rpc_generic.c revision 1.27 1 1.27 christos /* $NetBSD: rpc_generic.c,v 1.27 2013/03/05 19:55:22 christos Exp $ */
2 1.1 fvdl
3 1.1 fvdl /*
4 1.1 fvdl * Sun RPC is a product of Sun Microsystems, Inc. and is provided for
5 1.1 fvdl * unrestricted use provided that this legend is included on all tape
6 1.1 fvdl * media and as a part of the software program in whole or part. Users
7 1.1 fvdl * may copy or modify Sun RPC without charge, but are not authorized
8 1.1 fvdl * to license or distribute it to anyone else except as part of a product or
9 1.1 fvdl * program developed by the user.
10 1.1 fvdl *
11 1.1 fvdl * SUN RPC IS PROVIDED AS IS WITH NO WARRANTIES OF ANY KIND INCLUDING THE
12 1.1 fvdl * WARRANTIES OF DESIGN, MERCHANTIBILITY AND FITNESS FOR A PARTICULAR
13 1.1 fvdl * PURPOSE, OR ARISING FROM A COURSE OF DEALING, USAGE OR TRADE PRACTICE.
14 1.1 fvdl *
15 1.1 fvdl * Sun RPC is provided with no support and without any obligation on the
16 1.1 fvdl * part of Sun Microsystems, Inc. to assist in its use, correction,
17 1.1 fvdl * modification or enhancement.
18 1.1 fvdl *
19 1.1 fvdl * SUN MICROSYSTEMS, INC. SHALL HAVE NO LIABILITY WITH RESPECT TO THE
20 1.1 fvdl * INFRINGEMENT OF COPYRIGHTS, TRADE SECRETS OR ANY PATENTS BY SUN RPC
21 1.1 fvdl * OR ANY PART THEREOF.
22 1.1 fvdl *
23 1.1 fvdl * In no event will Sun Microsystems, Inc. be liable for any lost revenue
24 1.1 fvdl * or profits or other special, indirect and consequential damages, even if
25 1.1 fvdl * Sun has been advised of the possibility of such damages.
26 1.1 fvdl *
27 1.1 fvdl * Sun Microsystems, Inc.
28 1.1 fvdl * 2550 Garcia Avenue
29 1.1 fvdl * Mountain View, California 94043
30 1.1 fvdl */
31 1.1 fvdl /*
32 1.1 fvdl * Copyright (c) 1986-1991 by Sun Microsystems Inc.
33 1.1 fvdl */
34 1.1 fvdl
35 1.1 fvdl /* #pragma ident "@(#)rpc_generic.c 1.17 94/04/24 SMI" */
36 1.1 fvdl
37 1.1 fvdl /*
38 1.1 fvdl * rpc_generic.c, Miscl routines for RPC.
39 1.1 fvdl *
40 1.1 fvdl */
41 1.1 fvdl
42 1.15 itojun #include <sys/cdefs.h>
43 1.15 itojun #if defined(LIBC_SCCS) && !defined(lint)
44 1.27 christos __RCSID("$NetBSD: rpc_generic.c,v 1.27 2013/03/05 19:55:22 christos Exp $");
45 1.15 itojun #endif
46 1.15 itojun
47 1.4 kleink #include "namespace.h"
48 1.12 thorpej #include "reentrant.h"
49 1.1 fvdl #include <sys/types.h>
50 1.1 fvdl #include <sys/param.h>
51 1.1 fvdl #include <sys/socket.h>
52 1.1 fvdl #include <sys/un.h>
53 1.1 fvdl #include <sys/resource.h>
54 1.1 fvdl #include <netinet/in.h>
55 1.22 christos #include <netinet/tcp.h>
56 1.1 fvdl #include <arpa/inet.h>
57 1.1 fvdl #include <rpc/rpc.h>
58 1.5 lukem #include <assert.h>
59 1.1 fvdl #include <ctype.h>
60 1.1 fvdl #include <stdio.h>
61 1.1 fvdl #include <netdb.h>
62 1.1 fvdl #include <netconfig.h>
63 1.1 fvdl #include <malloc.h>
64 1.1 fvdl #include <string.h>
65 1.2 assar #include <syslog.h>
66 1.1 fvdl #include <rpc/nettype.h>
67 1.27 christos
68 1.27 christos #include "svc_fdset.h"
69 1.10 fvdl #include "rpc_internal.h"
70 1.1 fvdl
71 1.18 kleink #ifdef __weak_alias
72 1.18 kleink __weak_alias(taddr2uaddr,_taddr2uaddr)
73 1.18 kleink __weak_alias(uaddr2taddr,_uaddr2taddr)
74 1.18 kleink #endif
75 1.18 kleink
76 1.1 fvdl struct handle {
77 1.1 fvdl NCONF_HANDLE *nhandle;
78 1.1 fvdl int nflag; /* Whether NETPATH or NETCONFIG */
79 1.1 fvdl int nettype;
80 1.1 fvdl };
81 1.1 fvdl
82 1.6 jdolecek static const struct _rpcnettype {
83 1.1 fvdl const char *name;
84 1.1 fvdl const int type;
85 1.1 fvdl } _rpctypelist[] = {
86 1.1 fvdl { "netpath", _RPC_NETPATH },
87 1.1 fvdl { "visible", _RPC_VISIBLE },
88 1.1 fvdl { "circuit_v", _RPC_CIRCUIT_V },
89 1.1 fvdl { "datagram_v", _RPC_DATAGRAM_V },
90 1.1 fvdl { "circuit_n", _RPC_CIRCUIT_N },
91 1.1 fvdl { "datagram_n", _RPC_DATAGRAM_N },
92 1.1 fvdl { "tcp", _RPC_TCP },
93 1.1 fvdl { "udp", _RPC_UDP },
94 1.1 fvdl { 0, _RPC_NONE }
95 1.1 fvdl };
96 1.1 fvdl
97 1.1 fvdl struct netid_af {
98 1.1 fvdl const char *netid;
99 1.1 fvdl int af;
100 1.1 fvdl int protocol;
101 1.1 fvdl };
102 1.1 fvdl
103 1.6 jdolecek static const struct netid_af na_cvt[] = {
104 1.1 fvdl { "udp", AF_INET, IPPROTO_UDP },
105 1.1 fvdl { "tcp", AF_INET, IPPROTO_TCP },
106 1.1 fvdl #ifdef INET6
107 1.1 fvdl { "udp6", AF_INET6, IPPROTO_UDP },
108 1.1 fvdl { "tcp6", AF_INET6, IPPROTO_TCP },
109 1.1 fvdl #endif
110 1.1 fvdl { "local", AF_LOCAL, 0 }
111 1.1 fvdl };
112 1.1 fvdl
113 1.3 christos #if 0
114 1.26 matt static char *strlocase(char *);
115 1.3 christos #endif
116 1.26 matt static int getnettype(const char *);
117 1.1 fvdl
118 1.1 fvdl /*
119 1.1 fvdl * Cache the result of getrlimit(), so we don't have to do an
120 1.1 fvdl * expensive call every time.
121 1.1 fvdl */
122 1.1 fvdl int
123 1.26 matt __rpc_dtbsize(void)
124 1.1 fvdl {
125 1.1 fvdl static int tbsize;
126 1.1 fvdl struct rlimit rl;
127 1.1 fvdl
128 1.1 fvdl if (tbsize) {
129 1.1 fvdl return (tbsize);
130 1.1 fvdl }
131 1.1 fvdl if (getrlimit(RLIMIT_NOFILE, &rl) == 0) {
132 1.3 christos return (tbsize = (int)rl.rlim_max);
133 1.1 fvdl }
134 1.1 fvdl /*
135 1.1 fvdl * Something wrong. I'll try to save face by returning a
136 1.1 fvdl * pessimistic number.
137 1.1 fvdl */
138 1.1 fvdl return (32);
139 1.1 fvdl }
140 1.1 fvdl
141 1.1 fvdl
142 1.1 fvdl /*
143 1.1 fvdl * Find the appropriate buffer size
144 1.1 fvdl */
145 1.1 fvdl u_int
146 1.3 christos /*ARGSUSED*/
147 1.26 matt __rpc_get_t_size(
148 1.26 matt int af,
149 1.26 matt int proto,
150 1.26 matt int size) /* Size requested */
151 1.1 fvdl {
152 1.13 yamt int maxsize, defsize;
153 1.1 fvdl
154 1.13 yamt maxsize = 256 * 1024; /* XXX */
155 1.1 fvdl switch (proto) {
156 1.1 fvdl case IPPROTO_TCP:
157 1.13 yamt defsize = 64 * 1024; /* XXX */
158 1.1 fvdl break;
159 1.1 fvdl case IPPROTO_UDP:
160 1.13 yamt defsize = UDPMSGSIZE;
161 1.1 fvdl break;
162 1.1 fvdl default:
163 1.13 yamt defsize = RPC_MAXDATASIZE;
164 1.1 fvdl break;
165 1.1 fvdl }
166 1.1 fvdl if (size == 0)
167 1.13 yamt return defsize;
168 1.1 fvdl
169 1.1 fvdl /* Check whether the value is within the upper max limit */
170 1.1 fvdl return (size > maxsize ? (u_int)maxsize : (u_int)size);
171 1.1 fvdl }
172 1.1 fvdl
173 1.1 fvdl /*
174 1.1 fvdl * Find the appropriate address buffer size
175 1.1 fvdl */
176 1.1 fvdl u_int
177 1.26 matt __rpc_get_a_size(int af)
178 1.1 fvdl {
179 1.1 fvdl switch (af) {
180 1.1 fvdl case AF_INET:
181 1.1 fvdl return sizeof (struct sockaddr_in);
182 1.1 fvdl #ifdef INET6
183 1.1 fvdl case AF_INET6:
184 1.1 fvdl return sizeof (struct sockaddr_in6);
185 1.1 fvdl #endif
186 1.1 fvdl case AF_LOCAL:
187 1.1 fvdl return sizeof (struct sockaddr_un);
188 1.1 fvdl default:
189 1.1 fvdl break;
190 1.1 fvdl }
191 1.1 fvdl return ((u_int)RPC_MAXADDRSIZE);
192 1.1 fvdl }
193 1.1 fvdl
194 1.3 christos #if 0
195 1.1 fvdl static char *
196 1.26 matt strlocase(char *p)
197 1.1 fvdl {
198 1.1 fvdl char *t = p;
199 1.1 fvdl
200 1.5 lukem _DIAGASSERT(p != NULL);
201 1.5 lukem
202 1.1 fvdl for (; *p; p++)
203 1.1 fvdl if (isupper(*p))
204 1.1 fvdl *p = tolower(*p);
205 1.1 fvdl return (t);
206 1.1 fvdl }
207 1.3 christos #endif
208 1.1 fvdl
209 1.1 fvdl /*
210 1.1 fvdl * Returns the type of the network as defined in <rpc/nettype.h>
211 1.1 fvdl * If nettype is NULL, it defaults to NETPATH.
212 1.1 fvdl */
213 1.1 fvdl static int
214 1.26 matt getnettype(const char *nettype)
215 1.1 fvdl {
216 1.1 fvdl int i;
217 1.1 fvdl
218 1.16 fvdl if ((nettype == NULL) || (nettype[0] == 0)) {
219 1.1 fvdl return (_RPC_NETPATH); /* Default */
220 1.1 fvdl }
221 1.1 fvdl
222 1.3 christos #if 0
223 1.1 fvdl nettype = strlocase(nettype);
224 1.3 christos #endif
225 1.1 fvdl for (i = 0; _rpctypelist[i].name; i++)
226 1.3 christos if (strcasecmp(nettype, _rpctypelist[i].name) == 0) {
227 1.1 fvdl return (_rpctypelist[i].type);
228 1.1 fvdl }
229 1.1 fvdl return (_rpctypelist[i].type);
230 1.1 fvdl }
231 1.1 fvdl
232 1.1 fvdl /*
233 1.1 fvdl * For the given nettype (tcp or udp only), return the first structure found.
234 1.1 fvdl * This should be freed by calling freenetconfigent()
235 1.1 fvdl */
236 1.12 thorpej
237 1.12 thorpej #ifdef _REENTRANT
238 1.12 thorpej static thread_key_t tcp_key, udp_key;
239 1.12 thorpej static once_t __rpc_getconfigp_once = ONCE_INITIALIZER;
240 1.12 thorpej
241 1.12 thorpej static void
242 1.12 thorpej __rpc_getconfigp_setup(void)
243 1.12 thorpej {
244 1.12 thorpej
245 1.12 thorpej thr_keycreate(&tcp_key, free);
246 1.12 thorpej thr_keycreate(&udp_key, free);
247 1.12 thorpej }
248 1.12 thorpej #endif
249 1.12 thorpej
250 1.1 fvdl struct netconfig *
251 1.26 matt __rpc_getconfip(const char *nettype)
252 1.1 fvdl {
253 1.1 fvdl char *netid;
254 1.23 christos char *netid_tcp = NULL;
255 1.23 christos char *netid_udp = NULL;
256 1.1 fvdl static char *netid_tcp_main;
257 1.1 fvdl static char *netid_udp_main;
258 1.1 fvdl struct netconfig *dummy;
259 1.12 thorpej #ifdef _REENTRANT
260 1.12 thorpej if (__isthreaded == 0) {
261 1.1 fvdl netid_udp = netid_udp_main;
262 1.1 fvdl netid_tcp = netid_tcp_main;
263 1.1 fvdl } else {
264 1.12 thorpej thr_once(&__rpc_getconfigp_once, __rpc_getconfigp_setup);
265 1.12 thorpej netid_tcp = thr_getspecific(tcp_key);
266 1.12 thorpej netid_udp = thr_getspecific(udp_key);
267 1.1 fvdl }
268 1.1 fvdl #else
269 1.1 fvdl netid_udp = netid_udp_main;
270 1.1 fvdl netid_tcp = netid_tcp_main;
271 1.1 fvdl #endif
272 1.5 lukem
273 1.5 lukem _DIAGASSERT(nettype != NULL);
274 1.5 lukem
275 1.1 fvdl if (!netid_udp && !netid_tcp) {
276 1.1 fvdl struct netconfig *nconf;
277 1.1 fvdl void *confighandle;
278 1.1 fvdl
279 1.1 fvdl if (!(confighandle = setnetconfig())) {
280 1.2 assar syslog (LOG_ERR, "rpc: failed to open " NETCONFIG);
281 1.1 fvdl return (NULL);
282 1.1 fvdl }
283 1.3 christos while ((nconf = getnetconfig(confighandle)) != NULL) {
284 1.1 fvdl if (strcmp(nconf->nc_protofmly, NC_INET) == 0) {
285 1.1 fvdl if (strcmp(nconf->nc_proto, NC_TCP) == 0) {
286 1.1 fvdl netid_tcp = strdup(nconf->nc_netid);
287 1.23 christos if (netid_tcp == NULL)
288 1.23 christos return NULL;
289 1.12 thorpej #ifdef _REENTRANT
290 1.12 thorpej if (__isthreaded == 0)
291 1.1 fvdl netid_tcp_main = netid_tcp;
292 1.1 fvdl else
293 1.1 fvdl thr_setspecific(tcp_key,
294 1.1 fvdl (void *) netid_tcp);
295 1.1 fvdl #else
296 1.1 fvdl netid_tcp_main = netid_tcp;
297 1.1 fvdl #endif
298 1.1 fvdl } else
299 1.1 fvdl if (strcmp(nconf->nc_proto, NC_UDP) == 0) {
300 1.1 fvdl netid_udp = strdup(nconf->nc_netid);
301 1.23 christos if (netid_udp == NULL)
302 1.23 christos return NULL;
303 1.12 thorpej #ifdef _REENTRANT
304 1.12 thorpej if (__isthreaded == 0)
305 1.1 fvdl netid_udp_main = netid_udp;
306 1.1 fvdl else
307 1.1 fvdl thr_setspecific(udp_key,
308 1.1 fvdl (void *) netid_udp);
309 1.1 fvdl #else
310 1.1 fvdl netid_udp_main = netid_udp;
311 1.1 fvdl #endif
312 1.1 fvdl }
313 1.1 fvdl }
314 1.1 fvdl }
315 1.1 fvdl endnetconfig(confighandle);
316 1.1 fvdl }
317 1.1 fvdl if (strcmp(nettype, "udp") == 0)
318 1.1 fvdl netid = netid_udp;
319 1.1 fvdl else if (strcmp(nettype, "tcp") == 0)
320 1.1 fvdl netid = netid_tcp;
321 1.1 fvdl else {
322 1.3 christos return (NULL);
323 1.1 fvdl }
324 1.16 fvdl if ((netid == NULL) || (netid[0] == 0)) {
325 1.3 christos return (NULL);
326 1.1 fvdl }
327 1.1 fvdl dummy = getnetconfigent(netid);
328 1.1 fvdl return (dummy);
329 1.1 fvdl }
330 1.1 fvdl
331 1.1 fvdl /*
332 1.1 fvdl * Returns the type of the nettype, which should then be used with
333 1.1 fvdl * __rpc_getconf().
334 1.1 fvdl */
335 1.1 fvdl void *
336 1.26 matt __rpc_setconf(const char *nettype)
337 1.1 fvdl {
338 1.1 fvdl struct handle *handle;
339 1.1 fvdl
340 1.5 lukem /* nettype may be NULL; getnettype() supports that */
341 1.5 lukem
342 1.23 christos handle = malloc(sizeof(*handle));
343 1.1 fvdl if (handle == NULL) {
344 1.1 fvdl return (NULL);
345 1.1 fvdl }
346 1.1 fvdl switch (handle->nettype = getnettype(nettype)) {
347 1.1 fvdl case _RPC_NETPATH:
348 1.1 fvdl case _RPC_CIRCUIT_N:
349 1.1 fvdl case _RPC_DATAGRAM_N:
350 1.1 fvdl if (!(handle->nhandle = setnetpath())) {
351 1.1 fvdl free(handle);
352 1.1 fvdl return (NULL);
353 1.1 fvdl }
354 1.1 fvdl handle->nflag = TRUE;
355 1.1 fvdl break;
356 1.1 fvdl case _RPC_VISIBLE:
357 1.1 fvdl case _RPC_CIRCUIT_V:
358 1.1 fvdl case _RPC_DATAGRAM_V:
359 1.1 fvdl case _RPC_TCP:
360 1.1 fvdl case _RPC_UDP:
361 1.1 fvdl if (!(handle->nhandle = setnetconfig())) {
362 1.2 assar syslog (LOG_ERR, "rpc: failed to open " NETCONFIG);
363 1.1 fvdl free(handle);
364 1.1 fvdl return (NULL);
365 1.1 fvdl }
366 1.1 fvdl handle->nflag = FALSE;
367 1.1 fvdl break;
368 1.1 fvdl default:
369 1.21 christos free(handle);
370 1.1 fvdl return (NULL);
371 1.1 fvdl }
372 1.1 fvdl
373 1.1 fvdl return (handle);
374 1.1 fvdl }
375 1.1 fvdl
376 1.1 fvdl /*
377 1.1 fvdl * Returns the next netconfig struct for the given "net" type.
378 1.1 fvdl * __rpc_setconf() should have been called previously.
379 1.1 fvdl */
380 1.1 fvdl struct netconfig *
381 1.26 matt __rpc_getconf(void *vhandle)
382 1.1 fvdl {
383 1.1 fvdl struct handle *handle;
384 1.1 fvdl struct netconfig *nconf;
385 1.1 fvdl
386 1.1 fvdl handle = (struct handle *)vhandle;
387 1.1 fvdl if (handle == NULL) {
388 1.1 fvdl return (NULL);
389 1.1 fvdl }
390 1.3 christos for (;;) {
391 1.1 fvdl if (handle->nflag)
392 1.1 fvdl nconf = getnetpath(handle->nhandle);
393 1.1 fvdl else
394 1.1 fvdl nconf = getnetconfig(handle->nhandle);
395 1.3 christos if (nconf == NULL)
396 1.1 fvdl break;
397 1.1 fvdl if ((nconf->nc_semantics != NC_TPI_CLTS) &&
398 1.1 fvdl (nconf->nc_semantics != NC_TPI_COTS) &&
399 1.1 fvdl (nconf->nc_semantics != NC_TPI_COTS_ORD))
400 1.1 fvdl continue;
401 1.1 fvdl switch (handle->nettype) {
402 1.1 fvdl case _RPC_VISIBLE:
403 1.1 fvdl if (!(nconf->nc_flag & NC_VISIBLE))
404 1.1 fvdl continue;
405 1.1 fvdl /* FALLTHROUGH */
406 1.1 fvdl case _RPC_NETPATH: /* Be happy */
407 1.1 fvdl break;
408 1.1 fvdl case _RPC_CIRCUIT_V:
409 1.1 fvdl if (!(nconf->nc_flag & NC_VISIBLE))
410 1.1 fvdl continue;
411 1.1 fvdl /* FALLTHROUGH */
412 1.1 fvdl case _RPC_CIRCUIT_N:
413 1.1 fvdl if ((nconf->nc_semantics != NC_TPI_COTS) &&
414 1.1 fvdl (nconf->nc_semantics != NC_TPI_COTS_ORD))
415 1.1 fvdl continue;
416 1.1 fvdl break;
417 1.1 fvdl case _RPC_DATAGRAM_V:
418 1.1 fvdl if (!(nconf->nc_flag & NC_VISIBLE))
419 1.1 fvdl continue;
420 1.1 fvdl /* FALLTHROUGH */
421 1.1 fvdl case _RPC_DATAGRAM_N:
422 1.1 fvdl if (nconf->nc_semantics != NC_TPI_CLTS)
423 1.1 fvdl continue;
424 1.1 fvdl break;
425 1.1 fvdl case _RPC_TCP:
426 1.1 fvdl if (((nconf->nc_semantics != NC_TPI_COTS) &&
427 1.1 fvdl (nconf->nc_semantics != NC_TPI_COTS_ORD)) ||
428 1.1 fvdl (strcmp(nconf->nc_protofmly, NC_INET)
429 1.1 fvdl #ifdef INET6
430 1.1 fvdl && strcmp(nconf->nc_protofmly, NC_INET6))
431 1.1 fvdl #else
432 1.1 fvdl )
433 1.1 fvdl #endif
434 1.1 fvdl ||
435 1.1 fvdl strcmp(nconf->nc_proto, NC_TCP))
436 1.1 fvdl continue;
437 1.1 fvdl break;
438 1.1 fvdl case _RPC_UDP:
439 1.1 fvdl if ((nconf->nc_semantics != NC_TPI_CLTS) ||
440 1.1 fvdl (strcmp(nconf->nc_protofmly, NC_INET)
441 1.1 fvdl #ifdef INET6
442 1.1 fvdl && strcmp(nconf->nc_protofmly, NC_INET6))
443 1.1 fvdl #else
444 1.1 fvdl )
445 1.1 fvdl #endif
446 1.1 fvdl ||
447 1.1 fvdl strcmp(nconf->nc_proto, NC_UDP))
448 1.1 fvdl continue;
449 1.1 fvdl break;
450 1.1 fvdl }
451 1.1 fvdl break;
452 1.1 fvdl }
453 1.1 fvdl return (nconf);
454 1.1 fvdl }
455 1.1 fvdl
456 1.1 fvdl void
457 1.26 matt __rpc_endconf(void *vhandle)
458 1.1 fvdl {
459 1.1 fvdl struct handle *handle;
460 1.1 fvdl
461 1.1 fvdl handle = (struct handle *) vhandle;
462 1.1 fvdl if (handle == NULL) {
463 1.1 fvdl return;
464 1.1 fvdl }
465 1.1 fvdl if (handle->nflag) {
466 1.1 fvdl endnetpath(handle->nhandle);
467 1.1 fvdl } else {
468 1.1 fvdl endnetconfig(handle->nhandle);
469 1.1 fvdl }
470 1.1 fvdl free(handle);
471 1.1 fvdl }
472 1.1 fvdl
473 1.1 fvdl /*
474 1.1 fvdl * Used to ping the NULL procedure for clnt handle.
475 1.1 fvdl * Returns NULL if fails, else a non-NULL pointer.
476 1.1 fvdl */
477 1.1 fvdl void *
478 1.26 matt rpc_nullproc(CLIENT *clnt)
479 1.1 fvdl {
480 1.1 fvdl struct timeval TIMEOUT = {25, 0};
481 1.1 fvdl
482 1.3 christos if (clnt_call(clnt, NULLPROC, (xdrproc_t) xdr_void, NULL,
483 1.3 christos (xdrproc_t) xdr_void, NULL, TIMEOUT) != RPC_SUCCESS) {
484 1.3 christos return (NULL);
485 1.1 fvdl }
486 1.1 fvdl return ((void *) clnt);
487 1.1 fvdl }
488 1.1 fvdl
489 1.1 fvdl /*
490 1.1 fvdl * Try all possible transports until
491 1.1 fvdl * one succeeds in finding the netconf for the given fd.
492 1.1 fvdl */
493 1.1 fvdl struct netconfig *
494 1.26 matt __rpcgettp(int fd)
495 1.1 fvdl {
496 1.1 fvdl const char *netid;
497 1.1 fvdl struct __rpc_sockinfo si;
498 1.1 fvdl
499 1.1 fvdl if (!__rpc_fd2sockinfo(fd, &si))
500 1.1 fvdl return NULL;
501 1.1 fvdl
502 1.1 fvdl if (!__rpc_sockinfo2netid(&si, &netid))
503 1.1 fvdl return NULL;
504 1.1 fvdl
505 1.20 christos return getnetconfigent(__UNCONST(netid));
506 1.1 fvdl }
507 1.1 fvdl
508 1.1 fvdl int
509 1.1 fvdl __rpc_fd2sockinfo(int fd, struct __rpc_sockinfo *sip)
510 1.1 fvdl {
511 1.1 fvdl socklen_t len;
512 1.1 fvdl int type, proto;
513 1.1 fvdl struct sockaddr_storage ss;
514 1.1 fvdl
515 1.5 lukem _DIAGASSERT(sip != NULL);
516 1.5 lukem
517 1.1 fvdl len = sizeof ss;
518 1.3 christos if (getsockname(fd, (struct sockaddr *)(void *)&ss, &len) < 0)
519 1.1 fvdl return 0;
520 1.1 fvdl sip->si_alen = len;
521 1.1 fvdl
522 1.1 fvdl len = sizeof type;
523 1.1 fvdl if (getsockopt(fd, SOL_SOCKET, SO_TYPE, &type, &len) < 0)
524 1.1 fvdl return 0;
525 1.1 fvdl
526 1.1 fvdl /* XXX */
527 1.1 fvdl if (ss.ss_family != AF_LOCAL) {
528 1.1 fvdl if (type == SOCK_STREAM)
529 1.1 fvdl proto = IPPROTO_TCP;
530 1.1 fvdl else if (type == SOCK_DGRAM)
531 1.1 fvdl proto = IPPROTO_UDP;
532 1.1 fvdl else
533 1.1 fvdl return 0;
534 1.1 fvdl } else
535 1.1 fvdl proto = 0;
536 1.1 fvdl
537 1.1 fvdl sip->si_af = ss.ss_family;
538 1.1 fvdl sip->si_proto = proto;
539 1.1 fvdl sip->si_socktype = type;
540 1.1 fvdl
541 1.1 fvdl return 1;
542 1.1 fvdl }
543 1.1 fvdl
544 1.1 fvdl /*
545 1.1 fvdl * Linear search, but the number of entries is small.
546 1.1 fvdl */
547 1.1 fvdl int
548 1.1 fvdl __rpc_nconf2sockinfo(const struct netconfig *nconf, struct __rpc_sockinfo *sip)
549 1.1 fvdl {
550 1.11 thorpej size_t i;
551 1.1 fvdl
552 1.5 lukem _DIAGASSERT(nconf != NULL);
553 1.5 lukem _DIAGASSERT(sip != NULL);
554 1.5 lukem
555 1.1 fvdl for (i = 0; i < (sizeof na_cvt) / (sizeof (struct netid_af)); i++)
556 1.1 fvdl if (!strcmp(na_cvt[i].netid, nconf->nc_netid)) {
557 1.1 fvdl sip->si_af = na_cvt[i].af;
558 1.1 fvdl sip->si_proto = na_cvt[i].protocol;
559 1.1 fvdl sip->si_socktype =
560 1.3 christos __rpc_seman2socktype((int)nconf->nc_semantics);
561 1.1 fvdl if (sip->si_socktype == -1)
562 1.1 fvdl return 0;
563 1.1 fvdl sip->si_alen = __rpc_get_a_size(sip->si_af);
564 1.1 fvdl return 1;
565 1.1 fvdl }
566 1.1 fvdl
567 1.1 fvdl return 0;
568 1.1 fvdl }
569 1.1 fvdl
570 1.1 fvdl int
571 1.1 fvdl __rpc_nconf2fd(const struct netconfig *nconf)
572 1.1 fvdl {
573 1.1 fvdl struct __rpc_sockinfo si;
574 1.1 fvdl
575 1.5 lukem _DIAGASSERT(nconf != NULL);
576 1.5 lukem
577 1.1 fvdl if (!__rpc_nconf2sockinfo(nconf, &si))
578 1.1 fvdl return 0;
579 1.1 fvdl
580 1.1 fvdl return socket(si.si_af, si.si_socktype, si.si_proto);
581 1.1 fvdl }
582 1.1 fvdl
583 1.1 fvdl int
584 1.1 fvdl __rpc_sockinfo2netid(struct __rpc_sockinfo *sip, const char **netid)
585 1.1 fvdl {
586 1.11 thorpej size_t i;
587 1.1 fvdl
588 1.5 lukem _DIAGASSERT(sip != NULL);
589 1.5 lukem /* netid may be NULL */
590 1.5 lukem
591 1.1 fvdl for (i = 0; i < (sizeof na_cvt) / (sizeof (struct netid_af)); i++)
592 1.1 fvdl if (na_cvt[i].af == sip->si_af &&
593 1.1 fvdl na_cvt[i].protocol == sip->si_proto) {
594 1.1 fvdl if (netid)
595 1.1 fvdl *netid = na_cvt[i].netid;
596 1.1 fvdl return 1;
597 1.1 fvdl }
598 1.1 fvdl
599 1.1 fvdl return 0;
600 1.1 fvdl }
601 1.1 fvdl
602 1.1 fvdl char *
603 1.1 fvdl taddr2uaddr(const struct netconfig *nconf, const struct netbuf *nbuf)
604 1.1 fvdl {
605 1.1 fvdl struct __rpc_sockinfo si;
606 1.1 fvdl
607 1.5 lukem _DIAGASSERT(nconf != NULL);
608 1.5 lukem _DIAGASSERT(nbuf != NULL);
609 1.5 lukem
610 1.1 fvdl if (!__rpc_nconf2sockinfo(nconf, &si))
611 1.1 fvdl return NULL;
612 1.1 fvdl return __rpc_taddr2uaddr_af(si.si_af, nbuf);
613 1.1 fvdl }
614 1.1 fvdl
615 1.1 fvdl struct netbuf *
616 1.1 fvdl uaddr2taddr(const struct netconfig *nconf, const char *uaddr)
617 1.1 fvdl {
618 1.1 fvdl struct __rpc_sockinfo si;
619 1.5 lukem
620 1.5 lukem _DIAGASSERT(nconf != NULL);
621 1.5 lukem _DIAGASSERT(uaddr != NULL);
622 1.1 fvdl
623 1.1 fvdl if (!__rpc_nconf2sockinfo(nconf, &si))
624 1.1 fvdl return NULL;
625 1.1 fvdl return __rpc_uaddr2taddr_af(si.si_af, uaddr);
626 1.1 fvdl }
627 1.1 fvdl
628 1.1 fvdl char *
629 1.1 fvdl __rpc_taddr2uaddr_af(int af, const struct netbuf *nbuf)
630 1.1 fvdl {
631 1.1 fvdl char *ret;
632 1.9 lukem struct sockaddr_in *sinp;
633 1.1 fvdl struct sockaddr_un *sun;
634 1.1 fvdl char namebuf[INET_ADDRSTRLEN];
635 1.1 fvdl #ifdef INET6
636 1.1 fvdl struct sockaddr_in6 *sin6;
637 1.1 fvdl char namebuf6[INET6_ADDRSTRLEN];
638 1.1 fvdl #endif
639 1.1 fvdl u_int16_t port;
640 1.1 fvdl
641 1.5 lukem _DIAGASSERT(nbuf != NULL);
642 1.5 lukem
643 1.1 fvdl switch (af) {
644 1.1 fvdl case AF_INET:
645 1.9 lukem sinp = nbuf->buf;
646 1.25 christos if (inet_ntop(af, &sinp->sin_addr, namebuf,
647 1.25 christos (socklen_t)sizeof namebuf) == NULL)
648 1.1 fvdl return NULL;
649 1.9 lukem port = ntohs(sinp->sin_port);
650 1.3 christos if (asprintf(&ret, "%s.%u.%u", namebuf, ((u_int32_t)port) >> 8,
651 1.3 christos port & 0xff) < 0)
652 1.1 fvdl return NULL;
653 1.1 fvdl break;
654 1.1 fvdl #ifdef INET6
655 1.1 fvdl case AF_INET6:
656 1.1 fvdl sin6 = nbuf->buf;
657 1.25 christos if (inet_ntop(af, &sin6->sin6_addr, namebuf6,
658 1.25 christos (socklen_t)sizeof namebuf6) == NULL)
659 1.1 fvdl return NULL;
660 1.1 fvdl port = ntohs(sin6->sin6_port);
661 1.3 christos if (asprintf(&ret, "%s.%u.%u", namebuf6, ((u_int32_t)port) >> 8,
662 1.3 christos port & 0xff) < 0)
663 1.1 fvdl return NULL;
664 1.1 fvdl break;
665 1.1 fvdl #endif
666 1.1 fvdl case AF_LOCAL:
667 1.1 fvdl sun = nbuf->buf;
668 1.1 fvdl sun->sun_path[sizeof(sun->sun_path) - 1] = '\0'; /* safety */
669 1.1 fvdl ret = strdup(sun->sun_path);
670 1.1 fvdl break;
671 1.1 fvdl default:
672 1.1 fvdl return NULL;
673 1.1 fvdl }
674 1.1 fvdl
675 1.1 fvdl return ret;
676 1.1 fvdl }
677 1.1 fvdl
678 1.1 fvdl struct netbuf *
679 1.1 fvdl __rpc_uaddr2taddr_af(int af, const char *uaddr)
680 1.1 fvdl {
681 1.1 fvdl struct netbuf *ret = NULL;
682 1.1 fvdl char *addrstr, *p;
683 1.1 fvdl unsigned port, portlo, porthi;
684 1.25 christos size_t len;
685 1.9 lukem struct sockaddr_in *sinp;
686 1.1 fvdl #ifdef INET6
687 1.1 fvdl struct sockaddr_in6 *sin6;
688 1.1 fvdl #endif
689 1.1 fvdl struct sockaddr_un *sun;
690 1.1 fvdl
691 1.5 lukem _DIAGASSERT(uaddr != NULL);
692 1.5 lukem
693 1.1 fvdl addrstr = strdup(uaddr);
694 1.1 fvdl if (addrstr == NULL)
695 1.1 fvdl return NULL;
696 1.1 fvdl
697 1.1 fvdl /*
698 1.1 fvdl * AF_LOCAL addresses are expected to be absolute
699 1.1 fvdl * pathnames, anything else will be AF_INET or AF_INET6.
700 1.1 fvdl */
701 1.19 lukem port = 0;
702 1.1 fvdl if (*addrstr != '/') {
703 1.1 fvdl p = strrchr(addrstr, '.');
704 1.1 fvdl if (p == NULL)
705 1.1 fvdl goto out;
706 1.1 fvdl portlo = (unsigned)atoi(p + 1);
707 1.1 fvdl *p = '\0';
708 1.1 fvdl
709 1.1 fvdl p = strrchr(addrstr, '.');
710 1.1 fvdl if (p == NULL)
711 1.1 fvdl goto out;
712 1.1 fvdl porthi = (unsigned)atoi(p + 1);
713 1.1 fvdl *p = '\0';
714 1.1 fvdl port = (porthi << 8) | portlo;
715 1.1 fvdl }
716 1.1 fvdl
717 1.23 christos ret = malloc(sizeof(*ret));
718 1.8 kristerw if (ret == NULL)
719 1.8 kristerw goto out;
720 1.1 fvdl
721 1.1 fvdl switch (af) {
722 1.1 fvdl case AF_INET:
723 1.23 christos sinp = malloc(sizeof(*sinp));
724 1.9 lukem if (sinp == NULL)
725 1.1 fvdl goto out;
726 1.9 lukem memset(sinp, 0, sizeof *sinp);
727 1.9 lukem sinp->sin_family = AF_INET;
728 1.9 lukem sinp->sin_port = htons(port);
729 1.9 lukem if (inet_pton(AF_INET, addrstr, &sinp->sin_addr) <= 0) {
730 1.9 lukem free(sinp);
731 1.1 fvdl free(ret);
732 1.1 fvdl ret = NULL;
733 1.1 fvdl goto out;
734 1.1 fvdl }
735 1.9 lukem sinp->sin_len = ret->maxlen = ret->len = sizeof *sinp;
736 1.9 lukem ret->buf = sinp;
737 1.1 fvdl break;
738 1.1 fvdl #ifdef INET6
739 1.1 fvdl case AF_INET6:
740 1.23 christos sin6 = malloc(sizeof(*sin6));
741 1.1 fvdl if (sin6 == NULL)
742 1.1 fvdl goto out;
743 1.1 fvdl memset(sin6, 0, sizeof *sin6);
744 1.1 fvdl sin6->sin6_family = AF_INET6;
745 1.1 fvdl sin6->sin6_port = htons(port);
746 1.1 fvdl if (inet_pton(AF_INET6, addrstr, &sin6->sin6_addr) <= 0) {
747 1.8 kristerw free(sin6);
748 1.1 fvdl free(ret);
749 1.1 fvdl ret = NULL;
750 1.1 fvdl goto out;
751 1.1 fvdl }
752 1.1 fvdl sin6->sin6_len = ret->maxlen = ret->len = sizeof *sin6;
753 1.1 fvdl ret->buf = sin6;
754 1.1 fvdl break;
755 1.1 fvdl #endif
756 1.1 fvdl case AF_LOCAL:
757 1.23 christos sun = malloc(sizeof(*sun));
758 1.1 fvdl if (sun == NULL)
759 1.1 fvdl goto out;
760 1.1 fvdl memset(sun, 0, sizeof *sun);
761 1.1 fvdl sun->sun_family = AF_LOCAL;
762 1.1 fvdl strncpy(sun->sun_path, addrstr, sizeof(sun->sun_path) - 1);
763 1.25 christos len = SUN_LEN(sun);
764 1.25 christos _DIAGASSERT(__type_fit(uint8_t, len));
765 1.25 christos ret->len = ret->maxlen = sun->sun_len = (uint8_t)len;
766 1.7 fvdl ret->buf = sun;
767 1.3 christos break;
768 1.1 fvdl default:
769 1.1 fvdl break;
770 1.1 fvdl }
771 1.1 fvdl out:
772 1.1 fvdl free(addrstr);
773 1.1 fvdl return ret;
774 1.1 fvdl }
775 1.1 fvdl
776 1.1 fvdl int
777 1.1 fvdl __rpc_seman2socktype(int semantics)
778 1.1 fvdl {
779 1.1 fvdl switch (semantics) {
780 1.1 fvdl case NC_TPI_CLTS:
781 1.1 fvdl return SOCK_DGRAM;
782 1.1 fvdl case NC_TPI_COTS_ORD:
783 1.1 fvdl return SOCK_STREAM;
784 1.1 fvdl case NC_TPI_RAW:
785 1.1 fvdl return SOCK_RAW;
786 1.1 fvdl default:
787 1.1 fvdl break;
788 1.1 fvdl }
789 1.1 fvdl
790 1.1 fvdl return -1;
791 1.1 fvdl }
792 1.1 fvdl
793 1.1 fvdl int
794 1.1 fvdl __rpc_socktype2seman(int socktype)
795 1.1 fvdl {
796 1.1 fvdl switch (socktype) {
797 1.1 fvdl case SOCK_DGRAM:
798 1.1 fvdl return NC_TPI_CLTS;
799 1.1 fvdl case SOCK_STREAM:
800 1.1 fvdl return NC_TPI_COTS_ORD;
801 1.1 fvdl case SOCK_RAW:
802 1.1 fvdl return NC_TPI_RAW;
803 1.1 fvdl default:
804 1.1 fvdl break;
805 1.1 fvdl }
806 1.1 fvdl
807 1.1 fvdl return -1;
808 1.1 fvdl }
809 1.1 fvdl
810 1.1 fvdl /*
811 1.1 fvdl * XXXX - IPv6 scope IDs can't be handled in universal addresses.
812 1.1 fvdl * Here, we compare the original server address to that of the RPC
813 1.1 fvdl * service we just received back from a call to rpcbind on the remote
814 1.1 fvdl * machine. If they are both "link local" or "site local", copy
815 1.1 fvdl * the scope id of the server address over to the service address.
816 1.1 fvdl */
817 1.17 lukem /* ARGSUSED */
818 1.1 fvdl int
819 1.1 fvdl __rpc_fixup_addr(struct netbuf *new, const struct netbuf *svc)
820 1.1 fvdl {
821 1.1 fvdl #ifdef INET6
822 1.1 fvdl struct sockaddr *sa_new, *sa_svc;
823 1.1 fvdl struct sockaddr_in6 *sin6_new, *sin6_svc;
824 1.5 lukem
825 1.5 lukem _DIAGASSERT(new != NULL);
826 1.5 lukem _DIAGASSERT(svc != NULL);
827 1.1 fvdl
828 1.1 fvdl sa_svc = (struct sockaddr *)svc->buf;
829 1.1 fvdl sa_new = (struct sockaddr *)new->buf;
830 1.1 fvdl
831 1.1 fvdl if (sa_new->sa_family == sa_svc->sa_family &&
832 1.1 fvdl sa_new->sa_family == AF_INET6) {
833 1.1 fvdl sin6_new = (struct sockaddr_in6 *)new->buf;
834 1.1 fvdl sin6_svc = (struct sockaddr_in6 *)svc->buf;
835 1.1 fvdl
836 1.1 fvdl if ((IN6_IS_ADDR_LINKLOCAL(&sin6_new->sin6_addr) &&
837 1.1 fvdl IN6_IS_ADDR_LINKLOCAL(&sin6_svc->sin6_addr)) ||
838 1.1 fvdl (IN6_IS_ADDR_SITELOCAL(&sin6_new->sin6_addr) &&
839 1.1 fvdl IN6_IS_ADDR_SITELOCAL(&sin6_svc->sin6_addr))) {
840 1.1 fvdl sin6_new->sin6_scope_id = sin6_svc->sin6_scope_id;
841 1.1 fvdl }
842 1.1 fvdl }
843 1.1 fvdl #endif
844 1.1 fvdl return 1;
845 1.1 fvdl }
846 1.1 fvdl
847 1.1 fvdl int
848 1.1 fvdl __rpc_sockisbound(int fd)
849 1.1 fvdl {
850 1.1 fvdl struct sockaddr_storage ss;
851 1.1 fvdl socklen_t slen;
852 1.1 fvdl
853 1.1 fvdl slen = sizeof (struct sockaddr_storage);
854 1.3 christos if (getsockname(fd, (struct sockaddr *)(void *)&ss, &slen) < 0)
855 1.1 fvdl return 0;
856 1.1 fvdl
857 1.1 fvdl switch (ss.ss_family) {
858 1.1 fvdl case AF_INET:
859 1.3 christos return (((struct sockaddr_in *)
860 1.3 christos (void *)&ss)->sin_port != 0);
861 1.1 fvdl #ifdef INET6
862 1.1 fvdl case AF_INET6:
863 1.3 christos return (((struct sockaddr_in6 *)
864 1.3 christos (void *)&ss)->sin6_port != 0);
865 1.1 fvdl #endif
866 1.1 fvdl case AF_LOCAL:
867 1.1 fvdl /* XXX check this */
868 1.3 christos return (((struct sockaddr_un *)
869 1.3 christos (void *)&ss)->sun_path[0] != '\0');
870 1.1 fvdl default:
871 1.1 fvdl break;
872 1.1 fvdl }
873 1.1 fvdl
874 1.1 fvdl return 0;
875 1.1 fvdl }
876 1.22 christos
877 1.22 christos /*
878 1.22 christos * For TCP transport, Host Requirements RFCs mandate
879 1.22 christos * Nagle (RFC-896) processing. But for RPC, Nagle
880 1.22 christos * processing adds adds unwanted latency to the last,
881 1.22 christos * partial TCP segment of each RPC message. See:
882 1.22 christos * R. W. Scheifler and J. Gettys, The X Window System,
883 1.22 christos * ACM Transactions on Graphics 16:8 (Aug. 1983), pp. 57-69.
884 1.22 christos * So for TCP transport, disable Nagle via TCP_NODELAY.
885 1.22 christos * XXX: moral equivalent for non-TCP protocols?
886 1.22 christos */
887 1.22 christos int
888 1.22 christos __rpc_setnodelay(int fd, const struct __rpc_sockinfo *si)
889 1.22 christos {
890 1.22 christos int one = 1;
891 1.22 christos if (si->si_proto != IPPROTO_TCP)
892 1.22 christos return 0;
893 1.25 christos return setsockopt(fd, si->si_proto, TCP_NODELAY, &one,
894 1.25 christos (socklen_t)sizeof(one));
895 1.22 christos }
896