1 // SPDX-License-Identifier: GPL-2.0-or-later
3 * INET An implementation of the TCP/IP protocol suite for the LINUX
4 * operating system. INET is implemented using the BSD Socket
5 * interface as the means of communication with the user level.
7 * Support for INET connection oriented protocols.
9 * Authors: See the TCP sources
12 #include <linux/module.h>
13 #include <linux/jhash.h>
15 #include <net/inet_connection_sock.h>
16 #include <net/inet_hashtables.h>
17 #include <net/inet_timewait_sock.h>
19 #include <net/route.h>
20 #include <net/tcp_states.h>
23 #include <net/sock_reuseport.h>
24 #include <net/addrconf.h>
26 #if IS_ENABLED(CONFIG_IPV6)
27 /* match_wildcard == true: IPV6_ADDR_ANY equals to any IPv6 addresses if IPv6
28 * only, and any IPv4 addresses if not IPv6 only
29 * match_wildcard == false: addresses must be exactly the same, i.e.
30 * IPV6_ADDR_ANY only equals to IPV6_ADDR_ANY,
31 * and 0.0.0.0 equals to 0.0.0.0 only
33 static bool ipv6_rcv_saddr_equal(const struct in6_addr
*sk1_rcv_saddr6
,
34 const struct in6_addr
*sk2_rcv_saddr6
,
35 __be32 sk1_rcv_saddr
, __be32 sk2_rcv_saddr
,
36 bool sk1_ipv6only
, bool sk2_ipv6only
,
39 int addr_type
= ipv6_addr_type(sk1_rcv_saddr6
);
40 int addr_type2
= sk2_rcv_saddr6
? ipv6_addr_type(sk2_rcv_saddr6
) : IPV6_ADDR_MAPPED
;
42 /* if both are mapped, treat as IPv4 */
43 if (addr_type
== IPV6_ADDR_MAPPED
&& addr_type2
== IPV6_ADDR_MAPPED
) {
45 if (sk1_rcv_saddr
== sk2_rcv_saddr
)
47 if (!sk1_rcv_saddr
|| !sk2_rcv_saddr
)
48 return match_wildcard
;
53 if (addr_type
== IPV6_ADDR_ANY
&& addr_type2
== IPV6_ADDR_ANY
)
56 if (addr_type2
== IPV6_ADDR_ANY
&& match_wildcard
&&
57 !(sk2_ipv6only
&& addr_type
== IPV6_ADDR_MAPPED
))
60 if (addr_type
== IPV6_ADDR_ANY
&& match_wildcard
&&
61 !(sk1_ipv6only
&& addr_type2
== IPV6_ADDR_MAPPED
))
65 ipv6_addr_equal(sk1_rcv_saddr6
, sk2_rcv_saddr6
))
72 /* match_wildcard == true: 0.0.0.0 equals to any IPv4 addresses
73 * match_wildcard == false: addresses must be exactly the same, i.e.
74 * 0.0.0.0 only equals to 0.0.0.0
76 static bool ipv4_rcv_saddr_equal(__be32 sk1_rcv_saddr
, __be32 sk2_rcv_saddr
,
77 bool sk2_ipv6only
, bool match_wildcard
)
80 if (sk1_rcv_saddr
== sk2_rcv_saddr
)
82 if (!sk1_rcv_saddr
|| !sk2_rcv_saddr
)
83 return match_wildcard
;
88 bool inet_rcv_saddr_equal(const struct sock
*sk
, const struct sock
*sk2
,
91 #if IS_ENABLED(CONFIG_IPV6)
92 if (sk
->sk_family
== AF_INET6
)
93 return ipv6_rcv_saddr_equal(&sk
->sk_v6_rcv_saddr
,
101 return ipv4_rcv_saddr_equal(sk
->sk_rcv_saddr
, sk2
->sk_rcv_saddr
,
102 ipv6_only_sock(sk2
), match_wildcard
);
104 EXPORT_SYMBOL(inet_rcv_saddr_equal
);
106 bool inet_rcv_saddr_any(const struct sock
*sk
)
108 #if IS_ENABLED(CONFIG_IPV6)
109 if (sk
->sk_family
== AF_INET6
)
110 return ipv6_addr_any(&sk
->sk_v6_rcv_saddr
);
112 return !sk
->sk_rcv_saddr
;
115 void inet_get_local_port_range(struct net
*net
, int *low
, int *high
)
120 seq
= read_seqbegin(&net
->ipv4
.ip_local_ports
.lock
);
122 *low
= net
->ipv4
.ip_local_ports
.range
[0];
123 *high
= net
->ipv4
.ip_local_ports
.range
[1];
124 } while (read_seqretry(&net
->ipv4
.ip_local_ports
.lock
, seq
));
126 EXPORT_SYMBOL(inet_get_local_port_range
);
128 static int inet_csk_bind_conflict(const struct sock
*sk
,
129 const struct inet_bind_bucket
*tb
,
130 bool relax
, bool reuseport_ok
)
133 bool reuse
= sk
->sk_reuse
;
134 bool reuseport
= !!sk
->sk_reuseport
;
135 kuid_t uid
= sock_i_uid((struct sock
*)sk
);
138 * Unlike other sk lookup places we do not check
139 * for sk_net here, since _all_ the socks listed
140 * in tb->owners list belong to the same net - the
141 * one this bucket belongs to.
144 sk_for_each_bound(sk2
, &tb
->owners
) {
146 (!sk
->sk_bound_dev_if
||
147 !sk2
->sk_bound_dev_if
||
148 sk
->sk_bound_dev_if
== sk2
->sk_bound_dev_if
)) {
149 if (reuse
&& sk2
->sk_reuse
&&
150 sk2
->sk_state
!= TCP_LISTEN
) {
153 reuseport
&& sk2
->sk_reuseport
&&
154 !rcu_access_pointer(sk
->sk_reuseport_cb
) &&
155 (sk2
->sk_state
== TCP_TIME_WAIT
||
156 uid_eq(uid
, sock_i_uid(sk2
))))) &&
157 inet_rcv_saddr_equal(sk
, sk2
, true))
159 } else if (!reuseport_ok
||
160 !reuseport
|| !sk2
->sk_reuseport
||
161 rcu_access_pointer(sk
->sk_reuseport_cb
) ||
162 (sk2
->sk_state
!= TCP_TIME_WAIT
&&
163 !uid_eq(uid
, sock_i_uid(sk2
)))) {
164 if (inet_rcv_saddr_equal(sk
, sk2
, true))
173 * Find an open port number for the socket. Returns with the
174 * inet_bind_hashbucket lock held.
176 static struct inet_bind_hashbucket
*
177 inet_csk_find_open_port(struct sock
*sk
, struct inet_bind_bucket
**tb_ret
, int *port_ret
)
179 struct inet_hashinfo
*hinfo
= sk
->sk_prot
->h
.hashinfo
;
181 struct inet_bind_hashbucket
*head
;
182 struct net
*net
= sock_net(sk
);
184 int i
, low
, high
, attempt_half
;
185 struct inet_bind_bucket
*tb
;
186 u32 remaining
, offset
;
189 l3mdev
= inet_sk_bound_l3mdev(sk
);
191 attempt_half
= (sk
->sk_reuse
== SK_CAN_REUSE
) ? 1 : 0;
193 inet_get_local_port_range(net
, &low
, &high
);
194 high
++; /* [32768, 60999] -> [32768, 61000[ */
198 int half
= low
+ (((high
- low
) >> 2) << 1);
200 if (attempt_half
== 1)
205 remaining
= high
- low
;
206 if (likely(remaining
> 1))
209 offset
= prandom_u32() % remaining
;
210 /* __inet_hash_connect() favors ports having @low parity
211 * We do the opposite to not pollute connect() users.
217 for (i
= 0; i
< remaining
; i
+= 2, port
+= 2) {
218 if (unlikely(port
>= high
))
220 if (inet_is_local_reserved_port(net
, port
))
222 head
= &hinfo
->bhash
[inet_bhashfn(net
, port
,
224 spin_lock_bh(&head
->lock
);
225 inet_bind_bucket_for_each(tb
, &head
->chain
)
226 if (net_eq(ib_net(tb
), net
) && tb
->l3mdev
== l3mdev
&&
228 if (!inet_csk_bind_conflict(sk
, tb
, relax
, false))
235 spin_unlock_bh(&head
->lock
);
241 goto other_parity_scan
;
243 if (attempt_half
== 1) {
244 /* OK we now try the upper half of the range */
246 goto other_half_scan
;
249 if (net
->ipv4
.sysctl_ip_autobind_reuse
&& !relax
) {
250 /* We still have a chance to connect to different destinations */
252 goto ports_exhausted
;
261 static inline int sk_reuseport_match(struct inet_bind_bucket
*tb
,
264 kuid_t uid
= sock_i_uid(sk
);
266 if (tb
->fastreuseport
<= 0)
268 if (!sk
->sk_reuseport
)
270 if (rcu_access_pointer(sk
->sk_reuseport_cb
))
272 if (!uid_eq(tb
->fastuid
, uid
))
274 /* We only need to check the rcv_saddr if this tb was once marked
275 * without fastreuseport and then was reset, as we can only know that
276 * the fast_*rcv_saddr doesn't have any conflicts with the socks on the
279 if (tb
->fastreuseport
== FASTREUSEPORT_ANY
)
281 #if IS_ENABLED(CONFIG_IPV6)
282 if (tb
->fast_sk_family
== AF_INET6
)
283 return ipv6_rcv_saddr_equal(&tb
->fast_v6_rcv_saddr
,
288 ipv6_only_sock(sk
), true);
290 return ipv4_rcv_saddr_equal(tb
->fast_rcv_saddr
, sk
->sk_rcv_saddr
,
291 ipv6_only_sock(sk
), true);
294 /* Obtain a reference to a local port for the given sock,
295 * if snum is zero it means select any available local port.
296 * We try to allocate an odd port (and leave even ports for connect())
298 int inet_csk_get_port(struct sock
*sk
, unsigned short snum
)
300 bool reuse
= sk
->sk_reuse
&& sk
->sk_state
!= TCP_LISTEN
;
301 struct inet_hashinfo
*hinfo
= sk
->sk_prot
->h
.hashinfo
;
302 int ret
= 1, port
= snum
;
303 struct inet_bind_hashbucket
*head
;
304 struct net
*net
= sock_net(sk
);
305 struct inet_bind_bucket
*tb
= NULL
;
306 kuid_t uid
= sock_i_uid(sk
);
309 l3mdev
= inet_sk_bound_l3mdev(sk
);
312 head
= inet_csk_find_open_port(sk
, &tb
, &port
);
319 head
= &hinfo
->bhash
[inet_bhashfn(net
, port
,
321 spin_lock_bh(&head
->lock
);
322 inet_bind_bucket_for_each(tb
, &head
->chain
)
323 if (net_eq(ib_net(tb
), net
) && tb
->l3mdev
== l3mdev
&&
327 tb
= inet_bind_bucket_create(hinfo
->bind_bucket_cachep
,
328 net
, head
, port
, l3mdev
);
332 if (!hlist_empty(&tb
->owners
)) {
333 if (sk
->sk_reuse
== SK_FORCE_REUSE
)
336 if ((tb
->fastreuse
> 0 && reuse
) ||
337 sk_reuseport_match(tb
, sk
))
339 if (inet_csk_bind_conflict(sk
, tb
, true, true))
343 if (hlist_empty(&tb
->owners
)) {
344 tb
->fastreuse
= reuse
;
345 if (sk
->sk_reuseport
) {
346 tb
->fastreuseport
= FASTREUSEPORT_ANY
;
348 tb
->fast_rcv_saddr
= sk
->sk_rcv_saddr
;
349 tb
->fast_ipv6_only
= ipv6_only_sock(sk
);
350 tb
->fast_sk_family
= sk
->sk_family
;
351 #if IS_ENABLED(CONFIG_IPV6)
352 tb
->fast_v6_rcv_saddr
= sk
->sk_v6_rcv_saddr
;
355 tb
->fastreuseport
= 0;
360 if (sk
->sk_reuseport
) {
361 /* We didn't match or we don't have fastreuseport set on
362 * the tb, but we have sk_reuseport set on this socket
363 * and we know that there are no bind conflicts with
364 * this socket in this tb, so reset our tb's reuseport
365 * settings so that any subsequent sockets that match
366 * our current socket will be put on the fast path.
368 * If we reset we need to set FASTREUSEPORT_STRICT so we
369 * do extra checking for all subsequent sk_reuseport
372 if (!sk_reuseport_match(tb
, sk
)) {
373 tb
->fastreuseport
= FASTREUSEPORT_STRICT
;
375 tb
->fast_rcv_saddr
= sk
->sk_rcv_saddr
;
376 tb
->fast_ipv6_only
= ipv6_only_sock(sk
);
377 tb
->fast_sk_family
= sk
->sk_family
;
378 #if IS_ENABLED(CONFIG_IPV6)
379 tb
->fast_v6_rcv_saddr
= sk
->sk_v6_rcv_saddr
;
383 tb
->fastreuseport
= 0;
386 if (!inet_csk(sk
)->icsk_bind_hash
)
387 inet_bind_hash(sk
, tb
, port
);
388 WARN_ON(inet_csk(sk
)->icsk_bind_hash
!= tb
);
392 spin_unlock_bh(&head
->lock
);
395 EXPORT_SYMBOL_GPL(inet_csk_get_port
);
398 * Wait for an incoming connection, avoid race conditions. This must be called
399 * with the socket locked.
401 static int inet_csk_wait_for_connect(struct sock
*sk
, long timeo
)
403 struct inet_connection_sock
*icsk
= inet_csk(sk
);
408 * True wake-one mechanism for incoming connections: only
409 * one process gets woken up, not the 'whole herd'.
410 * Since we do not 'race & poll' for established sockets
411 * anymore, the common case will execute the loop only once.
413 * Subtle issue: "add_wait_queue_exclusive()" will be added
414 * after any current non-exclusive waiters, and we know that
415 * it will always _stay_ after any new non-exclusive waiters
416 * because all non-exclusive waiters are added at the
417 * beginning of the wait-queue. As such, it's ok to "drop"
418 * our exclusiveness temporarily when we get woken up without
419 * having to remove and re-insert us on the wait queue.
422 prepare_to_wait_exclusive(sk_sleep(sk
), &wait
,
425 if (reqsk_queue_empty(&icsk
->icsk_accept_queue
))
426 timeo
= schedule_timeout(timeo
);
427 sched_annotate_sleep();
430 if (!reqsk_queue_empty(&icsk
->icsk_accept_queue
))
433 if (sk
->sk_state
!= TCP_LISTEN
)
435 err
= sock_intr_errno(timeo
);
436 if (signal_pending(current
))
442 finish_wait(sk_sleep(sk
), &wait
);
447 * This will accept the next outstanding connection.
449 struct sock
*inet_csk_accept(struct sock
*sk
, int flags
, int *err
, bool kern
)
451 struct inet_connection_sock
*icsk
= inet_csk(sk
);
452 struct request_sock_queue
*queue
= &icsk
->icsk_accept_queue
;
453 struct request_sock
*req
;
459 /* We need to make sure that this socket is listening,
460 * and that it has something pending.
463 if (sk
->sk_state
!= TCP_LISTEN
)
466 /* Find already established connection */
467 if (reqsk_queue_empty(queue
)) {
468 long timeo
= sock_rcvtimeo(sk
, flags
& O_NONBLOCK
);
470 /* If this is a non blocking socket don't sleep */
475 error
= inet_csk_wait_for_connect(sk
, timeo
);
479 req
= reqsk_queue_remove(queue
, sk
);
482 if (sk
->sk_protocol
== IPPROTO_TCP
&&
483 tcp_rsk(req
)->tfo_listener
) {
484 spin_lock_bh(&queue
->fastopenq
.lock
);
485 if (tcp_rsk(req
)->tfo_listener
) {
486 /* We are still waiting for the final ACK from 3WHS
487 * so can't free req now. Instead, we set req->sk to
488 * NULL to signify that the child socket is taken
489 * so reqsk_fastopen_remove() will free the req
490 * when 3WHS finishes (or is aborted).
495 spin_unlock_bh(&queue
->fastopenq
.lock
);
500 if (newsk
&& mem_cgroup_sockets_enabled
) {
503 /* atomically get the memory usage, set and charge the
508 /* The socket has not been accepted yet, no need to look at
509 * newsk->sk_wmem_queued.
511 amt
= sk_mem_pages(newsk
->sk_forward_alloc
+
512 atomic_read(&newsk
->sk_rmem_alloc
));
513 mem_cgroup_sk_alloc(newsk
);
514 if (newsk
->sk_memcg
&& amt
)
515 mem_cgroup_charge_skmem(newsk
->sk_memcg
, amt
);
528 EXPORT_SYMBOL(inet_csk_accept
);
531 * Using different timers for retransmit, delayed acks and probes
532 * We may wish use just one timer maintaining a list of expire jiffies
535 void inet_csk_init_xmit_timers(struct sock
*sk
,
536 void (*retransmit_handler
)(struct timer_list
*t
),
537 void (*delack_handler
)(struct timer_list
*t
),
538 void (*keepalive_handler
)(struct timer_list
*t
))
540 struct inet_connection_sock
*icsk
= inet_csk(sk
);
542 timer_setup(&icsk
->icsk_retransmit_timer
, retransmit_handler
, 0);
543 timer_setup(&icsk
->icsk_delack_timer
, delack_handler
, 0);
544 timer_setup(&sk
->sk_timer
, keepalive_handler
, 0);
545 icsk
->icsk_pending
= icsk
->icsk_ack
.pending
= 0;
547 EXPORT_SYMBOL(inet_csk_init_xmit_timers
);
549 void inet_csk_clear_xmit_timers(struct sock
*sk
)
551 struct inet_connection_sock
*icsk
= inet_csk(sk
);
553 icsk
->icsk_pending
= icsk
->icsk_ack
.pending
= icsk
->icsk_ack
.blocked
= 0;
555 sk_stop_timer(sk
, &icsk
->icsk_retransmit_timer
);
556 sk_stop_timer(sk
, &icsk
->icsk_delack_timer
);
557 sk_stop_timer(sk
, &sk
->sk_timer
);
559 EXPORT_SYMBOL(inet_csk_clear_xmit_timers
);
561 void inet_csk_delete_keepalive_timer(struct sock
*sk
)
563 sk_stop_timer(sk
, &sk
->sk_timer
);
565 EXPORT_SYMBOL(inet_csk_delete_keepalive_timer
);
567 void inet_csk_reset_keepalive_timer(struct sock
*sk
, unsigned long len
)
569 sk_reset_timer(sk
, &sk
->sk_timer
, jiffies
+ len
);
571 EXPORT_SYMBOL(inet_csk_reset_keepalive_timer
);
573 struct dst_entry
*inet_csk_route_req(const struct sock
*sk
,
575 const struct request_sock
*req
)
577 const struct inet_request_sock
*ireq
= inet_rsk(req
);
578 struct net
*net
= read_pnet(&ireq
->ireq_net
);
579 struct ip_options_rcu
*opt
;
583 opt
= rcu_dereference(ireq
->ireq_opt
);
585 flowi4_init_output(fl4
, ireq
->ir_iif
, ireq
->ir_mark
,
586 RT_CONN_FLAGS(sk
), RT_SCOPE_UNIVERSE
,
587 sk
->sk_protocol
, inet_sk_flowi_flags(sk
),
588 (opt
&& opt
->opt
.srr
) ? opt
->opt
.faddr
: ireq
->ir_rmt_addr
,
589 ireq
->ir_loc_addr
, ireq
->ir_rmt_port
,
590 htons(ireq
->ir_num
), sk
->sk_uid
);
591 security_req_classify_flow(req
, flowi4_to_flowi(fl4
));
592 rt
= ip_route_output_flow(net
, fl4
, sk
);
595 if (opt
&& opt
->opt
.is_strictroute
&& rt
->rt_uses_gateway
)
604 __IP_INC_STATS(net
, IPSTATS_MIB_OUTNOROUTES
);
607 EXPORT_SYMBOL_GPL(inet_csk_route_req
);
609 struct dst_entry
*inet_csk_route_child_sock(const struct sock
*sk
,
611 const struct request_sock
*req
)
613 const struct inet_request_sock
*ireq
= inet_rsk(req
);
614 struct net
*net
= read_pnet(&ireq
->ireq_net
);
615 struct inet_sock
*newinet
= inet_sk(newsk
);
616 struct ip_options_rcu
*opt
;
620 opt
= rcu_dereference(ireq
->ireq_opt
);
621 fl4
= &newinet
->cork
.fl
.u
.ip4
;
623 flowi4_init_output(fl4
, ireq
->ir_iif
, ireq
->ir_mark
,
624 RT_CONN_FLAGS(sk
), RT_SCOPE_UNIVERSE
,
625 sk
->sk_protocol
, inet_sk_flowi_flags(sk
),
626 (opt
&& opt
->opt
.srr
) ? opt
->opt
.faddr
: ireq
->ir_rmt_addr
,
627 ireq
->ir_loc_addr
, ireq
->ir_rmt_port
,
628 htons(ireq
->ir_num
), sk
->sk_uid
);
629 security_req_classify_flow(req
, flowi4_to_flowi(fl4
));
630 rt
= ip_route_output_flow(net
, fl4
, sk
);
633 if (opt
&& opt
->opt
.is_strictroute
&& rt
->rt_uses_gateway
)
640 __IP_INC_STATS(net
, IPSTATS_MIB_OUTNOROUTES
);
643 EXPORT_SYMBOL_GPL(inet_csk_route_child_sock
);
645 /* Decide when to expire the request and when to resend SYN-ACK */
646 static inline void syn_ack_recalc(struct request_sock
*req
, const int thresh
,
647 const int max_retries
,
648 const u8 rskq_defer_accept
,
649 int *expire
, int *resend
)
651 if (!rskq_defer_accept
) {
652 *expire
= req
->num_timeout
>= thresh
;
656 *expire
= req
->num_timeout
>= thresh
&&
657 (!inet_rsk(req
)->acked
|| req
->num_timeout
>= max_retries
);
659 * Do not resend while waiting for data after ACK,
660 * start to resend on end of deferring period to give
661 * last chance for data or ACK to create established socket.
663 *resend
= !inet_rsk(req
)->acked
||
664 req
->num_timeout
>= rskq_defer_accept
- 1;
667 int inet_rtx_syn_ack(const struct sock
*parent
, struct request_sock
*req
)
669 int err
= req
->rsk_ops
->rtx_syn_ack(parent
, req
);
675 EXPORT_SYMBOL(inet_rtx_syn_ack
);
677 /* return true if req was found in the ehash table */
678 static bool reqsk_queue_unlink(struct request_sock
*req
)
680 struct inet_hashinfo
*hashinfo
= req_to_sk(req
)->sk_prot
->h
.hashinfo
;
683 if (sk_hashed(req_to_sk(req
))) {
684 spinlock_t
*lock
= inet_ehash_lockp(hashinfo
, req
->rsk_hash
);
687 found
= __sk_nulls_del_node_init_rcu(req_to_sk(req
));
690 if (timer_pending(&req
->rsk_timer
) && del_timer_sync(&req
->rsk_timer
))
695 void inet_csk_reqsk_queue_drop(struct sock
*sk
, struct request_sock
*req
)
697 if (reqsk_queue_unlink(req
)) {
698 reqsk_queue_removed(&inet_csk(sk
)->icsk_accept_queue
, req
);
702 EXPORT_SYMBOL(inet_csk_reqsk_queue_drop
);
704 void inet_csk_reqsk_queue_drop_and_put(struct sock
*sk
, struct request_sock
*req
)
706 inet_csk_reqsk_queue_drop(sk
, req
);
709 EXPORT_SYMBOL(inet_csk_reqsk_queue_drop_and_put
);
711 static void reqsk_timer_handler(struct timer_list
*t
)
713 struct request_sock
*req
= from_timer(req
, t
, rsk_timer
);
714 struct sock
*sk_listener
= req
->rsk_listener
;
715 struct net
*net
= sock_net(sk_listener
);
716 struct inet_connection_sock
*icsk
= inet_csk(sk_listener
);
717 struct request_sock_queue
*queue
= &icsk
->icsk_accept_queue
;
718 int qlen
, expire
= 0, resend
= 0;
719 int max_retries
, thresh
;
722 if (inet_sk_state_load(sk_listener
) != TCP_LISTEN
)
725 max_retries
= icsk
->icsk_syn_retries
? : net
->ipv4
.sysctl_tcp_synack_retries
;
726 thresh
= max_retries
;
727 /* Normally all the openreqs are young and become mature
728 * (i.e. converted to established socket) for first timeout.
729 * If synack was not acknowledged for 1 second, it means
730 * one of the following things: synack was lost, ack was lost,
731 * rtt is high or nobody planned to ack (i.e. synflood).
732 * When server is a bit loaded, queue is populated with old
733 * open requests, reducing effective size of queue.
734 * When server is well loaded, queue size reduces to zero
735 * after several minutes of work. It is not synflood,
736 * it is normal operation. The solution is pruning
737 * too old entries overriding normal timeout, when
738 * situation becomes dangerous.
740 * Essentially, we reserve half of room for young
741 * embrions; and abort old ones without pity, if old
742 * ones are about to clog our table.
744 qlen
= reqsk_queue_len(queue
);
745 if ((qlen
<< 1) > max(8U, READ_ONCE(sk_listener
->sk_max_ack_backlog
))) {
746 int young
= reqsk_queue_len_young(queue
) << 1;
755 defer_accept
= READ_ONCE(queue
->rskq_defer_accept
);
757 max_retries
= defer_accept
;
758 syn_ack_recalc(req
, thresh
, max_retries
, defer_accept
,
760 req
->rsk_ops
->syn_ack_timeout(req
);
763 !inet_rtx_syn_ack(sk_listener
, req
) ||
764 inet_rsk(req
)->acked
)) {
767 if (req
->num_timeout
++ == 0)
768 atomic_dec(&queue
->young
);
769 timeo
= min(TCP_TIMEOUT_INIT
<< req
->num_timeout
, TCP_RTO_MAX
);
770 mod_timer(&req
->rsk_timer
, jiffies
+ timeo
);
774 inet_csk_reqsk_queue_drop_and_put(sk_listener
, req
);
777 static void reqsk_queue_hash_req(struct request_sock
*req
,
778 unsigned long timeout
)
780 timer_setup(&req
->rsk_timer
, reqsk_timer_handler
, TIMER_PINNED
);
781 mod_timer(&req
->rsk_timer
, jiffies
+ timeout
);
783 inet_ehash_insert(req_to_sk(req
), NULL
);
784 /* before letting lookups find us, make sure all req fields
785 * are committed to memory and refcnt initialized.
788 refcount_set(&req
->rsk_refcnt
, 2 + 1);
791 void inet_csk_reqsk_queue_hash_add(struct sock
*sk
, struct request_sock
*req
,
792 unsigned long timeout
)
794 reqsk_queue_hash_req(req
, timeout
);
795 inet_csk_reqsk_queue_added(sk
);
797 EXPORT_SYMBOL_GPL(inet_csk_reqsk_queue_hash_add
);
799 static void inet_clone_ulp(const struct request_sock
*req
, struct sock
*newsk
,
800 const gfp_t priority
)
802 struct inet_connection_sock
*icsk
= inet_csk(newsk
);
804 if (!icsk
->icsk_ulp_ops
)
807 if (icsk
->icsk_ulp_ops
->clone
)
808 icsk
->icsk_ulp_ops
->clone(req
, newsk
, priority
);
812 * inet_csk_clone_lock - clone an inet socket, and lock its clone
813 * @sk: the socket to clone
815 * @priority: for allocation (%GFP_KERNEL, %GFP_ATOMIC, etc)
817 * Caller must unlock socket even in error path (bh_unlock_sock(newsk))
819 struct sock
*inet_csk_clone_lock(const struct sock
*sk
,
820 const struct request_sock
*req
,
821 const gfp_t priority
)
823 struct sock
*newsk
= sk_clone_lock(sk
, priority
);
826 struct inet_connection_sock
*newicsk
= inet_csk(newsk
);
828 inet_sk_set_state(newsk
, TCP_SYN_RECV
);
829 newicsk
->icsk_bind_hash
= NULL
;
831 inet_sk(newsk
)->inet_dport
= inet_rsk(req
)->ir_rmt_port
;
832 inet_sk(newsk
)->inet_num
= inet_rsk(req
)->ir_num
;
833 inet_sk(newsk
)->inet_sport
= htons(inet_rsk(req
)->ir_num
);
835 /* listeners have SOCK_RCU_FREE, not the children */
836 sock_reset_flag(newsk
, SOCK_RCU_FREE
);
838 inet_sk(newsk
)->mc_list
= NULL
;
840 newsk
->sk_mark
= inet_rsk(req
)->ir_mark
;
841 atomic64_set(&newsk
->sk_cookie
,
842 atomic64_read(&inet_rsk(req
)->ir_cookie
));
844 newicsk
->icsk_retransmits
= 0;
845 newicsk
->icsk_backoff
= 0;
846 newicsk
->icsk_probes_out
= 0;
848 /* Deinitialize accept_queue to trap illegal accesses. */
849 memset(&newicsk
->icsk_accept_queue
, 0, sizeof(newicsk
->icsk_accept_queue
));
851 inet_clone_ulp(req
, newsk
, priority
);
853 security_inet_csk_clone(newsk
, req
);
857 EXPORT_SYMBOL_GPL(inet_csk_clone_lock
);
860 * At this point, there should be no process reference to this
861 * socket, and thus no user references at all. Therefore we
862 * can assume the socket waitqueue is inactive and nobody will
863 * try to jump onto it.
865 void inet_csk_destroy_sock(struct sock
*sk
)
867 WARN_ON(sk
->sk_state
!= TCP_CLOSE
);
868 WARN_ON(!sock_flag(sk
, SOCK_DEAD
));
870 /* It cannot be in hash table! */
871 WARN_ON(!sk_unhashed(sk
));
873 /* If it has not 0 inet_sk(sk)->inet_num, it must be bound */
874 WARN_ON(inet_sk(sk
)->inet_num
&& !inet_csk(sk
)->icsk_bind_hash
);
876 sk
->sk_prot
->destroy(sk
);
878 sk_stream_kill_queues(sk
);
880 xfrm_sk_free_policy(sk
);
882 sk_refcnt_debug_release(sk
);
884 percpu_counter_dec(sk
->sk_prot
->orphan_count
);
888 EXPORT_SYMBOL(inet_csk_destroy_sock
);
890 /* This function allows to force a closure of a socket after the call to
891 * tcp/dccp_create_openreq_child().
893 void inet_csk_prepare_forced_close(struct sock
*sk
)
894 __releases(&sk
->sk_lock
.slock
)
896 /* sk_clone_lock locked the socket and set refcnt to 2 */
900 /* The below has to be done to allow calling inet_csk_destroy_sock */
901 sock_set_flag(sk
, SOCK_DEAD
);
902 percpu_counter_inc(sk
->sk_prot
->orphan_count
);
903 inet_sk(sk
)->inet_num
= 0;
905 EXPORT_SYMBOL(inet_csk_prepare_forced_close
);
907 int inet_csk_listen_start(struct sock
*sk
, int backlog
)
909 struct inet_connection_sock
*icsk
= inet_csk(sk
);
910 struct inet_sock
*inet
= inet_sk(sk
);
911 int err
= -EADDRINUSE
;
913 reqsk_queue_alloc(&icsk
->icsk_accept_queue
);
915 sk
->sk_ack_backlog
= 0;
916 inet_csk_delack_init(sk
);
918 /* There is race window here: we announce ourselves listening,
919 * but this transition is still not validated by get_port().
920 * It is OK, because this socket enters to hash table only
921 * after validation is complete.
923 inet_sk_state_store(sk
, TCP_LISTEN
);
924 if (!sk
->sk_prot
->get_port(sk
, inet
->inet_num
)) {
925 inet
->inet_sport
= htons(inet
->inet_num
);
928 err
= sk
->sk_prot
->hash(sk
);
934 inet_sk_set_state(sk
, TCP_CLOSE
);
937 EXPORT_SYMBOL_GPL(inet_csk_listen_start
);
939 static void inet_child_forget(struct sock
*sk
, struct request_sock
*req
,
942 sk
->sk_prot
->disconnect(child
, O_NONBLOCK
);
946 percpu_counter_inc(sk
->sk_prot
->orphan_count
);
948 if (sk
->sk_protocol
== IPPROTO_TCP
&& tcp_rsk(req
)->tfo_listener
) {
949 BUG_ON(rcu_access_pointer(tcp_sk(child
)->fastopen_rsk
) != req
);
950 BUG_ON(sk
!= req
->rsk_listener
);
952 /* Paranoid, to prevent race condition if
953 * an inbound pkt destined for child is
954 * blocked by sock lock in tcp_v4_rcv().
955 * Also to satisfy an assertion in
956 * tcp_v4_destroy_sock().
958 RCU_INIT_POINTER(tcp_sk(child
)->fastopen_rsk
, NULL
);
960 inet_csk_destroy_sock(child
);
963 struct sock
*inet_csk_reqsk_queue_add(struct sock
*sk
,
964 struct request_sock
*req
,
967 struct request_sock_queue
*queue
= &inet_csk(sk
)->icsk_accept_queue
;
969 spin_lock(&queue
->rskq_lock
);
970 if (unlikely(sk
->sk_state
!= TCP_LISTEN
)) {
971 inet_child_forget(sk
, req
, child
);
976 if (queue
->rskq_accept_head
== NULL
)
977 WRITE_ONCE(queue
->rskq_accept_head
, req
);
979 queue
->rskq_accept_tail
->dl_next
= req
;
980 queue
->rskq_accept_tail
= req
;
981 sk_acceptq_added(sk
);
983 spin_unlock(&queue
->rskq_lock
);
986 EXPORT_SYMBOL(inet_csk_reqsk_queue_add
);
988 struct sock
*inet_csk_complete_hashdance(struct sock
*sk
, struct sock
*child
,
989 struct request_sock
*req
, bool own_req
)
992 inet_csk_reqsk_queue_drop(sk
, req
);
993 reqsk_queue_removed(&inet_csk(sk
)->icsk_accept_queue
, req
);
994 if (inet_csk_reqsk_queue_add(sk
, req
, child
))
997 /* Too bad, another child took ownership of the request, undo. */
998 bh_unlock_sock(child
);
1002 EXPORT_SYMBOL(inet_csk_complete_hashdance
);
1005 * This routine closes sockets which have been at least partially
1006 * opened, but not yet accepted.
1008 void inet_csk_listen_stop(struct sock
*sk
)
1010 struct inet_connection_sock
*icsk
= inet_csk(sk
);
1011 struct request_sock_queue
*queue
= &icsk
->icsk_accept_queue
;
1012 struct request_sock
*next
, *req
;
1014 /* Following specs, it would be better either to send FIN
1015 * (and enter FIN-WAIT-1, it is normal close)
1016 * or to send active reset (abort).
1017 * Certainly, it is pretty dangerous while synflood, but it is
1018 * bad justification for our negligence 8)
1019 * To be honest, we are not able to make either
1020 * of the variants now. --ANK
1022 while ((req
= reqsk_queue_remove(queue
, sk
)) != NULL
) {
1023 struct sock
*child
= req
->sk
;
1026 bh_lock_sock(child
);
1027 WARN_ON(sock_owned_by_user(child
));
1030 inet_child_forget(sk
, req
, child
);
1032 bh_unlock_sock(child
);
1038 if (queue
->fastopenq
.rskq_rst_head
) {
1039 /* Free all the reqs queued in rskq_rst_head. */
1040 spin_lock_bh(&queue
->fastopenq
.lock
);
1041 req
= queue
->fastopenq
.rskq_rst_head
;
1042 queue
->fastopenq
.rskq_rst_head
= NULL
;
1043 spin_unlock_bh(&queue
->fastopenq
.lock
);
1044 while (req
!= NULL
) {
1045 next
= req
->dl_next
;
1050 WARN_ON_ONCE(sk
->sk_ack_backlog
);
1052 EXPORT_SYMBOL_GPL(inet_csk_listen_stop
);
1054 void inet_csk_addr2sockaddr(struct sock
*sk
, struct sockaddr
*uaddr
)
1056 struct sockaddr_in
*sin
= (struct sockaddr_in
*)uaddr
;
1057 const struct inet_sock
*inet
= inet_sk(sk
);
1059 sin
->sin_family
= AF_INET
;
1060 sin
->sin_addr
.s_addr
= inet
->inet_daddr
;
1061 sin
->sin_port
= inet
->inet_dport
;
1063 EXPORT_SYMBOL_GPL(inet_csk_addr2sockaddr
);
1065 #ifdef CONFIG_COMPAT
1066 int inet_csk_compat_getsockopt(struct sock
*sk
, int level
, int optname
,
1067 char __user
*optval
, int __user
*optlen
)
1069 const struct inet_connection_sock
*icsk
= inet_csk(sk
);
1071 if (icsk
->icsk_af_ops
->compat_getsockopt
)
1072 return icsk
->icsk_af_ops
->compat_getsockopt(sk
, level
, optname
,
1074 return icsk
->icsk_af_ops
->getsockopt(sk
, level
, optname
,
1077 EXPORT_SYMBOL_GPL(inet_csk_compat_getsockopt
);
1079 int inet_csk_compat_setsockopt(struct sock
*sk
, int level
, int optname
,
1080 char __user
*optval
, unsigned int optlen
)
1082 const struct inet_connection_sock
*icsk
= inet_csk(sk
);
1084 if (icsk
->icsk_af_ops
->compat_setsockopt
)
1085 return icsk
->icsk_af_ops
->compat_setsockopt(sk
, level
, optname
,
1087 return icsk
->icsk_af_ops
->setsockopt(sk
, level
, optname
,
1090 EXPORT_SYMBOL_GPL(inet_csk_compat_setsockopt
);
1093 static struct dst_entry
*inet_csk_rebuild_route(struct sock
*sk
, struct flowi
*fl
)
1095 const struct inet_sock
*inet
= inet_sk(sk
);
1096 const struct ip_options_rcu
*inet_opt
;
1097 __be32 daddr
= inet
->inet_daddr
;
1102 inet_opt
= rcu_dereference(inet
->inet_opt
);
1103 if (inet_opt
&& inet_opt
->opt
.srr
)
1104 daddr
= inet_opt
->opt
.faddr
;
1106 rt
= ip_route_output_ports(sock_net(sk
), fl4
, sk
, daddr
,
1107 inet
->inet_saddr
, inet
->inet_dport
,
1108 inet
->inet_sport
, sk
->sk_protocol
,
1109 RT_CONN_FLAGS(sk
), sk
->sk_bound_dev_if
);
1113 sk_setup_caps(sk
, &rt
->dst
);
1119 struct dst_entry
*inet_csk_update_pmtu(struct sock
*sk
, u32 mtu
)
1121 struct dst_entry
*dst
= __sk_dst_check(sk
, 0);
1122 struct inet_sock
*inet
= inet_sk(sk
);
1125 dst
= inet_csk_rebuild_route(sk
, &inet
->cork
.fl
);
1129 dst
->ops
->update_pmtu(dst
, sk
, NULL
, mtu
, true);
1131 dst
= __sk_dst_check(sk
, 0);
1133 dst
= inet_csk_rebuild_route(sk
, &inet
->cork
.fl
);
1137 EXPORT_SYMBOL_GPL(inet_csk_update_pmtu
);