1 /*-
2 * SPDX-License-Identifier: BSD-2-Clause
3 *
4 * Copyright (c) 2002-2006 Rice University
5 * Copyright (c) 2007 Alan L. Cox <alc@cs.rice.edu>
6 * All rights reserved.
7 *
8 * This software was developed for the FreeBSD Project by Alan L. Cox,
9 * Olivier Crameri, Peter Druschel, Sitaram Iyer, and Juan Navarro.
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 *
20 * THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS
21 * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT
22 * LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR
23 * A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT
24 * HOLDERS OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT,
25 * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING,
26 * BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS
27 * OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED
28 * AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
29 * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY
30 * WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
31 * POSSIBILITY OF SUCH DAMAGE.
32 */
33
34 /*
35 * Physical memory system implementation
36 *
37 * Any external functions defined by this module are only to be used by the
38 * virtual memory system.
39 */
40
41 #include <sys/cdefs.h>
42 #include "opt_ddb.h"
43 #include "opt_vm.h"
44
45 #include <sys/param.h>
46 #include <sys/systm.h>
47 #include <sys/domainset.h>
48 #include <sys/lock.h>
49 #include <sys/kernel.h>
50 #include <sys/kthread.h>
51 #include <sys/malloc.h>
52 #include <sys/mutex.h>
53 #include <sys/proc.h>
54 #include <sys/queue.h>
55 #include <sys/rwlock.h>
56 #include <sys/sbuf.h>
57 #include <sys/sched.h>
58 #include <sys/sysctl.h>
59 #include <sys/tree.h>
60 #include <sys/tslog.h>
61 #include <sys/unistd.h>
62 #include <sys/vmmeter.h>
63
64 #include <ddb/ddb.h>
65
66 #include <vm/vm.h>
67 #include <vm/vm_extern.h>
68 #include <vm/vm_param.h>
69 #include <vm/vm_kern.h>
70 #include <vm/vm_page.h>
71 #include <vm/vm_phys.h>
72 #include <vm/vm_pagequeue.h>
73
74 _Static_assert(sizeof(long) * NBBY >= VM_PHYSSEG_MAX,
75 "Too many physsegs.");
76 _Static_assert(sizeof(long long) >= sizeof(vm_paddr_t),
77 "vm_paddr_t too big for ffsll, flsll.");
78
79 #ifdef NUMA
80 struct mem_affinity __read_mostly *mem_affinity;
81 int __read_mostly *mem_locality;
82
83 static int numa_disabled;
84 static SYSCTL_NODE(_vm, OID_AUTO, numa, CTLFLAG_RD | CTLFLAG_MPSAFE, 0,
85 "NUMA options");
86 SYSCTL_INT(_vm_numa, OID_AUTO, disabled, CTLFLAG_RDTUN | CTLFLAG_NOFETCH,
87 &numa_disabled, 0, "NUMA-awareness in the allocators is disabled");
88 #endif
89
90 int __read_mostly vm_ndomains = 1;
91 domainset_t __read_mostly all_domains = DOMAINSET_T_INITIALIZER(0x1);
92
93 struct vm_phys_seg __read_mostly vm_phys_segs[VM_PHYSSEG_MAX];
94 int __read_mostly vm_phys_nsegs;
95 static struct vm_phys_seg vm_phys_early_segs[8];
96 static int vm_phys_early_nsegs;
97
98 struct vm_phys_fictitious_seg;
99 static int vm_phys_fictitious_cmp(struct vm_phys_fictitious_seg *,
100 struct vm_phys_fictitious_seg *);
101
102 RB_HEAD(fict_tree, vm_phys_fictitious_seg) vm_phys_fictitious_tree =
103 RB_INITIALIZER(&vm_phys_fictitious_tree);
104
105 struct vm_phys_fictitious_seg {
106 RB_ENTRY(vm_phys_fictitious_seg) node;
107 /* Memory region data */
108 vm_paddr_t start;
109 vm_paddr_t end;
110 vm_page_t first_page;
111 vm_memattr_t memattr;
112 };
113
114 RB_GENERATE_STATIC(fict_tree, vm_phys_fictitious_seg, node,
115 vm_phys_fictitious_cmp);
116
117 static struct rwlock_padalign vm_phys_fictitious_reg_lock;
118 MALLOC_DEFINE(M_FICT_PAGES, "vm_fictitious", "Fictitious VM pages");
119
120 static struct vm_freelist __aligned(CACHE_LINE_SIZE)
121 vm_phys_free_queues[MAXMEMDOM][VM_NFREELIST][VM_NFREEPOOL]
122 [VM_NFREEORDER_MAX];
123
124 static int __read_mostly vm_nfreelists;
125
126 /*
127 * These "avail lists" are globals used to communicate boot-time physical
128 * memory layout to other parts of the kernel. Each physically contiguous
129 * region of memory is defined by a start address at an even index and an
130 * end address at the following odd index. Each list is terminated by a
131 * pair of zero entries.
132 *
133 * dump_avail tells the dump code what regions to include in a crash dump, and
134 * phys_avail is all of the remaining physical memory that is available for
135 * the vm system.
136 *
137 * Initially dump_avail and phys_avail are identical. Boot time memory
138 * allocations remove extents from phys_avail that may still be included
139 * in dumps.
140 */
141 vm_paddr_t phys_avail[PHYS_AVAIL_COUNT];
142 vm_paddr_t dump_avail[PHYS_AVAIL_COUNT];
143
144 /*
145 * Provides the mapping from VM_FREELIST_* to free list indices (flind).
146 */
147 static int __read_mostly vm_freelist_to_flind[VM_NFREELIST];
148 static int __read_mostly vm_default_freepool;
149
150 CTASSERT(VM_FREELIST_DEFAULT == 0);
151
152 #ifdef VM_FREELIST_DMA32
153 #define VM_DMA32_BOUNDARY ((vm_paddr_t)1 << 32)
154 #endif
155
156 /*
157 * Enforce the assumptions made by vm_phys_add_seg() and vm_phys_init() about
158 * the ordering of the free list boundaries.
159 */
160 #if defined(VM_LOWMEM_BOUNDARY) && defined(VM_DMA32_BOUNDARY)
161 CTASSERT(VM_LOWMEM_BOUNDARY < VM_DMA32_BOUNDARY);
162 #endif
163
164 static int sysctl_vm_phys_free(SYSCTL_HANDLER_ARGS);
165 SYSCTL_OID(_vm, OID_AUTO, phys_free,
166 CTLTYPE_STRING | CTLFLAG_RD | CTLFLAG_MPSAFE, NULL, 0,
167 sysctl_vm_phys_free, "A",
168 "Phys Free Info");
169
170 static int sysctl_vm_phys_segs(SYSCTL_HANDLER_ARGS);
171 SYSCTL_OID(_vm, OID_AUTO, phys_segs,
172 CTLTYPE_STRING | CTLFLAG_RD | CTLFLAG_MPSAFE, NULL, 0,
173 sysctl_vm_phys_segs, "A",
174 "Phys Seg Info");
175
176 static int sysctl_vm_phys_fictitious_segs(SYSCTL_HANDLER_ARGS);
177 SYSCTL_OID(_vm, OID_AUTO, phys_fictitious_segs,
178 CTLTYPE_STRING | CTLFLAG_RD | CTLFLAG_MPSAFE, NULL, 0,
179 sysctl_vm_phys_fictitious_segs, "A",
180 "Fictitious Phys Seg Info");
181
182 #ifdef NUMA
183 static int sysctl_vm_phys_locality(SYSCTL_HANDLER_ARGS);
184 SYSCTL_OID(_vm, OID_AUTO, phys_locality,
185 CTLTYPE_STRING | CTLFLAG_RD | CTLFLAG_MPSAFE, NULL, 0,
186 sysctl_vm_phys_locality, "A",
187 "Phys Locality Info");
188 #endif
189
190 SYSCTL_INT(_vm, OID_AUTO, ndomains, CTLFLAG_RD,
191 &vm_ndomains, 0, "Number of physical memory domains available.");
192
193 static void _vm_phys_create_seg(vm_paddr_t start, vm_paddr_t end, int domain);
194 static void vm_phys_create_seg(vm_paddr_t start, vm_paddr_t end);
195 static void vm_phys_split_pages(vm_page_t m, int oind, struct vm_freelist *fl,
196 int order, int pool, int tail);
197
198 static bool __diagused
vm_phys_pool_valid(int pool)199 vm_phys_pool_valid(int pool)
200 {
201 #ifdef VM_FREEPOOL_LAZYINIT
202 if (pool == VM_FREEPOOL_LAZYINIT)
203 return (false);
204 #endif
205 return (pool >= 0 && pool < VM_NFREEPOOL);
206 }
207
208 /*
209 * Red-black tree helpers for vm fictitious range management.
210 */
211 static inline int
vm_phys_fictitious_in_range(struct vm_phys_fictitious_seg * p,struct vm_phys_fictitious_seg * range)212 vm_phys_fictitious_in_range(struct vm_phys_fictitious_seg *p,
213 struct vm_phys_fictitious_seg *range)
214 {
215 if (p->start >= range->end)
216 return (1);
217 if (p->start < range->start)
218 return (-1);
219
220 return (0);
221 }
222
223 static int
vm_phys_fictitious_cmp(struct vm_phys_fictitious_seg * p1,struct vm_phys_fictitious_seg * p2)224 vm_phys_fictitious_cmp(struct vm_phys_fictitious_seg *p1,
225 struct vm_phys_fictitious_seg *p2)
226 {
227
228 /* Check if this is a search for a page */
229 if (p1->end == 0)
230 return (vm_phys_fictitious_in_range(p1, p2));
231
232 KASSERT(p2->end != 0,
233 ("Invalid range passed as second parameter to vm fictitious comparison"));
234
235 /* Searching to add a new range */
236 if (p1->end <= p2->start)
237 return (-1);
238 if (p1->start >= p2->end)
239 return (1);
240
241 panic("Trying to add overlapping vm fictitious ranges:\n"
242 "[%#jx:%#jx] and [%#jx:%#jx]", (uintmax_t)p1->start,
243 (uintmax_t)p1->end, (uintmax_t)p2->start, (uintmax_t)p2->end);
244 }
245
246 int
vm_phys_domain_match(int prefer __numa_used,vm_paddr_t low __numa_used,vm_paddr_t high __numa_used)247 vm_phys_domain_match(int prefer __numa_used, vm_paddr_t low __numa_used,
248 vm_paddr_t high __numa_used)
249 {
250 #ifdef NUMA
251 domainset_t mask;
252 int i;
253
254 if (vm_ndomains == 1 || mem_affinity == NULL)
255 return (0);
256
257 DOMAINSET_ZERO(&mask);
258 /*
259 * Check for any memory that overlaps low, high.
260 */
261 for (i = 0; mem_affinity[i].end != 0; i++)
262 if (mem_affinity[i].start <= high &&
263 mem_affinity[i].end >= low)
264 DOMAINSET_SET(mem_affinity[i].domain, &mask);
265 if (prefer != -1 && DOMAINSET_ISSET(prefer, &mask))
266 return (prefer);
267 if (DOMAINSET_EMPTY(&mask))
268 panic("vm_phys_domain_match: Impossible constraint");
269 return (DOMAINSET_FFS(&mask) - 1);
270 #else
271 return (0);
272 #endif
273 }
274
275 /*
276 * Outputs the state of the physical memory allocator, specifically,
277 * the amount of physical memory in each free list.
278 */
279 static int
sysctl_vm_phys_free(SYSCTL_HANDLER_ARGS)280 sysctl_vm_phys_free(SYSCTL_HANDLER_ARGS)
281 {
282 struct sbuf sbuf;
283 struct vm_freelist *fl;
284 int dom, error, flind, oind, pind;
285
286 error = sysctl_wire_old_buffer(req, 0);
287 if (error != 0)
288 return (error);
289 sbuf_new_for_sysctl(&sbuf, NULL, 128 * vm_ndomains, req);
290 for (dom = 0; dom < vm_ndomains; dom++) {
291 sbuf_printf(&sbuf,"\nDOMAIN %d:\n", dom);
292 for (flind = 0; flind < vm_nfreelists; flind++) {
293 sbuf_printf(&sbuf, "\nFREE LIST %d:\n"
294 "\n ORDER (SIZE) | NUMBER"
295 "\n ", flind);
296 for (pind = 0; pind < VM_NFREEPOOL; pind++)
297 sbuf_printf(&sbuf, " | POOL %d", pind);
298 sbuf_printf(&sbuf, "\n-- ");
299 for (pind = 0; pind < VM_NFREEPOOL; pind++)
300 sbuf_printf(&sbuf, "-- -- ");
301 sbuf_printf(&sbuf, "--\n");
302 for (oind = VM_NFREEORDER - 1; oind >= 0; oind--) {
303 sbuf_printf(&sbuf, " %2d (%6dK)", oind,
304 1 << (PAGE_SHIFT - 10 + oind));
305 for (pind = 0; pind < VM_NFREEPOOL; pind++) {
306 fl = vm_phys_free_queues[dom][flind][pind];
307 sbuf_printf(&sbuf, " | %6d",
308 fl[oind].lcnt);
309 }
310 sbuf_printf(&sbuf, "\n");
311 }
312 }
313 }
314 error = sbuf_finish(&sbuf);
315 sbuf_delete(&sbuf);
316 return (error);
317 }
318
319 /*
320 * Outputs the set of physical memory segments.
321 */
322 static int
sysctl_vm_phys_segs(SYSCTL_HANDLER_ARGS)323 sysctl_vm_phys_segs(SYSCTL_HANDLER_ARGS)
324 {
325 struct sbuf sbuf;
326 struct vm_phys_seg *seg;
327 int error, segind;
328
329 error = sysctl_wire_old_buffer(req, 0);
330 if (error != 0)
331 return (error);
332 sbuf_new_for_sysctl(&sbuf, NULL, 128, req);
333 for (segind = 0; segind < vm_phys_nsegs; segind++) {
334 sbuf_printf(&sbuf, "\nSEGMENT %d:\n\n", segind);
335 seg = &vm_phys_segs[segind];
336 sbuf_printf(&sbuf, "start: %#jx\n",
337 (uintmax_t)seg->start);
338 sbuf_printf(&sbuf, "end: %#jx\n",
339 (uintmax_t)seg->end);
340 sbuf_printf(&sbuf, "domain: %d\n", seg->domain);
341 sbuf_printf(&sbuf, "free list: %p\n", seg->free_queues);
342 }
343 error = sbuf_finish(&sbuf);
344 sbuf_delete(&sbuf);
345 return (error);
346 }
347
348 static int
sysctl_vm_phys_fictitious_segs(SYSCTL_HANDLER_ARGS)349 sysctl_vm_phys_fictitious_segs(SYSCTL_HANDLER_ARGS)
350 {
351 struct sbuf sbuf;
352 struct vm_phys_fictitious_seg *seg;
353 int error;
354
355 error = sysctl_wire_old_buffer(req, 0);
356 if (error != 0)
357 return (error);
358 sbuf_new_for_sysctl(&sbuf, NULL, 128, req);
359 rw_rlock(&vm_phys_fictitious_reg_lock);
360 RB_FOREACH(seg, fict_tree, &vm_phys_fictitious_tree) {
361 const char *name;
362 char buf[8];
363
364 sbuf_printf(&sbuf, "\nstart: %#jx\n",
365 (uintmax_t)seg->start);
366 sbuf_printf(&sbuf, "end: %#jx\n",
367 (uintmax_t)seg->end);
368 name = vm_memattr_name(seg->memattr);
369 if (name == NULL) {
370 (void)snprintf(buf, sizeof(buf), "0x%02x", seg->memattr);
371 name = buf;
372 }
373 sbuf_printf(&sbuf, "attr: %s\n", name);
374 }
375 rw_runlock(&vm_phys_fictitious_reg_lock);
376 error = sbuf_finish(&sbuf);
377 sbuf_delete(&sbuf);
378 return (error);
379 }
380
381 /*
382 * Return affinity, or -1 if there's no affinity information.
383 */
384 int
vm_phys_mem_affinity(int f __numa_used,int t __numa_used)385 vm_phys_mem_affinity(int f __numa_used, int t __numa_used)
386 {
387
388 #ifdef NUMA
389 if (mem_locality == NULL)
390 return (-1);
391 if (f >= vm_ndomains || t >= vm_ndomains)
392 return (-1);
393 return (mem_locality[f * vm_ndomains + t]);
394 #else
395 return (-1);
396 #endif
397 }
398
399 #ifdef NUMA
400 /*
401 * Outputs the VM locality table.
402 */
403 static int
sysctl_vm_phys_locality(SYSCTL_HANDLER_ARGS)404 sysctl_vm_phys_locality(SYSCTL_HANDLER_ARGS)
405 {
406 struct sbuf sbuf;
407 int error, i, j;
408
409 error = sysctl_wire_old_buffer(req, 0);
410 if (error != 0)
411 return (error);
412 sbuf_new_for_sysctl(&sbuf, NULL, 128, req);
413
414 sbuf_printf(&sbuf, "\n");
415
416 for (i = 0; i < vm_ndomains; i++) {
417 sbuf_printf(&sbuf, "%d: ", i);
418 for (j = 0; j < vm_ndomains; j++) {
419 sbuf_printf(&sbuf, "%d ", vm_phys_mem_affinity(i, j));
420 }
421 sbuf_printf(&sbuf, "\n");
422 }
423 error = sbuf_finish(&sbuf);
424 sbuf_delete(&sbuf);
425 return (error);
426 }
427 #endif
428
429 static void
vm_freelist_add(struct vm_freelist * fl,vm_page_t m,int order,int pool,int tail)430 vm_freelist_add(struct vm_freelist *fl, vm_page_t m, int order, int pool,
431 int tail)
432 {
433 /*
434 * The paging queues and the free page lists utilize the same field,
435 * plinks.q, within the vm_page structure. When a physical page is
436 * freed, it is lazily removed from the paging queues to reduce the
437 * cost of removal through batching. Here, we must ensure that any
438 * deferred dequeue on the physical page has completed before using
439 * its plinks.q field.
440 */
441 if (__predict_false(vm_page_astate_load(m).queue != PQ_NONE))
442 vm_page_dequeue(m);
443
444 m->order = order;
445 m->pool = pool;
446 if (tail)
447 TAILQ_INSERT_TAIL(&fl[order].pl, m, plinks.q);
448 else
449 TAILQ_INSERT_HEAD(&fl[order].pl, m, plinks.q);
450 fl[order].lcnt++;
451 }
452
453 static void
vm_freelist_rem(struct vm_freelist * fl,vm_page_t m,int order)454 vm_freelist_rem(struct vm_freelist *fl, vm_page_t m, int order)
455 {
456
457 TAILQ_REMOVE(&fl[order].pl, m, plinks.q);
458 fl[order].lcnt--;
459 m->order = VM_NFREEORDER;
460 }
461
462 /*
463 * Create a physical memory segment.
464 */
465 static void
_vm_phys_create_seg(vm_paddr_t start,vm_paddr_t end,int domain)466 _vm_phys_create_seg(vm_paddr_t start, vm_paddr_t end, int domain)
467 {
468 struct vm_phys_seg *seg;
469
470 if (!(0 <= domain && domain < vm_ndomains))
471 panic("%s: Invalid domain %d ('vm_ndomains' is %d)",
472 __func__, domain, vm_ndomains);
473 if (vm_phys_nsegs >= VM_PHYSSEG_MAX)
474 panic("Not enough storage for physical segments, "
475 "increase VM_PHYSSEG_MAX");
476
477 seg = &vm_phys_segs[vm_phys_nsegs++];
478 while (seg > vm_phys_segs && seg[-1].start >= end) {
479 *seg = *(seg - 1);
480 seg--;
481 }
482 seg->start = start;
483 seg->end = end;
484 seg->domain = domain;
485 if (seg != vm_phys_segs && seg[-1].end > start)
486 panic("Overlapping physical segments: Current [%#jx,%#jx) "
487 "at index %zu, previous [%#jx,%#jx)",
488 (uintmax_t)start, (uintmax_t)end, seg - vm_phys_segs,
489 (uintmax_t)seg[-1].start, (uintmax_t)seg[-1].end);
490 }
491
492 static void
vm_phys_create_seg(vm_paddr_t start,vm_paddr_t end)493 vm_phys_create_seg(vm_paddr_t start, vm_paddr_t end)
494 {
495 #ifdef NUMA
496 int i;
497
498 if (mem_affinity == NULL) {
499 _vm_phys_create_seg(start, end, 0);
500 return;
501 }
502
503 for (i = 0;; i++) {
504 if (mem_affinity[i].end == 0)
505 panic("Reached end of affinity info");
506 if (mem_affinity[i].end <= start)
507 continue;
508 if (mem_affinity[i].start > start)
509 panic("No affinity info for start %jx",
510 (uintmax_t)start);
511 if (mem_affinity[i].end >= end) {
512 _vm_phys_create_seg(start, end,
513 mem_affinity[i].domain);
514 break;
515 }
516 _vm_phys_create_seg(start, mem_affinity[i].end,
517 mem_affinity[i].domain);
518 start = mem_affinity[i].end;
519 }
520 #else
521 _vm_phys_create_seg(start, end, 0);
522 #endif
523 }
524
525 /*
526 * Add a physical memory segment.
527 */
528 void
vm_phys_add_seg(vm_paddr_t start,vm_paddr_t end)529 vm_phys_add_seg(vm_paddr_t start, vm_paddr_t end)
530 {
531 vm_paddr_t paddr;
532
533 if ((start & PAGE_MASK) != 0)
534 panic("%s: start (%jx) is not page aligned", __func__,
535 (uintmax_t)start);
536 if ((end & PAGE_MASK) != 0)
537 panic("%s: end (%jx) is not page aligned", __func__,
538 (uintmax_t)end);
539 if (start > end)
540 panic("%s: start (%jx) > end (%jx)!", __func__,
541 (uintmax_t)start, (uintmax_t)end);
542
543 if (start == end)
544 return;
545
546 /*
547 * Split the physical memory segment if it spans two or more free
548 * list boundaries.
549 */
550 paddr = start;
551 #ifdef VM_FREELIST_LOWMEM
552 if (paddr < VM_LOWMEM_BOUNDARY && end > VM_LOWMEM_BOUNDARY) {
553 vm_phys_create_seg(paddr, VM_LOWMEM_BOUNDARY);
554 paddr = VM_LOWMEM_BOUNDARY;
555 }
556 #endif
557 #ifdef VM_FREELIST_DMA32
558 if (paddr < VM_DMA32_BOUNDARY && end > VM_DMA32_BOUNDARY) {
559 vm_phys_create_seg(paddr, VM_DMA32_BOUNDARY);
560 paddr = VM_DMA32_BOUNDARY;
561 }
562 #endif
563 vm_phys_create_seg(paddr, end);
564 }
565
566 /*
567 * Initialize the physical memory allocator.
568 *
569 * Requires that vm_page_array is initialized!
570 */
571 void
vm_phys_init(void)572 vm_phys_init(void)
573 {
574 struct vm_freelist *fl;
575 struct vm_phys_seg *end_seg, *prev_seg, *seg, *tmp_seg;
576 #if defined(VM_DMA32_NPAGES_THRESHOLD) || defined(VM_PHYSSEG_SPARSE)
577 u_long npages;
578 #endif
579 int dom, flind, freelist, oind, pind, segind;
580
581 /*
582 * Compute the number of free lists, and generate the mapping from the
583 * manifest constants VM_FREELIST_* to the free list indices.
584 *
585 * Initially, the entries of vm_freelist_to_flind[] are set to either
586 * 0 or 1 to indicate which free lists should be created.
587 */
588 #ifdef VM_DMA32_NPAGES_THRESHOLD
589 npages = 0;
590 #endif
591 for (segind = vm_phys_nsegs - 1; segind >= 0; segind--) {
592 seg = &vm_phys_segs[segind];
593 #ifdef VM_FREELIST_LOWMEM
594 if (seg->end <= VM_LOWMEM_BOUNDARY)
595 vm_freelist_to_flind[VM_FREELIST_LOWMEM] = 1;
596 else
597 #endif
598 #ifdef VM_FREELIST_DMA32
599 if (
600 #ifdef VM_DMA32_NPAGES_THRESHOLD
601 /*
602 * Create the DMA32 free list only if the amount of
603 * physical memory above physical address 4G exceeds the
604 * given threshold.
605 */
606 npages > VM_DMA32_NPAGES_THRESHOLD &&
607 #endif
608 seg->end <= VM_DMA32_BOUNDARY)
609 vm_freelist_to_flind[VM_FREELIST_DMA32] = 1;
610 else
611 #endif
612 {
613 #ifdef VM_DMA32_NPAGES_THRESHOLD
614 npages += atop(seg->end - seg->start);
615 #endif
616 vm_freelist_to_flind[VM_FREELIST_DEFAULT] = 1;
617 }
618 }
619 /* Change each entry into a running total of the free lists. */
620 for (freelist = 1; freelist < VM_NFREELIST; freelist++) {
621 vm_freelist_to_flind[freelist] +=
622 vm_freelist_to_flind[freelist - 1];
623 }
624 vm_nfreelists = vm_freelist_to_flind[VM_NFREELIST - 1];
625 KASSERT(vm_nfreelists > 0, ("vm_phys_init: no free lists"));
626 /* Change each entry into a free list index. */
627 for (freelist = 0; freelist < VM_NFREELIST; freelist++)
628 vm_freelist_to_flind[freelist]--;
629
630 /*
631 * Initialize the first_page and free_queues fields of each physical
632 * memory segment.
633 */
634 #ifdef VM_PHYSSEG_SPARSE
635 npages = 0;
636 #endif
637 for (segind = 0; segind < vm_phys_nsegs; segind++) {
638 seg = &vm_phys_segs[segind];
639 #ifdef VM_PHYSSEG_SPARSE
640 seg->first_page = &vm_page_array[npages];
641 npages += atop(seg->end - seg->start);
642 #else
643 seg->first_page = PHYS_TO_VM_PAGE(seg->start);
644 #endif
645 #ifdef VM_FREELIST_LOWMEM
646 if (seg->end <= VM_LOWMEM_BOUNDARY) {
647 flind = vm_freelist_to_flind[VM_FREELIST_LOWMEM];
648 KASSERT(flind >= 0,
649 ("vm_phys_init: LOWMEM flind < 0"));
650 } else
651 #endif
652 #ifdef VM_FREELIST_DMA32
653 if (seg->end <= VM_DMA32_BOUNDARY) {
654 flind = vm_freelist_to_flind[VM_FREELIST_DMA32];
655 KASSERT(flind >= 0,
656 ("vm_phys_init: DMA32 flind < 0"));
657 } else
658 #endif
659 {
660 flind = vm_freelist_to_flind[VM_FREELIST_DEFAULT];
661 KASSERT(flind >= 0,
662 ("vm_phys_init: DEFAULT flind < 0"));
663 }
664 seg->free_queues = &vm_phys_free_queues[seg->domain][flind];
665 }
666
667 /*
668 * Coalesce physical memory segments that are contiguous and share the
669 * same per-domain free queues.
670 */
671 prev_seg = vm_phys_segs;
672 seg = &vm_phys_segs[1];
673 end_seg = &vm_phys_segs[vm_phys_nsegs];
674 while (seg < end_seg) {
675 if (prev_seg->end == seg->start &&
676 prev_seg->free_queues == seg->free_queues) {
677 prev_seg->end = seg->end;
678 KASSERT(prev_seg->domain == seg->domain,
679 ("vm_phys_init: free queues cannot span domains"));
680 vm_phys_nsegs--;
681 end_seg--;
682 for (tmp_seg = seg; tmp_seg < end_seg; tmp_seg++)
683 *tmp_seg = *(tmp_seg + 1);
684 } else {
685 prev_seg = seg;
686 seg++;
687 }
688 }
689
690 /*
691 * Initialize the free queues.
692 */
693 for (dom = 0; dom < vm_ndomains; dom++) {
694 for (flind = 0; flind < vm_nfreelists; flind++) {
695 for (pind = 0; pind < VM_NFREEPOOL; pind++) {
696 fl = vm_phys_free_queues[dom][flind][pind];
697 for (oind = 0; oind < VM_NFREEORDER; oind++)
698 TAILQ_INIT(&fl[oind].pl);
699 }
700 }
701 }
702
703 #ifdef VM_FREEPOOL_LAZYINIT
704 vm_default_freepool = VM_FREEPOOL_LAZYINIT;
705 #else
706 vm_default_freepool = VM_FREEPOOL_DEFAULT;
707 #endif
708
709 rw_init(&vm_phys_fictitious_reg_lock, "vmfctr");
710 }
711
712 /*
713 * Register info about the NUMA topology of the system.
714 *
715 * Invoked by platform-dependent code prior to vm_phys_init().
716 */
717 void
vm_phys_register_domains(int ndomains __numa_used,struct mem_affinity * affinity __numa_used,int * locality __numa_used)718 vm_phys_register_domains(int ndomains __numa_used,
719 struct mem_affinity *affinity __numa_used, int *locality __numa_used)
720 {
721 #ifdef NUMA
722 int i;
723
724 /*
725 * For now the only override value that we support is 1, which
726 * effectively disables NUMA-awareness in the allocators.
727 */
728 TUNABLE_INT_FETCH("vm.numa.disabled", &numa_disabled);
729 if (numa_disabled)
730 ndomains = 1;
731
732 if (ndomains > 1) {
733 vm_ndomains = ndomains;
734 mem_affinity = affinity;
735 mem_locality = locality;
736 }
737
738 for (i = 0; i < vm_ndomains; i++)
739 DOMAINSET_SET(i, &all_domains);
740 #endif
741 }
742
743 /*
744 * Split a contiguous, power of two-sized set of physical pages.
745 *
746 * When this function is called by a page allocation function, the caller
747 * should request insertion at the head unless the order [order, oind) queues
748 * are known to be empty. The objective being to reduce the likelihood of
749 * long-term fragmentation by promoting contemporaneous allocation and
750 * (hopefully) deallocation.
751 */
752 static __inline void
vm_phys_split_pages(vm_page_t m,int oind,struct vm_freelist * fl,int order,int pool,int tail)753 vm_phys_split_pages(vm_page_t m, int oind, struct vm_freelist *fl, int order,
754 int pool, int tail)
755 {
756 vm_page_t m_buddy;
757
758 while (oind > order) {
759 oind--;
760 m_buddy = &m[1 << oind];
761 KASSERT(m_buddy->order == VM_NFREEORDER,
762 ("vm_phys_split_pages: page %p has unexpected order %d",
763 m_buddy, m_buddy->order));
764 vm_freelist_add(fl, m_buddy, oind, pool, tail);
765 }
766 }
767
768 static void
vm_phys_enq_chunk(struct vm_freelist * fl,vm_page_t m,int order,int pool,int tail)769 vm_phys_enq_chunk(struct vm_freelist *fl, vm_page_t m, int order, int pool,
770 int tail)
771 {
772 KASSERT(order >= 0 && order < VM_NFREEORDER,
773 ("%s: invalid order %d", __func__, order));
774
775 vm_freelist_add(fl, m, order, pool, tail);
776 #ifdef VM_FREEPOOL_LAZYINIT
777 if (__predict_false(pool == VM_FREEPOOL_LAZYINIT)) {
778 vm_page_t m_next;
779 vm_paddr_t pa;
780 int npages;
781
782 npages = 1 << order;
783 m_next = m + npages;
784 pa = m->phys_addr + ptoa(npages);
785 if (pa < vm_phys_segs[m->segind].end) {
786 vm_page_init_page(m_next, pa, m->segind,
787 VM_FREEPOOL_LAZYINIT);
788 }
789 }
790 #endif
791 }
792
793 /*
794 * Add the physical pages [m, m + npages) at the beginning of a power-of-two
795 * aligned and sized set to the specified free list.
796 *
797 * When this function is called by a page allocation function, the caller
798 * should request insertion at the head unless the lower-order queues are
799 * known to be empty. The objective being to reduce the likelihood of long-
800 * term fragmentation by promoting contemporaneous allocation and (hopefully)
801 * deallocation.
802 *
803 * The physical page m's buddy must not be free.
804 */
805 static void
vm_phys_enq_beg(vm_page_t m,u_int npages,struct vm_freelist * fl,int pool,int tail)806 vm_phys_enq_beg(vm_page_t m, u_int npages, struct vm_freelist *fl, int pool,
807 int tail)
808 {
809 int order;
810
811 KASSERT(npages == 0 ||
812 (VM_PAGE_TO_PHYS(m) &
813 ((PAGE_SIZE << ilog2(npages)) - 1)) == 0,
814 ("%s: page %p and npages %u are misaligned",
815 __func__, m, npages));
816 while (npages > 0) {
817 KASSERT(m->order == VM_NFREEORDER,
818 ("%s: page %p has unexpected order %d",
819 __func__, m, m->order));
820 order = ilog2(npages);
821 KASSERT(order < VM_NFREEORDER,
822 ("%s: order %d is out of range", __func__, order));
823 vm_phys_enq_chunk(fl, m, order, pool, tail);
824 m += 1 << order;
825 npages -= 1 << order;
826 }
827 }
828
829 /*
830 * Add the physical pages [m, m + npages) at the end of a power-of-two aligned
831 * and sized set to the specified free list.
832 *
833 * When this function is called by a page allocation function, the caller
834 * should request insertion at the head unless the lower-order queues are
835 * known to be empty. The objective being to reduce the likelihood of long-
836 * term fragmentation by promoting contemporaneous allocation and (hopefully)
837 * deallocation.
838 *
839 * If npages is zero, this function does nothing and ignores the physical page
840 * parameter m. Otherwise, the physical page m's buddy must not be free.
841 */
842 static vm_page_t
vm_phys_enq_range(vm_page_t m,u_int npages,struct vm_freelist * fl,int pool,int tail)843 vm_phys_enq_range(vm_page_t m, u_int npages, struct vm_freelist *fl, int pool,
844 int tail)
845 {
846 int order;
847
848 KASSERT(npages == 0 ||
849 ((VM_PAGE_TO_PHYS(m) + npages * PAGE_SIZE) &
850 ((PAGE_SIZE << ilog2(npages)) - 1)) == 0,
851 ("vm_phys_enq_range: page %p and npages %u are misaligned",
852 m, npages));
853 while (npages > 0) {
854 KASSERT(m->order == VM_NFREEORDER,
855 ("vm_phys_enq_range: page %p has unexpected order %d",
856 m, m->order));
857 order = ffs(npages) - 1;
858 vm_phys_enq_chunk(fl, m, order, pool, tail);
859 m += 1 << order;
860 npages -= 1 << order;
861 }
862 return (m);
863 }
864
865 /*
866 * Complete initialization a contiguous, power of two-sized set of physical
867 * pages.
868 *
869 * If the pages currently belong to the lazy init pool, then the corresponding
870 * page structures must be initialized. In this case it is assumed that the
871 * first page in the run has already been initialized.
872 */
873 static void
vm_phys_finish_init(vm_page_t m,int order)874 vm_phys_finish_init(vm_page_t m, int order)
875 {
876 #ifdef VM_FREEPOOL_LAZYINIT
877 if (__predict_false(m->pool == VM_FREEPOOL_LAZYINIT)) {
878 vm_paddr_t pa;
879 int segind;
880
881 TSENTER();
882 pa = m->phys_addr + PAGE_SIZE;
883 segind = m->segind;
884 for (vm_page_t m_tmp = m + 1; m_tmp < &m[1 << order];
885 m_tmp++, pa += PAGE_SIZE)
886 vm_page_init_page(m_tmp, pa, segind, VM_NFREEPOOL);
887 TSEXIT();
888 }
889 #endif
890 }
891
892 /*
893 * Tries to allocate the specified number of pages from the specified pool
894 * within the specified domain. Returns the actual number of allocated pages
895 * and a pointer to each page through the array ma[].
896 *
897 * The returned pages may not be physically contiguous. However, in contrast
898 * to performing multiple, back-to-back calls to vm_phys_alloc_pages(..., 0),
899 * calling this function once to allocate the desired number of pages will
900 * avoid wasted time in vm_phys_split_pages(). The allocated pages have no
901 * valid pool field set.
902 *
903 * The free page queues for the specified domain must be locked.
904 */
905 int
vm_phys_alloc_npages(int domain,int pool,int npages,vm_page_t ma[])906 vm_phys_alloc_npages(int domain, int pool, int npages, vm_page_t ma[])
907 {
908 struct vm_freelist *alt, *fl;
909 vm_page_t m;
910 int avail, end, flind, freelist, i, oind, pind;
911
912 KASSERT(domain >= 0 && domain < vm_ndomains,
913 ("vm_phys_alloc_npages: domain %d is out of range", domain));
914 KASSERT(vm_phys_pool_valid(pool),
915 ("vm_phys_alloc_npages: pool %d is out of range", pool));
916 KASSERT(npages <= 1 << (VM_NFREEORDER - 1),
917 ("vm_phys_alloc_npages: npages %d is out of range", npages));
918 vm_domain_free_assert_locked(VM_DOMAIN(domain));
919 i = 0;
920 for (freelist = 0; freelist < VM_NFREELIST; freelist++) {
921 flind = vm_freelist_to_flind[freelist];
922 if (flind < 0)
923 continue;
924 fl = vm_phys_free_queues[domain][flind][pool];
925 for (oind = 0; oind < VM_NFREEORDER; oind++) {
926 while ((m = TAILQ_FIRST(&fl[oind].pl)) != NULL) {
927 vm_freelist_rem(fl, m, oind);
928 avail = i + (1 << oind);
929 end = imin(npages, avail);
930 while (i < end)
931 ma[i++] = m++;
932 if (i == npages) {
933 /*
934 * Return excess pages to fl. Its order
935 * [0, oind) queues are empty.
936 */
937 vm_phys_enq_range(m, avail - i, fl,
938 pool, 1);
939 return (npages);
940 }
941 }
942 }
943 for (oind = VM_NFREEORDER - 1; oind >= 0; oind--) {
944 for (pind = vm_default_freepool; pind < VM_NFREEPOOL;
945 pind++) {
946 alt = vm_phys_free_queues[domain][flind][pind];
947 while ((m = TAILQ_FIRST(&alt[oind].pl)) !=
948 NULL) {
949 vm_freelist_rem(alt, m, oind);
950 vm_phys_finish_init(m, oind);
951 avail = i + (1 << oind);
952 end = imin(npages, avail);
953 while (i < end)
954 ma[i++] = m++;
955 if (i == npages) {
956 /*
957 * Return excess pages to fl.
958 * Its order [0, oind) queues
959 * are empty.
960 */
961 vm_phys_enq_range(m, avail - i,
962 fl, pool, 1);
963 return (npages);
964 }
965 }
966 }
967 }
968 }
969 return (i);
970 }
971
972 /*
973 * Allocate a contiguous, power of two-sized set of physical pages from the
974 * specified free list. The free list must be specified using one of the
975 * manifest constants VM_FREELIST_*.
976 *
977 * The free page queues must be locked.
978 */
979 static vm_page_t
vm_phys_alloc_freelist_pages(int domain,int freelist,int pool,int order)980 vm_phys_alloc_freelist_pages(int domain, int freelist, int pool, int order)
981 {
982 struct vm_freelist *alt, *fl;
983 vm_page_t m;
984 int oind, pind, flind;
985
986 KASSERT(domain >= 0 && domain < vm_ndomains,
987 ("vm_phys_alloc_freelist_pages: domain %d is out of range",
988 domain));
989 KASSERT(freelist < VM_NFREELIST,
990 ("vm_phys_alloc_freelist_pages: freelist %d is out of range",
991 freelist));
992 KASSERT(vm_phys_pool_valid(pool),
993 ("vm_phys_alloc_freelist_pages: pool %d is out of range", pool));
994 KASSERT(order < VM_NFREEORDER,
995 ("vm_phys_alloc_freelist_pages: order %d is out of range", order));
996
997 flind = vm_freelist_to_flind[freelist];
998 /* Check if freelist is present */
999 if (flind < 0)
1000 return (NULL);
1001
1002 vm_domain_free_assert_locked(VM_DOMAIN(domain));
1003 fl = &vm_phys_free_queues[domain][flind][pool][0];
1004 for (oind = order; oind < VM_NFREEORDER; oind++) {
1005 m = TAILQ_FIRST(&fl[oind].pl);
1006 if (m != NULL) {
1007 vm_freelist_rem(fl, m, oind);
1008 /* The order [order, oind) queues are empty. */
1009 vm_phys_split_pages(m, oind, fl, order, pool, 1);
1010 return (m);
1011 }
1012 }
1013
1014 /*
1015 * The given pool was empty. Find the largest
1016 * contiguous, power-of-two-sized set of pages in any
1017 * pool. Transfer these pages to the given pool, and
1018 * use them to satisfy the allocation.
1019 */
1020 for (oind = VM_NFREEORDER - 1; oind >= order; oind--) {
1021 for (pind = vm_default_freepool; pind < VM_NFREEPOOL; pind++) {
1022 alt = &vm_phys_free_queues[domain][flind][pind][0];
1023 m = TAILQ_FIRST(&alt[oind].pl);
1024 if (m != NULL) {
1025 vm_freelist_rem(alt, m, oind);
1026 vm_phys_finish_init(m, oind);
1027 /* The order [order, oind) queues are empty. */
1028 vm_phys_split_pages(m, oind, fl, order, pool, 1);
1029 return (m);
1030 }
1031 }
1032 }
1033 return (NULL);
1034 }
1035
1036 /*
1037 * Allocate a contiguous, power of two-sized set of physical pages
1038 * from the free lists.
1039 *
1040 * The free page queues must be locked.
1041 */
1042 vm_page_t
vm_phys_alloc_pages(int domain,int pool,int order)1043 vm_phys_alloc_pages(int domain, int pool, int order)
1044 {
1045 vm_page_t m;
1046 int freelist;
1047
1048 for (freelist = 0; freelist < VM_NFREELIST; freelist++) {
1049 m = vm_phys_alloc_freelist_pages(domain, freelist, pool, order);
1050 if (m != NULL)
1051 return (m);
1052 }
1053 return (NULL);
1054 }
1055
1056 /*
1057 * Find the vm_page corresponding to the given physical address, which must lie
1058 * within the given physical memory segment.
1059 */
1060 vm_page_t
vm_phys_seg_paddr_to_vm_page(struct vm_phys_seg * seg,vm_paddr_t pa)1061 vm_phys_seg_paddr_to_vm_page(struct vm_phys_seg *seg, vm_paddr_t pa)
1062 {
1063 KASSERT(pa >= seg->start && pa < seg->end,
1064 ("%s: pa %#jx is out of range", __func__, (uintmax_t)pa));
1065
1066 return (&seg->first_page[atop(pa - seg->start)]);
1067 }
1068
1069 /*
1070 * Find the vm_page corresponding to the given physical address.
1071 */
1072 vm_page_t
vm_phys_paddr_to_vm_page(vm_paddr_t pa)1073 vm_phys_paddr_to_vm_page(vm_paddr_t pa)
1074 {
1075 struct vm_phys_seg *seg;
1076
1077 if ((seg = vm_phys_paddr_to_seg(pa)) != NULL)
1078 return (vm_phys_seg_paddr_to_vm_page(seg, pa));
1079 return (NULL);
1080 }
1081
1082 vm_page_t
vm_phys_fictitious_to_vm_page(vm_paddr_t pa)1083 vm_phys_fictitious_to_vm_page(vm_paddr_t pa)
1084 {
1085 struct vm_phys_fictitious_seg tmp, *seg;
1086 vm_page_t m;
1087
1088 m = NULL;
1089 tmp.start = pa;
1090 tmp.end = 0;
1091
1092 rw_rlock(&vm_phys_fictitious_reg_lock);
1093 seg = RB_FIND(fict_tree, &vm_phys_fictitious_tree, &tmp);
1094 rw_runlock(&vm_phys_fictitious_reg_lock);
1095 if (seg == NULL)
1096 return (NULL);
1097
1098 m = &seg->first_page[atop(pa - seg->start)];
1099 KASSERT((m->flags & PG_FICTITIOUS) != 0, ("%p not fictitious", m));
1100
1101 return (m);
1102 }
1103
1104 static inline void
vm_phys_fictitious_init_range(vm_page_t range,vm_paddr_t start,long page_count,vm_memattr_t memattr)1105 vm_phys_fictitious_init_range(vm_page_t range, vm_paddr_t start,
1106 long page_count, vm_memattr_t memattr)
1107 {
1108 long i;
1109
1110 bzero(range, page_count * sizeof(*range));
1111 for (i = 0; i < page_count; i++) {
1112 vm_page_initfake(&range[i], start + PAGE_SIZE * i, memattr);
1113 range[i].oflags &= ~VPO_UNMANAGED;
1114 range[i].busy_lock = VPB_UNBUSIED;
1115 }
1116 }
1117
1118 int
vm_phys_fictitious_reg_range(vm_paddr_t start,vm_paddr_t end,vm_memattr_t memattr)1119 vm_phys_fictitious_reg_range(vm_paddr_t start, vm_paddr_t end,
1120 vm_memattr_t memattr)
1121 {
1122 struct vm_phys_fictitious_seg *seg;
1123 vm_page_t fp;
1124 long page_count;
1125 #ifdef VM_PHYSSEG_DENSE
1126 long pi, pe;
1127 long dpage_count;
1128 #endif
1129
1130 KASSERT(start < end,
1131 ("Start of segment isn't less than end (start: %jx end: %jx)",
1132 (uintmax_t)start, (uintmax_t)end));
1133
1134 page_count = (end - start) / PAGE_SIZE;
1135
1136 #ifdef VM_PHYSSEG_DENSE
1137 pi = atop(start);
1138 pe = atop(end);
1139 if (pi >= first_page && (pi - first_page) < vm_page_array_size) {
1140 fp = &vm_page_array[pi - first_page];
1141 if ((pe - first_page) > vm_page_array_size) {
1142 /*
1143 * We have a segment that starts inside
1144 * of vm_page_array, but ends outside of it.
1145 *
1146 * Use vm_page_array pages for those that are
1147 * inside of the vm_page_array range, and
1148 * allocate the remaining ones.
1149 */
1150 dpage_count = vm_page_array_size - (pi - first_page);
1151 vm_phys_fictitious_init_range(fp, start, dpage_count,
1152 memattr);
1153 page_count -= dpage_count;
1154 start += ptoa(dpage_count);
1155 goto alloc;
1156 }
1157 /*
1158 * We can allocate the full range from vm_page_array,
1159 * so there's no need to register the range in the tree.
1160 */
1161 vm_phys_fictitious_init_range(fp, start, page_count, memattr);
1162 return (0);
1163 } else if (pe > first_page && (pe - first_page) < vm_page_array_size) {
1164 /*
1165 * We have a segment that ends inside of vm_page_array,
1166 * but starts outside of it.
1167 */
1168 fp = &vm_page_array[0];
1169 dpage_count = pe - first_page;
1170 vm_phys_fictitious_init_range(fp, ptoa(first_page), dpage_count,
1171 memattr);
1172 end -= ptoa(dpage_count);
1173 page_count -= dpage_count;
1174 goto alloc;
1175 } else if (pi < first_page && pe > (first_page + vm_page_array_size)) {
1176 /*
1177 * Trying to register a fictitious range that expands before
1178 * and after vm_page_array.
1179 */
1180 return (EINVAL);
1181 } else {
1182 alloc:
1183 #endif
1184 fp = malloc(page_count * sizeof(struct vm_page), M_FICT_PAGES,
1185 M_WAITOK);
1186 #ifdef VM_PHYSSEG_DENSE
1187 }
1188 #endif
1189 vm_phys_fictitious_init_range(fp, start, page_count, memattr);
1190
1191 seg = malloc(sizeof(*seg), M_FICT_PAGES, M_WAITOK | M_ZERO);
1192 seg->start = start;
1193 seg->end = end;
1194 seg->first_page = fp;
1195 seg->memattr = memattr;
1196
1197 rw_wlock(&vm_phys_fictitious_reg_lock);
1198 RB_INSERT(fict_tree, &vm_phys_fictitious_tree, seg);
1199 rw_wunlock(&vm_phys_fictitious_reg_lock);
1200
1201 return (0);
1202 }
1203
1204 void
vm_phys_fictitious_unreg_range(vm_paddr_t start,vm_paddr_t end)1205 vm_phys_fictitious_unreg_range(vm_paddr_t start, vm_paddr_t end)
1206 {
1207 struct vm_phys_fictitious_seg *seg, tmp;
1208 #ifdef VM_PHYSSEG_DENSE
1209 long pi, pe;
1210 #endif
1211
1212 KASSERT(start < end,
1213 ("Start of segment isn't less than end (start: %jx end: %jx)",
1214 (uintmax_t)start, (uintmax_t)end));
1215
1216 #ifdef VM_PHYSSEG_DENSE
1217 pi = atop(start);
1218 pe = atop(end);
1219 if (pi >= first_page && (pi - first_page) < vm_page_array_size) {
1220 if ((pe - first_page) <= vm_page_array_size) {
1221 /*
1222 * This segment was allocated using vm_page_array
1223 * only, there's nothing to do since those pages
1224 * were never added to the tree.
1225 */
1226 return;
1227 }
1228 /*
1229 * We have a segment that starts inside
1230 * of vm_page_array, but ends outside of it.
1231 *
1232 * Calculate how many pages were added to the
1233 * tree and free them.
1234 */
1235 start = ptoa(first_page + vm_page_array_size);
1236 } else if (pe > first_page && (pe - first_page) < vm_page_array_size) {
1237 /*
1238 * We have a segment that ends inside of vm_page_array,
1239 * but starts outside of it.
1240 */
1241 end = ptoa(first_page);
1242 } else if (pi < first_page && pe > (first_page + vm_page_array_size)) {
1243 /* Since it's not possible to register such a range, panic. */
1244 panic(
1245 "Unregistering not registered fictitious range [%#jx:%#jx]",
1246 (uintmax_t)start, (uintmax_t)end);
1247 }
1248 #endif
1249 tmp.start = start;
1250 tmp.end = 0;
1251
1252 rw_wlock(&vm_phys_fictitious_reg_lock);
1253 seg = RB_FIND(fict_tree, &vm_phys_fictitious_tree, &tmp);
1254 if (seg == NULL || seg->start != start || seg->end != end) {
1255 rw_wunlock(&vm_phys_fictitious_reg_lock);
1256 panic(
1257 "Unregistering not registered fictitious range [%#jx:%#jx]",
1258 (uintmax_t)start, (uintmax_t)end);
1259 }
1260 RB_REMOVE(fict_tree, &vm_phys_fictitious_tree, seg);
1261 rw_wunlock(&vm_phys_fictitious_reg_lock);
1262 free(seg->first_page, M_FICT_PAGES);
1263 free(seg, M_FICT_PAGES);
1264 }
1265
1266 /*
1267 * Free a contiguous, power of two-sized set of physical pages.
1268 * The pool field in the first page determines the destination pool.
1269 *
1270 * The free page queues must be locked.
1271 */
1272 void
vm_phys_free_pages(vm_page_t m,int pool,int order)1273 vm_phys_free_pages(vm_page_t m, int pool, int order)
1274 {
1275 struct vm_freelist *fl;
1276 struct vm_phys_seg *seg;
1277 vm_paddr_t pa;
1278 vm_page_t m_buddy;
1279
1280 KASSERT(m->order == VM_NFREEORDER,
1281 ("%s: page %p has unexpected order %d",
1282 __func__, m, m->order));
1283 KASSERT(vm_phys_pool_valid(pool),
1284 ("%s: unexpected pool param %d", __func__, pool));
1285 KASSERT(order < VM_NFREEORDER,
1286 ("%s: order %d is out of range", __func__, order));
1287 seg = &vm_phys_segs[m->segind];
1288 vm_domain_free_assert_locked(VM_DOMAIN(seg->domain));
1289 if (order < VM_NFREEORDER - 1) {
1290 pa = VM_PAGE_TO_PHYS(m);
1291 do {
1292 pa ^= ((vm_paddr_t)1 << (PAGE_SHIFT + order));
1293 if (pa < seg->start || pa >= seg->end)
1294 break;
1295 m_buddy = vm_phys_seg_paddr_to_vm_page(seg, pa);
1296 if (m_buddy->order != order)
1297 break;
1298 fl = (*seg->free_queues)[m_buddy->pool];
1299 vm_freelist_rem(fl, m_buddy, order);
1300 vm_phys_finish_init(m_buddy, order);
1301 order++;
1302 pa &= ~(((vm_paddr_t)1 << (PAGE_SHIFT + order)) - 1);
1303 m = vm_phys_seg_paddr_to_vm_page(seg, pa);
1304 } while (order < VM_NFREEORDER - 1);
1305 }
1306 fl = (*seg->free_queues)[pool];
1307 vm_freelist_add(fl, m, order, pool, 1);
1308 }
1309
1310 #ifdef VM_FREEPOOL_LAZYINIT
1311 /*
1312 * Initialize all pages lingering in the lazy init pool of a NUMA domain, moving
1313 * them to the default pool. This is a prerequisite for some rare operations
1314 * which need to scan the page array and thus depend on all pages being
1315 * initialized.
1316 */
1317 static void
vm_phys_lazy_init_domain(int domain,bool locked)1318 vm_phys_lazy_init_domain(int domain, bool locked)
1319 {
1320 static bool initdone[MAXMEMDOM];
1321 struct vm_domain *vmd;
1322 struct vm_freelist *fl;
1323 vm_page_t m;
1324 int pind;
1325 bool unlocked;
1326
1327 if (__predict_true(atomic_load_bool(&initdone[domain])))
1328 return;
1329
1330 vmd = VM_DOMAIN(domain);
1331 if (locked)
1332 vm_domain_free_assert_locked(vmd);
1333 else
1334 vm_domain_free_lock(vmd);
1335 if (atomic_load_bool(&initdone[domain]))
1336 goto out;
1337 pind = VM_FREEPOOL_LAZYINIT;
1338 for (int freelist = 0; freelist < VM_NFREELIST; freelist++) {
1339 int flind;
1340
1341 flind = vm_freelist_to_flind[freelist];
1342 if (flind < 0)
1343 continue;
1344 fl = vm_phys_free_queues[domain][flind][pind];
1345 for (int oind = 0; oind < VM_NFREEORDER; oind++) {
1346 if (atomic_load_int(&fl[oind].lcnt) == 0)
1347 continue;
1348 while ((m = TAILQ_FIRST(&fl[oind].pl)) != NULL) {
1349 /*
1350 * Avoid holding the lock across the
1351 * initialization unless there's a free page
1352 * shortage.
1353 */
1354 vm_freelist_rem(fl, m, oind);
1355 unlocked = vm_domain_allocate(vmd,
1356 VM_ALLOC_NORMAL, 1 << oind);
1357 if (unlocked)
1358 vm_domain_free_unlock(vmd);
1359 vm_phys_finish_init(m, oind);
1360 if (unlocked) {
1361 vm_domain_freecnt_inc(vmd, 1 << oind);
1362 vm_domain_free_lock(vmd);
1363 }
1364 vm_phys_free_pages(m, VM_FREEPOOL_DEFAULT,
1365 oind);
1366 }
1367 }
1368 }
1369 atomic_store_bool(&initdone[domain], true);
1370 out:
1371 if (!locked)
1372 vm_domain_free_unlock(vmd);
1373 }
1374
1375 static void
vm_phys_lazy_init(void)1376 vm_phys_lazy_init(void)
1377 {
1378 for (int domain = 0; domain < vm_ndomains; domain++)
1379 vm_phys_lazy_init_domain(domain, false);
1380 atomic_store_int(&vm_default_freepool, VM_FREEPOOL_DEFAULT);
1381 }
1382
1383 static void
vm_phys_lazy_init_kthr(void * arg __unused)1384 vm_phys_lazy_init_kthr(void *arg __unused)
1385 {
1386 vm_phys_lazy_init();
1387 kthread_exit();
1388 }
1389
1390 static void
vm_phys_lazy_sysinit(void * arg __unused)1391 vm_phys_lazy_sysinit(void *arg __unused)
1392 {
1393 struct thread *td;
1394 int error;
1395
1396 error = kthread_add(vm_phys_lazy_init_kthr, NULL, curproc, &td,
1397 RFSTOPPED, 0, "vmlazyinit");
1398 if (error == 0) {
1399 thread_lock(td);
1400 sched_prio(td, PRI_MIN_IDLE);
1401 sched_add(td, SRQ_BORING);
1402 } else {
1403 printf("%s: could not create lazy init thread: %d\n",
1404 __func__, error);
1405 vm_phys_lazy_init();
1406 }
1407 }
1408 SYSINIT(vm_phys_lazy_init, SI_SUB_SMP, SI_ORDER_ANY, vm_phys_lazy_sysinit,
1409 NULL);
1410 #endif /* VM_FREEPOOL_LAZYINIT */
1411
1412 /*
1413 * Free a contiguous, arbitrarily sized set of physical pages, without
1414 * merging across set boundaries. Assumes no pages have a valid pool field.
1415 *
1416 * The free page queues must be locked.
1417 */
1418 void
vm_phys_enqueue_contig(vm_page_t m,int pool,u_long npages)1419 vm_phys_enqueue_contig(vm_page_t m, int pool, u_long npages)
1420 {
1421 struct vm_freelist *fl;
1422 struct vm_phys_seg *seg;
1423 vm_page_t m_end;
1424 vm_paddr_t diff, lo;
1425 int order;
1426
1427 /*
1428 * Avoid unnecessary coalescing by freeing the pages in the largest
1429 * possible power-of-two-sized subsets.
1430 */
1431 vm_domain_free_assert_locked(vm_pagequeue_domain(m));
1432 seg = &vm_phys_segs[m->segind];
1433 fl = (*seg->free_queues)[pool];
1434 m_end = m + npages;
1435 /* Free blocks of increasing size. */
1436 lo = atop(VM_PAGE_TO_PHYS(m));
1437 if (m < m_end &&
1438 (diff = lo ^ (lo + npages - 1)) != 0) {
1439 order = min(ilog2(diff), VM_NFREEORDER - 1);
1440 m = vm_phys_enq_range(m, roundup2(lo, 1 << order) - lo, fl,
1441 pool, 1);
1442 }
1443
1444 /* Free blocks of maximum size. */
1445 order = VM_NFREEORDER - 1;
1446 while (m + (1 << order) <= m_end) {
1447 KASSERT(seg == &vm_phys_segs[m->segind],
1448 ("%s: page range [%p,%p) spans multiple segments",
1449 __func__, m_end - npages, m));
1450 vm_phys_enq_chunk(fl, m, order, pool, 1);
1451 m += 1 << order;
1452 }
1453 /* Free blocks of diminishing size. */
1454 vm_phys_enq_beg(m, m_end - m, fl, pool, 1);
1455 }
1456
1457 /*
1458 * Free a contiguous, arbitrarily sized set of physical pages.
1459 * Assumes that every page but the first has no valid pool field.
1460 * Uses the pool value in the first page if valid, otherwise default.
1461 *
1462 * The free page queues must be locked.
1463 */
1464 void
vm_phys_free_contig(vm_page_t m,int pool,u_long npages)1465 vm_phys_free_contig(vm_page_t m, int pool, u_long npages)
1466 {
1467 vm_paddr_t lo;
1468 vm_page_t m_start, m_end;
1469 unsigned max_order, order_start, order_end;
1470
1471 vm_domain_free_assert_locked(vm_pagequeue_domain(m));
1472
1473 lo = atop(VM_PAGE_TO_PHYS(m));
1474 max_order = min(ilog2(lo ^ (lo + npages)), VM_NFREEORDER - 1);
1475
1476 m_start = m;
1477 order_start = ffsll(lo) - 1;
1478 if (order_start < max_order)
1479 m_start += 1 << order_start;
1480 m_end = m + npages;
1481 order_end = ffsll(lo + npages) - 1;
1482 if (order_end < max_order)
1483 m_end -= 1 << order_end;
1484 /*
1485 * Avoid unnecessary coalescing by freeing the pages at the start and
1486 * end of the range last.
1487 */
1488 if (m_start < m_end)
1489 vm_phys_enqueue_contig(m_start, pool, m_end - m_start);
1490 if (order_start < max_order)
1491 vm_phys_free_pages(m, pool, order_start);
1492 if (order_end < max_order)
1493 vm_phys_free_pages(m_end, pool, order_end);
1494 }
1495
1496 /*
1497 * Identify the first address range within segment segind or greater
1498 * that matches the domain, lies within the low/high range, and has
1499 * enough pages. Return -1 if there is none.
1500 */
1501 int
vm_phys_find_range(vm_page_t bounds[],int segind,int domain,u_long npages,vm_paddr_t low,vm_paddr_t high)1502 vm_phys_find_range(vm_page_t bounds[], int segind, int domain,
1503 u_long npages, vm_paddr_t low, vm_paddr_t high)
1504 {
1505 vm_paddr_t pa_end, pa_start;
1506 struct vm_phys_seg *end_seg, *seg;
1507
1508 KASSERT(npages > 0, ("npages is zero"));
1509 KASSERT(domain >= 0 && domain < vm_ndomains, ("domain out of range"));
1510 end_seg = &vm_phys_segs[vm_phys_nsegs];
1511 for (seg = &vm_phys_segs[segind]; seg < end_seg; seg++) {
1512 if (seg->domain != domain)
1513 continue;
1514 if (seg->start >= high)
1515 return (-1);
1516 pa_start = MAX(low, seg->start);
1517 pa_end = MIN(high, seg->end);
1518 if (pa_end - pa_start < ptoa(npages))
1519 continue;
1520 #ifdef VM_FREEPOOL_LAZYINIT
1521 /*
1522 * The pages on the free lists must be initialized.
1523 */
1524 vm_phys_lazy_init_domain(domain, false);
1525 #endif
1526 bounds[0] = vm_phys_seg_paddr_to_vm_page(seg, pa_start);
1527 bounds[1] = &seg->first_page[atop(pa_end - seg->start)];
1528 return (seg - vm_phys_segs);
1529 }
1530 return (-1);
1531 }
1532
1533 /*
1534 * Search for the given physical page "m" in the free lists. If the search
1535 * succeeds, remove "m" from the free lists and return true. Otherwise, return
1536 * false, indicating that "m" is not in the free lists.
1537 *
1538 * The free page queues must be locked.
1539 */
1540 bool
vm_phys_unfree_page(vm_paddr_t pa)1541 vm_phys_unfree_page(vm_paddr_t pa)
1542 {
1543 struct vm_freelist *fl;
1544 struct vm_phys_seg *seg;
1545 vm_paddr_t pa_half;
1546 vm_page_t m, m_set, m_tmp;
1547 int order, pool;
1548
1549 seg = vm_phys_paddr_to_seg(pa);
1550 vm_domain_free_assert_locked(VM_DOMAIN(seg->domain));
1551
1552 #ifdef VM_FREEPOOL_LAZYINIT
1553 /*
1554 * The pages on the free lists must be initialized.
1555 */
1556 vm_phys_lazy_init_domain(seg->domain, true);
1557 #endif
1558
1559 /*
1560 * First, find the contiguous, power of two-sized set of free
1561 * physical pages containing the given physical page "m" and
1562 * assign it to "m_set".
1563 */
1564 m = vm_phys_paddr_to_vm_page(pa);
1565 for (m_set = m, order = 0; m_set->order == VM_NFREEORDER &&
1566 order < VM_NFREEORDER - 1; ) {
1567 order++;
1568 pa = m->phys_addr & (~(vm_paddr_t)0 << (PAGE_SHIFT + order));
1569 if (pa >= seg->start)
1570 m_set = vm_phys_seg_paddr_to_vm_page(seg, pa);
1571 else
1572 return (false);
1573 }
1574 if (m_set->order < order)
1575 return (false);
1576 if (m_set->order == VM_NFREEORDER)
1577 return (false);
1578 KASSERT(m_set->order < VM_NFREEORDER,
1579 ("vm_phys_unfree_page: page %p has unexpected order %d",
1580 m_set, m_set->order));
1581
1582 /*
1583 * Next, remove "m_set" from the free lists. Finally, extract
1584 * "m" from "m_set" using an iterative algorithm: While "m_set"
1585 * is larger than a page, shrink "m_set" by returning the half
1586 * of "m_set" that does not contain "m" to the free lists.
1587 */
1588 pool = m_set->pool;
1589 fl = (*seg->free_queues)[pool];
1590 order = m_set->order;
1591 vm_freelist_rem(fl, m_set, order);
1592 while (order > 0) {
1593 order--;
1594 pa_half = m_set->phys_addr ^ (1 << (PAGE_SHIFT + order));
1595 if (m->phys_addr < pa_half)
1596 m_tmp = vm_phys_seg_paddr_to_vm_page(seg, pa_half);
1597 else {
1598 m_tmp = m_set;
1599 m_set = vm_phys_seg_paddr_to_vm_page(seg, pa_half);
1600 }
1601 vm_freelist_add(fl, m_tmp, order, pool, 0);
1602 }
1603 KASSERT(m_set == m, ("vm_phys_unfree_page: fatal inconsistency"));
1604 return (true);
1605 }
1606
1607 /*
1608 * Find a run of contiguous physical pages, meeting alignment requirements, from
1609 * a list of max-sized page blocks, where we need at least two consecutive
1610 * blocks to satisfy the (large) page request.
1611 */
1612 static vm_page_t
vm_phys_find_freelist_contig(struct vm_freelist * fl,u_long npages,vm_paddr_t low,vm_paddr_t high,u_long alignment,vm_paddr_t boundary)1613 vm_phys_find_freelist_contig(struct vm_freelist *fl, u_long npages,
1614 vm_paddr_t low, vm_paddr_t high, u_long alignment, vm_paddr_t boundary)
1615 {
1616 struct vm_phys_seg *seg;
1617 vm_page_t m, m_iter, m_ret;
1618 vm_paddr_t max_size, size;
1619 int max_order;
1620
1621 max_order = VM_NFREEORDER - 1;
1622 size = npages << PAGE_SHIFT;
1623 max_size = (vm_paddr_t)1 << (PAGE_SHIFT + max_order);
1624 KASSERT(size > max_size, ("size is too small"));
1625
1626 /*
1627 * In order to avoid examining any free max-sized page block more than
1628 * twice, identify the ones that are first in a physically-contiguous
1629 * sequence of such blocks, and only for those walk the sequence to
1630 * check if there are enough free blocks starting at a properly aligned
1631 * block. Thus, no block is checked for free-ness more than twice.
1632 */
1633 TAILQ_FOREACH(m, &fl[max_order].pl, plinks.q) {
1634 /*
1635 * Skip m unless it is first in a sequence of free max page
1636 * blocks >= low in its segment.
1637 */
1638 seg = &vm_phys_segs[m->segind];
1639 if (VM_PAGE_TO_PHYS(m) < MAX(low, seg->start))
1640 continue;
1641 if (VM_PAGE_TO_PHYS(m) >= max_size &&
1642 VM_PAGE_TO_PHYS(m) - max_size >= MAX(low, seg->start) &&
1643 max_order == m[-1 << max_order].order)
1644 continue;
1645
1646 /*
1647 * Advance m_ret from m to the first of the sequence, if any,
1648 * that satisfies alignment conditions and might leave enough
1649 * space.
1650 */
1651 m_ret = m;
1652 while (!vm_addr_ok(VM_PAGE_TO_PHYS(m_ret),
1653 size, alignment, boundary) &&
1654 VM_PAGE_TO_PHYS(m_ret) + size <= MIN(high, seg->end) &&
1655 max_order == m_ret[1 << max_order].order)
1656 m_ret += 1 << max_order;
1657
1658 /*
1659 * Skip m unless some block m_ret in the sequence is properly
1660 * aligned, and begins a sequence of enough pages less than
1661 * high, and in the same segment.
1662 */
1663 if (VM_PAGE_TO_PHYS(m_ret) + size > MIN(high, seg->end))
1664 continue;
1665
1666 /*
1667 * Skip m unless the blocks to allocate starting at m_ret are
1668 * all free.
1669 */
1670 for (m_iter = m_ret;
1671 m_iter < m_ret + npages && max_order == m_iter->order;
1672 m_iter += 1 << max_order) {
1673 }
1674 if (m_iter < m_ret + npages)
1675 continue;
1676 return (m_ret);
1677 }
1678 return (NULL);
1679 }
1680
1681 /*
1682 * Find a run of contiguous physical pages from the specified free list
1683 * table.
1684 */
1685 static vm_page_t
vm_phys_find_queues_contig(struct vm_freelist (* queues)[VM_NFREEPOOL][VM_NFREEORDER_MAX],u_long npages,vm_paddr_t low,vm_paddr_t high,u_long alignment,vm_paddr_t boundary)1686 vm_phys_find_queues_contig(
1687 struct vm_freelist (*queues)[VM_NFREEPOOL][VM_NFREEORDER_MAX],
1688 u_long npages, vm_paddr_t low, vm_paddr_t high,
1689 u_long alignment, vm_paddr_t boundary)
1690 {
1691 struct vm_freelist *fl;
1692 vm_page_t m_ret;
1693 vm_paddr_t pa, pa_end, size;
1694 int oind, order, pind;
1695
1696 KASSERT(npages > 0, ("npages is 0"));
1697 KASSERT(powerof2(alignment), ("alignment is not a power of 2"));
1698 KASSERT(powerof2(boundary), ("boundary is not a power of 2"));
1699 /* Compute the queue that is the best fit for npages. */
1700 order = flsl(npages - 1);
1701 /* Search for a large enough free block. */
1702 size = npages << PAGE_SHIFT;
1703 for (oind = order; oind < VM_NFREEORDER; oind++) {
1704 for (pind = vm_default_freepool; pind < VM_NFREEPOOL; pind++) {
1705 fl = (*queues)[pind];
1706 TAILQ_FOREACH(m_ret, &fl[oind].pl, plinks.q) {
1707 /*
1708 * Determine if the address range starting at pa
1709 * is within the given range, satisfies the
1710 * given alignment, and does not cross the given
1711 * boundary.
1712 */
1713 pa = VM_PAGE_TO_PHYS(m_ret);
1714 pa_end = pa + size;
1715 if (low <= pa && pa_end <= high &&
1716 vm_addr_ok(pa, size, alignment, boundary))
1717 return (m_ret);
1718 }
1719 }
1720 }
1721 if (order < VM_NFREEORDER)
1722 return (NULL);
1723 /* Search for a long-enough sequence of max-order blocks. */
1724 for (pind = vm_default_freepool; pind < VM_NFREEPOOL; pind++) {
1725 fl = (*queues)[pind];
1726 m_ret = vm_phys_find_freelist_contig(fl, npages,
1727 low, high, alignment, boundary);
1728 if (m_ret != NULL)
1729 return (m_ret);
1730 }
1731 return (NULL);
1732 }
1733
1734 /*
1735 * Allocate a contiguous set of physical pages of the given size
1736 * "npages" from the free lists. All of the physical pages must be at
1737 * or above the given physical address "low" and below the given
1738 * physical address "high". The given value "alignment" determines the
1739 * alignment of the first physical page in the set. If the given value
1740 * "boundary" is non-zero, then the set of physical pages cannot cross
1741 * any physical address boundary that is a multiple of that value. Both
1742 * "alignment" and "boundary" must be a power of two. Sets the pool
1743 * field to DEFAULT in the first allocated page.
1744 */
1745 vm_page_t
vm_phys_alloc_contig(int domain,u_long npages,vm_paddr_t low,vm_paddr_t high,u_long alignment,vm_paddr_t boundary)1746 vm_phys_alloc_contig(int domain, u_long npages, vm_paddr_t low, vm_paddr_t high,
1747 u_long alignment, vm_paddr_t boundary)
1748 {
1749 vm_paddr_t pa_end, pa_start;
1750 struct vm_freelist *fl;
1751 vm_page_t m, m_run;
1752 struct vm_phys_seg *seg;
1753 struct vm_freelist (*queues)[VM_NFREEPOOL][VM_NFREEORDER_MAX];
1754 int oind, segind;
1755
1756 KASSERT(npages > 0, ("npages is 0"));
1757 KASSERT(powerof2(alignment), ("alignment is not a power of 2"));
1758 KASSERT(powerof2(boundary), ("boundary is not a power of 2"));
1759 vm_domain_free_assert_locked(VM_DOMAIN(domain));
1760 if (low >= high)
1761 return (NULL);
1762 queues = NULL;
1763 m_run = NULL;
1764 for (segind = vm_phys_nsegs - 1; segind >= 0; segind--) {
1765 seg = &vm_phys_segs[segind];
1766 if (seg->start >= high || seg->domain != domain)
1767 continue;
1768 if (low >= seg->end)
1769 break;
1770 if (low <= seg->start)
1771 pa_start = seg->start;
1772 else
1773 pa_start = low;
1774 if (high < seg->end)
1775 pa_end = high;
1776 else
1777 pa_end = seg->end;
1778 if (pa_end - pa_start < ptoa(npages))
1779 continue;
1780 /*
1781 * If a previous segment led to a search using
1782 * the same free lists as would this segment, then
1783 * we've actually already searched within this
1784 * too. So skip it.
1785 */
1786 if (seg->free_queues == queues)
1787 continue;
1788 queues = seg->free_queues;
1789 m_run = vm_phys_find_queues_contig(queues, npages,
1790 low, high, alignment, boundary);
1791 if (m_run != NULL)
1792 break;
1793 }
1794 if (m_run == NULL)
1795 return (NULL);
1796
1797 /* Allocate pages from the page-range found. */
1798 for (m = m_run; m < &m_run[npages]; m = &m[1 << oind]) {
1799 fl = (*queues)[m->pool];
1800 oind = m->order;
1801 vm_freelist_rem(fl, m, oind);
1802 vm_phys_finish_init(m, oind);
1803 }
1804 /* Return excess pages to the free lists. */
1805 fl = (*queues)[VM_FREEPOOL_DEFAULT];
1806 vm_phys_enq_range(&m_run[npages], m - &m_run[npages], fl,
1807 VM_FREEPOOL_DEFAULT, 0);
1808
1809 /* Return page verified to satisfy conditions of request. */
1810 pa_start = VM_PAGE_TO_PHYS(m_run);
1811 KASSERT(low <= pa_start,
1812 ("memory allocated below minimum requested range"));
1813 KASSERT(pa_start + ptoa(npages) <= high,
1814 ("memory allocated above maximum requested range"));
1815 seg = &vm_phys_segs[m_run->segind];
1816 KASSERT(seg->domain == domain,
1817 ("memory not allocated from specified domain"));
1818 KASSERT(vm_addr_ok(pa_start, ptoa(npages), alignment, boundary),
1819 ("memory alignment/boundary constraints not satisfied"));
1820 return (m_run);
1821 }
1822
1823 /*
1824 * Return the index of the first unused slot which may be the terminating
1825 * entry.
1826 */
1827 static int
vm_phys_avail_count(void)1828 vm_phys_avail_count(void)
1829 {
1830 int i;
1831
1832 for (i = 0; i < PHYS_AVAIL_COUNT; i += 2)
1833 if (phys_avail[i] == 0 && phys_avail[i + 1] == 0)
1834 return (i);
1835 panic("Improperly terminated phys_avail[]");
1836 }
1837
1838 /*
1839 * Assert that a phys_avail entry is valid.
1840 */
1841 static void
vm_phys_avail_check(int i)1842 vm_phys_avail_check(int i)
1843 {
1844 if (i % 2 != 0)
1845 panic("Chunk start index %d is not even.", i);
1846 if (phys_avail[i] & PAGE_MASK)
1847 panic("Unaligned phys_avail[%d]: %#jx", i,
1848 (intmax_t)phys_avail[i]);
1849 if (phys_avail[i + 1] & PAGE_MASK)
1850 panic("Unaligned phys_avail[%d + 1]: %#jx", i,
1851 (intmax_t)phys_avail[i + 1]);
1852 if (phys_avail[i + 1] < phys_avail[i])
1853 panic("phys_avail[%d]: start %#jx > end %#jx", i,
1854 (intmax_t)phys_avail[i], (intmax_t)phys_avail[i + 1]);
1855 }
1856
1857 /*
1858 * Return the index of an overlapping phys_avail entry or -1.
1859 */
1860 #ifdef NUMA
1861 static int
vm_phys_avail_find(vm_paddr_t pa)1862 vm_phys_avail_find(vm_paddr_t pa)
1863 {
1864 int i;
1865
1866 for (i = 0; phys_avail[i + 1]; i += 2)
1867 if (phys_avail[i] <= pa && phys_avail[i + 1] > pa)
1868 return (i);
1869 return (-1);
1870 }
1871 #endif
1872
1873 /*
1874 * Return the index of the largest entry.
1875 */
1876 int
vm_phys_avail_largest(void)1877 vm_phys_avail_largest(void)
1878 {
1879 vm_paddr_t sz, largesz;
1880 int largest;
1881 int i;
1882
1883 largest = 0;
1884 largesz = 0;
1885 for (i = 0; phys_avail[i + 1]; i += 2) {
1886 sz = vm_phys_avail_size(i);
1887 if (sz > largesz) {
1888 largesz = sz;
1889 largest = i;
1890 }
1891 }
1892
1893 return (largest);
1894 }
1895
1896 vm_paddr_t
vm_phys_avail_size(int i)1897 vm_phys_avail_size(int i)
1898 {
1899
1900 return (phys_avail[i + 1] - phys_avail[i]);
1901 }
1902
1903 /*
1904 * Split a chunk in phys_avail[] at the address 'pa'.
1905 *
1906 * 'pa' must be within a chunk (slots i and i + 1) or one of its boundaries.
1907 * Returns zero on actual split, in which case the two new chunks occupy slots
1908 * i to i + 3, else EJUSTRETURN if 'pa' was one of the boundaries (and no split
1909 * actually occurred) else ENOSPC if there are not enough slots in phys_avail[]
1910 * to represent the additional chunk caused by the split.
1911 */
1912 static int
vm_phys_avail_split(vm_paddr_t pa,int i)1913 vm_phys_avail_split(vm_paddr_t pa, int i)
1914 {
1915 int cnt;
1916
1917 vm_phys_avail_check(i);
1918 if (pa < phys_avail[i] || pa > phys_avail[i + 1])
1919 panic("%s: Address %#jx not in range at slot %d [%#jx;%#jx].",
1920 __func__, (uintmax_t)pa, i,
1921 (uintmax_t)phys_avail[i], (uintmax_t)phys_avail[i + 1]);
1922 if (pa == phys_avail[i] || pa == phys_avail[i + 1])
1923 return (EJUSTRETURN);
1924 cnt = vm_phys_avail_count();
1925 if (cnt >= PHYS_AVAIL_ENTRIES)
1926 return (ENOSPC);
1927 memmove(&phys_avail[i + 2], &phys_avail[i],
1928 (cnt - i) * sizeof(phys_avail[0]));
1929 phys_avail[i + 1] = pa;
1930 phys_avail[i + 2] = pa;
1931 vm_phys_avail_check(i);
1932 vm_phys_avail_check(i+2);
1933
1934 return (0);
1935 }
1936
1937 /*
1938 * Check if a given physical address can be included as part of a crash dump.
1939 */
1940 bool
vm_phys_is_dumpable(vm_paddr_t pa)1941 vm_phys_is_dumpable(vm_paddr_t pa)
1942 {
1943 vm_page_t m;
1944 int i;
1945
1946 if ((m = vm_phys_paddr_to_vm_page(pa)) != NULL)
1947 return ((m->flags & PG_NODUMP) == 0);
1948
1949 for (i = 0; dump_avail[i] != 0 || dump_avail[i + 1] != 0; i += 2) {
1950 if (pa >= dump_avail[i] && pa < dump_avail[i + 1])
1951 return (true);
1952 }
1953 return (false);
1954 }
1955
1956 void
vm_phys_early_add_seg(vm_paddr_t start,vm_paddr_t end)1957 vm_phys_early_add_seg(vm_paddr_t start, vm_paddr_t end)
1958 {
1959 struct vm_phys_seg *seg;
1960
1961 if (vm_phys_early_nsegs == -1)
1962 panic("%s: called after initialization", __func__);
1963 if (vm_phys_early_nsegs == nitems(vm_phys_early_segs))
1964 panic("%s: ran out of early segments", __func__);
1965
1966 seg = &vm_phys_early_segs[vm_phys_early_nsegs++];
1967 seg->start = start;
1968 seg->end = end;
1969 }
1970
1971 /*
1972 * This routine allocates NUMA node specific memory before the page
1973 * allocator is bootstrapped.
1974 */
1975 vm_paddr_t
vm_phys_early_alloc(int domain,size_t alloc_size)1976 vm_phys_early_alloc(int domain, size_t alloc_size)
1977 {
1978 #ifdef NUMA
1979 int mem_index;
1980 #endif
1981 int i, biggestone;
1982 vm_paddr_t pa, mem_start, mem_end, size, biggestsize, align;
1983
1984 KASSERT(domain == -1 || (domain >= 0 && domain < vm_ndomains),
1985 ("%s: invalid domain index %d", __func__, domain));
1986
1987 /*
1988 * Search the mem_affinity array for the biggest address
1989 * range in the desired domain. This is used to constrain
1990 * the phys_avail selection below.
1991 */
1992 biggestsize = 0;
1993 mem_start = 0;
1994 mem_end = -1;
1995 #ifdef NUMA
1996 mem_index = 0;
1997 if (mem_affinity != NULL) {
1998 for (i = 0;; i++) {
1999 size = mem_affinity[i].end - mem_affinity[i].start;
2000 if (size == 0)
2001 break;
2002 if (domain != -1 && mem_affinity[i].domain != domain)
2003 continue;
2004 if (size > biggestsize) {
2005 mem_index = i;
2006 biggestsize = size;
2007 }
2008 }
2009 mem_start = mem_affinity[mem_index].start;
2010 mem_end = mem_affinity[mem_index].end;
2011 }
2012 #endif
2013
2014 /*
2015 * Now find biggest physical segment in within the desired
2016 * numa domain.
2017 */
2018 biggestsize = 0;
2019 biggestone = 0;
2020 for (i = 0; phys_avail[i + 1] != 0; i += 2) {
2021 /* skip regions that are out of range */
2022 if (phys_avail[i+1] - alloc_size < mem_start ||
2023 phys_avail[i+1] > mem_end)
2024 continue;
2025 size = vm_phys_avail_size(i);
2026 if (size > biggestsize) {
2027 biggestone = i;
2028 biggestsize = size;
2029 }
2030 }
2031 alloc_size = round_page(alloc_size);
2032
2033 /*
2034 * Grab single pages from the front to reduce fragmentation.
2035 */
2036 if (alloc_size == PAGE_SIZE) {
2037 pa = phys_avail[biggestone];
2038 phys_avail[biggestone] += PAGE_SIZE;
2039 vm_phys_avail_check(biggestone);
2040 return (pa);
2041 }
2042
2043 /*
2044 * Naturally align large allocations.
2045 */
2046 align = phys_avail[biggestone + 1] & (alloc_size - 1);
2047 if (alloc_size + align > biggestsize)
2048 panic("cannot find a large enough size\n");
2049 if (align != 0 &&
2050 vm_phys_avail_split(phys_avail[biggestone + 1] - align,
2051 biggestone) != 0)
2052 /* Wasting memory. */
2053 phys_avail[biggestone + 1] -= align;
2054
2055 phys_avail[biggestone + 1] -= alloc_size;
2056 vm_phys_avail_check(biggestone);
2057 pa = phys_avail[biggestone + 1];
2058 return (pa);
2059 }
2060
2061 void
vm_phys_early_startup(void)2062 vm_phys_early_startup(void)
2063 {
2064 struct vm_phys_seg *seg;
2065 int i;
2066
2067 if (phys_avail[1] == 0)
2068 panic("phys_avail[] is empty");
2069
2070 for (i = 0; phys_avail[i + 1] != 0; i += 2) {
2071 phys_avail[i] = round_page(phys_avail[i]);
2072 phys_avail[i + 1] = trunc_page(phys_avail[i + 1]);
2073 }
2074
2075 for (i = 0; i < vm_phys_early_nsegs; i++) {
2076 seg = &vm_phys_early_segs[i];
2077 vm_phys_add_seg(seg->start, seg->end);
2078 }
2079 vm_phys_early_nsegs = -1;
2080
2081 #ifdef NUMA
2082 /* Force phys_avail to be split by domain. */
2083 if (mem_affinity != NULL) {
2084 int idx;
2085
2086 for (i = 0; mem_affinity[i].end != 0; i++) {
2087 idx = vm_phys_avail_find(mem_affinity[i].start);
2088 if (idx != -1)
2089 vm_phys_avail_split(mem_affinity[i].start, idx);
2090 idx = vm_phys_avail_find(mem_affinity[i].end);
2091 if (idx != -1)
2092 vm_phys_avail_split(mem_affinity[i].end, idx);
2093 }
2094 }
2095 #endif
2096 }
2097
2098 #ifdef DDB
2099 /*
2100 * Show the number of physical pages in each of the free lists.
2101 */
DB_SHOW_COMMAND_FLAGS(freepages,db_show_freepages,DB_CMD_MEMSAFE)2102 DB_SHOW_COMMAND_FLAGS(freepages, db_show_freepages, DB_CMD_MEMSAFE)
2103 {
2104 struct vm_freelist *fl;
2105 int flind, oind, pind, dom;
2106
2107 for (dom = 0; dom < vm_ndomains; dom++) {
2108 db_printf("DOMAIN: %d\n", dom);
2109 for (flind = 0; flind < vm_nfreelists; flind++) {
2110 db_printf("FREE LIST %d:\n"
2111 "\n ORDER (SIZE) | NUMBER"
2112 "\n ", flind);
2113 for (pind = 0; pind < VM_NFREEPOOL; pind++)
2114 db_printf(" | POOL %d", pind);
2115 db_printf("\n-- ");
2116 for (pind = 0; pind < VM_NFREEPOOL; pind++)
2117 db_printf("-- -- ");
2118 db_printf("--\n");
2119 for (oind = VM_NFREEORDER - 1; oind >= 0; oind--) {
2120 db_printf(" %2.2d (%6.6dK)", oind,
2121 1 << (PAGE_SHIFT - 10 + oind));
2122 for (pind = 0; pind < VM_NFREEPOOL; pind++) {
2123 fl = vm_phys_free_queues[dom][flind][pind];
2124 db_printf(" | %6.6d", fl[oind].lcnt);
2125 }
2126 db_printf("\n");
2127 }
2128 db_printf("\n");
2129 }
2130 db_printf("\n");
2131 }
2132 }
2133 #endif
2134