sctp6_usrreq.c revision 1.21 1 1.1 rjs /* $KAME: sctp6_usrreq.c,v 1.38 2005/08/24 08:08:56 suz Exp $ */
2 1.21 rjs /* $NetBSD: sctp6_usrreq.c,v 1.21 2020/04/27 19:21:43 rjs Exp $ */
3 1.1 rjs
4 1.1 rjs /*
5 1.1 rjs * Copyright (c) 2001, 2002, 2003, 2004 Cisco Systems, Inc.
6 1.1 rjs * All rights reserved.
7 1.1 rjs *
8 1.1 rjs * Redistribution and use in source and binary forms, with or without
9 1.1 rjs * modification, are permitted provided that the following conditions
10 1.1 rjs * are met:
11 1.1 rjs * 1. Redistributions of source code must retain the above copyright
12 1.1 rjs * notice, this list of conditions and the following disclaimer.
13 1.1 rjs * 2. Redistributions in binary form must reproduce the above copyright
14 1.1 rjs * notice, this list of conditions and the following disclaimer in the
15 1.1 rjs * documentation and/or other materials provided with the distribution.
16 1.1 rjs * 3. All advertising materials mentioning features or use of this software
17 1.1 rjs * must display the following acknowledgement:
18 1.1 rjs * This product includes software developed by Cisco Systems, Inc.
19 1.1 rjs * 4. Neither the name of the project nor the names of its contributors
20 1.1 rjs * may be used to endorse or promote products derived from this software
21 1.1 rjs * without specific prior written permission.
22 1.1 rjs *
23 1.1 rjs * THIS SOFTWARE IS PROVIDED BY CISCO SYSTEMS AND CONTRIBUTORS ``AS IS'' AND
24 1.1 rjs * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
25 1.1 rjs * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
26 1.1 rjs * ARE DISCLAIMED. IN NO EVENT SHALL CISCO SYSTEMS OR CONTRIBUTORS BE LIABLE
27 1.1 rjs * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
28 1.1 rjs * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
29 1.1 rjs * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
30 1.1 rjs * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
31 1.1 rjs * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
32 1.1 rjs * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
33 1.1 rjs * SUCH DAMAGE.
34 1.1 rjs */
35 1.1 rjs #include <sys/cdefs.h>
36 1.21 rjs __KERNEL_RCSID(0, "$NetBSD: sctp6_usrreq.c,v 1.21 2020/04/27 19:21:43 rjs Exp $");
37 1.1 rjs
38 1.1 rjs #ifdef _KERNEL_OPT
39 1.1 rjs #include "opt_inet.h"
40 1.1 rjs #include "opt_ipsec.h"
41 1.1 rjs #include "opt_sctp.h"
42 1.9 knakahar #include "opt_net_mpsafe.h"
43 1.1 rjs #endif /* _KERNEL_OPT */
44 1.1 rjs
45 1.1 rjs #include <sys/param.h>
46 1.1 rjs #include <sys/kernel.h>
47 1.1 rjs #include <sys/mbuf.h>
48 1.1 rjs #include <sys/domain.h>
49 1.1 rjs #include <sys/protosw.h>
50 1.1 rjs #include <sys/socket.h>
51 1.1 rjs #include <sys/malloc.h>
52 1.1 rjs #include <sys/socketvar.h>
53 1.1 rjs #include <sys/sysctl.h>
54 1.1 rjs #include <sys/errno.h>
55 1.1 rjs #include <sys/stat.h>
56 1.1 rjs #include <sys/systm.h>
57 1.1 rjs #include <sys/syslog.h>
58 1.1 rjs #include <sys/proc.h>
59 1.1 rjs #include <net/if.h>
60 1.1 rjs #include <net/route.h>
61 1.1 rjs #include <net/if_types.h>
62 1.1 rjs #include <netinet/in.h>
63 1.1 rjs #include <netinet/in_systm.h>
64 1.1 rjs #include <netinet/ip.h>
65 1.1 rjs #include <netinet/in_pcb.h>
66 1.1 rjs #include <netinet/in_var.h>
67 1.1 rjs #include <netinet/ip_var.h>
68 1.1 rjs #include <netinet/sctp_pcb.h>
69 1.1 rjs #include <netinet/sctp_header.h>
70 1.1 rjs #include <netinet/sctp_var.h>
71 1.1 rjs #include <netinet/sctputil.h>
72 1.1 rjs #include <netinet/sctp_output.h>
73 1.1 rjs #include <netinet/sctp_input.h>
74 1.1 rjs #include <netinet/sctp_asconf.h>
75 1.20 rjs #include <netinet/sctp_route.h>
76 1.1 rjs #include <netinet6/ip6_var.h>
77 1.1 rjs #include <netinet6/scope6_var.h>
78 1.1 rjs #include <netinet/ip6.h>
79 1.1 rjs #include <netinet6/in6_pcb.h>
80 1.1 rjs #include <netinet/icmp6.h>
81 1.1 rjs #include <netinet6/sctp6_var.h>
82 1.1 rjs #include <netinet6/ip6protosw.h>
83 1.1 rjs
84 1.1 rjs #ifdef IPSEC
85 1.4 rjs #include <netipsec/ipsec.h>
86 1.4 rjs #include <netipsec/ipsec6.h>
87 1.1 rjs #endif /*IPSEC*/
88 1.1 rjs
89 1.1 rjs #if defined(NFAITH) && NFAITH > 0
90 1.1 rjs #include <net/if_faith.h>
91 1.1 rjs #endif
92 1.1 rjs
93 1.1 rjs #if defined(HAVE_NRL_INPCB) || defined(__FreeBSD__)
94 1.1 rjs #ifndef in6pcb
95 1.1 rjs #define in6pcb inpcb
96 1.1 rjs #endif
97 1.1 rjs #ifndef sotoin6pcb
98 1.1 rjs #define sotoin6pcb sotoinpcb
99 1.1 rjs #endif
100 1.1 rjs #endif
101 1.1 rjs
102 1.1 rjs #ifdef SCTP_DEBUG
103 1.1 rjs extern u_int32_t sctp_debug_on;
104 1.1 rjs #endif
105 1.1 rjs
106 1.1 rjs static int sctp6_detach(struct socket *so);
107 1.1 rjs
108 1.1 rjs extern int sctp_no_csum_on_loopback;
109 1.1 rjs
110 1.1 rjs int
111 1.1 rjs sctp6_input(struct mbuf **mp, int *offp, int proto)
112 1.1 rjs {
113 1.1 rjs struct mbuf *m = *mp;
114 1.1 rjs struct ip6_hdr *ip6;
115 1.1 rjs struct sctphdr *sh;
116 1.1 rjs struct sctp_inpcb *in6p = NULL;
117 1.1 rjs struct sctp_nets *net;
118 1.1 rjs int refcount_up = 0;
119 1.1 rjs u_int32_t check, calc_check;
120 1.1 rjs struct inpcb *in6p_ip;
121 1.1 rjs struct sctp_chunkhdr *ch;
122 1.1 rjs struct mbuf *opts = NULL;
123 1.1 rjs int length, mlen, offset, iphlen;
124 1.1 rjs u_int8_t ecn_bits;
125 1.1 rjs struct sctp_tcb *stcb = NULL;
126 1.1 rjs int off = *offp;
127 1.1 rjs int s;
128 1.1 rjs
129 1.1 rjs ip6 = mtod(m, struct ip6_hdr *);
130 1.1 rjs /* Ensure that (sctphdr + sctp_chunkhdr) in a row. */
131 1.1 rjs IP6_EXTHDR_GET(sh, struct sctphdr *, m, off, sizeof(*sh) + sizeof(*ch));
132 1.1 rjs if (sh == NULL) {
133 1.1 rjs sctp_pegs[SCTP_HDR_DROPS]++;
134 1.1 rjs return IPPROTO_DONE;
135 1.1 rjs }
136 1.1 rjs ch = (struct sctp_chunkhdr *)((vaddr_t)sh + sizeof(struct sctphdr));
137 1.1 rjs
138 1.1 rjs iphlen = off;
139 1.1 rjs offset = iphlen + sizeof(*sh) + sizeof(*ch);
140 1.1 rjs
141 1.1 rjs #if defined(NFAITH) && NFAITH > 0
142 1.1 rjs if (faithprefix(&ip6->ip6_dst))
143 1.1 rjs goto bad;
144 1.1 rjs #endif /* NFAITH defined and > 0 */
145 1.1 rjs sctp_pegs[SCTP_INPKTS]++;
146 1.1 rjs #ifdef SCTP_DEBUG
147 1.1 rjs if (sctp_debug_on & SCTP_DEBUG_INPUT1) {
148 1.1 rjs printf("V6 input gets a packet iphlen:%d pktlen:%d\n", iphlen, m->m_pkthdr.len);
149 1.1 rjs }
150 1.1 rjs #endif
151 1.1 rjs if (IN6_IS_ADDR_MULTICAST(&ip6->ip6_dst)) {
152 1.1 rjs /* No multi-cast support in SCTP */
153 1.1 rjs sctp_pegs[SCTP_IN_MCAST]++;
154 1.1 rjs goto bad;
155 1.1 rjs }
156 1.1 rjs /* destination port of 0 is illegal, based on RFC2960. */
157 1.1 rjs if (sh->dest_port == 0)
158 1.1 rjs goto bad;
159 1.1 rjs if ((sctp_no_csum_on_loopback == 0) ||
160 1.5 ozaki (m_get_rcvif_NOMPSAFE(m) == NULL) ||
161 1.5 ozaki (m_get_rcvif_NOMPSAFE(m)->if_type != IFT_LOOP)) {
162 1.1 rjs /* we do NOT validate things from the loopback if the
163 1.1 rjs * sysctl is set to 1.
164 1.1 rjs */
165 1.1 rjs check = sh->checksum; /* save incoming checksum */
166 1.1 rjs if ((check == 0) && (sctp_no_csum_on_loopback)) {
167 1.1 rjs /* special hook for where we got a local address
168 1.1 rjs * somehow routed across a non IFT_LOOP type interface
169 1.1 rjs */
170 1.1 rjs if (IN6_ARE_ADDR_EQUAL(&ip6->ip6_src, &ip6->ip6_dst))
171 1.1 rjs goto sctp_skip_csum;
172 1.1 rjs }
173 1.1 rjs sh->checksum = 0; /* prepare for calc */
174 1.1 rjs calc_check = sctp_calculate_sum(m, &mlen, iphlen);
175 1.1 rjs if (calc_check != check) {
176 1.1 rjs #ifdef SCTP_DEBUG
177 1.1 rjs if (sctp_debug_on & SCTP_DEBUG_INPUT1) {
178 1.1 rjs printf("Bad CSUM on SCTP packet calc_check:%x check:%x m:%p mlen:%d iphlen:%d\n",
179 1.1 rjs calc_check, check, m,
180 1.1 rjs mlen, iphlen);
181 1.1 rjs }
182 1.1 rjs #endif
183 1.1 rjs stcb = sctp_findassociation_addr(m, iphlen, offset - sizeof(*ch),
184 1.1 rjs sh, ch, &in6p, &net);
185 1.1 rjs /* in6p's ref-count increased && stcb locked */
186 1.1 rjs if ((in6p) && (stcb)) {
187 1.1 rjs sctp_send_packet_dropped(stcb, net, m, iphlen, 1);
188 1.1 rjs sctp_chunk_output((struct sctp_inpcb *)in6p, stcb, 2);
189 1.1 rjs } else if ((in6p != NULL) && (stcb == NULL)) {
190 1.1 rjs refcount_up = 1;
191 1.1 rjs }
192 1.1 rjs sctp_pegs[SCTP_BAD_CSUM]++;
193 1.1 rjs goto bad;
194 1.1 rjs }
195 1.1 rjs sh->checksum = calc_check;
196 1.1 rjs } else {
197 1.1 rjs sctp_skip_csum:
198 1.1 rjs mlen = m->m_pkthdr.len;
199 1.1 rjs }
200 1.1 rjs net = NULL;
201 1.1 rjs /*
202 1.1 rjs * Locate pcb and tcb for datagram
203 1.1 rjs * sctp_findassociation_addr() wants IP/SCTP/first chunk header...
204 1.1 rjs */
205 1.1 rjs #ifdef SCTP_DEBUG
206 1.1 rjs if (sctp_debug_on & SCTP_DEBUG_INPUT1) {
207 1.1 rjs printf("V6 Find the association\n");
208 1.1 rjs }
209 1.1 rjs #endif
210 1.1 rjs stcb = sctp_findassociation_addr(m, iphlen, offset - sizeof(*ch),
211 1.1 rjs sh, ch, &in6p, &net);
212 1.1 rjs /* in6p's ref-count increased */
213 1.1 rjs if (in6p == NULL) {
214 1.1 rjs struct sctp_init_chunk *init_chk, chunk_buf;
215 1.1 rjs
216 1.1 rjs sctp_pegs[SCTP_NOPORTS]++;
217 1.1 rjs if (ch->chunk_type == SCTP_INITIATION) {
218 1.1 rjs /* we do a trick here to get the INIT tag,
219 1.1 rjs * dig in and get the tag from the INIT and
220 1.1 rjs * put it in the common header.
221 1.1 rjs */
222 1.1 rjs init_chk = (struct sctp_init_chunk *)sctp_m_getptr(m,
223 1.1 rjs iphlen + sizeof(*sh), sizeof(*init_chk),
224 1.1 rjs (u_int8_t *)&chunk_buf);
225 1.1 rjs sh->v_tag = init_chk->init.initiate_tag;
226 1.1 rjs }
227 1.1 rjs sctp_send_abort(m, iphlen, sh, 0, NULL);
228 1.1 rjs goto bad;
229 1.1 rjs } else if (stcb == NULL) {
230 1.1 rjs refcount_up = 1;
231 1.1 rjs }
232 1.1 rjs in6p_ip = (struct inpcb *)in6p;
233 1.1 rjs #ifdef IPSEC
234 1.1 rjs /*
235 1.1 rjs * Check AH/ESP integrity.
236 1.1 rjs */
237 1.15 maxv if (ipsec_used && ipsec_in_reject(m, (struct in6pcb *)in6p_ip)) {
238 1.1 rjs /* XXX */
239 1.4 rjs #if 0
240 1.4 rjs /* FIX ME: need to find right stat */
241 1.1 rjs ipsec6stat.in_polvio++;
242 1.1 rjs #endif
243 1.1 rjs goto bad;
244 1.1 rjs }
245 1.1 rjs #endif /*IPSEC*/
246 1.1 rjs
247 1.1 rjs /*
248 1.1 rjs * Construct sockaddr format source address.
249 1.1 rjs * Stuff source address and datagram in user buffer.
250 1.1 rjs */
251 1.1 rjs if ((in6p->ip_inp.inp.inp_flags & INP_CONTROLOPTS)
252 1.1 rjs #ifndef __OpenBSD__
253 1.1 rjs || (in6p->sctp_socket->so_options & SO_TIMESTAMP)
254 1.1 rjs #endif
255 1.1 rjs ) {
256 1.1 rjs #if defined(__FreeBSD__) || defined(__APPLE__)
257 1.1 rjs #if (defined(SCTP_BASE_FREEBSD) && __FreeBSD_version < 501113) || defined(__APPLE__)
258 1.1 rjs ip6_savecontrol(in6p_ip, &opts, ip6, m);
259 1.1 rjs #elif __FreeBSD_version >= 440000 || (defined(SCTP_BASE_FREEBSD) && __FreeBSD_version >= 501113)
260 1.1 rjs ip6_savecontrol(in6p_ip, m, &opts);
261 1.1 rjs #else
262 1.1 rjs ip6_savecontrol(in6p_ip, m, &opts, NULL);
263 1.1 rjs #endif
264 1.1 rjs #elif defined(__NetBSD__)
265 1.1 rjs ip6_savecontrol((struct in6pcb *)in6p_ip, &opts, ip6, m);
266 1.1 rjs #else
267 1.1 rjs ip6_savecontrol((struct in6pcb *)in6p_ip, m, &opts);
268 1.1 rjs #endif
269 1.1 rjs }
270 1.1 rjs
271 1.1 rjs /*
272 1.1 rjs * CONTROL chunk processing
273 1.1 rjs */
274 1.1 rjs length = ntohs(ip6->ip6_plen) + iphlen;
275 1.1 rjs offset -= sizeof(*ch);
276 1.1 rjs ecn_bits = ((ntohl(ip6->ip6_flow) >> 20) & 0x000000ff);
277 1.1 rjs s = splsoftnet();
278 1.1 rjs (void)sctp_common_input_processing(&m, iphlen, offset, length, sh, ch,
279 1.1 rjs in6p, stcb, net, ecn_bits);
280 1.1 rjs /* inp's ref-count reduced && stcb unlocked */
281 1.1 rjs splx(s);
282 1.1 rjs /* XXX this stuff below gets moved to appropriate parts later... */
283 1.1 rjs if (m)
284 1.1 rjs m_freem(m);
285 1.1 rjs if (opts)
286 1.1 rjs m_freem(opts);
287 1.1 rjs
288 1.1 rjs if ((in6p) && refcount_up){
289 1.1 rjs /* reduce ref-count */
290 1.1 rjs SCTP_INP_WLOCK(in6p);
291 1.1 rjs SCTP_INP_DECR_REF(in6p);
292 1.1 rjs SCTP_INP_WUNLOCK(in6p);
293 1.1 rjs }
294 1.1 rjs
295 1.1 rjs return IPPROTO_DONE;
296 1.1 rjs
297 1.1 rjs bad:
298 1.1 rjs if (stcb) {
299 1.1 rjs SCTP_TCB_UNLOCK(stcb);
300 1.1 rjs }
301 1.1 rjs
302 1.1 rjs if ((in6p) && refcount_up){
303 1.1 rjs /* reduce ref-count */
304 1.1 rjs SCTP_INP_WLOCK(in6p);
305 1.1 rjs SCTP_INP_DECR_REF(in6p);
306 1.1 rjs SCTP_INP_WUNLOCK(in6p);
307 1.1 rjs }
308 1.1 rjs if (m) {
309 1.1 rjs m_freem(m);
310 1.1 rjs }
311 1.1 rjs if (opts) {
312 1.1 rjs m_freem(opts);
313 1.1 rjs }
314 1.1 rjs return IPPROTO_DONE;
315 1.1 rjs }
316 1.1 rjs
317 1.1 rjs
318 1.1 rjs static void
319 1.1 rjs sctp6_notify_mbuf(struct sctp_inpcb *inp,
320 1.1 rjs struct icmp6_hdr *icmp6,
321 1.1 rjs struct sctphdr *sh,
322 1.1 rjs struct sctp_tcb *stcb,
323 1.1 rjs struct sctp_nets *net)
324 1.1 rjs {
325 1.1 rjs unsigned int nxtsz;
326 1.1 rjs
327 1.1 rjs if ((inp == NULL) || (stcb == NULL) || (net == NULL) ||
328 1.1 rjs (icmp6 == NULL) || (sh == NULL)) {
329 1.1 rjs goto out;
330 1.1 rjs }
331 1.1 rjs
332 1.1 rjs /* First do we even look at it? */
333 1.1 rjs if (ntohl(sh->v_tag) != (stcb->asoc.peer_vtag))
334 1.1 rjs goto out;
335 1.1 rjs
336 1.1 rjs if (icmp6->icmp6_type != ICMP6_PACKET_TOO_BIG) {
337 1.1 rjs /* not PACKET TO BIG */
338 1.1 rjs goto out;
339 1.1 rjs }
340 1.1 rjs /*
341 1.1 rjs * ok we need to look closely. We could even get smarter and
342 1.1 rjs * look at anyone that we sent to in case we get a different
343 1.1 rjs * ICMP that tells us there is no way to reach a host, but for
344 1.1 rjs * this impl, all we care about is MTU discovery.
345 1.1 rjs */
346 1.1 rjs nxtsz = ntohl(icmp6->icmp6_mtu);
347 1.1 rjs /* Stop any PMTU timer */
348 1.1 rjs sctp_timer_stop(SCTP_TIMER_TYPE_PATHMTURAISE, inp, stcb, NULL);
349 1.1 rjs
350 1.1 rjs /* Adjust destination size limit */
351 1.1 rjs if (net->mtu > nxtsz) {
352 1.1 rjs net->mtu = nxtsz;
353 1.1 rjs }
354 1.1 rjs /* now what about the ep? */
355 1.1 rjs if (stcb->asoc.smallest_mtu > nxtsz) {
356 1.1 rjs struct sctp_tmit_chunk *chk;
357 1.1 rjs struct sctp_stream_out *strm;
358 1.1 rjs /* Adjust that too */
359 1.1 rjs stcb->asoc.smallest_mtu = nxtsz;
360 1.1 rjs /* now off to subtract IP_DF flag if needed */
361 1.1 rjs
362 1.1 rjs TAILQ_FOREACH(chk, &stcb->asoc.send_queue, sctp_next) {
363 1.1 rjs if ((chk->send_size+IP_HDR_SIZE) > nxtsz) {
364 1.1 rjs chk->flags |= CHUNK_FLAGS_FRAGMENT_OK;
365 1.1 rjs }
366 1.1 rjs }
367 1.1 rjs TAILQ_FOREACH(chk, &stcb->asoc.sent_queue, sctp_next) {
368 1.1 rjs if ((chk->send_size+IP_HDR_SIZE) > nxtsz) {
369 1.1 rjs /*
370 1.1 rjs * For this guy we also mark for immediate
371 1.1 rjs * resend since we sent to big of chunk
372 1.1 rjs */
373 1.1 rjs chk->flags |= CHUNK_FLAGS_FRAGMENT_OK;
374 1.1 rjs if (chk->sent != SCTP_DATAGRAM_RESEND)
375 1.1 rjs stcb->asoc.sent_queue_retran_cnt++;
376 1.1 rjs chk->sent = SCTP_DATAGRAM_RESEND;
377 1.1 rjs chk->rec.data.doing_fast_retransmit = 0;
378 1.1 rjs
379 1.1 rjs chk->sent = SCTP_DATAGRAM_RESEND;
380 1.1 rjs /* Clear any time so NO RTT is being done */
381 1.1 rjs chk->sent_rcv_time.tv_sec = 0;
382 1.1 rjs chk->sent_rcv_time.tv_usec = 0;
383 1.1 rjs stcb->asoc.total_flight -= chk->send_size;
384 1.1 rjs net->flight_size -= chk->send_size;
385 1.1 rjs }
386 1.1 rjs }
387 1.1 rjs TAILQ_FOREACH(strm, &stcb->asoc.out_wheel, next_spoke) {
388 1.1 rjs TAILQ_FOREACH(chk, &strm->outqueue, sctp_next) {
389 1.1 rjs if ((chk->send_size+IP_HDR_SIZE) > nxtsz) {
390 1.1 rjs chk->flags |= CHUNK_FLAGS_FRAGMENT_OK;
391 1.1 rjs }
392 1.1 rjs }
393 1.1 rjs }
394 1.1 rjs }
395 1.1 rjs sctp_timer_start(SCTP_TIMER_TYPE_PATHMTURAISE, inp, stcb, NULL);
396 1.1 rjs out:
397 1.1 rjs if (inp) {
398 1.1 rjs /* reduce inp's ref-count */
399 1.1 rjs SCTP_INP_WLOCK(inp);
400 1.1 rjs SCTP_INP_DECR_REF(inp);
401 1.1 rjs SCTP_INP_WUNLOCK(inp);
402 1.1 rjs }
403 1.1 rjs if (stcb) {
404 1.1 rjs SCTP_TCB_UNLOCK(stcb);
405 1.1 rjs }
406 1.1 rjs }
407 1.1 rjs
408 1.1 rjs
409 1.1 rjs void *
410 1.1 rjs sctp6_ctlinput(int cmd, const struct sockaddr *pktdst, void *d)
411 1.1 rjs {
412 1.1 rjs struct sctphdr sh;
413 1.1 rjs struct ip6ctlparam *ip6cp = NULL;
414 1.1 rjs int s, cm;
415 1.1 rjs
416 1.1 rjs if (pktdst->sa_family != AF_INET6 ||
417 1.1 rjs pktdst->sa_len != sizeof(struct sockaddr_in6))
418 1.1 rjs return NULL;
419 1.1 rjs
420 1.1 rjs if ((unsigned)cmd >= PRC_NCMDS)
421 1.1 rjs return NULL;
422 1.1 rjs if (PRC_IS_REDIRECT(cmd)) {
423 1.1 rjs d = NULL;
424 1.1 rjs } else if (inet6ctlerrmap[cmd] == 0) {
425 1.1 rjs return NULL;
426 1.1 rjs }
427 1.1 rjs
428 1.1 rjs /* if the parameter is from icmp6, decode it. */
429 1.1 rjs if (d != NULL) {
430 1.1 rjs ip6cp = (struct ip6ctlparam *)d;
431 1.1 rjs } else {
432 1.1 rjs ip6cp = (struct ip6ctlparam *)NULL;
433 1.1 rjs }
434 1.1 rjs
435 1.1 rjs if (ip6cp) {
436 1.1 rjs /*
437 1.1 rjs * XXX: We assume that when IPV6 is non NULL,
438 1.1 rjs * M and OFF are valid.
439 1.1 rjs */
440 1.1 rjs /* check if we can safely examine src and dst ports */
441 1.1 rjs struct sctp_inpcb *inp;
442 1.1 rjs struct sctp_tcb *stcb;
443 1.1 rjs struct sctp_nets *net;
444 1.1 rjs struct sockaddr_in6 final;
445 1.1 rjs
446 1.1 rjs if (ip6cp->ip6c_m == NULL ||
447 1.1 rjs (size_t)ip6cp->ip6c_m->m_pkthdr.len < (ip6cp->ip6c_off + sizeof(sh)))
448 1.1 rjs return NULL;
449 1.1 rjs
450 1.1 rjs memset(&sh, 0, sizeof(sh));
451 1.1 rjs memset(&final, 0, sizeof(final));
452 1.1 rjs inp = NULL;
453 1.1 rjs net = NULL;
454 1.1 rjs m_copydata(ip6cp->ip6c_m, ip6cp->ip6c_off, sizeof(sh),
455 1.1 rjs (void *)&sh);
456 1.1 rjs ip6cp->ip6c_src->sin6_port = sh.src_port;
457 1.1 rjs final.sin6_len = sizeof(final);
458 1.1 rjs final.sin6_family = AF_INET6;
459 1.1 rjs final.sin6_addr = ((const struct sockaddr_in6 *)pktdst)->sin6_addr;
460 1.1 rjs final.sin6_port = sh.dest_port;
461 1.1 rjs s = splsoftnet();
462 1.7 ozaki stcb = sctp_findassociation_addr_sa(sin6tosa(ip6cp->ip6c_src),
463 1.7 ozaki sin6tosa(&final),
464 1.1 rjs &inp, &net, 1);
465 1.1 rjs /* inp's ref-count increased && stcb locked */
466 1.1 rjs if (stcb != NULL && inp && (inp->sctp_socket != NULL)) {
467 1.1 rjs if (cmd == PRC_MSGSIZE) {
468 1.1 rjs sctp6_notify_mbuf(inp,
469 1.1 rjs ip6cp->ip6c_icmp6,
470 1.1 rjs &sh,
471 1.1 rjs stcb,
472 1.1 rjs net);
473 1.1 rjs /* inp's ref-count reduced && stcb unlocked */
474 1.1 rjs } else {
475 1.1 rjs if (cmd == PRC_HOSTDEAD) {
476 1.1 rjs cm = EHOSTUNREACH;
477 1.1 rjs } else {
478 1.1 rjs cm = inet6ctlerrmap[cmd];
479 1.1 rjs }
480 1.7 ozaki sctp_notify(inp, cm, &sh, sin6tosa(&final),
481 1.1 rjs stcb, net);
482 1.1 rjs /* inp's ref-count reduced && stcb unlocked */
483 1.1 rjs }
484 1.1 rjs } else {
485 1.1 rjs if (PRC_IS_REDIRECT(cmd) && inp) {
486 1.1 rjs in6_rtchange((struct in6pcb *)inp,
487 1.1 rjs inet6ctlerrmap[cmd]);
488 1.1 rjs }
489 1.1 rjs if (inp) {
490 1.1 rjs /* reduce inp's ref-count */
491 1.1 rjs SCTP_INP_WLOCK(inp);
492 1.1 rjs SCTP_INP_DECR_REF(inp);
493 1.1 rjs SCTP_INP_WUNLOCK(inp);
494 1.1 rjs }
495 1.1 rjs if (stcb) {
496 1.1 rjs SCTP_TCB_UNLOCK(stcb);
497 1.1 rjs }
498 1.1 rjs }
499 1.1 rjs splx(s);
500 1.1 rjs }
501 1.1 rjs return NULL;
502 1.1 rjs }
503 1.1 rjs
504 1.1 rjs /*
505 1.1 rjs * this routine can probably be collasped into the one in sctp_userreq.c
506 1.1 rjs * since they do the same thing and now we lookup with a sockaddr
507 1.1 rjs */
508 1.1 rjs #ifdef __FreeBSD__
509 1.1 rjs static int
510 1.1 rjs sctp6_getcred(SYSCTL_HANDLER_ARGS)
511 1.1 rjs {
512 1.1 rjs struct sockaddr_in6 addrs[2];
513 1.1 rjs struct sctp_inpcb *inp;
514 1.1 rjs struct sctp_nets *net;
515 1.1 rjs struct sctp_tcb *stcb;
516 1.1 rjs int error, s;
517 1.1 rjs
518 1.1 rjs #if defined(__FreeBSD__) && __FreeBSD_version >= 500000
519 1.1 rjs error = suser(req->td);
520 1.1 rjs #else
521 1.1 rjs error = suser(req->p);
522 1.1 rjs #endif
523 1.1 rjs if (error)
524 1.1 rjs return (error);
525 1.1 rjs
526 1.1 rjs if (req->newlen != sizeof(addrs))
527 1.1 rjs return (EINVAL);
528 1.1 rjs if (req->oldlen != sizeof(struct ucred))
529 1.1 rjs return (EINVAL);
530 1.1 rjs error = SYSCTL_IN(req, addrs, sizeof(addrs));
531 1.1 rjs if (error)
532 1.1 rjs return (error);
533 1.1 rjs s = splsoftnet();
534 1.1 rjs
535 1.1 rjs stcb = sctp_findassociation_addr_sa(sin6tosa(&addrs[0]),
536 1.1 rjs sin6tosa(&addrs[1]),
537 1.1 rjs &inp, &net, 1);
538 1.1 rjs if (stcb == NULL || inp == NULL || inp->sctp_socket == NULL) {
539 1.1 rjs error = ENOENT;
540 1.1 rjs if (inp) {
541 1.1 rjs SCTP_INP_WLOCK(inp);
542 1.1 rjs SCTP_INP_DECR_REF(inp);
543 1.1 rjs SCTP_INP_WUNLOCK(inp);
544 1.1 rjs }
545 1.1 rjs goto out;
546 1.1 rjs }
547 1.1 rjs error = SYSCTL_OUT(req, inp->sctp_socket->so_cred,
548 1.1 rjs sizeof(struct ucred));
549 1.1 rjs
550 1.1 rjs SCTP_TCB_UNLOCK (stcb);
551 1.1 rjs out:
552 1.1 rjs splx(s);
553 1.1 rjs return (error);
554 1.1 rjs }
555 1.1 rjs
556 1.1 rjs SYSCTL_PROC(_net_inet6_sctp6, OID_AUTO, getcred, CTLTYPE_OPAQUE|CTLFLAG_RW,
557 1.1 rjs 0, 0,
558 1.1 rjs sctp6_getcred, "S,ucred", "Get the ucred of a SCTP6 connection");
559 1.1 rjs
560 1.1 rjs #endif
561 1.1 rjs
562 1.1 rjs /* This is the same as the sctp_abort() could be made common */
563 1.1 rjs static int
564 1.1 rjs sctp6_abort(struct socket *so)
565 1.1 rjs {
566 1.1 rjs int s;
567 1.1 rjs struct sctp_inpcb *inp;
568 1.1 rjs
569 1.1 rjs KASSERT(solocked(so));
570 1.1 rjs
571 1.1 rjs s = splsoftnet();
572 1.1 rjs inp = (struct sctp_inpcb *)so->so_pcb;
573 1.1 rjs if (inp == 0)
574 1.1 rjs return EINVAL; /* ??? possible? panic instead? */
575 1.1 rjs soisdisconnected(so);
576 1.1 rjs sctp_inpcb_free(inp, 1);
577 1.1 rjs splx(s);
578 1.1 rjs return 0;
579 1.1 rjs }
580 1.1 rjs
581 1.1 rjs static int
582 1.1 rjs sctp6_attach(struct socket *so, int proto)
583 1.1 rjs {
584 1.1 rjs struct in6pcb *inp6;
585 1.1 rjs int error;
586 1.1 rjs struct sctp_inpcb *inp;
587 1.1 rjs
588 1.1 rjs sosetlock(so);
589 1.1 rjs inp = (struct sctp_inpcb *)so->so_pcb;
590 1.1 rjs if (inp != NULL)
591 1.1 rjs return EINVAL;
592 1.1 rjs
593 1.1 rjs if (so->so_snd.sb_hiwat == 0 || so->so_rcv.sb_hiwat == 0) {
594 1.1 rjs error = soreserve(so, sctp_sendspace, sctp_recvspace);
595 1.1 rjs if (error)
596 1.1 rjs return error;
597 1.1 rjs }
598 1.1 rjs error = sctp_inpcb_alloc(so);
599 1.1 rjs if (error)
600 1.1 rjs return error;
601 1.1 rjs inp = (struct sctp_inpcb *)so->so_pcb;
602 1.1 rjs inp->sctp_flags |= SCTP_PCB_FLAGS_BOUND_V6; /* I'm v6! */
603 1.1 rjs inp6 = (struct in6pcb *)inp;
604 1.1 rjs
605 1.1 rjs inp->inp_vflag |= INP_IPV6;
606 1.1 rjs if (ip6_v6only) {
607 1.1 rjs inp6->in6p_flags |= IN6P_IPV6_V6ONLY;
608 1.1 rjs }
609 1.1 rjs so->so_send = sctp_sosend;
610 1.1 rjs
611 1.14 rjs #ifdef IPSEC
612 1.14 rjs inp6->in6p_af = proto;
613 1.14 rjs #endif
614 1.1 rjs inp6->in6p_hops = -1; /* use kernel default */
615 1.1 rjs inp6->in6p_cksum = -1; /* just to be sure */
616 1.1 rjs #ifdef INET
617 1.1 rjs /*
618 1.1 rjs * XXX: ugly!!
619 1.1 rjs * IPv4 TTL initialization is necessary for an IPv6 socket as well,
620 1.1 rjs * because the socket may be bound to an IPv6 wildcard address,
621 1.1 rjs * which may match an IPv4-mapped IPv6 address.
622 1.1 rjs */
623 1.1 rjs inp->inp_ip_ttl = ip_defttl;
624 1.1 rjs #endif
625 1.1 rjs /*
626 1.1 rjs * Hmm what about the IPSEC stuff that is missing here but
627 1.1 rjs * in sctp_attach()?
628 1.1 rjs */
629 1.1 rjs return 0;
630 1.1 rjs }
631 1.1 rjs
632 1.1 rjs static int
633 1.1 rjs sctp6_bind(struct socket *so, struct sockaddr *nam, struct lwp *l)
634 1.1 rjs {
635 1.1 rjs struct sctp_inpcb *inp;
636 1.1 rjs struct in6pcb *inp6;
637 1.1 rjs int error;
638 1.1 rjs
639 1.1 rjs KASSERT(solocked(so));
640 1.1 rjs
641 1.1 rjs inp = (struct sctp_inpcb *)so->so_pcb;
642 1.1 rjs if (inp == 0)
643 1.1 rjs return EINVAL;
644 1.1 rjs
645 1.1 rjs inp6 = (struct in6pcb *)inp;
646 1.1 rjs inp->inp_vflag &= ~INP_IPV4;
647 1.1 rjs inp->inp_vflag |= INP_IPV6;
648 1.1 rjs
649 1.1 rjs if (nam != NULL && (inp6->in6p_flags & IN6P_IPV6_V6ONLY) == 0) {
650 1.1 rjs if (nam->sa_family == AF_INET) {
651 1.1 rjs /* binding v4 addr to v6 socket, so reset flags */
652 1.1 rjs inp->inp_vflag |= INP_IPV4;
653 1.1 rjs inp->inp_vflag &= ~INP_IPV6;
654 1.1 rjs } else {
655 1.1 rjs struct sockaddr_in6 *sin6_p;
656 1.1 rjs sin6_p = (struct sockaddr_in6 *)nam;
657 1.1 rjs
658 1.1 rjs if (IN6_IS_ADDR_UNSPECIFIED(&sin6_p->sin6_addr)) {
659 1.1 rjs inp->inp_vflag |= INP_IPV4;
660 1.1 rjs }
661 1.1 rjs else if (IN6_IS_ADDR_V4MAPPED(&sin6_p->sin6_addr)) {
662 1.1 rjs struct sockaddr_in sin;
663 1.1 rjs in6_sin6_2_sin(&sin, sin6_p);
664 1.1 rjs inp->inp_vflag |= INP_IPV4;
665 1.1 rjs inp->inp_vflag &= ~INP_IPV6;
666 1.1 rjs error = sctp_inpcb_bind(so, (struct sockaddr *)&sin, l);
667 1.1 rjs return error;
668 1.1 rjs }
669 1.1 rjs }
670 1.1 rjs } else if (nam != NULL) {
671 1.1 rjs /* IPV6_V6ONLY socket */
672 1.1 rjs if (nam->sa_family == AF_INET) {
673 1.1 rjs /* can't bind v4 addr to v6 only socket! */
674 1.1 rjs return EINVAL;
675 1.1 rjs } else {
676 1.1 rjs struct sockaddr_in6 *sin6_p;
677 1.1 rjs sin6_p = (struct sockaddr_in6 *)nam;
678 1.1 rjs
679 1.1 rjs if (IN6_IS_ADDR_V4MAPPED(&sin6_p->sin6_addr))
680 1.1 rjs /* can't bind v4-mapped addrs either! */
681 1.1 rjs /* NOTE: we don't support SIIT */
682 1.1 rjs return EINVAL;
683 1.1 rjs }
684 1.1 rjs }
685 1.1 rjs error = sctp_inpcb_bind(so, nam, l);
686 1.1 rjs return error;
687 1.1 rjs }
688 1.1 rjs
689 1.1 rjs /*This could be made common with sctp_detach() since they are identical */
690 1.1 rjs static int
691 1.1 rjs sctp6_detach(struct socket *so)
692 1.1 rjs {
693 1.1 rjs struct sctp_inpcb *inp;
694 1.1 rjs
695 1.1 rjs inp = (struct sctp_inpcb *)so->so_pcb;
696 1.1 rjs if (inp == 0)
697 1.1 rjs return EINVAL;
698 1.1 rjs
699 1.1 rjs if (((so->so_options & SO_LINGER) && (so->so_linger == 0)) ||
700 1.1 rjs (so->so_rcv.sb_cc > 0))
701 1.1 rjs sctp_inpcb_free(inp, 1);
702 1.1 rjs else
703 1.1 rjs sctp_inpcb_free(inp, 0);
704 1.1 rjs return 0;
705 1.1 rjs }
706 1.1 rjs
707 1.1 rjs static int
708 1.1 rjs sctp6_disconnect(struct socket *so)
709 1.1 rjs {
710 1.1 rjs struct sctp_inpcb *inp;
711 1.1 rjs
712 1.1 rjs inp = (struct sctp_inpcb *)so->so_pcb;
713 1.1 rjs if (inp == NULL) {
714 1.1 rjs return (ENOTCONN);
715 1.1 rjs }
716 1.1 rjs if (inp->sctp_flags & SCTP_PCB_FLAGS_TCPTYPE) {
717 1.1 rjs if (LIST_EMPTY(&inp->sctp_asoc_list)) {
718 1.1 rjs /* No connection */
719 1.1 rjs return (ENOTCONN);
720 1.1 rjs } else {
721 1.1 rjs int some_on_streamwheel = 0;
722 1.1 rjs struct sctp_association *asoc;
723 1.1 rjs struct sctp_tcb *stcb;
724 1.1 rjs
725 1.1 rjs stcb = LIST_FIRST(&inp->sctp_asoc_list);
726 1.1 rjs if (stcb == NULL) {
727 1.1 rjs return (EINVAL);
728 1.1 rjs }
729 1.1 rjs asoc = &stcb->asoc;
730 1.1 rjs if (!TAILQ_EMPTY(&asoc->out_wheel)) {
731 1.1 rjs /* Check to see if some data queued */
732 1.1 rjs struct sctp_stream_out *outs;
733 1.1 rjs TAILQ_FOREACH(outs, &asoc->out_wheel,
734 1.1 rjs next_spoke) {
735 1.1 rjs if (!TAILQ_EMPTY(&outs->outqueue)) {
736 1.1 rjs some_on_streamwheel = 1;
737 1.1 rjs break;
738 1.1 rjs }
739 1.1 rjs }
740 1.1 rjs }
741 1.1 rjs
742 1.1 rjs if (TAILQ_EMPTY(&asoc->send_queue) &&
743 1.1 rjs TAILQ_EMPTY(&asoc->sent_queue) &&
744 1.1 rjs (some_on_streamwheel == 0)) {
745 1.1 rjs /* nothing queued to send, so I'm done... */
746 1.1 rjs if ((SCTP_GET_STATE(asoc) !=
747 1.1 rjs SCTP_STATE_SHUTDOWN_SENT) &&
748 1.1 rjs (SCTP_GET_STATE(asoc) !=
749 1.1 rjs SCTP_STATE_SHUTDOWN_ACK_SENT)) {
750 1.1 rjs /* only send SHUTDOWN the first time */
751 1.1 rjs #ifdef SCTP_DEBUG
752 1.1 rjs if (sctp_debug_on & SCTP_DEBUG_OUTPUT4) {
753 1.1 rjs printf("%s:%d sends a shutdown\n",
754 1.1 rjs __FILE__,
755 1.1 rjs __LINE__
756 1.1 rjs );
757 1.1 rjs }
758 1.1 rjs #endif
759 1.1 rjs sctp_send_shutdown(stcb, stcb->asoc.primary_destination);
760 1.1 rjs sctp_chunk_output(stcb->sctp_ep, stcb, 1);
761 1.1 rjs asoc->state = SCTP_STATE_SHUTDOWN_SENT;
762 1.1 rjs sctp_timer_start(SCTP_TIMER_TYPE_SHUTDOWN,
763 1.1 rjs stcb->sctp_ep, stcb,
764 1.1 rjs asoc->primary_destination);
765 1.1 rjs sctp_timer_start(SCTP_TIMER_TYPE_SHUTDOWNGUARD,
766 1.1 rjs stcb->sctp_ep, stcb,
767 1.1 rjs asoc->primary_destination);
768 1.1 rjs }
769 1.1 rjs } else {
770 1.1 rjs /*
771 1.1 rjs * we still got (or just got) data to send,
772 1.1 rjs * so set SHUTDOWN_PENDING
773 1.1 rjs */
774 1.1 rjs /*
775 1.1 rjs * XXX sockets draft says that MSG_EOF should
776 1.1 rjs * be sent with no data. currently, we will
777 1.1 rjs * allow user data to be sent first and move
778 1.1 rjs * to SHUTDOWN-PENDING
779 1.1 rjs */
780 1.1 rjs asoc->state |= SCTP_STATE_SHUTDOWN_PENDING;
781 1.1 rjs }
782 1.1 rjs return (0);
783 1.1 rjs }
784 1.1 rjs } else {
785 1.1 rjs /* UDP model does not support this */
786 1.1 rjs return EOPNOTSUPP;
787 1.1 rjs }
788 1.1 rjs }
789 1.1 rjs
790 1.1 rjs static int
791 1.1 rjs sctp6_recvoob(struct socket *so, struct mbuf *m, int flags)
792 1.1 rjs {
793 1.1 rjs KASSERT(solocked(so));
794 1.1 rjs
795 1.1 rjs return EOPNOTSUPP;
796 1.1 rjs }
797 1.1 rjs
798 1.1 rjs static int
799 1.1 rjs sctp6_send(struct socket *so, struct mbuf *m, struct sockaddr *nam,
800 1.1 rjs struct mbuf *control, struct lwp *l)
801 1.1 rjs {
802 1.1 rjs struct sctp_inpcb *inp;
803 1.1 rjs struct in6pcb *inp6;
804 1.1 rjs #ifdef INET
805 1.1 rjs struct sockaddr_in6 *sin6;
806 1.1 rjs #endif /* INET */
807 1.1 rjs /* No SPL needed since sctp_output does this */
808 1.1 rjs
809 1.1 rjs inp = (struct sctp_inpcb *)so->so_pcb;
810 1.1 rjs if (inp == NULL) {
811 1.1 rjs if (control) {
812 1.1 rjs m_freem(control);
813 1.1 rjs control = NULL;
814 1.1 rjs }
815 1.1 rjs m_freem(m);
816 1.1 rjs return EINVAL;
817 1.1 rjs }
818 1.1 rjs inp6 = (struct in6pcb *)inp;
819 1.1 rjs /* For the TCP model we may get a NULL addr, if we
820 1.1 rjs * are a connected socket thats ok.
821 1.1 rjs */
822 1.1 rjs if ((inp->sctp_flags & SCTP_PCB_FLAGS_CONNECTED) &&
823 1.1 rjs (nam == NULL)) {
824 1.1 rjs goto connected_type;
825 1.1 rjs }
826 1.1 rjs if (nam == NULL) {
827 1.1 rjs m_freem(m);
828 1.1 rjs if (control) {
829 1.1 rjs m_freem(control);
830 1.1 rjs control = NULL;
831 1.1 rjs }
832 1.1 rjs return (EDESTADDRREQ);
833 1.1 rjs }
834 1.1 rjs
835 1.1 rjs #ifdef INET
836 1.1 rjs sin6 = (struct sockaddr_in6 *)nam;
837 1.19 maxv /*
838 1.19 maxv * XXX XXX XXX Check sin6->sin6_len?
839 1.19 maxv */
840 1.1 rjs if (inp6->in6p_flags & IN6P_IPV6_V6ONLY) {
841 1.1 rjs /*
842 1.1 rjs * if IPV6_V6ONLY flag, we discard datagrams
843 1.1 rjs * destined to a v4 addr or v4-mapped addr
844 1.1 rjs */
845 1.1 rjs if (nam->sa_family == AF_INET) {
846 1.1 rjs return EINVAL;
847 1.1 rjs }
848 1.1 rjs if (IN6_IS_ADDR_V4MAPPED(&sin6->sin6_addr)) {
849 1.1 rjs return EINVAL;
850 1.1 rjs }
851 1.1 rjs }
852 1.1 rjs
853 1.1 rjs if (IN6_IS_ADDR_V4MAPPED(&sin6->sin6_addr)) {
854 1.1 rjs if (!ip6_v6only) {
855 1.1 rjs struct sockaddr_in sin;
856 1.1 rjs /* convert v4-mapped into v4 addr and send */
857 1.1 rjs in6_sin6_2_sin(&sin, sin6);
858 1.1 rjs return sctp_send(so, m, (struct sockaddr *)&sin,
859 1.1 rjs control, l);
860 1.1 rjs } else {
861 1.1 rjs /* mapped addresses aren't enabled */
862 1.1 rjs return EINVAL;
863 1.1 rjs }
864 1.1 rjs }
865 1.1 rjs #endif /* INET */
866 1.1 rjs connected_type:
867 1.1 rjs /* now what about control */
868 1.1 rjs if (control) {
869 1.1 rjs if (inp->control) {
870 1.1 rjs printf("huh? control set?\n");
871 1.1 rjs m_freem(inp->control);
872 1.1 rjs inp->control = NULL;
873 1.1 rjs }
874 1.1 rjs inp->control = control;
875 1.1 rjs }
876 1.1 rjs /* add it in possibly */
877 1.1 rjs if ((inp->pkt) &&
878 1.1 rjs (inp->pkt->m_flags & M_PKTHDR)) {
879 1.1 rjs struct mbuf *x;
880 1.1 rjs int c_len;
881 1.1 rjs
882 1.1 rjs c_len = 0;
883 1.1 rjs /* How big is it */
884 1.1 rjs for (x=m;x;x = x->m_next) {
885 1.1 rjs c_len += x->m_len;
886 1.1 rjs }
887 1.1 rjs inp->pkt->m_pkthdr.len += c_len;
888 1.1 rjs }
889 1.1 rjs /* Place the data */
890 1.1 rjs if (inp->pkt) {
891 1.1 rjs inp->pkt_last->m_next = m;
892 1.1 rjs inp->pkt_last = m;
893 1.1 rjs } else {
894 1.1 rjs inp->pkt_last = inp->pkt = m;
895 1.1 rjs }
896 1.1 rjs if ((so->so_state & SS_MORETOCOME) == 0) {
897 1.1 rjs /*
898 1.1 rjs * note with the current version this code will only be
899 1.1 rjs * used by OpenBSD, NetBSD and FreeBSD have methods for
900 1.1 rjs * re-defining sosend() to use sctp_sosend(). One can
901 1.1 rjs * optionaly switch back to this code (by changing back
902 1.1 rjs * the defininitions but this is not advisable.
903 1.1 rjs */
904 1.1 rjs int ret;
905 1.1 rjs ret = sctp_output(inp, inp->pkt , nam, inp->control, l, 0);
906 1.1 rjs inp->pkt = NULL;
907 1.1 rjs inp->control = NULL;
908 1.1 rjs return (ret);
909 1.1 rjs } else {
910 1.1 rjs return (0);
911 1.1 rjs }
912 1.1 rjs }
913 1.1 rjs
914 1.1 rjs static int
915 1.1 rjs sctp6_sendoob(struct socket *so, struct mbuf *m, struct mbuf *control)
916 1.1 rjs {
917 1.1 rjs KASSERT(solocked(so));
918 1.1 rjs
919 1.17 martin m_freem(m);
920 1.17 martin m_freem(control);
921 1.1 rjs
922 1.1 rjs return EOPNOTSUPP;
923 1.1 rjs }
924 1.1 rjs
925 1.1 rjs static int
926 1.1 rjs sctp6_connect(struct socket *so, struct sockaddr *nam, struct lwp *l)
927 1.1 rjs {
928 1.1 rjs int error = 0;
929 1.1 rjs struct sctp_inpcb *inp;
930 1.1 rjs struct in6pcb *inp6;
931 1.1 rjs struct sctp_tcb *stcb;
932 1.1 rjs #ifdef INET
933 1.1 rjs struct sockaddr_in6 *sin6;
934 1.1 rjs struct sockaddr_storage ss;
935 1.1 rjs #endif /* INET */
936 1.1 rjs
937 1.1 rjs inp6 = (struct in6pcb *)so->so_pcb;
938 1.1 rjs inp = (struct sctp_inpcb *)so->so_pcb;
939 1.1 rjs if (inp == 0) {
940 1.1 rjs return (ECONNRESET); /* I made the same as TCP since
941 1.1 rjs * we are not setup? */
942 1.1 rjs }
943 1.1 rjs SCTP_ASOC_CREATE_LOCK(inp);
944 1.1 rjs SCTP_INP_RLOCK(inp);
945 1.1 rjs if ((inp->sctp_flags & SCTP_PCB_FLAGS_UNBOUND) ==
946 1.1 rjs SCTP_PCB_FLAGS_UNBOUND) {
947 1.1 rjs /* Bind a ephemeral port */
948 1.1 rjs SCTP_INP_RUNLOCK(inp);
949 1.1 rjs error = sctp6_bind(so, NULL, l);
950 1.1 rjs if (error) {
951 1.1 rjs SCTP_ASOC_CREATE_UNLOCK(inp);
952 1.1 rjs
953 1.1 rjs return (error);
954 1.1 rjs }
955 1.1 rjs SCTP_INP_RLOCK(inp);
956 1.1 rjs }
957 1.1 rjs
958 1.1 rjs if ((inp->sctp_flags & SCTP_PCB_FLAGS_TCPTYPE) &&
959 1.1 rjs (inp->sctp_flags & SCTP_PCB_FLAGS_CONNECTED)) {
960 1.1 rjs /* We are already connected AND the TCP model */
961 1.1 rjs SCTP_INP_RUNLOCK(inp);
962 1.1 rjs SCTP_ASOC_CREATE_UNLOCK(inp);
963 1.1 rjs return (EADDRINUSE);
964 1.1 rjs }
965 1.1 rjs
966 1.1 rjs #ifdef INET
967 1.1 rjs sin6 = (struct sockaddr_in6 *)nam;
968 1.18 maxv
969 1.18 maxv /*
970 1.18 maxv * XXX XXX XXX Check sin6->sin6_len?
971 1.18 maxv */
972 1.18 maxv
973 1.1 rjs if (inp6->in6p_flags & IN6P_IPV6_V6ONLY) {
974 1.1 rjs /*
975 1.1 rjs * if IPV6_V6ONLY flag, ignore connections
976 1.1 rjs * destined to a v4 addr or v4-mapped addr
977 1.1 rjs */
978 1.1 rjs if (nam->sa_family == AF_INET) {
979 1.1 rjs SCTP_INP_RUNLOCK(inp);
980 1.1 rjs SCTP_ASOC_CREATE_UNLOCK(inp);
981 1.1 rjs return EINVAL;
982 1.1 rjs }
983 1.1 rjs if (IN6_IS_ADDR_V4MAPPED(&sin6->sin6_addr)) {
984 1.1 rjs SCTP_INP_RUNLOCK(inp);
985 1.1 rjs SCTP_ASOC_CREATE_UNLOCK(inp);
986 1.1 rjs return EINVAL;
987 1.1 rjs }
988 1.1 rjs }
989 1.1 rjs
990 1.1 rjs if (IN6_IS_ADDR_V4MAPPED(&sin6->sin6_addr)) {
991 1.1 rjs if (!ip6_v6only) {
992 1.1 rjs /* convert v4-mapped into v4 addr */
993 1.1 rjs in6_sin6_2_sin((struct sockaddr_in *)&ss, sin6);
994 1.1 rjs nam = (struct sockaddr *)&ss;
995 1.1 rjs } else {
996 1.1 rjs /* mapped addresses aren't enabled */
997 1.1 rjs SCTP_INP_RUNLOCK(inp);
998 1.1 rjs SCTP_ASOC_CREATE_UNLOCK(inp);
999 1.1 rjs return EINVAL;
1000 1.1 rjs }
1001 1.1 rjs }
1002 1.1 rjs #endif /* INET */
1003 1.1 rjs
1004 1.1 rjs /* Now do we connect? */
1005 1.1 rjs if (inp->sctp_flags & SCTP_PCB_FLAGS_CONNECTED) {
1006 1.1 rjs stcb = LIST_FIRST(&inp->sctp_asoc_list);
1007 1.1 rjs if (stcb) {
1008 1.1 rjs SCTP_TCB_UNLOCK (stcb);
1009 1.1 rjs }
1010 1.1 rjs SCTP_INP_RUNLOCK(inp);
1011 1.1 rjs } else {
1012 1.1 rjs SCTP_INP_RUNLOCK(inp);
1013 1.1 rjs SCTP_INP_WLOCK(inp);
1014 1.1 rjs SCTP_INP_INCR_REF(inp);
1015 1.1 rjs SCTP_INP_WUNLOCK(inp);
1016 1.1 rjs stcb = sctp_findassociation_ep_addr(&inp, nam, NULL, NULL, NULL);
1017 1.1 rjs if (stcb == NULL) {
1018 1.1 rjs SCTP_INP_WLOCK(inp);
1019 1.1 rjs SCTP_INP_DECR_REF(inp);
1020 1.1 rjs SCTP_INP_WUNLOCK(inp);
1021 1.1 rjs }
1022 1.1 rjs }
1023 1.1 rjs
1024 1.1 rjs if (stcb != NULL) {
1025 1.1 rjs /* Already have or am bring up an association */
1026 1.1 rjs SCTP_ASOC_CREATE_UNLOCK(inp);
1027 1.1 rjs SCTP_TCB_UNLOCK (stcb);
1028 1.1 rjs return (EALREADY);
1029 1.1 rjs }
1030 1.1 rjs /* We are GOOD to go */
1031 1.1 rjs stcb = sctp_aloc_assoc(inp, nam, 1, &error, 0);
1032 1.1 rjs SCTP_ASOC_CREATE_UNLOCK(inp);
1033 1.1 rjs if (stcb == NULL) {
1034 1.1 rjs /* Gak! no memory */
1035 1.1 rjs return (error);
1036 1.1 rjs }
1037 1.1 rjs if (stcb->sctp_ep->sctp_flags & SCTP_PCB_FLAGS_TCPTYPE) {
1038 1.1 rjs stcb->sctp_ep->sctp_flags |= SCTP_PCB_FLAGS_CONNECTED;
1039 1.1 rjs /* Set the connected flag so we can queue data */
1040 1.1 rjs soisconnecting(so);
1041 1.1 rjs }
1042 1.1 rjs stcb->asoc.state = SCTP_STATE_COOKIE_WAIT;
1043 1.1 rjs SCTP_GETTIME_TIMEVAL(&stcb->asoc.time_entered);
1044 1.1 rjs sctp_send_initiate(inp, stcb);
1045 1.1 rjs SCTP_TCB_UNLOCK (stcb);
1046 1.1 rjs return error;
1047 1.1 rjs }
1048 1.1 rjs
1049 1.1 rjs static int
1050 1.1 rjs sctp6_connect2(struct socket *so, struct socket *so2)
1051 1.1 rjs {
1052 1.1 rjs KASSERT(solocked(so));
1053 1.1 rjs
1054 1.1 rjs return EOPNOTSUPP;
1055 1.1 rjs }
1056 1.1 rjs
1057 1.1 rjs static int
1058 1.1 rjs sctp6_getaddr(struct socket *so, struct sockaddr *nam)
1059 1.1 rjs {
1060 1.1 rjs struct sockaddr_in6 *sin6 = (struct sockaddr_in6 *)nam;
1061 1.1 rjs struct sctp_inpcb *inp;
1062 1.1 rjs int error;
1063 1.1 rjs
1064 1.1 rjs /*
1065 1.1 rjs * Do the malloc first in case it blocks.
1066 1.1 rjs */
1067 1.1 rjs memset(sin6, 0, sizeof(*sin6));
1068 1.1 rjs sin6->sin6_family = AF_INET6;
1069 1.1 rjs sin6->sin6_len = sizeof(*sin6);
1070 1.1 rjs
1071 1.1 rjs inp = (struct sctp_inpcb *)so->so_pcb;
1072 1.1 rjs if (inp == NULL) {
1073 1.1 rjs return ECONNRESET;
1074 1.1 rjs }
1075 1.1 rjs
1076 1.1 rjs sin6->sin6_port = inp->sctp_lport;
1077 1.1 rjs if (inp->sctp_flags & SCTP_PCB_FLAGS_BOUNDALL) {
1078 1.1 rjs /* For the bound all case you get back 0 */
1079 1.1 rjs if (inp->sctp_flags & SCTP_PCB_FLAGS_CONNECTED) {
1080 1.1 rjs struct sctp_tcb *stcb;
1081 1.1 rjs const struct sockaddr_in6 *sin_a6;
1082 1.1 rjs struct sctp_nets *net;
1083 1.1 rjs int fnd;
1084 1.1 rjs
1085 1.1 rjs stcb = LIST_FIRST(&inp->sctp_asoc_list);
1086 1.1 rjs if (stcb == NULL) {
1087 1.1 rjs goto notConn6;
1088 1.1 rjs }
1089 1.1 rjs fnd = 0;
1090 1.1 rjs sin_a6 = NULL;
1091 1.1 rjs TAILQ_FOREACH(net, &stcb->asoc.nets, sctp_next) {
1092 1.1 rjs sin_a6 = (const struct sockaddr_in6 *)rtcache_getdst(&net->ro);
1093 1.1 rjs if (sin_a6->sin6_family == AF_INET6) {
1094 1.1 rjs fnd = 1;
1095 1.1 rjs break;
1096 1.1 rjs }
1097 1.1 rjs }
1098 1.1 rjs if ((!fnd) || (sin_a6 == NULL)) {
1099 1.1 rjs /* punt */
1100 1.1 rjs goto notConn6;
1101 1.1 rjs }
1102 1.1 rjs sin6->sin6_addr = sctp_ipv6_source_address_selection(
1103 1.1 rjs inp, stcb, &net->ro, net, 0);
1104 1.1 rjs
1105 1.1 rjs } else {
1106 1.1 rjs /* For the bound all case you get back 0 */
1107 1.1 rjs notConn6:
1108 1.1 rjs memset(&sin6->sin6_addr, 0, sizeof(sin6->sin6_addr));
1109 1.1 rjs }
1110 1.1 rjs } else {
1111 1.1 rjs /* Take the first IPv6 address in the list */
1112 1.1 rjs struct sctp_laddr *laddr;
1113 1.1 rjs int fnd = 0;
1114 1.1 rjs LIST_FOREACH(laddr, &inp->sctp_addr_list, sctp_nxt_addr) {
1115 1.1 rjs if (laddr->ifa->ifa_addr->sa_family == AF_INET6) {
1116 1.1 rjs struct sockaddr_in6 *sin_a;
1117 1.1 rjs sin_a = (struct sockaddr_in6 *)laddr->ifa->ifa_addr;
1118 1.1 rjs sin6->sin6_addr = sin_a->sin6_addr;
1119 1.1 rjs fnd = 1;
1120 1.1 rjs break;
1121 1.1 rjs }
1122 1.1 rjs }
1123 1.1 rjs if (!fnd) {
1124 1.1 rjs return ENOENT;
1125 1.1 rjs }
1126 1.1 rjs }
1127 1.1 rjs /* Scoping things for v6 */
1128 1.1 rjs if ((error = sa6_recoverscope(sin6)) != 0)
1129 1.1 rjs return (error);
1130 1.1 rjs
1131 1.1 rjs return (0);
1132 1.1 rjs }
1133 1.1 rjs
1134 1.1 rjs static int
1135 1.1 rjs sctp6_peeraddr(struct socket *so, struct sockaddr *nam)
1136 1.1 rjs {
1137 1.1 rjs struct sockaddr_in6 *sin6 = (struct sockaddr_in6 *)nam;
1138 1.1 rjs int fnd, error;
1139 1.1 rjs const struct sockaddr_in6 *sin_a6;
1140 1.1 rjs struct sctp_inpcb *inp;
1141 1.1 rjs struct sctp_tcb *stcb;
1142 1.1 rjs struct sctp_nets *net;
1143 1.1 rjs /*
1144 1.1 rjs * Do the malloc first in case it blocks.
1145 1.1 rjs */
1146 1.1 rjs inp = (struct sctp_inpcb *)so->so_pcb;
1147 1.1 rjs if ((inp->sctp_flags & SCTP_PCB_FLAGS_CONNECTED) == 0) {
1148 1.1 rjs /* UDP type and listeners will drop out here */
1149 1.1 rjs return (ENOTCONN);
1150 1.1 rjs }
1151 1.1 rjs memset(sin6, 0, sizeof(*sin6));
1152 1.1 rjs sin6->sin6_family = AF_INET6;
1153 1.1 rjs sin6->sin6_len = sizeof(*sin6);
1154 1.1 rjs
1155 1.1 rjs /* We must recapture incase we blocked */
1156 1.1 rjs inp = (struct sctp_inpcb *)so->so_pcb;
1157 1.1 rjs if (inp == NULL) {
1158 1.1 rjs return ECONNRESET;
1159 1.1 rjs }
1160 1.1 rjs stcb = LIST_FIRST(&inp->sctp_asoc_list);
1161 1.1 rjs if (stcb == NULL) {
1162 1.1 rjs return ECONNRESET;
1163 1.1 rjs }
1164 1.1 rjs fnd = 0;
1165 1.1 rjs TAILQ_FOREACH(net, &stcb->asoc.nets, sctp_next) {
1166 1.1 rjs sin_a6 = (const struct sockaddr_in6 *)rtcache_getdst(&net->ro);
1167 1.1 rjs if (sin_a6->sin6_family == AF_INET6) {
1168 1.1 rjs fnd = 1;
1169 1.1 rjs sin6->sin6_port = stcb->rport;
1170 1.1 rjs sin6->sin6_addr = sin_a6->sin6_addr;
1171 1.1 rjs break;
1172 1.1 rjs }
1173 1.1 rjs }
1174 1.1 rjs if (!fnd) {
1175 1.1 rjs /* No IPv4 address */
1176 1.1 rjs return ENOENT;
1177 1.1 rjs }
1178 1.1 rjs if ((error = sa6_recoverscope(sin6)) != 0)
1179 1.1 rjs return (error);
1180 1.1 rjs
1181 1.1 rjs return (0);
1182 1.1 rjs }
1183 1.1 rjs
1184 1.1 rjs static int
1185 1.1 rjs sctp6_sockaddr(struct socket *so, struct sockaddr *nam)
1186 1.1 rjs {
1187 1.1 rjs struct in6pcb *inp6 = sotoin6pcb(so);
1188 1.1 rjs int error;
1189 1.1 rjs
1190 1.1 rjs if (inp6 == NULL)
1191 1.1 rjs return EINVAL;
1192 1.1 rjs
1193 1.1 rjs /* allow v6 addresses precedence */
1194 1.1 rjs error = sctp6_getaddr(so, nam);
1195 1.1 rjs if (error) {
1196 1.1 rjs /* try v4 next if v6 failed */
1197 1.1 rjs error = sctp_sockaddr(so, nam);
1198 1.1 rjs if (error) {
1199 1.1 rjs return (error);
1200 1.1 rjs }
1201 1.1 rjs
1202 1.1 rjs /* if I'm V6ONLY, convert it to v4-mapped */
1203 1.1 rjs if (inp6->in6p_flags & IN6P_IPV6_V6ONLY) {
1204 1.1 rjs struct sockaddr_in6 sin6;
1205 1.1 rjs in6_sin_2_v4mapsin6((struct sockaddr_in *)nam, &sin6);
1206 1.1 rjs memcpy(nam, &sin6, sizeof(struct sockaddr_in6));
1207 1.1 rjs }
1208 1.1 rjs }
1209 1.1 rjs return (error);
1210 1.1 rjs }
1211 1.1 rjs
1212 1.1 rjs #if 0
1213 1.1 rjs static int
1214 1.1 rjs sctp6_getpeeraddr(struct socket *so, struct sockaddr *nam)
1215 1.1 rjs {
1216 1.1 rjs struct in6pcb *inp6 = sotoin6pcb(so);
1217 1.1 rjs int error;
1218 1.1 rjs
1219 1.1 rjs if (inp6 == NULL)
1220 1.1 rjs return EINVAL;
1221 1.1 rjs
1222 1.1 rjs /* allow v6 addresses precedence */
1223 1.1 rjs error = sctp6_peeraddr(so, nam);
1224 1.1 rjs if (error) {
1225 1.1 rjs /* try v4 next if v6 failed */
1226 1.1 rjs error = sctp_peeraddr(so, nam);
1227 1.1 rjs if (error) {
1228 1.1 rjs return (error);
1229 1.1 rjs }
1230 1.1 rjs /* if I'm V6ONLY, convert it to v4-mapped */
1231 1.1 rjs if ((inp6->in6p_flags & IN6P_IPV6_V6ONLY)) {
1232 1.1 rjs struct sockaddr_in6 sin6;
1233 1.1 rjs in6_sin_2_v4mapsin6((struct sockaddr_in *)addr, &sin6);
1234 1.1 rjs memcpy(addr, &sin6, sizeof(struct sockaddr_in6));
1235 1.1 rjs }
1236 1.1 rjs }
1237 1.1 rjs return error;
1238 1.1 rjs }
1239 1.1 rjs #endif
1240 1.1 rjs
1241 1.1 rjs static int
1242 1.1 rjs sctp6_ioctl(struct socket *so, u_long cmd, void *nam, struct ifnet *ifp)
1243 1.1 rjs {
1244 1.1 rjs int error = 0;
1245 1.1 rjs int family;
1246 1.1 rjs
1247 1.21 rjs if (cmd == SIOCCONNECTX) {
1248 1.21 rjs solock(so);
1249 1.21 rjs error = sctp_do_connect_x(so, nam, curlwp, 0);
1250 1.21 rjs sounlock(so);
1251 1.21 rjs } else if (cmd == SIOCCONNECTXDEL) {
1252 1.21 rjs solock(so);
1253 1.21 rjs error = sctp_do_connect_x(so, nam, curlwp, 1);
1254 1.21 rjs sounlock(so);
1255 1.21 rjs } else {
1256 1.21 rjs family = so->so_proto->pr_domain->dom_family;
1257 1.21 rjs switch (family) {
1258 1.1 rjs #ifdef INET
1259 1.21 rjs case PF_INET:
1260 1.21 rjs error = in_control(so, cmd, nam, ifp);
1261 1.21 rjs break;
1262 1.1 rjs #endif
1263 1.1 rjs #ifdef INET6
1264 1.21 rjs case PF_INET6:
1265 1.21 rjs error = in6_control(so, cmd, nam, ifp);
1266 1.21 rjs break;
1267 1.1 rjs #endif
1268 1.21 rjs default:
1269 1.21 rjs error = EAFNOSUPPORT;
1270 1.21 rjs }
1271 1.1 rjs }
1272 1.1 rjs return (error);
1273 1.1 rjs }
1274 1.1 rjs
1275 1.1 rjs static int
1276 1.1 rjs sctp6_accept(struct socket *so, struct sockaddr *nam)
1277 1.1 rjs {
1278 1.1 rjs KASSERT(solocked(so));
1279 1.1 rjs
1280 1.1 rjs return EOPNOTSUPP;
1281 1.1 rjs }
1282 1.1 rjs
1283 1.1 rjs static int
1284 1.1 rjs sctp6_stat(struct socket *so, struct stat *ub)
1285 1.1 rjs {
1286 1.1 rjs return 0;
1287 1.1 rjs }
1288 1.1 rjs
1289 1.1 rjs static int
1290 1.1 rjs sctp6_listen(struct socket *so, struct lwp *l)
1291 1.1 rjs {
1292 1.1 rjs return sctp_listen(so, l);
1293 1.1 rjs }
1294 1.1 rjs
1295 1.1 rjs static int
1296 1.1 rjs sctp6_shutdown(struct socket *so)
1297 1.1 rjs {
1298 1.1 rjs return sctp_shutdown(so);
1299 1.1 rjs }
1300 1.1 rjs
1301 1.1 rjs static int
1302 1.1 rjs sctp6_rcvd(struct socket *so, int flags, struct lwp *l)
1303 1.1 rjs {
1304 1.1 rjs KASSERT(solocked(so));
1305 1.1 rjs
1306 1.1 rjs return sctp_rcvd(so, flags, l);
1307 1.1 rjs }
1308 1.1 rjs
1309 1.1 rjs static int
1310 1.1 rjs sctp6_purgeif(struct socket *so, struct ifnet *ifp)
1311 1.1 rjs {
1312 1.1 rjs struct ifaddr *ifa;
1313 1.8 ozaki /* FIXME NOMPSAFE */
1314 1.6 ozaki IFADDR_READER_FOREACH(ifa, ifp) {
1315 1.1 rjs if (ifa->ifa_addr->sa_family == PF_INET6) {
1316 1.1 rjs sctp_delete_ip_address(ifa);
1317 1.1 rjs }
1318 1.1 rjs }
1319 1.1 rjs
1320 1.9 knakahar #ifndef NET_MPSAFE
1321 1.1 rjs mutex_enter(softnet_lock);
1322 1.9 knakahar #endif
1323 1.1 rjs in6_purgeif(ifp);
1324 1.9 knakahar #ifndef NET_MPSAFE
1325 1.1 rjs mutex_exit(softnet_lock);
1326 1.9 knakahar #endif
1327 1.1 rjs
1328 1.1 rjs return 0;
1329 1.1 rjs }
1330 1.1 rjs
1331 1.1 rjs PR_WRAP_USRREQS(sctp6)
1332 1.1 rjs #define sctp6_attach sctp6_attach_wrapper
1333 1.1 rjs #define sctp6_detach sctp6_detach_wrapper
1334 1.1 rjs #define sctp6_accept sctp6_accept_wrapper
1335 1.1 rjs #define sctp6_bind sctp6_bind_wrapper
1336 1.1 rjs #define sctp6_listen sctp6_listen_wrapper
1337 1.1 rjs #define sctp6_connect sctp6_connect_wrapper
1338 1.1 rjs #define sctp6_connect2 sctp6_connect2_wrapper
1339 1.1 rjs #define sctp6_disconnect sctp6_disconnect_wrapper
1340 1.1 rjs #define sctp6_shutdown sctp6_shutdown_wrapper
1341 1.1 rjs #define sctp6_abort sctp6_abort_wrapper
1342 1.1 rjs #define sctp6_ioctl sctp6_ioctl_wrapper
1343 1.1 rjs #define sctp6_stat sctp6_stat_wrapper
1344 1.1 rjs #define sctp6_peeraddr sctp6_peeraddr_wrapper
1345 1.1 rjs #define sctp6_sockaddr sctp6_sockaddr_wrapper
1346 1.1 rjs #define sctp6_rcvd sctp6_rcvd_wrapper
1347 1.1 rjs #define sctp6_recvoob sctp6_recvoob_wrapper
1348 1.1 rjs #define sctp6_send sctp6_send_wrapper
1349 1.1 rjs #define sctp6_sendoob sctp6_sendoob_wrapper
1350 1.1 rjs #define sctp6_purgeif sctp6_purgeif_wrapper
1351 1.1 rjs
1352 1.1 rjs const struct pr_usrreqs sctp6_usrreqs = {
1353 1.1 rjs .pr_attach = sctp6_attach,
1354 1.1 rjs .pr_detach = sctp6_detach,
1355 1.1 rjs .pr_accept = sctp6_accept,
1356 1.1 rjs .pr_bind = sctp6_bind,
1357 1.1 rjs .pr_listen = sctp6_listen,
1358 1.1 rjs .pr_connect = sctp6_connect,
1359 1.1 rjs .pr_connect2 = sctp6_connect2,
1360 1.1 rjs .pr_disconnect = sctp6_disconnect,
1361 1.1 rjs .pr_shutdown = sctp6_shutdown,
1362 1.1 rjs .pr_abort = sctp6_abort,
1363 1.1 rjs .pr_ioctl = sctp6_ioctl,
1364 1.1 rjs .pr_stat = sctp6_stat,
1365 1.1 rjs .pr_peeraddr = sctp6_peeraddr,
1366 1.1 rjs .pr_sockaddr = sctp6_sockaddr,
1367 1.1 rjs .pr_rcvd = sctp6_rcvd,
1368 1.1 rjs .pr_recvoob = sctp6_recvoob,
1369 1.1 rjs .pr_send = sctp6_send,
1370 1.1 rjs .pr_sendoob = sctp6_sendoob,
1371 1.1 rjs .pr_purgeif = sctp6_purgeif,
1372 1.1 rjs };
1373