fib_trie.c 66.6 KB
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/*
 *   This program is free software; you can redistribute it and/or
 *   modify it under the terms of the GNU General Public License
 *   as published by the Free Software Foundation; either version
 *   2 of the License, or (at your option) any later version.
 *
 *   Robert Olsson <robert.olsson@its.uu.se> Uppsala Universitet
 *     & Swedish University of Agricultural Sciences.
 *
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 *   Jens Laas <jens.laas@data.slu.se> Swedish University of
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 *     Agricultural Sciences.
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 *
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 *   Hans Liss <hans.liss@its.uu.se>  Uppsala Universitet
 *
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 * This work is based on the LPC-trie which is originally described in:
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 *
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 * An experimental study of compression methods for dynamic tries
 * Stefan Nilsson and Matti Tikkanen. Algorithmica, 33(1):19-33, 2002.
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 * http://www.csc.kth.se/~snilsson/software/dyntrie2/
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 *
 *
 * IP-address lookup using LC-tries. Stefan Nilsson and Gunnar Karlsson
 * IEEE Journal on Selected Areas in Communications, 17(6):1083-1092, June 1999
 *
 *
 * Code from fib_hash has been reused which includes the following header:
 *
 *
 * INET		An implementation of the TCP/IP protocol suite for the LINUX
 *		operating system.  INET is implemented using the  BSD Socket
 *		interface as the means of communication with the user level.
 *
 *		IPv4 FIB: lookup engine and maintenance routines.
 *
 *
 * Authors:	Alexey Kuznetsov, <kuznet@ms2.inr.ac.ru>
 *
 *		This program is free software; you can redistribute it and/or
 *		modify it under the terms of the GNU General Public License
 *		as published by the Free Software Foundation; either version
 *		2 of the License, or (at your option) any later version.
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 *
 * Substantial contributions to this work comes from:
 *
 *		David S. Miller, <davem@davemloft.net>
 *		Stephen Hemminger <shemminger@osdl.org>
 *		Paul E. McKenney <paulmck@us.ibm.com>
 *		Patrick McHardy <kaber@trash.net>
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 */

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#define VERSION "0.409"
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#include <linux/cache.h>
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#include <linux/uaccess.h>
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#include <linux/bitops.h>
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#include <linux/types.h>
#include <linux/kernel.h>
#include <linux/mm.h>
#include <linux/string.h>
#include <linux/socket.h>
#include <linux/sockios.h>
#include <linux/errno.h>
#include <linux/in.h>
#include <linux/inet.h>
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#include <linux/inetdevice.h>
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#include <linux/netdevice.h>
#include <linux/if_arp.h>
#include <linux/proc_fs.h>
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#include <linux/rcupdate.h>
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#include <linux/skbuff.h>
#include <linux/netlink.h>
#include <linux/init.h>
#include <linux/list.h>
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#include <linux/slab.h>
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#include <linux/export.h>
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#include <linux/vmalloc.h>
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#include <linux/notifier.h>
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#include <net/net_namespace.h>
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#include <net/ip.h>
#include <net/protocol.h>
#include <net/route.h>
#include <net/tcp.h>
#include <net/sock.h>
#include <net/ip_fib.h>
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#include <net/fib_notifier.h>
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#include <trace/events/fib.h>
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#include "fib_lookup.h"

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static int call_fib_entry_notifier(struct notifier_block *nb, struct net *net,
				   enum fib_event_type event_type, u32 dst,
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				   int dst_len, struct fib_alias *fa)
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{
	struct fib_entry_notifier_info info = {
		.dst = dst,
		.dst_len = dst_len,
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		.fi = fa->fa_info,
		.tos = fa->fa_tos,
		.type = fa->fa_type,
		.tb_id = fa->tb_id,
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	};
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	return call_fib4_notifier(nb, net, event_type, &info.info);
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}

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static int call_fib_entry_notifiers(struct net *net,
				    enum fib_event_type event_type, u32 dst,
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				    int dst_len, struct fib_alias *fa,
				    struct netlink_ext_ack *extack)
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{
	struct fib_entry_notifier_info info = {
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		.info.extack = extack,
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		.dst = dst,
		.dst_len = dst_len,
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		.fi = fa->fa_info,
		.tos = fa->fa_tos,
		.type = fa->fa_type,
		.tb_id = fa->tb_id,
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	};
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	return call_fib4_notifiers(net, event_type, &info.info);
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}

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#define MAX_STAT_DEPTH 32
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#define KEYLENGTH	(8*sizeof(t_key))
#define KEY_MAX		((t_key)~0)
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typedef unsigned int t_key;

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#define IS_TRIE(n)	((n)->pos >= KEYLENGTH)
#define IS_TNODE(n)	((n)->bits)
#define IS_LEAF(n)	(!(n)->bits)
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struct key_vector {
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	t_key key;
	unsigned char pos;		/* 2log(KEYLENGTH) bits needed */
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	unsigned char bits;		/* 2log(KEYLENGTH) bits needed */
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	unsigned char slen;
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	union {
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		/* This list pointer if valid if (pos | bits) == 0 (LEAF) */
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		struct hlist_head leaf;
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		/* This array is valid if (pos | bits) > 0 (TNODE) */
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		struct key_vector __rcu *tnode[0];
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	};
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};

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struct tnode {
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	struct rcu_head rcu;
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	t_key empty_children;		/* KEYLENGTH bits needed */
	t_key full_children;		/* KEYLENGTH bits needed */
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	struct key_vector __rcu *parent;
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	struct key_vector kv[1];
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#define tn_bits kv[0].bits
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};

#define TNODE_SIZE(n)	offsetof(struct tnode, kv[0].tnode[n])
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#define LEAF_SIZE	TNODE_SIZE(1)

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#ifdef CONFIG_IP_FIB_TRIE_STATS
struct trie_use_stats {
	unsigned int gets;
	unsigned int backtrack;
	unsigned int semantic_match_passed;
	unsigned int semantic_match_miss;
	unsigned int null_node_hit;
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	unsigned int resize_node_skipped;
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};
#endif

struct trie_stat {
	unsigned int totdepth;
	unsigned int maxdepth;
	unsigned int tnodes;
	unsigned int leaves;
	unsigned int nullpointers;
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	unsigned int prefixes;
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	unsigned int nodesizes[MAX_STAT_DEPTH];
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};
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struct trie {
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	struct key_vector kv[1];
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#ifdef CONFIG_IP_FIB_TRIE_STATS
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	struct trie_use_stats __percpu *stats;
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#endif
};

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static struct key_vector *resize(struct trie *t, struct key_vector *tn);
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static size_t tnode_free_size;

/*
 * synchronize_rcu after call_rcu for that many pages; it should be especially
 * useful before resizing the root node with PREEMPT_NONE configs; the value was
 * obtained experimentally, aiming to avoid visible slowdown.
 */
static const int sync_pages = 128;
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static struct kmem_cache *fn_alias_kmem __ro_after_init;
static struct kmem_cache *trie_leaf_kmem __ro_after_init;
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static inline struct tnode *tn_info(struct key_vector *kv)
{
	return container_of(kv, struct tnode, kv[0]);
}

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/* caller must hold RTNL */
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#define node_parent(tn) rtnl_dereference(tn_info(tn)->parent)
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#define get_child(tn, i) rtnl_dereference((tn)->tnode[i])
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/* caller must hold RCU read lock or RTNL */
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#define node_parent_rcu(tn) rcu_dereference_rtnl(tn_info(tn)->parent)
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#define get_child_rcu(tn, i) rcu_dereference_rtnl((tn)->tnode[i])
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/* wrapper for rcu_assign_pointer */
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static inline void node_set_parent(struct key_vector *n, struct key_vector *tp)
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{
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	if (n)
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		rcu_assign_pointer(tn_info(n)->parent, tp);
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}

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#define NODE_INIT_PARENT(n, p) RCU_INIT_POINTER(tn_info(n)->parent, p)
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/* This provides us with the number of children in this node, in the case of a
 * leaf this will return 0 meaning none of the children are accessible.
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 */
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static inline unsigned long child_length(const struct key_vector *tn)
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{
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	return (1ul << tn->bits) & ~(1ul);
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}
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#define get_cindex(key, kv) (((key) ^ (kv)->key) >> (kv)->pos)

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static inline unsigned long get_index(t_key key, struct key_vector *kv)
{
	unsigned long index = key ^ kv->key;

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	if ((BITS_PER_LONG <= KEYLENGTH) && (KEYLENGTH == kv->pos))
		return 0;

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	return index >> kv->pos;
}

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/* To understand this stuff, an understanding of keys and all their bits is
 * necessary. Every node in the trie has a key associated with it, but not
 * all of the bits in that key are significant.
 *
 * Consider a node 'n' and its parent 'tp'.
 *
 * If n is a leaf, every bit in its key is significant. Its presence is
 * necessitated by path compression, since during a tree traversal (when
 * searching for a leaf - unless we are doing an insertion) we will completely
 * ignore all skipped bits we encounter. Thus we need to verify, at the end of
 * a potentially successful search, that we have indeed been walking the
 * correct key path.
 *
 * Note that we can never "miss" the correct key in the tree if present by
 * following the wrong path. Path compression ensures that segments of the key
 * that are the same for all keys with a given prefix are skipped, but the
 * skipped part *is* identical for each node in the subtrie below the skipped
 * bit! trie_insert() in this implementation takes care of that.
 *
 * if n is an internal node - a 'tnode' here, the various parts of its key
 * have many different meanings.
 *
 * Example:
 * _________________________________________________________________
 * | i | i | i | i | i | i | i | N | N | N | S | S | S | S | S | C |
 * -----------------------------------------------------------------
 *  31  30  29  28  27  26  25  24  23  22  21  20  19  18  17  16
 *
 * _________________________________________________________________
 * | C | C | C | u | u | u | u | u | u | u | u | u | u | u | u | u |
 * -----------------------------------------------------------------
 *  15  14  13  12  11  10   9   8   7   6   5   4   3   2   1   0
 *
 * tp->pos = 22
 * tp->bits = 3
 * n->pos = 13
 * n->bits = 4
 *
 * First, let's just ignore the bits that come before the parent tp, that is
 * the bits from (tp->pos + tp->bits) to 31. They are *known* but at this
 * point we do not use them for anything.
 *
 * The bits from (tp->pos) to (tp->pos + tp->bits - 1) - "N", above - are the
 * index into the parent's child array. That is, they will be used to find
 * 'n' among tp's children.
 *
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 * The bits from (n->pos + n->bits) to (tp->pos - 1) - "S" - are skipped bits
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 * for the node n.
 *
 * All the bits we have seen so far are significant to the node n. The rest
 * of the bits are really not needed or indeed known in n->key.
 *
 * The bits from (n->pos) to (n->pos + n->bits - 1) - "C" - are the index into
 * n's child array, and will of course be different for each child.
 *
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 * The rest of the bits, from 0 to (n->pos -1) - "u" - are completely unknown
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 * at this point.
 */
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static const int halve_threshold = 25;
static const int inflate_threshold = 50;
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static const int halve_threshold_root = 15;
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static const int inflate_threshold_root = 30;
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static void __alias_free_mem(struct rcu_head *head)
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{
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	struct fib_alias *fa = container_of(head, struct fib_alias, rcu);
	kmem_cache_free(fn_alias_kmem, fa);
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}

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static inline void alias_free_mem_rcu(struct fib_alias *fa)
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{
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	call_rcu(&fa->rcu, __alias_free_mem);
}
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#define TNODE_KMALLOC_MAX \
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	ilog2((PAGE_SIZE - TNODE_SIZE(0)) / sizeof(struct key_vector *))
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#define TNODE_VMALLOC_MAX \
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	ilog2((SIZE_MAX - TNODE_SIZE(0)) / sizeof(struct key_vector *))
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static void __node_free_rcu(struct rcu_head *head)
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{
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	struct tnode *n = container_of(head, struct tnode, rcu);
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324
	if (!n->tn_bits)
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		kmem_cache_free(trie_leaf_kmem, n);
	else
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		kvfree(n);
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}

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#define node_free(n) call_rcu(&tn_info(n)->rcu, __node_free_rcu)
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static struct tnode *tnode_alloc(int bits)
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{
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	size_t size;

	/* verify bits is within bounds */
	if (bits > TNODE_VMALLOC_MAX)
		return NULL;

	/* determine size and verify it is non-zero and didn't overflow */
	size = TNODE_SIZE(1ul << bits);

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	if (size <= PAGE_SIZE)
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		return kzalloc(size, GFP_KERNEL);
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	else
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		return vzalloc(size);
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}
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static inline void empty_child_inc(struct key_vector *n)
350
{
351
	++tn_info(n)->empty_children ? : ++tn_info(n)->full_children;
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}

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static inline void empty_child_dec(struct key_vector *n)
355
{
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	tn_info(n)->empty_children-- ? : tn_info(n)->full_children--;
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}

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static struct key_vector *leaf_new(t_key key, struct fib_alias *fa)
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{
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	struct key_vector *l;
	struct tnode *kv;
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	kv = kmem_cache_alloc(trie_leaf_kmem, GFP_KERNEL);
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	if (!kv)
		return NULL;

	/* initialize key vector */
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	l = kv->kv;
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	l->key = key;
	l->pos = 0;
	l->bits = 0;
	l->slen = fa->fa_slen;

	/* link leaf to fib alias */
	INIT_HLIST_HEAD(&l->leaf);
	hlist_add_head(&fa->fa_list, &l->leaf);

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	return l;
}

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static struct key_vector *tnode_new(t_key key, int pos, int bits)
383
{
384
	unsigned int shift = pos + bits;
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	struct key_vector *tn;
	struct tnode *tnode;
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	/* verify bits and pos their msb bits clear and values are valid */
	BUG_ON(!bits || (shift > KEYLENGTH));
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	tnode = tnode_alloc(bits);
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	if (!tnode)
		return NULL;

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	pr_debug("AT %p s=%zu %zu\n", tnode, TNODE_SIZE(0),
		 sizeof(struct key_vector *) << bits);

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	if (bits == KEYLENGTH)
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		tnode->full_children = 1;
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	else
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		tnode->empty_children = 1ul << bits;
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403
	tn = tnode->kv;
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	tn->key = (shift < KEYLENGTH) ? (key >> shift) << shift : 0;
	tn->pos = pos;
	tn->bits = bits;
	tn->slen = pos;

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	return tn;
}

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/* Check whether a tnode 'n' is "full", i.e. it is an internal node
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 * and no bits are skipped. See discussion in dyntree paper p. 6
 */
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static inline int tnode_full(struct key_vector *tn, struct key_vector *n)
416
{
417
	return n && ((n->pos + n->bits) == tn->pos) && IS_TNODE(n);
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}

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/* Add a child at position i overwriting the old value.
 * Update the value of full_children and empty_children.
 */
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static void put_child(struct key_vector *tn, unsigned long i,
		      struct key_vector *n)
425
{
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	struct key_vector *chi = get_child(tn, i);
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	int isfull, wasfull;
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429
	BUG_ON(i >= child_length(tn));
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431
	/* update emptyChildren, overflow into fullChildren */
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	if (!n && chi)
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		empty_child_inc(tn);
434
	if (n && !chi)
435
		empty_child_dec(tn);
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437
	/* update fullChildren */
438
	wasfull = tnode_full(tn, chi);
439
	isfull = tnode_full(tn, n);
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441
	if (wasfull && !isfull)
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		tn_info(tn)->full_children--;
443
	else if (!wasfull && isfull)
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		tn_info(tn)->full_children++;
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	if (n && (tn->slen < n->slen))
		tn->slen = n->slen;

449
	rcu_assign_pointer(tn->tnode[i], n);
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}

452
static void update_children(struct key_vector *tn)
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{
	unsigned long i;

	/* update all of the child parent pointers */
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	for (i = child_length(tn); i;) {
458
		struct key_vector *inode = get_child(tn, --i);
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		if (!inode)
			continue;

		/* Either update the children of a tnode that
		 * already belongs to us or update the child
		 * to point to ourselves.
		 */
		if (node_parent(inode) == tn)
			update_children(inode);
		else
			node_set_parent(inode, tn);
	}
}

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static inline void put_child_root(struct key_vector *tp, t_key key,
				  struct key_vector *n)
476
{
477 478
	if (IS_TRIE(tp))
		rcu_assign_pointer(tp->tnode[0], n);
479
	else
480
		put_child(tp, get_index(key, tp), n);
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}

483
static inline void tnode_free_init(struct key_vector *tn)
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{
485
	tn_info(tn)->rcu.next = NULL;
486 487
}

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static inline void tnode_free_append(struct key_vector *tn,
				     struct key_vector *n)
490
{
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	tn_info(n)->rcu.next = tn_info(tn)->rcu.next;
	tn_info(tn)->rcu.next = &tn_info(n)->rcu;
493
}
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495
static void tnode_free(struct key_vector *tn)
496
{
497
	struct callback_head *head = &tn_info(tn)->rcu;
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	while (head) {
		head = head->next;
501
		tnode_free_size += TNODE_SIZE(1ul << tn->bits);
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		node_free(tn);

504
		tn = container_of(head, struct tnode, rcu)->kv;
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	}

	if (tnode_free_size >= PAGE_SIZE * sync_pages) {
		tnode_free_size = 0;
		synchronize_rcu();
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	}
}

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static struct key_vector *replace(struct trie *t,
				  struct key_vector *oldtnode,
				  struct key_vector *tn)
516
{
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	struct key_vector *tp = node_parent(oldtnode);
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	unsigned long i;

	/* setup the parent pointer out of and back into this node */
	NODE_INIT_PARENT(tn, tp);
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	put_child_root(tp, tn->key, tn);
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	/* update all of the child parent pointers */
	update_children(tn);

	/* all pointers should be clean so we are done */
	tnode_free(oldtnode);

	/* resize children now that oldtnode is freed */
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	for (i = child_length(tn); i;) {
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		struct key_vector *inode = get_child(tn, --i);
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		/* resize child node */
		if (tnode_full(tn, inode))
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			tn = resize(t, inode);
537
	}
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539
	return tp;
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}

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static struct key_vector *inflate(struct trie *t,
				  struct key_vector *oldtnode)
544
{
545
	struct key_vector *tn;
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	unsigned long i;
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	t_key m;
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	pr_debug("In inflate\n");
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551
	tn = tnode_new(oldtnode->key, oldtnode->pos - 1, oldtnode->bits + 1);
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	if (!tn)
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		goto notnode;
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	/* prepare oldtnode to be freed */
	tnode_free_init(oldtnode);

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	/* Assemble all of the pointers in our cluster, in this case that
	 * represents all of the pointers out of our allocated nodes that
	 * point to existing tnodes and the links between our allocated
	 * nodes.
562
	 */
563
	for (i = child_length(oldtnode), m = 1u << tn->pos; i;) {
564
		struct key_vector *inode = get_child(oldtnode, --i);
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		struct key_vector *node0, *node1;
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		unsigned long j, k;
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568
		/* An empty child */
569
		if (!inode)
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			continue;

		/* A leaf or an internal node with skipped bits */
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		if (!tnode_full(oldtnode, inode)) {
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			put_child(tn, get_index(inode->key, tn), inode);
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			continue;
		}

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		/* drop the node in the old tnode free list */
		tnode_free_append(oldtnode, inode);

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		/* An internal node with two children */
		if (inode->bits == 1) {
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			put_child(tn, 2 * i + 1, get_child(inode, 1));
			put_child(tn, 2 * i, get_child(inode, 0));
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			continue;
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		}

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		/* We will replace this node 'inode' with two new
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		 * ones, 'node0' and 'node1', each with half of the
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		 * original children. The two new nodes will have
		 * a position one bit further down the key and this
		 * means that the "significant" part of their keys
		 * (see the discussion near the top of this file)
		 * will differ by one bit, which will be "0" in
595
		 * node0's key and "1" in node1's key. Since we are
O
Olof Johansson 已提交
596 597
		 * moving the key position by one step, the bit that
		 * we are moving away from - the bit at position
598 599 600
		 * (tn->pos) - is the one that will differ between
		 * node0 and node1. So... we synthesize that bit in the
		 * two new keys.
O
Olof Johansson 已提交
601
		 */
602 603 604
		node1 = tnode_new(inode->key | m, inode->pos, inode->bits - 1);
		if (!node1)
			goto nomem;
605
		node0 = tnode_new(inode->key, inode->pos, inode->bits - 1);
606

607
		tnode_free_append(tn, node1);
608 609 610 611 612
		if (!node0)
			goto nomem;
		tnode_free_append(tn, node0);

		/* populate child pointers in new nodes */
613
		for (k = child_length(inode), j = k / 2; j;) {
614 615 616 617
			put_child(node1, --j, get_child(inode, --k));
			put_child(node0, j, get_child(inode, j));
			put_child(node1, --j, get_child(inode, --k));
			put_child(node0, j, get_child(inode, j));
618
		}
619

620 621 622
		/* link new nodes to parent */
		NODE_INIT_PARENT(node1, tn);
		NODE_INIT_PARENT(node0, tn);
623

624 625 626 627
		/* link parent to nodes */
		put_child(tn, 2 * i + 1, node1);
		put_child(tn, 2 * i, node0);
	}
628

629
	/* setup the parent pointers into and out of this node */
630
	return replace(t, oldtnode, tn);
631
nomem:
632 633
	/* all pointers should be clean so we are done */
	tnode_free(tn);
634 635
notnode:
	return NULL;
636 637
}

638 639
static struct key_vector *halve(struct trie *t,
				struct key_vector *oldtnode)
640
{
641
	struct key_vector *tn;
642
	unsigned long i;
643

S
Stephen Hemminger 已提交
644
	pr_debug("In halve\n");
645

646
	tn = tnode_new(oldtnode->key, oldtnode->pos + 1, oldtnode->bits - 1);
647
	if (!tn)
648
		goto notnode;
649

650 651 652
	/* prepare oldtnode to be freed */
	tnode_free_init(oldtnode);

653 654 655 656
	/* Assemble all of the pointers in our cluster, in this case that
	 * represents all of the pointers out of our allocated nodes that
	 * point to existing tnodes and the links between our allocated
	 * nodes.
657
	 */
658
	for (i = child_length(oldtnode); i;) {
659 660
		struct key_vector *node1 = get_child(oldtnode, --i);
		struct key_vector *node0 = get_child(oldtnode, --i);
661
		struct key_vector *inode;
662

663 664 665 666 667
		/* At least one of the children is empty */
		if (!node1 || !node0) {
			put_child(tn, i / 2, node1 ? : node0);
			continue;
		}
668

669
		/* Two nonempty children */
670
		inode = tnode_new(node0->key, oldtnode->pos, 1);
671 672
		if (!inode)
			goto nomem;
673
		tnode_free_append(tn, inode);
674

675 676 677 678 679 680 681
		/* initialize pointers out of node */
		put_child(inode, 1, node1);
		put_child(inode, 0, node0);
		NODE_INIT_PARENT(inode, tn);

		/* link parent to node */
		put_child(tn, i / 2, inode);
682
	}
683

684
	/* setup the parent pointers into and out of this node */
685 686 687 688 689 690
	return replace(t, oldtnode, tn);
nomem:
	/* all pointers should be clean so we are done */
	tnode_free(tn);
notnode:
	return NULL;
691 692
}

693 694
static struct key_vector *collapse(struct trie *t,
				   struct key_vector *oldtnode)
695
{
696
	struct key_vector *n, *tp;
697 698 699
	unsigned long i;

	/* scan the tnode looking for that one child that might still exist */
700
	for (n = NULL, i = child_length(oldtnode); !n && i;)
701
		n = get_child(oldtnode, --i);
702 703 704

	/* compress one level */
	tp = node_parent(oldtnode);
705
	put_child_root(tp, oldtnode->key, n);
706 707 708 709
	node_set_parent(n, tp);

	/* drop dead node */
	node_free(oldtnode);
710 711

	return tp;
712 713
}

714
static unsigned char update_suffix(struct key_vector *tn)
715 716 717
{
	unsigned char slen = tn->pos;
	unsigned long stride, i;
718 719 720 721 722 723 724
	unsigned char slen_max;

	/* only vector 0 can have a suffix length greater than or equal to
	 * tn->pos + tn->bits, the second highest node will have a suffix
	 * length at most of tn->pos + tn->bits - 1
	 */
	slen_max = min_t(unsigned char, tn->pos + tn->bits - 1, tn->slen);
725 726 727 728 729 730

	/* search though the list of children looking for nodes that might
	 * have a suffix greater than the one we currently have.  This is
	 * why we start with a stride of 2 since a stride of 1 would
	 * represent the nodes with suffix length equal to tn->pos
	 */
731
	for (i = 0, stride = 0x2ul ; i < child_length(tn); i += stride) {
732
		struct key_vector *n = get_child(tn, i);
733 734 735 736 737 738 739 740 741

		if (!n || (n->slen <= slen))
			continue;

		/* update stride and slen based on new value */
		stride <<= (n->slen - slen);
		slen = n->slen;
		i &= ~(stride - 1);

742 743
		/* stop searching if we have hit the maximum possible value */
		if (slen >= slen_max)
744 745 746 747 748 749 750 751
			break;
	}

	tn->slen = slen;

	return slen;
}

752 753 754 755 756 757 758 759
/* From "Implementing a dynamic compressed trie" by Stefan Nilsson of
 * the Helsinki University of Technology and Matti Tikkanen of Nokia
 * Telecommunications, page 6:
 * "A node is doubled if the ratio of non-empty children to all
 * children in the *doubled* node is at least 'high'."
 *
 * 'high' in this instance is the variable 'inflate_threshold'. It
 * is expressed as a percentage, so we multiply it with
760
 * child_length() and instead of multiplying by 2 (since the
761 762 763 764
 * child array will be doubled by inflate()) and multiplying
 * the left-hand side by 100 (to handle the percentage thing) we
 * multiply the left-hand side by 50.
 *
765
 * The left-hand side may look a bit weird: child_length(tn)
766 767 768 769 770 771 772 773 774
 * - tn->empty_children is of course the number of non-null children
 * in the current node. tn->full_children is the number of "full"
 * children, that is non-null tnodes with a skip value of 0.
 * All of those will be doubled in the resulting inflated tnode, so
 * we just count them one extra time here.
 *
 * A clearer way to write this would be:
 *
 * to_be_doubled = tn->full_children;
775
 * not_to_be_doubled = child_length(tn) - tn->empty_children -
776 777
 *     tn->full_children;
 *
778
 * new_child_length = child_length(tn) * 2;
779 780 781 782 783 784 785 786 787 788 789 790 791 792 793 794
 *
 * new_fill_factor = 100 * (not_to_be_doubled + 2*to_be_doubled) /
 *      new_child_length;
 * if (new_fill_factor >= inflate_threshold)
 *
 * ...and so on, tho it would mess up the while () loop.
 *
 * anyway,
 * 100 * (not_to_be_doubled + 2*to_be_doubled) / new_child_length >=
 *      inflate_threshold
 *
 * avoid a division:
 * 100 * (not_to_be_doubled + 2*to_be_doubled) >=
 *      inflate_threshold * new_child_length
 *
 * expand not_to_be_doubled and to_be_doubled, and shorten:
795
 * 100 * (child_length(tn) - tn->empty_children +
796 797 798
 *    tn->full_children) >= inflate_threshold * new_child_length
 *
 * expand new_child_length:
799
 * 100 * (child_length(tn) - tn->empty_children +
800
 *    tn->full_children) >=
801
 *      inflate_threshold * child_length(tn) * 2
802 803
 *
 * shorten again:
804
 * 50 * (tn->full_children + child_length(tn) -
805
 *    tn->empty_children) >= inflate_threshold *
806
 *    child_length(tn)
807 808
 *
 */
809
static inline bool should_inflate(struct key_vector *tp, struct key_vector *tn)
810
{
811
	unsigned long used = child_length(tn);
812 813 814
	unsigned long threshold = used;

	/* Keep root node larger */
815
	threshold *= IS_TRIE(tp) ? inflate_threshold_root : inflate_threshold;
816 817
	used -= tn_info(tn)->empty_children;
	used += tn_info(tn)->full_children;
818

819 820 821
	/* if bits == KEYLENGTH then pos = 0, and will fail below */

	return (used > 1) && tn->pos && ((50 * used) >= threshold);
822 823
}

824
static inline bool should_halve(struct key_vector *tp, struct key_vector *tn)
825
{
826
	unsigned long used = child_length(tn);
827 828 829
	unsigned long threshold = used;

	/* Keep root node larger */
830
	threshold *= IS_TRIE(tp) ? halve_threshold_root : halve_threshold;
831
	used -= tn_info(tn)->empty_children;
832

833 834 835 836 837
	/* if bits == KEYLENGTH then used = 100% on wrap, and will fail below */

	return (used > 1) && (tn->bits > 1) && ((100 * used) < threshold);
}

838
static inline bool should_collapse(struct key_vector *tn)
839
{
840
	unsigned long used = child_length(tn);
841

842
	used -= tn_info(tn)->empty_children;
843 844

	/* account for bits == KEYLENGTH case */
845
	if ((tn->bits == KEYLENGTH) && tn_info(tn)->full_children)
846 847 848 849
		used -= KEY_MAX;

	/* One child or none, time to drop us from the trie */
	return used < 2;
850 851
}

852
#define MAX_WORK 10
853
static struct key_vector *resize(struct trie *t, struct key_vector *tn)
854
{
855 856 857
#ifdef CONFIG_IP_FIB_TRIE_STATS
	struct trie_use_stats __percpu *stats = t->stats;
#endif
858
	struct key_vector *tp = node_parent(tn);
859
	unsigned long cindex = get_index(tn->key, tp);
860
	int max_work = MAX_WORK;
861 862 863 864

	pr_debug("In tnode_resize %p inflate_threshold=%d threshold=%d\n",
		 tn, inflate_threshold, halve_threshold);

865 866 867 868
	/* track the tnode via the pointer from the parent instead of
	 * doing it ourselves.  This way we can let RCU fully do its
	 * thing without us interfering
	 */
869
	BUG_ON(tn != get_child(tp, cindex));
870

871 872
	/* Double as long as the resulting node has a number of
	 * nonempty nodes that are above the threshold.
873
	 */
874
	while (should_inflate(tp, tn) && max_work) {
875 876
		tp = inflate(t, tn);
		if (!tp) {
877
#ifdef CONFIG_IP_FIB_TRIE_STATS
878
			this_cpu_inc(stats->resize_node_skipped);
879 880 881
#endif
			break;
		}
882

883
		max_work--;
884
		tn = get_child(tp, cindex);
885 886
	}

887 888 889
	/* update parent in case inflate failed */
	tp = node_parent(tn);

890 891
	/* Return if at least one inflate is run */
	if (max_work != MAX_WORK)
892
		return tp;
893

894
	/* Halve as long as the number of empty children in this
895 896
	 * node is above threshold.
	 */
897
	while (should_halve(tp, tn) && max_work) {
898 899
		tp = halve(t, tn);
		if (!tp) {
900
#ifdef CONFIG_IP_FIB_TRIE_STATS
901
			this_cpu_inc(stats->resize_node_skipped);
902 903 904 905
#endif
			break;
		}

906
		max_work--;
907
		tn = get_child(tp, cindex);
908
	}
909 910

	/* Only one child remains */
911 912 913
	if (should_collapse(tn))
		return collapse(t, tn);

914
	/* update parent in case halve failed */
915
	return node_parent(tn);
916 917
}

918
static void node_pull_suffix(struct key_vector *tn, unsigned char slen)
919
{
920 921 922 923 924
	unsigned char node_slen = tn->slen;

	while ((node_slen > tn->pos) && (node_slen > slen)) {
		slen = update_suffix(tn);
		if (node_slen == slen)
925
			break;
926 927 928

		tn = node_parent(tn);
		node_slen = tn->slen;
929 930 931
	}
}

932
static void node_push_suffix(struct key_vector *tn, unsigned char slen)
933
{
934 935
	while (tn->slen < slen) {
		tn->slen = slen;
936 937 938 939
		tn = node_parent(tn);
	}
}

R
Robert Olsson 已提交
940
/* rcu_read_lock needs to be hold by caller from readside */
941 942
static struct key_vector *fib_find_node(struct trie *t,
					struct key_vector **tp, u32 key)
943
{
944 945 946 947 948 949 950 951 952
	struct key_vector *pn, *n = t->kv;
	unsigned long index = 0;

	do {
		pn = n;
		n = get_child_rcu(n, index);

		if (!n)
			break;
A
Alexander Duyck 已提交
953

954
		index = get_cindex(key, n);
A
Alexander Duyck 已提交
955 956 957 958 959 960

		/* This bit of code is a bit tricky but it combines multiple
		 * checks into a single check.  The prefix consists of the
		 * prefix plus zeros for the bits in the cindex. The index
		 * is the difference between the key and this value.  From
		 * this we can actually derive several pieces of data.
961
		 *   if (index >= (1ul << bits))
A
Alexander Duyck 已提交
962
		 *     we have a mismatch in skip bits and failed
963 964
		 *   else
		 *     we know the value is cindex
965 966 967 968
		 *
		 * This check is safe even if bits == KEYLENGTH due to the
		 * fact that we can only allocate a node with 32 bits if a
		 * long is greater than 32 bits.
A
Alexander Duyck 已提交
969
		 */
970 971 972 973
		if (index >= (1ul << n->bits)) {
			n = NULL;
			break;
		}
A
Alexander Duyck 已提交
974

975 976
		/* keep searching until we find a perfect match leaf or NULL */
	} while (IS_TNODE(n));
O
Olof Johansson 已提交
977

978
	*tp = pn;
979

A
Alexander Duyck 已提交
980
	return n;
981 982
}

983 984 985
/* Return the first fib alias matching TOS with
 * priority less than or equal to PRIO.
 */
A
Alexander Duyck 已提交
986
static struct fib_alias *fib_find_alias(struct hlist_head *fah, u8 slen,
987
					u8 tos, u32 prio, u32 tb_id)
988 989 990 991 992 993
{
	struct fib_alias *fa;

	if (!fah)
		return NULL;

994
	hlist_for_each_entry(fa, fah, fa_list) {
A
Alexander Duyck 已提交
995 996 997 998
		if (fa->fa_slen < slen)
			continue;
		if (fa->fa_slen != slen)
			break;
999 1000 1001 1002
		if (fa->tb_id > tb_id)
			continue;
		if (fa->tb_id != tb_id)
			break;
1003 1004 1005 1006 1007 1008 1009 1010 1011
		if (fa->fa_tos > tos)
			continue;
		if (fa->fa_info->fib_priority >= prio || fa->fa_tos < tos)
			return fa;
	}

	return NULL;
}

1012
static void trie_rebalance(struct trie *t, struct key_vector *tn)
1013
{
1014 1015
	while (!IS_TRIE(tn))
		tn = resize(t, tn);
1016 1017
}

1018
static int fib_insert_node(struct trie *t, struct key_vector *tp,
1019
			   struct fib_alias *new, t_key key)
1020
{
1021
	struct key_vector *n, *l;
1022

1023
	l = leaf_new(key, new);
A
Alexander Duyck 已提交
1024
	if (!l)
1025
		goto noleaf;
1026 1027

	/* retrieve child from parent node */
1028
	n = get_child(tp, get_index(key, tp));
1029

1030 1031 1032 1033 1034 1035 1036
	/* Case 2: n is a LEAF or a TNODE and the key doesn't match.
	 *
	 *  Add a new tnode here
	 *  first tnode need some special handling
	 *  leaves us in position for handling as case 3
	 */
	if (n) {
1037
		struct key_vector *tn;
1038

1039
		tn = tnode_new(key, __fls(key ^ n->key), 1);
1040 1041
		if (!tn)
			goto notnode;
O
Olof Johansson 已提交
1042

1043 1044 1045
		/* initialize routes out of node */
		NODE_INIT_PARENT(tn, tp);
		put_child(tn, get_index(key, tn) ^ 1, n);
1046

1047
		/* start adding routes into the node */
1048
		put_child_root(tp, key, tn);
1049
		node_set_parent(n, tn);
1050

1051
		/* parent now has a NULL spot where the leaf can go */
1052
		tp = tn;
1053
	}
O
Olof Johansson 已提交
1054

1055
	/* Case 3: n is NULL, and will just insert a new leaf */
1056
	node_push_suffix(tp, new->fa_slen);
1057
	NODE_INIT_PARENT(l, tp);
1058
	put_child_root(tp, key, l);
1059 1060 1061
	trie_rebalance(t, tp);

	return 0;
1062 1063 1064 1065
notnode:
	node_free(l);
noleaf:
	return -ENOMEM;
1066 1067
}

1068 1069 1070
/* fib notifier for ADD is sent before calling fib_insert_alias with
 * the expectation that the only possible failure ENOMEM
 */
1071 1072
static int fib_insert_alias(struct trie *t, struct key_vector *tp,
			    struct key_vector *l, struct fib_alias *new,
1073 1074 1075 1076 1077 1078 1079
			    struct fib_alias *fa, t_key key)
{
	if (!l)
		return fib_insert_node(t, tp, new, key);

	if (fa) {
		hlist_add_before_rcu(&new->fa_list, &fa->fa_list);
1080
	} else {
1081 1082 1083 1084 1085
		struct fib_alias *last;

		hlist_for_each_entry(last, &l->leaf, fa_list) {
			if (new->fa_slen < last->fa_slen)
				break;
1086 1087 1088
			if ((new->fa_slen == last->fa_slen) &&
			    (new->tb_id > last->tb_id))
				break;
1089 1090 1091 1092 1093 1094 1095
			fa = last;
		}

		if (fa)
			hlist_add_behind_rcu(&new->fa_list, &fa->fa_list);
		else
			hlist_add_head_rcu(&new->fa_list, &l->leaf);
1096
	}
R
Robert Olsson 已提交
1097

1098 1099 1100
	/* if we added to the tail node then we need to update slen */
	if (l->slen < new->fa_slen) {
		l->slen = new->fa_slen;
1101
		node_push_suffix(tp, new->fa_slen);
1102 1103 1104
	}

	return 0;
1105 1106
}

1107
static bool fib_valid_key_len(u32 key, u8 plen, struct netlink_ext_ack *extack)
1108
{
1109 1110
	if (plen > KEYLENGTH) {
		NL_SET_ERR_MSG(extack, "Invalid prefix length");
1111
		return false;
1112
	}
1113

1114 1115 1116
	if ((plen < KEYLENGTH) && (key << plen)) {
		NL_SET_ERR_MSG(extack,
			       "Invalid prefix for given prefix length");
1117
		return false;
1118
	}
1119 1120 1121 1122

	return true;
}

1123
/* Caller must hold RTNL. */
1124
int fib_table_insert(struct net *net, struct fib_table *tb,
1125
		     struct fib_config *cfg, struct netlink_ext_ack *extack)
1126
{
1127
	enum fib_event_type event = FIB_EVENT_ENTRY_ADD;
1128
	struct trie *t = (struct trie *)tb->tb_data;
1129
	struct fib_alias *fa, *new_fa;
1130
	struct key_vector *l, *tp;
1131
	u16 nlflags = NLM_F_EXCL;
1132
	struct fib_info *fi;
A
Alexander Duyck 已提交
1133 1134
	u8 plen = cfg->fc_dst_len;
	u8 slen = KEYLENGTH - plen;
1135
	u8 tos = cfg->fc_tos;
1136
	u32 key;
1137 1138
	int err;

1139
	key = ntohl(cfg->fc_dst);
1140

1141
	if (!fib_valid_key_len(key, plen, extack))
1142 1143
		return -EINVAL;

1144 1145
	pr_debug("Insert table=%u %08x/%d\n", tb->tb_id, key, plen);

1146
	fi = fib_create_info(cfg, extack);
1147 1148
	if (IS_ERR(fi)) {
		err = PTR_ERR(fi);
1149
		goto err;
1150
	}
1151

1152
	l = fib_find_node(t, &tp, key);
1153 1154
	fa = l ? fib_find_alias(&l->leaf, slen, tos, fi->fib_priority,
				tb->tb_id) : NULL;
1155 1156 1157 1158 1159 1160

	/* Now fa, if non-NULL, points to the first fib alias
	 * with the same keys [prefix,tos,priority], if such key already
	 * exists or to the node before which we will insert new one.
	 *
	 * If fa is NULL, we will need to allocate a new one and
1161 1162
	 * insert to the tail of the section matching the suffix length
	 * of the new alias.
1163 1164
	 */

1165 1166 1167
	if (fa && fa->fa_tos == tos &&
	    fa->fa_info->fib_priority == fi->fib_priority) {
		struct fib_alias *fa_first, *fa_match;
1168 1169

		err = -EEXIST;
1170
		if (cfg->fc_nlflags & NLM_F_EXCL)
1171 1172
			goto out;

1173 1174
		nlflags &= ~NLM_F_EXCL;

1175 1176 1177 1178 1179 1180 1181
		/* We have 2 goals:
		 * 1. Find exact match for type, scope, fib_info to avoid
		 * duplicate routes
		 * 2. Find next 'fa' (or head), NLM_F_APPEND inserts before it
		 */
		fa_match = NULL;
		fa_first = fa;
1182
		hlist_for_each_entry_from(fa, fa_list) {
1183 1184 1185
			if ((fa->fa_slen != slen) ||
			    (fa->tb_id != tb->tb_id) ||
			    (fa->fa_tos != tos))
1186 1187 1188 1189 1190 1191 1192 1193 1194 1195
				break;
			if (fa->fa_info->fib_priority != fi->fib_priority)
				break;
			if (fa->fa_type == cfg->fc_type &&
			    fa->fa_info == fi) {
				fa_match = fa;
				break;
			}
		}

1196
		if (cfg->fc_nlflags & NLM_F_REPLACE) {
1197 1198 1199
			struct fib_info *fi_drop;
			u8 state;

1200
			nlflags |= NLM_F_REPLACE;
1201 1202 1203 1204
			fa = fa_first;
			if (fa_match) {
				if (fa == fa_match)
					err = 0;
1205
				goto out;
1206
			}
R
Robert Olsson 已提交
1207
			err = -ENOBUFS;
1208
			new_fa = kmem_cache_alloc(fn_alias_kmem, GFP_KERNEL);
1209
			if (!new_fa)
R
Robert Olsson 已提交
1210
				goto out;
1211 1212

			fi_drop = fa->fa_info;
R
Robert Olsson 已提交
1213 1214
			new_fa->fa_tos = fa->fa_tos;
			new_fa->fa_info = fi;
1215
			new_fa->fa_type = cfg->fc_type;
1216
			state = fa->fa_state;
1217
			new_fa->fa_state = state & ~FA_S_ACCESSED;
1218
			new_fa->fa_slen = fa->fa_slen;
1219
			new_fa->tb_id = tb->tb_id;
1220
			new_fa->fa_default = -1;
1221

1222 1223 1224 1225 1226 1227 1228
			err = call_fib_entry_notifiers(net,
						       FIB_EVENT_ENTRY_REPLACE,
						       key, plen, new_fa,
						       extack);
			if (err)
				goto out_free_new_fa;

1229 1230 1231
			rtmsg_fib(RTM_NEWROUTE, htonl(key), new_fa, plen,
				  tb->tb_id, &cfg->fc_nlinfo, nlflags);

1232
			hlist_replace_rcu(&fa->fa_list, &new_fa->fa_list);
1233

R
Robert Olsson 已提交
1234
			alias_free_mem_rcu(fa);
1235 1236 1237

			fib_release_info(fi_drop);
			if (state & FA_S_ACCESSED)
1238
				rt_cache_flush(cfg->fc_nlinfo.nl_net);
1239

O
Olof Johansson 已提交
1240
			goto succeeded;
1241 1242 1243 1244 1245
		}
		/* Error if we find a perfect match which
		 * uses the same scope, type, and nexthop
		 * information.
		 */
1246 1247
		if (fa_match)
			goto out;
1248

1249 1250
		if (cfg->fc_nlflags & NLM_F_APPEND) {
			event = FIB_EVENT_ENTRY_APPEND;
1251
			nlflags |= NLM_F_APPEND;
1252
		} else {
1253
			fa = fa_first;
1254
		}
1255 1256
	}
	err = -ENOENT;
1257
	if (!(cfg->fc_nlflags & NLM_F_CREATE))
1258 1259
		goto out;

1260
	nlflags |= NLM_F_CREATE;
1261
	err = -ENOBUFS;
1262
	new_fa = kmem_cache_alloc(fn_alias_kmem, GFP_KERNEL);
1263
	if (!new_fa)
1264 1265 1266 1267
		goto out;

	new_fa->fa_info = fi;
	new_fa->fa_tos = tos;
1268
	new_fa->fa_type = cfg->fc_type;
1269
	new_fa->fa_state = 0;
A
Alexander Duyck 已提交
1270
	new_fa->fa_slen = slen;
1271
	new_fa->tb_id = tb->tb_id;
1272
	new_fa->fa_default = -1;
1273

1274 1275 1276 1277
	err = call_fib_entry_notifiers(net, event, key, plen, new_fa, extack);
	if (err)
		goto out_free_new_fa;

1278
	/* Insert new entry to the list. */
1279 1280
	err = fib_insert_alias(t, tp, l, new_fa, fa, key);
	if (err)
1281
		goto out_fib_notif;
1282

1283 1284 1285
	if (!plen)
		tb->tb_num_default++;

1286
	rt_cache_flush(cfg->fc_nlinfo.nl_net);
1287
	rtmsg_fib(RTM_NEWROUTE, htonl(key), new_fa, plen, new_fa->tb_id,
1288
		  &cfg->fc_nlinfo, nlflags);
1289 1290
succeeded:
	return 0;
1291

1292 1293 1294 1295 1296 1297 1298 1299
out_fib_notif:
	/* notifier was sent that entry would be added to trie, but
	 * the add failed and need to recover. Only failure for
	 * fib_insert_alias is ENOMEM.
	 */
	NL_SET_ERR_MSG(extack, "Failed to insert route into trie");
	call_fib_entry_notifiers(net, FIB_EVENT_ENTRY_DEL, key,
				 plen, new_fa, NULL);
1300 1301
out_free_new_fa:
	kmem_cache_free(fn_alias_kmem, new_fa);
1302 1303
out:
	fib_release_info(fi);
O
Olof Johansson 已提交
1304
err:
1305 1306 1307
	return err;
}

1308
static inline t_key prefix_mismatch(t_key key, struct key_vector *n)
1309 1310 1311 1312 1313 1314
{
	t_key prefix = n->key;

	return (key ^ prefix) & (prefix | -prefix);
}

1315
/* should be called with rcu_read_lock */
1316
int fib_table_lookup(struct fib_table *tb, const struct flowi4 *flp,
E
Eric Dumazet 已提交
1317
		     struct fib_result *res, int fib_flags)
1318
{
1319
	struct trie *t = (struct trie *) tb->tb_data;
1320 1321 1322
#ifdef CONFIG_IP_FIB_TRIE_STATS
	struct trie_use_stats __percpu *stats = t->stats;
#endif
1323
	const t_key key = ntohl(flp->daddr);
1324
	struct key_vector *n, *pn;
A
Alexander Duyck 已提交
1325
	struct fib_alias *fa;
1326
	unsigned long index;
1327
	t_key cindex;
O
Olof Johansson 已提交
1328

D
David Ahern 已提交
1329 1330
	trace_fib_table_lookup(tb->tb_id, flp);

1331 1332 1333 1334
	pn = t->kv;
	cindex = 0;

	n = get_child_rcu(pn, cindex);
1335
	if (!n)
1336
		return -EAGAIN;
1337 1338

#ifdef CONFIG_IP_FIB_TRIE_STATS
1339
	this_cpu_inc(stats->gets);
1340 1341
#endif

1342 1343
	/* Step 1: Travel to the longest prefix match in the trie */
	for (;;) {
1344
		index = get_cindex(key, n);
1345 1346 1347 1348 1349 1350

		/* This bit of code is a bit tricky but it combines multiple
		 * checks into a single check.  The prefix consists of the
		 * prefix plus zeros for the "bits" in the prefix. The index
		 * is the difference between the key and this value.  From
		 * this we can actually derive several pieces of data.
1351
		 *   if (index >= (1ul << bits))
1352
		 *     we have a mismatch in skip bits and failed
1353 1354
		 *   else
		 *     we know the value is cindex
1355 1356 1357 1358
		 *
		 * This check is safe even if bits == KEYLENGTH due to the
		 * fact that we can only allocate a node with 32 bits if a
		 * long is greater than 32 bits.
1359
		 */
1360
		if (index >= (1ul << n->bits))
1361
			break;
1362

1363 1364
		/* we have found a leaf. Prefixes have already been compared */
		if (IS_LEAF(n))
1365
			goto found;
1366

1367 1368
		/* only record pn and cindex if we are going to be chopping
		 * bits later.  Otherwise we are just wasting cycles.
O
Olof Johansson 已提交
1369
		 */
1370
		if (n->slen > n->pos) {
1371 1372
			pn = n;
			cindex = index;
O
Olof Johansson 已提交
1373
		}
1374

1375
		n = get_child_rcu(n, index);
1376 1377 1378
		if (unlikely(!n))
			goto backtrace;
	}
1379

1380 1381 1382
	/* Step 2: Sort out leaves and begin backtracing for longest prefix */
	for (;;) {
		/* record the pointer where our next node pointer is stored */
1383
		struct key_vector __rcu **cptr = n->tnode;
1384

1385 1386 1387
		/* This test verifies that none of the bits that differ
		 * between the key and the prefix exist in the region of
		 * the lsb and higher in the prefix.
O
Olof Johansson 已提交
1388
		 */
1389
		if (unlikely(prefix_mismatch(key, n)) || (n->slen == n->pos))
1390
			goto backtrace;
O
Olof Johansson 已提交
1391

1392 1393 1394
		/* exit out and process leaf */
		if (unlikely(IS_LEAF(n)))
			break;
O
Olof Johansson 已提交
1395

1396 1397 1398
		/* Don't bother recording parent info.  Since we are in
		 * prefix match mode we will have to come back to wherever
		 * we started this traversal anyway
O
Olof Johansson 已提交
1399 1400
		 */

1401
		while ((n = rcu_dereference(*cptr)) == NULL) {
1402 1403
backtrace:
#ifdef CONFIG_IP_FIB_TRIE_STATS
1404 1405
			if (!n)
				this_cpu_inc(stats->null_node_hit);
1406
#endif
1407 1408 1409 1410 1411 1412 1413 1414
			/* If we are at cindex 0 there are no more bits for
			 * us to strip at this level so we must ascend back
			 * up one level to see if there are any more bits to
			 * be stripped there.
			 */
			while (!cindex) {
				t_key pkey = pn->key;

1415 1416 1417 1418 1419
				/* If we don't have a parent then there is
				 * nothing for us to do as we do not have any
				 * further nodes to parse.
				 */
				if (IS_TRIE(pn))
1420
					return -EAGAIN;
1421 1422 1423 1424
#ifdef CONFIG_IP_FIB_TRIE_STATS
				this_cpu_inc(stats->backtrack);
#endif
				/* Get Child's index */
1425
				pn = node_parent_rcu(pn);
1426 1427 1428 1429 1430 1431 1432
				cindex = get_index(pkey, pn);
			}

			/* strip the least significant bit from the cindex */
			cindex &= cindex - 1;

			/* grab pointer for next child node */
1433
			cptr = &pn->tnode[cindex];
1434
		}
1435
	}
1436

1437
found:
1438 1439 1440
	/* this line carries forward the xor from earlier in the function */
	index = key ^ n->key;

1441
	/* Step 3: Process the leaf, if that fails fall back to backtracing */
A
Alexander Duyck 已提交
1442 1443 1444
	hlist_for_each_entry_rcu(fa, &n->leaf, fa_list) {
		struct fib_info *fi = fa->fa_info;
		int nhsel, err;
1445

1446 1447 1448 1449
		if ((BITS_PER_LONG > KEYLENGTH) || (fa->fa_slen < KEYLENGTH)) {
			if (index >= (1ul << fa->fa_slen))
				continue;
		}
A
Alexander Duyck 已提交
1450 1451 1452 1453 1454 1455 1456 1457 1458
		if (fa->fa_tos && fa->fa_tos != flp->flowi4_tos)
			continue;
		if (fi->fib_dead)
			continue;
		if (fa->fa_info->fib_scope < flp->flowi4_scope)
			continue;
		fib_alias_accessed(fa);
		err = fib_props[fa->fa_type].error;
		if (unlikely(err < 0)) {
1459
#ifdef CONFIG_IP_FIB_TRIE_STATS
A
Alexander Duyck 已提交
1460
			this_cpu_inc(stats->semantic_match_passed);
1461
#endif
A
Alexander Duyck 已提交
1462 1463 1464 1465 1466 1467
			return err;
		}
		if (fi->fib_flags & RTNH_F_DEAD)
			continue;
		for (nhsel = 0; nhsel < fi->fib_nhs; nhsel++) {
			const struct fib_nh *nh = &fi->fib_nh[nhsel];
1468
			struct in_device *in_dev = __in_dev_get_rcu(nh->nh_dev);
A
Alexander Duyck 已提交
1469 1470 1471

			if (nh->nh_flags & RTNH_F_DEAD)
				continue;
1472 1473 1474 1475 1476
			if (in_dev &&
			    IN_DEV_IGNORE_ROUTES_WITH_LINKDOWN(in_dev) &&
			    nh->nh_flags & RTNH_F_LINKDOWN &&
			    !(fib_flags & FIB_LOOKUP_IGNORE_LINKSTATE))
				continue;
1477
			if (!(flp->flowi4_flags & FLOWI_FLAG_SKIP_NH_OIF)) {
1478 1479 1480 1481
				if (flp->flowi4_oif &&
				    flp->flowi4_oif != nh->nh_oif)
					continue;
			}
A
Alexander Duyck 已提交
1482 1483

			if (!(fib_flags & FIB_LOOKUP_NOREF))
1484
				refcount_inc(&fi->fib_clntref);
A
Alexander Duyck 已提交
1485

1486
			res->prefix = htonl(n->key);
A
Alexander Duyck 已提交
1487 1488 1489 1490 1491 1492 1493
			res->prefixlen = KEYLENGTH - fa->fa_slen;
			res->nh_sel = nhsel;
			res->type = fa->fa_type;
			res->scope = fi->fib_scope;
			res->fi = fi;
			res->table = tb;
			res->fa_head = &n->leaf;
1494
#ifdef CONFIG_IP_FIB_TRIE_STATS
A
Alexander Duyck 已提交
1495
			this_cpu_inc(stats->semantic_match_passed);
1496
#endif
D
David Ahern 已提交
1497 1498
			trace_fib_table_lookup_nh(nh);

A
Alexander Duyck 已提交
1499
			return err;
1500
		}
1501
	}
1502
#ifdef CONFIG_IP_FIB_TRIE_STATS
1503
	this_cpu_inc(stats->semantic_match_miss);
1504 1505
#endif
	goto backtrace;
1506
}
1507
EXPORT_SYMBOL_GPL(fib_table_lookup);
1508

1509 1510
static void fib_remove_alias(struct trie *t, struct key_vector *tp,
			     struct key_vector *l, struct fib_alias *old)
1511 1512 1513 1514 1515 1516 1517 1518 1519 1520 1521 1522
{
	/* record the location of the previous list_info entry */
	struct hlist_node **pprev = old->fa_list.pprev;
	struct fib_alias *fa = hlist_entry(pprev, typeof(*fa), fa_list.next);

	/* remove the fib_alias from the list */
	hlist_del_rcu(&old->fa_list);

	/* if we emptied the list this leaf will be freed and we can sort
	 * out parent suffix lengths as a part of trie_rebalance
	 */
	if (hlist_empty(&l->leaf)) {
1523 1524
		if (tp->slen == l->slen)
			node_pull_suffix(tp, tp->pos);
1525
		put_child_root(tp, l->key, NULL);
1526 1527 1528 1529 1530 1531 1532 1533 1534 1535 1536
		node_free(l);
		trie_rebalance(t, tp);
		return;
	}

	/* only access fa if it is pointing at the last valid hlist_node */
	if (*pprev)
		return;

	/* update the trie with the latest suffix length */
	l->slen = fa->fa_slen;
1537
	node_pull_suffix(tp, fa->fa_slen);
1538 1539 1540
}

/* Caller must hold RTNL. */
1541
int fib_table_delete(struct net *net, struct fib_table *tb,
1542
		     struct fib_config *cfg, struct netlink_ext_ack *extack)
1543 1544 1545
{
	struct trie *t = (struct trie *) tb->tb_data;
	struct fib_alias *fa, *fa_to_delete;
1546
	struct key_vector *l, *tp;
A
Alexander Duyck 已提交
1547 1548
	u8 plen = cfg->fc_dst_len;
	u8 slen = KEYLENGTH - plen;
1549 1550
	u8 tos = cfg->fc_tos;
	u32 key;
O
Olof Johansson 已提交
1551

1552
	key = ntohl(cfg->fc_dst);
1553

1554
	if (!fib_valid_key_len(key, plen, extack))
1555 1556
		return -EINVAL;

1557
	l = fib_find_node(t, &tp, key);
1558
	if (!l)
1559 1560
		return -ESRCH;

1561
	fa = fib_find_alias(&l->leaf, slen, tos, 0, tb->tb_id);
1562 1563 1564
	if (!fa)
		return -ESRCH;

S
Stephen Hemminger 已提交
1565
	pr_debug("Deleting %08x/%d tos=%d t=%p\n", key, plen, tos, t);
1566 1567

	fa_to_delete = NULL;
1568
	hlist_for_each_entry_from(fa, fa_list) {
1569 1570
		struct fib_info *fi = fa->fa_info;

1571 1572 1573
		if ((fa->fa_slen != slen) ||
		    (fa->tb_id != tb->tb_id) ||
		    (fa->fa_tos != tos))
1574 1575
			break;

1576 1577
		if ((!cfg->fc_type || fa->fa_type == cfg->fc_type) &&
		    (cfg->fc_scope == RT_SCOPE_NOWHERE ||
1578
		     fa->fa_info->fib_scope == cfg->fc_scope) &&
1579 1580
		    (!cfg->fc_prefsrc ||
		     fi->fib_prefsrc == cfg->fc_prefsrc) &&
1581 1582
		    (!cfg->fc_protocol ||
		     fi->fib_protocol == cfg->fc_protocol) &&
1583 1584
		    fib_nh_match(cfg, fi, extack) == 0 &&
		    fib_metrics_match(cfg, fi)) {
1585 1586 1587 1588 1589
			fa_to_delete = fa;
			break;
		}
	}

O
Olof Johansson 已提交
1590 1591
	if (!fa_to_delete)
		return -ESRCH;
1592

1593
	call_fib_entry_notifiers(net, FIB_EVENT_ENTRY_DEL, key, plen,
D
David Ahern 已提交
1594
				 fa_to_delete, extack);
1595
	rtmsg_fib(RTM_DELROUTE, htonl(key), fa_to_delete, plen, tb->tb_id,
1596
		  &cfg->fc_nlinfo, 0);
O
Olof Johansson 已提交
1597

1598 1599 1600
	if (!plen)
		tb->tb_num_default--;

1601
	fib_remove_alias(t, tp, l, fa_to_delete);
1602

1603
	if (fa_to_delete->fa_state & FA_S_ACCESSED)
1604
		rt_cache_flush(cfg->fc_nlinfo.nl_net);
1605

1606 1607
	fib_release_info(fa_to_delete->fa_info);
	alias_free_mem_rcu(fa_to_delete);
O
Olof Johansson 已提交
1608
	return 0;
1609 1610
}

1611
/* Scan for the next leaf starting at the provided key value */
1612
static struct key_vector *leaf_walk_rcu(struct key_vector **tn, t_key key)
1613
{
1614
	struct key_vector *pn, *n = *tn;
1615
	unsigned long cindex;
1616

1617
	/* this loop is meant to try and find the key in the trie */
1618
	do {
1619 1620
		/* record parent and next child index */
		pn = n;
1621
		cindex = (key > pn->key) ? get_index(key, pn) : 0;
1622 1623 1624

		if (cindex >> pn->bits)
			break;
1625

1626
		/* descend into the next child */
1627
		n = get_child_rcu(pn, cindex++);
1628 1629 1630 1631 1632 1633 1634
		if (!n)
			break;

		/* guarantee forward progress on the keys */
		if (IS_LEAF(n) && (n->key >= key))
			goto found;
	} while (IS_TNODE(n));
1635

1636
	/* this loop will search for the next leaf with a greater key */
1637
	while (!IS_TRIE(pn)) {
1638 1639 1640
		/* if we exhausted the parent node we will need to climb */
		if (cindex >= (1ul << pn->bits)) {
			t_key pkey = pn->key;
1641

1642 1643 1644 1645
			pn = node_parent_rcu(pn);
			cindex = get_index(pkey, pn) + 1;
			continue;
		}
1646

1647
		/* grab the next available node */
1648
		n = get_child_rcu(pn, cindex++);
1649 1650
		if (!n)
			continue;
1651

1652 1653 1654
		/* no need to compare keys since we bumped the index */
		if (IS_LEAF(n))
			goto found;
1655

1656 1657 1658 1659
		/* Rescan start scanning in new node */
		pn = n;
		cindex = 0;
	}
S
Stephen Hemminger 已提交
1660

1661 1662 1663 1664
	*tn = pn;
	return NULL; /* Root of trie */
found:
	/* if we are at the limit for keys just return NULL for the tnode */
1665
	*tn = pn;
1666
	return n;
1667 1668
}

1669 1670 1671 1672 1673 1674 1675 1676 1677 1678 1679 1680 1681 1682 1683 1684 1685 1686 1687 1688 1689 1690 1691 1692 1693 1694 1695 1696 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 1730 1731 1732 1733 1734 1735 1736 1737 1738 1739 1740 1741 1742 1743 1744 1745 1746 1747 1748 1749 1750 1751 1752 1753 1754 1755 1756 1757 1758 1759 1760 1761 1762 1763 1764 1765
static void fib_trie_free(struct fib_table *tb)
{
	struct trie *t = (struct trie *)tb->tb_data;
	struct key_vector *pn = t->kv;
	unsigned long cindex = 1;
	struct hlist_node *tmp;
	struct fib_alias *fa;

	/* walk trie in reverse order and free everything */
	for (;;) {
		struct key_vector *n;

		if (!(cindex--)) {
			t_key pkey = pn->key;

			if (IS_TRIE(pn))
				break;

			n = pn;
			pn = node_parent(pn);

			/* drop emptied tnode */
			put_child_root(pn, n->key, NULL);
			node_free(n);

			cindex = get_index(pkey, pn);

			continue;
		}

		/* grab the next available node */
		n = get_child(pn, cindex);
		if (!n)
			continue;

		if (IS_TNODE(n)) {
			/* record pn and cindex for leaf walking */
			pn = n;
			cindex = 1ul << n->bits;

			continue;
		}

		hlist_for_each_entry_safe(fa, tmp, &n->leaf, fa_list) {
			hlist_del_rcu(&fa->fa_list);
			alias_free_mem_rcu(fa);
		}

		put_child_root(pn, n->key, NULL);
		node_free(n);
	}

#ifdef CONFIG_IP_FIB_TRIE_STATS
	free_percpu(t->stats);
#endif
	kfree(tb);
}

struct fib_table *fib_trie_unmerge(struct fib_table *oldtb)
{
	struct trie *ot = (struct trie *)oldtb->tb_data;
	struct key_vector *l, *tp = ot->kv;
	struct fib_table *local_tb;
	struct fib_alias *fa;
	struct trie *lt;
	t_key key = 0;

	if (oldtb->tb_data == oldtb->__data)
		return oldtb;

	local_tb = fib_trie_table(RT_TABLE_LOCAL, NULL);
	if (!local_tb)
		return NULL;

	lt = (struct trie *)local_tb->tb_data;

	while ((l = leaf_walk_rcu(&tp, key)) != NULL) {
		struct key_vector *local_l = NULL, *local_tp;

		hlist_for_each_entry_rcu(fa, &l->leaf, fa_list) {
			struct fib_alias *new_fa;

			if (local_tb->tb_id != fa->tb_id)
				continue;

			/* clone fa for new local table */
			new_fa = kmem_cache_alloc(fn_alias_kmem, GFP_KERNEL);
			if (!new_fa)
				goto out;

			memcpy(new_fa, fa, sizeof(*fa));

			/* insert clone into table */
			if (!local_l)
				local_l = fib_find_node(lt, &local_tp, l->key);

			if (fib_insert_alias(lt, local_tp, local_l, new_fa,
1766 1767
					     NULL, l->key)) {
				kmem_cache_free(fn_alias_kmem, new_fa);
1768
				goto out;
1769
			}
1770 1771 1772 1773 1774 1775 1776 1777 1778 1779 1780 1781 1782 1783 1784
		}

		/* stop loop if key wrapped back to 0 */
		key = l->key + 1;
		if (key < l->key)
			break;
	}

	return local_tb;
out:
	fib_trie_free(local_tb);

	return NULL;
}

1785 1786 1787 1788 1789 1790 1791 1792 1793 1794 1795 1796 1797 1798 1799 1800 1801 1802 1803 1804 1805
/* Caller must hold RTNL */
void fib_table_flush_external(struct fib_table *tb)
{
	struct trie *t = (struct trie *)tb->tb_data;
	struct key_vector *pn = t->kv;
	unsigned long cindex = 1;
	struct hlist_node *tmp;
	struct fib_alias *fa;

	/* walk trie in reverse order */
	for (;;) {
		unsigned char slen = 0;
		struct key_vector *n;

		if (!(cindex--)) {
			t_key pkey = pn->key;

			/* cannot resize the trie vector */
			if (IS_TRIE(pn))
				break;

1806 1807 1808 1809
			/* update the suffix to address pulled leaves */
			if (pn->slen > pn->pos)
				update_suffix(pn);

1810 1811 1812 1813 1814 1815 1816 1817 1818 1819 1820 1821 1822 1823 1824 1825 1826 1827 1828 1829 1830 1831 1832 1833 1834 1835 1836 1837 1838 1839 1840 1841 1842 1843 1844 1845 1846 1847 1848 1849 1850 1851 1852 1853
			/* resize completed node */
			pn = resize(t, pn);
			cindex = get_index(pkey, pn);

			continue;
		}

		/* grab the next available node */
		n = get_child(pn, cindex);
		if (!n)
			continue;

		if (IS_TNODE(n)) {
			/* record pn and cindex for leaf walking */
			pn = n;
			cindex = 1ul << n->bits;

			continue;
		}

		hlist_for_each_entry_safe(fa, tmp, &n->leaf, fa_list) {
			/* if alias was cloned to local then we just
			 * need to remove the local copy from main
			 */
			if (tb->tb_id != fa->tb_id) {
				hlist_del_rcu(&fa->fa_list);
				alias_free_mem_rcu(fa);
				continue;
			}

			/* record local slen */
			slen = fa->fa_slen;
		}

		/* update leaf slen */
		n->slen = slen;

		if (hlist_empty(&n->leaf)) {
			put_child_root(pn, n->key, NULL);
			node_free(n);
		}
	}
}

1854
/* Caller must hold RTNL. */
1855
int fib_table_flush(struct net *net, struct fib_table *tb)
1856
{
1857
	struct trie *t = (struct trie *)tb->tb_data;
1858 1859
	struct key_vector *pn = t->kv;
	unsigned long cindex = 1;
1860 1861
	struct hlist_node *tmp;
	struct fib_alias *fa;
1862
	int found = 0;
1863

1864 1865 1866 1867
	/* walk trie in reverse order */
	for (;;) {
		unsigned char slen = 0;
		struct key_vector *n;
1868

1869 1870
		if (!(cindex--)) {
			t_key pkey = pn->key;
1871

1872 1873 1874
			/* cannot resize the trie vector */
			if (IS_TRIE(pn))
				break;
1875

1876 1877 1878 1879
			/* update the suffix to address pulled leaves */
			if (pn->slen > pn->pos)
				update_suffix(pn);

1880 1881 1882
			/* resize completed node */
			pn = resize(t, pn);
			cindex = get_index(pkey, pn);
1883

1884 1885
			continue;
		}
1886

1887 1888 1889 1890
		/* grab the next available node */
		n = get_child(pn, cindex);
		if (!n)
			continue;
1891

1892 1893 1894 1895
		if (IS_TNODE(n)) {
			/* record pn and cindex for leaf walking */
			pn = n;
			cindex = 1ul << n->bits;
1896

1897 1898
			continue;
		}
1899

1900 1901
		hlist_for_each_entry_safe(fa, tmp, &n->leaf, fa_list) {
			struct fib_info *fi = fa->fa_info;
1902

1903 1904
			if (!fi || !(fi->fib_flags & RTNH_F_DEAD) ||
			    tb->tb_id != fa->tb_id) {
1905 1906 1907
				slen = fa->fa_slen;
				continue;
			}
1908

1909 1910
			call_fib_entry_notifiers(net, FIB_EVENT_ENTRY_DEL,
						 n->key,
D
David Ahern 已提交
1911 1912
						 KEYLENGTH - fa->fa_slen, fa,
						 NULL);
1913 1914 1915 1916
			hlist_del_rcu(&fa->fa_list);
			fib_release_info(fa->fa_info);
			alias_free_mem_rcu(fa);
			found++;
1917 1918
		}

1919 1920
		/* update leaf slen */
		n->slen = slen;
1921

1922 1923 1924 1925
		if (hlist_empty(&n->leaf)) {
			put_child_root(pn, n->key, NULL);
			node_free(n);
		}
1926
	}
1927

S
Stephen Hemminger 已提交
1928
	pr_debug("trie_flush found=%d\n", found);
1929 1930 1931
	return found;
}

1932
static void fib_leaf_notify(struct net *net, struct key_vector *l,
1933
			    struct fib_table *tb, struct notifier_block *nb)
1934 1935 1936 1937 1938 1939 1940 1941 1942 1943 1944 1945 1946 1947 1948
{
	struct fib_alias *fa;

	hlist_for_each_entry_rcu(fa, &l->leaf, fa_list) {
		struct fib_info *fi = fa->fa_info;

		if (!fi)
			continue;

		/* local and main table can share the same trie,
		 * so don't notify twice for the same entry.
		 */
		if (tb->tb_id != fa->tb_id)
			continue;

1949
		call_fib_entry_notifier(nb, net, FIB_EVENT_ENTRY_ADD, l->key,
1950
					KEYLENGTH - fa->fa_slen, fa);
1951 1952 1953 1954
	}
}

static void fib_table_notify(struct net *net, struct fib_table *tb,
1955
			     struct notifier_block *nb)
1956 1957 1958 1959 1960 1961
{
	struct trie *t = (struct trie *)tb->tb_data;
	struct key_vector *l, *tp = t->kv;
	t_key key = 0;

	while ((l = leaf_walk_rcu(&tp, key)) != NULL) {
1962
		fib_leaf_notify(net, l, tb, nb);
1963 1964 1965 1966 1967 1968 1969 1970

		key = l->key + 1;
		/* stop in case of wrap around */
		if (key < l->key)
			break;
	}
}

1971
void fib_notify(struct net *net, struct notifier_block *nb)
1972 1973 1974 1975 1976 1977 1978 1979
{
	unsigned int h;

	for (h = 0; h < FIB_TABLE_HASHSZ; h++) {
		struct hlist_head *head = &net->ipv4.fib_table_hash[h];
		struct fib_table *tb;

		hlist_for_each_entry_rcu(tb, head, tb_hlist)
1980
			fib_table_notify(net, tb, nb);
1981 1982 1983
	}
}

1984
static void __trie_free_rcu(struct rcu_head *head)
1985
{
1986
	struct fib_table *tb = container_of(head, struct fib_table, rcu);
1987 1988 1989
#ifdef CONFIG_IP_FIB_TRIE_STATS
	struct trie *t = (struct trie *)tb->tb_data;

1990 1991
	if (tb->tb_data == tb->__data)
		free_percpu(t->stats);
1992
#endif /* CONFIG_IP_FIB_TRIE_STATS */
1993 1994 1995
	kfree(tb);
}

1996 1997 1998 1999 2000
void fib_free_table(struct fib_table *tb)
{
	call_rcu(&tb->rcu, __trie_free_rcu);
}

2001
static int fn_trie_dump_leaf(struct key_vector *l, struct fib_table *tb,
A
Alexander Duyck 已提交
2002
			     struct sk_buff *skb, struct netlink_callback *cb)
2003
{
A
Alexander Duyck 已提交
2004
	__be32 xkey = htonl(l->key);
2005
	struct fib_alias *fa;
A
Alexander Duyck 已提交
2006
	int i, s_i;
2007

A
Alexander Duyck 已提交
2008
	s_i = cb->args[4];
2009 2010
	i = 0;

R
Robert Olsson 已提交
2011
	/* rcu_read_lock is hold by caller */
A
Alexander Duyck 已提交
2012
	hlist_for_each_entry_rcu(fa, &l->leaf, fa_list) {
2013 2014
		int err;

2015 2016 2017 2018 2019
		if (i < s_i) {
			i++;
			continue;
		}

2020 2021 2022 2023 2024
		if (tb->tb_id != fa->tb_id) {
			i++;
			continue;
		}

2025 2026 2027 2028 2029 2030
		err = fib_dump_info(skb, NETLINK_CB(cb->skb).portid,
				    cb->nlh->nlmsg_seq, RTM_NEWROUTE,
				    tb->tb_id, fa->fa_type,
				    xkey, KEYLENGTH - fa->fa_slen,
				    fa->fa_tos, fa->fa_info, NLM_F_MULTI);
		if (err < 0) {
2031
			cb->args[4] = i;
2032
			return err;
2033
		}
2034
		i++;
2035
	}
2036

2037
	cb->args[4] = i;
2038 2039 2040
	return skb->len;
}

2041
/* rcu_read_lock needs to be hold by caller from readside */
2042 2043
int fib_table_dump(struct fib_table *tb, struct sk_buff *skb,
		   struct netlink_callback *cb)
2044
{
2045
	struct trie *t = (struct trie *)tb->tb_data;
2046
	struct key_vector *l, *tp = t->kv;
2047 2048 2049
	/* Dump starting at last key.
	 * Note: 0.0.0.0/0 (ie default) is first key.
	 */
2050 2051
	int count = cb->args[2];
	t_key key = cb->args[3];
2052

2053
	while ((l = leaf_walk_rcu(&tp, key)) != NULL) {
2054 2055 2056 2057
		int err;

		err = fn_trie_dump_leaf(l, tb, skb, cb);
		if (err < 0) {
2058 2059
			cb->args[3] = key;
			cb->args[2] = count;
2060
			return err;
2061
		}
2062

2063
		++count;
2064 2065
		key = l->key + 1;

2066 2067
		memset(&cb->args[4], 0,
		       sizeof(cb->args) - 4*sizeof(cb->args[0]));
2068 2069 2070 2071

		/* stop loop if key wrapped back to 0 */
		if (key < l->key)
			break;
2072
	}
2073 2074 2075 2076

	cb->args[3] = key;
	cb->args[2] = count;

2077 2078 2079
	return skb->len;
}

2080
void __init fib_trie_init(void)
2081
{
2082 2083
	fn_alias_kmem = kmem_cache_create("ip_fib_alias",
					  sizeof(struct fib_alias),
2084 2085 2086
					  0, SLAB_PANIC, NULL);

	trie_leaf_kmem = kmem_cache_create("ip_fib_trie",
2087
					   LEAF_SIZE,
2088
					   0, SLAB_PANIC, NULL);
2089
}
2090

2091
struct fib_table *fib_trie_table(u32 id, struct fib_table *alias)
2092 2093 2094
{
	struct fib_table *tb;
	struct trie *t;
2095 2096 2097 2098
	size_t sz = sizeof(*tb);

	if (!alias)
		sz += sizeof(struct trie);
2099

2100
	tb = kzalloc(sz, GFP_KERNEL);
2101
	if (!tb)
2102 2103 2104
		return NULL;

	tb->tb_id = id;
2105
	tb->tb_num_default = 0;
2106 2107 2108 2109
	tb->tb_data = (alias ? alias->__data : tb->__data);

	if (alias)
		return tb;
2110 2111

	t = (struct trie *) tb->tb_data;
2112 2113
	t->kv[0].pos = KEYLENGTH;
	t->kv[0].slen = KEYLENGTH;
2114 2115 2116 2117 2118 2119 2120
#ifdef CONFIG_IP_FIB_TRIE_STATS
	t->stats = alloc_percpu(struct trie_use_stats);
	if (!t->stats) {
		kfree(tb);
		tb = NULL;
	}
#endif
2121 2122 2123 2124

	return tb;
}

2125 2126 2127
#ifdef CONFIG_PROC_FS
/* Depth first Trie walk iterator */
struct fib_trie_iter {
2128
	struct seq_net_private p;
2129
	struct fib_table *tb;
2130
	struct key_vector *tnode;
E
Eric Dumazet 已提交
2131 2132
	unsigned int index;
	unsigned int depth;
2133
};
2134

2135
static struct key_vector *fib_trie_get_next(struct fib_trie_iter *iter)
2136
{
2137
	unsigned long cindex = iter->index;
2138 2139
	struct key_vector *pn = iter->tnode;
	t_key pkey;
2140

2141 2142
	pr_debug("get_next iter={node=%p index=%d depth=%d}\n",
		 iter->tnode, iter->index, iter->depth);
2143

2144 2145 2146 2147 2148 2149 2150
	while (!IS_TRIE(pn)) {
		while (cindex < child_length(pn)) {
			struct key_vector *n = get_child_rcu(pn, cindex++);

			if (!n)
				continue;

2151
			if (IS_LEAF(n)) {
2152 2153
				iter->tnode = pn;
				iter->index = cindex;
2154 2155
			} else {
				/* push down one level */
A
Alexander Duyck 已提交
2156
				iter->tnode = n;
2157 2158 2159
				iter->index = 0;
				++iter->depth;
			}
2160

2161 2162
			return n;
		}
2163

2164 2165 2166 2167
		/* Current node exhausted, pop back up */
		pkey = pn->key;
		pn = node_parent_rcu(pn);
		cindex = get_index(pkey, pn) + 1;
2168
		--iter->depth;
2169
	}
2170

2171 2172 2173 2174
	/* record root node so further searches know we are done */
	iter->tnode = pn;
	iter->index = 0;

2175
	return NULL;
2176 2177
}

2178 2179
static struct key_vector *fib_trie_get_first(struct fib_trie_iter *iter,
					     struct trie *t)
2180
{
2181
	struct key_vector *n, *pn;
2182

S
Stephen Hemminger 已提交
2183
	if (!t)
2184 2185
		return NULL;

2186
	pn = t->kv;
2187
	n = rcu_dereference(pn->tnode[0]);
2188
	if (!n)
2189
		return NULL;
2190

2191
	if (IS_TNODE(n)) {
A
Alexander Duyck 已提交
2192
		iter->tnode = n;
2193 2194 2195
		iter->index = 0;
		iter->depth = 1;
	} else {
2196
		iter->tnode = pn;
2197 2198
		iter->index = 0;
		iter->depth = 0;
O
Olof Johansson 已提交
2199
	}
2200 2201

	return n;
2202
}
O
Olof Johansson 已提交
2203

2204 2205
static void trie_collect_stats(struct trie *t, struct trie_stat *s)
{
2206
	struct key_vector *n;
2207
	struct fib_trie_iter iter;
O
Olof Johansson 已提交
2208

2209
	memset(s, 0, sizeof(*s));
O
Olof Johansson 已提交
2210

2211
	rcu_read_lock();
2212
	for (n = fib_trie_get_first(&iter, t); n; n = fib_trie_get_next(&iter)) {
2213
		if (IS_LEAF(n)) {
A
Alexander Duyck 已提交
2214
			struct fib_alias *fa;
2215

2216 2217 2218 2219
			s->leaves++;
			s->totdepth += iter.depth;
			if (iter.depth > s->maxdepth)
				s->maxdepth = iter.depth;
2220

A
Alexander Duyck 已提交
2221
			hlist_for_each_entry_rcu(fa, &n->leaf, fa_list)
2222
				++s->prefixes;
2223 2224
		} else {
			s->tnodes++;
A
Alexander Duyck 已提交
2225 2226
			if (n->bits < MAX_STAT_DEPTH)
				s->nodesizes[n->bits]++;
2227
			s->nullpointers += tn_info(n)->empty_children;
2228 2229
		}
	}
R
Robert Olsson 已提交
2230
	rcu_read_unlock();
2231 2232
}

2233 2234 2235 2236
/*
 *	This outputs /proc/net/fib_triestats
 */
static void trie_show_stats(struct seq_file *seq, struct trie_stat *stat)
2237
{
E
Eric Dumazet 已提交
2238
	unsigned int i, max, pointers, bytes, avdepth;
2239

2240 2241 2242 2243
	if (stat->leaves)
		avdepth = stat->totdepth*100 / stat->leaves;
	else
		avdepth = 0;
O
Olof Johansson 已提交
2244

2245 2246
	seq_printf(seq, "\tAver depth:     %u.%02d\n",
		   avdepth / 100, avdepth % 100);
2247
	seq_printf(seq, "\tMax depth:      %u\n", stat->maxdepth);
O
Olof Johansson 已提交
2248

2249
	seq_printf(seq, "\tLeaves:         %u\n", stat->leaves);
2250
	bytes = LEAF_SIZE * stat->leaves;
2251 2252

	seq_printf(seq, "\tPrefixes:       %u\n", stat->prefixes);
A
Alexander Duyck 已提交
2253
	bytes += sizeof(struct fib_alias) * stat->prefixes;
2254

2255
	seq_printf(seq, "\tInternal nodes: %u\n\t", stat->tnodes);
2256
	bytes += TNODE_SIZE(0) * stat->tnodes;
2257

R
Robert Olsson 已提交
2258 2259
	max = MAX_STAT_DEPTH;
	while (max > 0 && stat->nodesizes[max-1] == 0)
2260
		max--;
2261

2262
	pointers = 0;
2263
	for (i = 1; i < max; i++)
2264
		if (stat->nodesizes[i] != 0) {
2265
			seq_printf(seq, "  %u: %u",  i, stat->nodesizes[i]);
2266 2267 2268
			pointers += (1<<i) * stat->nodesizes[i];
		}
	seq_putc(seq, '\n');
2269
	seq_printf(seq, "\tPointers: %u\n", pointers);
R
Robert Olsson 已提交
2270

2271
	bytes += sizeof(struct key_vector *) * pointers;
2272 2273
	seq_printf(seq, "Null ptrs: %u\n", stat->nullpointers);
	seq_printf(seq, "Total size: %u  kB\n", (bytes + 1023) / 1024);
2274
}
R
Robert Olsson 已提交
2275

2276
#ifdef CONFIG_IP_FIB_TRIE_STATS
2277
static void trie_show_usage(struct seq_file *seq,
2278
			    const struct trie_use_stats __percpu *stats)
2279
{
2280 2281 2282 2283 2284 2285 2286 2287 2288 2289 2290 2291 2292 2293 2294
	struct trie_use_stats s = { 0 };
	int cpu;

	/* loop through all of the CPUs and gather up the stats */
	for_each_possible_cpu(cpu) {
		const struct trie_use_stats *pcpu = per_cpu_ptr(stats, cpu);

		s.gets += pcpu->gets;
		s.backtrack += pcpu->backtrack;
		s.semantic_match_passed += pcpu->semantic_match_passed;
		s.semantic_match_miss += pcpu->semantic_match_miss;
		s.null_node_hit += pcpu->null_node_hit;
		s.resize_node_skipped += pcpu->resize_node_skipped;
	}

2295
	seq_printf(seq, "\nCounters:\n---------\n");
2296 2297
	seq_printf(seq, "gets = %u\n", s.gets);
	seq_printf(seq, "backtracks = %u\n", s.backtrack);
2298
	seq_printf(seq, "semantic match passed = %u\n",
2299 2300 2301 2302
		   s.semantic_match_passed);
	seq_printf(seq, "semantic match miss = %u\n", s.semantic_match_miss);
	seq_printf(seq, "null node hit= %u\n", s.null_node_hit);
	seq_printf(seq, "skipped node resize = %u\n\n", s.resize_node_skipped);
2303
}
2304 2305
#endif /*  CONFIG_IP_FIB_TRIE_STATS */

2306
static void fib_table_print(struct seq_file *seq, struct fib_table *tb)
2307
{
2308 2309 2310 2311 2312 2313
	if (tb->tb_id == RT_TABLE_LOCAL)
		seq_puts(seq, "Local:\n");
	else if (tb->tb_id == RT_TABLE_MAIN)
		seq_puts(seq, "Main:\n");
	else
		seq_printf(seq, "Id %d:\n", tb->tb_id);
2314
}
2315

2316

2317 2318
static int fib_triestat_seq_show(struct seq_file *seq, void *v)
{
2319
	struct net *net = (struct net *)seq->private;
2320
	unsigned int h;
2321

2322
	seq_printf(seq,
2323
		   "Basic info: size of leaf:"
2324
		   " %zd bytes, size of tnode: %zd bytes.\n",
2325
		   LEAF_SIZE, TNODE_SIZE(0));
2326

2327 2328 2329 2330
	for (h = 0; h < FIB_TABLE_HASHSZ; h++) {
		struct hlist_head *head = &net->ipv4.fib_table_hash[h];
		struct fib_table *tb;

2331
		hlist_for_each_entry_rcu(tb, head, tb_hlist) {
2332 2333
			struct trie *t = (struct trie *) tb->tb_data;
			struct trie_stat stat;
2334

2335 2336 2337 2338 2339 2340 2341 2342
			if (!t)
				continue;

			fib_table_print(seq, tb);

			trie_collect_stats(t, &stat);
			trie_show_stats(seq, &stat);
#ifdef CONFIG_IP_FIB_TRIE_STATS
2343
			trie_show_usage(seq, t->stats);
2344 2345 2346
#endif
		}
	}
2347

2348
	return 0;
2349 2350
}

2351
static int fib_triestat_seq_open(struct inode *inode, struct file *file)
2352
{
2353
	return single_open_net(inode, file, fib_triestat_seq_show);
2354 2355
}

2356
static const struct file_operations fib_triestat_fops = {
2357 2358 2359
	.open	= fib_triestat_seq_open,
	.read	= seq_read,
	.llseek	= seq_lseek,
2360
	.release = single_release_net,
2361 2362
};

2363
static struct key_vector *fib_trie_get_idx(struct seq_file *seq, loff_t pos)
2364
{
2365 2366
	struct fib_trie_iter *iter = seq->private;
	struct net *net = seq_file_net(seq);
2367
	loff_t idx = 0;
2368
	unsigned int h;
2369

2370 2371 2372
	for (h = 0; h < FIB_TABLE_HASHSZ; h++) {
		struct hlist_head *head = &net->ipv4.fib_table_hash[h];
		struct fib_table *tb;
2373

2374
		hlist_for_each_entry_rcu(tb, head, tb_hlist) {
2375
			struct key_vector *n;
2376 2377 2378 2379 2380 2381 2382 2383 2384

			for (n = fib_trie_get_first(iter,
						    (struct trie *) tb->tb_data);
			     n; n = fib_trie_get_next(iter))
				if (pos == idx++) {
					iter->tb = tb;
					return n;
				}
		}
2385
	}
2386

2387 2388 2389
	return NULL;
}

2390
static void *fib_trie_seq_start(struct seq_file *seq, loff_t *pos)
2391
	__acquires(RCU)
2392
{
2393
	rcu_read_lock();
2394
	return fib_trie_get_idx(seq, *pos);
2395 2396
}

2397
static void *fib_trie_seq_next(struct seq_file *seq, void *v, loff_t *pos)
2398
{
2399
	struct fib_trie_iter *iter = seq->private;
2400
	struct net *net = seq_file_net(seq);
2401 2402 2403
	struct fib_table *tb = iter->tb;
	struct hlist_node *tb_node;
	unsigned int h;
2404
	struct key_vector *n;
2405

2406
	++*pos;
2407 2408 2409 2410
	/* next node in same table */
	n = fib_trie_get_next(iter);
	if (n)
		return n;
2411

2412 2413
	/* walk rest of this hash chain */
	h = tb->tb_id & (FIB_TABLE_HASHSZ - 1);
E
Eric Dumazet 已提交
2414
	while ((tb_node = rcu_dereference(hlist_next_rcu(&tb->tb_hlist)))) {
2415 2416 2417 2418 2419
		tb = hlist_entry(tb_node, struct fib_table, tb_hlist);
		n = fib_trie_get_first(iter, (struct trie *) tb->tb_data);
		if (n)
			goto found;
	}
2420

2421 2422 2423
	/* new hash chain */
	while (++h < FIB_TABLE_HASHSZ) {
		struct hlist_head *head = &net->ipv4.fib_table_hash[h];
2424
		hlist_for_each_entry_rcu(tb, head, tb_hlist) {
2425 2426 2427 2428 2429
			n = fib_trie_get_first(iter, (struct trie *) tb->tb_data);
			if (n)
				goto found;
		}
	}
2430
	return NULL;
2431 2432 2433 2434

found:
	iter->tb = tb;
	return n;
2435
}
2436

2437
static void fib_trie_seq_stop(struct seq_file *seq, void *v)
2438
	__releases(RCU)
2439
{
2440 2441
	rcu_read_unlock();
}
O
Olof Johansson 已提交
2442

2443 2444
static void seq_indent(struct seq_file *seq, int n)
{
E
Eric Dumazet 已提交
2445 2446
	while (n-- > 0)
		seq_puts(seq, "   ");
2447
}
2448

2449
static inline const char *rtn_scope(char *buf, size_t len, enum rt_scope_t s)
2450
{
S
Stephen Hemminger 已提交
2451
	switch (s) {
2452 2453 2454 2455 2456 2457
	case RT_SCOPE_UNIVERSE: return "universe";
	case RT_SCOPE_SITE:	return "site";
	case RT_SCOPE_LINK:	return "link";
	case RT_SCOPE_HOST:	return "host";
	case RT_SCOPE_NOWHERE:	return "nowhere";
	default:
2458
		snprintf(buf, len, "scope=%d", s);
2459 2460 2461
		return buf;
	}
}
2462

2463
static const char *const rtn_type_names[__RTN_MAX] = {
2464 2465 2466 2467 2468 2469 2470 2471 2472 2473 2474 2475 2476
	[RTN_UNSPEC] = "UNSPEC",
	[RTN_UNICAST] = "UNICAST",
	[RTN_LOCAL] = "LOCAL",
	[RTN_BROADCAST] = "BROADCAST",
	[RTN_ANYCAST] = "ANYCAST",
	[RTN_MULTICAST] = "MULTICAST",
	[RTN_BLACKHOLE] = "BLACKHOLE",
	[RTN_UNREACHABLE] = "UNREACHABLE",
	[RTN_PROHIBIT] = "PROHIBIT",
	[RTN_THROW] = "THROW",
	[RTN_NAT] = "NAT",
	[RTN_XRESOLVE] = "XRESOLVE",
};
2477

E
Eric Dumazet 已提交
2478
static inline const char *rtn_type(char *buf, size_t len, unsigned int t)
2479 2480 2481
{
	if (t < __RTN_MAX && rtn_type_names[t])
		return rtn_type_names[t];
2482
	snprintf(buf, len, "type %u", t);
2483
	return buf;
2484 2485
}

2486 2487
/* Pretty print the trie */
static int fib_trie_seq_show(struct seq_file *seq, void *v)
2488
{
2489
	const struct fib_trie_iter *iter = seq->private;
2490
	struct key_vector *n = v;
2491

2492
	if (IS_TRIE(node_parent_rcu(n)))
2493
		fib_table_print(seq, iter->tb);
2494

2495
	if (IS_TNODE(n)) {
A
Alexander Duyck 已提交
2496
		__be32 prf = htonl(n->key);
O
Olof Johansson 已提交
2497

2498 2499 2500
		seq_indent(seq, iter->depth-1);
		seq_printf(seq, "  +-- %pI4/%zu %u %u %u\n",
			   &prf, KEYLENGTH - n->pos - n->bits, n->bits,
2501 2502
			   tn_info(n)->full_children,
			   tn_info(n)->empty_children);
2503
	} else {
A
Alexander Duyck 已提交
2504
		__be32 val = htonl(n->key);
A
Alexander Duyck 已提交
2505
		struct fib_alias *fa;
2506 2507

		seq_indent(seq, iter->depth);
2508
		seq_printf(seq, "  |-- %pI4\n", &val);
2509

A
Alexander Duyck 已提交
2510 2511 2512 2513 2514 2515 2516 2517 2518 2519 2520 2521 2522
		hlist_for_each_entry_rcu(fa, &n->leaf, fa_list) {
			char buf1[32], buf2[32];

			seq_indent(seq, iter->depth + 1);
			seq_printf(seq, "  /%zu %s %s",
				   KEYLENGTH - fa->fa_slen,
				   rtn_scope(buf1, sizeof(buf1),
					     fa->fa_info->fib_scope),
				   rtn_type(buf2, sizeof(buf2),
					    fa->fa_type));
			if (fa->fa_tos)
				seq_printf(seq, " tos=%d", fa->fa_tos);
			seq_putc(seq, '\n');
2523
		}
2524
	}
2525

2526 2527 2528
	return 0;
}

2529
static const struct seq_operations fib_trie_seq_ops = {
2530 2531 2532 2533
	.start  = fib_trie_seq_start,
	.next   = fib_trie_seq_next,
	.stop   = fib_trie_seq_stop,
	.show   = fib_trie_seq_show,
2534 2535
};

2536
static int fib_trie_seq_open(struct inode *inode, struct file *file)
2537
{
2538 2539
	return seq_open_net(inode, file, &fib_trie_seq_ops,
			    sizeof(struct fib_trie_iter));
2540 2541
}

2542
static const struct file_operations fib_trie_fops = {
2543 2544 2545
	.open   = fib_trie_seq_open,
	.read   = seq_read,
	.llseek = seq_lseek,
2546
	.release = seq_release_net,
2547 2548
};

2549 2550
struct fib_route_iter {
	struct seq_net_private p;
2551
	struct fib_table *main_tb;
2552
	struct key_vector *tnode;
2553 2554 2555 2556
	loff_t	pos;
	t_key	key;
};

2557 2558
static struct key_vector *fib_route_get_idx(struct fib_route_iter *iter,
					    loff_t pos)
2559
{
2560
	struct key_vector *l, **tp = &iter->tnode;
2561
	t_key key;
2562

2563
	/* use cached location of previously found key */
2564 2565 2566
	if (iter->pos > 0 && pos >= iter->pos) {
		key = iter->key;
	} else {
2567
		iter->pos = 1;
2568
		key = 0;
2569 2570
	}

2571 2572 2573
	pos -= iter->pos;

	while ((l = leaf_walk_rcu(tp, key)) && (pos-- > 0)) {
2574
		key = l->key + 1;
2575
		iter->pos++;
2576 2577 2578 2579 2580
		l = NULL;

		/* handle unlikely case of a key wrap */
		if (!key)
			break;
2581 2582 2583
	}

	if (l)
2584
		iter->key = l->key;	/* remember it */
2585 2586 2587 2588 2589 2590 2591 2592 2593 2594 2595
	else
		iter->pos = 0;		/* forget it */

	return l;
}

static void *fib_route_seq_start(struct seq_file *seq, loff_t *pos)
	__acquires(RCU)
{
	struct fib_route_iter *iter = seq->private;
	struct fib_table *tb;
2596
	struct trie *t;
2597 2598

	rcu_read_lock();
2599

2600
	tb = fib_get_table(seq_file_net(seq), RT_TABLE_MAIN);
2601 2602 2603
	if (!tb)
		return NULL;

2604
	iter->main_tb = tb;
2605 2606
	t = (struct trie *)tb->tb_data;
	iter->tnode = t->kv;
2607 2608 2609 2610 2611

	if (*pos != 0)
		return fib_route_get_idx(iter, *pos);

	iter->pos = 0;
2612
	iter->key = KEY_MAX;
2613 2614

	return SEQ_START_TOKEN;
2615 2616 2617 2618 2619
}

static void *fib_route_seq_next(struct seq_file *seq, void *v, loff_t *pos)
{
	struct fib_route_iter *iter = seq->private;
2620
	struct key_vector *l = NULL;
2621
	t_key key = iter->key + 1;
2622 2623

	++*pos;
2624 2625 2626 2627 2628 2629

	/* only allow key of 0 for start of sequence */
	if ((v == SEQ_START_TOKEN) || key)
		l = leaf_walk_rcu(&iter->tnode, key);

	if (l) {
2630
		iter->key = l->key;
2631
		iter->pos++;
2632 2633
	} else {
		iter->pos = 0;
2634 2635 2636 2637 2638 2639 2640 2641 2642 2643 2644
	}

	return l;
}

static void fib_route_seq_stop(struct seq_file *seq, void *v)
	__releases(RCU)
{
	rcu_read_unlock();
}

E
Eric Dumazet 已提交
2645
static unsigned int fib_flag_trans(int type, __be32 mask, const struct fib_info *fi)
2646
{
E
Eric Dumazet 已提交
2647
	unsigned int flags = 0;
2648

E
Eric Dumazet 已提交
2649 2650
	if (type == RTN_UNREACHABLE || type == RTN_PROHIBIT)
		flags = RTF_REJECT;
2651 2652
	if (fi && fi->fib_nh->nh_gw)
		flags |= RTF_GATEWAY;
A
Al Viro 已提交
2653
	if (mask == htonl(0xFFFFFFFF))
2654 2655 2656
		flags |= RTF_HOST;
	flags |= RTF_UP;
	return flags;
2657 2658
}

2659 2660 2661
/*
 *	This outputs /proc/net/route.
 *	The format of the file is not supposed to be changed
E
Eric Dumazet 已提交
2662
 *	and needs to be same as fib_hash output to avoid breaking
2663 2664 2665
 *	legacy utilities
 */
static int fib_route_seq_show(struct seq_file *seq, void *v)
2666
{
2667 2668
	struct fib_route_iter *iter = seq->private;
	struct fib_table *tb = iter->main_tb;
A
Alexander Duyck 已提交
2669
	struct fib_alias *fa;
2670
	struct key_vector *l = v;
2671
	__be32 prefix;
2672

2673 2674 2675 2676 2677 2678
	if (v == SEQ_START_TOKEN) {
		seq_printf(seq, "%-127s\n", "Iface\tDestination\tGateway "
			   "\tFlags\tRefCnt\tUse\tMetric\tMask\t\tMTU"
			   "\tWindow\tIRTT");
		return 0;
	}
2679

2680 2681
	prefix = htonl(l->key);

A
Alexander Duyck 已提交
2682 2683 2684 2685
	hlist_for_each_entry_rcu(fa, &l->leaf, fa_list) {
		const struct fib_info *fi = fa->fa_info;
		__be32 mask = inet_make_mask(KEYLENGTH - fa->fa_slen);
		unsigned int flags = fib_flag_trans(fa->fa_type, mask, fi);
2686

A
Alexander Duyck 已提交
2687 2688 2689
		if ((fa->fa_type == RTN_BROADCAST) ||
		    (fa->fa_type == RTN_MULTICAST))
			continue;
2690

2691 2692 2693
		if (fa->tb_id != tb->tb_id)
			continue;

A
Alexander Duyck 已提交
2694 2695 2696 2697 2698 2699 2700 2701 2702 2703 2704 2705 2706 2707 2708 2709 2710 2711 2712 2713 2714
		seq_setwidth(seq, 127);

		if (fi)
			seq_printf(seq,
				   "%s\t%08X\t%08X\t%04X\t%d\t%u\t"
				   "%d\t%08X\t%d\t%u\t%u",
				   fi->fib_dev ? fi->fib_dev->name : "*",
				   prefix,
				   fi->fib_nh->nh_gw, flags, 0, 0,
				   fi->fib_priority,
				   mask,
				   (fi->fib_advmss ?
				    fi->fib_advmss + 40 : 0),
				   fi->fib_window,
				   fi->fib_rtt >> 3);
		else
			seq_printf(seq,
				   "*\t%08X\t%08X\t%04X\t%d\t%u\t"
				   "%d\t%08X\t%d\t%u\t%u",
				   prefix, 0, flags, 0, 0, 0,
				   mask, 0, 0, 0);
2715

A
Alexander Duyck 已提交
2716
		seq_pad(seq, '\n');
2717 2718 2719 2720 2721
	}

	return 0;
}

2722
static const struct seq_operations fib_route_seq_ops = {
2723 2724 2725
	.start  = fib_route_seq_start,
	.next   = fib_route_seq_next,
	.stop   = fib_route_seq_stop,
2726
	.show   = fib_route_seq_show,
2727 2728
};

2729
static int fib_route_seq_open(struct inode *inode, struct file *file)
2730
{
2731
	return seq_open_net(inode, file, &fib_route_seq_ops,
2732
			    sizeof(struct fib_route_iter));
2733 2734
}

2735
static const struct file_operations fib_route_fops = {
2736 2737 2738
	.open   = fib_route_seq_open,
	.read   = seq_read,
	.llseek = seq_lseek,
2739
	.release = seq_release_net,
2740 2741
};

2742
int __net_init fib_proc_init(struct net *net)
2743
{
2744
	if (!proc_create("fib_trie", 0444, net->proc_net, &fib_trie_fops))
2745 2746
		goto out1;

2747
	if (!proc_create("fib_triestat", 0444, net->proc_net,
2748
			 &fib_triestat_fops))
2749 2750
		goto out2;

2751
	if (!proc_create("route", 0444, net->proc_net, &fib_route_fops))
2752 2753
		goto out3;

2754
	return 0;
2755 2756

out3:
2757
	remove_proc_entry("fib_triestat", net->proc_net);
2758
out2:
2759
	remove_proc_entry("fib_trie", net->proc_net);
2760 2761
out1:
	return -ENOMEM;
2762 2763
}

2764
void __net_exit fib_proc_exit(struct net *net)
2765
{
2766 2767 2768
	remove_proc_entry("fib_trie", net->proc_net);
	remove_proc_entry("fib_triestat", net->proc_net);
	remove_proc_entry("route", net->proc_net);
2769 2770 2771
}

#endif /* CONFIG_PROC_FS */