Merge branch 'for-linus' of git://git.kernel.org/pub/scm/linux/kernel/git/jikos/hid
[linux-2.6-block.git] / mm / cma.c
CommitLineData
a254129e
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1/*
2 * Contiguous Memory Allocator
3 *
4 * Copyright (c) 2010-2011 by Samsung Electronics.
5 * Copyright IBM Corporation, 2013
6 * Copyright LG Electronics Inc., 2014
7 * Written by:
8 * Marek Szyprowski <m.szyprowski@samsung.com>
9 * Michal Nazarewicz <mina86@mina86.com>
10 * Aneesh Kumar K.V <aneesh.kumar@linux.vnet.ibm.com>
11 * Joonsoo Kim <iamjoonsoo.kim@lge.com>
12 *
13 * This program is free software; you can redistribute it and/or
14 * modify it under the terms of the GNU General Public License as
15 * published by the Free Software Foundation; either version 2 of the
16 * License or (at your optional) any later version of the license.
17 */
18
19#define pr_fmt(fmt) "cma: " fmt
20
21#ifdef CONFIG_CMA_DEBUG
22#ifndef DEBUG
23# define DEBUG
24#endif
25#endif
26
27#include <linux/memblock.h>
28#include <linux/err.h>
29#include <linux/mm.h>
30#include <linux/mutex.h>
31#include <linux/sizes.h>
32#include <linux/slab.h>
33#include <linux/log2.h>
34#include <linux/cma.h>
f7426b98 35#include <linux/highmem.h>
620951e2 36#include <linux/io.h>
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37
38struct cma {
39 unsigned long base_pfn;
40 unsigned long count;
41 unsigned long *bitmap;
42 unsigned int order_per_bit; /* Order of pages represented by one bit */
43 struct mutex lock;
44};
45
46static struct cma cma_areas[MAX_CMA_AREAS];
47static unsigned cma_area_count;
48static DEFINE_MUTEX(cma_mutex);
49
50phys_addr_t cma_get_base(struct cma *cma)
51{
52 return PFN_PHYS(cma->base_pfn);
53}
54
55unsigned long cma_get_size(struct cma *cma)
56{
57 return cma->count << PAGE_SHIFT;
58}
59
60static unsigned long cma_bitmap_aligned_mask(struct cma *cma, int align_order)
61{
68faed63
WY
62 if (align_order <= cma->order_per_bit)
63 return 0;
64 return (1UL << (align_order - cma->order_per_bit)) - 1;
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65}
66
850fc430
DP
67/*
68 * Find a PFN aligned to the specified order and return an offset represented in
69 * order_per_bits.
70 */
b5be83e3
GF
71static unsigned long cma_bitmap_aligned_offset(struct cma *cma, int align_order)
72{
b5be83e3
GF
73 if (align_order <= cma->order_per_bit)
74 return 0;
850fc430
DP
75
76 return (ALIGN(cma->base_pfn, (1UL << align_order))
77 - cma->base_pfn) >> cma->order_per_bit;
b5be83e3
GF
78}
79
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80static unsigned long cma_bitmap_maxno(struct cma *cma)
81{
82 return cma->count >> cma->order_per_bit;
83}
84
85static unsigned long cma_bitmap_pages_to_bits(struct cma *cma,
86 unsigned long pages)
87{
88 return ALIGN(pages, 1UL << cma->order_per_bit) >> cma->order_per_bit;
89}
90
91static void cma_clear_bitmap(struct cma *cma, unsigned long pfn, int count)
92{
93 unsigned long bitmap_no, bitmap_count;
94
95 bitmap_no = (pfn - cma->base_pfn) >> cma->order_per_bit;
96 bitmap_count = cma_bitmap_pages_to_bits(cma, count);
97
98 mutex_lock(&cma->lock);
99 bitmap_clear(cma->bitmap, bitmap_no, bitmap_count);
100 mutex_unlock(&cma->lock);
101}
102
103static int __init cma_activate_area(struct cma *cma)
104{
105 int bitmap_size = BITS_TO_LONGS(cma_bitmap_maxno(cma)) * sizeof(long);
106 unsigned long base_pfn = cma->base_pfn, pfn = base_pfn;
107 unsigned i = cma->count >> pageblock_order;
108 struct zone *zone;
109
110 cma->bitmap = kzalloc(bitmap_size, GFP_KERNEL);
111
112 if (!cma->bitmap)
113 return -ENOMEM;
114
115 WARN_ON_ONCE(!pfn_valid(pfn));
116 zone = page_zone(pfn_to_page(pfn));
117
118 do {
119 unsigned j;
120
121 base_pfn = pfn;
122 for (j = pageblock_nr_pages; j; --j, pfn++) {
123 WARN_ON_ONCE(!pfn_valid(pfn));
124 /*
125 * alloc_contig_range requires the pfn range
126 * specified to be in the same zone. Make this
127 * simple by forcing the entire CMA resv range
128 * to be in the same zone.
129 */
130 if (page_zone(pfn_to_page(pfn)) != zone)
131 goto err;
132 }
133 init_cma_reserved_pageblock(pfn_to_page(base_pfn));
134 } while (--i);
135
136 mutex_init(&cma->lock);
137 return 0;
138
139err:
140 kfree(cma->bitmap);
f022d8cb 141 cma->count = 0;
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142 return -EINVAL;
143}
144
145static int __init cma_init_reserved_areas(void)
146{
147 int i;
148
149 for (i = 0; i < cma_area_count; i++) {
150 int ret = cma_activate_area(&cma_areas[i]);
151
152 if (ret)
153 return ret;
154 }
155
156 return 0;
157}
158core_initcall(cma_init_reserved_areas);
159
de9e14ee
MS
160/**
161 * cma_init_reserved_mem() - create custom contiguous area from reserved memory
162 * @base: Base address of the reserved area
163 * @size: Size of the reserved area (in bytes),
164 * @order_per_bit: Order of pages represented by one bit on bitmap.
165 * @res_cma: Pointer to store the created cma region.
166 *
167 * This function creates custom contiguous area from already reserved memory.
168 */
169int __init cma_init_reserved_mem(phys_addr_t base, phys_addr_t size,
170 int order_per_bit, struct cma **res_cma)
171{
172 struct cma *cma;
173 phys_addr_t alignment;
174
175 /* Sanity checks */
176 if (cma_area_count == ARRAY_SIZE(cma_areas)) {
177 pr_err("Not enough slots for CMA reserved regions!\n");
178 return -ENOSPC;
179 }
180
181 if (!size || !memblock_is_region_reserved(base, size))
182 return -EINVAL;
183
184 /* ensure minimal alignment requied by mm core */
185 alignment = PAGE_SIZE << max(MAX_ORDER - 1, pageblock_order);
186
187 /* alignment should be aligned with order_per_bit */
188 if (!IS_ALIGNED(alignment >> PAGE_SHIFT, 1 << order_per_bit))
189 return -EINVAL;
190
191 if (ALIGN(base, alignment) != base || ALIGN(size, alignment) != size)
192 return -EINVAL;
193
194 /*
195 * Each reserved area must be initialised later, when more kernel
196 * subsystems (like slab allocator) are available.
197 */
198 cma = &cma_areas[cma_area_count];
199 cma->base_pfn = PFN_DOWN(base);
200 cma->count = size >> PAGE_SHIFT;
201 cma->order_per_bit = order_per_bit;
202 *res_cma = cma;
203 cma_area_count++;
94737a85 204 totalcma_pages += (size / PAGE_SIZE);
de9e14ee
MS
205
206 return 0;
207}
208
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209/**
210 * cma_declare_contiguous() - reserve custom contiguous area
a254129e 211 * @base: Base address of the reserved area optional, use 0 for any
c1f733aa 212 * @size: Size of the reserved area (in bytes),
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213 * @limit: End address of the reserved memory (optional, 0 for any).
214 * @alignment: Alignment for the CMA area, should be power of 2 or zero
215 * @order_per_bit: Order of pages represented by one bit on bitmap.
a254129e 216 * @fixed: hint about where to place the reserved area
c1f733aa 217 * @res_cma: Pointer to store the created cma region.
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218 *
219 * This function reserves memory from early allocator. It should be
220 * called by arch specific code once the early allocator (memblock or bootmem)
221 * has been activated and all other subsystems have already allocated/reserved
222 * memory. This function allows to create custom reserved areas.
223 *
224 * If @fixed is true, reserve contiguous area at exactly @base. If false,
225 * reserve in range from @base to @limit.
226 */
c1f733aa
JK
227int __init cma_declare_contiguous(phys_addr_t base,
228 phys_addr_t size, phys_addr_t limit,
a254129e 229 phys_addr_t alignment, unsigned int order_per_bit,
c1f733aa 230 bool fixed, struct cma **res_cma)
a254129e 231{
f7426b98 232 phys_addr_t memblock_end = memblock_end_of_DRAM();
6b101e2a 233 phys_addr_t highmem_start;
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234 int ret = 0;
235
6b101e2a
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236#ifdef CONFIG_X86
237 /*
238 * high_memory isn't direct mapped memory so retrieving its physical
239 * address isn't appropriate. But it would be useful to check the
240 * physical address of the highmem boundary so it's justfiable to get
241 * the physical address from it. On x86 there is a validation check for
242 * this case, so the following workaround is needed to avoid it.
243 */
244 highmem_start = __pa_nodebug(high_memory);
245#else
246 highmem_start = __pa(high_memory);
247#endif
56fa4f60
LP
248 pr_debug("%s(size %pa, base %pa, limit %pa alignment %pa)\n",
249 __func__, &size, &base, &limit, &alignment);
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250
251 if (cma_area_count == ARRAY_SIZE(cma_areas)) {
252 pr_err("Not enough slots for CMA reserved regions!\n");
253 return -ENOSPC;
254 }
255
256 if (!size)
257 return -EINVAL;
258
259 if (alignment && !is_power_of_2(alignment))
260 return -EINVAL;
261
262 /*
263 * Sanitise input arguments.
264 * Pages both ends in CMA area could be merged into adjacent unmovable
265 * migratetype page by page allocator's buddy algorithm. In the case,
266 * you couldn't get a contiguous memory, which is not what we want.
267 */
268 alignment = max(alignment,
269 (phys_addr_t)PAGE_SIZE << max(MAX_ORDER - 1, pageblock_order));
270 base = ALIGN(base, alignment);
271 size = ALIGN(size, alignment);
272 limit &= ~(alignment - 1);
273
800a85d3
LP
274 if (!base)
275 fixed = false;
276
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277 /* size should be aligned with order_per_bit */
278 if (!IS_ALIGNED(size >> PAGE_SHIFT, 1 << order_per_bit))
279 return -EINVAL;
280
f7426b98 281 /*
16195ddd
LP
282 * If allocating at a fixed base the request region must not cross the
283 * low/high memory boundary.
f7426b98 284 */
16195ddd 285 if (fixed && base < highmem_start && base + size > highmem_start) {
f7426b98 286 ret = -EINVAL;
56fa4f60
LP
287 pr_err("Region at %pa defined on low/high memory boundary (%pa)\n",
288 &base, &highmem_start);
f7426b98
MS
289 goto err;
290 }
291
16195ddd
LP
292 /*
293 * If the limit is unspecified or above the memblock end, its effective
294 * value will be the memblock end. Set it explicitly to simplify further
295 * checks.
296 */
297 if (limit == 0 || limit > memblock_end)
298 limit = memblock_end;
299
a254129e 300 /* Reserve memory */
800a85d3 301 if (fixed) {
a254129e
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302 if (memblock_is_region_reserved(base, size) ||
303 memblock_reserve(base, size) < 0) {
304 ret = -EBUSY;
305 goto err;
306 }
307 } else {
16195ddd
LP
308 phys_addr_t addr = 0;
309
310 /*
311 * All pages in the reserved area must come from the same zone.
312 * If the requested region crosses the low/high memory boundary,
313 * try allocating from high memory first and fall back to low
314 * memory in case of failure.
315 */
316 if (base < highmem_start && limit > highmem_start) {
317 addr = memblock_alloc_range(size, alignment,
318 highmem_start, limit);
319 limit = highmem_start;
320 }
321
a254129e 322 if (!addr) {
16195ddd
LP
323 addr = memblock_alloc_range(size, alignment, base,
324 limit);
325 if (!addr) {
326 ret = -ENOMEM;
327 goto err;
328 }
a254129e 329 }
16195ddd 330
620951e2
TR
331 /*
332 * kmemleak scans/reads tracked objects for pointers to other
333 * objects but this address isn't mapped and accessible
334 */
335 kmemleak_ignore(phys_to_virt(addr));
16195ddd 336 base = addr;
a254129e
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337 }
338
de9e14ee
MS
339 ret = cma_init_reserved_mem(base, size, order_per_bit, res_cma);
340 if (ret)
341 goto err;
a254129e 342
56fa4f60
LP
343 pr_info("Reserved %ld MiB at %pa\n", (unsigned long)size / SZ_1M,
344 &base);
a254129e
JK
345 return 0;
346
347err:
0de9d2eb 348 pr_err("Failed to reserve %ld MiB\n", (unsigned long)size / SZ_1M);
a254129e
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349 return ret;
350}
351
352/**
353 * cma_alloc() - allocate pages from contiguous area
354 * @cma: Contiguous memory region for which the allocation is performed.
355 * @count: Requested number of pages.
356 * @align: Requested alignment of pages (in PAGE_SIZE order).
357 *
358 * This function allocates part of contiguous memory on specific
359 * contiguous memory area.
360 */
361struct page *cma_alloc(struct cma *cma, int count, unsigned int align)
362{
b5be83e3 363 unsigned long mask, offset, pfn, start = 0;
a254129e
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364 unsigned long bitmap_maxno, bitmap_no, bitmap_count;
365 struct page *page = NULL;
366 int ret;
367
368 if (!cma || !cma->count)
369 return NULL;
370
371 pr_debug("%s(cma %p, count %d, align %d)\n", __func__, (void *)cma,
372 count, align);
373
374 if (!count)
375 return NULL;
376
377 mask = cma_bitmap_aligned_mask(cma, align);
b5be83e3 378 offset = cma_bitmap_aligned_offset(cma, align);
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379 bitmap_maxno = cma_bitmap_maxno(cma);
380 bitmap_count = cma_bitmap_pages_to_bits(cma, count);
381
382 for (;;) {
383 mutex_lock(&cma->lock);
b5be83e3
GF
384 bitmap_no = bitmap_find_next_zero_area_off(cma->bitmap,
385 bitmap_maxno, start, bitmap_count, mask,
386 offset);
a254129e
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387 if (bitmap_no >= bitmap_maxno) {
388 mutex_unlock(&cma->lock);
389 break;
390 }
391 bitmap_set(cma->bitmap, bitmap_no, bitmap_count);
392 /*
393 * It's safe to drop the lock here. We've marked this region for
394 * our exclusive use. If the migration fails we will take the
395 * lock again and unmark it.
396 */
397 mutex_unlock(&cma->lock);
398
399 pfn = cma->base_pfn + (bitmap_no << cma->order_per_bit);
400 mutex_lock(&cma_mutex);
401 ret = alloc_contig_range(pfn, pfn + count, MIGRATE_CMA);
402 mutex_unlock(&cma_mutex);
403 if (ret == 0) {
404 page = pfn_to_page(pfn);
405 break;
a254129e 406 }
b7155e76 407
a254129e 408 cma_clear_bitmap(cma, pfn, count);
b7155e76
JK
409 if (ret != -EBUSY)
410 break;
411
a254129e
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412 pr_debug("%s(): memory range at %p is busy, retrying\n",
413 __func__, pfn_to_page(pfn));
414 /* try again with a bit different memory target */
415 start = bitmap_no + mask + 1;
416 }
417
418 pr_debug("%s(): returned %p\n", __func__, page);
419 return page;
420}
421
422/**
423 * cma_release() - release allocated pages
424 * @cma: Contiguous memory region for which the allocation is performed.
425 * @pages: Allocated pages.
426 * @count: Number of allocated pages.
427 *
428 * This function releases memory allocated by alloc_cma().
429 * It returns false when provided pages do not belong to contiguous area and
430 * true otherwise.
431 */
432bool cma_release(struct cma *cma, struct page *pages, int count)
433{
434 unsigned long pfn;
435
436 if (!cma || !pages)
437 return false;
438
439 pr_debug("%s(page %p)\n", __func__, (void *)pages);
440
441 pfn = page_to_pfn(pages);
442
443 if (pfn < cma->base_pfn || pfn >= cma->base_pfn + cma->count)
444 return false;
445
446 VM_BUG_ON(pfn + count > cma->base_pfn + cma->count);
447
448 free_contig_range(pfn, count);
449 cma_clear_bitmap(cma, pfn, count);
450
451 return true;
452}