sysv_shm.c revision 1.117.4.2 1 /* $NetBSD: sysv_shm.c,v 1.117.4.2 2011/03/05 20:55:24 rmind Exp $ */
2
3 /*-
4 * Copyright (c) 1999, 2007 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, and by Mindaugas Rasiukevicius.
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 *
20 * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
21 * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
22 * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
23 * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
24 * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
25 * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
26 * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
27 * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
28 * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
29 * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
30 * POSSIBILITY OF SUCH DAMAGE.
31 */
32
33 /*
34 * Copyright (c) 1994 Adam Glass and Charles M. Hannum. All rights reserved.
35 *
36 * Redistribution and use in source and binary forms, with or without
37 * modification, are permitted provided that the following conditions
38 * are met:
39 * 1. Redistributions of source code must retain the above copyright
40 * notice, this list of conditions and the following disclaimer.
41 * 2. Redistributions in binary form must reproduce the above copyright
42 * notice, this list of conditions and the following disclaimer in the
43 * documentation and/or other materials provided with the distribution.
44 * 3. All advertising materials mentioning features or use of this software
45 * must display the following acknowledgement:
46 * This product includes software developed by Adam Glass and Charles M.
47 * Hannum.
48 * 4. The names of the authors may not be used to endorse or promote products
49 * derived from this software without specific prior written permission.
50 *
51 * THIS SOFTWARE IS PROVIDED BY THE AUTHORS ``AS IS'' AND ANY EXPRESS OR
52 * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
53 * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
54 * IN NO EVENT SHALL THE AUTHORS BE LIABLE FOR ANY DIRECT, INDIRECT,
55 * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT
56 * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
57 * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
58 * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
59 * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF
60 * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
61 */
62
63 #include <sys/cdefs.h>
64 __KERNEL_RCSID(0, "$NetBSD: sysv_shm.c,v 1.117.4.2 2011/03/05 20:55:24 rmind Exp $");
65
66 #define SYSVSHM
67
68 #include <sys/param.h>
69 #include <sys/kernel.h>
70 #include <sys/kmem.h>
71 #include <sys/shm.h>
72 #include <sys/mutex.h>
73 #include <sys/mman.h>
74 #include <sys/stat.h>
75 #include <sys/sysctl.h>
76 #include <sys/mount.h> /* XXX for <sys/syscallargs.h> */
77 #include <sys/syscallargs.h>
78 #include <sys/queue.h>
79 #include <sys/pool.h>
80 #include <sys/kauth.h>
81
82 #include <uvm/uvm_extern.h>
83 #include <uvm/uvm_object.h>
84
85 int shm_nused;
86 struct shmid_ds *shmsegs;
87
88 struct shmmap_entry {
89 SLIST_ENTRY(shmmap_entry) next;
90 vaddr_t va;
91 int shmid;
92 };
93
94 static kmutex_t shm_lock;
95 static kcondvar_t * shm_cv;
96 static struct pool shmmap_entry_pool;
97 static int shm_last_free, shm_use_phys;
98 static size_t shm_committed;
99
100 static kcondvar_t shm_realloc_cv;
101 static bool shm_realloc_state;
102 static u_int shm_realloc_disable;
103
104 struct shmmap_state {
105 unsigned int nitems;
106 unsigned int nrefs;
107 SLIST_HEAD(, shmmap_entry) entries;
108 };
109
110 #ifdef SHMDEBUG
111 #define SHMPRINTF(a) printf a
112 #else
113 #define SHMPRINTF(a)
114 #endif
115
116 static int shmrealloc(int);
117
118 /*
119 * Find the shared memory segment by the identifier.
120 * => must be called with shm_lock held;
121 */
122 static struct shmid_ds *
123 shm_find_segment_by_shmid(int shmid)
124 {
125 int segnum;
126 struct shmid_ds *shmseg;
127
128 KASSERT(mutex_owned(&shm_lock));
129
130 segnum = IPCID_TO_IX(shmid);
131 if (segnum < 0 || segnum >= shminfo.shmmni)
132 return NULL;
133 shmseg = &shmsegs[segnum];
134 if ((shmseg->shm_perm.mode & SHMSEG_ALLOCATED) == 0)
135 return NULL;
136 if ((shmseg->shm_perm.mode &
137 (SHMSEG_REMOVED|SHMSEG_RMLINGER)) == SHMSEG_REMOVED)
138 return NULL;
139 if (shmseg->shm_perm._seq != IPCID_TO_SEQ(shmid))
140 return NULL;
141
142 return shmseg;
143 }
144
145 /*
146 * Free memory segment.
147 * => must be called with shm_lock held;
148 */
149 static void
150 shm_free_segment(int segnum)
151 {
152 struct shmid_ds *shmseg;
153 size_t size;
154 bool wanted;
155
156 KASSERT(mutex_owned(&shm_lock));
157
158 shmseg = &shmsegs[segnum];
159 SHMPRINTF(("shm freeing key 0x%lx seq 0x%x\n",
160 shmseg->shm_perm._key, shmseg->shm_perm._seq));
161
162 size = (shmseg->shm_segsz + PGOFSET) & ~PGOFSET;
163 wanted = (shmseg->shm_perm.mode & SHMSEG_WANTED);
164
165 shmseg->_shm_internal = NULL;
166 shm_committed -= btoc(size);
167 shm_nused--;
168 shmseg->shm_perm.mode = SHMSEG_FREE;
169 shm_last_free = segnum;
170 if (wanted == true)
171 cv_broadcast(&shm_cv[segnum]);
172 }
173
174 /*
175 * Delete entry from the shm map.
176 * => must be called with shm_lock held;
177 */
178 static struct uvm_object *
179 shm_delete_mapping(struct shmmap_state *shmmap_s,
180 struct shmmap_entry *shmmap_se)
181 {
182 struct uvm_object *uobj = NULL;
183 struct shmid_ds *shmseg;
184 int segnum;
185
186 KASSERT(mutex_owned(&shm_lock));
187
188 segnum = IPCID_TO_IX(shmmap_se->shmid);
189 shmseg = &shmsegs[segnum];
190 SLIST_REMOVE(&shmmap_s->entries, shmmap_se, shmmap_entry, next);
191 shmmap_s->nitems--;
192 shmseg->shm_dtime = time_second;
193 if ((--shmseg->shm_nattch <= 0) &&
194 (shmseg->shm_perm.mode & SHMSEG_REMOVED)) {
195 uobj = shmseg->_shm_internal;
196 shm_free_segment(segnum);
197 }
198
199 return uobj;
200 }
201
202 /*
203 * Get a non-shared shm map for that vmspace. Note, that memory
204 * allocation might be performed with lock held.
205 */
206 static struct shmmap_state *
207 shmmap_getprivate(struct proc *p)
208 {
209 struct shmmap_state *oshmmap_s, *shmmap_s;
210 struct shmmap_entry *oshmmap_se, *shmmap_se;
211
212 KASSERT(mutex_owned(&shm_lock));
213
214 /* 1. A shm map with refcnt = 1, used by ourselves, thus return */
215 oshmmap_s = (struct shmmap_state *)p->p_vmspace->vm_shm;
216 if (oshmmap_s && oshmmap_s->nrefs == 1)
217 return oshmmap_s;
218
219 /* 2. No shm map preset - create a fresh one */
220 shmmap_s = kmem_zalloc(sizeof(struct shmmap_state), KM_SLEEP);
221 shmmap_s->nrefs = 1;
222 SLIST_INIT(&shmmap_s->entries);
223 p->p_vmspace->vm_shm = (void *)shmmap_s;
224
225 if (oshmmap_s == NULL)
226 return shmmap_s;
227
228 SHMPRINTF(("shmmap_getprivate: vm %p split (%d entries), was used by %d\n",
229 p->p_vmspace, oshmmap_s->nitems, oshmmap_s->nrefs));
230
231 /* 3. A shared shm map, copy to a fresh one and adjust refcounts */
232 SLIST_FOREACH(oshmmap_se, &oshmmap_s->entries, next) {
233 shmmap_se = pool_get(&shmmap_entry_pool, PR_WAITOK);
234 shmmap_se->va = oshmmap_se->va;
235 shmmap_se->shmid = oshmmap_se->shmid;
236 SLIST_INSERT_HEAD(&shmmap_s->entries, shmmap_se, next);
237 }
238 shmmap_s->nitems = oshmmap_s->nitems;
239 oshmmap_s->nrefs--;
240
241 return shmmap_s;
242 }
243
244 /*
245 * Lock/unlock the memory.
246 * => must be called with shm_lock held;
247 * => called from one place, thus, inline;
248 */
249 static inline int
250 shm_memlock(struct lwp *l, struct shmid_ds *shmseg, int shmid, int cmd)
251 {
252 struct proc *p = l->l_proc;
253 struct shmmap_entry *shmmap_se;
254 struct shmmap_state *shmmap_s;
255 size_t size;
256 int error;
257
258 KASSERT(mutex_owned(&shm_lock));
259 shmmap_s = shmmap_getprivate(p);
260
261 /* Find our shared memory address by shmid */
262 SLIST_FOREACH(shmmap_se, &shmmap_s->entries, next) {
263 if (shmmap_se->shmid != shmid)
264 continue;
265
266 size = (shmseg->shm_segsz + PGOFSET) & ~PGOFSET;
267
268 if (cmd == SHM_LOCK &&
269 (shmseg->shm_perm.mode & SHMSEG_WIRED) == 0) {
270 /* Wire the object and map, then tag it */
271 error = uvm_obj_wirepages(shmseg->_shm_internal,
272 0, size);
273 if (error)
274 return EIO;
275 error = uvm_map_pageable(&p->p_vmspace->vm_map,
276 shmmap_se->va, shmmap_se->va + size, false, 0);
277 if (error) {
278 uvm_obj_unwirepages(shmseg->_shm_internal,
279 0, size);
280 if (error == EFAULT)
281 error = ENOMEM;
282 return error;
283 }
284 shmseg->shm_perm.mode |= SHMSEG_WIRED;
285
286 } else if (cmd == SHM_UNLOCK &&
287 (shmseg->shm_perm.mode & SHMSEG_WIRED) != 0) {
288 /* Unwire the object and map, then untag it */
289 uvm_obj_unwirepages(shmseg->_shm_internal, 0, size);
290 error = uvm_map_pageable(&p->p_vmspace->vm_map,
291 shmmap_se->va, shmmap_se->va + size, true, 0);
292 if (error)
293 return EIO;
294 shmseg->shm_perm.mode &= ~SHMSEG_WIRED;
295 }
296 }
297
298 return 0;
299 }
300
301 /*
302 * Unmap shared memory.
303 */
304 int
305 sys_shmdt(struct lwp *l, const struct sys_shmdt_args *uap, register_t *retval)
306 {
307 /* {
308 syscallarg(const void *) shmaddr;
309 } */
310 struct proc *p = l->l_proc;
311 struct shmmap_state *shmmap_s1, *shmmap_s;
312 struct shmmap_entry *shmmap_se;
313 struct uvm_object *uobj;
314 struct shmid_ds *shmseg;
315 size_t size;
316
317 mutex_enter(&shm_lock);
318 /* In case of reallocation, we will wait for completion */
319 while (__predict_false(shm_realloc_state))
320 cv_wait(&shm_realloc_cv, &shm_lock);
321
322 shmmap_s1 = (struct shmmap_state *)p->p_vmspace->vm_shm;
323 if (shmmap_s1 == NULL) {
324 mutex_exit(&shm_lock);
325 return EINVAL;
326 }
327
328 /* Find the map entry */
329 SLIST_FOREACH(shmmap_se, &shmmap_s1->entries, next)
330 if (shmmap_se->va == (vaddr_t)SCARG(uap, shmaddr))
331 break;
332 if (shmmap_se == NULL) {
333 mutex_exit(&shm_lock);
334 return EINVAL;
335 }
336
337 shmmap_s = shmmap_getprivate(p);
338 if (shmmap_s != shmmap_s1) {
339 /* Map has been copied, lookup entry in new map */
340 SLIST_FOREACH(shmmap_se, &shmmap_s->entries, next)
341 if (shmmap_se->va == (vaddr_t)SCARG(uap, shmaddr))
342 break;
343 if (shmmap_se == NULL) {
344 mutex_exit(&shm_lock);
345 return EINVAL;
346 }
347 }
348
349 SHMPRINTF(("shmdt: vm %p: remove %d @%lx\n",
350 p->p_vmspace, shmmap_se->shmid, shmmap_se->va));
351
352 /* Delete the entry from shm map */
353 uobj = shm_delete_mapping(shmmap_s, shmmap_se);
354 shmseg = &shmsegs[IPCID_TO_IX(shmmap_se->shmid)];
355 size = (shmseg->shm_segsz + PGOFSET) & ~PGOFSET;
356 mutex_exit(&shm_lock);
357
358 uvm_deallocate(&p->p_vmspace->vm_map, shmmap_se->va, size);
359 if (uobj != NULL)
360 uao_detach(uobj);
361 pool_put(&shmmap_entry_pool, shmmap_se);
362
363 return 0;
364 }
365
366 /*
367 * Map shared memory.
368 */
369 int
370 sys_shmat(struct lwp *l, const struct sys_shmat_args *uap, register_t *retval)
371 {
372 /* {
373 syscallarg(int) shmid;
374 syscallarg(const void *) shmaddr;
375 syscallarg(int) shmflg;
376 } */
377 int error, flags = 0;
378 struct proc *p = l->l_proc;
379 kauth_cred_t cred = l->l_cred;
380 struct shmid_ds *shmseg;
381 struct shmmap_state *shmmap_s;
382 struct shmmap_entry *shmmap_se;
383 struct uvm_object *uobj;
384 struct vmspace *vm;
385 vaddr_t attach_va;
386 vm_prot_t prot;
387 vsize_t size;
388
389 /* Allocate a new map entry and set it */
390 shmmap_se = pool_get(&shmmap_entry_pool, PR_WAITOK);
391 shmmap_se->shmid = SCARG(uap, shmid);
392
393 mutex_enter(&shm_lock);
394 /* In case of reallocation, we will wait for completion */
395 while (__predict_false(shm_realloc_state))
396 cv_wait(&shm_realloc_cv, &shm_lock);
397
398 shmseg = shm_find_segment_by_shmid(SCARG(uap, shmid));
399 if (shmseg == NULL) {
400 error = EINVAL;
401 goto err;
402 }
403 error = ipcperm(cred, &shmseg->shm_perm,
404 (SCARG(uap, shmflg) & SHM_RDONLY) ? IPC_R : IPC_R|IPC_W);
405 if (error)
406 goto err;
407
408 vm = p->p_vmspace;
409 shmmap_s = (struct shmmap_state *)vm->vm_shm;
410 if (shmmap_s && shmmap_s->nitems >= shminfo.shmseg) {
411 error = EMFILE;
412 goto err;
413 }
414
415 size = (shmseg->shm_segsz + PGOFSET) & ~PGOFSET;
416 prot = VM_PROT_READ;
417 if ((SCARG(uap, shmflg) & SHM_RDONLY) == 0)
418 prot |= VM_PROT_WRITE;
419 if (SCARG(uap, shmaddr)) {
420 flags |= UVM_FLAG_FIXED;
421 if (SCARG(uap, shmflg) & SHM_RND)
422 attach_va =
423 (vaddr_t)SCARG(uap, shmaddr) & ~(SHMLBA-1);
424 else if (((vaddr_t)SCARG(uap, shmaddr) & (SHMLBA-1)) == 0)
425 attach_va = (vaddr_t)SCARG(uap, shmaddr);
426 else {
427 error = EINVAL;
428 goto err;
429 }
430 } else {
431 /* This is just a hint to uvm_map() about where to put it. */
432 attach_va = p->p_emul->e_vm_default_addr(p,
433 (vaddr_t)vm->vm_daddr, size);
434 }
435
436 /*
437 * Create a map entry, add it to the list and increase the counters.
438 * The lock will be dropped before the mapping, disable reallocation.
439 */
440 shmmap_s = shmmap_getprivate(p);
441 SLIST_INSERT_HEAD(&shmmap_s->entries, shmmap_se, next);
442 shmmap_s->nitems++;
443 shmseg->shm_lpid = p->p_pid;
444 shmseg->shm_nattch++;
445 shm_realloc_disable++;
446 mutex_exit(&shm_lock);
447
448 /*
449 * Add a reference to the memory object, map it to the
450 * address space, and lock the memory, if needed.
451 */
452 uobj = shmseg->_shm_internal;
453 uao_reference(uobj);
454 error = uvm_map(&vm->vm_map, &attach_va, size, uobj, 0, 0,
455 UVM_MAPFLAG(prot, prot, UVM_INH_SHARE, UVM_ADV_RANDOM, flags));
456 if (error)
457 goto err_detach;
458 if (shm_use_phys || (shmseg->shm_perm.mode & SHMSEG_WIRED)) {
459 error = uvm_map_pageable(&vm->vm_map, attach_va,
460 attach_va + size, false, 0);
461 if (error) {
462 if (error == EFAULT)
463 error = ENOMEM;
464 uvm_deallocate(&vm->vm_map, attach_va, size);
465 goto err_detach;
466 }
467 }
468
469 /* Set the new address, and update the time */
470 mutex_enter(&shm_lock);
471 shmmap_se->va = attach_va;
472 shmseg->shm_atime = time_second;
473 shm_realloc_disable--;
474 retval[0] = attach_va;
475 SHMPRINTF(("shmat: vm %p: add %d @%lx\n",
476 p->p_vmspace, shmmap_se->shmid, attach_va));
477 err:
478 cv_broadcast(&shm_realloc_cv);
479 mutex_exit(&shm_lock);
480 if (error && shmmap_se)
481 pool_put(&shmmap_entry_pool, shmmap_se);
482 return error;
483
484 err_detach:
485 uao_detach(uobj);
486 mutex_enter(&shm_lock);
487 uobj = shm_delete_mapping(shmmap_s, shmmap_se);
488 shm_realloc_disable--;
489 cv_broadcast(&shm_realloc_cv);
490 mutex_exit(&shm_lock);
491 if (uobj != NULL)
492 uao_detach(uobj);
493 pool_put(&shmmap_entry_pool, shmmap_se);
494 return error;
495 }
496
497 /*
498 * Shared memory control operations.
499 */
500 int
501 sys___shmctl50(struct lwp *l, const struct sys___shmctl50_args *uap,
502 register_t *retval)
503 {
504 /* {
505 syscallarg(int) shmid;
506 syscallarg(int) cmd;
507 syscallarg(struct shmid_ds *) buf;
508 } */
509 struct shmid_ds shmbuf;
510 int cmd, error;
511
512 cmd = SCARG(uap, cmd);
513 if (cmd == IPC_SET) {
514 error = copyin(SCARG(uap, buf), &shmbuf, sizeof(shmbuf));
515 if (error)
516 return error;
517 }
518
519 error = shmctl1(l, SCARG(uap, shmid), cmd,
520 (cmd == IPC_SET || cmd == IPC_STAT) ? &shmbuf : NULL);
521
522 if (error == 0 && cmd == IPC_STAT)
523 error = copyout(&shmbuf, SCARG(uap, buf), sizeof(shmbuf));
524
525 return error;
526 }
527
528 int
529 shmctl1(struct lwp *l, int shmid, int cmd, struct shmid_ds *shmbuf)
530 {
531 struct uvm_object *uobj = NULL;
532 kauth_cred_t cred = l->l_cred;
533 struct shmid_ds *shmseg;
534 int error = 0;
535
536 mutex_enter(&shm_lock);
537 /* In case of reallocation, we will wait for completion */
538 while (__predict_false(shm_realloc_state))
539 cv_wait(&shm_realloc_cv, &shm_lock);
540
541 shmseg = shm_find_segment_by_shmid(shmid);
542 if (shmseg == NULL) {
543 mutex_exit(&shm_lock);
544 return EINVAL;
545 }
546
547 switch (cmd) {
548 case IPC_STAT:
549 if ((error = ipcperm(cred, &shmseg->shm_perm, IPC_R)) != 0)
550 break;
551 memcpy(shmbuf, shmseg, sizeof(struct shmid_ds));
552 break;
553 case IPC_SET:
554 if ((error = ipcperm(cred, &shmseg->shm_perm, IPC_M)) != 0)
555 break;
556 shmseg->shm_perm.uid = shmbuf->shm_perm.uid;
557 shmseg->shm_perm.gid = shmbuf->shm_perm.gid;
558 shmseg->shm_perm.mode =
559 (shmseg->shm_perm.mode & ~ACCESSPERMS) |
560 (shmbuf->shm_perm.mode & ACCESSPERMS);
561 shmseg->shm_ctime = time_second;
562 break;
563 case IPC_RMID:
564 if ((error = ipcperm(cred, &shmseg->shm_perm, IPC_M)) != 0)
565 break;
566 shmseg->shm_perm._key = IPC_PRIVATE;
567 shmseg->shm_perm.mode |= SHMSEG_REMOVED;
568 if (shmseg->shm_nattch <= 0) {
569 uobj = shmseg->_shm_internal;
570 shm_free_segment(IPCID_TO_IX(shmid));
571 }
572 break;
573 case SHM_LOCK:
574 case SHM_UNLOCK:
575 if ((error = kauth_authorize_generic(cred,
576 KAUTH_GENERIC_ISSUSER, NULL)) != 0)
577 break;
578 error = shm_memlock(l, shmseg, shmid, cmd);
579 break;
580 default:
581 error = EINVAL;
582 }
583
584 mutex_exit(&shm_lock);
585 if (uobj != NULL)
586 uao_detach(uobj);
587 return error;
588 }
589
590 /*
591 * Try to take an already existing segment.
592 * => must be called with shm_lock held;
593 * => called from one place, thus, inline;
594 */
595 static inline int
596 shmget_existing(struct lwp *l, const struct sys_shmget_args *uap, int mode,
597 register_t *retval)
598 {
599 struct shmid_ds *shmseg;
600 kauth_cred_t cred = l->l_cred;
601 int segnum, error;
602 again:
603 KASSERT(mutex_owned(&shm_lock));
604
605 /* Find segment by key */
606 for (segnum = 0; segnum < shminfo.shmmni; segnum++)
607 if ((shmsegs[segnum].shm_perm.mode & SHMSEG_ALLOCATED) &&
608 shmsegs[segnum].shm_perm._key == SCARG(uap, key))
609 break;
610 if (segnum == shminfo.shmmni) {
611 /* Not found */
612 return -1;
613 }
614
615 shmseg = &shmsegs[segnum];
616 if (shmseg->shm_perm.mode & SHMSEG_REMOVED) {
617 /*
618 * This segment is in the process of being allocated. Wait
619 * until it's done, and look the key up again (in case the
620 * allocation failed or it was freed).
621 */
622 shmseg->shm_perm.mode |= SHMSEG_WANTED;
623 error = cv_wait_sig(&shm_cv[segnum], &shm_lock);
624 if (error)
625 return error;
626 goto again;
627 }
628
629 /*
630 * First check the flags, to generate a useful error when a
631 * segment already exists.
632 */
633 if ((SCARG(uap, shmflg) & (IPC_CREAT | IPC_EXCL)) ==
634 (IPC_CREAT | IPC_EXCL))
635 return EEXIST;
636
637 /* Check the permission and segment size. */
638 error = ipcperm(cred, &shmseg->shm_perm, mode);
639 if (error)
640 return error;
641 if (SCARG(uap, size) && SCARG(uap, size) > shmseg->shm_segsz)
642 return EINVAL;
643
644 *retval = IXSEQ_TO_IPCID(segnum, shmseg->shm_perm);
645 return 0;
646 }
647
648 int
649 sys_shmget(struct lwp *l, const struct sys_shmget_args *uap, register_t *retval)
650 {
651 /* {
652 syscallarg(key_t) key;
653 syscallarg(size_t) size;
654 syscallarg(int) shmflg;
655 } */
656 struct shmid_ds *shmseg;
657 kauth_cred_t cred = l->l_cred;
658 key_t key = SCARG(uap, key);
659 size_t size;
660 int error, mode, segnum;
661 bool lockmem;
662
663 mode = SCARG(uap, shmflg) & ACCESSPERMS;
664 if (SCARG(uap, shmflg) & _SHM_RMLINGER)
665 mode |= SHMSEG_RMLINGER;
666
667 SHMPRINTF(("shmget: key 0x%lx size 0x%zx shmflg 0x%x mode 0x%x\n",
668 SCARG(uap, key), SCARG(uap, size), SCARG(uap, shmflg), mode));
669
670 mutex_enter(&shm_lock);
671 /* In case of reallocation, we will wait for completion */
672 while (__predict_false(shm_realloc_state))
673 cv_wait(&shm_realloc_cv, &shm_lock);
674
675 if (key != IPC_PRIVATE) {
676 error = shmget_existing(l, uap, mode, retval);
677 if (error != -1) {
678 mutex_exit(&shm_lock);
679 return error;
680 }
681 if ((SCARG(uap, shmflg) & IPC_CREAT) == 0) {
682 mutex_exit(&shm_lock);
683 return ENOENT;
684 }
685 }
686 error = 0;
687
688 /*
689 * Check the for the limits.
690 */
691 size = SCARG(uap, size);
692 if (size < shminfo.shmmin || size > shminfo.shmmax) {
693 mutex_exit(&shm_lock);
694 return EINVAL;
695 }
696 if (shm_nused >= shminfo.shmmni) {
697 mutex_exit(&shm_lock);
698 return ENOSPC;
699 }
700 size = (size + PGOFSET) & ~PGOFSET;
701 if (shm_committed + btoc(size) > shminfo.shmall) {
702 mutex_exit(&shm_lock);
703 return ENOMEM;
704 }
705
706 /* Find the first available segment */
707 if (shm_last_free < 0) {
708 for (segnum = 0; segnum < shminfo.shmmni; segnum++)
709 if (shmsegs[segnum].shm_perm.mode & SHMSEG_FREE)
710 break;
711 KASSERT(segnum < shminfo.shmmni);
712 } else {
713 segnum = shm_last_free;
714 shm_last_free = -1;
715 }
716
717 /*
718 * Initialize the segment.
719 * We will drop the lock while allocating the memory, thus mark the
720 * segment present, but removed, that no other thread could take it.
721 * Also, disable reallocation, while lock is dropped.
722 */
723 shmseg = &shmsegs[segnum];
724 shmseg->shm_perm.mode = SHMSEG_ALLOCATED | SHMSEG_REMOVED;
725 shm_committed += btoc(size);
726 shm_nused++;
727 lockmem = shm_use_phys;
728 shm_realloc_disable++;
729 mutex_exit(&shm_lock);
730
731 /* Allocate the memory object and lock it if needed */
732 shmseg->_shm_internal = uao_create(size, 0);
733 if (lockmem) {
734 /* Wire the pages and tag it */
735 error = uvm_obj_wirepages(shmseg->_shm_internal, 0, size);
736 if (error) {
737 uao_detach(shmseg->_shm_internal);
738 mutex_enter(&shm_lock);
739 shm_free_segment(segnum);
740 shm_realloc_disable--;
741 mutex_exit(&shm_lock);
742 return error;
743 }
744 }
745
746 /*
747 * Please note, while segment is marked, there are no need to hold the
748 * lock, while setting it (except shm_perm.mode).
749 */
750 shmseg->shm_perm._key = SCARG(uap, key);
751 shmseg->shm_perm._seq = (shmseg->shm_perm._seq + 1) & 0x7fff;
752 *retval = IXSEQ_TO_IPCID(segnum, shmseg->shm_perm);
753
754 shmseg->shm_perm.cuid = shmseg->shm_perm.uid = kauth_cred_geteuid(cred);
755 shmseg->shm_perm.cgid = shmseg->shm_perm.gid = kauth_cred_getegid(cred);
756 shmseg->shm_segsz = SCARG(uap, size);
757 shmseg->shm_cpid = l->l_proc->p_pid;
758 shmseg->shm_lpid = shmseg->shm_nattch = 0;
759 shmseg->shm_atime = shmseg->shm_dtime = 0;
760 shmseg->shm_ctime = time_second;
761
762 /*
763 * Segment is initialized.
764 * Enter the lock, mark as allocated, and notify waiters (if any).
765 * Also, unmark the state of reallocation.
766 */
767 mutex_enter(&shm_lock);
768 shmseg->shm_perm.mode = (shmseg->shm_perm.mode & SHMSEG_WANTED) |
769 (mode & (ACCESSPERMS | SHMSEG_RMLINGER)) |
770 SHMSEG_ALLOCATED | (lockmem ? SHMSEG_WIRED : 0);
771 if (shmseg->shm_perm.mode & SHMSEG_WANTED) {
772 shmseg->shm_perm.mode &= ~SHMSEG_WANTED;
773 cv_broadcast(&shm_cv[segnum]);
774 }
775 shm_realloc_disable--;
776 cv_broadcast(&shm_realloc_cv);
777 mutex_exit(&shm_lock);
778
779 return error;
780 }
781
782 void
783 shmfork(struct vmspace *vm1, struct vmspace *vm2)
784 {
785 struct shmmap_state *shmmap_s;
786 struct shmmap_entry *shmmap_se;
787
788 SHMPRINTF(("shmfork %p->%p\n", vm1, vm2));
789 mutex_enter(&shm_lock);
790 vm2->vm_shm = vm1->vm_shm;
791 if (vm1->vm_shm) {
792 shmmap_s = (struct shmmap_state *)vm1->vm_shm;
793 SLIST_FOREACH(shmmap_se, &shmmap_s->entries, next)
794 shmsegs[IPCID_TO_IX(shmmap_se->shmid)].shm_nattch++;
795 shmmap_s->nrefs++;
796 }
797 mutex_exit(&shm_lock);
798 }
799
800 void
801 shmexit(struct vmspace *vm)
802 {
803 struct shmmap_state *shmmap_s;
804 struct shmmap_entry *shmmap_se;
805
806 mutex_enter(&shm_lock);
807 shmmap_s = (struct shmmap_state *)vm->vm_shm;
808 if (shmmap_s == NULL) {
809 mutex_exit(&shm_lock);
810 return;
811 }
812 vm->vm_shm = NULL;
813
814 if (--shmmap_s->nrefs > 0) {
815 SHMPRINTF(("shmexit: vm %p drop ref (%d entries), refs = %d\n",
816 vm, shmmap_s->nitems, shmmap_s->nrefs));
817 SLIST_FOREACH(shmmap_se, &shmmap_s->entries, next) {
818 shmsegs[IPCID_TO_IX(shmmap_se->shmid)].shm_nattch--;
819 }
820 mutex_exit(&shm_lock);
821 return;
822 }
823
824 SHMPRINTF(("shmexit: vm %p cleanup (%d entries)\n", vm, shmmap_s->nitems));
825 if (shmmap_s->nitems == 0) {
826 mutex_exit(&shm_lock);
827 kmem_free(shmmap_s, sizeof(struct shmmap_state));
828 return;
829 }
830
831 /*
832 * Delete the entry from shm map.
833 */
834 for (;;) {
835 struct shmid_ds *shmseg;
836 struct uvm_object *uobj;
837 size_t sz;
838
839 shmmap_se = SLIST_FIRST(&shmmap_s->entries);
840 KASSERT(shmmap_se != NULL);
841
842 shmseg = &shmsegs[IPCID_TO_IX(shmmap_se->shmid)];
843 sz = (shmseg->shm_segsz + PGOFSET) & ~PGOFSET;
844 /* shm_delete_mapping() removes from the list. */
845 uobj = shm_delete_mapping(shmmap_s, shmmap_se);
846 mutex_exit(&shm_lock);
847
848 uvm_deallocate(&vm->vm_map, shmmap_se->va, sz);
849 if (uobj != NULL) {
850 uao_detach(uobj);
851 }
852 pool_put(&shmmap_entry_pool, shmmap_se);
853
854 if (SLIST_EMPTY(&shmmap_s->entries)) {
855 break;
856 }
857 mutex_enter(&shm_lock);
858 KASSERT(!SLIST_EMPTY(&shmmap_s->entries));
859 }
860 kmem_free(shmmap_s, sizeof(struct shmmap_state));
861 }
862
863 static int
864 shmrealloc(int newshmni)
865 {
866 vaddr_t v;
867 struct shmid_ds *oldshmsegs, *newshmsegs;
868 kcondvar_t *newshm_cv, *oldshm_cv;
869 size_t sz;
870 int i, lsegid, oldshmni;
871
872 if (newshmni < 1)
873 return EINVAL;
874
875 /* Allocate new memory area */
876 sz = ALIGN(newshmni * sizeof(struct shmid_ds)) +
877 ALIGN(newshmni * sizeof(kcondvar_t));
878 v = uvm_km_alloc(kernel_map, round_page(sz), 0,
879 UVM_KMF_WIRED|UVM_KMF_ZERO);
880 if (v == 0)
881 return ENOMEM;
882
883 mutex_enter(&shm_lock);
884 while (shm_realloc_state || shm_realloc_disable)
885 cv_wait(&shm_realloc_cv, &shm_lock);
886
887 /*
888 * Get the number of last segment. Fail we are trying to
889 * reallocate less memory than we use.
890 */
891 lsegid = 0;
892 for (i = 0; i < shminfo.shmmni; i++)
893 if ((shmsegs[i].shm_perm.mode & SHMSEG_FREE) == 0)
894 lsegid = i;
895 if (lsegid >= newshmni) {
896 mutex_exit(&shm_lock);
897 uvm_km_free(kernel_map, v, sz, UVM_KMF_WIRED);
898 return EBUSY;
899 }
900 shm_realloc_state = true;
901
902 newshmsegs = (void *)v;
903 newshm_cv = (void *)((uintptr_t)newshmsegs +
904 ALIGN(newshmni * sizeof(struct shmid_ds)));
905
906 /* Copy all memory to the new area */
907 for (i = 0; i < shm_nused; i++)
908 (void)memcpy(&newshmsegs[i], &shmsegs[i],
909 sizeof(newshmsegs[0]));
910
911 /* Mark as free all new segments, if there is any */
912 for (; i < newshmni; i++) {
913 cv_init(&newshm_cv[i], "shmwait");
914 newshmsegs[i].shm_perm.mode = SHMSEG_FREE;
915 newshmsegs[i].shm_perm._seq = 0;
916 }
917
918 oldshmsegs = shmsegs;
919 oldshmni = shminfo.shmmni;
920 shminfo.shmmni = newshmni;
921 shmsegs = newshmsegs;
922 shm_cv = newshm_cv;
923
924 /* Reallocation completed - notify all waiters, if any */
925 shm_realloc_state = false;
926 cv_broadcast(&shm_realloc_cv);
927 mutex_exit(&shm_lock);
928
929 /* Release now unused resources. */
930 oldshm_cv = (void *)((uintptr_t)oldshmsegs +
931 ALIGN(oldshmni * sizeof(struct shmid_ds)));
932 for (i = 0; i < oldshmni; i++)
933 cv_destroy(&oldshm_cv[i]);
934
935 sz = ALIGN(oldshmni * sizeof(struct shmid_ds)) +
936 ALIGN(oldshmni * sizeof(kcondvar_t));
937 uvm_km_free(kernel_map, (vaddr_t)oldshmsegs, sz, UVM_KMF_WIRED);
938
939 return 0;
940 }
941
942 void
943 shminit(void)
944 {
945 vaddr_t v;
946 size_t sz;
947 int i;
948
949 mutex_init(&shm_lock, MUTEX_DEFAULT, IPL_NONE);
950 pool_init(&shmmap_entry_pool, sizeof(struct shmmap_entry), 0, 0, 0,
951 "shmmp", &pool_allocator_nointr, IPL_NONE);
952 cv_init(&shm_realloc_cv, "shmrealc");
953
954 /* Allocate the wired memory for our structures */
955 sz = ALIGN(shminfo.shmmni * sizeof(struct shmid_ds)) +
956 ALIGN(shminfo.shmmni * sizeof(kcondvar_t));
957 v = uvm_km_alloc(kernel_map, round_page(sz), 0,
958 UVM_KMF_WIRED|UVM_KMF_ZERO);
959 if (v == 0)
960 panic("sysv_shm: cannot allocate memory");
961 shmsegs = (void *)v;
962 shm_cv = (void *)((uintptr_t)shmsegs +
963 ALIGN(shminfo.shmmni * sizeof(struct shmid_ds)));
964
965 if (shminfo.shmmax == 0)
966 shminfo.shmmax = max(physmem / 4, 1024) * PAGE_SIZE;
967 else
968 shminfo.shmmax *= PAGE_SIZE;
969 shminfo.shmall = shminfo.shmmax / PAGE_SIZE;
970
971 for (i = 0; i < shminfo.shmmni; i++) {
972 cv_init(&shm_cv[i], "shmwait");
973 shmsegs[i].shm_perm.mode = SHMSEG_FREE;
974 shmsegs[i].shm_perm._seq = 0;
975 }
976 shm_last_free = 0;
977 shm_nused = 0;
978 shm_committed = 0;
979 shm_realloc_disable = 0;
980 shm_realloc_state = false;
981 }
982
983 static int
984 sysctl_ipc_shmmni(SYSCTLFN_ARGS)
985 {
986 int newsize, error;
987 struct sysctlnode node;
988 node = *rnode;
989 node.sysctl_data = &newsize;
990
991 newsize = shminfo.shmmni;
992 error = sysctl_lookup(SYSCTLFN_CALL(&node));
993 if (error || newp == NULL)
994 return error;
995
996 sysctl_unlock();
997 error = shmrealloc(newsize);
998 sysctl_relock();
999 return error;
1000 }
1001
1002 static int
1003 sysctl_ipc_shmmaxpgs(SYSCTLFN_ARGS)
1004 {
1005 uint32_t newsize;
1006 int error;
1007 struct sysctlnode node;
1008 node = *rnode;
1009 node.sysctl_data = &newsize;
1010
1011 newsize = shminfo.shmall;
1012 error = sysctl_lookup(SYSCTLFN_CALL(&node));
1013 if (error || newp == NULL)
1014 return error;
1015
1016 if (newsize < 1)
1017 return EINVAL;
1018
1019 shminfo.shmall = newsize;
1020 shminfo.shmmax = (uint64_t)shminfo.shmall * PAGE_SIZE;
1021
1022 return 0;
1023 }
1024
1025 static int
1026 sysctl_ipc_shmmax(SYSCTLFN_ARGS)
1027 {
1028 uint64_t newsize;
1029 int error;
1030 struct sysctlnode node;
1031 node = *rnode;
1032 node.sysctl_data = &newsize;
1033
1034 newsize = shminfo.shmmax;
1035 error = sysctl_lookup(SYSCTLFN_CALL(&node));
1036 if (error || newp == NULL)
1037 return error;
1038
1039 if (newsize < PAGE_SIZE)
1040 return EINVAL;
1041
1042 shminfo.shmmax = round_page(newsize);
1043 shminfo.shmall = shminfo.shmmax >> PAGE_SHIFT;
1044
1045 return 0;
1046 }
1047
1048 SYSCTL_SETUP(sysctl_ipc_shm_setup, "sysctl kern.ipc subtree setup")
1049 {
1050
1051 sysctl_createv(clog, 0, NULL, NULL,
1052 CTLFLAG_PERMANENT,
1053 CTLTYPE_NODE, "kern", NULL,
1054 NULL, 0, NULL, 0,
1055 CTL_KERN, CTL_EOL);
1056 sysctl_createv(clog, 0, NULL, NULL,
1057 CTLFLAG_PERMANENT,
1058 CTLTYPE_NODE, "ipc",
1059 SYSCTL_DESCR("SysV IPC options"),
1060 NULL, 0, NULL, 0,
1061 CTL_KERN, KERN_SYSVIPC, CTL_EOL);
1062 sysctl_createv(clog, 0, NULL, NULL,
1063 CTLFLAG_PERMANENT | CTLFLAG_READWRITE,
1064 CTLTYPE_QUAD, "shmmax",
1065 SYSCTL_DESCR("Max shared memory segment size in bytes"),
1066 sysctl_ipc_shmmax, 0, &shminfo.shmmax, 0,
1067 CTL_KERN, KERN_SYSVIPC, KERN_SYSVIPC_SHMMAX, CTL_EOL);
1068 sysctl_createv(clog, 0, NULL, NULL,
1069 CTLFLAG_PERMANENT | CTLFLAG_READWRITE,
1070 CTLTYPE_INT, "shmmni",
1071 SYSCTL_DESCR("Max number of shared memory identifiers"),
1072 sysctl_ipc_shmmni, 0, &shminfo.shmmni, 0,
1073 CTL_KERN, KERN_SYSVIPC, KERN_SYSVIPC_SHMMNI, CTL_EOL);
1074 sysctl_createv(clog, 0, NULL, NULL,
1075 CTLFLAG_PERMANENT | CTLFLAG_READWRITE,
1076 CTLTYPE_INT, "shmseg",
1077 SYSCTL_DESCR("Max shared memory segments per process"),
1078 NULL, 0, &shminfo.shmseg, 0,
1079 CTL_KERN, KERN_SYSVIPC, KERN_SYSVIPC_SHMSEG, CTL_EOL);
1080 sysctl_createv(clog, 0, NULL, NULL,
1081 CTLFLAG_PERMANENT | CTLFLAG_READWRITE,
1082 CTLTYPE_INT, "shmmaxpgs",
1083 SYSCTL_DESCR("Max amount of shared memory in pages"),
1084 sysctl_ipc_shmmaxpgs, 0, &shminfo.shmall, 0,
1085 CTL_KERN, KERN_SYSVIPC, KERN_SYSVIPC_SHMMAXPGS, CTL_EOL);
1086 sysctl_createv(clog, 0, NULL, NULL,
1087 CTLFLAG_PERMANENT | CTLFLAG_READWRITE,
1088 CTLTYPE_INT, "shm_use_phys",
1089 SYSCTL_DESCR("Enable/disable locking of shared memory in "
1090 "physical memory"), NULL, 0, &shm_use_phys, 0,
1091 CTL_KERN, KERN_SYSVIPC, KERN_SYSVIPC_SHMUSEPHYS, CTL_EOL);
1092 }
1093