blob: 7fd1d735ced5d309607045834a318d99580f18d0 [file] [log] [blame]
Christoph Hellwig71102302016-07-06 21:55:52 +09001/*
2 * NVMe over Fabrics RDMA host code.
3 * Copyright (c) 2015-2016 HGST, a Western Digital Company.
4 *
5 * This program is free software; you can redistribute it and/or modify it
6 * under the terms and conditions of the GNU General Public License,
7 * version 2, as published by the Free Software Foundation.
8 *
9 * This program is distributed in the hope it will be useful, but WITHOUT
10 * ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
11 * FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License for
12 * more details.
13 */
14#define pr_fmt(fmt) KBUILD_MODNAME ": " fmt
15#include <linux/delay.h>
16#include <linux/module.h>
17#include <linux/init.h>
18#include <linux/slab.h>
19#include <linux/err.h>
20#include <linux/string.h>
21#include <linux/jiffies.h>
22#include <linux/atomic.h>
23#include <linux/blk-mq.h>
24#include <linux/types.h>
25#include <linux/list.h>
26#include <linux/mutex.h>
27#include <linux/scatterlist.h>
28#include <linux/nvme.h>
29#include <linux/t10-pi.h>
30#include <asm/unaligned.h>
31
32#include <rdma/ib_verbs.h>
33#include <rdma/rdma_cm.h>
34#include <rdma/ib_cm.h>
35#include <linux/nvme-rdma.h>
36
37#include "nvme.h"
38#include "fabrics.h"
39
40
41#define NVME_RDMA_CONNECT_TIMEOUT_MS 1000 /* 1 second */
42
43#define NVME_RDMA_MAX_SEGMENT_SIZE 0xffffff /* 24-bit SGL field */
44
45#define NVME_RDMA_MAX_SEGMENTS 256
46
47#define NVME_RDMA_MAX_INLINE_SEGMENTS 1
48
49#define NVME_RDMA_MAX_PAGES_PER_MR 512
50
51#define NVME_RDMA_DEF_RECONNECT_DELAY 20
52
53/*
54 * We handle AEN commands ourselves and don't even let the
55 * block layer know about them.
56 */
57#define NVME_RDMA_NR_AEN_COMMANDS 1
58#define NVME_RDMA_AQ_BLKMQ_DEPTH \
59 (NVMF_AQ_DEPTH - NVME_RDMA_NR_AEN_COMMANDS)
60
61struct nvme_rdma_device {
62 struct ib_device *dev;
63 struct ib_pd *pd;
64 struct ib_mr *mr;
65 struct kref ref;
66 struct list_head entry;
67};
68
69struct nvme_rdma_qe {
70 struct ib_cqe cqe;
71 void *data;
72 u64 dma;
73};
74
75struct nvme_rdma_queue;
76struct nvme_rdma_request {
77 struct ib_mr *mr;
78 struct nvme_rdma_qe sqe;
79 struct ib_sge sge[1 + NVME_RDMA_MAX_INLINE_SEGMENTS];
80 u32 num_sge;
81 int nents;
82 bool inline_data;
83 bool need_inval;
84 struct ib_reg_wr reg_wr;
85 struct ib_cqe reg_cqe;
86 struct nvme_rdma_queue *queue;
87 struct sg_table sg_table;
88 struct scatterlist first_sgl[];
89};
90
91enum nvme_rdma_queue_flags {
92 NVME_RDMA_Q_CONNECTED = (1 << 0),
93};
94
95struct nvme_rdma_queue {
96 struct nvme_rdma_qe *rsp_ring;
97 u8 sig_count;
98 int queue_size;
99 size_t cmnd_capsule_len;
100 struct nvme_rdma_ctrl *ctrl;
101 struct nvme_rdma_device *device;
102 struct ib_cq *ib_cq;
103 struct ib_qp *qp;
104
105 unsigned long flags;
106 struct rdma_cm_id *cm_id;
107 int cm_error;
108 struct completion cm_done;
109};
110
111struct nvme_rdma_ctrl {
112 /* read and written in the hot path */
113 spinlock_t lock;
114
115 /* read only in the hot path */
116 struct nvme_rdma_queue *queues;
117 u32 queue_count;
118
119 /* other member variables */
Christoph Hellwig71102302016-07-06 21:55:52 +0900120 struct blk_mq_tag_set tag_set;
121 struct work_struct delete_work;
122 struct work_struct reset_work;
123 struct work_struct err_work;
124
125 struct nvme_rdma_qe async_event_sqe;
126
127 int reconnect_delay;
128 struct delayed_work reconnect_work;
129
130 struct list_head list;
131
132 struct blk_mq_tag_set admin_tag_set;
133 struct nvme_rdma_device *device;
134
135 u64 cap;
136 u32 max_fr_pages;
137
138 union {
139 struct sockaddr addr;
140 struct sockaddr_in addr_in;
141 };
142
143 struct nvme_ctrl ctrl;
144};
145
146static inline struct nvme_rdma_ctrl *to_rdma_ctrl(struct nvme_ctrl *ctrl)
147{
148 return container_of(ctrl, struct nvme_rdma_ctrl, ctrl);
149}
150
151static LIST_HEAD(device_list);
152static DEFINE_MUTEX(device_list_mutex);
153
154static LIST_HEAD(nvme_rdma_ctrl_list);
155static DEFINE_MUTEX(nvme_rdma_ctrl_mutex);
156
157static struct workqueue_struct *nvme_rdma_wq;
158
159/*
160 * Disabling this option makes small I/O goes faster, but is fundamentally
161 * unsafe. With it turned off we will have to register a global rkey that
162 * allows read and write access to all physical memory.
163 */
164static bool register_always = true;
165module_param(register_always, bool, 0444);
166MODULE_PARM_DESC(register_always,
167 "Use memory registration even for contiguous memory regions");
168
169static int nvme_rdma_cm_handler(struct rdma_cm_id *cm_id,
170 struct rdma_cm_event *event);
171static void nvme_rdma_recv_done(struct ib_cq *cq, struct ib_wc *wc);
172static int __nvme_rdma_del_ctrl(struct nvme_rdma_ctrl *ctrl);
173
174/* XXX: really should move to a generic header sooner or later.. */
175static inline void put_unaligned_le24(u32 val, u8 *p)
176{
177 *p++ = val;
178 *p++ = val >> 8;
179 *p++ = val >> 16;
180}
181
182static inline int nvme_rdma_queue_idx(struct nvme_rdma_queue *queue)
183{
184 return queue - queue->ctrl->queues;
185}
186
187static inline size_t nvme_rdma_inline_data_size(struct nvme_rdma_queue *queue)
188{
189 return queue->cmnd_capsule_len - sizeof(struct nvme_command);
190}
191
192static void nvme_rdma_free_qe(struct ib_device *ibdev, struct nvme_rdma_qe *qe,
193 size_t capsule_size, enum dma_data_direction dir)
194{
195 ib_dma_unmap_single(ibdev, qe->dma, capsule_size, dir);
196 kfree(qe->data);
197}
198
199static int nvme_rdma_alloc_qe(struct ib_device *ibdev, struct nvme_rdma_qe *qe,
200 size_t capsule_size, enum dma_data_direction dir)
201{
202 qe->data = kzalloc(capsule_size, GFP_KERNEL);
203 if (!qe->data)
204 return -ENOMEM;
205
206 qe->dma = ib_dma_map_single(ibdev, qe->data, capsule_size, dir);
207 if (ib_dma_mapping_error(ibdev, qe->dma)) {
208 kfree(qe->data);
209 return -ENOMEM;
210 }
211
212 return 0;
213}
214
215static void nvme_rdma_free_ring(struct ib_device *ibdev,
216 struct nvme_rdma_qe *ring, size_t ib_queue_size,
217 size_t capsule_size, enum dma_data_direction dir)
218{
219 int i;
220
221 for (i = 0; i < ib_queue_size; i++)
222 nvme_rdma_free_qe(ibdev, &ring[i], capsule_size, dir);
223 kfree(ring);
224}
225
226static struct nvme_rdma_qe *nvme_rdma_alloc_ring(struct ib_device *ibdev,
227 size_t ib_queue_size, size_t capsule_size,
228 enum dma_data_direction dir)
229{
230 struct nvme_rdma_qe *ring;
231 int i;
232
233 ring = kcalloc(ib_queue_size, sizeof(struct nvme_rdma_qe), GFP_KERNEL);
234 if (!ring)
235 return NULL;
236
237 for (i = 0; i < ib_queue_size; i++) {
238 if (nvme_rdma_alloc_qe(ibdev, &ring[i], capsule_size, dir))
239 goto out_free_ring;
240 }
241
242 return ring;
243
244out_free_ring:
245 nvme_rdma_free_ring(ibdev, ring, i, capsule_size, dir);
246 return NULL;
247}
248
249static void nvme_rdma_qp_event(struct ib_event *event, void *context)
250{
251 pr_debug("QP event %d\n", event->event);
252}
253
254static int nvme_rdma_wait_for_cm(struct nvme_rdma_queue *queue)
255{
256 wait_for_completion_interruptible_timeout(&queue->cm_done,
257 msecs_to_jiffies(NVME_RDMA_CONNECT_TIMEOUT_MS) + 1);
258 return queue->cm_error;
259}
260
261static int nvme_rdma_create_qp(struct nvme_rdma_queue *queue, const int factor)
262{
263 struct nvme_rdma_device *dev = queue->device;
264 struct ib_qp_init_attr init_attr;
265 int ret;
266
267 memset(&init_attr, 0, sizeof(init_attr));
268 init_attr.event_handler = nvme_rdma_qp_event;
269 /* +1 for drain */
270 init_attr.cap.max_send_wr = factor * queue->queue_size + 1;
271 /* +1 for drain */
272 init_attr.cap.max_recv_wr = queue->queue_size + 1;
273 init_attr.cap.max_recv_sge = 1;
274 init_attr.cap.max_send_sge = 1 + NVME_RDMA_MAX_INLINE_SEGMENTS;
275 init_attr.sq_sig_type = IB_SIGNAL_REQ_WR;
276 init_attr.qp_type = IB_QPT_RC;
277 init_attr.send_cq = queue->ib_cq;
278 init_attr.recv_cq = queue->ib_cq;
279
280 ret = rdma_create_qp(queue->cm_id, dev->pd, &init_attr);
281
282 queue->qp = queue->cm_id->qp;
283 return ret;
284}
285
286static int nvme_rdma_reinit_request(void *data, struct request *rq)
287{
288 struct nvme_rdma_ctrl *ctrl = data;
289 struct nvme_rdma_device *dev = ctrl->device;
290 struct nvme_rdma_request *req = blk_mq_rq_to_pdu(rq);
291 int ret = 0;
292
293 if (!req->need_inval)
294 goto out;
295
296 ib_dereg_mr(req->mr);
297
298 req->mr = ib_alloc_mr(dev->pd, IB_MR_TYPE_MEM_REG,
299 ctrl->max_fr_pages);
300 if (IS_ERR(req->mr)) {
Christoph Hellwig71102302016-07-06 21:55:52 +0900301 ret = PTR_ERR(req->mr);
Wei Yongjun458a9632016-07-12 11:06:17 +0000302 req->mr = NULL;
Christoph Hellwig71102302016-07-06 21:55:52 +0900303 }
304
305 req->need_inval = false;
306
307out:
308 return ret;
309}
310
311static void __nvme_rdma_exit_request(struct nvme_rdma_ctrl *ctrl,
312 struct request *rq, unsigned int queue_idx)
313{
314 struct nvme_rdma_request *req = blk_mq_rq_to_pdu(rq);
315 struct nvme_rdma_queue *queue = &ctrl->queues[queue_idx];
316 struct nvme_rdma_device *dev = queue->device;
317
318 if (req->mr)
319 ib_dereg_mr(req->mr);
320
321 nvme_rdma_free_qe(dev->dev, &req->sqe, sizeof(struct nvme_command),
322 DMA_TO_DEVICE);
323}
324
325static void nvme_rdma_exit_request(void *data, struct request *rq,
326 unsigned int hctx_idx, unsigned int rq_idx)
327{
328 return __nvme_rdma_exit_request(data, rq, hctx_idx + 1);
329}
330
331static void nvme_rdma_exit_admin_request(void *data, struct request *rq,
332 unsigned int hctx_idx, unsigned int rq_idx)
333{
334 return __nvme_rdma_exit_request(data, rq, 0);
335}
336
337static int __nvme_rdma_init_request(struct nvme_rdma_ctrl *ctrl,
338 struct request *rq, unsigned int queue_idx)
339{
340 struct nvme_rdma_request *req = blk_mq_rq_to_pdu(rq);
341 struct nvme_rdma_queue *queue = &ctrl->queues[queue_idx];
342 struct nvme_rdma_device *dev = queue->device;
343 struct ib_device *ibdev = dev->dev;
344 int ret;
345
346 BUG_ON(queue_idx >= ctrl->queue_count);
347
348 ret = nvme_rdma_alloc_qe(ibdev, &req->sqe, sizeof(struct nvme_command),
349 DMA_TO_DEVICE);
350 if (ret)
351 return ret;
352
353 req->mr = ib_alloc_mr(dev->pd, IB_MR_TYPE_MEM_REG,
354 ctrl->max_fr_pages);
355 if (IS_ERR(req->mr)) {
356 ret = PTR_ERR(req->mr);
357 goto out_free_qe;
358 }
359
360 req->queue = queue;
361
362 return 0;
363
364out_free_qe:
365 nvme_rdma_free_qe(dev->dev, &req->sqe, sizeof(struct nvme_command),
366 DMA_TO_DEVICE);
367 return -ENOMEM;
368}
369
370static int nvme_rdma_init_request(void *data, struct request *rq,
371 unsigned int hctx_idx, unsigned int rq_idx,
372 unsigned int numa_node)
373{
374 return __nvme_rdma_init_request(data, rq, hctx_idx + 1);
375}
376
377static int nvme_rdma_init_admin_request(void *data, struct request *rq,
378 unsigned int hctx_idx, unsigned int rq_idx,
379 unsigned int numa_node)
380{
381 return __nvme_rdma_init_request(data, rq, 0);
382}
383
384static int nvme_rdma_init_hctx(struct blk_mq_hw_ctx *hctx, void *data,
385 unsigned int hctx_idx)
386{
387 struct nvme_rdma_ctrl *ctrl = data;
388 struct nvme_rdma_queue *queue = &ctrl->queues[hctx_idx + 1];
389
390 BUG_ON(hctx_idx >= ctrl->queue_count);
391
392 hctx->driver_data = queue;
393 return 0;
394}
395
396static int nvme_rdma_init_admin_hctx(struct blk_mq_hw_ctx *hctx, void *data,
397 unsigned int hctx_idx)
398{
399 struct nvme_rdma_ctrl *ctrl = data;
400 struct nvme_rdma_queue *queue = &ctrl->queues[0];
401
402 BUG_ON(hctx_idx != 0);
403
404 hctx->driver_data = queue;
405 return 0;
406}
407
408static void nvme_rdma_free_dev(struct kref *ref)
409{
410 struct nvme_rdma_device *ndev =
411 container_of(ref, struct nvme_rdma_device, ref);
412
413 mutex_lock(&device_list_mutex);
414 list_del(&ndev->entry);
415 mutex_unlock(&device_list_mutex);
416
417 if (!register_always)
418 ib_dereg_mr(ndev->mr);
419 ib_dealloc_pd(ndev->pd);
420
421 kfree(ndev);
422}
423
424static void nvme_rdma_dev_put(struct nvme_rdma_device *dev)
425{
426 kref_put(&dev->ref, nvme_rdma_free_dev);
427}
428
429static int nvme_rdma_dev_get(struct nvme_rdma_device *dev)
430{
431 return kref_get_unless_zero(&dev->ref);
432}
433
434static struct nvme_rdma_device *
435nvme_rdma_find_get_device(struct rdma_cm_id *cm_id)
436{
437 struct nvme_rdma_device *ndev;
438
439 mutex_lock(&device_list_mutex);
440 list_for_each_entry(ndev, &device_list, entry) {
441 if (ndev->dev->node_guid == cm_id->device->node_guid &&
442 nvme_rdma_dev_get(ndev))
443 goto out_unlock;
444 }
445
446 ndev = kzalloc(sizeof(*ndev), GFP_KERNEL);
447 if (!ndev)
448 goto out_err;
449
450 ndev->dev = cm_id->device;
451 kref_init(&ndev->ref);
452
453 ndev->pd = ib_alloc_pd(ndev->dev);
454 if (IS_ERR(ndev->pd))
455 goto out_free_dev;
456
457 if (!register_always) {
458 ndev->mr = ib_get_dma_mr(ndev->pd,
459 IB_ACCESS_LOCAL_WRITE |
460 IB_ACCESS_REMOTE_READ |
461 IB_ACCESS_REMOTE_WRITE);
462 if (IS_ERR(ndev->mr))
463 goto out_free_pd;
464 }
465
466 if (!(ndev->dev->attrs.device_cap_flags &
467 IB_DEVICE_MEM_MGT_EXTENSIONS)) {
468 dev_err(&ndev->dev->dev,
469 "Memory registrations not supported.\n");
470 goto out_free_mr;
471 }
472
473 list_add(&ndev->entry, &device_list);
474out_unlock:
475 mutex_unlock(&device_list_mutex);
476 return ndev;
477
478out_free_mr:
479 if (!register_always)
480 ib_dereg_mr(ndev->mr);
481out_free_pd:
482 ib_dealloc_pd(ndev->pd);
483out_free_dev:
484 kfree(ndev);
485out_err:
486 mutex_unlock(&device_list_mutex);
487 return NULL;
488}
489
490static void nvme_rdma_destroy_queue_ib(struct nvme_rdma_queue *queue)
491{
492 struct nvme_rdma_device *dev = queue->device;
493 struct ib_device *ibdev = dev->dev;
494
495 rdma_destroy_qp(queue->cm_id);
496 ib_free_cq(queue->ib_cq);
497
498 nvme_rdma_free_ring(ibdev, queue->rsp_ring, queue->queue_size,
499 sizeof(struct nvme_completion), DMA_FROM_DEVICE);
500
501 nvme_rdma_dev_put(dev);
502}
503
504static int nvme_rdma_create_queue_ib(struct nvme_rdma_queue *queue,
505 struct nvme_rdma_device *dev)
506{
507 struct ib_device *ibdev = dev->dev;
508 const int send_wr_factor = 3; /* MR, SEND, INV */
509 const int cq_factor = send_wr_factor + 1; /* + RECV */
510 int comp_vector, idx = nvme_rdma_queue_idx(queue);
511
512 int ret;
513
514 queue->device = dev;
515
516 /*
517 * The admin queue is barely used once the controller is live, so don't
518 * bother to spread it out.
519 */
520 if (idx == 0)
521 comp_vector = 0;
522 else
523 comp_vector = idx % ibdev->num_comp_vectors;
524
525
526 /* +1 for ib_stop_cq */
527 queue->ib_cq = ib_alloc_cq(dev->dev, queue,
528 cq_factor * queue->queue_size + 1, comp_vector,
529 IB_POLL_SOFTIRQ);
530 if (IS_ERR(queue->ib_cq)) {
531 ret = PTR_ERR(queue->ib_cq);
532 goto out;
533 }
534
535 ret = nvme_rdma_create_qp(queue, send_wr_factor);
536 if (ret)
537 goto out_destroy_ib_cq;
538
539 queue->rsp_ring = nvme_rdma_alloc_ring(ibdev, queue->queue_size,
540 sizeof(struct nvme_completion), DMA_FROM_DEVICE);
541 if (!queue->rsp_ring) {
542 ret = -ENOMEM;
543 goto out_destroy_qp;
544 }
545
546 return 0;
547
548out_destroy_qp:
549 ib_destroy_qp(queue->qp);
550out_destroy_ib_cq:
551 ib_free_cq(queue->ib_cq);
552out:
553 return ret;
554}
555
556static int nvme_rdma_init_queue(struct nvme_rdma_ctrl *ctrl,
557 int idx, size_t queue_size)
558{
559 struct nvme_rdma_queue *queue;
560 int ret;
561
562 queue = &ctrl->queues[idx];
563 queue->ctrl = ctrl;
564 init_completion(&queue->cm_done);
565
566 if (idx > 0)
567 queue->cmnd_capsule_len = ctrl->ctrl.ioccsz * 16;
568 else
569 queue->cmnd_capsule_len = sizeof(struct nvme_command);
570
571 queue->queue_size = queue_size;
572
573 queue->cm_id = rdma_create_id(&init_net, nvme_rdma_cm_handler, queue,
574 RDMA_PS_TCP, IB_QPT_RC);
575 if (IS_ERR(queue->cm_id)) {
576 dev_info(ctrl->ctrl.device,
577 "failed to create CM ID: %ld\n", PTR_ERR(queue->cm_id));
578 return PTR_ERR(queue->cm_id);
579 }
580
581 queue->cm_error = -ETIMEDOUT;
582 ret = rdma_resolve_addr(queue->cm_id, NULL, &ctrl->addr,
583 NVME_RDMA_CONNECT_TIMEOUT_MS);
584 if (ret) {
585 dev_info(ctrl->ctrl.device,
586 "rdma_resolve_addr failed (%d).\n", ret);
587 goto out_destroy_cm_id;
588 }
589
590 ret = nvme_rdma_wait_for_cm(queue);
591 if (ret) {
592 dev_info(ctrl->ctrl.device,
593 "rdma_resolve_addr wait failed (%d).\n", ret);
594 goto out_destroy_cm_id;
595 }
596
597 set_bit(NVME_RDMA_Q_CONNECTED, &queue->flags);
598
599 return 0;
600
601out_destroy_cm_id:
602 rdma_destroy_id(queue->cm_id);
603 return ret;
604}
605
606static void nvme_rdma_stop_queue(struct nvme_rdma_queue *queue)
607{
608 rdma_disconnect(queue->cm_id);
609 ib_drain_qp(queue->qp);
610}
611
612static void nvme_rdma_free_queue(struct nvme_rdma_queue *queue)
613{
614 nvme_rdma_destroy_queue_ib(queue);
615 rdma_destroy_id(queue->cm_id);
616}
617
618static void nvme_rdma_stop_and_free_queue(struct nvme_rdma_queue *queue)
619{
620 if (!test_and_clear_bit(NVME_RDMA_Q_CONNECTED, &queue->flags))
621 return;
622 nvme_rdma_stop_queue(queue);
623 nvme_rdma_free_queue(queue);
624}
625
626static void nvme_rdma_free_io_queues(struct nvme_rdma_ctrl *ctrl)
627{
628 int i;
629
630 for (i = 1; i < ctrl->queue_count; i++)
631 nvme_rdma_stop_and_free_queue(&ctrl->queues[i]);
632}
633
634static int nvme_rdma_connect_io_queues(struct nvme_rdma_ctrl *ctrl)
635{
636 int i, ret = 0;
637
638 for (i = 1; i < ctrl->queue_count; i++) {
639 ret = nvmf_connect_io_queue(&ctrl->ctrl, i);
640 if (ret)
641 break;
642 }
643
644 return ret;
645}
646
647static int nvme_rdma_init_io_queues(struct nvme_rdma_ctrl *ctrl)
648{
649 int i, ret;
650
651 for (i = 1; i < ctrl->queue_count; i++) {
652 ret = nvme_rdma_init_queue(ctrl, i, ctrl->ctrl.sqsize);
653 if (ret) {
654 dev_info(ctrl->ctrl.device,
655 "failed to initialize i/o queue: %d\n", ret);
656 goto out_free_queues;
657 }
658 }
659
660 return 0;
661
662out_free_queues:
663 for (; i >= 1; i--)
664 nvme_rdma_stop_and_free_queue(&ctrl->queues[i]);
665
666 return ret;
667}
668
669static void nvme_rdma_destroy_admin_queue(struct nvme_rdma_ctrl *ctrl)
670{
671 nvme_rdma_free_qe(ctrl->queues[0].device->dev, &ctrl->async_event_sqe,
672 sizeof(struct nvme_command), DMA_TO_DEVICE);
673 nvme_rdma_stop_and_free_queue(&ctrl->queues[0]);
674 blk_cleanup_queue(ctrl->ctrl.admin_q);
675 blk_mq_free_tag_set(&ctrl->admin_tag_set);
676 nvme_rdma_dev_put(ctrl->device);
677}
678
679static void nvme_rdma_free_ctrl(struct nvme_ctrl *nctrl)
680{
681 struct nvme_rdma_ctrl *ctrl = to_rdma_ctrl(nctrl);
682
683 if (list_empty(&ctrl->list))
684 goto free_ctrl;
685
686 mutex_lock(&nvme_rdma_ctrl_mutex);
687 list_del(&ctrl->list);
688 mutex_unlock(&nvme_rdma_ctrl_mutex);
689
690 if (ctrl->ctrl.tagset) {
691 blk_cleanup_queue(ctrl->ctrl.connect_q);
692 blk_mq_free_tag_set(&ctrl->tag_set);
693 nvme_rdma_dev_put(ctrl->device);
694 }
695 kfree(ctrl->queues);
696 nvmf_free_options(nctrl->opts);
697free_ctrl:
698 kfree(ctrl);
699}
700
701static void nvme_rdma_reconnect_ctrl_work(struct work_struct *work)
702{
703 struct nvme_rdma_ctrl *ctrl = container_of(to_delayed_work(work),
704 struct nvme_rdma_ctrl, reconnect_work);
705 bool changed;
706 int ret;
707
708 if (ctrl->queue_count > 1) {
709 nvme_rdma_free_io_queues(ctrl);
710
711 ret = blk_mq_reinit_tagset(&ctrl->tag_set);
712 if (ret)
713 goto requeue;
714 }
715
716 nvme_rdma_stop_and_free_queue(&ctrl->queues[0]);
717
718 ret = blk_mq_reinit_tagset(&ctrl->admin_tag_set);
719 if (ret)
720 goto requeue;
721
722 ret = nvme_rdma_init_queue(ctrl, 0, NVMF_AQ_DEPTH);
723 if (ret)
724 goto requeue;
725
726 blk_mq_start_stopped_hw_queues(ctrl->ctrl.admin_q, true);
727
728 ret = nvmf_connect_admin_queue(&ctrl->ctrl);
729 if (ret)
730 goto stop_admin_q;
731
732 ret = nvme_enable_ctrl(&ctrl->ctrl, ctrl->cap);
733 if (ret)
734 goto stop_admin_q;
735
736 nvme_start_keep_alive(&ctrl->ctrl);
737
738 if (ctrl->queue_count > 1) {
739 ret = nvme_rdma_init_io_queues(ctrl);
740 if (ret)
741 goto stop_admin_q;
742
743 ret = nvme_rdma_connect_io_queues(ctrl);
744 if (ret)
745 goto stop_admin_q;
746 }
747
748 changed = nvme_change_ctrl_state(&ctrl->ctrl, NVME_CTRL_LIVE);
749 WARN_ON_ONCE(!changed);
750
Sagi Grimberg5f372eb2016-07-31 18:43:15 +0300751 if (ctrl->queue_count > 1) {
Christoph Hellwig71102302016-07-06 21:55:52 +0900752 nvme_start_queues(&ctrl->ctrl);
Sagi Grimberg5f372eb2016-07-31 18:43:15 +0300753 nvme_queue_scan(&ctrl->ctrl);
754 }
Christoph Hellwig71102302016-07-06 21:55:52 +0900755
756 dev_info(ctrl->ctrl.device, "Successfully reconnected\n");
757
758 return;
759
760stop_admin_q:
761 blk_mq_stop_hw_queues(ctrl->ctrl.admin_q);
762requeue:
763 /* Make sure we are not resetting/deleting */
764 if (ctrl->ctrl.state == NVME_CTRL_RECONNECTING) {
765 dev_info(ctrl->ctrl.device,
766 "Failed reconnect attempt, requeueing...\n");
767 queue_delayed_work(nvme_rdma_wq, &ctrl->reconnect_work,
768 ctrl->reconnect_delay * HZ);
769 }
770}
771
772static void nvme_rdma_error_recovery_work(struct work_struct *work)
773{
774 struct nvme_rdma_ctrl *ctrl = container_of(work,
775 struct nvme_rdma_ctrl, err_work);
776
777 nvme_stop_keep_alive(&ctrl->ctrl);
778 if (ctrl->queue_count > 1)
779 nvme_stop_queues(&ctrl->ctrl);
780 blk_mq_stop_hw_queues(ctrl->ctrl.admin_q);
781
782 /* We must take care of fastfail/requeue all our inflight requests */
783 if (ctrl->queue_count > 1)
784 blk_mq_tagset_busy_iter(&ctrl->tag_set,
785 nvme_cancel_request, &ctrl->ctrl);
786 blk_mq_tagset_busy_iter(&ctrl->admin_tag_set,
787 nvme_cancel_request, &ctrl->ctrl);
788
789 dev_info(ctrl->ctrl.device, "reconnecting in %d seconds\n",
790 ctrl->reconnect_delay);
791
792 queue_delayed_work(nvme_rdma_wq, &ctrl->reconnect_work,
793 ctrl->reconnect_delay * HZ);
794}
795
796static void nvme_rdma_error_recovery(struct nvme_rdma_ctrl *ctrl)
797{
798 if (!nvme_change_ctrl_state(&ctrl->ctrl, NVME_CTRL_RECONNECTING))
799 return;
800
801 queue_work(nvme_rdma_wq, &ctrl->err_work);
802}
803
804static void nvme_rdma_wr_error(struct ib_cq *cq, struct ib_wc *wc,
805 const char *op)
806{
807 struct nvme_rdma_queue *queue = cq->cq_context;
808 struct nvme_rdma_ctrl *ctrl = queue->ctrl;
809
810 if (ctrl->ctrl.state == NVME_CTRL_LIVE)
811 dev_info(ctrl->ctrl.device,
812 "%s for CQE 0x%p failed with status %s (%d)\n",
813 op, wc->wr_cqe,
814 ib_wc_status_msg(wc->status), wc->status);
815 nvme_rdma_error_recovery(ctrl);
816}
817
818static void nvme_rdma_memreg_done(struct ib_cq *cq, struct ib_wc *wc)
819{
820 if (unlikely(wc->status != IB_WC_SUCCESS))
821 nvme_rdma_wr_error(cq, wc, "MEMREG");
822}
823
824static void nvme_rdma_inv_rkey_done(struct ib_cq *cq, struct ib_wc *wc)
825{
826 if (unlikely(wc->status != IB_WC_SUCCESS))
827 nvme_rdma_wr_error(cq, wc, "LOCAL_INV");
828}
829
830static int nvme_rdma_inv_rkey(struct nvme_rdma_queue *queue,
831 struct nvme_rdma_request *req)
832{
833 struct ib_send_wr *bad_wr;
834 struct ib_send_wr wr = {
835 .opcode = IB_WR_LOCAL_INV,
836 .next = NULL,
837 .num_sge = 0,
838 .send_flags = 0,
839 .ex.invalidate_rkey = req->mr->rkey,
840 };
841
842 req->reg_cqe.done = nvme_rdma_inv_rkey_done;
843 wr.wr_cqe = &req->reg_cqe;
844
845 return ib_post_send(queue->qp, &wr, &bad_wr);
846}
847
848static void nvme_rdma_unmap_data(struct nvme_rdma_queue *queue,
849 struct request *rq)
850{
851 struct nvme_rdma_request *req = blk_mq_rq_to_pdu(rq);
852 struct nvme_rdma_ctrl *ctrl = queue->ctrl;
853 struct nvme_rdma_device *dev = queue->device;
854 struct ib_device *ibdev = dev->dev;
855 int res;
856
857 if (!blk_rq_bytes(rq))
858 return;
859
860 if (req->need_inval) {
861 res = nvme_rdma_inv_rkey(queue, req);
862 if (res < 0) {
863 dev_err(ctrl->ctrl.device,
864 "Queueing INV WR for rkey %#x failed (%d)\n",
865 req->mr->rkey, res);
866 nvme_rdma_error_recovery(queue->ctrl);
867 }
868 }
869
870 ib_dma_unmap_sg(ibdev, req->sg_table.sgl,
871 req->nents, rq_data_dir(rq) ==
872 WRITE ? DMA_TO_DEVICE : DMA_FROM_DEVICE);
873
874 nvme_cleanup_cmd(rq);
875 sg_free_table_chained(&req->sg_table, true);
876}
877
878static int nvme_rdma_set_sg_null(struct nvme_command *c)
879{
880 struct nvme_keyed_sgl_desc *sg = &c->common.dptr.ksgl;
881
882 sg->addr = 0;
883 put_unaligned_le24(0, sg->length);
884 put_unaligned_le32(0, sg->key);
885 sg->type = NVME_KEY_SGL_FMT_DATA_DESC << 4;
886 return 0;
887}
888
889static int nvme_rdma_map_sg_inline(struct nvme_rdma_queue *queue,
890 struct nvme_rdma_request *req, struct nvme_command *c)
891{
892 struct nvme_sgl_desc *sg = &c->common.dptr.sgl;
893
894 req->sge[1].addr = sg_dma_address(req->sg_table.sgl);
895 req->sge[1].length = sg_dma_len(req->sg_table.sgl);
896 req->sge[1].lkey = queue->device->pd->local_dma_lkey;
897
898 sg->addr = cpu_to_le64(queue->ctrl->ctrl.icdoff);
899 sg->length = cpu_to_le32(sg_dma_len(req->sg_table.sgl));
900 sg->type = (NVME_SGL_FMT_DATA_DESC << 4) | NVME_SGL_FMT_OFFSET;
901
902 req->inline_data = true;
903 req->num_sge++;
904 return 0;
905}
906
907static int nvme_rdma_map_sg_single(struct nvme_rdma_queue *queue,
908 struct nvme_rdma_request *req, struct nvme_command *c)
909{
910 struct nvme_keyed_sgl_desc *sg = &c->common.dptr.ksgl;
911
912 sg->addr = cpu_to_le64(sg_dma_address(req->sg_table.sgl));
913 put_unaligned_le24(sg_dma_len(req->sg_table.sgl), sg->length);
914 put_unaligned_le32(queue->device->mr->rkey, sg->key);
915 sg->type = NVME_KEY_SGL_FMT_DATA_DESC << 4;
916 return 0;
917}
918
919static int nvme_rdma_map_sg_fr(struct nvme_rdma_queue *queue,
920 struct nvme_rdma_request *req, struct nvme_command *c,
921 int count)
922{
923 struct nvme_keyed_sgl_desc *sg = &c->common.dptr.ksgl;
924 int nr;
925
926 nr = ib_map_mr_sg(req->mr, req->sg_table.sgl, count, NULL, PAGE_SIZE);
927 if (nr < count) {
928 if (nr < 0)
929 return nr;
930 return -EINVAL;
931 }
932
933 ib_update_fast_reg_key(req->mr, ib_inc_rkey(req->mr->rkey));
934
935 req->reg_cqe.done = nvme_rdma_memreg_done;
936 memset(&req->reg_wr, 0, sizeof(req->reg_wr));
937 req->reg_wr.wr.opcode = IB_WR_REG_MR;
938 req->reg_wr.wr.wr_cqe = &req->reg_cqe;
939 req->reg_wr.wr.num_sge = 0;
940 req->reg_wr.mr = req->mr;
941 req->reg_wr.key = req->mr->rkey;
942 req->reg_wr.access = IB_ACCESS_LOCAL_WRITE |
943 IB_ACCESS_REMOTE_READ |
944 IB_ACCESS_REMOTE_WRITE;
945
946 req->need_inval = true;
947
948 sg->addr = cpu_to_le64(req->mr->iova);
949 put_unaligned_le24(req->mr->length, sg->length);
950 put_unaligned_le32(req->mr->rkey, sg->key);
951 sg->type = (NVME_KEY_SGL_FMT_DATA_DESC << 4) |
952 NVME_SGL_FMT_INVALIDATE;
953
954 return 0;
955}
956
957static int nvme_rdma_map_data(struct nvme_rdma_queue *queue,
958 struct request *rq, unsigned int map_len,
959 struct nvme_command *c)
960{
961 struct nvme_rdma_request *req = blk_mq_rq_to_pdu(rq);
962 struct nvme_rdma_device *dev = queue->device;
963 struct ib_device *ibdev = dev->dev;
964 int nents, count;
965 int ret;
966
967 req->num_sge = 1;
968 req->inline_data = false;
969 req->need_inval = false;
970
971 c->common.flags |= NVME_CMD_SGL_METABUF;
972
973 if (!blk_rq_bytes(rq))
974 return nvme_rdma_set_sg_null(c);
975
976 req->sg_table.sgl = req->first_sgl;
977 ret = sg_alloc_table_chained(&req->sg_table, rq->nr_phys_segments,
978 req->sg_table.sgl);
979 if (ret)
980 return -ENOMEM;
981
982 nents = blk_rq_map_sg(rq->q, rq, req->sg_table.sgl);
983 BUG_ON(nents > rq->nr_phys_segments);
984 req->nents = nents;
985
986 count = ib_dma_map_sg(ibdev, req->sg_table.sgl, nents,
987 rq_data_dir(rq) == WRITE ? DMA_TO_DEVICE : DMA_FROM_DEVICE);
988 if (unlikely(count <= 0)) {
989 sg_free_table_chained(&req->sg_table, true);
990 return -EIO;
991 }
992
993 if (count == 1) {
994 if (rq_data_dir(rq) == WRITE &&
995 map_len <= nvme_rdma_inline_data_size(queue) &&
996 nvme_rdma_queue_idx(queue))
997 return nvme_rdma_map_sg_inline(queue, req, c);
998
999 if (!register_always)
1000 return nvme_rdma_map_sg_single(queue, req, c);
1001 }
1002
1003 return nvme_rdma_map_sg_fr(queue, req, c, count);
1004}
1005
1006static void nvme_rdma_send_done(struct ib_cq *cq, struct ib_wc *wc)
1007{
1008 if (unlikely(wc->status != IB_WC_SUCCESS))
1009 nvme_rdma_wr_error(cq, wc, "SEND");
1010}
1011
1012static int nvme_rdma_post_send(struct nvme_rdma_queue *queue,
1013 struct nvme_rdma_qe *qe, struct ib_sge *sge, u32 num_sge,
1014 struct ib_send_wr *first, bool flush)
1015{
1016 struct ib_send_wr wr, *bad_wr;
1017 int ret;
1018
1019 sge->addr = qe->dma;
1020 sge->length = sizeof(struct nvme_command),
1021 sge->lkey = queue->device->pd->local_dma_lkey;
1022
1023 qe->cqe.done = nvme_rdma_send_done;
1024
1025 wr.next = NULL;
1026 wr.wr_cqe = &qe->cqe;
1027 wr.sg_list = sge;
1028 wr.num_sge = num_sge;
1029 wr.opcode = IB_WR_SEND;
1030 wr.send_flags = 0;
1031
1032 /*
1033 * Unsignalled send completions are another giant desaster in the
1034 * IB Verbs spec: If we don't regularly post signalled sends
1035 * the send queue will fill up and only a QP reset will rescue us.
1036 * Would have been way to obvious to handle this in hardware or
1037 * at least the RDMA stack..
1038 *
1039 * This messy and racy code sniplet is copy and pasted from the iSER
1040 * initiator, and the magic '32' comes from there as well.
1041 *
1042 * Always signal the flushes. The magic request used for the flush
1043 * sequencer is not allocated in our driver's tagset and it's
1044 * triggered to be freed by blk_cleanup_queue(). So we need to
1045 * always mark it as signaled to ensure that the "wr_cqe", which is
1046 * embeded in request's payload, is not freed when __ib_process_cq()
1047 * calls wr_cqe->done().
1048 */
1049 if ((++queue->sig_count % 32) == 0 || flush)
1050 wr.send_flags |= IB_SEND_SIGNALED;
1051
1052 if (first)
1053 first->next = &wr;
1054 else
1055 first = &wr;
1056
1057 ret = ib_post_send(queue->qp, first, &bad_wr);
1058 if (ret) {
1059 dev_err(queue->ctrl->ctrl.device,
1060 "%s failed with error code %d\n", __func__, ret);
1061 }
1062 return ret;
1063}
1064
1065static int nvme_rdma_post_recv(struct nvme_rdma_queue *queue,
1066 struct nvme_rdma_qe *qe)
1067{
1068 struct ib_recv_wr wr, *bad_wr;
1069 struct ib_sge list;
1070 int ret;
1071
1072 list.addr = qe->dma;
1073 list.length = sizeof(struct nvme_completion);
1074 list.lkey = queue->device->pd->local_dma_lkey;
1075
1076 qe->cqe.done = nvme_rdma_recv_done;
1077
1078 wr.next = NULL;
1079 wr.wr_cqe = &qe->cqe;
1080 wr.sg_list = &list;
1081 wr.num_sge = 1;
1082
1083 ret = ib_post_recv(queue->qp, &wr, &bad_wr);
1084 if (ret) {
1085 dev_err(queue->ctrl->ctrl.device,
1086 "%s failed with error code %d\n", __func__, ret);
1087 }
1088 return ret;
1089}
1090
1091static struct blk_mq_tags *nvme_rdma_tagset(struct nvme_rdma_queue *queue)
1092{
1093 u32 queue_idx = nvme_rdma_queue_idx(queue);
1094
1095 if (queue_idx == 0)
1096 return queue->ctrl->admin_tag_set.tags[queue_idx];
1097 return queue->ctrl->tag_set.tags[queue_idx - 1];
1098}
1099
1100static void nvme_rdma_submit_async_event(struct nvme_ctrl *arg, int aer_idx)
1101{
1102 struct nvme_rdma_ctrl *ctrl = to_rdma_ctrl(arg);
1103 struct nvme_rdma_queue *queue = &ctrl->queues[0];
1104 struct ib_device *dev = queue->device->dev;
1105 struct nvme_rdma_qe *sqe = &ctrl->async_event_sqe;
1106 struct nvme_command *cmd = sqe->data;
1107 struct ib_sge sge;
1108 int ret;
1109
1110 if (WARN_ON_ONCE(aer_idx != 0))
1111 return;
1112
1113 ib_dma_sync_single_for_cpu(dev, sqe->dma, sizeof(*cmd), DMA_TO_DEVICE);
1114
1115 memset(cmd, 0, sizeof(*cmd));
1116 cmd->common.opcode = nvme_admin_async_event;
1117 cmd->common.command_id = NVME_RDMA_AQ_BLKMQ_DEPTH;
1118 cmd->common.flags |= NVME_CMD_SGL_METABUF;
1119 nvme_rdma_set_sg_null(cmd);
1120
1121 ib_dma_sync_single_for_device(dev, sqe->dma, sizeof(*cmd),
1122 DMA_TO_DEVICE);
1123
1124 ret = nvme_rdma_post_send(queue, sqe, &sge, 1, NULL, false);
1125 WARN_ON_ONCE(ret);
1126}
1127
1128static int nvme_rdma_process_nvme_rsp(struct nvme_rdma_queue *queue,
1129 struct nvme_completion *cqe, struct ib_wc *wc, int tag)
1130{
1131 u16 status = le16_to_cpu(cqe->status);
1132 struct request *rq;
1133 struct nvme_rdma_request *req;
1134 int ret = 0;
1135
1136 status >>= 1;
1137
1138 rq = blk_mq_tag_to_rq(nvme_rdma_tagset(queue), cqe->command_id);
1139 if (!rq) {
1140 dev_err(queue->ctrl->ctrl.device,
1141 "tag 0x%x on QP %#x not found\n",
1142 cqe->command_id, queue->qp->qp_num);
1143 nvme_rdma_error_recovery(queue->ctrl);
1144 return ret;
1145 }
1146 req = blk_mq_rq_to_pdu(rq);
1147
1148 if (rq->cmd_type == REQ_TYPE_DRV_PRIV && rq->special)
1149 memcpy(rq->special, cqe, sizeof(*cqe));
1150
1151 if (rq->tag == tag)
1152 ret = 1;
1153
1154 if ((wc->wc_flags & IB_WC_WITH_INVALIDATE) &&
1155 wc->ex.invalidate_rkey == req->mr->rkey)
1156 req->need_inval = false;
1157
1158 blk_mq_complete_request(rq, status);
1159
1160 return ret;
1161}
1162
1163static int __nvme_rdma_recv_done(struct ib_cq *cq, struct ib_wc *wc, int tag)
1164{
1165 struct nvme_rdma_qe *qe =
1166 container_of(wc->wr_cqe, struct nvme_rdma_qe, cqe);
1167 struct nvme_rdma_queue *queue = cq->cq_context;
1168 struct ib_device *ibdev = queue->device->dev;
1169 struct nvme_completion *cqe = qe->data;
1170 const size_t len = sizeof(struct nvme_completion);
1171 int ret = 0;
1172
1173 if (unlikely(wc->status != IB_WC_SUCCESS)) {
1174 nvme_rdma_wr_error(cq, wc, "RECV");
1175 return 0;
1176 }
1177
1178 ib_dma_sync_single_for_cpu(ibdev, qe->dma, len, DMA_FROM_DEVICE);
1179 /*
1180 * AEN requests are special as they don't time out and can
1181 * survive any kind of queue freeze and often don't respond to
1182 * aborts. We don't even bother to allocate a struct request
1183 * for them but rather special case them here.
1184 */
1185 if (unlikely(nvme_rdma_queue_idx(queue) == 0 &&
1186 cqe->command_id >= NVME_RDMA_AQ_BLKMQ_DEPTH))
1187 nvme_complete_async_event(&queue->ctrl->ctrl, cqe);
1188 else
1189 ret = nvme_rdma_process_nvme_rsp(queue, cqe, wc, tag);
1190 ib_dma_sync_single_for_device(ibdev, qe->dma, len, DMA_FROM_DEVICE);
1191
1192 nvme_rdma_post_recv(queue, qe);
1193 return ret;
1194}
1195
1196static void nvme_rdma_recv_done(struct ib_cq *cq, struct ib_wc *wc)
1197{
1198 __nvme_rdma_recv_done(cq, wc, -1);
1199}
1200
1201static int nvme_rdma_conn_established(struct nvme_rdma_queue *queue)
1202{
1203 int ret, i;
1204
1205 for (i = 0; i < queue->queue_size; i++) {
1206 ret = nvme_rdma_post_recv(queue, &queue->rsp_ring[i]);
1207 if (ret)
1208 goto out_destroy_queue_ib;
1209 }
1210
1211 return 0;
1212
1213out_destroy_queue_ib:
1214 nvme_rdma_destroy_queue_ib(queue);
1215 return ret;
1216}
1217
1218static int nvme_rdma_conn_rejected(struct nvme_rdma_queue *queue,
1219 struct rdma_cm_event *ev)
1220{
1221 if (ev->param.conn.private_data_len) {
1222 struct nvme_rdma_cm_rej *rej =
1223 (struct nvme_rdma_cm_rej *)ev->param.conn.private_data;
1224
1225 dev_err(queue->ctrl->ctrl.device,
1226 "Connect rejected, status %d.", le16_to_cpu(rej->sts));
1227 /* XXX: Think of something clever to do here... */
1228 } else {
1229 dev_err(queue->ctrl->ctrl.device,
1230 "Connect rejected, no private data.\n");
1231 }
1232
1233 return -ECONNRESET;
1234}
1235
1236static int nvme_rdma_addr_resolved(struct nvme_rdma_queue *queue)
1237{
1238 struct nvme_rdma_device *dev;
1239 int ret;
1240
1241 dev = nvme_rdma_find_get_device(queue->cm_id);
1242 if (!dev) {
1243 dev_err(queue->cm_id->device->dma_device,
1244 "no client data found!\n");
1245 return -ECONNREFUSED;
1246 }
1247
1248 ret = nvme_rdma_create_queue_ib(queue, dev);
1249 if (ret) {
1250 nvme_rdma_dev_put(dev);
1251 goto out;
1252 }
1253
1254 ret = rdma_resolve_route(queue->cm_id, NVME_RDMA_CONNECT_TIMEOUT_MS);
1255 if (ret) {
1256 dev_err(queue->ctrl->ctrl.device,
1257 "rdma_resolve_route failed (%d).\n",
1258 queue->cm_error);
1259 goto out_destroy_queue;
1260 }
1261
1262 return 0;
1263
1264out_destroy_queue:
1265 nvme_rdma_destroy_queue_ib(queue);
1266out:
1267 return ret;
1268}
1269
1270static int nvme_rdma_route_resolved(struct nvme_rdma_queue *queue)
1271{
1272 struct nvme_rdma_ctrl *ctrl = queue->ctrl;
1273 struct rdma_conn_param param = { };
Roland Dreier0b857b42016-07-31 00:27:39 -07001274 struct nvme_rdma_cm_req priv = { };
Christoph Hellwig71102302016-07-06 21:55:52 +09001275 int ret;
1276
1277 param.qp_num = queue->qp->qp_num;
1278 param.flow_control = 1;
1279
1280 param.responder_resources = queue->device->dev->attrs.max_qp_rd_atom;
Sagi Grimberg2ac17c22016-06-22 15:06:00 +03001281 /* maximum retry count */
1282 param.retry_count = 7;
Christoph Hellwig71102302016-07-06 21:55:52 +09001283 param.rnr_retry_count = 7;
1284 param.private_data = &priv;
1285 param.private_data_len = sizeof(priv);
1286
1287 priv.recfmt = cpu_to_le16(NVME_RDMA_CM_FMT_1_0);
1288 priv.qid = cpu_to_le16(nvme_rdma_queue_idx(queue));
1289 priv.hrqsize = cpu_to_le16(queue->queue_size);
1290 priv.hsqsize = cpu_to_le16(queue->queue_size);
1291
1292 ret = rdma_connect(queue->cm_id, &param);
1293 if (ret) {
1294 dev_err(ctrl->ctrl.device,
1295 "rdma_connect failed (%d).\n", ret);
1296 goto out_destroy_queue_ib;
1297 }
1298
1299 return 0;
1300
1301out_destroy_queue_ib:
1302 nvme_rdma_destroy_queue_ib(queue);
1303 return ret;
1304}
1305
1306/**
1307 * nvme_rdma_device_unplug() - Handle RDMA device unplug
1308 * @queue: Queue that owns the cm_id that caught the event
1309 *
1310 * DEVICE_REMOVAL event notifies us that the RDMA device is about
1311 * to unplug so we should take care of destroying our RDMA resources.
1312 * This event will be generated for each allocated cm_id.
1313 *
1314 * In our case, the RDMA resources are managed per controller and not
1315 * only per queue. So the way we handle this is we trigger an implicit
1316 * controller deletion upon the first DEVICE_REMOVAL event we see, and
1317 * hold the event inflight until the controller deletion is completed.
1318 *
1319 * One exception that we need to handle is the destruction of the cm_id
1320 * that caught the event. Since we hold the callout until the controller
1321 * deletion is completed, we'll deadlock if the controller deletion will
1322 * call rdma_destroy_id on this queue's cm_id. Thus, we claim ownership
1323 * of destroying this queue before-hand, destroy the queue resources
1324 * after the controller deletion completed with the exception of destroying
1325 * the cm_id implicitely by returning a non-zero rc to the callout.
1326 */
1327static int nvme_rdma_device_unplug(struct nvme_rdma_queue *queue)
1328{
1329 struct nvme_rdma_ctrl *ctrl = queue->ctrl;
1330 int ret, ctrl_deleted = 0;
1331
1332 /* First disable the queue so ctrl delete won't free it */
1333 if (!test_and_clear_bit(NVME_RDMA_Q_CONNECTED, &queue->flags))
1334 goto out;
1335
1336 /* delete the controller */
1337 ret = __nvme_rdma_del_ctrl(ctrl);
1338 if (!ret) {
1339 dev_warn(ctrl->ctrl.device,
1340 "Got rdma device removal event, deleting ctrl\n");
1341 flush_work(&ctrl->delete_work);
1342
1343 /* Return non-zero so the cm_id will destroy implicitly */
1344 ctrl_deleted = 1;
1345
1346 /* Free this queue ourselves */
1347 rdma_disconnect(queue->cm_id);
1348 ib_drain_qp(queue->qp);
1349 nvme_rdma_destroy_queue_ib(queue);
1350 }
1351
1352out:
1353 return ctrl_deleted;
1354}
1355
1356static int nvme_rdma_cm_handler(struct rdma_cm_id *cm_id,
1357 struct rdma_cm_event *ev)
1358{
1359 struct nvme_rdma_queue *queue = cm_id->context;
1360 int cm_error = 0;
1361
1362 dev_dbg(queue->ctrl->ctrl.device, "%s (%d): status %d id %p\n",
1363 rdma_event_msg(ev->event), ev->event,
1364 ev->status, cm_id);
1365
1366 switch (ev->event) {
1367 case RDMA_CM_EVENT_ADDR_RESOLVED:
1368 cm_error = nvme_rdma_addr_resolved(queue);
1369 break;
1370 case RDMA_CM_EVENT_ROUTE_RESOLVED:
1371 cm_error = nvme_rdma_route_resolved(queue);
1372 break;
1373 case RDMA_CM_EVENT_ESTABLISHED:
1374 queue->cm_error = nvme_rdma_conn_established(queue);
1375 /* complete cm_done regardless of success/failure */
1376 complete(&queue->cm_done);
1377 return 0;
1378 case RDMA_CM_EVENT_REJECTED:
1379 cm_error = nvme_rdma_conn_rejected(queue, ev);
1380 break;
1381 case RDMA_CM_EVENT_ADDR_ERROR:
1382 case RDMA_CM_EVENT_ROUTE_ERROR:
1383 case RDMA_CM_EVENT_CONNECT_ERROR:
1384 case RDMA_CM_EVENT_UNREACHABLE:
1385 dev_dbg(queue->ctrl->ctrl.device,
1386 "CM error event %d\n", ev->event);
1387 cm_error = -ECONNRESET;
1388 break;
1389 case RDMA_CM_EVENT_DISCONNECTED:
1390 case RDMA_CM_EVENT_ADDR_CHANGE:
1391 case RDMA_CM_EVENT_TIMEWAIT_EXIT:
1392 dev_dbg(queue->ctrl->ctrl.device,
1393 "disconnect received - connection closed\n");
1394 nvme_rdma_error_recovery(queue->ctrl);
1395 break;
1396 case RDMA_CM_EVENT_DEVICE_REMOVAL:
1397 /* return 1 means impliciy CM ID destroy */
1398 return nvme_rdma_device_unplug(queue);
1399 default:
1400 dev_err(queue->ctrl->ctrl.device,
1401 "Unexpected RDMA CM event (%d)\n", ev->event);
1402 nvme_rdma_error_recovery(queue->ctrl);
1403 break;
1404 }
1405
1406 if (cm_error) {
1407 queue->cm_error = cm_error;
1408 complete(&queue->cm_done);
1409 }
1410
1411 return 0;
1412}
1413
1414static enum blk_eh_timer_return
1415nvme_rdma_timeout(struct request *rq, bool reserved)
1416{
1417 struct nvme_rdma_request *req = blk_mq_rq_to_pdu(rq);
1418
1419 /* queue error recovery */
1420 nvme_rdma_error_recovery(req->queue->ctrl);
1421
1422 /* fail with DNR on cmd timeout */
1423 rq->errors = NVME_SC_ABORT_REQ | NVME_SC_DNR;
1424
1425 return BLK_EH_HANDLED;
1426}
1427
1428static int nvme_rdma_queue_rq(struct blk_mq_hw_ctx *hctx,
1429 const struct blk_mq_queue_data *bd)
1430{
1431 struct nvme_ns *ns = hctx->queue->queuedata;
1432 struct nvme_rdma_queue *queue = hctx->driver_data;
1433 struct request *rq = bd->rq;
1434 struct nvme_rdma_request *req = blk_mq_rq_to_pdu(rq);
1435 struct nvme_rdma_qe *sqe = &req->sqe;
1436 struct nvme_command *c = sqe->data;
1437 bool flush = false;
1438 struct ib_device *dev;
1439 unsigned int map_len;
1440 int ret;
1441
1442 WARN_ON_ONCE(rq->tag < 0);
1443
1444 dev = queue->device->dev;
1445 ib_dma_sync_single_for_cpu(dev, sqe->dma,
1446 sizeof(struct nvme_command), DMA_TO_DEVICE);
1447
1448 ret = nvme_setup_cmd(ns, rq, c);
1449 if (ret)
1450 return ret;
1451
1452 c->common.command_id = rq->tag;
1453 blk_mq_start_request(rq);
1454
1455 map_len = nvme_map_len(rq);
1456 ret = nvme_rdma_map_data(queue, rq, map_len, c);
1457 if (ret < 0) {
1458 dev_err(queue->ctrl->ctrl.device,
1459 "Failed to map data (%d)\n", ret);
1460 nvme_cleanup_cmd(rq);
1461 goto err;
1462 }
1463
1464 ib_dma_sync_single_for_device(dev, sqe->dma,
1465 sizeof(struct nvme_command), DMA_TO_DEVICE);
1466
1467 if (rq->cmd_type == REQ_TYPE_FS && req_op(rq) == REQ_OP_FLUSH)
1468 flush = true;
1469 ret = nvme_rdma_post_send(queue, sqe, req->sge, req->num_sge,
1470 req->need_inval ? &req->reg_wr.wr : NULL, flush);
1471 if (ret) {
1472 nvme_rdma_unmap_data(queue, rq);
1473 goto err;
1474 }
1475
1476 return BLK_MQ_RQ_QUEUE_OK;
1477err:
1478 return (ret == -ENOMEM || ret == -EAGAIN) ?
1479 BLK_MQ_RQ_QUEUE_BUSY : BLK_MQ_RQ_QUEUE_ERROR;
1480}
1481
1482static int nvme_rdma_poll(struct blk_mq_hw_ctx *hctx, unsigned int tag)
1483{
1484 struct nvme_rdma_queue *queue = hctx->driver_data;
1485 struct ib_cq *cq = queue->ib_cq;
1486 struct ib_wc wc;
1487 int found = 0;
1488
1489 ib_req_notify_cq(cq, IB_CQ_NEXT_COMP);
1490 while (ib_poll_cq(cq, 1, &wc) > 0) {
1491 struct ib_cqe *cqe = wc.wr_cqe;
1492
1493 if (cqe) {
1494 if (cqe->done == nvme_rdma_recv_done)
1495 found |= __nvme_rdma_recv_done(cq, &wc, tag);
1496 else
1497 cqe->done(cq, &wc);
1498 }
1499 }
1500
1501 return found;
1502}
1503
1504static void nvme_rdma_complete_rq(struct request *rq)
1505{
1506 struct nvme_rdma_request *req = blk_mq_rq_to_pdu(rq);
1507 struct nvme_rdma_queue *queue = req->queue;
1508 int error = 0;
1509
1510 nvme_rdma_unmap_data(queue, rq);
1511
1512 if (unlikely(rq->errors)) {
1513 if (nvme_req_needs_retry(rq, rq->errors)) {
1514 nvme_requeue_req(rq);
1515 return;
1516 }
1517
1518 if (rq->cmd_type == REQ_TYPE_DRV_PRIV)
1519 error = rq->errors;
1520 else
1521 error = nvme_error_status(rq->errors);
1522 }
1523
1524 blk_mq_end_request(rq, error);
1525}
1526
1527static struct blk_mq_ops nvme_rdma_mq_ops = {
1528 .queue_rq = nvme_rdma_queue_rq,
1529 .complete = nvme_rdma_complete_rq,
1530 .map_queue = blk_mq_map_queue,
1531 .init_request = nvme_rdma_init_request,
1532 .exit_request = nvme_rdma_exit_request,
1533 .reinit_request = nvme_rdma_reinit_request,
1534 .init_hctx = nvme_rdma_init_hctx,
1535 .poll = nvme_rdma_poll,
1536 .timeout = nvme_rdma_timeout,
1537};
1538
1539static struct blk_mq_ops nvme_rdma_admin_mq_ops = {
1540 .queue_rq = nvme_rdma_queue_rq,
1541 .complete = nvme_rdma_complete_rq,
1542 .map_queue = blk_mq_map_queue,
1543 .init_request = nvme_rdma_init_admin_request,
1544 .exit_request = nvme_rdma_exit_admin_request,
1545 .reinit_request = nvme_rdma_reinit_request,
1546 .init_hctx = nvme_rdma_init_admin_hctx,
1547 .timeout = nvme_rdma_timeout,
1548};
1549
1550static int nvme_rdma_configure_admin_queue(struct nvme_rdma_ctrl *ctrl)
1551{
1552 int error;
1553
1554 error = nvme_rdma_init_queue(ctrl, 0, NVMF_AQ_DEPTH);
1555 if (error)
1556 return error;
1557
1558 ctrl->device = ctrl->queues[0].device;
1559
1560 /*
1561 * We need a reference on the device as long as the tag_set is alive,
1562 * as the MRs in the request structures need a valid ib_device.
1563 */
1564 error = -EINVAL;
1565 if (!nvme_rdma_dev_get(ctrl->device))
1566 goto out_free_queue;
1567
1568 ctrl->max_fr_pages = min_t(u32, NVME_RDMA_MAX_SEGMENTS,
1569 ctrl->device->dev->attrs.max_fast_reg_page_list_len);
1570
1571 memset(&ctrl->admin_tag_set, 0, sizeof(ctrl->admin_tag_set));
1572 ctrl->admin_tag_set.ops = &nvme_rdma_admin_mq_ops;
1573 ctrl->admin_tag_set.queue_depth = NVME_RDMA_AQ_BLKMQ_DEPTH;
1574 ctrl->admin_tag_set.reserved_tags = 2; /* connect + keep-alive */
1575 ctrl->admin_tag_set.numa_node = NUMA_NO_NODE;
1576 ctrl->admin_tag_set.cmd_size = sizeof(struct nvme_rdma_request) +
1577 SG_CHUNK_SIZE * sizeof(struct scatterlist);
1578 ctrl->admin_tag_set.driver_data = ctrl;
1579 ctrl->admin_tag_set.nr_hw_queues = 1;
1580 ctrl->admin_tag_set.timeout = ADMIN_TIMEOUT;
1581
1582 error = blk_mq_alloc_tag_set(&ctrl->admin_tag_set);
1583 if (error)
1584 goto out_put_dev;
1585
1586 ctrl->ctrl.admin_q = blk_mq_init_queue(&ctrl->admin_tag_set);
1587 if (IS_ERR(ctrl->ctrl.admin_q)) {
1588 error = PTR_ERR(ctrl->ctrl.admin_q);
1589 goto out_free_tagset;
1590 }
1591
1592 error = nvmf_connect_admin_queue(&ctrl->ctrl);
1593 if (error)
1594 goto out_cleanup_queue;
1595
1596 error = nvmf_reg_read64(&ctrl->ctrl, NVME_REG_CAP, &ctrl->cap);
1597 if (error) {
1598 dev_err(ctrl->ctrl.device,
1599 "prop_get NVME_REG_CAP failed\n");
1600 goto out_cleanup_queue;
1601 }
1602
1603 ctrl->ctrl.sqsize =
1604 min_t(int, NVME_CAP_MQES(ctrl->cap) + 1, ctrl->ctrl.sqsize);
1605
1606 error = nvme_enable_ctrl(&ctrl->ctrl, ctrl->cap);
1607 if (error)
1608 goto out_cleanup_queue;
1609
1610 ctrl->ctrl.max_hw_sectors =
1611 (ctrl->max_fr_pages - 1) << (PAGE_SHIFT - 9);
1612
1613 error = nvme_init_identify(&ctrl->ctrl);
1614 if (error)
1615 goto out_cleanup_queue;
1616
1617 error = nvme_rdma_alloc_qe(ctrl->queues[0].device->dev,
1618 &ctrl->async_event_sqe, sizeof(struct nvme_command),
1619 DMA_TO_DEVICE);
1620 if (error)
1621 goto out_cleanup_queue;
1622
1623 nvme_start_keep_alive(&ctrl->ctrl);
1624
1625 return 0;
1626
1627out_cleanup_queue:
1628 blk_cleanup_queue(ctrl->ctrl.admin_q);
1629out_free_tagset:
1630 /* disconnect and drain the queue before freeing the tagset */
1631 nvme_rdma_stop_queue(&ctrl->queues[0]);
1632 blk_mq_free_tag_set(&ctrl->admin_tag_set);
1633out_put_dev:
1634 nvme_rdma_dev_put(ctrl->device);
1635out_free_queue:
1636 nvme_rdma_free_queue(&ctrl->queues[0]);
1637 return error;
1638}
1639
1640static void nvme_rdma_shutdown_ctrl(struct nvme_rdma_ctrl *ctrl)
1641{
1642 nvme_stop_keep_alive(&ctrl->ctrl);
1643 cancel_work_sync(&ctrl->err_work);
1644 cancel_delayed_work_sync(&ctrl->reconnect_work);
1645
1646 if (ctrl->queue_count > 1) {
1647 nvme_stop_queues(&ctrl->ctrl);
1648 blk_mq_tagset_busy_iter(&ctrl->tag_set,
1649 nvme_cancel_request, &ctrl->ctrl);
1650 nvme_rdma_free_io_queues(ctrl);
1651 }
1652
1653 if (ctrl->ctrl.state == NVME_CTRL_LIVE)
1654 nvme_shutdown_ctrl(&ctrl->ctrl);
1655
1656 blk_mq_stop_hw_queues(ctrl->ctrl.admin_q);
1657 blk_mq_tagset_busy_iter(&ctrl->admin_tag_set,
1658 nvme_cancel_request, &ctrl->ctrl);
1659 nvme_rdma_destroy_admin_queue(ctrl);
1660}
1661
1662static void nvme_rdma_del_ctrl_work(struct work_struct *work)
1663{
1664 struct nvme_rdma_ctrl *ctrl = container_of(work,
1665 struct nvme_rdma_ctrl, delete_work);
1666
1667 nvme_remove_namespaces(&ctrl->ctrl);
1668 nvme_rdma_shutdown_ctrl(ctrl);
1669 nvme_uninit_ctrl(&ctrl->ctrl);
1670 nvme_put_ctrl(&ctrl->ctrl);
1671}
1672
1673static int __nvme_rdma_del_ctrl(struct nvme_rdma_ctrl *ctrl)
1674{
1675 if (!nvme_change_ctrl_state(&ctrl->ctrl, NVME_CTRL_DELETING))
1676 return -EBUSY;
1677
1678 if (!queue_work(nvme_rdma_wq, &ctrl->delete_work))
1679 return -EBUSY;
1680
1681 return 0;
1682}
1683
1684static int nvme_rdma_del_ctrl(struct nvme_ctrl *nctrl)
1685{
1686 struct nvme_rdma_ctrl *ctrl = to_rdma_ctrl(nctrl);
1687 int ret;
1688
1689 ret = __nvme_rdma_del_ctrl(ctrl);
1690 if (ret)
1691 return ret;
1692
1693 flush_work(&ctrl->delete_work);
1694
1695 return 0;
1696}
1697
1698static void nvme_rdma_remove_ctrl_work(struct work_struct *work)
1699{
1700 struct nvme_rdma_ctrl *ctrl = container_of(work,
1701 struct nvme_rdma_ctrl, delete_work);
1702
1703 nvme_remove_namespaces(&ctrl->ctrl);
1704 nvme_uninit_ctrl(&ctrl->ctrl);
1705 nvme_put_ctrl(&ctrl->ctrl);
1706}
1707
1708static void nvme_rdma_reset_ctrl_work(struct work_struct *work)
1709{
1710 struct nvme_rdma_ctrl *ctrl = container_of(work,
1711 struct nvme_rdma_ctrl, reset_work);
1712 int ret;
1713 bool changed;
1714
1715 nvme_rdma_shutdown_ctrl(ctrl);
1716
1717 ret = nvme_rdma_configure_admin_queue(ctrl);
1718 if (ret) {
1719 /* ctrl is already shutdown, just remove the ctrl */
1720 INIT_WORK(&ctrl->delete_work, nvme_rdma_remove_ctrl_work);
1721 goto del_dead_ctrl;
1722 }
1723
1724 if (ctrl->queue_count > 1) {
1725 ret = blk_mq_reinit_tagset(&ctrl->tag_set);
1726 if (ret)
1727 goto del_dead_ctrl;
1728
1729 ret = nvme_rdma_init_io_queues(ctrl);
1730 if (ret)
1731 goto del_dead_ctrl;
1732
1733 ret = nvme_rdma_connect_io_queues(ctrl);
1734 if (ret)
1735 goto del_dead_ctrl;
1736 }
1737
1738 changed = nvme_change_ctrl_state(&ctrl->ctrl, NVME_CTRL_LIVE);
1739 WARN_ON_ONCE(!changed);
1740
1741 if (ctrl->queue_count > 1) {
1742 nvme_start_queues(&ctrl->ctrl);
1743 nvme_queue_scan(&ctrl->ctrl);
1744 }
1745
1746 return;
1747
1748del_dead_ctrl:
1749 /* Deleting this dead controller... */
1750 dev_warn(ctrl->ctrl.device, "Removing after reset failure\n");
1751 WARN_ON(!queue_work(nvme_rdma_wq, &ctrl->delete_work));
1752}
1753
1754static int nvme_rdma_reset_ctrl(struct nvme_ctrl *nctrl)
1755{
1756 struct nvme_rdma_ctrl *ctrl = to_rdma_ctrl(nctrl);
1757
1758 if (!nvme_change_ctrl_state(&ctrl->ctrl, NVME_CTRL_RESETTING))
1759 return -EBUSY;
1760
1761 if (!queue_work(nvme_rdma_wq, &ctrl->reset_work))
1762 return -EBUSY;
1763
1764 flush_work(&ctrl->reset_work);
1765
1766 return 0;
1767}
1768
1769static const struct nvme_ctrl_ops nvme_rdma_ctrl_ops = {
1770 .name = "rdma",
1771 .module = THIS_MODULE,
1772 .is_fabrics = true,
1773 .reg_read32 = nvmf_reg_read32,
1774 .reg_read64 = nvmf_reg_read64,
1775 .reg_write32 = nvmf_reg_write32,
1776 .reset_ctrl = nvme_rdma_reset_ctrl,
1777 .free_ctrl = nvme_rdma_free_ctrl,
1778 .submit_async_event = nvme_rdma_submit_async_event,
1779 .delete_ctrl = nvme_rdma_del_ctrl,
1780 .get_subsysnqn = nvmf_get_subsysnqn,
1781 .get_address = nvmf_get_address,
1782};
1783
1784static int nvme_rdma_create_io_queues(struct nvme_rdma_ctrl *ctrl)
1785{
1786 struct nvmf_ctrl_options *opts = ctrl->ctrl.opts;
1787 int ret;
1788
1789 ret = nvme_set_queue_count(&ctrl->ctrl, &opts->nr_io_queues);
1790 if (ret)
1791 return ret;
1792
1793 ctrl->queue_count = opts->nr_io_queues + 1;
1794 if (ctrl->queue_count < 2)
1795 return 0;
1796
1797 dev_info(ctrl->ctrl.device,
1798 "creating %d I/O queues.\n", opts->nr_io_queues);
1799
1800 ret = nvme_rdma_init_io_queues(ctrl);
1801 if (ret)
1802 return ret;
1803
1804 /*
1805 * We need a reference on the device as long as the tag_set is alive,
1806 * as the MRs in the request structures need a valid ib_device.
1807 */
1808 ret = -EINVAL;
1809 if (!nvme_rdma_dev_get(ctrl->device))
1810 goto out_free_io_queues;
1811
1812 memset(&ctrl->tag_set, 0, sizeof(ctrl->tag_set));
1813 ctrl->tag_set.ops = &nvme_rdma_mq_ops;
1814 ctrl->tag_set.queue_depth = ctrl->ctrl.sqsize;
1815 ctrl->tag_set.reserved_tags = 1; /* fabric connect */
1816 ctrl->tag_set.numa_node = NUMA_NO_NODE;
1817 ctrl->tag_set.flags = BLK_MQ_F_SHOULD_MERGE;
1818 ctrl->tag_set.cmd_size = sizeof(struct nvme_rdma_request) +
1819 SG_CHUNK_SIZE * sizeof(struct scatterlist);
1820 ctrl->tag_set.driver_data = ctrl;
1821 ctrl->tag_set.nr_hw_queues = ctrl->queue_count - 1;
1822 ctrl->tag_set.timeout = NVME_IO_TIMEOUT;
1823
1824 ret = blk_mq_alloc_tag_set(&ctrl->tag_set);
1825 if (ret)
1826 goto out_put_dev;
1827 ctrl->ctrl.tagset = &ctrl->tag_set;
1828
1829 ctrl->ctrl.connect_q = blk_mq_init_queue(&ctrl->tag_set);
1830 if (IS_ERR(ctrl->ctrl.connect_q)) {
1831 ret = PTR_ERR(ctrl->ctrl.connect_q);
1832 goto out_free_tag_set;
1833 }
1834
1835 ret = nvme_rdma_connect_io_queues(ctrl);
1836 if (ret)
1837 goto out_cleanup_connect_q;
1838
1839 return 0;
1840
1841out_cleanup_connect_q:
1842 blk_cleanup_queue(ctrl->ctrl.connect_q);
1843out_free_tag_set:
1844 blk_mq_free_tag_set(&ctrl->tag_set);
1845out_put_dev:
1846 nvme_rdma_dev_put(ctrl->device);
1847out_free_io_queues:
1848 nvme_rdma_free_io_queues(ctrl);
1849 return ret;
1850}
1851
1852static int nvme_rdma_parse_ipaddr(struct sockaddr_in *in_addr, char *p)
1853{
1854 u8 *addr = (u8 *)&in_addr->sin_addr.s_addr;
1855 size_t buflen = strlen(p);
1856
1857 /* XXX: handle IPv6 addresses */
1858
1859 if (buflen > INET_ADDRSTRLEN)
1860 return -EINVAL;
1861 if (in4_pton(p, buflen, addr, '\0', NULL) == 0)
1862 return -EINVAL;
1863 in_addr->sin_family = AF_INET;
1864 return 0;
1865}
1866
1867static struct nvme_ctrl *nvme_rdma_create_ctrl(struct device *dev,
1868 struct nvmf_ctrl_options *opts)
1869{
1870 struct nvme_rdma_ctrl *ctrl;
1871 int ret;
1872 bool changed;
1873
1874 ctrl = kzalloc(sizeof(*ctrl), GFP_KERNEL);
1875 if (!ctrl)
1876 return ERR_PTR(-ENOMEM);
1877 ctrl->ctrl.opts = opts;
1878 INIT_LIST_HEAD(&ctrl->list);
1879
1880 ret = nvme_rdma_parse_ipaddr(&ctrl->addr_in, opts->traddr);
1881 if (ret) {
1882 pr_err("malformed IP address passed: %s\n", opts->traddr);
1883 goto out_free_ctrl;
1884 }
1885
1886 if (opts->mask & NVMF_OPT_TRSVCID) {
1887 u16 port;
1888
1889 ret = kstrtou16(opts->trsvcid, 0, &port);
1890 if (ret)
1891 goto out_free_ctrl;
1892
1893 ctrl->addr_in.sin_port = cpu_to_be16(port);
1894 } else {
1895 ctrl->addr_in.sin_port = cpu_to_be16(NVME_RDMA_IP_PORT);
1896 }
1897
1898 ret = nvme_init_ctrl(&ctrl->ctrl, dev, &nvme_rdma_ctrl_ops,
1899 0 /* no quirks, we're perfect! */);
1900 if (ret)
1901 goto out_free_ctrl;
1902
1903 ctrl->reconnect_delay = opts->reconnect_delay;
1904 INIT_DELAYED_WORK(&ctrl->reconnect_work,
1905 nvme_rdma_reconnect_ctrl_work);
1906 INIT_WORK(&ctrl->err_work, nvme_rdma_error_recovery_work);
1907 INIT_WORK(&ctrl->delete_work, nvme_rdma_del_ctrl_work);
1908 INIT_WORK(&ctrl->reset_work, nvme_rdma_reset_ctrl_work);
1909 spin_lock_init(&ctrl->lock);
1910
1911 ctrl->queue_count = opts->nr_io_queues + 1; /* +1 for admin queue */
1912 ctrl->ctrl.sqsize = opts->queue_size;
Christoph Hellwig71102302016-07-06 21:55:52 +09001913 ctrl->ctrl.kato = opts->kato;
1914
1915 ret = -ENOMEM;
1916 ctrl->queues = kcalloc(ctrl->queue_count, sizeof(*ctrl->queues),
1917 GFP_KERNEL);
1918 if (!ctrl->queues)
1919 goto out_uninit_ctrl;
1920
1921 ret = nvme_rdma_configure_admin_queue(ctrl);
1922 if (ret)
1923 goto out_kfree_queues;
1924
1925 /* sanity check icdoff */
1926 if (ctrl->ctrl.icdoff) {
1927 dev_err(ctrl->ctrl.device, "icdoff is not supported!\n");
1928 goto out_remove_admin_queue;
1929 }
1930
1931 /* sanity check keyed sgls */
1932 if (!(ctrl->ctrl.sgls & (1 << 20))) {
1933 dev_err(ctrl->ctrl.device, "Mandatory keyed sgls are not support\n");
1934 goto out_remove_admin_queue;
1935 }
1936
1937 if (opts->queue_size > ctrl->ctrl.maxcmd) {
1938 /* warn if maxcmd is lower than queue_size */
1939 dev_warn(ctrl->ctrl.device,
1940 "queue_size %zu > ctrl maxcmd %u, clamping down\n",
1941 opts->queue_size, ctrl->ctrl.maxcmd);
1942 opts->queue_size = ctrl->ctrl.maxcmd;
1943 }
1944
1945 if (opts->nr_io_queues) {
1946 ret = nvme_rdma_create_io_queues(ctrl);
1947 if (ret)
1948 goto out_remove_admin_queue;
1949 }
1950
1951 changed = nvme_change_ctrl_state(&ctrl->ctrl, NVME_CTRL_LIVE);
1952 WARN_ON_ONCE(!changed);
1953
1954 dev_info(ctrl->ctrl.device, "new ctrl: NQN \"%s\", addr %pISp\n",
1955 ctrl->ctrl.opts->subsysnqn, &ctrl->addr);
1956
1957 kref_get(&ctrl->ctrl.kref);
1958
1959 mutex_lock(&nvme_rdma_ctrl_mutex);
1960 list_add_tail(&ctrl->list, &nvme_rdma_ctrl_list);
1961 mutex_unlock(&nvme_rdma_ctrl_mutex);
1962
1963 if (opts->nr_io_queues) {
1964 nvme_queue_scan(&ctrl->ctrl);
1965 nvme_queue_async_events(&ctrl->ctrl);
1966 }
1967
1968 return &ctrl->ctrl;
1969
1970out_remove_admin_queue:
1971 nvme_stop_keep_alive(&ctrl->ctrl);
1972 nvme_rdma_destroy_admin_queue(ctrl);
1973out_kfree_queues:
1974 kfree(ctrl->queues);
1975out_uninit_ctrl:
1976 nvme_uninit_ctrl(&ctrl->ctrl);
1977 nvme_put_ctrl(&ctrl->ctrl);
1978 if (ret > 0)
1979 ret = -EIO;
1980 return ERR_PTR(ret);
1981out_free_ctrl:
1982 kfree(ctrl);
1983 return ERR_PTR(ret);
1984}
1985
1986static struct nvmf_transport_ops nvme_rdma_transport = {
1987 .name = "rdma",
1988 .required_opts = NVMF_OPT_TRADDR,
Sagi Grimberg2ac17c22016-06-22 15:06:00 +03001989 .allowed_opts = NVMF_OPT_TRSVCID | NVMF_OPT_RECONNECT_DELAY,
Christoph Hellwig71102302016-07-06 21:55:52 +09001990 .create_ctrl = nvme_rdma_create_ctrl,
1991};
1992
1993static int __init nvme_rdma_init_module(void)
1994{
1995 nvme_rdma_wq = create_workqueue("nvme_rdma_wq");
1996 if (!nvme_rdma_wq)
1997 return -ENOMEM;
1998
1999 nvmf_register_transport(&nvme_rdma_transport);
2000 return 0;
2001}
2002
2003static void __exit nvme_rdma_cleanup_module(void)
2004{
2005 struct nvme_rdma_ctrl *ctrl;
2006
2007 nvmf_unregister_transport(&nvme_rdma_transport);
2008
2009 mutex_lock(&nvme_rdma_ctrl_mutex);
2010 list_for_each_entry(ctrl, &nvme_rdma_ctrl_list, list)
2011 __nvme_rdma_del_ctrl(ctrl);
2012 mutex_unlock(&nvme_rdma_ctrl_mutex);
2013
2014 destroy_workqueue(nvme_rdma_wq);
2015}
2016
2017module_init(nvme_rdma_init_module);
2018module_exit(nvme_rdma_cleanup_module);
2019
2020MODULE_LICENSE("GPL v2");