udp6_usrreq.c revision 1.137.2.5 1 1.137.2.5 pgoyette /* $NetBSD: udp6_usrreq.c,v 1.137.2.5 2018/11/26 01:52:51 pgoyette Exp $ */
2 1.132 maxv /* $KAME: udp6_usrreq.c,v 1.86 2001/05/27 17:33:00 itojun Exp $ */
3 1.132 maxv /* $KAME: udp6_output.c,v 1.43 2001/10/15 09:19:52 itojun Exp $ */
4 1.3 thorpej
5 1.2 itojun /*
6 1.2 itojun * Copyright (C) 1995, 1996, 1997, and 1998 WIDE Project.
7 1.2 itojun * All rights reserved.
8 1.27 itojun *
9 1.2 itojun * Redistribution and use in source and binary forms, with or without
10 1.2 itojun * modification, are permitted provided that the following conditions
11 1.2 itojun * are met:
12 1.2 itojun * 1. Redistributions of source code must retain the above copyright
13 1.2 itojun * notice, this list of conditions and the following disclaimer.
14 1.2 itojun * 2. Redistributions in binary form must reproduce the above copyright
15 1.2 itojun * notice, this list of conditions and the following disclaimer in the
16 1.2 itojun * documentation and/or other materials provided with the distribution.
17 1.2 itojun * 3. Neither the name of the project nor the names of its contributors
18 1.2 itojun * may be used to endorse or promote products derived from this software
19 1.2 itojun * without specific prior written permission.
20 1.27 itojun *
21 1.2 itojun * THIS SOFTWARE IS PROVIDED BY THE PROJECT AND CONTRIBUTORS ``AS IS'' AND
22 1.2 itojun * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
23 1.2 itojun * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
24 1.2 itojun * ARE DISCLAIMED. IN NO EVENT SHALL THE PROJECT OR CONTRIBUTORS BE LIABLE
25 1.2 itojun * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
26 1.2 itojun * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
27 1.2 itojun * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
28 1.2 itojun * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
29 1.2 itojun * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
30 1.2 itojun * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
31 1.2 itojun * SUCH DAMAGE.
32 1.2 itojun */
33 1.2 itojun
34 1.2 itojun /*
35 1.2 itojun * Copyright (c) 1982, 1986, 1989, 1993
36 1.2 itojun * The Regents of the University of California. All rights reserved.
37 1.2 itojun *
38 1.2 itojun * Redistribution and use in source and binary forms, with or without
39 1.2 itojun * modification, are permitted provided that the following conditions
40 1.2 itojun * are met:
41 1.2 itojun * 1. Redistributions of source code must retain the above copyright
42 1.2 itojun * notice, this list of conditions and the following disclaimer.
43 1.2 itojun * 2. Redistributions in binary form must reproduce the above copyright
44 1.2 itojun * notice, this list of conditions and the following disclaimer in the
45 1.2 itojun * documentation and/or other materials provided with the distribution.
46 1.56 agc * 3. Neither the name of the University nor the names of its contributors
47 1.2 itojun * may be used to endorse or promote products derived from this software
48 1.2 itojun * without specific prior written permission.
49 1.2 itojun *
50 1.2 itojun * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
51 1.2 itojun * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
52 1.2 itojun * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
53 1.2 itojun * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
54 1.2 itojun * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
55 1.2 itojun * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
56 1.2 itojun * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
57 1.2 itojun * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
58 1.2 itojun * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
59 1.2 itojun * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
60 1.2 itojun * SUCH DAMAGE.
61 1.2 itojun *
62 1.2 itojun * @(#)udp_var.h 8.1 (Berkeley) 6/10/93
63 1.2 itojun */
64 1.51 lukem
65 1.51 lukem #include <sys/cdefs.h>
66 1.137.2.5 pgoyette __KERNEL_RCSID(0, "$NetBSD: udp6_usrreq.c,v 1.137.2.5 2018/11/26 01:52:51 pgoyette Exp $");
67 1.90 christos
68 1.121 pooka #ifdef _KERNEL_OPT
69 1.90 christos #include "opt_inet.h"
70 1.97 rmind #include "opt_inet_csum.h"
71 1.116 ozaki #include "opt_ipsec.h"
72 1.126 knakahar #include "opt_net_mpsafe.h"
73 1.121 pooka #endif
74 1.2 itojun
75 1.2 itojun #include <sys/param.h>
76 1.2 itojun #include <sys/mbuf.h>
77 1.2 itojun #include <sys/protosw.h>
78 1.2 itojun #include <sys/socket.h>
79 1.2 itojun #include <sys/socketvar.h>
80 1.2 itojun #include <sys/systm.h>
81 1.2 itojun #include <sys/proc.h>
82 1.8 itojun #include <sys/syslog.h>
83 1.90 christos #include <sys/domain.h>
84 1.50 simonb #include <sys/sysctl.h>
85 1.2 itojun
86 1.2 itojun #include <net/if.h>
87 1.2 itojun #include <net/if_types.h>
88 1.2 itojun
89 1.2 itojun #include <netinet/in.h>
90 1.2 itojun #include <netinet/in_var.h>
91 1.14 itojun #include <netinet/in_systm.h>
92 1.97 rmind #include <netinet/in_offload.h>
93 1.14 itojun #include <netinet/ip.h>
94 1.14 itojun #include <netinet/ip_var.h>
95 1.14 itojun #include <netinet/in_pcb.h>
96 1.14 itojun #include <netinet/udp.h>
97 1.14 itojun #include <netinet/udp_var.h>
98 1.97 rmind #include <netinet/udp_private.h>
99 1.97 rmind
100 1.23 itojun #include <netinet/ip6.h>
101 1.97 rmind #include <netinet/icmp6.h>
102 1.27 itojun #include <netinet6/ip6_var.h>
103 1.97 rmind #include <netinet6/ip6_private.h>
104 1.2 itojun #include <netinet6/in6_pcb.h>
105 1.2 itojun #include <netinet6/udp6_var.h>
106 1.82 thorpej #include <netinet6/udp6_private.h>
107 1.14 itojun #include <netinet6/ip6protosw.h>
108 1.97 rmind #include <netinet6/scope6_var.h>
109 1.2 itojun
110 1.116 ozaki #ifdef IPSEC
111 1.116 ozaki #include <netipsec/ipsec.h>
112 1.137.2.5 pgoyette #include <netipsec/esp.h>
113 1.116 ozaki #ifdef INET6
114 1.116 ozaki #include <netipsec/ipsec6.h>
115 1.116 ozaki #endif
116 1.131 maxv #endif
117 1.116 ozaki
118 1.2 itojun #include "faith.h"
119 1.41 itojun #if defined(NFAITH) && NFAITH > 0
120 1.41 itojun #include <net/if_faith.h>
121 1.41 itojun #endif
122 1.2 itojun
123 1.2 itojun /*
124 1.73 rpaulo * UDP protocol implementation.
125 1.2 itojun * Per RFC 768, August, 1980.
126 1.2 itojun */
127 1.2 itojun
128 1.58 itojun extern struct inpcbtable udbtable;
129 1.82 thorpej
130 1.82 thorpej percpu_t *udp6stat_percpu;
131 1.2 itojun
132 1.97 rmind /* UDP on IP6 parameters */
133 1.131 maxv static int udp6_sendspace = 9216; /* really max datagram size */
134 1.131 maxv static int udp6_recvspace = 40 * (1024 + sizeof(struct sockaddr_in6));
135 1.97 rmind /* 40 1K datagrams */
136 1.97 rmind
137 1.131 maxv static void udp6_notify(struct in6pcb *, int);
138 1.131 maxv static void sysctl_net_inet6_udp6_setup(struct sysctllog **);
139 1.137.2.5 pgoyette #ifdef IPSEC
140 1.137.2.5 pgoyette static int udp6_espinudp(struct mbuf **, int, struct sockaddr *,
141 1.137.2.5 pgoyette struct socket *);
142 1.137.2.5 pgoyette #endif
143 1.2 itojun
144 1.97 rmind #ifdef UDP_CSUM_COUNTERS
145 1.97 rmind #include <sys/device.h>
146 1.97 rmind struct evcnt udp6_hwcsum_bad = EVCNT_INITIALIZER(EVCNT_TYPE_MISC,
147 1.97 rmind NULL, "udp6", "hwcsum bad");
148 1.97 rmind struct evcnt udp6_hwcsum_ok = EVCNT_INITIALIZER(EVCNT_TYPE_MISC,
149 1.97 rmind NULL, "udp6", "hwcsum ok");
150 1.97 rmind struct evcnt udp6_hwcsum_data = EVCNT_INITIALIZER(EVCNT_TYPE_MISC,
151 1.97 rmind NULL, "udp6", "hwcsum data");
152 1.97 rmind struct evcnt udp6_swcsum = EVCNT_INITIALIZER(EVCNT_TYPE_MISC,
153 1.97 rmind NULL, "udp6", "swcsum");
154 1.97 rmind
155 1.97 rmind EVCNT_ATTACH_STATIC(udp6_hwcsum_bad);
156 1.97 rmind EVCNT_ATTACH_STATIC(udp6_hwcsum_ok);
157 1.97 rmind EVCNT_ATTACH_STATIC(udp6_hwcsum_data);
158 1.97 rmind EVCNT_ATTACH_STATIC(udp6_swcsum);
159 1.97 rmind
160 1.97 rmind #define UDP_CSUM_COUNTER_INCR(ev) (ev)->ev_count++
161 1.97 rmind #else
162 1.97 rmind #define UDP_CSUM_COUNTER_INCR(ev) /* nothing */
163 1.97 rmind #endif
164 1.97 rmind
165 1.2 itojun void
166 1.81 matt udp6_init(void)
167 1.2 itojun {
168 1.88 pooka sysctl_net_inet6_udp6_setup(NULL);
169 1.92 pooka udp6stat_percpu = percpu_alloc(sizeof(uint64_t) * UDP6_NSTATS);
170 1.92 pooka
171 1.92 pooka udp_init_common();
172 1.2 itojun }
173 1.2 itojun
174 1.2 itojun /*
175 1.2 itojun * Notify a udp user of an asynchronous error;
176 1.27 itojun * just wake up so that he can collect error status.
177 1.2 itojun */
178 1.2 itojun static void
179 1.76 dyoung udp6_notify(struct in6pcb *in6p, int errno)
180 1.2 itojun {
181 1.2 itojun in6p->in6p_socket->so_error = errno;
182 1.2 itojun sorwakeup(in6p->in6p_socket);
183 1.2 itojun sowwakeup(in6p->in6p_socket);
184 1.2 itojun }
185 1.2 itojun
186 1.84 ad void *
187 1.76 dyoung udp6_ctlinput(int cmd, const struct sockaddr *sa, void *d)
188 1.2 itojun {
189 1.2 itojun struct udphdr uh;
190 1.39 itojun struct ip6_hdr *ip6;
191 1.76 dyoung const struct sockaddr_in6 *sa6 = (const struct sockaddr_in6 *)sa;
192 1.14 itojun struct mbuf *m;
193 1.14 itojun int off;
194 1.40 itojun void *cmdarg;
195 1.40 itojun struct ip6ctlparam *ip6cp = NULL;
196 1.40 itojun const struct sockaddr_in6 *sa6_src = NULL;
197 1.76 dyoung void (*notify)(struct in6pcb *, int) = udp6_notify;
198 1.40 itojun struct udp_portonly {
199 1.40 itojun u_int16_t uh_sport;
200 1.40 itojun u_int16_t uh_dport;
201 1.40 itojun } *uhp;
202 1.2 itojun
203 1.10 itojun if (sa->sa_family != AF_INET6 ||
204 1.10 itojun sa->sa_len != sizeof(struct sockaddr_in6))
205 1.84 ad return NULL;
206 1.14 itojun
207 1.25 itojun if ((unsigned)cmd >= PRC_NCMDS)
208 1.84 ad return NULL;
209 1.25 itojun if (PRC_IS_REDIRECT(cmd))
210 1.25 itojun notify = in6_rtchange, d = NULL;
211 1.25 itojun else if (cmd == PRC_HOSTDEAD)
212 1.25 itojun d = NULL;
213 1.47 itojun else if (cmd == PRC_MSGSIZE) {
214 1.47 itojun /* special code is present, see below */
215 1.47 itojun notify = in6_rtchange;
216 1.47 itojun }
217 1.25 itojun else if (inet6ctlerrmap[cmd] == 0)
218 1.84 ad return NULL;
219 1.7 itojun
220 1.14 itojun /* if the parameter is from icmp6, decode it. */
221 1.14 itojun if (d != NULL) {
222 1.40 itojun ip6cp = (struct ip6ctlparam *)d;
223 1.14 itojun m = ip6cp->ip6c_m;
224 1.14 itojun ip6 = ip6cp->ip6c_ip6;
225 1.14 itojun off = ip6cp->ip6c_off;
226 1.40 itojun cmdarg = ip6cp->ip6c_cmdarg;
227 1.40 itojun sa6_src = ip6cp->ip6c_src;
228 1.14 itojun } else {
229 1.14 itojun m = NULL;
230 1.14 itojun ip6 = NULL;
231 1.40 itojun cmdarg = NULL;
232 1.40 itojun sa6_src = &sa6_any;
233 1.60 christos off = 0;
234 1.14 itojun }
235 1.14 itojun
236 1.2 itojun if (ip6) {
237 1.33 itojun /* check if we can safely examine src and dst ports */
238 1.42 itojun if (m->m_pkthdr.len < off + sizeof(*uhp)) {
239 1.42 itojun if (cmd == PRC_MSGSIZE)
240 1.42 itojun icmp6_mtudisc_update((struct ip6ctlparam *)d, 0);
241 1.84 ad return NULL;
242 1.42 itojun }
243 1.7 itojun
244 1.87 cegger memset(&uh, 0, sizeof(uh));
245 1.77 christos m_copydata(m, off, sizeof(*uhp), (void *)&uh);
246 1.34 itojun
247 1.34 itojun if (cmd == PRC_MSGSIZE) {
248 1.36 itojun int valid = 0;
249 1.40 itojun
250 1.34 itojun /*
251 1.34 itojun * Check to see if we have a valid UDP socket
252 1.34 itojun * corresponding to the address in the ICMPv6 message
253 1.34 itojun * payload.
254 1.34 itojun */
255 1.58 itojun if (in6_pcblookup_connect(&udbtable, &sa6->sin6_addr,
256 1.68 christos uh.uh_dport, (const struct in6_addr *)&sa6_src->sin6_addr,
257 1.131 maxv uh.uh_sport, 0, 0))
258 1.36 itojun valid++;
259 1.34 itojun #if 0
260 1.34 itojun /*
261 1.34 itojun * As the use of sendto(2) is fairly popular,
262 1.34 itojun * we may want to allow non-connected pcb too.
263 1.34 itojun * But it could be too weak against attacks...
264 1.34 itojun * We should at least check if the local address (= s)
265 1.34 itojun * is really ours.
266 1.34 itojun */
267 1.58 itojun else if (in6_pcblookup_bind(&udbtable, &sa6->sin6_addr,
268 1.58 itojun uh.uh_dport, 0))
269 1.36 itojun valid++;
270 1.34 itojun #endif
271 1.34 itojun
272 1.34 itojun /*
273 1.40 itojun * Depending on the value of "valid" and routing table
274 1.40 itojun * size (mtudisc_{hi,lo}wat), we will:
275 1.46 itojun * - recalculate the new MTU and create the
276 1.40 itojun * corresponding routing entry, or
277 1.40 itojun * - ignore the MTU change notification.
278 1.34 itojun */
279 1.36 itojun icmp6_mtudisc_update((struct ip6ctlparam *)d, valid);
280 1.34 itojun
281 1.40 itojun /*
282 1.74 rpaulo * regardless of if we called
283 1.74 rpaulo * icmp6_mtudisc_update(), we need to call
284 1.74 rpaulo * in6_pcbnotify(), to notify path MTU change
285 1.74 rpaulo * to the userland (RFC3542), because some
286 1.74 rpaulo * unconnected sockets may share the same
287 1.40 itojun * destination and want to know the path MTU.
288 1.40 itojun */
289 1.34 itojun }
290 1.34 itojun
291 1.131 maxv (void)in6_pcbnotify(&udbtable, sa, uh.uh_dport,
292 1.124 ozaki sin6tocsa(sa6_src), uh.uh_sport, cmd, cmdarg,
293 1.40 itojun notify);
294 1.2 itojun } else {
295 1.131 maxv (void)in6_pcbnotify(&udbtable, sa, 0,
296 1.124 ozaki sin6tocsa(sa6_src), 0, cmd, cmdarg, notify);
297 1.2 itojun }
298 1.84 ad return NULL;
299 1.2 itojun }
300 1.2 itojun
301 1.90 christos int
302 1.90 christos udp6_ctloutput(int op, struct socket *so, struct sockopt *sopt)
303 1.90 christos {
304 1.90 christos int s;
305 1.90 christos int error = 0;
306 1.137.2.5 pgoyette struct in6pcb *in6p;
307 1.90 christos int family;
308 1.137.2.5 pgoyette int optval;
309 1.90 christos
310 1.90 christos family = so->so_proto->pr_domain->dom_family;
311 1.90 christos
312 1.90 christos s = splsoftnet();
313 1.90 christos switch (family) {
314 1.90 christos #ifdef INET
315 1.90 christos case PF_INET:
316 1.90 christos if (sopt->sopt_level != IPPROTO_UDP) {
317 1.90 christos error = ip_ctloutput(op, so, sopt);
318 1.90 christos goto end;
319 1.90 christos }
320 1.90 christos break;
321 1.90 christos #endif
322 1.90 christos #ifdef INET6
323 1.90 christos case PF_INET6:
324 1.90 christos if (sopt->sopt_level != IPPROTO_UDP) {
325 1.90 christos error = ip6_ctloutput(op, so, sopt);
326 1.90 christos goto end;
327 1.90 christos }
328 1.90 christos break;
329 1.90 christos #endif
330 1.90 christos default:
331 1.90 christos error = EAFNOSUPPORT;
332 1.90 christos goto end;
333 1.90 christos }
334 1.137.2.5 pgoyette
335 1.137.2.5 pgoyette switch (op) {
336 1.137.2.5 pgoyette case PRCO_SETOPT:
337 1.137.2.5 pgoyette in6p = sotoin6pcb(so);
338 1.137.2.5 pgoyette
339 1.137.2.5 pgoyette switch (sopt->sopt_name) {
340 1.137.2.5 pgoyette case UDP_ENCAP:
341 1.137.2.5 pgoyette error = sockopt_getint(sopt, &optval);
342 1.137.2.5 pgoyette if (error)
343 1.137.2.5 pgoyette break;
344 1.137.2.5 pgoyette
345 1.137.2.5 pgoyette switch(optval) {
346 1.137.2.5 pgoyette case 0:
347 1.137.2.5 pgoyette in6p->in6p_flags &= ~IN6P_ESPINUDP;
348 1.137.2.5 pgoyette break;
349 1.137.2.5 pgoyette
350 1.137.2.5 pgoyette case UDP_ENCAP_ESPINUDP:
351 1.137.2.5 pgoyette in6p->in6p_flags |= IN6P_ESPINUDP;
352 1.137.2.5 pgoyette break;
353 1.137.2.5 pgoyette
354 1.137.2.5 pgoyette default:
355 1.137.2.5 pgoyette error = EINVAL;
356 1.137.2.5 pgoyette break;
357 1.137.2.5 pgoyette }
358 1.137.2.5 pgoyette break;
359 1.137.2.5 pgoyette
360 1.137.2.5 pgoyette default:
361 1.137.2.5 pgoyette error = ENOPROTOOPT;
362 1.137.2.5 pgoyette break;
363 1.137.2.5 pgoyette }
364 1.137.2.5 pgoyette break;
365 1.137.2.5 pgoyette
366 1.137.2.5 pgoyette default:
367 1.137.2.5 pgoyette error = EINVAL;
368 1.137.2.5 pgoyette break;
369 1.137.2.5 pgoyette }
370 1.90 christos
371 1.90 christos end:
372 1.90 christos splx(s);
373 1.90 christos return error;
374 1.90 christos }
375 1.90 christos
376 1.97 rmind static void
377 1.97 rmind udp6_sendup(struct mbuf *m, int off /* offset of data portion */,
378 1.131 maxv struct sockaddr *src, struct socket *so)
379 1.97 rmind {
380 1.97 rmind struct mbuf *opts = NULL;
381 1.97 rmind struct mbuf *n;
382 1.128 ozaki struct in6pcb *in6p;
383 1.97 rmind
384 1.128 ozaki KASSERT(so != NULL);
385 1.128 ozaki KASSERT(so->so_proto->pr_domain->dom_family == AF_INET6);
386 1.97 rmind in6p = sotoin6pcb(so);
387 1.128 ozaki KASSERT(in6p != NULL);
388 1.97 rmind
389 1.97 rmind #if defined(IPSEC)
390 1.135 maxv if (ipsec_used && ipsec_in_reject(m, in6p)) {
391 1.97 rmind if ((n = m_copypacket(m, M_DONTWAIT)) != NULL)
392 1.97 rmind icmp6_error(n, ICMP6_DST_UNREACH,
393 1.97 rmind ICMP6_DST_UNREACH_ADMIN, 0);
394 1.97 rmind return;
395 1.97 rmind }
396 1.131 maxv #endif
397 1.97 rmind
398 1.97 rmind if ((n = m_copypacket(m, M_DONTWAIT)) != NULL) {
399 1.131 maxv if (in6p->in6p_flags & IN6P_CONTROLOPTS ||
400 1.131 maxv SOOPT_TIMESTAMP(in6p->in6p_socket->so_options)) {
401 1.97 rmind struct ip6_hdr *ip6 = mtod(n, struct ip6_hdr *);
402 1.97 rmind ip6_savecontrol(in6p, &opts, ip6, n);
403 1.97 rmind }
404 1.97 rmind
405 1.97 rmind m_adj(n, off);
406 1.97 rmind if (sbappendaddr(&so->so_rcv, src, n, opts) == 0) {
407 1.97 rmind m_freem(n);
408 1.97 rmind if (opts)
409 1.97 rmind m_freem(opts);
410 1.97 rmind UDP6_STATINC(UDP6_STAT_FULLSOCK);
411 1.137.2.1 pgoyette soroverflow(so);
412 1.97 rmind } else
413 1.97 rmind sorwakeup(so);
414 1.97 rmind }
415 1.97 rmind }
416 1.97 rmind
417 1.97 rmind int
418 1.97 rmind udp6_realinput(int af, struct sockaddr_in6 *src, struct sockaddr_in6 *dst,
419 1.137.2.5 pgoyette struct mbuf **mp, int off)
420 1.97 rmind {
421 1.97 rmind u_int16_t sport, dport;
422 1.97 rmind int rcvcnt;
423 1.97 rmind struct in6_addr src6, *dst6;
424 1.97 rmind const struct in_addr *dst4;
425 1.97 rmind struct inpcb_hdr *inph;
426 1.97 rmind struct in6pcb *in6p;
427 1.137.2.5 pgoyette struct mbuf *m = *mp;
428 1.97 rmind
429 1.97 rmind rcvcnt = 0;
430 1.97 rmind off += sizeof(struct udphdr); /* now, offset of payload */
431 1.97 rmind
432 1.97 rmind if (af != AF_INET && af != AF_INET6)
433 1.97 rmind goto bad;
434 1.97 rmind if (src->sin6_family != AF_INET6 || dst->sin6_family != AF_INET6)
435 1.97 rmind goto bad;
436 1.97 rmind
437 1.97 rmind src6 = src->sin6_addr;
438 1.97 rmind if (sa6_recoverscope(src) != 0) {
439 1.97 rmind /* XXX: should be impossible. */
440 1.97 rmind goto bad;
441 1.97 rmind }
442 1.97 rmind sport = src->sin6_port;
443 1.97 rmind
444 1.97 rmind dport = dst->sin6_port;
445 1.97 rmind dst4 = (struct in_addr *)&dst->sin6_addr.s6_addr[12];
446 1.97 rmind dst6 = &dst->sin6_addr;
447 1.97 rmind
448 1.97 rmind if (IN6_IS_ADDR_MULTICAST(dst6) ||
449 1.97 rmind (af == AF_INET && IN_MULTICAST(dst4->s_addr))) {
450 1.97 rmind /*
451 1.97 rmind * Deliver a multicast or broadcast datagram to *all* sockets
452 1.97 rmind * for which the local and remote addresses and ports match
453 1.97 rmind * those of the incoming datagram. This allows more than
454 1.97 rmind * one process to receive multi/broadcasts on the same port.
455 1.97 rmind * (This really ought to be done for unicast datagrams as
456 1.97 rmind * well, but that would cause problems with existing
457 1.97 rmind * applications that open both address-specific sockets and
458 1.97 rmind * a wildcard socket listening to the same port -- they would
459 1.97 rmind * end up receiving duplicates of every unicast datagram.
460 1.97 rmind * Those applications open the multiple sockets to overcome an
461 1.97 rmind * inadequacy of the UDP socket interface, but for backwards
462 1.97 rmind * compatibility we avoid the problem here rather than
463 1.97 rmind * fixing the interface. Maybe 4.5BSD will remedy this?)
464 1.97 rmind */
465 1.97 rmind
466 1.97 rmind /*
467 1.97 rmind * KAME note: traditionally we dropped udpiphdr from mbuf here.
468 1.97 rmind * we need udpiphdr for IPsec processing so we do that later.
469 1.97 rmind */
470 1.97 rmind /*
471 1.97 rmind * Locate pcb(s) for datagram.
472 1.97 rmind */
473 1.97 rmind TAILQ_FOREACH(inph, &udbtable.inpt_queue, inph_queue) {
474 1.97 rmind in6p = (struct in6pcb *)inph;
475 1.97 rmind if (in6p->in6p_af != AF_INET6)
476 1.97 rmind continue;
477 1.97 rmind
478 1.97 rmind if (in6p->in6p_lport != dport)
479 1.97 rmind continue;
480 1.97 rmind if (!IN6_IS_ADDR_UNSPECIFIED(&in6p->in6p_laddr)) {
481 1.97 rmind if (!IN6_ARE_ADDR_EQUAL(&in6p->in6p_laddr,
482 1.97 rmind dst6))
483 1.97 rmind continue;
484 1.97 rmind } else {
485 1.97 rmind if (IN6_IS_ADDR_V4MAPPED(dst6) &&
486 1.97 rmind (in6p->in6p_flags & IN6P_IPV6_V6ONLY))
487 1.97 rmind continue;
488 1.97 rmind }
489 1.97 rmind if (!IN6_IS_ADDR_UNSPECIFIED(&in6p->in6p_faddr)) {
490 1.97 rmind if (!IN6_ARE_ADDR_EQUAL(&in6p->in6p_faddr,
491 1.97 rmind &src6) || in6p->in6p_fport != sport)
492 1.97 rmind continue;
493 1.97 rmind } else {
494 1.97 rmind if (IN6_IS_ADDR_V4MAPPED(&src6) &&
495 1.97 rmind (in6p->in6p_flags & IN6P_IPV6_V6ONLY))
496 1.97 rmind continue;
497 1.97 rmind }
498 1.97 rmind
499 1.124 ozaki udp6_sendup(m, off, sin6tosa(src), in6p->in6p_socket);
500 1.97 rmind rcvcnt++;
501 1.97 rmind
502 1.97 rmind /*
503 1.97 rmind * Don't look for additional matches if this one does
504 1.97 rmind * not have either the SO_REUSEPORT or SO_REUSEADDR
505 1.97 rmind * socket options set. This heuristic avoids searching
506 1.97 rmind * through all pcbs in the common case of a non-shared
507 1.97 rmind * port. It assumes that an application will never
508 1.97 rmind * clear these options after setting them.
509 1.97 rmind */
510 1.97 rmind if ((in6p->in6p_socket->so_options &
511 1.97 rmind (SO_REUSEPORT|SO_REUSEADDR)) == 0)
512 1.97 rmind break;
513 1.97 rmind }
514 1.97 rmind } else {
515 1.97 rmind /*
516 1.97 rmind * Locate pcb for datagram.
517 1.97 rmind */
518 1.97 rmind in6p = in6_pcblookup_connect(&udbtable, &src6, sport, dst6,
519 1.97 rmind dport, 0, 0);
520 1.97 rmind if (in6p == 0) {
521 1.97 rmind UDP_STATINC(UDP_STAT_PCBHASHMISS);
522 1.97 rmind in6p = in6_pcblookup_bind(&udbtable, dst6, dport, 0);
523 1.97 rmind if (in6p == 0)
524 1.97 rmind return rcvcnt;
525 1.97 rmind }
526 1.97 rmind
527 1.137.2.5 pgoyette #ifdef IPSEC
528 1.137.2.5 pgoyette /* Handle ESP over UDP */
529 1.137.2.5 pgoyette if (in6p->in6p_flags & IN6P_ESPINUDP) {
530 1.137.2.5 pgoyette struct sockaddr *sa = (struct sockaddr *)src;
531 1.137.2.5 pgoyette
532 1.137.2.5 pgoyette switch (udp6_espinudp(mp, off, sa, in6p->in6p_socket)) {
533 1.137.2.5 pgoyette case -1: /* Error, m was freed */
534 1.137.2.5 pgoyette rcvcnt = -1;
535 1.137.2.5 pgoyette goto bad;
536 1.137.2.5 pgoyette
537 1.137.2.5 pgoyette case 1: /* ESP over UDP */
538 1.137.2.5 pgoyette rcvcnt++;
539 1.137.2.5 pgoyette goto bad;
540 1.137.2.5 pgoyette
541 1.137.2.5 pgoyette case 0: /* plain UDP */
542 1.137.2.5 pgoyette default: /* Unexpected */
543 1.137.2.5 pgoyette /*
544 1.137.2.5 pgoyette * Normal UDP processing will take place,
545 1.137.2.5 pgoyette * m may have changed.
546 1.137.2.5 pgoyette */
547 1.137.2.5 pgoyette m = *mp;
548 1.137.2.5 pgoyette break;
549 1.137.2.5 pgoyette }
550 1.137.2.5 pgoyette }
551 1.137.2.5 pgoyette #endif
552 1.137.2.5 pgoyette
553 1.124 ozaki udp6_sendup(m, off, sin6tosa(src), in6p->in6p_socket);
554 1.97 rmind rcvcnt++;
555 1.97 rmind }
556 1.97 rmind
557 1.97 rmind bad:
558 1.97 rmind return rcvcnt;
559 1.97 rmind }
560 1.97 rmind
561 1.97 rmind int
562 1.97 rmind udp6_input_checksum(struct mbuf *m, const struct udphdr *uh, int off, int len)
563 1.97 rmind {
564 1.97 rmind
565 1.97 rmind /*
566 1.97 rmind * XXX it's better to record and check if this mbuf is
567 1.97 rmind * already checked.
568 1.97 rmind */
569 1.97 rmind
570 1.97 rmind if (__predict_false((m->m_flags & M_LOOP) && !udp_do_loopback_cksum)) {
571 1.97 rmind goto good;
572 1.97 rmind }
573 1.97 rmind if (uh->uh_sum == 0) {
574 1.97 rmind UDP6_STATINC(UDP6_STAT_NOSUM);
575 1.97 rmind goto bad;
576 1.97 rmind }
577 1.97 rmind
578 1.97 rmind switch (m->m_pkthdr.csum_flags &
579 1.123 ozaki ((m_get_rcvif_NOMPSAFE(m)->if_csum_flags_rx & M_CSUM_UDPv6) |
580 1.97 rmind M_CSUM_TCP_UDP_BAD | M_CSUM_DATA)) {
581 1.97 rmind case M_CSUM_UDPv6|M_CSUM_TCP_UDP_BAD:
582 1.97 rmind UDP_CSUM_COUNTER_INCR(&udp6_hwcsum_bad);
583 1.97 rmind UDP6_STATINC(UDP6_STAT_BADSUM);
584 1.97 rmind goto bad;
585 1.97 rmind
586 1.97 rmind #if 0 /* notyet */
587 1.97 rmind case M_CSUM_UDPv6|M_CSUM_DATA:
588 1.97 rmind #endif
589 1.97 rmind
590 1.97 rmind case M_CSUM_UDPv6:
591 1.97 rmind /* Checksum was okay. */
592 1.97 rmind UDP_CSUM_COUNTER_INCR(&udp6_hwcsum_ok);
593 1.97 rmind break;
594 1.97 rmind
595 1.97 rmind default:
596 1.97 rmind /*
597 1.97 rmind * Need to compute it ourselves. Maybe skip checksum
598 1.97 rmind * on loopback interfaces.
599 1.97 rmind */
600 1.97 rmind UDP_CSUM_COUNTER_INCR(&udp6_swcsum);
601 1.97 rmind if (in6_cksum(m, IPPROTO_UDP, off, len) != 0) {
602 1.97 rmind UDP6_STATINC(UDP6_STAT_BADSUM);
603 1.97 rmind goto bad;
604 1.97 rmind }
605 1.97 rmind }
606 1.97 rmind
607 1.97 rmind good:
608 1.97 rmind return 0;
609 1.97 rmind bad:
610 1.97 rmind return -1;
611 1.97 rmind }
612 1.97 rmind
613 1.97 rmind int
614 1.97 rmind udp6_input(struct mbuf **mp, int *offp, int proto)
615 1.97 rmind {
616 1.97 rmind struct mbuf *m = *mp;
617 1.97 rmind int off = *offp;
618 1.97 rmind struct sockaddr_in6 src, dst;
619 1.97 rmind struct ip6_hdr *ip6;
620 1.97 rmind struct udphdr *uh;
621 1.97 rmind u_int32_t plen, ulen;
622 1.97 rmind
623 1.97 rmind ip6 = mtod(m, struct ip6_hdr *);
624 1.90 christos
625 1.97 rmind #if defined(NFAITH) && 0 < NFAITH
626 1.97 rmind if (faithprefix(&ip6->ip6_dst)) {
627 1.97 rmind /* send icmp6 host unreach? */
628 1.97 rmind m_freem(m);
629 1.97 rmind return IPPROTO_DONE;
630 1.97 rmind }
631 1.97 rmind #endif
632 1.97 rmind
633 1.97 rmind UDP6_STATINC(UDP6_STAT_IPACKETS);
634 1.97 rmind
635 1.131 maxv /* Check for jumbogram is done in ip6_input. We can trust pkthdr.len. */
636 1.97 rmind plen = m->m_pkthdr.len - off;
637 1.97 rmind IP6_EXTHDR_GET(uh, struct udphdr *, m, off, sizeof(struct udphdr));
638 1.97 rmind if (uh == NULL) {
639 1.97 rmind IP6_STATINC(IP6_STAT_TOOSHORT);
640 1.97 rmind return IPPROTO_DONE;
641 1.97 rmind }
642 1.131 maxv
643 1.125 mlelstv /*
644 1.125 mlelstv * Enforce alignment requirements that are violated in
645 1.125 mlelstv * some cases, see kern/50766 for details.
646 1.125 mlelstv */
647 1.131 maxv if (UDP_HDR_ALIGNED_P(uh) == 0) {
648 1.131 maxv m = m_copyup(m, off + sizeof(struct udphdr), 0);
649 1.131 maxv if (m == NULL) {
650 1.131 maxv IP6_STATINC(IP6_STAT_TOOSHORT);
651 1.131 maxv return IPPROTO_DONE;
652 1.131 maxv }
653 1.125 mlelstv ip6 = mtod(m, struct ip6_hdr *);
654 1.131 maxv uh = (struct udphdr *)(mtod(m, char *) + off);
655 1.131 maxv }
656 1.97 rmind KASSERT(UDP_HDR_ALIGNED_P(uh));
657 1.97 rmind ulen = ntohs((u_short)uh->uh_ulen);
658 1.131 maxv
659 1.97 rmind /*
660 1.97 rmind * RFC2675 section 4: jumbograms will have 0 in the UDP header field,
661 1.97 rmind * iff payload length > 0xffff.
662 1.97 rmind */
663 1.97 rmind if (ulen == 0 && plen > 0xffff)
664 1.97 rmind ulen = plen;
665 1.97 rmind
666 1.97 rmind if (plen != ulen) {
667 1.97 rmind UDP6_STATINC(UDP6_STAT_BADLEN);
668 1.97 rmind goto bad;
669 1.97 rmind }
670 1.97 rmind
671 1.97 rmind /* destination port of 0 is illegal, based on RFC768. */
672 1.97 rmind if (uh->uh_dport == 0)
673 1.97 rmind goto bad;
674 1.97 rmind
675 1.97 rmind /*
676 1.97 rmind * Checksum extended UDP header and data. Maybe skip checksum
677 1.97 rmind * on loopback interfaces.
678 1.97 rmind */
679 1.97 rmind if (udp6_input_checksum(m, uh, off, ulen))
680 1.97 rmind goto bad;
681 1.97 rmind
682 1.97 rmind /*
683 1.97 rmind * Construct source and dst sockaddrs.
684 1.97 rmind */
685 1.97 rmind memset(&src, 0, sizeof(src));
686 1.97 rmind src.sin6_family = AF_INET6;
687 1.97 rmind src.sin6_len = sizeof(struct sockaddr_in6);
688 1.97 rmind src.sin6_addr = ip6->ip6_src;
689 1.97 rmind src.sin6_port = uh->uh_sport;
690 1.97 rmind memset(&dst, 0, sizeof(dst));
691 1.97 rmind dst.sin6_family = AF_INET6;
692 1.97 rmind dst.sin6_len = sizeof(struct sockaddr_in6);
693 1.97 rmind dst.sin6_addr = ip6->ip6_dst;
694 1.97 rmind dst.sin6_port = uh->uh_dport;
695 1.97 rmind
696 1.137.2.5 pgoyette if (udp6_realinput(AF_INET6, &src, &dst, &m, off) == 0) {
697 1.97 rmind if (m->m_flags & M_MCAST) {
698 1.97 rmind UDP6_STATINC(UDP6_STAT_NOPORTMCAST);
699 1.97 rmind goto bad;
700 1.97 rmind }
701 1.97 rmind UDP6_STATINC(UDP6_STAT_NOPORT);
702 1.97 rmind icmp6_error(m, ICMP6_DST_UNREACH, ICMP6_DST_UNREACH_NOPORT, 0);
703 1.97 rmind m = NULL;
704 1.97 rmind }
705 1.97 rmind
706 1.97 rmind bad:
707 1.97 rmind if (m)
708 1.97 rmind m_freem(m);
709 1.97 rmind return IPPROTO_DONE;
710 1.97 rmind }
711 1.2 itojun
712 1.132 maxv int
713 1.132 maxv udp6_output(struct in6pcb * const in6p, struct mbuf *m,
714 1.132 maxv struct sockaddr_in6 * const addr6, struct mbuf * const control,
715 1.132 maxv struct lwp * const l)
716 1.132 maxv {
717 1.132 maxv u_int32_t ulen = m->m_pkthdr.len;
718 1.132 maxv u_int32_t plen = sizeof(struct udphdr) + ulen;
719 1.132 maxv struct ip6_hdr *ip6;
720 1.132 maxv struct udphdr *udp6;
721 1.132 maxv struct in6_addr _laddr, *laddr, *faddr;
722 1.132 maxv struct in6_addr laddr_mapped; /* XXX ugly */
723 1.132 maxv struct sockaddr_in6 *sin6 = NULL;
724 1.132 maxv struct ifnet *oifp = NULL;
725 1.132 maxv int scope_ambiguous = 0;
726 1.132 maxv u_int16_t fport;
727 1.132 maxv int error = 0;
728 1.132 maxv struct ip6_pktopts *optp = NULL;
729 1.132 maxv struct ip6_pktopts opt;
730 1.132 maxv int af = AF_INET6, hlen = sizeof(struct ip6_hdr);
731 1.132 maxv #ifdef INET
732 1.132 maxv struct ip *ip;
733 1.132 maxv struct udpiphdr *ui;
734 1.132 maxv int flags = 0;
735 1.132 maxv #endif
736 1.132 maxv struct sockaddr_in6 tmp;
737 1.132 maxv
738 1.132 maxv if (addr6) {
739 1.132 maxv sin6 = addr6;
740 1.137.2.5 pgoyette if (sin6->sin6_len != sizeof(*sin6)) {
741 1.137.2.5 pgoyette error = EINVAL;
742 1.137.2.5 pgoyette goto release;
743 1.137.2.5 pgoyette }
744 1.132 maxv if (sin6->sin6_family != AF_INET6) {
745 1.132 maxv error = EAFNOSUPPORT;
746 1.132 maxv goto release;
747 1.132 maxv }
748 1.132 maxv
749 1.132 maxv /* protect *sin6 from overwrites */
750 1.132 maxv tmp = *sin6;
751 1.132 maxv sin6 = &tmp;
752 1.132 maxv
753 1.132 maxv /*
754 1.132 maxv * Application should provide a proper zone ID or the use of
755 1.132 maxv * default zone IDs should be enabled. Unfortunately, some
756 1.132 maxv * applications do not behave as it should, so we need a
757 1.132 maxv * workaround. Even if an appropriate ID is not determined,
758 1.132 maxv * we'll see if we can determine the outgoing interface. If we
759 1.132 maxv * can, determine the zone ID based on the interface below.
760 1.132 maxv */
761 1.132 maxv if (sin6->sin6_scope_id == 0 && !ip6_use_defzone)
762 1.132 maxv scope_ambiguous = 1;
763 1.132 maxv if ((error = sa6_embedscope(sin6, ip6_use_defzone)) != 0)
764 1.132 maxv goto release;
765 1.132 maxv }
766 1.132 maxv
767 1.132 maxv if (control) {
768 1.133 maxv if (__predict_false(l == NULL)) {
769 1.133 maxv panic("%s: control but no lwp", __func__);
770 1.133 maxv }
771 1.132 maxv if ((error = ip6_setpktopts(control, &opt,
772 1.132 maxv in6p->in6p_outputopts, l->l_cred, IPPROTO_UDP)) != 0)
773 1.132 maxv goto release;
774 1.132 maxv optp = &opt;
775 1.132 maxv } else
776 1.132 maxv optp = in6p->in6p_outputopts;
777 1.132 maxv
778 1.132 maxv
779 1.132 maxv if (sin6) {
780 1.132 maxv /*
781 1.132 maxv * Slightly different than v4 version in that we call
782 1.132 maxv * in6_selectsrc and in6_pcbsetport to fill in the local
783 1.132 maxv * address and port rather than in_pcbconnect. in_pcbconnect
784 1.132 maxv * sets in6p_faddr which causes EISCONN below to be hit on
785 1.132 maxv * subsequent sendto.
786 1.132 maxv */
787 1.132 maxv if (sin6->sin6_port == 0) {
788 1.132 maxv error = EADDRNOTAVAIL;
789 1.132 maxv goto release;
790 1.132 maxv }
791 1.132 maxv
792 1.132 maxv if (!IN6_IS_ADDR_UNSPECIFIED(&in6p->in6p_faddr)) {
793 1.132 maxv /* how about ::ffff:0.0.0.0 case? */
794 1.132 maxv error = EISCONN;
795 1.132 maxv goto release;
796 1.132 maxv }
797 1.132 maxv
798 1.132 maxv faddr = &sin6->sin6_addr;
799 1.132 maxv fport = sin6->sin6_port; /* allow 0 port */
800 1.132 maxv
801 1.132 maxv if (IN6_IS_ADDR_V4MAPPED(faddr)) {
802 1.132 maxv if ((in6p->in6p_flags & IN6P_IPV6_V6ONLY)) {
803 1.132 maxv /*
804 1.132 maxv * I believe we should explicitly discard the
805 1.132 maxv * packet when mapped addresses are disabled,
806 1.132 maxv * rather than send the packet as an IPv6 one.
807 1.132 maxv * If we chose the latter approach, the packet
808 1.132 maxv * might be sent out on the wire based on the
809 1.132 maxv * default route, the situation which we'd
810 1.132 maxv * probably want to avoid.
811 1.132 maxv * (20010421 jinmei (at) kame.net)
812 1.132 maxv */
813 1.132 maxv error = EINVAL;
814 1.132 maxv goto release;
815 1.132 maxv }
816 1.132 maxv if (!IN6_IS_ADDR_UNSPECIFIED(&in6p->in6p_laddr) &&
817 1.132 maxv !IN6_IS_ADDR_V4MAPPED(&in6p->in6p_laddr)) {
818 1.132 maxv /*
819 1.132 maxv * when remote addr is an IPv4-mapped address,
820 1.132 maxv * local addr should not be an IPv6 address,
821 1.132 maxv * since you cannot determine how to map IPv6
822 1.132 maxv * source address to IPv4.
823 1.132 maxv */
824 1.132 maxv error = EINVAL;
825 1.132 maxv goto release;
826 1.132 maxv }
827 1.132 maxv
828 1.132 maxv af = AF_INET;
829 1.132 maxv }
830 1.132 maxv
831 1.132 maxv if (!IN6_IS_ADDR_V4MAPPED(faddr)) {
832 1.132 maxv struct psref psref;
833 1.132 maxv int bound = curlwp_bind();
834 1.132 maxv
835 1.132 maxv error = in6_selectsrc(sin6, optp,
836 1.132 maxv in6p->in6p_moptions,
837 1.132 maxv &in6p->in6p_route,
838 1.132 maxv &in6p->in6p_laddr, &oifp, &psref, &_laddr);
839 1.137.2.5 pgoyette if (error)
840 1.137.2.5 pgoyette laddr = NULL;
841 1.137.2.5 pgoyette else
842 1.137.2.5 pgoyette laddr = &_laddr;
843 1.132 maxv if (oifp && scope_ambiguous &&
844 1.132 maxv (error = in6_setscope(&sin6->sin6_addr,
845 1.132 maxv oifp, NULL))) {
846 1.132 maxv if_put(oifp, &psref);
847 1.132 maxv curlwp_bindx(bound);
848 1.132 maxv goto release;
849 1.132 maxv }
850 1.132 maxv if_put(oifp, &psref);
851 1.132 maxv curlwp_bindx(bound);
852 1.132 maxv } else {
853 1.132 maxv /*
854 1.132 maxv * XXX: freebsd[34] does not have in_selectsrc, but
855 1.132 maxv * we can omit the whole part because freebsd4 calls
856 1.132 maxv * udp_output() directly in this case, and thus we'll
857 1.132 maxv * never see this path.
858 1.132 maxv */
859 1.132 maxv if (IN6_IS_ADDR_UNSPECIFIED(&in6p->in6p_laddr)) {
860 1.132 maxv struct sockaddr_in sin_dst;
861 1.132 maxv struct in_addr ina;
862 1.132 maxv struct in_ifaddr *ia4;
863 1.132 maxv struct psref _psref;
864 1.132 maxv int bound;
865 1.132 maxv
866 1.132 maxv memcpy(&ina, &faddr->s6_addr[12], sizeof(ina));
867 1.132 maxv sockaddr_in_init(&sin_dst, &ina, 0);
868 1.132 maxv bound = curlwp_bind();
869 1.132 maxv ia4 = in_selectsrc(&sin_dst, &in6p->in6p_route,
870 1.132 maxv in6p->in6p_socket->so_options, NULL,
871 1.132 maxv &error, &_psref);
872 1.132 maxv if (ia4 == NULL) {
873 1.132 maxv curlwp_bindx(bound);
874 1.132 maxv if (error == 0)
875 1.132 maxv error = EADDRNOTAVAIL;
876 1.132 maxv goto release;
877 1.132 maxv }
878 1.132 maxv memset(&laddr_mapped, 0, sizeof(laddr_mapped));
879 1.132 maxv laddr_mapped.s6_addr16[5] = 0xffff; /* ugly */
880 1.132 maxv memcpy(&laddr_mapped.s6_addr[12],
881 1.132 maxv &IA_SIN(ia4)->sin_addr,
882 1.132 maxv sizeof(IA_SIN(ia4)->sin_addr));
883 1.132 maxv ia4_release(ia4, &_psref);
884 1.132 maxv curlwp_bindx(bound);
885 1.132 maxv laddr = &laddr_mapped;
886 1.132 maxv } else
887 1.132 maxv {
888 1.132 maxv laddr = &in6p->in6p_laddr; /* XXX */
889 1.132 maxv }
890 1.132 maxv }
891 1.132 maxv if (laddr == NULL) {
892 1.132 maxv if (error == 0)
893 1.132 maxv error = EADDRNOTAVAIL;
894 1.132 maxv goto release;
895 1.132 maxv }
896 1.132 maxv if (in6p->in6p_lport == 0) {
897 1.132 maxv /*
898 1.132 maxv * Craft a sockaddr_in6 for the local endpoint. Use the
899 1.132 maxv * "any" as a base, set the address, and recover the
900 1.132 maxv * scope.
901 1.132 maxv */
902 1.132 maxv struct sockaddr_in6 lsin6 =
903 1.132 maxv *((const struct sockaddr_in6 *)in6p->in6p_socket->so_proto->pr_domain->dom_sa_any);
904 1.132 maxv lsin6.sin6_addr = *laddr;
905 1.132 maxv error = sa6_recoverscope(&lsin6);
906 1.132 maxv if (error)
907 1.132 maxv goto release;
908 1.132 maxv
909 1.132 maxv error = in6_pcbsetport(&lsin6, in6p, l);
910 1.132 maxv
911 1.132 maxv if (error) {
912 1.132 maxv in6p->in6p_laddr = in6addr_any;
913 1.132 maxv goto release;
914 1.132 maxv }
915 1.132 maxv }
916 1.132 maxv } else {
917 1.132 maxv if (IN6_IS_ADDR_UNSPECIFIED(&in6p->in6p_faddr)) {
918 1.132 maxv error = ENOTCONN;
919 1.132 maxv goto release;
920 1.132 maxv }
921 1.132 maxv if (IN6_IS_ADDR_V4MAPPED(&in6p->in6p_faddr)) {
922 1.132 maxv if ((in6p->in6p_flags & IN6P_IPV6_V6ONLY))
923 1.132 maxv {
924 1.132 maxv /*
925 1.132 maxv * XXX: this case would happen when the
926 1.132 maxv * application sets the V6ONLY flag after
927 1.132 maxv * connecting the foreign address.
928 1.132 maxv * Such applications should be fixed,
929 1.132 maxv * so we bark here.
930 1.132 maxv */
931 1.132 maxv log(LOG_INFO, "udp6_output: IPV6_V6ONLY "
932 1.132 maxv "option was set for a connected socket\n");
933 1.132 maxv error = EINVAL;
934 1.132 maxv goto release;
935 1.132 maxv } else
936 1.132 maxv af = AF_INET;
937 1.132 maxv }
938 1.132 maxv laddr = &in6p->in6p_laddr;
939 1.132 maxv faddr = &in6p->in6p_faddr;
940 1.132 maxv fport = in6p->in6p_fport;
941 1.132 maxv }
942 1.132 maxv
943 1.132 maxv if (af == AF_INET)
944 1.132 maxv hlen = sizeof(struct ip);
945 1.132 maxv
946 1.132 maxv /*
947 1.132 maxv * Calculate data length and get a mbuf
948 1.132 maxv * for UDP and IP6 headers.
949 1.132 maxv */
950 1.132 maxv M_PREPEND(m, hlen + sizeof(struct udphdr), M_DONTWAIT);
951 1.132 maxv if (m == NULL) {
952 1.132 maxv error = ENOBUFS;
953 1.132 maxv goto release;
954 1.132 maxv }
955 1.132 maxv
956 1.132 maxv /*
957 1.132 maxv * Stuff checksum and output datagram.
958 1.132 maxv */
959 1.132 maxv udp6 = (struct udphdr *)(mtod(m, char *) + hlen);
960 1.132 maxv udp6->uh_sport = in6p->in6p_lport; /* lport is always set in the PCB */
961 1.132 maxv udp6->uh_dport = fport;
962 1.132 maxv if (plen <= 0xffff)
963 1.132 maxv udp6->uh_ulen = htons((u_int16_t)plen);
964 1.132 maxv else
965 1.132 maxv udp6->uh_ulen = 0;
966 1.132 maxv udp6->uh_sum = 0;
967 1.132 maxv
968 1.132 maxv switch (af) {
969 1.132 maxv case AF_INET6:
970 1.132 maxv ip6 = mtod(m, struct ip6_hdr *);
971 1.132 maxv ip6->ip6_flow = in6p->in6p_flowinfo & IPV6_FLOWINFO_MASK;
972 1.132 maxv ip6->ip6_vfc &= ~IPV6_VERSION_MASK;
973 1.132 maxv ip6->ip6_vfc |= IPV6_VERSION;
974 1.132 maxv #if 0 /* ip6_plen will be filled in ip6_output. */
975 1.132 maxv ip6->ip6_plen = htons((u_int16_t)plen);
976 1.132 maxv #endif
977 1.132 maxv ip6->ip6_nxt = IPPROTO_UDP;
978 1.132 maxv ip6->ip6_hlim = in6_selecthlim_rt(in6p);
979 1.132 maxv ip6->ip6_src = *laddr;
980 1.132 maxv ip6->ip6_dst = *faddr;
981 1.132 maxv
982 1.132 maxv udp6->uh_sum = in6_cksum_phdr(laddr, faddr,
983 1.132 maxv htonl(plen), htonl(IPPROTO_UDP));
984 1.132 maxv m->m_pkthdr.csum_flags = M_CSUM_UDPv6;
985 1.132 maxv m->m_pkthdr.csum_data = offsetof(struct udphdr, uh_sum);
986 1.132 maxv
987 1.132 maxv UDP6_STATINC(UDP6_STAT_OPACKETS);
988 1.132 maxv error = ip6_output(m, optp, &in6p->in6p_route, 0,
989 1.132 maxv in6p->in6p_moptions, in6p, NULL);
990 1.132 maxv break;
991 1.132 maxv case AF_INET:
992 1.132 maxv #ifdef INET
993 1.132 maxv /* can't transmit jumbogram over IPv4 */
994 1.132 maxv if (plen > 0xffff) {
995 1.132 maxv error = EMSGSIZE;
996 1.132 maxv goto release;
997 1.132 maxv }
998 1.132 maxv
999 1.132 maxv ip = mtod(m, struct ip *);
1000 1.132 maxv ui = (struct udpiphdr *)ip;
1001 1.132 maxv memset(ui->ui_x1, 0, sizeof(ui->ui_x1));
1002 1.132 maxv ui->ui_pr = IPPROTO_UDP;
1003 1.132 maxv ui->ui_len = htons(plen);
1004 1.132 maxv memcpy(&ui->ui_src, &laddr->s6_addr[12], sizeof(ui->ui_src));
1005 1.132 maxv ui->ui_ulen = ui->ui_len;
1006 1.132 maxv
1007 1.132 maxv flags = (in6p->in6p_socket->so_options &
1008 1.132 maxv (SO_DONTROUTE | SO_BROADCAST));
1009 1.132 maxv memcpy(&ui->ui_dst, &faddr->s6_addr[12], sizeof(ui->ui_dst));
1010 1.132 maxv
1011 1.132 maxv udp6->uh_sum = in_cksum(m, hlen + plen);
1012 1.132 maxv if (udp6->uh_sum == 0)
1013 1.132 maxv udp6->uh_sum = 0xffff;
1014 1.132 maxv
1015 1.132 maxv ip->ip_len = htons(hlen + plen);
1016 1.132 maxv ip->ip_ttl = in6_selecthlim(in6p, NULL); /* XXX */
1017 1.132 maxv ip->ip_tos = 0; /* XXX */
1018 1.132 maxv
1019 1.132 maxv UDP_STATINC(UDP_STAT_OPACKETS);
1020 1.132 maxv error = ip_output(m, NULL, &in6p->in6p_route, flags /* XXX */,
1021 1.132 maxv in6p->in6p_v4moptions, NULL);
1022 1.132 maxv break;
1023 1.132 maxv #else
1024 1.132 maxv error = EAFNOSUPPORT;
1025 1.132 maxv goto release;
1026 1.132 maxv #endif
1027 1.132 maxv }
1028 1.132 maxv goto releaseopt;
1029 1.132 maxv
1030 1.132 maxv release:
1031 1.132 maxv m_freem(m);
1032 1.132 maxv
1033 1.132 maxv releaseopt:
1034 1.132 maxv if (control) {
1035 1.132 maxv if (optp == &opt)
1036 1.132 maxv ip6_clearpktopts(&opt, -1);
1037 1.132 maxv m_freem(control);
1038 1.132 maxv }
1039 1.132 maxv return (error);
1040 1.132 maxv }
1041 1.132 maxv
1042 1.95 rmind static int
1043 1.95 rmind udp6_attach(struct socket *so, int proto)
1044 1.95 rmind {
1045 1.95 rmind struct in6pcb *in6p;
1046 1.95 rmind int s, error;
1047 1.95 rmind
1048 1.95 rmind KASSERT(sotoin6pcb(so) == NULL);
1049 1.95 rmind sosetlock(so);
1050 1.95 rmind
1051 1.95 rmind /*
1052 1.95 rmind * MAPPED_ADDR implementation spec:
1053 1.95 rmind * Always attach for IPv6, and only when necessary for IPv4.
1054 1.95 rmind */
1055 1.95 rmind s = splsoftnet();
1056 1.95 rmind error = in6_pcballoc(so, &udbtable);
1057 1.95 rmind splx(s);
1058 1.95 rmind if (error) {
1059 1.95 rmind return error;
1060 1.95 rmind }
1061 1.95 rmind error = soreserve(so, udp6_sendspace, udp6_recvspace);
1062 1.95 rmind if (error) {
1063 1.95 rmind return error;
1064 1.95 rmind }
1065 1.95 rmind in6p = sotoin6pcb(so);
1066 1.95 rmind in6p->in6p_cksum = -1; /* just to be sure */
1067 1.95 rmind
1068 1.95 rmind KASSERT(solocked(so));
1069 1.95 rmind return 0;
1070 1.95 rmind }
1071 1.95 rmind
1072 1.95 rmind static void
1073 1.95 rmind udp6_detach(struct socket *so)
1074 1.95 rmind {
1075 1.95 rmind struct in6pcb *in6p = sotoin6pcb(so);
1076 1.95 rmind int s;
1077 1.95 rmind
1078 1.95 rmind KASSERT(solocked(so));
1079 1.95 rmind KASSERT(in6p != NULL);
1080 1.95 rmind
1081 1.95 rmind s = splsoftnet();
1082 1.95 rmind in6_pcbdetach(in6p);
1083 1.95 rmind splx(s);
1084 1.95 rmind }
1085 1.95 rmind
1086 1.99 rtr static int
1087 1.118 rtr udp6_accept(struct socket *so, struct sockaddr *nam)
1088 1.107 rtr {
1089 1.107 rtr KASSERT(solocked(so));
1090 1.107 rtr
1091 1.107 rtr return EOPNOTSUPP;
1092 1.107 rtr }
1093 1.107 rtr
1094 1.107 rtr static int
1095 1.117 rtr udp6_bind(struct socket *so, struct sockaddr *nam, struct lwp *l)
1096 1.109 rtr {
1097 1.109 rtr struct in6pcb *in6p = sotoin6pcb(so);
1098 1.117 rtr struct sockaddr_in6 *sin6 = (struct sockaddr_in6 *)nam;
1099 1.109 rtr int error = 0;
1100 1.109 rtr int s;
1101 1.109 rtr
1102 1.109 rtr KASSERT(solocked(so));
1103 1.109 rtr KASSERT(in6p != NULL);
1104 1.109 rtr
1105 1.109 rtr s = splsoftnet();
1106 1.117 rtr error = in6_pcbbind(in6p, sin6, l);
1107 1.109 rtr splx(s);
1108 1.109 rtr return error;
1109 1.109 rtr }
1110 1.109 rtr
1111 1.109 rtr static int
1112 1.112 rtr udp6_listen(struct socket *so, struct lwp *l)
1113 1.109 rtr {
1114 1.109 rtr KASSERT(solocked(so));
1115 1.109 rtr
1116 1.109 rtr return EOPNOTSUPP;
1117 1.109 rtr }
1118 1.109 rtr
1119 1.109 rtr static int
1120 1.120 rtr udp6_connect(struct socket *so, struct sockaddr *nam, struct lwp *l)
1121 1.110 rtr {
1122 1.110 rtr struct in6pcb *in6p = sotoin6pcb(so);
1123 1.110 rtr int error = 0;
1124 1.110 rtr int s;
1125 1.110 rtr
1126 1.110 rtr KASSERT(solocked(so));
1127 1.110 rtr KASSERT(in6p != NULL);
1128 1.110 rtr
1129 1.110 rtr if (!IN6_IS_ADDR_UNSPECIFIED(&in6p->in6p_faddr))
1130 1.110 rtr return EISCONN;
1131 1.110 rtr s = splsoftnet();
1132 1.120 rtr error = in6_pcbconnect(in6p, (struct sockaddr_in6 *)nam, l);
1133 1.110 rtr splx(s);
1134 1.110 rtr if (error == 0)
1135 1.110 rtr soisconnected(so);
1136 1.110 rtr
1137 1.110 rtr return error;
1138 1.110 rtr }
1139 1.110 rtr
1140 1.110 rtr static int
1141 1.115 rtr udp6_connect2(struct socket *so, struct socket *so2)
1142 1.115 rtr {
1143 1.115 rtr KASSERT(solocked(so));
1144 1.115 rtr
1145 1.115 rtr return EOPNOTSUPP;
1146 1.115 rtr }
1147 1.115 rtr
1148 1.115 rtr static int
1149 1.111 rtr udp6_disconnect(struct socket *so)
1150 1.111 rtr {
1151 1.111 rtr struct in6pcb *in6p = sotoin6pcb(so);
1152 1.111 rtr int s;
1153 1.111 rtr
1154 1.111 rtr KASSERT(solocked(so));
1155 1.111 rtr KASSERT(in6p != NULL);
1156 1.111 rtr
1157 1.111 rtr if (IN6_IS_ADDR_UNSPECIFIED(&in6p->in6p_faddr))
1158 1.111 rtr return ENOTCONN;
1159 1.111 rtr
1160 1.111 rtr s = splsoftnet();
1161 1.111 rtr in6_pcbdisconnect(in6p);
1162 1.111 rtr memset((void *)&in6p->in6p_laddr, 0, sizeof(in6p->in6p_laddr));
1163 1.111 rtr splx(s);
1164 1.111 rtr
1165 1.111 rtr so->so_state &= ~SS_ISCONNECTED; /* XXX */
1166 1.111 rtr in6_pcbstate(in6p, IN6P_BOUND); /* XXX */
1167 1.111 rtr return 0;
1168 1.111 rtr }
1169 1.111 rtr
1170 1.111 rtr static int
1171 1.111 rtr udp6_shutdown(struct socket *so)
1172 1.111 rtr {
1173 1.111 rtr int s;
1174 1.111 rtr
1175 1.111 rtr s = splsoftnet();
1176 1.111 rtr socantsendmore(so);
1177 1.111 rtr splx(s);
1178 1.111 rtr
1179 1.111 rtr return 0;
1180 1.111 rtr }
1181 1.111 rtr
1182 1.111 rtr static int
1183 1.111 rtr udp6_abort(struct socket *so)
1184 1.111 rtr {
1185 1.111 rtr int s;
1186 1.111 rtr
1187 1.111 rtr KASSERT(solocked(so));
1188 1.111 rtr KASSERT(sotoin6pcb(so) != NULL);
1189 1.111 rtr
1190 1.111 rtr s = splsoftnet();
1191 1.111 rtr soisdisconnected(so);
1192 1.111 rtr in6_pcbdetach(sotoin6pcb(so));
1193 1.111 rtr splx(s);
1194 1.111 rtr
1195 1.111 rtr return 0;
1196 1.111 rtr }
1197 1.111 rtr
1198 1.111 rtr static int
1199 1.101 rtr udp6_ioctl(struct socket *so, u_long cmd, void *addr6, struct ifnet *ifp)
1200 1.2 itojun {
1201 1.27 itojun /*
1202 1.2 itojun * MAPPED_ADDR implementation info:
1203 1.2 itojun * Mapped addr support for PRU_CONTROL is not necessary.
1204 1.2 itojun * Because typical user of PRU_CONTROL is such as ifconfig,
1205 1.2 itojun * and they don't associate any addr to their socket. Then
1206 1.2 itojun * socket family is only hint about the PRU_CONTROL'ed address
1207 1.2 itojun * family, especially when getting addrs from kernel.
1208 1.2 itojun * So AF_INET socket need to be used to control AF_INET addrs,
1209 1.2 itojun * and AF_INET6 socket for AF_INET6 addrs.
1210 1.2 itojun */
1211 1.101 rtr return in6_control(so, cmd, addr6, ifp);
1212 1.99 rtr }
1213 1.99 rtr
1214 1.102 rtr static int
1215 1.102 rtr udp6_stat(struct socket *so, struct stat *ub)
1216 1.102 rtr {
1217 1.105 rtr KASSERT(solocked(so));
1218 1.105 rtr
1219 1.104 rtr /* stat: don't bother with a blocksize */
1220 1.104 rtr return 0;
1221 1.102 rtr }
1222 1.102 rtr
1223 1.106 rtr static int
1224 1.118 rtr udp6_peeraddr(struct socket *so, struct sockaddr *nam)
1225 1.106 rtr {
1226 1.106 rtr KASSERT(solocked(so));
1227 1.106 rtr KASSERT(sotoin6pcb(so) != NULL);
1228 1.106 rtr KASSERT(nam != NULL);
1229 1.106 rtr
1230 1.118 rtr in6_setpeeraddr(sotoin6pcb(so), (struct sockaddr_in6 *)nam);
1231 1.106 rtr return 0;
1232 1.106 rtr }
1233 1.106 rtr
1234 1.106 rtr static int
1235 1.118 rtr udp6_sockaddr(struct socket *so, struct sockaddr *nam)
1236 1.106 rtr {
1237 1.106 rtr KASSERT(solocked(so));
1238 1.106 rtr KASSERT(sotoin6pcb(so) != NULL);
1239 1.106 rtr KASSERT(nam != NULL);
1240 1.106 rtr
1241 1.118 rtr in6_setsockaddr(sotoin6pcb(so), (struct sockaddr_in6 *)nam);
1242 1.106 rtr return 0;
1243 1.106 rtr }
1244 1.106 rtr
1245 1.108 rtr static int
1246 1.114 rtr udp6_rcvd(struct socket *so, int flags, struct lwp *l)
1247 1.114 rtr {
1248 1.114 rtr KASSERT(solocked(so));
1249 1.114 rtr
1250 1.114 rtr return EOPNOTSUPP;
1251 1.114 rtr }
1252 1.114 rtr
1253 1.114 rtr static int
1254 1.108 rtr udp6_recvoob(struct socket *so, struct mbuf *m, int flags)
1255 1.108 rtr {
1256 1.108 rtr KASSERT(solocked(so));
1257 1.108 rtr
1258 1.108 rtr return EOPNOTSUPP;
1259 1.108 rtr }
1260 1.108 rtr
1261 1.108 rtr static int
1262 1.120 rtr udp6_send(struct socket *so, struct mbuf *m, struct sockaddr *nam,
1263 1.113 rtr struct mbuf *control, struct lwp *l)
1264 1.113 rtr {
1265 1.113 rtr struct in6pcb *in6p = sotoin6pcb(so);
1266 1.113 rtr int error = 0;
1267 1.113 rtr int s;
1268 1.113 rtr
1269 1.113 rtr KASSERT(solocked(so));
1270 1.113 rtr KASSERT(in6p != NULL);
1271 1.113 rtr KASSERT(m != NULL);
1272 1.113 rtr
1273 1.113 rtr s = splsoftnet();
1274 1.120 rtr error = udp6_output(in6p, m, (struct sockaddr_in6 *)nam, control, l);
1275 1.113 rtr splx(s);
1276 1.113 rtr
1277 1.113 rtr return error;
1278 1.113 rtr }
1279 1.113 rtr
1280 1.113 rtr static int
1281 1.108 rtr udp6_sendoob(struct socket *so, struct mbuf *m, struct mbuf *control)
1282 1.108 rtr {
1283 1.108 rtr KASSERT(solocked(so));
1284 1.108 rtr
1285 1.108 rtr if (m)
1286 1.108 rtr m_freem(m);
1287 1.108 rtr if (control)
1288 1.108 rtr m_freem(control);
1289 1.108 rtr
1290 1.108 rtr return EOPNOTSUPP;
1291 1.108 rtr }
1292 1.108 rtr
1293 1.115 rtr static int
1294 1.115 rtr udp6_purgeif(struct socket *so, struct ifnet *ifp)
1295 1.115 rtr {
1296 1.115 rtr
1297 1.115 rtr mutex_enter(softnet_lock);
1298 1.127 ozaki in6_pcbpurgeif0(&udbtable, ifp);
1299 1.127 ozaki #ifdef NET_MPSAFE
1300 1.127 ozaki mutex_exit(softnet_lock);
1301 1.126 knakahar #endif
1302 1.115 rtr in6_purgeif(ifp);
1303 1.127 ozaki #ifdef NET_MPSAFE
1304 1.127 ozaki mutex_enter(softnet_lock);
1305 1.127 ozaki #endif
1306 1.115 rtr in6_pcbpurgeif(&udbtable, ifp);
1307 1.115 rtr mutex_exit(softnet_lock);
1308 1.115 rtr
1309 1.115 rtr return 0;
1310 1.115 rtr }
1311 1.115 rtr
1312 1.82 thorpej static int
1313 1.82 thorpej sysctl_net_inet6_udp6_stats(SYSCTLFN_ARGS)
1314 1.82 thorpej {
1315 1.82 thorpej
1316 1.86 thorpej return (NETSTAT_SYSCTL(udp6stat_percpu, UDP6_NSTATS));
1317 1.82 thorpej }
1318 1.82 thorpej
1319 1.88 pooka static void
1320 1.88 pooka sysctl_net_inet6_udp6_setup(struct sysctllog **clog)
1321 1.2 itojun {
1322 1.93 pooka
1323 1.62 atatat sysctl_createv(clog, 0, NULL, NULL,
1324 1.62 atatat CTLFLAG_PERMANENT,
1325 1.61 atatat CTLTYPE_NODE, "inet6", NULL,
1326 1.61 atatat NULL, 0, NULL, 0,
1327 1.61 atatat CTL_NET, PF_INET6, CTL_EOL);
1328 1.62 atatat sysctl_createv(clog, 0, NULL, NULL,
1329 1.62 atatat CTLFLAG_PERMANENT,
1330 1.63 atatat CTLTYPE_NODE, "udp6",
1331 1.63 atatat SYSCTL_DESCR("UDPv6 related settings"),
1332 1.61 atatat NULL, 0, NULL, 0,
1333 1.61 atatat CTL_NET, PF_INET6, IPPROTO_UDP, CTL_EOL);
1334 1.61 atatat
1335 1.62 atatat sysctl_createv(clog, 0, NULL, NULL,
1336 1.62 atatat CTLFLAG_PERMANENT|CTLFLAG_READWRITE,
1337 1.63 atatat CTLTYPE_INT, "sendspace",
1338 1.63 atatat SYSCTL_DESCR("Default UDP send buffer size"),
1339 1.61 atatat NULL, 0, &udp6_sendspace, 0,
1340 1.61 atatat CTL_NET, PF_INET6, IPPROTO_UDP, UDP6CTL_SENDSPACE,
1341 1.61 atatat CTL_EOL);
1342 1.62 atatat sysctl_createv(clog, 0, NULL, NULL,
1343 1.62 atatat CTLFLAG_PERMANENT|CTLFLAG_READWRITE,
1344 1.63 atatat CTLTYPE_INT, "recvspace",
1345 1.63 atatat SYSCTL_DESCR("Default UDP receive buffer size"),
1346 1.61 atatat NULL, 0, &udp6_recvspace, 0,
1347 1.61 atatat CTL_NET, PF_INET6, IPPROTO_UDP, UDP6CTL_RECVSPACE,
1348 1.61 atatat CTL_EOL);
1349 1.64 thorpej sysctl_createv(clog, 0, NULL, NULL,
1350 1.64 thorpej CTLFLAG_PERMANENT|CTLFLAG_READWRITE,
1351 1.64 thorpej CTLTYPE_INT, "do_loopback_cksum",
1352 1.64 thorpej SYSCTL_DESCR("Perform UDP checksum on loopback"),
1353 1.64 thorpej NULL, 0, &udp_do_loopback_cksum, 0,
1354 1.64 thorpej CTL_NET, PF_INET6, IPPROTO_UDP, UDP6CTL_LOOPBACKCKSUM,
1355 1.64 thorpej CTL_EOL);
1356 1.65 atatat sysctl_createv(clog, 0, NULL, NULL,
1357 1.65 atatat CTLFLAG_PERMANENT,
1358 1.67 atatat CTLTYPE_STRUCT, "pcblist",
1359 1.65 atatat SYSCTL_DESCR("UDP protocol control block list"),
1360 1.65 atatat sysctl_inpcblist, 0, &udbtable, 0,
1361 1.65 atatat CTL_NET, PF_INET6, IPPROTO_UDP, CTL_CREATE,
1362 1.65 atatat CTL_EOL);
1363 1.70 rpaulo sysctl_createv(clog, 0, NULL, NULL,
1364 1.70 rpaulo CTLFLAG_PERMANENT,
1365 1.70 rpaulo CTLTYPE_STRUCT, "stats",
1366 1.70 rpaulo SYSCTL_DESCR("UDPv6 statistics"),
1367 1.82 thorpej sysctl_net_inet6_udp6_stats, 0, NULL, 0,
1368 1.70 rpaulo CTL_NET, PF_INET6, IPPROTO_UDP, UDP6CTL_STATS,
1369 1.70 rpaulo CTL_EOL);
1370 1.2 itojun }
1371 1.82 thorpej
1372 1.82 thorpej void
1373 1.82 thorpej udp6_statinc(u_int stat)
1374 1.82 thorpej {
1375 1.82 thorpej
1376 1.82 thorpej KASSERT(stat < UDP6_NSTATS);
1377 1.82 thorpej UDP6_STATINC(stat);
1378 1.82 thorpej }
1379 1.94 rmind
1380 1.137.2.5 pgoyette #ifdef IPSEC
1381 1.137.2.5 pgoyette /*
1382 1.137.2.5 pgoyette * Returns:
1383 1.137.2.5 pgoyette * 1 if the packet was processed
1384 1.137.2.5 pgoyette * 0 if normal UDP processing should take place
1385 1.137.2.5 pgoyette * -1 if an error occurred and m was freed
1386 1.137.2.5 pgoyette */
1387 1.137.2.5 pgoyette static int
1388 1.137.2.5 pgoyette udp6_espinudp(struct mbuf **mp, int off, struct sockaddr *src,
1389 1.137.2.5 pgoyette struct socket *so)
1390 1.137.2.5 pgoyette {
1391 1.137.2.5 pgoyette const size_t skip = sizeof(struct udphdr);
1392 1.137.2.5 pgoyette size_t len;
1393 1.137.2.5 pgoyette void *data;
1394 1.137.2.5 pgoyette size_t minlen;
1395 1.137.2.5 pgoyette int ip6hdrlen;
1396 1.137.2.5 pgoyette struct ip6_hdr *ip6;
1397 1.137.2.5 pgoyette struct m_tag *tag;
1398 1.137.2.5 pgoyette struct udphdr *udphdr;
1399 1.137.2.5 pgoyette u_int16_t sport, dport;
1400 1.137.2.5 pgoyette struct mbuf *m = *mp;
1401 1.137.2.5 pgoyette uint32_t *marker;
1402 1.137.2.5 pgoyette
1403 1.137.2.5 pgoyette /*
1404 1.137.2.5 pgoyette * Collapse the mbuf chain if the first mbuf is too short
1405 1.137.2.5 pgoyette * The longest case is: UDP + non ESP marker + ESP
1406 1.137.2.5 pgoyette */
1407 1.137.2.5 pgoyette minlen = off + sizeof(u_int64_t) + sizeof(struct esp);
1408 1.137.2.5 pgoyette if (minlen > m->m_pkthdr.len)
1409 1.137.2.5 pgoyette minlen = m->m_pkthdr.len;
1410 1.137.2.5 pgoyette
1411 1.137.2.5 pgoyette if (m->m_len < minlen) {
1412 1.137.2.5 pgoyette if ((*mp = m_pullup(m, minlen)) == NULL) {
1413 1.137.2.5 pgoyette return -1;
1414 1.137.2.5 pgoyette }
1415 1.137.2.5 pgoyette m = *mp;
1416 1.137.2.5 pgoyette }
1417 1.137.2.5 pgoyette
1418 1.137.2.5 pgoyette len = m->m_len - off;
1419 1.137.2.5 pgoyette data = mtod(m, char *) + off;
1420 1.137.2.5 pgoyette
1421 1.137.2.5 pgoyette /* Ignore keepalive packets */
1422 1.137.2.5 pgoyette if ((len == 1) && (*(unsigned char *)data == 0xff)) {
1423 1.137.2.5 pgoyette m_freem(m);
1424 1.137.2.5 pgoyette *mp = NULL; /* avoid any further processing by caller ... */
1425 1.137.2.5 pgoyette return 1;
1426 1.137.2.5 pgoyette }
1427 1.137.2.5 pgoyette
1428 1.137.2.5 pgoyette /* Handle Non-ESP marker (32bit). If zero, then IKE. */
1429 1.137.2.5 pgoyette marker = (uint32_t *)data;
1430 1.137.2.5 pgoyette if (len <= sizeof(uint32_t))
1431 1.137.2.5 pgoyette return 0;
1432 1.137.2.5 pgoyette if (marker[0] == 0)
1433 1.137.2.5 pgoyette return 0;
1434 1.137.2.5 pgoyette
1435 1.137.2.5 pgoyette /*
1436 1.137.2.5 pgoyette * Get the UDP ports. They are handled in network
1437 1.137.2.5 pgoyette * order everywhere in IPSEC_NAT_T code.
1438 1.137.2.5 pgoyette */
1439 1.137.2.5 pgoyette udphdr = (struct udphdr *)((char *)data - skip);
1440 1.137.2.5 pgoyette sport = udphdr->uh_sport;
1441 1.137.2.5 pgoyette dport = udphdr->uh_dport;
1442 1.137.2.5 pgoyette
1443 1.137.2.5 pgoyette /*
1444 1.137.2.5 pgoyette * Remove the UDP header (and possibly the non ESP marker)
1445 1.137.2.5 pgoyette * IPv6 header length is ip6hdrlen
1446 1.137.2.5 pgoyette * Before:
1447 1.137.2.5 pgoyette * <---- off --->
1448 1.137.2.5 pgoyette * +-----+------+-----+
1449 1.137.2.5 pgoyette * | IP6 | UDP | ESP |
1450 1.137.2.5 pgoyette * +-----+------+-----+
1451 1.137.2.5 pgoyette * <-skip->
1452 1.137.2.5 pgoyette * After:
1453 1.137.2.5 pgoyette * +-----+-----+
1454 1.137.2.5 pgoyette * | IP6 | ESP |
1455 1.137.2.5 pgoyette * +-----+-----+
1456 1.137.2.5 pgoyette * <-skip->
1457 1.137.2.5 pgoyette */
1458 1.137.2.5 pgoyette ip6hdrlen = off - sizeof(struct udphdr);
1459 1.137.2.5 pgoyette memmove(mtod(m, char *) + skip, mtod(m, void *), ip6hdrlen);
1460 1.137.2.5 pgoyette m_adj(m, skip);
1461 1.137.2.5 pgoyette
1462 1.137.2.5 pgoyette ip6 = mtod(m, struct ip6_hdr *);
1463 1.137.2.5 pgoyette ip6->ip6_plen = htons(ntohs(ip6->ip6_plen) - skip);
1464 1.137.2.5 pgoyette ip6->ip6_nxt = IPPROTO_ESP;
1465 1.137.2.5 pgoyette
1466 1.137.2.5 pgoyette /*
1467 1.137.2.5 pgoyette * We have modified the packet - it is now ESP, so we should not
1468 1.137.2.5 pgoyette * return to UDP processing ...
1469 1.137.2.5 pgoyette *
1470 1.137.2.5 pgoyette * Add a PACKET_TAG_IPSEC_NAT_T_PORT tag to remember
1471 1.137.2.5 pgoyette * the source UDP port. This is required if we want
1472 1.137.2.5 pgoyette * to select the right SPD for multiple hosts behind
1473 1.137.2.5 pgoyette * same NAT
1474 1.137.2.5 pgoyette */
1475 1.137.2.5 pgoyette if ((tag = m_tag_get(PACKET_TAG_IPSEC_NAT_T_PORTS,
1476 1.137.2.5 pgoyette sizeof(sport) + sizeof(dport), M_DONTWAIT)) == NULL) {
1477 1.137.2.5 pgoyette m_freem(m);
1478 1.137.2.5 pgoyette return -1;
1479 1.137.2.5 pgoyette }
1480 1.137.2.5 pgoyette ((u_int16_t *)(tag + 1))[0] = sport;
1481 1.137.2.5 pgoyette ((u_int16_t *)(tag + 1))[1] = dport;
1482 1.137.2.5 pgoyette m_tag_prepend(m, tag);
1483 1.137.2.5 pgoyette
1484 1.137.2.5 pgoyette if (ipsec_used)
1485 1.137.2.5 pgoyette ipsec6_common_input(&m, &ip6hdrlen, IPPROTO_ESP);
1486 1.137.2.5 pgoyette else
1487 1.137.2.5 pgoyette m_freem(m);
1488 1.137.2.5 pgoyette
1489 1.137.2.5 pgoyette /* We handled it, it shouldn't be handled by UDP */
1490 1.137.2.5 pgoyette *mp = NULL; /* avoid free by caller ... */
1491 1.137.2.5 pgoyette return 1;
1492 1.137.2.5 pgoyette }
1493 1.137.2.5 pgoyette #endif /* IPSEC */
1494 1.137.2.5 pgoyette
1495 1.96 rmind PR_WRAP_USRREQS(udp6)
1496 1.96 rmind #define udp6_attach udp6_attach_wrapper
1497 1.96 rmind #define udp6_detach udp6_detach_wrapper
1498 1.107 rtr #define udp6_accept udp6_accept_wrapper
1499 1.109 rtr #define udp6_bind udp6_bind_wrapper
1500 1.109 rtr #define udp6_listen udp6_listen_wrapper
1501 1.110 rtr #define udp6_connect udp6_connect_wrapper
1502 1.115 rtr #define udp6_connect2 udp6_connect2_wrapper
1503 1.111 rtr #define udp6_disconnect udp6_disconnect_wrapper
1504 1.111 rtr #define udp6_shutdown udp6_shutdown_wrapper
1505 1.111 rtr #define udp6_abort udp6_abort_wrapper
1506 1.99 rtr #define udp6_ioctl udp6_ioctl_wrapper
1507 1.102 rtr #define udp6_stat udp6_stat_wrapper
1508 1.106 rtr #define udp6_peeraddr udp6_peeraddr_wrapper
1509 1.106 rtr #define udp6_sockaddr udp6_sockaddr_wrapper
1510 1.114 rtr #define udp6_rcvd udp6_rcvd_wrapper
1511 1.108 rtr #define udp6_recvoob udp6_recvoob_wrapper
1512 1.113 rtr #define udp6_send udp6_send_wrapper
1513 1.108 rtr #define udp6_sendoob udp6_sendoob_wrapper
1514 1.115 rtr #define udp6_purgeif udp6_purgeif_wrapper
1515 1.94 rmind
1516 1.94 rmind const struct pr_usrreqs udp6_usrreqs = {
1517 1.95 rmind .pr_attach = udp6_attach,
1518 1.95 rmind .pr_detach = udp6_detach,
1519 1.107 rtr .pr_accept = udp6_accept,
1520 1.109 rtr .pr_bind = udp6_bind,
1521 1.109 rtr .pr_listen = udp6_listen,
1522 1.110 rtr .pr_connect = udp6_connect,
1523 1.115 rtr .pr_connect2 = udp6_connect2,
1524 1.111 rtr .pr_disconnect = udp6_disconnect,
1525 1.111 rtr .pr_shutdown = udp6_shutdown,
1526 1.111 rtr .pr_abort = udp6_abort,
1527 1.99 rtr .pr_ioctl = udp6_ioctl,
1528 1.102 rtr .pr_stat = udp6_stat,
1529 1.106 rtr .pr_peeraddr = udp6_peeraddr,
1530 1.106 rtr .pr_sockaddr = udp6_sockaddr,
1531 1.114 rtr .pr_rcvd = udp6_rcvd,
1532 1.108 rtr .pr_recvoob = udp6_recvoob,
1533 1.113 rtr .pr_send = udp6_send,
1534 1.108 rtr .pr_sendoob = udp6_sendoob,
1535 1.115 rtr .pr_purgeif = udp6_purgeif,
1536 1.94 rmind };
1537