xref: /linux/net/rds/send.c (revision adf50c47a47f0f0f0b79dd58ffade9919cddebea)
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/moduleparam.h>
35 #include <linux/gfp.h>
36 #include <net/sock.h>
37 #include <linux/in.h>
38 #include <linux/list.h>
39 #include <linux/ratelimit.h>
40 #include <linux/export.h>
41 #include <linux/sizes.h>
42 
43 #include "rds.h"
44 
45 /* When transmitting messages in rds_send_xmit, we need to emerge from
46  * time to time and briefly release the CPU. Otherwise the softlock watchdog
47  * will kick our shin.
48  * Also, it seems fairer to not let one busy connection stall all the
49  * others.
50  *
51  * send_batch_count is the number of times we'll loop in send_xmit. Setting
52  * it to 0 will restore the old behavior (where we looped until we had
53  * drained the queue).
54  */
55 static int send_batch_count = SZ_1K;
56 module_param(send_batch_count, int, 0444);
57 MODULE_PARM_DESC(send_batch_count, " batch factor when working the send queue");
58 
59 static void rds_send_remove_from_sock(struct list_head *messages, int status);
60 
61 /*
62  * Reset the send state.  Callers must ensure that this doesn't race with
63  * rds_send_xmit().
64  */
65 void rds_send_path_reset(struct rds_conn_path *cp)
66 {
67 	struct rds_message *rm, *tmp;
68 	unsigned long flags;
69 
70 	if (cp->cp_xmit_rm) {
71 		rm = cp->cp_xmit_rm;
72 		cp->cp_xmit_rm = NULL;
73 		/* Tell the user the RDMA op is no longer mapped by the
74 		 * transport. This isn't entirely true (it's flushed out
75 		 * independently) but as the connection is down, there's
76 		 * no ongoing RDMA to/from that memory */
77 		rds_message_unmapped(rm);
78 		rds_message_put(rm);
79 	}
80 
81 	cp->cp_xmit_sg = 0;
82 	cp->cp_xmit_hdr_off = 0;
83 	cp->cp_xmit_data_off = 0;
84 	cp->cp_xmit_atomic_sent = 0;
85 	cp->cp_xmit_rdma_sent = 0;
86 	cp->cp_xmit_data_sent = 0;
87 
88 	cp->cp_conn->c_map_queued = 0;
89 
90 	cp->cp_unacked_packets = rds_sysctl_max_unacked_packets;
91 	cp->cp_unacked_bytes = rds_sysctl_max_unacked_bytes;
92 
93 	/* Mark messages as retransmissions, and move them to the send q */
94 	spin_lock_irqsave(&cp->cp_lock, flags);
95 	list_for_each_entry_safe(rm, tmp, &cp->cp_retrans, m_conn_item) {
96 		set_bit(RDS_MSG_ACK_REQUIRED, &rm->m_flags);
97 		set_bit(RDS_MSG_RETRANSMITTED, &rm->m_flags);
98 	}
99 	list_splice_init(&cp->cp_retrans, &cp->cp_send_queue);
100 	spin_unlock_irqrestore(&cp->cp_lock, flags);
101 }
102 EXPORT_SYMBOL_GPL(rds_send_path_reset);
103 
104 static int acquire_in_xmit(struct rds_conn_path *cp)
105 {
106 	return test_and_set_bit_lock(RDS_IN_XMIT, &cp->cp_flags) == 0;
107 }
108 
109 static void release_in_xmit(struct rds_conn_path *cp)
110 {
111 	clear_bit_unlock(RDS_IN_XMIT, &cp->cp_flags);
112 	/*
113 	 * We don't use wait_on_bit()/wake_up_bit() because our waking is in a
114 	 * hot path and finding waiters is very rare.  We don't want to walk
115 	 * the system-wide hashed waitqueue buckets in the fast path only to
116 	 * almost never find waiters.
117 	 *
118 	 * wq_has_sleeper() supplies the full barrier that orders the wait
119 	 * queue read after the bit clear; clear_bit_unlock() alone is only
120 	 * a release and would let this check read a stale empty queue,
121 	 * losing the wake-up.
122 	 */
123 	if (wq_has_sleeper(&cp->cp_waitq))
124 		wake_up_all(&cp->cp_waitq);
125 }
126 
127 /*
128  * Helper function for multipath fanout to ensure lane 0 transmits queued
129  * messages before other lanes to prevent out-of-order delivery.
130  *
131  * Returns true if lane 0 still has messages or false otherwise
132  */
133 static bool rds_mprds_cp0_catchup(struct rds_connection *conn)
134 {
135 	struct rds_conn_path *cp0 = conn->c_path;
136 	struct rds_message *rm0;
137 	unsigned long flags;
138 	bool ret = false;
139 
140 	spin_lock_irqsave(&cp0->cp_lock, flags);
141 
142 	/* the oldest / first message in the retransmit queue
143 	 * has to be at or beyond c_cp0_mprds_catchup_tx_seq
144 	 */
145 	if (!list_empty(&cp0->cp_retrans)) {
146 		rm0 = list_entry(cp0->cp_retrans.next, struct rds_message,
147 				 m_conn_item);
148 		if (be64_to_cpu(rm0->m_inc.i_hdr.h_sequence) <
149 		    conn->c_cp0_mprds_catchup_tx_seq) {
150 			/* the retransmit queue of cp_index#0 has not
151 			 * quite caught up yet
152 			 */
153 			ret = true;
154 			goto unlock;
155 		}
156 	}
157 
158 	/* the oldest / first message of the send queue
159 	 * has to be at or beyond c_cp0_mprds_catchup_tx_seq
160 	 */
161 	rm0 = cp0->cp_xmit_rm;
162 	if (!rm0 && !list_empty(&cp0->cp_send_queue))
163 		rm0 = list_entry(cp0->cp_send_queue.next, struct rds_message,
164 				 m_conn_item);
165 	if (rm0 && be64_to_cpu(rm0->m_inc.i_hdr.h_sequence) <
166 	    conn->c_cp0_mprds_catchup_tx_seq) {
167 		/* the send queue of cp_index#0 has not quite
168 		 * caught up yet
169 		 */
170 		ret = true;
171 	}
172 
173 unlock:
174 	spin_unlock_irqrestore(&cp0->cp_lock, flags);
175 	return ret;
176 }
177 
178 /*
179  * We're making the conscious trade-off here to only send one message
180  * down the connection at a time.
181  *   Pro:
182  *      - tx queueing is a simple fifo list
183  *   	- reassembly is optional and easily done by transports per conn
184  *      - no per flow rx lookup at all, straight to the socket
185  *   	- less per-frag memory and wire overhead
186  *   Con:
187  *      - queued acks can be delayed behind large messages
188  *   Depends:
189  *      - small message latency is higher behind queued large messages
190  *      - large message latency isn't starved by intervening small sends
191  */
192 int rds_send_xmit(struct rds_conn_path *cp)
193 {
194 	struct rds_connection *conn = cp->cp_conn;
195 	struct rds_message *rm;
196 	unsigned long flags;
197 	unsigned int tmp;
198 	struct scatterlist *sg;
199 	int ret = 0;
200 	LIST_HEAD(to_be_dropped);
201 	int batch_count;
202 	unsigned long send_gen = 0;
203 	int same_rm = 0;
204 
205 restart:
206 	batch_count = 0;
207 
208 	/* The drop processing after over_batch relies on
209 	 * rds_send_remove_from_sock() emptying to_be_dropped entry by
210 	 * entry; warn if that post-condition ever stops holding, and
211 	 * re-initialize the list head.
212 	 */
213 	WARN_ON_ONCE(!list_empty(&to_be_dropped));
214 	INIT_LIST_HEAD(&to_be_dropped);
215 
216 	/*
217 	 * sendmsg calls here after having queued its message on the send
218 	 * queue.  We only have one task feeding the connection at a time.  If
219 	 * another thread is already feeding the queue then we back off.  This
220 	 * avoids blocking the caller and trading per-connection data between
221 	 * caches per message.
222 	 */
223 	if (!acquire_in_xmit(cp)) {
224 		rds_stats_inc(s_send_lock_contention);
225 		ret = -ENOMEM;
226 		goto out;
227 	}
228 
229 	if (rds_destroy_pending(cp->cp_conn)) {
230 		release_in_xmit(cp);
231 		ret = -ENETUNREACH; /* dont requeue send work */
232 		goto out;
233 	}
234 
235 	/*
236 	 * we record the send generation after doing the xmit acquire.
237 	 * if someone else manages to jump in and do some work, we'll use
238 	 * this to avoid a goto restart farther down.
239 	 *
240 	 * The acquire_in_xmit() check above ensures that only one
241 	 * caller can increment c_send_gen at any time.
242 	 */
243 	send_gen = READ_ONCE(cp->cp_send_gen) + 1;
244 	WRITE_ONCE(cp->cp_send_gen, send_gen);
245 
246 	/*
247 	 * rds_conn_shutdown() sets the conn state and then acquires
248 	 * RDS_IN_XMIT; we take the lock first and then check the state.
249 	 * Ownership is decided by the atomic RMW on the cp_flags word:
250 	 * if the teardown won the bit we back off here, and if we won
251 	 * it the teardown waits until we release it.
252 	 */
253 	if (!rds_conn_path_up(cp)) {
254 		release_in_xmit(cp);
255 		ret = 0;
256 		goto out;
257 	}
258 
259 	if (conn->c_trans->xmit_path_prepare)
260 		conn->c_trans->xmit_path_prepare(cp);
261 
262 	/*
263 	 * spin trying to push headers and data down the connection until
264 	 * the connection doesn't make forward progress.
265 	 */
266 	while (1) {
267 
268 		rm = cp->cp_xmit_rm;
269 
270 		if (!rm) {
271 			same_rm = 0;
272 		} else {
273 			same_rm++;
274 			if (same_rm >= 4096) {
275 				rds_stats_inc(s_send_stuck_rm);
276 				ret = -EAGAIN;
277 				break;
278 			}
279 		}
280 
281 		/*
282 		 * If between sending messages, we can send a pending congestion
283 		 * map update.
284 		 */
285 		if (!rm && test_and_clear_bit(0, &conn->c_map_queued)) {
286 			rm = rds_cong_update_alloc(conn);
287 			if (IS_ERR(rm)) {
288 				ret = PTR_ERR(rm);
289 				break;
290 			}
291 			rm->data.op_active = 1;
292 			rm->m_inc.i_conn_path = cp;
293 			rm->m_inc.i_conn = cp->cp_conn;
294 
295 			cp->cp_xmit_rm = rm;
296 		}
297 
298 		/*
299 		 * If not already working on one, grab the next message.
300 		 *
301 		 * cp_xmit_rm holds a ref while we're sending this message down
302 		 * the connection.  We can use this ref while holding the
303 		 * send_sem.. rds_send_path_reset() is serialized with it.
304 		 */
305 		if (!rm) {
306 			unsigned int len;
307 
308 			batch_count++;
309 
310 			/* we want to process as big a batch as we can, but
311 			 * we also want to avoid softlockups.  If we've been
312 			 * through a lot of messages, lets back off and see
313 			 * if anyone else jumps in
314 			 */
315 			if (batch_count >= send_batch_count)
316 				goto over_batch;
317 
318 			/* make sure cp_index#0 caught up during fan-out in
319 			 * order to avoid lane races
320 			 */
321 			if (cp->cp_index > 0 && rds_mprds_cp0_catchup(conn)) {
322 				rds_stats_inc(s_mprds_catchup_tx0_retries);
323 				goto over_batch;
324 			}
325 
326 			spin_lock_irqsave(&cp->cp_lock, flags);
327 
328 			if (!list_empty(&cp->cp_send_queue)) {
329 				rm = list_entry(cp->cp_send_queue.next,
330 						struct rds_message,
331 						m_conn_item);
332 				rds_message_addref(rm);
333 
334 				/*
335 				 * Move the message from the send queue to the retransmit
336 				 * list right away.
337 				 */
338 				list_move_tail(&rm->m_conn_item,
339 					       &cp->cp_retrans);
340 			}
341 
342 			spin_unlock_irqrestore(&cp->cp_lock, flags);
343 
344 			if (!rm)
345 				break;
346 
347 			/* Unfortunately, the way Infiniband deals with
348 			 * RDMA to a bad MR key is by moving the entire
349 			 * queue pair to error state. We could possibly
350 			 * recover from that, but right now we drop the
351 			 * connection.
352 			 * Therefore, we never retransmit messages with RDMA ops.
353 			 */
354 			if (test_bit(RDS_MSG_FLUSH, &rm->m_flags) ||
355 			    (rm->rdma.op_active &&
356 			    test_bit(RDS_MSG_RETRANSMITTED, &rm->m_flags))) {
357 				spin_lock_irqsave(&cp->cp_lock, flags);
358 				if (test_and_clear_bit(RDS_MSG_ON_CONN,
359 						       &rm->m_flags)) {
360 					/* our ref is put after the batch */
361 					list_move(&rm->m_conn_item,
362 						  &to_be_dropped);
363 					spin_unlock_irqrestore(&cp->cp_lock,
364 							       flags);
365 				} else {
366 					/* already off the conn list; drop
367 					 * the ref taken above ourselves
368 					 */
369 					spin_unlock_irqrestore(&cp->cp_lock,
370 							       flags);
371 					rds_message_put(rm);
372 				}
373 				continue;
374 			}
375 
376 			/* Require an ACK every once in a while */
377 			len = ntohl(rm->m_inc.i_hdr.h_len);
378 			if (cp->cp_unacked_packets == 0 ||
379 			    cp->cp_unacked_bytes < len) {
380 				set_bit(RDS_MSG_ACK_REQUIRED, &rm->m_flags);
381 
382 				cp->cp_unacked_packets =
383 					rds_sysctl_max_unacked_packets;
384 				cp->cp_unacked_bytes =
385 					rds_sysctl_max_unacked_bytes;
386 				rds_stats_inc(s_send_ack_required);
387 			} else {
388 				cp->cp_unacked_bytes -= len;
389 				cp->cp_unacked_packets--;
390 			}
391 
392 			cp->cp_xmit_rm = rm;
393 		}
394 
395 		/* The transport either sends the whole rdma or none of it */
396 		if (rm->rdma.op_active && !cp->cp_xmit_rdma_sent) {
397 			rm->m_final_op = &rm->rdma;
398 			/* The transport owns the mapped memory for now.
399 			 * You can't unmap it while it's on the send queue
400 			 */
401 			set_bit(RDS_MSG_MAPPED, &rm->m_flags);
402 			ret = conn->c_trans->xmit_rdma(conn, &rm->rdma);
403 			if (ret) {
404 				clear_bit(RDS_MSG_MAPPED, &rm->m_flags);
405 				wake_up_interruptible(&rm->m_flush_wait);
406 				break;
407 			}
408 			cp->cp_xmit_rdma_sent = 1;
409 
410 		}
411 
412 		if (rm->atomic.op_active && !cp->cp_xmit_atomic_sent) {
413 			rm->m_final_op = &rm->atomic;
414 			/* The transport owns the mapped memory for now.
415 			 * You can't unmap it while it's on the send queue
416 			 */
417 			set_bit(RDS_MSG_MAPPED, &rm->m_flags);
418 			ret = conn->c_trans->xmit_atomic(conn, &rm->atomic);
419 			if (ret) {
420 				clear_bit(RDS_MSG_MAPPED, &rm->m_flags);
421 				wake_up_interruptible(&rm->m_flush_wait);
422 				break;
423 			}
424 			cp->cp_xmit_atomic_sent = 1;
425 
426 		}
427 
428 		/*
429 		 * A number of cases require an RDS header to be sent
430 		 * even if there is no data.
431 		 * We permit 0-byte sends; rds-ping depends on this.
432 		 * However, if there are exclusively attached silent ops,
433 		 * we skip the hdr/data send, to enable silent operation.
434 		 */
435 		if (rm->data.op_nents == 0) {
436 			int ops_present;
437 			int all_ops_are_silent = 1;
438 
439 			ops_present = (rm->atomic.op_active || rm->rdma.op_active);
440 			if (rm->atomic.op_active && !rm->atomic.op_silent)
441 				all_ops_are_silent = 0;
442 			if (rm->rdma.op_active && !rm->rdma.op_silent)
443 				all_ops_are_silent = 0;
444 
445 			if (ops_present && all_ops_are_silent
446 			    && !rm->m_rdma_cookie)
447 				rm->data.op_active = 0;
448 		}
449 
450 		if (rm->data.op_active && !cp->cp_xmit_data_sent) {
451 			rm->m_final_op = &rm->data;
452 
453 			ret = conn->c_trans->xmit(conn, rm,
454 						  cp->cp_xmit_hdr_off,
455 						  cp->cp_xmit_sg,
456 						  cp->cp_xmit_data_off);
457 			if (ret <= 0)
458 				break;
459 
460 			if (cp->cp_xmit_hdr_off < sizeof(struct rds_header)) {
461 				tmp = min_t(int, ret,
462 					    sizeof(struct rds_header) -
463 					    cp->cp_xmit_hdr_off);
464 				cp->cp_xmit_hdr_off += tmp;
465 				ret -= tmp;
466 			}
467 
468 			sg = &rm->data.op_sg[cp->cp_xmit_sg];
469 			while (ret) {
470 				tmp = min_t(int, ret, sg->length -
471 						      cp->cp_xmit_data_off);
472 				cp->cp_xmit_data_off += tmp;
473 				ret -= tmp;
474 				if (cp->cp_xmit_data_off == sg->length) {
475 					cp->cp_xmit_data_off = 0;
476 					sg++;
477 					cp->cp_xmit_sg++;
478 					BUG_ON(ret != 0 && cp->cp_xmit_sg ==
479 					       rm->data.op_nents);
480 				}
481 			}
482 
483 			if (cp->cp_xmit_hdr_off == sizeof(struct rds_header) &&
484 			    (cp->cp_xmit_sg == rm->data.op_nents))
485 				cp->cp_xmit_data_sent = 1;
486 		}
487 
488 		/*
489 		 * A rm will only take multiple times through this loop
490 		 * if there is a data op. Thus, if the data is sent (or there was
491 		 * none), then we're done with the rm.
492 		 */
493 		if (!rm->data.op_active || cp->cp_xmit_data_sent) {
494 			cp->cp_xmit_rm = NULL;
495 			cp->cp_xmit_sg = 0;
496 			cp->cp_xmit_hdr_off = 0;
497 			cp->cp_xmit_data_off = 0;
498 			cp->cp_xmit_rdma_sent = 0;
499 			cp->cp_xmit_atomic_sent = 0;
500 			cp->cp_xmit_data_sent = 0;
501 
502 			rds_message_put(rm);
503 		}
504 	}
505 
506 over_batch:
507 	if (conn->c_trans->xmit_path_complete)
508 		conn->c_trans->xmit_path_complete(cp);
509 	release_in_xmit(cp);
510 
511 	/* Nuke any messages we decided not to retransmit. */
512 	if (!list_empty(&to_be_dropped)) {
513 		/* irqs on here, so we can put(), unlike above */
514 		list_for_each_entry(rm, &to_be_dropped, m_conn_item)
515 			rds_message_put(rm);
516 		rds_send_remove_from_sock(&to_be_dropped, RDS_RDMA_DROPPED);
517 	}
518 
519 	/*
520 	 * Other senders can queue a message after we last test the send queue
521 	 * but before we clear RDS_IN_XMIT.  In that case they'd back off and
522 	 * not try and send their newly queued message.  We need to check the
523 	 * send queue after having cleared RDS_IN_XMIT so that their message
524 	 * doesn't get stuck on the send queue.
525 	 *
526 	 * If the transport cannot continue (i.e ret != 0), then it must
527 	 * call us when more room is available, such as from the tx
528 	 * completion handler.
529 	 *
530 	 * We have an extra generation check here so that if someone manages
531 	 * to jump in after our release_in_xmit, we'll see that they have done
532 	 * some work and we will skip our goto
533 	 */
534 	if (ret == 0) {
535 		bool raced;
536 
537 		smp_mb();
538 		raced = send_gen != READ_ONCE(cp->cp_send_gen);
539 
540 		if ((test_bit(0, &conn->c_map_queued) ||
541 		    !list_empty(&cp->cp_send_queue)) && !raced) {
542 			if (batch_count < send_batch_count)
543 				goto restart;
544 			rcu_read_lock();
545 			if (rds_destroy_pending(cp->cp_conn))
546 				ret = -ENETUNREACH;
547 			else
548 				queue_delayed_work(cp->cp_wq,
549 						   &cp->cp_send_w, 1);
550 			rcu_read_unlock();
551 		} else if (raced) {
552 			rds_stats_inc(s_send_lock_queue_raced);
553 		}
554 	}
555 out:
556 	return ret;
557 }
558 EXPORT_SYMBOL_GPL(rds_send_xmit);
559 
560 static void rds_send_sndbuf_remove(struct rds_sock *rs, struct rds_message *rm)
561 {
562 	u32 len = be32_to_cpu(rm->m_inc.i_hdr.h_len);
563 
564 	assert_spin_locked(&rs->rs_lock);
565 
566 	BUG_ON(rs->rs_snd_bytes < len);
567 	rs->rs_snd_bytes -= len;
568 
569 	if (rs->rs_snd_bytes == 0)
570 		rds_stats_inc(s_send_queue_empty);
571 }
572 
573 static inline int rds_send_is_acked(struct rds_message *rm, u64 ack,
574 				    is_acked_func is_acked)
575 {
576 	if (is_acked)
577 		return is_acked(rm, ack);
578 	return be64_to_cpu(rm->m_inc.i_hdr.h_sequence) <= ack;
579 }
580 
581 /*
582  * This is pretty similar to what happens below in the ACK
583  * handling code - except that we call here as soon as we get
584  * the IB send completion on the RDMA op and the accompanying
585  * message.
586  */
587 void rds_rdma_send_complete(struct rds_message *rm, int status)
588 {
589 	struct rds_sock *rs = NULL;
590 	struct rm_rdma_op *ro;
591 	struct rds_notifier *notifier;
592 	unsigned long flags;
593 
594 	spin_lock_irqsave(&rm->m_rs_lock, flags);
595 
596 	ro = &rm->rdma;
597 	if (test_bit(RDS_MSG_ON_SOCK, &rm->m_flags) &&
598 	    ro->op_active && ro->op_notify && ro->op_notifier) {
599 		notifier = ro->op_notifier;
600 		rs = rm->m_rs;
601 		sock_hold(rds_rs_to_sk(rs));
602 
603 		notifier->n_status = status;
604 		spin_lock(&rs->rs_lock);
605 		list_add_tail(&notifier->n_list, &rs->rs_notify_queue);
606 		spin_unlock(&rs->rs_lock);
607 
608 		ro->op_notifier = NULL;
609 	}
610 
611 	spin_unlock_irqrestore(&rm->m_rs_lock, flags);
612 
613 	if (rs) {
614 		rds_wake_sk_sleep(rs);
615 		sock_put(rds_rs_to_sk(rs));
616 	}
617 }
618 EXPORT_SYMBOL_GPL(rds_rdma_send_complete);
619 
620 /*
621  * Just like above, except looks at atomic op
622  */
623 void rds_atomic_send_complete(struct rds_message *rm, int status)
624 {
625 	struct rds_sock *rs = NULL;
626 	struct rm_atomic_op *ao;
627 	struct rds_notifier *notifier;
628 	unsigned long flags;
629 
630 	spin_lock_irqsave(&rm->m_rs_lock, flags);
631 
632 	ao = &rm->atomic;
633 	if (test_bit(RDS_MSG_ON_SOCK, &rm->m_flags)
634 	    && ao->op_active && ao->op_notify && ao->op_notifier) {
635 		notifier = ao->op_notifier;
636 		rs = rm->m_rs;
637 		sock_hold(rds_rs_to_sk(rs));
638 
639 		notifier->n_status = status;
640 		spin_lock(&rs->rs_lock);
641 		list_add_tail(&notifier->n_list, &rs->rs_notify_queue);
642 		spin_unlock(&rs->rs_lock);
643 
644 		ao->op_notifier = NULL;
645 	}
646 
647 	spin_unlock_irqrestore(&rm->m_rs_lock, flags);
648 
649 	if (rs) {
650 		rds_wake_sk_sleep(rs);
651 		sock_put(rds_rs_to_sk(rs));
652 	}
653 }
654 EXPORT_SYMBOL_GPL(rds_atomic_send_complete);
655 
656 /*
657  * This is the same as rds_rdma_send_complete except we
658  * don't do any locking - we have all the ingredients (message,
659  * socket, socket lock) and can just move the notifier.
660  */
661 static inline void
662 __rds_send_complete(struct rds_sock *rs, struct rds_message *rm, int status)
663 {
664 	struct rm_rdma_op *ro;
665 	struct rm_atomic_op *ao;
666 
667 	ro = &rm->rdma;
668 	if (ro->op_active && ro->op_notify && ro->op_notifier) {
669 		ro->op_notifier->n_status = status;
670 		list_add_tail(&ro->op_notifier->n_list, &rs->rs_notify_queue);
671 		ro->op_notifier = NULL;
672 	}
673 
674 	ao = &rm->atomic;
675 	if (ao->op_active && ao->op_notify && ao->op_notifier) {
676 		ao->op_notifier->n_status = status;
677 		list_add_tail(&ao->op_notifier->n_list, &rs->rs_notify_queue);
678 		ao->op_notifier = NULL;
679 	}
680 
681 	/* No need to wake the app - caller does this */
682 }
683 
684 /*
685  * This removes messages from the socket's list if they're on it.  The list
686  * argument must be private to the caller, we must be able to modify it
687  * without locks.  The messages must have a reference held for their
688  * position on the list.  This function will drop that reference after
689  * removing the messages from the 'messages' list regardless of if it found
690  * the messages on the socket list or not.
691  */
692 static void rds_send_remove_from_sock(struct list_head *messages, int status)
693 {
694 	unsigned long flags;
695 	struct rds_sock *rs = NULL;
696 	struct rds_message *rm;
697 
698 	while (!list_empty(messages)) {
699 		int was_on_sock = 0;
700 
701 		rm = list_entry(messages->next, struct rds_message,
702 				m_conn_item);
703 		list_del_init(&rm->m_conn_item);
704 
705 		/*
706 		 * If we see this flag cleared then we're *sure* that someone
707 		 * else beat us to removing it from the sock.  If we race
708 		 * with their flag update we'll get the lock and then really
709 		 * see that the flag has been cleared.
710 		 *
711 		 * The message spinlock makes sure nobody clears rm->m_rs
712 		 * while we're messing with it. It does not prevent the
713 		 * message from being removed from the socket, though.
714 		 */
715 		spin_lock_irqsave(&rm->m_rs_lock, flags);
716 		if (!test_bit(RDS_MSG_ON_SOCK, &rm->m_flags))
717 			goto unlock_and_drop;
718 
719 		if (rs != rm->m_rs) {
720 			if (rs) {
721 				rds_wake_sk_sleep(rs);
722 				sock_put(rds_rs_to_sk(rs));
723 			}
724 			rs = rm->m_rs;
725 			if (rs)
726 				sock_hold(rds_rs_to_sk(rs));
727 		}
728 		if (!rs)
729 			goto unlock_and_drop;
730 		spin_lock(&rs->rs_lock);
731 
732 		if (test_and_clear_bit(RDS_MSG_ON_SOCK, &rm->m_flags)) {
733 			struct rm_rdma_op *ro = &rm->rdma;
734 			struct rds_notifier *notifier;
735 
736 			list_del_init(&rm->m_sock_item);
737 			rds_send_sndbuf_remove(rs, rm);
738 
739 			if (ro->op_active && ro->op_notifier &&
740 			       (ro->op_notify || (ro->op_recverr && status))) {
741 				notifier = ro->op_notifier;
742 				list_add_tail(&notifier->n_list,
743 						&rs->rs_notify_queue);
744 				if (!notifier->n_status)
745 					notifier->n_status = status;
746 				rm->rdma.op_notifier = NULL;
747 			}
748 			was_on_sock = 1;
749 		}
750 		spin_unlock(&rs->rs_lock);
751 
752 unlock_and_drop:
753 		spin_unlock_irqrestore(&rm->m_rs_lock, flags);
754 		rds_message_put(rm);
755 		if (was_on_sock)
756 			rds_message_put(rm);
757 	}
758 
759 	if (rs) {
760 		rds_wake_sk_sleep(rs);
761 		sock_put(rds_rs_to_sk(rs));
762 	}
763 }
764 
765 /*
766  * Transports call here when they've determined that the receiver queued
767  * messages up to, and including, the given sequence number.  Messages are
768  * moved to the retrans queue when rds_send_xmit picks them off the send
769  * queue. This means that in the TCP case, the message may not have been
770  * assigned the m_ack_seq yet - but that's fine as long as tcp_is_acked
771  * checks the RDS_MSG_HAS_ACK_SEQ bit.
772  */
773 void rds_send_path_drop_acked(struct rds_conn_path *cp, u64 ack,
774 			      is_acked_func is_acked)
775 {
776 	struct rds_message *rm, *tmp;
777 	unsigned long flags;
778 	LIST_HEAD(list);
779 
780 	spin_lock_irqsave(&cp->cp_lock, flags);
781 
782 	list_for_each_entry_safe(rm, tmp, &cp->cp_retrans, m_conn_item) {
783 		if (!rds_send_is_acked(rm, ack, is_acked))
784 			break;
785 
786 		list_move(&rm->m_conn_item, &list);
787 		clear_bit(RDS_MSG_ON_CONN, &rm->m_flags);
788 	}
789 
790 	/* order flag updates with spin locks */
791 	if (!list_empty(&list))
792 		smp_mb__after_atomic();
793 
794 	spin_unlock_irqrestore(&cp->cp_lock, flags);
795 
796 	/* now remove the messages from the sock list as needed */
797 	rds_send_remove_from_sock(&list, RDS_RDMA_SUCCESS);
798 }
799 EXPORT_SYMBOL_GPL(rds_send_path_drop_acked);
800 
801 void rds_send_drop_acked(struct rds_connection *conn, u64 ack,
802 			 is_acked_func is_acked)
803 {
804 	WARN_ON(conn->c_trans->t_mp_capable);
805 	rds_send_path_drop_acked(&conn->c_path[0], ack, is_acked);
806 }
807 EXPORT_SYMBOL_GPL(rds_send_drop_acked);
808 
809 void rds_send_drop_to(struct rds_sock *rs, struct sockaddr_in6 *dest)
810 {
811 	struct rds_message *rm, *tmp;
812 	struct rds_connection *conn;
813 	struct rds_conn_path *cp;
814 	unsigned long flags;
815 	LIST_HEAD(list);
816 
817 	/* get all the messages we're dropping under the rs lock */
818 	spin_lock_irqsave(&rs->rs_lock, flags);
819 
820 	list_for_each_entry_safe(rm, tmp, &rs->rs_send_queue, m_sock_item) {
821 		if (dest &&
822 		    (!ipv6_addr_equal(&dest->sin6_addr, &rm->m_daddr) ||
823 		     dest->sin6_port != rm->m_inc.i_hdr.h_dport))
824 			continue;
825 
826 		list_move(&rm->m_sock_item, &list);
827 		rds_send_sndbuf_remove(rs, rm);
828 		clear_bit(RDS_MSG_ON_SOCK, &rm->m_flags);
829 	}
830 
831 	/* order flag updates with the rs lock */
832 	smp_mb__after_atomic();
833 
834 	spin_unlock_irqrestore(&rs->rs_lock, flags);
835 
836 	if (list_empty(&list))
837 		return;
838 
839 	/* Remove the messages from the conn */
840 	list_for_each_entry(rm, &list, m_sock_item) {
841 
842 		conn = rm->m_inc.i_conn;
843 		if (conn->c_trans->t_mp_capable)
844 			cp = rm->m_inc.i_conn_path;
845 		else
846 			cp = &conn->c_path[0];
847 
848 		spin_lock_irqsave(&cp->cp_lock, flags);
849 		/*
850 		 * Maybe someone else beat us to removing rm from the conn.
851 		 * If we race with their flag update we'll get the lock and
852 		 * then really see that the flag has been cleared.
853 		 */
854 		if (!test_and_clear_bit(RDS_MSG_ON_CONN, &rm->m_flags)) {
855 			spin_unlock_irqrestore(&cp->cp_lock, flags);
856 			continue;
857 		}
858 		list_del_init(&rm->m_conn_item);
859 		spin_unlock_irqrestore(&cp->cp_lock, flags);
860 
861 		/*
862 		 * Couldn't grab m_rs_lock in top loop (lock ordering),
863 		 * but we can now.
864 		 */
865 		spin_lock_irqsave(&rm->m_rs_lock, flags);
866 
867 		spin_lock(&rs->rs_lock);
868 		__rds_send_complete(rs, rm, RDS_RDMA_CANCELED);
869 		spin_unlock(&rs->rs_lock);
870 
871 		spin_unlock_irqrestore(&rm->m_rs_lock, flags);
872 
873 		rds_message_put(rm);
874 	}
875 
876 	rds_wake_sk_sleep(rs);
877 
878 	while (!list_empty(&list)) {
879 		rm = list_entry(list.next, struct rds_message, m_sock_item);
880 		list_del_init(&rm->m_sock_item);
881 		rds_message_wait(rm);
882 
883 		/* just in case the code above skipped this message
884 		 * because RDS_MSG_ON_CONN wasn't set, run it again here
885 		 * taking m_rs_lock is the only thing that keeps us
886 		 * from racing with ack processing.
887 		 */
888 		spin_lock_irqsave(&rm->m_rs_lock, flags);
889 
890 		spin_lock(&rs->rs_lock);
891 		__rds_send_complete(rs, rm, RDS_RDMA_CANCELED);
892 		spin_unlock(&rs->rs_lock);
893 
894 		spin_unlock_irqrestore(&rm->m_rs_lock, flags);
895 
896 		rds_message_put(rm);
897 	}
898 }
899 
900 /*
901  * we only want this to fire once so we use the callers 'queued'.  It's
902  * possible that another thread can race with us and remove the
903  * message from the flow with RDS_CANCEL_SENT_TO.
904  */
905 static int rds_send_queue_rm(struct rds_sock *rs, struct rds_connection *conn,
906 			     struct rds_conn_path *cp,
907 			     struct rds_message *rm, __be16 sport,
908 			     __be16 dport, int *queued)
909 {
910 	unsigned long flags;
911 	u32 len;
912 
913 	if (*queued)
914 		goto out;
915 
916 	len = be32_to_cpu(rm->m_inc.i_hdr.h_len);
917 
918 	/* this is the only place which holds both the socket's rs_lock
919 	 * and the connection's c_lock */
920 	spin_lock_irqsave(&rs->rs_lock, flags);
921 
922 	/*
923 	 * If there is a little space in sndbuf, we don't queue anything,
924 	 * and userspace gets -EAGAIN. But poll() indicates there's send
925 	 * room. This can lead to bad behavior (spinning) if snd_bytes isn't
926 	 * freed up by incoming acks. So we check the *old* value of
927 	 * rs_snd_bytes here to allow the last msg to exceed the buffer,
928 	 * and poll() now knows no more data can be sent.
929 	 */
930 	if (rs->rs_snd_bytes < rds_sk_sndbuf(rs)) {
931 		rs->rs_snd_bytes += len;
932 
933 		/* let recv side know we are close to send space exhaustion.
934 		 * This is probably not the optimal way to do it, as this
935 		 * means we set the flag on *all* messages as soon as our
936 		 * throughput hits a certain threshold.
937 		 */
938 		if (rs->rs_snd_bytes >= rds_sk_sndbuf(rs) / 2)
939 			set_bit(RDS_MSG_ACK_REQUIRED, &rm->m_flags);
940 
941 		list_add_tail(&rm->m_sock_item, &rs->rs_send_queue);
942 		set_bit(RDS_MSG_ON_SOCK, &rm->m_flags);
943 		rds_message_addref(rm);
944 		sock_hold(rds_rs_to_sk(rs));
945 		rm->m_rs = rs;
946 
947 		/* The code ordering is a little weird, but we're
948 		   trying to minimize the time we hold c_lock */
949 		rds_message_populate_header(&rm->m_inc.i_hdr, sport, dport, 0);
950 		rm->m_inc.i_conn = conn;
951 		rm->m_inc.i_conn_path = cp;
952 		rds_message_addref(rm);
953 
954 		spin_lock(&cp->cp_lock);
955 		rm->m_inc.i_hdr.h_sequence = cpu_to_be64(cp->cp_next_tx_seq++);
956 		list_add_tail(&rm->m_conn_item, &cp->cp_send_queue);
957 		set_bit(RDS_MSG_ON_CONN, &rm->m_flags);
958 		spin_unlock(&cp->cp_lock);
959 
960 		rdsdebug("queued msg %p len %d, rs %p bytes %d seq %llu\n",
961 			 rm, len, rs, rs->rs_snd_bytes,
962 			 (unsigned long long)be64_to_cpu(rm->m_inc.i_hdr.h_sequence));
963 
964 		*queued = 1;
965 	}
966 
967 	spin_unlock_irqrestore(&rs->rs_lock, flags);
968 out:
969 	return *queued;
970 }
971 
972 /*
973  * rds_message is getting to be quite complicated, and we'd like to allocate
974  * it all in one go. This figures out how big it needs to be up front.
975  */
976 static int rds_rm_size(struct msghdr *msg, int num_sgs,
977 		       struct rds_iov_vector_arr *vct)
978 {
979 	struct cmsghdr *cmsg;
980 	int size = 0;
981 	int cmsg_groups = 0;
982 	int retval;
983 	bool zcopy_cookie = false;
984 	struct rds_iov_vector *iov, *tmp_iov;
985 
986 	if (num_sgs < 0)
987 		return -EINVAL;
988 
989 	for_each_cmsghdr(cmsg, msg) {
990 		if (!CMSG_OK(msg, cmsg))
991 			return -EINVAL;
992 
993 		if (cmsg->cmsg_level != SOL_RDS)
994 			continue;
995 
996 		switch (cmsg->cmsg_type) {
997 		case RDS_CMSG_RDMA_ARGS:
998 			if (cmsg->cmsg_len < CMSG_LEN(sizeof(struct rds_rdma_args)))
999 				return -EINVAL;
1000 			if (vct->indx >= vct->len) {
1001 				vct->len += vct->incr;
1002 				tmp_iov = krealloc_array(vct->vec, vct->len,
1003 							 sizeof(*vct->vec), GFP_KERNEL);
1004 				if (!tmp_iov) {
1005 					vct->len -= vct->incr;
1006 					return -ENOMEM;
1007 				}
1008 				vct->vec = tmp_iov;
1009 			}
1010 			iov = &vct->vec[vct->indx];
1011 			memset(iov, 0, sizeof(struct rds_iov_vector));
1012 			vct->indx++;
1013 			cmsg_groups |= 1;
1014 			retval = rds_rdma_extra_size(CMSG_DATA(cmsg), iov);
1015 			if (retval < 0)
1016 				return retval;
1017 			size += retval;
1018 
1019 			break;
1020 
1021 		case RDS_CMSG_ZCOPY_COOKIE:
1022 			zcopy_cookie = true;
1023 			fallthrough;
1024 
1025 		case RDS_CMSG_RDMA_DEST:
1026 		case RDS_CMSG_RDMA_MAP:
1027 			cmsg_groups |= 2;
1028 			/* these are valid but do no add any size */
1029 			break;
1030 
1031 		case RDS_CMSG_ATOMIC_CSWP:
1032 		case RDS_CMSG_ATOMIC_FADD:
1033 		case RDS_CMSG_MASKED_ATOMIC_CSWP:
1034 		case RDS_CMSG_MASKED_ATOMIC_FADD:
1035 			cmsg_groups |= 1;
1036 			size += sizeof(struct scatterlist);
1037 			break;
1038 
1039 		default:
1040 			return -EINVAL;
1041 		}
1042 
1043 	}
1044 
1045 	if ((msg->msg_flags & MSG_ZEROCOPY) && !zcopy_cookie)
1046 		return -EINVAL;
1047 
1048 	size += num_sgs * sizeof(struct scatterlist);
1049 
1050 	/* Ensure (DEST, MAP) are never used with (ARGS, ATOMIC) */
1051 	if (cmsg_groups == 3)
1052 		return -EINVAL;
1053 
1054 	return size;
1055 }
1056 
1057 static int rds_cmsg_zcopy(struct rds_sock *rs, struct rds_message *rm,
1058 			  struct cmsghdr *cmsg)
1059 {
1060 	u32 *cookie;
1061 
1062 	if (cmsg->cmsg_len < CMSG_LEN(sizeof(*cookie)) ||
1063 	    !rm->data.op_mmp_znotifier)
1064 		return -EINVAL;
1065 	cookie = CMSG_DATA(cmsg);
1066 	rm->data.op_mmp_znotifier->z_cookie = *cookie;
1067 	return 0;
1068 }
1069 
1070 static int rds_cmsg_send(struct rds_sock *rs, struct rds_message *rm,
1071 			 struct msghdr *msg, int *allocated_mr,
1072 			 struct rds_iov_vector_arr *vct)
1073 {
1074 	struct cmsghdr *cmsg;
1075 	int ret = 0, ind = 0;
1076 
1077 	for_each_cmsghdr(cmsg, msg) {
1078 		if (!CMSG_OK(msg, cmsg))
1079 			return -EINVAL;
1080 
1081 		if (cmsg->cmsg_level != SOL_RDS)
1082 			continue;
1083 
1084 		/* As a side effect, RDMA_DEST and RDMA_MAP will set
1085 		 * rm->rdma.m_rdma_cookie and rm->rdma.m_rdma_mr.
1086 		 */
1087 		switch (cmsg->cmsg_type) {
1088 		case RDS_CMSG_RDMA_ARGS:
1089 			if (ind >= vct->indx)
1090 				return -ENOMEM;
1091 			ret = rds_cmsg_rdma_args(rs, rm, cmsg, &vct->vec[ind]);
1092 			ind++;
1093 			break;
1094 
1095 		case RDS_CMSG_RDMA_DEST:
1096 			ret = rds_cmsg_rdma_dest(rs, rm, cmsg);
1097 			break;
1098 
1099 		case RDS_CMSG_RDMA_MAP:
1100 			ret = rds_cmsg_rdma_map(rs, rm, cmsg);
1101 			if (!ret)
1102 				*allocated_mr = 1;
1103 			else if (ret == -ENODEV)
1104 				/* Accommodate the get_mr() case which can fail
1105 				 * if connection isn't established yet.
1106 				 */
1107 				ret = -EAGAIN;
1108 			break;
1109 		case RDS_CMSG_ATOMIC_CSWP:
1110 		case RDS_CMSG_ATOMIC_FADD:
1111 		case RDS_CMSG_MASKED_ATOMIC_CSWP:
1112 		case RDS_CMSG_MASKED_ATOMIC_FADD:
1113 			ret = rds_cmsg_atomic(rs, rm, cmsg);
1114 			break;
1115 
1116 		case RDS_CMSG_ZCOPY_COOKIE:
1117 			ret = rds_cmsg_zcopy(rs, rm, cmsg);
1118 			break;
1119 
1120 		default:
1121 			return -EINVAL;
1122 		}
1123 
1124 		if (ret)
1125 			break;
1126 	}
1127 
1128 	return ret;
1129 }
1130 
1131 static int rds_rdma_bytes(struct msghdr *msg, size_t *rdma_bytes)
1132 {
1133 	struct rds_rdma_args *args;
1134 	struct cmsghdr *cmsg;
1135 
1136 	for_each_cmsghdr(cmsg, msg) {
1137 		if (!CMSG_OK(msg, cmsg))
1138 			return -EINVAL;
1139 
1140 		if (cmsg->cmsg_level != SOL_RDS)
1141 			continue;
1142 
1143 		if (cmsg->cmsg_type == RDS_CMSG_RDMA_ARGS) {
1144 			if (cmsg->cmsg_len <
1145 			    CMSG_LEN(sizeof(struct rds_rdma_args)))
1146 				return -EINVAL;
1147 			args = CMSG_DATA(cmsg);
1148 			*rdma_bytes += args->remote_vec.bytes;
1149 		}
1150 	}
1151 	return 0;
1152 }
1153 
1154 int rds_sendmsg(struct socket *sock, struct msghdr *msg, size_t payload_len)
1155 {
1156 	struct sock *sk = sock->sk;
1157 	struct rds_sock *rs = rds_sk_to_rs(sk);
1158 	DECLARE_SOCKADDR(struct sockaddr_in6 *, sin6, msg->msg_name);
1159 	DECLARE_SOCKADDR(struct sockaddr_in *, usin, msg->msg_name);
1160 	__be16 dport;
1161 	struct rds_message *rm = NULL;
1162 	struct rds_connection *conn;
1163 	int ret = 0;
1164 	int queued = 0, allocated_mr = 0;
1165 	int nonblock = msg->msg_flags & MSG_DONTWAIT;
1166 	long timeo = sock_sndtimeo(sk, nonblock);
1167 	struct rds_conn_path *cpath;
1168 	struct in6_addr daddr;
1169 	__u32 scope_id = 0;
1170 	size_t rdma_payload_len = 0;
1171 	bool zcopy = ((msg->msg_flags & MSG_ZEROCOPY) &&
1172 		      sock_flag(rds_rs_to_sk(rs), SOCK_ZEROCOPY));
1173 	int num_sgs = DIV_ROUND_UP(payload_len, PAGE_SIZE);
1174 	int namelen;
1175 	struct rds_iov_vector_arr vct;
1176 	int ind;
1177 
1178 	memset(&vct, 0, sizeof(vct));
1179 
1180 	/* expect 1 RDMA CMSG per rds_sendmsg. can still grow if more needed. */
1181 	vct.incr = 1;
1182 
1183 	/* Mirror Linux UDP mirror of BSD error message compatibility */
1184 	/* XXX: Perhaps MSG_MORE someday */
1185 	if (msg->msg_flags & ~(MSG_DONTWAIT | MSG_CMSG_COMPAT | MSG_ZEROCOPY)) {
1186 		ret = -EOPNOTSUPP;
1187 		goto out;
1188 	}
1189 
1190 	namelen = msg->msg_namelen;
1191 	if (namelen != 0) {
1192 		if (namelen < sizeof(*usin)) {
1193 			ret = -EINVAL;
1194 			goto out;
1195 		}
1196 		switch (usin->sin_family) {
1197 		case AF_INET:
1198 			if (usin->sin_addr.s_addr == htonl(INADDR_ANY) ||
1199 			    usin->sin_addr.s_addr == htonl(INADDR_BROADCAST) ||
1200 			    ipv4_is_multicast(usin->sin_addr.s_addr)) {
1201 				ret = -EINVAL;
1202 				goto out;
1203 			}
1204 			ipv6_addr_set_v4mapped(usin->sin_addr.s_addr, &daddr);
1205 			dport = usin->sin_port;
1206 			break;
1207 
1208 #if IS_ENABLED(CONFIG_IPV6)
1209 		case AF_INET6: {
1210 			int addr_type;
1211 
1212 			if (namelen < sizeof(*sin6)) {
1213 				ret = -EINVAL;
1214 				goto out;
1215 			}
1216 			addr_type = ipv6_addr_type(&sin6->sin6_addr);
1217 			if (!(addr_type & IPV6_ADDR_UNICAST)) {
1218 				__be32 addr4;
1219 
1220 				if (!(addr_type & IPV6_ADDR_MAPPED)) {
1221 					ret = -EINVAL;
1222 					goto out;
1223 				}
1224 
1225 				/* It is a mapped address.  Need to do some
1226 				 * sanity checks.
1227 				 */
1228 				addr4 = sin6->sin6_addr.s6_addr32[3];
1229 				if (addr4 == htonl(INADDR_ANY) ||
1230 				    addr4 == htonl(INADDR_BROADCAST) ||
1231 				    ipv4_is_multicast(addr4)) {
1232 					ret = -EINVAL;
1233 					goto out;
1234 				}
1235 			}
1236 			if (addr_type & IPV6_ADDR_LINKLOCAL) {
1237 				if (sin6->sin6_scope_id == 0) {
1238 					ret = -EINVAL;
1239 					goto out;
1240 				}
1241 				scope_id = sin6->sin6_scope_id;
1242 			}
1243 
1244 			daddr = sin6->sin6_addr;
1245 			dport = sin6->sin6_port;
1246 			break;
1247 		}
1248 #endif
1249 
1250 		default:
1251 			ret = -EINVAL;
1252 			goto out;
1253 		}
1254 	} else {
1255 		/* We only care about consistency with ->connect() */
1256 		lock_sock(sk);
1257 		daddr = rs->rs_conn_addr;
1258 		dport = rs->rs_conn_port;
1259 		scope_id = rs->rs_bound_scope_id;
1260 		release_sock(sk);
1261 	}
1262 
1263 	lock_sock(sk);
1264 	if (ipv6_addr_any(&rs->rs_bound_addr) || ipv6_addr_any(&daddr)) {
1265 		release_sock(sk);
1266 		ret = -ENOTCONN;
1267 		goto out;
1268 	} else if (namelen != 0) {
1269 		/* Cannot send to an IPv4 address using an IPv6 source
1270 		 * address and cannot send to an IPv6 address using an
1271 		 * IPv4 source address.
1272 		 */
1273 		if (ipv6_addr_v4mapped(&daddr) ^
1274 		    ipv6_addr_v4mapped(&rs->rs_bound_addr)) {
1275 			release_sock(sk);
1276 			ret = -EOPNOTSUPP;
1277 			goto out;
1278 		}
1279 		/* If the socket is already bound to a link local address,
1280 		 * it can only send to peers on the same link.  But allow
1281 		 * communicating between link local and non-link local address.
1282 		 */
1283 		if (scope_id != rs->rs_bound_scope_id) {
1284 			if (!scope_id) {
1285 				scope_id = rs->rs_bound_scope_id;
1286 			} else if (rs->rs_bound_scope_id) {
1287 				release_sock(sk);
1288 				ret = -EINVAL;
1289 				goto out;
1290 			}
1291 		}
1292 	}
1293 	release_sock(sk);
1294 
1295 	ret = rds_rdma_bytes(msg, &rdma_payload_len);
1296 	if (ret)
1297 		goto out;
1298 
1299 	if (max_t(size_t, payload_len, rdma_payload_len) > RDS_MAX_MSG_SIZE) {
1300 		ret = -EMSGSIZE;
1301 		goto out;
1302 	}
1303 
1304 	if (payload_len > rds_sk_sndbuf(rs)) {
1305 		ret = -EMSGSIZE;
1306 		goto out;
1307 	}
1308 
1309 	if (zcopy) {
1310 		if (rs->rs_transport->t_type != RDS_TRANS_TCP) {
1311 			ret = -EOPNOTSUPP;
1312 			goto out;
1313 		}
1314 		num_sgs = iov_iter_npages(&msg->msg_iter, INT_MAX);
1315 	}
1316 	/* size of rm including all sgs */
1317 	ret = rds_rm_size(msg, num_sgs, &vct);
1318 	if (ret < 0)
1319 		goto out;
1320 
1321 	rm = rds_message_alloc(ret, GFP_KERNEL);
1322 	if (!rm) {
1323 		ret = -ENOMEM;
1324 		goto out;
1325 	}
1326 
1327 	/* Attach data to the rm */
1328 	if (payload_len) {
1329 		rm->data.op_sg = rds_message_alloc_sgs(rm, num_sgs);
1330 		if (IS_ERR(rm->data.op_sg)) {
1331 			ret = PTR_ERR(rm->data.op_sg);
1332 			goto out;
1333 		}
1334 		ret = rds_message_copy_from_user(rm, &msg->msg_iter, zcopy);
1335 		if (ret)
1336 			goto out;
1337 	}
1338 	rm->data.op_active = 1;
1339 
1340 	rm->m_daddr = daddr;
1341 
1342 	/* rds_conn_create has a spinlock that runs with IRQ off.
1343 	 * Caching the conn in the socket helps a lot. */
1344 	if (rs->rs_conn && ipv6_addr_equal(&rs->rs_conn->c_faddr, &daddr) &&
1345 	    rs->rs_tos == rs->rs_conn->c_tos) {
1346 		conn = rs->rs_conn;
1347 	} else {
1348 		conn = rds_conn_create_outgoing(sock_net(sock->sk),
1349 						&rs->rs_bound_addr, &daddr,
1350 						rs->rs_transport, rs->rs_tos,
1351 						sock->sk->sk_allocation,
1352 						scope_id);
1353 		if (IS_ERR(conn)) {
1354 			ret = PTR_ERR(conn);
1355 			goto out;
1356 		}
1357 		rs->rs_conn = conn;
1358 	}
1359 
1360 	if (conn->c_trans->t_mp_capable) {
1361 		/* Use c_path[0] until we learn that
1362 		 * the peer supports more (c_npaths > 1)
1363 		 */
1364 		cpath = &conn->c_path[RDS_MPATH_HASH(rs, conn->c_npaths ? : 1)];
1365 	} else {
1366 		cpath = &conn->c_path[0];
1367 	}
1368 
1369 	 /* If we're multipath capable and path 0 is down, queue reconnect
1370 	  * and send a ping. This initiates the multipath handshake through
1371 	  * rds_send_probe(), which sends RDS_EXTHDR_NPATHS to the peer,
1372 	  * starting multipath capability negotiation.
1373 	  */
1374 	if (conn->c_trans->t_mp_capable &&
1375 	    !rds_conn_path_up(&conn->c_path[0])) {
1376 		/* Ensures that only one request is queued.  And
1377 		 * rds_send_ping() ensures that only one ping is
1378 		 * outstanding.
1379 		 */
1380 		if (!test_and_set_bit(RDS_RECONNECT_PENDING,
1381 				      &conn->c_path[0].cp_flags))
1382 			queue_delayed_work(conn->c_path[0].cp_wq,
1383 					   &conn->c_path[0].cp_conn_w, 0);
1384 		rds_send_ping(conn, 0);
1385 	}
1386 
1387 	rm->m_conn_path = cpath;
1388 
1389 	/* Parse any control messages the user may have included. */
1390 	ret = rds_cmsg_send(rs, rm, msg, &allocated_mr, &vct);
1391 	if (ret)
1392 		goto out;
1393 
1394 	if (rm->rdma.op_active && !conn->c_trans->xmit_rdma) {
1395 		printk_ratelimited(KERN_NOTICE "rdma_op %p conn xmit_rdma %p\n",
1396 			       &rm->rdma, conn->c_trans->xmit_rdma);
1397 		ret = -EOPNOTSUPP;
1398 		goto out;
1399 	}
1400 
1401 	if (rm->atomic.op_active && !conn->c_trans->xmit_atomic) {
1402 		printk_ratelimited(KERN_NOTICE "atomic_op %p conn xmit_atomic %p\n",
1403 			       &rm->atomic, conn->c_trans->xmit_atomic);
1404 		ret = -EOPNOTSUPP;
1405 		goto out;
1406 	}
1407 
1408 	if (rds_destroy_pending(conn)) {
1409 		ret = -EAGAIN;
1410 		goto out;
1411 	}
1412 
1413 	if (rds_conn_path_down(cpath))
1414 		rds_check_all_paths(conn);
1415 
1416 	ret = rds_cong_wait(conn->c_fcong, dport, nonblock, rs);
1417 	if (ret) {
1418 		WRITE_ONCE(rs->rs_seen_congestion, 1);
1419 		goto out;
1420 	}
1421 	while (!rds_send_queue_rm(rs, conn, cpath, rm, rs->rs_bound_port,
1422 				  dport, &queued)) {
1423 		rds_stats_inc(s_send_queue_full);
1424 
1425 		if (nonblock) {
1426 			ret = -EAGAIN;
1427 			goto out;
1428 		}
1429 
1430 		timeo = wait_event_interruptible_timeout(*sk_sleep(sk),
1431 					rds_send_queue_rm(rs, conn, cpath, rm,
1432 							  rs->rs_bound_port,
1433 							  dport,
1434 							  &queued),
1435 					timeo);
1436 		rdsdebug("sendmsg woke queued %d timeo %ld\n", queued, timeo);
1437 		if (timeo > 0 || timeo == MAX_SCHEDULE_TIMEOUT)
1438 			continue;
1439 
1440 		ret = timeo;
1441 		if (ret == 0)
1442 			ret = -ETIMEDOUT;
1443 		goto out;
1444 	}
1445 
1446 	/*
1447 	 * By now we've committed to the send.  We reuse rds_send_worker()
1448 	 * to retry sends in the rds thread if the transport asks us to.
1449 	 */
1450 	rds_stats_inc(s_send_queued);
1451 
1452 	ret = rds_send_xmit(cpath);
1453 	if (ret == -ENOMEM || ret == -EAGAIN) {
1454 		ret = 0;
1455 		rcu_read_lock();
1456 		if (rds_destroy_pending(cpath->cp_conn))
1457 			ret = -ENETUNREACH;
1458 		else
1459 			queue_delayed_work(cpath->cp_wq, &cpath->cp_send_w, 1);
1460 		rcu_read_unlock();
1461 
1462 		if (ret)
1463 			goto out;
1464 	}
1465 
1466 	rds_message_put(rm);
1467 
1468 	for (ind = 0; ind < vct.indx; ind++)
1469 		kfree(vct.vec[ind].iov);
1470 	kfree(vct.vec);
1471 
1472 	return payload_len;
1473 
1474 out:
1475 	for (ind = 0; ind < vct.indx; ind++)
1476 		kfree(vct.vec[ind].iov);
1477 	kfree(vct.vec);
1478 
1479 	/* If the user included a RDMA_MAP cmsg, we allocated a MR on the fly.
1480 	 * If the sendmsg goes through, we keep the MR. If it fails with EAGAIN
1481 	 * or in any other way, we need to destroy the MR again */
1482 	if (allocated_mr)
1483 		rds_rdma_unuse(rs, rds_rdma_cookie_key(rm->m_rdma_cookie), 1);
1484 
1485 	if (rm)
1486 		rds_message_put(rm);
1487 	return ret;
1488 }
1489 
1490 /*
1491  * send out a probe. Can be shared by rds_send_ping,
1492  * rds_send_pong, rds_send_hb.
1493  * rds_send_hb should use h_flags
1494  *   RDS_FLAG_HB_PING|RDS_FLAG_ACK_REQUIRED
1495  * or
1496  *   RDS_FLAG_HB_PONG|RDS_FLAG_ACK_REQUIRED
1497  */
1498 static int
1499 rds_send_probe(struct rds_conn_path *cp, __be16 sport,
1500 	       __be16 dport, u8 h_flags)
1501 {
1502 	struct rds_message *rm;
1503 	unsigned long flags;
1504 	int ret = 0;
1505 
1506 	rm = rds_message_alloc(0, GFP_ATOMIC);
1507 	if (!rm) {
1508 		ret = -ENOMEM;
1509 		goto out;
1510 	}
1511 
1512 	rm->m_daddr = cp->cp_conn->c_faddr;
1513 	rm->data.op_active = 1;
1514 
1515 	rds_conn_path_connect_if_down(cp);
1516 
1517 	ret = rds_cong_wait(cp->cp_conn->c_fcong, dport, 1, NULL);
1518 	if (ret)
1519 		goto out;
1520 
1521 	spin_lock_irqsave(&cp->cp_lock, flags);
1522 	list_add_tail(&rm->m_conn_item, &cp->cp_send_queue);
1523 	set_bit(RDS_MSG_ON_CONN, &rm->m_flags);
1524 	rds_message_addref(rm);
1525 	rm->m_inc.i_conn = cp->cp_conn;
1526 	rm->m_inc.i_conn_path = cp;
1527 
1528 	rds_message_populate_header(&rm->m_inc.i_hdr, sport, dport,
1529 				    cp->cp_next_tx_seq);
1530 	rm->m_inc.i_hdr.h_flags |= h_flags;
1531 	cp->cp_next_tx_seq++;
1532 
1533 	if (RDS_HS_PROBE(be16_to_cpu(sport), be16_to_cpu(dport)) &&
1534 	    cp->cp_conn->c_trans->t_mp_capable) {
1535 		__be16 npaths = cpu_to_be16(RDS_MPATH_WORKERS);
1536 		__be32 my_gen_num = cpu_to_be32(cp->cp_conn->c_my_gen_num);
1537 		u8 dummy = 0;
1538 
1539 		rds_message_add_extension(&rm->m_inc.i_hdr,
1540 					  RDS_EXTHDR_NPATHS, &npaths);
1541 		rds_message_add_extension(&rm->m_inc.i_hdr,
1542 					  RDS_EXTHDR_GEN_NUM,
1543 					  &my_gen_num);
1544 		rds_message_add_extension(&rm->m_inc.i_hdr,
1545 					  RDS_EXTHDR_SPORT_IDX,
1546 					  &dummy);
1547 	}
1548 	spin_unlock_irqrestore(&cp->cp_lock, flags);
1549 
1550 	rds_stats_inc(s_send_queued);
1551 	rds_stats_inc(s_send_pong);
1552 
1553 	/* schedule the send work on cp_wq */
1554 	rcu_read_lock();
1555 	if (!rds_destroy_pending(cp->cp_conn))
1556 		queue_delayed_work(cp->cp_wq, &cp->cp_send_w, 1);
1557 	rcu_read_unlock();
1558 
1559 	rds_message_put(rm);
1560 	return 0;
1561 
1562 out:
1563 	if (rm)
1564 		rds_message_put(rm);
1565 	return ret;
1566 }
1567 
1568 int
1569 rds_send_pong(struct rds_conn_path *cp, __be16 dport)
1570 {
1571 	return rds_send_probe(cp, 0, dport, 0);
1572 }
1573 
1574 void
1575 rds_send_ping(struct rds_connection *conn, int cp_index)
1576 {
1577 	unsigned long flags;
1578 	struct rds_conn_path *cp = &conn->c_path[cp_index];
1579 
1580 	spin_lock_irqsave(&cp->cp_lock, flags);
1581 	if (conn->c_ping_triggered) {
1582 		spin_unlock_irqrestore(&cp->cp_lock, flags);
1583 		return;
1584 	}
1585 	conn->c_ping_triggered = 1;
1586 	spin_unlock_irqrestore(&cp->cp_lock, flags);
1587 	rds_send_probe(cp, cpu_to_be16(RDS_FLAG_PROBE_PORT), 0, 0);
1588 }
1589 EXPORT_SYMBOL_GPL(rds_send_ping);
1590