sysctl net: Remove unused binary sysctl code
[GitHub/mt8127/android_kernel_alcatel_ttab.git] / net / sunrpc / xprtrdma / transport.c
CommitLineData
f58851e6
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1/*
2 * Copyright (c) 2003-2007 Network Appliance, Inc. 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 BSD-type
8 * license below:
9 *
10 * Redistribution and use in source and binary forms, with or without
11 * modification, are permitted provided that the following conditions
12 * are met:
13 *
14 * Redistributions of source code must retain the above copyright
15 * notice, this list of conditions and the following disclaimer.
16 *
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.
21 *
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
25 * permission.
26 *
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.
38 */
39
40/*
41 * transport.c
42 *
43 * This file contains the top-level implementation of an RPC RDMA
44 * transport.
45 *
46 * Naming convention: functions beginning with xprt_ are part of the
47 * transport switch. All others are RPC RDMA internal.
48 */
49
50#include <linux/module.h>
51#include <linux/init.h>
52#include <linux/seq_file.h>
53
54#include "xprt_rdma.h"
55
56#ifdef RPC_DEBUG
57# define RPCDBG_FACILITY RPCDBG_TRANS
58#endif
59
60MODULE_LICENSE("Dual BSD/GPL");
61
62MODULE_DESCRIPTION("RPC/RDMA Transport for Linux kernel NFS");
63MODULE_AUTHOR("Network Appliance, Inc.");
64
65/*
66 * tunables
67 */
68
69static unsigned int xprt_rdma_slot_table_entries = RPCRDMA_DEF_SLOT_TABLE;
70static unsigned int xprt_rdma_max_inline_read = RPCRDMA_DEF_INLINE;
71static unsigned int xprt_rdma_max_inline_write = RPCRDMA_DEF_INLINE;
72static unsigned int xprt_rdma_inline_write_padding;
3197d309 73static unsigned int xprt_rdma_memreg_strategy = RPCRDMA_FRMR;
9191ca3b 74 int xprt_rdma_pad_optimize = 0;
f58851e6
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75
76#ifdef RPC_DEBUG
77
78static unsigned int min_slot_table_size = RPCRDMA_MIN_SLOT_TABLE;
79static unsigned int max_slot_table_size = RPCRDMA_MAX_SLOT_TABLE;
80static unsigned int zero;
81static unsigned int max_padding = PAGE_SIZE;
82static unsigned int min_memreg = RPCRDMA_BOUNCEBUFFERS;
83static unsigned int max_memreg = RPCRDMA_LAST - 1;
84
85static struct ctl_table_header *sunrpc_table_header;
86
87static ctl_table xr_tunables_table[] = {
88 {
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89 .procname = "rdma_slot_table_entries",
90 .data = &xprt_rdma_slot_table_entries,
91 .maxlen = sizeof(unsigned int),
92 .mode = 0644,
93 .proc_handler = &proc_dointvec_minmax,
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94 .extra1 = &min_slot_table_size,
95 .extra2 = &max_slot_table_size
96 },
97 {
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98 .procname = "rdma_max_inline_read",
99 .data = &xprt_rdma_max_inline_read,
100 .maxlen = sizeof(unsigned int),
101 .mode = 0644,
102 .proc_handler = &proc_dointvec,
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103 },
104 {
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105 .procname = "rdma_max_inline_write",
106 .data = &xprt_rdma_max_inline_write,
107 .maxlen = sizeof(unsigned int),
108 .mode = 0644,
109 .proc_handler = &proc_dointvec,
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110 },
111 {
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112 .procname = "rdma_inline_write_padding",
113 .data = &xprt_rdma_inline_write_padding,
114 .maxlen = sizeof(unsigned int),
115 .mode = 0644,
116 .proc_handler = &proc_dointvec_minmax,
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117 .extra1 = &zero,
118 .extra2 = &max_padding,
119 },
120 {
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121 .procname = "rdma_memreg_strategy",
122 .data = &xprt_rdma_memreg_strategy,
123 .maxlen = sizeof(unsigned int),
124 .mode = 0644,
125 .proc_handler = &proc_dointvec_minmax,
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126 .extra1 = &min_memreg,
127 .extra2 = &max_memreg,
128 },
9191ca3b 129 {
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130 .procname = "rdma_pad_optimize",
131 .data = &xprt_rdma_pad_optimize,
132 .maxlen = sizeof(unsigned int),
133 .mode = 0644,
134 .proc_handler = &proc_dointvec,
135 },
f8572d8f 136 { },
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137};
138
139static ctl_table sunrpc_table[] = {
140 {
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141 .procname = "sunrpc",
142 .mode = 0555,
143 .child = xr_tunables_table
144 },
f8572d8f 145 { },
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146};
147
148#endif
149
150static struct rpc_xprt_ops xprt_rdma_procs; /* forward reference */
151
152static void
153xprt_rdma_format_addresses(struct rpc_xprt *xprt)
154{
c877b849 155 struct sockaddr *sap = (struct sockaddr *)
f58851e6 156 &rpcx_to_rdmad(xprt).addr;
c877b849
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157 struct sockaddr_in *sin = (struct sockaddr_in *)sap;
158 char buf[64];
f58851e6 159
c877b849
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160 (void)rpc_ntop(sap, buf, sizeof(buf));
161 xprt->address_strings[RPC_DISPLAY_ADDR] = kstrdup(buf, GFP_KERNEL);
f58851e6 162
c877b849
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163 (void)snprintf(buf, sizeof(buf), "%u", rpc_get_port(sap));
164 xprt->address_strings[RPC_DISPLAY_PORT] = kstrdup(buf, GFP_KERNEL);
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165
166 xprt->address_strings[RPC_DISPLAY_PROTO] = "rdma";
167
c877b849
CL
168 (void)snprintf(buf, sizeof(buf), "%02x%02x%02x%02x",
169 NIPQUAD(sin->sin_addr.s_addr));
170 xprt->address_strings[RPC_DISPLAY_HEX_ADDR] = kstrdup(buf, GFP_KERNEL);
171
172 (void)snprintf(buf, sizeof(buf), "%4hx", rpc_get_port(sap));
173 xprt->address_strings[RPC_DISPLAY_HEX_PORT] = kstrdup(buf, GFP_KERNEL);
f58851e6 174
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175 /* netid */
176 xprt->address_strings[RPC_DISPLAY_NETID] = "rdma";
177}
178
179static void
180xprt_rdma_free_addresses(struct rpc_xprt *xprt)
181{
33e01dc7
CL
182 unsigned int i;
183
184 for (i = 0; i < RPC_DISPLAY_MAX; i++)
185 switch (i) {
186 case RPC_DISPLAY_PROTO:
187 case RPC_DISPLAY_NETID:
188 continue;
189 default:
190 kfree(xprt->address_strings[i]);
191 }
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192}
193
194static void
195xprt_rdma_connect_worker(struct work_struct *work)
196{
197 struct rpcrdma_xprt *r_xprt =
198 container_of(work, struct rpcrdma_xprt, rdma_connect.work);
199 struct rpc_xprt *xprt = &r_xprt->xprt;
200 int rc = 0;
201
202 if (!xprt->shutdown) {
203 xprt_clear_connected(xprt);
204
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);
208 if (rc)
209 goto out;
210 }
211 goto out_clear;
212
213out:
214 xprt_wake_pending_tasks(xprt, rc);
215
216out_clear:
217 dprintk("RPC: %s: exit\n", __func__);
218 xprt_clear_connecting(xprt);
219}
220
221/*
222 * xprt_rdma_destroy
223 *
224 * Destroy the 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.
231 */
232static void
233xprt_rdma_destroy(struct rpc_xprt *xprt)
234{
235 struct rpcrdma_xprt *r_xprt = rpcx_to_rdmax(xprt);
236 int rc;
237
238 dprintk("RPC: %s: called\n", __func__);
239
240 cancel_delayed_work(&r_xprt->rdma_connect);
241 flush_scheduled_work();
242
243 xprt_clear_connected(xprt);
244
245 rpcrdma_buffer_destroy(&r_xprt->rx_buf);
246 rc = rpcrdma_ep_destroy(&r_xprt->rx_ep, &r_xprt->rx_ia);
247 if (rc)
248 dprintk("RPC: %s: rpcrdma_ep_destroy returned %i\n",
249 __func__, rc);
250 rpcrdma_ia_close(&r_xprt->rx_ia);
251
252 xprt_rdma_free_addresses(xprt);
253
254 kfree(xprt->slot);
255 xprt->slot = NULL;
256 kfree(xprt);
257
258 dprintk("RPC: %s: returning\n", __func__);
259
260 module_put(THIS_MODULE);
261}
262
2881ae74
TM
263static const struct rpc_timeout xprt_rdma_default_timeout = {
264 .to_initval = 60 * HZ,
265 .to_maxval = 60 * HZ,
266};
267
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268/**
269 * xprt_setup_rdma - Set up transport to use RDMA
270 *
271 * @args: rpc transport arguments
272 */
273static struct rpc_xprt *
274xprt_setup_rdma(struct xprt_create *args)
275{
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;
281 int rc;
282
283 if (args->addrlen > sizeof(xprt->addr)) {
284 dprintk("RPC: %s: address too large\n", __func__);
285 return ERR_PTR(-EBADF);
286 }
287
288 xprt = kzalloc(sizeof(struct rpcrdma_xprt), GFP_KERNEL);
289 if (xprt == NULL) {
290 dprintk("RPC: %s: couldn't allocate rpcrdma_xprt\n",
291 __func__);
292 return ERR_PTR(-ENOMEM);
293 }
294
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) {
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299 dprintk("RPC: %s: couldn't allocate %d slots\n",
300 __func__, xprt->max_reqs);
d5cd9787 301 kfree(xprt);
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302 return ERR_PTR(-ENOMEM);
303 }
304
305 /* 60 second timeout, no retries */
ba7392bb 306 xprt->timeout = &xprt_rdma_default_timeout;
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307 xprt->bind_timeout = (60U * HZ);
308 xprt->connect_timeout = (60U * HZ);
309 xprt->reestablish_timeout = (5U * HZ);
310 xprt->idle_timeout = (5U * 60 * HZ);
311
312 xprt->resvport = 0; /* privileged port not needed */
313 xprt->tsh_size = 0; /* RPC-RDMA handles framing */
314 xprt->max_payload = RPCRDMA_MAX_DATA_SEGS * PAGE_SIZE;
315 xprt->ops = &xprt_rdma_procs;
316
317 /*
318 * Set up RDMA-specific connect data.
319 */
320
321 /* Put server RDMA address in local cdata */
322 memcpy(&cdata.addr, args->dstaddr, args->addrlen);
323
324 /* Ensure xprt->addr holds valid server TCP (not RDMA)
325 * address, for any side protocols which peek at it */
326 xprt->prot = IPPROTO_TCP;
327 xprt->addrlen = args->addrlen;
328 memcpy(&xprt->addr, &cdata.addr, xprt->addrlen);
329
330 sin = (struct sockaddr_in *)&cdata.addr;
331 if (ntohs(sin->sin_port) != 0)
332 xprt_set_bound(xprt);
333
21454aaa
HH
334 dprintk("RPC: %s: %pI4:%u\n",
335 __func__, &sin->sin_addr.s_addr, ntohs(sin->sin_port));
f58851e6
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336
337 /* Set max requests */
338 cdata.max_requests = xprt->max_reqs;
339
340 /* Set some length limits */
341 cdata.rsize = RPCRDMA_MAX_SEGS * PAGE_SIZE; /* RDMA write max */
342 cdata.wsize = RPCRDMA_MAX_SEGS * PAGE_SIZE; /* RDMA read max */
343
344 cdata.inline_wsize = xprt_rdma_max_inline_write;
345 if (cdata.inline_wsize > cdata.wsize)
346 cdata.inline_wsize = cdata.wsize;
347
348 cdata.inline_rsize = xprt_rdma_max_inline_read;
349 if (cdata.inline_rsize > cdata.rsize)
350 cdata.inline_rsize = cdata.rsize;
351
352 cdata.padding = xprt_rdma_inline_write_padding;
353
354 /*
355 * Create new transport instance, which includes initialized
356 * o ia
357 * o endpoint
358 * o buffers
359 */
360
361 new_xprt = rpcx_to_rdmax(xprt);
362
363 rc = rpcrdma_ia_open(new_xprt, (struct sockaddr *) &cdata.addr,
364 xprt_rdma_memreg_strategy);
365 if (rc)
366 goto out1;
367
368 /*
369 * initialize and create ep
370 */
371 new_xprt->rx_data = cdata;
372 new_ep = &new_xprt->rx_ep;
373 new_ep->rep_remote_addr = cdata.addr;
374
375 rc = rpcrdma_ep_create(&new_xprt->rx_ep,
376 &new_xprt->rx_ia, &new_xprt->rx_data);
377 if (rc)
378 goto out2;
379
380 /*
381 * Allocate pre-registered send and receive buffers for headers and
382 * any inline data. Also specify any padding which will be provided
383 * from a preregistered zero buffer.
384 */
385 rc = rpcrdma_buffer_create(&new_xprt->rx_buf, new_ep, &new_xprt->rx_ia,
386 &new_xprt->rx_data);
387 if (rc)
388 goto out3;
389
390 /*
391 * Register a callback for connection events. This is necessary because
392 * connection loss notification is async. We also catch connection loss
393 * when reaping receives.
394 */
395 INIT_DELAYED_WORK(&new_xprt->rdma_connect, xprt_rdma_connect_worker);
396 new_ep->rep_func = rpcrdma_conn_func;
397 new_ep->rep_xprt = xprt;
398
399 xprt_rdma_format_addresses(xprt);
400
401 if (!try_module_get(THIS_MODULE))
402 goto out4;
403
404 return xprt;
405
406out4:
407 xprt_rdma_free_addresses(xprt);
408 rc = -EINVAL;
409out3:
410 (void) rpcrdma_ep_destroy(new_ep, &new_xprt->rx_ia);
411out2:
412 rpcrdma_ia_close(&new_xprt->rx_ia);
413out1:
414 kfree(xprt->slot);
415 kfree(xprt);
416 return ERR_PTR(rc);
417}
418
419/*
420 * Close a connection, during shutdown or timeout/reconnect
421 */
422static void
423xprt_rdma_close(struct rpc_xprt *xprt)
424{
425 struct rpcrdma_xprt *r_xprt = rpcx_to_rdmax(xprt);
426
427 dprintk("RPC: %s: closing\n", __func__);
08ca0dce
TT
428 if (r_xprt->rx_ep.rep_connected > 0)
429 xprt->reestablish_timeout = 0;
62da3b24 430 xprt_disconnect_done(xprt);
f58851e6
TT
431 (void) rpcrdma_ep_disconnect(&r_xprt->rx_ep, &r_xprt->rx_ia);
432}
433
434static void
435xprt_rdma_set_port(struct rpc_xprt *xprt, u16 port)
436{
437 struct sockaddr_in *sap;
438
439 sap = (struct sockaddr_in *)&xprt->addr;
440 sap->sin_port = htons(port);
441 sap = (struct sockaddr_in *)&rpcx_to_rdmad(xprt).addr;
442 sap->sin_port = htons(port);
443 dprintk("RPC: %s: %u\n", __func__, port);
444}
445
446static void
447xprt_rdma_connect(struct rpc_task *task)
448{
449 struct rpc_xprt *xprt = (struct rpc_xprt *)task->tk_xprt;
450 struct rpcrdma_xprt *r_xprt = rpcx_to_rdmax(xprt);
451
452 if (!xprt_test_and_set_connecting(xprt)) {
453 if (r_xprt->rx_ep.rep_connected != 0) {
454 /* Reconnect */
455 schedule_delayed_work(&r_xprt->rdma_connect,
456 xprt->reestablish_timeout);
08ca0dce
TT
457 xprt->reestablish_timeout <<= 1;
458 if (xprt->reestablish_timeout > (30 * HZ))
459 xprt->reestablish_timeout = (30 * HZ);
460 else if (xprt->reestablish_timeout < (5 * HZ))
461 xprt->reestablish_timeout = (5 * HZ);
f58851e6
TT
462 } else {
463 schedule_delayed_work(&r_xprt->rdma_connect, 0);
464 if (!RPC_IS_ASYNC(task))
465 flush_scheduled_work();
466 }
467 }
468}
469
470static int
471xprt_rdma_reserve_xprt(struct rpc_task *task)
472{
473 struct rpc_xprt *xprt = task->tk_xprt;
474 struct rpcrdma_xprt *r_xprt = rpcx_to_rdmax(xprt);
475 int credits = atomic_read(&r_xprt->rx_buf.rb_credits);
476
477 /* == RPC_CWNDSCALE @ init, but *after* setup */
478 if (r_xprt->rx_buf.rb_cwndscale == 0UL) {
479 r_xprt->rx_buf.rb_cwndscale = xprt->cwnd;
480 dprintk("RPC: %s: cwndscale %lu\n", __func__,
481 r_xprt->rx_buf.rb_cwndscale);
482 BUG_ON(r_xprt->rx_buf.rb_cwndscale <= 0);
483 }
484 xprt->cwnd = credits * r_xprt->rx_buf.rb_cwndscale;
485 return xprt_reserve_xprt_cong(task);
486}
487
488/*
489 * The RDMA allocate/free functions need the task structure as a place
490 * to hide the struct rpcrdma_req, which is necessary for the actual send/recv
491 * sequence. For this reason, the recv buffers are attached to send
492 * buffers for portions of the RPC. Note that the RPC layer allocates
493 * both send and receive buffers in the same call. We may register
494 * the receive buffer portion when using reply chunks.
495 */
496static void *
497xprt_rdma_allocate(struct rpc_task *task, size_t size)
498{
499 struct rpc_xprt *xprt = task->tk_xprt;
500 struct rpcrdma_req *req, *nreq;
501
502 req = rpcrdma_buffer_get(&rpcx_to_rdmax(xprt)->rx_buf);
503 BUG_ON(NULL == req);
504
505 if (size > req->rl_size) {
506 dprintk("RPC: %s: size %zd too large for buffer[%zd]: "
507 "prog %d vers %d proc %d\n",
508 __func__, size, req->rl_size,
509 task->tk_client->cl_prog, task->tk_client->cl_vers,
510 task->tk_msg.rpc_proc->p_proc);
511 /*
512 * Outgoing length shortage. Our inline write max must have
513 * been configured to perform direct i/o.
514 *
515 * This is therefore a large metadata operation, and the
516 * allocate call was made on the maximum possible message,
517 * e.g. containing long filename(s) or symlink data. In
518 * fact, while these metadata operations *might* carry
519 * large outgoing payloads, they rarely *do*. However, we
520 * have to commit to the request here, so reallocate and
521 * register it now. The data path will never require this
522 * reallocation.
523 *
524 * If the allocation or registration fails, the RPC framework
525 * will (doggedly) retry.
526 */
527 if (rpcx_to_rdmax(xprt)->rx_ia.ri_memreg_strategy ==
528 RPCRDMA_BOUNCEBUFFERS) {
529 /* forced to "pure inline" */
530 dprintk("RPC: %s: too much data (%zd) for inline "
531 "(r/w max %d/%d)\n", __func__, size,
532 rpcx_to_rdmad(xprt).inline_rsize,
533 rpcx_to_rdmad(xprt).inline_wsize);
534 size = req->rl_size;
535 rpc_exit(task, -EIO); /* fail the operation */
536 rpcx_to_rdmax(xprt)->rx_stats.failed_marshal_count++;
537 goto out;
538 }
539 if (task->tk_flags & RPC_TASK_SWAPPER)
540 nreq = kmalloc(sizeof *req + size, GFP_ATOMIC);
541 else
542 nreq = kmalloc(sizeof *req + size, GFP_NOFS);
543 if (nreq == NULL)
544 goto outfail;
545
546 if (rpcrdma_register_internal(&rpcx_to_rdmax(xprt)->rx_ia,
547 nreq->rl_base, size + sizeof(struct rpcrdma_req)
548 - offsetof(struct rpcrdma_req, rl_base),
549 &nreq->rl_handle, &nreq->rl_iov)) {
550 kfree(nreq);
551 goto outfail;
552 }
553 rpcx_to_rdmax(xprt)->rx_stats.hardway_register_count += size;
554 nreq->rl_size = size;
555 nreq->rl_niovs = 0;
556 nreq->rl_nchunks = 0;
557 nreq->rl_buffer = (struct rpcrdma_buffer *)req;
558 nreq->rl_reply = req->rl_reply;
559 memcpy(nreq->rl_segments,
560 req->rl_segments, sizeof nreq->rl_segments);
561 /* flag the swap with an unused field */
562 nreq->rl_iov.length = 0;
563 req->rl_reply = NULL;
564 req = nreq;
565 }
566 dprintk("RPC: %s: size %zd, request 0x%p\n", __func__, size, req);
567out:
575448bd 568 req->rl_connect_cookie = 0; /* our reserved value */
f58851e6
TT
569 return req->rl_xdr_buf;
570
571outfail:
572 rpcrdma_buffer_put(req);
573 rpcx_to_rdmax(xprt)->rx_stats.failed_marshal_count++;
574 return NULL;
575}
576
577/*
578 * This function returns all RDMA resources to the pool.
579 */
580static void
581xprt_rdma_free(void *buffer)
582{
583 struct rpcrdma_req *req;
584 struct rpcrdma_xprt *r_xprt;
585 struct rpcrdma_rep *rep;
586 int i;
587
588 if (buffer == NULL)
589 return;
590
591 req = container_of(buffer, struct rpcrdma_req, rl_xdr_buf[0]);
ee1a2c56
TT
592 if (req->rl_iov.length == 0) { /* see allocate above */
593 r_xprt = container_of(((struct rpcrdma_req *) req->rl_buffer)->rl_buffer,
594 struct rpcrdma_xprt, rx_buf);
595 } else
596 r_xprt = container_of(req->rl_buffer, struct rpcrdma_xprt, rx_buf);
f58851e6
TT
597 rep = req->rl_reply;
598
599 dprintk("RPC: %s: called on 0x%p%s\n",
600 __func__, rep, (rep && rep->rr_func) ? " (with waiter)" : "");
601
602 /*
603 * Finish the deregistration. When using mw bind, this was
604 * begun in rpcrdma_reply_handler(). In all other modes, we
605 * do it here, in thread context. The process is considered
606 * complete when the rr_func vector becomes NULL - this
607 * was put in place during rpcrdma_reply_handler() - the wait
608 * call below will not block if the dereg is "done". If
609 * interrupted, our framework will clean up.
610 */
611 for (i = 0; req->rl_nchunks;) {
612 --req->rl_nchunks;
613 i += rpcrdma_deregister_external(
614 &req->rl_segments[i], r_xprt, NULL);
615 }
616
617 if (rep && wait_event_interruptible(rep->rr_unbind, !rep->rr_func)) {
618 rep->rr_func = NULL; /* abandon the callback */
619 req->rl_reply = NULL;
620 }
621
622 if (req->rl_iov.length == 0) { /* see allocate above */
623 struct rpcrdma_req *oreq = (struct rpcrdma_req *)req->rl_buffer;
624 oreq->rl_reply = req->rl_reply;
625 (void) rpcrdma_deregister_internal(&r_xprt->rx_ia,
626 req->rl_handle,
627 &req->rl_iov);
628 kfree(req);
629 req = oreq;
630 }
631
632 /* Put back request+reply buffers */
633 rpcrdma_buffer_put(req);
634}
635
636/*
637 * send_request invokes the meat of RPC RDMA. It must do the following:
638 * 1. Marshal the RPC request into an RPC RDMA request, which means
639 * putting a header in front of data, and creating IOVs for RDMA
640 * from those in the request.
641 * 2. In marshaling, detect opportunities for RDMA, and use them.
642 * 3. Post a recv message to set up asynch completion, then send
643 * the request (rpcrdma_ep_post).
644 * 4. No partial sends are possible in the RPC-RDMA protocol (as in UDP).
645 */
646
647static int
648xprt_rdma_send_request(struct rpc_task *task)
649{
650 struct rpc_rqst *rqst = task->tk_rqstp;
651 struct rpc_xprt *xprt = task->tk_xprt;
652 struct rpcrdma_req *req = rpcr_to_rdmar(rqst);
653 struct rpcrdma_xprt *r_xprt = rpcx_to_rdmax(xprt);
654
655 /* marshal the send itself */
656 if (req->rl_niovs == 0 && rpcrdma_marshal_req(rqst) != 0) {
657 r_xprt->rx_stats.failed_marshal_count++;
658 dprintk("RPC: %s: rpcrdma_marshal_req failed\n",
659 __func__);
660 return -EIO;
661 }
662
663 if (req->rl_reply == NULL) /* e.g. reconnection */
664 rpcrdma_recv_buffer_get(req);
665
666 if (req->rl_reply) {
667 req->rl_reply->rr_func = rpcrdma_reply_handler;
668 /* this need only be done once, but... */
669 req->rl_reply->rr_xprt = xprt;
670 }
671
575448bd
TT
672 /* Must suppress retransmit to maintain credits */
673 if (req->rl_connect_cookie == xprt->connect_cookie)
674 goto drop_connection;
675 req->rl_connect_cookie = xprt->connect_cookie;
676
677 if (rpcrdma_ep_post(&r_xprt->rx_ia, &r_xprt->rx_ep, req))
678 goto drop_connection;
f58851e6 679
ad0e9e01 680 task->tk_bytes_sent += rqst->rq_snd_buf.len;
f58851e6
TT
681 rqst->rq_bytes_sent = 0;
682 return 0;
575448bd
TT
683
684drop_connection:
685 xprt_disconnect_done(xprt);
686 return -ENOTCONN; /* implies disconnect */
f58851e6
TT
687}
688
689static void xprt_rdma_print_stats(struct rpc_xprt *xprt, struct seq_file *seq)
690{
691 struct rpcrdma_xprt *r_xprt = rpcx_to_rdmax(xprt);
692 long idle_time = 0;
693
694 if (xprt_connected(xprt))
695 idle_time = (long)(jiffies - xprt->last_used) / HZ;
696
697 seq_printf(seq,
698 "\txprt:\trdma %u %lu %lu %lu %ld %lu %lu %lu %Lu %Lu "
699 "%lu %lu %lu %Lu %Lu %Lu %Lu %lu %lu %lu\n",
700
701 0, /* need a local port? */
702 xprt->stat.bind_count,
703 xprt->stat.connect_count,
704 xprt->stat.connect_time,
705 idle_time,
706 xprt->stat.sends,
707 xprt->stat.recvs,
708 xprt->stat.bad_xids,
709 xprt->stat.req_u,
710 xprt->stat.bklog_u,
711
712 r_xprt->rx_stats.read_chunk_count,
713 r_xprt->rx_stats.write_chunk_count,
714 r_xprt->rx_stats.reply_chunk_count,
715 r_xprt->rx_stats.total_rdma_request,
716 r_xprt->rx_stats.total_rdma_reply,
717 r_xprt->rx_stats.pullup_copy_count,
718 r_xprt->rx_stats.fixup_copy_count,
719 r_xprt->rx_stats.hardway_register_count,
720 r_xprt->rx_stats.failed_marshal_count,
721 r_xprt->rx_stats.bad_reply_count);
722}
723
724/*
725 * Plumbing for rpc transport switch and kernel module
726 */
727
728static struct rpc_xprt_ops xprt_rdma_procs = {
729 .reserve_xprt = xprt_rdma_reserve_xprt,
730 .release_xprt = xprt_release_xprt_cong, /* sunrpc/xprt.c */
731 .release_request = xprt_release_rqst_cong, /* ditto */
732 .set_retrans_timeout = xprt_set_retrans_timeout_def, /* ditto */
733 .rpcbind = rpcb_getport_async, /* sunrpc/rpcb_clnt.c */
734 .set_port = xprt_rdma_set_port,
735 .connect = xprt_rdma_connect,
736 .buf_alloc = xprt_rdma_allocate,
737 .buf_free = xprt_rdma_free,
738 .send_request = xprt_rdma_send_request,
739 .close = xprt_rdma_close,
740 .destroy = xprt_rdma_destroy,
741 .print_stats = xprt_rdma_print_stats
742};
743
744static struct xprt_class xprt_rdma = {
745 .list = LIST_HEAD_INIT(xprt_rdma.list),
746 .name = "rdma",
747 .owner = THIS_MODULE,
748 .ident = XPRT_TRANSPORT_RDMA,
749 .setup = xprt_setup_rdma,
750};
751
752static void __exit xprt_rdma_cleanup(void)
753{
754 int rc;
755
b3cd8d45 756 dprintk(KERN_INFO "RPCRDMA Module Removed, deregister RPC RDMA transport\n");
f58851e6
TT
757#ifdef RPC_DEBUG
758 if (sunrpc_table_header) {
759 unregister_sysctl_table(sunrpc_table_header);
760 sunrpc_table_header = NULL;
761 }
762#endif
763 rc = xprt_unregister_transport(&xprt_rdma);
764 if (rc)
765 dprintk("RPC: %s: xprt_unregister returned %i\n",
766 __func__, rc);
767}
768
769static int __init xprt_rdma_init(void)
770{
771 int rc;
772
773 rc = xprt_register_transport(&xprt_rdma);
774
775 if (rc)
776 return rc;
777
778 dprintk(KERN_INFO "RPCRDMA Module Init, register RPC RDMA transport\n");
779
780 dprintk(KERN_INFO "Defaults:\n");
781 dprintk(KERN_INFO "\tSlots %d\n"
782 "\tMaxInlineRead %d\n\tMaxInlineWrite %d\n",
783 xprt_rdma_slot_table_entries,
784 xprt_rdma_max_inline_read, xprt_rdma_max_inline_write);
785 dprintk(KERN_INFO "\tPadding %d\n\tMemreg %d\n",
786 xprt_rdma_inline_write_padding, xprt_rdma_memreg_strategy);
787
788#ifdef RPC_DEBUG
789 if (!sunrpc_table_header)
790 sunrpc_table_header = register_sysctl_table(sunrpc_table);
791#endif
792 return 0;
793}
794
795module_init(xprt_rdma_init);
796module_exit(xprt_rdma_cleanup);