1 /*
2 * net/tipc/link.c: TIPC link code
3 *
4 * Copyright (c) 1996-2007, 2012-2016, Ericsson AB
5 * Copyright (c) 2004-2007, 2010-2013, Wind River Systems
6 * All rights reserved.
7 *
8 * Redistribution and use in source and binary forms, with or without
9 * modification, are permitted provided that the following conditions are met:
10 *
11 * 1. Redistributions of source code must retain the above copyright
12 * notice, this list of conditions and the following disclaimer.
13 * 2. Redistributions in binary form must reproduce the above copyright
14 * notice, this list of conditions and the following disclaimer in the
15 * documentation and/or other materials provided with the distribution.
16 * 3. Neither the names of the copyright holders nor the names of its
17 * contributors may be used to endorse or promote products derived from
18 * this software without specific prior written permission.
19 *
20 * Alternatively, this software may be distributed under the terms of the
21 * GNU General Public License ("GPL") version 2 as published by the Free
22 * Software Foundation.
23 *
24 * THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS "AS IS"
25 * AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
26 * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
27 * ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT OWNER OR CONTRIBUTORS BE
28 * LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
29 * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
30 * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
31 * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
32 * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
33 * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
34 * POSSIBILITY OF SUCH DAMAGE.
35 */
36
37 #include "core.h"
38 #include "subscr.h"
39 #include "link.h"
40 #include "bcast.h"
41 #include "socket.h"
42 #include "name_distr.h"
43 #include "discover.h"
44 #include "netlink.h"
45 #include "monitor.h"
46 #include "trace.h"
47 #include "crypto.h"
48
49 #include <linux/pkt_sched.h>
50
51 struct tipc_stats {
52 u32 sent_pkts;
53 u32 recv_pkts;
54 u32 sent_states;
55 u32 recv_states;
56 u32 sent_probes;
57 u32 recv_probes;
58 u32 sent_nacks;
59 u32 recv_nacks;
60 u32 sent_acks;
61 u32 sent_bundled;
62 u32 sent_bundles;
63 u32 recv_bundled;
64 u32 recv_bundles;
65 u32 retransmitted;
66 u32 sent_fragmented;
67 u32 sent_fragments;
68 u32 recv_fragmented;
69 u32 recv_fragments;
70 u32 link_congs; /* # port sends blocked by congestion */
71 u32 deferred_recv;
72 u32 duplicates;
73 u32 max_queue_sz; /* send queue size high water mark */
74 u32 accu_queue_sz; /* used for send queue size profiling */
75 u32 queue_sz_counts; /* used for send queue size profiling */
76 u32 msg_length_counts; /* used for message length profiling */
77 u32 msg_lengths_total; /* used for message length profiling */
78 u32 msg_length_profile[7]; /* used for msg. length profiling */
79 };
80
81 /**
82 * struct tipc_link - TIPC link data structure
83 * @addr: network address of link's peer node
84 * @name: link name character string
85 * @media_addr: media address to use when sending messages over link
86 * @timer: link timer
87 * @net: pointer to namespace struct
88 * @refcnt: reference counter for permanent references (owner node & timer)
89 * @peer_session: link session # being used by peer end of link
90 * @peer_bearer_id: bearer id used by link's peer endpoint
91 * @bearer_id: local bearer id used by link
92 * @tolerance: minimum link continuity loss needed to reset link [in ms]
93 * @abort_limit: # of unacknowledged continuity probes needed to reset link
94 * @state: current state of link FSM
95 * @peer_caps: bitmap describing capabilities of peer node
96 * @silent_intv_cnt: # of timer intervals without any reception from peer
97 * @proto_msg: template for control messages generated by link
98 * @pmsg: convenience pointer to "proto_msg" field
99 * @priority: current link priority
100 * @net_plane: current link network plane ('A' through 'H')
101 * @mon_state: cookie with information needed by link monitor
102 * @backlog_limit: backlog queue congestion thresholds (indexed by importance)
103 * @exp_msg_count: # of tunnelled messages expected during link changeover
104 * @reset_rcv_checkpt: seq # of last acknowledged message at time of link reset
105 * @mtu: current maximum packet size for this link
106 * @advertised_mtu: advertised own mtu when link is being established
107 * @transmitq: queue for sent, non-acked messages
108 * @backlogq: queue for messages waiting to be sent
109 * @snt_nxt: next sequence number to use for outbound messages
110 * @ackers: # of peers that needs to ack each packet before it can be released
111 * @acked: # last packet acked by a certain peer. Used for broadcast.
112 * @rcv_nxt: next sequence number to expect for inbound messages
113 * @deferred_queue: deferred queue saved OOS b'cast message received from node
114 * @unacked_window: # of inbound messages rx'd without ack'ing back to peer
115 * @inputq: buffer queue for messages to be delivered upwards
116 * @namedq: buffer queue for name table messages to be delivered upwards
117 * @next_out: ptr to first unsent outbound message in queue
118 * @wakeupq: linked list of wakeup msgs waiting for link congestion to abate
119 * @long_msg_seq_no: next identifier to use for outbound fragmented messages
120 * @reasm_buf: head of partially reassembled inbound message fragments
121 * @bc_rcvr: marks that this is a broadcast receiver link
122 * @stats: collects statistics regarding link activity
123 * @session: session to be used by link
124 * @snd_nxt_state: next send seq number
125 * @rcv_nxt_state: next rcv seq number
126 * @in_session: have received ACTIVATE_MSG from peer
127 * @active: link is active
128 * @if_name: associated interface name
129 * @rst_cnt: link reset counter
130 * @drop_point: seq number for failover handling (FIXME)
131 * @failover_reasm_skb: saved failover msg ptr (FIXME)
132 * @failover_deferdq: deferred message queue for failover processing (FIXME)
133 * @transmq: the link's transmit queue
134 * @backlog: link's backlog by priority (importance)
135 * @snd_nxt: next sequence number to be used
136 * @rcv_unacked: # messages read by user, but not yet acked back to peer
137 * @deferdq: deferred receive queue
138 * @window: sliding window size for congestion handling
139 * @min_win: minimal send window to be used by link
140 * @ssthresh: slow start threshold for congestion handling
141 * @max_win: maximal send window to be used by link
142 * @cong_acks: congestion acks for congestion avoidance (FIXME)
143 * @checkpoint: seq number for congestion window size handling
144 * @reasm_tnlmsg: fragmentation/reassembly area for tunnel protocol message
145 * @last_gap: last gap ack blocks for bcast (FIXME)
146 * @last_ga: ptr to gap ack blocks
147 * @bc_rcvlink: the peer specific link used for broadcast reception
148 * @bc_sndlink: the namespace global link used for broadcast sending
149 * @nack_state: bcast nack state
150 * @bc_peer_is_up: peer has acked the bcast init msg
151 */
152 struct tipc_link {
153 u32 addr;
154 char name[TIPC_MAX_LINK_NAME];
155 struct net *net;
156
157 /* Management and link supervision data */
158 u16 peer_session;
159 u16 session;
160 u16 snd_nxt_state;
161 u16 rcv_nxt_state;
162 u32 peer_bearer_id;
163 u32 bearer_id;
164 u32 tolerance;
165 u32 abort_limit;
166 u32 state;
167 u16 peer_caps;
168 bool in_session;
169 bool active;
170 u32 silent_intv_cnt;
171 char if_name[TIPC_MAX_IF_NAME];
172 u32 priority;
173 char net_plane;
174 struct tipc_mon_state mon_state;
175 u16 rst_cnt;
176
177 /* Failover/synch */
178 u16 drop_point;
179 struct sk_buff *failover_reasm_skb;
180 struct sk_buff_head failover_deferdq;
181
182 /* Max packet negotiation */
183 u16 mtu;
184 u16 advertised_mtu;
185
186 /* Sending */
187 struct sk_buff_head transmq;
188 struct sk_buff_head backlogq;
189 struct {
190 u16 len;
191 u16 limit;
192 struct sk_buff *target_bskb;
193 } backlog[5];
194 u16 snd_nxt;
195
196 /* Reception */
197 u16 rcv_nxt;
198 u32 rcv_unacked;
199 struct sk_buff_head deferdq;
200 struct sk_buff_head *inputq;
201 struct sk_buff_head *namedq;
202
203 /* Congestion handling */
204 struct sk_buff_head wakeupq;
205 u16 window;
206 u16 min_win;
207 u16 ssthresh;
208 u16 max_win;
209 u16 cong_acks;
210 u16 checkpoint;
211
212 /* Fragmentation/reassembly */
213 struct sk_buff *reasm_buf;
214 struct sk_buff *reasm_tnlmsg;
215
216 /* Broadcast */
217 u16 ackers;
218 u16 acked;
219 u16 last_gap;
220 struct tipc_gap_ack_blks *last_ga;
221 struct tipc_link *bc_rcvlink;
222 struct tipc_link *bc_sndlink;
223 u8 nack_state;
224 bool bc_peer_is_up;
225
226 /* Statistics */
227 struct tipc_stats stats;
228 };
229
230 /*
231 * Error message prefixes
232 */
233 static const char *link_co_err = "Link tunneling error, ";
234 static const char *link_rst_msg = "Resetting link ";
235
236 /* Send states for broadcast NACKs
237 */
238 enum {
239 BC_NACK_SND_CONDITIONAL,
240 BC_NACK_SND_UNCONDITIONAL,
241 BC_NACK_SND_SUPPRESS,
242 };
243
244 #define TIPC_BC_RETR_LIM (jiffies + msecs_to_jiffies(10))
245 #define TIPC_UC_RETR_TIME (jiffies + msecs_to_jiffies(1))
246
247 /* Link FSM states:
248 */
249 enum {
250 LINK_ESTABLISHED = 0xe,
251 LINK_ESTABLISHING = 0xe << 4,
252 LINK_RESET = 0x1 << 8,
253 LINK_RESETTING = 0x2 << 12,
254 LINK_PEER_RESET = 0xd << 16,
255 LINK_FAILINGOVER = 0xf << 20,
256 LINK_SYNCHING = 0xc << 24
257 };
258
259 /* Link FSM state checking routines
260 */
link_is_up(struct tipc_link * l)261 static int link_is_up(struct tipc_link *l)
262 {
263 return l->state & (LINK_ESTABLISHED | LINK_SYNCHING);
264 }
265
266 static int tipc_link_proto_rcv(struct tipc_link *l, struct sk_buff *skb,
267 struct sk_buff_head *xmitq);
268 static void tipc_link_build_proto_msg(struct tipc_link *l, int mtyp, bool probe,
269 bool probe_reply, u16 rcvgap,
270 int tolerance, int priority,
271 struct sk_buff_head *xmitq);
272 static void link_print(struct tipc_link *l, const char *str);
273 static int tipc_link_build_nack_msg(struct tipc_link *l,
274 struct sk_buff_head *xmitq);
275 static void tipc_link_build_bc_init_msg(struct tipc_link *l,
276 struct sk_buff_head *xmitq);
277 static u8 __tipc_build_gap_ack_blks(struct tipc_gap_ack_blks *ga,
278 struct tipc_link *l, u8 start_index);
279 static u16 tipc_build_gap_ack_blks(struct tipc_link *l, struct tipc_msg *hdr);
280 static int tipc_link_advance_transmq(struct tipc_link *l, struct tipc_link *r,
281 u16 acked, u16 gap,
282 struct tipc_gap_ack_blks *ga,
283 struct sk_buff_head *xmitq,
284 bool *retransmitted, int *rc);
285 static void tipc_link_update_cwin(struct tipc_link *l, int released,
286 bool retransmitted);
287 /*
288 * Simple non-static link routines (i.e. referenced outside this file)
289 */
tipc_link_is_up(struct tipc_link * l)290 bool tipc_link_is_up(struct tipc_link *l)
291 {
292 return link_is_up(l);
293 }
294
tipc_link_peer_is_down(struct tipc_link * l)295 bool tipc_link_peer_is_down(struct tipc_link *l)
296 {
297 return l->state == LINK_PEER_RESET;
298 }
299
tipc_link_is_reset(struct tipc_link * l)300 bool tipc_link_is_reset(struct tipc_link *l)
301 {
302 return l->state & (LINK_RESET | LINK_FAILINGOVER | LINK_ESTABLISHING);
303 }
304
tipc_link_is_establishing(struct tipc_link * l)305 bool tipc_link_is_establishing(struct tipc_link *l)
306 {
307 return l->state == LINK_ESTABLISHING;
308 }
309
tipc_link_is_synching(struct tipc_link * l)310 bool tipc_link_is_synching(struct tipc_link *l)
311 {
312 return l->state == LINK_SYNCHING;
313 }
314
tipc_link_is_failingover(struct tipc_link * l)315 bool tipc_link_is_failingover(struct tipc_link *l)
316 {
317 return l->state == LINK_FAILINGOVER;
318 }
319
tipc_link_is_blocked(struct tipc_link * l)320 bool tipc_link_is_blocked(struct tipc_link *l)
321 {
322 return l->state & (LINK_RESETTING | LINK_PEER_RESET | LINK_FAILINGOVER);
323 }
324
link_is_bc_sndlink(struct tipc_link * l)325 static bool link_is_bc_sndlink(struct tipc_link *l)
326 {
327 return !l->bc_sndlink;
328 }
329
link_is_bc_rcvlink(struct tipc_link * l)330 static bool link_is_bc_rcvlink(struct tipc_link *l)
331 {
332 return ((l->bc_rcvlink == l) && !link_is_bc_sndlink(l));
333 }
334
tipc_link_set_active(struct tipc_link * l,bool active)335 void tipc_link_set_active(struct tipc_link *l, bool active)
336 {
337 l->active = active;
338 }
339
tipc_link_id(struct tipc_link * l)340 u32 tipc_link_id(struct tipc_link *l)
341 {
342 return l->peer_bearer_id << 16 | l->bearer_id;
343 }
344
tipc_link_min_win(struct tipc_link * l)345 int tipc_link_min_win(struct tipc_link *l)
346 {
347 return l->min_win;
348 }
349
tipc_link_max_win(struct tipc_link * l)350 int tipc_link_max_win(struct tipc_link *l)
351 {
352 return l->max_win;
353 }
354
tipc_link_prio(struct tipc_link * l)355 int tipc_link_prio(struct tipc_link *l)
356 {
357 return l->priority;
358 }
359
tipc_link_tolerance(struct tipc_link * l)360 unsigned long tipc_link_tolerance(struct tipc_link *l)
361 {
362 return l->tolerance;
363 }
364
tipc_link_inputq(struct tipc_link * l)365 struct sk_buff_head *tipc_link_inputq(struct tipc_link *l)
366 {
367 return l->inputq;
368 }
369
tipc_link_plane(struct tipc_link * l)370 char tipc_link_plane(struct tipc_link *l)
371 {
372 return l->net_plane;
373 }
374
tipc_link_net(struct tipc_link * l)375 struct net *tipc_link_net(struct tipc_link *l)
376 {
377 return l->net;
378 }
379
tipc_link_update_caps(struct tipc_link * l,u16 capabilities)380 void tipc_link_update_caps(struct tipc_link *l, u16 capabilities)
381 {
382 l->peer_caps = capabilities;
383 }
384
tipc_link_add_bc_peer(struct tipc_link * snd_l,struct tipc_link * uc_l,struct sk_buff_head * xmitq)385 void tipc_link_add_bc_peer(struct tipc_link *snd_l,
386 struct tipc_link *uc_l,
387 struct sk_buff_head *xmitq)
388 {
389 struct tipc_link *rcv_l = uc_l->bc_rcvlink;
390
391 snd_l->ackers++;
392 rcv_l->acked = snd_l->snd_nxt - 1;
393 snd_l->state = LINK_ESTABLISHED;
394 tipc_link_build_bc_init_msg(uc_l, xmitq);
395 }
396
tipc_link_remove_bc_peer(struct tipc_link * snd_l,struct tipc_link * rcv_l,struct sk_buff_head * xmitq)397 void tipc_link_remove_bc_peer(struct tipc_link *snd_l,
398 struct tipc_link *rcv_l,
399 struct sk_buff_head *xmitq)
400 {
401 u16 ack = snd_l->snd_nxt - 1;
402
403 snd_l->ackers--;
404 rcv_l->bc_peer_is_up = true;
405 rcv_l->state = LINK_ESTABLISHED;
406 tipc_link_bc_ack_rcv(rcv_l, ack, 0, NULL, xmitq, NULL);
407 trace_tipc_link_reset(rcv_l, TIPC_DUMP_ALL, "bclink removed!");
408 tipc_link_reset(rcv_l);
409 rcv_l->state = LINK_RESET;
410 if (!snd_l->ackers) {
411 trace_tipc_link_reset(snd_l, TIPC_DUMP_ALL, "zero ackers!");
412 tipc_link_reset(snd_l);
413 snd_l->state = LINK_RESET;
414 __skb_queue_purge(xmitq);
415 }
416 }
417
tipc_link_bc_peers(struct tipc_link * l)418 int tipc_link_bc_peers(struct tipc_link *l)
419 {
420 return l->ackers;
421 }
422
link_bc_rcv_gap(struct tipc_link * l)423 static u16 link_bc_rcv_gap(struct tipc_link *l)
424 {
425 struct sk_buff *skb = skb_peek(&l->deferdq);
426 u16 gap = 0;
427
428 if (more(l->snd_nxt, l->rcv_nxt))
429 gap = l->snd_nxt - l->rcv_nxt;
430 if (skb)
431 gap = buf_seqno(skb) - l->rcv_nxt;
432 return gap;
433 }
434
tipc_link_set_mtu(struct tipc_link * l,int mtu)435 void tipc_link_set_mtu(struct tipc_link *l, int mtu)
436 {
437 l->mtu = mtu;
438 }
439
tipc_link_mtu(struct tipc_link * l)440 int tipc_link_mtu(struct tipc_link *l)
441 {
442 return l->mtu;
443 }
444
tipc_link_mss(struct tipc_link * l)445 int tipc_link_mss(struct tipc_link *l)
446 {
447 #ifdef CONFIG_TIPC_CRYPTO
448 return l->mtu - INT_H_SIZE - EMSG_OVERHEAD;
449 #else
450 return l->mtu - INT_H_SIZE;
451 #endif
452 }
453
tipc_link_rcv_nxt(struct tipc_link * l)454 u16 tipc_link_rcv_nxt(struct tipc_link *l)
455 {
456 return l->rcv_nxt;
457 }
458
tipc_link_acked(struct tipc_link * l)459 u16 tipc_link_acked(struct tipc_link *l)
460 {
461 return l->acked;
462 }
463
tipc_link_name(struct tipc_link * l)464 char *tipc_link_name(struct tipc_link *l)
465 {
466 return l->name;
467 }
468
tipc_link_state(struct tipc_link * l)469 u32 tipc_link_state(struct tipc_link *l)
470 {
471 return l->state;
472 }
473
474 /**
475 * tipc_link_create - create a new link
476 * @net: pointer to associated network namespace
477 * @if_name: associated interface name
478 * @bearer_id: id (index) of associated bearer
479 * @tolerance: link tolerance to be used by link
480 * @net_plane: network plane (A,B,c..) this link belongs to
481 * @mtu: mtu to be advertised by link
482 * @priority: priority to be used by link
483 * @min_win: minimal send window to be used by link
484 * @max_win: maximal send window to be used by link
485 * @session: session to be used by link
486 * @peer: node id of peer node
487 * @peer_caps: bitmap describing peer node capabilities
488 * @bc_sndlink: the namespace global link used for broadcast sending
489 * @bc_rcvlink: the peer specific link used for broadcast reception
490 * @inputq: queue to put messages ready for delivery
491 * @namedq: queue to put binding table update messages ready for delivery
492 * @link: return value, pointer to put the created link
493 * @self: local unicast link id
494 * @peer_id: 128-bit ID of peer
495 *
496 * Return: true if link was created, otherwise false
497 */
tipc_link_create(struct net * net,char * if_name,int bearer_id,int tolerance,char net_plane,u32 mtu,int priority,u32 min_win,u32 max_win,u32 session,u32 self,u32 peer,u8 * peer_id,u16 peer_caps,struct tipc_link * bc_sndlink,struct tipc_link * bc_rcvlink,struct sk_buff_head * inputq,struct sk_buff_head * namedq,struct tipc_link ** link)498 bool tipc_link_create(struct net *net, char *if_name, int bearer_id,
499 int tolerance, char net_plane, u32 mtu, int priority,
500 u32 min_win, u32 max_win, u32 session, u32 self,
501 u32 peer, u8 *peer_id, u16 peer_caps,
502 struct tipc_link *bc_sndlink,
503 struct tipc_link *bc_rcvlink,
504 struct sk_buff_head *inputq,
505 struct sk_buff_head *namedq,
506 struct tipc_link **link)
507 {
508 char peer_str[NODE_ID_STR_LEN] = {0,};
509 char self_str[NODE_ID_STR_LEN] = {0,};
510 struct tipc_link *l;
511
512 l = kzalloc(sizeof(*l), GFP_ATOMIC);
513 if (!l)
514 return false;
515 *link = l;
516 l->session = session;
517
518 /* Set link name for unicast links only */
519 if (peer_id) {
520 tipc_nodeid2string(self_str, tipc_own_id(net));
521 if (strlen(self_str) > 16)
522 sprintf(self_str, "%x", self);
523 tipc_nodeid2string(peer_str, peer_id);
524 if (strlen(peer_str) > 16)
525 sprintf(peer_str, "%x", peer);
526 }
527 /* Peer i/f name will be completed by reset/activate message */
528 snprintf(l->name, sizeof(l->name), "%s:%s-%s:unknown",
529 self_str, if_name, peer_str);
530
531 strcpy(l->if_name, if_name);
532 l->addr = peer;
533 l->peer_caps = peer_caps;
534 l->net = net;
535 l->in_session = false;
536 l->bearer_id = bearer_id;
537 l->tolerance = tolerance;
538 if (bc_rcvlink)
539 bc_rcvlink->tolerance = tolerance;
540 l->net_plane = net_plane;
541 l->advertised_mtu = mtu;
542 l->mtu = mtu;
543 l->priority = priority;
544 tipc_link_set_queue_limits(l, min_win, max_win);
545 l->ackers = 1;
546 l->bc_sndlink = bc_sndlink;
547 l->bc_rcvlink = bc_rcvlink;
548 l->inputq = inputq;
549 l->namedq = namedq;
550 l->state = LINK_RESETTING;
551 __skb_queue_head_init(&l->transmq);
552 __skb_queue_head_init(&l->backlogq);
553 __skb_queue_head_init(&l->deferdq);
554 __skb_queue_head_init(&l->failover_deferdq);
555 skb_queue_head_init(&l->wakeupq);
556 skb_queue_head_init(l->inputq);
557 return true;
558 }
559
560 /**
561 * tipc_link_bc_create - create new link to be used for broadcast
562 * @net: pointer to associated network namespace
563 * @mtu: mtu to be used initially if no peers
564 * @min_win: minimal send window to be used by link
565 * @max_win: maximal send window to be used by link
566 * @inputq: queue to put messages ready for delivery
567 * @namedq: queue to put binding table update messages ready for delivery
568 * @link: return value, pointer to put the created link
569 * @ownnode: identity of own node
570 * @peer: node id of peer node
571 * @peer_id: 128-bit ID of peer
572 * @peer_caps: bitmap describing peer node capabilities
573 * @bc_sndlink: the namespace global link used for broadcast sending
574 *
575 * Return: true if link was created, otherwise false
576 */
tipc_link_bc_create(struct net * net,u32 ownnode,u32 peer,u8 * peer_id,int mtu,u32 min_win,u32 max_win,u16 peer_caps,struct sk_buff_head * inputq,struct sk_buff_head * namedq,struct tipc_link * bc_sndlink,struct tipc_link ** link)577 bool tipc_link_bc_create(struct net *net, u32 ownnode, u32 peer, u8 *peer_id,
578 int mtu, u32 min_win, u32 max_win, u16 peer_caps,
579 struct sk_buff_head *inputq,
580 struct sk_buff_head *namedq,
581 struct tipc_link *bc_sndlink,
582 struct tipc_link **link)
583 {
584 struct tipc_link *l;
585
586 if (!tipc_link_create(net, "", MAX_BEARERS, 0, 'Z', mtu, 0, min_win,
587 max_win, 0, ownnode, peer, NULL, peer_caps,
588 bc_sndlink, NULL, inputq, namedq, link))
589 return false;
590
591 l = *link;
592 if (peer_id) {
593 char peer_str[NODE_ID_STR_LEN] = {0,};
594
595 tipc_nodeid2string(peer_str, peer_id);
596 if (strlen(peer_str) > 16)
597 sprintf(peer_str, "%x", peer);
598 /* Broadcast receiver link name: "broadcast-link:<peer>" */
599 snprintf(l->name, sizeof(l->name), "%s:%s", tipc_bclink_name,
600 peer_str);
601 } else {
602 strcpy(l->name, tipc_bclink_name);
603 }
604 trace_tipc_link_reset(l, TIPC_DUMP_ALL, "bclink created!");
605 tipc_link_reset(l);
606 l->state = LINK_RESET;
607 l->ackers = 0;
608 l->bc_rcvlink = l;
609
610 /* Broadcast send link is always up */
611 if (link_is_bc_sndlink(l))
612 l->state = LINK_ESTABLISHED;
613
614 /* Disable replicast if even a single peer doesn't support it */
615 if (link_is_bc_rcvlink(l) && !(peer_caps & TIPC_BCAST_RCAST))
616 tipc_bcast_toggle_rcast(net, false);
617
618 return true;
619 }
620
621 /**
622 * tipc_link_fsm_evt - link finite state machine
623 * @l: pointer to link
624 * @evt: state machine event to be processed
625 */
tipc_link_fsm_evt(struct tipc_link * l,int evt)626 int tipc_link_fsm_evt(struct tipc_link *l, int evt)
627 {
628 int rc = 0;
629 int old_state = l->state;
630
631 switch (l->state) {
632 case LINK_RESETTING:
633 switch (evt) {
634 case LINK_PEER_RESET_EVT:
635 l->state = LINK_PEER_RESET;
636 break;
637 case LINK_RESET_EVT:
638 l->state = LINK_RESET;
639 break;
640 case LINK_FAILURE_EVT:
641 case LINK_FAILOVER_BEGIN_EVT:
642 case LINK_ESTABLISH_EVT:
643 case LINK_FAILOVER_END_EVT:
644 case LINK_SYNCH_BEGIN_EVT:
645 case LINK_SYNCH_END_EVT:
646 default:
647 goto illegal_evt;
648 }
649 break;
650 case LINK_RESET:
651 switch (evt) {
652 case LINK_PEER_RESET_EVT:
653 l->state = LINK_ESTABLISHING;
654 break;
655 case LINK_FAILOVER_BEGIN_EVT:
656 l->state = LINK_FAILINGOVER;
657 break;
658 case LINK_FAILURE_EVT:
659 case LINK_RESET_EVT:
660 case LINK_ESTABLISH_EVT:
661 case LINK_FAILOVER_END_EVT:
662 break;
663 case LINK_SYNCH_BEGIN_EVT:
664 case LINK_SYNCH_END_EVT:
665 default:
666 goto illegal_evt;
667 }
668 break;
669 case LINK_PEER_RESET:
670 switch (evt) {
671 case LINK_RESET_EVT:
672 l->state = LINK_ESTABLISHING;
673 break;
674 case LINK_PEER_RESET_EVT:
675 case LINK_ESTABLISH_EVT:
676 case LINK_FAILURE_EVT:
677 break;
678 case LINK_SYNCH_BEGIN_EVT:
679 case LINK_SYNCH_END_EVT:
680 case LINK_FAILOVER_BEGIN_EVT:
681 case LINK_FAILOVER_END_EVT:
682 default:
683 goto illegal_evt;
684 }
685 break;
686 case LINK_FAILINGOVER:
687 switch (evt) {
688 case LINK_FAILOVER_END_EVT:
689 l->state = LINK_RESET;
690 break;
691 case LINK_PEER_RESET_EVT:
692 case LINK_RESET_EVT:
693 case LINK_ESTABLISH_EVT:
694 case LINK_FAILURE_EVT:
695 break;
696 case LINK_FAILOVER_BEGIN_EVT:
697 case LINK_SYNCH_BEGIN_EVT:
698 case LINK_SYNCH_END_EVT:
699 default:
700 goto illegal_evt;
701 }
702 break;
703 case LINK_ESTABLISHING:
704 switch (evt) {
705 case LINK_ESTABLISH_EVT:
706 l->state = LINK_ESTABLISHED;
707 break;
708 case LINK_FAILOVER_BEGIN_EVT:
709 l->state = LINK_FAILINGOVER;
710 break;
711 case LINK_RESET_EVT:
712 l->state = LINK_RESET;
713 break;
714 case LINK_FAILURE_EVT:
715 case LINK_PEER_RESET_EVT:
716 case LINK_SYNCH_BEGIN_EVT:
717 case LINK_FAILOVER_END_EVT:
718 break;
719 case LINK_SYNCH_END_EVT:
720 default:
721 goto illegal_evt;
722 }
723 break;
724 case LINK_ESTABLISHED:
725 switch (evt) {
726 case LINK_PEER_RESET_EVT:
727 l->state = LINK_PEER_RESET;
728 rc |= TIPC_LINK_DOWN_EVT;
729 break;
730 case LINK_FAILURE_EVT:
731 l->state = LINK_RESETTING;
732 rc |= TIPC_LINK_DOWN_EVT;
733 break;
734 case LINK_RESET_EVT:
735 l->state = LINK_RESET;
736 break;
737 case LINK_ESTABLISH_EVT:
738 case LINK_SYNCH_END_EVT:
739 break;
740 case LINK_SYNCH_BEGIN_EVT:
741 l->state = LINK_SYNCHING;
742 break;
743 case LINK_FAILOVER_BEGIN_EVT:
744 case LINK_FAILOVER_END_EVT:
745 default:
746 goto illegal_evt;
747 }
748 break;
749 case LINK_SYNCHING:
750 switch (evt) {
751 case LINK_PEER_RESET_EVT:
752 l->state = LINK_PEER_RESET;
753 rc |= TIPC_LINK_DOWN_EVT;
754 break;
755 case LINK_FAILURE_EVT:
756 l->state = LINK_RESETTING;
757 rc |= TIPC_LINK_DOWN_EVT;
758 break;
759 case LINK_RESET_EVT:
760 l->state = LINK_RESET;
761 break;
762 case LINK_ESTABLISH_EVT:
763 case LINK_SYNCH_BEGIN_EVT:
764 break;
765 case LINK_SYNCH_END_EVT:
766 l->state = LINK_ESTABLISHED;
767 break;
768 case LINK_FAILOVER_BEGIN_EVT:
769 case LINK_FAILOVER_END_EVT:
770 default:
771 goto illegal_evt;
772 }
773 break;
774 default:
775 pr_err("Unknown FSM state %x in %s\n", l->state, l->name);
776 }
777 trace_tipc_link_fsm(l->name, old_state, l->state, evt);
778 return rc;
779 illegal_evt:
780 pr_err("Illegal FSM event %x in state %x on link %s\n",
781 evt, l->state, l->name);
782 trace_tipc_link_fsm(l->name, old_state, l->state, evt);
783 return rc;
784 }
785
786 /* link_profile_stats - update statistical profiling of traffic
787 */
link_profile_stats(struct tipc_link * l)788 static void link_profile_stats(struct tipc_link *l)
789 {
790 struct sk_buff *skb;
791 struct tipc_msg *msg;
792 int length;
793
794 /* Update counters used in statistical profiling of send traffic */
795 l->stats.accu_queue_sz += skb_queue_len(&l->transmq);
796 l->stats.queue_sz_counts++;
797
798 skb = skb_peek(&l->transmq);
799 if (!skb)
800 return;
801 msg = buf_msg(skb);
802 length = msg_size(msg);
803
804 if (msg_user(msg) == MSG_FRAGMENTER) {
805 if (msg_type(msg) != FIRST_FRAGMENT)
806 return;
807 length = msg_size(msg_inner_hdr(msg));
808 }
809 l->stats.msg_lengths_total += length;
810 l->stats.msg_length_counts++;
811 if (length <= 64)
812 l->stats.msg_length_profile[0]++;
813 else if (length <= 256)
814 l->stats.msg_length_profile[1]++;
815 else if (length <= 1024)
816 l->stats.msg_length_profile[2]++;
817 else if (length <= 4096)
818 l->stats.msg_length_profile[3]++;
819 else if (length <= 16384)
820 l->stats.msg_length_profile[4]++;
821 else if (length <= 32768)
822 l->stats.msg_length_profile[5]++;
823 else
824 l->stats.msg_length_profile[6]++;
825 }
826
827 /**
828 * tipc_link_too_silent - check if link is "too silent"
829 * @l: tipc link to be checked
830 *
831 * Return: true if the link 'silent_intv_cnt' is about to reach the
832 * 'abort_limit' value, otherwise false
833 */
tipc_link_too_silent(struct tipc_link * l)834 bool tipc_link_too_silent(struct tipc_link *l)
835 {
836 return (l->silent_intv_cnt + 2 > l->abort_limit);
837 }
838
839 /* tipc_link_timeout - perform periodic task as instructed from node timeout
840 */
tipc_link_timeout(struct tipc_link * l,struct sk_buff_head * xmitq)841 int tipc_link_timeout(struct tipc_link *l, struct sk_buff_head *xmitq)
842 {
843 int mtyp = 0;
844 int rc = 0;
845 bool state = false;
846 bool probe = false;
847 bool setup = false;
848 u16 bc_snt = l->bc_sndlink->snd_nxt - 1;
849 u16 bc_acked = l->bc_rcvlink->acked;
850 struct tipc_mon_state *mstate = &l->mon_state;
851
852 trace_tipc_link_timeout(l, TIPC_DUMP_NONE, " ");
853 trace_tipc_link_too_silent(l, TIPC_DUMP_ALL, " ");
854 switch (l->state) {
855 case LINK_ESTABLISHED:
856 case LINK_SYNCHING:
857 mtyp = STATE_MSG;
858 link_profile_stats(l);
859 tipc_mon_get_state(l->net, l->addr, mstate, l->bearer_id);
860 if (mstate->reset || (l->silent_intv_cnt > l->abort_limit))
861 return tipc_link_fsm_evt(l, LINK_FAILURE_EVT);
862 state = bc_acked != bc_snt;
863 state |= l->bc_rcvlink->rcv_unacked;
864 state |= l->rcv_unacked;
865 state |= !skb_queue_empty(&l->transmq);
866 probe = mstate->probing;
867 probe |= l->silent_intv_cnt;
868 if (probe || mstate->monitoring)
869 l->silent_intv_cnt++;
870 probe |= !skb_queue_empty(&l->deferdq);
871 if (l->snd_nxt == l->checkpoint) {
872 tipc_link_update_cwin(l, 0, 0);
873 probe = true;
874 }
875 l->checkpoint = l->snd_nxt;
876 break;
877 case LINK_RESET:
878 setup = l->rst_cnt++ <= 4;
879 setup |= !(l->rst_cnt % 16);
880 mtyp = RESET_MSG;
881 break;
882 case LINK_ESTABLISHING:
883 setup = true;
884 mtyp = ACTIVATE_MSG;
885 break;
886 case LINK_PEER_RESET:
887 case LINK_RESETTING:
888 case LINK_FAILINGOVER:
889 break;
890 default:
891 break;
892 }
893
894 if (state || probe || setup)
895 tipc_link_build_proto_msg(l, mtyp, probe, 0, 0, 0, 0, xmitq);
896
897 return rc;
898 }
899
900 /**
901 * link_schedule_user - schedule a message sender for wakeup after congestion
902 * @l: congested link
903 * @hdr: header of message that is being sent
904 * Create pseudo msg to send back to user when congestion abates
905 */
link_schedule_user(struct tipc_link * l,struct tipc_msg * hdr)906 static int link_schedule_user(struct tipc_link *l, struct tipc_msg *hdr)
907 {
908 u32 dnode = tipc_own_addr(l->net);
909 u32 dport = msg_origport(hdr);
910 struct sk_buff *skb;
911
912 /* Create and schedule wakeup pseudo message */
913 skb = tipc_msg_create(SOCK_WAKEUP, 0, INT_H_SIZE, 0,
914 dnode, l->addr, dport, 0, 0);
915 if (!skb)
916 return -ENOBUFS;
917 msg_set_dest_droppable(buf_msg(skb), true);
918 TIPC_SKB_CB(skb)->chain_imp = msg_importance(hdr);
919 skb_queue_tail(&l->wakeupq, skb);
920 l->stats.link_congs++;
921 trace_tipc_link_conges(l, TIPC_DUMP_ALL, "wakeup scheduled!");
922 return -ELINKCONG;
923 }
924
925 /**
926 * link_prepare_wakeup - prepare users for wakeup after congestion
927 * @l: congested link
928 * Wake up a number of waiting users, as permitted by available space
929 * in the send queue
930 */
link_prepare_wakeup(struct tipc_link * l)931 static void link_prepare_wakeup(struct tipc_link *l)
932 {
933 struct sk_buff_head *wakeupq = &l->wakeupq;
934 struct sk_buff_head *inputq = l->inputq;
935 struct sk_buff *skb, *tmp;
936 struct sk_buff_head tmpq;
937 int avail[5] = {0,};
938 int imp = 0;
939
940 __skb_queue_head_init(&tmpq);
941
942 for (; imp <= TIPC_SYSTEM_IMPORTANCE; imp++)
943 avail[imp] = l->backlog[imp].limit - l->backlog[imp].len;
944
945 skb_queue_walk_safe(wakeupq, skb, tmp) {
946 imp = TIPC_SKB_CB(skb)->chain_imp;
947 if (avail[imp] <= 0)
948 continue;
949 avail[imp]--;
950 __skb_unlink(skb, wakeupq);
951 __skb_queue_tail(&tmpq, skb);
952 }
953
954 spin_lock_bh(&inputq->lock);
955 skb_queue_splice_tail(&tmpq, inputq);
956 spin_unlock_bh(&inputq->lock);
957
958 }
959
960 /**
961 * tipc_link_set_skb_retransmit_time - set the time at which retransmission of
962 * the given skb should be next attempted
963 * @skb: skb to set a future retransmission time for
964 * @l: link the skb will be transmitted on
965 */
tipc_link_set_skb_retransmit_time(struct sk_buff * skb,struct tipc_link * l)966 static void tipc_link_set_skb_retransmit_time(struct sk_buff *skb,
967 struct tipc_link *l)
968 {
969 if (link_is_bc_sndlink(l))
970 TIPC_SKB_CB(skb)->nxt_retr = TIPC_BC_RETR_LIM;
971 else
972 TIPC_SKB_CB(skb)->nxt_retr = TIPC_UC_RETR_TIME;
973 }
974
tipc_link_reset(struct tipc_link * l)975 void tipc_link_reset(struct tipc_link *l)
976 {
977 struct sk_buff_head list;
978 u32 imp;
979
980 __skb_queue_head_init(&list);
981
982 l->in_session = false;
983 /* Force re-synch of peer session number before establishing */
984 l->peer_session--;
985 l->session++;
986 l->mtu = l->advertised_mtu;
987
988 spin_lock_bh(&l->wakeupq.lock);
989 skb_queue_splice_init(&l->wakeupq, &list);
990 spin_unlock_bh(&l->wakeupq.lock);
991
992 spin_lock_bh(&l->inputq->lock);
993 skb_queue_splice_init(&list, l->inputq);
994 spin_unlock_bh(&l->inputq->lock);
995
996 __skb_queue_purge(&l->transmq);
997 __skb_queue_purge(&l->deferdq);
998 __skb_queue_purge(&l->backlogq);
999 __skb_queue_purge(&l->failover_deferdq);
1000 for (imp = 0; imp <= TIPC_SYSTEM_IMPORTANCE; imp++) {
1001 l->backlog[imp].len = 0;
1002 l->backlog[imp].target_bskb = NULL;
1003 }
1004 kfree_skb(l->reasm_buf);
1005 kfree_skb(l->reasm_tnlmsg);
1006 kfree_skb(l->failover_reasm_skb);
1007 l->reasm_buf = NULL;
1008 l->reasm_tnlmsg = NULL;
1009 l->failover_reasm_skb = NULL;
1010 l->rcv_unacked = 0;
1011 l->snd_nxt = 1;
1012 l->rcv_nxt = 1;
1013 l->snd_nxt_state = 1;
1014 l->rcv_nxt_state = 1;
1015 l->acked = 0;
1016 l->last_gap = 0;
1017 kfree(l->last_ga);
1018 l->last_ga = NULL;
1019 l->silent_intv_cnt = 0;
1020 l->rst_cnt = 0;
1021 l->bc_peer_is_up = false;
1022 memset(&l->mon_state, 0, sizeof(l->mon_state));
1023 tipc_link_reset_stats(l);
1024 }
1025
1026 /**
1027 * tipc_link_xmit(): enqueue buffer list according to queue situation
1028 * @l: link to use
1029 * @list: chain of buffers containing message
1030 * @xmitq: returned list of packets to be sent by caller
1031 *
1032 * Consumes the buffer chain.
1033 * Messages at TIPC_SYSTEM_IMPORTANCE are always accepted
1034 * Return: 0 if success, or errno: -ELINKCONG, -EMSGSIZE or -ENOBUFS
1035 */
tipc_link_xmit(struct tipc_link * l,struct sk_buff_head * list,struct sk_buff_head * xmitq)1036 int tipc_link_xmit(struct tipc_link *l, struct sk_buff_head *list,
1037 struct sk_buff_head *xmitq)
1038 {
1039 struct sk_buff_head *backlogq = &l->backlogq;
1040 struct sk_buff_head *transmq = &l->transmq;
1041 struct sk_buff *skb, *_skb;
1042 u16 bc_ack = l->bc_rcvlink->rcv_nxt - 1;
1043 u16 ack = l->rcv_nxt - 1;
1044 u16 seqno = l->snd_nxt;
1045 int pkt_cnt = skb_queue_len(list);
1046 unsigned int mss = tipc_link_mss(l);
1047 unsigned int cwin = l->window;
1048 unsigned int mtu = l->mtu;
1049 struct tipc_msg *hdr;
1050 bool new_bundle;
1051 int rc = 0;
1052 int imp;
1053
1054 if (pkt_cnt <= 0)
1055 return 0;
1056
1057 hdr = buf_msg(skb_peek(list));
1058 if (unlikely(msg_size(hdr) > mtu)) {
1059 pr_warn("Too large msg, purging xmit list %d %d %d %d %d!\n",
1060 skb_queue_len(list), msg_user(hdr),
1061 msg_type(hdr), msg_size(hdr), mtu);
1062 __skb_queue_purge(list);
1063 return -EMSGSIZE;
1064 }
1065
1066 imp = msg_importance(hdr);
1067 /* Allow oversubscription of one data msg per source at congestion */
1068 if (unlikely(l->backlog[imp].len >= l->backlog[imp].limit)) {
1069 if (imp == TIPC_SYSTEM_IMPORTANCE) {
1070 pr_warn("%s<%s>, link overflow", link_rst_msg, l->name);
1071 __skb_queue_purge(list);
1072 return -ENOBUFS;
1073 }
1074 rc = link_schedule_user(l, hdr);
1075 }
1076
1077 if (pkt_cnt > 1) {
1078 l->stats.sent_fragmented++;
1079 l->stats.sent_fragments += pkt_cnt;
1080 }
1081
1082 /* Prepare each packet for sending, and add to relevant queue: */
1083 while ((skb = __skb_dequeue(list))) {
1084 if (likely(skb_queue_len(transmq) < cwin)) {
1085 hdr = buf_msg(skb);
1086 msg_set_seqno(hdr, seqno);
1087 msg_set_ack(hdr, ack);
1088 msg_set_bcast_ack(hdr, bc_ack);
1089 _skb = skb_clone(skb, GFP_ATOMIC);
1090 if (!_skb) {
1091 kfree_skb(skb);
1092 __skb_queue_purge(list);
1093 return -ENOBUFS;
1094 }
1095 __skb_queue_tail(transmq, skb);
1096 tipc_link_set_skb_retransmit_time(skb, l);
1097 __skb_queue_tail(xmitq, _skb);
1098 TIPC_SKB_CB(skb)->ackers = l->ackers;
1099 l->rcv_unacked = 0;
1100 l->stats.sent_pkts++;
1101 seqno++;
1102 continue;
1103 }
1104 if (tipc_msg_try_bundle(l->backlog[imp].target_bskb, &skb,
1105 mss, l->addr, &new_bundle)) {
1106 if (skb) {
1107 /* Keep a ref. to the skb for next try */
1108 l->backlog[imp].target_bskb = skb;
1109 l->backlog[imp].len++;
1110 __skb_queue_tail(backlogq, skb);
1111 } else {
1112 if (new_bundle) {
1113 l->stats.sent_bundles++;
1114 l->stats.sent_bundled++;
1115 }
1116 l->stats.sent_bundled++;
1117 }
1118 continue;
1119 }
1120 l->backlog[imp].target_bskb = NULL;
1121 l->backlog[imp].len += (1 + skb_queue_len(list));
1122 __skb_queue_tail(backlogq, skb);
1123 skb_queue_splice_tail_init(list, backlogq);
1124 }
1125 l->snd_nxt = seqno;
1126 return rc;
1127 }
1128
tipc_link_update_cwin(struct tipc_link * l,int released,bool retransmitted)1129 static void tipc_link_update_cwin(struct tipc_link *l, int released,
1130 bool retransmitted)
1131 {
1132 int bklog_len = skb_queue_len(&l->backlogq);
1133 struct sk_buff_head *txq = &l->transmq;
1134 int txq_len = skb_queue_len(txq);
1135 u16 cwin = l->window;
1136
1137 /* Enter fast recovery */
1138 if (unlikely(retransmitted)) {
1139 l->ssthresh = max_t(u16, l->window / 2, 300);
1140 l->window = min_t(u16, l->ssthresh, l->window);
1141 return;
1142 }
1143 /* Enter slow start */
1144 if (unlikely(!released)) {
1145 l->ssthresh = max_t(u16, l->window / 2, 300);
1146 l->window = l->min_win;
1147 return;
1148 }
1149 /* Don't increase window if no pressure on the transmit queue */
1150 if (txq_len + bklog_len < cwin)
1151 return;
1152
1153 /* Don't increase window if there are holes the transmit queue */
1154 if (txq_len && l->snd_nxt - buf_seqno(skb_peek(txq)) != txq_len)
1155 return;
1156
1157 l->cong_acks += released;
1158
1159 /* Slow start */
1160 if (cwin <= l->ssthresh) {
1161 l->window = min_t(u16, cwin + released, l->max_win);
1162 return;
1163 }
1164 /* Congestion avoidance */
1165 if (l->cong_acks < cwin)
1166 return;
1167 l->window = min_t(u16, ++cwin, l->max_win);
1168 l->cong_acks = 0;
1169 }
1170
tipc_link_advance_backlog(struct tipc_link * l,struct sk_buff_head * xmitq)1171 static void tipc_link_advance_backlog(struct tipc_link *l,
1172 struct sk_buff_head *xmitq)
1173 {
1174 u16 bc_ack = l->bc_rcvlink->rcv_nxt - 1;
1175 struct sk_buff_head *txq = &l->transmq;
1176 struct sk_buff *skb, *_skb;
1177 u16 ack = l->rcv_nxt - 1;
1178 u16 seqno = l->snd_nxt;
1179 struct tipc_msg *hdr;
1180 u16 cwin = l->window;
1181 u32 imp;
1182
1183 while (skb_queue_len(txq) < cwin) {
1184 skb = skb_peek(&l->backlogq);
1185 if (!skb)
1186 break;
1187 _skb = skb_clone(skb, GFP_ATOMIC);
1188 if (!_skb)
1189 break;
1190 __skb_dequeue(&l->backlogq);
1191 hdr = buf_msg(skb);
1192 imp = msg_importance(hdr);
1193 l->backlog[imp].len--;
1194 if (unlikely(skb == l->backlog[imp].target_bskb))
1195 l->backlog[imp].target_bskb = NULL;
1196 __skb_queue_tail(&l->transmq, skb);
1197 tipc_link_set_skb_retransmit_time(skb, l);
1198
1199 __skb_queue_tail(xmitq, _skb);
1200 TIPC_SKB_CB(skb)->ackers = l->ackers;
1201 msg_set_seqno(hdr, seqno);
1202 msg_set_ack(hdr, ack);
1203 msg_set_bcast_ack(hdr, bc_ack);
1204 l->rcv_unacked = 0;
1205 l->stats.sent_pkts++;
1206 seqno++;
1207 }
1208 l->snd_nxt = seqno;
1209 }
1210
1211 /**
1212 * link_retransmit_failure() - Detect repeated retransmit failures
1213 * @l: tipc link sender
1214 * @r: tipc link receiver (= l in case of unicast)
1215 * @rc: returned code
1216 *
1217 * Return: true if the repeated retransmit failures happens, otherwise
1218 * false
1219 */
link_retransmit_failure(struct tipc_link * l,struct tipc_link * r,int * rc)1220 static bool link_retransmit_failure(struct tipc_link *l, struct tipc_link *r,
1221 int *rc)
1222 {
1223 struct sk_buff *skb = skb_peek(&l->transmq);
1224 struct tipc_msg *hdr;
1225
1226 if (!skb)
1227 return false;
1228
1229 if (!TIPC_SKB_CB(skb)->retr_cnt)
1230 return false;
1231
1232 if (!time_after(jiffies, TIPC_SKB_CB(skb)->retr_stamp +
1233 msecs_to_jiffies(r->tolerance * 10)))
1234 return false;
1235
1236 hdr = buf_msg(skb);
1237 if (link_is_bc_sndlink(l) && !less(r->acked, msg_seqno(hdr)))
1238 return false;
1239
1240 pr_warn("Retransmission failure on link <%s>\n", l->name);
1241 link_print(l, "State of link ");
1242 pr_info("Failed msg: usr %u, typ %u, len %u, err %u\n",
1243 msg_user(hdr), msg_type(hdr), msg_size(hdr), msg_errcode(hdr));
1244 pr_info("sqno %u, prev: %x, dest: %x\n",
1245 msg_seqno(hdr), msg_prevnode(hdr), msg_destnode(hdr));
1246 pr_info("retr_stamp %d, retr_cnt %d\n",
1247 jiffies_to_msecs(TIPC_SKB_CB(skb)->retr_stamp),
1248 TIPC_SKB_CB(skb)->retr_cnt);
1249
1250 trace_tipc_list_dump(&l->transmq, true, "retrans failure!");
1251 trace_tipc_link_dump(l, TIPC_DUMP_NONE, "retrans failure!");
1252 trace_tipc_link_dump(r, TIPC_DUMP_NONE, "retrans failure!");
1253
1254 if (link_is_bc_sndlink(l)) {
1255 r->state = LINK_RESET;
1256 *rc |= TIPC_LINK_DOWN_EVT;
1257 } else {
1258 *rc |= tipc_link_fsm_evt(l, LINK_FAILURE_EVT);
1259 }
1260
1261 return true;
1262 }
1263
1264 /* tipc_data_input - deliver data and name distr msgs to upper layer
1265 *
1266 * Consumes buffer if message is of right type
1267 * Node lock must be held
1268 */
tipc_data_input(struct tipc_link * l,struct sk_buff * skb,struct sk_buff_head * inputq)1269 static bool tipc_data_input(struct tipc_link *l, struct sk_buff *skb,
1270 struct sk_buff_head *inputq)
1271 {
1272 struct sk_buff_head *mc_inputq = l->bc_rcvlink->inputq;
1273 struct tipc_msg *hdr = buf_msg(skb);
1274
1275 switch (msg_user(hdr)) {
1276 case TIPC_LOW_IMPORTANCE:
1277 case TIPC_MEDIUM_IMPORTANCE:
1278 case TIPC_HIGH_IMPORTANCE:
1279 case TIPC_CRITICAL_IMPORTANCE:
1280 if (unlikely(msg_in_group(hdr) || msg_mcast(hdr))) {
1281 skb_queue_tail(mc_inputq, skb);
1282 return true;
1283 }
1284 fallthrough;
1285 case CONN_MANAGER:
1286 skb_queue_tail(inputq, skb);
1287 return true;
1288 case GROUP_PROTOCOL:
1289 skb_queue_tail(mc_inputq, skb);
1290 return true;
1291 case NAME_DISTRIBUTOR:
1292 l->bc_rcvlink->state = LINK_ESTABLISHED;
1293 skb_queue_tail(l->namedq, skb);
1294 return true;
1295 case MSG_BUNDLER:
1296 case TUNNEL_PROTOCOL:
1297 case MSG_FRAGMENTER:
1298 case BCAST_PROTOCOL:
1299 return false;
1300 #ifdef CONFIG_TIPC_CRYPTO
1301 case MSG_CRYPTO:
1302 if (sysctl_tipc_key_exchange_enabled &&
1303 TIPC_SKB_CB(skb)->decrypted) {
1304 tipc_crypto_msg_rcv(l->net, skb);
1305 return true;
1306 }
1307 fallthrough;
1308 #endif
1309 default:
1310 pr_warn("Dropping received illegal msg type\n");
1311 kfree_skb(skb);
1312 return true;
1313 }
1314 }
1315
1316 /* tipc_link_input - process packet that has passed link protocol check
1317 *
1318 * Consumes buffer
1319 */
tipc_link_input(struct tipc_link * l,struct sk_buff * skb,struct sk_buff_head * inputq,struct sk_buff ** reasm_skb)1320 static int tipc_link_input(struct tipc_link *l, struct sk_buff *skb,
1321 struct sk_buff_head *inputq,
1322 struct sk_buff **reasm_skb)
1323 {
1324 struct tipc_msg *hdr = buf_msg(skb);
1325 struct sk_buff *iskb;
1326 struct sk_buff_head tmpq;
1327 int usr = msg_user(hdr);
1328 int pos = 0;
1329
1330 if (usr == MSG_BUNDLER) {
1331 skb_queue_head_init(&tmpq);
1332 l->stats.recv_bundles++;
1333 l->stats.recv_bundled += msg_msgcnt(hdr);
1334 while (tipc_msg_extract(skb, &iskb, &pos))
1335 tipc_data_input(l, iskb, &tmpq);
1336 tipc_skb_queue_splice_tail(&tmpq, inputq);
1337 return 0;
1338 } else if (usr == MSG_FRAGMENTER) {
1339 l->stats.recv_fragments++;
1340 if (tipc_buf_append(reasm_skb, &skb)) {
1341 l->stats.recv_fragmented++;
1342 tipc_data_input(l, skb, inputq);
1343 } else if (!*reasm_skb && !link_is_bc_rcvlink(l)) {
1344 pr_warn_ratelimited("Unable to build fragment list\n");
1345 return tipc_link_fsm_evt(l, LINK_FAILURE_EVT);
1346 }
1347 return 0;
1348 } else if (usr == BCAST_PROTOCOL) {
1349 tipc_bcast_lock(l->net);
1350 tipc_link_bc_init_rcv(l->bc_rcvlink, hdr);
1351 tipc_bcast_unlock(l->net);
1352 }
1353
1354 kfree_skb(skb);
1355 return 0;
1356 }
1357
1358 /* tipc_link_tnl_rcv() - receive TUNNEL_PROTOCOL message, drop or process the
1359 * inner message along with the ones in the old link's
1360 * deferdq
1361 * @l: tunnel link
1362 * @skb: TUNNEL_PROTOCOL message
1363 * @inputq: queue to put messages ready for delivery
1364 */
tipc_link_tnl_rcv(struct tipc_link * l,struct sk_buff * skb,struct sk_buff_head * inputq)1365 static int tipc_link_tnl_rcv(struct tipc_link *l, struct sk_buff *skb,
1366 struct sk_buff_head *inputq)
1367 {
1368 struct sk_buff **reasm_skb = &l->failover_reasm_skb;
1369 struct sk_buff **reasm_tnlmsg = &l->reasm_tnlmsg;
1370 struct sk_buff_head *fdefq = &l->failover_deferdq;
1371 struct tipc_msg *hdr = buf_msg(skb);
1372 struct sk_buff *iskb;
1373 int ipos = 0;
1374 int rc = 0;
1375 u16 seqno;
1376
1377 if (msg_type(hdr) == SYNCH_MSG) {
1378 kfree_skb(skb);
1379 return 0;
1380 }
1381
1382 /* Not a fragment? */
1383 if (likely(!msg_nof_fragms(hdr))) {
1384 if (unlikely(!tipc_msg_extract(skb, &iskb, &ipos))) {
1385 pr_warn_ratelimited("Unable to extract msg, defq: %d\n",
1386 skb_queue_len(fdefq));
1387 return 0;
1388 }
1389 kfree_skb(skb);
1390 } else {
1391 /* Set fragment type for buf_append */
1392 if (msg_fragm_no(hdr) == 1)
1393 msg_set_type(hdr, FIRST_FRAGMENT);
1394 else if (msg_fragm_no(hdr) < msg_nof_fragms(hdr))
1395 msg_set_type(hdr, FRAGMENT);
1396 else
1397 msg_set_type(hdr, LAST_FRAGMENT);
1398
1399 if (!tipc_buf_append(reasm_tnlmsg, &skb)) {
1400 /* Successful but non-complete reassembly? */
1401 if (*reasm_tnlmsg || link_is_bc_rcvlink(l))
1402 return 0;
1403 pr_warn_ratelimited("Unable to reassemble tunnel msg\n");
1404 return tipc_link_fsm_evt(l, LINK_FAILURE_EVT);
1405 }
1406 iskb = skb;
1407 }
1408
1409 do {
1410 seqno = buf_seqno(iskb);
1411 if (unlikely(less(seqno, l->drop_point))) {
1412 kfree_skb(iskb);
1413 continue;
1414 }
1415 if (unlikely(seqno != l->drop_point)) {
1416 __tipc_skb_queue_sorted(fdefq, seqno, iskb);
1417 continue;
1418 }
1419
1420 l->drop_point++;
1421 if (!tipc_data_input(l, iskb, inputq))
1422 rc |= tipc_link_input(l, iskb, inputq, reasm_skb);
1423 if (unlikely(rc))
1424 break;
1425 } while ((iskb = __tipc_skb_dequeue(fdefq, l->drop_point)));
1426
1427 return rc;
1428 }
1429
1430 /**
1431 * tipc_get_gap_ack_blks - get Gap ACK blocks from PROTOCOL/STATE_MSG
1432 * @ga: returned pointer to the Gap ACK blocks if any
1433 * @l: the tipc link
1434 * @hdr: the PROTOCOL/STATE_MSG header
1435 * @uc: desired Gap ACK blocks type, i.e. unicast (= 1) or broadcast (= 0)
1436 *
1437 * Return: the total Gap ACK blocks size
1438 */
tipc_get_gap_ack_blks(struct tipc_gap_ack_blks ** ga,struct tipc_link * l,struct tipc_msg * hdr,bool uc)1439 u16 tipc_get_gap_ack_blks(struct tipc_gap_ack_blks **ga, struct tipc_link *l,
1440 struct tipc_msg *hdr, bool uc)
1441 {
1442 struct tipc_gap_ack_blks *p;
1443 u16 sz = 0;
1444
1445 /* Does peer support the Gap ACK blocks feature? */
1446 if (l->peer_caps & TIPC_GAP_ACK_BLOCK) {
1447 p = (struct tipc_gap_ack_blks *)msg_data(hdr);
1448 sz = ntohs(p->len);
1449 /* Sanity check */
1450 if (sz == struct_size(p, gacks, size_add(p->ugack_cnt, p->bgack_cnt))) {
1451 /* Good, check if the desired type exists */
1452 if ((uc && p->ugack_cnt) || (!uc && p->bgack_cnt))
1453 goto ok;
1454 /* Backward compatible: peer might not support bc, but uc? */
1455 } else if (uc && sz == struct_size(p, gacks, p->ugack_cnt)) {
1456 if (p->ugack_cnt) {
1457 p->bgack_cnt = 0;
1458 goto ok;
1459 }
1460 }
1461 }
1462 /* Other cases: ignore! */
1463 p = NULL;
1464
1465 ok:
1466 *ga = p;
1467 return sz;
1468 }
1469
__tipc_build_gap_ack_blks(struct tipc_gap_ack_blks * ga,struct tipc_link * l,u8 start_index)1470 static u8 __tipc_build_gap_ack_blks(struct tipc_gap_ack_blks *ga,
1471 struct tipc_link *l, u8 start_index)
1472 {
1473 struct tipc_gap_ack *gacks = &ga->gacks[start_index];
1474 struct sk_buff *skb = skb_peek(&l->deferdq);
1475 u16 expect, seqno = 0;
1476 u8 n = 0;
1477
1478 if (!skb)
1479 return 0;
1480
1481 expect = buf_seqno(skb);
1482 skb_queue_walk(&l->deferdq, skb) {
1483 seqno = buf_seqno(skb);
1484 if (unlikely(more(seqno, expect))) {
1485 gacks[n].ack = htons(expect - 1);
1486 gacks[n].gap = htons(seqno - expect);
1487 if (++n >= MAX_GAP_ACK_BLKS / 2) {
1488 pr_info_ratelimited("Gacks on %s: %d, ql: %d!\n",
1489 l->name, n,
1490 skb_queue_len(&l->deferdq));
1491 return n;
1492 }
1493 } else if (unlikely(less(seqno, expect))) {
1494 pr_warn("Unexpected skb in deferdq!\n");
1495 continue;
1496 }
1497 expect = seqno + 1;
1498 }
1499
1500 /* last block */
1501 gacks[n].ack = htons(seqno);
1502 gacks[n].gap = 0;
1503 n++;
1504 return n;
1505 }
1506
1507 /* tipc_build_gap_ack_blks - build Gap ACK blocks
1508 * @l: tipc unicast link
1509 * @hdr: the tipc message buffer to store the Gap ACK blocks after built
1510 *
1511 * The function builds Gap ACK blocks for both the unicast & broadcast receiver
1512 * links of a certain peer, the buffer after built has the network data format
1513 * as found at the struct tipc_gap_ack_blks definition.
1514 *
1515 * returns the actual allocated memory size
1516 */
tipc_build_gap_ack_blks(struct tipc_link * l,struct tipc_msg * hdr)1517 static u16 tipc_build_gap_ack_blks(struct tipc_link *l, struct tipc_msg *hdr)
1518 {
1519 struct tipc_link *bcl = l->bc_rcvlink;
1520 struct tipc_gap_ack_blks *ga;
1521 u16 len;
1522
1523 ga = (struct tipc_gap_ack_blks *)msg_data(hdr);
1524
1525 /* Start with broadcast link first */
1526 tipc_bcast_lock(bcl->net);
1527 msg_set_bcast_ack(hdr, bcl->rcv_nxt - 1);
1528 msg_set_bc_gap(hdr, link_bc_rcv_gap(bcl));
1529 ga->bgack_cnt = __tipc_build_gap_ack_blks(ga, bcl, 0);
1530 tipc_bcast_unlock(bcl->net);
1531
1532 /* Now for unicast link, but an explicit NACK only (???) */
1533 ga->ugack_cnt = (msg_seq_gap(hdr)) ?
1534 __tipc_build_gap_ack_blks(ga, l, ga->bgack_cnt) : 0;
1535
1536 /* Total len */
1537 len = struct_size(ga, gacks, size_add(ga->bgack_cnt, ga->ugack_cnt));
1538 ga->len = htons(len);
1539 return len;
1540 }
1541
1542 /* tipc_link_advance_transmq - advance TIPC link transmq queue by releasing
1543 * acked packets, also doing retransmissions if
1544 * gaps found
1545 * @l: tipc link with transmq queue to be advanced
1546 * @r: tipc link "receiver" i.e. in case of broadcast (= "l" if unicast)
1547 * @acked: seqno of last packet acked by peer without any gaps before
1548 * @gap: # of gap packets
1549 * @ga: buffer pointer to Gap ACK blocks from peer
1550 * @xmitq: queue for accumulating the retransmitted packets if any
1551 * @retransmitted: returned boolean value if a retransmission is really issued
1552 * @rc: returned code e.g. TIPC_LINK_DOWN_EVT if a repeated retransmit failures
1553 * happens (- unlikely case)
1554 *
1555 * Return: the number of packets released from the link transmq
1556 */
tipc_link_advance_transmq(struct tipc_link * l,struct tipc_link * r,u16 acked,u16 gap,struct tipc_gap_ack_blks * ga,struct sk_buff_head * xmitq,bool * retransmitted,int * rc)1557 static int tipc_link_advance_transmq(struct tipc_link *l, struct tipc_link *r,
1558 u16 acked, u16 gap,
1559 struct tipc_gap_ack_blks *ga,
1560 struct sk_buff_head *xmitq,
1561 bool *retransmitted, int *rc)
1562 {
1563 struct tipc_gap_ack_blks *last_ga = r->last_ga, *this_ga = NULL;
1564 struct tipc_gap_ack *gacks = NULL;
1565 struct sk_buff *skb, *_skb, *tmp;
1566 struct tipc_msg *hdr;
1567 u32 qlen = skb_queue_len(&l->transmq);
1568 u16 nacked = acked, ngap = gap, gack_cnt = 0;
1569 u16 bc_ack = l->bc_rcvlink->rcv_nxt - 1;
1570 u16 ack = l->rcv_nxt - 1;
1571 u16 seqno, n = 0;
1572 u16 end = r->acked, start = end, offset = r->last_gap;
1573 u16 si = (last_ga) ? last_ga->start_index : 0;
1574 bool is_uc = !link_is_bc_sndlink(l);
1575 bool bc_has_acked = false;
1576
1577 trace_tipc_link_retrans(r, acked + 1, acked + gap, &l->transmq);
1578
1579 /* Determine Gap ACK blocks if any for the particular link */
1580 if (ga && is_uc) {
1581 /* Get the Gap ACKs, uc part */
1582 gack_cnt = ga->ugack_cnt;
1583 gacks = &ga->gacks[ga->bgack_cnt];
1584 } else if (ga) {
1585 /* Copy the Gap ACKs, bc part, for later renewal if needed */
1586 this_ga = kmemdup(ga, struct_size(ga, gacks, ga->bgack_cnt),
1587 GFP_ATOMIC);
1588 if (likely(this_ga)) {
1589 this_ga->start_index = 0;
1590 /* Start with the bc Gap ACKs */
1591 gack_cnt = this_ga->bgack_cnt;
1592 gacks = &this_ga->gacks[0];
1593 } else {
1594 /* Hmm, we can get in trouble..., simply ignore it */
1595 pr_warn_ratelimited("Ignoring bc Gap ACKs, no memory\n");
1596 }
1597 }
1598
1599 /* Advance the link transmq */
1600 skb_queue_walk_safe(&l->transmq, skb, tmp) {
1601 seqno = buf_seqno(skb);
1602
1603 next_gap_ack:
1604 if (less_eq(seqno, nacked)) {
1605 if (is_uc)
1606 goto release;
1607 /* Skip packets peer has already acked */
1608 if (!more(seqno, r->acked))
1609 continue;
1610 /* Get the next of last Gap ACK blocks */
1611 while (more(seqno, end)) {
1612 if (!last_ga || si >= last_ga->bgack_cnt)
1613 break;
1614 start = end + offset + 1;
1615 end = ntohs(last_ga->gacks[si].ack);
1616 offset = ntohs(last_ga->gacks[si].gap);
1617 si++;
1618 WARN_ONCE(more(start, end) ||
1619 (!offset &&
1620 si < last_ga->bgack_cnt) ||
1621 si > MAX_GAP_ACK_BLKS,
1622 "Corrupted Gap ACK: %d %d %d %d %d\n",
1623 start, end, offset, si,
1624 last_ga->bgack_cnt);
1625 }
1626 /* Check against the last Gap ACK block */
1627 if (tipc_in_range(seqno, start, end))
1628 continue;
1629 /* Update/release the packet peer is acking */
1630 bc_has_acked = true;
1631 if (--TIPC_SKB_CB(skb)->ackers)
1632 continue;
1633 release:
1634 /* release skb */
1635 __skb_unlink(skb, &l->transmq);
1636 kfree_skb(skb);
1637 } else if (less_eq(seqno, nacked + ngap)) {
1638 /* First gap: check if repeated retrans failures? */
1639 if (unlikely(seqno == acked + 1 &&
1640 link_retransmit_failure(l, r, rc))) {
1641 /* Ignore this bc Gap ACKs if any */
1642 kfree(this_ga);
1643 this_ga = NULL;
1644 break;
1645 }
1646 /* retransmit skb if unrestricted*/
1647 if (time_before(jiffies, TIPC_SKB_CB(skb)->nxt_retr))
1648 continue;
1649 tipc_link_set_skb_retransmit_time(skb, l);
1650 _skb = pskb_copy(skb, GFP_ATOMIC);
1651 if (!_skb)
1652 continue;
1653 hdr = buf_msg(_skb);
1654 msg_set_ack(hdr, ack);
1655 msg_set_bcast_ack(hdr, bc_ack);
1656 _skb->priority = TC_PRIO_CONTROL;
1657 __skb_queue_tail(xmitq, _skb);
1658 l->stats.retransmitted++;
1659 if (!is_uc)
1660 r->stats.retransmitted++;
1661 *retransmitted = true;
1662 /* Increase actual retrans counter & mark first time */
1663 if (!TIPC_SKB_CB(skb)->retr_cnt++)
1664 TIPC_SKB_CB(skb)->retr_stamp = jiffies;
1665 } else {
1666 /* retry with Gap ACK blocks if any */
1667 if (n >= gack_cnt)
1668 break;
1669 nacked = ntohs(gacks[n].ack);
1670 ngap = ntohs(gacks[n].gap);
1671 n++;
1672 goto next_gap_ack;
1673 }
1674 }
1675
1676 /* Renew last Gap ACK blocks for bc if needed */
1677 if (bc_has_acked) {
1678 if (this_ga) {
1679 kfree(last_ga);
1680 r->last_ga = this_ga;
1681 r->last_gap = gap;
1682 } else if (last_ga) {
1683 if (less(acked, start)) {
1684 si--;
1685 offset = start - acked - 1;
1686 } else if (less(acked, end)) {
1687 acked = end;
1688 }
1689 if (si < last_ga->bgack_cnt) {
1690 last_ga->start_index = si;
1691 r->last_gap = offset;
1692 } else {
1693 kfree(last_ga);
1694 r->last_ga = NULL;
1695 r->last_gap = 0;
1696 }
1697 } else {
1698 r->last_gap = 0;
1699 }
1700 r->acked = acked;
1701 } else {
1702 kfree(this_ga);
1703 }
1704
1705 return qlen - skb_queue_len(&l->transmq);
1706 }
1707
1708 /* tipc_link_build_state_msg: prepare link state message for transmission
1709 *
1710 * Note that sending of broadcast ack is coordinated among nodes, to reduce
1711 * risk of ack storms towards the sender
1712 */
tipc_link_build_state_msg(struct tipc_link * l,struct sk_buff_head * xmitq)1713 int tipc_link_build_state_msg(struct tipc_link *l, struct sk_buff_head *xmitq)
1714 {
1715 if (!l)
1716 return 0;
1717
1718 /* Broadcast ACK must be sent via a unicast link => defer to caller */
1719 if (link_is_bc_rcvlink(l)) {
1720 if (((l->rcv_nxt ^ tipc_own_addr(l->net)) & 0xf) != 0xf)
1721 return 0;
1722 l->rcv_unacked = 0;
1723
1724 /* Use snd_nxt to store peer's snd_nxt in broadcast rcv link */
1725 l->snd_nxt = l->rcv_nxt;
1726 return TIPC_LINK_SND_STATE;
1727 }
1728 /* Unicast ACK */
1729 l->rcv_unacked = 0;
1730 l->stats.sent_acks++;
1731 tipc_link_build_proto_msg(l, STATE_MSG, 0, 0, 0, 0, 0, xmitq);
1732 return 0;
1733 }
1734
1735 /* tipc_link_build_reset_msg: prepare link RESET or ACTIVATE message
1736 */
tipc_link_build_reset_msg(struct tipc_link * l,struct sk_buff_head * xmitq)1737 void tipc_link_build_reset_msg(struct tipc_link *l, struct sk_buff_head *xmitq)
1738 {
1739 int mtyp = RESET_MSG;
1740 struct sk_buff *skb;
1741
1742 if (l->state == LINK_ESTABLISHING)
1743 mtyp = ACTIVATE_MSG;
1744
1745 tipc_link_build_proto_msg(l, mtyp, 0, 0, 0, 0, 0, xmitq);
1746
1747 /* Inform peer that this endpoint is going down if applicable */
1748 skb = skb_peek_tail(xmitq);
1749 if (skb && (l->state == LINK_RESET))
1750 msg_set_peer_stopping(buf_msg(skb), 1);
1751 }
1752
1753 /* tipc_link_build_nack_msg: prepare link nack message for transmission
1754 * Note that sending of broadcast NACK is coordinated among nodes, to
1755 * reduce the risk of NACK storms towards the sender
1756 */
tipc_link_build_nack_msg(struct tipc_link * l,struct sk_buff_head * xmitq)1757 static int tipc_link_build_nack_msg(struct tipc_link *l,
1758 struct sk_buff_head *xmitq)
1759 {
1760 u32 def_cnt = ++l->stats.deferred_recv;
1761 struct sk_buff_head *dfq = &l->deferdq;
1762 u32 defq_len = skb_queue_len(dfq);
1763 int match1, match2;
1764
1765 if (link_is_bc_rcvlink(l)) {
1766 match1 = def_cnt & 0xf;
1767 match2 = tipc_own_addr(l->net) & 0xf;
1768 if (match1 == match2)
1769 return TIPC_LINK_SND_STATE;
1770 return 0;
1771 }
1772
1773 if (defq_len >= 3 && !((defq_len - 3) % 16)) {
1774 u16 rcvgap = buf_seqno(skb_peek(dfq)) - l->rcv_nxt;
1775
1776 tipc_link_build_proto_msg(l, STATE_MSG, 0, 0,
1777 rcvgap, 0, 0, xmitq);
1778 }
1779 return 0;
1780 }
1781
1782 /* tipc_link_rcv - process TIPC packets/messages arriving from off-node
1783 * @l: the link that should handle the message
1784 * @skb: TIPC packet
1785 * @xmitq: queue to place packets to be sent after this call
1786 */
tipc_link_rcv(struct tipc_link * l,struct sk_buff * skb,struct sk_buff_head * xmitq)1787 int tipc_link_rcv(struct tipc_link *l, struct sk_buff *skb,
1788 struct sk_buff_head *xmitq)
1789 {
1790 struct sk_buff_head *defq = &l->deferdq;
1791 struct tipc_msg *hdr = buf_msg(skb);
1792 u16 seqno, rcv_nxt, win_lim;
1793 int released = 0;
1794 int rc = 0;
1795
1796 /* Verify and update link state */
1797 if (unlikely(msg_user(hdr) == LINK_PROTOCOL))
1798 return tipc_link_proto_rcv(l, skb, xmitq);
1799
1800 /* Don't send probe at next timeout expiration */
1801 l->silent_intv_cnt = 0;
1802
1803 do {
1804 hdr = buf_msg(skb);
1805 seqno = msg_seqno(hdr);
1806 rcv_nxt = l->rcv_nxt;
1807 win_lim = rcv_nxt + TIPC_MAX_LINK_WIN;
1808
1809 if (unlikely(!link_is_up(l))) {
1810 if (l->state == LINK_ESTABLISHING)
1811 rc = TIPC_LINK_UP_EVT;
1812 kfree_skb(skb);
1813 break;
1814 }
1815
1816 /* Drop if outside receive window */
1817 if (unlikely(less(seqno, rcv_nxt) || more(seqno, win_lim))) {
1818 l->stats.duplicates++;
1819 kfree_skb(skb);
1820 break;
1821 }
1822 released += tipc_link_advance_transmq(l, l, msg_ack(hdr), 0,
1823 NULL, NULL, NULL, NULL);
1824
1825 /* Defer delivery if sequence gap */
1826 if (unlikely(seqno != rcv_nxt)) {
1827 if (!__tipc_skb_queue_sorted(defq, seqno, skb))
1828 l->stats.duplicates++;
1829 rc |= tipc_link_build_nack_msg(l, xmitq);
1830 break;
1831 }
1832
1833 /* Deliver packet */
1834 l->rcv_nxt++;
1835 l->stats.recv_pkts++;
1836
1837 if (unlikely(msg_user(hdr) == TUNNEL_PROTOCOL))
1838 rc |= tipc_link_tnl_rcv(l, skb, l->inputq);
1839 else if (!tipc_data_input(l, skb, l->inputq))
1840 rc |= tipc_link_input(l, skb, l->inputq, &l->reasm_buf);
1841 if (unlikely(++l->rcv_unacked >= TIPC_MIN_LINK_WIN))
1842 rc |= tipc_link_build_state_msg(l, xmitq);
1843 if (unlikely(rc & ~TIPC_LINK_SND_STATE))
1844 break;
1845 } while ((skb = __tipc_skb_dequeue(defq, l->rcv_nxt)));
1846
1847 /* Forward queues and wake up waiting users */
1848 if (released) {
1849 tipc_link_update_cwin(l, released, 0);
1850 tipc_link_advance_backlog(l, xmitq);
1851 if (unlikely(!skb_queue_empty(&l->wakeupq)))
1852 link_prepare_wakeup(l);
1853 }
1854 return rc;
1855 }
1856
tipc_link_build_proto_msg(struct tipc_link * l,int mtyp,bool probe,bool probe_reply,u16 rcvgap,int tolerance,int priority,struct sk_buff_head * xmitq)1857 static void tipc_link_build_proto_msg(struct tipc_link *l, int mtyp, bool probe,
1858 bool probe_reply, u16 rcvgap,
1859 int tolerance, int priority,
1860 struct sk_buff_head *xmitq)
1861 {
1862 struct tipc_mon_state *mstate = &l->mon_state;
1863 struct sk_buff_head *dfq = &l->deferdq;
1864 struct tipc_link *bcl = l->bc_rcvlink;
1865 struct tipc_msg *hdr;
1866 struct sk_buff *skb;
1867 bool node_up = link_is_up(bcl);
1868 u16 glen = 0, bc_rcvgap = 0;
1869 int dlen = 0;
1870 void *data;
1871
1872 /* Don't send protocol message during reset or link failover */
1873 if (tipc_link_is_blocked(l))
1874 return;
1875
1876 if (!tipc_link_is_up(l) && (mtyp == STATE_MSG))
1877 return;
1878
1879 if ((probe || probe_reply) && !skb_queue_empty(dfq))
1880 rcvgap = buf_seqno(skb_peek(dfq)) - l->rcv_nxt;
1881
1882 skb = tipc_msg_create(LINK_PROTOCOL, mtyp, INT_H_SIZE,
1883 tipc_max_domain_size + MAX_GAP_ACK_BLKS_SZ,
1884 l->addr, tipc_own_addr(l->net), 0, 0, 0);
1885 if (!skb)
1886 return;
1887
1888 hdr = buf_msg(skb);
1889 data = msg_data(hdr);
1890 msg_set_session(hdr, l->session);
1891 msg_set_bearer_id(hdr, l->bearer_id);
1892 msg_set_net_plane(hdr, l->net_plane);
1893 msg_set_next_sent(hdr, l->snd_nxt);
1894 msg_set_ack(hdr, l->rcv_nxt - 1);
1895 msg_set_bcast_ack(hdr, bcl->rcv_nxt - 1);
1896 msg_set_bc_ack_invalid(hdr, !node_up);
1897 msg_set_last_bcast(hdr, l->bc_sndlink->snd_nxt - 1);
1898 msg_set_link_tolerance(hdr, tolerance);
1899 msg_set_linkprio(hdr, priority);
1900 msg_set_redundant_link(hdr, node_up);
1901 msg_set_seq_gap(hdr, 0);
1902 msg_set_seqno(hdr, l->snd_nxt + U16_MAX / 2);
1903
1904 if (mtyp == STATE_MSG) {
1905 if (l->peer_caps & TIPC_LINK_PROTO_SEQNO)
1906 msg_set_seqno(hdr, l->snd_nxt_state++);
1907 msg_set_seq_gap(hdr, rcvgap);
1908 bc_rcvgap = link_bc_rcv_gap(bcl);
1909 msg_set_bc_gap(hdr, bc_rcvgap);
1910 msg_set_probe(hdr, probe);
1911 msg_set_is_keepalive(hdr, probe || probe_reply);
1912 if (l->peer_caps & TIPC_GAP_ACK_BLOCK)
1913 glen = tipc_build_gap_ack_blks(l, hdr);
1914 tipc_mon_prep(l->net, data + glen, &dlen, mstate, l->bearer_id);
1915 msg_set_size(hdr, INT_H_SIZE + glen + dlen);
1916 skb_trim(skb, INT_H_SIZE + glen + dlen);
1917 l->stats.sent_states++;
1918 l->rcv_unacked = 0;
1919 } else {
1920 /* RESET_MSG or ACTIVATE_MSG */
1921 if (mtyp == ACTIVATE_MSG) {
1922 msg_set_dest_session_valid(hdr, 1);
1923 msg_set_dest_session(hdr, l->peer_session);
1924 }
1925 msg_set_max_pkt(hdr, l->advertised_mtu);
1926 strcpy(data, l->if_name);
1927 msg_set_size(hdr, INT_H_SIZE + TIPC_MAX_IF_NAME);
1928 skb_trim(skb, INT_H_SIZE + TIPC_MAX_IF_NAME);
1929 }
1930 if (probe)
1931 l->stats.sent_probes++;
1932 if (rcvgap)
1933 l->stats.sent_nacks++;
1934 if (bc_rcvgap)
1935 bcl->stats.sent_nacks++;
1936 skb->priority = TC_PRIO_CONTROL;
1937 __skb_queue_tail(xmitq, skb);
1938 trace_tipc_proto_build(skb, false, l->name);
1939 }
1940
tipc_link_create_dummy_tnl_msg(struct tipc_link * l,struct sk_buff_head * xmitq)1941 void tipc_link_create_dummy_tnl_msg(struct tipc_link *l,
1942 struct sk_buff_head *xmitq)
1943 {
1944 u32 onode = tipc_own_addr(l->net);
1945 struct tipc_msg *hdr, *ihdr;
1946 struct sk_buff_head tnlq;
1947 struct sk_buff *skb;
1948 u32 dnode = l->addr;
1949
1950 __skb_queue_head_init(&tnlq);
1951 skb = tipc_msg_create(TUNNEL_PROTOCOL, FAILOVER_MSG,
1952 INT_H_SIZE, BASIC_H_SIZE,
1953 dnode, onode, 0, 0, 0);
1954 if (!skb) {
1955 pr_warn("%sunable to create tunnel packet\n", link_co_err);
1956 return;
1957 }
1958
1959 hdr = buf_msg(skb);
1960 msg_set_msgcnt(hdr, 1);
1961 msg_set_bearer_id(hdr, l->peer_bearer_id);
1962
1963 ihdr = (struct tipc_msg *)msg_data(hdr);
1964 tipc_msg_init(onode, ihdr, TIPC_LOW_IMPORTANCE, TIPC_DIRECT_MSG,
1965 BASIC_H_SIZE, dnode);
1966 msg_set_errcode(ihdr, TIPC_ERR_NO_PORT);
1967 __skb_queue_tail(&tnlq, skb);
1968 tipc_link_xmit(l, &tnlq, xmitq);
1969 }
1970
1971 /* tipc_link_tnl_prepare(): prepare and return a list of tunnel packets
1972 * with contents of the link's transmit and backlog queues.
1973 */
tipc_link_tnl_prepare(struct tipc_link * l,struct tipc_link * tnl,int mtyp,struct sk_buff_head * xmitq)1974 void tipc_link_tnl_prepare(struct tipc_link *l, struct tipc_link *tnl,
1975 int mtyp, struct sk_buff_head *xmitq)
1976 {
1977 struct sk_buff_head *fdefq = &tnl->failover_deferdq;
1978 struct sk_buff *skb, *tnlskb;
1979 struct tipc_msg *hdr, tnlhdr;
1980 struct sk_buff_head *queue = &l->transmq;
1981 struct sk_buff_head tmpxq, tnlq, frags;
1982 u16 pktlen, pktcnt, seqno = l->snd_nxt;
1983 bool pktcnt_need_update = false;
1984 u16 syncpt;
1985 int rc;
1986
1987 if (!tnl)
1988 return;
1989
1990 __skb_queue_head_init(&tnlq);
1991 /* Link Synching:
1992 * From now on, send only one single ("dummy") SYNCH message
1993 * to peer. The SYNCH message does not contain any data, just
1994 * a header conveying the synch point to the peer.
1995 */
1996 if (mtyp == SYNCH_MSG && (tnl->peer_caps & TIPC_TUNNEL_ENHANCED)) {
1997 tnlskb = tipc_msg_create(TUNNEL_PROTOCOL, SYNCH_MSG,
1998 INT_H_SIZE, 0, l->addr,
1999 tipc_own_addr(l->net),
2000 0, 0, 0);
2001 if (!tnlskb) {
2002 pr_warn("%sunable to create dummy SYNCH_MSG\n",
2003 link_co_err);
2004 return;
2005 }
2006
2007 hdr = buf_msg(tnlskb);
2008 syncpt = l->snd_nxt + skb_queue_len(&l->backlogq) - 1;
2009 msg_set_syncpt(hdr, syncpt);
2010 msg_set_bearer_id(hdr, l->peer_bearer_id);
2011 __skb_queue_tail(&tnlq, tnlskb);
2012 tipc_link_xmit(tnl, &tnlq, xmitq);
2013 return;
2014 }
2015
2016 __skb_queue_head_init(&tmpxq);
2017 __skb_queue_head_init(&frags);
2018 /* At least one packet required for safe algorithm => add dummy */
2019 skb = tipc_msg_create(TIPC_LOW_IMPORTANCE, TIPC_DIRECT_MSG,
2020 BASIC_H_SIZE, 0, l->addr, tipc_own_addr(l->net),
2021 0, 0, TIPC_ERR_NO_PORT);
2022 if (!skb) {
2023 pr_warn("%sunable to create tunnel packet\n", link_co_err);
2024 return;
2025 }
2026 __skb_queue_tail(&tnlq, skb);
2027 tipc_link_xmit(l, &tnlq, &tmpxq);
2028 __skb_queue_purge(&tmpxq);
2029
2030 /* Initialize reusable tunnel packet header */
2031 tipc_msg_init(tipc_own_addr(l->net), &tnlhdr, TUNNEL_PROTOCOL,
2032 mtyp, INT_H_SIZE, l->addr);
2033 if (mtyp == SYNCH_MSG)
2034 pktcnt = l->snd_nxt - buf_seqno(skb_peek(&l->transmq));
2035 else
2036 pktcnt = skb_queue_len(&l->transmq);
2037 pktcnt += skb_queue_len(&l->backlogq);
2038 msg_set_msgcnt(&tnlhdr, pktcnt);
2039 msg_set_bearer_id(&tnlhdr, l->peer_bearer_id);
2040 tnl:
2041 /* Wrap each packet into a tunnel packet */
2042 skb_queue_walk(queue, skb) {
2043 hdr = buf_msg(skb);
2044 if (queue == &l->backlogq)
2045 msg_set_seqno(hdr, seqno++);
2046 pktlen = msg_size(hdr);
2047
2048 /* Tunnel link MTU is not large enough? This could be
2049 * due to:
2050 * 1) Link MTU has just changed or set differently;
2051 * 2) Or FAILOVER on the top of a SYNCH message
2052 *
2053 * The 2nd case should not happen if peer supports
2054 * TIPC_TUNNEL_ENHANCED
2055 */
2056 if (pktlen > tnl->mtu - INT_H_SIZE) {
2057 if (mtyp == FAILOVER_MSG &&
2058 (tnl->peer_caps & TIPC_TUNNEL_ENHANCED)) {
2059 rc = tipc_msg_fragment(skb, &tnlhdr, tnl->mtu,
2060 &frags);
2061 if (rc) {
2062 pr_warn("%sunable to frag msg: rc %d\n",
2063 link_co_err, rc);
2064 return;
2065 }
2066 pktcnt += skb_queue_len(&frags) - 1;
2067 pktcnt_need_update = true;
2068 skb_queue_splice_tail_init(&frags, &tnlq);
2069 continue;
2070 }
2071 /* Unluckily, peer doesn't have TIPC_TUNNEL_ENHANCED
2072 * => Just warn it and return!
2073 */
2074 pr_warn_ratelimited("%stoo large msg <%d, %d>: %d!\n",
2075 link_co_err, msg_user(hdr),
2076 msg_type(hdr), msg_size(hdr));
2077 return;
2078 }
2079
2080 msg_set_size(&tnlhdr, pktlen + INT_H_SIZE);
2081 tnlskb = tipc_buf_acquire(pktlen + INT_H_SIZE, GFP_ATOMIC);
2082 if (!tnlskb) {
2083 pr_warn("%sunable to send packet\n", link_co_err);
2084 return;
2085 }
2086 skb_copy_to_linear_data(tnlskb, &tnlhdr, INT_H_SIZE);
2087 skb_copy_to_linear_data_offset(tnlskb, INT_H_SIZE, hdr, pktlen);
2088 __skb_queue_tail(&tnlq, tnlskb);
2089 }
2090 if (queue != &l->backlogq) {
2091 queue = &l->backlogq;
2092 goto tnl;
2093 }
2094
2095 if (pktcnt_need_update)
2096 skb_queue_walk(&tnlq, skb) {
2097 hdr = buf_msg(skb);
2098 msg_set_msgcnt(hdr, pktcnt);
2099 }
2100
2101 tipc_link_xmit(tnl, &tnlq, xmitq);
2102
2103 if (mtyp == FAILOVER_MSG) {
2104 tnl->drop_point = l->rcv_nxt;
2105 tnl->failover_reasm_skb = l->reasm_buf;
2106 l->reasm_buf = NULL;
2107
2108 /* Failover the link's deferdq */
2109 if (unlikely(!skb_queue_empty(fdefq))) {
2110 pr_warn("Link failover deferdq not empty: %d!\n",
2111 skb_queue_len(fdefq));
2112 __skb_queue_purge(fdefq);
2113 }
2114 skb_queue_splice_init(&l->deferdq, fdefq);
2115 }
2116 }
2117
2118 /**
2119 * tipc_link_failover_prepare() - prepare tnl for link failover
2120 *
2121 * This is a special version of the precursor - tipc_link_tnl_prepare(),
2122 * see the tipc_node_link_failover() for details
2123 *
2124 * @l: failover link
2125 * @tnl: tunnel link
2126 * @xmitq: queue for messages to be xmited
2127 */
tipc_link_failover_prepare(struct tipc_link * l,struct tipc_link * tnl,struct sk_buff_head * xmitq)2128 void tipc_link_failover_prepare(struct tipc_link *l, struct tipc_link *tnl,
2129 struct sk_buff_head *xmitq)
2130 {
2131 struct sk_buff_head *fdefq = &tnl->failover_deferdq;
2132
2133 tipc_link_create_dummy_tnl_msg(tnl, xmitq);
2134
2135 /* This failover link endpoint was never established before,
2136 * so it has not received anything from peer.
2137 * Otherwise, it must be a normal failover situation or the
2138 * node has entered SELF_DOWN_PEER_LEAVING and both peer nodes
2139 * would have to start over from scratch instead.
2140 */
2141 tnl->drop_point = 1;
2142 tnl->failover_reasm_skb = NULL;
2143
2144 /* Initiate the link's failover deferdq */
2145 if (unlikely(!skb_queue_empty(fdefq))) {
2146 pr_warn("Link failover deferdq not empty: %d!\n",
2147 skb_queue_len(fdefq));
2148 __skb_queue_purge(fdefq);
2149 }
2150 }
2151
2152 /* tipc_link_validate_msg(): validate message against current link state
2153 * Returns true if message should be accepted, otherwise false
2154 */
tipc_link_validate_msg(struct tipc_link * l,struct tipc_msg * hdr)2155 bool tipc_link_validate_msg(struct tipc_link *l, struct tipc_msg *hdr)
2156 {
2157 u16 curr_session = l->peer_session;
2158 u16 session = msg_session(hdr);
2159 int mtyp = msg_type(hdr);
2160
2161 if (msg_user(hdr) != LINK_PROTOCOL)
2162 return true;
2163
2164 switch (mtyp) {
2165 case RESET_MSG:
2166 if (!l->in_session)
2167 return true;
2168 /* Accept only RESET with new session number */
2169 return more(session, curr_session);
2170 case ACTIVATE_MSG:
2171 if (!l->in_session)
2172 return true;
2173 /* Accept only ACTIVATE with new or current session number */
2174 return !less(session, curr_session);
2175 case STATE_MSG:
2176 /* Accept only STATE with current session number */
2177 if (!l->in_session)
2178 return false;
2179 if (session != curr_session)
2180 return false;
2181 /* Extra sanity check */
2182 if (!link_is_up(l) && msg_ack(hdr))
2183 return false;
2184 if (!(l->peer_caps & TIPC_LINK_PROTO_SEQNO))
2185 return true;
2186 /* Accept only STATE with new sequence number */
2187 return !less(msg_seqno(hdr), l->rcv_nxt_state);
2188 default:
2189 return false;
2190 }
2191 }
2192
2193 /* tipc_link_proto_rcv(): receive link level protocol message :
2194 * Note that network plane id propagates through the network, and may
2195 * change at any time. The node with lowest numerical id determines
2196 * network plane
2197 */
tipc_link_proto_rcv(struct tipc_link * l,struct sk_buff * skb,struct sk_buff_head * xmitq)2198 static int tipc_link_proto_rcv(struct tipc_link *l, struct sk_buff *skb,
2199 struct sk_buff_head *xmitq)
2200 {
2201 struct tipc_msg *hdr = buf_msg(skb);
2202 struct tipc_gap_ack_blks *ga = NULL;
2203 bool reply = msg_probe(hdr), retransmitted = false;
2204 u32 dlen = msg_data_sz(hdr), glen = 0, msg_max;
2205 u16 peers_snd_nxt = msg_next_sent(hdr);
2206 u16 peers_tol = msg_link_tolerance(hdr);
2207 u16 peers_prio = msg_linkprio(hdr);
2208 u16 gap = msg_seq_gap(hdr);
2209 u16 ack = msg_ack(hdr);
2210 u16 rcv_nxt = l->rcv_nxt;
2211 u16 rcvgap = 0;
2212 int mtyp = msg_type(hdr);
2213 int rc = 0, released;
2214 char *if_name;
2215 void *data;
2216
2217 trace_tipc_proto_rcv(skb, false, l->name);
2218
2219 if (dlen > U16_MAX)
2220 goto exit;
2221
2222 if (tipc_link_is_blocked(l) || !xmitq)
2223 goto exit;
2224
2225 if (tipc_own_addr(l->net) > msg_prevnode(hdr))
2226 l->net_plane = msg_net_plane(hdr);
2227
2228 if (skb_linearize(skb))
2229 goto exit;
2230
2231 hdr = buf_msg(skb);
2232 data = msg_data(hdr);
2233
2234 if (!tipc_link_validate_msg(l, hdr)) {
2235 trace_tipc_skb_dump(skb, false, "PROTO invalid (1)!");
2236 trace_tipc_link_dump(l, TIPC_DUMP_NONE, "PROTO invalid (1)!");
2237 goto exit;
2238 }
2239
2240 switch (mtyp) {
2241 case RESET_MSG:
2242 case ACTIVATE_MSG:
2243 msg_max = msg_max_pkt(hdr);
2244 if (msg_max < tipc_bearer_min_mtu(l->net, l->bearer_id))
2245 break;
2246 /* Complete own link name with peer's interface name */
2247 if_name = strrchr(l->name, ':') + 1;
2248 if (sizeof(l->name) - (if_name - l->name) <= TIPC_MAX_IF_NAME)
2249 break;
2250 if (msg_data_sz(hdr) < TIPC_MAX_IF_NAME)
2251 break;
2252 strncpy(if_name, data, TIPC_MAX_IF_NAME);
2253
2254 /* Update own tolerance if peer indicates a non-zero value */
2255 if (tipc_in_range(peers_tol, TIPC_MIN_LINK_TOL, TIPC_MAX_LINK_TOL)) {
2256 l->tolerance = peers_tol;
2257 l->bc_rcvlink->tolerance = peers_tol;
2258 }
2259 /* Update own priority if peer's priority is higher */
2260 if (tipc_in_range(peers_prio, l->priority + 1, TIPC_MAX_LINK_PRI))
2261 l->priority = peers_prio;
2262
2263 /* If peer is going down we want full re-establish cycle */
2264 if (msg_peer_stopping(hdr)) {
2265 rc = tipc_link_fsm_evt(l, LINK_FAILURE_EVT);
2266 break;
2267 }
2268
2269 /* If this endpoint was re-created while peer was ESTABLISHING
2270 * it doesn't know current session number. Force re-synch.
2271 */
2272 if (mtyp == ACTIVATE_MSG && msg_dest_session_valid(hdr) &&
2273 l->session != msg_dest_session(hdr)) {
2274 if (less(l->session, msg_dest_session(hdr)))
2275 l->session = msg_dest_session(hdr) + 1;
2276 break;
2277 }
2278
2279 /* ACTIVATE_MSG serves as PEER_RESET if link is already down */
2280 if (mtyp == RESET_MSG || !link_is_up(l))
2281 rc = tipc_link_fsm_evt(l, LINK_PEER_RESET_EVT);
2282
2283 /* ACTIVATE_MSG takes up link if it was already locally reset */
2284 if (mtyp == ACTIVATE_MSG && l->state == LINK_ESTABLISHING)
2285 rc = TIPC_LINK_UP_EVT;
2286
2287 l->peer_session = msg_session(hdr);
2288 l->in_session = true;
2289 l->peer_bearer_id = msg_bearer_id(hdr);
2290 if (l->mtu > msg_max)
2291 l->mtu = msg_max;
2292 break;
2293
2294 case STATE_MSG:
2295 /* Validate Gap ACK blocks, drop if invalid */
2296 glen = tipc_get_gap_ack_blks(&ga, l, hdr, true);
2297 if (glen > dlen)
2298 break;
2299
2300 l->rcv_nxt_state = msg_seqno(hdr) + 1;
2301
2302 /* Update own tolerance if peer indicates a non-zero value */
2303 if (tipc_in_range(peers_tol, TIPC_MIN_LINK_TOL, TIPC_MAX_LINK_TOL)) {
2304 l->tolerance = peers_tol;
2305 l->bc_rcvlink->tolerance = peers_tol;
2306 }
2307 /* Update own prio if peer indicates a different value */
2308 if ((peers_prio != l->priority) &&
2309 tipc_in_range(peers_prio, 1, TIPC_MAX_LINK_PRI)) {
2310 l->priority = peers_prio;
2311 rc = tipc_link_fsm_evt(l, LINK_FAILURE_EVT);
2312 }
2313
2314 l->silent_intv_cnt = 0;
2315 l->stats.recv_states++;
2316 if (msg_probe(hdr))
2317 l->stats.recv_probes++;
2318
2319 if (!link_is_up(l)) {
2320 if (l->state == LINK_ESTABLISHING)
2321 rc = TIPC_LINK_UP_EVT;
2322 break;
2323 }
2324
2325 tipc_mon_rcv(l->net, data + glen, dlen - glen, l->addr,
2326 &l->mon_state, l->bearer_id);
2327
2328 /* Send NACK if peer has sent pkts we haven't received yet */
2329 if ((reply || msg_is_keepalive(hdr)) &&
2330 more(peers_snd_nxt, rcv_nxt) &&
2331 !tipc_link_is_synching(l) &&
2332 skb_queue_empty(&l->deferdq))
2333 rcvgap = peers_snd_nxt - l->rcv_nxt;
2334 if (rcvgap || reply)
2335 tipc_link_build_proto_msg(l, STATE_MSG, 0, reply,
2336 rcvgap, 0, 0, xmitq);
2337
2338 released = tipc_link_advance_transmq(l, l, ack, gap, ga, xmitq,
2339 &retransmitted, &rc);
2340 if (gap)
2341 l->stats.recv_nacks++;
2342 if (released || retransmitted)
2343 tipc_link_update_cwin(l, released, retransmitted);
2344 if (released)
2345 tipc_link_advance_backlog(l, xmitq);
2346 if (unlikely(!skb_queue_empty(&l->wakeupq)))
2347 link_prepare_wakeup(l);
2348 }
2349 exit:
2350 kfree_skb(skb);
2351 return rc;
2352 }
2353
2354 /* tipc_link_build_bc_proto_msg() - create broadcast protocol message
2355 */
tipc_link_build_bc_proto_msg(struct tipc_link * l,bool bcast,u16 peers_snd_nxt,struct sk_buff_head * xmitq)2356 static bool tipc_link_build_bc_proto_msg(struct tipc_link *l, bool bcast,
2357 u16 peers_snd_nxt,
2358 struct sk_buff_head *xmitq)
2359 {
2360 struct sk_buff *skb;
2361 struct tipc_msg *hdr;
2362 struct sk_buff *dfrd_skb = skb_peek(&l->deferdq);
2363 u16 ack = l->rcv_nxt - 1;
2364 u16 gap_to = peers_snd_nxt - 1;
2365
2366 skb = tipc_msg_create(BCAST_PROTOCOL, STATE_MSG, INT_H_SIZE,
2367 0, l->addr, tipc_own_addr(l->net), 0, 0, 0);
2368 if (!skb)
2369 return false;
2370 hdr = buf_msg(skb);
2371 msg_set_last_bcast(hdr, l->bc_sndlink->snd_nxt - 1);
2372 msg_set_bcast_ack(hdr, ack);
2373 msg_set_bcgap_after(hdr, ack);
2374 if (dfrd_skb)
2375 gap_to = buf_seqno(dfrd_skb) - 1;
2376 msg_set_bcgap_to(hdr, gap_to);
2377 msg_set_non_seq(hdr, bcast);
2378 __skb_queue_tail(xmitq, skb);
2379 return true;
2380 }
2381
2382 /* tipc_link_build_bc_init_msg() - synchronize broadcast link endpoints.
2383 *
2384 * Give a newly added peer node the sequence number where it should
2385 * start receiving and acking broadcast packets.
2386 */
tipc_link_build_bc_init_msg(struct tipc_link * l,struct sk_buff_head * xmitq)2387 static void tipc_link_build_bc_init_msg(struct tipc_link *l,
2388 struct sk_buff_head *xmitq)
2389 {
2390 struct sk_buff_head list;
2391
2392 __skb_queue_head_init(&list);
2393 if (!tipc_link_build_bc_proto_msg(l->bc_rcvlink, false, 0, &list))
2394 return;
2395 msg_set_bc_ack_invalid(buf_msg(skb_peek(&list)), true);
2396 tipc_link_xmit(l, &list, xmitq);
2397 }
2398
2399 /* tipc_link_bc_init_rcv - receive initial broadcast synch data from peer
2400 */
tipc_link_bc_init_rcv(struct tipc_link * l,struct tipc_msg * hdr)2401 void tipc_link_bc_init_rcv(struct tipc_link *l, struct tipc_msg *hdr)
2402 {
2403 int mtyp = msg_type(hdr);
2404 u16 peers_snd_nxt = msg_bc_snd_nxt(hdr);
2405
2406 if (link_is_up(l))
2407 return;
2408
2409 if (msg_user(hdr) == BCAST_PROTOCOL) {
2410 l->rcv_nxt = peers_snd_nxt;
2411 l->state = LINK_ESTABLISHED;
2412 return;
2413 }
2414
2415 if (l->peer_caps & TIPC_BCAST_SYNCH)
2416 return;
2417
2418 if (msg_peer_node_is_up(hdr))
2419 return;
2420
2421 /* Compatibility: accept older, less safe initial synch data */
2422 if ((mtyp == RESET_MSG) || (mtyp == ACTIVATE_MSG))
2423 l->rcv_nxt = peers_snd_nxt;
2424 }
2425
2426 /* tipc_link_bc_sync_rcv - update rcv link according to peer's send state
2427 */
tipc_link_bc_sync_rcv(struct tipc_link * l,struct tipc_msg * hdr,struct sk_buff_head * xmitq)2428 int tipc_link_bc_sync_rcv(struct tipc_link *l, struct tipc_msg *hdr,
2429 struct sk_buff_head *xmitq)
2430 {
2431 u16 peers_snd_nxt = msg_bc_snd_nxt(hdr);
2432 int rc = 0;
2433
2434 if (!link_is_up(l))
2435 return rc;
2436
2437 if (!msg_peer_node_is_up(hdr))
2438 return rc;
2439
2440 /* Open when peer acknowledges our bcast init msg (pkt #1) */
2441 if (msg_ack(hdr))
2442 l->bc_peer_is_up = true;
2443
2444 if (!l->bc_peer_is_up)
2445 return rc;
2446
2447 /* Ignore if peers_snd_nxt goes beyond receive window */
2448 if (more(peers_snd_nxt, l->rcv_nxt + l->window))
2449 return rc;
2450
2451 l->snd_nxt = peers_snd_nxt;
2452 if (link_bc_rcv_gap(l))
2453 rc |= TIPC_LINK_SND_STATE;
2454
2455 /* Return now if sender supports nack via STATE messages */
2456 if (l->peer_caps & TIPC_BCAST_STATE_NACK)
2457 return rc;
2458
2459 /* Otherwise, be backwards compatible */
2460
2461 if (!more(peers_snd_nxt, l->rcv_nxt)) {
2462 l->nack_state = BC_NACK_SND_CONDITIONAL;
2463 return 0;
2464 }
2465
2466 /* Don't NACK if one was recently sent or peeked */
2467 if (l->nack_state == BC_NACK_SND_SUPPRESS) {
2468 l->nack_state = BC_NACK_SND_UNCONDITIONAL;
2469 return 0;
2470 }
2471
2472 /* Conditionally delay NACK sending until next synch rcv */
2473 if (l->nack_state == BC_NACK_SND_CONDITIONAL) {
2474 l->nack_state = BC_NACK_SND_UNCONDITIONAL;
2475 if ((peers_snd_nxt - l->rcv_nxt) < TIPC_MIN_LINK_WIN)
2476 return 0;
2477 }
2478
2479 /* Send NACK now but suppress next one */
2480 tipc_link_build_bc_proto_msg(l, true, peers_snd_nxt, xmitq);
2481 l->nack_state = BC_NACK_SND_SUPPRESS;
2482 return 0;
2483 }
2484
tipc_link_bc_ack_rcv(struct tipc_link * r,u16 acked,u16 gap,struct tipc_gap_ack_blks * ga,struct sk_buff_head * xmitq,struct sk_buff_head * retrq)2485 int tipc_link_bc_ack_rcv(struct tipc_link *r, u16 acked, u16 gap,
2486 struct tipc_gap_ack_blks *ga,
2487 struct sk_buff_head *xmitq,
2488 struct sk_buff_head *retrq)
2489 {
2490 struct tipc_link *l = r->bc_sndlink;
2491 bool unused = false;
2492 int rc = 0;
2493
2494 if (!link_is_up(r) || !r->bc_peer_is_up)
2495 return 0;
2496
2497 if (gap) {
2498 l->stats.recv_nacks++;
2499 r->stats.recv_nacks++;
2500 }
2501
2502 if (less(acked, r->acked) || (acked == r->acked && !gap && !ga))
2503 return 0;
2504
2505 trace_tipc_link_bc_ack(r, acked, gap, &l->transmq);
2506 tipc_link_advance_transmq(l, r, acked, gap, ga, retrq, &unused, &rc);
2507
2508 tipc_link_advance_backlog(l, xmitq);
2509 if (unlikely(!skb_queue_empty(&l->wakeupq)))
2510 link_prepare_wakeup(l);
2511
2512 return rc;
2513 }
2514
2515 /* tipc_link_bc_nack_rcv(): receive broadcast nack message
2516 * This function is here for backwards compatibility, since
2517 * no BCAST_PROTOCOL/STATE messages occur from TIPC v2.5.
2518 */
tipc_link_bc_nack_rcv(struct tipc_link * l,struct sk_buff * skb,struct sk_buff_head * xmitq)2519 int tipc_link_bc_nack_rcv(struct tipc_link *l, struct sk_buff *skb,
2520 struct sk_buff_head *xmitq)
2521 {
2522 struct tipc_msg *hdr = buf_msg(skb);
2523 u32 dnode = msg_destnode(hdr);
2524 int mtyp = msg_type(hdr);
2525 u16 acked = msg_bcast_ack(hdr);
2526 u16 from = acked + 1;
2527 u16 to = msg_bcgap_to(hdr);
2528 u16 peers_snd_nxt = to + 1;
2529 int rc = 0;
2530
2531 kfree_skb(skb);
2532
2533 if (!tipc_link_is_up(l) || !l->bc_peer_is_up)
2534 return 0;
2535
2536 if (mtyp != STATE_MSG)
2537 return 0;
2538
2539 if (dnode == tipc_own_addr(l->net)) {
2540 rc = tipc_link_bc_ack_rcv(l, acked, to - acked, NULL, xmitq,
2541 xmitq);
2542 l->stats.recv_nacks++;
2543 return rc;
2544 }
2545
2546 /* Msg for other node => suppress own NACK at next sync if applicable */
2547 if (more(peers_snd_nxt, l->rcv_nxt) && !less(l->rcv_nxt, from))
2548 l->nack_state = BC_NACK_SND_SUPPRESS;
2549
2550 return 0;
2551 }
2552
tipc_link_set_queue_limits(struct tipc_link * l,u32 min_win,u32 max_win)2553 void tipc_link_set_queue_limits(struct tipc_link *l, u32 min_win, u32 max_win)
2554 {
2555 int max_bulk = TIPC_MAX_PUBL / (l->mtu / ITEM_SIZE);
2556
2557 l->min_win = min_win;
2558 l->ssthresh = max_win;
2559 l->max_win = max_win;
2560 l->window = min_win;
2561 l->backlog[TIPC_LOW_IMPORTANCE].limit = min_win * 2;
2562 l->backlog[TIPC_MEDIUM_IMPORTANCE].limit = min_win * 4;
2563 l->backlog[TIPC_HIGH_IMPORTANCE].limit = min_win * 6;
2564 l->backlog[TIPC_CRITICAL_IMPORTANCE].limit = min_win * 8;
2565 l->backlog[TIPC_SYSTEM_IMPORTANCE].limit = max_bulk;
2566 }
2567
2568 /**
2569 * tipc_link_reset_stats - reset link statistics
2570 * @l: pointer to link
2571 */
tipc_link_reset_stats(struct tipc_link * l)2572 void tipc_link_reset_stats(struct tipc_link *l)
2573 {
2574 memset(&l->stats, 0, sizeof(l->stats));
2575 }
2576
link_print(struct tipc_link * l,const char * str)2577 static void link_print(struct tipc_link *l, const char *str)
2578 {
2579 struct sk_buff *hskb = skb_peek(&l->transmq);
2580 u16 head = hskb ? msg_seqno(buf_msg(hskb)) : l->snd_nxt - 1;
2581 u16 tail = l->snd_nxt - 1;
2582
2583 pr_info("%s Link <%s> state %x\n", str, l->name, l->state);
2584 pr_info("XMTQ: %u [%u-%u], BKLGQ: %u, SNDNX: %u, RCVNX: %u\n",
2585 skb_queue_len(&l->transmq), head, tail,
2586 skb_queue_len(&l->backlogq), l->snd_nxt, l->rcv_nxt);
2587 }
2588
2589 /* Parse and validate nested (link) properties valid for media, bearer and link
2590 */
tipc_nl_parse_link_prop(struct nlattr * prop,struct nlattr * props[])2591 int tipc_nl_parse_link_prop(struct nlattr *prop, struct nlattr *props[])
2592 {
2593 int err;
2594
2595 err = nla_parse_nested_deprecated(props, TIPC_NLA_PROP_MAX, prop,
2596 tipc_nl_prop_policy, NULL);
2597 if (err)
2598 return err;
2599
2600 if (props[TIPC_NLA_PROP_PRIO]) {
2601 u32 prio;
2602
2603 prio = nla_get_u32(props[TIPC_NLA_PROP_PRIO]);
2604 if (prio > TIPC_MAX_LINK_PRI)
2605 return -EINVAL;
2606 }
2607
2608 if (props[TIPC_NLA_PROP_TOL]) {
2609 u32 tol;
2610
2611 tol = nla_get_u32(props[TIPC_NLA_PROP_TOL]);
2612 if ((tol < TIPC_MIN_LINK_TOL) || (tol > TIPC_MAX_LINK_TOL))
2613 return -EINVAL;
2614 }
2615
2616 if (props[TIPC_NLA_PROP_WIN]) {
2617 u32 max_win;
2618
2619 max_win = nla_get_u32(props[TIPC_NLA_PROP_WIN]);
2620 if (max_win < TIPC_DEF_LINK_WIN || max_win > TIPC_MAX_LINK_WIN)
2621 return -EINVAL;
2622 }
2623
2624 return 0;
2625 }
2626
__tipc_nl_add_stats(struct sk_buff * skb,struct tipc_stats * s)2627 static int __tipc_nl_add_stats(struct sk_buff *skb, struct tipc_stats *s)
2628 {
2629 int i;
2630 struct nlattr *stats;
2631
2632 struct nla_map {
2633 u32 key;
2634 u32 val;
2635 };
2636
2637 struct nla_map map[] = {
2638 {TIPC_NLA_STATS_RX_INFO, 0},
2639 {TIPC_NLA_STATS_RX_FRAGMENTS, s->recv_fragments},
2640 {TIPC_NLA_STATS_RX_FRAGMENTED, s->recv_fragmented},
2641 {TIPC_NLA_STATS_RX_BUNDLES, s->recv_bundles},
2642 {TIPC_NLA_STATS_RX_BUNDLED, s->recv_bundled},
2643 {TIPC_NLA_STATS_TX_INFO, 0},
2644 {TIPC_NLA_STATS_TX_FRAGMENTS, s->sent_fragments},
2645 {TIPC_NLA_STATS_TX_FRAGMENTED, s->sent_fragmented},
2646 {TIPC_NLA_STATS_TX_BUNDLES, s->sent_bundles},
2647 {TIPC_NLA_STATS_TX_BUNDLED, s->sent_bundled},
2648 {TIPC_NLA_STATS_MSG_PROF_TOT, (s->msg_length_counts) ?
2649 s->msg_length_counts : 1},
2650 {TIPC_NLA_STATS_MSG_LEN_CNT, s->msg_length_counts},
2651 {TIPC_NLA_STATS_MSG_LEN_TOT, s->msg_lengths_total},
2652 {TIPC_NLA_STATS_MSG_LEN_P0, s->msg_length_profile[0]},
2653 {TIPC_NLA_STATS_MSG_LEN_P1, s->msg_length_profile[1]},
2654 {TIPC_NLA_STATS_MSG_LEN_P2, s->msg_length_profile[2]},
2655 {TIPC_NLA_STATS_MSG_LEN_P3, s->msg_length_profile[3]},
2656 {TIPC_NLA_STATS_MSG_LEN_P4, s->msg_length_profile[4]},
2657 {TIPC_NLA_STATS_MSG_LEN_P5, s->msg_length_profile[5]},
2658 {TIPC_NLA_STATS_MSG_LEN_P6, s->msg_length_profile[6]},
2659 {TIPC_NLA_STATS_RX_STATES, s->recv_states},
2660 {TIPC_NLA_STATS_RX_PROBES, s->recv_probes},
2661 {TIPC_NLA_STATS_RX_NACKS, s->recv_nacks},
2662 {TIPC_NLA_STATS_RX_DEFERRED, s->deferred_recv},
2663 {TIPC_NLA_STATS_TX_STATES, s->sent_states},
2664 {TIPC_NLA_STATS_TX_PROBES, s->sent_probes},
2665 {TIPC_NLA_STATS_TX_NACKS, s->sent_nacks},
2666 {TIPC_NLA_STATS_TX_ACKS, s->sent_acks},
2667 {TIPC_NLA_STATS_RETRANSMITTED, s->retransmitted},
2668 {TIPC_NLA_STATS_DUPLICATES, s->duplicates},
2669 {TIPC_NLA_STATS_LINK_CONGS, s->link_congs},
2670 {TIPC_NLA_STATS_MAX_QUEUE, s->max_queue_sz},
2671 {TIPC_NLA_STATS_AVG_QUEUE, s->queue_sz_counts ?
2672 (s->accu_queue_sz / s->queue_sz_counts) : 0}
2673 };
2674
2675 stats = nla_nest_start_noflag(skb, TIPC_NLA_LINK_STATS);
2676 if (!stats)
2677 return -EMSGSIZE;
2678
2679 for (i = 0; i < ARRAY_SIZE(map); i++)
2680 if (nla_put_u32(skb, map[i].key, map[i].val))
2681 goto msg_full;
2682
2683 nla_nest_end(skb, stats);
2684
2685 return 0;
2686 msg_full:
2687 nla_nest_cancel(skb, stats);
2688
2689 return -EMSGSIZE;
2690 }
2691
2692 /* Caller should hold appropriate locks to protect the link */
__tipc_nl_add_link(struct net * net,struct tipc_nl_msg * msg,struct tipc_link * link,int nlflags)2693 int __tipc_nl_add_link(struct net *net, struct tipc_nl_msg *msg,
2694 struct tipc_link *link, int nlflags)
2695 {
2696 u32 self = tipc_own_addr(net);
2697 struct nlattr *attrs;
2698 struct nlattr *prop;
2699 void *hdr;
2700 int err;
2701
2702 hdr = genlmsg_put(msg->skb, msg->portid, msg->seq, &tipc_genl_family,
2703 nlflags, TIPC_NL_LINK_GET);
2704 if (!hdr)
2705 return -EMSGSIZE;
2706
2707 attrs = nla_nest_start_noflag(msg->skb, TIPC_NLA_LINK);
2708 if (!attrs)
2709 goto msg_full;
2710
2711 if (nla_put_string(msg->skb, TIPC_NLA_LINK_NAME, link->name))
2712 goto attr_msg_full;
2713 if (nla_put_u32(msg->skb, TIPC_NLA_LINK_DEST, tipc_cluster_mask(self)))
2714 goto attr_msg_full;
2715 if (nla_put_u32(msg->skb, TIPC_NLA_LINK_MTU, link->mtu))
2716 goto attr_msg_full;
2717 if (nla_put_u32(msg->skb, TIPC_NLA_LINK_RX, link->stats.recv_pkts))
2718 goto attr_msg_full;
2719 if (nla_put_u32(msg->skb, TIPC_NLA_LINK_TX, link->stats.sent_pkts))
2720 goto attr_msg_full;
2721
2722 if (tipc_link_is_up(link))
2723 if (nla_put_flag(msg->skb, TIPC_NLA_LINK_UP))
2724 goto attr_msg_full;
2725 if (link->active)
2726 if (nla_put_flag(msg->skb, TIPC_NLA_LINK_ACTIVE))
2727 goto attr_msg_full;
2728
2729 prop = nla_nest_start_noflag(msg->skb, TIPC_NLA_LINK_PROP);
2730 if (!prop)
2731 goto attr_msg_full;
2732 if (nla_put_u32(msg->skb, TIPC_NLA_PROP_PRIO, link->priority))
2733 goto prop_msg_full;
2734 if (nla_put_u32(msg->skb, TIPC_NLA_PROP_TOL, link->tolerance))
2735 goto prop_msg_full;
2736 if (nla_put_u32(msg->skb, TIPC_NLA_PROP_WIN,
2737 link->window))
2738 goto prop_msg_full;
2739 if (nla_put_u32(msg->skb, TIPC_NLA_PROP_PRIO, link->priority))
2740 goto prop_msg_full;
2741 nla_nest_end(msg->skb, prop);
2742
2743 err = __tipc_nl_add_stats(msg->skb, &link->stats);
2744 if (err)
2745 goto attr_msg_full;
2746
2747 nla_nest_end(msg->skb, attrs);
2748 genlmsg_end(msg->skb, hdr);
2749
2750 return 0;
2751
2752 prop_msg_full:
2753 nla_nest_cancel(msg->skb, prop);
2754 attr_msg_full:
2755 nla_nest_cancel(msg->skb, attrs);
2756 msg_full:
2757 genlmsg_cancel(msg->skb, hdr);
2758
2759 return -EMSGSIZE;
2760 }
2761
__tipc_nl_add_bc_link_stat(struct sk_buff * skb,struct tipc_stats * stats)2762 static int __tipc_nl_add_bc_link_stat(struct sk_buff *skb,
2763 struct tipc_stats *stats)
2764 {
2765 int i;
2766 struct nlattr *nest;
2767
2768 struct nla_map {
2769 __u32 key;
2770 __u32 val;
2771 };
2772
2773 struct nla_map map[] = {
2774 {TIPC_NLA_STATS_RX_INFO, stats->recv_pkts},
2775 {TIPC_NLA_STATS_RX_FRAGMENTS, stats->recv_fragments},
2776 {TIPC_NLA_STATS_RX_FRAGMENTED, stats->recv_fragmented},
2777 {TIPC_NLA_STATS_RX_BUNDLES, stats->recv_bundles},
2778 {TIPC_NLA_STATS_RX_BUNDLED, stats->recv_bundled},
2779 {TIPC_NLA_STATS_TX_INFO, stats->sent_pkts},
2780 {TIPC_NLA_STATS_TX_FRAGMENTS, stats->sent_fragments},
2781 {TIPC_NLA_STATS_TX_FRAGMENTED, stats->sent_fragmented},
2782 {TIPC_NLA_STATS_TX_BUNDLES, stats->sent_bundles},
2783 {TIPC_NLA_STATS_TX_BUNDLED, stats->sent_bundled},
2784 {TIPC_NLA_STATS_RX_NACKS, stats->recv_nacks},
2785 {TIPC_NLA_STATS_RX_DEFERRED, stats->deferred_recv},
2786 {TIPC_NLA_STATS_TX_NACKS, stats->sent_nacks},
2787 {TIPC_NLA_STATS_TX_ACKS, stats->sent_acks},
2788 {TIPC_NLA_STATS_RETRANSMITTED, stats->retransmitted},
2789 {TIPC_NLA_STATS_DUPLICATES, stats->duplicates},
2790 {TIPC_NLA_STATS_LINK_CONGS, stats->link_congs},
2791 {TIPC_NLA_STATS_MAX_QUEUE, stats->max_queue_sz},
2792 {TIPC_NLA_STATS_AVG_QUEUE, stats->queue_sz_counts ?
2793 (stats->accu_queue_sz / stats->queue_sz_counts) : 0}
2794 };
2795
2796 nest = nla_nest_start_noflag(skb, TIPC_NLA_LINK_STATS);
2797 if (!nest)
2798 return -EMSGSIZE;
2799
2800 for (i = 0; i < ARRAY_SIZE(map); i++)
2801 if (nla_put_u32(skb, map[i].key, map[i].val))
2802 goto msg_full;
2803
2804 nla_nest_end(skb, nest);
2805
2806 return 0;
2807 msg_full:
2808 nla_nest_cancel(skb, nest);
2809
2810 return -EMSGSIZE;
2811 }
2812
tipc_nl_add_bc_link(struct net * net,struct tipc_nl_msg * msg,struct tipc_link * bcl)2813 int tipc_nl_add_bc_link(struct net *net, struct tipc_nl_msg *msg,
2814 struct tipc_link *bcl)
2815 {
2816 int err;
2817 void *hdr;
2818 struct nlattr *attrs;
2819 struct nlattr *prop;
2820 u32 bc_mode = tipc_bcast_get_mode(net);
2821 u32 bc_ratio = tipc_bcast_get_broadcast_ratio(net);
2822
2823 if (!bcl)
2824 return 0;
2825
2826 tipc_bcast_lock(net);
2827
2828 hdr = genlmsg_put(msg->skb, msg->portid, msg->seq, &tipc_genl_family,
2829 NLM_F_MULTI, TIPC_NL_LINK_GET);
2830 if (!hdr) {
2831 tipc_bcast_unlock(net);
2832 return -EMSGSIZE;
2833 }
2834
2835 attrs = nla_nest_start_noflag(msg->skb, TIPC_NLA_LINK);
2836 if (!attrs)
2837 goto msg_full;
2838
2839 /* The broadcast link is always up */
2840 if (nla_put_flag(msg->skb, TIPC_NLA_LINK_UP))
2841 goto attr_msg_full;
2842
2843 if (nla_put_flag(msg->skb, TIPC_NLA_LINK_BROADCAST))
2844 goto attr_msg_full;
2845 if (nla_put_string(msg->skb, TIPC_NLA_LINK_NAME, bcl->name))
2846 goto attr_msg_full;
2847 if (nla_put_u32(msg->skb, TIPC_NLA_LINK_RX, 0))
2848 goto attr_msg_full;
2849 if (nla_put_u32(msg->skb, TIPC_NLA_LINK_TX, 0))
2850 goto attr_msg_full;
2851
2852 prop = nla_nest_start_noflag(msg->skb, TIPC_NLA_LINK_PROP);
2853 if (!prop)
2854 goto attr_msg_full;
2855 if (nla_put_u32(msg->skb, TIPC_NLA_PROP_WIN, bcl->max_win))
2856 goto prop_msg_full;
2857 if (nla_put_u32(msg->skb, TIPC_NLA_PROP_BROADCAST, bc_mode))
2858 goto prop_msg_full;
2859 if (bc_mode & BCLINK_MODE_SEL)
2860 if (nla_put_u32(msg->skb, TIPC_NLA_PROP_BROADCAST_RATIO,
2861 bc_ratio))
2862 goto prop_msg_full;
2863 nla_nest_end(msg->skb, prop);
2864
2865 err = __tipc_nl_add_bc_link_stat(msg->skb, &bcl->stats);
2866 if (err)
2867 goto attr_msg_full;
2868
2869 tipc_bcast_unlock(net);
2870 nla_nest_end(msg->skb, attrs);
2871 genlmsg_end(msg->skb, hdr);
2872
2873 return 0;
2874
2875 prop_msg_full:
2876 nla_nest_cancel(msg->skb, prop);
2877 attr_msg_full:
2878 nla_nest_cancel(msg->skb, attrs);
2879 msg_full:
2880 tipc_bcast_unlock(net);
2881 genlmsg_cancel(msg->skb, hdr);
2882
2883 return -EMSGSIZE;
2884 }
2885
tipc_link_set_tolerance(struct tipc_link * l,u32 tol,struct sk_buff_head * xmitq)2886 void tipc_link_set_tolerance(struct tipc_link *l, u32 tol,
2887 struct sk_buff_head *xmitq)
2888 {
2889 l->tolerance = tol;
2890 if (l->bc_rcvlink)
2891 l->bc_rcvlink->tolerance = tol;
2892 if (link_is_up(l))
2893 tipc_link_build_proto_msg(l, STATE_MSG, 0, 0, 0, tol, 0, xmitq);
2894 }
2895
tipc_link_set_prio(struct tipc_link * l,u32 prio,struct sk_buff_head * xmitq)2896 void tipc_link_set_prio(struct tipc_link *l, u32 prio,
2897 struct sk_buff_head *xmitq)
2898 {
2899 l->priority = prio;
2900 tipc_link_build_proto_msg(l, STATE_MSG, 0, 0, 0, 0, prio, xmitq);
2901 }
2902
tipc_link_set_abort_limit(struct tipc_link * l,u32 limit)2903 void tipc_link_set_abort_limit(struct tipc_link *l, u32 limit)
2904 {
2905 l->abort_limit = limit;
2906 }
2907
2908 /**
2909 * tipc_link_dump - dump TIPC link data
2910 * @l: tipc link to be dumped
2911 * @dqueues: bitmask to decide if any link queue to be dumped?
2912 * - TIPC_DUMP_NONE: don't dump link queues
2913 * - TIPC_DUMP_TRANSMQ: dump link transmq queue
2914 * - TIPC_DUMP_BACKLOGQ: dump link backlog queue
2915 * - TIPC_DUMP_DEFERDQ: dump link deferd queue
2916 * - TIPC_DUMP_INPUTQ: dump link input queue
2917 * - TIPC_DUMP_WAKEUP: dump link wakeup queue
2918 * - TIPC_DUMP_ALL: dump all the link queues above
2919 * @buf: returned buffer of dump data in format
2920 */
tipc_link_dump(struct tipc_link * l,u16 dqueues,char * buf)2921 int tipc_link_dump(struct tipc_link *l, u16 dqueues, char *buf)
2922 {
2923 int i = 0;
2924 size_t sz = (dqueues) ? LINK_LMAX : LINK_LMIN;
2925 struct sk_buff_head *list;
2926 struct sk_buff *hskb, *tskb;
2927 u32 len;
2928
2929 if (!l) {
2930 i += scnprintf(buf, sz, "link data: (null)\n");
2931 return i;
2932 }
2933
2934 i += scnprintf(buf, sz, "link data: %x", l->addr);
2935 i += scnprintf(buf + i, sz - i, " %x", l->state);
2936 i += scnprintf(buf + i, sz - i, " %u", l->in_session);
2937 i += scnprintf(buf + i, sz - i, " %u", l->session);
2938 i += scnprintf(buf + i, sz - i, " %u", l->peer_session);
2939 i += scnprintf(buf + i, sz - i, " %u", l->snd_nxt);
2940 i += scnprintf(buf + i, sz - i, " %u", l->rcv_nxt);
2941 i += scnprintf(buf + i, sz - i, " %u", l->snd_nxt_state);
2942 i += scnprintf(buf + i, sz - i, " %u", l->rcv_nxt_state);
2943 i += scnprintf(buf + i, sz - i, " %x", l->peer_caps);
2944 i += scnprintf(buf + i, sz - i, " %u", l->silent_intv_cnt);
2945 i += scnprintf(buf + i, sz - i, " %u", l->rst_cnt);
2946 i += scnprintf(buf + i, sz - i, " %u", 0);
2947 i += scnprintf(buf + i, sz - i, " %u", 0);
2948 i += scnprintf(buf + i, sz - i, " %u", l->acked);
2949
2950 list = &l->transmq;
2951 len = skb_queue_len(list);
2952 hskb = skb_peek(list);
2953 tskb = skb_peek_tail(list);
2954 i += scnprintf(buf + i, sz - i, " | %u %u %u", len,
2955 (hskb) ? msg_seqno(buf_msg(hskb)) : 0,
2956 (tskb) ? msg_seqno(buf_msg(tskb)) : 0);
2957
2958 list = &l->deferdq;
2959 len = skb_queue_len(list);
2960 hskb = skb_peek(list);
2961 tskb = skb_peek_tail(list);
2962 i += scnprintf(buf + i, sz - i, " | %u %u %u", len,
2963 (hskb) ? msg_seqno(buf_msg(hskb)) : 0,
2964 (tskb) ? msg_seqno(buf_msg(tskb)) : 0);
2965
2966 list = &l->backlogq;
2967 len = skb_queue_len(list);
2968 hskb = skb_peek(list);
2969 tskb = skb_peek_tail(list);
2970 i += scnprintf(buf + i, sz - i, " | %u %u %u", len,
2971 (hskb) ? msg_seqno(buf_msg(hskb)) : 0,
2972 (tskb) ? msg_seqno(buf_msg(tskb)) : 0);
2973
2974 list = l->inputq;
2975 len = skb_queue_len(list);
2976 hskb = skb_peek(list);
2977 tskb = skb_peek_tail(list);
2978 i += scnprintf(buf + i, sz - i, " | %u %u %u\n", len,
2979 (hskb) ? msg_seqno(buf_msg(hskb)) : 0,
2980 (tskb) ? msg_seqno(buf_msg(tskb)) : 0);
2981
2982 if (dqueues & TIPC_DUMP_TRANSMQ) {
2983 i += scnprintf(buf + i, sz - i, "transmq: ");
2984 i += tipc_list_dump(&l->transmq, false, buf + i);
2985 }
2986 if (dqueues & TIPC_DUMP_BACKLOGQ) {
2987 i += scnprintf(buf + i, sz - i,
2988 "backlogq: <%u %u %u %u %u>, ",
2989 l->backlog[TIPC_LOW_IMPORTANCE].len,
2990 l->backlog[TIPC_MEDIUM_IMPORTANCE].len,
2991 l->backlog[TIPC_HIGH_IMPORTANCE].len,
2992 l->backlog[TIPC_CRITICAL_IMPORTANCE].len,
2993 l->backlog[TIPC_SYSTEM_IMPORTANCE].len);
2994 i += tipc_list_dump(&l->backlogq, false, buf + i);
2995 }
2996 if (dqueues & TIPC_DUMP_DEFERDQ) {
2997 i += scnprintf(buf + i, sz - i, "deferdq: ");
2998 i += tipc_list_dump(&l->deferdq, false, buf + i);
2999 }
3000 if (dqueues & TIPC_DUMP_INPUTQ) {
3001 i += scnprintf(buf + i, sz - i, "inputq: ");
3002 i += tipc_list_dump(l->inputq, false, buf + i);
3003 }
3004 if (dqueues & TIPC_DUMP_WAKEUP) {
3005 i += scnprintf(buf + i, sz - i, "wakeup: ");
3006 i += tipc_list_dump(&l->wakeupq, false, buf + i);
3007 }
3008
3009 return i;
3010 }
3011