svc.c revision 1.32 1 1.32 christos /* $NetBSD: svc.c,v 1.32 2013/03/04 17:29:03 christos Exp $ */
2 1.7 cgd
3 1.1 cgd /*
4 1.1 cgd * Sun RPC is a product of Sun Microsystems, Inc. and is provided for
5 1.1 cgd * unrestricted use provided that this legend is included on all tape
6 1.1 cgd * media and as a part of the software program in whole or part. Users
7 1.1 cgd * may copy or modify Sun RPC without charge, but are not authorized
8 1.1 cgd * to license or distribute it to anyone else except as part of a product or
9 1.1 cgd * program developed by the user.
10 1.1 cgd *
11 1.1 cgd * SUN RPC IS PROVIDED AS IS WITH NO WARRANTIES OF ANY KIND INCLUDING THE
12 1.1 cgd * WARRANTIES OF DESIGN, MERCHANTIBILITY AND FITNESS FOR A PARTICULAR
13 1.1 cgd * PURPOSE, OR ARISING FROM A COURSE OF DEALING, USAGE OR TRADE PRACTICE.
14 1.1 cgd *
15 1.1 cgd * Sun RPC is provided with no support and without any obligation on the
16 1.1 cgd * part of Sun Microsystems, Inc. to assist in its use, correction,
17 1.1 cgd * modification or enhancement.
18 1.1 cgd *
19 1.1 cgd * SUN MICROSYSTEMS, INC. SHALL HAVE NO LIABILITY WITH RESPECT TO THE
20 1.1 cgd * INFRINGEMENT OF COPYRIGHTS, TRADE SECRETS OR ANY PATENTS BY SUN RPC
21 1.1 cgd * OR ANY PART THEREOF.
22 1.1 cgd *
23 1.1 cgd * In no event will Sun Microsystems, Inc. be liable for any lost revenue
24 1.1 cgd * or profits or other special, indirect and consequential damages, even if
25 1.1 cgd * Sun has been advised of the possibility of such damages.
26 1.1 cgd *
27 1.1 cgd * Sun Microsystems, Inc.
28 1.1 cgd * 2550 Garcia Avenue
29 1.1 cgd * Mountain View, California 94043
30 1.1 cgd */
31 1.1 cgd
32 1.10 christos #include <sys/cdefs.h>
33 1.1 cgd #if defined(LIBC_SCCS) && !defined(lint)
34 1.10 christos #if 0
35 1.10 christos static char *sccsid = "@(#)svc.c 1.44 88/02/08 Copyr 1984 Sun Micro";
36 1.10 christos static char *sccsid = "@(#)svc.c 2.4 88/08/11 4.0 RPCSRC";
37 1.10 christos #else
38 1.32 christos __RCSID("$NetBSD: svc.c,v 1.32 2013/03/04 17:29:03 christos Exp $");
39 1.10 christos #endif
40 1.1 cgd #endif
41 1.1 cgd
42 1.1 cgd /*
43 1.1 cgd * svc.c, Server-side remote procedure call interface.
44 1.1 cgd *
45 1.1 cgd * There are two sets of procedures here. The xprt routines are
46 1.1 cgd * for handling transport handles. The svc routines handle the
47 1.1 cgd * list of service routines.
48 1.1 cgd *
49 1.1 cgd * Copyright (C) 1984, Sun Microsystems, Inc.
50 1.1 cgd */
51 1.1 cgd
52 1.11 jtc #include "namespace.h"
53 1.20 fvdl #include "reentrant.h"
54 1.20 fvdl #include <sys/types.h>
55 1.20 fvdl #include <sys/poll.h>
56 1.17 lukem #include <assert.h>
57 1.14 lukem #include <errno.h>
58 1.4 cgd #include <stdlib.h>
59 1.8 pk #include <string.h>
60 1.28 christos #include <err.h>
61 1.4 cgd
62 1.1 cgd #include <rpc/rpc.h>
63 1.20 fvdl #ifdef PORTMAP
64 1.1 cgd #include <rpc/pmap_clnt.h>
65 1.20 fvdl #endif
66 1.20 fvdl
67 1.23 fvdl #include "rpc_internal.h"
68 1.11 jtc
69 1.11 jtc #ifdef __weak_alias
70 1.19 mycroft __weak_alias(svc_getreq,_svc_getreq)
71 1.19 mycroft __weak_alias(svc_getreqset,_svc_getreqset)
72 1.20 fvdl __weak_alias(svc_getreq_common,_svc_getreq_common)
73 1.19 mycroft __weak_alias(svc_register,_svc_register)
74 1.20 fvdl __weak_alias(svc_reg,_svc_reg)
75 1.20 fvdl __weak_alias(svc_unreg,_svc_unreg)
76 1.19 mycroft __weak_alias(svc_sendreply,_svc_sendreply)
77 1.19 mycroft __weak_alias(svc_unregister,_svc_unregister)
78 1.19 mycroft __weak_alias(svcerr_auth,_svcerr_auth)
79 1.19 mycroft __weak_alias(svcerr_decode,_svcerr_decode)
80 1.19 mycroft __weak_alias(svcerr_noproc,_svcerr_noproc)
81 1.19 mycroft __weak_alias(svcerr_noprog,_svcerr_noprog)
82 1.19 mycroft __weak_alias(svcerr_progvers,_svcerr_progvers)
83 1.19 mycroft __weak_alias(svcerr_systemerr,_svcerr_systemerr)
84 1.19 mycroft __weak_alias(svcerr_weakauth,_svcerr_weakauth)
85 1.19 mycroft __weak_alias(xprt_register,_xprt_register)
86 1.19 mycroft __weak_alias(xprt_unregister,_xprt_unregister)
87 1.23 fvdl __weak_alias(rpc_control,_rpc_control)
88 1.11 jtc #endif
89 1.1 cgd
90 1.23 fvdl SVCXPRT **__svc_xports;
91 1.23 fvdl int __svc_maxrec;
92 1.1 cgd
93 1.1 cgd #define RQCRED_SIZE 400 /* this size is excessive */
94 1.1 cgd
95 1.20 fvdl #define SVC_VERSQUIET 0x0001 /* keep quiet about vers mismatch */
96 1.20 fvdl #define version_keepquiet(xp) ((u_long)(xp)->xp_p3 & SVC_VERSQUIET)
97 1.20 fvdl
98 1.2 deraadt #define max(a, b) (a > b ? a : b)
99 1.2 deraadt
100 1.1 cgd /*
101 1.1 cgd * The services list
102 1.1 cgd * Each entry represents a set of procedures (an rpc program).
103 1.1 cgd * The dispatch routine takes request structs and runs the
104 1.1 cgd * apropriate procedure.
105 1.1 cgd */
106 1.1 cgd static struct svc_callout {
107 1.1 cgd struct svc_callout *sc_next;
108 1.20 fvdl rpcprog_t sc_prog;
109 1.20 fvdl rpcvers_t sc_vers;
110 1.20 fvdl char *sc_netid;
111 1.31 matt void (*sc_dispatch)(struct svc_req *, SVCXPRT *);
112 1.1 cgd } *svc_head;
113 1.1 cgd
114 1.24 thorpej #ifdef _REENTRANT
115 1.20 fvdl extern rwlock_t svc_lock;
116 1.20 fvdl extern rwlock_t svc_fd_lock;
117 1.20 fvdl #endif
118 1.20 fvdl
119 1.31 matt static struct svc_callout *svc_find(rpcprog_t, rpcvers_t,
120 1.31 matt struct svc_callout **, char *);
121 1.31 matt static void __xprt_do_unregister(SVCXPRT *xprt, bool_t dolock);
122 1.1 cgd
123 1.1 cgd /* *************** SVCXPRT related stuff **************** */
124 1.3 deraadt
125 1.1 cgd /*
126 1.1 cgd * Activate a transport handle.
127 1.1 cgd */
128 1.32 christos bool_t
129 1.31 matt xprt_register(SVCXPRT *xprt)
130 1.1 cgd {
131 1.17 lukem int sock;
132 1.17 lukem
133 1.17 lukem _DIAGASSERT(xprt != NULL);
134 1.17 lukem
135 1.20 fvdl sock = xprt->xp_fd;
136 1.1 cgd
137 1.20 fvdl rwlock_wrlock(&svc_fd_lock);
138 1.23 fvdl if (__svc_xports == NULL) {
139 1.28 christos __svc_xports = mem_alloc(FD_SETSIZE * sizeof(SVCXPRT *));
140 1.28 christos if (__svc_xports == NULL) {
141 1.32 christos warn("%s: out of memory", __func__);
142 1.28 christos goto out;
143 1.28 christos }
144 1.23 fvdl memset(__svc_xports, '\0', FD_SETSIZE * sizeof(SVCXPRT *));
145 1.1 cgd }
146 1.32 christos if (sock >= FD_SETSIZE) {
147 1.32 christos warnx("%s: socket descriptor %d too large for setsize %u",
148 1.32 christos __func__, sock, (unsigned)FD_SETSIZE);
149 1.32 christos goto out;
150 1.32 christos }
151 1.32 christos __svc_xports[sock] = xprt;
152 1.32 christos FD_SET(sock, &svc_fdset);
153 1.32 christos svc_maxfd = max(svc_maxfd, sock);
154 1.32 christos rwlock_unlock(&svc_fd_lock);
155 1.32 christos return (TRUE);
156 1.32 christos
157 1.28 christos out:
158 1.20 fvdl rwlock_unlock(&svc_fd_lock);
159 1.32 christos return (FALSE);
160 1.1 cgd }
161 1.1 cgd
162 1.23 fvdl void
163 1.23 fvdl xprt_unregister(SVCXPRT *xprt)
164 1.23 fvdl {
165 1.23 fvdl __xprt_do_unregister(xprt, TRUE);
166 1.23 fvdl }
167 1.23 fvdl
168 1.23 fvdl void
169 1.23 fvdl __xprt_unregister_unlocked(SVCXPRT *xprt)
170 1.23 fvdl {
171 1.23 fvdl __xprt_do_unregister(xprt, FALSE);
172 1.23 fvdl }
173 1.23 fvdl
174 1.1 cgd /*
175 1.1 cgd * De-activate a transport handle.
176 1.1 cgd */
177 1.23 fvdl static void
178 1.31 matt __xprt_do_unregister(SVCXPRT *xprt, bool_t dolock)
179 1.1 cgd {
180 1.17 lukem int sock;
181 1.17 lukem
182 1.17 lukem _DIAGASSERT(xprt != NULL);
183 1.17 lukem
184 1.20 fvdl sock = xprt->xp_fd;
185 1.1 cgd
186 1.23 fvdl if (dolock)
187 1.23 fvdl rwlock_wrlock(&svc_fd_lock);
188 1.23 fvdl if ((sock < FD_SETSIZE) && (__svc_xports[sock] == xprt)) {
189 1.23 fvdl __svc_xports[sock] = NULL;
190 1.1 cgd FD_CLR(sock, &svc_fdset);
191 1.20 fvdl if (sock >= svc_maxfd) {
192 1.3 deraadt for (svc_maxfd--; svc_maxfd>=0; svc_maxfd--)
193 1.23 fvdl if (__svc_xports[svc_maxfd])
194 1.3 deraadt break;
195 1.3 deraadt }
196 1.1 cgd }
197 1.23 fvdl if (dolock)
198 1.23 fvdl rwlock_unlock(&svc_fd_lock);
199 1.1 cgd }
200 1.1 cgd
201 1.20 fvdl /*
202 1.20 fvdl * Add a service program to the callout list.
203 1.20 fvdl * The dispatch routine will be called when a rpc request for this
204 1.20 fvdl * program number comes in.
205 1.20 fvdl */
206 1.20 fvdl bool_t
207 1.31 matt svc_reg(SVCXPRT *xprt, const rpcprog_t prog, const rpcvers_t vers,
208 1.31 matt void (*dispatch)(struct svc_req *, SVCXPRT *),
209 1.31 matt const struct netconfig *nconf)
210 1.20 fvdl {
211 1.20 fvdl bool_t dummy;
212 1.20 fvdl struct svc_callout *prev;
213 1.21 christos struct svc_callout *s;
214 1.20 fvdl struct netconfig *tnconf;
215 1.21 christos char *netid = NULL;
216 1.20 fvdl int flag = 0;
217 1.20 fvdl
218 1.22 lukem _DIAGASSERT(xprt != NULL);
219 1.22 lukem /* XXX: dispatch may be NULL ??? */
220 1.22 lukem
221 1.20 fvdl /* VARIABLES PROTECTED BY svc_lock: s, prev, svc_head */
222 1.20 fvdl
223 1.20 fvdl if (xprt->xp_netid) {
224 1.20 fvdl netid = strdup(xprt->xp_netid);
225 1.20 fvdl flag = 1;
226 1.20 fvdl } else if (nconf && nconf->nc_netid) {
227 1.20 fvdl netid = strdup(nconf->nc_netid);
228 1.20 fvdl flag = 1;
229 1.20 fvdl } else if ((tnconf = __rpcgettp(xprt->xp_fd)) != NULL) {
230 1.20 fvdl netid = strdup(tnconf->nc_netid);
231 1.20 fvdl flag = 1;
232 1.20 fvdl freenetconfigent(tnconf);
233 1.20 fvdl } /* must have been created with svc_raw_create */
234 1.20 fvdl if ((netid == NULL) && (flag == 1)) {
235 1.20 fvdl return (FALSE);
236 1.20 fvdl }
237 1.20 fvdl
238 1.20 fvdl rwlock_wrlock(&svc_lock);
239 1.21 christos if ((s = svc_find(prog, vers, &prev, netid)) != NULL) {
240 1.20 fvdl if (netid)
241 1.20 fvdl free(netid);
242 1.20 fvdl if (s->sc_dispatch == dispatch)
243 1.20 fvdl goto rpcb_it; /* he is registering another xptr */
244 1.20 fvdl rwlock_unlock(&svc_lock);
245 1.20 fvdl return (FALSE);
246 1.20 fvdl }
247 1.21 christos s = mem_alloc(sizeof (struct svc_callout));
248 1.21 christos if (s == NULL) {
249 1.20 fvdl if (netid)
250 1.20 fvdl free(netid);
251 1.20 fvdl rwlock_unlock(&svc_lock);
252 1.20 fvdl return (FALSE);
253 1.20 fvdl }
254 1.20 fvdl
255 1.28 christos if ((xprt->xp_netid == NULL) && (flag == 1) && netid)
256 1.28 christos if ((((SVCXPRT *) xprt)->xp_netid = strdup(netid)) == NULL) {
257 1.28 christos warn("svc_reg");
258 1.28 christos mem_free(s, sizeof(struct svc_callout));
259 1.28 christos rwlock_unlock(&svc_lock);
260 1.28 christos return FALSE;
261 1.28 christos }
262 1.28 christos
263 1.20 fvdl s->sc_prog = prog;
264 1.20 fvdl s->sc_vers = vers;
265 1.20 fvdl s->sc_dispatch = dispatch;
266 1.20 fvdl s->sc_netid = netid;
267 1.20 fvdl s->sc_next = svc_head;
268 1.20 fvdl svc_head = s;
269 1.20 fvdl
270 1.20 fvdl rpcb_it:
271 1.20 fvdl rwlock_unlock(&svc_lock);
272 1.20 fvdl /* now register the information with the local binder service */
273 1.20 fvdl if (nconf) {
274 1.26 christos dummy = rpcb_set(prog, vers, __UNCONST(nconf),
275 1.20 fvdl &((SVCXPRT *) xprt)->xp_ltaddr);
276 1.20 fvdl return (dummy);
277 1.20 fvdl }
278 1.20 fvdl return (TRUE);
279 1.20 fvdl }
280 1.20 fvdl
281 1.20 fvdl /*
282 1.20 fvdl * Remove a service program from the callout list.
283 1.20 fvdl */
284 1.20 fvdl void
285 1.31 matt svc_unreg(const rpcprog_t prog, const rpcvers_t vers)
286 1.20 fvdl {
287 1.20 fvdl struct svc_callout *prev;
288 1.21 christos struct svc_callout *s;
289 1.20 fvdl
290 1.20 fvdl /* unregister the information anyway */
291 1.20 fvdl (void) rpcb_unset(prog, vers, NULL);
292 1.20 fvdl rwlock_wrlock(&svc_lock);
293 1.21 christos while ((s = svc_find(prog, vers, &prev, NULL)) != NULL) {
294 1.21 christos if (prev == NULL) {
295 1.20 fvdl svc_head = s->sc_next;
296 1.20 fvdl } else {
297 1.20 fvdl prev->sc_next = s->sc_next;
298 1.20 fvdl }
299 1.21 christos s->sc_next = NULL;
300 1.20 fvdl if (s->sc_netid)
301 1.21 christos mem_free(s->sc_netid, sizeof (s->sc_netid) + 1);
302 1.21 christos mem_free(s, sizeof (struct svc_callout));
303 1.20 fvdl }
304 1.20 fvdl rwlock_unlock(&svc_lock);
305 1.20 fvdl }
306 1.1 cgd
307 1.1 cgd /* ********************** CALLOUT list related stuff ************* */
308 1.1 cgd
309 1.20 fvdl #ifdef PORTMAP
310 1.1 cgd /*
311 1.1 cgd * Add a service program to the callout list.
312 1.1 cgd * The dispatch routine will be called when a rpc request for this
313 1.1 cgd * program number comes in.
314 1.1 cgd */
315 1.1 cgd bool_t
316 1.31 matt svc_register(SVCXPRT *xprt, u_long prog, u_long vers,
317 1.31 matt void (*dispatch)(struct svc_req *, SVCXPRT *), int protocol)
318 1.1 cgd {
319 1.1 cgd struct svc_callout *prev;
320 1.14 lukem struct svc_callout *s;
321 1.1 cgd
322 1.17 lukem _DIAGASSERT(xprt != NULL);
323 1.17 lukem _DIAGASSERT(dispatch != NULL);
324 1.17 lukem
325 1.21 christos if ((s = svc_find((rpcprog_t)prog, (rpcvers_t)vers, &prev, NULL)) !=
326 1.21 christos NULL) {
327 1.1 cgd if (s->sc_dispatch == dispatch)
328 1.1 cgd goto pmap_it; /* he is registering another xptr */
329 1.1 cgd return (FALSE);
330 1.1 cgd }
331 1.21 christos s = mem_alloc(sizeof(struct svc_callout));
332 1.21 christos if (s == NULL) {
333 1.1 cgd return (FALSE);
334 1.1 cgd }
335 1.21 christos s->sc_prog = (rpcprog_t)prog;
336 1.21 christos s->sc_vers = (rpcvers_t)vers;
337 1.1 cgd s->sc_dispatch = dispatch;
338 1.1 cgd s->sc_next = svc_head;
339 1.1 cgd svc_head = s;
340 1.1 cgd pmap_it:
341 1.1 cgd /* now register the information with the local binder service */
342 1.1 cgd if (protocol) {
343 1.1 cgd return (pmap_set(prog, vers, protocol, xprt->xp_port));
344 1.1 cgd }
345 1.1 cgd return (TRUE);
346 1.1 cgd }
347 1.1 cgd
348 1.1 cgd /*
349 1.1 cgd * Remove a service program from the callout list.
350 1.1 cgd */
351 1.1 cgd void
352 1.31 matt svc_unregister(u_long prog, u_long vers)
353 1.1 cgd {
354 1.1 cgd struct svc_callout *prev;
355 1.14 lukem struct svc_callout *s;
356 1.1 cgd
357 1.21 christos if ((s = svc_find((rpcprog_t)prog, (rpcvers_t)vers, &prev, NULL)) ==
358 1.21 christos NULL)
359 1.1 cgd return;
360 1.21 christos if (prev == NULL) {
361 1.1 cgd svc_head = s->sc_next;
362 1.1 cgd } else {
363 1.1 cgd prev->sc_next = s->sc_next;
364 1.1 cgd }
365 1.21 christos s->sc_next = NULL;
366 1.15 christos mem_free(s, sizeof(struct svc_callout));
367 1.1 cgd /* now unregister the information with the local binder service */
368 1.1 cgd (void)pmap_unset(prog, vers);
369 1.1 cgd }
370 1.20 fvdl #endif /* PORTMAP */
371 1.1 cgd
372 1.1 cgd /*
373 1.1 cgd * Search the callout list for a program number, return the callout
374 1.1 cgd * struct.
375 1.1 cgd */
376 1.1 cgd static struct svc_callout *
377 1.31 matt svc_find(rpcprog_t prog, rpcvers_t vers, struct svc_callout **prev, char *netid)
378 1.1 cgd {
379 1.14 lukem struct svc_callout *s, *p;
380 1.1 cgd
381 1.17 lukem _DIAGASSERT(prev != NULL);
382 1.22 lukem /* netid is handled below */
383 1.17 lukem
384 1.21 christos p = NULL;
385 1.21 christos for (s = svc_head; s != NULL; s = s->sc_next) {
386 1.20 fvdl if (((s->sc_prog == prog) && (s->sc_vers == vers)) &&
387 1.20 fvdl ((netid == NULL) || (s->sc_netid == NULL) ||
388 1.20 fvdl (strcmp(netid, s->sc_netid) == 0)))
389 1.20 fvdl break;
390 1.1 cgd p = s;
391 1.1 cgd }
392 1.1 cgd *prev = p;
393 1.1 cgd return (s);
394 1.1 cgd }
395 1.1 cgd
396 1.1 cgd /* ******************* REPLY GENERATION ROUTINES ************ */
397 1.1 cgd
398 1.1 cgd /*
399 1.1 cgd * Send a reply to an rpc request
400 1.1 cgd */
401 1.1 cgd bool_t
402 1.31 matt svc_sendreply(SVCXPRT *xprt, xdrproc_t xdr_results, const char *xdr_location)
403 1.1 cgd {
404 1.1 cgd struct rpc_msg rply;
405 1.1 cgd
406 1.17 lukem _DIAGASSERT(xprt != NULL);
407 1.17 lukem
408 1.1 cgd rply.rm_direction = REPLY;
409 1.1 cgd rply.rm_reply.rp_stat = MSG_ACCEPTED;
410 1.1 cgd rply.acpted_rply.ar_verf = xprt->xp_verf;
411 1.1 cgd rply.acpted_rply.ar_stat = SUCCESS;
412 1.1 cgd rply.acpted_rply.ar_results.where = xdr_location;
413 1.1 cgd rply.acpted_rply.ar_results.proc = xdr_results;
414 1.1 cgd return (SVC_REPLY(xprt, &rply));
415 1.1 cgd }
416 1.1 cgd
417 1.1 cgd /*
418 1.1 cgd * No procedure error reply
419 1.1 cgd */
420 1.1 cgd void
421 1.31 matt svcerr_noproc(SVCXPRT *xprt)
422 1.1 cgd {
423 1.1 cgd struct rpc_msg rply;
424 1.1 cgd
425 1.17 lukem _DIAGASSERT(xprt != NULL);
426 1.17 lukem
427 1.1 cgd rply.rm_direction = REPLY;
428 1.1 cgd rply.rm_reply.rp_stat = MSG_ACCEPTED;
429 1.1 cgd rply.acpted_rply.ar_verf = xprt->xp_verf;
430 1.1 cgd rply.acpted_rply.ar_stat = PROC_UNAVAIL;
431 1.1 cgd SVC_REPLY(xprt, &rply);
432 1.1 cgd }
433 1.1 cgd
434 1.1 cgd /*
435 1.1 cgd * Can't decode args error reply
436 1.1 cgd */
437 1.1 cgd void
438 1.31 matt svcerr_decode(SVCXPRT *xprt)
439 1.1 cgd {
440 1.1 cgd struct rpc_msg rply;
441 1.1 cgd
442 1.17 lukem _DIAGASSERT(xprt != NULL);
443 1.17 lukem
444 1.1 cgd rply.rm_direction = REPLY;
445 1.1 cgd rply.rm_reply.rp_stat = MSG_ACCEPTED;
446 1.1 cgd rply.acpted_rply.ar_verf = xprt->xp_verf;
447 1.1 cgd rply.acpted_rply.ar_stat = GARBAGE_ARGS;
448 1.1 cgd SVC_REPLY(xprt, &rply);
449 1.1 cgd }
450 1.1 cgd
451 1.1 cgd /*
452 1.1 cgd * Some system error
453 1.1 cgd */
454 1.1 cgd void
455 1.31 matt svcerr_systemerr(SVCXPRT *xprt)
456 1.1 cgd {
457 1.1 cgd struct rpc_msg rply;
458 1.1 cgd
459 1.17 lukem _DIAGASSERT(xprt != NULL);
460 1.17 lukem
461 1.1 cgd rply.rm_direction = REPLY;
462 1.1 cgd rply.rm_reply.rp_stat = MSG_ACCEPTED;
463 1.1 cgd rply.acpted_rply.ar_verf = xprt->xp_verf;
464 1.1 cgd rply.acpted_rply.ar_stat = SYSTEM_ERR;
465 1.1 cgd SVC_REPLY(xprt, &rply);
466 1.1 cgd }
467 1.1 cgd
468 1.20 fvdl #if 0
469 1.20 fvdl /*
470 1.20 fvdl * Tell RPC package to not complain about version errors to the client. This
471 1.20 fvdl * is useful when revving broadcast protocols that sit on a fixed address.
472 1.20 fvdl * There is really one (or should be only one) example of this kind of
473 1.20 fvdl * protocol: the portmapper (or rpc binder).
474 1.20 fvdl */
475 1.20 fvdl void
476 1.31 matt __svc_versquiet_on(SVCXPRT *xprt)
477 1.20 fvdl {
478 1.20 fvdl u_long tmp;
479 1.20 fvdl
480 1.22 lukem _DIAGASSERT(xprt != NULL);
481 1.22 lukem
482 1.20 fvdl tmp = ((u_long) xprt->xp_p3) | SVC_VERSQUIET;
483 1.20 fvdl xprt->xp_p3 = (caddr_t) tmp;
484 1.20 fvdl }
485 1.20 fvdl
486 1.20 fvdl void
487 1.31 matt __svc_versquiet_off(SVCXPRT *xprt)
488 1.20 fvdl {
489 1.20 fvdl u_long tmp;
490 1.20 fvdl
491 1.22 lukem _DIAGASSERT(xprt != NULL);
492 1.22 lukem
493 1.20 fvdl tmp = ((u_long) xprt->xp_p3) & ~SVC_VERSQUIET;
494 1.20 fvdl xprt->xp_p3 = (caddr_t) tmp;
495 1.20 fvdl }
496 1.20 fvdl
497 1.20 fvdl void
498 1.31 matt svc_versquiet(SVCXPRT *xprt)
499 1.20 fvdl {
500 1.20 fvdl __svc_versquiet_on(xprt);
501 1.20 fvdl }
502 1.20 fvdl
503 1.20 fvdl int
504 1.31 matt __svc_versquiet_get(SVCXPRT *xprt)
505 1.20 fvdl {
506 1.22 lukem
507 1.22 lukem _DIAGASSERT(xprt != NULL);
508 1.22 lukem
509 1.20 fvdl return ((int) xprt->xp_p3) & SVC_VERSQUIET;
510 1.20 fvdl }
511 1.20 fvdl #endif
512 1.20 fvdl
513 1.1 cgd /*
514 1.1 cgd * Authentication error reply
515 1.1 cgd */
516 1.1 cgd void
517 1.31 matt svcerr_auth(SVCXPRT *xprt, enum auth_stat why)
518 1.1 cgd {
519 1.1 cgd struct rpc_msg rply;
520 1.1 cgd
521 1.17 lukem _DIAGASSERT(xprt != NULL);
522 1.17 lukem
523 1.1 cgd rply.rm_direction = REPLY;
524 1.1 cgd rply.rm_reply.rp_stat = MSG_DENIED;
525 1.1 cgd rply.rjcted_rply.rj_stat = AUTH_ERROR;
526 1.1 cgd rply.rjcted_rply.rj_why = why;
527 1.1 cgd SVC_REPLY(xprt, &rply);
528 1.1 cgd }
529 1.1 cgd
530 1.1 cgd /*
531 1.1 cgd * Auth too weak error reply
532 1.1 cgd */
533 1.1 cgd void
534 1.31 matt svcerr_weakauth(SVCXPRT *xprt)
535 1.1 cgd {
536 1.1 cgd
537 1.17 lukem _DIAGASSERT(xprt != NULL);
538 1.17 lukem
539 1.1 cgd svcerr_auth(xprt, AUTH_TOOWEAK);
540 1.1 cgd }
541 1.1 cgd
542 1.1 cgd /*
543 1.1 cgd * Program unavailable error reply
544 1.1 cgd */
545 1.1 cgd void
546 1.31 matt svcerr_noprog(SVCXPRT *xprt)
547 1.1 cgd {
548 1.1 cgd struct rpc_msg rply;
549 1.1 cgd
550 1.17 lukem _DIAGASSERT(xprt != NULL);
551 1.17 lukem
552 1.1 cgd rply.rm_direction = REPLY;
553 1.1 cgd rply.rm_reply.rp_stat = MSG_ACCEPTED;
554 1.1 cgd rply.acpted_rply.ar_verf = xprt->xp_verf;
555 1.1 cgd rply.acpted_rply.ar_stat = PROG_UNAVAIL;
556 1.1 cgd SVC_REPLY(xprt, &rply);
557 1.1 cgd }
558 1.1 cgd
559 1.1 cgd /*
560 1.1 cgd * Program version mismatch error reply
561 1.1 cgd */
562 1.1 cgd void
563 1.31 matt svcerr_progvers(SVCXPRT *xprt, rpcvers_t low_vers, rpcvers_t high_vers)
564 1.1 cgd {
565 1.1 cgd struct rpc_msg rply;
566 1.1 cgd
567 1.17 lukem _DIAGASSERT(xprt != NULL);
568 1.17 lukem
569 1.1 cgd rply.rm_direction = REPLY;
570 1.1 cgd rply.rm_reply.rp_stat = MSG_ACCEPTED;
571 1.1 cgd rply.acpted_rply.ar_verf = xprt->xp_verf;
572 1.1 cgd rply.acpted_rply.ar_stat = PROG_MISMATCH;
573 1.15 christos rply.acpted_rply.ar_vers.low = (u_int32_t)low_vers;
574 1.15 christos rply.acpted_rply.ar_vers.high = (u_int32_t)high_vers;
575 1.1 cgd SVC_REPLY(xprt, &rply);
576 1.1 cgd }
577 1.1 cgd
578 1.1 cgd /* ******************* SERVER INPUT STUFF ******************* */
579 1.1 cgd
580 1.1 cgd /*
581 1.1 cgd * Get server side input from some transport.
582 1.1 cgd *
583 1.1 cgd * Statement of authentication parameters management:
584 1.1 cgd * This function owns and manages all authentication parameters, specifically
585 1.1 cgd * the "raw" parameters (msg.rm_call.cb_cred and msg.rm_call.cb_verf) and
586 1.1 cgd * the "cooked" credentials (rqst->rq_clntcred).
587 1.1 cgd * However, this function does not know the structure of the cooked
588 1.1 cgd * credentials, so it make the following assumptions:
589 1.1 cgd * a) the structure is contiguous (no pointers), and
590 1.1 cgd * b) the cred structure size does not exceed RQCRED_SIZE bytes.
591 1.1 cgd * In all events, all three parameters are freed upon exit from this routine.
592 1.1 cgd * The storage is trivially management on the call stack in user land, but
593 1.1 cgd * is mallocated in kernel land.
594 1.1 cgd */
595 1.1 cgd
596 1.1 cgd void
597 1.31 matt svc_getreq(int rdfds)
598 1.1 cgd {
599 1.1 cgd fd_set readfds;
600 1.1 cgd
601 1.1 cgd FD_ZERO(&readfds);
602 1.29 rmind readfds.fds_bits[0] = (unsigned int)rdfds;
603 1.1 cgd svc_getreqset(&readfds);
604 1.1 cgd }
605 1.1 cgd
606 1.1 cgd void
607 1.31 matt svc_getreqset(fd_set *readfds)
608 1.1 cgd {
609 1.29 rmind uint32_t mask, *maskp;
610 1.29 rmind int sock, bit, fd;
611 1.1 cgd
612 1.17 lukem _DIAGASSERT(readfds != NULL);
613 1.1 cgd
614 1.4 cgd maskp = readfds->fds_bits;
615 1.2 deraadt for (sock = 0; sock < FD_SETSIZE; sock += NFDBITS) {
616 1.30 tron for (mask = *maskp++; (bit = ffs((int)mask)) != 0;
617 1.10 christos mask ^= (1 << (bit - 1))) {
618 1.1 cgd /* sock has input waiting */
619 1.20 fvdl fd = sock + bit - 1;
620 1.20 fvdl svc_getreq_common(fd);
621 1.20 fvdl }
622 1.20 fvdl }
623 1.20 fvdl }
624 1.20 fvdl
625 1.20 fvdl void
626 1.31 matt svc_getreq_common(int fd)
627 1.20 fvdl {
628 1.20 fvdl SVCXPRT *xprt;
629 1.20 fvdl struct svc_req r;
630 1.20 fvdl struct rpc_msg msg;
631 1.20 fvdl int prog_found;
632 1.20 fvdl rpcvers_t low_vers;
633 1.20 fvdl rpcvers_t high_vers;
634 1.20 fvdl enum xprt_stat stat;
635 1.20 fvdl char cred_area[2*MAX_AUTH_BYTES + RQCRED_SIZE];
636 1.20 fvdl
637 1.20 fvdl msg.rm_call.cb_cred.oa_base = cred_area;
638 1.20 fvdl msg.rm_call.cb_verf.oa_base = &(cred_area[MAX_AUTH_BYTES]);
639 1.20 fvdl r.rq_clntcred = &(cred_area[2*MAX_AUTH_BYTES]);
640 1.20 fvdl
641 1.20 fvdl rwlock_rdlock(&svc_fd_lock);
642 1.23 fvdl xprt = __svc_xports[fd];
643 1.20 fvdl rwlock_unlock(&svc_fd_lock);
644 1.20 fvdl if (xprt == NULL)
645 1.20 fvdl /* But do we control sock? */
646 1.20 fvdl return;
647 1.20 fvdl /* now receive msgs from xprtprt (support batch calls) */
648 1.20 fvdl do {
649 1.20 fvdl if (SVC_RECV(xprt, &msg)) {
650 1.20 fvdl
651 1.20 fvdl /* now find the exported program and call it */
652 1.20 fvdl struct svc_callout *s;
653 1.20 fvdl enum auth_stat why;
654 1.20 fvdl
655 1.20 fvdl r.rq_xprt = xprt;
656 1.20 fvdl r.rq_prog = msg.rm_call.cb_prog;
657 1.20 fvdl r.rq_vers = msg.rm_call.cb_vers;
658 1.20 fvdl r.rq_proc = msg.rm_call.cb_proc;
659 1.20 fvdl r.rq_cred = msg.rm_call.cb_cred;
660 1.20 fvdl /* first authenticate the message */
661 1.20 fvdl if ((why = _authenticate(&r, &msg)) != AUTH_OK) {
662 1.20 fvdl svcerr_auth(xprt, why);
663 1.20 fvdl goto call_done;
664 1.1 cgd }
665 1.20 fvdl /* now match message with a registered service*/
666 1.20 fvdl prog_found = FALSE;
667 1.20 fvdl low_vers = (rpcvers_t) -1L;
668 1.20 fvdl high_vers = (rpcvers_t) 0L;
669 1.21 christos for (s = svc_head; s != NULL; s = s->sc_next) {
670 1.20 fvdl if (s->sc_prog == r.rq_prog) {
671 1.20 fvdl if (s->sc_vers == r.rq_vers) {
672 1.20 fvdl (*s->sc_dispatch)(&r, xprt);
673 1.20 fvdl goto call_done;
674 1.20 fvdl } /* found correct version */
675 1.20 fvdl prog_found = TRUE;
676 1.20 fvdl if (s->sc_vers < low_vers)
677 1.20 fvdl low_vers = s->sc_vers;
678 1.20 fvdl if (s->sc_vers > high_vers)
679 1.20 fvdl high_vers = s->sc_vers;
680 1.20 fvdl } /* found correct program */
681 1.1 cgd }
682 1.20 fvdl /*
683 1.20 fvdl * if we got here, the program or version
684 1.20 fvdl * is not served ...
685 1.20 fvdl */
686 1.20 fvdl if (prog_found)
687 1.20 fvdl svcerr_progvers(xprt, low_vers, high_vers);
688 1.20 fvdl else
689 1.20 fvdl svcerr_noprog(xprt);
690 1.20 fvdl /* Fall through to ... */
691 1.20 fvdl }
692 1.20 fvdl /*
693 1.20 fvdl * Check if the xprt has been disconnected in a
694 1.20 fvdl * recursive call in the service dispatch routine.
695 1.20 fvdl * If so, then break.
696 1.20 fvdl */
697 1.20 fvdl rwlock_rdlock(&svc_fd_lock);
698 1.23 fvdl if (xprt != __svc_xports[fd]) {
699 1.20 fvdl rwlock_unlock(&svc_fd_lock);
700 1.20 fvdl break;
701 1.20 fvdl }
702 1.20 fvdl rwlock_unlock(&svc_fd_lock);
703 1.20 fvdl call_done:
704 1.20 fvdl if ((stat = SVC_STAT(xprt)) == XPRT_DIED){
705 1.20 fvdl SVC_DESTROY(xprt);
706 1.20 fvdl break;
707 1.20 fvdl }
708 1.20 fvdl } while (stat == XPRT_MOREREQS);
709 1.20 fvdl }
710 1.20 fvdl
711 1.20 fvdl
712 1.20 fvdl void
713 1.31 matt svc_getreq_poll(struct pollfd *pfdp, int pollretval)
714 1.20 fvdl {
715 1.20 fvdl int i;
716 1.20 fvdl int fds_found;
717 1.22 lukem
718 1.22 lukem _DIAGASSERT(pfdp != NULL);
719 1.20 fvdl
720 1.20 fvdl for (i = fds_found = 0; fds_found < pollretval; i++) {
721 1.21 christos struct pollfd *p = &pfdp[i];
722 1.20 fvdl
723 1.20 fvdl if (p->revents) {
724 1.20 fvdl /* fd has input waiting */
725 1.20 fvdl fds_found++;
726 1.20 fvdl /*
727 1.20 fvdl * We assume that this function is only called
728 1.20 fvdl * via someone select()ing from svc_fdset or
729 1.25 christos * pollts()ing from svc_pollset[]. Thus it's safe
730 1.20 fvdl * to handle the POLLNVAL event by simply turning
731 1.20 fvdl * the corresponding bit off in svc_fdset. The
732 1.20 fvdl * svc_pollset[] array is derived from svc_fdset
733 1.20 fvdl * and so will also be updated eventually.
734 1.20 fvdl *
735 1.20 fvdl * XXX Should we do an xprt_unregister() instead?
736 1.20 fvdl */
737 1.20 fvdl if (p->revents & POLLNVAL) {
738 1.20 fvdl rwlock_wrlock(&svc_fd_lock);
739 1.20 fvdl FD_CLR(p->fd, &svc_fdset);
740 1.20 fvdl rwlock_unlock(&svc_fd_lock);
741 1.20 fvdl } else
742 1.20 fvdl svc_getreq_common(p->fd);
743 1.20 fvdl }
744 1.1 cgd }
745 1.23 fvdl }
746 1.23 fvdl
747 1.23 fvdl bool_t
748 1.23 fvdl rpc_control(int what, void *arg)
749 1.23 fvdl {
750 1.23 fvdl int val;
751 1.23 fvdl
752 1.23 fvdl switch (what) {
753 1.23 fvdl case RPC_SVC_CONNMAXREC_SET:
754 1.23 fvdl val = *(int *)arg;
755 1.23 fvdl if (val <= 0)
756 1.23 fvdl return FALSE;
757 1.23 fvdl __svc_maxrec = val;
758 1.23 fvdl return TRUE;
759 1.23 fvdl case RPC_SVC_CONNMAXREC_GET:
760 1.23 fvdl *(int *)arg = __svc_maxrec;
761 1.23 fvdl return TRUE;
762 1.23 fvdl default:
763 1.23 fvdl break;
764 1.23 fvdl }
765 1.23 fvdl return FALSE;
766 1.1 cgd }
767