xref: /dflybsd-src/sys/kern/sysv_shm.c (revision 747e2961e929a839fd1f570e8b2c2fce73f0fe5c)
1 /*
2  * Copyright (c) 1994 Adam Glass and Charles Hannum.  All rights reserved.
3  *
4  * Redistribution and use in source and binary forms, with or without
5  * modification, are permitted provided that the following conditions
6  * are met:
7  * 1. Redistributions of source code must retain the above copyright
8  *    notice, this list of conditions and the following disclaimer.
9  * 2. Redistributions in binary form must reproduce the above copyright
10  *    notice, this list of conditions and the following disclaimer in the
11  *    documentation and/or other materials provided with the distribution.
12  * 3. All advertising materials mentioning features or use of this software
13  *    must display the following acknowledgement:
14  *	This product includes software developed by Adam Glass and Charles
15  *	Hannum.
16  * 4. The names of the authors may not be used to endorse or promote products
17  *    derived from this software without specific prior written permission.
18  *
19  * THIS SOFTWARE IS PROVIDED BY THE AUTHORS ``AS IS'' AND ANY EXPRESS OR
20  * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
21  * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
22  * IN NO EVENT SHALL THE AUTHORS BE LIABLE FOR ANY DIRECT, INDIRECT,
23  * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT
24  * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
25  * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
26  * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
27  * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF
28  * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
29  */
30 
31 #include "opt_sysvipc.h"
32 
33 #include <sys/param.h>
34 #include <sys/systm.h>
35 #include <sys/sysproto.h>
36 #include <sys/kernel.h>
37 #include <sys/sysctl.h>
38 #include <sys/shm.h>
39 #include <sys/proc.h>
40 #include <sys/malloc.h>
41 #include <sys/mman.h>
42 #include <sys/stat.h>
43 #include <sys/sysent.h>
44 #include <sys/jail.h>
45 
46 #include <vm/vm.h>
47 #include <vm/vm_param.h>
48 #include <sys/lock.h>
49 #include <vm/pmap.h>
50 #include <vm/vm_object.h>
51 #include <vm/vm_map.h>
52 #include <vm/vm_page.h>
53 #include <vm/vm_pager.h>
54 
55 static MALLOC_DEFINE(M_SHM, "shm", "SVID compatible shared memory segments");
56 
57 static int shmget_allocate_segment (struct proc *p, struct shmget_args *uap, int mode);
58 static int shmget_existing (struct proc *p, struct shmget_args *uap, int mode, int segnum);
59 
60 #define	SHMSEG_FREE     	0x0200
61 #define	SHMSEG_REMOVED  	0x0400
62 #define	SHMSEG_ALLOCATED	0x0800
63 #define	SHMSEG_WANTED		0x1000
64 
65 static int shm_last_free, shm_committed, shmalloced;
66 int shm_nused;
67 static struct shmid_ds	*shmsegs;
68 static struct lwkt_token shm_token = LWKT_TOKEN_INITIALIZER(shm_token);
69 
70 struct shm_handle {
71 	/* vm_offset_t kva; */
72 	vm_object_t shm_object;
73 };
74 
75 struct shmmap_state {
76 	vm_offset_t va;
77 	int shmid;
78 };
79 
80 static void shm_deallocate_segment (struct shmid_ds *);
81 static int shm_find_segment_by_key (key_t);
82 static struct shmid_ds *shm_find_segment_by_shmid (int);
83 static int shm_delete_mapping (struct vmspace *vm, struct shmmap_state *);
84 static void shmrealloc (void);
85 static void shminit (void *);
86 
87 /*
88  * Tuneable values
89  */
90 #ifndef SHMMIN
91 #define	SHMMIN	1
92 #endif
93 #ifndef SHMMNI
94 #define	SHMMNI	512
95 #endif
96 #ifndef SHMSEG
97 #define	SHMSEG	1024
98 #endif
99 
100 struct	shminfo shminfo = {
101 	0,
102 	SHMMIN,
103 	SHMMNI,
104 	SHMSEG,
105 	0
106 };
107 
108 /*
109  * allow-removed    Allow a shared memory segment to be attached by its shmid
110  *		    even after it has been deleted, as long as it was still
111  *		    being referenced by someone.  This is a trick used by
112  *		    chrome and other applications to avoid leaving shm
113  *		    segments hanging around after the application is killed
114  *		    or seg-faults unexpectedly.
115  *
116  * use-phys	    Shared memory segments are to use physical memory by
117  *		    default, which allows the kernel to optimize (remove)
118  *		    pv_entry management structures for the related PTEs and
119  *		    prevents paging.  This has distinctly different and
120  *		    usually desireable characteristics verses mmap()ing
121  *		    anonymous memory.
122  */
123 static int shm_allow_removed = 1;
124 static int shm_use_phys = 1;
125 
126 TUNABLE_LONG("kern.ipc.shmmin", &shminfo.shmmin);
127 TUNABLE_LONG("kern.ipc.shmmni", &shminfo.shmmni);
128 TUNABLE_LONG("kern.ipc.shmseg", &shminfo.shmseg);
129 TUNABLE_LONG("kern.ipc.shmmaxpgs", &shminfo.shmall);
130 TUNABLE_INT("kern.ipc.shm_use_phys", &shm_use_phys);
131 
132 SYSCTL_LONG(_kern_ipc, OID_AUTO, shmmax, CTLFLAG_RW, &shminfo.shmmax, 0,
133     "Max shared memory segment size");
134 SYSCTL_LONG(_kern_ipc, OID_AUTO, shmmin, CTLFLAG_RW, &shminfo.shmmin, 0,
135     "Min shared memory segment size");
136 SYSCTL_LONG(_kern_ipc, OID_AUTO, shmmni, CTLFLAG_RD, &shminfo.shmmni, 0,
137     "Max number of shared memory identifiers");
138 SYSCTL_LONG(_kern_ipc, OID_AUTO, shmseg, CTLFLAG_RW, &shminfo.shmseg, 0,
139     "Max shared memory segments per process");
140 SYSCTL_LONG(_kern_ipc, OID_AUTO, shmall, CTLFLAG_RW, &shminfo.shmall, 0,
141     "Max pages of shared memory");
142 SYSCTL_INT(_kern_ipc, OID_AUTO, shm_use_phys, CTLFLAG_RW, &shm_use_phys, 0,
143     "Use phys pager allocation instead of swap pager allocation");
144 SYSCTL_INT(_kern_ipc, OID_AUTO, shm_allow_removed, CTLFLAG_RW,
145     &shm_allow_removed, 0,
146     "Enable/Disable attachment to attached segments marked for removal");
147 
148 static int
149 shm_find_segment_by_key(key_t key)
150 {
151 	int i;
152 
153 	for (i = 0; i < shmalloced; i++) {
154 		if ((shmsegs[i].shm_perm.mode & SHMSEG_ALLOCATED) &&
155 		    shmsegs[i].shm_perm.key == key)
156 			return i;
157 	}
158 	return -1;
159 }
160 
161 static struct shmid_ds *
162 shm_find_segment_by_shmid(int shmid)
163 {
164 	int segnum;
165 	struct shmid_ds *shmseg;
166 
167 	segnum = IPCID_TO_IX(shmid);
168 	if (segnum < 0 || segnum >= shmalloced)
169 		return NULL;
170 	shmseg = &shmsegs[segnum];
171 	if ((shmseg->shm_perm.mode & SHMSEG_ALLOCATED) == 0 ||
172 	    (!shm_allow_removed &&
173 	    (shmseg->shm_perm.mode & SHMSEG_REMOVED) != 0) ||
174 	    shmseg->shm_perm.seq != IPCID_TO_SEQ(shmid)) {
175 		return NULL;
176 	}
177 	return shmseg;
178 }
179 
180 static void
181 shm_deallocate_segment(struct shmid_ds *shmseg)
182 {
183 	struct shm_handle *shm_handle;
184 	size_t size;
185 
186 	shm_handle = shmseg->shm_internal;
187 	vm_object_deallocate(shm_handle->shm_object);
188 	kfree((caddr_t)shm_handle, M_SHM);
189 	shmseg->shm_internal = NULL;
190 	size = round_page(shmseg->shm_segsz);
191 	shm_committed -= btoc(size);
192 	shm_nused--;
193 	shmseg->shm_perm.mode = SHMSEG_FREE;
194 }
195 
196 static int
197 shm_delete_mapping(struct vmspace *vm, struct shmmap_state *shmmap_s)
198 {
199 	struct shmid_ds *shmseg;
200 	int segnum, result;
201 	size_t size;
202 
203 	segnum = IPCID_TO_IX(shmmap_s->shmid);
204 	shmseg = &shmsegs[segnum];
205 	size = round_page(shmseg->shm_segsz);
206 	result = vm_map_remove(&vm->vm_map, shmmap_s->va, shmmap_s->va + size);
207 	if (result != KERN_SUCCESS)
208 		return EINVAL;
209 	shmmap_s->shmid = -1;
210 	shmseg->shm_dtime = time_second;
211 	if ((--shmseg->shm_nattch <= 0) &&
212 	    (shmseg->shm_perm.mode & SHMSEG_REMOVED)) {
213 		shm_deallocate_segment(shmseg);
214 		shm_last_free = segnum;
215 	}
216 	return 0;
217 }
218 
219 /*
220  * MPALMOSTSAFE
221  */
222 int
223 sys_shmdt(struct shmdt_args *uap)
224 {
225 	struct thread *td = curthread;
226 	struct proc *p = td->td_proc;
227 	struct shmmap_state *shmmap_s;
228 	long i;
229 	int error;
230 
231 	if (!jail_sysvipc_allowed && td->td_ucred->cr_prison != NULL)
232 		return (ENOSYS);
233 
234 	lwkt_gettoken(&shm_token);
235 	shmmap_s = (struct shmmap_state *)p->p_vmspace->vm_shm;
236 	if (shmmap_s == NULL) {
237 		error = EINVAL;
238 		goto done;
239 	}
240 	for (i = 0; i < shminfo.shmseg; i++, shmmap_s++) {
241 		if (shmmap_s->shmid != -1 &&
242 		    shmmap_s->va == (vm_offset_t)uap->shmaddr)
243 			break;
244 	}
245 	if (i == shminfo.shmseg)
246 		error = EINVAL;
247 	else
248 		error = shm_delete_mapping(p->p_vmspace, shmmap_s);
249 done:
250 	lwkt_reltoken(&shm_token);
251 
252 	return (error);
253 }
254 
255 /*
256  * MPALMOSTSAFE
257  */
258 int
259 sys_shmat(struct shmat_args *uap)
260 {
261 	struct thread *td = curthread;
262 	struct proc *p = td->td_proc;
263 	int error, flags;
264 	long i;
265 	struct shmid_ds *shmseg;
266 	struct shmmap_state *shmmap_s = NULL;
267 	struct shm_handle *shm_handle;
268 	vm_offset_t attach_va;
269 	vm_prot_t prot;
270 	vm_size_t size;
271 	vm_size_t align;
272 	int rv;
273 
274 	if (!jail_sysvipc_allowed && td->td_ucred->cr_prison != NULL)
275 		return (ENOSYS);
276 
277 	lwkt_gettoken(&shm_token);
278 again:
279 	shmmap_s = (struct shmmap_state *)p->p_vmspace->vm_shm;
280 	if (shmmap_s == NULL) {
281 		size = shminfo.shmseg * sizeof(struct shmmap_state);
282 		shmmap_s = kmalloc(size, M_SHM, M_WAITOK);
283 		for (i = 0; i < shminfo.shmseg; i++)
284 			shmmap_s[i].shmid = -1;
285 		if (p->p_vmspace->vm_shm != NULL) {
286 			kfree(shmmap_s, M_SHM);
287 			goto again;
288 		}
289 		p->p_vmspace->vm_shm = (caddr_t)shmmap_s;
290 	}
291 	shmseg = shm_find_segment_by_shmid(uap->shmid);
292 	if (shmseg == NULL) {
293 		error = EINVAL;
294 		goto done;
295 	}
296 	error = ipcperm(p, &shmseg->shm_perm,
297 			(uap->shmflg & SHM_RDONLY) ? IPC_R : IPC_R|IPC_W);
298 	if (error)
299 		goto done;
300 	for (i = 0; i < shminfo.shmseg; i++) {
301 		if (shmmap_s->shmid == -1)
302 			break;
303 		shmmap_s++;
304 	}
305 	if (i >= shminfo.shmseg) {
306 		error = EMFILE;
307 		goto done;
308 	}
309 	size = round_page(shmseg->shm_segsz);
310 #ifdef VM_PROT_READ_IS_EXEC
311 	prot = VM_PROT_READ | VM_PROT_EXECUTE;
312 #else
313 	prot = VM_PROT_READ;
314 #endif
315 	if ((uap->shmflg & SHM_RDONLY) == 0)
316 		prot |= VM_PROT_WRITE;
317 	flags = MAP_ANON | MAP_SHARED;
318 	if (uap->shmaddr) {
319 		flags |= MAP_FIXED;
320 		if (uap->shmflg & SHM_RND) {
321 			attach_va = (vm_offset_t)uap->shmaddr & ~(SHMLBA-1);
322 		} else if (((vm_offset_t)uap->shmaddr & (SHMLBA-1)) == 0) {
323 			attach_va = (vm_offset_t)uap->shmaddr;
324 		} else {
325 			error = EINVAL;
326 			goto done;
327 		}
328 	} else {
329 		/*
330 		 * This is just a hint to vm_map_find() about where to put it.
331 		 */
332 		attach_va = round_page((vm_offset_t)p->p_vmspace->vm_taddr +
333 				       maxtsiz + maxdsiz);
334 	}
335 
336 	/*
337 	 * Handle alignment.  For large memory maps it is possible
338 	 * that the MMU can optimize the page table so align anything
339 	 * that is a multiple of SEG_SIZE to SEG_SIZE.
340 	 */
341 	if ((flags & MAP_FIXED) == 0 && (size & SEG_MASK) == 0)
342 		align = SEG_SIZE;
343 	else
344 		align = PAGE_SIZE;
345 
346 	shm_handle = shmseg->shm_internal;
347 	vm_object_hold(shm_handle->shm_object);
348 	vm_object_reference_locked(shm_handle->shm_object);
349 	rv = vm_map_find(&p->p_vmspace->vm_map,
350 			 shm_handle->shm_object, NULL,
351 			 0, &attach_va, size,
352 			 align,
353 			 ((flags & MAP_FIXED) ? 0 : 1),
354 			 VM_MAPTYPE_NORMAL, VM_SUBSYS_SHMEM,
355 			 prot, prot, 0);
356 	vm_object_drop(shm_handle->shm_object);
357 	if (rv != KERN_SUCCESS) {
358                 vm_object_deallocate(shm_handle->shm_object);
359 		error = ENOMEM;
360 		goto done;
361 	}
362 	vm_map_inherit(&p->p_vmspace->vm_map,
363 		       attach_va, attach_va + size, VM_INHERIT_SHARE);
364 
365 	KKASSERT(shmmap_s->shmid == -1);
366 	shmmap_s->va = attach_va;
367 	shmmap_s->shmid = uap->shmid;
368 	shmseg->shm_lpid = p->p_pid;
369 	shmseg->shm_atime = time_second;
370 	shmseg->shm_nattch++;
371 	uap->sysmsg_resultp = (void *)attach_va;
372 	error = 0;
373 done:
374 	lwkt_reltoken(&shm_token);
375 
376 	return error;
377 }
378 
379 /*
380  * MPALMOSTSAFE
381  */
382 int
383 sys_shmctl(struct shmctl_args *uap)
384 {
385 	struct thread *td = curthread;
386 	struct proc *p = td->td_proc;
387 	int error;
388 	struct shmid_ds inbuf;
389 	struct shmid_ds *shmseg;
390 
391 	if (!jail_sysvipc_allowed && td->td_ucred->cr_prison != NULL)
392 		return (ENOSYS);
393 
394 	lwkt_gettoken(&shm_token);
395 	shmseg = shm_find_segment_by_shmid(uap->shmid);
396 	if (shmseg == NULL) {
397 		error = EINVAL;
398 		goto done;
399 	}
400 
401 	switch (uap->cmd) {
402 	case IPC_STAT:
403 		error = ipcperm(p, &shmseg->shm_perm, IPC_R);
404 		if (error == 0)
405 			error = copyout(shmseg, uap->buf, sizeof(inbuf));
406 		break;
407 	case IPC_SET:
408 		error = ipcperm(p, &shmseg->shm_perm, IPC_M);
409 		if (error == 0)
410 			error = copyin(uap->buf, &inbuf, sizeof(inbuf));
411 		if (error == 0) {
412 			shmseg->shm_perm.uid = inbuf.shm_perm.uid;
413 			shmseg->shm_perm.gid = inbuf.shm_perm.gid;
414 			shmseg->shm_perm.mode =
415 			    (shmseg->shm_perm.mode & ~ACCESSPERMS) |
416 			    (inbuf.shm_perm.mode & ACCESSPERMS);
417 			shmseg->shm_ctime = time_second;
418 		}
419 		break;
420 	case IPC_RMID:
421 		error = ipcperm(p, &shmseg->shm_perm, IPC_M);
422 		if (error == 0) {
423 			shmseg->shm_perm.key = IPC_PRIVATE;
424 			shmseg->shm_perm.mode |= SHMSEG_REMOVED;
425 			if (shmseg->shm_nattch <= 0) {
426 				shm_deallocate_segment(shmseg);
427 				shm_last_free = IPCID_TO_IX(uap->shmid);
428 			}
429 		}
430 		break;
431 #if 0
432 	case SHM_LOCK:
433 	case SHM_UNLOCK:
434 #endif
435 	default:
436 		error = EINVAL;
437 		break;
438 	}
439 done:
440 	lwkt_reltoken(&shm_token);
441 
442 	return error;
443 }
444 
445 static int
446 shmget_existing(struct proc *p, struct shmget_args *uap, int mode, int segnum)
447 {
448 	struct shmid_ds *shmseg;
449 	int error;
450 
451 	shmseg = &shmsegs[segnum];
452 	if (shmseg->shm_perm.mode & SHMSEG_REMOVED) {
453 		/*
454 		 * This segment is in the process of being allocated.  Wait
455 		 * until it's done, and look the key up again (in case the
456 		 * allocation failed or it was freed).
457 		 */
458 		shmseg->shm_perm.mode |= SHMSEG_WANTED;
459 		error = tsleep((caddr_t)shmseg, PCATCH, "shmget", 0);
460 		if (error)
461 			return error;
462 		return EAGAIN;
463 	}
464 	if ((uap->shmflg & (IPC_CREAT | IPC_EXCL)) == (IPC_CREAT | IPC_EXCL))
465 		return EEXIST;
466 	error = ipcperm(p, &shmseg->shm_perm, mode);
467 	if (error)
468 		return error;
469 	if (uap->size && uap->size > shmseg->shm_segsz)
470 		return EINVAL;
471 	uap->sysmsg_result = IXSEQ_TO_IPCID(segnum, shmseg->shm_perm);
472 	return 0;
473 }
474 
475 static int
476 shmget_allocate_segment(struct proc *p, struct shmget_args *uap, int mode)
477 {
478 	int i, segnum, shmid;
479 	size_t size;
480 	struct ucred *cred = p->p_ucred;
481 	struct shmid_ds *shmseg;
482 	struct shm_handle *shm_handle;
483 
484 	if (uap->size < shminfo.shmmin || uap->size > shminfo.shmmax)
485 		return EINVAL;
486 	if (shm_nused >= shminfo.shmmni) /* any shmids left? */
487 		return ENOSPC;
488 	size = round_page(uap->size);
489 	if (shm_committed + btoc(size) > shminfo.shmall)
490 		return ENOMEM;
491 	if (shm_last_free < 0) {
492 		shmrealloc();	/* maybe expand the shmsegs[] array */
493 		for (i = 0; i < shmalloced; i++) {
494 			if (shmsegs[i].shm_perm.mode & SHMSEG_FREE)
495 				break;
496 		}
497 		if (i == shmalloced)
498 			return ENOSPC;
499 		segnum = i;
500 	} else  {
501 		segnum = shm_last_free;
502 		shm_last_free = -1;
503 	}
504 	shmseg = &shmsegs[segnum];
505 	/*
506 	 * In case we sleep in malloc(), mark the segment present but deleted
507 	 * so that noone else tries to create the same key.
508 	 */
509 	shmseg->shm_perm.mode = SHMSEG_ALLOCATED | SHMSEG_REMOVED;
510 	shmseg->shm_perm.key = uap->key;
511 	shmseg->shm_perm.seq = (shmseg->shm_perm.seq + 1) & 0x7fff;
512 	shm_handle = kmalloc(sizeof(struct shm_handle), M_SHM, M_WAITOK);
513 	shmid = IXSEQ_TO_IPCID(segnum, shmseg->shm_perm);
514 
515 	/*
516 	 * We make sure that we have allocated a pager before we need
517 	 * to.
518 	 */
519 	if (shm_use_phys) {
520 		shm_handle->shm_object =
521 		   phys_pager_alloc(NULL, size, VM_PROT_DEFAULT, 0);
522 	} else {
523 		shm_handle->shm_object =
524 		   swap_pager_alloc(NULL, size, VM_PROT_DEFAULT, 0);
525 	}
526 	vm_object_clear_flag(shm_handle->shm_object, OBJ_ONEMAPPING);
527 	vm_object_set_flag(shm_handle->shm_object, OBJ_NOSPLIT);
528 
529 	shmseg->shm_internal = shm_handle;
530 	shmseg->shm_perm.cuid = shmseg->shm_perm.uid = cred->cr_uid;
531 	shmseg->shm_perm.cgid = shmseg->shm_perm.gid = cred->cr_gid;
532 	shmseg->shm_perm.mode = (shmseg->shm_perm.mode & SHMSEG_WANTED) |
533 	    (mode & ACCESSPERMS) | SHMSEG_ALLOCATED;
534 	shmseg->shm_segsz = uap->size;
535 	shmseg->shm_cpid = p->p_pid;
536 	shmseg->shm_lpid = shmseg->shm_nattch = 0;
537 	shmseg->shm_atime = shmseg->shm_dtime = 0;
538 	shmseg->shm_ctime = time_second;
539 	shm_committed += btoc(size);
540 	shm_nused++;
541 
542 	/*
543 	 * If a physical mapping is desired and we have a ton of free pages
544 	 * we pre-allocate the pages here in order to avoid on-the-fly
545 	 * allocation later.  This has a big effect on database warm-up
546 	 * times since DFly supports concurrent page faults coming from the
547 	 * same VM object for pages which already exist.
548 	 *
549 	 * This can hang the kernel for a while so only do it if shm_use_phys
550 	 * is set to 2 or higher.
551 	 */
552 	if (shm_use_phys > 1) {
553 		vm_pindex_t pi, pmax;
554 		vm_page_t m;
555 
556 		pmax = round_page(shmseg->shm_segsz) >> PAGE_SHIFT;
557 		vm_object_hold(shm_handle->shm_object);
558 		if (pmax > vmstats.v_free_count)
559 			pmax = vmstats.v_free_count;
560 		for (pi = 0; pi < pmax; ++pi) {
561 			m = vm_page_grab(shm_handle->shm_object, pi,
562 					 VM_ALLOC_SYSTEM | VM_ALLOC_NULL_OK |
563 					 VM_ALLOC_ZERO);
564 			if (m == NULL)
565 				break;
566 			vm_pager_get_page(shm_handle->shm_object, &m, 1);
567 			vm_page_activate(m);
568 			vm_page_wakeup(m);
569 			lwkt_yield();
570 		}
571 		vm_object_drop(shm_handle->shm_object);
572 	}
573 
574 	if (shmseg->shm_perm.mode & SHMSEG_WANTED) {
575 		/*
576 		 * Somebody else wanted this key while we were asleep.  Wake
577 		 * them up now.
578 		 */
579 		shmseg->shm_perm.mode &= ~SHMSEG_WANTED;
580 		wakeup((caddr_t)shmseg);
581 	}
582 	uap->sysmsg_result = shmid;
583 	return 0;
584 }
585 
586 /*
587  * MPALMOSTSAFE
588  */
589 int
590 sys_shmget(struct shmget_args *uap)
591 {
592 	struct thread *td = curthread;
593 	struct proc *p = td->td_proc;
594 	int segnum, mode, error;
595 
596 	if (!jail_sysvipc_allowed && td->td_ucred->cr_prison != NULL)
597 		return (ENOSYS);
598 
599 	mode = uap->shmflg & ACCESSPERMS;
600 
601 	lwkt_gettoken(&shm_token);
602 
603 	if (uap->key != IPC_PRIVATE) {
604 	again:
605 		segnum = shm_find_segment_by_key(uap->key);
606 		if (segnum >= 0) {
607 			error = shmget_existing(p, uap, mode, segnum);
608 			if (error == EAGAIN)
609 				goto again;
610 			goto done;
611 		}
612 		if ((uap->shmflg & IPC_CREAT) == 0) {
613 			error = ENOENT;
614 			goto done;
615 		}
616 	}
617 	error = shmget_allocate_segment(p, uap, mode);
618 done:
619 	lwkt_reltoken(&shm_token);
620 
621 	return (error);
622 }
623 
624 void
625 shmfork(struct proc *p1, struct proc *p2)
626 {
627 	struct shmmap_state *shmmap_s;
628 	size_t size;
629 	int i;
630 
631 	lwkt_gettoken(&shm_token);
632 	size = shminfo.shmseg * sizeof(struct shmmap_state);
633 	shmmap_s = kmalloc(size, M_SHM, M_WAITOK);
634 	bcopy((caddr_t)p1->p_vmspace->vm_shm, (caddr_t)shmmap_s, size);
635 	p2->p_vmspace->vm_shm = (caddr_t)shmmap_s;
636 	for (i = 0; i < shminfo.shmseg; i++, shmmap_s++) {
637 		if (shmmap_s->shmid != -1)
638 			shmsegs[IPCID_TO_IX(shmmap_s->shmid)].shm_nattch++;
639 	}
640 	lwkt_reltoken(&shm_token);
641 }
642 
643 void
644 shmexit(struct vmspace *vm)
645 {
646 	struct shmmap_state *base, *shm;
647 	int i;
648 
649 	if ((base = (struct shmmap_state *)vm->vm_shm) != NULL) {
650 		vm->vm_shm = NULL;
651 		lwkt_gettoken(&shm_token);
652 		for (i = 0, shm = base; i < shminfo.shmseg; i++, shm++) {
653 			if (shm->shmid != -1)
654 				shm_delete_mapping(vm, shm);
655 		}
656 		kfree(base, M_SHM);
657 		lwkt_reltoken(&shm_token);
658 	}
659 }
660 
661 static void
662 shmrealloc(void)
663 {
664 	int i;
665 	struct shmid_ds *newsegs;
666 
667 	if (shmalloced >= shminfo.shmmni)
668 		return;
669 
670 	newsegs = kmalloc(shminfo.shmmni * sizeof(*newsegs), M_SHM, M_WAITOK);
671 	for (i = 0; i < shmalloced; i++)
672 		bcopy(&shmsegs[i], &newsegs[i], sizeof(newsegs[0]));
673 	for (; i < shminfo.shmmni; i++) {
674 		shmsegs[i].shm_perm.mode = SHMSEG_FREE;
675 		shmsegs[i].shm_perm.seq = 0;
676 	}
677 	kfree(shmsegs, M_SHM);
678 	shmsegs = newsegs;
679 	shmalloced = shminfo.shmmni;
680 }
681 
682 static void
683 shminit(void *dummy)
684 {
685 	int i;
686 
687 	/*
688 	 * If not overridden by a tunable set the maximum shm to
689 	 * 2/3 of main memory.
690 	 */
691 	if (shminfo.shmall == 0)
692 		shminfo.shmall = (size_t)vmstats.v_page_count * 2 / 3;
693 
694 	shminfo.shmmax = shminfo.shmall * PAGE_SIZE;
695 	shmalloced = shminfo.shmmni;
696 	shmsegs = kmalloc(shmalloced * sizeof(shmsegs[0]), M_SHM, M_WAITOK);
697 	for (i = 0; i < shmalloced; i++) {
698 		shmsegs[i].shm_perm.mode = SHMSEG_FREE;
699 		shmsegs[i].shm_perm.seq = 0;
700 	}
701 	shm_last_free = 0;
702 	shm_nused = 0;
703 	shm_committed = 0;
704 }
705 SYSINIT(sysv_shm, SI_SUB_SYSV_SHM, SI_ORDER_FIRST, shminit, NULL);
706