ARM: amba: Make driver_override output consistent with other buses
[linux/fpc-iii.git] / mm / slab.c
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1 // SPDX-License-Identifier: GPL-2.0
2 /*
3 * linux/mm/slab.c
4 * Written by Mark Hemment, 1996/97.
5 * (markhe@nextd.demon.co.uk)
7 * kmem_cache_destroy() + some cleanup - 1999 Andrea Arcangeli
9 * Major cleanup, different bufctl logic, per-cpu arrays
10 * (c) 2000 Manfred Spraul
12 * Cleanup, make the head arrays unconditional, preparation for NUMA
13 * (c) 2002 Manfred Spraul
15 * An implementation of the Slab Allocator as described in outline in;
16 * UNIX Internals: The New Frontiers by Uresh Vahalia
17 * Pub: Prentice Hall ISBN 0-13-101908-2
18 * or with a little more detail in;
19 * The Slab Allocator: An Object-Caching Kernel Memory Allocator
20 * Jeff Bonwick (Sun Microsystems).
21 * Presented at: USENIX Summer 1994 Technical Conference
23 * The memory is organized in caches, one cache for each object type.
24 * (e.g. inode_cache, dentry_cache, buffer_head, vm_area_struct)
25 * Each cache consists out of many slabs (they are small (usually one
26 * page long) and always contiguous), and each slab contains multiple
27 * initialized objects.
29 * This means, that your constructor is used only for newly allocated
30 * slabs and you must pass objects with the same initializations to
31 * kmem_cache_free.
33 * Each cache can only support one memory type (GFP_DMA, GFP_HIGHMEM,
34 * normal). If you need a special memory type, then must create a new
35 * cache for that memory type.
37 * In order to reduce fragmentation, the slabs are sorted in 3 groups:
38 * full slabs with 0 free objects
39 * partial slabs
40 * empty slabs with no allocated objects
42 * If partial slabs exist, then new allocations come from these slabs,
43 * otherwise from empty slabs or new slabs are allocated.
45 * kmem_cache_destroy() CAN CRASH if you try to allocate from the cache
46 * during kmem_cache_destroy(). The caller must prevent concurrent allocs.
48 * Each cache has a short per-cpu head array, most allocs
49 * and frees go into that array, and if that array overflows, then 1/2
50 * of the entries in the array are given back into the global cache.
51 * The head array is strictly LIFO and should improve the cache hit rates.
52 * On SMP, it additionally reduces the spinlock operations.
54 * The c_cpuarray may not be read with enabled local interrupts -
55 * it's changed with a smp_call_function().
57 * SMP synchronization:
58 * constructors and destructors are called without any locking.
59 * Several members in struct kmem_cache and struct slab never change, they
60 * are accessed without any locking.
61 * The per-cpu arrays are never accessed from the wrong cpu, no locking,
62 * and local interrupts are disabled so slab code is preempt-safe.
63 * The non-constant members are protected with a per-cache irq spinlock.
65 * Many thanks to Mark Hemment, who wrote another per-cpu slab patch
66 * in 2000 - many ideas in the current implementation are derived from
67 * his patch.
69 * Further notes from the original documentation:
71 * 11 April '97. Started multi-threading - markhe
72 * The global cache-chain is protected by the mutex 'slab_mutex'.
73 * The sem is only needed when accessing/extending the cache-chain, which
74 * can never happen inside an interrupt (kmem_cache_create(),
75 * kmem_cache_shrink() and kmem_cache_reap()).
77 * At present, each engine can be growing a cache. This should be blocked.
79 * 15 March 2005. NUMA slab allocator.
80 * Shai Fultheim <shai@scalex86.org>.
81 * Shobhit Dayal <shobhit@calsoftinc.com>
82 * Alok N Kataria <alokk@calsoftinc.com>
83 * Christoph Lameter <christoph@lameter.com>
85 * Modified the slab allocator to be node aware on NUMA systems.
86 * Each node has its own list of partial, free and full slabs.
87 * All object allocations for a node occur from node specific slab lists.
90 #include <linux/slab.h>
91 #include <linux/mm.h>
92 #include <linux/poison.h>
93 #include <linux/swap.h>
94 #include <linux/cache.h>
95 #include <linux/interrupt.h>
96 #include <linux/init.h>
97 #include <linux/compiler.h>
98 #include <linux/cpuset.h>
99 #include <linux/proc_fs.h>
100 #include <linux/seq_file.h>
101 #include <linux/notifier.h>
102 #include <linux/kallsyms.h>
103 #include <linux/cpu.h>
104 #include <linux/sysctl.h>
105 #include <linux/module.h>
106 #include <linux/rcupdate.h>
107 #include <linux/string.h>
108 #include <linux/uaccess.h>
109 #include <linux/nodemask.h>
110 #include <linux/kmemleak.h>
111 #include <linux/mempolicy.h>
112 #include <linux/mutex.h>
113 #include <linux/fault-inject.h>
114 #include <linux/rtmutex.h>
115 #include <linux/reciprocal_div.h>
116 #include <linux/debugobjects.h>
117 #include <linux/memory.h>
118 #include <linux/prefetch.h>
119 #include <linux/sched/task_stack.h>
121 #include <net/sock.h>
123 #include <asm/cacheflush.h>
124 #include <asm/tlbflush.h>
125 #include <asm/page.h>
127 #include <trace/events/kmem.h>
129 #include "internal.h"
131 #include "slab.h"
134 * DEBUG - 1 for kmem_cache_create() to honour; SLAB_RED_ZONE & SLAB_POISON.
135 * 0 for faster, smaller code (especially in the critical paths).
137 * STATS - 1 to collect stats for /proc/slabinfo.
138 * 0 for faster, smaller code (especially in the critical paths).
140 * FORCED_DEBUG - 1 enables SLAB_RED_ZONE and SLAB_POISON (if possible)
143 #ifdef CONFIG_DEBUG_SLAB
144 #define DEBUG 1
145 #define STATS 1
146 #define FORCED_DEBUG 1
147 #else
148 #define DEBUG 0
149 #define STATS 0
150 #define FORCED_DEBUG 0
151 #endif
153 /* Shouldn't this be in a header file somewhere? */
154 #define BYTES_PER_WORD sizeof(void *)
155 #define REDZONE_ALIGN max(BYTES_PER_WORD, __alignof__(unsigned long long))
157 #ifndef ARCH_KMALLOC_FLAGS
158 #define ARCH_KMALLOC_FLAGS SLAB_HWCACHE_ALIGN
159 #endif
161 #define FREELIST_BYTE_INDEX (((PAGE_SIZE >> BITS_PER_BYTE) \
162 <= SLAB_OBJ_MIN_SIZE) ? 1 : 0)
164 #if FREELIST_BYTE_INDEX
165 typedef unsigned char freelist_idx_t;
166 #else
167 typedef unsigned short freelist_idx_t;
168 #endif
170 #define SLAB_OBJ_MAX_NUM ((1 << sizeof(freelist_idx_t) * BITS_PER_BYTE) - 1)
173 * struct array_cache
175 * Purpose:
176 * - LIFO ordering, to hand out cache-warm objects from _alloc
177 * - reduce the number of linked list operations
178 * - reduce spinlock operations
180 * The limit is stored in the per-cpu structure to reduce the data cache
181 * footprint.
184 struct array_cache {
185 unsigned int avail;
186 unsigned int limit;
187 unsigned int batchcount;
188 unsigned int touched;
189 void *entry[]; /*
190 * Must have this definition in here for the proper
191 * alignment of array_cache. Also simplifies accessing
192 * the entries.
196 struct alien_cache {
197 spinlock_t lock;
198 struct array_cache ac;
202 * Need this for bootstrapping a per node allocator.
204 #define NUM_INIT_LISTS (2 * MAX_NUMNODES)
205 static struct kmem_cache_node __initdata init_kmem_cache_node[NUM_INIT_LISTS];
206 #define CACHE_CACHE 0
207 #define SIZE_NODE (MAX_NUMNODES)
209 static int drain_freelist(struct kmem_cache *cache,
210 struct kmem_cache_node *n, int tofree);
211 static void free_block(struct kmem_cache *cachep, void **objpp, int len,
212 int node, struct list_head *list);
213 static void slabs_destroy(struct kmem_cache *cachep, struct list_head *list);
214 static int enable_cpucache(struct kmem_cache *cachep, gfp_t gfp);
215 static void cache_reap(struct work_struct *unused);
217 static inline void fixup_objfreelist_debug(struct kmem_cache *cachep,
218 void **list);
219 static inline void fixup_slab_list(struct kmem_cache *cachep,
220 struct kmem_cache_node *n, struct page *page,
221 void **list);
222 static int slab_early_init = 1;
224 #define INDEX_NODE kmalloc_index(sizeof(struct kmem_cache_node))
226 static void kmem_cache_node_init(struct kmem_cache_node *parent)
228 INIT_LIST_HEAD(&parent->slabs_full);
229 INIT_LIST_HEAD(&parent->slabs_partial);
230 INIT_LIST_HEAD(&parent->slabs_free);
231 parent->total_slabs = 0;
232 parent->free_slabs = 0;
233 parent->shared = NULL;
234 parent->alien = NULL;
235 parent->colour_next = 0;
236 spin_lock_init(&parent->list_lock);
237 parent->free_objects = 0;
238 parent->free_touched = 0;
241 #define MAKE_LIST(cachep, listp, slab, nodeid) \
242 do { \
243 INIT_LIST_HEAD(listp); \
244 list_splice(&get_node(cachep, nodeid)->slab, listp); \
245 } while (0)
247 #define MAKE_ALL_LISTS(cachep, ptr, nodeid) \
248 do { \
249 MAKE_LIST((cachep), (&(ptr)->slabs_full), slabs_full, nodeid); \
250 MAKE_LIST((cachep), (&(ptr)->slabs_partial), slabs_partial, nodeid); \
251 MAKE_LIST((cachep), (&(ptr)->slabs_free), slabs_free, nodeid); \
252 } while (0)
254 #define CFLGS_OBJFREELIST_SLAB ((slab_flags_t __force)0x40000000U)
255 #define CFLGS_OFF_SLAB ((slab_flags_t __force)0x80000000U)
256 #define OBJFREELIST_SLAB(x) ((x)->flags & CFLGS_OBJFREELIST_SLAB)
257 #define OFF_SLAB(x) ((x)->flags & CFLGS_OFF_SLAB)
259 #define BATCHREFILL_LIMIT 16
261 * Optimization question: fewer reaps means less probability for unnessary
262 * cpucache drain/refill cycles.
264 * OTOH the cpuarrays can contain lots of objects,
265 * which could lock up otherwise freeable slabs.
267 #define REAPTIMEOUT_AC (2*HZ)
268 #define REAPTIMEOUT_NODE (4*HZ)
270 #if STATS
271 #define STATS_INC_ACTIVE(x) ((x)->num_active++)
272 #define STATS_DEC_ACTIVE(x) ((x)->num_active--)
273 #define STATS_INC_ALLOCED(x) ((x)->num_allocations++)
274 #define STATS_INC_GROWN(x) ((x)->grown++)
275 #define STATS_ADD_REAPED(x,y) ((x)->reaped += (y))
276 #define STATS_SET_HIGH(x) \
277 do { \
278 if ((x)->num_active > (x)->high_mark) \
279 (x)->high_mark = (x)->num_active; \
280 } while (0)
281 #define STATS_INC_ERR(x) ((x)->errors++)
282 #define STATS_INC_NODEALLOCS(x) ((x)->node_allocs++)
283 #define STATS_INC_NODEFREES(x) ((x)->node_frees++)
284 #define STATS_INC_ACOVERFLOW(x) ((x)->node_overflow++)
285 #define STATS_SET_FREEABLE(x, i) \
286 do { \
287 if ((x)->max_freeable < i) \
288 (x)->max_freeable = i; \
289 } while (0)
290 #define STATS_INC_ALLOCHIT(x) atomic_inc(&(x)->allochit)
291 #define STATS_INC_ALLOCMISS(x) atomic_inc(&(x)->allocmiss)
292 #define STATS_INC_FREEHIT(x) atomic_inc(&(x)->freehit)
293 #define STATS_INC_FREEMISS(x) atomic_inc(&(x)->freemiss)
294 #else
295 #define STATS_INC_ACTIVE(x) do { } while (0)
296 #define STATS_DEC_ACTIVE(x) do { } while (0)
297 #define STATS_INC_ALLOCED(x) do { } while (0)
298 #define STATS_INC_GROWN(x) do { } while (0)
299 #define STATS_ADD_REAPED(x,y) do { (void)(y); } while (0)
300 #define STATS_SET_HIGH(x) do { } while (0)
301 #define STATS_INC_ERR(x) do { } while (0)
302 #define STATS_INC_NODEALLOCS(x) do { } while (0)
303 #define STATS_INC_NODEFREES(x) do { } while (0)
304 #define STATS_INC_ACOVERFLOW(x) do { } while (0)
305 #define STATS_SET_FREEABLE(x, i) do { } while (0)
306 #define STATS_INC_ALLOCHIT(x) do { } while (0)
307 #define STATS_INC_ALLOCMISS(x) do { } while (0)
308 #define STATS_INC_FREEHIT(x) do { } while (0)
309 #define STATS_INC_FREEMISS(x) do { } while (0)
310 #endif
312 #if DEBUG
315 * memory layout of objects:
316 * 0 : objp
317 * 0 .. cachep->obj_offset - BYTES_PER_WORD - 1: padding. This ensures that
318 * the end of an object is aligned with the end of the real
319 * allocation. Catches writes behind the end of the allocation.
320 * cachep->obj_offset - BYTES_PER_WORD .. cachep->obj_offset - 1:
321 * redzone word.
322 * cachep->obj_offset: The real object.
323 * cachep->size - 2* BYTES_PER_WORD: redzone word [BYTES_PER_WORD long]
324 * cachep->size - 1* BYTES_PER_WORD: last caller address
325 * [BYTES_PER_WORD long]
327 static int obj_offset(struct kmem_cache *cachep)
329 return cachep->obj_offset;
332 static unsigned long long *dbg_redzone1(struct kmem_cache *cachep, void *objp)
334 BUG_ON(!(cachep->flags & SLAB_RED_ZONE));
335 return (unsigned long long*) (objp + obj_offset(cachep) -
336 sizeof(unsigned long long));
339 static unsigned long long *dbg_redzone2(struct kmem_cache *cachep, void *objp)
341 BUG_ON(!(cachep->flags & SLAB_RED_ZONE));
342 if (cachep->flags & SLAB_STORE_USER)
343 return (unsigned long long *)(objp + cachep->size -
344 sizeof(unsigned long long) -
345 REDZONE_ALIGN);
346 return (unsigned long long *) (objp + cachep->size -
347 sizeof(unsigned long long));
350 static void **dbg_userword(struct kmem_cache *cachep, void *objp)
352 BUG_ON(!(cachep->flags & SLAB_STORE_USER));
353 return (void **)(objp + cachep->size - BYTES_PER_WORD);
356 #else
358 #define obj_offset(x) 0
359 #define dbg_redzone1(cachep, objp) ({BUG(); (unsigned long long *)NULL;})
360 #define dbg_redzone2(cachep, objp) ({BUG(); (unsigned long long *)NULL;})
361 #define dbg_userword(cachep, objp) ({BUG(); (void **)NULL;})
363 #endif
365 #ifdef CONFIG_DEBUG_SLAB_LEAK
367 static inline bool is_store_user_clean(struct kmem_cache *cachep)
369 return atomic_read(&cachep->store_user_clean) == 1;
372 static inline void set_store_user_clean(struct kmem_cache *cachep)
374 atomic_set(&cachep->store_user_clean, 1);
377 static inline void set_store_user_dirty(struct kmem_cache *cachep)
379 if (is_store_user_clean(cachep))
380 atomic_set(&cachep->store_user_clean, 0);
383 #else
384 static inline void set_store_user_dirty(struct kmem_cache *cachep) {}
386 #endif
389 * Do not go above this order unless 0 objects fit into the slab or
390 * overridden on the command line.
392 #define SLAB_MAX_ORDER_HI 1
393 #define SLAB_MAX_ORDER_LO 0
394 static int slab_max_order = SLAB_MAX_ORDER_LO;
395 static bool slab_max_order_set __initdata;
397 static inline struct kmem_cache *virt_to_cache(const void *obj)
399 struct page *page = virt_to_head_page(obj);
400 return page->slab_cache;
403 static inline void *index_to_obj(struct kmem_cache *cache, struct page *page,
404 unsigned int idx)
406 return page->s_mem + cache->size * idx;
410 * We want to avoid an expensive divide : (offset / cache->size)
411 * Using the fact that size is a constant for a particular cache,
412 * we can replace (offset / cache->size) by
413 * reciprocal_divide(offset, cache->reciprocal_buffer_size)
415 static inline unsigned int obj_to_index(const struct kmem_cache *cache,
416 const struct page *page, void *obj)
418 u32 offset = (obj - page->s_mem);
419 return reciprocal_divide(offset, cache->reciprocal_buffer_size);
422 #define BOOT_CPUCACHE_ENTRIES 1
423 /* internal cache of cache description objs */
424 static struct kmem_cache kmem_cache_boot = {
425 .batchcount = 1,
426 .limit = BOOT_CPUCACHE_ENTRIES,
427 .shared = 1,
428 .size = sizeof(struct kmem_cache),
429 .name = "kmem_cache",
432 static DEFINE_PER_CPU(struct delayed_work, slab_reap_work);
434 static inline struct array_cache *cpu_cache_get(struct kmem_cache *cachep)
436 return this_cpu_ptr(cachep->cpu_cache);
440 * Calculate the number of objects and left-over bytes for a given buffer size.
442 static unsigned int cache_estimate(unsigned long gfporder, size_t buffer_size,
443 slab_flags_t flags, size_t *left_over)
445 unsigned int num;
446 size_t slab_size = PAGE_SIZE << gfporder;
449 * The slab management structure can be either off the slab or
450 * on it. For the latter case, the memory allocated for a
451 * slab is used for:
453 * - @buffer_size bytes for each object
454 * - One freelist_idx_t for each object
456 * We don't need to consider alignment of freelist because
457 * freelist will be at the end of slab page. The objects will be
458 * at the correct alignment.
460 * If the slab management structure is off the slab, then the
461 * alignment will already be calculated into the size. Because
462 * the slabs are all pages aligned, the objects will be at the
463 * correct alignment when allocated.
465 if (flags & (CFLGS_OBJFREELIST_SLAB | CFLGS_OFF_SLAB)) {
466 num = slab_size / buffer_size;
467 *left_over = slab_size % buffer_size;
468 } else {
469 num = slab_size / (buffer_size + sizeof(freelist_idx_t));
470 *left_over = slab_size %
471 (buffer_size + sizeof(freelist_idx_t));
474 return num;
477 #if DEBUG
478 #define slab_error(cachep, msg) __slab_error(__func__, cachep, msg)
480 static void __slab_error(const char *function, struct kmem_cache *cachep,
481 char *msg)
483 pr_err("slab error in %s(): cache `%s': %s\n",
484 function, cachep->name, msg);
485 dump_stack();
486 add_taint(TAINT_BAD_PAGE, LOCKDEP_NOW_UNRELIABLE);
488 #endif
491 * By default on NUMA we use alien caches to stage the freeing of
492 * objects allocated from other nodes. This causes massive memory
493 * inefficiencies when using fake NUMA setup to split memory into a
494 * large number of small nodes, so it can be disabled on the command
495 * line
498 static int use_alien_caches __read_mostly = 1;
499 static int __init noaliencache_setup(char *s)
501 use_alien_caches = 0;
502 return 1;
504 __setup("noaliencache", noaliencache_setup);
506 static int __init slab_max_order_setup(char *str)
508 get_option(&str, &slab_max_order);
509 slab_max_order = slab_max_order < 0 ? 0 :
510 min(slab_max_order, MAX_ORDER - 1);
511 slab_max_order_set = true;
513 return 1;
515 __setup("slab_max_order=", slab_max_order_setup);
517 #ifdef CONFIG_NUMA
519 * Special reaping functions for NUMA systems called from cache_reap().
520 * These take care of doing round robin flushing of alien caches (containing
521 * objects freed on different nodes from which they were allocated) and the
522 * flushing of remote pcps by calling drain_node_pages.
524 static DEFINE_PER_CPU(unsigned long, slab_reap_node);
526 static void init_reap_node(int cpu)
528 per_cpu(slab_reap_node, cpu) = next_node_in(cpu_to_mem(cpu),
529 node_online_map);
532 static void next_reap_node(void)
534 int node = __this_cpu_read(slab_reap_node);
536 node = next_node_in(node, node_online_map);
537 __this_cpu_write(slab_reap_node, node);
540 #else
541 #define init_reap_node(cpu) do { } while (0)
542 #define next_reap_node(void) do { } while (0)
543 #endif
546 * Initiate the reap timer running on the target CPU. We run at around 1 to 2Hz
547 * via the workqueue/eventd.
548 * Add the CPU number into the expiration time to minimize the possibility of
549 * the CPUs getting into lockstep and contending for the global cache chain
550 * lock.
552 static void start_cpu_timer(int cpu)
554 struct delayed_work *reap_work = &per_cpu(slab_reap_work, cpu);
556 if (reap_work->work.func == NULL) {
557 init_reap_node(cpu);
558 INIT_DEFERRABLE_WORK(reap_work, cache_reap);
559 schedule_delayed_work_on(cpu, reap_work,
560 __round_jiffies_relative(HZ, cpu));
564 static void init_arraycache(struct array_cache *ac, int limit, int batch)
567 * The array_cache structures contain pointers to free object.
568 * However, when such objects are allocated or transferred to another
569 * cache the pointers are not cleared and they could be counted as
570 * valid references during a kmemleak scan. Therefore, kmemleak must
571 * not scan such objects.
573 kmemleak_no_scan(ac);
574 if (ac) {
575 ac->avail = 0;
576 ac->limit = limit;
577 ac->batchcount = batch;
578 ac->touched = 0;
582 static struct array_cache *alloc_arraycache(int node, int entries,
583 int batchcount, gfp_t gfp)
585 size_t memsize = sizeof(void *) * entries + sizeof(struct array_cache);
586 struct array_cache *ac = NULL;
588 ac = kmalloc_node(memsize, gfp, node);
589 init_arraycache(ac, entries, batchcount);
590 return ac;
593 static noinline void cache_free_pfmemalloc(struct kmem_cache *cachep,
594 struct page *page, void *objp)
596 struct kmem_cache_node *n;
597 int page_node;
598 LIST_HEAD(list);
600 page_node = page_to_nid(page);
601 n = get_node(cachep, page_node);
603 spin_lock(&n->list_lock);
604 free_block(cachep, &objp, 1, page_node, &list);
605 spin_unlock(&n->list_lock);
607 slabs_destroy(cachep, &list);
611 * Transfer objects in one arraycache to another.
612 * Locking must be handled by the caller.
614 * Return the number of entries transferred.
616 static int transfer_objects(struct array_cache *to,
617 struct array_cache *from, unsigned int max)
619 /* Figure out how many entries to transfer */
620 int nr = min3(from->avail, max, to->limit - to->avail);
622 if (!nr)
623 return 0;
625 memcpy(to->entry + to->avail, from->entry + from->avail -nr,
626 sizeof(void *) *nr);
628 from->avail -= nr;
629 to->avail += nr;
630 return nr;
633 #ifndef CONFIG_NUMA
635 #define drain_alien_cache(cachep, alien) do { } while (0)
636 #define reap_alien(cachep, n) do { } while (0)
638 static inline struct alien_cache **alloc_alien_cache(int node,
639 int limit, gfp_t gfp)
641 return NULL;
644 static inline void free_alien_cache(struct alien_cache **ac_ptr)
648 static inline int cache_free_alien(struct kmem_cache *cachep, void *objp)
650 return 0;
653 static inline void *alternate_node_alloc(struct kmem_cache *cachep,
654 gfp_t flags)
656 return NULL;
659 static inline void *____cache_alloc_node(struct kmem_cache *cachep,
660 gfp_t flags, int nodeid)
662 return NULL;
665 static inline gfp_t gfp_exact_node(gfp_t flags)
667 return flags & ~__GFP_NOFAIL;
670 #else /* CONFIG_NUMA */
672 static void *____cache_alloc_node(struct kmem_cache *, gfp_t, int);
673 static void *alternate_node_alloc(struct kmem_cache *, gfp_t);
675 static struct alien_cache *__alloc_alien_cache(int node, int entries,
676 int batch, gfp_t gfp)
678 size_t memsize = sizeof(void *) * entries + sizeof(struct alien_cache);
679 struct alien_cache *alc = NULL;
681 alc = kmalloc_node(memsize, gfp, node);
682 init_arraycache(&alc->ac, entries, batch);
683 spin_lock_init(&alc->lock);
684 return alc;
687 static struct alien_cache **alloc_alien_cache(int node, int limit, gfp_t gfp)
689 struct alien_cache **alc_ptr;
690 size_t memsize = sizeof(void *) * nr_node_ids;
691 int i;
693 if (limit > 1)
694 limit = 12;
695 alc_ptr = kzalloc_node(memsize, gfp, node);
696 if (!alc_ptr)
697 return NULL;
699 for_each_node(i) {
700 if (i == node || !node_online(i))
701 continue;
702 alc_ptr[i] = __alloc_alien_cache(node, limit, 0xbaadf00d, gfp);
703 if (!alc_ptr[i]) {
704 for (i--; i >= 0; i--)
705 kfree(alc_ptr[i]);
706 kfree(alc_ptr);
707 return NULL;
710 return alc_ptr;
713 static void free_alien_cache(struct alien_cache **alc_ptr)
715 int i;
717 if (!alc_ptr)
718 return;
719 for_each_node(i)
720 kfree(alc_ptr[i]);
721 kfree(alc_ptr);
724 static void __drain_alien_cache(struct kmem_cache *cachep,
725 struct array_cache *ac, int node,
726 struct list_head *list)
728 struct kmem_cache_node *n = get_node(cachep, node);
730 if (ac->avail) {
731 spin_lock(&n->list_lock);
733 * Stuff objects into the remote nodes shared array first.
734 * That way we could avoid the overhead of putting the objects
735 * into the free lists and getting them back later.
737 if (n->shared)
738 transfer_objects(n->shared, ac, ac->limit);
740 free_block(cachep, ac->entry, ac->avail, node, list);
741 ac->avail = 0;
742 spin_unlock(&n->list_lock);
747 * Called from cache_reap() to regularly drain alien caches round robin.
749 static void reap_alien(struct kmem_cache *cachep, struct kmem_cache_node *n)
751 int node = __this_cpu_read(slab_reap_node);
753 if (n->alien) {
754 struct alien_cache *alc = n->alien[node];
755 struct array_cache *ac;
757 if (alc) {
758 ac = &alc->ac;
759 if (ac->avail && spin_trylock_irq(&alc->lock)) {
760 LIST_HEAD(list);
762 __drain_alien_cache(cachep, ac, node, &list);
763 spin_unlock_irq(&alc->lock);
764 slabs_destroy(cachep, &list);
770 static void drain_alien_cache(struct kmem_cache *cachep,
771 struct alien_cache **alien)
773 int i = 0;
774 struct alien_cache *alc;
775 struct array_cache *ac;
776 unsigned long flags;
778 for_each_online_node(i) {
779 alc = alien[i];
780 if (alc) {
781 LIST_HEAD(list);
783 ac = &alc->ac;
784 spin_lock_irqsave(&alc->lock, flags);
785 __drain_alien_cache(cachep, ac, i, &list);
786 spin_unlock_irqrestore(&alc->lock, flags);
787 slabs_destroy(cachep, &list);
792 static int __cache_free_alien(struct kmem_cache *cachep, void *objp,
793 int node, int page_node)
795 struct kmem_cache_node *n;
796 struct alien_cache *alien = NULL;
797 struct array_cache *ac;
798 LIST_HEAD(list);
800 n = get_node(cachep, node);
801 STATS_INC_NODEFREES(cachep);
802 if (n->alien && n->alien[page_node]) {
803 alien = n->alien[page_node];
804 ac = &alien->ac;
805 spin_lock(&alien->lock);
806 if (unlikely(ac->avail == ac->limit)) {
807 STATS_INC_ACOVERFLOW(cachep);
808 __drain_alien_cache(cachep, ac, page_node, &list);
810 ac->entry[ac->avail++] = objp;
811 spin_unlock(&alien->lock);
812 slabs_destroy(cachep, &list);
813 } else {
814 n = get_node(cachep, page_node);
815 spin_lock(&n->list_lock);
816 free_block(cachep, &objp, 1, page_node, &list);
817 spin_unlock(&n->list_lock);
818 slabs_destroy(cachep, &list);
820 return 1;
823 static inline int cache_free_alien(struct kmem_cache *cachep, void *objp)
825 int page_node = page_to_nid(virt_to_page(objp));
826 int node = numa_mem_id();
828 * Make sure we are not freeing a object from another node to the array
829 * cache on this cpu.
831 if (likely(node == page_node))
832 return 0;
834 return __cache_free_alien(cachep, objp, node, page_node);
838 * Construct gfp mask to allocate from a specific node but do not reclaim or
839 * warn about failures.
841 static inline gfp_t gfp_exact_node(gfp_t flags)
843 return (flags | __GFP_THISNODE | __GFP_NOWARN) & ~(__GFP_RECLAIM|__GFP_NOFAIL);
845 #endif
847 static int init_cache_node(struct kmem_cache *cachep, int node, gfp_t gfp)
849 struct kmem_cache_node *n;
852 * Set up the kmem_cache_node for cpu before we can
853 * begin anything. Make sure some other cpu on this
854 * node has not already allocated this
856 n = get_node(cachep, node);
857 if (n) {
858 spin_lock_irq(&n->list_lock);
859 n->free_limit = (1 + nr_cpus_node(node)) * cachep->batchcount +
860 cachep->num;
861 spin_unlock_irq(&n->list_lock);
863 return 0;
866 n = kmalloc_node(sizeof(struct kmem_cache_node), gfp, node);
867 if (!n)
868 return -ENOMEM;
870 kmem_cache_node_init(n);
871 n->next_reap = jiffies + REAPTIMEOUT_NODE +
872 ((unsigned long)cachep) % REAPTIMEOUT_NODE;
874 n->free_limit =
875 (1 + nr_cpus_node(node)) * cachep->batchcount + cachep->num;
878 * The kmem_cache_nodes don't come and go as CPUs
879 * come and go. slab_mutex is sufficient
880 * protection here.
882 cachep->node[node] = n;
884 return 0;
887 #if (defined(CONFIG_NUMA) && defined(CONFIG_MEMORY_HOTPLUG)) || defined(CONFIG_SMP)
889 * Allocates and initializes node for a node on each slab cache, used for
890 * either memory or cpu hotplug. If memory is being hot-added, the kmem_cache_node
891 * will be allocated off-node since memory is not yet online for the new node.
892 * When hotplugging memory or a cpu, existing node are not replaced if
893 * already in use.
895 * Must hold slab_mutex.
897 static int init_cache_node_node(int node)
899 int ret;
900 struct kmem_cache *cachep;
902 list_for_each_entry(cachep, &slab_caches, list) {
903 ret = init_cache_node(cachep, node, GFP_KERNEL);
904 if (ret)
905 return ret;
908 return 0;
910 #endif
912 static int setup_kmem_cache_node(struct kmem_cache *cachep,
913 int node, gfp_t gfp, bool force_change)
915 int ret = -ENOMEM;
916 struct kmem_cache_node *n;
917 struct array_cache *old_shared = NULL;
918 struct array_cache *new_shared = NULL;
919 struct alien_cache **new_alien = NULL;
920 LIST_HEAD(list);
922 if (use_alien_caches) {
923 new_alien = alloc_alien_cache(node, cachep->limit, gfp);
924 if (!new_alien)
925 goto fail;
928 if (cachep->shared) {
929 new_shared = alloc_arraycache(node,
930 cachep->shared * cachep->batchcount, 0xbaadf00d, gfp);
931 if (!new_shared)
932 goto fail;
935 ret = init_cache_node(cachep, node, gfp);
936 if (ret)
937 goto fail;
939 n = get_node(cachep, node);
940 spin_lock_irq(&n->list_lock);
941 if (n->shared && force_change) {
942 free_block(cachep, n->shared->entry,
943 n->shared->avail, node, &list);
944 n->shared->avail = 0;
947 if (!n->shared || force_change) {
948 old_shared = n->shared;
949 n->shared = new_shared;
950 new_shared = NULL;
953 if (!n->alien) {
954 n->alien = new_alien;
955 new_alien = NULL;
958 spin_unlock_irq(&n->list_lock);
959 slabs_destroy(cachep, &list);
962 * To protect lockless access to n->shared during irq disabled context.
963 * If n->shared isn't NULL in irq disabled context, accessing to it is
964 * guaranteed to be valid until irq is re-enabled, because it will be
965 * freed after synchronize_sched().
967 if (old_shared && force_change)
968 synchronize_sched();
970 fail:
971 kfree(old_shared);
972 kfree(new_shared);
973 free_alien_cache(new_alien);
975 return ret;
978 #ifdef CONFIG_SMP
980 static void cpuup_canceled(long cpu)
982 struct kmem_cache *cachep;
983 struct kmem_cache_node *n = NULL;
984 int node = cpu_to_mem(cpu);
985 const struct cpumask *mask = cpumask_of_node(node);
987 list_for_each_entry(cachep, &slab_caches, list) {
988 struct array_cache *nc;
989 struct array_cache *shared;
990 struct alien_cache **alien;
991 LIST_HEAD(list);
993 n = get_node(cachep, node);
994 if (!n)
995 continue;
997 spin_lock_irq(&n->list_lock);
999 /* Free limit for this kmem_cache_node */
1000 n->free_limit -= cachep->batchcount;
1002 /* cpu is dead; no one can alloc from it. */
1003 nc = per_cpu_ptr(cachep->cpu_cache, cpu);
1004 if (nc) {
1005 free_block(cachep, nc->entry, nc->avail, node, &list);
1006 nc->avail = 0;
1009 if (!cpumask_empty(mask)) {
1010 spin_unlock_irq(&n->list_lock);
1011 goto free_slab;
1014 shared = n->shared;
1015 if (shared) {
1016 free_block(cachep, shared->entry,
1017 shared->avail, node, &list);
1018 n->shared = NULL;
1021 alien = n->alien;
1022 n->alien = NULL;
1024 spin_unlock_irq(&n->list_lock);
1026 kfree(shared);
1027 if (alien) {
1028 drain_alien_cache(cachep, alien);
1029 free_alien_cache(alien);
1032 free_slab:
1033 slabs_destroy(cachep, &list);
1036 * In the previous loop, all the objects were freed to
1037 * the respective cache's slabs, now we can go ahead and
1038 * shrink each nodelist to its limit.
1040 list_for_each_entry(cachep, &slab_caches, list) {
1041 n = get_node(cachep, node);
1042 if (!n)
1043 continue;
1044 drain_freelist(cachep, n, INT_MAX);
1048 static int cpuup_prepare(long cpu)
1050 struct kmem_cache *cachep;
1051 int node = cpu_to_mem(cpu);
1052 int err;
1055 * We need to do this right in the beginning since
1056 * alloc_arraycache's are going to use this list.
1057 * kmalloc_node allows us to add the slab to the right
1058 * kmem_cache_node and not this cpu's kmem_cache_node
1060 err = init_cache_node_node(node);
1061 if (err < 0)
1062 goto bad;
1065 * Now we can go ahead with allocating the shared arrays and
1066 * array caches
1068 list_for_each_entry(cachep, &slab_caches, list) {
1069 err = setup_kmem_cache_node(cachep, node, GFP_KERNEL, false);
1070 if (err)
1071 goto bad;
1074 return 0;
1075 bad:
1076 cpuup_canceled(cpu);
1077 return -ENOMEM;
1080 int slab_prepare_cpu(unsigned int cpu)
1082 int err;
1084 mutex_lock(&slab_mutex);
1085 err = cpuup_prepare(cpu);
1086 mutex_unlock(&slab_mutex);
1087 return err;
1091 * This is called for a failed online attempt and for a successful
1092 * offline.
1094 * Even if all the cpus of a node are down, we don't free the
1095 * kmem_list3 of any cache. This to avoid a race between cpu_down, and
1096 * a kmalloc allocation from another cpu for memory from the node of
1097 * the cpu going down. The list3 structure is usually allocated from
1098 * kmem_cache_create() and gets destroyed at kmem_cache_destroy().
1100 int slab_dead_cpu(unsigned int cpu)
1102 mutex_lock(&slab_mutex);
1103 cpuup_canceled(cpu);
1104 mutex_unlock(&slab_mutex);
1105 return 0;
1107 #endif
1109 static int slab_online_cpu(unsigned int cpu)
1111 start_cpu_timer(cpu);
1112 return 0;
1115 static int slab_offline_cpu(unsigned int cpu)
1118 * Shutdown cache reaper. Note that the slab_mutex is held so
1119 * that if cache_reap() is invoked it cannot do anything
1120 * expensive but will only modify reap_work and reschedule the
1121 * timer.
1123 cancel_delayed_work_sync(&per_cpu(slab_reap_work, cpu));
1124 /* Now the cache_reaper is guaranteed to be not running. */
1125 per_cpu(slab_reap_work, cpu).work.func = NULL;
1126 return 0;
1129 #if defined(CONFIG_NUMA) && defined(CONFIG_MEMORY_HOTPLUG)
1131 * Drains freelist for a node on each slab cache, used for memory hot-remove.
1132 * Returns -EBUSY if all objects cannot be drained so that the node is not
1133 * removed.
1135 * Must hold slab_mutex.
1137 static int __meminit drain_cache_node_node(int node)
1139 struct kmem_cache *cachep;
1140 int ret = 0;
1142 list_for_each_entry(cachep, &slab_caches, list) {
1143 struct kmem_cache_node *n;
1145 n = get_node(cachep, node);
1146 if (!n)
1147 continue;
1149 drain_freelist(cachep, n, INT_MAX);
1151 if (!list_empty(&n->slabs_full) ||
1152 !list_empty(&n->slabs_partial)) {
1153 ret = -EBUSY;
1154 break;
1157 return ret;
1160 static int __meminit slab_memory_callback(struct notifier_block *self,
1161 unsigned long action, void *arg)
1163 struct memory_notify *mnb = arg;
1164 int ret = 0;
1165 int nid;
1167 nid = mnb->status_change_nid;
1168 if (nid < 0)
1169 goto out;
1171 switch (action) {
1172 case MEM_GOING_ONLINE:
1173 mutex_lock(&slab_mutex);
1174 ret = init_cache_node_node(nid);
1175 mutex_unlock(&slab_mutex);
1176 break;
1177 case MEM_GOING_OFFLINE:
1178 mutex_lock(&slab_mutex);
1179 ret = drain_cache_node_node(nid);
1180 mutex_unlock(&slab_mutex);
1181 break;
1182 case MEM_ONLINE:
1183 case MEM_OFFLINE:
1184 case MEM_CANCEL_ONLINE:
1185 case MEM_CANCEL_OFFLINE:
1186 break;
1188 out:
1189 return notifier_from_errno(ret);
1191 #endif /* CONFIG_NUMA && CONFIG_MEMORY_HOTPLUG */
1194 * swap the static kmem_cache_node with kmalloced memory
1196 static void __init init_list(struct kmem_cache *cachep, struct kmem_cache_node *list,
1197 int nodeid)
1199 struct kmem_cache_node *ptr;
1201 ptr = kmalloc_node(sizeof(struct kmem_cache_node), GFP_NOWAIT, nodeid);
1202 BUG_ON(!ptr);
1204 memcpy(ptr, list, sizeof(struct kmem_cache_node));
1206 * Do not assume that spinlocks can be initialized via memcpy:
1208 spin_lock_init(&ptr->list_lock);
1210 MAKE_ALL_LISTS(cachep, ptr, nodeid);
1211 cachep->node[nodeid] = ptr;
1215 * For setting up all the kmem_cache_node for cache whose buffer_size is same as
1216 * size of kmem_cache_node.
1218 static void __init set_up_node(struct kmem_cache *cachep, int index)
1220 int node;
1222 for_each_online_node(node) {
1223 cachep->node[node] = &init_kmem_cache_node[index + node];
1224 cachep->node[node]->next_reap = jiffies +
1225 REAPTIMEOUT_NODE +
1226 ((unsigned long)cachep) % REAPTIMEOUT_NODE;
1231 * Initialisation. Called after the page allocator have been initialised and
1232 * before smp_init().
1234 void __init kmem_cache_init(void)
1236 int i;
1238 BUILD_BUG_ON(sizeof(((struct page *)NULL)->lru) <
1239 sizeof(struct rcu_head));
1240 kmem_cache = &kmem_cache_boot;
1242 if (!IS_ENABLED(CONFIG_NUMA) || num_possible_nodes() == 1)
1243 use_alien_caches = 0;
1245 for (i = 0; i < NUM_INIT_LISTS; i++)
1246 kmem_cache_node_init(&init_kmem_cache_node[i]);
1249 * Fragmentation resistance on low memory - only use bigger
1250 * page orders on machines with more than 32MB of memory if
1251 * not overridden on the command line.
1253 if (!slab_max_order_set && totalram_pages > (32 << 20) >> PAGE_SHIFT)
1254 slab_max_order = SLAB_MAX_ORDER_HI;
1256 /* Bootstrap is tricky, because several objects are allocated
1257 * from caches that do not exist yet:
1258 * 1) initialize the kmem_cache cache: it contains the struct
1259 * kmem_cache structures of all caches, except kmem_cache itself:
1260 * kmem_cache is statically allocated.
1261 * Initially an __init data area is used for the head array and the
1262 * kmem_cache_node structures, it's replaced with a kmalloc allocated
1263 * array at the end of the bootstrap.
1264 * 2) Create the first kmalloc cache.
1265 * The struct kmem_cache for the new cache is allocated normally.
1266 * An __init data area is used for the head array.
1267 * 3) Create the remaining kmalloc caches, with minimally sized
1268 * head arrays.
1269 * 4) Replace the __init data head arrays for kmem_cache and the first
1270 * kmalloc cache with kmalloc allocated arrays.
1271 * 5) Replace the __init data for kmem_cache_node for kmem_cache and
1272 * the other cache's with kmalloc allocated memory.
1273 * 6) Resize the head arrays of the kmalloc caches to their final sizes.
1276 /* 1) create the kmem_cache */
1279 * struct kmem_cache size depends on nr_node_ids & nr_cpu_ids
1281 create_boot_cache(kmem_cache, "kmem_cache",
1282 offsetof(struct kmem_cache, node) +
1283 nr_node_ids * sizeof(struct kmem_cache_node *),
1284 SLAB_HWCACHE_ALIGN, 0, 0);
1285 list_add(&kmem_cache->list, &slab_caches);
1286 memcg_link_cache(kmem_cache);
1287 slab_state = PARTIAL;
1290 * Initialize the caches that provide memory for the kmem_cache_node
1291 * structures first. Without this, further allocations will bug.
1293 kmalloc_caches[INDEX_NODE] = create_kmalloc_cache(
1294 kmalloc_info[INDEX_NODE].name,
1295 kmalloc_size(INDEX_NODE), ARCH_KMALLOC_FLAGS,
1296 0, kmalloc_size(INDEX_NODE));
1297 slab_state = PARTIAL_NODE;
1298 setup_kmalloc_cache_index_table();
1300 slab_early_init = 0;
1302 /* 5) Replace the bootstrap kmem_cache_node */
1304 int nid;
1306 for_each_online_node(nid) {
1307 init_list(kmem_cache, &init_kmem_cache_node[CACHE_CACHE + nid], nid);
1309 init_list(kmalloc_caches[INDEX_NODE],
1310 &init_kmem_cache_node[SIZE_NODE + nid], nid);
1314 create_kmalloc_caches(ARCH_KMALLOC_FLAGS);
1317 void __init kmem_cache_init_late(void)
1319 struct kmem_cache *cachep;
1321 /* 6) resize the head arrays to their final sizes */
1322 mutex_lock(&slab_mutex);
1323 list_for_each_entry(cachep, &slab_caches, list)
1324 if (enable_cpucache(cachep, GFP_NOWAIT))
1325 BUG();
1326 mutex_unlock(&slab_mutex);
1328 /* Done! */
1329 slab_state = FULL;
1331 #ifdef CONFIG_NUMA
1333 * Register a memory hotplug callback that initializes and frees
1334 * node.
1336 hotplug_memory_notifier(slab_memory_callback, SLAB_CALLBACK_PRI);
1337 #endif
1340 * The reap timers are started later, with a module init call: That part
1341 * of the kernel is not yet operational.
1345 static int __init cpucache_init(void)
1347 int ret;
1350 * Register the timers that return unneeded pages to the page allocator
1352 ret = cpuhp_setup_state(CPUHP_AP_ONLINE_DYN, "SLAB online",
1353 slab_online_cpu, slab_offline_cpu);
1354 WARN_ON(ret < 0);
1356 return 0;
1358 __initcall(cpucache_init);
1360 static noinline void
1361 slab_out_of_memory(struct kmem_cache *cachep, gfp_t gfpflags, int nodeid)
1363 #if DEBUG
1364 struct kmem_cache_node *n;
1365 unsigned long flags;
1366 int node;
1367 static DEFINE_RATELIMIT_STATE(slab_oom_rs, DEFAULT_RATELIMIT_INTERVAL,
1368 DEFAULT_RATELIMIT_BURST);
1370 if ((gfpflags & __GFP_NOWARN) || !__ratelimit(&slab_oom_rs))
1371 return;
1373 pr_warn("SLAB: Unable to allocate memory on node %d, gfp=%#x(%pGg)\n",
1374 nodeid, gfpflags, &gfpflags);
1375 pr_warn(" cache: %s, object size: %d, order: %d\n",
1376 cachep->name, cachep->size, cachep->gfporder);
1378 for_each_kmem_cache_node(cachep, node, n) {
1379 unsigned long total_slabs, free_slabs, free_objs;
1381 spin_lock_irqsave(&n->list_lock, flags);
1382 total_slabs = n->total_slabs;
1383 free_slabs = n->free_slabs;
1384 free_objs = n->free_objects;
1385 spin_unlock_irqrestore(&n->list_lock, flags);
1387 pr_warn(" node %d: slabs: %ld/%ld, objs: %ld/%ld\n",
1388 node, total_slabs - free_slabs, total_slabs,
1389 (total_slabs * cachep->num) - free_objs,
1390 total_slabs * cachep->num);
1392 #endif
1396 * Interface to system's page allocator. No need to hold the
1397 * kmem_cache_node ->list_lock.
1399 * If we requested dmaable memory, we will get it. Even if we
1400 * did not request dmaable memory, we might get it, but that
1401 * would be relatively rare and ignorable.
1403 static struct page *kmem_getpages(struct kmem_cache *cachep, gfp_t flags,
1404 int nodeid)
1406 struct page *page;
1407 int nr_pages;
1409 flags |= cachep->allocflags;
1411 page = __alloc_pages_node(nodeid, flags, cachep->gfporder);
1412 if (!page) {
1413 slab_out_of_memory(cachep, flags, nodeid);
1414 return NULL;
1417 if (memcg_charge_slab(page, flags, cachep->gfporder, cachep)) {
1418 __free_pages(page, cachep->gfporder);
1419 return NULL;
1422 nr_pages = (1 << cachep->gfporder);
1423 if (cachep->flags & SLAB_RECLAIM_ACCOUNT)
1424 mod_lruvec_page_state(page, NR_SLAB_RECLAIMABLE, nr_pages);
1425 else
1426 mod_lruvec_page_state(page, NR_SLAB_UNRECLAIMABLE, nr_pages);
1428 __SetPageSlab(page);
1429 /* Record if ALLOC_NO_WATERMARKS was set when allocating the slab */
1430 if (sk_memalloc_socks() && page_is_pfmemalloc(page))
1431 SetPageSlabPfmemalloc(page);
1433 return page;
1437 * Interface to system's page release.
1439 static void kmem_freepages(struct kmem_cache *cachep, struct page *page)
1441 int order = cachep->gfporder;
1442 unsigned long nr_freed = (1 << order);
1444 if (cachep->flags & SLAB_RECLAIM_ACCOUNT)
1445 mod_lruvec_page_state(page, NR_SLAB_RECLAIMABLE, -nr_freed);
1446 else
1447 mod_lruvec_page_state(page, NR_SLAB_UNRECLAIMABLE, -nr_freed);
1449 BUG_ON(!PageSlab(page));
1450 __ClearPageSlabPfmemalloc(page);
1451 __ClearPageSlab(page);
1452 page_mapcount_reset(page);
1453 page->mapping = NULL;
1455 if (current->reclaim_state)
1456 current->reclaim_state->reclaimed_slab += nr_freed;
1457 memcg_uncharge_slab(page, order, cachep);
1458 __free_pages(page, order);
1461 static void kmem_rcu_free(struct rcu_head *head)
1463 struct kmem_cache *cachep;
1464 struct page *page;
1466 page = container_of(head, struct page, rcu_head);
1467 cachep = page->slab_cache;
1469 kmem_freepages(cachep, page);
1472 #if DEBUG
1473 static bool is_debug_pagealloc_cache(struct kmem_cache *cachep)
1475 if (debug_pagealloc_enabled() && OFF_SLAB(cachep) &&
1476 (cachep->size % PAGE_SIZE) == 0)
1477 return true;
1479 return false;
1482 #ifdef CONFIG_DEBUG_PAGEALLOC
1483 static void store_stackinfo(struct kmem_cache *cachep, unsigned long *addr,
1484 unsigned long caller)
1486 int size = cachep->object_size;
1488 addr = (unsigned long *)&((char *)addr)[obj_offset(cachep)];
1490 if (size < 5 * sizeof(unsigned long))
1491 return;
1493 *addr++ = 0x12345678;
1494 *addr++ = caller;
1495 *addr++ = smp_processor_id();
1496 size -= 3 * sizeof(unsigned long);
1498 unsigned long *sptr = &caller;
1499 unsigned long svalue;
1501 while (!kstack_end(sptr)) {
1502 svalue = *sptr++;
1503 if (kernel_text_address(svalue)) {
1504 *addr++ = svalue;
1505 size -= sizeof(unsigned long);
1506 if (size <= sizeof(unsigned long))
1507 break;
1512 *addr++ = 0x87654321;
1515 static void slab_kernel_map(struct kmem_cache *cachep, void *objp,
1516 int map, unsigned long caller)
1518 if (!is_debug_pagealloc_cache(cachep))
1519 return;
1521 if (caller)
1522 store_stackinfo(cachep, objp, caller);
1524 kernel_map_pages(virt_to_page(objp), cachep->size / PAGE_SIZE, map);
1527 #else
1528 static inline void slab_kernel_map(struct kmem_cache *cachep, void *objp,
1529 int map, unsigned long caller) {}
1531 #endif
1533 static void poison_obj(struct kmem_cache *cachep, void *addr, unsigned char val)
1535 int size = cachep->object_size;
1536 addr = &((char *)addr)[obj_offset(cachep)];
1538 memset(addr, val, size);
1539 *(unsigned char *)(addr + size - 1) = POISON_END;
1542 static void dump_line(char *data, int offset, int limit)
1544 int i;
1545 unsigned char error = 0;
1546 int bad_count = 0;
1548 pr_err("%03x: ", offset);
1549 for (i = 0; i < limit; i++) {
1550 if (data[offset + i] != POISON_FREE) {
1551 error = data[offset + i];
1552 bad_count++;
1555 print_hex_dump(KERN_CONT, "", 0, 16, 1,
1556 &data[offset], limit, 1);
1558 if (bad_count == 1) {
1559 error ^= POISON_FREE;
1560 if (!(error & (error - 1))) {
1561 pr_err("Single bit error detected. Probably bad RAM.\n");
1562 #ifdef CONFIG_X86
1563 pr_err("Run memtest86+ or a similar memory test tool.\n");
1564 #else
1565 pr_err("Run a memory test tool.\n");
1566 #endif
1570 #endif
1572 #if DEBUG
1574 static void print_objinfo(struct kmem_cache *cachep, void *objp, int lines)
1576 int i, size;
1577 char *realobj;
1579 if (cachep->flags & SLAB_RED_ZONE) {
1580 pr_err("Redzone: 0x%llx/0x%llx\n",
1581 *dbg_redzone1(cachep, objp),
1582 *dbg_redzone2(cachep, objp));
1585 if (cachep->flags & SLAB_STORE_USER)
1586 pr_err("Last user: (%pSR)\n", *dbg_userword(cachep, objp));
1587 realobj = (char *)objp + obj_offset(cachep);
1588 size = cachep->object_size;
1589 for (i = 0; i < size && lines; i += 16, lines--) {
1590 int limit;
1591 limit = 16;
1592 if (i + limit > size)
1593 limit = size - i;
1594 dump_line(realobj, i, limit);
1598 static void check_poison_obj(struct kmem_cache *cachep, void *objp)
1600 char *realobj;
1601 int size, i;
1602 int lines = 0;
1604 if (is_debug_pagealloc_cache(cachep))
1605 return;
1607 realobj = (char *)objp + obj_offset(cachep);
1608 size = cachep->object_size;
1610 for (i = 0; i < size; i++) {
1611 char exp = POISON_FREE;
1612 if (i == size - 1)
1613 exp = POISON_END;
1614 if (realobj[i] != exp) {
1615 int limit;
1616 /* Mismatch ! */
1617 /* Print header */
1618 if (lines == 0) {
1619 pr_err("Slab corruption (%s): %s start=%px, len=%d\n",
1620 print_tainted(), cachep->name,
1621 realobj, size);
1622 print_objinfo(cachep, objp, 0);
1624 /* Hexdump the affected line */
1625 i = (i / 16) * 16;
1626 limit = 16;
1627 if (i + limit > size)
1628 limit = size - i;
1629 dump_line(realobj, i, limit);
1630 i += 16;
1631 lines++;
1632 /* Limit to 5 lines */
1633 if (lines > 5)
1634 break;
1637 if (lines != 0) {
1638 /* Print some data about the neighboring objects, if they
1639 * exist:
1641 struct page *page = virt_to_head_page(objp);
1642 unsigned int objnr;
1644 objnr = obj_to_index(cachep, page, objp);
1645 if (objnr) {
1646 objp = index_to_obj(cachep, page, objnr - 1);
1647 realobj = (char *)objp + obj_offset(cachep);
1648 pr_err("Prev obj: start=%px, len=%d\n", realobj, size);
1649 print_objinfo(cachep, objp, 2);
1651 if (objnr + 1 < cachep->num) {
1652 objp = index_to_obj(cachep, page, objnr + 1);
1653 realobj = (char *)objp + obj_offset(cachep);
1654 pr_err("Next obj: start=%px, len=%d\n", realobj, size);
1655 print_objinfo(cachep, objp, 2);
1659 #endif
1661 #if DEBUG
1662 static void slab_destroy_debugcheck(struct kmem_cache *cachep,
1663 struct page *page)
1665 int i;
1667 if (OBJFREELIST_SLAB(cachep) && cachep->flags & SLAB_POISON) {
1668 poison_obj(cachep, page->freelist - obj_offset(cachep),
1669 POISON_FREE);
1672 for (i = 0; i < cachep->num; i++) {
1673 void *objp = index_to_obj(cachep, page, i);
1675 if (cachep->flags & SLAB_POISON) {
1676 check_poison_obj(cachep, objp);
1677 slab_kernel_map(cachep, objp, 1, 0);
1679 if (cachep->flags & SLAB_RED_ZONE) {
1680 if (*dbg_redzone1(cachep, objp) != RED_INACTIVE)
1681 slab_error(cachep, "start of a freed object was overwritten");
1682 if (*dbg_redzone2(cachep, objp) != RED_INACTIVE)
1683 slab_error(cachep, "end of a freed object was overwritten");
1687 #else
1688 static void slab_destroy_debugcheck(struct kmem_cache *cachep,
1689 struct page *page)
1692 #endif
1695 * slab_destroy - destroy and release all objects in a slab
1696 * @cachep: cache pointer being destroyed
1697 * @page: page pointer being destroyed
1699 * Destroy all the objs in a slab page, and release the mem back to the system.
1700 * Before calling the slab page must have been unlinked from the cache. The
1701 * kmem_cache_node ->list_lock is not held/needed.
1703 static void slab_destroy(struct kmem_cache *cachep, struct page *page)
1705 void *freelist;
1707 freelist = page->freelist;
1708 slab_destroy_debugcheck(cachep, page);
1709 if (unlikely(cachep->flags & SLAB_TYPESAFE_BY_RCU))
1710 call_rcu(&page->rcu_head, kmem_rcu_free);
1711 else
1712 kmem_freepages(cachep, page);
1715 * From now on, we don't use freelist
1716 * although actual page can be freed in rcu context
1718 if (OFF_SLAB(cachep))
1719 kmem_cache_free(cachep->freelist_cache, freelist);
1722 static void slabs_destroy(struct kmem_cache *cachep, struct list_head *list)
1724 struct page *page, *n;
1726 list_for_each_entry_safe(page, n, list, lru) {
1727 list_del(&page->lru);
1728 slab_destroy(cachep, page);
1733 * calculate_slab_order - calculate size (page order) of slabs
1734 * @cachep: pointer to the cache that is being created
1735 * @size: size of objects to be created in this cache.
1736 * @flags: slab allocation flags
1738 * Also calculates the number of objects per slab.
1740 * This could be made much more intelligent. For now, try to avoid using
1741 * high order pages for slabs. When the gfp() functions are more friendly
1742 * towards high-order requests, this should be changed.
1744 static size_t calculate_slab_order(struct kmem_cache *cachep,
1745 size_t size, slab_flags_t flags)
1747 size_t left_over = 0;
1748 int gfporder;
1750 for (gfporder = 0; gfporder <= KMALLOC_MAX_ORDER; gfporder++) {
1751 unsigned int num;
1752 size_t remainder;
1754 num = cache_estimate(gfporder, size, flags, &remainder);
1755 if (!num)
1756 continue;
1758 /* Can't handle number of objects more than SLAB_OBJ_MAX_NUM */
1759 if (num > SLAB_OBJ_MAX_NUM)
1760 break;
1762 if (flags & CFLGS_OFF_SLAB) {
1763 struct kmem_cache *freelist_cache;
1764 size_t freelist_size;
1766 freelist_size = num * sizeof(freelist_idx_t);
1767 freelist_cache = kmalloc_slab(freelist_size, 0u);
1768 if (!freelist_cache)
1769 continue;
1772 * Needed to avoid possible looping condition
1773 * in cache_grow_begin()
1775 if (OFF_SLAB(freelist_cache))
1776 continue;
1778 /* check if off slab has enough benefit */
1779 if (freelist_cache->size > cachep->size / 2)
1780 continue;
1783 /* Found something acceptable - save it away */
1784 cachep->num = num;
1785 cachep->gfporder = gfporder;
1786 left_over = remainder;
1789 * A VFS-reclaimable slab tends to have most allocations
1790 * as GFP_NOFS and we really don't want to have to be allocating
1791 * higher-order pages when we are unable to shrink dcache.
1793 if (flags & SLAB_RECLAIM_ACCOUNT)
1794 break;
1797 * Large number of objects is good, but very large slabs are
1798 * currently bad for the gfp()s.
1800 if (gfporder >= slab_max_order)
1801 break;
1804 * Acceptable internal fragmentation?
1806 if (left_over * 8 <= (PAGE_SIZE << gfporder))
1807 break;
1809 return left_over;
1812 static struct array_cache __percpu *alloc_kmem_cache_cpus(
1813 struct kmem_cache *cachep, int entries, int batchcount)
1815 int cpu;
1816 size_t size;
1817 struct array_cache __percpu *cpu_cache;
1819 size = sizeof(void *) * entries + sizeof(struct array_cache);
1820 cpu_cache = __alloc_percpu(size, sizeof(void *));
1822 if (!cpu_cache)
1823 return NULL;
1825 for_each_possible_cpu(cpu) {
1826 init_arraycache(per_cpu_ptr(cpu_cache, cpu),
1827 entries, batchcount);
1830 return cpu_cache;
1833 static int __ref setup_cpu_cache(struct kmem_cache *cachep, gfp_t gfp)
1835 if (slab_state >= FULL)
1836 return enable_cpucache(cachep, gfp);
1838 cachep->cpu_cache = alloc_kmem_cache_cpus(cachep, 1, 1);
1839 if (!cachep->cpu_cache)
1840 return 1;
1842 if (slab_state == DOWN) {
1843 /* Creation of first cache (kmem_cache). */
1844 set_up_node(kmem_cache, CACHE_CACHE);
1845 } else if (slab_state == PARTIAL) {
1846 /* For kmem_cache_node */
1847 set_up_node(cachep, SIZE_NODE);
1848 } else {
1849 int node;
1851 for_each_online_node(node) {
1852 cachep->node[node] = kmalloc_node(
1853 sizeof(struct kmem_cache_node), gfp, node);
1854 BUG_ON(!cachep->node[node]);
1855 kmem_cache_node_init(cachep->node[node]);
1859 cachep->node[numa_mem_id()]->next_reap =
1860 jiffies + REAPTIMEOUT_NODE +
1861 ((unsigned long)cachep) % REAPTIMEOUT_NODE;
1863 cpu_cache_get(cachep)->avail = 0;
1864 cpu_cache_get(cachep)->limit = BOOT_CPUCACHE_ENTRIES;
1865 cpu_cache_get(cachep)->batchcount = 1;
1866 cpu_cache_get(cachep)->touched = 0;
1867 cachep->batchcount = 1;
1868 cachep->limit = BOOT_CPUCACHE_ENTRIES;
1869 return 0;
1872 slab_flags_t kmem_cache_flags(unsigned long object_size,
1873 slab_flags_t flags, const char *name,
1874 void (*ctor)(void *))
1876 return flags;
1879 struct kmem_cache *
1880 __kmem_cache_alias(const char *name, size_t size, size_t align,
1881 slab_flags_t flags, void (*ctor)(void *))
1883 struct kmem_cache *cachep;
1885 cachep = find_mergeable(size, align, flags, name, ctor);
1886 if (cachep) {
1887 cachep->refcount++;
1890 * Adjust the object sizes so that we clear
1891 * the complete object on kzalloc.
1893 cachep->object_size = max_t(int, cachep->object_size, size);
1895 return cachep;
1898 static bool set_objfreelist_slab_cache(struct kmem_cache *cachep,
1899 size_t size, slab_flags_t flags)
1901 size_t left;
1903 cachep->num = 0;
1905 if (cachep->ctor || flags & SLAB_TYPESAFE_BY_RCU)
1906 return false;
1908 left = calculate_slab_order(cachep, size,
1909 flags | CFLGS_OBJFREELIST_SLAB);
1910 if (!cachep->num)
1911 return false;
1913 if (cachep->num * sizeof(freelist_idx_t) > cachep->object_size)
1914 return false;
1916 cachep->colour = left / cachep->colour_off;
1918 return true;
1921 static bool set_off_slab_cache(struct kmem_cache *cachep,
1922 size_t size, slab_flags_t flags)
1924 size_t left;
1926 cachep->num = 0;
1929 * Always use on-slab management when SLAB_NOLEAKTRACE
1930 * to avoid recursive calls into kmemleak.
1932 if (flags & SLAB_NOLEAKTRACE)
1933 return false;
1936 * Size is large, assume best to place the slab management obj
1937 * off-slab (should allow better packing of objs).
1939 left = calculate_slab_order(cachep, size, flags | CFLGS_OFF_SLAB);
1940 if (!cachep->num)
1941 return false;
1944 * If the slab has been placed off-slab, and we have enough space then
1945 * move it on-slab. This is at the expense of any extra colouring.
1947 if (left >= cachep->num * sizeof(freelist_idx_t))
1948 return false;
1950 cachep->colour = left / cachep->colour_off;
1952 return true;
1955 static bool set_on_slab_cache(struct kmem_cache *cachep,
1956 size_t size, slab_flags_t flags)
1958 size_t left;
1960 cachep->num = 0;
1962 left = calculate_slab_order(cachep, size, flags);
1963 if (!cachep->num)
1964 return false;
1966 cachep->colour = left / cachep->colour_off;
1968 return true;
1972 * __kmem_cache_create - Create a cache.
1973 * @cachep: cache management descriptor
1974 * @flags: SLAB flags
1976 * Returns a ptr to the cache on success, NULL on failure.
1977 * Cannot be called within a int, but can be interrupted.
1978 * The @ctor is run when new pages are allocated by the cache.
1980 * The flags are
1982 * %SLAB_POISON - Poison the slab with a known test pattern (a5a5a5a5)
1983 * to catch references to uninitialised memory.
1985 * %SLAB_RED_ZONE - Insert `Red' zones around the allocated memory to check
1986 * for buffer overruns.
1988 * %SLAB_HWCACHE_ALIGN - Align the objects in this cache to a hardware
1989 * cacheline. This can be beneficial if you're counting cycles as closely
1990 * as davem.
1992 int __kmem_cache_create(struct kmem_cache *cachep, slab_flags_t flags)
1994 size_t ralign = BYTES_PER_WORD;
1995 gfp_t gfp;
1996 int err;
1997 size_t size = cachep->size;
1999 #if DEBUG
2000 #if FORCED_DEBUG
2002 * Enable redzoning and last user accounting, except for caches with
2003 * large objects, if the increased size would increase the object size
2004 * above the next power of two: caches with object sizes just above a
2005 * power of two have a significant amount of internal fragmentation.
2007 if (size < 4096 || fls(size - 1) == fls(size-1 + REDZONE_ALIGN +
2008 2 * sizeof(unsigned long long)))
2009 flags |= SLAB_RED_ZONE | SLAB_STORE_USER;
2010 if (!(flags & SLAB_TYPESAFE_BY_RCU))
2011 flags |= SLAB_POISON;
2012 #endif
2013 #endif
2016 * Check that size is in terms of words. This is needed to avoid
2017 * unaligned accesses for some archs when redzoning is used, and makes
2018 * sure any on-slab bufctl's are also correctly aligned.
2020 size = ALIGN(size, BYTES_PER_WORD);
2022 if (flags & SLAB_RED_ZONE) {
2023 ralign = REDZONE_ALIGN;
2024 /* If redzoning, ensure that the second redzone is suitably
2025 * aligned, by adjusting the object size accordingly. */
2026 size = ALIGN(size, REDZONE_ALIGN);
2029 /* 3) caller mandated alignment */
2030 if (ralign < cachep->align) {
2031 ralign = cachep->align;
2033 /* disable debug if necessary */
2034 if (ralign > __alignof__(unsigned long long))
2035 flags &= ~(SLAB_RED_ZONE | SLAB_STORE_USER);
2037 * 4) Store it.
2039 cachep->align = ralign;
2040 cachep->colour_off = cache_line_size();
2041 /* Offset must be a multiple of the alignment. */
2042 if (cachep->colour_off < cachep->align)
2043 cachep->colour_off = cachep->align;
2045 if (slab_is_available())
2046 gfp = GFP_KERNEL;
2047 else
2048 gfp = GFP_NOWAIT;
2050 #if DEBUG
2053 * Both debugging options require word-alignment which is calculated
2054 * into align above.
2056 if (flags & SLAB_RED_ZONE) {
2057 /* add space for red zone words */
2058 cachep->obj_offset += sizeof(unsigned long long);
2059 size += 2 * sizeof(unsigned long long);
2061 if (flags & SLAB_STORE_USER) {
2062 /* user store requires one word storage behind the end of
2063 * the real object. But if the second red zone needs to be
2064 * aligned to 64 bits, we must allow that much space.
2066 if (flags & SLAB_RED_ZONE)
2067 size += REDZONE_ALIGN;
2068 else
2069 size += BYTES_PER_WORD;
2071 #endif
2073 kasan_cache_create(cachep, &size, &flags);
2075 size = ALIGN(size, cachep->align);
2077 * We should restrict the number of objects in a slab to implement
2078 * byte sized index. Refer comment on SLAB_OBJ_MIN_SIZE definition.
2080 if (FREELIST_BYTE_INDEX && size < SLAB_OBJ_MIN_SIZE)
2081 size = ALIGN(SLAB_OBJ_MIN_SIZE, cachep->align);
2083 #if DEBUG
2085 * To activate debug pagealloc, off-slab management is necessary
2086 * requirement. In early phase of initialization, small sized slab
2087 * doesn't get initialized so it would not be possible. So, we need
2088 * to check size >= 256. It guarantees that all necessary small
2089 * sized slab is initialized in current slab initialization sequence.
2091 if (debug_pagealloc_enabled() && (flags & SLAB_POISON) &&
2092 size >= 256 && cachep->object_size > cache_line_size()) {
2093 if (size < PAGE_SIZE || size % PAGE_SIZE == 0) {
2094 size_t tmp_size = ALIGN(size, PAGE_SIZE);
2096 if (set_off_slab_cache(cachep, tmp_size, flags)) {
2097 flags |= CFLGS_OFF_SLAB;
2098 cachep->obj_offset += tmp_size - size;
2099 size = tmp_size;
2100 goto done;
2104 #endif
2106 if (set_objfreelist_slab_cache(cachep, size, flags)) {
2107 flags |= CFLGS_OBJFREELIST_SLAB;
2108 goto done;
2111 if (set_off_slab_cache(cachep, size, flags)) {
2112 flags |= CFLGS_OFF_SLAB;
2113 goto done;
2116 if (set_on_slab_cache(cachep, size, flags))
2117 goto done;
2119 return -E2BIG;
2121 done:
2122 cachep->freelist_size = cachep->num * sizeof(freelist_idx_t);
2123 cachep->flags = flags;
2124 cachep->allocflags = __GFP_COMP;
2125 if (flags & SLAB_CACHE_DMA)
2126 cachep->allocflags |= GFP_DMA;
2127 if (flags & SLAB_RECLAIM_ACCOUNT)
2128 cachep->allocflags |= __GFP_RECLAIMABLE;
2129 cachep->size = size;
2130 cachep->reciprocal_buffer_size = reciprocal_value(size);
2132 #if DEBUG
2134 * If we're going to use the generic kernel_map_pages()
2135 * poisoning, then it's going to smash the contents of
2136 * the redzone and userword anyhow, so switch them off.
2138 if (IS_ENABLED(CONFIG_PAGE_POISONING) &&
2139 (cachep->flags & SLAB_POISON) &&
2140 is_debug_pagealloc_cache(cachep))
2141 cachep->flags &= ~(SLAB_RED_ZONE | SLAB_STORE_USER);
2142 #endif
2144 if (OFF_SLAB(cachep)) {
2145 cachep->freelist_cache =
2146 kmalloc_slab(cachep->freelist_size, 0u);
2149 err = setup_cpu_cache(cachep, gfp);
2150 if (err) {
2151 __kmem_cache_release(cachep);
2152 return err;
2155 return 0;
2158 #if DEBUG
2159 static void check_irq_off(void)
2161 BUG_ON(!irqs_disabled());
2164 static void check_irq_on(void)
2166 BUG_ON(irqs_disabled());
2169 static void check_mutex_acquired(void)
2171 BUG_ON(!mutex_is_locked(&slab_mutex));
2174 static void check_spinlock_acquired(struct kmem_cache *cachep)
2176 #ifdef CONFIG_SMP
2177 check_irq_off();
2178 assert_spin_locked(&get_node(cachep, numa_mem_id())->list_lock);
2179 #endif
2182 static void check_spinlock_acquired_node(struct kmem_cache *cachep, int node)
2184 #ifdef CONFIG_SMP
2185 check_irq_off();
2186 assert_spin_locked(&get_node(cachep, node)->list_lock);
2187 #endif
2190 #else
2191 #define check_irq_off() do { } while(0)
2192 #define check_irq_on() do { } while(0)
2193 #define check_mutex_acquired() do { } while(0)
2194 #define check_spinlock_acquired(x) do { } while(0)
2195 #define check_spinlock_acquired_node(x, y) do { } while(0)
2196 #endif
2198 static void drain_array_locked(struct kmem_cache *cachep, struct array_cache *ac,
2199 int node, bool free_all, struct list_head *list)
2201 int tofree;
2203 if (!ac || !ac->avail)
2204 return;
2206 tofree = free_all ? ac->avail : (ac->limit + 4) / 5;
2207 if (tofree > ac->avail)
2208 tofree = (ac->avail + 1) / 2;
2210 free_block(cachep, ac->entry, tofree, node, list);
2211 ac->avail -= tofree;
2212 memmove(ac->entry, &(ac->entry[tofree]), sizeof(void *) * ac->avail);
2215 static void do_drain(void *arg)
2217 struct kmem_cache *cachep = arg;
2218 struct array_cache *ac;
2219 int node = numa_mem_id();
2220 struct kmem_cache_node *n;
2221 LIST_HEAD(list);
2223 check_irq_off();
2224 ac = cpu_cache_get(cachep);
2225 n = get_node(cachep, node);
2226 spin_lock(&n->list_lock);
2227 free_block(cachep, ac->entry, ac->avail, node, &list);
2228 spin_unlock(&n->list_lock);
2229 slabs_destroy(cachep, &list);
2230 ac->avail = 0;
2233 static void drain_cpu_caches(struct kmem_cache *cachep)
2235 struct kmem_cache_node *n;
2236 int node;
2237 LIST_HEAD(list);
2239 on_each_cpu(do_drain, cachep, 1);
2240 check_irq_on();
2241 for_each_kmem_cache_node(cachep, node, n)
2242 if (n->alien)
2243 drain_alien_cache(cachep, n->alien);
2245 for_each_kmem_cache_node(cachep, node, n) {
2246 spin_lock_irq(&n->list_lock);
2247 drain_array_locked(cachep, n->shared, node, true, &list);
2248 spin_unlock_irq(&n->list_lock);
2250 slabs_destroy(cachep, &list);
2255 * Remove slabs from the list of free slabs.
2256 * Specify the number of slabs to drain in tofree.
2258 * Returns the actual number of slabs released.
2260 static int drain_freelist(struct kmem_cache *cache,
2261 struct kmem_cache_node *n, int tofree)
2263 struct list_head *p;
2264 int nr_freed;
2265 struct page *page;
2267 nr_freed = 0;
2268 while (nr_freed < tofree && !list_empty(&n->slabs_free)) {
2270 spin_lock_irq(&n->list_lock);
2271 p = n->slabs_free.prev;
2272 if (p == &n->slabs_free) {
2273 spin_unlock_irq(&n->list_lock);
2274 goto out;
2277 page = list_entry(p, struct page, lru);
2278 list_del(&page->lru);
2279 n->free_slabs--;
2280 n->total_slabs--;
2282 * Safe to drop the lock. The slab is no longer linked
2283 * to the cache.
2285 n->free_objects -= cache->num;
2286 spin_unlock_irq(&n->list_lock);
2287 slab_destroy(cache, page);
2288 nr_freed++;
2290 out:
2291 return nr_freed;
2294 int __kmem_cache_shrink(struct kmem_cache *cachep)
2296 int ret = 0;
2297 int node;
2298 struct kmem_cache_node *n;
2300 drain_cpu_caches(cachep);
2302 check_irq_on();
2303 for_each_kmem_cache_node(cachep, node, n) {
2304 drain_freelist(cachep, n, INT_MAX);
2306 ret += !list_empty(&n->slabs_full) ||
2307 !list_empty(&n->slabs_partial);
2309 return (ret ? 1 : 0);
2312 #ifdef CONFIG_MEMCG
2313 void __kmemcg_cache_deactivate(struct kmem_cache *cachep)
2315 __kmem_cache_shrink(cachep);
2317 #endif
2319 int __kmem_cache_shutdown(struct kmem_cache *cachep)
2321 return __kmem_cache_shrink(cachep);
2324 void __kmem_cache_release(struct kmem_cache *cachep)
2326 int i;
2327 struct kmem_cache_node *n;
2329 cache_random_seq_destroy(cachep);
2331 free_percpu(cachep->cpu_cache);
2333 /* NUMA: free the node structures */
2334 for_each_kmem_cache_node(cachep, i, n) {
2335 kfree(n->shared);
2336 free_alien_cache(n->alien);
2337 kfree(n);
2338 cachep->node[i] = NULL;
2343 * Get the memory for a slab management obj.
2345 * For a slab cache when the slab descriptor is off-slab, the
2346 * slab descriptor can't come from the same cache which is being created,
2347 * Because if it is the case, that means we defer the creation of
2348 * the kmalloc_{dma,}_cache of size sizeof(slab descriptor) to this point.
2349 * And we eventually call down to __kmem_cache_create(), which
2350 * in turn looks up in the kmalloc_{dma,}_caches for the disired-size one.
2351 * This is a "chicken-and-egg" problem.
2353 * So the off-slab slab descriptor shall come from the kmalloc_{dma,}_caches,
2354 * which are all initialized during kmem_cache_init().
2356 static void *alloc_slabmgmt(struct kmem_cache *cachep,
2357 struct page *page, int colour_off,
2358 gfp_t local_flags, int nodeid)
2360 void *freelist;
2361 void *addr = page_address(page);
2363 page->s_mem = addr + colour_off;
2364 page->active = 0;
2366 if (OBJFREELIST_SLAB(cachep))
2367 freelist = NULL;
2368 else if (OFF_SLAB(cachep)) {
2369 /* Slab management obj is off-slab. */
2370 freelist = kmem_cache_alloc_node(cachep->freelist_cache,
2371 local_flags, nodeid);
2372 if (!freelist)
2373 return NULL;
2374 } else {
2375 /* We will use last bytes at the slab for freelist */
2376 freelist = addr + (PAGE_SIZE << cachep->gfporder) -
2377 cachep->freelist_size;
2380 return freelist;
2383 static inline freelist_idx_t get_free_obj(struct page *page, unsigned int idx)
2385 return ((freelist_idx_t *)page->freelist)[idx];
2388 static inline void set_free_obj(struct page *page,
2389 unsigned int idx, freelist_idx_t val)
2391 ((freelist_idx_t *)(page->freelist))[idx] = val;
2394 static void cache_init_objs_debug(struct kmem_cache *cachep, struct page *page)
2396 #if DEBUG
2397 int i;
2399 for (i = 0; i < cachep->num; i++) {
2400 void *objp = index_to_obj(cachep, page, i);
2402 if (cachep->flags & SLAB_STORE_USER)
2403 *dbg_userword(cachep, objp) = NULL;
2405 if (cachep->flags & SLAB_RED_ZONE) {
2406 *dbg_redzone1(cachep, objp) = RED_INACTIVE;
2407 *dbg_redzone2(cachep, objp) = RED_INACTIVE;
2410 * Constructors are not allowed to allocate memory from the same
2411 * cache which they are a constructor for. Otherwise, deadlock.
2412 * They must also be threaded.
2414 if (cachep->ctor && !(cachep->flags & SLAB_POISON)) {
2415 kasan_unpoison_object_data(cachep,
2416 objp + obj_offset(cachep));
2417 cachep->ctor(objp + obj_offset(cachep));
2418 kasan_poison_object_data(
2419 cachep, objp + obj_offset(cachep));
2422 if (cachep->flags & SLAB_RED_ZONE) {
2423 if (*dbg_redzone2(cachep, objp) != RED_INACTIVE)
2424 slab_error(cachep, "constructor overwrote the end of an object");
2425 if (*dbg_redzone1(cachep, objp) != RED_INACTIVE)
2426 slab_error(cachep, "constructor overwrote the start of an object");
2428 /* need to poison the objs? */
2429 if (cachep->flags & SLAB_POISON) {
2430 poison_obj(cachep, objp, POISON_FREE);
2431 slab_kernel_map(cachep, objp, 0, 0);
2434 #endif
2437 #ifdef CONFIG_SLAB_FREELIST_RANDOM
2438 /* Hold information during a freelist initialization */
2439 union freelist_init_state {
2440 struct {
2441 unsigned int pos;
2442 unsigned int *list;
2443 unsigned int count;
2445 struct rnd_state rnd_state;
2449 * Initialize the state based on the randomization methode available.
2450 * return true if the pre-computed list is available, false otherwize.
2452 static bool freelist_state_initialize(union freelist_init_state *state,
2453 struct kmem_cache *cachep,
2454 unsigned int count)
2456 bool ret;
2457 unsigned int rand;
2459 /* Use best entropy available to define a random shift */
2460 rand = get_random_int();
2462 /* Use a random state if the pre-computed list is not available */
2463 if (!cachep->random_seq) {
2464 prandom_seed_state(&state->rnd_state, rand);
2465 ret = false;
2466 } else {
2467 state->list = cachep->random_seq;
2468 state->count = count;
2469 state->pos = rand % count;
2470 ret = true;
2472 return ret;
2475 /* Get the next entry on the list and randomize it using a random shift */
2476 static freelist_idx_t next_random_slot(union freelist_init_state *state)
2478 if (state->pos >= state->count)
2479 state->pos = 0;
2480 return state->list[state->pos++];
2483 /* Swap two freelist entries */
2484 static void swap_free_obj(struct page *page, unsigned int a, unsigned int b)
2486 swap(((freelist_idx_t *)page->freelist)[a],
2487 ((freelist_idx_t *)page->freelist)[b]);
2491 * Shuffle the freelist initialization state based on pre-computed lists.
2492 * return true if the list was successfully shuffled, false otherwise.
2494 static bool shuffle_freelist(struct kmem_cache *cachep, struct page *page)
2496 unsigned int objfreelist = 0, i, rand, count = cachep->num;
2497 union freelist_init_state state;
2498 bool precomputed;
2500 if (count < 2)
2501 return false;
2503 precomputed = freelist_state_initialize(&state, cachep, count);
2505 /* Take a random entry as the objfreelist */
2506 if (OBJFREELIST_SLAB(cachep)) {
2507 if (!precomputed)
2508 objfreelist = count - 1;
2509 else
2510 objfreelist = next_random_slot(&state);
2511 page->freelist = index_to_obj(cachep, page, objfreelist) +
2512 obj_offset(cachep);
2513 count--;
2517 * On early boot, generate the list dynamically.
2518 * Later use a pre-computed list for speed.
2520 if (!precomputed) {
2521 for (i = 0; i < count; i++)
2522 set_free_obj(page, i, i);
2524 /* Fisher-Yates shuffle */
2525 for (i = count - 1; i > 0; i--) {
2526 rand = prandom_u32_state(&state.rnd_state);
2527 rand %= (i + 1);
2528 swap_free_obj(page, i, rand);
2530 } else {
2531 for (i = 0; i < count; i++)
2532 set_free_obj(page, i, next_random_slot(&state));
2535 if (OBJFREELIST_SLAB(cachep))
2536 set_free_obj(page, cachep->num - 1, objfreelist);
2538 return true;
2540 #else
2541 static inline bool shuffle_freelist(struct kmem_cache *cachep,
2542 struct page *page)
2544 return false;
2546 #endif /* CONFIG_SLAB_FREELIST_RANDOM */
2548 static void cache_init_objs(struct kmem_cache *cachep,
2549 struct page *page)
2551 int i;
2552 void *objp;
2553 bool shuffled;
2555 cache_init_objs_debug(cachep, page);
2557 /* Try to randomize the freelist if enabled */
2558 shuffled = shuffle_freelist(cachep, page);
2560 if (!shuffled && OBJFREELIST_SLAB(cachep)) {
2561 page->freelist = index_to_obj(cachep, page, cachep->num - 1) +
2562 obj_offset(cachep);
2565 for (i = 0; i < cachep->num; i++) {
2566 objp = index_to_obj(cachep, page, i);
2567 kasan_init_slab_obj(cachep, objp);
2569 /* constructor could break poison info */
2570 if (DEBUG == 0 && cachep->ctor) {
2571 kasan_unpoison_object_data(cachep, objp);
2572 cachep->ctor(objp);
2573 kasan_poison_object_data(cachep, objp);
2576 if (!shuffled)
2577 set_free_obj(page, i, i);
2581 static void *slab_get_obj(struct kmem_cache *cachep, struct page *page)
2583 void *objp;
2585 objp = index_to_obj(cachep, page, get_free_obj(page, page->active));
2586 page->active++;
2588 #if DEBUG
2589 if (cachep->flags & SLAB_STORE_USER)
2590 set_store_user_dirty(cachep);
2591 #endif
2593 return objp;
2596 static void slab_put_obj(struct kmem_cache *cachep,
2597 struct page *page, void *objp)
2599 unsigned int objnr = obj_to_index(cachep, page, objp);
2600 #if DEBUG
2601 unsigned int i;
2603 /* Verify double free bug */
2604 for (i = page->active; i < cachep->num; i++) {
2605 if (get_free_obj(page, i) == objnr) {
2606 pr_err("slab: double free detected in cache '%s', objp %px\n",
2607 cachep->name, objp);
2608 BUG();
2611 #endif
2612 page->active--;
2613 if (!page->freelist)
2614 page->freelist = objp + obj_offset(cachep);
2616 set_free_obj(page, page->active, objnr);
2620 * Map pages beginning at addr to the given cache and slab. This is required
2621 * for the slab allocator to be able to lookup the cache and slab of a
2622 * virtual address for kfree, ksize, and slab debugging.
2624 static void slab_map_pages(struct kmem_cache *cache, struct page *page,
2625 void *freelist)
2627 page->slab_cache = cache;
2628 page->freelist = freelist;
2632 * Grow (by 1) the number of slabs within a cache. This is called by
2633 * kmem_cache_alloc() when there are no active objs left in a cache.
2635 static struct page *cache_grow_begin(struct kmem_cache *cachep,
2636 gfp_t flags, int nodeid)
2638 void *freelist;
2639 size_t offset;
2640 gfp_t local_flags;
2641 int page_node;
2642 struct kmem_cache_node *n;
2643 struct page *page;
2646 * Be lazy and only check for valid flags here, keeping it out of the
2647 * critical path in kmem_cache_alloc().
2649 if (unlikely(flags & GFP_SLAB_BUG_MASK)) {
2650 gfp_t invalid_mask = flags & GFP_SLAB_BUG_MASK;
2651 flags &= ~GFP_SLAB_BUG_MASK;
2652 pr_warn("Unexpected gfp: %#x (%pGg). Fixing up to gfp: %#x (%pGg). Fix your code!\n",
2653 invalid_mask, &invalid_mask, flags, &flags);
2654 dump_stack();
2656 local_flags = flags & (GFP_CONSTRAINT_MASK|GFP_RECLAIM_MASK);
2658 check_irq_off();
2659 if (gfpflags_allow_blocking(local_flags))
2660 local_irq_enable();
2663 * Get mem for the objs. Attempt to allocate a physical page from
2664 * 'nodeid'.
2666 page = kmem_getpages(cachep, local_flags, nodeid);
2667 if (!page)
2668 goto failed;
2670 page_node = page_to_nid(page);
2671 n = get_node(cachep, page_node);
2673 /* Get colour for the slab, and cal the next value. */
2674 n->colour_next++;
2675 if (n->colour_next >= cachep->colour)
2676 n->colour_next = 0;
2678 offset = n->colour_next;
2679 if (offset >= cachep->colour)
2680 offset = 0;
2682 offset *= cachep->colour_off;
2684 /* Get slab management. */
2685 freelist = alloc_slabmgmt(cachep, page, offset,
2686 local_flags & ~GFP_CONSTRAINT_MASK, page_node);
2687 if (OFF_SLAB(cachep) && !freelist)
2688 goto opps1;
2690 slab_map_pages(cachep, page, freelist);
2692 kasan_poison_slab(page);
2693 cache_init_objs(cachep, page);
2695 if (gfpflags_allow_blocking(local_flags))
2696 local_irq_disable();
2698 return page;
2700 opps1:
2701 kmem_freepages(cachep, page);
2702 failed:
2703 if (gfpflags_allow_blocking(local_flags))
2704 local_irq_disable();
2705 return NULL;
2708 static void cache_grow_end(struct kmem_cache *cachep, struct page *page)
2710 struct kmem_cache_node *n;
2711 void *list = NULL;
2713 check_irq_off();
2715 if (!page)
2716 return;
2718 INIT_LIST_HEAD(&page->lru);
2719 n = get_node(cachep, page_to_nid(page));
2721 spin_lock(&n->list_lock);
2722 n->total_slabs++;
2723 if (!page->active) {
2724 list_add_tail(&page->lru, &(n->slabs_free));
2725 n->free_slabs++;
2726 } else
2727 fixup_slab_list(cachep, n, page, &list);
2729 STATS_INC_GROWN(cachep);
2730 n->free_objects += cachep->num - page->active;
2731 spin_unlock(&n->list_lock);
2733 fixup_objfreelist_debug(cachep, &list);
2736 #if DEBUG
2739 * Perform extra freeing checks:
2740 * - detect bad pointers.
2741 * - POISON/RED_ZONE checking
2743 static void kfree_debugcheck(const void *objp)
2745 if (!virt_addr_valid(objp)) {
2746 pr_err("kfree_debugcheck: out of range ptr %lxh\n",
2747 (unsigned long)objp);
2748 BUG();
2752 static inline void verify_redzone_free(struct kmem_cache *cache, void *obj)
2754 unsigned long long redzone1, redzone2;
2756 redzone1 = *dbg_redzone1(cache, obj);
2757 redzone2 = *dbg_redzone2(cache, obj);
2760 * Redzone is ok.
2762 if (redzone1 == RED_ACTIVE && redzone2 == RED_ACTIVE)
2763 return;
2765 if (redzone1 == RED_INACTIVE && redzone2 == RED_INACTIVE)
2766 slab_error(cache, "double free detected");
2767 else
2768 slab_error(cache, "memory outside object was overwritten");
2770 pr_err("%px: redzone 1:0x%llx, redzone 2:0x%llx\n",
2771 obj, redzone1, redzone2);
2774 static void *cache_free_debugcheck(struct kmem_cache *cachep, void *objp,
2775 unsigned long caller)
2777 unsigned int objnr;
2778 struct page *page;
2780 BUG_ON(virt_to_cache(objp) != cachep);
2782 objp -= obj_offset(cachep);
2783 kfree_debugcheck(objp);
2784 page = virt_to_head_page(objp);
2786 if (cachep->flags & SLAB_RED_ZONE) {
2787 verify_redzone_free(cachep, objp);
2788 *dbg_redzone1(cachep, objp) = RED_INACTIVE;
2789 *dbg_redzone2(cachep, objp) = RED_INACTIVE;
2791 if (cachep->flags & SLAB_STORE_USER) {
2792 set_store_user_dirty(cachep);
2793 *dbg_userword(cachep, objp) = (void *)caller;
2796 objnr = obj_to_index(cachep, page, objp);
2798 BUG_ON(objnr >= cachep->num);
2799 BUG_ON(objp != index_to_obj(cachep, page, objnr));
2801 if (cachep->flags & SLAB_POISON) {
2802 poison_obj(cachep, objp, POISON_FREE);
2803 slab_kernel_map(cachep, objp, 0, caller);
2805 return objp;
2808 #else
2809 #define kfree_debugcheck(x) do { } while(0)
2810 #define cache_free_debugcheck(x,objp,z) (objp)
2811 #endif
2813 static inline void fixup_objfreelist_debug(struct kmem_cache *cachep,
2814 void **list)
2816 #if DEBUG
2817 void *next = *list;
2818 void *objp;
2820 while (next) {
2821 objp = next - obj_offset(cachep);
2822 next = *(void **)next;
2823 poison_obj(cachep, objp, POISON_FREE);
2825 #endif
2828 static inline void fixup_slab_list(struct kmem_cache *cachep,
2829 struct kmem_cache_node *n, struct page *page,
2830 void **list)
2832 /* move slabp to correct slabp list: */
2833 list_del(&page->lru);
2834 if (page->active == cachep->num) {
2835 list_add(&page->lru, &n->slabs_full);
2836 if (OBJFREELIST_SLAB(cachep)) {
2837 #if DEBUG
2838 /* Poisoning will be done without holding the lock */
2839 if (cachep->flags & SLAB_POISON) {
2840 void **objp = page->freelist;
2842 *objp = *list;
2843 *list = objp;
2845 #endif
2846 page->freelist = NULL;
2848 } else
2849 list_add(&page->lru, &n->slabs_partial);
2852 /* Try to find non-pfmemalloc slab if needed */
2853 static noinline struct page *get_valid_first_slab(struct kmem_cache_node *n,
2854 struct page *page, bool pfmemalloc)
2856 if (!page)
2857 return NULL;
2859 if (pfmemalloc)
2860 return page;
2862 if (!PageSlabPfmemalloc(page))
2863 return page;
2865 /* No need to keep pfmemalloc slab if we have enough free objects */
2866 if (n->free_objects > n->free_limit) {
2867 ClearPageSlabPfmemalloc(page);
2868 return page;
2871 /* Move pfmemalloc slab to the end of list to speed up next search */
2872 list_del(&page->lru);
2873 if (!page->active) {
2874 list_add_tail(&page->lru, &n->slabs_free);
2875 n->free_slabs++;
2876 } else
2877 list_add_tail(&page->lru, &n->slabs_partial);
2879 list_for_each_entry(page, &n->slabs_partial, lru) {
2880 if (!PageSlabPfmemalloc(page))
2881 return page;
2884 n->free_touched = 1;
2885 list_for_each_entry(page, &n->slabs_free, lru) {
2886 if (!PageSlabPfmemalloc(page)) {
2887 n->free_slabs--;
2888 return page;
2892 return NULL;
2895 static struct page *get_first_slab(struct kmem_cache_node *n, bool pfmemalloc)
2897 struct page *page;
2899 assert_spin_locked(&n->list_lock);
2900 page = list_first_entry_or_null(&n->slabs_partial, struct page, lru);
2901 if (!page) {
2902 n->free_touched = 1;
2903 page = list_first_entry_or_null(&n->slabs_free, struct page,
2904 lru);
2905 if (page)
2906 n->free_slabs--;
2909 if (sk_memalloc_socks())
2910 page = get_valid_first_slab(n, page, pfmemalloc);
2912 return page;
2915 static noinline void *cache_alloc_pfmemalloc(struct kmem_cache *cachep,
2916 struct kmem_cache_node *n, gfp_t flags)
2918 struct page *page;
2919 void *obj;
2920 void *list = NULL;
2922 if (!gfp_pfmemalloc_allowed(flags))
2923 return NULL;
2925 spin_lock(&n->list_lock);
2926 page = get_first_slab(n, true);
2927 if (!page) {
2928 spin_unlock(&n->list_lock);
2929 return NULL;
2932 obj = slab_get_obj(cachep, page);
2933 n->free_objects--;
2935 fixup_slab_list(cachep, n, page, &list);
2937 spin_unlock(&n->list_lock);
2938 fixup_objfreelist_debug(cachep, &list);
2940 return obj;
2944 * Slab list should be fixed up by fixup_slab_list() for existing slab
2945 * or cache_grow_end() for new slab
2947 static __always_inline int alloc_block(struct kmem_cache *cachep,
2948 struct array_cache *ac, struct page *page, int batchcount)
2951 * There must be at least one object available for
2952 * allocation.
2954 BUG_ON(page->active >= cachep->num);
2956 while (page->active < cachep->num && batchcount--) {
2957 STATS_INC_ALLOCED(cachep);
2958 STATS_INC_ACTIVE(cachep);
2959 STATS_SET_HIGH(cachep);
2961 ac->entry[ac->avail++] = slab_get_obj(cachep, page);
2964 return batchcount;
2967 static void *cache_alloc_refill(struct kmem_cache *cachep, gfp_t flags)
2969 int batchcount;
2970 struct kmem_cache_node *n;
2971 struct array_cache *ac, *shared;
2972 int node;
2973 void *list = NULL;
2974 struct page *page;
2976 check_irq_off();
2977 node = numa_mem_id();
2979 ac = cpu_cache_get(cachep);
2980 batchcount = ac->batchcount;
2981 if (!ac->touched && batchcount > BATCHREFILL_LIMIT) {
2983 * If there was little recent activity on this cache, then
2984 * perform only a partial refill. Otherwise we could generate
2985 * refill bouncing.
2987 batchcount = BATCHREFILL_LIMIT;
2989 n = get_node(cachep, node);
2991 BUG_ON(ac->avail > 0 || !n);
2992 shared = READ_ONCE(n->shared);
2993 if (!n->free_objects && (!shared || !shared->avail))
2994 goto direct_grow;
2996 spin_lock(&n->list_lock);
2997 shared = READ_ONCE(n->shared);
2999 /* See if we can refill from the shared array */
3000 if (shared && transfer_objects(ac, shared, batchcount)) {
3001 shared->touched = 1;
3002 goto alloc_done;
3005 while (batchcount > 0) {
3006 /* Get slab alloc is to come from. */
3007 page = get_first_slab(n, false);
3008 if (!page)
3009 goto must_grow;
3011 check_spinlock_acquired(cachep);
3013 batchcount = alloc_block(cachep, ac, page, batchcount);
3014 fixup_slab_list(cachep, n, page, &list);
3017 must_grow:
3018 n->free_objects -= ac->avail;
3019 alloc_done:
3020 spin_unlock(&n->list_lock);
3021 fixup_objfreelist_debug(cachep, &list);
3023 direct_grow:
3024 if (unlikely(!ac->avail)) {
3025 /* Check if we can use obj in pfmemalloc slab */
3026 if (sk_memalloc_socks()) {
3027 void *obj = cache_alloc_pfmemalloc(cachep, n, flags);
3029 if (obj)
3030 return obj;
3033 page = cache_grow_begin(cachep, gfp_exact_node(flags), node);
3036 * cache_grow_begin() can reenable interrupts,
3037 * then ac could change.
3039 ac = cpu_cache_get(cachep);
3040 if (!ac->avail && page)
3041 alloc_block(cachep, ac, page, batchcount);
3042 cache_grow_end(cachep, page);
3044 if (!ac->avail)
3045 return NULL;
3047 ac->touched = 1;
3049 return ac->entry[--ac->avail];
3052 static inline void cache_alloc_debugcheck_before(struct kmem_cache *cachep,
3053 gfp_t flags)
3055 might_sleep_if(gfpflags_allow_blocking(flags));
3058 #if DEBUG
3059 static void *cache_alloc_debugcheck_after(struct kmem_cache *cachep,
3060 gfp_t flags, void *objp, unsigned long caller)
3062 if (!objp)
3063 return objp;
3064 if (cachep->flags & SLAB_POISON) {
3065 check_poison_obj(cachep, objp);
3066 slab_kernel_map(cachep, objp, 1, 0);
3067 poison_obj(cachep, objp, POISON_INUSE);
3069 if (cachep->flags & SLAB_STORE_USER)
3070 *dbg_userword(cachep, objp) = (void *)caller;
3072 if (cachep->flags & SLAB_RED_ZONE) {
3073 if (*dbg_redzone1(cachep, objp) != RED_INACTIVE ||
3074 *dbg_redzone2(cachep, objp) != RED_INACTIVE) {
3075 slab_error(cachep, "double free, or memory outside object was overwritten");
3076 pr_err("%px: redzone 1:0x%llx, redzone 2:0x%llx\n",
3077 objp, *dbg_redzone1(cachep, objp),
3078 *dbg_redzone2(cachep, objp));
3080 *dbg_redzone1(cachep, objp) = RED_ACTIVE;
3081 *dbg_redzone2(cachep, objp) = RED_ACTIVE;
3084 objp += obj_offset(cachep);
3085 if (cachep->ctor && cachep->flags & SLAB_POISON)
3086 cachep->ctor(objp);
3087 if (ARCH_SLAB_MINALIGN &&
3088 ((unsigned long)objp & (ARCH_SLAB_MINALIGN-1))) {
3089 pr_err("0x%px: not aligned to ARCH_SLAB_MINALIGN=%d\n",
3090 objp, (int)ARCH_SLAB_MINALIGN);
3092 return objp;
3094 #else
3095 #define cache_alloc_debugcheck_after(a,b,objp,d) (objp)
3096 #endif
3098 static inline void *____cache_alloc(struct kmem_cache *cachep, gfp_t flags)
3100 void *objp;
3101 struct array_cache *ac;
3103 check_irq_off();
3105 ac = cpu_cache_get(cachep);
3106 if (likely(ac->avail)) {
3107 ac->touched = 1;
3108 objp = ac->entry[--ac->avail];
3110 STATS_INC_ALLOCHIT(cachep);
3111 goto out;
3114 STATS_INC_ALLOCMISS(cachep);
3115 objp = cache_alloc_refill(cachep, flags);
3117 * the 'ac' may be updated by cache_alloc_refill(),
3118 * and kmemleak_erase() requires its correct value.
3120 ac = cpu_cache_get(cachep);
3122 out:
3124 * To avoid a false negative, if an object that is in one of the
3125 * per-CPU caches is leaked, we need to make sure kmemleak doesn't
3126 * treat the array pointers as a reference to the object.
3128 if (objp)
3129 kmemleak_erase(&ac->entry[ac->avail]);
3130 return objp;
3133 #ifdef CONFIG_NUMA
3135 * Try allocating on another node if PFA_SPREAD_SLAB is a mempolicy is set.
3137 * If we are in_interrupt, then process context, including cpusets and
3138 * mempolicy, may not apply and should not be used for allocation policy.
3140 static void *alternate_node_alloc(struct kmem_cache *cachep, gfp_t flags)
3142 int nid_alloc, nid_here;
3144 if (in_interrupt() || (flags & __GFP_THISNODE))
3145 return NULL;
3146 nid_alloc = nid_here = numa_mem_id();
3147 if (cpuset_do_slab_mem_spread() && (cachep->flags & SLAB_MEM_SPREAD))
3148 nid_alloc = cpuset_slab_spread_node();
3149 else if (current->mempolicy)
3150 nid_alloc = mempolicy_slab_node();
3151 if (nid_alloc != nid_here)
3152 return ____cache_alloc_node(cachep, flags, nid_alloc);
3153 return NULL;
3157 * Fallback function if there was no memory available and no objects on a
3158 * certain node and fall back is permitted. First we scan all the
3159 * available node for available objects. If that fails then we
3160 * perform an allocation without specifying a node. This allows the page
3161 * allocator to do its reclaim / fallback magic. We then insert the
3162 * slab into the proper nodelist and then allocate from it.
3164 static void *fallback_alloc(struct kmem_cache *cache, gfp_t flags)
3166 struct zonelist *zonelist;
3167 struct zoneref *z;
3168 struct zone *zone;
3169 enum zone_type high_zoneidx = gfp_zone(flags);
3170 void *obj = NULL;
3171 struct page *page;
3172 int nid;
3173 unsigned int cpuset_mems_cookie;
3175 if (flags & __GFP_THISNODE)
3176 return NULL;
3178 retry_cpuset:
3179 cpuset_mems_cookie = read_mems_allowed_begin();
3180 zonelist = node_zonelist(mempolicy_slab_node(), flags);
3182 retry:
3184 * Look through allowed nodes for objects available
3185 * from existing per node queues.
3187 for_each_zone_zonelist(zone, z, zonelist, high_zoneidx) {
3188 nid = zone_to_nid(zone);
3190 if (cpuset_zone_allowed(zone, flags) &&
3191 get_node(cache, nid) &&
3192 get_node(cache, nid)->free_objects) {
3193 obj = ____cache_alloc_node(cache,
3194 gfp_exact_node(flags), nid);
3195 if (obj)
3196 break;
3200 if (!obj) {
3202 * This allocation will be performed within the constraints
3203 * of the current cpuset / memory policy requirements.
3204 * We may trigger various forms of reclaim on the allowed
3205 * set and go into memory reserves if necessary.
3207 page = cache_grow_begin(cache, flags, numa_mem_id());
3208 cache_grow_end(cache, page);
3209 if (page) {
3210 nid = page_to_nid(page);
3211 obj = ____cache_alloc_node(cache,
3212 gfp_exact_node(flags), nid);
3215 * Another processor may allocate the objects in
3216 * the slab since we are not holding any locks.
3218 if (!obj)
3219 goto retry;
3223 if (unlikely(!obj && read_mems_allowed_retry(cpuset_mems_cookie)))
3224 goto retry_cpuset;
3225 return obj;
3229 * A interface to enable slab creation on nodeid
3231 static void *____cache_alloc_node(struct kmem_cache *cachep, gfp_t flags,
3232 int nodeid)
3234 struct page *page;
3235 struct kmem_cache_node *n;
3236 void *obj = NULL;
3237 void *list = NULL;
3239 VM_BUG_ON(nodeid < 0 || nodeid >= MAX_NUMNODES);
3240 n = get_node(cachep, nodeid);
3241 BUG_ON(!n);
3243 check_irq_off();
3244 spin_lock(&n->list_lock);
3245 page = get_first_slab(n, false);
3246 if (!page)
3247 goto must_grow;
3249 check_spinlock_acquired_node(cachep, nodeid);
3251 STATS_INC_NODEALLOCS(cachep);
3252 STATS_INC_ACTIVE(cachep);
3253 STATS_SET_HIGH(cachep);
3255 BUG_ON(page->active == cachep->num);
3257 obj = slab_get_obj(cachep, page);
3258 n->free_objects--;
3260 fixup_slab_list(cachep, n, page, &list);
3262 spin_unlock(&n->list_lock);
3263 fixup_objfreelist_debug(cachep, &list);
3264 return obj;
3266 must_grow:
3267 spin_unlock(&n->list_lock);
3268 page = cache_grow_begin(cachep, gfp_exact_node(flags), nodeid);
3269 if (page) {
3270 /* This slab isn't counted yet so don't update free_objects */
3271 obj = slab_get_obj(cachep, page);
3273 cache_grow_end(cachep, page);
3275 return obj ? obj : fallback_alloc(cachep, flags);
3278 static __always_inline void *
3279 slab_alloc_node(struct kmem_cache *cachep, gfp_t flags, int nodeid,
3280 unsigned long caller)
3282 unsigned long save_flags;
3283 void *ptr;
3284 int slab_node = numa_mem_id();
3286 flags &= gfp_allowed_mask;
3287 cachep = slab_pre_alloc_hook(cachep, flags);
3288 if (unlikely(!cachep))
3289 return NULL;
3291 cache_alloc_debugcheck_before(cachep, flags);
3292 local_irq_save(save_flags);
3294 if (nodeid == NUMA_NO_NODE)
3295 nodeid = slab_node;
3297 if (unlikely(!get_node(cachep, nodeid))) {
3298 /* Node not bootstrapped yet */
3299 ptr = fallback_alloc(cachep, flags);
3300 goto out;
3303 if (nodeid == slab_node) {
3305 * Use the locally cached objects if possible.
3306 * However ____cache_alloc does not allow fallback
3307 * to other nodes. It may fail while we still have
3308 * objects on other nodes available.
3310 ptr = ____cache_alloc(cachep, flags);
3311 if (ptr)
3312 goto out;
3314 /* ___cache_alloc_node can fall back to other nodes */
3315 ptr = ____cache_alloc_node(cachep, flags, nodeid);
3316 out:
3317 local_irq_restore(save_flags);
3318 ptr = cache_alloc_debugcheck_after(cachep, flags, ptr, caller);
3320 if (unlikely(flags & __GFP_ZERO) && ptr)
3321 memset(ptr, 0, cachep->object_size);
3323 slab_post_alloc_hook(cachep, flags, 1, &ptr);
3324 return ptr;
3327 static __always_inline void *
3328 __do_cache_alloc(struct kmem_cache *cache, gfp_t flags)
3330 void *objp;
3332 if (current->mempolicy || cpuset_do_slab_mem_spread()) {
3333 objp = alternate_node_alloc(cache, flags);
3334 if (objp)
3335 goto out;
3337 objp = ____cache_alloc(cache, flags);
3340 * We may just have run out of memory on the local node.
3341 * ____cache_alloc_node() knows how to locate memory on other nodes
3343 if (!objp)
3344 objp = ____cache_alloc_node(cache, flags, numa_mem_id());
3346 out:
3347 return objp;
3349 #else
3351 static __always_inline void *
3352 __do_cache_alloc(struct kmem_cache *cachep, gfp_t flags)
3354 return ____cache_alloc(cachep, flags);
3357 #endif /* CONFIG_NUMA */
3359 static __always_inline void *
3360 slab_alloc(struct kmem_cache *cachep, gfp_t flags, unsigned long caller)
3362 unsigned long save_flags;
3363 void *objp;
3365 flags &= gfp_allowed_mask;
3366 cachep = slab_pre_alloc_hook(cachep, flags);
3367 if (unlikely(!cachep))
3368 return NULL;
3370 cache_alloc_debugcheck_before(cachep, flags);
3371 local_irq_save(save_flags);
3372 objp = __do_cache_alloc(cachep, flags);
3373 local_irq_restore(save_flags);
3374 objp = cache_alloc_debugcheck_after(cachep, flags, objp, caller);
3375 prefetchw(objp);
3377 if (unlikely(flags & __GFP_ZERO) && objp)
3378 memset(objp, 0, cachep->object_size);
3380 slab_post_alloc_hook(cachep, flags, 1, &objp);
3381 return objp;
3385 * Caller needs to acquire correct kmem_cache_node's list_lock
3386 * @list: List of detached free slabs should be freed by caller
3388 static void free_block(struct kmem_cache *cachep, void **objpp,
3389 int nr_objects, int node, struct list_head *list)
3391 int i;
3392 struct kmem_cache_node *n = get_node(cachep, node);
3393 struct page *page;
3395 n->free_objects += nr_objects;
3397 for (i = 0; i < nr_objects; i++) {
3398 void *objp;
3399 struct page *page;
3401 objp = objpp[i];
3403 page = virt_to_head_page(objp);
3404 list_del(&page->lru);
3405 check_spinlock_acquired_node(cachep, node);
3406 slab_put_obj(cachep, page, objp);
3407 STATS_DEC_ACTIVE(cachep);
3409 /* fixup slab chains */
3410 if (page->active == 0) {
3411 list_add(&page->lru, &n->slabs_free);
3412 n->free_slabs++;
3413 } else {
3414 /* Unconditionally move a slab to the end of the
3415 * partial list on free - maximum time for the
3416 * other objects to be freed, too.
3418 list_add_tail(&page->lru, &n->slabs_partial);
3422 while (n->free_objects > n->free_limit && !list_empty(&n->slabs_free)) {
3423 n->free_objects -= cachep->num;
3425 page = list_last_entry(&n->slabs_free, struct page, lru);
3426 list_move(&page->lru, list);
3427 n->free_slabs--;
3428 n->total_slabs--;
3432 static void cache_flusharray(struct kmem_cache *cachep, struct array_cache *ac)
3434 int batchcount;
3435 struct kmem_cache_node *n;
3436 int node = numa_mem_id();
3437 LIST_HEAD(list);
3439 batchcount = ac->batchcount;
3441 check_irq_off();
3442 n = get_node(cachep, node);
3443 spin_lock(&n->list_lock);
3444 if (n->shared) {
3445 struct array_cache *shared_array = n->shared;
3446 int max = shared_array->limit - shared_array->avail;
3447 if (max) {
3448 if (batchcount > max)
3449 batchcount = max;
3450 memcpy(&(shared_array->entry[shared_array->avail]),
3451 ac->entry, sizeof(void *) * batchcount);
3452 shared_array->avail += batchcount;
3453 goto free_done;
3457 free_block(cachep, ac->entry, batchcount, node, &list);
3458 free_done:
3459 #if STATS
3461 int i = 0;
3462 struct page *page;
3464 list_for_each_entry(page, &n->slabs_free, lru) {
3465 BUG_ON(page->active);
3467 i++;
3469 STATS_SET_FREEABLE(cachep, i);
3471 #endif
3472 spin_unlock(&n->list_lock);
3473 slabs_destroy(cachep, &list);
3474 ac->avail -= batchcount;
3475 memmove(ac->entry, &(ac->entry[batchcount]), sizeof(void *)*ac->avail);
3479 * Release an obj back to its cache. If the obj has a constructed state, it must
3480 * be in this state _before_ it is released. Called with disabled ints.
3482 static __always_inline void __cache_free(struct kmem_cache *cachep, void *objp,
3483 unsigned long caller)
3485 /* Put the object into the quarantine, don't touch it for now. */
3486 if (kasan_slab_free(cachep, objp, _RET_IP_))
3487 return;
3489 ___cache_free(cachep, objp, caller);
3492 void ___cache_free(struct kmem_cache *cachep, void *objp,
3493 unsigned long caller)
3495 struct array_cache *ac = cpu_cache_get(cachep);
3497 check_irq_off();
3498 kmemleak_free_recursive(objp, cachep->flags);
3499 objp = cache_free_debugcheck(cachep, objp, caller);
3502 * Skip calling cache_free_alien() when the platform is not numa.
3503 * This will avoid cache misses that happen while accessing slabp (which
3504 * is per page memory reference) to get nodeid. Instead use a global
3505 * variable to skip the call, which is mostly likely to be present in
3506 * the cache.
3508 if (nr_online_nodes > 1 && cache_free_alien(cachep, objp))
3509 return;
3511 if (ac->avail < ac->limit) {
3512 STATS_INC_FREEHIT(cachep);
3513 } else {
3514 STATS_INC_FREEMISS(cachep);
3515 cache_flusharray(cachep, ac);
3518 if (sk_memalloc_socks()) {
3519 struct page *page = virt_to_head_page(objp);
3521 if (unlikely(PageSlabPfmemalloc(page))) {
3522 cache_free_pfmemalloc(cachep, page, objp);
3523 return;
3527 ac->entry[ac->avail++] = objp;
3531 * kmem_cache_alloc - Allocate an object
3532 * @cachep: The cache to allocate from.
3533 * @flags: See kmalloc().
3535 * Allocate an object from this cache. The flags are only relevant
3536 * if the cache has no available objects.
3538 void *kmem_cache_alloc(struct kmem_cache *cachep, gfp_t flags)
3540 void *ret = slab_alloc(cachep, flags, _RET_IP_);
3542 kasan_slab_alloc(cachep, ret, flags);
3543 trace_kmem_cache_alloc(_RET_IP_, ret,
3544 cachep->object_size, cachep->size, flags);
3546 return ret;
3548 EXPORT_SYMBOL(kmem_cache_alloc);
3550 static __always_inline void
3551 cache_alloc_debugcheck_after_bulk(struct kmem_cache *s, gfp_t flags,
3552 size_t size, void **p, unsigned long caller)
3554 size_t i;
3556 for (i = 0; i < size; i++)
3557 p[i] = cache_alloc_debugcheck_after(s, flags, p[i], caller);
3560 int kmem_cache_alloc_bulk(struct kmem_cache *s, gfp_t flags, size_t size,
3561 void **p)
3563 size_t i;
3565 s = slab_pre_alloc_hook(s, flags);
3566 if (!s)
3567 return 0;
3569 cache_alloc_debugcheck_before(s, flags);
3571 local_irq_disable();
3572 for (i = 0; i < size; i++) {
3573 void *objp = __do_cache_alloc(s, flags);
3575 if (unlikely(!objp))
3576 goto error;
3577 p[i] = objp;
3579 local_irq_enable();
3581 cache_alloc_debugcheck_after_bulk(s, flags, size, p, _RET_IP_);
3583 /* Clear memory outside IRQ disabled section */
3584 if (unlikely(flags & __GFP_ZERO))
3585 for (i = 0; i < size; i++)
3586 memset(p[i], 0, s->object_size);
3588 slab_post_alloc_hook(s, flags, size, p);
3589 /* FIXME: Trace call missing. Christoph would like a bulk variant */
3590 return size;
3591 error:
3592 local_irq_enable();
3593 cache_alloc_debugcheck_after_bulk(s, flags, i, p, _RET_IP_);
3594 slab_post_alloc_hook(s, flags, i, p);
3595 __kmem_cache_free_bulk(s, i, p);
3596 return 0;
3598 EXPORT_SYMBOL(kmem_cache_alloc_bulk);
3600 #ifdef CONFIG_TRACING
3601 void *
3602 kmem_cache_alloc_trace(struct kmem_cache *cachep, gfp_t flags, size_t size)
3604 void *ret;
3606 ret = slab_alloc(cachep, flags, _RET_IP_);
3608 kasan_kmalloc(cachep, ret, size, flags);
3609 trace_kmalloc(_RET_IP_, ret,
3610 size, cachep->size, flags);
3611 return ret;
3613 EXPORT_SYMBOL(kmem_cache_alloc_trace);
3614 #endif
3616 #ifdef CONFIG_NUMA
3618 * kmem_cache_alloc_node - Allocate an object on the specified node
3619 * @cachep: The cache to allocate from.
3620 * @flags: See kmalloc().
3621 * @nodeid: node number of the target node.
3623 * Identical to kmem_cache_alloc but it will allocate memory on the given
3624 * node, which can improve the performance for cpu bound structures.
3626 * Fallback to other node is possible if __GFP_THISNODE is not set.
3628 void *kmem_cache_alloc_node(struct kmem_cache *cachep, gfp_t flags, int nodeid)
3630 void *ret = slab_alloc_node(cachep, flags, nodeid, _RET_IP_);
3632 kasan_slab_alloc(cachep, ret, flags);
3633 trace_kmem_cache_alloc_node(_RET_IP_, ret,
3634 cachep->object_size, cachep->size,
3635 flags, nodeid);
3637 return ret;
3639 EXPORT_SYMBOL(kmem_cache_alloc_node);
3641 #ifdef CONFIG_TRACING
3642 void *kmem_cache_alloc_node_trace(struct kmem_cache *cachep,
3643 gfp_t flags,
3644 int nodeid,
3645 size_t size)
3647 void *ret;
3649 ret = slab_alloc_node(cachep, flags, nodeid, _RET_IP_);
3651 kasan_kmalloc(cachep, ret, size, flags);
3652 trace_kmalloc_node(_RET_IP_, ret,
3653 size, cachep->size,
3654 flags, nodeid);
3655 return ret;
3657 EXPORT_SYMBOL(kmem_cache_alloc_node_trace);
3658 #endif
3660 static __always_inline void *
3661 __do_kmalloc_node(size_t size, gfp_t flags, int node, unsigned long caller)
3663 struct kmem_cache *cachep;
3664 void *ret;
3666 cachep = kmalloc_slab(size, flags);
3667 if (unlikely(ZERO_OR_NULL_PTR(cachep)))
3668 return cachep;
3669 ret = kmem_cache_alloc_node_trace(cachep, flags, node, size);
3670 kasan_kmalloc(cachep, ret, size, flags);
3672 return ret;
3675 void *__kmalloc_node(size_t size, gfp_t flags, int node)
3677 return __do_kmalloc_node(size, flags, node, _RET_IP_);
3679 EXPORT_SYMBOL(__kmalloc_node);
3681 void *__kmalloc_node_track_caller(size_t size, gfp_t flags,
3682 int node, unsigned long caller)
3684 return __do_kmalloc_node(size, flags, node, caller);
3686 EXPORT_SYMBOL(__kmalloc_node_track_caller);
3687 #endif /* CONFIG_NUMA */
3690 * __do_kmalloc - allocate memory
3691 * @size: how many bytes of memory are required.
3692 * @flags: the type of memory to allocate (see kmalloc).
3693 * @caller: function caller for debug tracking of the caller
3695 static __always_inline void *__do_kmalloc(size_t size, gfp_t flags,
3696 unsigned long caller)
3698 struct kmem_cache *cachep;
3699 void *ret;
3701 cachep = kmalloc_slab(size, flags);
3702 if (unlikely(ZERO_OR_NULL_PTR(cachep)))
3703 return cachep;
3704 ret = slab_alloc(cachep, flags, caller);
3706 kasan_kmalloc(cachep, ret, size, flags);
3707 trace_kmalloc(caller, ret,
3708 size, cachep->size, flags);
3710 return ret;
3713 void *__kmalloc(size_t size, gfp_t flags)
3715 return __do_kmalloc(size, flags, _RET_IP_);
3717 EXPORT_SYMBOL(__kmalloc);
3719 void *__kmalloc_track_caller(size_t size, gfp_t flags, unsigned long caller)
3721 return __do_kmalloc(size, flags, caller);
3723 EXPORT_SYMBOL(__kmalloc_track_caller);
3726 * kmem_cache_free - Deallocate an object
3727 * @cachep: The cache the allocation was from.
3728 * @objp: The previously allocated object.
3730 * Free an object which was previously allocated from this
3731 * cache.
3733 void kmem_cache_free(struct kmem_cache *cachep, void *objp)
3735 unsigned long flags;
3736 cachep = cache_from_obj(cachep, objp);
3737 if (!cachep)
3738 return;
3740 local_irq_save(flags);
3741 debug_check_no_locks_freed(objp, cachep->object_size);
3742 if (!(cachep->flags & SLAB_DEBUG_OBJECTS))
3743 debug_check_no_obj_freed(objp, cachep->object_size);
3744 __cache_free(cachep, objp, _RET_IP_);
3745 local_irq_restore(flags);
3747 trace_kmem_cache_free(_RET_IP_, objp);
3749 EXPORT_SYMBOL(kmem_cache_free);
3751 void kmem_cache_free_bulk(struct kmem_cache *orig_s, size_t size, void **p)
3753 struct kmem_cache *s;
3754 size_t i;
3756 local_irq_disable();
3757 for (i = 0; i < size; i++) {
3758 void *objp = p[i];
3760 if (!orig_s) /* called via kfree_bulk */
3761 s = virt_to_cache(objp);
3762 else
3763 s = cache_from_obj(orig_s, objp);
3765 debug_check_no_locks_freed(objp, s->object_size);
3766 if (!(s->flags & SLAB_DEBUG_OBJECTS))
3767 debug_check_no_obj_freed(objp, s->object_size);
3769 __cache_free(s, objp, _RET_IP_);
3771 local_irq_enable();
3773 /* FIXME: add tracing */
3775 EXPORT_SYMBOL(kmem_cache_free_bulk);
3778 * kfree - free previously allocated memory
3779 * @objp: pointer returned by kmalloc.
3781 * If @objp is NULL, no operation is performed.
3783 * Don't free memory not originally allocated by kmalloc()
3784 * or you will run into trouble.
3786 void kfree(const void *objp)
3788 struct kmem_cache *c;
3789 unsigned long flags;
3791 trace_kfree(_RET_IP_, objp);
3793 if (unlikely(ZERO_OR_NULL_PTR(objp)))
3794 return;
3795 local_irq_save(flags);
3796 kfree_debugcheck(objp);
3797 c = virt_to_cache(objp);
3798 debug_check_no_locks_freed(objp, c->object_size);
3800 debug_check_no_obj_freed(objp, c->object_size);
3801 __cache_free(c, (void *)objp, _RET_IP_);
3802 local_irq_restore(flags);
3804 EXPORT_SYMBOL(kfree);
3807 * This initializes kmem_cache_node or resizes various caches for all nodes.
3809 static int setup_kmem_cache_nodes(struct kmem_cache *cachep, gfp_t gfp)
3811 int ret;
3812 int node;
3813 struct kmem_cache_node *n;
3815 for_each_online_node(node) {
3816 ret = setup_kmem_cache_node(cachep, node, gfp, true);
3817 if (ret)
3818 goto fail;
3822 return 0;
3824 fail:
3825 if (!cachep->list.next) {
3826 /* Cache is not active yet. Roll back what we did */
3827 node--;
3828 while (node >= 0) {
3829 n = get_node(cachep, node);
3830 if (n) {
3831 kfree(n->shared);
3832 free_alien_cache(n->alien);
3833 kfree(n);
3834 cachep->node[node] = NULL;
3836 node--;
3839 return -ENOMEM;
3842 /* Always called with the slab_mutex held */
3843 static int __do_tune_cpucache(struct kmem_cache *cachep, int limit,
3844 int batchcount, int shared, gfp_t gfp)
3846 struct array_cache __percpu *cpu_cache, *prev;
3847 int cpu;
3849 cpu_cache = alloc_kmem_cache_cpus(cachep, limit, batchcount);
3850 if (!cpu_cache)
3851 return -ENOMEM;
3853 prev = cachep->cpu_cache;
3854 cachep->cpu_cache = cpu_cache;
3856 * Without a previous cpu_cache there's no need to synchronize remote
3857 * cpus, so skip the IPIs.
3859 if (prev)
3860 kick_all_cpus_sync();
3862 check_irq_on();
3863 cachep->batchcount = batchcount;
3864 cachep->limit = limit;
3865 cachep->shared = shared;
3867 if (!prev)
3868 goto setup_node;
3870 for_each_online_cpu(cpu) {
3871 LIST_HEAD(list);
3872 int node;
3873 struct kmem_cache_node *n;
3874 struct array_cache *ac = per_cpu_ptr(prev, cpu);
3876 node = cpu_to_mem(cpu);
3877 n = get_node(cachep, node);
3878 spin_lock_irq(&n->list_lock);
3879 free_block(cachep, ac->entry, ac->avail, node, &list);
3880 spin_unlock_irq(&n->list_lock);
3881 slabs_destroy(cachep, &list);
3883 free_percpu(prev);
3885 setup_node:
3886 return setup_kmem_cache_nodes(cachep, gfp);
3889 static int do_tune_cpucache(struct kmem_cache *cachep, int limit,
3890 int batchcount, int shared, gfp_t gfp)
3892 int ret;
3893 struct kmem_cache *c;
3895 ret = __do_tune_cpucache(cachep, limit, batchcount, shared, gfp);
3897 if (slab_state < FULL)
3898 return ret;
3900 if ((ret < 0) || !is_root_cache(cachep))
3901 return ret;
3903 lockdep_assert_held(&slab_mutex);
3904 for_each_memcg_cache(c, cachep) {
3905 /* return value determined by the root cache only */
3906 __do_tune_cpucache(c, limit, batchcount, shared, gfp);
3909 return ret;
3912 /* Called with slab_mutex held always */
3913 static int enable_cpucache(struct kmem_cache *cachep, gfp_t gfp)
3915 int err;
3916 int limit = 0;
3917 int shared = 0;
3918 int batchcount = 0;
3920 err = cache_random_seq_create(cachep, cachep->num, gfp);
3921 if (err)
3922 goto end;
3924 if (!is_root_cache(cachep)) {
3925 struct kmem_cache *root = memcg_root_cache(cachep);
3926 limit = root->limit;
3927 shared = root->shared;
3928 batchcount = root->batchcount;
3931 if (limit && shared && batchcount)
3932 goto skip_setup;
3934 * The head array serves three purposes:
3935 * - create a LIFO ordering, i.e. return objects that are cache-warm
3936 * - reduce the number of spinlock operations.
3937 * - reduce the number of linked list operations on the slab and
3938 * bufctl chains: array operations are cheaper.
3939 * The numbers are guessed, we should auto-tune as described by
3940 * Bonwick.
3942 if (cachep->size > 131072)
3943 limit = 1;
3944 else if (cachep->size > PAGE_SIZE)
3945 limit = 8;
3946 else if (cachep->size > 1024)
3947 limit = 24;
3948 else if (cachep->size > 256)
3949 limit = 54;
3950 else
3951 limit = 120;
3954 * CPU bound tasks (e.g. network routing) can exhibit cpu bound
3955 * allocation behaviour: Most allocs on one cpu, most free operations
3956 * on another cpu. For these cases, an efficient object passing between
3957 * cpus is necessary. This is provided by a shared array. The array
3958 * replaces Bonwick's magazine layer.
3959 * On uniprocessor, it's functionally equivalent (but less efficient)
3960 * to a larger limit. Thus disabled by default.
3962 shared = 0;
3963 if (cachep->size <= PAGE_SIZE && num_possible_cpus() > 1)
3964 shared = 8;
3966 #if DEBUG
3968 * With debugging enabled, large batchcount lead to excessively long
3969 * periods with disabled local interrupts. Limit the batchcount
3971 if (limit > 32)
3972 limit = 32;
3973 #endif
3974 batchcount = (limit + 1) / 2;
3975 skip_setup:
3976 err = do_tune_cpucache(cachep, limit, batchcount, shared, gfp);
3977 end:
3978 if (err)
3979 pr_err("enable_cpucache failed for %s, error %d\n",
3980 cachep->name, -err);
3981 return err;
3985 * Drain an array if it contains any elements taking the node lock only if
3986 * necessary. Note that the node listlock also protects the array_cache
3987 * if drain_array() is used on the shared array.
3989 static void drain_array(struct kmem_cache *cachep, struct kmem_cache_node *n,
3990 struct array_cache *ac, int node)
3992 LIST_HEAD(list);
3994 /* ac from n->shared can be freed if we don't hold the slab_mutex. */
3995 check_mutex_acquired();
3997 if (!ac || !ac->avail)
3998 return;
4000 if (ac->touched) {
4001 ac->touched = 0;
4002 return;
4005 spin_lock_irq(&n->list_lock);
4006 drain_array_locked(cachep, ac, node, false, &list);
4007 spin_unlock_irq(&n->list_lock);
4009 slabs_destroy(cachep, &list);
4013 * cache_reap - Reclaim memory from caches.
4014 * @w: work descriptor
4016 * Called from workqueue/eventd every few seconds.
4017 * Purpose:
4018 * - clear the per-cpu caches for this CPU.
4019 * - return freeable pages to the main free memory pool.
4021 * If we cannot acquire the cache chain mutex then just give up - we'll try
4022 * again on the next iteration.
4024 static void cache_reap(struct work_struct *w)
4026 struct kmem_cache *searchp;
4027 struct kmem_cache_node *n;
4028 int node = numa_mem_id();
4029 struct delayed_work *work = to_delayed_work(w);
4031 if (!mutex_trylock(&slab_mutex))
4032 /* Give up. Setup the next iteration. */
4033 goto out;
4035 list_for_each_entry(searchp, &slab_caches, list) {
4036 check_irq_on();
4039 * We only take the node lock if absolutely necessary and we
4040 * have established with reasonable certainty that
4041 * we can do some work if the lock was obtained.
4043 n = get_node(searchp, node);
4045 reap_alien(searchp, n);
4047 drain_array(searchp, n, cpu_cache_get(searchp), node);
4050 * These are racy checks but it does not matter
4051 * if we skip one check or scan twice.
4053 if (time_after(n->next_reap, jiffies))
4054 goto next;
4056 n->next_reap = jiffies + REAPTIMEOUT_NODE;
4058 drain_array(searchp, n, n->shared, node);
4060 if (n->free_touched)
4061 n->free_touched = 0;
4062 else {
4063 int freed;
4065 freed = drain_freelist(searchp, n, (n->free_limit +
4066 5 * searchp->num - 1) / (5 * searchp->num));
4067 STATS_ADD_REAPED(searchp, freed);
4069 next:
4070 cond_resched();
4072 check_irq_on();
4073 mutex_unlock(&slab_mutex);
4074 next_reap_node();
4075 out:
4076 /* Set up the next iteration */
4077 schedule_delayed_work_on(smp_processor_id(), work,
4078 round_jiffies_relative(REAPTIMEOUT_AC));
4081 void get_slabinfo(struct kmem_cache *cachep, struct slabinfo *sinfo)
4083 unsigned long active_objs, num_objs, active_slabs;
4084 unsigned long total_slabs = 0, free_objs = 0, shared_avail = 0;
4085 unsigned long free_slabs = 0;
4086 int node;
4087 struct kmem_cache_node *n;
4089 for_each_kmem_cache_node(cachep, node, n) {
4090 check_irq_on();
4091 spin_lock_irq(&n->list_lock);
4093 total_slabs += n->total_slabs;
4094 free_slabs += n->free_slabs;
4095 free_objs += n->free_objects;
4097 if (n->shared)
4098 shared_avail += n->shared->avail;
4100 spin_unlock_irq(&n->list_lock);
4102 num_objs = total_slabs * cachep->num;
4103 active_slabs = total_slabs - free_slabs;
4104 active_objs = num_objs - free_objs;
4106 sinfo->active_objs = active_objs;
4107 sinfo->num_objs = num_objs;
4108 sinfo->active_slabs = active_slabs;
4109 sinfo->num_slabs = total_slabs;
4110 sinfo->shared_avail = shared_avail;
4111 sinfo->limit = cachep->limit;
4112 sinfo->batchcount = cachep->batchcount;
4113 sinfo->shared = cachep->shared;
4114 sinfo->objects_per_slab = cachep->num;
4115 sinfo->cache_order = cachep->gfporder;
4118 void slabinfo_show_stats(struct seq_file *m, struct kmem_cache *cachep)
4120 #if STATS
4121 { /* node stats */
4122 unsigned long high = cachep->high_mark;
4123 unsigned long allocs = cachep->num_allocations;
4124 unsigned long grown = cachep->grown;
4125 unsigned long reaped = cachep->reaped;
4126 unsigned long errors = cachep->errors;
4127 unsigned long max_freeable = cachep->max_freeable;
4128 unsigned long node_allocs = cachep->node_allocs;
4129 unsigned long node_frees = cachep->node_frees;
4130 unsigned long overflows = cachep->node_overflow;
4132 seq_printf(m, " : globalstat %7lu %6lu %5lu %4lu %4lu %4lu %4lu %4lu %4lu",
4133 allocs, high, grown,
4134 reaped, errors, max_freeable, node_allocs,
4135 node_frees, overflows);
4137 /* cpu stats */
4139 unsigned long allochit = atomic_read(&cachep->allochit);
4140 unsigned long allocmiss = atomic_read(&cachep->allocmiss);
4141 unsigned long freehit = atomic_read(&cachep->freehit);
4142 unsigned long freemiss = atomic_read(&cachep->freemiss);
4144 seq_printf(m, " : cpustat %6lu %6lu %6lu %6lu",
4145 allochit, allocmiss, freehit, freemiss);
4147 #endif
4150 #define MAX_SLABINFO_WRITE 128
4152 * slabinfo_write - Tuning for the slab allocator
4153 * @file: unused
4154 * @buffer: user buffer
4155 * @count: data length
4156 * @ppos: unused
4158 ssize_t slabinfo_write(struct file *file, const char __user *buffer,
4159 size_t count, loff_t *ppos)
4161 char kbuf[MAX_SLABINFO_WRITE + 1], *tmp;
4162 int limit, batchcount, shared, res;
4163 struct kmem_cache *cachep;
4165 if (count > MAX_SLABINFO_WRITE)
4166 return -EINVAL;
4167 if (copy_from_user(&kbuf, buffer, count))
4168 return -EFAULT;
4169 kbuf[MAX_SLABINFO_WRITE] = '\0';
4171 tmp = strchr(kbuf, ' ');
4172 if (!tmp)
4173 return -EINVAL;
4174 *tmp = '\0';
4175 tmp++;
4176 if (sscanf(tmp, " %d %d %d", &limit, &batchcount, &shared) != 3)
4177 return -EINVAL;
4179 /* Find the cache in the chain of caches. */
4180 mutex_lock(&slab_mutex);
4181 res = -EINVAL;
4182 list_for_each_entry(cachep, &slab_caches, list) {
4183 if (!strcmp(cachep->name, kbuf)) {
4184 if (limit < 1 || batchcount < 1 ||
4185 batchcount > limit || shared < 0) {
4186 res = 0;
4187 } else {
4188 res = do_tune_cpucache(cachep, limit,
4189 batchcount, shared,
4190 GFP_KERNEL);
4192 break;
4195 mutex_unlock(&slab_mutex);
4196 if (res >= 0)
4197 res = count;
4198 return res;
4201 #ifdef CONFIG_DEBUG_SLAB_LEAK
4203 static inline int add_caller(unsigned long *n, unsigned long v)
4205 unsigned long *p;
4206 int l;
4207 if (!v)
4208 return 1;
4209 l = n[1];
4210 p = n + 2;
4211 while (l) {
4212 int i = l/2;
4213 unsigned long *q = p + 2 * i;
4214 if (*q == v) {
4215 q[1]++;
4216 return 1;
4218 if (*q > v) {
4219 l = i;
4220 } else {
4221 p = q + 2;
4222 l -= i + 1;
4225 if (++n[1] == n[0])
4226 return 0;
4227 memmove(p + 2, p, n[1] * 2 * sizeof(unsigned long) - ((void *)p - (void *)n));
4228 p[0] = v;
4229 p[1] = 1;
4230 return 1;
4233 static void handle_slab(unsigned long *n, struct kmem_cache *c,
4234 struct page *page)
4236 void *p;
4237 int i, j;
4238 unsigned long v;
4240 if (n[0] == n[1])
4241 return;
4242 for (i = 0, p = page->s_mem; i < c->num; i++, p += c->size) {
4243 bool active = true;
4245 for (j = page->active; j < c->num; j++) {
4246 if (get_free_obj(page, j) == i) {
4247 active = false;
4248 break;
4252 if (!active)
4253 continue;
4256 * probe_kernel_read() is used for DEBUG_PAGEALLOC. page table
4257 * mapping is established when actual object allocation and
4258 * we could mistakenly access the unmapped object in the cpu
4259 * cache.
4261 if (probe_kernel_read(&v, dbg_userword(c, p), sizeof(v)))
4262 continue;
4264 if (!add_caller(n, v))
4265 return;
4269 static void show_symbol(struct seq_file *m, unsigned long address)
4271 #ifdef CONFIG_KALLSYMS
4272 unsigned long offset, size;
4273 char modname[MODULE_NAME_LEN], name[KSYM_NAME_LEN];
4275 if (lookup_symbol_attrs(address, &size, &offset, modname, name) == 0) {
4276 seq_printf(m, "%s+%#lx/%#lx", name, offset, size);
4277 if (modname[0])
4278 seq_printf(m, " [%s]", modname);
4279 return;
4281 #endif
4282 seq_printf(m, "%px", (void *)address);
4285 static int leaks_show(struct seq_file *m, void *p)
4287 struct kmem_cache *cachep = list_entry(p, struct kmem_cache, list);
4288 struct page *page;
4289 struct kmem_cache_node *n;
4290 const char *name;
4291 unsigned long *x = m->private;
4292 int node;
4293 int i;
4295 if (!(cachep->flags & SLAB_STORE_USER))
4296 return 0;
4297 if (!(cachep->flags & SLAB_RED_ZONE))
4298 return 0;
4301 * Set store_user_clean and start to grab stored user information
4302 * for all objects on this cache. If some alloc/free requests comes
4303 * during the processing, information would be wrong so restart
4304 * whole processing.
4306 do {
4307 set_store_user_clean(cachep);
4308 drain_cpu_caches(cachep);
4310 x[1] = 0;
4312 for_each_kmem_cache_node(cachep, node, n) {
4314 check_irq_on();
4315 spin_lock_irq(&n->list_lock);
4317 list_for_each_entry(page, &n->slabs_full, lru)
4318 handle_slab(x, cachep, page);
4319 list_for_each_entry(page, &n->slabs_partial, lru)
4320 handle_slab(x, cachep, page);
4321 spin_unlock_irq(&n->list_lock);
4323 } while (!is_store_user_clean(cachep));
4325 name = cachep->name;
4326 if (x[0] == x[1]) {
4327 /* Increase the buffer size */
4328 mutex_unlock(&slab_mutex);
4329 m->private = kzalloc(x[0] * 4 * sizeof(unsigned long), GFP_KERNEL);
4330 if (!m->private) {
4331 /* Too bad, we are really out */
4332 m->private = x;
4333 mutex_lock(&slab_mutex);
4334 return -ENOMEM;
4336 *(unsigned long *)m->private = x[0] * 2;
4337 kfree(x);
4338 mutex_lock(&slab_mutex);
4339 /* Now make sure this entry will be retried */
4340 m->count = m->size;
4341 return 0;
4343 for (i = 0; i < x[1]; i++) {
4344 seq_printf(m, "%s: %lu ", name, x[2*i+3]);
4345 show_symbol(m, x[2*i+2]);
4346 seq_putc(m, '\n');
4349 return 0;
4352 static const struct seq_operations slabstats_op = {
4353 .start = slab_start,
4354 .next = slab_next,
4355 .stop = slab_stop,
4356 .show = leaks_show,
4359 static int slabstats_open(struct inode *inode, struct file *file)
4361 unsigned long *n;
4363 n = __seq_open_private(file, &slabstats_op, PAGE_SIZE);
4364 if (!n)
4365 return -ENOMEM;
4367 *n = PAGE_SIZE / (2 * sizeof(unsigned long));
4369 return 0;
4372 static const struct file_operations proc_slabstats_operations = {
4373 .open = slabstats_open,
4374 .read = seq_read,
4375 .llseek = seq_lseek,
4376 .release = seq_release_private,
4378 #endif
4380 static int __init slab_proc_init(void)
4382 #ifdef CONFIG_DEBUG_SLAB_LEAK
4383 proc_create("slab_allocators", 0, NULL, &proc_slabstats_operations);
4384 #endif
4385 return 0;
4387 module_init(slab_proc_init);
4389 #ifdef CONFIG_HARDENED_USERCOPY
4391 * Rejects incorrectly sized objects and objects that are to be copied
4392 * to/from userspace but do not fall entirely within the containing slab
4393 * cache's usercopy region.
4395 * Returns NULL if check passes, otherwise const char * to name of cache
4396 * to indicate an error.
4398 void __check_heap_object(const void *ptr, unsigned long n, struct page *page,
4399 bool to_user)
4401 struct kmem_cache *cachep;
4402 unsigned int objnr;
4403 unsigned long offset;
4405 /* Find and validate object. */
4406 cachep = page->slab_cache;
4407 objnr = obj_to_index(cachep, page, (void *)ptr);
4408 BUG_ON(objnr >= cachep->num);
4410 /* Find offset within object. */
4411 offset = ptr - index_to_obj(cachep, page, objnr) - obj_offset(cachep);
4413 /* Allow address range falling entirely within usercopy region. */
4414 if (offset >= cachep->useroffset &&
4415 offset - cachep->useroffset <= cachep->usersize &&
4416 n <= cachep->useroffset - offset + cachep->usersize)
4417 return;
4420 * If the copy is still within the allocated object, produce
4421 * a warning instead of rejecting the copy. This is intended
4422 * to be a temporary method to find any missing usercopy
4423 * whitelists.
4425 if (usercopy_fallback &&
4426 offset <= cachep->object_size &&
4427 n <= cachep->object_size - offset) {
4428 usercopy_warn("SLAB object", cachep->name, to_user, offset, n);
4429 return;
4432 usercopy_abort("SLAB object", cachep->name, to_user, offset, n);
4434 #endif /* CONFIG_HARDENED_USERCOPY */
4437 * ksize - get the actual amount of memory allocated for a given object
4438 * @objp: Pointer to the object
4440 * kmalloc may internally round up allocations and return more memory
4441 * than requested. ksize() can be used to determine the actual amount of
4442 * memory allocated. The caller may use this additional memory, even though
4443 * a smaller amount of memory was initially specified with the kmalloc call.
4444 * The caller must guarantee that objp points to a valid object previously
4445 * allocated with either kmalloc() or kmem_cache_alloc(). The object
4446 * must not be freed during the duration of the call.
4448 size_t ksize(const void *objp)
4450 size_t size;
4452 BUG_ON(!objp);
4453 if (unlikely(objp == ZERO_SIZE_PTR))
4454 return 0;
4456 size = virt_to_cache(objp)->object_size;
4457 /* We assume that ksize callers could use the whole allocated area,
4458 * so we need to unpoison this area.
4460 kasan_unpoison_shadow(objp, size);
4462 return size;
4464 EXPORT_SYMBOL(ksize);