source: mainline/kernel/generic/src/mm/frame.c@ 597fa24

Last change on this file since 597fa24 was 597fa24, checked in by Jiří Zárevúcky <zarevucky.jiri@…>, 3 months ago

Enable static initialization of kernel synchronization primitives

  • Property mode set to 100644
File size: 36.8 KB
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1/*
2 * Copyright (c) 2001-2005 Jakub Jermar
3 * Copyright (c) 2005 Sergey Bondari
4 * Copyright (c) 2009 Martin Decky
5 * All rights reserved.
6 *
7 * Redistribution and use in source and binary forms, with or without
8 * modification, are permitted provided that the following conditions
9 * are met:
10 *
11 * - Redistributions of source code must retain the above copyright
12 * notice, this list of conditions and the following disclaimer.
13 * - Redistributions in binary form must reproduce the above copyright
14 * notice, this list of conditions and the following disclaimer in the
15 * documentation and/or other materials provided with the distribution.
16 * - The name of the author may not be used to endorse or promote products
17 * derived from this software without specific prior written permission.
18 *
19 * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
20 * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
21 * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
22 * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT,
23 * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT
24 * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
25 * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
26 * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
27 * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF
28 * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
29 */
30
31/** @addtogroup kernel_generic_mm
32 * @{
33 */
34
35/**
36 * @file
37 * @brief Physical frame allocator.
38 *
39 * This file contains the physical frame allocator and memory zone management.
40 * The frame allocator is built on top of the two-level bitmap structure.
41 *
42 */
43
44#include <typedefs.h>
45#include <mm/frame.h>
46#include <mm/reserve.h>
47#include <mm/as.h>
48#include <panic.h>
49#include <assert.h>
50#include <adt/list.h>
51#include <synch/mutex.h>
52#include <synch/condvar.h>
53#include <arch/asm.h>
54#include <arch.h>
55#include <stdio.h>
56#include <log.h>
57#include <align.h>
58#include <mm/slab.h>
59#include <bitops.h>
60#include <macros.h>
61#include <config.h>
62#include <str.h>
63#include <proc/thread.h> /* THREAD */
64
65zones_t zones = {
66 .count = 0,
67 .lock = IRQ_SPINLOCK_INITIALIZER("frame.zones.lock"),
68};
69
70/*
71 * Synchronization primitives used to sleep when there is no memory
72 * available.
73 */
74static MUTEX_INITIALIZE(mem_avail_mtx, MUTEX_ACTIVE);
75static CONDVAR_INITIALIZE(mem_avail_cv);
76static size_t mem_avail_req = 0; /**< Number of frames requested. */
77static size_t mem_avail_gen = 0; /**< Generation counter. */
78
79/** Initialize frame structure.
80 *
81 * @param frame Frame structure to be initialized.
82 *
83 */
84_NO_TRACE static void frame_initialize(frame_t *frame)
85{
86 frame->refcount = 0;
87 frame->parent = NULL;
88}
89
90/*
91 * Zones functions
92 */
93
94/** Insert-sort zone into zones list.
95 *
96 * Assume interrupts are disabled and zones lock is
97 * locked.
98 *
99 * @param base Base frame of the newly inserted zone.
100 * @param count Number of frames of the newly inserted zone.
101 *
102 * @return Zone number on success, -1 on error.
103 *
104 */
105_NO_TRACE static size_t zones_insert_zone(pfn_t base, size_t count,
106 zone_flags_t flags)
107{
108 if (zones.count + 1 == ZONES_MAX) {
109 log(LF_OTHER, LVL_ERROR, "Maximum zone count %u exceeded!",
110 ZONES_MAX);
111 return (size_t) -1;
112 }
113
114 size_t i;
115 for (i = 0; i < zones.count; i++) {
116 /* Check for overlap */
117 if (overlaps(zones.info[i].base, zones.info[i].count,
118 base, count)) {
119
120 /*
121 * If the overlaping zones are of the same type
122 * and the new zone is completely within the previous
123 * one, then quietly ignore the new zone.
124 *
125 */
126
127 if ((zones.info[i].flags != flags) ||
128 (!iswithin(zones.info[i].base, zones.info[i].count,
129 base, count))) {
130 log(LF_OTHER, LVL_WARN,
131 "Zone (%p, %p) overlaps "
132 "with previous zone (%p %p)!",
133 (void *) PFN2ADDR(base), (void *) PFN2ADDR(count),
134 (void *) PFN2ADDR(zones.info[i].base),
135 (void *) PFN2ADDR(zones.info[i].count));
136 }
137
138 return (size_t) -1;
139 }
140 if (base < zones.info[i].base)
141 break;
142 }
143
144 /* Move other zones up */
145 for (size_t j = zones.count; j > i; j--)
146 zones.info[j] = zones.info[j - 1];
147
148 zones.count++;
149
150 return i;
151}
152
153/** Get total available frames.
154 *
155 * Assume interrupts are disabled and zones lock is
156 * locked.
157 *
158 * @return Total number of available frames.
159 *
160 */
161_NO_TRACE static size_t frame_total_free_get_internal(void)
162{
163 size_t total = 0;
164 size_t i;
165
166 for (i = 0; i < zones.count; i++)
167 total += zones.info[i].free_count;
168
169 return total;
170}
171
172_NO_TRACE size_t frame_total_free_get(void)
173{
174 size_t total;
175
176 irq_spinlock_lock(&zones.lock, true);
177 total = frame_total_free_get_internal();
178 irq_spinlock_unlock(&zones.lock, true);
179
180 return total;
181}
182
183/** Find a zone with a given frames.
184 *
185 * Assume interrupts are disabled and zones lock is
186 * locked.
187 *
188 * @param frame Frame number contained in zone.
189 * @param count Number of frames to look for.
190 * @param hint Used as zone hint.
191 *
192 * @return Zone index or -1 if not found.
193 *
194 */
195_NO_TRACE size_t find_zone(pfn_t frame, size_t count, size_t hint)
196{
197 if (hint >= zones.count)
198 hint = 0;
199
200 size_t i = hint;
201 do {
202 if ((zones.info[i].base <= frame) &&
203 (zones.info[i].base + zones.info[i].count >= frame + count))
204 return i;
205
206 i++;
207 if (i >= zones.count)
208 i = 0;
209
210 } while (i != hint);
211
212 return (size_t) -1;
213}
214
215/** @return True if zone can allocate specified number of frames */
216_NO_TRACE static bool zone_can_alloc(zone_t *zone, size_t count,
217 pfn_t constraint)
218{
219 /*
220 * The function bitmap_allocate_range() does not modify
221 * the bitmap if the last argument is NULL.
222 */
223
224 return ((zone->flags & ZONE_AVAILABLE) &&
225 bitmap_allocate_range(&zone->bitmap, count, zone->base,
226 FRAME_LOWPRIO, constraint, NULL));
227}
228
229/** Find a zone that can allocate specified number of frames
230 *
231 * This function searches among all zones. Assume interrupts are
232 * disabled and zones lock is locked.
233 *
234 * @param count Number of free frames we are trying to find.
235 * @param flags Required flags of the zone.
236 * @param constraint Indication of bits that cannot be set in the
237 * physical frame number of the first allocated frame.
238 * @param hint Preferred zone.
239 *
240 * @return Zone that can allocate specified number of frames.
241 * @return -1 if no zone can satisfy the request.
242 *
243 */
244_NO_TRACE static size_t find_free_zone_all(size_t count, zone_flags_t flags,
245 pfn_t constraint, size_t hint)
246{
247 for (size_t pos = 0; pos < zones.count; pos++) {
248 size_t i = (pos + hint) % zones.count;
249
250 /* Check whether the zone meets the search criteria. */
251 if (!ZONE_FLAGS_MATCH(zones.info[i].flags, flags))
252 continue;
253
254 /* Check if the zone can satisfy the allocation request. */
255 if (zone_can_alloc(&zones.info[i], count, constraint))
256 return i;
257 }
258
259 return (size_t) -1;
260}
261
262/** Check if frame range priority memory
263 *
264 * @param pfn Starting frame.
265 * @param count Number of frames.
266 *
267 * @return True if the range contains only priority memory.
268 *
269 */
270_NO_TRACE static bool is_high_priority(pfn_t base, size_t count)
271{
272 return (base + count <= FRAME_LOWPRIO);
273}
274
275/** Find a zone that can allocate specified number of frames
276 *
277 * This function ignores zones that contain only high-priority
278 * memory. Assume interrupts are disabled and zones lock is locked.
279 *
280 * @param count Number of free frames we are trying to find.
281 * @param flags Required flags of the zone.
282 * @param constraint Indication of bits that cannot be set in the
283 * physical frame number of the first allocated frame.
284 * @param hint Preferred zone.
285 *
286 * @return Zone that can allocate specified number of frames.
287 * @return -1 if no low-priority zone can satisfy the request.
288 *
289 */
290_NO_TRACE static size_t find_free_zone_lowprio(size_t count, zone_flags_t flags,
291 pfn_t constraint, size_t hint)
292{
293 for (size_t pos = 0; pos < zones.count; pos++) {
294 size_t i = (pos + hint) % zones.count;
295
296 /* Skip zones containing only high-priority memory. */
297 if (is_high_priority(zones.info[i].base, zones.info[i].count))
298 continue;
299
300 /* Check whether the zone meets the search criteria. */
301 if (!ZONE_FLAGS_MATCH(zones.info[i].flags, flags))
302 continue;
303
304 /* Check if the zone can satisfy the allocation request. */
305 if (zone_can_alloc(&zones.info[i], count, constraint))
306 return i;
307 }
308
309 return (size_t) -1;
310}
311
312/** Find a zone that can allocate specified number of frames
313 *
314 * Assume interrupts are disabled and zones lock is
315 * locked.
316 *
317 * @param count Number of free frames we are trying to find.
318 * @param flags Required flags of the target zone.
319 * @param constraint Indication of bits that cannot be set in the
320 * physical frame number of the first allocated frame.
321 * @param hint Preferred zone.
322 *
323 * @return Zone that can allocate specified number of frames.
324 * @return -1 if no zone can satisfy the request.
325 *
326 */
327_NO_TRACE static size_t find_free_zone(size_t count, zone_flags_t flags,
328 pfn_t constraint, size_t hint)
329{
330 if (hint >= zones.count)
331 hint = 0;
332
333 /*
334 * Prefer zones with low-priority memory over
335 * zones with high-priority memory.
336 */
337
338 size_t znum = find_free_zone_lowprio(count, flags, constraint, hint);
339 if (znum != (size_t) -1)
340 return znum;
341
342 /* Take all zones into account */
343 return find_free_zone_all(count, flags, constraint, hint);
344}
345
346/*
347 * Zone functions
348 */
349
350/** Return frame from zone. */
351_NO_TRACE static frame_t *zone_get_frame(zone_t *zone, size_t index)
352{
353 assert(index < zone->count);
354
355 return &zone->frames[index];
356}
357
358/** Allocate frame in particular zone.
359 *
360 * Assume zone is locked and is available for allocation.
361 * Panics if allocation is impossible.
362 *
363 * @param zone Zone to allocate from.
364 * @param count Number of frames to allocate
365 * @param constraint Indication of bits that cannot be set in the
366 * physical frame number of the first allocated frame.
367 *
368 * @return Frame index in zone.
369 *
370 */
371_NO_TRACE static size_t zone_frame_alloc(zone_t *zone, size_t count,
372 pfn_t constraint)
373{
374 assert(zone->flags & ZONE_AVAILABLE);
375 assert(zone->free_count >= count);
376
377 /* Allocate frames from zone */
378 size_t index = (size_t) -1;
379 int avail = bitmap_allocate_range(&zone->bitmap, count, zone->base,
380 FRAME_LOWPRIO, constraint, &index);
381
382 (void) avail;
383 assert(avail);
384 assert(index != (size_t) -1);
385
386 /* Update frame reference count */
387 for (size_t i = 0; i < count; i++) {
388 frame_t *frame = zone_get_frame(zone, index + i);
389
390 assert(frame->refcount == 0);
391 frame->refcount = 1;
392 }
393
394 /* Update zone information. */
395 zone->free_count -= count;
396 zone->busy_count += count;
397
398 return index;
399}
400
401/** Free frame from zone.
402 *
403 * Assume zone is locked and is available for deallocation.
404 *
405 * @param zone Pointer to zone from which the frame is to be freed.
406 * @param index Frame index relative to zone.
407 *
408 * @return Number of freed frames.
409 *
410 */
411_NO_TRACE static size_t zone_frame_free(zone_t *zone, size_t index)
412{
413 assert(zone->flags & ZONE_AVAILABLE);
414
415 frame_t *frame = zone_get_frame(zone, index);
416 assert(frame->refcount > 0);
417
418 if (!--frame->refcount) {
419 assert(zone->busy_count > 0);
420
421 bitmap_set(&zone->bitmap, index, 0);
422
423 /* Update zone information. */
424 zone->free_count++;
425 zone->busy_count--;
426
427 return 1;
428 }
429
430 return 0;
431}
432
433/** Mark frame in zone unavailable to allocation. */
434_NO_TRACE static void zone_mark_unavailable(zone_t *zone, size_t index)
435{
436 assert(zone->flags & ZONE_AVAILABLE);
437
438 frame_t *frame = zone_get_frame(zone, index);
439 assert(frame->refcount <= 1);
440
441 if (frame->refcount > 0)
442 return;
443
444 assert(zone->free_count > 0);
445
446 frame->refcount = 1;
447 bitmap_set_range(&zone->bitmap, index, 1);
448
449 zone->free_count--;
450 reserve_force_alloc(1);
451}
452
453/** Mark frame in zone available to allocation. */
454_NO_TRACE static void zone_mark_available(zone_t *zone, size_t index)
455{
456 assert(zone->flags & ZONE_AVAILABLE);
457
458 frame_t *frame = zone_get_frame(zone, index);
459 assert(frame->refcount == 1);
460
461 frame->refcount = 0;
462 bitmap_set_range(&zone->bitmap, index, 0);
463
464 zone->free_count++;
465}
466
467/** Merge two zones.
468 *
469 * Assume z1 & z2 are locked and compatible and zones lock is
470 * locked.
471 *
472 * @param z1 First zone to merge.
473 * @param z2 Second zone to merge.
474 * @param old_z1 Original data of the first zone.
475 * @param confdata Merged zone configuration data.
476 *
477 */
478_NO_TRACE static void zone_merge_internal(size_t z1, size_t z2, zone_t *old_z1,
479 void *confdata)
480{
481 assert(zones.info[z1].flags & ZONE_AVAILABLE);
482 assert(zones.info[z2].flags & ZONE_AVAILABLE);
483 assert(zones.info[z1].flags == zones.info[z2].flags);
484 assert(zones.info[z1].base < zones.info[z2].base);
485 assert(!overlaps(zones.info[z1].base, zones.info[z1].count,
486 zones.info[z2].base, zones.info[z2].count));
487
488 /* Difference between zone bases */
489 pfn_t base_diff = zones.info[z2].base - zones.info[z1].base;
490 pfn_t gap = base_diff - zones.info[z1].count;
491
492 zones.info[z1].count = base_diff + zones.info[z2].count;
493 zones.info[z1].free_count += zones.info[z2].free_count;
494 zones.info[z1].busy_count += zones.info[z2].busy_count;
495
496 bitmap_initialize(&zones.info[z1].bitmap, zones.info[z1].count,
497 confdata + (sizeof(frame_t) * zones.info[z1].count));
498 bitmap_clear_range(&zones.info[z1].bitmap, 0, zones.info[z1].count);
499
500 zones.info[z1].frames = (frame_t *) confdata;
501
502 /*
503 * Copy frames and bits from both zones to preserve parents, etc.
504 */
505
506 for (size_t i = 0; i < old_z1->count; i++) {
507 bitmap_set(&zones.info[z1].bitmap, i,
508 bitmap_get(&old_z1->bitmap, i));
509 zones.info[z1].frames[i] = old_z1->frames[i];
510 }
511
512 for (size_t i = 0; i < zones.info[z2].count; i++) {
513 bitmap_set(&zones.info[z1].bitmap, base_diff + i,
514 bitmap_get(&zones.info[z2].bitmap, i));
515 zones.info[z1].frames[base_diff + i] =
516 zones.info[z2].frames[i];
517 }
518
519 /*
520 * Mark the gap between the original zones as unavailable.
521 */
522
523 for (size_t i = 0; i < gap; i++) {
524 frame_initialize(&zones.info[z1].frames[old_z1->count + i]);
525 zone_mark_unavailable(&zones.info[z1], old_z1->count + i);
526 }
527}
528
529/** Return old configuration frames into the zone.
530 *
531 * We have two cases:
532 * - The configuration data is outside the zone
533 * -> do nothing (perhaps call frame_free?)
534 * - The configuration data was created by zone_create
535 * or updated by reduce_region -> free every frame
536 *
537 * @param znum The actual zone where freeing should occur.
538 * @param pfn Old zone configuration frame.
539 * @param count Old zone frame count.
540 *
541 */
542_NO_TRACE static void return_config_frames(size_t znum, pfn_t pfn, size_t count)
543{
544 assert(zones.info[znum].flags & ZONE_AVAILABLE);
545
546 size_t cframes = SIZE2FRAMES(zone_conf_size(count));
547
548 if ((pfn < zones.info[znum].base) ||
549 (pfn >= zones.info[znum].base + zones.info[znum].count))
550 return;
551
552 for (size_t i = 0; i < cframes; i++)
553 zone_mark_available(&zones.info[znum],
554 pfn - zones.info[znum].base + i);
555}
556
557/** Merge zones z1 and z2.
558 *
559 * The merged zones must be 2 zones with no zone existing in between
560 * (which means that z2 = z1 + 1). Both zones must be available zones
561 * with the same flags.
562 *
563 * When you create a new zone, the frame allocator configuration does
564 * not to be 2^order size. Once the allocator is running it is no longer
565 * possible, merged configuration data occupies more space :-/
566 *
567 */
568bool zone_merge(size_t z1, size_t z2)
569{
570 irq_spinlock_lock(&zones.lock, true);
571
572 bool ret = true;
573
574 /*
575 * We can join only 2 zones with none existing inbetween,
576 * the zones have to be available and with the same
577 * set of flags
578 */
579 if ((z1 >= zones.count) || (z2 >= zones.count) || (z2 - z1 != 1) ||
580 (zones.info[z1].flags != zones.info[z2].flags)) {
581 ret = false;
582 goto errout;
583 }
584
585 pfn_t cframes = SIZE2FRAMES(zone_conf_size(
586 zones.info[z2].base - zones.info[z1].base +
587 zones.info[z2].count));
588
589 /* Allocate merged zone data inside one of the zones */
590 pfn_t pfn;
591 if (zone_can_alloc(&zones.info[z1], cframes, 0)) {
592 pfn = zones.info[z1].base +
593 zone_frame_alloc(&zones.info[z1], cframes, 0);
594 } else if (zone_can_alloc(&zones.info[z2], cframes, 0)) {
595 pfn = zones.info[z2].base +
596 zone_frame_alloc(&zones.info[z2], cframes, 0);
597 } else {
598 ret = false;
599 goto errout;
600 }
601
602 /* Preserve original data from z1 */
603 zone_t old_z1 = zones.info[z1];
604
605 /* Do zone merging */
606 zone_merge_internal(z1, z2, &old_z1, (void *) PA2KA(PFN2ADDR(pfn)));
607
608 /* Subtract zone information from busy frames */
609 zones.info[z1].busy_count -= cframes;
610
611 /* Free old zone information */
612 return_config_frames(z1,
613 ADDR2PFN(KA2PA((uintptr_t) old_z1.frames)), old_z1.count);
614 return_config_frames(z1,
615 ADDR2PFN(KA2PA((uintptr_t) zones.info[z2].frames)),
616 zones.info[z2].count);
617
618 /* Move zones down */
619 for (size_t i = z2 + 1; i < zones.count; i++)
620 zones.info[i - 1] = zones.info[i];
621
622 zones.count--;
623
624errout:
625 irq_spinlock_unlock(&zones.lock, true);
626
627 return ret;
628}
629
630/** Merge all mergeable zones into one big zone.
631 *
632 * It is reasonable to do this on systems where
633 * BIOS reports parts in chunks, so that we could
634 * have 1 zone (it's faster).
635 *
636 */
637void zone_merge_all(void)
638{
639 size_t i = 1;
640
641 while (i < zones.count) {
642 if (!zone_merge(i - 1, i))
643 i++;
644 }
645}
646
647/** Create new frame zone.
648 *
649 * @param zone Zone to construct.
650 * @param start Physical address of the first frame within the zone.
651 * @param count Count of frames in zone.
652 * @param flags Zone flags.
653 * @param confdata Configuration data of the zone.
654 *
655 * @return Initialized zone.
656 *
657 */
658_NO_TRACE static void zone_construct(zone_t *zone, pfn_t start, size_t count,
659 zone_flags_t flags, void *confdata)
660{
661 zone->base = start;
662 zone->count = count;
663 zone->flags = flags;
664 zone->free_count = count;
665 zone->busy_count = 0;
666
667 if (flags & ZONE_AVAILABLE) {
668 /*
669 * Initialize frame bitmap (located after the array of
670 * frame_t structures in the configuration space).
671 */
672
673 bitmap_initialize(&zone->bitmap, count, confdata +
674 (sizeof(frame_t) * count));
675 bitmap_clear_range(&zone->bitmap, 0, count);
676
677 /*
678 * Initialize the array of frame_t structures.
679 */
680
681 zone->frames = (frame_t *) confdata;
682
683 for (size_t i = 0; i < count; i++)
684 frame_initialize(&zone->frames[i]);
685 } else {
686 bitmap_initialize(&zone->bitmap, 0, NULL);
687 zone->frames = NULL;
688 }
689}
690
691/** Compute configuration data size for zone.
692 *
693 * @param count Size of zone in frames.
694 *
695 * @return Size of zone configuration info (in bytes).
696 *
697 */
698size_t zone_conf_size(size_t count)
699{
700 return (count * sizeof(frame_t) + bitmap_size(count));
701}
702
703/** Allocate external configuration frames from low memory. */
704pfn_t zone_external_conf_alloc(size_t count)
705{
706 size_t frames = SIZE2FRAMES(zone_conf_size(count));
707
708 return ADDR2PFN((uintptr_t)
709 frame_alloc(frames, FRAME_LOWMEM | FRAME_ATOMIC, 0));
710}
711
712/** Create and add zone to system.
713 *
714 * @param start First frame number (absolute).
715 * @param count Size of zone in frames.
716 * @param confframe Where configuration frames are supposed to be.
717 * Automatically checks that we will not disturb the
718 * kernel and possibly init. If confframe is given
719 * _outside_ this zone, it is expected, that the area is
720 * already marked BUSY and big enough to contain
721 * zone_conf_size() amount of data. If the confframe is
722 * inside the area, the zone free frame information is
723 * modified not to include it.
724 *
725 * @return Zone number or -1 on error.
726 *
727 */
728size_t zone_create(pfn_t start, size_t count, pfn_t confframe,
729 zone_flags_t flags)
730{
731 irq_spinlock_lock(&zones.lock, true);
732
733 if (flags & ZONE_AVAILABLE) { /* Create available zone */
734 /*
735 * Theoretically we could have NULL here, practically make sure
736 * nobody tries to do that. If some platform requires, remove
737 * the assert
738 */
739 assert(confframe != ADDR2PFN((uintptr_t) NULL));
740
741 /* Update the known end of physical memory. */
742 config.physmem_end = max(config.physmem_end, PFN2ADDR(start + count));
743
744 /*
745 * If confframe is supposed to be inside our zone, then make sure
746 * it does not span kernel & init
747 */
748 size_t confcount = SIZE2FRAMES(zone_conf_size(count));
749
750 if ((confframe >= start) && (confframe < start + count)) {
751 for (; confframe < start + count; confframe++) {
752 uintptr_t addr = PFN2ADDR(confframe);
753 if (overlaps(addr, PFN2ADDR(confcount),
754 KA2PA(config.base), config.kernel_size))
755 continue;
756
757 if (overlaps(addr, PFN2ADDR(confcount),
758 KA2PA(ballocs.base), ballocs.size))
759 continue;
760
761 bool overlap = false;
762 for (size_t i = 0; i < init.cnt; i++) {
763 if (overlaps(addr, PFN2ADDR(confcount),
764 init.tasks[i].paddr,
765 init.tasks[i].size)) {
766 overlap = true;
767 break;
768 }
769 }
770
771 if (overlap)
772 continue;
773
774 break;
775 }
776
777 if (confframe >= start + count)
778 panic("Cannot find configuration data for zone.");
779 }
780
781 size_t znum = zones_insert_zone(start, count, flags);
782 if (znum == (size_t) -1) {
783 irq_spinlock_unlock(&zones.lock, true);
784 return (size_t) -1;
785 }
786
787 void *confdata = (void *) PA2KA(PFN2ADDR(confframe));
788 zone_construct(&zones.info[znum], start, count, flags, confdata);
789
790 /* If confdata in zone, mark as unavailable */
791 if ((confframe >= start) && (confframe < start + count)) {
792 for (size_t i = confframe; i < confframe + confcount; i++)
793 zone_mark_unavailable(&zones.info[znum],
794 i - zones.info[znum].base);
795 }
796
797 irq_spinlock_unlock(&zones.lock, true);
798
799 return znum;
800 }
801
802 /* Non-available zone */
803 size_t znum = zones_insert_zone(start, count, flags);
804 if (znum == (size_t) -1) {
805 irq_spinlock_unlock(&zones.lock, true);
806 return (size_t) -1;
807 }
808
809 zone_construct(&zones.info[znum], start, count, flags, NULL);
810
811 irq_spinlock_unlock(&zones.lock, true);
812
813 return znum;
814}
815
816/*
817 * Frame functions
818 */
819
820/** Set parent of frame. */
821void frame_set_parent(pfn_t pfn, void *data, size_t hint)
822{
823 irq_spinlock_lock(&zones.lock, true);
824
825 size_t znum = find_zone(pfn, 1, hint);
826
827 assert(znum != (size_t) -1);
828
829 zone_get_frame(&zones.info[znum],
830 pfn - zones.info[znum].base)->parent = data;
831
832 irq_spinlock_unlock(&zones.lock, true);
833}
834
835void *frame_get_parent(pfn_t pfn, size_t hint)
836{
837 irq_spinlock_lock(&zones.lock, true);
838
839 size_t znum = find_zone(pfn, 1, hint);
840
841 assert(znum != (size_t) -1);
842
843 void *res = zone_get_frame(&zones.info[znum],
844 pfn - zones.info[znum].base)->parent;
845
846 irq_spinlock_unlock(&zones.lock, true);
847
848 return res;
849}
850
851static size_t try_find_zone(size_t count, bool lowmem,
852 pfn_t frame_constraint, size_t hint)
853{
854 if (!lowmem) {
855 size_t znum = find_free_zone(count,
856 ZONE_HIGHMEM | ZONE_AVAILABLE, frame_constraint, hint);
857 if (znum != (size_t) -1)
858 return znum;
859 }
860
861 return find_free_zone(count, ZONE_LOWMEM | ZONE_AVAILABLE,
862 frame_constraint, hint);
863}
864
865/** Allocate frames of physical memory.
866 *
867 * @param count Number of continuous frames to allocate.
868 * @param flags Flags for host zone selection and address processing.
869 * @param constraint Indication of physical address bits that cannot be
870 * set in the address of the first allocated frame.
871 * @param pzone Preferred zone.
872 *
873 * @return Physical address of the allocated frame.
874 *
875 */
876uintptr_t frame_alloc_generic(size_t count, frame_flags_t flags,
877 uintptr_t constraint, size_t *pzone)
878{
879 assert(count > 0);
880
881 size_t hint = pzone ? (*pzone) : 0;
882 pfn_t frame_constraint = ADDR2PFN(constraint);
883
884 /*
885 * If not told otherwise, we must first reserve the memory.
886 */
887 if (!(flags & FRAME_NO_RESERVE))
888 reserve_force_alloc(count);
889
890loop:
891 irq_spinlock_lock(&zones.lock, true);
892
893 // TODO: Print diagnostic if neither is explicitly specified.
894 bool lowmem = (flags & FRAME_LOWMEM) || !(flags & FRAME_HIGHMEM);
895
896 /*
897 * First, find suitable frame zone.
898 */
899 size_t znum = try_find_zone(count, lowmem, frame_constraint, hint);
900
901 /*
902 * If no memory, reclaim some slab memory,
903 * if it does not help, reclaim all.
904 */
905 if ((znum == (size_t) -1) && (!(flags & FRAME_NO_RECLAIM))) {
906 irq_spinlock_unlock(&zones.lock, true);
907 size_t freed = slab_reclaim(0);
908 irq_spinlock_lock(&zones.lock, true);
909
910 if (freed > 0)
911 znum = try_find_zone(count, lowmem,
912 frame_constraint, hint);
913
914 if (znum == (size_t) -1) {
915 irq_spinlock_unlock(&zones.lock, true);
916 freed = slab_reclaim(SLAB_RECLAIM_ALL);
917 irq_spinlock_lock(&zones.lock, true);
918
919 if (freed > 0)
920 znum = try_find_zone(count, lowmem,
921 frame_constraint, hint);
922 }
923 }
924
925 if (znum == (size_t) -1) {
926 if (flags & FRAME_ATOMIC) {
927 irq_spinlock_unlock(&zones.lock, true);
928
929 if (!(flags & FRAME_NO_RESERVE))
930 reserve_free(count);
931
932 return 0;
933 }
934
935 size_t avail = frame_total_free_get_internal();
936
937 irq_spinlock_unlock(&zones.lock, true);
938
939 if (!THREAD)
940 panic("Cannot wait for %zu frames to become available "
941 "(%zu available).", count, avail);
942
943 /*
944 * Sleep until some frames are available again.
945 */
946
947#ifdef CONFIG_DEBUG
948 log(LF_OTHER, LVL_DEBUG,
949 "Thread %" PRIu64 " waiting for %zu frames "
950 "%zu available.", THREAD->tid, count, avail);
951#endif
952
953 /*
954 * Since the mem_avail_mtx is an active mutex, we need to
955 * disable interrupts to prevent deadlock with TLB shootdown.
956 */
957 ipl_t ipl = interrupts_disable();
958 mutex_lock(&mem_avail_mtx);
959
960 if (mem_avail_req > 0)
961 mem_avail_req = min(mem_avail_req, count);
962 else
963 mem_avail_req = count;
964
965 size_t gen = mem_avail_gen;
966
967 while (gen == mem_avail_gen)
968 condvar_wait(&mem_avail_cv, &mem_avail_mtx);
969
970 mutex_unlock(&mem_avail_mtx);
971 interrupts_restore(ipl);
972
973#ifdef CONFIG_DEBUG
974 log(LF_OTHER, LVL_DEBUG, "Thread %" PRIu64 " woken up.",
975 THREAD->tid);
976#endif
977
978 goto loop;
979 }
980
981 pfn_t pfn = zone_frame_alloc(&zones.info[znum], count,
982 frame_constraint) + zones.info[znum].base;
983
984 irq_spinlock_unlock(&zones.lock, true);
985
986 if (pzone)
987 *pzone = znum;
988
989 return PFN2ADDR(pfn);
990}
991
992uintptr_t frame_alloc(size_t count, frame_flags_t flags, uintptr_t constraint)
993{
994 return frame_alloc_generic(count, flags, constraint, NULL);
995}
996
997/** Free frames of physical memory.
998 *
999 * Find respective frame structures for supplied physical frames.
1000 * Decrement each frame reference count. If it drops to zero, mark
1001 * the frames as available.
1002 *
1003 * @param start Physical Address of the first frame to be freed.
1004 * @param count Number of frames to free.
1005 * @param flags Flags to control memory reservation.
1006 *
1007 */
1008void frame_free_generic(uintptr_t start, size_t count, frame_flags_t flags)
1009{
1010 size_t freed = 0;
1011
1012 irq_spinlock_lock(&zones.lock, true);
1013
1014 for (size_t i = 0; i < count; i++) {
1015 /*
1016 * First, find host frame zone for addr.
1017 */
1018 pfn_t pfn = ADDR2PFN(start) + i;
1019 size_t znum = find_zone(pfn, 1, 0);
1020
1021 assert(znum != (size_t) -1);
1022
1023 freed += zone_frame_free(&zones.info[znum],
1024 pfn - zones.info[znum].base);
1025 }
1026
1027 irq_spinlock_unlock(&zones.lock, true);
1028
1029 /*
1030 * Signal that some memory has been freed.
1031 * Since the mem_avail_mtx is an active mutex,
1032 * we need to disable interruptsto prevent deadlock
1033 * with TLB shootdown.
1034 */
1035
1036 ipl_t ipl = interrupts_disable();
1037 mutex_lock(&mem_avail_mtx);
1038
1039 if (mem_avail_req > 0)
1040 mem_avail_req -= min(mem_avail_req, freed);
1041
1042 if (mem_avail_req == 0) {
1043 mem_avail_gen++;
1044 condvar_broadcast(&mem_avail_cv);
1045 }
1046
1047 mutex_unlock(&mem_avail_mtx);
1048 interrupts_restore(ipl);
1049
1050 if (!(flags & FRAME_NO_RESERVE))
1051 reserve_free(freed);
1052}
1053
1054void frame_free(uintptr_t frame, size_t count)
1055{
1056 frame_free_generic(frame, count, 0);
1057}
1058
1059void frame_free_noreserve(uintptr_t frame, size_t count)
1060{
1061 frame_free_generic(frame, count, FRAME_NO_RESERVE);
1062}
1063
1064/** Add reference to frame.
1065 *
1066 * Find respective frame structure for supplied PFN and
1067 * increment frame reference count.
1068 *
1069 * @param pfn Frame number of the frame to be freed.
1070 *
1071 */
1072_NO_TRACE void frame_reference_add(pfn_t pfn)
1073{
1074 irq_spinlock_lock(&zones.lock, true);
1075
1076 /*
1077 * First, find host frame zone for addr.
1078 */
1079 size_t znum = find_zone(pfn, 1, 0);
1080
1081 assert(znum != (size_t) -1);
1082
1083 zones.info[znum].frames[pfn - zones.info[znum].base].refcount++;
1084
1085 irq_spinlock_unlock(&zones.lock, true);
1086}
1087
1088/** Mark given range unavailable in frame zones.
1089 *
1090 */
1091_NO_TRACE void frame_mark_unavailable(pfn_t start, size_t count)
1092{
1093 irq_spinlock_lock(&zones.lock, true);
1094
1095 for (size_t i = 0; i < count; i++) {
1096 size_t znum = find_zone(start + i, 1, 0);
1097
1098 if (znum == (size_t) -1) /* PFN not found */
1099 continue;
1100
1101 zone_mark_unavailable(&zones.info[znum],
1102 start + i - zones.info[znum].base);
1103 }
1104
1105 irq_spinlock_unlock(&zones.lock, true);
1106}
1107
1108/** Initialize physical memory management.
1109 *
1110 */
1111void frame_init(void)
1112{
1113 /* Tell the architecture to create some memory */
1114 frame_low_arch_init();
1115
1116 if (config.cpu_active == 1) {
1117 frame_mark_unavailable(ADDR2PFN(KA2PA(config.base)),
1118 SIZE2FRAMES(config.kernel_size));
1119
1120 for (size_t i = 0; i < init.cnt; i++)
1121 frame_mark_unavailable(ADDR2PFN(init.tasks[i].paddr),
1122 SIZE2FRAMES(init.tasks[i].size));
1123
1124 if (ballocs.size)
1125 frame_mark_unavailable(ADDR2PFN(KA2PA(ballocs.base)),
1126 SIZE2FRAMES(ballocs.size));
1127
1128 /*
1129 * Blacklist first frame, as allocating NULL would
1130 * fail in some places
1131 */
1132 frame_mark_unavailable(0, 1);
1133 }
1134
1135 frame_high_arch_init();
1136}
1137
1138/** Adjust bounds of physical memory region according to low/high memory split.
1139 *
1140 * @param low[in] If true, the adjustment is performed to make the region
1141 * fit in the low memory. Otherwise the adjustment is
1142 * performed to make the region fit in the high memory.
1143 * @param basep[inout] Pointer to a variable which contains the region's base
1144 * address and which may receive the adjusted base address.
1145 * @param sizep[inout] Pointer to a variable which contains the region's size
1146 * and which may receive the adjusted size.
1147 *
1148 * @return True if the region still exists even after the adjustment.
1149 * @return False otherwise.
1150 *
1151 */
1152bool frame_adjust_zone_bounds(bool low, uintptr_t *basep, size_t *sizep)
1153{
1154 uintptr_t limit = KA2PA(config.identity_base) + config.identity_size;
1155
1156 if (low) {
1157 if (*basep > limit)
1158 return false;
1159
1160 if (*basep + *sizep > limit)
1161 *sizep = limit - *basep;
1162 } else {
1163 if (*basep + *sizep <= limit)
1164 return false;
1165
1166 if (*basep <= limit) {
1167 *sizep -= limit - *basep;
1168 *basep = limit;
1169 }
1170 }
1171
1172 return true;
1173}
1174
1175/** Return total size of all zones.
1176 *
1177 */
1178uint64_t zones_total_size(void)
1179{
1180 irq_spinlock_lock(&zones.lock, true);
1181
1182 uint64_t total = 0;
1183
1184 for (size_t i = 0; i < zones.count; i++)
1185 total += (uint64_t) FRAMES2SIZE(zones.info[i].count);
1186
1187 irq_spinlock_unlock(&zones.lock, true);
1188
1189 return total;
1190}
1191
1192void zones_stats(uint64_t *total, uint64_t *unavail, uint64_t *busy,
1193 uint64_t *free)
1194{
1195 assert(total != NULL);
1196 assert(unavail != NULL);
1197 assert(busy != NULL);
1198 assert(free != NULL);
1199
1200 irq_spinlock_lock(&zones.lock, true);
1201
1202 *total = 0;
1203 *unavail = 0;
1204 *busy = 0;
1205 *free = 0;
1206
1207 for (size_t i = 0; i < zones.count; i++) {
1208 *total += (uint64_t) FRAMES2SIZE(zones.info[i].count);
1209
1210 if (zones.info[i].flags & ZONE_AVAILABLE) {
1211 *busy += (uint64_t) FRAMES2SIZE(zones.info[i].busy_count);
1212 *free += (uint64_t) FRAMES2SIZE(zones.info[i].free_count);
1213 } else
1214 *unavail += (uint64_t) FRAMES2SIZE(zones.info[i].count);
1215 }
1216
1217 irq_spinlock_unlock(&zones.lock, true);
1218}
1219
1220/** Prints list of zones.
1221 *
1222 */
1223void zones_print_list(void)
1224{
1225#ifdef __32_BITS__
1226 printf("[nr] [base addr] [frames ] [flags ] [free frames ] [busy frames ]\n");
1227#endif
1228
1229#ifdef __64_BITS__
1230 printf("[nr] [base address ] [frames ] [flags ] [free frames ] [busy frames ]\n");
1231#endif
1232
1233 /*
1234 * Because printing may require allocation of memory, we may not hold
1235 * the frame allocator locks when printing zone statistics. Therefore,
1236 * we simply gather the statistics under the protection of the locks and
1237 * print the statistics when the locks have been released.
1238 *
1239 * When someone adds/removes zones while we are printing the statistics,
1240 * we may end up with inaccurate output (e.g. a zone being skipped from
1241 * the listing).
1242 */
1243
1244 size_t free_lowmem = 0;
1245 size_t free_highmem = 0;
1246 size_t free_highprio = 0;
1247
1248 for (size_t i = 0; ; i++) {
1249 irq_spinlock_lock(&zones.lock, true);
1250
1251 if (i >= zones.count) {
1252 irq_spinlock_unlock(&zones.lock, true);
1253 break;
1254 }
1255
1256 pfn_t fbase = zones.info[i].base;
1257 uintptr_t base = PFN2ADDR(fbase);
1258 size_t count = zones.info[i].count;
1259 zone_flags_t flags = zones.info[i].flags;
1260 size_t free_count = zones.info[i].free_count;
1261 size_t busy_count = zones.info[i].busy_count;
1262
1263 bool available = ((flags & ZONE_AVAILABLE) != 0);
1264 bool lowmem = ((flags & ZONE_LOWMEM) != 0);
1265 bool highmem = ((flags & ZONE_HIGHMEM) != 0);
1266 bool highprio = is_high_priority(fbase, count);
1267
1268 if (available) {
1269 if (lowmem)
1270 free_lowmem += free_count;
1271
1272 if (highmem)
1273 free_highmem += free_count;
1274
1275 if (highprio) {
1276 free_highprio += free_count;
1277 } else {
1278 /*
1279 * Walk all frames of the zone and examine
1280 * all high priority memory to get accurate
1281 * statistics.
1282 */
1283
1284 for (size_t index = 0; index < count; index++) {
1285 if (is_high_priority(fbase + index, 0)) {
1286 if (!bitmap_get(&zones.info[i].bitmap, index))
1287 free_highprio++;
1288 } else
1289 break;
1290 }
1291 }
1292 }
1293
1294 irq_spinlock_unlock(&zones.lock, true);
1295
1296 printf("%-4zu", i);
1297
1298#ifdef __32_BITS__
1299 printf(" %p", (void *) base);
1300#endif
1301
1302#ifdef __64_BITS__
1303 printf(" %p", (void *) base);
1304#endif
1305
1306 printf(" %12zu %c%c%c%c%c ", count,
1307 available ? 'A' : '-',
1308 (flags & ZONE_RESERVED) ? 'R' : '-',
1309 (flags & ZONE_FIRMWARE) ? 'F' : '-',
1310 (flags & ZONE_LOWMEM) ? 'L' : '-',
1311 (flags & ZONE_HIGHMEM) ? 'H' : '-');
1312
1313 if (available)
1314 printf("%14zu %14zu",
1315 free_count, busy_count);
1316
1317 printf("\n");
1318 }
1319
1320 printf("\n");
1321
1322 uint64_t size;
1323 const char *size_suffix;
1324
1325 bin_order_suffix(FRAMES2SIZE(free_lowmem), &size, &size_suffix,
1326 false);
1327 printf("Available low memory: %zu frames (%" PRIu64 " %s)\n",
1328 free_lowmem, size, size_suffix);
1329
1330 bin_order_suffix(FRAMES2SIZE(free_highmem), &size, &size_suffix,
1331 false);
1332 printf("Available high memory: %zu frames (%" PRIu64 " %s)\n",
1333 free_highmem, size, size_suffix);
1334
1335 bin_order_suffix(FRAMES2SIZE(free_highprio), &size, &size_suffix,
1336 false);
1337 printf("Available high priority: %zu frames (%" PRIu64 " %s)\n",
1338 free_highprio, size, size_suffix);
1339}
1340
1341/** Prints zone details.
1342 *
1343 * @param num Zone base address or zone number.
1344 *
1345 */
1346void zone_print_one(size_t num)
1347{
1348 irq_spinlock_lock(&zones.lock, true);
1349 size_t znum = (size_t) -1;
1350
1351 for (size_t i = 0; i < zones.count; i++) {
1352 if ((i == num) || (PFN2ADDR(zones.info[i].base) == num)) {
1353 znum = i;
1354 break;
1355 }
1356 }
1357
1358 if (znum == (size_t) -1) {
1359 irq_spinlock_unlock(&zones.lock, true);
1360 printf("Zone not found.\n");
1361 return;
1362 }
1363
1364 size_t free_lowmem = 0;
1365 size_t free_highmem = 0;
1366 size_t free_highprio = 0;
1367
1368 pfn_t fbase = zones.info[znum].base;
1369 uintptr_t base = PFN2ADDR(fbase);
1370 zone_flags_t flags = zones.info[znum].flags;
1371 size_t count = zones.info[znum].count;
1372 size_t free_count = zones.info[znum].free_count;
1373 size_t busy_count = zones.info[znum].busy_count;
1374
1375 bool available = ((flags & ZONE_AVAILABLE) != 0);
1376 bool lowmem = ((flags & ZONE_LOWMEM) != 0);
1377 bool highmem = ((flags & ZONE_HIGHMEM) != 0);
1378 bool highprio = is_high_priority(fbase, count);
1379
1380 if (available) {
1381 if (lowmem)
1382 free_lowmem = free_count;
1383
1384 if (highmem)
1385 free_highmem = free_count;
1386
1387 if (highprio) {
1388 free_highprio = free_count;
1389 } else {
1390 /*
1391 * Walk all frames of the zone and examine
1392 * all high priority memory to get accurate
1393 * statistics.
1394 */
1395
1396 for (size_t index = 0; index < count; index++) {
1397 if (is_high_priority(fbase + index, 0)) {
1398 if (!bitmap_get(&zones.info[znum].bitmap, index))
1399 free_highprio++;
1400 } else
1401 break;
1402 }
1403 }
1404 }
1405
1406 irq_spinlock_unlock(&zones.lock, true);
1407
1408 uint64_t size;
1409 const char *size_suffix;
1410
1411 bin_order_suffix(FRAMES2SIZE(count), &size, &size_suffix, false);
1412
1413 printf("Zone number: %zu\n", znum);
1414 printf("Zone base address: %p\n", (void *) base);
1415 printf("Zone size: %zu frames (%" PRIu64 " %s)\n", count,
1416 size, size_suffix);
1417 printf("Zone flags: %c%c%c%c%c\n",
1418 available ? 'A' : '-',
1419 (flags & ZONE_RESERVED) ? 'R' : '-',
1420 (flags & ZONE_FIRMWARE) ? 'F' : '-',
1421 (flags & ZONE_LOWMEM) ? 'L' : '-',
1422 (flags & ZONE_HIGHMEM) ? 'H' : '-');
1423
1424 if (available) {
1425 bin_order_suffix(FRAMES2SIZE(busy_count), &size, &size_suffix,
1426 false);
1427 printf("Allocated space: %zu frames (%" PRIu64 " %s)\n",
1428 busy_count, size, size_suffix);
1429
1430 bin_order_suffix(FRAMES2SIZE(free_count), &size, &size_suffix,
1431 false);
1432 printf("Available space: %zu frames (%" PRIu64 " %s)\n",
1433 free_count, size, size_suffix);
1434
1435 bin_order_suffix(FRAMES2SIZE(free_lowmem), &size, &size_suffix,
1436 false);
1437 printf("Available low memory: %zu frames (%" PRIu64 " %s)\n",
1438 free_lowmem, size, size_suffix);
1439
1440 bin_order_suffix(FRAMES2SIZE(free_highmem), &size, &size_suffix,
1441 false);
1442 printf("Available high memory: %zu frames (%" PRIu64 " %s)\n",
1443 free_highmem, size, size_suffix);
1444
1445 bin_order_suffix(FRAMES2SIZE(free_highprio), &size, &size_suffix,
1446 false);
1447 printf("Available high priority: %zu frames (%" PRIu64 " %s)\n",
1448 free_highprio, size, size_suffix);
1449 }
1450}
1451
1452/** @}
1453 */
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