xref: /linux/net/rds/tcp.c (revision 9d19ca5d0e8b4a3f4b2eaa14e86a25f1c93ff35b)
1 /*
2  * Copyright (c) 2006, 2018 Oracle and/or its affiliates. All rights reserved.
3  *
4  * This software is available to you under a choice of one of two
5  * licenses.  You may choose to be licensed under the terms of the GNU
6  * General Public License (GPL) Version 2, available from the file
7  * COPYING in the main directory of this source tree, or the
8  * OpenIB.org BSD license below:
9  *
10  *     Redistribution and use in source and binary forms, with or
11  *     without modification, are permitted provided that the following
12  *     conditions are met:
13  *
14  *      - Redistributions of source code must retain the above
15  *        copyright notice, this list of conditions and the following
16  *        disclaimer.
17  *
18  *      - Redistributions in binary form must reproduce the above
19  *        copyright notice, this list of conditions and the following
20  *        disclaimer in the documentation and/or other materials
21  *        provided with the distribution.
22  *
23  * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND,
24  * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF
25  * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND
26  * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS
27  * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN
28  * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN
29  * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE
30  * SOFTWARE.
31  *
32  */
33 #include <linux/kernel.h>
34 #include <linux/slab.h>
35 #include <linux/in.h>
36 #include <linux/module.h>
37 #include <net/tcp.h>
38 #include <net/net_namespace.h>
39 #include <net/netns/generic.h>
40 #include <net/addrconf.h>
41 
42 #include "rds.h"
43 #include "tcp.h"
44 
45 /* only for info exporting */
46 static DEFINE_SPINLOCK(rds_tcp_tc_list_lock);
47 static LIST_HEAD(rds_tcp_tc_list);
48 
49 /* Track rds_tcp_connection structs so they can be cleaned up */
50 static DEFINE_SPINLOCK(rds_tcp_conn_lock);
51 static LIST_HEAD(rds_tcp_conn_list);
52 static atomic_t rds_tcp_unloading = ATOMIC_INIT(0);
53 
54 static struct kmem_cache *rds_tcp_conn_slab;
55 
56 static int rds_tcp_sndbuf_handler(const struct ctl_table *ctl, int write,
57 				  void *buffer, size_t *lenp, loff_t *fpos);
58 static int rds_tcp_rcvbuf_handler(const struct ctl_table *ctl, int write,
59 				  void *buffer, size_t *lenp, loff_t *fpos);
60 
61 static int rds_tcp_min_sndbuf = SOCK_MIN_SNDBUF;
62 static int rds_tcp_min_rcvbuf = SOCK_MIN_RCVBUF;
63 
64 static struct ctl_table rds_tcp_sysctl_table[] = {
65 #define	RDS_TCP_SNDBUF	0
66 	{
67 		.procname       = "rds_tcp_sndbuf",
68 		/* data is per-net pointer */
69 		.maxlen         = sizeof(int),
70 		.mode           = 0644,
71 		.proc_handler   = rds_tcp_sndbuf_handler,
72 		.extra1		= &rds_tcp_min_sndbuf,
73 	},
74 #define	RDS_TCP_RCVBUF	1
75 	{
76 		.procname       = "rds_tcp_rcvbuf",
77 		/* data is per-net pointer */
78 		.maxlen         = sizeof(int),
79 		.mode           = 0644,
80 		.proc_handler   = rds_tcp_rcvbuf_handler,
81 		.extra1		= &rds_tcp_min_rcvbuf,
82 	},
83 };
84 
85 u32 rds_tcp_write_seq(struct rds_tcp_connection *tc)
86 {
87 	/* seq# of the last byte of data in tcp send buffer */
88 	return tcp_sk(tc->t_sock->sk)->write_seq;
89 }
90 
91 u32 rds_tcp_snd_una(struct rds_tcp_connection *tc)
92 {
93 	return tcp_sk(tc->t_sock->sk)->snd_una;
94 }
95 
96 void rds_tcp_restore_callbacks(struct socket *sock,
97 			       struct rds_tcp_connection *tc)
98 {
99 	rdsdebug("restoring sock %p callbacks from tc %p\n", sock, tc);
100 	write_lock_bh(&sock->sk->sk_callback_lock);
101 
102 	/* done under the callback_lock to serialize with write_space */
103 	spin_lock(&rds_tcp_tc_list_lock);
104 	list_del_init(&tc->t_list_item);
105 	spin_unlock(&rds_tcp_tc_list_lock);
106 
107 	tc->t_sock = NULL;
108 
109 	sock->sk->sk_write_space = tc->t_orig_write_space;
110 	sock->sk->sk_data_ready = tc->t_orig_data_ready;
111 	sock->sk->sk_state_change = tc->t_orig_state_change;
112 	sock->sk->sk_user_data = NULL;
113 
114 	write_unlock_bh(&sock->sk->sk_callback_lock);
115 }
116 
117 /*
118  * rds_tcp_reset_callbacks() switches the to the new sock and
119  * returns the existing tc->t_sock.
120  *
121  * The only functions that set tc->t_sock are rds_tcp_set_callbacks
122  * and rds_tcp_reset_callbacks.  Send and receive trust that
123  * it is set.  The absence of RDS_CONN_UP bit protects those paths
124  * from being called while it isn't set.
125  */
126 void rds_tcp_reset_callbacks(struct socket *sock,
127 			     struct rds_conn_path *cp)
128 {
129 	struct rds_tcp_connection *tc = cp->cp_transport_data;
130 	struct socket *osock = tc->t_sock;
131 
132 	if (!osock)
133 		goto newsock;
134 
135 	/* Need to resolve a duelling SYN between peers.
136 	 * We have an outstanding SYN to this peer, which may
137 	 * potentially have transitioned to the RDS_CONN_UP state,
138 	 * so we must quiesce any send threads before resetting
139 	 * cp_transport_data. We quiesce these threads by setting
140 	 * cp_state to something other than RDS_CONN_UP, and then
141 	 * waiting for any existing threads in rds_send_xmit to
142 	 * complete release_in_xmit(). (Subsequent threads entering
143 	 * rds_send_xmit() will bail on !rds_conn_up().
144 	 *
145 	 * However an incoming syn-ack at this point would end up
146 	 * marking the conn as RDS_CONN_UP, and would again permit
147 	 * rds_send_xmi() threads through, so ideally we would
148 	 * synchronize on RDS_CONN_UP after lock_sock(), but cannot
149 	 * do that: waiting on !RDS_IN_XMIT after lock_sock() may
150 	 * end up deadlocking with tcp_sendmsg(), and the RDS_IN_XMIT
151 	 * would not get set. As a result, we set c_state to
152 	 * RDS_CONN_RESETTTING, to ensure that rds_tcp_state_change
153 	 * cannot mark rds_conn_path_up() in the window before lock_sock()
154 	 */
155 	atomic_set(&cp->cp_state, RDS_CONN_RESETTING);
156 	wait_event(cp->cp_waitq, !test_bit(RDS_IN_XMIT, &cp->cp_flags));
157 	/* reset receive side state for rds_tcp_data_recv() for osock  */
158 	cancel_delayed_work_sync(&cp->cp_send_w);
159 	cancel_delayed_work_sync(&cp->cp_recv_w);
160 	lock_sock(osock->sk);
161 	if (tc->t_tinc) {
162 		rds_inc_put(&tc->t_tinc->ti_inc);
163 		tc->t_tinc = NULL;
164 	}
165 	tc->t_tinc_hdr_rem = sizeof(struct rds_header);
166 	tc->t_tinc_data_rem = 0;
167 	rds_tcp_restore_callbacks(osock, tc);
168 	release_sock(osock->sk);
169 	sock_release(osock);
170 newsock:
171 	rds_send_path_reset(cp);
172 	lock_sock(sock->sk);
173 	rds_tcp_set_callbacks(sock, cp);
174 	release_sock(sock->sk);
175 }
176 
177 /* Add tc to rds_tcp_tc_list and set tc->t_sock. See comments
178  * above rds_tcp_reset_callbacks for notes about synchronization
179  * with data path
180  */
181 void rds_tcp_set_callbacks(struct socket *sock, struct rds_conn_path *cp)
182 {
183 	struct rds_tcp_connection *tc = cp->cp_transport_data;
184 
185 	rdsdebug("setting sock %p callbacks to tc %p\n", sock, tc);
186 	write_lock_bh(&sock->sk->sk_callback_lock);
187 
188 	/* done under the callback_lock to serialize with write_space.
189 	 * Set t_sock inside rds_tcp_tc_list_lock so readers walking
190 	 * rds_tcp_tc_list under the same lock cannot observe an
191 	 * entry whose t_sock is NULL.
192 	 */
193 	spin_lock(&rds_tcp_tc_list_lock);
194 	tc->t_sock = sock;
195 	list_add_tail(&tc->t_list_item, &rds_tcp_tc_list);
196 	spin_unlock(&rds_tcp_tc_list_lock);
197 
198 	/* accepted sockets need our listen data ready undone */
199 	if (sock->sk->sk_data_ready == rds_tcp_listen_data_ready)
200 		sock->sk->sk_data_ready = sock->sk->sk_user_data;
201 	if (!tc->t_rtn)
202 		tc->t_rtn = net_generic(sock_net(sock->sk), rds_tcp_netid);
203 	tc->t_cpath = cp;
204 	tc->t_orig_data_ready = sock->sk->sk_data_ready;
205 	tc->t_orig_write_space = sock->sk->sk_write_space;
206 	tc->t_orig_state_change = sock->sk->sk_state_change;
207 
208 	sock->sk->sk_user_data = cp;
209 	sock->sk->sk_data_ready = rds_tcp_data_ready;
210 	sock->sk->sk_write_space = rds_tcp_write_space;
211 	sock->sk->sk_state_change = rds_tcp_state_change;
212 
213 	write_unlock_bh(&sock->sk->sk_callback_lock);
214 }
215 
216 /* Handle RDS_INFO_TCP_SOCKETS socket option.  It only returns IPv4
217  * connections for backward compatibility.
218  */
219 static void rds_tcp_tc_info(struct socket *rds_sock, unsigned int len,
220 			    struct rds_info_iterator *iter,
221 			    struct rds_info_lengths *lens)
222 {
223 	struct net *net = sock_net(rds_sock->sk);
224 	struct rds_info_tcp_socket tsinfo;
225 	struct rds_tcp_connection *tc;
226 	unsigned int copied = 0;
227 	unsigned int cnt = 0;
228 	unsigned long flags;
229 
230 	spin_lock_irqsave(&rds_tcp_tc_list_lock, flags);
231 
232 	/* First pass: count entries visible in the caller's netns. */
233 	list_for_each_entry(tc, &rds_tcp_tc_list, t_list_item) {
234 		if (tc->t_cpath->cp_conn->c_isv6)
235 			continue;
236 		if (!net_eq(rds_conn_net(tc->t_cpath->cp_conn), net))
237 			continue;
238 		cnt++;
239 	}
240 
241 	if (len / sizeof(tsinfo) < cnt)
242 		goto out;
243 
244 	list_for_each_entry(tc, &rds_tcp_tc_list, t_list_item) {
245 		struct inet_sock *inet = inet_sk(tc->t_sock->sk);
246 
247 		if (copied >= cnt)
248 			break;
249 		if (tc->t_cpath->cp_conn->c_isv6)
250 			continue;
251 		/* Only show connections in the caller's netns. */
252 		if (!net_eq(rds_conn_net(tc->t_cpath->cp_conn), net))
253 			continue;
254 
255 		tsinfo.local_addr = inet->inet_saddr;
256 		tsinfo.local_port = inet->inet_sport;
257 		tsinfo.peer_addr = inet->inet_daddr;
258 		tsinfo.peer_port = inet->inet_dport;
259 
260 		tsinfo.hdr_rem = tc->t_tinc_hdr_rem;
261 		tsinfo.data_rem = tc->t_tinc_data_rem;
262 		tsinfo.last_sent_nxt = tc->t_last_sent_nxt;
263 		tsinfo.last_expected_una = tc->t_last_expected_una;
264 		tsinfo.last_seen_una = tc->t_last_seen_una;
265 		tsinfo.tos = tc->t_cpath->cp_conn->c_tos;
266 
267 		rds_info_copy(iter, &tsinfo, sizeof(tsinfo));
268 		copied++;
269 	}
270 	cnt = copied;
271 
272 out:
273 	lens->nr = cnt;
274 	lens->each = sizeof(tsinfo);
275 
276 	spin_unlock_irqrestore(&rds_tcp_tc_list_lock, flags);
277 }
278 
279 #if IS_ENABLED(CONFIG_IPV6)
280 /* Handle RDS6_INFO_TCP_SOCKETS socket option. It returns both IPv4 and
281  * IPv6 connections. IPv4 connection address is returned in an IPv4 mapped
282  * address.
283  */
284 static void rds6_tcp_tc_info(struct socket *sock, unsigned int len,
285 			     struct rds_info_iterator *iter,
286 			     struct rds_info_lengths *lens)
287 {
288 	struct net *net = sock_net(sock->sk);
289 	struct rds6_info_tcp_socket tsinfo6;
290 	struct rds_tcp_connection *tc;
291 	unsigned int copied = 0;
292 	unsigned int cnt = 0;
293 	unsigned long flags;
294 
295 	spin_lock_irqsave(&rds_tcp_tc_list_lock, flags);
296 
297 	/* First pass: count entries visible in the caller's netns. */
298 	list_for_each_entry(tc, &rds_tcp_tc_list, t_list_item) {
299 		if (!net_eq(rds_conn_net(tc->t_cpath->cp_conn), net))
300 			continue;
301 		cnt++;
302 	}
303 
304 	if (len / sizeof(tsinfo6) < cnt)
305 		goto out;
306 
307 	list_for_each_entry(tc, &rds_tcp_tc_list, t_list_item) {
308 		struct sock *sk = tc->t_sock->sk;
309 		struct inet_sock *inet = inet_sk(sk);
310 
311 		if (copied >= cnt)
312 			break;
313 		/* Only show connections in the caller's netns. */
314 		if (!net_eq(rds_conn_net(tc->t_cpath->cp_conn), net))
315 			continue;
316 
317 		tsinfo6.local_addr = sk->sk_v6_rcv_saddr;
318 		tsinfo6.local_port = inet->inet_sport;
319 		tsinfo6.peer_addr = sk->sk_v6_daddr;
320 		tsinfo6.peer_port = inet->inet_dport;
321 
322 		tsinfo6.hdr_rem = tc->t_tinc_hdr_rem;
323 		tsinfo6.data_rem = tc->t_tinc_data_rem;
324 		tsinfo6.last_sent_nxt = tc->t_last_sent_nxt;
325 		tsinfo6.last_expected_una = tc->t_last_expected_una;
326 		tsinfo6.last_seen_una = tc->t_last_seen_una;
327 
328 		rds_info_copy(iter, &tsinfo6, sizeof(tsinfo6));
329 		copied++;
330 	}
331 	cnt = copied;
332 
333 out:
334 	lens->nr = cnt;
335 	lens->each = sizeof(tsinfo6);
336 
337 	spin_unlock_irqrestore(&rds_tcp_tc_list_lock, flags);
338 }
339 #endif
340 
341 int rds_tcp_laddr_check(struct net *net, const struct in6_addr *addr,
342 			__u32 scope_id)
343 {
344 	struct net_device *dev = NULL;
345 #if IS_ENABLED(CONFIG_IPV6)
346 	int ret;
347 #endif
348 
349 	if (ipv6_addr_v4mapped(addr)) {
350 		if (inet_addr_type(net, addr->s6_addr32[3]) == RTN_LOCAL)
351 			return 0;
352 		return -EADDRNOTAVAIL;
353 	}
354 
355 	/* If the scope_id is specified, check only those addresses
356 	 * hosted on the specified interface.
357 	 */
358 	rcu_read_lock();
359 	if (scope_id != 0) {
360 		dev = dev_get_by_index_rcu(net, scope_id);
361 		/* scope_id is not valid... */
362 		if (!dev) {
363 			rcu_read_unlock();
364 			return -EADDRNOTAVAIL;
365 		}
366 	}
367 #if IS_ENABLED(CONFIG_IPV6)
368 	if (ipv6_mod_enabled()) {
369 		ret = ipv6_chk_addr(net, addr, dev, 0);
370 		if (ret) {
371 			rcu_read_unlock();
372 			return 0;
373 		}
374 	}
375 #endif
376 	rcu_read_unlock();
377 	return -EADDRNOTAVAIL;
378 }
379 
380 static void rds_tcp_conn_free(void *arg)
381 {
382 	struct rds_tcp_connection *tc = arg;
383 	unsigned long flags;
384 
385 	rdsdebug("freeing tc %p\n", tc);
386 
387 	spin_lock_irqsave(&rds_tcp_conn_lock, flags);
388 	if (!tc->t_tcp_node_detached)
389 		list_del(&tc->t_tcp_node);
390 	spin_unlock_irqrestore(&rds_tcp_conn_lock, flags);
391 
392 	kmem_cache_free(rds_tcp_conn_slab, tc);
393 }
394 
395 static int rds_tcp_conn_alloc(struct rds_connection *conn, gfp_t gfp)
396 {
397 	struct rds_tcp_connection *tc;
398 	int i, j;
399 	int ret = 0;
400 
401 	for (i = 0; i < RDS_MPATH_WORKERS; i++) {
402 		tc = kmem_cache_zalloc(rds_tcp_conn_slab, gfp);
403 		if (!tc) {
404 			ret = -ENOMEM;
405 			goto fail;
406 		}
407 		mutex_init(&tc->t_conn_path_lock);
408 		tc->t_sock = NULL;
409 		tc->t_rtn = NULL;
410 		tc->t_tinc = NULL;
411 		tc->t_tinc_hdr_rem = sizeof(struct rds_header);
412 		tc->t_tinc_data_rem = 0;
413 		init_waitqueue_head(&tc->t_recv_done_waitq);
414 
415 		conn->c_path[i].cp_transport_data = tc;
416 		tc->t_cpath = &conn->c_path[i];
417 		tc->t_tcp_node_detached = true;
418 
419 		rdsdebug("rds_conn_path [%d] tc %p\n", i,
420 			 conn->c_path[i].cp_transport_data);
421 	}
422 	spin_lock_irq(&rds_tcp_conn_lock);
423 	for (i = 0; i < RDS_MPATH_WORKERS; i++) {
424 		tc = conn->c_path[i].cp_transport_data;
425 		tc->t_tcp_node_detached = false;
426 		list_add_tail(&tc->t_tcp_node, &rds_tcp_conn_list);
427 	}
428 	spin_unlock_irq(&rds_tcp_conn_lock);
429 fail:
430 	if (ret) {
431 		for (j = 0; j < i; j++)
432 			rds_tcp_conn_free(conn->c_path[j].cp_transport_data);
433 	}
434 	return ret;
435 }
436 
437 static bool list_has_conn(struct list_head *list, struct rds_connection *conn)
438 {
439 	struct rds_tcp_connection *tc, *_tc;
440 
441 	list_for_each_entry_safe(tc, _tc, list, t_tcp_node) {
442 		if (tc->t_cpath->cp_conn == conn)
443 			return true;
444 	}
445 	return false;
446 }
447 
448 static void rds_tcp_set_unloading(void)
449 {
450 	atomic_set(&rds_tcp_unloading, 1);
451 }
452 
453 static bool rds_tcp_is_unloading(struct rds_connection *conn)
454 {
455 	return atomic_read(&rds_tcp_unloading) != 0;
456 }
457 
458 static void rds_tcp_destroy_conns(void)
459 {
460 	struct rds_tcp_connection *tc, *_tc;
461 	LIST_HEAD(tmp_list);
462 
463 	/* avoid calling conn_destroy with irqs off */
464 	spin_lock_irq(&rds_tcp_conn_lock);
465 	list_for_each_entry_safe(tc, _tc, &rds_tcp_conn_list, t_tcp_node) {
466 		if (!list_has_conn(&tmp_list, tc->t_cpath->cp_conn))
467 			list_move_tail(&tc->t_tcp_node, &tmp_list);
468 	}
469 	spin_unlock_irq(&rds_tcp_conn_lock);
470 
471 	list_for_each_entry_safe(tc, _tc, &tmp_list, t_tcp_node)
472 		rds_conn_destroy(tc->t_cpath->cp_conn);
473 }
474 
475 static void rds_tcp_exit(void);
476 
477 static u8 rds_tcp_get_tos_map(u8 tos)
478 {
479 	/* all user tos mapped to default 0 for TCP transport */
480 	return 0;
481 }
482 
483 struct rds_transport rds_tcp_transport = {
484 	.laddr_check		= rds_tcp_laddr_check,
485 	.xmit_path_prepare	= rds_tcp_xmit_path_prepare,
486 	.xmit_path_complete	= rds_tcp_xmit_path_complete,
487 	.xmit			= rds_tcp_xmit,
488 	.recv_path		= rds_tcp_recv_path,
489 	.conn_alloc		= rds_tcp_conn_alloc,
490 	.conn_free		= rds_tcp_conn_free,
491 	.conn_slots_available	= rds_tcp_conn_slots_available,
492 	.conn_path_connect	= rds_tcp_conn_path_connect,
493 	.conn_path_shutdown	= rds_tcp_conn_path_shutdown,
494 	.inc_copy_to_user	= rds_tcp_inc_copy_to_user,
495 	.inc_free		= rds_tcp_inc_free,
496 	.stats_info_copy	= rds_tcp_stats_info_copy,
497 	.exit			= rds_tcp_exit,
498 	.get_tos_map		= rds_tcp_get_tos_map,
499 	.t_owner		= THIS_MODULE,
500 	.t_name			= "tcp",
501 	.t_type			= RDS_TRANS_TCP,
502 	.t_prefer_loopback	= 1,
503 	.t_mp_capable		= 1,
504 	.t_unloading		= rds_tcp_is_unloading,
505 };
506 
507 int rds_tcp_netid;
508 
509 /* All module specific customizations to the RDS-TCP socket should be done in
510  * rds_tcp_tune() and applied after socket creation.
511  */
512 bool rds_tcp_tune(struct socket *sock)
513 {
514 	struct sock *sk = sock->sk;
515 	struct net *net = sock_net(sk);
516 	struct rds_tcp_net *rtn;
517 
518 	tcp_sock_set_nodelay(sock->sk);
519 	/* TCP timer functions might access net namespace even after
520 	 * a process which created this net namespace terminated.
521 	 */
522 	if (!sk->sk_net_refcnt) {
523 		if (!maybe_get_net(net))
524 			return false;
525 		/*
526 		 * sk_net_refcnt_upgrade() must be called before lock_sock()
527 		 * because it does a GFP_KERNEL allocation, which can trigger
528 		 * fs_reclaim and create a circular lock dependency with the
529 		 * socket lock.  The fields it modifies (sk_net_refcnt,
530 		 * ns_tracker) are not accessed by any concurrent code path
531 		 * at this point.
532 		 */
533 		sk_net_refcnt_upgrade(sk);
534 		put_net(net);
535 	}
536 	lock_sock(sk);
537 	rtn = net_generic(net, rds_tcp_netid);
538 	if (rtn->sndbuf_size > 0) {
539 		sk->sk_sndbuf = rtn->sndbuf_size;
540 		sk->sk_userlocks |= SOCK_SNDBUF_LOCK;
541 	}
542 	if (rtn->rcvbuf_size > 0) {
543 		sk->sk_rcvbuf = rtn->rcvbuf_size;
544 		sk->sk_userlocks |= SOCK_RCVBUF_LOCK;
545 	}
546 	release_sock(sk);
547 	return true;
548 }
549 
550 static void rds_tcp_accept_worker(struct work_struct *work)
551 {
552 	struct rds_tcp_net *rtn = container_of(work,
553 					       struct rds_tcp_net,
554 					       rds_tcp_accept_w);
555 
556 	while (rds_tcp_accept_one(rtn) == 0)
557 		cond_resched();
558 }
559 
560 void rds_tcp_accept_work(struct rds_tcp_net *rtn)
561 {
562 	queue_work(rds_wq, &rtn->rds_tcp_accept_w);
563 }
564 
565 static __net_init int rds_tcp_init_net(struct net *net)
566 {
567 	struct rds_tcp_net *rtn = net_generic(net, rds_tcp_netid);
568 	struct ctl_table *tbl;
569 	int err = 0;
570 
571 	memset(rtn, 0, sizeof(*rtn));
572 
573 	mutex_init(&rtn->rds_tcp_accept_lock);
574 
575 	/* {snd, rcv}buf_size default to 0, which implies we let the
576 	 * stack pick the value, and permit auto-tuning of buffer size.
577 	 */
578 	if (net == &init_net) {
579 		tbl = rds_tcp_sysctl_table;
580 	} else {
581 		tbl = kmemdup(rds_tcp_sysctl_table,
582 			      sizeof(rds_tcp_sysctl_table), GFP_KERNEL);
583 		if (!tbl) {
584 			pr_warn("could not set allocate sysctl table\n");
585 			return -ENOMEM;
586 		}
587 		rtn->ctl_table = tbl;
588 	}
589 	tbl[RDS_TCP_SNDBUF].data = &rtn->sndbuf_size;
590 	tbl[RDS_TCP_RCVBUF].data = &rtn->rcvbuf_size;
591 	rtn->rds_tcp_sysctl = register_net_sysctl_sz(net, "net/rds/tcp", tbl,
592 						     ARRAY_SIZE(rds_tcp_sysctl_table));
593 	if (!rtn->rds_tcp_sysctl) {
594 		pr_warn("could not register sysctl\n");
595 		err = -ENOMEM;
596 		goto fail;
597 	}
598 
599 #if IS_ENABLED(CONFIG_IPV6)
600 	rtn->rds_tcp_listen_sock = rds_tcp_listen_init(net, true);
601 #else
602 	rtn->rds_tcp_listen_sock = rds_tcp_listen_init(net, false);
603 #endif
604 	if (!rtn->rds_tcp_listen_sock) {
605 		pr_warn("could not set up IPv6 listen sock\n");
606 
607 #if IS_ENABLED(CONFIG_IPV6)
608 		/* Try IPv4 as some systems disable IPv6 */
609 		rtn->rds_tcp_listen_sock = rds_tcp_listen_init(net, false);
610 		if (!rtn->rds_tcp_listen_sock) {
611 #endif
612 			unregister_net_sysctl_table(rtn->rds_tcp_sysctl);
613 			rtn->rds_tcp_sysctl = NULL;
614 			err = -EAFNOSUPPORT;
615 			goto fail;
616 #if IS_ENABLED(CONFIG_IPV6)
617 		}
618 #endif
619 	}
620 	INIT_WORK(&rtn->rds_tcp_accept_w, rds_tcp_accept_worker);
621 	return 0;
622 
623 fail:
624 	if (net != &init_net)
625 		kfree(tbl);
626 	return err;
627 }
628 
629 static void rds_tcp_kill_sock(struct net *net)
630 {
631 	struct rds_tcp_connection *tc, *_tc;
632 	LIST_HEAD(tmp_list);
633 	struct rds_tcp_net *rtn = net_generic(net, rds_tcp_netid);
634 	struct socket *lsock = rtn->rds_tcp_listen_sock;
635 
636 	rtn->rds_tcp_listen_sock = NULL;
637 	rds_tcp_listen_stop(lsock, &rtn->rds_tcp_accept_w);
638 	if (rtn->rds_tcp_accepted_sock)
639 		sock_release(rtn->rds_tcp_accepted_sock);
640 	spin_lock_irq(&rds_tcp_conn_lock);
641 	list_for_each_entry_safe(tc, _tc, &rds_tcp_conn_list, t_tcp_node) {
642 		struct net *c_net = read_pnet(&tc->t_cpath->cp_conn->c_net);
643 
644 		if (net != c_net)
645 			continue;
646 		if (!list_has_conn(&tmp_list, tc->t_cpath->cp_conn)) {
647 			list_move_tail(&tc->t_tcp_node, &tmp_list);
648 		} else {
649 			list_del(&tc->t_tcp_node);
650 			tc->t_tcp_node_detached = true;
651 		}
652 	}
653 	spin_unlock_irq(&rds_tcp_conn_lock);
654 	list_for_each_entry_safe(tc, _tc, &tmp_list, t_tcp_node)
655 		rds_conn_destroy(tc->t_cpath->cp_conn);
656 }
657 
658 static void __net_exit rds_tcp_exit_net(struct net *net)
659 {
660 	struct rds_tcp_net *rtn = net_generic(net, rds_tcp_netid);
661 
662 	if (rtn->rds_tcp_sysctl)
663 		unregister_net_sysctl_table(rtn->rds_tcp_sysctl);
664 
665 	if (net != &init_net)
666 		kfree(rtn->ctl_table);
667 
668 	rds_tcp_kill_sock(net);
669 }
670 
671 static struct pernet_operations rds_tcp_net_ops = {
672 	.init = rds_tcp_init_net,
673 	.exit = rds_tcp_exit_net,
674 	.id = &rds_tcp_netid,
675 	.size = sizeof(struct rds_tcp_net),
676 };
677 
678 void *rds_tcp_listen_sock_def_readable(struct net *net)
679 {
680 	struct rds_tcp_net *rtn = net_generic(net, rds_tcp_netid);
681 	struct socket *lsock = rtn->rds_tcp_listen_sock;
682 
683 	if (!lsock)
684 		return NULL;
685 
686 	return lsock->sk->sk_user_data;
687 }
688 
689 /* when sysctl is used to modify some kernel socket parameters,this
690  * function  resets the RDS connections in that netns  so that we can
691  * restart with new parameters.  The assumption is that such reset
692  * events are few and far-between.
693  */
694 static void rds_tcp_sysctl_reset(struct net *net)
695 {
696 	struct rds_tcp_connection *tc, *_tc;
697 
698 	spin_lock_irq(&rds_tcp_conn_lock);
699 	list_for_each_entry_safe(tc, _tc, &rds_tcp_conn_list, t_tcp_node) {
700 		struct net *c_net = read_pnet(&tc->t_cpath->cp_conn->c_net);
701 
702 		if (net != c_net || !tc->t_sock)
703 			continue;
704 
705 		/* reconnect with new parameters */
706 		rds_conn_path_drop(tc->t_cpath, false);
707 	}
708 	spin_unlock_irq(&rds_tcp_conn_lock);
709 }
710 
711 static int rds_tcp_skbuf_handler(struct rds_tcp_net *rtn,
712 				 const struct ctl_table *ctl, int write,
713 				 void *buffer, size_t *lenp, loff_t *fpos)
714 {
715 	int err;
716 
717 	err = proc_dointvec_minmax(ctl, write, buffer, lenp, fpos);
718 	if (err < 0) {
719 		pr_warn("Invalid input. Must be >= %d\n",
720 			*(int *)(ctl->extra1));
721 		return err;
722 	}
723 
724 	if (write && rtn->rds_tcp_listen_sock && rtn->rds_tcp_listen_sock->sk) {
725 		struct net *net = sock_net(rtn->rds_tcp_listen_sock->sk);
726 
727 		rds_tcp_sysctl_reset(net);
728 	}
729 
730 	return 0;
731 }
732 
733 static int rds_tcp_sndbuf_handler(const struct ctl_table *ctl, int write,
734 				  void *buffer, size_t *lenp, loff_t *fpos)
735 {
736 	struct rds_tcp_net *rtn = container_of(ctl->data, struct rds_tcp_net,
737 					       sndbuf_size);
738 
739 	return rds_tcp_skbuf_handler(rtn, ctl, write, buffer, lenp, fpos);
740 }
741 
742 static int rds_tcp_rcvbuf_handler(const struct ctl_table *ctl, int write,
743 				  void *buffer, size_t *lenp, loff_t *fpos)
744 {
745 	struct rds_tcp_net *rtn = container_of(ctl->data, struct rds_tcp_net,
746 					       rcvbuf_size);
747 
748 	return rds_tcp_skbuf_handler(rtn, ctl, write, buffer, lenp, fpos);
749 }
750 
751 static void rds_tcp_exit(void)
752 {
753 	rds_tcp_set_unloading();
754 	synchronize_rcu();
755 	rds_info_deregister_func(RDS_INFO_TCP_SOCKETS, rds_tcp_tc_info);
756 #if IS_ENABLED(CONFIG_IPV6)
757 	rds_info_deregister_func(RDS6_INFO_TCP_SOCKETS, rds6_tcp_tc_info);
758 #endif
759 	unregister_pernet_device(&rds_tcp_net_ops);
760 	rds_tcp_destroy_conns();
761 	rds_trans_unregister(&rds_tcp_transport);
762 	rds_tcp_recv_exit();
763 	kmem_cache_destroy(rds_tcp_conn_slab);
764 }
765 module_exit(rds_tcp_exit);
766 
767 static int __init rds_tcp_init(void)
768 {
769 	int ret;
770 
771 	rds_tcp_conn_slab = KMEM_CACHE(rds_tcp_connection, 0);
772 	if (!rds_tcp_conn_slab) {
773 		ret = -ENOMEM;
774 		goto out;
775 	}
776 
777 	ret = rds_tcp_recv_init();
778 	if (ret)
779 		goto out_slab;
780 
781 	ret = register_pernet_device(&rds_tcp_net_ops);
782 	if (ret)
783 		goto out_recv;
784 
785 	rds_trans_register(&rds_tcp_transport);
786 
787 	rds_info_register_func(RDS_INFO_TCP_SOCKETS, rds_tcp_tc_info);
788 #if IS_ENABLED(CONFIG_IPV6)
789 	rds_info_register_func(RDS6_INFO_TCP_SOCKETS, rds6_tcp_tc_info);
790 #endif
791 
792 	goto out;
793 out_recv:
794 	rds_tcp_recv_exit();
795 out_slab:
796 	kmem_cache_destroy(rds_tcp_conn_slab);
797 out:
798 	return ret;
799 }
800 module_init(rds_tcp_init);
801 
802 MODULE_AUTHOR("Oracle Corporation <rds-devel@oss.oracle.com>");
803 MODULE_DESCRIPTION("RDS: TCP transport");
804 MODULE_LICENSE("Dual BSD/GPL");
805