in6_src.c revision 1.28 1 1.23 rpaulo /* $KAME: in6_src.c,v 1.159 2005/10/19 01:40:32 t-momose Exp $ */
2 1.1 itojun
3 1.1 itojun /*
4 1.1 itojun * Copyright (C) 1995, 1996, 1997, and 1998 WIDE Project.
5 1.1 itojun * All rights reserved.
6 1.1 itojun *
7 1.1 itojun * Redistribution and use in source and binary forms, with or without
8 1.1 itojun * modification, are permitted provided that the following conditions
9 1.1 itojun * are met:
10 1.1 itojun * 1. Redistributions of source code must retain the above copyright
11 1.1 itojun * notice, this list of conditions and the following disclaimer.
12 1.1 itojun * 2. Redistributions in binary form must reproduce the above copyright
13 1.1 itojun * notice, this list of conditions and the following disclaimer in the
14 1.1 itojun * documentation and/or other materials provided with the distribution.
15 1.1 itojun * 3. Neither the name of the project nor the names of its contributors
16 1.1 itojun * may be used to endorse or promote products derived from this software
17 1.1 itojun * without specific prior written permission.
18 1.1 itojun *
19 1.1 itojun * THIS SOFTWARE IS PROVIDED BY THE PROJECT AND CONTRIBUTORS ``AS IS'' AND
20 1.1 itojun * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
21 1.1 itojun * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
22 1.1 itojun * ARE DISCLAIMED. IN NO EVENT SHALL THE PROJECT OR CONTRIBUTORS BE LIABLE
23 1.1 itojun * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
24 1.1 itojun * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
25 1.1 itojun * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
26 1.1 itojun * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
27 1.1 itojun * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
28 1.1 itojun * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
29 1.1 itojun * SUCH DAMAGE.
30 1.1 itojun */
31 1.1 itojun
32 1.1 itojun /*
33 1.1 itojun * Copyright (c) 1982, 1986, 1991, 1993
34 1.1 itojun * The Regents of the University of California. All rights reserved.
35 1.1 itojun *
36 1.1 itojun * Redistribution and use in source and binary forms, with or without
37 1.1 itojun * modification, are permitted provided that the following conditions
38 1.1 itojun * are met:
39 1.1 itojun * 1. Redistributions of source code must retain the above copyright
40 1.1 itojun * notice, this list of conditions and the following disclaimer.
41 1.1 itojun * 2. Redistributions in binary form must reproduce the above copyright
42 1.1 itojun * notice, this list of conditions and the following disclaimer in the
43 1.1 itojun * documentation and/or other materials provided with the distribution.
44 1.23 rpaulo * 3. All advertising materials mentioning features or use of this software
45 1.23 rpaulo * must display the following acknowledgement:
46 1.23 rpaulo * This product includes software developed by the University of
47 1.23 rpaulo * California, Berkeley and its contributors.
48 1.23 rpaulo * 4. Neither the name of the University nor the names of its contributors
49 1.1 itojun * may be used to endorse or promote products derived from this software
50 1.1 itojun * without specific prior written permission.
51 1.1 itojun *
52 1.1 itojun * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
53 1.1 itojun * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
54 1.1 itojun * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
55 1.1 itojun * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
56 1.1 itojun * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
57 1.1 itojun * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
58 1.1 itojun * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
59 1.1 itojun * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
60 1.1 itojun * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
61 1.1 itojun * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
62 1.1 itojun * SUCH DAMAGE.
63 1.1 itojun *
64 1.1 itojun * @(#)in_pcb.c 8.2 (Berkeley) 1/4/94
65 1.1 itojun */
66 1.9 lukem
67 1.9 lukem #include <sys/cdefs.h>
68 1.28 dyoung __KERNEL_RCSID(0, "$NetBSD: in6_src.c,v 1.28 2006/09/01 01:59:56 dyoung Exp $");
69 1.1 itojun
70 1.1 itojun #include "opt_inet.h"
71 1.1 itojun
72 1.1 itojun #include <sys/param.h>
73 1.1 itojun #include <sys/systm.h>
74 1.1 itojun #include <sys/malloc.h>
75 1.1 itojun #include <sys/mbuf.h>
76 1.1 itojun #include <sys/protosw.h>
77 1.1 itojun #include <sys/socket.h>
78 1.1 itojun #include <sys/socketvar.h>
79 1.23 rpaulo #ifndef __FreeBSD__
80 1.1 itojun #include <sys/ioctl.h>
81 1.23 rpaulo #else
82 1.23 rpaulo #include <sys/sockio.h>
83 1.23 rpaulo #endif
84 1.23 rpaulo #ifdef __FreeBSD__
85 1.23 rpaulo #include <sys/sysctl.h>
86 1.23 rpaulo #endif
87 1.1 itojun #include <sys/errno.h>
88 1.1 itojun #include <sys/time.h>
89 1.23 rpaulo #include <sys/kernel.h>
90 1.1 itojun #include <sys/proc.h>
91 1.26 elad #include <sys/kauth.h>
92 1.1 itojun
93 1.1 itojun #include <net/if.h>
94 1.23 rpaulo #include <net/if_types.h>
95 1.1 itojun #include <net/route.h>
96 1.23 rpaulo #ifdef RADIX_MPATH
97 1.23 rpaulo #include <net/radix_mpath.h>
98 1.23 rpaulo #endif
99 1.1 itojun
100 1.1 itojun #include <netinet/in.h>
101 1.1 itojun #include <netinet/in_var.h>
102 1.1 itojun #include <netinet/in_systm.h>
103 1.1 itojun #include <netinet/ip.h>
104 1.1 itojun #include <netinet/in_pcb.h>
105 1.1 itojun #include <netinet6/in6_var.h>
106 1.1 itojun #include <netinet/ip6.h>
107 1.23 rpaulo #ifndef __OpenBSD__
108 1.1 itojun #include <netinet6/in6_pcb.h>
109 1.23 rpaulo #endif
110 1.1 itojun #include <netinet6/ip6_var.h>
111 1.1 itojun #include <netinet6/nd6.h>
112 1.13 itojun #include <netinet6/scope6_var.h>
113 1.23 rpaulo
114 1.23 rpaulo #include <net/net_osdep.h>
115 1.23 rpaulo
116 1.23 rpaulo #ifdef MIP6
117 1.23 rpaulo #include <netinet6/mip6.h>
118 1.23 rpaulo #include <netinet6/mip6_var.h>
119 1.23 rpaulo #include "mip.h"
120 1.23 rpaulo #if NMIP > 0
121 1.23 rpaulo #include <net/if_mip.h>
122 1.23 rpaulo #endif /* NMIP > 0 */
123 1.23 rpaulo #endif /* MIP6 */
124 1.23 rpaulo
125 1.23 rpaulo #ifndef __OpenBSD__
126 1.23 rpaulo #include "loop.h"
127 1.23 rpaulo #endif
128 1.23 rpaulo #ifdef __NetBSD__
129 1.23 rpaulo extern struct ifnet loif[NLOOP];
130 1.2 itojun #endif
131 1.1 itojun
132 1.23 rpaulo #define ADDR_LABEL_NOTAPP (-1)
133 1.23 rpaulo struct in6_addrpolicy defaultaddrpolicy;
134 1.23 rpaulo
135 1.23 rpaulo #ifdef notyet /* until introducing ND extensions and address selection */
136 1.23 rpaulo int ip6_prefer_tempaddr = 0;
137 1.23 rpaulo #endif
138 1.23 rpaulo
139 1.23 rpaulo static int selectroute __P((struct sockaddr_in6 *, struct ip6_pktopts *,
140 1.23 rpaulo struct ip6_moptions *, struct route_in6 *, struct ifnet **,
141 1.23 rpaulo struct rtentry **, int, int));
142 1.23 rpaulo static int in6_selectif __P((struct sockaddr_in6 *, struct ip6_pktopts *,
143 1.23 rpaulo struct ip6_moptions *, struct route_in6 *, struct ifnet **));
144 1.23 rpaulo
145 1.23 rpaulo static struct in6_addrpolicy *lookup_addrsel_policy __P((struct sockaddr_in6 *));
146 1.23 rpaulo
147 1.23 rpaulo static void init_policy_queue __P((void));
148 1.23 rpaulo static int add_addrsel_policyent __P((struct in6_addrpolicy *));
149 1.23 rpaulo static int delete_addrsel_policyent __P((struct in6_addrpolicy *));
150 1.23 rpaulo static int walk_addrsel_policy __P((int (*)(struct in6_addrpolicy *, void *),
151 1.23 rpaulo void *));
152 1.23 rpaulo static int dump_addrsel_policyent __P((struct in6_addrpolicy *, void *));
153 1.23 rpaulo static struct in6_addrpolicy *match_addrsel_policy __P((struct sockaddr_in6 *));
154 1.1 itojun
155 1.1 itojun /*
156 1.5 itojun * Return an IPv6 address, which is the most appropriate for a given
157 1.1 itojun * destination and user specified options.
158 1.5 itojun * If necessary, this function lookups the routing table and returns
159 1.1 itojun * an entry to the caller for later use.
160 1.1 itojun */
161 1.23 rpaulo #if 0 /* diabled ad-hoc */
162 1.23 rpaulo #define REPLACE(r) do {\
163 1.23 rpaulo if ((r) < sizeof(ip6stat.ip6s_sources_rule) / \
164 1.23 rpaulo sizeof(ip6stat.ip6s_sources_rule[0])) /* check for safety */ \
165 1.23 rpaulo ip6stat.ip6s_sources_rule[(r)]++; \
166 1.23 rpaulo /* printf("in6_selectsrc: replace %s with %s by %d\n", ia_best ? ip6_sprintf(&ia_best->ia_addr.sin6_addr) : "none", ip6_sprintf(&ia->ia_addr.sin6_addr), (r)); */ \
167 1.23 rpaulo goto replace; \
168 1.23 rpaulo } while(0)
169 1.23 rpaulo #define NEXT(r) do {\
170 1.23 rpaulo if ((r) < sizeof(ip6stat.ip6s_sources_rule) / \
171 1.23 rpaulo sizeof(ip6stat.ip6s_sources_rule[0])) /* check for safety */ \
172 1.23 rpaulo ip6stat.ip6s_sources_rule[(r)]++; \
173 1.23 rpaulo /* printf("in6_selectsrc: keep %s against %s by %d\n", ia_best ? ip6_sprintf(&ia_best->ia_addr.sin6_addr) : "none", ip6_sprintf(&ia->ia_addr.sin6_addr), (r)); */ \
174 1.23 rpaulo goto next; /* XXX: we can't use 'continue' here */ \
175 1.23 rpaulo } while(0)
176 1.23 rpaulo #define BREAK(r) do { \
177 1.23 rpaulo if ((r) < sizeof(ip6stat.ip6s_sources_rule) / \
178 1.23 rpaulo sizeof(ip6stat.ip6s_sources_rule[0])) /* check for safety */ \
179 1.23 rpaulo ip6stat.ip6s_sources_rule[(r)]++; \
180 1.23 rpaulo goto out; /* XXX: we can't use 'break' here */ \
181 1.23 rpaulo } while(0)
182 1.23 rpaulo #else
183 1.23 rpaulo #define REPLACE(r) goto replace
184 1.23 rpaulo #define NEXT(r) goto next
185 1.23 rpaulo #define BREAK(r) goto out
186 1.23 rpaulo #endif
187 1.23 rpaulo
188 1.1 itojun struct in6_addr *
189 1.23 rpaulo in6_selectsrc(dstsock, opts, mopts, ro, laddr, ifpp, errorp)
190 1.1 itojun struct sockaddr_in6 *dstsock;
191 1.1 itojun struct ip6_pktopts *opts;
192 1.1 itojun struct ip6_moptions *mopts;
193 1.1 itojun struct route_in6 *ro;
194 1.1 itojun struct in6_addr *laddr;
195 1.23 rpaulo struct ifnet **ifpp;
196 1.1 itojun int *errorp;
197 1.1 itojun {
198 1.23 rpaulo struct in6_addr dst;
199 1.23 rpaulo struct ifnet *ifp = NULL;
200 1.23 rpaulo struct in6_ifaddr *ia = NULL, *ia_best = NULL;
201 1.1 itojun struct in6_pktinfo *pi = NULL;
202 1.23 rpaulo int dst_scope = -1, best_scope = -1, best_matchlen = -1;
203 1.23 rpaulo struct in6_addrpolicy *dst_policy = NULL, *best_policy = NULL;
204 1.23 rpaulo u_int32_t odstzone;
205 1.28 dyoung int error;
206 1.23 rpaulo #ifdef notyet /* until introducing ND extensions and address selection */
207 1.23 rpaulo int prefer_tempaddr;
208 1.23 rpaulo #endif
209 1.23 rpaulo #if defined(MIP6) && NMIP > 0
210 1.23 rpaulo u_int8_t ip6po_usecoa = 0;
211 1.23 rpaulo #endif /* MIP6 && NMIP > 0 */
212 1.1 itojun
213 1.23 rpaulo dst = dstsock->sin6_addr; /* make a copy for local operation */
214 1.1 itojun *errorp = 0;
215 1.23 rpaulo if (ifpp)
216 1.23 rpaulo *ifpp = NULL;
217 1.1 itojun
218 1.1 itojun /*
219 1.28 dyoung * Try to determine the outgoing interface for the given destination.
220 1.28 dyoung * We do this regardless of whether the socket is bound, since the
221 1.28 dyoung * caller may need this information as a side effect of the call
222 1.28 dyoung * to this function (e.g., for identifying the appropriate scope zone
223 1.28 dyoung * ID).
224 1.28 dyoung */
225 1.28 dyoung error = in6_selectif(dstsock, opts, mopts, ro, &ifp);
226 1.28 dyoung if (ifpp)
227 1.28 dyoung *ifpp = ifp;
228 1.28 dyoung
229 1.28 dyoung /*
230 1.1 itojun * If the source address is explicitly specified by the caller,
231 1.23 rpaulo * check if the requested source address is indeed a unicast address
232 1.23 rpaulo * assigned to the node, and can be used as the packet's source
233 1.23 rpaulo * address. If everything is okay, use the address as source.
234 1.1 itojun */
235 1.1 itojun if (opts && (pi = opts->ip6po_pktinfo) &&
236 1.23 rpaulo !IN6_IS_ADDR_UNSPECIFIED(&pi->ipi6_addr)) {
237 1.23 rpaulo struct sockaddr_in6 srcsock;
238 1.23 rpaulo struct in6_ifaddr *ia6;
239 1.23 rpaulo
240 1.23 rpaulo /*
241 1.23 rpaulo * Determine the appropriate zone id of the source based on
242 1.23 rpaulo * the zone of the destination and the outgoing interface.
243 1.23 rpaulo * If the specified address is ambiguous wrt the scope zone,
244 1.23 rpaulo * the interface must be specified; otherwise, ifa_ifwithaddr()
245 1.23 rpaulo * will fail matching the address.
246 1.23 rpaulo */
247 1.23 rpaulo bzero(&srcsock, sizeof(srcsock));
248 1.23 rpaulo srcsock.sin6_family = AF_INET6;
249 1.23 rpaulo srcsock.sin6_len = sizeof(srcsock);
250 1.23 rpaulo srcsock.sin6_addr = pi->ipi6_addr;
251 1.23 rpaulo if (ifp) {
252 1.23 rpaulo *errorp = in6_setscope(&srcsock.sin6_addr, ifp, NULL);
253 1.23 rpaulo if (*errorp != 0)
254 1.23 rpaulo return (NULL);
255 1.23 rpaulo }
256 1.23 rpaulo
257 1.23 rpaulo ia6 = (struct in6_ifaddr *)ifa_ifwithaddr((struct sockaddr *)(&srcsock));
258 1.23 rpaulo if (ia6 == NULL ||
259 1.23 rpaulo (ia6->ia6_flags & (IN6_IFF_ANYCAST | IN6_IFF_NOTREADY))) {
260 1.23 rpaulo *errorp = EADDRNOTAVAIL;
261 1.23 rpaulo return (NULL);
262 1.23 rpaulo }
263 1.23 rpaulo pi->ipi6_addr = srcsock.sin6_addr; /* XXX: this overrides pi */
264 1.23 rpaulo if (ifpp)
265 1.23 rpaulo *ifpp = ifp;
266 1.23 rpaulo return (&ia6->ia_addr.sin6_addr);
267 1.23 rpaulo }
268 1.1 itojun
269 1.1 itojun /*
270 1.28 dyoung * If the socket has already bound the source, just use it. We don't
271 1.28 dyoung * care at the moment whether in6_selectif() succeeded above, even
272 1.28 dyoung * though it would eventually cause an error.
273 1.1 itojun */
274 1.1 itojun if (laddr && !IN6_IS_ADDR_UNSPECIFIED(laddr))
275 1.15 itojun return (laddr);
276 1.1 itojun
277 1.1 itojun /*
278 1.28 dyoung * The outgoing interface is crucial in the general selection procedure
279 1.28 dyoung * below. If it is not known at this point, we fail.
280 1.28 dyoung */
281 1.28 dyoung if (ifp == NULL) {
282 1.28 dyoung *errorp = error;
283 1.28 dyoung return (NULL);
284 1.28 dyoung }
285 1.28 dyoung
286 1.28 dyoung /*
287 1.28 dyoung * If the address is not yet determined, choose the best one based on
288 1.23 rpaulo * the outgoing interface and the destination address.
289 1.1 itojun */
290 1.1 itojun
291 1.23 rpaulo #if defined(MIP6) && NMIP > 0
292 1.1 itojun /*
293 1.23 rpaulo * a caller can specify IP6PO_USECOA to not to use a home
294 1.23 rpaulo * address. for example, the case that the neighbour
295 1.23 rpaulo * unreachability detection to the global address.
296 1.1 itojun */
297 1.23 rpaulo if (opts != NULL &&
298 1.23 rpaulo (opts->ip6po_flags & IP6PO_USECOA) != 0) {
299 1.23 rpaulo ip6po_usecoa = 1;
300 1.23 rpaulo }
301 1.23 rpaulo #endif /* MIP6 && NMIP > 0 */
302 1.23 rpaulo
303 1.23 rpaulo #ifdef DIAGNOSTIC
304 1.23 rpaulo if (ifp == NULL) /* this should not happen */
305 1.23 rpaulo panic("in6_selectsrc: NULL ifp");
306 1.23 rpaulo #endif
307 1.23 rpaulo *errorp = in6_setscope(&dst, ifp, &odstzone);
308 1.23 rpaulo if (*errorp != 0)
309 1.23 rpaulo return (NULL);
310 1.23 rpaulo
311 1.23 rpaulo for (ia = in6_ifaddr; ia; ia = ia->ia_next) {
312 1.23 rpaulo int new_scope = -1, new_matchlen = -1;
313 1.23 rpaulo struct in6_addrpolicy *new_policy = NULL;
314 1.23 rpaulo u_int32_t srczone, osrczone, dstzone;
315 1.23 rpaulo struct in6_addr src;
316 1.23 rpaulo struct ifnet *ifp1 = ia->ia_ifp;
317 1.23 rpaulo
318 1.1 itojun /*
319 1.23 rpaulo * We'll never take an address that breaks the scope zone
320 1.23 rpaulo * of the destination. We also skip an address if its zone
321 1.23 rpaulo * does not contain the outgoing interface.
322 1.23 rpaulo * XXX: we should probably use sin6_scope_id here.
323 1.1 itojun */
324 1.23 rpaulo if (in6_setscope(&dst, ifp1, &dstzone) ||
325 1.23 rpaulo odstzone != dstzone) {
326 1.23 rpaulo continue;
327 1.23 rpaulo }
328 1.23 rpaulo src = ia->ia_addr.sin6_addr;
329 1.23 rpaulo if (in6_setscope(&src, ifp, &osrczone) ||
330 1.23 rpaulo in6_setscope(&src, ifp1, &srczone) ||
331 1.23 rpaulo osrczone != srczone) {
332 1.23 rpaulo continue;
333 1.23 rpaulo }
334 1.23 rpaulo
335 1.23 rpaulo /* avoid unusable addresses */
336 1.23 rpaulo if ((ia->ia6_flags &
337 1.23 rpaulo (IN6_IFF_NOTREADY | IN6_IFF_ANYCAST | IN6_IFF_DETACHED))) {
338 1.23 rpaulo continue;
339 1.23 rpaulo }
340 1.23 rpaulo if (!ip6_use_deprecated && IFA6_IS_DEPRECATED(ia))
341 1.23 rpaulo continue;
342 1.23 rpaulo
343 1.23 rpaulo #if defined(MIP6) && NMIP > 0
344 1.23 rpaulo /* avoid unusable home addresses. */
345 1.23 rpaulo if ((ia->ia6_flags & IN6_IFF_HOME) &&
346 1.23 rpaulo !mip6_ifa6_is_addr_valid_hoa(ia))
347 1.23 rpaulo continue;
348 1.23 rpaulo #endif /* MIP6 && NMIP > 0 */
349 1.23 rpaulo
350 1.23 rpaulo /* Rule 1: Prefer same address */
351 1.23 rpaulo if (IN6_ARE_ADDR_EQUAL(&dst, &ia->ia_addr.sin6_addr)) {
352 1.23 rpaulo ia_best = ia;
353 1.23 rpaulo BREAK(1); /* there should be no better candidate */
354 1.1 itojun }
355 1.1 itojun
356 1.23 rpaulo if (ia_best == NULL)
357 1.23 rpaulo REPLACE(0);
358 1.23 rpaulo
359 1.23 rpaulo /* Rule 2: Prefer appropriate scope */
360 1.23 rpaulo if (dst_scope < 0)
361 1.23 rpaulo dst_scope = in6_addrscope(&dst);
362 1.23 rpaulo new_scope = in6_addrscope(&ia->ia_addr.sin6_addr);
363 1.23 rpaulo if (IN6_ARE_SCOPE_CMP(best_scope, new_scope) < 0) {
364 1.23 rpaulo if (IN6_ARE_SCOPE_CMP(best_scope, dst_scope) < 0)
365 1.23 rpaulo REPLACE(2);
366 1.23 rpaulo NEXT(2);
367 1.23 rpaulo } else if (IN6_ARE_SCOPE_CMP(new_scope, best_scope) < 0) {
368 1.23 rpaulo if (IN6_ARE_SCOPE_CMP(new_scope, dst_scope) < 0)
369 1.23 rpaulo NEXT(2);
370 1.23 rpaulo REPLACE(2);
371 1.23 rpaulo }
372 1.1 itojun
373 1.23 rpaulo /*
374 1.23 rpaulo * Rule 3: Avoid deprecated addresses. Note that the case of
375 1.23 rpaulo * !ip6_use_deprecated is already rejected above.
376 1.23 rpaulo */
377 1.23 rpaulo if (!IFA6_IS_DEPRECATED(ia_best) && IFA6_IS_DEPRECATED(ia))
378 1.23 rpaulo NEXT(3);
379 1.23 rpaulo if (IFA6_IS_DEPRECATED(ia_best) && !IFA6_IS_DEPRECATED(ia))
380 1.23 rpaulo REPLACE(3);
381 1.23 rpaulo
382 1.23 rpaulo /* Rule 4: Prefer home addresses */
383 1.23 rpaulo #if defined(MIP6) && NMIP > 0
384 1.23 rpaulo if (!MIP6_IS_MN)
385 1.23 rpaulo goto skip_rule4;
386 1.23 rpaulo
387 1.23 rpaulo if ((ia_best->ia6_flags & IN6_IFF_HOME) == 0 &&
388 1.23 rpaulo (ia->ia6_flags & IN6_IFF_HOME) == 0) {
389 1.23 rpaulo /* both address are not home addresses. */
390 1.23 rpaulo goto skip_rule4;
391 1.23 rpaulo }
392 1.1 itojun
393 1.23 rpaulo /*
394 1.23 rpaulo * If SA is simultaneously a home address and care-of
395 1.23 rpaulo * address and SB is not, then prefer SA. Similarly,
396 1.23 rpaulo * if SB is simultaneously a home address and care-of
397 1.23 rpaulo * address and SA is not, then prefer SB.
398 1.23 rpaulo */
399 1.23 rpaulo if (((ia_best->ia6_flags & IN6_IFF_HOME) != 0 &&
400 1.23 rpaulo ia_best->ia_ifp->if_type != IFT_MIP)
401 1.23 rpaulo &&
402 1.23 rpaulo ((ia->ia6_flags & IN6_IFF_HOME) != 0 &&
403 1.23 rpaulo ia->ia_ifp->if_type == IFT_MIP))
404 1.23 rpaulo NEXT(4);
405 1.23 rpaulo if (((ia_best->ia6_flags & IN6_IFF_HOME) != 0 &&
406 1.23 rpaulo ia_best->ia_ifp->if_type == IFT_MIP)
407 1.23 rpaulo &&
408 1.23 rpaulo ((ia->ia6_flags & IN6_IFF_HOME) != 0 &&
409 1.23 rpaulo ia->ia_ifp->if_type != IFT_MIP))
410 1.23 rpaulo REPLACE(4);
411 1.23 rpaulo if (ip6po_usecoa == 0) {
412 1.23 rpaulo /*
413 1.23 rpaulo * If SA is just a home address and SB is just
414 1.23 rpaulo * a care-of address, then prefer
415 1.23 rpaulo * SA. Similarly, if SB is just a home address
416 1.23 rpaulo * and SA is just a care-of address, then
417 1.23 rpaulo * prefer SB.
418 1.23 rpaulo */
419 1.23 rpaulo if ((ia_best->ia6_flags & IN6_IFF_HOME) != 0 &&
420 1.23 rpaulo (ia->ia6_flags & IN6_IFF_HOME) == 0) {
421 1.23 rpaulo NEXT(4);
422 1.23 rpaulo }
423 1.23 rpaulo if ((ia_best->ia6_flags & IN6_IFF_HOME) == 0 &&
424 1.23 rpaulo (ia->ia6_flags & IN6_IFF_HOME) != 0) {
425 1.23 rpaulo REPLACE(4);
426 1.23 rpaulo }
427 1.23 rpaulo } else {
428 1.23 rpaulo /*
429 1.23 rpaulo * a sender don't want to use a home address
430 1.23 rpaulo * because:
431 1.23 rpaulo *
432 1.23 rpaulo * 1) we cannot use. (ex. NS or NA to global
433 1.23 rpaulo * addresses.)
434 1.23 rpaulo *
435 1.23 rpaulo * 2) a user specified not to use.
436 1.23 rpaulo * (ex. mip6control -u)
437 1.23 rpaulo */
438 1.23 rpaulo if ((ia_best->ia6_flags & IN6_IFF_HOME) == 0 &&
439 1.23 rpaulo (ia->ia6_flags & IN6_IFF_HOME) != 0) {
440 1.23 rpaulo /* XXX breaks stat */
441 1.23 rpaulo NEXT(0);
442 1.23 rpaulo }
443 1.23 rpaulo if ((ia_best->ia6_flags & IN6_IFF_HOME) != 0 &&
444 1.23 rpaulo (ia->ia6_flags & IN6_IFF_HOME) == 0) {
445 1.23 rpaulo /* XXX breaks stat */
446 1.23 rpaulo REPLACE(0);
447 1.1 itojun }
448 1.23 rpaulo }
449 1.23 rpaulo skip_rule4:
450 1.23 rpaulo #endif /* MIP6 && NMIP > 0 */
451 1.23 rpaulo
452 1.23 rpaulo /* Rule 5: Prefer outgoing interface */
453 1.23 rpaulo if (ia_best->ia_ifp == ifp && ia->ia_ifp != ifp)
454 1.23 rpaulo NEXT(5);
455 1.23 rpaulo if (ia_best->ia_ifp != ifp && ia->ia_ifp == ifp)
456 1.23 rpaulo REPLACE(5);
457 1.23 rpaulo
458 1.23 rpaulo /*
459 1.23 rpaulo * Rule 6: Prefer matching label
460 1.23 rpaulo * Note that best_policy should be non-NULL here.
461 1.23 rpaulo */
462 1.23 rpaulo if (dst_policy == NULL)
463 1.23 rpaulo dst_policy = lookup_addrsel_policy(dstsock);
464 1.23 rpaulo if (dst_policy->label != ADDR_LABEL_NOTAPP) {
465 1.23 rpaulo new_policy = lookup_addrsel_policy(&ia->ia_addr);
466 1.23 rpaulo if (dst_policy->label == best_policy->label &&
467 1.23 rpaulo dst_policy->label != new_policy->label)
468 1.23 rpaulo NEXT(6);
469 1.23 rpaulo if (dst_policy->label != best_policy->label &&
470 1.23 rpaulo dst_policy->label == new_policy->label)
471 1.23 rpaulo REPLACE(6);
472 1.23 rpaulo }
473 1.23 rpaulo
474 1.23 rpaulo /*
475 1.23 rpaulo * Rule 7: Prefer public addresses.
476 1.23 rpaulo * We allow users to reverse the logic by configuring
477 1.23 rpaulo * a sysctl variable, so that privacy conscious users can
478 1.23 rpaulo * always prefer temporary addresses.
479 1.23 rpaulo */
480 1.23 rpaulo #ifdef notyet /* until introducing ND extensions and address selection */
481 1.23 rpaulo if (opts == NULL ||
482 1.23 rpaulo opts->ip6po_prefer_tempaddr == IP6PO_TEMPADDR_SYSTEM) {
483 1.23 rpaulo prefer_tempaddr = ip6_prefer_tempaddr;
484 1.23 rpaulo } else if (opts->ip6po_prefer_tempaddr ==
485 1.23 rpaulo IP6PO_TEMPADDR_NOTPREFER) {
486 1.23 rpaulo prefer_tempaddr = 0;
487 1.23 rpaulo } else
488 1.23 rpaulo prefer_tempaddr = 1;
489 1.23 rpaulo if (!(ia_best->ia6_flags & IN6_IFF_TEMPORARY) &&
490 1.23 rpaulo (ia->ia6_flags & IN6_IFF_TEMPORARY)) {
491 1.23 rpaulo if (prefer_tempaddr)
492 1.23 rpaulo REPLACE(7);
493 1.23 rpaulo else
494 1.23 rpaulo NEXT(7);
495 1.23 rpaulo }
496 1.23 rpaulo if ((ia_best->ia6_flags & IN6_IFF_TEMPORARY) &&
497 1.23 rpaulo !(ia->ia6_flags & IN6_IFF_TEMPORARY)) {
498 1.23 rpaulo if (prefer_tempaddr)
499 1.23 rpaulo NEXT(7);
500 1.23 rpaulo else
501 1.23 rpaulo REPLACE(7);
502 1.1 itojun }
503 1.23 rpaulo #endif
504 1.23 rpaulo
505 1.23 rpaulo /*
506 1.23 rpaulo * Rule 8: prefer addresses on alive interfaces.
507 1.23 rpaulo * This is a KAME specific rule.
508 1.23 rpaulo */
509 1.23 rpaulo if ((ia_best->ia_ifp->if_flags & IFF_UP) &&
510 1.23 rpaulo !(ia->ia_ifp->if_flags & IFF_UP))
511 1.23 rpaulo NEXT(8);
512 1.23 rpaulo if (!(ia_best->ia_ifp->if_flags & IFF_UP) &&
513 1.23 rpaulo (ia->ia_ifp->if_flags & IFF_UP))
514 1.23 rpaulo REPLACE(8);
515 1.23 rpaulo
516 1.23 rpaulo /*
517 1.23 rpaulo * Rule 9: prefer addresses on "preferred" interfaces.
518 1.23 rpaulo * This is a KAME specific rule.
519 1.23 rpaulo */
520 1.23 rpaulo #ifdef notyet /* until introducing address selection */
521 1.23 rpaulo #define NDI_BEST ND_IFINFO(ia_best->ia_ifp)
522 1.23 rpaulo #define NDI_NEW ND_IFINFO(ia->ia_ifp)
523 1.23 rpaulo if ((NDI_BEST->flags & ND6_IFF_PREFER_SOURCE) &&
524 1.23 rpaulo !(NDI_NEW->flags & ND6_IFF_PREFER_SOURCE))
525 1.23 rpaulo NEXT(9);
526 1.23 rpaulo if (!(NDI_BEST->flags & ND6_IFF_PREFER_SOURCE) &&
527 1.23 rpaulo (NDI_NEW->flags & ND6_IFF_PREFER_SOURCE))
528 1.23 rpaulo REPLACE(9);
529 1.23 rpaulo #undef NDI_BEST
530 1.23 rpaulo #undef NDI_NEW
531 1.23 rpaulo #endif
532 1.23 rpaulo
533 1.23 rpaulo /*
534 1.23 rpaulo * Rule 14: Use longest matching prefix.
535 1.23 rpaulo * Note: in the address selection draft, this rule is
536 1.23 rpaulo * documented as "Rule 8". However, since it is also
537 1.23 rpaulo * documented that this rule can be overridden, we assign
538 1.23 rpaulo * a large number so that it is easy to assign smaller numbers
539 1.23 rpaulo * to more preferred rules.
540 1.23 rpaulo */
541 1.23 rpaulo new_matchlen = in6_matchlen(&ia->ia_addr.sin6_addr, &dst);
542 1.23 rpaulo if (best_matchlen < new_matchlen)
543 1.23 rpaulo REPLACE(14);
544 1.23 rpaulo if (new_matchlen < best_matchlen)
545 1.23 rpaulo NEXT(14);
546 1.23 rpaulo
547 1.23 rpaulo /* Rule 15 is reserved. */
548 1.23 rpaulo
549 1.23 rpaulo /*
550 1.23 rpaulo * Last resort: just keep the current candidate.
551 1.23 rpaulo * Or, do we need more rules?
552 1.23 rpaulo */
553 1.23 rpaulo continue;
554 1.23 rpaulo
555 1.23 rpaulo replace:
556 1.23 rpaulo ia_best = ia;
557 1.23 rpaulo best_scope = (new_scope >= 0 ? new_scope :
558 1.23 rpaulo in6_addrscope(&ia_best->ia_addr.sin6_addr));
559 1.23 rpaulo best_policy = (new_policy ? new_policy :
560 1.23 rpaulo lookup_addrsel_policy(&ia_best->ia_addr));
561 1.23 rpaulo best_matchlen = (new_matchlen >= 0 ? new_matchlen :
562 1.23 rpaulo in6_matchlen(&ia_best->ia_addr.sin6_addr,
563 1.23 rpaulo &dst));
564 1.23 rpaulo
565 1.23 rpaulo next:
566 1.23 rpaulo continue;
567 1.23 rpaulo
568 1.23 rpaulo out:
569 1.23 rpaulo break;
570 1.23 rpaulo }
571 1.23 rpaulo
572 1.23 rpaulo if ((ia = ia_best) == NULL) {
573 1.23 rpaulo *errorp = EADDRNOTAVAIL;
574 1.23 rpaulo return (NULL);
575 1.23 rpaulo }
576 1.23 rpaulo
577 1.23 rpaulo return (&ia->ia_addr.sin6_addr);
578 1.23 rpaulo }
579 1.23 rpaulo #undef REPLACE
580 1.23 rpaulo #undef BREAK
581 1.23 rpaulo #undef NEXT
582 1.23 rpaulo
583 1.23 rpaulo static int
584 1.23 rpaulo selectroute(dstsock, opts, mopts, ro, retifp, retrt, clone, norouteok)
585 1.23 rpaulo struct sockaddr_in6 *dstsock;
586 1.23 rpaulo struct ip6_pktopts *opts;
587 1.23 rpaulo struct ip6_moptions *mopts;
588 1.23 rpaulo #ifdef NEW_STRUCT_ROUTE
589 1.23 rpaulo struct route *ro;
590 1.23 rpaulo #else
591 1.23 rpaulo struct route_in6 *ro;
592 1.23 rpaulo #endif
593 1.23 rpaulo struct ifnet **retifp;
594 1.23 rpaulo struct rtentry **retrt;
595 1.23 rpaulo int clone;
596 1.23 rpaulo int norouteok;
597 1.23 rpaulo {
598 1.23 rpaulo int error = 0;
599 1.23 rpaulo struct ifnet *ifp = NULL;
600 1.23 rpaulo struct rtentry *rt = NULL;
601 1.23 rpaulo struct sockaddr_in6 *sin6_next;
602 1.23 rpaulo struct in6_pktinfo *pi = NULL;
603 1.23 rpaulo struct in6_addr *dst;
604 1.23 rpaulo
605 1.23 rpaulo dst = &dstsock->sin6_addr;
606 1.23 rpaulo
607 1.23 rpaulo #if 0
608 1.23 rpaulo if (dstsock->sin6_addr.s6_addr32[0] == 0 &&
609 1.23 rpaulo dstsock->sin6_addr.s6_addr32[1] == 0 &&
610 1.23 rpaulo !IN6_IS_ADDR_LOOPBACK(&dstsock->sin6_addr)) {
611 1.23 rpaulo printf("in6_selectroute: strange destination %s\n",
612 1.23 rpaulo ip6_sprintf(&dstsock->sin6_addr));
613 1.23 rpaulo } else {
614 1.23 rpaulo printf("in6_selectroute: destination = %s%%%d\n",
615 1.23 rpaulo ip6_sprintf(&dstsock->sin6_addr),
616 1.23 rpaulo dstsock->sin6_scope_id); /* for debug */
617 1.23 rpaulo }
618 1.23 rpaulo #endif
619 1.23 rpaulo
620 1.23 rpaulo /* If the caller specify the outgoing interface explicitly, use it. */
621 1.23 rpaulo if (opts && (pi = opts->ip6po_pktinfo) != NULL && pi->ipi6_ifindex) {
622 1.23 rpaulo /* XXX boundary check is assumed to be already done. */
623 1.23 rpaulo #ifdef __FreeBSD__
624 1.23 rpaulo ifp = ifnet_byindex(pi->ipi6_ifindex);
625 1.23 rpaulo #else
626 1.23 rpaulo ifp = ifindex2ifnet[pi->ipi6_ifindex];
627 1.23 rpaulo #endif
628 1.23 rpaulo if (ifp != NULL &&
629 1.23 rpaulo (norouteok || retrt == NULL ||
630 1.23 rpaulo IN6_IS_ADDR_MULTICAST(dst))) {
631 1.23 rpaulo /*
632 1.23 rpaulo * we do not have to check or get the route for
633 1.23 rpaulo * multicast.
634 1.23 rpaulo */
635 1.23 rpaulo goto done;
636 1.23 rpaulo } else
637 1.23 rpaulo goto getroute;
638 1.1 itojun }
639 1.1 itojun
640 1.1 itojun /*
641 1.23 rpaulo * If the destination address is a multicast address and the outgoing
642 1.23 rpaulo * interface for the address is specified by the caller, use it.
643 1.1 itojun */
644 1.23 rpaulo if (IN6_IS_ADDR_MULTICAST(dst) &&
645 1.23 rpaulo mopts != NULL && (ifp = mopts->im6o_multicast_ifp) != NULL) {
646 1.23 rpaulo goto done; /* we do not need a route for multicast. */
647 1.23 rpaulo }
648 1.23 rpaulo
649 1.23 rpaulo getroute:
650 1.23 rpaulo /*
651 1.23 rpaulo * If the next hop address for the packet is specified by the caller,
652 1.23 rpaulo * use it as the gateway.
653 1.23 rpaulo */
654 1.23 rpaulo if (opts && opts->ip6po_nexthop) {
655 1.23 rpaulo struct route_in6 *ron;
656 1.23 rpaulo
657 1.23 rpaulo sin6_next = satosin6(opts->ip6po_nexthop);
658 1.23 rpaulo
659 1.23 rpaulo /* at this moment, we only support AF_INET6 next hops */
660 1.23 rpaulo if (sin6_next->sin6_family != AF_INET6) {
661 1.23 rpaulo error = EAFNOSUPPORT; /* or should we proceed? */
662 1.23 rpaulo goto done;
663 1.23 rpaulo }
664 1.23 rpaulo
665 1.23 rpaulo /*
666 1.23 rpaulo * If the next hop is an IPv6 address, then the node identified
667 1.23 rpaulo * by that address must be a neighbor of the sending host.
668 1.23 rpaulo */
669 1.23 rpaulo ron = &opts->ip6po_nextroute;
670 1.23 rpaulo if ((ron->ro_rt &&
671 1.23 rpaulo (ron->ro_rt->rt_flags & (RTF_UP | RTF_GATEWAY)) !=
672 1.23 rpaulo RTF_UP) ||
673 1.23 rpaulo !IN6_ARE_ADDR_EQUAL(&satosin6(&ron->ro_dst)->sin6_addr,
674 1.23 rpaulo &sin6_next->sin6_addr)) {
675 1.23 rpaulo if (ron->ro_rt) {
676 1.23 rpaulo RTFREE(ron->ro_rt);
677 1.23 rpaulo ron->ro_rt = NULL;
678 1.1 itojun }
679 1.23 rpaulo *satosin6(&ron->ro_dst) = *sin6_next;
680 1.23 rpaulo }
681 1.23 rpaulo if (ron->ro_rt == NULL) {
682 1.23 rpaulo rtalloc((struct route *)ron); /* multi path case? */
683 1.23 rpaulo if (ron->ro_rt == NULL ||
684 1.23 rpaulo (ron->ro_rt->rt_flags & RTF_GATEWAY)) {
685 1.23 rpaulo if (ron->ro_rt) {
686 1.23 rpaulo RTFREE(ron->ro_rt);
687 1.23 rpaulo ron->ro_rt = NULL;
688 1.23 rpaulo }
689 1.23 rpaulo error = EHOSTUNREACH;
690 1.23 rpaulo goto done;
691 1.1 itojun }
692 1.1 itojun }
693 1.23 rpaulo if (!nd6_is_addr_neighbor(sin6_next, ron->ro_rt->rt_ifp)) {
694 1.23 rpaulo RTFREE(ron->ro_rt);
695 1.23 rpaulo ron->ro_rt = NULL;
696 1.23 rpaulo error = EHOSTUNREACH;
697 1.23 rpaulo goto done;
698 1.23 rpaulo }
699 1.23 rpaulo rt = ron->ro_rt;
700 1.23 rpaulo ifp = rt->rt_ifp;
701 1.23 rpaulo
702 1.23 rpaulo /*
703 1.23 rpaulo * When cloning is required, try to allocate a route to the
704 1.23 rpaulo * destination so that the caller can store path MTU
705 1.23 rpaulo * information.
706 1.23 rpaulo */
707 1.23 rpaulo if (!clone)
708 1.23 rpaulo goto done;
709 1.1 itojun }
710 1.1 itojun
711 1.1 itojun /*
712 1.23 rpaulo * Use a cached route if it exists and is valid, else try to allocate
713 1.23 rpaulo * a new one. Note that we should check the address family of the
714 1.13 itojun * cached destination, in case of sharing the cache with IPv4.
715 1.1 itojun */
716 1.1 itojun if (ro) {
717 1.1 itojun if (ro->ro_rt &&
718 1.23 rpaulo (!(ro->ro_rt->rt_flags & RTF_UP) ||
719 1.23 rpaulo ((struct sockaddr *)(&ro->ro_dst))->sa_family != AF_INET6 ||
720 1.23 rpaulo !IN6_ARE_ADDR_EQUAL(&satosin6(&ro->ro_dst)->sin6_addr,
721 1.23 rpaulo dst))) {
722 1.1 itojun RTFREE(ro->ro_rt);
723 1.23 rpaulo ro->ro_rt = (struct rtentry *)NULL;
724 1.1 itojun }
725 1.23 rpaulo if (ro->ro_rt == (struct rtentry *)NULL) {
726 1.5 itojun struct sockaddr_in6 *sa6;
727 1.5 itojun
728 1.1 itojun /* No route yet, so try to acquire one */
729 1.1 itojun bzero(&ro->ro_dst, sizeof(struct sockaddr_in6));
730 1.5 itojun sa6 = (struct sockaddr_in6 *)&ro->ro_dst;
731 1.23 rpaulo *sa6 = *dstsock;
732 1.23 rpaulo sa6->sin6_scope_id = 0;
733 1.23 rpaulo if (clone) {
734 1.23 rpaulo #ifdef RADIX_MPATH
735 1.23 rpaulo rtalloc_mpath((struct route *)ro,
736 1.23 rpaulo ntohl(sa6->sin6_addr.s6_addr32[3]));
737 1.23 rpaulo #else
738 1.23 rpaulo rtalloc((struct route *)ro);
739 1.23 rpaulo #endif /* RADIX_MPATH */
740 1.23 rpaulo } else {
741 1.23 rpaulo #ifdef RADIX_MPATH
742 1.23 rpaulo rtalloc_mpath((struct route *)ro,
743 1.23 rpaulo ntohl(sa6->sin6_addr.s6_addr32[3]));
744 1.23 rpaulo #else
745 1.1 itojun ro->ro_rt = rtalloc1(&((struct route *)ro)
746 1.1 itojun ->ro_dst, 0);
747 1.23 rpaulo #endif /* RADIX_MPATH */
748 1.1 itojun }
749 1.1 itojun }
750 1.1 itojun
751 1.1 itojun /*
752 1.23 rpaulo * do not care about the result if we have the nexthop
753 1.23 rpaulo * explicitly specified.
754 1.1 itojun */
755 1.23 rpaulo if (opts && opts->ip6po_nexthop)
756 1.23 rpaulo goto done;
757 1.1 itojun
758 1.1 itojun if (ro->ro_rt) {
759 1.23 rpaulo ifp = ro->ro_rt->rt_ifp;
760 1.23 rpaulo
761 1.23 rpaulo if (ifp == NULL) { /* can this really happen? */
762 1.23 rpaulo RTFREE(ro->ro_rt);
763 1.23 rpaulo ro->ro_rt = NULL;
764 1.23 rpaulo }
765 1.1 itojun }
766 1.23 rpaulo if (ro->ro_rt == NULL)
767 1.23 rpaulo error = EHOSTUNREACH;
768 1.23 rpaulo rt = ro->ro_rt;
769 1.23 rpaulo
770 1.23 rpaulo /*
771 1.23 rpaulo * Check if the outgoing interface conflicts with
772 1.23 rpaulo * the interface specified by ipi6_ifindex (if specified).
773 1.23 rpaulo * Note that loopback interface is always okay.
774 1.23 rpaulo * (this may happen when we are sending a packet to one of
775 1.23 rpaulo * our own addresses.)
776 1.23 rpaulo */
777 1.23 rpaulo if (opts && opts->ip6po_pktinfo &&
778 1.23 rpaulo opts->ip6po_pktinfo->ipi6_ifindex) {
779 1.23 rpaulo if (!(ifp->if_flags & IFF_LOOPBACK) &&
780 1.23 rpaulo ifp->if_index !=
781 1.23 rpaulo opts->ip6po_pktinfo->ipi6_ifindex) {
782 1.23 rpaulo error = EHOSTUNREACH;
783 1.23 rpaulo goto done;
784 1.23 rpaulo }
785 1.23 rpaulo }
786 1.23 rpaulo }
787 1.23 rpaulo
788 1.23 rpaulo done:
789 1.23 rpaulo if (ifp == NULL && rt == NULL) {
790 1.1 itojun /*
791 1.23 rpaulo * This can happen if the caller did not pass a cached route
792 1.23 rpaulo * nor any other hints. We treat this case an error.
793 1.1 itojun */
794 1.23 rpaulo error = EHOSTUNREACH;
795 1.23 rpaulo }
796 1.23 rpaulo if (error == EHOSTUNREACH)
797 1.23 rpaulo ip6stat.ip6s_noroute++;
798 1.1 itojun
799 1.23 rpaulo if (retifp != NULL)
800 1.23 rpaulo *retifp = ifp;
801 1.23 rpaulo if (retrt != NULL)
802 1.23 rpaulo *retrt = rt; /* rt may be NULL */
803 1.1 itojun
804 1.23 rpaulo return (error);
805 1.23 rpaulo }
806 1.23 rpaulo
807 1.23 rpaulo static int
808 1.23 rpaulo in6_selectif(dstsock, opts, mopts, ro, retifp)
809 1.23 rpaulo struct sockaddr_in6 *dstsock;
810 1.23 rpaulo struct ip6_pktopts *opts;
811 1.23 rpaulo struct ip6_moptions *mopts;
812 1.23 rpaulo struct route_in6 *ro;
813 1.23 rpaulo struct ifnet **retifp;
814 1.23 rpaulo {
815 1.23 rpaulo int error, clone;
816 1.23 rpaulo struct rtentry *rt = NULL;
817 1.23 rpaulo
818 1.23 rpaulo clone = IN6_IS_ADDR_MULTICAST(&dstsock->sin6_addr) ? 0 : 1;
819 1.23 rpaulo if ((error = selectroute(dstsock, opts, mopts, ro, retifp,
820 1.23 rpaulo &rt, clone, 1)) != 0) {
821 1.23 rpaulo return (error);
822 1.1 itojun }
823 1.1 itojun
824 1.23 rpaulo /*
825 1.23 rpaulo * do not use a rejected or black hole route.
826 1.23 rpaulo * XXX: this check should be done in the L2 output routine.
827 1.23 rpaulo * However, if we skipped this check here, we'd see the following
828 1.23 rpaulo * scenario:
829 1.23 rpaulo * - install a rejected route for a scoped address prefix
830 1.23 rpaulo * (like fe80::/10)
831 1.23 rpaulo * - send a packet to a destination that matches the scoped prefix,
832 1.23 rpaulo * with ambiguity about the scope zone.
833 1.23 rpaulo * - pick the outgoing interface from the route, and disambiguate the
834 1.23 rpaulo * scope zone with the interface.
835 1.23 rpaulo * - ip6_output() would try to get another route with the "new"
836 1.23 rpaulo * destination, which may be valid.
837 1.23 rpaulo * - we'd see no error on output.
838 1.23 rpaulo * Although this may not be very harmful, it should still be confusing.
839 1.23 rpaulo * We thus reject the case here.
840 1.23 rpaulo */
841 1.23 rpaulo if (rt && (rt->rt_flags & (RTF_REJECT | RTF_BLACKHOLE)))
842 1.23 rpaulo return (rt->rt_flags & RTF_HOST ? EHOSTUNREACH : ENETUNREACH);
843 1.23 rpaulo
844 1.23 rpaulo /*
845 1.23 rpaulo * Adjust the "outgoing" interface. If we're going to loop the packet
846 1.23 rpaulo * back to ourselves, the ifp would be the loopback interface.
847 1.23 rpaulo * However, we'd rather know the interface associated to the
848 1.23 rpaulo * destination address (which should probably be one of our own
849 1.23 rpaulo * addresses.)
850 1.23 rpaulo */
851 1.23 rpaulo if (rt && rt->rt_ifa && rt->rt_ifa->ifa_ifp)
852 1.23 rpaulo *retifp = rt->rt_ifa->ifa_ifp;
853 1.23 rpaulo
854 1.15 itojun return (0);
855 1.1 itojun }
856 1.1 itojun
857 1.23 rpaulo int
858 1.23 rpaulo in6_selectroute(dstsock, opts, mopts, ro, retifp, retrt, clone)
859 1.23 rpaulo struct sockaddr_in6 *dstsock;
860 1.23 rpaulo struct ip6_pktopts *opts;
861 1.23 rpaulo struct ip6_moptions *mopts;
862 1.23 rpaulo struct route_in6 *ro;
863 1.23 rpaulo struct ifnet **retifp;
864 1.23 rpaulo struct rtentry **retrt;
865 1.23 rpaulo int clone; /* meaningful only for bsdi and freebsd. */
866 1.23 rpaulo {
867 1.23 rpaulo return (selectroute(dstsock, opts, mopts, ro, retifp,
868 1.23 rpaulo retrt, clone, 0));
869 1.23 rpaulo }
870 1.23 rpaulo
871 1.1 itojun /*
872 1.1 itojun * Default hop limit selection. The precedence is as follows:
873 1.1 itojun * 1. Hoplimit value specified via ioctl.
874 1.1 itojun * 2. (If the outgoing interface is detected) the current
875 1.1 itojun * hop limit of the interface specified by router advertisement.
876 1.1 itojun * 3. The system default hoplimit.
877 1.1 itojun */
878 1.1 itojun int
879 1.1 itojun in6_selecthlim(in6p, ifp)
880 1.1 itojun struct in6pcb *in6p;
881 1.1 itojun struct ifnet *ifp;
882 1.1 itojun {
883 1.1 itojun if (in6p && in6p->in6p_hops >= 0)
884 1.15 itojun return (in6p->in6p_hops);
885 1.1 itojun else if (ifp)
886 1.15 itojun return (ND_IFINFO(ifp)->chlim);
887 1.1 itojun else
888 1.15 itojun return (ip6_defhlim);
889 1.1 itojun }
890 1.1 itojun
891 1.1 itojun /*
892 1.1 itojun * Find an empty port and set it to the specified PCB.
893 1.1 itojun */
894 1.1 itojun int
895 1.27 ad in6_pcbsetport(laddr, in6p, l)
896 1.1 itojun struct in6_addr *laddr;
897 1.1 itojun struct in6pcb *in6p;
898 1.27 ad struct lwp *l;
899 1.1 itojun {
900 1.1 itojun struct socket *so = in6p->in6p_socket;
901 1.17 itojun struct inpcbtable *table = in6p->in6p_table;
902 1.17 itojun int cnt;
903 1.23 rpaulo u_int16_t minport, maxport;
904 1.17 itojun u_int16_t lport, *lastport;
905 1.1 itojun int wild = 0;
906 1.1 itojun void *t;
907 1.17 itojun
908 1.1 itojun /* XXX: this is redundant when called from in6_pcbbind */
909 1.1 itojun if ((so->so_options & (SO_REUSEADDR|SO_REUSEPORT)) == 0 &&
910 1.1 itojun ((so->so_proto->pr_flags & PR_CONNREQUIRED) == 0 ||
911 1.1 itojun (so->so_options & SO_ACCEPTCONN) == 0))
912 1.17 itojun wild = 1;
913 1.1 itojun
914 1.1 itojun if (in6p->in6p_flags & IN6P_LOWPORT) {
915 1.3 itojun #ifndef IPNOPRIVPORTS
916 1.27 ad if (l == 0 || (kauth_authorize_generic(l->l_cred,
917 1.27 ad KAUTH_GENERIC_ISSUSER, &l->l_acflag) != 0))
918 1.1 itojun return (EACCES);
919 1.3 itojun #endif
920 1.23 rpaulo minport = ip6_lowportmin;
921 1.23 rpaulo maxport = ip6_lowportmax;
922 1.17 itojun lastport = &table->inpt_lastlow;
923 1.1 itojun } else {
924 1.23 rpaulo minport = ip6_anonportmin;
925 1.23 rpaulo maxport = ip6_anonportmax;
926 1.17 itojun lastport = &table->inpt_lastport;
927 1.1 itojun }
928 1.23 rpaulo
929 1.23 rpaulo if (minport > maxport) { /* sanity check */
930 1.17 itojun u_int16_t swp;
931 1.23 rpaulo
932 1.23 rpaulo swp = minport;
933 1.23 rpaulo minport = maxport;
934 1.23 rpaulo maxport = swp;
935 1.17 itojun }
936 1.17 itojun
937 1.17 itojun lport = *lastport - 1;
938 1.23 rpaulo for (cnt = maxport - minport + 1; cnt; cnt--, lport--) {
939 1.23 rpaulo if (lport < minport || lport > maxport)
940 1.23 rpaulo lport = maxport;
941 1.17 itojun #ifdef INET
942 1.1 itojun if (IN6_IS_ADDR_V4MAPPED(laddr)) {
943 1.17 itojun t = in_pcblookup_port(table,
944 1.23 rpaulo *(struct in_addr *)&laddr->s6_addr32[3],
945 1.17 itojun lport, wild);
946 1.17 itojun } else
947 1.1 itojun #endif
948 1.17 itojun {
949 1.17 itojun t = in6_pcblookup_port(table, laddr, lport, wild);
950 1.1 itojun }
951 1.1 itojun if (t == 0)
952 1.17 itojun goto found;
953 1.1 itojun }
954 1.1 itojun
955 1.17 itojun return (EAGAIN);
956 1.17 itojun
957 1.17 itojun found:
958 1.17 itojun in6p->in6p_flags |= IN6P_ANONPORT;
959 1.17 itojun *lastport = lport;
960 1.17 itojun in6p->in6p_lport = htons(lport);
961 1.17 itojun in6_pcbstate(in6p, IN6P_BOUND);
962 1.15 itojun return (0); /* success */
963 1.2 itojun }
964 1.2 itojun
965 1.23 rpaulo void
966 1.23 rpaulo addrsel_policy_init()
967 1.23 rpaulo {
968 1.23 rpaulo init_policy_queue();
969 1.23 rpaulo
970 1.23 rpaulo /* initialize the "last resort" policy */
971 1.23 rpaulo bzero(&defaultaddrpolicy, sizeof(defaultaddrpolicy));
972 1.23 rpaulo defaultaddrpolicy.label = ADDR_LABEL_NOTAPP;
973 1.23 rpaulo }
974 1.23 rpaulo
975 1.23 rpaulo static struct in6_addrpolicy *
976 1.23 rpaulo lookup_addrsel_policy(key)
977 1.23 rpaulo struct sockaddr_in6 *key;
978 1.23 rpaulo {
979 1.23 rpaulo struct in6_addrpolicy *match = NULL;
980 1.23 rpaulo
981 1.23 rpaulo match = match_addrsel_policy(key);
982 1.23 rpaulo
983 1.23 rpaulo if (match == NULL)
984 1.23 rpaulo match = &defaultaddrpolicy;
985 1.23 rpaulo else
986 1.23 rpaulo match->use++;
987 1.23 rpaulo
988 1.23 rpaulo return (match);
989 1.23 rpaulo }
990 1.23 rpaulo
991 1.2 itojun /*
992 1.23 rpaulo * Subroutines to manage the address selection policy table via sysctl.
993 1.2 itojun */
994 1.23 rpaulo struct walkarg {
995 1.23 rpaulo size_t w_total;
996 1.23 rpaulo size_t w_given;
997 1.23 rpaulo caddr_t w_where;
998 1.23 rpaulo caddr_t w_limit;
999 1.23 rpaulo };
1000 1.23 rpaulo
1001 1.23 rpaulo int
1002 1.23 rpaulo in6_src_sysctl(oldp, oldlenp, newp, newlen)
1003 1.23 rpaulo void *oldp;
1004 1.23 rpaulo size_t *oldlenp;
1005 1.23 rpaulo void *newp;
1006 1.23 rpaulo size_t newlen;
1007 1.23 rpaulo {
1008 1.23 rpaulo int error = 0;
1009 1.23 rpaulo int s;
1010 1.23 rpaulo
1011 1.23 rpaulo s = splsoftnet();
1012 1.23 rpaulo
1013 1.23 rpaulo if (newp) {
1014 1.23 rpaulo error = EPERM;
1015 1.23 rpaulo goto end;
1016 1.23 rpaulo }
1017 1.23 rpaulo if (oldp && oldlenp == NULL) {
1018 1.23 rpaulo error = EINVAL;
1019 1.23 rpaulo goto end;
1020 1.23 rpaulo }
1021 1.23 rpaulo if (oldp || oldlenp) {
1022 1.23 rpaulo struct walkarg w;
1023 1.24 christos size_t oldlen = *oldlenp;
1024 1.23 rpaulo
1025 1.23 rpaulo bzero(&w, sizeof(w));
1026 1.23 rpaulo w.w_given = oldlen;
1027 1.23 rpaulo w.w_where = oldp;
1028 1.23 rpaulo if (oldp)
1029 1.23 rpaulo w.w_limit = (caddr_t)oldp + oldlen;
1030 1.23 rpaulo
1031 1.23 rpaulo error = walk_addrsel_policy(dump_addrsel_policyent, &w);
1032 1.23 rpaulo
1033 1.23 rpaulo *oldlenp = w.w_total;
1034 1.23 rpaulo if (oldp && w.w_total > oldlen && error == 0)
1035 1.23 rpaulo error = ENOMEM;
1036 1.23 rpaulo }
1037 1.23 rpaulo
1038 1.23 rpaulo end:
1039 1.23 rpaulo splx(s);
1040 1.23 rpaulo
1041 1.23 rpaulo return (error);
1042 1.23 rpaulo }
1043 1.23 rpaulo
1044 1.2 itojun int
1045 1.23 rpaulo in6_src_ioctl(cmd, data)
1046 1.23 rpaulo u_long cmd;
1047 1.23 rpaulo caddr_t data;
1048 1.2 itojun {
1049 1.23 rpaulo int i;
1050 1.23 rpaulo struct in6_addrpolicy ent0;
1051 1.2 itojun
1052 1.23 rpaulo if (cmd != SIOCAADDRCTL_POLICY && cmd != SIOCDADDRCTL_POLICY)
1053 1.23 rpaulo return (EOPNOTSUPP); /* check for safety */
1054 1.2 itojun
1055 1.23 rpaulo ent0 = *(struct in6_addrpolicy *)data;
1056 1.2 itojun
1057 1.23 rpaulo if (ent0.label == ADDR_LABEL_NOTAPP)
1058 1.23 rpaulo return (EINVAL);
1059 1.23 rpaulo /* check if the prefix mask is consecutive. */
1060 1.23 rpaulo if (in6_mask2len(&ent0.addrmask.sin6_addr, NULL) < 0)
1061 1.23 rpaulo return (EINVAL);
1062 1.23 rpaulo /* clear trailing garbages (if any) of the prefix address. */
1063 1.23 rpaulo for (i = 0; i < 4; i++) {
1064 1.23 rpaulo ent0.addr.sin6_addr.s6_addr32[i] &=
1065 1.23 rpaulo ent0.addrmask.sin6_addr.s6_addr32[i];
1066 1.23 rpaulo }
1067 1.23 rpaulo ent0.use = 0;
1068 1.2 itojun
1069 1.23 rpaulo switch (cmd) {
1070 1.23 rpaulo case SIOCAADDRCTL_POLICY:
1071 1.23 rpaulo return (add_addrsel_policyent(&ent0));
1072 1.23 rpaulo case SIOCDADDRCTL_POLICY:
1073 1.23 rpaulo return (delete_addrsel_policyent(&ent0));
1074 1.2 itojun }
1075 1.2 itojun
1076 1.23 rpaulo return (0); /* XXX: compromise compilers */
1077 1.2 itojun }
1078 1.2 itojun
1079 1.2 itojun /*
1080 1.23 rpaulo * The followings are implementation of the policy table using a
1081 1.23 rpaulo * simple tail queue.
1082 1.23 rpaulo * XXX such details should be hidden.
1083 1.23 rpaulo * XXX implementation using binary tree should be more efficient.
1084 1.2 itojun */
1085 1.23 rpaulo struct addrsel_policyent {
1086 1.23 rpaulo TAILQ_ENTRY(addrsel_policyent) ape_entry;
1087 1.23 rpaulo struct in6_addrpolicy ape_policy;
1088 1.23 rpaulo };
1089 1.23 rpaulo
1090 1.23 rpaulo TAILQ_HEAD(addrsel_policyhead, addrsel_policyent);
1091 1.23 rpaulo
1092 1.23 rpaulo struct addrsel_policyhead addrsel_policytab;
1093 1.23 rpaulo
1094 1.23 rpaulo static void
1095 1.23 rpaulo init_policy_queue()
1096 1.23 rpaulo {
1097 1.23 rpaulo TAILQ_INIT(&addrsel_policytab);
1098 1.23 rpaulo }
1099 1.23 rpaulo
1100 1.23 rpaulo static int
1101 1.23 rpaulo add_addrsel_policyent(newpolicy)
1102 1.23 rpaulo struct in6_addrpolicy *newpolicy;
1103 1.23 rpaulo {
1104 1.23 rpaulo struct addrsel_policyent *new, *pol;
1105 1.23 rpaulo
1106 1.23 rpaulo /* duplication check */
1107 1.23 rpaulo for (pol = TAILQ_FIRST(&addrsel_policytab); pol;
1108 1.23 rpaulo pol = TAILQ_NEXT(pol, ape_entry)) {
1109 1.23 rpaulo if (IN6_ARE_ADDR_EQUAL(&newpolicy->addr.sin6_addr,
1110 1.23 rpaulo &pol->ape_policy.addr.sin6_addr) &&
1111 1.23 rpaulo IN6_ARE_ADDR_EQUAL(&newpolicy->addrmask.sin6_addr,
1112 1.23 rpaulo &pol->ape_policy.addrmask.sin6_addr)) {
1113 1.23 rpaulo return (EEXIST); /* or override it? */
1114 1.23 rpaulo }
1115 1.23 rpaulo }
1116 1.23 rpaulo
1117 1.23 rpaulo MALLOC(new, struct addrsel_policyent *, sizeof(*new), M_IFADDR,
1118 1.23 rpaulo M_WAITOK);
1119 1.23 rpaulo bzero(new, sizeof(*new));
1120 1.23 rpaulo
1121 1.23 rpaulo /* XXX: should validate entry */
1122 1.23 rpaulo new->ape_policy = *newpolicy;
1123 1.23 rpaulo
1124 1.23 rpaulo TAILQ_INSERT_TAIL(&addrsel_policytab, new, ape_entry);
1125 1.23 rpaulo
1126 1.23 rpaulo return (0);
1127 1.23 rpaulo }
1128 1.23 rpaulo
1129 1.23 rpaulo static int
1130 1.23 rpaulo delete_addrsel_policyent(key)
1131 1.23 rpaulo struct in6_addrpolicy *key;
1132 1.2 itojun {
1133 1.23 rpaulo struct addrsel_policyent *pol;
1134 1.23 rpaulo
1135 1.23 rpaulo /* search for the entry in the table */
1136 1.23 rpaulo for (pol = TAILQ_FIRST(&addrsel_policytab); pol;
1137 1.23 rpaulo pol = TAILQ_NEXT(pol, ape_entry)) {
1138 1.23 rpaulo if (IN6_ARE_ADDR_EQUAL(&key->addr.sin6_addr,
1139 1.23 rpaulo &pol->ape_policy.addr.sin6_addr) &&
1140 1.23 rpaulo IN6_ARE_ADDR_EQUAL(&key->addrmask.sin6_addr,
1141 1.23 rpaulo &pol->ape_policy.addrmask.sin6_addr)) {
1142 1.23 rpaulo break;
1143 1.23 rpaulo }
1144 1.23 rpaulo }
1145 1.23 rpaulo if (pol == NULL) {
1146 1.23 rpaulo return (ESRCH);
1147 1.23 rpaulo }
1148 1.2 itojun
1149 1.23 rpaulo TAILQ_REMOVE(&addrsel_policytab, pol, ape_entry);
1150 1.2 itojun
1151 1.23 rpaulo return (0);
1152 1.23 rpaulo }
1153 1.23 rpaulo
1154 1.23 rpaulo static int
1155 1.23 rpaulo walk_addrsel_policy(callback, w)
1156 1.23 rpaulo int (*callback) __P((struct in6_addrpolicy *, void *));
1157 1.23 rpaulo void *w;
1158 1.23 rpaulo {
1159 1.23 rpaulo struct addrsel_policyent *pol;
1160 1.23 rpaulo int error = 0;
1161 1.2 itojun
1162 1.23 rpaulo for (pol = TAILQ_FIRST(&addrsel_policytab); pol;
1163 1.23 rpaulo pol = TAILQ_NEXT(pol, ape_entry)) {
1164 1.23 rpaulo if ((error = (*callback)(&pol->ape_policy, w)) != 0) {
1165 1.23 rpaulo return (error);
1166 1.2 itojun }
1167 1.2 itojun }
1168 1.2 itojun
1169 1.23 rpaulo return (error);
1170 1.5 itojun }
1171 1.5 itojun
1172 1.23 rpaulo static int
1173 1.23 rpaulo dump_addrsel_policyent(pol, arg)
1174 1.23 rpaulo struct in6_addrpolicy *pol;
1175 1.23 rpaulo void *arg;
1176 1.23 rpaulo {
1177 1.23 rpaulo int error = 0;
1178 1.23 rpaulo struct walkarg *w = arg;
1179 1.23 rpaulo
1180 1.23 rpaulo if (w->w_where && w->w_where + sizeof(*pol) <= w->w_limit) {
1181 1.23 rpaulo if ((error = copyout(pol, w->w_where, sizeof(*pol))) != 0)
1182 1.23 rpaulo return (error);
1183 1.23 rpaulo w->w_where += sizeof(*pol);
1184 1.23 rpaulo }
1185 1.23 rpaulo w->w_total += sizeof(*pol);
1186 1.23 rpaulo
1187 1.23 rpaulo return (error);
1188 1.23 rpaulo }
1189 1.23 rpaulo
1190 1.23 rpaulo static struct in6_addrpolicy *
1191 1.23 rpaulo match_addrsel_policy(key)
1192 1.23 rpaulo struct sockaddr_in6 *key;
1193 1.5 itojun {
1194 1.23 rpaulo struct addrsel_policyent *pent;
1195 1.23 rpaulo struct in6_addrpolicy *bestpol = NULL, *pol;
1196 1.23 rpaulo int matchlen, bestmatchlen = -1;
1197 1.23 rpaulo u_char *mp, *ep, *k, *p, m;
1198 1.23 rpaulo
1199 1.23 rpaulo for (pent = TAILQ_FIRST(&addrsel_policytab); pent;
1200 1.23 rpaulo pent = TAILQ_NEXT(pent, ape_entry)) {
1201 1.23 rpaulo matchlen = 0;
1202 1.23 rpaulo
1203 1.23 rpaulo pol = &pent->ape_policy;
1204 1.23 rpaulo mp = (u_char *)&pol->addrmask.sin6_addr;
1205 1.23 rpaulo ep = mp + 16; /* XXX: scope field? */
1206 1.23 rpaulo k = (u_char *)&key->sin6_addr;
1207 1.23 rpaulo p = (u_char *)&pol->addr.sin6_addr;
1208 1.23 rpaulo for (; mp < ep && *mp; mp++, k++, p++) {
1209 1.23 rpaulo m = *mp;
1210 1.23 rpaulo if ((*k & m) != *p)
1211 1.23 rpaulo goto next; /* not match */
1212 1.23 rpaulo if (m == 0xff) /* short cut for a typical case */
1213 1.23 rpaulo matchlen += 8;
1214 1.23 rpaulo else {
1215 1.23 rpaulo while (m >= 0x80) {
1216 1.23 rpaulo matchlen++;
1217 1.23 rpaulo m <<= 1;
1218 1.23 rpaulo }
1219 1.23 rpaulo }
1220 1.23 rpaulo }
1221 1.23 rpaulo
1222 1.23 rpaulo /* matched. check if this is better than the current best. */
1223 1.23 rpaulo if (bestpol == NULL ||
1224 1.23 rpaulo matchlen > bestmatchlen) {
1225 1.23 rpaulo bestpol = pol;
1226 1.23 rpaulo bestmatchlen = matchlen;
1227 1.23 rpaulo }
1228 1.23 rpaulo
1229 1.23 rpaulo next:
1230 1.23 rpaulo continue;
1231 1.23 rpaulo }
1232 1.23 rpaulo
1233 1.23 rpaulo return (bestpol);
1234 1.1 itojun }
1235