vif.c revision 1.10 1 /* $NetBSD: vif.c,v 1.10 2002/07/14 16:30:42 wiz Exp $ */
2
3 /*
4 * The mrouted program is covered by the license in the accompanying file
5 * named "LICENSE". Use of the mrouted program represents acceptance of
6 * the terms and conditions listed in that file.
7 *
8 * The mrouted program is COPYRIGHT 1989 by The Board of Trustees of
9 * Leland Stanford Junior University.
10 */
11
12
13 #include "defs.h"
14 #include <fcntl.h>
15
16 /*
17 * Exported variables.
18 */
19 struct uvif uvifs[MAXVIFS]; /* array of virtual interfaces */
20 vifi_t numvifs; /* number of vifs in use */
21 int vifs_down; /* 1=>some interfaces are down */
22 int phys_vif; /* An enabled vif */
23 int udp_socket; /* Since the honkin' kernel doesn't support */
24 /* ioctls on raw IP sockets, we need a UDP */
25 /* socket as well as our IGMP (raw) socket. */
26 /* How dumb. */
27 int vifs_with_neighbors; /* == 1 if I am a leaf */
28
29 typedef struct {
30 vifi_t vifi;
31 struct listaddr *g;
32 int q_time;
33 } cbk_t;
34
35 /*
36 * Forward declarations.
37 */
38 static void start_vif(vifi_t vifi);
39 static void start_vif2(vifi_t vifi);
40 static void stop_vif(vifi_t vifi);
41 static void age_old_hosts(void);
42 static void send_probe_on_vif(struct uvif *v);
43 static int info_version(char *p);
44 static void DelVif(void *arg);
45 static int SetTimer(vifi_t vifi, struct listaddr *g);
46 static int DeleteTimer(int id);
47 static void SendQuery(void *arg);
48 static int SetQueryTimer(struct listaddr *g, vifi_t vifi, int to_expire,
49 int q_time);
50
51
52 /*
53 * Initialize the virtual interfaces, but do not install
54 * them in the kernel. Start routing on all vifs that are
55 * not down or disabled.
56 */
57 void
58 init_vifs(void)
59 {
60 vifi_t vifi;
61 struct uvif *v;
62 int enabled_vifs, enabled_phyints;
63 extern char *configfilename;
64
65 numvifs = 0;
66 vifs_with_neighbors = 0;
67 vifs_down = FALSE;
68
69 /*
70 * Configure the vifs based on the interface configuration of the
71 * the kernel and the contents of the configuration file.
72 * (Open a UDP socket for ioctl use in the config procedures.)
73 */
74 if ((udp_socket = socket(AF_INET, SOCK_DGRAM, 0)) < 0)
75 log(LOG_ERR, errno, "UDP socket");
76 log(LOG_INFO,0,"Getting vifs from kernel interfaces");
77 config_vifs_from_kernel();
78 log(LOG_INFO,0,"Getting vifs from %s",configfilename);
79 config_vifs_from_file();
80
81 /*
82 * Quit if there are fewer than two enabled vifs.
83 */
84 enabled_vifs = 0;
85 enabled_phyints = 0;
86 phys_vif = -1;
87 for (vifi = 0, v = uvifs; vifi < numvifs; ++vifi, ++v) {
88 if (!(v->uv_flags & VIFF_DISABLED)) {
89 ++enabled_vifs;
90 if (!(v->uv_flags & VIFF_TUNNEL)) {
91 if (phys_vif == -1)
92 phys_vif = vifi;
93 ++enabled_phyints;
94 }
95 }
96 }
97 if (enabled_vifs < 2)
98 log(LOG_ERR, 0, "can't forward: %s",
99 enabled_vifs == 0 ? "no enabled vifs" : "only one enabled vif");
100
101 if (enabled_phyints == 0)
102 log(LOG_WARNING, 0,
103 "no enabled interfaces, forwarding via tunnels only");
104
105 log(LOG_INFO, 0, "Installing vifs in mrouted...");
106 for (vifi = 0, v = uvifs; vifi < numvifs; ++vifi, ++v) {
107 if (!(v->uv_flags & VIFF_DISABLED)) {
108 if (!(v->uv_flags & VIFF_DOWN)) {
109 if (v->uv_flags & VIFF_TUNNEL)
110 log(LOG_INFO, 0, "vif #%d, tunnel %s -> %s", vifi,
111 inet_fmt(v->uv_lcl_addr, s1),
112 inet_fmt(v->uv_rmt_addr, s2));
113 else
114 log(LOG_INFO, 0, "vif #%d, phyint %s", vifi,
115 inet_fmt(v->uv_lcl_addr, s1));
116 start_vif2(vifi);
117 } else log(LOG_INFO, 0,
118 "%s is not yet up; vif #%u not in service",
119 v->uv_name, vifi);
120 }
121 }
122 }
123
124 /*
125 * Start routing on all virtual interfaces that are not down or
126 * administratively disabled.
127 */
128 void
129 init_installvifs(void)
130 {
131 vifi_t vifi;
132 struct uvif *v;
133
134 log(LOG_INFO, 0, "Installing vifs in kernel...");
135 for (vifi = 0, v = uvifs; vifi < numvifs; ++vifi, ++v) {
136 if (!(v->uv_flags & VIFF_DISABLED)) {
137 if (!(v->uv_flags & VIFF_DOWN)) {
138 if (v->uv_flags & VIFF_TUNNEL)
139 log(LOG_INFO, 0, "vif #%d, tunnel %s -> %s", vifi,
140 inet_fmt(v->uv_lcl_addr, s1),
141 inet_fmt(v->uv_rmt_addr, s2));
142 else
143 log(LOG_INFO, 0, "vif #%d, phyint %s", vifi,
144 inet_fmt(v->uv_lcl_addr, s1));
145 k_add_vif(vifi, &uvifs[vifi]);
146 } else log(LOG_INFO, 0,
147 "%s is not yet up; vif #%u not in service",
148 v->uv_name, vifi);
149 }
150 }
151 }
152
153 /*
154 * See if any interfaces have changed from up state to down, or vice versa,
155 * including any non-multicast-capable interfaces that are in use as local
156 * tunnel end-points. Ignore interfaces that have been administratively
157 * disabled.
158 */
159 void
160 check_vif_state(void)
161 {
162 vifi_t vifi;
163 struct uvif *v;
164 struct ifreq ifr;
165
166 vifs_down = FALSE;
167 for (vifi = 0, v = uvifs; vifi < numvifs; ++vifi, ++v) {
168
169 if (v->uv_flags & VIFF_DISABLED) continue;
170
171 strncpy(ifr.ifr_name, v->uv_name, IFNAMSIZ);
172 if (ioctl(udp_socket, SIOCGIFFLAGS, (char *)&ifr) < 0)
173 log(LOG_ERR, errno,
174 "ioctl SIOCGIFFLAGS for %s", ifr.ifr_name);
175
176 if (v->uv_flags & VIFF_DOWN) {
177 if (ifr.ifr_flags & IFF_UP) {
178 v->uv_flags &= ~VIFF_DOWN;
179 start_vif(vifi);
180 log(LOG_INFO, 0,
181 "%s has come up; vif #%u now in service",
182 v->uv_name, vifi);
183 }
184 else vifs_down = TRUE;
185 }
186 else {
187 if (!(ifr.ifr_flags & IFF_UP)) {
188 stop_vif(vifi);
189 v->uv_flags |= VIFF_DOWN;
190 log(LOG_INFO, 0,
191 "%s has gone down; vif #%u taken out of service",
192 v->uv_name, vifi);
193 vifs_down = TRUE;
194 }
195 }
196 }
197 }
198
199 /*
200 * Send a probe message on vif v
201 */
202 static void
203 send_probe_on_vif(struct uvif *v)
204 {
205 char *p;
206 int datalen = 0;
207 struct listaddr *nbr;
208 int i;
209
210 p = send_buf + MIN_IP_HEADER_LEN + IGMP_MINLEN;
211
212 for (i = 0; i < 4; i++)
213 *p++ = ((char *)&(dvmrp_genid))[i];
214 datalen += 4;
215
216 /*
217 * add the neighbor list on the interface to the message
218 */
219 nbr = v->uv_neighbors;
220
221 while (nbr) {
222 for (i = 0; i < 4; i++)
223 *p++ = ((char *)&nbr->al_addr)[i];
224 datalen +=4;
225 nbr = nbr->al_next;
226 }
227
228 send_igmp(v->uv_lcl_addr,
229 (v->uv_flags & VIFF_TUNNEL) ? v->uv_rmt_addr
230 : dvmrp_group,
231 IGMP_DVMRP, DVMRP_PROBE,
232 htonl(MROUTED_LEVEL |
233 ((v->uv_flags & VIFF_LEAF) ? 0 : LEAF_FLAGS)),
234 datalen);
235 }
236
237 /*
238 * Add a vifi to the kernel and start routing on it.
239 */
240 static void
241 start_vif(vifi_t vifi)
242 {
243 /*
244 * Install the interface in the kernel's vif structure.
245 */
246 k_add_vif(vifi, &uvifs[vifi]);
247
248 start_vif2(vifi);
249 }
250
251 /*
252 * Add a vifi to all the user-level data structures but don't add
253 * it to the kernel yet.
254 */
255 static void
256 start_vif2(vifi_t vifi)
257 {
258 struct uvif *v;
259 u_int32_t src;
260 struct phaddr *p;
261
262 v = &uvifs[vifi];
263 src = v->uv_lcl_addr;
264
265 /*
266 * Update the existing route entries to take into account the new vif.
267 */
268 add_vif_to_routes(vifi);
269
270 if (!(v->uv_flags & VIFF_TUNNEL)) {
271 /*
272 * Join the DVMRP multicast group on the interface.
273 * (This is not strictly necessary, since the kernel promiscuously
274 * receives IGMP packets addressed to ANY IP multicast group while
275 * multicast routing is enabled. However, joining the group allows
276 * this host to receive non-IGMP packets as well, such as 'pings'.)
277 */
278 k_join(dvmrp_group, src);
279
280 /*
281 * Join the ALL-ROUTERS multicast group on the interface.
282 * This allows mtrace requests to loop back if they are run
283 * on the multicast router.
284 */
285 k_join(allrtrs_group, src);
286
287 /*
288 * Install an entry in the routing table for the subnet to which
289 * the interface is connected.
290 */
291 start_route_updates();
292 update_route(v->uv_subnet, v->uv_subnetmask, 0, 0, vifi);
293 for (p = v->uv_addrs; p; p = p->pa_next) {
294 start_route_updates();
295 update_route(p->pa_subnet, p->pa_subnetmask, 0, 0, vifi);
296 }
297
298 /*
299 * Until neighbors are discovered, assume responsibility for sending
300 * periodic group membership queries to the subnet. Send the first
301 * query.
302 */
303 v->uv_flags |= VIFF_QUERIER;
304 send_igmp(src, allhosts_group, IGMP_HOST_MEMBERSHIP_QUERY,
305 (v->uv_flags & VIFF_IGMPV1) ? 0 :
306 IGMP_MAX_HOST_REPORT_DELAY * IGMP_TIMER_SCALE, 0, 0);
307 age_old_hosts();
308 }
309
310 v->uv_leaf_timer = LEAF_CONFIRMATION_TIME;
311
312 /*
313 * Send a probe via the new vif to look for neighbors.
314 */
315 send_probe_on_vif(v);
316 }
317
318 /*
319 * Stop routing on the specified virtual interface.
320 */
321 static void
322 stop_vif(vifi_t vifi)
323 {
324 struct uvif *v;
325 struct listaddr *a;
326 struct phaddr *p;
327
328 v = &uvifs[vifi];
329
330 if (!(v->uv_flags & VIFF_TUNNEL)) {
331 /*
332 * Depart from the DVMRP multicast group on the interface.
333 */
334 k_leave(dvmrp_group, v->uv_lcl_addr);
335
336 /*
337 * Depart from the ALL-ROUTERS multicast group on the interface.
338 */
339 k_leave(allrtrs_group, v->uv_lcl_addr);
340
341 /*
342 * Update the entry in the routing table for the subnet to which
343 * the interface is connected, to take into account the interface
344 * failure.
345 */
346 start_route_updates();
347 update_route(v->uv_subnet, v->uv_subnetmask, UNREACHABLE, 0, vifi);
348 for (p = v->uv_addrs; p; p = p->pa_next) {
349 start_route_updates();
350 update_route(p->pa_subnet, p->pa_subnetmask, UNREACHABLE, 0, vifi);
351 }
352
353 /*
354 * Discard all group addresses. (No need to tell kernel;
355 * the k_del_vif() call, below, will clean up kernel state.)
356 */
357 while (v->uv_groups != NULL) {
358 a = v->uv_groups;
359 v->uv_groups = a->al_next;
360 free((char *)a);
361 }
362
363 v->uv_flags &= ~VIFF_QUERIER;
364 }
365
366 /*
367 * Update the existing route entries to take into account the vif failure.
368 */
369 delete_vif_from_routes(vifi);
370
371 /*
372 * Delete the interface from the kernel's vif structure.
373 */
374 k_del_vif(vifi);
375
376 /*
377 * Discard all neighbor addresses.
378 */
379 if (v->uv_neighbors)
380 vifs_with_neighbors--;
381
382 while (v->uv_neighbors != NULL) {
383 a = v->uv_neighbors;
384 v->uv_neighbors = a->al_next;
385 free((char *)a);
386 }
387 }
388
389
390 /*
391 * stop routing on all vifs
392 */
393 void
394 stop_all_vifs(void)
395 {
396 vifi_t vifi;
397 struct uvif *v;
398 struct listaddr *a;
399 struct vif_acl *acl;
400
401 for (vifi = 0; vifi < numvifs; vifi++) {
402 v = &uvifs[vifi];
403 while (v->uv_groups != NULL) {
404 a = v->uv_groups;
405 v->uv_groups = a->al_next;
406 free((char *)a);
407 }
408 while (v->uv_neighbors != NULL) {
409 a = v->uv_neighbors;
410 v->uv_neighbors = a->al_next;
411 free((char *)a);
412 }
413 while (v->uv_acl != NULL) {
414 acl = v->uv_acl;
415 v->uv_acl = acl->acl_next;
416 free((char *)acl);
417 }
418 }
419 }
420
421
422 /*
423 * Find the virtual interface from which an incoming packet arrived,
424 * based on the packet's source and destination IP addresses.
425 */
426 vifi_t
427 find_vif(u_int32_t src, u_int32_t dst)
428 {
429 vifi_t vifi;
430 struct uvif *v;
431 struct phaddr *p;
432
433 for (vifi = 0, v = uvifs; vifi < numvifs; ++vifi, ++v) {
434 if (!(v->uv_flags & (VIFF_DOWN|VIFF_DISABLED))) {
435 if (v->uv_flags & VIFF_TUNNEL) {
436 if (src == v->uv_rmt_addr && dst == v->uv_lcl_addr)
437 return(vifi);
438 }
439 else {
440 if ((src & v->uv_subnetmask) == v->uv_subnet &&
441 ((v->uv_subnetmask == 0xffffffff) ||
442 (src != v->uv_subnetbcast)))
443 return(vifi);
444 for (p=v->uv_addrs; p; p=p->pa_next) {
445 if ((src & p->pa_subnetmask) == p->pa_subnet &&
446 ((p->pa_subnetmask == 0xffffffff) ||
447 (src != p->pa_subnetbcast)))
448 return(vifi);
449 }
450 }
451 }
452 }
453 return (NO_VIF);
454 }
455
456 static void
457 age_old_hosts(void)
458 {
459 vifi_t vifi;
460 struct uvif *v;
461 struct listaddr *g;
462
463 /*
464 * Decrement the old-hosts-present timer for each
465 * active group on each vif.
466 */
467 for (vifi = 0, v = uvifs; vifi < numvifs; vifi++, v++)
468 for (g = v->uv_groups; g != NULL; g = g->al_next)
469 if (g->al_old)
470 g->al_old--;
471 }
472
473
474 /*
475 * Send group membership queries to all subnets for which I am querier.
476 */
477 void
478 query_groups(void)
479 {
480 vifi_t vifi;
481 struct uvif *v;
482
483 for (vifi = 0, v = uvifs; vifi < numvifs; vifi++, v++) {
484 if (v->uv_flags & VIFF_QUERIER) {
485 send_igmp(v->uv_lcl_addr, allhosts_group,
486 IGMP_HOST_MEMBERSHIP_QUERY,
487 (v->uv_flags & VIFF_IGMPV1) ? 0 :
488 IGMP_MAX_HOST_REPORT_DELAY * IGMP_TIMER_SCALE, 0, 0);
489 }
490 }
491 age_old_hosts();
492 }
493
494 /*
495 * Process an incoming host membership query
496 */
497 void
498 accept_membership_query(u_int32_t src, u_int32_t dst, u_int32_t group, int tmo)
499 {
500 vifi_t vifi;
501 struct uvif *v;
502
503 if ((vifi = find_vif(src, dst)) == NO_VIF ||
504 (uvifs[vifi].uv_flags & VIFF_TUNNEL)) {
505 log(LOG_INFO, 0,
506 "ignoring group membership query from non-adjacent host %s",
507 inet_fmt(src, s1));
508 return;
509 }
510
511 v = &uvifs[vifi];
512
513 /*
514 * If we consider ourselves the querier for this vif, but hear a
515 * query from a router with a lower IP address, yield to them.
516 *
517 * This is done here as well as in the neighbor discovery in case
518 * there is a querier that doesn't speak DVMRP.
519 *
520 * XXX If this neighbor doesn't speak DVMRP, then we need to create
521 * some neighbor state for him so that we can time him out!
522 */
523 if ((v->uv_flags & VIFF_QUERIER) &&
524 (ntohl(src) < ntohl(v->uv_lcl_addr))) {
525 v->uv_flags &= ~VIFF_QUERIER;
526
527 }
528 }
529
530 /*
531 * Process an incoming group membership report.
532 */
533 void
534 accept_group_report(u_int32_t src, u_int32_t dst, u_int32_t group, int r_type)
535 {
536 vifi_t vifi;
537 struct uvif *v;
538 struct listaddr *g;
539
540 if ((vifi = find_vif(src, dst)) == NO_VIF ||
541 (uvifs[vifi].uv_flags & VIFF_TUNNEL)) {
542 log(LOG_INFO, 0,
543 "ignoring group membership report from non-adjacent host %s",
544 inet_fmt(src, s1));
545 return;
546 }
547
548 v = &uvifs[vifi];
549
550 /*
551 * Look for the group in our group list; if found, reset its timer.
552 */
553 for (g = v->uv_groups; g != NULL; g = g->al_next) {
554 if (group == g->al_addr) {
555 if (r_type == IGMP_v1_HOST_MEMBERSHIP_REPORT)
556 g->al_old = OLD_AGE_THRESHOLD;
557 #ifdef SNMP
558 g->al_genid = src;
559 #endif /* SNMP */
560
561 /** delete old timers, set a timer for expiration **/
562 g->al_timer = GROUP_EXPIRE_TIME;
563 if (g->al_query)
564 g->al_query = DeleteTimer(g->al_query);
565 if (g->al_timerid)
566 g->al_timerid = DeleteTimer(g->al_timerid);
567 g->al_timerid = SetTimer(vifi, g);
568 break;
569 }
570 }
571
572 /*
573 * If not found, add it to the list and update kernel cache.
574 */
575 if (g == NULL) {
576 g = (struct listaddr *)malloc(sizeof(struct listaddr));
577 if (g == NULL)
578 log(LOG_ERR, 0, "ran out of memory"); /* fatal */
579
580 g->al_addr = group;
581 if (r_type == IGMP_v2_HOST_MEMBERSHIP_REPORT)
582 g->al_old = 0;
583 else
584 g->al_old = OLD_AGE_THRESHOLD;
585 #ifdef SNMP
586 g->al_genid = src;
587 #endif
588
589 /** set a timer for expiration **/
590 g->al_query = 0;
591 g->al_timer = GROUP_EXPIRE_TIME;
592 time(&g->al_ctime);
593 g->al_timerid = SetTimer(vifi, g);
594 g->al_next = v->uv_groups;
595 v->uv_groups = g;
596
597 update_lclgrp(vifi, group);
598 }
599
600 /*
601 * Check if a graft is necessary for this group
602 */
603 chkgrp_graft(vifi, group);
604 }
605
606
607 void
608 accept_leave_message(u_int32_t src, u_int32_t dst, u_int32_t group)
609 {
610 vifi_t vifi;
611 struct uvif *v;
612 struct listaddr *g;
613
614 if ((vifi = find_vif(src, dst)) == NO_VIF ||
615 (uvifs[vifi].uv_flags & VIFF_TUNNEL)) {
616 log(LOG_INFO, 0,
617 "ignoring group leave report from non-adjacent host %s",
618 inet_fmt(src, s1));
619 return;
620 }
621
622 v = &uvifs[vifi];
623
624 if (!(v->uv_flags & VIFF_QUERIER) || (v->uv_flags & VIFF_IGMPV1))
625 return;
626
627 /*
628 * Look for the group in our group list in order to set up a short-timeout
629 * query.
630 */
631 for (g = v->uv_groups; g != NULL; g = g->al_next) {
632 if (group == g->al_addr) {
633 log(LOG_DEBUG, 0,
634 "[vif.c, _accept_leave_message] %d %ld\n",
635 g->al_old, g->al_query);
636
637 /* Ignore the leave message if there are old hosts present */
638 if (g->al_old)
639 return;
640
641 /* still waiting for a reply to a query, ignore the leave */
642 if (g->al_query)
643 return;
644
645 /** delete old timer set a timer for expiration **/
646 if (g->al_timerid)
647 g->al_timerid = DeleteTimer(g->al_timerid);
648
649 /** send a group specific querry **/
650 g->al_timer = LEAVE_EXPIRE_TIME;
651 send_igmp(v->uv_lcl_addr, g->al_addr,
652 IGMP_HOST_MEMBERSHIP_QUERY,
653 LEAVE_EXPIRE_TIME / 3 * IGMP_TIMER_SCALE,
654 g->al_addr, 0);
655 g->al_query = SetQueryTimer(g, vifi, g->al_timer / 3,
656 LEAVE_EXPIRE_TIME / 3 * IGMP_TIMER_SCALE);
657 g->al_timerid = SetTimer(vifi, g);
658 break;
659 }
660 }
661 }
662
663
664 /*
665 * Send a periodic probe on all vifs.
666 * Useful to determine one-way interfaces.
667 * Detect neighbor loss faster.
668 */
669 void
670 probe_for_neighbors(void)
671 {
672 vifi_t vifi;
673 struct uvif *v;
674
675 for (vifi = 0, v = uvifs; vifi < numvifs; vifi++, v++) {
676 if (!(v->uv_flags & (VIFF_DOWN|VIFF_DISABLED))) {
677 send_probe_on_vif(v);
678 }
679 }
680 }
681
682
683 /*
684 * Send a list of all of our neighbors to the requestor, `src'.
685 */
686 void
687 accept_neighbor_request(u_int32_t src, u_int32_t dst)
688 {
689 vifi_t vifi;
690 struct uvif *v;
691 u_char *p, *ncount;
692 struct listaddr *la;
693 int datalen;
694 u_int32_t temp_addr, us, them = src;
695
696 /* Determine which of our addresses to use as the source of our response
697 * to this query.
698 */
699 if (IN_MULTICAST(ntohl(dst))) { /* query sent to a multicast group */
700 int udp; /* find best interface to reply on */
701 struct sockaddr_in addr;
702 int addrlen = sizeof(addr);
703
704 memset(&addr, 0, sizeof(addr));
705 addr.sin_family = AF_INET;
706 #if (defined(BSD) && (BSD >= 199103))
707 addr.sin_len = sizeof addr;
708 #endif
709 addr.sin_addr.s_addr = dst;
710 addr.sin_port = htons(2000); /* any port over 1024 will do... */
711 if ((udp = socket(AF_INET, SOCK_DGRAM, 0)) < 0
712 || connect(udp, (struct sockaddr *) &addr, sizeof(addr)) < 0
713 || getsockname(udp, (struct sockaddr *) &addr, &addrlen) < 0) {
714 log(LOG_WARNING, errno, "Determining local address");
715 close(udp);
716 return;
717 }
718 close(udp);
719 us = addr.sin_addr.s_addr;
720 } else /* query sent to us alone */
721 us = dst;
722
723 #define PUT_ADDR(a) temp_addr = ntohl(a); \
724 *p++ = temp_addr >> 24; \
725 *p++ = (temp_addr >> 16) & 0xFF; \
726 *p++ = (temp_addr >> 8) & 0xFF; \
727 *p++ = temp_addr & 0xFF;
728
729 p = (u_char *) (send_buf + MIN_IP_HEADER_LEN + IGMP_MINLEN);
730 datalen = 0;
731
732 for (vifi = 0, v = uvifs; vifi < numvifs; vifi++, v++) {
733 if (v->uv_flags & VIFF_DISABLED)
734 continue;
735
736 ncount = 0;
737
738 for (la = v->uv_neighbors; la; la = la->al_next) {
739
740 /* Make sure that there's room for this neighbor... */
741 if (datalen + (ncount == 0 ? 4 + 3 + 4 : 4) > MAX_DVMRP_DATA_LEN) {
742 send_igmp(us, them, IGMP_DVMRP, DVMRP_NEIGHBORS,
743 htonl(MROUTED_LEVEL), datalen);
744 p = (u_char *) (send_buf + MIN_IP_HEADER_LEN + IGMP_MINLEN);
745 datalen = 0;
746 ncount = 0;
747 }
748
749 /* Put out the header for this neighbor list... */
750 if (ncount == 0) {
751 PUT_ADDR(v->uv_lcl_addr);
752 *p++ = v->uv_metric;
753 *p++ = v->uv_threshold;
754 ncount = p;
755 *p++ = 0;
756 datalen += 4 + 3;
757 }
758
759 PUT_ADDR(la->al_addr);
760 datalen += 4;
761 (*ncount)++;
762 }
763 }
764
765 if (datalen != 0)
766 send_igmp(us, them, IGMP_DVMRP, DVMRP_NEIGHBORS, htonl(MROUTED_LEVEL),
767 datalen);
768 }
769
770 /*
771 * Send a list of all of our neighbors to the requestor, `src'.
772 */
773 void
774 accept_neighbor_request2(u_int32_t src, u_int32_t dst)
775 {
776 vifi_t vifi;
777 struct uvif *v;
778 u_char *p, *ncount;
779 struct listaddr *la;
780 int datalen;
781 u_int32_t us, them = src;
782
783 /* Determine which of our addresses to use as the source of our response
784 * to this query.
785 */
786 if (IN_MULTICAST(ntohl(dst))) { /* query sent to a multicast group */
787 int udp; /* find best interface to reply on */
788 struct sockaddr_in addr;
789 int addrlen = sizeof(addr);
790
791 memset(&addr, 0, sizeof(addr));
792 addr.sin_family = AF_INET;
793 #if (defined(BSD) && (BSD >= 199103))
794 addr.sin_len = sizeof addr;
795 #endif
796 addr.sin_addr.s_addr = dst;
797 addr.sin_port = htons(2000); /* any port over 1024 will do... */
798 if ((udp = socket(AF_INET, SOCK_DGRAM, 0)) < 0
799 || connect(udp, (struct sockaddr *) &addr, sizeof(addr)) < 0
800 || getsockname(udp, (struct sockaddr *) &addr, &addrlen) < 0) {
801 log(LOG_WARNING, errno, "Determining local address");
802 close(udp);
803 return;
804 }
805 close(udp);
806 us = addr.sin_addr.s_addr;
807 } else /* query sent to us alone */
808 us = dst;
809
810 p = (u_char *) (send_buf + MIN_IP_HEADER_LEN + IGMP_MINLEN);
811 datalen = 0;
812
813 for (vifi = 0, v = uvifs; vifi < numvifs; vifi++, v++) {
814 u_short vflags = v->uv_flags;
815 u_char rflags = 0;
816 if (vflags & VIFF_TUNNEL)
817 rflags |= DVMRP_NF_TUNNEL;
818 if (vflags & VIFF_SRCRT)
819 rflags |= DVMRP_NF_SRCRT;
820 if (vflags & VIFF_DOWN)
821 rflags |= DVMRP_NF_DOWN;
822 if (vflags & VIFF_DISABLED)
823 rflags |= DVMRP_NF_DISABLED;
824 if (vflags & VIFF_QUERIER)
825 rflags |= DVMRP_NF_QUERIER;
826 if (vflags & VIFF_LEAF)
827 rflags |= DVMRP_NF_LEAF;
828 ncount = 0;
829 la = v->uv_neighbors;
830 if (la == NULL) {
831 /*
832 * include down & disabled interfaces and interfaces on
833 * leaf nets.
834 */
835 if (rflags & DVMRP_NF_TUNNEL)
836 rflags |= DVMRP_NF_DOWN;
837 if (datalen > MAX_DVMRP_DATA_LEN - 12) {
838 send_igmp(us, them, IGMP_DVMRP, DVMRP_NEIGHBORS2,
839 htonl(MROUTED_LEVEL), datalen);
840 p = (u_char *) (send_buf + MIN_IP_HEADER_LEN + IGMP_MINLEN);
841 datalen = 0;
842 }
843 *(u_int*)p = v->uv_lcl_addr;
844 p += 4;
845 *p++ = v->uv_metric;
846 *p++ = v->uv_threshold;
847 *p++ = rflags;
848 *p++ = 1;
849 *(u_int*)p = v->uv_rmt_addr;
850 p += 4;
851 datalen += 12;
852 } else {
853 for ( ; la; la = la->al_next) {
854 /* Make sure that there's room for this neighbor... */
855 if (datalen + (ncount == 0 ? 4+4+4 : 4) > MAX_DVMRP_DATA_LEN) {
856 send_igmp(us, them, IGMP_DVMRP, DVMRP_NEIGHBORS2,
857 htonl(MROUTED_LEVEL), datalen);
858 p = (u_char *) (send_buf + MIN_IP_HEADER_LEN + IGMP_MINLEN);
859 datalen = 0;
860 ncount = 0;
861 }
862 /* Put out the header for this neighbor list... */
863 if (ncount == 0) {
864 *(u_int*)p = v->uv_lcl_addr;
865 p += 4;
866 *p++ = v->uv_metric;
867 *p++ = v->uv_threshold;
868 *p++ = rflags;
869 ncount = p;
870 *p++ = 0;
871 datalen += 4 + 4;
872 }
873 *(u_int*)p = la->al_addr;
874 p += 4;
875 datalen += 4;
876 (*ncount)++;
877 }
878 }
879 }
880 if (datalen != 0)
881 send_igmp(us, them, IGMP_DVMRP, DVMRP_NEIGHBORS2, htonl(MROUTED_LEVEL),
882 datalen);
883 }
884
885 void
886 accept_info_request(u_int32_t src, u_int32_t dst, u_char *p, int datalen)
887 {
888 u_char *q;
889 int len;
890 int outlen = 0;
891
892 q = (u_char *) (send_buf + MIN_IP_HEADER_LEN + IGMP_MINLEN);
893
894 /* To be general, this must deal properly with breaking up over-sized
895 * packets. That implies passing a length to each function, and
896 * allowing each function to request to be called again. Right now,
897 * we're only implementing the one thing we are positive will fit into
898 * a single packet, so we wimp out.
899 */
900 while (datalen > 0) {
901 len = 0;
902 switch (*p) {
903 case DVMRP_INFO_VERSION:
904 len = info_version(q);
905 break;
906
907 case DVMRP_INFO_NEIGHBORS:
908 default:
909 log(LOG_INFO, 0, "ignoring unknown info type %d", *p);
910 break;
911 }
912 *(q+1) = len++;
913 outlen += len * 4;
914 q += len * 4;
915 len = (*(p+1) + 1) * 4;
916 p += len;
917 datalen -= len;
918 }
919
920 if (outlen != 0)
921 send_igmp(INADDR_ANY, src, IGMP_DVMRP, DVMRP_INFO_REPLY,
922 htonl(MROUTED_LEVEL), outlen);
923 }
924
925 /*
926 * Information response -- return version string
927 */
928 static int
929 info_version(char *p)
930 {
931 int len;
932 extern char versionstring[];
933
934 *p++ = DVMRP_INFO_VERSION;
935 p++; /* skip over length */
936 *p++ = 0; /* zero out */
937 *p++ = 0; /* reserved fields */
938 strcpy(p, versionstring); /* XXX strncpy!!! */
939
940 len = strlen(versionstring);
941 return ((len + 3) / 4);
942 }
943
944 /*
945 * Process an incoming neighbor-list message.
946 */
947 void
948 accept_neighbors(u_int32_t src, u_int32_t dst, u_char *p, int datalen,
949 u_int32_t level)
950 {
951 log(LOG_INFO, 0, "ignoring spurious DVMRP neighbor list from %s to %s",
952 inet_fmt(src, s1), inet_fmt(dst, s2));
953 }
954
955
956 /*
957 * Process an incoming neighbor-list message.
958 */
959 void
960 accept_neighbors2(u_int32_t src, u_int32_t dst, u_char *p, int datalen,
961 u_int32_t level)
962 {
963 log(LOG_INFO, 0, "ignoring spurious DVMRP neighbor list2 from %s to %s",
964 inet_fmt(src, s1), inet_fmt(dst, s2));
965 }
966
967 /*
968 * Process an incoming info reply message.
969 */
970 void
971 accept_info_reply(u_int32_t src, u_int32_t dst, u_char *p, int datalen)
972 {
973 log(LOG_INFO, 0, "ignoring spurious DVMRP info reply from %s to %s",
974 inet_fmt(src, s1), inet_fmt(dst, s2));
975 }
976
977
978 /*
979 * Update the neighbor entry for neighbor 'addr' on vif 'vifi'.
980 * 'msgtype' is the type of DVMRP message received from the neighbor.
981 * Return TRUE if 'addr' is a valid neighbor, FALSE otherwise.
982 */
983 int
984 update_neighbor(vifi_t vifi, u_int32_t addr, int msgtype, char *p, int datalen, u_int32_t level)
985 {
986 struct uvif *v;
987 struct listaddr *n;
988 u_int32_t genid = 0;
989 u_int32_t router;
990 u_int32_t send_tables = 0;
991 int do_reset = FALSE;
992 int nflags;
993
994 v = &uvifs[vifi];
995 nflags = (level >> 16) & 0xff;
996
997 /*
998 * Confirm that 'addr' is a valid neighbor address on vif 'vifi'.
999 * IT IS ASSUMED that this was preceded by a call to find_vif(), which
1000 * checks that 'addr' is either a valid remote tunnel endpoint or a
1001 * non-broadcast address belonging to a directly-connected subnet.
1002 * Therefore, here we check only that 'addr' is not our own address
1003 * (due to an impostor or erroneous loopback) or an address of the form
1004 * {subnet,0} ("the unknown host"). These checks are not performed in
1005 * find_vif() because those types of address are acceptable for some
1006 * types of IGMP message (such as group membership reports).
1007 */
1008 if (!(v->uv_flags & VIFF_TUNNEL) &&
1009 (addr == v->uv_lcl_addr ||
1010 addr == v->uv_subnet )) {
1011 log(LOG_WARNING, 0,
1012 "received DVMRP message from 'the unknown host' or self: %s",
1013 inet_fmt(addr, s1));
1014 return (FALSE);
1015 }
1016
1017 /*
1018 * Look for addr in list of neighbors.
1019 */
1020 for (n = v->uv_neighbors; n != NULL; n = n->al_next) {
1021 if (addr == n->al_addr) {
1022 break;
1023 }
1024 }
1025
1026 /*
1027 * Found it. Reset its timer, and check for a version change
1028 */
1029 if (n) {
1030 n->al_timer = 0;
1031
1032 /*
1033 * update the neighbors version and protocol number
1034 * if changed => router went down and came up,
1035 * so take action immediately.
1036 */
1037 if ((n->al_pv != (level & 0xff)) ||
1038 (n->al_mv != ((level >> 8) & 0xff))) {
1039
1040 do_reset = TRUE;
1041 log(LOG_DEBUG, 0,
1042 "version change neighbor %s [old:%d.%d, new:%d.%d]",
1043 inet_fmt(addr, s1),
1044 n->al_pv, n->al_mv, level&0xff, (level >> 8) & 0xff);
1045
1046 n->al_pv = level & 0xff;
1047 n->al_mv = (level >> 8) & 0xff;
1048 }
1049 } else {
1050 /*
1051 * If not found, add it to the list. If the neighbor has a lower
1052 * IP address than me, yield querier duties to it.
1053 */
1054 log(LOG_DEBUG, 0, "New neighbor %s on vif %d v%d.%d nf 0x%02x",
1055 inet_fmt(addr, s1), vifi, level & 0xff, (level >> 8) & 0xff,
1056 (level >> 16) & 0xff);
1057
1058 n = (struct listaddr *)malloc(sizeof(struct listaddr));
1059 if (n == NULL)
1060 log(LOG_ERR, 0, "ran out of memory"); /* fatal */
1061
1062 n->al_addr = addr;
1063 n->al_pv = level & 0xff;
1064 n->al_mv = (level >> 8) & 0xff;
1065 n->al_genid = 0;
1066
1067 time(&n->al_ctime);
1068 n->al_timer = 0;
1069 n->al_next = v->uv_neighbors;
1070
1071 /*
1072 * If we thought that we had no neighbors on this vif, send a route
1073 * report to the vif. If this is just a new neighbor on the same
1074 * vif, send the route report just to the new neighbor.
1075 */
1076 if (v->uv_neighbors == NULL) {
1077 send_tables = (v->uv_flags & VIFF_TUNNEL) ? addr : dvmrp_group;
1078 vifs_with_neighbors++;
1079 } else {
1080 send_tables = addr;
1081 }
1082
1083 v->uv_neighbors = n;
1084
1085 if (!(v->uv_flags & VIFF_TUNNEL) &&
1086 ntohl(addr) < ntohl(v->uv_lcl_addr))
1087 v->uv_flags &= ~VIFF_QUERIER;
1088 }
1089
1090 /*
1091 * Check if the router gen-ids are the same.
1092 * Need to reset the prune state of the router if not.
1093 * Also check for one-way interfaces by seeing if we are in our
1094 * neighbor's list of known routers.
1095 */
1096 if (msgtype == DVMRP_PROBE) {
1097
1098 /* Check genid neighbor flag. Also check version number; 3.3 and
1099 * 3.4 didn't set this flag. */
1100 if ((((level >> 16) & 0xff) & NF_GENID) ||
1101 (((level & 0xff) == 3) && (((level >> 8) & 0xff) > 2))) {
1102
1103 int i;
1104
1105 if (datalen < 4) {
1106 log(LOG_WARNING, 0,
1107 "received truncated probe message from %s (len %d)",
1108 inet_fmt(addr, s1), datalen);
1109 return (FALSE);
1110 }
1111
1112 for (i = 0; i < 4; i++)
1113 ((char *)&genid)[i] = *p++;
1114 datalen -= 4;
1115
1116 if (n->al_genid == 0)
1117 n->al_genid = genid;
1118 else if (n->al_genid != genid) {
1119 log(LOG_DEBUG, 0,
1120 "new genid neigbor %s on vif %d [old:%x, new:%x]",
1121 inet_fmt(addr, s1), vifi, n->al_genid, genid);
1122
1123 n->al_genid = genid;
1124 do_reset = TRUE;
1125 }
1126
1127 /*
1128 * loop through router list and check for one-way ifs.
1129 */
1130
1131 v->uv_flags |= VIFF_ONEWAY;
1132
1133 while (datalen > 0) {
1134 if (datalen < 4) {
1135 log(LOG_WARNING, 0,
1136 "received truncated probe message from %s (len %d)",
1137 inet_fmt(addr, s1), datalen);
1138 return (FALSE);
1139 }
1140 for (i = 0; i < 4; i++)
1141 ((char *)&router)[i] = *p++;
1142 datalen -= 4;
1143 if (router == v->uv_lcl_addr) {
1144 v->uv_flags &= ~VIFF_ONEWAY;
1145 break;
1146 }
1147 }
1148 }
1149 }
1150 if (n->al_flags != nflags) {
1151 n->al_flags = nflags;
1152
1153 if (n->al_flags & NF_LEAF) {
1154 /*XXX If we have non-leaf neighbors then we know we shouldn't
1155 * mark this vif as a leaf. For now we just count on other
1156 * probes and/or reports resetting the timer. */
1157 if (!v->uv_leaf_timer)
1158 v->uv_leaf_timer = LEAF_CONFIRMATION_TIME;
1159 } else {
1160 /* If we get a leaf to non-leaf transition, we *must* update
1161 * the routing table. */
1162 if (v->uv_flags & VIFF_LEAF && send_tables == 0)
1163 send_tables = addr;
1164 v->uv_flags &= ~VIFF_LEAF;
1165 v->uv_leaf_timer = 0;
1166 }
1167 }
1168 if (do_reset) {
1169 reset_neighbor_state(vifi, addr);
1170 if (!send_tables)
1171 send_tables = addr;
1172 }
1173 if (send_tables)
1174 report(ALL_ROUTES, vifi, send_tables);
1175
1176 return (TRUE);
1177 }
1178
1179
1180 /*
1181 * On every timer interrupt, advance the timer in each neighbor and
1182 * group entry on every vif.
1183 */
1184 void
1185 age_vifs(void)
1186 {
1187 vifi_t vifi;
1188 struct uvif *v;
1189 struct listaddr *a, *prev_a, *n;
1190 u_int32_t addr;
1191
1192 for (vifi = 0, v = uvifs; vifi < numvifs; ++vifi, ++v ) {
1193 if (v->uv_leaf_timer && (v->uv_leaf_timer -= TIMER_INTERVAL == 0)) {
1194 v->uv_flags |= VIFF_LEAF;
1195 }
1196
1197 for (prev_a = (struct listaddr *)&(v->uv_neighbors),
1198 a = v->uv_neighbors;
1199 a != NULL;
1200 prev_a = a, a = a->al_next) {
1201
1202 if ((a->al_timer += TIMER_INTERVAL) < NEIGHBOR_EXPIRE_TIME)
1203 continue;
1204
1205 /*
1206 * Neighbor has expired; delete it from the neighbor list,
1207 * delete it from the 'dominants' and 'subordinates arrays of
1208 * any route entries and assume querier duties unless there is
1209 * another neighbor with a lower IP address than mine.
1210 */
1211 addr = a->al_addr;
1212 prev_a->al_next = a->al_next;
1213 free((char *)a);
1214 a = prev_a;
1215
1216 delete_neighbor_from_routes(addr, vifi);
1217
1218 if (v->uv_neighbors == NULL)
1219 vifs_with_neighbors--;
1220
1221 v->uv_leaf_timer = LEAF_CONFIRMATION_TIME;
1222
1223 if (!(v->uv_flags & VIFF_TUNNEL)) {
1224 v->uv_flags |= VIFF_QUERIER;
1225 for (n = v->uv_neighbors; n != NULL; n = n->al_next) {
1226 if (ntohl(n->al_addr) < ntohl(v->uv_lcl_addr)) {
1227 v->uv_flags &= ~VIFF_QUERIER;
1228 }
1229 if (!(n->al_flags & NF_LEAF)) {
1230 v->uv_leaf_timer = 0;
1231 }
1232 }
1233 }
1234 }
1235 }
1236 }
1237
1238 /*
1239 * Returns the neighbor info struct for a given neighbor
1240 */
1241 struct listaddr *
1242 neighbor_info(vifi_t vifi, u_int32_t addr)
1243 {
1244 struct listaddr *u;
1245
1246 for (u = uvifs[vifi].uv_neighbors; u; u = u->al_next)
1247 if (u->al_addr == addr)
1248 return u;
1249
1250 return NULL;
1251 }
1252
1253 /*
1254 * Print the contents of the uvifs array on file 'fp'.
1255 */
1256 void
1257 dump_vifs(FILE *fp)
1258 {
1259 vifi_t vifi;
1260 struct uvif *v;
1261 struct listaddr *a;
1262 struct phaddr *p;
1263 struct sioc_vif_req v_req;
1264
1265 fprintf(fp, "vifs_with_neighbors = %d\n", vifs_with_neighbors);
1266
1267 if (vifs_with_neighbors == 1)
1268 fprintf(fp,"[This host is a leaf]\n\n");
1269
1270 fprintf(fp,
1271 "\nVirtual Interface Table\n%s",
1272 "Vif Name Local-Address ");
1273 fprintf(fp,
1274 "M Thr Rate Flags\n");
1275
1276 for (vifi = 0, v = uvifs; vifi < numvifs; vifi++, v++) {
1277
1278 fprintf(fp, "%2u %6s %-15s %6s: %-18s %2u %3u %5u ",
1279 vifi,
1280 v->uv_name,
1281 inet_fmt(v->uv_lcl_addr, s1),
1282 (v->uv_flags & VIFF_TUNNEL) ?
1283 "tunnel":
1284 "subnet",
1285 (v->uv_flags & VIFF_TUNNEL) ?
1286 inet_fmt(v->uv_rmt_addr, s2) :
1287 inet_fmts(v->uv_subnet, v->uv_subnetmask, s3),
1288 v->uv_metric,
1289 v->uv_threshold,
1290 v->uv_rate_limit);
1291
1292 if (v->uv_flags & VIFF_ONEWAY) fprintf(fp, " one-way");
1293 if (v->uv_flags & VIFF_DOWN) fprintf(fp, " down");
1294 if (v->uv_flags & VIFF_DISABLED) fprintf(fp, " disabled");
1295 if (v->uv_flags & VIFF_QUERIER) fprintf(fp, " querier");
1296 if (v->uv_flags & VIFF_SRCRT) fprintf(fp, " src-rt");
1297 if (v->uv_flags & VIFF_LEAF) fprintf(fp, " leaf");
1298 if (v->uv_flags & VIFF_IGMPV1) fprintf(fp, " IGMPv1");
1299 fprintf(fp, "\n");
1300
1301 if (v->uv_addrs != NULL) {
1302 fprintf(fp, " alternate subnets: %s\n",
1303 inet_fmts(v->uv_addrs->pa_subnet, v->uv_addrs->pa_subnetmask, s1));
1304 for (p = v->uv_addrs->pa_next; p; p = p->pa_next) {
1305 fprintf(fp, " %s\n",
1306 inet_fmts(p->pa_subnet, p->pa_subnetmask, s1));
1307 }
1308 }
1309
1310 if (v->uv_neighbors != NULL) {
1311 fprintf(fp, " peers: %s (%d.%d) (0x%x)\n",
1312 inet_fmt(v->uv_neighbors->al_addr, s1),
1313 v->uv_neighbors->al_pv, v->uv_neighbors->al_mv,
1314 v->uv_neighbors->al_flags);
1315 for (a = v->uv_neighbors->al_next; a != NULL; a = a->al_next) {
1316 fprintf(fp, " %s (%d.%d) (0x%x)\n",
1317 inet_fmt(a->al_addr, s1), a->al_pv, a->al_mv,
1318 a->al_flags);
1319 }
1320 }
1321
1322 if (v->uv_groups != NULL) {
1323 fprintf(fp, " groups: %-15s\n",
1324 inet_fmt(v->uv_groups->al_addr, s1));
1325 for (a = v->uv_groups->al_next; a != NULL; a = a->al_next) {
1326 fprintf(fp, " %-15s\n",
1327 inet_fmt(a->al_addr, s1));
1328 }
1329 }
1330 if (v->uv_acl != NULL) {
1331 struct vif_acl *acl;
1332
1333 fprintf(fp, " boundaries: %-18s\n",
1334 inet_fmts(v->uv_acl->acl_addr, v->uv_acl->acl_mask, s1));
1335 for (acl = v->uv_acl->acl_next; acl != NULL; acl = acl->acl_next) {
1336 fprintf(fp, " : %-18s\n",
1337 inet_fmts(acl->acl_addr, acl->acl_mask, s1));
1338 }
1339 }
1340 v_req.vifi = vifi;
1341 if (ioctl(igmp_socket, SIOCGETVIFCNT, (char *)&v_req) < 0) {
1342 log(LOG_WARNING, 0,
1343 "SIOCGETVIFCNT fails");
1344 }
1345 else {
1346 fprintf(fp, " pkts in : %ld\n",
1347 v_req.icount);
1348 fprintf(fp, " pkts out: %ld\n",
1349 v_req.ocount);
1350 }
1351 fprintf(fp, "\n");
1352 }
1353 fprintf(fp, "\n");
1354 }
1355
1356 /*
1357 * Time out record of a group membership on a vif
1358 */
1359 static void
1360 DelVif(void *arg)
1361 {
1362 cbk_t *cbk = (cbk_t *)arg;
1363 vifi_t vifi = cbk->vifi;
1364 struct uvif *v = &uvifs[vifi];
1365 struct listaddr *a, **anp, *g = cbk->g;
1366
1367 /*
1368 * Group has expired
1369 * delete all kernel cache entries with this group
1370 */
1371 if (g->al_query)
1372 DeleteTimer(g->al_query);
1373
1374 delete_lclgrp(vifi, g->al_addr);
1375
1376 anp = &(v->uv_groups);
1377 while ((a = *anp) != NULL) {
1378 if (a == g) {
1379 *anp = a->al_next;
1380 free((char *)a);
1381 } else {
1382 anp = &a->al_next;
1383 }
1384 }
1385
1386 free(cbk);
1387 }
1388
1389 /*
1390 * Set a timer to delete the record of a group membership on a vif.
1391 */
1392 static int
1393 SetTimer(vifi_t vifi, struct listaddr *g)
1394 {
1395 cbk_t *cbk;
1396
1397 cbk = (cbk_t *) malloc(sizeof(cbk_t));
1398 cbk->g = g;
1399 cbk->vifi = vifi;
1400 return timer_setTimer(g->al_timer, (cfunc_t)DelVif, (void *)cbk);
1401 }
1402
1403 /*
1404 * Delete a timer that was set above.
1405 */
1406 static int
1407 DeleteTimer(int id)
1408 {
1409 timer_clearTimer(id);
1410 return 0;
1411 }
1412
1413 /*
1414 * Send a group-specific query.
1415 */
1416 static void
1417 SendQuery(void *arg)
1418 {
1419 cbk_t *cbk = (cbk_t *)arg;
1420 struct uvif *v = &uvifs[cbk->vifi];
1421
1422 send_igmp(v->uv_lcl_addr, cbk->g->al_addr,
1423 IGMP_HOST_MEMBERSHIP_QUERY,
1424 cbk->q_time, cbk->g->al_addr, 0);
1425 cbk->g->al_query = 0;
1426 free(cbk);
1427 }
1428
1429 /*
1430 * Set a timer to send a group-specific query.
1431 */
1432 static int
1433 SetQueryTimer(struct listaddr *g, vifi_t vifi, int to_expire, int q_time)
1434 {
1435 cbk_t *cbk;
1436
1437 cbk = (cbk_t *) malloc(sizeof(cbk_t));
1438 cbk->g = g;
1439 cbk->q_time = q_time;
1440 cbk->vifi = vifi;
1441 return timer_setTimer(to_expire, (cfunc_t)SendQuery, (void *)cbk);
1442 }
1443