slab.c 118.9 KB
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/*
 * linux/mm/slab.c
 * Written by Mark Hemment, 1996/97.
 * (markhe@nextd.demon.co.uk)
 *
 * kmem_cache_destroy() + some cleanup - 1999 Andrea Arcangeli
 *
 * Major cleanup, different bufctl logic, per-cpu arrays
 *	(c) 2000 Manfred Spraul
 *
 * Cleanup, make the head arrays unconditional, preparation for NUMA
 * 	(c) 2002 Manfred Spraul
 *
 * An implementation of the Slab Allocator as described in outline in;
 *	UNIX Internals: The New Frontiers by Uresh Vahalia
 *	Pub: Prentice Hall	ISBN 0-13-101908-2
 * or with a little more detail in;
 *	The Slab Allocator: An Object-Caching Kernel Memory Allocator
 *	Jeff Bonwick (Sun Microsystems).
 *	Presented at: USENIX Summer 1994 Technical Conference
 *
 * The memory is organized in caches, one cache for each object type.
 * (e.g. inode_cache, dentry_cache, buffer_head, vm_area_struct)
 * Each cache consists out of many slabs (they are small (usually one
 * page long) and always contiguous), and each slab contains multiple
 * initialized objects.
 *
 * This means, that your constructor is used only for newly allocated
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 * slabs and you must pass objects with the same initializations to
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 * kmem_cache_free.
 *
 * Each cache can only support one memory type (GFP_DMA, GFP_HIGHMEM,
 * normal). If you need a special memory type, then must create a new
 * cache for that memory type.
 *
 * In order to reduce fragmentation, the slabs are sorted in 3 groups:
 *   full slabs with 0 free objects
 *   partial slabs
 *   empty slabs with no allocated objects
 *
 * If partial slabs exist, then new allocations come from these slabs,
 * otherwise from empty slabs or new slabs are allocated.
 *
 * kmem_cache_destroy() CAN CRASH if you try to allocate from the cache
 * during kmem_cache_destroy(). The caller must prevent concurrent allocs.
 *
 * Each cache has a short per-cpu head array, most allocs
 * and frees go into that array, and if that array overflows, then 1/2
 * of the entries in the array are given back into the global cache.
 * The head array is strictly LIFO and should improve the cache hit rates.
 * On SMP, it additionally reduces the spinlock operations.
 *
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 * The c_cpuarray may not be read with enabled local interrupts -
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 * it's changed with a smp_call_function().
 *
 * SMP synchronization:
 *  constructors and destructors are called without any locking.
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 *  Several members in struct kmem_cache and struct slab never change, they
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 *	are accessed without any locking.
 *  The per-cpu arrays are never accessed from the wrong cpu, no locking,
 *  	and local interrupts are disabled so slab code is preempt-safe.
 *  The non-constant members are protected with a per-cache irq spinlock.
 *
 * Many thanks to Mark Hemment, who wrote another per-cpu slab patch
 * in 2000 - many ideas in the current implementation are derived from
 * his patch.
 *
 * Further notes from the original documentation:
 *
 * 11 April '97.  Started multi-threading - markhe
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 *	The global cache-chain is protected by the mutex 'slab_mutex'.
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 *	The sem is only needed when accessing/extending the cache-chain, which
 *	can never happen inside an interrupt (kmem_cache_create(),
 *	kmem_cache_shrink() and kmem_cache_reap()).
 *
 *	At present, each engine can be growing a cache.  This should be blocked.
 *
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 * 15 March 2005. NUMA slab allocator.
 *	Shai Fultheim <shai@scalex86.org>.
 *	Shobhit Dayal <shobhit@calsoftinc.com>
 *	Alok N Kataria <alokk@calsoftinc.com>
 *	Christoph Lameter <christoph@lameter.com>
 *
 *	Modified the slab allocator to be node aware on NUMA systems.
 *	Each node has its own list of partial, free and full slabs.
 *	All object allocations for a node occur from node specific slab lists.
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 */

#include	<linux/slab.h>
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#include	"slab.h"
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#include	<linux/mm.h>
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#include	<linux/poison.h>
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#include	<linux/swap.h>
#include	<linux/cache.h>
#include	<linux/interrupt.h>
#include	<linux/init.h>
#include	<linux/compiler.h>
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#include	<linux/cpuset.h>
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#include	<linux/proc_fs.h>
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#include	<linux/seq_file.h>
#include	<linux/notifier.h>
#include	<linux/kallsyms.h>
#include	<linux/cpu.h>
#include	<linux/sysctl.h>
#include	<linux/module.h>
#include	<linux/rcupdate.h>
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#include	<linux/string.h>
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#include	<linux/uaccess.h>
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#include	<linux/nodemask.h>
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#include	<linux/kmemleak.h>
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#include	<linux/mempolicy.h>
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#include	<linux/mutex.h>
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#include	<linux/fault-inject.h>
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#include	<linux/rtmutex.h>
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#include	<linux/reciprocal_div.h>
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#include	<linux/debugobjects.h>
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#include	<linux/kmemcheck.h>
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#include	<linux/memory.h>
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#include	<linux/prefetch.h>
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#include	<asm/cacheflush.h>
#include	<asm/tlbflush.h>
#include	<asm/page.h>

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#include <trace/events/kmem.h>

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/*
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 * DEBUG	- 1 for kmem_cache_create() to honour; SLAB_RED_ZONE & SLAB_POISON.
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 *		  0 for faster, smaller code (especially in the critical paths).
 *
 * STATS	- 1 to collect stats for /proc/slabinfo.
 *		  0 for faster, smaller code (especially in the critical paths).
 *
 * FORCED_DEBUG	- 1 enables SLAB_RED_ZONE and SLAB_POISON (if possible)
 */

#ifdef CONFIG_DEBUG_SLAB
#define	DEBUG		1
#define	STATS		1
#define	FORCED_DEBUG	1
#else
#define	DEBUG		0
#define	STATS		0
#define	FORCED_DEBUG	0
#endif

/* Shouldn't this be in a header file somewhere? */
#define	BYTES_PER_WORD		sizeof(void *)
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#define	REDZONE_ALIGN		max(BYTES_PER_WORD, __alignof__(unsigned long long))
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#ifndef ARCH_KMALLOC_FLAGS
#define ARCH_KMALLOC_FLAGS SLAB_HWCACHE_ALIGN
#endif

/* Legal flag mask for kmem_cache_create(). */
#if DEBUG
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# define CREATE_MASK	(SLAB_RED_ZONE | \
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			 SLAB_POISON | SLAB_HWCACHE_ALIGN | \
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			 SLAB_CACHE_DMA | \
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			 SLAB_STORE_USER | \
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			 SLAB_RECLAIM_ACCOUNT | SLAB_PANIC | \
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			 SLAB_DESTROY_BY_RCU | SLAB_MEM_SPREAD | \
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			 SLAB_DEBUG_OBJECTS | SLAB_NOLEAKTRACE | SLAB_NOTRACK)
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#else
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# define CREATE_MASK	(SLAB_HWCACHE_ALIGN | \
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			 SLAB_CACHE_DMA | \
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			 SLAB_RECLAIM_ACCOUNT | SLAB_PANIC | \
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			 SLAB_DESTROY_BY_RCU | SLAB_MEM_SPREAD | \
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			 SLAB_DEBUG_OBJECTS | SLAB_NOLEAKTRACE | SLAB_NOTRACK)
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#endif

/*
 * kmem_bufctl_t:
 *
 * Bufctl's are used for linking objs within a slab
 * linked offsets.
 *
 * This implementation relies on "struct page" for locating the cache &
 * slab an object belongs to.
 * This allows the bufctl structure to be small (one int), but limits
 * the number of objects a slab (not a cache) can contain when off-slab
 * bufctls are used. The limit is the size of the largest general cache
 * that does not use off-slab slabs.
 * For 32bit archs with 4 kB pages, is this 56.
 * This is not serious, as it is only for large objects, when it is unwise
 * to have too many per slab.
 * Note: This limit can be raised by introducing a general cache whose size
 * is less than 512 (PAGE_SIZE<<3), but greater than 256.
 */

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typedef unsigned int kmem_bufctl_t;
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#define BUFCTL_END	(((kmem_bufctl_t)(~0U))-0)
#define BUFCTL_FREE	(((kmem_bufctl_t)(~0U))-1)
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#define	BUFCTL_ACTIVE	(((kmem_bufctl_t)(~0U))-2)
#define	SLAB_LIMIT	(((kmem_bufctl_t)(~0U))-3)
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/*
 * struct slab_rcu
 *
 * slab_destroy on a SLAB_DESTROY_BY_RCU cache uses this structure to
 * arrange for kmem_freepages to be called via RCU.  This is useful if
 * we need to approach a kernel structure obliquely, from its address
 * obtained without the usual locking.  We can lock the structure to
 * stabilize it and check it's still at the given address, only if we
 * can be sure that the memory has not been meanwhile reused for some
 * other kind of object (which our subsystem's lock might corrupt).
 *
 * rcu_read_lock before reading the address, then rcu_read_unlock after
 * taking the spinlock within the structure expected at that address.
 */
struct slab_rcu {
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	struct rcu_head head;
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	struct kmem_cache *cachep;
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	void *addr;
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};

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/*
 * struct slab
 *
 * Manages the objs in a slab. Placed either at the beginning of mem allocated
 * for a slab, or allocated from an general cache.
 * Slabs are chained into three list: fully used, partial, fully free slabs.
 */
struct slab {
	union {
		struct {
			struct list_head list;
			unsigned long colouroff;
			void *s_mem;		/* including colour offset */
			unsigned int inuse;	/* num of objs active in slab */
			kmem_bufctl_t free;
			unsigned short nodeid;
		};
		struct slab_rcu __slab_cover_slab_rcu;
	};
};

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/*
 * struct array_cache
 *
 * Purpose:
 * - LIFO ordering, to hand out cache-warm objects from _alloc
 * - reduce the number of linked list operations
 * - reduce spinlock operations
 *
 * The limit is stored in the per-cpu structure to reduce the data cache
 * footprint.
 *
 */
struct array_cache {
	unsigned int avail;
	unsigned int limit;
	unsigned int batchcount;
	unsigned int touched;
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	spinlock_t lock;
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	void *entry[];	/*
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			 * Must have this definition in here for the proper
			 * alignment of array_cache. Also simplifies accessing
			 * the entries.
			 */
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};

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/*
 * bootstrap: The caches do not work without cpuarrays anymore, but the
 * cpuarrays are allocated from the generic caches...
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 */
#define BOOT_CPUCACHE_ENTRIES	1
struct arraycache_init {
	struct array_cache cache;
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	void *entries[BOOT_CPUCACHE_ENTRIES];
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};

/*
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 * The slab lists for all objects.
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 */
struct kmem_list3 {
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	struct list_head slabs_partial;	/* partial list first, better asm code */
	struct list_head slabs_full;
	struct list_head slabs_free;
	unsigned long free_objects;
	unsigned int free_limit;
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	unsigned int colour_next;	/* Per-node cache coloring */
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	spinlock_t list_lock;
	struct array_cache *shared;	/* shared per node */
	struct array_cache **alien;	/* on other nodes */
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	unsigned long next_reap;	/* updated without locking */
	int free_touched;		/* updated without locking */
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};

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/*
 * Need this for bootstrapping a per node allocator.
 */
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#define NUM_INIT_LISTS (3 * MAX_NUMNODES)
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static struct kmem_list3 __initdata initkmem_list3[NUM_INIT_LISTS];
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#define	CACHE_CACHE 0
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#define	SIZE_AC MAX_NUMNODES
#define	SIZE_L3 (2 * MAX_NUMNODES)
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static int drain_freelist(struct kmem_cache *cache,
			struct kmem_list3 *l3, int tofree);
static void free_block(struct kmem_cache *cachep, void **objpp, int len,
			int node);
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static int enable_cpucache(struct kmem_cache *cachep, gfp_t gfp);
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static void cache_reap(struct work_struct *unused);
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/*
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 * This function must be completely optimized away if a constant is passed to
 * it.  Mostly the same as what is in linux/slab.h except it returns an index.
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 */
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static __always_inline int index_of(const size_t size)
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{
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	extern void __bad_size(void);

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	if (__builtin_constant_p(size)) {
		int i = 0;

#define CACHE(x) \
	if (size <=x) \
		return i; \
	else \
		i++;
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#include <linux/kmalloc_sizes.h>
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#undef CACHE
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		__bad_size();
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	} else
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		__bad_size();
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	return 0;
}

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static int slab_early_init = 1;

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#define INDEX_AC index_of(sizeof(struct arraycache_init))
#define INDEX_L3 index_of(sizeof(struct kmem_list3))
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static void kmem_list3_init(struct kmem_list3 *parent)
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{
	INIT_LIST_HEAD(&parent->slabs_full);
	INIT_LIST_HEAD(&parent->slabs_partial);
	INIT_LIST_HEAD(&parent->slabs_free);
	parent->shared = NULL;
	parent->alien = NULL;
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	parent->colour_next = 0;
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	spin_lock_init(&parent->list_lock);
	parent->free_objects = 0;
	parent->free_touched = 0;
}

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#define MAKE_LIST(cachep, listp, slab, nodeid)				\
	do {								\
		INIT_LIST_HEAD(listp);					\
		list_splice(&(cachep->nodelists[nodeid]->slab), listp);	\
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	} while (0)

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#define	MAKE_ALL_LISTS(cachep, ptr, nodeid)				\
	do {								\
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	MAKE_LIST((cachep), (&(ptr)->slabs_full), slabs_full, nodeid);	\
	MAKE_LIST((cachep), (&(ptr)->slabs_partial), slabs_partial, nodeid); \
	MAKE_LIST((cachep), (&(ptr)->slabs_free), slabs_free, nodeid);	\
	} while (0)
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#define CFLGS_OFF_SLAB		(0x80000000UL)
#define	OFF_SLAB(x)	((x)->flags & CFLGS_OFF_SLAB)

#define BATCHREFILL_LIMIT	16
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/*
 * Optimization question: fewer reaps means less probability for unnessary
 * cpucache drain/refill cycles.
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 *
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 * OTOH the cpuarrays can contain lots of objects,
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 * which could lock up otherwise freeable slabs.
 */
#define REAPTIMEOUT_CPUC	(2*HZ)
#define REAPTIMEOUT_LIST3	(4*HZ)

#if STATS
#define	STATS_INC_ACTIVE(x)	((x)->num_active++)
#define	STATS_DEC_ACTIVE(x)	((x)->num_active--)
#define	STATS_INC_ALLOCED(x)	((x)->num_allocations++)
#define	STATS_INC_GROWN(x)	((x)->grown++)
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#define	STATS_ADD_REAPED(x,y)	((x)->reaped += (y))
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#define	STATS_SET_HIGH(x)						\
	do {								\
		if ((x)->num_active > (x)->high_mark)			\
			(x)->high_mark = (x)->num_active;		\
	} while (0)
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#define	STATS_INC_ERR(x)	((x)->errors++)
#define	STATS_INC_NODEALLOCS(x)	((x)->node_allocs++)
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#define	STATS_INC_NODEFREES(x)	((x)->node_frees++)
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#define STATS_INC_ACOVERFLOW(x)   ((x)->node_overflow++)
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#define	STATS_SET_FREEABLE(x, i)					\
	do {								\
		if ((x)->max_freeable < i)				\
			(x)->max_freeable = i;				\
	} while (0)
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#define STATS_INC_ALLOCHIT(x)	atomic_inc(&(x)->allochit)
#define STATS_INC_ALLOCMISS(x)	atomic_inc(&(x)->allocmiss)
#define STATS_INC_FREEHIT(x)	atomic_inc(&(x)->freehit)
#define STATS_INC_FREEMISS(x)	atomic_inc(&(x)->freemiss)
#else
#define	STATS_INC_ACTIVE(x)	do { } while (0)
#define	STATS_DEC_ACTIVE(x)	do { } while (0)
#define	STATS_INC_ALLOCED(x)	do { } while (0)
#define	STATS_INC_GROWN(x)	do { } while (0)
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#define	STATS_ADD_REAPED(x,y)	do { (void)(y); } while (0)
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#define	STATS_SET_HIGH(x)	do { } while (0)
#define	STATS_INC_ERR(x)	do { } while (0)
#define	STATS_INC_NODEALLOCS(x)	do { } while (0)
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#define	STATS_INC_NODEFREES(x)	do { } while (0)
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#define STATS_INC_ACOVERFLOW(x)   do { } while (0)
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#define	STATS_SET_FREEABLE(x, i) do { } while (0)
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#define STATS_INC_ALLOCHIT(x)	do { } while (0)
#define STATS_INC_ALLOCMISS(x)	do { } while (0)
#define STATS_INC_FREEHIT(x)	do { } while (0)
#define STATS_INC_FREEMISS(x)	do { } while (0)
#endif

#if DEBUG

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/*
 * memory layout of objects:
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 * 0		: objp
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 * 0 .. cachep->obj_offset - BYTES_PER_WORD - 1: padding. This ensures that
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 * 		the end of an object is aligned with the end of the real
 * 		allocation. Catches writes behind the end of the allocation.
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 * cachep->obj_offset - BYTES_PER_WORD .. cachep->obj_offset - 1:
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 * 		redzone word.
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 * cachep->obj_offset: The real object.
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 * cachep->size - 2* BYTES_PER_WORD: redzone word [BYTES_PER_WORD long]
 * cachep->size - 1* BYTES_PER_WORD: last caller address
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 *					[BYTES_PER_WORD long]
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 */
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static int obj_offset(struct kmem_cache *cachep)
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{
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	return cachep->obj_offset;
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}

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static unsigned long long *dbg_redzone1(struct kmem_cache *cachep, void *objp)
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{
	BUG_ON(!(cachep->flags & SLAB_RED_ZONE));
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	return (unsigned long long*) (objp + obj_offset(cachep) -
				      sizeof(unsigned long long));
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}

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static unsigned long long *dbg_redzone2(struct kmem_cache *cachep, void *objp)
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{
	BUG_ON(!(cachep->flags & SLAB_RED_ZONE));
	if (cachep->flags & SLAB_STORE_USER)
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		return (unsigned long long *)(objp + cachep->size -
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					      sizeof(unsigned long long) -
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					      REDZONE_ALIGN);
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	return (unsigned long long *) (objp + cachep->size -
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				       sizeof(unsigned long long));
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}

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static void **dbg_userword(struct kmem_cache *cachep, void *objp)
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{
	BUG_ON(!(cachep->flags & SLAB_STORE_USER));
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	return (void **)(objp + cachep->size - BYTES_PER_WORD);
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}

#else

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#define obj_offset(x)			0
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#define dbg_redzone1(cachep, objp)	({BUG(); (unsigned long long *)NULL;})
#define dbg_redzone2(cachep, objp)	({BUG(); (unsigned long long *)NULL;})
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#define dbg_userword(cachep, objp)	({BUG(); (void **)NULL;})

#endif

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#ifdef CONFIG_TRACING
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size_t slab_buffer_size(struct kmem_cache *cachep)
{
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	return cachep->size;
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}
EXPORT_SYMBOL(slab_buffer_size);
#endif

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/*
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 * Do not go above this order unless 0 objects fit into the slab or
 * overridden on the command line.
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 */
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#define	SLAB_MAX_ORDER_HI	1
#define	SLAB_MAX_ORDER_LO	0
static int slab_max_order = SLAB_MAX_ORDER_LO;
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static bool slab_max_order_set __initdata;
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static inline struct kmem_cache *page_get_cache(struct page *page)
{
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	page = compound_head(page);
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	BUG_ON(!PageSlab(page));
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	return page->slab_cache;
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}

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static inline struct kmem_cache *virt_to_cache(const void *obj)
{
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	struct page *page = virt_to_head_page(obj);
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	return page->slab_cache;
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}

static inline struct slab *virt_to_slab(const void *obj)
{
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	struct page *page = virt_to_head_page(obj);
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	VM_BUG_ON(!PageSlab(page));
	return page->slab_page;
506 507
}

508 509 510
static inline void *index_to_obj(struct kmem_cache *cache, struct slab *slab,
				 unsigned int idx)
{
511
	return slab->s_mem + cache->size * idx;
512 513
}

514
/*
515 516 517
 * We want to avoid an expensive divide : (offset / cache->size)
 *   Using the fact that size is a constant for a particular cache,
 *   we can replace (offset / cache->size) by
518 519 520 521
 *   reciprocal_divide(offset, cache->reciprocal_buffer_size)
 */
static inline unsigned int obj_to_index(const struct kmem_cache *cache,
					const struct slab *slab, void *obj)
522
{
523 524
	u32 offset = (obj - slab->s_mem);
	return reciprocal_divide(offset, cache->reciprocal_buffer_size);
525 526
}

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/*
 * These are the default caches for kmalloc. Custom caches can have other sizes.
 */
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struct cache_sizes malloc_sizes[] = {
#define CACHE(x) { .cs_size = (x) },
#include <linux/kmalloc_sizes.h>
	CACHE(ULONG_MAX)
#undef CACHE
};
EXPORT_SYMBOL(malloc_sizes);

/* Must match cache_sizes above. Out of line to keep cache footprint low. */
struct cache_names {
	char *name;
	char *name_dma;
};

static struct cache_names __initdata cache_names[] = {
#define CACHE(x) { .name = "size-" #x, .name_dma = "size-" #x "(DMA)" },
#include <linux/kmalloc_sizes.h>
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	{NULL,}
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#undef CACHE
};

static struct arraycache_init initarray_cache __initdata =
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    { {0, BOOT_CPUCACHE_ENTRIES, 1, 0} };
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static struct arraycache_init initarray_generic =
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    { {0, BOOT_CPUCACHE_ENTRIES, 1, 0} };
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/* internal cache of cache description objs */
557
static struct kmem_list3 *cache_cache_nodelists[MAX_NUMNODES];
558
static struct kmem_cache cache_cache = {
559
	.nodelists = cache_cache_nodelists,
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	.batchcount = 1,
	.limit = BOOT_CPUCACHE_ENTRIES,
	.shared = 1,
563
	.size = sizeof(struct kmem_cache),
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	.name = "kmem_cache",
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};

567 568
#define BAD_ALIEN_MAGIC 0x01020304ul

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#ifdef CONFIG_LOCKDEP

/*
 * Slab sometimes uses the kmalloc slabs to store the slab headers
 * for other slabs "off slab".
 * The locking for this is tricky in that it nests within the locks
 * of all other slabs in a few places; to deal with this special
 * locking we put on-slab caches into a separate lock-class.
577 578 579 580
 *
 * We set lock class for alien array caches which are up during init.
 * The lock annotation will be lost if all cpus of a node goes down and
 * then comes back up during hotplug
581
 */
582 583 584
static struct lock_class_key on_slab_l3_key;
static struct lock_class_key on_slab_alc_key;

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static struct lock_class_key debugobj_l3_key;
static struct lock_class_key debugobj_alc_key;

static void slab_set_lock_classes(struct kmem_cache *cachep,
		struct lock_class_key *l3_key, struct lock_class_key *alc_key,
		int q)
{
	struct array_cache **alc;
	struct kmem_list3 *l3;
	int r;

	l3 = cachep->nodelists[q];
	if (!l3)
		return;

	lockdep_set_class(&l3->list_lock, l3_key);
	alc = l3->alien;
	/*
	 * FIXME: This check for BAD_ALIEN_MAGIC
	 * should go away when common slab code is taught to
	 * work even without alien caches.
	 * Currently, non NUMA code returns BAD_ALIEN_MAGIC
	 * for alloc_alien_cache,
	 */
	if (!alc || (unsigned long)alc == BAD_ALIEN_MAGIC)
		return;
	for_each_node(r) {
		if (alc[r])
			lockdep_set_class(&alc[r]->lock, alc_key);
	}
}

static void slab_set_debugobj_lock_classes_node(struct kmem_cache *cachep, int node)
{
	slab_set_lock_classes(cachep, &debugobj_l3_key, &debugobj_alc_key, node);
}

static void slab_set_debugobj_lock_classes(struct kmem_cache *cachep)
{
	int node;

	for_each_online_node(node)
		slab_set_debugobj_lock_classes_node(cachep, node);
}

630
static void init_node_lock_keys(int q)
631
{
632 633
	struct cache_sizes *s = malloc_sizes;

634
	if (slab_state < UP)
635 636 637 638 639 640 641
		return;

	for (s = malloc_sizes; s->cs_size != ULONG_MAX; s++) {
		struct kmem_list3 *l3;

		l3 = s->cs_cachep->nodelists[q];
		if (!l3 || OFF_SLAB(s->cs_cachep))
642
			continue;
643 644 645

		slab_set_lock_classes(s->cs_cachep, &on_slab_l3_key,
				&on_slab_alc_key, q);
646 647
	}
}
648 649 650 651 652 653 654 655

static inline void init_lock_keys(void)
{
	int node;

	for_each_node(node)
		init_node_lock_keys(node);
}
656
#else
657 658 659 660
static void init_node_lock_keys(int q)
{
}

661
static inline void init_lock_keys(void)
662 663
{
}
664 665 666 667 668 669 670 671

static void slab_set_debugobj_lock_classes_node(struct kmem_cache *cachep, int node)
{
}

static void slab_set_debugobj_lock_classes(struct kmem_cache *cachep)
{
}
672 673
#endif

674
static DEFINE_PER_CPU(struct delayed_work, slab_reap_work);
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676
static inline struct array_cache *cpu_cache_get(struct kmem_cache *cachep)
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{
	return cachep->array[smp_processor_id()];
}

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static inline struct kmem_cache *__find_general_cachep(size_t size,
							gfp_t gfpflags)
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{
	struct cache_sizes *csizep = malloc_sizes;

#if DEBUG
	/* This happens if someone tries to call
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	 * kmem_cache_create(), or __kmalloc(), before
	 * the generic caches are initialized.
	 */
691
	BUG_ON(malloc_sizes[INDEX_AC].cs_cachep == NULL);
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#endif
693 694 695
	if (!size)
		return ZERO_SIZE_PTR;

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	while (size > csizep->cs_size)
		csizep++;

	/*
700
	 * Really subtle: The last entry with cs->cs_size==ULONG_MAX
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	 * has cs_{dma,}cachep==NULL. Thus no special case
	 * for large kmalloc calls required.
	 */
704
#ifdef CONFIG_ZONE_DMA
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	if (unlikely(gfpflags & GFP_DMA))
		return csizep->cs_dmacachep;
707
#endif
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	return csizep->cs_cachep;
}

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static struct kmem_cache *kmem_find_general_cachep(size_t size, gfp_t gfpflags)
712 713 714 715
{
	return __find_general_cachep(size, gfpflags);
}

716
static size_t slab_mgmt_size(size_t nr_objs, size_t align)
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{
718 719
	return ALIGN(sizeof(struct slab)+nr_objs*sizeof(kmem_bufctl_t), align);
}
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/*
 * Calculate the number of objects and left-over bytes for a given buffer size.
 */
724 725 726 727 728 729 730
static void cache_estimate(unsigned long gfporder, size_t buffer_size,
			   size_t align, int flags, size_t *left_over,
			   unsigned int *num)
{
	int nr_objs;
	size_t mgmt_size;
	size_t slab_size = PAGE_SIZE << gfporder;
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732 733 734 735 736 737 738 739 740 741 742 743 744 745 746 747 748 749 750 751 752 753 754 755 756 757 758 759 760 761 762 763 764 765 766 767 768 769 770 771 772 773 774 775 776 777 778 779
	/*
	 * The slab management structure can be either off the slab or
	 * on it. For the latter case, the memory allocated for a
	 * slab is used for:
	 *
	 * - The struct slab
	 * - One kmem_bufctl_t for each object
	 * - Padding to respect alignment of @align
	 * - @buffer_size bytes for each object
	 *
	 * If the slab management structure is off the slab, then the
	 * alignment will already be calculated into the size. Because
	 * the slabs are all pages aligned, the objects will be at the
	 * correct alignment when allocated.
	 */
	if (flags & CFLGS_OFF_SLAB) {
		mgmt_size = 0;
		nr_objs = slab_size / buffer_size;

		if (nr_objs > SLAB_LIMIT)
			nr_objs = SLAB_LIMIT;
	} else {
		/*
		 * Ignore padding for the initial guess. The padding
		 * is at most @align-1 bytes, and @buffer_size is at
		 * least @align. In the worst case, this result will
		 * be one greater than the number of objects that fit
		 * into the memory allocation when taking the padding
		 * into account.
		 */
		nr_objs = (slab_size - sizeof(struct slab)) /
			  (buffer_size + sizeof(kmem_bufctl_t));

		/*
		 * This calculated number will be either the right
		 * amount, or one greater than what we want.
		 */
		if (slab_mgmt_size(nr_objs, align) + nr_objs*buffer_size
		       > slab_size)
			nr_objs--;

		if (nr_objs > SLAB_LIMIT)
			nr_objs = SLAB_LIMIT;

		mgmt_size = slab_mgmt_size(nr_objs, align);
	}
	*num = nr_objs;
	*left_over = slab_size - nr_objs*buffer_size - mgmt_size;
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}

782
#define slab_error(cachep, msg) __slab_error(__func__, cachep, msg)
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static void __slab_error(const char *function, struct kmem_cache *cachep,
			char *msg)
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{
	printk(KERN_ERR "slab error in %s(): cache `%s': %s\n",
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	       function, cachep->name, msg);
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	dump_stack();
}

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/*
 * By default on NUMA we use alien caches to stage the freeing of
 * objects allocated from other nodes. This causes massive memory
 * inefficiencies when using fake NUMA setup to split memory into a
 * large number of small nodes, so it can be disabled on the command
 * line
  */

static int use_alien_caches __read_mostly = 1;
static int __init noaliencache_setup(char *s)
{
	use_alien_caches = 0;
	return 1;
}
__setup("noaliencache", noaliencache_setup);

808 809 810 811 812 813 814 815 816 817 818
static int __init slab_max_order_setup(char *str)
{
	get_option(&str, &slab_max_order);
	slab_max_order = slab_max_order < 0 ? 0 :
				min(slab_max_order, MAX_ORDER - 1);
	slab_max_order_set = true;

	return 1;
}
__setup("slab_max_order=", slab_max_order_setup);

819 820 821 822 823 824 825
#ifdef CONFIG_NUMA
/*
 * Special reaping functions for NUMA systems called from cache_reap().
 * These take care of doing round robin flushing of alien caches (containing
 * objects freed on different nodes from which they were allocated) and the
 * flushing of remote pcps by calling drain_node_pages.
 */
826
static DEFINE_PER_CPU(unsigned long, slab_reap_node);
827 828 829 830 831

static void init_reap_node(int cpu)
{
	int node;

832
	node = next_node(cpu_to_mem(cpu), node_online_map);
833
	if (node == MAX_NUMNODES)
834
		node = first_node(node_online_map);
835

836
	per_cpu(slab_reap_node, cpu) = node;
837 838 839 840
}

static void next_reap_node(void)
{
841
	int node = __this_cpu_read(slab_reap_node);
842 843 844 845

	node = next_node(node, node_online_map);
	if (unlikely(node >= MAX_NUMNODES))
		node = first_node(node_online_map);
846
	__this_cpu_write(slab_reap_node, node);
847 848 849 850 851 852 853
}

#else
#define init_reap_node(cpu) do { } while (0)
#define next_reap_node(void) do { } while (0)
#endif

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/*
 * Initiate the reap timer running on the target CPU.  We run at around 1 to 2Hz
 * via the workqueue/eventd.
 * Add the CPU number into the expiration time to minimize the possibility of
 * the CPUs getting into lockstep and contending for the global cache chain
 * lock.
 */
861
static void __cpuinit start_cpu_timer(int cpu)
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{
863
	struct delayed_work *reap_work = &per_cpu(slab_reap_work, cpu);
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	/*
	 * When this gets called from do_initcalls via cpucache_init(),
	 * init_workqueues() has already run, so keventd will be setup
	 * at that time.
	 */
870
	if (keventd_up() && reap_work->work.func == NULL) {
871
		init_reap_node(cpu);
872
		INIT_DELAYED_WORK_DEFERRABLE(reap_work, cache_reap);
873 874
		schedule_delayed_work_on(cpu, reap_work,
					__round_jiffies_relative(HZ, cpu));
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	}
}

878
static struct array_cache *alloc_arraycache(int node, int entries,
879
					    int batchcount, gfp_t gfp)
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{
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	int memsize = sizeof(void *) * entries + sizeof(struct array_cache);
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	struct array_cache *nc = NULL;

884
	nc = kmalloc_node(memsize, gfp, node);
885 886
	/*
	 * The array_cache structures contain pointers to free object.
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	 * However, when such objects are allocated or transferred to another
888 889 890 891 892
	 * cache the pointers are not cleared and they could be counted as
	 * valid references during a kmemleak scan. Therefore, kmemleak must
	 * not scan such objects.
	 */
	kmemleak_no_scan(nc);
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	if (nc) {
		nc->avail = 0;
		nc->limit = entries;
		nc->batchcount = batchcount;
		nc->touched = 0;
898
		spin_lock_init(&nc->lock);
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	}
	return nc;
}

903 904 905 906 907 908 909 910 911 912
/*
 * Transfer objects in one arraycache to another.
 * Locking must be handled by the caller.
 *
 * Return the number of entries transferred.
 */
static int transfer_objects(struct array_cache *to,
		struct array_cache *from, unsigned int max)
{
	/* Figure out how many entries to transfer */
913
	int nr = min3(from->avail, max, to->limit - to->avail);
914 915 916 917 918 919 920 921 922 923 924 925

	if (!nr)
		return 0;

	memcpy(to->entry + to->avail, from->entry + from->avail -nr,
			sizeof(void *) *nr);

	from->avail -= nr;
	to->avail += nr;
	return nr;
}

926 927 928 929 930
#ifndef CONFIG_NUMA

#define drain_alien_cache(cachep, alien) do { } while (0)
#define reap_alien(cachep, l3) do { } while (0)

931
static inline struct array_cache **alloc_alien_cache(int node, int limit, gfp_t gfp)
932 933 934 935 936 937 938 939 940 941 942 943 944 945 946 947 948 949 950
{
	return (struct array_cache **)BAD_ALIEN_MAGIC;
}

static inline void free_alien_cache(struct array_cache **ac_ptr)
{
}

static inline int cache_free_alien(struct kmem_cache *cachep, void *objp)
{
	return 0;
}

static inline void *alternate_node_alloc(struct kmem_cache *cachep,
		gfp_t flags)
{
	return NULL;
}

951
static inline void *____cache_alloc_node(struct kmem_cache *cachep,
952 953 954 955 956 957 958
		 gfp_t flags, int nodeid)
{
	return NULL;
}

#else	/* CONFIG_NUMA */

959
static void *____cache_alloc_node(struct kmem_cache *, gfp_t, int);
960
static void *alternate_node_alloc(struct kmem_cache *, gfp_t);
961

962
static struct array_cache **alloc_alien_cache(int node, int limit, gfp_t gfp)
963 964
{
	struct array_cache **ac_ptr;
965
	int memsize = sizeof(void *) * nr_node_ids;
966 967 968 969
	int i;

	if (limit > 1)
		limit = 12;
970
	ac_ptr = kzalloc_node(memsize, gfp, node);
971 972
	if (ac_ptr) {
		for_each_node(i) {
973
			if (i == node || !node_online(i))
974
				continue;
975
			ac_ptr[i] = alloc_arraycache(node, limit, 0xbaadf00d, gfp);
976
			if (!ac_ptr[i]) {
977
				for (i--; i >= 0; i--)
978 979 980 981 982 983 984 985 986
					kfree(ac_ptr[i]);
				kfree(ac_ptr);
				return NULL;
			}
		}
	}
	return ac_ptr;
}

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static void free_alien_cache(struct array_cache **ac_ptr)
988 989 990 991 992 993
{
	int i;

	if (!ac_ptr)
		return;
	for_each_node(i)
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	    kfree(ac_ptr[i]);
995 996 997
	kfree(ac_ptr);
}

998
static void __drain_alien_cache(struct kmem_cache *cachep,
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				struct array_cache *ac, int node)
1000 1001 1002 1003 1004
{
	struct kmem_list3 *rl3 = cachep->nodelists[node];

	if (ac->avail) {
		spin_lock(&rl3->list_lock);
1005 1006 1007 1008 1009
		/*
		 * Stuff objects into the remote nodes shared array first.
		 * That way we could avoid the overhead of putting the objects
		 * into the free lists and getting them back later.
		 */
1010 1011
		if (rl3->shared)
			transfer_objects(rl3->shared, ac, ac->limit);
1012

1013
		free_block(cachep, ac->entry, ac->avail, node);
1014 1015 1016 1017 1018
		ac->avail = 0;
		spin_unlock(&rl3->list_lock);
	}
}

1019 1020 1021 1022 1023
/*
 * Called from cache_reap() to regularly drain alien caches round robin.
 */
static void reap_alien(struct kmem_cache *cachep, struct kmem_list3 *l3)
{
1024
	int node = __this_cpu_read(slab_reap_node);
1025 1026 1027

	if (l3->alien) {
		struct array_cache *ac = l3->alien[node];
1028 1029

		if (ac && ac->avail && spin_trylock_irq(&ac->lock)) {
1030 1031 1032 1033 1034 1035
			__drain_alien_cache(cachep, ac, node);
			spin_unlock_irq(&ac->lock);
		}
	}
}

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static void drain_alien_cache(struct kmem_cache *cachep,
				struct array_cache **alien)
1038
{
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1039
	int i = 0;
1040 1041 1042 1043
	struct array_cache *ac;
	unsigned long flags;

	for_each_online_node(i) {
1044
		ac = alien[i];
1045 1046 1047 1048 1049 1050 1051
		if (ac) {
			spin_lock_irqsave(&ac->lock, flags);
			__drain_alien_cache(cachep, ac, i);
			spin_unlock_irqrestore(&ac->lock, flags);
		}
	}
}
1052

1053
static inline int cache_free_alien(struct kmem_cache *cachep, void *objp)
1054 1055 1056 1057 1058
{
	struct slab *slabp = virt_to_slab(objp);
	int nodeid = slabp->nodeid;
	struct kmem_list3 *l3;
	struct array_cache *alien = NULL;
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	int node;

1061
	node = numa_mem_id();
1062 1063 1064 1065 1066

	/*
	 * Make sure we are not freeing a object from another node to the array
	 * cache on this cpu.
	 */
1067
	if (likely(slabp->nodeid == node))
1068 1069
		return 0;

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	l3 = cachep->nodelists[node];
1071 1072 1073
	STATS_INC_NODEFREES(cachep);
	if (l3->alien && l3->alien[nodeid]) {
		alien = l3->alien[nodeid];
1074
		spin_lock(&alien->lock);
1075 1076 1077 1078 1079 1080 1081 1082 1083 1084 1085 1086 1087
		if (unlikely(alien->avail == alien->limit)) {
			STATS_INC_ACOVERFLOW(cachep);
			__drain_alien_cache(cachep, alien, nodeid);
		}
		alien->entry[alien->avail++] = objp;
		spin_unlock(&alien->lock);
	} else {
		spin_lock(&(cachep->nodelists[nodeid])->list_lock);
		free_block(cachep, &objp, 1, nodeid);
		spin_unlock(&(cachep->nodelists[nodeid])->list_lock);
	}
	return 1;
}
1088 1089
#endif

1090 1091 1092 1093 1094 1095 1096
/*
 * Allocates and initializes nodelists for a node on each slab cache, used for
 * either memory or cpu hotplug.  If memory is being hot-added, the kmem_list3
 * will be allocated off-node since memory is not yet online for the new node.
 * When hotplugging memory or a cpu, existing nodelists are not replaced if
 * already in use.
 *
1097
 * Must hold slab_mutex.
1098 1099 1100 1101 1102 1103 1104
 */
static int init_cache_nodelists_node(int node)
{
	struct kmem_cache *cachep;
	struct kmem_list3 *l3;
	const int memsize = sizeof(struct kmem_list3);

1105
	list_for_each_entry(cachep, &slab_caches, list) {
1106 1107 1108 1109 1110 1111 1112 1113 1114 1115 1116 1117 1118 1119 1120
		/*
		 * Set up the size64 kmemlist for cpu before we can
		 * begin anything. Make sure some other cpu on this
		 * node has not already allocated this
		 */
		if (!cachep->nodelists[node]) {
			l3 = kmalloc_node(memsize, GFP_KERNEL, node);
			if (!l3)
				return -ENOMEM;
			kmem_list3_init(l3);
			l3->next_reap = jiffies + REAPTIMEOUT_LIST3 +
			    ((unsigned long)cachep) % REAPTIMEOUT_LIST3;

			/*
			 * The l3s don't come and go as CPUs come and
1121
			 * go.  slab_mutex is sufficient
1122 1123 1124 1125 1126 1127 1128 1129 1130 1131 1132 1133 1134 1135
			 * protection here.
			 */
			cachep->nodelists[node] = l3;
		}

		spin_lock_irq(&cachep->nodelists[node]->list_lock);
		cachep->nodelists[node]->free_limit =
			(1 + nr_cpus_node(node)) *
			cachep->batchcount + cachep->num;
		spin_unlock_irq(&cachep->nodelists[node]->list_lock);
	}
	return 0;
}

1136 1137 1138 1139
static void __cpuinit cpuup_canceled(long cpu)
{
	struct kmem_cache *cachep;
	struct kmem_list3 *l3 = NULL;
1140
	int node = cpu_to_mem(cpu);
1141
	const struct cpumask *mask = cpumask_of_node(node);
1142

1143
	list_for_each_entry(cachep, &slab_caches, list) {
1144 1145 1146 1147 1148 1149 1150 1151 1152 1153 1154 1155 1156 1157 1158 1159 1160 1161 1162
		struct array_cache *nc;
		struct array_cache *shared;
		struct array_cache **alien;

		/* cpu is dead; no one can alloc from it. */
		nc = cachep->array[cpu];
		cachep->array[cpu] = NULL;
		l3 = cachep->nodelists[node];

		if (!l3)
			goto free_array_cache;

		spin_lock_irq(&l3->list_lock);

		/* Free limit for this kmem_list3 */
		l3->free_limit -= cachep->batchcount;
		if (nc)
			free_block(cachep, nc->entry, nc->avail, node);

1163
		if (!cpumask_empty(mask)) {
1164 1165 1166 1167 1168 1169 1170 1171 1172 1173 1174 1175 1176 1177 1178 1179 1180 1181 1182 1183 1184 1185 1186 1187 1188 1189 1190 1191 1192
			spin_unlock_irq(&l3->list_lock);
			goto free_array_cache;
		}

		shared = l3->shared;
		if (shared) {
			free_block(cachep, shared->entry,
				   shared->avail, node);
			l3->shared = NULL;
		}

		alien = l3->alien;
		l3->alien = NULL;

		spin_unlock_irq(&l3->list_lock);

		kfree(shared);
		if (alien) {
			drain_alien_cache(cachep, alien);
			free_alien_cache(alien);
		}
free_array_cache:
		kfree(nc);
	}
	/*
	 * In the previous loop, all the objects were freed to
	 * the respective cache's slabs,  now we can go ahead and
	 * shrink each nodelist to its limit.
	 */
1193
	list_for_each_entry(cachep, &slab_caches, list) {
1194 1195 1196 1197 1198 1199 1200 1201
		l3 = cachep->nodelists[node];
		if (!l3)
			continue;
		drain_freelist(cachep, l3, l3->free_objects);
	}
}

static int __cpuinit cpuup_prepare(long cpu)
L
Linus Torvalds 已提交
1202
{
1203
	struct kmem_cache *cachep;
1204
	struct kmem_list3 *l3 = NULL;
1205
	int node = cpu_to_mem(cpu);
1206
	int err;
L
Linus Torvalds 已提交
1207

1208 1209 1210 1211 1212 1213
	/*
	 * We need to do this right in the beginning since
	 * alloc_arraycache's are going to use this list.
	 * kmalloc_node allows us to add the slab to the right
	 * kmem_list3 and not this cpu's kmem_list3
	 */
1214 1215 1216
	err = init_cache_nodelists_node(node);
	if (err < 0)
		goto bad;
1217 1218 1219 1220 1221

	/*
	 * Now we can go ahead with allocating the shared arrays and
	 * array caches
	 */
1222
	list_for_each_entry(cachep, &slab_caches, list) {
1223 1224 1225 1226 1227
		struct array_cache *nc;
		struct array_cache *shared = NULL;
		struct array_cache **alien = NULL;

		nc = alloc_arraycache(node, cachep->limit,
1228
					cachep->batchcount, GFP_KERNEL);
1229 1230 1231 1232 1233
		if (!nc)
			goto bad;
		if (cachep->shared) {
			shared = alloc_arraycache(node,
				cachep->shared * cachep->batchcount,
1234
				0xbaadf00d, GFP_KERNEL);
1235 1236
			if (!shared) {
				kfree(nc);
L
Linus Torvalds 已提交
1237
				goto bad;
1238
			}
1239 1240
		}
		if (use_alien_caches) {
1241
			alien = alloc_alien_cache(node, cachep->limit, GFP_KERNEL);
1242 1243 1244
			if (!alien) {
				kfree(shared);
				kfree(nc);
1245
				goto bad;
1246
			}
1247 1248 1249 1250 1251 1252 1253 1254 1255 1256 1257 1258 1259 1260
		}
		cachep->array[cpu] = nc;
		l3 = cachep->nodelists[node];
		BUG_ON(!l3);

		spin_lock_irq(&l3->list_lock);
		if (!l3->shared) {
			/*
			 * We are serialised from CPU_DEAD or
			 * CPU_UP_CANCELLED by the cpucontrol lock
			 */
			l3->shared = shared;
			shared = NULL;
		}
1261
#ifdef CONFIG_NUMA
1262 1263 1264
		if (!l3->alien) {
			l3->alien = alien;
			alien = NULL;
L
Linus Torvalds 已提交
1265
		}
1266 1267 1268 1269
#endif
		spin_unlock_irq(&l3->list_lock);
		kfree(shared);
		free_alien_cache(alien);
1270 1271
		if (cachep->flags & SLAB_DEBUG_OBJECTS)
			slab_set_debugobj_lock_classes_node(cachep, node);
1272
	}
1273 1274
	init_node_lock_keys(node);

1275 1276
	return 0;
bad:
1277
	cpuup_canceled(cpu);
1278 1279 1280 1281 1282 1283 1284 1285 1286 1287 1288 1289
	return -ENOMEM;
}

static int __cpuinit cpuup_callback(struct notifier_block *nfb,
				    unsigned long action, void *hcpu)
{
	long cpu = (long)hcpu;
	int err = 0;

	switch (action) {
	case CPU_UP_PREPARE:
	case CPU_UP_PREPARE_FROZEN:
1290
		mutex_lock(&slab_mutex);
1291
		err = cpuup_prepare(cpu);
1292
		mutex_unlock(&slab_mutex);
L
Linus Torvalds 已提交
1293 1294
		break;
	case CPU_ONLINE:
1295
	case CPU_ONLINE_FROZEN:
L
Linus Torvalds 已提交
1296 1297 1298
		start_cpu_timer(cpu);
		break;
#ifdef CONFIG_HOTPLUG_CPU
1299
  	case CPU_DOWN_PREPARE:
1300
  	case CPU_DOWN_PREPARE_FROZEN:
1301
		/*
1302
		 * Shutdown cache reaper. Note that the slab_mutex is
1303 1304 1305 1306
		 * held so that if cache_reap() is invoked it cannot do
		 * anything expensive but will only modify reap_work
		 * and reschedule the timer.
		*/
1307
		cancel_delayed_work_sync(&per_cpu(slab_reap_work, cpu));
1308
		/* Now the cache_reaper is guaranteed to be not running. */
1309
		per_cpu(slab_reap_work, cpu).work.func = NULL;
1310 1311
  		break;
  	case CPU_DOWN_FAILED:
1312
  	case CPU_DOWN_FAILED_FROZEN:
1313 1314
		start_cpu_timer(cpu);
  		break;
L
Linus Torvalds 已提交
1315
	case CPU_DEAD:
1316
	case CPU_DEAD_FROZEN:
1317 1318 1319 1320 1321 1322 1323 1324
		/*
		 * Even if all the cpus of a node are down, we don't free the
		 * kmem_list3 of any cache. This to avoid a race between
		 * cpu_down, and a kmalloc allocation from another cpu for
		 * memory from the node of the cpu going down.  The list3
		 * structure is usually allocated from kmem_cache_create() and
		 * gets destroyed at kmem_cache_destroy().
		 */
S
Simon Arlott 已提交
1325
		/* fall through */
1326
#endif
L
Linus Torvalds 已提交
1327
	case CPU_UP_CANCELED:
1328
	case CPU_UP_CANCELED_FROZEN:
1329
		mutex_lock(&slab_mutex);
1330
		cpuup_canceled(cpu);
1331
		mutex_unlock(&slab_mutex);
L
Linus Torvalds 已提交
1332 1333
		break;
	}
1334
	return notifier_from_errno(err);
L
Linus Torvalds 已提交
1335 1336
}

1337 1338 1339
static struct notifier_block __cpuinitdata cpucache_notifier = {
	&cpuup_callback, NULL, 0
};
L
Linus Torvalds 已提交
1340

1341 1342 1343 1344 1345 1346
#if defined(CONFIG_NUMA) && defined(CONFIG_MEMORY_HOTPLUG)
/*
 * Drains freelist for a node on each slab cache, used for memory hot-remove.
 * Returns -EBUSY if all objects cannot be drained so that the node is not
 * removed.
 *
1347
 * Must hold slab_mutex.
1348 1349 1350 1351 1352 1353
 */
static int __meminit drain_cache_nodelists_node(int node)
{
	struct kmem_cache *cachep;
	int ret = 0;

1354
	list_for_each_entry(cachep, &slab_caches, list) {
1355 1356 1357 1358 1359 1360 1361 1362 1363 1364 1365 1366 1367 1368 1369 1370 1371 1372 1373 1374 1375 1376 1377 1378 1379 1380 1381 1382 1383 1384
		struct kmem_list3 *l3;

		l3 = cachep->nodelists[node];
		if (!l3)
			continue;

		drain_freelist(cachep, l3, l3->free_objects);

		if (!list_empty(&l3->slabs_full) ||
		    !list_empty(&l3->slabs_partial)) {
			ret = -EBUSY;
			break;
		}
	}
	return ret;
}

static int __meminit slab_memory_callback(struct notifier_block *self,
					unsigned long action, void *arg)
{
	struct memory_notify *mnb = arg;
	int ret = 0;
	int nid;

	nid = mnb->status_change_nid;
	if (nid < 0)
		goto out;

	switch (action) {
	case MEM_GOING_ONLINE:
1385
		mutex_lock(&slab_mutex);
1386
		ret = init_cache_nodelists_node(nid);
1387
		mutex_unlock(&slab_mutex);
1388 1389
		break;
	case MEM_GOING_OFFLINE:
1390
		mutex_lock(&slab_mutex);
1391
		ret = drain_cache_nodelists_node(nid);
1392
		mutex_unlock(&slab_mutex);
1393 1394 1395 1396 1397 1398 1399 1400
		break;
	case MEM_ONLINE:
	case MEM_OFFLINE:
	case MEM_CANCEL_ONLINE:
	case MEM_CANCEL_OFFLINE:
		break;
	}
out:
1401
	return notifier_from_errno(ret);
1402 1403 1404
}
#endif /* CONFIG_NUMA && CONFIG_MEMORY_HOTPLUG */

1405 1406 1407
/*
 * swap the static kmem_list3 with kmalloced memory
 */
1408 1409
static void __init init_list(struct kmem_cache *cachep, struct kmem_list3 *list,
				int nodeid)
1410 1411 1412
{
	struct kmem_list3 *ptr;

1413
	ptr = kmalloc_node(sizeof(struct kmem_list3), GFP_NOWAIT, nodeid);
1414 1415 1416
	BUG_ON(!ptr);

	memcpy(ptr, list, sizeof(struct kmem_list3));
1417 1418 1419 1420 1421
	/*
	 * Do not assume that spinlocks can be initialized via memcpy:
	 */
	spin_lock_init(&ptr->list_lock);

1422 1423 1424 1425
	MAKE_ALL_LISTS(cachep, ptr, nodeid);
	cachep->nodelists[nodeid] = ptr;
}

1426 1427 1428 1429 1430 1431 1432 1433 1434 1435 1436 1437 1438 1439 1440 1441
/*
 * For setting up all the kmem_list3s for cache whose buffer_size is same as
 * size of kmem_list3.
 */
static void __init set_up_list3s(struct kmem_cache *cachep, int index)
{
	int node;

	for_each_online_node(node) {
		cachep->nodelists[node] = &initkmem_list3[index + node];
		cachep->nodelists[node]->next_reap = jiffies +
		    REAPTIMEOUT_LIST3 +
		    ((unsigned long)cachep) % REAPTIMEOUT_LIST3;
	}
}

A
Andrew Morton 已提交
1442 1443 1444
/*
 * Initialisation.  Called after the page allocator have been initialised and
 * before smp_init().
L
Linus Torvalds 已提交
1445 1446 1447 1448 1449 1450
 */
void __init kmem_cache_init(void)
{
	size_t left_over;
	struct cache_sizes *sizes;
	struct cache_names *names;
1451
	int i;
1452
	int order;
P
Pekka Enberg 已提交
1453
	int node;
1454

1455
	if (num_possible_nodes() == 1)
1456 1457
		use_alien_caches = 0;

1458 1459 1460 1461 1462
	for (i = 0; i < NUM_INIT_LISTS; i++) {
		kmem_list3_init(&initkmem_list3[i]);
		if (i < MAX_NUMNODES)
			cache_cache.nodelists[i] = NULL;
	}
1463
	set_up_list3s(&cache_cache, CACHE_CACHE);
L
Linus Torvalds 已提交
1464 1465 1466

	/*
	 * Fragmentation resistance on low memory - only use bigger
1467 1468
	 * page orders on machines with more than 32MB of memory if
	 * not overridden on the command line.
L
Linus Torvalds 已提交
1469
	 */
1470
	if (!slab_max_order_set && totalram_pages > (32 << 20) >> PAGE_SHIFT)
1471
		slab_max_order = SLAB_MAX_ORDER_HI;
L
Linus Torvalds 已提交
1472 1473 1474

	/* Bootstrap is tricky, because several objects are allocated
	 * from caches that do not exist yet:
A
Andrew Morton 已提交
1475 1476 1477
	 * 1) initialize the cache_cache cache: it contains the struct
	 *    kmem_cache structures of all caches, except cache_cache itself:
	 *    cache_cache is statically allocated.
1478 1479 1480
	 *    Initially an __init data area is used for the head array and the
	 *    kmem_list3 structures, it's replaced with a kmalloc allocated
	 *    array at the end of the bootstrap.
L
Linus Torvalds 已提交
1481
	 * 2) Create the first kmalloc cache.
1482
	 *    The struct kmem_cache for the new cache is allocated normally.
1483 1484 1485
	 *    An __init data area is used for the head array.
	 * 3) Create the remaining kmalloc caches, with minimally sized
	 *    head arrays.
L
Linus Torvalds 已提交
1486 1487
	 * 4) Replace the __init data head arrays for cache_cache and the first
	 *    kmalloc cache with kmalloc allocated arrays.
1488 1489 1490
	 * 5) Replace the __init data for kmem_list3 for cache_cache and
	 *    the other cache's with kmalloc allocated memory.
	 * 6) Resize the head arrays of the kmalloc caches to their final sizes.
L
Linus Torvalds 已提交
1491 1492
	 */

1493
	node = numa_mem_id();
P
Pekka Enberg 已提交
1494

L
Linus Torvalds 已提交
1495
	/* 1) create the cache_cache */
1496 1497
	INIT_LIST_HEAD(&slab_caches);
	list_add(&cache_cache.list, &slab_caches);
L
Linus Torvalds 已提交
1498 1499
	cache_cache.colour_off = cache_line_size();
	cache_cache.array[smp_processor_id()] = &initarray_cache.cache;
1500
	cache_cache.nodelists[node] = &initkmem_list3[CACHE_CACHE + node];
L
Linus Torvalds 已提交
1501

E
Eric Dumazet 已提交
1502
	/*
1503
	 * struct kmem_cache size depends on nr_node_ids & nr_cpu_ids
E
Eric Dumazet 已提交
1504
	 */
1505
	cache_cache.size = offsetof(struct kmem_cache, array[nr_cpu_ids]) +
1506
				  nr_node_ids * sizeof(struct kmem_list3 *);
1507 1508
	cache_cache.object_size = cache_cache.size;
	cache_cache.size = ALIGN(cache_cache.size,
A
Andrew Morton 已提交
1509
					cache_line_size());
1510
	cache_cache.reciprocal_buffer_size =
1511
		reciprocal_value(cache_cache.size);
L
Linus Torvalds 已提交
1512

1513
	for (order = 0; order < MAX_ORDER; order++) {
1514
		cache_estimate(order, cache_cache.size,
1515 1516 1517 1518
			cache_line_size(), 0, &left_over, &cache_cache.num);
		if (cache_cache.num)
			break;
	}
1519
	BUG_ON(!cache_cache.num);
1520
	cache_cache.gfporder = order;
P
Pekka Enberg 已提交
1521 1522 1523
	cache_cache.colour = left_over / cache_cache.colour_off;
	cache_cache.slab_size = ALIGN(cache_cache.num * sizeof(kmem_bufctl_t) +
				      sizeof(struct slab), cache_line_size());
L
Linus Torvalds 已提交
1524 1525 1526 1527 1528

	/* 2+3) create the kmalloc caches */
	sizes = malloc_sizes;
	names = cache_names;

A
Andrew Morton 已提交
1529 1530 1531 1532
	/*
	 * Initialize the caches that provide memory for the array cache and the
	 * kmem_list3 structures first.  Without this, further allocations will
	 * bug.
1533 1534
	 */

1535
	sizes[INDEX_AC].cs_cachep = __kmem_cache_create(names[INDEX_AC].name,
A
Andrew Morton 已提交
1536 1537 1538
					sizes[INDEX_AC].cs_size,
					ARCH_KMALLOC_MINALIGN,
					ARCH_KMALLOC_FLAGS|SLAB_PANIC,
1539
					NULL);
1540

A
Andrew Morton 已提交
1541
	if (INDEX_AC != INDEX_L3) {
1542
		sizes[INDEX_L3].cs_cachep =
1543
			__kmem_cache_create(names[INDEX_L3].name,
A
Andrew Morton 已提交
1544 1545 1546
				sizes[INDEX_L3].cs_size,
				ARCH_KMALLOC_MINALIGN,
				ARCH_KMALLOC_FLAGS|SLAB_PANIC,
1547
				NULL);
A
Andrew Morton 已提交
1548
	}
1549

1550 1551
	slab_early_init = 0;

L
Linus Torvalds 已提交
1552
	while (sizes->cs_size != ULONG_MAX) {
1553 1554
		/*
		 * For performance, all the general caches are L1 aligned.
L
Linus Torvalds 已提交
1555 1556 1557
		 * This should be particularly beneficial on SMP boxes, as it
		 * eliminates "false sharing".
		 * Note for systems short on memory removing the alignment will
1558 1559
		 * allow tighter packing of the smaller caches.
		 */
A
Andrew Morton 已提交
1560
		if (!sizes->cs_cachep) {
1561
			sizes->cs_cachep = __kmem_cache_create(names->name,
A
Andrew Morton 已提交
1562 1563 1564
					sizes->cs_size,
					ARCH_KMALLOC_MINALIGN,
					ARCH_KMALLOC_FLAGS|SLAB_PANIC,
1565
					NULL);
A
Andrew Morton 已提交
1566
		}
1567
#ifdef CONFIG_ZONE_DMA
1568
		sizes->cs_dmacachep = __kmem_cache_create(
1569
					names->name_dma,
A
Andrew Morton 已提交
1570 1571 1572 1573
					sizes->cs_size,
					ARCH_KMALLOC_MINALIGN,
					ARCH_KMALLOC_FLAGS|SLAB_CACHE_DMA|
						SLAB_PANIC,
1574
					NULL);
1575
#endif
L
Linus Torvalds 已提交
1576 1577 1578 1579 1580
		sizes++;
		names++;
	}
	/* 4) Replace the bootstrap head arrays */
	{
1581
		struct array_cache *ptr;
1582

1583
		ptr = kmalloc(sizeof(struct arraycache_init), GFP_NOWAIT);
1584

1585 1586
		BUG_ON(cpu_cache_get(&cache_cache) != &initarray_cache.cache);
		memcpy(ptr, cpu_cache_get(&cache_cache),
P
Pekka Enberg 已提交
1587
		       sizeof(struct arraycache_init));
1588 1589 1590 1591 1592
		/*
		 * Do not assume that spinlocks can be initialized via memcpy:
		 */
		spin_lock_init(&ptr->lock);

L
Linus Torvalds 已提交
1593
		cache_cache.array[smp_processor_id()] = ptr;
1594

1595
		ptr = kmalloc(sizeof(struct arraycache_init), GFP_NOWAIT);
1596

1597
		BUG_ON(cpu_cache_get(malloc_sizes[INDEX_AC].cs_cachep)
P
Pekka Enberg 已提交
1598
		       != &initarray_generic.cache);
1599
		memcpy(ptr, cpu_cache_get(malloc_sizes[INDEX_AC].cs_cachep),
P
Pekka Enberg 已提交
1600
		       sizeof(struct arraycache_init));
1601 1602 1603 1604 1605
		/*
		 * Do not assume that spinlocks can be initialized via memcpy:
		 */
		spin_lock_init(&ptr->lock);

1606
		malloc_sizes[INDEX_AC].cs_cachep->array[smp_processor_id()] =
P
Pekka Enberg 已提交
1607
		    ptr;
L
Linus Torvalds 已提交
1608
	}
1609 1610
	/* 5) Replace the bootstrap kmem_list3's */
	{
P
Pekka Enberg 已提交
1611 1612
		int nid;

1613
		for_each_online_node(nid) {
1614
			init_list(&cache_cache, &initkmem_list3[CACHE_CACHE + nid], nid);
1615

1616
			init_list(malloc_sizes[INDEX_AC].cs_cachep,
P
Pekka Enberg 已提交
1617
				  &initkmem_list3[SIZE_AC + nid], nid);
1618 1619 1620

			if (INDEX_AC != INDEX_L3) {
				init_list(malloc_sizes[INDEX_L3].cs_cachep,
P
Pekka Enberg 已提交
1621
					  &initkmem_list3[SIZE_L3 + nid], nid);
1622 1623 1624
			}
		}
	}
L
Linus Torvalds 已提交
1625

1626
	slab_state = UP;
1627 1628 1629 1630 1631 1632
}

void __init kmem_cache_init_late(void)
{
	struct kmem_cache *cachep;

1633
	slab_state = UP;
P
Peter Zijlstra 已提交
1634

1635 1636 1637
	/* Annotate slab for lockdep -- annotate the malloc caches */
	init_lock_keys();

1638
	/* 6) resize the head arrays to their final sizes */
1639 1640
	mutex_lock(&slab_mutex);
	list_for_each_entry(cachep, &slab_caches, list)
1641 1642
		if (enable_cpucache(cachep, GFP_NOWAIT))
			BUG();
1643
	mutex_unlock(&slab_mutex);
1644

1645 1646 1647
	/* Done! */
	slab_state = FULL;

A
Andrew Morton 已提交
1648 1649 1650
	/*
	 * Register a cpu startup notifier callback that initializes
	 * cpu_cache_get for all new cpus
L
Linus Torvalds 已提交
1651 1652 1653
	 */
	register_cpu_notifier(&cpucache_notifier);

1654 1655 1656 1657 1658 1659 1660 1661
#ifdef CONFIG_NUMA
	/*
	 * Register a memory hotplug callback that initializes and frees
	 * nodelists.
	 */
	hotplug_memory_notifier(slab_memory_callback, SLAB_CALLBACK_PRI);
#endif

A
Andrew Morton 已提交
1662 1663 1664
	/*
	 * The reap timers are started later, with a module init call: That part
	 * of the kernel is not yet operational.
L
Linus Torvalds 已提交
1665 1666 1667 1668 1669 1670 1671
	 */
}

static int __init cpucache_init(void)
{
	int cpu;

A
Andrew Morton 已提交
1672 1673
	/*
	 * Register the timers that return unneeded pages to the page allocator
L
Linus Torvalds 已提交
1674
	 */
1675
	for_each_online_cpu(cpu)
A
Andrew Morton 已提交
1676
		start_cpu_timer(cpu);
1677 1678

	/* Done! */
1679
	slab_state = FULL;
L
Linus Torvalds 已提交
1680 1681 1682 1683
	return 0;
}
__initcall(cpucache_init);

1684 1685 1686 1687 1688 1689 1690 1691 1692 1693 1694 1695
static noinline void
slab_out_of_memory(struct kmem_cache *cachep, gfp_t gfpflags, int nodeid)
{
	struct kmem_list3 *l3;
	struct slab *slabp;
	unsigned long flags;
	int node;

	printk(KERN_WARNING
		"SLAB: Unable to allocate memory on node %d (gfp=0x%x)\n",
		nodeid, gfpflags);
	printk(KERN_WARNING "  cache: %s, object size: %d, order: %d\n",
1696
		cachep->name, cachep->size, cachep->gfporder);
1697 1698 1699 1700 1701 1702 1703 1704 1705 1706 1707 1708 1709 1710 1711 1712 1713 1714 1715 1716 1717 1718 1719 1720 1721 1722 1723 1724 1725 1726 1727 1728 1729

	for_each_online_node(node) {
		unsigned long active_objs = 0, num_objs = 0, free_objects = 0;
		unsigned long active_slabs = 0, num_slabs = 0;

		l3 = cachep->nodelists[node];
		if (!l3)
			continue;

		spin_lock_irqsave(&l3->list_lock, flags);
		list_for_each_entry(slabp, &l3->slabs_full, list) {
			active_objs += cachep->num;
			active_slabs++;
		}
		list_for_each_entry(slabp, &l3->slabs_partial, list) {
			active_objs += slabp->inuse;
			active_slabs++;
		}
		list_for_each_entry(slabp, &l3->slabs_free, list)
			num_slabs++;

		free_objects += l3->free_objects;
		spin_unlock_irqrestore(&l3->list_lock, flags);

		num_slabs += active_slabs;
		num_objs = num_slabs * cachep->num;
		printk(KERN_WARNING
			"  node %d: slabs: %ld/%ld, objs: %ld/%ld, free: %ld\n",
			node, active_slabs, num_slabs, active_objs, num_objs,
			free_objects);
	}
}

L
Linus Torvalds 已提交
1730 1731 1732 1733 1734 1735 1736
/*
 * Interface to system's page allocator. No need to hold the cache-lock.
 *
 * If we requested dmaable memory, we will get it. Even if we
 * did not request dmaable memory, we might get it, but that
 * would be relatively rare and ignorable.
 */
1737
static void *kmem_getpages(struct kmem_cache *cachep, gfp_t flags, int nodeid)
L
Linus Torvalds 已提交
1738 1739
{
	struct page *page;
1740
	int nr_pages;
L
Linus Torvalds 已提交
1741 1742
	int i;

1743
#ifndef CONFIG_MMU
1744 1745 1746
	/*
	 * Nommu uses slab's for process anonymous memory allocations, and thus
	 * requires __GFP_COMP to properly refcount higher order allocations
1747
	 */
1748
	flags |= __GFP_COMP;
1749
#endif
1750

1751
	flags |= cachep->allocflags;
1752 1753
	if (cachep->flags & SLAB_RECLAIM_ACCOUNT)
		flags |= __GFP_RECLAIMABLE;
1754

L
Linus Torvalds 已提交
1755
	page = alloc_pages_exact_node(nodeid, flags | __GFP_NOTRACK, cachep->gfporder);
1756 1757 1758
	if (!page) {
		if (!(flags & __GFP_NOWARN) && printk_ratelimit())
			slab_out_of_memory(cachep, flags, nodeid);
L
Linus Torvalds 已提交
1759
		return NULL;
1760
	}
L
Linus Torvalds 已提交
1761

1762
	nr_pages = (1 << cachep->gfporder);
L
Linus Torvalds 已提交
1763
	if (cachep->flags & SLAB_RECLAIM_ACCOUNT)
1764 1765 1766 1767 1768
		add_zone_page_state(page_zone(page),
			NR_SLAB_RECLAIMABLE, nr_pages);
	else
		add_zone_page_state(page_zone(page),
			NR_SLAB_UNRECLAIMABLE, nr_pages);
1769 1770
	for (i = 0; i < nr_pages; i++)
		__SetPageSlab(page + i);
P
Pekka Enberg 已提交
1771

1772 1773 1774 1775 1776 1777 1778 1779
	if (kmemcheck_enabled && !(cachep->flags & SLAB_NOTRACK)) {
		kmemcheck_alloc_shadow(page, cachep->gfporder, flags, nodeid);

		if (cachep->ctor)
			kmemcheck_mark_uninitialized_pages(page, nr_pages);
		else
			kmemcheck_mark_unallocated_pages(page, nr_pages);
	}
P
Pekka Enberg 已提交
1780

1781
	return page_address(page);
L
Linus Torvalds 已提交
1782 1783 1784 1785 1786
}

/*
 * Interface to system's page release.
 */
1787
static void kmem_freepages(struct kmem_cache *cachep, void *addr)
L
Linus Torvalds 已提交
1788
{
P
Pekka Enberg 已提交
1789
	unsigned long i = (1 << cachep->gfporder);
L
Linus Torvalds 已提交
1790 1791 1792
	struct page *page = virt_to_page(addr);
	const unsigned long nr_freed = i;

1793
	kmemcheck_free_shadow(page, cachep->gfporder);
P
Pekka Enberg 已提交
1794

1795 1796 1797 1798 1799 1800
	if (cachep->flags & SLAB_RECLAIM_ACCOUNT)
		sub_zone_page_state(page_zone(page),
				NR_SLAB_RECLAIMABLE, nr_freed);
	else
		sub_zone_page_state(page_zone(page),
				NR_SLAB_UNRECLAIMABLE, nr_freed);
L
Linus Torvalds 已提交
1801
	while (i--) {
N
Nick Piggin 已提交
1802 1803
		BUG_ON(!PageSlab(page));
		__ClearPageSlab(page);
L
Linus Torvalds 已提交
1804 1805 1806 1807 1808 1809 1810 1811 1812
		page++;
	}
	if (current->reclaim_state)
		current->reclaim_state->reclaimed_slab += nr_freed;
	free_pages((unsigned long)addr, cachep->gfporder);
}

static void kmem_rcu_free(struct rcu_head *head)
{
P
Pekka Enberg 已提交
1813
	struct slab_rcu *slab_rcu = (struct slab_rcu *)head;
1814
	struct kmem_cache *cachep = slab_rcu->cachep;
L
Linus Torvalds 已提交
1815 1816 1817 1818 1819 1820 1821 1822 1823

	kmem_freepages(cachep, slab_rcu->addr);
	if (OFF_SLAB(cachep))
		kmem_cache_free(cachep->slabp_cache, slab_rcu);
}

#if DEBUG

#ifdef CONFIG_DEBUG_PAGEALLOC
1824
static void store_stackinfo(struct kmem_cache *cachep, unsigned long *addr,
P
Pekka Enberg 已提交
1825
			    unsigned long caller)
L
Linus Torvalds 已提交
1826
{
1827
	int size = cachep->object_size;
L
Linus Torvalds 已提交
1828

1829
	addr = (unsigned long *)&((char *)addr)[obj_offset(cachep)];
L
Linus Torvalds 已提交
1830

P
Pekka Enberg 已提交
1831
	if (size < 5 * sizeof(unsigned long))
L
Linus Torvalds 已提交
1832 1833
		return;

P
Pekka Enberg 已提交
1834 1835 1836 1837
	*addr++ = 0x12345678;
	*addr++ = caller;
	*addr++ = smp_processor_id();
	size -= 3 * sizeof(unsigned long);
L
Linus Torvalds 已提交
1838 1839 1840 1841 1842 1843 1844
	{
		unsigned long *sptr = &caller;
		unsigned long svalue;

		while (!kstack_end(sptr)) {
			svalue = *sptr++;
			if (kernel_text_address(svalue)) {
P
Pekka Enberg 已提交
1845
				*addr++ = svalue;
L
Linus Torvalds 已提交
1846 1847 1848 1849 1850 1851 1852
				size -= sizeof(unsigned long);
				if (size <= sizeof(unsigned long))
					break;
			}
		}

	}
P
Pekka Enberg 已提交
1853
	*addr++ = 0x87654321;
L
Linus Torvalds 已提交
1854 1855 1856
}
#endif

1857
static void poison_obj(struct kmem_cache *cachep, void *addr, unsigned char val)
L
Linus Torvalds 已提交
1858
{
1859
	int size = cachep->object_size;
1860
	addr = &((char *)addr)[obj_offset(cachep)];
L
Linus Torvalds 已提交
1861 1862

	memset(addr, val, size);
P
Pekka Enberg 已提交
1863
	*(unsigned char *)(addr + size - 1) = POISON_END;
L
Linus Torvalds 已提交
1864 1865 1866 1867 1868
}

static void dump_line(char *data, int offset, int limit)
{
	int i;
D
Dave Jones 已提交
1869 1870 1871
	unsigned char error = 0;
	int bad_count = 0;

1872
	printk(KERN_ERR "%03x: ", offset);
D
Dave Jones 已提交
1873 1874 1875 1876 1877 1878
	for (i = 0; i < limit; i++) {
		if (data[offset + i] != POISON_FREE) {
			error = data[offset + i];
			bad_count++;
		}
	}
1879 1880
	print_hex_dump(KERN_CONT, "", 0, 16, 1,
			&data[offset], limit, 1);
D
Dave Jones 已提交
1881 1882 1883 1884 1885 1886 1887 1888 1889 1890 1891 1892 1893 1894

	if (bad_count == 1) {
		error ^= POISON_FREE;
		if (!(error & (error - 1))) {
			printk(KERN_ERR "Single bit error detected. Probably "
					"bad RAM.\n");
#ifdef CONFIG_X86
			printk(KERN_ERR "Run memtest86+ or a similar memory "
					"test tool.\n");
#else
			printk(KERN_ERR "Run a memory test tool.\n");
#endif
		}
	}
L
Linus Torvalds 已提交
1895 1896 1897 1898 1899
}
#endif

#if DEBUG

1900
static void print_objinfo(struct kmem_cache *cachep, void *objp, int lines)
L
Linus Torvalds 已提交
1901 1902 1903 1904 1905
{
	int i, size;
	char *realobj;

	if (cachep->flags & SLAB_RED_ZONE) {
1906
		printk(KERN_ERR "Redzone: 0x%llx/0x%llx.\n",
A
Andrew Morton 已提交
1907 1908
			*dbg_redzone1(cachep, objp),
			*dbg_redzone2(cachep, objp));
L
Linus Torvalds 已提交
1909 1910 1911 1912
	}

	if (cachep->flags & SLAB_STORE_USER) {
		printk(KERN_ERR "Last user: [<%p>]",
A
Andrew Morton 已提交
1913
			*dbg_userword(cachep, objp));
L
Linus Torvalds 已提交
1914
		print_symbol("(%s)",
A
Andrew Morton 已提交
1915
				(unsigned long)*dbg_userword(cachep, objp));
L
Linus Torvalds 已提交
1916 1917
		printk("\n");
	}
1918
	realobj = (char *)objp + obj_offset(cachep);
1919
	size = cachep->object_size;
P
Pekka Enberg 已提交
1920
	for (i = 0; i < size && lines; i += 16, lines--) {
L
Linus Torvalds 已提交
1921 1922
		int limit;
		limit = 16;
P
Pekka Enberg 已提交
1923 1924
		if (i + limit > size)
			limit = size - i;
L
Linus Torvalds 已提交
1925 1926 1927 1928
		dump_line(realobj, i, limit);
	}
}

1929
static void check_poison_obj(struct kmem_cache *cachep, void *objp)
L
Linus Torvalds 已提交
1930 1931 1932 1933 1934
{
	char *realobj;
	int size, i;
	int lines = 0;

1935
	realobj = (char *)objp + obj_offset(cachep);
1936
	size = cachep->object_size;
L
Linus Torvalds 已提交
1937

P
Pekka Enberg 已提交
1938
	for (i = 0; i < size; i++) {
L
Linus Torvalds 已提交
1939
		char exp = POISON_FREE;
P
Pekka Enberg 已提交
1940
		if (i == size - 1)
L
Linus Torvalds 已提交
1941 1942 1943 1944 1945 1946
			exp = POISON_END;
		if (realobj[i] != exp) {
			int limit;
			/* Mismatch ! */
			/* Print header */
			if (lines == 0) {
P
Pekka Enberg 已提交
1947
				printk(KERN_ERR
1948 1949
					"Slab corruption (%s): %s start=%p, len=%d\n",
					print_tainted(), cachep->name, realobj, size);
L
Linus Torvalds 已提交
1950 1951 1952
				print_objinfo(cachep, objp, 0);
			}
			/* Hexdump the affected line */
P
Pekka Enberg 已提交
1953
			i = (i / 16) * 16;
L
Linus Torvalds 已提交
1954
			limit = 16;
P
Pekka Enberg 已提交
1955 1956
			if (i + limit > size)
				limit = size - i;
L
Linus Torvalds 已提交
1957 1958 1959 1960 1961 1962 1963 1964 1965 1966 1967 1968
			dump_line(realobj, i, limit);
			i += 16;
			lines++;
			/* Limit to 5 lines */
			if (lines > 5)
				break;
		}
	}
	if (lines != 0) {
		/* Print some data about the neighboring objects, if they
		 * exist:
		 */
1969
		struct slab *slabp = virt_to_slab(objp);
1970
		unsigned int objnr;
L
Linus Torvalds 已提交
1971

1972
		objnr = obj_to_index(cachep, slabp, objp);
L
Linus Torvalds 已提交
1973
		if (objnr) {
1974
			objp = index_to_obj(cachep, slabp, objnr - 1);
1975
			realobj = (char *)objp + obj_offset(cachep);
L
Linus Torvalds 已提交
1976
			printk(KERN_ERR "Prev obj: start=%p, len=%d\n",
P
Pekka Enberg 已提交
1977
			       realobj, size);
L
Linus Torvalds 已提交
1978 1979
			print_objinfo(cachep, objp, 2);
		}
P
Pekka Enberg 已提交
1980
		if (objnr + 1 < cachep->num) {
1981
			objp = index_to_obj(cachep, slabp, objnr + 1);
1982
			realobj = (char *)objp + obj_offset(cachep);
L
Linus Torvalds 已提交
1983
			printk(KERN_ERR "Next obj: start=%p, len=%d\n",
P
Pekka Enberg 已提交
1984
			       realobj, size);
L
Linus Torvalds 已提交
1985 1986 1987 1988 1989 1990
			print_objinfo(cachep, objp, 2);
		}
	}
}
#endif

1991
#if DEBUG
R
Rabin Vincent 已提交
1992
static void slab_destroy_debugcheck(struct kmem_cache *cachep, struct slab *slabp)
L
Linus Torvalds 已提交
1993 1994 1995
{
	int i;
	for (i = 0; i < cachep->num; i++) {
1996
		void *objp = index_to_obj(cachep, slabp, i);
L
Linus Torvalds 已提交
1997 1998 1999

		if (cachep->flags & SLAB_POISON) {
#ifdef CONFIG_DEBUG_PAGEALLOC
2000
			if (cachep->size % PAGE_SIZE == 0 &&
A
Andrew Morton 已提交
2001
					OFF_SLAB(cachep))
P
Pekka Enberg 已提交
2002
				kernel_map_pages(virt_to_page(objp),
2003
					cachep->size / PAGE_SIZE, 1);
L
Linus Torvalds 已提交
2004 2005 2006 2007 2008 2009 2010 2011 2012
			else
				check_poison_obj(cachep, objp);
#else
			check_poison_obj(cachep, objp);
#endif
		}
		if (cachep->flags & SLAB_RED_ZONE) {
			if (*dbg_redzone1(cachep, objp) != RED_INACTIVE)
				slab_error(cachep, "start of a freed object "
P
Pekka Enberg 已提交
2013
					   "was overwritten");
L
Linus Torvalds 已提交
2014 2015
			if (*dbg_redzone2(cachep, objp) != RED_INACTIVE)
				slab_error(cachep, "end of a freed object "
P
Pekka Enberg 已提交
2016
					   "was overwritten");
L
Linus Torvalds 已提交
2017 2018
		}
	}
2019
}
L
Linus Torvalds 已提交
2020
#else
R
Rabin Vincent 已提交
2021
static void slab_destroy_debugcheck(struct kmem_cache *cachep, struct slab *slabp)
2022 2023
{
}
L
Linus Torvalds 已提交
2024 2025
#endif

2026 2027 2028 2029 2030
/**
 * slab_destroy - destroy and release all objects in a slab
 * @cachep: cache pointer being destroyed
 * @slabp: slab pointer being destroyed
 *
2031
 * Destroy all the objs in a slab, and release the mem back to the system.
A
Andrew Morton 已提交
2032 2033
 * Before calling the slab must have been unlinked from the cache.  The
 * cache-lock is not held/needed.
2034
 */
2035
static void slab_destroy(struct kmem_cache *cachep, struct slab *slabp)
2036 2037 2038
{
	void *addr = slabp->s_mem - slabp->colouroff;

R
Rabin Vincent 已提交
2039
	slab_destroy_debugcheck(cachep, slabp);
L
Linus Torvalds 已提交
2040 2041 2042
	if (unlikely(cachep->flags & SLAB_DESTROY_BY_RCU)) {
		struct slab_rcu *slab_rcu;

P
Pekka Enberg 已提交
2043
		slab_rcu = (struct slab_rcu *)slabp;
L
Linus Torvalds 已提交
2044 2045 2046 2047 2048
		slab_rcu->cachep = cachep;
		slab_rcu->addr = addr;
		call_rcu(&slab_rcu->head, kmem_rcu_free);
	} else {
		kmem_freepages(cachep, addr);
2049 2050
		if (OFF_SLAB(cachep))
			kmem_cache_free(cachep->slabp_cache, slabp);
L
Linus Torvalds 已提交
2051 2052 2053
	}
}

2054 2055 2056 2057 2058 2059 2060 2061 2062 2063 2064 2065 2066 2067 2068 2069 2070 2071 2072 2073 2074
static void __kmem_cache_destroy(struct kmem_cache *cachep)
{
	int i;
	struct kmem_list3 *l3;

	for_each_online_cpu(i)
	    kfree(cachep->array[i]);

	/* NUMA: free the list3 structures */
	for_each_online_node(i) {
		l3 = cachep->nodelists[i];
		if (l3) {
			kfree(l3->shared);
			free_alien_cache(l3->alien);
			kfree(l3);
		}
	}
	kmem_cache_free(&cache_cache, cachep);
}


2075
/**
2076 2077 2078 2079 2080 2081 2082
 * calculate_slab_order - calculate size (page order) of slabs
 * @cachep: pointer to the cache that is being created
 * @size: size of objects to be created in this cache.
 * @align: required alignment for the objects.
 * @flags: slab allocation flags
 *
 * Also calculates the number of objects per slab.
2083 2084 2085 2086 2087
 *
 * This could be made much more intelligent.  For now, try to avoid using
 * high order pages for slabs.  When the gfp() functions are more friendly
 * towards high-order requests, this should be changed.
 */
A
Andrew Morton 已提交
2088
static size_t calculate_slab_order(struct kmem_cache *cachep,
R
Randy Dunlap 已提交
2089
			size_t size, size_t align, unsigned long flags)
2090
{
2091
	unsigned long offslab_limit;
2092
	size_t left_over = 0;
2093
	int gfporder;
2094

2095
	for (gfporder = 0; gfporder <= KMALLOC_MAX_ORDER; gfporder++) {
2096 2097 2098
		unsigned int num;
		size_t remainder;

2099
		cache_estimate(gfporder, size, align, flags, &remainder, &num);
2100 2101
		if (!num)
			continue;
2102

2103 2104 2105 2106 2107 2108 2109 2110 2111 2112 2113 2114
		if (flags & CFLGS_OFF_SLAB) {
			/*
			 * Max number of objs-per-slab for caches which
			 * use off-slab slabs. Needed to avoid a possible
			 * looping condition in cache_grow().
			 */
			offslab_limit = size - sizeof(struct slab);
			offslab_limit /= sizeof(kmem_bufctl_t);

 			if (num > offslab_limit)
				break;
		}
2115

2116
		/* Found something acceptable - save it away */
2117
		cachep->num = num;
2118
		cachep->gfporder = gfporder;
2119 2120
		left_over = remainder;

2121 2122 2123 2124 2125 2126 2127 2128
		/*
		 * A VFS-reclaimable slab tends to have most allocations
		 * as GFP_NOFS and we really don't want to have to be allocating
		 * higher-order pages when we are unable to shrink dcache.
		 */
		if (flags & SLAB_RECLAIM_ACCOUNT)
			break;

2129 2130 2131 2132
		/*
		 * Large number of objects is good, but very large slabs are
		 * currently bad for the gfp()s.
		 */
2133
		if (gfporder >= slab_max_order)
2134 2135
			break;

2136 2137 2138
		/*
		 * Acceptable internal fragmentation?
		 */
A
Andrew Morton 已提交
2139
		if (left_over * 8 <= (PAGE_SIZE << gfporder))
2140 2141 2142 2143 2144
			break;
	}
	return left_over;
}

2145
static int __init_refok setup_cpu_cache(struct kmem_cache *cachep, gfp_t gfp)
2146
{
2147
	if (slab_state >= FULL)
2148
		return enable_cpucache(cachep, gfp);
2149

2150
	if (slab_state == DOWN) {
2151 2152 2153 2154 2155 2156 2157 2158 2159 2160 2161 2162 2163 2164
		/*
		 * Note: the first kmem_cache_create must create the cache
		 * that's used by kmalloc(24), otherwise the creation of
		 * further caches will BUG().
		 */
		cachep->array[smp_processor_id()] = &initarray_generic.cache;

		/*
		 * If the cache that's used by kmalloc(sizeof(kmem_list3)) is
		 * the first cache, then we need to set up all its list3s,
		 * otherwise the creation of further caches will BUG().
		 */
		set_up_list3s(cachep, SIZE_AC);
		if (INDEX_AC == INDEX_L3)
2165
			slab_state = PARTIAL_L3;
2166
		else
2167
			slab_state = PARTIAL_ARRAYCACHE;
2168 2169
	} else {
		cachep->array[smp_processor_id()] =
2170
			kmalloc(sizeof(struct arraycache_init), gfp);
2171

2172
		if (slab_state == PARTIAL_ARRAYCACHE) {
2173
			set_up_list3s(cachep, SIZE_L3);
2174
			slab_state = PARTIAL_L3;
2175 2176
		} else {
			int node;
2177
			for_each_online_node(node) {
2178 2179
				cachep->nodelists[node] =
				    kmalloc_node(sizeof(struct kmem_list3),
2180
						gfp, node);
2181 2182 2183 2184 2185
				BUG_ON(!cachep->nodelists[node]);
				kmem_list3_init(cachep->nodelists[node]);
			}
		}
	}
2186
	cachep->nodelists[numa_mem_id()]->next_reap =
2187 2188 2189 2190 2191 2192 2193 2194 2195
			jiffies + REAPTIMEOUT_LIST3 +
			((unsigned long)cachep) % REAPTIMEOUT_LIST3;

	cpu_cache_get(cachep)->avail = 0;
	cpu_cache_get(cachep)->limit = BOOT_CPUCACHE_ENTRIES;
	cpu_cache_get(cachep)->batchcount = 1;
	cpu_cache_get(cachep)->touched = 0;
	cachep->batchcount = 1;
	cachep->limit = BOOT_CPUCACHE_ENTRIES;
2196
	return 0;
2197 2198
}

L
Linus Torvalds 已提交
2199
/**
2200
 * __kmem_cache_create - Create a cache.
L
Linus Torvalds 已提交
2201 2202 2203 2204 2205 2206 2207 2208
 * @name: A string which is used in /proc/slabinfo to identify this cache.
 * @size: The size of objects to be created in this cache.
 * @align: The required alignment for the objects.
 * @flags: SLAB flags
 * @ctor: A constructor for the objects.
 *
 * Returns a ptr to the cache on success, NULL on failure.
 * Cannot be called within a int, but can be interrupted.
2209
 * The @ctor is run when new pages are allocated by the cache.
L
Linus Torvalds 已提交
2210 2211
 *
 * @name must be valid until the cache is destroyed. This implies that
A
Andrew Morton 已提交
2212 2213
 * the module calling this has to destroy the cache before getting unloaded.
 *
L
Linus Torvalds 已提交
2214 2215 2216 2217 2218 2219 2220 2221 2222 2223 2224 2225
 * The flags are
 *
 * %SLAB_POISON - Poison the slab with a known test pattern (a5a5a5a5)
 * to catch references to uninitialised memory.
 *
 * %SLAB_RED_ZONE - Insert `Red' zones around the allocated memory to check
 * for buffer overruns.
 *
 * %SLAB_HWCACHE_ALIGN - Align the objects in this cache to a hardware
 * cacheline.  This can be beneficial if you're counting cycles as closely
 * as davem.
 */
2226
struct kmem_cache *
2227
__kmem_cache_create (const char *name, size_t size, size_t align,
2228
	unsigned long flags, void (*ctor)(void *))
L
Linus Torvalds 已提交
2229 2230
{
	size_t left_over, slab_size, ralign;
2231
	struct kmem_cache *cachep = NULL, *pc;
2232
	gfp_t gfp;
L
Linus Torvalds 已提交
2233 2234 2235 2236

	/*
	 * Sanity checks... these are all serious usage bugs.
	 */
A
Andrew Morton 已提交
2237
	if (!name || in_interrupt() || (size < BYTES_PER_WORD) ||
2238
	    size > KMALLOC_MAX_SIZE) {
2239
		printk(KERN_ERR "%s: Early error in slab %s\n", __func__,
A
Andrew Morton 已提交
2240
				name);
P
Pekka Enberg 已提交
2241 2242
		BUG();
	}
L
Linus Torvalds 已提交
2243

2244
	/*
2245
	 * We use cache_chain_mutex to ensure a consistent view of
R
Rusty Russell 已提交
2246
	 * cpu_online_mask as well.  Please see cpuup_callback
2247
	 */
2248 2249
	if (slab_is_available()) {
		get_online_cpus();
2250
		mutex_lock(&slab_mutex);
2251
	}
2252

2253
	list_for_each_entry(pc, &slab_caches, list) {
2254 2255 2256 2257 2258 2259 2260 2261
		char tmp;
		int res;

		/*
		 * This happens when the module gets unloaded and doesn't
		 * destroy its slab cache and no-one else reuses the vmalloc
		 * area of the module.  Print a warning.
		 */
2262
		res = probe_kernel_address(pc->name, tmp);
2263
		if (res) {
2264 2265
			printk(KERN_ERR
			       "SLAB: cache with size %d has lost its name\n",
2266
			       pc->size);
2267 2268 2269
			continue;
		}

P
Pekka Enberg 已提交
2270
		if (!strcmp(pc->name, name)) {
2271 2272
			printk(KERN_ERR
			       "kmem_cache_create: duplicate cache %s\n", name);
2273 2274 2275 2276 2277
			dump_stack();
			goto oops;
		}
	}

L
Linus Torvalds 已提交
2278 2279 2280 2281 2282 2283 2284 2285 2286
#if DEBUG
	WARN_ON(strchr(name, ' '));	/* It confuses parsers */
#if FORCED_DEBUG
	/*
	 * Enable redzoning and last user accounting, except for caches with
	 * large objects, if the increased size would increase the object size
	 * above the next power of two: caches with object sizes just above a
	 * power of two have a significant amount of internal fragmentation.
	 */
D
David Woodhouse 已提交
2287 2288
	if (size < 4096 || fls(size - 1) == fls(size-1 + REDZONE_ALIGN +
						2 * sizeof(unsigned long long)))
P
Pekka Enberg 已提交
2289
		flags |= SLAB_RED_ZONE | SLAB_STORE_USER;
L
Linus Torvalds 已提交
2290 2291 2292 2293 2294 2295 2296
	if (!(flags & SLAB_DESTROY_BY_RCU))
		flags |= SLAB_POISON;
#endif
	if (flags & SLAB_DESTROY_BY_RCU)
		BUG_ON(flags & SLAB_POISON);
#endif
	/*
A
Andrew Morton 已提交
2297 2298
	 * Always checks flags, a caller might be expecting debug support which
	 * isn't available.
L
Linus Torvalds 已提交
2299
	 */
2300
	BUG_ON(flags & ~CREATE_MASK);
L
Linus Torvalds 已提交
2301

A
Andrew Morton 已提交
2302 2303
	/*
	 * Check that size is in terms of words.  This is needed to avoid
L
Linus Torvalds 已提交
2304 2305 2306
	 * unaligned accesses for some archs when redzoning is used, and makes
	 * sure any on-slab bufctl's are also correctly aligned.
	 */
P
Pekka Enberg 已提交
2307 2308 2309
	if (size & (BYTES_PER_WORD - 1)) {
		size += (BYTES_PER_WORD - 1);
		size &= ~(BYTES_PER_WORD - 1);
L
Linus Torvalds 已提交
2310 2311
	}

A
Andrew Morton 已提交
2312 2313
	/* calculate the final buffer alignment: */

L
Linus Torvalds 已提交
2314 2315
	/* 1) arch recommendation: can be overridden for debug */
	if (flags & SLAB_HWCACHE_ALIGN) {
A
Andrew Morton 已提交
2316 2317 2318 2319
		/*
		 * Default alignment: as specified by the arch code.  Except if
		 * an object is really small, then squeeze multiple objects into
		 * one cacheline.
L
Linus Torvalds 已提交
2320 2321
		 */
		ralign = cache_line_size();
P
Pekka Enberg 已提交
2322
		while (size <= ralign / 2)
L
Linus Torvalds 已提交
2323 2324 2325 2326
			ralign /= 2;
	} else {
		ralign = BYTES_PER_WORD;
	}
2327 2328

	/*
D
David Woodhouse 已提交
2329 2330 2331
	 * Redzoning and user store require word alignment or possibly larger.
	 * Note this will be overridden by architecture or caller mandated
	 * alignment if either is greater than BYTES_PER_WORD.
2332
	 */
D
David Woodhouse 已提交
2333 2334 2335 2336 2337 2338 2339 2340 2341 2342
	if (flags & SLAB_STORE_USER)
		ralign = BYTES_PER_WORD;

	if (flags & SLAB_RED_ZONE) {
		ralign = REDZONE_ALIGN;
		/* If redzoning, ensure that the second redzone is suitably
		 * aligned, by adjusting the object size accordingly. */
		size += REDZONE_ALIGN - 1;
		size &= ~(REDZONE_ALIGN - 1);
	}
2343

2344
	/* 2) arch mandated alignment */
L
Linus Torvalds 已提交
2345 2346 2347
	if (ralign < ARCH_SLAB_MINALIGN) {
		ralign = ARCH_SLAB_MINALIGN;
	}
2348
	/* 3) caller mandated alignment */
L
Linus Torvalds 已提交
2349 2350 2351
	if (ralign < align) {
		ralign = align;
	}
2352 2353
	/* disable debug if necessary */
	if (ralign > __alignof__(unsigned long long))
2354
		flags &= ~(SLAB_RED_ZONE | SLAB_STORE_USER);
A
Andrew Morton 已提交
2355
	/*
2356
	 * 4) Store it.
L
Linus Torvalds 已提交
2357 2358 2359
	 */
	align = ralign;

2360 2361 2362 2363 2364
	if (slab_is_available())
		gfp = GFP_KERNEL;
	else
		gfp = GFP_NOWAIT;

L
Linus Torvalds 已提交
2365
	/* Get cache's description obj. */
2366
	cachep = kmem_cache_zalloc(&cache_cache, gfp);
L
Linus Torvalds 已提交
2367
	if (!cachep)
2368
		return NULL;
L
Linus Torvalds 已提交
2369

2370
	cachep->nodelists = (struct kmem_list3 **)&cachep->array[nr_cpu_ids];
2371 2372
	cachep->object_size = size;
	cachep->align = align;
L
Linus Torvalds 已提交
2373 2374
#if DEBUG

2375 2376 2377 2378
	/*
	 * Both debugging options require word-alignment which is calculated
	 * into align above.
	 */
L
Linus Torvalds 已提交
2379 2380
	if (flags & SLAB_RED_ZONE) {
		/* add space for red zone words */
2381 2382
		cachep->obj_offset += sizeof(unsigned long long);
		size += 2 * sizeof(unsigned long long);
L
Linus Torvalds 已提交
2383 2384
	}
	if (flags & SLAB_STORE_USER) {
2385
		/* user store requires one word storage behind the end of
D
David Woodhouse 已提交
2386 2387
		 * the real object. But if the second red zone needs to be
		 * aligned to 64 bits, we must allow that much space.
L
Linus Torvalds 已提交
2388
		 */
D
David Woodhouse 已提交
2389 2390 2391 2392
		if (flags & SLAB_RED_ZONE)
			size += REDZONE_ALIGN;
		else
			size += BYTES_PER_WORD;
L
Linus Torvalds 已提交
2393 2394
	}
#if FORCED_DEBUG && defined(CONFIG_DEBUG_PAGEALLOC)
P
Pekka Enberg 已提交
2395
	if (size >= malloc_sizes[INDEX_L3 + 1].cs_size
2396
	    && cachep->object_size > cache_line_size() && ALIGN(size, align) < PAGE_SIZE) {
C
Carsten Otte 已提交
2397
		cachep->obj_offset += PAGE_SIZE - ALIGN(size, align);
L
Linus Torvalds 已提交
2398 2399 2400 2401 2402
		size = PAGE_SIZE;
	}
#endif
#endif

2403 2404 2405
	/*
	 * Determine if the slab management is 'on' or 'off' slab.
	 * (bootstrapping cannot cope with offslab caches so don't do
2406 2407
	 * it too early on. Always use on-slab management when
	 * SLAB_NOLEAKTRACE to avoid recursive calls into kmemleak)
2408
	 */
2409 2410
	if ((size >= (PAGE_SIZE >> 3)) && !slab_early_init &&
	    !(flags & SLAB_NOLEAKTRACE))
L
Linus Torvalds 已提交
2411 2412 2413 2414 2415 2416 2417 2418
		/*
		 * Size is large, assume best to place the slab management obj
		 * off-slab (should allow better packing of objs).
		 */
		flags |= CFLGS_OFF_SLAB;

	size = ALIGN(size, align);

2419
	left_over = calculate_slab_order(cachep, size, align, flags);
L
Linus Torvalds 已提交
2420 2421

	if (!cachep->num) {
2422 2423
		printk(KERN_ERR
		       "kmem_cache_create: couldn't create cache %s.\n", name);
L
Linus Torvalds 已提交
2424
		kmem_cache_free(&cache_cache, cachep);
2425
		return NULL;
L
Linus Torvalds 已提交
2426
	}
P
Pekka Enberg 已提交
2427 2428
	slab_size = ALIGN(cachep->num * sizeof(kmem_bufctl_t)
			  + sizeof(struct slab), align);
L
Linus Torvalds 已提交
2429 2430 2431 2432 2433 2434 2435 2436 2437 2438 2439 2440

	/*
	 * If the slab has been placed off-slab, and we have enough space then
	 * move it on-slab. This is at the expense of any extra colouring.
	 */
	if (flags & CFLGS_OFF_SLAB && left_over >= slab_size) {
		flags &= ~CFLGS_OFF_SLAB;
		left_over -= slab_size;
	}

	if (flags & CFLGS_OFF_SLAB) {
		/* really off slab. No need for manual alignment */
P
Pekka Enberg 已提交
2441 2442
		slab_size =
		    cachep->num * sizeof(kmem_bufctl_t) + sizeof(struct slab);
2443 2444 2445 2446 2447 2448 2449 2450 2451

#ifdef CONFIG_PAGE_POISONING
		/* If we're going to use the generic kernel_map_pages()
		 * poisoning, then it's going to smash the contents of
		 * the redzone and userword anyhow, so switch them off.
		 */
		if (size % PAGE_SIZE == 0 && flags & SLAB_POISON)
			flags &= ~(SLAB_RED_ZONE | SLAB_STORE_USER);
#endif
L
Linus Torvalds 已提交
2452 2453 2454 2455 2456 2457
	}

	cachep->colour_off = cache_line_size();
	/* Offset must be a multiple of the alignment. */
	if (cachep->colour_off < align)
		cachep->colour_off = align;
P
Pekka Enberg 已提交
2458
	cachep->colour = left_over / cachep->colour_off;
L
Linus Torvalds 已提交
2459 2460
	cachep->slab_size = slab_size;
	cachep->flags = flags;
2461
	cachep->allocflags = 0;
2462
	if (CONFIG_ZONE_DMA_FLAG && (flags & SLAB_CACHE_DMA))
2463
		cachep->allocflags |= GFP_DMA;
2464
	cachep->size = size;
2465
	cachep->reciprocal_buffer_size = reciprocal_value(size);
L
Linus Torvalds 已提交
2466

2467
	if (flags & CFLGS_OFF_SLAB) {
2468
		cachep->slabp_cache = kmem_find_general_cachep(slab_size, 0u);
2469 2470 2471 2472 2473 2474 2475
		/*
		 * This is a possibility for one of the malloc_sizes caches.
		 * But since we go off slab only for object size greater than
		 * PAGE_SIZE/8, and malloc_sizes gets created in ascending order,
		 * this should not happen at all.
		 * But leave a BUG_ON for some lucky dude.
		 */
2476
		BUG_ON(ZERO_OR_NULL_PTR(cachep->slabp_cache));
2477
	}
L
Linus Torvalds 已提交
2478 2479 2480
	cachep->ctor = ctor;
	cachep->name = name;

2481
	if (setup_cpu_cache(cachep, gfp)) {
2482
		__kmem_cache_destroy(cachep);
2483
		return NULL;
2484
	}
L
Linus Torvalds 已提交
2485

2486 2487 2488 2489 2490 2491 2492 2493 2494 2495
	if (flags & SLAB_DEBUG_OBJECTS) {
		/*
		 * Would deadlock through slab_destroy()->call_rcu()->
		 * debug_object_activate()->kmem_cache_alloc().
		 */
		WARN_ON_ONCE(flags & SLAB_DESTROY_BY_RCU);

		slab_set_debugobj_lock_classes(cachep);
	}

L
Linus Torvalds 已提交
2496
	/* cache setup completed, link it into the list */
2497
	list_add(&cachep->list, &slab_caches);
A
Andrew Morton 已提交
2498
oops:
2499
	if (slab_is_available()) {
2500
		mutex_unlock(&slab_mutex);
2501 2502
		put_online_cpus();
	}
L
Linus Torvalds 已提交
2503 2504 2505 2506 2507 2508 2509 2510 2511 2512 2513 2514 2515 2516
	return cachep;
}

#if DEBUG
static void check_irq_off(void)
{
	BUG_ON(!irqs_disabled());
}

static void check_irq_on(void)
{
	BUG_ON(irqs_disabled());
}

2517
static void check_spinlock_acquired(struct kmem_cache *cachep)
L
Linus Torvalds 已提交
2518 2519 2520
{
#ifdef CONFIG_SMP
	check_irq_off();
2521
	assert_spin_locked(&cachep->nodelists[numa_mem_id()]->list_lock);
L
Linus Torvalds 已提交
2522 2523
#endif
}
2524

2525
static void check_spinlock_acquired_node(struct kmem_cache *cachep, int node)
2526 2527 2528 2529 2530 2531 2532
{
#ifdef CONFIG_SMP
	check_irq_off();
	assert_spin_locked(&cachep->nodelists[node]->list_lock);
#endif
}

L
Linus Torvalds 已提交
2533 2534 2535 2536
#else
#define check_irq_off()	do { } while(0)
#define check_irq_on()	do { } while(0)
#define check_spinlock_acquired(x) do { } while(0)
2537
#define check_spinlock_acquired_node(x, y) do { } while(0)
L
Linus Torvalds 已提交
2538 2539
#endif

2540 2541 2542 2543
static void drain_array(struct kmem_cache *cachep, struct kmem_list3 *l3,
			struct array_cache *ac,
			int force, int node);

L
Linus Torvalds 已提交
2544 2545
static void do_drain(void *arg)
{
A
Andrew Morton 已提交
2546
	struct kmem_cache *cachep = arg;
L
Linus Torvalds 已提交
2547
	struct array_cache *ac;
2548
	int node = numa_mem_id();
L
Linus Torvalds 已提交
2549 2550

	check_irq_off();
2551
	ac = cpu_cache_get(cachep);
2552 2553 2554
	spin_lock(&cachep->nodelists[node]->list_lock);
	free_block(cachep, ac->entry, ac->avail, node);
	spin_unlock(&cachep->nodelists[node]->list_lock);
L
Linus Torvalds 已提交
2555 2556 2557
	ac->avail = 0;
}

2558
static void drain_cpu_caches(struct kmem_cache *cachep)
L
Linus Torvalds 已提交
2559
{
2560 2561 2562
	struct kmem_list3 *l3;
	int node;

2563
	on_each_cpu(do_drain, cachep, 1);
L
Linus Torvalds 已提交
2564
	check_irq_on();
P
Pekka Enberg 已提交
2565
	for_each_online_node(node) {
2566
		l3 = cachep->nodelists[node];
2567 2568 2569 2570 2571 2572 2573
		if (l3 && l3->alien)
			drain_alien_cache(cachep, l3->alien);
	}

	for_each_online_node(node) {
		l3 = cachep->nodelists[node];
		if (l3)
2574
			drain_array(cachep, l3, l3->shared, 1, node);
2575
	}
L
Linus Torvalds 已提交
2576 2577
}

2578 2579 2580 2581 2582 2583 2584 2585
/*
 * Remove slabs from the list of free slabs.
 * Specify the number of slabs to drain in tofree.
 *
 * Returns the actual number of slabs released.
 */
static int drain_freelist(struct kmem_cache *cache,
			struct kmem_list3 *l3, int tofree)
L
Linus Torvalds 已提交
2586
{
2587 2588
	struct list_head *p;
	int nr_freed;
L
Linus Torvalds 已提交
2589 2590
	struct slab *slabp;

2591 2592
	nr_freed = 0;
	while (nr_freed < tofree && !list_empty(&l3->slabs_free)) {
L
Linus Torvalds 已提交
2593

2594
		spin_lock_irq(&l3->list_lock);
2595
		p = l3->slabs_free.prev;
2596 2597 2598 2599
		if (p == &l3->slabs_free) {
			spin_unlock_irq(&l3->list_lock);
			goto out;
		}
L
Linus Torvalds 已提交
2600

2601
		slabp = list_entry(p, struct slab, list);
L
Linus Torvalds 已提交
2602
#if DEBUG
2603
		BUG_ON(slabp->inuse);
L
Linus Torvalds 已提交
2604 2605
#endif
		list_del(&slabp->list);
2606 2607 2608 2609 2610
		/*
		 * Safe to drop the lock. The slab is no longer linked
		 * to the cache.
		 */
		l3->free_objects -= cache->num;
2611
		spin_unlock_irq(&l3->list_lock);
2612 2613
		slab_destroy(cache, slabp);
		nr_freed++;
L
Linus Torvalds 已提交
2614
	}
2615 2616
out:
	return nr_freed;
L
Linus Torvalds 已提交
2617 2618
}

2619
/* Called with slab_mutex held to protect against cpu hotplug */
2620
static int __cache_shrink(struct kmem_cache *cachep)
2621 2622 2623 2624 2625 2626 2627 2628 2629
{
	int ret = 0, i = 0;
	struct kmem_list3 *l3;

	drain_cpu_caches(cachep);

	check_irq_on();
	for_each_online_node(i) {
		l3 = cachep->nodelists[i];
2630 2631 2632 2633 2634 2635 2636
		if (!l3)
			continue;

		drain_freelist(cachep, l3, l3->free_objects);

		ret += !list_empty(&l3->slabs_full) ||
			!list_empty(&l3->slabs_partial);
2637 2638 2639 2640
	}
	return (ret ? 1 : 0);
}

L
Linus Torvalds 已提交
2641 2642 2643 2644 2645 2646 2647
/**
 * kmem_cache_shrink - Shrink a cache.
 * @cachep: The cache to shrink.
 *
 * Releases as many slabs as possible for a cache.
 * To help debugging, a zero exit status indicates all slabs were released.
 */
2648
int kmem_cache_shrink(struct kmem_cache *cachep)
L
Linus Torvalds 已提交
2649
{
2650
	int ret;
2651
	BUG_ON(!cachep || in_interrupt());
L
Linus Torvalds 已提交
2652

2653
	get_online_cpus();
2654
	mutex_lock(&slab_mutex);
2655
	ret = __cache_shrink(cachep);
2656
	mutex_unlock(&slab_mutex);
2657
	put_online_cpus();
2658
	return ret;
L
Linus Torvalds 已提交
2659 2660 2661 2662 2663 2664 2665
}
EXPORT_SYMBOL(kmem_cache_shrink);

/**
 * kmem_cache_destroy - delete a cache
 * @cachep: the cache to destroy
 *
2666
 * Remove a &struct kmem_cache object from the slab cache.
L
Linus Torvalds 已提交
2667 2668 2669 2670 2671 2672 2673 2674
 *
 * It is expected this function will be called by a module when it is
 * unloaded.  This will remove the cache completely, and avoid a duplicate
 * cache being allocated each time a module is loaded and unloaded, if the
 * module doesn't have persistent in-kernel storage across loads and unloads.
 *
 * The cache must be empty before calling this function.
 *
L
Lucas De Marchi 已提交
2675
 * The caller must guarantee that no one will allocate memory from the cache
L
Linus Torvalds 已提交
2676 2677
 * during the kmem_cache_destroy().
 */
2678
void kmem_cache_destroy(struct kmem_cache *cachep)
L
Linus Torvalds 已提交
2679
{
2680
	BUG_ON(!cachep || in_interrupt());
L
Linus Torvalds 已提交
2681 2682

	/* Find the cache in the chain of caches. */
2683
	get_online_cpus();
2684
	mutex_lock(&slab_mutex);
L
Linus Torvalds 已提交
2685 2686 2687
	/*
	 * the chain is never empty, cache_cache is never destroyed
	 */
2688
	list_del(&cachep->list);
L
Linus Torvalds 已提交
2689 2690
	if (__cache_shrink(cachep)) {
		slab_error(cachep, "Can't free all objects");
2691 2692
		list_add(&cachep->list, &slab_caches);
		mutex_unlock(&slab_mutex);
2693
		put_online_cpus();
2694
		return;
L
Linus Torvalds 已提交
2695 2696 2697
	}

	if (unlikely(cachep->flags & SLAB_DESTROY_BY_RCU))
2698
		rcu_barrier();
L
Linus Torvalds 已提交
2699

2700
	__kmem_cache_destroy(cachep);
2701
	mutex_unlock(&slab_mutex);
2702
	put_online_cpus();
L
Linus Torvalds 已提交
2703 2704 2705
}
EXPORT_SYMBOL(kmem_cache_destroy);

2706 2707 2708 2709 2710 2711 2712 2713 2714 2715 2716
/*
 * Get the memory for a slab management obj.
 * For a slab cache when the slab descriptor is off-slab, slab descriptors
 * always come from malloc_sizes caches.  The slab descriptor cannot
 * come from the same cache which is getting created because,
 * when we are searching for an appropriate cache for these
 * descriptors in kmem_cache_create, we search through the malloc_sizes array.
 * If we are creating a malloc_sizes cache here it would not be visible to
 * kmem_find_general_cachep till the initialization is complete.
 * Hence we cannot have slabp_cache same as the original cache.
 */
2717
static struct slab *alloc_slabmgmt(struct kmem_cache *cachep, void *objp,
2718 2719
				   int colour_off, gfp_t local_flags,
				   int nodeid)
L
Linus Torvalds 已提交
2720 2721
{
	struct slab *slabp;
P
Pekka Enberg 已提交
2722

L
Linus Torvalds 已提交
2723 2724
	if (OFF_SLAB(cachep)) {
		/* Slab management obj is off-slab. */
2725
		slabp = kmem_cache_alloc_node(cachep->slabp_cache,
2726
					      local_flags, nodeid);
2727 2728 2729 2730 2731 2732
		/*
		 * If the first object in the slab is leaked (it's allocated
		 * but no one has a reference to it), we want to make sure
		 * kmemleak does not treat the ->s_mem pointer as a reference
		 * to the object. Otherwise we will not report the leak.
		 */
2733 2734
		kmemleak_scan_area(&slabp->list, sizeof(struct list_head),
				   local_flags);
L
Linus Torvalds 已提交
2735 2736 2737
		if (!slabp)
			return NULL;
	} else {
P
Pekka Enberg 已提交
2738
		slabp = objp + colour_off;
L
Linus Torvalds 已提交
2739 2740 2741 2742
		colour_off += cachep->slab_size;
	}
	slabp->inuse = 0;
	slabp->colouroff = colour_off;
P
Pekka Enberg 已提交
2743
	slabp->s_mem = objp + colour_off;
2744
	slabp->nodeid = nodeid;
2745
	slabp->free = 0;
L
Linus Torvalds 已提交
2746 2747 2748 2749 2750
	return slabp;
}

static inline kmem_bufctl_t *slab_bufctl(struct slab *slabp)
{
P
Pekka Enberg 已提交
2751
	return (kmem_bufctl_t *) (slabp + 1);
L
Linus Torvalds 已提交
2752 2753
}

2754
static void cache_init_objs(struct kmem_cache *cachep,
C
Christoph Lameter 已提交
2755
			    struct slab *slabp)
L
Linus Torvalds 已提交
2756 2757 2758 2759
{
	int i;

	for (i = 0; i < cachep->num; i++) {
2760
		void *objp = index_to_obj(cachep, slabp, i);
L
Linus Torvalds 已提交
2761 2762 2763 2764 2765 2766 2767 2768 2769 2770 2771 2772
#if DEBUG
		/* need to poison the objs? */
		if (cachep->flags & SLAB_POISON)
			poison_obj(cachep, objp, POISON_FREE);
		if (cachep->flags & SLAB_STORE_USER)
			*dbg_userword(cachep, objp) = NULL;

		if (cachep->flags & SLAB_RED_ZONE) {
			*dbg_redzone1(cachep, objp) = RED_INACTIVE;
			*dbg_redzone2(cachep, objp) = RED_INACTIVE;
		}
		/*
A
Andrew Morton 已提交
2773 2774 2775
		 * Constructors are not allowed to allocate memory from the same
		 * cache which they are a constructor for.  Otherwise, deadlock.
		 * They must also be threaded.
L
Linus Torvalds 已提交
2776 2777
		 */
		if (cachep->ctor && !(cachep->flags & SLAB_POISON))
2778
			cachep->ctor(objp + obj_offset(cachep));
L
Linus Torvalds 已提交
2779 2780 2781 2782

		if (cachep->flags & SLAB_RED_ZONE) {
			if (*dbg_redzone2(cachep, objp) != RED_INACTIVE)
				slab_error(cachep, "constructor overwrote the"
P
Pekka Enberg 已提交
2783
					   " end of an object");
L
Linus Torvalds 已提交
2784 2785
			if (*dbg_redzone1(cachep, objp) != RED_INACTIVE)
				slab_error(cachep, "constructor overwrote the"
P
Pekka Enberg 已提交
2786
					   " start of an object");
L
Linus Torvalds 已提交
2787
		}
2788
		if ((cachep->size % PAGE_SIZE) == 0 &&
A
Andrew Morton 已提交
2789
			    OFF_SLAB(cachep) && cachep->flags & SLAB_POISON)
P
Pekka Enberg 已提交
2790
			kernel_map_pages(virt_to_page(objp),
2791
					 cachep->size / PAGE_SIZE, 0);
L
Linus Torvalds 已提交
2792 2793
#else
		if (cachep->ctor)
2794
			cachep->ctor(objp);
L
Linus Torvalds 已提交
2795
#endif
P
Pekka Enberg 已提交
2796
		slab_bufctl(slabp)[i] = i + 1;
L
Linus Torvalds 已提交
2797
	}
P
Pekka Enberg 已提交
2798
	slab_bufctl(slabp)[i - 1] = BUFCTL_END;
L
Linus Torvalds 已提交
2799 2800
}

2801
static void kmem_flagcheck(struct kmem_cache *cachep, gfp_t flags)
L
Linus Torvalds 已提交
2802
{
2803 2804
	if (CONFIG_ZONE_DMA_FLAG) {
		if (flags & GFP_DMA)
2805
			BUG_ON(!(cachep->allocflags & GFP_DMA));
2806
		else
2807
			BUG_ON(cachep->allocflags & GFP_DMA);
2808
	}
L
Linus Torvalds 已提交
2809 2810
}

A
Andrew Morton 已提交
2811 2812
static void *slab_get_obj(struct kmem_cache *cachep, struct slab *slabp,
				int nodeid)
2813
{
2814
	void *objp = index_to_obj(cachep, slabp, slabp->free);
2815 2816 2817 2818 2819 2820 2821 2822 2823 2824 2825 2826 2827
	kmem_bufctl_t next;

	slabp->inuse++;
	next = slab_bufctl(slabp)[slabp->free];
#if DEBUG
	slab_bufctl(slabp)[slabp->free] = BUFCTL_FREE;
	WARN_ON(slabp->nodeid != nodeid);
#endif
	slabp->free = next;

	return objp;
}

A
Andrew Morton 已提交
2828 2829
static void slab_put_obj(struct kmem_cache *cachep, struct slab *slabp,
				void *objp, int nodeid)
2830
{
2831
	unsigned int objnr = obj_to_index(cachep, slabp, objp);
2832 2833 2834 2835 2836

#if DEBUG
	/* Verify that the slab belongs to the intended node */
	WARN_ON(slabp->nodeid != nodeid);

2837
	if (slab_bufctl(slabp)[objnr] + 1 <= SLAB_LIMIT + 1) {
2838
		printk(KERN_ERR "slab: double free detected in cache "
A
Andrew Morton 已提交
2839
				"'%s', objp %p\n", cachep->name, objp);
2840 2841 2842 2843 2844 2845 2846 2847
		BUG();
	}
#endif
	slab_bufctl(slabp)[objnr] = slabp->free;
	slabp->free = objnr;
	slabp->inuse--;
}

2848 2849 2850
/*
 * Map pages beginning at addr to the given cache and slab. This is required
 * for the slab allocator to be able to lookup the cache and slab of a
2851
 * virtual address for kfree, ksize, and slab debugging.
2852 2853 2854
 */
static void slab_map_pages(struct kmem_cache *cache, struct slab *slab,
			   void *addr)
L
Linus Torvalds 已提交
2855
{
2856
	int nr_pages;
L
Linus Torvalds 已提交
2857 2858
	struct page *page;

2859
	page = virt_to_page(addr);
2860

2861
	nr_pages = 1;
2862
	if (likely(!PageCompound(page)))
2863 2864
		nr_pages <<= cache->gfporder;

L
Linus Torvalds 已提交
2865
	do {
C
Christoph Lameter 已提交
2866 2867
		page->slab_cache = cache;
		page->slab_page = slab;
L
Linus Torvalds 已提交
2868
		page++;
2869
	} while (--nr_pages);
L
Linus Torvalds 已提交
2870 2871 2872 2873 2874 2875
}

/*
 * Grow (by 1) the number of slabs within a cache.  This is called by
 * kmem_cache_alloc() when there are no active objs left in a cache.
 */
2876 2877
static int cache_grow(struct kmem_cache *cachep,
		gfp_t flags, int nodeid, void *objp)
L
Linus Torvalds 已提交
2878
{
P
Pekka Enberg 已提交
2879 2880 2881
	struct slab *slabp;
	size_t offset;
	gfp_t local_flags;
2882
	struct kmem_list3 *l3;
L
Linus Torvalds 已提交
2883

A
Andrew Morton 已提交
2884 2885 2886
	/*
	 * Be lazy and only check for valid flags here,  keeping it out of the
	 * critical path in kmem_cache_alloc().
L
Linus Torvalds 已提交
2887
	 */
C
Christoph Lameter 已提交
2888 2889
	BUG_ON(flags & GFP_SLAB_BUG_MASK);
	local_flags = flags & (GFP_CONSTRAINT_MASK|GFP_RECLAIM_MASK);
L
Linus Torvalds 已提交
2890

2891
	/* Take the l3 list lock to change the colour_next on this node */
L
Linus Torvalds 已提交
2892
	check_irq_off();
2893 2894
	l3 = cachep->nodelists[nodeid];
	spin_lock(&l3->list_lock);
L
Linus Torvalds 已提交
2895 2896

	/* Get colour for the slab, and cal the next value. */
2897 2898 2899 2900 2901
	offset = l3->colour_next;
	l3->colour_next++;
	if (l3->colour_next >= cachep->colour)
		l3->colour_next = 0;
	spin_unlock(&l3->list_lock);
L
Linus Torvalds 已提交
2902

2903
	offset *= cachep->colour_off;
L
Linus Torvalds 已提交
2904 2905 2906 2907 2908 2909 2910 2911 2912 2913 2914 2915

	if (local_flags & __GFP_WAIT)
		local_irq_enable();

	/*
	 * The test for missing atomic flag is performed here, rather than
	 * the more obvious place, simply to reduce the critical path length
	 * in kmem_cache_alloc(). If a caller is seriously mis-behaving they
	 * will eventually be caught here (where it matters).
	 */
	kmem_flagcheck(cachep, flags);

A
Andrew Morton 已提交
2916 2917 2918
	/*
	 * Get mem for the objs.  Attempt to allocate a physical page from
	 * 'nodeid'.
2919
	 */
2920
	if (!objp)
2921
		objp = kmem_getpages(cachep, local_flags, nodeid);
A
Andrew Morton 已提交
2922
	if (!objp)
L
Linus Torvalds 已提交
2923 2924 2925
		goto failed;

	/* Get slab management. */
2926
	slabp = alloc_slabmgmt(cachep, objp, offset,
C
Christoph Lameter 已提交
2927
			local_flags & ~GFP_CONSTRAINT_MASK, nodeid);
A
Andrew Morton 已提交
2928
	if (!slabp)
L
Linus Torvalds 已提交
2929 2930
		goto opps1;

2931
	slab_map_pages(cachep, slabp, objp);
L
Linus Torvalds 已提交
2932

C
Christoph Lameter 已提交
2933
	cache_init_objs(cachep, slabp);
L
Linus Torvalds 已提交
2934 2935 2936 2937

	if (local_flags & __GFP_WAIT)
		local_irq_disable();
	check_irq_off();
2938
	spin_lock(&l3->list_lock);
L
Linus Torvalds 已提交
2939 2940

	/* Make slab active. */
2941
	list_add_tail(&slabp->list, &(l3->slabs_free));
L
Linus Torvalds 已提交
2942
	STATS_INC_GROWN(cachep);
2943 2944
	l3->free_objects += cachep->num;
	spin_unlock(&l3->list_lock);
L
Linus Torvalds 已提交
2945
	return 1;
A
Andrew Morton 已提交
2946
opps1:
L
Linus Torvalds 已提交
2947
	kmem_freepages(cachep, objp);
A
Andrew Morton 已提交
2948
failed:
L
Linus Torvalds 已提交
2949 2950 2951 2952 2953 2954 2955 2956 2957 2958 2959 2960 2961 2962 2963 2964
	if (local_flags & __GFP_WAIT)
		local_irq_disable();
	return 0;
}

#if DEBUG

/*
 * Perform extra freeing checks:
 * - detect bad pointers.
 * - POISON/RED_ZONE checking
 */
static void kfree_debugcheck(const void *objp)
{
	if (!virt_addr_valid(objp)) {
		printk(KERN_ERR "kfree_debugcheck: out of range ptr %lxh.\n",
P
Pekka Enberg 已提交
2965 2966
		       (unsigned long)objp);
		BUG();
L
Linus Torvalds 已提交
2967 2968 2969
	}
}

2970 2971
static inline void verify_redzone_free(struct kmem_cache *cache, void *obj)
{
2972
	unsigned long long redzone1, redzone2;
2973 2974 2975 2976 2977 2978 2979 2980 2981 2982 2983 2984 2985 2986 2987

	redzone1 = *dbg_redzone1(cache, obj);
	redzone2 = *dbg_redzone2(cache, obj);

	/*
	 * Redzone is ok.
	 */
	if (redzone1 == RED_ACTIVE && redzone2 == RED_ACTIVE)
		return;

	if (redzone1 == RED_INACTIVE && redzone2 == RED_INACTIVE)
		slab_error(cache, "double free detected");
	else
		slab_error(cache, "memory outside object was overwritten");

2988
	printk(KERN_ERR "%p: redzone 1:0x%llx, redzone 2:0x%llx.\n",
2989 2990 2991
			obj, redzone1, redzone2);
}

2992
static void *cache_free_debugcheck(struct kmem_cache *cachep, void *objp,
P
Pekka Enberg 已提交
2993
				   void *caller)
L
Linus Torvalds 已提交
2994 2995 2996 2997 2998
{
	struct page *page;
	unsigned int objnr;
	struct slab *slabp;

2999 3000
	BUG_ON(virt_to_cache(objp) != cachep);

3001
	objp -= obj_offset(cachep);
L
Linus Torvalds 已提交
3002
	kfree_debugcheck(objp);
3003
	page = virt_to_head_page(objp);
L
Linus Torvalds 已提交
3004

C
Christoph Lameter 已提交
3005
	slabp = page->slab_page;
L
Linus Torvalds 已提交
3006 3007

	if (cachep->flags & SLAB_RED_ZONE) {
3008
		verify_redzone_free(cachep, objp);
L
Linus Torvalds 已提交
3009 3010 3011 3012 3013 3014
		*dbg_redzone1(cachep, objp) = RED_INACTIVE;
		*dbg_redzone2(cachep, objp) = RED_INACTIVE;
	}
	if (cachep->flags & SLAB_STORE_USER)
		*dbg_userword(cachep, objp) = caller;

3015
	objnr = obj_to_index(cachep, slabp, objp);
L
Linus Torvalds 已提交
3016 3017

	BUG_ON(objnr >= cachep->num);
3018
	BUG_ON(objp != index_to_obj(cachep, slabp, objnr));
L
Linus Torvalds 已提交
3019

3020 3021 3022
#ifdef CONFIG_DEBUG_SLAB_LEAK
	slab_bufctl(slabp)[objnr] = BUFCTL_FREE;
#endif
L
Linus Torvalds 已提交
3023 3024
	if (cachep->flags & SLAB_POISON) {
#ifdef CONFIG_DEBUG_PAGEALLOC
3025
		if ((cachep->size % PAGE_SIZE)==0 && OFF_SLAB(cachep)) {
L
Linus Torvalds 已提交
3026
			store_stackinfo(cachep, objp, (unsigned long)caller);
P
Pekka Enberg 已提交
3027
			kernel_map_pages(virt_to_page(objp),
3028
					 cachep->size / PAGE_SIZE, 0);
L
Linus Torvalds 已提交
3029 3030 3031 3032 3033 3034 3035 3036 3037 3038
		} else {
			poison_obj(cachep, objp, POISON_FREE);
		}
#else
		poison_obj(cachep, objp, POISON_FREE);
#endif
	}
	return objp;
}

3039
static void check_slabp(struct kmem_cache *cachep, struct slab *slabp)
L
Linus Torvalds 已提交
3040 3041 3042
{
	kmem_bufctl_t i;
	int entries = 0;
P
Pekka Enberg 已提交
3043

L
Linus Torvalds 已提交
3044 3045 3046 3047 3048 3049 3050
	/* Check slab's freelist to see if this obj is there. */
	for (i = slabp->free; i != BUFCTL_END; i = slab_bufctl(slabp)[i]) {
		entries++;
		if (entries > cachep->num || i >= cachep->num)
			goto bad;
	}
	if (entries != cachep->num - slabp->inuse) {
A
Andrew Morton 已提交
3051 3052
bad:
		printk(KERN_ERR "slab: Internal list corruption detected in "
3053 3054 3055
			"cache '%s'(%d), slabp %p(%d). Tainted(%s). Hexdump:\n",
			cachep->name, cachep->num, slabp, slabp->inuse,
			print_tainted());
3056 3057 3058
		print_hex_dump(KERN_ERR, "", DUMP_PREFIX_OFFSET, 16, 1, slabp,
			sizeof(*slabp) + cachep->num * sizeof(kmem_bufctl_t),
			1);
L
Linus Torvalds 已提交
3059 3060 3061 3062 3063 3064 3065 3066 3067
		BUG();
	}
}
#else
#define kfree_debugcheck(x) do { } while(0)
#define cache_free_debugcheck(x,objp,z) (objp)
#define check_slabp(x,y) do { } while(0)
#endif

3068
static void *cache_alloc_refill(struct kmem_cache *cachep, gfp_t flags)
L
Linus Torvalds 已提交
3069 3070 3071 3072
{
	int batchcount;
	struct kmem_list3 *l3;
	struct array_cache *ac;
P
Pekka Enberg 已提交
3073 3074
	int node;

3075
retry:
L
Linus Torvalds 已提交
3076
	check_irq_off();
3077
	node = numa_mem_id();
3078
	ac = cpu_cache_get(cachep);
L
Linus Torvalds 已提交
3079 3080
	batchcount = ac->batchcount;
	if (!ac->touched && batchcount > BATCHREFILL_LIMIT) {
A
Andrew Morton 已提交
3081 3082 3083 3084
		/*
		 * If there was little recent activity on this cache, then
		 * perform only a partial refill.  Otherwise we could generate
		 * refill bouncing.
L
Linus Torvalds 已提交
3085 3086 3087
		 */
		batchcount = BATCHREFILL_LIMIT;
	}
P
Pekka Enberg 已提交
3088
	l3 = cachep->nodelists[node];
3089 3090 3091

	BUG_ON(ac->avail > 0 || !l3);
	spin_lock(&l3->list_lock);
L
Linus Torvalds 已提交
3092

3093
	/* See if we can refill from the shared array */
3094 3095
	if (l3->shared && transfer_objects(ac, l3->shared, batchcount)) {
		l3->shared->touched = 1;
3096
		goto alloc_done;
3097
	}
3098

L
Linus Torvalds 已提交
3099 3100 3101 3102 3103 3104 3105 3106 3107 3108 3109 3110 3111 3112 3113
	while (batchcount > 0) {
		struct list_head *entry;
		struct slab *slabp;
		/* Get slab alloc is to come from. */
		entry = l3->slabs_partial.next;
		if (entry == &l3->slabs_partial) {
			l3->free_touched = 1;
			entry = l3->slabs_free.next;
			if (entry == &l3->slabs_free)
				goto must_grow;
		}

		slabp = list_entry(entry, struct slab, list);
		check_slabp(cachep, slabp);
		check_spinlock_acquired(cachep);
3114 3115 3116 3117 3118 3119

		/*
		 * The slab was either on partial or free list so
		 * there must be at least one object available for
		 * allocation.
		 */
3120
		BUG_ON(slabp->inuse >= cachep->num);
3121

L
Linus Torvalds 已提交
3122 3123 3124 3125 3126
		while (slabp->inuse < cachep->num && batchcount--) {
			STATS_INC_ALLOCED(cachep);
			STATS_INC_ACTIVE(cachep);
			STATS_SET_HIGH(cachep);

3127
			ac->entry[ac->avail++] = slab_get_obj(cachep, slabp,
P
Pekka Enberg 已提交
3128
							    node);
L
Linus Torvalds 已提交
3129 3130 3131 3132 3133 3134 3135 3136 3137 3138 3139
		}
		check_slabp(cachep, slabp);

		/* move slabp to correct slabp list: */
		list_del(&slabp->list);
		if (slabp->free == BUFCTL_END)
			list_add(&slabp->list, &l3->slabs_full);
		else
			list_add(&slabp->list, &l3->slabs_partial);
	}

A
Andrew Morton 已提交
3140
must_grow:
L
Linus Torvalds 已提交
3141
	l3->free_objects -= ac->avail;
A
Andrew Morton 已提交
3142
alloc_done:
3143
	spin_unlock(&l3->list_lock);
L
Linus Torvalds 已提交
3144 3145 3146

	if (unlikely(!ac->avail)) {
		int x;
3147
		x = cache_grow(cachep, flags | GFP_THISNODE, node, NULL);
3148

A
Andrew Morton 已提交
3149
		/* cache_grow can reenable interrupts, then ac could change. */
3150
		ac = cpu_cache_get(cachep);
A
Andrew Morton 已提交
3151
		if (!x && ac->avail == 0)	/* no objects in sight? abort */
L
Linus Torvalds 已提交
3152 3153
			return NULL;

A
Andrew Morton 已提交
3154
		if (!ac->avail)		/* objects refilled by interrupt? */
L
Linus Torvalds 已提交
3155 3156 3157
			goto retry;
	}
	ac->touched = 1;
3158
	return ac->entry[--ac->avail];
L
Linus Torvalds 已提交
3159 3160
}

A
Andrew Morton 已提交
3161 3162
static inline void cache_alloc_debugcheck_before(struct kmem_cache *cachep,
						gfp_t flags)
L
Linus Torvalds 已提交
3163 3164 3165 3166 3167 3168 3169 3170
{
	might_sleep_if(flags & __GFP_WAIT);
#if DEBUG
	kmem_flagcheck(cachep, flags);
#endif
}

#if DEBUG
A
Andrew Morton 已提交
3171 3172
static void *cache_alloc_debugcheck_after(struct kmem_cache *cachep,
				gfp_t flags, void *objp, void *caller)
L
Linus Torvalds 已提交
3173
{
P
Pekka Enberg 已提交
3174
	if (!objp)
L
Linus Torvalds 已提交
3175
		return objp;
P
Pekka Enberg 已提交
3176
	if (cachep->flags & SLAB_POISON) {
L
Linus Torvalds 已提交
3177
#ifdef CONFIG_DEBUG_PAGEALLOC
3178
		if ((cachep->size % PAGE_SIZE) == 0 && OFF_SLAB(cachep))
P
Pekka Enberg 已提交
3179
			kernel_map_pages(virt_to_page(objp),
3180
					 cachep->size / PAGE_SIZE, 1);
L
Linus Torvalds 已提交
3181 3182 3183 3184 3185 3186 3187 3188 3189 3190 3191
		else
			check_poison_obj(cachep, objp);
#else
		check_poison_obj(cachep, objp);
#endif
		poison_obj(cachep, objp, POISON_INUSE);
	}
	if (cachep->flags & SLAB_STORE_USER)
		*dbg_userword(cachep, objp) = caller;

	if (cachep->flags & SLAB_RED_ZONE) {
A
Andrew Morton 已提交
3192 3193 3194 3195
		if (*dbg_redzone1(cachep, objp) != RED_INACTIVE ||
				*dbg_redzone2(cachep, objp) != RED_INACTIVE) {
			slab_error(cachep, "double free, or memory outside"
						" object was overwritten");
P
Pekka Enberg 已提交
3196
			printk(KERN_ERR
3197
				"%p: redzone 1:0x%llx, redzone 2:0x%llx\n",
A
Andrew Morton 已提交
3198 3199
				objp, *dbg_redzone1(cachep, objp),
				*dbg_redzone2(cachep, objp));
L
Linus Torvalds 已提交
3200 3201 3202 3203
		}
		*dbg_redzone1(cachep, objp) = RED_ACTIVE;
		*dbg_redzone2(cachep, objp) = RED_ACTIVE;
	}
3204 3205 3206 3207 3208
#ifdef CONFIG_DEBUG_SLAB_LEAK
	{
		struct slab *slabp;
		unsigned objnr;

C
Christoph Lameter 已提交
3209
		slabp = virt_to_head_page(objp)->slab_page;
3210
		objnr = (unsigned)(objp - slabp->s_mem) / cachep->size;
3211 3212 3213
		slab_bufctl(slabp)[objnr] = BUFCTL_ACTIVE;
	}
#endif
3214
	objp += obj_offset(cachep);
3215
	if (cachep->ctor && cachep->flags & SLAB_POISON)
3216
		cachep->ctor(objp);
T
Tetsuo Handa 已提交
3217 3218
	if (ARCH_SLAB_MINALIGN &&
	    ((unsigned long)objp & (ARCH_SLAB_MINALIGN-1))) {
3219
		printk(KERN_ERR "0x%p: not aligned to ARCH_SLAB_MINALIGN=%d\n",
H
Hugh Dickins 已提交
3220
		       objp, (int)ARCH_SLAB_MINALIGN);
3221
	}
L
Linus Torvalds 已提交
3222 3223 3224 3225 3226 3227
	return objp;
}
#else
#define cache_alloc_debugcheck_after(a,b,objp,d) (objp)
#endif

A
Akinobu Mita 已提交
3228
static bool slab_should_failslab(struct kmem_cache *cachep, gfp_t flags)
3229 3230
{
	if (cachep == &cache_cache)
A
Akinobu Mita 已提交
3231
		return false;
3232

3233
	return should_failslab(cachep->object_size, flags, cachep->flags);
3234 3235
}

3236
static inline void *____cache_alloc(struct kmem_cache *cachep, gfp_t flags)
L
Linus Torvalds 已提交
3237
{
P
Pekka Enberg 已提交
3238
	void *objp;
L
Linus Torvalds 已提交
3239 3240
	struct array_cache *ac;

3241
	check_irq_off();
3242

3243
	ac = cpu_cache_get(cachep);
L
Linus Torvalds 已提交
3244 3245 3246
	if (likely(ac->avail)) {
		STATS_INC_ALLOCHIT(cachep);
		ac->touched = 1;
3247
		objp = ac->entry[--ac->avail];
L
Linus Torvalds 已提交
3248 3249 3250
	} else {
		STATS_INC_ALLOCMISS(cachep);
		objp = cache_alloc_refill(cachep, flags);
3251 3252 3253 3254 3255
		/*
		 * the 'ac' may be updated by cache_alloc_refill(),
		 * and kmemleak_erase() requires its correct value.
		 */
		ac = cpu_cache_get(cachep);
L
Linus Torvalds 已提交
3256
	}
3257 3258 3259 3260 3261
	/*
	 * To avoid a false negative, if an object that is in one of the
	 * per-CPU caches is leaked, we need to make sure kmemleak doesn't
	 * treat the array pointers as a reference to the object.
	 */
3262 3263
	if (objp)
		kmemleak_erase(&ac->entry[ac->avail]);
3264 3265 3266
	return objp;
}

3267
#ifdef CONFIG_NUMA
3268
/*
3269
 * Try allocating on another node if PF_SPREAD_SLAB|PF_MEMPOLICY.
3270 3271 3272 3273 3274 3275 3276 3277
 *
 * If we are in_interrupt, then process context, including cpusets and
 * mempolicy, may not apply and should not be used for allocation policy.
 */
static void *alternate_node_alloc(struct kmem_cache *cachep, gfp_t flags)
{
	int nid_alloc, nid_here;

3278
	if (in_interrupt() || (flags & __GFP_THISNODE))
3279
		return NULL;
3280
	nid_alloc = nid_here = numa_mem_id();
3281
	if (cpuset_do_slab_mem_spread() && (cachep->flags & SLAB_MEM_SPREAD))
3282
		nid_alloc = cpuset_slab_spread_node();
3283
	else if (current->mempolicy)
3284
		nid_alloc = slab_node();
3285
	if (nid_alloc != nid_here)
3286
		return ____cache_alloc_node(cachep, flags, nid_alloc);
3287 3288 3289
	return NULL;
}

3290 3291
/*
 * Fallback function if there was no memory available and no objects on a
3292 3293 3294 3295 3296
 * certain node and fall back is permitted. First we scan all the
 * available nodelists for available objects. If that fails then we
 * perform an allocation without specifying a node. This allows the page
 * allocator to do its reclaim / fallback magic. We then insert the
 * slab into the proper nodelist and then allocate from it.
3297
 */
3298
static void *fallback_alloc(struct kmem_cache *cache, gfp_t flags)
3299
{
3300 3301
	struct zonelist *zonelist;
	gfp_t local_flags;
3302
	struct zoneref *z;
3303 3304
	struct zone *zone;
	enum zone_type high_zoneidx = gfp_zone(flags);
3305
	void *obj = NULL;
3306
	int nid;
3307
	unsigned int cpuset_mems_cookie;
3308 3309 3310 3311

	if (flags & __GFP_THISNODE)
		return NULL;

C
Christoph Lameter 已提交
3312
	local_flags = flags & (GFP_CONSTRAINT_MASK|GFP_RECLAIM_MASK);
3313

3314 3315
retry_cpuset:
	cpuset_mems_cookie = get_mems_allowed();
3316
	zonelist = node_zonelist(slab_node(), flags);
3317

3318 3319 3320 3321 3322
retry:
	/*
	 * Look through allowed nodes for objects available
	 * from existing per node queues.
	 */
3323 3324
	for_each_zone_zonelist(zone, z, zonelist, high_zoneidx) {
		nid = zone_to_nid(zone);
3325

3326
		if (cpuset_zone_allowed_hardwall(zone, flags) &&
3327
			cache->nodelists[nid] &&
3328
			cache->nodelists[nid]->free_objects) {
3329 3330
				obj = ____cache_alloc_node(cache,
					flags | GFP_THISNODE, nid);
3331 3332 3333
				if (obj)
					break;
		}
3334 3335
	}

3336
	if (!obj) {
3337 3338 3339 3340 3341 3342
		/*
		 * This allocation will be performed within the constraints
		 * of the current cpuset / memory policy requirements.
		 * We may trigger various forms of reclaim on the allowed
		 * set and go into memory reserves if necessary.
		 */
3343 3344 3345
		if (local_flags & __GFP_WAIT)
			local_irq_enable();
		kmem_flagcheck(cache, flags);
3346
		obj = kmem_getpages(cache, local_flags, numa_mem_id());
3347 3348
		if (local_flags & __GFP_WAIT)
			local_irq_disable();
3349 3350 3351 3352 3353 3354 3355 3356 3357 3358 3359 3360 3361 3362 3363 3364
		if (obj) {
			/*
			 * Insert into the appropriate per node queues
			 */
			nid = page_to_nid(virt_to_page(obj));
			if (cache_grow(cache, flags, nid, obj)) {
				obj = ____cache_alloc_node(cache,
					flags | GFP_THISNODE, nid);
				if (!obj)
					/*
					 * Another processor may allocate the
					 * objects in the slab since we are
					 * not holding any locks.
					 */
					goto retry;
			} else {
3365
				/* cache_grow already freed obj */
3366 3367 3368
				obj = NULL;
			}
		}
3369
	}
3370 3371 3372

	if (unlikely(!put_mems_allowed(cpuset_mems_cookie) && !obj))
		goto retry_cpuset;
3373 3374 3375
	return obj;
}

3376 3377
/*
 * A interface to enable slab creation on nodeid
L
Linus Torvalds 已提交
3378
 */
3379
static void *____cache_alloc_node(struct kmem_cache *cachep, gfp_t flags,
A
Andrew Morton 已提交
3380
				int nodeid)
3381 3382
{
	struct list_head *entry;
P
Pekka Enberg 已提交
3383 3384 3385 3386 3387 3388 3389 3390
	struct slab *slabp;
	struct kmem_list3 *l3;
	void *obj;
	int x;

	l3 = cachep->nodelists[nodeid];
	BUG_ON(!l3);

A
Andrew Morton 已提交
3391
retry:
3392
	check_irq_off();
P
Pekka Enberg 已提交
3393 3394 3395 3396 3397 3398 3399 3400 3401 3402 3403 3404 3405 3406 3407 3408 3409 3410 3411
	spin_lock(&l3->list_lock);
	entry = l3->slabs_partial.next;
	if (entry == &l3->slabs_partial) {
		l3->free_touched = 1;
		entry = l3->slabs_free.next;
		if (entry == &l3->slabs_free)
			goto must_grow;
	}

	slabp = list_entry(entry, struct slab, list);
	check_spinlock_acquired_node(cachep, nodeid);
	check_slabp(cachep, slabp);

	STATS_INC_NODEALLOCS(cachep);
	STATS_INC_ACTIVE(cachep);
	STATS_SET_HIGH(cachep);

	BUG_ON(slabp->inuse == cachep->num);

3412
	obj = slab_get_obj(cachep, slabp, nodeid);
P
Pekka Enberg 已提交
3413 3414 3415 3416 3417
	check_slabp(cachep, slabp);
	l3->free_objects--;
	/* move slabp to correct slabp list: */
	list_del(&slabp->list);

A
Andrew Morton 已提交
3418
	if (slabp->free == BUFCTL_END)
P
Pekka Enberg 已提交
3419
		list_add(&slabp->list, &l3->slabs_full);
A
Andrew Morton 已提交
3420
	else
P
Pekka Enberg 已提交
3421
		list_add(&slabp->list, &l3->slabs_partial);
3422

P
Pekka Enberg 已提交
3423 3424
	spin_unlock(&l3->list_lock);
	goto done;
3425

A
Andrew Morton 已提交
3426
must_grow:
P
Pekka Enberg 已提交
3427
	spin_unlock(&l3->list_lock);
3428
	x = cache_grow(cachep, flags | GFP_THISNODE, nodeid, NULL);
3429 3430
	if (x)
		goto retry;
L
Linus Torvalds 已提交
3431

3432
	return fallback_alloc(cachep, flags);
3433

A
Andrew Morton 已提交
3434
done:
P
Pekka Enberg 已提交
3435
	return obj;
3436
}
3437 3438 3439 3440 3441 3442 3443 3444 3445 3446 3447 3448 3449 3450 3451 3452 3453 3454 3455

/**
 * kmem_cache_alloc_node - Allocate an object on the specified node
 * @cachep: The cache to allocate from.
 * @flags: See kmalloc().
 * @nodeid: node number of the target node.
 * @caller: return address of caller, used for debug information
 *
 * Identical to kmem_cache_alloc but it will allocate memory on the given
 * node, which can improve the performance for cpu bound structures.
 *
 * Fallback to other node is possible if __GFP_THISNODE is not set.
 */
static __always_inline void *
__cache_alloc_node(struct kmem_cache *cachep, gfp_t flags, int nodeid,
		   void *caller)
{
	unsigned long save_flags;
	void *ptr;
3456
	int slab_node = numa_mem_id();
3457

3458
	flags &= gfp_allowed_mask;
3459

3460 3461
	lockdep_trace_alloc(flags);

A
Akinobu Mita 已提交
3462
	if (slab_should_failslab(cachep, flags))
3463 3464
		return NULL;

3465 3466 3467
	cache_alloc_debugcheck_before(cachep, flags);
	local_irq_save(save_flags);

A
Andrew Morton 已提交
3468
	if (nodeid == NUMA_NO_NODE)
3469
		nodeid = slab_node;
3470 3471 3472 3473 3474 3475 3476

	if (unlikely(!cachep->nodelists[nodeid])) {
		/* Node not bootstrapped yet */
		ptr = fallback_alloc(cachep, flags);
		goto out;
	}

3477
	if (nodeid == slab_node) {
3478 3479 3480 3481 3482 3483 3484 3485 3486 3487 3488 3489 3490 3491 3492
		/*
		 * Use the locally cached objects if possible.
		 * However ____cache_alloc does not allow fallback
		 * to other nodes. It may fail while we still have
		 * objects on other nodes available.
		 */
		ptr = ____cache_alloc(cachep, flags);
		if (ptr)
			goto out;
	}
	/* ___cache_alloc_node can fall back to other nodes */
	ptr = ____cache_alloc_node(cachep, flags, nodeid);
  out:
	local_irq_restore(save_flags);
	ptr = cache_alloc_debugcheck_after(cachep, flags, ptr, caller);
3493
	kmemleak_alloc_recursive(ptr, cachep->object_size, 1, cachep->flags,
3494
				 flags);
3495

P
Pekka Enberg 已提交
3496
	if (likely(ptr))
3497
		kmemcheck_slab_alloc(cachep, flags, ptr, cachep->object_size);
P
Pekka Enberg 已提交
3498

3499
	if (unlikely((flags & __GFP_ZERO) && ptr))
3500
		memset(ptr, 0, cachep->object_size);
3501

3502 3503 3504 3505 3506 3507 3508 3509 3510 3511 3512 3513 3514 3515 3516 3517 3518 3519 3520
	return ptr;
}

static __always_inline void *
__do_cache_alloc(struct kmem_cache *cache, gfp_t flags)
{
	void *objp;

	if (unlikely(current->flags & (PF_SPREAD_SLAB | PF_MEMPOLICY))) {
		objp = alternate_node_alloc(cache, flags);
		if (objp)
			goto out;
	}
	objp = ____cache_alloc(cache, flags);

	/*
	 * We may just have run out of memory on the local node.
	 * ____cache_alloc_node() knows how to locate memory on other nodes
	 */
3521 3522
	if (!objp)
		objp = ____cache_alloc_node(cache, flags, numa_mem_id());
3523 3524 3525 3526 3527 3528 3529 3530 3531 3532 3533 3534 3535 3536 3537 3538 3539 3540 3541 3542

  out:
	return objp;
}
#else

static __always_inline void *
__do_cache_alloc(struct kmem_cache *cachep, gfp_t flags)
{
	return ____cache_alloc(cachep, flags);
}

#endif /* CONFIG_NUMA */

static __always_inline void *
__cache_alloc(struct kmem_cache *cachep, gfp_t flags, void *caller)
{
	unsigned long save_flags;
	void *objp;

3543
	flags &= gfp_allowed_mask;
3544

3545 3546
	lockdep_trace_alloc(flags);

A
Akinobu Mita 已提交
3547
	if (slab_should_failslab(cachep, flags))
3548 3549
		return NULL;

3550 3551 3552 3553 3554
	cache_alloc_debugcheck_before(cachep, flags);
	local_irq_save(save_flags);
	objp = __do_cache_alloc(cachep, flags);
	local_irq_restore(save_flags);
	objp = cache_alloc_debugcheck_after(cachep, flags, objp, caller);
3555
	kmemleak_alloc_recursive(objp, cachep->object_size, 1, cachep->flags,
3556
				 flags);
3557 3558
	prefetchw(objp);

P
Pekka Enberg 已提交
3559
	if (likely(objp))
3560
		kmemcheck_slab_alloc(cachep, flags, objp, cachep->object_size);
P
Pekka Enberg 已提交
3561

3562
	if (unlikely((flags & __GFP_ZERO) && objp))
3563
		memset(objp, 0, cachep->object_size);
3564

3565 3566
	return objp;
}
3567 3568 3569 3570

/*
 * Caller needs to acquire correct kmem_list's list_lock
 */
3571
static void free_block(struct kmem_cache *cachep, void **objpp, int nr_objects,
P
Pekka Enberg 已提交
3572
		       int node)
L
Linus Torvalds 已提交
3573 3574
{
	int i;
3575
	struct kmem_list3 *l3;
L
Linus Torvalds 已提交
3576 3577 3578 3579 3580

	for (i = 0; i < nr_objects; i++) {
		void *objp = objpp[i];
		struct slab *slabp;

3581
		slabp = virt_to_slab(objp);
3582
		l3 = cachep->nodelists[node];
L
Linus Torvalds 已提交
3583
		list_del(&slabp->list);
3584
		check_spinlock_acquired_node(cachep, node);
L
Linus Torvalds 已提交
3585
		check_slabp(cachep, slabp);
3586
		slab_put_obj(cachep, slabp, objp, node);
L
Linus Torvalds 已提交
3587
		STATS_DEC_ACTIVE(cachep);
3588
		l3->free_objects++;
L
Linus Torvalds 已提交
3589 3590 3591 3592
		check_slabp(cachep, slabp);

		/* fixup slab chains */
		if (slabp->inuse == 0) {
3593 3594
			if (l3->free_objects > l3->free_limit) {
				l3->free_objects -= cachep->num;
3595 3596 3597 3598 3599 3600
				/* No need to drop any previously held
				 * lock here, even if we have a off-slab slab
				 * descriptor it is guaranteed to come from
				 * a different cache, refer to comments before
				 * alloc_slabmgmt.
				 */
L
Linus Torvalds 已提交
3601 3602
				slab_destroy(cachep, slabp);
			} else {
3603
				list_add(&slabp->list, &l3->slabs_free);
L
Linus Torvalds 已提交
3604 3605 3606 3607 3608 3609
			}
		} else {
			/* Unconditionally move a slab to the end of the
			 * partial list on free - maximum time for the
			 * other objects to be freed, too.
			 */
3610
			list_add_tail(&slabp->list, &l3->slabs_partial);
L
Linus Torvalds 已提交
3611 3612 3613 3614
		}
	}
}

3615
static void cache_flusharray(struct kmem_cache *cachep, struct array_cache *ac)
L
Linus Torvalds 已提交
3616 3617
{
	int batchcount;
3618
	struct kmem_list3 *l3;
3619
	int node = numa_mem_id();
L
Linus Torvalds 已提交
3620 3621 3622 3623 3624 3625

	batchcount = ac->batchcount;
#if DEBUG
	BUG_ON(!batchcount || batchcount > ac->avail);
#endif
	check_irq_off();
3626
	l3 = cachep->nodelists[node];
3627
	spin_lock(&l3->list_lock);
3628 3629
	if (l3->shared) {
		struct array_cache *shared_array = l3->shared;
P
Pekka Enberg 已提交
3630
		int max = shared_array->limit - shared_array->avail;
L
Linus Torvalds 已提交
3631 3632 3633
		if (max) {
			if (batchcount > max)
				batchcount = max;
3634
			memcpy(&(shared_array->entry[shared_array->avail]),
P
Pekka Enberg 已提交
3635
			       ac->entry, sizeof(void *) * batchcount);
L
Linus Torvalds 已提交
3636 3637 3638 3639 3640
			shared_array->avail += batchcount;
			goto free_done;
		}
	}

3641
	free_block(cachep, ac->entry, batchcount, node);
A
Andrew Morton 已提交
3642
free_done:
L
Linus Torvalds 已提交
3643 3644 3645 3646 3647
#if STATS
	{
		int i = 0;
		struct list_head *p;

3648 3649
		p = l3->slabs_free.next;
		while (p != &(l3->slabs_free)) {
L
Linus Torvalds 已提交
3650 3651 3652 3653 3654 3655 3656 3657 3658 3659 3660
			struct slab *slabp;

			slabp = list_entry(p, struct slab, list);
			BUG_ON(slabp->inuse);

			i++;
			p = p->next;
		}
		STATS_SET_FREEABLE(cachep, i);
	}
#endif
3661
	spin_unlock(&l3->list_lock);
L
Linus Torvalds 已提交
3662
	ac->avail -= batchcount;
A
Andrew Morton 已提交
3663
	memmove(ac->entry, &(ac->entry[batchcount]), sizeof(void *)*ac->avail);
L
Linus Torvalds 已提交
3664 3665 3666
}

/*
A
Andrew Morton 已提交
3667 3668
 * Release an obj back to its cache. If the obj has a constructed state, it must
 * be in this state _before_ it is released.  Called with disabled ints.
L
Linus Torvalds 已提交
3669
 */
3670 3671
static inline void __cache_free(struct kmem_cache *cachep, void *objp,
    void *caller)
L
Linus Torvalds 已提交
3672
{
3673
	struct array_cache *ac = cpu_cache_get(cachep);
L
Linus Torvalds 已提交
3674 3675

	check_irq_off();
3676
	kmemleak_free_recursive(objp, cachep->flags);
3677
	objp = cache_free_debugcheck(cachep, objp, caller);
L
Linus Torvalds 已提交
3678

3679
	kmemcheck_slab_free(cachep, objp, cachep->object_size);
P
Pekka Enberg 已提交
3680

3681 3682 3683 3684 3685 3686 3687
	/*
	 * Skip calling cache_free_alien() when the platform is not numa.
	 * This will avoid cache misses that happen while accessing slabp (which
	 * is per page memory  reference) to get nodeid. Instead use a global
	 * variable to skip the call, which is mostly likely to be present in
	 * the cache.
	 */
3688
	if (nr_online_nodes > 1 && cache_free_alien(cachep, objp))
3689 3690
		return;

L
Linus Torvalds 已提交
3691 3692 3693 3694 3695 3696
	if (likely(ac->avail < ac->limit)) {
		STATS_INC_FREEHIT(cachep);
	} else {
		STATS_INC_FREEMISS(cachep);
		cache_flusharray(cachep, ac);
	}
Z
Zhao Jin 已提交
3697 3698

	ac->entry[ac->avail++] = objp;
L
Linus Torvalds 已提交
3699 3700 3701 3702 3703 3704 3705 3706 3707 3708
}

/**
 * kmem_cache_alloc - Allocate an object
 * @cachep: The cache to allocate from.
 * @flags: See kmalloc().
 *
 * Allocate an object from this cache.  The flags are only relevant
 * if the cache has no available objects.
 */
3709
void *kmem_cache_alloc(struct kmem_cache *cachep, gfp_t flags)
L
Linus Torvalds 已提交
3710
{
E
Eduard - Gabriel Munteanu 已提交
3711 3712
	void *ret = __cache_alloc(cachep, flags, __builtin_return_address(0));

3713
	trace_kmem_cache_alloc(_RET_IP_, ret,
3714
			       cachep->object_size, cachep->size, flags);
E
Eduard - Gabriel Munteanu 已提交
3715 3716

	return ret;
L
Linus Torvalds 已提交
3717 3718 3719
}
EXPORT_SYMBOL(kmem_cache_alloc);

3720
#ifdef CONFIG_TRACING
3721 3722
void *
kmem_cache_alloc_trace(size_t size, struct kmem_cache *cachep, gfp_t flags)
E
Eduard - Gabriel Munteanu 已提交
3723
{
3724 3725 3726 3727 3728 3729 3730
	void *ret;

	ret = __cache_alloc(cachep, flags, __builtin_return_address(0));

	trace_kmalloc(_RET_IP_, ret,
		      size, slab_buffer_size(cachep), flags);
	return ret;
E
Eduard - Gabriel Munteanu 已提交
3731
}
3732
EXPORT_SYMBOL(kmem_cache_alloc_trace);
E
Eduard - Gabriel Munteanu 已提交
3733 3734
#endif

L
Linus Torvalds 已提交
3735
#ifdef CONFIG_NUMA
3736 3737
void *kmem_cache_alloc_node(struct kmem_cache *cachep, gfp_t flags, int nodeid)
{
E
Eduard - Gabriel Munteanu 已提交
3738 3739 3740
	void *ret = __cache_alloc_node(cachep, flags, nodeid,
				       __builtin_return_address(0));

3741
	trace_kmem_cache_alloc_node(_RET_IP_, ret,
3742
				    cachep->object_size, cachep->size,
3743
				    flags, nodeid);
E
Eduard - Gabriel Munteanu 已提交
3744 3745

	return ret;
3746
}
L
Linus Torvalds 已提交
3747 3748
EXPORT_SYMBOL(kmem_cache_alloc_node);

3749
#ifdef CONFIG_TRACING
3750 3751 3752 3753
void *kmem_cache_alloc_node_trace(size_t size,
				  struct kmem_cache *cachep,
				  gfp_t flags,
				  int nodeid)
E
Eduard - Gabriel Munteanu 已提交
3754
{
3755 3756 3757
	void *ret;

	ret = __cache_alloc_node(cachep, flags, nodeid,
E
Eduard - Gabriel Munteanu 已提交
3758
				  __builtin_return_address(0));
3759 3760 3761 3762
	trace_kmalloc_node(_RET_IP_, ret,
			   size, slab_buffer_size(cachep),
			   flags, nodeid);
	return ret;
E
Eduard - Gabriel Munteanu 已提交
3763
}
3764
EXPORT_SYMBOL(kmem_cache_alloc_node_trace);
E
Eduard - Gabriel Munteanu 已提交
3765 3766
#endif

3767 3768
static __always_inline void *
__do_kmalloc_node(size_t size, gfp_t flags, int node, void *caller)
3769
{
3770
	struct kmem_cache *cachep;
3771 3772

	cachep = kmem_find_general_cachep(size, flags);
3773 3774
	if (unlikely(ZERO_OR_NULL_PTR(cachep)))
		return cachep;
3775
	return kmem_cache_alloc_node_trace(size, cachep, flags, node);
3776
}
3777

3778
#if defined(CONFIG_DEBUG_SLAB) || defined(CONFIG_TRACING)
3779 3780 3781 3782 3783
void *__kmalloc_node(size_t size, gfp_t flags, int node)
{
	return __do_kmalloc_node(size, flags, node,
			__builtin_return_address(0));
}
3784
EXPORT_SYMBOL(__kmalloc_node);
3785 3786

void *__kmalloc_node_track_caller(size_t size, gfp_t flags,
3787
		int node, unsigned long caller)
3788
{
3789
	return __do_kmalloc_node(size, flags, node, (void *)caller);
3790 3791 3792 3793 3794 3795 3796 3797
}
EXPORT_SYMBOL(__kmalloc_node_track_caller);
#else
void *__kmalloc_node(size_t size, gfp_t flags, int node)
{
	return __do_kmalloc_node(size, flags, node, NULL);
}
EXPORT_SYMBOL(__kmalloc_node);
3798
#endif /* CONFIG_DEBUG_SLAB || CONFIG_TRACING */
3799
#endif /* CONFIG_NUMA */
L
Linus Torvalds 已提交
3800 3801

/**
3802
 * __do_kmalloc - allocate memory
L
Linus Torvalds 已提交
3803
 * @size: how many bytes of memory are required.
3804
 * @flags: the type of memory to allocate (see kmalloc).
3805
 * @caller: function caller for debug tracking of the caller
L
Linus Torvalds 已提交
3806
 */
3807 3808
static __always_inline void *__do_kmalloc(size_t size, gfp_t flags,
					  void *caller)
L
Linus Torvalds 已提交
3809
{
3810
	struct kmem_cache *cachep;
E
Eduard - Gabriel Munteanu 已提交
3811
	void *ret;
L
Linus Torvalds 已提交
3812

3813 3814 3815 3816 3817 3818
	/* If you want to save a few bytes .text space: replace
	 * __ with kmem_.
	 * Then kmalloc uses the uninlined functions instead of the inline
	 * functions.
	 */
	cachep = __find_general_cachep(size, flags);
3819 3820
	if (unlikely(ZERO_OR_NULL_PTR(cachep)))
		return cachep;
E
Eduard - Gabriel Munteanu 已提交
3821 3822
	ret = __cache_alloc(cachep, flags, caller);

3823
	trace_kmalloc((unsigned long) caller, ret,
3824
		      size, cachep->size, flags);
E
Eduard - Gabriel Munteanu 已提交
3825 3826

	return ret;
3827 3828 3829
}


3830
#if defined(CONFIG_DEBUG_SLAB) || defined(CONFIG_TRACING)
3831 3832
void *__kmalloc(size_t size, gfp_t flags)
{
3833
	return __do_kmalloc(size, flags, __builtin_return_address(0));
L
Linus Torvalds 已提交
3834 3835 3836
}
EXPORT_SYMBOL(__kmalloc);

3837
void *__kmalloc_track_caller(size_t size, gfp_t flags, unsigned long caller)
3838
{
3839
	return __do_kmalloc(size, flags, (void *)caller);
3840 3841
}
EXPORT_SYMBOL(__kmalloc_track_caller);
3842 3843 3844 3845 3846 3847 3848

#else
void *__kmalloc(size_t size, gfp_t flags)
{
	return __do_kmalloc(size, flags, NULL);
}
EXPORT_SYMBOL(__kmalloc);
3849 3850
#endif

L
Linus Torvalds 已提交
3851 3852 3853 3854 3855 3856 3857 3858
/**
 * kmem_cache_free - Deallocate an object
 * @cachep: The cache the allocation was from.
 * @objp: The previously allocated object.
 *
 * Free an object which was previously allocated from this
 * cache.
 */
3859
void kmem_cache_free(struct kmem_cache *cachep, void *objp)
L
Linus Torvalds 已提交
3860 3861 3862 3863
{
	unsigned long flags;

	local_irq_save(flags);
3864
	debug_check_no_locks_freed(objp, cachep->object_size);
3865
	if (!(cachep->flags & SLAB_DEBUG_OBJECTS))
3866
		debug_check_no_obj_freed(objp, cachep->object_size);
3867
	__cache_free(cachep, objp, __builtin_return_address(0));
L
Linus Torvalds 已提交
3868
	local_irq_restore(flags);
E
Eduard - Gabriel Munteanu 已提交
3869

3870
	trace_kmem_cache_free(_RET_IP_, objp);
L
Linus Torvalds 已提交
3871 3872 3873 3874 3875 3876 3877
}
EXPORT_SYMBOL(kmem_cache_free);

/**
 * kfree - free previously allocated memory
 * @objp: pointer returned by kmalloc.
 *
3878 3879
 * If @objp is NULL, no operation is performed.
 *
L
Linus Torvalds 已提交
3880 3881 3882 3883 3884
 * Don't free memory not originally allocated by kmalloc()
 * or you will run into trouble.
 */
void kfree(const void *objp)
{
3885
	struct kmem_cache *c;
L
Linus Torvalds 已提交
3886 3887
	unsigned long flags;

3888 3889
	trace_kfree(_RET_IP_, objp);

3890
	if (unlikely(ZERO_OR_NULL_PTR(objp)))
L
Linus Torvalds 已提交
3891 3892 3893
		return;
	local_irq_save(flags);
	kfree_debugcheck(objp);
3894
	c = virt_to_cache(objp);
3895 3896 3897
	debug_check_no_locks_freed(objp, c->object_size);

	debug_check_no_obj_freed(objp, c->object_size);
3898
	__cache_free(c, (void *)objp, __builtin_return_address(0));
L
Linus Torvalds 已提交
3899 3900 3901 3902
	local_irq_restore(flags);
}
EXPORT_SYMBOL(kfree);

3903
unsigned int kmem_cache_size(struct kmem_cache *cachep)
L
Linus Torvalds 已提交
3904
{
3905
	return cachep->object_size;
L
Linus Torvalds 已提交
3906 3907 3908
}
EXPORT_SYMBOL(kmem_cache_size);

3909
/*
S
Simon Arlott 已提交
3910
 * This initializes kmem_list3 or resizes various caches for all nodes.
3911
 */
3912
static int alloc_kmemlist(struct kmem_cache *cachep, gfp_t gfp)
3913 3914 3915
{
	int node;
	struct kmem_list3 *l3;
3916
	struct array_cache *new_shared;
3917
	struct array_cache **new_alien = NULL;
3918

3919
	for_each_online_node(node) {
3920

3921
                if (use_alien_caches) {
3922
                        new_alien = alloc_alien_cache(node, cachep->limit, gfp);
3923 3924 3925
                        if (!new_alien)
                                goto fail;
                }
3926

3927 3928 3929
		new_shared = NULL;
		if (cachep->shared) {
			new_shared = alloc_arraycache(node,
3930
				cachep->shared*cachep->batchcount,
3931
					0xbaadf00d, gfp);
3932 3933 3934 3935
			if (!new_shared) {
				free_alien_cache(new_alien);
				goto fail;
			}
3936
		}
3937

A
Andrew Morton 已提交
3938 3939
		l3 = cachep->nodelists[node];
		if (l3) {
3940 3941
			struct array_cache *shared = l3->shared;

3942 3943
			spin_lock_irq(&l3->list_lock);

3944
			if (shared)
3945 3946
				free_block(cachep, shared->entry,
						shared->avail, node);
3947

3948 3949
			l3->shared = new_shared;
			if (!l3->alien) {
3950 3951 3952
				l3->alien = new_alien;
				new_alien = NULL;
			}
P
Pekka Enberg 已提交
3953
			l3->free_limit = (1 + nr_cpus_node(node)) *
A
Andrew Morton 已提交
3954
					cachep->batchcount + cachep->num;
3955
			spin_unlock_irq(&l3->list_lock);
3956
			kfree(shared);
3957 3958 3959
			free_alien_cache(new_alien);
			continue;
		}
3960
		l3 = kmalloc_node(sizeof(struct kmem_list3), gfp, node);
3961 3962 3963
		if (!l3) {
			free_alien_cache(new_alien);
			kfree(new_shared);
3964
			goto fail;
3965
		}
3966 3967 3968

		kmem_list3_init(l3);
		l3->next_reap = jiffies + REAPTIMEOUT_LIST3 +
A
Andrew Morton 已提交
3969
				((unsigned long)cachep) % REAPTIMEOUT_LIST3;
3970
		l3->shared = new_shared;
3971
		l3->alien = new_alien;
P
Pekka Enberg 已提交
3972
		l3->free_limit = (1 + nr_cpus_node(node)) *
A
Andrew Morton 已提交
3973
					cachep->batchcount + cachep->num;
3974 3975
		cachep->nodelists[node] = l3;
	}
3976
	return 0;
3977

A
Andrew Morton 已提交
3978
fail:
3979
	if (!cachep->list.next) {
3980 3981 3982 3983 3984 3985 3986 3987 3988 3989 3990 3991 3992 3993
		/* Cache is not active yet. Roll back what we did */
		node--;
		while (node >= 0) {
			if (cachep->nodelists[node]) {
				l3 = cachep->nodelists[node];

				kfree(l3->shared);
				free_alien_cache(l3->alien);
				kfree(l3);
				cachep->nodelists[node] = NULL;
			}
			node--;
		}
	}
3994
	return -ENOMEM;
3995 3996
}

L
Linus Torvalds 已提交
3997
struct ccupdate_struct {
3998
	struct kmem_cache *cachep;
3999
	struct array_cache *new[0];
L
Linus Torvalds 已提交
4000 4001 4002 4003
};

static void do_ccupdate_local(void *info)
{
A
Andrew Morton 已提交
4004
	struct ccupdate_struct *new = info;
L
Linus Torvalds 已提交
4005 4006 4007
	struct array_cache *old;

	check_irq_off();
4008
	old = cpu_cache_get(new->cachep);
4009

L
Linus Torvalds 已提交
4010 4011 4012 4013
	new->cachep->array[smp_processor_id()] = new->new[smp_processor_id()];
	new->new[smp_processor_id()] = old;
}

4014
/* Always called with the slab_mutex held */
A
Andrew Morton 已提交
4015
static int do_tune_cpucache(struct kmem_cache *cachep, int limit,
4016
				int batchcount, int shared, gfp_t gfp)
L
Linus Torvalds 已提交
4017
{
4018
	struct ccupdate_struct *new;
4019
	int i;
L
Linus Torvalds 已提交
4020

4021 4022
	new = kzalloc(sizeof(*new) + nr_cpu_ids * sizeof(struct array_cache *),
		      gfp);
4023 4024 4025
	if (!new)
		return -ENOMEM;

4026
	for_each_online_cpu(i) {
4027
		new->new[i] = alloc_arraycache(cpu_to_mem(i), limit,
4028
						batchcount, gfp);
4029
		if (!new->new[i]) {
P
Pekka Enberg 已提交
4030
			for (i--; i >= 0; i--)
4031 4032
				kfree(new->new[i]);
			kfree(new);
4033
			return -ENOMEM;
L
Linus Torvalds 已提交
4034 4035
		}
	}
4036
	new->cachep = cachep;
L
Linus Torvalds 已提交
4037

4038
	on_each_cpu(do_ccupdate_local, (void *)new, 1);
4039

L
Linus Torvalds 已提交
4040 4041 4042
	check_irq_on();
	cachep->batchcount = batchcount;
	cachep->limit = limit;
4043
	cachep->shared = shared;
L
Linus Torvalds 已提交
4044

4045
	for_each_online_cpu(i) {
4046
		struct array_cache *ccold = new->new[i];
L
Linus Torvalds 已提交
4047 4048
		if (!ccold)
			continue;
4049 4050 4051
		spin_lock_irq(&cachep->nodelists[cpu_to_mem(i)]->list_lock);
		free_block(cachep, ccold->entry, ccold->avail, cpu_to_mem(i));
		spin_unlock_irq(&cachep->nodelists[cpu_to_mem(i)]->list_lock);
L
Linus Torvalds 已提交
4052 4053
		kfree(ccold);
	}
4054
	kfree(new);
4055
	return alloc_kmemlist(cachep, gfp);
L
Linus Torvalds 已提交
4056 4057
}

4058
/* Called with slab_mutex held always */
4059
static int enable_cpucache(struct kmem_cache *cachep, gfp_t gfp)
L
Linus Torvalds 已提交
4060 4061 4062 4063
{
	int err;
	int limit, shared;

A
Andrew Morton 已提交
4064 4065
	/*
	 * The head array serves three purposes:
L
Linus Torvalds 已提交
4066 4067
	 * - create a LIFO ordering, i.e. return objects that are cache-warm
	 * - reduce the number of spinlock operations.
A
Andrew Morton 已提交
4068
	 * - reduce the number of linked list operations on the slab and
L
Linus Torvalds 已提交
4069 4070 4071 4072
	 *   bufctl chains: array operations are cheaper.
	 * The numbers are guessed, we should auto-tune as described by
	 * Bonwick.
	 */
4073
	if (cachep->size > 131072)
L
Linus Torvalds 已提交
4074
		limit = 1;
4075
	else if (cachep->size > PAGE_SIZE)
L
Linus Torvalds 已提交
4076
		limit = 8;
4077
	else if (cachep->size > 1024)
L
Linus Torvalds 已提交
4078
		limit = 24;
4079
	else if (cachep->size > 256)
L
Linus Torvalds 已提交
4080 4081 4082 4083
		limit = 54;
	else
		limit = 120;

A
Andrew Morton 已提交
4084 4085
	/*
	 * CPU bound tasks (e.g. network routing) can exhibit cpu bound
L
Linus Torvalds 已提交
4086 4087 4088 4089 4090 4091 4092 4093
	 * allocation behaviour: Most allocs on one cpu, most free operations
	 * on another cpu. For these cases, an efficient object passing between
	 * cpus is necessary. This is provided by a shared array. The array
	 * replaces Bonwick's magazine layer.
	 * On uniprocessor, it's functionally equivalent (but less efficient)
	 * to a larger limit. Thus disabled by default.
	 */
	shared = 0;
4094
	if (cachep->size <= PAGE_SIZE && num_possible_cpus() > 1)
L
Linus Torvalds 已提交
4095 4096 4097
		shared = 8;

#if DEBUG
A
Andrew Morton 已提交
4098 4099 4100
	/*
	 * With debugging enabled, large batchcount lead to excessively long
	 * periods with disabled local interrupts. Limit the batchcount
L
Linus Torvalds 已提交
4101 4102 4103 4104
	 */
	if (limit > 32)
		limit = 32;
#endif
4105
	err = do_tune_cpucache(cachep, limit, (limit + 1) / 2, shared, gfp);
L
Linus Torvalds 已提交
4106 4107
	if (err)
		printk(KERN_ERR "enable_cpucache failed for %s, error %d.\n",
P
Pekka Enberg 已提交
4108
		       cachep->name, -err);
4109
	return err;
L
Linus Torvalds 已提交
4110 4111
}

4112 4113
/*
 * Drain an array if it contains any elements taking the l3 lock only if
4114 4115
 * necessary. Note that the l3 listlock also protects the array_cache
 * if drain_array() is used on the shared array.
4116
 */
4117
static void drain_array(struct kmem_cache *cachep, struct kmem_list3 *l3,
4118
			 struct array_cache *ac, int force, int node)
L
Linus Torvalds 已提交
4119 4120 4121
{
	int tofree;

4122 4123
	if (!ac || !ac->avail)
		return;
L
Linus Torvalds 已提交
4124 4125
	if (ac->touched && !force) {
		ac->touched = 0;
4126
	} else {
4127
		spin_lock_irq(&l3->list_lock);
4128 4129 4130 4131 4132 4133 4134 4135 4136
		if (ac->avail) {
			tofree = force ? ac->avail : (ac->limit + 4) / 5;
			if (tofree > ac->avail)
				tofree = (ac->avail + 1) / 2;
			free_block(cachep, ac->entry, tofree, node);
			ac->avail -= tofree;
			memmove(ac->entry, &(ac->entry[tofree]),
				sizeof(void *) * ac->avail);
		}
4137
		spin_unlock_irq(&l3->list_lock);
L
Linus Torvalds 已提交
4138 4139 4140 4141 4142
	}
}

/**
 * cache_reap - Reclaim memory from caches.
4143
 * @w: work descriptor
L
Linus Torvalds 已提交
4144 4145 4146 4147 4148 4149
 *
 * Called from workqueue/eventd every few seconds.
 * Purpose:
 * - clear the per-cpu caches for this CPU.
 * - return freeable pages to the main free memory pool.
 *
A
Andrew Morton 已提交
4150 4151
 * If we cannot acquire the cache chain mutex then just give up - we'll try
 * again on the next iteration.
L
Linus Torvalds 已提交
4152
 */
4153
static void cache_reap(struct work_struct *w)
L
Linus Torvalds 已提交
4154
{
4155
	struct kmem_cache *searchp;
4156
	struct kmem_list3 *l3;
4157
	int node = numa_mem_id();
4158
	struct delayed_work *work = to_delayed_work(w);
L
Linus Torvalds 已提交
4159

4160
	if (!mutex_trylock(&slab_mutex))
L
Linus Torvalds 已提交
4161
		/* Give up. Setup the next iteration. */
4162
		goto out;
L
Linus Torvalds 已提交
4163

4164
	list_for_each_entry(searchp, &slab_caches, list) {
L
Linus Torvalds 已提交
4165 4166
		check_irq_on();

4167 4168 4169 4170 4171
		/*
		 * We only take the l3 lock if absolutely necessary and we
		 * have established with reasonable certainty that
		 * we can do some work if the lock was obtained.
		 */
4172
		l3 = searchp->nodelists[node];
4173

4174
		reap_alien(searchp, l3);
L
Linus Torvalds 已提交
4175

4176
		drain_array(searchp, l3, cpu_cache_get(searchp), 0, node);
L
Linus Torvalds 已提交
4177

4178 4179 4180 4181
		/*
		 * These are racy checks but it does not matter
		 * if we skip one check or scan twice.
		 */
4182
		if (time_after(l3->next_reap, jiffies))
4183
			goto next;
L
Linus Torvalds 已提交
4184

4185
		l3->next_reap = jiffies + REAPTIMEOUT_LIST3;
L
Linus Torvalds 已提交
4186

4187
		drain_array(searchp, l3, l3->shared, 0, node);
L
Linus Torvalds 已提交
4188

4189
		if (l3->free_touched)
4190
			l3->free_touched = 0;
4191 4192
		else {
			int freed;
L
Linus Torvalds 已提交
4193

4194 4195 4196 4197
			freed = drain_freelist(searchp, l3, (l3->free_limit +
				5 * searchp->num - 1) / (5 * searchp->num));
			STATS_ADD_REAPED(searchp, freed);
		}
4198
next:
L
Linus Torvalds 已提交
4199 4200 4201
		cond_resched();
	}
	check_irq_on();
4202
	mutex_unlock(&slab_mutex);
4203
	next_reap_node();
4204
out:
A
Andrew Morton 已提交
4205
	/* Set up the next iteration */
4206
	schedule_delayed_work(work, round_jiffies_relative(REAPTIMEOUT_CPUC));
L
Linus Torvalds 已提交
4207 4208
}

4209
#ifdef CONFIG_SLABINFO
L
Linus Torvalds 已提交
4210

4211
static void print_slabinfo_header(struct seq_file *m)
L
Linus Torvalds 已提交
4212
{
4213 4214 4215 4216
	/*
	 * Output format version, so at least we can change it
	 * without _too_ many complaints.
	 */
L
Linus Torvalds 已提交
4217
#if STATS
4218
	seq_puts(m, "slabinfo - version: 2.1 (statistics)\n");
L
Linus Torvalds 已提交
4219
#else
4220
	seq_puts(m, "slabinfo - version: 2.1\n");
L
Linus Torvalds 已提交
4221
#endif
4222 4223 4224 4225
	seq_puts(m, "# name            <active_objs> <num_objs> <objsize> "
		 "<objperslab> <pagesperslab>");
	seq_puts(m, " : tunables <limit> <batchcount> <sharedfactor>");
	seq_puts(m, " : slabdata <active_slabs> <num_slabs> <sharedavail>");
L
Linus Torvalds 已提交
4226
#if STATS
4227
	seq_puts(m, " : globalstat <listallocs> <maxobjs> <grown> <reaped> "
4228
		 "<error> <maxfreeable> <nodeallocs> <remotefrees> <alienoverflow>");
4229
	seq_puts(m, " : cpustat <allochit> <allocmiss> <freehit> <freemiss>");
L
Linus Torvalds 已提交
4230
#endif
4231 4232 4233 4234 4235 4236 4237
	seq_putc(m, '\n');
}

static void *s_start(struct seq_file *m, loff_t *pos)
{
	loff_t n = *pos;

4238
	mutex_lock(&slab_mutex);
4239 4240
	if (!n)
		print_slabinfo_header(m);
4241

4242
	return seq_list_start(&slab_caches, *pos);
L
Linus Torvalds 已提交
4243 4244 4245 4246
}

static void *s_next(struct seq_file *m, void *p, loff_t *pos)
{
4247
	return seq_list_next(p, &slab_caches, pos);
L
Linus Torvalds 已提交
4248 4249 4250 4251
}

static void s_stop(struct seq_file *m, void *p)
{
4252
	mutex_unlock(&slab_mutex);
L
Linus Torvalds 已提交
4253 4254 4255 4256
}

static int s_show(struct seq_file *m, void *p)
{
4257
	struct kmem_cache *cachep = list_entry(p, struct kmem_cache, list);
P
Pekka Enberg 已提交
4258 4259 4260 4261 4262
	struct slab *slabp;
	unsigned long active_objs;
	unsigned long num_objs;
	unsigned long active_slabs = 0;
	unsigned long num_slabs, free_objects = 0, shared_avail = 0;
4263
	const char *name;
L
Linus Torvalds 已提交
4264
	char *error = NULL;
4265 4266
	int node;
	struct kmem_list3 *l3;
L
Linus Torvalds 已提交
4267 4268 4269

	active_objs = 0;
	num_slabs = 0;
4270 4271 4272 4273 4274
	for_each_online_node(node) {
		l3 = cachep->nodelists[node];
		if (!l3)
			continue;

4275 4276
		check_irq_on();
		spin_lock_irq(&l3->list_lock);
4277

4278
		list_for_each_entry(slabp, &l3->slabs_full, list) {
4279 4280 4281 4282 4283
			if (slabp->inuse != cachep->num && !error)
				error = "slabs_full accounting error";
			active_objs += cachep->num;
			active_slabs++;
		}
4284
		list_for_each_entry(slabp, &l3->slabs_partial, list) {
4285 4286 4287 4288 4289 4290 4291
			if (slabp->inuse == cachep->num && !error)
				error = "slabs_partial inuse accounting error";
			if (!slabp->inuse && !error)
				error = "slabs_partial/inuse accounting error";
			active_objs += slabp->inuse;
			active_slabs++;
		}
4292
		list_for_each_entry(slabp, &l3->slabs_free, list) {
4293 4294 4295 4296 4297
			if (slabp->inuse && !error)
				error = "slabs_free/inuse accounting error";
			num_slabs++;
		}
		free_objects += l3->free_objects;
4298 4299
		if (l3->shared)
			shared_avail += l3->shared->avail;
4300

4301
		spin_unlock_irq(&l3->list_lock);
L
Linus Torvalds 已提交
4302
	}
P
Pekka Enberg 已提交
4303 4304
	num_slabs += active_slabs;
	num_objs = num_slabs * cachep->num;
4305
	if (num_objs - active_objs != free_objects && !error)
L
Linus Torvalds 已提交
4306 4307
		error = "free_objects accounting error";

P
Pekka Enberg 已提交
4308
	name = cachep->name;
L
Linus Torvalds 已提交
4309 4310 4311 4312
	if (error)
		printk(KERN_ERR "slab: cache %s error: %s\n", name, error);

	seq_printf(m, "%-17s %6lu %6lu %6u %4u %4d",
4313
		   name, active_objs, num_objs, cachep->size,
P
Pekka Enberg 已提交
4314
		   cachep->num, (1 << cachep->gfporder));
L
Linus Torvalds 已提交
4315
	seq_printf(m, " : tunables %4u %4u %4u",
P
Pekka Enberg 已提交
4316
		   cachep->limit, cachep->batchcount, cachep->shared);
4317
	seq_printf(m, " : slabdata %6lu %6lu %6lu",
P
Pekka Enberg 已提交
4318
		   active_slabs, num_slabs, shared_avail);
L
Linus Torvalds 已提交
4319
#if STATS
P
Pekka Enberg 已提交
4320
	{			/* list3 stats */
L
Linus Torvalds 已提交
4321 4322 4323 4324 4325 4326 4327
		unsigned long high = cachep->high_mark;
		unsigned long allocs = cachep->num_allocations;
		unsigned long grown = cachep->grown;
		unsigned long reaped = cachep->reaped;
		unsigned long errors = cachep->errors;
		unsigned long max_freeable = cachep->max_freeable;
		unsigned long node_allocs = cachep->node_allocs;
4328
		unsigned long node_frees = cachep->node_frees;
4329
		unsigned long overflows = cachep->node_overflow;
L
Linus Torvalds 已提交
4330

J
Joe Perches 已提交
4331 4332 4333 4334 4335
		seq_printf(m, " : globalstat %7lu %6lu %5lu %4lu "
			   "%4lu %4lu %4lu %4lu %4lu",
			   allocs, high, grown,
			   reaped, errors, max_freeable, node_allocs,
			   node_frees, overflows);
L
Linus Torvalds 已提交
4336 4337 4338 4339 4340 4341 4342 4343 4344
	}
	/* cpu stats */
	{
		unsigned long allochit = atomic_read(&cachep->allochit);
		unsigned long allocmiss = atomic_read(&cachep->allocmiss);
		unsigned long freehit = atomic_read(&cachep->freehit);
		unsigned long freemiss = atomic_read(&cachep->freemiss);

		seq_printf(m, " : cpustat %6lu %6lu %6lu %6lu",
P
Pekka Enberg 已提交
4345
			   allochit, allocmiss, freehit, freemiss);
L
Linus Torvalds 已提交
4346 4347 4348 4349 4350 4351 4352 4353 4354 4355 4356 4357 4358 4359 4360 4361 4362 4363 4364 4365
	}
#endif
	seq_putc(m, '\n');
	return 0;
}

/*
 * slabinfo_op - iterator that generates /proc/slabinfo
 *
 * Output layout:
 * cache-name
 * num-active-objs
 * total-objs
 * object size
 * num-active-slabs
 * total-slabs
 * num-pages-per-slab
 * + further values on SMP and with statistics enabled
 */

4366
static const struct seq_operations slabinfo_op = {
P
Pekka Enberg 已提交
4367 4368 4369 4370
	.start = s_start,
	.next = s_next,
	.stop = s_stop,
	.show = s_show,
L
Linus Torvalds 已提交
4371 4372 4373 4374 4375 4376 4377 4378 4379 4380
};

#define MAX_SLABINFO_WRITE 128
/**
 * slabinfo_write - Tuning for the slab allocator
 * @file: unused
 * @buffer: user buffer
 * @count: data length
 * @ppos: unused
 */
4381
static ssize_t slabinfo_write(struct file *file, const char __user *buffer,
P
Pekka Enberg 已提交
4382
		       size_t count, loff_t *ppos)
L
Linus Torvalds 已提交
4383
{
P
Pekka Enberg 已提交
4384
	char kbuf[MAX_SLABINFO_WRITE + 1], *tmp;
L
Linus Torvalds 已提交
4385
	int limit, batchcount, shared, res;
4386
	struct kmem_cache *cachep;
P
Pekka Enberg 已提交
4387

L
Linus Torvalds 已提交
4388 4389 4390 4391
	if (count > MAX_SLABINFO_WRITE)
		return -EINVAL;
	if (copy_from_user(&kbuf, buffer, count))
		return -EFAULT;
P
Pekka Enberg 已提交
4392
	kbuf[MAX_SLABINFO_WRITE] = '\0';
L
Linus Torvalds 已提交
4393 4394 4395 4396 4397 4398 4399 4400 4401 4402

	tmp = strchr(kbuf, ' ');
	if (!tmp)
		return -EINVAL;
	*tmp = '\0';
	tmp++;
	if (sscanf(tmp, " %d %d %d", &limit, &batchcount, &shared) != 3)
		return -EINVAL;

	/* Find the cache in the chain of caches. */
4403
	mutex_lock(&slab_mutex);
L
Linus Torvalds 已提交
4404
	res = -EINVAL;
4405
	list_for_each_entry(cachep, &slab_caches, list) {
L
Linus Torvalds 已提交
4406
		if (!strcmp(cachep->name, kbuf)) {
A
Andrew Morton 已提交
4407 4408
			if (limit < 1 || batchcount < 1 ||
					batchcount > limit || shared < 0) {
4409
				res = 0;
L
Linus Torvalds 已提交
4410
			} else {
4411
				res = do_tune_cpucache(cachep, limit,
4412 4413
						       batchcount, shared,
						       GFP_KERNEL);
L
Linus Torvalds 已提交
4414 4415 4416 4417
			}
			break;
		}
	}
4418
	mutex_unlock(&slab_mutex);
L
Linus Torvalds 已提交
4419 4420 4421 4422
	if (res >= 0)
		res = count;
	return res;
}
4423

4424 4425 4426 4427 4428 4429 4430 4431 4432 4433 4434 4435 4436
static int slabinfo_open(struct inode *inode, struct file *file)
{
	return seq_open(file, &slabinfo_op);
}

static const struct file_operations proc_slabinfo_operations = {
	.open		= slabinfo_open,
	.read		= seq_read,
	.write		= slabinfo_write,
	.llseek		= seq_lseek,
	.release	= seq_release,
};

4437 4438 4439 4440
#ifdef CONFIG_DEBUG_SLAB_LEAK

static void *leaks_start(struct seq_file *m, loff_t *pos)
{
4441 4442
	mutex_lock(&slab_mutex);
	return seq_list_start(&slab_caches, *pos);
4443 4444 4445 4446 4447 4448 4449 4450 4451 4452 4453 4454 4455 4456 4457 4458 4459 4460 4461 4462 4463 4464 4465 4466 4467 4468 4469 4470 4471 4472 4473 4474 4475 4476 4477 4478 4479 4480
}

static inline int add_caller(unsigned long *n, unsigned long v)
{
	unsigned long *p;
	int l;
	if (!v)
		return 1;
	l = n[1];
	p = n + 2;
	while (l) {
		int i = l/2;
		unsigned long *q = p + 2 * i;
		if (*q == v) {
			q[1]++;
			return 1;
		}
		if (*q > v) {
			l = i;
		} else {
			p = q + 2;
			l -= i + 1;
		}
	}
	if (++n[1] == n[0])
		return 0;
	memmove(p + 2, p, n[1] * 2 * sizeof(unsigned long) - ((void *)p - (void *)n));
	p[0] = v;
	p[1] = 1;
	return 1;
}

static void handle_slab(unsigned long *n, struct kmem_cache *c, struct slab *s)
{
	void *p;
	int i;
	if (n[0] == n[1])
		return;
4481
	for (i = 0, p = s->s_mem; i < c->num; i++, p += c->size) {
4482 4483 4484 4485 4486 4487 4488 4489 4490 4491 4492
		if (slab_bufctl(s)[i] != BUFCTL_ACTIVE)
			continue;
		if (!add_caller(n, (unsigned long)*dbg_userword(c, p)))
			return;
	}
}

static void show_symbol(struct seq_file *m, unsigned long address)
{
#ifdef CONFIG_KALLSYMS
	unsigned long offset, size;
4493
	char modname[MODULE_NAME_LEN], name[KSYM_NAME_LEN];
4494

4495
	if (lookup_symbol_attrs(address, &size, &offset, modname, name) == 0) {
4496
		seq_printf(m, "%s+%#lx/%#lx", name, offset, size);
4497
		if (modname[0])
4498 4499 4500 4501 4502 4503 4504 4505 4506
			seq_printf(m, " [%s]", modname);
		return;
	}
#endif
	seq_printf(m, "%p", (void *)address);
}

static int leaks_show(struct seq_file *m, void *p)
{
4507
	struct kmem_cache *cachep = list_entry(p, struct kmem_cache, list);
4508 4509 4510 4511 4512 4513 4514 4515 4516 4517 4518 4519 4520 4521 4522 4523 4524 4525 4526 4527 4528 4529 4530 4531
	struct slab *slabp;
	struct kmem_list3 *l3;
	const char *name;
	unsigned long *n = m->private;
	int node;
	int i;

	if (!(cachep->flags & SLAB_STORE_USER))
		return 0;
	if (!(cachep->flags & SLAB_RED_ZONE))
		return 0;

	/* OK, we can do it */

	n[1] = 0;

	for_each_online_node(node) {
		l3 = cachep->nodelists[node];
		if (!l3)
			continue;

		check_irq_on();
		spin_lock_irq(&l3->list_lock);

4532
		list_for_each_entry(slabp, &l3->slabs_full, list)
4533
			handle_slab(n, cachep, slabp);
4534
		list_for_each_entry(slabp, &l3->slabs_partial, list)
4535 4536 4537 4538 4539 4540
			handle_slab(n, cachep, slabp);
		spin_unlock_irq(&l3->list_lock);
	}
	name = cachep->name;
	if (n[0] == n[1]) {
		/* Increase the buffer size */
4541
		mutex_unlock(&slab_mutex);
4542 4543 4544 4545
		m->private = kzalloc(n[0] * 4 * sizeof(unsigned long), GFP_KERNEL);
		if (!m->private) {
			/* Too bad, we are really out */
			m->private = n;
4546
			mutex_lock(&slab_mutex);
4547 4548 4549 4550
			return -ENOMEM;
		}
		*(unsigned long *)m->private = n[0] * 2;
		kfree(n);
4551
		mutex_lock(&slab_mutex);
4552 4553 4554 4555 4556 4557 4558 4559 4560
		/* Now make sure this entry will be retried */
		m->count = m->size;
		return 0;
	}
	for (i = 0; i < n[1]; i++) {
		seq_printf(m, "%s: %lu ", name, n[2*i+3]);
		show_symbol(m, n[2*i+2]);
		seq_putc(m, '\n');
	}
4561

4562 4563 4564
	return 0;
}

4565
static const struct seq_operations slabstats_op = {
4566 4567 4568 4569 4570
	.start = leaks_start,
	.next = s_next,
	.stop = s_stop,
	.show = leaks_show,
};
4571 4572 4573 4574 4575 4576 4577 4578 4579 4580 4581 4582 4583 4584 4585 4586 4587 4588 4589 4590 4591 4592 4593 4594 4595 4596 4597 4598

static int slabstats_open(struct inode *inode, struct file *file)
{
	unsigned long *n = kzalloc(PAGE_SIZE, GFP_KERNEL);
	int ret = -ENOMEM;
	if (n) {
		ret = seq_open(file, &slabstats_op);
		if (!ret) {
			struct seq_file *m = file->private_data;
			*n = PAGE_SIZE / (2 * sizeof(unsigned long));
			m->private = n;
			n = NULL;
		}
		kfree(n);
	}
	return ret;
}

static const struct file_operations proc_slabstats_operations = {
	.open		= slabstats_open,
	.read		= seq_read,
	.llseek		= seq_lseek,
	.release	= seq_release_private,
};
#endif

static int __init slab_proc_init(void)
{
4599
	proc_create("slabinfo",S_IWUSR|S_IRUSR,NULL,&proc_slabinfo_operations);
4600 4601
#ifdef CONFIG_DEBUG_SLAB_LEAK
	proc_create("slab_allocators", 0, NULL, &proc_slabstats_operations);
4602
#endif
4603 4604 4605
	return 0;
}
module_init(slab_proc_init);
L
Linus Torvalds 已提交
4606 4607
#endif

4608 4609 4610 4611 4612 4613 4614 4615 4616 4617 4618 4619
/**
 * ksize - get the actual amount of memory allocated for a given object
 * @objp: Pointer to the object
 *
 * kmalloc may internally round up allocations and return more memory
 * than requested. ksize() can be used to determine the actual amount of
 * memory allocated. The caller may use this additional memory, even though
 * a smaller amount of memory was initially specified with the kmalloc call.
 * The caller must guarantee that objp points to a valid object previously
 * allocated with either kmalloc() or kmem_cache_alloc(). The object
 * must not be freed during the duration of the call.
 */
P
Pekka Enberg 已提交
4620
size_t ksize(const void *objp)
L
Linus Torvalds 已提交
4621
{
4622 4623
	BUG_ON(!objp);
	if (unlikely(objp == ZERO_SIZE_PTR))
4624
		return 0;
L
Linus Torvalds 已提交
4625

4626
	return virt_to_cache(objp)->object_size;
L
Linus Torvalds 已提交
4627
}
K
Kirill A. Shutemov 已提交
4628
EXPORT_SYMBOL(ksize);