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5adc2528
AS
1/*
2 * Main implementation file for interface to Forwarding Plane Manager.
3 *
4 * Copyright (C) 2012 by Open Source Routing.
5 * Copyright (C) 2012 by Internet Systems Consortium, Inc. ("ISC")
6 *
7 * This file is part of GNU Zebra.
8 *
9 * GNU Zebra is free software; you can redistribute it and/or modify it
10 * under the terms of the GNU General Public License as published by the
11 * Free Software Foundation; either version 2, or (at your option) any
12 * later version.
13 *
14 * GNU Zebra is distributed in the hope that it will be useful, but
15 * WITHOUT ANY WARRANTY; without even the implied warranty of
16 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
17 * General Public License for more details.
18 *
896014f4
DL
19 * You should have received a copy of the GNU General Public License along
20 * with this program; see the file COPYING; if not, write to the Free Software
21 * Foundation, Inc., 51 Franklin St, Fifth Floor, Boston, MA 02110-1301 USA
5adc2528
AS
22 */
23
24#include <zebra.h>
25
26#include "log.h"
4f8ea50c 27#include "libfrr.h"
5adc2528
AS
28#include "stream.h"
29#include "thread.h"
30#include "network.h"
31#include "command.h"
09781197 32#include "lib/version.h"
e5218ec8 33#include "jhash.h"
5adc2528
AS
34
35#include "zebra/rib.h"
7c551956
DS
36#include "zebra/zserv.h"
37#include "zebra/zebra_ns.h"
38#include "zebra/zebra_vrf.h"
67aeb554 39#include "zebra/zebra_errors.h"
5adc2528
AS
40
41#include "fpm/fpm.h"
5adc2528 42#include "zebra_fpm_private.h"
e5218ec8 43#include "zebra/zebra_router.h"
a780a738 44#include "zebra_vxlan_private.h"
e5218ec8
AD
45
46DEFINE_MTYPE_STATIC(ZEBRA, FPM_MAC_INFO, "FPM_MAC_INFO");
5adc2528
AS
47
48/*
49 * Interval at which we attempt to connect to the FPM.
50 */
51#define ZFPM_CONNECT_RETRY_IVL 5
52
53/*
54 * Sizes of outgoing and incoming stream buffers for writing/reading
55 * FPM messages.
56 */
57#define ZFPM_OBUF_SIZE (2 * FPM_MAX_MSG_LEN)
58#define ZFPM_IBUF_SIZE (FPM_MAX_MSG_LEN)
59
60/*
61 * The maximum number of times the FPM socket write callback can call
62 * 'write' before it yields.
63 */
64#define ZFPM_MAX_WRITES_PER_RUN 10
65
66/*
67 * Interval over which we collect statistics.
68 */
69#define ZFPM_STATS_IVL_SECS 10
fbe748e5
AD
70#define FPM_MAX_MAC_MSG_LEN 512
71
1ac88792 72static void zfpm_iterate_rmac_table(struct hash_bucket *bucket, void *args);
5adc2528
AS
73
74/*
75 * Structure that holds state for iterating over all route_node
76 * structures that are candidates for being communicated to the FPM.
77 */
332cba05 78struct zfpm_rnodes_iter {
d62a17ae 79 rib_tables_iter_t tables_iter;
80 route_table_iter_t iter;
332cba05 81};
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AS
82
83/*
84 * Statistics.
85 */
eeaf257b 86struct zfpm_stats {
d62a17ae 87 unsigned long connect_calls;
88 unsigned long connect_no_sock;
5adc2528 89
d62a17ae 90 unsigned long read_cb_calls;
5adc2528 91
d62a17ae 92 unsigned long write_cb_calls;
93 unsigned long write_calls;
94 unsigned long partial_writes;
95 unsigned long max_writes_hit;
96 unsigned long t_write_yields;
5adc2528 97
d62a17ae 98 unsigned long nop_deletes_skipped;
99 unsigned long route_adds;
100 unsigned long route_dels;
5adc2528 101
d62a17ae 102 unsigned long updates_triggered;
103 unsigned long redundant_triggers;
5adc2528 104
d62a17ae 105 unsigned long dests_del_after_update;
5adc2528 106
d62a17ae 107 unsigned long t_conn_down_starts;
108 unsigned long t_conn_down_dests_processed;
109 unsigned long t_conn_down_yields;
110 unsigned long t_conn_down_finishes;
5adc2528 111
d62a17ae 112 unsigned long t_conn_up_starts;
113 unsigned long t_conn_up_dests_processed;
114 unsigned long t_conn_up_yields;
115 unsigned long t_conn_up_aborts;
116 unsigned long t_conn_up_finishes;
eeaf257b 117};
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AS
118
119/*
120 * States for the FPM state machine.
121 */
1d6a3ee8 122enum zfpm_state {
5adc2528 123
d62a17ae 124 /*
125 * In this state we are not yet ready to connect to the FPM. This
126 * can happen when this module is disabled, or if we're cleaning up
127 * after a connection has gone down.
128 */
129 ZFPM_STATE_IDLE,
130
131 /*
132 * Ready to talk to the FPM and periodically trying to connect to
133 * it.
134 */
135 ZFPM_STATE_ACTIVE,
136
137 /*
138 * In the middle of bringing up a TCP connection. Specifically,
139 * waiting for a connect() call to complete asynchronously.
140 */
141 ZFPM_STATE_CONNECTING,
142
143 /*
144 * TCP connection to the FPM is up.
145 */
146 ZFPM_STATE_ESTABLISHED
5adc2528 147
1d6a3ee8 148};
5adc2528 149
fb0aa886
AS
150/*
151 * Message format to be used to communicate with the FPM.
152 */
a78c2b98 153enum zfpm_msg_format {
d62a17ae 154 ZFPM_MSG_FORMAT_NONE,
155 ZFPM_MSG_FORMAT_NETLINK,
156 ZFPM_MSG_FORMAT_PROTOBUF,
a78c2b98
DS
157};
158
5adc2528
AS
159/*
160 * Globals.
161 */
768e40bd 162struct zfpm_glob {
d62a17ae 163
164 /*
165 * True if the FPM module has been enabled.
166 */
167 int enabled;
168
169 /*
170 * Message format to be used to communicate with the fpm.
171 */
a78c2b98 172 enum zfpm_msg_format message_format;
d62a17ae 173
174 struct thread_master *master;
175
1d6a3ee8 176 enum zfpm_state state;
d62a17ae 177
178 in_addr_t fpm_server;
179 /*
180 * Port on which the FPM is running.
181 */
182 int fpm_port;
183
184 /*
185 * List of rib_dest_t structures to be processed
186 */
187 TAILQ_HEAD(zfpm_dest_q, rib_dest_t_) dest_q;
188
e5218ec8
AD
189 /*
190 * List of fpm_mac_info structures to be processed
191 */
192 TAILQ_HEAD(zfpm_mac_q, fpm_mac_info_t) mac_q;
193
194 /*
195 * Hash table of fpm_mac_info_t entries
196 *
197 * While adding fpm_mac_info_t for a MAC to the mac_q,
198 * it is possible that another fpm_mac_info_t node for the this MAC
199 * is already present in the queue.
200 * This is possible in the case of consecutive add->delete operations.
201 * To avoid such duplicate insertions in the mac_q,
202 * define a hash table for fpm_mac_info_t which can be looked up
203 * to see if an fpm_mac_info_t node for a MAC is already present
204 * in the mac_q.
205 */
206 struct hash *fpm_mac_info_table;
207
d62a17ae 208 /*
209 * Stream socket to the FPM.
210 */
211 int sock;
212
213 /*
214 * Buffers for messages to/from the FPM.
215 */
216 struct stream *obuf;
217 struct stream *ibuf;
218
219 /*
220 * Threads for I/O.
221 */
222 struct thread *t_connect;
223 struct thread *t_write;
224 struct thread *t_read;
225
226 /*
227 * Thread to clean up after the TCP connection to the FPM goes down
228 * and the state that belongs to it.
229 */
230 struct thread *t_conn_down;
231
232 struct {
332cba05 233 struct zfpm_rnodes_iter iter;
d62a17ae 234 } t_conn_down_state;
235
236 /*
237 * Thread to take actions once the TCP conn to the FPM comes up, and
238 * the state that belongs to it.
239 */
240 struct thread *t_conn_up;
241
242 struct {
332cba05 243 struct zfpm_rnodes_iter iter;
d62a17ae 244 } t_conn_up_state;
245
246 unsigned long connect_calls;
247 time_t last_connect_call_time;
248
249 /*
250 * Stats from the start of the current statistics interval up to
251 * now. These are the counters we typically update in the code.
252 */
eeaf257b 253 struct zfpm_stats stats;
d62a17ae 254
255 /*
256 * Statistics that were gathered in the last collection interval.
257 */
eeaf257b 258 struct zfpm_stats last_ivl_stats;
d62a17ae 259
260 /*
261 * Cumulative stats from the last clear to the start of the current
262 * statistics interval.
263 */
eeaf257b 264 struct zfpm_stats cumulative_stats;
d62a17ae 265
266 /*
267 * Stats interval timer.
268 */
269 struct thread *t_stats;
270
271 /*
272 * If non-zero, the last time when statistics were cleared.
273 */
274 time_t last_stats_clear_time;
e840edca
KK
275
276 /*
277 * Flag to track the MAC dump status to FPM
278 */
279 bool fpm_mac_dump_done;
768e40bd 280};
5adc2528 281
768e40bd
DS
282static struct zfpm_glob zfpm_glob_space;
283static struct zfpm_glob *zfpm_g = &zfpm_glob_space;
5adc2528 284
d62a17ae 285static int zfpm_trigger_update(struct route_node *rn, const char *reason);
4f8ea50c 286
cc9f21da
DS
287static void zfpm_read_cb(struct thread *thread);
288static void zfpm_write_cb(struct thread *thread);
5adc2528 289
1d6a3ee8 290static void zfpm_set_state(enum zfpm_state state, const char *reason);
d62a17ae 291static void zfpm_start_connect_timer(const char *reason);
292static void zfpm_start_stats_timer(void);
a780a738 293static void zfpm_mac_info_del(struct fpm_mac_info_t *fpm_mac);
5adc2528 294
316d2d52
NK
295static const char ipv4_ll_buf[16] = "169.254.0.1";
296union g_addr ipv4ll_gateway;
297
5adc2528
AS
298/*
299 * zfpm_thread_should_yield
300 */
d62a17ae 301static inline int zfpm_thread_should_yield(struct thread *t)
5adc2528 302{
d62a17ae 303 return thread_should_yield(t);
5adc2528
AS
304}
305
306/*
307 * zfpm_state_to_str
308 */
1d6a3ee8 309static const char *zfpm_state_to_str(enum zfpm_state state)
5adc2528 310{
d62a17ae 311 switch (state) {
5adc2528 312
d62a17ae 313 case ZFPM_STATE_IDLE:
314 return "idle";
5adc2528 315
d62a17ae 316 case ZFPM_STATE_ACTIVE:
317 return "active";
5adc2528 318
d62a17ae 319 case ZFPM_STATE_CONNECTING:
320 return "connecting";
5adc2528 321
d62a17ae 322 case ZFPM_STATE_ESTABLISHED:
323 return "established";
5adc2528 324
d62a17ae 325 default:
326 return "unknown";
327 }
5adc2528
AS
328}
329
5adc2528
AS
330/*
331 * zfpm_get_elapsed_time
332 *
333 * Returns the time elapsed (in seconds) since the given time.
334 */
d62a17ae 335static time_t zfpm_get_elapsed_time(time_t reference)
5adc2528 336{
d62a17ae 337 time_t now;
5adc2528 338
d62a17ae 339 now = monotime(NULL);
5adc2528 340
d62a17ae 341 if (now < reference) {
342 assert(0);
343 return 0;
344 }
5adc2528 345
d62a17ae 346 return now - reference;
5adc2528
AS
347}
348
5adc2528
AS
349/*
350 * zfpm_rnodes_iter_init
351 */
332cba05 352static inline void zfpm_rnodes_iter_init(struct zfpm_rnodes_iter *iter)
5adc2528 353{
d62a17ae 354 memset(iter, 0, sizeof(*iter));
355 rib_tables_iter_init(&iter->tables_iter);
356
357 /*
358 * This is a hack, but it makes implementing 'next' easier by
359 * ensuring that route_table_iter_next() will return NULL the first
360 * time we call it.
361 */
362 route_table_iter_init(&iter->iter, NULL);
363 route_table_iter_cleanup(&iter->iter);
5adc2528
AS
364}
365
366/*
367 * zfpm_rnodes_iter_next
368 */
332cba05
DS
369static inline struct route_node *
370zfpm_rnodes_iter_next(struct zfpm_rnodes_iter *iter)
5adc2528 371{
d62a17ae 372 struct route_node *rn;
373 struct route_table *table;
5adc2528 374
d62a17ae 375 while (1) {
376 rn = route_table_iter_next(&iter->iter);
377 if (rn)
378 return rn;
5adc2528 379
d62a17ae 380 /*
381 * We've made our way through this table, go to the next one.
382 */
383 route_table_iter_cleanup(&iter->iter);
5adc2528 384
c6bbea17 385 table = rib_tables_iter_next(&iter->tables_iter);
5adc2528 386
d62a17ae 387 if (!table)
388 return NULL;
5adc2528 389
d62a17ae 390 route_table_iter_init(&iter->iter, table);
391 }
5adc2528 392
d62a17ae 393 return NULL;
5adc2528
AS
394}
395
396/*
397 * zfpm_rnodes_iter_pause
398 */
332cba05 399static inline void zfpm_rnodes_iter_pause(struct zfpm_rnodes_iter *iter)
5adc2528 400{
d62a17ae 401 route_table_iter_pause(&iter->iter);
5adc2528
AS
402}
403
404/*
405 * zfpm_rnodes_iter_cleanup
406 */
332cba05 407static inline void zfpm_rnodes_iter_cleanup(struct zfpm_rnodes_iter *iter)
5adc2528 408{
d62a17ae 409 route_table_iter_cleanup(&iter->iter);
410 rib_tables_iter_cleanup(&iter->tables_iter);
5adc2528
AS
411}
412
413/*
414 * zfpm_stats_init
415 *
416 * Initialize a statistics block.
417 */
eeaf257b 418static inline void zfpm_stats_init(struct zfpm_stats *stats)
5adc2528 419{
d62a17ae 420 memset(stats, 0, sizeof(*stats));
5adc2528
AS
421}
422
423/*
424 * zfpm_stats_reset
425 */
eeaf257b 426static inline void zfpm_stats_reset(struct zfpm_stats *stats)
5adc2528 427{
d62a17ae 428 zfpm_stats_init(stats);
5adc2528
AS
429}
430
431/*
432 * zfpm_stats_copy
433 */
eeaf257b
DS
434static inline void zfpm_stats_copy(const struct zfpm_stats *src,
435 struct zfpm_stats *dest)
5adc2528 436{
d62a17ae 437 memcpy(dest, src, sizeof(*dest));
5adc2528
AS
438}
439
440/*
441 * zfpm_stats_compose
442 *
443 * Total up the statistics in two stats structures ('s1 and 's2') and
444 * return the result in the third argument, 'result'. Note that the
445 * pointer 'result' may be the same as 's1' or 's2'.
446 *
447 * For simplicity, the implementation below assumes that the stats
448 * structure is composed entirely of counters. This can easily be
449 * changed when necessary.
450 */
eeaf257b
DS
451static void zfpm_stats_compose(const struct zfpm_stats *s1,
452 const struct zfpm_stats *s2,
453 struct zfpm_stats *result)
5adc2528 454{
d62a17ae 455 const unsigned long *p1, *p2;
456 unsigned long *result_p;
457 int i, num_counters;
5adc2528 458
d62a17ae 459 p1 = (const unsigned long *)s1;
460 p2 = (const unsigned long *)s2;
461 result_p = (unsigned long *)result;
5adc2528 462
eeaf257b 463 num_counters = (sizeof(struct zfpm_stats) / sizeof(unsigned long));
5adc2528 464
d62a17ae 465 for (i = 0; i < num_counters; i++) {
466 result_p[i] = p1[i] + p2[i];
467 }
5adc2528
AS
468}
469
470/*
471 * zfpm_read_on
472 */
d62a17ae 473static inline void zfpm_read_on(void)
5adc2528 474{
d62a17ae 475 assert(!zfpm_g->t_read);
476 assert(zfpm_g->sock >= 0);
5adc2528 477
d62a17ae 478 thread_add_read(zfpm_g->master, zfpm_read_cb, 0, zfpm_g->sock,
479 &zfpm_g->t_read);
5adc2528
AS
480}
481
482/*
483 * zfpm_write_on
484 */
d62a17ae 485static inline void zfpm_write_on(void)
5adc2528 486{
d62a17ae 487 assert(!zfpm_g->t_write);
488 assert(zfpm_g->sock >= 0);
5adc2528 489
d62a17ae 490 thread_add_write(zfpm_g->master, zfpm_write_cb, 0, zfpm_g->sock,
491 &zfpm_g->t_write);
5adc2528
AS
492}
493
494/*
495 * zfpm_read_off
496 */
d62a17ae 497static inline void zfpm_read_off(void)
5adc2528 498{
50478845 499 thread_cancel(&zfpm_g->t_read);
5adc2528
AS
500}
501
502/*
503 * zfpm_write_off
504 */
d62a17ae 505static inline void zfpm_write_off(void)
5adc2528 506{
50478845 507 thread_cancel(&zfpm_g->t_write);
5adc2528
AS
508}
509
f0c459f0
DS
510static inline void zfpm_connect_off(void)
511{
50478845 512 thread_cancel(&zfpm_g->t_connect);
f0c459f0
DS
513}
514
5adc2528
AS
515/*
516 * zfpm_conn_up_thread_cb
517 *
518 * Callback for actions to be taken when the connection to the FPM
519 * comes up.
520 */
cc9f21da 521static void zfpm_conn_up_thread_cb(struct thread *thread)
5adc2528 522{
d62a17ae 523 struct route_node *rnode;
332cba05 524 struct zfpm_rnodes_iter *iter;
d62a17ae 525 rib_dest_t *dest;
5adc2528 526
d62a17ae 527 iter = &zfpm_g->t_conn_up_state.iter;
5adc2528 528
d62a17ae 529 if (zfpm_g->state != ZFPM_STATE_ESTABLISHED) {
530 zfpm_debug(
531 "Connection not up anymore, conn_up thread aborting");
532 zfpm_g->stats.t_conn_up_aborts++;
533 goto done;
534 }
5adc2528 535
e840edca
KK
536 if (!zfpm_g->fpm_mac_dump_done) {
537 /* Enqueue FPM updates for all the RMAC entries */
538 hash_iterate(zrouter.l3vni_table, zfpm_iterate_rmac_table,
539 NULL);
540 /* mark dump done so that its not repeated after yield */
541 zfpm_g->fpm_mac_dump_done = true;
542 }
fbe748e5 543
d62a17ae 544 while ((rnode = zfpm_rnodes_iter_next(iter))) {
545 dest = rib_dest_from_rnode(rnode);
546
547 if (dest) {
548 zfpm_g->stats.t_conn_up_dests_processed++;
549 zfpm_trigger_update(rnode, NULL);
550 }
551
552 /*
553 * Yield if need be.
554 */
555 if (!zfpm_thread_should_yield(thread))
556 continue;
557
558 zfpm_g->stats.t_conn_up_yields++;
559 zfpm_rnodes_iter_pause(iter);
d62a17ae 560 thread_add_timer_msec(zfpm_g->master, zfpm_conn_up_thread_cb,
561 NULL, 0, &zfpm_g->t_conn_up);
cc9f21da 562 return;
5adc2528
AS
563 }
564
d62a17ae 565 zfpm_g->stats.t_conn_up_finishes++;
566
567done:
568 zfpm_rnodes_iter_cleanup(iter);
5adc2528
AS
569}
570
571/*
572 * zfpm_connection_up
573 *
574 * Called when the connection to the FPM comes up.
575 */
d62a17ae 576static void zfpm_connection_up(const char *detail)
5adc2528 577{
d62a17ae 578 assert(zfpm_g->sock >= 0);
579 zfpm_read_on();
580 zfpm_write_on();
581 zfpm_set_state(ZFPM_STATE_ESTABLISHED, detail);
582
583 /*
584 * Start thread to push existing routes to the FPM.
585 */
ef1dbba8 586 thread_cancel(&zfpm_g->t_conn_up);
d62a17ae 587
588 zfpm_rnodes_iter_init(&zfpm_g->t_conn_up_state.iter);
e840edca 589 zfpm_g->fpm_mac_dump_done = false;
d62a17ae 590
591 zfpm_debug("Starting conn_up thread");
ef1dbba8 592
d62a17ae 593 thread_add_timer_msec(zfpm_g->master, zfpm_conn_up_thread_cb, NULL, 0,
594 &zfpm_g->t_conn_up);
595 zfpm_g->stats.t_conn_up_starts++;
5adc2528
AS
596}
597
598/*
599 * zfpm_connect_check
600 *
601 * Check if an asynchronous connect() to the FPM is complete.
602 */
d62a17ae 603static void zfpm_connect_check(void)
5adc2528 604{
d62a17ae 605 int status;
606 socklen_t slen;
607 int ret;
608
609 zfpm_read_off();
610 zfpm_write_off();
611
612 slen = sizeof(status);
613 ret = getsockopt(zfpm_g->sock, SOL_SOCKET, SO_ERROR, (void *)&status,
614 &slen);
615
616 if (ret >= 0 && status == 0) {
617 zfpm_connection_up("async connect complete");
618 return;
619 }
620
621 /*
622 * getsockopt() failed or indicated an error on the socket.
623 */
624 close(zfpm_g->sock);
625 zfpm_g->sock = -1;
626
627 zfpm_start_connect_timer("getsockopt() after async connect failed");
628 return;
5adc2528
AS
629}
630
631/*
632 * zfpm_conn_down_thread_cb
633 *
634 * Callback that is invoked to clean up state after the TCP connection
635 * to the FPM goes down.
636 */
cc9f21da 637static void zfpm_conn_down_thread_cb(struct thread *thread)
5adc2528 638{
d62a17ae 639 struct route_node *rnode;
332cba05 640 struct zfpm_rnodes_iter *iter;
d62a17ae 641 rib_dest_t *dest;
a780a738 642 struct fpm_mac_info_t *mac = NULL;
5adc2528 643
d62a17ae 644 assert(zfpm_g->state == ZFPM_STATE_IDLE);
5adc2528 645
a780a738
AD
646 /*
647 * Delink and free all fpm_mac_info_t nodes
648 * in the mac_q and fpm_mac_info_hash
649 */
650 while ((mac = TAILQ_FIRST(&zfpm_g->mac_q)) != NULL)
651 zfpm_mac_info_del(mac);
652
d62a17ae 653 zfpm_g->t_conn_down = NULL;
5adc2528 654
d62a17ae 655 iter = &zfpm_g->t_conn_down_state.iter;
5adc2528 656
d62a17ae 657 while ((rnode = zfpm_rnodes_iter_next(iter))) {
658 dest = rib_dest_from_rnode(rnode);
5adc2528 659
d62a17ae 660 if (dest) {
661 if (CHECK_FLAG(dest->flags, RIB_DEST_UPDATE_FPM)) {
662 TAILQ_REMOVE(&zfpm_g->dest_q, dest,
663 fpm_q_entries);
664 }
665
666 UNSET_FLAG(dest->flags, RIB_DEST_UPDATE_FPM);
667 UNSET_FLAG(dest->flags, RIB_DEST_SENT_TO_FPM);
5adc2528 668
d62a17ae 669 zfpm_g->stats.t_conn_down_dests_processed++;
5adc2528 670
d62a17ae 671 /*
672 * Check if the dest should be deleted.
673 */
674 rib_gc_dest(rnode);
675 }
5adc2528 676
d62a17ae 677 /*
678 * Yield if need be.
679 */
680 if (!zfpm_thread_should_yield(thread))
681 continue;
682
683 zfpm_g->stats.t_conn_down_yields++;
684 zfpm_rnodes_iter_pause(iter);
685 zfpm_g->t_conn_down = NULL;
686 thread_add_timer_msec(zfpm_g->master, zfpm_conn_down_thread_cb,
687 NULL, 0, &zfpm_g->t_conn_down);
cc9f21da 688 return;
5adc2528
AS
689 }
690
d62a17ae 691 zfpm_g->stats.t_conn_down_finishes++;
692 zfpm_rnodes_iter_cleanup(iter);
693
694 /*
695 * Start the process of connecting to the FPM again.
696 */
697 zfpm_start_connect_timer("cleanup complete");
5adc2528
AS
698}
699
700/*
701 * zfpm_connection_down
702 *
703 * Called when the connection to the FPM has gone down.
704 */
d62a17ae 705static void zfpm_connection_down(const char *detail)
5adc2528 706{
d62a17ae 707 if (!detail)
708 detail = "unknown";
5adc2528 709
d62a17ae 710 assert(zfpm_g->state == ZFPM_STATE_ESTABLISHED);
5adc2528 711
d62a17ae 712 zlog_info("connection to the FPM has gone down: %s", detail);
5adc2528 713
d62a17ae 714 zfpm_read_off();
715 zfpm_write_off();
5adc2528 716
d62a17ae 717 stream_reset(zfpm_g->ibuf);
718 stream_reset(zfpm_g->obuf);
5adc2528 719
d62a17ae 720 if (zfpm_g->sock >= 0) {
721 close(zfpm_g->sock);
722 zfpm_g->sock = -1;
723 }
5adc2528 724
d62a17ae 725 /*
726 * Start thread to clean up state after the connection goes down.
727 */
728 assert(!zfpm_g->t_conn_down);
d62a17ae 729 zfpm_rnodes_iter_init(&zfpm_g->t_conn_down_state.iter);
730 zfpm_g->t_conn_down = NULL;
731 thread_add_timer_msec(zfpm_g->master, zfpm_conn_down_thread_cb, NULL, 0,
732 &zfpm_g->t_conn_down);
733 zfpm_g->stats.t_conn_down_starts++;
734
735 zfpm_set_state(ZFPM_STATE_IDLE, detail);
5adc2528
AS
736}
737
738/*
739 * zfpm_read_cb
740 */
cc9f21da 741static void zfpm_read_cb(struct thread *thread)
5adc2528 742{
d62a17ae 743 size_t already;
744 struct stream *ibuf;
745 uint16_t msg_len;
746 fpm_msg_hdr_t *hdr;
747
748 zfpm_g->stats.read_cb_calls++;
d62a17ae 749
750 /*
751 * Check if async connect is now done.
752 */
753 if (zfpm_g->state == ZFPM_STATE_CONNECTING) {
754 zfpm_connect_check();
cc9f21da 755 return;
5adc2528
AS
756 }
757
d62a17ae 758 assert(zfpm_g->state == ZFPM_STATE_ESTABLISHED);
759 assert(zfpm_g->sock >= 0);
5adc2528 760
d62a17ae 761 ibuf = zfpm_g->ibuf;
5adc2528 762
d62a17ae 763 already = stream_get_endp(ibuf);
764 if (already < FPM_MSG_HDR_LEN) {
765 ssize_t nbyte;
5adc2528 766
d62a17ae 767 nbyte = stream_read_try(ibuf, zfpm_g->sock,
768 FPM_MSG_HDR_LEN - already);
769 if (nbyte == 0 || nbyte == -1) {
677f704d
DS
770 if (nbyte == -1) {
771 char buffer[1024];
772
772270f3
QY
773 snprintf(buffer, sizeof(buffer),
774 "closed socket in read(%d): %s", errno,
775 safe_strerror(errno));
677f704d 776 zfpm_connection_down(buffer);
996c9314 777 } else
677f704d 778 zfpm_connection_down("closed socket in read");
cc9f21da 779 return;
d62a17ae 780 }
5adc2528 781
d62a17ae 782 if (nbyte != (ssize_t)(FPM_MSG_HDR_LEN - already))
783 goto done;
5adc2528 784
d62a17ae 785 already = FPM_MSG_HDR_LEN;
786 }
5adc2528 787
d62a17ae 788 stream_set_getp(ibuf, 0);
5adc2528 789
d62a17ae 790 hdr = (fpm_msg_hdr_t *)stream_pnt(ibuf);
5adc2528 791
d62a17ae 792 if (!fpm_msg_hdr_ok(hdr)) {
793 zfpm_connection_down("invalid message header");
cc9f21da 794 return;
5adc2528
AS
795 }
796
d62a17ae 797 msg_len = fpm_msg_len(hdr);
5adc2528 798
d62a17ae 799 /*
800 * Read out the rest of the packet.
801 */
802 if (already < msg_len) {
803 ssize_t nbyte;
5adc2528 804
d62a17ae 805 nbyte = stream_read_try(ibuf, zfpm_g->sock, msg_len - already);
5adc2528 806
d62a17ae 807 if (nbyte == 0 || nbyte == -1) {
677f704d
DS
808 if (nbyte == -1) {
809 char buffer[1024];
810
772270f3
QY
811 snprintf(buffer, sizeof(buffer),
812 "failed to read message(%d) %s", errno,
813 safe_strerror(errno));
677f704d 814 zfpm_connection_down(buffer);
996c9314 815 } else
677f704d 816 zfpm_connection_down("failed to read message");
cc9f21da 817 return;
d62a17ae 818 }
819
820 if (nbyte != (ssize_t)(msg_len - already))
821 goto done;
822 }
823
d62a17ae 824 /*
825 * Just throw it away for now.
826 */
827 stream_reset(ibuf);
828
829done:
830 zfpm_read_on();
5adc2528
AS
831}
832
21d814eb
AD
833static bool zfpm_updates_pending(void)
834{
835 if (!(TAILQ_EMPTY(&zfpm_g->dest_q)) || !(TAILQ_EMPTY(&zfpm_g->mac_q)))
836 return true;
837
838 return false;
839}
840
5adc2528
AS
841/*
842 * zfpm_writes_pending
843 *
2951a7a4 844 * Returns true if we may have something to write to the FPM.
5adc2528 845 */
d62a17ae 846static int zfpm_writes_pending(void)
5adc2528
AS
847{
848
d62a17ae 849 /*
850 * Check if there is any data in the outbound buffer that has not
851 * been written to the socket yet.
852 */
853 if (stream_get_endp(zfpm_g->obuf) - stream_get_getp(zfpm_g->obuf))
854 return 1;
5adc2528 855
d62a17ae 856 /*
21d814eb 857 * Check if there are any updates scheduled on the outbound queues.
d62a17ae 858 */
21d814eb 859 if (zfpm_updates_pending())
d62a17ae 860 return 1;
5adc2528 861
d62a17ae 862 return 0;
5adc2528
AS
863}
864
865/*
866 * zfpm_encode_route
867 *
868 * Encode a message to the FPM with information about the given route.
869 *
870 * Returns the number of bytes written to the buffer. 0 or a negative
871 * value indicates an error.
872 */
d62a17ae 873static inline int zfpm_encode_route(rib_dest_t *dest, struct route_entry *re,
874 char *in_buf, size_t in_buf_len,
875 fpm_msg_type_e *msg_type)
5adc2528 876{
d62a17ae 877 size_t len;
9bf75362 878#ifdef HAVE_NETLINK
d62a17ae 879 int cmd;
9bf75362 880#endif
d62a17ae 881 len = 0;
5adc2528 882
d62a17ae 883 *msg_type = FPM_MSG_TYPE_NONE;
5adc2528 884
d62a17ae 885 switch (zfpm_g->message_format) {
5adc2528 886
d62a17ae 887 case ZFPM_MSG_FORMAT_PROTOBUF:
fb0aa886 888#ifdef HAVE_PROTOBUF
d62a17ae 889 len = zfpm_protobuf_encode_route(dest, re, (uint8_t *)in_buf,
890 in_buf_len);
891 *msg_type = FPM_MSG_TYPE_PROTOBUF;
fb0aa886 892#endif
d62a17ae 893 break;
5adc2528 894
d62a17ae 895 case ZFPM_MSG_FORMAT_NETLINK:
fb0aa886 896#ifdef HAVE_NETLINK
d62a17ae 897 *msg_type = FPM_MSG_TYPE_NETLINK;
898 cmd = re ? RTM_NEWROUTE : RTM_DELROUTE;
899 len = zfpm_netlink_encode_route(cmd, dest, re, in_buf,
900 in_buf_len);
901 assert(fpm_msg_align(len) == len);
902 *msg_type = FPM_MSG_TYPE_NETLINK;
5adc2528 903#endif /* HAVE_NETLINK */
d62a17ae 904 break;
fb0aa886 905
d62a17ae 906 default:
907 break;
908 }
fb0aa886 909
d62a17ae 910 return len;
5adc2528
AS
911}
912
913/*
914 * zfpm_route_for_update
915 *
f0f77c9a 916 * Returns the re that is to be sent to the FPM for a given dest.
5adc2528 917 */
d62a17ae 918struct route_entry *zfpm_route_for_update(rib_dest_t *dest)
5adc2528 919{
5f7a4718 920 return dest->selected_fib;
5adc2528
AS
921}
922
923/*
21d814eb 924 * Define an enum for return codes for queue processing functions
5adc2528 925 *
21d814eb
AD
926 * FPM_WRITE_STOP: This return code indicates that the write buffer is full.
927 * Stop processing all the queues and empty the buffer by writing its content
928 * to the socket.
929 *
930 * FPM_GOTO_NEXT_Q: This return code indicates that either this queue is
931 * empty or we have processed enough updates from this queue.
932 * So, move on to the next queue.
5adc2528 933 */
21d814eb
AD
934enum {
935 FPM_WRITE_STOP = 0,
936 FPM_GOTO_NEXT_Q = 1
937};
938
939#define FPM_QUEUE_PROCESS_LIMIT 10000
940
941/*
942 * zfpm_build_route_updates
943 *
944 * Process the dest_q queue and write FPM messages to the outbound buffer.
945 */
946static int zfpm_build_route_updates(void)
5adc2528 947{
d62a17ae 948 struct stream *s;
949 rib_dest_t *dest;
950 unsigned char *buf, *data, *buf_end;
951 size_t msg_len;
952 size_t data_len;
953 fpm_msg_hdr_t *hdr;
954 struct route_entry *re;
955 int is_add, write_msg;
956 fpm_msg_type_e msg_type;
21d814eb 957 uint16_t q_limit;
d62a17ae 958
21d814eb
AD
959 if (TAILQ_EMPTY(&zfpm_g->dest_q))
960 return FPM_GOTO_NEXT_Q;
d62a17ae 961
21d814eb
AD
962 s = zfpm_g->obuf;
963 q_limit = FPM_QUEUE_PROCESS_LIMIT;
d62a17ae 964
21d814eb 965 do {
d62a17ae 966 /*
967 * Make sure there is enough space to write another message.
968 */
969 if (STREAM_WRITEABLE(s) < FPM_MAX_MSG_LEN)
21d814eb 970 return FPM_WRITE_STOP;
d62a17ae 971
972 buf = STREAM_DATA(s) + stream_get_endp(s);
973 buf_end = buf + STREAM_WRITEABLE(s);
974
975 dest = TAILQ_FIRST(&zfpm_g->dest_q);
976 if (!dest)
21d814eb 977 return FPM_GOTO_NEXT_Q;
d62a17ae 978
979 assert(CHECK_FLAG(dest->flags, RIB_DEST_UPDATE_FPM));
980
981 hdr = (fpm_msg_hdr_t *)buf;
982 hdr->version = FPM_PROTO_VERSION;
983
984 data = fpm_msg_data(hdr);
985
986 re = zfpm_route_for_update(dest);
987 is_add = re ? 1 : 0;
988
989 write_msg = 1;
990
991 /*
992 * If this is a route deletion, and we have not sent the route
993 * to
994 * the FPM previously, skip it.
995 */
996 if (!is_add && !CHECK_FLAG(dest->flags, RIB_DEST_SENT_TO_FPM)) {
997 write_msg = 0;
998 zfpm_g->stats.nop_deletes_skipped++;
999 }
1000
1001 if (write_msg) {
1002 data_len = zfpm_encode_route(dest, re, (char *)data,
1003 buf_end - data, &msg_type);
1004
d62a17ae 1005 if (data_len) {
1006 hdr->msg_type = msg_type;
1007 msg_len = fpm_data_len_to_msg_len(data_len);
1008 hdr->msg_len = htons(msg_len);
1009 stream_forward_endp(s, msg_len);
1010
1011 if (is_add)
1012 zfpm_g->stats.route_adds++;
1013 else
1014 zfpm_g->stats.route_dels++;
5306e6cf 1015 } else {
1016 zlog_err("%s: Encoding Prefix: %pRN No valid nexthops",
1017 __func__, dest->rnode);
d62a17ae 1018 }
1019 }
1020
1021 /*
1022 * Remove the dest from the queue, and reset the flag.
1023 */
1024 UNSET_FLAG(dest->flags, RIB_DEST_UPDATE_FPM);
1025 TAILQ_REMOVE(&zfpm_g->dest_q, dest, fpm_q_entries);
1026
1027 if (is_add) {
1028 SET_FLAG(dest->flags, RIB_DEST_SENT_TO_FPM);
1029 } else {
1030 UNSET_FLAG(dest->flags, RIB_DEST_SENT_TO_FPM);
1031 }
1032
1033 /*
1034 * Delete the destination if necessary.
1035 */
1036 if (rib_gc_dest(dest->rnode))
1037 zfpm_g->stats.dests_del_after_update++;
1038
21d814eb
AD
1039 q_limit--;
1040 if (q_limit == 0) {
1041 /*
1042 * We have processed enough updates in this queue.
1043 * Now yield for other queues.
1044 */
1045 return FPM_GOTO_NEXT_Q;
1046 }
c5431822 1047 } while (true);
21d814eb
AD
1048}
1049
1050/*
1051 * zfpm_encode_mac
1052 *
1053 * Encode a message to FPM with information about the given MAC.
1054 *
1055 * Returns the number of bytes written to the buffer.
1056 */
1057static inline int zfpm_encode_mac(struct fpm_mac_info_t *mac, char *in_buf,
1058 size_t in_buf_len, fpm_msg_type_e *msg_type)
1059{
1060 size_t len = 0;
1061
1062 *msg_type = FPM_MSG_TYPE_NONE;
1063
1064 switch (zfpm_g->message_format) {
1065
1066 case ZFPM_MSG_FORMAT_NONE:
1067 break;
1068 case ZFPM_MSG_FORMAT_NETLINK:
9da60d0a
AD
1069#ifdef HAVE_NETLINK
1070 len = zfpm_netlink_encode_mac(mac, in_buf, in_buf_len);
1071 assert(fpm_msg_align(len) == len);
1072 *msg_type = FPM_MSG_TYPE_NETLINK;
1073#endif /* HAVE_NETLINK */
21d814eb
AD
1074 break;
1075 case ZFPM_MSG_FORMAT_PROTOBUF:
1076 break;
1077 }
1078 return len;
1079}
1080
1081static int zfpm_build_mac_updates(void)
1082{
1083 struct stream *s;
1084 struct fpm_mac_info_t *mac;
1085 unsigned char *buf, *data, *buf_end;
1086 fpm_msg_hdr_t *hdr;
1087 size_t data_len, msg_len;
1088 fpm_msg_type_e msg_type;
1089 uint16_t q_limit;
1090
1091 if (TAILQ_EMPTY(&zfpm_g->mac_q))
1092 return FPM_GOTO_NEXT_Q;
1093
1094 s = zfpm_g->obuf;
1095 q_limit = FPM_QUEUE_PROCESS_LIMIT;
1096
1097 do {
1098 /* Make sure there is enough space to write another message. */
1099 if (STREAM_WRITEABLE(s) < FPM_MAX_MAC_MSG_LEN)
1100 return FPM_WRITE_STOP;
1101
1102 buf = STREAM_DATA(s) + stream_get_endp(s);
1103 buf_end = buf + STREAM_WRITEABLE(s);
1104
1105 mac = TAILQ_FIRST(&zfpm_g->mac_q);
1106 if (!mac)
1107 return FPM_GOTO_NEXT_Q;
1108
1109 /* Check for no-op */
1110 if (!CHECK_FLAG(mac->fpm_flags, ZEBRA_MAC_UPDATE_FPM)) {
1111 zfpm_g->stats.nop_deletes_skipped++;
1112 zfpm_mac_info_del(mac);
1113 continue;
1114 }
1115
1116 hdr = (fpm_msg_hdr_t *)buf;
1117 hdr->version = FPM_PROTO_VERSION;
1118
1119 data = fpm_msg_data(hdr);
1120 data_len = zfpm_encode_mac(mac, (char *)data, buf_end - data,
1121 &msg_type);
9da60d0a 1122 assert(data_len);
21d814eb
AD
1123
1124 hdr->msg_type = msg_type;
1125 msg_len = fpm_data_len_to_msg_len(data_len);
1126 hdr->msg_len = htons(msg_len);
1127 stream_forward_endp(s, msg_len);
1128
1129 /* Remove the MAC from the queue, and delete it. */
1130 zfpm_mac_info_del(mac);
1131
1132 q_limit--;
1133 if (q_limit == 0) {
1134 /*
1135 * We have processed enough updates in this queue.
1136 * Now yield for other queues.
1137 */
1138 return FPM_GOTO_NEXT_Q;
1139 }
d62a17ae 1140 } while (1);
5adc2528
AS
1141}
1142
21d814eb
AD
1143/*
1144 * zfpm_build_updates
1145 *
1146 * Process the outgoing queues and write messages to the outbound
1147 * buffer.
1148 */
1149static void zfpm_build_updates(void)
1150{
1151 struct stream *s;
1152
1153 s = zfpm_g->obuf;
1154 assert(stream_empty(s));
1155
1156 do {
1157 /*
1158 * Stop processing the queues if zfpm_g->obuf is full
1159 * or we do not have more updates to process
1160 */
1161 if (zfpm_build_mac_updates() == FPM_WRITE_STOP)
1162 break;
1163 if (zfpm_build_route_updates() == FPM_WRITE_STOP)
1164 break;
1165 } while (zfpm_updates_pending());
1166}
1167
5adc2528
AS
1168/*
1169 * zfpm_write_cb
1170 */
cc9f21da 1171static void zfpm_write_cb(struct thread *thread)
5adc2528 1172{
d62a17ae 1173 struct stream *s;
1174 int num_writes;
1175
1176 zfpm_g->stats.write_cb_calls++;
d62a17ae 1177
1178 /*
1179 * Check if async connect is now done.
1180 */
1181 if (zfpm_g->state == ZFPM_STATE_CONNECTING) {
1182 zfpm_connect_check();
cc9f21da 1183 return;
d62a17ae 1184 }
5adc2528 1185
d62a17ae 1186 assert(zfpm_g->state == ZFPM_STATE_ESTABLISHED);
1187 assert(zfpm_g->sock >= 0);
5adc2528 1188
d62a17ae 1189 num_writes = 0;
5adc2528 1190
d62a17ae 1191 do {
1192 int bytes_to_write, bytes_written;
5adc2528 1193
d62a17ae 1194 s = zfpm_g->obuf;
5adc2528 1195
d62a17ae 1196 /*
1197 * If the stream is empty, try fill it up with data.
1198 */
1199 if (stream_empty(s)) {
1200 zfpm_build_updates();
1201 }
5adc2528 1202
d62a17ae 1203 bytes_to_write = stream_get_endp(s) - stream_get_getp(s);
1204 if (!bytes_to_write)
1205 break;
5adc2528 1206
d62a17ae 1207 bytes_written =
2d34fb80 1208 write(zfpm_g->sock, stream_pnt(s), bytes_to_write);
d62a17ae 1209 zfpm_g->stats.write_calls++;
1210 num_writes++;
5adc2528 1211
d62a17ae 1212 if (bytes_written < 0) {
1213 if (ERRNO_IO_RETRY(errno))
1214 break;
5adc2528 1215
d62a17ae 1216 zfpm_connection_down("failed to write to socket");
cc9f21da 1217 return;
d62a17ae 1218 }
5adc2528 1219
d62a17ae 1220 if (bytes_written != bytes_to_write) {
5adc2528 1221
d62a17ae 1222 /*
1223 * Partial write.
1224 */
1225 stream_forward_getp(s, bytes_written);
1226 zfpm_g->stats.partial_writes++;
1227 break;
1228 }
5adc2528 1229
d62a17ae 1230 /*
1231 * We've written out the entire contents of the stream.
1232 */
1233 stream_reset(s);
5adc2528 1234
d62a17ae 1235 if (num_writes >= ZFPM_MAX_WRITES_PER_RUN) {
1236 zfpm_g->stats.max_writes_hit++;
1237 break;
1238 }
5adc2528 1239
d62a17ae 1240 if (zfpm_thread_should_yield(thread)) {
1241 zfpm_g->stats.t_write_yields++;
1242 break;
1243 }
1244 } while (1);
5adc2528 1245
d62a17ae 1246 if (zfpm_writes_pending())
1247 zfpm_write_on();
5adc2528
AS
1248}
1249
1250/*
1251 * zfpm_connect_cb
1252 */
cc9f21da 1253static void zfpm_connect_cb(struct thread *t)
5adc2528 1254{
d62a17ae 1255 int sock, ret;
1256 struct sockaddr_in serv;
1257
d62a17ae 1258 assert(zfpm_g->state == ZFPM_STATE_ACTIVE);
1259
1260 sock = socket(AF_INET, SOCK_STREAM, 0);
1261 if (sock < 0) {
14a4d9d0 1262 zlog_err("Failed to create socket for connect(): %s",
d62a17ae 1263 strerror(errno));
1264 zfpm_g->stats.connect_no_sock++;
cc9f21da 1265 return;
d62a17ae 1266 }
1267
1268 set_nonblocking(sock);
1269
1270 /* Make server socket. */
1271 memset(&serv, 0, sizeof(serv));
1272 serv.sin_family = AF_INET;
1273 serv.sin_port = htons(zfpm_g->fpm_port);
5adc2528 1274#ifdef HAVE_STRUCT_SOCKADDR_IN_SIN_LEN
d62a17ae 1275 serv.sin_len = sizeof(struct sockaddr_in);
5adc2528 1276#endif /* HAVE_STRUCT_SOCKADDR_IN_SIN_LEN */
d62a17ae 1277 if (!zfpm_g->fpm_server)
1278 serv.sin_addr.s_addr = htonl(INADDR_LOOPBACK);
1279 else
1280 serv.sin_addr.s_addr = (zfpm_g->fpm_server);
1281
1282 /*
1283 * Connect to the FPM.
1284 */
1285 zfpm_g->connect_calls++;
1286 zfpm_g->stats.connect_calls++;
1287 zfpm_g->last_connect_call_time = monotime(NULL);
1288
1289 ret = connect(sock, (struct sockaddr *)&serv, sizeof(serv));
1290 if (ret >= 0) {
1291 zfpm_g->sock = sock;
1292 zfpm_connection_up("connect succeeded");
cc9f21da 1293 return;
d62a17ae 1294 }
1295
1296 if (errno == EINPROGRESS) {
1297 zfpm_g->sock = sock;
1298 zfpm_read_on();
1299 zfpm_write_on();
1300 zfpm_set_state(ZFPM_STATE_CONNECTING,
1301 "async connect in progress");
cc9f21da 1302 return;
d62a17ae 1303 }
1304
1305 zlog_info("can't connect to FPM %d: %s", sock, safe_strerror(errno));
1306 close(sock);
1307
1308 /*
1309 * Restart timer for retrying connection.
1310 */
1311 zfpm_start_connect_timer("connect() failed");
5adc2528
AS
1312}
1313
1314/*
1315 * zfpm_set_state
1316 *
1317 * Move state machine into the given state.
1318 */
1d6a3ee8 1319static void zfpm_set_state(enum zfpm_state state, const char *reason)
5adc2528 1320{
1d6a3ee8 1321 enum zfpm_state cur_state = zfpm_g->state;
d62a17ae 1322
1323 if (!reason)
1324 reason = "Unknown";
1325
1326 if (state == cur_state)
1327 return;
1328
1329 zfpm_debug("beginning state transition %s -> %s. Reason: %s",
1330 zfpm_state_to_str(cur_state), zfpm_state_to_str(state),
1331 reason);
1332
1333 switch (state) {
1334
1335 case ZFPM_STATE_IDLE:
1336 assert(cur_state == ZFPM_STATE_ESTABLISHED);
1337 break;
1338
1339 case ZFPM_STATE_ACTIVE:
1340 assert(cur_state == ZFPM_STATE_IDLE
1341 || cur_state == ZFPM_STATE_CONNECTING);
1342 assert(zfpm_g->t_connect);
1343 break;
1344
1345 case ZFPM_STATE_CONNECTING:
1346 assert(zfpm_g->sock);
1347 assert(cur_state == ZFPM_STATE_ACTIVE);
1348 assert(zfpm_g->t_read);
1349 assert(zfpm_g->t_write);
1350 break;
1351
1352 case ZFPM_STATE_ESTABLISHED:
1353 assert(cur_state == ZFPM_STATE_ACTIVE
1354 || cur_state == ZFPM_STATE_CONNECTING);
1355 assert(zfpm_g->sock);
1356 assert(zfpm_g->t_read);
1357 assert(zfpm_g->t_write);
1358 break;
1359 }
1360
1361 zfpm_g->state = state;
5adc2528
AS
1362}
1363
1364/*
1365 * zfpm_calc_connect_delay
1366 *
1367 * Returns the number of seconds after which we should attempt to
1368 * reconnect to the FPM.
1369 */
d62a17ae 1370static long zfpm_calc_connect_delay(void)
5adc2528 1371{
d62a17ae 1372 time_t elapsed;
5adc2528 1373
d62a17ae 1374 /*
1375 * Return 0 if this is our first attempt to connect.
1376 */
1377 if (zfpm_g->connect_calls == 0) {
1378 return 0;
1379 }
5adc2528 1380
d62a17ae 1381 elapsed = zfpm_get_elapsed_time(zfpm_g->last_connect_call_time);
5adc2528 1382
d62a17ae 1383 if (elapsed > ZFPM_CONNECT_RETRY_IVL) {
1384 return 0;
1385 }
5adc2528 1386
d62a17ae 1387 return ZFPM_CONNECT_RETRY_IVL - elapsed;
5adc2528
AS
1388}
1389
1390/*
1391 * zfpm_start_connect_timer
1392 */
d62a17ae 1393static void zfpm_start_connect_timer(const char *reason)
5adc2528 1394{
d62a17ae 1395 long delay_secs;
5adc2528 1396
d62a17ae 1397 assert(!zfpm_g->t_connect);
1398 assert(zfpm_g->sock < 0);
5adc2528 1399
d62a17ae 1400 assert(zfpm_g->state == ZFPM_STATE_IDLE
1401 || zfpm_g->state == ZFPM_STATE_ACTIVE
1402 || zfpm_g->state == ZFPM_STATE_CONNECTING);
5adc2528 1403
d62a17ae 1404 delay_secs = zfpm_calc_connect_delay();
1405 zfpm_debug("scheduling connect in %ld seconds", delay_secs);
5adc2528 1406
d62a17ae 1407 thread_add_timer(zfpm_g->master, zfpm_connect_cb, 0, delay_secs,
1408 &zfpm_g->t_connect);
1409 zfpm_set_state(ZFPM_STATE_ACTIVE, reason);
5adc2528
AS
1410}
1411
1412/*
1413 * zfpm_is_enabled
1414 *
2951a7a4 1415 * Returns true if the zebra FPM module has been enabled.
5adc2528 1416 */
d62a17ae 1417static inline int zfpm_is_enabled(void)
5adc2528 1418{
d62a17ae 1419 return zfpm_g->enabled;
5adc2528
AS
1420}
1421
1422/*
1423 * zfpm_conn_is_up
1424 *
2951a7a4 1425 * Returns true if the connection to the FPM is up.
5adc2528 1426 */
d62a17ae 1427static inline int zfpm_conn_is_up(void)
5adc2528 1428{
d62a17ae 1429 if (zfpm_g->state != ZFPM_STATE_ESTABLISHED)
1430 return 0;
5adc2528 1431
d62a17ae 1432 assert(zfpm_g->sock >= 0);
5adc2528 1433
d62a17ae 1434 return 1;
5adc2528
AS
1435}
1436
1437/*
1438 * zfpm_trigger_update
1439 *
1440 * The zebra code invokes this function to indicate that we should
1441 * send an update to the FPM about the given route_node.
1442 */
d62a17ae 1443static int zfpm_trigger_update(struct route_node *rn, const char *reason)
5adc2528 1444{
d62a17ae 1445 rib_dest_t *dest;
d62a17ae 1446
1447 /*
1448 * Ignore if the connection is down. We will update the FPM about
1449 * all destinations once the connection comes up.
1450 */
1451 if (!zfpm_conn_is_up())
1452 return 0;
1453
1454 dest = rib_dest_from_rnode(rn);
1455
d62a17ae 1456 if (CHECK_FLAG(dest->flags, RIB_DEST_UPDATE_FPM)) {
1457 zfpm_g->stats.redundant_triggers++;
1458 return 0;
1459 }
1460
1461 if (reason) {
2dbe669b
DA
1462 zfpm_debug("%pFX triggering update to FPM - Reason: %s", &rn->p,
1463 reason);
d62a17ae 1464 }
1465
1466 SET_FLAG(dest->flags, RIB_DEST_UPDATE_FPM);
1467 TAILQ_INSERT_TAIL(&zfpm_g->dest_q, dest, fpm_q_entries);
1468 zfpm_g->stats.updates_triggered++;
1469
1470 /*
1471 * Make sure that writes are enabled.
1472 */
1473 if (zfpm_g->t_write)
1474 return 0;
1475
1476 zfpm_write_on();
1477 return 0;
5adc2528
AS
1478}
1479
e5218ec8
AD
1480/*
1481 * Generate Key for FPM MAC info hash entry
e5218ec8
AD
1482 */
1483static unsigned int zfpm_mac_info_hash_keymake(const void *p)
1484{
1485 struct fpm_mac_info_t *fpm_mac = (struct fpm_mac_info_t *)p;
1486 uint32_t mac_key;
1487
1488 mac_key = jhash(fpm_mac->macaddr.octet, ETH_ALEN, 0xa5a5a55a);
1489
1490 return jhash_2words(mac_key, fpm_mac->vni, 0);
1491}
1492
1493/*
1494 * Compare function for FPM MAC info hash lookup
1495 */
1496static bool zfpm_mac_info_cmp(const void *p1, const void *p2)
1497{
1498 const struct fpm_mac_info_t *fpm_mac1 = p1;
1499 const struct fpm_mac_info_t *fpm_mac2 = p2;
1500
1501 if (memcmp(fpm_mac1->macaddr.octet, fpm_mac2->macaddr.octet, ETH_ALEN)
1502 != 0)
1503 return false;
e5218ec8
AD
1504 if (fpm_mac1->vni != fpm_mac2->vni)
1505 return false;
1506
1507 return true;
1508}
1509
1510/*
1511 * Lookup FPM MAC info hash entry.
1512 */
1513static struct fpm_mac_info_t *zfpm_mac_info_lookup(struct fpm_mac_info_t *key)
1514{
1515 return hash_lookup(zfpm_g->fpm_mac_info_table, key);
1516}
1517
1518/*
1519 * Callback to allocate fpm_mac_info_t structure.
1520 */
1521static void *zfpm_mac_info_alloc(void *p)
1522{
1523 const struct fpm_mac_info_t *key = p;
1524 struct fpm_mac_info_t *fpm_mac;
1525
1526 fpm_mac = XCALLOC(MTYPE_FPM_MAC_INFO, sizeof(struct fpm_mac_info_t));
1527
1528 memcpy(&fpm_mac->macaddr, &key->macaddr, ETH_ALEN);
e5218ec8
AD
1529 fpm_mac->vni = key->vni;
1530
1531 return (void *)fpm_mac;
1532}
1533
1534/*
1535 * Delink and free fpm_mac_info_t.
1536 */
1537static void zfpm_mac_info_del(struct fpm_mac_info_t *fpm_mac)
1538{
1539 hash_release(zfpm_g->fpm_mac_info_table, fpm_mac);
1540 TAILQ_REMOVE(&zfpm_g->mac_q, fpm_mac, fpm_mac_q_entries);
1541 XFREE(MTYPE_FPM_MAC_INFO, fpm_mac);
1542}
1543
a780a738
AD
1544/*
1545 * zfpm_trigger_rmac_update
1546 *
1547 * Zebra code invokes this function to indicate that we should
1548 * send an update to FPM for given MAC entry.
1549 *
1550 * This function checks if we already have enqueued an update for this RMAC,
1551 * If yes, update the same fpm_mac_info_t. Else, create and enqueue an update.
1552 */
3198b2b3 1553static int zfpm_trigger_rmac_update(struct zebra_mac *rmac,
05843a27 1554 struct zebra_l3vni *zl3vni, bool delete,
3198b2b3 1555 const char *reason)
a780a738 1556{
a780a738
AD
1557 struct fpm_mac_info_t *fpm_mac, key;
1558 struct interface *vxlan_if, *svi_if;
44f7f132 1559 bool mac_found = false;
a780a738
AD
1560
1561 /*
1562 * Ignore if the connection is down. We will update the FPM about
1563 * all destinations once the connection comes up.
1564 */
1565 if (!zfpm_conn_is_up())
1566 return 0;
1567
1568 if (reason) {
5e9f9adb
DL
1569 zfpm_debug("triggering update to FPM - Reason: %s - %pEA",
1570 reason, &rmac->macaddr);
a780a738
AD
1571 }
1572
1573 vxlan_if = zl3vni_map_to_vxlan_if(zl3vni);
1574 svi_if = zl3vni_map_to_svi_if(zl3vni);
1575
6006b807 1576 memset(&key, 0, sizeof(key));
a780a738
AD
1577
1578 memcpy(&key.macaddr, &rmac->macaddr, ETH_ALEN);
a780a738
AD
1579 key.vni = zl3vni->vni;
1580
1581 /* Check if this MAC is already present in the queue. */
1582 fpm_mac = zfpm_mac_info_lookup(&key);
1583
1584 if (fpm_mac) {
44f7f132 1585 mac_found = true;
a780a738
AD
1586
1587 /*
44f7f132
AD
1588 * If the enqueued op is "add" and current op is "delete",
1589 * this is a noop. So, Unset ZEBRA_MAC_UPDATE_FPM flag.
1590 * While processing FPM queue, we will silently delete this
1591 * MAC entry without sending any update for this MAC.
a780a738 1592 */
44f7f132
AD
1593 if (!CHECK_FLAG(fpm_mac->fpm_flags, ZEBRA_MAC_DELETE_FPM) &&
1594 delete == 1) {
a780a738
AD
1595 SET_FLAG(fpm_mac->fpm_flags, ZEBRA_MAC_DELETE_FPM);
1596 UNSET_FLAG(fpm_mac->fpm_flags, ZEBRA_MAC_UPDATE_FPM);
44f7f132 1597 return 0;
a780a738 1598 }
8e3aae66 1599 } else
44f7f132
AD
1600 fpm_mac = hash_get(zfpm_g->fpm_mac_info_table, &key,
1601 zfpm_mac_info_alloc);
a780a738 1602
44f7f132 1603 fpm_mac->r_vtep_ip.s_addr = rmac->fwd_info.r_vtep_ip.s_addr;
c5431822 1604 fpm_mac->zebra_flags = rmac->flags;
a780a738
AD
1605 fpm_mac->vxlan_if = vxlan_if ? vxlan_if->ifindex : 0;
1606 fpm_mac->svi_if = svi_if ? svi_if->ifindex : 0;
1607
1608 SET_FLAG(fpm_mac->fpm_flags, ZEBRA_MAC_UPDATE_FPM);
1609 if (delete)
1610 SET_FLAG(fpm_mac->fpm_flags, ZEBRA_MAC_DELETE_FPM);
44f7f132
AD
1611 else
1612 UNSET_FLAG(fpm_mac->fpm_flags, ZEBRA_MAC_DELETE_FPM);
a780a738 1613
44f7f132
AD
1614 if (!mac_found)
1615 TAILQ_INSERT_TAIL(&zfpm_g->mac_q, fpm_mac, fpm_mac_q_entries);
a780a738
AD
1616
1617 zfpm_g->stats.updates_triggered++;
1618
a780a738
AD
1619 /* If writes are already enabled, return. */
1620 if (zfpm_g->t_write)
1621 return 0;
1622
1623 zfpm_write_on();
1624 return 0;
1625}
1626
fbe748e5
AD
1627/*
1628 * This function is called when the FPM connections is established.
1629 * Iterate over all the RMAC entries for the given L3VNI
1630 * and enqueue the RMAC for FPM processing.
1631 */
1ac88792 1632static void zfpm_trigger_rmac_update_wrapper(struct hash_bucket *bucket,
fbe748e5
AD
1633 void *args)
1634{
3198b2b3 1635 struct zebra_mac *zrmac = (struct zebra_mac *)bucket->data;
05843a27 1636 struct zebra_l3vni *zl3vni = (struct zebra_l3vni *)args;
fbe748e5
AD
1637
1638 zfpm_trigger_rmac_update(zrmac, zl3vni, false, "RMAC added");
1639}
1640
1641/*
1642 * This function is called when the FPM connections is established.
1643 * This function iterates over all the L3VNIs to trigger
1644 * FPM updates for RMACs currently available.
1645 */
1ac88792 1646static void zfpm_iterate_rmac_table(struct hash_bucket *bucket, void *args)
fbe748e5 1647{
05843a27 1648 struct zebra_l3vni *zl3vni = (struct zebra_l3vni *)bucket->data;
fbe748e5
AD
1649
1650 hash_iterate(zl3vni->rmac_table, zfpm_trigger_rmac_update_wrapper,
1651 (void *)zl3vni);
1652}
1653
5adc2528 1654/*
eeaf257b 1655 * struct zfpm_statsimer_cb
5adc2528 1656 */
cc9f21da 1657static void zfpm_stats_timer_cb(struct thread *t)
5adc2528 1658{
d62a17ae 1659 zfpm_g->t_stats = NULL;
5adc2528 1660
d62a17ae 1661 /*
1662 * Remember the stats collected in the last interval for display
1663 * purposes.
1664 */
1665 zfpm_stats_copy(&zfpm_g->stats, &zfpm_g->last_ivl_stats);
5adc2528 1666
d62a17ae 1667 /*
1668 * Add the current set of stats into the cumulative statistics.
1669 */
1670 zfpm_stats_compose(&zfpm_g->cumulative_stats, &zfpm_g->stats,
1671 &zfpm_g->cumulative_stats);
5adc2528 1672
d62a17ae 1673 /*
1674 * Start collecting stats afresh over the next interval.
1675 */
1676 zfpm_stats_reset(&zfpm_g->stats);
5adc2528 1677
d62a17ae 1678 zfpm_start_stats_timer();
5adc2528
AS
1679}
1680
1681/*
1682 * zfpm_stop_stats_timer
1683 */
d62a17ae 1684static void zfpm_stop_stats_timer(void)
5adc2528 1685{
d62a17ae 1686 if (!zfpm_g->t_stats)
1687 return;
5adc2528 1688
d62a17ae 1689 zfpm_debug("Stopping existing stats timer");
50478845 1690 thread_cancel(&zfpm_g->t_stats);
5adc2528
AS
1691}
1692
1693/*
1694 * zfpm_start_stats_timer
1695 */
d62a17ae 1696void zfpm_start_stats_timer(void)
5adc2528 1697{
d62a17ae 1698 assert(!zfpm_g->t_stats);
5adc2528 1699
d62a17ae 1700 thread_add_timer(zfpm_g->master, zfpm_stats_timer_cb, 0,
1701 ZFPM_STATS_IVL_SECS, &zfpm_g->t_stats);
5adc2528
AS
1702}
1703
1704/*
1705 * Helper macro for zfpm_show_stats() below.
1706 */
d62a17ae 1707#define ZFPM_SHOW_STAT(counter) \
1708 do { \
1709 vty_out(vty, "%-40s %10lu %16lu\n", #counter, \
1710 total_stats.counter, zfpm_g->last_ivl_stats.counter); \
1711 } while (0)
5adc2528
AS
1712
1713/*
1714 * zfpm_show_stats
1715 */
d62a17ae 1716static void zfpm_show_stats(struct vty *vty)
5adc2528 1717{
eeaf257b 1718 struct zfpm_stats total_stats;
d62a17ae 1719 time_t elapsed;
1720
1721 vty_out(vty, "\n%-40s %10s Last %2d secs\n\n", "Counter", "Total",
1722 ZFPM_STATS_IVL_SECS);
1723
1724 /*
1725 * Compute the total stats up to this instant.
1726 */
1727 zfpm_stats_compose(&zfpm_g->cumulative_stats, &zfpm_g->stats,
1728 &total_stats);
1729
1730 ZFPM_SHOW_STAT(connect_calls);
1731 ZFPM_SHOW_STAT(connect_no_sock);
1732 ZFPM_SHOW_STAT(read_cb_calls);
1733 ZFPM_SHOW_STAT(write_cb_calls);
1734 ZFPM_SHOW_STAT(write_calls);
1735 ZFPM_SHOW_STAT(partial_writes);
1736 ZFPM_SHOW_STAT(max_writes_hit);
1737 ZFPM_SHOW_STAT(t_write_yields);
1738 ZFPM_SHOW_STAT(nop_deletes_skipped);
1739 ZFPM_SHOW_STAT(route_adds);
1740 ZFPM_SHOW_STAT(route_dels);
1741 ZFPM_SHOW_STAT(updates_triggered);
d62a17ae 1742 ZFPM_SHOW_STAT(redundant_triggers);
1743 ZFPM_SHOW_STAT(dests_del_after_update);
1744 ZFPM_SHOW_STAT(t_conn_down_starts);
1745 ZFPM_SHOW_STAT(t_conn_down_dests_processed);
1746 ZFPM_SHOW_STAT(t_conn_down_yields);
1747 ZFPM_SHOW_STAT(t_conn_down_finishes);
1748 ZFPM_SHOW_STAT(t_conn_up_starts);
1749 ZFPM_SHOW_STAT(t_conn_up_dests_processed);
1750 ZFPM_SHOW_STAT(t_conn_up_yields);
1751 ZFPM_SHOW_STAT(t_conn_up_aborts);
1752 ZFPM_SHOW_STAT(t_conn_up_finishes);
1753
1754 if (!zfpm_g->last_stats_clear_time)
1755 return;
1756
1757 elapsed = zfpm_get_elapsed_time(zfpm_g->last_stats_clear_time);
1758
1759 vty_out(vty, "\nStats were cleared %lu seconds ago\n",
1760 (unsigned long)elapsed);
5adc2528
AS
1761}
1762
1763/*
1764 * zfpm_clear_stats
1765 */
d62a17ae 1766static void zfpm_clear_stats(struct vty *vty)
5adc2528 1767{
d62a17ae 1768 if (!zfpm_is_enabled()) {
1769 vty_out(vty, "The FPM module is not enabled...\n");
1770 return;
1771 }
5adc2528 1772
d62a17ae 1773 zfpm_stats_reset(&zfpm_g->stats);
1774 zfpm_stats_reset(&zfpm_g->last_ivl_stats);
1775 zfpm_stats_reset(&zfpm_g->cumulative_stats);
5adc2528 1776
d62a17ae 1777 zfpm_stop_stats_timer();
1778 zfpm_start_stats_timer();
5adc2528 1779
d62a17ae 1780 zfpm_g->last_stats_clear_time = monotime(NULL);
5adc2528 1781
d62a17ae 1782 vty_out(vty, "Cleared FPM stats\n");
5adc2528
AS
1783}
1784
1785/*
1786 * show_zebra_fpm_stats
1787 */
1788DEFUN (show_zebra_fpm_stats,
1789 show_zebra_fpm_stats_cmd,
1790 "show zebra fpm stats",
1791 SHOW_STR
41e7fb80 1792 ZEBRA_STR
5adc2528
AS
1793 "Forwarding Path Manager information\n"
1794 "Statistics\n")
1795{
d62a17ae 1796 zfpm_show_stats(vty);
1797 return CMD_SUCCESS;
5adc2528
AS
1798}
1799
1800/*
1801 * clear_zebra_fpm_stats
1802 */
1803DEFUN (clear_zebra_fpm_stats,
1804 clear_zebra_fpm_stats_cmd,
1805 "clear zebra fpm stats",
1806 CLEAR_STR
41e7fb80 1807 ZEBRA_STR
5adc2528
AS
1808 "Clear Forwarding Path Manager information\n"
1809 "Statistics\n")
1810{
d62a17ae 1811 zfpm_clear_stats(vty);
1812 return CMD_SUCCESS;
5adc2528
AS
1813}
1814
711ff0ba 1815/*
d62a17ae 1816 * update fpm connection information
711ff0ba 1817 */
e52702f2
QY
1818DEFUN ( fpm_remote_ip,
1819 fpm_remote_ip_cmd,
1820 "fpm connection ip A.B.C.D port (1-65535)",
711ff0ba
USK
1821 "fpm connection remote ip and port\n"
1822 "Remote fpm server ip A.B.C.D\n"
1823 "Enter ip ")
1824{
1825
d62a17ae 1826 in_addr_t fpm_server;
1827 uint32_t port_no;
711ff0ba 1828
d62a17ae 1829 fpm_server = inet_addr(argv[3]->arg);
1830 if (fpm_server == INADDR_NONE)
1831 return CMD_ERR_INCOMPLETE;
711ff0ba 1832
d62a17ae 1833 port_no = atoi(argv[5]->arg);
1834 if (port_no < TCP_MIN_PORT || port_no > TCP_MAX_PORT)
1835 return CMD_ERR_INCOMPLETE;
711ff0ba 1836
d62a17ae 1837 zfpm_g->fpm_server = fpm_server;
1838 zfpm_g->fpm_port = port_no;
711ff0ba
USK
1839
1840
d62a17ae 1841 return CMD_SUCCESS;
711ff0ba
USK
1842}
1843
e52702f2
QY
1844DEFUN ( no_fpm_remote_ip,
1845 no_fpm_remote_ip_cmd,
1846 "no fpm connection ip A.B.C.D port (1-65535)",
711ff0ba
USK
1847 "fpm connection remote ip and port\n"
1848 "Connection\n"
1849 "Remote fpm server ip A.B.C.D\n"
1850 "Enter ip ")
1851{
d62a17ae 1852 if (zfpm_g->fpm_server != inet_addr(argv[4]->arg)
1853 || zfpm_g->fpm_port != atoi(argv[6]->arg))
1854 return CMD_ERR_NO_MATCH;
711ff0ba 1855
d62a17ae 1856 zfpm_g->fpm_server = FPM_DEFAULT_IP;
1857 zfpm_g->fpm_port = FPM_DEFAULT_PORT;
711ff0ba 1858
d62a17ae 1859 return CMD_SUCCESS;
711ff0ba 1860}
711ff0ba 1861
fb0aa886
AS
1862/*
1863 * zfpm_init_message_format
1864 */
d62a17ae 1865static inline void zfpm_init_message_format(const char *format)
fb0aa886 1866{
d62a17ae 1867 int have_netlink, have_protobuf;
fb0aa886 1868
fb0aa886 1869#ifdef HAVE_NETLINK
d62a17ae 1870 have_netlink = 1;
4b2792b5 1871#else
d62a17ae 1872 have_netlink = 0;
fb0aa886
AS
1873#endif
1874
1875#ifdef HAVE_PROTOBUF
d62a17ae 1876 have_protobuf = 1;
4b2792b5 1877#else
d62a17ae 1878 have_protobuf = 0;
fb0aa886
AS
1879#endif
1880
d62a17ae 1881 zfpm_g->message_format = ZFPM_MSG_FORMAT_NONE;
fb0aa886 1882
d62a17ae 1883 if (!format) {
1884 if (have_netlink) {
1885 zfpm_g->message_format = ZFPM_MSG_FORMAT_NETLINK;
1886 } else if (have_protobuf) {
1887 zfpm_g->message_format = ZFPM_MSG_FORMAT_PROTOBUF;
1888 }
1889 return;
fb0aa886 1890 }
fb0aa886 1891
d62a17ae 1892 if (!strcmp("netlink", format)) {
1893 if (!have_netlink) {
1c50c1c0
QY
1894 flog_err(EC_ZEBRA_NETLINK_NOT_AVAILABLE,
1895 "FPM netlink message format is not available");
d62a17ae 1896 return;
1897 }
1898 zfpm_g->message_format = ZFPM_MSG_FORMAT_NETLINK;
1899 return;
fb0aa886 1900 }
fb0aa886 1901
d62a17ae 1902 if (!strcmp("protobuf", format)) {
1903 if (!have_protobuf) {
af4c2728 1904 flog_err(
e914ccbe 1905 EC_ZEBRA_PROTOBUF_NOT_AVAILABLE,
d62a17ae 1906 "FPM protobuf message format is not available");
1907 return;
1908 }
8b9cf71c 1909 flog_warn(EC_ZEBRA_PROTOBUF_NOT_AVAILABLE,
3efd0893 1910 "FPM protobuf message format is deprecated and scheduled to be removed. Please convert to using netlink format or contact dev@lists.frrouting.org with your use case.");
d62a17ae 1911 zfpm_g->message_format = ZFPM_MSG_FORMAT_PROTOBUF;
1912 return;
fb0aa886 1913 }
fb0aa886 1914
e914ccbe 1915 flog_warn(EC_ZEBRA_FPM_FORMAT_UNKNOWN, "Unknown fpm format '%s'",
9df414fe 1916 format);
fb0aa886
AS
1917}
1918
711ff0ba 1919/**
d62a17ae 1920 * fpm_remote_srv_write
711ff0ba 1921 *
d62a17ae 1922 * Module to write remote fpm connection
711ff0ba
USK
1923 *
1924 * Returns ZERO on success.
1925 */
1926
d62a17ae 1927static int fpm_remote_srv_write(struct vty *vty)
711ff0ba 1928{
d62a17ae 1929 struct in_addr in;
711ff0ba 1930
d62a17ae 1931 in.s_addr = zfpm_g->fpm_server;
711ff0ba 1932
9d1c2659 1933 if ((zfpm_g->fpm_server != FPM_DEFAULT_IP
996c9314
LB
1934 && zfpm_g->fpm_server != INADDR_ANY)
1935 || (zfpm_g->fpm_port != FPM_DEFAULT_PORT && zfpm_g->fpm_port != 0))
9bcef951 1936 vty_out(vty, "fpm connection ip %pI4 port %d\n", &in,
d62a17ae 1937 zfpm_g->fpm_port);
711ff0ba 1938
d62a17ae 1939 return 0;
711ff0ba
USK
1940}
1941
1942
612c2c15 1943static int fpm_remote_srv_write(struct vty *vty);
4f8ea50c 1944/* Zebra node */
62b346ee 1945static struct cmd_node zebra_node = {
f4b8291f 1946 .name = "zebra",
62b346ee 1947 .node = ZEBRA_NODE,
24389580 1948 .parent_node = CONFIG_NODE,
62b346ee 1949 .prompt = "",
612c2c15 1950 .config_write = fpm_remote_srv_write,
62b346ee 1951};
4f8ea50c
DL
1952
1953
5adc2528
AS
1954/**
1955 * zfpm_init
1956 *
1957 * One-time initialization of the Zebra FPM module.
1958 *
1959 * @param[in] port port at which FPM is running.
2951a7a4 1960 * @param[in] enable true if the zebra FPM module should be enabled
fb0aa886 1961 * @param[in] format to use to talk to the FPM. Can be 'netink' or 'protobuf'.
5adc2528 1962 *
2951a7a4 1963 * Returns true on success.
5adc2528 1964 */
d62a17ae 1965static int zfpm_init(struct thread_master *master)
5adc2528 1966{
d62a17ae 1967 int enable = 1;
1968 uint16_t port = 0;
1969 const char *format = THIS_MODULE->load_args;
5adc2528 1970
d62a17ae 1971 memset(zfpm_g, 0, sizeof(*zfpm_g));
1972 zfpm_g->master = master;
1973 TAILQ_INIT(&zfpm_g->dest_q);
e5218ec8
AD
1974 TAILQ_INIT(&zfpm_g->mac_q);
1975
1976 /* Create hash table for fpm_mac_info_t enties */
1977 zfpm_g->fpm_mac_info_table = hash_create(zfpm_mac_info_hash_keymake,
fbe748e5
AD
1978 zfpm_mac_info_cmp,
1979 "FPM MAC info hash table");
e5218ec8 1980
d62a17ae 1981 zfpm_g->sock = -1;
1982 zfpm_g->state = ZFPM_STATE_IDLE;
5adc2528 1983
d62a17ae 1984 zfpm_stats_init(&zfpm_g->stats);
1985 zfpm_stats_init(&zfpm_g->last_ivl_stats);
1986 zfpm_stats_init(&zfpm_g->cumulative_stats);
5adc2528 1987
316d2d52 1988 memset(&ipv4ll_gateway, 0, sizeof(ipv4ll_gateway));
b51c6597
DS
1989 if (inet_pton(AF_INET, ipv4_ll_buf, &ipv4ll_gateway.ipv4) != 1)
1990 zlog_warn("inet_pton failed for %s", ipv4_ll_buf);
316d2d52 1991
612c2c15 1992 install_node(&zebra_node);
d62a17ae 1993 install_element(ENABLE_NODE, &show_zebra_fpm_stats_cmd);
1994 install_element(ENABLE_NODE, &clear_zebra_fpm_stats_cmd);
1995 install_element(CONFIG_NODE, &fpm_remote_ip_cmd);
1996 install_element(CONFIG_NODE, &no_fpm_remote_ip_cmd);
5adc2528 1997
d62a17ae 1998 zfpm_init_message_format(format);
fb0aa886 1999
d62a17ae 2000 /*
2001 * Disable FPM interface if no suitable format is available.
2002 */
2003 if (zfpm_g->message_format == ZFPM_MSG_FORMAT_NONE)
2004 enable = 0;
fb0aa886 2005
d62a17ae 2006 zfpm_g->enabled = enable;
5adc2528 2007
d62a17ae 2008 if (!zfpm_g->fpm_server)
2009 zfpm_g->fpm_server = FPM_DEFAULT_IP;
711ff0ba 2010
d62a17ae 2011 if (!port)
2012 port = FPM_DEFAULT_PORT;
5adc2528 2013
d62a17ae 2014 zfpm_g->fpm_port = port;
5adc2528 2015
d62a17ae 2016 zfpm_g->obuf = stream_new(ZFPM_OBUF_SIZE);
2017 zfpm_g->ibuf = stream_new(ZFPM_IBUF_SIZE);
5adc2528 2018
d62a17ae 2019 zfpm_start_stats_timer();
2020 zfpm_start_connect_timer("initialized");
2021 return 0;
4f8ea50c 2022}
5adc2528 2023
f0c459f0
DS
2024static int zfpm_fini(void)
2025{
2026 zfpm_write_off();
2027 zfpm_read_off();
2028 zfpm_connect_off();
2029
2030 zfpm_stop_stats_timer();
2031
2032 hook_unregister(rib_update, zfpm_trigger_update);
2033 return 0;
2034}
2035
d62a17ae 2036static int zebra_fpm_module_init(void)
4f8ea50c 2037{
d62a17ae 2038 hook_register(rib_update, zfpm_trigger_update);
a780a738 2039 hook_register(zebra_rmac_update, zfpm_trigger_rmac_update);
d62a17ae 2040 hook_register(frr_late_init, zfpm_init);
f0c459f0 2041 hook_register(frr_early_fini, zfpm_fini);
d62a17ae 2042 return 0;
5adc2528 2043}
4f8ea50c 2044
d62a17ae 2045FRR_MODULE_SETUP(.name = "zebra_fpm", .version = FRR_VERSION,
2046 .description = "zebra FPM (Forwarding Plane Manager) module",
80413c20
DL
2047 .init = zebra_fpm_module_init,
2048);