1 /* $OpenBSD: neighbor.c,v 1.51 2023/03/08 04:43:14 guenther Exp $ */ 2 3 /* 4 * Copyright (c) 2005 Claudio Jeker <claudio@openbsd.org> 5 * Copyright (c) 2004, 2005 Esben Norby <norby@openbsd.org> 6 * 7 * Permission to use, copy, modify, and distribute this software for any 8 * purpose with or without fee is hereby granted, provided that the above 9 * copyright notice and this permission notice appear in all copies. 10 * 11 * THE SOFTWARE IS PROVIDED "AS IS" AND THE AUTHOR DISCLAIMS ALL WARRANTIES 12 * WITH REGARD TO THIS SOFTWARE INCLUDING ALL IMPLIED WARRANTIES OF 13 * MERCHANTABILITY AND FITNESS. IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR 14 * ANY SPECIAL, DIRECT, INDIRECT, OR CONSEQUENTIAL DAMAGES OR ANY DAMAGES 15 * WHATSOEVER RESULTING FROM LOSS OF USE, DATA OR PROFITS, WHETHER IN AN 16 * ACTION OF CONTRACT, NEGLIGENCE OR OTHER TORTIOUS ACTION, ARISING OUT OF 17 * OR IN CONNECTION WITH THE USE OR PERFORMANCE OF THIS SOFTWARE. 18 */ 19 20 #include <sys/types.h> 21 #include <sys/ioctl.h> 22 #include <sys/time.h> 23 #include <sys/socket.h> 24 #include <netinet/in.h> 25 #include <arpa/inet.h> 26 #include <net/if.h> 27 28 #include <ctype.h> 29 #include <err.h> 30 #include <stdio.h> 31 #include <stdlib.h> 32 #include <string.h> 33 #include <event.h> 34 35 #include "ospfd.h" 36 #include "ospf.h" 37 #include "ospfe.h" 38 #include "log.h" 39 #include "rde.h" 40 41 int nbr_adj_ok(struct nbr *); 42 43 LIST_HEAD(nbr_head, nbr); 44 45 struct nbr_table { 46 struct nbr_head *hashtbl; 47 u_int32_t hashmask; 48 } nbrtable; 49 50 #define NBR_HASH(x) \ 51 &nbrtable.hashtbl[(x) & nbrtable.hashmask] 52 53 u_int32_t peercnt = NBR_CNTSTART; 54 55 struct { 56 int state; 57 enum nbr_event event; 58 enum nbr_action action; 59 int new_state; /* 0 means action decides or unchanged */ 60 } nbr_fsm_tbl[] = { 61 /* current state event that happened action to take resulting state */ 62 {NBR_STA_ACTIVE, NBR_EVT_HELLO_RCVD, NBR_ACT_RST_ITIMER, 0}, 63 {NBR_STA_BIDIR, NBR_EVT_2_WAY_RCVD, NBR_ACT_NOTHING, 0}, 64 {NBR_STA_INIT, NBR_EVT_1_WAY_RCVD, NBR_ACT_NOTHING, 0}, 65 {NBR_STA_DOWN, NBR_EVT_HELLO_RCVD, NBR_ACT_STRT_ITIMER, NBR_STA_INIT}, 66 {NBR_STA_ATTEMPT, NBR_EVT_HELLO_RCVD, NBR_ACT_RST_ITIMER, NBR_STA_INIT}, 67 {NBR_STA_INIT, NBR_EVT_2_WAY_RCVD, NBR_ACT_EVAL, 0}, 68 {NBR_STA_XSTRT, NBR_EVT_NEG_DONE, NBR_ACT_SNAP, 0}, 69 {NBR_STA_SNAP, NBR_EVT_SNAP_DONE, NBR_ACT_SNAP_DONE, NBR_STA_XCHNG}, 70 {NBR_STA_XCHNG, NBR_EVT_XCHNG_DONE, NBR_ACT_XCHNG_DONE, 0}, 71 {NBR_STA_LOAD, NBR_EVT_LOAD_DONE, NBR_ACT_NOTHING, NBR_STA_FULL}, 72 {NBR_STA_2_WAY, NBR_EVT_ADJ_OK, NBR_ACT_EVAL, 0}, 73 {NBR_STA_ADJFORM, NBR_EVT_ADJ_OK, NBR_ACT_ADJ_OK, 0}, 74 {NBR_STA_PRELIM, NBR_EVT_ADJ_OK, NBR_ACT_HELLO_CHK, 0}, 75 {NBR_STA_ADJFORM, NBR_EVT_ADJTMOUT, NBR_ACT_RESTRT_DD, 0}, 76 {NBR_STA_FLOOD, NBR_EVT_SEQ_NUM_MIS, NBR_ACT_RESTRT_DD, 0}, 77 {NBR_STA_FLOOD, NBR_EVT_BAD_LS_REQ, NBR_ACT_RESTRT_DD, 0}, 78 {NBR_STA_ANY, NBR_EVT_KILL_NBR, NBR_ACT_DEL, NBR_STA_DOWN}, 79 {NBR_STA_ANY, NBR_EVT_LL_DOWN, NBR_ACT_DEL, NBR_STA_DOWN}, 80 {NBR_STA_ANY, NBR_EVT_ITIMER, NBR_ACT_DEL, NBR_STA_DOWN}, 81 {NBR_STA_BIDIR, NBR_EVT_1_WAY_RCVD, NBR_ACT_CLR_LST, NBR_STA_INIT}, 82 {-1, NBR_EVT_NOTHING, NBR_ACT_NOTHING, 0}, 83 }; 84 85 const char * const nbr_event_names[] = { 86 "NOTHING", 87 "HELLO_RECEIVED", 88 "2_WAY_RECEIVED", 89 "NEGOTIATION_DONE", 90 "SNAPSHOT_DONE", 91 "EXCHANGE_DONE", 92 "BAD_LS_REQ", 93 "LOADING_DONE", 94 "ADJ_OK", 95 "SEQ_NUM_MISMATCH", 96 "1_WAY_RECEIVED", 97 "KILL_NBR", 98 "INACTIVITY_TIMER", 99 "LL_DOWN", 100 "ADJ_TIMEOUT" 101 }; 102 103 const char * const nbr_action_names[] = { 104 "NOTHING", 105 "RESET_INACTIVITY_TIMER", 106 "START_INACTIVITY_TIMER", 107 "EVAL", 108 "SNAPSHOT", 109 "SNAPSHOT_DONE", 110 "EXCHANGE_DONE", 111 "ADJ_OK", 112 "RESET_DD", 113 "DELETE", 114 "CLEAR_LISTS", 115 "HELLO_CHK" 116 }; 117 118 int 119 nbr_fsm(struct nbr *nbr, enum nbr_event event) 120 { 121 struct timeval now; 122 int old_state; 123 int new_state = 0; 124 int i, ret = 0; 125 126 if (nbr == nbr->iface->self) 127 return (0); 128 129 old_state = nbr->state; 130 for (i = 0; nbr_fsm_tbl[i].state != -1; i++) 131 if ((nbr_fsm_tbl[i].state & old_state) && 132 (nbr_fsm_tbl[i].event == event)) { 133 new_state = nbr_fsm_tbl[i].new_state; 134 break; 135 } 136 137 if (nbr_fsm_tbl[i].state == -1) { 138 /* event outside of the defined fsm, ignore it. */ 139 log_warnx("nbr_fsm: neighbor ID %s (%s), " 140 "event %s not expected in state %s", 141 inet_ntoa(nbr->id), nbr->iface->name, 142 nbr_event_names[event], 143 nbr_state_name(old_state)); 144 return (0); 145 } 146 147 switch (nbr_fsm_tbl[i].action) { 148 case NBR_ACT_RST_ITIMER: 149 ret = nbr_act_reset_itimer(nbr); 150 break; 151 case NBR_ACT_STRT_ITIMER: 152 ret = nbr_act_start_itimer(nbr); 153 break; 154 case NBR_ACT_EVAL: 155 ret = nbr_act_eval(nbr); 156 break; 157 case NBR_ACT_SNAP: 158 ret = nbr_act_snapshot(nbr); 159 break; 160 case NBR_ACT_SNAP_DONE: 161 /* start db exchange */ 162 start_db_tx_timer(nbr); 163 break; 164 case NBR_ACT_XCHNG_DONE: 165 ret = nbr_act_exchange_done(nbr); 166 break; 167 case NBR_ACT_ADJ_OK: 168 ret = nbr_act_adj_ok(nbr); 169 break; 170 case NBR_ACT_RESTRT_DD: 171 ret = nbr_act_restart_dd(nbr); 172 break; 173 case NBR_ACT_DEL: 174 ret = nbr_act_delete(nbr); 175 break; 176 case NBR_ACT_CLR_LST: 177 ret = nbr_act_clear_lists(nbr); 178 break; 179 case NBR_ACT_HELLO_CHK: 180 ret = nbr_act_hello_check(nbr); 181 break; 182 case NBR_ACT_NOTHING: 183 /* do nothing */ 184 break; 185 } 186 187 if (ret) { 188 log_warnx("nbr_fsm: error changing state for neighbor " 189 "ID %s (%s), event %s, state %s", 190 inet_ntoa(nbr->id), nbr->iface->name, 191 nbr_event_names[event], nbr_state_name(old_state)); 192 return (-1); 193 } 194 195 if (new_state != 0) 196 nbr->state = new_state; 197 198 if (old_state != nbr->state) { 199 nbr->stats.sta_chng++; 200 /* state change inform RDE */ 201 ospfe_imsg_compose_rde(IMSG_NEIGHBOR_CHANGE, 202 nbr->peerid, 0, &nbr->state, sizeof(nbr->state)); 203 204 if (old_state & NBR_STA_FULL || nbr->state & NBR_STA_FULL) { 205 /* 206 * neighbor changed from/to FULL 207 * originate new rtr and net LSA 208 */ 209 orig_rtr_lsa(nbr->iface->area); 210 if (nbr->iface->state & IF_STA_DR) 211 orig_net_lsa(nbr->iface); 212 213 gettimeofday(&now, NULL); 214 nbr->uptime = now.tv_sec; 215 } 216 217 /* bidirectional communication lost */ 218 if (old_state & ~NBR_STA_PRELIM && nbr->state & NBR_STA_PRELIM) 219 if_fsm(nbr->iface, IF_EVT_NBR_CHNG); 220 221 log_debug("nbr_fsm: event %s resulted in action %s and " 222 "changing state for neighbor ID %s (%s) from %s to %s", 223 nbr_event_names[event], 224 nbr_action_names[nbr_fsm_tbl[i].action], 225 inet_ntoa(nbr->id), nbr->iface->name, 226 nbr_state_name(old_state), 227 nbr_state_name(nbr->state)); 228 229 if (nbr->iface->type == IF_TYPE_VIRTUALLINK) { 230 orig_rtr_lsa(nbr->iface->area); 231 } 232 } 233 234 return (ret); 235 } 236 237 void 238 nbr_init(u_int32_t hashsize) 239 { 240 struct nbr_head *head; 241 struct nbr *nbr; 242 u_int32_t hs, i; 243 244 for (hs = 1; hs < hashsize; hs <<= 1) 245 ; 246 nbrtable.hashtbl = calloc(hs, sizeof(struct nbr_head)); 247 if (nbrtable.hashtbl == NULL) 248 fatal("nbr_init"); 249 250 for (i = 0; i < hs; i++) 251 LIST_INIT(&nbrtable.hashtbl[i]); 252 253 nbrtable.hashmask = hs - 1; 254 255 /* allocate a dummy neighbor used for self originated AS ext routes */ 256 if ((nbr = calloc(1, sizeof(*nbr))) == NULL) 257 fatal("nbr_init"); 258 259 nbr->id.s_addr = ospfe_router_id(); 260 nbr->state = NBR_STA_DOWN; 261 nbr->peerid = NBR_IDSELF; 262 head = NBR_HASH(nbr->peerid); 263 LIST_INSERT_HEAD(head, nbr, hash); 264 265 TAILQ_INIT(&nbr->ls_retrans_list); 266 TAILQ_INIT(&nbr->db_sum_list); 267 TAILQ_INIT(&nbr->ls_req_list); 268 } 269 270 struct nbr * 271 nbr_new(u_int32_t nbr_id, struct iface *iface, int self) 272 { 273 struct nbr_head *head; 274 struct nbr *nbr; 275 struct rde_nbr rn; 276 277 if ((nbr = calloc(1, sizeof(*nbr))) == NULL) 278 fatal("nbr_new"); 279 280 nbr->state = NBR_STA_DOWN; 281 nbr->dd_master = 1; 282 nbr->dd_seq_num = arc4random(); /* RFC: some unique value */ 283 nbr->id.s_addr = nbr_id; 284 285 /* get next unused peerid */ 286 while (nbr_find_peerid(++peercnt)) 287 ; 288 nbr->peerid = peercnt; 289 head = NBR_HASH(nbr->peerid); 290 LIST_INSERT_HEAD(head, nbr, hash); 291 292 /* add to peer list */ 293 nbr->iface = iface; 294 LIST_INSERT_HEAD(&iface->nbr_list, nbr, entry); 295 296 TAILQ_INIT(&nbr->ls_retrans_list); 297 TAILQ_INIT(&nbr->db_sum_list); 298 TAILQ_INIT(&nbr->ls_req_list); 299 300 nbr->ls_req = NULL; 301 302 if (self) { 303 nbr->state = NBR_STA_FULL; 304 nbr->addr.s_addr = iface->addr.s_addr; 305 nbr->priority = iface->priority; 306 } 307 308 /* set event structures */ 309 evtimer_set(&nbr->inactivity_timer, nbr_itimer, nbr); 310 evtimer_set(&nbr->db_tx_timer, db_tx_timer, nbr); 311 evtimer_set(&nbr->lsreq_tx_timer, ls_req_tx_timer, nbr); 312 evtimer_set(&nbr->ls_retrans_timer, ls_retrans_timer, nbr); 313 evtimer_set(&nbr->adj_timer, nbr_adj_timer, nbr); 314 315 bzero(&rn, sizeof(rn)); 316 rn.id.s_addr = nbr->id.s_addr; 317 rn.area_id.s_addr = nbr->iface->area->id.s_addr; 318 rn.addr.s_addr = nbr->addr.s_addr; 319 rn.ifindex = nbr->iface->ifindex; 320 rn.state = nbr->state; 321 rn.self = self; 322 ospfe_imsg_compose_rde(IMSG_NEIGHBOR_UP, nbr->peerid, 0, &rn, 323 sizeof(rn)); 324 325 return (nbr); 326 } 327 328 void 329 nbr_del(struct nbr *nbr) 330 { 331 ospfe_imsg_compose_rde(IMSG_NEIGHBOR_DOWN, nbr->peerid, 0, NULL, 0); 332 333 if (evtimer_pending(&nbr->inactivity_timer, NULL)) 334 evtimer_del(&nbr->inactivity_timer); 335 if (evtimer_pending(&nbr->db_tx_timer, NULL)) 336 evtimer_del(&nbr->db_tx_timer); 337 if (evtimer_pending(&nbr->lsreq_tx_timer, NULL)) 338 evtimer_del(&nbr->lsreq_tx_timer); 339 if (evtimer_pending(&nbr->ls_retrans_timer, NULL)) 340 evtimer_del(&nbr->ls_retrans_timer); 341 if (evtimer_pending(&nbr->adj_timer, NULL)) 342 evtimer_del(&nbr->adj_timer); 343 344 /* clear lists */ 345 ls_retrans_list_clr(nbr); 346 db_sum_list_clr(nbr); 347 ls_req_list_clr(nbr); 348 349 if (nbr->peerid != NBR_IDSELF) 350 LIST_REMOVE(nbr, entry); 351 LIST_REMOVE(nbr, hash); 352 353 free(nbr); 354 } 355 356 struct nbr * 357 nbr_find_peerid(u_int32_t peerid) 358 { 359 struct nbr_head *head; 360 struct nbr *nbr; 361 362 head = NBR_HASH(peerid); 363 364 LIST_FOREACH(nbr, head, hash) { 365 if (nbr->peerid == peerid) 366 return (nbr); 367 } 368 369 return (NULL); 370 } 371 372 struct nbr * 373 nbr_find_id(struct iface *iface, u_int32_t rtr_id) 374 { 375 struct nbr *nbr = NULL; 376 377 LIST_FOREACH(nbr, &iface->nbr_list, entry) { 378 if (nbr->id.s_addr == rtr_id) 379 return (nbr); 380 } 381 382 return (NULL); 383 } 384 385 /* timers */ 386 void 387 nbr_itimer(int fd, short event, void *arg) 388 { 389 struct nbr *nbr = arg; 390 391 if (nbr->state == NBR_STA_DOWN) 392 nbr_del(nbr); 393 else 394 nbr_fsm(nbr, NBR_EVT_ITIMER); 395 } 396 397 void 398 nbr_start_itimer(struct nbr *nbr) 399 { 400 struct timeval tv; 401 402 timerclear(&tv); 403 tv.tv_sec = nbr->iface->dead_interval; 404 405 if (evtimer_add(&nbr->inactivity_timer, &tv) == -1) 406 fatal("nbr_start_itimer"); 407 } 408 409 void 410 nbr_stop_itimer(struct nbr *nbr) 411 { 412 if (evtimer_del(&nbr->inactivity_timer) == -1) 413 fatal("nbr_stop_itimer"); 414 } 415 416 void 417 nbr_reset_itimer(struct nbr *nbr) 418 { 419 struct timeval tv; 420 421 timerclear(&tv); 422 tv.tv_sec = nbr->iface->dead_interval; 423 424 if (evtimer_add(&nbr->inactivity_timer, &tv) == -1) 425 fatal("nbr_reset_itimer"); 426 } 427 428 void 429 nbr_adj_timer(int fd, short event, void *arg) 430 { 431 struct nbr *nbr = arg; 432 433 if (!(nbr->state & NBR_STA_ADJFORM)) 434 return; 435 436 if (nbr->state & NBR_STA_ACTIVE && nbr->state != NBR_STA_FULL) { 437 log_warnx("nbr_adj_timer: failed to form adjacency with %s " 438 "on interface %s", inet_ntoa(nbr->id), nbr->iface->name); 439 nbr_fsm(nbr, NBR_EVT_ADJTMOUT); 440 } 441 } 442 443 void 444 nbr_start_adj_timer(struct nbr *nbr) 445 { 446 struct timeval tv; 447 448 timerclear(&tv); 449 tv.tv_sec = DEFAULT_ADJ_TMOUT; 450 451 if (evtimer_add(&nbr->adj_timer, &tv) == -1) 452 fatal("nbr_start_adj_timer"); 453 } 454 455 /* actions */ 456 int 457 nbr_act_reset_itimer(struct nbr *nbr) 458 { 459 nbr_reset_itimer(nbr); 460 461 return (0); 462 } 463 464 int 465 nbr_act_start_itimer(struct nbr *nbr) 466 { 467 nbr_start_itimer(nbr); 468 469 return (0); 470 } 471 472 int 473 nbr_adj_ok(struct nbr *nbr) 474 { 475 struct iface *iface = nbr->iface; 476 477 switch (iface->type) { 478 case IF_TYPE_POINTOPOINT: 479 case IF_TYPE_VIRTUALLINK: 480 case IF_TYPE_POINTOMULTIPOINT: 481 /* always ok */ 482 break; 483 case IF_TYPE_BROADCAST: 484 case IF_TYPE_NBMA: 485 /* 486 * if neighbor is dr, bdr or router self is dr or bdr 487 * start forming adjacency 488 */ 489 if (iface->dr == nbr || iface->bdr == nbr || 490 iface->state & IF_STA_DRORBDR) 491 break; 492 return (0); 493 default: 494 fatalx("nbr_adj_ok: unknown interface type"); 495 } 496 return (1); 497 } 498 499 int 500 nbr_act_eval(struct nbr *nbr) 501 { 502 if (!nbr_adj_ok(nbr)) { 503 nbr->state = NBR_STA_2_WAY; 504 return (0); 505 } 506 507 nbr->state = NBR_STA_XSTRT; 508 nbr->dd_master = 1; 509 nbr->dd_seq_num++; /* as per RFC */ 510 nbr->dd_pending = 0; 511 /* initial db negotiation */ 512 start_db_tx_timer(nbr); 513 514 nbr_start_adj_timer(nbr); 515 516 return (0); 517 } 518 519 int 520 nbr_act_snapshot(struct nbr *nbr) 521 { 522 stop_db_tx_timer(nbr); 523 524 /* we need to wait for the old snapshot to finish */ 525 if (nbr->dd_snapshot) { 526 log_debug("nbr_act_snapshot: giving up, old snapshot running " 527 "for neighbor ID %s (%s)", inet_ntoa(nbr->id), 528 nbr->iface->name); 529 return (nbr_act_restart_dd(nbr)); 530 } 531 ospfe_imsg_compose_rde(IMSG_NEIGHBOR_CAPA, nbr->peerid, 0, 532 &nbr->capa_options, sizeof(nbr->capa_options)); 533 ospfe_imsg_compose_rde(IMSG_DB_SNAPSHOT, nbr->peerid, 0, NULL, 0); 534 535 nbr->dd_snapshot = 1; /* wait for IMSG_DB_END */ 536 nbr->state = NBR_STA_SNAP; 537 538 return (0); 539 } 540 541 int 542 nbr_act_exchange_done(struct nbr *nbr) 543 { 544 if (nbr->dd_master) 545 stop_db_tx_timer(nbr); 546 547 if (ls_req_list_empty(nbr) && nbr->state == NBR_STA_XCHNG && 548 nbr->dd_pending == 0) { 549 nbr->state = NBR_STA_FULL; 550 return (0); 551 } 552 553 nbr->state = NBR_STA_LOAD; 554 555 if (!ls_req_list_empty(nbr)) 556 start_ls_req_tx_timer(nbr); 557 558 return (0); 559 } 560 561 int 562 nbr_act_adj_ok(struct nbr *nbr) 563 { 564 if (nbr_adj_ok(nbr)) { 565 if (nbr->state == NBR_STA_2_WAY) 566 return (nbr_act_eval(nbr)); 567 } else { 568 nbr->state = NBR_STA_2_WAY; 569 return (nbr_act_clear_lists(nbr)); 570 } 571 572 return (0); 573 } 574 575 int 576 nbr_act_restart_dd(struct nbr *nbr) 577 { 578 nbr_act_clear_lists(nbr); 579 580 if (!nbr_adj_ok(nbr)) { 581 nbr->state = NBR_STA_2_WAY; 582 return (0); 583 } 584 585 nbr->state = NBR_STA_XSTRT; 586 nbr->dd_master = 1; 587 nbr->dd_seq_num += arc4random() & 0xffff; 588 nbr->dd_pending = 0; 589 590 /* initial db negotiation */ 591 start_db_tx_timer(nbr); 592 593 nbr_start_adj_timer(nbr); 594 595 return (0); 596 } 597 598 int 599 nbr_act_delete(struct nbr *nbr) 600 { 601 struct timeval tv; 602 603 /* clear dr and bdr */ 604 nbr->dr.s_addr = 0; 605 nbr->bdr.s_addr = 0; 606 607 if (nbr == nbr->iface->self) 608 return (0); 609 610 /* stop timers */ 611 nbr_stop_itimer(nbr); 612 613 /* XXX reset crypt_seq_num will allow replay attacks. */ 614 nbr->crypt_seq_num = 0; 615 616 /* schedule kill timer */ 617 timerclear(&tv); 618 tv.tv_sec = DEFAULT_NBR_TMOUT; 619 620 if (evtimer_add(&nbr->inactivity_timer, &tv)) { 621 log_warnx("nbr_act_delete: error scheduling " 622 "neighbor ID %s (%s) for removal", 623 inet_ntoa(nbr->id), nbr->iface->name); 624 } 625 626 return (nbr_act_clear_lists(nbr)); 627 } 628 629 int 630 nbr_act_clear_lists(struct nbr *nbr) 631 { 632 /* stop timers */ 633 stop_db_tx_timer(nbr); 634 stop_ls_req_tx_timer(nbr); 635 636 /* clear lists */ 637 ls_retrans_list_clr(nbr); 638 db_sum_list_clr(nbr); 639 ls_req_list_clr(nbr); 640 641 return (0); 642 } 643 644 int 645 nbr_act_hello_check(struct nbr *nbr) 646 { 647 log_debug("nbr_act_hello_check: neighbor ID %s (%s)", 648 inet_ntoa(nbr->id), nbr->iface->name); 649 650 return (-1); 651 } 652 653 struct ctl_nbr * 654 nbr_to_ctl(struct nbr *nbr) 655 { 656 static struct ctl_nbr nctl; 657 struct timeval tv, now, res; 658 struct lsa_entry *le; 659 660 memcpy(nctl.name, nbr->iface->name, sizeof(nctl.name)); 661 memcpy(&nctl.id, &nbr->id, sizeof(nctl.id)); 662 memcpy(&nctl.addr, &nbr->addr, sizeof(nctl.addr)); 663 memcpy(&nctl.dr, &nbr->dr, sizeof(nctl.dr)); 664 memcpy(&nctl.bdr, &nbr->bdr, sizeof(nctl.bdr)); 665 memcpy(&nctl.area, &nbr->iface->area->id, sizeof(nctl.area)); 666 667 /* this list is 99% of the time empty so that's OK for now */ 668 nctl.db_sum_lst_cnt = 0; 669 TAILQ_FOREACH(le, &nbr->db_sum_list, entry) 670 nctl.db_sum_lst_cnt++; 671 672 nctl.ls_req_lst_cnt = nbr->ls_req_cnt; 673 nctl.ls_retrans_lst_cnt = nbr->ls_ret_cnt; 674 675 nctl.nbr_state = nbr->state; 676 677 /* 678 * We need to trick a bit to show the remote iface state. 679 * The idea is to print DR, BDR or DROther dependent on 680 * the type of the neighbor. 681 */ 682 if (nbr->iface->dr == nbr) 683 nctl.iface_state = IF_STA_DR; 684 else if (nbr->iface->bdr == nbr) 685 nctl.iface_state = IF_STA_BACKUP; 686 else if (nbr->iface->state & IF_STA_MULTI) 687 nctl.iface_state = IF_STA_DROTHER; 688 else 689 nctl.iface_state = nbr->iface->state; 690 691 nctl.state_chng_cnt = nbr->stats.sta_chng; 692 693 nctl.priority = nbr->priority; 694 nctl.options = nbr->options | nbr->capa_options; 695 696 gettimeofday(&now, NULL); 697 if (evtimer_pending(&nbr->inactivity_timer, &tv)) { 698 timersub(&tv, &now, &res); 699 if (nbr->state & NBR_STA_DOWN) 700 nctl.dead_timer = DEFAULT_NBR_TMOUT - res.tv_sec; 701 else 702 nctl.dead_timer = res.tv_sec; 703 } else 704 nctl.dead_timer = 0; 705 706 if (nbr->state == NBR_STA_FULL) { 707 nctl.uptime = now.tv_sec - nbr->uptime; 708 } else 709 nctl.uptime = 0; 710 711 return (&nctl); 712 } 713 714 struct lsa_hdr * 715 lsa_hdr_new(void) 716 { 717 struct lsa_hdr *lsa_hdr = NULL; 718 719 if ((lsa_hdr = calloc(1, sizeof(*lsa_hdr))) == NULL) 720 fatal("lsa_hdr_new"); 721 722 return (lsa_hdr); 723 } 724