1 /*-
2 * SPDX-License-Identifier: (BSD-3-Clause AND MIT-CMU)
3 *
4 * Copyright (c) 1991 Regents of the University of California.
5 * All rights reserved.
6 * Copyright (c) 1998 Matthew Dillon. All Rights Reserved.
7 *
8 * This code is derived from software contributed to Berkeley by
9 * The Mach Operating System project at Carnegie-Mellon University.
10 *
11 * Redistribution and use in source and binary forms, with or without
12 * modification, are permitted provided that the following conditions
13 * are met:
14 * 1. Redistributions of source code must retain the above copyright
15 * notice, this list of conditions and the following disclaimer.
16 * 2. Redistributions in binary form must reproduce the above copyright
17 * notice, this list of conditions and the following disclaimer in the
18 * documentation and/or other materials provided with the distribution.
19 * 3. Neither the name of the University nor the names of its contributors
20 * may be used to endorse or promote products derived from this software
21 * without specific prior written permission.
22 *
23 * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
24 * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
25 * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
26 * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
27 * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
28 * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
29 * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
30 * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
31 * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
32 * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
33 * SUCH DAMAGE.
34 */
35
36 /*-
37 * Copyright (c) 1987, 1990 Carnegie-Mellon University.
38 * All rights reserved.
39 *
40 * Authors: Avadis Tevanian, Jr., Michael Wayne Young
41 *
42 * Permission to use, copy, modify and distribute this software and
43 * its documentation is hereby granted, provided that both the copyright
44 * notice and this permission notice appear in all copies of the
45 * software, derivative works or modified versions, and any portions
46 * thereof, and that both notices appear in supporting documentation.
47 *
48 * CARNEGIE MELLON ALLOWS FREE USE OF THIS SOFTWARE IN ITS "AS IS"
49 * CONDITION. CARNEGIE MELLON DISCLAIMS ANY LIABILITY OF ANY KIND
50 * FOR ANY DAMAGES WHATSOEVER RESULTING FROM THE USE OF THIS SOFTWARE.
51 *
52 * Carnegie Mellon requests users of this software to return to
53 *
54 * Software Distribution Coordinator or Software.Distribution@CS.CMU.EDU
55 * School of Computer Science
56 * Carnegie Mellon University
57 * Pittsburgh PA 15213-3890
58 *
59 * any improvements or extensions that they make and grant Carnegie the
60 * rights to redistribute these changes.
61 */
62
63 /*
64 * Resident memory management module.
65 */
66
67 #include <sys/cdefs.h>
68 #include "opt_vm.h"
69
70 #include <sys/param.h>
71 #include <sys/systm.h>
72 #include <sys/counter.h>
73 #include <sys/domainset.h>
74 #include <sys/kernel.h>
75 #include <sys/limits.h>
76 #include <sys/linker.h>
77 #include <sys/lock.h>
78 #include <sys/malloc.h>
79 #include <sys/mman.h>
80 #include <sys/msgbuf.h>
81 #include <sys/mutex.h>
82 #include <sys/proc.h>
83 #include <sys/rwlock.h>
84 #include <sys/sleepqueue.h>
85 #include <sys/sbuf.h>
86 #include <sys/sched.h>
87 #include <sys/smp.h>
88 #include <sys/sysctl.h>
89 #include <sys/vmmeter.h>
90 #include <sys/vnode.h>
91
92 #include <vm/vm.h>
93 #include <vm/pmap.h>
94 #include <vm/vm_param.h>
95 #include <vm/vm_domainset.h>
96 #include <vm/vm_kern.h>
97 #include <vm/vm_map.h>
98 #include <vm/vm_object.h>
99 #include <vm/vm_page.h>
100 #include <vm/vm_pageout.h>
101 #include <vm/vm_phys.h>
102 #include <vm/vm_pagequeue.h>
103 #include <vm/vm_pager.h>
104 #include <vm/vm_radix.h>
105 #include <vm/vm_reserv.h>
106 #include <vm/vm_extern.h>
107 #include <vm/vm_dumpset.h>
108 #include <vm/uma.h>
109 #include <vm/uma_int.h>
110
111 #include <machine/md_var.h>
112
113 struct vm_domain vm_dom[MAXMEMDOM];
114
115 DPCPU_DEFINE_STATIC(struct vm_batchqueue, pqbatch[MAXMEMDOM][PQ_COUNT]);
116
117 struct mtx_padalign __exclusive_cache_line pa_lock[PA_LOCK_COUNT];
118
119 struct mtx_padalign __exclusive_cache_line vm_domainset_lock;
120 /* The following fields are protected by the domainset lock. */
121 domainset_t __exclusive_cache_line vm_min_domains;
122 domainset_t __exclusive_cache_line vm_severe_domains;
123 static int vm_min_waiters;
124 static int vm_severe_waiters;
125 static int vm_pageproc_waiters;
126
127 static SYSCTL_NODE(_vm_stats, OID_AUTO, page, CTLFLAG_RD | CTLFLAG_MPSAFE, 0,
128 "VM page statistics");
129
130 static COUNTER_U64_DEFINE_EARLY(pqstate_commit_retries);
131 SYSCTL_COUNTER_U64(_vm_stats_page, OID_AUTO, pqstate_commit_retries,
132 CTLFLAG_RD, &pqstate_commit_retries,
133 "Number of failed per-page atomic queue state updates");
134
135 static COUNTER_U64_DEFINE_EARLY(queue_ops);
136 SYSCTL_COUNTER_U64(_vm_stats_page, OID_AUTO, queue_ops,
137 CTLFLAG_RD, &queue_ops,
138 "Number of batched queue operations");
139
140 static COUNTER_U64_DEFINE_EARLY(queue_nops);
141 SYSCTL_COUNTER_U64(_vm_stats_page, OID_AUTO, queue_nops,
142 CTLFLAG_RD, &queue_nops,
143 "Number of batched queue operations with no effects");
144
145 /*
146 * bogus page -- for I/O to/from partially complete buffers,
147 * or for paging into sparsely invalid regions.
148 */
149 vm_page_t bogus_page;
150
151 vm_page_t vm_page_array;
152 long vm_page_array_size;
153 long first_page;
154
155 struct bitset *vm_page_dump;
156 long vm_page_dump_pages;
157
158 static TAILQ_HEAD(, vm_page) blacklist_head;
159 static int sysctl_vm_page_blacklist(SYSCTL_HANDLER_ARGS);
160 SYSCTL_PROC(_vm, OID_AUTO, page_blacklist, CTLTYPE_STRING | CTLFLAG_RD |
161 CTLFLAG_MPSAFE, NULL, 0, sysctl_vm_page_blacklist, "A", "Blacklist pages");
162
163 static uma_zone_t fakepg_zone;
164
165 static void vm_page_alloc_check(vm_page_t m);
166 static vm_page_t vm_page_alloc_nofree_domain(int domain, int req);
167 static bool _vm_page_busy_sleep(vm_object_t obj, vm_page_t m,
168 vm_pindex_t pindex, const char *wmesg, int allocflags, bool locked);
169 static void vm_page_clear_dirty_mask(vm_page_t m, vm_page_bits_t pagebits);
170 static void vm_page_enqueue(vm_page_t m, uint8_t queue);
171 static bool vm_page_free_prep(vm_page_t m);
172 static void vm_page_free_toq(vm_page_t m);
173 static void vm_page_init(void *dummy);
174 static void vm_page_insert_radixdone(vm_page_t m, vm_object_t object,
175 vm_page_t mpred);
176 static void vm_page_mvqueue(vm_page_t m, const uint8_t queue,
177 const uint16_t nflag);
178 static int vm_page_reclaim_run(int req_class, int domain, u_long npages,
179 vm_page_t m_run, vm_paddr_t high);
180 static void vm_page_release_toq(vm_page_t m, uint8_t nqueue, bool noreuse);
181 static int vm_domain_alloc_fail(struct vm_domain *vmd, vm_object_t object,
182 int req);
183 static int vm_page_zone_import(void *arg, void **store, int cnt, int domain,
184 int flags);
185 static void vm_page_zone_release(void *arg, void **store, int cnt);
186
187 SYSINIT(vm_page, SI_SUB_VM, SI_ORDER_SECOND, vm_page_init, NULL);
188
189 static void
vm_page_init(void * dummy)190 vm_page_init(void *dummy)
191 {
192
193 fakepg_zone = uma_zcreate("fakepg", sizeof(struct vm_page), NULL, NULL,
194 NULL, NULL, UMA_ALIGN_PTR, UMA_ZONE_NOFREE);
195 bogus_page = vm_page_alloc_noobj(VM_ALLOC_WIRED | VM_ALLOC_NOFREE);
196 }
197
198 static int pgcache_zone_max_pcpu;
199 SYSCTL_INT(_vm, OID_AUTO, pgcache_zone_max_pcpu,
200 CTLFLAG_RDTUN | CTLFLAG_NOFETCH, &pgcache_zone_max_pcpu, 0,
201 "Per-CPU page cache size");
202
203 /*
204 * The cache page zone is initialized later since we need to be able to allocate
205 * pages before UMA is fully initialized.
206 */
207 static void
vm_page_init_cache_zones(void * dummy __unused)208 vm_page_init_cache_zones(void *dummy __unused)
209 {
210 struct vm_domain *vmd;
211 struct vm_pgcache *pgcache;
212 int cache, domain, maxcache, pool;
213
214 TUNABLE_INT_FETCH("vm.pgcache_zone_max_pcpu", &pgcache_zone_max_pcpu);
215 maxcache = pgcache_zone_max_pcpu * mp_ncpus;
216 for (domain = 0; domain < vm_ndomains; domain++) {
217 vmd = VM_DOMAIN(domain);
218 for (pool = 0; pool < VM_NFREEPOOL; pool++) {
219 pgcache = &vmd->vmd_pgcache[pool];
220 pgcache->domain = domain;
221 pgcache->pool = pool;
222 pgcache->zone = uma_zcache_create("vm pgcache",
223 PAGE_SIZE, NULL, NULL, NULL, NULL,
224 vm_page_zone_import, vm_page_zone_release, pgcache,
225 UMA_ZONE_VM);
226
227 /*
228 * Limit each pool's zone to 0.1% of the pages in the
229 * domain.
230 */
231 cache = maxcache != 0 ? maxcache :
232 vmd->vmd_page_count / 1000;
233 uma_zone_set_maxcache(pgcache->zone, cache);
234 }
235 }
236 }
237 SYSINIT(vm_page2, SI_SUB_VM_CONF, SI_ORDER_ANY, vm_page_init_cache_zones, NULL);
238
239 /* Make sure that u_long is at least 64 bits when PAGE_SIZE is 32K. */
240 #if PAGE_SIZE == 32768
241 #ifdef CTASSERT
242 CTASSERT(sizeof(u_long) >= 8);
243 #endif
244 #endif
245
246 /*
247 * vm_set_page_size:
248 *
249 * Sets the page size, perhaps based upon the memory
250 * size. Must be called before any use of page-size
251 * dependent functions.
252 */
253 void
vm_set_page_size(void)254 vm_set_page_size(void)
255 {
256 if (vm_cnt.v_page_size == 0)
257 vm_cnt.v_page_size = PAGE_SIZE;
258 if (((vm_cnt.v_page_size - 1) & vm_cnt.v_page_size) != 0)
259 panic("vm_set_page_size: page size not a power of two");
260 }
261
262 /*
263 * vm_page_blacklist_next:
264 *
265 * Find the next entry in the provided string of blacklist
266 * addresses. Entries are separated by space, comma, or newline.
267 * If an invalid integer is encountered then the rest of the
268 * string is skipped. Updates the list pointer to the next
269 * character, or NULL if the string is exhausted or invalid.
270 */
271 static vm_paddr_t
vm_page_blacklist_next(char ** list,char * end)272 vm_page_blacklist_next(char **list, char *end)
273 {
274 vm_paddr_t bad;
275 char *cp, *pos;
276
277 if (list == NULL || *list == NULL)
278 return (0);
279 if (**list =='\0') {
280 *list = NULL;
281 return (0);
282 }
283
284 /*
285 * If there's no end pointer then the buffer is coming from
286 * the kenv and we know it's null-terminated.
287 */
288 if (end == NULL)
289 end = *list + strlen(*list);
290
291 /* Ensure that strtoq() won't walk off the end */
292 if (*end != '\0') {
293 if (*end == '\n' || *end == ' ' || *end == ',')
294 *end = '\0';
295 else {
296 printf("Blacklist not terminated, skipping\n");
297 *list = NULL;
298 return (0);
299 }
300 }
301
302 for (pos = *list; *pos != '\0'; pos = cp) {
303 bad = strtoq(pos, &cp, 0);
304 if (*cp == '\0' || *cp == ' ' || *cp == ',' || *cp == '\n') {
305 if (bad == 0) {
306 if (++cp < end)
307 continue;
308 else
309 break;
310 }
311 } else
312 break;
313 if (*cp == '\0' || ++cp >= end)
314 *list = NULL;
315 else
316 *list = cp;
317 return (trunc_page(bad));
318 }
319 printf("Garbage in RAM blacklist, skipping\n");
320 *list = NULL;
321 return (0);
322 }
323
324 bool
vm_page_blacklist_add(vm_paddr_t pa,bool verbose)325 vm_page_blacklist_add(vm_paddr_t pa, bool verbose)
326 {
327 struct vm_domain *vmd;
328 vm_page_t m;
329 bool found;
330
331 m = vm_phys_paddr_to_vm_page(pa);
332 if (m == NULL)
333 return (true); /* page does not exist, no failure */
334
335 vmd = VM_DOMAIN(vm_phys_domain(pa));
336 vm_domain_free_lock(vmd);
337 found = vm_phys_unfree_page(pa);
338 vm_domain_free_unlock(vmd);
339 if (found) {
340 vm_domain_freecnt_inc(vmd, -1);
341 TAILQ_INSERT_TAIL(&blacklist_head, m, listq);
342 if (verbose)
343 printf("Skipping page with pa 0x%jx\n", (uintmax_t)pa);
344 }
345 return (found);
346 }
347
348 /*
349 * vm_page_blacklist_check:
350 *
351 * Iterate through the provided string of blacklist addresses, pulling
352 * each entry out of the physical allocator free list and putting it
353 * onto a list for reporting via the vm.page_blacklist sysctl.
354 */
355 static void
vm_page_blacklist_check(char * list,char * end)356 vm_page_blacklist_check(char *list, char *end)
357 {
358 vm_paddr_t pa;
359 char *next;
360
361 next = list;
362 while (next != NULL) {
363 if ((pa = vm_page_blacklist_next(&next, end)) == 0)
364 continue;
365 vm_page_blacklist_add(pa, bootverbose);
366 }
367 }
368
369 /*
370 * vm_page_blacklist_load:
371 *
372 * Search for a special module named "ram_blacklist". It'll be a
373 * plain text file provided by the user via the loader directive
374 * of the same name.
375 */
376 static void
vm_page_blacklist_load(char ** list,char ** end)377 vm_page_blacklist_load(char **list, char **end)
378 {
379 void *mod;
380 u_char *ptr;
381 u_int len;
382
383 mod = NULL;
384 ptr = NULL;
385
386 mod = preload_search_by_type("ram_blacklist");
387 if (mod != NULL) {
388 ptr = preload_fetch_addr(mod);
389 len = preload_fetch_size(mod);
390 }
391 *list = ptr;
392 if (ptr != NULL)
393 *end = ptr + len;
394 else
395 *end = NULL;
396 return;
397 }
398
399 static int
sysctl_vm_page_blacklist(SYSCTL_HANDLER_ARGS)400 sysctl_vm_page_blacklist(SYSCTL_HANDLER_ARGS)
401 {
402 vm_page_t m;
403 struct sbuf sbuf;
404 int error, first;
405
406 first = 1;
407 error = sysctl_wire_old_buffer(req, 0);
408 if (error != 0)
409 return (error);
410 sbuf_new_for_sysctl(&sbuf, NULL, 128, req);
411 TAILQ_FOREACH(m, &blacklist_head, listq) {
412 sbuf_printf(&sbuf, "%s%#jx", first ? "" : ",",
413 (uintmax_t)m->phys_addr);
414 first = 0;
415 }
416 error = sbuf_finish(&sbuf);
417 sbuf_delete(&sbuf);
418 return (error);
419 }
420
421 /*
422 * Initialize a dummy page for use in scans of the specified paging queue.
423 * In principle, this function only needs to set the flag PG_MARKER.
424 * Nonetheless, it write busies the page as a safety precaution.
425 */
426 void
vm_page_init_marker(vm_page_t marker,int queue,uint16_t aflags)427 vm_page_init_marker(vm_page_t marker, int queue, uint16_t aflags)
428 {
429
430 bzero(marker, sizeof(*marker));
431 marker->flags = PG_MARKER;
432 marker->a.flags = aflags;
433 marker->busy_lock = VPB_CURTHREAD_EXCLUSIVE;
434 marker->a.queue = queue;
435 }
436
437 static void
vm_page_domain_init(int domain)438 vm_page_domain_init(int domain)
439 {
440 struct vm_domain *vmd;
441 struct vm_pagequeue *pq;
442 int i;
443
444 vmd = VM_DOMAIN(domain);
445 bzero(vmd, sizeof(*vmd));
446 *__DECONST(const char **, &vmd->vmd_pagequeues[PQ_INACTIVE].pq_name) =
447 "vm inactive pagequeue";
448 *__DECONST(const char **, &vmd->vmd_pagequeues[PQ_ACTIVE].pq_name) =
449 "vm active pagequeue";
450 *__DECONST(const char **, &vmd->vmd_pagequeues[PQ_LAUNDRY].pq_name) =
451 "vm laundry pagequeue";
452 *__DECONST(const char **,
453 &vmd->vmd_pagequeues[PQ_UNSWAPPABLE].pq_name) =
454 "vm unswappable pagequeue";
455 vmd->vmd_domain = domain;
456 vmd->vmd_page_count = 0;
457 vmd->vmd_free_count = 0;
458 vmd->vmd_segs = 0;
459 vmd->vmd_oom = false;
460 vmd->vmd_helper_threads_enabled = true;
461 for (i = 0; i < PQ_COUNT; i++) {
462 pq = &vmd->vmd_pagequeues[i];
463 TAILQ_INIT(&pq->pq_pl);
464 mtx_init(&pq->pq_mutex, pq->pq_name, "vm pagequeue",
465 MTX_DEF | MTX_DUPOK);
466 pq->pq_pdpages = 0;
467 vm_page_init_marker(&vmd->vmd_markers[i], i, 0);
468 }
469 mtx_init(&vmd->vmd_free_mtx, "vm page free queue", NULL, MTX_DEF);
470 mtx_init(&vmd->vmd_pageout_mtx, "vm pageout lock", NULL, MTX_DEF);
471 snprintf(vmd->vmd_name, sizeof(vmd->vmd_name), "%d", domain);
472
473 /*
474 * inacthead is used to provide FIFO ordering for LRU-bypassing
475 * insertions.
476 */
477 vm_page_init_marker(&vmd->vmd_inacthead, PQ_INACTIVE, PGA_ENQUEUED);
478 TAILQ_INSERT_HEAD(&vmd->vmd_pagequeues[PQ_INACTIVE].pq_pl,
479 &vmd->vmd_inacthead, plinks.q);
480
481 /*
482 * The clock pages are used to implement active queue scanning without
483 * requeues. Scans start at clock[0], which is advanced after the scan
484 * ends. When the two clock hands meet, they are reset and scanning
485 * resumes from the head of the queue.
486 */
487 vm_page_init_marker(&vmd->vmd_clock[0], PQ_ACTIVE, PGA_ENQUEUED);
488 vm_page_init_marker(&vmd->vmd_clock[1], PQ_ACTIVE, PGA_ENQUEUED);
489 TAILQ_INSERT_HEAD(&vmd->vmd_pagequeues[PQ_ACTIVE].pq_pl,
490 &vmd->vmd_clock[0], plinks.q);
491 TAILQ_INSERT_TAIL(&vmd->vmd_pagequeues[PQ_ACTIVE].pq_pl,
492 &vmd->vmd_clock[1], plinks.q);
493 }
494
495 /*
496 * Initialize a physical page in preparation for adding it to the free
497 * lists.
498 */
499 void
vm_page_init_page(vm_page_t m,vm_paddr_t pa,int segind,int pool)500 vm_page_init_page(vm_page_t m, vm_paddr_t pa, int segind, int pool)
501 {
502 m->object = NULL;
503 m->ref_count = 0;
504 m->busy_lock = VPB_FREED;
505 m->flags = m->a.flags = 0;
506 m->phys_addr = pa;
507 m->a.queue = PQ_NONE;
508 m->psind = 0;
509 m->segind = segind;
510 m->order = VM_NFREEORDER;
511 m->pool = pool;
512 m->valid = m->dirty = 0;
513 pmap_page_init(m);
514 }
515
516 #ifndef PMAP_HAS_PAGE_ARRAY
517 static vm_paddr_t
vm_page_array_alloc(vm_offset_t * vaddr,vm_paddr_t end,vm_paddr_t page_range)518 vm_page_array_alloc(vm_offset_t *vaddr, vm_paddr_t end, vm_paddr_t page_range)
519 {
520 vm_paddr_t new_end;
521
522 /*
523 * Reserve an unmapped guard page to trap access to vm_page_array[-1].
524 * However, because this page is allocated from KVM, out-of-bounds
525 * accesses using the direct map will not be trapped.
526 */
527 *vaddr += PAGE_SIZE;
528
529 /*
530 * Allocate physical memory for the page structures, and map it.
531 */
532 new_end = trunc_page(end - page_range * sizeof(struct vm_page));
533 vm_page_array = (vm_page_t)pmap_map(vaddr, new_end, end,
534 VM_PROT_READ | VM_PROT_WRITE);
535 vm_page_array_size = page_range;
536
537 return (new_end);
538 }
539 #endif
540
541 /*
542 * vm_page_startup:
543 *
544 * Initializes the resident memory module. Allocates physical memory for
545 * bootstrapping UMA and some data structures that are used to manage
546 * physical pages. Initializes these structures, and populates the free
547 * page queues.
548 */
549 vm_offset_t
vm_page_startup(vm_offset_t vaddr)550 vm_page_startup(vm_offset_t vaddr)
551 {
552 struct vm_phys_seg *seg;
553 struct vm_domain *vmd;
554 vm_page_t m;
555 char *list, *listend;
556 vm_paddr_t end, high_avail, low_avail, new_end, size;
557 vm_paddr_t page_range __unused;
558 vm_paddr_t last_pa, pa, startp, endp;
559 u_long pagecount;
560 #if MINIDUMP_PAGE_TRACKING
561 u_long vm_page_dump_size;
562 #endif
563 int biggestone, i, segind;
564 #ifdef WITNESS
565 vm_offset_t mapped;
566 int witness_size;
567 #endif
568 #if defined(__i386__) && defined(VM_PHYSSEG_DENSE)
569 long ii;
570 #endif
571 int pool;
572 #ifdef VM_FREEPOOL_LAZYINIT
573 int lazyinit;
574 #endif
575
576 vaddr = round_page(vaddr);
577
578 vm_phys_early_startup();
579 biggestone = vm_phys_avail_largest();
580 end = phys_avail[biggestone+1];
581
582 /*
583 * Initialize the page and queue locks.
584 */
585 mtx_init(&vm_domainset_lock, "vm domainset lock", NULL, MTX_DEF);
586 for (i = 0; i < PA_LOCK_COUNT; i++)
587 mtx_init(&pa_lock[i], "vm page", NULL, MTX_DEF);
588 for (i = 0; i < vm_ndomains; i++)
589 vm_page_domain_init(i);
590
591 new_end = end;
592 #ifdef WITNESS
593 witness_size = round_page(witness_startup_count());
594 new_end -= witness_size;
595 mapped = pmap_map(&vaddr, new_end, new_end + witness_size,
596 VM_PROT_READ | VM_PROT_WRITE);
597 bzero((void *)mapped, witness_size);
598 witness_startup((void *)mapped);
599 #endif
600
601 #if MINIDUMP_PAGE_TRACKING
602 /*
603 * Allocate a bitmap to indicate that a random physical page
604 * needs to be included in a minidump.
605 *
606 * The amd64 port needs this to indicate which direct map pages
607 * need to be dumped, via calls to dump_add_page()/dump_drop_page().
608 *
609 * However, i386 still needs this workspace internally within the
610 * minidump code. In theory, they are not needed on i386, but are
611 * included should the sf_buf code decide to use them.
612 */
613 last_pa = 0;
614 vm_page_dump_pages = 0;
615 for (i = 0; dump_avail[i + 1] != 0; i += 2) {
616 vm_page_dump_pages += howmany(dump_avail[i + 1], PAGE_SIZE) -
617 dump_avail[i] / PAGE_SIZE;
618 if (dump_avail[i + 1] > last_pa)
619 last_pa = dump_avail[i + 1];
620 }
621 vm_page_dump_size = round_page(BITSET_SIZE(vm_page_dump_pages));
622 new_end -= vm_page_dump_size;
623 vm_page_dump = (void *)(uintptr_t)pmap_map(&vaddr, new_end,
624 new_end + vm_page_dump_size, VM_PROT_READ | VM_PROT_WRITE);
625 bzero((void *)vm_page_dump, vm_page_dump_size);
626 #if MINIDUMP_STARTUP_PAGE_TRACKING
627 /*
628 * Include the UMA bootstrap pages, witness pages and vm_page_dump
629 * in a crash dump. When pmap_map() uses the direct map, they are
630 * not automatically included.
631 */
632 for (pa = new_end; pa < end; pa += PAGE_SIZE)
633 dump_add_page(pa);
634 #endif
635 #else
636 (void)last_pa;
637 #endif
638 phys_avail[biggestone + 1] = new_end;
639 #ifdef __amd64__
640 /*
641 * Request that the physical pages underlying the message buffer be
642 * included in a crash dump. Since the message buffer is accessed
643 * through the direct map, they are not automatically included.
644 */
645 pa = DMAP_TO_PHYS((vm_offset_t)msgbufp->msg_ptr);
646 last_pa = pa + round_page(msgbufsize);
647 while (pa < last_pa) {
648 dump_add_page(pa);
649 pa += PAGE_SIZE;
650 }
651 #else
652 (void)pa;
653 #endif
654
655 /*
656 * Determine the lowest and highest physical addresses and, in the case
657 * of VM_PHYSSEG_SPARSE, the exact size of the available physical
658 * memory. vm_phys_early_startup() already checked that phys_avail[]
659 * has at least one element.
660 */
661 #ifdef VM_PHYSSEG_SPARSE
662 size = phys_avail[1] - phys_avail[0];
663 #endif
664 low_avail = phys_avail[0];
665 high_avail = phys_avail[1];
666 for (i = 2; phys_avail[i + 1] != 0; i += 2) {
667 #ifdef VM_PHYSSEG_SPARSE
668 size += phys_avail[i + 1] - phys_avail[i];
669 #endif
670 if (phys_avail[i] < low_avail)
671 low_avail = phys_avail[i];
672 if (phys_avail[i + 1] > high_avail)
673 high_avail = phys_avail[i + 1];
674 }
675 for (i = 0; i < vm_phys_nsegs; i++) {
676 #ifdef VM_PHYSSEG_SPARSE
677 size += vm_phys_segs[i].end - vm_phys_segs[i].start;
678 #endif
679 if (vm_phys_segs[i].start < low_avail)
680 low_avail = vm_phys_segs[i].start;
681 if (vm_phys_segs[i].end > high_avail)
682 high_avail = vm_phys_segs[i].end;
683 }
684 first_page = low_avail / PAGE_SIZE;
685 #ifdef VM_PHYSSEG_DENSE
686 size = high_avail - low_avail;
687 #endif
688
689 #ifdef PMAP_HAS_PAGE_ARRAY
690 pmap_page_array_startup(size / PAGE_SIZE);
691 biggestone = vm_phys_avail_largest();
692 end = new_end = phys_avail[biggestone + 1];
693 #else
694 #ifdef VM_PHYSSEG_DENSE
695 /*
696 * In the VM_PHYSSEG_DENSE case, the number of pages can account for
697 * the overhead of a page structure per page only if vm_page_array is
698 * allocated from the last physical memory chunk. Otherwise, we must
699 * allocate page structures representing the physical memory
700 * underlying vm_page_array, even though they will not be used.
701 */
702 if (new_end != high_avail)
703 page_range = size / PAGE_SIZE;
704 else
705 #endif
706 {
707 page_range = size / (PAGE_SIZE + sizeof(struct vm_page));
708
709 /*
710 * If the partial bytes remaining are large enough for
711 * a page (PAGE_SIZE) without a corresponding
712 * 'struct vm_page', then new_end will contain an
713 * extra page after subtracting the length of the VM
714 * page array. Compensate by subtracting an extra
715 * page from new_end.
716 */
717 if (size % (PAGE_SIZE + sizeof(struct vm_page)) >= PAGE_SIZE) {
718 if (new_end == high_avail)
719 high_avail -= PAGE_SIZE;
720 new_end -= PAGE_SIZE;
721 }
722 }
723 end = new_end;
724 new_end = vm_page_array_alloc(&vaddr, end, page_range);
725 #endif
726
727 #if VM_NRESERVLEVEL > 0
728 /*
729 * Allocate physical memory for the reservation management system's
730 * data structures, and map it.
731 */
732 new_end = vm_reserv_startup(&vaddr, new_end);
733 #endif
734 #if MINIDUMP_PAGE_TRACKING && MINIDUMP_STARTUP_PAGE_TRACKING
735 /*
736 * Include vm_page_array and vm_reserv_array in a crash dump.
737 */
738 for (pa = new_end; pa < end; pa += PAGE_SIZE)
739 dump_add_page(pa);
740 #endif
741 phys_avail[biggestone + 1] = new_end;
742
743 /*
744 * Add physical memory segments corresponding to the available
745 * physical pages.
746 */
747 for (i = 0; phys_avail[i + 1] != 0; i += 2)
748 vm_phys_add_seg(phys_avail[i], phys_avail[i + 1]);
749
750 /*
751 * Initialize the physical memory allocator.
752 */
753 vm_phys_init();
754
755 pool = VM_FREEPOOL_DEFAULT;
756 #ifdef VM_FREEPOOL_LAZYINIT
757 lazyinit = 1;
758 TUNABLE_INT_FETCH("debug.vm.lazy_page_init", &lazyinit);
759 if (lazyinit)
760 pool = VM_FREEPOOL_LAZYINIT;
761 #endif
762
763 /*
764 * Initialize the page structures and add every available page to the
765 * physical memory allocator's free lists.
766 */
767 #if defined(__i386__) && defined(VM_PHYSSEG_DENSE)
768 for (ii = 0; ii < vm_page_array_size; ii++) {
769 m = &vm_page_array[ii];
770 vm_page_init_page(m, (first_page + ii) << PAGE_SHIFT, 0,
771 VM_FREEPOOL_DEFAULT);
772 m->flags = PG_FICTITIOUS;
773 }
774 #endif
775 vm_cnt.v_page_count = 0;
776 for (segind = 0; segind < vm_phys_nsegs; segind++) {
777 seg = &vm_phys_segs[segind];
778
779 /*
780 * Initialize pages not covered by phys_avail[], since they
781 * might be freed to the allocator at some future point, e.g.,
782 * by kmem_bootstrap_free().
783 */
784 startp = seg->start;
785 for (i = 0; phys_avail[i + 1] != 0; i += 2) {
786 if (startp >= seg->end)
787 break;
788 if (phys_avail[i + 1] < startp)
789 continue;
790 if (phys_avail[i] <= startp) {
791 startp = phys_avail[i + 1];
792 continue;
793 }
794 m = vm_phys_seg_paddr_to_vm_page(seg, startp);
795 for (endp = MIN(phys_avail[i], seg->end);
796 startp < endp; startp += PAGE_SIZE, m++) {
797 vm_page_init_page(m, startp, segind,
798 VM_FREEPOOL_DEFAULT);
799 }
800 }
801
802 /*
803 * Add the segment's pages that are covered by one of
804 * phys_avail's ranges to the free lists.
805 */
806 for (i = 0; phys_avail[i + 1] != 0; i += 2) {
807 if (seg->end <= phys_avail[i] ||
808 seg->start >= phys_avail[i + 1])
809 continue;
810
811 startp = MAX(seg->start, phys_avail[i]);
812 endp = MIN(seg->end, phys_avail[i + 1]);
813 pagecount = (u_long)atop(endp - startp);
814 if (pagecount == 0)
815 continue;
816
817 /*
818 * If lazy vm_page initialization is not enabled, simply
819 * initialize all of the pages in the segment covered by
820 * phys_avail. Otherwise, initialize only the first
821 * page of each run of free pages handed to the vm_phys
822 * allocator, which in turn defers initialization of
823 * pages until they are needed.
824 *
825 * This avoids blocking the boot process for long
826 * periods, which may be relevant for VMs (which ought
827 * to boot as quickly as possible) and/or systems with
828 * large amounts of physical memory.
829 */
830 m = vm_phys_seg_paddr_to_vm_page(seg, startp);
831 vm_page_init_page(m, startp, segind, pool);
832 if (pool == VM_FREEPOOL_DEFAULT) {
833 for (u_long j = 1; j < pagecount; j++) {
834 vm_page_init_page(&m[j],
835 startp + ptoa((vm_paddr_t)j),
836 segind, pool);
837 }
838 }
839 vmd = VM_DOMAIN(seg->domain);
840 vm_domain_free_lock(vmd);
841 vm_phys_enqueue_contig(m, pool, pagecount);
842 vm_domain_free_unlock(vmd);
843 vm_domain_freecnt_inc(vmd, pagecount);
844 vm_cnt.v_page_count += (u_int)pagecount;
845 vmd->vmd_page_count += (u_int)pagecount;
846 vmd->vmd_segs |= 1UL << segind;
847 }
848 }
849
850 /*
851 * Remove blacklisted pages from the physical memory allocator.
852 */
853 TAILQ_INIT(&blacklist_head);
854 vm_page_blacklist_load(&list, &listend);
855 vm_page_blacklist_check(list, listend);
856
857 list = kern_getenv("vm.blacklist");
858 vm_page_blacklist_check(list, NULL);
859
860 freeenv(list);
861 #if VM_NRESERVLEVEL > 0
862 /*
863 * Initialize the reservation management system.
864 */
865 vm_reserv_init();
866 #endif
867
868 return (vaddr);
869 }
870
871 void
vm_page_reference(vm_page_t m)872 vm_page_reference(vm_page_t m)
873 {
874
875 vm_page_aflag_set(m, PGA_REFERENCED);
876 }
877
878 /*
879 * vm_page_trybusy
880 *
881 * Helper routine for grab functions to trylock busy.
882 *
883 * Returns true on success and false on failure.
884 */
885 static bool
vm_page_trybusy(vm_page_t m,int allocflags)886 vm_page_trybusy(vm_page_t m, int allocflags)
887 {
888
889 if ((allocflags & (VM_ALLOC_SBUSY | VM_ALLOC_IGN_SBUSY)) != 0)
890 return (vm_page_trysbusy(m));
891 else
892 return (vm_page_tryxbusy(m));
893 }
894
895 /*
896 * vm_page_tryacquire
897 *
898 * Helper routine for grab functions to trylock busy and wire.
899 *
900 * Returns true on success and false on failure.
901 */
902 static inline bool
vm_page_tryacquire(vm_page_t m,int allocflags)903 vm_page_tryacquire(vm_page_t m, int allocflags)
904 {
905 bool locked;
906
907 locked = vm_page_trybusy(m, allocflags);
908 if (locked && (allocflags & VM_ALLOC_WIRED) != 0)
909 vm_page_wire(m);
910 return (locked);
911 }
912
913 /*
914 * vm_page_busy_acquire:
915 *
916 * Acquire the busy lock as described by VM_ALLOC_* flags. Will loop
917 * and drop the object lock if necessary.
918 */
919 bool
vm_page_busy_acquire(vm_page_t m,int allocflags)920 vm_page_busy_acquire(vm_page_t m, int allocflags)
921 {
922 vm_object_t obj;
923 bool locked;
924
925 /*
926 * The page-specific object must be cached because page
927 * identity can change during the sleep, causing the
928 * re-lock of a different object.
929 * It is assumed that a reference to the object is already
930 * held by the callers.
931 */
932 obj = atomic_load_ptr(&m->object);
933 for (;;) {
934 if (vm_page_tryacquire(m, allocflags))
935 return (true);
936 if ((allocflags & VM_ALLOC_NOWAIT) != 0)
937 return (false);
938 if (obj != NULL)
939 locked = VM_OBJECT_WOWNED(obj);
940 else
941 locked = false;
942 MPASS(locked || vm_page_wired(m));
943 if (_vm_page_busy_sleep(obj, m, m->pindex, "vmpba", allocflags,
944 locked) && locked)
945 VM_OBJECT_WLOCK(obj);
946 if ((allocflags & VM_ALLOC_WAITFAIL) != 0)
947 return (false);
948 KASSERT(m->object == obj || m->object == NULL,
949 ("vm_page_busy_acquire: page %p does not belong to %p",
950 m, obj));
951 }
952 }
953
954 /*
955 * vm_page_busy_downgrade:
956 *
957 * Downgrade an exclusive busy page into a single shared busy page.
958 */
959 void
vm_page_busy_downgrade(vm_page_t m)960 vm_page_busy_downgrade(vm_page_t m)
961 {
962 u_int x;
963
964 vm_page_assert_xbusied(m);
965
966 x = vm_page_busy_fetch(m);
967 for (;;) {
968 if (atomic_fcmpset_rel_int(&m->busy_lock,
969 &x, VPB_SHARERS_WORD(1)))
970 break;
971 }
972 if ((x & VPB_BIT_WAITERS) != 0)
973 wakeup(m);
974 }
975
976 /*
977 *
978 * vm_page_busy_tryupgrade:
979 *
980 * Attempt to upgrade a single shared busy into an exclusive busy.
981 */
982 int
vm_page_busy_tryupgrade(vm_page_t m)983 vm_page_busy_tryupgrade(vm_page_t m)
984 {
985 u_int ce, x;
986
987 vm_page_assert_sbusied(m);
988
989 x = vm_page_busy_fetch(m);
990 ce = VPB_CURTHREAD_EXCLUSIVE;
991 for (;;) {
992 if (VPB_SHARERS(x) > 1)
993 return (0);
994 KASSERT((x & ~VPB_BIT_WAITERS) == VPB_SHARERS_WORD(1),
995 ("vm_page_busy_tryupgrade: invalid lock state"));
996 if (!atomic_fcmpset_acq_int(&m->busy_lock, &x,
997 ce | (x & VPB_BIT_WAITERS)))
998 continue;
999 return (1);
1000 }
1001 }
1002
1003 /*
1004 * vm_page_sbusied:
1005 *
1006 * Return a positive value if the page is shared busied, 0 otherwise.
1007 */
1008 int
vm_page_sbusied(vm_page_t m)1009 vm_page_sbusied(vm_page_t m)
1010 {
1011 u_int x;
1012
1013 x = vm_page_busy_fetch(m);
1014 return ((x & VPB_BIT_SHARED) != 0 && x != VPB_UNBUSIED);
1015 }
1016
1017 /*
1018 * vm_page_sunbusy:
1019 *
1020 * Shared unbusy a page.
1021 */
1022 void
vm_page_sunbusy(vm_page_t m)1023 vm_page_sunbusy(vm_page_t m)
1024 {
1025 u_int x;
1026
1027 vm_page_assert_sbusied(m);
1028
1029 x = vm_page_busy_fetch(m);
1030 for (;;) {
1031 KASSERT(x != VPB_FREED,
1032 ("vm_page_sunbusy: Unlocking freed page."));
1033 if (VPB_SHARERS(x) > 1) {
1034 if (atomic_fcmpset_int(&m->busy_lock, &x,
1035 x - VPB_ONE_SHARER))
1036 break;
1037 continue;
1038 }
1039 KASSERT((x & ~VPB_BIT_WAITERS) == VPB_SHARERS_WORD(1),
1040 ("vm_page_sunbusy: invalid lock state"));
1041 if (!atomic_fcmpset_rel_int(&m->busy_lock, &x, VPB_UNBUSIED))
1042 continue;
1043 if ((x & VPB_BIT_WAITERS) == 0)
1044 break;
1045 wakeup(m);
1046 break;
1047 }
1048 }
1049
1050 /*
1051 * vm_page_busy_sleep:
1052 *
1053 * Sleep if the page is busy, using the page pointer as wchan.
1054 * This is used to implement the hard-path of the busying mechanism.
1055 *
1056 * If VM_ALLOC_IGN_SBUSY is specified in allocflags, the function
1057 * will not sleep if the page is shared-busy.
1058 *
1059 * The object lock must be held on entry.
1060 *
1061 * Returns true if it slept and dropped the object lock, or false
1062 * if there was no sleep and the lock is still held.
1063 */
1064 bool
vm_page_busy_sleep(vm_page_t m,const char * wmesg,int allocflags)1065 vm_page_busy_sleep(vm_page_t m, const char *wmesg, int allocflags)
1066 {
1067 vm_object_t obj;
1068
1069 obj = m->object;
1070 VM_OBJECT_ASSERT_LOCKED(obj);
1071
1072 return (_vm_page_busy_sleep(obj, m, m->pindex, wmesg, allocflags,
1073 true));
1074 }
1075
1076 /*
1077 * vm_page_busy_sleep_unlocked:
1078 *
1079 * Sleep if the page is busy, using the page pointer as wchan.
1080 * This is used to implement the hard-path of busying mechanism.
1081 *
1082 * If VM_ALLOC_IGN_SBUSY is specified in allocflags, the function
1083 * will not sleep if the page is shared-busy.
1084 *
1085 * The object lock must not be held on entry. The operation will
1086 * return if the page changes identity.
1087 */
1088 void
vm_page_busy_sleep_unlocked(vm_object_t obj,vm_page_t m,vm_pindex_t pindex,const char * wmesg,int allocflags)1089 vm_page_busy_sleep_unlocked(vm_object_t obj, vm_page_t m, vm_pindex_t pindex,
1090 const char *wmesg, int allocflags)
1091 {
1092 VM_OBJECT_ASSERT_UNLOCKED(obj);
1093
1094 (void)_vm_page_busy_sleep(obj, m, pindex, wmesg, allocflags, false);
1095 }
1096
1097 /*
1098 * _vm_page_busy_sleep:
1099 *
1100 * Internal busy sleep function. Verifies the page identity and
1101 * lockstate against parameters. Returns true if it sleeps and
1102 * false otherwise.
1103 *
1104 * allocflags uses VM_ALLOC_* flags to specify the lock required.
1105 *
1106 * If locked is true the lock will be dropped for any true returns
1107 * and held for any false returns.
1108 */
1109 static bool
_vm_page_busy_sleep(vm_object_t obj,vm_page_t m,vm_pindex_t pindex,const char * wmesg,int allocflags,bool locked)1110 _vm_page_busy_sleep(vm_object_t obj, vm_page_t m, vm_pindex_t pindex,
1111 const char *wmesg, int allocflags, bool locked)
1112 {
1113 bool xsleep;
1114 u_int x;
1115
1116 /*
1117 * If the object is busy we must wait for that to drain to zero
1118 * before trying the page again.
1119 */
1120 if (obj != NULL && vm_object_busied(obj)) {
1121 if (locked)
1122 VM_OBJECT_DROP(obj);
1123 vm_object_busy_wait(obj, wmesg);
1124 return (true);
1125 }
1126
1127 if (!vm_page_busied(m))
1128 return (false);
1129
1130 xsleep = (allocflags & (VM_ALLOC_SBUSY | VM_ALLOC_IGN_SBUSY)) != 0;
1131 sleepq_lock(m);
1132 x = vm_page_busy_fetch(m);
1133 do {
1134 /*
1135 * If the page changes objects or becomes unlocked we can
1136 * simply return.
1137 */
1138 if (x == VPB_UNBUSIED ||
1139 (xsleep && (x & VPB_BIT_SHARED) != 0) ||
1140 m->object != obj || m->pindex != pindex) {
1141 sleepq_release(m);
1142 return (false);
1143 }
1144 if ((x & VPB_BIT_WAITERS) != 0)
1145 break;
1146 } while (!atomic_fcmpset_int(&m->busy_lock, &x, x | VPB_BIT_WAITERS));
1147 if (locked)
1148 VM_OBJECT_DROP(obj);
1149 DROP_GIANT();
1150 sleepq_add(m, NULL, wmesg, 0, 0);
1151 sleepq_wait(m, PVM);
1152 PICKUP_GIANT();
1153 return (true);
1154 }
1155
1156 /*
1157 * vm_page_trysbusy:
1158 *
1159 * Try to shared busy a page.
1160 * If the operation succeeds 1 is returned otherwise 0.
1161 * The operation never sleeps.
1162 */
1163 int
vm_page_trysbusy(vm_page_t m)1164 vm_page_trysbusy(vm_page_t m)
1165 {
1166 vm_object_t obj;
1167 u_int x;
1168
1169 obj = m->object;
1170 x = vm_page_busy_fetch(m);
1171 for (;;) {
1172 if ((x & VPB_BIT_SHARED) == 0)
1173 return (0);
1174 /*
1175 * Reduce the window for transient busies that will trigger
1176 * false negatives in vm_page_ps_test().
1177 */
1178 if (obj != NULL && vm_object_busied(obj))
1179 return (0);
1180 if (atomic_fcmpset_acq_int(&m->busy_lock, &x,
1181 x + VPB_ONE_SHARER))
1182 break;
1183 }
1184
1185 /* Refetch the object now that we're guaranteed that it is stable. */
1186 obj = m->object;
1187 if (obj != NULL && vm_object_busied(obj)) {
1188 vm_page_sunbusy(m);
1189 return (0);
1190 }
1191 return (1);
1192 }
1193
1194 /*
1195 * vm_page_tryxbusy:
1196 *
1197 * Try to exclusive busy a page.
1198 * If the operation succeeds 1 is returned otherwise 0.
1199 * The operation never sleeps.
1200 */
1201 int
vm_page_tryxbusy(vm_page_t m)1202 vm_page_tryxbusy(vm_page_t m)
1203 {
1204 vm_object_t obj;
1205
1206 if (atomic_cmpset_acq_int(&m->busy_lock, VPB_UNBUSIED,
1207 VPB_CURTHREAD_EXCLUSIVE) == 0)
1208 return (0);
1209
1210 obj = m->object;
1211 if (obj != NULL && vm_object_busied(obj)) {
1212 vm_page_xunbusy(m);
1213 return (0);
1214 }
1215 return (1);
1216 }
1217
1218 static void
vm_page_xunbusy_hard_tail(vm_page_t m)1219 vm_page_xunbusy_hard_tail(vm_page_t m)
1220 {
1221 atomic_store_rel_int(&m->busy_lock, VPB_UNBUSIED);
1222 /* Wake the waiter. */
1223 wakeup(m);
1224 }
1225
1226 /*
1227 * vm_page_xunbusy_hard:
1228 *
1229 * Called when unbusy has failed because there is a waiter.
1230 */
1231 void
vm_page_xunbusy_hard(vm_page_t m)1232 vm_page_xunbusy_hard(vm_page_t m)
1233 {
1234 vm_page_assert_xbusied(m);
1235 vm_page_xunbusy_hard_tail(m);
1236 }
1237
1238 void
vm_page_xunbusy_hard_unchecked(vm_page_t m)1239 vm_page_xunbusy_hard_unchecked(vm_page_t m)
1240 {
1241 vm_page_assert_xbusied_unchecked(m);
1242 vm_page_xunbusy_hard_tail(m);
1243 }
1244
1245 static void
vm_page_busy_free(vm_page_t m)1246 vm_page_busy_free(vm_page_t m)
1247 {
1248 u_int x;
1249
1250 atomic_thread_fence_rel();
1251 x = atomic_swap_int(&m->busy_lock, VPB_FREED);
1252 if ((x & VPB_BIT_WAITERS) != 0)
1253 wakeup(m);
1254 }
1255
1256 /*
1257 * vm_page_unhold_pages:
1258 *
1259 * Unhold each of the pages that is referenced by the given array.
1260 */
1261 void
vm_page_unhold_pages(vm_page_t * ma,int count)1262 vm_page_unhold_pages(vm_page_t *ma, int count)
1263 {
1264
1265 for (; count != 0; count--) {
1266 vm_page_unwire(*ma, PQ_ACTIVE);
1267 ma++;
1268 }
1269 }
1270
1271 vm_page_t
PHYS_TO_VM_PAGE(vm_paddr_t pa)1272 PHYS_TO_VM_PAGE(vm_paddr_t pa)
1273 {
1274 vm_page_t m;
1275
1276 #ifdef VM_PHYSSEG_SPARSE
1277 m = vm_phys_paddr_to_vm_page(pa);
1278 if (m == NULL)
1279 m = vm_phys_fictitious_to_vm_page(pa);
1280 return (m);
1281 #elif defined(VM_PHYSSEG_DENSE)
1282 long pi;
1283
1284 pi = atop(pa);
1285 if (pi >= first_page && (pi - first_page) < vm_page_array_size) {
1286 m = &vm_page_array[pi - first_page];
1287 return (m);
1288 }
1289 return (vm_phys_fictitious_to_vm_page(pa));
1290 #else
1291 #error "Either VM_PHYSSEG_DENSE or VM_PHYSSEG_SPARSE must be defined."
1292 #endif
1293 }
1294
1295 /*
1296 * vm_page_getfake:
1297 *
1298 * Create a fictitious page with the specified physical address and
1299 * memory attribute. The memory attribute is the only the machine-
1300 * dependent aspect of a fictitious page that must be initialized.
1301 */
1302 vm_page_t
vm_page_getfake(vm_paddr_t paddr,vm_memattr_t memattr)1303 vm_page_getfake(vm_paddr_t paddr, vm_memattr_t memattr)
1304 {
1305 vm_page_t m;
1306
1307 m = uma_zalloc(fakepg_zone, M_WAITOK | M_ZERO);
1308 vm_page_initfake(m, paddr, memattr);
1309 return (m);
1310 }
1311
1312 void
vm_page_initfake(vm_page_t m,vm_paddr_t paddr,vm_memattr_t memattr)1313 vm_page_initfake(vm_page_t m, vm_paddr_t paddr, vm_memattr_t memattr)
1314 {
1315
1316 if ((m->flags & PG_FICTITIOUS) != 0) {
1317 /*
1318 * The page's memattr might have changed since the
1319 * previous initialization. Update the pmap to the
1320 * new memattr.
1321 */
1322 goto memattr;
1323 }
1324 m->phys_addr = paddr;
1325 m->a.queue = PQ_NONE;
1326 /* Fictitious pages don't use "segind". */
1327 m->flags = PG_FICTITIOUS;
1328 /* Fictitious pages don't use "order" or "pool". */
1329 m->oflags = VPO_UNMANAGED;
1330 m->busy_lock = VPB_CURTHREAD_EXCLUSIVE;
1331 /* Fictitious pages are unevictable. */
1332 m->ref_count = 1;
1333 pmap_page_init(m);
1334 memattr:
1335 pmap_page_set_memattr(m, memattr);
1336 }
1337
1338 /*
1339 * vm_page_putfake:
1340 *
1341 * Release a fictitious page.
1342 */
1343 void
vm_page_putfake(vm_page_t m)1344 vm_page_putfake(vm_page_t m)
1345 {
1346
1347 KASSERT((m->oflags & VPO_UNMANAGED) != 0, ("managed %p", m));
1348 KASSERT((m->flags & PG_FICTITIOUS) != 0,
1349 ("vm_page_putfake: bad page %p", m));
1350 vm_page_assert_xbusied(m);
1351 vm_page_busy_free(m);
1352 uma_zfree(fakepg_zone, m);
1353 }
1354
1355 /*
1356 * vm_page_updatefake:
1357 *
1358 * Update the given fictitious page to the specified physical address and
1359 * memory attribute.
1360 */
1361 void
vm_page_updatefake(vm_page_t m,vm_paddr_t paddr,vm_memattr_t memattr)1362 vm_page_updatefake(vm_page_t m, vm_paddr_t paddr, vm_memattr_t memattr)
1363 {
1364
1365 KASSERT((m->flags & PG_FICTITIOUS) != 0,
1366 ("vm_page_updatefake: bad page %p", m));
1367 m->phys_addr = paddr;
1368 pmap_page_set_memattr(m, memattr);
1369 }
1370
1371 /*
1372 * vm_page_free:
1373 *
1374 * Free a page.
1375 */
1376 void
vm_page_free(vm_page_t m)1377 vm_page_free(vm_page_t m)
1378 {
1379
1380 m->flags &= ~PG_ZERO;
1381 vm_page_free_toq(m);
1382 }
1383
1384 /*
1385 * vm_page_free_zero:
1386 *
1387 * Free a page to the zerod-pages queue
1388 */
1389 void
vm_page_free_zero(vm_page_t m)1390 vm_page_free_zero(vm_page_t m)
1391 {
1392
1393 m->flags |= PG_ZERO;
1394 vm_page_free_toq(m);
1395 }
1396
1397 /*
1398 * Unbusy and handle the page queueing for a page from a getpages request that
1399 * was optionally read ahead or behind.
1400 */
1401 void
vm_page_readahead_finish(vm_page_t m)1402 vm_page_readahead_finish(vm_page_t m)
1403 {
1404
1405 /* We shouldn't put invalid pages on queues. */
1406 KASSERT(!vm_page_none_valid(m), ("%s: %p is invalid", __func__, m));
1407
1408 /*
1409 * Since the page is not the actually needed one, whether it should
1410 * be activated or deactivated is not obvious. Empirical results
1411 * have shown that deactivating the page is usually the best choice,
1412 * unless the page is wanted by another thread.
1413 */
1414 if ((vm_page_busy_fetch(m) & VPB_BIT_WAITERS) != 0)
1415 vm_page_activate(m);
1416 else
1417 vm_page_deactivate(m);
1418 vm_page_xunbusy_unchecked(m);
1419 }
1420
1421 /*
1422 * Destroy the identity of an invalid page and free it if possible.
1423 * This is intended to be used when reading a page from backing store fails.
1424 */
1425 void
vm_page_free_invalid(vm_page_t m)1426 vm_page_free_invalid(vm_page_t m)
1427 {
1428
1429 KASSERT(vm_page_none_valid(m), ("page %p is valid", m));
1430 KASSERT(!pmap_page_is_mapped(m), ("page %p is mapped", m));
1431 KASSERT(m->object != NULL, ("page %p has no object", m));
1432 VM_OBJECT_ASSERT_WLOCKED(m->object);
1433
1434 /*
1435 * We may be attempting to free the page as part of the handling for an
1436 * I/O error, in which case the page was xbusied by a different thread.
1437 */
1438 vm_page_xbusy_claim(m);
1439
1440 /*
1441 * If someone has wired this page while the object lock
1442 * was not held, then the thread that unwires is responsible
1443 * for freeing the page. Otherwise just free the page now.
1444 * The wire count of this unmapped page cannot change while
1445 * we have the page xbusy and the page's object wlocked.
1446 */
1447 if (vm_page_remove(m))
1448 vm_page_free(m);
1449 }
1450
1451 /*
1452 * vm_page_dirty_KBI: [ internal use only ]
1453 *
1454 * Set all bits in the page's dirty field.
1455 *
1456 * The object containing the specified page must be locked if the
1457 * call is made from the machine-independent layer.
1458 *
1459 * See vm_page_clear_dirty_mask().
1460 *
1461 * This function should only be called by vm_page_dirty().
1462 */
1463 void
vm_page_dirty_KBI(vm_page_t m)1464 vm_page_dirty_KBI(vm_page_t m)
1465 {
1466
1467 /* Refer to this operation by its public name. */
1468 KASSERT(vm_page_all_valid(m), ("vm_page_dirty: page is invalid!"));
1469 m->dirty = VM_PAGE_BITS_ALL;
1470 }
1471
1472 /*
1473 * Insert the given page into the given object at the given pindex. mpred is
1474 * used for memq linkage. From vm_page_insert, iter is false, mpred is
1475 * initially NULL, and this procedure looks it up. From vm_page_iter_insert,
1476 * iter is true and mpred is known to the caller to be valid, and may be NULL if
1477 * this will be the page with the lowest pindex.
1478 *
1479 * The procedure is marked __always_inline to suggest to the compiler to
1480 * eliminate the lookup parameter and the associated alternate branch.
1481 */
1482 static __always_inline int
vm_page_insert_lookup(vm_page_t m,vm_object_t object,vm_pindex_t pindex,struct pctrie_iter * pages,bool iter,vm_page_t mpred)1483 vm_page_insert_lookup(vm_page_t m, vm_object_t object, vm_pindex_t pindex,
1484 struct pctrie_iter *pages, bool iter, vm_page_t mpred)
1485 {
1486 int error;
1487
1488 VM_OBJECT_ASSERT_WLOCKED(object);
1489 KASSERT(m->object == NULL,
1490 ("vm_page_insert: page %p already inserted", m));
1491
1492 /*
1493 * Record the object/offset pair in this page.
1494 */
1495 m->object = object;
1496 m->pindex = pindex;
1497 m->ref_count |= VPRC_OBJREF;
1498
1499 /*
1500 * Add this page to the object's radix tree, and look up mpred if
1501 * needed.
1502 */
1503 if (iter)
1504 error = vm_radix_iter_insert(pages, m);
1505 else
1506 error = vm_radix_insert_lookup_lt(&object->rtree, m, &mpred);
1507 if (__predict_false(error != 0)) {
1508 m->object = NULL;
1509 m->pindex = 0;
1510 m->ref_count &= ~VPRC_OBJREF;
1511 return (1);
1512 }
1513
1514 /*
1515 * Now link into the object's ordered list of backed pages.
1516 */
1517 vm_page_insert_radixdone(m, object, mpred);
1518 vm_pager_page_inserted(object, m);
1519 return (0);
1520 }
1521
1522 /*
1523 * vm_page_insert: [ internal use only ]
1524 *
1525 * Inserts the given mem entry into the object and object list.
1526 *
1527 * The object must be locked.
1528 */
1529 int
vm_page_insert(vm_page_t m,vm_object_t object,vm_pindex_t pindex)1530 vm_page_insert(vm_page_t m, vm_object_t object, vm_pindex_t pindex)
1531 {
1532 return (vm_page_insert_lookup(m, object, pindex, NULL, false, NULL));
1533 }
1534
1535 /*
1536 * vm_page_iter_insert:
1537 *
1538 * Tries to insert the page "m" into the specified object at offset
1539 * "pindex" using the iterator "pages". Returns 0 if the insertion was
1540 * successful.
1541 *
1542 * The page "mpred" must immediately precede the offset "pindex" within
1543 * the specified object.
1544 *
1545 * The object must be locked.
1546 */
1547 static int
vm_page_iter_insert(struct pctrie_iter * pages,vm_page_t m,vm_object_t object,vm_pindex_t pindex,vm_page_t mpred)1548 vm_page_iter_insert(struct pctrie_iter *pages, vm_page_t m, vm_object_t object,
1549 vm_pindex_t pindex, vm_page_t mpred)
1550 {
1551 return (vm_page_insert_lookup(m, object, pindex, pages, true, mpred));
1552 }
1553
1554 /*
1555 * vm_page_insert_radixdone:
1556 *
1557 * Complete page "m" insertion into the specified object after the
1558 * radix trie hooking.
1559 *
1560 * The page "mpred" must precede the offset "m->pindex" within the
1561 * specified object.
1562 *
1563 * The object must be locked.
1564 */
1565 static void
vm_page_insert_radixdone(vm_page_t m,vm_object_t object,vm_page_t mpred)1566 vm_page_insert_radixdone(vm_page_t m, vm_object_t object, vm_page_t mpred)
1567 {
1568
1569 VM_OBJECT_ASSERT_WLOCKED(object);
1570 KASSERT(object != NULL && m->object == object,
1571 ("vm_page_insert_radixdone: page %p has inconsistent object", m));
1572 KASSERT((m->ref_count & VPRC_OBJREF) != 0,
1573 ("vm_page_insert_radixdone: page %p is missing object ref", m));
1574 if (mpred != NULL) {
1575 KASSERT(mpred->object == object,
1576 ("vm_page_insert_radixdone: object doesn't contain mpred"));
1577 KASSERT(mpred->pindex < m->pindex,
1578 ("vm_page_insert_radixdone: mpred doesn't precede pindex"));
1579 KASSERT(TAILQ_NEXT(mpred, listq) == NULL ||
1580 m->pindex < TAILQ_NEXT(mpred, listq)->pindex,
1581 ("vm_page_insert_radixdone: pindex doesn't precede msucc"));
1582 } else {
1583 KASSERT(TAILQ_EMPTY(&object->memq) ||
1584 m->pindex < TAILQ_FIRST(&object->memq)->pindex,
1585 ("vm_page_insert_radixdone: no mpred but not first page"));
1586 }
1587
1588 if (mpred != NULL)
1589 TAILQ_INSERT_AFTER(&object->memq, mpred, m, listq);
1590 else
1591 TAILQ_INSERT_HEAD(&object->memq, m, listq);
1592
1593 /*
1594 * Show that the object has one more resident page.
1595 */
1596 object->resident_page_count++;
1597
1598 /*
1599 * Hold the vnode until the last page is released.
1600 */
1601 if (object->resident_page_count == 1 && object->type == OBJT_VNODE)
1602 vhold(object->handle);
1603
1604 /*
1605 * Since we are inserting a new and possibly dirty page,
1606 * update the object's generation count.
1607 */
1608 if (pmap_page_is_write_mapped(m))
1609 vm_object_set_writeable_dirty(object);
1610 }
1611
1612 /*
1613 * vm_page_remove_radixdone
1614 *
1615 * Complete page "m" removal from the specified object after the radix trie
1616 * unhooking.
1617 *
1618 * The caller is responsible for updating the page's fields to reflect this
1619 * removal.
1620 */
1621 static void
vm_page_remove_radixdone(vm_page_t m)1622 vm_page_remove_radixdone(vm_page_t m)
1623 {
1624 vm_object_t object;
1625
1626 vm_page_assert_xbusied(m);
1627 object = m->object;
1628 VM_OBJECT_ASSERT_WLOCKED(object);
1629 KASSERT((m->ref_count & VPRC_OBJREF) != 0,
1630 ("page %p is missing its object ref", m));
1631
1632 /* Deferred free of swap space. */
1633 if ((m->a.flags & PGA_SWAP_FREE) != 0)
1634 vm_pager_page_unswapped(m);
1635
1636 vm_pager_page_removed(object, m);
1637 m->object = NULL;
1638
1639 /*
1640 * Now remove from the object's list of backed pages.
1641 */
1642 TAILQ_REMOVE(&object->memq, m, listq);
1643
1644 /*
1645 * And show that the object has one fewer resident page.
1646 */
1647 object->resident_page_count--;
1648
1649 /*
1650 * The vnode may now be recycled.
1651 */
1652 if (object->resident_page_count == 0 && object->type == OBJT_VNODE)
1653 vdrop(object->handle);
1654 }
1655
1656 /*
1657 * vm_page_free_object_prep:
1658 *
1659 * Disassociates the given page from its VM object.
1660 *
1661 * The object must be locked, and the page must be xbusy.
1662 */
1663 static void
vm_page_free_object_prep(vm_page_t m)1664 vm_page_free_object_prep(vm_page_t m)
1665 {
1666 KASSERT(((m->oflags & VPO_UNMANAGED) != 0) ==
1667 ((m->object->flags & OBJ_UNMANAGED) != 0),
1668 ("%s: managed flag mismatch for page %p",
1669 __func__, m));
1670 vm_page_assert_xbusied(m);
1671
1672 /*
1673 * The object reference can be released without an atomic
1674 * operation.
1675 */
1676 KASSERT((m->flags & PG_FICTITIOUS) != 0 ||
1677 m->ref_count == VPRC_OBJREF,
1678 ("%s: page %p has unexpected ref_count %u",
1679 __func__, m, m->ref_count));
1680 vm_page_remove_radixdone(m);
1681 m->ref_count -= VPRC_OBJREF;
1682 }
1683
1684 /*
1685 * vm_page_iter_free:
1686 *
1687 * Free the given page, and use the iterator to remove it from the radix
1688 * tree.
1689 */
1690 void
vm_page_iter_free(struct pctrie_iter * pages,vm_page_t m)1691 vm_page_iter_free(struct pctrie_iter *pages, vm_page_t m)
1692 {
1693 vm_radix_iter_remove(pages);
1694 vm_page_free_object_prep(m);
1695 vm_page_xunbusy(m);
1696 m->flags &= ~PG_ZERO;
1697 vm_page_free_toq(m);
1698 }
1699
1700 /*
1701 * vm_page_remove:
1702 *
1703 * Removes the specified page from its containing object, but does not
1704 * invalidate any backing storage. Returns true if the object's reference
1705 * was the last reference to the page, and false otherwise.
1706 *
1707 * The object must be locked and the page must be exclusively busied.
1708 * The exclusive busy will be released on return. If this is not the
1709 * final ref and the caller does not hold a wire reference it may not
1710 * continue to access the page.
1711 */
1712 bool
vm_page_remove(vm_page_t m)1713 vm_page_remove(vm_page_t m)
1714 {
1715 bool dropped;
1716
1717 dropped = vm_page_remove_xbusy(m);
1718 vm_page_xunbusy(m);
1719
1720 return (dropped);
1721 }
1722
1723 /*
1724 * vm_page_iter_remove:
1725 *
1726 * Remove the current page, and use the iterator to remove it from the
1727 * radix tree.
1728 */
1729 bool
vm_page_iter_remove(struct pctrie_iter * pages,vm_page_t m)1730 vm_page_iter_remove(struct pctrie_iter *pages, vm_page_t m)
1731 {
1732 bool dropped;
1733
1734 vm_radix_iter_remove(pages);
1735 vm_page_remove_radixdone(m);
1736 dropped = (vm_page_drop(m, VPRC_OBJREF) == VPRC_OBJREF);
1737 vm_page_xunbusy(m);
1738
1739 return (dropped);
1740 }
1741
1742 /*
1743 * vm_page_radix_remove
1744 *
1745 * Removes the specified page from the radix tree.
1746 */
1747 static void
vm_page_radix_remove(vm_page_t m)1748 vm_page_radix_remove(vm_page_t m)
1749 {
1750 vm_page_t mrem __diagused;
1751
1752 mrem = vm_radix_remove(&m->object->rtree, m->pindex);
1753 KASSERT(mrem == m,
1754 ("removed page %p, expected page %p", mrem, m));
1755 }
1756
1757 /*
1758 * vm_page_remove_xbusy
1759 *
1760 * Removes the page but leaves the xbusy held. Returns true if this
1761 * removed the final ref and false otherwise.
1762 */
1763 bool
vm_page_remove_xbusy(vm_page_t m)1764 vm_page_remove_xbusy(vm_page_t m)
1765 {
1766
1767 vm_page_radix_remove(m);
1768 vm_page_remove_radixdone(m);
1769 return (vm_page_drop(m, VPRC_OBJREF) == VPRC_OBJREF);
1770 }
1771
1772 /*
1773 * vm_page_lookup:
1774 *
1775 * Returns the page associated with the object/offset
1776 * pair specified; if none is found, NULL is returned.
1777 *
1778 * The object must be locked.
1779 */
1780 vm_page_t
vm_page_lookup(vm_object_t object,vm_pindex_t pindex)1781 vm_page_lookup(vm_object_t object, vm_pindex_t pindex)
1782 {
1783
1784 VM_OBJECT_ASSERT_LOCKED(object);
1785 return (vm_radix_lookup(&object->rtree, pindex));
1786 }
1787
1788 /*
1789 * vm_page_iter_init:
1790 *
1791 * Initialize iterator for vm pages.
1792 */
1793 void
vm_page_iter_init(struct pctrie_iter * pages,vm_object_t object)1794 vm_page_iter_init(struct pctrie_iter *pages, vm_object_t object)
1795 {
1796
1797 vm_radix_iter_init(pages, &object->rtree);
1798 }
1799
1800 /*
1801 * vm_page_iter_init:
1802 *
1803 * Initialize iterator for vm pages.
1804 */
1805 void
vm_page_iter_limit_init(struct pctrie_iter * pages,vm_object_t object,vm_pindex_t limit)1806 vm_page_iter_limit_init(struct pctrie_iter *pages, vm_object_t object,
1807 vm_pindex_t limit)
1808 {
1809
1810 vm_radix_iter_limit_init(pages, &object->rtree, limit);
1811 }
1812
1813 /*
1814 * vm_page_lookup_unlocked:
1815 *
1816 * Returns the page associated with the object/offset pair specified;
1817 * if none is found, NULL is returned. The page may be no longer be
1818 * present in the object at the time that this function returns. Only
1819 * useful for opportunistic checks such as inmem().
1820 */
1821 vm_page_t
vm_page_lookup_unlocked(vm_object_t object,vm_pindex_t pindex)1822 vm_page_lookup_unlocked(vm_object_t object, vm_pindex_t pindex)
1823 {
1824
1825 return (vm_radix_lookup_unlocked(&object->rtree, pindex));
1826 }
1827
1828 /*
1829 * vm_page_relookup:
1830 *
1831 * Returns a page that must already have been busied by
1832 * the caller. Used for bogus page replacement.
1833 */
1834 vm_page_t
vm_page_relookup(vm_object_t object,vm_pindex_t pindex)1835 vm_page_relookup(vm_object_t object, vm_pindex_t pindex)
1836 {
1837 vm_page_t m;
1838
1839 m = vm_page_lookup_unlocked(object, pindex);
1840 KASSERT(m != NULL && (vm_page_busied(m) || vm_page_wired(m)) &&
1841 m->object == object && m->pindex == pindex,
1842 ("vm_page_relookup: Invalid page %p", m));
1843 return (m);
1844 }
1845
1846 /*
1847 * This should only be used by lockless functions for releasing transient
1848 * incorrect acquires. The page may have been freed after we acquired a
1849 * busy lock. In this case busy_lock == VPB_FREED and we have nothing
1850 * further to do.
1851 */
1852 static void
vm_page_busy_release(vm_page_t m)1853 vm_page_busy_release(vm_page_t m)
1854 {
1855 u_int x;
1856
1857 x = vm_page_busy_fetch(m);
1858 for (;;) {
1859 if (x == VPB_FREED)
1860 break;
1861 if ((x & VPB_BIT_SHARED) != 0 && VPB_SHARERS(x) > 1) {
1862 if (atomic_fcmpset_int(&m->busy_lock, &x,
1863 x - VPB_ONE_SHARER))
1864 break;
1865 continue;
1866 }
1867 KASSERT((x & VPB_BIT_SHARED) != 0 ||
1868 (x & ~VPB_BIT_WAITERS) == VPB_CURTHREAD_EXCLUSIVE,
1869 ("vm_page_busy_release: %p xbusy not owned.", m));
1870 if (!atomic_fcmpset_rel_int(&m->busy_lock, &x, VPB_UNBUSIED))
1871 continue;
1872 if ((x & VPB_BIT_WAITERS) != 0)
1873 wakeup(m);
1874 break;
1875 }
1876 }
1877
1878 /*
1879 * Uses the page mnew as a replacement for an existing page at index
1880 * pindex which must be already present in the object.
1881 *
1882 * Both pages must be exclusively busied on enter. The old page is
1883 * unbusied on exit.
1884 *
1885 * A return value of true means mold is now free. If this is not the
1886 * final ref and the caller does not hold a wire reference it may not
1887 * continue to access the page.
1888 */
1889 static bool
vm_page_replace_hold(vm_page_t mnew,vm_object_t object,vm_pindex_t pindex,vm_page_t mold)1890 vm_page_replace_hold(vm_page_t mnew, vm_object_t object, vm_pindex_t pindex,
1891 vm_page_t mold)
1892 {
1893 vm_page_t mret __diagused;
1894 bool dropped;
1895
1896 VM_OBJECT_ASSERT_WLOCKED(object);
1897 vm_page_assert_xbusied(mold);
1898 KASSERT(mnew->object == NULL && (mnew->ref_count & VPRC_OBJREF) == 0,
1899 ("vm_page_replace: page %p already in object", mnew));
1900
1901 /*
1902 * This function mostly follows vm_page_insert() and
1903 * vm_page_remove() without the radix, object count and vnode
1904 * dance. Double check such functions for more comments.
1905 */
1906
1907 mnew->object = object;
1908 mnew->pindex = pindex;
1909 atomic_set_int(&mnew->ref_count, VPRC_OBJREF);
1910 mret = vm_radix_replace(&object->rtree, mnew);
1911 KASSERT(mret == mold,
1912 ("invalid page replacement, mold=%p, mret=%p", mold, mret));
1913 KASSERT((mold->oflags & VPO_UNMANAGED) ==
1914 (mnew->oflags & VPO_UNMANAGED),
1915 ("vm_page_replace: mismatched VPO_UNMANAGED"));
1916
1917 /* Keep the resident page list in sorted order. */
1918 TAILQ_INSERT_AFTER(&object->memq, mold, mnew, listq);
1919 TAILQ_REMOVE(&object->memq, mold, listq);
1920 mold->object = NULL;
1921
1922 /*
1923 * The object's resident_page_count does not change because we have
1924 * swapped one page for another, but the generation count should
1925 * change if the page is dirty.
1926 */
1927 if (pmap_page_is_write_mapped(mnew))
1928 vm_object_set_writeable_dirty(object);
1929 dropped = vm_page_drop(mold, VPRC_OBJREF) == VPRC_OBJREF;
1930 vm_page_xunbusy(mold);
1931
1932 return (dropped);
1933 }
1934
1935 void
vm_page_replace(vm_page_t mnew,vm_object_t object,vm_pindex_t pindex,vm_page_t mold)1936 vm_page_replace(vm_page_t mnew, vm_object_t object, vm_pindex_t pindex,
1937 vm_page_t mold)
1938 {
1939
1940 vm_page_assert_xbusied(mnew);
1941
1942 if (vm_page_replace_hold(mnew, object, pindex, mold))
1943 vm_page_free(mold);
1944 }
1945
1946 /*
1947 * vm_page_iter_rename:
1948 *
1949 * Tries to move the specified page from its current object to a new object
1950 * and pindex, using the given iterator to remove the page from its current
1951 * object. Returns true if the move was successful, and false if the move
1952 * was aborted due to a failed memory allocation.
1953 *
1954 * Panics if a page already resides in the new object at the new pindex.
1955 *
1956 * This routine dirties the page if it is valid, as callers are expected to
1957 * transfer backing storage only after moving the page. Dirtying the page
1958 * ensures that the destination object retains the most recent copy of the
1959 * page.
1960 *
1961 * The objects must be locked.
1962 */
1963 bool
vm_page_iter_rename(struct pctrie_iter * old_pages,vm_page_t m,vm_object_t new_object,vm_pindex_t new_pindex)1964 vm_page_iter_rename(struct pctrie_iter *old_pages, vm_page_t m,
1965 vm_object_t new_object, vm_pindex_t new_pindex)
1966 {
1967 vm_page_t mpred;
1968 vm_pindex_t opidx;
1969
1970 KASSERT((m->ref_count & VPRC_OBJREF) != 0,
1971 ("%s: page %p is missing object ref", __func__, m));
1972 VM_OBJECT_ASSERT_WLOCKED(m->object);
1973 VM_OBJECT_ASSERT_WLOCKED(new_object);
1974
1975 /*
1976 * Create a custom version of vm_page_insert() which does not depend
1977 * by m_prev and can cheat on the implementation aspects of the
1978 * function.
1979 */
1980 opidx = m->pindex;
1981 m->pindex = new_pindex;
1982 if (vm_radix_insert_lookup_lt(&new_object->rtree, m, &mpred) != 0) {
1983 m->pindex = opidx;
1984 return (false);
1985 }
1986
1987 /*
1988 * The operation cannot fail anymore. The removal must happen before
1989 * the listq iterator is tainted.
1990 */
1991 m->pindex = opidx;
1992 vm_radix_iter_remove(old_pages);
1993 vm_page_remove_radixdone(m);
1994
1995 /* Return back to the new pindex to complete vm_page_insert(). */
1996 m->pindex = new_pindex;
1997 m->object = new_object;
1998
1999 vm_page_insert_radixdone(m, new_object, mpred);
2000 if (vm_page_any_valid(m))
2001 vm_page_dirty(m);
2002 vm_pager_page_inserted(new_object, m);
2003 return (true);
2004 }
2005
2006 /*
2007 * vm_page_mpred:
2008 *
2009 * Return the greatest page of the object with index <= pindex,
2010 * or NULL, if there is none. Assumes object lock is held.
2011 */
2012 vm_page_t
vm_page_mpred(vm_object_t object,vm_pindex_t pindex)2013 vm_page_mpred(vm_object_t object, vm_pindex_t pindex)
2014 {
2015 return (vm_radix_lookup_le(&object->rtree, pindex));
2016 }
2017
2018 /*
2019 * vm_page_alloc:
2020 *
2021 * Allocate and return a page that is associated with the specified
2022 * object and offset pair. By default, this page is exclusive busied.
2023 *
2024 * The caller must always specify an allocation class.
2025 *
2026 * allocation classes:
2027 * VM_ALLOC_NORMAL normal process request
2028 * VM_ALLOC_SYSTEM system *really* needs a page
2029 * VM_ALLOC_INTERRUPT interrupt time request
2030 *
2031 * optional allocation flags:
2032 * VM_ALLOC_COUNT(number) the number of additional pages that the caller
2033 * intends to allocate
2034 * VM_ALLOC_NOBUSY do not exclusive busy the page
2035 * VM_ALLOC_NODUMP do not include the page in a kernel core dump
2036 * VM_ALLOC_SBUSY shared busy the allocated page
2037 * VM_ALLOC_WIRED wire the allocated page
2038 * VM_ALLOC_ZERO prefer a zeroed page
2039 */
2040 vm_page_t
vm_page_alloc(vm_object_t object,vm_pindex_t pindex,int req)2041 vm_page_alloc(vm_object_t object, vm_pindex_t pindex, int req)
2042 {
2043 struct pctrie_iter pages;
2044
2045 vm_page_iter_init(&pages, object);
2046 return (vm_page_alloc_after(object, &pages, pindex, req,
2047 vm_page_mpred(object, pindex)));
2048 }
2049
2050 /*
2051 * Allocate a page in the specified object with the given page index. To
2052 * optimize insertion of the page into the object, the caller must also specify
2053 * the resident page in the object with largest index smaller than the given
2054 * page index, or NULL if no such page exists.
2055 */
2056 vm_page_t
vm_page_alloc_after(vm_object_t object,struct pctrie_iter * pages,vm_pindex_t pindex,int req,vm_page_t mpred)2057 vm_page_alloc_after(vm_object_t object, struct pctrie_iter *pages,
2058 vm_pindex_t pindex, int req, vm_page_t mpred)
2059 {
2060 struct vm_domainset_iter di;
2061 vm_page_t m;
2062 int domain;
2063
2064 vm_domainset_iter_page_init(&di, object, pindex, &domain, &req);
2065 do {
2066 m = vm_page_alloc_domain_after(object, pages, pindex, domain,
2067 req, mpred);
2068 if (m != NULL)
2069 break;
2070 } while (vm_domainset_iter_page(&di, object, &domain) == 0);
2071
2072 return (m);
2073 }
2074
2075 /*
2076 * Returns true if the number of free pages exceeds the minimum
2077 * for the request class and false otherwise.
2078 */
2079 static int
_vm_domain_allocate(struct vm_domain * vmd,int req_class,int npages)2080 _vm_domain_allocate(struct vm_domain *vmd, int req_class, int npages)
2081 {
2082 u_int limit, old, new;
2083
2084 if (req_class == VM_ALLOC_INTERRUPT)
2085 limit = 0;
2086 else if (req_class == VM_ALLOC_SYSTEM)
2087 limit = vmd->vmd_interrupt_free_min;
2088 else
2089 limit = vmd->vmd_free_reserved;
2090
2091 /*
2092 * Attempt to reserve the pages. Fail if we're below the limit.
2093 */
2094 limit += npages;
2095 old = atomic_load_int(&vmd->vmd_free_count);
2096 do {
2097 if (old < limit)
2098 return (0);
2099 new = old - npages;
2100 } while (atomic_fcmpset_int(&vmd->vmd_free_count, &old, new) == 0);
2101
2102 /* Wake the page daemon if we've crossed the threshold. */
2103 if (vm_paging_needed(vmd, new) && !vm_paging_needed(vmd, old))
2104 pagedaemon_wakeup(vmd->vmd_domain);
2105
2106 /* Only update bitsets on transitions. */
2107 if ((old >= vmd->vmd_free_min && new < vmd->vmd_free_min) ||
2108 (old >= vmd->vmd_free_severe && new < vmd->vmd_free_severe))
2109 vm_domain_set(vmd);
2110
2111 return (1);
2112 }
2113
2114 int
vm_domain_allocate(struct vm_domain * vmd,int req,int npages)2115 vm_domain_allocate(struct vm_domain *vmd, int req, int npages)
2116 {
2117 int req_class;
2118
2119 /*
2120 * The page daemon is allowed to dig deeper into the free page list.
2121 */
2122 req_class = req & VM_ALLOC_CLASS_MASK;
2123 if (curproc == pageproc && req_class != VM_ALLOC_INTERRUPT)
2124 req_class = VM_ALLOC_SYSTEM;
2125 return (_vm_domain_allocate(vmd, req_class, npages));
2126 }
2127
2128 vm_page_t
vm_page_alloc_domain_after(vm_object_t object,struct pctrie_iter * pages,vm_pindex_t pindex,int domain,int req,vm_page_t mpred)2129 vm_page_alloc_domain_after(vm_object_t object, struct pctrie_iter *pages,
2130 vm_pindex_t pindex, int domain, int req, vm_page_t mpred)
2131 {
2132 struct vm_domain *vmd;
2133 vm_page_t m;
2134 int flags;
2135
2136 #define VPA_FLAGS (VM_ALLOC_CLASS_MASK | VM_ALLOC_WAITFAIL | \
2137 VM_ALLOC_NOWAIT | VM_ALLOC_NOBUSY | \
2138 VM_ALLOC_SBUSY | VM_ALLOC_WIRED | \
2139 VM_ALLOC_NODUMP | VM_ALLOC_ZERO | \
2140 VM_ALLOC_NOFREE | VM_ALLOC_COUNT_MASK)
2141 KASSERT((req & ~VPA_FLAGS) == 0,
2142 ("invalid request %#x", req));
2143 KASSERT(((req & (VM_ALLOC_NOBUSY | VM_ALLOC_SBUSY)) !=
2144 (VM_ALLOC_NOBUSY | VM_ALLOC_SBUSY)),
2145 ("invalid request %#x", req));
2146 KASSERT(mpred == NULL || mpred->pindex < pindex,
2147 ("mpred %p doesn't precede pindex 0x%jx", mpred,
2148 (uintmax_t)pindex));
2149 VM_OBJECT_ASSERT_WLOCKED(object);
2150
2151 flags = 0;
2152 m = NULL;
2153 if (!vm_pager_can_alloc_page(object, pindex))
2154 return (NULL);
2155 again:
2156 if (__predict_false((req & VM_ALLOC_NOFREE) != 0)) {
2157 m = vm_page_alloc_nofree_domain(domain, req);
2158 if (m != NULL)
2159 goto found;
2160 }
2161 #if VM_NRESERVLEVEL > 0
2162 /*
2163 * Can we allocate the page from a reservation?
2164 */
2165 if (vm_object_reserv(object) &&
2166 (m = vm_reserv_alloc_page(object, pages, pindex, domain, req)) !=
2167 NULL) {
2168 goto found;
2169 }
2170 #endif
2171 vmd = VM_DOMAIN(domain);
2172 if (vmd->vmd_pgcache[VM_FREEPOOL_DEFAULT].zone != NULL) {
2173 m = uma_zalloc(vmd->vmd_pgcache[VM_FREEPOOL_DEFAULT].zone,
2174 M_NOWAIT | M_NOVM);
2175 if (m != NULL) {
2176 flags |= PG_PCPU_CACHE;
2177 goto found;
2178 }
2179 }
2180 if (vm_domain_allocate(vmd, req, 1)) {
2181 /*
2182 * If not, allocate it from the free page queues.
2183 */
2184 vm_domain_free_lock(vmd);
2185 m = vm_phys_alloc_pages(domain, VM_FREEPOOL_DEFAULT, 0);
2186 vm_domain_free_unlock(vmd);
2187 if (m == NULL) {
2188 vm_domain_freecnt_inc(vmd, 1);
2189 #if VM_NRESERVLEVEL > 0
2190 if (vm_reserv_reclaim_inactive(domain))
2191 goto again;
2192 #endif
2193 }
2194 }
2195 if (m == NULL) {
2196 /*
2197 * Not allocatable, give up.
2198 */
2199 pctrie_iter_reset(pages);
2200 if (vm_domain_alloc_fail(vmd, object, req))
2201 goto again;
2202 return (NULL);
2203 }
2204
2205 /*
2206 * At this point we had better have found a good page.
2207 */
2208 found:
2209 vm_page_dequeue(m);
2210 vm_page_alloc_check(m);
2211
2212 /*
2213 * Initialize the page. Only the PG_ZERO flag is inherited.
2214 */
2215 flags |= m->flags & PG_ZERO;
2216 if ((req & VM_ALLOC_NODUMP) != 0)
2217 flags |= PG_NODUMP;
2218 if ((req & VM_ALLOC_NOFREE) != 0)
2219 flags |= PG_NOFREE;
2220 m->flags = flags;
2221 m->a.flags = 0;
2222 m->oflags = (object->flags & OBJ_UNMANAGED) != 0 ? VPO_UNMANAGED : 0;
2223 m->pool = VM_FREEPOOL_DEFAULT;
2224 if ((req & (VM_ALLOC_NOBUSY | VM_ALLOC_SBUSY)) == 0)
2225 m->busy_lock = VPB_CURTHREAD_EXCLUSIVE;
2226 else if ((req & VM_ALLOC_SBUSY) != 0)
2227 m->busy_lock = VPB_SHARERS_WORD(1);
2228 else
2229 m->busy_lock = VPB_UNBUSIED;
2230 if (req & VM_ALLOC_WIRED) {
2231 vm_wire_add(1);
2232 m->ref_count = 1;
2233 }
2234 m->a.act_count = 0;
2235
2236 if (vm_page_insert_lookup(m, object, pindex, pages, true, mpred)) {
2237 if (req & VM_ALLOC_WIRED) {
2238 vm_wire_sub(1);
2239 m->ref_count = 0;
2240 }
2241 KASSERT(m->object == NULL, ("page %p has object", m));
2242 m->oflags = VPO_UNMANAGED;
2243 m->busy_lock = VPB_UNBUSIED;
2244 /* Don't change PG_ZERO. */
2245 vm_page_free_toq(m);
2246 if (req & VM_ALLOC_WAITFAIL) {
2247 VM_OBJECT_WUNLOCK(object);
2248 vm_radix_wait();
2249 pctrie_iter_reset(pages);
2250 VM_OBJECT_WLOCK(object);
2251 }
2252 return (NULL);
2253 }
2254
2255 /* Ignore device objects; the pager sets "memattr" for them. */
2256 if (object->memattr != VM_MEMATTR_DEFAULT &&
2257 (object->flags & OBJ_FICTITIOUS) == 0)
2258 pmap_page_set_memattr(m, object->memattr);
2259
2260 return (m);
2261 }
2262
2263 /*
2264 * vm_page_alloc_contig:
2265 *
2266 * Allocate a contiguous set of physical pages of the given size "npages"
2267 * from the free lists. All of the physical pages must be at or above
2268 * the given physical address "low" and below the given physical address
2269 * "high". The given value "alignment" determines the alignment of the
2270 * first physical page in the set. If the given value "boundary" is
2271 * non-zero, then the set of physical pages cannot cross any physical
2272 * address boundary that is a multiple of that value. Both "alignment"
2273 * and "boundary" must be a power of two.
2274 *
2275 * If the specified memory attribute, "memattr", is VM_MEMATTR_DEFAULT,
2276 * then the memory attribute setting for the physical pages is configured
2277 * to the object's memory attribute setting. Otherwise, the memory
2278 * attribute setting for the physical pages is configured to "memattr",
2279 * overriding the object's memory attribute setting. However, if the
2280 * object's memory attribute setting is not VM_MEMATTR_DEFAULT, then the
2281 * memory attribute setting for the physical pages cannot be configured
2282 * to VM_MEMATTR_DEFAULT.
2283 *
2284 * The specified object may not contain fictitious pages.
2285 *
2286 * The caller must always specify an allocation class.
2287 *
2288 * allocation classes:
2289 * VM_ALLOC_NORMAL normal process request
2290 * VM_ALLOC_SYSTEM system *really* needs a page
2291 * VM_ALLOC_INTERRUPT interrupt time request
2292 *
2293 * optional allocation flags:
2294 * VM_ALLOC_NOBUSY do not exclusive busy the page
2295 * VM_ALLOC_NODUMP do not include the page in a kernel core dump
2296 * VM_ALLOC_SBUSY shared busy the allocated page
2297 * VM_ALLOC_WIRED wire the allocated page
2298 * VM_ALLOC_ZERO prefer a zeroed page
2299 */
2300 vm_page_t
vm_page_alloc_contig(vm_object_t object,vm_pindex_t pindex,int req,u_long npages,vm_paddr_t low,vm_paddr_t high,u_long alignment,vm_paddr_t boundary,vm_memattr_t memattr)2301 vm_page_alloc_contig(vm_object_t object, vm_pindex_t pindex, int req,
2302 u_long npages, vm_paddr_t low, vm_paddr_t high, u_long alignment,
2303 vm_paddr_t boundary, vm_memattr_t memattr)
2304 {
2305 struct vm_domainset_iter di;
2306 vm_page_t bounds[2];
2307 vm_page_t m;
2308 int domain;
2309 int start_segind;
2310
2311 start_segind = -1;
2312
2313 vm_domainset_iter_page_init(&di, object, pindex, &domain, &req);
2314 do {
2315 m = vm_page_alloc_contig_domain(object, pindex, domain, req,
2316 npages, low, high, alignment, boundary, memattr);
2317 if (m != NULL)
2318 break;
2319 if (start_segind == -1)
2320 start_segind = vm_phys_lookup_segind(low);
2321 if (vm_phys_find_range(bounds, start_segind, domain,
2322 npages, low, high) == -1) {
2323 vm_domainset_iter_ignore(&di, domain);
2324 }
2325 } while (vm_domainset_iter_page(&di, object, &domain) == 0);
2326
2327 return (m);
2328 }
2329
2330 static vm_page_t
vm_page_find_contig_domain(int domain,int req,u_long npages,vm_paddr_t low,vm_paddr_t high,u_long alignment,vm_paddr_t boundary)2331 vm_page_find_contig_domain(int domain, int req, u_long npages, vm_paddr_t low,
2332 vm_paddr_t high, u_long alignment, vm_paddr_t boundary)
2333 {
2334 struct vm_domain *vmd;
2335 vm_page_t m_ret;
2336
2337 /*
2338 * Can we allocate the pages without the number of free pages falling
2339 * below the lower bound for the allocation class?
2340 */
2341 vmd = VM_DOMAIN(domain);
2342 if (!vm_domain_allocate(vmd, req, npages))
2343 return (NULL);
2344 /*
2345 * Try to allocate the pages from the free page queues.
2346 */
2347 vm_domain_free_lock(vmd);
2348 m_ret = vm_phys_alloc_contig(domain, npages, low, high,
2349 alignment, boundary);
2350 vm_domain_free_unlock(vmd);
2351 if (m_ret != NULL)
2352 return (m_ret);
2353 #if VM_NRESERVLEVEL > 0
2354 /*
2355 * Try to break a reservation to allocate the pages.
2356 */
2357 if ((req & VM_ALLOC_NORECLAIM) == 0) {
2358 m_ret = vm_reserv_reclaim_contig(domain, npages, low,
2359 high, alignment, boundary);
2360 if (m_ret != NULL)
2361 return (m_ret);
2362 }
2363 #endif
2364 vm_domain_freecnt_inc(vmd, npages);
2365 return (NULL);
2366 }
2367
2368 vm_page_t
vm_page_alloc_contig_domain(vm_object_t object,vm_pindex_t pindex,int domain,int req,u_long npages,vm_paddr_t low,vm_paddr_t high,u_long alignment,vm_paddr_t boundary,vm_memattr_t memattr)2369 vm_page_alloc_contig_domain(vm_object_t object, vm_pindex_t pindex, int domain,
2370 int req, u_long npages, vm_paddr_t low, vm_paddr_t high, u_long alignment,
2371 vm_paddr_t boundary, vm_memattr_t memattr)
2372 {
2373 struct pctrie_iter pages;
2374 vm_page_t m, m_ret, mpred;
2375 u_int busy_lock, flags, oflags;
2376
2377 #define VPAC_FLAGS (VPA_FLAGS | VM_ALLOC_NORECLAIM)
2378 KASSERT((req & ~VPAC_FLAGS) == 0,
2379 ("invalid request %#x", req));
2380 KASSERT(((req & (VM_ALLOC_NOBUSY | VM_ALLOC_SBUSY)) !=
2381 (VM_ALLOC_NOBUSY | VM_ALLOC_SBUSY)),
2382 ("invalid request %#x", req));
2383 KASSERT((req & (VM_ALLOC_WAITOK | VM_ALLOC_NORECLAIM)) !=
2384 (VM_ALLOC_WAITOK | VM_ALLOC_NORECLAIM),
2385 ("invalid request %#x", req));
2386 VM_OBJECT_ASSERT_WLOCKED(object);
2387 KASSERT((object->flags & OBJ_FICTITIOUS) == 0,
2388 ("vm_page_alloc_contig: object %p has fictitious pages",
2389 object));
2390 KASSERT(npages > 0, ("vm_page_alloc_contig: npages is zero"));
2391
2392 vm_page_iter_init(&pages, object);
2393 mpred = vm_radix_iter_lookup_lt(&pages, pindex);
2394 KASSERT(mpred == NULL || mpred->pindex != pindex,
2395 ("vm_page_alloc_contig: pindex already allocated"));
2396 for (;;) {
2397 #if VM_NRESERVLEVEL > 0
2398 /*
2399 * Can we allocate the pages from a reservation?
2400 */
2401 if (vm_object_reserv(object) &&
2402 (m_ret = vm_reserv_alloc_contig(object, &pages, pindex,
2403 domain, req, npages, low, high, alignment, boundary)) !=
2404 NULL) {
2405 break;
2406 }
2407 #endif
2408 if ((m_ret = vm_page_find_contig_domain(domain, req, npages,
2409 low, high, alignment, boundary)) != NULL)
2410 break;
2411 if (!vm_domain_alloc_fail(VM_DOMAIN(domain), object, req))
2412 return (NULL);
2413 }
2414
2415 /*
2416 * Initialize the pages. Only the PG_ZERO flag is inherited.
2417 */
2418 flags = PG_ZERO;
2419 if ((req & VM_ALLOC_NODUMP) != 0)
2420 flags |= PG_NODUMP;
2421 oflags = (object->flags & OBJ_UNMANAGED) != 0 ? VPO_UNMANAGED : 0;
2422 if ((req & (VM_ALLOC_NOBUSY | VM_ALLOC_SBUSY)) == 0)
2423 busy_lock = VPB_CURTHREAD_EXCLUSIVE;
2424 else if ((req & VM_ALLOC_SBUSY) != 0)
2425 busy_lock = VPB_SHARERS_WORD(1);
2426 else
2427 busy_lock = VPB_UNBUSIED;
2428 if ((req & VM_ALLOC_WIRED) != 0)
2429 vm_wire_add(npages);
2430 if (object->memattr != VM_MEMATTR_DEFAULT &&
2431 memattr == VM_MEMATTR_DEFAULT)
2432 memattr = object->memattr;
2433 for (m = m_ret; m < &m_ret[npages]; m++) {
2434 vm_page_dequeue(m);
2435 vm_page_alloc_check(m);
2436 m->a.flags = 0;
2437 m->flags = (m->flags | PG_NODUMP) & flags;
2438 m->busy_lock = busy_lock;
2439 if ((req & VM_ALLOC_WIRED) != 0)
2440 m->ref_count = 1;
2441 m->a.act_count = 0;
2442 m->oflags = oflags;
2443 m->pool = VM_FREEPOOL_DEFAULT;
2444 if (vm_page_iter_insert(&pages, m, object, pindex, mpred)) {
2445 if ((req & VM_ALLOC_WIRED) != 0)
2446 vm_wire_sub(npages);
2447 KASSERT(m->object == NULL,
2448 ("page %p has object", m));
2449 mpred = m;
2450 for (m = m_ret; m < &m_ret[npages]; m++) {
2451 if (m <= mpred &&
2452 (req & VM_ALLOC_WIRED) != 0)
2453 m->ref_count = 0;
2454 m->oflags = VPO_UNMANAGED;
2455 m->busy_lock = VPB_UNBUSIED;
2456 /* Don't change PG_ZERO. */
2457 vm_page_free_toq(m);
2458 }
2459 if (req & VM_ALLOC_WAITFAIL) {
2460 VM_OBJECT_WUNLOCK(object);
2461 vm_radix_wait();
2462 VM_OBJECT_WLOCK(object);
2463 }
2464 return (NULL);
2465 }
2466 mpred = m;
2467 if (memattr != VM_MEMATTR_DEFAULT)
2468 pmap_page_set_memattr(m, memattr);
2469 pindex++;
2470 }
2471 return (m_ret);
2472 }
2473
2474 /*
2475 * Allocate a physical page that is not intended to be inserted into a VM
2476 * object.
2477 */
2478 vm_page_t
vm_page_alloc_noobj_domain(int domain,int req)2479 vm_page_alloc_noobj_domain(int domain, int req)
2480 {
2481 struct vm_domain *vmd;
2482 vm_page_t m;
2483 int flags;
2484
2485 #define VPAN_FLAGS (VM_ALLOC_CLASS_MASK | VM_ALLOC_WAITFAIL | \
2486 VM_ALLOC_NOWAIT | VM_ALLOC_WAITOK | \
2487 VM_ALLOC_NOBUSY | VM_ALLOC_WIRED | \
2488 VM_ALLOC_NODUMP | VM_ALLOC_ZERO | \
2489 VM_ALLOC_NOFREE | VM_ALLOC_COUNT_MASK)
2490 KASSERT((req & ~VPAN_FLAGS) == 0,
2491 ("invalid request %#x", req));
2492
2493 flags = ((req & VM_ALLOC_NODUMP) != 0 ? PG_NODUMP : 0) |
2494 ((req & VM_ALLOC_NOFREE) != 0 ? PG_NOFREE : 0);
2495 vmd = VM_DOMAIN(domain);
2496 again:
2497 if (__predict_false((req & VM_ALLOC_NOFREE) != 0)) {
2498 m = vm_page_alloc_nofree_domain(domain, req);
2499 if (m != NULL)
2500 goto found;
2501 }
2502
2503 if (vmd->vmd_pgcache[VM_FREEPOOL_DIRECT].zone != NULL) {
2504 m = uma_zalloc(vmd->vmd_pgcache[VM_FREEPOOL_DIRECT].zone,
2505 M_NOWAIT | M_NOVM);
2506 if (m != NULL) {
2507 flags |= PG_PCPU_CACHE;
2508 goto found;
2509 }
2510 }
2511
2512 if (vm_domain_allocate(vmd, req, 1)) {
2513 vm_domain_free_lock(vmd);
2514 m = vm_phys_alloc_pages(domain, VM_FREEPOOL_DIRECT, 0);
2515 vm_domain_free_unlock(vmd);
2516 if (m == NULL) {
2517 vm_domain_freecnt_inc(vmd, 1);
2518 #if VM_NRESERVLEVEL > 0
2519 if (vm_reserv_reclaim_inactive(domain))
2520 goto again;
2521 #endif
2522 }
2523 }
2524 if (m == NULL) {
2525 if (vm_domain_alloc_fail(vmd, NULL, req))
2526 goto again;
2527 return (NULL);
2528 }
2529
2530 found:
2531 vm_page_dequeue(m);
2532 vm_page_alloc_check(m);
2533
2534 /*
2535 * Consumers should not rely on a useful default pindex value.
2536 */
2537 m->pindex = 0xdeadc0dedeadc0de;
2538 m->flags = (m->flags & PG_ZERO) | flags;
2539 m->a.flags = 0;
2540 m->oflags = VPO_UNMANAGED;
2541 m->pool = VM_FREEPOOL_DIRECT;
2542 m->busy_lock = VPB_UNBUSIED;
2543 if ((req & VM_ALLOC_WIRED) != 0) {
2544 vm_wire_add(1);
2545 m->ref_count = 1;
2546 }
2547
2548 if ((req & VM_ALLOC_ZERO) != 0 && (m->flags & PG_ZERO) == 0)
2549 pmap_zero_page(m);
2550
2551 return (m);
2552 }
2553
2554 #if VM_NRESERVLEVEL > 1
2555 #define VM_NOFREE_IMPORT_ORDER (VM_LEVEL_1_ORDER + VM_LEVEL_0_ORDER)
2556 #elif VM_NRESERVLEVEL > 0
2557 #define VM_NOFREE_IMPORT_ORDER VM_LEVEL_0_ORDER
2558 #else
2559 #define VM_NOFREE_IMPORT_ORDER 8
2560 #endif
2561
2562 /*
2563 * Allocate a single NOFREE page.
2564 *
2565 * This routine hands out NOFREE pages from higher-order
2566 * physical memory blocks in order to reduce memory fragmentation.
2567 * When a NOFREE for a given domain chunk is used up,
2568 * the routine will try to fetch a new one from the freelists
2569 * and discard the old one.
2570 */
2571 static vm_page_t __noinline
vm_page_alloc_nofree_domain(int domain,int req)2572 vm_page_alloc_nofree_domain(int domain, int req)
2573 {
2574 vm_page_t m;
2575 struct vm_domain *vmd;
2576
2577 KASSERT((req & VM_ALLOC_NOFREE) != 0, ("invalid request %#x", req));
2578
2579 vmd = VM_DOMAIN(domain);
2580 vm_domain_free_lock(vmd);
2581 if (TAILQ_EMPTY(&vmd->vmd_nofreeq)) {
2582 int count;
2583
2584 count = 1 << VM_NOFREE_IMPORT_ORDER;
2585 if (!vm_domain_allocate(vmd, req, count)) {
2586 vm_domain_free_unlock(vmd);
2587 return (NULL);
2588 }
2589 m = vm_phys_alloc_pages(domain, VM_FREEPOOL_DEFAULT,
2590 VM_NOFREE_IMPORT_ORDER);
2591 if (m == NULL) {
2592 vm_domain_freecnt_inc(vmd, count);
2593 vm_domain_free_unlock(vmd);
2594 return (NULL);
2595 }
2596 m->ref_count = count - 1;
2597 TAILQ_INSERT_HEAD(&vmd->vmd_nofreeq, m, listq);
2598 VM_CNT_ADD(v_nofree_count, count);
2599 }
2600 m = TAILQ_FIRST(&vmd->vmd_nofreeq);
2601 TAILQ_REMOVE(&vmd->vmd_nofreeq, m, listq);
2602 if (m->ref_count > 0) {
2603 vm_page_t m_next;
2604
2605 m_next = &m[1];
2606 m_next->ref_count = m->ref_count - 1;
2607 TAILQ_INSERT_HEAD(&vmd->vmd_nofreeq, m_next, listq);
2608 m->ref_count = 0;
2609 }
2610 vm_domain_free_unlock(vmd);
2611 VM_CNT_ADD(v_nofree_count, -1);
2612
2613 return (m);
2614 }
2615
2616 /*
2617 * Though a NOFREE page by definition should not be freed, we support putting
2618 * them aside for future NOFREE allocations. This enables code which allocates
2619 * NOFREE pages for some purpose but then encounters an error and releases
2620 * resources.
2621 */
2622 static void __noinline
vm_page_free_nofree(struct vm_domain * vmd,vm_page_t m)2623 vm_page_free_nofree(struct vm_domain *vmd, vm_page_t m)
2624 {
2625 vm_domain_free_lock(vmd);
2626 MPASS(m->ref_count == 0);
2627 TAILQ_INSERT_HEAD(&vmd->vmd_nofreeq, m, listq);
2628 vm_domain_free_unlock(vmd);
2629 VM_CNT_ADD(v_nofree_count, 1);
2630 }
2631
2632 vm_page_t
vm_page_alloc_noobj(int req)2633 vm_page_alloc_noobj(int req)
2634 {
2635 struct vm_domainset_iter di;
2636 vm_page_t m;
2637 int domain;
2638
2639 vm_domainset_iter_page_init(&di, NULL, 0, &domain, &req);
2640 do {
2641 m = vm_page_alloc_noobj_domain(domain, req);
2642 if (m != NULL)
2643 break;
2644 } while (vm_domainset_iter_page(&di, NULL, &domain) == 0);
2645
2646 return (m);
2647 }
2648
2649 vm_page_t
vm_page_alloc_noobj_contig(int req,u_long npages,vm_paddr_t low,vm_paddr_t high,u_long alignment,vm_paddr_t boundary,vm_memattr_t memattr)2650 vm_page_alloc_noobj_contig(int req, u_long npages, vm_paddr_t low,
2651 vm_paddr_t high, u_long alignment, vm_paddr_t boundary,
2652 vm_memattr_t memattr)
2653 {
2654 struct vm_domainset_iter di;
2655 vm_page_t m;
2656 int domain;
2657
2658 vm_domainset_iter_page_init(&di, NULL, 0, &domain, &req);
2659 do {
2660 m = vm_page_alloc_noobj_contig_domain(domain, req, npages, low,
2661 high, alignment, boundary, memattr);
2662 if (m != NULL)
2663 break;
2664 } while (vm_domainset_iter_page(&di, NULL, &domain) == 0);
2665
2666 return (m);
2667 }
2668
2669 vm_page_t
vm_page_alloc_noobj_contig_domain(int domain,int req,u_long npages,vm_paddr_t low,vm_paddr_t high,u_long alignment,vm_paddr_t boundary,vm_memattr_t memattr)2670 vm_page_alloc_noobj_contig_domain(int domain, int req, u_long npages,
2671 vm_paddr_t low, vm_paddr_t high, u_long alignment, vm_paddr_t boundary,
2672 vm_memattr_t memattr)
2673 {
2674 vm_page_t m, m_ret;
2675 u_int flags;
2676
2677 #define VPANC_FLAGS (VPAN_FLAGS | VM_ALLOC_NORECLAIM)
2678 KASSERT((req & ~VPANC_FLAGS) == 0,
2679 ("invalid request %#x", req));
2680 KASSERT((req & (VM_ALLOC_WAITOK | VM_ALLOC_NORECLAIM)) !=
2681 (VM_ALLOC_WAITOK | VM_ALLOC_NORECLAIM),
2682 ("invalid request %#x", req));
2683 KASSERT(((req & (VM_ALLOC_NOBUSY | VM_ALLOC_SBUSY)) !=
2684 (VM_ALLOC_NOBUSY | VM_ALLOC_SBUSY)),
2685 ("invalid request %#x", req));
2686 KASSERT(npages > 0, ("vm_page_alloc_contig: npages is zero"));
2687
2688 while ((m_ret = vm_page_find_contig_domain(domain, req, npages,
2689 low, high, alignment, boundary)) == NULL) {
2690 if (!vm_domain_alloc_fail(VM_DOMAIN(domain), NULL, req))
2691 return (NULL);
2692 }
2693
2694 /*
2695 * Initialize the pages. Only the PG_ZERO flag is inherited.
2696 */
2697 flags = PG_ZERO;
2698 if ((req & VM_ALLOC_NODUMP) != 0)
2699 flags |= PG_NODUMP;
2700 if ((req & VM_ALLOC_WIRED) != 0)
2701 vm_wire_add(npages);
2702 for (m = m_ret; m < &m_ret[npages]; m++) {
2703 vm_page_dequeue(m);
2704 vm_page_alloc_check(m);
2705
2706 /*
2707 * Consumers should not rely on a useful default pindex value.
2708 */
2709 m->pindex = 0xdeadc0dedeadc0de;
2710 m->a.flags = 0;
2711 m->flags = (m->flags | PG_NODUMP) & flags;
2712 m->busy_lock = VPB_UNBUSIED;
2713 if ((req & VM_ALLOC_WIRED) != 0)
2714 m->ref_count = 1;
2715 m->a.act_count = 0;
2716 m->oflags = VPO_UNMANAGED;
2717 m->pool = VM_FREEPOOL_DIRECT;
2718
2719 /*
2720 * Zero the page before updating any mappings since the page is
2721 * not yet shared with any devices which might require the
2722 * non-default memory attribute. pmap_page_set_memattr()
2723 * flushes data caches before returning.
2724 */
2725 if ((req & VM_ALLOC_ZERO) != 0 && (m->flags & PG_ZERO) == 0)
2726 pmap_zero_page(m);
2727 if (memattr != VM_MEMATTR_DEFAULT)
2728 pmap_page_set_memattr(m, memattr);
2729 }
2730 return (m_ret);
2731 }
2732
2733 /*
2734 * Check a page that has been freshly dequeued from a freelist.
2735 */
2736 static void
vm_page_alloc_check(vm_page_t m)2737 vm_page_alloc_check(vm_page_t m)
2738 {
2739
2740 KASSERT(m->object == NULL, ("page %p has object", m));
2741 KASSERT(m->a.queue == PQ_NONE &&
2742 (m->a.flags & PGA_QUEUE_STATE_MASK) == 0,
2743 ("page %p has unexpected queue %d, flags %#x",
2744 m, m->a.queue, (m->a.flags & PGA_QUEUE_STATE_MASK)));
2745 KASSERT(m->ref_count == 0, ("page %p has references", m));
2746 KASSERT(vm_page_busy_freed(m), ("page %p is not freed", m));
2747 KASSERT(m->dirty == 0, ("page %p is dirty", m));
2748 KASSERT(pmap_page_get_memattr(m) == VM_MEMATTR_DEFAULT,
2749 ("page %p has unexpected memattr %d",
2750 m, pmap_page_get_memattr(m)));
2751 KASSERT(vm_page_none_valid(m), ("free page %p is valid", m));
2752 pmap_vm_page_alloc_check(m);
2753 }
2754
2755 static int
vm_page_zone_import(void * arg,void ** store,int cnt,int domain,int flags)2756 vm_page_zone_import(void *arg, void **store, int cnt, int domain, int flags)
2757 {
2758 struct vm_domain *vmd;
2759 struct vm_pgcache *pgcache;
2760 int i;
2761
2762 pgcache = arg;
2763 vmd = VM_DOMAIN(pgcache->domain);
2764
2765 /*
2766 * The page daemon should avoid creating extra memory pressure since its
2767 * main purpose is to replenish the store of free pages.
2768 */
2769 if (vmd->vmd_severeset || curproc == pageproc ||
2770 !_vm_domain_allocate(vmd, VM_ALLOC_NORMAL, cnt))
2771 return (0);
2772 domain = vmd->vmd_domain;
2773 vm_domain_free_lock(vmd);
2774 i = vm_phys_alloc_npages(domain, pgcache->pool, cnt,
2775 (vm_page_t *)store);
2776 vm_domain_free_unlock(vmd);
2777 if (cnt != i)
2778 vm_domain_freecnt_inc(vmd, cnt - i);
2779
2780 return (i);
2781 }
2782
2783 static void
vm_page_zone_release(void * arg,void ** store,int cnt)2784 vm_page_zone_release(void *arg, void **store, int cnt)
2785 {
2786 struct vm_domain *vmd;
2787 struct vm_pgcache *pgcache;
2788 vm_page_t m;
2789 int i;
2790
2791 pgcache = arg;
2792 vmd = VM_DOMAIN(pgcache->domain);
2793 vm_domain_free_lock(vmd);
2794 for (i = 0; i < cnt; i++) {
2795 m = (vm_page_t)store[i];
2796 vm_phys_free_pages(m, pgcache->pool, 0);
2797 }
2798 vm_domain_free_unlock(vmd);
2799 vm_domain_freecnt_inc(vmd, cnt);
2800 }
2801
2802 #define VPSC_ANY 0 /* No restrictions. */
2803 #define VPSC_NORESERV 1 /* Skip reservations; implies VPSC_NOSUPER. */
2804 #define VPSC_NOSUPER 2 /* Skip superpages. */
2805
2806 /*
2807 * vm_page_scan_contig:
2808 *
2809 * Scan vm_page_array[] between the specified entries "m_start" and
2810 * "m_end" for a run of contiguous physical pages that satisfy the
2811 * specified conditions, and return the lowest page in the run. The
2812 * specified "alignment" determines the alignment of the lowest physical
2813 * page in the run. If the specified "boundary" is non-zero, then the
2814 * run of physical pages cannot span a physical address that is a
2815 * multiple of "boundary".
2816 *
2817 * "m_end" is never dereferenced, so it need not point to a vm_page
2818 * structure within vm_page_array[].
2819 *
2820 * "npages" must be greater than zero. "m_start" and "m_end" must not
2821 * span a hole (or discontiguity) in the physical address space. Both
2822 * "alignment" and "boundary" must be a power of two.
2823 */
2824 static vm_page_t
vm_page_scan_contig(u_long npages,vm_page_t m_start,vm_page_t m_end,u_long alignment,vm_paddr_t boundary,int options)2825 vm_page_scan_contig(u_long npages, vm_page_t m_start, vm_page_t m_end,
2826 u_long alignment, vm_paddr_t boundary, int options)
2827 {
2828 vm_object_t object;
2829 vm_paddr_t pa;
2830 vm_page_t m, m_run;
2831 #if VM_NRESERVLEVEL > 0
2832 int level;
2833 #endif
2834 int m_inc, order, run_ext, run_len;
2835
2836 KASSERT(npages > 0, ("npages is 0"));
2837 KASSERT(powerof2(alignment), ("alignment is not a power of 2"));
2838 KASSERT(powerof2(boundary), ("boundary is not a power of 2"));
2839 m_run = NULL;
2840 run_len = 0;
2841 for (m = m_start; m < m_end && run_len < npages; m += m_inc) {
2842 KASSERT((m->flags & PG_MARKER) == 0,
2843 ("page %p is PG_MARKER", m));
2844 KASSERT((m->flags & PG_FICTITIOUS) == 0 || m->ref_count >= 1,
2845 ("fictitious page %p has invalid ref count", m));
2846
2847 /*
2848 * If the current page would be the start of a run, check its
2849 * physical address against the end, alignment, and boundary
2850 * conditions. If it doesn't satisfy these conditions, either
2851 * terminate the scan or advance to the next page that
2852 * satisfies the failed condition.
2853 */
2854 if (run_len == 0) {
2855 KASSERT(m_run == NULL, ("m_run != NULL"));
2856 if (m + npages > m_end)
2857 break;
2858 pa = VM_PAGE_TO_PHYS(m);
2859 if (!vm_addr_align_ok(pa, alignment)) {
2860 m_inc = atop(roundup2(pa, alignment) - pa);
2861 continue;
2862 }
2863 if (!vm_addr_bound_ok(pa, ptoa(npages), boundary)) {
2864 m_inc = atop(roundup2(pa, boundary) - pa);
2865 continue;
2866 }
2867 } else
2868 KASSERT(m_run != NULL, ("m_run == NULL"));
2869
2870 retry:
2871 m_inc = 1;
2872 if (vm_page_wired(m))
2873 run_ext = 0;
2874 #if VM_NRESERVLEVEL > 0
2875 else if ((level = vm_reserv_level(m)) >= 0 &&
2876 (options & VPSC_NORESERV) != 0) {
2877 run_ext = 0;
2878 /* Advance to the end of the reservation. */
2879 pa = VM_PAGE_TO_PHYS(m);
2880 m_inc = atop(roundup2(pa + 1, vm_reserv_size(level)) -
2881 pa);
2882 }
2883 #endif
2884 else if ((object = atomic_load_ptr(&m->object)) != NULL) {
2885 /*
2886 * The page is considered eligible for relocation if
2887 * and only if it could be laundered or reclaimed by
2888 * the page daemon.
2889 */
2890 VM_OBJECT_RLOCK(object);
2891 if (object != m->object) {
2892 VM_OBJECT_RUNLOCK(object);
2893 goto retry;
2894 }
2895 /* Don't care: PG_NODUMP, PG_ZERO. */
2896 if ((object->flags & OBJ_SWAP) == 0 &&
2897 object->type != OBJT_VNODE) {
2898 run_ext = 0;
2899 #if VM_NRESERVLEVEL > 0
2900 } else if ((options & VPSC_NOSUPER) != 0 &&
2901 (level = vm_reserv_level_iffullpop(m)) >= 0) {
2902 run_ext = 0;
2903 /* Advance to the end of the superpage. */
2904 pa = VM_PAGE_TO_PHYS(m);
2905 m_inc = atop(roundup2(pa + 1,
2906 vm_reserv_size(level)) - pa);
2907 #endif
2908 } else if (object->memattr == VM_MEMATTR_DEFAULT &&
2909 vm_page_queue(m) != PQ_NONE && !vm_page_busied(m)) {
2910 /*
2911 * The page is allocated but eligible for
2912 * relocation. Extend the current run by one
2913 * page.
2914 */
2915 KASSERT(pmap_page_get_memattr(m) ==
2916 VM_MEMATTR_DEFAULT,
2917 ("page %p has an unexpected memattr", m));
2918 KASSERT((m->oflags & (VPO_SWAPINPROG |
2919 VPO_SWAPSLEEP | VPO_UNMANAGED)) == 0,
2920 ("page %p has unexpected oflags", m));
2921 /* Don't care: PGA_NOSYNC. */
2922 run_ext = 1;
2923 } else
2924 run_ext = 0;
2925 VM_OBJECT_RUNLOCK(object);
2926 #if VM_NRESERVLEVEL > 0
2927 } else if (level >= 0) {
2928 /*
2929 * The page is reserved but not yet allocated. In
2930 * other words, it is still free. Extend the current
2931 * run by one page.
2932 */
2933 run_ext = 1;
2934 #endif
2935 } else if ((order = m->order) < VM_NFREEORDER) {
2936 /*
2937 * The page is enqueued in the physical memory
2938 * allocator's free page queues. Moreover, it is the
2939 * first page in a power-of-two-sized run of
2940 * contiguous free pages. Add these pages to the end
2941 * of the current run, and jump ahead.
2942 */
2943 run_ext = 1 << order;
2944 m_inc = 1 << order;
2945 } else {
2946 /*
2947 * Skip the page for one of the following reasons: (1)
2948 * It is enqueued in the physical memory allocator's
2949 * free page queues. However, it is not the first
2950 * page in a run of contiguous free pages. (This case
2951 * rarely occurs because the scan is performed in
2952 * ascending order.) (2) It is not reserved, and it is
2953 * transitioning from free to allocated. (Conversely,
2954 * the transition from allocated to free for managed
2955 * pages is blocked by the page busy lock.) (3) It is
2956 * allocated but not contained by an object and not
2957 * wired, e.g., allocated by Xen's balloon driver.
2958 */
2959 run_ext = 0;
2960 }
2961
2962 /*
2963 * Extend or reset the current run of pages.
2964 */
2965 if (run_ext > 0) {
2966 if (run_len == 0)
2967 m_run = m;
2968 run_len += run_ext;
2969 } else {
2970 if (run_len > 0) {
2971 m_run = NULL;
2972 run_len = 0;
2973 }
2974 }
2975 }
2976 if (run_len >= npages)
2977 return (m_run);
2978 return (NULL);
2979 }
2980
2981 /*
2982 * vm_page_reclaim_run:
2983 *
2984 * Try to relocate each of the allocated virtual pages within the
2985 * specified run of physical pages to a new physical address. Free the
2986 * physical pages underlying the relocated virtual pages. A virtual page
2987 * is relocatable if and only if it could be laundered or reclaimed by
2988 * the page daemon. Whenever possible, a virtual page is relocated to a
2989 * physical address above "high".
2990 *
2991 * Returns 0 if every physical page within the run was already free or
2992 * just freed by a successful relocation. Otherwise, returns a non-zero
2993 * value indicating why the last attempt to relocate a virtual page was
2994 * unsuccessful.
2995 *
2996 * "req_class" must be an allocation class.
2997 */
2998 static int
vm_page_reclaim_run(int req_class,int domain,u_long npages,vm_page_t m_run,vm_paddr_t high)2999 vm_page_reclaim_run(int req_class, int domain, u_long npages, vm_page_t m_run,
3000 vm_paddr_t high)
3001 {
3002 struct vm_domain *vmd;
3003 struct spglist free;
3004 vm_object_t object;
3005 vm_paddr_t pa;
3006 vm_page_t m, m_end, m_new;
3007 int error, order, req;
3008
3009 KASSERT((req_class & VM_ALLOC_CLASS_MASK) == req_class,
3010 ("req_class is not an allocation class"));
3011 SLIST_INIT(&free);
3012 error = 0;
3013 m = m_run;
3014 m_end = m_run + npages;
3015 for (; error == 0 && m < m_end; m++) {
3016 KASSERT((m->flags & (PG_FICTITIOUS | PG_MARKER)) == 0,
3017 ("page %p is PG_FICTITIOUS or PG_MARKER", m));
3018
3019 /*
3020 * Racily check for wirings. Races are handled once the object
3021 * lock is held and the page is unmapped.
3022 */
3023 if (vm_page_wired(m))
3024 error = EBUSY;
3025 else if ((object = atomic_load_ptr(&m->object)) != NULL) {
3026 /*
3027 * The page is relocated if and only if it could be
3028 * laundered or reclaimed by the page daemon.
3029 */
3030 VM_OBJECT_WLOCK(object);
3031 /* Don't care: PG_NODUMP, PG_ZERO. */
3032 if (m->object != object ||
3033 ((object->flags & OBJ_SWAP) == 0 &&
3034 object->type != OBJT_VNODE))
3035 error = EINVAL;
3036 else if (object->memattr != VM_MEMATTR_DEFAULT)
3037 error = EINVAL;
3038 else if (vm_page_queue(m) != PQ_NONE &&
3039 vm_page_tryxbusy(m) != 0) {
3040 if (vm_page_wired(m)) {
3041 vm_page_xunbusy(m);
3042 error = EBUSY;
3043 goto unlock;
3044 }
3045 KASSERT(pmap_page_get_memattr(m) ==
3046 VM_MEMATTR_DEFAULT,
3047 ("page %p has an unexpected memattr", m));
3048 KASSERT(m->oflags == 0,
3049 ("page %p has unexpected oflags", m));
3050 /* Don't care: PGA_NOSYNC. */
3051 if (!vm_page_none_valid(m)) {
3052 /*
3053 * First, try to allocate a new page
3054 * that is above "high". Failing
3055 * that, try to allocate a new page
3056 * that is below "m_run". Allocate
3057 * the new page between the end of
3058 * "m_run" and "high" only as a last
3059 * resort.
3060 */
3061 req = req_class;
3062 if ((m->flags & PG_NODUMP) != 0)
3063 req |= VM_ALLOC_NODUMP;
3064 if (trunc_page(high) !=
3065 ~(vm_paddr_t)PAGE_MASK) {
3066 m_new =
3067 vm_page_alloc_noobj_contig(
3068 req, 1, round_page(high),
3069 ~(vm_paddr_t)0, PAGE_SIZE,
3070 0, VM_MEMATTR_DEFAULT);
3071 } else
3072 m_new = NULL;
3073 if (m_new == NULL) {
3074 pa = VM_PAGE_TO_PHYS(m_run);
3075 m_new =
3076 vm_page_alloc_noobj_contig(
3077 req, 1, 0, pa - 1,
3078 PAGE_SIZE, 0,
3079 VM_MEMATTR_DEFAULT);
3080 }
3081 if (m_new == NULL) {
3082 pa += ptoa(npages);
3083 m_new =
3084 vm_page_alloc_noobj_contig(
3085 req, 1, pa, high, PAGE_SIZE,
3086 0, VM_MEMATTR_DEFAULT);
3087 }
3088 if (m_new == NULL) {
3089 vm_page_xunbusy(m);
3090 error = ENOMEM;
3091 goto unlock;
3092 }
3093
3094 /*
3095 * Unmap the page and check for new
3096 * wirings that may have been acquired
3097 * through a pmap lookup.
3098 */
3099 if (object->ref_count != 0 &&
3100 !vm_page_try_remove_all(m)) {
3101 vm_page_xunbusy(m);
3102 vm_page_free(m_new);
3103 error = EBUSY;
3104 goto unlock;
3105 }
3106
3107 /*
3108 * Replace "m" with the new page. For
3109 * vm_page_replace(), "m" must be busy
3110 * and dequeued. Finally, change "m"
3111 * as if vm_page_free() was called.
3112 */
3113 m_new->a.flags = m->a.flags &
3114 ~PGA_QUEUE_STATE_MASK;
3115 KASSERT(m_new->oflags == VPO_UNMANAGED,
3116 ("page %p is managed", m_new));
3117 m_new->oflags = 0;
3118 pmap_copy_page(m, m_new);
3119 m_new->valid = m->valid;
3120 m_new->dirty = m->dirty;
3121 m->flags &= ~PG_ZERO;
3122 vm_page_dequeue(m);
3123 if (vm_page_replace_hold(m_new, object,
3124 m->pindex, m) &&
3125 vm_page_free_prep(m))
3126 SLIST_INSERT_HEAD(&free, m,
3127 plinks.s.ss);
3128
3129 /*
3130 * The new page must be deactivated
3131 * before the object is unlocked.
3132 */
3133 vm_page_deactivate(m_new);
3134 } else {
3135 m->flags &= ~PG_ZERO;
3136 vm_page_dequeue(m);
3137 if (vm_page_free_prep(m))
3138 SLIST_INSERT_HEAD(&free, m,
3139 plinks.s.ss);
3140 KASSERT(m->dirty == 0,
3141 ("page %p is dirty", m));
3142 }
3143 } else
3144 error = EBUSY;
3145 unlock:
3146 VM_OBJECT_WUNLOCK(object);
3147 } else {
3148 MPASS(vm_page_domain(m) == domain);
3149 vmd = VM_DOMAIN(domain);
3150 vm_domain_free_lock(vmd);
3151 order = m->order;
3152 if (order < VM_NFREEORDER) {
3153 /*
3154 * The page is enqueued in the physical memory
3155 * allocator's free page queues. Moreover, it
3156 * is the first page in a power-of-two-sized
3157 * run of contiguous free pages. Jump ahead
3158 * to the last page within that run, and
3159 * continue from there.
3160 */
3161 m += (1 << order) - 1;
3162 }
3163 #if VM_NRESERVLEVEL > 0
3164 else if (vm_reserv_is_page_free(m))
3165 order = 0;
3166 #endif
3167 vm_domain_free_unlock(vmd);
3168 if (order == VM_NFREEORDER)
3169 error = EINVAL;
3170 }
3171 }
3172 if ((m = SLIST_FIRST(&free)) != NULL) {
3173 int cnt;
3174
3175 vmd = VM_DOMAIN(domain);
3176 cnt = 0;
3177 vm_domain_free_lock(vmd);
3178 do {
3179 MPASS(vm_page_domain(m) == domain);
3180 SLIST_REMOVE_HEAD(&free, plinks.s.ss);
3181 vm_phys_free_pages(m, m->pool, 0);
3182 cnt++;
3183 } while ((m = SLIST_FIRST(&free)) != NULL);
3184 vm_domain_free_unlock(vmd);
3185 vm_domain_freecnt_inc(vmd, cnt);
3186 }
3187 return (error);
3188 }
3189
3190 #define NRUNS 16
3191
3192 #define RUN_INDEX(count, nruns) ((count) % (nruns))
3193
3194 #define MIN_RECLAIM 8
3195
3196 /*
3197 * vm_page_reclaim_contig:
3198 *
3199 * Reclaim allocated, contiguous physical memory satisfying the specified
3200 * conditions by relocating the virtual pages using that physical memory.
3201 * Returns 0 if reclamation is successful, ERANGE if the specified domain
3202 * can't possibly satisfy the reclamation request, or ENOMEM if not
3203 * currently able to reclaim the requested number of pages. Since
3204 * relocation requires the allocation of physical pages, reclamation may
3205 * fail with ENOMEM due to a shortage of free pages. When reclamation
3206 * fails in this manner, callers are expected to perform vm_wait() before
3207 * retrying a failed allocation operation, e.g., vm_page_alloc_contig().
3208 *
3209 * The caller must always specify an allocation class through "req".
3210 *
3211 * allocation classes:
3212 * VM_ALLOC_NORMAL normal process request
3213 * VM_ALLOC_SYSTEM system *really* needs a page
3214 * VM_ALLOC_INTERRUPT interrupt time request
3215 *
3216 * The optional allocation flags are ignored.
3217 *
3218 * "npages" must be greater than zero. Both "alignment" and "boundary"
3219 * must be a power of two.
3220 */
3221 int
vm_page_reclaim_contig_domain_ext(int domain,int req,u_long npages,vm_paddr_t low,vm_paddr_t high,u_long alignment,vm_paddr_t boundary,int desired_runs)3222 vm_page_reclaim_contig_domain_ext(int domain, int req, u_long npages,
3223 vm_paddr_t low, vm_paddr_t high, u_long alignment, vm_paddr_t boundary,
3224 int desired_runs)
3225 {
3226 struct vm_domain *vmd;
3227 vm_page_t bounds[2], m_run, _m_runs[NRUNS], *m_runs;
3228 u_long count, minalign, reclaimed;
3229 int error, i, min_reclaim, nruns, options, req_class;
3230 int segind, start_segind;
3231 int ret;
3232
3233 KASSERT(npages > 0, ("npages is 0"));
3234 KASSERT(powerof2(alignment), ("alignment is not a power of 2"));
3235 KASSERT(powerof2(boundary), ("boundary is not a power of 2"));
3236
3237 ret = ENOMEM;
3238
3239 /*
3240 * If the caller wants to reclaim multiple runs, try to allocate
3241 * space to store the runs. If that fails, fall back to the old
3242 * behavior of just reclaiming MIN_RECLAIM pages.
3243 */
3244 if (desired_runs > 1)
3245 m_runs = malloc((NRUNS + desired_runs) * sizeof(*m_runs),
3246 M_TEMP, M_NOWAIT);
3247 else
3248 m_runs = NULL;
3249
3250 if (m_runs == NULL) {
3251 m_runs = _m_runs;
3252 nruns = NRUNS;
3253 } else {
3254 nruns = NRUNS + desired_runs - 1;
3255 }
3256 min_reclaim = MAX(desired_runs * npages, MIN_RECLAIM);
3257
3258 /*
3259 * The caller will attempt an allocation after some runs have been
3260 * reclaimed and added to the vm_phys buddy lists. Due to limitations
3261 * of vm_phys_alloc_contig(), round up the requested length to the next
3262 * power of two or maximum chunk size, and ensure that each run is
3263 * suitably aligned.
3264 */
3265 minalign = 1ul << imin(flsl(npages - 1), VM_NFREEORDER - 1);
3266 npages = roundup2(npages, minalign);
3267 if (alignment < ptoa(minalign))
3268 alignment = ptoa(minalign);
3269
3270 /*
3271 * The page daemon is allowed to dig deeper into the free page list.
3272 */
3273 req_class = req & VM_ALLOC_CLASS_MASK;
3274 if (curproc == pageproc && req_class != VM_ALLOC_INTERRUPT)
3275 req_class = VM_ALLOC_SYSTEM;
3276
3277 start_segind = vm_phys_lookup_segind(low);
3278
3279 /*
3280 * Return if the number of free pages cannot satisfy the requested
3281 * allocation.
3282 */
3283 vmd = VM_DOMAIN(domain);
3284 count = vmd->vmd_free_count;
3285 if (count < npages + vmd->vmd_free_reserved || (count < npages +
3286 vmd->vmd_interrupt_free_min && req_class == VM_ALLOC_SYSTEM) ||
3287 (count < npages && req_class == VM_ALLOC_INTERRUPT))
3288 goto done;
3289
3290 /*
3291 * Scan up to three times, relaxing the restrictions ("options") on
3292 * the reclamation of reservations and superpages each time.
3293 */
3294 for (options = VPSC_NORESERV;;) {
3295 bool phys_range_exists = false;
3296
3297 /*
3298 * Find the highest runs that satisfy the given constraints
3299 * and restrictions, and record them in "m_runs".
3300 */
3301 count = 0;
3302 segind = start_segind;
3303 while ((segind = vm_phys_find_range(bounds, segind, domain,
3304 npages, low, high)) != -1) {
3305 phys_range_exists = true;
3306 while ((m_run = vm_page_scan_contig(npages, bounds[0],
3307 bounds[1], alignment, boundary, options))) {
3308 bounds[0] = m_run + npages;
3309 m_runs[RUN_INDEX(count, nruns)] = m_run;
3310 count++;
3311 }
3312 segind++;
3313 }
3314
3315 if (!phys_range_exists) {
3316 ret = ERANGE;
3317 goto done;
3318 }
3319
3320 /*
3321 * Reclaim the highest runs in LIFO (descending) order until
3322 * the number of reclaimed pages, "reclaimed", is at least
3323 * "min_reclaim". Reset "reclaimed" each time because each
3324 * reclamation is idempotent, and runs will (likely) recur
3325 * from one scan to the next as restrictions are relaxed.
3326 */
3327 reclaimed = 0;
3328 for (i = 0; count > 0 && i < nruns; i++) {
3329 count--;
3330 m_run = m_runs[RUN_INDEX(count, nruns)];
3331 error = vm_page_reclaim_run(req_class, domain, npages,
3332 m_run, high);
3333 if (error == 0) {
3334 reclaimed += npages;
3335 if (reclaimed >= min_reclaim) {
3336 ret = 0;
3337 goto done;
3338 }
3339 }
3340 }
3341
3342 /*
3343 * Either relax the restrictions on the next scan or return if
3344 * the last scan had no restrictions.
3345 */
3346 if (options == VPSC_NORESERV)
3347 options = VPSC_NOSUPER;
3348 else if (options == VPSC_NOSUPER)
3349 options = VPSC_ANY;
3350 else if (options == VPSC_ANY) {
3351 if (reclaimed != 0)
3352 ret = 0;
3353 goto done;
3354 }
3355 }
3356 done:
3357 if (m_runs != _m_runs)
3358 free(m_runs, M_TEMP);
3359 return (ret);
3360 }
3361
3362 int
vm_page_reclaim_contig_domain(int domain,int req,u_long npages,vm_paddr_t low,vm_paddr_t high,u_long alignment,vm_paddr_t boundary)3363 vm_page_reclaim_contig_domain(int domain, int req, u_long npages,
3364 vm_paddr_t low, vm_paddr_t high, u_long alignment, vm_paddr_t boundary)
3365 {
3366 return (vm_page_reclaim_contig_domain_ext(domain, req, npages, low,
3367 high, alignment, boundary, 1));
3368 }
3369
3370 int
vm_page_reclaim_contig(int req,u_long npages,vm_paddr_t low,vm_paddr_t high,u_long alignment,vm_paddr_t boundary)3371 vm_page_reclaim_contig(int req, u_long npages, vm_paddr_t low, vm_paddr_t high,
3372 u_long alignment, vm_paddr_t boundary)
3373 {
3374 struct vm_domainset_iter di;
3375 int domain, ret, status;
3376
3377 ret = ERANGE;
3378
3379 vm_domainset_iter_page_init(&di, NULL, 0, &domain, &req);
3380 do {
3381 status = vm_page_reclaim_contig_domain(domain, req, npages, low,
3382 high, alignment, boundary);
3383 if (status == 0)
3384 return (0);
3385 else if (status == ERANGE)
3386 vm_domainset_iter_ignore(&di, domain);
3387 else {
3388 KASSERT(status == ENOMEM, ("Unrecognized error %d "
3389 "from vm_page_reclaim_contig_domain()", status));
3390 ret = ENOMEM;
3391 }
3392 } while (vm_domainset_iter_page(&di, NULL, &domain) == 0);
3393
3394 return (ret);
3395 }
3396
3397 /*
3398 * Set the domain in the appropriate page level domainset.
3399 */
3400 void
vm_domain_set(struct vm_domain * vmd)3401 vm_domain_set(struct vm_domain *vmd)
3402 {
3403
3404 mtx_lock(&vm_domainset_lock);
3405 if (!vmd->vmd_minset && vm_paging_min(vmd)) {
3406 vmd->vmd_minset = 1;
3407 DOMAINSET_SET(vmd->vmd_domain, &vm_min_domains);
3408 }
3409 if (!vmd->vmd_severeset && vm_paging_severe(vmd)) {
3410 vmd->vmd_severeset = 1;
3411 DOMAINSET_SET(vmd->vmd_domain, &vm_severe_domains);
3412 }
3413 mtx_unlock(&vm_domainset_lock);
3414 }
3415
3416 /*
3417 * Clear the domain from the appropriate page level domainset.
3418 */
3419 void
vm_domain_clear(struct vm_domain * vmd)3420 vm_domain_clear(struct vm_domain *vmd)
3421 {
3422
3423 mtx_lock(&vm_domainset_lock);
3424 if (vmd->vmd_minset && !vm_paging_min(vmd)) {
3425 vmd->vmd_minset = 0;
3426 DOMAINSET_CLR(vmd->vmd_domain, &vm_min_domains);
3427 if (vm_min_waiters != 0) {
3428 vm_min_waiters = 0;
3429 wakeup(&vm_min_domains);
3430 }
3431 }
3432 if (vmd->vmd_severeset && !vm_paging_severe(vmd)) {
3433 vmd->vmd_severeset = 0;
3434 DOMAINSET_CLR(vmd->vmd_domain, &vm_severe_domains);
3435 if (vm_severe_waiters != 0) {
3436 vm_severe_waiters = 0;
3437 wakeup(&vm_severe_domains);
3438 }
3439 }
3440
3441 /*
3442 * If pageout daemon needs pages, then tell it that there are
3443 * some free.
3444 */
3445 if (vmd->vmd_pageout_pages_needed &&
3446 vmd->vmd_free_count >= vmd->vmd_pageout_free_min) {
3447 wakeup(&vmd->vmd_pageout_pages_needed);
3448 vmd->vmd_pageout_pages_needed = 0;
3449 }
3450
3451 /* See comments in vm_wait_doms(). */
3452 if (vm_pageproc_waiters) {
3453 vm_pageproc_waiters = 0;
3454 wakeup(&vm_pageproc_waiters);
3455 }
3456 mtx_unlock(&vm_domainset_lock);
3457 }
3458
3459 /*
3460 * Wait for free pages to exceed the min threshold globally.
3461 */
3462 void
vm_wait_min(void)3463 vm_wait_min(void)
3464 {
3465
3466 mtx_lock(&vm_domainset_lock);
3467 while (vm_page_count_min()) {
3468 vm_min_waiters++;
3469 msleep(&vm_min_domains, &vm_domainset_lock, PVM, "vmwait", 0);
3470 }
3471 mtx_unlock(&vm_domainset_lock);
3472 }
3473
3474 /*
3475 * Wait for free pages to exceed the severe threshold globally.
3476 */
3477 void
vm_wait_severe(void)3478 vm_wait_severe(void)
3479 {
3480
3481 mtx_lock(&vm_domainset_lock);
3482 while (vm_page_count_severe()) {
3483 vm_severe_waiters++;
3484 msleep(&vm_severe_domains, &vm_domainset_lock, PVM,
3485 "vmwait", 0);
3486 }
3487 mtx_unlock(&vm_domainset_lock);
3488 }
3489
3490 u_int
vm_wait_count(void)3491 vm_wait_count(void)
3492 {
3493
3494 return (vm_severe_waiters + vm_min_waiters + vm_pageproc_waiters);
3495 }
3496
3497 int
vm_wait_doms(const domainset_t * wdoms,int mflags)3498 vm_wait_doms(const domainset_t *wdoms, int mflags)
3499 {
3500 int error;
3501
3502 error = 0;
3503
3504 /*
3505 * We use racey wakeup synchronization to avoid expensive global
3506 * locking for the pageproc when sleeping with a non-specific vm_wait.
3507 * To handle this, we only sleep for one tick in this instance. It
3508 * is expected that most allocations for the pageproc will come from
3509 * kmem or vm_page_grab* which will use the more specific and
3510 * race-free vm_wait_domain().
3511 */
3512 if (curproc == pageproc) {
3513 mtx_lock(&vm_domainset_lock);
3514 vm_pageproc_waiters++;
3515 error = msleep(&vm_pageproc_waiters, &vm_domainset_lock,
3516 PVM | PDROP | mflags, "pageprocwait", 1);
3517 } else {
3518 /*
3519 * XXX Ideally we would wait only until the allocation could
3520 * be satisfied. This condition can cause new allocators to
3521 * consume all freed pages while old allocators wait.
3522 */
3523 mtx_lock(&vm_domainset_lock);
3524 if (vm_page_count_min_set(wdoms)) {
3525 if (pageproc == NULL)
3526 panic("vm_wait in early boot");
3527 vm_min_waiters++;
3528 error = msleep(&vm_min_domains, &vm_domainset_lock,
3529 PVM | PDROP | mflags, "vmwait", 0);
3530 } else
3531 mtx_unlock(&vm_domainset_lock);
3532 }
3533 return (error);
3534 }
3535
3536 /*
3537 * vm_wait_domain:
3538 *
3539 * Sleep until free pages are available for allocation.
3540 * - Called in various places after failed memory allocations.
3541 */
3542 void
vm_wait_domain(int domain)3543 vm_wait_domain(int domain)
3544 {
3545 struct vm_domain *vmd;
3546 domainset_t wdom;
3547
3548 vmd = VM_DOMAIN(domain);
3549 vm_domain_free_assert_unlocked(vmd);
3550
3551 if (curproc == pageproc) {
3552 mtx_lock(&vm_domainset_lock);
3553 if (vmd->vmd_free_count < vmd->vmd_pageout_free_min) {
3554 vmd->vmd_pageout_pages_needed = 1;
3555 msleep(&vmd->vmd_pageout_pages_needed,
3556 &vm_domainset_lock, PDROP | PSWP, "VMWait", 0);
3557 } else
3558 mtx_unlock(&vm_domainset_lock);
3559 } else {
3560 DOMAINSET_ZERO(&wdom);
3561 DOMAINSET_SET(vmd->vmd_domain, &wdom);
3562 vm_wait_doms(&wdom, 0);
3563 }
3564 }
3565
3566 static int
vm_wait_flags(vm_object_t obj,int mflags)3567 vm_wait_flags(vm_object_t obj, int mflags)
3568 {
3569 struct domainset *d;
3570
3571 d = NULL;
3572
3573 /*
3574 * Carefully fetch pointers only once: the struct domainset
3575 * itself is ummutable but the pointer might change.
3576 */
3577 if (obj != NULL)
3578 d = obj->domain.dr_policy;
3579 if (d == NULL)
3580 d = curthread->td_domain.dr_policy;
3581
3582 return (vm_wait_doms(&d->ds_mask, mflags));
3583 }
3584
3585 /*
3586 * vm_wait:
3587 *
3588 * Sleep until free pages are available for allocation in the
3589 * affinity domains of the obj. If obj is NULL, the domain set
3590 * for the calling thread is used.
3591 * Called in various places after failed memory allocations.
3592 */
3593 void
vm_wait(vm_object_t obj)3594 vm_wait(vm_object_t obj)
3595 {
3596 (void)vm_wait_flags(obj, 0);
3597 }
3598
3599 int
vm_wait_intr(vm_object_t obj)3600 vm_wait_intr(vm_object_t obj)
3601 {
3602 return (vm_wait_flags(obj, PCATCH));
3603 }
3604
3605 /*
3606 * vm_domain_alloc_fail:
3607 *
3608 * Called when a page allocation function fails. Informs the
3609 * pagedaemon and performs the requested wait. Requires the
3610 * domain_free and object lock on entry. Returns with the
3611 * object lock held and free lock released. Returns an error when
3612 * retry is necessary.
3613 *
3614 */
3615 static int
vm_domain_alloc_fail(struct vm_domain * vmd,vm_object_t object,int req)3616 vm_domain_alloc_fail(struct vm_domain *vmd, vm_object_t object, int req)
3617 {
3618
3619 vm_domain_free_assert_unlocked(vmd);
3620
3621 atomic_add_int(&vmd->vmd_pageout_deficit,
3622 max((u_int)req >> VM_ALLOC_COUNT_SHIFT, 1));
3623 if (req & (VM_ALLOC_WAITOK | VM_ALLOC_WAITFAIL)) {
3624 if (object != NULL)
3625 VM_OBJECT_WUNLOCK(object);
3626 vm_wait_domain(vmd->vmd_domain);
3627 if (object != NULL)
3628 VM_OBJECT_WLOCK(object);
3629 if (req & VM_ALLOC_WAITOK)
3630 return (EAGAIN);
3631 }
3632
3633 return (0);
3634 }
3635
3636 /*
3637 * vm_waitpfault:
3638 *
3639 * Sleep until free pages are available for allocation.
3640 * - Called only in vm_fault so that processes page faulting
3641 * can be easily tracked.
3642 * - Sleeps at a lower priority than vm_wait() so that vm_wait()ing
3643 * processes will be able to grab memory first. Do not change
3644 * this balance without careful testing first.
3645 */
3646 void
vm_waitpfault(struct domainset * dset,int timo)3647 vm_waitpfault(struct domainset *dset, int timo)
3648 {
3649
3650 /*
3651 * XXX Ideally we would wait only until the allocation could
3652 * be satisfied. This condition can cause new allocators to
3653 * consume all freed pages while old allocators wait.
3654 */
3655 mtx_lock(&vm_domainset_lock);
3656 if (vm_page_count_min_set(&dset->ds_mask)) {
3657 vm_min_waiters++;
3658 msleep(&vm_min_domains, &vm_domainset_lock, PUSER | PDROP,
3659 "pfault", timo);
3660 } else
3661 mtx_unlock(&vm_domainset_lock);
3662 }
3663
3664 static struct vm_pagequeue *
_vm_page_pagequeue(vm_page_t m,uint8_t queue)3665 _vm_page_pagequeue(vm_page_t m, uint8_t queue)
3666 {
3667
3668 return (&vm_pagequeue_domain(m)->vmd_pagequeues[queue]);
3669 }
3670
3671 #ifdef INVARIANTS
3672 static struct vm_pagequeue *
vm_page_pagequeue(vm_page_t m)3673 vm_page_pagequeue(vm_page_t m)
3674 {
3675
3676 return (_vm_page_pagequeue(m, vm_page_astate_load(m).queue));
3677 }
3678 #endif
3679
3680 static __always_inline bool
vm_page_pqstate_fcmpset(vm_page_t m,vm_page_astate_t * old,vm_page_astate_t new)3681 vm_page_pqstate_fcmpset(vm_page_t m, vm_page_astate_t *old,
3682 vm_page_astate_t new)
3683 {
3684 vm_page_astate_t tmp;
3685
3686 tmp = *old;
3687 do {
3688 if (__predict_true(vm_page_astate_fcmpset(m, old, new)))
3689 return (true);
3690 counter_u64_add(pqstate_commit_retries, 1);
3691 } while (old->_bits == tmp._bits);
3692
3693 return (false);
3694 }
3695
3696 /*
3697 * Do the work of committing a queue state update that moves the page out of
3698 * its current queue.
3699 */
3700 static bool
_vm_page_pqstate_commit_dequeue(struct vm_pagequeue * pq,vm_page_t m,vm_page_astate_t * old,vm_page_astate_t new)3701 _vm_page_pqstate_commit_dequeue(struct vm_pagequeue *pq, vm_page_t m,
3702 vm_page_astate_t *old, vm_page_astate_t new)
3703 {
3704 vm_page_t next;
3705
3706 vm_pagequeue_assert_locked(pq);
3707 KASSERT(vm_page_pagequeue(m) == pq,
3708 ("%s: queue %p does not match page %p", __func__, pq, m));
3709 KASSERT(old->queue != PQ_NONE && new.queue != old->queue,
3710 ("%s: invalid queue indices %d %d",
3711 __func__, old->queue, new.queue));
3712
3713 /*
3714 * Once the queue index of the page changes there is nothing
3715 * synchronizing with further updates to the page's physical
3716 * queue state. Therefore we must speculatively remove the page
3717 * from the queue now and be prepared to roll back if the queue
3718 * state update fails. If the page is not physically enqueued then
3719 * we just update its queue index.
3720 */
3721 if ((old->flags & PGA_ENQUEUED) != 0) {
3722 new.flags &= ~PGA_ENQUEUED;
3723 next = TAILQ_NEXT(m, plinks.q);
3724 TAILQ_REMOVE(&pq->pq_pl, m, plinks.q);
3725 vm_pagequeue_cnt_dec(pq);
3726 if (!vm_page_pqstate_fcmpset(m, old, new)) {
3727 if (next == NULL)
3728 TAILQ_INSERT_TAIL(&pq->pq_pl, m, plinks.q);
3729 else
3730 TAILQ_INSERT_BEFORE(next, m, plinks.q);
3731 vm_pagequeue_cnt_inc(pq);
3732 return (false);
3733 } else {
3734 return (true);
3735 }
3736 } else {
3737 return (vm_page_pqstate_fcmpset(m, old, new));
3738 }
3739 }
3740
3741 static bool
vm_page_pqstate_commit_dequeue(vm_page_t m,vm_page_astate_t * old,vm_page_astate_t new)3742 vm_page_pqstate_commit_dequeue(vm_page_t m, vm_page_astate_t *old,
3743 vm_page_astate_t new)
3744 {
3745 struct vm_pagequeue *pq;
3746 vm_page_astate_t as;
3747 bool ret;
3748
3749 pq = _vm_page_pagequeue(m, old->queue);
3750
3751 /*
3752 * The queue field and PGA_ENQUEUED flag are stable only so long as the
3753 * corresponding page queue lock is held.
3754 */
3755 vm_pagequeue_lock(pq);
3756 as = vm_page_astate_load(m);
3757 if (__predict_false(as._bits != old->_bits)) {
3758 *old = as;
3759 ret = false;
3760 } else {
3761 ret = _vm_page_pqstate_commit_dequeue(pq, m, old, new);
3762 }
3763 vm_pagequeue_unlock(pq);
3764 return (ret);
3765 }
3766
3767 /*
3768 * Commit a queue state update that enqueues or requeues a page.
3769 */
3770 static bool
_vm_page_pqstate_commit_requeue(struct vm_pagequeue * pq,vm_page_t m,vm_page_astate_t * old,vm_page_astate_t new)3771 _vm_page_pqstate_commit_requeue(struct vm_pagequeue *pq, vm_page_t m,
3772 vm_page_astate_t *old, vm_page_astate_t new)
3773 {
3774 struct vm_domain *vmd;
3775
3776 vm_pagequeue_assert_locked(pq);
3777 KASSERT(old->queue != PQ_NONE && new.queue == old->queue,
3778 ("%s: invalid queue indices %d %d",
3779 __func__, old->queue, new.queue));
3780
3781 new.flags |= PGA_ENQUEUED;
3782 if (!vm_page_pqstate_fcmpset(m, old, new))
3783 return (false);
3784
3785 if ((old->flags & PGA_ENQUEUED) != 0)
3786 TAILQ_REMOVE(&pq->pq_pl, m, plinks.q);
3787 else
3788 vm_pagequeue_cnt_inc(pq);
3789
3790 /*
3791 * Give PGA_REQUEUE_HEAD precedence over PGA_REQUEUE. In particular, if
3792 * both flags are set in close succession, only PGA_REQUEUE_HEAD will be
3793 * applied, even if it was set first.
3794 */
3795 if ((old->flags & PGA_REQUEUE_HEAD) != 0) {
3796 vmd = vm_pagequeue_domain(m);
3797 KASSERT(pq == &vmd->vmd_pagequeues[PQ_INACTIVE],
3798 ("%s: invalid page queue for page %p", __func__, m));
3799 TAILQ_INSERT_BEFORE(&vmd->vmd_inacthead, m, plinks.q);
3800 } else {
3801 TAILQ_INSERT_TAIL(&pq->pq_pl, m, plinks.q);
3802 }
3803 return (true);
3804 }
3805
3806 /*
3807 * Commit a queue state update that encodes a request for a deferred queue
3808 * operation.
3809 */
3810 static bool
vm_page_pqstate_commit_request(vm_page_t m,vm_page_astate_t * old,vm_page_astate_t new)3811 vm_page_pqstate_commit_request(vm_page_t m, vm_page_astate_t *old,
3812 vm_page_astate_t new)
3813 {
3814
3815 KASSERT(old->queue == new.queue || new.queue != PQ_NONE,
3816 ("%s: invalid state, queue %d flags %x",
3817 __func__, new.queue, new.flags));
3818
3819 if (old->_bits != new._bits &&
3820 !vm_page_pqstate_fcmpset(m, old, new))
3821 return (false);
3822 vm_page_pqbatch_submit(m, new.queue);
3823 return (true);
3824 }
3825
3826 /*
3827 * A generic queue state update function. This handles more cases than the
3828 * specialized functions above.
3829 */
3830 bool
vm_page_pqstate_commit(vm_page_t m,vm_page_astate_t * old,vm_page_astate_t new)3831 vm_page_pqstate_commit(vm_page_t m, vm_page_astate_t *old, vm_page_astate_t new)
3832 {
3833
3834 if (old->_bits == new._bits)
3835 return (true);
3836
3837 if (old->queue != PQ_NONE && new.queue != old->queue) {
3838 if (!vm_page_pqstate_commit_dequeue(m, old, new))
3839 return (false);
3840 if (new.queue != PQ_NONE)
3841 vm_page_pqbatch_submit(m, new.queue);
3842 } else {
3843 if (!vm_page_pqstate_fcmpset(m, old, new))
3844 return (false);
3845 if (new.queue != PQ_NONE &&
3846 ((new.flags & ~old->flags) & PGA_QUEUE_OP_MASK) != 0)
3847 vm_page_pqbatch_submit(m, new.queue);
3848 }
3849 return (true);
3850 }
3851
3852 /*
3853 * Apply deferred queue state updates to a page.
3854 */
3855 static inline void
vm_pqbatch_process_page(struct vm_pagequeue * pq,vm_page_t m,uint8_t queue)3856 vm_pqbatch_process_page(struct vm_pagequeue *pq, vm_page_t m, uint8_t queue)
3857 {
3858 vm_page_astate_t new, old;
3859
3860 CRITICAL_ASSERT(curthread);
3861 vm_pagequeue_assert_locked(pq);
3862 KASSERT(queue < PQ_COUNT,
3863 ("%s: invalid queue index %d", __func__, queue));
3864 KASSERT(pq == _vm_page_pagequeue(m, queue),
3865 ("%s: page %p does not belong to queue %p", __func__, m, pq));
3866
3867 for (old = vm_page_astate_load(m);;) {
3868 if (__predict_false(old.queue != queue ||
3869 (old.flags & PGA_QUEUE_OP_MASK) == 0)) {
3870 counter_u64_add(queue_nops, 1);
3871 break;
3872 }
3873 KASSERT((m->oflags & VPO_UNMANAGED) == 0,
3874 ("%s: page %p is unmanaged", __func__, m));
3875
3876 new = old;
3877 if ((old.flags & PGA_DEQUEUE) != 0) {
3878 new.flags &= ~PGA_QUEUE_OP_MASK;
3879 new.queue = PQ_NONE;
3880 if (__predict_true(_vm_page_pqstate_commit_dequeue(pq,
3881 m, &old, new))) {
3882 counter_u64_add(queue_ops, 1);
3883 break;
3884 }
3885 } else {
3886 new.flags &= ~(PGA_REQUEUE | PGA_REQUEUE_HEAD);
3887 if (__predict_true(_vm_page_pqstate_commit_requeue(pq,
3888 m, &old, new))) {
3889 counter_u64_add(queue_ops, 1);
3890 break;
3891 }
3892 }
3893 }
3894 }
3895
3896 static void
vm_pqbatch_process(struct vm_pagequeue * pq,struct vm_batchqueue * bq,uint8_t queue)3897 vm_pqbatch_process(struct vm_pagequeue *pq, struct vm_batchqueue *bq,
3898 uint8_t queue)
3899 {
3900 int i;
3901
3902 for (i = 0; i < bq->bq_cnt; i++)
3903 vm_pqbatch_process_page(pq, bq->bq_pa[i], queue);
3904 vm_batchqueue_init(bq);
3905 }
3906
3907 /*
3908 * vm_page_pqbatch_submit: [ internal use only ]
3909 *
3910 * Enqueue a page in the specified page queue's batched work queue.
3911 * The caller must have encoded the requested operation in the page
3912 * structure's a.flags field.
3913 */
3914 void
vm_page_pqbatch_submit(vm_page_t m,uint8_t queue)3915 vm_page_pqbatch_submit(vm_page_t m, uint8_t queue)
3916 {
3917 struct vm_batchqueue *bq;
3918 struct vm_pagequeue *pq;
3919 int domain, slots_remaining;
3920
3921 KASSERT(queue < PQ_COUNT, ("invalid queue %d", queue));
3922
3923 domain = vm_page_domain(m);
3924 critical_enter();
3925 bq = DPCPU_PTR(pqbatch[domain][queue]);
3926 slots_remaining = vm_batchqueue_insert(bq, m);
3927 if (slots_remaining > (VM_BATCHQUEUE_SIZE >> 1)) {
3928 /* keep building the bq */
3929 critical_exit();
3930 return;
3931 } else if (slots_remaining > 0 ) {
3932 /* Try to process the bq if we can get the lock */
3933 pq = &VM_DOMAIN(domain)->vmd_pagequeues[queue];
3934 if (vm_pagequeue_trylock(pq)) {
3935 vm_pqbatch_process(pq, bq, queue);
3936 vm_pagequeue_unlock(pq);
3937 }
3938 critical_exit();
3939 return;
3940 }
3941 critical_exit();
3942
3943 /* if we make it here, the bq is full so wait for the lock */
3944
3945 pq = &VM_DOMAIN(domain)->vmd_pagequeues[queue];
3946 vm_pagequeue_lock(pq);
3947 critical_enter();
3948 bq = DPCPU_PTR(pqbatch[domain][queue]);
3949 vm_pqbatch_process(pq, bq, queue);
3950 vm_pqbatch_process_page(pq, m, queue);
3951 vm_pagequeue_unlock(pq);
3952 critical_exit();
3953 }
3954
3955 /*
3956 * vm_page_pqbatch_drain: [ internal use only ]
3957 *
3958 * Force all per-CPU page queue batch queues to be drained. This is
3959 * intended for use in severe memory shortages, to ensure that pages
3960 * do not remain stuck in the batch queues.
3961 */
3962 void
vm_page_pqbatch_drain(void)3963 vm_page_pqbatch_drain(void)
3964 {
3965 struct thread *td;
3966 struct vm_domain *vmd;
3967 struct vm_pagequeue *pq;
3968 int cpu, domain, queue;
3969
3970 td = curthread;
3971 CPU_FOREACH(cpu) {
3972 thread_lock(td);
3973 sched_bind(td, cpu);
3974 thread_unlock(td);
3975
3976 for (domain = 0; domain < vm_ndomains; domain++) {
3977 vmd = VM_DOMAIN(domain);
3978 for (queue = 0; queue < PQ_COUNT; queue++) {
3979 pq = &vmd->vmd_pagequeues[queue];
3980 vm_pagequeue_lock(pq);
3981 critical_enter();
3982 vm_pqbatch_process(pq,
3983 DPCPU_PTR(pqbatch[domain][queue]), queue);
3984 critical_exit();
3985 vm_pagequeue_unlock(pq);
3986 }
3987 }
3988 }
3989 thread_lock(td);
3990 sched_unbind(td);
3991 thread_unlock(td);
3992 }
3993
3994 /*
3995 * vm_page_dequeue_deferred: [ internal use only ]
3996 *
3997 * Request removal of the given page from its current page
3998 * queue. Physical removal from the queue may be deferred
3999 * indefinitely.
4000 */
4001 void
vm_page_dequeue_deferred(vm_page_t m)4002 vm_page_dequeue_deferred(vm_page_t m)
4003 {
4004 vm_page_astate_t new, old;
4005
4006 old = vm_page_astate_load(m);
4007 do {
4008 if (old.queue == PQ_NONE) {
4009 KASSERT((old.flags & PGA_QUEUE_STATE_MASK) == 0,
4010 ("%s: page %p has unexpected queue state",
4011 __func__, m));
4012 break;
4013 }
4014 new = old;
4015 new.flags |= PGA_DEQUEUE;
4016 } while (!vm_page_pqstate_commit_request(m, &old, new));
4017 }
4018
4019 /*
4020 * vm_page_dequeue:
4021 *
4022 * Remove the page from whichever page queue it's in, if any, before
4023 * returning.
4024 */
4025 void
vm_page_dequeue(vm_page_t m)4026 vm_page_dequeue(vm_page_t m)
4027 {
4028 vm_page_astate_t new, old;
4029
4030 old = vm_page_astate_load(m);
4031 do {
4032 if (old.queue == PQ_NONE) {
4033 KASSERT((old.flags & PGA_QUEUE_STATE_MASK) == 0,
4034 ("%s: page %p has unexpected queue state",
4035 __func__, m));
4036 break;
4037 }
4038 new = old;
4039 new.flags &= ~PGA_QUEUE_OP_MASK;
4040 new.queue = PQ_NONE;
4041 } while (!vm_page_pqstate_commit_dequeue(m, &old, new));
4042
4043 }
4044
4045 /*
4046 * Schedule the given page for insertion into the specified page queue.
4047 * Physical insertion of the page may be deferred indefinitely.
4048 */
4049 static void
vm_page_enqueue(vm_page_t m,uint8_t queue)4050 vm_page_enqueue(vm_page_t m, uint8_t queue)
4051 {
4052
4053 KASSERT(m->a.queue == PQ_NONE &&
4054 (m->a.flags & PGA_QUEUE_STATE_MASK) == 0,
4055 ("%s: page %p is already enqueued", __func__, m));
4056 KASSERT(m->ref_count > 0,
4057 ("%s: page %p does not carry any references", __func__, m));
4058
4059 m->a.queue = queue;
4060 if ((m->a.flags & PGA_REQUEUE) == 0)
4061 vm_page_aflag_set(m, PGA_REQUEUE);
4062 vm_page_pqbatch_submit(m, queue);
4063 }
4064
4065 /*
4066 * vm_page_free_prep:
4067 *
4068 * Prepares the given page to be put on the free list,
4069 * disassociating it from any VM object. The caller may return
4070 * the page to the free list only if this function returns true.
4071 *
4072 * The object, if it exists, must be locked, and then the page must
4073 * be xbusy. Otherwise the page must be not busied. A managed
4074 * page must be unmapped.
4075 */
4076 static bool
vm_page_free_prep(vm_page_t m)4077 vm_page_free_prep(vm_page_t m)
4078 {
4079
4080 /*
4081 * Synchronize with threads that have dropped a reference to this
4082 * page.
4083 */
4084 atomic_thread_fence_acq();
4085
4086 #if defined(DIAGNOSTIC) && defined(PHYS_TO_DMAP)
4087 if (PMAP_HAS_DMAP && (m->flags & PG_ZERO) != 0) {
4088 uint64_t *p;
4089 int i;
4090 p = (uint64_t *)PHYS_TO_DMAP(VM_PAGE_TO_PHYS(m));
4091 for (i = 0; i < PAGE_SIZE / sizeof(uint64_t); i++, p++)
4092 KASSERT(*p == 0, ("vm_page_free_prep %p PG_ZERO %d %jx",
4093 m, i, (uintmax_t)*p));
4094 }
4095 #endif
4096 if ((m->oflags & VPO_UNMANAGED) == 0) {
4097 KASSERT(!pmap_page_is_mapped(m),
4098 ("vm_page_free_prep: freeing mapped page %p", m));
4099 KASSERT((m->a.flags & (PGA_EXECUTABLE | PGA_WRITEABLE)) == 0,
4100 ("vm_page_free_prep: mapping flags set in page %p", m));
4101 } else {
4102 KASSERT(m->a.queue == PQ_NONE,
4103 ("vm_page_free_prep: unmanaged page %p is queued", m));
4104 }
4105 VM_CNT_INC(v_tfree);
4106
4107 if (m->object != NULL) {
4108 vm_page_radix_remove(m);
4109 vm_page_free_object_prep(m);
4110 } else
4111 vm_page_assert_unbusied(m);
4112
4113 vm_page_busy_free(m);
4114
4115 /*
4116 * If fictitious remove object association and
4117 * return.
4118 */
4119 if ((m->flags & PG_FICTITIOUS) != 0) {
4120 KASSERT(m->ref_count == 1,
4121 ("fictitious page %p is referenced", m));
4122 KASSERT(m->a.queue == PQ_NONE,
4123 ("fictitious page %p is queued", m));
4124 return (false);
4125 }
4126
4127 /*
4128 * Pages need not be dequeued before they are returned to the physical
4129 * memory allocator, but they must at least be marked for a deferred
4130 * dequeue.
4131 */
4132 if ((m->oflags & VPO_UNMANAGED) == 0)
4133 vm_page_dequeue_deferred(m);
4134
4135 m->valid = 0;
4136 vm_page_undirty(m);
4137
4138 if (m->ref_count != 0)
4139 panic("vm_page_free_prep: page %p has references", m);
4140
4141 /*
4142 * Restore the default memory attribute to the page.
4143 */
4144 if (pmap_page_get_memattr(m) != VM_MEMATTR_DEFAULT)
4145 pmap_page_set_memattr(m, VM_MEMATTR_DEFAULT);
4146
4147 #if VM_NRESERVLEVEL > 0
4148 /*
4149 * Determine whether the page belongs to a reservation. If the page was
4150 * allocated from a per-CPU cache, it cannot belong to a reservation, so
4151 * as an optimization, we avoid the check in that case.
4152 */
4153 if ((m->flags & PG_PCPU_CACHE) == 0 && vm_reserv_free_page(m))
4154 return (false);
4155 #endif
4156
4157 return (true);
4158 }
4159
4160 /*
4161 * vm_page_free_toq:
4162 *
4163 * Returns the given page to the free list, disassociating it
4164 * from any VM object.
4165 *
4166 * The object must be locked. The page must be exclusively busied if it
4167 * belongs to an object.
4168 */
4169 static void
vm_page_free_toq(vm_page_t m)4170 vm_page_free_toq(vm_page_t m)
4171 {
4172 struct vm_domain *vmd;
4173 uma_zone_t zone;
4174
4175 if (!vm_page_free_prep(m))
4176 return;
4177
4178 vmd = vm_pagequeue_domain(m);
4179 if (__predict_false((m->flags & PG_NOFREE) != 0)) {
4180 vm_page_free_nofree(vmd, m);
4181 return;
4182 }
4183 zone = vmd->vmd_pgcache[m->pool].zone;
4184 if ((m->flags & PG_PCPU_CACHE) != 0 && zone != NULL) {
4185 uma_zfree(zone, m);
4186 return;
4187 }
4188 vm_domain_free_lock(vmd);
4189 vm_phys_free_pages(m, m->pool, 0);
4190 vm_domain_free_unlock(vmd);
4191 vm_domain_freecnt_inc(vmd, 1);
4192 }
4193
4194 /*
4195 * vm_page_free_pages_toq:
4196 *
4197 * Returns a list of pages to the free list, disassociating it
4198 * from any VM object. In other words, this is equivalent to
4199 * calling vm_page_free_toq() for each page of a list of VM objects.
4200 */
4201 int
vm_page_free_pages_toq(struct spglist * free,bool update_wire_count)4202 vm_page_free_pages_toq(struct spglist *free, bool update_wire_count)
4203 {
4204 vm_page_t m;
4205 int count;
4206
4207 if (SLIST_EMPTY(free))
4208 return (0);
4209
4210 count = 0;
4211 while ((m = SLIST_FIRST(free)) != NULL) {
4212 count++;
4213 SLIST_REMOVE_HEAD(free, plinks.s.ss);
4214 vm_page_free_toq(m);
4215 }
4216
4217 if (update_wire_count)
4218 vm_wire_sub(count);
4219 return (count);
4220 }
4221
4222 /*
4223 * Mark this page as wired down. For managed pages, this prevents reclamation
4224 * by the page daemon, or when the containing object, if any, is destroyed.
4225 */
4226 void
vm_page_wire(vm_page_t m)4227 vm_page_wire(vm_page_t m)
4228 {
4229 u_int old;
4230
4231 #ifdef INVARIANTS
4232 if (m->object != NULL && !vm_page_busied(m) &&
4233 !vm_object_busied(m->object))
4234 VM_OBJECT_ASSERT_LOCKED(m->object);
4235 #endif
4236 KASSERT((m->flags & PG_FICTITIOUS) == 0 ||
4237 VPRC_WIRE_COUNT(m->ref_count) >= 1,
4238 ("vm_page_wire: fictitious page %p has zero wirings", m));
4239
4240 old = atomic_fetchadd_int(&m->ref_count, 1);
4241 KASSERT(VPRC_WIRE_COUNT(old) != VPRC_WIRE_COUNT_MAX,
4242 ("vm_page_wire: counter overflow for page %p", m));
4243 if (VPRC_WIRE_COUNT(old) == 0) {
4244 if ((m->oflags & VPO_UNMANAGED) == 0)
4245 vm_page_aflag_set(m, PGA_DEQUEUE);
4246 vm_wire_add(1);
4247 }
4248 }
4249
4250 /*
4251 * Attempt to wire a mapped page following a pmap lookup of that page.
4252 * This may fail if a thread is concurrently tearing down mappings of the page.
4253 * The transient failure is acceptable because it translates to the
4254 * failure of the caller pmap_extract_and_hold(), which should be then
4255 * followed by the vm_fault() fallback, see e.g. vm_fault_quick_hold_pages().
4256 */
4257 bool
vm_page_wire_mapped(vm_page_t m)4258 vm_page_wire_mapped(vm_page_t m)
4259 {
4260 u_int old;
4261
4262 old = atomic_load_int(&m->ref_count);
4263 do {
4264 KASSERT(old > 0,
4265 ("vm_page_wire_mapped: wiring unreferenced page %p", m));
4266 if ((old & VPRC_BLOCKED) != 0)
4267 return (false);
4268 } while (!atomic_fcmpset_int(&m->ref_count, &old, old + 1));
4269
4270 if (VPRC_WIRE_COUNT(old) == 0) {
4271 if ((m->oflags & VPO_UNMANAGED) == 0)
4272 vm_page_aflag_set(m, PGA_DEQUEUE);
4273 vm_wire_add(1);
4274 }
4275 return (true);
4276 }
4277
4278 /*
4279 * Release a wiring reference to a managed page. If the page still belongs to
4280 * an object, update its position in the page queues to reflect the reference.
4281 * If the wiring was the last reference to the page, free the page.
4282 */
4283 static void
vm_page_unwire_managed(vm_page_t m,uint8_t nqueue,bool noreuse)4284 vm_page_unwire_managed(vm_page_t m, uint8_t nqueue, bool noreuse)
4285 {
4286 u_int old;
4287
4288 KASSERT((m->oflags & VPO_UNMANAGED) == 0,
4289 ("%s: page %p is unmanaged", __func__, m));
4290
4291 /*
4292 * Update LRU state before releasing the wiring reference.
4293 * Use a release store when updating the reference count to
4294 * synchronize with vm_page_free_prep().
4295 */
4296 old = atomic_load_int(&m->ref_count);
4297 do {
4298 u_int count;
4299
4300 KASSERT(VPRC_WIRE_COUNT(old) > 0,
4301 ("vm_page_unwire: wire count underflow for page %p", m));
4302
4303 count = old & ~VPRC_BLOCKED;
4304 if (count > VPRC_OBJREF + 1) {
4305 /*
4306 * The page has at least one other wiring reference. An
4307 * earlier iteration of this loop may have called
4308 * vm_page_release_toq() and cleared PGA_DEQUEUE, so
4309 * re-set it if necessary.
4310 */
4311 if ((vm_page_astate_load(m).flags & PGA_DEQUEUE) == 0)
4312 vm_page_aflag_set(m, PGA_DEQUEUE);
4313 } else if (count == VPRC_OBJREF + 1) {
4314 /*
4315 * This is the last wiring. Clear PGA_DEQUEUE and
4316 * update the page's queue state to reflect the
4317 * reference. If the page does not belong to an object
4318 * (i.e., the VPRC_OBJREF bit is clear), we only need to
4319 * clear leftover queue state.
4320 */
4321 vm_page_release_toq(m, nqueue, noreuse);
4322 } else if (count == 1) {
4323 vm_page_aflag_clear(m, PGA_DEQUEUE);
4324 }
4325 } while (!atomic_fcmpset_rel_int(&m->ref_count, &old, old - 1));
4326
4327 if (VPRC_WIRE_COUNT(old) == 1) {
4328 vm_wire_sub(1);
4329 if (old == 1)
4330 vm_page_free(m);
4331 }
4332 }
4333
4334 /*
4335 * Release one wiring of the specified page, potentially allowing it to be
4336 * paged out.
4337 *
4338 * Only managed pages belonging to an object can be paged out. If the number
4339 * of wirings transitions to zero and the page is eligible for page out, then
4340 * the page is added to the specified paging queue. If the released wiring
4341 * represented the last reference to the page, the page is freed.
4342 */
4343 void
vm_page_unwire(vm_page_t m,uint8_t nqueue)4344 vm_page_unwire(vm_page_t m, uint8_t nqueue)
4345 {
4346
4347 KASSERT(nqueue < PQ_COUNT,
4348 ("vm_page_unwire: invalid queue %u request for page %p",
4349 nqueue, m));
4350
4351 if ((m->oflags & VPO_UNMANAGED) != 0) {
4352 if (vm_page_unwire_noq(m) && m->ref_count == 0)
4353 vm_page_free(m);
4354 return;
4355 }
4356 vm_page_unwire_managed(m, nqueue, false);
4357 }
4358
4359 /*
4360 * Unwire a page without (re-)inserting it into a page queue. It is up
4361 * to the caller to enqueue, requeue, or free the page as appropriate.
4362 * In most cases involving managed pages, vm_page_unwire() should be used
4363 * instead.
4364 */
4365 bool
vm_page_unwire_noq(vm_page_t m)4366 vm_page_unwire_noq(vm_page_t m)
4367 {
4368 u_int old;
4369
4370 old = vm_page_drop(m, 1);
4371 KASSERT(VPRC_WIRE_COUNT(old) != 0,
4372 ("%s: counter underflow for page %p", __func__, m));
4373 KASSERT((m->flags & PG_FICTITIOUS) == 0 || VPRC_WIRE_COUNT(old) > 1,
4374 ("%s: missing ref on fictitious page %p", __func__, m));
4375
4376 if (VPRC_WIRE_COUNT(old) > 1)
4377 return (false);
4378 if ((m->oflags & VPO_UNMANAGED) == 0)
4379 vm_page_aflag_clear(m, PGA_DEQUEUE);
4380 vm_wire_sub(1);
4381 return (true);
4382 }
4383
4384 /*
4385 * Ensure that the page ends up in the specified page queue. If the page is
4386 * active or being moved to the active queue, ensure that its act_count is
4387 * at least ACT_INIT but do not otherwise mess with it.
4388 */
4389 static __always_inline void
vm_page_mvqueue(vm_page_t m,const uint8_t nqueue,const uint16_t nflag)4390 vm_page_mvqueue(vm_page_t m, const uint8_t nqueue, const uint16_t nflag)
4391 {
4392 vm_page_astate_t old, new;
4393
4394 KASSERT(m->ref_count > 0,
4395 ("%s: page %p does not carry any references", __func__, m));
4396 KASSERT(nflag == PGA_REQUEUE || nflag == PGA_REQUEUE_HEAD,
4397 ("%s: invalid flags %x", __func__, nflag));
4398
4399 if ((m->oflags & VPO_UNMANAGED) != 0 || vm_page_wired(m))
4400 return;
4401
4402 old = vm_page_astate_load(m);
4403 do {
4404 if ((old.flags & PGA_DEQUEUE) != 0)
4405 break;
4406 new = old;
4407 new.flags &= ~PGA_QUEUE_OP_MASK;
4408 if (nqueue == PQ_ACTIVE)
4409 new.act_count = max(old.act_count, ACT_INIT);
4410 if (old.queue == nqueue) {
4411 /*
4412 * There is no need to requeue pages already in the
4413 * active queue.
4414 */
4415 if (nqueue != PQ_ACTIVE ||
4416 (old.flags & PGA_ENQUEUED) == 0)
4417 new.flags |= nflag;
4418 } else {
4419 new.flags |= nflag;
4420 new.queue = nqueue;
4421 }
4422 } while (!vm_page_pqstate_commit(m, &old, new));
4423 }
4424
4425 /*
4426 * Put the specified page on the active list (if appropriate).
4427 */
4428 void
vm_page_activate(vm_page_t m)4429 vm_page_activate(vm_page_t m)
4430 {
4431
4432 vm_page_mvqueue(m, PQ_ACTIVE, PGA_REQUEUE);
4433 }
4434
4435 /*
4436 * Move the specified page to the tail of the inactive queue, or requeue
4437 * the page if it is already in the inactive queue.
4438 */
4439 void
vm_page_deactivate(vm_page_t m)4440 vm_page_deactivate(vm_page_t m)
4441 {
4442
4443 vm_page_mvqueue(m, PQ_INACTIVE, PGA_REQUEUE);
4444 }
4445
4446 void
vm_page_deactivate_noreuse(vm_page_t m)4447 vm_page_deactivate_noreuse(vm_page_t m)
4448 {
4449
4450 vm_page_mvqueue(m, PQ_INACTIVE, PGA_REQUEUE_HEAD);
4451 }
4452
4453 /*
4454 * Put a page in the laundry, or requeue it if it is already there.
4455 */
4456 void
vm_page_launder(vm_page_t m)4457 vm_page_launder(vm_page_t m)
4458 {
4459
4460 vm_page_mvqueue(m, PQ_LAUNDRY, PGA_REQUEUE);
4461 }
4462
4463 /*
4464 * Put a page in the PQ_UNSWAPPABLE holding queue.
4465 */
4466 void
vm_page_unswappable(vm_page_t m)4467 vm_page_unswappable(vm_page_t m)
4468 {
4469
4470 VM_OBJECT_ASSERT_LOCKED(m->object);
4471 KASSERT((m->oflags & VPO_UNMANAGED) == 0,
4472 ("page %p already unswappable", m));
4473
4474 vm_page_dequeue(m);
4475 vm_page_enqueue(m, PQ_UNSWAPPABLE);
4476 }
4477
4478 /*
4479 * Release a page back to the page queues in preparation for unwiring.
4480 */
4481 static void
vm_page_release_toq(vm_page_t m,uint8_t nqueue,const bool noreuse)4482 vm_page_release_toq(vm_page_t m, uint8_t nqueue, const bool noreuse)
4483 {
4484 vm_page_astate_t old, new;
4485 uint16_t nflag;
4486
4487 /*
4488 * Use a check of the valid bits to determine whether we should
4489 * accelerate reclamation of the page. The object lock might not be
4490 * held here, in which case the check is racy. At worst we will either
4491 * accelerate reclamation of a valid page and violate LRU, or
4492 * unnecessarily defer reclamation of an invalid page.
4493 *
4494 * If we were asked to not cache the page, place it near the head of the
4495 * inactive queue so that is reclaimed sooner.
4496 */
4497 if (noreuse || vm_page_none_valid(m)) {
4498 nqueue = PQ_INACTIVE;
4499 nflag = PGA_REQUEUE_HEAD;
4500 } else {
4501 nflag = PGA_REQUEUE;
4502 }
4503
4504 old = vm_page_astate_load(m);
4505 do {
4506 new = old;
4507
4508 /*
4509 * If the page is already in the active queue and we are not
4510 * trying to accelerate reclamation, simply mark it as
4511 * referenced and avoid any queue operations.
4512 */
4513 new.flags &= ~PGA_QUEUE_OP_MASK;
4514 if (nflag != PGA_REQUEUE_HEAD && old.queue == PQ_ACTIVE &&
4515 (old.flags & PGA_ENQUEUED) != 0)
4516 new.flags |= PGA_REFERENCED;
4517 else {
4518 new.flags |= nflag;
4519 new.queue = nqueue;
4520 }
4521 } while (!vm_page_pqstate_commit(m, &old, new));
4522 }
4523
4524 /*
4525 * Unwire a page and either attempt to free it or re-add it to the page queues.
4526 */
4527 void
vm_page_release(vm_page_t m,int flags)4528 vm_page_release(vm_page_t m, int flags)
4529 {
4530 vm_object_t object;
4531
4532 KASSERT((m->oflags & VPO_UNMANAGED) == 0,
4533 ("vm_page_release: page %p is unmanaged", m));
4534
4535 if ((flags & VPR_TRYFREE) != 0) {
4536 for (;;) {
4537 object = atomic_load_ptr(&m->object);
4538 if (object == NULL)
4539 break;
4540 /* Depends on type-stability. */
4541 if (vm_page_busied(m) || !VM_OBJECT_TRYWLOCK(object))
4542 break;
4543 if (object == m->object) {
4544 vm_page_release_locked(m, flags);
4545 VM_OBJECT_WUNLOCK(object);
4546 return;
4547 }
4548 VM_OBJECT_WUNLOCK(object);
4549 }
4550 }
4551 vm_page_unwire_managed(m, PQ_INACTIVE, flags != 0);
4552 }
4553
4554 /* See vm_page_release(). */
4555 void
vm_page_release_locked(vm_page_t m,int flags)4556 vm_page_release_locked(vm_page_t m, int flags)
4557 {
4558
4559 VM_OBJECT_ASSERT_WLOCKED(m->object);
4560 KASSERT((m->oflags & VPO_UNMANAGED) == 0,
4561 ("vm_page_release_locked: page %p is unmanaged", m));
4562
4563 if (vm_page_unwire_noq(m)) {
4564 if ((flags & VPR_TRYFREE) != 0 &&
4565 (m->object->ref_count == 0 || !pmap_page_is_mapped(m)) &&
4566 m->dirty == 0 && vm_page_tryxbusy(m)) {
4567 /*
4568 * An unlocked lookup may have wired the page before the
4569 * busy lock was acquired, in which case the page must
4570 * not be freed.
4571 */
4572 if (__predict_true(!vm_page_wired(m))) {
4573 vm_page_free(m);
4574 return;
4575 }
4576 vm_page_xunbusy(m);
4577 } else {
4578 vm_page_release_toq(m, PQ_INACTIVE, flags != 0);
4579 }
4580 }
4581 }
4582
4583 static bool
vm_page_try_blocked_op(vm_page_t m,void (* op)(vm_page_t))4584 vm_page_try_blocked_op(vm_page_t m, void (*op)(vm_page_t))
4585 {
4586 u_int old;
4587
4588 KASSERT(m->object != NULL && (m->oflags & VPO_UNMANAGED) == 0,
4589 ("vm_page_try_blocked_op: page %p has no object", m));
4590 KASSERT(vm_page_busied(m),
4591 ("vm_page_try_blocked_op: page %p is not busy", m));
4592 VM_OBJECT_ASSERT_LOCKED(m->object);
4593
4594 old = atomic_load_int(&m->ref_count);
4595 do {
4596 KASSERT(old != 0,
4597 ("vm_page_try_blocked_op: page %p has no references", m));
4598 KASSERT((old & VPRC_BLOCKED) == 0,
4599 ("vm_page_try_blocked_op: page %p blocks wirings", m));
4600 if (VPRC_WIRE_COUNT(old) != 0)
4601 return (false);
4602 } while (!atomic_fcmpset_int(&m->ref_count, &old, old | VPRC_BLOCKED));
4603
4604 (op)(m);
4605
4606 /*
4607 * If the object is read-locked, new wirings may be created via an
4608 * object lookup.
4609 */
4610 old = vm_page_drop(m, VPRC_BLOCKED);
4611 KASSERT(!VM_OBJECT_WOWNED(m->object) ||
4612 old == (VPRC_BLOCKED | VPRC_OBJREF),
4613 ("vm_page_try_blocked_op: unexpected refcount value %u for %p",
4614 old, m));
4615 return (true);
4616 }
4617
4618 /*
4619 * Atomically check for wirings and remove all mappings of the page.
4620 */
4621 bool
vm_page_try_remove_all(vm_page_t m)4622 vm_page_try_remove_all(vm_page_t m)
4623 {
4624
4625 return (vm_page_try_blocked_op(m, pmap_remove_all));
4626 }
4627
4628 /*
4629 * Atomically check for wirings and remove all writeable mappings of the page.
4630 */
4631 bool
vm_page_try_remove_write(vm_page_t m)4632 vm_page_try_remove_write(vm_page_t m)
4633 {
4634
4635 return (vm_page_try_blocked_op(m, pmap_remove_write));
4636 }
4637
4638 /*
4639 * vm_page_advise
4640 *
4641 * Apply the specified advice to the given page.
4642 */
4643 void
vm_page_advise(vm_page_t m,int advice)4644 vm_page_advise(vm_page_t m, int advice)
4645 {
4646
4647 VM_OBJECT_ASSERT_WLOCKED(m->object);
4648 vm_page_assert_xbusied(m);
4649
4650 if (advice == MADV_FREE)
4651 /*
4652 * Mark the page clean. This will allow the page to be freed
4653 * without first paging it out. MADV_FREE pages are often
4654 * quickly reused by malloc(3), so we do not do anything that
4655 * would result in a page fault on a later access.
4656 */
4657 vm_page_undirty(m);
4658 else if (advice != MADV_DONTNEED) {
4659 if (advice == MADV_WILLNEED)
4660 vm_page_activate(m);
4661 return;
4662 }
4663
4664 if (advice != MADV_FREE && m->dirty == 0 && pmap_is_modified(m))
4665 vm_page_dirty(m);
4666
4667 /*
4668 * Clear any references to the page. Otherwise, the page daemon will
4669 * immediately reactivate the page.
4670 */
4671 vm_page_aflag_clear(m, PGA_REFERENCED);
4672
4673 /*
4674 * Place clean pages near the head of the inactive queue rather than
4675 * the tail, thus defeating the queue's LRU operation and ensuring that
4676 * the page will be reused quickly. Dirty pages not already in the
4677 * laundry are moved there.
4678 */
4679 if (m->dirty == 0)
4680 vm_page_deactivate_noreuse(m);
4681 else if (!vm_page_in_laundry(m))
4682 vm_page_launder(m);
4683 }
4684
4685 /*
4686 * vm_page_grab_release
4687 *
4688 * Helper routine for grab functions to release busy on return.
4689 */
4690 static inline void
vm_page_grab_release(vm_page_t m,int allocflags)4691 vm_page_grab_release(vm_page_t m, int allocflags)
4692 {
4693
4694 if ((allocflags & VM_ALLOC_NOBUSY) != 0) {
4695 if ((allocflags & VM_ALLOC_IGN_SBUSY) != 0)
4696 vm_page_sunbusy(m);
4697 else
4698 vm_page_xunbusy(m);
4699 }
4700 }
4701
4702 /*
4703 * vm_page_grab_sleep
4704 *
4705 * Sleep for busy according to VM_ALLOC_ parameters. Returns true
4706 * if the caller should retry and false otherwise.
4707 *
4708 * If the object is locked on entry the object will be unlocked with
4709 * false returns and still locked but possibly having been dropped
4710 * with true returns.
4711 */
4712 static bool
vm_page_grab_sleep(vm_object_t object,vm_page_t m,vm_pindex_t pindex,const char * wmesg,int allocflags,bool locked)4713 vm_page_grab_sleep(vm_object_t object, vm_page_t m, vm_pindex_t pindex,
4714 const char *wmesg, int allocflags, bool locked)
4715 {
4716
4717 if ((allocflags & VM_ALLOC_NOWAIT) != 0)
4718 return (false);
4719
4720 /*
4721 * Reference the page before unlocking and sleeping so that
4722 * the page daemon is less likely to reclaim it.
4723 */
4724 if (locked && (allocflags & VM_ALLOC_NOCREAT) == 0)
4725 vm_page_reference(m);
4726
4727 if (_vm_page_busy_sleep(object, m, pindex, wmesg, allocflags, locked) &&
4728 locked)
4729 VM_OBJECT_WLOCK(object);
4730 if ((allocflags & VM_ALLOC_WAITFAIL) != 0)
4731 return (false);
4732
4733 return (true);
4734 }
4735
4736 /*
4737 * Assert that the grab flags are valid.
4738 */
4739 static inline void
vm_page_grab_check(int allocflags)4740 vm_page_grab_check(int allocflags)
4741 {
4742
4743 KASSERT((allocflags & VM_ALLOC_NOBUSY) == 0 ||
4744 (allocflags & VM_ALLOC_WIRED) != 0,
4745 ("vm_page_grab*: the pages must be busied or wired"));
4746
4747 KASSERT((allocflags & VM_ALLOC_SBUSY) == 0 ||
4748 (allocflags & VM_ALLOC_IGN_SBUSY) != 0,
4749 ("vm_page_grab*: VM_ALLOC_SBUSY/VM_ALLOC_IGN_SBUSY mismatch"));
4750 }
4751
4752 /*
4753 * Calculate the page allocation flags for grab.
4754 */
4755 static inline int
vm_page_grab_pflags(int allocflags)4756 vm_page_grab_pflags(int allocflags)
4757 {
4758 int pflags;
4759
4760 pflags = allocflags &
4761 ~(VM_ALLOC_NOWAIT | VM_ALLOC_WAITOK | VM_ALLOC_WAITFAIL |
4762 VM_ALLOC_NOBUSY | VM_ALLOC_IGN_SBUSY);
4763 if ((allocflags & VM_ALLOC_NOWAIT) == 0)
4764 pflags |= VM_ALLOC_WAITFAIL;
4765 if ((allocflags & VM_ALLOC_IGN_SBUSY) != 0)
4766 pflags |= VM_ALLOC_SBUSY;
4767
4768 return (pflags);
4769 }
4770
4771 /*
4772 * Grab a page, waiting until we are woken up due to the page changing state.
4773 * We keep on waiting, if the page continues to be in the object, unless
4774 * allocflags forbid waiting.
4775 *
4776 * The object must be locked on entry. This routine may sleep. The lock will,
4777 * however, be released and reacquired if the routine sleeps.
4778 *
4779 * Return a grabbed page, or NULL. Set *found if a page was found, whether or
4780 * not it was grabbed.
4781 */
4782 static inline vm_page_t
vm_page_grab_lookup(struct pctrie_iter * pages,vm_object_t object,vm_pindex_t pindex,int allocflags,bool * found)4783 vm_page_grab_lookup(struct pctrie_iter *pages, vm_object_t object,
4784 vm_pindex_t pindex, int allocflags, bool *found)
4785 {
4786 vm_page_t m;
4787
4788 while ((*found = (m = vm_radix_iter_lookup(pages, pindex)) != NULL) &&
4789 !vm_page_tryacquire(m, allocflags)) {
4790 if (!vm_page_grab_sleep(object, m, pindex, "pgrbwt",
4791 allocflags, true))
4792 return (NULL);
4793 pctrie_iter_reset(pages);
4794 }
4795 return (m);
4796 }
4797
4798 /*
4799 * Grab a page. Use an iterator parameter. Keep on waiting, as long as the page
4800 * exists in the object. If the page doesn't exist, first allocate it and then
4801 * conditionally zero it.
4802 *
4803 * The object must be locked on entry. This routine may sleep. The lock will,
4804 * however, be released and reacquired if the routine sleeps.
4805 */
4806 vm_page_t
vm_page_grab_iter(vm_object_t object,struct pctrie_iter * pages,vm_pindex_t pindex,int allocflags)4807 vm_page_grab_iter(vm_object_t object, struct pctrie_iter *pages,
4808 vm_pindex_t pindex, int allocflags)
4809 {
4810 vm_page_t m, mpred;
4811 bool found;
4812
4813 VM_OBJECT_ASSERT_WLOCKED(object);
4814 vm_page_grab_check(allocflags);
4815
4816 while ((m = vm_page_grab_lookup(
4817 pages, object, pindex, allocflags, &found)) == NULL) {
4818 if ((allocflags & VM_ALLOC_NOCREAT) != 0)
4819 return (NULL);
4820 if (found &&
4821 (allocflags & (VM_ALLOC_NOWAIT | VM_ALLOC_WAITFAIL)) != 0)
4822 return (NULL);
4823 mpred = vm_radix_iter_lookup_lt(pages, pindex);
4824 m = vm_page_alloc_after(object, pages, pindex,
4825 vm_page_grab_pflags(allocflags), mpred);
4826 if (m != NULL) {
4827 if ((allocflags & VM_ALLOC_ZERO) != 0 &&
4828 (m->flags & PG_ZERO) == 0)
4829 pmap_zero_page(m);
4830 break;
4831 }
4832 if ((allocflags &
4833 (VM_ALLOC_NOWAIT | VM_ALLOC_WAITFAIL)) != 0)
4834 return (NULL);
4835 }
4836 vm_page_grab_release(m, allocflags);
4837
4838 return (m);
4839 }
4840
4841 /*
4842 * Grab a page. Keep on waiting, as long as the page exists in the object. If
4843 * the page doesn't exist, first allocate it and then conditionally zero it.
4844 *
4845 * The object must be locked on entry. This routine may sleep. The lock will,
4846 * however, be released and reacquired if the routine sleeps.
4847 */
4848 vm_page_t
vm_page_grab(vm_object_t object,vm_pindex_t pindex,int allocflags)4849 vm_page_grab(vm_object_t object, vm_pindex_t pindex, int allocflags)
4850 {
4851 struct pctrie_iter pages;
4852
4853 VM_OBJECT_ASSERT_WLOCKED(object);
4854 vm_page_iter_init(&pages, object);
4855 return (vm_page_grab_iter(object, &pages, pindex, allocflags));
4856 }
4857
4858 /*
4859 * Attempt to validate a page, locklessly acquiring it if necessary, given a
4860 * (object, pindex) tuple and either an invalided page or NULL. The resulting
4861 * page will be validated against the identity tuple, and busied or wired as
4862 * requested. A NULL page returned guarantees that the page was not in radix at
4863 * the time of the call but callers must perform higher level synchronization or
4864 * retry the operation under a lock if they require an atomic answer. This is
4865 * the only lock free validation routine, other routines can depend on the
4866 * resulting page state.
4867 *
4868 * The return value PAGE_NOT_ACQUIRED indicates that the operation failed due to
4869 * caller flags.
4870 */
4871 #define PAGE_NOT_ACQUIRED ((vm_page_t)1)
4872 static vm_page_t
vm_page_acquire_unlocked(vm_object_t object,vm_pindex_t pindex,vm_page_t m,int allocflags)4873 vm_page_acquire_unlocked(vm_object_t object, vm_pindex_t pindex, vm_page_t m,
4874 int allocflags)
4875 {
4876 if (m == NULL)
4877 m = vm_page_lookup_unlocked(object, pindex);
4878 for (; m != NULL; m = vm_page_lookup_unlocked(object, pindex)) {
4879 if (vm_page_trybusy(m, allocflags)) {
4880 if (m->object == object && m->pindex == pindex) {
4881 if ((allocflags & VM_ALLOC_WIRED) != 0)
4882 vm_page_wire(m);
4883 vm_page_grab_release(m, allocflags);
4884 break;
4885 }
4886 /* relookup. */
4887 vm_page_busy_release(m);
4888 cpu_spinwait();
4889 continue;
4890 }
4891 if (!vm_page_grab_sleep(object, m, pindex, "pgnslp",
4892 allocflags, false))
4893 return (PAGE_NOT_ACQUIRED);
4894 }
4895 return (m);
4896 }
4897
4898 /*
4899 * Try to locklessly grab a page and fall back to the object lock if NOCREAT
4900 * is not set.
4901 */
4902 vm_page_t
vm_page_grab_unlocked(vm_object_t object,vm_pindex_t pindex,int allocflags)4903 vm_page_grab_unlocked(vm_object_t object, vm_pindex_t pindex, int allocflags)
4904 {
4905 vm_page_t m;
4906
4907 vm_page_grab_check(allocflags);
4908 m = vm_page_acquire_unlocked(object, pindex, NULL, allocflags);
4909 if (m == PAGE_NOT_ACQUIRED)
4910 return (NULL);
4911 if (m != NULL)
4912 return (m);
4913
4914 /*
4915 * The radix lockless lookup should never return a false negative
4916 * errors. If the user specifies NOCREAT they are guaranteed there
4917 * was no page present at the instant of the call. A NOCREAT caller
4918 * must handle create races gracefully.
4919 */
4920 if ((allocflags & VM_ALLOC_NOCREAT) != 0)
4921 return (NULL);
4922
4923 VM_OBJECT_WLOCK(object);
4924 m = vm_page_grab(object, pindex, allocflags);
4925 VM_OBJECT_WUNLOCK(object);
4926
4927 return (m);
4928 }
4929
4930 /*
4931 * Grab a page and make it valid, paging in if necessary. Use an iterator
4932 * parameter. Pages missing from their pager are zero filled and validated. If
4933 * a VM_ALLOC_COUNT is supplied and the page is not valid as many as
4934 * VM_INITIAL_PAGEIN pages can be brought in simultaneously. Additional pages
4935 * will be left on a paging queue but will neither be wired nor busy regardless
4936 * of allocflags.
4937 */
4938 int
vm_page_grab_valid_iter(vm_page_t * mp,vm_object_t object,struct pctrie_iter * pages,vm_pindex_t pindex,int allocflags)4939 vm_page_grab_valid_iter(vm_page_t *mp, vm_object_t object,
4940 struct pctrie_iter *pages, vm_pindex_t pindex, int allocflags)
4941 {
4942 vm_page_t m, mpred;
4943 vm_page_t ma[VM_INITIAL_PAGEIN];
4944 int after, i, pflags, rv;
4945
4946 KASSERT((allocflags & VM_ALLOC_SBUSY) == 0 ||
4947 (allocflags & VM_ALLOC_IGN_SBUSY) != 0,
4948 ("vm_page_grab_valid: VM_ALLOC_SBUSY/VM_ALLOC_IGN_SBUSY mismatch"));
4949 KASSERT((allocflags &
4950 (VM_ALLOC_NOWAIT | VM_ALLOC_WAITFAIL | VM_ALLOC_ZERO)) == 0,
4951 ("vm_page_grab_valid: Invalid flags 0x%X", allocflags));
4952 VM_OBJECT_ASSERT_WLOCKED(object);
4953 pflags = allocflags & ~(VM_ALLOC_NOBUSY | VM_ALLOC_SBUSY |
4954 VM_ALLOC_WIRED | VM_ALLOC_IGN_SBUSY);
4955 pflags |= VM_ALLOC_WAITFAIL;
4956
4957 retrylookup:
4958 if ((m = vm_radix_iter_lookup(pages, pindex)) != NULL) {
4959 /*
4960 * If the page is fully valid it can only become invalid
4961 * with the object lock held. If it is not valid it can
4962 * become valid with the busy lock held. Therefore, we
4963 * may unnecessarily lock the exclusive busy here if we
4964 * race with I/O completion not using the object lock.
4965 * However, we will not end up with an invalid page and a
4966 * shared lock.
4967 */
4968 if (!vm_page_trybusy(m,
4969 vm_page_all_valid(m) ? allocflags : 0)) {
4970 (void)vm_page_grab_sleep(object, m, pindex, "pgrbwt",
4971 allocflags, true);
4972 pctrie_iter_reset(pages);
4973 goto retrylookup;
4974 }
4975 if (vm_page_all_valid(m))
4976 goto out;
4977 if ((allocflags & VM_ALLOC_NOCREAT) != 0) {
4978 vm_page_busy_release(m);
4979 *mp = NULL;
4980 return (VM_PAGER_FAIL);
4981 }
4982 } else if ((allocflags & VM_ALLOC_NOCREAT) != 0) {
4983 *mp = NULL;
4984 return (VM_PAGER_FAIL);
4985 } else {
4986 mpred = vm_radix_iter_lookup_lt(pages, pindex);
4987 m = vm_page_alloc_after(object, pages, pindex, pflags, mpred);
4988 if (m == NULL) {
4989 if (!vm_pager_can_alloc_page(object, pindex)) {
4990 *mp = NULL;
4991 return (VM_PAGER_AGAIN);
4992 }
4993 pctrie_iter_reset(pages);
4994 goto retrylookup;
4995 }
4996 }
4997
4998 vm_page_assert_xbusied(m);
4999 if (vm_pager_has_page(object, pindex, NULL, &after)) {
5000 after = MIN(after, VM_INITIAL_PAGEIN);
5001 after = MIN(after, allocflags >> VM_ALLOC_COUNT_SHIFT);
5002 after = MAX(after, 1);
5003 ma[0] = mpred = m;
5004 pctrie_iter_reset(pages);
5005 for (i = 1; i < after; i++) {
5006 m = vm_radix_iter_lookup(pages, pindex + i);
5007 if (m == NULL) {
5008 m = vm_page_alloc_after(object, pages,
5009 pindex + i, VM_ALLOC_NORMAL, mpred);
5010 if (m == NULL)
5011 break;
5012 } else if (vm_page_any_valid(m) || !vm_page_tryxbusy(m))
5013 break;
5014 mpred = ma[i] = m;
5015 }
5016 after = i;
5017 vm_object_pip_add(object, after);
5018 VM_OBJECT_WUNLOCK(object);
5019 rv = vm_pager_get_pages(object, ma, after, NULL, NULL);
5020 VM_OBJECT_WLOCK(object);
5021 vm_object_pip_wakeupn(object, after);
5022 /* Pager may have replaced a page. */
5023 m = ma[0];
5024 if (rv != VM_PAGER_OK) {
5025 for (i = 0; i < after; i++) {
5026 if (!vm_page_wired(ma[i]))
5027 vm_page_free(ma[i]);
5028 else
5029 vm_page_xunbusy(ma[i]);
5030 }
5031 *mp = NULL;
5032 return (rv);
5033 }
5034 for (i = 1; i < after; i++)
5035 vm_page_readahead_finish(ma[i]);
5036 MPASS(vm_page_all_valid(m));
5037 } else {
5038 vm_page_zero_invalid(m, TRUE);
5039 }
5040 pctrie_iter_reset(pages);
5041 out:
5042 if ((allocflags & VM_ALLOC_WIRED) != 0)
5043 vm_page_wire(m);
5044 if ((allocflags & VM_ALLOC_SBUSY) != 0 && vm_page_xbusied(m))
5045 vm_page_busy_downgrade(m);
5046 else if ((allocflags & VM_ALLOC_NOBUSY) != 0)
5047 vm_page_busy_release(m);
5048 *mp = m;
5049 return (VM_PAGER_OK);
5050 }
5051
5052 /*
5053 * Grab a page and make it valid, paging in if necessary. Pages missing from
5054 * their pager are zero filled and validated. If a VM_ALLOC_COUNT is supplied
5055 * and the page is not valid as many as VM_INITIAL_PAGEIN pages can be brought
5056 * in simultaneously. Additional pages will be left on a paging queue but
5057 * will neither be wired nor busy regardless of allocflags.
5058 */
5059 int
vm_page_grab_valid(vm_page_t * mp,vm_object_t object,vm_pindex_t pindex,int allocflags)5060 vm_page_grab_valid(vm_page_t *mp, vm_object_t object, vm_pindex_t pindex,
5061 int allocflags)
5062 {
5063 struct pctrie_iter pages;
5064
5065 VM_OBJECT_ASSERT_WLOCKED(object);
5066 vm_page_iter_init(&pages, object);
5067 return (vm_page_grab_valid_iter(mp, object, &pages, pindex,
5068 allocflags));
5069 }
5070
5071 /*
5072 * Grab a page. Keep on waiting, as long as the page exists in the object. If
5073 * the page doesn't exist, and the pager has it, allocate it and zero part of
5074 * it.
5075 *
5076 * The object must be locked on entry. This routine may sleep. The lock will,
5077 * however, be released and reacquired if the routine sleeps.
5078 */
5079 int
vm_page_grab_zero_partial(vm_object_t object,vm_pindex_t pindex,int base,int end)5080 vm_page_grab_zero_partial(vm_object_t object, vm_pindex_t pindex, int base,
5081 int end)
5082 {
5083 struct pctrie_iter pages;
5084 vm_page_t m, mpred;
5085 int allocflags, rv;
5086 bool found;
5087
5088 VM_OBJECT_ASSERT_WLOCKED(object);
5089 KASSERT(base >= 0, ("%s: base %d", __func__, base));
5090 KASSERT(end - base <= PAGE_SIZE, ("%s: base %d end %d", __func__, base,
5091 end));
5092
5093 allocflags = VM_ALLOC_NOCREAT | VM_ALLOC_NORMAL | VM_ALLOC_WAITFAIL;
5094 vm_page_iter_init(&pages, object);
5095 while ((m = vm_page_grab_lookup(
5096 &pages, object, pindex, allocflags, &found)) == NULL) {
5097 if (!vm_pager_has_page(object, pindex, NULL, NULL))
5098 return (0);
5099 mpred = vm_radix_iter_lookup_lt(&pages, pindex);
5100 m = vm_page_alloc_after(object, &pages, pindex,
5101 vm_page_grab_pflags(allocflags), mpred);
5102 if (m != NULL) {
5103 vm_object_pip_add(object, 1);
5104 VM_OBJECT_WUNLOCK(object);
5105 rv = vm_pager_get_pages(object, &m, 1, NULL, NULL);
5106 VM_OBJECT_WLOCK(object);
5107 vm_object_pip_wakeup(object);
5108 if (rv != VM_PAGER_OK) {
5109 vm_page_free(m);
5110 return (EIO);
5111 }
5112
5113 /*
5114 * Since the page was not resident, and therefore not
5115 * recently accessed, immediately enqueue it for
5116 * asynchronous laundering. The current operation is
5117 * not regarded as an access.
5118 */
5119 vm_page_launder(m);
5120 break;
5121 }
5122 }
5123
5124 pmap_zero_page_area(m, base, end - base);
5125 KASSERT(vm_page_all_valid(m), ("%s: page %p is invalid", __func__, m));
5126 vm_page_set_dirty(m);
5127 vm_page_xunbusy(m);
5128 return (0);
5129 }
5130
5131 /*
5132 * Locklessly grab a valid page. If the page is not valid or not yet
5133 * allocated this will fall back to the object lock method.
5134 */
5135 int
vm_page_grab_valid_unlocked(vm_page_t * mp,vm_object_t object,vm_pindex_t pindex,int allocflags)5136 vm_page_grab_valid_unlocked(vm_page_t *mp, vm_object_t object,
5137 vm_pindex_t pindex, int allocflags)
5138 {
5139 vm_page_t m;
5140 int flags;
5141 int error;
5142
5143 KASSERT((allocflags & VM_ALLOC_SBUSY) == 0 ||
5144 (allocflags & VM_ALLOC_IGN_SBUSY) != 0,
5145 ("vm_page_grab_valid_unlocked: VM_ALLOC_SBUSY/VM_ALLOC_IGN_SBUSY "
5146 "mismatch"));
5147 KASSERT((allocflags &
5148 (VM_ALLOC_NOWAIT | VM_ALLOC_WAITFAIL | VM_ALLOC_ZERO)) == 0,
5149 ("vm_page_grab_valid_unlocked: Invalid flags 0x%X", allocflags));
5150
5151 /*
5152 * Attempt a lockless lookup and busy. We need at least an sbusy
5153 * before we can inspect the valid field and return a wired page.
5154 */
5155 flags = allocflags & ~(VM_ALLOC_NOBUSY | VM_ALLOC_WIRED);
5156 vm_page_grab_check(flags);
5157 m = vm_page_acquire_unlocked(object, pindex, NULL, flags);
5158 if (m == PAGE_NOT_ACQUIRED)
5159 return (VM_PAGER_FAIL);
5160 if (m != NULL) {
5161 if (vm_page_all_valid(m)) {
5162 if ((allocflags & VM_ALLOC_WIRED) != 0)
5163 vm_page_wire(m);
5164 vm_page_grab_release(m, allocflags);
5165 *mp = m;
5166 return (VM_PAGER_OK);
5167 }
5168 vm_page_busy_release(m);
5169 }
5170 if ((allocflags & VM_ALLOC_NOCREAT) != 0) {
5171 *mp = NULL;
5172 return (VM_PAGER_FAIL);
5173 }
5174 VM_OBJECT_WLOCK(object);
5175 error = vm_page_grab_valid(mp, object, pindex, allocflags);
5176 VM_OBJECT_WUNLOCK(object);
5177
5178 return (error);
5179 }
5180
5181 /*
5182 * Return the specified range of pages from the given object. For each
5183 * page offset within the range, if a page already exists within the object
5184 * at that offset and it is busy, then wait for it to change state. If,
5185 * instead, the page doesn't exist, then allocate it.
5186 *
5187 * The caller must always specify an allocation class.
5188 *
5189 * allocation classes:
5190 * VM_ALLOC_NORMAL normal process request
5191 * VM_ALLOC_SYSTEM system *really* needs the pages
5192 *
5193 * The caller must always specify that the pages are to be busied and/or
5194 * wired.
5195 *
5196 * optional allocation flags:
5197 * VM_ALLOC_IGN_SBUSY do not sleep on soft busy pages
5198 * VM_ALLOC_NOBUSY do not exclusive busy the page
5199 * VM_ALLOC_NOWAIT do not sleep
5200 * VM_ALLOC_SBUSY set page to sbusy state
5201 * VM_ALLOC_WIRED wire the pages
5202 * VM_ALLOC_ZERO zero and validate any invalid pages
5203 *
5204 * If VM_ALLOC_NOWAIT is not specified, this routine may sleep. Otherwise, it
5205 * may return a partial prefix of the requested range.
5206 */
5207 int
vm_page_grab_pages(vm_object_t object,vm_pindex_t pindex,int allocflags,vm_page_t * ma,int count)5208 vm_page_grab_pages(vm_object_t object, vm_pindex_t pindex, int allocflags,
5209 vm_page_t *ma, int count)
5210 {
5211 struct pctrie_iter pages;
5212 vm_page_t m, mpred;
5213 int pflags;
5214 int i;
5215
5216 VM_OBJECT_ASSERT_WLOCKED(object);
5217 KASSERT(((u_int)allocflags >> VM_ALLOC_COUNT_SHIFT) == 0,
5218 ("vm_page_grap_pages: VM_ALLOC_COUNT() is not allowed"));
5219 KASSERT(count > 0,
5220 ("vm_page_grab_pages: invalid page count %d", count));
5221 vm_page_grab_check(allocflags);
5222
5223 pflags = vm_page_grab_pflags(allocflags);
5224 i = 0;
5225 vm_page_iter_init(&pages, object);
5226 retrylookup:
5227 mpred = vm_radix_iter_lookup_lt(&pages, pindex + i);
5228 for (; i < count; i++) {
5229 m = vm_radix_iter_lookup(&pages, pindex + i);
5230 if (m != NULL) {
5231 if (!vm_page_tryacquire(m, allocflags)) {
5232 if (vm_page_grab_sleep(object, m, pindex + i,
5233 "grbmaw", allocflags, true)) {
5234 pctrie_iter_reset(&pages);
5235 goto retrylookup;
5236 }
5237 break;
5238 }
5239 } else {
5240 if ((allocflags & VM_ALLOC_NOCREAT) != 0)
5241 break;
5242 m = vm_page_alloc_after(object, &pages, pindex + i,
5243 pflags | VM_ALLOC_COUNT(count - i), mpred);
5244 if (m == NULL) {
5245 if ((allocflags & (VM_ALLOC_NOWAIT |
5246 VM_ALLOC_WAITFAIL)) != 0)
5247 break;
5248 goto retrylookup;
5249 }
5250 }
5251 if (vm_page_none_valid(m) &&
5252 (allocflags & VM_ALLOC_ZERO) != 0) {
5253 if ((m->flags & PG_ZERO) == 0)
5254 pmap_zero_page(m);
5255 vm_page_valid(m);
5256 }
5257 vm_page_grab_release(m, allocflags);
5258 ma[i] = mpred = m;
5259 }
5260 return (i);
5261 }
5262
5263 /*
5264 * Unlocked variant of vm_page_grab_pages(). This accepts the same flags
5265 * and will fall back to the locked variant to handle allocation.
5266 */
5267 int
vm_page_grab_pages_unlocked(vm_object_t object,vm_pindex_t pindex,int allocflags,vm_page_t * ma,int count)5268 vm_page_grab_pages_unlocked(vm_object_t object, vm_pindex_t pindex,
5269 int allocflags, vm_page_t *ma, int count)
5270 {
5271 vm_page_t m;
5272 int flags;
5273 int i, num_fetched;
5274
5275 KASSERT(count > 0,
5276 ("vm_page_grab_pages_unlocked: invalid page count %d", count));
5277 vm_page_grab_check(allocflags);
5278
5279 /*
5280 * Modify flags for lockless acquire to hold the page until we
5281 * set it valid if necessary.
5282 */
5283 flags = allocflags & ~VM_ALLOC_NOBUSY;
5284 vm_page_grab_check(flags);
5285 num_fetched = vm_radix_lookup_range_unlocked(&object->rtree, pindex,
5286 ma, count);
5287 for (i = 0; i < num_fetched; i++, pindex++) {
5288 m = vm_page_acquire_unlocked(object, pindex, ma[i], flags);
5289 if (m == PAGE_NOT_ACQUIRED)
5290 return (i);
5291 if (m == NULL)
5292 break;
5293 if ((flags & VM_ALLOC_ZERO) != 0 && vm_page_none_valid(m)) {
5294 if ((m->flags & PG_ZERO) == 0)
5295 pmap_zero_page(m);
5296 vm_page_valid(m);
5297 }
5298 /* m will still be wired or busy according to flags. */
5299 vm_page_grab_release(m, allocflags);
5300 /* vm_page_acquire_unlocked() may not return ma[i]. */
5301 ma[i] = m;
5302 }
5303 if (i == count || (allocflags & VM_ALLOC_NOCREAT) != 0)
5304 return (i);
5305 count -= i;
5306 VM_OBJECT_WLOCK(object);
5307 i += vm_page_grab_pages(object, pindex, allocflags, &ma[i], count);
5308 VM_OBJECT_WUNLOCK(object);
5309
5310 return (i);
5311 }
5312
5313 /*
5314 * Mapping function for valid or dirty bits in a page.
5315 *
5316 * Inputs are required to range within a page.
5317 */
5318 vm_page_bits_t
vm_page_bits(int base,int size)5319 vm_page_bits(int base, int size)
5320 {
5321 int first_bit;
5322 int last_bit;
5323
5324 KASSERT(
5325 base + size <= PAGE_SIZE,
5326 ("vm_page_bits: illegal base/size %d/%d", base, size)
5327 );
5328
5329 if (size == 0) /* handle degenerate case */
5330 return (0);
5331
5332 first_bit = base >> DEV_BSHIFT;
5333 last_bit = (base + size - 1) >> DEV_BSHIFT;
5334
5335 return (((vm_page_bits_t)2 << last_bit) -
5336 ((vm_page_bits_t)1 << first_bit));
5337 }
5338
5339 void
vm_page_bits_set(vm_page_t m,vm_page_bits_t * bits,vm_page_bits_t set)5340 vm_page_bits_set(vm_page_t m, vm_page_bits_t *bits, vm_page_bits_t set)
5341 {
5342
5343 #if PAGE_SIZE == 32768
5344 atomic_set_64((uint64_t *)bits, set);
5345 #elif PAGE_SIZE == 16384
5346 atomic_set_32((uint32_t *)bits, set);
5347 #elif (PAGE_SIZE == 8192) && defined(atomic_set_16)
5348 atomic_set_16((uint16_t *)bits, set);
5349 #elif (PAGE_SIZE == 4096) && defined(atomic_set_8)
5350 atomic_set_8((uint8_t *)bits, set);
5351 #else /* PAGE_SIZE <= 8192 */
5352 uintptr_t addr;
5353 int shift;
5354
5355 addr = (uintptr_t)bits;
5356 /*
5357 * Use a trick to perform a 32-bit atomic on the
5358 * containing aligned word, to not depend on the existence
5359 * of atomic_{set, clear}_{8, 16}.
5360 */
5361 shift = addr & (sizeof(uint32_t) - 1);
5362 #if BYTE_ORDER == BIG_ENDIAN
5363 shift = (sizeof(uint32_t) - sizeof(vm_page_bits_t) - shift) * NBBY;
5364 #else
5365 shift *= NBBY;
5366 #endif
5367 addr &= ~(sizeof(uint32_t) - 1);
5368 atomic_set_32((uint32_t *)addr, set << shift);
5369 #endif /* PAGE_SIZE */
5370 }
5371
5372 static inline void
vm_page_bits_clear(vm_page_t m,vm_page_bits_t * bits,vm_page_bits_t clear)5373 vm_page_bits_clear(vm_page_t m, vm_page_bits_t *bits, vm_page_bits_t clear)
5374 {
5375
5376 #if PAGE_SIZE == 32768
5377 atomic_clear_64((uint64_t *)bits, clear);
5378 #elif PAGE_SIZE == 16384
5379 atomic_clear_32((uint32_t *)bits, clear);
5380 #elif (PAGE_SIZE == 8192) && defined(atomic_clear_16)
5381 atomic_clear_16((uint16_t *)bits, clear);
5382 #elif (PAGE_SIZE == 4096) && defined(atomic_clear_8)
5383 atomic_clear_8((uint8_t *)bits, clear);
5384 #else /* PAGE_SIZE <= 8192 */
5385 uintptr_t addr;
5386 int shift;
5387
5388 addr = (uintptr_t)bits;
5389 /*
5390 * Use a trick to perform a 32-bit atomic on the
5391 * containing aligned word, to not depend on the existence
5392 * of atomic_{set, clear}_{8, 16}.
5393 */
5394 shift = addr & (sizeof(uint32_t) - 1);
5395 #if BYTE_ORDER == BIG_ENDIAN
5396 shift = (sizeof(uint32_t) - sizeof(vm_page_bits_t) - shift) * NBBY;
5397 #else
5398 shift *= NBBY;
5399 #endif
5400 addr &= ~(sizeof(uint32_t) - 1);
5401 atomic_clear_32((uint32_t *)addr, clear << shift);
5402 #endif /* PAGE_SIZE */
5403 }
5404
5405 static inline vm_page_bits_t
vm_page_bits_swap(vm_page_t m,vm_page_bits_t * bits,vm_page_bits_t newbits)5406 vm_page_bits_swap(vm_page_t m, vm_page_bits_t *bits, vm_page_bits_t newbits)
5407 {
5408 #if PAGE_SIZE == 32768
5409 uint64_t old;
5410
5411 old = *bits;
5412 while (atomic_fcmpset_64(bits, &old, newbits) == 0);
5413 return (old);
5414 #elif PAGE_SIZE == 16384
5415 uint32_t old;
5416
5417 old = *bits;
5418 while (atomic_fcmpset_32(bits, &old, newbits) == 0);
5419 return (old);
5420 #elif (PAGE_SIZE == 8192) && defined(atomic_fcmpset_16)
5421 uint16_t old;
5422
5423 old = *bits;
5424 while (atomic_fcmpset_16(bits, &old, newbits) == 0);
5425 return (old);
5426 #elif (PAGE_SIZE == 4096) && defined(atomic_fcmpset_8)
5427 uint8_t old;
5428
5429 old = *bits;
5430 while (atomic_fcmpset_8(bits, &old, newbits) == 0);
5431 return (old);
5432 #else /* PAGE_SIZE <= 4096*/
5433 uintptr_t addr;
5434 uint32_t old, new, mask;
5435 int shift;
5436
5437 addr = (uintptr_t)bits;
5438 /*
5439 * Use a trick to perform a 32-bit atomic on the
5440 * containing aligned word, to not depend on the existence
5441 * of atomic_{set, swap, clear}_{8, 16}.
5442 */
5443 shift = addr & (sizeof(uint32_t) - 1);
5444 #if BYTE_ORDER == BIG_ENDIAN
5445 shift = (sizeof(uint32_t) - sizeof(vm_page_bits_t) - shift) * NBBY;
5446 #else
5447 shift *= NBBY;
5448 #endif
5449 addr &= ~(sizeof(uint32_t) - 1);
5450 mask = VM_PAGE_BITS_ALL << shift;
5451
5452 old = *bits;
5453 do {
5454 new = old & ~mask;
5455 new |= newbits << shift;
5456 } while (atomic_fcmpset_32((uint32_t *)addr, &old, new) == 0);
5457 return (old >> shift);
5458 #endif /* PAGE_SIZE */
5459 }
5460
5461 /*
5462 * vm_page_set_valid_range:
5463 *
5464 * Sets portions of a page valid. The arguments are expected
5465 * to be DEV_BSIZE aligned but if they aren't the bitmap is inclusive
5466 * of any partial chunks touched by the range. The invalid portion of
5467 * such chunks will be zeroed.
5468 *
5469 * (base + size) must be less then or equal to PAGE_SIZE.
5470 */
5471 void
vm_page_set_valid_range(vm_page_t m,int base,int size)5472 vm_page_set_valid_range(vm_page_t m, int base, int size)
5473 {
5474 int endoff, frag;
5475 vm_page_bits_t pagebits;
5476
5477 vm_page_assert_busied(m);
5478 if (size == 0) /* handle degenerate case */
5479 return;
5480
5481 /*
5482 * If the base is not DEV_BSIZE aligned and the valid
5483 * bit is clear, we have to zero out a portion of the
5484 * first block.
5485 */
5486 if ((frag = rounddown2(base, DEV_BSIZE)) != base &&
5487 (m->valid & (1 << (base >> DEV_BSHIFT))) == 0)
5488 pmap_zero_page_area(m, frag, base - frag);
5489
5490 /*
5491 * If the ending offset is not DEV_BSIZE aligned and the
5492 * valid bit is clear, we have to zero out a portion of
5493 * the last block.
5494 */
5495 endoff = base + size;
5496 if ((frag = rounddown2(endoff, DEV_BSIZE)) != endoff &&
5497 (m->valid & (1 << (endoff >> DEV_BSHIFT))) == 0)
5498 pmap_zero_page_area(m, endoff,
5499 DEV_BSIZE - (endoff & (DEV_BSIZE - 1)));
5500
5501 /*
5502 * Assert that no previously invalid block that is now being validated
5503 * is already dirty.
5504 */
5505 KASSERT((~m->valid & vm_page_bits(base, size) & m->dirty) == 0,
5506 ("vm_page_set_valid_range: page %p is dirty", m));
5507
5508 /*
5509 * Set valid bits inclusive of any overlap.
5510 */
5511 pagebits = vm_page_bits(base, size);
5512 if (vm_page_xbusied(m))
5513 m->valid |= pagebits;
5514 else
5515 vm_page_bits_set(m, &m->valid, pagebits);
5516 }
5517
5518 /*
5519 * Set the page dirty bits and free the invalid swap space if
5520 * present. Returns the previous dirty bits.
5521 */
5522 vm_page_bits_t
vm_page_set_dirty(vm_page_t m)5523 vm_page_set_dirty(vm_page_t m)
5524 {
5525 vm_page_bits_t old;
5526
5527 VM_PAGE_OBJECT_BUSY_ASSERT(m);
5528
5529 if (vm_page_xbusied(m) && !pmap_page_is_write_mapped(m)) {
5530 old = m->dirty;
5531 m->dirty = VM_PAGE_BITS_ALL;
5532 } else
5533 old = vm_page_bits_swap(m, &m->dirty, VM_PAGE_BITS_ALL);
5534 if (old == 0 && (m->a.flags & PGA_SWAP_SPACE) != 0)
5535 vm_pager_page_unswapped(m);
5536
5537 return (old);
5538 }
5539
5540 /*
5541 * Clear the given bits from the specified page's dirty field.
5542 */
5543 static __inline void
vm_page_clear_dirty_mask(vm_page_t m,vm_page_bits_t pagebits)5544 vm_page_clear_dirty_mask(vm_page_t m, vm_page_bits_t pagebits)
5545 {
5546
5547 vm_page_assert_busied(m);
5548
5549 /*
5550 * If the page is xbusied and not write mapped we are the
5551 * only thread that can modify dirty bits. Otherwise, The pmap
5552 * layer can call vm_page_dirty() without holding a distinguished
5553 * lock. The combination of page busy and atomic operations
5554 * suffice to guarantee consistency of the page dirty field.
5555 */
5556 if (vm_page_xbusied(m) && !pmap_page_is_write_mapped(m))
5557 m->dirty &= ~pagebits;
5558 else
5559 vm_page_bits_clear(m, &m->dirty, pagebits);
5560 }
5561
5562 /*
5563 * vm_page_set_validclean:
5564 *
5565 * Sets portions of a page valid and clean. The arguments are expected
5566 * to be DEV_BSIZE aligned but if they aren't the bitmap is inclusive
5567 * of any partial chunks touched by the range. The invalid portion of
5568 * such chunks will be zero'd.
5569 *
5570 * (base + size) must be less then or equal to PAGE_SIZE.
5571 */
5572 void
vm_page_set_validclean(vm_page_t m,int base,int size)5573 vm_page_set_validclean(vm_page_t m, int base, int size)
5574 {
5575 vm_page_bits_t oldvalid, pagebits;
5576 int endoff, frag;
5577
5578 vm_page_assert_busied(m);
5579 if (size == 0) /* handle degenerate case */
5580 return;
5581
5582 /*
5583 * If the base is not DEV_BSIZE aligned and the valid
5584 * bit is clear, we have to zero out a portion of the
5585 * first block.
5586 */
5587 if ((frag = rounddown2(base, DEV_BSIZE)) != base &&
5588 (m->valid & ((vm_page_bits_t)1 << (base >> DEV_BSHIFT))) == 0)
5589 pmap_zero_page_area(m, frag, base - frag);
5590
5591 /*
5592 * If the ending offset is not DEV_BSIZE aligned and the
5593 * valid bit is clear, we have to zero out a portion of
5594 * the last block.
5595 */
5596 endoff = base + size;
5597 if ((frag = rounddown2(endoff, DEV_BSIZE)) != endoff &&
5598 (m->valid & ((vm_page_bits_t)1 << (endoff >> DEV_BSHIFT))) == 0)
5599 pmap_zero_page_area(m, endoff,
5600 DEV_BSIZE - (endoff & (DEV_BSIZE - 1)));
5601
5602 /*
5603 * Set valid, clear dirty bits. If validating the entire
5604 * page we can safely clear the pmap modify bit. We also
5605 * use this opportunity to clear the PGA_NOSYNC flag. If a process
5606 * takes a write fault on a MAP_NOSYNC memory area the flag will
5607 * be set again.
5608 *
5609 * We set valid bits inclusive of any overlap, but we can only
5610 * clear dirty bits for DEV_BSIZE chunks that are fully within
5611 * the range.
5612 */
5613 oldvalid = m->valid;
5614 pagebits = vm_page_bits(base, size);
5615 if (vm_page_xbusied(m))
5616 m->valid |= pagebits;
5617 else
5618 vm_page_bits_set(m, &m->valid, pagebits);
5619 #if 0 /* NOT YET */
5620 if ((frag = base & (DEV_BSIZE - 1)) != 0) {
5621 frag = DEV_BSIZE - frag;
5622 base += frag;
5623 size -= frag;
5624 if (size < 0)
5625 size = 0;
5626 }
5627 pagebits = vm_page_bits(base, size & (DEV_BSIZE - 1));
5628 #endif
5629 if (base == 0 && size == PAGE_SIZE) {
5630 /*
5631 * The page can only be modified within the pmap if it is
5632 * mapped, and it can only be mapped if it was previously
5633 * fully valid.
5634 */
5635 if (oldvalid == VM_PAGE_BITS_ALL)
5636 /*
5637 * Perform the pmap_clear_modify() first. Otherwise,
5638 * a concurrent pmap operation, such as
5639 * pmap_protect(), could clear a modification in the
5640 * pmap and set the dirty field on the page before
5641 * pmap_clear_modify() had begun and after the dirty
5642 * field was cleared here.
5643 */
5644 pmap_clear_modify(m);
5645 m->dirty = 0;
5646 vm_page_aflag_clear(m, PGA_NOSYNC);
5647 } else if (oldvalid != VM_PAGE_BITS_ALL && vm_page_xbusied(m))
5648 m->dirty &= ~pagebits;
5649 else
5650 vm_page_clear_dirty_mask(m, pagebits);
5651 }
5652
5653 void
vm_page_clear_dirty(vm_page_t m,int base,int size)5654 vm_page_clear_dirty(vm_page_t m, int base, int size)
5655 {
5656
5657 vm_page_clear_dirty_mask(m, vm_page_bits(base, size));
5658 }
5659
5660 /*
5661 * vm_page_set_invalid:
5662 *
5663 * Invalidates DEV_BSIZE'd chunks within a page. Both the
5664 * valid and dirty bits for the effected areas are cleared.
5665 */
5666 void
vm_page_set_invalid(vm_page_t m,int base,int size)5667 vm_page_set_invalid(vm_page_t m, int base, int size)
5668 {
5669 vm_page_bits_t bits;
5670 vm_object_t object;
5671
5672 /*
5673 * The object lock is required so that pages can't be mapped
5674 * read-only while we're in the process of invalidating them.
5675 */
5676 object = m->object;
5677 VM_OBJECT_ASSERT_WLOCKED(object);
5678 vm_page_assert_busied(m);
5679
5680 if (object->type == OBJT_VNODE && base == 0 && IDX_TO_OFF(m->pindex) +
5681 size >= object->un_pager.vnp.vnp_size)
5682 bits = VM_PAGE_BITS_ALL;
5683 else
5684 bits = vm_page_bits(base, size);
5685 if (object->ref_count != 0 && vm_page_all_valid(m) && bits != 0)
5686 pmap_remove_all(m);
5687 KASSERT((bits == 0 && vm_page_all_valid(m)) ||
5688 !pmap_page_is_mapped(m),
5689 ("vm_page_set_invalid: page %p is mapped", m));
5690 if (vm_page_xbusied(m)) {
5691 m->valid &= ~bits;
5692 m->dirty &= ~bits;
5693 } else {
5694 vm_page_bits_clear(m, &m->valid, bits);
5695 vm_page_bits_clear(m, &m->dirty, bits);
5696 }
5697 }
5698
5699 /*
5700 * vm_page_invalid:
5701 *
5702 * Invalidates the entire page. The page must be busy, unmapped, and
5703 * the enclosing object must be locked. The object locks protects
5704 * against concurrent read-only pmap enter which is done without
5705 * busy.
5706 */
5707 void
vm_page_invalid(vm_page_t m)5708 vm_page_invalid(vm_page_t m)
5709 {
5710
5711 vm_page_assert_busied(m);
5712 VM_OBJECT_ASSERT_WLOCKED(m->object);
5713 MPASS(!pmap_page_is_mapped(m));
5714
5715 if (vm_page_xbusied(m))
5716 m->valid = 0;
5717 else
5718 vm_page_bits_clear(m, &m->valid, VM_PAGE_BITS_ALL);
5719 }
5720
5721 /*
5722 * vm_page_zero_invalid()
5723 *
5724 * The kernel assumes that the invalid portions of a page contain
5725 * garbage, but such pages can be mapped into memory by user code.
5726 * When this occurs, we must zero out the non-valid portions of the
5727 * page so user code sees what it expects.
5728 *
5729 * Pages are most often semi-valid when the end of a file is mapped
5730 * into memory and the file's size is not page aligned.
5731 */
5732 void
vm_page_zero_invalid(vm_page_t m,boolean_t setvalid)5733 vm_page_zero_invalid(vm_page_t m, boolean_t setvalid)
5734 {
5735 int b;
5736 int i;
5737
5738 /*
5739 * Scan the valid bits looking for invalid sections that
5740 * must be zeroed. Invalid sub-DEV_BSIZE'd areas ( where the
5741 * valid bit may be set ) have already been zeroed by
5742 * vm_page_set_validclean().
5743 */
5744 for (b = i = 0; i <= PAGE_SIZE / DEV_BSIZE; ++i) {
5745 if (i == (PAGE_SIZE / DEV_BSIZE) ||
5746 (m->valid & ((vm_page_bits_t)1 << i))) {
5747 if (i > b) {
5748 pmap_zero_page_area(m,
5749 b << DEV_BSHIFT, (i - b) << DEV_BSHIFT);
5750 }
5751 b = i + 1;
5752 }
5753 }
5754
5755 /*
5756 * setvalid is TRUE when we can safely set the zero'd areas
5757 * as being valid. We can do this if there are no cache consistency
5758 * issues. e.g. it is ok to do with UFS, but not ok to do with NFS.
5759 */
5760 if (setvalid)
5761 vm_page_valid(m);
5762 }
5763
5764 /*
5765 * vm_page_is_valid:
5766 *
5767 * Is (partial) page valid? Note that the case where size == 0
5768 * will return FALSE in the degenerate case where the page is
5769 * entirely invalid, and TRUE otherwise.
5770 *
5771 * Some callers envoke this routine without the busy lock held and
5772 * handle races via higher level locks. Typical callers should
5773 * hold a busy lock to prevent invalidation.
5774 */
5775 int
vm_page_is_valid(vm_page_t m,int base,int size)5776 vm_page_is_valid(vm_page_t m, int base, int size)
5777 {
5778 vm_page_bits_t bits;
5779
5780 bits = vm_page_bits(base, size);
5781 return (vm_page_any_valid(m) && (m->valid & bits) == bits);
5782 }
5783
5784 /*
5785 * Returns true if all of the specified predicates are true for the entire
5786 * (super)page and false otherwise.
5787 */
5788 bool
vm_page_ps_test(vm_page_t m,int psind,int flags,vm_page_t skip_m)5789 vm_page_ps_test(vm_page_t m, int psind, int flags, vm_page_t skip_m)
5790 {
5791 vm_object_t object;
5792 int i, npages;
5793
5794 object = m->object;
5795 if (skip_m != NULL && skip_m->object != object)
5796 return (false);
5797 VM_OBJECT_ASSERT_LOCKED(object);
5798 KASSERT(psind <= m->psind,
5799 ("psind %d > psind %d of m %p", psind, m->psind, m));
5800 npages = atop(pagesizes[psind]);
5801
5802 /*
5803 * The physically contiguous pages that make up a superpage, i.e., a
5804 * page with a page size index ("psind") greater than zero, will
5805 * occupy adjacent entries in vm_page_array[].
5806 */
5807 for (i = 0; i < npages; i++) {
5808 /* Always test object consistency, including "skip_m". */
5809 if (m[i].object != object)
5810 return (false);
5811 if (&m[i] == skip_m)
5812 continue;
5813 if ((flags & PS_NONE_BUSY) != 0 && vm_page_busied(&m[i]))
5814 return (false);
5815 if ((flags & PS_ALL_DIRTY) != 0) {
5816 /*
5817 * Calling vm_page_test_dirty() or pmap_is_modified()
5818 * might stop this case from spuriously returning
5819 * "false". However, that would require a write lock
5820 * on the object containing "m[i]".
5821 */
5822 if (m[i].dirty != VM_PAGE_BITS_ALL)
5823 return (false);
5824 }
5825 if ((flags & PS_ALL_VALID) != 0 &&
5826 m[i].valid != VM_PAGE_BITS_ALL)
5827 return (false);
5828 }
5829 return (true);
5830 }
5831
5832 /*
5833 * Set the page's dirty bits if the page is modified.
5834 */
5835 void
vm_page_test_dirty(vm_page_t m)5836 vm_page_test_dirty(vm_page_t m)
5837 {
5838
5839 vm_page_assert_busied(m);
5840 if (m->dirty != VM_PAGE_BITS_ALL && pmap_is_modified(m))
5841 vm_page_dirty(m);
5842 }
5843
5844 void
vm_page_valid(vm_page_t m)5845 vm_page_valid(vm_page_t m)
5846 {
5847
5848 vm_page_assert_busied(m);
5849 if (vm_page_xbusied(m))
5850 m->valid = VM_PAGE_BITS_ALL;
5851 else
5852 vm_page_bits_set(m, &m->valid, VM_PAGE_BITS_ALL);
5853 }
5854
5855 void
vm_page_lock_KBI(vm_page_t m,const char * file,int line)5856 vm_page_lock_KBI(vm_page_t m, const char *file, int line)
5857 {
5858
5859 mtx_lock_flags_(vm_page_lockptr(m), 0, file, line);
5860 }
5861
5862 void
vm_page_unlock_KBI(vm_page_t m,const char * file,int line)5863 vm_page_unlock_KBI(vm_page_t m, const char *file, int line)
5864 {
5865
5866 mtx_unlock_flags_(vm_page_lockptr(m), 0, file, line);
5867 }
5868
5869 int
vm_page_trylock_KBI(vm_page_t m,const char * file,int line)5870 vm_page_trylock_KBI(vm_page_t m, const char *file, int line)
5871 {
5872
5873 return (mtx_trylock_flags_(vm_page_lockptr(m), 0, file, line));
5874 }
5875
5876 #if defined(INVARIANTS) || defined(INVARIANT_SUPPORT)
5877 void
vm_page_assert_locked_KBI(vm_page_t m,const char * file,int line)5878 vm_page_assert_locked_KBI(vm_page_t m, const char *file, int line)
5879 {
5880
5881 vm_page_lock_assert_KBI(m, MA_OWNED, file, line);
5882 }
5883
5884 void
vm_page_lock_assert_KBI(vm_page_t m,int a,const char * file,int line)5885 vm_page_lock_assert_KBI(vm_page_t m, int a, const char *file, int line)
5886 {
5887
5888 mtx_assert_(vm_page_lockptr(m), a, file, line);
5889 }
5890 #endif
5891
5892 #ifdef INVARIANTS
5893 void
vm_page_object_busy_assert(vm_page_t m)5894 vm_page_object_busy_assert(vm_page_t m)
5895 {
5896
5897 /*
5898 * Certain of the page's fields may only be modified by the
5899 * holder of a page or object busy.
5900 */
5901 if (m->object != NULL && !vm_page_busied(m))
5902 VM_OBJECT_ASSERT_BUSY(m->object);
5903 }
5904
5905 void
vm_page_assert_pga_writeable(vm_page_t m,uint16_t bits)5906 vm_page_assert_pga_writeable(vm_page_t m, uint16_t bits)
5907 {
5908
5909 if ((bits & PGA_WRITEABLE) == 0)
5910 return;
5911
5912 /*
5913 * The PGA_WRITEABLE flag can only be set if the page is
5914 * managed, is exclusively busied or the object is locked.
5915 * Currently, this flag is only set by pmap_enter().
5916 */
5917 KASSERT((m->oflags & VPO_UNMANAGED) == 0,
5918 ("PGA_WRITEABLE on unmanaged page"));
5919 if (!vm_page_xbusied(m))
5920 VM_OBJECT_ASSERT_BUSY(m->object);
5921 }
5922 #endif
5923
5924 #include "opt_ddb.h"
5925 #ifdef DDB
5926 #include <sys/kernel.h>
5927
5928 #include <ddb/ddb.h>
5929
DB_SHOW_COMMAND_FLAGS(page,vm_page_print_page_info,DB_CMD_MEMSAFE)5930 DB_SHOW_COMMAND_FLAGS(page, vm_page_print_page_info, DB_CMD_MEMSAFE)
5931 {
5932
5933 db_printf("vm_cnt.v_free_count: %d\n", vm_free_count());
5934 db_printf("vm_cnt.v_inactive_count: %d\n", vm_inactive_count());
5935 db_printf("vm_cnt.v_active_count: %d\n", vm_active_count());
5936 db_printf("vm_cnt.v_laundry_count: %d\n", vm_laundry_count());
5937 db_printf("vm_cnt.v_wire_count: %d\n", vm_wire_count());
5938 db_printf("vm_cnt.v_free_reserved: %d\n", vm_cnt.v_free_reserved);
5939 db_printf("vm_cnt.v_free_min: %d\n", vm_cnt.v_free_min);
5940 db_printf("vm_cnt.v_free_target: %d\n", vm_cnt.v_free_target);
5941 db_printf("vm_cnt.v_inactive_target: %d\n", vm_cnt.v_inactive_target);
5942 }
5943
DB_SHOW_COMMAND_FLAGS(pageq,vm_page_print_pageq_info,DB_CMD_MEMSAFE)5944 DB_SHOW_COMMAND_FLAGS(pageq, vm_page_print_pageq_info, DB_CMD_MEMSAFE)
5945 {
5946 int dom;
5947
5948 db_printf("pq_free %d\n", vm_free_count());
5949 for (dom = 0; dom < vm_ndomains; dom++) {
5950 db_printf(
5951 "dom %d page_cnt %d free %d pq_act %d pq_inact %d pq_laund %d pq_unsw %d\n",
5952 dom,
5953 vm_dom[dom].vmd_page_count,
5954 vm_dom[dom].vmd_free_count,
5955 vm_dom[dom].vmd_pagequeues[PQ_ACTIVE].pq_cnt,
5956 vm_dom[dom].vmd_pagequeues[PQ_INACTIVE].pq_cnt,
5957 vm_dom[dom].vmd_pagequeues[PQ_LAUNDRY].pq_cnt,
5958 vm_dom[dom].vmd_pagequeues[PQ_UNSWAPPABLE].pq_cnt);
5959 }
5960 }
5961
DB_SHOW_COMMAND(pginfo,vm_page_print_pginfo)5962 DB_SHOW_COMMAND(pginfo, vm_page_print_pginfo)
5963 {
5964 vm_page_t m;
5965 boolean_t phys, virt;
5966
5967 if (!have_addr) {
5968 db_printf("show pginfo addr\n");
5969 return;
5970 }
5971
5972 phys = strchr(modif, 'p') != NULL;
5973 virt = strchr(modif, 'v') != NULL;
5974 if (virt)
5975 m = PHYS_TO_VM_PAGE(pmap_kextract(addr));
5976 else if (phys)
5977 m = PHYS_TO_VM_PAGE(addr);
5978 else
5979 m = (vm_page_t)addr;
5980 db_printf(
5981 "page %p obj %p pidx 0x%jx phys 0x%jx q %d ref 0x%x\n"
5982 " af 0x%x of 0x%x f 0x%x act %d busy %x valid 0x%x dirty 0x%x\n",
5983 m, m->object, (uintmax_t)m->pindex, (uintmax_t)m->phys_addr,
5984 m->a.queue, m->ref_count, m->a.flags, m->oflags,
5985 m->flags, m->a.act_count, m->busy_lock, m->valid, m->dirty);
5986 }
5987 #endif /* DDB */
5988