2 * IP multicast routing support for mrouted 3.6/3.8
4 * (c) 1995 Alan Cox, <alan@lxorguk.ukuu.org.uk>
5 * Linux Consultancy and Custom Driver Development
7 * This program is free software; you can redistribute it and/or
8 * modify it under the terms of the GNU General Public License
9 * as published by the Free Software Foundation; either version
10 * 2 of the License, or (at your option) any later version.
13 * Michael Chastain : Incorrect size of copying.
14 * Alan Cox : Added the cache manager code
15 * Alan Cox : Fixed the clone/copy bug and device race.
16 * Mike McLagan : Routing by source
17 * Malcolm Beattie : Buffer handling fixes.
18 * Alexey Kuznetsov : Double buffer free and other fixes.
19 * SVR Anand : Fixed several multicast bugs and problems.
20 * Alexey Kuznetsov : Status, optimisations and more.
21 * Brad Parker : Better behaviour on mrouted upcall
23 * Carlos Picoto : PIMv1 Support
24 * Pavlin Ivanov Radoslavov: PIMv2 Registers must checksum only PIM header
25 * Relax this requirement to work with older peers.
29 #include <asm/uaccess.h>
30 #include <linux/types.h>
31 #include <linux/capability.h>
32 #include <linux/errno.h>
33 #include <linux/timer.h>
35 #include <linux/kernel.h>
36 #include <linux/fcntl.h>
37 #include <linux/stat.h>
38 #include <linux/socket.h>
40 #include <linux/inet.h>
41 #include <linux/netdevice.h>
42 #include <linux/inetdevice.h>
43 #include <linux/igmp.h>
44 #include <linux/proc_fs.h>
45 #include <linux/seq_file.h>
46 #include <linux/mroute.h>
47 #include <linux/init.h>
48 #include <linux/if_ether.h>
49 #include <linux/slab.h>
50 #include <net/net_namespace.h>
52 #include <net/protocol.h>
53 #include <linux/skbuff.h>
54 #include <net/route.h>
59 #include <linux/notifier.h>
60 #include <linux/if_arp.h>
61 #include <linux/netfilter_ipv4.h>
62 #include <linux/compat.h>
63 #include <linux/export.h>
64 #include <net/ip_tunnels.h>
65 #include <net/checksum.h>
66 #include <net/netlink.h>
67 #include <net/fib_rules.h>
68 #include <linux/netconf.h>
70 #if defined(CONFIG_IP_PIMSM_V1) || defined(CONFIG_IP_PIMSM_V2)
71 #define CONFIG_IP_PIMSM 1
75 struct list_head list
;
78 struct sock __rcu
*mroute_sk
;
79 struct timer_list ipmr_expire_timer
;
80 struct list_head mfc_unres_queue
;
81 struct list_head mfc_cache_array
[MFC_LINES
];
82 struct vif_device vif_table
[MAXVIFS
];
84 atomic_t cache_resolve_queue_len
;
85 bool mroute_do_assert
;
87 #if defined(CONFIG_IP_PIMSM_V1) || defined(CONFIG_IP_PIMSM_V2)
88 int mroute_reg_vif_num
;
93 struct fib_rule common
;
100 /* Big lock, protecting vif table, mrt cache and mroute socket state.
101 * Note that the changes are semaphored via rtnl_lock.
104 static DEFINE_RWLOCK(mrt_lock
);
107 * Multicast router control variables
110 #define VIF_EXISTS(_mrt, _idx) ((_mrt)->vif_table[_idx].dev != NULL)
112 /* Special spinlock for queue of unresolved entries */
113 static DEFINE_SPINLOCK(mfc_unres_lock
);
115 /* We return to original Alan's scheme. Hash table of resolved
116 * entries is changed only in process context and protected
117 * with weak lock mrt_lock. Queue of unresolved entries is protected
118 * with strong spinlock mfc_unres_lock.
120 * In this case data path is free of exclusive locks at all.
123 static struct kmem_cache
*mrt_cachep __read_mostly
;
125 static struct mr_table
*ipmr_new_table(struct net
*net
, u32 id
);
126 static void ipmr_free_table(struct mr_table
*mrt
);
128 static void ip_mr_forward(struct net
*net
, struct mr_table
*mrt
,
129 struct sk_buff
*skb
, struct mfc_cache
*cache
,
131 static int ipmr_cache_report(struct mr_table
*mrt
,
132 struct sk_buff
*pkt
, vifi_t vifi
, int assert);
133 static int __ipmr_fill_mroute(struct mr_table
*mrt
, struct sk_buff
*skb
,
134 struct mfc_cache
*c
, struct rtmsg
*rtm
);
135 static void mroute_netlink_event(struct mr_table
*mrt
, struct mfc_cache
*mfc
,
137 static void mroute_clean_tables(struct mr_table
*mrt
);
138 static void ipmr_expire_process(unsigned long arg
);
140 #ifdef CONFIG_IP_MROUTE_MULTIPLE_TABLES
141 #define ipmr_for_each_table(mrt, net) \
142 list_for_each_entry_rcu(mrt, &net->ipv4.mr_tables, list)
144 static struct mr_table
*ipmr_get_table(struct net
*net
, u32 id
)
146 struct mr_table
*mrt
;
148 ipmr_for_each_table(mrt
, net
) {
155 static int ipmr_fib_lookup(struct net
*net
, struct flowi4
*flp4
,
156 struct mr_table
**mrt
)
159 struct ipmr_result res
;
160 struct fib_lookup_arg arg
= {
162 .flags
= FIB_LOOKUP_NOREF
,
165 err
= fib_rules_lookup(net
->ipv4
.mr_rules_ops
,
166 flowi4_to_flowi(flp4
), 0, &arg
);
173 static int ipmr_rule_action(struct fib_rule
*rule
, struct flowi
*flp
,
174 int flags
, struct fib_lookup_arg
*arg
)
176 struct ipmr_result
*res
= arg
->result
;
177 struct mr_table
*mrt
;
179 switch (rule
->action
) {
182 case FR_ACT_UNREACHABLE
:
184 case FR_ACT_PROHIBIT
:
186 case FR_ACT_BLACKHOLE
:
191 mrt
= ipmr_get_table(rule
->fr_net
, rule
->table
);
198 static int ipmr_rule_match(struct fib_rule
*rule
, struct flowi
*fl
, int flags
)
203 static const struct nla_policy ipmr_rule_policy
[FRA_MAX
+ 1] = {
207 static int ipmr_rule_configure(struct fib_rule
*rule
, struct sk_buff
*skb
,
208 struct fib_rule_hdr
*frh
, struct nlattr
**tb
)
213 static int ipmr_rule_compare(struct fib_rule
*rule
, struct fib_rule_hdr
*frh
,
219 static int ipmr_rule_fill(struct fib_rule
*rule
, struct sk_buff
*skb
,
220 struct fib_rule_hdr
*frh
)
228 static const struct fib_rules_ops __net_initconst ipmr_rules_ops_template
= {
229 .family
= RTNL_FAMILY_IPMR
,
230 .rule_size
= sizeof(struct ipmr_rule
),
231 .addr_size
= sizeof(u32
),
232 .action
= ipmr_rule_action
,
233 .match
= ipmr_rule_match
,
234 .configure
= ipmr_rule_configure
,
235 .compare
= ipmr_rule_compare
,
236 .fill
= ipmr_rule_fill
,
237 .nlgroup
= RTNLGRP_IPV4_RULE
,
238 .policy
= ipmr_rule_policy
,
239 .owner
= THIS_MODULE
,
242 static int __net_init
ipmr_rules_init(struct net
*net
)
244 struct fib_rules_ops
*ops
;
245 struct mr_table
*mrt
;
248 ops
= fib_rules_register(&ipmr_rules_ops_template
, net
);
252 INIT_LIST_HEAD(&net
->ipv4
.mr_tables
);
254 mrt
= ipmr_new_table(net
, RT_TABLE_DEFAULT
);
260 err
= fib_default_rule_add(ops
, 0x7fff, RT_TABLE_DEFAULT
, 0);
264 net
->ipv4
.mr_rules_ops
= ops
;
268 ipmr_free_table(mrt
);
270 fib_rules_unregister(ops
);
274 static void __net_exit
ipmr_rules_exit(struct net
*net
)
276 struct mr_table
*mrt
, *next
;
279 list_for_each_entry_safe(mrt
, next
, &net
->ipv4
.mr_tables
, list
) {
280 list_del(&mrt
->list
);
281 ipmr_free_table(mrt
);
283 fib_rules_unregister(net
->ipv4
.mr_rules_ops
);
287 #define ipmr_for_each_table(mrt, net) \
288 for (mrt = net->ipv4.mrt; mrt; mrt = NULL)
290 static struct mr_table
*ipmr_get_table(struct net
*net
, u32 id
)
292 return net
->ipv4
.mrt
;
295 static int ipmr_fib_lookup(struct net
*net
, struct flowi4
*flp4
,
296 struct mr_table
**mrt
)
298 *mrt
= net
->ipv4
.mrt
;
302 static int __net_init
ipmr_rules_init(struct net
*net
)
304 net
->ipv4
.mrt
= ipmr_new_table(net
, RT_TABLE_DEFAULT
);
305 return net
->ipv4
.mrt
? 0 : -ENOMEM
;
308 static void __net_exit
ipmr_rules_exit(struct net
*net
)
311 ipmr_free_table(net
->ipv4
.mrt
);
312 net
->ipv4
.mrt
= NULL
;
317 static struct mr_table
*ipmr_new_table(struct net
*net
, u32 id
)
319 struct mr_table
*mrt
;
322 mrt
= ipmr_get_table(net
, id
);
326 mrt
= kzalloc(sizeof(*mrt
), GFP_KERNEL
);
329 write_pnet(&mrt
->net
, net
);
332 /* Forwarding cache */
333 for (i
= 0; i
< MFC_LINES
; i
++)
334 INIT_LIST_HEAD(&mrt
->mfc_cache_array
[i
]);
336 INIT_LIST_HEAD(&mrt
->mfc_unres_queue
);
338 setup_timer(&mrt
->ipmr_expire_timer
, ipmr_expire_process
,
341 #ifdef CONFIG_IP_PIMSM
342 mrt
->mroute_reg_vif_num
= -1;
344 #ifdef CONFIG_IP_MROUTE_MULTIPLE_TABLES
345 list_add_tail_rcu(&mrt
->list
, &net
->ipv4
.mr_tables
);
350 static void ipmr_free_table(struct mr_table
*mrt
)
352 del_timer_sync(&mrt
->ipmr_expire_timer
);
353 mroute_clean_tables(mrt
);
357 /* Service routines creating virtual interfaces: DVMRP tunnels and PIMREG */
359 static void ipmr_del_tunnel(struct net_device
*dev
, struct vifctl
*v
)
361 struct net
*net
= dev_net(dev
);
365 dev
= __dev_get_by_name(net
, "tunl0");
367 const struct net_device_ops
*ops
= dev
->netdev_ops
;
369 struct ip_tunnel_parm p
;
371 memset(&p
, 0, sizeof(p
));
372 p
.iph
.daddr
= v
->vifc_rmt_addr
.s_addr
;
373 p
.iph
.saddr
= v
->vifc_lcl_addr
.s_addr
;
376 p
.iph
.protocol
= IPPROTO_IPIP
;
377 sprintf(p
.name
, "dvmrp%d", v
->vifc_vifi
);
378 ifr
.ifr_ifru
.ifru_data
= (__force
void __user
*)&p
;
380 if (ops
->ndo_do_ioctl
) {
381 mm_segment_t oldfs
= get_fs();
384 ops
->ndo_do_ioctl(dev
, &ifr
, SIOCDELTUNNEL
);
391 struct net_device
*ipmr_new_tunnel(struct net
*net
, struct vifctl
*v
)
393 struct net_device
*dev
;
395 dev
= __dev_get_by_name(net
, "tunl0");
398 const struct net_device_ops
*ops
= dev
->netdev_ops
;
401 struct ip_tunnel_parm p
;
402 struct in_device
*in_dev
;
404 memset(&p
, 0, sizeof(p
));
405 p
.iph
.daddr
= v
->vifc_rmt_addr
.s_addr
;
406 p
.iph
.saddr
= v
->vifc_lcl_addr
.s_addr
;
409 p
.iph
.protocol
= IPPROTO_IPIP
;
410 sprintf(p
.name
, "dvmrp%d", v
->vifc_vifi
);
411 ifr
.ifr_ifru
.ifru_data
= (__force
void __user
*)&p
;
413 if (ops
->ndo_do_ioctl
) {
414 mm_segment_t oldfs
= get_fs();
417 err
= ops
->ndo_do_ioctl(dev
, &ifr
, SIOCADDTUNNEL
);
425 (dev
= __dev_get_by_name(net
, p
.name
)) != NULL
) {
426 dev
->flags
|= IFF_MULTICAST
;
428 in_dev
= __in_dev_get_rtnl(dev
);
432 ipv4_devconf_setall(in_dev
);
433 neigh_parms_data_state_setall(in_dev
->arp_parms
);
434 IPV4_DEVCONF(in_dev
->cnf
, RP_FILTER
) = 0;
444 /* allow the register to be completed before unregistering. */
448 unregister_netdevice(dev
);
452 #ifdef CONFIG_IP_PIMSM
454 static netdev_tx_t
reg_vif_xmit(struct sk_buff
*skb
, struct net_device
*dev
)
456 struct net
*net
= dev_net(dev
);
457 struct mr_table
*mrt
;
458 struct flowi4 fl4
= {
459 .flowi4_oif
= dev
->ifindex
,
460 .flowi4_iif
= skb
->skb_iif
? : LOOPBACK_IFINDEX
,
461 .flowi4_mark
= skb
->mark
,
465 err
= ipmr_fib_lookup(net
, &fl4
, &mrt
);
471 read_lock(&mrt_lock
);
472 dev
->stats
.tx_bytes
+= skb
->len
;
473 dev
->stats
.tx_packets
++;
474 ipmr_cache_report(mrt
, skb
, mrt
->mroute_reg_vif_num
, IGMPMSG_WHOLEPKT
);
475 read_unlock(&mrt_lock
);
480 static int reg_vif_get_iflink(const struct net_device
*dev
)
485 static const struct net_device_ops reg_vif_netdev_ops
= {
486 .ndo_start_xmit
= reg_vif_xmit
,
487 .ndo_get_iflink
= reg_vif_get_iflink
,
490 static void reg_vif_setup(struct net_device
*dev
)
492 dev
->type
= ARPHRD_PIMREG
;
493 dev
->mtu
= ETH_DATA_LEN
- sizeof(struct iphdr
) - 8;
494 dev
->flags
= IFF_NOARP
;
495 dev
->netdev_ops
= ®_vif_netdev_ops
;
496 dev
->destructor
= free_netdev
;
497 dev
->features
|= NETIF_F_NETNS_LOCAL
;
500 static struct net_device
*ipmr_reg_vif(struct net
*net
, struct mr_table
*mrt
)
502 struct net_device
*dev
;
503 struct in_device
*in_dev
;
506 if (mrt
->id
== RT_TABLE_DEFAULT
)
507 sprintf(name
, "pimreg");
509 sprintf(name
, "pimreg%u", mrt
->id
);
511 dev
= alloc_netdev(0, name
, NET_NAME_UNKNOWN
, reg_vif_setup
);
516 dev_net_set(dev
, net
);
518 if (register_netdevice(dev
)) {
524 in_dev
= __in_dev_get_rcu(dev
);
530 ipv4_devconf_setall(in_dev
);
531 neigh_parms_data_state_setall(in_dev
->arp_parms
);
532 IPV4_DEVCONF(in_dev
->cnf
, RP_FILTER
) = 0;
543 /* allow the register to be completed before unregistering. */
547 unregister_netdevice(dev
);
553 * vif_delete - Delete a VIF entry
554 * @notify: Set to 1, if the caller is a notifier_call
557 static int vif_delete(struct mr_table
*mrt
, int vifi
, int notify
,
558 struct list_head
*head
)
560 struct vif_device
*v
;
561 struct net_device
*dev
;
562 struct in_device
*in_dev
;
564 if (vifi
< 0 || vifi
>= mrt
->maxvif
)
565 return -EADDRNOTAVAIL
;
567 v
= &mrt
->vif_table
[vifi
];
569 write_lock_bh(&mrt_lock
);
574 write_unlock_bh(&mrt_lock
);
575 return -EADDRNOTAVAIL
;
578 #ifdef CONFIG_IP_PIMSM
579 if (vifi
== mrt
->mroute_reg_vif_num
)
580 mrt
->mroute_reg_vif_num
= -1;
583 if (vifi
+ 1 == mrt
->maxvif
) {
586 for (tmp
= vifi
- 1; tmp
>= 0; tmp
--) {
587 if (VIF_EXISTS(mrt
, tmp
))
593 write_unlock_bh(&mrt_lock
);
595 dev_set_allmulti(dev
, -1);
597 in_dev
= __in_dev_get_rtnl(dev
);
599 IPV4_DEVCONF(in_dev
->cnf
, MC_FORWARDING
)--;
600 inet_netconf_notify_devconf(dev_net(dev
),
601 NETCONFA_MC_FORWARDING
,
602 dev
->ifindex
, &in_dev
->cnf
);
603 ip_rt_multicast_event(in_dev
);
606 if (v
->flags
& (VIFF_TUNNEL
| VIFF_REGISTER
) && !notify
)
607 unregister_netdevice_queue(dev
, head
);
613 static void ipmr_cache_free_rcu(struct rcu_head
*head
)
615 struct mfc_cache
*c
= container_of(head
, struct mfc_cache
, rcu
);
617 kmem_cache_free(mrt_cachep
, c
);
620 static inline void ipmr_cache_free(struct mfc_cache
*c
)
622 call_rcu(&c
->rcu
, ipmr_cache_free_rcu
);
625 /* Destroy an unresolved cache entry, killing queued skbs
626 * and reporting error to netlink readers.
629 static void ipmr_destroy_unres(struct mr_table
*mrt
, struct mfc_cache
*c
)
631 struct net
*net
= read_pnet(&mrt
->net
);
635 atomic_dec(&mrt
->cache_resolve_queue_len
);
637 while ((skb
= skb_dequeue(&c
->mfc_un
.unres
.unresolved
))) {
638 if (ip_hdr(skb
)->version
== 0) {
639 struct nlmsghdr
*nlh
= (struct nlmsghdr
*)skb_pull(skb
, sizeof(struct iphdr
));
640 nlh
->nlmsg_type
= NLMSG_ERROR
;
641 nlh
->nlmsg_len
= nlmsg_msg_size(sizeof(struct nlmsgerr
));
642 skb_trim(skb
, nlh
->nlmsg_len
);
644 e
->error
= -ETIMEDOUT
;
645 memset(&e
->msg
, 0, sizeof(e
->msg
));
647 rtnl_unicast(skb
, net
, NETLINK_CB(skb
).portid
);
657 /* Timer process for the unresolved queue. */
659 static void ipmr_expire_process(unsigned long arg
)
661 struct mr_table
*mrt
= (struct mr_table
*)arg
;
663 unsigned long expires
;
664 struct mfc_cache
*c
, *next
;
666 if (!spin_trylock(&mfc_unres_lock
)) {
667 mod_timer(&mrt
->ipmr_expire_timer
, jiffies
+HZ
/10);
671 if (list_empty(&mrt
->mfc_unres_queue
))
677 list_for_each_entry_safe(c
, next
, &mrt
->mfc_unres_queue
, list
) {
678 if (time_after(c
->mfc_un
.unres
.expires
, now
)) {
679 unsigned long interval
= c
->mfc_un
.unres
.expires
- now
;
680 if (interval
< expires
)
686 mroute_netlink_event(mrt
, c
, RTM_DELROUTE
);
687 ipmr_destroy_unres(mrt
, c
);
690 if (!list_empty(&mrt
->mfc_unres_queue
))
691 mod_timer(&mrt
->ipmr_expire_timer
, jiffies
+ expires
);
694 spin_unlock(&mfc_unres_lock
);
697 /* Fill oifs list. It is called under write locked mrt_lock. */
699 static void ipmr_update_thresholds(struct mr_table
*mrt
, struct mfc_cache
*cache
,
704 cache
->mfc_un
.res
.minvif
= MAXVIFS
;
705 cache
->mfc_un
.res
.maxvif
= 0;
706 memset(cache
->mfc_un
.res
.ttls
, 255, MAXVIFS
);
708 for (vifi
= 0; vifi
< mrt
->maxvif
; vifi
++) {
709 if (VIF_EXISTS(mrt
, vifi
) &&
710 ttls
[vifi
] && ttls
[vifi
] < 255) {
711 cache
->mfc_un
.res
.ttls
[vifi
] = ttls
[vifi
];
712 if (cache
->mfc_un
.res
.minvif
> vifi
)
713 cache
->mfc_un
.res
.minvif
= vifi
;
714 if (cache
->mfc_un
.res
.maxvif
<= vifi
)
715 cache
->mfc_un
.res
.maxvif
= vifi
+ 1;
720 static int vif_add(struct net
*net
, struct mr_table
*mrt
,
721 struct vifctl
*vifc
, int mrtsock
)
723 int vifi
= vifc
->vifc_vifi
;
724 struct vif_device
*v
= &mrt
->vif_table
[vifi
];
725 struct net_device
*dev
;
726 struct in_device
*in_dev
;
730 if (VIF_EXISTS(mrt
, vifi
))
733 switch (vifc
->vifc_flags
) {
734 #ifdef CONFIG_IP_PIMSM
737 * Special Purpose VIF in PIM
738 * All the packets will be sent to the daemon
740 if (mrt
->mroute_reg_vif_num
>= 0)
742 dev
= ipmr_reg_vif(net
, mrt
);
745 err
= dev_set_allmulti(dev
, 1);
747 unregister_netdevice(dev
);
754 dev
= ipmr_new_tunnel(net
, vifc
);
757 err
= dev_set_allmulti(dev
, 1);
759 ipmr_del_tunnel(dev
, vifc
);
765 case VIFF_USE_IFINDEX
:
767 if (vifc
->vifc_flags
== VIFF_USE_IFINDEX
) {
768 dev
= dev_get_by_index(net
, vifc
->vifc_lcl_ifindex
);
769 if (dev
&& !__in_dev_get_rtnl(dev
)) {
771 return -EADDRNOTAVAIL
;
774 dev
= ip_dev_find(net
, vifc
->vifc_lcl_addr
.s_addr
);
777 return -EADDRNOTAVAIL
;
778 err
= dev_set_allmulti(dev
, 1);
788 in_dev
= __in_dev_get_rtnl(dev
);
791 return -EADDRNOTAVAIL
;
793 IPV4_DEVCONF(in_dev
->cnf
, MC_FORWARDING
)++;
794 inet_netconf_notify_devconf(net
, NETCONFA_MC_FORWARDING
, dev
->ifindex
,
796 ip_rt_multicast_event(in_dev
);
798 /* Fill in the VIF structures */
800 v
->rate_limit
= vifc
->vifc_rate_limit
;
801 v
->local
= vifc
->vifc_lcl_addr
.s_addr
;
802 v
->remote
= vifc
->vifc_rmt_addr
.s_addr
;
803 v
->flags
= vifc
->vifc_flags
;
805 v
->flags
|= VIFF_STATIC
;
806 v
->threshold
= vifc
->vifc_threshold
;
811 v
->link
= dev
->ifindex
;
812 if (v
->flags
& (VIFF_TUNNEL
| VIFF_REGISTER
))
813 v
->link
= dev_get_iflink(dev
);
815 /* And finish update writing critical data */
816 write_lock_bh(&mrt_lock
);
818 #ifdef CONFIG_IP_PIMSM
819 if (v
->flags
& VIFF_REGISTER
)
820 mrt
->mroute_reg_vif_num
= vifi
;
822 if (vifi
+1 > mrt
->maxvif
)
823 mrt
->maxvif
= vifi
+1;
824 write_unlock_bh(&mrt_lock
);
828 /* called with rcu_read_lock() */
829 static struct mfc_cache
*ipmr_cache_find(struct mr_table
*mrt
,
833 int line
= MFC_HASH(mcastgrp
, origin
);
836 list_for_each_entry_rcu(c
, &mrt
->mfc_cache_array
[line
], list
) {
837 if (c
->mfc_origin
== origin
&& c
->mfc_mcastgrp
== mcastgrp
)
843 /* Look for a (*,*,oif) entry */
844 static struct mfc_cache
*ipmr_cache_find_any_parent(struct mr_table
*mrt
,
847 int line
= MFC_HASH(htonl(INADDR_ANY
), htonl(INADDR_ANY
));
850 list_for_each_entry_rcu(c
, &mrt
->mfc_cache_array
[line
], list
)
851 if (c
->mfc_origin
== htonl(INADDR_ANY
) &&
852 c
->mfc_mcastgrp
== htonl(INADDR_ANY
) &&
853 c
->mfc_un
.res
.ttls
[vifi
] < 255)
859 /* Look for a (*,G) entry */
860 static struct mfc_cache
*ipmr_cache_find_any(struct mr_table
*mrt
,
861 __be32 mcastgrp
, int vifi
)
863 int line
= MFC_HASH(mcastgrp
, htonl(INADDR_ANY
));
864 struct mfc_cache
*c
, *proxy
;
866 if (mcastgrp
== htonl(INADDR_ANY
))
869 list_for_each_entry_rcu(c
, &mrt
->mfc_cache_array
[line
], list
)
870 if (c
->mfc_origin
== htonl(INADDR_ANY
) &&
871 c
->mfc_mcastgrp
== mcastgrp
) {
872 if (c
->mfc_un
.res
.ttls
[vifi
] < 255)
875 /* It's ok if the vifi is part of the static tree */
876 proxy
= ipmr_cache_find_any_parent(mrt
,
878 if (proxy
&& proxy
->mfc_un
.res
.ttls
[vifi
] < 255)
883 return ipmr_cache_find_any_parent(mrt
, vifi
);
887 * Allocate a multicast cache entry
889 static struct mfc_cache
*ipmr_cache_alloc(void)
891 struct mfc_cache
*c
= kmem_cache_zalloc(mrt_cachep
, GFP_KERNEL
);
894 c
->mfc_un
.res
.minvif
= MAXVIFS
;
898 static struct mfc_cache
*ipmr_cache_alloc_unres(void)
900 struct mfc_cache
*c
= kmem_cache_zalloc(mrt_cachep
, GFP_ATOMIC
);
903 skb_queue_head_init(&c
->mfc_un
.unres
.unresolved
);
904 c
->mfc_un
.unres
.expires
= jiffies
+ 10*HZ
;
910 * A cache entry has gone into a resolved state from queued
913 static void ipmr_cache_resolve(struct net
*net
, struct mr_table
*mrt
,
914 struct mfc_cache
*uc
, struct mfc_cache
*c
)
919 /* Play the pending entries through our router */
921 while ((skb
= __skb_dequeue(&uc
->mfc_un
.unres
.unresolved
))) {
922 if (ip_hdr(skb
)->version
== 0) {
923 struct nlmsghdr
*nlh
= (struct nlmsghdr
*)skb_pull(skb
, sizeof(struct iphdr
));
925 if (__ipmr_fill_mroute(mrt
, skb
, c
, nlmsg_data(nlh
)) > 0) {
926 nlh
->nlmsg_len
= skb_tail_pointer(skb
) -
929 nlh
->nlmsg_type
= NLMSG_ERROR
;
930 nlh
->nlmsg_len
= nlmsg_msg_size(sizeof(struct nlmsgerr
));
931 skb_trim(skb
, nlh
->nlmsg_len
);
933 e
->error
= -EMSGSIZE
;
934 memset(&e
->msg
, 0, sizeof(e
->msg
));
937 rtnl_unicast(skb
, net
, NETLINK_CB(skb
).portid
);
939 ip_mr_forward(net
, mrt
, skb
, c
, 0);
945 * Bounce a cache query up to mrouted. We could use netlink for this but mrouted
946 * expects the following bizarre scheme.
948 * Called under mrt_lock.
951 static int ipmr_cache_report(struct mr_table
*mrt
,
952 struct sk_buff
*pkt
, vifi_t vifi
, int assert)
955 const int ihl
= ip_hdrlen(pkt
);
956 struct igmphdr
*igmp
;
958 struct sock
*mroute_sk
;
961 #ifdef CONFIG_IP_PIMSM
962 if (assert == IGMPMSG_WHOLEPKT
)
963 skb
= skb_realloc_headroom(pkt
, sizeof(struct iphdr
));
966 skb
= alloc_skb(128, GFP_ATOMIC
);
971 #ifdef CONFIG_IP_PIMSM
972 if (assert == IGMPMSG_WHOLEPKT
) {
973 /* Ugly, but we have no choice with this interface.
974 * Duplicate old header, fix ihl, length etc.
975 * And all this only to mangle msg->im_msgtype and
976 * to set msg->im_mbz to "mbz" :-)
978 skb_push(skb
, sizeof(struct iphdr
));
979 skb_reset_network_header(skb
);
980 skb_reset_transport_header(skb
);
981 msg
= (struct igmpmsg
*)skb_network_header(skb
);
982 memcpy(msg
, skb_network_header(pkt
), sizeof(struct iphdr
));
983 msg
->im_msgtype
= IGMPMSG_WHOLEPKT
;
985 msg
->im_vif
= mrt
->mroute_reg_vif_num
;
986 ip_hdr(skb
)->ihl
= sizeof(struct iphdr
) >> 2;
987 ip_hdr(skb
)->tot_len
= htons(ntohs(ip_hdr(pkt
)->tot_len
) +
988 sizeof(struct iphdr
));
993 /* Copy the IP header */
995 skb_set_network_header(skb
, skb
->len
);
997 skb_copy_to_linear_data(skb
, pkt
->data
, ihl
);
998 ip_hdr(skb
)->protocol
= 0; /* Flag to the kernel this is a route add */
999 msg
= (struct igmpmsg
*)skb_network_header(skb
);
1001 skb_dst_set(skb
, dst_clone(skb_dst(pkt
)));
1003 /* Add our header */
1005 igmp
= (struct igmphdr
*)skb_put(skb
, sizeof(struct igmphdr
));
1007 msg
->im_msgtype
= assert;
1009 ip_hdr(skb
)->tot_len
= htons(skb
->len
); /* Fix the length */
1010 skb
->transport_header
= skb
->network_header
;
1014 mroute_sk
= rcu_dereference(mrt
->mroute_sk
);
1021 /* Deliver to mrouted */
1023 ret
= sock_queue_rcv_skb(mroute_sk
, skb
);
1026 net_warn_ratelimited("mroute: pending queue full, dropping entries\n");
1034 * Queue a packet for resolution. It gets locked cache entry!
1038 ipmr_cache_unresolved(struct mr_table
*mrt
, vifi_t vifi
, struct sk_buff
*skb
)
1042 struct mfc_cache
*c
;
1043 const struct iphdr
*iph
= ip_hdr(skb
);
1045 spin_lock_bh(&mfc_unres_lock
);
1046 list_for_each_entry(c
, &mrt
->mfc_unres_queue
, list
) {
1047 if (c
->mfc_mcastgrp
== iph
->daddr
&&
1048 c
->mfc_origin
== iph
->saddr
) {
1055 /* Create a new entry if allowable */
1057 if (atomic_read(&mrt
->cache_resolve_queue_len
) >= 10 ||
1058 (c
= ipmr_cache_alloc_unres()) == NULL
) {
1059 spin_unlock_bh(&mfc_unres_lock
);
1065 /* Fill in the new cache entry */
1068 c
->mfc_origin
= iph
->saddr
;
1069 c
->mfc_mcastgrp
= iph
->daddr
;
1071 /* Reflect first query at mrouted. */
1073 err
= ipmr_cache_report(mrt
, skb
, vifi
, IGMPMSG_NOCACHE
);
1075 /* If the report failed throw the cache entry
1078 spin_unlock_bh(&mfc_unres_lock
);
1085 atomic_inc(&mrt
->cache_resolve_queue_len
);
1086 list_add(&c
->list
, &mrt
->mfc_unres_queue
);
1087 mroute_netlink_event(mrt
, c
, RTM_NEWROUTE
);
1089 if (atomic_read(&mrt
->cache_resolve_queue_len
) == 1)
1090 mod_timer(&mrt
->ipmr_expire_timer
, c
->mfc_un
.unres
.expires
);
1093 /* See if we can append the packet */
1095 if (c
->mfc_un
.unres
.unresolved
.qlen
> 3) {
1099 skb_queue_tail(&c
->mfc_un
.unres
.unresolved
, skb
);
1103 spin_unlock_bh(&mfc_unres_lock
);
1108 * MFC cache manipulation by user space mroute daemon
1111 static int ipmr_mfc_delete(struct mr_table
*mrt
, struct mfcctl
*mfc
, int parent
)
1114 struct mfc_cache
*c
, *next
;
1116 line
= MFC_HASH(mfc
->mfcc_mcastgrp
.s_addr
, mfc
->mfcc_origin
.s_addr
);
1118 list_for_each_entry_safe(c
, next
, &mrt
->mfc_cache_array
[line
], list
) {
1119 if (c
->mfc_origin
== mfc
->mfcc_origin
.s_addr
&&
1120 c
->mfc_mcastgrp
== mfc
->mfcc_mcastgrp
.s_addr
&&
1121 (parent
== -1 || parent
== c
->mfc_parent
)) {
1122 list_del_rcu(&c
->list
);
1123 mroute_netlink_event(mrt
, c
, RTM_DELROUTE
);
1131 static int ipmr_mfc_add(struct net
*net
, struct mr_table
*mrt
,
1132 struct mfcctl
*mfc
, int mrtsock
, int parent
)
1136 struct mfc_cache
*uc
, *c
;
1138 if (mfc
->mfcc_parent
>= MAXVIFS
)
1141 line
= MFC_HASH(mfc
->mfcc_mcastgrp
.s_addr
, mfc
->mfcc_origin
.s_addr
);
1143 list_for_each_entry(c
, &mrt
->mfc_cache_array
[line
], list
) {
1144 if (c
->mfc_origin
== mfc
->mfcc_origin
.s_addr
&&
1145 c
->mfc_mcastgrp
== mfc
->mfcc_mcastgrp
.s_addr
&&
1146 (parent
== -1 || parent
== c
->mfc_parent
)) {
1153 write_lock_bh(&mrt_lock
);
1154 c
->mfc_parent
= mfc
->mfcc_parent
;
1155 ipmr_update_thresholds(mrt
, c
, mfc
->mfcc_ttls
);
1157 c
->mfc_flags
|= MFC_STATIC
;
1158 write_unlock_bh(&mrt_lock
);
1159 mroute_netlink_event(mrt
, c
, RTM_NEWROUTE
);
1163 if (mfc
->mfcc_mcastgrp
.s_addr
!= htonl(INADDR_ANY
) &&
1164 !ipv4_is_multicast(mfc
->mfcc_mcastgrp
.s_addr
))
1167 c
= ipmr_cache_alloc();
1171 c
->mfc_origin
= mfc
->mfcc_origin
.s_addr
;
1172 c
->mfc_mcastgrp
= mfc
->mfcc_mcastgrp
.s_addr
;
1173 c
->mfc_parent
= mfc
->mfcc_parent
;
1174 ipmr_update_thresholds(mrt
, c
, mfc
->mfcc_ttls
);
1176 c
->mfc_flags
|= MFC_STATIC
;
1178 list_add_rcu(&c
->list
, &mrt
->mfc_cache_array
[line
]);
1181 * Check to see if we resolved a queued list. If so we
1182 * need to send on the frames and tidy up.
1185 spin_lock_bh(&mfc_unres_lock
);
1186 list_for_each_entry(uc
, &mrt
->mfc_unres_queue
, list
) {
1187 if (uc
->mfc_origin
== c
->mfc_origin
&&
1188 uc
->mfc_mcastgrp
== c
->mfc_mcastgrp
) {
1189 list_del(&uc
->list
);
1190 atomic_dec(&mrt
->cache_resolve_queue_len
);
1195 if (list_empty(&mrt
->mfc_unres_queue
))
1196 del_timer(&mrt
->ipmr_expire_timer
);
1197 spin_unlock_bh(&mfc_unres_lock
);
1200 ipmr_cache_resolve(net
, mrt
, uc
, c
);
1201 ipmr_cache_free(uc
);
1203 mroute_netlink_event(mrt
, c
, RTM_NEWROUTE
);
1208 * Close the multicast socket, and clear the vif tables etc
1211 static void mroute_clean_tables(struct mr_table
*mrt
)
1215 struct mfc_cache
*c
, *next
;
1217 /* Shut down all active vif entries */
1219 for (i
= 0; i
< mrt
->maxvif
; i
++) {
1220 if (!(mrt
->vif_table
[i
].flags
& VIFF_STATIC
))
1221 vif_delete(mrt
, i
, 0, &list
);
1223 unregister_netdevice_many(&list
);
1225 /* Wipe the cache */
1227 for (i
= 0; i
< MFC_LINES
; i
++) {
1228 list_for_each_entry_safe(c
, next
, &mrt
->mfc_cache_array
[i
], list
) {
1229 if (c
->mfc_flags
& MFC_STATIC
)
1231 list_del_rcu(&c
->list
);
1232 mroute_netlink_event(mrt
, c
, RTM_DELROUTE
);
1237 if (atomic_read(&mrt
->cache_resolve_queue_len
) != 0) {
1238 spin_lock_bh(&mfc_unres_lock
);
1239 list_for_each_entry_safe(c
, next
, &mrt
->mfc_unres_queue
, list
) {
1241 mroute_netlink_event(mrt
, c
, RTM_DELROUTE
);
1242 ipmr_destroy_unres(mrt
, c
);
1244 spin_unlock_bh(&mfc_unres_lock
);
1248 /* called from ip_ra_control(), before an RCU grace period,
1249 * we dont need to call synchronize_rcu() here
1251 static void mrtsock_destruct(struct sock
*sk
)
1253 struct net
*net
= sock_net(sk
);
1254 struct mr_table
*mrt
;
1257 ipmr_for_each_table(mrt
, net
) {
1258 if (sk
== rtnl_dereference(mrt
->mroute_sk
)) {
1259 IPV4_DEVCONF_ALL(net
, MC_FORWARDING
)--;
1260 inet_netconf_notify_devconf(net
, NETCONFA_MC_FORWARDING
,
1261 NETCONFA_IFINDEX_ALL
,
1262 net
->ipv4
.devconf_all
);
1263 RCU_INIT_POINTER(mrt
->mroute_sk
, NULL
);
1264 mroute_clean_tables(mrt
);
1271 * Socket options and virtual interface manipulation. The whole
1272 * virtual interface system is a complete heap, but unfortunately
1273 * that's how BSD mrouted happens to think. Maybe one day with a proper
1274 * MOSPF/PIM router set up we can clean this up.
1277 int ip_mroute_setsockopt(struct sock
*sk
, int optname
, char __user
*optval
, unsigned int optlen
)
1279 int ret
, parent
= 0;
1282 struct net
*net
= sock_net(sk
);
1283 struct mr_table
*mrt
;
1285 if (sk
->sk_type
!= SOCK_RAW
||
1286 inet_sk(sk
)->inet_num
!= IPPROTO_IGMP
)
1289 mrt
= ipmr_get_table(net
, raw_sk(sk
)->ipmr_table
? : RT_TABLE_DEFAULT
);
1293 if (optname
!= MRT_INIT
) {
1294 if (sk
!= rcu_access_pointer(mrt
->mroute_sk
) &&
1295 !ns_capable(net
->user_ns
, CAP_NET_ADMIN
))
1301 if (optlen
!= sizeof(int))
1305 if (rtnl_dereference(mrt
->mroute_sk
)) {
1310 ret
= ip_ra_control(sk
, 1, mrtsock_destruct
);
1312 rcu_assign_pointer(mrt
->mroute_sk
, sk
);
1313 IPV4_DEVCONF_ALL(net
, MC_FORWARDING
)++;
1314 inet_netconf_notify_devconf(net
, NETCONFA_MC_FORWARDING
,
1315 NETCONFA_IFINDEX_ALL
,
1316 net
->ipv4
.devconf_all
);
1321 if (sk
!= rcu_access_pointer(mrt
->mroute_sk
))
1323 return ip_ra_control(sk
, 0, NULL
);
1326 if (optlen
!= sizeof(vif
))
1328 if (copy_from_user(&vif
, optval
, sizeof(vif
)))
1330 if (vif
.vifc_vifi
>= MAXVIFS
)
1333 if (optname
== MRT_ADD_VIF
) {
1334 ret
= vif_add(net
, mrt
, &vif
,
1335 sk
== rtnl_dereference(mrt
->mroute_sk
));
1337 ret
= vif_delete(mrt
, vif
.vifc_vifi
, 0, NULL
);
1343 * Manipulate the forwarding caches. These live
1344 * in a sort of kernel/user symbiosis.
1349 case MRT_ADD_MFC_PROXY
:
1350 case MRT_DEL_MFC_PROXY
:
1351 if (optlen
!= sizeof(mfc
))
1353 if (copy_from_user(&mfc
, optval
, sizeof(mfc
)))
1356 parent
= mfc
.mfcc_parent
;
1358 if (optname
== MRT_DEL_MFC
|| optname
== MRT_DEL_MFC_PROXY
)
1359 ret
= ipmr_mfc_delete(mrt
, &mfc
, parent
);
1361 ret
= ipmr_mfc_add(net
, mrt
, &mfc
,
1362 sk
== rtnl_dereference(mrt
->mroute_sk
),
1367 * Control PIM assert.
1372 if (optlen
!= sizeof(v
))
1374 if (get_user(v
, (int __user
*)optval
))
1376 mrt
->mroute_do_assert
= v
;
1379 #ifdef CONFIG_IP_PIMSM
1384 if (optlen
!= sizeof(v
))
1386 if (get_user(v
, (int __user
*)optval
))
1392 if (v
!= mrt
->mroute_do_pim
) {
1393 mrt
->mroute_do_pim
= v
;
1394 mrt
->mroute_do_assert
= v
;
1400 #ifdef CONFIG_IP_MROUTE_MULTIPLE_TABLES
1405 if (optlen
!= sizeof(u32
))
1407 if (get_user(v
, (u32 __user
*)optval
))
1410 /* "pimreg%u" should not exceed 16 bytes (IFNAMSIZ) */
1411 if (v
!= RT_TABLE_DEFAULT
&& v
>= 1000000000)
1416 if (sk
== rtnl_dereference(mrt
->mroute_sk
)) {
1419 if (!ipmr_new_table(net
, v
))
1422 raw_sk(sk
)->ipmr_table
= v
;
1429 * Spurious command, or MRT_VERSION which you cannot
1433 return -ENOPROTOOPT
;
1438 * Getsock opt support for the multicast routing system.
1441 int ip_mroute_getsockopt(struct sock
*sk
, int optname
, char __user
*optval
, int __user
*optlen
)
1445 struct net
*net
= sock_net(sk
);
1446 struct mr_table
*mrt
;
1448 if (sk
->sk_type
!= SOCK_RAW
||
1449 inet_sk(sk
)->inet_num
!= IPPROTO_IGMP
)
1452 mrt
= ipmr_get_table(net
, raw_sk(sk
)->ipmr_table
? : RT_TABLE_DEFAULT
);
1456 if (optname
!= MRT_VERSION
&&
1457 #ifdef CONFIG_IP_PIMSM
1458 optname
!= MRT_PIM
&&
1460 optname
!= MRT_ASSERT
)
1461 return -ENOPROTOOPT
;
1463 if (get_user(olr
, optlen
))
1466 olr
= min_t(unsigned int, olr
, sizeof(int));
1470 if (put_user(olr
, optlen
))
1472 if (optname
== MRT_VERSION
)
1474 #ifdef CONFIG_IP_PIMSM
1475 else if (optname
== MRT_PIM
)
1476 val
= mrt
->mroute_do_pim
;
1479 val
= mrt
->mroute_do_assert
;
1480 if (copy_to_user(optval
, &val
, olr
))
1486 * The IP multicast ioctl support routines.
1489 int ipmr_ioctl(struct sock
*sk
, int cmd
, void __user
*arg
)
1491 struct sioc_sg_req sr
;
1492 struct sioc_vif_req vr
;
1493 struct vif_device
*vif
;
1494 struct mfc_cache
*c
;
1495 struct net
*net
= sock_net(sk
);
1496 struct mr_table
*mrt
;
1498 mrt
= ipmr_get_table(net
, raw_sk(sk
)->ipmr_table
? : RT_TABLE_DEFAULT
);
1504 if (copy_from_user(&vr
, arg
, sizeof(vr
)))
1506 if (vr
.vifi
>= mrt
->maxvif
)
1508 read_lock(&mrt_lock
);
1509 vif
= &mrt
->vif_table
[vr
.vifi
];
1510 if (VIF_EXISTS(mrt
, vr
.vifi
)) {
1511 vr
.icount
= vif
->pkt_in
;
1512 vr
.ocount
= vif
->pkt_out
;
1513 vr
.ibytes
= vif
->bytes_in
;
1514 vr
.obytes
= vif
->bytes_out
;
1515 read_unlock(&mrt_lock
);
1517 if (copy_to_user(arg
, &vr
, sizeof(vr
)))
1521 read_unlock(&mrt_lock
);
1522 return -EADDRNOTAVAIL
;
1524 if (copy_from_user(&sr
, arg
, sizeof(sr
)))
1528 c
= ipmr_cache_find(mrt
, sr
.src
.s_addr
, sr
.grp
.s_addr
);
1530 sr
.pktcnt
= c
->mfc_un
.res
.pkt
;
1531 sr
.bytecnt
= c
->mfc_un
.res
.bytes
;
1532 sr
.wrong_if
= c
->mfc_un
.res
.wrong_if
;
1535 if (copy_to_user(arg
, &sr
, sizeof(sr
)))
1540 return -EADDRNOTAVAIL
;
1542 return -ENOIOCTLCMD
;
1546 #ifdef CONFIG_COMPAT
1547 struct compat_sioc_sg_req
{
1550 compat_ulong_t pktcnt
;
1551 compat_ulong_t bytecnt
;
1552 compat_ulong_t wrong_if
;
1555 struct compat_sioc_vif_req
{
1556 vifi_t vifi
; /* Which iface */
1557 compat_ulong_t icount
;
1558 compat_ulong_t ocount
;
1559 compat_ulong_t ibytes
;
1560 compat_ulong_t obytes
;
1563 int ipmr_compat_ioctl(struct sock
*sk
, unsigned int cmd
, void __user
*arg
)
1565 struct compat_sioc_sg_req sr
;
1566 struct compat_sioc_vif_req vr
;
1567 struct vif_device
*vif
;
1568 struct mfc_cache
*c
;
1569 struct net
*net
= sock_net(sk
);
1570 struct mr_table
*mrt
;
1572 mrt
= ipmr_get_table(net
, raw_sk(sk
)->ipmr_table
? : RT_TABLE_DEFAULT
);
1578 if (copy_from_user(&vr
, arg
, sizeof(vr
)))
1580 if (vr
.vifi
>= mrt
->maxvif
)
1582 read_lock(&mrt_lock
);
1583 vif
= &mrt
->vif_table
[vr
.vifi
];
1584 if (VIF_EXISTS(mrt
, vr
.vifi
)) {
1585 vr
.icount
= vif
->pkt_in
;
1586 vr
.ocount
= vif
->pkt_out
;
1587 vr
.ibytes
= vif
->bytes_in
;
1588 vr
.obytes
= vif
->bytes_out
;
1589 read_unlock(&mrt_lock
);
1591 if (copy_to_user(arg
, &vr
, sizeof(vr
)))
1595 read_unlock(&mrt_lock
);
1596 return -EADDRNOTAVAIL
;
1598 if (copy_from_user(&sr
, arg
, sizeof(sr
)))
1602 c
= ipmr_cache_find(mrt
, sr
.src
.s_addr
, sr
.grp
.s_addr
);
1604 sr
.pktcnt
= c
->mfc_un
.res
.pkt
;
1605 sr
.bytecnt
= c
->mfc_un
.res
.bytes
;
1606 sr
.wrong_if
= c
->mfc_un
.res
.wrong_if
;
1609 if (copy_to_user(arg
, &sr
, sizeof(sr
)))
1614 return -EADDRNOTAVAIL
;
1616 return -ENOIOCTLCMD
;
1622 static int ipmr_device_event(struct notifier_block
*this, unsigned long event
, void *ptr
)
1624 struct net_device
*dev
= netdev_notifier_info_to_dev(ptr
);
1625 struct net
*net
= dev_net(dev
);
1626 struct mr_table
*mrt
;
1627 struct vif_device
*v
;
1630 if (event
!= NETDEV_UNREGISTER
)
1633 ipmr_for_each_table(mrt
, net
) {
1634 v
= &mrt
->vif_table
[0];
1635 for (ct
= 0; ct
< mrt
->maxvif
; ct
++, v
++) {
1637 vif_delete(mrt
, ct
, 1, NULL
);
1644 static struct notifier_block ip_mr_notifier
= {
1645 .notifier_call
= ipmr_device_event
,
1649 * Encapsulate a packet by attaching a valid IPIP header to it.
1650 * This avoids tunnel drivers and other mess and gives us the speed so
1651 * important for multicast video.
1654 static void ip_encap(struct net
*net
, struct sk_buff
*skb
,
1655 __be32 saddr
, __be32 daddr
)
1658 const struct iphdr
*old_iph
= ip_hdr(skb
);
1660 skb_push(skb
, sizeof(struct iphdr
));
1661 skb
->transport_header
= skb
->network_header
;
1662 skb_reset_network_header(skb
);
1666 iph
->tos
= old_iph
->tos
;
1667 iph
->ttl
= old_iph
->ttl
;
1671 iph
->protocol
= IPPROTO_IPIP
;
1673 iph
->tot_len
= htons(skb
->len
);
1674 ip_select_ident(net
, skb
, NULL
);
1677 memset(&(IPCB(skb
)->opt
), 0, sizeof(IPCB(skb
)->opt
));
1681 static inline int ipmr_forward_finish(struct sock
*sk
, struct sk_buff
*skb
)
1683 struct ip_options
*opt
= &(IPCB(skb
)->opt
);
1685 IP_INC_STATS_BH(dev_net(skb_dst(skb
)->dev
), IPSTATS_MIB_OUTFORWDATAGRAMS
);
1686 IP_ADD_STATS_BH(dev_net(skb_dst(skb
)->dev
), IPSTATS_MIB_OUTOCTETS
, skb
->len
);
1688 if (unlikely(opt
->optlen
))
1689 ip_forward_options(skb
);
1691 return dst_output_sk(sk
, skb
);
1695 * Processing handlers for ipmr_forward
1698 static void ipmr_queue_xmit(struct net
*net
, struct mr_table
*mrt
,
1699 struct sk_buff
*skb
, struct mfc_cache
*c
, int vifi
)
1701 const struct iphdr
*iph
= ip_hdr(skb
);
1702 struct vif_device
*vif
= &mrt
->vif_table
[vifi
];
1703 struct net_device
*dev
;
1711 #ifdef CONFIG_IP_PIMSM
1712 if (vif
->flags
& VIFF_REGISTER
) {
1714 vif
->bytes_out
+= skb
->len
;
1715 vif
->dev
->stats
.tx_bytes
+= skb
->len
;
1716 vif
->dev
->stats
.tx_packets
++;
1717 ipmr_cache_report(mrt
, skb
, vifi
, IGMPMSG_WHOLEPKT
);
1722 if (vif
->flags
& VIFF_TUNNEL
) {
1723 rt
= ip_route_output_ports(net
, &fl4
, NULL
,
1724 vif
->remote
, vif
->local
,
1727 RT_TOS(iph
->tos
), vif
->link
);
1730 encap
= sizeof(struct iphdr
);
1732 rt
= ip_route_output_ports(net
, &fl4
, NULL
, iph
->daddr
, 0,
1735 RT_TOS(iph
->tos
), vif
->link
);
1742 if (skb
->len
+encap
> dst_mtu(&rt
->dst
) && (ntohs(iph
->frag_off
) & IP_DF
)) {
1743 /* Do not fragment multicasts. Alas, IPv4 does not
1744 * allow to send ICMP, so that packets will disappear
1748 IP_INC_STATS_BH(dev_net(dev
), IPSTATS_MIB_FRAGFAILS
);
1753 encap
+= LL_RESERVED_SPACE(dev
) + rt
->dst
.header_len
;
1755 if (skb_cow(skb
, encap
)) {
1761 vif
->bytes_out
+= skb
->len
;
1764 skb_dst_set(skb
, &rt
->dst
);
1765 ip_decrease_ttl(ip_hdr(skb
));
1767 /* FIXME: forward and output firewalls used to be called here.
1768 * What do we do with netfilter? -- RR
1770 if (vif
->flags
& VIFF_TUNNEL
) {
1771 ip_encap(net
, skb
, vif
->local
, vif
->remote
);
1772 /* FIXME: extra output firewall step used to be here. --RR */
1773 vif
->dev
->stats
.tx_packets
++;
1774 vif
->dev
->stats
.tx_bytes
+= skb
->len
;
1777 IPCB(skb
)->flags
|= IPSKB_FORWARDED
;
1780 * RFC1584 teaches, that DVMRP/PIM router must deliver packets locally
1781 * not only before forwarding, but after forwarding on all output
1782 * interfaces. It is clear, if mrouter runs a multicasting
1783 * program, it should receive packets not depending to what interface
1784 * program is joined.
1785 * If we will not make it, the program will have to join on all
1786 * interfaces. On the other hand, multihoming host (or router, but
1787 * not mrouter) cannot join to more than one interface - it will
1788 * result in receiving multiple packets.
1790 NF_HOOK(NFPROTO_IPV4
, NF_INET_FORWARD
, NULL
, skb
,
1792 ipmr_forward_finish
);
1799 static int ipmr_find_vif(struct mr_table
*mrt
, struct net_device
*dev
)
1803 for (ct
= mrt
->maxvif
-1; ct
>= 0; ct
--) {
1804 if (mrt
->vif_table
[ct
].dev
== dev
)
1810 /* "local" means that we should preserve one skb (for local delivery) */
1812 static void ip_mr_forward(struct net
*net
, struct mr_table
*mrt
,
1813 struct sk_buff
*skb
, struct mfc_cache
*cache
,
1818 int true_vifi
= ipmr_find_vif(mrt
, skb
->dev
);
1820 vif
= cache
->mfc_parent
;
1821 cache
->mfc_un
.res
.pkt
++;
1822 cache
->mfc_un
.res
.bytes
+= skb
->len
;
1824 if (cache
->mfc_origin
== htonl(INADDR_ANY
) && true_vifi
>= 0) {
1825 struct mfc_cache
*cache_proxy
;
1827 /* For an (*,G) entry, we only check that the incomming
1828 * interface is part of the static tree.
1830 cache_proxy
= ipmr_cache_find_any_parent(mrt
, vif
);
1832 cache_proxy
->mfc_un
.res
.ttls
[true_vifi
] < 255)
1837 * Wrong interface: drop packet and (maybe) send PIM assert.
1839 if (mrt
->vif_table
[vif
].dev
!= skb
->dev
) {
1840 if (rt_is_output_route(skb_rtable(skb
))) {
1841 /* It is our own packet, looped back.
1842 * Very complicated situation...
1844 * The best workaround until routing daemons will be
1845 * fixed is not to redistribute packet, if it was
1846 * send through wrong interface. It means, that
1847 * multicast applications WILL NOT work for
1848 * (S,G), which have default multicast route pointing
1849 * to wrong oif. In any case, it is not a good
1850 * idea to use multicasting applications on router.
1855 cache
->mfc_un
.res
.wrong_if
++;
1857 if (true_vifi
>= 0 && mrt
->mroute_do_assert
&&
1858 /* pimsm uses asserts, when switching from RPT to SPT,
1859 * so that we cannot check that packet arrived on an oif.
1860 * It is bad, but otherwise we would need to move pretty
1861 * large chunk of pimd to kernel. Ough... --ANK
1863 (mrt
->mroute_do_pim
||
1864 cache
->mfc_un
.res
.ttls
[true_vifi
] < 255) &&
1866 cache
->mfc_un
.res
.last_assert
+ MFC_ASSERT_THRESH
)) {
1867 cache
->mfc_un
.res
.last_assert
= jiffies
;
1868 ipmr_cache_report(mrt
, skb
, true_vifi
, IGMPMSG_WRONGVIF
);
1874 mrt
->vif_table
[vif
].pkt_in
++;
1875 mrt
->vif_table
[vif
].bytes_in
+= skb
->len
;
1880 if (cache
->mfc_origin
== htonl(INADDR_ANY
) &&
1881 cache
->mfc_mcastgrp
== htonl(INADDR_ANY
)) {
1882 if (true_vifi
>= 0 &&
1883 true_vifi
!= cache
->mfc_parent
&&
1885 cache
->mfc_un
.res
.ttls
[cache
->mfc_parent
]) {
1886 /* It's an (*,*) entry and the packet is not coming from
1887 * the upstream: forward the packet to the upstream
1890 psend
= cache
->mfc_parent
;
1895 for (ct
= cache
->mfc_un
.res
.maxvif
- 1;
1896 ct
>= cache
->mfc_un
.res
.minvif
; ct
--) {
1897 /* For (*,G) entry, don't forward to the incoming interface */
1898 if ((cache
->mfc_origin
!= htonl(INADDR_ANY
) ||
1900 ip_hdr(skb
)->ttl
> cache
->mfc_un
.res
.ttls
[ct
]) {
1902 struct sk_buff
*skb2
= skb_clone(skb
, GFP_ATOMIC
);
1905 ipmr_queue_xmit(net
, mrt
, skb2
, cache
,
1914 struct sk_buff
*skb2
= skb_clone(skb
, GFP_ATOMIC
);
1917 ipmr_queue_xmit(net
, mrt
, skb2
, cache
, psend
);
1919 ipmr_queue_xmit(net
, mrt
, skb
, cache
, psend
);
1929 static struct mr_table
*ipmr_rt_fib_lookup(struct net
*net
, struct sk_buff
*skb
)
1931 struct rtable
*rt
= skb_rtable(skb
);
1932 struct iphdr
*iph
= ip_hdr(skb
);
1933 struct flowi4 fl4
= {
1934 .daddr
= iph
->daddr
,
1935 .saddr
= iph
->saddr
,
1936 .flowi4_tos
= RT_TOS(iph
->tos
),
1937 .flowi4_oif
= (rt_is_output_route(rt
) ?
1938 skb
->dev
->ifindex
: 0),
1939 .flowi4_iif
= (rt_is_output_route(rt
) ?
1942 .flowi4_mark
= skb
->mark
,
1944 struct mr_table
*mrt
;
1947 err
= ipmr_fib_lookup(net
, &fl4
, &mrt
);
1949 return ERR_PTR(err
);
1954 * Multicast packets for forwarding arrive here
1955 * Called with rcu_read_lock();
1958 int ip_mr_input(struct sk_buff
*skb
)
1960 struct mfc_cache
*cache
;
1961 struct net
*net
= dev_net(skb
->dev
);
1962 int local
= skb_rtable(skb
)->rt_flags
& RTCF_LOCAL
;
1963 struct mr_table
*mrt
;
1965 /* Packet is looped back after forward, it should not be
1966 * forwarded second time, but still can be delivered locally.
1968 if (IPCB(skb
)->flags
& IPSKB_FORWARDED
)
1971 mrt
= ipmr_rt_fib_lookup(net
, skb
);
1974 return PTR_ERR(mrt
);
1977 if (IPCB(skb
)->opt
.router_alert
) {
1978 if (ip_call_ra_chain(skb
))
1980 } else if (ip_hdr(skb
)->protocol
== IPPROTO_IGMP
) {
1981 /* IGMPv1 (and broken IGMPv2 implementations sort of
1982 * Cisco IOS <= 11.2(8)) do not put router alert
1983 * option to IGMP packets destined to routable
1984 * groups. It is very bad, because it means
1985 * that we can forward NO IGMP messages.
1987 struct sock
*mroute_sk
;
1989 mroute_sk
= rcu_dereference(mrt
->mroute_sk
);
1992 raw_rcv(mroute_sk
, skb
);
1998 /* already under rcu_read_lock() */
1999 cache
= ipmr_cache_find(mrt
, ip_hdr(skb
)->saddr
, ip_hdr(skb
)->daddr
);
2001 int vif
= ipmr_find_vif(mrt
, skb
->dev
);
2004 cache
= ipmr_cache_find_any(mrt
, ip_hdr(skb
)->daddr
,
2009 * No usable cache entry
2015 struct sk_buff
*skb2
= skb_clone(skb
, GFP_ATOMIC
);
2016 ip_local_deliver(skb
);
2022 read_lock(&mrt_lock
);
2023 vif
= ipmr_find_vif(mrt
, skb
->dev
);
2025 int err2
= ipmr_cache_unresolved(mrt
, vif
, skb
);
2026 read_unlock(&mrt_lock
);
2030 read_unlock(&mrt_lock
);
2035 read_lock(&mrt_lock
);
2036 ip_mr_forward(net
, mrt
, skb
, cache
, local
);
2037 read_unlock(&mrt_lock
);
2040 return ip_local_deliver(skb
);
2046 return ip_local_deliver(skb
);
2051 #ifdef CONFIG_IP_PIMSM
2052 /* called with rcu_read_lock() */
2053 static int __pim_rcv(struct mr_table
*mrt
, struct sk_buff
*skb
,
2054 unsigned int pimlen
)
2056 struct net_device
*reg_dev
= NULL
;
2057 struct iphdr
*encap
;
2059 encap
= (struct iphdr
*)(skb_transport_header(skb
) + pimlen
);
2062 * a. packet is really sent to a multicast group
2063 * b. packet is not a NULL-REGISTER
2064 * c. packet is not truncated
2066 if (!ipv4_is_multicast(encap
->daddr
) ||
2067 encap
->tot_len
== 0 ||
2068 ntohs(encap
->tot_len
) + pimlen
> skb
->len
)
2071 read_lock(&mrt_lock
);
2072 if (mrt
->mroute_reg_vif_num
>= 0)
2073 reg_dev
= mrt
->vif_table
[mrt
->mroute_reg_vif_num
].dev
;
2074 read_unlock(&mrt_lock
);
2079 skb
->mac_header
= skb
->network_header
;
2080 skb_pull(skb
, (u8
*)encap
- skb
->data
);
2081 skb_reset_network_header(skb
);
2082 skb
->protocol
= htons(ETH_P_IP
);
2083 skb
->ip_summed
= CHECKSUM_NONE
;
2085 skb_tunnel_rx(skb
, reg_dev
, dev_net(reg_dev
));
2089 return NET_RX_SUCCESS
;
2093 #ifdef CONFIG_IP_PIMSM_V1
2095 * Handle IGMP messages of PIMv1
2098 int pim_rcv_v1(struct sk_buff
*skb
)
2100 struct igmphdr
*pim
;
2101 struct net
*net
= dev_net(skb
->dev
);
2102 struct mr_table
*mrt
;
2104 if (!pskb_may_pull(skb
, sizeof(*pim
) + sizeof(struct iphdr
)))
2107 pim
= igmp_hdr(skb
);
2109 mrt
= ipmr_rt_fib_lookup(net
, skb
);
2112 if (!mrt
->mroute_do_pim
||
2113 pim
->group
!= PIM_V1_VERSION
|| pim
->code
!= PIM_V1_REGISTER
)
2116 if (__pim_rcv(mrt
, skb
, sizeof(*pim
))) {
2124 #ifdef CONFIG_IP_PIMSM_V2
2125 static int pim_rcv(struct sk_buff
*skb
)
2127 struct pimreghdr
*pim
;
2128 struct net
*net
= dev_net(skb
->dev
);
2129 struct mr_table
*mrt
;
2131 if (!pskb_may_pull(skb
, sizeof(*pim
) + sizeof(struct iphdr
)))
2134 pim
= (struct pimreghdr
*)skb_transport_header(skb
);
2135 if (pim
->type
!= ((PIM_VERSION
<< 4) | (PIM_REGISTER
)) ||
2136 (pim
->flags
& PIM_NULL_REGISTER
) ||
2137 (ip_compute_csum((void *)pim
, sizeof(*pim
)) != 0 &&
2138 csum_fold(skb_checksum(skb
, 0, skb
->len
, 0))))
2141 mrt
= ipmr_rt_fib_lookup(net
, skb
);
2144 if (__pim_rcv(mrt
, skb
, sizeof(*pim
))) {
2152 static int __ipmr_fill_mroute(struct mr_table
*mrt
, struct sk_buff
*skb
,
2153 struct mfc_cache
*c
, struct rtmsg
*rtm
)
2156 struct rtnexthop
*nhp
;
2157 struct nlattr
*mp_attr
;
2158 struct rta_mfc_stats mfcs
;
2160 /* If cache is unresolved, don't try to parse IIF and OIF */
2161 if (c
->mfc_parent
>= MAXVIFS
)
2164 if (VIF_EXISTS(mrt
, c
->mfc_parent
) &&
2165 nla_put_u32(skb
, RTA_IIF
, mrt
->vif_table
[c
->mfc_parent
].dev
->ifindex
) < 0)
2168 if (!(mp_attr
= nla_nest_start(skb
, RTA_MULTIPATH
)))
2171 for (ct
= c
->mfc_un
.res
.minvif
; ct
< c
->mfc_un
.res
.maxvif
; ct
++) {
2172 if (VIF_EXISTS(mrt
, ct
) && c
->mfc_un
.res
.ttls
[ct
] < 255) {
2173 if (!(nhp
= nla_reserve_nohdr(skb
, sizeof(*nhp
)))) {
2174 nla_nest_cancel(skb
, mp_attr
);
2178 nhp
->rtnh_flags
= 0;
2179 nhp
->rtnh_hops
= c
->mfc_un
.res
.ttls
[ct
];
2180 nhp
->rtnh_ifindex
= mrt
->vif_table
[ct
].dev
->ifindex
;
2181 nhp
->rtnh_len
= sizeof(*nhp
);
2185 nla_nest_end(skb
, mp_attr
);
2187 mfcs
.mfcs_packets
= c
->mfc_un
.res
.pkt
;
2188 mfcs
.mfcs_bytes
= c
->mfc_un
.res
.bytes
;
2189 mfcs
.mfcs_wrong_if
= c
->mfc_un
.res
.wrong_if
;
2190 if (nla_put(skb
, RTA_MFC_STATS
, sizeof(mfcs
), &mfcs
) < 0)
2193 rtm
->rtm_type
= RTN_MULTICAST
;
2197 int ipmr_get_route(struct net
*net
, struct sk_buff
*skb
,
2198 __be32 saddr
, __be32 daddr
,
2199 struct rtmsg
*rtm
, int nowait
)
2201 struct mfc_cache
*cache
;
2202 struct mr_table
*mrt
;
2205 mrt
= ipmr_get_table(net
, RT_TABLE_DEFAULT
);
2210 cache
= ipmr_cache_find(mrt
, saddr
, daddr
);
2211 if (!cache
&& skb
->dev
) {
2212 int vif
= ipmr_find_vif(mrt
, skb
->dev
);
2215 cache
= ipmr_cache_find_any(mrt
, daddr
, vif
);
2218 struct sk_buff
*skb2
;
2220 struct net_device
*dev
;
2229 read_lock(&mrt_lock
);
2231 vif
= ipmr_find_vif(mrt
, dev
);
2233 read_unlock(&mrt_lock
);
2237 skb2
= skb_clone(skb
, GFP_ATOMIC
);
2239 read_unlock(&mrt_lock
);
2244 skb_push(skb2
, sizeof(struct iphdr
));
2245 skb_reset_network_header(skb2
);
2247 iph
->ihl
= sizeof(struct iphdr
) >> 2;
2251 err
= ipmr_cache_unresolved(mrt
, vif
, skb2
);
2252 read_unlock(&mrt_lock
);
2257 read_lock(&mrt_lock
);
2258 if (!nowait
&& (rtm
->rtm_flags
& RTM_F_NOTIFY
))
2259 cache
->mfc_flags
|= MFC_NOTIFY
;
2260 err
= __ipmr_fill_mroute(mrt
, skb
, cache
, rtm
);
2261 read_unlock(&mrt_lock
);
2266 static int ipmr_fill_mroute(struct mr_table
*mrt
, struct sk_buff
*skb
,
2267 u32 portid
, u32 seq
, struct mfc_cache
*c
, int cmd
,
2270 struct nlmsghdr
*nlh
;
2274 nlh
= nlmsg_put(skb
, portid
, seq
, cmd
, sizeof(*rtm
), flags
);
2278 rtm
= nlmsg_data(nlh
);
2279 rtm
->rtm_family
= RTNL_FAMILY_IPMR
;
2280 rtm
->rtm_dst_len
= 32;
2281 rtm
->rtm_src_len
= 32;
2283 rtm
->rtm_table
= mrt
->id
;
2284 if (nla_put_u32(skb
, RTA_TABLE
, mrt
->id
))
2285 goto nla_put_failure
;
2286 rtm
->rtm_type
= RTN_MULTICAST
;
2287 rtm
->rtm_scope
= RT_SCOPE_UNIVERSE
;
2288 if (c
->mfc_flags
& MFC_STATIC
)
2289 rtm
->rtm_protocol
= RTPROT_STATIC
;
2291 rtm
->rtm_protocol
= RTPROT_MROUTED
;
2294 if (nla_put_in_addr(skb
, RTA_SRC
, c
->mfc_origin
) ||
2295 nla_put_in_addr(skb
, RTA_DST
, c
->mfc_mcastgrp
))
2296 goto nla_put_failure
;
2297 err
= __ipmr_fill_mroute(mrt
, skb
, c
, rtm
);
2298 /* do not break the dump if cache is unresolved */
2299 if (err
< 0 && err
!= -ENOENT
)
2300 goto nla_put_failure
;
2302 nlmsg_end(skb
, nlh
);
2306 nlmsg_cancel(skb
, nlh
);
2310 static size_t mroute_msgsize(bool unresolved
, int maxvif
)
2313 NLMSG_ALIGN(sizeof(struct rtmsg
))
2314 + nla_total_size(4) /* RTA_TABLE */
2315 + nla_total_size(4) /* RTA_SRC */
2316 + nla_total_size(4) /* RTA_DST */
2321 + nla_total_size(4) /* RTA_IIF */
2322 + nla_total_size(0) /* RTA_MULTIPATH */
2323 + maxvif
* NLA_ALIGN(sizeof(struct rtnexthop
))
2325 + nla_total_size(sizeof(struct rta_mfc_stats
))
2331 static void mroute_netlink_event(struct mr_table
*mrt
, struct mfc_cache
*mfc
,
2334 struct net
*net
= read_pnet(&mrt
->net
);
2335 struct sk_buff
*skb
;
2338 skb
= nlmsg_new(mroute_msgsize(mfc
->mfc_parent
>= MAXVIFS
, mrt
->maxvif
),
2343 err
= ipmr_fill_mroute(mrt
, skb
, 0, 0, mfc
, cmd
, 0);
2347 rtnl_notify(skb
, net
, 0, RTNLGRP_IPV4_MROUTE
, NULL
, GFP_ATOMIC
);
2353 rtnl_set_sk_err(net
, RTNLGRP_IPV4_MROUTE
, err
);
2356 static int ipmr_rtm_dumproute(struct sk_buff
*skb
, struct netlink_callback
*cb
)
2358 struct net
*net
= sock_net(skb
->sk
);
2359 struct mr_table
*mrt
;
2360 struct mfc_cache
*mfc
;
2361 unsigned int t
= 0, s_t
;
2362 unsigned int h
= 0, s_h
;
2363 unsigned int e
= 0, s_e
;
2370 ipmr_for_each_table(mrt
, net
) {
2375 for (h
= s_h
; h
< MFC_LINES
; h
++) {
2376 list_for_each_entry_rcu(mfc
, &mrt
->mfc_cache_array
[h
], list
) {
2379 if (ipmr_fill_mroute(mrt
, skb
,
2380 NETLINK_CB(cb
->skb
).portid
,
2390 spin_lock_bh(&mfc_unres_lock
);
2391 list_for_each_entry(mfc
, &mrt
->mfc_unres_queue
, list
) {
2394 if (ipmr_fill_mroute(mrt
, skb
,
2395 NETLINK_CB(cb
->skb
).portid
,
2399 spin_unlock_bh(&mfc_unres_lock
);
2405 spin_unlock_bh(&mfc_unres_lock
);
2421 #ifdef CONFIG_PROC_FS
2423 * The /proc interfaces to multicast routing :
2424 * /proc/net/ip_mr_cache & /proc/net/ip_mr_vif
2426 struct ipmr_vif_iter
{
2427 struct seq_net_private p
;
2428 struct mr_table
*mrt
;
2432 static struct vif_device
*ipmr_vif_seq_idx(struct net
*net
,
2433 struct ipmr_vif_iter
*iter
,
2436 struct mr_table
*mrt
= iter
->mrt
;
2438 for (iter
->ct
= 0; iter
->ct
< mrt
->maxvif
; ++iter
->ct
) {
2439 if (!VIF_EXISTS(mrt
, iter
->ct
))
2442 return &mrt
->vif_table
[iter
->ct
];
2447 static void *ipmr_vif_seq_start(struct seq_file
*seq
, loff_t
*pos
)
2448 __acquires(mrt_lock
)
2450 struct ipmr_vif_iter
*iter
= seq
->private;
2451 struct net
*net
= seq_file_net(seq
);
2452 struct mr_table
*mrt
;
2454 mrt
= ipmr_get_table(net
, RT_TABLE_DEFAULT
);
2456 return ERR_PTR(-ENOENT
);
2460 read_lock(&mrt_lock
);
2461 return *pos
? ipmr_vif_seq_idx(net
, seq
->private, *pos
- 1)
2465 static void *ipmr_vif_seq_next(struct seq_file
*seq
, void *v
, loff_t
*pos
)
2467 struct ipmr_vif_iter
*iter
= seq
->private;
2468 struct net
*net
= seq_file_net(seq
);
2469 struct mr_table
*mrt
= iter
->mrt
;
2472 if (v
== SEQ_START_TOKEN
)
2473 return ipmr_vif_seq_idx(net
, iter
, 0);
2475 while (++iter
->ct
< mrt
->maxvif
) {
2476 if (!VIF_EXISTS(mrt
, iter
->ct
))
2478 return &mrt
->vif_table
[iter
->ct
];
2483 static void ipmr_vif_seq_stop(struct seq_file
*seq
, void *v
)
2484 __releases(mrt_lock
)
2486 read_unlock(&mrt_lock
);
2489 static int ipmr_vif_seq_show(struct seq_file
*seq
, void *v
)
2491 struct ipmr_vif_iter
*iter
= seq
->private;
2492 struct mr_table
*mrt
= iter
->mrt
;
2494 if (v
== SEQ_START_TOKEN
) {
2496 "Interface BytesIn PktsIn BytesOut PktsOut Flags Local Remote\n");
2498 const struct vif_device
*vif
= v
;
2499 const char *name
= vif
->dev
? vif
->dev
->name
: "none";
2502 "%2Zd %-10s %8ld %7ld %8ld %7ld %05X %08X %08X\n",
2503 vif
- mrt
->vif_table
,
2504 name
, vif
->bytes_in
, vif
->pkt_in
,
2505 vif
->bytes_out
, vif
->pkt_out
,
2506 vif
->flags
, vif
->local
, vif
->remote
);
2511 static const struct seq_operations ipmr_vif_seq_ops
= {
2512 .start
= ipmr_vif_seq_start
,
2513 .next
= ipmr_vif_seq_next
,
2514 .stop
= ipmr_vif_seq_stop
,
2515 .show
= ipmr_vif_seq_show
,
2518 static int ipmr_vif_open(struct inode
*inode
, struct file
*file
)
2520 return seq_open_net(inode
, file
, &ipmr_vif_seq_ops
,
2521 sizeof(struct ipmr_vif_iter
));
2524 static const struct file_operations ipmr_vif_fops
= {
2525 .owner
= THIS_MODULE
,
2526 .open
= ipmr_vif_open
,
2528 .llseek
= seq_lseek
,
2529 .release
= seq_release_net
,
2532 struct ipmr_mfc_iter
{
2533 struct seq_net_private p
;
2534 struct mr_table
*mrt
;
2535 struct list_head
*cache
;
2540 static struct mfc_cache
*ipmr_mfc_seq_idx(struct net
*net
,
2541 struct ipmr_mfc_iter
*it
, loff_t pos
)
2543 struct mr_table
*mrt
= it
->mrt
;
2544 struct mfc_cache
*mfc
;
2547 for (it
->ct
= 0; it
->ct
< MFC_LINES
; it
->ct
++) {
2548 it
->cache
= &mrt
->mfc_cache_array
[it
->ct
];
2549 list_for_each_entry_rcu(mfc
, it
->cache
, list
)
2555 spin_lock_bh(&mfc_unres_lock
);
2556 it
->cache
= &mrt
->mfc_unres_queue
;
2557 list_for_each_entry(mfc
, it
->cache
, list
)
2560 spin_unlock_bh(&mfc_unres_lock
);
2567 static void *ipmr_mfc_seq_start(struct seq_file
*seq
, loff_t
*pos
)
2569 struct ipmr_mfc_iter
*it
= seq
->private;
2570 struct net
*net
= seq_file_net(seq
);
2571 struct mr_table
*mrt
;
2573 mrt
= ipmr_get_table(net
, RT_TABLE_DEFAULT
);
2575 return ERR_PTR(-ENOENT
);
2580 return *pos
? ipmr_mfc_seq_idx(net
, seq
->private, *pos
- 1)
2584 static void *ipmr_mfc_seq_next(struct seq_file
*seq
, void *v
, loff_t
*pos
)
2586 struct mfc_cache
*mfc
= v
;
2587 struct ipmr_mfc_iter
*it
= seq
->private;
2588 struct net
*net
= seq_file_net(seq
);
2589 struct mr_table
*mrt
= it
->mrt
;
2593 if (v
== SEQ_START_TOKEN
)
2594 return ipmr_mfc_seq_idx(net
, seq
->private, 0);
2596 if (mfc
->list
.next
!= it
->cache
)
2597 return list_entry(mfc
->list
.next
, struct mfc_cache
, list
);
2599 if (it
->cache
== &mrt
->mfc_unres_queue
)
2602 BUG_ON(it
->cache
!= &mrt
->mfc_cache_array
[it
->ct
]);
2604 while (++it
->ct
< MFC_LINES
) {
2605 it
->cache
= &mrt
->mfc_cache_array
[it
->ct
];
2606 if (list_empty(it
->cache
))
2608 return list_first_entry(it
->cache
, struct mfc_cache
, list
);
2611 /* exhausted cache_array, show unresolved */
2613 it
->cache
= &mrt
->mfc_unres_queue
;
2616 spin_lock_bh(&mfc_unres_lock
);
2617 if (!list_empty(it
->cache
))
2618 return list_first_entry(it
->cache
, struct mfc_cache
, list
);
2621 spin_unlock_bh(&mfc_unres_lock
);
2627 static void ipmr_mfc_seq_stop(struct seq_file
*seq
, void *v
)
2629 struct ipmr_mfc_iter
*it
= seq
->private;
2630 struct mr_table
*mrt
= it
->mrt
;
2632 if (it
->cache
== &mrt
->mfc_unres_queue
)
2633 spin_unlock_bh(&mfc_unres_lock
);
2634 else if (it
->cache
== &mrt
->mfc_cache_array
[it
->ct
])
2638 static int ipmr_mfc_seq_show(struct seq_file
*seq
, void *v
)
2642 if (v
== SEQ_START_TOKEN
) {
2644 "Group Origin Iif Pkts Bytes Wrong Oifs\n");
2646 const struct mfc_cache
*mfc
= v
;
2647 const struct ipmr_mfc_iter
*it
= seq
->private;
2648 const struct mr_table
*mrt
= it
->mrt
;
2650 seq_printf(seq
, "%08X %08X %-3hd",
2651 (__force u32
) mfc
->mfc_mcastgrp
,
2652 (__force u32
) mfc
->mfc_origin
,
2655 if (it
->cache
!= &mrt
->mfc_unres_queue
) {
2656 seq_printf(seq
, " %8lu %8lu %8lu",
2657 mfc
->mfc_un
.res
.pkt
,
2658 mfc
->mfc_un
.res
.bytes
,
2659 mfc
->mfc_un
.res
.wrong_if
);
2660 for (n
= mfc
->mfc_un
.res
.minvif
;
2661 n
< mfc
->mfc_un
.res
.maxvif
; n
++) {
2662 if (VIF_EXISTS(mrt
, n
) &&
2663 mfc
->mfc_un
.res
.ttls
[n
] < 255)
2666 n
, mfc
->mfc_un
.res
.ttls
[n
]);
2669 /* unresolved mfc_caches don't contain
2670 * pkt, bytes and wrong_if values
2672 seq_printf(seq
, " %8lu %8lu %8lu", 0ul, 0ul, 0ul);
2674 seq_putc(seq
, '\n');
2679 static const struct seq_operations ipmr_mfc_seq_ops
= {
2680 .start
= ipmr_mfc_seq_start
,
2681 .next
= ipmr_mfc_seq_next
,
2682 .stop
= ipmr_mfc_seq_stop
,
2683 .show
= ipmr_mfc_seq_show
,
2686 static int ipmr_mfc_open(struct inode
*inode
, struct file
*file
)
2688 return seq_open_net(inode
, file
, &ipmr_mfc_seq_ops
,
2689 sizeof(struct ipmr_mfc_iter
));
2692 static const struct file_operations ipmr_mfc_fops
= {
2693 .owner
= THIS_MODULE
,
2694 .open
= ipmr_mfc_open
,
2696 .llseek
= seq_lseek
,
2697 .release
= seq_release_net
,
2701 #ifdef CONFIG_IP_PIMSM_V2
2702 static const struct net_protocol pim_protocol
= {
2710 * Setup for IP multicast routing
2712 static int __net_init
ipmr_net_init(struct net
*net
)
2716 err
= ipmr_rules_init(net
);
2720 #ifdef CONFIG_PROC_FS
2722 if (!proc_create("ip_mr_vif", 0, net
->proc_net
, &ipmr_vif_fops
))
2724 if (!proc_create("ip_mr_cache", 0, net
->proc_net
, &ipmr_mfc_fops
))
2725 goto proc_cache_fail
;
2729 #ifdef CONFIG_PROC_FS
2731 remove_proc_entry("ip_mr_vif", net
->proc_net
);
2733 ipmr_rules_exit(net
);
2739 static void __net_exit
ipmr_net_exit(struct net
*net
)
2741 #ifdef CONFIG_PROC_FS
2742 remove_proc_entry("ip_mr_cache", net
->proc_net
);
2743 remove_proc_entry("ip_mr_vif", net
->proc_net
);
2745 ipmr_rules_exit(net
);
2748 static struct pernet_operations ipmr_net_ops
= {
2749 .init
= ipmr_net_init
,
2750 .exit
= ipmr_net_exit
,
2753 int __init
ip_mr_init(void)
2757 mrt_cachep
= kmem_cache_create("ip_mrt_cache",
2758 sizeof(struct mfc_cache
),
2759 0, SLAB_HWCACHE_ALIGN
| SLAB_PANIC
,
2764 err
= register_pernet_subsys(&ipmr_net_ops
);
2766 goto reg_pernet_fail
;
2768 err
= register_netdevice_notifier(&ip_mr_notifier
);
2770 goto reg_notif_fail
;
2771 #ifdef CONFIG_IP_PIMSM_V2
2772 if (inet_add_protocol(&pim_protocol
, IPPROTO_PIM
) < 0) {
2773 pr_err("%s: can't add PIM protocol\n", __func__
);
2775 goto add_proto_fail
;
2778 rtnl_register(RTNL_FAMILY_IPMR
, RTM_GETROUTE
,
2779 NULL
, ipmr_rtm_dumproute
, NULL
);
2782 #ifdef CONFIG_IP_PIMSM_V2
2784 unregister_netdevice_notifier(&ip_mr_notifier
);
2787 unregister_pernet_subsys(&ipmr_net_ops
);
2789 kmem_cache_destroy(mrt_cachep
);