2 * Copyright (c) 2006 Oracle. All rights reserved.
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:
10 * Redistribution and use in source and binary forms, with or
11 * without modification, are permitted provided that the following
14 * - Redistributions of source code must retain the above
15 * copyright notice, this list of conditions and the following
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.
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
33 #include <linux/kernel.h>
35 #include <linux/device.h>
36 #include <linux/dmapool.h>
37 #include <linux/ratelimit.h>
43 * Convert IB-specific error message to RDS error message and call core
46 static void rds_ib_send_complete(struct rds_message
*rm
,
48 void (*complete
)(struct rds_message
*rm
, int status
))
53 case IB_WC_WR_FLUSH_ERR
:
57 notify_status
= RDS_RDMA_SUCCESS
;
60 case IB_WC_REM_ACCESS_ERR
:
61 notify_status
= RDS_RDMA_REMOTE_ERROR
;
65 notify_status
= RDS_RDMA_OTHER_ERROR
;
68 complete(rm
, notify_status
);
71 static void rds_ib_send_unmap_rdma(struct rds_ib_connection
*ic
,
72 struct rm_rdma_op
*op
,
76 ib_dma_unmap_sg(ic
->i_cm_id
->device
,
77 op
->op_sg
, op
->op_nents
,
78 op
->op_write
? DMA_TO_DEVICE
: DMA_FROM_DEVICE
);
82 /* If the user asked for a completion notification on this
83 * message, we can implement three different semantics:
84 * 1. Notify when we received the ACK on the RDS message
85 * that was queued with the RDMA. This provides reliable
86 * notification of RDMA status at the expense of a one-way
88 * 2. Notify when the IB stack gives us the completion event for
90 * 3. Notify when the IB stack gives us the completion event for
91 * the accompanying RDS messages.
92 * Here, we implement approach #3. To implement approach #2,
93 * we would need to take an event for the rdma WR. To implement #1,
94 * don't call rds_rdma_send_complete at all, and fall back to the notify
95 * handling in the ACK processing code.
97 * Note: There's no need to explicitly sync any RDMA buffers using
98 * ib_dma_sync_sg_for_cpu - the completion for the RDMA
99 * operation itself unmapped the RDMA buffers, which takes care
102 rds_ib_send_complete(container_of(op
, struct rds_message
, rdma
),
103 wc_status
, rds_rdma_send_complete
);
106 rds_stats_add(s_send_rdma_bytes
, op
->op_bytes
);
108 rds_stats_add(s_recv_rdma_bytes
, op
->op_bytes
);
111 static void rds_ib_send_unmap_atomic(struct rds_ib_connection
*ic
,
112 struct rm_atomic_op
*op
,
115 /* unmap atomic recvbuf */
117 ib_dma_unmap_sg(ic
->i_cm_id
->device
, op
->op_sg
, 1,
122 rds_ib_send_complete(container_of(op
, struct rds_message
, atomic
),
123 wc_status
, rds_atomic_send_complete
);
125 if (op
->op_type
== RDS_ATOMIC_TYPE_CSWP
)
126 rds_ib_stats_inc(s_ib_atomic_cswp
);
128 rds_ib_stats_inc(s_ib_atomic_fadd
);
131 static void rds_ib_send_unmap_data(struct rds_ib_connection
*ic
,
132 struct rm_data_op
*op
,
135 struct rds_message
*rm
= container_of(op
, struct rds_message
, data
);
138 ib_dma_unmap_sg(ic
->i_cm_id
->device
,
139 op
->op_sg
, op
->op_nents
,
142 if (rm
->rdma
.op_active
&& rm
->data
.op_notify
)
143 rds_ib_send_unmap_rdma(ic
, &rm
->rdma
, wc_status
);
147 * Unmap the resources associated with a struct send_work.
149 * Returns the rm for no good reason other than it is unobtainable
150 * other than by switching on wr.opcode, currently, and the caller,
151 * the event handler, needs it.
153 static struct rds_message
*rds_ib_send_unmap_op(struct rds_ib_connection
*ic
,
154 struct rds_ib_send_work
*send
,
157 struct rds_message
*rm
= NULL
;
159 /* In the error case, wc.opcode sometimes contains garbage */
160 switch (send
->s_wr
.opcode
) {
163 rm
= container_of(send
->s_op
, struct rds_message
, data
);
164 rds_ib_send_unmap_data(ic
, send
->s_op
, wc_status
);
167 case IB_WR_RDMA_WRITE
:
168 case IB_WR_RDMA_READ
:
170 rm
= container_of(send
->s_op
, struct rds_message
, rdma
);
171 rds_ib_send_unmap_rdma(ic
, send
->s_op
, wc_status
);
174 case IB_WR_ATOMIC_FETCH_AND_ADD
:
175 case IB_WR_ATOMIC_CMP_AND_SWP
:
177 rm
= container_of(send
->s_op
, struct rds_message
, atomic
);
178 rds_ib_send_unmap_atomic(ic
, send
->s_op
, wc_status
);
182 printk_ratelimited(KERN_NOTICE
183 "RDS/IB: %s: unexpected opcode 0x%x in WR!\n",
184 __func__
, send
->s_wr
.opcode
);
188 send
->s_wr
.opcode
= 0xdead;
193 void rds_ib_send_init_ring(struct rds_ib_connection
*ic
)
195 struct rds_ib_send_work
*send
;
198 for (i
= 0, send
= ic
->i_sends
; i
< ic
->i_send_ring
.w_nr
; i
++, send
++) {
203 send
->s_wr
.wr_id
= i
| RDS_IB_SEND_OP
;
204 send
->s_wr
.sg_list
= send
->s_sge
;
205 send
->s_wr
.ex
.imm_data
= 0;
207 sge
= &send
->s_sge
[0];
208 sge
->addr
= ic
->i_send_hdrs_dma
+ (i
* sizeof(struct rds_header
));
209 sge
->length
= sizeof(struct rds_header
);
210 sge
->lkey
= ic
->i_pd
->local_dma_lkey
;
212 send
->s_sge
[1].lkey
= ic
->i_pd
->local_dma_lkey
;
216 void rds_ib_send_clear_ring(struct rds_ib_connection
*ic
)
218 struct rds_ib_send_work
*send
;
221 for (i
= 0, send
= ic
->i_sends
; i
< ic
->i_send_ring
.w_nr
; i
++, send
++) {
222 if (send
->s_op
&& send
->s_wr
.opcode
!= 0xdead)
223 rds_ib_send_unmap_op(ic
, send
, IB_WC_WR_FLUSH_ERR
);
228 * The only fast path caller always has a non-zero nr, so we don't
229 * bother testing nr before performing the atomic sub.
231 static void rds_ib_sub_signaled(struct rds_ib_connection
*ic
, int nr
)
233 if ((atomic_sub_return(nr
, &ic
->i_signaled_sends
) == 0) &&
234 waitqueue_active(&rds_ib_ring_empty_wait
))
235 wake_up(&rds_ib_ring_empty_wait
);
236 BUG_ON(atomic_read(&ic
->i_signaled_sends
) < 0);
240 * The _oldest/_free ring operations here race cleanly with the alloc/unalloc
241 * operations performed in the send path. As the sender allocs and potentially
242 * unallocs the next free entry in the ring it doesn't alter which is
243 * the next to be freed, which is what this is concerned with.
245 void rds_ib_send_cqe_handler(struct rds_ib_connection
*ic
, struct ib_wc
*wc
)
247 struct rds_message
*rm
= NULL
;
248 struct rds_connection
*conn
= ic
->conn
;
249 struct rds_ib_send_work
*send
;
256 rdsdebug("wc wr_id 0x%llx status %u (%s) byte_len %u imm_data %u\n",
257 (unsigned long long)wc
->wr_id
, wc
->status
,
258 ib_wc_status_msg(wc
->status
), wc
->byte_len
,
259 be32_to_cpu(wc
->ex
.imm_data
));
260 rds_ib_stats_inc(s_ib_tx_cq_event
);
262 if (wc
->wr_id
== RDS_IB_ACK_WR_ID
) {
263 if (time_after(jiffies
, ic
->i_ack_queued
+ HZ
/ 2))
264 rds_ib_stats_inc(s_ib_tx_stalled
);
265 rds_ib_ack_send_complete(ic
);
269 oldest
= rds_ib_ring_oldest(&ic
->i_send_ring
);
271 completed
= rds_ib_ring_completed(&ic
->i_send_ring
,
272 (wc
->wr_id
& ~RDS_IB_SEND_OP
),
275 for (i
= 0; i
< completed
; i
++) {
276 send
= &ic
->i_sends
[oldest
];
277 if (send
->s_wr
.send_flags
& IB_SEND_SIGNALED
)
280 rm
= rds_ib_send_unmap_op(ic
, send
, wc
->status
);
282 if (time_after(jiffies
, send
->s_queued
+ HZ
/ 2))
283 rds_ib_stats_inc(s_ib_tx_stalled
);
286 if (send
->s_op
== rm
->m_final_op
) {
287 /* If anyone waited for this message to get
288 * flushed out, wake them up now
290 rds_message_unmapped(rm
);
296 oldest
= (oldest
+ 1) % ic
->i_send_ring
.w_nr
;
299 rds_ib_ring_free(&ic
->i_send_ring
, completed
);
300 rds_ib_sub_signaled(ic
, nr_sig
);
303 if (test_and_clear_bit(RDS_LL_SEND_FULL
, &conn
->c_flags
) ||
304 test_bit(0, &conn
->c_map_queued
))
305 queue_delayed_work(rds_wq
, &conn
->c_send_w
, 0);
307 /* We expect errors as the qp is drained during shutdown */
308 if (wc
->status
!= IB_WC_SUCCESS
&& rds_conn_up(conn
)) {
309 rds_ib_conn_error(conn
, "send completion on %pI4 had status %u (%s), disconnecting and reconnecting\n",
310 &conn
->c_faddr
, wc
->status
,
311 ib_wc_status_msg(wc
->status
));
316 * This is the main function for allocating credits when sending
319 * Conceptually, we have two counters:
320 * - send credits: this tells us how many WRs we're allowed
321 * to submit without overruning the receiver's queue. For
322 * each SEND WR we post, we decrement this by one.
324 * - posted credits: this tells us how many WRs we recently
325 * posted to the receive queue. This value is transferred
326 * to the peer as a "credit update" in a RDS header field.
327 * Every time we transmit credits to the peer, we subtract
328 * the amount of transferred credits from this counter.
330 * It is essential that we avoid situations where both sides have
331 * exhausted their send credits, and are unable to send new credits
332 * to the peer. We achieve this by requiring that we send at least
333 * one credit update to the peer before exhausting our credits.
334 * When new credits arrive, we subtract one credit that is withheld
335 * until we've posted new buffers and are ready to transmit these
336 * credits (see rds_ib_send_add_credits below).
338 * The RDS send code is essentially single-threaded; rds_send_xmit
339 * sets RDS_IN_XMIT to ensure exclusive access to the send ring.
340 * However, the ACK sending code is independent and can race with
343 * In the send path, we need to update the counters for send credits
344 * and the counter of posted buffers atomically - when we use the
345 * last available credit, we cannot allow another thread to race us
346 * and grab the posted credits counter. Hence, we have to use a
347 * spinlock to protect the credit counter, or use atomics.
349 * Spinlocks shared between the send and the receive path are bad,
350 * because they create unnecessary delays. An early implementation
351 * using a spinlock showed a 5% degradation in throughput at some
354 * This implementation avoids spinlocks completely, putting both
355 * counters into a single atomic, and updating that atomic using
356 * atomic_add (in the receive path, when receiving fresh credits),
357 * and using atomic_cmpxchg when updating the two counters.
359 int rds_ib_send_grab_credits(struct rds_ib_connection
*ic
,
360 u32 wanted
, u32
*adv_credits
, int need_posted
, int max_posted
)
362 unsigned int avail
, posted
, got
= 0, advertise
;
371 oldval
= newval
= atomic_read(&ic
->i_credits
);
372 posted
= IB_GET_POST_CREDITS(oldval
);
373 avail
= IB_GET_SEND_CREDITS(oldval
);
375 rdsdebug("wanted=%u credits=%u posted=%u\n",
376 wanted
, avail
, posted
);
378 /* The last credit must be used to send a credit update. */
379 if (avail
&& !posted
)
382 if (avail
< wanted
) {
383 struct rds_connection
*conn
= ic
->i_cm_id
->context
;
385 /* Oops, there aren't that many credits left! */
386 set_bit(RDS_LL_SEND_FULL
, &conn
->c_flags
);
389 /* Sometimes you get what you want, lalala. */
392 newval
-= IB_SET_SEND_CREDITS(got
);
395 * If need_posted is non-zero, then the caller wants
396 * the posted regardless of whether any send credits are
399 if (posted
&& (got
|| need_posted
)) {
400 advertise
= min_t(unsigned int, posted
, max_posted
);
401 newval
-= IB_SET_POST_CREDITS(advertise
);
404 /* Finally bill everything */
405 if (atomic_cmpxchg(&ic
->i_credits
, oldval
, newval
) != oldval
)
408 *adv_credits
= advertise
;
412 void rds_ib_send_add_credits(struct rds_connection
*conn
, unsigned int credits
)
414 struct rds_ib_connection
*ic
= conn
->c_transport_data
;
419 rdsdebug("credits=%u current=%u%s\n",
421 IB_GET_SEND_CREDITS(atomic_read(&ic
->i_credits
)),
422 test_bit(RDS_LL_SEND_FULL
, &conn
->c_flags
) ? ", ll_send_full" : "");
424 atomic_add(IB_SET_SEND_CREDITS(credits
), &ic
->i_credits
);
425 if (test_and_clear_bit(RDS_LL_SEND_FULL
, &conn
->c_flags
))
426 queue_delayed_work(rds_wq
, &conn
->c_send_w
, 0);
428 WARN_ON(IB_GET_SEND_CREDITS(credits
) >= 16384);
430 rds_ib_stats_inc(s_ib_rx_credit_updates
);
433 void rds_ib_advertise_credits(struct rds_connection
*conn
, unsigned int posted
)
435 struct rds_ib_connection
*ic
= conn
->c_transport_data
;
440 atomic_add(IB_SET_POST_CREDITS(posted
), &ic
->i_credits
);
442 /* Decide whether to send an update to the peer now.
443 * If we would send a credit update for every single buffer we
444 * post, we would end up with an ACK storm (ACK arrives,
445 * consumes buffer, we refill the ring, send ACK to remote
446 * advertising the newly posted buffer... ad inf)
448 * Performance pretty much depends on how often we send
449 * credit updates - too frequent updates mean lots of ACKs.
450 * Too infrequent updates, and the peer will run out of
451 * credits and has to throttle.
452 * For the time being, 16 seems to be a good compromise.
454 if (IB_GET_POST_CREDITS(atomic_read(&ic
->i_credits
)) >= 16)
455 set_bit(IB_ACK_REQUESTED
, &ic
->i_ack_flags
);
458 static inline int rds_ib_set_wr_signal_state(struct rds_ib_connection
*ic
,
459 struct rds_ib_send_work
*send
,
463 * We want to delay signaling completions just enough to get
464 * the batching benefits but not so much that we create dead time
467 if (ic
->i_unsignaled_wrs
-- == 0 || notify
) {
468 ic
->i_unsignaled_wrs
= rds_ib_sysctl_max_unsig_wrs
;
469 send
->s_wr
.send_flags
|= IB_SEND_SIGNALED
;
476 * This can be called multiple times for a given message. The first time
477 * we see a message we map its scatterlist into the IB device so that
478 * we can provide that mapped address to the IB scatter gather entries
479 * in the IB work requests. We translate the scatterlist into a series
480 * of work requests that fragment the message. These work requests complete
481 * in order so we pass ownership of the message to the completion handler
482 * once we send the final fragment.
484 * The RDS core uses the c_send_lock to only enter this function once
485 * per connection. This makes sure that the tx ring alloc/unalloc pairs
486 * don't get out of sync and confuse the ring.
488 int rds_ib_xmit(struct rds_connection
*conn
, struct rds_message
*rm
,
489 unsigned int hdr_off
, unsigned int sg
, unsigned int off
)
491 struct rds_ib_connection
*ic
= conn
->c_transport_data
;
492 struct ib_device
*dev
= ic
->i_cm_id
->device
;
493 struct rds_ib_send_work
*send
= NULL
;
494 struct rds_ib_send_work
*first
;
495 struct rds_ib_send_work
*prev
;
496 struct ib_send_wr
*failed_wr
;
497 struct scatterlist
*scat
;
501 u32 credit_alloc
= 0;
507 int flow_controlled
= 0;
510 BUG_ON(off
% RDS_FRAG_SIZE
);
511 BUG_ON(hdr_off
!= 0 && hdr_off
!= sizeof(struct rds_header
));
513 /* Do not send cong updates to IB loopback */
515 && rm
->m_inc
.i_hdr
.h_flags
& RDS_FLAG_CONG_BITMAP
) {
516 rds_cong_map_updated(conn
->c_fcong
, ~(u64
) 0);
517 scat
= &rm
->data
.op_sg
[sg
];
518 ret
= max_t(int, RDS_CONG_MAP_BYTES
, scat
->length
);
519 return sizeof(struct rds_header
) + ret
;
522 /* FIXME we may overallocate here */
523 if (be32_to_cpu(rm
->m_inc
.i_hdr
.h_len
) == 0)
526 i
= ceil(be32_to_cpu(rm
->m_inc
.i_hdr
.h_len
), RDS_FRAG_SIZE
);
528 work_alloc
= rds_ib_ring_alloc(&ic
->i_send_ring
, i
, &pos
);
529 if (work_alloc
== 0) {
530 set_bit(RDS_LL_SEND_FULL
, &conn
->c_flags
);
531 rds_ib_stats_inc(s_ib_tx_ring_full
);
537 credit_alloc
= rds_ib_send_grab_credits(ic
, work_alloc
, &posted
, 0, RDS_MAX_ADV_CREDIT
);
538 adv_credits
+= posted
;
539 if (credit_alloc
< work_alloc
) {
540 rds_ib_ring_unalloc(&ic
->i_send_ring
, work_alloc
- credit_alloc
);
541 work_alloc
= credit_alloc
;
544 if (work_alloc
== 0) {
545 set_bit(RDS_LL_SEND_FULL
, &conn
->c_flags
);
546 rds_ib_stats_inc(s_ib_tx_throttle
);
552 /* map the message the first time we see it */
553 if (!ic
->i_data_op
) {
554 if (rm
->data
.op_nents
) {
555 rm
->data
.op_count
= ib_dma_map_sg(dev
,
559 rdsdebug("ic %p mapping rm %p: %d\n", ic
, rm
, rm
->data
.op_count
);
560 if (rm
->data
.op_count
== 0) {
561 rds_ib_stats_inc(s_ib_tx_sg_mapping_failure
);
562 rds_ib_ring_unalloc(&ic
->i_send_ring
, work_alloc
);
563 ret
= -ENOMEM
; /* XXX ? */
567 rm
->data
.op_count
= 0;
570 rds_message_addref(rm
);
571 rm
->data
.op_dmasg
= 0;
572 rm
->data
.op_dmaoff
= 0;
573 ic
->i_data_op
= &rm
->data
;
575 /* Finalize the header */
576 if (test_bit(RDS_MSG_ACK_REQUIRED
, &rm
->m_flags
))
577 rm
->m_inc
.i_hdr
.h_flags
|= RDS_FLAG_ACK_REQUIRED
;
578 if (test_bit(RDS_MSG_RETRANSMITTED
, &rm
->m_flags
))
579 rm
->m_inc
.i_hdr
.h_flags
|= RDS_FLAG_RETRANSMITTED
;
581 /* If it has a RDMA op, tell the peer we did it. This is
582 * used by the peer to release use-once RDMA MRs. */
583 if (rm
->rdma
.op_active
) {
584 struct rds_ext_header_rdma ext_hdr
;
586 ext_hdr
.h_rdma_rkey
= cpu_to_be32(rm
->rdma
.op_rkey
);
587 rds_message_add_extension(&rm
->m_inc
.i_hdr
,
588 RDS_EXTHDR_RDMA
, &ext_hdr
, sizeof(ext_hdr
));
590 if (rm
->m_rdma_cookie
) {
591 rds_message_add_rdma_dest_extension(&rm
->m_inc
.i_hdr
,
592 rds_rdma_cookie_key(rm
->m_rdma_cookie
),
593 rds_rdma_cookie_offset(rm
->m_rdma_cookie
));
596 /* Note - rds_ib_piggyb_ack clears the ACK_REQUIRED bit, so
597 * we should not do this unless we have a chance of at least
598 * sticking the header into the send ring. Which is why we
599 * should call rds_ib_ring_alloc first. */
600 rm
->m_inc
.i_hdr
.h_ack
= cpu_to_be64(rds_ib_piggyb_ack(ic
));
601 rds_message_make_checksum(&rm
->m_inc
.i_hdr
);
604 * Update adv_credits since we reset the ACK_REQUIRED bit.
607 rds_ib_send_grab_credits(ic
, 0, &posted
, 1, RDS_MAX_ADV_CREDIT
- adv_credits
);
608 adv_credits
+= posted
;
609 BUG_ON(adv_credits
> 255);
613 /* Sometimes you want to put a fence between an RDMA
614 * READ and the following SEND.
615 * We could either do this all the time
616 * or when requested by the user. Right now, we let
617 * the application choose.
619 if (rm
->rdma
.op_active
&& rm
->rdma
.op_fence
)
620 send_flags
= IB_SEND_FENCE
;
622 /* Each frag gets a header. Msgs may be 0 bytes */
623 send
= &ic
->i_sends
[pos
];
626 scat
= &ic
->i_data_op
->op_sg
[rm
->data
.op_dmasg
];
629 unsigned int len
= 0;
631 /* Set up the header */
632 send
->s_wr
.send_flags
= send_flags
;
633 send
->s_wr
.opcode
= IB_WR_SEND
;
634 send
->s_wr
.num_sge
= 1;
635 send
->s_wr
.next
= NULL
;
636 send
->s_queued
= jiffies
;
639 send
->s_sge
[0].addr
= ic
->i_send_hdrs_dma
640 + (pos
* sizeof(struct rds_header
));
641 send
->s_sge
[0].length
= sizeof(struct rds_header
);
643 memcpy(&ic
->i_send_hdrs
[pos
], &rm
->m_inc
.i_hdr
, sizeof(struct rds_header
));
645 /* Set up the data, if present */
647 && scat
!= &rm
->data
.op_sg
[rm
->data
.op_count
]) {
648 len
= min(RDS_FRAG_SIZE
,
649 ib_sg_dma_len(dev
, scat
) - rm
->data
.op_dmaoff
);
650 send
->s_wr
.num_sge
= 2;
652 send
->s_sge
[1].addr
= ib_sg_dma_address(dev
, scat
);
653 send
->s_sge
[1].addr
+= rm
->data
.op_dmaoff
;
654 send
->s_sge
[1].length
= len
;
657 rm
->data
.op_dmaoff
+= len
;
658 if (rm
->data
.op_dmaoff
== ib_sg_dma_len(dev
, scat
)) {
661 rm
->data
.op_dmaoff
= 0;
665 rds_ib_set_wr_signal_state(ic
, send
, 0);
668 * Always signal the last one if we're stopping due to flow control.
670 if (ic
->i_flowctl
&& flow_controlled
&& i
== (work_alloc
-1))
671 send
->s_wr
.send_flags
|= IB_SEND_SIGNALED
| IB_SEND_SOLICITED
;
673 if (send
->s_wr
.send_flags
& IB_SEND_SIGNALED
)
676 rdsdebug("send %p wr %p num_sge %u next %p\n", send
,
677 &send
->s_wr
, send
->s_wr
.num_sge
, send
->s_wr
.next
);
679 if (ic
->i_flowctl
&& adv_credits
) {
680 struct rds_header
*hdr
= &ic
->i_send_hdrs
[pos
];
682 /* add credit and redo the header checksum */
683 hdr
->h_credit
= adv_credits
;
684 rds_message_make_checksum(hdr
);
686 rds_ib_stats_inc(s_ib_tx_credit_updates
);
690 prev
->s_wr
.next
= &send
->s_wr
;
693 pos
= (pos
+ 1) % ic
->i_send_ring
.w_nr
;
694 send
= &ic
->i_sends
[pos
];
697 } while (i
< work_alloc
698 && scat
!= &rm
->data
.op_sg
[rm
->data
.op_count
]);
700 /* Account the RDS header in the number of bytes we sent, but just once.
701 * The caller has no concept of fragmentation. */
703 bytes_sent
+= sizeof(struct rds_header
);
705 /* if we finished the message then send completion owns it */
706 if (scat
== &rm
->data
.op_sg
[rm
->data
.op_count
]) {
707 prev
->s_op
= ic
->i_data_op
;
708 prev
->s_wr
.send_flags
|= IB_SEND_SOLICITED
;
709 if (!(prev
->s_wr
.send_flags
& IB_SEND_SIGNALED
)) {
710 ic
->i_unsignaled_wrs
= rds_ib_sysctl_max_unsig_wrs
;
711 prev
->s_wr
.send_flags
|= IB_SEND_SIGNALED
;
714 ic
->i_data_op
= NULL
;
717 /* Put back wrs & credits we didn't use */
718 if (i
< work_alloc
) {
719 rds_ib_ring_unalloc(&ic
->i_send_ring
, work_alloc
- i
);
722 if (ic
->i_flowctl
&& i
< credit_alloc
)
723 rds_ib_send_add_credits(conn
, credit_alloc
- i
);
726 atomic_add(nr_sig
, &ic
->i_signaled_sends
);
728 /* XXX need to worry about failed_wr and partial sends. */
729 failed_wr
= &first
->s_wr
;
730 ret
= ib_post_send(ic
->i_cm_id
->qp
, &first
->s_wr
, &failed_wr
);
731 rdsdebug("ic %p first %p (wr %p) ret %d wr %p\n", ic
,
732 first
, &first
->s_wr
, ret
, failed_wr
);
733 BUG_ON(failed_wr
!= &first
->s_wr
);
735 printk(KERN_WARNING
"RDS/IB: ib_post_send to %pI4 "
736 "returned %d\n", &conn
->c_faddr
, ret
);
737 rds_ib_ring_unalloc(&ic
->i_send_ring
, work_alloc
);
738 rds_ib_sub_signaled(ic
, nr_sig
);
740 ic
->i_data_op
= prev
->s_op
;
744 rds_ib_conn_error(ic
->conn
, "ib_post_send failed\n");
755 * Issue atomic operation.
756 * A simplified version of the rdma case, we always map 1 SG, and
757 * only 8 bytes, for the return value from the atomic operation.
759 int rds_ib_xmit_atomic(struct rds_connection
*conn
, struct rm_atomic_op
*op
)
761 struct rds_ib_connection
*ic
= conn
->c_transport_data
;
762 struct rds_ib_send_work
*send
= NULL
;
763 struct ib_send_wr
*failed_wr
;
764 struct rds_ib_device
*rds_ibdev
;
770 rds_ibdev
= ib_get_client_data(ic
->i_cm_id
->device
, &rds_ib_client
);
772 work_alloc
= rds_ib_ring_alloc(&ic
->i_send_ring
, 1, &pos
);
773 if (work_alloc
!= 1) {
774 rds_ib_ring_unalloc(&ic
->i_send_ring
, work_alloc
);
775 rds_ib_stats_inc(s_ib_tx_ring_full
);
780 /* address of send request in ring */
781 send
= &ic
->i_sends
[pos
];
782 send
->s_queued
= jiffies
;
784 if (op
->op_type
== RDS_ATOMIC_TYPE_CSWP
) {
785 send
->s_atomic_wr
.wr
.opcode
= IB_WR_MASKED_ATOMIC_CMP_AND_SWP
;
786 send
->s_atomic_wr
.compare_add
= op
->op_m_cswp
.compare
;
787 send
->s_atomic_wr
.swap
= op
->op_m_cswp
.swap
;
788 send
->s_atomic_wr
.compare_add_mask
= op
->op_m_cswp
.compare_mask
;
789 send
->s_atomic_wr
.swap_mask
= op
->op_m_cswp
.swap_mask
;
791 send
->s_atomic_wr
.wr
.opcode
= IB_WR_MASKED_ATOMIC_FETCH_AND_ADD
;
792 send
->s_atomic_wr
.compare_add
= op
->op_m_fadd
.add
;
793 send
->s_atomic_wr
.swap
= 0;
794 send
->s_atomic_wr
.compare_add_mask
= op
->op_m_fadd
.nocarry_mask
;
795 send
->s_atomic_wr
.swap_mask
= 0;
797 nr_sig
= rds_ib_set_wr_signal_state(ic
, send
, op
->op_notify
);
798 send
->s_atomic_wr
.wr
.num_sge
= 1;
799 send
->s_atomic_wr
.wr
.next
= NULL
;
800 send
->s_atomic_wr
.remote_addr
= op
->op_remote_addr
;
801 send
->s_atomic_wr
.rkey
= op
->op_rkey
;
803 rds_message_addref(container_of(send
->s_op
, struct rds_message
, atomic
));
805 /* map 8 byte retval buffer to the device */
806 ret
= ib_dma_map_sg(ic
->i_cm_id
->device
, op
->op_sg
, 1, DMA_FROM_DEVICE
);
807 rdsdebug("ic %p mapping atomic op %p. mapped %d pg\n", ic
, op
, ret
);
809 rds_ib_ring_unalloc(&ic
->i_send_ring
, work_alloc
);
810 rds_ib_stats_inc(s_ib_tx_sg_mapping_failure
);
811 ret
= -ENOMEM
; /* XXX ? */
815 /* Convert our struct scatterlist to struct ib_sge */
816 send
->s_sge
[0].addr
= ib_sg_dma_address(ic
->i_cm_id
->device
, op
->op_sg
);
817 send
->s_sge
[0].length
= ib_sg_dma_len(ic
->i_cm_id
->device
, op
->op_sg
);
818 send
->s_sge
[0].lkey
= ic
->i_pd
->local_dma_lkey
;
820 rdsdebug("rva %Lx rpa %Lx len %u\n", op
->op_remote_addr
,
821 send
->s_sge
[0].addr
, send
->s_sge
[0].length
);
824 atomic_add(nr_sig
, &ic
->i_signaled_sends
);
826 failed_wr
= &send
->s_atomic_wr
.wr
;
827 ret
= ib_post_send(ic
->i_cm_id
->qp
, &send
->s_atomic_wr
.wr
, &failed_wr
);
828 rdsdebug("ic %p send %p (wr %p) ret %d wr %p\n", ic
,
829 send
, &send
->s_atomic_wr
, ret
, failed_wr
);
830 BUG_ON(failed_wr
!= &send
->s_atomic_wr
.wr
);
832 printk(KERN_WARNING
"RDS/IB: atomic ib_post_send to %pI4 "
833 "returned %d\n", &conn
->c_faddr
, ret
);
834 rds_ib_ring_unalloc(&ic
->i_send_ring
, work_alloc
);
835 rds_ib_sub_signaled(ic
, nr_sig
);
839 if (unlikely(failed_wr
!= &send
->s_atomic_wr
.wr
)) {
840 printk(KERN_WARNING
"RDS/IB: atomic ib_post_send() rc=%d, but failed_wqe updated!\n", ret
);
841 BUG_ON(failed_wr
!= &send
->s_atomic_wr
.wr
);
848 int rds_ib_xmit_rdma(struct rds_connection
*conn
, struct rm_rdma_op
*op
)
850 struct rds_ib_connection
*ic
= conn
->c_transport_data
;
851 struct rds_ib_send_work
*send
= NULL
;
852 struct rds_ib_send_work
*first
;
853 struct rds_ib_send_work
*prev
;
854 struct ib_send_wr
*failed_wr
;
855 struct scatterlist
*scat
;
857 u64 remote_addr
= op
->op_remote_addr
;
858 u32 max_sge
= ic
->rds_ibdev
->max_sge
;
868 /* map the op the first time we see it */
869 if (!op
->op_mapped
) {
870 op
->op_count
= ib_dma_map_sg(ic
->i_cm_id
->device
,
871 op
->op_sg
, op
->op_nents
, (op
->op_write
) ?
872 DMA_TO_DEVICE
: DMA_FROM_DEVICE
);
873 rdsdebug("ic %p mapping op %p: %d\n", ic
, op
, op
->op_count
);
874 if (op
->op_count
== 0) {
875 rds_ib_stats_inc(s_ib_tx_sg_mapping_failure
);
876 ret
= -ENOMEM
; /* XXX ? */
884 * Instead of knowing how to return a partial rdma read/write we insist that there
885 * be enough work requests to send the entire message.
887 i
= ceil(op
->op_count
, max_sge
);
889 work_alloc
= rds_ib_ring_alloc(&ic
->i_send_ring
, i
, &pos
);
890 if (work_alloc
!= i
) {
891 rds_ib_ring_unalloc(&ic
->i_send_ring
, work_alloc
);
892 rds_ib_stats_inc(s_ib_tx_ring_full
);
897 send
= &ic
->i_sends
[pos
];
900 scat
= &op
->op_sg
[0];
902 num_sge
= op
->op_count
;
904 for (i
= 0; i
< work_alloc
&& scat
!= &op
->op_sg
[op
->op_count
]; i
++) {
905 send
->s_wr
.send_flags
= 0;
906 send
->s_queued
= jiffies
;
909 nr_sig
+= rds_ib_set_wr_signal_state(ic
, send
, op
->op_notify
);
911 send
->s_wr
.opcode
= op
->op_write
? IB_WR_RDMA_WRITE
: IB_WR_RDMA_READ
;
912 send
->s_rdma_wr
.remote_addr
= remote_addr
;
913 send
->s_rdma_wr
.rkey
= op
->op_rkey
;
915 if (num_sge
> max_sge
) {
916 send
->s_rdma_wr
.wr
.num_sge
= max_sge
;
919 send
->s_rdma_wr
.wr
.num_sge
= num_sge
;
922 send
->s_rdma_wr
.wr
.next
= NULL
;
925 prev
->s_rdma_wr
.wr
.next
= &send
->s_rdma_wr
.wr
;
927 for (j
= 0; j
< send
->s_rdma_wr
.wr
.num_sge
&&
928 scat
!= &op
->op_sg
[op
->op_count
]; j
++) {
929 len
= ib_sg_dma_len(ic
->i_cm_id
->device
, scat
);
930 send
->s_sge
[j
].addr
=
931 ib_sg_dma_address(ic
->i_cm_id
->device
, scat
);
932 send
->s_sge
[j
].length
= len
;
933 send
->s_sge
[j
].lkey
= ic
->i_pd
->local_dma_lkey
;
936 rdsdebug("ic %p sent %d remote_addr %llu\n", ic
, sent
, remote_addr
);
942 rdsdebug("send %p wr %p num_sge %u next %p\n", send
,
944 send
->s_rdma_wr
.wr
.num_sge
,
945 send
->s_rdma_wr
.wr
.next
);
948 if (++send
== &ic
->i_sends
[ic
->i_send_ring
.w_nr
])
952 /* give a reference to the last op */
953 if (scat
== &op
->op_sg
[op
->op_count
]) {
955 rds_message_addref(container_of(op
, struct rds_message
, rdma
));
958 if (i
< work_alloc
) {
959 rds_ib_ring_unalloc(&ic
->i_send_ring
, work_alloc
- i
);
964 atomic_add(nr_sig
, &ic
->i_signaled_sends
);
966 failed_wr
= &first
->s_rdma_wr
.wr
;
967 ret
= ib_post_send(ic
->i_cm_id
->qp
, &first
->s_rdma_wr
.wr
, &failed_wr
);
968 rdsdebug("ic %p first %p (wr %p) ret %d wr %p\n", ic
,
969 first
, &first
->s_rdma_wr
.wr
, ret
, failed_wr
);
970 BUG_ON(failed_wr
!= &first
->s_rdma_wr
.wr
);
972 printk(KERN_WARNING
"RDS/IB: rdma ib_post_send to %pI4 "
973 "returned %d\n", &conn
->c_faddr
, ret
);
974 rds_ib_ring_unalloc(&ic
->i_send_ring
, work_alloc
);
975 rds_ib_sub_signaled(ic
, nr_sig
);
979 if (unlikely(failed_wr
!= &first
->s_rdma_wr
.wr
)) {
980 printk(KERN_WARNING
"RDS/IB: ib_post_send() rc=%d, but failed_wqe updated!\n", ret
);
981 BUG_ON(failed_wr
!= &first
->s_rdma_wr
.wr
);
989 void rds_ib_xmit_complete(struct rds_connection
*conn
)
991 struct rds_ib_connection
*ic
= conn
->c_transport_data
;
993 /* We may have a pending ACK or window update we were unable
994 * to send previously (due to flow control). Try again. */
995 rds_ib_attempt_ack(ic
);