svc_vc.c revision 92941
1/*	$NetBSD: svc_vc.c,v 1.7 2000/08/03 00:01:53 fvdl Exp $	*/
2/*	$FreeBSD: head/lib/libc/rpc/svc_vc.c 92941 2002-03-22 09:22:15Z obrien $ */
3
4/*
5 * Sun RPC is a product of Sun Microsystems, Inc. and is provided for
6 * unrestricted use provided that this legend is included on all tape
7 * media and as a part of the software program in whole or part.  Users
8 * may copy or modify Sun RPC without charge, but are not authorized
9 * to license or distribute it to anyone else except as part of a product or
10 * program developed by the user.
11 *
12 * SUN RPC IS PROVIDED AS IS WITH NO WARRANTIES OF ANY KIND INCLUDING THE
13 * WARRANTIES OF DESIGN, MERCHANTIBILITY AND FITNESS FOR A PARTICULAR
14 * PURPOSE, OR ARISING FROM A COURSE OF DEALING, USAGE OR TRADE PRACTICE.
15 *
16 * Sun RPC is provided with no support and without any obligation on the
17 * part of Sun Microsystems, Inc. to assist in its use, correction,
18 * modification or enhancement.
19 *
20 * SUN MICROSYSTEMS, INC. SHALL HAVE NO LIABILITY WITH RESPECT TO THE
21 * INFRINGEMENT OF COPYRIGHTS, TRADE SECRETS OR ANY PATENTS BY SUN RPC
22 * OR ANY PART THEREOF.
23 *
24 * In no event will Sun Microsystems, Inc. be liable for any lost revenue
25 * or profits or other special, indirect and consequential damages, even if
26 * Sun has been advised of the possibility of such damages.
27 *
28 * Sun Microsystems, Inc.
29 * 2550 Garcia Avenue
30 * Mountain View, California  94043
31 */
32
33#include <sys/cdefs.h>
34#if defined(LIBC_SCCS) && !defined(lint)
35static char *sccsid = "@(#)svc_tcp.c 1.21 87/08/11 Copyr 1984 Sun Micro";
36static char *sccsid = "@(#)svc_tcp.c	2.2 88/08/01 4.0 RPCSRC";
37#endif
38
39/*
40 * svc_vc.c, Server side for Connection Oriented based RPC.
41 *
42 * Actually implements two flavors of transporter -
43 * a tcp rendezvouser (a listner and connection establisher)
44 * and a record/tcp stream.
45 */
46
47#include "namespace.h"
48#include "reentrant.h"
49#include <sys/types.h>
50#include <sys/param.h>
51#include <sys/poll.h>
52#include <sys/socket.h>
53#include <sys/un.h>
54#include <sys/uio.h>
55#include <netinet/in.h>
56#include <netinet/tcp.h>
57
58#include <assert.h>
59#include <err.h>
60#include <errno.h>
61#include <stdio.h>
62#include <stdlib.h>
63#include <string.h>
64#include <unistd.h>
65
66#include <rpc/rpc.h>
67
68#include "rpc_com.h"
69#include "un-namespace.h"
70
71struct cmessage {
72        struct cmsghdr cmsg;
73        struct cmsgcred cmcred;
74};
75
76static SVCXPRT *makefd_xprt(int, u_int, u_int);
77static bool_t rendezvous_request(SVCXPRT *, struct rpc_msg *);
78static enum xprt_stat rendezvous_stat(SVCXPRT *);
79static void svc_vc_destroy(SVCXPRT *);
80static int read_vc(caddr_t, caddr_t, int);
81static int write_vc(caddr_t, caddr_t, int);
82static enum xprt_stat svc_vc_stat(SVCXPRT *);
83static bool_t svc_vc_recv(SVCXPRT *, struct rpc_msg *);
84static bool_t svc_vc_getargs(SVCXPRT *, xdrproc_t, caddr_t);
85static bool_t svc_vc_freeargs(SVCXPRT *, xdrproc_t, caddr_t);
86static bool_t svc_vc_reply(SVCXPRT *, struct rpc_msg *);
87static void svc_vc_rendezvous_ops(SVCXPRT *);
88static void svc_vc_ops(SVCXPRT *);
89static bool_t svc_vc_control(SVCXPRT *xprt, const u_int rq, void *in);
90static int __msgread_withcred(int, void *, size_t, struct cmessage *);
91static int __msgwrite(int, void *, size_t);
92
93struct cf_rendezvous { /* kept in xprt->xp_p1 for rendezvouser */
94	u_int sendsize;
95	u_int recvsize;
96};
97
98struct cf_conn {  /* kept in xprt->xp_p1 for actual connection */
99	enum xprt_stat strm_stat;
100	u_int32_t x_id;
101	XDR xdrs;
102	char verf_body[MAX_AUTH_BYTES];
103};
104
105/*
106 * Usage:
107 *	xprt = svc_vc_create(sock, send_buf_size, recv_buf_size);
108 *
109 * Creates, registers, and returns a (rpc) tcp based transporter.
110 * Once *xprt is initialized, it is registered as a transporter
111 * see (svc.h, xprt_register).  This routine returns
112 * a NULL if a problem occurred.
113 *
114 * The filedescriptor passed in is expected to refer to a bound, but
115 * not yet connected socket.
116 *
117 * Since streams do buffered io similar to stdio, the caller can specify
118 * how big the send and receive buffers are via the second and third parms;
119 * 0 => use the system default.
120 */
121SVCXPRT *
122svc_vc_create(fd, sendsize, recvsize)
123	int fd;
124	u_int sendsize;
125	u_int recvsize;
126{
127	SVCXPRT *xprt;
128	struct cf_rendezvous *r = NULL;
129	struct __rpc_sockinfo si;
130	struct sockaddr_storage sslocal;
131	socklen_t slen;
132
133	r = mem_alloc(sizeof(*r));
134	if (r == NULL) {
135		warnx("svc_vc_create: out of memory");
136		goto cleanup_svc_vc_create;
137	}
138	if (!__rpc_fd2sockinfo(fd, &si))
139		return NULL;
140	r->sendsize = __rpc_get_t_size(si.si_af, si.si_proto, (int)sendsize);
141	r->recvsize = __rpc_get_t_size(si.si_af, si.si_proto, (int)recvsize);
142	xprt = mem_alloc(sizeof(SVCXPRT));
143	if (xprt == NULL) {
144		warnx("svc_vc_create: out of memory");
145		goto cleanup_svc_vc_create;
146	}
147	xprt->xp_tp = NULL;
148	xprt->xp_p1 = (caddr_t)(void *)r;
149	xprt->xp_p2 = NULL;
150	xprt->xp_p3 = NULL;
151	xprt->xp_verf = _null_auth;
152	svc_vc_rendezvous_ops(xprt);
153	xprt->xp_port = (u_short)-1;	/* It is the rendezvouser */
154	xprt->xp_fd = fd;
155
156	slen = sizeof (struct sockaddr_storage);
157	if (_getsockname(fd, (struct sockaddr *)(void *)&sslocal, &slen) < 0) {
158		warnx("svc_vc_create: could not retrieve local addr");
159		goto cleanup_svc_vc_create;
160	}
161
162	xprt->xp_ltaddr.maxlen = xprt->xp_ltaddr.len = sslocal.ss_len;
163	xprt->xp_ltaddr.buf = mem_alloc((size_t)sslocal.ss_len);
164	if (xprt->xp_ltaddr.buf == NULL) {
165		warnx("svc_vc_create: no mem for local addr");
166		goto cleanup_svc_vc_create;
167	}
168	memcpy(xprt->xp_ltaddr.buf, &sslocal, (size_t)sslocal.ss_len);
169
170	xprt->xp_rtaddr.maxlen = sizeof (struct sockaddr_storage);
171	xprt_register(xprt);
172	return (xprt);
173cleanup_svc_vc_create:
174	if (r != NULL)
175		mem_free(r, sizeof(*r));
176	return (NULL);
177}
178
179/*
180 * Like svtcp_create(), except the routine takes any *open* UNIX file
181 * descriptor as its first input.
182 */
183SVCXPRT *
184svc_fd_create(fd, sendsize, recvsize)
185	int fd;
186	u_int sendsize;
187	u_int recvsize;
188{
189	struct sockaddr_storage ss;
190	socklen_t slen;
191	SVCXPRT *ret;
192
193	assert(fd != -1);
194
195	ret = makefd_xprt(fd, sendsize, recvsize);
196	if (ret == NULL)
197		return NULL;
198
199	slen = sizeof (struct sockaddr_storage);
200	if (_getsockname(fd, (struct sockaddr *)(void *)&ss, &slen) < 0) {
201		warnx("svc_fd_create: could not retrieve local addr");
202		goto freedata;
203	}
204	ret->xp_ltaddr.maxlen = ret->xp_ltaddr.len = ss.ss_len;
205	ret->xp_ltaddr.buf = mem_alloc((size_t)ss.ss_len);
206	if (ret->xp_ltaddr.buf == NULL) {
207		warnx("svc_fd_create: no mem for local addr");
208		goto freedata;
209	}
210	memcpy(ret->xp_ltaddr.buf, &ss, (size_t)ss.ss_len);
211
212	slen = sizeof (struct sockaddr_storage);
213	if (_getpeername(fd, (struct sockaddr *)(void *)&ss, &slen) < 0) {
214		warnx("svc_fd_create: could not retrieve remote addr");
215		goto freedata;
216	}
217	ret->xp_rtaddr.maxlen = ret->xp_rtaddr.len = ss.ss_len;
218	ret->xp_rtaddr.buf = mem_alloc((size_t)ss.ss_len);
219	if (ret->xp_rtaddr.buf == NULL) {
220		warnx("svc_fd_create: no mem for local addr");
221		goto freedata;
222	}
223	memcpy(ret->xp_rtaddr.buf, &ss, (size_t)ss.ss_len);
224#ifdef PORTMAP
225	if (ss.ss_family == AF_INET || ss.ss_family == AF_LOCAL) {
226		ret->xp_raddr = *(struct sockaddr_in *)ret->xp_rtaddr.buf;
227		ret->xp_addrlen = sizeof (struct sockaddr_in);
228	}
229#endif				/* PORTMAP */
230
231	return ret;
232
233freedata:
234	if (ret->xp_ltaddr.buf != NULL)
235		mem_free(ret->xp_ltaddr.buf, rep->xp_ltaddr.maxlen);
236
237	return NULL;
238}
239
240static SVCXPRT *
241makefd_xprt(fd, sendsize, recvsize)
242	int fd;
243	u_int sendsize;
244	u_int recvsize;
245{
246	SVCXPRT *xprt;
247	struct cf_conn *cd;
248	const char *netid;
249	struct __rpc_sockinfo si;
250
251	assert(fd != -1);
252
253	xprt = mem_alloc(sizeof(SVCXPRT));
254	if (xprt == NULL) {
255		warnx("svc_vc: makefd_xprt: out of memory");
256		goto done;
257	}
258	memset(xprt, 0, sizeof *xprt);
259	cd = mem_alloc(sizeof(struct cf_conn));
260	if (cd == NULL) {
261		warnx("svc_tcp: makefd_xprt: out of memory");
262		mem_free(xprt, sizeof(SVCXPRT));
263		xprt = NULL;
264		goto done;
265	}
266	cd->strm_stat = XPRT_IDLE;
267	xdrrec_create(&(cd->xdrs), sendsize, recvsize,
268	    (caddr_t)(void *)xprt, read_vc, write_vc);
269	xprt->xp_p1 = (caddr_t)(void *)cd;
270	xprt->xp_verf.oa_base = cd->verf_body;
271	svc_vc_ops(xprt);  /* truely deals with calls */
272	xprt->xp_port = 0;  /* this is a connection, not a rendezvouser */
273	xprt->xp_fd = fd;
274        if (__rpc_fd2sockinfo(fd, &si) && __rpc_sockinfo2netid(&si, &netid))
275		xprt->xp_netid = strdup(netid);
276
277	xprt_register(xprt);
278done:
279	return (xprt);
280}
281
282/*ARGSUSED*/
283static bool_t
284rendezvous_request(xprt, msg)
285	SVCXPRT *xprt;
286	struct rpc_msg *msg;
287{
288	int sock;
289	struct cf_rendezvous *r;
290	struct sockaddr_storage addr;
291	socklen_t len;
292	struct __rpc_sockinfo si;
293
294	assert(xprt != NULL);
295	assert(msg != NULL);
296
297	r = (struct cf_rendezvous *)xprt->xp_p1;
298again:
299	len = sizeof addr;
300	if ((sock = _accept(xprt->xp_fd, (struct sockaddr *)(void *)&addr,
301	    &len)) < 0) {
302		if (errno == EINTR)
303			goto again;
304	       return (FALSE);
305	}
306	/*
307	 * make a new transporter (re-uses xprt)
308	 */
309	xprt = makefd_xprt(sock, r->sendsize, r->recvsize);
310	xprt->xp_rtaddr.buf = mem_alloc(len);
311	if (xprt->xp_rtaddr.buf == NULL)
312		return (FALSE);
313	memcpy(xprt->xp_rtaddr.buf, &addr, len);
314	xprt->xp_rtaddr.len = len;
315#ifdef PORTMAP
316	if (addr.ss_family == AF_INET || addr.ss_family == AF_LOCAL) {
317		xprt->xp_raddr = *(struct sockaddr_in *)xprt->xp_rtaddr.buf;
318		xprt->xp_addrlen = sizeof (struct sockaddr_in);
319	}
320#endif				/* PORTMAP */
321	if (__rpc_fd2sockinfo(sock, &si) && si.si_proto == IPPROTO_TCP) {
322		len = 1;
323		/* XXX fvdl - is this useful? */
324		_setsockopt(sock, IPPROTO_TCP, TCP_NODELAY, &len, sizeof (len));
325	}
326	return (FALSE); /* there is never an rpc msg to be processed */
327}
328
329/*ARGSUSED*/
330static enum xprt_stat
331rendezvous_stat(xprt)
332	SVCXPRT *xprt;
333{
334
335	return (XPRT_IDLE);
336}
337
338static void
339svc_vc_destroy(xprt)
340	SVCXPRT *xprt;
341{
342	struct cf_conn *cd;
343	struct cf_rendezvous *r;
344
345	assert(xprt != NULL);
346
347	cd = (struct cf_conn *)xprt->xp_p1;
348
349	xprt_unregister(xprt);
350	if (xprt->xp_fd != RPC_ANYFD)
351		(void)_close(xprt->xp_fd);
352	if (xprt->xp_port != 0) {
353		/* a rendezvouser socket */
354		r = (struct cf_rendezvous *)xprt->xp_p1;
355		mem_free(r, sizeof (struct cf_rendezvous));
356		xprt->xp_port = 0;
357	} else {
358		/* an actual connection socket */
359		XDR_DESTROY(&(cd->xdrs));
360		mem_free(cd, sizeof(struct cf_conn));
361	}
362	if (xprt->xp_rtaddr.buf)
363		mem_free(xprt->xp_rtaddr.buf, xprt->xp_rtaddr.maxlen);
364	if (xprt->xp_ltaddr.buf)
365		mem_free(xprt->xp_ltaddr.buf, xprt->xp_ltaddr.maxlen);
366	if (xprt->xp_tp)
367		free(xprt->xp_tp);
368	if (xprt->xp_netid)
369		free(xprt->xp_netid);
370	mem_free(xprt, sizeof(SVCXPRT));
371}
372
373/*ARGSUSED*/
374static bool_t
375svc_vc_control(xprt, rq, in)
376	SVCXPRT *xprt;
377	const u_int rq;
378	void *in;
379{
380	return (FALSE);
381}
382
383/*
384 * reads data from the tcp or uip connection.
385 * any error is fatal and the connection is closed.
386 * (And a read of zero bytes is a half closed stream => error.)
387 * All read operations timeout after 35 seconds.  A timeout is
388 * fatal for the connection.
389 */
390static int
391read_vc(xprtp, buf, len)
392	caddr_t xprtp;
393	caddr_t buf;
394	int len;
395{
396	SVCXPRT *xprt;
397	int sock;
398	int milliseconds = 35 * 1000;
399	struct pollfd pollfd;
400	struct sockaddr *sa;
401	struct cmessage *cm;
402
403	xprt = (SVCXPRT *)(void *)xprtp;
404	assert(xprt != NULL);
405
406	sock = xprt->xp_fd;
407
408	do {
409		pollfd.fd = sock;
410		pollfd.events = POLLIN;
411		pollfd.revents = 0;
412		switch (_poll(&pollfd, 1, milliseconds)) {
413		case -1:
414			if (errno == EINTR)
415				continue;
416			/*FALLTHROUGH*/
417		case 0:
418			goto fatal_err;
419
420		default:
421			break;
422		}
423	} while ((pollfd.revents & POLLIN) == 0);
424
425	cm = NULL;
426	sa = (struct sockaddr *)xprt->xp_rtaddr.buf;
427	if (sa->sa_family == AF_LOCAL) {
428		cm = (struct cmessage *)xprt->xp_verf.oa_base;
429		if ((len = __msgread_withcred(sock, buf, len, cm)) > 0) {
430			xprt->xp_p2 = &cm->cmcred;
431			return (len);
432		} else
433			goto fatal_err;
434	} else {
435		if ((len = _read(sock, buf, (size_t)len)) > 0)
436			return (len);
437	}
438
439fatal_err:
440	((struct cf_conn *)(xprt->xp_p1))->strm_stat = XPRT_DIED;
441	return (-1);
442}
443
444/*
445 * writes data to the tcp connection.
446 * Any error is fatal and the connection is closed.
447 */
448static int
449write_vc(xprtp, buf, len)
450	caddr_t xprtp;
451	caddr_t buf;
452	int len;
453{
454	SVCXPRT *xprt;
455	int i, cnt;
456	struct sockaddr *sa;
457
458	xprt = (SVCXPRT *)(void *)xprtp;
459	assert(xprt != NULL);
460
461	sa = (struct sockaddr *)xprt->xp_rtaddr.buf;
462        if (sa->sa_family == AF_LOCAL) {
463		for (cnt = len; cnt > 0; cnt -= i, buf += i) {
464			if ((i = __msgwrite(xprt->xp_fd, buf,
465			    (size_t)cnt)) < 0) {
466				((struct cf_conn *)(xprt->xp_p1))->strm_stat =
467				    XPRT_DIED;
468				return (-1);
469			}
470		}
471	} else {
472		for (cnt = len; cnt > 0; cnt -= i, buf += i) {
473			if ((i = _write(xprt->xp_fd, buf,
474			    (size_t)cnt)) < 0) {
475				((struct cf_conn *)(xprt->xp_p1))->strm_stat =
476				    XPRT_DIED;
477				return (-1);
478			}
479		}
480	}
481
482	return (len);
483}
484
485static enum xprt_stat
486svc_vc_stat(xprt)
487	SVCXPRT *xprt;
488{
489	struct cf_conn *cd;
490
491	assert(xprt != NULL);
492
493	cd = (struct cf_conn *)(xprt->xp_p1);
494
495	if (cd->strm_stat == XPRT_DIED)
496		return (XPRT_DIED);
497	if (! xdrrec_eof(&(cd->xdrs)))
498		return (XPRT_MOREREQS);
499	return (XPRT_IDLE);
500}
501
502static bool_t
503svc_vc_recv(xprt, msg)
504	SVCXPRT *xprt;
505	struct rpc_msg *msg;
506{
507	struct cf_conn *cd;
508	XDR *xdrs;
509
510	assert(xprt != NULL);
511	assert(msg != NULL);
512
513	cd = (struct cf_conn *)(xprt->xp_p1);
514	xdrs = &(cd->xdrs);
515
516	xdrs->x_op = XDR_DECODE;
517	(void)xdrrec_skiprecord(xdrs);
518	if (xdr_callmsg(xdrs, msg)) {
519		cd->x_id = msg->rm_xid;
520		return (TRUE);
521	}
522	cd->strm_stat = XPRT_DIED;
523	return (FALSE);
524}
525
526static bool_t
527svc_vc_getargs(xprt, xdr_args, args_ptr)
528	SVCXPRT *xprt;
529	xdrproc_t xdr_args;
530	caddr_t args_ptr;
531{
532
533	assert(xprt != NULL);
534	/* args_ptr may be NULL */
535	return ((*xdr_args)(&(((struct cf_conn *)(xprt->xp_p1))->xdrs),
536	    args_ptr));
537}
538
539static bool_t
540svc_vc_freeargs(xprt, xdr_args, args_ptr)
541	SVCXPRT *xprt;
542	xdrproc_t xdr_args;
543	caddr_t args_ptr;
544{
545	XDR *xdrs;
546
547	assert(xprt != NULL);
548	/* args_ptr may be NULL */
549
550	xdrs = &(((struct cf_conn *)(xprt->xp_p1))->xdrs);
551
552	xdrs->x_op = XDR_FREE;
553	return ((*xdr_args)(xdrs, args_ptr));
554}
555
556static bool_t
557svc_vc_reply(xprt, msg)
558	SVCXPRT *xprt;
559	struct rpc_msg *msg;
560{
561	struct cf_conn *cd;
562	XDR *xdrs;
563	bool_t stat;
564
565	assert(xprt != NULL);
566	assert(msg != NULL);
567
568	cd = (struct cf_conn *)(xprt->xp_p1);
569	xdrs = &(cd->xdrs);
570
571	xdrs->x_op = XDR_ENCODE;
572	msg->rm_xid = cd->x_id;
573	stat = xdr_replymsg(xdrs, msg);
574	(void)xdrrec_endofrecord(xdrs, TRUE);
575	return (stat);
576}
577
578static void
579svc_vc_ops(xprt)
580	SVCXPRT *xprt;
581{
582	static struct xp_ops ops;
583	static struct xp_ops2 ops2;
584	extern mutex_t ops_lock;
585
586/* VARIABLES PROTECTED BY ops_lock: ops, ops2 */
587
588	mutex_lock(&ops_lock);
589	if (ops.xp_recv == NULL) {
590		ops.xp_recv = svc_vc_recv;
591		ops.xp_stat = svc_vc_stat;
592		ops.xp_getargs = svc_vc_getargs;
593		ops.xp_reply = svc_vc_reply;
594		ops.xp_freeargs = svc_vc_freeargs;
595		ops.xp_destroy = svc_vc_destroy;
596		ops2.xp_control = svc_vc_control;
597	}
598	xprt->xp_ops = &ops;
599	xprt->xp_ops2 = &ops2;
600	mutex_unlock(&ops_lock);
601}
602
603static void
604svc_vc_rendezvous_ops(xprt)
605	SVCXPRT *xprt;
606{
607	static struct xp_ops ops;
608	static struct xp_ops2 ops2;
609	extern mutex_t ops_lock;
610
611	mutex_lock(&ops_lock);
612	if (ops.xp_recv == NULL) {
613		ops.xp_recv = rendezvous_request;
614		ops.xp_stat = rendezvous_stat;
615		ops.xp_getargs =
616		    (bool_t (*)(SVCXPRT *, xdrproc_t, caddr_t))abort;
617		ops.xp_reply =
618		    (bool_t (*)(SVCXPRT *, struct rpc_msg *))abort;
619		ops.xp_freeargs =
620		    (bool_t (*)(SVCXPRT *, xdrproc_t, caddr_t))abort,
621		ops.xp_destroy = svc_vc_destroy;
622		ops2.xp_control = svc_vc_control;
623	}
624	xprt->xp_ops = &ops;
625	xprt->xp_ops2 = &ops2;
626	mutex_unlock(&ops_lock);
627}
628
629int
630__msgread_withcred(sock, buf, cnt, cmp)
631	int sock;
632	void *buf;
633	size_t cnt;
634	struct cmessage *cmp;
635{
636	struct iovec iov[1];
637	struct msghdr msg;
638	union {
639		struct cmsghdr cmsg;
640		char control[CMSG_SPACE(sizeof(struct cmsgcred))];
641	} cm;
642	int ret;
643
644
645	bzero(&cm, sizeof(cm));
646	iov[0].iov_base = buf;
647	iov[0].iov_len = cnt;
648
649	msg.msg_iov = iov;
650	msg.msg_iovlen = 1;
651	msg.msg_name = NULL;
652	msg.msg_namelen = 0;
653	msg.msg_control = &cm;
654	msg.msg_controllen = CMSG_SPACE(sizeof(struct cmsgcred));
655	msg.msg_flags = 0;
656
657	ret = _recvmsg(sock, &msg, 0);
658	bcopy(&cm.cmsg, &cmp->cmsg, sizeof(cmp->cmsg));
659	bcopy(CMSG_DATA(&cm), &cmp->cmcred, sizeof(cmp->cmcred));
660
661	if (msg.msg_controllen == 0 ||
662	   (msg.msg_flags & MSG_CTRUNC) != 0)
663		return (-1);
664
665	return (ret);
666}
667
668static int
669__msgwrite(sock, buf, cnt)
670	int sock;
671	void *buf;
672	size_t cnt;
673{
674	struct iovec iov[1];
675	struct msghdr msg;
676	struct cmessage cm;
677
678	bzero((char *)&cm, sizeof(cm));
679	iov[0].iov_base = buf;
680	iov[0].iov_len = cnt;
681
682	cm.cmsg.cmsg_type = SCM_CREDS;
683	cm.cmsg.cmsg_level = SOL_SOCKET;
684	cm.cmsg.cmsg_len = sizeof(struct cmessage);
685
686	msg.msg_iov = iov;
687	msg.msg_iovlen = 1;
688	msg.msg_name = NULL;
689	msg.msg_namelen = 0;
690	msg.msg_control = (caddr_t)&cm;
691	msg.msg_controllen = sizeof(struct cmessage);
692	msg.msg_flags = 0;
693
694	return(_sendmsg(sock, &msg, 0));
695}
696
697/*
698 * Get the effective UID of the sending process. Used by rpcbind and keyserv
699 * (AF_LOCAL).
700 */
701int
702__rpc_get_local_uid(SVCXPRT *transp, uid_t *uid)
703{
704	struct cmsgcred *cmcred;
705	struct cmessage *cm;
706	struct cmsghdr *cmp;
707
708	cm = (struct cmessage *)transp->xp_verf.oa_base;
709
710	if (cm == NULL)
711		return (-1);
712	cmp = &cm->cmsg;
713	if (cmp == NULL || cmp->cmsg_level != SOL_SOCKET ||
714	   cmp->cmsg_type != SCM_CREDS)
715		return (-1);
716
717	cmcred = __svc_getcallercreds(transp);
718	if (cmcred == NULL)
719		return (-1);
720	*uid = cmcred->cmcred_euid;
721	return (0);
722}
723