mld6.c revision 1.36 1 1.36 dyoung /* $NetBSD: mld6.c,v 1.36 2006/11/29 03:05:12 dyoung Exp $ */
2 1.13 itojun /* $KAME: mld6.c,v 1.25 2001/01/16 14:14:18 itojun Exp $ */
3 1.3 thorpej
4 1.2 itojun /*
5 1.2 itojun * Copyright (C) 1998 WIDE Project.
6 1.2 itojun * All rights reserved.
7 1.13 itojun *
8 1.2 itojun * Redistribution and use in source and binary forms, with or without
9 1.2 itojun * modification, are permitted provided that the following conditions
10 1.2 itojun * are met:
11 1.2 itojun * 1. Redistributions of source code must retain the above copyright
12 1.2 itojun * notice, this list of conditions and the following disclaimer.
13 1.2 itojun * 2. Redistributions in binary form must reproduce the above copyright
14 1.2 itojun * notice, this list of conditions and the following disclaimer in the
15 1.2 itojun * documentation and/or other materials provided with the distribution.
16 1.2 itojun * 3. Neither the name of the project nor the names of its contributors
17 1.2 itojun * may be used to endorse or promote products derived from this software
18 1.2 itojun * without specific prior written permission.
19 1.13 itojun *
20 1.2 itojun * THIS SOFTWARE IS PROVIDED BY THE PROJECT AND CONTRIBUTORS ``AS IS'' AND
21 1.2 itojun * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
22 1.2 itojun * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
23 1.2 itojun * ARE DISCLAIMED. IN NO EVENT SHALL THE PROJECT OR CONTRIBUTORS BE LIABLE
24 1.2 itojun * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
25 1.2 itojun * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
26 1.2 itojun * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
27 1.2 itojun * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
28 1.2 itojun * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
29 1.2 itojun * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
30 1.2 itojun * SUCH DAMAGE.
31 1.2 itojun */
32 1.2 itojun
33 1.2 itojun /*
34 1.2 itojun * Copyright (c) 1992, 1993
35 1.2 itojun * The Regents of the University of California. All rights reserved.
36 1.2 itojun *
37 1.2 itojun * This code is derived from software contributed to Berkeley by
38 1.2 itojun * Stephen Deering of Stanford University.
39 1.2 itojun *
40 1.2 itojun * Redistribution and use in source and binary forms, with or without
41 1.2 itojun * modification, are permitted provided that the following conditions
42 1.2 itojun * are met:
43 1.2 itojun * 1. Redistributions of source code must retain the above copyright
44 1.2 itojun * notice, this list of conditions and the following disclaimer.
45 1.2 itojun * 2. Redistributions in binary form must reproduce the above copyright
46 1.2 itojun * notice, this list of conditions and the following disclaimer in the
47 1.2 itojun * documentation and/or other materials provided with the distribution.
48 1.23 agc * 3. Neither the name of the University nor the names of its contributors
49 1.23 agc * may be used to endorse or promote products derived from this software
50 1.23 agc * without specific prior written permission.
51 1.23 agc *
52 1.23 agc * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
53 1.23 agc * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
54 1.23 agc * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
55 1.23 agc * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
56 1.23 agc * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
57 1.23 agc * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
58 1.23 agc * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
59 1.23 agc * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
60 1.23 agc * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
61 1.23 agc * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
62 1.23 agc * SUCH DAMAGE.
63 1.23 agc *
64 1.23 agc * @(#)igmp.c 8.1 (Berkeley) 7/19/93
65 1.23 agc */
66 1.23 agc
67 1.23 agc /*
68 1.23 agc * Copyright (c) 1988 Stephen Deering.
69 1.23 agc *
70 1.23 agc * This code is derived from software contributed to Berkeley by
71 1.23 agc * Stephen Deering of Stanford University.
72 1.23 agc *
73 1.23 agc * Redistribution and use in source and binary forms, with or without
74 1.23 agc * modification, are permitted provided that the following conditions
75 1.23 agc * are met:
76 1.23 agc * 1. Redistributions of source code must retain the above copyright
77 1.23 agc * notice, this list of conditions and the following disclaimer.
78 1.23 agc * 2. Redistributions in binary form must reproduce the above copyright
79 1.23 agc * notice, this list of conditions and the following disclaimer in the
80 1.23 agc * documentation and/or other materials provided with the distribution.
81 1.2 itojun * 3. All advertising materials mentioning features or use of this software
82 1.2 itojun * must display the following acknowledgement:
83 1.2 itojun * This product includes software developed by the University of
84 1.2 itojun * California, Berkeley and its contributors.
85 1.2 itojun * 4. Neither the name of the University nor the names of its contributors
86 1.2 itojun * may be used to endorse or promote products derived from this software
87 1.2 itojun * without specific prior written permission.
88 1.2 itojun *
89 1.2 itojun * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
90 1.2 itojun * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
91 1.2 itojun * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
92 1.2 itojun * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
93 1.2 itojun * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
94 1.2 itojun * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
95 1.2 itojun * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
96 1.2 itojun * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
97 1.2 itojun * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
98 1.2 itojun * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
99 1.2 itojun * SUCH DAMAGE.
100 1.2 itojun *
101 1.2 itojun * @(#)igmp.c 8.1 (Berkeley) 7/19/93
102 1.2 itojun */
103 1.16 lukem
104 1.16 lukem #include <sys/cdefs.h>
105 1.36 dyoung __KERNEL_RCSID(0, "$NetBSD: mld6.c,v 1.36 2006/11/29 03:05:12 dyoung Exp $");
106 1.2 itojun
107 1.2 itojun #include "opt_inet.h"
108 1.2 itojun
109 1.2 itojun #include <sys/param.h>
110 1.2 itojun #include <sys/systm.h>
111 1.2 itojun #include <sys/mbuf.h>
112 1.2 itojun #include <sys/socket.h>
113 1.2 itojun #include <sys/protosw.h>
114 1.2 itojun #include <sys/syslog.h>
115 1.31 rpaulo #include <sys/sysctl.h>
116 1.31 rpaulo #include <sys/kernel.h>
117 1.31 rpaulo #include <sys/callout.h>
118 1.2 itojun
119 1.2 itojun #include <net/if.h>
120 1.2 itojun
121 1.2 itojun #include <netinet/in.h>
122 1.2 itojun #include <netinet/in_var.h>
123 1.31 rpaulo #include <netinet6/in6_var.h>
124 1.10 itojun #include <netinet/ip6.h>
125 1.2 itojun #include <netinet6/ip6_var.h>
126 1.29 rpaulo #include <netinet6/scope6_var.h>
127 1.10 itojun #include <netinet/icmp6.h>
128 1.2 itojun #include <netinet6/mld6_var.h>
129 1.2 itojun
130 1.7 itojun #include <net/net_osdep.h>
131 1.7 itojun
132 1.31 rpaulo
133 1.31 rpaulo /*
134 1.31 rpaulo * This structure is used to keep track of in6_multi chains which belong to
135 1.31 rpaulo * deleted interface addresses.
136 1.31 rpaulo */
137 1.31 rpaulo static LIST_HEAD(, multi6_kludge) in6_mk; /* XXX BSS initialization */
138 1.31 rpaulo
139 1.31 rpaulo struct multi6_kludge {
140 1.31 rpaulo LIST_ENTRY(multi6_kludge) mk_entry;
141 1.31 rpaulo struct ifnet *mk_ifp;
142 1.31 rpaulo struct in6_multihead mk_head;
143 1.31 rpaulo };
144 1.31 rpaulo
145 1.31 rpaulo
146 1.2 itojun /*
147 1.2 itojun * Protocol constants
148 1.2 itojun */
149 1.2 itojun
150 1.2 itojun /*
151 1.2 itojun * time between repetitions of a node's initial report of interest in a
152 1.2 itojun * multicast address(in seconds)
153 1.2 itojun */
154 1.22 itojun #define MLD_UNSOLICITED_REPORT_INTERVAL 10
155 1.2 itojun
156 1.2 itojun static struct ip6_pktopts ip6_opts;
157 1.2 itojun
158 1.31 rpaulo static void mld_start_listening(struct in6_multi *);
159 1.31 rpaulo static void mld_stop_listening(struct in6_multi *);
160 1.31 rpaulo
161 1.31 rpaulo static struct mld_hdr * mld_allocbuf(struct mbuf **, int, struct in6_multi *,
162 1.31 rpaulo int);
163 1.31 rpaulo static void mld_sendpkt(struct in6_multi *, int, const struct in6_addr *);
164 1.31 rpaulo static void mld_starttimer(struct in6_multi *);
165 1.31 rpaulo static void mld_stoptimer(struct in6_multi *);
166 1.31 rpaulo static void mld_timeo(struct in6_multi *);
167 1.31 rpaulo static u_long mld_timerresid(struct in6_multi *);
168 1.2 itojun
169 1.2 itojun void
170 1.31 rpaulo mld_init()
171 1.2 itojun {
172 1.2 itojun static u_int8_t hbh_buf[8];
173 1.2 itojun struct ip6_hbh *hbh = (struct ip6_hbh *)hbh_buf;
174 1.2 itojun u_int16_t rtalert_code = htons((u_int16_t)IP6OPT_RTALERT_MLD);
175 1.2 itojun
176 1.2 itojun /* ip6h_nxt will be fill in later */
177 1.11 itojun hbh->ip6h_len = 0; /* (8 >> 3) - 1 */
178 1.2 itojun
179 1.2 itojun /* XXX: grotty hard coding... */
180 1.2 itojun hbh_buf[2] = IP6OPT_PADN; /* 2 byte padding */
181 1.2 itojun hbh_buf[3] = 0;
182 1.2 itojun hbh_buf[4] = IP6OPT_RTALERT;
183 1.2 itojun hbh_buf[5] = IP6OPT_RTALERT_LEN - 2;
184 1.2 itojun bcopy((caddr_t)&rtalert_code, &hbh_buf[6], sizeof(u_int16_t));
185 1.2 itojun
186 1.2 itojun ip6_opts.ip6po_hbh = hbh;
187 1.2 itojun /* We will specify the hoplimit by a multicast option. */
188 1.2 itojun ip6_opts.ip6po_hlim = -1;
189 1.2 itojun }
190 1.2 itojun
191 1.31 rpaulo static void
192 1.31 rpaulo mld_starttimer(in6m)
193 1.31 rpaulo struct in6_multi *in6m;
194 1.31 rpaulo {
195 1.31 rpaulo struct timeval now;
196 1.31 rpaulo
197 1.31 rpaulo microtime(&now);
198 1.31 rpaulo in6m->in6m_timer_expire.tv_sec = now.tv_sec + in6m->in6m_timer / hz;
199 1.31 rpaulo in6m->in6m_timer_expire.tv_usec = now.tv_usec +
200 1.31 rpaulo (in6m->in6m_timer % hz) * (1000000 / hz);
201 1.31 rpaulo if (in6m->in6m_timer_expire.tv_usec > 1000000) {
202 1.31 rpaulo in6m->in6m_timer_expire.tv_sec++;
203 1.31 rpaulo in6m->in6m_timer_expire.tv_usec -= 1000000;
204 1.31 rpaulo }
205 1.31 rpaulo
206 1.31 rpaulo /* start or restart the timer */
207 1.31 rpaulo callout_reset(in6m->in6m_timer_ch, in6m->in6m_timer,
208 1.31 rpaulo (void (*) __P((void *)))mld_timeo, in6m);
209 1.31 rpaulo }
210 1.31 rpaulo
211 1.31 rpaulo static void
212 1.31 rpaulo mld_stoptimer(in6m)
213 1.31 rpaulo struct in6_multi *in6m;
214 1.31 rpaulo {
215 1.31 rpaulo if (in6m->in6m_timer == IN6M_TIMER_UNDEF)
216 1.31 rpaulo return;
217 1.31 rpaulo
218 1.31 rpaulo callout_stop(in6m->in6m_timer_ch);
219 1.31 rpaulo
220 1.31 rpaulo in6m->in6m_timer = IN6M_TIMER_UNDEF;
221 1.31 rpaulo }
222 1.31 rpaulo
223 1.31 rpaulo static void
224 1.31 rpaulo mld_timeo(in6m)
225 1.31 rpaulo struct in6_multi *in6m;
226 1.31 rpaulo {
227 1.31 rpaulo int s = splsoftnet();
228 1.31 rpaulo
229 1.31 rpaulo in6m->in6m_timer = IN6M_TIMER_UNDEF;
230 1.31 rpaulo
231 1.31 rpaulo callout_stop(in6m->in6m_timer_ch);
232 1.31 rpaulo
233 1.31 rpaulo switch (in6m->in6m_state) {
234 1.31 rpaulo case MLD_REPORTPENDING:
235 1.31 rpaulo mld_start_listening(in6m);
236 1.31 rpaulo break;
237 1.31 rpaulo default:
238 1.31 rpaulo mld_sendpkt(in6m, MLD_LISTENER_REPORT, NULL);
239 1.31 rpaulo break;
240 1.31 rpaulo }
241 1.31 rpaulo
242 1.31 rpaulo splx(s);
243 1.31 rpaulo }
244 1.31 rpaulo
245 1.31 rpaulo static u_long
246 1.31 rpaulo mld_timerresid(in6m)
247 1.31 rpaulo struct in6_multi *in6m;
248 1.31 rpaulo {
249 1.31 rpaulo struct timeval now, diff;
250 1.31 rpaulo
251 1.31 rpaulo microtime(&now);
252 1.31 rpaulo
253 1.31 rpaulo if (now.tv_sec > in6m->in6m_timer_expire.tv_sec ||
254 1.31 rpaulo (now.tv_sec == in6m->in6m_timer_expire.tv_sec &&
255 1.31 rpaulo now.tv_usec > in6m->in6m_timer_expire.tv_usec)) {
256 1.31 rpaulo return (0);
257 1.31 rpaulo }
258 1.31 rpaulo diff = in6m->in6m_timer_expire;
259 1.31 rpaulo diff.tv_sec -= now.tv_sec;
260 1.31 rpaulo diff.tv_usec -= now.tv_usec;
261 1.31 rpaulo if (diff.tv_usec < 0) {
262 1.31 rpaulo diff.tv_sec--;
263 1.31 rpaulo diff.tv_usec += 1000000;
264 1.31 rpaulo }
265 1.31 rpaulo
266 1.31 rpaulo /* return the remaining time in milliseconds */
267 1.31 rpaulo return (((u_long)(diff.tv_sec * 1000000 + diff.tv_usec)) / 1000);
268 1.31 rpaulo }
269 1.31 rpaulo
270 1.31 rpaulo static void
271 1.31 rpaulo mld_start_listening(in6m)
272 1.2 itojun struct in6_multi *in6m;
273 1.2 itojun {
274 1.29 rpaulo struct in6_addr all_in6;
275 1.29 rpaulo
276 1.2 itojun /*
277 1.11 itojun * RFC2710 page 10:
278 1.2 itojun * The node never sends a Report or Done for the link-scope all-nodes
279 1.2 itojun * address.
280 1.2 itojun * MLD messages are never sent for multicast addresses whose scope is 0
281 1.2 itojun * (reserved) or 1 (node-local).
282 1.2 itojun */
283 1.29 rpaulo all_in6 = in6addr_linklocal_allnodes;
284 1.29 rpaulo if (in6_setscope(&all_in6, in6m->in6m_ifp, NULL)) {
285 1.29 rpaulo /* XXX: this should not happen! */
286 1.29 rpaulo in6m->in6m_timer = 0;
287 1.29 rpaulo in6m->in6m_state = MLD_OTHERLISTENER;
288 1.29 rpaulo }
289 1.29 rpaulo if (IN6_ARE_ADDR_EQUAL(&in6m->in6m_addr, &all_in6) ||
290 1.2 itojun IPV6_ADDR_MC_SCOPE(&in6m->in6m_addr) < IPV6_ADDR_SCOPE_LINKLOCAL) {
291 1.31 rpaulo in6m->in6m_timer = IN6M_TIMER_UNDEF;
292 1.22 itojun in6m->in6m_state = MLD_OTHERLISTENER;
293 1.2 itojun } else {
294 1.31 rpaulo mld_sendpkt(in6m, MLD_LISTENER_REPORT, NULL);
295 1.31 rpaulo in6m->in6m_timer = arc4random() %
296 1.31 rpaulo (MLD_UNSOLICITED_REPORT_INTERVAL * hz);
297 1.22 itojun in6m->in6m_state = MLD_IREPORTEDLAST;
298 1.31 rpaulo
299 1.31 rpaulo mld_starttimer(in6m);
300 1.2 itojun }
301 1.2 itojun }
302 1.2 itojun
303 1.31 rpaulo static void
304 1.31 rpaulo mld_stop_listening(in6m)
305 1.2 itojun struct in6_multi *in6m;
306 1.2 itojun {
307 1.29 rpaulo struct in6_addr allnode, allrouter;
308 1.29 rpaulo
309 1.29 rpaulo allnode = in6addr_linklocal_allnodes;
310 1.29 rpaulo if (in6_setscope(&allnode, in6m->in6m_ifp, NULL)) {
311 1.29 rpaulo /* XXX: this should not happen! */
312 1.29 rpaulo return;
313 1.29 rpaulo }
314 1.29 rpaulo allrouter = in6addr_linklocal_allrouters;
315 1.29 rpaulo if (in6_setscope(&allrouter, in6m->in6m_ifp, NULL)) {
316 1.29 rpaulo /* XXX impossible */
317 1.29 rpaulo return;
318 1.29 rpaulo }
319 1.2 itojun
320 1.22 itojun if (in6m->in6m_state == MLD_IREPORTEDLAST &&
321 1.29 rpaulo (!IN6_ARE_ADDR_EQUAL(&in6m->in6m_addr, &allnode)) &&
322 1.29 rpaulo IPV6_ADDR_MC_SCOPE(&in6m->in6m_addr) >
323 1.29 rpaulo IPV6_ADDR_SCOPE_INTFACELOCAL) {
324 1.31 rpaulo mld_sendpkt(in6m, MLD_LISTENER_DONE, &allrouter);
325 1.29 rpaulo }
326 1.2 itojun }
327 1.2 itojun
328 1.2 itojun void
329 1.31 rpaulo mld_input(m, off)
330 1.2 itojun struct mbuf *m;
331 1.2 itojun int off;
332 1.2 itojun {
333 1.2 itojun struct ip6_hdr *ip6 = mtod(m, struct ip6_hdr *);
334 1.22 itojun struct mld_hdr *mldh;
335 1.2 itojun struct ifnet *ifp = m->m_pkthdr.rcvif;
336 1.31 rpaulo struct in6_multi *in6m = NULL;
337 1.29 rpaulo struct in6_addr mld_addr, all_in6;
338 1.2 itojun struct in6_ifaddr *ia;
339 1.31 rpaulo int timer = 0; /* timer value in the MLD query header */
340 1.2 itojun
341 1.22 itojun IP6_EXTHDR_GET(mldh, struct mld_hdr *, m, off, sizeof(*mldh));
342 1.13 itojun if (mldh == NULL) {
343 1.13 itojun icmp6stat.icp6s_tooshort++;
344 1.13 itojun return;
345 1.13 itojun }
346 1.13 itojun
347 1.2 itojun /* source address validation */
348 1.13 itojun ip6 = mtod(m, struct ip6_hdr *);/* in case mpullup */
349 1.2 itojun if (!IN6_IS_ADDR_LINKLOCAL(&ip6->ip6_src)) {
350 1.31 rpaulo /*
351 1.31 rpaulo * RFC3590 allows the IPv6 unspecified address as the source
352 1.31 rpaulo * address of MLD report and done messages. However, as this
353 1.31 rpaulo * same document says, this special rule is for snooping
354 1.31 rpaulo * switches and the RFC requires routers to discard MLD packets
355 1.31 rpaulo * with the unspecified source address. The RFC only talks
356 1.31 rpaulo * about hosts receiving an MLD query or report in Security
357 1.31 rpaulo * Considerations, but this is probably the correct intention.
358 1.31 rpaulo * RFC3590 does not talk about other cases than link-local and
359 1.31 rpaulo * the unspecified source addresses, but we believe the same
360 1.31 rpaulo * rule should be applied.
361 1.31 rpaulo * As a result, we only allow link-local addresses as the
362 1.31 rpaulo * source address; otherwise, simply discard the packet.
363 1.31 rpaulo */
364 1.18 itojun #if 0
365 1.31 rpaulo /*
366 1.31 rpaulo * XXX: do not log in an input path to avoid log flooding,
367 1.31 rpaulo * though RFC3590 says "SHOULD log" if the source of a query
368 1.31 rpaulo * is the unspecified address.
369 1.31 rpaulo */
370 1.31 rpaulo log(LOG_INFO,
371 1.22 itojun "mld_input: src %s is not link-local (grp=%s)\n",
372 1.31 rpaulo ip6_sprintf(&ip6->ip6_src), ip6_sprintf(&mldh->mld_addr));
373 1.18 itojun #endif
374 1.11 itojun m_freem(m);
375 1.2 itojun return;
376 1.2 itojun }
377 1.2 itojun
378 1.2 itojun /*
379 1.29 rpaulo * make a copy for local work (in6_setscope() may modify the 1st arg)
380 1.29 rpaulo */
381 1.29 rpaulo mld_addr = mldh->mld_addr;
382 1.29 rpaulo if (in6_setscope(&mld_addr, ifp, NULL)) {
383 1.29 rpaulo /* XXX: this should not happen! */
384 1.29 rpaulo m_free(m);
385 1.29 rpaulo return;
386 1.29 rpaulo }
387 1.29 rpaulo
388 1.29 rpaulo /*
389 1.31 rpaulo * In the MLD specification, there are 3 states and a flag.
390 1.2 itojun *
391 1.2 itojun * In Non-Listener state, we simply don't have a membership record.
392 1.2 itojun * In Delaying Listener state, our timer is running (in6m->in6m_timer)
393 1.31 rpaulo * In Idle Listener state, our timer is not running
394 1.31 rpaulo * (in6m->in6m_timer==IN6M_TIMER_UNDEF)
395 1.2 itojun *
396 1.22 itojun * The flag is in6m->in6m_state, it is set to MLD_OTHERLISTENER if
397 1.22 itojun * we have heard a report from another member, or MLD_IREPORTEDLAST
398 1.2 itojun * if we sent the last report.
399 1.2 itojun */
400 1.22 itojun switch (mldh->mld_type) {
401 1.22 itojun case MLD_LISTENER_QUERY:
402 1.7 itojun if (ifp->if_flags & IFF_LOOPBACK)
403 1.7 itojun break;
404 1.7 itojun
405 1.29 rpaulo if (!IN6_IS_ADDR_UNSPECIFIED(&mld_addr) &&
406 1.29 rpaulo !IN6_IS_ADDR_MULTICAST(&mld_addr))
407 1.7 itojun break; /* print error or log stat? */
408 1.29 rpaulo
409 1.29 rpaulo all_in6 = in6addr_linklocal_allnodes;
410 1.29 rpaulo if (in6_setscope(&all_in6, ifp, NULL)) {
411 1.29 rpaulo /* XXX: this should not happen! */
412 1.29 rpaulo break;
413 1.29 rpaulo }
414 1.2 itojun
415 1.7 itojun /*
416 1.11 itojun * - Start the timers in all of our membership records
417 1.11 itojun * that the query applies to for the interface on
418 1.11 itojun * which the query arrived excl. those that belong
419 1.11 itojun * to the "all-nodes" group (ff02::1).
420 1.11 itojun * - Restart any timer that is already running but has
421 1.30 rpaulo * a value longer than the requested timeout.
422 1.11 itojun * - Use the value specified in the query message as
423 1.11 itojun * the maximum timeout.
424 1.11 itojun */
425 1.31 rpaulo timer = ntohs(mldh->mld_maxdelay);
426 1.31 rpaulo
427 1.7 itojun IFP_TO_IA6(ifp, ia);
428 1.7 itojun if (ia == NULL)
429 1.7 itojun break;
430 1.2 itojun
431 1.35 dyoung LIST_FOREACH(in6m, &ia->ia6_multiaddrs, in6m_entry) {
432 1.29 rpaulo if (IN6_ARE_ADDR_EQUAL(&in6m->in6m_addr, &all_in6) ||
433 1.7 itojun IPV6_ADDR_MC_SCOPE(&in6m->in6m_addr) <
434 1.7 itojun IPV6_ADDR_SCOPE_LINKLOCAL)
435 1.7 itojun continue;
436 1.2 itojun
437 1.31 rpaulo if (in6m->in6m_state == MLD_REPORTPENDING)
438 1.31 rpaulo continue; /* we are not yet ready */
439 1.31 rpaulo
440 1.31 rpaulo if (!IN6_IS_ADDR_UNSPECIFIED(&mld_addr) &&
441 1.31 rpaulo !IN6_ARE_ADDR_EQUAL(&mld_addr, &in6m->in6m_addr))
442 1.31 rpaulo continue;
443 1.31 rpaulo
444 1.31 rpaulo if (timer == 0) {
445 1.31 rpaulo /* send a report immediately */
446 1.31 rpaulo mld_stoptimer(in6m);
447 1.31 rpaulo mld_sendpkt(in6m, MLD_LISTENER_REPORT, NULL);
448 1.31 rpaulo in6m->in6m_state = MLD_IREPORTEDLAST;
449 1.31 rpaulo } else if (in6m->in6m_timer == IN6M_TIMER_UNDEF ||
450 1.31 rpaulo mld_timerresid(in6m) > (u_long)timer) {
451 1.31 rpaulo in6m->in6m_timer = arc4random() %
452 1.31 rpaulo (int)(((long)timer * hz) / 1000);
453 1.31 rpaulo mld_starttimer(in6m);
454 1.7 itojun }
455 1.7 itojun }
456 1.29 rpaulo break;
457 1.2 itojun
458 1.22 itojun case MLD_LISTENER_REPORT:
459 1.2 itojun /*
460 1.11 itojun * For fast leave to work, we have to know that we are the
461 1.11 itojun * last person to send a report for this group. Reports
462 1.11 itojun * can potentially get looped back if we are a multicast
463 1.11 itojun * router, so discard reports sourced by me.
464 1.11 itojun * Note that it is impossible to check IFF_LOOPBACK flag of
465 1.11 itojun * ifp for this purpose, since ip6_mloopback pass the physical
466 1.11 itojun * interface to looutput.
467 1.11 itojun */
468 1.7 itojun if (m->m_flags & M_LOOP) /* XXX: grotty flag, but efficient */
469 1.7 itojun break;
470 1.7 itojun
471 1.22 itojun if (!IN6_IS_ADDR_MULTICAST(&mldh->mld_addr))
472 1.7 itojun break;
473 1.7 itojun
474 1.7 itojun /*
475 1.11 itojun * If we belong to the group being reported, stop
476 1.11 itojun * our timer for that group.
477 1.11 itojun */
478 1.29 rpaulo IN6_LOOKUP_MULTI(mld_addr, ifp, in6m);
479 1.7 itojun if (in6m) {
480 1.31 rpaulo mld_stoptimer(in6m); /* transit to idle state */
481 1.22 itojun in6m->in6m_state = MLD_OTHERLISTENER; /* clear flag */
482 1.7 itojun }
483 1.7 itojun break;
484 1.7 itojun default: /* this is impossible */
485 1.18 itojun #if 0
486 1.19 itojun /*
487 1.19 itojun * this case should be impossible because of filtering in
488 1.19 itojun * icmp6_input(). But we explicitly disabled this part
489 1.19 itojun * just in case.
490 1.19 itojun */
491 1.31 rpaulo log(LOG_ERR, "mld_input: illegal type(%d)", mldh->mld_type);
492 1.18 itojun #endif
493 1.7 itojun break;
494 1.2 itojun }
495 1.11 itojun
496 1.11 itojun m_freem(m);
497 1.2 itojun }
498 1.2 itojun
499 1.2 itojun static void
500 1.31 rpaulo mld_sendpkt(in6m, type, dst)
501 1.2 itojun struct in6_multi *in6m;
502 1.2 itojun int type;
503 1.2 itojun const struct in6_addr *dst;
504 1.2 itojun {
505 1.31 rpaulo struct mbuf *mh;
506 1.22 itojun struct mld_hdr *mldh;
507 1.31 rpaulo struct ip6_hdr *ip6 = NULL;
508 1.2 itojun struct ip6_moptions im6o;
509 1.31 rpaulo struct in6_ifaddr *ia = NULL;
510 1.2 itojun struct ifnet *ifp = in6m->in6m_ifp;
511 1.19 itojun int ignflags;
512 1.2 itojun
513 1.2 itojun /*
514 1.2 itojun * At first, find a link local address on the outgoing interface
515 1.2 itojun * to use as the source address of the MLD packet.
516 1.19 itojun * We do not reject tentative addresses for MLD report to deal with
517 1.19 itojun * the case where we first join a link-local address.
518 1.2 itojun */
519 1.19 itojun ignflags = (IN6_IFF_NOTREADY|IN6_IFF_ANYCAST) & ~IN6_IFF_TENTATIVE;
520 1.19 itojun if ((ia = in6ifa_ifpforlinklocal(ifp, ignflags)) == NULL)
521 1.2 itojun return;
522 1.19 itojun if ((ia->ia6_flags & IN6_IFF_TENTATIVE))
523 1.19 itojun ia = NULL;
524 1.2 itojun
525 1.31 rpaulo /* Allocate two mbufs to store IPv6 header and MLD header */
526 1.31 rpaulo mldh = mld_allocbuf(&mh, sizeof(struct mld_hdr), in6m, type);
527 1.31 rpaulo if (mldh == NULL)
528 1.2 itojun return;
529 1.2 itojun
530 1.31 rpaulo /* fill src/dst here */
531 1.31 rpaulo ip6 = mtod(mh, struct ip6_hdr *);
532 1.31 rpaulo ip6->ip6_src = ia ? ia->ia_addr.sin6_addr : in6addr_any;
533 1.31 rpaulo ip6->ip6_dst = dst ? *dst : in6m->in6m_addr;
534 1.2 itojun
535 1.22 itojun mldh->mld_addr = in6m->in6m_addr;
536 1.29 rpaulo in6_clearscope(&mldh->mld_addr); /* XXX */
537 1.22 itojun mldh->mld_cksum = in6_cksum(mh, IPPROTO_ICMPV6, sizeof(struct ip6_hdr),
538 1.22 itojun sizeof(struct mld_hdr));
539 1.2 itojun
540 1.2 itojun /* construct multicast option */
541 1.31 rpaulo memset(&im6o, 0, sizeof(im6o));
542 1.2 itojun im6o.im6o_multicast_ifp = ifp;
543 1.2 itojun im6o.im6o_multicast_hlim = 1;
544 1.2 itojun
545 1.2 itojun /*
546 1.2 itojun * Request loopback of the report if we are acting as a multicast
547 1.2 itojun * router, so that the process-level routing daemon can hear it.
548 1.2 itojun */
549 1.2 itojun im6o.im6o_multicast_loop = (ip6_mrouter != NULL);
550 1.2 itojun
551 1.2 itojun /* increment output statictics */
552 1.2 itojun icmp6stat.icp6s_outhist[type]++;
553 1.15 itojun icmp6_ifstat_inc(ifp, ifs6_out_msg);
554 1.17 itojun switch (type) {
555 1.22 itojun case MLD_LISTENER_QUERY:
556 1.15 itojun icmp6_ifstat_inc(ifp, ifs6_out_mldquery);
557 1.15 itojun break;
558 1.22 itojun case MLD_LISTENER_REPORT:
559 1.15 itojun icmp6_ifstat_inc(ifp, ifs6_out_mldreport);
560 1.15 itojun break;
561 1.22 itojun case MLD_LISTENER_DONE:
562 1.15 itojun icmp6_ifstat_inc(ifp, ifs6_out_mlddone);
563 1.15 itojun break;
564 1.7 itojun }
565 1.19 itojun
566 1.27 perry ip6_output(mh, &ip6_opts, NULL, ia ? 0 : IPV6_UNSPECSRC,
567 1.25 itojun &im6o, (struct socket *)NULL, NULL);
568 1.2 itojun }
569 1.31 rpaulo
570 1.31 rpaulo static struct mld_hdr *
571 1.34 christos mld_allocbuf(struct mbuf **mh, int len, struct in6_multi *in6m,
572 1.33 christos int type)
573 1.31 rpaulo {
574 1.31 rpaulo struct mbuf *md;
575 1.31 rpaulo struct mld_hdr *mldh;
576 1.31 rpaulo struct ip6_hdr *ip6;
577 1.31 rpaulo
578 1.31 rpaulo /*
579 1.31 rpaulo * Allocate mbufs to store ip6 header and MLD header.
580 1.31 rpaulo * We allocate 2 mbufs and make chain in advance because
581 1.31 rpaulo * it is more convenient when inserting the hop-by-hop option later.
582 1.31 rpaulo */
583 1.31 rpaulo MGETHDR(*mh, M_DONTWAIT, MT_HEADER);
584 1.31 rpaulo if (*mh == NULL)
585 1.31 rpaulo return NULL;
586 1.31 rpaulo MGET(md, M_DONTWAIT, MT_DATA);
587 1.31 rpaulo if (md == NULL) {
588 1.31 rpaulo m_free(*mh);
589 1.31 rpaulo *mh = NULL;
590 1.31 rpaulo return NULL;
591 1.31 rpaulo }
592 1.31 rpaulo (*mh)->m_next = md;
593 1.31 rpaulo md->m_next = NULL;
594 1.31 rpaulo
595 1.31 rpaulo (*mh)->m_pkthdr.rcvif = NULL;
596 1.31 rpaulo (*mh)->m_pkthdr.len = sizeof(struct ip6_hdr) + len;
597 1.31 rpaulo (*mh)->m_len = sizeof(struct ip6_hdr);
598 1.31 rpaulo MH_ALIGN(*mh, sizeof(struct ip6_hdr));
599 1.31 rpaulo
600 1.31 rpaulo /* fill in the ip6 header */
601 1.31 rpaulo ip6 = mtod(*mh, struct ip6_hdr *);
602 1.31 rpaulo memset(ip6, 0, sizeof(*ip6));
603 1.31 rpaulo ip6->ip6_flow = 0;
604 1.31 rpaulo ip6->ip6_vfc &= ~IPV6_VERSION_MASK;
605 1.31 rpaulo ip6->ip6_vfc |= IPV6_VERSION;
606 1.31 rpaulo /* ip6_plen will be set later */
607 1.31 rpaulo ip6->ip6_nxt = IPPROTO_ICMPV6;
608 1.31 rpaulo /* ip6_hlim will be set by im6o.im6o_multicast_hlim */
609 1.31 rpaulo /* ip6_src/dst will be set by mld_sendpkt() or mld_sendbuf() */
610 1.31 rpaulo
611 1.31 rpaulo /* fill in the MLD header as much as possible */
612 1.31 rpaulo md->m_len = len;
613 1.31 rpaulo mldh = mtod(md, struct mld_hdr *);
614 1.31 rpaulo memset(mldh, 0, len);
615 1.31 rpaulo mldh->mld_type = type;
616 1.31 rpaulo return mldh;
617 1.31 rpaulo }
618 1.31 rpaulo
619 1.31 rpaulo /*
620 1.31 rpaulo * Add an address to the list of IP6 multicast addresses for a given interface.
621 1.31 rpaulo */
622 1.31 rpaulo struct in6_multi *
623 1.32 rpaulo in6_addmulti(maddr6, ifp, errorp, timer)
624 1.31 rpaulo struct in6_addr *maddr6;
625 1.31 rpaulo struct ifnet *ifp;
626 1.32 rpaulo int *errorp, timer;
627 1.31 rpaulo {
628 1.31 rpaulo struct in6_ifaddr *ia;
629 1.31 rpaulo struct in6_ifreq ifr;
630 1.31 rpaulo struct in6_multi *in6m;
631 1.31 rpaulo int s = splsoftnet();
632 1.31 rpaulo
633 1.31 rpaulo *errorp = 0;
634 1.31 rpaulo
635 1.31 rpaulo /*
636 1.31 rpaulo * See if address already in list.
637 1.31 rpaulo */
638 1.31 rpaulo IN6_LOOKUP_MULTI(*maddr6, ifp, in6m);
639 1.31 rpaulo if (in6m != NULL) {
640 1.31 rpaulo /*
641 1.31 rpaulo * Found it; just increment the refrence count.
642 1.31 rpaulo */
643 1.31 rpaulo in6m->in6m_refcount++;
644 1.31 rpaulo } else {
645 1.31 rpaulo /*
646 1.31 rpaulo * New address; allocate a new multicast record
647 1.31 rpaulo * and link it into the interface's multicast list.
648 1.31 rpaulo */
649 1.31 rpaulo in6m = (struct in6_multi *)
650 1.31 rpaulo malloc(sizeof(*in6m), M_IPMADDR, M_NOWAIT);
651 1.31 rpaulo if (in6m == NULL) {
652 1.31 rpaulo splx(s);
653 1.31 rpaulo *errorp = ENOBUFS;
654 1.31 rpaulo return (NULL);
655 1.31 rpaulo }
656 1.31 rpaulo
657 1.31 rpaulo memset(in6m, 0, sizeof(*in6m));
658 1.31 rpaulo in6m->in6m_addr = *maddr6;
659 1.31 rpaulo in6m->in6m_ifp = ifp;
660 1.31 rpaulo in6m->in6m_refcount = 1;
661 1.31 rpaulo in6m->in6m_timer = IN6M_TIMER_UNDEF;
662 1.31 rpaulo in6m->in6m_timer_ch =
663 1.31 rpaulo malloc(sizeof(*in6m->in6m_timer_ch), M_IPMADDR, M_NOWAIT);
664 1.31 rpaulo if (in6m->in6m_timer_ch == NULL) {
665 1.31 rpaulo free(in6m, M_IPMADDR);
666 1.31 rpaulo splx(s);
667 1.31 rpaulo return (NULL);
668 1.31 rpaulo }
669 1.31 rpaulo IFP_TO_IA6(ifp, ia);
670 1.31 rpaulo if (ia == NULL) {
671 1.36 dyoung /* leaks in6m_timer_ch */
672 1.31 rpaulo free(in6m, M_IPMADDR);
673 1.31 rpaulo splx(s);
674 1.31 rpaulo *errorp = EADDRNOTAVAIL; /* appropriate? */
675 1.31 rpaulo return (NULL);
676 1.31 rpaulo }
677 1.31 rpaulo in6m->in6m_ia = ia;
678 1.31 rpaulo IFAREF(&ia->ia_ifa); /* gain a reference */
679 1.31 rpaulo LIST_INSERT_HEAD(&ia->ia6_multiaddrs, in6m, in6m_entry);
680 1.31 rpaulo
681 1.31 rpaulo /*
682 1.31 rpaulo * Ask the network driver to update its multicast reception
683 1.31 rpaulo * filter appropriately for the new address.
684 1.31 rpaulo */
685 1.31 rpaulo memset(&ifr.ifr_addr, 0, sizeof(struct sockaddr_in6));
686 1.31 rpaulo ifr.ifr_addr.sin6_family = AF_INET6;
687 1.31 rpaulo ifr.ifr_addr.sin6_len = sizeof(struct sockaddr_in6);
688 1.31 rpaulo ifr.ifr_addr.sin6_addr = *maddr6;
689 1.31 rpaulo if (ifp->if_ioctl == NULL)
690 1.31 rpaulo *errorp = ENXIO; /* XXX: appropriate? */
691 1.31 rpaulo else
692 1.31 rpaulo *errorp = (*ifp->if_ioctl)(ifp, SIOCADDMULTI,
693 1.31 rpaulo (caddr_t)&ifr);
694 1.31 rpaulo if (*errorp) {
695 1.31 rpaulo LIST_REMOVE(in6m, in6m_entry);
696 1.36 dyoung /* leaks in6m_timer_ch */
697 1.31 rpaulo free(in6m, M_IPMADDR);
698 1.31 rpaulo IFAFREE(&ia->ia_ifa);
699 1.31 rpaulo splx(s);
700 1.31 rpaulo return (NULL);
701 1.31 rpaulo }
702 1.31 rpaulo
703 1.31 rpaulo callout_init(in6m->in6m_timer_ch);
704 1.32 rpaulo in6m->in6m_timer = timer;
705 1.31 rpaulo if (in6m->in6m_timer > 0) {
706 1.31 rpaulo in6m->in6m_state = MLD_REPORTPENDING;
707 1.31 rpaulo mld_starttimer(in6m);
708 1.31 rpaulo
709 1.31 rpaulo splx(s);
710 1.31 rpaulo return (in6m);
711 1.31 rpaulo }
712 1.31 rpaulo
713 1.31 rpaulo /*
714 1.31 rpaulo * Let MLD6 know that we have joined a new IP6 multicast
715 1.31 rpaulo * group.
716 1.31 rpaulo */
717 1.31 rpaulo mld_start_listening(in6m);
718 1.31 rpaulo }
719 1.31 rpaulo splx(s);
720 1.31 rpaulo return (in6m);
721 1.31 rpaulo }
722 1.31 rpaulo
723 1.31 rpaulo /*
724 1.31 rpaulo * Delete a multicast address record.
725 1.31 rpaulo */
726 1.31 rpaulo void
727 1.31 rpaulo in6_delmulti(in6m)
728 1.31 rpaulo struct in6_multi *in6m;
729 1.31 rpaulo {
730 1.31 rpaulo struct in6_ifreq ifr;
731 1.31 rpaulo struct in6_ifaddr *ia;
732 1.31 rpaulo int s = splsoftnet();
733 1.31 rpaulo
734 1.31 rpaulo mld_stoptimer(in6m);
735 1.31 rpaulo
736 1.31 rpaulo if (--in6m->in6m_refcount == 0) {
737 1.31 rpaulo /*
738 1.31 rpaulo * No remaining claims to this record; let MLD6 know
739 1.31 rpaulo * that we are leaving the multicast group.
740 1.31 rpaulo */
741 1.31 rpaulo mld_stop_listening(in6m);
742 1.31 rpaulo
743 1.31 rpaulo /*
744 1.31 rpaulo * Unlink from list.
745 1.31 rpaulo */
746 1.31 rpaulo LIST_REMOVE(in6m, in6m_entry);
747 1.35 dyoung if (in6m->in6m_ia != NULL) {
748 1.31 rpaulo IFAFREE(&in6m->in6m_ia->ia_ifa); /* release reference */
749 1.35 dyoung in6m->in6m_ia = NULL;
750 1.31 rpaulo }
751 1.31 rpaulo
752 1.31 rpaulo /*
753 1.31 rpaulo * Delete all references of this multicasting group from
754 1.31 rpaulo * the membership arrays
755 1.31 rpaulo */
756 1.31 rpaulo for (ia = in6_ifaddr; ia; ia = ia->ia_next) {
757 1.31 rpaulo struct in6_multi_mship *imm;
758 1.35 dyoung LIST_FOREACH(imm, &ia->ia6_memberships, i6mm_chain) {
759 1.31 rpaulo if (imm->i6mm_maddr == in6m)
760 1.31 rpaulo imm->i6mm_maddr = NULL;
761 1.31 rpaulo }
762 1.31 rpaulo }
763 1.31 rpaulo
764 1.31 rpaulo /*
765 1.31 rpaulo * Notify the network driver to update its multicast
766 1.31 rpaulo * reception filter.
767 1.31 rpaulo */
768 1.31 rpaulo memset(&ifr.ifr_addr, 0, sizeof(struct sockaddr_in6));
769 1.31 rpaulo ifr.ifr_addr.sin6_family = AF_INET6;
770 1.31 rpaulo ifr.ifr_addr.sin6_len = sizeof(struct sockaddr_in6);
771 1.31 rpaulo ifr.ifr_addr.sin6_addr = in6m->in6m_addr;
772 1.31 rpaulo (*in6m->in6m_ifp->if_ioctl)(in6m->in6m_ifp,
773 1.31 rpaulo SIOCDELMULTI, (caddr_t)&ifr);
774 1.31 rpaulo free(in6m->in6m_timer_ch, M_IPMADDR);
775 1.31 rpaulo free(in6m, M_IPMADDR);
776 1.31 rpaulo }
777 1.31 rpaulo splx(s);
778 1.31 rpaulo }
779 1.31 rpaulo
780 1.31 rpaulo
781 1.31 rpaulo struct in6_multi_mship *
782 1.32 rpaulo in6_joingroup(ifp, addr, errorp, timer)
783 1.31 rpaulo struct ifnet *ifp;
784 1.31 rpaulo struct in6_addr *addr;
785 1.32 rpaulo int *errorp, timer;
786 1.31 rpaulo {
787 1.31 rpaulo struct in6_multi_mship *imm;
788 1.31 rpaulo
789 1.31 rpaulo imm = malloc(sizeof(*imm), M_IPMADDR, M_NOWAIT);
790 1.31 rpaulo if (!imm) {
791 1.31 rpaulo *errorp = ENOBUFS;
792 1.31 rpaulo return NULL;
793 1.31 rpaulo }
794 1.31 rpaulo
795 1.31 rpaulo memset(imm, 0, sizeof(*imm));
796 1.32 rpaulo imm->i6mm_maddr = in6_addmulti(addr, ifp, errorp, timer);
797 1.31 rpaulo if (!imm->i6mm_maddr) {
798 1.36 dyoung /* *errorp is already set */
799 1.31 rpaulo free(imm, M_IPMADDR);
800 1.31 rpaulo return NULL;
801 1.31 rpaulo }
802 1.31 rpaulo return imm;
803 1.31 rpaulo }
804 1.31 rpaulo
805 1.31 rpaulo int
806 1.31 rpaulo in6_leavegroup(imm)
807 1.31 rpaulo struct in6_multi_mship *imm;
808 1.31 rpaulo {
809 1.31 rpaulo
810 1.31 rpaulo if (imm->i6mm_maddr) {
811 1.31 rpaulo in6_delmulti(imm->i6mm_maddr);
812 1.31 rpaulo }
813 1.31 rpaulo free(imm, M_IPMADDR);
814 1.31 rpaulo return 0;
815 1.31 rpaulo }
816 1.31 rpaulo
817 1.31 rpaulo
818 1.31 rpaulo /*
819 1.31 rpaulo * Multicast address kludge:
820 1.31 rpaulo * If there were any multicast addresses attached to this interface address,
821 1.31 rpaulo * either move them to another address on this interface, or save them until
822 1.31 rpaulo * such time as this interface is reconfigured for IPv6.
823 1.31 rpaulo */
824 1.31 rpaulo void
825 1.31 rpaulo in6_savemkludge(oia)
826 1.31 rpaulo struct in6_ifaddr *oia;
827 1.31 rpaulo {
828 1.31 rpaulo struct in6_ifaddr *ia;
829 1.36 dyoung struct in6_multi *in6m;
830 1.31 rpaulo
831 1.31 rpaulo IFP_TO_IA6(oia->ia_ifp, ia);
832 1.31 rpaulo if (ia) { /* there is another address */
833 1.36 dyoung KASSERT(ia != oia);
834 1.36 dyoung while ((in6m = LIST_FIRST(&oia->ia6_multiaddrs)) != NULL) {
835 1.36 dyoung LIST_REMOVE(in6m, in6m_entry);
836 1.36 dyoung IFAREF(&ia->ia_ifa);
837 1.31 rpaulo IFAFREE(&in6m->in6m_ia->ia_ifa);
838 1.31 rpaulo in6m->in6m_ia = ia;
839 1.31 rpaulo LIST_INSERT_HEAD(&ia->ia6_multiaddrs, in6m, in6m_entry);
840 1.31 rpaulo }
841 1.31 rpaulo } else { /* last address on this if deleted, save */
842 1.31 rpaulo struct multi6_kludge *mk;
843 1.31 rpaulo
844 1.35 dyoung LIST_FOREACH(mk, &in6_mk, mk_entry) {
845 1.31 rpaulo if (mk->mk_ifp == oia->ia_ifp)
846 1.31 rpaulo break;
847 1.31 rpaulo }
848 1.31 rpaulo if (mk == NULL) /* this should not happen! */
849 1.31 rpaulo panic("in6_savemkludge: no kludge space");
850 1.31 rpaulo
851 1.36 dyoung while ((in6m = LIST_FIRST(&oia->ia6_multiaddrs)) != NULL) {
852 1.36 dyoung LIST_REMOVE(in6m, in6m_entry);
853 1.31 rpaulo IFAFREE(&in6m->in6m_ia->ia_ifa); /* release reference */
854 1.31 rpaulo in6m->in6m_ia = NULL;
855 1.31 rpaulo LIST_INSERT_HEAD(&mk->mk_head, in6m, in6m_entry);
856 1.31 rpaulo }
857 1.31 rpaulo }
858 1.31 rpaulo }
859 1.31 rpaulo
860 1.31 rpaulo /*
861 1.31 rpaulo * Continuation of multicast address hack:
862 1.31 rpaulo * If there was a multicast group list previously saved for this interface,
863 1.31 rpaulo * then we re-attach it to the first address configured on the i/f.
864 1.31 rpaulo */
865 1.31 rpaulo void
866 1.31 rpaulo in6_restoremkludge(ia, ifp)
867 1.31 rpaulo struct in6_ifaddr *ia;
868 1.31 rpaulo struct ifnet *ifp;
869 1.31 rpaulo {
870 1.31 rpaulo struct multi6_kludge *mk;
871 1.36 dyoung struct in6_multi *in6m;
872 1.31 rpaulo
873 1.35 dyoung LIST_FOREACH(mk, &in6_mk, mk_entry) {
874 1.35 dyoung if (mk->mk_ifp == ifp)
875 1.31 rpaulo break;
876 1.31 rpaulo }
877 1.35 dyoung if (mk == NULL)
878 1.35 dyoung return;
879 1.36 dyoung while ((in6m = LIST_FIRST(&mk->mk_head)) != NULL) {
880 1.36 dyoung LIST_REMOVE(in6m, in6m_entry);
881 1.35 dyoung in6m->in6m_ia = ia;
882 1.35 dyoung IFAREF(&ia->ia_ifa);
883 1.35 dyoung LIST_INSERT_HEAD(&ia->ia6_multiaddrs, in6m, in6m_entry);
884 1.35 dyoung }
885 1.31 rpaulo }
886 1.31 rpaulo
887 1.31 rpaulo /*
888 1.31 rpaulo * Allocate space for the kludge at interface initialization time.
889 1.31 rpaulo * Formerly, we dynamically allocated the space in in6_savemkludge() with
890 1.31 rpaulo * malloc(M_WAITOK). However, it was wrong since the function could be called
891 1.31 rpaulo * under an interrupt context (software timer on address lifetime expiration).
892 1.31 rpaulo * Also, we cannot just give up allocating the strucutre, since the group
893 1.31 rpaulo * membership structure is very complex and we need to keep it anyway.
894 1.31 rpaulo * Of course, this function MUST NOT be called under an interrupt context.
895 1.31 rpaulo * Specifically, it is expected to be called only from in6_ifattach(), though
896 1.31 rpaulo * it is a global function.
897 1.31 rpaulo */
898 1.31 rpaulo void
899 1.31 rpaulo in6_createmkludge(ifp)
900 1.31 rpaulo struct ifnet *ifp;
901 1.31 rpaulo {
902 1.31 rpaulo struct multi6_kludge *mk;
903 1.31 rpaulo
904 1.35 dyoung LIST_FOREACH(mk, &in6_mk, mk_entry) {
905 1.31 rpaulo /* If we've already had one, do not allocate. */
906 1.31 rpaulo if (mk->mk_ifp == ifp)
907 1.31 rpaulo return;
908 1.31 rpaulo }
909 1.31 rpaulo
910 1.31 rpaulo mk = malloc(sizeof(*mk), M_IPMADDR, M_WAITOK);
911 1.31 rpaulo
912 1.31 rpaulo memset(mk, 0, sizeof(*mk));
913 1.31 rpaulo LIST_INIT(&mk->mk_head);
914 1.31 rpaulo mk->mk_ifp = ifp;
915 1.31 rpaulo LIST_INSERT_HEAD(&in6_mk, mk, mk_entry);
916 1.31 rpaulo }
917 1.31 rpaulo
918 1.31 rpaulo void
919 1.31 rpaulo in6_purgemkludge(ifp)
920 1.31 rpaulo struct ifnet *ifp;
921 1.31 rpaulo {
922 1.31 rpaulo struct multi6_kludge *mk;
923 1.36 dyoung struct in6_multi *in6m, *next;
924 1.31 rpaulo
925 1.35 dyoung LIST_FOREACH(mk, &in6_mk, mk_entry) {
926 1.35 dyoung if (mk->mk_ifp == ifp)
927 1.35 dyoung break;
928 1.35 dyoung }
929 1.35 dyoung if (mk == NULL)
930 1.35 dyoung return;
931 1.35 dyoung
932 1.35 dyoung /* leave from all multicast groups joined */
933 1.36 dyoung for (in6m = LIST_FIRST(&mk->mk_head); in6m != NULL; in6m = next) {
934 1.36 dyoung next = LIST_NEXT(in6m, in6m_entry);
935 1.35 dyoung in6_delmulti(in6m);
936 1.31 rpaulo }
937 1.35 dyoung LIST_REMOVE(mk, mk_entry);
938 1.35 dyoung free(mk, M_IPMADDR);
939 1.31 rpaulo }
940