nf_conntrack_core.c 35.1 KB
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/* Connection state tracking for netfilter.  This is separated from,
   but required by, the NAT layer; it can also be used by an iptables
   extension. */

/* (C) 1999-2001 Paul `Rusty' Russell
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 * (C) 2002-2006 Netfilter Core Team <coreteam@netfilter.org>
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 * (C) 2003,2004 USAGI/WIDE Project <http://www.linux-ipv6.org>
 *
 * 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/types.h>
#include <linux/netfilter.h>
#include <linux/module.h>
#include <linux/skbuff.h>
#include <linux/proc_fs.h>
#include <linux/vmalloc.h>
#include <linux/stddef.h>
#include <linux/slab.h>
#include <linux/random.h>
#include <linux/jhash.h>
#include <linux/err.h>
#include <linux/percpu.h>
#include <linux/moduleparam.h>
#include <linux/notifier.h>
#include <linux/kernel.h>
#include <linux/netdevice.h>
#include <linux/socket.h>
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#include <linux/mm.h>
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#include <net/netfilter/nf_conntrack.h>
#include <net/netfilter/nf_conntrack_l3proto.h>
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#include <net/netfilter/nf_conntrack_l4proto.h>
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#include <net/netfilter/nf_conntrack_expect.h>
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#include <net/netfilter/nf_conntrack_helper.h>
#include <net/netfilter/nf_conntrack_core.h>

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#define NF_CONNTRACK_VERSION	"0.5.0"
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#if 0
#define DEBUGP printk
#else
#define DEBUGP(format, args...)
#endif

DEFINE_RWLOCK(nf_conntrack_lock);
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EXPORT_SYMBOL_GPL(nf_conntrack_lock);
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/* nf_conntrack_standalone needs this */
atomic_t nf_conntrack_count = ATOMIC_INIT(0);
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EXPORT_SYMBOL_GPL(nf_conntrack_count);
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void (*nf_conntrack_destroyed)(struct nf_conn *conntrack);
EXPORT_SYMBOL_GPL(nf_conntrack_destroyed);

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unsigned int nf_conntrack_htable_size __read_mostly;
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EXPORT_SYMBOL_GPL(nf_conntrack_htable_size);

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int nf_conntrack_max __read_mostly;
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EXPORT_SYMBOL_GPL(nf_conntrack_max);
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struct list_head *nf_conntrack_hash __read_mostly;
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EXPORT_SYMBOL_GPL(nf_conntrack_hash);

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struct nf_conn nf_conntrack_untracked __read_mostly;
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EXPORT_SYMBOL_GPL(nf_conntrack_untracked);

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unsigned int nf_ct_log_invalid __read_mostly;
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LIST_HEAD(unconfirmed);
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static int nf_conntrack_vmalloc __read_mostly;
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static unsigned int nf_conntrack_next_id;
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DEFINE_PER_CPU(struct ip_conntrack_stat, nf_conntrack_stat);
EXPORT_PER_CPU_SYMBOL(nf_conntrack_stat);

/*
 * This scheme offers various size of "struct nf_conn" dependent on
 * features(helper, nat, ...)
 */

#define NF_CT_FEATURES_NAMELEN	256
static struct {
	/* name of slab cache. printed in /proc/slabinfo */
	char *name;

	/* size of slab cache */
	size_t size;

	/* slab cache pointer */
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	struct kmem_cache *cachep;
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	/* allocated slab cache + modules which uses this slab cache */
	int use;

} nf_ct_cache[NF_CT_F_NUM];

/* protect members of nf_ct_cache except of "use" */
DEFINE_RWLOCK(nf_ct_cache_lock);

/* This avoids calling kmem_cache_create() with same name simultaneously */
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static DEFINE_MUTEX(nf_ct_cache_mutex);
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static int nf_conntrack_hash_rnd_initted;
static unsigned int nf_conntrack_hash_rnd;

static u_int32_t __hash_conntrack(const struct nf_conntrack_tuple *tuple,
				  unsigned int size, unsigned int rnd)
{
	unsigned int a, b;
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	a = jhash2(tuple->src.u3.all, ARRAY_SIZE(tuple->src.u3.all),
		   (tuple->src.l3num << 16) | tuple->dst.protonum);
	b = jhash2(tuple->dst.u3.all, ARRAY_SIZE(tuple->dst.u3.all),
		   (tuple->src.u.all << 16) | tuple->dst.u.all);
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	return jhash_2words(a, b, rnd) % size;
}

static inline u_int32_t hash_conntrack(const struct nf_conntrack_tuple *tuple)
{
	return __hash_conntrack(tuple, nf_conntrack_htable_size,
				nf_conntrack_hash_rnd);
}

int nf_conntrack_register_cache(u_int32_t features, const char *name,
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				size_t size)
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{
	int ret = 0;
	char *cache_name;
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	struct kmem_cache *cachep;
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	DEBUGP("nf_conntrack_register_cache: features=0x%x, name=%s, size=%d\n",
	       features, name, size);

	if (features < NF_CT_F_BASIC || features >= NF_CT_F_NUM) {
		DEBUGP("nf_conntrack_register_cache: invalid features.: 0x%x\n",
			features);
		return -EINVAL;
	}

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	mutex_lock(&nf_ct_cache_mutex);
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	write_lock_bh(&nf_ct_cache_lock);
	/* e.g: multiple helpers are loaded */
	if (nf_ct_cache[features].use > 0) {
		DEBUGP("nf_conntrack_register_cache: already resisterd.\n");
		if ((!strncmp(nf_ct_cache[features].name, name,
			      NF_CT_FEATURES_NAMELEN))
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		    && nf_ct_cache[features].size == size) {
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			DEBUGP("nf_conntrack_register_cache: reusing.\n");
			nf_ct_cache[features].use++;
			ret = 0;
		} else
			ret = -EBUSY;

		write_unlock_bh(&nf_ct_cache_lock);
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		mutex_unlock(&nf_ct_cache_mutex);
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		return ret;
	}
	write_unlock_bh(&nf_ct_cache_lock);

	/*
	 * The memory space for name of slab cache must be alive until
	 * cache is destroyed.
	 */
	cache_name = kmalloc(sizeof(char)*NF_CT_FEATURES_NAMELEN, GFP_ATOMIC);
	if (cache_name == NULL) {
		DEBUGP("nf_conntrack_register_cache: can't alloc cache_name\n");
		ret = -ENOMEM;
		goto out_up_mutex;
	}

	if (strlcpy(cache_name, name, NF_CT_FEATURES_NAMELEN)
						>= NF_CT_FEATURES_NAMELEN) {
		printk("nf_conntrack_register_cache: name too long\n");
		ret = -EINVAL;
		goto out_free_name;
	}

	cachep = kmem_cache_create(cache_name, size, 0, 0,
				   NULL, NULL);
	if (!cachep) {
		printk("nf_conntrack_register_cache: Can't create slab cache "
		       "for the features = 0x%x\n", features);
		ret = -ENOMEM;
		goto out_free_name;
	}

	write_lock_bh(&nf_ct_cache_lock);
	nf_ct_cache[features].use = 1;
	nf_ct_cache[features].size = size;
	nf_ct_cache[features].cachep = cachep;
	nf_ct_cache[features].name = cache_name;
	write_unlock_bh(&nf_ct_cache_lock);

	goto out_up_mutex;

out_free_name:
	kfree(cache_name);
out_up_mutex:
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	mutex_unlock(&nf_ct_cache_mutex);
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	return ret;
}
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EXPORT_SYMBOL_GPL(nf_conntrack_register_cache);
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/* FIXME: In the current, only nf_conntrack_cleanup() can call this function. */
void nf_conntrack_unregister_cache(u_int32_t features)
{
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	struct kmem_cache *cachep;
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	char *name;

	/*
	 * This assures that kmem_cache_create() isn't called before destroying
	 * slab cache.
	 */
	DEBUGP("nf_conntrack_unregister_cache: 0x%04x\n", features);
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	mutex_lock(&nf_ct_cache_mutex);
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	write_lock_bh(&nf_ct_cache_lock);
	if (--nf_ct_cache[features].use > 0) {
		write_unlock_bh(&nf_ct_cache_lock);
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		mutex_unlock(&nf_ct_cache_mutex);
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		return;
	}
	cachep = nf_ct_cache[features].cachep;
	name = nf_ct_cache[features].name;
	nf_ct_cache[features].cachep = NULL;
	nf_ct_cache[features].name = NULL;
	nf_ct_cache[features].size = 0;
	write_unlock_bh(&nf_ct_cache_lock);

	synchronize_net();

	kmem_cache_destroy(cachep);
	kfree(name);

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	mutex_unlock(&nf_ct_cache_mutex);
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}
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EXPORT_SYMBOL_GPL(nf_conntrack_unregister_cache);
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int
nf_ct_get_tuple(const struct sk_buff *skb,
		unsigned int nhoff,
		unsigned int dataoff,
		u_int16_t l3num,
		u_int8_t protonum,
		struct nf_conntrack_tuple *tuple,
		const struct nf_conntrack_l3proto *l3proto,
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		const struct nf_conntrack_l4proto *l4proto)
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{
	NF_CT_TUPLE_U_BLANK(tuple);

	tuple->src.l3num = l3num;
	if (l3proto->pkt_to_tuple(skb, nhoff, tuple) == 0)
		return 0;

	tuple->dst.protonum = protonum;
	tuple->dst.dir = IP_CT_DIR_ORIGINAL;

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	return l4proto->pkt_to_tuple(skb, dataoff, tuple);
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}
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EXPORT_SYMBOL_GPL(nf_ct_get_tuple);
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int
nf_ct_invert_tuple(struct nf_conntrack_tuple *inverse,
		   const struct nf_conntrack_tuple *orig,
		   const struct nf_conntrack_l3proto *l3proto,
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		   const struct nf_conntrack_l4proto *l4proto)
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{
	NF_CT_TUPLE_U_BLANK(inverse);

	inverse->src.l3num = orig->src.l3num;
	if (l3proto->invert_tuple(inverse, orig) == 0)
		return 0;

	inverse->dst.dir = !orig->dst.dir;

	inverse->dst.protonum = orig->dst.protonum;
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	return l4proto->invert_tuple(inverse, orig);
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}
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EXPORT_SYMBOL_GPL(nf_ct_invert_tuple);
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static void
clean_from_lists(struct nf_conn *ct)
{
	DEBUGP("clean_from_lists(%p)\n", ct);
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	list_del(&ct->tuplehash[IP_CT_DIR_ORIGINAL].list);
	list_del(&ct->tuplehash[IP_CT_DIR_REPLY].list);
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	/* Destroy all pending expectations */
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	nf_ct_remove_expectations(ct);
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}

static void
destroy_conntrack(struct nf_conntrack *nfct)
{
	struct nf_conn *ct = (struct nf_conn *)nfct;
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	struct nf_conn_help *help = nfct_help(ct);
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	struct nf_conntrack_l3proto *l3proto;
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	struct nf_conntrack_l4proto *l4proto;
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	typeof(nf_conntrack_destroyed) destroyed;
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	DEBUGP("destroy_conntrack(%p)\n", ct);
	NF_CT_ASSERT(atomic_read(&nfct->use) == 0);
	NF_CT_ASSERT(!timer_pending(&ct->timeout));

	nf_conntrack_event(IPCT_DESTROY, ct);
	set_bit(IPS_DYING_BIT, &ct->status);

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	if (help && help->helper && help->helper->destroy)
		help->helper->destroy(ct);

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	/* To make sure we don't get any weird locking issues here:
	 * destroy_conntrack() MUST NOT be called with a write lock
	 * to nf_conntrack_lock!!! -HW */
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	rcu_read_lock();
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	l3proto = __nf_ct_l3proto_find(ct->tuplehash[IP_CT_DIR_REPLY].tuple.src.l3num);
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	if (l3proto && l3proto->destroy)
		l3proto->destroy(ct);

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	l4proto = __nf_ct_l4proto_find(ct->tuplehash[IP_CT_DIR_REPLY].tuple.src.l3num,
				       ct->tuplehash[IP_CT_DIR_REPLY].tuple.dst.protonum);
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	if (l4proto && l4proto->destroy)
		l4proto->destroy(ct);
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	destroyed = rcu_dereference(nf_conntrack_destroyed);
	if (destroyed)
		destroyed(ct);

	rcu_read_unlock();
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	write_lock_bh(&nf_conntrack_lock);
	/* Expectations will have been removed in clean_from_lists,
	 * except TFTP can create an expectation on the first packet,
	 * before connection is in the list, so we need to clean here,
	 * too. */
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	nf_ct_remove_expectations(ct);
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	/* We overload first tuple to link into unconfirmed list. */
	if (!nf_ct_is_confirmed(ct)) {
		BUG_ON(list_empty(&ct->tuplehash[IP_CT_DIR_ORIGINAL].list));
		list_del(&ct->tuplehash[IP_CT_DIR_ORIGINAL].list);
	}

	NF_CT_STAT_INC(delete);
	write_unlock_bh(&nf_conntrack_lock);

	if (ct->master)
		nf_ct_put(ct->master);

	DEBUGP("destroy_conntrack: returning ct=%p to slab\n", ct);
	nf_conntrack_free(ct);
}

static void death_by_timeout(unsigned long ul_conntrack)
{
	struct nf_conn *ct = (void *)ul_conntrack;

	write_lock_bh(&nf_conntrack_lock);
	/* Inside lock so preempt is disabled on module removal path.
	 * Otherwise we can get spurious warnings. */
	NF_CT_STAT_INC(delete_list);
	clean_from_lists(ct);
	write_unlock_bh(&nf_conntrack_lock);
	nf_ct_put(ct);
}

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struct nf_conntrack_tuple_hash *
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__nf_conntrack_find(const struct nf_conntrack_tuple *tuple,
		    const struct nf_conn *ignored_conntrack)
{
	struct nf_conntrack_tuple_hash *h;
	unsigned int hash = hash_conntrack(tuple);

	list_for_each_entry(h, &nf_conntrack_hash[hash], list) {
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		if (nf_ct_tuplehash_to_ctrack(h) != ignored_conntrack &&
		    nf_ct_tuple_equal(tuple, &h->tuple)) {
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			NF_CT_STAT_INC(found);
			return h;
		}
		NF_CT_STAT_INC(searched);
	}

	return NULL;
}
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EXPORT_SYMBOL_GPL(__nf_conntrack_find);
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/* Find a connection corresponding to a tuple. */
struct nf_conntrack_tuple_hash *
nf_conntrack_find_get(const struct nf_conntrack_tuple *tuple,
		      const struct nf_conn *ignored_conntrack)
{
	struct nf_conntrack_tuple_hash *h;

	read_lock_bh(&nf_conntrack_lock);
	h = __nf_conntrack_find(tuple, ignored_conntrack);
	if (h)
		atomic_inc(&nf_ct_tuplehash_to_ctrack(h)->ct_general.use);
	read_unlock_bh(&nf_conntrack_lock);

	return h;
}
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EXPORT_SYMBOL_GPL(nf_conntrack_find_get);
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static void __nf_conntrack_hash_insert(struct nf_conn *ct,
				       unsigned int hash,
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				       unsigned int repl_hash)
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{
	ct->id = ++nf_conntrack_next_id;
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	list_add(&ct->tuplehash[IP_CT_DIR_ORIGINAL].list,
		 &nf_conntrack_hash[hash]);
	list_add(&ct->tuplehash[IP_CT_DIR_REPLY].list,
		 &nf_conntrack_hash[repl_hash]);
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}

void nf_conntrack_hash_insert(struct nf_conn *ct)
{
	unsigned int hash, repl_hash;

	hash = hash_conntrack(&ct->tuplehash[IP_CT_DIR_ORIGINAL].tuple);
	repl_hash = hash_conntrack(&ct->tuplehash[IP_CT_DIR_REPLY].tuple);

	write_lock_bh(&nf_conntrack_lock);
	__nf_conntrack_hash_insert(ct, hash, repl_hash);
	write_unlock_bh(&nf_conntrack_lock);
}
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EXPORT_SYMBOL_GPL(nf_conntrack_hash_insert);
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/* Confirm a connection given skb; places it in hash table */
int
__nf_conntrack_confirm(struct sk_buff **pskb)
{
	unsigned int hash, repl_hash;
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	struct nf_conntrack_tuple_hash *h;
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	struct nf_conn *ct;
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	struct nf_conn_help *help;
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	enum ip_conntrack_info ctinfo;

	ct = nf_ct_get(*pskb, &ctinfo);

	/* ipt_REJECT uses nf_conntrack_attach to attach related
	   ICMP/TCP RST packets in other direction.  Actual packet
	   which created connection will be IP_CT_NEW or for an
	   expected connection, IP_CT_RELATED. */
	if (CTINFO2DIR(ctinfo) != IP_CT_DIR_ORIGINAL)
		return NF_ACCEPT;

	hash = hash_conntrack(&ct->tuplehash[IP_CT_DIR_ORIGINAL].tuple);
	repl_hash = hash_conntrack(&ct->tuplehash[IP_CT_DIR_REPLY].tuple);

	/* We're not in hash table, and we refuse to set up related
	   connections for unconfirmed conns.  But packet copies and
	   REJECT will give spurious warnings here. */
	/* NF_CT_ASSERT(atomic_read(&ct->ct_general.use) == 1); */

	/* No external references means noone else could have
	   confirmed us. */
	NF_CT_ASSERT(!nf_ct_is_confirmed(ct));
	DEBUGP("Confirming conntrack %p\n", ct);

	write_lock_bh(&nf_conntrack_lock);

	/* See if there's one in the list already, including reverse:
	   NAT could have grabbed it without realizing, since we're
	   not in the hash.  If there is, we lost race. */
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	list_for_each_entry(h, &nf_conntrack_hash[hash], list)
		if (nf_ct_tuple_equal(&ct->tuplehash[IP_CT_DIR_ORIGINAL].tuple,
				      &h->tuple))
			goto out;
	list_for_each_entry(h, &nf_conntrack_hash[repl_hash], list)
		if (nf_ct_tuple_equal(&ct->tuplehash[IP_CT_DIR_REPLY].tuple,
				      &h->tuple))
			goto out;
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	/* Remove from unconfirmed list */
	list_del(&ct->tuplehash[IP_CT_DIR_ORIGINAL].list);

	__nf_conntrack_hash_insert(ct, hash, repl_hash);
	/* Timer relative to confirmation time, not original
	   setting time, otherwise we'd get timer wrap in
	   weird delay cases. */
	ct->timeout.expires += jiffies;
	add_timer(&ct->timeout);
	atomic_inc(&ct->ct_general.use);
	set_bit(IPS_CONFIRMED_BIT, &ct->status);
	NF_CT_STAT_INC(insert);
	write_unlock_bh(&nf_conntrack_lock);
	help = nfct_help(ct);
	if (help && help->helper)
		nf_conntrack_event_cache(IPCT_HELPER, *pskb);
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#ifdef CONFIG_NF_NAT_NEEDED
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	if (test_bit(IPS_SRC_NAT_DONE_BIT, &ct->status) ||
	    test_bit(IPS_DST_NAT_DONE_BIT, &ct->status))
		nf_conntrack_event_cache(IPCT_NATINFO, *pskb);
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#endif
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	nf_conntrack_event_cache(master_ct(ct) ?
				 IPCT_RELATED : IPCT_NEW, *pskb);
	return NF_ACCEPT;
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out:
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	NF_CT_STAT_INC(insert_failed);
	write_unlock_bh(&nf_conntrack_lock);
	return NF_DROP;
}
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EXPORT_SYMBOL_GPL(__nf_conntrack_confirm);
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/* Returns true if a connection correspondings to the tuple (required
   for NAT). */
int
nf_conntrack_tuple_taken(const struct nf_conntrack_tuple *tuple,
			 const struct nf_conn *ignored_conntrack)
{
	struct nf_conntrack_tuple_hash *h;

	read_lock_bh(&nf_conntrack_lock);
	h = __nf_conntrack_find(tuple, ignored_conntrack);
	read_unlock_bh(&nf_conntrack_lock);

	return h != NULL;
}
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EXPORT_SYMBOL_GPL(nf_conntrack_tuple_taken);
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/* There's a small race here where we may free a just-assured
   connection.  Too bad: we're in trouble anyway. */
static int early_drop(struct list_head *chain)
{
	/* Traverse backwards: gives us oldest, which is roughly LRU */
	struct nf_conntrack_tuple_hash *h;
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	struct nf_conn *ct = NULL, *tmp;
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	int dropped = 0;

	read_lock_bh(&nf_conntrack_lock);
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	list_for_each_entry_reverse(h, chain, list) {
		tmp = nf_ct_tuplehash_to_ctrack(h);
		if (!test_bit(IPS_ASSURED_BIT, &tmp->status)) {
			ct = tmp;
			atomic_inc(&ct->ct_general.use);
			break;
		}
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	}
	read_unlock_bh(&nf_conntrack_lock);

	if (!ct)
		return dropped;

	if (del_timer(&ct->timeout)) {
		death_by_timeout((unsigned long)ct);
		dropped = 1;
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		NF_CT_STAT_INC_ATOMIC(early_drop);
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	}
	nf_ct_put(ct);
	return dropped;
}

static struct nf_conn *
__nf_conntrack_alloc(const struct nf_conntrack_tuple *orig,
		     const struct nf_conntrack_tuple *repl,
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		     const struct nf_conntrack_l3proto *l3proto,
		     u_int32_t features)
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{
	struct nf_conn *conntrack = NULL;
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	struct nf_conntrack_helper *helper;
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	if (unlikely(!nf_conntrack_hash_rnd_initted)) {
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		get_random_bytes(&nf_conntrack_hash_rnd, 4);
		nf_conntrack_hash_rnd_initted = 1;
	}

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	/* We don't want any race condition at early drop stage */
	atomic_inc(&nf_conntrack_count);

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	if (nf_conntrack_max
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	    && atomic_read(&nf_conntrack_count) > nf_conntrack_max) {
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		unsigned int hash = hash_conntrack(orig);
		/* Try dropping from this hash chain. */
		if (!early_drop(&nf_conntrack_hash[hash])) {
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			atomic_dec(&nf_conntrack_count);
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			if (net_ratelimit())
				printk(KERN_WARNING
				       "nf_conntrack: table full, dropping"
				       " packet.\n");
			return ERR_PTR(-ENOMEM);
		}
	}

	/*  find features needed by this conntrack. */
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	features |= l3proto->get_features(orig);
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	/* FIXME: protect helper list per RCU */
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	read_lock_bh(&nf_conntrack_lock);
594
	helper = __nf_ct_helper_find(repl);
595 596
	/* NAT might want to assign a helper later */
	if (helper || features & NF_CT_F_NAT)
597 598 599 600 601 602 603
		features |= NF_CT_F_HELP;
	read_unlock_bh(&nf_conntrack_lock);

	DEBUGP("nf_conntrack_alloc: features=0x%x\n", features);

	read_lock_bh(&nf_ct_cache_lock);

604
	if (unlikely(!nf_ct_cache[features].use)) {
605 606 607 608 609 610 611 612 613 614 615 616 617 618 619 620 621 622 623 624 625
		DEBUGP("nf_conntrack_alloc: not supported features = 0x%x\n",
			features);
		goto out;
	}

	conntrack = kmem_cache_alloc(nf_ct_cache[features].cachep, GFP_ATOMIC);
	if (conntrack == NULL) {
		DEBUGP("nf_conntrack_alloc: Can't alloc conntrack from cache\n");
		goto out;
	}

	memset(conntrack, 0, nf_ct_cache[features].size);
	conntrack->features = features;
	atomic_set(&conntrack->ct_general.use, 1);
	conntrack->ct_general.destroy = destroy_conntrack;
	conntrack->tuplehash[IP_CT_DIR_ORIGINAL].tuple = *orig;
	conntrack->tuplehash[IP_CT_DIR_REPLY].tuple = *repl;
	/* Don't set timer yet: wait for confirmation */
	init_timer(&conntrack->timeout);
	conntrack->timeout.data = (unsigned long)conntrack;
	conntrack->timeout.function = death_by_timeout;
626
	read_unlock_bh(&nf_ct_cache_lock);
627

628
	return conntrack;
629 630
out:
	read_unlock_bh(&nf_ct_cache_lock);
631
	atomic_dec(&nf_conntrack_count);
632 633 634 635 636 637 638
	return conntrack;
}

struct nf_conn *nf_conntrack_alloc(const struct nf_conntrack_tuple *orig,
				   const struct nf_conntrack_tuple *repl)
{
	struct nf_conntrack_l3proto *l3proto;
639
	struct nf_conn *ct;
640

641
	rcu_read_lock();
642
	l3proto = __nf_ct_l3proto_find(orig->src.l3num);
643 644 645 646
	ct = __nf_conntrack_alloc(orig, repl, l3proto, 0);
	rcu_read_unlock();

	return ct;
647
}
648
EXPORT_SYMBOL_GPL(nf_conntrack_alloc);
649 650 651 652 653 654 655 656 657 658

void nf_conntrack_free(struct nf_conn *conntrack)
{
	u_int32_t features = conntrack->features;
	NF_CT_ASSERT(features >= NF_CT_F_BASIC && features < NF_CT_F_NUM);
	DEBUGP("nf_conntrack_free: features = 0x%x, conntrack=%p\n", features,
	       conntrack);
	kmem_cache_free(nf_ct_cache[features].cachep, conntrack);
	atomic_dec(&nf_conntrack_count);
}
659
EXPORT_SYMBOL_GPL(nf_conntrack_free);
660 661 662 663 664 665

/* Allocate a new conntrack: we return -ENOMEM if classification
   failed due to stress.  Otherwise it really is unclassifiable. */
static struct nf_conntrack_tuple_hash *
init_conntrack(const struct nf_conntrack_tuple *tuple,
	       struct nf_conntrack_l3proto *l3proto,
666
	       struct nf_conntrack_l4proto *l4proto,
667 668 669 670 671 672
	       struct sk_buff *skb,
	       unsigned int dataoff)
{
	struct nf_conn *conntrack;
	struct nf_conntrack_tuple repl_tuple;
	struct nf_conntrack_expect *exp;
673
	u_int32_t features = 0;
674

675
	if (!nf_ct_invert_tuple(&repl_tuple, tuple, l3proto, l4proto)) {
676 677 678 679
		DEBUGP("Can't invert tuple.\n");
		return NULL;
	}

680 681 682 683 684 685 686
	read_lock_bh(&nf_conntrack_lock);
	exp = __nf_conntrack_expect_find(tuple);
	if (exp && exp->helper)
		features = NF_CT_F_HELP;
	read_unlock_bh(&nf_conntrack_lock);

	conntrack = __nf_conntrack_alloc(tuple, &repl_tuple, l3proto, features);
687 688 689 690 691
	if (conntrack == NULL || IS_ERR(conntrack)) {
		DEBUGP("Can't allocate conntrack.\n");
		return (struct nf_conntrack_tuple_hash *)conntrack;
	}

692
	if (!l4proto->new(conntrack, skb, dataoff)) {
693 694 695 696 697 698 699 700 701 702 703 704 705 706
		nf_conntrack_free(conntrack);
		DEBUGP("init conntrack: can't track with proto module\n");
		return NULL;
	}

	write_lock_bh(&nf_conntrack_lock);
	exp = find_expectation(tuple);

	if (exp) {
		DEBUGP("conntrack: expectation arrives ct=%p exp=%p\n",
			conntrack, exp);
		/* Welcome, Mr. Bond.  We've been expecting you... */
		__set_bit(IPS_EXPECTED_BIT, &conntrack->status);
		conntrack->master = exp->master;
707 708
		if (exp->helper)
			nfct_help(conntrack)->helper = exp->helper;
709 710
#ifdef CONFIG_NF_CONNTRACK_MARK
		conntrack->mark = exp->master->mark;
711 712 713
#endif
#ifdef CONFIG_NF_CONNTRACK_SECMARK
		conntrack->secmark = exp->master->secmark;
714 715 716
#endif
		nf_conntrack_get(&conntrack->master->ct_general);
		NF_CT_STAT_INC(expect_new);
717 718 719 720 721
	} else {
		struct nf_conn_help *help = nfct_help(conntrack);

		if (help)
			help->helper = __nf_ct_helper_find(&repl_tuple);
722
		NF_CT_STAT_INC(new);
723
	}
724 725 726 727 728 729 730 731 732 733 734 735 736 737 738 739 740 741 742 743 744 745

	/* Overload tuple linked list to put us in unconfirmed list. */
	list_add(&conntrack->tuplehash[IP_CT_DIR_ORIGINAL].list, &unconfirmed);

	write_unlock_bh(&nf_conntrack_lock);

	if (exp) {
		if (exp->expectfn)
			exp->expectfn(conntrack, exp);
		nf_conntrack_expect_put(exp);
	}

	return &conntrack->tuplehash[IP_CT_DIR_ORIGINAL];
}

/* On success, returns conntrack ptr, sets skb->nfct and ctinfo */
static inline struct nf_conn *
resolve_normal_ct(struct sk_buff *skb,
		  unsigned int dataoff,
		  u_int16_t l3num,
		  u_int8_t protonum,
		  struct nf_conntrack_l3proto *l3proto,
746
		  struct nf_conntrack_l4proto *l4proto,
747 748 749 750 751 752 753
		  int *set_reply,
		  enum ip_conntrack_info *ctinfo)
{
	struct nf_conntrack_tuple tuple;
	struct nf_conntrack_tuple_hash *h;
	struct nf_conn *ct;

754
	if (!nf_ct_get_tuple(skb, skb_network_offset(skb),
755
			     dataoff, l3num, protonum, &tuple, l3proto,
756
			     l4proto)) {
757 758 759 760 761 762 763
		DEBUGP("resolve_normal_ct: Can't get tuple\n");
		return NULL;
	}

	/* look for tuple match */
	h = nf_conntrack_find_get(&tuple, NULL);
	if (!h) {
764
		h = init_conntrack(&tuple, l3proto, l4proto, skb, dataoff);
765 766 767 768 769 770 771 772 773 774 775 776 777 778 779 780 781 782 783 784 785 786 787 788 789 790 791 792 793 794 795 796 797 798 799 800 801
		if (!h)
			return NULL;
		if (IS_ERR(h))
			return (void *)h;
	}
	ct = nf_ct_tuplehash_to_ctrack(h);

	/* It exists; we have (non-exclusive) reference. */
	if (NF_CT_DIRECTION(h) == IP_CT_DIR_REPLY) {
		*ctinfo = IP_CT_ESTABLISHED + IP_CT_IS_REPLY;
		/* Please set reply bit if this packet OK */
		*set_reply = 1;
	} else {
		/* Once we've had two way comms, always ESTABLISHED. */
		if (test_bit(IPS_SEEN_REPLY_BIT, &ct->status)) {
			DEBUGP("nf_conntrack_in: normal packet for %p\n", ct);
			*ctinfo = IP_CT_ESTABLISHED;
		} else if (test_bit(IPS_EXPECTED_BIT, &ct->status)) {
			DEBUGP("nf_conntrack_in: related packet for %p\n", ct);
			*ctinfo = IP_CT_RELATED;
		} else {
			DEBUGP("nf_conntrack_in: new packet for %p\n", ct);
			*ctinfo = IP_CT_NEW;
		}
		*set_reply = 0;
	}
	skb->nfct = &ct->ct_general;
	skb->nfctinfo = *ctinfo;
	return ct;
}

unsigned int
nf_conntrack_in(int pf, unsigned int hooknum, struct sk_buff **pskb)
{
	struct nf_conn *ct;
	enum ip_conntrack_info ctinfo;
	struct nf_conntrack_l3proto *l3proto;
802
	struct nf_conntrack_l4proto *l4proto;
803 804 805 806 807 808 809
	unsigned int dataoff;
	u_int8_t protonum;
	int set_reply = 0;
	int ret;

	/* Previously seen (loopback or untracked)?  Ignore. */
	if ((*pskb)->nfct) {
810
		NF_CT_STAT_INC_ATOMIC(ignore);
811 812 813
		return NF_ACCEPT;
	}

814
	/* rcu_read_lock()ed by nf_hook_slow */
815
	l3proto = __nf_ct_l3proto_find((u_int16_t)pf);
816

817 818 819 820 821
	if ((ret = l3proto->prepare(pskb, hooknum, &dataoff, &protonum)) <= 0) {
		DEBUGP("not prepared to track yet or error occured\n");
		return -ret;
	}

822
	l4proto = __nf_ct_l4proto_find((u_int16_t)pf, protonum);
823 824 825 826

	/* It may be an special packet, error, unclean...
	 * inverse of the return code tells to the netfilter
	 * core what to do with the packet. */
827 828
	if (l4proto->error != NULL &&
	    (ret = l4proto->error(*pskb, dataoff, &ctinfo, pf, hooknum)) <= 0) {
829 830
		NF_CT_STAT_INC_ATOMIC(error);
		NF_CT_STAT_INC_ATOMIC(invalid);
831 832 833
		return -ret;
	}

834
	ct = resolve_normal_ct(*pskb, dataoff, pf, protonum, l3proto, l4proto,
835 836 837
			       &set_reply, &ctinfo);
	if (!ct) {
		/* Not valid part of a connection */
838
		NF_CT_STAT_INC_ATOMIC(invalid);
839 840 841 842 843
		return NF_ACCEPT;
	}

	if (IS_ERR(ct)) {
		/* Too stressed to deal. */
844
		NF_CT_STAT_INC_ATOMIC(drop);
845 846 847 848 849
		return NF_DROP;
	}

	NF_CT_ASSERT((*pskb)->nfct);

850
	ret = l4proto->packet(ct, *pskb, dataoff, ctinfo, pf, hooknum);
851 852 853 854 855 856
	if (ret < 0) {
		/* Invalid: inverse of the return code tells
		 * the netfilter core what to do */
		DEBUGP("nf_conntrack_in: Can't track with proto module\n");
		nf_conntrack_put((*pskb)->nfct);
		(*pskb)->nfct = NULL;
857
		NF_CT_STAT_INC_ATOMIC(invalid);
858 859 860 861 862 863 864 865
		return -ret;
	}

	if (set_reply && !test_and_set_bit(IPS_SEEN_REPLY_BIT, &ct->status))
		nf_conntrack_event_cache(IPCT_STATUS, *pskb);

	return ret;
}
866
EXPORT_SYMBOL_GPL(nf_conntrack_in);
867 868 869 870

int nf_ct_invert_tuplepr(struct nf_conntrack_tuple *inverse,
			 const struct nf_conntrack_tuple *orig)
{
871 872 873 874 875 876 877 878 879
	int ret;

	rcu_read_lock();
	ret = nf_ct_invert_tuple(inverse, orig,
				 __nf_ct_l3proto_find(orig->src.l3num),
				 __nf_ct_l4proto_find(orig->src.l3num,
						      orig->dst.protonum));
	rcu_read_unlock();
	return ret;
880
}
881
EXPORT_SYMBOL_GPL(nf_ct_invert_tuplepr);
882

883 884 885 886 887 888 889 890 891 892 893 894 895 896 897 898 899 900 901
/* Alter reply tuple (maybe alter helper).  This is for NAT, and is
   implicitly racy: see __nf_conntrack_confirm */
void nf_conntrack_alter_reply(struct nf_conn *ct,
			      const struct nf_conntrack_tuple *newreply)
{
	struct nf_conn_help *help = nfct_help(ct);

	write_lock_bh(&nf_conntrack_lock);
	/* Should be unconfirmed, so not in hash table yet */
	NF_CT_ASSERT(!nf_ct_is_confirmed(ct));

	DEBUGP("Altering reply tuple of %p to ", ct);
	NF_CT_DUMP_TUPLE(newreply);

	ct->tuplehash[IP_CT_DIR_REPLY].tuple = *newreply;
	if (!ct->master && help && help->expecting == 0)
		help->helper = __nf_ct_helper_find(newreply);
	write_unlock_bh(&nf_conntrack_lock);
}
902
EXPORT_SYMBOL_GPL(nf_conntrack_alter_reply);
903

904 905 906 907 908 909 910 911 912 913 914 915 916 917
/* Refresh conntrack for this many jiffies and do accounting if do_acct is 1 */
void __nf_ct_refresh_acct(struct nf_conn *ct,
			  enum ip_conntrack_info ctinfo,
			  const struct sk_buff *skb,
			  unsigned long extra_jiffies,
			  int do_acct)
{
	int event = 0;

	NF_CT_ASSERT(ct->timeout.data == (unsigned long)ct);
	NF_CT_ASSERT(skb);

	write_lock_bh(&nf_conntrack_lock);

918 919 920 921 922 923
	/* Only update if this is not a fixed timeout */
	if (test_bit(IPS_FIXED_TIMEOUT_BIT, &ct->status)) {
		write_unlock_bh(&nf_conntrack_lock);
		return;
	}

924 925 926 927 928
	/* If not in hash table, timer will not be active yet */
	if (!nf_ct_is_confirmed(ct)) {
		ct->timeout.expires = extra_jiffies;
		event = IPCT_REFRESH;
	} else {
929 930 931 932 933 934 935 936
		unsigned long newtime = jiffies + extra_jiffies;

		/* Only update the timeout if the new timeout is at least
		   HZ jiffies from the old timeout. Need del_timer for race
		   avoidance (may already be dying). */
		if (newtime - ct->timeout.expires >= HZ
		    && del_timer(&ct->timeout)) {
			ct->timeout.expires = newtime;
937 938 939 940 941 942 943 944 945
			add_timer(&ct->timeout);
			event = IPCT_REFRESH;
		}
	}

#ifdef CONFIG_NF_CT_ACCT
	if (do_acct) {
		ct->counters[CTINFO2DIR(ctinfo)].packets++;
		ct->counters[CTINFO2DIR(ctinfo)].bytes +=
946
			skb->len - skb_network_offset(skb);
947 948 949 950

		if ((ct->counters[CTINFO2DIR(ctinfo)].packets & 0x80000000)
		    || (ct->counters[CTINFO2DIR(ctinfo)].bytes & 0x80000000))
			event |= IPCT_COUNTER_FILLING;
951 952 953 954 955 956 957 958 959
	}
#endif

	write_unlock_bh(&nf_conntrack_lock);

	/* must be unlocked when calling event cache */
	if (event)
		nf_conntrack_event_cache(event, skb);
}
960
EXPORT_SYMBOL_GPL(__nf_ct_refresh_acct);
961

962
#if defined(CONFIG_NF_CT_NETLINK) || defined(CONFIG_NF_CT_NETLINK_MODULE)
963 964 965

#include <linux/netfilter/nfnetlink.h>
#include <linux/netfilter/nfnetlink_conntrack.h>
I
Ingo Molnar 已提交
966 967
#include <linux/mutex.h>

968 969 970 971 972 973 974 975 976 977 978 979 980 981 982 983

/* Generic function for tcp/udp/sctp/dccp and alike. This needs to be
 * in ip_conntrack_core, since we don't want the protocols to autoload
 * or depend on ctnetlink */
int nf_ct_port_tuple_to_nfattr(struct sk_buff *skb,
			       const struct nf_conntrack_tuple *tuple)
{
	NFA_PUT(skb, CTA_PROTO_SRC_PORT, sizeof(u_int16_t),
		&tuple->src.u.tcp.port);
	NFA_PUT(skb, CTA_PROTO_DST_PORT, sizeof(u_int16_t),
		&tuple->dst.u.tcp.port);
	return 0;

nfattr_failure:
	return -1;
}
984
EXPORT_SYMBOL_GPL(nf_ct_port_tuple_to_nfattr);
985 986 987 988 989 990 991 992 993 994 995 996 997 998 999

static const size_t cta_min_proto[CTA_PROTO_MAX] = {
	[CTA_PROTO_SRC_PORT-1]  = sizeof(u_int16_t),
	[CTA_PROTO_DST_PORT-1]  = sizeof(u_int16_t)
};

int nf_ct_port_nfattr_to_tuple(struct nfattr *tb[],
			       struct nf_conntrack_tuple *t)
{
	if (!tb[CTA_PROTO_SRC_PORT-1] || !tb[CTA_PROTO_DST_PORT-1])
		return -EINVAL;

	if (nfattr_bad_size(tb, CTA_PROTO_MAX, cta_min_proto))
		return -EINVAL;

1000 1001
	t->src.u.tcp.port = *(__be16 *)NFA_DATA(tb[CTA_PROTO_SRC_PORT-1]);
	t->dst.u.tcp.port = *(__be16 *)NFA_DATA(tb[CTA_PROTO_DST_PORT-1]);
1002 1003 1004

	return 0;
}
1005
EXPORT_SYMBOL_GPL(nf_ct_port_nfattr_to_tuple);
1006 1007
#endif

1008 1009 1010 1011 1012 1013 1014 1015 1016 1017 1018 1019 1020 1021 1022 1023 1024 1025
/* Used by ipt_REJECT and ip6t_REJECT. */
void __nf_conntrack_attach(struct sk_buff *nskb, struct sk_buff *skb)
{
	struct nf_conn *ct;
	enum ip_conntrack_info ctinfo;

	/* This ICMP is in reverse direction to the packet which caused it */
	ct = nf_ct_get(skb, &ctinfo);
	if (CTINFO2DIR(ctinfo) == IP_CT_DIR_ORIGINAL)
		ctinfo = IP_CT_RELATED + IP_CT_IS_REPLY;
	else
		ctinfo = IP_CT_RELATED;

	/* Attach to new skbuff, and increment count */
	nskb->nfct = &ct->ct_general;
	nskb->nfctinfo = ctinfo;
	nf_conntrack_get(nskb->nfct);
}
1026
EXPORT_SYMBOL_GPL(__nf_conntrack_attach);
1027 1028 1029 1030 1031 1032 1033 1034 1035 1036

static inline int
do_iter(const struct nf_conntrack_tuple_hash *i,
	int (*iter)(struct nf_conn *i, void *data),
	void *data)
{
	return iter(nf_ct_tuplehash_to_ctrack(i), data);
}

/* Bring out ya dead! */
P
Patrick McHardy 已提交
1037
static struct nf_conn *
1038 1039 1040
get_next_corpse(int (*iter)(struct nf_conn *i, void *data),
		void *data, unsigned int *bucket)
{
P
Patrick McHardy 已提交
1041 1042
	struct nf_conntrack_tuple_hash *h;
	struct nf_conn *ct;
1043 1044 1045

	write_lock_bh(&nf_conntrack_lock);
	for (; *bucket < nf_conntrack_htable_size; (*bucket)++) {
P
Patrick McHardy 已提交
1046 1047 1048 1049 1050
		list_for_each_entry(h, &nf_conntrack_hash[*bucket], list) {
			ct = nf_ct_tuplehash_to_ctrack(h);
			if (iter(ct, data))
				goto found;
		}
1051
	}
P
Patrick McHardy 已提交
1052 1053 1054
	list_for_each_entry(h, &unconfirmed, list) {
		ct = nf_ct_tuplehash_to_ctrack(h);
		if (iter(ct, data))
1055
			set_bit(IPS_DYING_BIT, &ct->status);
P
Patrick McHardy 已提交
1056
	}
1057
	write_unlock_bh(&nf_conntrack_lock);
P
Patrick McHardy 已提交
1058 1059
	return NULL;
found:
1060
	atomic_inc(&ct->ct_general.use);
1061
	write_unlock_bh(&nf_conntrack_lock);
P
Patrick McHardy 已提交
1062
	return ct;
1063 1064 1065 1066 1067
}

void
nf_ct_iterate_cleanup(int (*iter)(struct nf_conn *i, void *data), void *data)
{
P
Patrick McHardy 已提交
1068
	struct nf_conn *ct;
1069 1070
	unsigned int bucket = 0;

P
Patrick McHardy 已提交
1071
	while ((ct = get_next_corpse(iter, data, &bucket)) != NULL) {
1072 1073 1074 1075 1076 1077 1078 1079
		/* Time to push up daises... */
		if (del_timer(&ct->timeout))
			death_by_timeout((unsigned long)ct);
		/* ... else the timer will get him soon. */

		nf_ct_put(ct);
	}
}
1080
EXPORT_SYMBOL_GPL(nf_ct_iterate_cleanup);
1081 1082 1083 1084 1085 1086 1087 1088 1089 1090 1091

static int kill_all(struct nf_conn *i, void *data)
{
	return 1;
}

static void free_conntrack_hash(struct list_head *hash, int vmalloced, int size)
{
	if (vmalloced)
		vfree(hash);
	else
1092
		free_pages((unsigned long)hash,
1093 1094 1095
			   get_order(sizeof(struct list_head) * size));
}

1096
void nf_conntrack_flush(void)
1097 1098 1099
{
	nf_ct_iterate_cleanup(kill_all, NULL);
}
1100
EXPORT_SYMBOL_GPL(nf_conntrack_flush);
1101

1102 1103 1104 1105 1106 1107
/* Mishearing the voices in his head, our hero wonders how he's
   supposed to kill the mall. */
void nf_conntrack_cleanup(void)
{
	int i;

1108
	rcu_assign_pointer(ip_ct_attach, NULL);
1109

1110 1111 1112 1113 1114 1115 1116
	/* This makes sure all current packets have passed through
	   netfilter framework.  Roll on, two-stage module
	   delete... */
	synchronize_net();

	nf_ct_event_cache_flush();
 i_see_dead_people:
1117
	nf_conntrack_flush();
1118 1119 1120 1121
	if (atomic_read(&nf_conntrack_count) != 0) {
		schedule();
		goto i_see_dead_people;
	}
1122 1123 1124
	/* wait until all references to nf_conntrack_untracked are dropped */
	while (atomic_read(&nf_conntrack_untracked.ct_general.use) > 1)
		schedule();
1125 1126 1127 1128 1129 1130 1131 1132 1133 1134 1135 1136

	for (i = 0; i < NF_CT_F_NUM; i++) {
		if (nf_ct_cache[i].use == 0)
			continue;

		NF_CT_ASSERT(nf_ct_cache[i].use == 1);
		nf_ct_cache[i].use = 1;
		nf_conntrack_unregister_cache(i);
	}
	kmem_cache_destroy(nf_conntrack_expect_cachep);
	free_conntrack_hash(nf_conntrack_hash, nf_conntrack_vmalloc,
			    nf_conntrack_htable_size);
1137

1138
	nf_conntrack_proto_fini();
1139 1140 1141 1142 1143 1144 1145
}

static struct list_head *alloc_hashtable(int size, int *vmalloced)
{
	struct list_head *hash;
	unsigned int i;

1146 1147
	*vmalloced = 0;
	hash = (void*)__get_free_pages(GFP_KERNEL,
1148 1149
				       get_order(sizeof(struct list_head)
						 * size));
1150
	if (!hash) {
1151 1152 1153 1154 1155 1156
		*vmalloced = 1;
		printk(KERN_WARNING "nf_conntrack: falling back to vmalloc.\n");
		hash = vmalloc(sizeof(struct list_head) * size);
	}

	if (hash)
1157
		for (i = 0; i < size; i++)
1158 1159 1160 1161 1162 1163 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 1193 1194 1195 1196 1197 1198 1199 1200 1201 1202 1203 1204 1205 1206 1207 1208 1209 1210 1211 1212 1213 1214 1215 1216 1217 1218 1219 1220 1221 1222 1223 1224 1225 1226 1227 1228 1229 1230 1231 1232 1233 1234 1235 1236 1237 1238 1239 1240 1241 1242
			INIT_LIST_HEAD(&hash[i]);

	return hash;
}

int set_hashsize(const char *val, struct kernel_param *kp)
{
	int i, bucket, hashsize, vmalloced;
	int old_vmalloced, old_size;
	int rnd;
	struct list_head *hash, *old_hash;
	struct nf_conntrack_tuple_hash *h;

	/* On boot, we can set this without any fancy locking. */
	if (!nf_conntrack_htable_size)
		return param_set_uint(val, kp);

	hashsize = simple_strtol(val, NULL, 0);
	if (!hashsize)
		return -EINVAL;

	hash = alloc_hashtable(hashsize, &vmalloced);
	if (!hash)
		return -ENOMEM;

	/* We have to rehahs for the new table anyway, so we also can
	 * use a newrandom seed */
	get_random_bytes(&rnd, 4);

	write_lock_bh(&nf_conntrack_lock);
	for (i = 0; i < nf_conntrack_htable_size; i++) {
		while (!list_empty(&nf_conntrack_hash[i])) {
			h = list_entry(nf_conntrack_hash[i].next,
				       struct nf_conntrack_tuple_hash, list);
			list_del(&h->list);
			bucket = __hash_conntrack(&h->tuple, hashsize, rnd);
			list_add_tail(&h->list, &hash[bucket]);
		}
	}
	old_size = nf_conntrack_htable_size;
	old_vmalloced = nf_conntrack_vmalloc;
	old_hash = nf_conntrack_hash;

	nf_conntrack_htable_size = hashsize;
	nf_conntrack_vmalloc = vmalloced;
	nf_conntrack_hash = hash;
	nf_conntrack_hash_rnd = rnd;
	write_unlock_bh(&nf_conntrack_lock);

	free_conntrack_hash(old_hash, old_vmalloced, old_size);
	return 0;
}

module_param_call(hashsize, set_hashsize, param_get_uint,
		  &nf_conntrack_htable_size, 0600);

int __init nf_conntrack_init(void)
{
	int ret;

	/* Idea from tcp.c: use 1/16384 of memory.  On i386: 32MB
	 * machine has 256 buckets.  >= 1GB machines have 8192 buckets. */
	if (!nf_conntrack_htable_size) {
		nf_conntrack_htable_size
			= (((num_physpages << PAGE_SHIFT) / 16384)
			   / sizeof(struct list_head));
		if (num_physpages > (1024 * 1024 * 1024 / PAGE_SIZE))
			nf_conntrack_htable_size = 8192;
		if (nf_conntrack_htable_size < 16)
			nf_conntrack_htable_size = 16;
	}
	nf_conntrack_max = 8 * nf_conntrack_htable_size;

	printk("nf_conntrack version %s (%u buckets, %d max)\n",
	       NF_CONNTRACK_VERSION, nf_conntrack_htable_size,
	       nf_conntrack_max);

	nf_conntrack_hash = alloc_hashtable(nf_conntrack_htable_size,
					    &nf_conntrack_vmalloc);
	if (!nf_conntrack_hash) {
		printk(KERN_ERR "Unable to create nf_conntrack_hash\n");
		goto err_out;
	}

	ret = nf_conntrack_register_cache(NF_CT_F_BASIC, "nf_conntrack:basic",
1243
					  sizeof(struct nf_conn));
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	if (ret < 0) {
		printk(KERN_ERR "Unable to create nf_conn slab cache\n");
		goto err_free_hash;
	}

	nf_conntrack_expect_cachep = kmem_cache_create("nf_conntrack_expect",
					sizeof(struct nf_conntrack_expect),
					0, 0, NULL, NULL);
	if (!nf_conntrack_expect_cachep) {
		printk(KERN_ERR "Unable to create nf_expect slab cache\n");
		goto err_free_conntrack_slab;
	}

1257
	ret = nf_conntrack_proto_init();
1258 1259 1260
	if (ret < 0)
		goto out_free_expect_slab;

1261
	/* For use by REJECT target */
1262
	rcu_assign_pointer(ip_ct_attach, __nf_conntrack_attach);
1263

1264 1265 1266 1267 1268 1269 1270 1271
	/* Set up fake conntrack:
	    - to never be deleted, not in any hashes */
	atomic_set(&nf_conntrack_untracked.ct_general.use, 1);
	/*  - and look it like as a confirmed connection */
	set_bit(IPS_CONFIRMED_BIT, &nf_conntrack_untracked.status);

	return ret;

1272 1273
out_free_expect_slab:
	kmem_cache_destroy(nf_conntrack_expect_cachep);
1274 1275 1276 1277 1278 1279 1280 1281
err_free_conntrack_slab:
	nf_conntrack_unregister_cache(NF_CT_F_BASIC);
err_free_hash:
	free_conntrack_hash(nf_conntrack_hash, nf_conntrack_vmalloc,
			    nf_conntrack_htable_size);
err_out:
	return -ENOMEM;
}