4 * Copyright (c) 1991, 1993
5 * The Regents of the University of California. All rights reserved.
7 * This code is derived from software contributed to Berkeley by
8 * The Mach Operating System project at Carnegie-Mellon University.
10 * Redistribution and use in source and binary forms, with or without
11 * modification, are permitted provided that the following conditions
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. All advertising materials mentioning features or use of this software
19 * must display the following acknowledgement:
20 * This product includes software developed by the University of
21 * California, Berkeley and its contributors.
22 * 4. Neither the name of the University nor the names of its contributors
23 * may be used to endorse or promote products derived from this software
24 * without specific prior written permission.
26 * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
27 * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
28 * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
29 * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
30 * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
31 * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
32 * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
33 * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
34 * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
35 * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
38 * from: @(#)vm_object.c 8.5 (Berkeley) 3/22/94
41 * Copyright (c) 1987, 1990 Carnegie-Mellon University.
42 * All rights reserved.
44 * Authors: Avadis Tevanian, Jr., Michael Wayne Young
46 * Permission to use, copy, modify and distribute this software and
47 * its documentation is hereby granted, provided that both the copyright
48 * notice and this permission notice appear in all copies of the
49 * software, derivative works or modified versions, and any portions
50 * thereof, and that both notices appear in supporting documentation.
52 * CARNEGIE MELLON ALLOWS FREE USE OF THIS SOFTWARE IN ITS "AS IS"
53 * CONDITION. CARNEGIE MELLON DISCLAIMS ANY LIABILITY OF ANY KIND
54 * FOR ANY DAMAGES WHATSOEVER RESULTING FROM THE USE OF THIS SOFTWARE.
56 * Carnegie Mellon requests users of this software to return to
58 * Software Distribution Coordinator or Software.Distribution@CS.CMU.EDU
59 * School of Computer Science
60 * Carnegie Mellon University
61 * Pittsburgh PA 15213-3890
63 * any improvements or extensions that they make and grant Carnegie the
64 * rights to redistribute these changes.
66 * $FreeBSD: src/sys/vm/vm_object.c,v 1.171.2.8 2003/05/26 19:17:56 alc Exp $
70 * Virtual memory object module.
73 #include <sys/param.h>
74 #include <sys/systm.h>
75 #include <sys/proc.h> /* for curproc, pageproc */
76 #include <sys/thread.h>
77 #include <sys/vnode.h>
78 #include <sys/vmmeter.h>
80 #include <sys/mount.h>
81 #include <sys/kernel.h>
82 #include <sys/sysctl.h>
83 #include <sys/refcount.h>
86 #include <vm/vm_param.h>
88 #include <vm/vm_map.h>
89 #include <vm/vm_object.h>
90 #include <vm/vm_page.h>
91 #include <vm/vm_pageout.h>
92 #include <vm/vm_pager.h>
93 #include <vm/swap_pager.h>
94 #include <vm/vm_kern.h>
95 #include <vm/vm_extern.h>
96 #include <vm/vm_zone.h>
98 #define EASY_SCAN_FACTOR 8
100 static void vm_object_qcollapse(vm_object_t object);
101 static int vm_object_page_collect_flush(vm_object_t object, vm_page_t p,
103 static void vm_object_lock_init(vm_object_t);
104 static void vm_object_hold_wake(vm_object_t);
105 static void vm_object_hold_wait(vm_object_t);
109 * Virtual memory objects maintain the actual data
110 * associated with allocated virtual memory. A given
111 * page of memory exists within exactly one object.
113 * An object is only deallocated when all "references"
114 * are given up. Only one "reference" to a given
115 * region of an object should be writeable.
117 * Associated with each object is a list of all resident
118 * memory pages belonging to that object; this list is
119 * maintained by the "vm_page" module, and locked by the object's
122 * Each object also records a "pager" routine which is
123 * used to retrieve (and store) pages to the proper backing
124 * storage. In addition, objects may be backed by other
125 * objects from which they were virtual-copied.
127 * The only items within the object structure which are
128 * modified after time of creation are:
129 * reference count locked by object's lock
130 * pager routine locked by object's lock
134 struct object_q vm_object_list; /* locked by vmobj_token */
135 struct vm_object kernel_object;
137 static long vm_object_count; /* locked by vmobj_token */
138 extern int vm_pageout_page_count;
140 static long object_collapses;
141 static long object_bypasses;
142 static int next_index;
143 static vm_zone_t obj_zone;
144 static struct vm_zone obj_zone_store;
145 #define VM_OBJECTS_INIT 256
146 static struct vm_object vm_objects_init[VM_OBJECTS_INIT];
149 * Initialize a freshly allocated object
151 * Used only by vm_object_allocate() and zinitna().
156 _vm_object_allocate(objtype_t type, vm_pindex_t size, vm_object_t object)
160 RB_INIT(&object->rb_memq);
161 LIST_INIT(&object->shadow_head);
165 object->ref_count = 1;
166 object->hold_count = 0;
168 if ((object->type == OBJT_DEFAULT) || (object->type == OBJT_SWAP))
169 vm_object_set_flag(object, OBJ_ONEMAPPING);
170 object->paging_in_progress = 0;
171 object->resident_page_count = 0;
172 object->agg_pv_list_count = 0;
173 object->shadow_count = 0;
174 object->pg_color = next_index;
175 if ( size > (PQ_L2_SIZE / 3 + PQ_PRIME1))
176 incr = PQ_L2_SIZE / 3 + PQ_PRIME1;
179 next_index = (next_index + incr) & PQ_L2_MASK;
180 object->handle = NULL;
181 object->backing_object = NULL;
182 object->backing_object_offset = (vm_ooffset_t) 0;
184 object->generation++;
185 object->swblock_count = 0;
186 RB_INIT(&object->swblock_root);
187 vm_object_lock_init(object);
189 lwkt_gettoken(&vmobj_token);
190 TAILQ_INSERT_TAIL(&vm_object_list, object, object_list);
192 lwkt_reltoken(&vmobj_token);
196 * Initialize the VM objects module.
198 * Called from the low level boot code only.
203 TAILQ_INIT(&vm_object_list);
205 _vm_object_allocate(OBJT_DEFAULT, OFF_TO_IDX(KvaEnd),
208 obj_zone = &obj_zone_store;
209 zbootinit(obj_zone, "VM OBJECT", sizeof (struct vm_object),
210 vm_objects_init, VM_OBJECTS_INIT);
214 vm_object_init2(void)
216 zinitna(obj_zone, NULL, NULL, 0, 0, ZONE_PANICFAIL, 1);
220 * Allocate and return a new object of the specified type and size.
225 vm_object_allocate(objtype_t type, vm_pindex_t size)
229 result = (vm_object_t) zalloc(obj_zone);
231 _vm_object_allocate(type, size, result);
237 * Add an additional reference to a vm_object.
239 * Object passed by caller must be stable or caller must already
240 * hold vmobj_token to avoid races.
243 vm_object_reference(vm_object_t object)
245 lwkt_gettoken(&vmobj_token);
246 vm_object_reference_locked(object);
247 lwkt_reltoken(&vmobj_token);
251 vm_object_reference_locked(vm_object_t object)
254 ASSERT_LWKT_TOKEN_HELD(&vmobj_token);
256 if (object->type == OBJT_VNODE) {
257 vref(object->handle);
258 /* XXX what if the vnode is being destroyed? */
264 * Dereference an object and its underlying vnode.
266 * The caller must hold vmobj_token.
269 vm_object_vndeallocate(vm_object_t object)
271 struct vnode *vp = (struct vnode *) object->handle;
273 KASSERT(object->type == OBJT_VNODE,
274 ("vm_object_vndeallocate: not a vnode object"));
275 KASSERT(vp != NULL, ("vm_object_vndeallocate: missing vp"));
276 ASSERT_LWKT_TOKEN_HELD(&vmobj_token);
278 if (object->ref_count == 0) {
279 vprint("vm_object_vndeallocate", vp);
280 panic("vm_object_vndeallocate: bad object reference count");
285 if (object->ref_count == 0)
286 vclrflags(vp, VTEXT);
291 * Release a reference to the specified object, gained either through a
292 * vm_object_allocate or a vm_object_reference call. When all references
293 * are gone, storage associated with this object may be relinquished.
296 vm_object_deallocate(vm_object_t object)
298 lwkt_gettoken(&vmobj_token);
299 vm_object_deallocate_locked(object);
300 lwkt_reltoken(&vmobj_token);
304 vm_object_deallocate_locked(vm_object_t object)
308 ASSERT_LWKT_TOKEN_HELD(&vmobj_token);
310 while (object != NULL) {
311 if (object->type == OBJT_VNODE) {
312 vm_object_vndeallocate(object);
316 if (object->ref_count == 0) {
317 panic("vm_object_deallocate: object deallocated "
318 "too many times: %d", object->type);
320 if (object->ref_count > 2) {
326 * We currently need the vm_token from this point on, and
327 * we must recheck ref_count after acquiring it.
329 lwkt_gettoken(&vm_token);
331 if (object->ref_count > 2) {
333 lwkt_reltoken(&vm_token);
338 * Here on ref_count of one or two, which are special cases for
341 if ((object->ref_count == 2) && (object->shadow_count == 0)) {
342 vm_object_set_flag(object, OBJ_ONEMAPPING);
344 lwkt_reltoken(&vm_token);
347 if ((object->ref_count == 2) && (object->shadow_count == 1)) {
349 if ((object->handle == NULL) &&
350 (object->type == OBJT_DEFAULT ||
351 object->type == OBJT_SWAP)) {
354 robject = LIST_FIRST(&object->shadow_head);
355 KASSERT(robject != NULL,
356 ("vm_object_deallocate: ref_count: "
357 "%d, shadow_count: %d",
359 object->shadow_count));
361 if ((robject->handle == NULL) &&
362 (robject->type == OBJT_DEFAULT ||
363 robject->type == OBJT_SWAP)) {
365 robject->ref_count++;
368 robject->paging_in_progress ||
369 object->paging_in_progress
371 vm_object_pip_sleep(robject, "objde1");
372 vm_object_pip_sleep(object, "objde2");
375 if (robject->ref_count == 1) {
376 robject->ref_count--;
382 vm_object_collapse(object);
383 lwkt_reltoken(&vm_token);
387 lwkt_reltoken(&vm_token);
392 * Normal dereferencing path
395 if (object->ref_count != 0) {
396 lwkt_reltoken(&vm_token);
404 temp = object->backing_object;
406 LIST_REMOVE(object, shadow_list);
407 temp->shadow_count--;
409 object->backing_object = NULL;
411 lwkt_reltoken(&vm_token);
414 * Don't double-terminate, we could be in a termination
415 * recursion due to the terminate having to sync data
418 if ((object->flags & OBJ_DEAD) == 0)
419 vm_object_terminate(object);
425 * Destroy the specified object, freeing up related resources.
427 * The object must have zero references.
429 * The caller must be holding vmobj_token and properly interlock with
432 static int vm_object_terminate_callback(vm_page_t p, void *data);
435 vm_object_terminate(vm_object_t object)
438 * Make sure no one uses us. Once we set OBJ_DEAD we should be
439 * able to safely block.
441 KKASSERT((object->flags & OBJ_DEAD) == 0);
442 ASSERT_LWKT_TOKEN_HELD(&vmobj_token);
443 vm_object_set_flag(object, OBJ_DEAD);
446 * Wait for the pageout daemon to be done with the object
448 vm_object_pip_wait(object, "objtrm1");
450 KASSERT(!object->paging_in_progress,
451 ("vm_object_terminate: pageout in progress"));
454 * Clean and free the pages, as appropriate. All references to the
455 * object are gone, so we don't need to lock it.
457 if (object->type == OBJT_VNODE) {
461 * Clean pages and flush buffers.
463 vm_object_page_clean(object, 0, 0, OBJPC_SYNC);
465 vp = (struct vnode *) object->handle;
466 vinvalbuf(vp, V_SAVE, 0, 0);
470 * Wait for any I/O to complete, after which there had better not
471 * be any references left on the object.
473 vm_object_pip_wait(object, "objtrm2");
475 if (object->ref_count != 0) {
476 panic("vm_object_terminate: object with references, "
477 "ref_count=%d", object->ref_count);
481 * Now free any remaining pages. For internal objects, this also
482 * removes them from paging queues. Don't free wired pages, just
483 * remove them from the object.
485 lwkt_gettoken(&vm_token);
486 vm_page_rb_tree_RB_SCAN(&object->rb_memq, NULL,
487 vm_object_terminate_callback, NULL);
488 lwkt_reltoken(&vm_token);
491 * Let the pager know object is dead.
493 vm_pager_deallocate(object);
496 * Wait for the object hold count to hit zero
498 vm_object_hold_wait(object);
501 * Remove the object from the global object list.
503 * (we are holding vmobj_token)
505 TAILQ_REMOVE(&vm_object_list, object, object_list);
507 vm_object_dead_wakeup(object);
509 if (object->ref_count != 0) {
510 panic("vm_object_terminate2: object with references, "
511 "ref_count=%d", object->ref_count);
515 * Free the space for the object.
517 zfree(obj_zone, object);
521 * The caller must hold vm_token.
524 vm_object_terminate_callback(vm_page_t p, void *data __unused)
526 if (p->busy || (p->flags & PG_BUSY))
527 panic("vm_object_terminate: freeing busy page %p", p);
528 if (p->wire_count == 0) {
531 mycpu->gd_cnt.v_pfree++;
533 if (p->queue != PQ_NONE)
534 kprintf("vm_object_terminate: Warning: Encountered wired page %p on queue %d\n", p, p->queue);
543 * The object is dead but still has an object<->pager association. Sleep
544 * and return. The caller typically retests the association in a loop.
546 * Must be called with the vmobj_token held.
549 vm_object_dead_sleep(vm_object_t object, const char *wmesg)
551 ASSERT_LWKT_TOKEN_HELD(&vmobj_token);
552 if (object->handle) {
553 vm_object_set_flag(object, OBJ_DEADWNT);
554 tsleep(object, 0, wmesg, 0);
555 /* object may be invalid after this point */
560 * Wakeup anyone waiting for the object<->pager disassociation on
563 * Must be called with the vmobj_token held.
566 vm_object_dead_wakeup(vm_object_t object)
568 ASSERT_LWKT_TOKEN_HELD(&vmobj_token);
569 if (object->flags & OBJ_DEADWNT) {
570 vm_object_clear_flag(object, OBJ_DEADWNT);
576 * Clean all dirty pages in the specified range of object. Leaves page
577 * on whatever queue it is currently on. If NOSYNC is set then do not
578 * write out pages with PG_NOSYNC set (originally comes from MAP_NOSYNC),
579 * leaving the object dirty.
581 * When stuffing pages asynchronously, allow clustering. XXX we need a
582 * synchronous clustering mode implementation.
584 * Odd semantics: if start == end, we clean everything.
586 * The object must be locked? XXX
588 static int vm_object_page_clean_pass1(struct vm_page *p, void *data);
589 static int vm_object_page_clean_pass2(struct vm_page *p, void *data);
592 vm_object_page_clean(vm_object_t object, vm_pindex_t start, vm_pindex_t end,
595 struct rb_vm_page_scan_info info;
601 lwkt_gettoken(&vm_token);
602 if (object->type != OBJT_VNODE ||
603 (object->flags & OBJ_MIGHTBEDIRTY) == 0) {
604 lwkt_reltoken(&vm_token);
608 pagerflags = (flags & (OBJPC_SYNC | OBJPC_INVAL)) ?
609 VM_PAGER_PUT_SYNC : VM_PAGER_CLUSTER_OK;
610 pagerflags |= (flags & OBJPC_INVAL) ? VM_PAGER_PUT_INVAL : 0;
615 * Interlock other major object operations. This allows us to
616 * temporarily clear OBJ_WRITEABLE and OBJ_MIGHTBEDIRTY.
619 vm_object_set_flag(object, OBJ_CLEANING);
622 * Handle 'entire object' case
624 info.start_pindex = start;
626 info.end_pindex = object->size - 1;
628 info.end_pindex = end - 1;
630 wholescan = (start == 0 && info.end_pindex == object->size - 1);
632 info.pagerflags = pagerflags;
633 info.object = object;
636 * If cleaning the entire object do a pass to mark the pages read-only.
637 * If everything worked out ok, clear OBJ_WRITEABLE and
642 vm_page_rb_tree_RB_SCAN(&object->rb_memq, rb_vm_page_scancmp,
643 vm_object_page_clean_pass1, &info);
644 if (info.error == 0) {
645 vm_object_clear_flag(object,
646 OBJ_WRITEABLE|OBJ_MIGHTBEDIRTY);
647 if (object->type == OBJT_VNODE &&
648 (vp = (struct vnode *)object->handle) != NULL) {
649 if (vp->v_flag & VOBJDIRTY)
650 vclrflags(vp, VOBJDIRTY);
656 * Do a pass to clean all the dirty pages we find.
660 curgeneration = object->generation;
661 vm_page_rb_tree_RB_SCAN(&object->rb_memq, rb_vm_page_scancmp,
662 vm_object_page_clean_pass2, &info);
663 } while (info.error || curgeneration != object->generation);
665 vm_object_clear_flag(object, OBJ_CLEANING);
667 lwkt_reltoken(&vm_token);
671 * The caller must hold vm_token.
675 vm_object_page_clean_pass1(struct vm_page *p, void *data)
677 struct rb_vm_page_scan_info *info = data;
679 vm_page_flag_set(p, PG_CLEANCHK);
680 if ((info->limit & OBJPC_NOSYNC) && (p->flags & PG_NOSYNC))
683 vm_page_protect(p, VM_PROT_READ); /* must not block */
688 * The caller must hold vm_token.
692 vm_object_page_clean_pass2(struct vm_page *p, void *data)
694 struct rb_vm_page_scan_info *info = data;
698 * Do not mess with pages that were inserted after we started
701 if ((p->flags & PG_CLEANCHK) == 0)
705 * Before wasting time traversing the pmaps, check for trivial
706 * cases where the page cannot be dirty.
708 if (p->valid == 0 || (p->queue - p->pc) == PQ_CACHE) {
709 KKASSERT((p->dirty & p->valid) == 0);
714 * Check whether the page is dirty or not. The page has been set
715 * to be read-only so the check will not race a user dirtying the
718 vm_page_test_dirty(p);
719 if ((p->dirty & p->valid) == 0) {
720 vm_page_flag_clear(p, PG_CLEANCHK);
725 * If we have been asked to skip nosync pages and this is a
726 * nosync page, skip it. Note that the object flags were
727 * not cleared in this case (because pass1 will have returned an
728 * error), so we do not have to set them.
730 if ((info->limit & OBJPC_NOSYNC) && (p->flags & PG_NOSYNC)) {
731 vm_page_flag_clear(p, PG_CLEANCHK);
736 * Flush as many pages as we can. PG_CLEANCHK will be cleared on
737 * the pages that get successfully flushed. Set info->error if
738 * we raced an object modification.
740 n = vm_object_page_collect_flush(info->object, p, info->pagerflags);
747 * Collect the specified page and nearby pages and flush them out.
748 * The number of pages flushed is returned.
750 * The caller must hold vm_token.
753 vm_object_page_collect_flush(vm_object_t object, vm_page_t p, int pagerflags)
762 vm_page_t maf[vm_pageout_page_count];
763 vm_page_t mab[vm_pageout_page_count];
764 vm_page_t ma[vm_pageout_page_count];
766 curgeneration = object->generation;
769 while (vm_page_sleep_busy(p, TRUE, "vpcwai")) {
770 if (object->generation != curgeneration) {
774 KKASSERT(p->object == object && p->pindex == pi);
777 for(i = 1; i < vm_pageout_page_count; i++) {
780 if ((tp = vm_page_lookup(object, pi + i)) != NULL) {
781 if ((tp->flags & PG_BUSY) ||
782 ((pagerflags & VM_PAGER_IGNORE_CLEANCHK) == 0 &&
783 (tp->flags & PG_CLEANCHK) == 0) ||
786 if((tp->queue - tp->pc) == PQ_CACHE) {
787 vm_page_flag_clear(tp, PG_CLEANCHK);
790 vm_page_test_dirty(tp);
791 if ((tp->dirty & tp->valid) == 0) {
792 vm_page_flag_clear(tp, PG_CLEANCHK);
803 chkb = vm_pageout_page_count - maxf;
805 for(i = 1; i < chkb;i++) {
808 if ((tp = vm_page_lookup(object, pi - i)) != NULL) {
809 if ((tp->flags & PG_BUSY) ||
810 ((pagerflags & VM_PAGER_IGNORE_CLEANCHK) == 0 &&
811 (tp->flags & PG_CLEANCHK) == 0) ||
814 if((tp->queue - tp->pc) == PQ_CACHE) {
815 vm_page_flag_clear(tp, PG_CLEANCHK);
818 vm_page_test_dirty(tp);
819 if ((tp->dirty & tp->valid) == 0) {
820 vm_page_flag_clear(tp, PG_CLEANCHK);
831 for(i = 0; i < maxb; i++) {
832 int index = (maxb - i) - 1;
834 vm_page_flag_clear(ma[index], PG_CLEANCHK);
836 vm_page_flag_clear(p, PG_CLEANCHK);
838 for(i = 0; i < maxf; i++) {
839 int index = (maxb + i) + 1;
841 vm_page_flag_clear(ma[index], PG_CLEANCHK);
843 runlen = maxb + maxf + 1;
845 vm_pageout_flush(ma, runlen, pagerflags);
846 for (i = 0; i < runlen; i++) {
847 if (ma[i]->valid & ma[i]->dirty) {
848 vm_page_protect(ma[i], VM_PROT_READ);
849 vm_page_flag_set(ma[i], PG_CLEANCHK);
852 * maxf will end up being the actual number of pages
853 * we wrote out contiguously, non-inclusive of the
854 * first page. We do not count look-behind pages.
856 if (i >= maxb + 1 && (maxf > i - maxb - 1))
864 * Same as vm_object_pmap_copy, except range checking really
865 * works, and is meant for small sections of an object.
867 * This code protects resident pages by making them read-only
868 * and is typically called on a fork or split when a page
869 * is converted to copy-on-write.
871 * NOTE: If the page is already at VM_PROT_NONE, calling
872 * vm_page_protect will have no effect.
875 vm_object_pmap_copy_1(vm_object_t object, vm_pindex_t start, vm_pindex_t end)
880 if (object == NULL || (object->flags & OBJ_WRITEABLE) == 0)
884 * spl protection needed to prevent races between the lookup,
885 * an interrupt unbusy/free, and our protect call.
888 lwkt_gettoken(&vm_token);
889 for (idx = start; idx < end; idx++) {
890 p = vm_page_lookup(object, idx);
893 vm_page_protect(p, VM_PROT_READ);
895 lwkt_reltoken(&vm_token);
900 * Removes all physical pages in the specified object range from all
903 * The object must *not* be locked.
906 static int vm_object_pmap_remove_callback(vm_page_t p, void *data);
909 vm_object_pmap_remove(vm_object_t object, vm_pindex_t start, vm_pindex_t end)
911 struct rb_vm_page_scan_info info;
915 info.start_pindex = start;
916 info.end_pindex = end - 1;
919 lwkt_gettoken(&vm_token);
920 vm_page_rb_tree_RB_SCAN(&object->rb_memq, rb_vm_page_scancmp,
921 vm_object_pmap_remove_callback, &info);
922 if (start == 0 && end == object->size)
923 vm_object_clear_flag(object, OBJ_WRITEABLE);
924 lwkt_reltoken(&vm_token);
929 * The caller must hold vm_token.
932 vm_object_pmap_remove_callback(vm_page_t p, void *data __unused)
934 vm_page_protect(p, VM_PROT_NONE);
939 * Implements the madvise function at the object/page level.
941 * MADV_WILLNEED (any object)
943 * Activate the specified pages if they are resident.
945 * MADV_DONTNEED (any object)
947 * Deactivate the specified pages if they are resident.
949 * MADV_FREE (OBJT_DEFAULT/OBJT_SWAP objects, OBJ_ONEMAPPING only)
951 * Deactivate and clean the specified pages if they are
952 * resident. This permits the process to reuse the pages
953 * without faulting or the kernel to reclaim the pages
959 vm_object_madvise(vm_object_t object, vm_pindex_t pindex, int count, int advise)
961 vm_pindex_t end, tpindex;
968 end = pindex + count;
970 lwkt_gettoken(&vm_token);
973 * Locate and adjust resident pages
975 for (; pindex < end; pindex += 1) {
981 * MADV_FREE only operates on OBJT_DEFAULT or OBJT_SWAP pages
982 * and those pages must be OBJ_ONEMAPPING.
984 if (advise == MADV_FREE) {
985 if ((tobject->type != OBJT_DEFAULT &&
986 tobject->type != OBJT_SWAP) ||
987 (tobject->flags & OBJ_ONEMAPPING) == 0) {
993 * spl protection is required to avoid a race between the
994 * lookup, an interrupt unbusy/free, and our busy check.
998 m = vm_page_lookup(tobject, tpindex);
1002 * There may be swap even if there is no backing page
1004 if (advise == MADV_FREE && tobject->type == OBJT_SWAP)
1005 swap_pager_freespace(tobject, tpindex, 1);
1011 if (tobject->backing_object == NULL)
1013 tpindex += OFF_TO_IDX(tobject->backing_object_offset);
1014 tobject = tobject->backing_object;
1019 * If the page is busy or not in a normal active state,
1020 * we skip it. If the page is not managed there are no
1021 * page queues to mess with. Things can break if we mess
1022 * with pages in any of the below states.
1027 (m->flags & PG_UNMANAGED) ||
1028 m->valid != VM_PAGE_BITS_ALL
1034 if (vm_page_sleep_busy(m, TRUE, "madvpo")) {
1042 * Theoretically once a page is known not to be busy, an
1043 * interrupt cannot come along and rip it out from under us.
1046 if (advise == MADV_WILLNEED) {
1047 vm_page_activate(m);
1048 } else if (advise == MADV_DONTNEED) {
1049 vm_page_dontneed(m);
1050 } else if (advise == MADV_FREE) {
1052 * Mark the page clean. This will allow the page
1053 * to be freed up by the system. However, such pages
1054 * are often reused quickly by malloc()/free()
1055 * so we do not do anything that would cause
1056 * a page fault if we can help it.
1058 * Specifically, we do not try to actually free
1059 * the page now nor do we try to put it in the
1060 * cache (which would cause a page fault on reuse).
1062 * But we do make the page is freeable as we
1063 * can without actually taking the step of unmapping
1066 pmap_clear_modify(m);
1069 vm_page_dontneed(m);
1070 if (tobject->type == OBJT_SWAP)
1071 swap_pager_freespace(tobject, tpindex, 1);
1075 lwkt_reltoken(&vm_token);
1079 * Create a new object which is backed by the specified existing object
1080 * range. The source object reference is deallocated.
1082 * The new object and offset into that object are returned in the source
1085 * No other requirements.
1088 vm_object_shadow(vm_object_t *object, vm_ooffset_t *offset, vm_size_t length)
1096 * Don't create the new object if the old object isn't shared.
1098 lwkt_gettoken(&vm_token);
1100 if (source != NULL &&
1101 source->ref_count == 1 &&
1102 source->handle == NULL &&
1103 (source->type == OBJT_DEFAULT ||
1104 source->type == OBJT_SWAP)) {
1105 lwkt_reltoken(&vm_token);
1110 * Allocate a new object with the given length
1113 if ((result = vm_object_allocate(OBJT_DEFAULT, length)) == NULL)
1114 panic("vm_object_shadow: no object for shadowing");
1117 * The new object shadows the source object, adding a reference to it.
1118 * Our caller changes his reference to point to the new object,
1119 * removing a reference to the source object. Net result: no change
1120 * of reference count.
1122 * Try to optimize the result object's page color when shadowing
1123 * in order to maintain page coloring consistency in the combined
1126 result->backing_object = source;
1128 LIST_INSERT_HEAD(&source->shadow_head, result, shadow_list);
1129 source->shadow_count++;
1130 source->generation++;
1131 result->pg_color = (source->pg_color + OFF_TO_IDX(*offset)) & PQ_L2_MASK;
1135 * Store the offset into the source object, and fix up the offset into
1138 result->backing_object_offset = *offset;
1139 lwkt_reltoken(&vm_token);
1142 * Return the new things
1148 #define OBSC_TEST_ALL_SHADOWED 0x0001
1149 #define OBSC_COLLAPSE_NOWAIT 0x0002
1150 #define OBSC_COLLAPSE_WAIT 0x0004
1152 static int vm_object_backing_scan_callback(vm_page_t p, void *data);
1155 * The caller must hold vm_token.
1158 vm_object_backing_scan(vm_object_t object, int op)
1160 struct rb_vm_page_scan_info info;
1161 vm_object_t backing_object;
1165 backing_object = object->backing_object;
1166 info.backing_offset_index = OFF_TO_IDX(object->backing_object_offset);
1169 * Initial conditions
1172 if (op & OBSC_TEST_ALL_SHADOWED) {
1174 * We do not want to have to test for the existence of
1175 * swap pages in the backing object. XXX but with the
1176 * new swapper this would be pretty easy to do.
1178 * XXX what about anonymous MAP_SHARED memory that hasn't
1179 * been ZFOD faulted yet? If we do not test for this, the
1180 * shadow test may succeed! XXX
1182 if (backing_object->type != OBJT_DEFAULT) {
1187 if (op & OBSC_COLLAPSE_WAIT) {
1188 KKASSERT((backing_object->flags & OBJ_DEAD) == 0);
1189 vm_object_set_flag(backing_object, OBJ_DEAD);
1193 * Our scan. We have to retry if a negative error code is returned,
1194 * otherwise 0 or 1 will be returned in info.error. 0 Indicates that
1195 * the scan had to be stopped because the parent does not completely
1198 info.object = object;
1199 info.backing_object = backing_object;
1203 vm_page_rb_tree_RB_SCAN(&backing_object->rb_memq, NULL,
1204 vm_object_backing_scan_callback,
1206 } while (info.error < 0);
1212 * The caller must hold vm_token.
1215 vm_object_backing_scan_callback(vm_page_t p, void *data)
1217 struct rb_vm_page_scan_info *info = data;
1218 vm_object_t backing_object;
1220 vm_pindex_t new_pindex;
1221 vm_pindex_t backing_offset_index;
1224 new_pindex = p->pindex - info->backing_offset_index;
1226 object = info->object;
1227 backing_object = info->backing_object;
1228 backing_offset_index = info->backing_offset_index;
1230 if (op & OBSC_TEST_ALL_SHADOWED) {
1234 * Ignore pages outside the parent object's range
1235 * and outside the parent object's mapping of the
1238 * note that we do not busy the backing object's
1242 p->pindex < backing_offset_index ||
1243 new_pindex >= object->size
1249 * See if the parent has the page or if the parent's
1250 * object pager has the page. If the parent has the
1251 * page but the page is not valid, the parent's
1252 * object pager must have the page.
1254 * If this fails, the parent does not completely shadow
1255 * the object and we might as well give up now.
1258 pp = vm_page_lookup(object, new_pindex);
1259 if ((pp == NULL || pp->valid == 0) &&
1260 !vm_pager_has_page(object, new_pindex)
1262 info->error = 0; /* problemo */
1263 return(-1); /* stop the scan */
1268 * Check for busy page
1271 if (op & (OBSC_COLLAPSE_WAIT | OBSC_COLLAPSE_NOWAIT)) {
1274 if (op & OBSC_COLLAPSE_NOWAIT) {
1276 (p->flags & PG_BUSY) ||
1284 } else if (op & OBSC_COLLAPSE_WAIT) {
1285 if (vm_page_sleep_busy(p, TRUE, "vmocol")) {
1287 * If we slept, anything could have
1288 * happened. Ask that the scan be restarted.
1290 * Since the object is marked dead, the
1291 * backing offset should not have changed.
1304 p->object == backing_object,
1305 ("vm_object_qcollapse(): object mismatch")
1309 * Destroy any associated swap
1311 if (backing_object->type == OBJT_SWAP)
1312 swap_pager_freespace(backing_object, p->pindex, 1);
1315 p->pindex < backing_offset_index ||
1316 new_pindex >= object->size
1319 * Page is out of the parent object's range, we
1320 * can simply destroy it.
1322 vm_page_protect(p, VM_PROT_NONE);
1327 pp = vm_page_lookup(object, new_pindex);
1328 if (pp != NULL || vm_pager_has_page(object, new_pindex)) {
1330 * page already exists in parent OR swap exists
1331 * for this location in the parent. Destroy
1332 * the original page from the backing object.
1334 * Leave the parent's page alone
1336 vm_page_protect(p, VM_PROT_NONE);
1342 * Page does not exist in parent, rename the
1343 * page from the backing object to the main object.
1345 * If the page was mapped to a process, it can remain
1346 * mapped through the rename.
1348 if ((p->queue - p->pc) == PQ_CACHE)
1349 vm_page_deactivate(p);
1351 vm_page_rename(p, object, new_pindex);
1352 /* page automatically made dirty by rename */
1358 * This version of collapse allows the operation to occur earlier and
1359 * when paging_in_progress is true for an object... This is not a complete
1360 * operation, but should plug 99.9% of the rest of the leaks.
1362 * The caller must hold vm_token and vmobj_token.
1363 * (only called from vm_object_collapse)
1366 vm_object_qcollapse(vm_object_t object)
1368 vm_object_t backing_object = object->backing_object;
1370 if (backing_object->ref_count != 1)
1373 backing_object->ref_count += 2;
1375 vm_object_backing_scan(object, OBSC_COLLAPSE_NOWAIT);
1377 backing_object->ref_count -= 2;
1381 * Collapse an object with the object backing it. Pages in the backing
1382 * object are moved into the parent, and the backing object is deallocated.
1385 vm_object_collapse(vm_object_t object)
1387 ASSERT_LWKT_TOKEN_HELD(&vm_token);
1388 ASSERT_LWKT_TOKEN_HELD(&vmobj_token);
1391 vm_object_t backing_object;
1394 * Verify that the conditions are right for collapse:
1396 * The object exists and the backing object exists.
1401 if ((backing_object = object->backing_object) == NULL)
1405 * we check the backing object first, because it is most likely
1408 if (backing_object->handle != NULL ||
1409 (backing_object->type != OBJT_DEFAULT &&
1410 backing_object->type != OBJT_SWAP) ||
1411 (backing_object->flags & OBJ_DEAD) ||
1412 object->handle != NULL ||
1413 (object->type != OBJT_DEFAULT &&
1414 object->type != OBJT_SWAP) ||
1415 (object->flags & OBJ_DEAD)) {
1420 object->paging_in_progress != 0 ||
1421 backing_object->paging_in_progress != 0
1423 vm_object_qcollapse(object);
1428 * We know that we can either collapse the backing object (if
1429 * the parent is the only reference to it) or (perhaps) have
1430 * the parent bypass the object if the parent happens to shadow
1431 * all the resident pages in the entire backing object.
1433 * This is ignoring pager-backed pages such as swap pages.
1434 * vm_object_backing_scan fails the shadowing test in this
1438 if (backing_object->ref_count == 1) {
1440 * If there is exactly one reference to the backing
1441 * object, we can collapse it into the parent.
1443 vm_object_backing_scan(object, OBSC_COLLAPSE_WAIT);
1446 * Move the pager from backing_object to object.
1449 if (backing_object->type == OBJT_SWAP) {
1450 vm_object_pip_add(backing_object, 1);
1453 * scrap the paging_offset junk and do a
1454 * discrete copy. This also removes major
1455 * assumptions about how the swap-pager
1456 * works from where it doesn't belong. The
1457 * new swapper is able to optimize the
1458 * destroy-source case.
1461 vm_object_pip_add(object, 1);
1465 OFF_TO_IDX(object->backing_object_offset), TRUE);
1466 vm_object_pip_wakeup(object);
1468 vm_object_pip_wakeup(backing_object);
1471 * Object now shadows whatever backing_object did.
1472 * Note that the reference to
1473 * backing_object->backing_object moves from within
1474 * backing_object to within object.
1477 LIST_REMOVE(object, shadow_list);
1478 object->backing_object->shadow_count--;
1479 object->backing_object->generation++;
1480 if (backing_object->backing_object) {
1481 LIST_REMOVE(backing_object, shadow_list);
1482 backing_object->backing_object->shadow_count--;
1483 backing_object->backing_object->generation++;
1485 object->backing_object = backing_object->backing_object;
1486 if (object->backing_object) {
1488 &object->backing_object->shadow_head,
1492 object->backing_object->shadow_count++;
1493 object->backing_object->generation++;
1496 object->backing_object_offset +=
1497 backing_object->backing_object_offset;
1500 * Discard backing_object.
1502 * Since the backing object has no pages, no pager left,
1503 * and no object references within it, all that is
1504 * necessary is to dispose of it.
1507 KASSERT(backing_object->ref_count == 1,
1508 ("backing_object %p was somehow "
1509 "re-referenced during collapse!",
1511 KASSERT(RB_EMPTY(&backing_object->rb_memq),
1512 ("backing_object %p somehow has left "
1513 "over pages during collapse!",
1517 * Wait for hold count to hit zero
1519 vm_object_hold_wait(backing_object);
1521 /* (we are holding vmobj_token) */
1522 TAILQ_REMOVE(&vm_object_list, backing_object,
1526 zfree(obj_zone, backing_object);
1530 vm_object_t new_backing_object;
1533 * If we do not entirely shadow the backing object,
1534 * there is nothing we can do so we give up.
1537 if (vm_object_backing_scan(object, OBSC_TEST_ALL_SHADOWED) == 0) {
1542 * Make the parent shadow the next object in the
1543 * chain. Deallocating backing_object will not remove
1544 * it, since its reference count is at least 2.
1547 LIST_REMOVE(object, shadow_list);
1548 backing_object->shadow_count--;
1549 backing_object->generation++;
1551 new_backing_object = backing_object->backing_object;
1552 if ((object->backing_object = new_backing_object) != NULL) {
1553 vm_object_reference(new_backing_object);
1555 &new_backing_object->shadow_head,
1559 new_backing_object->shadow_count++;
1560 new_backing_object->generation++;
1561 object->backing_object_offset +=
1562 backing_object->backing_object_offset;
1566 * Drop the reference count on backing_object. Since
1567 * its ref_count was at least 2, it will not vanish;
1568 * so we don't need to call vm_object_deallocate, but
1571 vm_object_deallocate_locked(backing_object);
1576 * Try again with this object's new backing object.
1582 * Removes all physical pages in the specified object range from the
1583 * object's list of pages.
1587 static int vm_object_page_remove_callback(vm_page_t p, void *data);
1590 vm_object_page_remove(vm_object_t object, vm_pindex_t start, vm_pindex_t end,
1591 boolean_t clean_only)
1593 struct rb_vm_page_scan_info info;
1597 * Degenerate cases and assertions
1599 lwkt_gettoken(&vm_token);
1600 if (object == NULL ||
1601 (object->resident_page_count == 0 && object->swblock_count == 0)) {
1602 lwkt_reltoken(&vm_token);
1605 KASSERT(object->type != OBJT_PHYS,
1606 ("attempt to remove pages from a physical object"));
1609 * Indicate that paging is occuring on the object
1612 vm_object_pip_add(object, 1);
1615 * Figure out the actual removal range and whether we are removing
1616 * the entire contents of the object or not. If removing the entire
1617 * contents, be sure to get all pages, even those that might be
1618 * beyond the end of the object.
1620 info.start_pindex = start;
1622 info.end_pindex = (vm_pindex_t)-1;
1624 info.end_pindex = end - 1;
1625 info.limit = clean_only;
1626 all = (start == 0 && info.end_pindex >= object->size - 1);
1629 * Loop until we are sure we have gotten them all.
1633 vm_page_rb_tree_RB_SCAN(&object->rb_memq, rb_vm_page_scancmp,
1634 vm_object_page_remove_callback, &info);
1635 } while (info.error);
1638 * Remove any related swap if throwing away pages, or for
1639 * non-swap objects (the swap is a clean copy in that case).
1641 if (object->type != OBJT_SWAP || clean_only == FALSE) {
1643 swap_pager_freespace_all(object);
1645 swap_pager_freespace(object, info.start_pindex,
1646 info.end_pindex - info.start_pindex + 1);
1652 vm_object_pip_wakeup(object);
1654 lwkt_reltoken(&vm_token);
1658 * The caller must hold vm_token.
1661 vm_object_page_remove_callback(vm_page_t p, void *data)
1663 struct rb_vm_page_scan_info *info = data;
1666 * Wired pages cannot be destroyed, but they can be invalidated
1667 * and we do so if clean_only (limit) is not set.
1669 * WARNING! The page may be wired due to being part of a buffer
1670 * cache buffer, and the buffer might be marked B_CACHE.
1671 * This is fine as part of a truncation but VFSs must be
1672 * sure to fix the buffer up when re-extending the file.
1674 if (p->wire_count != 0) {
1675 vm_page_protect(p, VM_PROT_NONE);
1676 if (info->limit == 0)
1682 * The busy flags are only cleared at
1683 * interrupt -- minimize the spl transitions
1686 if (vm_page_sleep_busy(p, TRUE, "vmopar")) {
1692 * limit is our clean_only flag. If set and the page is dirty, do
1693 * not free it. If set and the page is being held by someone, do
1696 if (info->limit && p->valid) {
1697 vm_page_test_dirty(p);
1698 if (p->valid & p->dirty)
1708 vm_page_protect(p, VM_PROT_NONE);
1714 * Coalesces two objects backing up adjoining regions of memory into a
1717 * returns TRUE if objects were combined.
1719 * NOTE: Only works at the moment if the second object is NULL -
1720 * if it's not, which object do we lock first?
1723 * prev_object First object to coalesce
1724 * prev_offset Offset into prev_object
1725 * next_object Second object into coalesce
1726 * next_offset Offset into next_object
1728 * prev_size Size of reference to prev_object
1729 * next_size Size of reference to next_object
1731 * The object must not be locked.
1732 * The caller must hold vm_token and vmobj_token.
1735 vm_object_coalesce(vm_object_t prev_object, vm_pindex_t prev_pindex,
1736 vm_size_t prev_size, vm_size_t next_size)
1738 vm_pindex_t next_pindex;
1740 ASSERT_LWKT_TOKEN_HELD(&vm_token);
1741 ASSERT_LWKT_TOKEN_HELD(&vmobj_token);
1743 if (prev_object == NULL) {
1747 if (prev_object->type != OBJT_DEFAULT &&
1748 prev_object->type != OBJT_SWAP) {
1753 * Try to collapse the object first
1755 vm_object_collapse(prev_object);
1758 * Can't coalesce if: . more than one reference . paged out . shadows
1759 * another object . has a copy elsewhere (any of which mean that the
1760 * pages not mapped to prev_entry may be in use anyway)
1763 if (prev_object->backing_object != NULL) {
1767 prev_size >>= PAGE_SHIFT;
1768 next_size >>= PAGE_SHIFT;
1769 next_pindex = prev_pindex + prev_size;
1771 if ((prev_object->ref_count > 1) &&
1772 (prev_object->size != next_pindex)) {
1777 * Remove any pages that may still be in the object from a previous
1780 if (next_pindex < prev_object->size) {
1781 vm_object_page_remove(prev_object,
1783 next_pindex + next_size, FALSE);
1784 if (prev_object->type == OBJT_SWAP)
1785 swap_pager_freespace(prev_object,
1786 next_pindex, next_size);
1790 * Extend the object if necessary.
1792 if (next_pindex + next_size > prev_object->size)
1793 prev_object->size = next_pindex + next_size;
1799 * Make the object writable and flag is being possibly dirty.
1804 vm_object_set_writeable_dirty(vm_object_t object)
1808 lwkt_gettoken(&vm_token);
1809 vm_object_set_flag(object, OBJ_WRITEABLE|OBJ_MIGHTBEDIRTY);
1810 if (object->type == OBJT_VNODE &&
1811 (vp = (struct vnode *)object->handle) != NULL) {
1812 if ((vp->v_flag & VOBJDIRTY) == 0) {
1813 vsetflags(vp, VOBJDIRTY);
1816 lwkt_reltoken(&vm_token);
1820 vm_object_lock_init(vm_object_t obj)
1822 #if defined(DEBUG_LOCKS)
1825 obj->debug_hold_bitmap = 0;
1826 obj->debug_hold_ovfl = 0;
1827 for (i = 0; i < VMOBJ_DEBUG_ARRAY_SIZE; i++) {
1828 obj->debug_hold_thrs[i] = NULL;
1834 vm_object_lock(vm_object_t obj)
1836 lwkt_getpooltoken(obj);
1840 vm_object_unlock(vm_object_t obj)
1842 lwkt_relpooltoken(obj);
1846 vm_object_hold(vm_object_t obj)
1848 vm_object_lock(obj);
1850 refcount_acquire(&obj->hold_count);
1852 #if defined(DEBUG_LOCKS)
1855 i = ffs(~obj->debug_hold_bitmap) - 1;
1857 kprintf("vm_object hold count > VMOBJ_DEBUG_ARRAY_SIZE");
1858 obj->debug_hold_ovfl = 1;
1861 obj->debug_hold_bitmap |= (1 << i);
1862 obj->debug_hold_thrs[i] = curthread;
1867 vm_object_drop(vm_object_t obj)
1871 #if defined(DEBUG_LOCKS)
1875 for (i = 0; i < VMOBJ_DEBUG_ARRAY_SIZE; i++) {
1876 if ((obj->debug_hold_bitmap & (1 << i)) &&
1877 (obj->debug_hold_thrs[i] == curthread)) {
1878 obj->debug_hold_bitmap &= ~(1 << i);
1879 obj->debug_hold_thrs[i] = NULL;
1885 if (found == 0 && obj->debug_hold_ovfl == 0)
1886 panic("vm_object: attempt to drop hold on non-self-held obj");
1889 rc = refcount_release(&obj->hold_count);
1890 vm_object_unlock(obj);
1893 vm_object_hold_wake(obj);
1897 vm_object_hold_wake(vm_object_t obj)
1903 vm_object_hold_wait(vm_object_t obj)
1905 vm_object_lock(obj);
1907 #if defined(DEBUG_LOCKS)
1910 for (i = 0; i < VMOBJ_DEBUG_ARRAY_SIZE; i++) {
1911 if ((obj->debug_hold_bitmap & (1 << i)) &&
1912 (obj->debug_hold_thrs[i] == curthread))
1913 panic("vm_object: self-hold in terminate or collapse");
1917 while (obj->hold_count)
1918 tsleep(obj, 0, "vmobjhld", 0);
1920 vm_object_unlock(obj);
1923 #include "opt_ddb.h"
1925 #include <sys/kernel.h>
1927 #include <sys/cons.h>
1929 #include <ddb/ddb.h>
1931 static int _vm_object_in_map (vm_map_t map, vm_object_t object,
1932 vm_map_entry_t entry);
1933 static int vm_object_in_map (vm_object_t object);
1936 * The caller must hold vm_token.
1939 _vm_object_in_map(vm_map_t map, vm_object_t object, vm_map_entry_t entry)
1942 vm_map_entry_t tmpe;
1949 tmpe = map->header.next;
1950 entcount = map->nentries;
1951 while (entcount-- && (tmpe != &map->header)) {
1952 if( _vm_object_in_map(map, object, tmpe)) {
1959 switch(entry->maptype) {
1960 case VM_MAPTYPE_SUBMAP:
1961 tmpm = entry->object.sub_map;
1962 tmpe = tmpm->header.next;
1963 entcount = tmpm->nentries;
1964 while (entcount-- && tmpe != &tmpm->header) {
1965 if( _vm_object_in_map(tmpm, object, tmpe)) {
1971 case VM_MAPTYPE_NORMAL:
1972 case VM_MAPTYPE_VPAGETABLE:
1973 obj = entry->object.vm_object;
1977 obj = obj->backing_object;
1986 static int vm_object_in_map_callback(struct proc *p, void *data);
1988 struct vm_object_in_map_info {
1997 vm_object_in_map(vm_object_t object)
1999 struct vm_object_in_map_info info;
2002 info.object = object;
2004 allproc_scan(vm_object_in_map_callback, &info);
2007 if( _vm_object_in_map(&kernel_map, object, 0))
2009 if( _vm_object_in_map(&pager_map, object, 0))
2011 if( _vm_object_in_map(&buffer_map, object, 0))
2020 vm_object_in_map_callback(struct proc *p, void *data)
2022 struct vm_object_in_map_info *info = data;
2025 if (_vm_object_in_map(&p->p_vmspace->vm_map, info->object, 0)) {
2033 DB_SHOW_COMMAND(vmochk, vm_object_check)
2038 * make sure that internal objs are in a map somewhere
2039 * and none have zero ref counts.
2041 for (object = TAILQ_FIRST(&vm_object_list);
2043 object = TAILQ_NEXT(object, object_list)) {
2044 if (object->type == OBJT_MARKER)
2046 if (object->handle == NULL &&
2047 (object->type == OBJT_DEFAULT || object->type == OBJT_SWAP)) {
2048 if (object->ref_count == 0) {
2049 db_printf("vmochk: internal obj has zero ref count: %ld\n",
2050 (long)object->size);
2052 if (!vm_object_in_map(object)) {
2054 "vmochk: internal obj is not in a map: "
2055 "ref: %d, size: %lu: 0x%lx, backing_object: %p\n",
2056 object->ref_count, (u_long)object->size,
2057 (u_long)object->size,
2058 (void *)object->backing_object);
2067 DB_SHOW_COMMAND(object, vm_object_print_static)
2069 /* XXX convert args. */
2070 vm_object_t object = (vm_object_t)addr;
2071 boolean_t full = have_addr;
2075 /* XXX count is an (unused) arg. Avoid shadowing it. */
2076 #define count was_count
2084 "Object %p: type=%d, size=0x%lx, res=%d, ref=%d, flags=0x%x\n",
2085 object, (int)object->type, (u_long)object->size,
2086 object->resident_page_count, object->ref_count, object->flags);
2088 * XXX no %qd in kernel. Truncate object->backing_object_offset.
2090 db_iprintf(" sref=%d, backing_object(%d)=(%p)+0x%lx\n",
2091 object->shadow_count,
2092 object->backing_object ? object->backing_object->ref_count : 0,
2093 object->backing_object, (long)object->backing_object_offset);
2100 RB_FOREACH(p, vm_page_rb_tree, &object->rb_memq) {
2102 db_iprintf("memory:=");
2103 else if (count == 6) {
2111 db_printf("(off=0x%lx,page=0x%lx)",
2112 (u_long) p->pindex, (u_long) VM_PAGE_TO_PHYS(p));
2123 * XXX need this non-static entry for calling from vm_map_print.
2128 vm_object_print(/* db_expr_t */ long addr,
2129 boolean_t have_addr,
2130 /* db_expr_t */ long count,
2133 vm_object_print_static(addr, have_addr, count, modif);
2139 DB_SHOW_COMMAND(vmopag, vm_object_print_pages)
2144 for (object = TAILQ_FIRST(&vm_object_list);
2146 object = TAILQ_NEXT(object, object_list)) {
2147 vm_pindex_t idx, fidx;
2149 vm_paddr_t pa = -1, padiff;
2153 if (object->type == OBJT_MARKER)
2155 db_printf("new object: %p\n", (void *)object);
2165 osize = object->size;
2168 for (idx = 0; idx < osize; idx++) {
2169 m = vm_page_lookup(object, idx);
2172 db_printf(" index(%ld)run(%d)pa(0x%lx)\n",
2173 (long)fidx, rcount, (long)pa);
2188 (VM_PAGE_TO_PHYS(m) == pa + rcount * PAGE_SIZE)) {
2193 padiff = pa + rcount * PAGE_SIZE - VM_PAGE_TO_PHYS(m);
2194 padiff >>= PAGE_SHIFT;
2195 padiff &= PQ_L2_MASK;
2197 pa = VM_PAGE_TO_PHYS(m) - rcount * PAGE_SIZE;
2201 db_printf(" index(%ld)run(%d)pa(0x%lx)",
2202 (long)fidx, rcount, (long)pa);
2203 db_printf("pd(%ld)\n", (long)padiff);
2213 pa = VM_PAGE_TO_PHYS(m);
2217 db_printf(" index(%ld)run(%d)pa(0x%lx)\n",
2218 (long)fidx, rcount, (long)pa);