GNU Linux-libre 4.19.211-gnu1
[releases.git] / net / sunrpc / xprtrdma / verbs.c
1 // SPDX-License-Identifier: GPL-2.0 OR BSD-3-Clause
2 /*
3  * Copyright (c) 2014-2017 Oracle.  All rights reserved.
4  * Copyright (c) 2003-2007 Network Appliance, Inc. All rights reserved.
5  *
6  * This software is available to you under a choice of one of two
7  * licenses.  You may choose to be licensed under the terms of the GNU
8  * General Public License (GPL) Version 2, available from the file
9  * COPYING in the main directory of this source tree, or the BSD-type
10  * license below:
11  *
12  * Redistribution and use in source and binary forms, with or without
13  * modification, are permitted provided that the following conditions
14  * are met:
15  *
16  *      Redistributions of source code must retain the above copyright
17  *      notice, this list of conditions and the following disclaimer.
18  *
19  *      Redistributions in binary form must reproduce the above
20  *      copyright notice, this list of conditions and the following
21  *      disclaimer in the documentation and/or other materials provided
22  *      with the distribution.
23  *
24  *      Neither the name of the Network Appliance, Inc. nor the names of
25  *      its contributors may be used to endorse or promote products
26  *      derived from this software without specific prior written
27  *      permission.
28  *
29  * THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS
30  * "AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT
31  * LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR
32  * A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT
33  * OWNER OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL,
34  * SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT
35  * LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
36  * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
37  * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
38  * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE
39  * OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
40  */
41
42 /*
43  * verbs.c
44  *
45  * Encapsulates the major functions managing:
46  *  o adapters
47  *  o endpoints
48  *  o connections
49  *  o buffer memory
50  */
51
52 #include <linux/interrupt.h>
53 #include <linux/slab.h>
54 #include <linux/sunrpc/addr.h>
55 #include <linux/sunrpc/svc_rdma.h>
56
57 #include <asm-generic/barrier.h>
58 #include <asm/bitops.h>
59
60 #include <rdma/ib_cm.h>
61
62 #include "xprt_rdma.h"
63 #include <trace/events/rpcrdma.h>
64
65 /*
66  * Globals/Macros
67  */
68
69 #if IS_ENABLED(CONFIG_SUNRPC_DEBUG)
70 # define RPCDBG_FACILITY        RPCDBG_TRANS
71 #endif
72
73 /*
74  * internal functions
75  */
76 static void rpcrdma_sendctx_put_locked(struct rpcrdma_sendctx *sc);
77 static void rpcrdma_mrs_create(struct rpcrdma_xprt *r_xprt);
78 static void rpcrdma_mrs_destroy(struct rpcrdma_buffer *buf);
79 static int rpcrdma_create_rep(struct rpcrdma_xprt *r_xprt, bool temp);
80 static void rpcrdma_dma_unmap_regbuf(struct rpcrdma_regbuf *rb);
81
82 struct workqueue_struct *rpcrdma_receive_wq __read_mostly;
83
84 int
85 rpcrdma_alloc_wq(void)
86 {
87         struct workqueue_struct *recv_wq;
88
89         recv_wq = alloc_workqueue("xprtrdma_receive",
90                                   WQ_MEM_RECLAIM | WQ_HIGHPRI,
91                                   0);
92         if (!recv_wq)
93                 return -ENOMEM;
94
95         rpcrdma_receive_wq = recv_wq;
96         return 0;
97 }
98
99 void
100 rpcrdma_destroy_wq(void)
101 {
102         struct workqueue_struct *wq;
103
104         if (rpcrdma_receive_wq) {
105                 wq = rpcrdma_receive_wq;
106                 rpcrdma_receive_wq = NULL;
107                 destroy_workqueue(wq);
108         }
109 }
110
111 static void
112 rpcrdma_qp_async_error_upcall(struct ib_event *event, void *context)
113 {
114         struct rpcrdma_ep *ep = context;
115         struct rpcrdma_xprt *r_xprt = container_of(ep, struct rpcrdma_xprt,
116                                                    rx_ep);
117
118         trace_xprtrdma_qp_error(r_xprt, event);
119         pr_err("rpcrdma: %s on device %s ep %p\n",
120                ib_event_msg(event->event), event->device->name, context);
121
122         if (ep->rep_connected == 1) {
123                 ep->rep_connected = -EIO;
124                 rpcrdma_conn_func(ep);
125                 wake_up_all(&ep->rep_connect_wait);
126         }
127 }
128
129 /**
130  * rpcrdma_wc_send - Invoked by RDMA provider for each polled Send WC
131  * @cq: completion queue (ignored)
132  * @wc: completed WR
133  *
134  */
135 static void
136 rpcrdma_wc_send(struct ib_cq *cq, struct ib_wc *wc)
137 {
138         struct ib_cqe *cqe = wc->wr_cqe;
139         struct rpcrdma_sendctx *sc =
140                 container_of(cqe, struct rpcrdma_sendctx, sc_cqe);
141
142         /* WARNING: Only wr_cqe and status are reliable at this point */
143         trace_xprtrdma_wc_send(sc, wc);
144         if (wc->status != IB_WC_SUCCESS && wc->status != IB_WC_WR_FLUSH_ERR)
145                 pr_err("rpcrdma: Send: %s (%u/0x%x)\n",
146                        ib_wc_status_msg(wc->status),
147                        wc->status, wc->vendor_err);
148
149         rpcrdma_sendctx_put_locked(sc);
150 }
151
152 /**
153  * rpcrdma_wc_receive - Invoked by RDMA provider for each polled Receive WC
154  * @cq: completion queue (ignored)
155  * @wc: completed WR
156  *
157  */
158 static void
159 rpcrdma_wc_receive(struct ib_cq *cq, struct ib_wc *wc)
160 {
161         struct ib_cqe *cqe = wc->wr_cqe;
162         struct rpcrdma_rep *rep = container_of(cqe, struct rpcrdma_rep,
163                                                rr_cqe);
164
165         /* WARNING: Only wr_id and status are reliable at this point */
166         trace_xprtrdma_wc_receive(wc);
167         if (wc->status != IB_WC_SUCCESS)
168                 goto out_fail;
169
170         /* status == SUCCESS means all fields in wc are trustworthy */
171         rpcrdma_set_xdrlen(&rep->rr_hdrbuf, wc->byte_len);
172         rep->rr_wc_flags = wc->wc_flags;
173         rep->rr_inv_rkey = wc->ex.invalidate_rkey;
174
175         ib_dma_sync_single_for_cpu(rdmab_device(rep->rr_rdmabuf),
176                                    rdmab_addr(rep->rr_rdmabuf),
177                                    wc->byte_len, DMA_FROM_DEVICE);
178
179 out_schedule:
180         rpcrdma_reply_handler(rep);
181         return;
182
183 out_fail:
184         if (wc->status != IB_WC_WR_FLUSH_ERR)
185                 pr_err("rpcrdma: Recv: %s (%u/0x%x)\n",
186                        ib_wc_status_msg(wc->status),
187                        wc->status, wc->vendor_err);
188         rpcrdma_set_xdrlen(&rep->rr_hdrbuf, 0);
189         goto out_schedule;
190 }
191
192 static void
193 rpcrdma_update_connect_private(struct rpcrdma_xprt *r_xprt,
194                                struct rdma_conn_param *param)
195 {
196         struct rpcrdma_create_data_internal *cdata = &r_xprt->rx_data;
197         const struct rpcrdma_connect_private *pmsg = param->private_data;
198         unsigned int rsize, wsize;
199
200         /* Default settings for RPC-over-RDMA Version One */
201         r_xprt->rx_ia.ri_implicit_roundup = xprt_rdma_pad_optimize;
202         rsize = RPCRDMA_V1_DEF_INLINE_SIZE;
203         wsize = RPCRDMA_V1_DEF_INLINE_SIZE;
204
205         if (pmsg &&
206             pmsg->cp_magic == rpcrdma_cmp_magic &&
207             pmsg->cp_version == RPCRDMA_CMP_VERSION) {
208                 r_xprt->rx_ia.ri_implicit_roundup = true;
209                 rsize = rpcrdma_decode_buffer_size(pmsg->cp_send_size);
210                 wsize = rpcrdma_decode_buffer_size(pmsg->cp_recv_size);
211         }
212
213         if (rsize < cdata->inline_rsize)
214                 cdata->inline_rsize = rsize;
215         if (wsize < cdata->inline_wsize)
216                 cdata->inline_wsize = wsize;
217         dprintk("RPC:       %s: max send %u, max recv %u\n",
218                 __func__, cdata->inline_wsize, cdata->inline_rsize);
219         rpcrdma_set_max_header_sizes(r_xprt);
220 }
221
222 static int
223 rpcrdma_conn_upcall(struct rdma_cm_id *id, struct rdma_cm_event *event)
224 {
225         struct rpcrdma_xprt *xprt = id->context;
226         struct rpcrdma_ia *ia = &xprt->rx_ia;
227         struct rpcrdma_ep *ep = &xprt->rx_ep;
228         int connstate = 0;
229
230         trace_xprtrdma_conn_upcall(xprt, event);
231         switch (event->event) {
232         case RDMA_CM_EVENT_ADDR_RESOLVED:
233         case RDMA_CM_EVENT_ROUTE_RESOLVED:
234                 ia->ri_async_rc = 0;
235                 complete(&ia->ri_done);
236                 break;
237         case RDMA_CM_EVENT_ADDR_ERROR:
238                 ia->ri_async_rc = -EPROTO;
239                 complete(&ia->ri_done);
240                 break;
241         case RDMA_CM_EVENT_ROUTE_ERROR:
242                 ia->ri_async_rc = -ENETUNREACH;
243                 complete(&ia->ri_done);
244                 break;
245         case RDMA_CM_EVENT_DEVICE_REMOVAL:
246 #if IS_ENABLED(CONFIG_SUNRPC_DEBUG)
247                 pr_info("rpcrdma: removing device %s for %s:%s\n",
248                         ia->ri_device->name,
249                         rpcrdma_addrstr(xprt), rpcrdma_portstr(xprt));
250 #endif
251                 init_completion(&ia->ri_remove_done);
252                 set_bit(RPCRDMA_IAF_REMOVING, &ia->ri_flags);
253                 ep->rep_connected = -ENODEV;
254                 xprt_force_disconnect(&xprt->rx_xprt);
255                 wait_for_completion(&ia->ri_remove_done);
256
257                 ia->ri_id = NULL;
258                 ia->ri_device = NULL;
259                 /* Return 1 to ensure the core destroys the id. */
260                 return 1;
261         case RDMA_CM_EVENT_ESTABLISHED:
262                 ++xprt->rx_xprt.connect_cookie;
263                 connstate = 1;
264                 rpcrdma_update_connect_private(xprt, &event->param.conn);
265                 goto connected;
266         case RDMA_CM_EVENT_CONNECT_ERROR:
267                 connstate = -ENOTCONN;
268                 goto connected;
269         case RDMA_CM_EVENT_UNREACHABLE:
270                 connstate = -ENETUNREACH;
271                 goto connected;
272         case RDMA_CM_EVENT_REJECTED:
273                 dprintk("rpcrdma: connection to %s:%s rejected: %s\n",
274                         rpcrdma_addrstr(xprt), rpcrdma_portstr(xprt),
275                         rdma_reject_msg(id, event->status));
276                 connstate = -ECONNREFUSED;
277                 if (event->status == IB_CM_REJ_STALE_CONN)
278                         connstate = -EAGAIN;
279                 goto connected;
280         case RDMA_CM_EVENT_DISCONNECTED:
281                 ++xprt->rx_xprt.connect_cookie;
282                 connstate = -ECONNABORTED;
283 connected:
284                 ep->rep_connected = connstate;
285                 rpcrdma_conn_func(ep);
286                 wake_up_all(&ep->rep_connect_wait);
287                 /*FALLTHROUGH*/
288         default:
289                 dprintk("RPC:       %s: %s:%s on %s/%s (ep 0x%p): %s\n",
290                         __func__,
291                         rpcrdma_addrstr(xprt), rpcrdma_portstr(xprt),
292                         ia->ri_device->name, ia->ri_ops->ro_displayname,
293                         ep, rdma_event_msg(event->event));
294                 break;
295         }
296
297         return 0;
298 }
299
300 static struct rdma_cm_id *
301 rpcrdma_create_id(struct rpcrdma_xprt *xprt, struct rpcrdma_ia *ia)
302 {
303         unsigned long wtimeout = msecs_to_jiffies(RDMA_RESOLVE_TIMEOUT) + 1;
304         struct rdma_cm_id *id;
305         int rc;
306
307         trace_xprtrdma_conn_start(xprt);
308
309         init_completion(&ia->ri_done);
310
311         id = rdma_create_id(xprt->rx_xprt.xprt_net, rpcrdma_conn_upcall,
312                             xprt, RDMA_PS_TCP, IB_QPT_RC);
313         if (IS_ERR(id)) {
314                 rc = PTR_ERR(id);
315                 dprintk("RPC:       %s: rdma_create_id() failed %i\n",
316                         __func__, rc);
317                 return id;
318         }
319
320         ia->ri_async_rc = -ETIMEDOUT;
321         rc = rdma_resolve_addr(id, NULL,
322                                (struct sockaddr *)&xprt->rx_xprt.addr,
323                                RDMA_RESOLVE_TIMEOUT);
324         if (rc) {
325                 dprintk("RPC:       %s: rdma_resolve_addr() failed %i\n",
326                         __func__, rc);
327                 goto out;
328         }
329         rc = wait_for_completion_interruptible_timeout(&ia->ri_done, wtimeout);
330         if (rc < 0) {
331                 trace_xprtrdma_conn_tout(xprt);
332                 goto out;
333         }
334
335         rc = ia->ri_async_rc;
336         if (rc)
337                 goto out;
338
339         ia->ri_async_rc = -ETIMEDOUT;
340         rc = rdma_resolve_route(id, RDMA_RESOLVE_TIMEOUT);
341         if (rc) {
342                 dprintk("RPC:       %s: rdma_resolve_route() failed %i\n",
343                         __func__, rc);
344                 goto out;
345         }
346         rc = wait_for_completion_interruptible_timeout(&ia->ri_done, wtimeout);
347         if (rc < 0) {
348                 trace_xprtrdma_conn_tout(xprt);
349                 goto out;
350         }
351         rc = ia->ri_async_rc;
352         if (rc)
353                 goto out;
354
355         return id;
356
357 out:
358         rdma_destroy_id(id);
359         return ERR_PTR(rc);
360 }
361
362 /*
363  * Exported functions.
364  */
365
366 /**
367  * rpcrdma_ia_open - Open and initialize an Interface Adapter.
368  * @xprt: transport with IA to (re)initialize
369  *
370  * Returns 0 on success, negative errno if an appropriate
371  * Interface Adapter could not be found and opened.
372  */
373 int
374 rpcrdma_ia_open(struct rpcrdma_xprt *xprt)
375 {
376         struct rpcrdma_ia *ia = &xprt->rx_ia;
377         int rc;
378
379         ia->ri_id = rpcrdma_create_id(xprt, ia);
380         if (IS_ERR(ia->ri_id)) {
381                 rc = PTR_ERR(ia->ri_id);
382                 goto out_err;
383         }
384         ia->ri_device = ia->ri_id->device;
385
386         ia->ri_pd = ib_alloc_pd(ia->ri_device, 0);
387         if (IS_ERR(ia->ri_pd)) {
388                 rc = PTR_ERR(ia->ri_pd);
389                 pr_err("rpcrdma: ib_alloc_pd() returned %d\n", rc);
390                 goto out_err;
391         }
392
393         switch (xprt_rdma_memreg_strategy) {
394         case RPCRDMA_FRWR:
395                 if (frwr_is_supported(ia)) {
396                         ia->ri_ops = &rpcrdma_frwr_memreg_ops;
397                         break;
398                 }
399                 /*FALLTHROUGH*/
400         case RPCRDMA_MTHCAFMR:
401                 if (fmr_is_supported(ia)) {
402                         ia->ri_ops = &rpcrdma_fmr_memreg_ops;
403                         break;
404                 }
405                 /*FALLTHROUGH*/
406         default:
407                 pr_err("rpcrdma: Device %s does not support memreg mode %d\n",
408                        ia->ri_device->name, xprt_rdma_memreg_strategy);
409                 rc = -EINVAL;
410                 goto out_err;
411         }
412
413         return 0;
414
415 out_err:
416         rpcrdma_ia_close(ia);
417         return rc;
418 }
419
420 /**
421  * rpcrdma_ia_remove - Handle device driver unload
422  * @ia: interface adapter being removed
423  *
424  * Divest transport H/W resources associated with this adapter,
425  * but allow it to be restored later.
426  */
427 void
428 rpcrdma_ia_remove(struct rpcrdma_ia *ia)
429 {
430         struct rpcrdma_xprt *r_xprt = container_of(ia, struct rpcrdma_xprt,
431                                                    rx_ia);
432         struct rpcrdma_ep *ep = &r_xprt->rx_ep;
433         struct rpcrdma_buffer *buf = &r_xprt->rx_buf;
434         struct rpcrdma_req *req;
435         struct rpcrdma_rep *rep;
436
437         cancel_delayed_work_sync(&buf->rb_refresh_worker);
438
439         /* This is similar to rpcrdma_ep_destroy, but:
440          * - Don't cancel the connect worker.
441          * - Don't call rpcrdma_ep_disconnect, which waits
442          *   for another conn upcall, which will deadlock.
443          * - rdma_disconnect is unneeded, the underlying
444          *   connection is already gone.
445          */
446         if (ia->ri_id->qp) {
447                 ib_drain_qp(ia->ri_id->qp);
448                 rdma_destroy_qp(ia->ri_id);
449                 ia->ri_id->qp = NULL;
450         }
451         ib_free_cq(ep->rep_attr.recv_cq);
452         ep->rep_attr.recv_cq = NULL;
453         ib_free_cq(ep->rep_attr.send_cq);
454         ep->rep_attr.send_cq = NULL;
455
456         /* The ULP is responsible for ensuring all DMA
457          * mappings and MRs are gone.
458          */
459         list_for_each_entry(rep, &buf->rb_recv_bufs, rr_list)
460                 rpcrdma_dma_unmap_regbuf(rep->rr_rdmabuf);
461         list_for_each_entry(req, &buf->rb_allreqs, rl_all) {
462                 rpcrdma_dma_unmap_regbuf(req->rl_rdmabuf);
463                 rpcrdma_dma_unmap_regbuf(req->rl_sendbuf);
464                 rpcrdma_dma_unmap_regbuf(req->rl_recvbuf);
465         }
466         rpcrdma_mrs_destroy(buf);
467         ib_dealloc_pd(ia->ri_pd);
468         ia->ri_pd = NULL;
469
470         /* Allow waiters to continue */
471         complete(&ia->ri_remove_done);
472
473         trace_xprtrdma_remove(r_xprt);
474 }
475
476 /**
477  * rpcrdma_ia_close - Clean up/close an IA.
478  * @ia: interface adapter to close
479  *
480  */
481 void
482 rpcrdma_ia_close(struct rpcrdma_ia *ia)
483 {
484         if (ia->ri_id != NULL && !IS_ERR(ia->ri_id)) {
485                 if (ia->ri_id->qp)
486                         rdma_destroy_qp(ia->ri_id);
487                 rdma_destroy_id(ia->ri_id);
488         }
489         ia->ri_id = NULL;
490         ia->ri_device = NULL;
491
492         /* If the pd is still busy, xprtrdma missed freeing a resource */
493         if (ia->ri_pd && !IS_ERR(ia->ri_pd))
494                 ib_dealloc_pd(ia->ri_pd);
495         ia->ri_pd = NULL;
496 }
497
498 /*
499  * Create unconnected endpoint.
500  */
501 int
502 rpcrdma_ep_create(struct rpcrdma_ep *ep, struct rpcrdma_ia *ia,
503                   struct rpcrdma_create_data_internal *cdata)
504 {
505         struct rpcrdma_connect_private *pmsg = &ep->rep_cm_private;
506         struct ib_cq *sendcq, *recvcq;
507         unsigned int max_sge;
508         int rc;
509
510         max_sge = min_t(unsigned int, ia->ri_device->attrs.max_send_sge,
511                         RPCRDMA_MAX_SEND_SGES);
512         if (max_sge < RPCRDMA_MIN_SEND_SGES) {
513                 pr_warn("rpcrdma: HCA provides only %d send SGEs\n", max_sge);
514                 return -ENOMEM;
515         }
516         ia->ri_max_send_sges = max_sge;
517
518         rc = ia->ri_ops->ro_open(ia, ep, cdata);
519         if (rc)
520                 return rc;
521
522         ep->rep_attr.event_handler = rpcrdma_qp_async_error_upcall;
523         ep->rep_attr.qp_context = ep;
524         ep->rep_attr.srq = NULL;
525         ep->rep_attr.cap.max_send_sge = max_sge;
526         ep->rep_attr.cap.max_recv_sge = 1;
527         ep->rep_attr.cap.max_inline_data = 0;
528         ep->rep_attr.sq_sig_type = IB_SIGNAL_REQ_WR;
529         ep->rep_attr.qp_type = IB_QPT_RC;
530         ep->rep_attr.port_num = ~0;
531
532         dprintk("RPC:       %s: requested max: dtos: send %d recv %d; "
533                 "iovs: send %d recv %d\n",
534                 __func__,
535                 ep->rep_attr.cap.max_send_wr,
536                 ep->rep_attr.cap.max_recv_wr,
537                 ep->rep_attr.cap.max_send_sge,
538                 ep->rep_attr.cap.max_recv_sge);
539
540         /* set trigger for requesting send completion */
541         ep->rep_send_batch = min_t(unsigned int, RPCRDMA_MAX_SEND_BATCH,
542                                    cdata->max_requests >> 2);
543         ep->rep_send_count = ep->rep_send_batch;
544         init_waitqueue_head(&ep->rep_connect_wait);
545         INIT_DELAYED_WORK(&ep->rep_connect_worker, rpcrdma_connect_worker);
546
547         sendcq = ib_alloc_cq(ia->ri_device, NULL,
548                              ep->rep_attr.cap.max_send_wr + 1,
549                              ia->ri_device->num_comp_vectors > 1 ? 1 : 0,
550                              IB_POLL_WORKQUEUE);
551         if (IS_ERR(sendcq)) {
552                 rc = PTR_ERR(sendcq);
553                 dprintk("RPC:       %s: failed to create send CQ: %i\n",
554                         __func__, rc);
555                 goto out1;
556         }
557
558         recvcq = ib_alloc_cq(ia->ri_device, NULL,
559                              ep->rep_attr.cap.max_recv_wr + 1,
560                              0, IB_POLL_WORKQUEUE);
561         if (IS_ERR(recvcq)) {
562                 rc = PTR_ERR(recvcq);
563                 dprintk("RPC:       %s: failed to create recv CQ: %i\n",
564                         __func__, rc);
565                 goto out2;
566         }
567
568         ep->rep_attr.send_cq = sendcq;
569         ep->rep_attr.recv_cq = recvcq;
570
571         /* Initialize cma parameters */
572         memset(&ep->rep_remote_cma, 0, sizeof(ep->rep_remote_cma));
573
574         /* Prepare RDMA-CM private message */
575         pmsg->cp_magic = rpcrdma_cmp_magic;
576         pmsg->cp_version = RPCRDMA_CMP_VERSION;
577         pmsg->cp_flags |= ia->ri_ops->ro_send_w_inv_ok;
578         pmsg->cp_send_size = rpcrdma_encode_buffer_size(cdata->inline_wsize);
579         pmsg->cp_recv_size = rpcrdma_encode_buffer_size(cdata->inline_rsize);
580         ep->rep_remote_cma.private_data = pmsg;
581         ep->rep_remote_cma.private_data_len = sizeof(*pmsg);
582
583         /* Client offers RDMA Read but does not initiate */
584         ep->rep_remote_cma.initiator_depth = 0;
585         ep->rep_remote_cma.responder_resources =
586                 min_t(int, U8_MAX, ia->ri_device->attrs.max_qp_rd_atom);
587
588         /* Limit transport retries so client can detect server
589          * GID changes quickly. RPC layer handles re-establishing
590          * transport connection and retransmission.
591          */
592         ep->rep_remote_cma.retry_count = 6;
593
594         /* RPC-over-RDMA handles its own flow control. In addition,
595          * make all RNR NAKs visible so we know that RPC-over-RDMA
596          * flow control is working correctly (no NAKs should be seen).
597          */
598         ep->rep_remote_cma.flow_control = 0;
599         ep->rep_remote_cma.rnr_retry_count = 0;
600
601         return 0;
602
603 out2:
604         ib_free_cq(sendcq);
605 out1:
606         return rc;
607 }
608
609 /*
610  * rpcrdma_ep_destroy
611  *
612  * Disconnect and destroy endpoint. After this, the only
613  * valid operations on the ep are to free it (if dynamically
614  * allocated) or re-create it.
615  */
616 void
617 rpcrdma_ep_destroy(struct rpcrdma_ep *ep, struct rpcrdma_ia *ia)
618 {
619         cancel_delayed_work_sync(&ep->rep_connect_worker);
620
621         if (ia->ri_id && ia->ri_id->qp) {
622                 rpcrdma_ep_disconnect(ep, ia);
623                 rdma_destroy_qp(ia->ri_id);
624                 ia->ri_id->qp = NULL;
625         }
626
627         if (ep->rep_attr.recv_cq)
628                 ib_free_cq(ep->rep_attr.recv_cq);
629         if (ep->rep_attr.send_cq)
630                 ib_free_cq(ep->rep_attr.send_cq);
631 }
632
633 /* Re-establish a connection after a device removal event.
634  * Unlike a normal reconnection, a fresh PD and a new set
635  * of MRs and buffers is needed.
636  */
637 static int
638 rpcrdma_ep_recreate_xprt(struct rpcrdma_xprt *r_xprt,
639                          struct rpcrdma_ep *ep, struct rpcrdma_ia *ia)
640 {
641         int rc, err;
642
643         trace_xprtrdma_reinsert(r_xprt);
644
645         rc = -EHOSTUNREACH;
646         if (rpcrdma_ia_open(r_xprt))
647                 goto out1;
648
649         rc = -ENOMEM;
650         err = rpcrdma_ep_create(ep, ia, &r_xprt->rx_data);
651         if (err) {
652                 pr_err("rpcrdma: rpcrdma_ep_create returned %d\n", err);
653                 goto out2;
654         }
655
656         rc = -ENETUNREACH;
657         err = rdma_create_qp(ia->ri_id, ia->ri_pd, &ep->rep_attr);
658         if (err) {
659                 pr_err("rpcrdma: rdma_create_qp returned %d\n", err);
660                 goto out3;
661         }
662
663         rpcrdma_mrs_create(r_xprt);
664         return 0;
665
666 out3:
667         rpcrdma_ep_destroy(ep, ia);
668 out2:
669         rpcrdma_ia_close(ia);
670 out1:
671         return rc;
672 }
673
674 static int
675 rpcrdma_ep_reconnect(struct rpcrdma_xprt *r_xprt, struct rpcrdma_ep *ep,
676                      struct rpcrdma_ia *ia)
677 {
678         struct rdma_cm_id *id, *old;
679         int err, rc;
680
681         trace_xprtrdma_reconnect(r_xprt);
682
683         rpcrdma_ep_disconnect(ep, ia);
684
685         rc = -EHOSTUNREACH;
686         id = rpcrdma_create_id(r_xprt, ia);
687         if (IS_ERR(id))
688                 goto out;
689
690         /* As long as the new ID points to the same device as the
691          * old ID, we can reuse the transport's existing PD and all
692          * previously allocated MRs. Also, the same device means
693          * the transport's previous DMA mappings are still valid.
694          *
695          * This is a sanity check only. There should be no way these
696          * point to two different devices here.
697          */
698         old = id;
699         rc = -ENETUNREACH;
700         if (ia->ri_device != id->device) {
701                 pr_err("rpcrdma: can't reconnect on different device!\n");
702                 goto out_destroy;
703         }
704
705         err = rdma_create_qp(id, ia->ri_pd, &ep->rep_attr);
706         if (err) {
707                 dprintk("RPC:       %s: rdma_create_qp returned %d\n",
708                         __func__, err);
709                 goto out_destroy;
710         }
711
712         /* Atomically replace the transport's ID and QP. */
713         rc = 0;
714         old = ia->ri_id;
715         ia->ri_id = id;
716         rdma_destroy_qp(old);
717
718 out_destroy:
719         rdma_destroy_id(old);
720 out:
721         return rc;
722 }
723
724 /*
725  * Connect unconnected endpoint.
726  */
727 int
728 rpcrdma_ep_connect(struct rpcrdma_ep *ep, struct rpcrdma_ia *ia)
729 {
730         struct rpcrdma_xprt *r_xprt = container_of(ia, struct rpcrdma_xprt,
731                                                    rx_ia);
732         int rc;
733
734 retry:
735         switch (ep->rep_connected) {
736         case 0:
737                 dprintk("RPC:       %s: connecting...\n", __func__);
738                 rc = rdma_create_qp(ia->ri_id, ia->ri_pd, &ep->rep_attr);
739                 if (rc) {
740                         dprintk("RPC:       %s: rdma_create_qp failed %i\n",
741                                 __func__, rc);
742                         rc = -ENETUNREACH;
743                         goto out_noupdate;
744                 }
745                 break;
746         case -ENODEV:
747                 rc = rpcrdma_ep_recreate_xprt(r_xprt, ep, ia);
748                 if (rc)
749                         goto out_noupdate;
750                 break;
751         default:
752                 rc = rpcrdma_ep_reconnect(r_xprt, ep, ia);
753                 if (rc)
754                         goto out;
755         }
756
757         ep->rep_connected = 0;
758         rpcrdma_post_recvs(r_xprt, true);
759
760         rc = rdma_connect(ia->ri_id, &ep->rep_remote_cma);
761         if (rc) {
762                 dprintk("RPC:       %s: rdma_connect() failed with %i\n",
763                                 __func__, rc);
764                 goto out;
765         }
766
767         wait_event_interruptible(ep->rep_connect_wait, ep->rep_connected != 0);
768         if (ep->rep_connected <= 0) {
769                 if (ep->rep_connected == -EAGAIN)
770                         goto retry;
771                 rc = ep->rep_connected;
772                 goto out;
773         }
774
775         dprintk("RPC:       %s: connected\n", __func__);
776
777 out:
778         if (rc)
779                 ep->rep_connected = rc;
780
781 out_noupdate:
782         return rc;
783 }
784
785 /*
786  * rpcrdma_ep_disconnect
787  *
788  * This is separate from destroy to facilitate the ability
789  * to reconnect without recreating the endpoint.
790  *
791  * This call is not reentrant, and must not be made in parallel
792  * on the same endpoint.
793  */
794 void
795 rpcrdma_ep_disconnect(struct rpcrdma_ep *ep, struct rpcrdma_ia *ia)
796 {
797         int rc;
798
799         rc = rdma_disconnect(ia->ri_id);
800         if (!rc)
801                 /* returns without wait if not connected */
802                 wait_event_interruptible(ep->rep_connect_wait,
803                                                         ep->rep_connected != 1);
804         else
805                 ep->rep_connected = rc;
806         trace_xprtrdma_disconnect(container_of(ep, struct rpcrdma_xprt,
807                                                rx_ep), rc);
808
809         ib_drain_qp(ia->ri_id->qp);
810 }
811
812 /* Fixed-size circular FIFO queue. This implementation is wait-free and
813  * lock-free.
814  *
815  * Consumer is the code path that posts Sends. This path dequeues a
816  * sendctx for use by a Send operation. Multiple consumer threads
817  * are serialized by the RPC transport lock, which allows only one
818  * ->send_request call at a time.
819  *
820  * Producer is the code path that handles Send completions. This path
821  * enqueues a sendctx that has been completed. Multiple producer
822  * threads are serialized by the ib_poll_cq() function.
823  */
824
825 /* rpcrdma_sendctxs_destroy() assumes caller has already quiesced
826  * queue activity, and ib_drain_qp has flushed all remaining Send
827  * requests.
828  */
829 static void rpcrdma_sendctxs_destroy(struct rpcrdma_buffer *buf)
830 {
831         unsigned long i;
832
833         for (i = 0; i <= buf->rb_sc_last; i++)
834                 kfree(buf->rb_sc_ctxs[i]);
835         kfree(buf->rb_sc_ctxs);
836 }
837
838 static struct rpcrdma_sendctx *rpcrdma_sendctx_create(struct rpcrdma_ia *ia)
839 {
840         struct rpcrdma_sendctx *sc;
841
842         sc = kzalloc(sizeof(*sc) +
843                      ia->ri_max_send_sges * sizeof(struct ib_sge),
844                      GFP_KERNEL);
845         if (!sc)
846                 return NULL;
847
848         sc->sc_wr.wr_cqe = &sc->sc_cqe;
849         sc->sc_wr.sg_list = sc->sc_sges;
850         sc->sc_wr.opcode = IB_WR_SEND;
851         sc->sc_cqe.done = rpcrdma_wc_send;
852         return sc;
853 }
854
855 static int rpcrdma_sendctxs_create(struct rpcrdma_xprt *r_xprt)
856 {
857         struct rpcrdma_buffer *buf = &r_xprt->rx_buf;
858         struct rpcrdma_sendctx *sc;
859         unsigned long i;
860
861         /* Maximum number of concurrent outstanding Send WRs. Capping
862          * the circular queue size stops Send Queue overflow by causing
863          * the ->send_request call to fail temporarily before too many
864          * Sends are posted.
865          */
866         i = buf->rb_max_requests + RPCRDMA_MAX_BC_REQUESTS;
867         dprintk("RPC:       %s: allocating %lu send_ctxs\n", __func__, i);
868         buf->rb_sc_ctxs = kcalloc(i, sizeof(sc), GFP_KERNEL);
869         if (!buf->rb_sc_ctxs)
870                 return -ENOMEM;
871
872         buf->rb_sc_last = i - 1;
873         for (i = 0; i <= buf->rb_sc_last; i++) {
874                 sc = rpcrdma_sendctx_create(&r_xprt->rx_ia);
875                 if (!sc)
876                         return -ENOMEM;
877
878                 sc->sc_xprt = r_xprt;
879                 buf->rb_sc_ctxs[i] = sc;
880         }
881         buf->rb_flags = 0;
882
883         return 0;
884 }
885
886 /* The sendctx queue is not guaranteed to have a size that is a
887  * power of two, thus the helpers in circ_buf.h cannot be used.
888  * The other option is to use modulus (%), which can be expensive.
889  */
890 static unsigned long rpcrdma_sendctx_next(struct rpcrdma_buffer *buf,
891                                           unsigned long item)
892 {
893         return likely(item < buf->rb_sc_last) ? item + 1 : 0;
894 }
895
896 /**
897  * rpcrdma_sendctx_get_locked - Acquire a send context
898  * @buf: transport buffers from which to acquire an unused context
899  *
900  * Returns pointer to a free send completion context; or NULL if
901  * the queue is empty.
902  *
903  * Usage: Called to acquire an SGE array before preparing a Send WR.
904  *
905  * The caller serializes calls to this function (per rpcrdma_buffer),
906  * and provides an effective memory barrier that flushes the new value
907  * of rb_sc_head.
908  */
909 struct rpcrdma_sendctx *rpcrdma_sendctx_get_locked(struct rpcrdma_buffer *buf)
910 {
911         struct rpcrdma_xprt *r_xprt;
912         struct rpcrdma_sendctx *sc;
913         unsigned long next_head;
914
915         next_head = rpcrdma_sendctx_next(buf, buf->rb_sc_head);
916
917         if (next_head == READ_ONCE(buf->rb_sc_tail))
918                 goto out_emptyq;
919
920         /* ORDER: item must be accessed _before_ head is updated */
921         sc = buf->rb_sc_ctxs[next_head];
922
923         /* Releasing the lock in the caller acts as a memory
924          * barrier that flushes rb_sc_head.
925          */
926         buf->rb_sc_head = next_head;
927
928         return sc;
929
930 out_emptyq:
931         /* The queue is "empty" if there have not been enough Send
932          * completions recently. This is a sign the Send Queue is
933          * backing up. Cause the caller to pause and try again.
934          */
935         set_bit(RPCRDMA_BUF_F_EMPTY_SCQ, &buf->rb_flags);
936         r_xprt = container_of(buf, struct rpcrdma_xprt, rx_buf);
937         r_xprt->rx_stats.empty_sendctx_q++;
938         return NULL;
939 }
940
941 /**
942  * rpcrdma_sendctx_put_locked - Release a send context
943  * @sc: send context to release
944  *
945  * Usage: Called from Send completion to return a sendctxt
946  * to the queue.
947  *
948  * The caller serializes calls to this function (per rpcrdma_buffer).
949  */
950 static void
951 rpcrdma_sendctx_put_locked(struct rpcrdma_sendctx *sc)
952 {
953         struct rpcrdma_buffer *buf = &sc->sc_xprt->rx_buf;
954         unsigned long next_tail;
955
956         /* Unmap SGEs of previously completed by unsignaled
957          * Sends by walking up the queue until @sc is found.
958          */
959         next_tail = buf->rb_sc_tail;
960         do {
961                 next_tail = rpcrdma_sendctx_next(buf, next_tail);
962
963                 /* ORDER: item must be accessed _before_ tail is updated */
964                 rpcrdma_unmap_sendctx(buf->rb_sc_ctxs[next_tail]);
965
966         } while (buf->rb_sc_ctxs[next_tail] != sc);
967
968         /* Paired with READ_ONCE */
969         smp_store_release(&buf->rb_sc_tail, next_tail);
970
971         if (test_and_clear_bit(RPCRDMA_BUF_F_EMPTY_SCQ, &buf->rb_flags)) {
972                 smp_mb__after_atomic();
973                 xprt_write_space(&sc->sc_xprt->rx_xprt);
974         }
975 }
976
977 static void
978 rpcrdma_mr_recovery_worker(struct work_struct *work)
979 {
980         struct rpcrdma_buffer *buf = container_of(work, struct rpcrdma_buffer,
981                                                   rb_recovery_worker.work);
982         struct rpcrdma_mr *mr;
983
984         spin_lock(&buf->rb_recovery_lock);
985         while (!list_empty(&buf->rb_stale_mrs)) {
986                 mr = rpcrdma_mr_pop(&buf->rb_stale_mrs);
987                 spin_unlock(&buf->rb_recovery_lock);
988
989                 trace_xprtrdma_recover_mr(mr);
990                 mr->mr_xprt->rx_ia.ri_ops->ro_recover_mr(mr);
991
992                 spin_lock(&buf->rb_recovery_lock);
993         }
994         spin_unlock(&buf->rb_recovery_lock);
995 }
996
997 void
998 rpcrdma_mr_defer_recovery(struct rpcrdma_mr *mr)
999 {
1000         struct rpcrdma_xprt *r_xprt = mr->mr_xprt;
1001         struct rpcrdma_buffer *buf = &r_xprt->rx_buf;
1002
1003         spin_lock(&buf->rb_recovery_lock);
1004         rpcrdma_mr_push(mr, &buf->rb_stale_mrs);
1005         spin_unlock(&buf->rb_recovery_lock);
1006
1007         schedule_delayed_work(&buf->rb_recovery_worker, 0);
1008 }
1009
1010 static void
1011 rpcrdma_mrs_create(struct rpcrdma_xprt *r_xprt)
1012 {
1013         struct rpcrdma_buffer *buf = &r_xprt->rx_buf;
1014         struct rpcrdma_ia *ia = &r_xprt->rx_ia;
1015         unsigned int count;
1016         LIST_HEAD(free);
1017         LIST_HEAD(all);
1018
1019         for (count = 0; count < 3; count++) {
1020                 struct rpcrdma_mr *mr;
1021                 int rc;
1022
1023                 mr = kzalloc(sizeof(*mr), GFP_KERNEL);
1024                 if (!mr)
1025                         break;
1026
1027                 rc = ia->ri_ops->ro_init_mr(ia, mr);
1028                 if (rc) {
1029                         kfree(mr);
1030                         break;
1031                 }
1032
1033                 mr->mr_xprt = r_xprt;
1034
1035                 list_add(&mr->mr_list, &free);
1036                 list_add(&mr->mr_all, &all);
1037         }
1038
1039         spin_lock(&buf->rb_mrlock);
1040         list_splice(&free, &buf->rb_mrs);
1041         list_splice(&all, &buf->rb_all);
1042         r_xprt->rx_stats.mrs_allocated += count;
1043         spin_unlock(&buf->rb_mrlock);
1044         trace_xprtrdma_createmrs(r_xprt, count);
1045
1046         xprt_write_space(&r_xprt->rx_xprt);
1047 }
1048
1049 static void
1050 rpcrdma_mr_refresh_worker(struct work_struct *work)
1051 {
1052         struct rpcrdma_buffer *buf = container_of(work, struct rpcrdma_buffer,
1053                                                   rb_refresh_worker.work);
1054         struct rpcrdma_xprt *r_xprt = container_of(buf, struct rpcrdma_xprt,
1055                                                    rx_buf);
1056
1057         rpcrdma_mrs_create(r_xprt);
1058 }
1059
1060 struct rpcrdma_req *
1061 rpcrdma_create_req(struct rpcrdma_xprt *r_xprt)
1062 {
1063         struct rpcrdma_buffer *buffer = &r_xprt->rx_buf;
1064         struct rpcrdma_regbuf *rb;
1065         struct rpcrdma_req *req;
1066
1067         req = kzalloc(sizeof(*req), GFP_KERNEL);
1068         if (req == NULL)
1069                 return ERR_PTR(-ENOMEM);
1070
1071         rb = rpcrdma_alloc_regbuf(RPCRDMA_HDRBUF_SIZE,
1072                                   DMA_TO_DEVICE, GFP_KERNEL);
1073         if (IS_ERR(rb)) {
1074                 kfree(req);
1075                 return ERR_PTR(-ENOMEM);
1076         }
1077         req->rl_rdmabuf = rb;
1078         xdr_buf_init(&req->rl_hdrbuf, rb->rg_base, rdmab_length(rb));
1079         req->rl_buffer = buffer;
1080         INIT_LIST_HEAD(&req->rl_registered);
1081
1082         spin_lock(&buffer->rb_reqslock);
1083         list_add(&req->rl_all, &buffer->rb_allreqs);
1084         spin_unlock(&buffer->rb_reqslock);
1085         return req;
1086 }
1087
1088 static int
1089 rpcrdma_create_rep(struct rpcrdma_xprt *r_xprt, bool temp)
1090 {
1091         struct rpcrdma_create_data_internal *cdata = &r_xprt->rx_data;
1092         struct rpcrdma_buffer *buf = &r_xprt->rx_buf;
1093         struct rpcrdma_rep *rep;
1094         int rc;
1095
1096         rc = -ENOMEM;
1097         rep = kzalloc(sizeof(*rep), GFP_KERNEL);
1098         if (rep == NULL)
1099                 goto out;
1100
1101         rep->rr_rdmabuf = rpcrdma_alloc_regbuf(cdata->inline_rsize,
1102                                                DMA_FROM_DEVICE, GFP_KERNEL);
1103         if (IS_ERR(rep->rr_rdmabuf)) {
1104                 rc = PTR_ERR(rep->rr_rdmabuf);
1105                 goto out_free;
1106         }
1107         xdr_buf_init(&rep->rr_hdrbuf, rep->rr_rdmabuf->rg_base,
1108                      rdmab_length(rep->rr_rdmabuf));
1109
1110         rep->rr_cqe.done = rpcrdma_wc_receive;
1111         rep->rr_rxprt = r_xprt;
1112         INIT_WORK(&rep->rr_work, rpcrdma_deferred_completion);
1113         rep->rr_recv_wr.next = NULL;
1114         rep->rr_recv_wr.wr_cqe = &rep->rr_cqe;
1115         rep->rr_recv_wr.sg_list = &rep->rr_rdmabuf->rg_iov;
1116         rep->rr_recv_wr.num_sge = 1;
1117         rep->rr_temp = temp;
1118
1119         spin_lock(&buf->rb_lock);
1120         list_add(&rep->rr_list, &buf->rb_recv_bufs);
1121         spin_unlock(&buf->rb_lock);
1122         return 0;
1123
1124 out_free:
1125         kfree(rep);
1126 out:
1127         dprintk("RPC:       %s: reply buffer %d alloc failed\n",
1128                 __func__, rc);
1129         return rc;
1130 }
1131
1132 int
1133 rpcrdma_buffer_create(struct rpcrdma_xprt *r_xprt)
1134 {
1135         struct rpcrdma_buffer *buf = &r_xprt->rx_buf;
1136         int i, rc;
1137
1138         buf->rb_max_requests = r_xprt->rx_data.max_requests;
1139         buf->rb_bc_srv_max_requests = 0;
1140         spin_lock_init(&buf->rb_mrlock);
1141         spin_lock_init(&buf->rb_lock);
1142         spin_lock_init(&buf->rb_recovery_lock);
1143         INIT_LIST_HEAD(&buf->rb_mrs);
1144         INIT_LIST_HEAD(&buf->rb_all);
1145         INIT_LIST_HEAD(&buf->rb_stale_mrs);
1146         INIT_DELAYED_WORK(&buf->rb_refresh_worker,
1147                           rpcrdma_mr_refresh_worker);
1148         INIT_DELAYED_WORK(&buf->rb_recovery_worker,
1149                           rpcrdma_mr_recovery_worker);
1150
1151         rpcrdma_mrs_create(r_xprt);
1152
1153         INIT_LIST_HEAD(&buf->rb_send_bufs);
1154         INIT_LIST_HEAD(&buf->rb_allreqs);
1155         spin_lock_init(&buf->rb_reqslock);
1156         for (i = 0; i < buf->rb_max_requests; i++) {
1157                 struct rpcrdma_req *req;
1158
1159                 req = rpcrdma_create_req(r_xprt);
1160                 if (IS_ERR(req)) {
1161                         dprintk("RPC:       %s: request buffer %d alloc"
1162                                 " failed\n", __func__, i);
1163                         rc = PTR_ERR(req);
1164                         goto out;
1165                 }
1166                 list_add(&req->rl_list, &buf->rb_send_bufs);
1167         }
1168
1169         buf->rb_credits = 1;
1170         buf->rb_posted_receives = 0;
1171         INIT_LIST_HEAD(&buf->rb_recv_bufs);
1172
1173         rc = rpcrdma_sendctxs_create(r_xprt);
1174         if (rc)
1175                 goto out;
1176
1177         return 0;
1178 out:
1179         rpcrdma_buffer_destroy(buf);
1180         return rc;
1181 }
1182
1183 static void
1184 rpcrdma_destroy_rep(struct rpcrdma_rep *rep)
1185 {
1186         rpcrdma_free_regbuf(rep->rr_rdmabuf);
1187         kfree(rep);
1188 }
1189
1190 void
1191 rpcrdma_destroy_req(struct rpcrdma_req *req)
1192 {
1193         rpcrdma_free_regbuf(req->rl_recvbuf);
1194         rpcrdma_free_regbuf(req->rl_sendbuf);
1195         rpcrdma_free_regbuf(req->rl_rdmabuf);
1196         kfree(req);
1197 }
1198
1199 static void
1200 rpcrdma_mrs_destroy(struct rpcrdma_buffer *buf)
1201 {
1202         struct rpcrdma_xprt *r_xprt = container_of(buf, struct rpcrdma_xprt,
1203                                                    rx_buf);
1204         struct rpcrdma_ia *ia = rdmab_to_ia(buf);
1205         struct rpcrdma_mr *mr;
1206         unsigned int count;
1207
1208         count = 0;
1209         spin_lock(&buf->rb_mrlock);
1210         while (!list_empty(&buf->rb_all)) {
1211                 mr = list_entry(buf->rb_all.next, struct rpcrdma_mr, mr_all);
1212                 list_del(&mr->mr_all);
1213
1214                 spin_unlock(&buf->rb_mrlock);
1215
1216                 /* Ensure MW is not on any rl_registered list */
1217                 if (!list_empty(&mr->mr_list))
1218                         list_del(&mr->mr_list);
1219
1220                 ia->ri_ops->ro_release_mr(mr);
1221                 count++;
1222                 spin_lock(&buf->rb_mrlock);
1223         }
1224         spin_unlock(&buf->rb_mrlock);
1225         r_xprt->rx_stats.mrs_allocated = 0;
1226
1227         dprintk("RPC:       %s: released %u MRs\n", __func__, count);
1228 }
1229
1230 void
1231 rpcrdma_buffer_destroy(struct rpcrdma_buffer *buf)
1232 {
1233         cancel_delayed_work_sync(&buf->rb_recovery_worker);
1234         cancel_delayed_work_sync(&buf->rb_refresh_worker);
1235
1236         rpcrdma_sendctxs_destroy(buf);
1237
1238         while (!list_empty(&buf->rb_recv_bufs)) {
1239                 struct rpcrdma_rep *rep;
1240
1241                 rep = list_first_entry(&buf->rb_recv_bufs,
1242                                        struct rpcrdma_rep, rr_list);
1243                 list_del(&rep->rr_list);
1244                 rpcrdma_destroy_rep(rep);
1245         }
1246
1247         spin_lock(&buf->rb_reqslock);
1248         while (!list_empty(&buf->rb_allreqs)) {
1249                 struct rpcrdma_req *req;
1250
1251                 req = list_first_entry(&buf->rb_allreqs,
1252                                        struct rpcrdma_req, rl_all);
1253                 list_del(&req->rl_all);
1254
1255                 spin_unlock(&buf->rb_reqslock);
1256                 rpcrdma_destroy_req(req);
1257                 spin_lock(&buf->rb_reqslock);
1258         }
1259         spin_unlock(&buf->rb_reqslock);
1260
1261         rpcrdma_mrs_destroy(buf);
1262 }
1263
1264 /**
1265  * rpcrdma_mr_get - Allocate an rpcrdma_mr object
1266  * @r_xprt: controlling transport
1267  *
1268  * Returns an initialized rpcrdma_mr or NULL if no free
1269  * rpcrdma_mr objects are available.
1270  */
1271 struct rpcrdma_mr *
1272 rpcrdma_mr_get(struct rpcrdma_xprt *r_xprt)
1273 {
1274         struct rpcrdma_buffer *buf = &r_xprt->rx_buf;
1275         struct rpcrdma_mr *mr = NULL;
1276
1277         spin_lock(&buf->rb_mrlock);
1278         if (!list_empty(&buf->rb_mrs))
1279                 mr = rpcrdma_mr_pop(&buf->rb_mrs);
1280         spin_unlock(&buf->rb_mrlock);
1281
1282         if (!mr)
1283                 goto out_nomrs;
1284         return mr;
1285
1286 out_nomrs:
1287         trace_xprtrdma_nomrs(r_xprt);
1288         if (r_xprt->rx_ep.rep_connected != -ENODEV)
1289                 schedule_delayed_work(&buf->rb_refresh_worker, 0);
1290
1291         /* Allow the reply handler and refresh worker to run */
1292         cond_resched();
1293
1294         return NULL;
1295 }
1296
1297 static void
1298 __rpcrdma_mr_put(struct rpcrdma_buffer *buf, struct rpcrdma_mr *mr)
1299 {
1300         spin_lock(&buf->rb_mrlock);
1301         rpcrdma_mr_push(mr, &buf->rb_mrs);
1302         spin_unlock(&buf->rb_mrlock);
1303 }
1304
1305 /**
1306  * rpcrdma_mr_put - Release an rpcrdma_mr object
1307  * @mr: object to release
1308  *
1309  */
1310 void
1311 rpcrdma_mr_put(struct rpcrdma_mr *mr)
1312 {
1313         __rpcrdma_mr_put(&mr->mr_xprt->rx_buf, mr);
1314 }
1315
1316 /**
1317  * rpcrdma_mr_unmap_and_put - DMA unmap an MR and release it
1318  * @mr: object to release
1319  *
1320  */
1321 void
1322 rpcrdma_mr_unmap_and_put(struct rpcrdma_mr *mr)
1323 {
1324         struct rpcrdma_xprt *r_xprt = mr->mr_xprt;
1325
1326         trace_xprtrdma_dma_unmap(mr);
1327         ib_dma_unmap_sg(r_xprt->rx_ia.ri_device,
1328                         mr->mr_sg, mr->mr_nents, mr->mr_dir);
1329         __rpcrdma_mr_put(&r_xprt->rx_buf, mr);
1330 }
1331
1332 /**
1333  * rpcrdma_buffer_get - Get a request buffer
1334  * @buffers: Buffer pool from which to obtain a buffer
1335  *
1336  * Returns a fresh rpcrdma_req, or NULL if none are available.
1337  */
1338 struct rpcrdma_req *
1339 rpcrdma_buffer_get(struct rpcrdma_buffer *buffers)
1340 {
1341         struct rpcrdma_req *req;
1342
1343         spin_lock(&buffers->rb_lock);
1344         req = list_first_entry_or_null(&buffers->rb_send_bufs,
1345                                        struct rpcrdma_req, rl_list);
1346         if (req)
1347                 list_del_init(&req->rl_list);
1348         spin_unlock(&buffers->rb_lock);
1349         return req;
1350 }
1351
1352 /**
1353  * rpcrdma_buffer_put - Put request/reply buffers back into pool
1354  * @req: object to return
1355  *
1356  */
1357 void
1358 rpcrdma_buffer_put(struct rpcrdma_req *req)
1359 {
1360         struct rpcrdma_buffer *buffers = req->rl_buffer;
1361         struct rpcrdma_rep *rep = req->rl_reply;
1362
1363         req->rl_reply = NULL;
1364
1365         spin_lock(&buffers->rb_lock);
1366         list_add(&req->rl_list, &buffers->rb_send_bufs);
1367         if (rep) {
1368                 if (!rep->rr_temp) {
1369                         list_add(&rep->rr_list, &buffers->rb_recv_bufs);
1370                         rep = NULL;
1371                 }
1372         }
1373         spin_unlock(&buffers->rb_lock);
1374         if (rep)
1375                 rpcrdma_destroy_rep(rep);
1376 }
1377
1378 /*
1379  * Put reply buffers back into pool when not attached to
1380  * request. This happens in error conditions.
1381  */
1382 void
1383 rpcrdma_recv_buffer_put(struct rpcrdma_rep *rep)
1384 {
1385         struct rpcrdma_buffer *buffers = &rep->rr_rxprt->rx_buf;
1386
1387         if (!rep->rr_temp) {
1388                 spin_lock(&buffers->rb_lock);
1389                 list_add(&rep->rr_list, &buffers->rb_recv_bufs);
1390                 spin_unlock(&buffers->rb_lock);
1391         } else {
1392                 rpcrdma_destroy_rep(rep);
1393         }
1394 }
1395
1396 /**
1397  * rpcrdma_alloc_regbuf - allocate and DMA-map memory for SEND/RECV buffers
1398  * @size: size of buffer to be allocated, in bytes
1399  * @direction: direction of data movement
1400  * @flags: GFP flags
1401  *
1402  * Returns an ERR_PTR, or a pointer to a regbuf, a buffer that
1403  * can be persistently DMA-mapped for I/O.
1404  *
1405  * xprtrdma uses a regbuf for posting an outgoing RDMA SEND, or for
1406  * receiving the payload of RDMA RECV operations. During Long Calls
1407  * or Replies they may be registered externally via ro_map.
1408  */
1409 struct rpcrdma_regbuf *
1410 rpcrdma_alloc_regbuf(size_t size, enum dma_data_direction direction,
1411                      gfp_t flags)
1412 {
1413         struct rpcrdma_regbuf *rb;
1414
1415         rb = kmalloc(sizeof(*rb) + size, flags);
1416         if (rb == NULL)
1417                 return ERR_PTR(-ENOMEM);
1418
1419         rb->rg_device = NULL;
1420         rb->rg_direction = direction;
1421         rb->rg_iov.length = size;
1422
1423         return rb;
1424 }
1425
1426 /**
1427  * __rpcrdma_map_regbuf - DMA-map a regbuf
1428  * @ia: controlling rpcrdma_ia
1429  * @rb: regbuf to be mapped
1430  */
1431 bool
1432 __rpcrdma_dma_map_regbuf(struct rpcrdma_ia *ia, struct rpcrdma_regbuf *rb)
1433 {
1434         struct ib_device *device = ia->ri_device;
1435
1436         if (rb->rg_direction == DMA_NONE)
1437                 return false;
1438
1439         rb->rg_iov.addr = ib_dma_map_single(device,
1440                                             (void *)rb->rg_base,
1441                                             rdmab_length(rb),
1442                                             rb->rg_direction);
1443         if (ib_dma_mapping_error(device, rdmab_addr(rb)))
1444                 return false;
1445
1446         rb->rg_device = device;
1447         rb->rg_iov.lkey = ia->ri_pd->local_dma_lkey;
1448         return true;
1449 }
1450
1451 static void
1452 rpcrdma_dma_unmap_regbuf(struct rpcrdma_regbuf *rb)
1453 {
1454         if (!rb)
1455                 return;
1456
1457         if (!rpcrdma_regbuf_is_mapped(rb))
1458                 return;
1459
1460         ib_dma_unmap_single(rb->rg_device, rdmab_addr(rb),
1461                             rdmab_length(rb), rb->rg_direction);
1462         rb->rg_device = NULL;
1463 }
1464
1465 /**
1466  * rpcrdma_free_regbuf - deregister and free registered buffer
1467  * @rb: regbuf to be deregistered and freed
1468  */
1469 void
1470 rpcrdma_free_regbuf(struct rpcrdma_regbuf *rb)
1471 {
1472         rpcrdma_dma_unmap_regbuf(rb);
1473         kfree(rb);
1474 }
1475
1476 /*
1477  * Prepost any receive buffer, then post send.
1478  *
1479  * Receive buffer is donated to hardware, reclaimed upon recv completion.
1480  */
1481 int
1482 rpcrdma_ep_post(struct rpcrdma_ia *ia,
1483                 struct rpcrdma_ep *ep,
1484                 struct rpcrdma_req *req)
1485 {
1486         struct ib_send_wr *send_wr = &req->rl_sendctx->sc_wr;
1487         int rc;
1488
1489         if (!ep->rep_send_count ||
1490             test_bit(RPCRDMA_REQ_F_TX_RESOURCES, &req->rl_flags)) {
1491                 send_wr->send_flags |= IB_SEND_SIGNALED;
1492                 ep->rep_send_count = ep->rep_send_batch;
1493         } else {
1494                 send_wr->send_flags &= ~IB_SEND_SIGNALED;
1495                 --ep->rep_send_count;
1496         }
1497
1498         rc = ia->ri_ops->ro_send(ia, req);
1499         trace_xprtrdma_post_send(req, rc);
1500         if (rc)
1501                 return -ENOTCONN;
1502         return 0;
1503 }
1504
1505 /**
1506  * rpcrdma_post_recvs - Maybe post some Receive buffers
1507  * @r_xprt: controlling transport
1508  * @temp: when true, allocate temp rpcrdma_rep objects
1509  *
1510  */
1511 void
1512 rpcrdma_post_recvs(struct rpcrdma_xprt *r_xprt, bool temp)
1513 {
1514         struct rpcrdma_buffer *buf = &r_xprt->rx_buf;
1515         struct ib_recv_wr *wr, *bad_wr;
1516         int needed, count, rc;
1517
1518         needed = buf->rb_credits + (buf->rb_bc_srv_max_requests << 1);
1519         if (buf->rb_posted_receives > needed)
1520                 return;
1521         needed -= buf->rb_posted_receives;
1522
1523         count = 0;
1524         wr = NULL;
1525         while (needed) {
1526                 struct rpcrdma_regbuf *rb;
1527                 struct rpcrdma_rep *rep;
1528
1529                 spin_lock(&buf->rb_lock);
1530                 rep = list_first_entry_or_null(&buf->rb_recv_bufs,
1531                                                struct rpcrdma_rep, rr_list);
1532                 if (likely(rep))
1533                         list_del(&rep->rr_list);
1534                 spin_unlock(&buf->rb_lock);
1535                 if (!rep) {
1536                         if (rpcrdma_create_rep(r_xprt, temp))
1537                                 break;
1538                         continue;
1539                 }
1540
1541                 rb = rep->rr_rdmabuf;
1542                 if (!rpcrdma_regbuf_is_mapped(rb)) {
1543                         if (!__rpcrdma_dma_map_regbuf(&r_xprt->rx_ia, rb)) {
1544                                 rpcrdma_recv_buffer_put(rep);
1545                                 break;
1546                         }
1547                 }
1548
1549                 trace_xprtrdma_post_recv(rep->rr_recv_wr.wr_cqe);
1550                 rep->rr_recv_wr.next = wr;
1551                 wr = &rep->rr_recv_wr;
1552                 ++count;
1553                 --needed;
1554         }
1555         if (!count)
1556                 return;
1557
1558         rc = ib_post_recv(r_xprt->rx_ia.ri_id->qp, wr,
1559                           (const struct ib_recv_wr **)&bad_wr);
1560         if (rc) {
1561                 for (wr = bad_wr; wr;) {
1562                         struct rpcrdma_rep *rep;
1563
1564                         rep = container_of(wr, struct rpcrdma_rep, rr_recv_wr);
1565                         wr = wr->next;
1566                         rpcrdma_recv_buffer_put(rep);
1567                         --count;
1568                 }
1569         }
1570         buf->rb_posted_receives += count;
1571         trace_xprtrdma_post_recvs(r_xprt, count, rc);
1572 }