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10cef602
MM
1/*
2 * SLOB Allocator: Simple List Of Blocks
3 *
4 * Matt Mackall <mpm@selenic.com> 12/30/03
5 *
6193a2ff
PM
6 * NUMA support by Paul Mundt, 2007.
7 *
10cef602
MM
8 * How SLOB works:
9 *
10 * The core of SLOB is a traditional K&R style heap allocator, with
11 * support for returning aligned objects. The granularity of this
55394849
NP
12 * allocator is as little as 2 bytes, however typically most architectures
13 * will require 4 bytes on 32-bit and 8 bytes on 64-bit.
95b35127 14 *
20cecbae
MM
15 * The slob heap is a set of linked list of pages from alloc_pages(),
16 * and within each page, there is a singly-linked list of free blocks
17 * (slob_t). The heap is grown on demand. To reduce fragmentation,
18 * heap pages are segregated into three lists, with objects less than
19 * 256 bytes, objects less than 1024 bytes, and all other objects.
20 *
21 * Allocation from heap involves first searching for a page with
22 * sufficient free blocks (using a next-fit-like approach) followed by
23 * a first-fit scan of the page. Deallocation inserts objects back
24 * into the free list in address order, so this is effectively an
25 * address-ordered first fit.
10cef602
MM
26 *
27 * Above this is an implementation of kmalloc/kfree. Blocks returned
55394849 28 * from kmalloc are prepended with a 4-byte header with the kmalloc size.
10cef602 29 * If kmalloc is asked for objects of PAGE_SIZE or larger, it calls
6193a2ff 30 * alloc_pages() directly, allocating compound pages so the page order
d87a133f
NP
31 * does not have to be separately tracked, and also stores the exact
32 * allocation size in page->private so that it can be used to accurately
33 * provide ksize(). These objects are detected in kfree() because slob_page()
34 * is false for them.
10cef602
MM
35 *
36 * SLAB is emulated on top of SLOB by simply calling constructors and
95b35127
NP
37 * destructors for every SLAB allocation. Objects are returned with the
38 * 4-byte alignment unless the SLAB_HWCACHE_ALIGN flag is set, in which
39 * case the low-level allocator will fragment blocks to create the proper
40 * alignment. Again, objects of page-size or greater are allocated by
6193a2ff 41 * calling alloc_pages(). As SLAB objects know their size, no separate
95b35127 42 * size bookkeeping is necessary and there is essentially no allocation
d87a133f
NP
43 * space overhead, and compound pages aren't needed for multi-page
44 * allocations.
6193a2ff
PM
45 *
46 * NUMA support in SLOB is fairly simplistic, pushing most of the real
47 * logic down to the page allocator, and simply doing the node accounting
48 * on the upper levels. In the event that a node id is explicitly
6484eb3e 49 * provided, alloc_pages_exact_node() with the specified node id is used
6193a2ff
PM
50 * instead. The common case (or when the node id isn't explicitly provided)
51 * will default to the current node, as per numa_node_id().
52 *
53 * Node aware pages are still inserted in to the global freelist, and
54 * these are scanned for by matching against the node id encoded in the
55 * page flags. As a result, block allocations that can be satisfied from
56 * the freelist will only be done so on pages residing on the same node,
57 * in order to prevent random node placement.
10cef602
MM
58 */
59
95b35127 60#include <linux/kernel.h>
10cef602
MM
61#include <linux/slab.h>
62#include <linux/mm.h>
1f0532eb 63#include <linux/swap.h> /* struct reclaim_state */
10cef602
MM
64#include <linux/cache.h>
65#include <linux/init.h>
66#include <linux/module.h>
afc0cedb 67#include <linux/rcupdate.h>
95b35127 68#include <linux/list.h>
4374e616 69#include <linux/kmemleak.h>
039ca4e7
LZ
70
71#include <trace/events/kmem.h>
72
95b35127
NP
73#include <asm/atomic.h>
74
95b35127
NP
75/*
76 * slob_block has a field 'units', which indicates size of block if +ve,
77 * or offset of next block if -ve (in SLOB_UNITs).
78 *
79 * Free blocks of size 1 unit simply contain the offset of the next block.
80 * Those with larger size contain their size in the first SLOB_UNIT of
81 * memory, and the offset of the next free block in the second SLOB_UNIT.
82 */
55394849 83#if PAGE_SIZE <= (32767 * 2)
95b35127
NP
84typedef s16 slobidx_t;
85#else
86typedef s32 slobidx_t;
87#endif
88
10cef602 89struct slob_block {
95b35127 90 slobidx_t units;
55394849 91};
10cef602
MM
92typedef struct slob_block slob_t;
93
95b35127
NP
94/*
95 * We use struct page fields to manage some slob allocation aspects,
96 * however to avoid the horrible mess in include/linux/mm_types.h, we'll
97 * just define our own struct page type variant here.
98 */
99struct slob_page {
100 union {
101 struct {
102 unsigned long flags; /* mandatory */
103 atomic_t _count; /* mandatory */
104 slobidx_t units; /* free units left in page */
105 unsigned long pad[2];
106 slob_t *free; /* first free slob_t in page */
107 struct list_head list; /* linked list of free pages */
108 };
109 struct page page;
110 };
111};
112static inline void struct_slob_page_wrong_size(void)
113{ BUILD_BUG_ON(sizeof(struct slob_page) != sizeof(struct page)); }
114
115/*
116 * free_slob_page: call before a slob_page is returned to the page allocator.
117 */
118static inline void free_slob_page(struct slob_page *sp)
119{
120 reset_page_mapcount(&sp->page);
121 sp->page.mapping = NULL;
122}
123
124/*
20cecbae 125 * All partially free slob pages go on these lists.
95b35127 126 */
20cecbae
MM
127#define SLOB_BREAK1 256
128#define SLOB_BREAK2 1024
129static LIST_HEAD(free_slob_small);
130static LIST_HEAD(free_slob_medium);
131static LIST_HEAD(free_slob_large);
95b35127
NP
132
133/*
6e9ed0cc 134 * is_slob_page: True for all slob pages (false for bigblock pages)
95b35127 135 */
6e9ed0cc 136static inline int is_slob_page(struct slob_page *sp)
95b35127 137{
7303f240 138 return PageSlab((struct page *)sp);
95b35127
NP
139}
140
141static inline void set_slob_page(struct slob_page *sp)
142{
7303f240 143 __SetPageSlab((struct page *)sp);
95b35127
NP
144}
145
146static inline void clear_slob_page(struct slob_page *sp)
147{
7303f240 148 __ClearPageSlab((struct page *)sp);
95b35127
NP
149}
150
6e9ed0cc
AW
151static inline struct slob_page *slob_page(const void *addr)
152{
153 return (struct slob_page *)virt_to_page(addr);
154}
155
95b35127
NP
156/*
157 * slob_page_free: true for pages on free_slob_pages list.
158 */
159static inline int slob_page_free(struct slob_page *sp)
160{
9023cb7e 161 return PageSlobFree((struct page *)sp);
95b35127
NP
162}
163
20cecbae 164static void set_slob_page_free(struct slob_page *sp, struct list_head *list)
95b35127 165{
20cecbae 166 list_add(&sp->list, list);
9023cb7e 167 __SetPageSlobFree((struct page *)sp);
95b35127
NP
168}
169
170static inline void clear_slob_page_free(struct slob_page *sp)
171{
172 list_del(&sp->list);
9023cb7e 173 __ClearPageSlobFree((struct page *)sp);
95b35127
NP
174}
175
10cef602
MM
176#define SLOB_UNIT sizeof(slob_t)
177#define SLOB_UNITS(size) (((size) + SLOB_UNIT - 1)/SLOB_UNIT)
178#define SLOB_ALIGN L1_CACHE_BYTES
179
afc0cedb
NP
180/*
181 * struct slob_rcu is inserted at the tail of allocated slob blocks, which
182 * were created with a SLAB_DESTROY_BY_RCU slab. slob_rcu is used to free
183 * the block using call_rcu.
184 */
185struct slob_rcu {
186 struct rcu_head head;
187 int size;
188};
189
95b35127
NP
190/*
191 * slob_lock protects all slob allocator structures.
192 */
10cef602 193static DEFINE_SPINLOCK(slob_lock);
10cef602 194
95b35127
NP
195/*
196 * Encode the given size and next info into a free slob block s.
197 */
198static void set_slob(slob_t *s, slobidx_t size, slob_t *next)
199{
200 slob_t *base = (slob_t *)((unsigned long)s & PAGE_MASK);
201 slobidx_t offset = next - base;
bcb4ddb4 202
95b35127
NP
203 if (size > 1) {
204 s[0].units = size;
205 s[1].units = offset;
206 } else
207 s[0].units = -offset;
208}
10cef602 209
95b35127
NP
210/*
211 * Return the size of a slob block.
212 */
213static slobidx_t slob_units(slob_t *s)
214{
215 if (s->units > 0)
216 return s->units;
217 return 1;
218}
219
220/*
221 * Return the next free slob block pointer after this one.
222 */
223static slob_t *slob_next(slob_t *s)
224{
225 slob_t *base = (slob_t *)((unsigned long)s & PAGE_MASK);
226 slobidx_t next;
227
228 if (s[0].units < 0)
229 next = -s[0].units;
230 else
231 next = s[1].units;
232 return base+next;
233}
234
235/*
236 * Returns true if s is the last free block in its page.
237 */
238static int slob_last(slob_t *s)
239{
240 return !((unsigned long)slob_next(s) & ~PAGE_MASK);
241}
242
6e9ed0cc 243static void *slob_new_pages(gfp_t gfp, int order, int node)
6193a2ff
PM
244{
245 void *page;
246
247#ifdef CONFIG_NUMA
248 if (node != -1)
6484eb3e 249 page = alloc_pages_exact_node(node, gfp, order);
6193a2ff
PM
250 else
251#endif
252 page = alloc_pages(gfp, order);
253
254 if (!page)
255 return NULL;
256
257 return page_address(page);
258}
259
6e9ed0cc
AW
260static void slob_free_pages(void *b, int order)
261{
1f0532eb
NP
262 if (current->reclaim_state)
263 current->reclaim_state->reclaimed_slab += 1 << order;
6e9ed0cc
AW
264 free_pages((unsigned long)b, order);
265}
266
95b35127
NP
267/*
268 * Allocate a slob block within a given slob_page sp.
269 */
270static void *slob_page_alloc(struct slob_page *sp, size_t size, int align)
10cef602 271{
6e9ed0cc 272 slob_t *prev, *cur, *aligned = NULL;
10cef602 273 int delta = 0, units = SLOB_UNITS(size);
10cef602 274
95b35127
NP
275 for (prev = NULL, cur = sp->free; ; prev = cur, cur = slob_next(cur)) {
276 slobidx_t avail = slob_units(cur);
277
10cef602
MM
278 if (align) {
279 aligned = (slob_t *)ALIGN((unsigned long)cur, align);
280 delta = aligned - cur;
281 }
95b35127
NP
282 if (avail >= units + delta) { /* room enough? */
283 slob_t *next;
284
10cef602 285 if (delta) { /* need to fragment head to align? */
95b35127
NP
286 next = slob_next(cur);
287 set_slob(aligned, avail - delta, next);
288 set_slob(cur, delta, aligned);
10cef602
MM
289 prev = cur;
290 cur = aligned;
95b35127 291 avail = slob_units(cur);
10cef602
MM
292 }
293
95b35127
NP
294 next = slob_next(cur);
295 if (avail == units) { /* exact fit? unlink. */
296 if (prev)
297 set_slob(prev, slob_units(prev), next);
298 else
299 sp->free = next;
300 } else { /* fragment */
301 if (prev)
302 set_slob(prev, slob_units(prev), cur + units);
303 else
304 sp->free = cur + units;
305 set_slob(cur + units, avail - units, next);
10cef602
MM
306 }
307
95b35127
NP
308 sp->units -= units;
309 if (!sp->units)
310 clear_slob_page_free(sp);
10cef602
MM
311 return cur;
312 }
95b35127
NP
313 if (slob_last(cur))
314 return NULL;
315 }
316}
10cef602 317
95b35127
NP
318/*
319 * slob_alloc: entry point into the slob allocator.
320 */
6193a2ff 321static void *slob_alloc(size_t size, gfp_t gfp, int align, int node)
95b35127
NP
322{
323 struct slob_page *sp;
d6269543 324 struct list_head *prev;
20cecbae 325 struct list_head *slob_list;
95b35127
NP
326 slob_t *b = NULL;
327 unsigned long flags;
10cef602 328
20cecbae
MM
329 if (size < SLOB_BREAK1)
330 slob_list = &free_slob_small;
331 else if (size < SLOB_BREAK2)
332 slob_list = &free_slob_medium;
333 else
334 slob_list = &free_slob_large;
335
95b35127
NP
336 spin_lock_irqsave(&slob_lock, flags);
337 /* Iterate through each partially free page, try to find room */
20cecbae 338 list_for_each_entry(sp, slob_list, list) {
6193a2ff
PM
339#ifdef CONFIG_NUMA
340 /*
341 * If there's a node specification, search for a partial
342 * page with a matching node id in the freelist.
343 */
344 if (node != -1 && page_to_nid(&sp->page) != node)
345 continue;
346#endif
d6269543
MM
347 /* Enough room on this page? */
348 if (sp->units < SLOB_UNITS(size))
349 continue;
6193a2ff 350
d6269543
MM
351 /* Attempt to alloc */
352 prev = sp->list.prev;
353 b = slob_page_alloc(sp, size, align);
354 if (!b)
355 continue;
356
357 /* Improve fragment distribution and reduce our average
358 * search time by starting our next search here. (see
359 * Knuth vol 1, sec 2.5, pg 449) */
20cecbae
MM
360 if (prev != slob_list->prev &&
361 slob_list->next != prev->next)
362 list_move_tail(slob_list, prev->next);
d6269543 363 break;
10cef602 364 }
95b35127
NP
365 spin_unlock_irqrestore(&slob_lock, flags);
366
367 /* Not enough space: must allocate a new page */
368 if (!b) {
6e9ed0cc 369 b = slob_new_pages(gfp & ~__GFP_ZERO, 0, node);
95b35127 370 if (!b)
6e9ed0cc
AW
371 return NULL;
372 sp = slob_page(b);
95b35127
NP
373 set_slob_page(sp);
374
375 spin_lock_irqsave(&slob_lock, flags);
376 sp->units = SLOB_UNITS(PAGE_SIZE);
377 sp->free = b;
378 INIT_LIST_HEAD(&sp->list);
379 set_slob(b, SLOB_UNITS(PAGE_SIZE), b + SLOB_UNITS(PAGE_SIZE));
20cecbae 380 set_slob_page_free(sp, slob_list);
95b35127
NP
381 b = slob_page_alloc(sp, size, align);
382 BUG_ON(!b);
383 spin_unlock_irqrestore(&slob_lock, flags);
384 }
d07dbea4
CL
385 if (unlikely((gfp & __GFP_ZERO) && b))
386 memset(b, 0, size);
95b35127 387 return b;
10cef602
MM
388}
389
95b35127
NP
390/*
391 * slob_free: entry point into the slob allocator.
392 */
10cef602
MM
393static void slob_free(void *block, int size)
394{
95b35127
NP
395 struct slob_page *sp;
396 slob_t *prev, *next, *b = (slob_t *)block;
397 slobidx_t units;
10cef602 398 unsigned long flags;
d602daba 399 struct list_head *slob_list;
10cef602 400
2408c550 401 if (unlikely(ZERO_OR_NULL_PTR(block)))
10cef602 402 return;
95b35127 403 BUG_ON(!size);
10cef602 404
6e9ed0cc 405 sp = slob_page(block);
95b35127 406 units = SLOB_UNITS(size);
10cef602 407
10cef602 408 spin_lock_irqsave(&slob_lock, flags);
10cef602 409
95b35127
NP
410 if (sp->units + units == SLOB_UNITS(PAGE_SIZE)) {
411 /* Go directly to page allocator. Do not pass slob allocator */
412 if (slob_page_free(sp))
413 clear_slob_page_free(sp);
6fb8f424 414 spin_unlock_irqrestore(&slob_lock, flags);
95b35127
NP
415 clear_slob_page(sp);
416 free_slob_page(sp);
1f0532eb 417 slob_free_pages(b, 0);
6fb8f424 418 return;
95b35127 419 }
10cef602 420
95b35127
NP
421 if (!slob_page_free(sp)) {
422 /* This slob page is about to become partially free. Easy! */
423 sp->units = units;
424 sp->free = b;
425 set_slob(b, units,
426 (void *)((unsigned long)(b +
427 SLOB_UNITS(PAGE_SIZE)) & PAGE_MASK));
d602daba
BL
428 if (size < SLOB_BREAK1)
429 slob_list = &free_slob_small;
430 else if (size < SLOB_BREAK2)
431 slob_list = &free_slob_medium;
432 else
433 slob_list = &free_slob_large;
434 set_slob_page_free(sp, slob_list);
95b35127
NP
435 goto out;
436 }
437
438 /*
439 * Otherwise the page is already partially free, so find reinsertion
440 * point.
441 */
442 sp->units += units;
10cef602 443
95b35127 444 if (b < sp->free) {
679299b3
MM
445 if (b + units == sp->free) {
446 units += slob_units(sp->free);
447 sp->free = slob_next(sp->free);
448 }
95b35127
NP
449 set_slob(b, units, sp->free);
450 sp->free = b;
451 } else {
452 prev = sp->free;
453 next = slob_next(prev);
454 while (b > next) {
455 prev = next;
456 next = slob_next(prev);
457 }
10cef602 458
95b35127
NP
459 if (!slob_last(prev) && b + units == next) {
460 units += slob_units(next);
461 set_slob(b, units, slob_next(next));
462 } else
463 set_slob(b, units, next);
464
465 if (prev + slob_units(prev) == b) {
466 units = slob_units(b) + slob_units(prev);
467 set_slob(prev, units, slob_next(b));
468 } else
469 set_slob(prev, slob_units(prev), b);
470 }
471out:
10cef602
MM
472 spin_unlock_irqrestore(&slob_lock, flags);
473}
474
95b35127
NP
475/*
476 * End of slob allocator proper. Begin kmem_cache_alloc and kmalloc frontend.
477 */
478
6193a2ff 479void *__kmalloc_node(size_t size, gfp_t gfp, int node)
10cef602 480{
6cb8f913 481 unsigned int *m;
55394849 482 int align = max(ARCH_KMALLOC_MINALIGN, ARCH_SLAB_MINALIGN);
3eae2cb2 483 void *ret;
55394849 484
19cefdff 485 lockdep_trace_alloc(gfp);
cf40bd16 486
55394849 487 if (size < PAGE_SIZE - align) {
6cb8f913
CL
488 if (!size)
489 return ZERO_SIZE_PTR;
490
6193a2ff 491 m = slob_alloc(size + align, gfp, align, node);
3eae2cb2 492
239f49c0
MK
493 if (!m)
494 return NULL;
495 *m = size;
3eae2cb2
EGM
496 ret = (void *)m + align;
497
ca2b84cb
EGM
498 trace_kmalloc_node(_RET_IP_, ret,
499 size, size + align, gfp, node);
d87a133f 500 } else {
3eae2cb2 501 unsigned int order = get_order(size);
d87a133f 502
8df275af
DR
503 if (likely(order))
504 gfp |= __GFP_COMP;
505 ret = slob_new_pages(gfp, order, node);
d87a133f
NP
506 if (ret) {
507 struct page *page;
508 page = virt_to_page(ret);
509 page->private = size;
510 }
3eae2cb2 511
ca2b84cb
EGM
512 trace_kmalloc_node(_RET_IP_, ret,
513 size, PAGE_SIZE << order, gfp, node);
10cef602 514 }
3eae2cb2 515
4374e616 516 kmemleak_alloc(ret, size, 1, gfp);
3eae2cb2 517 return ret;
10cef602 518}
6193a2ff 519EXPORT_SYMBOL(__kmalloc_node);
10cef602
MM
520
521void kfree(const void *block)
522{
95b35127 523 struct slob_page *sp;
10cef602 524
2121db74
PE
525 trace_kfree(_RET_IP_, block);
526
2408c550 527 if (unlikely(ZERO_OR_NULL_PTR(block)))
10cef602 528 return;
4374e616 529 kmemleak_free(block);
10cef602 530
6e9ed0cc
AW
531 sp = slob_page(block);
532 if (is_slob_page(sp)) {
55394849
NP
533 int align = max(ARCH_KMALLOC_MINALIGN, ARCH_SLAB_MINALIGN);
534 unsigned int *m = (unsigned int *)(block - align);
535 slob_free(m, *m + align);
d87a133f
NP
536 } else
537 put_page(&sp->page);
10cef602 538}
10cef602
MM
539EXPORT_SYMBOL(kfree);
540
d87a133f 541/* can't use ksize for kmem_cache_alloc memory, only kmalloc */
fd76bab2 542size_t ksize(const void *block)
10cef602 543{
95b35127 544 struct slob_page *sp;
10cef602 545
ef8b4520
CL
546 BUG_ON(!block);
547 if (unlikely(block == ZERO_SIZE_PTR))
10cef602
MM
548 return 0;
549
6e9ed0cc
AW
550 sp = slob_page(block);
551 if (is_slob_page(sp)) {
70096a56
MM
552 int align = max(ARCH_KMALLOC_MINALIGN, ARCH_SLAB_MINALIGN);
553 unsigned int *m = (unsigned int *)(block - align);
554 return SLOB_UNITS(*m) * SLOB_UNIT;
555 } else
d87a133f 556 return sp->page.private;
10cef602 557}
b1aabecd 558EXPORT_SYMBOL(ksize);
10cef602
MM
559
560struct kmem_cache {
561 unsigned int size, align;
afc0cedb 562 unsigned long flags;
10cef602 563 const char *name;
51cc5068 564 void (*ctor)(void *);
10cef602
MM
565};
566
567struct kmem_cache *kmem_cache_create(const char *name, size_t size,
51cc5068 568 size_t align, unsigned long flags, void (*ctor)(void *))
10cef602
MM
569{
570 struct kmem_cache *c;
571
0701a9e6 572 c = slob_alloc(sizeof(struct kmem_cache),
5e18e2b8 573 GFP_KERNEL, ARCH_KMALLOC_MINALIGN, -1);
10cef602
MM
574
575 if (c) {
576 c->name = name;
577 c->size = size;
afc0cedb 578 if (flags & SLAB_DESTROY_BY_RCU) {
afc0cedb
NP
579 /* leave room for rcu footer at the end of object */
580 c->size += sizeof(struct slob_rcu);
581 }
582 c->flags = flags;
10cef602 583 c->ctor = ctor;
10cef602 584 /* ignore alignment unless it's forced */
5af60839 585 c->align = (flags & SLAB_HWCACHE_ALIGN) ? SLOB_ALIGN : 0;
55394849
NP
586 if (c->align < ARCH_SLAB_MINALIGN)
587 c->align = ARCH_SLAB_MINALIGN;
10cef602
MM
588 if (c->align < align)
589 c->align = align;
bc0055ae
AM
590 } else if (flags & SLAB_PANIC)
591 panic("Cannot create slab cache %s\n", name);
10cef602 592
4374e616 593 kmemleak_alloc(c, sizeof(struct kmem_cache), 1, GFP_KERNEL);
10cef602
MM
594 return c;
595}
596EXPORT_SYMBOL(kmem_cache_create);
597
133d205a 598void kmem_cache_destroy(struct kmem_cache *c)
10cef602 599{
4374e616 600 kmemleak_free(c);
7ed9f7e5
PM
601 if (c->flags & SLAB_DESTROY_BY_RCU)
602 rcu_barrier();
10cef602 603 slob_free(c, sizeof(struct kmem_cache));
10cef602
MM
604}
605EXPORT_SYMBOL(kmem_cache_destroy);
606
6193a2ff 607void *kmem_cache_alloc_node(struct kmem_cache *c, gfp_t flags, int node)
10cef602
MM
608{
609 void *b;
610
3eae2cb2 611 if (c->size < PAGE_SIZE) {
6193a2ff 612 b = slob_alloc(c->size, flags, c->align, node);
ca2b84cb
EGM
613 trace_kmem_cache_alloc_node(_RET_IP_, b, c->size,
614 SLOB_UNITS(c->size) * SLOB_UNIT,
615 flags, node);
3eae2cb2 616 } else {
6e9ed0cc 617 b = slob_new_pages(flags, get_order(c->size), node);
ca2b84cb
EGM
618 trace_kmem_cache_alloc_node(_RET_IP_, b, c->size,
619 PAGE_SIZE << get_order(c->size),
620 flags, node);
3eae2cb2 621 }
10cef602
MM
622
623 if (c->ctor)
51cc5068 624 c->ctor(b);
10cef602 625
4374e616 626 kmemleak_alloc_recursive(b, c->size, 1, c->flags, flags);
10cef602
MM
627 return b;
628}
6193a2ff 629EXPORT_SYMBOL(kmem_cache_alloc_node);
10cef602 630
afc0cedb 631static void __kmem_cache_free(void *b, int size)
10cef602 632{
afc0cedb
NP
633 if (size < PAGE_SIZE)
634 slob_free(b, size);
10cef602 635 else
6e9ed0cc 636 slob_free_pages(b, get_order(size));
afc0cedb
NP
637}
638
639static void kmem_rcu_free(struct rcu_head *head)
640{
641 struct slob_rcu *slob_rcu = (struct slob_rcu *)head;
642 void *b = (void *)slob_rcu - (slob_rcu->size - sizeof(struct slob_rcu));
643
644 __kmem_cache_free(b, slob_rcu->size);
645}
646
647void kmem_cache_free(struct kmem_cache *c, void *b)
648{
4374e616 649 kmemleak_free_recursive(b, c->flags);
afc0cedb
NP
650 if (unlikely(c->flags & SLAB_DESTROY_BY_RCU)) {
651 struct slob_rcu *slob_rcu;
652 slob_rcu = b + (c->size - sizeof(struct slob_rcu));
afc0cedb
NP
653 slob_rcu->size = c->size;
654 call_rcu(&slob_rcu->head, kmem_rcu_free);
655 } else {
afc0cedb
NP
656 __kmem_cache_free(b, c->size);
657 }
3eae2cb2 658
ca2b84cb 659 trace_kmem_cache_free(_RET_IP_, b);
10cef602
MM
660}
661EXPORT_SYMBOL(kmem_cache_free);
662
663unsigned int kmem_cache_size(struct kmem_cache *c)
664{
665 return c->size;
666}
667EXPORT_SYMBOL(kmem_cache_size);
668
669const char *kmem_cache_name(struct kmem_cache *c)
670{
671 return c->name;
672}
673EXPORT_SYMBOL(kmem_cache_name);
674
2e892f43
CL
675int kmem_cache_shrink(struct kmem_cache *d)
676{
677 return 0;
678}
679EXPORT_SYMBOL(kmem_cache_shrink);
680
55935a34 681int kmem_ptr_validate(struct kmem_cache *a, const void *b)
2e892f43
CL
682{
683 return 0;
684}
685
84a01c2f
PM
686static unsigned int slob_ready __read_mostly;
687
688int slab_is_available(void)
689{
690 return slob_ready;
691}
692
bcb4ddb4
DG
693void __init kmem_cache_init(void)
694{
84a01c2f 695 slob_ready = 1;
10cef602 696}
bbff2e43
WF
697
698void __init kmem_cache_init_late(void)
699{
700 /* Nothing to do */
701}