hugetlb: drop ref count earlier after page allocation
[linux-2.6-block.git] / mm / memblock.c
CommitLineData
2874c5fd 1// SPDX-License-Identifier: GPL-2.0-or-later
95f72d1e
YL
2/*
3 * Procedures for maintaining information about logical memory blocks.
4 *
5 * Peter Bergner, IBM Corp. June 2001.
6 * Copyright (C) 2001 Peter Bergner.
95f72d1e
YL
7 */
8
9#include <linux/kernel.h>
142b45a7 10#include <linux/slab.h>
95f72d1e
YL
11#include <linux/init.h>
12#include <linux/bitops.h>
449e8df3 13#include <linux/poison.h>
c196f76f 14#include <linux/pfn.h>
6d03b885 15#include <linux/debugfs.h>
514c6032 16#include <linux/kmemleak.h>
6d03b885 17#include <linux/seq_file.h>
95f72d1e
YL
18#include <linux/memblock.h>
19
c4c5ad6b 20#include <asm/sections.h>
26f09e9b
SS
21#include <linux/io.h>
22
23#include "internal.h"
79442ed1 24
8a5b403d
AB
25#define INIT_MEMBLOCK_REGIONS 128
26#define INIT_PHYSMEM_REGIONS 4
27
28#ifndef INIT_MEMBLOCK_RESERVED_REGIONS
29# define INIT_MEMBLOCK_RESERVED_REGIONS INIT_MEMBLOCK_REGIONS
30#endif
31
3e039c5c
MR
32/**
33 * DOC: memblock overview
34 *
35 * Memblock is a method of managing memory regions during the early
36 * boot period when the usual kernel memory allocators are not up and
37 * running.
38 *
39 * Memblock views the system memory as collections of contiguous
40 * regions. There are several types of these collections:
41 *
42 * * ``memory`` - describes the physical memory available to the
43 * kernel; this may differ from the actual physical memory installed
44 * in the system, for instance when the memory is restricted with
45 * ``mem=`` command line parameter
46 * * ``reserved`` - describes the regions that were allocated
77649905
DH
47 * * ``physmem`` - describes the actual physical memory available during
48 * boot regardless of the possible restrictions and memory hot(un)plug;
49 * the ``physmem`` type is only available on some architectures.
3e039c5c 50 *
9303c9d5 51 * Each region is represented by struct memblock_region that
3e039c5c 52 * defines the region extents, its attributes and NUMA node id on NUMA
1bf162e4
MCC
53 * systems. Every memory type is described by the struct memblock_type
54 * which contains an array of memory regions along with
77649905 55 * the allocator metadata. The "memory" and "reserved" types are nicely
9303c9d5 56 * wrapped with struct memblock. This structure is statically
77649905
DH
57 * initialized at build time. The region arrays are initially sized to
58 * %INIT_MEMBLOCK_REGIONS for "memory" and %INIT_MEMBLOCK_RESERVED_REGIONS
59 * for "reserved". The region array for "physmem" is initially sized to
60 * %INIT_PHYSMEM_REGIONS.
6e5af9a8
C
61 * The memblock_allow_resize() enables automatic resizing of the region
62 * arrays during addition of new regions. This feature should be used
63 * with care so that memory allocated for the region array will not
64 * overlap with areas that should be reserved, for example initrd.
3e039c5c
MR
65 *
66 * The early architecture setup should tell memblock what the physical
6e5af9a8
C
67 * memory layout is by using memblock_add() or memblock_add_node()
68 * functions. The first function does not assign the region to a NUMA
69 * node and it is appropriate for UMA systems. Yet, it is possible to
70 * use it on NUMA systems as well and assign the region to a NUMA node
71 * later in the setup process using memblock_set_node(). The
72 * memblock_add_node() performs such an assignment directly.
3e039c5c 73 *
a2974133
MR
74 * Once memblock is setup the memory can be allocated using one of the
75 * API variants:
76 *
6e5af9a8
C
77 * * memblock_phys_alloc*() - these functions return the **physical**
78 * address of the allocated memory
79 * * memblock_alloc*() - these functions return the **virtual** address
80 * of the allocated memory.
a2974133 81 *
df1758d9 82 * Note, that both API variants use implicit assumptions about allowed
a2974133 83 * memory ranges and the fallback methods. Consult the documentation
6e5af9a8
C
84 * of memblock_alloc_internal() and memblock_alloc_range_nid()
85 * functions for more elaborate description.
3e039c5c 86 *
6e5af9a8
C
87 * As the system boot progresses, the architecture specific mem_init()
88 * function frees all the memory to the buddy page allocator.
3e039c5c 89 *
6e5af9a8 90 * Unless an architecture enables %CONFIG_ARCH_KEEP_MEMBLOCK, the
77649905
DH
91 * memblock data structures (except "physmem") will be discarded after the
92 * system initialization completes.
3e039c5c
MR
93 */
94
a9ee6cf5 95#ifndef CONFIG_NUMA
bda49a81
MR
96struct pglist_data __refdata contig_page_data;
97EXPORT_SYMBOL(contig_page_data);
98#endif
99
100unsigned long max_low_pfn;
101unsigned long min_low_pfn;
102unsigned long max_pfn;
103unsigned long long max_possible_pfn;
104
fe091c20 105static struct memblock_region memblock_memory_init_regions[INIT_MEMBLOCK_REGIONS] __initdata_memblock;
8a5b403d 106static struct memblock_region memblock_reserved_init_regions[INIT_MEMBLOCK_RESERVED_REGIONS] __initdata_memblock;
70210ed9 107#ifdef CONFIG_HAVE_MEMBLOCK_PHYS_MAP
77649905 108static struct memblock_region memblock_physmem_init_regions[INIT_PHYSMEM_REGIONS];
70210ed9 109#endif
fe091c20
TH
110
111struct memblock memblock __initdata_memblock = {
112 .memory.regions = memblock_memory_init_regions,
113 .memory.cnt = 1, /* empty dummy entry */
114 .memory.max = INIT_MEMBLOCK_REGIONS,
0262d9c8 115 .memory.name = "memory",
fe091c20
TH
116
117 .reserved.regions = memblock_reserved_init_regions,
118 .reserved.cnt = 1, /* empty dummy entry */
8a5b403d 119 .reserved.max = INIT_MEMBLOCK_RESERVED_REGIONS,
0262d9c8 120 .reserved.name = "reserved",
fe091c20 121
79442ed1 122 .bottom_up = false,
fe091c20
TH
123 .current_limit = MEMBLOCK_ALLOC_ANYWHERE,
124};
95f72d1e 125
77649905
DH
126#ifdef CONFIG_HAVE_MEMBLOCK_PHYS_MAP
127struct memblock_type physmem = {
128 .regions = memblock_physmem_init_regions,
129 .cnt = 1, /* empty dummy entry */
130 .max = INIT_PHYSMEM_REGIONS,
131 .name = "physmem",
132};
133#endif
134
9f3d5eaa
MR
135/*
136 * keep a pointer to &memblock.memory in the text section to use it in
137 * __next_mem_range() and its helpers.
138 * For architectures that do not keep memblock data after init, this
139 * pointer will be reset to NULL at memblock_discard()
140 */
141static __refdata struct memblock_type *memblock_memory = &memblock.memory;
142
cd991db8
MR
143#define for_each_memblock_type(i, memblock_type, rgn) \
144 for (i = 0, rgn = &memblock_type->regions[0]; \
145 i < memblock_type->cnt; \
146 i++, rgn = &memblock_type->regions[i])
147
87c55870
MR
148#define memblock_dbg(fmt, ...) \
149 do { \
150 if (memblock_debug) \
151 pr_info(fmt, ##__VA_ARGS__); \
152 } while (0)
153
154static int memblock_debug __initdata_memblock;
a3f5bafc 155static bool system_has_some_mirror __initdata_memblock = false;
1aadc056 156static int memblock_can_resize __initdata_memblock;
181eb394
GS
157static int memblock_memory_in_slab __initdata_memblock = 0;
158static int memblock_reserved_in_slab __initdata_memblock = 0;
95f72d1e 159
c366ea89 160static enum memblock_flags __init_memblock choose_memblock_flags(void)
a3f5bafc
TL
161{
162 return system_has_some_mirror ? MEMBLOCK_MIRROR : MEMBLOCK_NONE;
163}
164
eb18f1b5
TH
165/* adjust *@size so that (@base + *@size) doesn't overflow, return new size */
166static inline phys_addr_t memblock_cap_size(phys_addr_t base, phys_addr_t *size)
167{
1c4bc43d 168 return *size = min(*size, PHYS_ADDR_MAX - base);
eb18f1b5
TH
169}
170
6ed311b2
BH
171/*
172 * Address comparison utilities
173 */
10d06439 174static unsigned long __init_memblock memblock_addrs_overlap(phys_addr_t base1, phys_addr_t size1,
2898cc4c 175 phys_addr_t base2, phys_addr_t size2)
95f72d1e
YL
176{
177 return ((base1 < (base2 + size2)) && (base2 < (base1 + size1)));
178}
179
95cf82ec 180bool __init_memblock memblock_overlaps_region(struct memblock_type *type,
2d7d3eb2 181 phys_addr_t base, phys_addr_t size)
6ed311b2
BH
182{
183 unsigned long i;
184
023accf5
MR
185 memblock_cap_size(base, &size);
186
f14516fb
AK
187 for (i = 0; i < type->cnt; i++)
188 if (memblock_addrs_overlap(base, size, type->regions[i].base,
189 type->regions[i].size))
6ed311b2 190 break;
c5c5c9d1 191 return i < type->cnt;
6ed311b2
BH
192}
193
47cec443 194/**
79442ed1
TC
195 * __memblock_find_range_bottom_up - find free area utility in bottom-up
196 * @start: start of candidate range
47cec443
MR
197 * @end: end of candidate range, can be %MEMBLOCK_ALLOC_ANYWHERE or
198 * %MEMBLOCK_ALLOC_ACCESSIBLE
79442ed1
TC
199 * @size: size of free area to find
200 * @align: alignment of free area to find
b1154233 201 * @nid: nid of the free area to find, %NUMA_NO_NODE for any node
fc6daaf9 202 * @flags: pick from blocks based on memory attributes
79442ed1
TC
203 *
204 * Utility called from memblock_find_in_range_node(), find free area bottom-up.
205 *
47cec443 206 * Return:
79442ed1
TC
207 * Found address on success, 0 on failure.
208 */
209static phys_addr_t __init_memblock
210__memblock_find_range_bottom_up(phys_addr_t start, phys_addr_t end,
fc6daaf9 211 phys_addr_t size, phys_addr_t align, int nid,
e1720fee 212 enum memblock_flags flags)
79442ed1
TC
213{
214 phys_addr_t this_start, this_end, cand;
215 u64 i;
216
fc6daaf9 217 for_each_free_mem_range(i, nid, flags, &this_start, &this_end, NULL) {
79442ed1
TC
218 this_start = clamp(this_start, start, end);
219 this_end = clamp(this_end, start, end);
220
221 cand = round_up(this_start, align);
222 if (cand < this_end && this_end - cand >= size)
223 return cand;
224 }
225
226 return 0;
227}
228
7bd0b0f0 229/**
1402899e 230 * __memblock_find_range_top_down - find free area utility, in top-down
7bd0b0f0 231 * @start: start of candidate range
47cec443
MR
232 * @end: end of candidate range, can be %MEMBLOCK_ALLOC_ANYWHERE or
233 * %MEMBLOCK_ALLOC_ACCESSIBLE
7bd0b0f0
TH
234 * @size: size of free area to find
235 * @align: alignment of free area to find
b1154233 236 * @nid: nid of the free area to find, %NUMA_NO_NODE for any node
fc6daaf9 237 * @flags: pick from blocks based on memory attributes
7bd0b0f0 238 *
1402899e 239 * Utility called from memblock_find_in_range_node(), find free area top-down.
7bd0b0f0 240 *
47cec443 241 * Return:
79442ed1 242 * Found address on success, 0 on failure.
6ed311b2 243 */
1402899e
TC
244static phys_addr_t __init_memblock
245__memblock_find_range_top_down(phys_addr_t start, phys_addr_t end,
fc6daaf9 246 phys_addr_t size, phys_addr_t align, int nid,
e1720fee 247 enum memblock_flags flags)
f7210e6c
TC
248{
249 phys_addr_t this_start, this_end, cand;
250 u64 i;
251
fc6daaf9
TL
252 for_each_free_mem_range_reverse(i, nid, flags, &this_start, &this_end,
253 NULL) {
f7210e6c
TC
254 this_start = clamp(this_start, start, end);
255 this_end = clamp(this_end, start, end);
256
257 if (this_end < size)
258 continue;
259
260 cand = round_down(this_end - size, align);
261 if (cand >= this_start)
262 return cand;
263 }
1402899e 264
f7210e6c
TC
265 return 0;
266}
6ed311b2 267
1402899e
TC
268/**
269 * memblock_find_in_range_node - find free area in given range and node
1402899e
TC
270 * @size: size of free area to find
271 * @align: alignment of free area to find
87029ee9 272 * @start: start of candidate range
47cec443
MR
273 * @end: end of candidate range, can be %MEMBLOCK_ALLOC_ANYWHERE or
274 * %MEMBLOCK_ALLOC_ACCESSIBLE
b1154233 275 * @nid: nid of the free area to find, %NUMA_NO_NODE for any node
fc6daaf9 276 * @flags: pick from blocks based on memory attributes
1402899e
TC
277 *
278 * Find @size free area aligned to @align in the specified range and node.
279 *
47cec443 280 * Return:
79442ed1 281 * Found address on success, 0 on failure.
1402899e 282 */
c366ea89 283static phys_addr_t __init_memblock memblock_find_in_range_node(phys_addr_t size,
87029ee9 284 phys_addr_t align, phys_addr_t start,
e1720fee
MR
285 phys_addr_t end, int nid,
286 enum memblock_flags flags)
1402899e
TC
287{
288 /* pump up @end */
fed84c78
QC
289 if (end == MEMBLOCK_ALLOC_ACCESSIBLE ||
290 end == MEMBLOCK_ALLOC_KASAN)
1402899e
TC
291 end = memblock.current_limit;
292
293 /* avoid allocating the first page */
294 start = max_t(phys_addr_t, start, PAGE_SIZE);
295 end = max(start, end);
296
2dcb3964
RG
297 if (memblock_bottom_up())
298 return __memblock_find_range_bottom_up(start, end, size, align,
299 nid, flags);
300 else
301 return __memblock_find_range_top_down(start, end, size, align,
302 nid, flags);
1402899e
TC
303}
304
7bd0b0f0
TH
305/**
306 * memblock_find_in_range - find free area in given range
307 * @start: start of candidate range
47cec443
MR
308 * @end: end of candidate range, can be %MEMBLOCK_ALLOC_ANYWHERE or
309 * %MEMBLOCK_ALLOC_ACCESSIBLE
7bd0b0f0
TH
310 * @size: size of free area to find
311 * @align: alignment of free area to find
312 *
313 * Find @size free area aligned to @align in the specified range.
314 *
47cec443 315 * Return:
79442ed1 316 * Found address on success, 0 on failure.
fc769a8e 317 */
7bd0b0f0
TH
318phys_addr_t __init_memblock memblock_find_in_range(phys_addr_t start,
319 phys_addr_t end, phys_addr_t size,
320 phys_addr_t align)
6ed311b2 321{
a3f5bafc 322 phys_addr_t ret;
e1720fee 323 enum memblock_flags flags = choose_memblock_flags();
a3f5bafc
TL
324
325again:
326 ret = memblock_find_in_range_node(size, align, start, end,
327 NUMA_NO_NODE, flags);
328
329 if (!ret && (flags & MEMBLOCK_MIRROR)) {
330 pr_warn("Could not allocate %pap bytes of mirrored memory\n",
331 &size);
332 flags &= ~MEMBLOCK_MIRROR;
333 goto again;
334 }
335
336 return ret;
6ed311b2
BH
337}
338
10d06439 339static void __init_memblock memblock_remove_region(struct memblock_type *type, unsigned long r)
95f72d1e 340{
1440c4e2 341 type->total_size -= type->regions[r].size;
7c0caeb8
TH
342 memmove(&type->regions[r], &type->regions[r + 1],
343 (type->cnt - (r + 1)) * sizeof(type->regions[r]));
e3239ff9 344 type->cnt--;
95f72d1e 345
8f7a6605
BH
346 /* Special case for empty arrays */
347 if (type->cnt == 0) {
1440c4e2 348 WARN_ON(type->total_size != 0);
8f7a6605
BH
349 type->cnt = 1;
350 type->regions[0].base = 0;
351 type->regions[0].size = 0;
66a20757 352 type->regions[0].flags = 0;
7c0caeb8 353 memblock_set_region_node(&type->regions[0], MAX_NUMNODES);
8f7a6605 354 }
95f72d1e
YL
355}
356
350e88ba 357#ifndef CONFIG_ARCH_KEEP_MEMBLOCK
3010f876 358/**
47cec443 359 * memblock_discard - discard memory and reserved arrays if they were allocated
3010f876
PT
360 */
361void __init memblock_discard(void)
5e270e25 362{
3010f876 363 phys_addr_t addr, size;
5e270e25 364
3010f876
PT
365 if (memblock.reserved.regions != memblock_reserved_init_regions) {
366 addr = __pa(memblock.reserved.regions);
367 size = PAGE_ALIGN(sizeof(struct memblock_region) *
368 memblock.reserved.max);
369 __memblock_free_late(addr, size);
370 }
5e270e25 371
91b540f9 372 if (memblock.memory.regions != memblock_memory_init_regions) {
3010f876
PT
373 addr = __pa(memblock.memory.regions);
374 size = PAGE_ALIGN(sizeof(struct memblock_region) *
375 memblock.memory.max);
376 __memblock_free_late(addr, size);
377 }
9f3d5eaa
MR
378
379 memblock_memory = NULL;
5e270e25 380}
5e270e25
PH
381#endif
382
48c3b583
GP
383/**
384 * memblock_double_array - double the size of the memblock regions array
385 * @type: memblock type of the regions array being doubled
386 * @new_area_start: starting address of memory range to avoid overlap with
387 * @new_area_size: size of memory range to avoid overlap with
388 *
389 * Double the size of the @type regions array. If memblock is being used to
390 * allocate memory for a new reserved regions array and there is a previously
47cec443 391 * allocated memory range [@new_area_start, @new_area_start + @new_area_size]
48c3b583
GP
392 * waiting to be reserved, ensure the memory used by the new array does
393 * not overlap.
394 *
47cec443 395 * Return:
48c3b583
GP
396 * 0 on success, -1 on failure.
397 */
398static int __init_memblock memblock_double_array(struct memblock_type *type,
399 phys_addr_t new_area_start,
400 phys_addr_t new_area_size)
142b45a7
BH
401{
402 struct memblock_region *new_array, *old_array;
29f67386 403 phys_addr_t old_alloc_size, new_alloc_size;
a36aab89 404 phys_addr_t old_size, new_size, addr, new_end;
142b45a7 405 int use_slab = slab_is_available();
181eb394 406 int *in_slab;
142b45a7
BH
407
408 /* We don't allow resizing until we know about the reserved regions
409 * of memory that aren't suitable for allocation
410 */
411 if (!memblock_can_resize)
412 return -1;
413
142b45a7
BH
414 /* Calculate new doubled size */
415 old_size = type->max * sizeof(struct memblock_region);
416 new_size = old_size << 1;
29f67386
YL
417 /*
418 * We need to allocated new one align to PAGE_SIZE,
419 * so we can free them completely later.
420 */
421 old_alloc_size = PAGE_ALIGN(old_size);
422 new_alloc_size = PAGE_ALIGN(new_size);
142b45a7 423
181eb394
GS
424 /* Retrieve the slab flag */
425 if (type == &memblock.memory)
426 in_slab = &memblock_memory_in_slab;
427 else
428 in_slab = &memblock_reserved_in_slab;
429
a2974133 430 /* Try to find some space for it */
142b45a7
BH
431 if (use_slab) {
432 new_array = kmalloc(new_size, GFP_KERNEL);
1f5026a7 433 addr = new_array ? __pa(new_array) : 0;
4e2f0775 434 } else {
48c3b583
GP
435 /* only exclude range when trying to double reserved.regions */
436 if (type != &memblock.reserved)
437 new_area_start = new_area_size = 0;
438
439 addr = memblock_find_in_range(new_area_start + new_area_size,
440 memblock.current_limit,
29f67386 441 new_alloc_size, PAGE_SIZE);
48c3b583
GP
442 if (!addr && new_area_size)
443 addr = memblock_find_in_range(0,
fd07383b
AM
444 min(new_area_start, memblock.current_limit),
445 new_alloc_size, PAGE_SIZE);
48c3b583 446
15674868 447 new_array = addr ? __va(addr) : NULL;
4e2f0775 448 }
1f5026a7 449 if (!addr) {
142b45a7 450 pr_err("memblock: Failed to double %s array from %ld to %ld entries !\n",
0262d9c8 451 type->name, type->max, type->max * 2);
142b45a7
BH
452 return -1;
453 }
142b45a7 454
a36aab89
MR
455 new_end = addr + new_size - 1;
456 memblock_dbg("memblock: %s is doubled to %ld at [%pa-%pa]",
457 type->name, type->max * 2, &addr, &new_end);
ea9e4376 458
fd07383b
AM
459 /*
460 * Found space, we now need to move the array over before we add the
461 * reserved region since it may be our reserved array itself that is
462 * full.
142b45a7
BH
463 */
464 memcpy(new_array, type->regions, old_size);
465 memset(new_array + type->max, 0, old_size);
466 old_array = type->regions;
467 type->regions = new_array;
468 type->max <<= 1;
469
fd07383b 470 /* Free old array. We needn't free it if the array is the static one */
181eb394
GS
471 if (*in_slab)
472 kfree(old_array);
473 else if (old_array != memblock_memory_init_regions &&
474 old_array != memblock_reserved_init_regions)
29f67386 475 memblock_free(__pa(old_array), old_alloc_size);
142b45a7 476
fd07383b
AM
477 /*
478 * Reserve the new array if that comes from the memblock. Otherwise, we
479 * needn't do it
181eb394
GS
480 */
481 if (!use_slab)
29f67386 482 BUG_ON(memblock_reserve(addr, new_alloc_size));
181eb394
GS
483
484 /* Update slab flag */
485 *in_slab = use_slab;
486
142b45a7
BH
487 return 0;
488}
489
784656f9
TH
490/**
491 * memblock_merge_regions - merge neighboring compatible regions
492 * @type: memblock type to scan
493 *
494 * Scan @type and merge neighboring compatible regions.
495 */
496static void __init_memblock memblock_merge_regions(struct memblock_type *type)
95f72d1e 497{
784656f9 498 int i = 0;
95f72d1e 499
784656f9
TH
500 /* cnt never goes below 1 */
501 while (i < type->cnt - 1) {
502 struct memblock_region *this = &type->regions[i];
503 struct memblock_region *next = &type->regions[i + 1];
95f72d1e 504
7c0caeb8
TH
505 if (this->base + this->size != next->base ||
506 memblock_get_region_node(this) !=
66a20757
TC
507 memblock_get_region_node(next) ||
508 this->flags != next->flags) {
784656f9
TH
509 BUG_ON(this->base + this->size > next->base);
510 i++;
511 continue;
8f7a6605
BH
512 }
513
784656f9 514 this->size += next->size;
c0232ae8
LF
515 /* move forward from next + 1, index of which is i + 2 */
516 memmove(next, next + 1, (type->cnt - (i + 2)) * sizeof(*next));
784656f9 517 type->cnt--;
95f72d1e 518 }
784656f9 519}
95f72d1e 520
784656f9
TH
521/**
522 * memblock_insert_region - insert new memblock region
209ff86d
TC
523 * @type: memblock type to insert into
524 * @idx: index for the insertion point
525 * @base: base address of the new region
526 * @size: size of the new region
527 * @nid: node id of the new region
66a20757 528 * @flags: flags of the new region
784656f9 529 *
47cec443 530 * Insert new memblock region [@base, @base + @size) into @type at @idx.
412d0008 531 * @type must already have extra room to accommodate the new region.
784656f9
TH
532 */
533static void __init_memblock memblock_insert_region(struct memblock_type *type,
534 int idx, phys_addr_t base,
66a20757 535 phys_addr_t size,
e1720fee
MR
536 int nid,
537 enum memblock_flags flags)
784656f9
TH
538{
539 struct memblock_region *rgn = &type->regions[idx];
540
541 BUG_ON(type->cnt >= type->max);
542 memmove(rgn + 1, rgn, (type->cnt - idx) * sizeof(*rgn));
543 rgn->base = base;
544 rgn->size = size;
66a20757 545 rgn->flags = flags;
7c0caeb8 546 memblock_set_region_node(rgn, nid);
784656f9 547 type->cnt++;
1440c4e2 548 type->total_size += size;
784656f9
TH
549}
550
551/**
f1af9d3a 552 * memblock_add_range - add new memblock region
784656f9
TH
553 * @type: memblock type to add new region into
554 * @base: base address of the new region
555 * @size: size of the new region
7fb0bc3f 556 * @nid: nid of the new region
66a20757 557 * @flags: flags of the new region
784656f9 558 *
47cec443 559 * Add new memblock region [@base, @base + @size) into @type. The new region
784656f9
TH
560 * is allowed to overlap with existing ones - overlaps don't affect already
561 * existing regions. @type is guaranteed to be minimal (all neighbouring
562 * compatible regions are merged) after the addition.
563 *
47cec443 564 * Return:
784656f9
TH
565 * 0 on success, -errno on failure.
566 */
02634a44 567static int __init_memblock memblock_add_range(struct memblock_type *type,
66a20757 568 phys_addr_t base, phys_addr_t size,
e1720fee 569 int nid, enum memblock_flags flags)
784656f9
TH
570{
571 bool insert = false;
eb18f1b5
TH
572 phys_addr_t obase = base;
573 phys_addr_t end = base + memblock_cap_size(base, &size);
8c9c1701
AK
574 int idx, nr_new;
575 struct memblock_region *rgn;
784656f9 576
b3dc627c
TH
577 if (!size)
578 return 0;
579
784656f9
TH
580 /* special case for empty array */
581 if (type->regions[0].size == 0) {
1440c4e2 582 WARN_ON(type->cnt != 1 || type->total_size);
8f7a6605
BH
583 type->regions[0].base = base;
584 type->regions[0].size = size;
66a20757 585 type->regions[0].flags = flags;
7fb0bc3f 586 memblock_set_region_node(&type->regions[0], nid);
1440c4e2 587 type->total_size = size;
8f7a6605 588 return 0;
95f72d1e 589 }
784656f9
TH
590repeat:
591 /*
592 * The following is executed twice. Once with %false @insert and
593 * then with %true. The first counts the number of regions needed
412d0008 594 * to accommodate the new area. The second actually inserts them.
142b45a7 595 */
784656f9
TH
596 base = obase;
597 nr_new = 0;
95f72d1e 598
66e8b438 599 for_each_memblock_type(idx, type, rgn) {
784656f9
TH
600 phys_addr_t rbase = rgn->base;
601 phys_addr_t rend = rbase + rgn->size;
602
603 if (rbase >= end)
95f72d1e 604 break;
784656f9
TH
605 if (rend <= base)
606 continue;
607 /*
608 * @rgn overlaps. If it separates the lower part of new
609 * area, insert that portion.
610 */
611 if (rbase > base) {
a9ee6cf5 612#ifdef CONFIG_NUMA
c0a29498
WY
613 WARN_ON(nid != memblock_get_region_node(rgn));
614#endif
4fcab5f4 615 WARN_ON(flags != rgn->flags);
784656f9
TH
616 nr_new++;
617 if (insert)
8c9c1701 618 memblock_insert_region(type, idx++, base,
66a20757
TC
619 rbase - base, nid,
620 flags);
95f72d1e 621 }
784656f9
TH
622 /* area below @rend is dealt with, forget about it */
623 base = min(rend, end);
95f72d1e 624 }
784656f9
TH
625
626 /* insert the remaining portion */
627 if (base < end) {
628 nr_new++;
629 if (insert)
8c9c1701 630 memblock_insert_region(type, idx, base, end - base,
66a20757 631 nid, flags);
95f72d1e 632 }
95f72d1e 633
ef3cc4db 634 if (!nr_new)
635 return 0;
636
784656f9
TH
637 /*
638 * If this was the first round, resize array and repeat for actual
639 * insertions; otherwise, merge and return.
142b45a7 640 */
784656f9
TH
641 if (!insert) {
642 while (type->cnt + nr_new > type->max)
48c3b583 643 if (memblock_double_array(type, obase, size) < 0)
784656f9
TH
644 return -ENOMEM;
645 insert = true;
646 goto repeat;
647 } else {
648 memblock_merge_regions(type);
649 return 0;
142b45a7 650 }
95f72d1e
YL
651}
652
48a833cc
MR
653/**
654 * memblock_add_node - add new memblock region within a NUMA node
655 * @base: base address of the new region
656 * @size: size of the new region
657 * @nid: nid of the new region
658 *
659 * Add new memblock region [@base, @base + @size) to the "memory"
660 * type. See memblock_add_range() description for mode details
661 *
662 * Return:
663 * 0 on success, -errno on failure.
664 */
7fb0bc3f
TH
665int __init_memblock memblock_add_node(phys_addr_t base, phys_addr_t size,
666 int nid)
667{
f1af9d3a 668 return memblock_add_range(&memblock.memory, base, size, nid, 0);
7fb0bc3f
TH
669}
670
48a833cc
MR
671/**
672 * memblock_add - add new memblock region
673 * @base: base address of the new region
674 * @size: size of the new region
675 *
676 * Add new memblock region [@base, @base + @size) to the "memory"
677 * type. See memblock_add_range() description for mode details
678 *
679 * Return:
680 * 0 on success, -errno on failure.
681 */
f705ac4b 682int __init_memblock memblock_add(phys_addr_t base, phys_addr_t size)
6a4055bc 683{
5d63f81c
MC
684 phys_addr_t end = base + size - 1;
685
a090d711 686 memblock_dbg("%s: [%pa-%pa] %pS\n", __func__,
5d63f81c 687 &base, &end, (void *)_RET_IP_);
6a4055bc 688
f705ac4b 689 return memblock_add_range(&memblock.memory, base, size, MAX_NUMNODES, 0);
95f72d1e
YL
690}
691
6a9ceb31
TH
692/**
693 * memblock_isolate_range - isolate given range into disjoint memblocks
694 * @type: memblock type to isolate range for
695 * @base: base of range to isolate
696 * @size: size of range to isolate
697 * @start_rgn: out parameter for the start of isolated region
698 * @end_rgn: out parameter for the end of isolated region
699 *
700 * Walk @type and ensure that regions don't cross the boundaries defined by
47cec443 701 * [@base, @base + @size). Crossing regions are split at the boundaries,
6a9ceb31
TH
702 * which may create at most two more regions. The index of the first
703 * region inside the range is returned in *@start_rgn and end in *@end_rgn.
704 *
47cec443 705 * Return:
6a9ceb31
TH
706 * 0 on success, -errno on failure.
707 */
708static int __init_memblock memblock_isolate_range(struct memblock_type *type,
709 phys_addr_t base, phys_addr_t size,
710 int *start_rgn, int *end_rgn)
711{
eb18f1b5 712 phys_addr_t end = base + memblock_cap_size(base, &size);
8c9c1701
AK
713 int idx;
714 struct memblock_region *rgn;
6a9ceb31
TH
715
716 *start_rgn = *end_rgn = 0;
717
b3dc627c
TH
718 if (!size)
719 return 0;
720
6a9ceb31
TH
721 /* we'll create at most two more regions */
722 while (type->cnt + 2 > type->max)
48c3b583 723 if (memblock_double_array(type, base, size) < 0)
6a9ceb31
TH
724 return -ENOMEM;
725
66e8b438 726 for_each_memblock_type(idx, type, rgn) {
6a9ceb31
TH
727 phys_addr_t rbase = rgn->base;
728 phys_addr_t rend = rbase + rgn->size;
729
730 if (rbase >= end)
731 break;
732 if (rend <= base)
733 continue;
734
735 if (rbase < base) {
736 /*
737 * @rgn intersects from below. Split and continue
738 * to process the next region - the new top half.
739 */
740 rgn->base = base;
1440c4e2
TH
741 rgn->size -= base - rbase;
742 type->total_size -= base - rbase;
8c9c1701 743 memblock_insert_region(type, idx, rbase, base - rbase,
66a20757
TC
744 memblock_get_region_node(rgn),
745 rgn->flags);
6a9ceb31
TH
746 } else if (rend > end) {
747 /*
748 * @rgn intersects from above. Split and redo the
749 * current region - the new bottom half.
750 */
751 rgn->base = end;
1440c4e2
TH
752 rgn->size -= end - rbase;
753 type->total_size -= end - rbase;
8c9c1701 754 memblock_insert_region(type, idx--, rbase, end - rbase,
66a20757
TC
755 memblock_get_region_node(rgn),
756 rgn->flags);
6a9ceb31
TH
757 } else {
758 /* @rgn is fully contained, record it */
759 if (!*end_rgn)
8c9c1701
AK
760 *start_rgn = idx;
761 *end_rgn = idx + 1;
6a9ceb31
TH
762 }
763 }
764
765 return 0;
766}
6a9ceb31 767
35bd16a2 768static int __init_memblock memblock_remove_range(struct memblock_type *type,
f1af9d3a 769 phys_addr_t base, phys_addr_t size)
95f72d1e 770{
71936180
TH
771 int start_rgn, end_rgn;
772 int i, ret;
95f72d1e 773
71936180
TH
774 ret = memblock_isolate_range(type, base, size, &start_rgn, &end_rgn);
775 if (ret)
776 return ret;
95f72d1e 777
71936180
TH
778 for (i = end_rgn - 1; i >= start_rgn; i--)
779 memblock_remove_region(type, i);
8f7a6605 780 return 0;
95f72d1e
YL
781}
782
581adcbe 783int __init_memblock memblock_remove(phys_addr_t base, phys_addr_t size)
95f72d1e 784{
25cf23d7
MK
785 phys_addr_t end = base + size - 1;
786
a090d711 787 memblock_dbg("%s: [%pa-%pa] %pS\n", __func__,
25cf23d7
MK
788 &base, &end, (void *)_RET_IP_);
789
f1af9d3a 790 return memblock_remove_range(&memblock.memory, base, size);
95f72d1e
YL
791}
792
4d72868c
MR
793/**
794 * memblock_free - free boot memory block
795 * @base: phys starting address of the boot memory block
796 * @size: size of the boot memory block in bytes
797 *
798 * Free boot memory block previously allocated by memblock_alloc_xx() API.
799 * The freeing memory will not be released to the buddy allocator.
800 */
581adcbe 801int __init_memblock memblock_free(phys_addr_t base, phys_addr_t size)
95f72d1e 802{
5d63f81c
MC
803 phys_addr_t end = base + size - 1;
804
a090d711 805 memblock_dbg("%s: [%pa-%pa] %pS\n", __func__,
5d63f81c 806 &base, &end, (void *)_RET_IP_);
24aa0788 807
9099daed 808 kmemleak_free_part_phys(base, size);
f1af9d3a 809 return memblock_remove_range(&memblock.reserved, base, size);
95f72d1e
YL
810}
811
f705ac4b 812int __init_memblock memblock_reserve(phys_addr_t base, phys_addr_t size)
95f72d1e 813{
5d63f81c
MC
814 phys_addr_t end = base + size - 1;
815
a090d711 816 memblock_dbg("%s: [%pa-%pa] %pS\n", __func__,
5d63f81c 817 &base, &end, (void *)_RET_IP_);
95f72d1e 818
f705ac4b 819 return memblock_add_range(&memblock.reserved, base, size, MAX_NUMNODES, 0);
95f72d1e
YL
820}
821
02634a44
AK
822#ifdef CONFIG_HAVE_MEMBLOCK_PHYS_MAP
823int __init_memblock memblock_physmem_add(phys_addr_t base, phys_addr_t size)
824{
825 phys_addr_t end = base + size - 1;
826
827 memblock_dbg("%s: [%pa-%pa] %pS\n", __func__,
828 &base, &end, (void *)_RET_IP_);
829
77649905 830 return memblock_add_range(&physmem, base, size, MAX_NUMNODES, 0);
02634a44
AK
831}
832#endif
833
66b16edf 834/**
47cec443
MR
835 * memblock_setclr_flag - set or clear flag for a memory region
836 * @base: base address of the region
837 * @size: size of the region
838 * @set: set or clear the flag
8958b249 839 * @flag: the flag to update
66b16edf 840 *
4308ce17 841 * This function isolates region [@base, @base + @size), and sets/clears flag
66b16edf 842 *
47cec443 843 * Return: 0 on success, -errno on failure.
66b16edf 844 */
4308ce17
TL
845static int __init_memblock memblock_setclr_flag(phys_addr_t base,
846 phys_addr_t size, int set, int flag)
66b16edf
TC
847{
848 struct memblock_type *type = &memblock.memory;
849 int i, ret, start_rgn, end_rgn;
850
851 ret = memblock_isolate_range(type, base, size, &start_rgn, &end_rgn);
852 if (ret)
853 return ret;
854
fe145124
MR
855 for (i = start_rgn; i < end_rgn; i++) {
856 struct memblock_region *r = &type->regions[i];
857
4308ce17 858 if (set)
fe145124 859 r->flags |= flag;
4308ce17 860 else
fe145124
MR
861 r->flags &= ~flag;
862 }
66b16edf
TC
863
864 memblock_merge_regions(type);
865 return 0;
866}
867
868/**
4308ce17 869 * memblock_mark_hotplug - Mark hotpluggable memory with flag MEMBLOCK_HOTPLUG.
66b16edf
TC
870 * @base: the base phys addr of the region
871 * @size: the size of the region
872 *
47cec443 873 * Return: 0 on success, -errno on failure.
4308ce17
TL
874 */
875int __init_memblock memblock_mark_hotplug(phys_addr_t base, phys_addr_t size)
876{
877 return memblock_setclr_flag(base, size, 1, MEMBLOCK_HOTPLUG);
878}
879
880/**
881 * memblock_clear_hotplug - Clear flag MEMBLOCK_HOTPLUG for a specified region.
882 * @base: the base phys addr of the region
883 * @size: the size of the region
66b16edf 884 *
47cec443 885 * Return: 0 on success, -errno on failure.
66b16edf
TC
886 */
887int __init_memblock memblock_clear_hotplug(phys_addr_t base, phys_addr_t size)
888{
4308ce17 889 return memblock_setclr_flag(base, size, 0, MEMBLOCK_HOTPLUG);
66b16edf
TC
890}
891
a3f5bafc
TL
892/**
893 * memblock_mark_mirror - Mark mirrored memory with flag MEMBLOCK_MIRROR.
894 * @base: the base phys addr of the region
895 * @size: the size of the region
896 *
47cec443 897 * Return: 0 on success, -errno on failure.
a3f5bafc
TL
898 */
899int __init_memblock memblock_mark_mirror(phys_addr_t base, phys_addr_t size)
900{
901 system_has_some_mirror = true;
902
903 return memblock_setclr_flag(base, size, 1, MEMBLOCK_MIRROR);
904}
905
bf3d3cc5
AB
906/**
907 * memblock_mark_nomap - Mark a memory region with flag MEMBLOCK_NOMAP.
908 * @base: the base phys addr of the region
909 * @size: the size of the region
910 *
9092d4f7
MR
911 * The memory regions marked with %MEMBLOCK_NOMAP will not be added to the
912 * direct mapping of the physical memory. These regions will still be
913 * covered by the memory map. The struct page representing NOMAP memory
914 * frames in the memory map will be PageReserved()
915 *
47cec443 916 * Return: 0 on success, -errno on failure.
bf3d3cc5
AB
917 */
918int __init_memblock memblock_mark_nomap(phys_addr_t base, phys_addr_t size)
919{
920 return memblock_setclr_flag(base, size, 1, MEMBLOCK_NOMAP);
921}
a3f5bafc 922
4c546b8a
AT
923/**
924 * memblock_clear_nomap - Clear flag MEMBLOCK_NOMAP for a specified region.
925 * @base: the base phys addr of the region
926 * @size: the size of the region
927 *
47cec443 928 * Return: 0 on success, -errno on failure.
4c546b8a
AT
929 */
930int __init_memblock memblock_clear_nomap(phys_addr_t base, phys_addr_t size)
931{
932 return memblock_setclr_flag(base, size, 0, MEMBLOCK_NOMAP);
933}
934
9f3d5eaa
MR
935static bool should_skip_region(struct memblock_type *type,
936 struct memblock_region *m,
937 int nid, int flags)
c9a688a3
MR
938{
939 int m_nid = memblock_get_region_node(m);
940
9f3d5eaa
MR
941 /* we never skip regions when iterating memblock.reserved or physmem */
942 if (type != memblock_memory)
943 return false;
944
c9a688a3
MR
945 /* only memory regions are associated with nodes, check it */
946 if (nid != NUMA_NO_NODE && nid != m_nid)
947 return true;
948
949 /* skip hotpluggable memory regions if needed */
79e482e9
MR
950 if (movable_node_is_enabled() && memblock_is_hotpluggable(m) &&
951 !(flags & MEMBLOCK_HOTPLUG))
c9a688a3
MR
952 return true;
953
954 /* if we want mirror memory skip non-mirror memory regions */
955 if ((flags & MEMBLOCK_MIRROR) && !memblock_is_mirror(m))
956 return true;
957
958 /* skip nomap memory unless we were asked for it explicitly */
959 if (!(flags & MEMBLOCK_NOMAP) && memblock_is_nomap(m))
960 return true;
961
962 return false;
963}
964
35fd0808 965/**
a2974133 966 * __next_mem_range - next function for for_each_free_mem_range() etc.
35fd0808 967 * @idx: pointer to u64 loop variable
b1154233 968 * @nid: node selector, %NUMA_NO_NODE for all nodes
fc6daaf9 969 * @flags: pick from blocks based on memory attributes
f1af9d3a
PH
970 * @type_a: pointer to memblock_type from where the range is taken
971 * @type_b: pointer to memblock_type which excludes memory from being taken
dad7557e
WL
972 * @out_start: ptr to phys_addr_t for start address of the range, can be %NULL
973 * @out_end: ptr to phys_addr_t for end address of the range, can be %NULL
974 * @out_nid: ptr to int for nid of the range, can be %NULL
35fd0808 975 *
f1af9d3a 976 * Find the first area from *@idx which matches @nid, fill the out
35fd0808 977 * parameters, and update *@idx for the next iteration. The lower 32bit of
f1af9d3a
PH
978 * *@idx contains index into type_a and the upper 32bit indexes the
979 * areas before each region in type_b. For example, if type_b regions
35fd0808
TH
980 * look like the following,
981 *
982 * 0:[0-16), 1:[32-48), 2:[128-130)
983 *
984 * The upper 32bit indexes the following regions.
985 *
986 * 0:[0-0), 1:[16-32), 2:[48-128), 3:[130-MAX)
987 *
988 * As both region arrays are sorted, the function advances the two indices
989 * in lockstep and returns each intersection.
990 */
77649905
DH
991void __next_mem_range(u64 *idx, int nid, enum memblock_flags flags,
992 struct memblock_type *type_a,
993 struct memblock_type *type_b, phys_addr_t *out_start,
994 phys_addr_t *out_end, int *out_nid)
35fd0808 995{
f1af9d3a
PH
996 int idx_a = *idx & 0xffffffff;
997 int idx_b = *idx >> 32;
b1154233 998
f1af9d3a
PH
999 if (WARN_ONCE(nid == MAX_NUMNODES,
1000 "Usage of MAX_NUMNODES is deprecated. Use NUMA_NO_NODE instead\n"))
560dca27 1001 nid = NUMA_NO_NODE;
35fd0808 1002
f1af9d3a
PH
1003 for (; idx_a < type_a->cnt; idx_a++) {
1004 struct memblock_region *m = &type_a->regions[idx_a];
1005
35fd0808
TH
1006 phys_addr_t m_start = m->base;
1007 phys_addr_t m_end = m->base + m->size;
f1af9d3a 1008 int m_nid = memblock_get_region_node(m);
35fd0808 1009
9f3d5eaa 1010 if (should_skip_region(type_a, m, nid, flags))
bf3d3cc5
AB
1011 continue;
1012
f1af9d3a
PH
1013 if (!type_b) {
1014 if (out_start)
1015 *out_start = m_start;
1016 if (out_end)
1017 *out_end = m_end;
1018 if (out_nid)
1019 *out_nid = m_nid;
1020 idx_a++;
1021 *idx = (u32)idx_a | (u64)idx_b << 32;
1022 return;
1023 }
1024
1025 /* scan areas before each reservation */
1026 for (; idx_b < type_b->cnt + 1; idx_b++) {
1027 struct memblock_region *r;
1028 phys_addr_t r_start;
1029 phys_addr_t r_end;
1030
1031 r = &type_b->regions[idx_b];
1032 r_start = idx_b ? r[-1].base + r[-1].size : 0;
1033 r_end = idx_b < type_b->cnt ?
1c4bc43d 1034 r->base : PHYS_ADDR_MAX;
35fd0808 1035
f1af9d3a
PH
1036 /*
1037 * if idx_b advanced past idx_a,
1038 * break out to advance idx_a
1039 */
35fd0808
TH
1040 if (r_start >= m_end)
1041 break;
1042 /* if the two regions intersect, we're done */
1043 if (m_start < r_end) {
1044 if (out_start)
f1af9d3a
PH
1045 *out_start =
1046 max(m_start, r_start);
35fd0808
TH
1047 if (out_end)
1048 *out_end = min(m_end, r_end);
1049 if (out_nid)
f1af9d3a 1050 *out_nid = m_nid;
35fd0808 1051 /*
f1af9d3a
PH
1052 * The region which ends first is
1053 * advanced for the next iteration.
35fd0808
TH
1054 */
1055 if (m_end <= r_end)
f1af9d3a 1056 idx_a++;
35fd0808 1057 else
f1af9d3a
PH
1058 idx_b++;
1059 *idx = (u32)idx_a | (u64)idx_b << 32;
35fd0808
TH
1060 return;
1061 }
1062 }
1063 }
1064
1065 /* signal end of iteration */
1066 *idx = ULLONG_MAX;
1067}
1068
7bd0b0f0 1069/**
f1af9d3a
PH
1070 * __next_mem_range_rev - generic next function for for_each_*_range_rev()
1071 *
7bd0b0f0 1072 * @idx: pointer to u64 loop variable
ad5ea8cd 1073 * @nid: node selector, %NUMA_NO_NODE for all nodes
fc6daaf9 1074 * @flags: pick from blocks based on memory attributes
f1af9d3a
PH
1075 * @type_a: pointer to memblock_type from where the range is taken
1076 * @type_b: pointer to memblock_type which excludes memory from being taken
dad7557e
WL
1077 * @out_start: ptr to phys_addr_t for start address of the range, can be %NULL
1078 * @out_end: ptr to phys_addr_t for end address of the range, can be %NULL
1079 * @out_nid: ptr to int for nid of the range, can be %NULL
7bd0b0f0 1080 *
47cec443
MR
1081 * Finds the next range from type_a which is not marked as unsuitable
1082 * in type_b.
1083 *
f1af9d3a 1084 * Reverse of __next_mem_range().
7bd0b0f0 1085 */
e1720fee
MR
1086void __init_memblock __next_mem_range_rev(u64 *idx, int nid,
1087 enum memblock_flags flags,
f1af9d3a
PH
1088 struct memblock_type *type_a,
1089 struct memblock_type *type_b,
1090 phys_addr_t *out_start,
1091 phys_addr_t *out_end, int *out_nid)
7bd0b0f0 1092{
f1af9d3a
PH
1093 int idx_a = *idx & 0xffffffff;
1094 int idx_b = *idx >> 32;
b1154233 1095
560dca27
GS
1096 if (WARN_ONCE(nid == MAX_NUMNODES, "Usage of MAX_NUMNODES is deprecated. Use NUMA_NO_NODE instead\n"))
1097 nid = NUMA_NO_NODE;
7bd0b0f0
TH
1098
1099 if (*idx == (u64)ULLONG_MAX) {
f1af9d3a 1100 idx_a = type_a->cnt - 1;
e47608ab 1101 if (type_b != NULL)
1102 idx_b = type_b->cnt;
1103 else
1104 idx_b = 0;
7bd0b0f0
TH
1105 }
1106
f1af9d3a
PH
1107 for (; idx_a >= 0; idx_a--) {
1108 struct memblock_region *m = &type_a->regions[idx_a];
1109
7bd0b0f0
TH
1110 phys_addr_t m_start = m->base;
1111 phys_addr_t m_end = m->base + m->size;
f1af9d3a 1112 int m_nid = memblock_get_region_node(m);
7bd0b0f0 1113
9f3d5eaa 1114 if (should_skip_region(type_a, m, nid, flags))
bf3d3cc5
AB
1115 continue;
1116
f1af9d3a
PH
1117 if (!type_b) {
1118 if (out_start)
1119 *out_start = m_start;
1120 if (out_end)
1121 *out_end = m_end;
1122 if (out_nid)
1123 *out_nid = m_nid;
fb399b48 1124 idx_a--;
f1af9d3a
PH
1125 *idx = (u32)idx_a | (u64)idx_b << 32;
1126 return;
1127 }
1128
1129 /* scan areas before each reservation */
1130 for (; idx_b >= 0; idx_b--) {
1131 struct memblock_region *r;
1132 phys_addr_t r_start;
1133 phys_addr_t r_end;
1134
1135 r = &type_b->regions[idx_b];
1136 r_start = idx_b ? r[-1].base + r[-1].size : 0;
1137 r_end = idx_b < type_b->cnt ?
1c4bc43d 1138 r->base : PHYS_ADDR_MAX;
f1af9d3a
PH
1139 /*
1140 * if idx_b advanced past idx_a,
1141 * break out to advance idx_a
1142 */
7bd0b0f0 1143
7bd0b0f0
TH
1144 if (r_end <= m_start)
1145 break;
1146 /* if the two regions intersect, we're done */
1147 if (m_end > r_start) {
1148 if (out_start)
1149 *out_start = max(m_start, r_start);
1150 if (out_end)
1151 *out_end = min(m_end, r_end);
1152 if (out_nid)
f1af9d3a 1153 *out_nid = m_nid;
7bd0b0f0 1154 if (m_start >= r_start)
f1af9d3a 1155 idx_a--;
7bd0b0f0 1156 else
f1af9d3a
PH
1157 idx_b--;
1158 *idx = (u32)idx_a | (u64)idx_b << 32;
7bd0b0f0
TH
1159 return;
1160 }
1161 }
1162 }
f1af9d3a 1163 /* signal end of iteration */
7bd0b0f0
TH
1164 *idx = ULLONG_MAX;
1165}
1166
7c0caeb8 1167/*
45e79815 1168 * Common iterator interface used to define for_each_mem_pfn_range().
7c0caeb8
TH
1169 */
1170void __init_memblock __next_mem_pfn_range(int *idx, int nid,
1171 unsigned long *out_start_pfn,
1172 unsigned long *out_end_pfn, int *out_nid)
1173{
1174 struct memblock_type *type = &memblock.memory;
1175 struct memblock_region *r;
d622abf7 1176 int r_nid;
7c0caeb8
TH
1177
1178 while (++*idx < type->cnt) {
1179 r = &type->regions[*idx];
d622abf7 1180 r_nid = memblock_get_region_node(r);
7c0caeb8
TH
1181
1182 if (PFN_UP(r->base) >= PFN_DOWN(r->base + r->size))
1183 continue;
d622abf7 1184 if (nid == MAX_NUMNODES || nid == r_nid)
7c0caeb8
TH
1185 break;
1186 }
1187 if (*idx >= type->cnt) {
1188 *idx = -1;
1189 return;
1190 }
1191
1192 if (out_start_pfn)
1193 *out_start_pfn = PFN_UP(r->base);
1194 if (out_end_pfn)
1195 *out_end_pfn = PFN_DOWN(r->base + r->size);
1196 if (out_nid)
d622abf7 1197 *out_nid = r_nid;
7c0caeb8
TH
1198}
1199
1200/**
1201 * memblock_set_node - set node ID on memblock regions
1202 * @base: base of area to set node ID for
1203 * @size: size of area to set node ID for
e7e8de59 1204 * @type: memblock type to set node ID for
7c0caeb8
TH
1205 * @nid: node ID to set
1206 *
47cec443 1207 * Set the nid of memblock @type regions in [@base, @base + @size) to @nid.
7c0caeb8
TH
1208 * Regions which cross the area boundaries are split as necessary.
1209 *
47cec443 1210 * Return:
7c0caeb8
TH
1211 * 0 on success, -errno on failure.
1212 */
1213int __init_memblock memblock_set_node(phys_addr_t base, phys_addr_t size,
e7e8de59 1214 struct memblock_type *type, int nid)
7c0caeb8 1215{
a9ee6cf5 1216#ifdef CONFIG_NUMA
6a9ceb31
TH
1217 int start_rgn, end_rgn;
1218 int i, ret;
7c0caeb8 1219
6a9ceb31
TH
1220 ret = memblock_isolate_range(type, base, size, &start_rgn, &end_rgn);
1221 if (ret)
1222 return ret;
7c0caeb8 1223
6a9ceb31 1224 for (i = start_rgn; i < end_rgn; i++)
e9d24ad3 1225 memblock_set_region_node(&type->regions[i], nid);
7c0caeb8
TH
1226
1227 memblock_merge_regions(type);
3f08a302 1228#endif
7c0caeb8
TH
1229 return 0;
1230}
3f08a302 1231
837566e7
AD
1232#ifdef CONFIG_DEFERRED_STRUCT_PAGE_INIT
1233/**
1234 * __next_mem_pfn_range_in_zone - iterator for for_each_*_range_in_zone()
1235 *
1236 * @idx: pointer to u64 loop variable
1237 * @zone: zone in which all of the memory blocks reside
1238 * @out_spfn: ptr to ulong for start pfn of the range, can be %NULL
1239 * @out_epfn: ptr to ulong for end pfn of the range, can be %NULL
1240 *
1241 * This function is meant to be a zone/pfn specific wrapper for the
1242 * for_each_mem_range type iterators. Specifically they are used in the
1243 * deferred memory init routines and as such we were duplicating much of
1244 * this logic throughout the code. So instead of having it in multiple
1245 * locations it seemed like it would make more sense to centralize this to
1246 * one new iterator that does everything they need.
1247 */
1248void __init_memblock
1249__next_mem_pfn_range_in_zone(u64 *idx, struct zone *zone,
1250 unsigned long *out_spfn, unsigned long *out_epfn)
1251{
1252 int zone_nid = zone_to_nid(zone);
1253 phys_addr_t spa, epa;
1254 int nid;
1255
1256 __next_mem_range(idx, zone_nid, MEMBLOCK_NONE,
1257 &memblock.memory, &memblock.reserved,
1258 &spa, &epa, &nid);
1259
1260 while (*idx != U64_MAX) {
1261 unsigned long epfn = PFN_DOWN(epa);
1262 unsigned long spfn = PFN_UP(spa);
1263
1264 /*
1265 * Verify the end is at least past the start of the zone and
1266 * that we have at least one PFN to initialize.
1267 */
1268 if (zone->zone_start_pfn < epfn && spfn < epfn) {
1269 /* if we went too far just stop searching */
1270 if (zone_end_pfn(zone) <= spfn) {
1271 *idx = U64_MAX;
1272 break;
1273 }
1274
1275 if (out_spfn)
1276 *out_spfn = max(zone->zone_start_pfn, spfn);
1277 if (out_epfn)
1278 *out_epfn = min(zone_end_pfn(zone), epfn);
1279
1280 return;
1281 }
1282
1283 __next_mem_range(idx, zone_nid, MEMBLOCK_NONE,
1284 &memblock.memory, &memblock.reserved,
1285 &spa, &epa, &nid);
1286 }
1287
1288 /* signal end of iteration */
1289 if (out_spfn)
1290 *out_spfn = ULONG_MAX;
1291 if (out_epfn)
1292 *out_epfn = 0;
1293}
1294
1295#endif /* CONFIG_DEFERRED_STRUCT_PAGE_INIT */
7c0caeb8 1296
92d12f95
MR
1297/**
1298 * memblock_alloc_range_nid - allocate boot memory block
1299 * @size: size of memory block to be allocated in bytes
1300 * @align: alignment of the region and block's size
1301 * @start: the lower bound of the memory region to allocate (phys address)
1302 * @end: the upper bound of the memory region to allocate (phys address)
1303 * @nid: nid of the free area to find, %NUMA_NO_NODE for any node
0ac398b1 1304 * @exact_nid: control the allocation fall back to other nodes
92d12f95
MR
1305 *
1306 * The allocation is performed from memory region limited by
95830666 1307 * memblock.current_limit if @end == %MEMBLOCK_ALLOC_ACCESSIBLE.
92d12f95 1308 *
0ac398b1
YY
1309 * If the specified node can not hold the requested memory and @exact_nid
1310 * is false, the allocation falls back to any node in the system.
92d12f95
MR
1311 *
1312 * For systems with memory mirroring, the allocation is attempted first
1313 * from the regions with mirroring enabled and then retried from any
1314 * memory region.
1315 *
1316 * In addition, function sets the min_count to 0 using kmemleak_alloc_phys for
1317 * allocated boot memory block, so that it is never reported as leaks.
1318 *
1319 * Return:
1320 * Physical address of allocated memory block on success, %0 on failure.
1321 */
8676af1f 1322phys_addr_t __init memblock_alloc_range_nid(phys_addr_t size,
2bfc2862 1323 phys_addr_t align, phys_addr_t start,
0ac398b1
YY
1324 phys_addr_t end, int nid,
1325 bool exact_nid)
95f72d1e 1326{
92d12f95 1327 enum memblock_flags flags = choose_memblock_flags();
6ed311b2 1328 phys_addr_t found;
95f72d1e 1329
92d12f95
MR
1330 if (WARN_ONCE(nid == MAX_NUMNODES, "Usage of MAX_NUMNODES is deprecated. Use NUMA_NO_NODE instead\n"))
1331 nid = NUMA_NO_NODE;
1332
2f770806
MR
1333 if (!align) {
1334 /* Can't use WARNs this early in boot on powerpc */
1335 dump_stack();
1336 align = SMP_CACHE_BYTES;
1337 }
1338
92d12f95 1339again:
fc6daaf9
TL
1340 found = memblock_find_in_range_node(size, align, start, end, nid,
1341 flags);
92d12f95
MR
1342 if (found && !memblock_reserve(found, size))
1343 goto done;
1344
0ac398b1 1345 if (nid != NUMA_NO_NODE && !exact_nid) {
92d12f95
MR
1346 found = memblock_find_in_range_node(size, align, start,
1347 end, NUMA_NO_NODE,
1348 flags);
1349 if (found && !memblock_reserve(found, size))
1350 goto done;
1351 }
1352
1353 if (flags & MEMBLOCK_MIRROR) {
1354 flags &= ~MEMBLOCK_MIRROR;
1355 pr_warn("Could not allocate %pap bytes of mirrored memory\n",
1356 &size);
1357 goto again;
1358 }
1359
1360 return 0;
1361
1362done:
1363 /* Skip kmemleak for kasan_init() due to high volume. */
1364 if (end != MEMBLOCK_ALLOC_KASAN)
aedf95ea 1365 /*
92d12f95
MR
1366 * The min_count is set to 0 so that memblock allocated
1367 * blocks are never reported as leaks. This is because many
1368 * of these blocks are only referred via the physical
1369 * address which is not looked up by kmemleak.
aedf95ea 1370 */
9099daed 1371 kmemleak_alloc_phys(found, size, 0, 0);
92d12f95
MR
1372
1373 return found;
95f72d1e
YL
1374}
1375
a2974133
MR
1376/**
1377 * memblock_phys_alloc_range - allocate a memory block inside specified range
1378 * @size: size of memory block to be allocated in bytes
1379 * @align: alignment of the region and block's size
1380 * @start: the lower bound of the memory region to allocate (physical address)
1381 * @end: the upper bound of the memory region to allocate (physical address)
1382 *
1383 * Allocate @size bytes in the between @start and @end.
1384 *
1385 * Return: physical address of the allocated memory block on success,
1386 * %0 on failure.
1387 */
8a770c2a
MR
1388phys_addr_t __init memblock_phys_alloc_range(phys_addr_t size,
1389 phys_addr_t align,
1390 phys_addr_t start,
1391 phys_addr_t end)
2bfc2862 1392{
b5cf2d6c
FM
1393 memblock_dbg("%s: %llu bytes align=0x%llx from=%pa max_addr=%pa %pS\n",
1394 __func__, (u64)size, (u64)align, &start, &end,
1395 (void *)_RET_IP_);
0ac398b1
YY
1396 return memblock_alloc_range_nid(size, align, start, end, NUMA_NO_NODE,
1397 false);
7bd0b0f0
TH
1398}
1399
a2974133 1400/**
17cbe038 1401 * memblock_phys_alloc_try_nid - allocate a memory block from specified NUMA node
a2974133
MR
1402 * @size: size of memory block to be allocated in bytes
1403 * @align: alignment of the region and block's size
1404 * @nid: nid of the free area to find, %NUMA_NO_NODE for any node
1405 *
1406 * Allocates memory block from the specified NUMA node. If the node
1407 * has no available memory, attempts to allocated from any node in the
1408 * system.
1409 *
1410 * Return: physical address of the allocated memory block on success,
1411 * %0 on failure.
1412 */
9a8dd708 1413phys_addr_t __init memblock_phys_alloc_try_nid(phys_addr_t size, phys_addr_t align, int nid)
9d1e2492 1414{
33755574 1415 return memblock_alloc_range_nid(size, align, 0,
0ac398b1 1416 MEMBLOCK_ALLOC_ACCESSIBLE, nid, false);
95f72d1e
YL
1417}
1418
26f09e9b 1419/**
eb31d559 1420 * memblock_alloc_internal - allocate boot memory block
26f09e9b
SS
1421 * @size: size of memory block to be allocated in bytes
1422 * @align: alignment of the region and block's size
1423 * @min_addr: the lower bound of the memory region to allocate (phys address)
1424 * @max_addr: the upper bound of the memory region to allocate (phys address)
1425 * @nid: nid of the free area to find, %NUMA_NO_NODE for any node
0ac398b1 1426 * @exact_nid: control the allocation fall back to other nodes
26f09e9b 1427 *
92d12f95
MR
1428 * Allocates memory block using memblock_alloc_range_nid() and
1429 * converts the returned physical address to virtual.
26f09e9b 1430 *
92d12f95
MR
1431 * The @min_addr limit is dropped if it can not be satisfied and the allocation
1432 * will fall back to memory below @min_addr. Other constraints, such
1433 * as node and mirrored memory will be handled again in
1434 * memblock_alloc_range_nid().
26f09e9b 1435 *
47cec443 1436 * Return:
26f09e9b
SS
1437 * Virtual address of allocated memory block on success, NULL on failure.
1438 */
eb31d559 1439static void * __init memblock_alloc_internal(
26f09e9b
SS
1440 phys_addr_t size, phys_addr_t align,
1441 phys_addr_t min_addr, phys_addr_t max_addr,
0ac398b1 1442 int nid, bool exact_nid)
26f09e9b
SS
1443{
1444 phys_addr_t alloc;
26f09e9b
SS
1445
1446 /*
1447 * Detect any accidental use of these APIs after slab is ready, as at
1448 * this moment memblock may be deinitialized already and its
c6ffc5ca 1449 * internal data may be destroyed (after execution of memblock_free_all)
26f09e9b
SS
1450 */
1451 if (WARN_ON_ONCE(slab_is_available()))
1452 return kzalloc_node(size, GFP_NOWAIT, nid);
1453
f3057ad7
MR
1454 if (max_addr > memblock.current_limit)
1455 max_addr = memblock.current_limit;
1456
0ac398b1
YY
1457 alloc = memblock_alloc_range_nid(size, align, min_addr, max_addr, nid,
1458 exact_nid);
26f09e9b 1459
92d12f95
MR
1460 /* retry allocation without lower limit */
1461 if (!alloc && min_addr)
0ac398b1
YY
1462 alloc = memblock_alloc_range_nid(size, align, 0, max_addr, nid,
1463 exact_nid);
26f09e9b 1464
92d12f95
MR
1465 if (!alloc)
1466 return NULL;
26f09e9b 1467
92d12f95 1468 return phys_to_virt(alloc);
26f09e9b
SS
1469}
1470
0ac398b1
YY
1471/**
1472 * memblock_alloc_exact_nid_raw - allocate boot memory block on the exact node
1473 * without zeroing memory
1474 * @size: size of memory block to be allocated in bytes
1475 * @align: alignment of the region and block's size
1476 * @min_addr: the lower bound of the memory region from where the allocation
1477 * is preferred (phys address)
1478 * @max_addr: the upper bound of the memory region from where the allocation
1479 * is preferred (phys address), or %MEMBLOCK_ALLOC_ACCESSIBLE to
1480 * allocate only from memory limited by memblock.current_limit value
1481 * @nid: nid of the free area to find, %NUMA_NO_NODE for any node
1482 *
1483 * Public function, provides additional debug information (including caller
1484 * info), if enabled. Does not zero allocated memory.
1485 *
1486 * Return:
1487 * Virtual address of allocated memory block on success, NULL on failure.
1488 */
1489void * __init memblock_alloc_exact_nid_raw(
1490 phys_addr_t size, phys_addr_t align,
1491 phys_addr_t min_addr, phys_addr_t max_addr,
1492 int nid)
1493{
0ac398b1
YY
1494 memblock_dbg("%s: %llu bytes align=0x%llx nid=%d from=%pa max_addr=%pa %pS\n",
1495 __func__, (u64)size, (u64)align, nid, &min_addr,
1496 &max_addr, (void *)_RET_IP_);
1497
08678804
MR
1498 return memblock_alloc_internal(size, align, min_addr, max_addr, nid,
1499 true);
0ac398b1
YY
1500}
1501
ea1f5f37 1502/**
eb31d559 1503 * memblock_alloc_try_nid_raw - allocate boot memory block without zeroing
ea1f5f37
PT
1504 * memory and without panicking
1505 * @size: size of memory block to be allocated in bytes
1506 * @align: alignment of the region and block's size
1507 * @min_addr: the lower bound of the memory region from where the allocation
1508 * is preferred (phys address)
1509 * @max_addr: the upper bound of the memory region from where the allocation
97ad1087 1510 * is preferred (phys address), or %MEMBLOCK_ALLOC_ACCESSIBLE to
ea1f5f37
PT
1511 * allocate only from memory limited by memblock.current_limit value
1512 * @nid: nid of the free area to find, %NUMA_NO_NODE for any node
1513 *
1514 * Public function, provides additional debug information (including caller
1515 * info), if enabled. Does not zero allocated memory, does not panic if request
1516 * cannot be satisfied.
1517 *
47cec443 1518 * Return:
ea1f5f37
PT
1519 * Virtual address of allocated memory block on success, NULL on failure.
1520 */
eb31d559 1521void * __init memblock_alloc_try_nid_raw(
ea1f5f37
PT
1522 phys_addr_t size, phys_addr_t align,
1523 phys_addr_t min_addr, phys_addr_t max_addr,
1524 int nid)
1525{
d75f773c 1526 memblock_dbg("%s: %llu bytes align=0x%llx nid=%d from=%pa max_addr=%pa %pS\n",
a36aab89
MR
1527 __func__, (u64)size, (u64)align, nid, &min_addr,
1528 &max_addr, (void *)_RET_IP_);
ea1f5f37 1529
08678804
MR
1530 return memblock_alloc_internal(size, align, min_addr, max_addr, nid,
1531 false);
ea1f5f37
PT
1532}
1533
26f09e9b 1534/**
c0dbe825 1535 * memblock_alloc_try_nid - allocate boot memory block
26f09e9b
SS
1536 * @size: size of memory block to be allocated in bytes
1537 * @align: alignment of the region and block's size
1538 * @min_addr: the lower bound of the memory region from where the allocation
1539 * is preferred (phys address)
1540 * @max_addr: the upper bound of the memory region from where the allocation
97ad1087 1541 * is preferred (phys address), or %MEMBLOCK_ALLOC_ACCESSIBLE to
26f09e9b
SS
1542 * allocate only from memory limited by memblock.current_limit value
1543 * @nid: nid of the free area to find, %NUMA_NO_NODE for any node
1544 *
c0dbe825
MR
1545 * Public function, provides additional debug information (including caller
1546 * info), if enabled. This function zeroes the allocated memory.
26f09e9b 1547 *
47cec443 1548 * Return:
26f09e9b
SS
1549 * Virtual address of allocated memory block on success, NULL on failure.
1550 */
eb31d559 1551void * __init memblock_alloc_try_nid(
26f09e9b
SS
1552 phys_addr_t size, phys_addr_t align,
1553 phys_addr_t min_addr, phys_addr_t max_addr,
1554 int nid)
1555{
1556 void *ptr;
1557
d75f773c 1558 memblock_dbg("%s: %llu bytes align=0x%llx nid=%d from=%pa max_addr=%pa %pS\n",
a36aab89
MR
1559 __func__, (u64)size, (u64)align, nid, &min_addr,
1560 &max_addr, (void *)_RET_IP_);
eb31d559 1561 ptr = memblock_alloc_internal(size, align,
0ac398b1 1562 min_addr, max_addr, nid, false);
c0dbe825 1563 if (ptr)
ea1f5f37 1564 memset(ptr, 0, size);
26f09e9b 1565
c0dbe825 1566 return ptr;
26f09e9b
SS
1567}
1568
48a833cc 1569/**
a2974133 1570 * __memblock_free_late - free pages directly to buddy allocator
48a833cc 1571 * @base: phys starting address of the boot memory block
26f09e9b
SS
1572 * @size: size of the boot memory block in bytes
1573 *
a2974133 1574 * This is only useful when the memblock allocator has already been torn
26f09e9b 1575 * down, but we are still initializing the system. Pages are released directly
a2974133 1576 * to the buddy allocator.
26f09e9b
SS
1577 */
1578void __init __memblock_free_late(phys_addr_t base, phys_addr_t size)
1579{
a36aab89 1580 phys_addr_t cursor, end;
26f09e9b 1581
a36aab89 1582 end = base + size - 1;
d75f773c 1583 memblock_dbg("%s: [%pa-%pa] %pS\n",
a36aab89 1584 __func__, &base, &end, (void *)_RET_IP_);
9099daed 1585 kmemleak_free_part_phys(base, size);
26f09e9b
SS
1586 cursor = PFN_UP(base);
1587 end = PFN_DOWN(base + size);
1588
1589 for (; cursor < end; cursor++) {
7c2ee349 1590 memblock_free_pages(pfn_to_page(cursor), cursor, 0);
ca79b0c2 1591 totalram_pages_inc();
26f09e9b
SS
1592 }
1593}
9d1e2492
BH
1594
1595/*
1596 * Remaining API functions
1597 */
1598
1f1ffb8a 1599phys_addr_t __init_memblock memblock_phys_mem_size(void)
95f72d1e 1600{
1440c4e2 1601 return memblock.memory.total_size;
95f72d1e
YL
1602}
1603
8907de5d
SD
1604phys_addr_t __init_memblock memblock_reserved_size(void)
1605{
1606 return memblock.reserved.total_size;
1607}
1608
0a93ebef
SR
1609/* lowest address */
1610phys_addr_t __init_memblock memblock_start_of_DRAM(void)
1611{
1612 return memblock.memory.regions[0].base;
1613}
1614
10d06439 1615phys_addr_t __init_memblock memblock_end_of_DRAM(void)
95f72d1e
YL
1616{
1617 int idx = memblock.memory.cnt - 1;
1618
e3239ff9 1619 return (memblock.memory.regions[idx].base + memblock.memory.regions[idx].size);
95f72d1e
YL
1620}
1621
a571d4eb 1622static phys_addr_t __init_memblock __find_max_addr(phys_addr_t limit)
95f72d1e 1623{
1c4bc43d 1624 phys_addr_t max_addr = PHYS_ADDR_MAX;
136199f0 1625 struct memblock_region *r;
95f72d1e 1626
a571d4eb
DC
1627 /*
1628 * translate the memory @limit size into the max address within one of
1629 * the memory memblock regions, if the @limit exceeds the total size
1c4bc43d 1630 * of those regions, max_addr will keep original value PHYS_ADDR_MAX
a571d4eb 1631 */
cc6de168 1632 for_each_mem_region(r) {
c0ce8fef
TH
1633 if (limit <= r->size) {
1634 max_addr = r->base + limit;
1635 break;
95f72d1e 1636 }
c0ce8fef 1637 limit -= r->size;
95f72d1e 1638 }
c0ce8fef 1639
a571d4eb
DC
1640 return max_addr;
1641}
1642
1643void __init memblock_enforce_memory_limit(phys_addr_t limit)
1644{
49aef717 1645 phys_addr_t max_addr;
a571d4eb
DC
1646
1647 if (!limit)
1648 return;
1649
1650 max_addr = __find_max_addr(limit);
1651
1652 /* @limit exceeds the total size of the memory, do nothing */
1c4bc43d 1653 if (max_addr == PHYS_ADDR_MAX)
a571d4eb
DC
1654 return;
1655
c0ce8fef 1656 /* truncate both memory and reserved regions */
f1af9d3a 1657 memblock_remove_range(&memblock.memory, max_addr,
1c4bc43d 1658 PHYS_ADDR_MAX);
f1af9d3a 1659 memblock_remove_range(&memblock.reserved, max_addr,
1c4bc43d 1660 PHYS_ADDR_MAX);
95f72d1e
YL
1661}
1662
c9ca9b4e
AT
1663void __init memblock_cap_memory_range(phys_addr_t base, phys_addr_t size)
1664{
1665 int start_rgn, end_rgn;
1666 int i, ret;
1667
1668 if (!size)
1669 return;
1670
1671 ret = memblock_isolate_range(&memblock.memory, base, size,
1672 &start_rgn, &end_rgn);
1673 if (ret)
1674 return;
1675
1676 /* remove all the MAP regions */
1677 for (i = memblock.memory.cnt - 1; i >= end_rgn; i--)
1678 if (!memblock_is_nomap(&memblock.memory.regions[i]))
1679 memblock_remove_region(&memblock.memory, i);
1680
1681 for (i = start_rgn - 1; i >= 0; i--)
1682 if (!memblock_is_nomap(&memblock.memory.regions[i]))
1683 memblock_remove_region(&memblock.memory, i);
1684
1685 /* truncate the reserved regions */
1686 memblock_remove_range(&memblock.reserved, 0, base);
1687 memblock_remove_range(&memblock.reserved,
1c4bc43d 1688 base + size, PHYS_ADDR_MAX);
c9ca9b4e
AT
1689}
1690
a571d4eb
DC
1691void __init memblock_mem_limit_remove_map(phys_addr_t limit)
1692{
a571d4eb 1693 phys_addr_t max_addr;
a571d4eb
DC
1694
1695 if (!limit)
1696 return;
1697
1698 max_addr = __find_max_addr(limit);
1699
1700 /* @limit exceeds the total size of the memory, do nothing */
1c4bc43d 1701 if (max_addr == PHYS_ADDR_MAX)
a571d4eb
DC
1702 return;
1703
c9ca9b4e 1704 memblock_cap_memory_range(0, max_addr);
a571d4eb
DC
1705}
1706
cd79481d 1707static int __init_memblock memblock_search(struct memblock_type *type, phys_addr_t addr)
72d4b0b4
BH
1708{
1709 unsigned int left = 0, right = type->cnt;
1710
1711 do {
1712 unsigned int mid = (right + left) / 2;
1713
1714 if (addr < type->regions[mid].base)
1715 right = mid;
1716 else if (addr >= (type->regions[mid].base +
1717 type->regions[mid].size))
1718 left = mid + 1;
1719 else
1720 return mid;
1721 } while (left < right);
1722 return -1;
1723}
1724
f5a222dc 1725bool __init_memblock memblock_is_reserved(phys_addr_t addr)
95f72d1e 1726{
72d4b0b4
BH
1727 return memblock_search(&memblock.reserved, addr) != -1;
1728}
95f72d1e 1729
b4ad0c7e 1730bool __init_memblock memblock_is_memory(phys_addr_t addr)
72d4b0b4
BH
1731{
1732 return memblock_search(&memblock.memory, addr) != -1;
1733}
1734
937f0c26 1735bool __init_memblock memblock_is_map_memory(phys_addr_t addr)
bf3d3cc5
AB
1736{
1737 int i = memblock_search(&memblock.memory, addr);
1738
1739 if (i == -1)
1740 return false;
1741 return !memblock_is_nomap(&memblock.memory.regions[i]);
1742}
1743
e76b63f8
YL
1744int __init_memblock memblock_search_pfn_nid(unsigned long pfn,
1745 unsigned long *start_pfn, unsigned long *end_pfn)
1746{
1747 struct memblock_type *type = &memblock.memory;
16763230 1748 int mid = memblock_search(type, PFN_PHYS(pfn));
e76b63f8
YL
1749
1750 if (mid == -1)
1751 return -1;
1752
f7e2f7e8
FF
1753 *start_pfn = PFN_DOWN(type->regions[mid].base);
1754 *end_pfn = PFN_DOWN(type->regions[mid].base + type->regions[mid].size);
e76b63f8 1755
d622abf7 1756 return memblock_get_region_node(&type->regions[mid]);
e76b63f8 1757}
e76b63f8 1758
eab30949
SB
1759/**
1760 * memblock_is_region_memory - check if a region is a subset of memory
1761 * @base: base of region to check
1762 * @size: size of region to check
1763 *
47cec443 1764 * Check if the region [@base, @base + @size) is a subset of a memory block.
eab30949 1765 *
47cec443 1766 * Return:
eab30949
SB
1767 * 0 if false, non-zero if true
1768 */
937f0c26 1769bool __init_memblock memblock_is_region_memory(phys_addr_t base, phys_addr_t size)
72d4b0b4 1770{
abb65272 1771 int idx = memblock_search(&memblock.memory, base);
eb18f1b5 1772 phys_addr_t end = base + memblock_cap_size(base, &size);
72d4b0b4
BH
1773
1774 if (idx == -1)
937f0c26 1775 return false;
ef415ef4 1776 return (memblock.memory.regions[idx].base +
eb18f1b5 1777 memblock.memory.regions[idx].size) >= end;
95f72d1e
YL
1778}
1779
eab30949
SB
1780/**
1781 * memblock_is_region_reserved - check if a region intersects reserved memory
1782 * @base: base of region to check
1783 * @size: size of region to check
1784 *
47cec443
MR
1785 * Check if the region [@base, @base + @size) intersects a reserved
1786 * memory block.
eab30949 1787 *
47cec443 1788 * Return:
c5c5c9d1 1789 * True if they intersect, false if not.
eab30949 1790 */
c5c5c9d1 1791bool __init_memblock memblock_is_region_reserved(phys_addr_t base, phys_addr_t size)
95f72d1e 1792{
c5c5c9d1 1793 return memblock_overlaps_region(&memblock.reserved, base, size);
95f72d1e
YL
1794}
1795
6ede1fd3
YL
1796void __init_memblock memblock_trim_memory(phys_addr_t align)
1797{
6ede1fd3 1798 phys_addr_t start, end, orig_start, orig_end;
136199f0 1799 struct memblock_region *r;
6ede1fd3 1800
cc6de168 1801 for_each_mem_region(r) {
136199f0
EM
1802 orig_start = r->base;
1803 orig_end = r->base + r->size;
6ede1fd3
YL
1804 start = round_up(orig_start, align);
1805 end = round_down(orig_end, align);
1806
1807 if (start == orig_start && end == orig_end)
1808 continue;
1809
1810 if (start < end) {
136199f0
EM
1811 r->base = start;
1812 r->size = end - start;
6ede1fd3 1813 } else {
136199f0
EM
1814 memblock_remove_region(&memblock.memory,
1815 r - memblock.memory.regions);
1816 r--;
6ede1fd3
YL
1817 }
1818 }
1819}
e63075a3 1820
3661ca66 1821void __init_memblock memblock_set_current_limit(phys_addr_t limit)
e63075a3
BH
1822{
1823 memblock.current_limit = limit;
1824}
1825
fec51014
LA
1826phys_addr_t __init_memblock memblock_get_current_limit(void)
1827{
1828 return memblock.current_limit;
1829}
1830
0262d9c8 1831static void __init_memblock memblock_dump(struct memblock_type *type)
6ed311b2 1832{
5d63f81c 1833 phys_addr_t base, end, size;
e1720fee 1834 enum memblock_flags flags;
8c9c1701
AK
1835 int idx;
1836 struct memblock_region *rgn;
6ed311b2 1837
0262d9c8 1838 pr_info(" %s.cnt = 0x%lx\n", type->name, type->cnt);
6ed311b2 1839
66e8b438 1840 for_each_memblock_type(idx, type, rgn) {
7c0caeb8
TH
1841 char nid_buf[32] = "";
1842
1843 base = rgn->base;
1844 size = rgn->size;
5d63f81c 1845 end = base + size - 1;
66a20757 1846 flags = rgn->flags;
a9ee6cf5 1847#ifdef CONFIG_NUMA
7c0caeb8
TH
1848 if (memblock_get_region_node(rgn) != MAX_NUMNODES)
1849 snprintf(nid_buf, sizeof(nid_buf), " on node %d",
1850 memblock_get_region_node(rgn));
1851#endif
e1720fee 1852 pr_info(" %s[%#x]\t[%pa-%pa], %pa bytes%s flags: %#x\n",
0262d9c8 1853 type->name, idx, &base, &end, &size, nid_buf, flags);
6ed311b2
BH
1854 }
1855}
1856
87c55870 1857static void __init_memblock __memblock_dump_all(void)
6ed311b2 1858{
6ed311b2 1859 pr_info("MEMBLOCK configuration:\n");
5d63f81c
MC
1860 pr_info(" memory size = %pa reserved size = %pa\n",
1861 &memblock.memory.total_size,
1862 &memblock.reserved.total_size);
6ed311b2 1863
0262d9c8
HC
1864 memblock_dump(&memblock.memory);
1865 memblock_dump(&memblock.reserved);
409efd4c 1866#ifdef CONFIG_HAVE_MEMBLOCK_PHYS_MAP
77649905 1867 memblock_dump(&physmem);
409efd4c 1868#endif
6ed311b2
BH
1869}
1870
87c55870
MR
1871void __init_memblock memblock_dump_all(void)
1872{
1873 if (memblock_debug)
1874 __memblock_dump_all();
1875}
1876
1aadc056 1877void __init memblock_allow_resize(void)
6ed311b2 1878{
142b45a7 1879 memblock_can_resize = 1;
6ed311b2
BH
1880}
1881
6ed311b2
BH
1882static int __init early_memblock(char *p)
1883{
1884 if (p && strstr(p, "debug"))
1885 memblock_debug = 1;
1886 return 0;
1887}
1888early_param("memblock", early_memblock);
1889
4f5b0c17
MR
1890static void __init free_memmap(unsigned long start_pfn, unsigned long end_pfn)
1891{
1892 struct page *start_pg, *end_pg;
1893 phys_addr_t pg, pgend;
1894
1895 /*
1896 * Convert start_pfn/end_pfn to a struct page pointer.
1897 */
1898 start_pg = pfn_to_page(start_pfn - 1) + 1;
1899 end_pg = pfn_to_page(end_pfn - 1) + 1;
1900
1901 /*
1902 * Convert to physical addresses, and round start upwards and end
1903 * downwards.
1904 */
1905 pg = PAGE_ALIGN(__pa(start_pg));
1906 pgend = __pa(end_pg) & PAGE_MASK;
1907
1908 /*
1909 * If there are free pages between these, free the section of the
1910 * memmap array.
1911 */
1912 if (pg < pgend)
1913 memblock_free(pg, pgend - pg);
1914}
1915
1916/*
1917 * The mem_map array can get very big. Free the unused area of the memory map.
1918 */
1919static void __init free_unused_memmap(void)
1920{
1921 unsigned long start, end, prev_end = 0;
1922 int i;
1923
1924 if (!IS_ENABLED(CONFIG_HAVE_ARCH_PFN_VALID) ||
1925 IS_ENABLED(CONFIG_SPARSEMEM_VMEMMAP))
1926 return;
1927
1928 /*
1929 * This relies on each bank being in address order.
1930 * The banks are sorted previously in bootmem_init().
1931 */
1932 for_each_mem_pfn_range(i, MAX_NUMNODES, &start, &end, NULL) {
1933#ifdef CONFIG_SPARSEMEM
1934 /*
1935 * Take care not to free memmap entries that don't exist
1936 * due to SPARSEMEM sections which aren't present.
1937 */
1938 start = min(start, ALIGN(prev_end, PAGES_PER_SECTION));
f921f53e 1939#endif
4f5b0c17 1940 /*
e2a86800
MR
1941 * Align down here since many operations in VM subsystem
1942 * presume that there are no holes in the memory map inside
1943 * a pageblock
4f5b0c17 1944 */
e2a86800 1945 start = round_down(start, pageblock_nr_pages);
4f5b0c17
MR
1946
1947 /*
1948 * If we had a previous bank, and there is a space
1949 * between the current bank and the previous, free it.
1950 */
1951 if (prev_end && prev_end < start)
1952 free_memmap(prev_end, start);
1953
1954 /*
e2a86800
MR
1955 * Align up here since many operations in VM subsystem
1956 * presume that there are no holes in the memory map inside
1957 * a pageblock
4f5b0c17 1958 */
e2a86800 1959 prev_end = ALIGN(end, pageblock_nr_pages);
4f5b0c17
MR
1960 }
1961
1962#ifdef CONFIG_SPARSEMEM
f921f53e
MR
1963 if (!IS_ALIGNED(prev_end, PAGES_PER_SECTION)) {
1964 prev_end = ALIGN(end, pageblock_nr_pages);
4f5b0c17 1965 free_memmap(prev_end, ALIGN(prev_end, PAGES_PER_SECTION));
f921f53e 1966 }
4f5b0c17
MR
1967#endif
1968}
1969
bda49a81
MR
1970static void __init __free_pages_memory(unsigned long start, unsigned long end)
1971{
1972 int order;
1973
1974 while (start < end) {
1975 order = min(MAX_ORDER - 1UL, __ffs(start));
1976
1977 while (start + (1UL << order) > end)
1978 order--;
1979
1980 memblock_free_pages(pfn_to_page(start), start, order);
1981
1982 start += (1UL << order);
1983 }
1984}
1985
1986static unsigned long __init __free_memory_core(phys_addr_t start,
1987 phys_addr_t end)
1988{
1989 unsigned long start_pfn = PFN_UP(start);
1990 unsigned long end_pfn = min_t(unsigned long,
1991 PFN_DOWN(end), max_low_pfn);
1992
1993 if (start_pfn >= end_pfn)
1994 return 0;
1995
1996 __free_pages_memory(start_pfn, end_pfn);
1997
1998 return end_pfn - start_pfn;
1999}
2000
9092d4f7
MR
2001static void __init memmap_init_reserved_pages(void)
2002{
2003 struct memblock_region *region;
2004 phys_addr_t start, end;
2005 u64 i;
2006
2007 /* initialize struct pages for the reserved regions */
2008 for_each_reserved_mem_range(i, &start, &end)
2009 reserve_bootmem_region(start, end);
2010
2011 /* and also treat struct pages for the NOMAP regions as PageReserved */
2012 for_each_mem_region(region) {
2013 if (memblock_is_nomap(region)) {
2014 start = region->base;
2015 end = start + region->size;
2016 reserve_bootmem_region(start, end);
2017 }
2018 }
2019}
2020
bda49a81
MR
2021static unsigned long __init free_low_memory_core_early(void)
2022{
2023 unsigned long count = 0;
2024 phys_addr_t start, end;
2025 u64 i;
2026
2027 memblock_clear_hotplug(0, -1);
2028
9092d4f7 2029 memmap_init_reserved_pages();
bda49a81
MR
2030
2031 /*
2032 * We need to use NUMA_NO_NODE instead of NODE_DATA(0)->node_id
2033 * because in some case like Node0 doesn't have RAM installed
2034 * low ram will be on Node1
2035 */
2036 for_each_free_mem_range(i, NUMA_NO_NODE, MEMBLOCK_NONE, &start, &end,
2037 NULL)
2038 count += __free_memory_core(start, end);
2039
2040 return count;
2041}
2042
2043static int reset_managed_pages_done __initdata;
2044
2045void reset_node_managed_pages(pg_data_t *pgdat)
2046{
2047 struct zone *z;
2048
2049 for (z = pgdat->node_zones; z < pgdat->node_zones + MAX_NR_ZONES; z++)
9705bea5 2050 atomic_long_set(&z->managed_pages, 0);
bda49a81
MR
2051}
2052
2053void __init reset_all_zones_managed_pages(void)
2054{
2055 struct pglist_data *pgdat;
2056
2057 if (reset_managed_pages_done)
2058 return;
2059
2060 for_each_online_pgdat(pgdat)
2061 reset_node_managed_pages(pgdat);
2062
2063 reset_managed_pages_done = 1;
2064}
2065
2066/**
2067 * memblock_free_all - release free pages to the buddy allocator
bda49a81 2068 */
097d43d8 2069void __init memblock_free_all(void)
bda49a81
MR
2070{
2071 unsigned long pages;
2072
4f5b0c17 2073 free_unused_memmap();
bda49a81
MR
2074 reset_all_zones_managed_pages();
2075
2076 pages = free_low_memory_core_early();
ca79b0c2 2077 totalram_pages_add(pages);
bda49a81
MR
2078}
2079
350e88ba 2080#if defined(CONFIG_DEBUG_FS) && defined(CONFIG_ARCH_KEEP_MEMBLOCK)
6d03b885
BH
2081
2082static int memblock_debug_show(struct seq_file *m, void *private)
2083{
2084 struct memblock_type *type = m->private;
2085 struct memblock_region *reg;
2086 int i;
5d63f81c 2087 phys_addr_t end;
6d03b885
BH
2088
2089 for (i = 0; i < type->cnt; i++) {
2090 reg = &type->regions[i];
5d63f81c 2091 end = reg->base + reg->size - 1;
6d03b885 2092
5d63f81c
MC
2093 seq_printf(m, "%4d: ", i);
2094 seq_printf(m, "%pa..%pa\n", &reg->base, &end);
6d03b885
BH
2095 }
2096 return 0;
2097}
5ad35093 2098DEFINE_SHOW_ATTRIBUTE(memblock_debug);
6d03b885
BH
2099
2100static int __init memblock_init_debugfs(void)
2101{
2102 struct dentry *root = debugfs_create_dir("memblock", NULL);
d9f7979c 2103
0825a6f9
JP
2104 debugfs_create_file("memory", 0444, root,
2105 &memblock.memory, &memblock_debug_fops);
2106 debugfs_create_file("reserved", 0444, root,
2107 &memblock.reserved, &memblock_debug_fops);
70210ed9 2108#ifdef CONFIG_HAVE_MEMBLOCK_PHYS_MAP
77649905
DH
2109 debugfs_create_file("physmem", 0444, root, &physmem,
2110 &memblock_debug_fops);
70210ed9 2111#endif
6d03b885
BH
2112
2113 return 0;
2114}
2115__initcall(memblock_init_debugfs);
2116
2117#endif /* CONFIG_DEBUG_FS */