sysv_sem.c revision 1.104 1 1.104 hannken /* $NetBSD: sysv_sem.c,v 1.104 2025/05/23 09:47:34 hannken Exp $ */
2 1.33 thorpej
3 1.33 thorpej /*-
4 1.70 ad * Copyright (c) 1999, 2007 The NetBSD Foundation, Inc.
5 1.33 thorpej * All rights reserved.
6 1.33 thorpej *
7 1.33 thorpej * This code is derived from software contributed to The NetBSD Foundation
8 1.33 thorpej * by Jason R. Thorpe of the Numerical Aerospace Simulation Facility,
9 1.70 ad * NASA Ames Research Center, and by Andrew Doran.
10 1.33 thorpej *
11 1.33 thorpej * Redistribution and use in source and binary forms, with or without
12 1.33 thorpej * modification, are permitted provided that the following conditions
13 1.33 thorpej * are met:
14 1.33 thorpej * 1. Redistributions of source code must retain the above copyright
15 1.33 thorpej * notice, this list of conditions and the following disclaimer.
16 1.33 thorpej * 2. Redistributions in binary form must reproduce the above copyright
17 1.33 thorpej * notice, this list of conditions and the following disclaimer in the
18 1.33 thorpej * documentation and/or other materials provided with the distribution.
19 1.33 thorpej *
20 1.33 thorpej * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
21 1.33 thorpej * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
22 1.33 thorpej * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
23 1.33 thorpej * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
24 1.33 thorpej * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
25 1.33 thorpej * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
26 1.33 thorpej * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
27 1.33 thorpej * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
28 1.33 thorpej * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
29 1.33 thorpej * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
30 1.33 thorpej * POSSIBILITY OF SUCH DAMAGE.
31 1.33 thorpej */
32 1.9 cgd
33 1.1 cgd /*
34 1.1 cgd * Implementation of SVID semaphores
35 1.1 cgd *
36 1.33 thorpej * Author: Daniel Boulet
37 1.1 cgd *
38 1.1 cgd * This software is provided ``AS IS'' without any warranties of any kind.
39 1.1 cgd */
40 1.42 lukem
41 1.42 lukem #include <sys/cdefs.h>
42 1.104 hannken __KERNEL_RCSID(0, "$NetBSD: sysv_sem.c,v 1.104 2025/05/23 09:47:34 hannken Exp $");
43 1.31 tron
44 1.92 pgoyette #ifdef _KERNEL_OPT
45 1.92 pgoyette #include "opt_sysv.h"
46 1.92 pgoyette #endif
47 1.1 cgd
48 1.3 mycroft #include <sys/param.h>
49 1.3 mycroft #include <sys/kernel.h>
50 1.3 mycroft #include <sys/sem.h>
51 1.38 simonb #include <sys/sysctl.h>
52 1.70 ad #include <sys/kmem.h>
53 1.38 simonb #include <sys/mount.h> /* XXX for <sys/syscallargs.h> */
54 1.10 cgd #include <sys/syscallargs.h>
55 1.61 elad #include <sys/kauth.h>
56 1.95 pgoyette #include <sys/once.h>
57 1.25 christos
58 1.103 riastrad /*
59 1.74 rmind * Memory areas:
60 1.74 rmind * 1st: Pool of semaphore identifiers
61 1.74 rmind * 2nd: Semaphores
62 1.74 rmind * 3rd: Conditional variables
63 1.74 rmind * 4th: Undo structures
64 1.74 rmind */
65 1.87 rmind struct semid_ds * sema __read_mostly;
66 1.87 rmind static struct __sem * sem __read_mostly;
67 1.87 rmind static kcondvar_t * semcv __read_mostly;
68 1.87 rmind static int * semu __read_mostly;
69 1.87 rmind
70 1.87 rmind static kmutex_t semlock __cacheline_aligned;
71 1.87 rmind static bool sem_realloc_state __read_mostly;
72 1.87 rmind static kcondvar_t sem_realloc_cv;
73 1.87 rmind
74 1.87 rmind /*
75 1.87 rmind * List of active undo structures, total number of semaphores,
76 1.87 rmind * and total number of semop waiters.
77 1.87 rmind */
78 1.87 rmind static struct sem_undo *semu_list __read_mostly;
79 1.87 rmind static u_int semtot __cacheline_aligned;
80 1.87 rmind static u_int sem_waiters __cacheline_aligned;
81 1.74 rmind
82 1.74 rmind /* Macro to find a particular sem_undo vector */
83 1.74 rmind #define SEMU(s, ix) ((struct sem_undo *)(((long)s) + ix * seminfo.semusz))
84 1.1 cgd
85 1.27 christos #ifdef SEM_DEBUG
86 1.28 christos #define SEM_PRINTF(a) printf a
87 1.27 christos #else
88 1.27 christos #define SEM_PRINTF(a)
89 1.27 christos #endif
90 1.27 christos
91 1.93 pgoyette void *hook; /* cookie from exithook_establish() */
92 1.93 pgoyette
93 1.93 pgoyette extern int kern_has_sysvsem;
94 1.93 pgoyette
95 1.95 pgoyette SYSCTL_SETUP_PROTO(sysctl_ipc_sem_setup);
96 1.95 pgoyette
97 1.53 junyoung struct sem_undo *semu_alloc(struct proc *);
98 1.53 junyoung int semundo_adjust(struct proc *, struct sem_undo **, int, int, int);
99 1.53 junyoung void semundo_clear(int, int);
100 1.25 christos
101 1.95 pgoyette static ONCE_DECL(exithook_control);
102 1.95 pgoyette static int seminit_exithook(void);
103 1.95 pgoyette
104 1.97 pgoyette int
105 1.98 pgoyette seminit(void)
106 1.1 cgd {
107 1.48 jdolecek int i, sz;
108 1.48 jdolecek vaddr_t v;
109 1.1 cgd
110 1.70 ad mutex_init(&semlock, MUTEX_DEFAULT, IPL_NONE);
111 1.74 rmind cv_init(&sem_realloc_cv, "semrealc");
112 1.74 rmind sem_realloc_state = false;
113 1.87 rmind semtot = 0;
114 1.87 rmind sem_waiters = 0;
115 1.70 ad
116 1.74 rmind /* Allocate the wired memory for our structures */
117 1.74 rmind sz = ALIGN(seminfo.semmni * sizeof(struct semid_ds)) +
118 1.74 rmind ALIGN(seminfo.semmns * sizeof(struct __sem)) +
119 1.74 rmind ALIGN(seminfo.semmni * sizeof(kcondvar_t)) +
120 1.74 rmind ALIGN(seminfo.semmnu * seminfo.semusz);
121 1.88 uebayasi sz = round_page(sz);
122 1.88 uebayasi v = uvm_km_alloc(kernel_map, sz, 0, UVM_KMF_WIRED|UVM_KMF_ZERO);
123 1.97 pgoyette if (v == 0) {
124 1.97 pgoyette printf("sysv_sem: cannot allocate memory");
125 1.97 pgoyette return ENOMEM;
126 1.97 pgoyette }
127 1.48 jdolecek sema = (void *)v;
128 1.84 rmind sem = (void *)((uintptr_t)sema +
129 1.84 rmind ALIGN(seminfo.semmni * sizeof(struct semid_ds)));
130 1.84 rmind semcv = (void *)((uintptr_t)sem +
131 1.84 rmind ALIGN(seminfo.semmns * sizeof(struct __sem)));
132 1.84 rmind semu = (void *)((uintptr_t)semcv +
133 1.84 rmind ALIGN(seminfo.semmni * sizeof(kcondvar_t)));
134 1.5 mycroft
135 1.5 mycroft for (i = 0; i < seminfo.semmni; i++) {
136 1.33 thorpej sema[i]._sem_base = 0;
137 1.5 mycroft sema[i].sem_perm.mode = 0;
138 1.70 ad cv_init(&semcv[i], "semwait");
139 1.5 mycroft }
140 1.5 mycroft for (i = 0; i < seminfo.semmnu; i++) {
141 1.74 rmind struct sem_undo *suptr = SEMU(semu, i);
142 1.5 mycroft suptr->un_proc = NULL;
143 1.5 mycroft }
144 1.5 mycroft semu_list = NULL;
145 1.94 pgoyette
146 1.94 pgoyette kern_has_sysvsem = 1;
147 1.89 elad
148 1.97 pgoyette return 0;
149 1.95 pgoyette }
150 1.95 pgoyette
151 1.95 pgoyette static int
152 1.95 pgoyette seminit_exithook(void)
153 1.95 pgoyette {
154 1.93 pgoyette
155 1.95 pgoyette hook = exithook_establish(semexit, NULL);
156 1.95 pgoyette return 0;
157 1.1 cgd }
158 1.1 cgd
159 1.94 pgoyette int
160 1.94 pgoyette semfini(void)
161 1.94 pgoyette {
162 1.94 pgoyette int i, sz;
163 1.94 pgoyette vaddr_t v = (vaddr_t)sema;
164 1.94 pgoyette
165 1.94 pgoyette /* Don't allow module unload if we're busy */
166 1.94 pgoyette mutex_enter(&semlock);
167 1.94 pgoyette if (semtot) {
168 1.94 pgoyette mutex_exit(&semlock);
169 1.94 pgoyette return 1;
170 1.94 pgoyette }
171 1.94 pgoyette
172 1.94 pgoyette /* Remove the exit hook */
173 1.95 pgoyette if (hook)
174 1.95 pgoyette exithook_disestablish(hook);
175 1.94 pgoyette
176 1.94 pgoyette /* Destroy all our condvars */
177 1.94 pgoyette for (i = 0; i < seminfo.semmni; i++) {
178 1.94 pgoyette cv_destroy(&semcv[i]);
179 1.94 pgoyette }
180 1.94 pgoyette
181 1.94 pgoyette /* Free the wired memory that we allocated */
182 1.94 pgoyette sz = ALIGN(seminfo.semmni * sizeof(struct semid_ds)) +
183 1.94 pgoyette ALIGN(seminfo.semmns * sizeof(struct __sem)) +
184 1.94 pgoyette ALIGN(seminfo.semmni * sizeof(kcondvar_t)) +
185 1.94 pgoyette ALIGN(seminfo.semmnu * seminfo.semusz);
186 1.94 pgoyette sz = round_page(sz);
187 1.94 pgoyette uvm_km_free(kernel_map, v, sz, UVM_KMF_WIRED);
188 1.94 pgoyette
189 1.94 pgoyette /* Destroy the last cv and mutex */
190 1.94 pgoyette cv_destroy(&sem_realloc_cv);
191 1.94 pgoyette mutex_exit(&semlock);
192 1.94 pgoyette mutex_destroy(&semlock);
193 1.94 pgoyette
194 1.94 pgoyette kern_has_sysvsem = 0;
195 1.94 pgoyette
196 1.94 pgoyette return 0;
197 1.94 pgoyette }
198 1.94 pgoyette
199 1.74 rmind static int
200 1.74 rmind semrealloc(int newsemmni, int newsemmns, int newsemmnu)
201 1.74 rmind {
202 1.74 rmind struct semid_ds *new_sema, *old_sema;
203 1.74 rmind struct __sem *new_sem;
204 1.74 rmind struct sem_undo *new_semu_list, *suptr, *nsuptr;
205 1.74 rmind int *new_semu;
206 1.74 rmind kcondvar_t *new_semcv;
207 1.74 rmind vaddr_t v;
208 1.74 rmind int i, j, lsemid, nmnus, sz;
209 1.74 rmind
210 1.74 rmind if (newsemmni < 1 || newsemmns < 1 || newsemmnu < 1)
211 1.74 rmind return EINVAL;
212 1.74 rmind
213 1.74 rmind /* Allocate the wired memory for our structures */
214 1.74 rmind sz = ALIGN(newsemmni * sizeof(struct semid_ds)) +
215 1.74 rmind ALIGN(newsemmns * sizeof(struct __sem)) +
216 1.74 rmind ALIGN(newsemmni * sizeof(kcondvar_t)) +
217 1.74 rmind ALIGN(newsemmnu * seminfo.semusz);
218 1.88 uebayasi sz = round_page(sz);
219 1.88 uebayasi v = uvm_km_alloc(kernel_map, sz, 0, UVM_KMF_WIRED|UVM_KMF_ZERO);
220 1.74 rmind if (v == 0)
221 1.74 rmind return ENOMEM;
222 1.74 rmind
223 1.74 rmind mutex_enter(&semlock);
224 1.74 rmind if (sem_realloc_state) {
225 1.74 rmind mutex_exit(&semlock);
226 1.74 rmind uvm_km_free(kernel_map, v, sz, UVM_KMF_WIRED);
227 1.74 rmind return EBUSY;
228 1.74 rmind }
229 1.74 rmind sem_realloc_state = true;
230 1.74 rmind if (sem_waiters) {
231 1.74 rmind /*
232 1.74 rmind * Mark reallocation state, wake-up all waiters,
233 1.74 rmind * and wait while they will all exit.
234 1.74 rmind */
235 1.74 rmind for (i = 0; i < seminfo.semmni; i++)
236 1.74 rmind cv_broadcast(&semcv[i]);
237 1.74 rmind while (sem_waiters)
238 1.74 rmind cv_wait(&sem_realloc_cv, &semlock);
239 1.74 rmind }
240 1.74 rmind old_sema = sema;
241 1.74 rmind
242 1.74 rmind /* Get the number of last slot */
243 1.74 rmind lsemid = 0;
244 1.74 rmind for (i = 0; i < seminfo.semmni; i++)
245 1.74 rmind if (sema[i].sem_perm.mode & SEM_ALLOC)
246 1.74 rmind lsemid = i;
247 1.74 rmind
248 1.74 rmind /* Get the number of currently used undo structures */
249 1.74 rmind nmnus = 0;
250 1.74 rmind for (i = 0; i < seminfo.semmnu; i++) {
251 1.74 rmind suptr = SEMU(semu, i);
252 1.74 rmind if (suptr->un_proc == NULL)
253 1.74 rmind continue;
254 1.74 rmind nmnus++;
255 1.74 rmind }
256 1.74 rmind
257 1.74 rmind /* We cannot reallocate less memory than we use */
258 1.74 rmind if (lsemid >= newsemmni || semtot > newsemmns || nmnus > newsemmnu) {
259 1.74 rmind mutex_exit(&semlock);
260 1.74 rmind uvm_km_free(kernel_map, v, sz, UVM_KMF_WIRED);
261 1.74 rmind return EBUSY;
262 1.74 rmind }
263 1.74 rmind
264 1.74 rmind new_sema = (void *)v;
265 1.84 rmind new_sem = (void *)((uintptr_t)new_sema +
266 1.84 rmind ALIGN(newsemmni * sizeof(struct semid_ds)));
267 1.84 rmind new_semcv = (void *)((uintptr_t)new_sem +
268 1.84 rmind ALIGN(newsemmns * sizeof(struct __sem)));
269 1.84 rmind new_semu = (void *)((uintptr_t)new_semcv +
270 1.84 rmind ALIGN(newsemmni * sizeof(kcondvar_t)));
271 1.74 rmind
272 1.74 rmind /* Initialize all semaphore identifiers and condvars */
273 1.74 rmind for (i = 0; i < newsemmni; i++) {
274 1.74 rmind new_sema[i]._sem_base = 0;
275 1.74 rmind new_sema[i].sem_perm.mode = 0;
276 1.74 rmind cv_init(&new_semcv[i], "semwait");
277 1.74 rmind }
278 1.74 rmind for (i = 0; i < newsemmnu; i++) {
279 1.74 rmind nsuptr = SEMU(new_semu, i);
280 1.74 rmind nsuptr->un_proc = NULL;
281 1.74 rmind }
282 1.74 rmind
283 1.74 rmind /*
284 1.74 rmind * Copy all identifiers, semaphores and list of the
285 1.74 rmind * undo structures to the new memory allocation.
286 1.74 rmind */
287 1.74 rmind j = 0;
288 1.74 rmind for (i = 0; i <= lsemid; i++) {
289 1.74 rmind if ((sema[i].sem_perm.mode & SEM_ALLOC) == 0)
290 1.74 rmind continue;
291 1.74 rmind memcpy(&new_sema[i], &sema[i], sizeof(struct semid_ds));
292 1.74 rmind new_sema[i]._sem_base = &new_sem[j];
293 1.74 rmind memcpy(new_sema[i]._sem_base, sema[i]._sem_base,
294 1.74 rmind (sizeof(struct __sem) * sema[i].sem_nsems));
295 1.74 rmind j += sema[i].sem_nsems;
296 1.74 rmind }
297 1.74 rmind KASSERT(j == semtot);
298 1.74 rmind
299 1.74 rmind j = 0;
300 1.74 rmind new_semu_list = NULL;
301 1.74 rmind for (suptr = semu_list; suptr != NULL; suptr = suptr->un_next) {
302 1.74 rmind KASSERT(j < newsemmnu);
303 1.74 rmind nsuptr = SEMU(new_semu, j);
304 1.74 rmind memcpy(nsuptr, suptr, SEMUSZ);
305 1.74 rmind nsuptr->un_next = new_semu_list;
306 1.74 rmind new_semu_list = nsuptr;
307 1.74 rmind j++;
308 1.74 rmind }
309 1.74 rmind
310 1.74 rmind for (i = 0; i < seminfo.semmni; i++) {
311 1.74 rmind KASSERT(cv_has_waiters(&semcv[i]) == false);
312 1.74 rmind cv_destroy(&semcv[i]);
313 1.74 rmind }
314 1.74 rmind
315 1.74 rmind sz = ALIGN(seminfo.semmni * sizeof(struct semid_ds)) +
316 1.74 rmind ALIGN(seminfo.semmns * sizeof(struct __sem)) +
317 1.74 rmind ALIGN(seminfo.semmni * sizeof(kcondvar_t)) +
318 1.74 rmind ALIGN(seminfo.semmnu * seminfo.semusz);
319 1.88 uebayasi sz = round_page(sz);
320 1.74 rmind
321 1.74 rmind /* Set the pointers and update the new values */
322 1.74 rmind sema = new_sema;
323 1.74 rmind sem = new_sem;
324 1.74 rmind semcv = new_semcv;
325 1.74 rmind semu = new_semu;
326 1.74 rmind semu_list = new_semu_list;
327 1.74 rmind
328 1.74 rmind seminfo.semmni = newsemmni;
329 1.74 rmind seminfo.semmns = newsemmns;
330 1.74 rmind seminfo.semmnu = newsemmnu;
331 1.74 rmind
332 1.74 rmind /* Reallocation completed - notify all waiters, if any */
333 1.74 rmind sem_realloc_state = false;
334 1.74 rmind cv_broadcast(&sem_realloc_cv);
335 1.74 rmind mutex_exit(&semlock);
336 1.74 rmind
337 1.74 rmind uvm_km_free(kernel_map, (vaddr_t)old_sema, sz, UVM_KMF_WIRED);
338 1.74 rmind return 0;
339 1.74 rmind }
340 1.74 rmind
341 1.1 cgd /*
342 1.37 sommerfe * Placebo.
343 1.1 cgd */
344 1.1 cgd
345 1.1 cgd int
346 1.103 riastrad sys_semconfig(struct lwp *l, const struct sys_semconfig_args *uap,
347 1.103 riastrad register_t *retval)
348 1.23 thorpej {
349 1.51 enami
350 1.95 pgoyette RUN_ONCE(&exithook_control, seminit_exithook);
351 1.95 pgoyette
352 1.5 mycroft *retval = 0;
353 1.37 sommerfe return 0;
354 1.1 cgd }
355 1.1 cgd
356 1.1 cgd /*
357 1.86 rmind * Allocate a new sem_undo structure for a process.
358 1.86 rmind * => Returns NULL on failure.
359 1.1 cgd */
360 1.1 cgd struct sem_undo *
361 1.59 thorpej semu_alloc(struct proc *p)
362 1.1 cgd {
363 1.86 rmind struct sem_undo *suptr, **supptr;
364 1.86 rmind bool attempted = false;
365 1.35 augustss int i;
366 1.1 cgd
367 1.70 ad KASSERT(mutex_owned(&semlock));
368 1.86 rmind again:
369 1.86 rmind /* Look for a free structure. */
370 1.86 rmind for (i = 0; i < seminfo.semmnu; i++) {
371 1.86 rmind suptr = SEMU(semu, i);
372 1.86 rmind if (suptr->un_proc == NULL) {
373 1.86 rmind /* Found. Fill it in and return. */
374 1.86 rmind suptr->un_next = semu_list;
375 1.86 rmind semu_list = suptr;
376 1.86 rmind suptr->un_cnt = 0;
377 1.86 rmind suptr->un_proc = p;
378 1.86 rmind return suptr;
379 1.86 rmind }
380 1.86 rmind }
381 1.70 ad
382 1.86 rmind /* Not found. Attempt to free some structures. */
383 1.86 rmind if (!attempted) {
384 1.86 rmind bool freed = false;
385 1.86 rmind
386 1.86 rmind attempted = true;
387 1.86 rmind supptr = &semu_list;
388 1.86 rmind while ((suptr = *supptr) != NULL) {
389 1.86 rmind if (suptr->un_cnt == 0) {
390 1.86 rmind suptr->un_proc = NULL;
391 1.86 rmind *supptr = suptr->un_next;
392 1.86 rmind freed = true;
393 1.86 rmind } else {
394 1.86 rmind supptr = &suptr->un_next;
395 1.5 mycroft }
396 1.5 mycroft }
397 1.86 rmind if (freed) {
398 1.86 rmind goto again;
399 1.5 mycroft }
400 1.1 cgd }
401 1.25 christos return NULL;
402 1.1 cgd }
403 1.1 cgd
404 1.1 cgd /*
405 1.1 cgd * Adjust a particular entry for a particular proc
406 1.1 cgd */
407 1.1 cgd
408 1.1 cgd int
409 1.59 thorpej semundo_adjust(struct proc *p, struct sem_undo **supptr, int semid, int semnum,
410 1.59 thorpej int adjval)
411 1.1 cgd {
412 1.35 augustss struct sem_undo *suptr;
413 1.91 matt struct sem_undo_entry *sunptr;
414 1.5 mycroft int i;
415 1.1 cgd
416 1.70 ad KASSERT(mutex_owned(&semlock));
417 1.70 ad
418 1.51 enami /*
419 1.51 enami * Look for and remember the sem_undo if the caller doesn't
420 1.51 enami * provide it
421 1.51 enami */
422 1.1 cgd
423 1.5 mycroft suptr = *supptr;
424 1.4 mycroft if (suptr == NULL) {
425 1.52 enami for (suptr = semu_list; suptr != NULL; suptr = suptr->un_next)
426 1.52 enami if (suptr->un_proc == p)
427 1.5 mycroft break;
428 1.52 enami
429 1.5 mycroft if (suptr == NULL) {
430 1.5 mycroft suptr = semu_alloc(p);
431 1.5 mycroft if (suptr == NULL)
432 1.51 enami return (ENOSPC);
433 1.5 mycroft }
434 1.52 enami *supptr = suptr;
435 1.1 cgd }
436 1.1 cgd
437 1.6 mycroft /*
438 1.51 enami * Look for the requested entry and adjust it (delete if
439 1.51 enami * adjval becomes 0).
440 1.6 mycroft */
441 1.6 mycroft sunptr = &suptr->un_ent[0];
442 1.5 mycroft for (i = 0; i < suptr->un_cnt; i++, sunptr++) {
443 1.6 mycroft if (sunptr->un_id != semid || sunptr->un_num != semnum)
444 1.6 mycroft continue;
445 1.52 enami sunptr->un_adjval += adjval;
446 1.6 mycroft if (sunptr->un_adjval == 0) {
447 1.6 mycroft suptr->un_cnt--;
448 1.6 mycroft if (i < suptr->un_cnt)
449 1.6 mycroft suptr->un_ent[i] =
450 1.6 mycroft suptr->un_ent[suptr->un_cnt];
451 1.5 mycroft }
452 1.51 enami return (0);
453 1.1 cgd }
454 1.1 cgd
455 1.5 mycroft /* Didn't find the right entry - create it */
456 1.11 mycroft if (suptr->un_cnt == SEMUME)
457 1.51 enami return (EINVAL);
458 1.11 mycroft
459 1.11 mycroft sunptr = &suptr->un_ent[suptr->un_cnt];
460 1.11 mycroft suptr->un_cnt++;
461 1.11 mycroft sunptr->un_adjval = adjval;
462 1.11 mycroft sunptr->un_id = semid;
463 1.11 mycroft sunptr->un_num = semnum;
464 1.51 enami return (0);
465 1.1 cgd }
466 1.1 cgd
467 1.1 cgd void
468 1.59 thorpej semundo_clear(int semid, int semnum)
469 1.1 cgd {
470 1.35 augustss struct sem_undo *suptr;
471 1.91 matt struct sem_undo_entry *sunptr, *sunend;
472 1.1 cgd
473 1.70 ad KASSERT(mutex_owned(&semlock));
474 1.70 ad
475 1.52 enami for (suptr = semu_list; suptr != NULL; suptr = suptr->un_next)
476 1.52 enami for (sunptr = &suptr->un_ent[0],
477 1.52 enami sunend = sunptr + suptr->un_cnt; sunptr < sunend;) {
478 1.6 mycroft if (sunptr->un_id == semid) {
479 1.6 mycroft if (semnum == -1 || sunptr->un_num == semnum) {
480 1.6 mycroft suptr->un_cnt--;
481 1.52 enami sunend--;
482 1.52 enami if (sunptr != sunend)
483 1.52 enami *sunptr = *sunend;
484 1.52 enami if (semnum != -1)
485 1.52 enami break;
486 1.52 enami else
487 1.52 enami continue;
488 1.6 mycroft }
489 1.6 mycroft }
490 1.52 enami sunptr++;
491 1.6 mycroft }
492 1.1 cgd }
493 1.1 cgd
494 1.1 cgd int
495 1.85 christos sys_____semctl50(struct lwp *l, const struct sys_____semctl50_args *uap,
496 1.85 christos register_t *retval)
497 1.23 thorpej {
498 1.78 dsl /* {
499 1.10 cgd syscallarg(int) semid;
500 1.10 cgd syscallarg(int) semnum;
501 1.10 cgd syscallarg(int) cmd;
502 1.34 christos syscallarg(union __semun *) arg;
503 1.78 dsl } */
504 1.33 thorpej struct semid_ds sembuf;
505 1.33 thorpej int cmd, error;
506 1.34 christos void *pass_arg;
507 1.34 christos union __semun karg;
508 1.33 thorpej
509 1.95 pgoyette RUN_ONCE(&exithook_control, seminit_exithook);
510 1.95 pgoyette
511 1.33 thorpej cmd = SCARG(uap, cmd);
512 1.33 thorpej
513 1.69 dsl pass_arg = get_semctl_arg(cmd, &sembuf, &karg);
514 1.33 thorpej
515 1.34 christos if (pass_arg) {
516 1.34 christos error = copyin(SCARG(uap, arg), &karg, sizeof(karg));
517 1.33 thorpej if (error)
518 1.34 christos return error;
519 1.34 christos if (cmd == IPC_SET) {
520 1.34 christos error = copyin(karg.buf, &sembuf, sizeof(sembuf));
521 1.34 christos if (error)
522 1.34 christos return (error);
523 1.34 christos }
524 1.33 thorpej }
525 1.33 thorpej
526 1.63 ad error = semctl1(l, SCARG(uap, semid), SCARG(uap, semnum), cmd,
527 1.33 thorpej pass_arg, retval);
528 1.33 thorpej
529 1.33 thorpej if (error == 0 && cmd == IPC_STAT)
530 1.34 christos error = copyout(&sembuf, karg.buf, sizeof(sembuf));
531 1.33 thorpej
532 1.33 thorpej return (error);
533 1.33 thorpej }
534 1.33 thorpej
535 1.33 thorpej int
536 1.63 ad semctl1(struct lwp *l, int semid, int semnum, int cmd, void *v,
537 1.59 thorpej register_t *retval)
538 1.33 thorpej {
539 1.63 ad kauth_cred_t cred = l->l_cred;
540 1.33 thorpej union __semun *arg = v;
541 1.33 thorpej struct semid_ds *sembuf = v, *semaptr;
542 1.33 thorpej int i, error, ix;
543 1.1 cgd
544 1.27 christos SEM_PRINTF(("call to semctl(%d, %d, %d, %p)\n",
545 1.33 thorpej semid, semnum, cmd, v));
546 1.1 cgd
547 1.70 ad mutex_enter(&semlock);
548 1.70 ad
549 1.33 thorpej ix = IPCID_TO_IX(semid);
550 1.70 ad if (ix < 0 || ix >= seminfo.semmni) {
551 1.70 ad mutex_exit(&semlock);
552 1.33 thorpej return (EINVAL);
553 1.70 ad }
554 1.6 mycroft
555 1.33 thorpej semaptr = &sema[ix];
556 1.6 mycroft if ((semaptr->sem_perm.mode & SEM_ALLOC) == 0 ||
557 1.70 ad semaptr->sem_perm._seq != IPCID_TO_SEQ(semid)) {
558 1.70 ad mutex_exit(&semlock);
559 1.33 thorpej return (EINVAL);
560 1.70 ad }
561 1.1 cgd
562 1.6 mycroft switch (cmd) {
563 1.6 mycroft case IPC_RMID:
564 1.33 thorpej if ((error = ipcperm(cred, &semaptr->sem_perm, IPC_M)) != 0)
565 1.70 ad break;
566 1.61 elad semaptr->sem_perm.cuid = kauth_cred_geteuid(cred);
567 1.61 elad semaptr->sem_perm.uid = kauth_cred_geteuid(cred);
568 1.6 mycroft semtot -= semaptr->sem_nsems;
569 1.33 thorpej for (i = semaptr->_sem_base - sem; i < semtot; i++)
570 1.6 mycroft sem[i] = sem[i + semaptr->sem_nsems];
571 1.6 mycroft for (i = 0; i < seminfo.semmni; i++) {
572 1.6 mycroft if ((sema[i].sem_perm.mode & SEM_ALLOC) &&
573 1.33 thorpej sema[i]._sem_base > semaptr->_sem_base)
574 1.33 thorpej sema[i]._sem_base -= semaptr->sem_nsems;
575 1.6 mycroft }
576 1.6 mycroft semaptr->sem_perm.mode = 0;
577 1.33 thorpej semundo_clear(ix, -1);
578 1.70 ad cv_broadcast(&semcv[ix]);
579 1.6 mycroft break;
580 1.1 cgd
581 1.6 mycroft case IPC_SET:
582 1.33 thorpej if ((error = ipcperm(cred, &semaptr->sem_perm, IPC_M)))
583 1.70 ad break;
584 1.64 christos KASSERT(sembuf != NULL);
585 1.33 thorpej semaptr->sem_perm.uid = sembuf->sem_perm.uid;
586 1.33 thorpej semaptr->sem_perm.gid = sembuf->sem_perm.gid;
587 1.6 mycroft semaptr->sem_perm.mode = (semaptr->sem_perm.mode & ~0777) |
588 1.33 thorpej (sembuf->sem_perm.mode & 0777);
589 1.62 kardel semaptr->sem_ctime = time_second;
590 1.6 mycroft break;
591 1.1 cgd
592 1.6 mycroft case IPC_STAT:
593 1.33 thorpej if ((error = ipcperm(cred, &semaptr->sem_perm, IPC_R)))
594 1.70 ad break;
595 1.64 christos KASSERT(sembuf != NULL);
596 1.96 mrg memset(sembuf, 0, sizeof *sembuf);
597 1.96 mrg sembuf->sem_perm = semaptr->sem_perm;
598 1.80 njoly sembuf->sem_perm.mode &= 0777;
599 1.96 mrg sembuf->sem_nsems = semaptr->sem_nsems;
600 1.96 mrg sembuf->sem_otime = semaptr->sem_otime;
601 1.96 mrg sembuf->sem_ctime = semaptr->sem_ctime;
602 1.6 mycroft break;
603 1.1 cgd
604 1.6 mycroft case GETNCNT:
605 1.33 thorpej if ((error = ipcperm(cred, &semaptr->sem_perm, IPC_R)))
606 1.70 ad break;
607 1.70 ad if (semnum < 0 || semnum >= semaptr->sem_nsems) {
608 1.70 ad error = EINVAL;
609 1.70 ad break;
610 1.70 ad }
611 1.33 thorpej *retval = semaptr->_sem_base[semnum].semncnt;
612 1.6 mycroft break;
613 1.1 cgd
614 1.6 mycroft case GETPID:
615 1.33 thorpej if ((error = ipcperm(cred, &semaptr->sem_perm, IPC_R)))
616 1.70 ad break;
617 1.70 ad if (semnum < 0 || semnum >= semaptr->sem_nsems) {
618 1.70 ad error = EINVAL;
619 1.70 ad break;
620 1.70 ad }
621 1.33 thorpej *retval = semaptr->_sem_base[semnum].sempid;
622 1.6 mycroft break;
623 1.1 cgd
624 1.6 mycroft case GETVAL:
625 1.33 thorpej if ((error = ipcperm(cred, &semaptr->sem_perm, IPC_R)))
626 1.70 ad break;
627 1.70 ad if (semnum < 0 || semnum >= semaptr->sem_nsems) {
628 1.70 ad error = EINVAL;
629 1.70 ad break;
630 1.70 ad }
631 1.33 thorpej *retval = semaptr->_sem_base[semnum].semval;
632 1.6 mycroft break;
633 1.1 cgd
634 1.6 mycroft case GETALL:
635 1.33 thorpej if ((error = ipcperm(cred, &semaptr->sem_perm, IPC_R)))
636 1.70 ad break;
637 1.60 christos KASSERT(arg != NULL);
638 1.6 mycroft for (i = 0; i < semaptr->sem_nsems; i++) {
639 1.33 thorpej error = copyout(&semaptr->_sem_base[i].semval,
640 1.33 thorpej &arg->array[i], sizeof(arg->array[i]));
641 1.33 thorpej if (error != 0)
642 1.6 mycroft break;
643 1.6 mycroft }
644 1.6 mycroft break;
645 1.1 cgd
646 1.6 mycroft case GETZCNT:
647 1.33 thorpej if ((error = ipcperm(cred, &semaptr->sem_perm, IPC_R)))
648 1.70 ad break;
649 1.70 ad if (semnum < 0 || semnum >= semaptr->sem_nsems) {
650 1.70 ad error = EINVAL;
651 1.70 ad break;
652 1.70 ad }
653 1.33 thorpej *retval = semaptr->_sem_base[semnum].semzcnt;
654 1.6 mycroft break;
655 1.1 cgd
656 1.6 mycroft case SETVAL:
657 1.33 thorpej if ((error = ipcperm(cred, &semaptr->sem_perm, IPC_W)))
658 1.70 ad break;
659 1.70 ad if (semnum < 0 || semnum >= semaptr->sem_nsems) {
660 1.70 ad error = EINVAL;
661 1.70 ad break;
662 1.70 ad }
663 1.60 christos KASSERT(arg != NULL);
664 1.83 njoly if ((unsigned int)arg->val > seminfo.semvmx) {
665 1.83 njoly error = ERANGE;
666 1.83 njoly break;
667 1.83 njoly }
668 1.33 thorpej semaptr->_sem_base[semnum].semval = arg->val;
669 1.33 thorpej semundo_clear(ix, semnum);
670 1.70 ad cv_broadcast(&semcv[ix]);
671 1.6 mycroft break;
672 1.1 cgd
673 1.6 mycroft case SETALL:
674 1.33 thorpej if ((error = ipcperm(cred, &semaptr->sem_perm, IPC_W)))
675 1.70 ad break;
676 1.60 christos KASSERT(arg != NULL);
677 1.6 mycroft for (i = 0; i < semaptr->sem_nsems; i++) {
678 1.83 njoly unsigned short semval;
679 1.83 njoly error = copyin(&arg->array[i], &semval,
680 1.33 thorpej sizeof(arg->array[i]));
681 1.33 thorpej if (error != 0)
682 1.6 mycroft break;
683 1.83 njoly if ((unsigned int)semval > seminfo.semvmx) {
684 1.83 njoly error = ERANGE;
685 1.83 njoly break;
686 1.83 njoly }
687 1.83 njoly semaptr->_sem_base[i].semval = semval;
688 1.6 mycroft }
689 1.33 thorpej semundo_clear(ix, -1);
690 1.70 ad cv_broadcast(&semcv[ix]);
691 1.6 mycroft break;
692 1.1 cgd
693 1.6 mycroft default:
694 1.70 ad error = EINVAL;
695 1.70 ad break;
696 1.6 mycroft }
697 1.4 mycroft
698 1.70 ad mutex_exit(&semlock);
699 1.33 thorpej return (error);
700 1.1 cgd }
701 1.1 cgd
702 1.1 cgd int
703 1.103 riastrad sys_semget(struct lwp *l, const struct sys_semget_args *uap,
704 1.103 riastrad register_t *retval)
705 1.23 thorpej {
706 1.78 dsl /* {
707 1.10 cgd syscallarg(key_t) key;
708 1.10 cgd syscallarg(int) nsems;
709 1.10 cgd syscallarg(int) semflg;
710 1.78 dsl } */
711 1.70 ad int semid, error = 0;
712 1.10 cgd int key = SCARG(uap, key);
713 1.10 cgd int nsems = SCARG(uap, nsems);
714 1.10 cgd int semflg = SCARG(uap, semflg);
715 1.63 ad kauth_cred_t cred = l->l_cred;
716 1.1 cgd
717 1.95 pgoyette RUN_ONCE(&exithook_control, seminit_exithook);
718 1.95 pgoyette
719 1.27 christos SEM_PRINTF(("semget(0x%x, %d, 0%o)\n", key, nsems, semflg));
720 1.1 cgd
721 1.70 ad mutex_enter(&semlock);
722 1.70 ad
723 1.6 mycroft if (key != IPC_PRIVATE) {
724 1.6 mycroft for (semid = 0; semid < seminfo.semmni; semid++) {
725 1.6 mycroft if ((sema[semid].sem_perm.mode & SEM_ALLOC) &&
726 1.33 thorpej sema[semid].sem_perm._key == key)
727 1.6 mycroft break;
728 1.6 mycroft }
729 1.6 mycroft if (semid < seminfo.semmni) {
730 1.27 christos SEM_PRINTF(("found public key\n"));
731 1.70 ad if ((error = ipcperm(cred, &sema[semid].sem_perm,
732 1.7 hpeyerl semflg & 0700)))
733 1.70 ad goto out;
734 1.6 mycroft if (nsems > 0 && sema[semid].sem_nsems < nsems) {
735 1.27 christos SEM_PRINTF(("too small\n"));
736 1.70 ad error = EINVAL;
737 1.70 ad goto out;
738 1.6 mycroft }
739 1.6 mycroft if ((semflg & IPC_CREAT) && (semflg & IPC_EXCL)) {
740 1.27 christos SEM_PRINTF(("not exclusive\n"));
741 1.70 ad error = EEXIST;
742 1.70 ad goto out;
743 1.6 mycroft }
744 1.6 mycroft goto found;
745 1.6 mycroft }
746 1.6 mycroft }
747 1.6 mycroft
748 1.27 christos SEM_PRINTF(("need to allocate the semid_ds\n"));
749 1.6 mycroft if (key == IPC_PRIVATE || (semflg & IPC_CREAT)) {
750 1.6 mycroft if (nsems <= 0 || nsems > seminfo.semmsl) {
751 1.27 christos SEM_PRINTF(("nsems out of range (0<%d<=%d)\n", nsems,
752 1.27 christos seminfo.semmsl));
753 1.70 ad error = EINVAL;
754 1.70 ad goto out;
755 1.6 mycroft }
756 1.6 mycroft if (nsems > seminfo.semmns - semtot) {
757 1.51 enami SEM_PRINTF(("not enough semaphores left "
758 1.51 enami "(need %d, got %d)\n",
759 1.27 christos nsems, seminfo.semmns - semtot));
760 1.70 ad error = ENOSPC;
761 1.70 ad goto out;
762 1.6 mycroft }
763 1.6 mycroft for (semid = 0; semid < seminfo.semmni; semid++) {
764 1.6 mycroft if ((sema[semid].sem_perm.mode & SEM_ALLOC) == 0)
765 1.6 mycroft break;
766 1.6 mycroft }
767 1.6 mycroft if (semid == seminfo.semmni) {
768 1.27 christos SEM_PRINTF(("no more semid_ds's available\n"));
769 1.70 ad error = ENOSPC;
770 1.70 ad goto out;
771 1.6 mycroft }
772 1.27 christos SEM_PRINTF(("semid %d is available\n", semid));
773 1.33 thorpej sema[semid].sem_perm._key = key;
774 1.61 elad sema[semid].sem_perm.cuid = kauth_cred_geteuid(cred);
775 1.61 elad sema[semid].sem_perm.uid = kauth_cred_geteuid(cred);
776 1.61 elad sema[semid].sem_perm.cgid = kauth_cred_getegid(cred);
777 1.61 elad sema[semid].sem_perm.gid = kauth_cred_getegid(cred);
778 1.6 mycroft sema[semid].sem_perm.mode = (semflg & 0777) | SEM_ALLOC;
779 1.33 thorpej sema[semid].sem_perm._seq =
780 1.33 thorpej (sema[semid].sem_perm._seq + 1) & 0x7fff;
781 1.6 mycroft sema[semid].sem_nsems = nsems;
782 1.6 mycroft sema[semid].sem_otime = 0;
783 1.62 kardel sema[semid].sem_ctime = time_second;
784 1.33 thorpej sema[semid]._sem_base = &sem[semtot];
785 1.6 mycroft semtot += nsems;
786 1.33 thorpej memset(sema[semid]._sem_base, 0,
787 1.51 enami sizeof(sema[semid]._sem_base[0]) * nsems);
788 1.33 thorpej SEM_PRINTF(("sembase = %p, next = %p\n", sema[semid]._sem_base,
789 1.27 christos &sem[semtot]));
790 1.1 cgd } else {
791 1.27 christos SEM_PRINTF(("didn't find it and wasn't asked to create it\n"));
792 1.70 ad error = ENOENT;
793 1.70 ad goto out;
794 1.1 cgd }
795 1.1 cgd
796 1.70 ad found:
797 1.6 mycroft *retval = IXSEQ_TO_IPCID(semid, sema[semid].sem_perm);
798 1.70 ad out:
799 1.70 ad mutex_exit(&semlock);
800 1.70 ad return (error);
801 1.1 cgd }
802 1.1 cgd
803 1.57 chs #define SMALL_SOPS 8
804 1.57 chs
805 1.103 riastrad void
806 1.103 riastrad do_semop_init(void)
807 1.102 martin {
808 1.103 riastrad
809 1.102 martin RUN_ONCE(&exithook_control, seminit_exithook);
810 1.102 martin }
811 1.102 martin
812 1.102 martin /* all pointers already in kernel space */
813 1.103 riastrad int
814 1.103 riastrad do_semop1(struct lwp *l, int usemid, struct sembuf *sops,
815 1.102 martin size_t nsops, struct timespec *timeout, register_t *retval)
816 1.23 thorpej {
817 1.45 thorpej struct proc *p = l->l_proc;
818 1.99 christos int semid, seq;
819 1.35 augustss struct semid_ds *semaptr;
820 1.35 augustss struct sembuf *sopptr = NULL;
821 1.35 augustss struct __sem *semptr = NULL;
822 1.6 mycroft struct sem_undo *suptr = NULL;
823 1.63 ad kauth_cred_t cred = l->l_cred;
824 1.99 christos int timo = 0;
825 1.70 ad int i, error;
826 1.25 christos int do_wakeup, do_undos;
827 1.1 cgd
828 1.95 pgoyette RUN_ONCE(&exithook_control, seminit_exithook);
829 1.95 pgoyette
830 1.104 hannken SEM_PRINTF(("do_semop1(%d, %p, %zu)\n", usemid, sops, nsops));
831 1.81 ad
832 1.81 ad if (__predict_false((p->p_flag & PK_SYSVSEM) == 0)) {
833 1.81 ad mutex_enter(p->p_lock);
834 1.81 ad p->p_flag |= PK_SYSVSEM;
835 1.81 ad mutex_exit(p->p_lock);
836 1.81 ad }
837 1.81 ad
838 1.76 rmind restart:
839 1.70 ad mutex_enter(&semlock);
840 1.76 rmind /* In case of reallocation, we will wait for completion */
841 1.76 rmind while (__predict_false(sem_realloc_state))
842 1.76 rmind cv_wait(&sem_realloc_cv, &semlock);
843 1.70 ad
844 1.100 christos semid = IPCID_TO_IX(usemid); /* Convert back to zero origin */
845 1.70 ad if (semid < 0 || semid >= seminfo.semmni) {
846 1.70 ad error = EINVAL;
847 1.70 ad goto out;
848 1.70 ad }
849 1.6 mycroft
850 1.102 martin if (timeout) {
851 1.102 martin error = ts2timo(CLOCK_MONOTONIC, TIMER_RELTIME, timeout,
852 1.99 christos &timo, NULL);
853 1.99 christos if (error)
854 1.99 christos return error;
855 1.99 christos }
856 1.99 christos
857 1.6 mycroft semaptr = &sema[semid];
858 1.101 mlelstv seq = IPCID_TO_SEQ(usemid);
859 1.11 mycroft if ((semaptr->sem_perm.mode & SEM_ALLOC) == 0 ||
860 1.70 ad semaptr->sem_perm._seq != seq) {
861 1.70 ad error = EINVAL;
862 1.70 ad goto out;
863 1.6 mycroft }
864 1.1 cgd
865 1.70 ad if ((error = ipcperm(cred, &semaptr->sem_perm, IPC_W))) {
866 1.70 ad SEM_PRINTF(("error = %d from ipaccess\n", error));
867 1.70 ad goto out;
868 1.6 mycroft }
869 1.1 cgd
870 1.52 enami for (i = 0; i < nsops; i++)
871 1.57 chs if (sops[i].sem_num >= semaptr->sem_nsems) {
872 1.70 ad error = EFBIG;
873 1.57 chs goto out;
874 1.57 chs }
875 1.51 enami /*
876 1.6 mycroft * Loop trying to satisfy the vector of requests.
877 1.6 mycroft * If we reach a point where we must wait, any requests already
878 1.6 mycroft * performed are rolled back and we go to sleep until some other
879 1.6 mycroft * process wakes us up. At this point, we start all over again.
880 1.6 mycroft *
881 1.6 mycroft * This ensures that from the perspective of other tasks, a set
882 1.6 mycroft * of requests is atomic (never partially satisfied).
883 1.6 mycroft */
884 1.6 mycroft do_undos = 0;
885 1.1 cgd
886 1.6 mycroft for (;;) {
887 1.6 mycroft do_wakeup = 0;
888 1.1 cgd
889 1.6 mycroft for (i = 0; i < nsops; i++) {
890 1.6 mycroft sopptr = &sops[i];
891 1.33 thorpej semptr = &semaptr->_sem_base[sopptr->sem_num];
892 1.1 cgd
893 1.51 enami SEM_PRINTF(("semop: semaptr=%p, sem_base=%p, "
894 1.51 enami "semptr=%p, sem[%d]=%d : op=%d, flag=%s\n",
895 1.33 thorpej semaptr, semaptr->_sem_base, semptr,
896 1.6 mycroft sopptr->sem_num, semptr->semval, sopptr->sem_op,
897 1.51 enami (sopptr->sem_flg & IPC_NOWAIT) ?
898 1.51 enami "nowait" : "wait"));
899 1.1 cgd
900 1.6 mycroft if (sopptr->sem_op < 0) {
901 1.25 christos if ((int)(semptr->semval +
902 1.51 enami sopptr->sem_op) < 0) {
903 1.51 enami SEM_PRINTF(("semop: "
904 1.51 enami "can't do it now\n"));
905 1.6 mycroft break;
906 1.6 mycroft } else {
907 1.6 mycroft semptr->semval += sopptr->sem_op;
908 1.6 mycroft if (semptr->semval == 0 &&
909 1.6 mycroft semptr->semzcnt > 0)
910 1.6 mycroft do_wakeup = 1;
911 1.6 mycroft }
912 1.6 mycroft if (sopptr->sem_flg & SEM_UNDO)
913 1.6 mycroft do_undos = 1;
914 1.6 mycroft } else if (sopptr->sem_op == 0) {
915 1.6 mycroft if (semptr->semval > 0) {
916 1.27 christos SEM_PRINTF(("semop: not zero now\n"));
917 1.6 mycroft break;
918 1.6 mycroft }
919 1.6 mycroft } else {
920 1.6 mycroft if (semptr->semncnt > 0)
921 1.6 mycroft do_wakeup = 1;
922 1.6 mycroft semptr->semval += sopptr->sem_op;
923 1.6 mycroft if (sopptr->sem_flg & SEM_UNDO)
924 1.6 mycroft do_undos = 1;
925 1.6 mycroft }
926 1.6 mycroft }
927 1.1 cgd
928 1.6 mycroft /*
929 1.6 mycroft * Did we get through the entire vector?
930 1.6 mycroft */
931 1.6 mycroft if (i >= nsops)
932 1.6 mycroft goto done;
933 1.1 cgd
934 1.6 mycroft /*
935 1.6 mycroft * No ... rollback anything that we've already done
936 1.6 mycroft */
937 1.51 enami SEM_PRINTF(("semop: rollback 0 through %d\n", i - 1));
938 1.52 enami while (i-- > 0)
939 1.52 enami semaptr->_sem_base[sops[i].sem_num].semval -=
940 1.52 enami sops[i].sem_op;
941 1.1 cgd
942 1.6 mycroft /*
943 1.6 mycroft * If the request that we couldn't satisfy has the
944 1.6 mycroft * NOWAIT flag set then return with EAGAIN.
945 1.6 mycroft */
946 1.57 chs if (sopptr->sem_flg & IPC_NOWAIT) {
947 1.70 ad error = EAGAIN;
948 1.57 chs goto out;
949 1.57 chs }
950 1.1 cgd
951 1.6 mycroft if (sopptr->sem_op == 0)
952 1.6 mycroft semptr->semzcnt++;
953 1.6 mycroft else
954 1.6 mycroft semptr->semncnt++;
955 1.1 cgd
956 1.74 rmind sem_waiters++;
957 1.27 christos SEM_PRINTF(("semop: good night!\n"));
958 1.99 christos error = cv_timedwait_sig(&semcv[semid], &semlock, timo);
959 1.70 ad SEM_PRINTF(("semop: good morning (error=%d)!\n", error));
960 1.74 rmind sem_waiters--;
961 1.74 rmind
962 1.76 rmind /* Notify reallocator, if it is waiting */
963 1.76 rmind cv_broadcast(&sem_realloc_cv);
964 1.1 cgd
965 1.6 mycroft /*
966 1.6 mycroft * Make sure that the semaphore still exists
967 1.6 mycroft */
968 1.6 mycroft if ((semaptr->sem_perm.mode & SEM_ALLOC) == 0 ||
969 1.52 enami semaptr->sem_perm._seq != seq) {
970 1.70 ad error = EIDRM;
971 1.57 chs goto out;
972 1.6 mycroft }
973 1.1 cgd
974 1.6 mycroft /*
975 1.6 mycroft * The semaphore is still alive. Readjust the count of
976 1.6 mycroft * waiting processes.
977 1.6 mycroft */
978 1.51 enami semptr = &semaptr->_sem_base[sopptr->sem_num];
979 1.6 mycroft if (sopptr->sem_op == 0)
980 1.6 mycroft semptr->semzcnt--;
981 1.6 mycroft else
982 1.6 mycroft semptr->semncnt--;
983 1.74 rmind
984 1.76 rmind /* In case of such state, restart the call */
985 1.76 rmind if (sem_realloc_state) {
986 1.76 rmind mutex_exit(&semlock);
987 1.76 rmind goto restart;
988 1.76 rmind }
989 1.76 rmind
990 1.74 rmind /* Is it really morning, or was our sleep interrupted? */
991 1.76 rmind if (error != 0) {
992 1.99 christos if (error == ERESTART)
993 1.99 christos error = EINTR; // Simplify to just EINTR
994 1.99 christos else if (error == EWOULDBLOCK)
995 1.99 christos error = EAGAIN; // Convert timeout to EAGAIN
996 1.57 chs goto out;
997 1.57 chs }
998 1.50 christos SEM_PRINTF(("semop: good morning!\n"));
999 1.6 mycroft }
1000 1.6 mycroft done:
1001 1.6 mycroft /*
1002 1.6 mycroft * Process any SEM_UNDO requests.
1003 1.6 mycroft */
1004 1.6 mycroft if (do_undos) {
1005 1.5 mycroft for (i = 0; i < nsops; i++) {
1006 1.6 mycroft /*
1007 1.6 mycroft * We only need to deal with SEM_UNDO's for non-zero
1008 1.6 mycroft * op's.
1009 1.6 mycroft */
1010 1.6 mycroft int adjval;
1011 1.1 cgd
1012 1.6 mycroft if ((sops[i].sem_flg & SEM_UNDO) == 0)
1013 1.6 mycroft continue;
1014 1.6 mycroft adjval = sops[i].sem_op;
1015 1.6 mycroft if (adjval == 0)
1016 1.6 mycroft continue;
1017 1.70 ad error = semundo_adjust(p, &suptr, semid,
1018 1.6 mycroft sops[i].sem_num, -adjval);
1019 1.70 ad if (error == 0)
1020 1.6 mycroft continue;
1021 1.1 cgd
1022 1.6 mycroft /*
1023 1.6 mycroft * Oh-Oh! We ran out of either sem_undo's or undo's.
1024 1.6 mycroft * Rollback the adjustments to this point and then
1025 1.6 mycroft * rollback the semaphore ups and down so we can return
1026 1.6 mycroft * with an error with all structures restored. We
1027 1.6 mycroft * rollback the undo's in the exact reverse order that
1028 1.6 mycroft * we applied them. This guarantees that we won't run
1029 1.6 mycroft * out of space as we roll things back out.
1030 1.6 mycroft */
1031 1.52 enami while (i-- > 0) {
1032 1.52 enami if ((sops[i].sem_flg & SEM_UNDO) == 0)
1033 1.6 mycroft continue;
1034 1.52 enami adjval = sops[i].sem_op;
1035 1.6 mycroft if (adjval == 0)
1036 1.6 mycroft continue;
1037 1.6 mycroft if (semundo_adjust(p, &suptr, semid,
1038 1.52 enami sops[i].sem_num, adjval) != 0)
1039 1.1 cgd panic("semop - can't undo undos");
1040 1.6 mycroft }
1041 1.1 cgd
1042 1.54 enami for (i = 0; i < nsops; i++)
1043 1.54 enami semaptr->_sem_base[sops[i].sem_num].semval -=
1044 1.54 enami sops[i].sem_op;
1045 1.1 cgd
1046 1.103 riastrad SEM_PRINTF(("error = %d from semundo_adjust\n",
1047 1.103 riastrad error));
1048 1.57 chs goto out;
1049 1.1 cgd } /* loop through the sops */
1050 1.6 mycroft } /* if (do_undos) */
1051 1.1 cgd
1052 1.6 mycroft /* We're definitely done - set the sempid's */
1053 1.6 mycroft for (i = 0; i < nsops; i++) {
1054 1.1 cgd sopptr = &sops[i];
1055 1.33 thorpej semptr = &semaptr->_sem_base[sopptr->sem_num];
1056 1.1 cgd semptr->sempid = p->p_pid;
1057 1.6 mycroft }
1058 1.1 cgd
1059 1.55 briggs /* Update sem_otime */
1060 1.62 kardel semaptr->sem_otime = time_second;
1061 1.55 briggs
1062 1.6 mycroft /* Do a wakeup if any semaphore was up'd. */
1063 1.6 mycroft if (do_wakeup) {
1064 1.27 christos SEM_PRINTF(("semop: doing wakeup\n"));
1065 1.70 ad cv_broadcast(&semcv[semid]);
1066 1.27 christos SEM_PRINTF(("semop: back from wakeup\n"));
1067 1.6 mycroft }
1068 1.27 christos SEM_PRINTF(("semop: done\n"));
1069 1.6 mycroft *retval = 0;
1070 1.57 chs
1071 1.99 christos out:
1072 1.70 ad mutex_exit(&semlock);
1073 1.102 martin return error;
1074 1.102 martin }
1075 1.102 martin
1076 1.102 martin static int
1077 1.102 martin do_semop(struct lwp *l, int usemid, struct sembuf *usops,
1078 1.102 martin size_t nsops, struct timespec *utimeout, register_t *retval)
1079 1.102 martin {
1080 1.102 martin struct sembuf small_sops[SMALL_SOPS];
1081 1.102 martin struct sembuf *sops;
1082 1.102 martin struct timespec timeout;
1083 1.102 martin int error;
1084 1.102 martin
1085 1.102 martin do_semop_init();
1086 1.102 martin
1087 1.102 martin SEM_PRINTF(("do_semop(%d, %p, %zu)\n", usemid, usops, nsops));
1088 1.102 martin
1089 1.102 martin if (nsops <= SMALL_SOPS) {
1090 1.102 martin sops = small_sops;
1091 1.102 martin } else if (seminfo.semopm > 0 && nsops <= (size_t)seminfo.semopm) {
1092 1.102 martin sops = kmem_alloc(nsops * sizeof(*sops), KM_SLEEP);
1093 1.102 martin } else {
1094 1.102 martin SEM_PRINTF(("too many sops (max=%d, nsops=%zu)\n",
1095 1.102 martin seminfo.semopm, nsops));
1096 1.102 martin return (E2BIG);
1097 1.102 martin }
1098 1.102 martin
1099 1.102 martin error = copyin(usops, sops, nsops * sizeof(sops[0]));
1100 1.102 martin if (error) {
1101 1.102 martin SEM_PRINTF(("error = %d from copyin(%p, %p, %zu)\n", error,
1102 1.102 martin usops, &sops, nsops * sizeof(sops[0])));
1103 1.102 martin if (sops != small_sops)
1104 1.102 martin kmem_free(sops, nsops * sizeof(*sops));
1105 1.102 martin return error;
1106 1.102 martin }
1107 1.102 martin
1108 1.102 martin if (utimeout) {
1109 1.102 martin error = copyin(utimeout, &timeout, sizeof(timeout));
1110 1.102 martin if (error) {
1111 1.102 martin SEM_PRINTF(("error = %d from copyin(%p, %p, %zu)\n",
1112 1.102 martin error, utimeout, &timeout, sizeof(timeout)));
1113 1.102 martin return error;
1114 1.102 martin }
1115 1.102 martin }
1116 1.102 martin
1117 1.102 martin error = do_semop1(l, usemid, sops, nsops, utimeout ? &timeout : NULL,
1118 1.102 martin retval);
1119 1.102 martin
1120 1.79 ad if (sops != small_sops)
1121 1.70 ad kmem_free(sops, nsops * sizeof(*sops));
1122 1.102 martin
1123 1.70 ad return error;
1124 1.1 cgd }
1125 1.1 cgd
1126 1.99 christos int
1127 1.99 christos sys_semtimedop(struct lwp *l, const struct sys_semtimedop_args *uap,
1128 1.99 christos register_t *retval)
1129 1.99 christos {
1130 1.99 christos /* {
1131 1.99 christos syscallarg(int) semid;
1132 1.99 christos syscallarg(struct sembuf *) sops;
1133 1.99 christos syscallarg(size_t) nsops;
1134 1.99 christos syscallarg(struct timespec) timeout;
1135 1.99 christos } */
1136 1.99 christos int semid = SCARG(uap, semid);
1137 1.99 christos struct sembuf *sops = SCARG(uap, sops);
1138 1.99 christos size_t nsops = SCARG(uap, nsops);
1139 1.99 christos struct timespec *utimeout = SCARG(uap, timeout);
1140 1.99 christos
1141 1.99 christos return do_semop(l, semid, sops, nsops, utimeout, retval);
1142 1.99 christos }
1143 1.99 christos
1144 1.99 christos int
1145 1.99 christos sys_semop(struct lwp *l, const struct sys_semop_args *uap, register_t *retval)
1146 1.99 christos {
1147 1.99 christos /* {
1148 1.99 christos syscallarg(int) semid;
1149 1.99 christos syscallarg(struct sembuf *) sops;
1150 1.99 christos syscallarg(size_t) nsops;
1151 1.99 christos } */
1152 1.99 christos int semid = SCARG(uap, semid);
1153 1.99 christos struct sembuf *sops = SCARG(uap, sops);
1154 1.99 christos size_t nsops = SCARG(uap, nsops);
1155 1.99 christos
1156 1.99 christos return do_semop(l, semid, sops, nsops, NULL, retval);
1157 1.99 christos }
1158 1.99 christos
1159 1.1 cgd /*
1160 1.51 enami * Go through the undo structures for this process and apply the
1161 1.51 enami * adjustments to semaphores.
1162 1.1 cgd */
1163 1.44 christos /*ARGSUSED*/
1164 1.25 christos void
1165 1.66 yamt semexit(struct proc *p, void *v)
1166 1.1 cgd {
1167 1.35 augustss struct sem_undo *suptr;
1168 1.35 augustss struct sem_undo **supptr;
1169 1.1 cgd
1170 1.81 ad if ((p->p_flag & PK_SYSVSEM) == 0)
1171 1.81 ad return;
1172 1.81 ad
1173 1.70 ad mutex_enter(&semlock);
1174 1.70 ad
1175 1.6 mycroft /*
1176 1.51 enami * Go through the chain of undo vectors looking for one
1177 1.51 enami * associated with this process.
1178 1.17 mycroft */
1179 1.17 mycroft
1180 1.17 mycroft for (supptr = &semu_list; (suptr = *supptr) != NULL;
1181 1.17 mycroft supptr = &suptr->un_next) {
1182 1.17 mycroft if (suptr->un_proc == p)
1183 1.17 mycroft break;
1184 1.17 mycroft }
1185 1.17 mycroft
1186 1.17 mycroft /*
1187 1.37 sommerfe * If there is no undo vector, skip to the end.
1188 1.14 mycroft */
1189 1.14 mycroft
1190 1.70 ad if (suptr == NULL) {
1191 1.70 ad mutex_exit(&semlock);
1192 1.37 sommerfe return;
1193 1.70 ad }
1194 1.51 enami
1195 1.14 mycroft /*
1196 1.37 sommerfe * We now have an undo vector for this process.
1197 1.15 mycroft */
1198 1.1 cgd
1199 1.27 christos SEM_PRINTF(("proc @%p has undo structure with %d entries\n", p,
1200 1.27 christos suptr->un_cnt));
1201 1.1 cgd
1202 1.5 mycroft /*
1203 1.5 mycroft * If there are any active undo elements then process them.
1204 1.5 mycroft */
1205 1.5 mycroft if (suptr->un_cnt > 0) {
1206 1.6 mycroft int ix;
1207 1.1 cgd
1208 1.6 mycroft for (ix = 0; ix < suptr->un_cnt; ix++) {
1209 1.6 mycroft int semid = suptr->un_ent[ix].un_id;
1210 1.6 mycroft int semnum = suptr->un_ent[ix].un_num;
1211 1.6 mycroft int adjval = suptr->un_ent[ix].un_adjval;
1212 1.6 mycroft struct semid_ds *semaptr;
1213 1.6 mycroft
1214 1.6 mycroft semaptr = &sema[semid];
1215 1.6 mycroft if ((semaptr->sem_perm.mode & SEM_ALLOC) == 0)
1216 1.103 riastrad if (semnum >= semaptr->sem_nsems)
1217 1.103 riastrad panic("semexit - semnum out of range");
1218 1.6 mycroft
1219 1.51 enami SEM_PRINTF(("semexit: %p id=%d num=%d(adj=%d) ; "
1220 1.51 enami "sem=%d\n",
1221 1.6 mycroft suptr->un_proc, suptr->un_ent[ix].un_id,
1222 1.6 mycroft suptr->un_ent[ix].un_num,
1223 1.6 mycroft suptr->un_ent[ix].un_adjval,
1224 1.33 thorpej semaptr->_sem_base[semnum].semval));
1225 1.6 mycroft
1226 1.14 mycroft if (adjval < 0 &&
1227 1.33 thorpej semaptr->_sem_base[semnum].semval < -adjval)
1228 1.33 thorpej semaptr->_sem_base[semnum].semval = 0;
1229 1.14 mycroft else
1230 1.33 thorpej semaptr->_sem_base[semnum].semval += adjval;
1231 1.1 cgd
1232 1.70 ad cv_broadcast(&semcv[semid]);
1233 1.27 christos SEM_PRINTF(("semexit: back from wakeup\n"));
1234 1.6 mycroft }
1235 1.5 mycroft }
1236 1.1 cgd
1237 1.5 mycroft /*
1238 1.5 mycroft * Deallocate the undo vector.
1239 1.5 mycroft */
1240 1.27 christos SEM_PRINTF(("removing vector\n"));
1241 1.5 mycroft suptr->un_proc = NULL;
1242 1.5 mycroft *supptr = suptr->un_next;
1243 1.70 ad mutex_exit(&semlock);
1244 1.1 cgd }
1245 1.74 rmind
1246 1.74 rmind /*
1247 1.74 rmind * Sysctl initialization and nodes.
1248 1.74 rmind */
1249 1.74 rmind
1250 1.74 rmind static int
1251 1.74 rmind sysctl_ipc_semmni(SYSCTLFN_ARGS)
1252 1.74 rmind {
1253 1.74 rmind int newsize, error;
1254 1.74 rmind struct sysctlnode node;
1255 1.74 rmind node = *rnode;
1256 1.74 rmind node.sysctl_data = &newsize;
1257 1.74 rmind
1258 1.74 rmind newsize = seminfo.semmni;
1259 1.74 rmind error = sysctl_lookup(SYSCTLFN_CALL(&node));
1260 1.74 rmind if (error || newp == NULL)
1261 1.74 rmind return error;
1262 1.74 rmind
1263 1.74 rmind return semrealloc(newsize, seminfo.semmns, seminfo.semmnu);
1264 1.74 rmind }
1265 1.74 rmind
1266 1.74 rmind static int
1267 1.74 rmind sysctl_ipc_semmns(SYSCTLFN_ARGS)
1268 1.74 rmind {
1269 1.74 rmind int newsize, error;
1270 1.74 rmind struct sysctlnode node;
1271 1.74 rmind node = *rnode;
1272 1.74 rmind node.sysctl_data = &newsize;
1273 1.74 rmind
1274 1.74 rmind newsize = seminfo.semmns;
1275 1.74 rmind error = sysctl_lookup(SYSCTLFN_CALL(&node));
1276 1.74 rmind if (error || newp == NULL)
1277 1.74 rmind return error;
1278 1.74 rmind
1279 1.74 rmind return semrealloc(seminfo.semmni, newsize, seminfo.semmnu);
1280 1.74 rmind }
1281 1.74 rmind
1282 1.74 rmind static int
1283 1.74 rmind sysctl_ipc_semmnu(SYSCTLFN_ARGS)
1284 1.74 rmind {
1285 1.74 rmind int newsize, error;
1286 1.74 rmind struct sysctlnode node;
1287 1.74 rmind node = *rnode;
1288 1.74 rmind node.sysctl_data = &newsize;
1289 1.74 rmind
1290 1.74 rmind newsize = seminfo.semmnu;
1291 1.74 rmind error = sysctl_lookup(SYSCTLFN_CALL(&node));
1292 1.74 rmind if (error || newp == NULL)
1293 1.74 rmind return error;
1294 1.74 rmind
1295 1.74 rmind return semrealloc(seminfo.semmni, seminfo.semmns, newsize);
1296 1.74 rmind }
1297 1.74 rmind
1298 1.74 rmind SYSCTL_SETUP(sysctl_ipc_sem_setup, "sysctl kern.ipc subtree setup")
1299 1.74 rmind {
1300 1.74 rmind const struct sysctlnode *node = NULL;
1301 1.74 rmind
1302 1.74 rmind sysctl_createv(clog, 0, NULL, &node,
1303 1.103 riastrad CTLFLAG_PERMANENT,
1304 1.103 riastrad CTLTYPE_NODE, "ipc",
1305 1.103 riastrad SYSCTL_DESCR("SysV IPC options"),
1306 1.103 riastrad NULL, 0, NULL, 0,
1307 1.103 riastrad CTL_KERN, KERN_SYSVIPC, CTL_EOL);
1308 1.74 rmind
1309 1.74 rmind if (node == NULL)
1310 1.74 rmind return;
1311 1.74 rmind
1312 1.74 rmind sysctl_createv(clog, 0, &node, NULL,
1313 1.103 riastrad CTLFLAG_PERMANENT | CTLFLAG_READWRITE,
1314 1.103 riastrad CTLTYPE_INT, "semmni",
1315 1.103 riastrad SYSCTL_DESCR("Max number of number of semaphore identifiers"),
1316 1.103 riastrad sysctl_ipc_semmni, 0, &seminfo.semmni, 0,
1317 1.103 riastrad CTL_CREATE, CTL_EOL);
1318 1.74 rmind sysctl_createv(clog, 0, &node, NULL,
1319 1.103 riastrad CTLFLAG_PERMANENT | CTLFLAG_READWRITE,
1320 1.103 riastrad CTLTYPE_INT, "semmns",
1321 1.103 riastrad SYSCTL_DESCR("Max number of number of semaphores in system"),
1322 1.103 riastrad sysctl_ipc_semmns, 0, &seminfo.semmns, 0,
1323 1.103 riastrad CTL_CREATE, CTL_EOL);
1324 1.74 rmind sysctl_createv(clog, 0, &node, NULL,
1325 1.103 riastrad CTLFLAG_PERMANENT | CTLFLAG_READWRITE,
1326 1.103 riastrad CTLTYPE_INT, "semmnu",
1327 1.103 riastrad SYSCTL_DESCR("Max number of undo structures in system"),
1328 1.103 riastrad sysctl_ipc_semmnu, 0, &seminfo.semmnu, 0,
1329 1.103 riastrad CTL_CREATE, CTL_EOL);
1330 1.74 rmind }
1331