1 /*-
2 * SPDX-License-Identifier: (BSD-3-Clause AND MIT-CMU)
3 *
4 * Copyright (c) 1991, 1993
5 * The Regents of the University of California. All rights reserved.
6 *
7 * This code is derived from software contributed to Berkeley by
8 * The Mach Operating System project at Carnegie-Mellon University.
9 *
10 * Redistribution and use in source and binary forms, with or without
11 * modification, are permitted provided that the following conditions
12 * are met:
13 * 1. Redistributions of source code must retain the above copyright
14 * notice, this list of conditions and the following disclaimer.
15 * 2. Redistributions in binary form must reproduce the above copyright
16 * notice, this list of conditions and the following disclaimer in the
17 * documentation and/or other materials provided with the distribution.
18 * 3. Neither the name of the University nor the names of its contributors
19 * may be used to endorse or promote products derived from this software
20 * without specific prior written permission.
21 *
22 * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
23 * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
24 * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
25 * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
26 * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
27 * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
28 * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
29 * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
30 * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
31 * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
32 * SUCH DAMAGE.
33 *
34 *
35 * Copyright (c) 1987, 1990 Carnegie-Mellon University.
36 * All rights reserved.
37 *
38 * Authors: Avadis Tevanian, Jr., Michael Wayne Young
39 *
40 * Permission to use, copy, modify and distribute this software and
41 * its documentation is hereby granted, provided that both the copyright
42 * notice and this permission notice appear in all copies of the
43 * software, derivative works or modified versions, and any portions
44 * thereof, and that both notices appear in supporting documentation.
45 *
46 * CARNEGIE MELLON ALLOWS FREE USE OF THIS SOFTWARE IN ITS "AS IS"
47 * CONDITION. CARNEGIE MELLON DISCLAIMS ANY LIABILITY OF ANY KIND
48 * FOR ANY DAMAGES WHATSOEVER RESULTING FROM THE USE OF THIS SOFTWARE.
49 *
50 * Carnegie Mellon requests users of this software to return to
51 *
52 * Software Distribution Coordinator or Software.Distribution@CS.CMU.EDU
53 * School of Computer Science
54 * Carnegie Mellon University
55 * Pittsburgh PA 15213-3890
56 *
57 * any improvements or extensions that they make and grant Carnegie the
58 * rights to redistribute these changes.
59 */
60
61 /*
62 * Virtual memory object module.
63 */
64
65 #include "opt_vm.h"
66
67 #include <sys/systm.h>
68 #include <sys/blockcount.h>
69 #include <sys/conf.h>
70 #include <sys/cpuset.h>
71 #include <sys/ipc.h>
72 #include <sys/jail.h>
73 #include <sys/limits.h>
74 #include <sys/lock.h>
75 #include <sys/mman.h>
76 #include <sys/mount.h>
77 #include <sys/kernel.h>
78 #include <sys/mutex.h>
79 #include <sys/pctrie.h>
80 #include <sys/proc.h>
81 #include <sys/refcount.h>
82 #include <sys/shm.h>
83 #include <sys/sx.h>
84 #include <sys/sysctl.h>
85 #include <sys/resourcevar.h>
86 #include <sys/refcount.h>
87 #include <sys/rwlock.h>
88 #include <sys/user.h>
89 #include <sys/vnode.h>
90 #include <sys/vmmeter.h>
91
92 #include <vm/vm.h>
93 #include <vm/vm_param.h>
94 #include <vm/pmap.h>
95 #include <vm/vm_map.h>
96 #include <vm/vm_object.h>
97 #include <vm/vm_page.h>
98 #include <vm/vm_pageout.h>
99 #include <vm/vm_pager.h>
100 #include <vm/vm_phys.h>
101 #include <vm/vm_pagequeue.h>
102 #include <vm/swap_pager.h>
103 #include <vm/vm_kern.h>
104 #include <vm/vm_extern.h>
105 #include <vm/vm_radix.h>
106 #include <vm/vm_reserv.h>
107 #include <vm/uma.h>
108
109 static int old_msync;
110 SYSCTL_INT(_vm, OID_AUTO, old_msync, CTLFLAG_RW, &old_msync, 0,
111 "Use old (insecure) msync behavior");
112
113 static int vm_object_page_collect_flush(struct pctrie_iter *pages,
114 vm_page_t p, int pagerflags, int flags, boolean_t *allclean,
115 boolean_t *eio);
116 static boolean_t vm_object_page_remove_write(vm_page_t p, int flags,
117 boolean_t *allclean);
118 static void vm_object_backing_remove(vm_object_t object);
119
120 /*
121 * Virtual memory objects maintain the actual data
122 * associated with allocated virtual memory. A given
123 * page of memory exists within exactly one object.
124 *
125 * An object is only deallocated when all "references"
126 * are given up. Only one "reference" to a given
127 * region of an object should be writeable.
128 *
129 * Associated with each object is a list of all resident
130 * memory pages belonging to that object; this list is
131 * maintained by the "vm_page" module, and locked by the object's
132 * lock.
133 *
134 * Each object also records a "pager" routine which is
135 * used to retrieve (and store) pages to the proper backing
136 * storage. In addition, objects may be backed by other
137 * objects from which they were virtual-copied.
138 *
139 * The only items within the object structure which are
140 * modified after time of creation are:
141 * reference count locked by object's lock
142 * pager routine locked by object's lock
143 *
144 */
145
146 struct object_q vm_object_list;
147 struct mtx vm_object_list_mtx; /* lock for object list and count */
148
149 struct vm_object kernel_object_store;
150
151 static SYSCTL_NODE(_vm_stats, OID_AUTO, object, CTLFLAG_RD | CTLFLAG_MPSAFE, 0,
152 "VM object stats");
153
154 static COUNTER_U64_DEFINE_EARLY(object_collapses);
155 SYSCTL_COUNTER_U64(_vm_stats_object, OID_AUTO, collapses, CTLFLAG_RD,
156 &object_collapses,
157 "VM object collapses");
158
159 static COUNTER_U64_DEFINE_EARLY(object_bypasses);
160 SYSCTL_COUNTER_U64(_vm_stats_object, OID_AUTO, bypasses, CTLFLAG_RD,
161 &object_bypasses,
162 "VM object bypasses");
163
164 static COUNTER_U64_DEFINE_EARLY(object_collapse_waits);
165 SYSCTL_COUNTER_U64(_vm_stats_object, OID_AUTO, collapse_waits, CTLFLAG_RD,
166 &object_collapse_waits,
167 "Number of sleeps for collapse");
168
169 static uma_zone_t obj_zone;
170
171 static int vm_object_zinit(void *mem, int size, int flags);
172
173 #ifdef INVARIANTS
174 static void vm_object_zdtor(void *mem, int size, void *arg);
175
176 static void
vm_object_zdtor(void * mem,int size,void * arg)177 vm_object_zdtor(void *mem, int size, void *arg)
178 {
179 vm_object_t object;
180
181 object = (vm_object_t)mem;
182 KASSERT(object->ref_count == 0,
183 ("object %p ref_count = %d", object, object->ref_count));
184 KASSERT(TAILQ_EMPTY(&object->memq),
185 ("object %p has resident pages in its memq", object));
186 KASSERT(vm_radix_is_empty(&object->rtree),
187 ("object %p has resident pages in its trie", object));
188 #if VM_NRESERVLEVEL > 0
189 KASSERT(LIST_EMPTY(&object->rvq),
190 ("object %p has reservations",
191 object));
192 #endif
193 KASSERT(!vm_object_busied(object),
194 ("object %p busy = %d", object, blockcount_read(&object->busy)));
195 KASSERT(object->resident_page_count == 0,
196 ("object %p resident_page_count = %d",
197 object, object->resident_page_count));
198 KASSERT(atomic_load_int(&object->shadow_count) == 0,
199 ("object %p shadow_count = %d",
200 object, atomic_load_int(&object->shadow_count)));
201 KASSERT(object->type == OBJT_DEAD,
202 ("object %p has non-dead type %d",
203 object, object->type));
204 KASSERT(object->charge == 0 && object->cred == NULL,
205 ("object %p has non-zero charge %ju (%p)",
206 object, (uintmax_t)object->charge, object->cred));
207 }
208 #endif
209
210 static int
vm_object_zinit(void * mem,int size,int flags)211 vm_object_zinit(void *mem, int size, int flags)
212 {
213 vm_object_t object;
214
215 object = (vm_object_t)mem;
216 rw_init_flags(&object->lock, "vmobject", RW_DUPOK | RW_NEW);
217
218 /* These are true for any object that has been freed */
219 object->type = OBJT_DEAD;
220 vm_radix_init(&object->rtree);
221 refcount_init(&object->ref_count, 0);
222 blockcount_init(&object->paging_in_progress);
223 blockcount_init(&object->busy);
224 object->resident_page_count = 0;
225 atomic_store_int(&object->shadow_count, 0);
226 object->flags = OBJ_DEAD;
227
228 mtx_lock(&vm_object_list_mtx);
229 TAILQ_INSERT_TAIL(&vm_object_list, object, object_list);
230 mtx_unlock(&vm_object_list_mtx);
231 return (0);
232 }
233
234 static void
_vm_object_allocate(objtype_t type,vm_pindex_t size,u_short flags,vm_object_t object,void * handle)235 _vm_object_allocate(objtype_t type, vm_pindex_t size, u_short flags,
236 vm_object_t object, void *handle)
237 {
238
239 TAILQ_INIT(&object->memq);
240 LIST_INIT(&object->shadow_head);
241
242 object->type = type;
243 object->flags = flags;
244 if ((flags & OBJ_SWAP) != 0) {
245 pctrie_init(&object->un_pager.swp.swp_blks);
246 object->un_pager.swp.writemappings = 0;
247 }
248
249 /*
250 * Ensure that swap_pager_swapoff() iteration over object_list
251 * sees up to date type and pctrie head if it observed
252 * non-dead object.
253 */
254 atomic_thread_fence_rel();
255
256 object->pg_color = 0;
257 object->size = size;
258 object->domain.dr_policy = NULL;
259 object->generation = 1;
260 object->cleangeneration = 1;
261 refcount_init(&object->ref_count, 1);
262 object->memattr = VM_MEMATTR_DEFAULT;
263 object->cred = NULL;
264 object->charge = 0;
265 object->handle = handle;
266 object->backing_object = NULL;
267 object->backing_object_offset = (vm_ooffset_t) 0;
268 #if VM_NRESERVLEVEL > 0
269 LIST_INIT(&object->rvq);
270 #endif
271 umtx_shm_object_init(object);
272 }
273
274 /*
275 * vm_object_init:
276 *
277 * Initialize the VM objects module.
278 */
279 void
vm_object_init(void)280 vm_object_init(void)
281 {
282 TAILQ_INIT(&vm_object_list);
283 mtx_init(&vm_object_list_mtx, "vm object_list", NULL, MTX_DEF);
284
285 rw_init(&kernel_object->lock, "kernel vm object");
286 vm_radix_init(&kernel_object->rtree);
287 _vm_object_allocate(OBJT_PHYS, atop(VM_MAX_KERNEL_ADDRESS -
288 VM_MIN_KERNEL_ADDRESS), OBJ_UNMANAGED, kernel_object, NULL);
289 #if VM_NRESERVLEVEL > 0
290 kernel_object->flags |= OBJ_COLORED;
291 kernel_object->pg_color = (u_short)atop(VM_MIN_KERNEL_ADDRESS);
292 #endif
293 kernel_object->un_pager.phys.ops = &default_phys_pg_ops;
294
295 /*
296 * The lock portion of struct vm_object must be type stable due
297 * to vm_pageout_fallback_object_lock locking a vm object
298 * without holding any references to it.
299 *
300 * paging_in_progress is valid always. Lockless references to
301 * the objects may acquire pip and then check OBJ_DEAD.
302 */
303 obj_zone = uma_zcreate("VM OBJECT", sizeof (struct vm_object), NULL,
304 #ifdef INVARIANTS
305 vm_object_zdtor,
306 #else
307 NULL,
308 #endif
309 vm_object_zinit, NULL, UMA_ALIGN_PTR, UMA_ZONE_NOFREE);
310
311 vm_radix_zinit();
312 }
313
314 void
vm_object_clear_flag(vm_object_t object,u_short bits)315 vm_object_clear_flag(vm_object_t object, u_short bits)
316 {
317
318 VM_OBJECT_ASSERT_WLOCKED(object);
319 object->flags &= ~bits;
320 }
321
322 /*
323 * Sets the default memory attribute for the specified object. Pages
324 * that are allocated to this object are by default assigned this memory
325 * attribute.
326 *
327 * Presently, this function must be called before any pages are allocated
328 * to the object. In the future, this requirement may be relaxed for
329 * "default" and "swap" objects.
330 */
331 int
vm_object_set_memattr(vm_object_t object,vm_memattr_t memattr)332 vm_object_set_memattr(vm_object_t object, vm_memattr_t memattr)
333 {
334
335 VM_OBJECT_ASSERT_WLOCKED(object);
336
337 if (object->type == OBJT_DEAD)
338 return (KERN_INVALID_ARGUMENT);
339 if (!vm_radix_is_empty(&object->rtree))
340 return (KERN_FAILURE);
341
342 object->memattr = memattr;
343 return (KERN_SUCCESS);
344 }
345
346 void
vm_object_pip_add(vm_object_t object,short i)347 vm_object_pip_add(vm_object_t object, short i)
348 {
349
350 if (i > 0)
351 blockcount_acquire(&object->paging_in_progress, i);
352 }
353
354 void
vm_object_pip_wakeup(vm_object_t object)355 vm_object_pip_wakeup(vm_object_t object)
356 {
357
358 vm_object_pip_wakeupn(object, 1);
359 }
360
361 void
vm_object_pip_wakeupn(vm_object_t object,short i)362 vm_object_pip_wakeupn(vm_object_t object, short i)
363 {
364
365 if (i > 0)
366 blockcount_release(&object->paging_in_progress, i);
367 }
368
369 /*
370 * Atomically drop the object lock and wait for pip to drain. This protects
371 * from sleep/wakeup races due to identity changes. The lock is not re-acquired
372 * on return.
373 */
374 static void
vm_object_pip_sleep(vm_object_t object,const char * waitid)375 vm_object_pip_sleep(vm_object_t object, const char *waitid)
376 {
377
378 (void)blockcount_sleep(&object->paging_in_progress, &object->lock,
379 waitid, PVM | PDROP);
380 }
381
382 void
vm_object_pip_wait(vm_object_t object,const char * waitid)383 vm_object_pip_wait(vm_object_t object, const char *waitid)
384 {
385
386 VM_OBJECT_ASSERT_WLOCKED(object);
387
388 blockcount_wait(&object->paging_in_progress, &object->lock, waitid,
389 PVM);
390 }
391
392 void
vm_object_pip_wait_unlocked(vm_object_t object,const char * waitid)393 vm_object_pip_wait_unlocked(vm_object_t object, const char *waitid)
394 {
395
396 VM_OBJECT_ASSERT_UNLOCKED(object);
397
398 blockcount_wait(&object->paging_in_progress, NULL, waitid, PVM);
399 }
400
401 /*
402 * vm_object_allocate:
403 *
404 * Returns a new object with the given size.
405 */
406 vm_object_t
vm_object_allocate(objtype_t type,vm_pindex_t size)407 vm_object_allocate(objtype_t type, vm_pindex_t size)
408 {
409 vm_object_t object;
410 u_short flags;
411
412 switch (type) {
413 case OBJT_DEAD:
414 panic("vm_object_allocate: can't create OBJT_DEAD");
415 case OBJT_SWAP:
416 flags = OBJ_COLORED | OBJ_SWAP;
417 break;
418 case OBJT_DEVICE:
419 case OBJT_SG:
420 flags = OBJ_FICTITIOUS | OBJ_UNMANAGED;
421 break;
422 case OBJT_MGTDEVICE:
423 flags = OBJ_FICTITIOUS;
424 break;
425 case OBJT_PHYS:
426 flags = OBJ_UNMANAGED;
427 break;
428 case OBJT_VNODE:
429 flags = 0;
430 break;
431 default:
432 panic("vm_object_allocate: type %d is undefined or dynamic",
433 type);
434 }
435 object = (vm_object_t)uma_zalloc(obj_zone, M_WAITOK);
436 _vm_object_allocate(type, size, flags, object, NULL);
437
438 return (object);
439 }
440
441 vm_object_t
vm_object_allocate_dyn(objtype_t dyntype,vm_pindex_t size,u_short flags)442 vm_object_allocate_dyn(objtype_t dyntype, vm_pindex_t size, u_short flags)
443 {
444 vm_object_t object;
445
446 MPASS(dyntype >= OBJT_FIRST_DYN /* && dyntype < nitems(pagertab) */);
447 object = (vm_object_t)uma_zalloc(obj_zone, M_WAITOK);
448 _vm_object_allocate(dyntype, size, flags, object, NULL);
449
450 return (object);
451 }
452
453 /*
454 * vm_object_allocate_anon:
455 *
456 * Returns a new default object of the given size and marked as
457 * anonymous memory for special split/collapse handling. Color
458 * to be initialized by the caller.
459 */
460 vm_object_t
vm_object_allocate_anon(vm_pindex_t size,vm_object_t backing_object,struct ucred * cred,vm_size_t charge)461 vm_object_allocate_anon(vm_pindex_t size, vm_object_t backing_object,
462 struct ucred *cred, vm_size_t charge)
463 {
464 vm_object_t handle, object;
465
466 if (backing_object == NULL)
467 handle = NULL;
468 else if ((backing_object->flags & OBJ_ANON) != 0)
469 handle = backing_object->handle;
470 else
471 handle = backing_object;
472 object = uma_zalloc(obj_zone, M_WAITOK);
473 _vm_object_allocate(OBJT_SWAP, size,
474 OBJ_ANON | OBJ_ONEMAPPING | OBJ_SWAP, object, handle);
475 object->cred = cred;
476 object->charge = cred != NULL ? charge : 0;
477 return (object);
478 }
479
480 static void
vm_object_reference_vnode(vm_object_t object)481 vm_object_reference_vnode(vm_object_t object)
482 {
483 u_int old;
484
485 /*
486 * vnode objects need the lock for the first reference
487 * to serialize with vnode_object_deallocate().
488 */
489 if (!refcount_acquire_if_gt(&object->ref_count, 0)) {
490 VM_OBJECT_RLOCK(object);
491 old = refcount_acquire(&object->ref_count);
492 if (object->type == OBJT_VNODE && old == 0)
493 vref(object->handle);
494 VM_OBJECT_RUNLOCK(object);
495 }
496 }
497
498 /*
499 * vm_object_reference:
500 *
501 * Acquires a reference to the given object.
502 */
503 void
vm_object_reference(vm_object_t object)504 vm_object_reference(vm_object_t object)
505 {
506
507 if (object == NULL)
508 return;
509
510 if (object->type == OBJT_VNODE)
511 vm_object_reference_vnode(object);
512 else
513 refcount_acquire(&object->ref_count);
514 KASSERT((object->flags & OBJ_DEAD) == 0,
515 ("vm_object_reference: Referenced dead object."));
516 }
517
518 /*
519 * vm_object_reference_locked:
520 *
521 * Gets another reference to the given object.
522 *
523 * The object must be locked.
524 */
525 void
vm_object_reference_locked(vm_object_t object)526 vm_object_reference_locked(vm_object_t object)
527 {
528 u_int old;
529
530 VM_OBJECT_ASSERT_LOCKED(object);
531 old = refcount_acquire(&object->ref_count);
532 if (object->type == OBJT_VNODE && old == 0)
533 vref(object->handle);
534 KASSERT((object->flags & OBJ_DEAD) == 0,
535 ("vm_object_reference: Referenced dead object."));
536 }
537
538 /*
539 * Handle deallocating an object of type OBJT_VNODE.
540 */
541 static void
vm_object_deallocate_vnode(vm_object_t object)542 vm_object_deallocate_vnode(vm_object_t object)
543 {
544 struct vnode *vp = (struct vnode *) object->handle;
545 bool last;
546
547 KASSERT(object->type == OBJT_VNODE,
548 ("vm_object_deallocate_vnode: not a vnode object"));
549 KASSERT(vp != NULL, ("vm_object_deallocate_vnode: missing vp"));
550
551 /* Object lock to protect handle lookup. */
552 last = refcount_release(&object->ref_count);
553 VM_OBJECT_RUNLOCK(object);
554
555 if (!last)
556 return;
557
558 if (!umtx_shm_vnobj_persistent)
559 umtx_shm_object_terminated(object);
560
561 /* vrele may need the vnode lock. */
562 vrele(vp);
563 }
564
565 /*
566 * We dropped a reference on an object and discovered that it had a
567 * single remaining shadow. This is a sibling of the reference we
568 * dropped. Attempt to collapse the sibling and backing object.
569 */
570 static vm_object_t
vm_object_deallocate_anon(vm_object_t backing_object)571 vm_object_deallocate_anon(vm_object_t backing_object)
572 {
573 vm_object_t object;
574
575 /* Fetch the final shadow. */
576 object = LIST_FIRST(&backing_object->shadow_head);
577 KASSERT(object != NULL &&
578 atomic_load_int(&backing_object->shadow_count) == 1,
579 ("vm_object_anon_deallocate: ref_count: %d, shadow_count: %d",
580 backing_object->ref_count,
581 atomic_load_int(&backing_object->shadow_count)));
582 KASSERT((object->flags & OBJ_ANON) != 0,
583 ("invalid shadow object %p", object));
584
585 if (!VM_OBJECT_TRYWLOCK(object)) {
586 /*
587 * Prevent object from disappearing since we do not have a
588 * reference.
589 */
590 vm_object_pip_add(object, 1);
591 VM_OBJECT_WUNLOCK(backing_object);
592 VM_OBJECT_WLOCK(object);
593 vm_object_pip_wakeup(object);
594 } else
595 VM_OBJECT_WUNLOCK(backing_object);
596
597 /*
598 * Check for a collapse/terminate race with the last reference holder.
599 */
600 if ((object->flags & (OBJ_DEAD | OBJ_COLLAPSING)) != 0 ||
601 !refcount_acquire_if_not_zero(&object->ref_count)) {
602 VM_OBJECT_WUNLOCK(object);
603 return (NULL);
604 }
605 backing_object = object->backing_object;
606 if (backing_object != NULL && (backing_object->flags & OBJ_ANON) != 0)
607 vm_object_collapse(object);
608 VM_OBJECT_WUNLOCK(object);
609
610 return (object);
611 }
612
613 /*
614 * vm_object_deallocate:
615 *
616 * Release a reference to the specified object,
617 * gained either through a vm_object_allocate
618 * or a vm_object_reference call. When all references
619 * are gone, storage associated with this object
620 * may be relinquished.
621 *
622 * No object may be locked.
623 */
624 void
vm_object_deallocate(vm_object_t object)625 vm_object_deallocate(vm_object_t object)
626 {
627 vm_object_t temp;
628 bool released;
629
630 while (object != NULL) {
631 /*
632 * If the reference count goes to 0 we start calling
633 * vm_object_terminate() on the object chain. A ref count
634 * of 1 may be a special case depending on the shadow count
635 * being 0 or 1. These cases require a write lock on the
636 * object.
637 */
638 if ((object->flags & OBJ_ANON) == 0)
639 released = refcount_release_if_gt(&object->ref_count, 1);
640 else
641 released = refcount_release_if_gt(&object->ref_count, 2);
642 if (released)
643 return;
644
645 if (object->type == OBJT_VNODE) {
646 VM_OBJECT_RLOCK(object);
647 if (object->type == OBJT_VNODE) {
648 vm_object_deallocate_vnode(object);
649 return;
650 }
651 VM_OBJECT_RUNLOCK(object);
652 }
653
654 VM_OBJECT_WLOCK(object);
655 KASSERT(object->ref_count > 0,
656 ("vm_object_deallocate: object deallocated too many times: %d",
657 object->type));
658
659 /*
660 * If this is not the final reference to an anonymous
661 * object we may need to collapse the shadow chain.
662 */
663 if (!refcount_release(&object->ref_count)) {
664 if (object->ref_count > 1 ||
665 atomic_load_int(&object->shadow_count) == 0) {
666 if ((object->flags & OBJ_ANON) != 0 &&
667 object->ref_count == 1)
668 vm_object_set_flag(object,
669 OBJ_ONEMAPPING);
670 VM_OBJECT_WUNLOCK(object);
671 return;
672 }
673
674 /* Handle collapsing last ref on anonymous objects. */
675 object = vm_object_deallocate_anon(object);
676 continue;
677 }
678
679 /*
680 * Handle the final reference to an object. We restart
681 * the loop with the backing object to avoid recursion.
682 */
683 umtx_shm_object_terminated(object);
684 temp = object->backing_object;
685 if (temp != NULL) {
686 KASSERT(object->type == OBJT_SWAP,
687 ("shadowed tmpfs v_object 2 %p", object));
688 vm_object_backing_remove(object);
689 }
690
691 KASSERT((object->flags & OBJ_DEAD) == 0,
692 ("vm_object_deallocate: Terminating dead object."));
693 vm_object_set_flag(object, OBJ_DEAD);
694 vm_object_terminate(object);
695 object = temp;
696 }
697 }
698
699 void
vm_object_destroy(vm_object_t object)700 vm_object_destroy(vm_object_t object)
701 {
702 uma_zfree(obj_zone, object);
703 }
704
705 static void
vm_object_sub_shadow(vm_object_t object)706 vm_object_sub_shadow(vm_object_t object)
707 {
708 KASSERT(object->shadow_count >= 1,
709 ("object %p sub_shadow count zero", object));
710 atomic_subtract_int(&object->shadow_count, 1);
711 }
712
713 static void
vm_object_backing_remove_locked(vm_object_t object)714 vm_object_backing_remove_locked(vm_object_t object)
715 {
716 vm_object_t backing_object;
717
718 backing_object = object->backing_object;
719 VM_OBJECT_ASSERT_WLOCKED(object);
720 VM_OBJECT_ASSERT_WLOCKED(backing_object);
721
722 KASSERT((object->flags & OBJ_COLLAPSING) == 0,
723 ("vm_object_backing_remove: Removing collapsing object."));
724
725 vm_object_sub_shadow(backing_object);
726 if ((object->flags & OBJ_SHADOWLIST) != 0) {
727 LIST_REMOVE(object, shadow_list);
728 vm_object_clear_flag(object, OBJ_SHADOWLIST);
729 }
730 object->backing_object = NULL;
731 }
732
733 static void
vm_object_backing_remove(vm_object_t object)734 vm_object_backing_remove(vm_object_t object)
735 {
736 vm_object_t backing_object;
737
738 VM_OBJECT_ASSERT_WLOCKED(object);
739
740 backing_object = object->backing_object;
741 if ((object->flags & OBJ_SHADOWLIST) != 0) {
742 VM_OBJECT_WLOCK(backing_object);
743 vm_object_backing_remove_locked(object);
744 VM_OBJECT_WUNLOCK(backing_object);
745 } else {
746 object->backing_object = NULL;
747 vm_object_sub_shadow(backing_object);
748 }
749 }
750
751 static void
vm_object_backing_insert_locked(vm_object_t object,vm_object_t backing_object)752 vm_object_backing_insert_locked(vm_object_t object, vm_object_t backing_object)
753 {
754
755 VM_OBJECT_ASSERT_WLOCKED(object);
756
757 atomic_add_int(&backing_object->shadow_count, 1);
758 if ((backing_object->flags & OBJ_ANON) != 0) {
759 VM_OBJECT_ASSERT_WLOCKED(backing_object);
760 LIST_INSERT_HEAD(&backing_object->shadow_head, object,
761 shadow_list);
762 vm_object_set_flag(object, OBJ_SHADOWLIST);
763 }
764 object->backing_object = backing_object;
765 }
766
767 static void
vm_object_backing_insert(vm_object_t object,vm_object_t backing_object)768 vm_object_backing_insert(vm_object_t object, vm_object_t backing_object)
769 {
770
771 VM_OBJECT_ASSERT_WLOCKED(object);
772
773 if ((backing_object->flags & OBJ_ANON) != 0) {
774 VM_OBJECT_WLOCK(backing_object);
775 vm_object_backing_insert_locked(object, backing_object);
776 VM_OBJECT_WUNLOCK(backing_object);
777 } else {
778 object->backing_object = backing_object;
779 atomic_add_int(&backing_object->shadow_count, 1);
780 }
781 }
782
783 /*
784 * Insert an object into a backing_object's shadow list with an additional
785 * reference to the backing_object added.
786 */
787 static void
vm_object_backing_insert_ref(vm_object_t object,vm_object_t backing_object)788 vm_object_backing_insert_ref(vm_object_t object, vm_object_t backing_object)
789 {
790
791 VM_OBJECT_ASSERT_WLOCKED(object);
792
793 if ((backing_object->flags & OBJ_ANON) != 0) {
794 VM_OBJECT_WLOCK(backing_object);
795 KASSERT((backing_object->flags & OBJ_DEAD) == 0,
796 ("shadowing dead anonymous object"));
797 vm_object_reference_locked(backing_object);
798 vm_object_backing_insert_locked(object, backing_object);
799 vm_object_clear_flag(backing_object, OBJ_ONEMAPPING);
800 VM_OBJECT_WUNLOCK(backing_object);
801 } else {
802 vm_object_reference(backing_object);
803 atomic_add_int(&backing_object->shadow_count, 1);
804 object->backing_object = backing_object;
805 }
806 }
807
808 /*
809 * Transfer a backing reference from backing_object to object.
810 */
811 static void
vm_object_backing_transfer(vm_object_t object,vm_object_t backing_object)812 vm_object_backing_transfer(vm_object_t object, vm_object_t backing_object)
813 {
814 vm_object_t new_backing_object;
815
816 /*
817 * Note that the reference to backing_object->backing_object
818 * moves from within backing_object to within object.
819 */
820 vm_object_backing_remove_locked(object);
821 new_backing_object = backing_object->backing_object;
822 if (new_backing_object == NULL)
823 return;
824 if ((new_backing_object->flags & OBJ_ANON) != 0) {
825 VM_OBJECT_WLOCK(new_backing_object);
826 vm_object_backing_remove_locked(backing_object);
827 vm_object_backing_insert_locked(object, new_backing_object);
828 VM_OBJECT_WUNLOCK(new_backing_object);
829 } else {
830 /*
831 * shadow_count for new_backing_object is left
832 * unchanged, its reference provided by backing_object
833 * is replaced by object.
834 */
835 object->backing_object = new_backing_object;
836 backing_object->backing_object = NULL;
837 }
838 }
839
840 /*
841 * Wait for a concurrent collapse to settle.
842 */
843 static void
vm_object_collapse_wait(vm_object_t object)844 vm_object_collapse_wait(vm_object_t object)
845 {
846
847 VM_OBJECT_ASSERT_WLOCKED(object);
848
849 while ((object->flags & OBJ_COLLAPSING) != 0) {
850 vm_object_pip_wait(object, "vmcolwait");
851 counter_u64_add(object_collapse_waits, 1);
852 }
853 }
854
855 /*
856 * Waits for a backing object to clear a pending collapse and returns
857 * it locked if it is an ANON object.
858 */
859 static vm_object_t
vm_object_backing_collapse_wait(vm_object_t object)860 vm_object_backing_collapse_wait(vm_object_t object)
861 {
862 vm_object_t backing_object;
863
864 VM_OBJECT_ASSERT_WLOCKED(object);
865
866 for (;;) {
867 backing_object = object->backing_object;
868 if (backing_object == NULL ||
869 (backing_object->flags & OBJ_ANON) == 0)
870 return (NULL);
871 VM_OBJECT_WLOCK(backing_object);
872 if ((backing_object->flags & (OBJ_DEAD | OBJ_COLLAPSING)) == 0)
873 break;
874 VM_OBJECT_WUNLOCK(object);
875 vm_object_pip_sleep(backing_object, "vmbckwait");
876 counter_u64_add(object_collapse_waits, 1);
877 VM_OBJECT_WLOCK(object);
878 }
879 return (backing_object);
880 }
881
882 /*
883 * vm_object_terminate_single_page removes a pageable page from the object,
884 * and removes it from the paging queues and frees it, if it is not wired.
885 * It is invoked via callback from vm_object_terminate_pages.
886 */
887 static void
vm_object_terminate_single_page(vm_page_t p,void * objectv)888 vm_object_terminate_single_page(vm_page_t p, void *objectv)
889 {
890 vm_object_t object __diagused = objectv;
891
892 vm_page_assert_unbusied(p);
893 KASSERT(p->object == object &&
894 (p->ref_count & VPRC_OBJREF) != 0,
895 ("%s: page %p is inconsistent", __func__, p));
896 p->object = NULL;
897 if (vm_page_drop(p, VPRC_OBJREF) == VPRC_OBJREF) {
898 KASSERT((object->flags & OBJ_UNMANAGED) != 0 ||
899 vm_page_astate_load(p).queue != PQ_NONE,
900 ("%s: page %p does not belong to a queue", __func__, p));
901 VM_CNT_INC(v_pfree);
902 vm_page_free(p);
903 }
904 }
905
906 /*
907 * vm_object_terminate_pages removes any remaining pageable pages
908 * from the object and resets the object to an empty state.
909 */
910 static void
vm_object_terminate_pages(vm_object_t object)911 vm_object_terminate_pages(vm_object_t object)
912 {
913 VM_OBJECT_ASSERT_WLOCKED(object);
914
915 /*
916 * If the object contained any pages, then reset it to an empty state.
917 * Rather than incrementally removing each page from the object, the
918 * page and object are reset to any empty state.
919 */
920 if (object->resident_page_count == 0)
921 return;
922
923 vm_radix_reclaim_callback(&object->rtree,
924 vm_object_terminate_single_page, object);
925 TAILQ_INIT(&object->memq);
926 object->resident_page_count = 0;
927 if (object->type == OBJT_VNODE)
928 vdrop(object->handle);
929 }
930
931 /*
932 * vm_object_terminate actually destroys the specified object, freeing
933 * up all previously used resources.
934 *
935 * The object must be locked.
936 * This routine may block.
937 */
938 void
vm_object_terminate(vm_object_t object)939 vm_object_terminate(vm_object_t object)
940 {
941
942 VM_OBJECT_ASSERT_WLOCKED(object);
943 KASSERT((object->flags & OBJ_DEAD) != 0,
944 ("terminating non-dead obj %p", object));
945 KASSERT((object->flags & OBJ_COLLAPSING) == 0,
946 ("terminating collapsing obj %p", object));
947 KASSERT(object->backing_object == NULL,
948 ("terminating shadow obj %p", object));
949
950 /*
951 * Wait for the pageout daemon and other current users to be
952 * done with the object. Note that new paging_in_progress
953 * users can come after this wait, but they must check
954 * OBJ_DEAD flag set (without unlocking the object), and avoid
955 * the object being terminated.
956 */
957 vm_object_pip_wait(object, "objtrm");
958
959 KASSERT(object->ref_count == 0,
960 ("vm_object_terminate: object with references, ref_count=%d",
961 object->ref_count));
962
963 if ((object->flags & OBJ_PG_DTOR) == 0)
964 vm_object_terminate_pages(object);
965
966 #if VM_NRESERVLEVEL > 0
967 if (__predict_false(!LIST_EMPTY(&object->rvq)))
968 vm_reserv_break_all(object);
969 #endif
970
971 KASSERT(object->cred == NULL || (object->flags & OBJ_SWAP) != 0,
972 ("%s: non-swap obj %p has cred", __func__, object));
973
974 /*
975 * Let the pager know object is dead.
976 */
977 vm_pager_deallocate(object);
978 VM_OBJECT_WUNLOCK(object);
979
980 vm_object_destroy(object);
981 }
982
983 /*
984 * Make the page read-only so that we can clear the object flags. However, if
985 * this is a nosync mmap then the object is likely to stay dirty so do not
986 * mess with the page and do not clear the object flags. Returns TRUE if the
987 * page should be flushed, and FALSE otherwise.
988 */
989 static boolean_t
vm_object_page_remove_write(vm_page_t p,int flags,boolean_t * allclean)990 vm_object_page_remove_write(vm_page_t p, int flags, boolean_t *allclean)
991 {
992
993 vm_page_assert_busied(p);
994
995 /*
996 * If we have been asked to skip nosync pages and this is a
997 * nosync page, skip it. Note that the object flags were not
998 * cleared in this case so we do not have to set them.
999 */
1000 if ((flags & OBJPC_NOSYNC) != 0 && (p->a.flags & PGA_NOSYNC) != 0) {
1001 *allclean = FALSE;
1002 return (FALSE);
1003 } else {
1004 pmap_remove_write(p);
1005 return (p->dirty != 0);
1006 }
1007 }
1008
1009 /*
1010 * vm_object_page_clean
1011 *
1012 * Clean all dirty pages in the specified range of object. Leaves page
1013 * on whatever queue it is currently on. If NOSYNC is set then do not
1014 * write out pages with PGA_NOSYNC set (originally comes from MAP_NOSYNC),
1015 * leaving the object dirty.
1016 *
1017 * For swap objects backing tmpfs regular files, do not flush anything,
1018 * but remove write protection on the mapped pages to update mtime through
1019 * mmaped writes.
1020 *
1021 * When stuffing pages asynchronously, allow clustering. XXX we need a
1022 * synchronous clustering mode implementation.
1023 *
1024 * Odd semantics: if start == end, we clean everything.
1025 *
1026 * The object must be locked.
1027 *
1028 * Returns FALSE if some page from the range was not written, as
1029 * reported by the pager, and TRUE otherwise.
1030 */
1031 boolean_t
vm_object_page_clean(vm_object_t object,vm_ooffset_t start,vm_ooffset_t end,int flags)1032 vm_object_page_clean(vm_object_t object, vm_ooffset_t start, vm_ooffset_t end,
1033 int flags)
1034 {
1035 struct pctrie_iter pages;
1036 vm_page_t np, p;
1037 vm_pindex_t pi, tend, tstart;
1038 int curgeneration, n, pagerflags;
1039 boolean_t eio, res, allclean;
1040
1041 VM_OBJECT_ASSERT_WLOCKED(object);
1042
1043 if (!vm_object_mightbedirty(object) || object->resident_page_count == 0)
1044 return (TRUE);
1045
1046 pagerflags = (flags & (OBJPC_SYNC | OBJPC_INVAL)) != 0 ?
1047 VM_PAGER_PUT_SYNC : VM_PAGER_CLUSTER_OK;
1048 pagerflags |= (flags & OBJPC_INVAL) != 0 ? VM_PAGER_PUT_INVAL : 0;
1049
1050 tstart = OFF_TO_IDX(start);
1051 tend = (end == 0) ? object->size : OFF_TO_IDX(end + PAGE_MASK);
1052 allclean = tstart == 0 && tend >= object->size;
1053 res = TRUE;
1054 vm_page_iter_init(&pages, object);
1055
1056 rescan:
1057 curgeneration = object->generation;
1058
1059 for (p = vm_radix_iter_lookup_ge(&pages, tstart); p != NULL; p = np) {
1060 pi = p->pindex;
1061 if (pi >= tend)
1062 break;
1063 if (vm_page_none_valid(p)) {
1064 np = vm_radix_iter_step(&pages);
1065 continue;
1066 }
1067 if (!vm_page_busy_acquire(p, VM_ALLOC_WAITFAIL)) {
1068 pctrie_iter_reset(&pages);
1069 if (object->generation != curgeneration &&
1070 (flags & OBJPC_SYNC) != 0)
1071 goto rescan;
1072 np = vm_radix_iter_lookup_ge(&pages, pi);
1073 continue;
1074 }
1075 if (!vm_object_page_remove_write(p, flags, &allclean)) {
1076 np = vm_radix_iter_step(&pages);
1077 vm_page_xunbusy(p);
1078 continue;
1079 }
1080 if (object->type == OBJT_VNODE) {
1081 n = vm_object_page_collect_flush(&pages, p, pagerflags,
1082 flags, &allclean, &eio);
1083 pctrie_iter_reset(&pages);
1084 if (eio) {
1085 res = FALSE;
1086 allclean = FALSE;
1087 }
1088 if (object->generation != curgeneration &&
1089 (flags & OBJPC_SYNC) != 0)
1090 goto rescan;
1091
1092 /*
1093 * If the VOP_PUTPAGES() did a truncated write, so
1094 * that even the first page of the run is not fully
1095 * written, vm_pageout_flush() returns 0 as the run
1096 * length. Since the condition that caused truncated
1097 * write may be permanent, e.g. exhausted free space,
1098 * accepting n == 0 would cause an infinite loop.
1099 *
1100 * Forwarding the iterator leaves the unwritten page
1101 * behind, but there is not much we can do there if
1102 * filesystem refuses to write it.
1103 */
1104 if (n == 0) {
1105 n = 1;
1106 allclean = FALSE;
1107 }
1108 } else {
1109 n = 1;
1110 vm_page_xunbusy(p);
1111 }
1112 np = vm_radix_iter_lookup_ge(&pages, pi + n);
1113 }
1114 #if 0
1115 VOP_FSYNC(vp, (pagerflags & VM_PAGER_PUT_SYNC) ? MNT_WAIT : 0);
1116 #endif
1117
1118 /*
1119 * Leave updating cleangeneration for tmpfs objects to tmpfs
1120 * scan. It needs to update mtime, which happens for other
1121 * filesystems during page writeouts.
1122 */
1123 if (allclean && object->type == OBJT_VNODE)
1124 object->cleangeneration = curgeneration;
1125 return (res);
1126 }
1127
1128 static int
vm_object_page_collect_flush(struct pctrie_iter * pages,vm_page_t p,int pagerflags,int flags,boolean_t * allclean,boolean_t * eio)1129 vm_object_page_collect_flush(struct pctrie_iter *pages, vm_page_t p,
1130 int pagerflags, int flags, boolean_t *allclean, boolean_t *eio)
1131 {
1132 vm_page_t ma[2 * vm_pageout_page_count - 1];
1133 int base, count, runlen;
1134
1135 vm_page_lock_assert(p, MA_NOTOWNED);
1136 vm_page_assert_xbusied(p);
1137 base = nitems(ma) / 2;
1138 ma[base] = p;
1139 for (count = 1; count < vm_pageout_page_count; count++) {
1140 p = vm_radix_iter_next(pages);
1141 if (p == NULL || vm_page_tryxbusy(p) == 0)
1142 break;
1143 if (!vm_object_page_remove_write(p, flags, allclean)) {
1144 vm_page_xunbusy(p);
1145 break;
1146 }
1147 ma[base + count] = p;
1148 }
1149
1150 pages->index = ma[base]->pindex;
1151 for (; count < vm_pageout_page_count; count++) {
1152 p = vm_radix_iter_prev(pages);
1153 if (p == NULL || vm_page_tryxbusy(p) == 0)
1154 break;
1155 if (!vm_object_page_remove_write(p, flags, allclean)) {
1156 vm_page_xunbusy(p);
1157 break;
1158 }
1159 ma[--base] = p;
1160 }
1161
1162 vm_pageout_flush(&ma[base], count, pagerflags, nitems(ma) / 2 - base,
1163 &runlen, eio);
1164 return (runlen);
1165 }
1166
1167 /*
1168 * Note that there is absolutely no sense in writing out
1169 * anonymous objects, so we track down the vnode object
1170 * to write out.
1171 * We invalidate (remove) all pages from the address space
1172 * for semantic correctness.
1173 *
1174 * If the backing object is a device object with unmanaged pages, then any
1175 * mappings to the specified range of pages must be removed before this
1176 * function is called.
1177 *
1178 * Note: certain anonymous maps, such as MAP_NOSYNC maps,
1179 * may start out with a NULL object.
1180 */
1181 boolean_t
vm_object_sync(vm_object_t object,vm_ooffset_t offset,vm_size_t size,boolean_t syncio,boolean_t invalidate)1182 vm_object_sync(vm_object_t object, vm_ooffset_t offset, vm_size_t size,
1183 boolean_t syncio, boolean_t invalidate)
1184 {
1185 vm_object_t backing_object;
1186 struct vnode *vp;
1187 struct mount *mp;
1188 int error, flags, fsync_after;
1189 boolean_t res;
1190
1191 if (object == NULL)
1192 return (TRUE);
1193 res = TRUE;
1194 error = 0;
1195 VM_OBJECT_WLOCK(object);
1196 while ((backing_object = object->backing_object) != NULL) {
1197 VM_OBJECT_WLOCK(backing_object);
1198 offset += object->backing_object_offset;
1199 VM_OBJECT_WUNLOCK(object);
1200 object = backing_object;
1201 if (object->size < OFF_TO_IDX(offset + size))
1202 size = IDX_TO_OFF(object->size) - offset;
1203 }
1204 /*
1205 * Flush pages if writing is allowed, invalidate them
1206 * if invalidation requested. Pages undergoing I/O
1207 * will be ignored by vm_object_page_remove().
1208 *
1209 * We cannot lock the vnode and then wait for paging
1210 * to complete without deadlocking against vm_fault.
1211 * Instead we simply call vm_object_page_remove() and
1212 * allow it to block internally on a page-by-page
1213 * basis when it encounters pages undergoing async
1214 * I/O.
1215 */
1216 if (object->type == OBJT_VNODE &&
1217 vm_object_mightbedirty(object) != 0 &&
1218 ((vp = object->handle)->v_vflag & VV_NOSYNC) == 0) {
1219 VM_OBJECT_WUNLOCK(object);
1220 (void)vn_start_write(vp, &mp, V_WAIT);
1221 vn_lock(vp, LK_EXCLUSIVE | LK_RETRY);
1222 if (syncio && !invalidate && offset == 0 &&
1223 atop(size) == object->size) {
1224 /*
1225 * If syncing the whole mapping of the file,
1226 * it is faster to schedule all the writes in
1227 * async mode, also allowing the clustering,
1228 * and then wait for i/o to complete.
1229 */
1230 flags = 0;
1231 fsync_after = TRUE;
1232 } else {
1233 flags = (syncio || invalidate) ? OBJPC_SYNC : 0;
1234 flags |= invalidate ? (OBJPC_SYNC | OBJPC_INVAL) : 0;
1235 fsync_after = FALSE;
1236 }
1237 VM_OBJECT_WLOCK(object);
1238 res = vm_object_page_clean(object, offset, offset + size,
1239 flags);
1240 VM_OBJECT_WUNLOCK(object);
1241 if (fsync_after) {
1242 for (;;) {
1243 error = VOP_FSYNC(vp, MNT_WAIT, curthread);
1244 if (error != ERELOOKUP)
1245 break;
1246
1247 /*
1248 * Allow SU/bufdaemon to handle more
1249 * dependencies in the meantime.
1250 */
1251 VOP_UNLOCK(vp);
1252 vn_finished_write(mp);
1253
1254 (void)vn_start_write(vp, &mp, V_WAIT);
1255 vn_lock(vp, LK_EXCLUSIVE | LK_RETRY);
1256 }
1257 }
1258 VOP_UNLOCK(vp);
1259 vn_finished_write(mp);
1260 if (error != 0)
1261 res = FALSE;
1262 VM_OBJECT_WLOCK(object);
1263 }
1264 if ((object->type == OBJT_VNODE ||
1265 object->type == OBJT_DEVICE) && invalidate) {
1266 if (object->type == OBJT_DEVICE)
1267 /*
1268 * The option OBJPR_NOTMAPPED must be passed here
1269 * because vm_object_page_remove() cannot remove
1270 * unmanaged mappings.
1271 */
1272 flags = OBJPR_NOTMAPPED;
1273 else if (old_msync)
1274 flags = 0;
1275 else
1276 flags = OBJPR_CLEANONLY;
1277 vm_object_page_remove(object, OFF_TO_IDX(offset),
1278 OFF_TO_IDX(offset + size + PAGE_MASK), flags);
1279 }
1280 VM_OBJECT_WUNLOCK(object);
1281 return (res);
1282 }
1283
1284 /*
1285 * Determine whether the given advice can be applied to the object. Advice is
1286 * not applied to unmanaged pages since they never belong to page queues, and
1287 * since MADV_FREE is destructive, it can apply only to anonymous pages that
1288 * have been mapped at most once.
1289 */
1290 static bool
vm_object_advice_applies(vm_object_t object,int advice)1291 vm_object_advice_applies(vm_object_t object, int advice)
1292 {
1293
1294 if ((object->flags & OBJ_UNMANAGED) != 0)
1295 return (false);
1296 if (advice != MADV_FREE)
1297 return (true);
1298 return ((object->flags & (OBJ_ONEMAPPING | OBJ_ANON)) ==
1299 (OBJ_ONEMAPPING | OBJ_ANON));
1300 }
1301
1302 static void
vm_object_madvise_freespace(vm_object_t object,int advice,vm_pindex_t pindex,vm_size_t size)1303 vm_object_madvise_freespace(vm_object_t object, int advice, vm_pindex_t pindex,
1304 vm_size_t size)
1305 {
1306
1307 if (advice == MADV_FREE)
1308 vm_pager_freespace(object, pindex, size);
1309 }
1310
1311 /*
1312 * vm_object_madvise:
1313 *
1314 * Implements the madvise function at the object/page level.
1315 *
1316 * MADV_WILLNEED (any object)
1317 *
1318 * Activate the specified pages if they are resident.
1319 *
1320 * MADV_DONTNEED (any object)
1321 *
1322 * Deactivate the specified pages if they are resident.
1323 *
1324 * MADV_FREE (OBJT_SWAP objects, OBJ_ONEMAPPING only)
1325 *
1326 * Deactivate and clean the specified pages if they are
1327 * resident. This permits the process to reuse the pages
1328 * without faulting or the kernel to reclaim the pages
1329 * without I/O.
1330 */
1331 void
vm_object_madvise(vm_object_t object,vm_pindex_t pindex,vm_pindex_t end,int advice)1332 vm_object_madvise(vm_object_t object, vm_pindex_t pindex, vm_pindex_t end,
1333 int advice)
1334 {
1335 struct pctrie_iter pages;
1336 vm_pindex_t tpindex;
1337 vm_object_t backing_object, tobject;
1338 vm_page_t m, tm;
1339
1340 if (object == NULL)
1341 return;
1342
1343 vm_page_iter_init(&pages, object);
1344 relookup:
1345 VM_OBJECT_WLOCK(object);
1346 if (!vm_object_advice_applies(object, advice)) {
1347 VM_OBJECT_WUNLOCK(object);
1348 return;
1349 }
1350 for (m = vm_radix_iter_lookup_ge(&pages, pindex); pindex < end;
1351 pindex++) {
1352 tobject = object;
1353
1354 /*
1355 * If the next page isn't resident in the top-level object, we
1356 * need to search the shadow chain. When applying MADV_FREE, we
1357 * take care to release any swap space used to store
1358 * non-resident pages.
1359 */
1360 if (m == NULL || pindex < m->pindex) {
1361 /*
1362 * Optimize a common case: if the top-level object has
1363 * no backing object, we can skip over the non-resident
1364 * range in constant time.
1365 */
1366 if (object->backing_object == NULL) {
1367 tpindex = (m != NULL && m->pindex < end) ?
1368 m->pindex : end;
1369 vm_object_madvise_freespace(object, advice,
1370 pindex, tpindex - pindex);
1371 if ((pindex = tpindex) == end)
1372 break;
1373 goto next_page;
1374 }
1375
1376 tpindex = pindex;
1377 do {
1378 vm_object_madvise_freespace(tobject, advice,
1379 tpindex, 1);
1380 /*
1381 * Prepare to search the next object in the
1382 * chain.
1383 */
1384 backing_object = tobject->backing_object;
1385 if (backing_object == NULL)
1386 goto next_pindex;
1387 VM_OBJECT_WLOCK(backing_object);
1388 tpindex +=
1389 OFF_TO_IDX(tobject->backing_object_offset);
1390 if (tobject != object)
1391 VM_OBJECT_WUNLOCK(tobject);
1392 tobject = backing_object;
1393 if (!vm_object_advice_applies(tobject, advice))
1394 goto next_pindex;
1395 } while ((tm = vm_page_lookup(tobject, tpindex)) ==
1396 NULL);
1397 } else {
1398 next_page:
1399 tm = m;
1400 m = vm_radix_iter_step(&pages);
1401 }
1402
1403 /*
1404 * If the page is not in a normal state, skip it. The page
1405 * can not be invalidated while the object lock is held.
1406 */
1407 if (!vm_page_all_valid(tm) || vm_page_wired(tm))
1408 goto next_pindex;
1409 KASSERT((tm->flags & PG_FICTITIOUS) == 0,
1410 ("vm_object_madvise: page %p is fictitious", tm));
1411 KASSERT((tm->oflags & VPO_UNMANAGED) == 0,
1412 ("vm_object_madvise: page %p is not managed", tm));
1413 if (vm_page_tryxbusy(tm) == 0) {
1414 if (object != tobject)
1415 VM_OBJECT_WUNLOCK(object);
1416 if (advice == MADV_WILLNEED) {
1417 /*
1418 * Reference the page before unlocking and
1419 * sleeping so that the page daemon is less
1420 * likely to reclaim it.
1421 */
1422 vm_page_aflag_set(tm, PGA_REFERENCED);
1423 }
1424 if (!vm_page_busy_sleep(tm, "madvpo", 0))
1425 VM_OBJECT_WUNLOCK(tobject);
1426 pctrie_iter_reset(&pages);
1427 goto relookup;
1428 }
1429 vm_page_advise(tm, advice);
1430 vm_page_xunbusy(tm);
1431 vm_object_madvise_freespace(tobject, advice, tm->pindex, 1);
1432 next_pindex:
1433 if (tobject != object)
1434 VM_OBJECT_WUNLOCK(tobject);
1435 }
1436 VM_OBJECT_WUNLOCK(object);
1437 }
1438
1439 /*
1440 * vm_object_shadow:
1441 *
1442 * Create a new object which is backed by the
1443 * specified existing object range. The source
1444 * object reference is deallocated.
1445 *
1446 * The new object and offset into that object
1447 * are returned in the source parameters.
1448 */
1449 void
vm_object_shadow(vm_object_t * object,vm_ooffset_t * offset,vm_size_t length,struct ucred * cred,bool shared)1450 vm_object_shadow(vm_object_t *object, vm_ooffset_t *offset, vm_size_t length,
1451 struct ucred *cred, bool shared)
1452 {
1453 vm_object_t source;
1454 vm_object_t result;
1455
1456 source = *object;
1457
1458 /*
1459 * Don't create the new object if the old object isn't shared.
1460 *
1461 * If we hold the only reference we can guarantee that it won't
1462 * increase while we have the map locked. Otherwise the race is
1463 * harmless and we will end up with an extra shadow object that
1464 * will be collapsed later.
1465 */
1466 if (source != NULL && source->ref_count == 1 &&
1467 (source->flags & OBJ_ANON) != 0)
1468 return;
1469
1470 /*
1471 * Allocate a new object with the given length.
1472 */
1473 result = vm_object_allocate_anon(atop(length), source, cred, length);
1474
1475 /*
1476 * Store the offset into the source object, and fix up the offset into
1477 * the new object.
1478 */
1479 result->backing_object_offset = *offset;
1480
1481 if (shared || source != NULL) {
1482 VM_OBJECT_WLOCK(result);
1483
1484 /*
1485 * The new object shadows the source object, adding a
1486 * reference to it. Our caller changes his reference
1487 * to point to the new object, removing a reference to
1488 * the source object. Net result: no change of
1489 * reference count, unless the caller needs to add one
1490 * more reference due to forking a shared map entry.
1491 */
1492 if (shared) {
1493 vm_object_reference_locked(result);
1494 vm_object_clear_flag(result, OBJ_ONEMAPPING);
1495 }
1496
1497 /*
1498 * Try to optimize the result object's page color when
1499 * shadowing in order to maintain page coloring
1500 * consistency in the combined shadowed object.
1501 */
1502 if (source != NULL) {
1503 vm_object_backing_insert(result, source);
1504 result->domain = source->domain;
1505 #if VM_NRESERVLEVEL > 0
1506 vm_object_set_flag(result,
1507 (source->flags & OBJ_COLORED));
1508 result->pg_color = (source->pg_color +
1509 OFF_TO_IDX(*offset)) & ((1 << (VM_NFREEORDER -
1510 1)) - 1);
1511 #endif
1512 }
1513 VM_OBJECT_WUNLOCK(result);
1514 }
1515
1516 /*
1517 * Return the new things
1518 */
1519 *offset = 0;
1520 *object = result;
1521 }
1522
1523 /*
1524 * vm_object_split:
1525 *
1526 * Split the pages in a map entry into a new object. This affords
1527 * easier removal of unused pages, and keeps object inheritance from
1528 * being a negative impact on memory usage.
1529 */
1530 void
vm_object_split(vm_map_entry_t entry)1531 vm_object_split(vm_map_entry_t entry)
1532 {
1533 struct pctrie_iter pages;
1534 vm_page_t m;
1535 vm_object_t orig_object, new_object, backing_object;
1536 vm_pindex_t offidxstart;
1537 vm_size_t size;
1538
1539 orig_object = entry->object.vm_object;
1540 KASSERT((orig_object->flags & OBJ_ONEMAPPING) != 0,
1541 ("vm_object_split: Splitting object with multiple mappings."));
1542 if ((orig_object->flags & OBJ_ANON) == 0)
1543 return;
1544 if (orig_object->ref_count <= 1)
1545 return;
1546 VM_OBJECT_WUNLOCK(orig_object);
1547
1548 offidxstart = OFF_TO_IDX(entry->offset);
1549 size = atop(entry->end - entry->start);
1550
1551 new_object = vm_object_allocate_anon(size, orig_object,
1552 orig_object->cred, ptoa(size));
1553
1554 /*
1555 * We must wait for the orig_object to complete any in-progress
1556 * collapse so that the swap blocks are stable below. The
1557 * additional reference on backing_object by new object will
1558 * prevent further collapse operations until split completes.
1559 */
1560 VM_OBJECT_WLOCK(orig_object);
1561 vm_object_collapse_wait(orig_object);
1562
1563 /*
1564 * At this point, the new object is still private, so the order in
1565 * which the original and new objects are locked does not matter.
1566 */
1567 VM_OBJECT_WLOCK(new_object);
1568 new_object->domain = orig_object->domain;
1569 backing_object = orig_object->backing_object;
1570 if (backing_object != NULL) {
1571 vm_object_backing_insert_ref(new_object, backing_object);
1572 new_object->backing_object_offset =
1573 orig_object->backing_object_offset + entry->offset;
1574 }
1575 if (orig_object->cred != NULL) {
1576 crhold(orig_object->cred);
1577 KASSERT(orig_object->charge >= ptoa(size),
1578 ("orig_object->charge < 0"));
1579 orig_object->charge -= ptoa(size);
1580 }
1581
1582 /*
1583 * Mark the split operation so that swap_pager_getpages() knows
1584 * that the object is in transition.
1585 */
1586 vm_object_set_flag(orig_object, OBJ_SPLIT);
1587 vm_page_iter_limit_init(&pages, orig_object, offidxstart + size);
1588 retry:
1589 KASSERT(pctrie_iter_is_reset(&pages),
1590 ("%s: pctrie_iter not reset for retry", __func__));
1591 for (m = vm_radix_iter_lookup_ge(&pages, offidxstart); m != NULL;
1592 m = vm_radix_iter_step(&pages)) {
1593 /*
1594 * We must wait for pending I/O to complete before we can
1595 * rename the page.
1596 *
1597 * We do not have to VM_PROT_NONE the page as mappings should
1598 * not be changed by this operation.
1599 */
1600 if (vm_page_tryxbusy(m) == 0) {
1601 VM_OBJECT_WUNLOCK(new_object);
1602 if (vm_page_busy_sleep(m, "spltwt", 0))
1603 VM_OBJECT_WLOCK(orig_object);
1604 pctrie_iter_reset(&pages);
1605 VM_OBJECT_WLOCK(new_object);
1606 goto retry;
1607 }
1608
1609 /*
1610 * If the page was left invalid, it was likely placed there by
1611 * an incomplete fault. Just remove and ignore.
1612 *
1613 * One other possibility is that the map entry is wired, in
1614 * which case we must hang on to the page to avoid leaking it,
1615 * as the map entry owns the wiring. This case can arise if the
1616 * backing object is truncated by the pager.
1617 */
1618 if (vm_page_none_valid(m) && entry->wired_count == 0) {
1619 if (vm_page_iter_remove(&pages, m))
1620 vm_page_free(m);
1621 continue;
1622 }
1623
1624 /* vm_page_iter_rename() will dirty the page if it is valid. */
1625 if (!vm_page_iter_rename(&pages, m, new_object, m->pindex -
1626 offidxstart)) {
1627 vm_page_xunbusy(m);
1628 VM_OBJECT_WUNLOCK(new_object);
1629 VM_OBJECT_WUNLOCK(orig_object);
1630 vm_radix_wait();
1631 pctrie_iter_reset(&pages);
1632 VM_OBJECT_WLOCK(orig_object);
1633 VM_OBJECT_WLOCK(new_object);
1634 goto retry;
1635 }
1636
1637 #if VM_NRESERVLEVEL > 0
1638 /*
1639 * If some of the reservation's allocated pages remain with
1640 * the original object, then transferring the reservation to
1641 * the new object is neither particularly beneficial nor
1642 * particularly harmful as compared to leaving the reservation
1643 * with the original object. If, however, all of the
1644 * reservation's allocated pages are transferred to the new
1645 * object, then transferring the reservation is typically
1646 * beneficial. Determining which of these two cases applies
1647 * would be more costly than unconditionally renaming the
1648 * reservation.
1649 */
1650 vm_reserv_rename(m, new_object, orig_object, offidxstart);
1651 #endif
1652 }
1653
1654 /*
1655 * swap_pager_copy() can sleep, in which case the orig_object's
1656 * and new_object's locks are released and reacquired.
1657 */
1658 swap_pager_copy(orig_object, new_object, offidxstart, 0);
1659 vm_page_iter_init(&pages, new_object);
1660 VM_RADIX_FOREACH(m, &pages)
1661 vm_page_xunbusy(m);
1662
1663 vm_object_clear_flag(orig_object, OBJ_SPLIT);
1664 VM_OBJECT_WUNLOCK(orig_object);
1665 VM_OBJECT_WUNLOCK(new_object);
1666 entry->object.vm_object = new_object;
1667 entry->offset = 0LL;
1668 vm_object_deallocate(orig_object);
1669 VM_OBJECT_WLOCK(new_object);
1670 }
1671
1672 static vm_page_t
vm_object_collapse_scan_wait(struct pctrie_iter * pages,vm_object_t object,vm_page_t p)1673 vm_object_collapse_scan_wait(struct pctrie_iter *pages, vm_object_t object,
1674 vm_page_t p)
1675 {
1676 vm_object_t backing_object;
1677
1678 VM_OBJECT_ASSERT_WLOCKED(object);
1679 backing_object = object->backing_object;
1680 VM_OBJECT_ASSERT_WLOCKED(backing_object);
1681
1682 KASSERT(p == NULL || p->object == object || p->object == backing_object,
1683 ("invalid ownership %p %p %p", p, object, backing_object));
1684 /* The page is only NULL when rename fails. */
1685 if (p == NULL) {
1686 VM_OBJECT_WUNLOCK(object);
1687 VM_OBJECT_WUNLOCK(backing_object);
1688 vm_radix_wait();
1689 VM_OBJECT_WLOCK(object);
1690 } else if (p->object == object) {
1691 VM_OBJECT_WUNLOCK(backing_object);
1692 if (vm_page_busy_sleep(p, "vmocol", 0))
1693 VM_OBJECT_WLOCK(object);
1694 } else {
1695 VM_OBJECT_WUNLOCK(object);
1696 if (!vm_page_busy_sleep(p, "vmocol", 0))
1697 VM_OBJECT_WUNLOCK(backing_object);
1698 VM_OBJECT_WLOCK(object);
1699 }
1700 VM_OBJECT_WLOCK(backing_object);
1701 vm_page_iter_init(pages, backing_object);
1702 return (vm_radix_iter_lookup_ge(pages, 0));
1703 }
1704
1705 static void
vm_object_collapse_scan(vm_object_t object)1706 vm_object_collapse_scan(vm_object_t object)
1707 {
1708 struct pctrie_iter pages;
1709 vm_object_t backing_object;
1710 vm_page_t next, p, pp;
1711 vm_pindex_t backing_offset_index, new_pindex;
1712
1713 VM_OBJECT_ASSERT_WLOCKED(object);
1714 VM_OBJECT_ASSERT_WLOCKED(object->backing_object);
1715
1716 backing_object = object->backing_object;
1717 backing_offset_index = OFF_TO_IDX(object->backing_object_offset);
1718
1719 /*
1720 * Our scan
1721 */
1722 vm_page_iter_init(&pages, backing_object);
1723 for (p = vm_radix_iter_lookup_ge(&pages, 0); p != NULL; p = next) {
1724 /*
1725 * Check for busy page
1726 */
1727 if (vm_page_tryxbusy(p) == 0) {
1728 next = vm_object_collapse_scan_wait(&pages, object, p);
1729 continue;
1730 }
1731
1732 KASSERT(object->backing_object == backing_object,
1733 ("vm_object_collapse_scan: backing object mismatch %p != %p",
1734 object->backing_object, backing_object));
1735 KASSERT(p->object == backing_object,
1736 ("vm_object_collapse_scan: object mismatch %p != %p",
1737 p->object, backing_object));
1738
1739 if (p->pindex < backing_offset_index || object->size <=
1740 (new_pindex = p->pindex - backing_offset_index)) {
1741 vm_pager_freespace(backing_object, p->pindex, 1);
1742
1743 KASSERT(!pmap_page_is_mapped(p),
1744 ("freeing mapped page %p", p));
1745 if (vm_page_iter_remove(&pages, p))
1746 vm_page_free(p);
1747 next = vm_radix_iter_step(&pages);
1748 continue;
1749 }
1750
1751 if (!vm_page_all_valid(p)) {
1752 KASSERT(!pmap_page_is_mapped(p),
1753 ("freeing mapped page %p", p));
1754 if (vm_page_iter_remove(&pages, p))
1755 vm_page_free(p);
1756 next = vm_radix_iter_step(&pages);
1757 continue;
1758 }
1759
1760 pp = vm_page_lookup(object, new_pindex);
1761 if (pp != NULL && vm_page_tryxbusy(pp) == 0) {
1762 vm_page_xunbusy(p);
1763 /*
1764 * The page in the parent is busy and possibly not
1765 * (yet) valid. Until its state is finalized by the
1766 * busy bit owner, we can't tell whether it shadows the
1767 * original page.
1768 */
1769 next = vm_object_collapse_scan_wait(&pages, object, pp);
1770 continue;
1771 }
1772
1773 if (pp != NULL && vm_page_none_valid(pp)) {
1774 /*
1775 * The page was invalid in the parent. Likely placed
1776 * there by an incomplete fault. Just remove and
1777 * ignore. p can replace it.
1778 */
1779 if (vm_page_remove(pp))
1780 vm_page_free(pp);
1781 pp = NULL;
1782 }
1783
1784 if (pp != NULL || vm_pager_has_page(object, new_pindex, NULL,
1785 NULL)) {
1786 /*
1787 * The page already exists in the parent OR swap exists
1788 * for this location in the parent. Leave the parent's
1789 * page alone. Destroy the original page from the
1790 * backing object.
1791 */
1792 vm_pager_freespace(backing_object, p->pindex, 1);
1793 KASSERT(!pmap_page_is_mapped(p),
1794 ("freeing mapped page %p", p));
1795 if (pp != NULL)
1796 vm_page_xunbusy(pp);
1797 if (vm_page_iter_remove(&pages, p))
1798 vm_page_free(p);
1799 next = vm_radix_iter_step(&pages);
1800 continue;
1801 }
1802
1803 /*
1804 * Page does not exist in parent, rename the page from the
1805 * backing object to the main object.
1806 *
1807 * If the page was mapped to a process, it can remain mapped
1808 * through the rename. vm_page_iter_rename() will dirty the
1809 * page.
1810 */
1811 if (!vm_page_iter_rename(&pages, p, object, new_pindex)) {
1812 vm_page_xunbusy(p);
1813 next = vm_object_collapse_scan_wait(&pages, object,
1814 NULL);
1815 continue;
1816 }
1817
1818 /* Use the old pindex to free the right page. */
1819 vm_pager_freespace(backing_object, new_pindex +
1820 backing_offset_index, 1);
1821
1822 #if VM_NRESERVLEVEL > 0
1823 /*
1824 * Rename the reservation.
1825 */
1826 vm_reserv_rename(p, object, backing_object,
1827 backing_offset_index);
1828 #endif
1829 vm_page_xunbusy(p);
1830 next = vm_radix_iter_step(&pages);
1831 }
1832 return;
1833 }
1834
1835 /*
1836 * vm_object_collapse:
1837 *
1838 * Collapse an object with the object backing it.
1839 * Pages in the backing object are moved into the
1840 * parent, and the backing object is deallocated.
1841 */
1842 void
vm_object_collapse(vm_object_t object)1843 vm_object_collapse(vm_object_t object)
1844 {
1845 vm_object_t backing_object, new_backing_object;
1846
1847 VM_OBJECT_ASSERT_WLOCKED(object);
1848
1849 while (TRUE) {
1850 KASSERT((object->flags & (OBJ_DEAD | OBJ_ANON)) == OBJ_ANON,
1851 ("collapsing invalid object"));
1852
1853 /*
1854 * Wait for the backing_object to finish any pending
1855 * collapse so that the caller sees the shortest possible
1856 * shadow chain.
1857 */
1858 backing_object = vm_object_backing_collapse_wait(object);
1859 if (backing_object == NULL)
1860 return;
1861
1862 KASSERT(object->ref_count > 0 &&
1863 object->ref_count > atomic_load_int(&object->shadow_count),
1864 ("collapse with invalid ref %d or shadow %d count.",
1865 object->ref_count, atomic_load_int(&object->shadow_count)));
1866 KASSERT((backing_object->flags &
1867 (OBJ_COLLAPSING | OBJ_DEAD)) == 0,
1868 ("vm_object_collapse: Backing object already collapsing."));
1869 KASSERT((object->flags & (OBJ_COLLAPSING | OBJ_DEAD)) == 0,
1870 ("vm_object_collapse: object is already collapsing."));
1871
1872 /*
1873 * We know that we can either collapse the backing object if
1874 * the parent is the only reference to it, or (perhaps) have
1875 * the parent bypass the object if the parent happens to shadow
1876 * all the resident pages in the entire backing object.
1877 */
1878 if (backing_object->ref_count == 1) {
1879 KASSERT(atomic_load_int(&backing_object->shadow_count)
1880 == 1,
1881 ("vm_object_collapse: shadow_count: %d",
1882 atomic_load_int(&backing_object->shadow_count)));
1883 vm_object_pip_add(object, 1);
1884 vm_object_set_flag(object, OBJ_COLLAPSING);
1885 vm_object_pip_add(backing_object, 1);
1886 vm_object_set_flag(backing_object, OBJ_DEAD);
1887
1888 /*
1889 * If there is exactly one reference to the backing
1890 * object, we can collapse it into the parent.
1891 */
1892 vm_object_collapse_scan(object);
1893
1894 /*
1895 * Move the pager from backing_object to object.
1896 *
1897 * swap_pager_copy() can sleep, in which case the
1898 * backing_object's and object's locks are released and
1899 * reacquired.
1900 */
1901 swap_pager_copy(backing_object, object,
1902 OFF_TO_IDX(object->backing_object_offset), TRUE);
1903
1904 /*
1905 * Object now shadows whatever backing_object did.
1906 */
1907 vm_object_clear_flag(object, OBJ_COLLAPSING);
1908 vm_object_backing_transfer(object, backing_object);
1909 object->backing_object_offset +=
1910 backing_object->backing_object_offset;
1911 VM_OBJECT_WUNLOCK(object);
1912 vm_object_pip_wakeup(object);
1913
1914 /*
1915 * Discard backing_object.
1916 *
1917 * Since the backing object has no pages, no pager left,
1918 * and no object references within it, all that is
1919 * necessary is to dispose of it.
1920 */
1921 KASSERT(backing_object->ref_count == 1, (
1922 "backing_object %p was somehow re-referenced during collapse!",
1923 backing_object));
1924 vm_object_pip_wakeup(backing_object);
1925 (void)refcount_release(&backing_object->ref_count);
1926 umtx_shm_object_terminated(backing_object);
1927 vm_object_terminate(backing_object);
1928 counter_u64_add(object_collapses, 1);
1929 VM_OBJECT_WLOCK(object);
1930 } else {
1931 /*
1932 * If we do not entirely shadow the backing object,
1933 * there is nothing we can do so we give up.
1934 *
1935 * The object lock and backing_object lock must not
1936 * be dropped during this sequence.
1937 */
1938 if (!swap_pager_scan_all_shadowed(object)) {
1939 VM_OBJECT_WUNLOCK(backing_object);
1940 break;
1941 }
1942
1943 /*
1944 * Make the parent shadow the next object in the
1945 * chain. Deallocating backing_object will not remove
1946 * it, since its reference count is at least 2.
1947 */
1948 vm_object_backing_remove_locked(object);
1949 new_backing_object = backing_object->backing_object;
1950 if (new_backing_object != NULL) {
1951 vm_object_backing_insert_ref(object,
1952 new_backing_object);
1953 object->backing_object_offset +=
1954 backing_object->backing_object_offset;
1955 }
1956
1957 /*
1958 * Drop the reference count on backing_object. Since
1959 * its ref_count was at least 2, it will not vanish.
1960 */
1961 (void)refcount_release(&backing_object->ref_count);
1962 KASSERT(backing_object->ref_count >= 1, (
1963 "backing_object %p was somehow dereferenced during collapse!",
1964 backing_object));
1965 VM_OBJECT_WUNLOCK(backing_object);
1966 counter_u64_add(object_bypasses, 1);
1967 }
1968
1969 /*
1970 * Try again with this object's new backing object.
1971 */
1972 }
1973 }
1974
1975 /*
1976 * vm_object_page_remove:
1977 *
1978 * For the given object, either frees or invalidates each of the
1979 * specified pages. In general, a page is freed. However, if a page is
1980 * wired for any reason other than the existence of a managed, wired
1981 * mapping, then it may be invalidated but not removed from the object.
1982 * Pages are specified by the given range ["start", "end") and the option
1983 * OBJPR_CLEANONLY. As a special case, if "end" is zero, then the range
1984 * extends from "start" to the end of the object. If the option
1985 * OBJPR_CLEANONLY is specified, then only the non-dirty pages within the
1986 * specified range are affected. If the option OBJPR_NOTMAPPED is
1987 * specified, then the pages within the specified range must have no
1988 * mappings. Otherwise, if this option is not specified, any mappings to
1989 * the specified pages are removed before the pages are freed or
1990 * invalidated.
1991 *
1992 * In general, this operation should only be performed on objects that
1993 * contain managed pages. There are, however, two exceptions. First, it
1994 * is performed on the kernel and kmem objects by vm_map_entry_delete().
1995 * Second, it is used by msync(..., MS_INVALIDATE) to invalidate device-
1996 * backed pages. In both of these cases, the option OBJPR_CLEANONLY must
1997 * not be specified and the option OBJPR_NOTMAPPED must be specified.
1998 *
1999 * The object must be locked.
2000 */
2001 void
vm_object_page_remove(vm_object_t object,vm_pindex_t start,vm_pindex_t end,int options)2002 vm_object_page_remove(vm_object_t object, vm_pindex_t start, vm_pindex_t end,
2003 int options)
2004 {
2005 struct pctrie_iter pages;
2006 vm_page_t p;
2007
2008 VM_OBJECT_ASSERT_WLOCKED(object);
2009 KASSERT((object->flags & OBJ_UNMANAGED) == 0 ||
2010 (options & (OBJPR_CLEANONLY | OBJPR_NOTMAPPED)) == OBJPR_NOTMAPPED,
2011 ("vm_object_page_remove: illegal options for object %p", object));
2012 if (object->resident_page_count == 0)
2013 return;
2014 vm_object_pip_add(object, 1);
2015 vm_page_iter_limit_init(&pages, object, end);
2016 again:
2017 KASSERT(pctrie_iter_is_reset(&pages),
2018 ("%s: pctrie_iter not reset for retry", __func__));
2019 for (p = vm_radix_iter_lookup_ge(&pages, start); p != NULL;
2020 p = vm_radix_iter_step(&pages)) {
2021 /*
2022 * Skip invalid pages if asked to do so. Try to avoid acquiring
2023 * the busy lock, as some consumers rely on this to avoid
2024 * deadlocks.
2025 *
2026 * A thread may concurrently transition the page from invalid to
2027 * valid using only the busy lock, so the result of this check
2028 * is immediately stale. It is up to consumers to handle this,
2029 * for instance by ensuring that all invalid->valid transitions
2030 * happen with a mutex held, as may be possible for a
2031 * filesystem.
2032 */
2033 if ((options & OBJPR_VALIDONLY) != 0 && vm_page_none_valid(p))
2034 continue;
2035
2036 /*
2037 * If the page is wired for any reason besides the existence
2038 * of managed, wired mappings, then it cannot be freed. For
2039 * example, fictitious pages, which represent device memory,
2040 * are inherently wired and cannot be freed. They can,
2041 * however, be invalidated if the option OBJPR_CLEANONLY is
2042 * not specified.
2043 */
2044 if (vm_page_tryxbusy(p) == 0) {
2045 if (vm_page_busy_sleep(p, "vmopar", 0))
2046 VM_OBJECT_WLOCK(object);
2047 pctrie_iter_reset(&pages);
2048 goto again;
2049 }
2050 if ((options & OBJPR_VALIDONLY) != 0 && vm_page_none_valid(p)) {
2051 vm_page_xunbusy(p);
2052 continue;
2053 }
2054 if (vm_page_wired(p)) {
2055 wired:
2056 if ((options & OBJPR_NOTMAPPED) == 0 &&
2057 object->ref_count != 0)
2058 pmap_remove_all(p);
2059 if ((options & OBJPR_CLEANONLY) == 0) {
2060 vm_page_invalid(p);
2061 vm_page_undirty(p);
2062 }
2063 vm_page_xunbusy(p);
2064 continue;
2065 }
2066 KASSERT((p->flags & PG_FICTITIOUS) == 0,
2067 ("vm_object_page_remove: page %p is fictitious", p));
2068 if ((options & OBJPR_CLEANONLY) != 0 &&
2069 !vm_page_none_valid(p)) {
2070 if ((options & OBJPR_NOTMAPPED) == 0 &&
2071 object->ref_count != 0 &&
2072 !vm_page_try_remove_write(p))
2073 goto wired;
2074 if (p->dirty != 0) {
2075 vm_page_xunbusy(p);
2076 continue;
2077 }
2078 }
2079 if ((options & OBJPR_NOTMAPPED) == 0 &&
2080 object->ref_count != 0 && !vm_page_try_remove_all(p))
2081 goto wired;
2082 vm_page_iter_free(&pages, p);
2083 }
2084 vm_object_pip_wakeup(object);
2085
2086 vm_pager_freespace(object, start, (end == 0 ? object->size : end) -
2087 start);
2088 }
2089
2090 /*
2091 * vm_object_page_noreuse:
2092 *
2093 * For the given object, attempt to move the specified pages to
2094 * the head of the inactive queue. This bypasses regular LRU
2095 * operation and allows the pages to be reused quickly under memory
2096 * pressure. If a page is wired for any reason, then it will not
2097 * be queued. Pages are specified by the range ["start", "end").
2098 * As a special case, if "end" is zero, then the range extends from
2099 * "start" to the end of the object.
2100 *
2101 * This operation should only be performed on objects that
2102 * contain non-fictitious, managed pages.
2103 *
2104 * The object must be locked.
2105 */
2106 void
vm_object_page_noreuse(vm_object_t object,vm_pindex_t start,vm_pindex_t end)2107 vm_object_page_noreuse(vm_object_t object, vm_pindex_t start, vm_pindex_t end)
2108 {
2109 struct pctrie_iter pages;
2110 vm_page_t p;
2111
2112 VM_OBJECT_ASSERT_LOCKED(object);
2113 KASSERT((object->flags & (OBJ_FICTITIOUS | OBJ_UNMANAGED)) == 0,
2114 ("vm_object_page_noreuse: illegal object %p", object));
2115 if (object->resident_page_count == 0)
2116 return;
2117
2118 vm_page_iter_limit_init(&pages, object, end);
2119 VM_RADIX_FOREACH_FROM(p, &pages, start)
2120 vm_page_deactivate_noreuse(p);
2121 }
2122
2123 /*
2124 * Populate the specified range of the object with valid pages. Returns
2125 * TRUE if the range is successfully populated and FALSE otherwise.
2126 *
2127 * Note: This function should be optimized to pass a larger array of
2128 * pages to vm_pager_get_pages() before it is applied to a non-
2129 * OBJT_DEVICE object.
2130 *
2131 * The object must be locked.
2132 */
2133 boolean_t
vm_object_populate(vm_object_t object,vm_pindex_t start,vm_pindex_t end)2134 vm_object_populate(vm_object_t object, vm_pindex_t start, vm_pindex_t end)
2135 {
2136 struct pctrie_iter pages;
2137 vm_page_t m;
2138 vm_pindex_t pindex;
2139 int rv;
2140
2141 vm_page_iter_init(&pages, object);
2142 VM_OBJECT_ASSERT_WLOCKED(object);
2143 for (pindex = start; pindex < end; pindex++) {
2144 rv = vm_page_grab_valid_iter(&m, object, &pages, pindex,
2145 VM_ALLOC_NORMAL);
2146 if (rv != VM_PAGER_OK)
2147 break;
2148
2149 /*
2150 * Keep "m" busy because a subsequent iteration may unlock
2151 * the object.
2152 */
2153 }
2154 if (pindex > start) {
2155 pages.limit = pindex;
2156 VM_RADIX_FORALL_FROM(m, &pages, start)
2157 vm_page_xunbusy(m);
2158 }
2159 return (pindex == end);
2160 }
2161
2162 /*
2163 * Routine: vm_object_coalesce
2164 * Function: Coalesces two objects backing up adjoining
2165 * regions of memory into a single object.
2166 *
2167 * returns TRUE if objects were combined.
2168 *
2169 * NOTE: Only works at the moment if the second object is NULL -
2170 * if it's not, which object do we lock first?
2171 *
2172 * Parameters:
2173 * prev_object First object to coalesce
2174 * prev_offset Offset into prev_object
2175 * prev_size Size of reference to prev_object
2176 * next_size Size of reference to the second object
2177 * reserved Indicator that extension region has
2178 * swap accounted for
2179 *
2180 * Conditions:
2181 * The object must *not* be locked.
2182 */
2183 boolean_t
vm_object_coalesce(vm_object_t prev_object,vm_ooffset_t prev_offset,vm_size_t prev_size,vm_size_t next_size,boolean_t reserved)2184 vm_object_coalesce(vm_object_t prev_object, vm_ooffset_t prev_offset,
2185 vm_size_t prev_size, vm_size_t next_size, boolean_t reserved)
2186 {
2187 vm_pindex_t next_pindex;
2188
2189 if (prev_object == NULL)
2190 return (TRUE);
2191 if ((prev_object->flags & OBJ_ANON) == 0)
2192 return (FALSE);
2193
2194 VM_OBJECT_WLOCK(prev_object);
2195 /*
2196 * Try to collapse the object first.
2197 */
2198 vm_object_collapse(prev_object);
2199
2200 /*
2201 * Can't coalesce if: . more than one reference . paged out . shadows
2202 * another object . has a copy elsewhere (any of which mean that the
2203 * pages not mapped to prev_entry may be in use anyway)
2204 */
2205 if (prev_object->backing_object != NULL) {
2206 VM_OBJECT_WUNLOCK(prev_object);
2207 return (FALSE);
2208 }
2209
2210 prev_size >>= PAGE_SHIFT;
2211 next_size >>= PAGE_SHIFT;
2212 next_pindex = OFF_TO_IDX(prev_offset) + prev_size;
2213
2214 if (prev_object->ref_count > 1 &&
2215 prev_object->size != next_pindex &&
2216 (prev_object->flags & OBJ_ONEMAPPING) == 0) {
2217 VM_OBJECT_WUNLOCK(prev_object);
2218 return (FALSE);
2219 }
2220
2221 /*
2222 * Account for the charge.
2223 */
2224 if (prev_object->cred != NULL) {
2225 /*
2226 * If prev_object was charged, then this mapping,
2227 * although not charged now, may become writable
2228 * later. Non-NULL cred in the object would prevent
2229 * swap reservation during enabling of the write
2230 * access, so reserve swap now. Failed reservation
2231 * cause allocation of the separate object for the map
2232 * entry, and swap reservation for this entry is
2233 * managed in appropriate time.
2234 */
2235 if (!reserved && !swap_reserve_by_cred(ptoa(next_size),
2236 prev_object->cred)) {
2237 VM_OBJECT_WUNLOCK(prev_object);
2238 return (FALSE);
2239 }
2240 prev_object->charge += ptoa(next_size);
2241 }
2242
2243 /*
2244 * Remove any pages that may still be in the object from a previous
2245 * deallocation.
2246 */
2247 if (next_pindex < prev_object->size) {
2248 vm_object_page_remove(prev_object, next_pindex, next_pindex +
2249 next_size, 0);
2250 #if 0
2251 if (prev_object->cred != NULL) {
2252 KASSERT(prev_object->charge >=
2253 ptoa(prev_object->size - next_pindex),
2254 ("object %p overcharged 1 %jx %jx", prev_object,
2255 (uintmax_t)next_pindex, (uintmax_t)next_size));
2256 prev_object->charge -= ptoa(prev_object->size -
2257 next_pindex);
2258 }
2259 #endif
2260 }
2261
2262 /*
2263 * Extend the object if necessary.
2264 */
2265 if (next_pindex + next_size > prev_object->size)
2266 prev_object->size = next_pindex + next_size;
2267
2268 VM_OBJECT_WUNLOCK(prev_object);
2269 return (TRUE);
2270 }
2271
2272 /*
2273 * Fill in the m_dst array with up to *rbehind optional pages before m_src[0]
2274 * and up to *rahead optional pages after m_src[count - 1]. In both cases, stop
2275 * the filling-in short on encountering a cached page, an object boundary limit,
2276 * or an allocation error. Update *rbehind and *rahead to indicate the number
2277 * of pages allocated. Copy elements of m_src into array elements from
2278 * m_dst[*rbehind] to m_dst[*rbehind + count -1].
2279 */
2280 void
vm_object_prepare_buf_pages(vm_object_t object,vm_page_t * ma_dst,int count,int * rbehind,int * rahead,vm_page_t * ma_src)2281 vm_object_prepare_buf_pages(vm_object_t object, vm_page_t *ma_dst, int count,
2282 int *rbehind, int *rahead, vm_page_t *ma_src)
2283 {
2284 struct pctrie_iter pages;
2285 vm_pindex_t pindex;
2286 vm_page_t m, mpred, msucc;
2287
2288 vm_page_iter_init(&pages, object);
2289 VM_OBJECT_ASSERT_LOCKED(object);
2290 if (*rbehind != 0) {
2291 m = ma_src[0];
2292 pindex = m->pindex;
2293 mpred = vm_radix_iter_lookup_lt(&pages, pindex);
2294 *rbehind = MIN(*rbehind,
2295 pindex - (mpred != NULL ? mpred->pindex + 1 : 0));
2296 /* Stepping backward from pindex, mpred doesn't change. */
2297 for (int i = 0; i < *rbehind; i++) {
2298 m = vm_page_alloc_after(object, &pages, pindex - i - 1,
2299 VM_ALLOC_NORMAL, mpred);
2300 if (m == NULL) {
2301 /* Shift the array. */
2302 for (int j = 0; j < i; j++)
2303 ma_dst[j] = ma_dst[j + *rbehind - i];
2304 *rbehind = i;
2305 *rahead = 0;
2306 break;
2307 }
2308 ma_dst[*rbehind - i - 1] = m;
2309 }
2310 }
2311 for (int i = 0; i < count; i++)
2312 ma_dst[*rbehind + i] = ma_src[i];
2313 if (*rahead != 0) {
2314 m = ma_src[count - 1];
2315 pindex = m->pindex + 1;
2316 msucc = vm_radix_iter_lookup_ge(&pages, pindex);
2317 *rahead = MIN(*rahead,
2318 (msucc != NULL ? msucc->pindex : object->size) - pindex);
2319 mpred = m;
2320 for (int i = 0; i < *rahead; i++) {
2321 m = vm_page_alloc_after(object, &pages, pindex + i,
2322 VM_ALLOC_NORMAL, mpred);
2323 if (m == NULL) {
2324 *rahead = i;
2325 break;
2326 }
2327 ma_dst[*rbehind + count + i] = mpred = m;
2328 }
2329 }
2330 }
2331
2332 void
vm_object_set_writeable_dirty_(vm_object_t object)2333 vm_object_set_writeable_dirty_(vm_object_t object)
2334 {
2335 atomic_add_int(&object->generation, 1);
2336 }
2337
2338 bool
vm_object_mightbedirty_(vm_object_t object)2339 vm_object_mightbedirty_(vm_object_t object)
2340 {
2341 return (object->generation != object->cleangeneration);
2342 }
2343
2344 /*
2345 * vm_object_unwire:
2346 *
2347 * For each page offset within the specified range of the given object,
2348 * find the highest-level page in the shadow chain and unwire it. A page
2349 * must exist at every page offset, and the highest-level page must be
2350 * wired.
2351 */
2352 void
vm_object_unwire(vm_object_t object,vm_ooffset_t offset,vm_size_t length,uint8_t queue)2353 vm_object_unwire(vm_object_t object, vm_ooffset_t offset, vm_size_t length,
2354 uint8_t queue)
2355 {
2356 struct pctrie_iter pages;
2357 vm_object_t tobject, t1object;
2358 vm_page_t m, tm;
2359 vm_pindex_t end_pindex, pindex, tpindex;
2360 int depth, locked_depth;
2361
2362 KASSERT((offset & PAGE_MASK) == 0,
2363 ("vm_object_unwire: offset is not page aligned"));
2364 KASSERT((length & PAGE_MASK) == 0,
2365 ("vm_object_unwire: length is not a multiple of PAGE_SIZE"));
2366 /* The wired count of a fictitious page never changes. */
2367 if ((object->flags & OBJ_FICTITIOUS) != 0)
2368 return;
2369 pindex = OFF_TO_IDX(offset);
2370 end_pindex = pindex + atop(length);
2371 vm_page_iter_init(&pages, object);
2372 again:
2373 locked_depth = 1;
2374 VM_OBJECT_RLOCK(object);
2375 m = vm_radix_iter_lookup_ge(&pages, pindex);
2376 while (pindex < end_pindex) {
2377 if (m == NULL || pindex < m->pindex) {
2378 /*
2379 * The first object in the shadow chain doesn't
2380 * contain a page at the current index. Therefore,
2381 * the page must exist in a backing object.
2382 */
2383 tobject = object;
2384 tpindex = pindex;
2385 depth = 0;
2386 do {
2387 tpindex +=
2388 OFF_TO_IDX(tobject->backing_object_offset);
2389 tobject = tobject->backing_object;
2390 KASSERT(tobject != NULL,
2391 ("vm_object_unwire: missing page"));
2392 if ((tobject->flags & OBJ_FICTITIOUS) != 0)
2393 goto next_page;
2394 depth++;
2395 if (depth == locked_depth) {
2396 locked_depth++;
2397 VM_OBJECT_RLOCK(tobject);
2398 }
2399 } while ((tm = vm_page_lookup(tobject, tpindex)) ==
2400 NULL);
2401 } else {
2402 tm = m;
2403 m = vm_radix_iter_step(&pages);
2404 }
2405 if (vm_page_trysbusy(tm) == 0) {
2406 for (tobject = object; locked_depth >= 1;
2407 locked_depth--) {
2408 t1object = tobject->backing_object;
2409 if (tm->object != tobject)
2410 VM_OBJECT_RUNLOCK(tobject);
2411 tobject = t1object;
2412 }
2413 tobject = tm->object;
2414 if (!vm_page_busy_sleep(tm, "unwbo",
2415 VM_ALLOC_IGN_SBUSY))
2416 VM_OBJECT_RUNLOCK(tobject);
2417 pctrie_iter_reset(&pages);
2418 goto again;
2419 }
2420 vm_page_unwire(tm, queue);
2421 vm_page_sunbusy(tm);
2422 next_page:
2423 pindex++;
2424 }
2425 /* Release the accumulated object locks. */
2426 for (tobject = object; locked_depth >= 1; locked_depth--) {
2427 t1object = tobject->backing_object;
2428 VM_OBJECT_RUNLOCK(tobject);
2429 tobject = t1object;
2430 }
2431 }
2432
2433 /*
2434 * Return the vnode for the given object, or NULL if none exists.
2435 * For tmpfs objects, the function may return NULL if there is
2436 * no vnode allocated at the time of the call.
2437 */
2438 struct vnode *
vm_object_vnode(vm_object_t object)2439 vm_object_vnode(vm_object_t object)
2440 {
2441 struct vnode *vp;
2442
2443 VM_OBJECT_ASSERT_LOCKED(object);
2444 vm_pager_getvp(object, &vp, NULL);
2445 return (vp);
2446 }
2447
2448 /*
2449 * Busy the vm object. This prevents new pages belonging to the object from
2450 * becoming busy. Existing pages persist as busy. Callers are responsible
2451 * for checking page state before proceeding.
2452 */
2453 void
vm_object_busy(vm_object_t obj)2454 vm_object_busy(vm_object_t obj)
2455 {
2456
2457 VM_OBJECT_ASSERT_LOCKED(obj);
2458
2459 blockcount_acquire(&obj->busy, 1);
2460 /* The fence is required to order loads of page busy. */
2461 atomic_thread_fence_acq_rel();
2462 }
2463
2464 void
vm_object_unbusy(vm_object_t obj)2465 vm_object_unbusy(vm_object_t obj)
2466 {
2467
2468 blockcount_release(&obj->busy, 1);
2469 }
2470
2471 void
vm_object_busy_wait(vm_object_t obj,const char * wmesg)2472 vm_object_busy_wait(vm_object_t obj, const char *wmesg)
2473 {
2474
2475 VM_OBJECT_ASSERT_UNLOCKED(obj);
2476
2477 (void)blockcount_sleep(&obj->busy, NULL, wmesg, PVM);
2478 }
2479
2480 /*
2481 * This function aims to determine if the object is mapped,
2482 * specifically, if it is referenced by a vm_map_entry. Because
2483 * objects occasionally acquire transient references that do not
2484 * represent a mapping, the method used here is inexact. However, it
2485 * has very low overhead and is good enough for the advisory
2486 * vm.vmtotal sysctl.
2487 */
2488 bool
vm_object_is_active(vm_object_t obj)2489 vm_object_is_active(vm_object_t obj)
2490 {
2491
2492 return (obj->ref_count > atomic_load_int(&obj->shadow_count));
2493 }
2494
2495 static int
vm_object_list_handler(struct sysctl_req * req,bool swap_only)2496 vm_object_list_handler(struct sysctl_req *req, bool swap_only)
2497 {
2498 struct pctrie_iter pages;
2499 struct kinfo_vmobject *kvo;
2500 char *fullpath, *freepath;
2501 struct vnode *vp;
2502 struct vattr va;
2503 vm_object_t obj;
2504 vm_page_t m;
2505 u_long sp;
2506 int count, error;
2507 key_t key;
2508 unsigned short seq;
2509 bool want_path;
2510
2511 if (req->oldptr == NULL) {
2512 /*
2513 * If an old buffer has not been provided, generate an
2514 * estimate of the space needed for a subsequent call.
2515 */
2516 mtx_lock(&vm_object_list_mtx);
2517 count = 0;
2518 TAILQ_FOREACH(obj, &vm_object_list, object_list) {
2519 if (obj->type == OBJT_DEAD)
2520 continue;
2521 count++;
2522 }
2523 mtx_unlock(&vm_object_list_mtx);
2524 return (SYSCTL_OUT(req, NULL, sizeof(struct kinfo_vmobject) *
2525 count * 11 / 10));
2526 }
2527
2528 want_path = !(swap_only || jailed(curthread->td_ucred));
2529 kvo = malloc(sizeof(*kvo), M_TEMP, M_WAITOK | M_ZERO);
2530 error = 0;
2531
2532 /*
2533 * VM objects are type stable and are never removed from the
2534 * list once added. This allows us to safely read obj->object_list
2535 * after reacquiring the VM object lock.
2536 */
2537 mtx_lock(&vm_object_list_mtx);
2538 TAILQ_FOREACH(obj, &vm_object_list, object_list) {
2539 if (obj->type == OBJT_DEAD ||
2540 (swap_only && (obj->flags & (OBJ_ANON | OBJ_SWAP)) == 0))
2541 continue;
2542 VM_OBJECT_RLOCK(obj);
2543 if (obj->type == OBJT_DEAD ||
2544 (swap_only && (obj->flags & (OBJ_ANON | OBJ_SWAP)) == 0)) {
2545 VM_OBJECT_RUNLOCK(obj);
2546 continue;
2547 }
2548 mtx_unlock(&vm_object_list_mtx);
2549 kvo->kvo_size = ptoa(obj->size);
2550 kvo->kvo_resident = obj->resident_page_count;
2551 kvo->kvo_ref_count = obj->ref_count;
2552 kvo->kvo_shadow_count = atomic_load_int(&obj->shadow_count);
2553 kvo->kvo_memattr = obj->memattr;
2554 kvo->kvo_active = 0;
2555 kvo->kvo_inactive = 0;
2556 kvo->kvo_flags = 0;
2557 if (!swap_only) {
2558 vm_page_iter_init(&pages, obj);
2559 VM_RADIX_FOREACH(m, &pages) {
2560 /*
2561 * A page may belong to the object but be
2562 * dequeued and set to PQ_NONE while the
2563 * object lock is not held. This makes the
2564 * reads of m->queue below racy, and we do not
2565 * count pages set to PQ_NONE. However, this
2566 * sysctl is only meant to give an
2567 * approximation of the system anyway.
2568 */
2569 if (vm_page_active(m))
2570 kvo->kvo_active++;
2571 else if (vm_page_inactive(m))
2572 kvo->kvo_inactive++;
2573 else if (vm_page_in_laundry(m))
2574 kvo->kvo_laundry++;
2575 }
2576 }
2577
2578 kvo->kvo_vn_fileid = 0;
2579 kvo->kvo_vn_fsid = 0;
2580 kvo->kvo_vn_fsid_freebsd11 = 0;
2581 freepath = NULL;
2582 fullpath = "";
2583 vp = NULL;
2584 kvo->kvo_type = vm_object_kvme_type(obj, want_path ? &vp :
2585 NULL);
2586 if (vp != NULL) {
2587 vref(vp);
2588 } else if ((obj->flags & OBJ_ANON) != 0) {
2589 MPASS(kvo->kvo_type == KVME_TYPE_SWAP);
2590 kvo->kvo_me = (uintptr_t)obj;
2591 /* tmpfs objs are reported as vnodes */
2592 kvo->kvo_backing_obj = (uintptr_t)obj->backing_object;
2593 sp = swap_pager_swapped_pages(obj);
2594 kvo->kvo_swapped = sp > UINT32_MAX ? UINT32_MAX : sp;
2595 }
2596 if (obj->type == OBJT_DEVICE || obj->type == OBJT_MGTDEVICE) {
2597 cdev_pager_get_path(obj, kvo->kvo_path,
2598 sizeof(kvo->kvo_path));
2599 }
2600 VM_OBJECT_RUNLOCK(obj);
2601 if ((obj->flags & OBJ_SYSVSHM) != 0) {
2602 kvo->kvo_flags |= KVMO_FLAG_SYSVSHM;
2603 shmobjinfo(obj, &key, &seq);
2604 kvo->kvo_vn_fileid = key;
2605 kvo->kvo_vn_fsid_freebsd11 = seq;
2606 }
2607 if ((obj->flags & OBJ_POSIXSHM) != 0) {
2608 kvo->kvo_flags |= KVMO_FLAG_POSIXSHM;
2609 shm_get_path(obj, kvo->kvo_path,
2610 sizeof(kvo->kvo_path));
2611 }
2612 if (vp != NULL) {
2613 vn_fullpath(vp, &fullpath, &freepath);
2614 vn_lock(vp, LK_SHARED | LK_RETRY);
2615 if (VOP_GETATTR(vp, &va, curthread->td_ucred) == 0) {
2616 kvo->kvo_vn_fileid = va.va_fileid;
2617 kvo->kvo_vn_fsid = va.va_fsid;
2618 kvo->kvo_vn_fsid_freebsd11 = va.va_fsid;
2619 /* truncate */
2620 }
2621 vput(vp);
2622 strlcpy(kvo->kvo_path, fullpath, sizeof(kvo->kvo_path));
2623 free(freepath, M_TEMP);
2624 }
2625
2626 /* Pack record size down */
2627 kvo->kvo_structsize = offsetof(struct kinfo_vmobject, kvo_path)
2628 + strlen(kvo->kvo_path) + 1;
2629 kvo->kvo_structsize = roundup(kvo->kvo_structsize,
2630 sizeof(uint64_t));
2631 error = SYSCTL_OUT(req, kvo, kvo->kvo_structsize);
2632 maybe_yield();
2633 mtx_lock(&vm_object_list_mtx);
2634 if (error)
2635 break;
2636 }
2637 mtx_unlock(&vm_object_list_mtx);
2638 free(kvo, M_TEMP);
2639 return (error);
2640 }
2641
2642 static int
sysctl_vm_object_list(SYSCTL_HANDLER_ARGS)2643 sysctl_vm_object_list(SYSCTL_HANDLER_ARGS)
2644 {
2645 return (vm_object_list_handler(req, false));
2646 }
2647
2648 SYSCTL_PROC(_vm, OID_AUTO, objects, CTLTYPE_STRUCT | CTLFLAG_RW | CTLFLAG_SKIP |
2649 CTLFLAG_MPSAFE, NULL, 0, sysctl_vm_object_list, "S,kinfo_vmobject",
2650 "List of VM objects");
2651
2652 static int
sysctl_vm_object_list_swap(SYSCTL_HANDLER_ARGS)2653 sysctl_vm_object_list_swap(SYSCTL_HANDLER_ARGS)
2654 {
2655 return (vm_object_list_handler(req, true));
2656 }
2657
2658 /*
2659 * This sysctl returns list of the anonymous or swap objects. Intent
2660 * is to provide stripped optimized list useful to analyze swap use.
2661 * Since technically non-swap (default) objects participate in the
2662 * shadow chains, and are converted to swap type as needed by swap
2663 * pager, we must report them.
2664 */
2665 SYSCTL_PROC(_vm, OID_AUTO, swap_objects,
2666 CTLTYPE_STRUCT | CTLFLAG_RW | CTLFLAG_SKIP | CTLFLAG_MPSAFE, NULL, 0,
2667 sysctl_vm_object_list_swap, "S,kinfo_vmobject",
2668 "List of swap VM objects");
2669
2670 #include "opt_ddb.h"
2671 #ifdef DDB
2672 #include <sys/kernel.h>
2673
2674 #include <sys/cons.h>
2675
2676 #include <ddb/ddb.h>
2677
2678 static int
_vm_object_in_map(vm_map_t map,vm_object_t object,vm_map_entry_t entry)2679 _vm_object_in_map(vm_map_t map, vm_object_t object, vm_map_entry_t entry)
2680 {
2681 vm_map_t tmpm;
2682 vm_map_entry_t tmpe;
2683 vm_object_t obj;
2684
2685 if (map == 0)
2686 return 0;
2687
2688 if (entry == 0) {
2689 VM_MAP_ENTRY_FOREACH(tmpe, map) {
2690 if (_vm_object_in_map(map, object, tmpe)) {
2691 return 1;
2692 }
2693 }
2694 } else if (entry->eflags & MAP_ENTRY_IS_SUB_MAP) {
2695 tmpm = entry->object.sub_map;
2696 VM_MAP_ENTRY_FOREACH(tmpe, tmpm) {
2697 if (_vm_object_in_map(tmpm, object, tmpe)) {
2698 return 1;
2699 }
2700 }
2701 } else if ((obj = entry->object.vm_object) != NULL) {
2702 for (; obj; obj = obj->backing_object)
2703 if (obj == object) {
2704 return 1;
2705 }
2706 }
2707 return 0;
2708 }
2709
2710 static int
vm_object_in_map(vm_object_t object)2711 vm_object_in_map(vm_object_t object)
2712 {
2713 struct proc *p;
2714
2715 /* sx_slock(&allproc_lock); */
2716 FOREACH_PROC_IN_SYSTEM(p) {
2717 if (!p->p_vmspace /* || (p->p_flag & (P_SYSTEM|P_WEXIT)) */)
2718 continue;
2719 if (_vm_object_in_map(&p->p_vmspace->vm_map, object, 0)) {
2720 /* sx_sunlock(&allproc_lock); */
2721 return 1;
2722 }
2723 }
2724 /* sx_sunlock(&allproc_lock); */
2725 if (_vm_object_in_map(kernel_map, object, 0))
2726 return 1;
2727 return 0;
2728 }
2729
DB_SHOW_COMMAND_FLAGS(vmochk,vm_object_check,DB_CMD_MEMSAFE)2730 DB_SHOW_COMMAND_FLAGS(vmochk, vm_object_check, DB_CMD_MEMSAFE)
2731 {
2732 vm_object_t object;
2733
2734 /*
2735 * make sure that internal objs are in a map somewhere
2736 * and none have zero ref counts.
2737 */
2738 TAILQ_FOREACH(object, &vm_object_list, object_list) {
2739 if ((object->flags & OBJ_ANON) != 0) {
2740 if (object->ref_count == 0) {
2741 db_printf(
2742 "vmochk: internal obj has zero ref count: %lu\n",
2743 (u_long)object->size);
2744 }
2745 if (!vm_object_in_map(object)) {
2746 db_printf(
2747 "vmochk: internal obj is not in a map: "
2748 "ref: %d, size: %lu: 0x%lx, backing_object: %p\n",
2749 object->ref_count, (u_long)object->size,
2750 (u_long)object->size,
2751 (void *)object->backing_object);
2752 }
2753 }
2754 if (db_pager_quit)
2755 return;
2756 }
2757 }
2758
2759 /*
2760 * vm_object_print: [ debug ]
2761 */
DB_SHOW_COMMAND(object,vm_object_print_static)2762 DB_SHOW_COMMAND(object, vm_object_print_static)
2763 {
2764 struct pctrie_iter pages;
2765 /* XXX convert args. */
2766 vm_object_t object = (vm_object_t)addr;
2767 boolean_t full = have_addr;
2768
2769 vm_page_t p;
2770
2771 /* XXX count is an (unused) arg. Avoid shadowing it. */
2772 #define count was_count
2773
2774 int count;
2775
2776 if (object == NULL)
2777 return;
2778
2779 db_iprintf("Object %p: type=%d, size=0x%jx, res=%d, ref=%d, flags=0x%x",
2780 object, (int)object->type, (uintmax_t)object->size,
2781 object->resident_page_count, object->ref_count, object->flags);
2782 db_iprintf(" ruid %d charge %jx\n",
2783 object->cred ? object->cred->cr_ruid : -1,
2784 (uintmax_t)object->charge);
2785 db_iprintf(" sref=%d, backing_object(%d)=(%p)+0x%jx\n",
2786 atomic_load_int(&object->shadow_count),
2787 object->backing_object ? object->backing_object->ref_count : 0,
2788 object->backing_object, (uintmax_t)object->backing_object_offset);
2789
2790 if (!full)
2791 return;
2792
2793 db_indent += 2;
2794 count = 0;
2795 vm_page_iter_init(&pages, object);
2796 VM_RADIX_FOREACH(p, &pages) {
2797 if (count == 0)
2798 db_iprintf("memory:=");
2799 else if (count == 6) {
2800 db_printf("\n");
2801 db_iprintf(" ...");
2802 count = 0;
2803 } else
2804 db_printf(",");
2805 count++;
2806
2807 db_printf("(off=0x%jx,page=0x%jx)",
2808 (uintmax_t)p->pindex, (uintmax_t)VM_PAGE_TO_PHYS(p));
2809
2810 if (db_pager_quit)
2811 break;
2812 }
2813 if (count != 0)
2814 db_printf("\n");
2815 db_indent -= 2;
2816 }
2817
2818 /* XXX. */
2819 #undef count
2820
2821 /* XXX need this non-static entry for calling from vm_map_print. */
2822 void
vm_object_print(long addr,boolean_t have_addr,long count,char * modif)2823 vm_object_print(
2824 /* db_expr_t */ long addr,
2825 boolean_t have_addr,
2826 /* db_expr_t */ long count,
2827 char *modif)
2828 {
2829 vm_object_print_static(addr, have_addr, count, modif);
2830 }
2831
DB_SHOW_COMMAND_FLAGS(vmopag,vm_object_print_pages,DB_CMD_MEMSAFE)2832 DB_SHOW_COMMAND_FLAGS(vmopag, vm_object_print_pages, DB_CMD_MEMSAFE)
2833 {
2834 struct pctrie_iter pages;
2835 vm_object_t object;
2836 vm_page_t m, start_m;
2837 int rcount;
2838
2839 TAILQ_FOREACH(object, &vm_object_list, object_list) {
2840 db_printf("new object: %p\n", (void *)object);
2841 if (db_pager_quit)
2842 return;
2843 start_m = NULL;
2844 vm_page_iter_init(&pages, object);
2845 VM_RADIX_FOREACH(m, &pages) {
2846 if (start_m == NULL) {
2847 start_m = m;
2848 rcount = 0;
2849 } else if (start_m->pindex + rcount != m->pindex ||
2850 VM_PAGE_TO_PHYS(start_m) + ptoa(rcount) !=
2851 VM_PAGE_TO_PHYS(m)) {
2852 db_printf(" index(%ld)run(%d)pa(0x%lx)\n",
2853 (long)start_m->pindex, rcount,
2854 (long)VM_PAGE_TO_PHYS(start_m));
2855 if (db_pager_quit)
2856 return;
2857 start_m = m;
2858 rcount = 0;
2859 }
2860 rcount++;
2861 }
2862 if (start_m != NULL) {
2863 db_printf(" index(%ld)run(%d)pa(0x%lx)\n",
2864 (long)start_m->pindex, rcount,
2865 (long)VM_PAGE_TO_PHYS(start_m));
2866 if (db_pager_quit)
2867 return;
2868 }
2869 }
2870 }
2871 #endif /* DDB */
2872