xref: /linux/net/rds/recv.c (revision a34b0e4e21d6be3c3d620aa7f9dfbf0e9550c19e)
1 /*
2  * Copyright (c) 2006, 2019 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 <net/sock.h>
36 #include <linux/in.h>
37 #include <linux/export.h>
38 #include <linux/sched/clock.h>
39 #include <linux/time.h>
40 #include <linux/rds.h>
41 
42 #include "rds.h"
43 
44 void rds_inc_init(struct rds_incoming *inc, struct rds_connection *conn,
45 		 struct in6_addr *saddr)
46 {
47 	refcount_set(&inc->i_refcount, 1);
48 	INIT_LIST_HEAD(&inc->i_item);
49 	inc->i_conn = conn;
50 	inc->i_saddr = *saddr;
51 	inc->i_usercopy.rdma_cookie = 0;
52 	inc->i_usercopy.rx_tstamp = ktime_set(0, 0);
53 
54 	memset(inc->i_rx_lat_trace, 0, sizeof(inc->i_rx_lat_trace));
55 }
56 EXPORT_SYMBOL_GPL(rds_inc_init);
57 
58 void rds_inc_path_init(struct rds_incoming *inc, struct rds_conn_path *cp,
59 		       struct in6_addr  *saddr)
60 {
61 	refcount_set(&inc->i_refcount, 1);
62 	INIT_LIST_HEAD(&inc->i_item);
63 	inc->i_conn = cp->cp_conn;
64 	inc->i_conn_path = cp;
65 	inc->i_saddr = *saddr;
66 	inc->i_usercopy.rdma_cookie = 0;
67 	inc->i_usercopy.rx_tstamp = ktime_set(0, 0);
68 }
69 EXPORT_SYMBOL_GPL(rds_inc_path_init);
70 
71 static void rds_inc_addref(struct rds_incoming *inc)
72 {
73 	rdsdebug("addref inc %p ref %d\n", inc, refcount_read(&inc->i_refcount));
74 	refcount_inc(&inc->i_refcount);
75 }
76 
77 void rds_inc_put(struct rds_incoming *inc)
78 {
79 	rdsdebug("put inc %p ref %d\n", inc, refcount_read(&inc->i_refcount));
80 	if (refcount_dec_and_test(&inc->i_refcount)) {
81 		BUG_ON(!list_empty(&inc->i_item));
82 
83 		inc->i_conn->c_trans->inc_free(inc);
84 	}
85 }
86 EXPORT_SYMBOL_GPL(rds_inc_put);
87 
88 static void rds_recv_rcvbuf_delta(struct rds_sock *rs, struct sock *sk,
89 				  struct rds_cong_map *map,
90 				  int delta, __be16 port)
91 {
92 	int now_congested;
93 
94 	if (delta == 0)
95 		return;
96 
97 	rs->rs_rcv_bytes += delta;
98 	if (delta > 0)
99 		rds_stats_add(s_recv_bytes_added_to_socket, delta);
100 	else
101 		rds_stats_add(s_recv_bytes_removed_from_socket, -delta);
102 
103 	/* loop transport doesn't send/recv congestion updates */
104 	if (rs->rs_transport->t_type == RDS_TRANS_LOOP)
105 		return;
106 
107 	now_congested = rs->rs_rcv_bytes > rds_sk_rcvbuf(rs);
108 
109 	rdsdebug("rs %p (%pI6c:%u) recv bytes %d buf %d "
110 	  "now_cong %d delta %d\n",
111 	  rs, &rs->rs_bound_addr,
112 	  ntohs(rs->rs_bound_port), rs->rs_rcv_bytes,
113 	  rds_sk_rcvbuf(rs), now_congested, delta);
114 
115 	/* wasn't -> am congested */
116 	if (!rs->rs_congested && now_congested) {
117 		rs->rs_congested = 1;
118 		rds_cong_set_bit(map, port);
119 		rds_cong_queue_updates(map);
120 	}
121 	/* was -> aren't congested */
122 	/* Require more free space before reporting uncongested to prevent
123 	   bouncing cong/uncong state too often */
124 	else if (rs->rs_congested && (rs->rs_rcv_bytes < (rds_sk_rcvbuf(rs)/2))) {
125 		rs->rs_congested = 0;
126 		rds_cong_clear_bit(map, port);
127 		rds_cong_queue_updates(map);
128 	}
129 
130 	/* do nothing if no change in cong state */
131 }
132 
133 static void rds_conn_peer_gen_update(struct rds_connection *conn,
134 				     u32 peer_gen_num)
135 {
136 	int i;
137 	struct rds_message *rm, *tmp;
138 	unsigned long flags;
139 
140 	WARN_ON(conn->c_trans->t_type != RDS_TRANS_TCP);
141 	if (peer_gen_num != 0) {
142 		if (conn->c_peer_gen_num != 0 &&
143 		    peer_gen_num != conn->c_peer_gen_num) {
144 			for (i = 0; i < RDS_MPATH_WORKERS; i++) {
145 				struct rds_conn_path *cp;
146 
147 				cp = &conn->c_path[i];
148 				spin_lock_irqsave(&cp->cp_lock, flags);
149 				cp->cp_next_tx_seq = 1;
150 				cp->cp_next_rx_seq = 0;
151 				list_for_each_entry_safe(rm, tmp,
152 							 &cp->cp_retrans,
153 							 m_conn_item) {
154 					set_bit(RDS_MSG_FLUSH, &rm->m_flags);
155 				}
156 				spin_unlock_irqrestore(&cp->cp_lock, flags);
157 			}
158 		}
159 		conn->c_peer_gen_num = peer_gen_num;
160 	}
161 }
162 
163 /*
164  * Process all extension headers that come with this message.
165  */
166 static void rds_recv_incoming_exthdrs(struct rds_incoming *inc, struct rds_sock *rs)
167 {
168 	struct rds_header *hdr = &inc->i_hdr;
169 	unsigned int pos = 0, type, len;
170 	union {
171 		struct rds_ext_header_version version;
172 		struct rds_ext_header_rdma rdma;
173 		struct rds_ext_header_rdma_dest rdma_dest;
174 	} buffer;
175 
176 	while (1) {
177 		len = sizeof(buffer);
178 		type = rds_message_next_extension(hdr, &pos, &buffer, &len);
179 		if (type == RDS_EXTHDR_NONE)
180 			break;
181 		/* Process extension header here */
182 		switch (type) {
183 		case RDS_EXTHDR_RDMA:
184 			rds_rdma_unuse(rs, be32_to_cpu(buffer.rdma.h_rdma_rkey), 0);
185 			break;
186 
187 		case RDS_EXTHDR_RDMA_DEST:
188 			/* We ignore the size for now. We could stash it
189 			 * somewhere and use it for error checking. */
190 			inc->i_usercopy.rdma_cookie = rds_rdma_make_cookie(
191 					be32_to_cpu(buffer.rdma_dest.h_rdma_rkey),
192 					be32_to_cpu(buffer.rdma_dest.h_rdma_offset));
193 
194 			break;
195 		}
196 	}
197 }
198 
199 static void rds_recv_hs_exthdrs(struct rds_header *hdr,
200 				struct rds_connection *conn)
201 {
202 	unsigned int pos = 0, type, len;
203 	union {
204 		struct rds_ext_header_version version;
205 		__be16 rds_npaths;
206 		__be32 rds_gen_num;
207 	} buffer;
208 	u32 new_peer_gen_num = 0;
209 
210 	while (1) {
211 		len = sizeof(buffer);
212 		type = rds_message_next_extension(hdr, &pos, &buffer, &len);
213 		if (type == RDS_EXTHDR_NONE)
214 			break;
215 		/* Process extension header here */
216 		switch (type) {
217 		case RDS_EXTHDR_NPATHS:
218 			conn->c_npaths = min_t(int, RDS_MPATH_WORKERS,
219 					       be16_to_cpu(buffer.rds_npaths));
220 			break;
221 		case RDS_EXTHDR_GEN_NUM:
222 			new_peer_gen_num = be32_to_cpu(buffer.rds_gen_num);
223 			break;
224 		default:
225 			pr_warn_ratelimited("ignoring unknown exthdr type "
226 					     "0x%x\n", type);
227 		}
228 	}
229 	/* if RDS_EXTHDR_NPATHS was not found, default to a single-path */
230 	conn->c_npaths = max_t(int, conn->c_npaths, 1);
231 	conn->c_ping_triggered = 0;
232 	rds_conn_peer_gen_update(conn, new_peer_gen_num);
233 
234 	if (conn->c_npaths > 1 &&
235 	    conn->c_trans->conn_slots_available)
236 		conn->c_trans->conn_slots_available(conn);
237 }
238 
239 /* rds_start_mprds() will synchronously start multiple paths when appropriate.
240  * The scheme is based on the following rules:
241  *
242  * 1. rds_sendmsg on first connect attempt sends the probe ping, with the
243  *    sender's npaths (s_npaths)
244  * 2. rcvr of probe-ping knows the mprds_paths = min(s_npaths, r_npaths). It
245  *    sends back a probe-pong with r_npaths. After that, if rcvr is the
246  *    smaller ip addr, it starts rds_conn_path_connect_if_down on all
247  *    mprds_paths.
248  * 3. sender gets woken up, and can move to rds_conn_path_connect_if_down.
249  *    If it is the smaller ipaddr, rds_conn_path_connect_if_down can be
250  *    called after reception of the probe-pong on all mprds_paths.
251  *    Otherwise (sender of probe-ping is not the smaller ip addr): just call
252  *    rds_conn_path_connect_if_down on the hashed path. (see rule 4)
253  * 4. rds_connect_worker must only trigger a connection if laddr < faddr.
254  * 5. sender may end up queuing the packet on the cp. will get sent out later.
255  *    when connection is completed.
256  */
257 static void rds_start_mprds(struct rds_connection *conn)
258 {
259 	int i;
260 	struct rds_conn_path *cp;
261 
262 	if (conn->c_npaths > 1 &&
263 	    rds_addr_cmp(&conn->c_laddr, &conn->c_faddr) < 0) {
264 		for (i = 0; i < conn->c_npaths; i++) {
265 			cp = &conn->c_path[i];
266 			rds_conn_path_connect_if_down(cp);
267 		}
268 	}
269 }
270 
271 /*
272  * The transport must make sure that this is serialized against other
273  * rx and conn reset on this specific conn.
274  *
275  * We currently assert that only one fragmented message will be sent
276  * down a connection at a time.  This lets us reassemble in the conn
277  * instead of per-flow which means that we don't have to go digging through
278  * flows to tear down partial reassembly progress on conn failure and
279  * we save flow lookup and locking for each frag arrival.  It does mean
280  * that small messages will wait behind large ones.  Fragmenting at all
281  * is only to reduce the memory consumption of pre-posted buffers.
282  *
283  * The caller passes in saddr and daddr instead of us getting it from the
284  * conn.  This lets loopback, who only has one conn for both directions,
285  * tell us which roles the addrs in the conn are playing for this message.
286  */
287 void rds_recv_incoming(struct rds_connection *conn, struct in6_addr *saddr,
288 		       struct in6_addr *daddr,
289 		       struct rds_incoming *inc, gfp_t gfp)
290 {
291 	struct rds_sock *rs = NULL;
292 	struct sock *sk;
293 	unsigned long flags;
294 	struct rds_conn_path *cp;
295 
296 	inc->i_conn = conn;
297 	inc->i_rx_jiffies = jiffies;
298 	if (conn->c_trans->t_mp_capable)
299 		cp = inc->i_conn_path;
300 	else
301 		cp = &conn->c_path[0];
302 
303 	rdsdebug("conn %p next %llu inc %p seq %llu len %u sport %u dport %u "
304 		 "flags 0x%x rx_jiffies %lu\n", conn,
305 		 (unsigned long long)cp->cp_next_rx_seq,
306 		 inc,
307 		 (unsigned long long)be64_to_cpu(inc->i_hdr.h_sequence),
308 		 be32_to_cpu(inc->i_hdr.h_len),
309 		 be16_to_cpu(inc->i_hdr.h_sport),
310 		 be16_to_cpu(inc->i_hdr.h_dport),
311 		 inc->i_hdr.h_flags,
312 		 inc->i_rx_jiffies);
313 
314 	/*
315 	 * Sequence numbers should only increase.  Messages get their
316 	 * sequence number as they're queued in a sending conn.  They
317 	 * can be dropped, though, if the sending socket is closed before
318 	 * they hit the wire.  So sequence numbers can skip forward
319 	 * under normal operation.  They can also drop back in the conn
320 	 * failover case as previously sent messages are resent down the
321 	 * new instance of a conn.  We drop those, otherwise we have
322 	 * to assume that the next valid seq does not come after a
323 	 * hole in the fragment stream.
324 	 *
325 	 * The headers don't give us a way to realize if fragments of
326 	 * a message have been dropped.  We assume that frags that arrive
327 	 * to a flow are part of the current message on the flow that is
328 	 * being reassembled.  This means that senders can't drop messages
329 	 * from the sending conn until all their frags are sent.
330 	 *
331 	 * XXX we could spend more on the wire to get more robust failure
332 	 * detection, arguably worth it to avoid data corruption.
333 	 */
334 	if (be64_to_cpu(inc->i_hdr.h_sequence) < cp->cp_next_rx_seq &&
335 	    (inc->i_hdr.h_flags & RDS_FLAG_RETRANSMITTED)) {
336 		rds_stats_inc(s_recv_drop_old_seq);
337 		goto out;
338 	}
339 	cp->cp_next_rx_seq = be64_to_cpu(inc->i_hdr.h_sequence) + 1;
340 
341 	if (rds_sysctl_ping_enable && inc->i_hdr.h_dport == 0) {
342 		if (inc->i_hdr.h_sport == 0) {
343 			rdsdebug("ignore ping with 0 sport from %pI6c\n",
344 				 saddr);
345 			goto out;
346 		}
347 		rds_stats_inc(s_recv_ping);
348 		rds_send_pong(cp, inc->i_hdr.h_sport);
349 		/* if this is a handshake ping, start multipath if necessary */
350 		if (RDS_HS_PROBE(be16_to_cpu(inc->i_hdr.h_sport),
351 				 be16_to_cpu(inc->i_hdr.h_dport))) {
352 			rds_recv_hs_exthdrs(&inc->i_hdr, cp->cp_conn);
353 			rds_start_mprds(cp->cp_conn);
354 		}
355 		goto out;
356 	}
357 
358 	if (be16_to_cpu(inc->i_hdr.h_dport) ==  RDS_FLAG_PROBE_PORT &&
359 	    inc->i_hdr.h_sport == 0) {
360 		rds_recv_hs_exthdrs(&inc->i_hdr, cp->cp_conn);
361 		/* if this is a handshake pong, start multipath if necessary */
362 		rds_start_mprds(cp->cp_conn);
363 		wake_up(&cp->cp_conn->c_hs_waitq);
364 		goto out;
365 	}
366 
367 	rs = rds_find_bound(daddr, inc->i_hdr.h_dport, conn->c_bound_if);
368 	if (!rs) {
369 		rds_stats_inc(s_recv_drop_no_sock);
370 		goto out;
371 	}
372 
373 	/* Process extension headers */
374 	rds_recv_incoming_exthdrs(inc, rs);
375 
376 	/* We can be racing with rds_release() which marks the socket dead. */
377 	sk = rds_rs_to_sk(rs);
378 
379 	/* serialize with rds_release -> sock_orphan */
380 	write_lock_irqsave(&rs->rs_recv_lock, flags);
381 	if (!sock_flag(sk, SOCK_DEAD)) {
382 		rdsdebug("adding inc %p to rs %p's recv queue\n", inc, rs);
383 		rds_stats_inc(s_recv_queued);
384 		rds_recv_rcvbuf_delta(rs, sk, inc->i_conn->c_lcong,
385 				      be32_to_cpu(inc->i_hdr.h_len),
386 				      inc->i_hdr.h_dport);
387 		if (sock_flag(sk, SOCK_RCVTSTAMP))
388 			inc->i_usercopy.rx_tstamp = ktime_get_real();
389 		rds_inc_addref(inc);
390 		inc->i_rx_lat_trace[RDS_MSG_RX_END] = local_clock();
391 		list_add_tail(&inc->i_item, &rs->rs_recv_queue);
392 		__rds_wake_sk_sleep(sk);
393 	} else {
394 		rds_stats_inc(s_recv_drop_dead_sock);
395 	}
396 	write_unlock_irqrestore(&rs->rs_recv_lock, flags);
397 
398 out:
399 	if (rs)
400 		rds_sock_put(rs);
401 }
402 EXPORT_SYMBOL_GPL(rds_recv_incoming);
403 
404 /*
405  * be very careful here.  This is being called as the condition in
406  * wait_event_*() needs to cope with being called many times.
407  */
408 static int rds_next_incoming(struct rds_sock *rs, struct rds_incoming **inc)
409 {
410 	unsigned long flags;
411 
412 	if (!*inc) {
413 		read_lock_irqsave(&rs->rs_recv_lock, flags);
414 		if (!list_empty(&rs->rs_recv_queue)) {
415 			*inc = list_entry(rs->rs_recv_queue.next,
416 					  struct rds_incoming,
417 					  i_item);
418 			rds_inc_addref(*inc);
419 		}
420 		read_unlock_irqrestore(&rs->rs_recv_lock, flags);
421 	}
422 
423 	return *inc != NULL;
424 }
425 
426 static int rds_still_queued(struct rds_sock *rs, struct rds_incoming *inc,
427 			    int drop)
428 {
429 	struct sock *sk = rds_rs_to_sk(rs);
430 	int ret = 0;
431 	unsigned long flags;
432 	struct rds_incoming *to_drop = NULL;
433 
434 	write_lock_irqsave(&rs->rs_recv_lock, flags);
435 	if (!list_empty(&inc->i_item)) {
436 		ret = 1;
437 		if (drop) {
438 			/* XXX make sure this i_conn is reliable */
439 			rds_recv_rcvbuf_delta(rs, sk, inc->i_conn->c_lcong,
440 					      -be32_to_cpu(inc->i_hdr.h_len),
441 					      inc->i_hdr.h_dport);
442 			list_del_init(&inc->i_item);
443 			to_drop = inc;
444 		}
445 	}
446 	write_unlock_irqrestore(&rs->rs_recv_lock, flags);
447 
448 	if (to_drop)
449 		rds_inc_put(to_drop);
450 
451 	rdsdebug("inc %p rs %p still %d dropped %d\n", inc, rs, ret, drop);
452 	return ret;
453 }
454 
455 /*
456  * Pull errors off the error queue.
457  * If msghdr is NULL, we will just purge the error queue.
458  */
459 int rds_notify_queue_get(struct rds_sock *rs, struct msghdr *msghdr)
460 {
461 	struct rds_notifier *notifier;
462 	struct rds_rdma_notify cmsg;
463 	unsigned int count = 0, max_messages = ~0U;
464 	unsigned long flags;
465 	LIST_HEAD(copy);
466 	int err = 0;
467 
468 	memset(&cmsg, 0, sizeof(cmsg));	/* fill holes with zero */
469 
470 	/* put_cmsg copies to user space and thus may sleep. We can't do this
471 	 * with rs_lock held, so first grab as many notifications as we can stuff
472 	 * in the user provided cmsg buffer. We don't try to copy more, to avoid
473 	 * losing notifications - except when the buffer is so small that it wouldn't
474 	 * even hold a single notification. Then we give him as much of this single
475 	 * msg as we can squeeze in, and set MSG_CTRUNC.
476 	 */
477 	if (msghdr) {
478 		max_messages = msghdr->msg_controllen / CMSG_SPACE(sizeof(cmsg));
479 		if (!max_messages)
480 			max_messages = 1;
481 	}
482 
483 	spin_lock_irqsave(&rs->rs_lock, flags);
484 	while (!list_empty(&rs->rs_notify_queue) && count < max_messages) {
485 		notifier = list_entry(rs->rs_notify_queue.next,
486 				struct rds_notifier, n_list);
487 		list_move(&notifier->n_list, &copy);
488 		count++;
489 	}
490 	spin_unlock_irqrestore(&rs->rs_lock, flags);
491 
492 	if (!count)
493 		return 0;
494 
495 	while (!list_empty(&copy)) {
496 		notifier = list_entry(copy.next, struct rds_notifier, n_list);
497 
498 		if (msghdr) {
499 			cmsg.user_token = notifier->n_user_token;
500 			cmsg.status = notifier->n_status;
501 
502 			err = put_cmsg(msghdr, SOL_RDS, RDS_CMSG_RDMA_STATUS,
503 				       sizeof(cmsg), &cmsg);
504 			if (err)
505 				break;
506 		}
507 
508 		list_del_init(&notifier->n_list);
509 		kfree(notifier);
510 	}
511 
512 	/* If we bailed out because of an error in put_cmsg,
513 	 * we may be left with one or more notifications that we
514 	 * didn't process. Return them to the head of the list. */
515 	if (!list_empty(&copy)) {
516 		spin_lock_irqsave(&rs->rs_lock, flags);
517 		list_splice(&copy, &rs->rs_notify_queue);
518 		spin_unlock_irqrestore(&rs->rs_lock, flags);
519 	}
520 
521 	return err;
522 }
523 
524 /*
525  * Queue a congestion notification
526  */
527 static int rds_notify_cong(struct rds_sock *rs, struct msghdr *msghdr)
528 {
529 	uint64_t notify = rs->rs_cong_notify;
530 	unsigned long flags;
531 	int err;
532 
533 	err = put_cmsg(msghdr, SOL_RDS, RDS_CMSG_CONG_UPDATE,
534 			sizeof(notify), &notify);
535 	if (err)
536 		return err;
537 
538 	spin_lock_irqsave(&rs->rs_lock, flags);
539 	rs->rs_cong_notify &= ~notify;
540 	spin_unlock_irqrestore(&rs->rs_lock, flags);
541 
542 	return 0;
543 }
544 
545 /*
546  * Receive any control messages.
547  */
548 static int rds_cmsg_recv(struct rds_incoming *inc, struct msghdr *msg,
549 			 struct rds_sock *rs)
550 {
551 	int ret = 0;
552 
553 	if (inc->i_usercopy.rdma_cookie) {
554 		ret = put_cmsg(msg, SOL_RDS, RDS_CMSG_RDMA_DEST,
555 				sizeof(inc->i_usercopy.rdma_cookie),
556 				&inc->i_usercopy.rdma_cookie);
557 		if (ret)
558 			goto out;
559 	}
560 
561 	if ((inc->i_usercopy.rx_tstamp != 0) &&
562 	    sock_flag(rds_rs_to_sk(rs), SOCK_RCVTSTAMP)) {
563 		struct __kernel_old_timeval tv =
564 			ns_to_kernel_old_timeval(inc->i_usercopy.rx_tstamp);
565 
566 		if (!sock_flag(rds_rs_to_sk(rs), SOCK_TSTAMP_NEW)) {
567 			ret = put_cmsg(msg, SOL_SOCKET, SO_TIMESTAMP_OLD,
568 				       sizeof(tv), &tv);
569 		} else {
570 			struct __kernel_sock_timeval sk_tv;
571 
572 			sk_tv.tv_sec = tv.tv_sec;
573 			sk_tv.tv_usec = tv.tv_usec;
574 
575 			ret = put_cmsg(msg, SOL_SOCKET, SO_TIMESTAMP_NEW,
576 				       sizeof(sk_tv), &sk_tv);
577 		}
578 
579 		if (ret)
580 			goto out;
581 	}
582 
583 	if (rs->rs_rx_traces) {
584 		struct rds_cmsg_rx_trace t;
585 		int i, j;
586 
587 		memset(&t, 0, sizeof(t));
588 		inc->i_rx_lat_trace[RDS_MSG_RX_CMSG] = local_clock();
589 		t.rx_traces =  rs->rs_rx_traces;
590 		for (i = 0; i < rs->rs_rx_traces; i++) {
591 			j = rs->rs_rx_trace[i];
592 			t.rx_trace_pos[i] = j;
593 			t.rx_trace[i] = inc->i_rx_lat_trace[j + 1] -
594 					  inc->i_rx_lat_trace[j];
595 		}
596 
597 		ret = put_cmsg(msg, SOL_RDS, RDS_CMSG_RXPATH_LATENCY,
598 			       sizeof(t), &t);
599 		if (ret)
600 			goto out;
601 	}
602 
603 out:
604 	return ret;
605 }
606 
607 static bool rds_recvmsg_zcookie(struct rds_sock *rs, struct msghdr *msg)
608 {
609 	struct rds_msg_zcopy_queue *q = &rs->rs_zcookie_queue;
610 	struct rds_msg_zcopy_info *info = NULL;
611 	struct rds_zcopy_cookies *done;
612 	unsigned long flags;
613 
614 	if (!msg->msg_control)
615 		return false;
616 
617 	if (!sock_flag(rds_rs_to_sk(rs), SOCK_ZEROCOPY) ||
618 	    msg->msg_controllen < CMSG_SPACE(sizeof(*done)))
619 		return false;
620 
621 	spin_lock_irqsave(&q->lock, flags);
622 	if (!list_empty(&q->zcookie_head)) {
623 		info = list_entry(q->zcookie_head.next,
624 				  struct rds_msg_zcopy_info, rs_zcookie_next);
625 		list_del(&info->rs_zcookie_next);
626 	}
627 	spin_unlock_irqrestore(&q->lock, flags);
628 	if (!info)
629 		return false;
630 	done = &info->zcookies;
631 	if (put_cmsg(msg, SOL_RDS, RDS_CMSG_ZCOPY_COMPLETION, sizeof(*done),
632 		     done)) {
633 		spin_lock_irqsave(&q->lock, flags);
634 		list_add(&info->rs_zcookie_next, &q->zcookie_head);
635 		spin_unlock_irqrestore(&q->lock, flags);
636 		return false;
637 	}
638 	kfree(info);
639 	return true;
640 }
641 
642 int rds_recvmsg(struct socket *sock, struct msghdr *msg, size_t size,
643 		int msg_flags)
644 {
645 	struct sock *sk = sock->sk;
646 	struct rds_sock *rs = rds_sk_to_rs(sk);
647 	long timeo;
648 	int ret = 0, nonblock = msg_flags & MSG_DONTWAIT;
649 	DECLARE_SOCKADDR(struct sockaddr_in6 *, sin6, msg->msg_name);
650 	DECLARE_SOCKADDR(struct sockaddr_in *, sin, msg->msg_name);
651 	struct rds_incoming *inc = NULL;
652 
653 	/* udp_recvmsg()->sock_recvtimeo() gets away without locking too.. */
654 	timeo = sock_rcvtimeo(sk, nonblock);
655 
656 	rdsdebug("size %zu flags 0x%x timeo %ld\n", size, msg_flags, timeo);
657 
658 	if (msg_flags & MSG_OOB)
659 		goto out;
660 	if (msg_flags & MSG_ERRQUEUE)
661 		return sock_recv_errqueue(sk, msg, size, SOL_IP, IP_RECVERR);
662 
663 	while (1) {
664 		/* If there are pending notifications, do those - and nothing else */
665 		if (!list_empty(&rs->rs_notify_queue)) {
666 			ret = rds_notify_queue_get(rs, msg);
667 			break;
668 		}
669 
670 		if (rs->rs_cong_notify) {
671 			ret = rds_notify_cong(rs, msg);
672 			break;
673 		}
674 
675 		if (!rds_next_incoming(rs, &inc)) {
676 			if (nonblock) {
677 				bool reaped = rds_recvmsg_zcookie(rs, msg);
678 
679 				ret = reaped ?  0 : -EAGAIN;
680 				break;
681 			}
682 
683 			timeo = wait_event_interruptible_timeout(*sk_sleep(sk),
684 					(!list_empty(&rs->rs_notify_queue) ||
685 					 rs->rs_cong_notify ||
686 					 rds_next_incoming(rs, &inc)), timeo);
687 			rdsdebug("recvmsg woke inc %p timeo %ld\n", inc,
688 				 timeo);
689 			if (timeo > 0 || timeo == MAX_SCHEDULE_TIMEOUT)
690 				continue;
691 
692 			ret = timeo;
693 			if (ret == 0)
694 				ret = -ETIMEDOUT;
695 			break;
696 		}
697 
698 		rdsdebug("copying inc %p from %pI6c:%u to user\n", inc,
699 			 &inc->i_conn->c_faddr,
700 			 ntohs(inc->i_hdr.h_sport));
701 		ret = inc->i_conn->c_trans->inc_copy_to_user(inc, &msg->msg_iter);
702 		if (ret < 0)
703 			break;
704 
705 		/*
706 		 * if the message we just copied isn't at the head of the
707 		 * recv queue then someone else raced us to return it, try
708 		 * to get the next message.
709 		 */
710 		if (!rds_still_queued(rs, inc, !(msg_flags & MSG_PEEK))) {
711 			rds_inc_put(inc);
712 			inc = NULL;
713 			rds_stats_inc(s_recv_deliver_raced);
714 			iov_iter_revert(&msg->msg_iter, ret);
715 			continue;
716 		}
717 
718 		if (ret < be32_to_cpu(inc->i_hdr.h_len)) {
719 			if (msg_flags & MSG_TRUNC)
720 				ret = be32_to_cpu(inc->i_hdr.h_len);
721 			msg->msg_flags |= MSG_TRUNC;
722 		}
723 
724 		if (rds_cmsg_recv(inc, msg, rs)) {
725 			ret = -EFAULT;
726 			break;
727 		}
728 		rds_recvmsg_zcookie(rs, msg);
729 
730 		rds_stats_inc(s_recv_delivered);
731 
732 		if (msg->msg_name) {
733 			if (ipv6_addr_v4mapped(&inc->i_saddr)) {
734 				sin->sin_family = AF_INET;
735 				sin->sin_port = inc->i_hdr.h_sport;
736 				sin->sin_addr.s_addr =
737 				    inc->i_saddr.s6_addr32[3];
738 				memset(sin->sin_zero, 0, sizeof(sin->sin_zero));
739 				msg->msg_namelen = sizeof(*sin);
740 			} else {
741 				sin6->sin6_family = AF_INET6;
742 				sin6->sin6_port = inc->i_hdr.h_sport;
743 				sin6->sin6_addr = inc->i_saddr;
744 				sin6->sin6_flowinfo = 0;
745 				sin6->sin6_scope_id = rs->rs_bound_scope_id;
746 				msg->msg_namelen = sizeof(*sin6);
747 			}
748 		}
749 		break;
750 	}
751 
752 	if (inc)
753 		rds_inc_put(inc);
754 
755 out:
756 	return ret;
757 }
758 
759 /*
760  * The socket is being shut down and we're asked to drop messages that were
761  * queued for recvmsg.  The caller has unbound the socket so the receive path
762  * won't queue any more incoming fragments or messages on the socket.
763  */
764 void rds_clear_recv_queue(struct rds_sock *rs)
765 {
766 	struct sock *sk = rds_rs_to_sk(rs);
767 	struct rds_incoming *inc, *tmp;
768 	unsigned long flags;
769 	LIST_HEAD(to_drop);
770 
771 	write_lock_irqsave(&rs->rs_recv_lock, flags);
772 	list_for_each_entry_safe(inc, tmp, &rs->rs_recv_queue, i_item) {
773 		rds_recv_rcvbuf_delta(rs, sk, inc->i_conn->c_lcong,
774 				      -be32_to_cpu(inc->i_hdr.h_len),
775 				      inc->i_hdr.h_dport);
776 		list_move(&inc->i_item, &to_drop);
777 	}
778 	write_unlock_irqrestore(&rs->rs_recv_lock, flags);
779 
780 	list_for_each_entry_safe(inc, tmp, &to_drop, i_item) {
781 		list_del_init(&inc->i_item);
782 		rds_inc_put(inc);
783 	}
784 }
785 
786 /*
787  * inc->i_saddr isn't used here because it is only set in the receive
788  * path.
789  */
790 void rds_inc_info_copy(struct rds_incoming *inc,
791 		       struct rds_info_iterator *iter,
792 		       __be32 saddr, __be32 daddr, int flip)
793 {
794 	struct rds_info_message minfo;
795 
796 	minfo.seq = be64_to_cpu(inc->i_hdr.h_sequence);
797 	minfo.len = be32_to_cpu(inc->i_hdr.h_len);
798 	minfo.tos = inc->i_conn->c_tos;
799 
800 	if (flip) {
801 		minfo.laddr = daddr;
802 		minfo.faddr = saddr;
803 		minfo.lport = inc->i_hdr.h_dport;
804 		minfo.fport = inc->i_hdr.h_sport;
805 	} else {
806 		minfo.laddr = saddr;
807 		minfo.faddr = daddr;
808 		minfo.lport = inc->i_hdr.h_sport;
809 		minfo.fport = inc->i_hdr.h_dport;
810 	}
811 
812 	minfo.flags = 0;
813 
814 	rds_info_copy(iter, &minfo, sizeof(minfo));
815 }
816 
817 #if IS_ENABLED(CONFIG_IPV6)
818 void rds6_inc_info_copy(struct rds_incoming *inc,
819 			struct rds_info_iterator *iter,
820 			struct in6_addr *saddr, struct in6_addr *daddr,
821 			int flip)
822 {
823 	struct rds6_info_message minfo6;
824 
825 	minfo6.seq = be64_to_cpu(inc->i_hdr.h_sequence);
826 	minfo6.len = be32_to_cpu(inc->i_hdr.h_len);
827 	minfo6.tos = inc->i_conn->c_tos;
828 
829 	if (flip) {
830 		minfo6.laddr = *daddr;
831 		minfo6.faddr = *saddr;
832 		minfo6.lport = inc->i_hdr.h_dport;
833 		minfo6.fport = inc->i_hdr.h_sport;
834 	} else {
835 		minfo6.laddr = *saddr;
836 		minfo6.faddr = *daddr;
837 		minfo6.lport = inc->i_hdr.h_sport;
838 		minfo6.fport = inc->i_hdr.h_dport;
839 	}
840 
841 	minfo6.flags = 0;
842 
843 	rds_info_copy(iter, &minfo6, sizeof(minfo6));
844 }
845 #endif
846