sysv_sem.c revision 1.69 1 /* $NetBSD: sysv_sem.c,v 1.69 2007/06/17 10:27:16 dsl Exp $ */
2
3 /*-
4 * Copyright (c) 1999 The NetBSD Foundation, Inc.
5 * All rights reserved.
6 *
7 * This code is derived from software contributed to The NetBSD Foundation
8 * by Jason R. Thorpe of the Numerical Aerospace Simulation Facility,
9 * NASA Ames Research Center.
10 *
11 * Redistribution and use in source and binary forms, with or without
12 * modification, are permitted provided that the following conditions
13 * are met:
14 * 1. Redistributions of source code must retain the above copyright
15 * notice, this list of conditions and the following disclaimer.
16 * 2. Redistributions in binary form must reproduce the above copyright
17 * notice, this list of conditions and the following disclaimer in the
18 * documentation and/or other materials provided with the distribution.
19 * 3. All advertising materials mentioning features or use of this software
20 * must display the following acknowledgement:
21 * This product includes software developed by the NetBSD
22 * Foundation, Inc. and its contributors.
23 * 4. Neither the name of The NetBSD Foundation nor the names of its
24 * contributors may be used to endorse or promote products derived
25 * from this software without specific prior written permission.
26 *
27 * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
28 * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
29 * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
30 * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
31 * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
32 * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
33 * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
34 * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
35 * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
36 * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
37 * POSSIBILITY OF SUCH DAMAGE.
38 */
39
40 /*
41 * Implementation of SVID semaphores
42 *
43 * Author: Daniel Boulet
44 *
45 * This software is provided ``AS IS'' without any warranties of any kind.
46 */
47
48 #include <sys/cdefs.h>
49 __KERNEL_RCSID(0, "$NetBSD: sysv_sem.c,v 1.69 2007/06/17 10:27:16 dsl Exp $");
50
51 #define SYSVSEM
52
53 #include <sys/param.h>
54 #include <sys/kernel.h>
55 #include <sys/sem.h>
56 #include <sys/sysctl.h>
57 #include <sys/malloc.h>
58 #include <sys/mount.h> /* XXX for <sys/syscallargs.h> */
59 #include <sys/syscallargs.h>
60 #include <sys/kauth.h>
61
62 static int semtot = 0;
63 struct semid_ds *sema; /* semaphore id pool */
64 static struct __sem *sem; /* semaphore pool */
65 static struct sem_undo *semu_list; /* list of active undo structures */
66 static int *semu; /* undo structure pool */
67
68 #ifdef SEM_DEBUG
69 #define SEM_PRINTF(a) printf a
70 #else
71 #define SEM_PRINTF(a)
72 #endif
73
74 struct sem_undo *semu_alloc(struct proc *);
75 int semundo_adjust(struct proc *, struct sem_undo **, int, int, int);
76 void semundo_clear(int, int);
77
78 /*
79 * XXXSMP Once we go MP, there needs to be a lock for the semaphore system.
80 * Until then, we're saved by being a non-preemptive kernel.
81 */
82
83 void
84 seminit(void)
85 {
86 int i, sz;
87 vaddr_t v;
88
89 /* Allocate pageable memory for our structures */
90 sz = seminfo.semmni * sizeof(struct semid_ds) +
91 seminfo.semmns * sizeof(struct __sem) +
92 seminfo.semmnu * seminfo.semusz;
93 v = uvm_km_alloc(kernel_map, round_page(sz), 0,
94 UVM_KMF_WIRED|UVM_KMF_ZERO);
95 if (v == 0)
96 panic("sysv_sem: cannot allocate memory");
97 sema = (void *)v;
98 sem = (void *)(sema + seminfo.semmni);
99 semu = (void *)(sem + seminfo.semmns);
100
101 for (i = 0; i < seminfo.semmni; i++) {
102 sema[i]._sem_base = 0;
103 sema[i].sem_perm.mode = 0;
104 }
105 for (i = 0; i < seminfo.semmnu; i++) {
106 struct sem_undo *suptr = SEMU(i);
107 suptr->un_proc = NULL;
108 }
109 semu_list = NULL;
110 exithook_establish(semexit, NULL);
111 }
112
113 /*
114 * Placebo.
115 */
116
117 int
118 sys_semconfig(struct lwp *l, void *v, register_t *retval)
119 {
120
121 *retval = 0;
122 return 0;
123 }
124
125 /*
126 * Allocate a new sem_undo structure for a process
127 * (returns ptr to structure or NULL if no more room)
128 */
129
130 struct sem_undo *
131 semu_alloc(struct proc *p)
132 {
133 int i;
134 struct sem_undo *suptr;
135 struct sem_undo **supptr;
136 int attempt;
137
138 /*
139 * Try twice to allocate something.
140 * (we'll purge any empty structures after the first pass so
141 * two passes are always enough)
142 */
143
144 for (attempt = 0; attempt < 2; attempt++) {
145 /*
146 * Look for a free structure.
147 * Fill it in and return it if we find one.
148 */
149
150 for (i = 0; i < seminfo.semmnu; i++) {
151 suptr = SEMU(i);
152 if (suptr->un_proc == NULL) {
153 suptr->un_next = semu_list;
154 semu_list = suptr;
155 suptr->un_cnt = 0;
156 suptr->un_proc = p;
157 return (suptr);
158 }
159 }
160
161 /*
162 * We didn't find a free one, if this is the first attempt
163 * then try to free some structures.
164 */
165
166 if (attempt == 0) {
167 /* All the structures are in use - try to free some */
168 int did_something = 0;
169
170 supptr = &semu_list;
171 while ((suptr = *supptr) != NULL) {
172 if (suptr->un_cnt == 0) {
173 suptr->un_proc = NULL;
174 *supptr = suptr->un_next;
175 did_something = 1;
176 } else
177 supptr = &suptr->un_next;
178 }
179
180 /* If we didn't free anything then just give-up */
181 if (!did_something)
182 return (NULL);
183 } else {
184 /*
185 * The second pass failed even though we freed
186 * something after the first pass!
187 * This is IMPOSSIBLE!
188 */
189 panic("semu_alloc - second attempt failed");
190 }
191 }
192 return NULL;
193 }
194
195 /*
196 * Adjust a particular entry for a particular proc
197 */
198
199 int
200 semundo_adjust(struct proc *p, struct sem_undo **supptr, int semid, int semnum,
201 int adjval)
202 {
203 struct sem_undo *suptr;
204 struct undo *sunptr;
205 int i;
206
207 /*
208 * Look for and remember the sem_undo if the caller doesn't
209 * provide it
210 */
211
212 suptr = *supptr;
213 if (suptr == NULL) {
214 for (suptr = semu_list; suptr != NULL; suptr = suptr->un_next)
215 if (suptr->un_proc == p)
216 break;
217
218 if (suptr == NULL) {
219 suptr = semu_alloc(p);
220 if (suptr == NULL)
221 return (ENOSPC);
222 }
223 *supptr = suptr;
224 }
225
226 /*
227 * Look for the requested entry and adjust it (delete if
228 * adjval becomes 0).
229 */
230 sunptr = &suptr->un_ent[0];
231 for (i = 0; i < suptr->un_cnt; i++, sunptr++) {
232 if (sunptr->un_id != semid || sunptr->un_num != semnum)
233 continue;
234 sunptr->un_adjval += adjval;
235 if (sunptr->un_adjval == 0) {
236 suptr->un_cnt--;
237 if (i < suptr->un_cnt)
238 suptr->un_ent[i] =
239 suptr->un_ent[suptr->un_cnt];
240 }
241 return (0);
242 }
243
244 /* Didn't find the right entry - create it */
245 if (suptr->un_cnt == SEMUME)
246 return (EINVAL);
247
248 sunptr = &suptr->un_ent[suptr->un_cnt];
249 suptr->un_cnt++;
250 sunptr->un_adjval = adjval;
251 sunptr->un_id = semid;
252 sunptr->un_num = semnum;
253 return (0);
254 }
255
256 void
257 semundo_clear(int semid, int semnum)
258 {
259 struct sem_undo *suptr;
260 struct undo *sunptr, *sunend;
261
262 for (suptr = semu_list; suptr != NULL; suptr = suptr->un_next)
263 for (sunptr = &suptr->un_ent[0],
264 sunend = sunptr + suptr->un_cnt; sunptr < sunend;) {
265 if (sunptr->un_id == semid) {
266 if (semnum == -1 || sunptr->un_num == semnum) {
267 suptr->un_cnt--;
268 sunend--;
269 if (sunptr != sunend)
270 *sunptr = *sunend;
271 if (semnum != -1)
272 break;
273 else
274 continue;
275 }
276 }
277 sunptr++;
278 }
279 }
280
281 int
282 sys_____semctl13(struct lwp *l, void *v, register_t *retval)
283 {
284 struct sys_____semctl13_args /* {
285 syscallarg(int) semid;
286 syscallarg(int) semnum;
287 syscallarg(int) cmd;
288 syscallarg(union __semun *) arg;
289 } */ *uap = v;
290 struct semid_ds sembuf;
291 int cmd, error;
292 void *pass_arg;
293 union __semun karg;
294
295 cmd = SCARG(uap, cmd);
296
297 pass_arg = get_semctl_arg(cmd, &sembuf, &karg);
298
299 if (pass_arg) {
300 error = copyin(SCARG(uap, arg), &karg, sizeof(karg));
301 if (error)
302 return error;
303 if (cmd == IPC_SET) {
304 error = copyin(karg.buf, &sembuf, sizeof(sembuf));
305 if (error)
306 return (error);
307 }
308 }
309
310 error = semctl1(l, SCARG(uap, semid), SCARG(uap, semnum), cmd,
311 pass_arg, retval);
312
313 if (error == 0 && cmd == IPC_STAT)
314 error = copyout(&sembuf, karg.buf, sizeof(sembuf));
315
316 return (error);
317 }
318
319 int
320 semctl1(struct lwp *l, int semid, int semnum, int cmd, void *v,
321 register_t *retval)
322 {
323 kauth_cred_t cred = l->l_cred;
324 union __semun *arg = v;
325 struct semid_ds *sembuf = v, *semaptr;
326 int i, error, ix;
327
328 SEM_PRINTF(("call to semctl(%d, %d, %d, %p)\n",
329 semid, semnum, cmd, v));
330
331 ix = IPCID_TO_IX(semid);
332 if (ix < 0 || ix >= seminfo.semmni)
333 return (EINVAL);
334
335 semaptr = &sema[ix];
336 if ((semaptr->sem_perm.mode & SEM_ALLOC) == 0 ||
337 semaptr->sem_perm._seq != IPCID_TO_SEQ(semid))
338 return (EINVAL);
339
340 switch (cmd) {
341 case IPC_RMID:
342 if ((error = ipcperm(cred, &semaptr->sem_perm, IPC_M)) != 0)
343 return (error);
344 semaptr->sem_perm.cuid = kauth_cred_geteuid(cred);
345 semaptr->sem_perm.uid = kauth_cred_geteuid(cred);
346 semtot -= semaptr->sem_nsems;
347 for (i = semaptr->_sem_base - sem; i < semtot; i++)
348 sem[i] = sem[i + semaptr->sem_nsems];
349 for (i = 0; i < seminfo.semmni; i++) {
350 if ((sema[i].sem_perm.mode & SEM_ALLOC) &&
351 sema[i]._sem_base > semaptr->_sem_base)
352 sema[i]._sem_base -= semaptr->sem_nsems;
353 }
354 semaptr->sem_perm.mode = 0;
355 semundo_clear(ix, -1);
356 wakeup(semaptr);
357 break;
358
359 case IPC_SET:
360 if ((error = ipcperm(cred, &semaptr->sem_perm, IPC_M)))
361 return (error);
362 KASSERT(sembuf != NULL);
363 semaptr->sem_perm.uid = sembuf->sem_perm.uid;
364 semaptr->sem_perm.gid = sembuf->sem_perm.gid;
365 semaptr->sem_perm.mode = (semaptr->sem_perm.mode & ~0777) |
366 (sembuf->sem_perm.mode & 0777);
367 semaptr->sem_ctime = time_second;
368 break;
369
370 case IPC_STAT:
371 if ((error = ipcperm(cred, &semaptr->sem_perm, IPC_R)))
372 return (error);
373 KASSERT(sembuf != NULL);
374 memcpy(sembuf, semaptr, sizeof(struct semid_ds));
375 break;
376
377 case GETNCNT:
378 if ((error = ipcperm(cred, &semaptr->sem_perm, IPC_R)))
379 return (error);
380 if (semnum < 0 || semnum >= semaptr->sem_nsems)
381 return (EINVAL);
382 *retval = semaptr->_sem_base[semnum].semncnt;
383 break;
384
385 case GETPID:
386 if ((error = ipcperm(cred, &semaptr->sem_perm, IPC_R)))
387 return (error);
388 if (semnum < 0 || semnum >= semaptr->sem_nsems)
389 return (EINVAL);
390 *retval = semaptr->_sem_base[semnum].sempid;
391 break;
392
393 case GETVAL:
394 if ((error = ipcperm(cred, &semaptr->sem_perm, IPC_R)))
395 return (error);
396 if (semnum < 0 || semnum >= semaptr->sem_nsems)
397 return (EINVAL);
398 *retval = semaptr->_sem_base[semnum].semval;
399 break;
400
401 case GETALL:
402 if ((error = ipcperm(cred, &semaptr->sem_perm, IPC_R)))
403 return (error);
404 KASSERT(arg != NULL);
405 for (i = 0; i < semaptr->sem_nsems; i++) {
406 error = copyout(&semaptr->_sem_base[i].semval,
407 &arg->array[i], sizeof(arg->array[i]));
408 if (error != 0)
409 break;
410 }
411 break;
412
413 case GETZCNT:
414 if ((error = ipcperm(cred, &semaptr->sem_perm, IPC_R)))
415 return (error);
416 if (semnum < 0 || semnum >= semaptr->sem_nsems)
417 return (EINVAL);
418 *retval = semaptr->_sem_base[semnum].semzcnt;
419 break;
420
421 case SETVAL:
422 if ((error = ipcperm(cred, &semaptr->sem_perm, IPC_W)))
423 return (error);
424 if (semnum < 0 || semnum >= semaptr->sem_nsems)
425 return (EINVAL);
426 KASSERT(arg != NULL);
427 semaptr->_sem_base[semnum].semval = arg->val;
428 semundo_clear(ix, semnum);
429 wakeup(semaptr);
430 break;
431
432 case SETALL:
433 if ((error = ipcperm(cred, &semaptr->sem_perm, IPC_W)))
434 return (error);
435 KASSERT(arg != NULL);
436 for (i = 0; i < semaptr->sem_nsems; i++) {
437 error = copyin(&arg->array[i],
438 &semaptr->_sem_base[i].semval,
439 sizeof(arg->array[i]));
440 if (error != 0)
441 break;
442 }
443 semundo_clear(ix, -1);
444 wakeup(semaptr);
445 break;
446
447 default:
448 return (EINVAL);
449 }
450
451 return (error);
452 }
453
454 int
455 sys_semget(struct lwp *l, void *v, register_t *retval)
456 {
457 struct sys_semget_args /* {
458 syscallarg(key_t) key;
459 syscallarg(int) nsems;
460 syscallarg(int) semflg;
461 } */ *uap = v;
462 int semid, eval;
463 int key = SCARG(uap, key);
464 int nsems = SCARG(uap, nsems);
465 int semflg = SCARG(uap, semflg);
466 kauth_cred_t cred = l->l_cred;
467
468 SEM_PRINTF(("semget(0x%x, %d, 0%o)\n", key, nsems, semflg));
469
470 if (key != IPC_PRIVATE) {
471 for (semid = 0; semid < seminfo.semmni; semid++) {
472 if ((sema[semid].sem_perm.mode & SEM_ALLOC) &&
473 sema[semid].sem_perm._key == key)
474 break;
475 }
476 if (semid < seminfo.semmni) {
477 SEM_PRINTF(("found public key\n"));
478 if ((eval = ipcperm(cred, &sema[semid].sem_perm,
479 semflg & 0700)))
480 return (eval);
481 if (nsems > 0 && sema[semid].sem_nsems < nsems) {
482 SEM_PRINTF(("too small\n"));
483 return (EINVAL);
484 }
485 if ((semflg & IPC_CREAT) && (semflg & IPC_EXCL)) {
486 SEM_PRINTF(("not exclusive\n"));
487 return (EEXIST);
488 }
489 goto found;
490 }
491 }
492
493 SEM_PRINTF(("need to allocate the semid_ds\n"));
494 if (key == IPC_PRIVATE || (semflg & IPC_CREAT)) {
495 if (nsems <= 0 || nsems > seminfo.semmsl) {
496 SEM_PRINTF(("nsems out of range (0<%d<=%d)\n", nsems,
497 seminfo.semmsl));
498 return (EINVAL);
499 }
500 if (nsems > seminfo.semmns - semtot) {
501 SEM_PRINTF(("not enough semaphores left "
502 "(need %d, got %d)\n",
503 nsems, seminfo.semmns - semtot));
504 return (ENOSPC);
505 }
506 for (semid = 0; semid < seminfo.semmni; semid++) {
507 if ((sema[semid].sem_perm.mode & SEM_ALLOC) == 0)
508 break;
509 }
510 if (semid == seminfo.semmni) {
511 SEM_PRINTF(("no more semid_ds's available\n"));
512 return (ENOSPC);
513 }
514 SEM_PRINTF(("semid %d is available\n", semid));
515 sema[semid].sem_perm._key = key;
516 sema[semid].sem_perm.cuid = kauth_cred_geteuid(cred);
517 sema[semid].sem_perm.uid = kauth_cred_geteuid(cred);
518 sema[semid].sem_perm.cgid = kauth_cred_getegid(cred);
519 sema[semid].sem_perm.gid = kauth_cred_getegid(cred);
520 sema[semid].sem_perm.mode = (semflg & 0777) | SEM_ALLOC;
521 sema[semid].sem_perm._seq =
522 (sema[semid].sem_perm._seq + 1) & 0x7fff;
523 sema[semid].sem_nsems = nsems;
524 sema[semid].sem_otime = 0;
525 sema[semid].sem_ctime = time_second;
526 sema[semid]._sem_base = &sem[semtot];
527 semtot += nsems;
528 memset(sema[semid]._sem_base, 0,
529 sizeof(sema[semid]._sem_base[0]) * nsems);
530 SEM_PRINTF(("sembase = %p, next = %p\n", sema[semid]._sem_base,
531 &sem[semtot]));
532 } else {
533 SEM_PRINTF(("didn't find it and wasn't asked to create it\n"));
534 return (ENOENT);
535 }
536
537 found:
538 *retval = IXSEQ_TO_IPCID(semid, sema[semid].sem_perm);
539 return (0);
540 }
541
542 #define SMALL_SOPS 8
543
544 int
545 sys_semop(struct lwp *l, void *v, register_t *retval)
546 {
547 struct sys_semop_args /* {
548 syscallarg(int) semid;
549 syscallarg(struct sembuf *) sops;
550 syscallarg(size_t) nsops;
551 } */ *uap = v;
552 struct proc *p = l->l_proc;
553 int semid = SCARG(uap, semid), seq;
554 size_t nsops = SCARG(uap, nsops);
555 struct sembuf small_sops[SMALL_SOPS];
556 struct sembuf *sops;
557 struct semid_ds *semaptr;
558 struct sembuf *sopptr = NULL;
559 struct __sem *semptr = NULL;
560 struct sem_undo *suptr = NULL;
561 kauth_cred_t cred = l->l_cred;
562 int i, eval;
563 int do_wakeup, do_undos;
564
565 SEM_PRINTF(("call to semop(%d, %p, %zd)\n", semid, SCARG(uap,sops), nsops));
566
567 semid = IPCID_TO_IX(semid); /* Convert back to zero origin */
568 if (semid < 0 || semid >= seminfo.semmni)
569 return (EINVAL);
570
571 semaptr = &sema[semid];
572 seq = IPCID_TO_SEQ(SCARG(uap, semid));
573 if ((semaptr->sem_perm.mode & SEM_ALLOC) == 0 ||
574 semaptr->sem_perm._seq != seq)
575 return (EINVAL);
576
577 if ((eval = ipcperm(cred, &semaptr->sem_perm, IPC_W))) {
578 SEM_PRINTF(("eval = %d from ipaccess\n", eval));
579 return (eval);
580 }
581
582 if (nsops <= SMALL_SOPS) {
583 sops = small_sops;
584 } else if (nsops <= seminfo.semopm) {
585 sops = malloc(nsops * sizeof(*sops), M_TEMP, M_WAITOK);
586 } else {
587 SEM_PRINTF(("too many sops (max=%d, nsops=%zd)\n",
588 seminfo.semopm, nsops));
589 return (E2BIG);
590 }
591
592 if ((eval = copyin(SCARG(uap, sops),
593 sops, nsops * sizeof(sops[0]))) != 0) {
594 SEM_PRINTF(("eval = %d from copyin(%p, %p, %zd)\n", eval,
595 SCARG(uap, sops), &sops, nsops * sizeof(sops[0])));
596 goto out;
597 }
598
599 for (i = 0; i < nsops; i++)
600 if (sops[i].sem_num >= semaptr->sem_nsems) {
601 eval = EFBIG;
602 goto out;
603 }
604
605 /*
606 * Loop trying to satisfy the vector of requests.
607 * If we reach a point where we must wait, any requests already
608 * performed are rolled back and we go to sleep until some other
609 * process wakes us up. At this point, we start all over again.
610 *
611 * This ensures that from the perspective of other tasks, a set
612 * of requests is atomic (never partially satisfied).
613 */
614 do_undos = 0;
615
616 for (;;) {
617 do_wakeup = 0;
618
619 for (i = 0; i < nsops; i++) {
620 sopptr = &sops[i];
621 semptr = &semaptr->_sem_base[sopptr->sem_num];
622
623 SEM_PRINTF(("semop: semaptr=%p, sem_base=%p, "
624 "semptr=%p, sem[%d]=%d : op=%d, flag=%s\n",
625 semaptr, semaptr->_sem_base, semptr,
626 sopptr->sem_num, semptr->semval, sopptr->sem_op,
627 (sopptr->sem_flg & IPC_NOWAIT) ?
628 "nowait" : "wait"));
629
630 if (sopptr->sem_op < 0) {
631 if ((int)(semptr->semval +
632 sopptr->sem_op) < 0) {
633 SEM_PRINTF(("semop: "
634 "can't do it now\n"));
635 break;
636 } else {
637 semptr->semval += sopptr->sem_op;
638 if (semptr->semval == 0 &&
639 semptr->semzcnt > 0)
640 do_wakeup = 1;
641 }
642 if (sopptr->sem_flg & SEM_UNDO)
643 do_undos = 1;
644 } else if (sopptr->sem_op == 0) {
645 if (semptr->semval > 0) {
646 SEM_PRINTF(("semop: not zero now\n"));
647 break;
648 }
649 } else {
650 if (semptr->semncnt > 0)
651 do_wakeup = 1;
652 semptr->semval += sopptr->sem_op;
653 if (sopptr->sem_flg & SEM_UNDO)
654 do_undos = 1;
655 }
656 }
657
658 /*
659 * Did we get through the entire vector?
660 */
661 if (i >= nsops)
662 goto done;
663
664 /*
665 * No ... rollback anything that we've already done
666 */
667 SEM_PRINTF(("semop: rollback 0 through %d\n", i - 1));
668 while (i-- > 0)
669 semaptr->_sem_base[sops[i].sem_num].semval -=
670 sops[i].sem_op;
671
672 /*
673 * If the request that we couldn't satisfy has the
674 * NOWAIT flag set then return with EAGAIN.
675 */
676 if (sopptr->sem_flg & IPC_NOWAIT) {
677 eval = EAGAIN;
678 goto out;
679 }
680
681 if (sopptr->sem_op == 0)
682 semptr->semzcnt++;
683 else
684 semptr->semncnt++;
685
686 SEM_PRINTF(("semop: good night!\n"));
687 eval = tsleep((void *)semaptr, (PZERO - 4) | PCATCH,
688 "semwait", 0);
689 SEM_PRINTF(("semop: good morning (eval=%d)!\n", eval));
690
691 /*
692 * Make sure that the semaphore still exists
693 */
694 if ((semaptr->sem_perm.mode & SEM_ALLOC) == 0 ||
695 semaptr->sem_perm._seq != seq) {
696 eval = EIDRM;
697 goto out;
698 }
699
700 /*
701 * The semaphore is still alive. Readjust the count of
702 * waiting processes.
703 */
704 semptr = &semaptr->_sem_base[sopptr->sem_num];
705 if (sopptr->sem_op == 0)
706 semptr->semzcnt--;
707 else
708 semptr->semncnt--;
709 /*
710 * Is it really morning, or was our sleep interrupted?
711 * (Delayed check of tsleep() return code because we
712 * need to decrement sem[nz]cnt either way.)
713 */
714 if (eval != 0) {
715 eval = EINTR;
716 goto out;
717 }
718 SEM_PRINTF(("semop: good morning!\n"));
719 }
720
721 done:
722 /*
723 * Process any SEM_UNDO requests.
724 */
725 if (do_undos) {
726 for (i = 0; i < nsops; i++) {
727 /*
728 * We only need to deal with SEM_UNDO's for non-zero
729 * op's.
730 */
731 int adjval;
732
733 if ((sops[i].sem_flg & SEM_UNDO) == 0)
734 continue;
735 adjval = sops[i].sem_op;
736 if (adjval == 0)
737 continue;
738 eval = semundo_adjust(p, &suptr, semid,
739 sops[i].sem_num, -adjval);
740 if (eval == 0)
741 continue;
742
743 /*
744 * Oh-Oh! We ran out of either sem_undo's or undo's.
745 * Rollback the adjustments to this point and then
746 * rollback the semaphore ups and down so we can return
747 * with an error with all structures restored. We
748 * rollback the undo's in the exact reverse order that
749 * we applied them. This guarantees that we won't run
750 * out of space as we roll things back out.
751 */
752 while (i-- > 0) {
753 if ((sops[i].sem_flg & SEM_UNDO) == 0)
754 continue;
755 adjval = sops[i].sem_op;
756 if (adjval == 0)
757 continue;
758 if (semundo_adjust(p, &suptr, semid,
759 sops[i].sem_num, adjval) != 0)
760 panic("semop - can't undo undos");
761 }
762
763 for (i = 0; i < nsops; i++)
764 semaptr->_sem_base[sops[i].sem_num].semval -=
765 sops[i].sem_op;
766
767 SEM_PRINTF(("eval = %d from semundo_adjust\n", eval));
768 goto out;
769 } /* loop through the sops */
770 } /* if (do_undos) */
771
772 /* We're definitely done - set the sempid's */
773 for (i = 0; i < nsops; i++) {
774 sopptr = &sops[i];
775 semptr = &semaptr->_sem_base[sopptr->sem_num];
776 semptr->sempid = p->p_pid;
777 }
778
779 /* Update sem_otime */
780 semaptr->sem_otime = time_second;
781
782 /* Do a wakeup if any semaphore was up'd. */
783 if (do_wakeup) {
784 SEM_PRINTF(("semop: doing wakeup\n"));
785 #ifdef SEM_WAKEUP
786 sem_wakeup((void *)semaptr);
787 #else
788 wakeup((void *)semaptr);
789 #endif
790 SEM_PRINTF(("semop: back from wakeup\n"));
791 }
792 SEM_PRINTF(("semop: done\n"));
793 *retval = 0;
794
795 out:
796 if (sops != small_sops) {
797 free(sops, M_TEMP);
798 }
799 return eval;
800 }
801
802 /*
803 * Go through the undo structures for this process and apply the
804 * adjustments to semaphores.
805 */
806 /*ARGSUSED*/
807 void
808 semexit(struct proc *p, void *v)
809 {
810 struct sem_undo *suptr;
811 struct sem_undo **supptr;
812
813 /*
814 * Go through the chain of undo vectors looking for one
815 * associated with this process.
816 */
817
818 for (supptr = &semu_list; (suptr = *supptr) != NULL;
819 supptr = &suptr->un_next) {
820 if (suptr->un_proc == p)
821 break;
822 }
823
824 /*
825 * If there is no undo vector, skip to the end.
826 */
827
828 if (suptr == NULL)
829 return;
830
831 /*
832 * We now have an undo vector for this process.
833 */
834
835 SEM_PRINTF(("proc @%p has undo structure with %d entries\n", p,
836 suptr->un_cnt));
837
838 /*
839 * If there are any active undo elements then process them.
840 */
841 if (suptr->un_cnt > 0) {
842 int ix;
843
844 for (ix = 0; ix < suptr->un_cnt; ix++) {
845 int semid = suptr->un_ent[ix].un_id;
846 int semnum = suptr->un_ent[ix].un_num;
847 int adjval = suptr->un_ent[ix].un_adjval;
848 struct semid_ds *semaptr;
849
850 semaptr = &sema[semid];
851 if ((semaptr->sem_perm.mode & SEM_ALLOC) == 0)
852 panic("semexit - semid not allocated");
853 if (semnum >= semaptr->sem_nsems)
854 panic("semexit - semnum out of range");
855
856 SEM_PRINTF(("semexit: %p id=%d num=%d(adj=%d) ; "
857 "sem=%d\n",
858 suptr->un_proc, suptr->un_ent[ix].un_id,
859 suptr->un_ent[ix].un_num,
860 suptr->un_ent[ix].un_adjval,
861 semaptr->_sem_base[semnum].semval));
862
863 if (adjval < 0 &&
864 semaptr->_sem_base[semnum].semval < -adjval)
865 semaptr->_sem_base[semnum].semval = 0;
866 else
867 semaptr->_sem_base[semnum].semval += adjval;
868
869 #ifdef SEM_WAKEUP
870 sem_wakeup((void *)semaptr);
871 #else
872 wakeup((void *)semaptr);
873 #endif
874 SEM_PRINTF(("semexit: back from wakeup\n"));
875 }
876 }
877
878 /*
879 * Deallocate the undo vector.
880 */
881 SEM_PRINTF(("removing vector\n"));
882 suptr->un_proc = NULL;
883 *supptr = suptr->un_next;
884 }
885