xref: /xnu-12377.1.9/osfmk/vm/vm_object.c (revision f6217f891ac0bb64f3d375211650a4c1ff8ca1ea)
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28 /*
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30  */
31 /*
32  * Mach Operating System
33  * Copyright (c) 1991,1990,1989,1988,1987 Carnegie Mellon University
34  * All Rights Reserved.
35  *
36  * Permission to use, copy, modify and distribute this software and its
37  * documentation is hereby granted, provided that both the copyright
38  * notice and this permission notice appear in all copies of the
39  * software, derivative works or modified versions, and any portions
40  * thereof, and that both notices appear in supporting documentation.
41  *
42  * CARNEGIE MELLON ALLOWS FREE USE OF THIS SOFTWARE IN ITS "AS IS"
43  * CONDITION.  CARNEGIE MELLON DISCLAIMS ANY LIABILITY OF ANY KIND FOR
44  * ANY DAMAGES WHATSOEVER RESULTING FROM THE USE OF THIS SOFTWARE.
45  *
46  * Carnegie Mellon requests users of this software to return to
47  *
48  *  Software Distribution Coordinator  or  [email protected]
49  *  School of Computer Science
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51  *  Pittsburgh PA 15213-3890
52  *
53  * any improvements or extensions that they make and grant Carnegie Mellon
54  * the rights to redistribute these changes.
55  */
56 /*
57  */
58 /*
59  *	File:	vm/vm_object.c
60  *	Author:	Avadis Tevanian, Jr., Michael Wayne Young
61  *
62  *	Virtual memory object module.
63  */
64 
65 #include <debug.h>
66 
67 #include <mach/mach_types.h>
68 #include <mach/memory_object.h>
69 #include <mach/vm_param.h>
70 
71 #include <mach/sdt.h>
72 
73 #include <ipc/ipc_types.h>
74 #include <ipc/ipc_port.h>
75 
76 #include <kern/kern_types.h>
77 #include <kern/assert.h>
78 #include <kern/queue.h>
79 #include <kern/kalloc.h>
80 #include <kern/zalloc.h>
81 #include <kern/host.h>
82 #include <kern/host_statistics.h>
83 #include <kern/processor.h>
84 #include <kern/misc_protos.h>
85 #include <kern/policy_internal.h>
86 #include <kern/coalition.h>
87 
88 #include <sys/kdebug.h>
89 #include <sys/kdebug_triage.h>
90 
91 #include <vm/memory_object_internal.h>
92 #include <vm/vm_compressor_pager_internal.h>
93 #include <vm/vm_fault_internal.h>
94 #include <vm/vm_map.h>
95 #include <vm/vm_object_internal.h>
96 #include <vm/vm_page_internal.h>
97 #include <vm/vm_pageout_internal.h>
98 #include <vm/vm_protos_internal.h>
99 #include <vm/vm_purgeable_internal.h>
100 #include <vm/vm_ubc.h>
101 #include <vm/vm_compressor_xnu.h>
102 #include <os/hash.h>
103 
104 #if CONFIG_PHANTOM_CACHE
105 #include <vm/vm_phantom_cache_internal.h>
106 #endif
107 
108 #if VM_OBJECT_ACCESS_TRACKING
109 uint64_t vm_object_access_tracking_reads = 0;
110 uint64_t vm_object_access_tracking_writes = 0;
111 #endif /* VM_OBJECT_ACCESS_TRACKING */
112 
113 boolean_t vm_object_collapse_compressor_allowed = TRUE;
114 
115 struct vm_counters vm_counters;
116 
117 os_refgrp_decl(, vm_object_refgrp, "vm_object", NULL);
118 
119 #if DEVELOPMENT || DEBUG
120 extern struct memory_object_pager_ops shared_region_pager_ops;
121 extern unsigned int shared_region_pagers_resident_count;
122 extern unsigned int shared_region_pagers_resident_peak;
123 #endif /* DEVELOPMENT || DEBUG */
124 
125 #if VM_OBJECT_TRACKING
126 btlog_t vm_object_tracking_btlog;
127 
128 void
vm_object_tracking_init(void)129 vm_object_tracking_init(void)
130 {
131 	int vm_object_tracking;
132 
133 	vm_object_tracking = 1;
134 	PE_parse_boot_argn("vm_object_tracking", &vm_object_tracking,
135 	    sizeof(vm_object_tracking));
136 
137 	if (vm_object_tracking) {
138 		vm_object_tracking_btlog = btlog_create(BTLOG_HASH,
139 		    VM_OBJECT_TRACKING_NUM_RECORDS);
140 		assert(vm_object_tracking_btlog);
141 	}
142 }
143 #endif /* VM_OBJECT_TRACKING */
144 
145 /*
146  *	Virtual memory objects maintain the actual data
147  *	associated with allocated virtual memory.  A given
148  *	page of memory exists within exactly one object.
149  *
150  *	An object is only deallocated when all "references"
151  *	are given up.
152  *
153  *	Associated with each object is a list of all resident
154  *	memory pages belonging to that object; this list is
155  *	maintained by the "vm_page" module, but locked by the object's
156  *	lock.
157  *
158  *	Each object also records the memory object reference
159  *	that is used by the kernel to request and write
160  *	back data (the memory object, field "pager"), etc...
161  *
162  *	Virtual memory objects are allocated to provide
163  *	zero-filled memory (vm_allocate) or map a user-defined
164  *	memory object into a virtual address space (vm_map).
165  *
166  *	Virtual memory objects that refer to a user-defined
167  *	memory object are called "permanent", because all changes
168  *	made in virtual memory are reflected back to the
169  *	memory manager, which may then store it permanently.
170  *	Other virtual memory objects are called "temporary",
171  *	meaning that changes need be written back only when
172  *	necessary to reclaim pages, and that storage associated
173  *	with the object can be discarded once it is no longer
174  *	mapped.
175  *
176  *	A permanent memory object may be mapped into more
177  *	than one virtual address space.  Moreover, two threads
178  *	may attempt to make the first mapping of a memory
179  *	object concurrently.  Only one thread is allowed to
180  *	complete this mapping; all others wait for the
181  *	"pager_initialized" field is asserted, indicating
182  *	that the first thread has initialized all of the
183  *	necessary fields in the virtual memory object structure.
184  *
185  *	The kernel relies on a *default memory manager* to
186  *	provide backing storage for the zero-filled virtual
187  *	memory objects.  The pager memory objects associated
188  *	with these temporary virtual memory objects are only
189  *	requested from the default memory manager when it
190  *	becomes necessary.  Virtual memory objects
191  *	that depend on the default memory manager are called
192  *	"internal".  The "pager_created" field is provided to
193  *	indicate whether these ports have ever been allocated.
194  *
195  *	The kernel may also create virtual memory objects to
196  *	hold changed pages after a copy-on-write operation.
197  *	In this case, the virtual memory object (and its
198  *	backing storage -- its memory object) only contain
199  *	those pages that have been changed.  The "shadow"
200  *	field refers to the virtual memory object that contains
201  *	the remainder of the contents.  The "shadow_offset"
202  *	field indicates where in the "shadow" these contents begin.
203  *	The "copy" field refers to a virtual memory object
204  *	to which changed pages must be copied before changing
205  *	this object, in order to implement another form
206  *	of copy-on-write optimization.
207  *
208  *	The virtual memory object structure also records
209  *	the attributes associated with its memory object.
210  *	The "pager_ready", "can_persist" and "copy_strategy"
211  *	fields represent those attributes.  The "cached_list"
212  *	field is used in the implementation of the persistence
213  *	attribute.
214  *
215  * ZZZ Continue this comment.
216  */
217 
218 /* Forward declarations for internal functions. */
219 static kern_return_t    vm_object_terminate(
220 	vm_object_t     object);
221 
222 static void             vm_object_do_collapse(
223 	vm_object_t     object,
224 	vm_object_t     backing_object);
225 
226 static void             vm_object_do_bypass(
227 	vm_object_t     object,
228 	vm_object_t     backing_object);
229 
230 static void             vm_object_release_pager(
231 	memory_object_t pager);
232 
233 SECURITY_READ_ONLY_LATE(zone_t) vm_object_zone; /* vm backing store zone */
234 
235 /*
236  * Wired-down kernel memory belongs to this memory object (kernel_object)
237  * by default to avoid wasting data structures.
238  */
239 static struct vm_object                 kernel_object_store VM_PAGE_PACKED_ALIGNED;
240 const vm_object_t                       kernel_object_default = &kernel_object_store;
241 
242 static struct vm_object                 compressor_object_store VM_PAGE_PACKED_ALIGNED;
243 const vm_object_t                       compressor_object = &compressor_object_store;
244 
245 /*
246  * This object holds all pages that have been retired due to errors like ECC.
247  * The system should never use the page or look at its contents. The offset
248  * in this object is the same as the page's physical address.
249  */
250 static struct vm_object                 retired_pages_object_store VM_PAGE_PACKED_ALIGNED;
251 const vm_object_t                       retired_pages_object = &retired_pages_object_store;
252 
253 
254 static struct vm_object                 exclaves_object_store VM_PAGE_PACKED_ALIGNED;
255 const vm_object_t                       exclaves_object = &exclaves_object_store;
256 
257 
258 /*
259  *	Virtual memory objects are initialized from
260  *	a template (see vm_object_allocate).
261  *
262  *	When adding a new field to the virtual memory
263  *	object structure, be sure to add initialization
264  *	(see _vm_object_allocate()).
265  */
266 static const struct vm_object vm_object_template = {
267 	.memq.prev = 0,
268 	.memq.next = 0,
269 	/*
270 	 * The lock will be initialized for each allocated object in
271 	 * _vm_object_allocate(), so we don't need to initialize it in
272 	 * the vm_object_template.
273 	 */
274 	.vo_size = 0,
275 	.memq_hint = VM_PAGE_NULL,
276 	/*
277 	 * The ref count will be initialized for each allocated object in
278 	 * _vm_object_allocate(), so we don't need to initialize it in the
279 	 * vm_object_template.
280 	 */
281 	.resident_page_count = 0,
282 	.wired_page_count = 0,
283 	.reusable_page_count = 0,
284 	.vo_copy = VM_OBJECT_NULL,
285 	.vo_copy_version = 0,
286 	.vo_inherit_copy_none = false,
287 	.shadow = VM_OBJECT_NULL,
288 	.vo_shadow_offset = (vm_object_offset_t) 0,
289 	.pager = MEMORY_OBJECT_NULL,
290 	.paging_offset = 0,
291 	.pager_control = MEMORY_OBJECT_CONTROL_NULL,
292 	.copy_strategy = MEMORY_OBJECT_COPY_SYMMETRIC,
293 	.paging_in_progress = 0,
294 	.vo_size_delta = 0,
295 	.activity_in_progress = 0,
296 
297 	/* Begin bitfields */
298 	.all_wanted = 0, /* all bits FALSE */
299 	.pager_created = FALSE,
300 	.pager_initialized = FALSE,
301 	.pager_ready = FALSE,
302 	.pager_trusted = FALSE,
303 	.can_persist = FALSE,
304 	.internal = TRUE,
305 	.private = FALSE,
306 	.pageout = FALSE,
307 	.alive = TRUE,
308 	.purgable = VM_PURGABLE_DENY,
309 	.purgeable_when_ripe = FALSE,
310 	.purgeable_only_by_kernel = FALSE,
311 	.shadowed = FALSE,
312 	.true_share = FALSE,
313 	.terminating = FALSE,
314 	.named = FALSE,
315 	.shadow_severed = FALSE,
316 	.phys_contiguous = FALSE,
317 	.nophyscache = FALSE,
318 	/* End bitfields */
319 
320 	.cached_list.prev = NULL,
321 	.cached_list.next = NULL,
322 
323 	.last_alloc = (vm_object_offset_t) 0,
324 	.sequential = (vm_object_offset_t) 0,
325 	.pages_created = 0,
326 	.pages_used = 0,
327 	.scan_collisions = 0,
328 #if COMPRESSOR_PAGEOUT_CHEADS_MAX_COUNT > 1
329 	.vo_chead_hint = 0,
330 #endif /* COMPRESSOR_PAGEOUT_CHEADS_MAX_COUNT > 1 */
331 #if CONFIG_PHANTOM_CACHE
332 	.phantom_object_id = 0,
333 #endif
334 	.cow_hint = ~(vm_offset_t)0,
335 
336 	/* cache bitfields */
337 	.wimg_bits = VM_WIMG_USE_DEFAULT,
338 	.set_cache_attr = FALSE,
339 	.object_is_shared_cache = FALSE,
340 	.code_signed = FALSE,
341 	.transposed = FALSE,
342 	.mapping_in_progress = FALSE,
343 	.phantom_isssd = FALSE,
344 	.volatile_empty = FALSE,
345 	.volatile_fault = FALSE,
346 	.all_reusable = FALSE,
347 	.blocked_access = FALSE,
348 	.vo_ledger_tag = VM_LEDGER_TAG_NONE,
349 	.vo_no_footprint = FALSE,
350 #if CONFIG_IOSCHED || UPL_DEBUG
351 	.uplq.prev = NULL,
352 	.uplq.next = NULL,
353 #endif /* UPL_DEBUG */
354 #ifdef VM_PIP_DEBUG
355 	.pip_holders = {0},
356 #endif /* VM_PIP_DEBUG */
357 
358 	.objq.next = NULL,
359 	.objq.prev = NULL,
360 	.task_objq.next = NULL,
361 	.task_objq.prev = NULL,
362 
363 	.purgeable_queue_type = PURGEABLE_Q_TYPE_MAX,
364 	.purgeable_queue_group = 0,
365 
366 	.wire_tag = VM_KERN_MEMORY_NONE,
367 #if !VM_TAG_ACTIVE_UPDATE
368 	.wired_objq.next = NULL,
369 	.wired_objq.prev = NULL,
370 #endif /* ! VM_TAG_ACTIVE_UPDATE */
371 
372 	.io_tracking = FALSE,
373 
374 #if CONFIG_SECLUDED_MEMORY
375 	.eligible_for_secluded = FALSE,
376 	.can_grab_secluded = FALSE,
377 #else /* CONFIG_SECLUDED_MEMORY */
378 	.__object3_unused_bits = 0,
379 #endif /* CONFIG_SECLUDED_MEMORY */
380 
381 	.for_realtime = false,
382 	.no_pager_reason = VM_OBJECT_DESTROY_UNKNOWN_REASON,
383 
384 #if VM_OBJECT_ACCESS_TRACKING
385 	.access_tracking = FALSE,
386 	.access_tracking_reads = 0,
387 	.access_tracking_writes = 0,
388 #endif /* VM_OBJECT_ACCESS_TRACKING */
389 
390 #if DEBUG
391 	.purgeable_owner_bt = {0},
392 	.vo_purgeable_volatilizer = NULL,
393 	.purgeable_volatilizer_bt = {0},
394 #endif /* DEBUG */
395 	.vmo_provenance = VM_MAP_SERIAL_NONE,
396 };
397 
398 LCK_GRP_DECLARE(vm_object_lck_grp, "vm_object");
399 LCK_GRP_DECLARE(vm_object_cache_lck_grp, "vm_object_cache");
400 LCK_ATTR_DECLARE(vm_object_lck_attr, 0, 0);
401 LCK_ATTR_DECLARE(kernel_object_lck_attr, 0, LCK_ATTR_DEBUG);
402 LCK_ATTR_DECLARE(compressor_object_lck_attr, 0, LCK_ATTR_DEBUG);
403 
404 unsigned int vm_page_purged_wired = 0;
405 unsigned int vm_page_purged_busy = 0;
406 unsigned int vm_page_purged_others = 0;
407 
408 static queue_head_t     vm_object_cached_list;
409 static uint32_t         vm_object_cache_pages_freed = 0;
410 static uint32_t         vm_object_cache_pages_moved = 0;
411 static uint32_t         vm_object_cache_pages_skipped = 0;
412 static uint32_t         vm_object_cache_adds = 0;
413 static uint32_t         vm_object_cached_count = 0;
414 static LCK_MTX_DECLARE_ATTR(vm_object_cached_lock_data,
415     &vm_object_cache_lck_grp, &vm_object_lck_attr);
416 
417 static uint32_t         vm_object_page_grab_failed = 0;
418 static uint32_t         vm_object_page_grab_skipped = 0;
419 static uint32_t         vm_object_page_grab_returned = 0;
420 static uint32_t         vm_object_page_grab_pmapped = 0;
421 static uint32_t         vm_object_page_grab_reactivations = 0;
422 
423 #define vm_object_cache_lock_spin()             \
424 	        lck_mtx_lock_spin(&vm_object_cached_lock_data)
425 #define vm_object_cache_unlock()        \
426 	        lck_mtx_unlock(&vm_object_cached_lock_data)
427 
428 static void     vm_object_cache_remove_locked(vm_object_t);
429 
430 
431 static void vm_object_reap(vm_object_t object);
432 static void vm_object_reap_async(vm_object_t object);
433 static void vm_object_reaper_thread(void);
434 
435 static LCK_MTX_DECLARE_ATTR(vm_object_reaper_lock_data,
436     &vm_object_lck_grp, &vm_object_lck_attr);
437 
438 static queue_head_t vm_object_reaper_queue; /* protected by vm_object_reaper_lock() */
439 unsigned int vm_object_reap_count = 0;
440 unsigned int vm_object_reap_count_async = 0;
441 
442 
443 #define vm_object_reaper_lock()         \
444 	        lck_mtx_lock(&vm_object_reaper_lock_data)
445 #define vm_object_reaper_lock_spin()            \
446 	        lck_mtx_lock_spin(&vm_object_reaper_lock_data)
447 #define vm_object_reaper_unlock()       \
448 	        lck_mtx_unlock(&vm_object_reaper_lock_data)
449 
450 #if CONFIG_IOSCHED
451 /* I/O Re-prioritization request list */
452 struct mpsc_daemon_queue io_reprioritize_q;
453 
454 ZONE_DEFINE_TYPE(io_reprioritize_req_zone, "io_reprioritize_req",
455     struct io_reprioritize_req, ZC_NONE);
456 
457 /* I/O re-prioritization MPSC callback */
458 static void io_reprioritize(mpsc_queue_chain_t elm, mpsc_daemon_queue_t dq);
459 
460 void vm_page_request_reprioritize(vm_object_t, uint64_t, uint32_t, int);
461 void vm_page_handle_prio_inversion(vm_object_t, vm_page_t);
462 void vm_decmp_upl_reprioritize(upl_t, int);
463 #endif
464 
465 void
vm_object_set_size(vm_object_t object,vm_object_size_t outer_size,vm_object_size_t inner_size)466 vm_object_set_size(
467 	vm_object_t             object,
468 	vm_object_size_t        outer_size,
469 	vm_object_size_t        inner_size)
470 {
471 	object->vo_size = vm_object_round_page(outer_size);
472 #if KASAN
473 	assert(object->vo_size - inner_size <= USHRT_MAX);
474 	object->vo_size_delta = (unsigned short)(object->vo_size - inner_size);
475 #else
476 	(void)inner_size;
477 #endif
478 }
479 
480 
481 /*
482  *	vm_object_allocate:
483  *
484  *	Returns a new object with the given size.
485  */
486 
487 __private_extern__ void
_vm_object_allocate(vm_object_size_t size,vm_object_t object,vm_map_serial_t provenance)488 _vm_object_allocate(
489 	vm_object_size_t        size,
490 	vm_object_t             object,
491 	vm_map_serial_t                 provenance)
492 {
493 	*object = vm_object_template;
494 	object->vmo_provenance = provenance;
495 
496 	vm_page_queue_init(&object->memq);
497 #if UPL_DEBUG || CONFIG_IOSCHED
498 	queue_init(&object->uplq);
499 #endif
500 	vm_object_lock_init(object);
501 	vm_object_set_size(object, size, size);
502 
503 	os_ref_init_raw(&object->ref_count, &vm_object_refgrp);
504 
505 #if VM_OBJECT_TRACKING_OP_CREATED
506 	if (vm_object_tracking_btlog) {
507 		btlog_record(vm_object_tracking_btlog, object,
508 		    VM_OBJECT_TRACKING_OP_CREATED,
509 		    btref_get(__builtin_frame_address(0), 0));
510 	}
511 #endif /* VM_OBJECT_TRACKING_OP_CREATED */
512 }
513 
514 __private_extern__ vm_object_t
vm_object_allocate(vm_object_size_t size,vm_map_serial_t provenance)515 vm_object_allocate(
516 	vm_object_size_t        size, vm_map_serial_t provenance)
517 {
518 	vm_object_t object;
519 
520 	object = zalloc_flags(vm_object_zone, Z_WAITOK | Z_NOFAIL);
521 	_vm_object_allocate(size, object, provenance);
522 
523 	return object;
524 }
525 
526 TUNABLE(bool, workaround_41447923, "workaround_41447923", false);
527 
528 /*
529  *	vm_object_bootstrap:
530  *
531  *	Initialize the VM objects module.
532  */
533 __startup_func
534 void
vm_object_bootstrap(void)535 vm_object_bootstrap(void)
536 {
537 	vm_size_t       vm_object_size;
538 
539 	assert(sizeof(mo_ipc_object_bits_t) == sizeof(ipc_object_bits_t));
540 
541 	vm_object_size = (sizeof(struct vm_object) + (VM_PAGE_PACKED_PTR_ALIGNMENT - 1)) &
542 	    ~(VM_PAGE_PACKED_PTR_ALIGNMENT - 1);
543 
544 	vm_object_zone = zone_create("vm objects", vm_object_size,
545 	    ZC_NOENCRYPT | ZC_ALIGNMENT_REQUIRED | ZC_VM);
546 
547 	queue_init(&vm_object_cached_list);
548 
549 	queue_init(&vm_object_reaper_queue);
550 
551 	/*
552 	 *	Initialize the "kernel object"
553 	 */
554 
555 	/*
556 	 * Note that in the following size specifications, we need to add 1 because
557 	 * VM_MAX_KERNEL_ADDRESS (vm_last_addr) is a maximum address, not a size.
558 	 */
559 	_vm_object_allocate(VM_MAX_KERNEL_ADDRESS + 1, kernel_object_default, VM_MAP_SERIAL_SPECIAL);
560 	_vm_object_allocate(VM_MAX_KERNEL_ADDRESS + 1, compressor_object, VM_MAP_SERIAL_SPECIAL);
561 	kernel_object_default->copy_strategy = MEMORY_OBJECT_COPY_NONE;
562 	compressor_object->copy_strategy = MEMORY_OBJECT_COPY_NONE;
563 	kernel_object_default->no_tag_update = TRUE;
564 
565 	/*
566 	 * The object to hold retired VM pages.
567 	 */
568 	_vm_object_allocate(VM_MAX_KERNEL_ADDRESS + 1, retired_pages_object, VM_MAP_SERIAL_SPECIAL);
569 	retired_pages_object->copy_strategy = MEMORY_OBJECT_COPY_NONE;
570 
571 
572 	/**
573 	 * The object to hold pages owned by exclaves.
574 	 */
575 	_vm_object_allocate(VM_MAX_KERNEL_ADDRESS + 1, exclaves_object, VM_MAP_SERIAL_SPECIAL);
576 	exclaves_object->copy_strategy = MEMORY_OBJECT_COPY_NONE;
577 }
578 
579 #if CONFIG_IOSCHED
580 void
vm_io_reprioritize_init(void)581 vm_io_reprioritize_init(void)
582 {
583 	kern_return_t   result;
584 
585 	result = mpsc_daemon_queue_init_with_thread(&io_reprioritize_q, io_reprioritize, BASEPRI_KERNEL,
586 	    "VM_io_reprioritize_thread", MPSC_DAEMON_INIT_NONE);
587 	if (result != KERN_SUCCESS) {
588 		panic("Unable to start I/O reprioritization thread (%d)", result);
589 	}
590 }
591 #endif
592 
593 void
vm_object_reaper_init(void)594 vm_object_reaper_init(void)
595 {
596 	kern_return_t   kr;
597 	thread_t        thread;
598 
599 	kr = kernel_thread_start_priority(
600 		(thread_continue_t) vm_object_reaper_thread,
601 		NULL,
602 		BASEPRI_VM,
603 		&thread);
604 	if (kr != KERN_SUCCESS) {
605 		panic("failed to launch vm_object_reaper_thread kr=0x%x", kr);
606 	}
607 	thread_set_thread_name(thread, "VM_object_reaper_thread");
608 	thread_deallocate(thread);
609 }
610 
611 
612 /*
613  *	vm_object_deallocate:
614  *
615  *	Release a reference to the specified object,
616  *	gained either through a vm_object_allocate
617  *	or a vm_object_reference call.  When all references
618  *	are gone, storage associated with this object
619  *	may be relinquished.
620  *
621  *	No object may be locked.
622  */
623 unsigned long vm_object_deallocate_shared_successes = 0;
624 unsigned long vm_object_deallocate_shared_failures = 0;
625 unsigned long vm_object_deallocate_shared_swap_failures = 0;
626 
627 __private_extern__ void
vm_object_deallocate(vm_object_t object)628 vm_object_deallocate(
629 	vm_object_t     object)
630 {
631 	vm_object_t     shadow = VM_OBJECT_NULL;
632 
633 //	if(object)dbgLog(object, object->ref_count, object->can_persist, 3);	/* (TEST/DEBUG) */
634 //	else dbgLog(object, 0, 0, 3);	/* (TEST/DEBUG) */
635 
636 	if (object == VM_OBJECT_NULL) {
637 		return;
638 	}
639 
640 	if (is_kernel_object(object) || object == compressor_object || object == retired_pages_object) {
641 		vm_object_lock_shared(object);
642 
643 		if (os_ref_get_count_raw(&object->ref_count) == 1) {
644 			if (is_kernel_object(object)) {
645 				panic("vm_object_deallocate: losing a kernel_object");
646 			} else if (object == retired_pages_object) {
647 				panic("vm_object_deallocate: losing retired_pages_object");
648 			} else {
649 				panic("vm_object_deallocate: losing compressor_object");
650 			}
651 		}
652 
653 		os_ref_release_live_raw(&object->ref_count, &vm_object_refgrp);
654 
655 		vm_object_unlock(object);
656 		return;
657 	}
658 
659 	if (os_ref_get_count_raw(&object->ref_count) == 2 &&
660 	    object->named) {
661 		/*
662 		 * This "named" object's reference count is about to
663 		 * drop from 2 to 1:
664 		 * we'll need to call memory_object_last_unmap().
665 		 */
666 	} else if (os_ref_get_count_raw(&object->ref_count) == 2 &&
667 	    object->internal &&
668 	    object->shadow != VM_OBJECT_NULL) {
669 		/*
670 		 * This internal object's reference count is about to
671 		 * drop from 2 to 1 and it has a shadow object:
672 		 * we'll want to try and collapse this object with its
673 		 * shadow.
674 		 */
675 	} else if (os_ref_get_count_raw(&object->ref_count) >= 2) {
676 		UInt32          original_ref_count;
677 		volatile UInt32 *ref_count_p;
678 		Boolean         atomic_swap;
679 
680 		/*
681 		 * The object currently looks like it is not being
682 		 * kept alive solely by the reference we're about to release.
683 		 * Let's try and release our reference without taking
684 		 * all the locks we would need if we had to terminate the
685 		 * object (cache lock + exclusive object lock).
686 		 * Lock the object "shared" to make sure we don't race with
687 		 * anyone holding it "exclusive".
688 		 */
689 		vm_object_lock_shared(object);
690 		ref_count_p = (volatile UInt32 *) &object->ref_count;
691 		original_ref_count = os_ref_get_count_raw(&object->ref_count);
692 		/*
693 		 * Test again as "ref_count" could have changed.
694 		 * "named" shouldn't change.
695 		 */
696 		if (original_ref_count == 2 &&
697 		    object->named) {
698 			/* need to take slow path for m_o_last_unmap() */
699 			atomic_swap = FALSE;
700 		} else if (original_ref_count == 2 &&
701 		    object->internal &&
702 		    object->shadow != VM_OBJECT_NULL) {
703 			/* need to take slow path for vm_object_collapse() */
704 			atomic_swap = FALSE;
705 		} else if (original_ref_count < 2) {
706 			/* need to take slow path for vm_object_terminate() */
707 			atomic_swap = FALSE;
708 		} else {
709 			/* try an atomic update with the shared lock */
710 			atomic_swap = OSCompareAndSwap(
711 				original_ref_count,
712 				original_ref_count - 1,
713 				(UInt32 *) &object->ref_count);
714 			if (atomic_swap == FALSE) {
715 				vm_object_deallocate_shared_swap_failures++;
716 				/* fall back to the slow path... */
717 			}
718 		}
719 
720 		vm_object_unlock(object);
721 
722 		if (atomic_swap) {
723 			/*
724 			 * ref_count was updated atomically !
725 			 */
726 			vm_object_deallocate_shared_successes++;
727 			return;
728 		}
729 
730 		/*
731 		 * Someone else updated the ref_count at the same
732 		 * time and we lost the race.  Fall back to the usual
733 		 * slow but safe path...
734 		 */
735 		vm_object_deallocate_shared_failures++;
736 	}
737 
738 	while (object != VM_OBJECT_NULL) {
739 		vm_object_lock(object);
740 
741 		assert(os_ref_get_count_raw(&object->ref_count) > 0);
742 
743 		/*
744 		 *	If the object has a named reference, and only
745 		 *	that reference would remain, inform the pager
746 		 *	about the last "mapping" reference going away.
747 		 */
748 		if ((os_ref_get_count_raw(&object->ref_count) == 2) && (object->named)) {
749 			memory_object_t pager = object->pager;
750 
751 			/* Notify the Pager that there are no */
752 			/* more mappers for this object */
753 
754 			if (pager != MEMORY_OBJECT_NULL) {
755 				vm_object_mapping_wait(object, THREAD_UNINT);
756 				/* object might have lost its pager while waiting */
757 				pager = object->pager;
758 				if (object->ref_count == 2 &&
759 				    object->named &&
760 				    pager != MEMORY_OBJECT_NULL) {
761 					vm_object_mapping_begin(object);
762 					vm_object_unlock(object);
763 
764 					memory_object_last_unmap(pager);
765 
766 					vm_object_lock(object);
767 					vm_object_mapping_end(object);
768 				}
769 			}
770 			assert(os_ref_get_count_raw(&object->ref_count) > 0);
771 		}
772 
773 		/*
774 		 *	Lose the reference. If other references
775 		 *	remain, then we are done, unless we need
776 		 *	to retry a cache trim.
777 		 *	If it is the last reference, then keep it
778 		 *	until any pending initialization is completed.
779 		 */
780 
781 		/* if the object is terminating, it cannot go into */
782 		/* the cache and we obviously should not call      */
783 		/* terminate again.  */
784 
785 		if ((os_ref_get_count_raw(&object->ref_count) > 1) ||
786 		    object->terminating) {
787 			vm_object_lock_assert_exclusive(object);
788 			os_ref_release_live_locked_raw(&object->ref_count,
789 			    &vm_object_refgrp);
790 
791 			if (os_ref_get_count_raw(&object->ref_count) == 1 &&
792 			    object->shadow != VM_OBJECT_NULL) {
793 				/*
794 				 * There's only one reference left on this
795 				 * VM object.  We can't tell if it's a valid
796 				 * one (from a mapping for example) or if this
797 				 * object is just part of a possibly stale and
798 				 * useless shadow chain.
799 				 * We would like to try and collapse it into
800 				 * its parent, but we don't have any pointers
801 				 * back to this parent object.
802 				 * But we can try and collapse this object with
803 				 * its own shadows, in case these are useless
804 				 * too...
805 				 * We can't bypass this object though, since we
806 				 * don't know if this last reference on it is
807 				 * meaningful or not.
808 				 */
809 				vm_object_collapse(object, 0, FALSE);
810 			}
811 			vm_object_unlock(object);
812 			return;
813 		}
814 
815 		/*
816 		 *	We have to wait for initialization
817 		 *	before destroying or caching the object.
818 		 */
819 
820 		if (object->pager_created && !object->pager_initialized) {
821 			assert(!object->can_persist);
822 			vm_object_sleep(object,
823 			    VM_OBJECT_EVENT_PAGER_INIT,
824 			    THREAD_UNINT,
825 			    LCK_SLEEP_UNLOCK);
826 			continue;
827 		}
828 
829 		/*
830 		 *	Terminate this object. If it had a shadow,
831 		 *	then deallocate it; otherwise, if we need
832 		 *	to retry a cache trim, do so now; otherwise,
833 		 *	we are done. "pageout" objects have a shadow,
834 		 *	but maintain a "paging reference" rather than
835 		 *	a normal reference.
836 		 */
837 		shadow = object->pageout?VM_OBJECT_NULL:object->shadow;
838 
839 		if (vm_object_terminate(object) != KERN_SUCCESS) {
840 			return;
841 		}
842 		if (shadow != VM_OBJECT_NULL) {
843 			object = shadow;
844 			continue;
845 		}
846 		return;
847 	}
848 }
849 
850 
851 
852 vm_page_t
vm_object_page_grab(vm_object_t object)853 vm_object_page_grab(
854 	vm_object_t     object)
855 {
856 	vm_page_t       p, next_p;
857 	int             p_limit = 0;
858 	int             p_skipped = 0;
859 
860 	vm_object_lock_assert_exclusive(object);
861 
862 	next_p = (vm_page_t)vm_page_queue_first(&object->memq);
863 	p_limit = MIN(50, object->resident_page_count);
864 
865 	while (!vm_page_queue_end(&object->memq, (vm_page_queue_entry_t)next_p) && --p_limit > 0) {
866 		p = next_p;
867 		next_p = (vm_page_t)vm_page_queue_next(&next_p->vmp_listq);
868 
869 		if (VM_PAGE_WIRED(p) || p->vmp_busy || p->vmp_cleaning ||
870 		    p->vmp_laundry || vm_page_is_fictitious(p)) {
871 			goto move_page_in_obj;
872 		}
873 
874 		if (p->vmp_pmapped || p->vmp_dirty || p->vmp_precious) {
875 			vm_page_lockspin_queues();
876 
877 			if (p->vmp_pmapped) {
878 				int refmod_state;
879 
880 				vm_object_page_grab_pmapped++;
881 
882 				if (p->vmp_reference == FALSE || p->vmp_dirty == FALSE) {
883 					refmod_state = pmap_get_refmod(VM_PAGE_GET_PHYS_PAGE(p));
884 
885 					if (refmod_state & VM_MEM_REFERENCED) {
886 						p->vmp_reference = TRUE;
887 					}
888 					if (refmod_state & VM_MEM_MODIFIED) {
889 						SET_PAGE_DIRTY(p, FALSE);
890 					}
891 				}
892 				if (p->vmp_dirty == FALSE && p->vmp_precious == FALSE) {
893 					vm_page_lockconvert_queues();
894 					refmod_state = pmap_disconnect(VM_PAGE_GET_PHYS_PAGE(p));
895 
896 					if (refmod_state & VM_MEM_REFERENCED) {
897 						p->vmp_reference = TRUE;
898 					}
899 					if (refmod_state & VM_MEM_MODIFIED) {
900 						SET_PAGE_DIRTY(p, FALSE);
901 					}
902 
903 					if (p->vmp_dirty == FALSE) {
904 						goto take_page;
905 					}
906 				}
907 			}
908 			if ((p->vmp_q_state != VM_PAGE_ON_ACTIVE_Q) && p->vmp_reference == TRUE) {
909 				vm_page_activate(p);
910 
911 				counter_inc(&vm_statistics_reactivations);
912 				vm_object_page_grab_reactivations++;
913 			}
914 			vm_page_unlock_queues();
915 move_page_in_obj:
916 			vm_page_queue_remove(&object->memq, p, vmp_listq);
917 			vm_page_queue_enter(&object->memq, p, vmp_listq);
918 
919 			p_skipped++;
920 			continue;
921 		}
922 		vm_page_lockspin_queues();
923 take_page:
924 		vm_page_free_prepare_queues(p);
925 		vm_object_page_grab_returned++;
926 		vm_object_page_grab_skipped += p_skipped;
927 
928 		vm_page_unlock_queues();
929 
930 		vm_page_free_prepare_object(p, TRUE);
931 
932 		return p;
933 	}
934 	vm_object_page_grab_skipped += p_skipped;
935 	vm_object_page_grab_failed++;
936 
937 	return NULL;
938 }
939 
940 #if COMPRESSOR_PAGEOUT_CHEADS_MAX_COUNT > 1
941 
942 /* This is the actual number of filling cheads that's going to be used.
943  * must be 1 <= vm_cheads <= COMPRESSOR_PAGEOUT_CHEADS_MAX_COUNT */
944 TUNABLE_WRITEABLE(uint32_t, vm_cheads, "vm_cheads", 8);
945 /* This determines what criteria is used for selecting the chead,
946  * either the PID of the grabber task or it's coalition */
947 TUNABLE_WRITEABLE(vm_chead_select_t, vm_chead_select, "vm_chead_select", CSEL_BY_PID);
948 /* This determines if the grabber-id is set on every page-fault insert or just the first insert */
949 TUNABLE_WRITEABLE(boolean_t, vm_chead_rehint, "vm_chead_rehint", false);
950 
951 /*
952  * This function is called from vm_page_insert_internal(). When it's called from the context
953  * of a vm_fault where a task has just requested a new page/paged-in a existing page,
954  * this function records some bits of information about the task. These bits are then
955  * going to be used when the page is sent to the compressor to select the compressor-head
956  * that will be used.
957  * The goal of this is to make pages that come from the same task/coalition be compressed to the
958  * same compressor segment, This helps the locality of swap-in and decompression.
959  * This optimization relies on a heuristic assumptions that the vm_object is only ever mapped
960  * in a single task/coalition. vm_objects that violate this would not benefit from this optimization.
961  * See also vm_pageout_select_filling_chead()
962  */
963 void
vm_object_set_chead_hint(vm_object_t object)964 vm_object_set_chead_hint(
965 	vm_object_t     object)
966 {
967 	if (!object->internal) {
968 		/* not relevant for pages that are not going to get to the compressor */
969 		return;
970 	}
971 
972 	if (object->vo_chead_hint != 0 && !vm_chead_rehint) {
973 		/* there's already a value there and we don't want to set it again */
974 		return;
975 	}
976 	task_t cur_task = current_task_early();
977 	if (cur_task == TASK_NULL || cur_task == kernel_task || vm_cheads <= 1) {
978 		/* avoid doing extra work for the kernel map case */
979 		object->vo_chead_hint = 0;
980 		return;
981 	}
982 	int value = 0;
983 	if (vm_chead_select == CSEL_BY_PID) {
984 		value = task_pid(cur_task);
985 	} else if (vm_chead_select == CSEL_BY_COALITION) {
986 		/* The choice of coalition type is not very significant here since both
987 		 * types seem to have a similar task division. */
988 		coalition_t coalition = task_get_coalition(cur_task, COALITION_TYPE_JETSAM);
989 		if (coalition != COALITION_NULL) {
990 			value = coalition_id(coalition);
991 		}
992 	}
993 	uint32_t mod_by = MIN(vm_cheads, COMPRESSOR_PAGEOUT_CHEADS_MAX_COUNT);
994 	object->vo_chead_hint = (uint8_t)value % mod_by;
995 }
996 
997 #endif /* COMPRESSOR_PAGEOUT_CHEADS_MAX_COUNT > 1 */
998 
999 #define EVICT_PREPARE_LIMIT     64
1000 #define EVICT_AGE               10
1001 
1002 static  clock_sec_t     vm_object_cache_aging_ts = 0;
1003 
1004 static void
vm_object_cache_remove_locked(vm_object_t object)1005 vm_object_cache_remove_locked(
1006 	vm_object_t     object)
1007 {
1008 	assert(object->purgable == VM_PURGABLE_DENY);
1009 
1010 	queue_remove(&vm_object_cached_list, object, vm_object_t, cached_list);
1011 	object->cached_list.next = NULL;
1012 	object->cached_list.prev = NULL;
1013 
1014 	vm_object_cached_count--;
1015 }
1016 
1017 void
vm_object_cache_remove(vm_object_t object)1018 vm_object_cache_remove(
1019 	vm_object_t     object)
1020 {
1021 	vm_object_cache_lock_spin();
1022 
1023 	if (object->cached_list.next &&
1024 	    object->cached_list.prev) {
1025 		vm_object_cache_remove_locked(object);
1026 	}
1027 
1028 	vm_object_cache_unlock();
1029 }
1030 
1031 void
vm_object_cache_add(vm_object_t object)1032 vm_object_cache_add(
1033 	vm_object_t     object)
1034 {
1035 	clock_sec_t sec;
1036 	clock_nsec_t nsec;
1037 
1038 	assert(object->purgable == VM_PURGABLE_DENY);
1039 
1040 	if (object->resident_page_count == 0) {
1041 		return;
1042 	}
1043 	if (object->vo_ledger_tag) {
1044 		/*
1045 		 * We can't add an "owned" object to the cache because
1046 		 * the "vo_owner" and "vo_cache_ts" fields are part of the
1047 		 * same "union" and can't be used at the same time.
1048 		 */
1049 		return;
1050 	}
1051 	clock_get_system_nanotime(&sec, &nsec);
1052 
1053 	vm_object_cache_lock_spin();
1054 
1055 	if (object->cached_list.next == NULL &&
1056 	    object->cached_list.prev == NULL) {
1057 		queue_enter(&vm_object_cached_list, object, vm_object_t, cached_list);
1058 		object->vo_cache_ts = sec + EVICT_AGE;
1059 		object->vo_cache_pages_to_scan = object->resident_page_count;
1060 
1061 		vm_object_cached_count++;
1062 		vm_object_cache_adds++;
1063 	}
1064 	vm_object_cache_unlock();
1065 }
1066 
1067 int
vm_object_cache_evict(int num_to_evict,int max_objects_to_examine)1068 vm_object_cache_evict(
1069 	int     num_to_evict,
1070 	int     max_objects_to_examine)
1071 {
1072 	vm_object_t     object = VM_OBJECT_NULL;
1073 	vm_object_t     next_obj = VM_OBJECT_NULL;
1074 	vm_page_t       local_free_q = VM_PAGE_NULL;
1075 	vm_page_t       p;
1076 	vm_page_t       next_p;
1077 	int             object_cnt = 0;
1078 	vm_page_t       ep_array[EVICT_PREPARE_LIMIT];
1079 	int             ep_count;
1080 	int             ep_limit;
1081 	int             ep_index;
1082 	int             ep_freed = 0;
1083 	int             ep_moved = 0;
1084 	uint32_t        ep_skipped = 0;
1085 	clock_sec_t     sec;
1086 	clock_nsec_t    nsec;
1087 
1088 	KDBG_DEBUG(0x13001ec | DBG_FUNC_START);
1089 	/*
1090 	 * do a couple of quick checks to see if it's
1091 	 * worthwhile grabbing the lock
1092 	 */
1093 	if (queue_empty(&vm_object_cached_list)) {
1094 		KDBG_DEBUG(0x13001ec | DBG_FUNC_END);
1095 		return 0;
1096 	}
1097 	clock_get_system_nanotime(&sec, &nsec);
1098 	if (max_objects_to_examine == INT_MAX) {
1099 		/* evict all pages from all cached objects now */
1100 		sec = (clock_sec_t)-1;
1101 	}
1102 
1103 	/*
1104 	 * the object on the head of the queue has not
1105 	 * yet sufficiently aged
1106 	 */
1107 	if (sec < vm_object_cache_aging_ts) {
1108 		KDBG_DEBUG(0x13001ec | DBG_FUNC_END);
1109 		return 0;
1110 	}
1111 	/*
1112 	 * don't need the queue lock to find
1113 	 * and lock an object on the cached list
1114 	 */
1115 	vm_page_unlock_queues();
1116 
1117 	vm_object_cache_lock_spin();
1118 
1119 	for (;;) {  /* loop for as long as we have objects to process */
1120 		next_obj = (vm_object_t)queue_first(&vm_object_cached_list);
1121 
1122 		/* loop to find the next target in the cache_list */
1123 		while (!queue_end(&vm_object_cached_list, (queue_entry_t)next_obj) && object_cnt++ < max_objects_to_examine) {
1124 			object = next_obj;
1125 			next_obj = (vm_object_t)queue_next(&next_obj->cached_list);
1126 
1127 			assert(object->purgable == VM_PURGABLE_DENY);
1128 
1129 			if (sec < object->vo_cache_ts) { // reached the point in the queue beyond the time we started
1130 				KDBG_DEBUG(0x130020c, object, object->resident_page_count, object->vo_cache_ts, sec);
1131 
1132 				vm_object_cache_aging_ts = object->vo_cache_ts;
1133 				object = VM_OBJECT_NULL; /* this will cause to break away from the outer loop */
1134 				break;
1135 			}
1136 			if (!vm_object_lock_try_scan(object)) {
1137 				/*
1138 				 * just skip over this guy for now... if we find
1139 				 * an object to steal pages from, we'll revist in a bit...
1140 				 * hopefully, the lock will have cleared
1141 				 */
1142 				KDBG_DEBUG(0x13001f8, object, object->resident_page_count);
1143 
1144 				object = VM_OBJECT_NULL;
1145 				continue;
1146 			}
1147 			if (vm_page_queue_empty(&object->memq) || object->vo_cache_pages_to_scan == 0) {
1148 				/*
1149 				 * this case really shouldn't happen, but it's not fatal
1150 				 * so deal with it... if we don't remove the object from
1151 				 * the list, we'll never move past it.
1152 				 */
1153 				KDBG_DEBUG(0x13001fc, object, object->resident_page_count, ep_freed, ep_moved);
1154 
1155 				vm_object_cache_remove_locked(object);
1156 				vm_object_unlock(object);
1157 				object = VM_OBJECT_NULL;
1158 				continue;
1159 			}
1160 			/*
1161 			 * we have a locked object with pages...
1162 			 * time to start harvesting
1163 			 */
1164 			break;
1165 		}
1166 		vm_object_cache_unlock();
1167 
1168 		if (object == VM_OBJECT_NULL) {
1169 			break;
1170 		}
1171 
1172 		/*
1173 		 * object is locked at this point and
1174 		 * has resident pages
1175 		 */
1176 		next_p = (vm_page_t)vm_page_queue_first(&object->memq);
1177 
1178 		/*
1179 		 * break the page scan into 2 pieces to minimize the time spent
1180 		 * behind the page queue lock...
1181 		 * the list of pages on these unused objects is likely to be cold
1182 		 * w/r to the cpu cache which increases the time to scan the list
1183 		 * tenfold...  and we may have a 'run' of pages we can't utilize that
1184 		 * needs to be skipped over...
1185 		 */
1186 		if ((ep_limit = num_to_evict - (ep_freed + ep_moved)) > EVICT_PREPARE_LIMIT) {
1187 			ep_limit = EVICT_PREPARE_LIMIT;
1188 		}
1189 		ep_count = 0;
1190 
1191 		while (!vm_page_queue_end(&object->memq, (vm_page_queue_entry_t)next_p) && object->vo_cache_pages_to_scan && ep_count < ep_limit) {
1192 			p = next_p;
1193 			next_p = (vm_page_t)vm_page_queue_next(&next_p->vmp_listq);
1194 
1195 			object->vo_cache_pages_to_scan--;
1196 
1197 			if (VM_PAGE_WIRED(p) || p->vmp_busy || p->vmp_cleaning || p->vmp_laundry) {
1198 				vm_page_queue_remove(&object->memq, p, vmp_listq);
1199 				vm_page_queue_enter(&object->memq, p, vmp_listq);
1200 
1201 				ep_skipped++;
1202 				continue;
1203 			}
1204 			if (!object->internal &&
1205 			    object->pager_created &&
1206 			    object->pager == NULL) {
1207 				/*
1208 				 * This object has lost its pager, most likely
1209 				 * due to a force-unmount or ungraft.  The pager
1210 				 * will never come back, so there's no point in
1211 				 * keeping these pages, even if modified.
1212 				 * The object could still be mapped, so we need
1213 				 * to clear any PTE that might still be pointing
1214 				 * at this physical page before we can reclaim
1215 				 * it.
1216 				 */
1217 				if (p->vmp_pmapped) {
1218 					int refmod;
1219 					refmod = pmap_disconnect(VM_PAGE_GET_PHYS_PAGE(p));
1220 					if (refmod & VM_MEM_MODIFIED) {
1221 						assert(p->vmp_wpmapped);
1222 						p->vmp_dirty = TRUE;
1223 					}
1224 				}
1225 //				printf("FBDP %s:%d object %p reason %d page %p offset 0x%llx pmapped %d wpmapped %d xpmapped %d dirty %d precious %d\n", __FUNCTION__, __LINE__, object, object->no_pager_reason, p, p->vmp_offset, p->vmp_pmapped, p->vmp_wpmapped, p->vmp_xpmapped, p->vmp_dirty, p->vmp_precious);
1226 				/* clear any reason to skip this page below */
1227 				p->vmp_dirty = FALSE;
1228 				p->vmp_precious = FALSE;
1229 				p->vmp_wpmapped = FALSE;
1230 			}
1231 			if (p->vmp_wpmapped || p->vmp_dirty || p->vmp_precious) {
1232 				vm_page_queue_remove(&object->memq, p, vmp_listq);
1233 				vm_page_queue_enter(&object->memq, p, vmp_listq);
1234 
1235 				pmap_clear_reference(VM_PAGE_GET_PHYS_PAGE(p));
1236 			}
1237 			ep_array[ep_count++] = p;
1238 		}
1239 		KDBG_DEBUG(0x13001f4 | DBG_FUNC_START, object, object->resident_page_count, ep_freed, ep_moved);
1240 
1241 		vm_page_lockspin_queues();
1242 
1243 		for (ep_index = 0; ep_index < ep_count; ep_index++) {
1244 			p = ep_array[ep_index];
1245 
1246 			if (p->vmp_wpmapped || p->vmp_dirty || p->vmp_precious) {
1247 				p->vmp_reference = FALSE;
1248 				p->vmp_no_cache = FALSE;
1249 
1250 				/*
1251 				 * we've already filtered out pages that are in the laundry
1252 				 * so if we get here, this page can't be on the pageout queue
1253 				 */
1254 				vm_page_queues_remove(p, FALSE);
1255 				vm_page_enqueue_inactive(p, TRUE);
1256 
1257 				ep_moved++;
1258 			} else {
1259 #if CONFIG_PHANTOM_CACHE
1260 				vm_phantom_cache_add_ghost(p);
1261 #endif
1262 				vm_page_free_prepare_queues(p);
1263 
1264 				assert(p->vmp_pageq.next == 0 && p->vmp_pageq.prev == 0);
1265 				/*
1266 				 * Add this page to our list of reclaimed pages,
1267 				 * to be freed later.
1268 				 */
1269 				p->vmp_snext = local_free_q;
1270 				local_free_q = p;
1271 
1272 				ep_freed++;
1273 			}
1274 		}
1275 		vm_page_unlock_queues();
1276 
1277 		KDBG_DEBUG(0x13001f4 | DBG_FUNC_END, object, object->resident_page_count, ep_freed, ep_moved);
1278 
1279 		if (local_free_q) {
1280 			vm_page_free_list(local_free_q, TRUE);
1281 			local_free_q = VM_PAGE_NULL;
1282 		}
1283 		if (object->vo_cache_pages_to_scan == 0) {
1284 			KDBG_DEBUG(0x1300208, object, object->resident_page_count, ep_freed, ep_moved);
1285 
1286 			vm_object_cache_remove(object);
1287 
1288 			KDBG_DEBUG(0x13001fc, object, object->resident_page_count, ep_freed, ep_moved);
1289 		}
1290 		/*
1291 		 * done with this object
1292 		 */
1293 		vm_object_unlock(object);
1294 		object = VM_OBJECT_NULL;
1295 
1296 		/*
1297 		 * at this point, we are not holding any locks
1298 		 */
1299 		if ((ep_freed + ep_moved) >= num_to_evict) {
1300 			/*
1301 			 * we've reached our target for the
1302 			 * number of pages to evict
1303 			 */
1304 			break;
1305 		}
1306 		vm_object_cache_lock_spin();
1307 	}
1308 	/*
1309 	 * put the page queues lock back to the caller's
1310 	 * idea of it
1311 	 */
1312 	vm_page_lock_queues();
1313 
1314 	vm_object_cache_pages_freed += ep_freed;
1315 	vm_object_cache_pages_moved += ep_moved;
1316 	vm_object_cache_pages_skipped += ep_skipped;
1317 
1318 	KDBG_DEBUG(0x13001ec | DBG_FUNC_END, ep_freed);
1319 //	printf("FBDP %s(0x%x,0x%x) freed %d moved %d skipped %u\n", __func__, num_to_evict, max_objects_to_examine, ep_freed, ep_moved, ep_skipped);
1320 	return ep_freed;
1321 }
1322 
1323 int vm_object_cache_evict_all(void);
1324 int
vm_object_cache_evict_all(void)1325 vm_object_cache_evict_all(void)
1326 {
1327 	int freed;
1328 
1329 	vm_page_lock_queues();
1330 	freed = vm_object_cache_evict(INT_MAX, INT_MAX);
1331 	vm_page_unlock_queues();
1332 	printf("%s: freed %d\n", __func__, freed);
1333 	return freed;
1334 }
1335 
1336 /*
1337  *	Routine:	vm_object_terminate
1338  *	Purpose:
1339  *		Free all resources associated with a vm_object.
1340  *	In/out conditions:
1341  *		Upon entry, the object must be locked,
1342  *		and the object must have exactly one reference.
1343  *
1344  *		The shadow object reference is left alone.
1345  *
1346  *		The object must be unlocked if its found that pages
1347  *		must be flushed to a backing object.  If someone
1348  *		manages to map the object while it is being flushed
1349  *		the object is returned unlocked and unchanged.  Otherwise,
1350  *		upon exit, the cache will be unlocked, and the
1351  *		object will cease to exist.
1352  */
1353 static kern_return_t
vm_object_terminate(vm_object_t object)1354 vm_object_terminate(
1355 	vm_object_t     object)
1356 {
1357 	vm_object_t     shadow_object;
1358 
1359 	vm_object_lock_assert_exclusive(object);
1360 
1361 	if (!object->pageout && (!object->internal && object->can_persist) &&
1362 	    (object->pager != NULL || object->shadow_severed)) {
1363 		/*
1364 		 * Clear pager_trusted bit so that the pages get yanked
1365 		 * out of the object instead of cleaned in place.  This
1366 		 * prevents a deadlock in XMM and makes more sense anyway.
1367 		 */
1368 		VM_OBJECT_SET_PAGER_TRUSTED(object, FALSE);
1369 
1370 		vm_object_reap_pages(object, REAP_TERMINATE);
1371 	}
1372 	/*
1373 	 *	Make sure the object isn't already being terminated
1374 	 */
1375 	if (object->terminating) {
1376 		vm_object_lock_assert_exclusive(object);
1377 		os_ref_release_live_locked_raw(&object->ref_count, &vm_object_refgrp);
1378 		vm_object_unlock(object);
1379 		return KERN_FAILURE;
1380 	}
1381 
1382 	/*
1383 	 * Did somebody get a reference to the object while we were
1384 	 * cleaning it?
1385 	 */
1386 	if (os_ref_get_count_raw(&object->ref_count) != 1) {
1387 		vm_object_lock_assert_exclusive(object);
1388 		os_ref_release_live_locked_raw(&object->ref_count, &vm_object_refgrp);
1389 		vm_object_unlock(object);
1390 		return KERN_FAILURE;
1391 	}
1392 
1393 	/*
1394 	 *	Make sure no one can look us up now.
1395 	 */
1396 
1397 	VM_OBJECT_SET_TERMINATING(object, TRUE);
1398 	VM_OBJECT_SET_ALIVE(object, FALSE);
1399 
1400 	if (!object->internal &&
1401 	    object->cached_list.next &&
1402 	    object->cached_list.prev) {
1403 		vm_object_cache_remove(object);
1404 	}
1405 
1406 	/*
1407 	 *	Detach the object from its shadow if we are the shadow's
1408 	 *	copy. The reference we hold on the shadow must be dropped
1409 	 *	by our caller.
1410 	 */
1411 	if (((shadow_object = object->shadow) != VM_OBJECT_NULL) &&
1412 	    !(object->pageout)) {
1413 		vm_object_lock(shadow_object);
1414 		if (shadow_object->vo_copy == object) {
1415 			VM_OBJECT_COPY_SET(shadow_object, VM_OBJECT_NULL);
1416 		}
1417 		vm_object_unlock(shadow_object);
1418 	}
1419 
1420 	if (object->paging_in_progress != 0 ||
1421 	    object->activity_in_progress != 0) {
1422 		/*
1423 		 * There are still some paging_in_progress references
1424 		 * on this object, meaning that there are some paging
1425 		 * or other I/O operations in progress for this VM object.
1426 		 * Such operations take some paging_in_progress references
1427 		 * up front to ensure that the object doesn't go away, but
1428 		 * they may also need to acquire a reference on the VM object,
1429 		 * to map it in kernel space, for example.  That means that
1430 		 * they may end up releasing the last reference on the VM
1431 		 * object, triggering its termination, while still holding
1432 		 * paging_in_progress references.  Waiting for these
1433 		 * pending paging_in_progress references to go away here would
1434 		 * deadlock.
1435 		 *
1436 		 * To avoid deadlocking, we'll let the vm_object_reaper_thread
1437 		 * complete the VM object termination if it still holds
1438 		 * paging_in_progress references at this point.
1439 		 *
1440 		 * No new paging_in_progress should appear now that the
1441 		 * VM object is "terminating" and not "alive".
1442 		 */
1443 		vm_object_reap_async(object);
1444 		vm_object_unlock(object);
1445 		/*
1446 		 * Return KERN_FAILURE to let the caller know that we
1447 		 * haven't completed the termination and it can't drop this
1448 		 * object's reference on its shadow object yet.
1449 		 * The reaper thread will take care of that once it has
1450 		 * completed this object's termination.
1451 		 */
1452 		return KERN_FAILURE;
1453 	}
1454 	/*
1455 	 * complete the VM object termination
1456 	 */
1457 	vm_object_reap(object);
1458 	object = VM_OBJECT_NULL;
1459 
1460 	/*
1461 	 * the object lock was released by vm_object_reap()
1462 	 *
1463 	 * KERN_SUCCESS means that this object has been terminated
1464 	 * and no longer needs its shadow object but still holds a
1465 	 * reference on it.
1466 	 * The caller is responsible for dropping that reference.
1467 	 * We can't call vm_object_deallocate() here because that
1468 	 * would create a recursion.
1469 	 */
1470 	return KERN_SUCCESS;
1471 }
1472 
1473 
1474 /*
1475  * vm_object_reap():
1476  *
1477  * Complete the termination of a VM object after it's been marked
1478  * as "terminating" and "!alive" by vm_object_terminate().
1479  *
1480  * The VM object must be locked by caller.
1481  * The lock will be released on return and the VM object is no longer valid.
1482  */
1483 
1484 void
vm_object_reap(vm_object_t object)1485 vm_object_reap(
1486 	vm_object_t object)
1487 {
1488 	memory_object_t         pager;
1489 	os_ref_count_t          ref_count;
1490 
1491 	vm_object_lock_assert_exclusive(object);
1492 	assert(object->paging_in_progress == 0);
1493 	assert(object->activity_in_progress == 0);
1494 
1495 	vm_object_reap_count++;
1496 
1497 	/*
1498 	 * Disown this purgeable object to cleanup its owner's purgeable
1499 	 * ledgers.  We need to do this before disconnecting the object
1500 	 * from its pager, to properly account for compressed pages.
1501 	 */
1502 	if (/* object->internal && */
1503 		(object->purgable != VM_PURGABLE_DENY ||
1504 		object->vo_ledger_tag)) {
1505 		int ledger_flags;
1506 		kern_return_t kr;
1507 
1508 		ledger_flags = 0;
1509 		assert(!object->alive);
1510 		assert(object->terminating);
1511 		kr = vm_object_ownership_change(object,
1512 		    VM_LEDGER_TAG_NONE,
1513 		    NULL,                    /* no owner */
1514 		    ledger_flags,
1515 		    FALSE);                  /* task_objq not locked */
1516 		assert(kr == KERN_SUCCESS);
1517 		assert(object->vo_owner == NULL);
1518 	}
1519 
1520 #if DEVELOPMENT || DEBUG
1521 	if (object->object_is_shared_cache &&
1522 	    object->pager != NULL &&
1523 	    object->pager->mo_pager_ops == &shared_region_pager_ops) {
1524 		OSAddAtomic(-object->resident_page_count, &shared_region_pagers_resident_count);
1525 	}
1526 #endif /* DEVELOPMENT || DEBUG */
1527 
1528 	pager = object->pager;
1529 	object->pager = MEMORY_OBJECT_NULL;
1530 
1531 	if (pager != MEMORY_OBJECT_NULL) {
1532 		memory_object_control_disable(&object->pager_control);
1533 	}
1534 
1535 	ref_count = os_ref_release_locked_raw(&object->ref_count,
1536 	    &vm_object_refgrp);
1537 	if (__improbable(ref_count != 0)) {
1538 		panic("Attempting to deallocate vm_object with outstanding refs: %u",
1539 		    ref_count);
1540 	}
1541 
1542 	/*
1543 	 * remove from purgeable queue if it's on
1544 	 */
1545 	if (object->internal) {
1546 		assert(VM_OBJECT_OWNER(object) == TASK_NULL);
1547 
1548 		VM_OBJECT_UNWIRED(object);
1549 
1550 		if (object->purgable == VM_PURGABLE_DENY) {
1551 			/* not purgeable: nothing to do */
1552 		} else if (object->purgable == VM_PURGABLE_VOLATILE) {
1553 			purgeable_q_t queue;
1554 
1555 			queue = vm_purgeable_object_remove(object);
1556 			assert(queue);
1557 
1558 			if (object->purgeable_when_ripe) {
1559 				/*
1560 				 * Must take page lock for this -
1561 				 * using it to protect token queue
1562 				 */
1563 				vm_page_lock_queues();
1564 				vm_purgeable_token_delete_first(queue);
1565 
1566 				assert(queue->debug_count_objects >= 0);
1567 				vm_page_unlock_queues();
1568 			}
1569 
1570 			/*
1571 			 * Update "vm_page_purgeable_count" in bulk and mark
1572 			 * object as VM_PURGABLE_EMPTY to avoid updating
1573 			 * "vm_page_purgeable_count" again in vm_page_remove()
1574 			 * when reaping the pages.
1575 			 */
1576 			unsigned int delta;
1577 			assert(object->resident_page_count >=
1578 			    object->wired_page_count);
1579 			delta = (object->resident_page_count -
1580 			    object->wired_page_count);
1581 			if (delta != 0) {
1582 				assert(vm_page_purgeable_count >= delta);
1583 				OSAddAtomic(-delta,
1584 				    (SInt32 *)&vm_page_purgeable_count);
1585 			}
1586 			if (object->wired_page_count != 0) {
1587 				assert(vm_page_purgeable_wired_count >=
1588 				    object->wired_page_count);
1589 				OSAddAtomic(-object->wired_page_count,
1590 				    (SInt32 *)&vm_page_purgeable_wired_count);
1591 			}
1592 			VM_OBJECT_SET_PURGABLE(object, VM_PURGABLE_EMPTY);
1593 		} else if (object->purgable == VM_PURGABLE_NONVOLATILE ||
1594 		    object->purgable == VM_PURGABLE_EMPTY) {
1595 			/* remove from nonvolatile queue */
1596 			vm_purgeable_nonvolatile_dequeue(object);
1597 		} else {
1598 			panic("object %p in unexpected purgeable state 0x%x",
1599 			    object, object->purgable);
1600 		}
1601 		if (object->transposed &&
1602 		    object->cached_list.next != NULL &&
1603 		    object->cached_list.prev == NULL) {
1604 			/*
1605 			 * object->cached_list.next "points" to the
1606 			 * object that was transposed with this object.
1607 			 */
1608 		} else {
1609 			assert(object->cached_list.next == NULL);
1610 		}
1611 		assert(object->cached_list.prev == NULL);
1612 	}
1613 
1614 	if (object->pageout) {
1615 		/*
1616 		 * free all remaining pages tabled on
1617 		 * this object
1618 		 * clean up it's shadow
1619 		 */
1620 		assert(object->shadow != VM_OBJECT_NULL);
1621 
1622 		vm_pageout_object_terminate(object);
1623 	} else if (object->resident_page_count) {
1624 		/*
1625 		 * free all remaining pages tabled on
1626 		 * this object
1627 		 */
1628 		vm_object_reap_pages(object, REAP_REAP);
1629 	}
1630 	assert(vm_page_queue_empty(&object->memq));
1631 	assert(object->paging_in_progress == 0);
1632 	assert(object->activity_in_progress == 0);
1633 	assert(os_ref_get_count_raw(&object->ref_count) == 0);
1634 
1635 	/*
1636 	 * If the pager has not already been released by
1637 	 * vm_object_destroy, we need to terminate it and
1638 	 * release our reference to it here.
1639 	 */
1640 	if (pager != MEMORY_OBJECT_NULL) {
1641 		vm_object_unlock(object);
1642 		vm_object_release_pager(pager);
1643 		vm_object_lock(object);
1644 	}
1645 
1646 	/* kick off anyone waiting on terminating */
1647 	VM_OBJECT_SET_TERMINATING(object, FALSE);
1648 	vm_object_paging_begin(object);
1649 	vm_object_paging_end(object);
1650 	vm_object_unlock(object);
1651 
1652 	object->shadow = VM_OBJECT_NULL;
1653 
1654 #if VM_OBJECT_TRACKING
1655 	if (vm_object_tracking_btlog) {
1656 		btlog_erase(vm_object_tracking_btlog, object);
1657 	}
1658 #endif /* VM_OBJECT_TRACKING */
1659 
1660 	vm_object_lock_destroy(object);
1661 	/*
1662 	 *	Free the space for the object.
1663 	 */
1664 	zfree(vm_object_zone, object);
1665 	object = VM_OBJECT_NULL;
1666 }
1667 
1668 
1669 unsigned int vm_max_batch = 256;
1670 
1671 #define V_O_R_MAX_BATCH 128
1672 
1673 #define BATCH_LIMIT(max)        (vm_max_batch >= max ? max : vm_max_batch)
1674 
1675 static inline vm_page_t
vm_object_reap_freelist(vm_page_t local_free_q,bool do_disconnect,bool set_cache_attr)1676 vm_object_reap_freelist(vm_page_t local_free_q, bool do_disconnect, bool set_cache_attr)
1677 {
1678 	vm_page_t page;
1679 	if (local_free_q) {
1680 		if (do_disconnect) {
1681 			_vm_page_list_foreach(page, local_free_q) {
1682 				if (page->vmp_pmapped) {
1683 					pmap_disconnect(VM_PAGE_GET_PHYS_PAGE(page));
1684 				}
1685 			}
1686 		}
1687 
1688 		if (set_cache_attr) {
1689 			const unified_page_list_t pmap_batch_list = {
1690 				.page_slist = local_free_q,
1691 				.type = UNIFIED_PAGE_LIST_TYPE_VM_PAGE_LIST,
1692 			};
1693 			pmap_batch_set_cache_attributes(&pmap_batch_list, 0);
1694 		}
1695 		vm_page_free_list(local_free_q, TRUE);
1696 	}
1697 	return VM_PAGE_NULL;
1698 }
1699 
1700 void
vm_object_reap_pages(vm_object_t object,int reap_type)1701 vm_object_reap_pages(
1702 	vm_object_t     object,
1703 	int             reap_type)
1704 {
1705 	vm_page_t       p;
1706 	vm_page_t       next;
1707 	vm_page_t       local_free_q = VM_PAGE_NULL;
1708 	int             loop_count;
1709 	bool            disconnect_on_release;
1710 	bool            set_cache_attr_needed;
1711 	pmap_flush_context      pmap_flush_context_storage;
1712 
1713 	if (reap_type == REAP_DATA_FLUSH) {
1714 		/*
1715 		 * We need to disconnect pages from all pmaps before
1716 		 * releasing them to the free list
1717 		 */
1718 		disconnect_on_release = true;
1719 	} else {
1720 		/*
1721 		 * Either the caller has already disconnected the pages
1722 		 * from all pmaps, or we disconnect them here as we add
1723 		 * them to out local list of pages to be released.
1724 		 * No need to re-disconnect them when we release the pages
1725 		 * to the free list.
1726 		 */
1727 		disconnect_on_release = false;
1728 	}
1729 
1730 restart_after_sleep:
1731 	set_cache_attr_needed = false;
1732 	if (object->set_cache_attr) {
1733 		/**
1734 		 * If the cache attributes need to be reset for the pages to
1735 		 * be freed, we clear object->set_cache_attr here so that
1736 		 * our call to vm_page_free_list (which will ultimately call
1737 		 * vm_page_remove() on each page) won't try to reset the
1738 		 * cache attributes on each page individually.  Depending on
1739 		 * the architecture, it may be much faster for us to call
1740 		 * pmap_batch_set_cache_attributes() instead.  Note that
1741 		 * this function must restore object->set_cache_attr in any
1742 		 * case where it is required to drop the object lock, e.g.
1743 		 * to wait for a busy page.
1744 		 */
1745 		object->set_cache_attr = FALSE;
1746 		set_cache_attr_needed = true;
1747 	}
1748 
1749 	if (vm_page_queue_empty(&object->memq)) {
1750 		return;
1751 	}
1752 	loop_count = BATCH_LIMIT(V_O_R_MAX_BATCH);
1753 
1754 	if (reap_type == REAP_PURGEABLE) {
1755 		pmap_flush_context_init(&pmap_flush_context_storage);
1756 	}
1757 
1758 	vm_page_lock_queues();
1759 
1760 	next = (vm_page_t)vm_page_queue_first(&object->memq);
1761 
1762 	while (!vm_page_queue_end(&object->memq, (vm_page_queue_entry_t)next)) {
1763 		p = next;
1764 		next = (vm_page_t)vm_page_queue_next(&next->vmp_listq);
1765 
1766 		if (--loop_count == 0) {
1767 			vm_page_unlock_queues();
1768 
1769 			if (local_free_q) {
1770 				if (reap_type == REAP_PURGEABLE) {
1771 					pmap_flush(&pmap_flush_context_storage);
1772 					pmap_flush_context_init(&pmap_flush_context_storage);
1773 				}
1774 				/*
1775 				 * Free the pages we reclaimed so far
1776 				 * and take a little break to avoid
1777 				 * hogging the page queue lock too long
1778 				 */
1779 				local_free_q = vm_object_reap_freelist(local_free_q,
1780 				    disconnect_on_release, set_cache_attr_needed);
1781 			} else {
1782 				mutex_pause(0);
1783 			}
1784 
1785 			loop_count = BATCH_LIMIT(V_O_R_MAX_BATCH);
1786 
1787 			vm_page_lock_queues();
1788 		}
1789 		if (reap_type == REAP_DATA_FLUSH || reap_type == REAP_TERMINATE) {
1790 			if (p->vmp_busy || p->vmp_cleaning) {
1791 				vm_page_unlock_queues();
1792 				/*
1793 				 * free the pages reclaimed so far
1794 				 */
1795 				local_free_q = vm_object_reap_freelist(local_free_q,
1796 				    disconnect_on_release, set_cache_attr_needed);
1797 
1798 				if (set_cache_attr_needed) {
1799 					object->set_cache_attr = TRUE;
1800 				}
1801 				vm_page_sleep(object, p, THREAD_UNINT, LCK_SLEEP_DEFAULT);
1802 
1803 				goto restart_after_sleep;
1804 			}
1805 			if (p->vmp_laundry) {
1806 				vm_pageout_steal_laundry(p, TRUE);
1807 			}
1808 		}
1809 		switch (reap_type) {
1810 		case REAP_DATA_FLUSH:
1811 			if (VM_PAGE_WIRED(p)) {
1812 				/*
1813 				 * this is an odd case... perhaps we should
1814 				 * zero-fill this page since we're conceptually
1815 				 * tossing its data at this point, but leaving
1816 				 * it on the object to honor the 'wire' contract
1817 				 */
1818 				continue;
1819 			}
1820 			break;
1821 
1822 		case REAP_PURGEABLE:
1823 			if (VM_PAGE_WIRED(p)) {
1824 				/*
1825 				 * can't purge a wired page
1826 				 */
1827 				vm_page_purged_wired++;
1828 				continue;
1829 			}
1830 			if (p->vmp_laundry && !p->vmp_busy && !p->vmp_cleaning) {
1831 				vm_pageout_steal_laundry(p, TRUE);
1832 			}
1833 
1834 			if (p->vmp_cleaning || p->vmp_laundry || p->vmp_absent) {
1835 				/*
1836 				 * page is being acted upon,
1837 				 * so don't mess with it
1838 				 */
1839 				vm_page_purged_others++;
1840 				continue;
1841 			}
1842 			if (p->vmp_busy) {
1843 				/*
1844 				 * We can't reclaim a busy page but we can
1845 				 * make it more likely to be paged (it's not wired) to make
1846 				 * sure that it gets considered by
1847 				 * vm_pageout_scan() later.
1848 				 */
1849 				if (VM_PAGE_PAGEABLE(p)) {
1850 					vm_page_deactivate(p);
1851 				}
1852 				vm_page_purged_busy++;
1853 				continue;
1854 			}
1855 
1856 			assert(!is_kernel_object(VM_PAGE_OBJECT(p)));
1857 
1858 			/*
1859 			 * we can discard this page...
1860 			 */
1861 			if (p->vmp_pmapped == TRUE) {
1862 				/*
1863 				 * unmap the page
1864 				 */
1865 				pmap_disconnect_options(VM_PAGE_GET_PHYS_PAGE(p), PMAP_OPTIONS_NOFLUSH | PMAP_OPTIONS_NOREFMOD, (void *)&pmap_flush_context_storage);
1866 			}
1867 			vm_page_purged_count++;
1868 
1869 			break;
1870 
1871 		case REAP_TERMINATE:
1872 			if (p->vmp_absent || vm_page_is_private(p)) {
1873 				/*
1874 				 *	For private pages, VM_PAGE_FREE just
1875 				 *	leaves the page structure around for
1876 				 *	its owner to clean up.  For absent
1877 				 *	pages, the structure is returned to
1878 				 *	the appropriate pool.
1879 				 */
1880 				break;
1881 			}
1882 			if (vm_page_is_fictitious(p)) {
1883 				assert(vm_page_is_guard(p));
1884 				break;
1885 			}
1886 			if (!p->vmp_dirty && p->vmp_wpmapped) {
1887 				p->vmp_dirty = pmap_is_modified(VM_PAGE_GET_PHYS_PAGE(p));
1888 			}
1889 
1890 			if ((p->vmp_dirty || p->vmp_precious) && !VMP_ERROR_GET(p) && object->alive) {
1891 				assert(!object->internal);
1892 
1893 				p->vmp_free_when_done = TRUE;
1894 
1895 				if (!p->vmp_laundry) {
1896 					vm_page_queues_remove(p, TRUE);
1897 					/*
1898 					 * flush page... page will be freed
1899 					 * upon completion of I/O
1900 					 */
1901 					vm_pageout_cluster(p);
1902 				}
1903 				vm_page_unlock_queues();
1904 				/*
1905 				 * free the pages reclaimed so far
1906 				 */
1907 				local_free_q = vm_object_reap_freelist(local_free_q,
1908 				    disconnect_on_release, set_cache_attr_needed);
1909 
1910 				if (set_cache_attr_needed) {
1911 					object->set_cache_attr = TRUE;
1912 				}
1913 				vm_object_paging_wait(object, THREAD_UNINT);
1914 
1915 				goto restart_after_sleep;
1916 			}
1917 			break;
1918 
1919 		case REAP_REAP:
1920 			break;
1921 		}
1922 		vm_page_free_prepare_queues(p);
1923 		assert(p->vmp_pageq.next == 0 && p->vmp_pageq.prev == 0);
1924 		/*
1925 		 * Add this page to our list of reclaimed pages,
1926 		 * to be freed later.
1927 		 */
1928 		p->vmp_snext = local_free_q;
1929 		local_free_q = p;
1930 	}
1931 	vm_page_unlock_queues();
1932 
1933 	/*
1934 	 * Free the remaining reclaimed pages
1935 	 */
1936 	if (reap_type == REAP_PURGEABLE) {
1937 		pmap_flush(&pmap_flush_context_storage);
1938 	}
1939 
1940 	vm_object_reap_freelist(local_free_q,
1941 	    disconnect_on_release, set_cache_attr_needed);
1942 	if (set_cache_attr_needed) {
1943 		object->set_cache_attr = TRUE;
1944 	}
1945 }
1946 
1947 
1948 void
vm_object_reap_async(vm_object_t object)1949 vm_object_reap_async(
1950 	vm_object_t     object)
1951 {
1952 	vm_object_lock_assert_exclusive(object);
1953 
1954 	vm_object_reaper_lock_spin();
1955 
1956 	vm_object_reap_count_async++;
1957 
1958 	/* enqueue the VM object... */
1959 	queue_enter(&vm_object_reaper_queue, object,
1960 	    vm_object_t, cached_list);
1961 
1962 	vm_object_reaper_unlock();
1963 
1964 	/* ... and wake up the reaper thread */
1965 	thread_wakeup((event_t) &vm_object_reaper_queue);
1966 }
1967 
1968 
1969 void
vm_object_reaper_thread(void)1970 vm_object_reaper_thread(void)
1971 {
1972 	vm_object_t     object, shadow_object;
1973 
1974 	vm_object_reaper_lock_spin();
1975 
1976 	while (!queue_empty(&vm_object_reaper_queue)) {
1977 		queue_remove_first(&vm_object_reaper_queue,
1978 		    object,
1979 		    vm_object_t,
1980 		    cached_list);
1981 
1982 		vm_object_reaper_unlock();
1983 		vm_object_lock(object);
1984 
1985 		assert(object->terminating);
1986 		assert(!object->alive);
1987 
1988 		/*
1989 		 * The pageout daemon might be playing with our pages.
1990 		 * Now that the object is dead, it won't touch any more
1991 		 * pages, but some pages might already be on their way out.
1992 		 * Hence, we wait until the active paging activities have
1993 		 * ceased before we break the association with the pager
1994 		 * itself.
1995 		 */
1996 		vm_object_paging_wait(object, THREAD_UNINT);
1997 
1998 		shadow_object =
1999 		    object->pageout ? VM_OBJECT_NULL : object->shadow;
2000 
2001 		vm_object_reap(object);
2002 		/* cache is unlocked and object is no longer valid */
2003 		object = VM_OBJECT_NULL;
2004 
2005 		if (shadow_object != VM_OBJECT_NULL) {
2006 			/*
2007 			 * Drop the reference "object" was holding on
2008 			 * its shadow object.
2009 			 */
2010 			vm_object_deallocate(shadow_object);
2011 			shadow_object = VM_OBJECT_NULL;
2012 		}
2013 		vm_object_reaper_lock_spin();
2014 	}
2015 
2016 	/* wait for more work... */
2017 	assert_wait((event_t) &vm_object_reaper_queue, THREAD_UNINT);
2018 
2019 	vm_object_reaper_unlock();
2020 
2021 	thread_block((thread_continue_t) vm_object_reaper_thread);
2022 	/*NOTREACHED*/
2023 }
2024 
2025 /*
2026  *	Routine:	vm_object_release_pager
2027  *	Purpose:	Terminate the pager and, upon completion,
2028  *			release our last reference to it.
2029  */
2030 static void
vm_object_release_pager(memory_object_t pager)2031 vm_object_release_pager(
2032 	memory_object_t pager)
2033 {
2034 	/*
2035 	 *	Terminate the pager.
2036 	 */
2037 
2038 	(void) memory_object_terminate(pager);
2039 
2040 	/*
2041 	 *	Release reference to pager.
2042 	 */
2043 	memory_object_deallocate(pager);
2044 }
2045 
2046 /*
2047  *	Routine:	vm_object_destroy
2048  *	Purpose:
2049  *		Shut down a VM object, despite the
2050  *		presence of address map (or other) references
2051  *		to the vm_object.
2052  */
2053 #if FBDP_DEBUG_OBJECT_NO_PAGER
2054 extern uint32_t system_inshutdown;
2055 int fbdp_no_panic = 1;
2056 #endif /* FBDP_DEBUG_OBJECT_NO_PAGER */
2057 kern_return_t
vm_object_destroy(vm_object_t object,vm_object_destroy_reason_t reason)2058 vm_object_destroy(
2059 	vm_object_t                                     object,
2060 	vm_object_destroy_reason_t   reason)
2061 {
2062 	memory_object_t         old_pager;
2063 
2064 	if (object == VM_OBJECT_NULL) {
2065 		return KERN_SUCCESS;
2066 	}
2067 
2068 	/*
2069 	 *	Remove the pager association immediately.
2070 	 *
2071 	 *	This will prevent the memory manager from further
2072 	 *	meddling.  [If it wanted to flush data or make
2073 	 *	other changes, it should have done so before performing
2074 	 *	the destroy call.]
2075 	 */
2076 
2077 	vm_object_lock(object);
2078 
2079 #if FBDP_DEBUG_OBJECT_NO_PAGER
2080 	static bool fbdp_no_panic_retrieved = false;
2081 	if (!fbdp_no_panic_retrieved) {
2082 		PE_parse_boot_argn("fbdp_no_panic4", &fbdp_no_panic, sizeof(fbdp_no_panic));
2083 		fbdp_no_panic_retrieved = true;
2084 	}
2085 
2086 	bool forced_unmount = false;
2087 	if (object->named &&
2088 	    os_ref_get_count_raw(&object->ref_count) > 2 &&
2089 	    object->pager != NULL &&
2090 	    vnode_pager_get_forced_unmount(object->pager, &forced_unmount) == KERN_SUCCESS &&
2091 	    forced_unmount == false) {
2092 		if (!fbdp_no_panic) {
2093 			panic("FBDP rdar://99829401 object %p refs %d pager %p (no forced unmount)\n", object, os_ref_get_count_raw(&object->ref_count), object->pager);
2094 		}
2095 		DTRACE_VM3(vm_object_destroy_no_forced_unmount,
2096 		    vm_object_t, object,
2097 		    int, os_ref_get_count_raw(&object->ref_count),
2098 		    memory_object_t, object->pager);
2099 	}
2100 
2101 	if (object->fbdp_tracked) {
2102 		if (os_ref_get_count_raw(&object->ref_count) > 2 && !system_inshutdown) {
2103 			if (!fbdp_no_panic) {
2104 				panic("FBDP/4 rdar://99829401 object %p refs %d pager %p (tracked)\n", object, os_ref_get_count_raw(&object->ref_count), object->pager);
2105 			}
2106 		}
2107 		VM_OBJECT_SET_FBDP_TRACKED(object, false);
2108 	}
2109 #endif /* FBDP_DEBUG_OBJECT_NO_PAGER */
2110 
2111 	VM_OBJECT_SET_NO_PAGER_REASON(object, reason);
2112 
2113 	VM_OBJECT_SET_CAN_PERSIST(object, FALSE);
2114 	VM_OBJECT_SET_NAMED(object, FALSE);
2115 #if 00
2116 	VM_OBJECT_SET_ALIVE(object, FALSE);
2117 #endif /* 00 */
2118 
2119 #if DEVELOPMENT || DEBUG
2120 	if (object->object_is_shared_cache &&
2121 	    object->pager != NULL &&
2122 	    object->pager->mo_pager_ops == &shared_region_pager_ops) {
2123 		OSAddAtomic(-object->resident_page_count, &shared_region_pagers_resident_count);
2124 	}
2125 #endif /* DEVELOPMENT || DEBUG */
2126 
2127 	old_pager = object->pager;
2128 	object->pager = MEMORY_OBJECT_NULL;
2129 	if (old_pager != MEMORY_OBJECT_NULL) {
2130 		memory_object_control_disable(&object->pager_control);
2131 	}
2132 
2133 	/*
2134 	 * Wait for the existing paging activity (that got
2135 	 * through before we nulled out the pager) to subside.
2136 	 */
2137 
2138 	vm_object_paging_wait(object, THREAD_UNINT);
2139 	vm_object_unlock(object);
2140 
2141 	/*
2142 	 *	Terminate the object now.
2143 	 */
2144 	if (old_pager != MEMORY_OBJECT_NULL) {
2145 		vm_object_release_pager(old_pager);
2146 
2147 		/*
2148 		 * JMM - Release the caller's reference.  This assumes the
2149 		 * caller had a reference to release, which is a big (but
2150 		 * currently valid) assumption if this is driven from the
2151 		 * vnode pager (it is holding a named reference when making
2152 		 * this call)..
2153 		 */
2154 		vm_object_deallocate(object);
2155 	}
2156 	return KERN_SUCCESS;
2157 }
2158 
2159 /*
2160  * The "chunk" macros are used by routines below when looking for pages to deactivate.  These
2161  * exist because of the need to handle shadow chains.  When deactivating pages, we only
2162  * want to deactive the ones at the top most level in the object chain.  In order to do
2163  * this efficiently, the specified address range is divided up into "chunks" and we use
2164  * a bit map to keep track of which pages have already been processed as we descend down
2165  * the shadow chain.  These chunk macros hide the details of the bit map implementation
2166  * as much as we can.
2167  *
2168  * For convenience, we use a 64-bit data type as the bit map, and therefore a chunk is
2169  * set to 64 pages.  The bit map is indexed from the low-order end, so that the lowest
2170  * order bit represents page 0 in the current range and highest order bit represents
2171  * page 63.
2172  *
2173  * For further convenience, we also use negative logic for the page state in the bit map.
2174  * The bit is set to 1 to indicate it has not yet been seen, and to 0 to indicate it has
2175  * been processed.  This way we can simply test the 64-bit long word to see if it's zero
2176  * to easily tell if the whole range has been processed.  Therefore, the bit map starts
2177  * out with all the bits set.  The macros below hide all these details from the caller.
2178  */
2179 
2180 #define PAGES_IN_A_CHUNK        64      /* The number of pages in the chunk must */
2181                                         /* be the same as the number of bits in  */
2182                                         /* the chunk_state_t type. We use 64     */
2183                                         /* just for convenience.		 */
2184 
2185 #define CHUNK_SIZE      (PAGES_IN_A_CHUNK * PAGE_SIZE_64)       /* Size of a chunk in bytes */
2186 
2187 typedef uint64_t        chunk_state_t;
2188 
2189 /*
2190  * The bit map uses negative logic, so we start out with all 64 bits set to indicate
2191  * that no pages have been processed yet.  Also, if len is less than the full CHUNK_SIZE,
2192  * then we mark pages beyond the len as having been "processed" so that we don't waste time
2193  * looking at pages in that range.  This can save us from unnecessarily chasing down the
2194  * shadow chain.
2195  */
2196 
2197 #define CHUNK_INIT(c, len)                                              \
2198 	MACRO_BEGIN                                                     \
2199 	uint64_t p;                                                     \
2200                                                                         \
2201 	(c) = 0xffffffffffffffffLL;                                     \
2202                                                                         \
2203 	for (p = (len) / PAGE_SIZE_64; p < PAGES_IN_A_CHUNK; p++)       \
2204 	        MARK_PAGE_HANDLED(c, p);                                \
2205 	MACRO_END
2206 
2207 
2208 /*
2209  * Return true if all pages in the chunk have not yet been processed.
2210  */
2211 
2212 #define CHUNK_NOT_COMPLETE(c)   ((c) != 0)
2213 
2214 /*
2215  * Return true if the page at offset 'p' in the bit map has already been handled
2216  * while processing a higher level object in the shadow chain.
2217  */
2218 
2219 #define PAGE_ALREADY_HANDLED(c, p)      (((c) & (1ULL << (p))) == 0)
2220 
2221 /*
2222  * Mark the page at offset 'p' in the bit map as having been processed.
2223  */
2224 
2225 #define MARK_PAGE_HANDLED(c, p) \
2226 MACRO_BEGIN \
2227 	(c) = (c) & ~(1ULL << (p)); \
2228 MACRO_END
2229 
2230 
2231 /*
2232  * Return true if the page at the given offset has been paged out.  Object is
2233  * locked upon entry and returned locked.
2234  *
2235  * NB: It is the callers responsibility to ensure that the offset in question
2236  * is not in the process of being paged in/out (i.e. not busy or no backing
2237  * page)
2238  */
2239 static bool
page_is_paged_out(vm_object_t object,vm_object_offset_t offset)2240 page_is_paged_out(
2241 	vm_object_t             object,
2242 	vm_object_offset_t      offset)
2243 {
2244 	if (object->internal &&
2245 	    object->alive &&
2246 	    !object->terminating &&
2247 	    object->pager_ready) {
2248 		if (vm_object_compressor_pager_state_get(object, offset)
2249 		    == VM_EXTERNAL_STATE_EXISTS) {
2250 			return true;
2251 		}
2252 	}
2253 	return false;
2254 }
2255 
2256 
2257 
2258 /*
2259  * madvise_free_debug
2260  *
2261  * To help debug madvise(MADV_FREE*) mis-usage, this triggers a
2262  * zero-fill as soon as a page is affected by a madvise(MADV_FREE*), to
2263  * simulate the loss of the page's contents as if the page had been
2264  * reclaimed and then re-faulted.
2265  */
2266 #if DEVELOPMENT || DEBUG
2267 int madvise_free_debug = 0;
2268 int madvise_free_debug_sometimes = 1;
2269 #else /* DEBUG */
2270 int madvise_free_debug = 0;
2271 int madvise_free_debug_sometimes = 0;
2272 #endif /* DEBUG */
2273 int madvise_free_counter = 0;
2274 
2275 __options_decl(deactivate_flags_t, uint32_t, {
2276 	DEACTIVATE_KILL         = 0x1,
2277 	DEACTIVATE_REUSABLE     = 0x2,
2278 	DEACTIVATE_ALL_REUSABLE = 0x4,
2279 	DEACTIVATE_CLEAR_REFMOD = 0x8,
2280 	DEACTIVATE_KILL_NO_WRITE = 0x10
2281 });
2282 
2283 /*
2284  * Deactivate the pages in the specified object and range.  If kill_page is set, also discard any
2285  * page modified state from the pmap.  Update the chunk_state as we go along.  The caller must specify
2286  * a size that is less than or equal to the CHUNK_SIZE.
2287  */
2288 
2289 static void
deactivate_pages_in_object(vm_object_t object,vm_object_offset_t offset,vm_object_size_t size,deactivate_flags_t flags,chunk_state_t * chunk_state,pmap_flush_context * pfc,struct pmap * pmap,vm_map_offset_t pmap_offset)2290 deactivate_pages_in_object(
2291 	vm_object_t             object,
2292 	vm_object_offset_t      offset,
2293 	vm_object_size_t        size,
2294 	deactivate_flags_t      flags,
2295 	chunk_state_t           *chunk_state,
2296 	pmap_flush_context      *pfc,
2297 	struct pmap             *pmap,
2298 	vm_map_offset_t         pmap_offset)
2299 {
2300 	vm_page_t       m;
2301 	int             p;
2302 	struct  vm_page_delayed_work    dw_array;
2303 	struct  vm_page_delayed_work    *dwp, *dwp_start;
2304 	bool            dwp_finish_ctx = TRUE;
2305 	int             dw_count;
2306 	int             dw_limit;
2307 	unsigned int    reusable = 0;
2308 
2309 	/*
2310 	 * Examine each page in the chunk.  The variable 'p' is the page number relative to the start of the
2311 	 * chunk.  Since this routine is called once for each level in the shadow chain, the chunk_state may
2312 	 * have pages marked as having been processed already.  We stop the loop early if we find we've handled
2313 	 * all the pages in the chunk.
2314 	 */
2315 
2316 	dwp_start = dwp = NULL;
2317 	dw_count = 0;
2318 	dw_limit = DELAYED_WORK_LIMIT(DEFAULT_DELAYED_WORK_LIMIT);
2319 	dwp_start = vm_page_delayed_work_get_ctx();
2320 	if (dwp_start == NULL) {
2321 		dwp_start = &dw_array;
2322 		dw_limit = 1;
2323 		dwp_finish_ctx = FALSE;
2324 	}
2325 
2326 	dwp = dwp_start;
2327 
2328 	for (p = 0; size && CHUNK_NOT_COMPLETE(*chunk_state); p++, size -= PAGE_SIZE_64, offset += PAGE_SIZE_64, pmap_offset += PAGE_SIZE_64) {
2329 		/*
2330 		 * If this offset has already been found and handled in a higher level object, then don't
2331 		 * do anything with it in the current shadow object.
2332 		 */
2333 
2334 		if (PAGE_ALREADY_HANDLED(*chunk_state, p)) {
2335 			continue;
2336 		}
2337 
2338 		/*
2339 		 * See if the page at this offset is around.  First check to see if the page is resident,
2340 		 * then if not, check the existence map or with the pager.
2341 		 */
2342 
2343 		if ((m = vm_page_lookup(object, offset)) != VM_PAGE_NULL) {
2344 			/*
2345 			 * We found a page we were looking for.  Mark it as "handled" now in the chunk_state
2346 			 * so that we won't bother looking for a page at this offset again if there are more
2347 			 * shadow objects.  Then deactivate the page.
2348 			 */
2349 
2350 			MARK_PAGE_HANDLED(*chunk_state, p);
2351 
2352 			if ((!VM_PAGE_WIRED(m)) && (!vm_page_is_private(m)) && (!m->vmp_gobbled) && (!m->vmp_busy) &&
2353 			    (!m->vmp_laundry) && (!m->vmp_cleaning) && !(m->vmp_free_when_done)) {
2354 				int     clear_refmod_mask;
2355 				int     pmap_options;
2356 				dwp->dw_mask = 0;
2357 
2358 				pmap_options = 0;
2359 				clear_refmod_mask = VM_MEM_REFERENCED;
2360 				dwp->dw_mask |= DW_clear_reference;
2361 
2362 				if ((flags & DEACTIVATE_KILL) && (object->internal)) {
2363 					if (!(flags & DEACTIVATE_KILL_NO_WRITE) &&
2364 					    (madvise_free_debug ||
2365 					    (madvise_free_debug_sometimes &&
2366 					    madvise_free_counter++ & 0x1))) {
2367 						/*
2368 						 * zero-fill the page (or every
2369 						 * other page) now to simulate
2370 						 * it being reclaimed and
2371 						 * re-faulted.
2372 						 */
2373 #if CONFIG_TRACK_UNMODIFIED_ANON_PAGES
2374 						if (!m->vmp_unmodified_ro) {
2375 #else /* CONFIG_TRACK_UNMODIFIED_ANON_PAGES */
2376 						if (true) {
2377 #endif /* CONFIG_TRACK_UNMODIFIED_ANON_PAGES */
2378 							pmap_zero_page(VM_PAGE_GET_PHYS_PAGE(m));
2379 						}
2380 					}
2381 					m->vmp_precious = FALSE;
2382 					m->vmp_dirty = FALSE;
2383 
2384 					clear_refmod_mask |= VM_MEM_MODIFIED;
2385 					if (m->vmp_q_state == VM_PAGE_ON_THROTTLED_Q) {
2386 						/*
2387 						 * This page is now clean and
2388 						 * reclaimable.  Move it out
2389 						 * of the throttled queue, so
2390 						 * that vm_pageout_scan() can
2391 						 * find it.
2392 						 */
2393 						dwp->dw_mask |= DW_move_page;
2394 					}
2395 
2396 #if 0
2397 #if CONFIG_TRACK_UNMODIFIED_ANON_PAGES
2398 					/*
2399 					 * COMMENT BLOCK ON WHY THIS SHOULDN'T BE DONE.
2400 					 *
2401 					 * Since we are about to do a vm_object_compressor_pager_state_clr
2402 					 * below for this page, which drops any existing compressor
2403 					 * storage of this page (eg side-effect of a CoW operation or
2404 					 * a collapse operation), it is tempting to think that we should
2405 					 * treat this page as if it was just decompressed (during which
2406 					 * we also drop existing compressor storage) and so start its life
2407 					 * out with vmp_unmodified_ro set to FALSE.
2408 					 *
2409 					 * However, we can't do that here because we could swing around
2410 					 * and re-access this page in a read-only fault.
2411 					 * Clearing this bit means we'll try to zero it up above
2412 					 * and fail.
2413 					 *
2414 					 * Note that clearing the bit is unnecessary regardless because
2415 					 * dirty state has been cleared. During the next soft fault, the
2416 					 * right state will be restored and things will progress just fine.
2417 					 */
2418 					if (m->vmp_unmodified_ro == true) {
2419 						/* Need object and pageq locks for bit manipulation*/
2420 						m->vmp_unmodified_ro = false;
2421 						os_atomic_dec(&compressor_ro_uncompressed);
2422 					}
2423 #endif /* CONFIG_TRACK_UNMODIFIED_ANON_PAGES */
2424 #endif /* 0 */
2425 					vm_object_compressor_pager_state_clr(object, offset);
2426 
2427 					if ((flags & DEACTIVATE_REUSABLE) && !m->vmp_reusable) {
2428 						assert(!(flags & DEACTIVATE_ALL_REUSABLE));
2429 						assert(!object->all_reusable);
2430 						m->vmp_reusable = TRUE;
2431 						object->reusable_page_count++;
2432 						assert(object->resident_page_count >= object->reusable_page_count);
2433 						reusable++;
2434 						/*
2435 						 * Tell pmap this page is now
2436 						 * "reusable" (to update pmap
2437 						 * stats for all mappings).
2438 						 */
2439 						pmap_options |= PMAP_OPTIONS_SET_REUSABLE;
2440 					}
2441 				}
2442 				if (flags & DEACTIVATE_CLEAR_REFMOD) {
2443 					/*
2444 					 * The caller didn't clear the refmod bits in advance.
2445 					 * Clear them for this page now.
2446 					 */
2447 					pmap_options |= PMAP_OPTIONS_NOFLUSH;
2448 					pmap_clear_refmod_options(VM_PAGE_GET_PHYS_PAGE(m),
2449 					    clear_refmod_mask,
2450 					    pmap_options,
2451 					    (void *)pfc);
2452 				}
2453 
2454 				if ((m->vmp_q_state != VM_PAGE_ON_THROTTLED_Q) &&
2455 				    !(flags & (DEACTIVATE_REUSABLE | DEACTIVATE_ALL_REUSABLE))) {
2456 					dwp->dw_mask |= DW_move_page;
2457 				}
2458 
2459 				if (dwp->dw_mask) {
2460 					VM_PAGE_ADD_DELAYED_WORK(dwp, m,
2461 					    dw_count);
2462 				}
2463 
2464 				if (dw_count >= dw_limit) {
2465 					if (reusable) {
2466 						OSAddAtomic(reusable,
2467 						    &vm_page_stats_reusable.reusable_count);
2468 						vm_page_stats_reusable.reusable += reusable;
2469 						reusable = 0;
2470 					}
2471 					vm_page_do_delayed_work(object, VM_KERN_MEMORY_NONE, dwp_start, dw_count);
2472 
2473 					dwp = dwp_start;
2474 					dw_count = 0;
2475 				}
2476 			}
2477 		} else {
2478 			/*
2479 			 * The page at this offset isn't memory resident, check to see if it's
2480 			 * been paged out.  If so, mark it as handled so we don't bother looking
2481 			 * for it in the shadow chain.
2482 			 */
2483 
2484 			if (page_is_paged_out(object, offset)) {
2485 				MARK_PAGE_HANDLED(*chunk_state, p);
2486 
2487 				/*
2488 				 * If we're killing a non-resident page, then clear the page in the existence
2489 				 * map so we don't bother paging it back in if it's touched again in the future.
2490 				 */
2491 
2492 				if ((flags & DEACTIVATE_KILL) && (object->internal)) {
2493 					vm_object_compressor_pager_state_clr(object, offset);
2494 
2495 					if (pmap != PMAP_NULL) {
2496 						/*
2497 						 * Tell pmap that this page
2498 						 * is no longer mapped, to
2499 						 * adjust the footprint ledger
2500 						 * because this page is no
2501 						 * longer compressed.
2502 						 */
2503 						pmap_remove_options(
2504 							pmap,
2505 							pmap_offset,
2506 							(pmap_offset +
2507 							PAGE_SIZE),
2508 							PMAP_OPTIONS_REMOVE);
2509 					}
2510 				}
2511 			}
2512 		}
2513 	}
2514 
2515 	if (reusable) {
2516 		OSAddAtomic(reusable, &vm_page_stats_reusable.reusable_count);
2517 		vm_page_stats_reusable.reusable += reusable;
2518 		reusable = 0;
2519 	}
2520 
2521 	if (dw_count) {
2522 		vm_page_do_delayed_work(object, VM_KERN_MEMORY_NONE, dwp_start, dw_count);
2523 		dwp = dwp_start;
2524 		dw_count = 0;
2525 	}
2526 
2527 	if (dwp_start && dwp_finish_ctx) {
2528 		vm_page_delayed_work_finish_ctx(dwp_start);
2529 		dwp_start = dwp = NULL;
2530 	}
2531 }
2532 
2533 
2534 /*
2535  * Deactive a "chunk" of the given range of the object starting at offset.  A "chunk"
2536  * will always be less than or equal to the given size.  The total range is divided up
2537  * into chunks for efficiency and performance related to the locks and handling the shadow
2538  * chain.  This routine returns how much of the given "size" it actually processed.  It's
2539  * up to the caler to loop and keep calling this routine until the entire range they want
2540  * to process has been done.
2541  * Iff clear_refmod is true, pmap_clear_refmod_options is called for each physical page in this range.
2542  */
2543 
2544 static vm_object_size_t
2545 deactivate_a_chunk(
2546 	vm_object_t             orig_object,
2547 	vm_object_offset_t      offset,
2548 	vm_object_size_t        size,
2549 	deactivate_flags_t      flags,
2550 	pmap_flush_context      *pfc,
2551 	struct pmap             *pmap,
2552 	vm_map_offset_t         pmap_offset)
2553 {
2554 	vm_object_t             object;
2555 	vm_object_t             tmp_object;
2556 	vm_object_size_t        length;
2557 	chunk_state_t           chunk_state;
2558 
2559 
2560 	/*
2561 	 * Get set to do a chunk.  We'll do up to CHUNK_SIZE, but no more than the
2562 	 * remaining size the caller asked for.
2563 	 */
2564 
2565 	length = MIN(size, CHUNK_SIZE);
2566 
2567 	/*
2568 	 * The chunk_state keeps track of which pages we've already processed if there's
2569 	 * a shadow chain on this object.  At this point, we haven't done anything with this
2570 	 * range of pages yet, so initialize the state to indicate no pages processed yet.
2571 	 */
2572 
2573 	CHUNK_INIT(chunk_state, length);
2574 	object = orig_object;
2575 
2576 	/*
2577 	 * Start at the top level object and iterate around the loop once for each object
2578 	 * in the shadow chain.  We stop processing early if we've already found all the pages
2579 	 * in the range.  Otherwise we stop when we run out of shadow objects.
2580 	 */
2581 
2582 	while (object && CHUNK_NOT_COMPLETE(chunk_state)) {
2583 		vm_object_paging_begin(object);
2584 
2585 		deactivate_pages_in_object(object, offset, length, flags, &chunk_state, pfc, pmap, pmap_offset);
2586 
2587 		vm_object_paging_end(object);
2588 
2589 		/*
2590 		 * We've finished with this object, see if there's a shadow object.  If
2591 		 * there is, update the offset and lock the new object.  We also turn off
2592 		 * kill_page at this point since we only kill pages in the top most object.
2593 		 */
2594 
2595 		tmp_object = object->shadow;
2596 
2597 		if (tmp_object) {
2598 			assert(!(flags & DEACTIVATE_KILL) || (flags & DEACTIVATE_CLEAR_REFMOD));
2599 			flags &= ~(DEACTIVATE_KILL | DEACTIVATE_REUSABLE | DEACTIVATE_ALL_REUSABLE);
2600 			offset += object->vo_shadow_offset;
2601 			vm_object_lock(tmp_object);
2602 		}
2603 
2604 		if (object != orig_object) {
2605 			vm_object_unlock(object);
2606 		}
2607 
2608 		object = tmp_object;
2609 	}
2610 
2611 	if (object && object != orig_object) {
2612 		vm_object_unlock(object);
2613 	}
2614 
2615 	return length;
2616 }
2617 
2618 
2619 
2620 /*
2621  * Move any resident pages in the specified range to the inactive queue.  If kill_page is set,
2622  * we also clear the modified status of the page and "forget" any changes that have been made
2623  * to the page.
2624  */
2625 
2626 __private_extern__ void
2627 vm_object_deactivate_pages(
2628 	vm_object_t             object,
2629 	vm_object_offset_t      offset,
2630 	vm_object_size_t        size,
2631 	boolean_t               kill_page,
2632 	boolean_t               reusable_page,
2633 	boolean_t               kill_no_write,
2634 	struct pmap             *pmap,
2635 	vm_map_offset_t         pmap_offset)
2636 {
2637 	vm_object_size_t        length;
2638 	boolean_t               all_reusable;
2639 	pmap_flush_context      pmap_flush_context_storage;
2640 	unsigned int pmap_clear_refmod_mask = VM_MEM_REFERENCED;
2641 	unsigned int pmap_clear_refmod_options = 0;
2642 	deactivate_flags_t flags = DEACTIVATE_CLEAR_REFMOD;
2643 	bool refmod_cleared = false;
2644 	if (kill_page) {
2645 		flags |= DEACTIVATE_KILL;
2646 	}
2647 	if (reusable_page) {
2648 		flags |= DEACTIVATE_REUSABLE;
2649 	}
2650 	if (kill_no_write) {
2651 		flags |= DEACTIVATE_KILL_NO_WRITE;
2652 	}
2653 
2654 	/*
2655 	 * We break the range up into chunks and do one chunk at a time.  This is for
2656 	 * efficiency and performance while handling the shadow chains and the locks.
2657 	 * The deactivate_a_chunk() function returns how much of the range it processed.
2658 	 * We keep calling this routine until the given size is exhausted.
2659 	 */
2660 
2661 
2662 	all_reusable = FALSE;
2663 #if 11
2664 	/*
2665 	 * For the sake of accurate "reusable" pmap stats, we need
2666 	 * to tell pmap about each page that is no longer "reusable",
2667 	 * so we can't do the "all_reusable" optimization.
2668 	 *
2669 	 * If we do go with the all_reusable optimization, we can't
2670 	 * return if size is 0 since we could have "all_reusable == TRUE"
2671 	 * In this case, we save the overhead of doing the pmap_flush_context
2672 	 * work.
2673 	 */
2674 	if (size == 0) {
2675 		return;
2676 	}
2677 #else
2678 	if (reusable_page &&
2679 	    object->internal &&
2680 	    object->vo_size != 0 &&
2681 	    object->vo_size == size &&
2682 	    object->reusable_page_count == 0) {
2683 		all_reusable = TRUE;
2684 		reusable_page = FALSE;
2685 		flags |= DEACTIVATE_ALL_REUSABLE;
2686 	}
2687 #endif
2688 
2689 	if ((reusable_page || all_reusable) && object->all_reusable) {
2690 		/* This means MADV_FREE_REUSABLE has been called twice, which
2691 		 * is probably illegal. */
2692 		return;
2693 	}
2694 
2695 
2696 	pmap_flush_context_init(&pmap_flush_context_storage);
2697 
2698 	/*
2699 	 * If we're deactivating multiple pages, try to perform one bulk pmap operation.
2700 	 * We can't do this if we're killing pages and there's a shadow chain as
2701 	 * we don't yet know which pages are in the top object (pages in shadow copies aren't
2702 	 * safe to kill).
2703 	 * And we can only do this on hardware that supports it.
2704 	 */
2705 	if (size > PAGE_SIZE && (!kill_page || !object->shadow)) {
2706 		if (kill_page && object->internal) {
2707 			pmap_clear_refmod_mask |= VM_MEM_MODIFIED;
2708 		}
2709 		if (reusable_page) {
2710 			pmap_clear_refmod_options |= PMAP_OPTIONS_SET_REUSABLE;
2711 		}
2712 
2713 		refmod_cleared = pmap_clear_refmod_range_options(pmap, pmap_offset, pmap_offset + size, pmap_clear_refmod_mask, pmap_clear_refmod_options);
2714 		if (refmod_cleared) {
2715 			// We were able to clear all the refmod bits. So deactivate_a_chunk doesn't need to do it.
2716 			flags &= ~DEACTIVATE_CLEAR_REFMOD;
2717 		}
2718 	}
2719 
2720 	while (size) {
2721 		length = deactivate_a_chunk(object, offset, size, flags,
2722 		    &pmap_flush_context_storage, pmap, pmap_offset);
2723 
2724 		size -= length;
2725 		offset += length;
2726 		pmap_offset += length;
2727 	}
2728 	pmap_flush(&pmap_flush_context_storage);
2729 
2730 	if (all_reusable) {
2731 		if (!object->all_reusable) {
2732 			unsigned int reusable;
2733 
2734 			object->all_reusable = TRUE;
2735 			assert(object->reusable_page_count == 0);
2736 			/* update global stats */
2737 			reusable = object->resident_page_count;
2738 			OSAddAtomic(reusable,
2739 			    &vm_page_stats_reusable.reusable_count);
2740 			vm_page_stats_reusable.reusable += reusable;
2741 			vm_page_stats_reusable.all_reusable_calls++;
2742 		}
2743 	} else if (reusable_page) {
2744 		vm_page_stats_reusable.partial_reusable_calls++;
2745 	}
2746 }
2747 
2748 void
2749 vm_object_reuse_pages(
2750 	vm_object_t             object,
2751 	vm_object_offset_t      start_offset,
2752 	vm_object_offset_t      end_offset,
2753 	boolean_t               allow_partial_reuse)
2754 {
2755 	vm_object_offset_t      cur_offset;
2756 	vm_page_t               m;
2757 	unsigned int            reused, reusable;
2758 
2759 #define VM_OBJECT_REUSE_PAGE(object, m, reused)                         \
2760 	MACRO_BEGIN                                                     \
2761 	        if ((m) != VM_PAGE_NULL &&                              \
2762 	            (m)->vmp_reusable) {                                \
2763 	                assert((object)->reusable_page_count <=         \
2764 	                       (object)->resident_page_count);          \
2765 	                assert((object)->reusable_page_count > 0);      \
2766 	                (object)->reusable_page_count--;                \
2767 	                (m)->vmp_reusable = FALSE;                      \
2768 	                (reused)++;                                     \
2769 	/* \
2770 	 * Tell pmap that this page is no longer \
2771 	 * "reusable", to update the "reusable" stats \
2772 	 * for all the pmaps that have mapped this \
2773 	 * page. \
2774 	 */                                                             \
2775 	                pmap_clear_refmod_options(VM_PAGE_GET_PHYS_PAGE((m)), \
2776 	                                          0, /* refmod */       \
2777 	                                          (PMAP_OPTIONS_CLEAR_REUSABLE \
2778 	                                           | PMAP_OPTIONS_NOFLUSH), \
2779 	                                          NULL);                \
2780 	        }                                                       \
2781 	MACRO_END
2782 
2783 	reused = 0;
2784 	reusable = 0;
2785 
2786 	vm_object_lock_assert_exclusive(object);
2787 
2788 	if (object->all_reusable) {
2789 		panic("object %p all_reusable: can't update pmap stats",
2790 		    object);
2791 		assert(object->reusable_page_count == 0);
2792 		object->all_reusable = FALSE;
2793 		if (end_offset - start_offset == object->vo_size ||
2794 		    !allow_partial_reuse) {
2795 			vm_page_stats_reusable.all_reuse_calls++;
2796 			reused = object->resident_page_count;
2797 		} else {
2798 			vm_page_stats_reusable.partial_reuse_calls++;
2799 			vm_page_queue_iterate(&object->memq, m, vmp_listq) {
2800 				if (m->vmp_offset < start_offset ||
2801 				    m->vmp_offset >= end_offset) {
2802 					m->vmp_reusable = TRUE;
2803 					object->reusable_page_count++;
2804 					assert(object->resident_page_count >= object->reusable_page_count);
2805 					continue;
2806 				} else {
2807 					assert(!m->vmp_reusable);
2808 					reused++;
2809 				}
2810 			}
2811 		}
2812 	} else if (object->resident_page_count >
2813 	    ((end_offset - start_offset) >> PAGE_SHIFT)) {
2814 		vm_page_stats_reusable.partial_reuse_calls++;
2815 		for (cur_offset = start_offset;
2816 		    cur_offset < end_offset;
2817 		    cur_offset += PAGE_SIZE_64) {
2818 			if (object->reusable_page_count == 0) {
2819 				break;
2820 			}
2821 			m = vm_page_lookup(object, cur_offset);
2822 			VM_OBJECT_REUSE_PAGE(object, m, reused);
2823 		}
2824 	} else {
2825 		vm_page_stats_reusable.partial_reuse_calls++;
2826 		vm_page_queue_iterate(&object->memq, m, vmp_listq) {
2827 			if (object->reusable_page_count == 0) {
2828 				break;
2829 			}
2830 			if (m->vmp_offset < start_offset ||
2831 			    m->vmp_offset >= end_offset) {
2832 				continue;
2833 			}
2834 			VM_OBJECT_REUSE_PAGE(object, m, reused);
2835 		}
2836 	}
2837 
2838 	/* update global stats */
2839 	OSAddAtomic(reusable - reused, &vm_page_stats_reusable.reusable_count);
2840 	vm_page_stats_reusable.reused += reused;
2841 	vm_page_stats_reusable.reusable += reusable;
2842 }
2843 
2844 /*
2845  * This function determines if the zero operation can be run on the
2846  * object. The checks on the entry have already been performed by
2847  * vm_map_zero_entry_preflight.
2848  */
2849 static kern_return_t
2850 vm_object_zero_preflight(
2851 	vm_object_t                     object,
2852 	vm_object_offset_t              start,
2853 	vm_object_offset_t              end)
2854 {
2855 	/*
2856 	 * Zeroing is further restricted to anonymous memory.
2857 	 */
2858 	if (!object->internal) {
2859 		return KERN_PROTECTION_FAILURE;
2860 	}
2861 
2862 	/*
2863 	 * Zeroing for copy on write isn't yet supported
2864 	 */
2865 	if (object->shadow != NULL ||
2866 	    object->vo_copy != NULL) {
2867 		return KERN_NO_ACCESS;
2868 	}
2869 
2870 	/*
2871 	 * Ensure the that bounds makes sense wrt the object
2872 	 */
2873 	if (end - start > object->vo_size) {
2874 		return KERN_INVALID_ADDRESS;
2875 	}
2876 
2877 	if (object->terminating || !object->alive) {
2878 		return KERN_ABORTED;
2879 	}
2880 
2881 	return KERN_SUCCESS;
2882 }
2883 
2884 static void
2885 vm_object_zero_page(vm_page_t m)
2886 {
2887 	if (m != VM_PAGE_NULL) {
2888 		ppnum_t phy_page_num = VM_PAGE_GET_PHYS_PAGE(m);
2889 
2890 		/*
2891 		 * Skip fictitious guard pages
2892 		 */
2893 		if (vm_page_is_fictitious(m)) {
2894 			assert(vm_page_is_guard(m));
2895 			return;
2896 		}
2897 		pmap_zero_page(phy_page_num);
2898 	}
2899 }
2900 
2901 /*
2902  * This function iterates the range of pages specified in the object and
2903  * discards the ones that are compressed and zeroes the ones that are wired.
2904  * This function may drop the object lock while waiting for a page that is
2905  * busy and will restart the operation for the specific offset.
2906  */
2907 kern_return_t
2908 vm_object_zero(
2909 	vm_object_t                     object,
2910 	vm_object_offset_t              *cur_offset_p,
2911 	vm_object_offset_t              end_offset)
2912 {
2913 	kern_return_t ret;
2914 
2915 	vm_object_lock_assert_exclusive(object);
2916 	ret = vm_object_zero_preflight(object, *cur_offset_p, end_offset);
2917 	if (ret != KERN_SUCCESS) {
2918 		return ret;
2919 	}
2920 
2921 	while (*cur_offset_p < end_offset) {
2922 		vm_page_t m = vm_page_lookup(object, *cur_offset_p);
2923 
2924 		if (m != VM_PAGE_NULL && m->vmp_busy) {
2925 			vm_page_sleep(object, m, THREAD_UNINT, LCK_SLEEP_DEFAULT);
2926 			/* Object lock was dropped -- reverify validity */
2927 			ret = vm_object_zero_preflight(object, *cur_offset_p, end_offset);
2928 			if (ret != KERN_SUCCESS) {
2929 				return ret;
2930 			}
2931 			if (object->copy_strategy == MEMORY_OBJECT_COPY_SYMMETRIC) {
2932 				/*
2933 				 * Our mapping could have been made "needs_copy" while
2934 				 * the map and object were unlocked.
2935 				 * We need to do the mapping preflight again...
2936 				 */
2937 				return KERN_SUCCESS;
2938 			}
2939 			continue;
2940 		}
2941 
2942 		/*
2943 		 * If the compressor has the page then just discard it instead
2944 		 * of faulting it in and zeroing it else zero the page if it exists. If
2945 		 * we dropped the object lock during the lookup retry the lookup for the
2946 		 * cur_offset.
2947 		 */
2948 		if (page_is_paged_out(object, *cur_offset_p)) {
2949 			vm_object_compressor_pager_state_clr(object, *cur_offset_p);
2950 		} else {
2951 			vm_object_zero_page(m);
2952 		}
2953 		*cur_offset_p += PAGE_SIZE_64;
2954 		/*
2955 		 * TODO: May need a vm_object_lock_yield_shared in this loop if it takes
2956 		 * too long, as holding the object lock for too long can stall pageout
2957 		 * scan (or other users of the object)
2958 		 */
2959 	}
2960 
2961 	return KERN_SUCCESS;
2962 }
2963 
2964 /*
2965  *	Routine:	vm_object_pmap_protect
2966  *
2967  *	Purpose:
2968  *		Reduces the permission for all physical
2969  *		pages in the specified object range.
2970  *
2971  *		If removing write permission only, it is
2972  *		sufficient to protect only the pages in
2973  *		the top-level object; only those pages may
2974  *		have write permission.
2975  *
2976  *		If removing all access, we must follow the
2977  *		shadow chain from the top-level object to
2978  *		remove access to all pages in shadowed objects.
2979  *
2980  *		The object must *not* be locked.  The object must
2981  *		be internal.
2982  *
2983  *              If pmap is not NULL, this routine assumes that
2984  *              the only mappings for the pages are in that
2985  *              pmap.
2986  */
2987 
2988 __private_extern__ void
2989 vm_object_pmap_protect(
2990 	vm_object_t                     object,
2991 	vm_object_offset_t              offset,
2992 	vm_object_size_t                size,
2993 	pmap_t                          pmap,
2994 	vm_map_size_t                   pmap_page_size,
2995 	vm_map_offset_t                 pmap_start,
2996 	vm_prot_t                       prot)
2997 {
2998 	vm_object_pmap_protect_options(object, offset, size, pmap,
2999 	    pmap_page_size,
3000 	    pmap_start, prot, 0);
3001 }
3002 
3003 __private_extern__ void
3004 vm_object_pmap_protect_options(
3005 	vm_object_t                     object,
3006 	vm_object_offset_t              offset,
3007 	vm_object_size_t                size,
3008 	pmap_t                          pmap,
3009 	vm_map_size_t                   pmap_page_size,
3010 	vm_map_offset_t                 pmap_start,
3011 	vm_prot_t                       prot,
3012 	int                             options)
3013 {
3014 	pmap_flush_context      pmap_flush_context_storage;
3015 	boolean_t               delayed_pmap_flush = FALSE;
3016 	vm_object_offset_t      offset_in_object;
3017 	vm_object_size_t        size_in_object;
3018 
3019 	if (object == VM_OBJECT_NULL) {
3020 		return;
3021 	}
3022 	if (pmap_page_size > PAGE_SIZE) {
3023 		/* for 16K map on 4K device... */
3024 		pmap_page_size = PAGE_SIZE;
3025 	}
3026 	/*
3027 	 * If we decide to work on the object itself, extend the range to
3028 	 * cover a full number of native pages.
3029 	 */
3030 	size_in_object = vm_object_round_page(offset + size) - vm_object_trunc_page(offset);
3031 	offset_in_object = vm_object_trunc_page(offset);
3032 	/*
3033 	 * If we decide to work on the pmap, use the exact range specified,
3034 	 * so no rounding/truncating offset and size.  They should already
3035 	 * be aligned to pmap_page_size.
3036 	 */
3037 	assertf(!(offset & (pmap_page_size - 1)) && !(size & (pmap_page_size - 1)),
3038 	    "offset 0x%llx size 0x%llx pmap_page_size 0x%llx",
3039 	    offset, size, (uint64_t)pmap_page_size);
3040 
3041 	vm_object_lock(object);
3042 
3043 	if (object->phys_contiguous) {
3044 		if (pmap != NULL) {
3045 			vm_object_unlock(object);
3046 			pmap_protect_options(pmap,
3047 			    pmap_start,
3048 			    pmap_start + size,
3049 			    prot,
3050 			    options & ~PMAP_OPTIONS_NOFLUSH,
3051 			    NULL);
3052 		} else {
3053 			vm_object_offset_t phys_start, phys_end, phys_addr;
3054 
3055 			phys_start = object->vo_shadow_offset + offset_in_object;
3056 			phys_end = phys_start + size_in_object;
3057 			assert(phys_start <= phys_end);
3058 			assert(phys_end <= object->vo_shadow_offset + object->vo_size);
3059 			vm_object_unlock(object);
3060 
3061 			pmap_flush_context_init(&pmap_flush_context_storage);
3062 			delayed_pmap_flush = FALSE;
3063 
3064 			for (phys_addr = phys_start;
3065 			    phys_addr < phys_end;
3066 			    phys_addr += PAGE_SIZE_64) {
3067 				pmap_page_protect_options(
3068 					(ppnum_t) (phys_addr >> PAGE_SHIFT),
3069 					prot,
3070 					options | PMAP_OPTIONS_NOFLUSH,
3071 					(void *)&pmap_flush_context_storage);
3072 				delayed_pmap_flush = TRUE;
3073 			}
3074 			if (delayed_pmap_flush == TRUE) {
3075 				pmap_flush(&pmap_flush_context_storage);
3076 			}
3077 		}
3078 		return;
3079 	}
3080 
3081 	assert(object->internal);
3082 
3083 	while (TRUE) {
3084 		if (ptoa_64(object->resident_page_count) > size_in_object / 2 && pmap != PMAP_NULL) {
3085 			vm_object_unlock(object);
3086 			if (pmap_page_size < PAGE_SIZE) {
3087 				DEBUG4K_PMAP("pmap %p start 0x%llx end 0x%llx prot 0x%x: pmap_protect()\n", pmap, (uint64_t)pmap_start, pmap_start + size, prot);
3088 			}
3089 			pmap_protect_options(pmap, pmap_start, pmap_start + size, prot,
3090 			    options & ~PMAP_OPTIONS_NOFLUSH, NULL);
3091 			return;
3092 		}
3093 
3094 		if (pmap_page_size < PAGE_SIZE) {
3095 			DEBUG4K_PMAP("pmap %p start 0x%llx end 0x%llx prot 0x%x: offset 0x%llx size 0x%llx object %p offset 0x%llx size 0x%llx\n", pmap, (uint64_t)pmap_start, pmap_start + size, prot, offset, size, object, offset_in_object, size_in_object);
3096 		}
3097 
3098 		pmap_flush_context_init(&pmap_flush_context_storage);
3099 		delayed_pmap_flush = FALSE;
3100 
3101 		/*
3102 		 * if we are doing large ranges with respect to resident
3103 		 * page count then we should interate over pages otherwise
3104 		 * inverse page look-up will be faster
3105 		 */
3106 		if (ptoa_64(object->resident_page_count / 4) < size_in_object) {
3107 			vm_page_t               p;
3108 			vm_object_offset_t      end;
3109 
3110 			end = offset_in_object + size_in_object;
3111 
3112 			vm_page_queue_iterate(&object->memq, p, vmp_listq) {
3113 				if (!vm_page_is_fictitious(p) &&
3114 				    (offset_in_object <= p->vmp_offset) &&
3115 				    (p->vmp_offset < end)) {
3116 					vm_map_offset_t start;
3117 
3118 					/*
3119 					 * XXX FBDP 4K: intentionally using "offset" here instead
3120 					 * of "offset_in_object", since "start" is a pmap address.
3121 					 */
3122 					start = pmap_start + p->vmp_offset - offset;
3123 
3124 					if (pmap != PMAP_NULL) {
3125 						vm_map_offset_t curr;
3126 						for (curr = start;
3127 						    curr < start + PAGE_SIZE_64;
3128 						    curr += pmap_page_size) {
3129 							if (curr < pmap_start) {
3130 								continue;
3131 							}
3132 							if (curr >= pmap_start + size) {
3133 								break;
3134 							}
3135 							pmap_protect_options(
3136 								pmap,
3137 								curr,
3138 								curr + pmap_page_size,
3139 								prot,
3140 								options | PMAP_OPTIONS_NOFLUSH,
3141 								&pmap_flush_context_storage);
3142 						}
3143 					} else {
3144 						pmap_page_protect_options(
3145 							VM_PAGE_GET_PHYS_PAGE(p),
3146 							prot,
3147 							options | PMAP_OPTIONS_NOFLUSH,
3148 							&pmap_flush_context_storage);
3149 					}
3150 					delayed_pmap_flush = TRUE;
3151 				}
3152 			}
3153 		} else {
3154 			vm_page_t               p;
3155 			vm_object_offset_t      end;
3156 			vm_object_offset_t      target_off;
3157 
3158 			end = offset_in_object + size_in_object;
3159 
3160 			for (target_off = offset_in_object;
3161 			    target_off < end; target_off += PAGE_SIZE) {
3162 				p = vm_page_lookup(object, target_off);
3163 
3164 				if (p != VM_PAGE_NULL) {
3165 					vm_object_offset_t start;
3166 
3167 					/*
3168 					 * XXX FBDP 4K: intentionally using "offset" here instead
3169 					 * of "offset_in_object", since "start" is a pmap address.
3170 					 */
3171 					start = pmap_start + (p->vmp_offset - offset);
3172 
3173 					if (pmap != PMAP_NULL) {
3174 						vm_map_offset_t curr;
3175 						for (curr = start;
3176 						    curr < start + PAGE_SIZE;
3177 						    curr += pmap_page_size) {
3178 							if (curr < pmap_start) {
3179 								continue;
3180 							}
3181 							if (curr >= pmap_start + size) {
3182 								break;
3183 							}
3184 							pmap_protect_options(
3185 								pmap,
3186 								curr,
3187 								curr + pmap_page_size,
3188 								prot,
3189 								options | PMAP_OPTIONS_NOFLUSH,
3190 								&pmap_flush_context_storage);
3191 						}
3192 					} else {
3193 						pmap_page_protect_options(
3194 							VM_PAGE_GET_PHYS_PAGE(p),
3195 							prot,
3196 							options | PMAP_OPTIONS_NOFLUSH,
3197 							&pmap_flush_context_storage);
3198 					}
3199 					delayed_pmap_flush = TRUE;
3200 				}
3201 			}
3202 		}
3203 		if (delayed_pmap_flush == TRUE) {
3204 			pmap_flush(&pmap_flush_context_storage);
3205 		}
3206 
3207 		if (prot == VM_PROT_NONE) {
3208 			/*
3209 			 * Must follow shadow chain to remove access
3210 			 * to pages in shadowed objects.
3211 			 */
3212 			vm_object_t     next_object;
3213 
3214 			next_object = object->shadow;
3215 			if (next_object != VM_OBJECT_NULL) {
3216 				offset_in_object += object->vo_shadow_offset;
3217 				offset += object->vo_shadow_offset;
3218 				vm_object_lock(next_object);
3219 				vm_object_unlock(object);
3220 				object = next_object;
3221 			} else {
3222 				/*
3223 				 * End of chain - we are done.
3224 				 */
3225 				break;
3226 			}
3227 		} else {
3228 			/*
3229 			 * Pages in shadowed objects may never have
3230 			 * write permission - we may stop here.
3231 			 */
3232 			break;
3233 		}
3234 	}
3235 
3236 	vm_object_unlock(object);
3237 }
3238 
3239 uint32_t vm_page_busy_absent_skipped = 0;
3240 
3241 /*
3242  *	Routine:	vm_object_copy_slowly
3243  *
3244  *	Description:
3245  *		Copy the specified range of the source
3246  *		virtual memory object without using
3247  *		protection-based optimizations (such
3248  *		as copy-on-write).  The pages in the
3249  *		region are actually copied.
3250  *
3251  *	In/out conditions:
3252  *		The caller must hold a reference and a lock
3253  *		for the source virtual memory object.  The source
3254  *		object will be returned *unlocked*.
3255  *
3256  *	Results:
3257  *		If the copy is completed successfully, KERN_SUCCESS is
3258  *		returned.  If the caller asserted the interruptible
3259  *		argument, and an interruption occurred while waiting
3260  *		for a user-generated event, MACH_SEND_INTERRUPTED is
3261  *		returned.  Other values may be returned to indicate
3262  *		hard errors during the copy operation.
3263  *
3264  *		A new virtual memory object is returned in a
3265  *		parameter (_result_object).  The contents of this
3266  *		new object, starting at a zero offset, are a copy
3267  *		of the source memory region.  In the event of
3268  *		an error, this parameter will contain the value
3269  *		VM_OBJECT_NULL.
3270  */
3271 __exported_hidden kern_return_t
3272 vm_object_copy_slowly(
3273 	vm_object_t             src_object,
3274 	vm_object_offset_t      src_offset,
3275 	vm_object_size_t        size,
3276 	boolean_t               interruptible,
3277 	vm_object_t             *_result_object)        /* OUT */
3278 {
3279 	vm_object_t             new_object;
3280 	vm_object_offset_t      new_offset;
3281 
3282 	struct vm_object_fault_info fault_info = {};
3283 
3284 	if (size == 0) {
3285 		vm_object_unlock(src_object);
3286 		*_result_object = VM_OBJECT_NULL;
3287 		return KERN_INVALID_ARGUMENT;
3288 	}
3289 
3290 	/*
3291 	 *	Prevent destruction of the source object while we copy.
3292 	 */
3293 
3294 	vm_object_reference_locked(src_object);
3295 	vm_object_unlock(src_object);
3296 
3297 	/*
3298 	 *	Create a new object to hold the copied pages.
3299 	 *	A few notes:
3300 	 *		We fill the new object starting at offset 0,
3301 	 *		 regardless of the input offset.
3302 	 *		We don't bother to lock the new object within
3303 	 *		 this routine, since we have the only reference.
3304 	 */
3305 
3306 	size = vm_object_round_page(src_offset + size) - vm_object_trunc_page(src_offset);
3307 	src_offset = vm_object_trunc_page(src_offset);
3308 
3309 	new_object = vm_object_allocate(size, src_object->vmo_provenance);
3310 	new_offset = 0;
3311 	if (src_object->copy_strategy == MEMORY_OBJECT_COPY_NONE &&
3312 	    src_object->vo_inherit_copy_none) {
3313 		new_object->copy_strategy = MEMORY_OBJECT_COPY_NONE;
3314 		new_object->vo_inherit_copy_none = true;
3315 	}
3316 
3317 
3318 	assert(size == trunc_page_64(size));    /* Will the loop terminate? */
3319 
3320 	fault_info.interruptible = interruptible;
3321 	fault_info.behavior  = VM_BEHAVIOR_SEQUENTIAL;
3322 	fault_info.lo_offset = src_offset;
3323 	fault_info.hi_offset = src_offset + size;
3324 	fault_info.stealth = TRUE;
3325 
3326 	for (;
3327 	    size != 0;
3328 	    src_offset += PAGE_SIZE_64,
3329 	    new_offset += PAGE_SIZE_64, size -= PAGE_SIZE_64
3330 	    ) {
3331 		vm_page_t       new_page;
3332 		vm_fault_return_t result;
3333 		vm_grab_options_t options;
3334 
3335 		options = vm_page_grab_options_for_object(new_object);
3336 
3337 		while ((new_page = vm_page_grab_options(options)) == VM_PAGE_NULL) {
3338 			if (!vm_page_wait(interruptible)) {
3339 				vm_object_deallocate(new_object);
3340 				vm_object_deallocate(src_object);
3341 				*_result_object = VM_OBJECT_NULL;
3342 				return MACH_SEND_INTERRUPTED;
3343 			}
3344 		}
3345 
3346 		vm_object_lock(new_object);
3347 		vm_page_insert(new_page, new_object, new_offset);
3348 		vm_object_unlock(new_object);
3349 
3350 		do {
3351 			vm_prot_t       prot = VM_PROT_READ;
3352 			vm_page_t       _result_page;
3353 			vm_page_t       top_page;
3354 			vm_page_t       result_page;
3355 			kern_return_t   error_code;
3356 			vm_object_t     result_page_object;
3357 
3358 
3359 			vm_object_lock(src_object);
3360 
3361 			if (src_object->internal &&
3362 			    src_object->shadow == VM_OBJECT_NULL &&
3363 			    (src_object->pager == NULL ||
3364 			    (vm_object_compressor_pager_state_get(src_object,
3365 			    src_offset) ==
3366 			    VM_EXTERNAL_STATE_ABSENT))) {
3367 				boolean_t can_skip_page;
3368 
3369 				_result_page = vm_page_lookup(src_object,
3370 				    src_offset);
3371 				if (_result_page == VM_PAGE_NULL) {
3372 					/*
3373 					 * This page is neither resident nor
3374 					 * compressed and there's no shadow
3375 					 * object below "src_object", so this
3376 					 * page is really missing.
3377 					 * There's no need to zero-fill it just
3378 					 * to copy it:  let's leave it missing
3379 					 * in "new_object" and get zero-filled
3380 					 * on demand.
3381 					 */
3382 					can_skip_page = TRUE;
3383 				} else if (workaround_41447923 &&
3384 				    src_object->pager == NULL &&
3385 				    _result_page != VM_PAGE_NULL &&
3386 				    _result_page->vmp_busy &&
3387 				    _result_page->vmp_absent &&
3388 				    src_object->purgable == VM_PURGABLE_DENY &&
3389 				    !src_object->blocked_access) {
3390 					/*
3391 					 * This page is "busy" and "absent"
3392 					 * but not because we're waiting for
3393 					 * it to be decompressed.  It must
3394 					 * be because it's a "no zero fill"
3395 					 * page that is currently not
3396 					 * accessible until it gets overwritten
3397 					 * by a device driver.
3398 					 * Since its initial state would have
3399 					 * been "zero-filled", let's leave the
3400 					 * copy page missing and get zero-filled
3401 					 * on demand.
3402 					 */
3403 					assert(src_object->internal);
3404 					assert(src_object->shadow == NULL);
3405 					assert(src_object->pager == NULL);
3406 					can_skip_page = TRUE;
3407 					vm_page_busy_absent_skipped++;
3408 				} else {
3409 					can_skip_page = FALSE;
3410 				}
3411 				if (can_skip_page) {
3412 					vm_object_unlock(src_object);
3413 					/* free the unused "new_page"... */
3414 					vm_object_lock(new_object);
3415 					VM_PAGE_FREE(new_page);
3416 					new_page = VM_PAGE_NULL;
3417 					vm_object_unlock(new_object);
3418 					/* ...and go to next page in "src_object" */
3419 					result = VM_FAULT_SUCCESS;
3420 					break;
3421 				}
3422 			}
3423 
3424 			vm_object_paging_begin(src_object);
3425 
3426 			/* cap size at maximum UPL size */
3427 			upl_size_t cluster_size;
3428 			if (os_convert_overflow(size, &cluster_size)) {
3429 				cluster_size = 0 - (upl_size_t)PAGE_SIZE;
3430 			}
3431 			fault_info.cluster_size = cluster_size;
3432 
3433 			_result_page = VM_PAGE_NULL;
3434 			result = vm_fault_page(src_object, src_offset,
3435 			    VM_PROT_READ, FALSE,
3436 			    FALSE,     /* page not looked up */
3437 			    &prot, &_result_page, &top_page,
3438 			    (int *)0,
3439 			    &error_code, FALSE, &fault_info);
3440 
3441 			switch (result) {
3442 			case VM_FAULT_SUCCESS:
3443 				result_page = _result_page;
3444 				result_page_object = VM_PAGE_OBJECT(result_page);
3445 
3446 				/*
3447 				 *	Copy the page to the new object.
3448 				 *
3449 				 *	POLICY DECISION:
3450 				 *		If result_page is clean,
3451 				 *		we could steal it instead
3452 				 *		of copying.
3453 				 */
3454 				vm_page_copy(result_page, new_page);
3455 
3456 				vm_object_unlock(result_page_object);
3457 
3458 				/*
3459 				 *	Let go of both pages (make them
3460 				 *	not busy, perform wakeup, activate).
3461 				 */
3462 				vm_object_lock(new_object);
3463 				SET_PAGE_DIRTY(new_page, FALSE);
3464 				vm_page_wakeup_done(new_object, new_page);
3465 				vm_object_unlock(new_object);
3466 
3467 				vm_object_lock(result_page_object);
3468 				vm_page_wakeup_done(result_page_object, result_page);
3469 
3470 				vm_page_lockspin_queues();
3471 				if ((result_page->vmp_q_state == VM_PAGE_ON_SPECULATIVE_Q) ||
3472 				    (result_page->vmp_q_state == VM_PAGE_NOT_ON_Q)) {
3473 					vm_page_activate(result_page);
3474 				}
3475 				vm_page_activate(new_page);
3476 				vm_page_unlock_queues();
3477 
3478 				/*
3479 				 *	Release paging references and
3480 				 *	top-level placeholder page, if any.
3481 				 */
3482 
3483 				vm_fault_cleanup(result_page_object,
3484 				    top_page);
3485 
3486 				break;
3487 
3488 			case VM_FAULT_RETRY:
3489 				break;
3490 
3491 			case VM_FAULT_MEMORY_SHORTAGE:
3492 				if (vm_page_wait(interruptible)) {
3493 					break;
3494 				}
3495 				ktriage_record(thread_tid(current_thread()), KDBG_TRIAGE_EVENTID(KDBG_TRIAGE_SUBSYS_VM, KDBG_TRIAGE_RESERVED, KDBG_TRIAGE_VM_FAULT_OBJCOPYSLOWLY_MEMORY_SHORTAGE), 0 /* arg */);
3496 				OS_FALLTHROUGH;
3497 
3498 			case VM_FAULT_INTERRUPTED:
3499 				vm_object_lock(new_object);
3500 				VM_PAGE_FREE(new_page);
3501 				vm_object_unlock(new_object);
3502 
3503 				vm_object_deallocate(new_object);
3504 				vm_object_deallocate(src_object);
3505 				*_result_object = VM_OBJECT_NULL;
3506 				return MACH_SEND_INTERRUPTED;
3507 
3508 			case VM_FAULT_SUCCESS_NO_VM_PAGE:
3509 				/* success but no VM page: fail */
3510 				vm_object_paging_end(src_object);
3511 				vm_object_unlock(src_object);
3512 				OS_FALLTHROUGH;
3513 			case VM_FAULT_MEMORY_ERROR:
3514 				/*
3515 				 * A policy choice:
3516 				 *	(a) ignore pages that we can't
3517 				 *	    copy
3518 				 *	(b) return the null object if
3519 				 *	    any page fails [chosen]
3520 				 */
3521 
3522 				vm_object_lock(new_object);
3523 				VM_PAGE_FREE(new_page);
3524 				vm_object_unlock(new_object);
3525 
3526 				vm_object_deallocate(new_object);
3527 				vm_object_deallocate(src_object);
3528 				*_result_object = VM_OBJECT_NULL;
3529 				return error_code ? error_code:
3530 				       KERN_MEMORY_ERROR;
3531 
3532 			default:
3533 				panic("vm_object_copy_slowly: unexpected error"
3534 				    " 0x%x from vm_fault_page()\n", result);
3535 			}
3536 		} while (result != VM_FAULT_SUCCESS);
3537 	}
3538 
3539 	/*
3540 	 *	Lose the extra reference, and return our object.
3541 	 */
3542 	vm_object_deallocate(src_object);
3543 	*_result_object = new_object;
3544 	return KERN_SUCCESS;
3545 }
3546 
3547 /*
3548  *	Routine:	vm_object_copy_quickly
3549  *
3550  *	Purpose:
3551  *		Copy the specified range of the source virtual
3552  *		memory object, if it can be done without waiting
3553  *		for user-generated events.
3554  *
3555  *	Results:
3556  *		If the copy is successful, the copy is returned in
3557  *		the arguments; otherwise, the arguments are not
3558  *		affected.
3559  *
3560  *	In/out conditions:
3561  *		The object should be unlocked on entry and exit.
3562  */
3563 
3564 /*ARGSUSED*/
3565 __private_extern__ boolean_t
3566 vm_object_copy_quickly(
3567 	vm_object_t             object,               /* IN */
3568 	__unused vm_object_offset_t     offset, /* IN */
3569 	__unused vm_object_size_t       size,   /* IN */
3570 	boolean_t               *_src_needs_copy,       /* OUT */
3571 	boolean_t               *_dst_needs_copy)       /* OUT */
3572 {
3573 	memory_object_copy_strategy_t copy_strategy;
3574 
3575 	if (object == VM_OBJECT_NULL) {
3576 		*_src_needs_copy = FALSE;
3577 		*_dst_needs_copy = FALSE;
3578 		return TRUE;
3579 	}
3580 
3581 	vm_object_lock(object);
3582 
3583 	copy_strategy = object->copy_strategy;
3584 
3585 	switch (copy_strategy) {
3586 	case MEMORY_OBJECT_COPY_SYMMETRIC:
3587 
3588 		/*
3589 		 *	Symmetric copy strategy.
3590 		 *	Make another reference to the object.
3591 		 *	Leave object/offset unchanged.
3592 		 */
3593 
3594 		vm_object_reference_locked(object);
3595 		VM_OBJECT_SET_SHADOWED(object, TRUE);
3596 		vm_object_unlock(object);
3597 
3598 		/*
3599 		 *	Both source and destination must make
3600 		 *	shadows, and the source must be made
3601 		 *	read-only if not already.
3602 		 */
3603 
3604 		*_src_needs_copy = TRUE;
3605 		*_dst_needs_copy = TRUE;
3606 
3607 		break;
3608 
3609 	case MEMORY_OBJECT_COPY_DELAY:
3610 		vm_object_unlock(object);
3611 		return FALSE;
3612 
3613 	default:
3614 		vm_object_unlock(object);
3615 		return FALSE;
3616 	}
3617 	return TRUE;
3618 }
3619 
3620 static uint32_t copy_delayed_lock_collisions;
3621 static uint32_t copy_delayed_max_collisions;
3622 static uint32_t copy_delayed_lock_contention;
3623 static uint32_t copy_delayed_protect_iterate;
3624 
3625 unsigned int vm_object_copy_delayed_paging_wait_disable = 0;
3626 /*
3627  *	Routine:	vm_object_copy_delayed [internal]
3628  *
3629  *	Description:
3630  *		Copy the specified virtual memory object, using
3631  *		the asymmetric copy-on-write algorithm.
3632  *
3633  *	In/out conditions:
3634  *		The src_object must be locked on entry.  It will be unlocked
3635  *		on exit - so the caller must also hold a reference to it.
3636  *
3637  *		This routine will not block waiting for user-generated
3638  *		events.  It is not interruptible.
3639  */
3640 __private_extern__ vm_object_t
3641 vm_object_copy_delayed(
3642 	vm_object_t             src_object,
3643 	vm_object_offset_t      src_offset,
3644 	vm_object_size_t        size,
3645 	boolean_t               src_object_shared)
3646 {
3647 	vm_object_t             new_copy = VM_OBJECT_NULL;
3648 	vm_object_t             old_copy;
3649 	vm_page_t               p;
3650 	vm_object_size_t        copy_size = src_offset + size;
3651 	pmap_flush_context      pmap_flush_context_storage;
3652 	boolean_t               delayed_pmap_flush = FALSE;
3653 
3654 
3655 	uint32_t collisions = 0;
3656 	/*
3657 	 *	The user-level memory manager wants to see all of the changes
3658 	 *	to this object, but it has promised not to make any changes on
3659 	 *	its own.
3660 	 *
3661 	 *	Perform an asymmetric copy-on-write, as follows:
3662 	 *		Create a new object, called a "copy object" to hold
3663 	 *		 pages modified by the new mapping  (i.e., the copy,
3664 	 *		 not the original mapping).
3665 	 *		Record the original object as the backing object for
3666 	 *		 the copy object.  If the original mapping does not
3667 	 *		 change a page, it may be used read-only by the copy.
3668 	 *		Record the copy object in the original object.
3669 	 *		 When the original mapping causes a page to be modified,
3670 	 *		 it must be copied to a new page that is "pushed" to
3671 	 *		 the copy object.
3672 	 *		Mark the new mapping (the copy object) copy-on-write.
3673 	 *		 This makes the copy object itself read-only, allowing
3674 	 *		 it to be reused if the original mapping makes no
3675 	 *		 changes, and simplifying the synchronization required
3676 	 *		 in the "push" operation described above.
3677 	 *
3678 	 *	The copy-on-write is said to be assymetric because the original
3679 	 *	object is *not* marked copy-on-write. A copied page is pushed
3680 	 *	to the copy object, regardless which party attempted to modify
3681 	 *	the page.
3682 	 *
3683 	 *	Repeated asymmetric copy operations may be done. If the
3684 	 *	original object has not been changed since the last copy, its
3685 	 *	copy object can be reused. Otherwise, a new copy object can be
3686 	 *	inserted between the original object and its previous copy
3687 	 *	object.  Since any copy object is read-only, this cannot affect
3688 	 *	affect the contents of the previous copy object.
3689 	 *
3690 	 *	Note that a copy object is higher in the object tree than the
3691 	 *	original object; therefore, use of the copy object recorded in
3692 	 *	the original object must be done carefully, to avoid deadlock.
3693 	 */
3694 
3695 	copy_size = vm_object_round_page(copy_size);
3696 Retry:
3697 	// For iOS, we want to always skip this block. For other OS types, we use the sysctl to control the flow.
3698  #if !XNU_TARGET_OS_IOS
3699 	if (!vm_object_copy_delayed_paging_wait_disable) {
3700 		/*
3701 		 * Wait for paging in progress.
3702 		 */
3703 		if (!src_object->true_share &&
3704 		    (src_object->paging_in_progress != 0 ||
3705 		    src_object->activity_in_progress != 0)) {
3706 			if (src_object_shared == TRUE) {
3707 				vm_object_unlock(src_object);
3708 				vm_object_lock(src_object);
3709 				src_object_shared = FALSE;
3710 				goto Retry;
3711 			}
3712 			vm_object_paging_wait(src_object, THREAD_UNINT);
3713 		}
3714 	}
3715 #endif
3716 
3717 	/*
3718 	 *	See whether we can reuse the result of a previous
3719 	 *	copy operation.
3720 	 */
3721 
3722 	old_copy = src_object->vo_copy;
3723 	if (old_copy != VM_OBJECT_NULL) {
3724 		int lock_granted;
3725 
3726 		/*
3727 		 *	Try to get the locks (out of order)
3728 		 */
3729 		if (src_object_shared == TRUE) {
3730 			lock_granted = vm_object_lock_try_shared(old_copy);
3731 		} else {
3732 			lock_granted = vm_object_lock_try(old_copy);
3733 		}
3734 
3735 		if (!lock_granted) {
3736 			vm_object_unlock(src_object);
3737 
3738 			if (collisions++ == 0) {
3739 				copy_delayed_lock_contention++;
3740 			}
3741 			mutex_pause(collisions);
3742 
3743 			/* Heisenberg Rules */
3744 			copy_delayed_lock_collisions++;
3745 
3746 			if (collisions > copy_delayed_max_collisions) {
3747 				copy_delayed_max_collisions = collisions;
3748 			}
3749 
3750 			if (src_object_shared == TRUE) {
3751 				vm_object_lock_shared(src_object);
3752 			} else {
3753 				vm_object_lock(src_object);
3754 			}
3755 
3756 			goto Retry;
3757 		}
3758 
3759 		/*
3760 		 *	Determine whether the old copy object has
3761 		 *	been modified.
3762 		 */
3763 
3764 		if (old_copy->resident_page_count == 0 &&
3765 		    !old_copy->pager_created) {
3766 			/*
3767 			 *	It has not been modified.
3768 			 *
3769 			 *	Return another reference to
3770 			 *	the existing copy-object if
3771 			 *	we can safely grow it (if
3772 			 *	needed).
3773 			 */
3774 
3775 			if (old_copy->vo_size < copy_size) {
3776 				if (src_object_shared == TRUE) {
3777 					vm_object_unlock(old_copy);
3778 					vm_object_unlock(src_object);
3779 
3780 					vm_object_lock(src_object);
3781 					src_object_shared = FALSE;
3782 					goto Retry;
3783 				}
3784 				/*
3785 				 * We can't perform a delayed copy if any of the
3786 				 * pages in the extended range are wired (because
3787 				 * we can't safely take write permission away from
3788 				 * wired pages).  If the pages aren't wired, then
3789 				 * go ahead and protect them.
3790 				 */
3791 				copy_delayed_protect_iterate++;
3792 
3793 				pmap_flush_context_init(&pmap_flush_context_storage);
3794 				delayed_pmap_flush = FALSE;
3795 
3796 				vm_page_queue_iterate(&src_object->memq, p, vmp_listq) {
3797 					if (!vm_page_is_fictitious(p) &&
3798 					    p->vmp_offset >= old_copy->vo_size &&
3799 					    p->vmp_offset < copy_size) {
3800 						if (VM_PAGE_WIRED(p)) {
3801 							vm_object_unlock(old_copy);
3802 							vm_object_unlock(src_object);
3803 
3804 							if (new_copy != VM_OBJECT_NULL) {
3805 								vm_object_unlock(new_copy);
3806 								vm_object_deallocate(new_copy);
3807 							}
3808 							if (delayed_pmap_flush == TRUE) {
3809 								pmap_flush(&pmap_flush_context_storage);
3810 							}
3811 
3812 							return VM_OBJECT_NULL;
3813 						} else {
3814 							pmap_page_protect_options(VM_PAGE_GET_PHYS_PAGE(p),
3815 							    (p->vmp_xpmapped ? (VM_PROT_READ | VM_PROT_EXECUTE) : VM_PROT_READ),
3816 							    PMAP_OPTIONS_NOFLUSH, (void *)&pmap_flush_context_storage);
3817 							delayed_pmap_flush = TRUE;
3818 						}
3819 					}
3820 				}
3821 				if (delayed_pmap_flush == TRUE) {
3822 					pmap_flush(&pmap_flush_context_storage);
3823 				}
3824 
3825 				assertf(page_aligned(copy_size),
3826 				    "object %p size 0x%llx",
3827 				    old_copy, (uint64_t)copy_size);
3828 				old_copy->vo_size = copy_size;
3829 
3830 				/*
3831 				 * src_object's "vo_copy" object now covers
3832 				 * a larger portion of src_object.
3833 				 * Increment src_object's "vo_copy_version"
3834 				 * to make any racing vm_fault() on
3835 				 * "src_object" re-check if it needs to honor
3836 				 * any new copy-on-write obligation.
3837 				 */
3838 				src_object->vo_copy_version++;
3839 			}
3840 			if (src_object_shared == TRUE) {
3841 				vm_object_reference_shared(old_copy);
3842 			} else {
3843 				vm_object_reference_locked(old_copy);
3844 			}
3845 			vm_object_unlock(old_copy);
3846 			vm_object_unlock(src_object);
3847 
3848 			if (new_copy != VM_OBJECT_NULL) {
3849 				vm_object_unlock(new_copy);
3850 				vm_object_deallocate(new_copy);
3851 			}
3852 			return old_copy;
3853 		}
3854 
3855 
3856 
3857 		/*
3858 		 * Adjust the size argument so that the newly-created
3859 		 * copy object will be large enough to back either the
3860 		 * old copy object or the new mapping.
3861 		 */
3862 		if (old_copy->vo_size > copy_size) {
3863 			copy_size = old_copy->vo_size;
3864 		}
3865 
3866 		if (new_copy == VM_OBJECT_NULL) {
3867 			vm_object_unlock(old_copy);
3868 			vm_object_unlock(src_object);
3869 			/* Carry over the provenance from the object that's backing us */
3870 			new_copy = vm_object_allocate(copy_size, src_object->vmo_provenance);
3871 			vm_object_lock(src_object);
3872 			vm_object_lock(new_copy);
3873 
3874 			src_object_shared = FALSE;
3875 			goto Retry;
3876 		}
3877 		assertf(page_aligned(copy_size),
3878 		    "object %p size 0x%llx",
3879 		    new_copy, (uint64_t)copy_size);
3880 		new_copy->vo_size = copy_size;
3881 
3882 		/*
3883 		 *	The copy-object is always made large enough to
3884 		 *	completely shadow the original object, since
3885 		 *	it may have several users who want to shadow
3886 		 *	the original object at different points.
3887 		 */
3888 
3889 		assert((old_copy->shadow == src_object) &&
3890 		    (old_copy->vo_shadow_offset == (vm_object_offset_t) 0));
3891 	} else if (new_copy == VM_OBJECT_NULL) {
3892 		vm_object_unlock(src_object);
3893 		/* Carry over the provenance from the object that's backing us */
3894 		new_copy = vm_object_allocate(copy_size, src_object->vmo_provenance);
3895 		vm_object_lock(src_object);
3896 		vm_object_lock(new_copy);
3897 
3898 		src_object_shared = FALSE;
3899 		goto Retry;
3900 	}
3901 
3902 	/*
3903 	 * We now have the src object locked, and the new copy object
3904 	 * allocated and locked (and potentially the old copy locked).
3905 	 * Before we go any further, make sure we can still perform
3906 	 * a delayed copy, as the situation may have changed.
3907 	 *
3908 	 * Specifically, we can't perform a delayed copy if any of the
3909 	 * pages in the range are wired (because we can't safely take
3910 	 * write permission away from wired pages).  If the pages aren't
3911 	 * wired, then go ahead and protect them.
3912 	 */
3913 	copy_delayed_protect_iterate++;
3914 
3915 	pmap_flush_context_init(&pmap_flush_context_storage);
3916 	delayed_pmap_flush = FALSE;
3917 
3918 	vm_page_queue_iterate(&src_object->memq, p, vmp_listq) {
3919 		if (!vm_page_is_fictitious(p) && p->vmp_offset < copy_size) {
3920 			if (VM_PAGE_WIRED(p)) {
3921 				if (old_copy) {
3922 					vm_object_unlock(old_copy);
3923 				}
3924 				vm_object_unlock(src_object);
3925 				vm_object_unlock(new_copy);
3926 				vm_object_deallocate(new_copy);
3927 
3928 				if (delayed_pmap_flush == TRUE) {
3929 					pmap_flush(&pmap_flush_context_storage);
3930 				}
3931 
3932 				return VM_OBJECT_NULL;
3933 			} else {
3934 				pmap_page_protect_options(VM_PAGE_GET_PHYS_PAGE(p),
3935 				    (p->vmp_xpmapped ? (VM_PROT_READ | VM_PROT_EXECUTE) : VM_PROT_READ),
3936 				    PMAP_OPTIONS_NOFLUSH, (void *)&pmap_flush_context_storage);
3937 				delayed_pmap_flush = TRUE;
3938 			}
3939 		}
3940 	}
3941 	if (delayed_pmap_flush == TRUE) {
3942 		pmap_flush(&pmap_flush_context_storage);
3943 	}
3944 
3945 	if (old_copy != VM_OBJECT_NULL) {
3946 		/*
3947 		 *	Make the old copy-object shadow the new one.
3948 		 *	It will receive no more pages from the original
3949 		 *	object.
3950 		 */
3951 
3952 		/* remove ref. from old_copy */
3953 		vm_object_lock_assert_exclusive(src_object);
3954 		os_ref_release_live_locked_raw(&src_object->ref_count,
3955 		    &vm_object_refgrp);
3956 		vm_object_lock_assert_exclusive(old_copy);
3957 		old_copy->shadow = new_copy;
3958 		vm_object_lock_assert_exclusive(new_copy);
3959 		assert(os_ref_get_count_raw(&new_copy->ref_count) > 0);
3960 		/* for old_copy->shadow ref. */
3961 		os_ref_retain_locked_raw(&new_copy->ref_count, &vm_object_refgrp);
3962 
3963 		vm_object_unlock(old_copy);     /* done with old_copy */
3964 	}
3965 
3966 	/*
3967 	 *	Point the new copy at the existing object.
3968 	 */
3969 	vm_object_lock_assert_exclusive(new_copy);
3970 	new_copy->shadow = src_object;
3971 	new_copy->vo_shadow_offset = 0;
3972 	VM_OBJECT_SET_SHADOWED(new_copy, TRUE);      /* caller must set needs_copy */
3973 
3974 	vm_object_lock_assert_exclusive(src_object);
3975 	vm_object_reference_locked(src_object);
3976 	VM_OBJECT_COPY_SET(src_object, new_copy);
3977 	vm_object_unlock(src_object);
3978 	vm_object_unlock(new_copy);
3979 
3980 	return new_copy;
3981 }
3982 
3983 /*
3984  *	Routine:	vm_object_copy_strategically
3985  *
3986  *	Purpose:
3987  *		Perform a copy according to the source object's
3988  *		declared strategy.  This operation may block,
3989  *		and may be interrupted.
3990  */
3991 __private_extern__ kern_return_t
3992 vm_object_copy_strategically(
3993 	vm_object_t             src_object,
3994 	vm_object_offset_t      src_offset,
3995 	vm_object_size_t        size,
3996 	bool                    forking,
3997 	vm_object_t             *dst_object,    /* OUT */
3998 	vm_object_offset_t      *dst_offset,    /* OUT */
3999 	boolean_t               *dst_needs_copy) /* OUT */
4000 {
4001 	boolean_t       result;
4002 	boolean_t       interruptible = THREAD_ABORTSAFE; /* XXX */
4003 	boolean_t       object_lock_shared = FALSE;
4004 	memory_object_copy_strategy_t copy_strategy;
4005 
4006 	assert(src_object != VM_OBJECT_NULL);
4007 
4008 	copy_strategy = src_object->copy_strategy;
4009 
4010 	if (copy_strategy == MEMORY_OBJECT_COPY_DELAY) {
4011 		vm_object_lock_shared(src_object);
4012 		object_lock_shared = TRUE;
4013 	} else {
4014 		vm_object_lock(src_object);
4015 	}
4016 
4017 	/*
4018 	 *	The copy strategy is only valid if the memory manager
4019 	 *	is "ready". Internal objects are always ready.
4020 	 */
4021 
4022 	while (!src_object->internal && !src_object->pager_ready) {
4023 		wait_result_t wait_result;
4024 
4025 		if (object_lock_shared == TRUE) {
4026 			vm_object_unlock(src_object);
4027 			vm_object_lock(src_object);
4028 			object_lock_shared = FALSE;
4029 			continue;
4030 		}
4031 		wait_result = vm_object_sleep(  src_object,
4032 		    VM_OBJECT_EVENT_PAGER_READY,
4033 		    interruptible, LCK_SLEEP_EXCLUSIVE);
4034 		if (wait_result != THREAD_AWAKENED) {
4035 			vm_object_unlock(src_object);
4036 			*dst_object = VM_OBJECT_NULL;
4037 			*dst_offset = 0;
4038 			*dst_needs_copy = FALSE;
4039 			return MACH_SEND_INTERRUPTED;
4040 		}
4041 	}
4042 
4043 	/*
4044 	 *	Use the appropriate copy strategy.
4045 	 */
4046 
4047 	if (copy_strategy == MEMORY_OBJECT_COPY_DELAY_FORK) {
4048 		if (forking) {
4049 			copy_strategy = MEMORY_OBJECT_COPY_DELAY;
4050 		} else {
4051 			copy_strategy = MEMORY_OBJECT_COPY_NONE;
4052 			if (object_lock_shared) {
4053 				vm_object_unlock(src_object);
4054 				vm_object_lock(src_object);
4055 				object_lock_shared = FALSE;
4056 			}
4057 		}
4058 	}
4059 
4060 	switch (copy_strategy) {
4061 	case MEMORY_OBJECT_COPY_DELAY:
4062 		*dst_object = vm_object_copy_delayed(src_object,
4063 		    src_offset, size, object_lock_shared);
4064 		if (*dst_object != VM_OBJECT_NULL) {
4065 			*dst_offset = src_offset;
4066 			*dst_needs_copy = TRUE;
4067 			result = KERN_SUCCESS;
4068 			break;
4069 		}
4070 		vm_object_lock(src_object);
4071 		OS_FALLTHROUGH; /* fall thru when delayed copy not allowed */
4072 
4073 	case MEMORY_OBJECT_COPY_NONE:
4074 		result = vm_object_copy_slowly(src_object,
4075 		    src_offset, size,
4076 		    interruptible,
4077 		    dst_object);
4078 		if (result == KERN_SUCCESS) {
4079 			*dst_offset = src_offset - vm_object_trunc_page(src_offset);
4080 			*dst_needs_copy = FALSE;
4081 		}
4082 		break;
4083 
4084 	case MEMORY_OBJECT_COPY_SYMMETRIC:
4085 		vm_object_unlock(src_object);
4086 		result = KERN_MEMORY_RESTART_COPY;
4087 		break;
4088 
4089 	default:
4090 		panic("copy_strategically: bad strategy %d for object %p",
4091 		    copy_strategy, src_object);
4092 		result = KERN_INVALID_ARGUMENT;
4093 	}
4094 	return result;
4095 }
4096 
4097 /*
4098  *	vm_object_shadow:
4099  *
4100  *	Create a new object which is backed by the
4101  *	specified existing object range.  The source
4102  *	object reference is deallocated.
4103  *
4104  *	The new object and offset into that object
4105  *	are returned in the source parameters.
4106  */
4107 boolean_t vm_object_shadow_check = TRUE;
4108 uint64_t vm_object_shadow_forced = 0;
4109 uint64_t vm_object_shadow_skipped = 0;
4110 
4111 __private_extern__ boolean_t
4112 vm_object_shadow(
4113 	vm_object_t             *object,        /* IN/OUT */
4114 	vm_object_offset_t      *offset,        /* IN/OUT */
4115 	vm_object_size_t        length,
4116 	boolean_t               always_shadow)
4117 {
4118 	vm_object_t     source;
4119 	vm_object_t     result;
4120 
4121 	source = *object;
4122 	assert(source != VM_OBJECT_NULL);
4123 	if (source == VM_OBJECT_NULL) {
4124 		return FALSE;
4125 	}
4126 
4127 	assert(source->copy_strategy == MEMORY_OBJECT_COPY_SYMMETRIC);
4128 
4129 	/*
4130 	 *	Determine if we really need a shadow.
4131 	 *
4132 	 *	If the source object is larger than what we are trying
4133 	 *	to create, then force the shadow creation even if the
4134 	 *	ref count is 1.  This will allow us to [potentially]
4135 	 *	collapse the underlying object away in the future
4136 	 *	(freeing up the extra data it might contain and that
4137 	 *	we don't need).
4138 	 */
4139 
4140 	assert(source->copy_strategy != MEMORY_OBJECT_COPY_NONE); /* Purgeable objects shouldn't have shadow objects. */
4141 
4142 	/*
4143 	 * The following optimization does not work in the context of submaps
4144 	 * (the shared region, in particular).
4145 	 * This object might have only 1 reference (in the submap) but that
4146 	 * submap can itself be mapped multiple times, so the object is
4147 	 * actually indirectly referenced more than once...
4148 	 * The caller can specify to "always_shadow" to bypass the optimization.
4149 	 */
4150 	if (vm_object_shadow_check &&
4151 	    source->vo_size == length &&
4152 	    os_ref_get_count_raw(&source->ref_count) == 1) {
4153 		if (always_shadow) {
4154 			vm_object_shadow_forced++;
4155 		} else {
4156 			/*
4157 			 * Lock the object and check again.
4158 			 * We also check to see if there's
4159 			 * a shadow or copy object involved.
4160 			 * We can't do that earlier because
4161 			 * without the object locked, there
4162 			 * could be a collapse and the chain
4163 			 * gets modified leaving us with an
4164 			 * invalid pointer.
4165 			 */
4166 			vm_object_lock(source);
4167 			if (source->vo_size == length &&
4168 			    os_ref_get_count_raw(&source->ref_count) == 1 &&
4169 			    (source->shadow == VM_OBJECT_NULL ||
4170 			    source->shadow->vo_copy == VM_OBJECT_NULL)) {
4171 				VM_OBJECT_SET_SHADOWED(source, FALSE);
4172 				vm_object_unlock(source);
4173 				vm_object_shadow_skipped++;
4174 				return FALSE;
4175 			}
4176 			/* things changed while we were locking "source"... */
4177 			vm_object_unlock(source);
4178 		}
4179 	}
4180 
4181 	/*
4182 	 * *offset is the map entry's offset into the VM object and
4183 	 * is aligned to the map's page size.
4184 	 * VM objects need to be aligned to the system's page size.
4185 	 * Record the necessary adjustment and re-align the offset so
4186 	 * that result->vo_shadow_offset is properly page-aligned.
4187 	 */
4188 	vm_object_offset_t offset_adjustment;
4189 	offset_adjustment = *offset - vm_object_trunc_page(*offset);
4190 	length = vm_object_round_page(length + offset_adjustment);
4191 	*offset = vm_object_trunc_page(*offset);
4192 
4193 	/*
4194 	 *	Allocate a new object with the given length
4195 	 */
4196 
4197 	if ((result = vm_object_allocate(length, source->vmo_provenance)) == VM_OBJECT_NULL) {
4198 		panic("vm_object_shadow: no object for shadowing");
4199 	}
4200 
4201 	/*
4202 	 *	The new object shadows the source object, adding
4203 	 *	a reference to it.  Our caller changes his reference
4204 	 *	to point to the new object, removing a reference to
4205 	 *	the source object.  Net result: no change of reference
4206 	 *	count.
4207 	 */
4208 	result->shadow = source;
4209 
4210 	/*
4211 	 *	Store the offset into the source object,
4212 	 *	and fix up the offset into the new object.
4213 	 */
4214 
4215 	result->vo_shadow_offset = *offset;
4216 	assertf(page_aligned(result->vo_shadow_offset),
4217 	    "result %p shadow offset 0x%llx",
4218 	    result, result->vo_shadow_offset);
4219 
4220 	/*
4221 	 *	Return the new things
4222 	 */
4223 
4224 	*offset = 0;
4225 	if (offset_adjustment) {
4226 		/*
4227 		 * Make the map entry point to the equivalent offset
4228 		 * in the new object.
4229 		 */
4230 		DEBUG4K_COPY("adjusting offset @ %p from 0x%llx to 0x%llx for object %p length: 0x%llx\n", offset, *offset, *offset + offset_adjustment, result, length);
4231 		*offset += offset_adjustment;
4232 	}
4233 	*object = result;
4234 	return TRUE;
4235 }
4236 
4237 /*
4238  *	The relationship between vm_object structures and
4239  *	the memory_object requires careful synchronization.
4240  *
4241  *	All associations are created by memory_object_create_named
4242  *  for external pagers and vm_object_compressor_pager_create for internal
4243  *  objects as follows:
4244  *
4245  *		pager:	the memory_object itself, supplied by
4246  *			the user requesting a mapping (or the kernel,
4247  *			when initializing internal objects); the
4248  *			kernel simulates holding send rights by keeping
4249  *			a port reference;
4250  *
4251  *		pager_request:
4252  *			the memory object control port,
4253  *			created by the kernel; the kernel holds
4254  *			receive (and ownership) rights to this
4255  *			port, but no other references.
4256  *
4257  *	When initialization is complete, the "initialized" field
4258  *	is asserted.  Other mappings using a particular memory object,
4259  *	and any references to the vm_object gained through the
4260  *	port association must wait for this initialization to occur.
4261  *
4262  *	In order to allow the memory manager to set attributes before
4263  *	requests (notably virtual copy operations, but also data or
4264  *	unlock requests) are made, a "ready" attribute is made available.
4265  *	Only the memory manager may affect the value of this attribute.
4266  *	Its value does not affect critical kernel functions, such as
4267  *	internal object initialization or destruction.  [Furthermore,
4268  *	memory objects created by the kernel are assumed to be ready
4269  *	immediately; the default memory manager need not explicitly
4270  *	set the "ready" attribute.]
4271  *
4272  *	[Both the "initialized" and "ready" attribute wait conditions
4273  *	use the "pager" field as the wait event.]
4274  *
4275  *	The port associations can be broken down by any of the
4276  *	following routines:
4277  *		vm_object_terminate:
4278  *			No references to the vm_object remain, and
4279  *			the object cannot (or will not) be cached.
4280  *			This is the normal case, and is done even
4281  *			though one of the other cases has already been
4282  *			done.
4283  *		memory_object_destroy:
4284  *			The memory manager has requested that the
4285  *			kernel relinquish references to the memory
4286  *			object. [The memory manager may not want to
4287  *			destroy the memory object, but may wish to
4288  *			refuse or tear down existing memory mappings.]
4289  *
4290  *	Each routine that breaks an association must break all of
4291  *	them at once.  At some later time, that routine must clear
4292  *	the pager field and release the memory object references.
4293  *	[Furthermore, each routine must cope with the simultaneous
4294  *	or previous operations of the others.]
4295  *
4296  *	Because the pager field may be cleared spontaneously, it
4297  *	cannot be used to determine whether a memory object has
4298  *	ever been associated with a particular vm_object.  [This
4299  *	knowledge is important to the shadow object mechanism.]
4300  *	For this reason, an additional "created" attribute is
4301  *	provided.
4302  *
4303  *	During various paging operations, the pager reference found in the
4304  *	vm_object must be valid.  To prevent this from being released,
4305  *	(other than being removed, i.e., made null), routines may use
4306  *	the vm_object_paging_begin/end routines [actually, macros].
4307  *	The implementation uses the "paging_in_progress" and "wanted" fields.
4308  *	[Operations that alter the validity of the pager values include the
4309  *	termination routines and vm_object_collapse.]
4310  */
4311 
4312 
4313 /*
4314  *	Routine:	vm_object_memory_object_associate
4315  *	Purpose:
4316  *		Associate a VM object to the given pager.
4317  *		If a VM object is not provided, create one.
4318  *		Initialize the pager.
4319  */
4320 vm_object_t
4321 vm_object_memory_object_associate(
4322 	memory_object_t         pager,
4323 	vm_object_t             object,
4324 	vm_object_size_t        size,
4325 	boolean_t               named)
4326 {
4327 	memory_object_control_t control;
4328 
4329 	assert(pager != MEMORY_OBJECT_NULL);
4330 
4331 	if (object != VM_OBJECT_NULL) {
4332 		vm_object_lock(object);
4333 		assert(object->internal);
4334 		assert(object->pager_created);
4335 		assert(!object->pager_initialized);
4336 		assert(!object->pager_ready);
4337 		assert(object->pager_trusted);
4338 	} else {
4339 		/* No provenance yet */
4340 		object = vm_object_allocate(size, VM_MAP_SERIAL_NONE);
4341 		assert(object != VM_OBJECT_NULL);
4342 		vm_object_lock(object);
4343 		VM_OBJECT_SET_INTERNAL(object, FALSE);
4344 		VM_OBJECT_SET_PAGER_TRUSTED(object, FALSE);
4345 		/* copy strategy invalid until set by memory manager */
4346 		object->copy_strategy = MEMORY_OBJECT_COPY_INVALID;
4347 	}
4348 
4349 	/*
4350 	 *	Allocate request port.
4351 	 */
4352 
4353 	control = memory_object_control_allocate(object);
4354 	assert(control != MEMORY_OBJECT_CONTROL_NULL);
4355 
4356 	assert(!object->pager_ready);
4357 	assert(!object->pager_initialized);
4358 	assert(object->pager == NULL);
4359 	assert(object->pager_control == NULL);
4360 
4361 	/*
4362 	 *	Copy the reference we were given.
4363 	 */
4364 
4365 	memory_object_reference(pager);
4366 	VM_OBJECT_SET_PAGER_CREATED(object, TRUE);
4367 	object->pager = pager;
4368 	object->pager_control = control;
4369 	VM_OBJECT_SET_PAGER_READY(object, FALSE);
4370 
4371 	vm_object_unlock(object);
4372 
4373 	/*
4374 	 *	Let the pager know we're using it.
4375 	 */
4376 
4377 	(void) memory_object_init(pager,
4378 	    object->pager_control,
4379 	    PAGE_SIZE);
4380 
4381 	vm_object_lock(object);
4382 	if (named) {
4383 		VM_OBJECT_SET_NAMED(object, TRUE);
4384 	}
4385 	if (object->internal) {
4386 		VM_OBJECT_SET_PAGER_READY(object, TRUE);
4387 		vm_object_wakeup(object, VM_OBJECT_EVENT_PAGER_READY);
4388 	}
4389 
4390 	VM_OBJECT_SET_PAGER_INITIALIZED(object, TRUE);
4391 	vm_object_wakeup(object, VM_OBJECT_EVENT_PAGER_INIT);
4392 
4393 	vm_object_unlock(object);
4394 
4395 	return object;
4396 }
4397 
4398 /*
4399  *	Routine:	vm_object_compressor_pager_create
4400  *	Purpose:
4401  *		Create a memory object for an internal object.
4402  *	In/out conditions:
4403  *		The object is locked on entry and exit;
4404  *		it may be unlocked within this call.
4405  *	Limitations:
4406  *		Only one thread may be performing a
4407  *		vm_object_compressor_pager_create on an object at
4408  *		a time.  Presumably, only the pageout
4409  *		daemon will be using this routine.
4410  */
4411 
4412 void
4413 vm_object_compressor_pager_create(
4414 	vm_object_t     object)
4415 {
4416 	memory_object_t         pager;
4417 	vm_object_t             pager_object = VM_OBJECT_NULL;
4418 
4419 	assert(!is_kernel_object(object));
4420 
4421 	/*
4422 	 *	Prevent collapse or termination by holding a paging reference
4423 	 */
4424 
4425 	vm_object_paging_begin(object);
4426 	if (object->pager_created) {
4427 		/*
4428 		 *	Someone else got to it first...
4429 		 *	wait for them to finish initializing the ports
4430 		 */
4431 		while (!object->pager_initialized) {
4432 			vm_object_sleep(object,
4433 			    VM_OBJECT_EVENT_PAGER_INIT,
4434 			    THREAD_UNINT, LCK_SLEEP_EXCLUSIVE);
4435 		}
4436 		vm_object_paging_end(object);
4437 		return;
4438 	}
4439 
4440 	if ((uint32_t) (object->vo_size / PAGE_SIZE) !=
4441 	    (object->vo_size / PAGE_SIZE)) {
4442 #if DEVELOPMENT || DEBUG
4443 		printf("vm_object_compressor_pager_create(%p): "
4444 		    "object size 0x%llx >= 0x%llx\n",
4445 		    object,
4446 		    (uint64_t) object->vo_size,
4447 		    0x0FFFFFFFFULL * PAGE_SIZE);
4448 #endif /* DEVELOPMENT || DEBUG */
4449 		vm_object_paging_end(object);
4450 		return;
4451 	}
4452 
4453 
4454 	/*
4455 	 *	Indicate that a memory object has been assigned
4456 	 *	before dropping the lock, to prevent a race.
4457 	 */
4458 
4459 	VM_OBJECT_SET_PAGER_CREATED(object, TRUE);
4460 	VM_OBJECT_SET_PAGER_TRUSTED(object, TRUE);
4461 	object->paging_offset = 0;
4462 
4463 	vm_object_unlock(object);
4464 
4465 	/*
4466 	 *	Create the [internal] pager, and associate it with this object.
4467 	 *
4468 	 *	We make the association here so that vm_object_enter()
4469 	 *      can look up the object to complete initializing it.  No
4470 	 *	user will ever map this object.
4471 	 */
4472 	{
4473 		/* create our new memory object */
4474 		assert((uint32_t) (object->vo_size / PAGE_SIZE) ==
4475 		    (object->vo_size / PAGE_SIZE));
4476 		(void) compressor_memory_object_create(
4477 			(memory_object_size_t) object->vo_size,
4478 			&pager);
4479 		if (pager == NULL) {
4480 			panic("vm_object_compressor_pager_create(): "
4481 			    "no pager for object %p size 0x%llx\n",
4482 			    object, (uint64_t) object->vo_size);
4483 		}
4484 	}
4485 
4486 	/*
4487 	 *	A reference was returned by
4488 	 *	memory_object_create(), and it is
4489 	 *	copied by vm_object_memory_object_associate().
4490 	 */
4491 
4492 	pager_object = vm_object_memory_object_associate(pager,
4493 	    object,
4494 	    object->vo_size,
4495 	    FALSE);
4496 	if (pager_object != object) {
4497 		panic("vm_object_compressor_pager_create: mismatch (pager: %p, pager_object: %p, orig_object: %p, orig_object size: 0x%llx)", pager, pager_object, object, (uint64_t) object->vo_size);
4498 	}
4499 
4500 	/*
4501 	 *	Drop the reference we were passed.
4502 	 */
4503 	memory_object_deallocate(pager);
4504 
4505 	vm_object_lock(object);
4506 
4507 	/*
4508 	 *	Release the paging reference
4509 	 */
4510 	vm_object_paging_end(object);
4511 }
4512 
4513 vm_external_state_t
4514 vm_object_compressor_pager_state_get(
4515 	vm_object_t        object,
4516 	vm_object_offset_t offset)
4517 {
4518 	if (__probable(not_in_kdp)) {
4519 		vm_object_lock_assert_held(object);
4520 	}
4521 	if (object->internal &&
4522 	    object->pager != NULL &&
4523 	    !object->terminating &&
4524 	    object->alive) {
4525 		return vm_compressor_pager_state_get(object->pager,
4526 		           offset + object->paging_offset);
4527 	} else {
4528 		return VM_EXTERNAL_STATE_UNKNOWN;
4529 	}
4530 }
4531 
4532 void
4533 vm_object_compressor_pager_state_clr(
4534 	vm_object_t        object,
4535 	vm_object_offset_t offset)
4536 {
4537 	unsigned int num_pages_cleared;
4538 	vm_object_lock_assert_exclusive(object);
4539 	if (object->internal &&
4540 	    object->pager != NULL &&
4541 	    !object->terminating &&
4542 	    object->alive) {
4543 		num_pages_cleared = vm_compressor_pager_state_clr(object->pager,
4544 		    offset + object->paging_offset);
4545 		if (num_pages_cleared) {
4546 			vm_compressor_pager_count(object->pager,
4547 			    -num_pages_cleared,
4548 			    FALSE, /* shared */
4549 			    object);
4550 		}
4551 		if (num_pages_cleared &&
4552 		    (object->purgable != VM_PURGABLE_DENY || object->vo_ledger_tag)) {
4553 			/* less compressed purgeable/tagged pages */
4554 			assert3u(num_pages_cleared, ==, 1);
4555 			vm_object_owner_compressed_update(object, -num_pages_cleared);
4556 		}
4557 	}
4558 }
4559 
4560 /*
4561  *	Global variables for vm_object_collapse():
4562  *
4563  *		Counts for normal collapses and bypasses.
4564  *		Debugging variables, to watch or disable collapse.
4565  */
4566 static long     object_collapses = 0;
4567 static long     object_bypasses  = 0;
4568 
4569 static boolean_t        vm_object_collapse_allowed = TRUE;
4570 static boolean_t        vm_object_bypass_allowed = TRUE;
4571 
4572 void vm_object_do_collapse_compressor(vm_object_t object,
4573     vm_object_t backing_object);
4574 void
4575 vm_object_do_collapse_compressor(
4576 	vm_object_t object,
4577 	vm_object_t backing_object)
4578 {
4579 	vm_object_offset_t new_offset, backing_offset;
4580 	vm_object_size_t size;
4581 
4582 	vm_counters.do_collapse_compressor++;
4583 
4584 	vm_object_lock_assert_exclusive(object);
4585 	vm_object_lock_assert_exclusive(backing_object);
4586 
4587 	size = object->vo_size;
4588 
4589 	/*
4590 	 *	Move all compressed pages from backing_object
4591 	 *	to the parent.
4592 	 */
4593 
4594 	for (backing_offset = object->vo_shadow_offset;
4595 	    backing_offset < object->vo_shadow_offset + object->vo_size;
4596 	    backing_offset += PAGE_SIZE) {
4597 		memory_object_offset_t backing_pager_offset;
4598 
4599 		/* find the next compressed page at or after this offset */
4600 		backing_pager_offset = (backing_offset +
4601 		    backing_object->paging_offset);
4602 		backing_pager_offset = vm_compressor_pager_next_compressed(
4603 			backing_object->pager,
4604 			backing_pager_offset);
4605 		if (backing_pager_offset == (memory_object_offset_t) -1) {
4606 			/* no more compressed pages */
4607 			break;
4608 		}
4609 		backing_offset = (backing_pager_offset -
4610 		    backing_object->paging_offset);
4611 
4612 		new_offset = backing_offset - object->vo_shadow_offset;
4613 
4614 		if (new_offset >= object->vo_size) {
4615 			/* we're out of the scope of "object": done */
4616 			break;
4617 		}
4618 
4619 		if ((vm_page_lookup(object, new_offset) != VM_PAGE_NULL) ||
4620 		    (vm_compressor_pager_state_get(object->pager,
4621 		    (new_offset +
4622 		    object->paging_offset)) ==
4623 		    VM_EXTERNAL_STATE_EXISTS)) {
4624 			/*
4625 			 * This page already exists in object, resident or
4626 			 * compressed.
4627 			 * We don't need this compressed page in backing_object
4628 			 * and it will be reclaimed when we release
4629 			 * backing_object.
4630 			 */
4631 			continue;
4632 		}
4633 
4634 		/*
4635 		 * backing_object has this page in the VM compressor and
4636 		 * we need to transfer it to object.
4637 		 */
4638 		vm_counters.do_collapse_compressor_pages++;
4639 		vm_compressor_pager_transfer(
4640 			/* destination: */
4641 			object->pager,
4642 			(new_offset + object->paging_offset),
4643 			/* source: */
4644 			backing_object->pager,
4645 			(backing_offset + backing_object->paging_offset));
4646 	}
4647 }
4648 
4649 /*
4650  *	Routine:	vm_object_do_collapse
4651  *	Purpose:
4652  *		Collapse an object with the object backing it.
4653  *		Pages in the backing object are moved into the
4654  *		parent, and the backing object is deallocated.
4655  *	Conditions:
4656  *		Both objects and the cache are locked; the page
4657  *		queues are unlocked.
4658  *
4659  */
4660 static void
4661 vm_object_do_collapse(
4662 	vm_object_t object,
4663 	vm_object_t backing_object)
4664 {
4665 	vm_page_t p, pp;
4666 	vm_object_offset_t new_offset, backing_offset;
4667 	vm_object_size_t size;
4668 
4669 	vm_object_lock_assert_exclusive(object);
4670 	vm_object_lock_assert_exclusive(backing_object);
4671 
4672 	assert(object->purgable == VM_PURGABLE_DENY);
4673 	assert(backing_object->purgable == VM_PURGABLE_DENY);
4674 
4675 	backing_offset = object->vo_shadow_offset;
4676 	size = object->vo_size;
4677 
4678 	/*
4679 	 *	Move all in-memory pages from backing_object
4680 	 *	to the parent.  Pages that have been paged out
4681 	 *	will be overwritten by any of the parent's
4682 	 *	pages that shadow them.
4683 	 */
4684 
4685 	while (!vm_page_queue_empty(&backing_object->memq)) {
4686 		p = (vm_page_t) vm_page_queue_first(&backing_object->memq);
4687 
4688 		new_offset = (p->vmp_offset - backing_offset);
4689 
4690 		assert(!p->vmp_busy || p->vmp_absent);
4691 
4692 		/*
4693 		 *	If the parent has a page here, or if
4694 		 *	this page falls outside the parent,
4695 		 *	dispose of it.
4696 		 *
4697 		 *	Otherwise, move it as planned.
4698 		 */
4699 
4700 		if (p->vmp_offset < backing_offset || new_offset >= size) {
4701 			VM_PAGE_FREE(p);
4702 		} else {
4703 			pp = vm_page_lookup(object, new_offset);
4704 			if (pp == VM_PAGE_NULL) {
4705 				if (vm_object_compressor_pager_state_get(object,
4706 				    new_offset)
4707 				    == VM_EXTERNAL_STATE_EXISTS) {
4708 					/*
4709 					 * Parent object has this page
4710 					 * in the VM compressor.
4711 					 * Throw away the backing
4712 					 * object's page.
4713 					 */
4714 					VM_PAGE_FREE(p);
4715 				} else {
4716 					/*
4717 					 *	Parent now has no page.
4718 					 *	Move the backing object's page
4719 					 *      up.
4720 					 */
4721 					vm_page_rename(p, object, new_offset);
4722 				}
4723 			} else {
4724 				assert(!pp->vmp_absent);
4725 
4726 				/*
4727 				 *	Parent object has a real page.
4728 				 *	Throw away the backing object's
4729 				 *	page.
4730 				 */
4731 				VM_PAGE_FREE(p);
4732 			}
4733 		}
4734 	}
4735 
4736 	if (vm_object_collapse_compressor_allowed &&
4737 	    object->pager != MEMORY_OBJECT_NULL &&
4738 	    backing_object->pager != MEMORY_OBJECT_NULL) {
4739 		/* move compressed pages from backing_object to object */
4740 		vm_object_do_collapse_compressor(object, backing_object);
4741 	} else if (backing_object->pager != MEMORY_OBJECT_NULL) {
4742 		assert((!object->pager_created &&
4743 		    (object->pager == MEMORY_OBJECT_NULL)) ||
4744 		    (!backing_object->pager_created &&
4745 		    (backing_object->pager == MEMORY_OBJECT_NULL)));
4746 		/*
4747 		 *	Move the pager from backing_object to object.
4748 		 *
4749 		 *	XXX We're only using part of the paging space
4750 		 *	for keeps now... we ought to discard the
4751 		 *	unused portion.
4752 		 */
4753 
4754 		assert(!object->paging_in_progress);
4755 		assert(!object->activity_in_progress);
4756 		assert(!object->pager_created);
4757 		assert(object->pager == NULL);
4758 		object->pager = backing_object->pager;
4759 
4760 		VM_OBJECT_SET_PAGER_CREATED(object, backing_object->pager_created);
4761 		object->pager_control = backing_object->pager_control;
4762 		VM_OBJECT_SET_PAGER_READY(object, backing_object->pager_ready);
4763 		VM_OBJECT_SET_PAGER_INITIALIZED(object, backing_object->pager_initialized);
4764 		object->paging_offset =
4765 		    backing_object->paging_offset + backing_offset;
4766 		if (object->pager_control != MEMORY_OBJECT_CONTROL_NULL) {
4767 			memory_object_control_collapse(&object->pager_control,
4768 			    object);
4769 		}
4770 		/* the backing_object has lost its pager: reset all fields */
4771 		VM_OBJECT_SET_PAGER_CREATED(backing_object, FALSE);
4772 		backing_object->pager_control = NULL;
4773 		VM_OBJECT_SET_PAGER_READY(backing_object, FALSE);
4774 		backing_object->paging_offset = 0;
4775 		backing_object->pager = NULL;
4776 	}
4777 	/*
4778 	 *	Object now shadows whatever backing_object did.
4779 	 *	Note that the reference to backing_object->shadow
4780 	 *	moves from within backing_object to within object.
4781 	 */
4782 
4783 	assert(!object->phys_contiguous);
4784 	assert(!backing_object->phys_contiguous);
4785 	object->shadow = backing_object->shadow;
4786 	if (object->shadow) {
4787 		assertf(page_aligned(object->vo_shadow_offset),
4788 		    "object %p shadow_offset 0x%llx",
4789 		    object, object->vo_shadow_offset);
4790 		assertf(page_aligned(backing_object->vo_shadow_offset),
4791 		    "backing_object %p shadow_offset 0x%llx",
4792 		    backing_object, backing_object->vo_shadow_offset);
4793 		object->vo_shadow_offset += backing_object->vo_shadow_offset;
4794 		/* "backing_object" gave its shadow to "object" */
4795 		backing_object->shadow = VM_OBJECT_NULL;
4796 		backing_object->vo_shadow_offset = 0;
4797 	} else {
4798 		/* no shadow, therefore no shadow offset... */
4799 		object->vo_shadow_offset = 0;
4800 	}
4801 	assert((object->shadow == VM_OBJECT_NULL) ||
4802 	    (object->shadow->vo_copy != backing_object));
4803 
4804 	/*
4805 	 *	Discard backing_object.
4806 	 *
4807 	 *	Since the backing object has no pages, no
4808 	 *	pager left, and no object references within it,
4809 	 *	all that is necessary is to dispose of it.
4810 	 */
4811 	object_collapses++;
4812 
4813 	assert(os_ref_get_count_raw(&backing_object->ref_count) == 1);
4814 	assert(backing_object->resident_page_count == 0);
4815 	assert(backing_object->paging_in_progress == 0);
4816 	assert(backing_object->activity_in_progress == 0);
4817 	assert(backing_object->shadow == VM_OBJECT_NULL);
4818 	assert(backing_object->vo_shadow_offset == 0);
4819 
4820 	if (backing_object->pager != MEMORY_OBJECT_NULL) {
4821 		/* ... unless it has a pager; need to terminate pager too */
4822 		vm_counters.do_collapse_terminate++;
4823 		if (vm_object_terminate(backing_object) != KERN_SUCCESS) {
4824 			vm_counters.do_collapse_terminate_failure++;
4825 		}
4826 		return;
4827 	}
4828 
4829 	assert(backing_object->pager == NULL);
4830 
4831 	VM_OBJECT_SET_ALIVE(backing_object, FALSE);
4832 	vm_object_unlock(backing_object);
4833 
4834 #if VM_OBJECT_TRACKING
4835 	if (vm_object_tracking_btlog) {
4836 		btlog_erase(vm_object_tracking_btlog, backing_object);
4837 	}
4838 #endif /* VM_OBJECT_TRACKING */
4839 
4840 	vm_object_lock_destroy(backing_object);
4841 
4842 	zfree(vm_object_zone, backing_object);
4843 }
4844 
4845 static void
4846 vm_object_do_bypass(
4847 	vm_object_t object,
4848 	vm_object_t backing_object)
4849 {
4850 	/*
4851 	 *	Make the parent shadow the next object
4852 	 *	in the chain.
4853 	 */
4854 
4855 	vm_object_lock_assert_exclusive(object);
4856 	vm_object_lock_assert_exclusive(backing_object);
4857 
4858 	vm_object_reference(backing_object->shadow);
4859 
4860 	assert(!object->phys_contiguous);
4861 	assert(!backing_object->phys_contiguous);
4862 	object->shadow = backing_object->shadow;
4863 	if (object->shadow) {
4864 		assertf(page_aligned(object->vo_shadow_offset),
4865 		    "object %p shadow_offset 0x%llx",
4866 		    object, object->vo_shadow_offset);
4867 		assertf(page_aligned(backing_object->vo_shadow_offset),
4868 		    "backing_object %p shadow_offset 0x%llx",
4869 		    backing_object, backing_object->vo_shadow_offset);
4870 		object->vo_shadow_offset += backing_object->vo_shadow_offset;
4871 	} else {
4872 		/* no shadow, therefore no shadow offset... */
4873 		object->vo_shadow_offset = 0;
4874 	}
4875 
4876 	/*
4877 	 *	Backing object might have had a copy pointer
4878 	 *	to us.  If it did, clear it.
4879 	 */
4880 	if (backing_object->vo_copy == object) {
4881 		VM_OBJECT_COPY_SET(backing_object, VM_OBJECT_NULL);
4882 	}
4883 
4884 	/*
4885 	 *	Drop the reference count on backing_object.
4886 	 #if	TASK_SWAPPER
4887 	 *	Since its ref_count was at least 2, it
4888 	 *	will not vanish; so we don't need to call
4889 	 *	vm_object_deallocate.
4890 	 *	[with a caveat for "named" objects]
4891 	 *
4892 	 *	The res_count on the backing object is
4893 	 *	conditionally decremented.  It's possible
4894 	 *	(via vm_pageout_scan) to get here with
4895 	 *	a "swapped" object, which has a 0 res_count,
4896 	 *	in which case, the backing object res_count
4897 	 *	is already down by one.
4898 	 #else
4899 	 *	Don't call vm_object_deallocate unless
4900 	 *	ref_count drops to zero.
4901 	 *
4902 	 *	The ref_count can drop to zero here if the
4903 	 *	backing object could be bypassed but not
4904 	 *	collapsed, such as when the backing object
4905 	 *	is temporary and cachable.
4906 	 #endif
4907 	 */
4908 	if (os_ref_get_count_raw(&backing_object->ref_count) > 2 ||
4909 	    (!backing_object->named &&
4910 	    os_ref_get_count_raw(&backing_object->ref_count) > 1)) {
4911 		vm_object_lock_assert_exclusive(backing_object);
4912 		os_ref_release_live_locked_raw(&backing_object->ref_count,
4913 		    &vm_object_refgrp);
4914 		vm_object_unlock(backing_object);
4915 	} else {
4916 		/*
4917 		 *	Drop locks so that we can deallocate
4918 		 *	the backing object.
4919 		 */
4920 
4921 		/*
4922 		 * vm_object_collapse (the caller of this function) is
4923 		 * now called from contexts that may not guarantee that a
4924 		 * valid reference is held on the object... w/o a valid
4925 		 * reference, it is unsafe and unwise (you will definitely
4926 		 * regret it) to unlock the object and then retake the lock
4927 		 * since the object may be terminated and recycled in between.
4928 		 * The "activity_in_progress" reference will keep the object
4929 		 * 'stable'.
4930 		 */
4931 		vm_object_activity_begin(object);
4932 		vm_object_unlock(object);
4933 
4934 		vm_object_unlock(backing_object);
4935 		vm_object_deallocate(backing_object);
4936 
4937 		/*
4938 		 *	Relock object. We don't have to reverify
4939 		 *	its state since vm_object_collapse will
4940 		 *	do that for us as it starts at the
4941 		 *	top of its loop.
4942 		 */
4943 
4944 		vm_object_lock(object);
4945 		vm_object_activity_end(object);
4946 	}
4947 
4948 	object_bypasses++;
4949 }
4950 
4951 
4952 /*
4953  *	vm_object_collapse:
4954  *
4955  *	Perform an object collapse or an object bypass if appropriate.
4956  *	The real work of collapsing and bypassing is performed in
4957  *	the routines vm_object_do_collapse and vm_object_do_bypass.
4958  *
4959  *	Requires that the object be locked and the page queues be unlocked.
4960  *
4961  */
4962 static unsigned long vm_object_collapse_calls = 0;
4963 static unsigned long vm_object_collapse_objects = 0;
4964 static unsigned long vm_object_collapse_do_collapse = 0;
4965 static unsigned long vm_object_collapse_do_bypass = 0;
4966 
4967 __private_extern__ void
4968 vm_object_collapse(
4969 	vm_object_t                             object,
4970 	vm_object_offset_t                      hint_offset,
4971 	boolean_t                               can_bypass)
4972 {
4973 	vm_object_t                             backing_object;
4974 	vm_object_size_t                        object_vcount, object_rcount;
4975 	vm_object_t                             original_object;
4976 	int                                     object_lock_type;
4977 	int                                     backing_object_lock_type;
4978 
4979 	vm_object_collapse_calls++;
4980 
4981 	assertf(page_aligned(hint_offset), "hint_offset 0x%llx", hint_offset);
4982 
4983 	if (!vm_object_collapse_allowed &&
4984 	    !(can_bypass && vm_object_bypass_allowed)) {
4985 		return;
4986 	}
4987 
4988 	if (object == VM_OBJECT_NULL) {
4989 		return;
4990 	}
4991 
4992 	original_object = object;
4993 
4994 	/*
4995 	 * The top object was locked "exclusive" by the caller.
4996 	 * In the first pass, to determine if we can collapse the shadow chain,
4997 	 * take a "shared" lock on the shadow objects.  If we can collapse,
4998 	 * we'll have to go down the chain again with exclusive locks.
4999 	 */
5000 	object_lock_type = OBJECT_LOCK_EXCLUSIVE;
5001 	backing_object_lock_type = OBJECT_LOCK_SHARED;
5002 
5003 retry:
5004 	object = original_object;
5005 	vm_object_lock_assert_exclusive(object);
5006 
5007 	while (TRUE) {
5008 		vm_object_collapse_objects++;
5009 		/*
5010 		 *	Verify that the conditions are right for either
5011 		 *	collapse or bypass:
5012 		 */
5013 
5014 		/*
5015 		 *	There is a backing object, and
5016 		 */
5017 
5018 		backing_object = object->shadow;
5019 		if (backing_object == VM_OBJECT_NULL) {
5020 			if (object != original_object) {
5021 				vm_object_unlock(object);
5022 			}
5023 			return;
5024 		}
5025 		if (backing_object_lock_type == OBJECT_LOCK_SHARED) {
5026 			vm_object_lock_shared(backing_object);
5027 		} else {
5028 			vm_object_lock(backing_object);
5029 		}
5030 
5031 		/*
5032 		 *	No pages in the object are currently
5033 		 *	being paged out, and
5034 		 */
5035 		if (object->paging_in_progress != 0 ||
5036 		    object->activity_in_progress != 0) {
5037 			/* try and collapse the rest of the shadow chain */
5038 			if (object != original_object) {
5039 				vm_object_unlock(object);
5040 			}
5041 			object = backing_object;
5042 			object_lock_type = backing_object_lock_type;
5043 			continue;
5044 		}
5045 
5046 		/*
5047 		 *	...
5048 		 *		The backing object is not read_only,
5049 		 *		and no pages in the backing object are
5050 		 *		currently being paged out.
5051 		 *		The backing object is internal.
5052 		 *
5053 		 */
5054 
5055 		if (!backing_object->internal ||
5056 		    backing_object->paging_in_progress != 0 ||
5057 		    backing_object->activity_in_progress != 0) {
5058 			/* try and collapse the rest of the shadow chain */
5059 			if (object != original_object) {
5060 				vm_object_unlock(object);
5061 			}
5062 			object = backing_object;
5063 			object_lock_type = backing_object_lock_type;
5064 			continue;
5065 		}
5066 
5067 		/*
5068 		 * Purgeable objects are not supposed to engage in
5069 		 * copy-on-write activities, so should not have
5070 		 * any shadow objects or be a shadow object to another
5071 		 * object.
5072 		 * Collapsing a purgeable object would require some
5073 		 * updates to the purgeable compressed ledgers.
5074 		 */
5075 		if (object->purgable != VM_PURGABLE_DENY ||
5076 		    backing_object->purgable != VM_PURGABLE_DENY) {
5077 			panic("vm_object_collapse() attempting to collapse "
5078 			    "purgeable object: %p(%d) %p(%d)\n",
5079 			    object, object->purgable,
5080 			    backing_object, backing_object->purgable);
5081 			/* try and collapse the rest of the shadow chain */
5082 			if (object != original_object) {
5083 				vm_object_unlock(object);
5084 			}
5085 			object = backing_object;
5086 			object_lock_type = backing_object_lock_type;
5087 			continue;
5088 		}
5089 
5090 		/*
5091 		 *	The backing object can't be a copy-object:
5092 		 *	the shadow_offset for the copy-object must stay
5093 		 *	as 0.  Furthermore (for the 'we have all the
5094 		 *	pages' case), if we bypass backing_object and
5095 		 *	just shadow the next object in the chain, old
5096 		 *	pages from that object would then have to be copied
5097 		 *	BOTH into the (former) backing_object and into the
5098 		 *	parent object.
5099 		 */
5100 		if (backing_object->shadow != VM_OBJECT_NULL &&
5101 		    backing_object->shadow->vo_copy == backing_object) {
5102 			/* try and collapse the rest of the shadow chain */
5103 			if (object != original_object) {
5104 				vm_object_unlock(object);
5105 			}
5106 			object = backing_object;
5107 			object_lock_type = backing_object_lock_type;
5108 			continue;
5109 		}
5110 
5111 		/*
5112 		 *	We can now try to either collapse the backing
5113 		 *	object (if the parent is the only reference to
5114 		 *	it) or (perhaps) remove the parent's reference
5115 		 *	to it.
5116 		 *
5117 		 *	If there is exactly one reference to the backing
5118 		 *	object, we may be able to collapse it into the
5119 		 *	parent.
5120 		 *
5121 		 *	As long as one of the objects is still not known
5122 		 *	to the pager, we can collapse them.
5123 		 */
5124 		if (os_ref_get_count_raw(&backing_object->ref_count) == 1 &&
5125 		    (vm_object_collapse_compressor_allowed ||
5126 		    !object->pager_created
5127 		    || (!backing_object->pager_created)
5128 		    ) && vm_object_collapse_allowed) {
5129 			/*
5130 			 * We need the exclusive lock on the VM objects.
5131 			 */
5132 			if (backing_object_lock_type != OBJECT_LOCK_EXCLUSIVE) {
5133 				/*
5134 				 * We have an object and its shadow locked
5135 				 * "shared".  We can't just upgrade the locks
5136 				 * to "exclusive", as some other thread might
5137 				 * also have these objects locked "shared" and
5138 				 * attempt to upgrade one or the other to
5139 				 * "exclusive".  The upgrades would block
5140 				 * forever waiting for the other "shared" locks
5141 				 * to get released.
5142 				 * So we have to release the locks and go
5143 				 * down the shadow chain again (since it could
5144 				 * have changed) with "exclusive" locking.
5145 				 */
5146 				vm_object_unlock(backing_object);
5147 				if (object != original_object) {
5148 					vm_object_unlock(object);
5149 				}
5150 				object_lock_type = OBJECT_LOCK_EXCLUSIVE;
5151 				backing_object_lock_type = OBJECT_LOCK_EXCLUSIVE;
5152 				goto retry;
5153 			}
5154 
5155 			/*
5156 			 *	Collapse the object with its backing
5157 			 *	object, and try again with the object's
5158 			 *	new backing object.
5159 			 */
5160 
5161 			vm_object_do_collapse(object, backing_object);
5162 			vm_object_collapse_do_collapse++;
5163 			continue;
5164 		}
5165 
5166 		/*
5167 		 *	Collapsing the backing object was not possible
5168 		 *	or permitted, so let's try bypassing it.
5169 		 */
5170 
5171 		if (!(can_bypass && vm_object_bypass_allowed)) {
5172 			/* try and collapse the rest of the shadow chain */
5173 			if (object != original_object) {
5174 				vm_object_unlock(object);
5175 			}
5176 			object = backing_object;
5177 			object_lock_type = backing_object_lock_type;
5178 			continue;
5179 		}
5180 
5181 
5182 		/*
5183 		 *	If the object doesn't have all its pages present,
5184 		 *	we have to make sure no pages in the backing object
5185 		 *	"show through" before bypassing it.
5186 		 */
5187 		object_vcount = object->vo_size >> PAGE_SHIFT;
5188 		object_rcount = (vm_object_size_t)object->resident_page_count;
5189 
5190 		if (object_rcount != object_vcount) {
5191 			vm_object_offset_t      offset;
5192 			vm_object_offset_t      backing_offset;
5193 			vm_object_size_t        backing_rcount, backing_vcount;
5194 
5195 			/*
5196 			 *	If the backing object has a pager but no pagemap,
5197 			 *	then we cannot bypass it, because we don't know
5198 			 *	what pages it has.
5199 			 */
5200 			if (backing_object->pager_created) {
5201 				/* try and collapse the rest of the shadow chain */
5202 				if (object != original_object) {
5203 					vm_object_unlock(object);
5204 				}
5205 				object = backing_object;
5206 				object_lock_type = backing_object_lock_type;
5207 				continue;
5208 			}
5209 
5210 			/*
5211 			 *	If the object has a pager but no pagemap,
5212 			 *	then we cannot bypass it, because we don't know
5213 			 *	what pages it has.
5214 			 */
5215 			if (object->pager_created) {
5216 				/* try and collapse the rest of the shadow chain */
5217 				if (object != original_object) {
5218 					vm_object_unlock(object);
5219 				}
5220 				object = backing_object;
5221 				object_lock_type = backing_object_lock_type;
5222 				continue;
5223 			}
5224 
5225 			backing_offset = object->vo_shadow_offset;
5226 			backing_vcount = backing_object->vo_size >> PAGE_SHIFT;
5227 			backing_rcount = (vm_object_size_t)backing_object->resident_page_count;
5228 			assert(backing_vcount >= object_vcount);
5229 
5230 			if (backing_rcount > (backing_vcount - object_vcount) &&
5231 			    backing_rcount - (backing_vcount - object_vcount) > object_rcount) {
5232 				/*
5233 				 * we have enough pages in the backing object to guarantee that
5234 				 * at least 1 of them must be 'uncovered' by a resident page
5235 				 * in the object we're evaluating, so move on and
5236 				 * try to collapse the rest of the shadow chain
5237 				 */
5238 				if (object != original_object) {
5239 					vm_object_unlock(object);
5240 				}
5241 				object = backing_object;
5242 				object_lock_type = backing_object_lock_type;
5243 				continue;
5244 			}
5245 
5246 			/*
5247 			 *	If all of the pages in the backing object are
5248 			 *	shadowed by the parent object, the parent
5249 			 *	object no longer has to shadow the backing
5250 			 *	object; it can shadow the next one in the
5251 			 *	chain.
5252 			 *
5253 			 *	If the backing object has existence info,
5254 			 *	we must check examine its existence info
5255 			 *	as well.
5256 			 *
5257 			 */
5258 
5259 #define EXISTS_IN_OBJECT(obj, off, rc)                  \
5260 	((vm_object_compressor_pager_state_get((obj), (off))   \
5261 	  == VM_EXTERNAL_STATE_EXISTS) ||               \
5262 	 ((rc) && vm_page_lookup((obj), (off)) != VM_PAGE_NULL && (rc)--))
5263 
5264 			/*
5265 			 * Check the hint location first
5266 			 * (since it is often the quickest way out of here).
5267 			 */
5268 			if (object->cow_hint != ~(vm_offset_t)0) {
5269 				hint_offset = (vm_object_offset_t)object->cow_hint;
5270 			} else {
5271 				hint_offset = (hint_offset > 8 * PAGE_SIZE_64) ?
5272 				    (hint_offset - 8 * PAGE_SIZE_64) : 0;
5273 			}
5274 
5275 			if (EXISTS_IN_OBJECT(backing_object, hint_offset +
5276 			    backing_offset, backing_rcount) &&
5277 			    !EXISTS_IN_OBJECT(object, hint_offset, object_rcount)) {
5278 				/* dependency right at the hint */
5279 				object->cow_hint = (vm_offset_t) hint_offset; /* atomic */
5280 				/* try and collapse the rest of the shadow chain */
5281 				if (object != original_object) {
5282 					vm_object_unlock(object);
5283 				}
5284 				object = backing_object;
5285 				object_lock_type = backing_object_lock_type;
5286 				continue;
5287 			}
5288 
5289 			/*
5290 			 * If the object's window onto the backing_object
5291 			 * is large compared to the number of resident
5292 			 * pages in the backing object, it makes sense to
5293 			 * walk the backing_object's resident pages first.
5294 			 *
5295 			 * NOTE: Pages may be in both the existence map and/or
5296 			 * resident, so if we don't find a dependency while
5297 			 * walking the backing object's resident page list
5298 			 * directly, and there is an existence map, we'll have
5299 			 * to run the offset based 2nd pass.  Because we may
5300 			 * have to run both passes, we need to be careful
5301 			 * not to decrement 'rcount' in the 1st pass
5302 			 */
5303 			if (backing_rcount && backing_rcount < (object_vcount / 8)) {
5304 				vm_object_size_t rc = object_rcount;
5305 				vm_page_t p;
5306 
5307 				backing_rcount = backing_object->resident_page_count;
5308 				p = (vm_page_t)vm_page_queue_first(&backing_object->memq);
5309 				do {
5310 					offset = (p->vmp_offset - backing_offset);
5311 
5312 					if (offset < object->vo_size &&
5313 					    offset != hint_offset &&
5314 					    !EXISTS_IN_OBJECT(object, offset, rc)) {
5315 						/* found a dependency */
5316 						object->cow_hint = (vm_offset_t) offset; /* atomic */
5317 
5318 						break;
5319 					}
5320 					p = (vm_page_t) vm_page_queue_next(&p->vmp_listq);
5321 				} while (--backing_rcount);
5322 				if (backing_rcount != 0) {
5323 					/* try and collapse the rest of the shadow chain */
5324 					if (object != original_object) {
5325 						vm_object_unlock(object);
5326 					}
5327 					object = backing_object;
5328 					object_lock_type = backing_object_lock_type;
5329 					continue;
5330 				}
5331 			}
5332 
5333 			/*
5334 			 * Walk through the offsets looking for pages in the
5335 			 * backing object that show through to the object.
5336 			 */
5337 			if (backing_rcount) {
5338 				offset = hint_offset;
5339 
5340 				while ((offset =
5341 				    (offset + PAGE_SIZE_64 < object->vo_size) ?
5342 				    (offset + PAGE_SIZE_64) : 0) != hint_offset) {
5343 					if (EXISTS_IN_OBJECT(backing_object, offset +
5344 					    backing_offset, backing_rcount) &&
5345 					    !EXISTS_IN_OBJECT(object, offset, object_rcount)) {
5346 						/* found a dependency */
5347 						object->cow_hint = (vm_offset_t) offset; /* atomic */
5348 						break;
5349 					}
5350 				}
5351 				if (offset != hint_offset) {
5352 					/* try and collapse the rest of the shadow chain */
5353 					if (object != original_object) {
5354 						vm_object_unlock(object);
5355 					}
5356 					object = backing_object;
5357 					object_lock_type = backing_object_lock_type;
5358 					continue;
5359 				}
5360 			}
5361 		}
5362 
5363 		/*
5364 		 * We need "exclusive" locks on the 2 VM objects.
5365 		 */
5366 		if (backing_object_lock_type != OBJECT_LOCK_EXCLUSIVE) {
5367 			vm_object_unlock(backing_object);
5368 			if (object != original_object) {
5369 				vm_object_unlock(object);
5370 			}
5371 			object_lock_type = OBJECT_LOCK_EXCLUSIVE;
5372 			backing_object_lock_type = OBJECT_LOCK_EXCLUSIVE;
5373 			goto retry;
5374 		}
5375 
5376 		/* reset the offset hint for any objects deeper in the chain */
5377 		object->cow_hint = (vm_offset_t)0;
5378 
5379 		/*
5380 		 *	All interesting pages in the backing object
5381 		 *	already live in the parent or its pager.
5382 		 *	Thus we can bypass the backing object.
5383 		 */
5384 
5385 		vm_object_do_bypass(object, backing_object);
5386 		vm_object_collapse_do_bypass++;
5387 
5388 		/*
5389 		 *	Try again with this object's new backing object.
5390 		 */
5391 
5392 		continue;
5393 	}
5394 
5395 	/* NOT REACHED */
5396 	/*
5397 	 *  if (object != original_object) {
5398 	 *       vm_object_unlock(object);
5399 	 *  }
5400 	 */
5401 }
5402 
5403 /*
5404  *	Routine:	vm_object_page_remove: [internal]
5405  *	Purpose:
5406  *		Removes all physical pages in the specified
5407  *		object range from the object's list of pages.
5408  *
5409  *	In/out conditions:
5410  *		The object must be locked.
5411  *		The object must not have paging_in_progress, usually
5412  *		guaranteed by not having a pager.
5413  */
5414 unsigned int vm_object_page_remove_lookup = 0;
5415 unsigned int vm_object_page_remove_iterate = 0;
5416 
5417 __private_extern__ void
5418 vm_object_page_remove(
5419 	vm_object_t             object,
5420 	vm_object_offset_t      start,
5421 	vm_object_offset_t      end)
5422 {
5423 	vm_page_t       p, next;
5424 
5425 	/*
5426 	 *	One and two page removals are most popular.
5427 	 *	The factor of 16 here is somewhat arbitrary.
5428 	 *	It balances vm_object_lookup vs iteration.
5429 	 */
5430 
5431 	if (atop_64(end - start) < (unsigned)object->resident_page_count / 16) {
5432 		vm_object_page_remove_lookup++;
5433 
5434 		for (; start < end; start += PAGE_SIZE_64) {
5435 			p = vm_page_lookup(object, start);
5436 			if (p != VM_PAGE_NULL) {
5437 				assert(!p->vmp_cleaning && !p->vmp_laundry);
5438 				if (!vm_page_is_fictitious(p) && p->vmp_pmapped) {
5439 					pmap_disconnect(VM_PAGE_GET_PHYS_PAGE(p));
5440 				}
5441 				VM_PAGE_FREE(p);
5442 			}
5443 		}
5444 	} else {
5445 		vm_object_page_remove_iterate++;
5446 
5447 		p = (vm_page_t) vm_page_queue_first(&object->memq);
5448 		while (!vm_page_queue_end(&object->memq, (vm_page_queue_entry_t) p)) {
5449 			next = (vm_page_t) vm_page_queue_next(&p->vmp_listq);
5450 			if ((start <= p->vmp_offset) && (p->vmp_offset < end)) {
5451 				assert(!p->vmp_cleaning && !p->vmp_laundry);
5452 				if (!vm_page_is_fictitious(p) && p->vmp_pmapped) {
5453 					pmap_disconnect(VM_PAGE_GET_PHYS_PAGE(p));
5454 				}
5455 				VM_PAGE_FREE(p);
5456 			}
5457 			p = next;
5458 		}
5459 	}
5460 }
5461 
5462 
5463 /*
5464  *	Routine:	vm_object_coalesce
5465  *	Function:	Coalesces two objects backing up adjoining
5466  *			regions of memory into a single object.
5467  *
5468  *	returns TRUE if objects were combined.
5469  *
5470  *	NOTE:	Only works at the moment if the second object is NULL -
5471  *		if it's not, which object do we lock first?
5472  *
5473  *	Parameters:
5474  *		prev_object	First object to coalesce
5475  *		prev_offset	Offset into prev_object
5476  *		next_object	Second object into coalesce
5477  *		next_offset	Offset into next_object
5478  *
5479  *		prev_size	Size of reference to prev_object
5480  *		next_size	Size of reference to next_object
5481  *
5482  *	Conditions:
5483  *	The object(s) must *not* be locked. The map must be locked
5484  *	to preserve the reference to the object(s).
5485  */
5486 static int vm_object_coalesce_count = 0;
5487 
5488 __private_extern__ boolean_t
5489 vm_object_coalesce(
5490 	vm_object_t                     prev_object,
5491 	vm_object_t                     next_object,
5492 	vm_object_offset_t              prev_offset,
5493 	__unused vm_object_offset_t next_offset,
5494 	vm_object_size_t                prev_size,
5495 	vm_object_size_t                next_size)
5496 {
5497 	vm_object_size_t        newsize;
5498 
5499 #ifdef  lint
5500 	next_offset++;
5501 #endif  /* lint */
5502 
5503 	if (next_object != VM_OBJECT_NULL) {
5504 		return FALSE;
5505 	}
5506 
5507 	if (prev_object == VM_OBJECT_NULL) {
5508 		return TRUE;
5509 	}
5510 
5511 	vm_object_lock(prev_object);
5512 
5513 	/*
5514 	 *	Try to collapse the object first
5515 	 */
5516 	vm_object_collapse(prev_object, prev_offset, TRUE);
5517 
5518 	/*
5519 	 *	Can't coalesce if pages not mapped to
5520 	 *	prev_entry may be in use any way:
5521 	 *	. more than one reference
5522 	 *	. paged out
5523 	 *	. shadows another object
5524 	 *	. has a copy elsewhere
5525 	 *	. is purgeable
5526 	 *	. paging references (pages might be in page-list)
5527 	 */
5528 
5529 	if ((os_ref_get_count_raw(&prev_object->ref_count) > 1) ||
5530 	    prev_object->pager_created ||
5531 	    prev_object->phys_contiguous ||
5532 	    (prev_object->shadow != VM_OBJECT_NULL) ||
5533 	    (prev_object->vo_copy != VM_OBJECT_NULL) ||
5534 	    (prev_object->true_share != FALSE) ||
5535 	    (prev_object->purgable != VM_PURGABLE_DENY) ||
5536 	    (prev_object->paging_in_progress != 0) ||
5537 	    (prev_object->activity_in_progress != 0)) {
5538 		vm_object_unlock(prev_object);
5539 		return FALSE;
5540 	}
5541 	/* newsize = prev_offset + prev_size + next_size; */
5542 	if (__improbable(os_add3_overflow(prev_offset, prev_size, next_size,
5543 	    &newsize))) {
5544 		vm_object_unlock(prev_object);
5545 		return FALSE;
5546 	}
5547 
5548 	vm_object_coalesce_count++;
5549 
5550 	/*
5551 	 *	Remove any pages that may still be in the object from
5552 	 *	a previous deallocation.
5553 	 */
5554 	vm_object_page_remove(prev_object,
5555 	    prev_offset + prev_size,
5556 	    prev_offset + prev_size + next_size);
5557 
5558 	/*
5559 	 *	Extend the object if necessary.
5560 	 */
5561 	if (newsize > prev_object->vo_size) {
5562 		assertf(page_aligned(newsize),
5563 		    "object %p size 0x%llx",
5564 		    prev_object, (uint64_t)newsize);
5565 		prev_object->vo_size = newsize;
5566 	}
5567 
5568 	vm_object_unlock(prev_object);
5569 	return TRUE;
5570 }
5571 
5572 kern_return_t
5573 vm_object_populate_with_private(
5574 	vm_object_t             object,
5575 	vm_object_offset_t      offset,
5576 	ppnum_t                 phys_page,
5577 	vm_size_t               size)
5578 {
5579 	ppnum_t                 base_page;
5580 	vm_object_offset_t      base_offset;
5581 
5582 
5583 	if (!object->private) {
5584 		return KERN_FAILURE;
5585 	}
5586 
5587 	base_page = phys_page;
5588 
5589 	vm_object_lock(object);
5590 
5591 	if (!object->phys_contiguous) {
5592 		vm_page_t       m;
5593 
5594 		if ((base_offset = trunc_page_64(offset)) != offset) {
5595 			vm_object_unlock(object);
5596 			return KERN_FAILURE;
5597 		}
5598 		base_offset += object->paging_offset;
5599 
5600 		while (size) {
5601 			m = vm_page_lookup(object, base_offset);
5602 
5603 			if (m != VM_PAGE_NULL) {
5604 				ppnum_t m_phys_page = VM_PAGE_GET_PHYS_PAGE(m);
5605 
5606 				if (m_phys_page == vm_page_guard_addr) {
5607 					/* nothing to do */
5608 				} else if (m_phys_page == vm_page_fictitious_addr) {
5609 					vm_page_lockspin_queues();
5610 					vm_page_make_private(m, base_page);
5611 					vm_page_unlock_queues();
5612 				} else if (m_phys_page != base_page) {
5613 					if (!vm_page_is_private(m)) {
5614 						/*
5615 						 * we'd leak a real page... that can't be right
5616 						 */
5617 						panic("vm_object_populate_with_private - %p not private", m);
5618 					}
5619 					if (m->vmp_pmapped) {
5620 						/*
5621 						 * pmap call to clear old mapping
5622 						 */
5623 						pmap_disconnect(m_phys_page);
5624 					}
5625 					VM_PAGE_SET_PHYS_PAGE(m, base_page);
5626 				}
5627 			} else {
5628 				m = vm_page_create_private(base_page);
5629 
5630 				m->vmp_unusual = TRUE;
5631 				m->vmp_busy = FALSE;
5632 
5633 				vm_page_insert(m, object, base_offset);
5634 			}
5635 			base_page++;                                                                    /* Go to the next physical page */
5636 			base_offset += PAGE_SIZE;
5637 			size -= PAGE_SIZE;
5638 		}
5639 	} else {
5640 		/* NOTE: we should check the original settings here */
5641 		/* if we have a size > zero a pmap call should be made */
5642 		/* to disable the range */
5643 
5644 		/* pmap_? */
5645 
5646 		/* shadows on contiguous memory are not allowed */
5647 		/* we therefore can use the offset field */
5648 		object->vo_shadow_offset = (vm_object_offset_t)phys_page << PAGE_SHIFT;
5649 		assertf(page_aligned(size),
5650 		    "object %p size 0x%llx",
5651 		    object, (uint64_t)size);
5652 		object->vo_size = size;
5653 	}
5654 	vm_object_unlock(object);
5655 
5656 	return KERN_SUCCESS;
5657 }
5658 
5659 
5660 kern_return_t
5661 memory_object_create_named(
5662 	memory_object_t pager,
5663 	memory_object_offset_t  size,
5664 	memory_object_control_t         *control)
5665 {
5666 	vm_object_t             object;
5667 
5668 	*control = MEMORY_OBJECT_CONTROL_NULL;
5669 	if (pager == MEMORY_OBJECT_NULL) {
5670 		return KERN_INVALID_ARGUMENT;
5671 	}
5672 
5673 	object = vm_object_memory_object_associate(pager,
5674 	    VM_OBJECT_NULL,
5675 	    size,
5676 	    TRUE);
5677 	if (object == VM_OBJECT_NULL) {
5678 		return KERN_INVALID_OBJECT;
5679 	}
5680 
5681 	/* wait for object (if any) to be ready */
5682 	if (object != VM_OBJECT_NULL) {
5683 		vm_object_lock(object);
5684 		VM_OBJECT_SET_NAMED(object, TRUE);
5685 		while (!object->pager_ready) {
5686 			vm_object_sleep(object,
5687 			    VM_OBJECT_EVENT_PAGER_READY,
5688 			    THREAD_UNINT, LCK_SLEEP_EXCLUSIVE);
5689 		}
5690 		*control = object->pager_control;
5691 		vm_object_unlock(object);
5692 	}
5693 	return KERN_SUCCESS;
5694 }
5695 
5696 
5697 __private_extern__ kern_return_t
5698 vm_object_lock_request(
5699 	vm_object_t                     object,
5700 	vm_object_offset_t              offset,
5701 	vm_object_size_t                size,
5702 	memory_object_return_t          should_return,
5703 	int                             flags,
5704 	vm_prot_t                       prot)
5705 {
5706 	__unused boolean_t      should_flush;
5707 
5708 	should_flush = flags & MEMORY_OBJECT_DATA_FLUSH;
5709 
5710 	/*
5711 	 *	Check for bogus arguments.
5712 	 */
5713 	if (object == VM_OBJECT_NULL) {
5714 		return KERN_INVALID_ARGUMENT;
5715 	}
5716 
5717 	if ((prot & ~VM_PROT_ALL) != 0 && prot != VM_PROT_NO_CHANGE) {
5718 		return KERN_INVALID_ARGUMENT;
5719 	}
5720 
5721 	/*
5722 	 * XXX TODO4K
5723 	 * extend range for conservative operations (copy-on-write, sync, ...)
5724 	 * truncate range for destructive operations (purge, ...)
5725 	 */
5726 	size = vm_object_round_page(offset + size) - vm_object_trunc_page(offset);
5727 	offset = vm_object_trunc_page(offset);
5728 
5729 	/*
5730 	 *	Lock the object, and acquire a paging reference to
5731 	 *	prevent the memory_object reference from being released.
5732 	 */
5733 	vm_object_lock(object);
5734 	vm_object_paging_begin(object);
5735 
5736 	(void)vm_object_update(object,
5737 	    offset, size, NULL, NULL, should_return, flags, prot);
5738 
5739 	vm_object_paging_end(object);
5740 	vm_object_unlock(object);
5741 
5742 	return KERN_SUCCESS;
5743 }
5744 
5745 /*
5746  * Empty a purgeable object by grabbing the physical pages assigned to it and
5747  * putting them on the free queue without writing them to backing store, etc.
5748  * When the pages are next touched they will be demand zero-fill pages.  We
5749  * skip pages which are busy, being paged in/out, wired, etc.  We do _not_
5750  * skip referenced/dirty pages, pages on the active queue, etc.  We're more
5751  * than happy to grab these since this is a purgeable object.  We mark the
5752  * object as "empty" after reaping its pages.
5753  *
5754  * On entry the object must be locked and it must be
5755  * purgeable with no delayed copies pending.
5756  */
5757 uint64_t
5758 vm_object_purge(vm_object_t object, int flags)
5759 {
5760 	unsigned int    object_page_count = 0, pgcount = 0;
5761 	uint64_t        total_purged_pgcount = 0;
5762 	boolean_t       skipped_object = FALSE;
5763 
5764 	vm_object_lock_assert_exclusive(object);
5765 
5766 	if (object->purgable == VM_PURGABLE_DENY) {
5767 		return 0;
5768 	}
5769 
5770 	assert(object->vo_copy == VM_OBJECT_NULL);
5771 	assert(object->copy_strategy == MEMORY_OBJECT_COPY_NONE);
5772 
5773 	/*
5774 	 * We need to set the object's state to VM_PURGABLE_EMPTY *before*
5775 	 * reaping its pages.  We update vm_page_purgeable_count in bulk
5776 	 * and we don't want vm_page_remove() to update it again for each
5777 	 * page we reap later.
5778 	 *
5779 	 * For the purgeable ledgers, pages from VOLATILE and EMPTY objects
5780 	 * are all accounted for in the "volatile" ledgers, so this does not
5781 	 * make any difference.
5782 	 * If we transitioned directly from NONVOLATILE to EMPTY,
5783 	 * vm_page_purgeable_count must have been updated when the object
5784 	 * was dequeued from its volatile queue and the purgeable ledgers
5785 	 * must have also been updated accordingly at that time (in
5786 	 * vm_object_purgable_control()).
5787 	 */
5788 	if (object->purgable == VM_PURGABLE_VOLATILE) {
5789 		unsigned int delta;
5790 		assert(object->resident_page_count >=
5791 		    object->wired_page_count);
5792 		delta = (object->resident_page_count -
5793 		    object->wired_page_count);
5794 		if (delta != 0) {
5795 			assert(vm_page_purgeable_count >=
5796 			    delta);
5797 			OSAddAtomic(-delta,
5798 			    (SInt32 *)&vm_page_purgeable_count);
5799 		}
5800 		if (object->wired_page_count != 0) {
5801 			assert(vm_page_purgeable_wired_count >=
5802 			    object->wired_page_count);
5803 			OSAddAtomic(-object->wired_page_count,
5804 			    (SInt32 *)&vm_page_purgeable_wired_count);
5805 		}
5806 		VM_OBJECT_SET_PURGABLE(object, VM_PURGABLE_EMPTY);
5807 	}
5808 	assert(object->purgable == VM_PURGABLE_EMPTY);
5809 
5810 	object_page_count = object->resident_page_count;
5811 
5812 	vm_object_reap_pages(object, REAP_PURGEABLE);
5813 
5814 	if (object->resident_page_count >= object_page_count) {
5815 		total_purged_pgcount = 0;
5816 	} else {
5817 		total_purged_pgcount = object_page_count - object->resident_page_count;
5818 	}
5819 
5820 	if (object->pager != NULL) {
5821 		assert(VM_CONFIG_COMPRESSOR_IS_PRESENT);
5822 
5823 		if (object->activity_in_progress == 0 &&
5824 		    object->paging_in_progress == 0) {
5825 			/*
5826 			 * Also reap any memory coming from this object
5827 			 * in the VM compressor.
5828 			 *
5829 			 * There are no operations in progress on the VM object
5830 			 * and no operation can start while we're holding the
5831 			 * VM object lock, so it's safe to reap the compressed
5832 			 * pages and update the page counts.
5833 			 */
5834 			pgcount = vm_compressor_pager_get_count(object->pager);
5835 			if (pgcount) {
5836 				pgcount = vm_compressor_pager_reap_pages(object->pager, flags);
5837 				vm_compressor_pager_count(object->pager,
5838 				    -pgcount,
5839 				    FALSE,                       /* shared */
5840 				    object);
5841 				vm_object_owner_compressed_update(object,
5842 				    -pgcount);
5843 			}
5844 			if (!(flags & C_DONT_BLOCK)) {
5845 				assert(vm_compressor_pager_get_count(object->pager)
5846 				    == 0);
5847 			}
5848 		} else {
5849 			/*
5850 			 * There's some kind of paging activity in progress
5851 			 * for this object, which could result in a page
5852 			 * being compressed or decompressed, possibly while
5853 			 * the VM object is not locked, so it could race
5854 			 * with us.
5855 			 *
5856 			 * We can't really synchronize this without possibly
5857 			 * causing a deadlock when the compressor needs to
5858 			 * allocate or free memory while compressing or
5859 			 * decompressing a page from a purgeable object
5860 			 * mapped in the kernel_map...
5861 			 *
5862 			 * So let's not attempt to purge the compressor
5863 			 * pager if there's any kind of operation in
5864 			 * progress on the VM object.
5865 			 */
5866 			skipped_object = TRUE;
5867 		}
5868 	}
5869 
5870 	vm_object_lock_assert_exclusive(object);
5871 
5872 	total_purged_pgcount += pgcount;
5873 
5874 	KDBG_RELEASE(VMDBG_CODE(DBG_VM_PURGEABLE_OBJECT_PURGE_ONE) | DBG_FUNC_NONE,
5875 	    VM_KERNEL_UNSLIDE_OR_PERM(object),                   /* purged object */
5876 	    object_page_count,
5877 	    total_purged_pgcount,
5878 	    skipped_object);
5879 
5880 	return total_purged_pgcount;
5881 }
5882 
5883 
5884 /*
5885  * vm_object_purgeable_control() allows the caller to control and investigate the
5886  * state of a purgeable object.  A purgeable object is created via a call to
5887  * vm_allocate() with VM_FLAGS_PURGABLE specified.  A purgeable object will
5888  * never be coalesced with any other object -- even other purgeable objects --
5889  * and will thus always remain a distinct object.  A purgeable object has
5890  * special semantics when its reference count is exactly 1.  If its reference
5891  * count is greater than 1, then a purgeable object will behave like a normal
5892  * object and attempts to use this interface will result in an error return
5893  * of KERN_INVALID_ARGUMENT.
5894  *
5895  * A purgeable object may be put into a "volatile" state which will make the
5896  * object's pages elligable for being reclaimed without paging to backing
5897  * store if the system runs low on memory.  If the pages in a volatile
5898  * purgeable object are reclaimed, the purgeable object is said to have been
5899  * "emptied."  When a purgeable object is emptied the system will reclaim as
5900  * many pages from the object as it can in a convenient manner (pages already
5901  * en route to backing store or busy for other reasons are left as is).  When
5902  * a purgeable object is made volatile, its pages will generally be reclaimed
5903  * before other pages in the application's working set.  This semantic is
5904  * generally used by applications which can recreate the data in the object
5905  * faster than it can be paged in.  One such example might be media assets
5906  * which can be reread from a much faster RAID volume.
5907  *
5908  * A purgeable object may be designated as "non-volatile" which means it will
5909  * behave like all other objects in the system with pages being written to and
5910  * read from backing store as needed to satisfy system memory needs.  If the
5911  * object was emptied before the object was made non-volatile, that fact will
5912  * be returned as the old state of the purgeable object (see
5913  * VM_PURGABLE_SET_STATE below).  In this case, any pages of the object which
5914  * were reclaimed as part of emptying the object will be refaulted in as
5915  * zero-fill on demand.  It is up to the application to note that an object
5916  * was emptied and recreate the objects contents if necessary.  When a
5917  * purgeable object is made non-volatile, its pages will generally not be paged
5918  * out to backing store in the immediate future.  A purgeable object may also
5919  * be manually emptied.
5920  *
5921  * Finally, the current state (non-volatile, volatile, volatile & empty) of a
5922  * volatile purgeable object may be queried at any time.  This information may
5923  * be used as a control input to let the application know when the system is
5924  * experiencing memory pressure and is reclaiming memory.
5925  *
5926  * The specified address may be any address within the purgeable object.  If
5927  * the specified address does not represent any object in the target task's
5928  * virtual address space, then KERN_INVALID_ADDRESS will be returned.  If the
5929  * object containing the specified address is not a purgeable object, then
5930  * KERN_INVALID_ARGUMENT will be returned.  Otherwise, KERN_SUCCESS will be
5931  * returned.
5932  *
5933  * The control parameter may be any one of VM_PURGABLE_SET_STATE or
5934  * VM_PURGABLE_GET_STATE.  For VM_PURGABLE_SET_STATE, the in/out parameter
5935  * state is used to set the new state of the purgeable object and return its
5936  * old state.  For VM_PURGABLE_GET_STATE, the current state of the purgeable
5937  * object is returned in the parameter state.
5938  *
5939  * The in/out parameter state may be one of VM_PURGABLE_NONVOLATILE,
5940  * VM_PURGABLE_VOLATILE or VM_PURGABLE_EMPTY.  These, respectively, represent
5941  * the non-volatile, volatile and volatile/empty states described above.
5942  * Setting the state of a purgeable object to VM_PURGABLE_EMPTY will
5943  * immediately reclaim as many pages in the object as can be conveniently
5944  * collected (some may have already been written to backing store or be
5945  * otherwise busy).
5946  *
5947  * The process of making a purgeable object non-volatile and determining its
5948  * previous state is atomic.  Thus, if a purgeable object is made
5949  * VM_PURGABLE_NONVOLATILE and the old state is returned as
5950  * VM_PURGABLE_VOLATILE, then the purgeable object's previous contents are
5951  * completely intact and will remain so until the object is made volatile
5952  * again.  If the old state is returned as VM_PURGABLE_EMPTY then the object
5953  * was reclaimed while it was in a volatile state and its previous contents
5954  * have been lost.
5955  */
5956 /*
5957  * The object must be locked.
5958  */
5959 kern_return_t
5960 vm_object_purgable_control(
5961 	vm_object_t     object,
5962 	vm_purgable_t   control,
5963 	int             *state)
5964 {
5965 	int             old_state;
5966 	int             new_state;
5967 
5968 	if (object == VM_OBJECT_NULL) {
5969 		/*
5970 		 * Object must already be present or it can't be purgeable.
5971 		 */
5972 		return KERN_INVALID_ARGUMENT;
5973 	}
5974 
5975 	vm_object_lock_assert_exclusive(object);
5976 
5977 	/*
5978 	 * Get current state of the purgeable object.
5979 	 */
5980 	old_state = object->purgable;
5981 	if (old_state == VM_PURGABLE_DENY) {
5982 		return KERN_INVALID_ARGUMENT;
5983 	}
5984 
5985 	/* purgeable cant have delayed copies - now or in the future */
5986 	assert(object->vo_copy == VM_OBJECT_NULL);
5987 	assert(object->copy_strategy == MEMORY_OBJECT_COPY_NONE);
5988 
5989 	/*
5990 	 * Execute the desired operation.
5991 	 */
5992 	if (control == VM_PURGABLE_GET_STATE) {
5993 		*state = old_state;
5994 		return KERN_SUCCESS;
5995 	}
5996 
5997 	if (control == VM_PURGABLE_SET_STATE &&
5998 	    object->purgeable_only_by_kernel) {
5999 		return KERN_PROTECTION_FAILURE;
6000 	}
6001 
6002 	if (control != VM_PURGABLE_SET_STATE &&
6003 	    control != VM_PURGABLE_SET_STATE_FROM_KERNEL) {
6004 		return KERN_INVALID_ARGUMENT;
6005 	}
6006 
6007 	if ((*state) & VM_PURGABLE_DEBUG_EMPTY) {
6008 		object->volatile_empty = TRUE;
6009 	}
6010 	if ((*state) & VM_PURGABLE_DEBUG_FAULT) {
6011 		object->volatile_fault = TRUE;
6012 	}
6013 
6014 	new_state = *state & VM_PURGABLE_STATE_MASK;
6015 	if (new_state == VM_PURGABLE_VOLATILE) {
6016 		if (old_state == VM_PURGABLE_EMPTY) {
6017 			/* what's been emptied must stay empty */
6018 			new_state = VM_PURGABLE_EMPTY;
6019 		}
6020 		if (object->volatile_empty) {
6021 			/* debugging mode: go straight to empty */
6022 			new_state = VM_PURGABLE_EMPTY;
6023 		}
6024 	}
6025 
6026 	switch (new_state) {
6027 	case VM_PURGABLE_DENY:
6028 		/*
6029 		 * Attempting to convert purgeable memory to non-purgeable:
6030 		 * not allowed.
6031 		 */
6032 		return KERN_INVALID_ARGUMENT;
6033 	case VM_PURGABLE_NONVOLATILE:
6034 		VM_OBJECT_SET_PURGABLE(object, new_state);
6035 
6036 		if (old_state == VM_PURGABLE_VOLATILE) {
6037 			unsigned int delta;
6038 
6039 			assert(object->resident_page_count >=
6040 			    object->wired_page_count);
6041 			delta = (object->resident_page_count -
6042 			    object->wired_page_count);
6043 
6044 			assert(vm_page_purgeable_count >= delta);
6045 
6046 			if (delta != 0) {
6047 				OSAddAtomic(-delta,
6048 				    (SInt32 *)&vm_page_purgeable_count);
6049 			}
6050 			if (object->wired_page_count != 0) {
6051 				assert(vm_page_purgeable_wired_count >=
6052 				    object->wired_page_count);
6053 				OSAddAtomic(-object->wired_page_count,
6054 				    (SInt32 *)&vm_page_purgeable_wired_count);
6055 			}
6056 
6057 			vm_page_lock_queues();
6058 
6059 			/* object should be on a queue */
6060 			assert(object->objq.next != NULL &&
6061 			    object->objq.prev != NULL);
6062 			purgeable_q_t queue;
6063 
6064 			/*
6065 			 * Move object from its volatile queue to the
6066 			 * non-volatile queue...
6067 			 */
6068 			queue = vm_purgeable_object_remove(object);
6069 			assert(queue);
6070 
6071 			if (object->purgeable_when_ripe) {
6072 				vm_purgeable_token_delete_last(queue);
6073 			}
6074 			assert(queue->debug_count_objects >= 0);
6075 
6076 			vm_page_unlock_queues();
6077 		}
6078 		if (old_state == VM_PURGABLE_VOLATILE ||
6079 		    old_state == VM_PURGABLE_EMPTY) {
6080 			/*
6081 			 * Transfer the object's pages from the volatile to
6082 			 * non-volatile ledgers.
6083 			 */
6084 			vm_purgeable_accounting(object, VM_PURGABLE_VOLATILE);
6085 		}
6086 
6087 		break;
6088 
6089 	case VM_PURGABLE_VOLATILE:
6090 		if (object->volatile_fault) {
6091 			vm_page_t       p;
6092 			int             refmod;
6093 
6094 			vm_page_queue_iterate(&object->memq, p, vmp_listq) {
6095 				if (p->vmp_busy ||
6096 				    VM_PAGE_WIRED(p) ||
6097 				    vm_page_is_fictitious(p)) {
6098 					continue;
6099 				}
6100 				refmod = pmap_disconnect(VM_PAGE_GET_PHYS_PAGE(p));
6101 				if ((refmod & VM_MEM_MODIFIED) &&
6102 				    !p->vmp_dirty) {
6103 					SET_PAGE_DIRTY(p, FALSE);
6104 				}
6105 			}
6106 		}
6107 
6108 		assert(old_state != VM_PURGABLE_EMPTY);
6109 
6110 		purgeable_q_t queue;
6111 
6112 		/* find the correct queue */
6113 		if ((*state & VM_PURGABLE_ORDERING_MASK) == VM_PURGABLE_ORDERING_OBSOLETE) {
6114 			queue = &purgeable_queues[PURGEABLE_Q_TYPE_OBSOLETE];
6115 		} else {
6116 			if ((*state & VM_PURGABLE_BEHAVIOR_MASK) == VM_PURGABLE_BEHAVIOR_FIFO) {
6117 				queue = &purgeable_queues[PURGEABLE_Q_TYPE_FIFO];
6118 			} else {
6119 				queue = &purgeable_queues[PURGEABLE_Q_TYPE_LIFO];
6120 			}
6121 		}
6122 
6123 		if (old_state == VM_PURGABLE_NONVOLATILE ||
6124 		    old_state == VM_PURGABLE_EMPTY) {
6125 			unsigned int delta;
6126 
6127 			if ((*state & VM_PURGABLE_NO_AGING_MASK) ==
6128 			    VM_PURGABLE_NO_AGING) {
6129 				VM_OBJECT_SET_PURGEABLE_WHEN_RIPE(object, FALSE);
6130 			} else {
6131 				VM_OBJECT_SET_PURGEABLE_WHEN_RIPE(object, TRUE);
6132 			}
6133 
6134 			if (object->purgeable_when_ripe) {
6135 				kern_return_t result;
6136 
6137 				/* try to add token... this can fail */
6138 				vm_page_lock_queues();
6139 
6140 				result = vm_purgeable_token_add(queue);
6141 				if (result != KERN_SUCCESS) {
6142 					vm_page_unlock_queues();
6143 					return result;
6144 				}
6145 				vm_page_unlock_queues();
6146 			}
6147 
6148 			assert(object->resident_page_count >=
6149 			    object->wired_page_count);
6150 			delta = (object->resident_page_count -
6151 			    object->wired_page_count);
6152 
6153 			if (delta != 0) {
6154 				OSAddAtomic(delta,
6155 				    &vm_page_purgeable_count);
6156 			}
6157 			if (object->wired_page_count != 0) {
6158 				OSAddAtomic(object->wired_page_count,
6159 				    &vm_page_purgeable_wired_count);
6160 			}
6161 
6162 			VM_OBJECT_SET_PURGABLE(object, new_state);
6163 
6164 			/* object should be on "non-volatile" queue */
6165 			assert(object->objq.next != NULL);
6166 			assert(object->objq.prev != NULL);
6167 		} else if (old_state == VM_PURGABLE_VOLATILE) {
6168 			purgeable_q_t   old_queue;
6169 			boolean_t       purgeable_when_ripe;
6170 
6171 			/*
6172 			 * if reassigning priorities / purgeable groups, we don't change the
6173 			 * token queue. So moving priorities will not make pages stay around longer.
6174 			 * Reasoning is that the algorithm gives most priority to the most important
6175 			 * object. If a new token is added, the most important object' priority is boosted.
6176 			 * This biases the system already for purgeable queues that move a lot.
6177 			 * It doesn't seem more biasing is neccessary in this case, where no new object is added.
6178 			 */
6179 			assert(object->objq.next != NULL && object->objq.prev != NULL); /* object should be on a queue */
6180 
6181 			old_queue = vm_purgeable_object_remove(object);
6182 			assert(old_queue);
6183 
6184 			if ((*state & VM_PURGABLE_NO_AGING_MASK) ==
6185 			    VM_PURGABLE_NO_AGING) {
6186 				purgeable_when_ripe = FALSE;
6187 			} else {
6188 				purgeable_when_ripe = TRUE;
6189 			}
6190 
6191 			if (old_queue != queue ||
6192 			    (purgeable_when_ripe !=
6193 			    object->purgeable_when_ripe)) {
6194 				kern_return_t result;
6195 
6196 				/* Changing queue. Have to move token. */
6197 				vm_page_lock_queues();
6198 				if (object->purgeable_when_ripe) {
6199 					vm_purgeable_token_delete_last(old_queue);
6200 				}
6201 				VM_OBJECT_SET_PURGEABLE_WHEN_RIPE(object, purgeable_when_ripe);
6202 				if (object->purgeable_when_ripe) {
6203 					result = vm_purgeable_token_add(queue);
6204 					assert(result == KERN_SUCCESS);   /* this should never fail since we just freed a token */
6205 				}
6206 				vm_page_unlock_queues();
6207 			}
6208 		}
6209 		;
6210 		vm_purgeable_object_add(object, queue, (*state & VM_VOLATILE_GROUP_MASK) >> VM_VOLATILE_GROUP_SHIFT );
6211 		if (old_state == VM_PURGABLE_NONVOLATILE) {
6212 			vm_purgeable_accounting(object,
6213 			    VM_PURGABLE_NONVOLATILE);
6214 		}
6215 
6216 		assert(queue->debug_count_objects >= 0);
6217 
6218 		break;
6219 
6220 
6221 	case VM_PURGABLE_EMPTY:
6222 		if (object->volatile_fault) {
6223 			vm_page_t       p;
6224 			int             refmod;
6225 
6226 			vm_page_queue_iterate(&object->memq, p, vmp_listq) {
6227 				if (p->vmp_busy ||
6228 				    VM_PAGE_WIRED(p) ||
6229 				    vm_page_is_fictitious(p)) {
6230 					continue;
6231 				}
6232 				refmod = pmap_disconnect(VM_PAGE_GET_PHYS_PAGE(p));
6233 				if ((refmod & VM_MEM_MODIFIED) &&
6234 				    !p->vmp_dirty) {
6235 					SET_PAGE_DIRTY(p, FALSE);
6236 				}
6237 			}
6238 		}
6239 
6240 		if (old_state == VM_PURGABLE_VOLATILE) {
6241 			purgeable_q_t old_queue;
6242 
6243 			/* object should be on a queue */
6244 			assert(object->objq.next != NULL &&
6245 			    object->objq.prev != NULL);
6246 
6247 			old_queue = vm_purgeable_object_remove(object);
6248 			assert(old_queue);
6249 			if (object->purgeable_when_ripe) {
6250 				vm_page_lock_queues();
6251 				vm_purgeable_token_delete_first(old_queue);
6252 				vm_page_unlock_queues();
6253 			}
6254 		}
6255 
6256 		if (old_state == VM_PURGABLE_NONVOLATILE) {
6257 			/*
6258 			 * This object's pages were previously accounted as
6259 			 * "non-volatile" and now need to be accounted as
6260 			 * "volatile".
6261 			 */
6262 			vm_purgeable_accounting(object,
6263 			    VM_PURGABLE_NONVOLATILE);
6264 			/*
6265 			 * Set to VM_PURGABLE_EMPTY because the pages are no
6266 			 * longer accounted in the "non-volatile" ledger
6267 			 * and are also not accounted for in
6268 			 * "vm_page_purgeable_count".
6269 			 */
6270 			VM_OBJECT_SET_PURGABLE(object, VM_PURGABLE_EMPTY);
6271 		}
6272 
6273 		(void) vm_object_purge(object, 0);
6274 		assert(object->purgable == VM_PURGABLE_EMPTY);
6275 
6276 		break;
6277 	}
6278 
6279 	*state = old_state;
6280 
6281 	vm_object_lock_assert_exclusive(object);
6282 
6283 	return KERN_SUCCESS;
6284 }
6285 
6286 kern_return_t
6287 vm_object_get_page_counts(
6288 	vm_object_t             object,
6289 	vm_object_offset_t      offset,
6290 	vm_object_size_t        size,
6291 	uint64_t               *resident_page_count,
6292 	uint64_t               *dirty_page_count,
6293 	uint64_t               *swapped_page_count)
6294 {
6295 	vm_page_t               p = VM_PAGE_NULL;
6296 	unsigned int            local_resident_count = 0;
6297 	unsigned int            local_dirty_count = 0;
6298 	unsigned int            local_swapped_count = 0;
6299 	vm_object_offset_t      cur_offset = 0;
6300 	vm_object_offset_t      end_offset = 0;
6301 
6302 	if (object == VM_OBJECT_NULL) {
6303 		return KERN_INVALID_ARGUMENT;
6304 	}
6305 
6306 	cur_offset = offset;
6307 	end_offset = offset + size;
6308 
6309 	vm_object_lock_assert_exclusive(object);
6310 
6311 	if (resident_page_count != NULL &&
6312 	    dirty_page_count == NULL &&
6313 	    offset == 0 &&
6314 	    object->vo_size == size) {
6315 		/*
6316 		 * Fast path when:
6317 		 * - we only want the resident page count, and,
6318 		 * - the entire object is exactly covered by the request.
6319 		 */
6320 		local_resident_count = object->resident_page_count;
6321 		if (object->internal && object->pager != NULL) {
6322 			local_swapped_count = vm_compressor_pager_get_count(object->pager);
6323 		}
6324 		goto out;
6325 	}
6326 
6327 	if (object->resident_page_count <= (size >> PAGE_SHIFT) &&
6328 	    swapped_page_count == NULL) {
6329 		/*
6330 		 * Faster path when we don't care about non-resident pages and the object has
6331 		 * fewer resident pages than the requested range.
6332 		 */
6333 		vm_page_queue_iterate(&object->memq, p, vmp_listq) {
6334 			if (p->vmp_offset >= cur_offset && p->vmp_offset < end_offset) {
6335 				local_resident_count++;
6336 				if (p->vmp_dirty ||
6337 				    (p->vmp_wpmapped && pmap_is_modified(VM_PAGE_GET_PHYS_PAGE(p)))) {
6338 					local_dirty_count++;
6339 				}
6340 			}
6341 		}
6342 		goto out;
6343 	}
6344 
6345 	for (cur_offset = offset; cur_offset < end_offset; cur_offset += PAGE_SIZE_64) {
6346 		p = vm_page_lookup(object, cur_offset);
6347 
6348 		if (p != VM_PAGE_NULL) {
6349 			local_resident_count++;
6350 			if (p->vmp_dirty ||
6351 			    (p->vmp_wpmapped && pmap_is_modified(VM_PAGE_GET_PHYS_PAGE(p)))) {
6352 				local_dirty_count++;
6353 			}
6354 		} else if (page_is_paged_out(object, cur_offset)) {
6355 			local_swapped_count++;
6356 		}
6357 	}
6358 
6359 out:
6360 	if (resident_page_count != NULL) {
6361 		*resident_page_count = local_resident_count;
6362 	}
6363 
6364 	if (dirty_page_count != NULL) {
6365 		*dirty_page_count = local_dirty_count;
6366 	}
6367 
6368 	if (swapped_page_count != NULL) {
6369 		*swapped_page_count = local_swapped_count;
6370 	}
6371 
6372 	return KERN_SUCCESS;
6373 }
6374 
6375 
6376 /*
6377  *	vm_object_reference:
6378  *
6379  *	Gets another reference to the given object.
6380  */
6381 #ifdef vm_object_reference
6382 #undef vm_object_reference
6383 #endif
6384 __private_extern__ void
6385 vm_object_reference(
6386 	vm_object_t     object)
6387 {
6388 	if (object == VM_OBJECT_NULL) {
6389 		return;
6390 	}
6391 
6392 	vm_object_lock(object);
6393 	vm_object_reference_locked(object);
6394 	vm_object_unlock(object);
6395 }
6396 
6397 /*
6398  * vm_object_transpose
6399  *
6400  * This routine takes two VM objects of the same size and exchanges
6401  * their backing store.
6402  * The objects should be "quiesced" via a UPL operation with UPL_SET_IO_WIRE
6403  * and UPL_BLOCK_ACCESS if they are referenced anywhere.
6404  *
6405  * The VM objects must not be locked by caller.
6406  */
6407 unsigned int vm_object_transpose_count = 0;
6408 kern_return_t
6409 vm_object_transpose(
6410 	vm_object_t             object1,
6411 	vm_object_t             object2,
6412 	vm_object_size_t        transpose_size)
6413 {
6414 	vm_object_t             tmp_object;
6415 	kern_return_t           retval;
6416 	boolean_t               object1_locked, object2_locked;
6417 	vm_page_t               page;
6418 	vm_object_offset_t      page_offset;
6419 
6420 	tmp_object = VM_OBJECT_NULL;
6421 	object1_locked = FALSE; object2_locked = FALSE;
6422 
6423 	if (object1 == object2 ||
6424 	    object1 == VM_OBJECT_NULL ||
6425 	    object2 == VM_OBJECT_NULL) {
6426 		/*
6427 		 * If the 2 VM objects are the same, there's
6428 		 * no point in exchanging their backing store.
6429 		 */
6430 		retval = KERN_INVALID_VALUE;
6431 		goto done;
6432 	}
6433 
6434 	/*
6435 	 * Since we need to lock both objects at the same time,
6436 	 * make sure we always lock them in the same order to
6437 	 * avoid deadlocks.
6438 	 */
6439 	if (object1 > object2) {
6440 		tmp_object = object1;
6441 		object1 = object2;
6442 		object2 = tmp_object;
6443 	}
6444 
6445 	/*
6446 	 * Allocate a temporary VM object to hold object1's contents
6447 	 * while we copy object2 to object1.
6448 	 */
6449 	tmp_object = vm_object_allocate(transpose_size, object1->vmo_provenance);
6450 	vm_object_lock(tmp_object);
6451 	VM_OBJECT_SET_CAN_PERSIST(tmp_object, FALSE);
6452 
6453 
6454 	/*
6455 	 * Grab control of the 1st VM object.
6456 	 */
6457 	vm_object_lock(object1);
6458 	object1_locked = TRUE;
6459 	if (!object1->alive || object1->terminating ||
6460 	    object1->vo_copy || object1->shadow || object1->shadowed ||
6461 	    object1->purgable != VM_PURGABLE_DENY) {
6462 		/*
6463 		 * We don't deal with copy or shadow objects (yet).
6464 		 */
6465 		retval = KERN_INVALID_VALUE;
6466 		goto done;
6467 	}
6468 	/*
6469 	 * We're about to mess with the object's backing store and
6470 	 * taking a "paging_in_progress" reference wouldn't be enough
6471 	 * to prevent any paging activity on this object, so the caller should
6472 	 * have "quiesced" the objects beforehand, via a UPL operation with
6473 	 * UPL_SET_IO_WIRE (to make sure all the pages are there and wired)
6474 	 * and UPL_BLOCK_ACCESS (to mark the pages "busy").
6475 	 *
6476 	 * Wait for any paging operation to complete (but only paging, not
6477 	 * other kind of activities not linked to the pager).  After we're
6478 	 * statisfied that there's no more paging in progress, we keep the
6479 	 * object locked, to guarantee that no one tries to access its pager.
6480 	 */
6481 	vm_object_paging_only_wait(object1, THREAD_UNINT);
6482 
6483 	/*
6484 	 * Same as above for the 2nd object...
6485 	 */
6486 	vm_object_lock(object2);
6487 	object2_locked = TRUE;
6488 	if (!object2->alive || object2->terminating ||
6489 	    object2->vo_copy || object2->shadow || object2->shadowed ||
6490 	    object2->purgable != VM_PURGABLE_DENY) {
6491 		retval = KERN_INVALID_VALUE;
6492 		goto done;
6493 	}
6494 	vm_object_paging_only_wait(object2, THREAD_UNINT);
6495 
6496 
6497 	if (object1->vo_size != object2->vo_size ||
6498 	    object1->vo_size != transpose_size) {
6499 		/*
6500 		 * If the 2 objects don't have the same size, we can't
6501 		 * exchange their backing stores or one would overflow.
6502 		 * If their size doesn't match the caller's
6503 		 * "transpose_size", we can't do it either because the
6504 		 * transpose operation will affect the entire span of
6505 		 * the objects.
6506 		 */
6507 		retval = KERN_INVALID_VALUE;
6508 		goto done;
6509 	}
6510 
6511 
6512 	/*
6513 	 * Transpose the lists of resident pages.
6514 	 * This also updates the resident_page_count and the memq_hint.
6515 	 */
6516 	if (object1->phys_contiguous || vm_page_queue_empty(&object1->memq)) {
6517 		/*
6518 		 * No pages in object1, just transfer pages
6519 		 * from object2 to object1.  No need to go through
6520 		 * an intermediate object.
6521 		 */
6522 		while (!vm_page_queue_empty(&object2->memq)) {
6523 			page = (vm_page_t) vm_page_queue_first(&object2->memq);
6524 			vm_page_rename(page, object1, page->vmp_offset);
6525 		}
6526 		assert(vm_page_queue_empty(&object2->memq));
6527 	} else if (object2->phys_contiguous || vm_page_queue_empty(&object2->memq)) {
6528 		/*
6529 		 * No pages in object2, just transfer pages
6530 		 * from object1 to object2.  No need to go through
6531 		 * an intermediate object.
6532 		 */
6533 		while (!vm_page_queue_empty(&object1->memq)) {
6534 			page = (vm_page_t) vm_page_queue_first(&object1->memq);
6535 			vm_page_rename(page, object2, page->vmp_offset);
6536 		}
6537 		assert(vm_page_queue_empty(&object1->memq));
6538 	} else {
6539 		/* transfer object1's pages to tmp_object */
6540 		while (!vm_page_queue_empty(&object1->memq)) {
6541 			page = (vm_page_t) vm_page_queue_first(&object1->memq);
6542 			page_offset = page->vmp_offset;
6543 			vm_page_remove(page, TRUE);
6544 			page->vmp_offset = page_offset;
6545 			vm_page_queue_enter(&tmp_object->memq, page, vmp_listq);
6546 		}
6547 		assert(vm_page_queue_empty(&object1->memq));
6548 		/* transfer object2's pages to object1 */
6549 		while (!vm_page_queue_empty(&object2->memq)) {
6550 			page = (vm_page_t) vm_page_queue_first(&object2->memq);
6551 			vm_page_rename(page, object1, page->vmp_offset);
6552 		}
6553 		assert(vm_page_queue_empty(&object2->memq));
6554 		/* transfer tmp_object's pages to object2 */
6555 		while (!vm_page_queue_empty(&tmp_object->memq)) {
6556 			page = (vm_page_t) vm_page_queue_first(&tmp_object->memq);
6557 			vm_page_queue_remove(&tmp_object->memq, page, vmp_listq);
6558 			vm_page_insert(page, object2, page->vmp_offset);
6559 		}
6560 		assert(vm_page_queue_empty(&tmp_object->memq));
6561 	}
6562 
6563 #define __TRANSPOSE_FIELD(field)                                \
6564 MACRO_BEGIN                                                     \
6565 	tmp_object->field = object1->field;                     \
6566 	object1->field = object2->field;                        \
6567 	object2->field = tmp_object->field;                     \
6568 MACRO_END
6569 
6570 	/* "Lock" refers to the object not its contents */
6571 	/* "size" should be identical */
6572 	assert(object1->vo_size == object2->vo_size);
6573 	/* "memq_hint" was updated above when transposing pages */
6574 	/* "ref_count" refers to the object not its contents */
6575 	assert(os_ref_get_count_raw(&object1->ref_count) >= 1);
6576 	assert(os_ref_get_count_raw(&object2->ref_count) >= 1);
6577 	/* "resident_page_count" was updated above when transposing pages */
6578 	/* "wired_page_count" was updated above when transposing pages */
6579 #if !VM_TAG_ACTIVE_UPDATE
6580 	/* "wired_objq" was dealt with along with "wired_page_count" */
6581 #endif /* ! VM_TAG_ACTIVE_UPDATE */
6582 	/* "reusable_page_count" was updated above when transposing pages */
6583 	/* there should be no "copy" */
6584 	assert(!object1->vo_copy);
6585 	assert(!object2->vo_copy);
6586 	/* there should be no "shadow" */
6587 	assert(!object1->shadow);
6588 	assert(!object2->shadow);
6589 	__TRANSPOSE_FIELD(vo_shadow_offset); /* used by phys_contiguous objects */
6590 	__TRANSPOSE_FIELD(pager);
6591 	__TRANSPOSE_FIELD(paging_offset);
6592 	__TRANSPOSE_FIELD(pager_control);
6593 	/* update the memory_objects' pointers back to the VM objects */
6594 	if (object1->pager_control != MEMORY_OBJECT_CONTROL_NULL) {
6595 		memory_object_control_collapse(&object1->pager_control,
6596 		    object1);
6597 	}
6598 	if (object2->pager_control != MEMORY_OBJECT_CONTROL_NULL) {
6599 		memory_object_control_collapse(&object2->pager_control,
6600 		    object2);
6601 	}
6602 	__TRANSPOSE_FIELD(copy_strategy);
6603 	/* "paging_in_progress" refers to the object not its contents */
6604 	assert(!object1->paging_in_progress);
6605 	assert(!object2->paging_in_progress);
6606 	assert(object1->activity_in_progress);
6607 	assert(object2->activity_in_progress);
6608 	/* "all_wanted" refers to the object not its contents */
6609 	__TRANSPOSE_FIELD(pager_created);
6610 	__TRANSPOSE_FIELD(pager_initialized);
6611 	__TRANSPOSE_FIELD(pager_ready);
6612 	__TRANSPOSE_FIELD(pager_trusted);
6613 	__TRANSPOSE_FIELD(can_persist);
6614 	__TRANSPOSE_FIELD(internal);
6615 	__TRANSPOSE_FIELD(private);
6616 	__TRANSPOSE_FIELD(pageout);
6617 	/* "alive" should be set */
6618 	assert(object1->alive);
6619 	assert(object2->alive);
6620 	/* "purgeable" should be non-purgeable */
6621 	assert(object1->purgable == VM_PURGABLE_DENY);
6622 	assert(object2->purgable == VM_PURGABLE_DENY);
6623 	/* "shadowed" refers to the the object not its contents */
6624 	__TRANSPOSE_FIELD(purgeable_when_ripe);
6625 	__TRANSPOSE_FIELD(true_share);
6626 	/* "terminating" should not be set */
6627 	assert(!object1->terminating);
6628 	assert(!object2->terminating);
6629 	/* transfer "named" reference if needed */
6630 	if (object1->named && !object2->named) {
6631 		os_ref_release_live_locked_raw(&object1->ref_count, &vm_object_refgrp);
6632 		os_ref_retain_locked_raw(&object2->ref_count, &vm_object_refgrp);
6633 	} else if (!object1->named && object2->named) {
6634 		os_ref_retain_locked_raw(&object1->ref_count, &vm_object_refgrp);
6635 		os_ref_release_live_locked_raw(&object2->ref_count, &vm_object_refgrp);
6636 	}
6637 	__TRANSPOSE_FIELD(named);
6638 	/* "shadow_severed" refers to the object not its contents */
6639 	__TRANSPOSE_FIELD(phys_contiguous);
6640 	__TRANSPOSE_FIELD(nophyscache);
6641 	__TRANSPOSE_FIELD(no_pager_reason);
6642 	/* "cached_list.next" points to transposed object */
6643 	object1->cached_list.next = (queue_entry_t) object2;
6644 	object2->cached_list.next = (queue_entry_t) object1;
6645 	/* "cached_list.prev" should be NULL */
6646 	assert(object1->cached_list.prev == NULL);
6647 	assert(object2->cached_list.prev == NULL);
6648 	__TRANSPOSE_FIELD(last_alloc);
6649 	__TRANSPOSE_FIELD(sequential);
6650 	__TRANSPOSE_FIELD(pages_created);
6651 	__TRANSPOSE_FIELD(pages_used);
6652 	__TRANSPOSE_FIELD(scan_collisions);
6653 	__TRANSPOSE_FIELD(cow_hint);
6654 	__TRANSPOSE_FIELD(wimg_bits);
6655 	__TRANSPOSE_FIELD(set_cache_attr);
6656 	__TRANSPOSE_FIELD(code_signed);
6657 	object1->transposed = TRUE;
6658 	object2->transposed = TRUE;
6659 	__TRANSPOSE_FIELD(mapping_in_progress);
6660 	__TRANSPOSE_FIELD(volatile_empty);
6661 	__TRANSPOSE_FIELD(volatile_fault);
6662 	__TRANSPOSE_FIELD(all_reusable);
6663 	assert(object1->blocked_access);
6664 	assert(object2->blocked_access);
6665 	__TRANSPOSE_FIELD(set_cache_attr);
6666 	assert(!object1->object_is_shared_cache);
6667 	assert(!object2->object_is_shared_cache);
6668 	/* ignore purgeable_queue_type and purgeable_queue_group */
6669 	assert(!object1->io_tracking);
6670 	assert(!object2->io_tracking);
6671 #if VM_OBJECT_ACCESS_TRACKING
6672 	assert(!object1->access_tracking);
6673 	assert(!object2->access_tracking);
6674 #endif /* VM_OBJECT_ACCESS_TRACKING */
6675 	__TRANSPOSE_FIELD(no_tag_update);
6676 #if CONFIG_SECLUDED_MEMORY
6677 	assert(!object1->eligible_for_secluded);
6678 	assert(!object2->eligible_for_secluded);
6679 	assert(!object1->can_grab_secluded);
6680 	assert(!object2->can_grab_secluded);
6681 #else /* CONFIG_SECLUDED_MEMORY */
6682 	assert(object1->__object3_unused_bits == 0);
6683 	assert(object2->__object3_unused_bits == 0);
6684 #endif /* CONFIG_SECLUDED_MEMORY */
6685 #if UPL_DEBUG
6686 	/* "uplq" refers to the object not its contents (see upl_transpose()) */
6687 #endif
6688 	assert((object1->purgable == VM_PURGABLE_DENY) || (object1->objq.next == NULL));
6689 	assert((object1->purgable == VM_PURGABLE_DENY) || (object1->objq.prev == NULL));
6690 	assert((object2->purgable == VM_PURGABLE_DENY) || (object2->objq.next == NULL));
6691 	assert((object2->purgable == VM_PURGABLE_DENY) || (object2->objq.prev == NULL));
6692 	__TRANSPOSE_FIELD(vmo_provenance);
6693 
6694 #undef __TRANSPOSE_FIELD
6695 
6696 	retval = KERN_SUCCESS;
6697 
6698 done:
6699 	/*
6700 	 * Cleanup.
6701 	 */
6702 	if (tmp_object != VM_OBJECT_NULL) {
6703 		vm_object_unlock(tmp_object);
6704 		/*
6705 		 * Re-initialize the temporary object to avoid
6706 		 * deallocating a real pager.
6707 		 */
6708 		_vm_object_allocate(
6709 			transpose_size,
6710 			tmp_object,
6711 			/*
6712 			 * Since we're reallocating purely to deallocate,
6713 			 * don't bother trying to set a sensible provenance.
6714 			 */
6715 			VM_MAP_SERIAL_NONE
6716 			);
6717 		vm_object_deallocate(tmp_object);
6718 		tmp_object = VM_OBJECT_NULL;
6719 	}
6720 
6721 	if (object1_locked) {
6722 		vm_object_unlock(object1);
6723 		object1_locked = FALSE;
6724 	}
6725 	if (object2_locked) {
6726 		vm_object_unlock(object2);
6727 		object2_locked = FALSE;
6728 	}
6729 
6730 	vm_object_transpose_count++;
6731 
6732 	return retval;
6733 }
6734 
6735 
6736 /*
6737  *      vm_object_cluster_size
6738  *
6739  *      Determine how big a cluster we should issue an I/O for...
6740  *
6741  *	Inputs:   *start == offset of page needed
6742  *		  *length == maximum cluster pager can handle
6743  *	Outputs:  *start == beginning offset of cluster
6744  *		  *length == length of cluster to try
6745  *
6746  *	The original *start will be encompassed by the cluster
6747  *
6748  */
6749 extern int speculative_reads_disabled;
6750 
6751 /*
6752  * Try to always keep these values an even multiple of PAGE_SIZE. We use these values
6753  * to derive min_ph_bytes and max_ph_bytes (IMP: bytes not # of pages) and expect those values to
6754  * always be page-aligned. The derivation could involve operations (e.g. division)
6755  * that could give us non-page-size aligned values if we start out with values that
6756  * are odd multiples of PAGE_SIZE.
6757  */
6758 #if !XNU_TARGET_OS_OSX
6759 unsigned int preheat_max_bytes = (1024 * 512);
6760 #else /* !XNU_TARGET_OS_OSX */
6761 unsigned int preheat_max_bytes = MAX_UPL_TRANSFER_BYTES;
6762 #endif /* !XNU_TARGET_OS_OSX */
6763 unsigned int preheat_min_bytes = (1024 * 32);
6764 
6765 
6766 __private_extern__ void
6767 vm_object_cluster_size(vm_object_t object, vm_object_offset_t *start,
6768     vm_size_t *length, vm_object_fault_info_t fault_info, uint32_t *io_streaming)
6769 {
6770 	vm_size_t               pre_heat_size;
6771 	vm_size_t               tail_size;
6772 	vm_size_t               head_size;
6773 	vm_size_t               max_length;
6774 	vm_size_t               cluster_size;
6775 	vm_object_offset_t      object_size;
6776 	vm_object_offset_t      orig_start;
6777 	vm_object_offset_t      target_start;
6778 	vm_object_offset_t      offset;
6779 	vm_behavior_t           behavior;
6780 	boolean_t               look_behind = TRUE;
6781 	boolean_t               look_ahead  = TRUE;
6782 	boolean_t               isSSD = FALSE;
6783 	uint32_t                throttle_limit;
6784 	int                     sequential_run;
6785 	int                     sequential_behavior = VM_BEHAVIOR_SEQUENTIAL;
6786 	vm_size_t               max_ph_size;
6787 	vm_size_t               min_ph_size;
6788 
6789 	assert( !(*length & PAGE_MASK));
6790 	assert( !(*start & PAGE_MASK_64));
6791 
6792 	/*
6793 	 * remember maxiumum length of run requested
6794 	 */
6795 	max_length = *length;
6796 	/*
6797 	 * we'll always return a cluster size of at least
6798 	 * 1 page, since the original fault must always
6799 	 * be processed
6800 	 */
6801 	*length = PAGE_SIZE;
6802 	*io_streaming = 0;
6803 
6804 	if (speculative_reads_disabled || fault_info == NULL) {
6805 		/*
6806 		 * no cluster... just fault the page in
6807 		 */
6808 		return;
6809 	}
6810 	orig_start = *start;
6811 	target_start = orig_start;
6812 	cluster_size = round_page(fault_info->cluster_size);
6813 	behavior = fault_info->behavior;
6814 
6815 	vm_object_lock(object);
6816 
6817 	if (object->pager == MEMORY_OBJECT_NULL) {
6818 		goto out;       /* pager is gone for this object, nothing more to do */
6819 	}
6820 	vnode_pager_get_isSSD(object->pager, &isSSD);
6821 
6822 	min_ph_size = round_page(preheat_min_bytes);
6823 	max_ph_size = round_page(preheat_max_bytes);
6824 
6825 #if XNU_TARGET_OS_OSX
6826 	/*
6827 	 * If we're paging from an SSD, we cut the minimum cluster size in half
6828 	 * and reduce the maximum size by a factor of 8. We do this because the
6829 	 * latency to issue an I/O is a couple of orders of magnitude smaller than
6830 	 * on spinning media, so being overly aggressive on the cluster size (to
6831 	 * try and reduce cumulative seek penalties) isn't a good trade off over
6832 	 * the increased memory pressure caused by the larger speculative I/Os.
6833 	 * However, the latency isn't 0, so a small amount of clustering is still
6834 	 * a win.
6835 	 *
6836 	 * If an explicit cluster size has already been provided, then we're
6837 	 * receiving a strong hint that the entire range will be needed (e.g.
6838 	 * wiring, willneed). In these cases, we want to maximize the I/O size
6839 	 * to minimize the number of I/Os issued.
6840 	 */
6841 	if (isSSD && cluster_size <= PAGE_SIZE) {
6842 		min_ph_size /= 2;
6843 		max_ph_size /= 8;
6844 
6845 		if (min_ph_size & PAGE_MASK_64) {
6846 			min_ph_size = trunc_page(min_ph_size);
6847 		}
6848 
6849 		if (max_ph_size & PAGE_MASK_64) {
6850 			max_ph_size = trunc_page(max_ph_size);
6851 		}
6852 	}
6853 #endif /* XNU_TARGET_OS_OSX */
6854 
6855 	if (min_ph_size < PAGE_SIZE) {
6856 		min_ph_size = PAGE_SIZE;
6857 	}
6858 
6859 	if (max_ph_size < PAGE_SIZE) {
6860 		max_ph_size = PAGE_SIZE;
6861 	} else if (max_ph_size > MAX_UPL_TRANSFER_BYTES) {
6862 		max_ph_size = MAX_UPL_TRANSFER_BYTES;
6863 	}
6864 
6865 	if (max_length > max_ph_size) {
6866 		max_length = max_ph_size;
6867 	}
6868 
6869 	if (max_length <= PAGE_SIZE) {
6870 		goto out;
6871 	}
6872 
6873 	if (object->internal) {
6874 		object_size = object->vo_size;
6875 	} else {
6876 		vnode_pager_get_object_size(object->pager, &object_size);
6877 	}
6878 
6879 	object_size = round_page_64(object_size);
6880 
6881 	if (orig_start >= object_size) {
6882 		/*
6883 		 * fault occurred beyond the EOF...
6884 		 * we need to punt w/o changing the
6885 		 * starting offset
6886 		 */
6887 		goto out;
6888 	}
6889 	if (object->pages_used > object->pages_created) {
6890 		/*
6891 		 * must have wrapped our 32 bit counters
6892 		 * so reset
6893 		 */
6894 		object->pages_used = object->pages_created = 0;
6895 	}
6896 	if ((sequential_run = object->sequential)) {
6897 		if (sequential_run < 0) {
6898 			sequential_behavior = VM_BEHAVIOR_RSEQNTL;
6899 			sequential_run = 0 - sequential_run;
6900 		} else {
6901 			sequential_behavior = VM_BEHAVIOR_SEQUENTIAL;
6902 		}
6903 	}
6904 	switch (behavior) {
6905 	default:
6906 		behavior = VM_BEHAVIOR_DEFAULT;
6907 		OS_FALLTHROUGH;
6908 
6909 	case VM_BEHAVIOR_DEFAULT:
6910 		if (object->internal && fault_info->user_tag == VM_MEMORY_STACK) {
6911 			goto out;
6912 		}
6913 
6914 		if (sequential_run >= (3 * PAGE_SIZE)) {
6915 			pre_heat_size = sequential_run + PAGE_SIZE;
6916 
6917 			if (sequential_behavior == VM_BEHAVIOR_SEQUENTIAL) {
6918 				look_behind = FALSE;
6919 			} else {
6920 				look_ahead = FALSE;
6921 			}
6922 
6923 			*io_streaming = 1;
6924 		} else {
6925 			if (object->pages_created < (20 * (min_ph_size >> PAGE_SHIFT))) {
6926 				/*
6927 				 * prime the pump
6928 				 */
6929 				pre_heat_size = min_ph_size;
6930 			} else {
6931 				/*
6932 				 * Linear growth in PH size: The maximum size is max_length...
6933 				 * this cacluation will result in a size that is neither a
6934 				 * power of 2 nor a multiple of PAGE_SIZE... so round
6935 				 * it up to the nearest PAGE_SIZE boundary
6936 				 */
6937 				pre_heat_size = (max_length * (uint64_t)object->pages_used) / object->pages_created;
6938 
6939 				if (pre_heat_size < min_ph_size) {
6940 					pre_heat_size = min_ph_size;
6941 				} else {
6942 					pre_heat_size = round_page(pre_heat_size);
6943 				}
6944 			}
6945 		}
6946 		break;
6947 
6948 	case VM_BEHAVIOR_RANDOM:
6949 		if ((pre_heat_size = cluster_size) <= PAGE_SIZE) {
6950 			goto out;
6951 		}
6952 		break;
6953 
6954 	case VM_BEHAVIOR_SEQUENTIAL:
6955 		if ((pre_heat_size = cluster_size) == 0) {
6956 			pre_heat_size = sequential_run + PAGE_SIZE;
6957 		}
6958 		look_behind = FALSE;
6959 		*io_streaming = 1;
6960 
6961 		break;
6962 
6963 	case VM_BEHAVIOR_RSEQNTL:
6964 		if ((pre_heat_size = cluster_size) == 0) {
6965 			pre_heat_size = sequential_run + PAGE_SIZE;
6966 		}
6967 		look_ahead = FALSE;
6968 		*io_streaming = 1;
6969 
6970 		break;
6971 	}
6972 	throttle_limit = (uint32_t) max_length;
6973 	assert(throttle_limit == max_length);
6974 
6975 	if (vnode_pager_get_throttle_io_limit(object->pager, &throttle_limit) == KERN_SUCCESS) {
6976 		if (max_length > throttle_limit) {
6977 			max_length = throttle_limit;
6978 		}
6979 	}
6980 	if (pre_heat_size > max_length) {
6981 		pre_heat_size = max_length;
6982 	}
6983 
6984 	if (behavior == VM_BEHAVIOR_DEFAULT && (pre_heat_size > min_ph_size)) {
6985 		unsigned int consider_free = vm_page_free_count + vm_page_cleaned_count;
6986 
6987 		if (consider_free < vm_page_throttle_limit) {
6988 			pre_heat_size = trunc_page(pre_heat_size / 16);
6989 		} else if (consider_free < vm_page_free_target) {
6990 			pre_heat_size = trunc_page(pre_heat_size / 4);
6991 		}
6992 
6993 		if (pre_heat_size < min_ph_size) {
6994 			pre_heat_size = min_ph_size;
6995 		}
6996 	}
6997 	if (look_ahead == TRUE) {
6998 		if (look_behind == TRUE) {
6999 			/*
7000 			 * if we get here its due to a random access...
7001 			 * so we want to center the original fault address
7002 			 * within the cluster we will issue... make sure
7003 			 * to calculate 'head_size' as a multiple of PAGE_SIZE...
7004 			 * 'pre_heat_size' is a multiple of PAGE_SIZE but not
7005 			 * necessarily an even number of pages so we need to truncate
7006 			 * the result to a PAGE_SIZE boundary
7007 			 */
7008 			head_size = trunc_page(pre_heat_size / 2);
7009 
7010 			if (target_start > head_size) {
7011 				target_start -= head_size;
7012 			} else {
7013 				target_start = 0;
7014 			}
7015 
7016 			/*
7017 			 * 'target_start' at this point represents the beginning offset
7018 			 * of the cluster we are considering... 'orig_start' will be in
7019 			 * the center of this cluster if we didn't have to clip the start
7020 			 * due to running into the start of the file
7021 			 */
7022 		}
7023 		if ((target_start + pre_heat_size) > object_size) {
7024 			pre_heat_size = (vm_size_t)(round_page_64(object_size - target_start));
7025 		}
7026 		/*
7027 		 * at this point caclulate the number of pages beyond the original fault
7028 		 * address that we want to consider... this is guaranteed not to extend beyond
7029 		 * the current EOF...
7030 		 */
7031 		assert((vm_size_t)(orig_start - target_start) == (orig_start - target_start));
7032 		tail_size = pre_heat_size - (vm_size_t)(orig_start - target_start) - PAGE_SIZE;
7033 	} else {
7034 		if (pre_heat_size > target_start) {
7035 			/*
7036 			 * since pre_heat_size is always smaller then 2^32,
7037 			 * if it is larger then target_start (a 64 bit value)
7038 			 * it is safe to clip target_start to 32 bits
7039 			 */
7040 			pre_heat_size = (vm_size_t) target_start;
7041 		}
7042 		tail_size = 0;
7043 	}
7044 	assert( !(target_start & PAGE_MASK_64));
7045 	assert( !(pre_heat_size & PAGE_MASK_64));
7046 
7047 	if (pre_heat_size <= PAGE_SIZE) {
7048 		goto out;
7049 	}
7050 
7051 	if (look_behind == TRUE) {
7052 		/*
7053 		 * take a look at the pages before the original
7054 		 * faulting offset... recalculate this in case
7055 		 * we had to clip 'pre_heat_size' above to keep
7056 		 * from running past the EOF.
7057 		 */
7058 		head_size = pre_heat_size - tail_size - PAGE_SIZE;
7059 
7060 		for (offset = orig_start - PAGE_SIZE_64; head_size; offset -= PAGE_SIZE_64, head_size -= PAGE_SIZE) {
7061 			/*
7062 			 * don't poke below the lowest offset
7063 			 */
7064 			if (offset < fault_info->lo_offset) {
7065 				break;
7066 			}
7067 			/*
7068 			 * for external objects or internal objects w/o a pager,
7069 			 * vm_object_compressor_pager_state_get will return VM_EXTERNAL_STATE_UNKNOWN
7070 			 */
7071 			if (vm_object_compressor_pager_state_get(object, offset) == VM_EXTERNAL_STATE_ABSENT) {
7072 				break;
7073 			}
7074 			if (vm_page_lookup(object, offset) != VM_PAGE_NULL) {
7075 				/*
7076 				 * don't bridge resident pages
7077 				 */
7078 				break;
7079 			}
7080 			*start = offset;
7081 			*length += PAGE_SIZE;
7082 		}
7083 	}
7084 	if (look_ahead == TRUE) {
7085 		for (offset = orig_start + PAGE_SIZE_64; tail_size; offset += PAGE_SIZE_64, tail_size -= PAGE_SIZE) {
7086 			/*
7087 			 * don't poke above the highest offset
7088 			 */
7089 			if (offset >= fault_info->hi_offset) {
7090 				break;
7091 			}
7092 			assert(offset < object_size);
7093 
7094 			/*
7095 			 * for external objects or internal objects w/o a pager,
7096 			 * vm_object_compressor_pager_state_get will return VM_EXTERNAL_STATE_UNKNOWN
7097 			 */
7098 			if (vm_object_compressor_pager_state_get(object, offset) == VM_EXTERNAL_STATE_ABSENT) {
7099 				break;
7100 			}
7101 			if (vm_page_lookup(object, offset) != VM_PAGE_NULL) {
7102 				/*
7103 				 * don't bridge resident pages
7104 				 */
7105 				break;
7106 			}
7107 			*length += PAGE_SIZE;
7108 		}
7109 	}
7110 out:
7111 	if (*length > max_length) {
7112 		*length = max_length;
7113 	}
7114 
7115 	vm_object_unlock(object);
7116 
7117 	DTRACE_VM1(clustersize, vm_size_t, *length);
7118 }
7119 
7120 
7121 /*
7122  * Allow manipulation of individual page state.  This is actually part of
7123  * the UPL regimen but takes place on the VM object rather than on a UPL
7124  */
7125 
7126 kern_return_t
7127 vm_object_page_op(
7128 	vm_object_t             object,
7129 	vm_object_offset_t      offset,
7130 	int                     ops,
7131 	ppnum_t                 *phys_entry,
7132 	int                     *flags)
7133 {
7134 	vm_page_t               dst_page;
7135 
7136 	vm_object_lock(object);
7137 
7138 	if (ops & UPL_POP_PHYSICAL) {
7139 		if (object->phys_contiguous) {
7140 			if (phys_entry) {
7141 				*phys_entry = (ppnum_t)
7142 				    (object->vo_shadow_offset >> PAGE_SHIFT);
7143 			}
7144 			vm_object_unlock(object);
7145 			return KERN_SUCCESS;
7146 		} else {
7147 			vm_object_unlock(object);
7148 			return KERN_INVALID_OBJECT;
7149 		}
7150 	}
7151 	if (object->phys_contiguous) {
7152 		vm_object_unlock(object);
7153 		return KERN_INVALID_OBJECT;
7154 	}
7155 
7156 	while (TRUE) {
7157 		if ((dst_page = vm_page_lookup(object, offset)) == VM_PAGE_NULL) {
7158 			vm_object_unlock(object);
7159 			return KERN_FAILURE;
7160 		}
7161 
7162 		/* Sync up on getting the busy bit */
7163 		if ((dst_page->vmp_busy || dst_page->vmp_cleaning) &&
7164 		    (((ops & UPL_POP_SET) &&
7165 		    (ops & UPL_POP_BUSY)) || (ops & UPL_POP_DUMP))) {
7166 			/* someone else is playing with the page, we will */
7167 			/* have to wait */
7168 			vm_page_sleep(object, dst_page, THREAD_UNINT, LCK_SLEEP_DEFAULT);
7169 			continue;
7170 		}
7171 
7172 		if (ops & UPL_POP_DUMP) {
7173 			if (dst_page->vmp_pmapped == TRUE) {
7174 				pmap_disconnect(VM_PAGE_GET_PHYS_PAGE(dst_page));
7175 			}
7176 
7177 			VM_PAGE_FREE(dst_page);
7178 			break;
7179 		}
7180 
7181 		if (flags) {
7182 			*flags = 0;
7183 
7184 			/* Get the condition of flags before requested ops */
7185 			/* are undertaken */
7186 
7187 			if (dst_page->vmp_dirty) {
7188 				*flags |= UPL_POP_DIRTY;
7189 			}
7190 			if (dst_page->vmp_free_when_done) {
7191 				*flags |= UPL_POP_PAGEOUT;
7192 			}
7193 			if (dst_page->vmp_precious) {
7194 				*flags |= UPL_POP_PRECIOUS;
7195 			}
7196 			if (dst_page->vmp_absent) {
7197 				*flags |= UPL_POP_ABSENT;
7198 			}
7199 			if (dst_page->vmp_busy) {
7200 				*flags |= UPL_POP_BUSY;
7201 			}
7202 		}
7203 
7204 		/* The caller should have made a call either contingent with */
7205 		/* or prior to this call to set UPL_POP_BUSY */
7206 		if (ops & UPL_POP_SET) {
7207 			/* The protection granted with this assert will */
7208 			/* not be complete.  If the caller violates the */
7209 			/* convention and attempts to change page state */
7210 			/* without first setting busy we may not see it */
7211 			/* because the page may already be busy.  However */
7212 			/* if such violations occur we will assert sooner */
7213 			/* or later. */
7214 			assert(dst_page->vmp_busy || (ops & UPL_POP_BUSY));
7215 			if (ops & UPL_POP_DIRTY) {
7216 				SET_PAGE_DIRTY(dst_page, FALSE);
7217 			}
7218 			if (ops & UPL_POP_PAGEOUT) {
7219 				dst_page->vmp_free_when_done = TRUE;
7220 			}
7221 			if (ops & UPL_POP_PRECIOUS) {
7222 				dst_page->vmp_precious = TRUE;
7223 			}
7224 			if (ops & UPL_POP_ABSENT) {
7225 				dst_page->vmp_absent = TRUE;
7226 			}
7227 			if (ops & UPL_POP_BUSY) {
7228 				dst_page->vmp_busy = TRUE;
7229 			}
7230 		}
7231 
7232 		if (ops & UPL_POP_CLR) {
7233 			assert(dst_page->vmp_busy);
7234 			if (ops & UPL_POP_DIRTY) {
7235 				dst_page->vmp_dirty = FALSE;
7236 			}
7237 			if (ops & UPL_POP_PAGEOUT) {
7238 				dst_page->vmp_free_when_done = FALSE;
7239 			}
7240 			if (ops & UPL_POP_PRECIOUS) {
7241 				dst_page->vmp_precious = FALSE;
7242 			}
7243 			if (ops & UPL_POP_ABSENT) {
7244 				dst_page->vmp_absent = FALSE;
7245 			}
7246 			if (ops & UPL_POP_BUSY) {
7247 				dst_page->vmp_busy = FALSE;
7248 				vm_page_wakeup(object, dst_page);
7249 			}
7250 		}
7251 		if (phys_entry) {
7252 			/*
7253 			 * The physical page number will remain valid
7254 			 * only if the page is kept busy.
7255 			 */
7256 			assert(dst_page->vmp_busy);
7257 			*phys_entry = VM_PAGE_GET_PHYS_PAGE(dst_page);
7258 		}
7259 
7260 		break;
7261 	}
7262 
7263 	vm_object_unlock(object);
7264 	return KERN_SUCCESS;
7265 }
7266 
7267 /*
7268  * vm_object_range_op offers performance enhancement over
7269  * vm_object_page_op for page_op functions which do not require page
7270  * level state to be returned from the call.  Page_op was created to provide
7271  * a low-cost alternative to page manipulation via UPLs when only a single
7272  * page was involved.  The range_op call establishes the ability in the _op
7273  * family of functions to work on multiple pages where the lack of page level
7274  * state handling allows the caller to avoid the overhead of the upl structures.
7275  */
7276 
7277 kern_return_t
7278 vm_object_range_op(
7279 	vm_object_t             object,
7280 	vm_object_offset_t      offset_beg,
7281 	vm_object_offset_t      offset_end,
7282 	int                     ops,
7283 	uint32_t                *range)
7284 {
7285 	vm_object_offset_t      offset;
7286 	vm_page_t               dst_page;
7287 
7288 	if (object->resident_page_count == 0) {
7289 		if (range) {
7290 			if (ops & UPL_ROP_PRESENT) {
7291 				*range = 0;
7292 			} else {
7293 				*range = (uint32_t) (offset_end - offset_beg);
7294 				assert(*range == (offset_end - offset_beg));
7295 			}
7296 		}
7297 		return KERN_SUCCESS;
7298 	}
7299 	vm_object_lock(object);
7300 
7301 	if (object->phys_contiguous) {
7302 		vm_object_unlock(object);
7303 		return KERN_INVALID_OBJECT;
7304 	}
7305 
7306 	offset = offset_beg & ~PAGE_MASK_64;
7307 
7308 	while (offset < offset_end) {
7309 		dst_page = vm_page_lookup(object, offset);
7310 		if (dst_page != VM_PAGE_NULL) {
7311 			if (ops & UPL_ROP_DUMP) {
7312 				if (dst_page->vmp_busy || dst_page->vmp_cleaning) {
7313 					/*
7314 					 * someone else is playing with the
7315 					 * page, we will have to wait
7316 					 */
7317 					vm_page_sleep(object, dst_page, THREAD_UNINT, LCK_SLEEP_DEFAULT);
7318 					/*
7319 					 * need to relook the page up since it's
7320 					 * state may have changed while we slept
7321 					 * it might even belong to a different object
7322 					 * at this point
7323 					 */
7324 					continue;
7325 				}
7326 				if (dst_page->vmp_laundry) {
7327 					vm_pageout_steal_laundry(dst_page, FALSE);
7328 				}
7329 
7330 				if (dst_page->vmp_pmapped == TRUE) {
7331 					pmap_disconnect(VM_PAGE_GET_PHYS_PAGE(dst_page));
7332 				}
7333 
7334 				VM_PAGE_FREE(dst_page);
7335 			} else if ((ops & UPL_ROP_ABSENT)
7336 			    && (!dst_page->vmp_absent || dst_page->vmp_busy)) {
7337 				break;
7338 			}
7339 		} else if (ops & UPL_ROP_PRESENT) {
7340 			break;
7341 		}
7342 
7343 		offset += PAGE_SIZE;
7344 	}
7345 	vm_object_unlock(object);
7346 
7347 	if (range) {
7348 		if (offset > offset_end) {
7349 			offset = offset_end;
7350 		}
7351 		if (offset > offset_beg) {
7352 			*range = (uint32_t) (offset - offset_beg);
7353 			assert(*range == (offset - offset_beg));
7354 		} else {
7355 			*range = 0;
7356 		}
7357 	}
7358 	return KERN_SUCCESS;
7359 }
7360 
7361 /*
7362  * Used to point a pager directly to a range of memory (when the pager may be associated
7363  *   with a non-device vnode).  Takes a virtual address, an offset, and a size.  We currently
7364  *   expect that the virtual address will denote the start of a range that is physically contiguous.
7365  */
7366 kern_return_t
7367 pager_map_to_phys_contiguous(
7368 	memory_object_control_t object,
7369 	memory_object_offset_t  offset,
7370 	addr64_t                base_vaddr,
7371 	vm_size_t               size)
7372 {
7373 	ppnum_t page_num;
7374 	boolean_t clobbered_private;
7375 	kern_return_t retval;
7376 	vm_object_t pager_object;
7377 
7378 	page_num = pmap_find_phys(kernel_pmap, base_vaddr);
7379 
7380 	if (!page_num) {
7381 		retval = KERN_FAILURE;
7382 		goto out;
7383 	}
7384 
7385 	pager_object = memory_object_control_to_vm_object(object);
7386 
7387 	if (!pager_object) {
7388 		retval = KERN_FAILURE;
7389 		goto out;
7390 	}
7391 
7392 	clobbered_private = pager_object->private;
7393 	if (pager_object->private != TRUE) {
7394 		vm_object_lock(pager_object);
7395 		VM_OBJECT_SET_PRIVATE(pager_object, TRUE);
7396 		vm_object_unlock(pager_object);
7397 	}
7398 	retval = vm_object_populate_with_private(pager_object, offset, page_num, size);
7399 
7400 	if (retval != KERN_SUCCESS) {
7401 		if (pager_object->private != clobbered_private) {
7402 			vm_object_lock(pager_object);
7403 			VM_OBJECT_SET_PRIVATE(pager_object, clobbered_private);
7404 			vm_object_unlock(pager_object);
7405 		}
7406 	}
7407 
7408 out:
7409 	return retval;
7410 }
7411 
7412 uint32_t scan_object_collision = 0;
7413 
7414 void
7415 vm_object_lock(vm_object_t object)
7416 {
7417 	if (object == vm_pageout_scan_wants_object) {
7418 		scan_object_collision++;
7419 		mutex_pause(2);
7420 	}
7421 	DTRACE_VM(vm_object_lock_w);
7422 	lck_rw_lock_exclusive(&object->Lock);
7423 }
7424 
7425 boolean_t
7426 vm_object_lock_avoid(vm_object_t object)
7427 {
7428 	if (object == vm_pageout_scan_wants_object) {
7429 		scan_object_collision++;
7430 		return TRUE;
7431 	}
7432 	return FALSE;
7433 }
7434 
7435 boolean_t
7436 _vm_object_lock_try(vm_object_t object)
7437 {
7438 	boolean_t       retval;
7439 
7440 	retval = lck_rw_try_lock_exclusive(&object->Lock);
7441 #if DEVELOPMENT || DEBUG
7442 	if (retval == TRUE) {
7443 		DTRACE_VM(vm_object_lock_w);
7444 	}
7445 #endif
7446 	return retval;
7447 }
7448 
7449 boolean_t
7450 vm_object_lock_try(vm_object_t object)
7451 {
7452 	/*
7453 	 * Called from hibernate path so check before blocking.
7454 	 */
7455 	if (vm_object_lock_avoid(object) && ml_get_interrupts_enabled() && get_preemption_level() == 0) {
7456 		mutex_pause(2);
7457 	}
7458 	return _vm_object_lock_try(object);
7459 }
7460 
7461 /*
7462  * Lock the object exclusive.
7463  *
7464  * Returns true iff the thread had to spin or block before
7465  * acquiring the lock.
7466  */
7467 bool
7468 vm_object_lock_check_contended(vm_object_t object)
7469 {
7470 	if (object == vm_pageout_scan_wants_object) {
7471 		scan_object_collision++;
7472 		mutex_pause(2);
7473 	}
7474 	DTRACE_VM(vm_object_lock_w);
7475 	return lck_rw_lock_exclusive_check_contended(&object->Lock);
7476 }
7477 
7478 void
7479 vm_object_lock_shared(vm_object_t object)
7480 {
7481 	if (vm_object_lock_avoid(object)) {
7482 		mutex_pause(2);
7483 	}
7484 	DTRACE_VM(vm_object_lock_r);
7485 	lck_rw_lock_shared(&object->Lock);
7486 }
7487 
7488 boolean_t
7489 vm_object_lock_yield_shared(vm_object_t object)
7490 {
7491 	boolean_t retval = FALSE, force_yield = FALSE;
7492 
7493 	vm_object_lock_assert_shared(object);
7494 
7495 	force_yield = vm_object_lock_avoid(object);
7496 
7497 	retval = lck_rw_lock_yield_shared(&object->Lock, force_yield);
7498 	if (retval) {
7499 		DTRACE_VM(vm_object_lock_yield);
7500 	}
7501 
7502 	return retval;
7503 }
7504 
7505 boolean_t
7506 vm_object_lock_try_shared(vm_object_t object)
7507 {
7508 	boolean_t retval;
7509 
7510 	if (vm_object_lock_avoid(object)) {
7511 		mutex_pause(2);
7512 	}
7513 	retval = lck_rw_try_lock_shared(&object->Lock);
7514 	if (retval) {
7515 		DTRACE_VM(vm_object_lock_r);
7516 	}
7517 	return retval;
7518 }
7519 
7520 boolean_t
7521 vm_object_lock_upgrade(vm_object_t object)
7522 {
7523 	boolean_t       retval;
7524 
7525 	retval = lck_rw_lock_shared_to_exclusive(&object->Lock);
7526 #if DEVELOPMENT || DEBUG
7527 	if (retval == TRUE) {
7528 		DTRACE_VM(vm_object_lock_w);
7529 	}
7530 #endif
7531 	return retval;
7532 }
7533 
7534 void
7535 vm_object_unlock(vm_object_t object)
7536 {
7537 #if DEVELOPMENT || DEBUG
7538 	DTRACE_VM(vm_object_unlock);
7539 #endif
7540 	lck_rw_done(&object->Lock);
7541 }
7542 
7543 
7544 unsigned int vm_object_change_wimg_mode_count = 0;
7545 
7546 /*
7547  * The object must be locked
7548  */
7549 void
7550 vm_object_change_wimg_mode(vm_object_t object, unsigned int wimg_mode)
7551 {
7552 	vm_object_lock_assert_exclusive(object);
7553 
7554 	vm_object_paging_only_wait(object, THREAD_UNINT);
7555 
7556 
7557 	const unified_page_list_t pmap_batch_list = {
7558 		.pageq = &object->memq,
7559 		.type = UNIFIED_PAGE_LIST_TYPE_VM_PAGE_OBJ_Q,
7560 	};
7561 	pmap_batch_set_cache_attributes(&pmap_batch_list, wimg_mode);
7562 	object->set_cache_attr = !HAS_DEFAULT_CACHEABILITY(wimg_mode);
7563 
7564 	object->wimg_bits = wimg_mode;
7565 
7566 	vm_object_change_wimg_mode_count++;
7567 }
7568 
7569 #if CONFIG_FREEZE
7570 
7571 extern struct freezer_context   freezer_context_global;
7572 
7573 /*
7574  * This routine does the "relocation" of previously
7575  * compressed pages belonging to this object that are
7576  * residing in a number of compressed segments into
7577  * a set of compressed segments dedicated to hold
7578  * compressed pages belonging to this object.
7579  */
7580 
7581 extern AbsoluteTime c_freezer_last_yield_ts;
7582 
7583 #define MAX_FREE_BATCH  32
7584 #define FREEZER_DUTY_CYCLE_ON_MS        5
7585 #define FREEZER_DUTY_CYCLE_OFF_MS       5
7586 
7587 static int c_freezer_should_yield(void);
7588 
7589 
7590 static int
7591 c_freezer_should_yield()
7592 {
7593 	AbsoluteTime    cur_time;
7594 	uint64_t        nsecs;
7595 
7596 	assert(c_freezer_last_yield_ts);
7597 	clock_get_uptime(&cur_time);
7598 
7599 	SUB_ABSOLUTETIME(&cur_time, &c_freezer_last_yield_ts);
7600 	absolutetime_to_nanoseconds(cur_time, &nsecs);
7601 
7602 	if (nsecs > 1000 * 1000 * FREEZER_DUTY_CYCLE_ON_MS) {
7603 		return 1;
7604 	}
7605 	return 0;
7606 }
7607 
7608 
7609 void
7610 vm_object_compressed_freezer_done()
7611 {
7612 	vm_compressor_finished_filling( &(freezer_context_global.freezer_ctx_chead));
7613 }
7614 
7615 
7616 uint32_t
7617 vm_object_compressed_freezer_pageout(
7618 	vm_object_t object, uint32_t dirty_budget)
7619 {
7620 	vm_page_t                       p;
7621 	vm_page_t                       local_freeq = NULL;
7622 	int                             local_freed = 0;
7623 	kern_return_t                   retval = KERN_SUCCESS;
7624 	int                             obj_resident_page_count_snapshot = 0;
7625 	uint32_t                        paged_out_count = 0;
7626 
7627 	assert(object != VM_OBJECT_NULL);
7628 	assert(object->internal);
7629 
7630 	vm_object_lock(object);
7631 
7632 	if (!object->pager_initialized || object->pager == MEMORY_OBJECT_NULL) {
7633 		if (!object->pager_initialized) {
7634 			vm_object_collapse(object, (vm_object_offset_t) 0, TRUE);
7635 
7636 			if (!object->pager_initialized) {
7637 				vm_object_compressor_pager_create(object);
7638 			}
7639 		}
7640 
7641 		if (!object->pager_initialized || object->pager == MEMORY_OBJECT_NULL) {
7642 			vm_object_unlock(object);
7643 			return paged_out_count;
7644 		}
7645 	}
7646 
7647 	/*
7648 	 * We could be freezing a shared internal object that might
7649 	 * be part of some other thread's current VM operations.
7650 	 * We skip it if there's a paging-in-progress or activity-in-progress
7651 	 * because we could be here a long time with the map lock held.
7652 	 *
7653 	 * Note: We are holding the map locked while we wait.
7654 	 * This is fine in the freezer path because the task
7655 	 * is suspended and so this latency is acceptable.
7656 	 */
7657 	if (object->paging_in_progress || object->activity_in_progress) {
7658 		vm_object_unlock(object);
7659 		return paged_out_count;
7660 	}
7661 
7662 	if (VM_CONFIG_FREEZER_SWAP_IS_ACTIVE) {
7663 		vm_object_offset_t      curr_offset = 0;
7664 
7665 		/*
7666 		 * Go through the object and make sure that any
7667 		 * previously compressed pages are relocated into
7668 		 * a compressed segment associated with our "freezer_chead".
7669 		 */
7670 		while (curr_offset < object->vo_size) {
7671 			curr_offset = vm_compressor_pager_next_compressed(object->pager, curr_offset);
7672 
7673 			if (curr_offset == (vm_object_offset_t) -1) {
7674 				break;
7675 			}
7676 
7677 			retval = vm_compressor_pager_relocate(object->pager, curr_offset, &(freezer_context_global.freezer_ctx_chead));
7678 
7679 			if (retval != KERN_SUCCESS) {
7680 				break;
7681 			}
7682 
7683 			curr_offset += PAGE_SIZE_64;
7684 		}
7685 	}
7686 
7687 	/*
7688 	 * We can't hold the object lock while heading down into the compressed pager
7689 	 * layer because we might need the kernel map lock down there to allocate new
7690 	 * compressor data structures. And if this same object is mapped in the kernel
7691 	 * and there's a fault on it, then that thread will want the object lock while
7692 	 * holding the kernel map lock.
7693 	 *
7694 	 * Since we are going to drop/grab the object lock repeatedly, we must make sure
7695 	 * we won't be stuck in an infinite loop if the same page(s) keep getting
7696 	 * decompressed. So we grab a snapshot of the number of pages in the object and
7697 	 * we won't process any more than that number of pages.
7698 	 */
7699 
7700 	obj_resident_page_count_snapshot = object->resident_page_count;
7701 
7702 	vm_object_activity_begin(object);
7703 
7704 	while ((obj_resident_page_count_snapshot--) && !vm_page_queue_empty(&object->memq) && paged_out_count < dirty_budget) {
7705 		p = (vm_page_t)vm_page_queue_first(&object->memq);
7706 
7707 		KDBG_DEBUG(0xe0430004 | DBG_FUNC_START, object, local_freed);
7708 
7709 		vm_page_lockspin_queues();
7710 
7711 		if (p->vmp_cleaning || vm_page_is_fictitious(p) ||
7712 		    p->vmp_busy || p->vmp_absent || p->vmp_unusual ||
7713 		    VMP_ERROR_GET(p) || VM_PAGE_WIRED(p)) {
7714 			vm_page_unlock_queues();
7715 
7716 			KDBG_DEBUG(0xe0430004 | DBG_FUNC_END, object, local_freed, 1);
7717 
7718 			vm_page_queue_remove(&object->memq, p, vmp_listq);
7719 			vm_page_queue_enter(&object->memq, p, vmp_listq);
7720 
7721 			continue;
7722 		}
7723 
7724 		if (p->vmp_pmapped == TRUE) {
7725 			int refmod_state, pmap_flags;
7726 
7727 			if (p->vmp_dirty || p->vmp_precious) {
7728 				pmap_flags = PMAP_OPTIONS_COMPRESSOR;
7729 			} else {
7730 				pmap_flags = PMAP_OPTIONS_COMPRESSOR_IFF_MODIFIED;
7731 			}
7732 
7733 			vm_page_lockconvert_queues();
7734 			refmod_state = pmap_disconnect_options(VM_PAGE_GET_PHYS_PAGE(p), pmap_flags, NULL);
7735 			if (refmod_state & VM_MEM_MODIFIED) {
7736 				SET_PAGE_DIRTY(p, FALSE);
7737 			}
7738 		}
7739 
7740 		if (p->vmp_dirty == FALSE && p->vmp_precious == FALSE) {
7741 			/*
7742 			 * Clean and non-precious page.
7743 			 */
7744 			vm_page_unlock_queues();
7745 			VM_PAGE_FREE(p);
7746 
7747 			KDBG_DEBUG(0xe0430004 | DBG_FUNC_END, object, local_freed, 2);
7748 			continue;
7749 		}
7750 
7751 		if (p->vmp_laundry) {
7752 			vm_pageout_steal_laundry(p, TRUE);
7753 		}
7754 
7755 		vm_page_queues_remove(p, TRUE);
7756 
7757 		vm_page_unlock_queues();
7758 
7759 
7760 		/*
7761 		 * In case the compressor fails to compress this page, we need it at
7762 		 * the back of the object memq so that we don't keep trying to process it.
7763 		 * Make the move here while we have the object lock held.
7764 		 */
7765 
7766 		vm_page_queue_remove(&object->memq, p, vmp_listq);
7767 		vm_page_queue_enter(&object->memq, p, vmp_listq);
7768 
7769 		/*
7770 		 * Grab an activity_in_progress here for vm_pageout_compress_page() to consume.
7771 		 *
7772 		 * Mark the page busy so no one messes with it while we have the object lock dropped.
7773 		 */
7774 		p->vmp_busy = TRUE;
7775 
7776 		vm_object_activity_begin(object);
7777 
7778 		vm_object_unlock(object);
7779 
7780 		if (vm_pageout_compress_page(&(freezer_context_global.freezer_ctx_chead),
7781 		    (freezer_context_global.freezer_ctx_compressor_scratch_buf),
7782 		    p) == KERN_SUCCESS) {
7783 			/*
7784 			 * page has already been un-tabled from the object via 'vm_page_remove'
7785 			 */
7786 			p->vmp_snext = local_freeq;
7787 			local_freeq = p;
7788 			local_freed++;
7789 			paged_out_count++;
7790 
7791 			if (local_freed >= MAX_FREE_BATCH) {
7792 				OSAddAtomic64(local_freed, &vm_pageout_vminfo.vm_pageout_compressions);
7793 
7794 				vm_page_free_list(local_freeq, TRUE);
7795 
7796 				local_freeq = NULL;
7797 				local_freed = 0;
7798 			}
7799 			freezer_context_global.freezer_ctx_uncompressed_pages++;
7800 		}
7801 		KDBG_DEBUG(0xe0430004 | DBG_FUNC_END, object, local_freed);
7802 
7803 		if (local_freed == 0 && c_freezer_should_yield()) {
7804 			thread_yield_internal(FREEZER_DUTY_CYCLE_OFF_MS);
7805 			clock_get_uptime(&c_freezer_last_yield_ts);
7806 		}
7807 
7808 		vm_object_lock(object);
7809 	}
7810 
7811 	if (local_freeq) {
7812 		OSAddAtomic64(local_freed, &vm_pageout_vminfo.vm_pageout_compressions);
7813 
7814 		vm_page_free_list(local_freeq, TRUE);
7815 
7816 		local_freeq = NULL;
7817 		local_freed = 0;
7818 	}
7819 
7820 	vm_object_activity_end(object);
7821 
7822 	vm_object_unlock(object);
7823 
7824 	if (c_freezer_should_yield()) {
7825 		thread_yield_internal(FREEZER_DUTY_CYCLE_OFF_MS);
7826 		clock_get_uptime(&c_freezer_last_yield_ts);
7827 	}
7828 	return paged_out_count;
7829 }
7830 
7831 #endif /* CONFIG_FREEZE */
7832 
7833 
7834 uint64_t vm_object_pageout_not_on_queue = 0;
7835 uint64_t vm_object_pageout_not_pageable = 0;
7836 uint64_t vm_object_pageout_pageable = 0;
7837 uint64_t vm_object_pageout_active_local = 0;
7838 void
7839 vm_object_pageout(
7840 	vm_object_t object)
7841 {
7842 	vm_page_t                       p, next;
7843 	struct  vm_pageout_queue        *iq;
7844 
7845 	if (!VM_CONFIG_COMPRESSOR_IS_PRESENT) {
7846 		return;
7847 	}
7848 
7849 	iq = &vm_pageout_queue_internal;
7850 
7851 	assert(object != VM_OBJECT_NULL );
7852 
7853 	vm_object_lock(object);
7854 
7855 	if (!object->internal ||
7856 	    object->terminating ||
7857 	    !object->alive) {
7858 		vm_object_unlock(object);
7859 		return;
7860 	}
7861 
7862 	if (!object->pager_initialized || object->pager == MEMORY_OBJECT_NULL) {
7863 		if (!object->pager_initialized) {
7864 			vm_object_collapse(object, (vm_object_offset_t) 0, TRUE);
7865 
7866 			if (!object->pager_initialized) {
7867 				vm_object_compressor_pager_create(object);
7868 			}
7869 		}
7870 
7871 		if (!object->pager_initialized || object->pager == MEMORY_OBJECT_NULL) {
7872 			vm_object_unlock(object);
7873 			return;
7874 		}
7875 	}
7876 
7877 ReScan:
7878 	next = (vm_page_t)vm_page_queue_first(&object->memq);
7879 
7880 	while (!vm_page_queue_end(&object->memq, (vm_page_queue_entry_t)next)) {
7881 		p = next;
7882 		next = (vm_page_t)vm_page_queue_next(&next->vmp_listq);
7883 
7884 		vm_page_lockspin_queues();
7885 
7886 		assert(p->vmp_q_state != VM_PAGE_ON_FREE_Q);
7887 		assert(p->vmp_q_state != VM_PAGE_USED_BY_COMPRESSOR);
7888 
7889 		if ((p->vmp_q_state == VM_PAGE_ON_THROTTLED_Q) ||
7890 		    p->vmp_cleaning ||
7891 		    p->vmp_laundry ||
7892 		    p->vmp_busy ||
7893 		    p->vmp_absent ||
7894 		    VMP_ERROR_GET(p) ||
7895 		    vm_page_is_fictitious(p) ||
7896 		    VM_PAGE_WIRED(p)) {
7897 			/*
7898 			 * Page is already being cleaned or can't be cleaned.
7899 			 */
7900 			vm_page_unlock_queues();
7901 			continue;
7902 		}
7903 		if (p->vmp_q_state == VM_PAGE_NOT_ON_Q) {
7904 //			printf("FBDP %s:%d page %p object %p offset 0x%llx state %d not on queue\n", __FUNCTION__, __LINE__, p, VM_PAGE_OBJECT(p), p->vmp_offset, p->vmp_q_state);
7905 			vm_object_pageout_not_on_queue++;
7906 			vm_page_unlock_queues();
7907 			continue;
7908 		}
7909 		if (!VM_PAGE_PAGEABLE(p)) {
7910 			if (p->vmp_q_state == VM_PAGE_ON_ACTIVE_LOCAL_Q) {
7911 				vm_object_pageout_active_local++;
7912 			} else {
7913 				vm_object_pageout_not_pageable++;
7914 				vm_page_unlock_queues();
7915 				continue;
7916 			}
7917 		} else {
7918 			vm_object_pageout_pageable++;
7919 		}
7920 
7921 		if (vm_compressor_low_on_space()) {
7922 			vm_page_unlock_queues();
7923 			break;
7924 		}
7925 
7926 		/* Throw to the pageout queue */
7927 
7928 		if (VM_PAGE_Q_THROTTLED(iq)) {
7929 			iq->pgo_draining = TRUE;
7930 
7931 			assert_wait((event_t) (&iq->pgo_laundry + 1),
7932 			    THREAD_INTERRUPTIBLE);
7933 			vm_page_unlock_queues();
7934 			vm_object_unlock(object);
7935 
7936 			thread_block(THREAD_CONTINUE_NULL);
7937 
7938 			vm_object_lock(object);
7939 			goto ReScan;
7940 		}
7941 
7942 		assert(!vm_page_is_fictitious(p));
7943 		assert(!p->vmp_busy);
7944 		assert(!p->vmp_absent);
7945 		assert(!p->vmp_unusual);
7946 		assert(!VMP_ERROR_GET(p));      /* XXX there's a window here where we could have an ECC error! */
7947 		assert(!VM_PAGE_WIRED(p));
7948 		assert(!p->vmp_cleaning);
7949 
7950 		if (p->vmp_pmapped == TRUE) {
7951 			int refmod_state;
7952 			int pmap_options;
7953 
7954 			/*
7955 			 * Tell pmap the page should be accounted
7956 			 * for as "compressed" if it's been modified.
7957 			 */
7958 			pmap_options =
7959 			    PMAP_OPTIONS_COMPRESSOR_IFF_MODIFIED;
7960 			if (p->vmp_dirty || p->vmp_precious) {
7961 				/*
7962 				 * We already know it's been modified,
7963 				 * so tell pmap to account for it
7964 				 * as "compressed".
7965 				 */
7966 				pmap_options = PMAP_OPTIONS_COMPRESSOR;
7967 			}
7968 			vm_page_lockconvert_queues();
7969 			refmod_state = pmap_disconnect_options(VM_PAGE_GET_PHYS_PAGE(p),
7970 			    pmap_options,
7971 			    NULL);
7972 			if (refmod_state & VM_MEM_MODIFIED) {
7973 				SET_PAGE_DIRTY(p, FALSE);
7974 			}
7975 		}
7976 
7977 		if (!p->vmp_dirty && !p->vmp_precious) {
7978 			vm_page_unlock_queues();
7979 			VM_PAGE_FREE(p);
7980 			continue;
7981 		}
7982 		vm_page_queues_remove(p, TRUE);
7983 
7984 		vm_pageout_cluster(p);
7985 
7986 		vm_page_unlock_queues();
7987 	}
7988 	vm_object_unlock(object);
7989 }
7990 
7991 
7992 #if CONFIG_IOSCHED
7993 
7994 void
7995 vm_page_request_reprioritize(vm_object_t o, uint64_t blkno, uint32_t len, int prio)
7996 {
7997 	io_reprioritize_req_t   req;
7998 	struct vnode            *devvp = NULL;
7999 
8000 	if (vnode_pager_get_object_devvp(o->pager, (uintptr_t *)&devvp) != KERN_SUCCESS) {
8001 		return;
8002 	}
8003 
8004 	/*
8005 	 * Create the request for I/O reprioritization.
8006 	 * We use the noblock variant of zalloc because we're holding the object
8007 	 * lock here and we could cause a deadlock in low memory conditions.
8008 	 */
8009 	req = (io_reprioritize_req_t)zalloc_noblock(io_reprioritize_req_zone);
8010 	if (req == NULL) {
8011 		return;
8012 	}
8013 	req->blkno = blkno;
8014 	req->len = len;
8015 	req->priority = prio;
8016 	req->devvp = devvp;
8017 
8018 	/* Insert request into the reprioritization list */
8019 	mpsc_daemon_enqueue(&io_reprioritize_q, &req->iorr_elm, MPSC_QUEUE_DISABLE_PREEMPTION);
8020 
8021 	return;
8022 }
8023 
8024 void
8025 vm_decmp_upl_reprioritize(upl_t upl, int prio)
8026 {
8027 	int offset;
8028 	vm_object_t object;
8029 	io_reprioritize_req_t   req;
8030 	struct vnode            *devvp = NULL;
8031 	uint64_t                blkno;
8032 	uint32_t                len;
8033 	upl_t                   io_upl;
8034 	uint64_t                *io_upl_reprio_info;
8035 	int                     io_upl_size;
8036 
8037 	if ((upl->flags & UPL_TRACKED_BY_OBJECT) == 0 || (upl->flags & UPL_EXPEDITE_SUPPORTED) == 0) {
8038 		return;
8039 	}
8040 
8041 	/*
8042 	 * We dont want to perform any allocations with the upl lock held since that might
8043 	 * result in a deadlock. If the system is low on memory, the pageout thread would
8044 	 * try to pageout stuff and might wait on this lock. If we are waiting for the memory to
8045 	 * be freed up by the pageout thread, it would be a deadlock.
8046 	 */
8047 
8048 
8049 	/* First step is just to get the size of the upl to find out how big the reprio info is */
8050 	if (!upl_try_lock(upl)) {
8051 		return;
8052 	}
8053 
8054 	if (upl->decmp_io_upl == NULL) {
8055 		/* The real I/O upl was destroyed by the time we came in here. Nothing to do. */
8056 		upl_unlock(upl);
8057 		return;
8058 	}
8059 
8060 	io_upl = upl->decmp_io_upl;
8061 	assert((io_upl->flags & UPL_DECMP_REAL_IO) != 0);
8062 	assertf(page_aligned(io_upl->u_offset) && page_aligned(io_upl->u_size),
8063 	    "upl %p offset 0x%llx size 0x%x\n",
8064 	    io_upl, io_upl->u_offset, io_upl->u_size);
8065 	io_upl_size = io_upl->u_size;
8066 	upl_unlock(upl);
8067 
8068 	/* Now perform the allocation */
8069 	io_upl_reprio_info = kalloc_data(sizeof(uint64_t) * atop(io_upl_size), Z_WAITOK);
8070 	if (io_upl_reprio_info == NULL) {
8071 		return;
8072 	}
8073 
8074 	/* Now again take the lock, recheck the state and grab out the required info */
8075 	if (!upl_try_lock(upl)) {
8076 		goto out;
8077 	}
8078 
8079 	if (upl->decmp_io_upl == NULL || upl->decmp_io_upl != io_upl) {
8080 		/* The real I/O upl was destroyed by the time we came in here. Nothing to do. */
8081 		upl_unlock(upl);
8082 		goto out;
8083 	}
8084 	memcpy(io_upl_reprio_info, io_upl->upl_reprio_info,
8085 	    sizeof(uint64_t) * atop(io_upl_size));
8086 
8087 	/* Get the VM object for this UPL */
8088 	if (io_upl->flags & UPL_SHADOWED) {
8089 		object = io_upl->map_object->shadow;
8090 	} else {
8091 		object = io_upl->map_object;
8092 	}
8093 
8094 	/* Get the dev vnode ptr for this object */
8095 	if (!object || !object->pager ||
8096 	    vnode_pager_get_object_devvp(object->pager, (uintptr_t *)&devvp) != KERN_SUCCESS) {
8097 		upl_unlock(upl);
8098 		goto out;
8099 	}
8100 
8101 	upl_unlock(upl);
8102 
8103 	/* Now we have all the information needed to do the expedite */
8104 
8105 	offset = 0;
8106 	while (offset < io_upl_size) {
8107 		blkno   = io_upl_reprio_info[atop(offset)] & UPL_REPRIO_INFO_MASK;
8108 		len     = (io_upl_reprio_info[atop(offset)] >> UPL_REPRIO_INFO_SHIFT) & UPL_REPRIO_INFO_MASK;
8109 
8110 		/*
8111 		 * This implementation may cause some spurious expedites due to the
8112 		 * fact that we dont cleanup the blkno & len from the upl_reprio_info
8113 		 * even after the I/O is complete.
8114 		 */
8115 
8116 		if (blkno != 0 && len != 0) {
8117 			/* Create the request for I/O reprioritization */
8118 			req = zalloc_flags(io_reprioritize_req_zone,
8119 			    Z_WAITOK | Z_NOFAIL);
8120 			req->blkno = blkno;
8121 			req->len = len;
8122 			req->priority = prio;
8123 			req->devvp = devvp;
8124 
8125 			/* Insert request into the reprioritization list */
8126 			mpsc_daemon_enqueue(&io_reprioritize_q, &req->iorr_elm, MPSC_QUEUE_DISABLE_PREEMPTION);
8127 
8128 			offset += len;
8129 		} else {
8130 			offset += PAGE_SIZE;
8131 		}
8132 	}
8133 
8134 out:
8135 	kfree_data(io_upl_reprio_info, sizeof(uint64_t) * atop(io_upl_size));
8136 }
8137 
8138 void
8139 vm_page_handle_prio_inversion(vm_object_t o, vm_page_t m)
8140 {
8141 	upl_t upl;
8142 	upl_page_info_t *pl;
8143 	unsigned int i, num_pages;
8144 	int cur_tier;
8145 
8146 	cur_tier = proc_get_effective_thread_policy(current_thread(), TASK_POLICY_IO);
8147 
8148 	/*
8149 	 *  Scan through all UPLs associated with the object to find the
8150 	 *  UPL containing the contended page.
8151 	 */
8152 	queue_iterate(&o->uplq, upl, upl_t, uplq) {
8153 		if (((upl->flags & UPL_EXPEDITE_SUPPORTED) == 0) || upl->upl_priority <= cur_tier) {
8154 			continue;
8155 		}
8156 		pl = UPL_GET_INTERNAL_PAGE_LIST(upl);
8157 		assertf(page_aligned(upl->u_offset) && page_aligned(upl->u_size),
8158 		    "upl %p offset 0x%llx size 0x%x\n",
8159 		    upl, upl->u_offset, upl->u_size);
8160 		num_pages = (upl->u_size / PAGE_SIZE);
8161 
8162 		/*
8163 		 *  For each page in the UPL page list, see if it matches the contended
8164 		 *  page and was issued as a low prio I/O.
8165 		 */
8166 		for (i = 0; i < num_pages; i++) {
8167 			if (UPL_PAGE_PRESENT(pl, i) && VM_PAGE_GET_PHYS_PAGE(m) == pl[i].phys_addr) {
8168 				if ((upl->flags & UPL_DECMP_REQ) && upl->decmp_io_upl) {
8169 					KDBG((VMDBG_CODE(DBG_VM_PAGE_EXPEDITE)) | DBG_FUNC_NONE, VM_KERNEL_UNSLIDE_OR_PERM(upl->upl_creator), VM_KERNEL_UNSLIDE_OR_PERM(m),
8170 					    VM_KERNEL_UNSLIDE_OR_PERM(upl), upl->upl_priority);
8171 					vm_decmp_upl_reprioritize(upl, cur_tier);
8172 					break;
8173 				}
8174 				KDBG((VMDBG_CODE(DBG_VM_PAGE_EXPEDITE)) | DBG_FUNC_NONE, VM_KERNEL_UNSLIDE_OR_PERM(upl->upl_creator), VM_KERNEL_UNSLIDE_OR_PERM(m),
8175 				    upl->upl_reprio_info[i], upl->upl_priority);
8176 				if (UPL_REPRIO_INFO_BLKNO(upl, i) != 0 && UPL_REPRIO_INFO_LEN(upl, i) != 0) {
8177 					vm_page_request_reprioritize(o, UPL_REPRIO_INFO_BLKNO(upl, i), UPL_REPRIO_INFO_LEN(upl, i), cur_tier);
8178 				}
8179 				break;
8180 			}
8181 		}
8182 		/* Check if we found any hits */
8183 		if (i != num_pages) {
8184 			break;
8185 		}
8186 	}
8187 
8188 	return;
8189 }
8190 
8191 void
8192 kdp_vm_object_sleep_find_owner(
8193 	event64_t          wait_event,
8194 	block_hint_t       wait_type,
8195 	thread_waitinfo_t *waitinfo)
8196 {
8197 	assert(wait_type >= kThreadWaitPagerInit && wait_type <= kThreadWaitPageInThrottle);
8198 	vm_object_wait_reason_t wait_reason = wait_type - kThreadWaitPagerInit;
8199 	vm_object_t object = (vm_object_t)((uintptr_t)wait_event - wait_reason);
8200 	waitinfo->context = VM_KERNEL_ADDRPERM(object);
8201 	/*
8202 	 * There is currently no non-trivial way to ascertain the thread(s)
8203 	 * currently operating on this object.
8204 	 */
8205 	waitinfo->owner = 0;
8206 }
8207 
8208 
8209 wait_result_t
8210 vm_object_sleep(
8211 	vm_object_t             object,
8212 	vm_object_wait_reason_t reason,
8213 	wait_interrupt_t        interruptible,
8214 	lck_sleep_action_t      action)
8215 {
8216 	wait_result_t wr;
8217 	block_hint_t block_hint;
8218 	event_t wait_event;
8219 
8220 	vm_object_lock_assert_exclusive(object);
8221 	assert(reason >= 0 && reason <= VM_OBJECT_EVENT_MAX);
8222 	switch (reason) {
8223 	case VM_OBJECT_EVENT_PAGER_INIT:
8224 		block_hint = kThreadWaitPagerInit;
8225 		break;
8226 	case VM_OBJECT_EVENT_PAGER_READY:
8227 		block_hint = kThreadWaitPagerReady;
8228 		break;
8229 	case VM_OBJECT_EVENT_PAGING_IN_PROGRESS:
8230 		block_hint = kThreadWaitPagingActivity;
8231 		break;
8232 	case VM_OBJECT_EVENT_MAPPING_IN_PROGRESS:
8233 		block_hint = kThreadWaitMappingInProgress;
8234 		break;
8235 	case VM_OBJECT_EVENT_UNBLOCKED:
8236 		block_hint = kThreadWaitMemoryBlocked;
8237 		break;
8238 	case VM_OBJECT_EVENT_PAGING_ONLY_IN_PROGRESS:
8239 		block_hint = kThreadWaitPagingInProgress;
8240 		break;
8241 	case VM_OBJECT_EVENT_PAGEIN_THROTTLE:
8242 		block_hint = kThreadWaitPageInThrottle;
8243 		break;
8244 	default:
8245 		panic("Unexpected wait reason %u", reason);
8246 	}
8247 	thread_set_pending_block_hint(current_thread(), block_hint);
8248 
8249 	KDBG_FILTERED(VMDBG_CODE(DBG_VM_OBJECT_SLEEP) | DBG_FUNC_START, VM_KERNEL_ADDRHIDE(object), reason);
8250 
8251 	vm_object_set_wanted(object, reason);
8252 	wait_event = (event_t)((uintptr_t)object + (uintptr_t)reason);
8253 	wr = lck_rw_sleep(&object->Lock, LCK_SLEEP_PROMOTED_PRI | action, wait_event, interruptible);
8254 
8255 	KDBG_FILTERED(VMDBG_CODE(DBG_VM_OBJECT_SLEEP) | DBG_FUNC_END, VM_KERNEL_ADDRHIDE(object), reason, wr);
8256 	return wr;
8257 }
8258 
8259 
8260 wait_result_t
8261 vm_object_paging_wait(vm_object_t object, wait_interrupt_t interruptible)
8262 {
8263 	wait_result_t wr = THREAD_NOT_WAITING;
8264 	vm_object_lock_assert_exclusive(object);
8265 	while (object->paging_in_progress != 0 ||
8266 	    object->activity_in_progress != 0) {
8267 		wr = vm_object_sleep((object),
8268 		    VM_OBJECT_EVENT_PAGING_IN_PROGRESS,
8269 		    interruptible,
8270 		    LCK_SLEEP_EXCLUSIVE);
8271 		if (wr != THREAD_AWAKENED) {
8272 			break;
8273 		}
8274 	}
8275 	return wr;
8276 }
8277 
8278 wait_result_t
8279 vm_object_paging_only_wait(vm_object_t object, wait_interrupt_t interruptible)
8280 {
8281 	wait_result_t wr = THREAD_NOT_WAITING;
8282 	vm_object_lock_assert_exclusive(object);
8283 	while (object->paging_in_progress != 0) {
8284 		wr = vm_object_sleep(object,
8285 		    VM_OBJECT_EVENT_PAGING_ONLY_IN_PROGRESS,
8286 		    interruptible,
8287 		    LCK_SLEEP_EXCLUSIVE);
8288 		if (wr != THREAD_AWAKENED) {
8289 			break;
8290 		}
8291 	}
8292 	return wr;
8293 }
8294 
8295 wait_result_t
8296 vm_object_paging_throttle_wait(vm_object_t object, wait_interrupt_t interruptible)
8297 {
8298 	wait_result_t wr = THREAD_NOT_WAITING;
8299 	vm_object_lock_assert_exclusive(object);
8300 	/*
8301 	 * TODO: consider raising the throttle limit specifically for
8302 	 * shared-cache objects, which are expected to be highly contended.
8303 	 * (rdar://127899888)
8304 	 */
8305 	while (object->paging_in_progress >= vm_object_pagein_throttle) {
8306 		wr = vm_object_sleep(object,
8307 		    VM_OBJECT_EVENT_PAGEIN_THROTTLE,
8308 		    interruptible,
8309 		    LCK_SLEEP_EXCLUSIVE);
8310 		if (wr != THREAD_AWAKENED) {
8311 			break;
8312 		}
8313 	}
8314 	return wr;
8315 }
8316 
8317 wait_result_t
8318 vm_object_mapping_wait(vm_object_t object, wait_interrupt_t interruptible)
8319 {
8320 	wait_result_t wr = THREAD_NOT_WAITING;
8321 	vm_object_lock_assert_exclusive(object);
8322 	while (object->mapping_in_progress) {
8323 		wr = vm_object_sleep(object,
8324 		    VM_OBJECT_EVENT_MAPPING_IN_PROGRESS,
8325 		    interruptible,
8326 		    LCK_SLEEP_EXCLUSIVE);
8327 		if (wr != THREAD_AWAKENED) {
8328 			break;
8329 		}
8330 	}
8331 	return wr;
8332 }
8333 
8334 void
8335 vm_object_wakeup(
8336 	vm_object_t             object,
8337 	vm_object_wait_reason_t reason)
8338 {
8339 	vm_object_lock_assert_exclusive(object);
8340 	assert(reason >= 0 && reason <= VM_OBJECT_EVENT_MAX);
8341 
8342 	if (vm_object_wanted(object, reason)) {
8343 		thread_wakeup((event_t)((uintptr_t)object + (uintptr_t)reason));
8344 	}
8345 	object->all_wanted &= ~(1 << reason);
8346 }
8347 
8348 
8349 void
8350 kdp_vm_page_sleep_find_owner(event64_t wait_event, thread_waitinfo_t *waitinfo)
8351 {
8352 	vm_page_t m = (vm_page_t)wait_event;
8353 	waitinfo->context = VM_KERNEL_ADDRPERM(m);
8354 	/*
8355 	 * There is not currently a non-trivial way to identify the thread
8356 	 * holding a page busy.
8357 	 */
8358 	waitinfo->owner = 0;
8359 }
8360 
8361 #if PAGE_SLEEP_WITH_INHERITOR
8362 static wait_result_t vm_page_sleep_with_inheritor(lck_rw_t *lck, lck_sleep_action_t lck_sleep_action, event_t event, wait_interrupt_t interruptible);
8363 #endif /* PAGE_SLEEP_WITH_INHERITOR */
8364 
8365 wait_result_t
8366 vm_page_sleep(vm_object_t object, vm_page_t m, wait_interrupt_t interruptible, lck_sleep_action_t action)
8367 {
8368 	wait_result_t ret;
8369 
8370 	KDBG_FILTERED((VMDBG_CODE(DBG_VM_PAGE_SLEEP)) | DBG_FUNC_START, VM_KERNEL_ADDRHIDE(object), m->vmp_offset, VM_KERNEL_ADDRHIDE(m));
8371 #if CONFIG_IOSCHED
8372 	if (object->io_tracking && ((m->vmp_busy == TRUE) || (m->vmp_cleaning == TRUE) || VM_PAGE_WIRED(m))) {
8373 		/*
8374 		 *  Indicates page is busy due to an I/O. Issue a reprioritize request if necessary.
8375 		 */
8376 		vm_page_handle_prio_inversion(object, m);
8377 	}
8378 #endif /* CONFIG_IOSCHED */
8379 	m->vmp_wanted = TRUE;
8380 	thread_set_pending_block_hint(current_thread(), kThreadWaitPageBusy);
8381 #if PAGE_SLEEP_WITH_INHERITOR
8382 	ret = vm_page_sleep_with_inheritor(&object->Lock, action, (event_t)m, interruptible);
8383 #else
8384 	ret = lck_rw_sleep(&object->Lock, LCK_SLEEP_PROMOTED_PRI | action, (event_t)m, interruptible);
8385 #endif
8386 	KDBG_FILTERED((VMDBG_CODE(DBG_VM_PAGE_SLEEP)) | DBG_FUNC_END, VM_KERNEL_ADDRHIDE(object), m->vmp_offset, VM_KERNEL_ADDRHIDE(m));
8387 	return ret;
8388 }
8389 
8390 void
8391 vm_page_wakeup(vm_object_t object, vm_page_t m)
8392 {
8393 	assert(m);
8394 	/*
8395 	 * The page may have been freed from its object before this wakeup is issued
8396 	 */
8397 	if (object != VM_OBJECT_NULL) {
8398 		vm_object_lock_assert_exclusive(object);
8399 	}
8400 
8401 	if (m->vmp_wanted) {
8402 		KDBG(VMDBG_CODE(DBG_VM_PAGE_WAKEUP) | DBG_FUNC_NONE,
8403 		    VM_KERNEL_ADDRHIDE(object), m->vmp_offset,
8404 		    VM_KERNEL_ADDRHIDE(m));
8405 		m->vmp_wanted = false;
8406 		thread_wakeup((event_t)m);
8407 	}
8408 }
8409 
8410 void
8411 vm_page_wakeup_done(__assert_only vm_object_t object, vm_page_t m)
8412 {
8413 	assert(object);
8414 	assert(m->vmp_busy);
8415 	vm_object_lock_assert_exclusive(object);
8416 
8417 	KDBG(VMDBG_CODE(DBG_VM_PAGE_WAKEUP_DONE) | DBG_FUNC_NONE,
8418 	    VM_KERNEL_ADDRHIDE(object), m->vmp_offset,
8419 	    VM_KERNEL_ADDRHIDE(m), m->vmp_wanted);
8420 	m->vmp_busy = false;
8421 	vm_page_wakeup(object, m);
8422 }
8423 
8424 #if PAGE_SLEEP_WITH_INHERITOR
8425 static bool page_worker_unregister_worker(event_t event, thread_t expect_th, page_worker_token_t *token);
8426 #endif /* PAGE_SLEEP_WITH_INHERITOR */
8427 
8428 /* This function duplicates all of what vm_page_wakeup_done() does and adds the option
8429  * that we're being called from vm_fault_page() in a page that is possibly boosted due to being an inheritor*/
8430 void
8431 vm_page_wakeup_done_with_inheritor(vm_object_t object __unused, vm_page_t m, page_worker_token_t *token __unused)
8432 {
8433 #if PAGE_SLEEP_WITH_INHERITOR
8434 	assert(object);
8435 	assert(m->vmp_busy);
8436 	vm_object_lock_assert_exclusive(object);
8437 
8438 	bool had_inheritor = page_worker_unregister_worker((event_t)m, current_thread(), token);
8439 
8440 	KDBG(VMDBG_CODE(DBG_VM_PAGE_WAKEUP_DONE) | DBG_FUNC_NONE,
8441 	    VM_KERNEL_ADDRHIDE(object), VM_KERNEL_ADDRHIDE(m),
8442 	    m->vmp_wanted, had_inheritor);
8443 	m->vmp_busy = FALSE;
8444 
8445 	if (m->vmp_wanted) {
8446 		m->vmp_wanted = FALSE;
8447 		if (had_inheritor) {
8448 			wakeup_all_with_inheritor((event_t)m, THREAD_AWAKENED);
8449 		} else {
8450 			thread_wakeup((event_t)m);
8451 		}
8452 	}
8453 #else /* PAGE_SLEEP_WITH_INHERITOR */
8454 	vm_page_wakeup_done(object, m);
8455 #endif /* PAGE_SLEEP_WITH_INHERITOR */
8456 }
8457 
8458 #if PAGE_SLEEP_WITH_INHERITOR
8459 
8460 /*
8461  * vm_page_sleep_with_inheritor:
8462  * The goal of this functionality is to prevent priority inversion that can occur when a low-priority
8463  * thread is stuck in the compressor and a higher priority thread waits for the same page.
8464  * Just before vm_fault_page() calls into the compressor it calls page_worker_register_worker()
8465  * this registers the calling thread as the "page worker" of this page.
8466  * When another thread then tries to vm_page_sleep() on that page, (wait for it to un-busy) the worker is found and
8467  * instead of a plain thread_block() (in lck_rw_sleep()) we do lck_rw_sleep_with_inheritor() and give the registered
8468  * worker thread as the inheritor of the priority boost.
8469  * The worker thread might have started its work on a low priority, and when a waiter was added, it got boost.
8470  * When the worker is done getting the page it calls vm_page_wakeup_done_with_inheritor() instead of
8471  * vm_page_wakeup_done() this unregisters the thread, clears the page busy bit (so that now other threads can
8472  * use this page), and wakes up any waiters waiting for that page with wakeup_all_with_inheritor(), which
8473  * removes the priority boost.
8474  *
8475  * The worker registration is done in a simple single entry per bucket hash table. A hash collision may occur
8476  * if two faulting pages end up in the same entry. In this case, the registration of the second one is going to
8477  * fail and the only repercussions of this is that it would not get the possible boost if anyone is going to wait
8478  * on it. This implementation was selected over a full hash-table to keep it simple and fast.
8479  */
8480 
8481 struct page_worker {
8482 	lck_ticket_t pw_entry_lock;
8483 	event_t pw_owner_event;
8484 	thread_t pw_current_worker;
8485 };
8486 
8487 SECURITY_READ_ONLY_LATE(uint32_t) page_worker_table_size = 0;
8488 SECURITY_READ_ONLY_LATE(static struct page_worker *)page_worker_table = NULL;
8489 SCALABLE_COUNTER_DEFINE(page_worker_hash_collisions);
8490 SCALABLE_COUNTER_DEFINE(page_worker_inheritor_sleeps);
8491 
8492 LCK_GRP_DECLARE(page_worker_table_lock_grp, "page_worker_table_locks");
8493 
8494 #define page_worker_entry_unlock(entry) \
8495 	lck_ticket_unlock(&entry->pw_entry_lock);
8496 
8497 #define PAGE_WORKER_TABLE_BUCKETS (256)
8498 
8499 void
8500 page_worker_init(void)
8501 {
8502 	page_worker_table_size = PAGE_WORKER_TABLE_BUCKETS;
8503 #if DEVELOPMENT || DEBUG
8504 	PE_parse_boot_argn("page_worker_table_size", &page_worker_table_size, sizeof(page_worker_table_size));
8505 #endif /* DEVELOPMENT || DEBUG */
8506 	/* This checks that the size is a positive power of 2, needed for the hash function */
8507 	assert(page_worker_table_size > 0 && !(page_worker_table_size & (page_worker_table_size - 1)));
8508 
8509 	page_worker_table = zalloc_permanent(page_worker_table_size * sizeof(struct page_worker), ZALIGN_PTR);
8510 	if (page_worker_table == NULL) {
8511 		panic("Page events hash table memory allocation failed!");
8512 	}
8513 	for (uint32_t i = 0; i < page_worker_table_size; ++i) {
8514 		struct page_worker* we = &(page_worker_table[i]);
8515 		lck_ticket_init(&we->pw_entry_lock, &page_worker_table_lock_grp);
8516 	}
8517 }
8518 
8519 static struct page_worker *
8520 page_worker_lock_table_entry(event_t event)
8521 {
8522 	if (page_worker_table == NULL) {
8523 		return NULL;
8524 	}
8525 	uint32_t hash = os_hash_kernel_pointer((void *)event);
8526 	uint32_t index = hash & (page_worker_table_size - 1);
8527 
8528 	struct page_worker *entry = &page_worker_table[index];
8529 
8530 	lck_ticket_lock(&entry->pw_entry_lock, &page_worker_table_lock_grp);
8531 	return entry;
8532 }
8533 
8534 /* returns a locked entry if found or added, otherwise returns NULL */
8535 static struct page_worker *
8536 page_worker_lookup(event_t event, bool try_add_missing)
8537 {
8538 	assert(event != NULL);
8539 	struct page_worker *entry = page_worker_lock_table_entry(event);
8540 	if (entry == NULL) {
8541 		/* table not initialized */
8542 		return NULL;
8543 	}
8544 	if (entry->pw_owner_event == event) {
8545 		/* found existing entry and it belongs to this event */
8546 		return entry;
8547 	}
8548 
8549 	if (try_add_missing) {
8550 		if (entry->pw_owner_event == NULL) {
8551 			/* found empty entry, take over it */
8552 			entry->pw_owner_event = event;
8553 			return entry;
8554 		}
8555 		/* didn't find the event, need to add it, but can't because it's occupied */
8556 		counter_inc(&page_worker_hash_collisions);
8557 	}
8558 	page_worker_entry_unlock(entry);
8559 	return NULL;
8560 }
8561 
8562 /* returns true if current_thread() was successfully registered as worker */
8563 void
8564 page_worker_register_worker(event_t event __unused, page_worker_token_t *out_token)
8565 {
8566 	out_token->pwt_did_register_inheritor = false;
8567 	out_token->pwt_floor_token.thread = THREAD_NULL;
8568 
8569 	struct page_worker* entry = page_worker_lookup(event, TRUE);
8570 	if (entry == NULL) {
8571 		/* failed registration due to a hash collision */
8572 		out_token->pwt_floor_token = thread_priority_floor_start();
8573 		return;
8574 	}
8575 	entry->pw_current_worker = current_thread();
8576 	/* no need to take the thread reference because this is going to get cleared in the same call of vm_page_fault() */
8577 	page_worker_entry_unlock(entry);
8578 	out_token->pwt_did_register_inheritor = true;
8579 }
8580 
8581 static bool
8582 page_worker_unregister_worker(event_t event, thread_t expect_th __unused, page_worker_token_t *token)
8583 {
8584 	struct page_worker *entry = page_worker_lookup(event, FALSE);
8585 	if (entry == NULL) {
8586 		assert(!token->pwt_did_register_inheritor);
8587 		/* did we do thread_priority_floor_start() ? */
8588 		if (token->pwt_floor_token.thread != THREAD_NULL) {
8589 			thread_priority_floor_end(&token->pwt_floor_token);
8590 		}
8591 		return false;
8592 	}
8593 	assert(token->pwt_did_register_inheritor);
8594 	assert(token->pwt_floor_token.thread == THREAD_NULL); /* we shouldn't have done thread_priority_floor_start() */
8595 	assert(entry->pw_owner_event != 0);
8596 	assert(entry->pw_current_worker == expect_th);
8597 	entry->pw_owner_event = 0;
8598 	entry->pw_current_worker = THREAD_NULL;
8599 	page_worker_entry_unlock(entry); /* was locked in page_worker_lookup() */
8600 	return true;
8601 }
8602 
8603 static wait_result_t
8604 vm_page_sleep_with_inheritor(lck_rw_t *lck, lck_sleep_action_t action, event_t event, wait_interrupt_t interruptible)
8605 {
8606 	struct page_worker *entry = page_worker_lookup(event, FALSE);
8607 	thread_t inheritor = THREAD_NULL;
8608 	if (entry != NULL) {
8609 		inheritor = entry->pw_current_worker;
8610 		page_worker_entry_unlock(entry);
8611 	}
8612 
8613 	wait_result_t ret;
8614 	if (inheritor == THREAD_NULL) {
8615 		/* no worker was found */
8616 		ret = lck_rw_sleep(lck, LCK_SLEEP_PROMOTED_PRI | action, event, interruptible);
8617 	} else {
8618 		counter_inc(&page_worker_inheritor_sleeps);
8619 		ret = lck_rw_sleep_with_inheritor(lck, action, event, inheritor, interruptible, TIMEOUT_WAIT_FOREVER);
8620 	}
8621 
8622 	return ret;
8623 }
8624 #endif  /* PAGE_SLEEP_WITH_INHERITOR */
8625 
8626 static void
8627 io_reprioritize(mpsc_queue_chain_t elm, __assert_only mpsc_daemon_queue_t dq)
8628 {
8629 	assert3p(dq, ==, &io_reprioritize_q);
8630 	io_reprioritize_req_t req = mpsc_queue_element(elm, struct io_reprioritize_req, iorr_elm);
8631 	vnode_pager_issue_reprioritize_io(req->devvp, req->blkno, req->len, req->priority);
8632 	zfree(io_reprioritize_req_zone, req);
8633 }
8634 
8635 #endif /* CONFIG_IOSCHED */
8636 
8637 #if VM_OBJECT_ACCESS_TRACKING
8638 void
8639 vm_object_access_tracking(
8640 	vm_object_t     object,
8641 	int             *access_tracking_p,
8642 	uint32_t        *access_tracking_reads_p,
8643 	uint32_t        *access_tracking_writes_p)
8644 {
8645 	int     access_tracking;
8646 
8647 	access_tracking = !!*access_tracking_p;
8648 
8649 	vm_object_lock(object);
8650 	*access_tracking_p = object->access_tracking;
8651 	if (access_tracking_reads_p) {
8652 		*access_tracking_reads_p = object->access_tracking_reads;
8653 	}
8654 	if (access_tracking_writes_p) {
8655 		*access_tracking_writes_p = object->access_tracking_writes;
8656 	}
8657 	object->access_tracking = access_tracking;
8658 	object->access_tracking_reads = 0;
8659 	object->access_tracking_writes = 0;
8660 	vm_object_unlock(object);
8661 
8662 	if (access_tracking) {
8663 		vm_object_pmap_protect_options(object,
8664 		    0,
8665 		    object->vo_size,
8666 		    PMAP_NULL,
8667 		    PAGE_SIZE,
8668 		    0,
8669 		    VM_PROT_NONE,
8670 		    0);
8671 	}
8672 }
8673 #endif /* VM_OBJECT_ACCESS_TRACKING */
8674 
8675 void
8676 vm_object_ledger_tag_ledgers(
8677 	vm_object_t     object,
8678 	int             *ledger_idx_volatile,
8679 	int             *ledger_idx_nonvolatile,
8680 	int             *ledger_idx_volatile_compressed,
8681 	int             *ledger_idx_nonvolatile_compressed,
8682 	int             *ledger_idx_composite,
8683 	int             *ledger_idx_external_wired,
8684 	boolean_t       *do_footprint)
8685 {
8686 	assert(object->shadow == VM_OBJECT_NULL);
8687 
8688 	*ledger_idx_volatile = -1;
8689 	*ledger_idx_nonvolatile = -1;
8690 	*ledger_idx_volatile_compressed = -1;
8691 	*ledger_idx_nonvolatile_compressed = -1;
8692 	*ledger_idx_composite = -1;
8693 	*ledger_idx_external_wired = -1;
8694 	*do_footprint = !object->vo_no_footprint;
8695 
8696 	if (!object->internal) {
8697 		switch (object->vo_ledger_tag) {
8698 		case VM_LEDGER_TAG_DEFAULT:
8699 			if (*do_footprint) {
8700 				*ledger_idx_external_wired = task_ledgers.tagged_footprint;
8701 			} else {
8702 				*ledger_idx_external_wired = task_ledgers.tagged_nofootprint;
8703 			}
8704 			break;
8705 		case VM_LEDGER_TAG_NETWORK:
8706 			*do_footprint = FALSE;
8707 			*ledger_idx_external_wired = task_ledgers.network_nonvolatile;
8708 			break;
8709 		case VM_LEDGER_TAG_MEDIA:
8710 			if (*do_footprint) {
8711 				*ledger_idx_external_wired = task_ledgers.media_footprint;
8712 			} else {
8713 				*ledger_idx_external_wired = task_ledgers.media_nofootprint;
8714 			}
8715 			break;
8716 		case VM_LEDGER_TAG_GRAPHICS:
8717 			if (*do_footprint) {
8718 				*ledger_idx_external_wired = task_ledgers.graphics_footprint;
8719 			} else {
8720 				*ledger_idx_external_wired = task_ledgers.graphics_nofootprint;
8721 			}
8722 			break;
8723 		case VM_LEDGER_TAG_NEURAL:
8724 			*ledger_idx_composite = task_ledgers.neural_nofootprint_total;
8725 			if (*do_footprint) {
8726 				*ledger_idx_external_wired = task_ledgers.neural_footprint;
8727 			} else {
8728 				*ledger_idx_external_wired = task_ledgers.neural_nofootprint;
8729 			}
8730 			break;
8731 		case VM_LEDGER_TAG_NONE:
8732 		default:
8733 			panic("%s: external object %p has unsupported ledger_tag %d",
8734 			    __FUNCTION__, object, object->vo_ledger_tag);
8735 		}
8736 		return;
8737 	}
8738 
8739 	assert(object->internal);
8740 	switch (object->vo_ledger_tag) {
8741 	case VM_LEDGER_TAG_NONE:
8742 		/*
8743 		 * Regular purgeable memory:
8744 		 * counts in footprint only when nonvolatile.
8745 		 */
8746 		*do_footprint = TRUE;
8747 		assert(object->purgable != VM_PURGABLE_DENY);
8748 		*ledger_idx_volatile = task_ledgers.purgeable_volatile;
8749 		*ledger_idx_nonvolatile = task_ledgers.purgeable_nonvolatile;
8750 		*ledger_idx_volatile_compressed = task_ledgers.purgeable_volatile_compressed;
8751 		*ledger_idx_nonvolatile_compressed = task_ledgers.purgeable_nonvolatile_compressed;
8752 		break;
8753 	case VM_LEDGER_TAG_DEFAULT:
8754 		/*
8755 		 * "default" tagged memory:
8756 		 * counts in footprint only when nonvolatile and not marked
8757 		 * as "no_footprint".
8758 		 */
8759 		*ledger_idx_volatile = task_ledgers.tagged_nofootprint;
8760 		*ledger_idx_volatile_compressed = task_ledgers.tagged_nofootprint_compressed;
8761 		if (*do_footprint) {
8762 			*ledger_idx_nonvolatile = task_ledgers.tagged_footprint;
8763 			*ledger_idx_nonvolatile_compressed = task_ledgers.tagged_footprint_compressed;
8764 		} else {
8765 			*ledger_idx_nonvolatile = task_ledgers.tagged_nofootprint;
8766 			*ledger_idx_nonvolatile_compressed = task_ledgers.tagged_nofootprint_compressed;
8767 		}
8768 		break;
8769 	case VM_LEDGER_TAG_NETWORK:
8770 		/*
8771 		 * "network" tagged memory:
8772 		 * never counts in footprint.
8773 		 */
8774 		*do_footprint = FALSE;
8775 		*ledger_idx_volatile = task_ledgers.network_volatile;
8776 		*ledger_idx_volatile_compressed = task_ledgers.network_volatile_compressed;
8777 		*ledger_idx_nonvolatile = task_ledgers.network_nonvolatile;
8778 		*ledger_idx_nonvolatile_compressed = task_ledgers.network_nonvolatile_compressed;
8779 		break;
8780 	case VM_LEDGER_TAG_MEDIA:
8781 		/*
8782 		 * "media" tagged memory:
8783 		 * counts in footprint only when nonvolatile and not marked
8784 		 * as "no footprint".
8785 		 */
8786 		*ledger_idx_volatile = task_ledgers.media_nofootprint;
8787 		*ledger_idx_volatile_compressed = task_ledgers.media_nofootprint_compressed;
8788 		if (*do_footprint) {
8789 			*ledger_idx_nonvolatile = task_ledgers.media_footprint;
8790 			*ledger_idx_nonvolatile_compressed = task_ledgers.media_footprint_compressed;
8791 		} else {
8792 			*ledger_idx_nonvolatile = task_ledgers.media_nofootprint;
8793 			*ledger_idx_nonvolatile_compressed = task_ledgers.media_nofootprint_compressed;
8794 		}
8795 		break;
8796 	case VM_LEDGER_TAG_GRAPHICS:
8797 		/*
8798 		 * "graphics" tagged memory:
8799 		 * counts in footprint only when nonvolatile and not marked
8800 		 * as "no footprint".
8801 		 */
8802 		*ledger_idx_volatile = task_ledgers.graphics_nofootprint;
8803 		*ledger_idx_volatile_compressed = task_ledgers.graphics_nofootprint_compressed;
8804 		if (*do_footprint) {
8805 			*ledger_idx_nonvolatile = task_ledgers.graphics_footprint;
8806 			*ledger_idx_nonvolatile_compressed = task_ledgers.graphics_footprint_compressed;
8807 		} else {
8808 			*ledger_idx_nonvolatile = task_ledgers.graphics_nofootprint;
8809 			*ledger_idx_nonvolatile_compressed = task_ledgers.graphics_nofootprint_compressed;
8810 		}
8811 		break;
8812 	case VM_LEDGER_TAG_NEURAL:
8813 		/*
8814 		 * "neural" tagged memory:
8815 		 * counts in footprint only when nonvolatile and not marked
8816 		 * as "no footprint".
8817 		 */
8818 		*ledger_idx_composite = task_ledgers.neural_nofootprint_total;
8819 		*ledger_idx_volatile = task_ledgers.neural_nofootprint;
8820 		*ledger_idx_volatile_compressed = task_ledgers.neural_nofootprint_compressed;
8821 		if (*do_footprint) {
8822 			*ledger_idx_nonvolatile = task_ledgers.neural_footprint;
8823 			*ledger_idx_nonvolatile_compressed = task_ledgers.neural_footprint_compressed;
8824 		} else {
8825 			*ledger_idx_nonvolatile = task_ledgers.neural_nofootprint;
8826 			*ledger_idx_nonvolatile_compressed = task_ledgers.neural_nofootprint_compressed;
8827 		}
8828 		break;
8829 	default:
8830 		panic("%s: object %p has unsupported ledger_tag %d",
8831 		    __FUNCTION__, object, object->vo_ledger_tag);
8832 	}
8833 }
8834 
8835 kern_return_t
8836 vm_object_ownership_change(
8837 	vm_object_t     object,
8838 	int             new_ledger_tag,
8839 	task_t          new_owner,
8840 	int             new_ledger_flags,
8841 	boolean_t       old_task_objq_locked)
8842 {
8843 	int             old_ledger_tag;
8844 	task_t          old_owner;
8845 	int             resident_count, wired_count;
8846 	unsigned int    compressed_count;
8847 	int             ledger_idx_volatile;
8848 	int             ledger_idx_nonvolatile;
8849 	int             ledger_idx_volatile_compressed;
8850 	int             ledger_idx_nonvolatile_compressed;
8851 	int             ledger_idx;
8852 	int             ledger_idx_compressed;
8853 	int             ledger_idx_composite;
8854 	int             ledger_idx_external_wired;
8855 	boolean_t       do_footprint, old_no_footprint, new_no_footprint;
8856 	boolean_t       new_task_objq_locked;
8857 
8858 	vm_object_lock_assert_exclusive(object);
8859 
8860 	if (new_owner != VM_OBJECT_OWNER_DISOWNED &&
8861 	    new_owner != TASK_NULL) {
8862 		if (new_ledger_tag == VM_LEDGER_TAG_NONE &&
8863 		    object->purgable == VM_PURGABLE_DENY) {
8864 			/* non-purgeable memory must have a valid non-zero ledger tag */
8865 			return KERN_INVALID_ARGUMENT;
8866 		}
8867 		if (!object->internal
8868 		    && !memory_object_is_vnode_pager(object->pager)) {
8869 			/* non-file-backed "external" objects can't be owned */
8870 			return KERN_INVALID_ARGUMENT;
8871 		}
8872 	}
8873 	if (new_owner == VM_OBJECT_OWNER_UNCHANGED) {
8874 		/* leave owner unchanged */
8875 		new_owner = VM_OBJECT_OWNER(object);
8876 	}
8877 	if (new_ledger_tag == VM_LEDGER_TAG_UNCHANGED) {
8878 		/* leave ledger_tag unchanged */
8879 		new_ledger_tag = object->vo_ledger_tag;
8880 	}
8881 	if (new_ledger_tag < 0 ||
8882 	    new_ledger_tag > VM_LEDGER_TAG_MAX) {
8883 		return KERN_INVALID_ARGUMENT;
8884 	}
8885 	if (new_ledger_flags & ~VM_LEDGER_FLAGS_ALL) {
8886 		return KERN_INVALID_ARGUMENT;
8887 	}
8888 	if (object->internal &&
8889 	    object->vo_ledger_tag == VM_LEDGER_TAG_NONE &&
8890 	    object->purgable == VM_PURGABLE_DENY) {
8891 		/*
8892 		 * This VM object is neither ledger-tagged nor purgeable.
8893 		 * We can convert it to "ledger tag" ownership iff it
8894 		 * has not been used at all yet (no resident pages and
8895 		 * no pager) and it's going to be assigned to a valid task.
8896 		 */
8897 		if (object->resident_page_count != 0 ||
8898 		    object->pager != NULL ||
8899 		    object->pager_created ||
8900 		    os_ref_get_count_raw(&object->ref_count) != 1 ||
8901 		    object->vo_owner != TASK_NULL ||
8902 		    object->copy_strategy != MEMORY_OBJECT_COPY_NONE ||
8903 		    new_owner == TASK_NULL) {
8904 			return KERN_FAILURE;
8905 		}
8906 	}
8907 
8908 	if (new_ledger_flags & VM_LEDGER_FLAG_NO_FOOTPRINT) {
8909 		new_no_footprint = TRUE;
8910 	} else {
8911 		new_no_footprint = FALSE;
8912 	}
8913 #if __arm64__
8914 	if (!new_no_footprint &&
8915 	    object->purgable != VM_PURGABLE_DENY &&
8916 	    new_owner != TASK_NULL &&
8917 	    new_owner != VM_OBJECT_OWNER_DISOWNED &&
8918 	    new_owner->task_legacy_footprint) {
8919 		/*
8920 		 * This task has been granted "legacy footprint" and should
8921 		 * not be charged for its IOKit purgeable memory.  Since we
8922 		 * might now change the accounting of such memory to the
8923 		 * "graphics" ledger, for example, give it the "no footprint"
8924 		 * option.
8925 		 */
8926 		new_no_footprint = TRUE;
8927 	}
8928 #endif /* __arm64__ */
8929 	assert(object->copy_strategy != MEMORY_OBJECT_COPY_SYMMETRIC);
8930 	assert(object->shadow == VM_OBJECT_NULL);
8931 	if (object->internal) {
8932 		assert(object->copy_strategy == MEMORY_OBJECT_COPY_NONE);
8933 		assert(object->vo_copy == VM_OBJECT_NULL);
8934 	}
8935 
8936 	old_ledger_tag = object->vo_ledger_tag;
8937 	old_no_footprint = object->vo_no_footprint;
8938 	old_owner = VM_OBJECT_OWNER(object);
8939 
8940 	if (__improbable(vm_debug_events)) {
8941 		DTRACE_VM8(object_ownership_change,
8942 		    vm_object_t, object,
8943 		    task_t, old_owner,
8944 		    int, old_ledger_tag,
8945 		    int, old_no_footprint,
8946 		    task_t, new_owner,
8947 		    int, new_ledger_tag,
8948 		    int, new_no_footprint,
8949 		    int, VM_OBJECT_ID(object));
8950 	}
8951 
8952 	resident_count = object->resident_page_count - object->wired_page_count;
8953 	wired_count = object->wired_page_count;
8954 	if (object->internal) {
8955 		compressed_count = vm_compressor_pager_get_count(object->pager);
8956 	} else {
8957 		compressed_count = 0;
8958 	}
8959 
8960 	/*
8961 	 * Deal with the old owner and/or ledger tag, if needed.
8962 	 */
8963 	if (old_owner != TASK_NULL &&
8964 	    ((old_owner != new_owner)           /* new owner ... */
8965 	    ||                                  /* ... or ... */
8966 	    (old_no_footprint != new_no_footprint) /* new "no_footprint" */
8967 	    ||                                  /* ... or ... */
8968 	    old_ledger_tag != new_ledger_tag)) { /* ... new ledger */
8969 		/*
8970 		 * Take this object off of the old owner's ledgers.
8971 		 */
8972 		vm_object_ledger_tag_ledgers(object,
8973 		    &ledger_idx_volatile,
8974 		    &ledger_idx_nonvolatile,
8975 		    &ledger_idx_volatile_compressed,
8976 		    &ledger_idx_nonvolatile_compressed,
8977 		    &ledger_idx_composite,
8978 		    &ledger_idx_external_wired,
8979 		    &do_footprint);
8980 		if (object->internal) {
8981 			if (object->purgable == VM_PURGABLE_VOLATILE ||
8982 			    object->purgable == VM_PURGABLE_EMPTY) {
8983 				ledger_idx = ledger_idx_volatile;
8984 				ledger_idx_compressed = ledger_idx_volatile_compressed;
8985 			} else {
8986 				ledger_idx = ledger_idx_nonvolatile;
8987 				ledger_idx_compressed = ledger_idx_nonvolatile_compressed;
8988 			}
8989 			if (resident_count) {
8990 				/*
8991 				 * Adjust the appropriate old owners's ledgers by the
8992 				 * number of resident pages.
8993 				 */
8994 				ledger_debit(old_owner->ledger,
8995 				    ledger_idx,
8996 				    ptoa_64(resident_count));
8997 				/* adjust old owner's footprint */
8998 				if (object->purgable != VM_PURGABLE_VOLATILE &&
8999 				    object->purgable != VM_PURGABLE_EMPTY) {
9000 					if (do_footprint) {
9001 						ledger_debit(old_owner->ledger,
9002 						    task_ledgers.phys_footprint,
9003 						    ptoa_64(resident_count));
9004 					} else if (ledger_idx_composite != -1) {
9005 						ledger_debit(old_owner->ledger,
9006 						    ledger_idx_composite,
9007 						    ptoa_64(resident_count));
9008 					}
9009 				}
9010 			}
9011 			if (wired_count) {
9012 				/* wired pages are always nonvolatile */
9013 				ledger_debit(old_owner->ledger,
9014 				    ledger_idx_nonvolatile,
9015 				    ptoa_64(wired_count));
9016 				if (do_footprint) {
9017 					ledger_debit(old_owner->ledger,
9018 					    task_ledgers.phys_footprint,
9019 					    ptoa_64(wired_count));
9020 				} else if (ledger_idx_composite != -1) {
9021 					ledger_debit(old_owner->ledger,
9022 					    ledger_idx_composite,
9023 					    ptoa_64(wired_count));
9024 				}
9025 			}
9026 			if (compressed_count) {
9027 				/*
9028 				 * Adjust the appropriate old owner's ledgers
9029 				 * by the number of compressed pages.
9030 				 */
9031 				ledger_debit(old_owner->ledger,
9032 				    ledger_idx_compressed,
9033 				    ptoa_64(compressed_count));
9034 				if (object->purgable != VM_PURGABLE_VOLATILE &&
9035 				    object->purgable != VM_PURGABLE_EMPTY) {
9036 					if (do_footprint) {
9037 						ledger_debit(old_owner->ledger,
9038 						    task_ledgers.phys_footprint,
9039 						    ptoa_64(compressed_count));
9040 					} else if (ledger_idx_composite != -1) {
9041 						ledger_debit(old_owner->ledger,
9042 						    ledger_idx_composite,
9043 						    ptoa_64(compressed_count));
9044 					}
9045 				}
9046 			}
9047 		} else {
9048 			/* external but owned object: count wired pages */
9049 			if (wired_count) {
9050 				ledger_debit(old_owner->ledger,
9051 				    ledger_idx_external_wired,
9052 				    ptoa_64(wired_count));
9053 				if (do_footprint) {
9054 					ledger_debit(old_owner->ledger,
9055 					    task_ledgers.phys_footprint,
9056 					    ptoa_64(wired_count));
9057 				} else if (ledger_idx_composite != -1) {
9058 					ledger_debit(old_owner->ledger,
9059 					    ledger_idx_composite,
9060 					    ptoa_64(wired_count));
9061 				}
9062 			}
9063 		}
9064 		if (old_owner != new_owner) {
9065 			/* remove object from old_owner's list of owned objects */
9066 			DTRACE_VM2(object_owner_remove,
9067 			    vm_object_t, object,
9068 			    task_t, old_owner);
9069 			if (!old_task_objq_locked) {
9070 				task_objq_lock(old_owner);
9071 			}
9072 			old_owner->task_owned_objects--;
9073 			queue_remove(&old_owner->task_objq, object,
9074 			    vm_object_t, task_objq);
9075 			switch (object->purgable) {
9076 			case VM_PURGABLE_NONVOLATILE:
9077 			case VM_PURGABLE_EMPTY:
9078 				vm_purgeable_nonvolatile_owner_update(old_owner,
9079 				    -1);
9080 				break;
9081 			case VM_PURGABLE_VOLATILE:
9082 				vm_purgeable_volatile_owner_update(old_owner,
9083 				    -1);
9084 				break;
9085 			default:
9086 				break;
9087 			}
9088 			if (!old_task_objq_locked) {
9089 				task_objq_unlock(old_owner);
9090 			}
9091 		}
9092 	}
9093 
9094 	/*
9095 	 * Switch to new ledger tag and/or owner.
9096 	 */
9097 
9098 	new_task_objq_locked = FALSE;
9099 	if (new_owner != old_owner &&
9100 	    new_owner != TASK_NULL &&
9101 	    new_owner != VM_OBJECT_OWNER_DISOWNED) {
9102 		/*
9103 		 * If the new owner is not accepting new objects ("disowning"),
9104 		 * the object becomes "disowned" and will be added to
9105 		 * the kernel's task_objq.
9106 		 *
9107 		 * Check first without locking, to avoid blocking while the
9108 		 * task is disowning its objects.
9109 		 */
9110 		if (new_owner->task_objects_disowning) {
9111 			new_owner = VM_OBJECT_OWNER_DISOWNED;
9112 		} else {
9113 			task_objq_lock(new_owner);
9114 			/* check again now that we have the lock */
9115 			if (new_owner->task_objects_disowning) {
9116 				new_owner = VM_OBJECT_OWNER_DISOWNED;
9117 				task_objq_unlock(new_owner);
9118 			} else {
9119 				new_task_objq_locked = TRUE;
9120 			}
9121 		}
9122 	}
9123 
9124 	object->vo_ledger_tag = new_ledger_tag;
9125 	object->vo_owner = new_owner;
9126 	object->vo_no_footprint = new_no_footprint;
9127 
9128 	if (new_owner == VM_OBJECT_OWNER_DISOWNED) {
9129 		/*
9130 		 * Disowned objects are added to the kernel's task_objq but
9131 		 * are marked as owned by "VM_OBJECT_OWNER_DISOWNED" to
9132 		 * differentiate them from objects intentionally owned by
9133 		 * the kernel.
9134 		 */
9135 		assert(old_owner != kernel_task);
9136 		new_owner = kernel_task;
9137 		assert(!new_task_objq_locked);
9138 		task_objq_lock(new_owner);
9139 		new_task_objq_locked = TRUE;
9140 	}
9141 
9142 	/*
9143 	 * Deal with the new owner and/or ledger tag, if needed.
9144 	 */
9145 	if (new_owner != TASK_NULL &&
9146 	    ((new_owner != old_owner)           /* new owner ... */
9147 	    ||                                  /* ... or ... */
9148 	    (new_no_footprint != old_no_footprint) /* ... new "no_footprint" */
9149 	    ||                                  /* ... or ... */
9150 	    new_ledger_tag != old_ledger_tag)) { /* ... new ledger */
9151 		/*
9152 		 * Add this object to the new owner's ledgers.
9153 		 */
9154 		vm_object_ledger_tag_ledgers(object,
9155 		    &ledger_idx_volatile,
9156 		    &ledger_idx_nonvolatile,
9157 		    &ledger_idx_volatile_compressed,
9158 		    &ledger_idx_nonvolatile_compressed,
9159 		    &ledger_idx_composite,
9160 		    &ledger_idx_external_wired,
9161 		    &do_footprint);
9162 		if (object->internal) {
9163 			if (object->purgable == VM_PURGABLE_VOLATILE ||
9164 			    object->purgable == VM_PURGABLE_EMPTY) {
9165 				ledger_idx = ledger_idx_volatile;
9166 				ledger_idx_compressed = ledger_idx_volatile_compressed;
9167 			} else {
9168 				ledger_idx = ledger_idx_nonvolatile;
9169 				ledger_idx_compressed = ledger_idx_nonvolatile_compressed;
9170 			}
9171 			if (resident_count) {
9172 				/*
9173 				 * Adjust the appropriate new owners's ledgers by the
9174 				 * number of resident pages.
9175 				 */
9176 				ledger_credit(new_owner->ledger,
9177 				    ledger_idx,
9178 				    ptoa_64(resident_count));
9179 				/* adjust new owner's footprint */
9180 				if (object->purgable != VM_PURGABLE_VOLATILE &&
9181 				    object->purgable != VM_PURGABLE_EMPTY) {
9182 					if (do_footprint) {
9183 						ledger_credit(new_owner->ledger,
9184 						    task_ledgers.phys_footprint,
9185 						    ptoa_64(resident_count));
9186 					} else if (ledger_idx_composite != -1) {
9187 						ledger_credit(new_owner->ledger,
9188 						    ledger_idx_composite,
9189 						    ptoa_64(resident_count));
9190 					}
9191 				}
9192 			}
9193 			if (wired_count) {
9194 				/* wired pages are always nonvolatile */
9195 				ledger_credit(new_owner->ledger,
9196 				    ledger_idx_nonvolatile,
9197 				    ptoa_64(wired_count));
9198 				if (do_footprint) {
9199 					ledger_credit(new_owner->ledger,
9200 					    task_ledgers.phys_footprint,
9201 					    ptoa_64(wired_count));
9202 				} else if (ledger_idx_composite != -1) {
9203 					ledger_credit(new_owner->ledger,
9204 					    ledger_idx_composite,
9205 					    ptoa_64(wired_count));
9206 				}
9207 			}
9208 			if (compressed_count) {
9209 				/*
9210 				 * Adjust the new owner's ledgers by the number of
9211 				 * compressed pages.
9212 				 */
9213 				ledger_credit(new_owner->ledger,
9214 				    ledger_idx_compressed,
9215 				    ptoa_64(compressed_count));
9216 				if (object->purgable != VM_PURGABLE_VOLATILE &&
9217 				    object->purgable != VM_PURGABLE_EMPTY) {
9218 					if (do_footprint) {
9219 						ledger_credit(new_owner->ledger,
9220 						    task_ledgers.phys_footprint,
9221 						    ptoa_64(compressed_count));
9222 					} else if (ledger_idx_composite != -1) {
9223 						ledger_credit(new_owner->ledger,
9224 						    ledger_idx_composite,
9225 						    ptoa_64(compressed_count));
9226 					}
9227 				}
9228 			}
9229 		} else {
9230 			/* external but owned object: count wired pages */
9231 			if (wired_count) {
9232 				ledger_credit(new_owner->ledger,
9233 				    ledger_idx_external_wired,
9234 				    ptoa_64(wired_count));
9235 				if (do_footprint) {
9236 					ledger_credit(new_owner->ledger,
9237 					    task_ledgers.phys_footprint,
9238 					    ptoa_64(wired_count));
9239 				} else if (ledger_idx_composite != -1) {
9240 					ledger_credit(new_owner->ledger,
9241 					    ledger_idx_composite,
9242 					    ptoa_64(wired_count));
9243 				}
9244 			}
9245 		}
9246 		if (new_owner != old_owner) {
9247 			/* add object to new_owner's list of owned objects */
9248 			DTRACE_VM2(object_owner_add,
9249 			    vm_object_t, object,
9250 			    task_t, new_owner);
9251 			assert(new_task_objq_locked);
9252 			new_owner->task_owned_objects++;
9253 			queue_enter(&new_owner->task_objq, object,
9254 			    vm_object_t, task_objq);
9255 			switch (object->purgable) {
9256 			case VM_PURGABLE_NONVOLATILE:
9257 			case VM_PURGABLE_EMPTY:
9258 				vm_purgeable_nonvolatile_owner_update(new_owner,
9259 				    +1);
9260 				break;
9261 			case VM_PURGABLE_VOLATILE:
9262 				vm_purgeable_volatile_owner_update(new_owner,
9263 				    +1);
9264 				break;
9265 			default:
9266 				break;
9267 			}
9268 		}
9269 	}
9270 
9271 	if (new_task_objq_locked) {
9272 		task_objq_unlock(new_owner);
9273 	}
9274 
9275 	return KERN_SUCCESS;
9276 }
9277 
9278 void
9279 vm_owned_objects_disown(
9280 	task_t  task)
9281 {
9282 	vm_object_t     next_object;
9283 	vm_object_t     object;
9284 	int             collisions;
9285 	kern_return_t   kr;
9286 
9287 	if (task == NULL) {
9288 		return;
9289 	}
9290 
9291 	collisions = 0;
9292 
9293 again:
9294 	if (task->task_objects_disowned) {
9295 		/* task has already disowned its owned objects */
9296 		assert(task->task_volatile_objects == 0);
9297 		assert(task->task_nonvolatile_objects == 0);
9298 		assert(task->task_owned_objects == 0);
9299 		return;
9300 	}
9301 
9302 	task_objq_lock(task);
9303 
9304 	task->task_objects_disowning = TRUE;
9305 
9306 	for (object = (vm_object_t) queue_first(&task->task_objq);
9307 	    !queue_end(&task->task_objq, (queue_entry_t) object);
9308 	    object = next_object) {
9309 		if (task->task_nonvolatile_objects == 0 &&
9310 		    task->task_volatile_objects == 0 &&
9311 		    task->task_owned_objects == 0) {
9312 			/* no more objects owned by "task" */
9313 			break;
9314 		}
9315 
9316 		next_object = (vm_object_t) queue_next(&object->task_objq);
9317 
9318 #if DEBUG
9319 		assert(object->vo_purgeable_volatilizer == NULL);
9320 #endif /* DEBUG */
9321 		assert(object->vo_owner == task);
9322 		if (!vm_object_lock_try(object)) {
9323 			task_objq_unlock(task);
9324 			mutex_pause(collisions++);
9325 			goto again;
9326 		}
9327 		/* transfer ownership to the kernel */
9328 		assert(VM_OBJECT_OWNER(object) != kernel_task);
9329 		kr = vm_object_ownership_change(
9330 			object,
9331 			object->vo_ledger_tag, /* unchanged */
9332 			VM_OBJECT_OWNER_DISOWNED, /* new owner */
9333 			0, /* new_ledger_flags */
9334 			TRUE);  /* old_owner->task_objq locked */
9335 		assert(kr == KERN_SUCCESS);
9336 		assert(object->vo_owner == VM_OBJECT_OWNER_DISOWNED);
9337 		vm_object_unlock(object);
9338 	}
9339 
9340 	if (__improbable(task->task_owned_objects != 0)) {
9341 		panic("%s(%p): volatile=%d nonvolatile=%d owned=%d q=%p q_first=%p q_last=%p",
9342 		    __FUNCTION__,
9343 		    task,
9344 		    task->task_volatile_objects,
9345 		    task->task_nonvolatile_objects,
9346 		    task->task_owned_objects,
9347 		    &task->task_objq,
9348 		    queue_first(&task->task_objq),
9349 		    queue_last(&task->task_objq));
9350 	}
9351 
9352 	/* there shouldn't be any objects owned by task now */
9353 	assert(task->task_volatile_objects == 0);
9354 	assert(task->task_nonvolatile_objects == 0);
9355 	assert(task->task_owned_objects == 0);
9356 	assert(task->task_objects_disowning);
9357 
9358 	/* and we don't need to try and disown again */
9359 	task->task_objects_disowned = TRUE;
9360 
9361 	task_objq_unlock(task);
9362 }
9363 
9364 void
9365 vm_object_wired_page_update_ledgers(
9366 	vm_object_t object,
9367 	int64_t wired_delta)
9368 {
9369 	task_t owner;
9370 
9371 	vm_object_lock_assert_exclusive(object);
9372 	if (wired_delta == 0) {
9373 		/* no change in number of wired pages */
9374 		return;
9375 	}
9376 	if (object->internal) {
9377 		/* no extra accounting needed for internal objects */
9378 		return;
9379 	}
9380 	if (!object->vo_ledger_tag) {
9381 		/* external object but not owned: no extra accounting */
9382 		return;
9383 	}
9384 
9385 	/*
9386 	 * For an explicitly-owned external VM object, account for
9387 	 * wired pages in one of the owner's ledgers.
9388 	 */
9389 	owner = VM_OBJECT_OWNER(object);
9390 	if (owner) {
9391 		int ledger_idx_volatile;
9392 		int ledger_idx_nonvolatile;
9393 		int ledger_idx_volatile_compressed;
9394 		int ledger_idx_nonvolatile_compressed;
9395 		int ledger_idx_composite;
9396 		int ledger_idx_external_wired;
9397 		boolean_t do_footprint;
9398 
9399 		/* ask which ledgers need an update */
9400 		vm_object_ledger_tag_ledgers(object,
9401 		    &ledger_idx_volatile,
9402 		    &ledger_idx_nonvolatile,
9403 		    &ledger_idx_volatile_compressed,
9404 		    &ledger_idx_nonvolatile_compressed,
9405 		    &ledger_idx_composite,
9406 		    &ledger_idx_external_wired,
9407 		    &do_footprint);
9408 		if (wired_delta > 0) {
9409 			/* more external wired bytes */
9410 			ledger_credit(owner->ledger,
9411 			    ledger_idx_external_wired,
9412 			    ptoa(wired_delta));
9413 			if (do_footprint) {
9414 				/* more footprint */
9415 				ledger_credit(owner->ledger,
9416 				    task_ledgers.phys_footprint,
9417 				    ptoa(wired_delta));
9418 			} else if (ledger_idx_composite != -1) {
9419 				ledger_credit(owner->ledger,
9420 				    ledger_idx_composite,
9421 				    ptoa(wired_delta));
9422 			}
9423 		} else {
9424 			/* less external wired bytes */
9425 			ledger_debit(owner->ledger,
9426 			    ledger_idx_external_wired,
9427 			    ptoa(-wired_delta));
9428 			if (do_footprint) {
9429 				/* more footprint */
9430 				ledger_debit(owner->ledger,
9431 				    task_ledgers.phys_footprint,
9432 				    ptoa(-wired_delta));
9433 			} else if (ledger_idx_composite != -1) {
9434 				ledger_debit(owner->ledger,
9435 				    ledger_idx_composite,
9436 				    ptoa(-wired_delta));
9437 			}
9438 		}
9439 	}
9440 }
9441