2 * Copyright (c) 2003-2007 Network Appliance, Inc. 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 BSD-type
10 * Redistribution and use in source and binary forms, with or without
11 * modification, are permitted provided that the following conditions
14 * Redistributions of source code must retain the above copyright
15 * notice, this list of conditions and the following disclaimer.
17 * Redistributions in binary form must reproduce the above
18 * copyright notice, this list of conditions and the following
19 * disclaimer in the documentation and/or other materials provided
20 * with the distribution.
22 * Neither the name of the Network Appliance, Inc. nor the names of
23 * its contributors may be used to endorse or promote products
24 * derived from this software without specific prior written
27 * THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS
28 * "AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT
29 * LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR
30 * A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT
31 * OWNER OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL,
32 * SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT
33 * LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
34 * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
35 * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
36 * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE
37 * OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
43 * This file contains the top-level implementation of an RPC RDMA
46 * Naming convention: functions beginning with xprt_ are part of the
47 * transport switch. All others are RPC RDMA internal.
50 #include <linux/module.h>
51 #include <linux/init.h>
52 #include <linux/slab.h>
53 #include <linux/seq_file.h>
55 #include "xprt_rdma.h"
58 # define RPCDBG_FACILITY RPCDBG_TRANS
61 MODULE_LICENSE("Dual BSD/GPL");
63 MODULE_DESCRIPTION("RPC/RDMA Transport for Linux kernel NFS");
64 MODULE_AUTHOR("Network Appliance, Inc.");
70 static unsigned int xprt_rdma_slot_table_entries
= RPCRDMA_DEF_SLOT_TABLE
;
71 static unsigned int xprt_rdma_max_inline_read
= RPCRDMA_DEF_INLINE
;
72 static unsigned int xprt_rdma_max_inline_write
= RPCRDMA_DEF_INLINE
;
73 static unsigned int xprt_rdma_inline_write_padding
;
74 static unsigned int xprt_rdma_memreg_strategy
= RPCRDMA_FRMR
;
75 int xprt_rdma_pad_optimize
= 0;
79 static unsigned int min_slot_table_size
= RPCRDMA_MIN_SLOT_TABLE
;
80 static unsigned int max_slot_table_size
= RPCRDMA_MAX_SLOT_TABLE
;
81 static unsigned int zero
;
82 static unsigned int max_padding
= PAGE_SIZE
;
83 static unsigned int min_memreg
= RPCRDMA_BOUNCEBUFFERS
;
84 static unsigned int max_memreg
= RPCRDMA_LAST
- 1;
86 static struct ctl_table_header
*sunrpc_table_header
;
88 static ctl_table xr_tunables_table
[] = {
90 .procname
= "rdma_slot_table_entries",
91 .data
= &xprt_rdma_slot_table_entries
,
92 .maxlen
= sizeof(unsigned int),
94 .proc_handler
= proc_dointvec_minmax
,
95 .extra1
= &min_slot_table_size
,
96 .extra2
= &max_slot_table_size
99 .procname
= "rdma_max_inline_read",
100 .data
= &xprt_rdma_max_inline_read
,
101 .maxlen
= sizeof(unsigned int),
103 .proc_handler
= proc_dointvec
,
106 .procname
= "rdma_max_inline_write",
107 .data
= &xprt_rdma_max_inline_write
,
108 .maxlen
= sizeof(unsigned int),
110 .proc_handler
= proc_dointvec
,
113 .procname
= "rdma_inline_write_padding",
114 .data
= &xprt_rdma_inline_write_padding
,
115 .maxlen
= sizeof(unsigned int),
117 .proc_handler
= proc_dointvec_minmax
,
119 .extra2
= &max_padding
,
122 .procname
= "rdma_memreg_strategy",
123 .data
= &xprt_rdma_memreg_strategy
,
124 .maxlen
= sizeof(unsigned int),
126 .proc_handler
= proc_dointvec_minmax
,
127 .extra1
= &min_memreg
,
128 .extra2
= &max_memreg
,
131 .procname
= "rdma_pad_optimize",
132 .data
= &xprt_rdma_pad_optimize
,
133 .maxlen
= sizeof(unsigned int),
135 .proc_handler
= proc_dointvec
,
140 static ctl_table sunrpc_table
[] = {
142 .procname
= "sunrpc",
144 .child
= xr_tunables_table
151 static struct rpc_xprt_ops xprt_rdma_procs
; /* forward reference */
154 xprt_rdma_format_addresses(struct rpc_xprt
*xprt
)
156 struct sockaddr
*sap
= (struct sockaddr
*)
157 &rpcx_to_rdmad(xprt
).addr
;
158 struct sockaddr_in
*sin
= (struct sockaddr_in
*)sap
;
161 (void)rpc_ntop(sap
, buf
, sizeof(buf
));
162 xprt
->address_strings
[RPC_DISPLAY_ADDR
] = kstrdup(buf
, GFP_KERNEL
);
164 snprintf(buf
, sizeof(buf
), "%u", rpc_get_port(sap
));
165 xprt
->address_strings
[RPC_DISPLAY_PORT
] = kstrdup(buf
, GFP_KERNEL
);
167 xprt
->address_strings
[RPC_DISPLAY_PROTO
] = "rdma";
169 snprintf(buf
, sizeof(buf
), "%08x", ntohl(sin
->sin_addr
.s_addr
));
170 xprt
->address_strings
[RPC_DISPLAY_HEX_ADDR
] = kstrdup(buf
, GFP_KERNEL
);
172 snprintf(buf
, sizeof(buf
), "%4hx", rpc_get_port(sap
));
173 xprt
->address_strings
[RPC_DISPLAY_HEX_PORT
] = kstrdup(buf
, GFP_KERNEL
);
176 xprt
->address_strings
[RPC_DISPLAY_NETID
] = "rdma";
180 xprt_rdma_free_addresses(struct rpc_xprt
*xprt
)
184 for (i
= 0; i
< RPC_DISPLAY_MAX
; i
++)
186 case RPC_DISPLAY_PROTO
:
187 case RPC_DISPLAY_NETID
:
190 kfree(xprt
->address_strings
[i
]);
195 xprt_rdma_connect_worker(struct work_struct
*work
)
197 struct rpcrdma_xprt
*r_xprt
=
198 container_of(work
, struct rpcrdma_xprt
, rdma_connect
.work
);
199 struct rpc_xprt
*xprt
= &r_xprt
->xprt
;
202 if (!xprt
->shutdown
) {
203 xprt_clear_connected(xprt
);
205 dprintk("RPC: %s: %sconnect\n", __func__
,
206 r_xprt
->rx_ep
.rep_connected
!= 0 ? "re" : "");
207 rc
= rpcrdma_ep_connect(&r_xprt
->rx_ep
, &r_xprt
->rx_ia
);
214 xprt_wake_pending_tasks(xprt
, rc
);
217 dprintk("RPC: %s: exit\n", __func__
);
218 xprt_clear_connecting(xprt
);
225 * Free all memory associated with the object, including its own.
226 * NOTE: none of the *destroy methods free memory for their top-level
227 * objects, even though they may have allocated it (they do free
228 * private memory). It's up to the caller to handle it. In this
229 * case (RDMA transport), all structure memory is inlined with the
230 * struct rpcrdma_xprt.
233 xprt_rdma_destroy(struct rpc_xprt
*xprt
)
235 struct rpcrdma_xprt
*r_xprt
= rpcx_to_rdmax(xprt
);
238 dprintk("RPC: %s: called\n", __func__
);
240 cancel_delayed_work(&r_xprt
->rdma_connect
);
241 flush_scheduled_work();
243 xprt_clear_connected(xprt
);
245 rpcrdma_buffer_destroy(&r_xprt
->rx_buf
);
246 rc
= rpcrdma_ep_destroy(&r_xprt
->rx_ep
, &r_xprt
->rx_ia
);
248 dprintk("RPC: %s: rpcrdma_ep_destroy returned %i\n",
250 rpcrdma_ia_close(&r_xprt
->rx_ia
);
252 xprt_rdma_free_addresses(xprt
);
258 dprintk("RPC: %s: returning\n", __func__
);
260 module_put(THIS_MODULE
);
263 static const struct rpc_timeout xprt_rdma_default_timeout
= {
264 .to_initval
= 60 * HZ
,
265 .to_maxval
= 60 * HZ
,
269 * xprt_setup_rdma - Set up transport to use RDMA
271 * @args: rpc transport arguments
273 static struct rpc_xprt
*
274 xprt_setup_rdma(struct xprt_create
*args
)
276 struct rpcrdma_create_data_internal cdata
;
277 struct rpc_xprt
*xprt
;
278 struct rpcrdma_xprt
*new_xprt
;
279 struct rpcrdma_ep
*new_ep
;
280 struct sockaddr_in
*sin
;
283 if (args
->addrlen
> sizeof(xprt
->addr
)) {
284 dprintk("RPC: %s: address too large\n", __func__
);
285 return ERR_PTR(-EBADF
);
288 xprt
= kzalloc(sizeof(struct rpcrdma_xprt
), GFP_KERNEL
);
290 dprintk("RPC: %s: couldn't allocate rpcrdma_xprt\n",
292 return ERR_PTR(-ENOMEM
);
295 xprt
->max_reqs
= xprt_rdma_slot_table_entries
;
296 xprt
->slot
= kcalloc(xprt
->max_reqs
,
297 sizeof(struct rpc_rqst
), GFP_KERNEL
);
298 if (xprt
->slot
== NULL
) {
299 dprintk("RPC: %s: couldn't allocate %d slots\n",
300 __func__
, xprt
->max_reqs
);
302 return ERR_PTR(-ENOMEM
);
305 /* 60 second timeout, no retries */
306 xprt
->timeout
= &xprt_rdma_default_timeout
;
307 xprt
->bind_timeout
= (60U * HZ
);
308 xprt
->reestablish_timeout
= (5U * HZ
);
309 xprt
->idle_timeout
= (5U * 60 * HZ
);
311 xprt
->resvport
= 0; /* privileged port not needed */
312 xprt
->tsh_size
= 0; /* RPC-RDMA handles framing */
313 xprt
->max_payload
= RPCRDMA_MAX_DATA_SEGS
* PAGE_SIZE
;
314 xprt
->ops
= &xprt_rdma_procs
;
317 * Set up RDMA-specific connect data.
320 /* Put server RDMA address in local cdata */
321 memcpy(&cdata
.addr
, args
->dstaddr
, args
->addrlen
);
323 /* Ensure xprt->addr holds valid server TCP (not RDMA)
324 * address, for any side protocols which peek at it */
325 xprt
->prot
= IPPROTO_TCP
;
326 xprt
->addrlen
= args
->addrlen
;
327 memcpy(&xprt
->addr
, &cdata
.addr
, xprt
->addrlen
);
329 sin
= (struct sockaddr_in
*)&cdata
.addr
;
330 if (ntohs(sin
->sin_port
) != 0)
331 xprt_set_bound(xprt
);
333 dprintk("RPC: %s: %pI4:%u\n",
334 __func__
, &sin
->sin_addr
.s_addr
, ntohs(sin
->sin_port
));
336 /* Set max requests */
337 cdata
.max_requests
= xprt
->max_reqs
;
339 /* Set some length limits */
340 cdata
.rsize
= RPCRDMA_MAX_SEGS
* PAGE_SIZE
; /* RDMA write max */
341 cdata
.wsize
= RPCRDMA_MAX_SEGS
* PAGE_SIZE
; /* RDMA read max */
343 cdata
.inline_wsize
= xprt_rdma_max_inline_write
;
344 if (cdata
.inline_wsize
> cdata
.wsize
)
345 cdata
.inline_wsize
= cdata
.wsize
;
347 cdata
.inline_rsize
= xprt_rdma_max_inline_read
;
348 if (cdata
.inline_rsize
> cdata
.rsize
)
349 cdata
.inline_rsize
= cdata
.rsize
;
351 cdata
.padding
= xprt_rdma_inline_write_padding
;
354 * Create new transport instance, which includes initialized
360 new_xprt
= rpcx_to_rdmax(xprt
);
362 rc
= rpcrdma_ia_open(new_xprt
, (struct sockaddr
*) &cdata
.addr
,
363 xprt_rdma_memreg_strategy
);
368 * initialize and create ep
370 new_xprt
->rx_data
= cdata
;
371 new_ep
= &new_xprt
->rx_ep
;
372 new_ep
->rep_remote_addr
= cdata
.addr
;
374 rc
= rpcrdma_ep_create(&new_xprt
->rx_ep
,
375 &new_xprt
->rx_ia
, &new_xprt
->rx_data
);
380 * Allocate pre-registered send and receive buffers for headers and
381 * any inline data. Also specify any padding which will be provided
382 * from a preregistered zero buffer.
384 rc
= rpcrdma_buffer_create(&new_xprt
->rx_buf
, new_ep
, &new_xprt
->rx_ia
,
390 * Register a callback for connection events. This is necessary because
391 * connection loss notification is async. We also catch connection loss
392 * when reaping receives.
394 INIT_DELAYED_WORK(&new_xprt
->rdma_connect
, xprt_rdma_connect_worker
);
395 new_ep
->rep_func
= rpcrdma_conn_func
;
396 new_ep
->rep_xprt
= xprt
;
398 xprt_rdma_format_addresses(xprt
);
400 if (!try_module_get(THIS_MODULE
))
406 xprt_rdma_free_addresses(xprt
);
409 (void) rpcrdma_ep_destroy(new_ep
, &new_xprt
->rx_ia
);
411 rpcrdma_ia_close(&new_xprt
->rx_ia
);
419 * Close a connection, during shutdown or timeout/reconnect
422 xprt_rdma_close(struct rpc_xprt
*xprt
)
424 struct rpcrdma_xprt
*r_xprt
= rpcx_to_rdmax(xprt
);
426 dprintk("RPC: %s: closing\n", __func__
);
427 if (r_xprt
->rx_ep
.rep_connected
> 0)
428 xprt
->reestablish_timeout
= 0;
429 xprt_disconnect_done(xprt
);
430 (void) rpcrdma_ep_disconnect(&r_xprt
->rx_ep
, &r_xprt
->rx_ia
);
434 xprt_rdma_set_port(struct rpc_xprt
*xprt
, u16 port
)
436 struct sockaddr_in
*sap
;
438 sap
= (struct sockaddr_in
*)&xprt
->addr
;
439 sap
->sin_port
= htons(port
);
440 sap
= (struct sockaddr_in
*)&rpcx_to_rdmad(xprt
).addr
;
441 sap
->sin_port
= htons(port
);
442 dprintk("RPC: %s: %u\n", __func__
, port
);
446 xprt_rdma_connect(struct rpc_task
*task
)
448 struct rpc_xprt
*xprt
= (struct rpc_xprt
*)task
->tk_xprt
;
449 struct rpcrdma_xprt
*r_xprt
= rpcx_to_rdmax(xprt
);
451 if (r_xprt
->rx_ep
.rep_connected
!= 0) {
453 schedule_delayed_work(&r_xprt
->rdma_connect
,
454 xprt
->reestablish_timeout
);
455 xprt
->reestablish_timeout
<<= 1;
456 if (xprt
->reestablish_timeout
> (30 * HZ
))
457 xprt
->reestablish_timeout
= (30 * HZ
);
458 else if (xprt
->reestablish_timeout
< (5 * HZ
))
459 xprt
->reestablish_timeout
= (5 * HZ
);
461 schedule_delayed_work(&r_xprt
->rdma_connect
, 0);
462 if (!RPC_IS_ASYNC(task
))
463 flush_scheduled_work();
468 xprt_rdma_reserve_xprt(struct rpc_task
*task
)
470 struct rpc_xprt
*xprt
= task
->tk_xprt
;
471 struct rpcrdma_xprt
*r_xprt
= rpcx_to_rdmax(xprt
);
472 int credits
= atomic_read(&r_xprt
->rx_buf
.rb_credits
);
474 /* == RPC_CWNDSCALE @ init, but *after* setup */
475 if (r_xprt
->rx_buf
.rb_cwndscale
== 0UL) {
476 r_xprt
->rx_buf
.rb_cwndscale
= xprt
->cwnd
;
477 dprintk("RPC: %s: cwndscale %lu\n", __func__
,
478 r_xprt
->rx_buf
.rb_cwndscale
);
479 BUG_ON(r_xprt
->rx_buf
.rb_cwndscale
<= 0);
481 xprt
->cwnd
= credits
* r_xprt
->rx_buf
.rb_cwndscale
;
482 return xprt_reserve_xprt_cong(task
);
486 * The RDMA allocate/free functions need the task structure as a place
487 * to hide the struct rpcrdma_req, which is necessary for the actual send/recv
488 * sequence. For this reason, the recv buffers are attached to send
489 * buffers for portions of the RPC. Note that the RPC layer allocates
490 * both send and receive buffers in the same call. We may register
491 * the receive buffer portion when using reply chunks.
494 xprt_rdma_allocate(struct rpc_task
*task
, size_t size
)
496 struct rpc_xprt
*xprt
= task
->tk_xprt
;
497 struct rpcrdma_req
*req
, *nreq
;
499 req
= rpcrdma_buffer_get(&rpcx_to_rdmax(xprt
)->rx_buf
);
502 if (size
> req
->rl_size
) {
503 dprintk("RPC: %s: size %zd too large for buffer[%zd]: "
504 "prog %d vers %d proc %d\n",
505 __func__
, size
, req
->rl_size
,
506 task
->tk_client
->cl_prog
, task
->tk_client
->cl_vers
,
507 task
->tk_msg
.rpc_proc
->p_proc
);
509 * Outgoing length shortage. Our inline write max must have
510 * been configured to perform direct i/o.
512 * This is therefore a large metadata operation, and the
513 * allocate call was made on the maximum possible message,
514 * e.g. containing long filename(s) or symlink data. In
515 * fact, while these metadata operations *might* carry
516 * large outgoing payloads, they rarely *do*. However, we
517 * have to commit to the request here, so reallocate and
518 * register it now. The data path will never require this
521 * If the allocation or registration fails, the RPC framework
522 * will (doggedly) retry.
524 if (rpcx_to_rdmax(xprt
)->rx_ia
.ri_memreg_strategy
==
525 RPCRDMA_BOUNCEBUFFERS
) {
526 /* forced to "pure inline" */
527 dprintk("RPC: %s: too much data (%zd) for inline "
528 "(r/w max %d/%d)\n", __func__
, size
,
529 rpcx_to_rdmad(xprt
).inline_rsize
,
530 rpcx_to_rdmad(xprt
).inline_wsize
);
532 rpc_exit(task
, -EIO
); /* fail the operation */
533 rpcx_to_rdmax(xprt
)->rx_stats
.failed_marshal_count
++;
536 if (task
->tk_flags
& RPC_TASK_SWAPPER
)
537 nreq
= kmalloc(sizeof *req
+ size
, GFP_ATOMIC
);
539 nreq
= kmalloc(sizeof *req
+ size
, GFP_NOFS
);
543 if (rpcrdma_register_internal(&rpcx_to_rdmax(xprt
)->rx_ia
,
544 nreq
->rl_base
, size
+ sizeof(struct rpcrdma_req
)
545 - offsetof(struct rpcrdma_req
, rl_base
),
546 &nreq
->rl_handle
, &nreq
->rl_iov
)) {
550 rpcx_to_rdmax(xprt
)->rx_stats
.hardway_register_count
+= size
;
551 nreq
->rl_size
= size
;
553 nreq
->rl_nchunks
= 0;
554 nreq
->rl_buffer
= (struct rpcrdma_buffer
*)req
;
555 nreq
->rl_reply
= req
->rl_reply
;
556 memcpy(nreq
->rl_segments
,
557 req
->rl_segments
, sizeof nreq
->rl_segments
);
558 /* flag the swap with an unused field */
559 nreq
->rl_iov
.length
= 0;
560 req
->rl_reply
= NULL
;
563 dprintk("RPC: %s: size %zd, request 0x%p\n", __func__
, size
, req
);
565 req
->rl_connect_cookie
= 0; /* our reserved value */
566 return req
->rl_xdr_buf
;
569 rpcrdma_buffer_put(req
);
570 rpcx_to_rdmax(xprt
)->rx_stats
.failed_marshal_count
++;
575 * This function returns all RDMA resources to the pool.
578 xprt_rdma_free(void *buffer
)
580 struct rpcrdma_req
*req
;
581 struct rpcrdma_xprt
*r_xprt
;
582 struct rpcrdma_rep
*rep
;
588 req
= container_of(buffer
, struct rpcrdma_req
, rl_xdr_buf
[0]);
589 if (req
->rl_iov
.length
== 0) { /* see allocate above */
590 r_xprt
= container_of(((struct rpcrdma_req
*) req
->rl_buffer
)->rl_buffer
,
591 struct rpcrdma_xprt
, rx_buf
);
593 r_xprt
= container_of(req
->rl_buffer
, struct rpcrdma_xprt
, rx_buf
);
596 dprintk("RPC: %s: called on 0x%p%s\n",
597 __func__
, rep
, (rep
&& rep
->rr_func
) ? " (with waiter)" : "");
600 * Finish the deregistration. When using mw bind, this was
601 * begun in rpcrdma_reply_handler(). In all other modes, we
602 * do it here, in thread context. The process is considered
603 * complete when the rr_func vector becomes NULL - this
604 * was put in place during rpcrdma_reply_handler() - the wait
605 * call below will not block if the dereg is "done". If
606 * interrupted, our framework will clean up.
608 for (i
= 0; req
->rl_nchunks
;) {
610 i
+= rpcrdma_deregister_external(
611 &req
->rl_segments
[i
], r_xprt
, NULL
);
614 if (rep
&& wait_event_interruptible(rep
->rr_unbind
, !rep
->rr_func
)) {
615 rep
->rr_func
= NULL
; /* abandon the callback */
616 req
->rl_reply
= NULL
;
619 if (req
->rl_iov
.length
== 0) { /* see allocate above */
620 struct rpcrdma_req
*oreq
= (struct rpcrdma_req
*)req
->rl_buffer
;
621 oreq
->rl_reply
= req
->rl_reply
;
622 (void) rpcrdma_deregister_internal(&r_xprt
->rx_ia
,
629 /* Put back request+reply buffers */
630 rpcrdma_buffer_put(req
);
634 * send_request invokes the meat of RPC RDMA. It must do the following:
635 * 1. Marshal the RPC request into an RPC RDMA request, which means
636 * putting a header in front of data, and creating IOVs for RDMA
637 * from those in the request.
638 * 2. In marshaling, detect opportunities for RDMA, and use them.
639 * 3. Post a recv message to set up asynch completion, then send
640 * the request (rpcrdma_ep_post).
641 * 4. No partial sends are possible in the RPC-RDMA protocol (as in UDP).
645 xprt_rdma_send_request(struct rpc_task
*task
)
647 struct rpc_rqst
*rqst
= task
->tk_rqstp
;
648 struct rpc_xprt
*xprt
= task
->tk_xprt
;
649 struct rpcrdma_req
*req
= rpcr_to_rdmar(rqst
);
650 struct rpcrdma_xprt
*r_xprt
= rpcx_to_rdmax(xprt
);
652 /* marshal the send itself */
653 if (req
->rl_niovs
== 0 && rpcrdma_marshal_req(rqst
) != 0) {
654 r_xprt
->rx_stats
.failed_marshal_count
++;
655 dprintk("RPC: %s: rpcrdma_marshal_req failed\n",
660 if (req
->rl_reply
== NULL
) /* e.g. reconnection */
661 rpcrdma_recv_buffer_get(req
);
664 req
->rl_reply
->rr_func
= rpcrdma_reply_handler
;
665 /* this need only be done once, but... */
666 req
->rl_reply
->rr_xprt
= xprt
;
669 /* Must suppress retransmit to maintain credits */
670 if (req
->rl_connect_cookie
== xprt
->connect_cookie
)
671 goto drop_connection
;
672 req
->rl_connect_cookie
= xprt
->connect_cookie
;
674 if (rpcrdma_ep_post(&r_xprt
->rx_ia
, &r_xprt
->rx_ep
, req
))
675 goto drop_connection
;
677 rqst
->rq_xmit_bytes_sent
+= rqst
->rq_snd_buf
.len
;
678 rqst
->rq_bytes_sent
= 0;
682 xprt_disconnect_done(xprt
);
683 return -ENOTCONN
; /* implies disconnect */
686 static void xprt_rdma_print_stats(struct rpc_xprt
*xprt
, struct seq_file
*seq
)
688 struct rpcrdma_xprt
*r_xprt
= rpcx_to_rdmax(xprt
);
691 if (xprt_connected(xprt
))
692 idle_time
= (long)(jiffies
- xprt
->last_used
) / HZ
;
695 "\txprt:\trdma %u %lu %lu %lu %ld %lu %lu %lu %Lu %Lu "
696 "%lu %lu %lu %Lu %Lu %Lu %Lu %lu %lu %lu\n",
698 0, /* need a local port? */
699 xprt
->stat
.bind_count
,
700 xprt
->stat
.connect_count
,
701 xprt
->stat
.connect_time
,
709 r_xprt
->rx_stats
.read_chunk_count
,
710 r_xprt
->rx_stats
.write_chunk_count
,
711 r_xprt
->rx_stats
.reply_chunk_count
,
712 r_xprt
->rx_stats
.total_rdma_request
,
713 r_xprt
->rx_stats
.total_rdma_reply
,
714 r_xprt
->rx_stats
.pullup_copy_count
,
715 r_xprt
->rx_stats
.fixup_copy_count
,
716 r_xprt
->rx_stats
.hardway_register_count
,
717 r_xprt
->rx_stats
.failed_marshal_count
,
718 r_xprt
->rx_stats
.bad_reply_count
);
722 * Plumbing for rpc transport switch and kernel module
725 static struct rpc_xprt_ops xprt_rdma_procs
= {
726 .reserve_xprt
= xprt_rdma_reserve_xprt
,
727 .release_xprt
= xprt_release_xprt_cong
, /* sunrpc/xprt.c */
728 .release_request
= xprt_release_rqst_cong
, /* ditto */
729 .set_retrans_timeout
= xprt_set_retrans_timeout_def
, /* ditto */
730 .rpcbind
= rpcb_getport_async
, /* sunrpc/rpcb_clnt.c */
731 .set_port
= xprt_rdma_set_port
,
732 .connect
= xprt_rdma_connect
,
733 .buf_alloc
= xprt_rdma_allocate
,
734 .buf_free
= xprt_rdma_free
,
735 .send_request
= xprt_rdma_send_request
,
736 .close
= xprt_rdma_close
,
737 .destroy
= xprt_rdma_destroy
,
738 .print_stats
= xprt_rdma_print_stats
741 static struct xprt_class xprt_rdma
= {
742 .list
= LIST_HEAD_INIT(xprt_rdma
.list
),
744 .owner
= THIS_MODULE
,
745 .ident
= XPRT_TRANSPORT_RDMA
,
746 .setup
= xprt_setup_rdma
,
749 static void __exit
xprt_rdma_cleanup(void)
753 dprintk(KERN_INFO
"RPCRDMA Module Removed, deregister RPC RDMA transport\n");
755 if (sunrpc_table_header
) {
756 unregister_sysctl_table(sunrpc_table_header
);
757 sunrpc_table_header
= NULL
;
760 rc
= xprt_unregister_transport(&xprt_rdma
);
762 dprintk("RPC: %s: xprt_unregister returned %i\n",
766 static int __init
xprt_rdma_init(void)
770 rc
= xprt_register_transport(&xprt_rdma
);
775 dprintk(KERN_INFO
"RPCRDMA Module Init, register RPC RDMA transport\n");
777 dprintk(KERN_INFO
"Defaults:\n");
778 dprintk(KERN_INFO
"\tSlots %d\n"
779 "\tMaxInlineRead %d\n\tMaxInlineWrite %d\n",
780 xprt_rdma_slot_table_entries
,
781 xprt_rdma_max_inline_read
, xprt_rdma_max_inline_write
);
782 dprintk(KERN_INFO
"\tPadding %d\n\tMemreg %d\n",
783 xprt_rdma_inline_write_padding
, xprt_rdma_memreg_strategy
);
786 if (!sunrpc_table_header
)
787 sunrpc_table_header
= register_sysctl_table(sunrpc_table
);
792 module_init(xprt_rdma_init
);
793 module_exit(xprt_rdma_cleanup
);