uipc_usrreq.c revision 1.122 1 1.122 yamt /* $NetBSD: uipc_usrreq.c,v 1.122 2009/04/09 00:37:32 yamt Exp $ */
2 1.30 thorpej
3 1.30 thorpej /*-
4 1.121 mrg * Copyright (c) 1998, 2000, 2004, 2008, 2009 The NetBSD Foundation, Inc.
5 1.30 thorpej * All rights reserved.
6 1.30 thorpej *
7 1.30 thorpej * This code is derived from software contributed to The NetBSD Foundation
8 1.30 thorpej * by Jason R. Thorpe of the Numerical Aerospace Simulation Facility,
9 1.121 mrg * NASA Ames Research Center, and by Andrew Doran.
10 1.30 thorpej *
11 1.30 thorpej * Redistribution and use in source and binary forms, with or without
12 1.30 thorpej * modification, are permitted provided that the following conditions
13 1.30 thorpej * are met:
14 1.30 thorpej * 1. Redistributions of source code must retain the above copyright
15 1.30 thorpej * notice, this list of conditions and the following disclaimer.
16 1.30 thorpej * 2. Redistributions in binary form must reproduce the above copyright
17 1.30 thorpej * notice, this list of conditions and the following disclaimer in the
18 1.30 thorpej * documentation and/or other materials provided with the distribution.
19 1.30 thorpej *
20 1.30 thorpej * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
21 1.30 thorpej * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
22 1.30 thorpej * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
23 1.30 thorpej * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
24 1.30 thorpej * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
25 1.30 thorpej * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
26 1.30 thorpej * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
27 1.30 thorpej * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
28 1.30 thorpej * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
29 1.30 thorpej * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
30 1.30 thorpej * POSSIBILITY OF SUCH DAMAGE.
31 1.30 thorpej */
32 1.10 cgd
33 1.1 cgd /*
34 1.8 mycroft * Copyright (c) 1982, 1986, 1989, 1991, 1993
35 1.8 mycroft * The Regents of the University of California. All rights reserved.
36 1.1 cgd *
37 1.1 cgd * Redistribution and use in source and binary forms, with or without
38 1.1 cgd * modification, are permitted provided that the following conditions
39 1.1 cgd * are met:
40 1.1 cgd * 1. Redistributions of source code must retain the above copyright
41 1.1 cgd * notice, this list of conditions and the following disclaimer.
42 1.1 cgd * 2. Redistributions in binary form must reproduce the above copyright
43 1.1 cgd * notice, this list of conditions and the following disclaimer in the
44 1.1 cgd * documentation and/or other materials provided with the distribution.
45 1.67 agc * 3. Neither the name of the University nor the names of its contributors
46 1.67 agc * may be used to endorse or promote products derived from this software
47 1.67 agc * without specific prior written permission.
48 1.67 agc *
49 1.67 agc * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
50 1.67 agc * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
51 1.67 agc * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
52 1.67 agc * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
53 1.67 agc * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
54 1.67 agc * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
55 1.67 agc * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
56 1.67 agc * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
57 1.67 agc * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
58 1.67 agc * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
59 1.67 agc * SUCH DAMAGE.
60 1.67 agc *
61 1.67 agc * @(#)uipc_usrreq.c 8.9 (Berkeley) 5/14/95
62 1.67 agc */
63 1.67 agc
64 1.67 agc /*
65 1.67 agc * Copyright (c) 1997 Christopher G. Demetriou. All rights reserved.
66 1.67 agc *
67 1.67 agc * Redistribution and use in source and binary forms, with or without
68 1.67 agc * modification, are permitted provided that the following conditions
69 1.67 agc * are met:
70 1.67 agc * 1. Redistributions of source code must retain the above copyright
71 1.67 agc * notice, this list of conditions and the following disclaimer.
72 1.67 agc * 2. Redistributions in binary form must reproduce the above copyright
73 1.67 agc * notice, this list of conditions and the following disclaimer in the
74 1.67 agc * documentation and/or other materials provided with the distribution.
75 1.1 cgd * 3. All advertising materials mentioning features or use of this software
76 1.1 cgd * must display the following acknowledgement:
77 1.1 cgd * This product includes software developed by the University of
78 1.1 cgd * California, Berkeley and its contributors.
79 1.1 cgd * 4. Neither the name of the University nor the names of its contributors
80 1.1 cgd * may be used to endorse or promote products derived from this software
81 1.1 cgd * without specific prior written permission.
82 1.1 cgd *
83 1.1 cgd * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
84 1.1 cgd * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
85 1.1 cgd * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
86 1.1 cgd * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
87 1.1 cgd * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
88 1.1 cgd * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
89 1.1 cgd * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
90 1.1 cgd * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
91 1.1 cgd * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
92 1.1 cgd * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
93 1.1 cgd * SUCH DAMAGE.
94 1.1 cgd *
95 1.31 fvdl * @(#)uipc_usrreq.c 8.9 (Berkeley) 5/14/95
96 1.1 cgd */
97 1.53 lukem
98 1.53 lukem #include <sys/cdefs.h>
99 1.122 yamt __KERNEL_RCSID(0, "$NetBSD: uipc_usrreq.c,v 1.122 2009/04/09 00:37:32 yamt Exp $");
100 1.1 cgd
101 1.7 mycroft #include <sys/param.h>
102 1.8 mycroft #include <sys/systm.h>
103 1.7 mycroft #include <sys/proc.h>
104 1.7 mycroft #include <sys/filedesc.h>
105 1.7 mycroft #include <sys/domain.h>
106 1.7 mycroft #include <sys/protosw.h>
107 1.7 mycroft #include <sys/socket.h>
108 1.7 mycroft #include <sys/socketvar.h>
109 1.7 mycroft #include <sys/unpcb.h>
110 1.7 mycroft #include <sys/un.h>
111 1.7 mycroft #include <sys/namei.h>
112 1.7 mycroft #include <sys/vnode.h>
113 1.7 mycroft #include <sys/file.h>
114 1.7 mycroft #include <sys/stat.h>
115 1.7 mycroft #include <sys/mbuf.h>
116 1.91 elad #include <sys/kauth.h>
117 1.101 ad #include <sys/kmem.h>
118 1.106 ad #include <sys/atomic.h>
119 1.119 pooka #include <sys/uidinfo.h>
120 1.121 mrg #include <sys/kernel.h>
121 1.121 mrg #include <sys/kthread.h>
122 1.1 cgd
123 1.1 cgd /*
124 1.1 cgd * Unix communications domain.
125 1.1 cgd *
126 1.1 cgd * TODO:
127 1.1 cgd * SEQPACKET, RDM
128 1.1 cgd * rethink name space problems
129 1.1 cgd * need a proper out-of-band
130 1.112 ad *
131 1.112 ad * Notes on locking:
132 1.112 ad *
133 1.112 ad * The generic rules noted in uipc_socket2.c apply. In addition:
134 1.112 ad *
135 1.112 ad * o We have a global lock, uipc_lock.
136 1.112 ad *
137 1.112 ad * o All datagram sockets are locked by uipc_lock.
138 1.112 ad *
139 1.112 ad * o For stream socketpairs, the two endpoints are created sharing the same
140 1.112 ad * independent lock. Sockets presented to PRU_CONNECT2 must already have
141 1.112 ad * matching locks.
142 1.112 ad *
143 1.112 ad * o Stream sockets created via socket() start life with their own
144 1.112 ad * independent lock.
145 1.112 ad *
146 1.112 ad * o Stream connections to a named endpoint are slightly more complicated.
147 1.112 ad * Sockets that have called listen() have their lock pointer mutated to
148 1.112 ad * the global uipc_lock. When establishing a connection, the connecting
149 1.112 ad * socket also has its lock mutated to uipc_lock, which matches the head
150 1.112 ad * (listening socket). We create a new socket for accept() to return, and
151 1.112 ad * that also shares the head's lock. Until the connection is completely
152 1.112 ad * done on both ends, all three sockets are locked by uipc_lock. Once the
153 1.112 ad * connection is complete, the association with the head's lock is broken.
154 1.112 ad * The connecting socket and the socket returned from accept() have their
155 1.112 ad * lock pointers mutated away from uipc_lock, and back to the connecting
156 1.112 ad * socket's original, independent lock. The head continues to be locked
157 1.112 ad * by uipc_lock.
158 1.112 ad *
159 1.112 ad * o If uipc_lock is determined to be a significant source of contention,
160 1.112 ad * it could easily be hashed out. It is difficult to simply make it an
161 1.112 ad * independent lock because of visibility / garbage collection issues:
162 1.112 ad * if a socket has been associated with a lock at any point, that lock
163 1.112 ad * must remain valid until the socket is no longer visible in the system.
164 1.112 ad * The lock must not be freed or otherwise destroyed until any sockets
165 1.112 ad * that had referenced it have also been destroyed.
166 1.1 cgd */
167 1.93 christos const struct sockaddr_un sun_noname = {
168 1.93 christos .sun_len = sizeof(sun_noname),
169 1.93 christos .sun_family = AF_LOCAL,
170 1.93 christos };
171 1.1 cgd ino_t unp_ino; /* prototype for fake inode numbers */
172 1.1 cgd
173 1.92 ad struct mbuf *unp_addsockcred(struct lwp *, struct mbuf *);
174 1.121 mrg static void unp_mark(file_t *);
175 1.121 mrg static void unp_scan(struct mbuf *, void (*)(file_t *), int);
176 1.121 mrg static void unp_discard_now(file_t *);
177 1.121 mrg static void unp_discard_later(file_t *);
178 1.121 mrg static void unp_thread(void *);
179 1.121 mrg static void unp_thread_kick(void);
180 1.112 ad static kmutex_t *uipc_lock;
181 1.112 ad
182 1.121 mrg static kcondvar_t unp_thread_cv;
183 1.121 mrg static lwp_t *unp_thread_lwp;
184 1.121 mrg static SLIST_HEAD(,file) unp_thread_discard;
185 1.121 mrg static int unp_defer;
186 1.121 mrg
187 1.112 ad /*
188 1.112 ad * Initialize Unix protocols.
189 1.112 ad */
190 1.112 ad void
191 1.112 ad uipc_init(void)
192 1.112 ad {
193 1.121 mrg int error;
194 1.112 ad
195 1.112 ad uipc_lock = mutex_obj_alloc(MUTEX_DEFAULT, IPL_NONE);
196 1.121 mrg cv_init(&unp_thread_cv, "unpgc");
197 1.121 mrg
198 1.121 mrg error = kthread_create(PRI_NONE, KTHREAD_MPSAFE, NULL, unp_thread,
199 1.121 mrg NULL, &unp_thread_lwp, "unpgc");
200 1.121 mrg if (error != 0)
201 1.121 mrg panic("uipc_init %d", error);
202 1.112 ad }
203 1.112 ad
204 1.112 ad /*
205 1.112 ad * A connection succeeded: disassociate both endpoints from the head's
206 1.112 ad * lock, and make them share their own lock. There is a race here: for
207 1.112 ad * a very brief time one endpoint will be locked by a different lock
208 1.112 ad * than the other end. However, since the current thread holds the old
209 1.112 ad * lock (the listening socket's lock, the head) access can still only be
210 1.112 ad * made to one side of the connection.
211 1.112 ad */
212 1.112 ad static void
213 1.112 ad unp_setpeerlocks(struct socket *so, struct socket *so2)
214 1.112 ad {
215 1.112 ad struct unpcb *unp;
216 1.112 ad kmutex_t *lock;
217 1.112 ad
218 1.112 ad KASSERT(solocked2(so, so2));
219 1.112 ad
220 1.112 ad /*
221 1.112 ad * Bail out if either end of the socket is not yet fully
222 1.112 ad * connected or accepted. We only break the lock association
223 1.112 ad * with the head when the pair of sockets stand completely
224 1.112 ad * on their own.
225 1.112 ad */
226 1.112 ad if (so->so_head != NULL || so2->so_head != NULL)
227 1.112 ad return;
228 1.112 ad
229 1.112 ad /*
230 1.112 ad * Drop references to old lock. A third reference (from the
231 1.112 ad * queue head) must be held as we still hold its lock. Bonus:
232 1.112 ad * we don't need to worry about garbage collecting the lock.
233 1.112 ad */
234 1.112 ad lock = so->so_lock;
235 1.112 ad KASSERT(lock == uipc_lock);
236 1.112 ad mutex_obj_free(lock);
237 1.112 ad mutex_obj_free(lock);
238 1.112 ad
239 1.112 ad /*
240 1.112 ad * Grab stream lock from the initiator and share between the two
241 1.112 ad * endpoints. Issue memory barrier to ensure all modifications
242 1.112 ad * become globally visible before the lock change. so2 is
243 1.112 ad * assumed not to have a stream lock, because it was created
244 1.112 ad * purely for the server side to accept this connection and
245 1.112 ad * started out life using the domain-wide lock.
246 1.112 ad */
247 1.112 ad unp = sotounpcb(so);
248 1.112 ad KASSERT(unp->unp_streamlock != NULL);
249 1.112 ad KASSERT(sotounpcb(so2)->unp_streamlock == NULL);
250 1.112 ad lock = unp->unp_streamlock;
251 1.112 ad unp->unp_streamlock = NULL;
252 1.112 ad mutex_obj_hold(lock);
253 1.112 ad membar_exit();
254 1.115 ad solockreset(so, lock);
255 1.115 ad solockreset(so2, lock);
256 1.112 ad }
257 1.112 ad
258 1.112 ad /*
259 1.112 ad * Reset a socket's lock back to the domain-wide lock.
260 1.112 ad */
261 1.112 ad static void
262 1.112 ad unp_resetlock(struct socket *so)
263 1.112 ad {
264 1.112 ad kmutex_t *olock, *nlock;
265 1.112 ad struct unpcb *unp;
266 1.112 ad
267 1.112 ad KASSERT(solocked(so));
268 1.112 ad
269 1.112 ad olock = so->so_lock;
270 1.112 ad nlock = uipc_lock;
271 1.112 ad if (olock == nlock)
272 1.112 ad return;
273 1.112 ad unp = sotounpcb(so);
274 1.112 ad KASSERT(unp->unp_streamlock == NULL);
275 1.112 ad unp->unp_streamlock = olock;
276 1.112 ad mutex_obj_hold(nlock);
277 1.112 ad mutex_enter(nlock);
278 1.115 ad solockreset(so, nlock);
279 1.112 ad mutex_exit(olock);
280 1.112 ad }
281 1.112 ad
282 1.112 ad static void
283 1.112 ad unp_free(struct unpcb *unp)
284 1.112 ad {
285 1.112 ad
286 1.112 ad if (unp->unp_addr)
287 1.112 ad free(unp->unp_addr, M_SONAME);
288 1.112 ad if (unp->unp_streamlock != NULL)
289 1.112 ad mutex_obj_free(unp->unp_streamlock);
290 1.112 ad free(unp, M_PCB);
291 1.112 ad }
292 1.30 thorpej
293 1.20 mycroft int
294 1.76 matt unp_output(struct mbuf *m, struct mbuf *control, struct unpcb *unp,
295 1.92 ad struct lwp *l)
296 1.20 mycroft {
297 1.20 mycroft struct socket *so2;
298 1.77 matt const struct sockaddr_un *sun;
299 1.20 mycroft
300 1.20 mycroft so2 = unp->unp_conn->unp_socket;
301 1.112 ad
302 1.112 ad KASSERT(solocked(so2));
303 1.112 ad
304 1.20 mycroft if (unp->unp_addr)
305 1.20 mycroft sun = unp->unp_addr;
306 1.20 mycroft else
307 1.20 mycroft sun = &sun_noname;
308 1.30 thorpej if (unp->unp_conn->unp_flags & UNP_WANTCRED)
309 1.92 ad control = unp_addsockcred(l, control);
310 1.82 christos if (sbappendaddr(&so2->so_rcv, (const struct sockaddr *)sun, m,
311 1.20 mycroft control) == 0) {
312 1.112 ad so2->so_rcv.sb_overflowed++;
313 1.98 martin unp_dispose(control);
314 1.20 mycroft m_freem(control);
315 1.20 mycroft m_freem(m);
316 1.60 christos return (ENOBUFS);
317 1.20 mycroft } else {
318 1.20 mycroft sorwakeup(so2);
319 1.20 mycroft return (0);
320 1.20 mycroft }
321 1.20 mycroft }
322 1.20 mycroft
323 1.20 mycroft void
324 1.112 ad unp_setaddr(struct socket *so, struct mbuf *nam, bool peeraddr)
325 1.20 mycroft {
326 1.77 matt const struct sockaddr_un *sun;
327 1.112 ad struct unpcb *unp;
328 1.112 ad bool ext;
329 1.20 mycroft
330 1.112 ad unp = sotounpcb(so);
331 1.112 ad ext = false;
332 1.20 mycroft
333 1.112 ad for (;;) {
334 1.112 ad sun = NULL;
335 1.112 ad if (peeraddr) {
336 1.112 ad if (unp->unp_conn && unp->unp_conn->unp_addr)
337 1.112 ad sun = unp->unp_conn->unp_addr;
338 1.112 ad } else {
339 1.112 ad if (unp->unp_addr)
340 1.112 ad sun = unp->unp_addr;
341 1.112 ad }
342 1.112 ad if (sun == NULL)
343 1.112 ad sun = &sun_noname;
344 1.112 ad nam->m_len = sun->sun_len;
345 1.112 ad if (nam->m_len > MLEN && !ext) {
346 1.112 ad sounlock(so);
347 1.112 ad MEXTMALLOC(nam, MAXPATHLEN * 2, M_WAITOK);
348 1.112 ad solock(so);
349 1.112 ad ext = true;
350 1.112 ad } else {
351 1.112 ad KASSERT(nam->m_len <= MAXPATHLEN * 2);
352 1.112 ad memcpy(mtod(nam, void *), sun, (size_t)nam->m_len);
353 1.112 ad break;
354 1.112 ad }
355 1.112 ad }
356 1.20 mycroft }
357 1.20 mycroft
358 1.1 cgd /*ARGSUSED*/
359 1.5 andrew int
360 1.76 matt uipc_usrreq(struct socket *so, int req, struct mbuf *m, struct mbuf *nam,
361 1.86 christos struct mbuf *control, struct lwp *l)
362 1.1 cgd {
363 1.1 cgd struct unpcb *unp = sotounpcb(so);
364 1.46 augustss struct socket *so2;
365 1.86 christos struct proc *p;
366 1.75 christos u_int newhiwat;
367 1.46 augustss int error = 0;
368 1.1 cgd
369 1.1 cgd if (req == PRU_CONTROL)
370 1.1 cgd return (EOPNOTSUPP);
371 1.20 mycroft
372 1.22 mycroft #ifdef DIAGNOSTIC
373 1.22 mycroft if (req != PRU_SEND && req != PRU_SENDOOB && control)
374 1.22 mycroft panic("uipc_usrreq: unexpected control mbuf");
375 1.22 mycroft #endif
376 1.86 christos p = l ? l->l_proc : NULL;
377 1.112 ad if (req != PRU_ATTACH) {
378 1.122 yamt if (unp == NULL) {
379 1.112 ad error = EINVAL;
380 1.112 ad goto release;
381 1.112 ad }
382 1.112 ad KASSERT(solocked(so));
383 1.1 cgd }
384 1.20 mycroft
385 1.1 cgd switch (req) {
386 1.1 cgd
387 1.1 cgd case PRU_ATTACH:
388 1.122 yamt if (unp != NULL) {
389 1.1 cgd error = EISCONN;
390 1.1 cgd break;
391 1.1 cgd }
392 1.1 cgd error = unp_attach(so);
393 1.1 cgd break;
394 1.1 cgd
395 1.1 cgd case PRU_DETACH:
396 1.1 cgd unp_detach(unp);
397 1.1 cgd break;
398 1.1 cgd
399 1.1 cgd case PRU_BIND:
400 1.90 christos KASSERT(l != NULL);
401 1.112 ad error = unp_bind(so, nam, l);
402 1.1 cgd break;
403 1.1 cgd
404 1.1 cgd case PRU_LISTEN:
405 1.112 ad /*
406 1.112 ad * If the socket can accept a connection, it must be
407 1.112 ad * locked by uipc_lock.
408 1.112 ad */
409 1.112 ad unp_resetlock(so);
410 1.122 yamt if (unp->unp_vnode == NULL)
411 1.1 cgd error = EINVAL;
412 1.1 cgd break;
413 1.1 cgd
414 1.1 cgd case PRU_CONNECT:
415 1.90 christos KASSERT(l != NULL);
416 1.86 christos error = unp_connect(so, nam, l);
417 1.1 cgd break;
418 1.1 cgd
419 1.1 cgd case PRU_CONNECT2:
420 1.72 matt error = unp_connect2(so, (struct socket *)nam, PRU_CONNECT2);
421 1.1 cgd break;
422 1.1 cgd
423 1.1 cgd case PRU_DISCONNECT:
424 1.1 cgd unp_disconnect(unp);
425 1.1 cgd break;
426 1.1 cgd
427 1.1 cgd case PRU_ACCEPT:
428 1.112 ad KASSERT(so->so_lock == uipc_lock);
429 1.72 matt /*
430 1.72 matt * Mark the initiating STREAM socket as connected *ONLY*
431 1.72 matt * after it's been accepted. This prevents a client from
432 1.72 matt * overrunning a server and receiving ECONNREFUSED.
433 1.72 matt */
434 1.112 ad if (unp->unp_conn == NULL)
435 1.112 ad break;
436 1.112 ad so2 = unp->unp_conn->unp_socket;
437 1.112 ad if (so2->so_state & SS_ISCONNECTING) {
438 1.112 ad KASSERT(solocked2(so, so->so_head));
439 1.112 ad KASSERT(solocked2(so2, so->so_head));
440 1.112 ad soisconnected(so2);
441 1.112 ad }
442 1.112 ad /*
443 1.112 ad * If the connection is fully established, break the
444 1.112 ad * association with uipc_lock and give the connected
445 1.112 ad * pair a seperate lock to share.
446 1.112 ad */
447 1.112 ad unp_setpeerlocks(so2, so);
448 1.112 ad /*
449 1.112 ad * Only now return peer's address, as we may need to
450 1.112 ad * block in order to allocate memory.
451 1.112 ad *
452 1.112 ad * XXX Minor race: connection can be broken while
453 1.112 ad * lock is dropped in unp_setaddr(). We will return
454 1.112 ad * error == 0 and sun_noname as the peer address.
455 1.112 ad */
456 1.112 ad unp_setaddr(so, nam, true);
457 1.1 cgd break;
458 1.1 cgd
459 1.1 cgd case PRU_SHUTDOWN:
460 1.1 cgd socantsendmore(so);
461 1.1 cgd unp_shutdown(unp);
462 1.1 cgd break;
463 1.1 cgd
464 1.1 cgd case PRU_RCVD:
465 1.1 cgd switch (so->so_type) {
466 1.1 cgd
467 1.1 cgd case SOCK_DGRAM:
468 1.1 cgd panic("uipc 1");
469 1.1 cgd /*NOTREACHED*/
470 1.1 cgd
471 1.1 cgd case SOCK_STREAM:
472 1.1 cgd #define rcv (&so->so_rcv)
473 1.1 cgd #define snd (&so2->so_snd)
474 1.1 cgd if (unp->unp_conn == 0)
475 1.1 cgd break;
476 1.1 cgd so2 = unp->unp_conn->unp_socket;
477 1.112 ad KASSERT(solocked2(so, so2));
478 1.1 cgd /*
479 1.1 cgd * Adjust backpressure on sender
480 1.1 cgd * and wakeup any waiting to write.
481 1.1 cgd */
482 1.1 cgd snd->sb_mbmax += unp->unp_mbcnt - rcv->sb_mbcnt;
483 1.1 cgd unp->unp_mbcnt = rcv->sb_mbcnt;
484 1.75 christos newhiwat = snd->sb_hiwat + unp->unp_cc - rcv->sb_cc;
485 1.81 christos (void)chgsbsize(so2->so_uidinfo,
486 1.75 christos &snd->sb_hiwat, newhiwat, RLIM_INFINITY);
487 1.1 cgd unp->unp_cc = rcv->sb_cc;
488 1.1 cgd sowwakeup(so2);
489 1.1 cgd #undef snd
490 1.1 cgd #undef rcv
491 1.1 cgd break;
492 1.1 cgd
493 1.1 cgd default:
494 1.1 cgd panic("uipc 2");
495 1.1 cgd }
496 1.1 cgd break;
497 1.1 cgd
498 1.1 cgd case PRU_SEND:
499 1.30 thorpej /*
500 1.30 thorpej * Note: unp_internalize() rejects any control message
501 1.30 thorpej * other than SCM_RIGHTS, and only allows one. This
502 1.30 thorpej * has the side-effect of preventing a caller from
503 1.30 thorpej * forging SCM_CREDS.
504 1.30 thorpej */
505 1.90 christos if (control) {
506 1.112 ad sounlock(so);
507 1.112 ad error = unp_internalize(&control);
508 1.112 ad solock(so);
509 1.112 ad if (error != 0) {
510 1.111 mlelstv m_freem(control);
511 1.111 mlelstv m_freem(m);
512 1.111 mlelstv break;
513 1.111 mlelstv }
514 1.83 yamt }
515 1.1 cgd switch (so->so_type) {
516 1.1 cgd
517 1.1 cgd case SOCK_DGRAM: {
518 1.112 ad KASSERT(so->so_lock == uipc_lock);
519 1.1 cgd if (nam) {
520 1.111 mlelstv if ((so->so_state & SS_ISCONNECTED) != 0)
521 1.1 cgd error = EISCONN;
522 1.111 mlelstv else {
523 1.112 ad /*
524 1.112 ad * Note: once connected, the
525 1.112 ad * socket's lock must not be
526 1.112 ad * dropped until we have sent
527 1.112 ad * the message and disconnected.
528 1.112 ad * This is necessary to prevent
529 1.112 ad * intervening control ops, like
530 1.112 ad * another connection.
531 1.112 ad */
532 1.111 mlelstv error = unp_connect(so, nam, l);
533 1.20 mycroft }
534 1.1 cgd } else {
535 1.111 mlelstv if ((so->so_state & SS_ISCONNECTED) == 0)
536 1.1 cgd error = ENOTCONN;
537 1.111 mlelstv }
538 1.111 mlelstv if (error) {
539 1.111 mlelstv unp_dispose(control);
540 1.111 mlelstv m_freem(control);
541 1.111 mlelstv m_freem(m);
542 1.111 mlelstv break;
543 1.1 cgd }
544 1.89 christos KASSERT(p != NULL);
545 1.92 ad error = unp_output(m, control, unp, l);
546 1.1 cgd if (nam)
547 1.1 cgd unp_disconnect(unp);
548 1.1 cgd break;
549 1.1 cgd }
550 1.1 cgd
551 1.1 cgd case SOCK_STREAM:
552 1.1 cgd #define rcv (&so2->so_rcv)
553 1.1 cgd #define snd (&so->so_snd)
554 1.87 christos if (unp->unp_conn == NULL) {
555 1.87 christos error = ENOTCONN;
556 1.87 christos break;
557 1.87 christos }
558 1.1 cgd so2 = unp->unp_conn->unp_socket;
559 1.112 ad KASSERT(solocked2(so, so2));
560 1.30 thorpej if (unp->unp_conn->unp_flags & UNP_WANTCRED) {
561 1.30 thorpej /*
562 1.30 thorpej * Credentials are passed only once on
563 1.30 thorpej * SOCK_STREAM.
564 1.30 thorpej */
565 1.30 thorpej unp->unp_conn->unp_flags &= ~UNP_WANTCRED;
566 1.92 ad control = unp_addsockcred(l, control);
567 1.30 thorpej }
568 1.1 cgd /*
569 1.1 cgd * Send to paired receive port, and then reduce
570 1.1 cgd * send buffer hiwater marks to maintain backpressure.
571 1.1 cgd * Wake up readers.
572 1.1 cgd */
573 1.1 cgd if (control) {
574 1.112 ad if (sbappendcontrol(rcv, m, control) != 0)
575 1.112 ad control = NULL;
576 1.1 cgd } else
577 1.1 cgd sbappend(rcv, m);
578 1.1 cgd snd->sb_mbmax -=
579 1.1 cgd rcv->sb_mbcnt - unp->unp_conn->unp_mbcnt;
580 1.1 cgd unp->unp_conn->unp_mbcnt = rcv->sb_mbcnt;
581 1.75 christos newhiwat = snd->sb_hiwat -
582 1.75 christos (rcv->sb_cc - unp->unp_conn->unp_cc);
583 1.81 christos (void)chgsbsize(so->so_uidinfo,
584 1.75 christos &snd->sb_hiwat, newhiwat, RLIM_INFINITY);
585 1.1 cgd unp->unp_conn->unp_cc = rcv->sb_cc;
586 1.1 cgd sorwakeup(so2);
587 1.1 cgd #undef snd
588 1.1 cgd #undef rcv
589 1.112 ad if (control != NULL) {
590 1.112 ad unp_dispose(control);
591 1.112 ad m_freem(control);
592 1.112 ad }
593 1.1 cgd break;
594 1.1 cgd
595 1.1 cgd default:
596 1.1 cgd panic("uipc 4");
597 1.1 cgd }
598 1.1 cgd break;
599 1.1 cgd
600 1.1 cgd case PRU_ABORT:
601 1.112 ad (void)unp_drop(unp, ECONNABORTED);
602 1.39 sommerfe
603 1.88 matt KASSERT(so->so_head == NULL);
604 1.39 sommerfe #ifdef DIAGNOSTIC
605 1.122 yamt if (so->so_pcb == NULL)
606 1.39 sommerfe panic("uipc 5: drop killed pcb");
607 1.39 sommerfe #endif
608 1.39 sommerfe unp_detach(unp);
609 1.1 cgd break;
610 1.1 cgd
611 1.1 cgd case PRU_SENSE:
612 1.1 cgd ((struct stat *) m)->st_blksize = so->so_snd.sb_hiwat;
613 1.1 cgd if (so->so_type == SOCK_STREAM && unp->unp_conn != 0) {
614 1.1 cgd so2 = unp->unp_conn->unp_socket;
615 1.112 ad KASSERT(solocked2(so, so2));
616 1.1 cgd ((struct stat *) m)->st_blksize += so2->so_rcv.sb_cc;
617 1.1 cgd }
618 1.1 cgd ((struct stat *) m)->st_dev = NODEV;
619 1.1 cgd if (unp->unp_ino == 0)
620 1.1 cgd unp->unp_ino = unp_ino++;
621 1.25 kleink ((struct stat *) m)->st_atimespec =
622 1.25 kleink ((struct stat *) m)->st_mtimespec =
623 1.25 kleink ((struct stat *) m)->st_ctimespec = unp->unp_ctime;
624 1.1 cgd ((struct stat *) m)->st_ino = unp->unp_ino;
625 1.1 cgd return (0);
626 1.1 cgd
627 1.1 cgd case PRU_RCVOOB:
628 1.20 mycroft error = EOPNOTSUPP;
629 1.20 mycroft break;
630 1.1 cgd
631 1.1 cgd case PRU_SENDOOB:
632 1.22 mycroft m_freem(control);
633 1.20 mycroft m_freem(m);
634 1.1 cgd error = EOPNOTSUPP;
635 1.1 cgd break;
636 1.1 cgd
637 1.1 cgd case PRU_SOCKADDR:
638 1.112 ad unp_setaddr(so, nam, false);
639 1.1 cgd break;
640 1.1 cgd
641 1.1 cgd case PRU_PEERADDR:
642 1.112 ad unp_setaddr(so, nam, true);
643 1.1 cgd break;
644 1.1 cgd
645 1.1 cgd default:
646 1.1 cgd panic("piusrreq");
647 1.1 cgd }
648 1.20 mycroft
649 1.1 cgd release:
650 1.1 cgd return (error);
651 1.1 cgd }
652 1.1 cgd
653 1.1 cgd /*
654 1.30 thorpej * Unix domain socket option processing.
655 1.30 thorpej */
656 1.30 thorpej int
657 1.118 plunky uipc_ctloutput(int op, struct socket *so, struct sockopt *sopt)
658 1.30 thorpej {
659 1.30 thorpej struct unpcb *unp = sotounpcb(so);
660 1.30 thorpej int optval = 0, error = 0;
661 1.30 thorpej
662 1.112 ad KASSERT(solocked(so));
663 1.112 ad
664 1.118 plunky if (sopt->sopt_level != 0) {
665 1.100 dyoung error = ENOPROTOOPT;
666 1.30 thorpej } else switch (op) {
667 1.30 thorpej
668 1.30 thorpej case PRCO_SETOPT:
669 1.118 plunky switch (sopt->sopt_name) {
670 1.30 thorpej case LOCAL_CREDS:
671 1.72 matt case LOCAL_CONNWAIT:
672 1.118 plunky error = sockopt_getint(sopt, &optval);
673 1.118 plunky if (error)
674 1.118 plunky break;
675 1.118 plunky switch (sopt->sopt_name) {
676 1.30 thorpej #define OPTSET(bit) \
677 1.30 thorpej if (optval) \
678 1.30 thorpej unp->unp_flags |= (bit); \
679 1.30 thorpej else \
680 1.30 thorpej unp->unp_flags &= ~(bit);
681 1.30 thorpej
682 1.118 plunky case LOCAL_CREDS:
683 1.118 plunky OPTSET(UNP_WANTCRED);
684 1.118 plunky break;
685 1.118 plunky case LOCAL_CONNWAIT:
686 1.118 plunky OPTSET(UNP_CONNWAIT);
687 1.118 plunky break;
688 1.30 thorpej }
689 1.30 thorpej break;
690 1.30 thorpej #undef OPTSET
691 1.30 thorpej
692 1.30 thorpej default:
693 1.30 thorpej error = ENOPROTOOPT;
694 1.30 thorpej break;
695 1.30 thorpej }
696 1.30 thorpej break;
697 1.30 thorpej
698 1.30 thorpej case PRCO_GETOPT:
699 1.112 ad sounlock(so);
700 1.118 plunky switch (sopt->sopt_name) {
701 1.99 he case LOCAL_PEEREID:
702 1.99 he if (unp->unp_flags & UNP_EIDSVALID) {
703 1.118 plunky error = sockopt_set(sopt,
704 1.118 plunky &unp->unp_connid, sizeof(unp->unp_connid));
705 1.99 he } else {
706 1.99 he error = EINVAL;
707 1.99 he }
708 1.99 he break;
709 1.30 thorpej case LOCAL_CREDS:
710 1.30 thorpej #define OPTBIT(bit) (unp->unp_flags & (bit) ? 1 : 0)
711 1.30 thorpej
712 1.99 he optval = OPTBIT(UNP_WANTCRED);
713 1.118 plunky error = sockopt_setint(sopt, optval);
714 1.30 thorpej break;
715 1.30 thorpej #undef OPTBIT
716 1.30 thorpej
717 1.30 thorpej default:
718 1.30 thorpej error = ENOPROTOOPT;
719 1.30 thorpej break;
720 1.30 thorpej }
721 1.112 ad solock(so);
722 1.30 thorpej break;
723 1.30 thorpej }
724 1.30 thorpej return (error);
725 1.30 thorpej }
726 1.30 thorpej
727 1.30 thorpej /*
728 1.1 cgd * Both send and receive buffers are allocated PIPSIZ bytes of buffering
729 1.1 cgd * for stream sockets, although the total for sender and receiver is
730 1.1 cgd * actually only PIPSIZ.
731 1.1 cgd * Datagram sockets really use the sendspace as the maximum datagram size,
732 1.1 cgd * and don't really want to reserve the sendspace. Their recvspace should
733 1.1 cgd * be large enough for at least one max-size datagram plus address.
734 1.1 cgd */
735 1.1 cgd #define PIPSIZ 4096
736 1.1 cgd u_long unpst_sendspace = PIPSIZ;
737 1.1 cgd u_long unpst_recvspace = PIPSIZ;
738 1.1 cgd u_long unpdg_sendspace = 2*1024; /* really max datagram size */
739 1.1 cgd u_long unpdg_recvspace = 4*1024;
740 1.1 cgd
741 1.121 mrg u_int unp_rights; /* files in flight */
742 1.121 mrg u_int unp_rights_ratio = 2; /* limit, fraction of maxfiles */
743 1.1 cgd
744 1.5 andrew int
745 1.76 matt unp_attach(struct socket *so)
746 1.1 cgd {
747 1.46 augustss struct unpcb *unp;
748 1.1 cgd int error;
749 1.80 perry
750 1.112 ad switch (so->so_type) {
751 1.112 ad case SOCK_STREAM:
752 1.112 ad if (so->so_lock == NULL) {
753 1.112 ad /*
754 1.112 ad * XXX Assuming that no socket locks are held,
755 1.112 ad * as this call may sleep.
756 1.112 ad */
757 1.112 ad so->so_lock = mutex_obj_alloc(MUTEX_DEFAULT, IPL_NONE);
758 1.112 ad solock(so);
759 1.112 ad }
760 1.112 ad if (so->so_snd.sb_hiwat == 0 || so->so_rcv.sb_hiwat == 0) {
761 1.1 cgd error = soreserve(so, unpst_sendspace, unpst_recvspace);
762 1.112 ad if (error != 0)
763 1.112 ad return (error);
764 1.112 ad }
765 1.112 ad break;
766 1.1 cgd
767 1.112 ad case SOCK_DGRAM:
768 1.112 ad if (so->so_lock == NULL) {
769 1.112 ad mutex_obj_hold(uipc_lock);
770 1.112 ad so->so_lock = uipc_lock;
771 1.112 ad solock(so);
772 1.112 ad }
773 1.112 ad if (so->so_snd.sb_hiwat == 0 || so->so_rcv.sb_hiwat == 0) {
774 1.1 cgd error = soreserve(so, unpdg_sendspace, unpdg_recvspace);
775 1.112 ad if (error != 0)
776 1.112 ad return (error);
777 1.112 ad }
778 1.112 ad break;
779 1.8 mycroft
780 1.112 ad default:
781 1.112 ad panic("unp_attach");
782 1.1 cgd }
783 1.112 ad KASSERT(solocked(so));
784 1.14 mycroft unp = malloc(sizeof(*unp), M_PCB, M_NOWAIT);
785 1.14 mycroft if (unp == NULL)
786 1.1 cgd return (ENOBUFS);
787 1.95 christos memset((void *)unp, 0, sizeof(*unp));
788 1.14 mycroft unp->unp_socket = so;
789 1.15 mycroft so->so_pcb = unp;
790 1.85 simonb nanotime(&unp->unp_ctime);
791 1.1 cgd return (0);
792 1.1 cgd }
793 1.1 cgd
794 1.17 pk void
795 1.76 matt unp_detach(struct unpcb *unp)
796 1.1 cgd {
797 1.112 ad struct socket *so;
798 1.112 ad vnode_t *vp;
799 1.112 ad
800 1.112 ad so = unp->unp_socket;
801 1.80 perry
802 1.112 ad retry:
803 1.112 ad if ((vp = unp->unp_vnode) != NULL) {
804 1.112 ad sounlock(so);
805 1.112 ad /* Acquire v_interlock to protect against unp_connect(). */
806 1.113 ad /* XXXAD racy */
807 1.112 ad mutex_enter(&vp->v_interlock);
808 1.112 ad vp->v_socket = NULL;
809 1.112 ad vrelel(vp, 0);
810 1.112 ad solock(so);
811 1.112 ad unp->unp_vnode = NULL;
812 1.1 cgd }
813 1.1 cgd if (unp->unp_conn)
814 1.1 cgd unp_disconnect(unp);
815 1.112 ad while (unp->unp_refs) {
816 1.112 ad KASSERT(solocked2(so, unp->unp_refs->unp_socket));
817 1.112 ad if (unp_drop(unp->unp_refs, ECONNRESET)) {
818 1.112 ad solock(so);
819 1.112 ad goto retry;
820 1.112 ad }
821 1.112 ad }
822 1.112 ad soisdisconnected(so);
823 1.112 ad so->so_pcb = NULL;
824 1.8 mycroft if (unp_rights) {
825 1.8 mycroft /*
826 1.121 mrg * Normally the receive buffer is flushed later, in sofree,
827 1.121 mrg * but if our receive buffer holds references to files that
828 1.121 mrg * are now garbage, we will enqueue those file references to
829 1.121 mrg * the garbage collector and kick it into action.
830 1.8 mycroft */
831 1.112 ad sorflush(so);
832 1.112 ad unp_free(unp);
833 1.121 mrg unp_thread_kick();
834 1.14 mycroft } else
835 1.112 ad unp_free(unp);
836 1.1 cgd }
837 1.1 cgd
838 1.5 andrew int
839 1.112 ad unp_bind(struct socket *so, struct mbuf *nam, struct lwp *l)
840 1.1 cgd {
841 1.27 thorpej struct sockaddr_un *sun;
842 1.112 ad struct unpcb *unp;
843 1.106 ad vnode_t *vp;
844 1.1 cgd struct vattr vattr;
845 1.27 thorpej size_t addrlen;
846 1.1 cgd int error;
847 1.1 cgd struct nameidata nd;
848 1.112 ad proc_t *p;
849 1.1 cgd
850 1.112 ad unp = sotounpcb(so);
851 1.112 ad if (unp->unp_vnode != NULL)
852 1.20 mycroft return (EINVAL);
853 1.109 ad if ((unp->unp_flags & UNP_BUSY) != 0) {
854 1.109 ad /*
855 1.109 ad * EALREADY may not be strictly accurate, but since this
856 1.109 ad * is a major application error it's hardly a big deal.
857 1.109 ad */
858 1.109 ad return (EALREADY);
859 1.109 ad }
860 1.109 ad unp->unp_flags |= UNP_BUSY;
861 1.112 ad sounlock(so);
862 1.109 ad
863 1.27 thorpej /*
864 1.27 thorpej * Allocate the new sockaddr. We have to allocate one
865 1.27 thorpej * extra byte so that we can ensure that the pathname
866 1.27 thorpej * is nul-terminated.
867 1.27 thorpej */
868 1.112 ad p = l->l_proc;
869 1.27 thorpej addrlen = nam->m_len + 1;
870 1.27 thorpej sun = malloc(addrlen, M_SONAME, M_WAITOK);
871 1.95 christos m_copydata(nam, 0, nam->m_len, (void *)sun);
872 1.27 thorpej *(((char *)sun) + nam->m_len) = '\0';
873 1.27 thorpej
874 1.97 dsl NDINIT(&nd, CREATE, FOLLOW | LOCKPARENT | TRYEMULROOT, UIO_SYSSPACE,
875 1.103 pooka sun->sun_path);
876 1.27 thorpej
877 1.1 cgd /* SHOULD BE ABLE TO ADOPT EXISTING AND wakeup() ALA FIFO's */
878 1.16 christos if ((error = namei(&nd)) != 0)
879 1.27 thorpej goto bad;
880 1.9 mycroft vp = nd.ni_vp;
881 1.96 hannken if (vp != NULL) {
882 1.9 mycroft VOP_ABORTOP(nd.ni_dvp, &nd.ni_cnd);
883 1.9 mycroft if (nd.ni_dvp == vp)
884 1.9 mycroft vrele(nd.ni_dvp);
885 1.1 cgd else
886 1.9 mycroft vput(nd.ni_dvp);
887 1.1 cgd vrele(vp);
888 1.96 hannken error = EADDRINUSE;
889 1.96 hannken goto bad;
890 1.1 cgd }
891 1.1 cgd VATTR_NULL(&vattr);
892 1.1 cgd vattr.va_type = VSOCK;
893 1.84 jmmv vattr.va_mode = ACCESSPERMS & ~(p->p_cwdi->cwdi_cmask);
894 1.16 christos error = VOP_CREATE(nd.ni_dvp, &nd.ni_vp, &nd.ni_cnd, &vattr);
895 1.16 christos if (error)
896 1.27 thorpej goto bad;
897 1.9 mycroft vp = nd.ni_vp;
898 1.112 ad solock(so);
899 1.1 cgd vp->v_socket = unp->unp_socket;
900 1.1 cgd unp->unp_vnode = vp;
901 1.27 thorpej unp->unp_addrlen = addrlen;
902 1.27 thorpej unp->unp_addr = sun;
903 1.99 he unp->unp_connid.unp_pid = p->p_pid;
904 1.112 ad unp->unp_connid.unp_euid = kauth_cred_geteuid(l->l_cred);
905 1.112 ad unp->unp_connid.unp_egid = kauth_cred_getegid(l->l_cred);
906 1.99 he unp->unp_flags |= UNP_EIDSBIND;
907 1.31 fvdl VOP_UNLOCK(vp, 0);
908 1.109 ad unp->unp_flags &= ~UNP_BUSY;
909 1.1 cgd return (0);
910 1.27 thorpej
911 1.27 thorpej bad:
912 1.27 thorpej free(sun, M_SONAME);
913 1.112 ad solock(so);
914 1.109 ad unp->unp_flags &= ~UNP_BUSY;
915 1.27 thorpej return (error);
916 1.1 cgd }
917 1.1 cgd
918 1.5 andrew int
919 1.86 christos unp_connect(struct socket *so, struct mbuf *nam, struct lwp *l)
920 1.1 cgd {
921 1.46 augustss struct sockaddr_un *sun;
922 1.106 ad vnode_t *vp;
923 1.46 augustss struct socket *so2, *so3;
924 1.99 he struct unpcb *unp, *unp2, *unp3;
925 1.27 thorpej size_t addrlen;
926 1.1 cgd int error;
927 1.1 cgd struct nameidata nd;
928 1.1 cgd
929 1.109 ad unp = sotounpcb(so);
930 1.109 ad if ((unp->unp_flags & UNP_BUSY) != 0) {
931 1.109 ad /*
932 1.109 ad * EALREADY may not be strictly accurate, but since this
933 1.109 ad * is a major application error it's hardly a big deal.
934 1.109 ad */
935 1.109 ad return (EALREADY);
936 1.109 ad }
937 1.109 ad unp->unp_flags |= UNP_BUSY;
938 1.112 ad sounlock(so);
939 1.109 ad
940 1.27 thorpej /*
941 1.27 thorpej * Allocate a temporary sockaddr. We have to allocate one extra
942 1.27 thorpej * byte so that we can ensure that the pathname is nul-terminated.
943 1.27 thorpej * When we establish the connection, we copy the other PCB's
944 1.27 thorpej * sockaddr to our own.
945 1.27 thorpej */
946 1.27 thorpej addrlen = nam->m_len + 1;
947 1.27 thorpej sun = malloc(addrlen, M_SONAME, M_WAITOK);
948 1.95 christos m_copydata(nam, 0, nam->m_len, (void *)sun);
949 1.27 thorpej *(((char *)sun) + nam->m_len) = '\0';
950 1.27 thorpej
951 1.103 pooka NDINIT(&nd, LOOKUP, FOLLOW | LOCKLEAF | TRYEMULROOT, UIO_SYSSPACE,
952 1.103 pooka sun->sun_path);
953 1.27 thorpej
954 1.16 christos if ((error = namei(&nd)) != 0)
955 1.27 thorpej goto bad2;
956 1.9 mycroft vp = nd.ni_vp;
957 1.1 cgd if (vp->v_type != VSOCK) {
958 1.1 cgd error = ENOTSOCK;
959 1.1 cgd goto bad;
960 1.1 cgd }
961 1.102 pooka if ((error = VOP_ACCESS(vp, VWRITE, l->l_cred)) != 0)
962 1.1 cgd goto bad;
963 1.112 ad /* Acquire v_interlock to protect against unp_detach(). */
964 1.112 ad mutex_enter(&vp->v_interlock);
965 1.1 cgd so2 = vp->v_socket;
966 1.112 ad if (so2 == NULL) {
967 1.112 ad mutex_exit(&vp->v_interlock);
968 1.1 cgd error = ECONNREFUSED;
969 1.1 cgd goto bad;
970 1.1 cgd }
971 1.1 cgd if (so->so_type != so2->so_type) {
972 1.112 ad mutex_exit(&vp->v_interlock);
973 1.1 cgd error = EPROTOTYPE;
974 1.1 cgd goto bad;
975 1.1 cgd }
976 1.112 ad solock(so);
977 1.112 ad unp_resetlock(so);
978 1.112 ad mutex_exit(&vp->v_interlock);
979 1.112 ad if ((so->so_proto->pr_flags & PR_CONNREQUIRED) != 0) {
980 1.112 ad /*
981 1.112 ad * This may seem somewhat fragile but is OK: if we can
982 1.112 ad * see SO_ACCEPTCONN set on the endpoint, then it must
983 1.112 ad * be locked by the domain-wide uipc_lock.
984 1.112 ad */
985 1.112 ad KASSERT((so->so_options & SO_ACCEPTCONN) == 0 ||
986 1.112 ad so2->so_lock == uipc_lock);
987 1.1 cgd if ((so2->so_options & SO_ACCEPTCONN) == 0 ||
988 1.1 cgd (so3 = sonewconn(so2, 0)) == 0) {
989 1.1 cgd error = ECONNREFUSED;
990 1.112 ad sounlock(so);
991 1.1 cgd goto bad;
992 1.1 cgd }
993 1.1 cgd unp2 = sotounpcb(so2);
994 1.1 cgd unp3 = sotounpcb(so3);
995 1.26 thorpej if (unp2->unp_addr) {
996 1.26 thorpej unp3->unp_addr = malloc(unp2->unp_addrlen,
997 1.26 thorpej M_SONAME, M_WAITOK);
998 1.36 perry memcpy(unp3->unp_addr, unp2->unp_addr,
999 1.26 thorpej unp2->unp_addrlen);
1000 1.26 thorpej unp3->unp_addrlen = unp2->unp_addrlen;
1001 1.26 thorpej }
1002 1.30 thorpej unp3->unp_flags = unp2->unp_flags;
1003 1.112 ad unp3->unp_connid.unp_pid = l->l_proc->p_pid;
1004 1.112 ad unp3->unp_connid.unp_euid = kauth_cred_geteuid(l->l_cred);
1005 1.112 ad unp3->unp_connid.unp_egid = kauth_cred_getegid(l->l_cred);
1006 1.99 he unp3->unp_flags |= UNP_EIDSVALID;
1007 1.99 he if (unp2->unp_flags & UNP_EIDSBIND) {
1008 1.99 he unp->unp_connid = unp2->unp_connid;
1009 1.99 he unp->unp_flags |= UNP_EIDSVALID;
1010 1.99 he }
1011 1.112 ad so2 = so3;
1012 1.33 thorpej }
1013 1.72 matt error = unp_connect2(so, so2, PRU_CONNECT);
1014 1.112 ad sounlock(so);
1015 1.27 thorpej bad:
1016 1.1 cgd vput(vp);
1017 1.27 thorpej bad2:
1018 1.27 thorpej free(sun, M_SONAME);
1019 1.112 ad solock(so);
1020 1.109 ad unp->unp_flags &= ~UNP_BUSY;
1021 1.1 cgd return (error);
1022 1.1 cgd }
1023 1.1 cgd
1024 1.5 andrew int
1025 1.76 matt unp_connect2(struct socket *so, struct socket *so2, int req)
1026 1.1 cgd {
1027 1.46 augustss struct unpcb *unp = sotounpcb(so);
1028 1.46 augustss struct unpcb *unp2;
1029 1.1 cgd
1030 1.1 cgd if (so2->so_type != so->so_type)
1031 1.1 cgd return (EPROTOTYPE);
1032 1.112 ad
1033 1.112 ad /*
1034 1.112 ad * All three sockets involved must be locked by same lock:
1035 1.112 ad *
1036 1.112 ad * local endpoint (so)
1037 1.112 ad * remote endpoint (so2)
1038 1.112 ad * queue head (so->so_head, only if PR_CONNREQUIRED)
1039 1.112 ad */
1040 1.112 ad KASSERT(solocked2(so, so2));
1041 1.112 ad if (so->so_head != NULL) {
1042 1.112 ad KASSERT(so->so_lock == uipc_lock);
1043 1.112 ad KASSERT(solocked2(so, so->so_head));
1044 1.112 ad }
1045 1.112 ad
1046 1.1 cgd unp2 = sotounpcb(so2);
1047 1.1 cgd unp->unp_conn = unp2;
1048 1.1 cgd switch (so->so_type) {
1049 1.1 cgd
1050 1.1 cgd case SOCK_DGRAM:
1051 1.1 cgd unp->unp_nextref = unp2->unp_refs;
1052 1.1 cgd unp2->unp_refs = unp;
1053 1.1 cgd soisconnected(so);
1054 1.1 cgd break;
1055 1.1 cgd
1056 1.1 cgd case SOCK_STREAM:
1057 1.1 cgd unp2->unp_conn = unp;
1058 1.72 matt if (req == PRU_CONNECT &&
1059 1.72 matt ((unp->unp_flags | unp2->unp_flags) & UNP_CONNWAIT))
1060 1.72 matt soisconnecting(so);
1061 1.72 matt else
1062 1.72 matt soisconnected(so);
1063 1.1 cgd soisconnected(so2);
1064 1.112 ad /*
1065 1.112 ad * If the connection is fully established, break the
1066 1.112 ad * association with uipc_lock and give the connected
1067 1.112 ad * pair a seperate lock to share. For CONNECT2, we
1068 1.112 ad * require that the locks already match (the sockets
1069 1.112 ad * are created that way).
1070 1.112 ad */
1071 1.112 ad if (req == PRU_CONNECT)
1072 1.112 ad unp_setpeerlocks(so, so2);
1073 1.1 cgd break;
1074 1.1 cgd
1075 1.1 cgd default:
1076 1.1 cgd panic("unp_connect2");
1077 1.1 cgd }
1078 1.1 cgd return (0);
1079 1.1 cgd }
1080 1.1 cgd
1081 1.5 andrew void
1082 1.76 matt unp_disconnect(struct unpcb *unp)
1083 1.1 cgd {
1084 1.46 augustss struct unpcb *unp2 = unp->unp_conn;
1085 1.112 ad struct socket *so;
1086 1.1 cgd
1087 1.1 cgd if (unp2 == 0)
1088 1.1 cgd return;
1089 1.1 cgd unp->unp_conn = 0;
1090 1.112 ad so = unp->unp_socket;
1091 1.112 ad switch (so->so_type) {
1092 1.1 cgd case SOCK_DGRAM:
1093 1.1 cgd if (unp2->unp_refs == unp)
1094 1.1 cgd unp2->unp_refs = unp->unp_nextref;
1095 1.1 cgd else {
1096 1.1 cgd unp2 = unp2->unp_refs;
1097 1.1 cgd for (;;) {
1098 1.112 ad KASSERT(solocked2(so, unp2->unp_socket));
1099 1.1 cgd if (unp2 == 0)
1100 1.1 cgd panic("unp_disconnect");
1101 1.1 cgd if (unp2->unp_nextref == unp)
1102 1.1 cgd break;
1103 1.1 cgd unp2 = unp2->unp_nextref;
1104 1.1 cgd }
1105 1.1 cgd unp2->unp_nextref = unp->unp_nextref;
1106 1.1 cgd }
1107 1.1 cgd unp->unp_nextref = 0;
1108 1.112 ad so->so_state &= ~SS_ISCONNECTED;
1109 1.1 cgd break;
1110 1.1 cgd
1111 1.1 cgd case SOCK_STREAM:
1112 1.112 ad KASSERT(solocked2(so, unp2->unp_socket));
1113 1.112 ad soisdisconnected(so);
1114 1.1 cgd unp2->unp_conn = 0;
1115 1.1 cgd soisdisconnected(unp2->unp_socket);
1116 1.1 cgd break;
1117 1.1 cgd }
1118 1.1 cgd }
1119 1.1 cgd
1120 1.1 cgd #ifdef notdef
1121 1.76 matt unp_abort(struct unpcb *unp)
1122 1.1 cgd {
1123 1.1 cgd unp_detach(unp);
1124 1.1 cgd }
1125 1.1 cgd #endif
1126 1.1 cgd
1127 1.5 andrew void
1128 1.76 matt unp_shutdown(struct unpcb *unp)
1129 1.1 cgd {
1130 1.1 cgd struct socket *so;
1131 1.1 cgd
1132 1.1 cgd if (unp->unp_socket->so_type == SOCK_STREAM && unp->unp_conn &&
1133 1.1 cgd (so = unp->unp_conn->unp_socket))
1134 1.1 cgd socantrcvmore(so);
1135 1.1 cgd }
1136 1.1 cgd
1137 1.112 ad bool
1138 1.76 matt unp_drop(struct unpcb *unp, int errno)
1139 1.1 cgd {
1140 1.1 cgd struct socket *so = unp->unp_socket;
1141 1.1 cgd
1142 1.112 ad KASSERT(solocked(so));
1143 1.112 ad
1144 1.1 cgd so->so_error = errno;
1145 1.1 cgd unp_disconnect(unp);
1146 1.1 cgd if (so->so_head) {
1147 1.112 ad so->so_pcb = NULL;
1148 1.112 ad /* sofree() drops the socket lock */
1149 1.14 mycroft sofree(so);
1150 1.112 ad unp_free(unp);
1151 1.112 ad return true;
1152 1.1 cgd }
1153 1.112 ad return false;
1154 1.1 cgd }
1155 1.1 cgd
1156 1.1 cgd #ifdef notdef
1157 1.76 matt unp_drain(void)
1158 1.1 cgd {
1159 1.1 cgd
1160 1.1 cgd }
1161 1.1 cgd #endif
1162 1.1 cgd
1163 1.5 andrew int
1164 1.86 christos unp_externalize(struct mbuf *rights, struct lwp *l)
1165 1.1 cgd {
1166 1.46 augustss struct cmsghdr *cm = mtod(rights, struct cmsghdr *);
1167 1.86 christos struct proc *p = l->l_proc;
1168 1.47 thorpej int i, *fdp;
1169 1.106 ad file_t **rp;
1170 1.106 ad file_t *fp;
1171 1.50 thorpej int nfds, error = 0;
1172 1.47 thorpej
1173 1.47 thorpej nfds = (cm->cmsg_len - CMSG_ALIGN(sizeof(*cm))) /
1174 1.106 ad sizeof(file_t *);
1175 1.106 ad rp = (file_t **)CMSG_DATA(cm);
1176 1.1 cgd
1177 1.50 thorpej fdp = malloc(nfds * sizeof(int), M_TEMP, M_WAITOK);
1178 1.101 ad rw_enter(&p->p_cwdi->cwdi_lock, RW_READER);
1179 1.50 thorpej
1180 1.121 mrg /* Make sure the recipient should be able to see the files.. */
1181 1.42 thorpej if (p->p_cwdi->cwdi_rdir != NULL) {
1182 1.106 ad rp = (file_t **)CMSG_DATA(cm);
1183 1.39 sommerfe for (i = 0; i < nfds; i++) {
1184 1.39 sommerfe fp = *rp++;
1185 1.39 sommerfe /*
1186 1.39 sommerfe * If we are in a chroot'ed directory, and
1187 1.39 sommerfe * someone wants to pass us a directory, make
1188 1.39 sommerfe * sure it's inside the subtree we're allowed
1189 1.39 sommerfe * to access.
1190 1.39 sommerfe */
1191 1.39 sommerfe if (fp->f_type == DTYPE_VNODE) {
1192 1.106 ad vnode_t *vp = (vnode_t *)fp->f_data;
1193 1.39 sommerfe if ((vp->v_type == VDIR) &&
1194 1.86 christos !vn_isunder(vp, p->p_cwdi->cwdi_rdir, l)) {
1195 1.39 sommerfe error = EPERM;
1196 1.39 sommerfe break;
1197 1.39 sommerfe }
1198 1.39 sommerfe }
1199 1.39 sommerfe }
1200 1.39 sommerfe }
1201 1.50 thorpej
1202 1.50 thorpej restart:
1203 1.106 ad rp = (file_t **)CMSG_DATA(cm);
1204 1.50 thorpej if (error != 0) {
1205 1.24 cgd for (i = 0; i < nfds; i++) {
1206 1.1 cgd fp = *rp;
1207 1.39 sommerfe *rp++ = 0;
1208 1.121 mrg unp_discard_now(fp);
1209 1.1 cgd }
1210 1.50 thorpej goto out;
1211 1.1 cgd }
1212 1.50 thorpej
1213 1.24 cgd /*
1214 1.50 thorpej * First loop -- allocate file descriptor table slots for the
1215 1.121 mrg * new files.
1216 1.24 cgd */
1217 1.24 cgd for (i = 0; i < nfds; i++) {
1218 1.39 sommerfe fp = *rp++;
1219 1.106 ad if ((error = fd_alloc(p, 0, &fdp[i])) != 0) {
1220 1.49 thorpej /*
1221 1.50 thorpej * Back out what we've done so far.
1222 1.49 thorpej */
1223 1.106 ad for (--i; i >= 0; i--) {
1224 1.106 ad fd_abort(p, NULL, fdp[i]);
1225 1.106 ad }
1226 1.50 thorpej if (error == ENOSPC) {
1227 1.106 ad fd_tryexpand(p);
1228 1.50 thorpej error = 0;
1229 1.50 thorpej } else {
1230 1.50 thorpej /*
1231 1.50 thorpej * This is the error that has historically
1232 1.50 thorpej * been returned, and some callers may
1233 1.50 thorpej * expect it.
1234 1.50 thorpej */
1235 1.50 thorpej error = EMSGSIZE;
1236 1.50 thorpej }
1237 1.50 thorpej goto restart;
1238 1.49 thorpej }
1239 1.1 cgd }
1240 1.24 cgd
1241 1.24 cgd /*
1242 1.50 thorpej * Now that adding them has succeeded, update all of the
1243 1.121 mrg * file passing state and affix the descriptors.
1244 1.112 ad */
1245 1.106 ad rp = (file_t **)CMSG_DATA(cm);
1246 1.50 thorpej for (i = 0; i < nfds; i++) {
1247 1.50 thorpej fp = *rp++;
1248 1.106 ad atomic_dec_uint(&unp_rights);
1249 1.106 ad fd_affix(p, fp, fdp[i]);
1250 1.106 ad mutex_enter(&fp->f_lock);
1251 1.50 thorpej fp->f_msgcount--;
1252 1.106 ad mutex_exit(&fp->f_lock);
1253 1.106 ad /*
1254 1.106 ad * Note that fd_affix() adds a reference to the file.
1255 1.106 ad * The file may already have been closed by another
1256 1.106 ad * LWP in the process, so we must drop the reference
1257 1.106 ad * added by unp_internalize() with closef().
1258 1.106 ad */
1259 1.106 ad closef(fp);
1260 1.50 thorpej }
1261 1.50 thorpej
1262 1.50 thorpej /*
1263 1.50 thorpej * Copy temporary array to message and adjust length, in case of
1264 1.106 ad * transition from large file_t pointers to ints.
1265 1.50 thorpej */
1266 1.50 thorpej memcpy(CMSG_DATA(cm), fdp, nfds * sizeof(int));
1267 1.47 thorpej cm->cmsg_len = CMSG_LEN(nfds * sizeof(int));
1268 1.47 thorpej rights->m_len = CMSG_SPACE(nfds * sizeof(int));
1269 1.50 thorpej out:
1270 1.101 ad rw_exit(&p->p_cwdi->cwdi_lock);
1271 1.50 thorpej free(fdp, M_TEMP);
1272 1.50 thorpej return (error);
1273 1.1 cgd }
1274 1.1 cgd
1275 1.5 andrew int
1276 1.112 ad unp_internalize(struct mbuf **controlp)
1277 1.1 cgd {
1278 1.121 mrg filedesc_t *fdescp = curlwp->l_fd;
1279 1.108 yamt struct mbuf *control = *controlp;
1280 1.73 martin struct cmsghdr *newcm, *cm = mtod(control, struct cmsghdr *);
1281 1.106 ad file_t **rp, **files;
1282 1.106 ad file_t *fp;
1283 1.46 augustss int i, fd, *fdp;
1284 1.106 ad int nfds, error;
1285 1.121 mrg u_int maxmsg;
1286 1.106 ad
1287 1.106 ad error = 0;
1288 1.106 ad newcm = NULL;
1289 1.38 thorpej
1290 1.106 ad /* Sanity check the control message header. */
1291 1.66 jdolecek if (cm->cmsg_type != SCM_RIGHTS || cm->cmsg_level != SOL_SOCKET ||
1292 1.117 christos cm->cmsg_len > control->m_len ||
1293 1.117 christos cm->cmsg_len < CMSG_ALIGN(sizeof(*cm)))
1294 1.1 cgd return (EINVAL);
1295 1.24 cgd
1296 1.106 ad /*
1297 1.106 ad * Verify that the file descriptors are valid, and acquire
1298 1.106 ad * a reference to each.
1299 1.106 ad */
1300 1.47 thorpej nfds = (cm->cmsg_len - CMSG_ALIGN(sizeof(*cm))) / sizeof(int);
1301 1.47 thorpej fdp = (int *)CMSG_DATA(cm);
1302 1.121 mrg maxmsg = maxfiles / unp_rights_ratio;
1303 1.24 cgd for (i = 0; i < nfds; i++) {
1304 1.24 cgd fd = *fdp++;
1305 1.121 mrg if (atomic_inc_uint_nv(&unp_rights) > maxmsg) {
1306 1.121 mrg atomic_dec_uint(&unp_rights);
1307 1.121 mrg nfds = i;
1308 1.121 mrg error = EAGAIN;
1309 1.121 mrg goto out;
1310 1.121 mrg }
1311 1.106 ad if ((fp = fd_getfile(fd)) == NULL) {
1312 1.121 mrg atomic_dec_uint(&unp_rights);
1313 1.120 pooka nfds = i;
1314 1.106 ad error = EBADF;
1315 1.106 ad goto out;
1316 1.101 ad }
1317 1.24 cgd }
1318 1.24 cgd
1319 1.106 ad /* Allocate new space and copy header into it. */
1320 1.106 ad newcm = malloc(CMSG_SPACE(nfds * sizeof(file_t *)), M_MBUF, M_WAITOK);
1321 1.106 ad if (newcm == NULL) {
1322 1.106 ad error = E2BIG;
1323 1.106 ad goto out;
1324 1.106 ad }
1325 1.106 ad memcpy(newcm, cm, sizeof(struct cmsghdr));
1326 1.106 ad files = (file_t **)CMSG_DATA(newcm);
1327 1.106 ad
1328 1.24 cgd /*
1329 1.106 ad * Transform the file descriptors into file_t pointers, in
1330 1.24 cgd * reverse order so that if pointers are bigger than ints, the
1331 1.106 ad * int won't get until we're done. No need to lock, as we have
1332 1.106 ad * already validated the descriptors with fd_getfile().
1333 1.24 cgd */
1334 1.94 cbiere fdp = (int *)CMSG_DATA(cm) + nfds;
1335 1.94 cbiere rp = files + nfds;
1336 1.24 cgd for (i = 0; i < nfds; i++) {
1337 1.106 ad fp = fdescp->fd_ofiles[*--fdp]->ff_file;
1338 1.106 ad KASSERT(fp != NULL);
1339 1.106 ad mutex_enter(&fp->f_lock);
1340 1.94 cbiere *--rp = fp;
1341 1.1 cgd fp->f_count++;
1342 1.1 cgd fp->f_msgcount++;
1343 1.106 ad mutex_exit(&fp->f_lock);
1344 1.106 ad }
1345 1.106 ad
1346 1.106 ad out:
1347 1.106 ad /* Release descriptor references. */
1348 1.106 ad fdp = (int *)CMSG_DATA(cm);
1349 1.106 ad for (i = 0; i < nfds; i++) {
1350 1.106 ad fd_putfile(*fdp++);
1351 1.121 mrg if (error != 0) {
1352 1.121 mrg atomic_dec_uint(&unp_rights);
1353 1.121 mrg }
1354 1.1 cgd }
1355 1.73 martin
1356 1.106 ad if (error == 0) {
1357 1.108 yamt if (control->m_flags & M_EXT) {
1358 1.108 yamt m_freem(control);
1359 1.108 yamt *controlp = control = m_get(M_WAIT, MT_CONTROL);
1360 1.108 yamt }
1361 1.106 ad MEXTADD(control, newcm, CMSG_SPACE(nfds * sizeof(file_t *)),
1362 1.73 martin M_MBUF, NULL, NULL);
1363 1.73 martin cm = newcm;
1364 1.106 ad /*
1365 1.106 ad * Adjust message & mbuf to note amount of space
1366 1.106 ad * actually used.
1367 1.106 ad */
1368 1.106 ad cm->cmsg_len = CMSG_LEN(nfds * sizeof(file_t *));
1369 1.106 ad control->m_len = CMSG_SPACE(nfds * sizeof(file_t *));
1370 1.73 martin }
1371 1.73 martin
1372 1.106 ad return error;
1373 1.30 thorpej }
1374 1.30 thorpej
1375 1.30 thorpej struct mbuf *
1376 1.92 ad unp_addsockcred(struct lwp *l, struct mbuf *control)
1377 1.30 thorpej {
1378 1.30 thorpej struct cmsghdr *cmp;
1379 1.30 thorpej struct sockcred *sc;
1380 1.30 thorpej struct mbuf *m, *n;
1381 1.47 thorpej int len, space, i;
1382 1.30 thorpej
1383 1.92 ad len = CMSG_LEN(SOCKCREDSIZE(kauth_cred_ngroups(l->l_cred)));
1384 1.92 ad space = CMSG_SPACE(SOCKCREDSIZE(kauth_cred_ngroups(l->l_cred)));
1385 1.30 thorpej
1386 1.30 thorpej m = m_get(M_WAIT, MT_CONTROL);
1387 1.47 thorpej if (space > MLEN) {
1388 1.47 thorpej if (space > MCLBYTES)
1389 1.47 thorpej MEXTMALLOC(m, space, M_WAITOK);
1390 1.30 thorpej else
1391 1.59 matt m_clget(m, M_WAIT);
1392 1.30 thorpej if ((m->m_flags & M_EXT) == 0) {
1393 1.30 thorpej m_free(m);
1394 1.30 thorpej return (control);
1395 1.30 thorpej }
1396 1.30 thorpej }
1397 1.30 thorpej
1398 1.47 thorpej m->m_len = space;
1399 1.30 thorpej m->m_next = NULL;
1400 1.30 thorpej cmp = mtod(m, struct cmsghdr *);
1401 1.30 thorpej sc = (struct sockcred *)CMSG_DATA(cmp);
1402 1.30 thorpej cmp->cmsg_len = len;
1403 1.30 thorpej cmp->cmsg_level = SOL_SOCKET;
1404 1.30 thorpej cmp->cmsg_type = SCM_CREDS;
1405 1.92 ad sc->sc_uid = kauth_cred_getuid(l->l_cred);
1406 1.92 ad sc->sc_euid = kauth_cred_geteuid(l->l_cred);
1407 1.92 ad sc->sc_gid = kauth_cred_getgid(l->l_cred);
1408 1.92 ad sc->sc_egid = kauth_cred_getegid(l->l_cred);
1409 1.92 ad sc->sc_ngroups = kauth_cred_ngroups(l->l_cred);
1410 1.30 thorpej for (i = 0; i < sc->sc_ngroups; i++)
1411 1.92 ad sc->sc_groups[i] = kauth_cred_group(l->l_cred, i);
1412 1.30 thorpej
1413 1.30 thorpej /*
1414 1.30 thorpej * If a control message already exists, append us to the end.
1415 1.30 thorpej */
1416 1.30 thorpej if (control != NULL) {
1417 1.30 thorpej for (n = control; n->m_next != NULL; n = n->m_next)
1418 1.30 thorpej ;
1419 1.30 thorpej n->m_next = m;
1420 1.30 thorpej } else
1421 1.30 thorpej control = m;
1422 1.30 thorpej
1423 1.30 thorpej return (control);
1424 1.1 cgd }
1425 1.1 cgd
1426 1.39 sommerfe /*
1427 1.121 mrg * Do a mark-sweep GC of files in the system, to free up any which are
1428 1.121 mrg * caught in flight to an about-to-be-closed socket. Additionally,
1429 1.121 mrg * process deferred file closures.
1430 1.39 sommerfe */
1431 1.121 mrg static void
1432 1.121 mrg unp_gc(file_t *dp)
1433 1.1 cgd {
1434 1.121 mrg extern struct domain unixdomain;
1435 1.121 mrg file_t *fp, *np;
1436 1.46 augustss struct socket *so, *so1;
1437 1.121 mrg u_int i, old, new;
1438 1.121 mrg bool didwork;
1439 1.1 cgd
1440 1.121 mrg KASSERT(curlwp == unp_thread_lwp);
1441 1.121 mrg KASSERT(mutex_owned(&filelist_lock));
1442 1.106 ad
1443 1.121 mrg /*
1444 1.121 mrg * First, process deferred file closures.
1445 1.121 mrg */
1446 1.121 mrg while (!SLIST_EMPTY(&unp_thread_discard)) {
1447 1.121 mrg fp = SLIST_FIRST(&unp_thread_discard);
1448 1.121 mrg KASSERT(fp->f_unpcount > 0);
1449 1.121 mrg KASSERT(fp->f_count > 0);
1450 1.121 mrg KASSERT(fp->f_msgcount > 0);
1451 1.121 mrg KASSERT(fp->f_count >= fp->f_unpcount);
1452 1.121 mrg KASSERT(fp->f_count >= fp->f_msgcount);
1453 1.121 mrg KASSERT(fp->f_msgcount >= fp->f_unpcount);
1454 1.121 mrg SLIST_REMOVE_HEAD(&unp_thread_discard, f_unplist);
1455 1.121 mrg i = fp->f_unpcount;
1456 1.121 mrg fp->f_unpcount = 0;
1457 1.121 mrg mutex_exit(&filelist_lock);
1458 1.121 mrg for (; i != 0; i--) {
1459 1.121 mrg unp_discard_now(fp);
1460 1.121 mrg }
1461 1.121 mrg mutex_enter(&filelist_lock);
1462 1.121 mrg }
1463 1.39 sommerfe
1464 1.121 mrg /*
1465 1.121 mrg * Clear mark bits. Ensure that we don't consider new files
1466 1.121 mrg * entering the file table during this loop (they will not have
1467 1.121 mrg * FSCAN set).
1468 1.121 mrg */
1469 1.106 ad unp_defer = 0;
1470 1.106 ad LIST_FOREACH(fp, &filehead, f_list) {
1471 1.121 mrg for (old = fp->f_flag;; old = new) {
1472 1.121 mrg new = atomic_cas_uint(&fp->f_flag, old,
1473 1.121 mrg (old | FSCAN) & ~(FMARK|FDEFER));
1474 1.121 mrg if (__predict_true(old == new)) {
1475 1.121 mrg break;
1476 1.121 mrg }
1477 1.121 mrg }
1478 1.106 ad }
1479 1.39 sommerfe
1480 1.39 sommerfe /*
1481 1.121 mrg * Iterate over the set of sockets, marking ones believed (based on
1482 1.121 mrg * refcount) to be referenced from a process, and marking for rescan
1483 1.121 mrg * sockets which are queued on a socket. Recan continues descending
1484 1.121 mrg * and searching for sockets referenced by sockets (FDEFER), until
1485 1.121 mrg * there are no more socket->socket references to be discovered.
1486 1.39 sommerfe */
1487 1.1 cgd do {
1488 1.121 mrg didwork = false;
1489 1.121 mrg for (fp = LIST_FIRST(&filehead); fp != NULL; fp = np) {
1490 1.121 mrg KASSERT(mutex_owned(&filelist_lock));
1491 1.121 mrg np = LIST_NEXT(fp, f_list);
1492 1.106 ad mutex_enter(&fp->f_lock);
1493 1.121 mrg if ((fp->f_flag & FDEFER) != 0) {
1494 1.106 ad atomic_and_uint(&fp->f_flag, ~FDEFER);
1495 1.1 cgd unp_defer--;
1496 1.106 ad KASSERT(fp->f_count != 0);
1497 1.1 cgd } else {
1498 1.101 ad if (fp->f_count == 0 ||
1499 1.121 mrg (fp->f_flag & FMARK) != 0 ||
1500 1.121 mrg fp->f_count == fp->f_msgcount ||
1501 1.121 mrg fp->f_unpcount != 0) {
1502 1.106 ad mutex_exit(&fp->f_lock);
1503 1.1 cgd continue;
1504 1.101 ad }
1505 1.1 cgd }
1506 1.106 ad atomic_or_uint(&fp->f_flag, FMARK);
1507 1.39 sommerfe
1508 1.1 cgd if (fp->f_type != DTYPE_SOCKET ||
1509 1.112 ad (so = fp->f_data) == NULL ||
1510 1.101 ad so->so_proto->pr_domain != &unixdomain ||
1511 1.121 mrg (so->so_proto->pr_flags & PR_RIGHTS) == 0) {
1512 1.106 ad mutex_exit(&fp->f_lock);
1513 1.1 cgd continue;
1514 1.101 ad }
1515 1.121 mrg
1516 1.121 mrg /* Gain file ref, mark our position, and unlock. */
1517 1.121 mrg didwork = true;
1518 1.121 mrg LIST_INSERT_AFTER(fp, dp, f_list);
1519 1.121 mrg fp->f_count++;
1520 1.106 ad mutex_exit(&fp->f_lock);
1521 1.121 mrg mutex_exit(&filelist_lock);
1522 1.101 ad
1523 1.112 ad /*
1524 1.121 mrg * Mark files referenced from sockets queued on the
1525 1.121 mrg * accept queue as well.
1526 1.112 ad */
1527 1.112 ad solock(so);
1528 1.39 sommerfe unp_scan(so->so_rcv.sb_mb, unp_mark, 0);
1529 1.121 mrg if ((so->so_options & SO_ACCEPTCONN) != 0) {
1530 1.54 matt TAILQ_FOREACH(so1, &so->so_q0, so_qe) {
1531 1.39 sommerfe unp_scan(so1->so_rcv.sb_mb, unp_mark, 0);
1532 1.39 sommerfe }
1533 1.54 matt TAILQ_FOREACH(so1, &so->so_q, so_qe) {
1534 1.39 sommerfe unp_scan(so1->so_rcv.sb_mb, unp_mark, 0);
1535 1.39 sommerfe }
1536 1.39 sommerfe }
1537 1.112 ad sounlock(so);
1538 1.121 mrg
1539 1.121 mrg /* Re-lock and restart from where we left off. */
1540 1.121 mrg closef(fp);
1541 1.121 mrg mutex_enter(&filelist_lock);
1542 1.121 mrg np = LIST_NEXT(dp, f_list);
1543 1.121 mrg LIST_REMOVE(dp, f_list);
1544 1.1 cgd }
1545 1.121 mrg /*
1546 1.121 mrg * Bail early if we did nothing in the loop above. Could
1547 1.121 mrg * happen because of concurrent activity causing unp_defer
1548 1.121 mrg * to get out of sync.
1549 1.121 mrg */
1550 1.121 mrg } while (unp_defer != 0 && didwork);
1551 1.101 ad
1552 1.8 mycroft /*
1553 1.121 mrg * Sweep pass.
1554 1.8 mycroft *
1555 1.121 mrg * We grab an extra reference to each of the files that are
1556 1.121 mrg * not otherwise accessible and then free the rights that are
1557 1.121 mrg * stored in messages on them.
1558 1.8 mycroft */
1559 1.121 mrg for (fp = LIST_FIRST(&filehead); fp != NULL; fp = np) {
1560 1.121 mrg KASSERT(mutex_owned(&filelist_lock));
1561 1.121 mrg np = LIST_NEXT(fp, f_list);
1562 1.106 ad mutex_enter(&fp->f_lock);
1563 1.121 mrg
1564 1.121 mrg /*
1565 1.121 mrg * Ignore non-sockets.
1566 1.121 mrg * Ignore dead sockets, or sockets with pending close.
1567 1.121 mrg * Ignore sockets obviously referenced elsewhere.
1568 1.121 mrg * Ignore sockets marked as referenced by our scan.
1569 1.121 mrg * Ignore new sockets that did not exist during the scan.
1570 1.121 mrg */
1571 1.121 mrg if (fp->f_type != DTYPE_SOCKET ||
1572 1.121 mrg fp->f_count == 0 || fp->f_unpcount != 0 ||
1573 1.121 mrg fp->f_count != fp->f_msgcount ||
1574 1.121 mrg (fp->f_flag & (FMARK | FSCAN)) != FSCAN) {
1575 1.121 mrg mutex_exit(&fp->f_lock);
1576 1.121 mrg continue;
1577 1.8 mycroft }
1578 1.121 mrg
1579 1.121 mrg /* Gain file ref, mark our position, and unlock. */
1580 1.121 mrg LIST_INSERT_AFTER(fp, dp, f_list);
1581 1.121 mrg fp->f_count++;
1582 1.106 ad mutex_exit(&fp->f_lock);
1583 1.121 mrg mutex_exit(&filelist_lock);
1584 1.121 mrg
1585 1.121 mrg /*
1586 1.121 mrg * Flush all data from the socket's receive buffer.
1587 1.121 mrg * This will cause files referenced only by the
1588 1.121 mrg * socket to be queued for close.
1589 1.121 mrg */
1590 1.121 mrg so = fp->f_data;
1591 1.121 mrg solock(so);
1592 1.121 mrg sorflush(so);
1593 1.121 mrg sounlock(so);
1594 1.121 mrg
1595 1.121 mrg /* Re-lock and restart from where we left off. */
1596 1.121 mrg closef(fp);
1597 1.121 mrg mutex_enter(&filelist_lock);
1598 1.121 mrg np = LIST_NEXT(dp, f_list);
1599 1.121 mrg LIST_REMOVE(dp, f_list);
1600 1.121 mrg }
1601 1.121 mrg }
1602 1.121 mrg
1603 1.121 mrg /*
1604 1.121 mrg * Garbage collector thread. While SCM_RIGHTS messages are in transit,
1605 1.121 mrg * wake once per second to garbage collect. Run continually while we
1606 1.121 mrg * have deferred closes to process.
1607 1.121 mrg */
1608 1.121 mrg static void
1609 1.121 mrg unp_thread(void *cookie)
1610 1.121 mrg {
1611 1.121 mrg file_t *dp;
1612 1.121 mrg
1613 1.121 mrg /* Allocate a dummy file for our scans. */
1614 1.121 mrg if ((dp = fgetdummy()) == NULL) {
1615 1.121 mrg panic("unp_thread");
1616 1.1 cgd }
1617 1.101 ad
1618 1.121 mrg mutex_enter(&filelist_lock);
1619 1.121 mrg for (;;) {
1620 1.121 mrg KASSERT(mutex_owned(&filelist_lock));
1621 1.121 mrg if (SLIST_EMPTY(&unp_thread_discard)) {
1622 1.121 mrg if (unp_rights != 0) {
1623 1.121 mrg (void)cv_timedwait(&unp_thread_cv,
1624 1.121 mrg &filelist_lock, hz);
1625 1.121 mrg } else {
1626 1.121 mrg cv_wait(&unp_thread_cv, &filelist_lock);
1627 1.121 mrg }
1628 1.112 ad }
1629 1.121 mrg unp_gc(dp);
1630 1.39 sommerfe }
1631 1.121 mrg /* NOTREACHED */
1632 1.121 mrg }
1633 1.121 mrg
1634 1.121 mrg /*
1635 1.121 mrg * Kick the garbage collector into action if there is something for
1636 1.121 mrg * it to process.
1637 1.121 mrg */
1638 1.121 mrg static void
1639 1.121 mrg unp_thread_kick(void)
1640 1.121 mrg {
1641 1.121 mrg
1642 1.121 mrg if (!SLIST_EMPTY(&unp_thread_discard) || unp_rights != 0) {
1643 1.121 mrg mutex_enter(&filelist_lock);
1644 1.121 mrg cv_signal(&unp_thread_cv);
1645 1.121 mrg mutex_exit(&filelist_lock);
1646 1.44 thorpej }
1647 1.1 cgd }
1648 1.1 cgd
1649 1.5 andrew void
1650 1.76 matt unp_dispose(struct mbuf *m)
1651 1.1 cgd {
1652 1.8 mycroft
1653 1.1 cgd if (m)
1654 1.121 mrg unp_scan(m, unp_discard_later, 1);
1655 1.1 cgd }
1656 1.1 cgd
1657 1.5 andrew void
1658 1.106 ad unp_scan(struct mbuf *m0, void (*op)(file_t *), int discard)
1659 1.1 cgd {
1660 1.46 augustss struct mbuf *m;
1661 1.121 mrg file_t **rp, *fp;
1662 1.46 augustss struct cmsghdr *cm;
1663 1.121 mrg int i, qfds;
1664 1.1 cgd
1665 1.1 cgd while (m0) {
1666 1.48 thorpej for (m = m0; m; m = m->m_next) {
1667 1.121 mrg if (m->m_type != MT_CONTROL ||
1668 1.121 mrg m->m_len < sizeof(*cm)) {
1669 1.121 mrg continue;
1670 1.121 mrg }
1671 1.121 mrg cm = mtod(m, struct cmsghdr *);
1672 1.121 mrg if (cm->cmsg_level != SOL_SOCKET ||
1673 1.121 mrg cm->cmsg_type != SCM_RIGHTS)
1674 1.121 mrg continue;
1675 1.121 mrg qfds = (cm->cmsg_len - CMSG_ALIGN(sizeof(*cm)))
1676 1.121 mrg / sizeof(file_t *);
1677 1.121 mrg rp = (file_t **)CMSG_DATA(cm);
1678 1.121 mrg for (i = 0; i < qfds; i++) {
1679 1.121 mrg fp = *rp;
1680 1.121 mrg if (discard) {
1681 1.121 mrg *rp = 0;
1682 1.39 sommerfe }
1683 1.121 mrg (*op)(fp);
1684 1.121 mrg rp++;
1685 1.1 cgd }
1686 1.48 thorpej }
1687 1.52 thorpej m0 = m0->m_nextpkt;
1688 1.1 cgd }
1689 1.1 cgd }
1690 1.1 cgd
1691 1.5 andrew void
1692 1.106 ad unp_mark(file_t *fp)
1693 1.1 cgd {
1694 1.101 ad
1695 1.39 sommerfe if (fp == NULL)
1696 1.39 sommerfe return;
1697 1.80 perry
1698 1.39 sommerfe /* If we're already deferred, don't screw up the defer count */
1699 1.106 ad mutex_enter(&fp->f_lock);
1700 1.101 ad if (fp->f_flag & (FMARK | FDEFER)) {
1701 1.106 ad mutex_exit(&fp->f_lock);
1702 1.1 cgd return;
1703 1.101 ad }
1704 1.39 sommerfe
1705 1.39 sommerfe /*
1706 1.121 mrg * Minimize the number of deferrals... Sockets are the only type of
1707 1.121 mrg * file which can hold references to another file, so just mark
1708 1.121 mrg * other files, and defer unmarked sockets for the next pass.
1709 1.39 sommerfe */
1710 1.39 sommerfe if (fp->f_type == DTYPE_SOCKET) {
1711 1.39 sommerfe unp_defer++;
1712 1.106 ad KASSERT(fp->f_count != 0);
1713 1.106 ad atomic_or_uint(&fp->f_flag, FDEFER);
1714 1.39 sommerfe } else {
1715 1.106 ad atomic_or_uint(&fp->f_flag, FMARK);
1716 1.39 sommerfe }
1717 1.106 ad mutex_exit(&fp->f_lock);
1718 1.1 cgd }
1719 1.1 cgd
1720 1.121 mrg static void
1721 1.121 mrg unp_discard_now(file_t *fp)
1722 1.1 cgd {
1723 1.106 ad
1724 1.39 sommerfe if (fp == NULL)
1725 1.39 sommerfe return;
1726 1.106 ad
1727 1.121 mrg KASSERT(fp->f_count > 0);
1728 1.121 mrg KASSERT(fp->f_msgcount > 0);
1729 1.121 mrg
1730 1.106 ad mutex_enter(&fp->f_lock);
1731 1.1 cgd fp->f_msgcount--;
1732 1.106 ad mutex_exit(&fp->f_lock);
1733 1.106 ad atomic_dec_uint(&unp_rights);
1734 1.106 ad (void)closef(fp);
1735 1.1 cgd }
1736 1.121 mrg
1737 1.121 mrg static void
1738 1.121 mrg unp_discard_later(file_t *fp)
1739 1.121 mrg {
1740 1.121 mrg
1741 1.121 mrg if (fp == NULL)
1742 1.121 mrg return;
1743 1.121 mrg
1744 1.121 mrg KASSERT(fp->f_count > 0);
1745 1.121 mrg KASSERT(fp->f_msgcount > 0);
1746 1.121 mrg
1747 1.121 mrg mutex_enter(&filelist_lock);
1748 1.121 mrg if (fp->f_unpcount++ == 0) {
1749 1.121 mrg SLIST_INSERT_HEAD(&unp_thread_discard, fp, f_unplist);
1750 1.121 mrg }
1751 1.121 mrg mutex_exit(&filelist_lock);
1752 1.121 mrg }
1753