rhashtable.c 29.7 KB
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/*
 * Resizable, Scalable, Concurrent Hash Table
 *
 * Copyright (c) 2014 Thomas Graf <tgraf@suug.ch>
 * Copyright (c) 2008-2014 Patrick McHardy <kaber@trash.net>
 *
 * Based on the following paper:
 * https://www.usenix.org/legacy/event/atc11/tech/final_files/Triplett.pdf
 *
 * Code partially derived from nft_hash
 *
 * This program is free software; you can redistribute it and/or modify
 * it under the terms of the GNU General Public License version 2 as
 * published by the Free Software Foundation.
 */

#include <linux/kernel.h>
#include <linux/init.h>
#include <linux/log2.h>
#include <linux/slab.h>
#include <linux/vmalloc.h>
#include <linux/mm.h>
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#include <linux/jhash.h>
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#include <linux/random.h>
#include <linux/rhashtable.h>

#define HASH_DEFAULT_SIZE	64UL
#define HASH_MIN_SIZE		4UL
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#define BUCKET_LOCKS_PER_CPU   128UL

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/* Base bits plus 1 bit for nulls marker */
#define HASH_RESERVED_SPACE	(RHT_BASE_BITS + 1)

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enum {
	RHT_LOCK_NORMAL,
	RHT_LOCK_NESTED,
	RHT_LOCK_NESTED2,
};

/* The bucket lock is selected based on the hash and protects mutations
 * on a group of hash buckets.
 *
 * IMPORTANT: When holding the bucket lock of both the old and new table
 * during expansions and shrinking, the old bucket lock must always be
 * acquired first.
 */
static spinlock_t *bucket_lock(const struct bucket_table *tbl, u32 hash)
{
	return &tbl->locks[hash & tbl->locks_mask];
}
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#define ASSERT_RHT_MUTEX(HT) BUG_ON(!lockdep_rht_mutex_is_held(HT))
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#define ASSERT_BUCKET_LOCK(TBL, HASH) \
	BUG_ON(!lockdep_rht_bucket_is_held(TBL, HASH))
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#ifdef CONFIG_PROVE_LOCKING
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int lockdep_rht_mutex_is_held(struct rhashtable *ht)
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{
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	return (debug_locks) ? lockdep_is_held(&ht->mutex) : 1;
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}
EXPORT_SYMBOL_GPL(lockdep_rht_mutex_is_held);
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int lockdep_rht_bucket_is_held(const struct bucket_table *tbl, u32 hash)
{
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	spinlock_t *lock = bucket_lock(tbl, hash);

	return (debug_locks) ? lockdep_is_held(lock) : 1;
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}
EXPORT_SYMBOL_GPL(lockdep_rht_bucket_is_held);
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#endif

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static void *rht_obj(const struct rhashtable *ht, const struct rhash_head *he)
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{
	return (void *) he - ht->p.head_offset;
}

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static u32 rht_bucket_index(const struct bucket_table *tbl, u32 hash)
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{
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	return hash & (tbl->size - 1);
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}

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static u32 obj_raw_hashfn(const struct rhashtable *ht, const void *ptr)
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{
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	u32 hash;
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	if (unlikely(!ht->p.key_len))
		hash = ht->p.obj_hashfn(ptr, ht->p.hash_rnd);
	else
		hash = ht->p.hashfn(ptr + ht->p.key_offset, ht->p.key_len,
				    ht->p.hash_rnd);
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	return hash >> HASH_RESERVED_SPACE;
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}

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static u32 key_hashfn(struct rhashtable *ht, const void *key, u32 len)
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{
	struct bucket_table *tbl = rht_dereference_rcu(ht->tbl, ht);
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	u32 hash;

	hash = ht->p.hashfn(key, len, ht->p.hash_rnd);
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	hash >>= HASH_RESERVED_SPACE;
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	return rht_bucket_index(tbl, hash);
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}

static u32 head_hashfn(const struct rhashtable *ht,
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		       const struct bucket_table *tbl,
		       const struct rhash_head *he)
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{
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	return rht_bucket_index(tbl, obj_raw_hashfn(ht, rht_obj(ht, he)));
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}

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static struct rhash_head __rcu **bucket_tail(struct bucket_table *tbl, u32 n)
{
	struct rhash_head __rcu **pprev;

	for (pprev = &tbl->buckets[n];
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	     !rht_is_a_nulls(rht_dereference_bucket(*pprev, tbl, n));
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	     pprev = &rht_dereference_bucket(*pprev, tbl, n)->next)
		;

	return pprev;
}

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static int alloc_bucket_locks(struct rhashtable *ht, struct bucket_table *tbl)
{
	unsigned int i, size;
#if defined(CONFIG_PROVE_LOCKING)
	unsigned int nr_pcpus = 2;
#else
	unsigned int nr_pcpus = num_possible_cpus();
#endif

	nr_pcpus = min_t(unsigned int, nr_pcpus, 32UL);
	size = roundup_pow_of_two(nr_pcpus * ht->p.locks_mul);

	/* Never allocate more than one lock per bucket */
	size = min_t(unsigned int, size, tbl->size);

	if (sizeof(spinlock_t) != 0) {
#ifdef CONFIG_NUMA
		if (size * sizeof(spinlock_t) > PAGE_SIZE)
			tbl->locks = vmalloc(size * sizeof(spinlock_t));
		else
#endif
		tbl->locks = kmalloc_array(size, sizeof(spinlock_t),
					   GFP_KERNEL);
		if (!tbl->locks)
			return -ENOMEM;
		for (i = 0; i < size; i++)
			spin_lock_init(&tbl->locks[i]);
	}
	tbl->locks_mask = size - 1;

	return 0;
}

static void bucket_table_free(const struct bucket_table *tbl)
{
	if (tbl)
		kvfree(tbl->locks);

	kvfree(tbl);
}

static struct bucket_table *bucket_table_alloc(struct rhashtable *ht,
					       size_t nbuckets)
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{
	struct bucket_table *tbl;
	size_t size;
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	int i;
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	size = sizeof(*tbl) + nbuckets * sizeof(tbl->buckets[0]);
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	tbl = kzalloc(size, GFP_KERNEL | __GFP_NOWARN);
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	if (tbl == NULL)
		tbl = vzalloc(size);

	if (tbl == NULL)
		return NULL;

	tbl->size = nbuckets;

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	if (alloc_bucket_locks(ht, tbl) < 0) {
		bucket_table_free(tbl);
		return NULL;
	}
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	for (i = 0; i < nbuckets; i++)
		INIT_RHT_NULLS_HEAD(tbl->buckets[i], ht, i);

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	return tbl;
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}

/**
 * rht_grow_above_75 - returns true if nelems > 0.75 * table-size
 * @ht:		hash table
 * @new_size:	new table size
 */
bool rht_grow_above_75(const struct rhashtable *ht, size_t new_size)
{
	/* Expand table when exceeding 75% load */
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	return atomic_read(&ht->nelems) > (new_size / 4 * 3) &&
	       (ht->p.max_shift && atomic_read(&ht->shift) < ht->p.max_shift);
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}
EXPORT_SYMBOL_GPL(rht_grow_above_75);

/**
 * rht_shrink_below_30 - returns true if nelems < 0.3 * table-size
 * @ht:		hash table
 * @new_size:	new table size
 */
bool rht_shrink_below_30(const struct rhashtable *ht, size_t new_size)
{
	/* Shrink table beneath 30% load */
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	return atomic_read(&ht->nelems) < (new_size * 3 / 10) &&
	       (atomic_read(&ht->shift) > ht->p.min_shift);
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}
EXPORT_SYMBOL_GPL(rht_shrink_below_30);

static void hashtable_chain_unzip(const struct rhashtable *ht,
				  const struct bucket_table *new_tbl,
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				  struct bucket_table *old_tbl,
				  size_t old_hash)
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{
	struct rhash_head *he, *p, *next;
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	spinlock_t *new_bucket_lock, *new_bucket_lock2 = NULL;
	unsigned int new_hash, new_hash2;

	ASSERT_BUCKET_LOCK(old_tbl, old_hash);
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	/* Old bucket empty, no work needed. */
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	p = rht_dereference_bucket(old_tbl->buckets[old_hash], old_tbl,
				   old_hash);
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	if (rht_is_a_nulls(p))
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		return;

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	new_hash = new_hash2 = head_hashfn(ht, new_tbl, p);
	new_bucket_lock = bucket_lock(new_tbl, new_hash);

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	/* Advance the old bucket pointer one or more times until it
	 * reaches a node that doesn't hash to the same bucket as the
	 * previous node p. Call the previous node p;
	 */
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	rht_for_each_continue(he, p->next, old_tbl, old_hash) {
		new_hash2 = head_hashfn(ht, new_tbl, he);
		if (new_hash != new_hash2)
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			break;
		p = he;
	}
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	rcu_assign_pointer(old_tbl->buckets[old_hash], p->next);

	spin_lock_bh_nested(new_bucket_lock, RHT_LOCK_NESTED);

	/* If we have encountered an entry that maps to a different bucket in
	 * the new table, lock down that bucket as well as we might cut off
	 * the end of the chain.
	 */
	new_bucket_lock2 = bucket_lock(new_tbl, new_hash);
	if (new_bucket_lock != new_bucket_lock2)
		spin_lock_bh_nested(new_bucket_lock2, RHT_LOCK_NESTED2);
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	/* Find the subsequent node which does hash to the same
	 * bucket as node P, or NULL if no such node exists.
	 */
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	INIT_RHT_NULLS_HEAD(next, ht, old_hash);
	if (!rht_is_a_nulls(he)) {
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		rht_for_each_continue(he, he->next, old_tbl, old_hash) {
			if (head_hashfn(ht, new_tbl, he) == new_hash) {
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				next = he;
				break;
			}
		}
	}

	/* Set p's next pointer to that subsequent node pointer,
	 * bypassing the nodes which do not hash to p's bucket
	 */
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	rcu_assign_pointer(p->next, next);

	if (new_bucket_lock != new_bucket_lock2)
		spin_unlock_bh(new_bucket_lock2);
	spin_unlock_bh(new_bucket_lock);
}

static void link_old_to_new(struct bucket_table *new_tbl,
			    unsigned int new_hash, struct rhash_head *entry)
{
	spinlock_t *new_bucket_lock;

	new_bucket_lock = bucket_lock(new_tbl, new_hash);

	spin_lock_bh_nested(new_bucket_lock, RHT_LOCK_NESTED);
	rcu_assign_pointer(*bucket_tail(new_tbl, new_hash), entry);
	spin_unlock_bh(new_bucket_lock);
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}

/**
 * rhashtable_expand - Expand hash table while allowing concurrent lookups
 * @ht:		the hash table to expand
 *
 * A secondary bucket array is allocated and the hash entries are migrated
 * while keeping them on both lists until the end of the RCU grace period.
 *
 * This function may only be called in a context where it is safe to call
 * synchronize_rcu(), e.g. not within a rcu_read_lock() section.
 *
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 * The caller must ensure that no concurrent resizing occurs by holding
 * ht->mutex.
 *
 * It is valid to have concurrent insertions and deletions protected by per
 * bucket locks or concurrent RCU protected lookups and traversals.
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 */
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int rhashtable_expand(struct rhashtable *ht)
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{
	struct bucket_table *new_tbl, *old_tbl = rht_dereference(ht->tbl, ht);
	struct rhash_head *he;
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	spinlock_t *old_bucket_lock;
	unsigned int new_hash, old_hash;
	bool complete = false;
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	ASSERT_RHT_MUTEX(ht);

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	new_tbl = bucket_table_alloc(ht, old_tbl->size * 2);
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	if (new_tbl == NULL)
		return -ENOMEM;

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	atomic_inc(&ht->shift);
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	/* Make insertions go into the new, empty table right away. Deletions
	 * and lookups will be attempted in both tables until we synchronize.
	 * The synchronize_rcu() guarantees for the new table to be picked up
	 * so no new additions go into the old table while we relink.
	 */
	rcu_assign_pointer(ht->future_tbl, new_tbl);
	synchronize_rcu();

	/* For each new bucket, search the corresponding old bucket for the
	 * first entry that hashes to the new bucket, and link the end of
	 * newly formed bucket chain (containing entries added to future
	 * table) to that entry. Since all the entries which will end up in
	 * the new bucket appear in the same old bucket, this constructs an
	 * entirely valid new hash table, but with multiple buckets
	 * "zipped" together into a single imprecise chain.
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	 */
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	for (new_hash = 0; new_hash < new_tbl->size; new_hash++) {
		old_hash = rht_bucket_index(old_tbl, new_hash);
		old_bucket_lock = bucket_lock(old_tbl, old_hash);

		spin_lock_bh(old_bucket_lock);
		rht_for_each(he, old_tbl, old_hash) {
			if (head_hashfn(ht, new_tbl, he) == new_hash) {
				link_old_to_new(new_tbl, new_hash, he);
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				break;
			}
		}
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		spin_unlock_bh(old_bucket_lock);
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	}

	/* Publish the new table pointer. Lookups may now traverse
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	 * the new table, but they will not benefit from any
	 * additional efficiency until later steps unzip the buckets.
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	 */
	rcu_assign_pointer(ht->tbl, new_tbl);

	/* Unzip interleaved hash chains */
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	while (!complete && !ht->being_destroyed) {
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		/* Wait for readers. All new readers will see the new
		 * table, and thus no references to the old table will
		 * remain.
		 */
		synchronize_rcu();

		/* For each bucket in the old table (each of which
		 * contains items from multiple buckets of the new
		 * table): ...
		 */
		complete = true;
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		for (old_hash = 0; old_hash < old_tbl->size; old_hash++) {
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			struct rhash_head *head;

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			old_bucket_lock = bucket_lock(old_tbl, old_hash);
			spin_lock_bh(old_bucket_lock);

			hashtable_chain_unzip(ht, new_tbl, old_tbl, old_hash);
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			head = rht_dereference_bucket(old_tbl->buckets[old_hash],
						      old_tbl, old_hash);
			if (!rht_is_a_nulls(head))
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				complete = false;
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			spin_unlock_bh(old_bucket_lock);
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		}
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	}
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	bucket_table_free(old_tbl);
	return 0;
}
EXPORT_SYMBOL_GPL(rhashtable_expand);

/**
 * rhashtable_shrink - Shrink hash table while allowing concurrent lookups
 * @ht:		the hash table to shrink
 *
 * This function may only be called in a context where it is safe to call
 * synchronize_rcu(), e.g. not within a rcu_read_lock() section.
 *
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 * The caller must ensure that no concurrent resizing occurs by holding
 * ht->mutex.
 *
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 * The caller must ensure that no concurrent table mutations take place.
 * It is however valid to have concurrent lookups if they are RCU protected.
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 *
 * It is valid to have concurrent insertions and deletions protected by per
 * bucket locks or concurrent RCU protected lookups and traversals.
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 */
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int rhashtable_shrink(struct rhashtable *ht)
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{
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	struct bucket_table *new_tbl, *tbl = rht_dereference(ht->tbl, ht);
	spinlock_t *new_bucket_lock, *old_bucket_lock1, *old_bucket_lock2;
	unsigned int new_hash;
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	ASSERT_RHT_MUTEX(ht);

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	new_tbl = bucket_table_alloc(ht, tbl->size / 2);
	if (new_tbl == NULL)
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		return -ENOMEM;

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	rcu_assign_pointer(ht->future_tbl, new_tbl);
	synchronize_rcu();
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	/* Link the first entry in the old bucket to the end of the
	 * bucket in the new table. As entries are concurrently being
	 * added to the new table, lock down the new bucket. As we
	 * always divide the size in half when shrinking, each bucket
	 * in the new table maps to exactly two buckets in the old
	 * table.
	 *
	 * As removals can occur concurrently on the old table, we need
	 * to lock down both matching buckets in the old table.
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	 */
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	for (new_hash = 0; new_hash < new_tbl->size; new_hash++) {
		old_bucket_lock1 = bucket_lock(tbl, new_hash);
		old_bucket_lock2 = bucket_lock(tbl, new_hash + new_tbl->size);
		new_bucket_lock = bucket_lock(new_tbl, new_hash);

		spin_lock_bh(old_bucket_lock1);
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		/* Depending on the lock per buckets mapping, the bucket in
		 * the lower and upper region may map to the same lock.
		 */
		if (old_bucket_lock1 != old_bucket_lock2) {
			spin_lock_bh_nested(old_bucket_lock2, RHT_LOCK_NESTED);
			spin_lock_bh_nested(new_bucket_lock, RHT_LOCK_NESTED2);
		} else {
			spin_lock_bh_nested(new_bucket_lock, RHT_LOCK_NESTED);
		}
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		rcu_assign_pointer(*bucket_tail(new_tbl, new_hash),
				   tbl->buckets[new_hash]);
		rcu_assign_pointer(*bucket_tail(new_tbl, new_hash),
				   tbl->buckets[new_hash + new_tbl->size]);

		spin_unlock_bh(new_bucket_lock);
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		if (old_bucket_lock1 != old_bucket_lock2)
			spin_unlock_bh(old_bucket_lock2);
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		spin_unlock_bh(old_bucket_lock1);
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	}

	/* Publish the new, valid hash table */
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	rcu_assign_pointer(ht->tbl, new_tbl);
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	atomic_dec(&ht->shift);
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	/* Wait for readers. No new readers will have references to the
	 * old hash table.
	 */
	synchronize_rcu();

	bucket_table_free(tbl);

	return 0;
}
EXPORT_SYMBOL_GPL(rhashtable_shrink);

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static void rht_deferred_worker(struct work_struct *work)
{
	struct rhashtable *ht;
	struct bucket_table *tbl;
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	struct rhashtable_walker *walker;
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	ht = container_of(work, struct rhashtable, run_work);
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	mutex_lock(&ht->mutex);
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	if (ht->being_destroyed)
		goto unlock;

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	tbl = rht_dereference(ht->tbl, ht);

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	list_for_each_entry(walker, &ht->walkers, list)
		walker->resize = true;

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	if (ht->p.grow_decision && ht->p.grow_decision(ht, tbl->size))
		rhashtable_expand(ht);
	else if (ht->p.shrink_decision && ht->p.shrink_decision(ht, tbl->size))
		rhashtable_shrink(ht);

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unlock:
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	mutex_unlock(&ht->mutex);
}

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static void rhashtable_wakeup_worker(struct rhashtable *ht)
{
	struct bucket_table *tbl = rht_dereference_rcu(ht->tbl, ht);
	struct bucket_table *new_tbl = rht_dereference_rcu(ht->future_tbl, ht);
	size_t size = tbl->size;

	/* Only adjust the table if no resizing is currently in progress. */
	if (tbl == new_tbl &&
	    ((ht->p.grow_decision && ht->p.grow_decision(ht, size)) ||
	     (ht->p.shrink_decision && ht->p.shrink_decision(ht, size))))
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		schedule_work(&ht->run_work);
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}

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static void __rhashtable_insert(struct rhashtable *ht, struct rhash_head *obj,
				struct bucket_table *tbl, u32 hash)
{
	struct rhash_head *head = rht_dereference_bucket(tbl->buckets[hash],
							 tbl, hash);

	if (rht_is_a_nulls(head))
		INIT_RHT_NULLS_HEAD(obj->next, ht, hash);
	else
		RCU_INIT_POINTER(obj->next, head);

	rcu_assign_pointer(tbl->buckets[hash], obj);

	atomic_inc(&ht->nelems);

	rhashtable_wakeup_worker(ht);
}

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/**
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 * rhashtable_insert - insert object into hash table
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 * @ht:		hash table
 * @obj:	pointer to hash head inside object
 *
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 * Will take a per bucket spinlock to protect against mutual mutations
 * on the same bucket. Multiple insertions may occur in parallel unless
 * they map to the same bucket lock.
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 *
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 * It is safe to call this function from atomic context.
 *
 * Will trigger an automatic deferred table resizing if the size grows
 * beyond the watermark indicated by grow_decision() which can be passed
 * to rhashtable_init().
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 */
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void rhashtable_insert(struct rhashtable *ht, struct rhash_head *obj)
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{
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	struct bucket_table *tbl;
	spinlock_t *lock;
	unsigned hash;
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	rcu_read_lock();
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	tbl = rht_dereference_rcu(ht->future_tbl, ht);
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	hash = head_hashfn(ht, tbl, obj);
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	lock = bucket_lock(tbl, hash);

	spin_lock_bh(lock);
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	__rhashtable_insert(ht, obj, tbl, hash);
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	spin_unlock_bh(lock);
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	rcu_read_unlock();
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}
EXPORT_SYMBOL_GPL(rhashtable_insert);

/**
 * rhashtable_remove - remove object from hash table
 * @ht:		hash table
 * @obj:	pointer to hash head inside object
 *
 * Since the hash chain is single linked, the removal operation needs to
 * walk the bucket chain upon removal. The removal operation is thus
 * considerable slow if the hash table is not correctly sized.
 *
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 * Will automatically shrink the table via rhashtable_expand() if the
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 * shrink_decision function specified at rhashtable_init() returns true.
 *
 * The caller must ensure that no concurrent table mutations occur. It is
 * however valid to have concurrent lookups if they are RCU protected.
 */
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bool rhashtable_remove(struct rhashtable *ht, struct rhash_head *obj)
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{
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	struct bucket_table *tbl;
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	struct rhash_head __rcu **pprev;
	struct rhash_head *he;
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	spinlock_t *lock;
	unsigned int hash;
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	bool ret = false;
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	rcu_read_lock();
	tbl = rht_dereference_rcu(ht->tbl, ht);
	hash = head_hashfn(ht, tbl, obj);
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	lock = bucket_lock(tbl, hash);
	spin_lock_bh(lock);
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restart:
	pprev = &tbl->buckets[hash];
	rht_for_each(he, tbl, hash) {
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		if (he != obj) {
			pprev = &he->next;
			continue;
		}

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		rcu_assign_pointer(*pprev, obj->next);
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		ret = true;
		break;
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	}

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	/* The entry may be linked in either 'tbl', 'future_tbl', or both.
	 * 'future_tbl' only exists for a short period of time during
	 * resizing. Thus traversing both is fine and the added cost is
	 * very rare.
	 */
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	if (tbl != rht_dereference_rcu(ht->future_tbl, ht)) {
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		spin_unlock_bh(lock);

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		tbl = rht_dereference_rcu(ht->future_tbl, ht);
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		hash = head_hashfn(ht, tbl, obj);

		lock = bucket_lock(tbl, hash);
		spin_lock_bh(lock);
		goto restart;
	}

	spin_unlock_bh(lock);
636 637 638 639 640 641

	if (ret) {
		atomic_dec(&ht->nelems);
		rhashtable_wakeup_worker(ht);
	}

642 643
	rcu_read_unlock();

644
	return ret;
645 646 647
}
EXPORT_SYMBOL_GPL(rhashtable_remove);

648 649 650 651 652 653 654 655 656 657 658 659 660
struct rhashtable_compare_arg {
	struct rhashtable *ht;
	const void *key;
};

static bool rhashtable_compare(void *ptr, void *arg)
{
	struct rhashtable_compare_arg *x = arg;
	struct rhashtable *ht = x->ht;

	return !memcmp(ptr + ht->p.key_offset, x->key, ht->p.key_len);
}

661 662 663 664 665 666 667 668 669
/**
 * rhashtable_lookup - lookup key in hash table
 * @ht:		hash table
 * @key:	pointer to key
 *
 * Computes the hash value for the key and traverses the bucket chain looking
 * for a entry with an identical key. The first matching entry is returned.
 *
 * This lookup function may only be used for fixed key hash table (key_len
670
 * parameter set). It will BUG() if used inappropriately.
671
 *
672
 * Lookups may occur in parallel with hashtable mutations and resizing.
673
 */
674
void *rhashtable_lookup(struct rhashtable *ht, const void *key)
675
{
676 677 678 679
	struct rhashtable_compare_arg arg = {
		.ht = ht,
		.key = key,
	};
680 681 682

	BUG_ON(!ht->p.key_len);

683
	return rhashtable_lookup_compare(ht, key, &rhashtable_compare, &arg);
684 685 686 687 688 689
}
EXPORT_SYMBOL_GPL(rhashtable_lookup);

/**
 * rhashtable_lookup_compare - search hash table with compare function
 * @ht:		hash table
690
 * @key:	the pointer to the key
691 692 693 694 695 696
 * @compare:	compare function, must return true on match
 * @arg:	argument passed on to compare function
 *
 * Traverses the bucket chain behind the provided hash value and calls the
 * specified compare function for each entry.
 *
697
 * Lookups may occur in parallel with hashtable mutations and resizing.
698 699 700
 *
 * Returns the first entry on which the compare function returned true.
 */
701
void *rhashtable_lookup_compare(struct rhashtable *ht, const void *key,
702 703
				bool (*compare)(void *, void *), void *arg)
{
704
	const struct bucket_table *tbl, *old_tbl;
705
	struct rhash_head *he;
706
	u32 hash;
707

708 709 710 711
	rcu_read_lock();

	old_tbl = rht_dereference_rcu(ht->tbl, ht);
	tbl = rht_dereference_rcu(ht->future_tbl, ht);
712
	hash = key_hashfn(ht, key, ht->p.key_len);
713 714
restart:
	rht_for_each_rcu(he, tbl, rht_bucket_index(tbl, hash)) {
715 716
		if (!compare(rht_obj(ht, he), arg))
			continue;
717
		rcu_read_unlock();
718
		return rht_obj(ht, he);
719 720
	}

721 722 723 724 725 726
	if (unlikely(tbl != old_tbl)) {
		tbl = old_tbl;
		goto restart;
	}
	rcu_read_unlock();

727 728 729 730
	return NULL;
}
EXPORT_SYMBOL_GPL(rhashtable_lookup_compare);

731 732 733 734 735 736 737 738 739 740 741 742 743 744 745 746 747 748 749 750 751
/**
 * rhashtable_lookup_insert - lookup and insert object into hash table
 * @ht:		hash table
 * @obj:	pointer to hash head inside object
 *
 * Locks down the bucket chain in both the old and new table if a resize
 * is in progress to ensure that writers can't remove from the old table
 * and can't insert to the new table during the atomic operation of search
 * and insertion. Searches for duplicates in both the old and new table if
 * a resize is in progress.
 *
 * This lookup function may only be used for fixed key hash table (key_len
 * parameter set). It will BUG() if used inappropriately.
 *
 * It is safe to call this function from atomic context.
 *
 * Will trigger an automatic deferred table resizing if the size grows
 * beyond the watermark indicated by grow_decision() which can be passed
 * to rhashtable_init().
 */
bool rhashtable_lookup_insert(struct rhashtable *ht, struct rhash_head *obj)
752 753 754 755 756 757 758 759 760 761 762 763 764 765 766 767 768 769 770 771 772 773 774 775 776 777 778 779 780 781 782 783 784 785 786 787 788
{
	struct rhashtable_compare_arg arg = {
		.ht = ht,
		.key = rht_obj(ht, obj) + ht->p.key_offset,
	};

	BUG_ON(!ht->p.key_len);

	return rhashtable_lookup_compare_insert(ht, obj, &rhashtable_compare,
						&arg);
}
EXPORT_SYMBOL_GPL(rhashtable_lookup_insert);

/**
 * rhashtable_lookup_compare_insert - search and insert object to hash table
 *                                    with compare function
 * @ht:		hash table
 * @obj:	pointer to hash head inside object
 * @compare:	compare function, must return true on match
 * @arg:	argument passed on to compare function
 *
 * Locks down the bucket chain in both the old and new table if a resize
 * is in progress to ensure that writers can't remove from the old table
 * and can't insert to the new table during the atomic operation of search
 * and insertion. Searches for duplicates in both the old and new table if
 * a resize is in progress.
 *
 * Lookups may occur in parallel with hashtable mutations and resizing.
 *
 * Will trigger an automatic deferred table resizing if the size grows
 * beyond the watermark indicated by grow_decision() which can be passed
 * to rhashtable_init().
 */
bool rhashtable_lookup_compare_insert(struct rhashtable *ht,
				      struct rhash_head *obj,
				      bool (*compare)(void *, void *),
				      void *arg)
789 790 791 792 793 794 795 796 797 798 799 800 801 802 803 804 805 806 807 808 809
{
	struct bucket_table *new_tbl, *old_tbl;
	spinlock_t *new_bucket_lock, *old_bucket_lock;
	u32 new_hash, old_hash;
	bool success = true;

	BUG_ON(!ht->p.key_len);

	rcu_read_lock();

	old_tbl = rht_dereference_rcu(ht->tbl, ht);
	old_hash = head_hashfn(ht, old_tbl, obj);
	old_bucket_lock = bucket_lock(old_tbl, old_hash);
	spin_lock_bh(old_bucket_lock);

	new_tbl = rht_dereference_rcu(ht->future_tbl, ht);
	new_hash = head_hashfn(ht, new_tbl, obj);
	new_bucket_lock = bucket_lock(new_tbl, new_hash);
	if (unlikely(old_tbl != new_tbl))
		spin_lock_bh_nested(new_bucket_lock, RHT_LOCK_NESTED);

810 811
	if (rhashtable_lookup_compare(ht, rht_obj(ht, obj) + ht->p.key_offset,
				      compare, arg)) {
812 813 814 815 816 817 818 819 820 821 822 823 824 825 826
		success = false;
		goto exit;
	}

	__rhashtable_insert(ht, obj, new_tbl, new_hash);

exit:
	if (unlikely(old_tbl != new_tbl))
		spin_unlock_bh(new_bucket_lock);
	spin_unlock_bh(old_bucket_lock);

	rcu_read_unlock();

	return success;
}
827
EXPORT_SYMBOL_GPL(rhashtable_lookup_compare_insert);
828

829 830 831 832 833 834 835 836 837 838 839 840 841 842 843 844 845 846 847 848 849 850 851 852 853 854 855 856 857 858 859 860 861 862 863 864 865 866 867 868 869 870 871 872 873 874 875 876 877 878 879 880 881 882 883 884 885 886 887 888 889 890 891 892 893 894 895 896 897 898 899 900 901 902 903 904 905 906 907 908 909 910 911 912 913 914 915 916 917 918 919 920 921 922 923 924 925 926 927 928 929 930 931 932 933 934 935 936 937 938 939 940 941 942 943 944 945 946 947 948 949 950 951 952 953 954 955 956 957 958 959 960 961 962 963 964 965 966 967 968 969 970 971 972 973 974 975 976 977 978 979 980 981 982 983 984 985 986
/**
 * rhashtable_walk_init - Initialise an iterator
 * @ht:		Table to walk over
 * @iter:	Hash table Iterator
 *
 * This function prepares a hash table walk.
 *
 * Note that if you restart a walk after rhashtable_walk_stop you
 * may see the same object twice.  Also, you may miss objects if
 * there are removals in between rhashtable_walk_stop and the next
 * call to rhashtable_walk_start.
 *
 * For a completely stable walk you should construct your own data
 * structure outside the hash table.
 *
 * This function may sleep so you must not call it from interrupt
 * context or with spin locks held.
 *
 * You must call rhashtable_walk_exit if this function returns
 * successfully.
 */
int rhashtable_walk_init(struct rhashtable *ht, struct rhashtable_iter *iter)
{
	iter->ht = ht;
	iter->p = NULL;
	iter->slot = 0;
	iter->skip = 0;

	iter->walker = kmalloc(sizeof(*iter->walker), GFP_KERNEL);
	if (!iter->walker)
		return -ENOMEM;

	mutex_lock(&ht->mutex);
	list_add(&iter->walker->list, &ht->walkers);
	mutex_unlock(&ht->mutex);

	return 0;
}
EXPORT_SYMBOL_GPL(rhashtable_walk_init);

/**
 * rhashtable_walk_exit - Free an iterator
 * @iter:	Hash table Iterator
 *
 * This function frees resources allocated by rhashtable_walk_init.
 */
void rhashtable_walk_exit(struct rhashtable_iter *iter)
{
	mutex_lock(&iter->ht->mutex);
	list_del(&iter->walker->list);
	mutex_unlock(&iter->ht->mutex);
	kfree(iter->walker);
}
EXPORT_SYMBOL_GPL(rhashtable_walk_exit);

/**
 * rhashtable_walk_start - Start a hash table walk
 * @iter:	Hash table iterator
 *
 * Start a hash table walk.  Note that we take the RCU lock in all
 * cases including when we return an error.  So you must always call
 * rhashtable_walk_stop to clean up.
 *
 * Returns zero if successful.
 *
 * Returns -EAGAIN if resize event occured.  Note that the iterator
 * will rewind back to the beginning and you may use it immediately
 * by calling rhashtable_walk_next.
 */
int rhashtable_walk_start(struct rhashtable_iter *iter)
{
	rcu_read_lock();

	if (iter->walker->resize) {
		iter->slot = 0;
		iter->skip = 0;
		iter->walker->resize = false;
		return -EAGAIN;
	}

	return 0;
}
EXPORT_SYMBOL_GPL(rhashtable_walk_start);

/**
 * rhashtable_walk_next - Return the next object and advance the iterator
 * @iter:	Hash table iterator
 *
 * Note that you must call rhashtable_walk_stop when you are finished
 * with the walk.
 *
 * Returns the next object or NULL when the end of the table is reached.
 *
 * Returns -EAGAIN if resize event occured.  Note that the iterator
 * will rewind back to the beginning and you may continue to use it.
 */
void *rhashtable_walk_next(struct rhashtable_iter *iter)
{
	const struct bucket_table *tbl;
	struct rhashtable *ht = iter->ht;
	struct rhash_head *p = iter->p;
	void *obj = NULL;

	tbl = rht_dereference_rcu(ht->tbl, ht);

	if (p) {
		p = rht_dereference_bucket_rcu(p->next, tbl, iter->slot);
		goto next;
	}

	for (; iter->slot < tbl->size; iter->slot++) {
		int skip = iter->skip;

		rht_for_each_rcu(p, tbl, iter->slot) {
			if (!skip)
				break;
			skip--;
		}

next:
		if (!rht_is_a_nulls(p)) {
			iter->skip++;
			iter->p = p;
			obj = rht_obj(ht, p);
			goto out;
		}

		iter->skip = 0;
	}

	iter->p = NULL;

out:
	if (iter->walker->resize) {
		iter->p = NULL;
		iter->slot = 0;
		iter->skip = 0;
		iter->walker->resize = false;
		return ERR_PTR(-EAGAIN);
	}

	return obj;
}
EXPORT_SYMBOL_GPL(rhashtable_walk_next);

/**
 * rhashtable_walk_stop - Finish a hash table walk
 * @iter:	Hash table iterator
 *
 * Finish a hash table walk.
 */
void rhashtable_walk_stop(struct rhashtable_iter *iter)
{
	rcu_read_unlock();
	iter->p = NULL;
}
EXPORT_SYMBOL_GPL(rhashtable_walk_stop);

987
static size_t rounded_hashtable_size(struct rhashtable_params *params)
988
{
989 990
	return max(roundup_pow_of_two(params->nelem_hint * 4 / 3),
		   1UL << params->min_shift);
991 992 993 994 995 996 997 998 999 1000 1001 1002 1003 1004 1005 1006 1007 1008 1009 1010 1011 1012
}

/**
 * rhashtable_init - initialize a new hash table
 * @ht:		hash table to be initialized
 * @params:	configuration parameters
 *
 * Initializes a new hash table based on the provided configuration
 * parameters. A table can be configured either with a variable or
 * fixed length key:
 *
 * Configuration Example 1: Fixed length keys
 * struct test_obj {
 *	int			key;
 *	void *			my_member;
 *	struct rhash_head	node;
 * };
 *
 * struct rhashtable_params params = {
 *	.head_offset = offsetof(struct test_obj, node),
 *	.key_offset = offsetof(struct test_obj, key),
 *	.key_len = sizeof(int),
1013
 *	.hashfn = jhash,
1014
 *	.nulls_base = (1U << RHT_BASE_SHIFT),
1015 1016 1017 1018 1019 1020 1021 1022 1023 1024 1025 1026 1027 1028 1029 1030 1031
 * };
 *
 * Configuration Example 2: Variable length keys
 * struct test_obj {
 *	[...]
 *	struct rhash_head	node;
 * };
 *
 * u32 my_hash_fn(const void *data, u32 seed)
 * {
 *	struct test_obj *obj = data;
 *
 *	return [... hash ...];
 * }
 *
 * struct rhashtable_params params = {
 *	.head_offset = offsetof(struct test_obj, node),
1032
 *	.hashfn = jhash,
1033 1034 1035 1036 1037 1038 1039 1040 1041 1042 1043 1044 1045 1046
 *	.obj_hashfn = my_hash_fn,
 * };
 */
int rhashtable_init(struct rhashtable *ht, struct rhashtable_params *params)
{
	struct bucket_table *tbl;
	size_t size;

	size = HASH_DEFAULT_SIZE;

	if ((params->key_len && !params->hashfn) ||
	    (!params->key_len && !params->obj_hashfn))
		return -EINVAL;

1047 1048 1049
	if (params->nulls_base && params->nulls_base < (1U << RHT_BASE_SHIFT))
		return -EINVAL;

1050 1051 1052
	params->min_shift = max_t(size_t, params->min_shift,
				  ilog2(HASH_MIN_SIZE));

1053
	if (params->nelem_hint)
1054
		size = rounded_hashtable_size(params);
1055

1056 1057 1058
	memset(ht, 0, sizeof(*ht));
	mutex_init(&ht->mutex);
	memcpy(&ht->p, params, sizeof(*params));
1059
	INIT_LIST_HEAD(&ht->walkers);
1060 1061 1062 1063 1064 1065 1066

	if (params->locks_mul)
		ht->p.locks_mul = roundup_pow_of_two(params->locks_mul);
	else
		ht->p.locks_mul = BUCKET_LOCKS_PER_CPU;

	tbl = bucket_table_alloc(ht, size);
1067 1068 1069
	if (tbl == NULL)
		return -ENOMEM;

1070
	atomic_set(&ht->nelems, 0);
1071
	atomic_set(&ht->shift, ilog2(tbl->size));
1072
	RCU_INIT_POINTER(ht->tbl, tbl);
1073
	RCU_INIT_POINTER(ht->future_tbl, tbl);
1074 1075 1076 1077

	if (!ht->p.hash_rnd)
		get_random_bytes(&ht->p.hash_rnd, sizeof(ht->p.hash_rnd));

1078
	if (ht->p.grow_decision || ht->p.shrink_decision)
1079
		INIT_WORK(&ht->run_work, rht_deferred_worker);
1080

1081 1082 1083 1084 1085 1086 1087 1088
	return 0;
}
EXPORT_SYMBOL_GPL(rhashtable_init);

/**
 * rhashtable_destroy - destroy hash table
 * @ht:		the hash table to destroy
 *
1089 1090 1091
 * Frees the bucket array. This function is not rcu safe, therefore the caller
 * has to make sure that no resizing may happen by unpublishing the hashtable
 * and waiting for the quiescent cycle before releasing the bucket array.
1092
 */
1093
void rhashtable_destroy(struct rhashtable *ht)
1094
{
1095 1096
	ht->being_destroyed = true;

1097 1098
	if (ht->p.grow_decision || ht->p.shrink_decision)
		cancel_work_sync(&ht->run_work);
1099

1100
	mutex_lock(&ht->mutex);
1101 1102
	bucket_table_free(rht_dereference(ht->tbl, ht));
	mutex_unlock(&ht->mutex);
1103 1104
}
EXPORT_SYMBOL_GPL(rhashtable_destroy);