet, transport, sport, dport);
5229 packet = sctp_packet_config(packet, vtag, 0);
5230
5231 return packet;
5232
5233 nomem:
5234 return NULL;
5235 }
5236
5237 /* Free the packet allocated earlier for responding in the OOTB condition. */
5238 void sctp_ootb_pkt_free(struct sctp_packet *packet)
5239 {
5240 sctp_transport_free(packet->transport);
5241 }
5242
5243 /* Send a stale cookie error when a invalid COOKIE ECHO chunk is found */
5244 static void sctp_send_stale_cookie_err(const struct sctp_endpoint *ep,
5245 const struct sctp_association *asoc,
5246 const struct sctp_chunk *chunk,
5247 sctp_cmd_seq_t *commands,
5248 struct sctp_chunk *err_chunk)
5249 {
5250 struct sctp_packet *packet;
5251
5252 if (err_chunk) {
5253 packet = sctp_ootb_pkt_new(asoc, chunk);
5254 if (packet) {
5255 struct sctp_signed_cookie *cookie;
5256
5257 /* Override the OOTB vtag from the cookie. */
5258 cookie = chunk->subh.cookie_hdr;
5259 packet->vtag = cookie->c.peer_vtag;
5260
5261 /* Set the skb to the belonging sock for accounting. */
5262 err_chunk->skb->sk = ep->base.sk;
5263 sctp_packet_append_chunk(packet, err_chunk);
5264 sctp_add_cmd_sf(commands, SCTP_CMD_SEND_PKT,
5265 SCTP_PACKET(packet));
5266 SCTP_INC_STATS(SCTP_MIB_OUTCTRLCHUNKS);
5267 } else
5268 sctp_chunk_free (err_chunk);
5269 }
5270 }
5271
5272
5273 /* Process a data chunk */
5274 static int sctp_eat_data(const struct sctp_association *asoc,
5275 struct sctp_chunk *chunk,
5276 sctp_cmd_seq_t *commands)
5277 {
5278 sctp_datahdr_t *data_hdr;
5279 struct sctp_chunk *err;
5280 size_t datalen;
5281 sctp_verb_t deliver;
5282 int tmp;
5283 __u32 tsn;
5284 int account_value;
5285 struct sctp_tsnmap *map = (struct sctp_tsnmap *)&asoc->peer.tsn_map;
5286 struct sock *sk = asoc->base.sk;
5287 int rcvbuf_over = 0;
5288
5289 data_hdr = chunk->subh.data_hdr = (sctp_datahdr_t *)chunk->skb->data;
5290 skb_pull(chunk->skb, sizeof(sctp_datahdr_t));
5291
5292 tsn = ntohl(data_hdr->tsn);
5293 SCTP_DEBUG_PRINTK("eat_data: TSN 0x%x.\n", tsn);
5294
5295 /* ASSERT: Now skb->data is really the user data. */
5296
5297 /*
5298 * If we are established, and we have used up our receive buffer
5299 * memory, think about droping the frame.
5300 * Note that we have an opportunity to improve performance here.
5301 * If we accept one chunk from an skbuff, we have to keep all the
5302 * memory of that skbuff around until the chunk is read into user
5303 * space. Therefore, once we accept 1 chunk we may as well accept all
5304 * remaining chunks in the skbuff. The data_accepted flag helps us do
5305 * that.
5306 */
5307 if ((asoc->state == SCTP_STATE_ESTABLISHED) && (!chunk->data_accepted)) {
5308 /*
5309 * If the receive buffer policy is 1, then each
5310 * association can allocate up to sk_rcvbuf bytes
5311 * otherwise, all the associations in aggregate
5312 * may allocate up to sk_rcvbuf bytes
5313 */
5314 if (asoc->ep->rcvbuf_policy)
5315 account_value = atomic_read(&asoc->rmem_alloc);
5316 else
5317 account_value = atomic_read(&sk->sk_rmem_alloc);
5318 if (account_value > sk->sk_rcvbuf) {
5319 /*
5320 * We need to make forward progress, even when we are
5321 * under memory pressure, so we always allow the
5322 * next tsn after the ctsn ack point to be accepted.
5323 * This lets us avoid deadlocks in which we have to
5324 * drop frames that would otherwise let us drain the
5325 * receive queue.
5326 */
5327 if ((sctp_tsnmap_get_ctsn(map) + 1) != tsn)
5328 return SCTP_IERROR_IGNORE_TSN;
5329
5330 /*
5331 * We're going to accept the frame but we should renege
5332 * to make space for it. This will send us down that
5333 * path later in this function.
5334 */
5335 rcvbuf_over = 1;
5336 }
5337 }
5338
5339 /* Process ECN based congestion.
5340 *
5341 * Since the chunk structure is reused for all chunks within
5342 * a packet, we use ecn_ce_done to track if we've already
5343 * done CE processing for this packet.
5344 *
5345 * We need to do ECN processing even if we plan to discard the
5346 * chunk later.
5347 */
5348
5349 if (!chunk->ecn_ce_done) {
5350 struct sctp_af *af;
5351 chunk->ecn_ce_done = 1;
5352
5353 af = sctp_get_af_specific(
5354 ipver2af(ip_hdr(chunk->skb)->version));
5355
5356 if (af && af->is_ce(chunk->skb) && asoc->peer.ecn_capable) {
5357 /* Do real work as sideffect. */
5358 sctp_add_cmd_sf(commands, SCTP_CMD_ECN_CE,
5359 SCTP_U32(tsn));
5360 }
5361 }
5362
5363 tmp = sctp_tsnmap_check(&asoc->peer.tsn_map, tsn);
5364 if (tmp < 0) {
5365 /* The TSN is too high--silently discard the chunk and
5366 * count on it getting retransmitted later.
5367 */
5368 return SCTP_IERROR_HIGH_TSN;
5369 } else if (tmp > 0) {
5370 /* This is a duplicate. Record it. */
5371 sctp_add_cmd_sf(commands, SCTP_CMD_REPORT_DUP, SCTP_U32(tsn));
5372 return SCTP_IERROR_DUP_TSN;
5373 }
5374
5375 /* This is a new TSN. */
5376
5377 /* Discard if there is no room in the receive window.
5378 * Actually, allow a little bit of overflow (up to a MTU).
5379 */
5380 datalen = ntohs(chunk->chunk_hdr->length);
5381 datalen -= sizeof(sctp_data_chunk_t);
5382
5383 deliver = SCTP_CMD_CHUNK_ULP;
5384
5385 /* Think about partial delivery. */
5386 if ((datalen >= asoc->rwnd) && (!asoc->ulpq.pd_mode)) {
5387
5388 /* Even if we don't accept this chunk there is
5389 * memory pressure.
5390 */
5391 sctp_add_cmd_sf(commands, SCTP_CMD_PART_DELIVER, SCTP_NULL());
5392 }
5393
5394 /* Spill over rwnd a little bit. Note: While allowed, this spill over
5395 * seems a bit troublesome in that frag_point varies based on
5396 * PMTU. In cases, such as loopback, this might be a rather
5397 * large spill over.
5398 * NOTE: If we have a full receive buffer here, we only renege if
5399 * our receiver can still make progress without the tsn being
5400 * received. We do this because in the event that the associations
5401 * receive queue is empty we are filling a leading gap, and since
5402 * reneging moves the gap to the end of the tsn stream, we are likely
5403 * to stall again very shortly. Avoiding the renege when we fill a
5404 * leading gap is a good heuristic for avoiding such steady state
5405 * stalls.
5406 */
5407 if (!asoc->rwnd || asoc->rwnd_over ||
5408 (datalen > asoc->rwnd + asoc->frag_point) ||
5409 (rcvbuf_over && (!skb_queue_len(&sk->sk_receive_queue)))) {
5410
5411 /* If this is the next TSN, consider reneging to make
5412 * room. Note: Playing nice with a confused sender. A
5413 * malicious sender can still eat up all our buffer
5414 * space and in the future we may want to detect and
5415 * do more drastic reneging.
5416 */
5417 if (sctp_tsnmap_has_gap(map) &&
5418 (sctp_tsnmap_get_ctsn(map) + 1) == tsn) {
5419 SCTP_DEBUG_PRINTK("Reneging for tsn:%u\n", tsn);
5420 deliver = SCTP_CMD_RENEGE;
5421 } else {
5422 SCTP_DEBUG_PRINTK("Discard tsn: %u len: %Zd, "
5423 "rwnd: %d\n", tsn, datalen,
5424 asoc->rwnd);
5425 return SCTP_IERROR_IGNORE_TSN;
5426 }
5427 }
5428
5429 /*
5430 * Section 3.3.10.9 No User Data (9)
5431 *
5432 * Cause of error
5433 * ---------------
5434 * No User Data: This error cause is returned to the originator of a
5435 * DATA chunk if a received DATA chunk has no user data.
5436 */
5437 if (unlikely(0 == datalen)) {
5438 err = sctp_make_abort_no_data(asoc, chunk, tsn);
5439 if (err) {
5440 sctp_add_cmd_sf(commands, SCTP_CMD_REPLY,
5441 SCTP_CHUNK(err));
5442 }
5443 /* We are going to ABORT, so we might as well stop
5444 * processing the rest of the chunks in the packet.
5445 */
5446 sctp_add_cmd_sf(commands, SCTP_CMD_DISCARD_PACKET,SCTP_NULL());
5447 sctp_add_cmd_sf(commands, SCTP_CMD_SET_SK_ERR,
5448 SCTP_ERROR(ECONNABORTED));
5449 sctp_add_cmd_sf(commands, SCTP_CMD_ASSOC_FAILED,
5450 SCTP_PERR(SCTP_ERROR_NO_DATA));
5451 SCTP_INC_STATS(SCTP_MIB_ABORTEDS);
5452 SCTP_DEC_STATS(SCTP_MIB_CURRESTAB);
5453 return SCTP_IERROR_NO_DATA;
5454 }
5455
5456 /* If definately accepting the DATA chunk, record its TSN, otherwise
5457 * wait for renege processing.
5458 */
5459 if (SCTP_CMD_CHUNK_ULP == deliver)
5460 sctp_add_cmd_sf(commands, SCTP_CMD_REPORT_TSN, SCTP_U32(tsn));
5461
5462 chunk->data_accepted = 1;
5463
5464 /* Note: Some chunks may get overcounted (if we drop) or overcounted
5465 * if we renege and the chunk arrives again.
5466 */
5467 if (chunk->chunk_hdr->flags & SCTP_DATA_UNORDERED)
5468 SCTP_INC_STATS(SCTP_MIB_INUNORDERCHUNKS);
5469 else
5470 SCTP_INC_STATS(SCTP_MIB_INORDERCHUNKS);
5471
5472 /* RFC 2960 6.5 Stream Identifier and Stream Sequence Number
5473 *
5474 * If an endpoint receive a DATA chunk with an invalid stream
5475 * identifier, it shall acknowledge the reception of the DATA chunk
5476 * following the normal procedure, immediately send an ERROR chunk
5477 * with cause set to "Invalid Stream Identifier" (See Section 3.3.10)
5478 * and discard the DATA chunk.
5479 */
5480 if (ntohs(data_hdr->stream) >= asoc->c.sinit_max_instreams) {
5481 err = sctp_make_op_error(asoc, chunk, SCTP_ERROR_INV_STRM,
5482 &data_hdr->stream,
5483 sizeof(data_hdr->stream));
5484 if (err)
5485 sctp_add_cmd_sf(commands, SCTP_CMD_REPLY,
5486 SCTP_CHUNK(err));
5487 return SCTP_IERROR_BAD_STREAM;
5488 }
5489
5490 /* Send the data up to the user. Note: Schedule the
5491 * SCTP_CMD_CHUNK_ULP cmd before the SCTP_CMD_GEN_SACK, as the SACK
5492 * chunk needs the updated rwnd.
5493 */
5494 sctp_add_cmd_sf(commands, deliver, SCTP_CHUNK(chunk));
5495
5496 return SCTP_IERROR_NO_ERROR;
5497 }
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