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1.1 root 1: /*
2: * Copyright (c) 1984, 1985, 1986, 1987 Regents of the University of California.
3: * All rights reserved.
4: *
5: * Redistribution and use in source and binary forms, with or without
6: * modification, are permitted provided that the following conditions
7: * are met:
8: * 1. Redistributions of source code must retain the above copyright
9: * notice, this list of conditions and the following disclaimer.
10: * 2. Redistributions in binary form must reproduce the above copyright
11: * notice, this list of conditions and the following disclaimer in the
12: * documentation and/or other materials provided with the distribution.
13: * 3. All advertising materials mentioning features or use of this software
14: * must display the following acknowledgement:
15: * This product includes software developed by the University of
16: * California, Berkeley and its contributors.
17: * 4. Neither the name of the University nor the names of its contributors
18: * may be used to endorse or promote products derived from this software
19: * without specific prior written permission.
20: *
21: * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
22: * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
23: * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
24: * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
25: * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
26: * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
27: * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
28: * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
29: * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
30: * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
31: * SUCH DAMAGE.
32: *
1.1.1.2 ! root 33: * from: @(#)idp_usrreq.c 7.11 (Berkeley) 6/27/91
! 34: * idp_usrreq.c,v 1.2 1993/05/20 04:35:47 cgd Exp
1.1 root 35: */
36:
37: #include "param.h"
38: #include "malloc.h"
39: #include "mbuf.h"
40: #include "protosw.h"
41: #include "socket.h"
42: #include "socketvar.h"
43: #include "errno.h"
44: #include "stat.h"
45:
46: #include "../net/if.h"
47: #include "../net/route.h"
48:
49: #include "ns.h"
50: #include "ns_pcb.h"
51: #include "ns_if.h"
52: #include "idp.h"
53: #include "idp_var.h"
54: #include "ns_error.h"
55:
56: /*
57: * IDP protocol implementation.
58: */
59:
60: struct sockaddr_ns idp_ns = { sizeof(idp_ns), AF_NS };
61:
62: /*
63: * This may also be called for raw listeners.
64: */
65: idp_input(m, nsp)
66: struct mbuf *m;
67: register struct nspcb *nsp;
68: {
69: register struct idp *idp = mtod(m, struct idp *);
70: struct ifnet *ifp = m->m_pkthdr.rcvif;
71:
72: if (nsp==0)
73: panic("No nspcb");
74: /*
75: * Construct sockaddr format source address.
76: * Stuff source address and datagram in user buffer.
77: */
78: idp_ns.sns_addr = idp->idp_sna;
79: if (ns_neteqnn(idp->idp_sna.x_net, ns_zeronet) && ifp) {
80: register struct ifaddr *ifa;
81:
82: for (ifa = ifp->if_addrlist; ifa; ifa = ifa->ifa_next) {
83: if (ifa->ifa_addr->sa_family == AF_NS) {
84: idp_ns.sns_addr.x_net =
85: IA_SNS(ifa)->sns_addr.x_net;
86: break;
87: }
88: }
89: }
90: nsp->nsp_rpt = idp->idp_pt;
91: if ( ! (nsp->nsp_flags & NSP_RAWIN) ) {
92: m->m_len -= sizeof (struct idp);
93: m->m_pkthdr.len -= sizeof (struct idp);
94: m->m_data += sizeof (struct idp);
95: }
96: if (sbappendaddr(&nsp->nsp_socket->so_rcv, (struct sockaddr *)&idp_ns,
97: m, (struct mbuf *)0) == 0)
98: goto bad;
99: sorwakeup(nsp->nsp_socket);
100: return;
101: bad:
102: m_freem(m);
103: }
104:
105: idp_abort(nsp)
106: struct nspcb *nsp;
107: {
108: struct socket *so = nsp->nsp_socket;
109:
110: ns_pcbdisconnect(nsp);
111: soisdisconnected(so);
112: }
113: /*
114: * Drop connection, reporting
115: * the specified error.
116: */
117: struct nspcb *
118: idp_drop(nsp, errno)
119: register struct nspcb *nsp;
120: int errno;
121: {
122: struct socket *so = nsp->nsp_socket;
123:
124: /*
125: * someday, in the xerox world
126: * we will generate error protocol packets
127: * announcing that the socket has gone away.
128: */
129: /*if (TCPS_HAVERCVDSYN(tp->t_state)) {
130: tp->t_state = TCPS_CLOSED;
131: (void) tcp_output(tp);
132: }*/
133: so->so_error = errno;
134: ns_pcbdisconnect(nsp);
135: soisdisconnected(so);
136: }
137:
138: int noIdpRoute;
139: idp_output(nsp, m0)
140: struct nspcb *nsp;
141: struct mbuf *m0;
142: {
143: register struct mbuf *m;
144: register struct idp *idp;
145: register struct socket *so;
146: register int len = 0;
147: register struct route *ro;
148: struct mbuf *mprev;
149: extern int idpcksum;
150:
151: /*
152: * Calculate data length.
153: */
154: for (m = m0; m; m = m->m_next) {
155: mprev = m;
156: len += m->m_len;
157: }
158: /*
159: * Make sure packet is actually of even length.
160: */
161:
162: if (len & 1) {
163: m = mprev;
164: if ((m->m_flags & M_EXT) == 0 &&
165: (m->m_len + m->m_data < &m->m_dat[MLEN])) {
166: m->m_len++;
167: } else {
168: struct mbuf *m1 = m_get(M_DONTWAIT, MT_DATA);
169:
170: if (m1 == 0) {
171: m_freem(m0);
172: return (ENOBUFS);
173: }
174: m1->m_len = 1;
175: * mtod(m1, char *) = 0;
176: m->m_next = m1;
177: }
178: m0->m_pkthdr.len++;
179: }
180:
181: /*
182: * Fill in mbuf with extended IDP header
183: * and addresses and length put into network format.
184: */
185: m = m0;
186: if (nsp->nsp_flags & NSP_RAWOUT) {
187: idp = mtod(m, struct idp *);
188: } else {
189: M_PREPEND(m, sizeof (struct idp), M_DONTWAIT);
190: if (m == 0)
191: return (ENOBUFS);
192: idp = mtod(m, struct idp *);
193: idp->idp_tc = 0;
194: idp->idp_pt = nsp->nsp_dpt;
195: idp->idp_sna = nsp->nsp_laddr;
196: idp->idp_dna = nsp->nsp_faddr;
197: len += sizeof (struct idp);
198: }
199:
200: idp->idp_len = htons((u_short)len);
201:
202: if (idpcksum) {
203: idp->idp_sum = 0;
204: len = ((len - 1) | 1) + 1;
205: idp->idp_sum = ns_cksum(m, len);
206: } else
207: idp->idp_sum = 0xffff;
208:
209: /*
210: * Output datagram.
211: */
212: so = nsp->nsp_socket;
213: if (so->so_options & SO_DONTROUTE)
214: return (ns_output(m, (struct route *)0,
215: (so->so_options & SO_BROADCAST) | NS_ROUTETOIF));
216: /*
217: * Use cached route for previous datagram if
218: * possible. If the previous net was the same
219: * and the interface was a broadcast medium, or
220: * if the previous destination was identical,
221: * then we are ok.
222: *
223: * NB: We don't handle broadcasts because that
224: * would require 3 subroutine calls.
225: */
226: ro = &nsp->nsp_route;
227: #ifdef ancient_history
228: /*
229: * I think that this will all be handled in ns_pcbconnect!
230: */
231: if (ro->ro_rt) {
232: if(ns_neteq(nsp->nsp_lastdst, idp->idp_dna)) {
233: /*
234: * This assumes we have no GH type routes
235: */
236: if (ro->ro_rt->rt_flags & RTF_HOST) {
237: if (!ns_hosteq(nsp->nsp_lastdst, idp->idp_dna))
238: goto re_route;
239:
240: }
241: if ((ro->ro_rt->rt_flags & RTF_GATEWAY) == 0) {
242: register struct ns_addr *dst =
243: &satons_addr(ro->ro_dst);
244: dst->x_host = idp->idp_dna.x_host;
245: }
246: /*
247: * Otherwise, we go through the same gateway
248: * and dst is already set up.
249: */
250: } else {
251: re_route:
252: RTFREE(ro->ro_rt);
253: ro->ro_rt = (struct rtentry *)0;
254: }
255: }
256: nsp->nsp_lastdst = idp->idp_dna;
257: #endif ancient_history
258: if (noIdpRoute) ro = 0;
259: return (ns_output(m, ro, so->so_options & SO_BROADCAST));
260: }
261: /* ARGSUSED */
262: idp_ctloutput(req, so, level, name, value)
263: int req, level;
264: struct socket *so;
265: int name;
266: struct mbuf **value;
267: {
268: register struct mbuf *m;
269: struct nspcb *nsp = sotonspcb(so);
270: int mask, error = 0;
271: extern long ns_pexseq;
272:
273: if (nsp == NULL)
274: return (EINVAL);
275:
276: switch (req) {
277:
278: case PRCO_GETOPT:
279: if (value==NULL)
280: return (EINVAL);
281: m = m_get(M_DONTWAIT, MT_DATA);
282: if (m==NULL)
283: return (ENOBUFS);
284: switch (name) {
285:
286: case SO_ALL_PACKETS:
287: mask = NSP_ALL_PACKETS;
288: goto get_flags;
289:
290: case SO_HEADERS_ON_INPUT:
291: mask = NSP_RAWIN;
292: goto get_flags;
293:
294: case SO_HEADERS_ON_OUTPUT:
295: mask = NSP_RAWOUT;
296: get_flags:
297: m->m_len = sizeof(short);
298: *mtod(m, short *) = nsp->nsp_flags & mask;
299: break;
300:
301: case SO_DEFAULT_HEADERS:
302: m->m_len = sizeof(struct idp);
303: {
304: register struct idp *idp = mtod(m, struct idp *);
305: idp->idp_len = 0;
306: idp->idp_sum = 0;
307: idp->idp_tc = 0;
308: idp->idp_pt = nsp->nsp_dpt;
309: idp->idp_dna = nsp->nsp_faddr;
310: idp->idp_sna = nsp->nsp_laddr;
311: }
312: break;
313:
314: case SO_SEQNO:
315: m->m_len = sizeof(long);
316: *mtod(m, long *) = ns_pexseq++;
317: break;
318:
319: default:
320: error = EINVAL;
321: }
322: *value = m;
323: break;
324:
325: case PRCO_SETOPT:
326: switch (name) {
327: int *ok;
328:
329: case SO_ALL_PACKETS:
330: mask = NSP_ALL_PACKETS;
331: goto set_head;
332:
333: case SO_HEADERS_ON_INPUT:
334: mask = NSP_RAWIN;
335: goto set_head;
336:
337: case SO_HEADERS_ON_OUTPUT:
338: mask = NSP_RAWOUT;
339: set_head:
340: if (value && *value) {
341: ok = mtod(*value, int *);
342: if (*ok)
343: nsp->nsp_flags |= mask;
344: else
345: nsp->nsp_flags &= ~mask;
346: } else error = EINVAL;
347: break;
348:
349: case SO_DEFAULT_HEADERS:
350: {
351: register struct idp *idp
352: = mtod(*value, struct idp *);
353: nsp->nsp_dpt = idp->idp_pt;
354: }
355: break;
356: #ifdef NSIP
357:
358: case SO_NSIP_ROUTE:
359: error = nsip_route(*value);
360: break;
361: #endif NSIP
362: default:
363: error = EINVAL;
364: }
365: if (value && *value)
366: m_freem(*value);
367: break;
368: }
369: return (error);
370: }
371:
372: /*ARGSUSED*/
373: idp_usrreq(so, req, m, nam, control)
374: struct socket *so;
375: int req;
376: struct mbuf *m, *nam, *control;
377: {
378: struct nspcb *nsp = sotonspcb(so);
379: int error = 0;
380:
381: if (req == PRU_CONTROL)
382: return (ns_control(so, (int)m, (caddr_t)nam,
383: (struct ifnet *)control));
384: if (control && control->m_len) {
385: error = EINVAL;
386: goto release;
387: }
388: if (nsp == NULL && req != PRU_ATTACH) {
389: error = EINVAL;
390: goto release;
391: }
392: switch (req) {
393:
394: case PRU_ATTACH:
395: if (nsp != NULL) {
396: error = EINVAL;
397: break;
398: }
399: error = ns_pcballoc(so, &nspcb);
400: if (error)
401: break;
402: error = soreserve(so, (u_long) 2048, (u_long) 2048);
403: if (error)
404: break;
405: break;
406:
407: case PRU_DETACH:
408: if (nsp == NULL) {
409: error = ENOTCONN;
410: break;
411: }
412: ns_pcbdetach(nsp);
413: break;
414:
415: case PRU_BIND:
416: error = ns_pcbbind(nsp, nam);
417: break;
418:
419: case PRU_LISTEN:
420: error = EOPNOTSUPP;
421: break;
422:
423: case PRU_CONNECT:
424: if (!ns_nullhost(nsp->nsp_faddr)) {
425: error = EISCONN;
426: break;
427: }
428: error = ns_pcbconnect(nsp, nam);
429: if (error == 0)
430: soisconnected(so);
431: break;
432:
433: case PRU_CONNECT2:
434: error = EOPNOTSUPP;
435: break;
436:
437: case PRU_ACCEPT:
438: error = EOPNOTSUPP;
439: break;
440:
441: case PRU_DISCONNECT:
442: if (ns_nullhost(nsp->nsp_faddr)) {
443: error = ENOTCONN;
444: break;
445: }
446: ns_pcbdisconnect(nsp);
447: soisdisconnected(so);
448: break;
449:
450: case PRU_SHUTDOWN:
451: socantsendmore(so);
452: break;
453:
454: case PRU_SEND:
455: {
456: struct ns_addr laddr;
457: int s;
458:
459: if (nam) {
460: laddr = nsp->nsp_laddr;
461: if (!ns_nullhost(nsp->nsp_faddr)) {
462: error = EISCONN;
463: break;
464: }
465: /*
466: * Must block input while temporarily connected.
467: */
468: s = splnet();
469: error = ns_pcbconnect(nsp, nam);
470: if (error) {
471: splx(s);
472: break;
473: }
474: } else {
475: if (ns_nullhost(nsp->nsp_faddr)) {
476: error = ENOTCONN;
477: break;
478: }
479: }
480: error = idp_output(nsp, m);
481: m = NULL;
482: if (nam) {
483: ns_pcbdisconnect(nsp);
484: splx(s);
485: nsp->nsp_laddr.x_host = laddr.x_host;
486: nsp->nsp_laddr.x_port = laddr.x_port;
487: }
488: }
489: break;
490:
491: case PRU_ABORT:
492: ns_pcbdetach(nsp);
493: sofree(so);
494: soisdisconnected(so);
495: break;
496:
497: case PRU_SOCKADDR:
498: ns_setsockaddr(nsp, nam);
499: break;
500:
501: case PRU_PEERADDR:
502: ns_setpeeraddr(nsp, nam);
503: break;
504:
505: case PRU_SENSE:
506: /*
507: * stat: don't bother with a blocksize.
508: */
509: return (0);
510:
511: case PRU_SENDOOB:
512: case PRU_FASTTIMO:
513: case PRU_SLOWTIMO:
514: case PRU_PROTORCV:
515: case PRU_PROTOSEND:
516: error = EOPNOTSUPP;
517: break;
518:
519: case PRU_CONTROL:
520: case PRU_RCVD:
521: case PRU_RCVOOB:
522: return (EOPNOTSUPP); /* do not free mbuf's */
523:
524: default:
525: panic("idp_usrreq");
526: }
527: release:
528: if (control != NULL)
529: m_freem(control);
530: if (m != NULL)
531: m_freem(m);
532: return (error);
533: }
534: /*ARGSUSED*/
535: idp_raw_usrreq(so, req, m, nam, control)
536: struct socket *so;
537: int req;
538: struct mbuf *m, *nam, *control;
539: {
540: int error = 0;
541: struct nspcb *nsp = sotonspcb(so);
542: extern struct nspcb nsrawpcb;
543:
544: switch (req) {
545:
546: case PRU_ATTACH:
547:
548: if (!(so->so_state & SS_PRIV) || (nsp != NULL)) {
549: error = EINVAL;
550: break;
551: }
552: error = ns_pcballoc(so, &nsrawpcb);
553: if (error)
554: break;
555: error = soreserve(so, (u_long) 2048, (u_long) 2048);
556: if (error)
557: break;
558: nsp = sotonspcb(so);
559: nsp->nsp_faddr.x_host = ns_broadhost;
560: nsp->nsp_flags = NSP_RAWIN | NSP_RAWOUT;
561: break;
562: default:
563: error = idp_usrreq(so, req, m, nam, control);
564: }
565: return (error);
566: }
567:
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