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e399441d
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1/*
2 * Copyright (c) 2016 Avago Technologies. All rights reserved.
3 *
4 * This program is free software; you can redistribute it and/or modify
5 * it under the terms of version 2 of the GNU General Public License as
6 * published by the Free Software Foundation.
7 *
8 * This program is distributed in the hope that it will be useful.
9 * ALL EXPRESS OR IMPLIED CONDITIONS, REPRESENTATIONS AND WARRANTIES,
10 * INCLUDING ANY IMPLIED WARRANTY OF MERCHANTABILITY, FITNESS FOR A
11 * PARTICULAR PURPOSE, OR NON-INFRINGEMENT, ARE DISCLAIMED, EXCEPT TO
12 * THE EXTENT THAT SUCH DISCLAIMERS ARE HELD TO BE LEGALLY INVALID.
13 * See the GNU General Public License for more details, a copy of which
14 * can be found in the file COPYING included with this package
15 *
16 */
17#define pr_fmt(fmt) KBUILD_MODNAME ": " fmt
18#include <linux/module.h>
19#include <linux/parser.h>
20#include <uapi/scsi/fc/fc_fs.h>
21#include <uapi/scsi/fc/fc_els.h>
61bff8ef 22#include <linux/delay.h>
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23
24#include "nvme.h"
25#include "fabrics.h"
26#include <linux/nvme-fc-driver.h>
27#include <linux/nvme-fc.h>
28
29
30/* *************************** Data Structures/Defines ****************** */
31
32
e399441d 33enum nvme_fc_queue_flags {
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34 NVME_FC_Q_CONNECTED = 0,
35 NVME_FC_Q_LIVE,
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36};
37
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38#define NVME_FC_DEFAULT_DEV_LOSS_TMO 60 /* seconds */
39
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40struct nvme_fc_queue {
41 struct nvme_fc_ctrl *ctrl;
42 struct device *dev;
43 struct blk_mq_hw_ctx *hctx;
44 void *lldd_handle;
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45 size_t cmnd_capsule_len;
46 u32 qnum;
47 u32 rqcnt;
48 u32 seqno;
49
50 u64 connection_id;
51 atomic_t csn;
52
53 unsigned long flags;
54} __aligned(sizeof(u64)); /* alignment for other things alloc'd with */
55
8d64daf7
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56enum nvme_fcop_flags {
57 FCOP_FLAGS_TERMIO = (1 << 0),
c3aedd22 58 FCOP_FLAGS_AEN = (1 << 1),
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59};
60
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61struct nvmefc_ls_req_op {
62 struct nvmefc_ls_req ls_req;
63
c913a8b0 64 struct nvme_fc_rport *rport;
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65 struct nvme_fc_queue *queue;
66 struct request *rq;
8d64daf7 67 u32 flags;
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68
69 int ls_error;
70 struct completion ls_done;
c913a8b0 71 struct list_head lsreq_list; /* rport->ls_req_list */
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72 bool req_queued;
73};
74
75enum nvme_fcpop_state {
76 FCPOP_STATE_UNINIT = 0,
77 FCPOP_STATE_IDLE = 1,
78 FCPOP_STATE_ACTIVE = 2,
79 FCPOP_STATE_ABORTED = 3,
78a7ac26 80 FCPOP_STATE_COMPLETE = 4,
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81};
82
83struct nvme_fc_fcp_op {
84 struct nvme_request nreq; /*
85 * nvme/host/core.c
86 * requires this to be
87 * the 1st element in the
88 * private structure
89 * associated with the
90 * request.
91 */
92 struct nvmefc_fcp_req fcp_req;
93
94 struct nvme_fc_ctrl *ctrl;
95 struct nvme_fc_queue *queue;
96 struct request *rq;
97
98 atomic_t state;
78a7ac26 99 u32 flags;
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100 u32 rqno;
101 u32 nents;
102
103 struct nvme_fc_cmd_iu cmd_iu;
104 struct nvme_fc_ersp_iu rsp_iu;
105};
106
107struct nvme_fc_lport {
108 struct nvme_fc_local_port localport;
109
110 struct ida endp_cnt;
111 struct list_head port_list; /* nvme_fc_port_list */
112 struct list_head endp_list;
113 struct device *dev; /* physical device for dma */
114 struct nvme_fc_port_template *ops;
115 struct kref ref;
158bfb88 116 atomic_t act_rport_cnt;
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117} __aligned(sizeof(u64)); /* alignment for other things alloc'd with */
118
119struct nvme_fc_rport {
120 struct nvme_fc_remote_port remoteport;
121
122 struct list_head endp_list; /* for lport->endp_list */
123 struct list_head ctrl_list;
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124 struct list_head ls_req_list;
125 struct device *dev; /* physical device for dma */
126 struct nvme_fc_lport *lport;
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127 spinlock_t lock;
128 struct kref ref;
158bfb88 129 atomic_t act_ctrl_cnt;
2b632970 130 unsigned long dev_loss_end;
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131} __aligned(sizeof(u64)); /* alignment for other things alloc'd with */
132
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133enum nvme_fcctrl_flags {
134 FCCTRL_TERMIO = (1 << 0),
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135};
136
137struct nvme_fc_ctrl {
138 spinlock_t lock;
139 struct nvme_fc_queue *queues;
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140 struct device *dev;
141 struct nvme_fc_lport *lport;
142 struct nvme_fc_rport *rport;
143 u32 cnum;
144
158bfb88 145 bool assoc_active;
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146 u64 association_id;
147
e399441d 148 struct list_head ctrl_list; /* rport->ctrl_list */
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149
150 struct blk_mq_tag_set admin_tag_set;
151 struct blk_mq_tag_set tag_set;
152
61bff8ef 153 struct delayed_work connect_work;
61bff8ef 154
e399441d 155 struct kref ref;
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156 u32 flags;
157 u32 iocnt;
36715cf4 158 wait_queue_head_t ioabort_wait;
e399441d 159
38dabe21 160 struct nvme_fc_fcp_op aen_ops[NVME_NR_AEN_COMMANDS];
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161
162 struct nvme_ctrl ctrl;
163};
164
165static inline struct nvme_fc_ctrl *
166to_fc_ctrl(struct nvme_ctrl *ctrl)
167{
168 return container_of(ctrl, struct nvme_fc_ctrl, ctrl);
169}
170
171static inline struct nvme_fc_lport *
172localport_to_lport(struct nvme_fc_local_port *portptr)
173{
174 return container_of(portptr, struct nvme_fc_lport, localport);
175}
176
177static inline struct nvme_fc_rport *
178remoteport_to_rport(struct nvme_fc_remote_port *portptr)
179{
180 return container_of(portptr, struct nvme_fc_rport, remoteport);
181}
182
183static inline struct nvmefc_ls_req_op *
184ls_req_to_lsop(struct nvmefc_ls_req *lsreq)
185{
186 return container_of(lsreq, struct nvmefc_ls_req_op, ls_req);
187}
188
189static inline struct nvme_fc_fcp_op *
190fcp_req_to_fcp_op(struct nvmefc_fcp_req *fcpreq)
191{
192 return container_of(fcpreq, struct nvme_fc_fcp_op, fcp_req);
193}
194
195
196
197/* *************************** Globals **************************** */
198
199
200static DEFINE_SPINLOCK(nvme_fc_lock);
201
202static LIST_HEAD(nvme_fc_lport_list);
203static DEFINE_IDA(nvme_fc_local_port_cnt);
204static DEFINE_IDA(nvme_fc_ctrl_cnt);
205
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206
207
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208/*
209 * These items are short-term. They will eventually be moved into
210 * a generic FC class. See comments in module init.
211 */
212static struct class *fc_class;
213static struct device *fc_udev_device;
214
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215
216/* *********************** FC-NVME Port Management ************************ */
217
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218static void __nvme_fc_delete_hw_queue(struct nvme_fc_ctrl *,
219 struct nvme_fc_queue *, unsigned int);
220
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221static void
222nvme_fc_free_lport(struct kref *ref)
223{
224 struct nvme_fc_lport *lport =
225 container_of(ref, struct nvme_fc_lport, ref);
226 unsigned long flags;
227
228 WARN_ON(lport->localport.port_state != FC_OBJSTATE_DELETED);
229 WARN_ON(!list_empty(&lport->endp_list));
230
231 /* remove from transport list */
232 spin_lock_irqsave(&nvme_fc_lock, flags);
233 list_del(&lport->port_list);
234 spin_unlock_irqrestore(&nvme_fc_lock, flags);
235
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236 ida_simple_remove(&nvme_fc_local_port_cnt, lport->localport.port_num);
237 ida_destroy(&lport->endp_cnt);
238
239 put_device(lport->dev);
240
241 kfree(lport);
242}
243
244static void
245nvme_fc_lport_put(struct nvme_fc_lport *lport)
246{
247 kref_put(&lport->ref, nvme_fc_free_lport);
248}
249
250static int
251nvme_fc_lport_get(struct nvme_fc_lport *lport)
252{
253 return kref_get_unless_zero(&lport->ref);
254}
255
256
257static struct nvme_fc_lport *
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258nvme_fc_attach_to_unreg_lport(struct nvme_fc_port_info *pinfo,
259 struct nvme_fc_port_template *ops,
260 struct device *dev)
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261{
262 struct nvme_fc_lport *lport;
263 unsigned long flags;
264
265 spin_lock_irqsave(&nvme_fc_lock, flags);
266
267 list_for_each_entry(lport, &nvme_fc_lport_list, port_list) {
268 if (lport->localport.node_name != pinfo->node_name ||
269 lport->localport.port_name != pinfo->port_name)
270 continue;
271
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272 if (lport->dev != dev) {
273 lport = ERR_PTR(-EXDEV);
274 goto out_done;
275 }
276
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277 if (lport->localport.port_state != FC_OBJSTATE_DELETED) {
278 lport = ERR_PTR(-EEXIST);
279 goto out_done;
280 }
281
282 if (!nvme_fc_lport_get(lport)) {
283 /*
284 * fails if ref cnt already 0. If so,
285 * act as if lport already deleted
286 */
287 lport = NULL;
288 goto out_done;
289 }
290
291 /* resume the lport */
292
c5760f30 293 lport->ops = ops;
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294 lport->localport.port_role = pinfo->port_role;
295 lport->localport.port_id = pinfo->port_id;
296 lport->localport.port_state = FC_OBJSTATE_ONLINE;
297
298 spin_unlock_irqrestore(&nvme_fc_lock, flags);
299
300 return lport;
301 }
302
303 lport = NULL;
304
305out_done:
306 spin_unlock_irqrestore(&nvme_fc_lock, flags);
307
308 return lport;
309}
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310
311/**
312 * nvme_fc_register_localport - transport entry point called by an
313 * LLDD to register the existence of a NVME
314 * host FC port.
315 * @pinfo: pointer to information about the port to be registered
316 * @template: LLDD entrypoints and operational parameters for the port
317 * @dev: physical hardware device node port corresponds to. Will be
318 * used for DMA mappings
319 * @lport_p: pointer to a local port pointer. Upon success, the routine
320 * will allocate a nvme_fc_local_port structure and place its
321 * address in the local port pointer. Upon failure, local port
322 * pointer will be set to 0.
323 *
324 * Returns:
325 * a completion status. Must be 0 upon success; a negative errno
326 * (ex: -ENXIO) upon failure.
327 */
328int
329nvme_fc_register_localport(struct nvme_fc_port_info *pinfo,
330 struct nvme_fc_port_template *template,
331 struct device *dev,
332 struct nvme_fc_local_port **portptr)
333{
334 struct nvme_fc_lport *newrec;
335 unsigned long flags;
336 int ret, idx;
337
338 if (!template->localport_delete || !template->remoteport_delete ||
339 !template->ls_req || !template->fcp_io ||
340 !template->ls_abort || !template->fcp_abort ||
341 !template->max_hw_queues || !template->max_sgl_segments ||
342 !template->max_dif_sgl_segments || !template->dma_boundary) {
343 ret = -EINVAL;
344 goto out_reghost_failed;
345 }
346
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347 /*
348 * look to see if there is already a localport that had been
349 * deregistered and in the process of waiting for all the
350 * references to fully be removed. If the references haven't
351 * expired, we can simply re-enable the localport. Remoteports
352 * and controller reconnections should resume naturally.
353 */
c5760f30 354 newrec = nvme_fc_attach_to_unreg_lport(pinfo, template, dev);
5533d424
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355
356 /* found an lport, but something about its state is bad */
357 if (IS_ERR(newrec)) {
358 ret = PTR_ERR(newrec);
359 goto out_reghost_failed;
360
361 /* found existing lport, which was resumed */
362 } else if (newrec) {
363 *portptr = &newrec->localport;
364 return 0;
365 }
366
367 /* nothing found - allocate a new localport struct */
368
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369 newrec = kmalloc((sizeof(*newrec) + template->local_priv_sz),
370 GFP_KERNEL);
371 if (!newrec) {
372 ret = -ENOMEM;
373 goto out_reghost_failed;
374 }
375
376 idx = ida_simple_get(&nvme_fc_local_port_cnt, 0, 0, GFP_KERNEL);
377 if (idx < 0) {
378 ret = -ENOSPC;
379 goto out_fail_kfree;
380 }
381
382 if (!get_device(dev) && dev) {
383 ret = -ENODEV;
384 goto out_ida_put;
385 }
386
387 INIT_LIST_HEAD(&newrec->port_list);
388 INIT_LIST_HEAD(&newrec->endp_list);
389 kref_init(&newrec->ref);
158bfb88 390 atomic_set(&newrec->act_rport_cnt, 0);
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391 newrec->ops = template;
392 newrec->dev = dev;
393 ida_init(&newrec->endp_cnt);
394 newrec->localport.private = &newrec[1];
395 newrec->localport.node_name = pinfo->node_name;
396 newrec->localport.port_name = pinfo->port_name;
397 newrec->localport.port_role = pinfo->port_role;
398 newrec->localport.port_id = pinfo->port_id;
399 newrec->localport.port_state = FC_OBJSTATE_ONLINE;
400 newrec->localport.port_num = idx;
401
402 spin_lock_irqsave(&nvme_fc_lock, flags);
403 list_add_tail(&newrec->port_list, &nvme_fc_lport_list);
404 spin_unlock_irqrestore(&nvme_fc_lock, flags);
405
406 if (dev)
407 dma_set_seg_boundary(dev, template->dma_boundary);
408
409 *portptr = &newrec->localport;
410 return 0;
411
412out_ida_put:
413 ida_simple_remove(&nvme_fc_local_port_cnt, idx);
414out_fail_kfree:
415 kfree(newrec);
416out_reghost_failed:
417 *portptr = NULL;
418
419 return ret;
420}
421EXPORT_SYMBOL_GPL(nvme_fc_register_localport);
422
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423/**
424 * nvme_fc_unregister_localport - transport entry point called by an
425 * LLDD to deregister/remove a previously
426 * registered a NVME host FC port.
427 * @localport: pointer to the (registered) local port that is to be
428 * deregistered.
429 *
430 * Returns:
431 * a completion status. Must be 0 upon success; a negative errno
432 * (ex: -ENXIO) upon failure.
433 */
434int
435nvme_fc_unregister_localport(struct nvme_fc_local_port *portptr)
436{
437 struct nvme_fc_lport *lport = localport_to_lport(portptr);
438 unsigned long flags;
439
440 if (!portptr)
441 return -EINVAL;
442
443 spin_lock_irqsave(&nvme_fc_lock, flags);
444
445 if (portptr->port_state != FC_OBJSTATE_ONLINE) {
446 spin_unlock_irqrestore(&nvme_fc_lock, flags);
447 return -EINVAL;
448 }
449 portptr->port_state = FC_OBJSTATE_DELETED;
450
451 spin_unlock_irqrestore(&nvme_fc_lock, flags);
452
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453 if (atomic_read(&lport->act_rport_cnt) == 0)
454 lport->ops->localport_delete(&lport->localport);
455
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456 nvme_fc_lport_put(lport);
457
458 return 0;
459}
460EXPORT_SYMBOL_GPL(nvme_fc_unregister_localport);
461
eaefd5ab
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462/*
463 * TRADDR strings, per FC-NVME are fixed format:
464 * "nn-0x<16hexdigits>:pn-0x<16hexdigits>" - 43 characters
465 * udev event will only differ by prefix of what field is
466 * being specified:
467 * "NVMEFC_HOST_TRADDR=" or "NVMEFC_TRADDR=" - 19 max characters
468 * 19 + 43 + null_fudge = 64 characters
469 */
470#define FCNVME_TRADDR_LENGTH 64
471
472static void
473nvme_fc_signal_discovery_scan(struct nvme_fc_lport *lport,
474 struct nvme_fc_rport *rport)
475{
476 char hostaddr[FCNVME_TRADDR_LENGTH]; /* NVMEFC_HOST_TRADDR=...*/
477 char tgtaddr[FCNVME_TRADDR_LENGTH]; /* NVMEFC_TRADDR=...*/
478 char *envp[4] = { "FC_EVENT=nvmediscovery", hostaddr, tgtaddr, NULL };
479
480 if (!(rport->remoteport.port_role & FC_PORT_ROLE_NVME_DISCOVERY))
481 return;
482
483 snprintf(hostaddr, sizeof(hostaddr),
484 "NVMEFC_HOST_TRADDR=nn-0x%016llx:pn-0x%016llx",
485 lport->localport.node_name, lport->localport.port_name);
486 snprintf(tgtaddr, sizeof(tgtaddr),
487 "NVMEFC_TRADDR=nn-0x%016llx:pn-0x%016llx",
488 rport->remoteport.node_name, rport->remoteport.port_name);
489 kobject_uevent_env(&fc_udev_device->kobj, KOBJ_CHANGE, envp);
490}
491
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492static void
493nvme_fc_free_rport(struct kref *ref)
494{
495 struct nvme_fc_rport *rport =
496 container_of(ref, struct nvme_fc_rport, ref);
497 struct nvme_fc_lport *lport =
498 localport_to_lport(rport->remoteport.localport);
499 unsigned long flags;
500
501 WARN_ON(rport->remoteport.port_state != FC_OBJSTATE_DELETED);
502 WARN_ON(!list_empty(&rport->ctrl_list));
503
504 /* remove from lport list */
505 spin_lock_irqsave(&nvme_fc_lock, flags);
506 list_del(&rport->endp_list);
507 spin_unlock_irqrestore(&nvme_fc_lock, flags);
508
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509 ida_simple_remove(&lport->endp_cnt, rport->remoteport.port_num);
510
511 kfree(rport);
512
513 nvme_fc_lport_put(lport);
514}
515
516static void
517nvme_fc_rport_put(struct nvme_fc_rport *rport)
518{
519 kref_put(&rport->ref, nvme_fc_free_rport);
520}
521
522static int
523nvme_fc_rport_get(struct nvme_fc_rport *rport)
524{
525 return kref_get_unless_zero(&rport->ref);
526}
527
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528static void
529nvme_fc_resume_controller(struct nvme_fc_ctrl *ctrl)
530{
531 switch (ctrl->ctrl.state) {
532 case NVME_CTRL_NEW:
ad6a0a52 533 case NVME_CTRL_CONNECTING:
2b632970
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534 /*
535 * As all reconnects were suppressed, schedule a
536 * connect.
537 */
538 dev_info(ctrl->ctrl.device,
539 "NVME-FC{%d}: connectivity re-established. "
540 "Attempting reconnect\n", ctrl->cnum);
541
542 queue_delayed_work(nvme_wq, &ctrl->connect_work, 0);
543 break;
544
545 case NVME_CTRL_RESETTING:
546 /*
547 * Controller is already in the process of terminating the
548 * association. No need to do anything further. The reconnect
549 * step will naturally occur after the reset completes.
550 */
551 break;
552
553 default:
554 /* no action to take - let it delete */
555 break;
556 }
557}
558
559static struct nvme_fc_rport *
560nvme_fc_attach_to_suspended_rport(struct nvme_fc_lport *lport,
561 struct nvme_fc_port_info *pinfo)
562{
563 struct nvme_fc_rport *rport;
564 struct nvme_fc_ctrl *ctrl;
565 unsigned long flags;
566
567 spin_lock_irqsave(&nvme_fc_lock, flags);
568
569 list_for_each_entry(rport, &lport->endp_list, endp_list) {
570 if (rport->remoteport.node_name != pinfo->node_name ||
571 rport->remoteport.port_name != pinfo->port_name)
572 continue;
573
574 if (!nvme_fc_rport_get(rport)) {
575 rport = ERR_PTR(-ENOLCK);
576 goto out_done;
577 }
578
579 spin_unlock_irqrestore(&nvme_fc_lock, flags);
580
581 spin_lock_irqsave(&rport->lock, flags);
582
583 /* has it been unregistered */
584 if (rport->remoteport.port_state != FC_OBJSTATE_DELETED) {
585 /* means lldd called us twice */
586 spin_unlock_irqrestore(&rport->lock, flags);
587 nvme_fc_rport_put(rport);
588 return ERR_PTR(-ESTALE);
589 }
590
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591 rport->remoteport.port_role = pinfo->port_role;
592 rport->remoteport.port_id = pinfo->port_id;
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593 rport->remoteport.port_state = FC_OBJSTATE_ONLINE;
594 rport->dev_loss_end = 0;
595
596 /*
597 * kick off a reconnect attempt on all associations to the
598 * remote port. A successful reconnects will resume i/o.
599 */
600 list_for_each_entry(ctrl, &rport->ctrl_list, ctrl_list)
601 nvme_fc_resume_controller(ctrl);
602
603 spin_unlock_irqrestore(&rport->lock, flags);
604
605 return rport;
606 }
607
608 rport = NULL;
609
610out_done:
611 spin_unlock_irqrestore(&nvme_fc_lock, flags);
612
613 return rport;
614}
615
616static inline void
617__nvme_fc_set_dev_loss_tmo(struct nvme_fc_rport *rport,
618 struct nvme_fc_port_info *pinfo)
619{
620 if (pinfo->dev_loss_tmo)
621 rport->remoteport.dev_loss_tmo = pinfo->dev_loss_tmo;
622 else
623 rport->remoteport.dev_loss_tmo = NVME_FC_DEFAULT_DEV_LOSS_TMO;
624}
625
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626/**
627 * nvme_fc_register_remoteport - transport entry point called by an
628 * LLDD to register the existence of a NVME
629 * subsystem FC port on its fabric.
630 * @localport: pointer to the (registered) local port that the remote
631 * subsystem port is connected to.
632 * @pinfo: pointer to information about the port to be registered
633 * @rport_p: pointer to a remote port pointer. Upon success, the routine
634 * will allocate a nvme_fc_remote_port structure and place its
635 * address in the remote port pointer. Upon failure, remote port
636 * pointer will be set to 0.
637 *
638 * Returns:
639 * a completion status. Must be 0 upon success; a negative errno
640 * (ex: -ENXIO) upon failure.
641 */
642int
643nvme_fc_register_remoteport(struct nvme_fc_local_port *localport,
644 struct nvme_fc_port_info *pinfo,
645 struct nvme_fc_remote_port **portptr)
646{
647 struct nvme_fc_lport *lport = localport_to_lport(localport);
648 struct nvme_fc_rport *newrec;
649 unsigned long flags;
650 int ret, idx;
651
2b632970
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652 if (!nvme_fc_lport_get(lport)) {
653 ret = -ESHUTDOWN;
654 goto out_reghost_failed;
655 }
656
657 /*
658 * look to see if there is already a remoteport that is waiting
659 * for a reconnect (within dev_loss_tmo) with the same WWN's.
660 * If so, transition to it and reconnect.
661 */
662 newrec = nvme_fc_attach_to_suspended_rport(lport, pinfo);
663
664 /* found an rport, but something about its state is bad */
665 if (IS_ERR(newrec)) {
666 ret = PTR_ERR(newrec);
667 goto out_lport_put;
668
669 /* found existing rport, which was resumed */
670 } else if (newrec) {
671 nvme_fc_lport_put(lport);
672 __nvme_fc_set_dev_loss_tmo(newrec, pinfo);
673 nvme_fc_signal_discovery_scan(lport, newrec);
674 *portptr = &newrec->remoteport;
675 return 0;
676 }
677
678 /* nothing found - allocate a new remoteport struct */
679
e399441d
JS
680 newrec = kmalloc((sizeof(*newrec) + lport->ops->remote_priv_sz),
681 GFP_KERNEL);
682 if (!newrec) {
683 ret = -ENOMEM;
2b632970 684 goto out_lport_put;
e399441d
JS
685 }
686
687 idx = ida_simple_get(&lport->endp_cnt, 0, 0, GFP_KERNEL);
688 if (idx < 0) {
689 ret = -ENOSPC;
2b632970 690 goto out_kfree_rport;
e399441d
JS
691 }
692
693 INIT_LIST_HEAD(&newrec->endp_list);
694 INIT_LIST_HEAD(&newrec->ctrl_list);
c913a8b0 695 INIT_LIST_HEAD(&newrec->ls_req_list);
e399441d 696 kref_init(&newrec->ref);
158bfb88 697 atomic_set(&newrec->act_ctrl_cnt, 0);
e399441d
JS
698 spin_lock_init(&newrec->lock);
699 newrec->remoteport.localport = &lport->localport;
c913a8b0
JS
700 newrec->dev = lport->dev;
701 newrec->lport = lport;
e399441d
JS
702 newrec->remoteport.private = &newrec[1];
703 newrec->remoteport.port_role = pinfo->port_role;
704 newrec->remoteport.node_name = pinfo->node_name;
705 newrec->remoteport.port_name = pinfo->port_name;
706 newrec->remoteport.port_id = pinfo->port_id;
707 newrec->remoteport.port_state = FC_OBJSTATE_ONLINE;
708 newrec->remoteport.port_num = idx;
2b632970 709 __nvme_fc_set_dev_loss_tmo(newrec, pinfo);
e399441d
JS
710
711 spin_lock_irqsave(&nvme_fc_lock, flags);
712 list_add_tail(&newrec->endp_list, &lport->endp_list);
713 spin_unlock_irqrestore(&nvme_fc_lock, flags);
714
eaefd5ab
JS
715 nvme_fc_signal_discovery_scan(lport, newrec);
716
e399441d
JS
717 *portptr = &newrec->remoteport;
718 return 0;
719
e399441d
JS
720out_kfree_rport:
721 kfree(newrec);
2b632970
JS
722out_lport_put:
723 nvme_fc_lport_put(lport);
e399441d
JS
724out_reghost_failed:
725 *portptr = NULL;
726 return ret;
e399441d
JS
727}
728EXPORT_SYMBOL_GPL(nvme_fc_register_remoteport);
729
8d64daf7
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730static int
731nvme_fc_abort_lsops(struct nvme_fc_rport *rport)
732{
733 struct nvmefc_ls_req_op *lsop;
734 unsigned long flags;
735
736restart:
737 spin_lock_irqsave(&rport->lock, flags);
738
739 list_for_each_entry(lsop, &rport->ls_req_list, lsreq_list) {
740 if (!(lsop->flags & FCOP_FLAGS_TERMIO)) {
741 lsop->flags |= FCOP_FLAGS_TERMIO;
742 spin_unlock_irqrestore(&rport->lock, flags);
743 rport->lport->ops->ls_abort(&rport->lport->localport,
744 &rport->remoteport,
745 &lsop->ls_req);
746 goto restart;
747 }
748 }
749 spin_unlock_irqrestore(&rport->lock, flags);
750
751 return 0;
752}
753
2b632970
JS
754static void
755nvme_fc_ctrl_connectivity_loss(struct nvme_fc_ctrl *ctrl)
756{
757 dev_info(ctrl->ctrl.device,
758 "NVME-FC{%d}: controller connectivity lost. Awaiting "
759 "Reconnect", ctrl->cnum);
760
761 switch (ctrl->ctrl.state) {
762 case NVME_CTRL_NEW:
763 case NVME_CTRL_LIVE:
764 /*
765 * Schedule a controller reset. The reset will terminate the
766 * association and schedule the reconnect timer. Reconnects
767 * will be attempted until either the ctlr_loss_tmo
768 * (max_retries * connect_delay) expires or the remoteport's
769 * dev_loss_tmo expires.
770 */
771 if (nvme_reset_ctrl(&ctrl->ctrl)) {
772 dev_warn(ctrl->ctrl.device,
77d0612d 773 "NVME-FC{%d}: Couldn't schedule reset.\n",
2b632970
JS
774 ctrl->cnum);
775 nvme_delete_ctrl(&ctrl->ctrl);
776 }
777 break;
778
ad6a0a52 779 case NVME_CTRL_CONNECTING:
2b632970
JS
780 /*
781 * The association has already been terminated and the
782 * controller is attempting reconnects. No need to do anything
783 * futher. Reconnects will be attempted until either the
784 * ctlr_loss_tmo (max_retries * connect_delay) expires or the
785 * remoteport's dev_loss_tmo expires.
786 */
787 break;
788
789 case NVME_CTRL_RESETTING:
790 /*
791 * Controller is already in the process of terminating the
792 * association. No need to do anything further. The reconnect
793 * step will kick in naturally after the association is
794 * terminated.
795 */
796 break;
797
798 case NVME_CTRL_DELETING:
799 default:
800 /* no action to take - let it delete */
801 break;
802 }
803}
804
e399441d
JS
805/**
806 * nvme_fc_unregister_remoteport - transport entry point called by an
807 * LLDD to deregister/remove a previously
808 * registered a NVME subsystem FC port.
809 * @remoteport: pointer to the (registered) remote port that is to be
810 * deregistered.
811 *
812 * Returns:
813 * a completion status. Must be 0 upon success; a negative errno
814 * (ex: -ENXIO) upon failure.
815 */
816int
817nvme_fc_unregister_remoteport(struct nvme_fc_remote_port *portptr)
818{
819 struct nvme_fc_rport *rport = remoteport_to_rport(portptr);
820 struct nvme_fc_ctrl *ctrl;
821 unsigned long flags;
822
823 if (!portptr)
824 return -EINVAL;
825
826 spin_lock_irqsave(&rport->lock, flags);
827
828 if (portptr->port_state != FC_OBJSTATE_ONLINE) {
829 spin_unlock_irqrestore(&rport->lock, flags);
830 return -EINVAL;
831 }
832 portptr->port_state = FC_OBJSTATE_DELETED;
833
2b632970
JS
834 rport->dev_loss_end = jiffies + (portptr->dev_loss_tmo * HZ);
835
836 list_for_each_entry(ctrl, &rport->ctrl_list, ctrl_list) {
837 /* if dev_loss_tmo==0, dev loss is immediate */
838 if (!portptr->dev_loss_tmo) {
839 dev_warn(ctrl->ctrl.device,
77d0612d 840 "NVME-FC{%d}: controller connectivity lost.\n",
2b632970
JS
841 ctrl->cnum);
842 nvme_delete_ctrl(&ctrl->ctrl);
843 } else
844 nvme_fc_ctrl_connectivity_loss(ctrl);
845 }
e399441d
JS
846
847 spin_unlock_irqrestore(&rport->lock, flags);
848
8d64daf7
JS
849 nvme_fc_abort_lsops(rport);
850
158bfb88
JS
851 if (atomic_read(&rport->act_ctrl_cnt) == 0)
852 rport->lport->ops->remoteport_delete(portptr);
853
2b632970
JS
854 /*
855 * release the reference, which will allow, if all controllers
856 * go away, which should only occur after dev_loss_tmo occurs,
857 * for the rport to be torn down.
858 */
e399441d 859 nvme_fc_rport_put(rport);
2b632970 860
e399441d
JS
861 return 0;
862}
863EXPORT_SYMBOL_GPL(nvme_fc_unregister_remoteport);
864
eaefd5ab
JS
865/**
866 * nvme_fc_rescan_remoteport - transport entry point called by an
867 * LLDD to request a nvme device rescan.
868 * @remoteport: pointer to the (registered) remote port that is to be
869 * rescanned.
870 *
871 * Returns: N/A
872 */
873void
874nvme_fc_rescan_remoteport(struct nvme_fc_remote_port *remoteport)
875{
876 struct nvme_fc_rport *rport = remoteport_to_rport(remoteport);
877
878 nvme_fc_signal_discovery_scan(rport->lport, rport);
879}
880EXPORT_SYMBOL_GPL(nvme_fc_rescan_remoteport);
881
ac7fe82b
JS
882int
883nvme_fc_set_remoteport_devloss(struct nvme_fc_remote_port *portptr,
884 u32 dev_loss_tmo)
885{
886 struct nvme_fc_rport *rport = remoteport_to_rport(portptr);
ac7fe82b
JS
887 unsigned long flags;
888
889 spin_lock_irqsave(&rport->lock, flags);
890
891 if (portptr->port_state != FC_OBJSTATE_ONLINE) {
892 spin_unlock_irqrestore(&rport->lock, flags);
893 return -EINVAL;
894 }
895
896 /* a dev_loss_tmo of 0 (immediate) is allowed to be set */
897 rport->remoteport.dev_loss_tmo = dev_loss_tmo;
898
899 spin_unlock_irqrestore(&rport->lock, flags);
900
901 return 0;
902}
903EXPORT_SYMBOL_GPL(nvme_fc_set_remoteport_devloss);
904
e399441d
JS
905
906/* *********************** FC-NVME DMA Handling **************************** */
907
908/*
909 * The fcloop device passes in a NULL device pointer. Real LLD's will
910 * pass in a valid device pointer. If NULL is passed to the dma mapping
911 * routines, depending on the platform, it may or may not succeed, and
912 * may crash.
913 *
914 * As such:
915 * Wrapper all the dma routines and check the dev pointer.
916 *
917 * If simple mappings (return just a dma address, we'll noop them,
918 * returning a dma address of 0.
919 *
920 * On more complex mappings (dma_map_sg), a pseudo routine fills
921 * in the scatter list, setting all dma addresses to 0.
922 */
923
924static inline dma_addr_t
925fc_dma_map_single(struct device *dev, void *ptr, size_t size,
926 enum dma_data_direction dir)
927{
928 return dev ? dma_map_single(dev, ptr, size, dir) : (dma_addr_t)0L;
929}
930
931static inline int
932fc_dma_mapping_error(struct device *dev, dma_addr_t dma_addr)
933{
934 return dev ? dma_mapping_error(dev, dma_addr) : 0;
935}
936
937static inline void
938fc_dma_unmap_single(struct device *dev, dma_addr_t addr, size_t size,
939 enum dma_data_direction dir)
940{
941 if (dev)
942 dma_unmap_single(dev, addr, size, dir);
943}
944
945static inline void
946fc_dma_sync_single_for_cpu(struct device *dev, dma_addr_t addr, size_t size,
947 enum dma_data_direction dir)
948{
949 if (dev)
950 dma_sync_single_for_cpu(dev, addr, size, dir);
951}
952
953static inline void
954fc_dma_sync_single_for_device(struct device *dev, dma_addr_t addr, size_t size,
955 enum dma_data_direction dir)
956{
957 if (dev)
958 dma_sync_single_for_device(dev, addr, size, dir);
959}
960
961/* pseudo dma_map_sg call */
962static int
963fc_map_sg(struct scatterlist *sg, int nents)
964{
965 struct scatterlist *s;
966 int i;
967
968 WARN_ON(nents == 0 || sg[0].length == 0);
969
970 for_each_sg(sg, s, nents, i) {
971 s->dma_address = 0L;
972#ifdef CONFIG_NEED_SG_DMA_LENGTH
973 s->dma_length = s->length;
974#endif
975 }
976 return nents;
977}
978
979static inline int
980fc_dma_map_sg(struct device *dev, struct scatterlist *sg, int nents,
981 enum dma_data_direction dir)
982{
983 return dev ? dma_map_sg(dev, sg, nents, dir) : fc_map_sg(sg, nents);
984}
985
986static inline void
987fc_dma_unmap_sg(struct device *dev, struct scatterlist *sg, int nents,
988 enum dma_data_direction dir)
989{
990 if (dev)
991 dma_unmap_sg(dev, sg, nents, dir);
992}
993
e399441d
JS
994/* *********************** FC-NVME LS Handling **************************** */
995
996static void nvme_fc_ctrl_put(struct nvme_fc_ctrl *);
997static int nvme_fc_ctrl_get(struct nvme_fc_ctrl *);
998
999
1000static void
c913a8b0 1001__nvme_fc_finish_ls_req(struct nvmefc_ls_req_op *lsop)
e399441d 1002{
c913a8b0 1003 struct nvme_fc_rport *rport = lsop->rport;
e399441d
JS
1004 struct nvmefc_ls_req *lsreq = &lsop->ls_req;
1005 unsigned long flags;
1006
c913a8b0 1007 spin_lock_irqsave(&rport->lock, flags);
e399441d
JS
1008
1009 if (!lsop->req_queued) {
c913a8b0 1010 spin_unlock_irqrestore(&rport->lock, flags);
e399441d
JS
1011 return;
1012 }
1013
1014 list_del(&lsop->lsreq_list);
1015
1016 lsop->req_queued = false;
1017
c913a8b0 1018 spin_unlock_irqrestore(&rport->lock, flags);
e399441d 1019
c913a8b0 1020 fc_dma_unmap_single(rport->dev, lsreq->rqstdma,
e399441d
JS
1021 (lsreq->rqstlen + lsreq->rsplen),
1022 DMA_BIDIRECTIONAL);
1023
c913a8b0 1024 nvme_fc_rport_put(rport);
e399441d
JS
1025}
1026
1027static int
c913a8b0 1028__nvme_fc_send_ls_req(struct nvme_fc_rport *rport,
e399441d
JS
1029 struct nvmefc_ls_req_op *lsop,
1030 void (*done)(struct nvmefc_ls_req *req, int status))
1031{
1032 struct nvmefc_ls_req *lsreq = &lsop->ls_req;
1033 unsigned long flags;
c913a8b0 1034 int ret = 0;
e399441d 1035
c913a8b0
JS
1036 if (rport->remoteport.port_state != FC_OBJSTATE_ONLINE)
1037 return -ECONNREFUSED;
1038
1039 if (!nvme_fc_rport_get(rport))
e399441d
JS
1040 return -ESHUTDOWN;
1041
1042 lsreq->done = done;
c913a8b0 1043 lsop->rport = rport;
e399441d
JS
1044 lsop->req_queued = false;
1045 INIT_LIST_HEAD(&lsop->lsreq_list);
1046 init_completion(&lsop->ls_done);
1047
c913a8b0 1048 lsreq->rqstdma = fc_dma_map_single(rport->dev, lsreq->rqstaddr,
e399441d
JS
1049 lsreq->rqstlen + lsreq->rsplen,
1050 DMA_BIDIRECTIONAL);
c913a8b0
JS
1051 if (fc_dma_mapping_error(rport->dev, lsreq->rqstdma)) {
1052 ret = -EFAULT;
1053 goto out_putrport;
e399441d
JS
1054 }
1055 lsreq->rspdma = lsreq->rqstdma + lsreq->rqstlen;
1056
c913a8b0 1057 spin_lock_irqsave(&rport->lock, flags);
e399441d 1058
c913a8b0 1059 list_add_tail(&lsop->lsreq_list, &rport->ls_req_list);
e399441d
JS
1060
1061 lsop->req_queued = true;
1062
c913a8b0 1063 spin_unlock_irqrestore(&rport->lock, flags);
e399441d 1064
c913a8b0
JS
1065 ret = rport->lport->ops->ls_req(&rport->lport->localport,
1066 &rport->remoteport, lsreq);
e399441d 1067 if (ret)
c913a8b0
JS
1068 goto out_unlink;
1069
1070 return 0;
1071
1072out_unlink:
1073 lsop->ls_error = ret;
1074 spin_lock_irqsave(&rport->lock, flags);
1075 lsop->req_queued = false;
1076 list_del(&lsop->lsreq_list);
1077 spin_unlock_irqrestore(&rport->lock, flags);
1078 fc_dma_unmap_single(rport->dev, lsreq->rqstdma,
1079 (lsreq->rqstlen + lsreq->rsplen),
1080 DMA_BIDIRECTIONAL);
1081out_putrport:
1082 nvme_fc_rport_put(rport);
e399441d
JS
1083
1084 return ret;
1085}
1086
1087static void
1088nvme_fc_send_ls_req_done(struct nvmefc_ls_req *lsreq, int status)
1089{
1090 struct nvmefc_ls_req_op *lsop = ls_req_to_lsop(lsreq);
1091
1092 lsop->ls_error = status;
1093 complete(&lsop->ls_done);
1094}
1095
1096static int
c913a8b0 1097nvme_fc_send_ls_req(struct nvme_fc_rport *rport, struct nvmefc_ls_req_op *lsop)
e399441d
JS
1098{
1099 struct nvmefc_ls_req *lsreq = &lsop->ls_req;
1100 struct fcnvme_ls_rjt *rjt = lsreq->rspaddr;
1101 int ret;
1102
c913a8b0 1103 ret = __nvme_fc_send_ls_req(rport, lsop, nvme_fc_send_ls_req_done);
e399441d 1104
c913a8b0 1105 if (!ret) {
e399441d
JS
1106 /*
1107 * No timeout/not interruptible as we need the struct
1108 * to exist until the lldd calls us back. Thus mandate
1109 * wait until driver calls back. lldd responsible for
1110 * the timeout action
1111 */
1112 wait_for_completion(&lsop->ls_done);
1113
c913a8b0 1114 __nvme_fc_finish_ls_req(lsop);
e399441d 1115
c913a8b0 1116 ret = lsop->ls_error;
e399441d
JS
1117 }
1118
c913a8b0
JS
1119 if (ret)
1120 return ret;
1121
e399441d
JS
1122 /* ACC or RJT payload ? */
1123 if (rjt->w0.ls_cmd == FCNVME_LS_RJT)
1124 return -ENXIO;
1125
1126 return 0;
1127}
1128
c913a8b0
JS
1129static int
1130nvme_fc_send_ls_req_async(struct nvme_fc_rport *rport,
e399441d
JS
1131 struct nvmefc_ls_req_op *lsop,
1132 void (*done)(struct nvmefc_ls_req *req, int status))
1133{
e399441d
JS
1134 /* don't wait for completion */
1135
c913a8b0 1136 return __nvme_fc_send_ls_req(rport, lsop, done);
e399441d
JS
1137}
1138
1139/* Validation Error indexes into the string table below */
1140enum {
1141 VERR_NO_ERROR = 0,
1142 VERR_LSACC = 1,
1143 VERR_LSDESC_RQST = 2,
1144 VERR_LSDESC_RQST_LEN = 3,
1145 VERR_ASSOC_ID = 4,
1146 VERR_ASSOC_ID_LEN = 5,
1147 VERR_CONN_ID = 6,
1148 VERR_CONN_ID_LEN = 7,
1149 VERR_CR_ASSOC = 8,
1150 VERR_CR_ASSOC_ACC_LEN = 9,
1151 VERR_CR_CONN = 10,
1152 VERR_CR_CONN_ACC_LEN = 11,
1153 VERR_DISCONN = 12,
1154 VERR_DISCONN_ACC_LEN = 13,
1155};
1156
1157static char *validation_errors[] = {
1158 "OK",
1159 "Not LS_ACC",
1160 "Not LSDESC_RQST",
1161 "Bad LSDESC_RQST Length",
1162 "Not Association ID",
1163 "Bad Association ID Length",
1164 "Not Connection ID",
1165 "Bad Connection ID Length",
1166 "Not CR_ASSOC Rqst",
1167 "Bad CR_ASSOC ACC Length",
1168 "Not CR_CONN Rqst",
1169 "Bad CR_CONN ACC Length",
1170 "Not Disconnect Rqst",
1171 "Bad Disconnect ACC Length",
1172};
1173
1174static int
1175nvme_fc_connect_admin_queue(struct nvme_fc_ctrl *ctrl,
1176 struct nvme_fc_queue *queue, u16 qsize, u16 ersp_ratio)
1177{
1178 struct nvmefc_ls_req_op *lsop;
1179 struct nvmefc_ls_req *lsreq;
1180 struct fcnvme_ls_cr_assoc_rqst *assoc_rqst;
1181 struct fcnvme_ls_cr_assoc_acc *assoc_acc;
1182 int ret, fcret = 0;
1183
1184 lsop = kzalloc((sizeof(*lsop) +
1185 ctrl->lport->ops->lsrqst_priv_sz +
1186 sizeof(*assoc_rqst) + sizeof(*assoc_acc)), GFP_KERNEL);
1187 if (!lsop) {
1188 ret = -ENOMEM;
1189 goto out_no_memory;
1190 }
1191 lsreq = &lsop->ls_req;
1192
1193 lsreq->private = (void *)&lsop[1];
1194 assoc_rqst = (struct fcnvme_ls_cr_assoc_rqst *)
1195 (lsreq->private + ctrl->lport->ops->lsrqst_priv_sz);
1196 assoc_acc = (struct fcnvme_ls_cr_assoc_acc *)&assoc_rqst[1];
1197
1198 assoc_rqst->w0.ls_cmd = FCNVME_LS_CREATE_ASSOCIATION;
1199 assoc_rqst->desc_list_len =
1200 cpu_to_be32(sizeof(struct fcnvme_lsdesc_cr_assoc_cmd));
1201
1202 assoc_rqst->assoc_cmd.desc_tag =
1203 cpu_to_be32(FCNVME_LSDESC_CREATE_ASSOC_CMD);
1204 assoc_rqst->assoc_cmd.desc_len =
1205 fcnvme_lsdesc_len(
1206 sizeof(struct fcnvme_lsdesc_cr_assoc_cmd));
1207
1208 assoc_rqst->assoc_cmd.ersp_ratio = cpu_to_be16(ersp_ratio);
d157e534 1209 assoc_rqst->assoc_cmd.sqsize = cpu_to_be16(qsize - 1);
e399441d
JS
1210 /* Linux supports only Dynamic controllers */
1211 assoc_rqst->assoc_cmd.cntlid = cpu_to_be16(0xffff);
8e412263 1212 uuid_copy(&assoc_rqst->assoc_cmd.hostid, &ctrl->ctrl.opts->host->id);
e399441d
JS
1213 strncpy(assoc_rqst->assoc_cmd.hostnqn, ctrl->ctrl.opts->host->nqn,
1214 min(FCNVME_ASSOC_HOSTNQN_LEN, NVMF_NQN_SIZE));
1215 strncpy(assoc_rqst->assoc_cmd.subnqn, ctrl->ctrl.opts->subsysnqn,
1216 min(FCNVME_ASSOC_SUBNQN_LEN, NVMF_NQN_SIZE));
1217
1218 lsop->queue = queue;
1219 lsreq->rqstaddr = assoc_rqst;
1220 lsreq->rqstlen = sizeof(*assoc_rqst);
1221 lsreq->rspaddr = assoc_acc;
1222 lsreq->rsplen = sizeof(*assoc_acc);
1223 lsreq->timeout = NVME_FC_CONNECT_TIMEOUT_SEC;
1224
c913a8b0 1225 ret = nvme_fc_send_ls_req(ctrl->rport, lsop);
e399441d
JS
1226 if (ret)
1227 goto out_free_buffer;
1228
1229 /* process connect LS completion */
1230
1231 /* validate the ACC response */
1232 if (assoc_acc->hdr.w0.ls_cmd != FCNVME_LS_ACC)
1233 fcret = VERR_LSACC;
f77fc87c 1234 else if (assoc_acc->hdr.desc_list_len !=
e399441d
JS
1235 fcnvme_lsdesc_len(
1236 sizeof(struct fcnvme_ls_cr_assoc_acc)))
1237 fcret = VERR_CR_ASSOC_ACC_LEN;
f77fc87c
JS
1238 else if (assoc_acc->hdr.rqst.desc_tag !=
1239 cpu_to_be32(FCNVME_LSDESC_RQST))
e399441d
JS
1240 fcret = VERR_LSDESC_RQST;
1241 else if (assoc_acc->hdr.rqst.desc_len !=
1242 fcnvme_lsdesc_len(sizeof(struct fcnvme_lsdesc_rqst)))
1243 fcret = VERR_LSDESC_RQST_LEN;
1244 else if (assoc_acc->hdr.rqst.w0.ls_cmd != FCNVME_LS_CREATE_ASSOCIATION)
1245 fcret = VERR_CR_ASSOC;
1246 else if (assoc_acc->associd.desc_tag !=
1247 cpu_to_be32(FCNVME_LSDESC_ASSOC_ID))
1248 fcret = VERR_ASSOC_ID;
1249 else if (assoc_acc->associd.desc_len !=
1250 fcnvme_lsdesc_len(
1251 sizeof(struct fcnvme_lsdesc_assoc_id)))
1252 fcret = VERR_ASSOC_ID_LEN;
1253 else if (assoc_acc->connectid.desc_tag !=
1254 cpu_to_be32(FCNVME_LSDESC_CONN_ID))
1255 fcret = VERR_CONN_ID;
1256 else if (assoc_acc->connectid.desc_len !=
1257 fcnvme_lsdesc_len(sizeof(struct fcnvme_lsdesc_conn_id)))
1258 fcret = VERR_CONN_ID_LEN;
1259
1260 if (fcret) {
1261 ret = -EBADF;
1262 dev_err(ctrl->dev,
1263 "q %d connect failed: %s\n",
1264 queue->qnum, validation_errors[fcret]);
1265 } else {
1266 ctrl->association_id =
1267 be64_to_cpu(assoc_acc->associd.association_id);
1268 queue->connection_id =
1269 be64_to_cpu(assoc_acc->connectid.connection_id);
1270 set_bit(NVME_FC_Q_CONNECTED, &queue->flags);
1271 }
1272
1273out_free_buffer:
1274 kfree(lsop);
1275out_no_memory:
1276 if (ret)
1277 dev_err(ctrl->dev,
1278 "queue %d connect admin queue failed (%d).\n",
1279 queue->qnum, ret);
1280 return ret;
1281}
1282
1283static int
1284nvme_fc_connect_queue(struct nvme_fc_ctrl *ctrl, struct nvme_fc_queue *queue,
1285 u16 qsize, u16 ersp_ratio)
1286{
1287 struct nvmefc_ls_req_op *lsop;
1288 struct nvmefc_ls_req *lsreq;
1289 struct fcnvme_ls_cr_conn_rqst *conn_rqst;
1290 struct fcnvme_ls_cr_conn_acc *conn_acc;
1291 int ret, fcret = 0;
1292
1293 lsop = kzalloc((sizeof(*lsop) +
1294 ctrl->lport->ops->lsrqst_priv_sz +
1295 sizeof(*conn_rqst) + sizeof(*conn_acc)), GFP_KERNEL);
1296 if (!lsop) {
1297 ret = -ENOMEM;
1298 goto out_no_memory;
1299 }
1300 lsreq = &lsop->ls_req;
1301
1302 lsreq->private = (void *)&lsop[1];
1303 conn_rqst = (struct fcnvme_ls_cr_conn_rqst *)
1304 (lsreq->private + ctrl->lport->ops->lsrqst_priv_sz);
1305 conn_acc = (struct fcnvme_ls_cr_conn_acc *)&conn_rqst[1];
1306
1307 conn_rqst->w0.ls_cmd = FCNVME_LS_CREATE_CONNECTION;
1308 conn_rqst->desc_list_len = cpu_to_be32(
1309 sizeof(struct fcnvme_lsdesc_assoc_id) +
1310 sizeof(struct fcnvme_lsdesc_cr_conn_cmd));
1311
1312 conn_rqst->associd.desc_tag = cpu_to_be32(FCNVME_LSDESC_ASSOC_ID);
1313 conn_rqst->associd.desc_len =
1314 fcnvme_lsdesc_len(
1315 sizeof(struct fcnvme_lsdesc_assoc_id));
1316 conn_rqst->associd.association_id = cpu_to_be64(ctrl->association_id);
1317 conn_rqst->connect_cmd.desc_tag =
1318 cpu_to_be32(FCNVME_LSDESC_CREATE_CONN_CMD);
1319 conn_rqst->connect_cmd.desc_len =
1320 fcnvme_lsdesc_len(
1321 sizeof(struct fcnvme_lsdesc_cr_conn_cmd));
1322 conn_rqst->connect_cmd.ersp_ratio = cpu_to_be16(ersp_ratio);
1323 conn_rqst->connect_cmd.qid = cpu_to_be16(queue->qnum);
d157e534 1324 conn_rqst->connect_cmd.sqsize = cpu_to_be16(qsize - 1);
e399441d
JS
1325
1326 lsop->queue = queue;
1327 lsreq->rqstaddr = conn_rqst;
1328 lsreq->rqstlen = sizeof(*conn_rqst);
1329 lsreq->rspaddr = conn_acc;
1330 lsreq->rsplen = sizeof(*conn_acc);
1331 lsreq->timeout = NVME_FC_CONNECT_TIMEOUT_SEC;
1332
c913a8b0 1333 ret = nvme_fc_send_ls_req(ctrl->rport, lsop);
e399441d
JS
1334 if (ret)
1335 goto out_free_buffer;
1336
1337 /* process connect LS completion */
1338
1339 /* validate the ACC response */
1340 if (conn_acc->hdr.w0.ls_cmd != FCNVME_LS_ACC)
1341 fcret = VERR_LSACC;
f77fc87c 1342 else if (conn_acc->hdr.desc_list_len !=
e399441d
JS
1343 fcnvme_lsdesc_len(sizeof(struct fcnvme_ls_cr_conn_acc)))
1344 fcret = VERR_CR_CONN_ACC_LEN;
f77fc87c 1345 else if (conn_acc->hdr.rqst.desc_tag != cpu_to_be32(FCNVME_LSDESC_RQST))
e399441d
JS
1346 fcret = VERR_LSDESC_RQST;
1347 else if (conn_acc->hdr.rqst.desc_len !=
1348 fcnvme_lsdesc_len(sizeof(struct fcnvme_lsdesc_rqst)))
1349 fcret = VERR_LSDESC_RQST_LEN;
1350 else if (conn_acc->hdr.rqst.w0.ls_cmd != FCNVME_LS_CREATE_CONNECTION)
1351 fcret = VERR_CR_CONN;
1352 else if (conn_acc->connectid.desc_tag !=
1353 cpu_to_be32(FCNVME_LSDESC_CONN_ID))
1354 fcret = VERR_CONN_ID;
1355 else if (conn_acc->connectid.desc_len !=
1356 fcnvme_lsdesc_len(sizeof(struct fcnvme_lsdesc_conn_id)))
1357 fcret = VERR_CONN_ID_LEN;
1358
1359 if (fcret) {
1360 ret = -EBADF;
1361 dev_err(ctrl->dev,
1362 "q %d connect failed: %s\n",
1363 queue->qnum, validation_errors[fcret]);
1364 } else {
1365 queue->connection_id =
1366 be64_to_cpu(conn_acc->connectid.connection_id);
1367 set_bit(NVME_FC_Q_CONNECTED, &queue->flags);
1368 }
1369
1370out_free_buffer:
1371 kfree(lsop);
1372out_no_memory:
1373 if (ret)
1374 dev_err(ctrl->dev,
1375 "queue %d connect command failed (%d).\n",
1376 queue->qnum, ret);
1377 return ret;
1378}
1379
1380static void
1381nvme_fc_disconnect_assoc_done(struct nvmefc_ls_req *lsreq, int status)
1382{
1383 struct nvmefc_ls_req_op *lsop = ls_req_to_lsop(lsreq);
e399441d 1384
c913a8b0 1385 __nvme_fc_finish_ls_req(lsop);
e399441d
JS
1386
1387 /* fc-nvme iniator doesn't care about success or failure of cmd */
1388
1389 kfree(lsop);
1390}
1391
1392/*
1393 * This routine sends a FC-NVME LS to disconnect (aka terminate)
1394 * the FC-NVME Association. Terminating the association also
1395 * terminates the FC-NVME connections (per queue, both admin and io
1396 * queues) that are part of the association. E.g. things are torn
1397 * down, and the related FC-NVME Association ID and Connection IDs
1398 * become invalid.
1399 *
1400 * The behavior of the fc-nvme initiator is such that it's
1401 * understanding of the association and connections will implicitly
1402 * be torn down. The action is implicit as it may be due to a loss of
1403 * connectivity with the fc-nvme target, so you may never get a
1404 * response even if you tried. As such, the action of this routine
1405 * is to asynchronously send the LS, ignore any results of the LS, and
1406 * continue on with terminating the association. If the fc-nvme target
1407 * is present and receives the LS, it too can tear down.
1408 */
1409static void
1410nvme_fc_xmt_disconnect_assoc(struct nvme_fc_ctrl *ctrl)
1411{
1412 struct fcnvme_ls_disconnect_rqst *discon_rqst;
1413 struct fcnvme_ls_disconnect_acc *discon_acc;
1414 struct nvmefc_ls_req_op *lsop;
1415 struct nvmefc_ls_req *lsreq;
c913a8b0 1416 int ret;
e399441d
JS
1417
1418 lsop = kzalloc((sizeof(*lsop) +
1419 ctrl->lport->ops->lsrqst_priv_sz +
1420 sizeof(*discon_rqst) + sizeof(*discon_acc)),
1421 GFP_KERNEL);
1422 if (!lsop)
1423 /* couldn't sent it... too bad */
1424 return;
1425
1426 lsreq = &lsop->ls_req;
1427
1428 lsreq->private = (void *)&lsop[1];
1429 discon_rqst = (struct fcnvme_ls_disconnect_rqst *)
1430 (lsreq->private + ctrl->lport->ops->lsrqst_priv_sz);
1431 discon_acc = (struct fcnvme_ls_disconnect_acc *)&discon_rqst[1];
1432
1433 discon_rqst->w0.ls_cmd = FCNVME_LS_DISCONNECT;
1434 discon_rqst->desc_list_len = cpu_to_be32(
1435 sizeof(struct fcnvme_lsdesc_assoc_id) +
1436 sizeof(struct fcnvme_lsdesc_disconn_cmd));
1437
1438 discon_rqst->associd.desc_tag = cpu_to_be32(FCNVME_LSDESC_ASSOC_ID);
1439 discon_rqst->associd.desc_len =
1440 fcnvme_lsdesc_len(
1441 sizeof(struct fcnvme_lsdesc_assoc_id));
1442
1443 discon_rqst->associd.association_id = cpu_to_be64(ctrl->association_id);
1444
1445 discon_rqst->discon_cmd.desc_tag = cpu_to_be32(
1446 FCNVME_LSDESC_DISCONN_CMD);
1447 discon_rqst->discon_cmd.desc_len =
1448 fcnvme_lsdesc_len(
1449 sizeof(struct fcnvme_lsdesc_disconn_cmd));
1450 discon_rqst->discon_cmd.scope = FCNVME_DISCONN_ASSOCIATION;
1451 discon_rqst->discon_cmd.id = cpu_to_be64(ctrl->association_id);
1452
1453 lsreq->rqstaddr = discon_rqst;
1454 lsreq->rqstlen = sizeof(*discon_rqst);
1455 lsreq->rspaddr = discon_acc;
1456 lsreq->rsplen = sizeof(*discon_acc);
1457 lsreq->timeout = NVME_FC_CONNECT_TIMEOUT_SEC;
1458
c913a8b0
JS
1459 ret = nvme_fc_send_ls_req_async(ctrl->rport, lsop,
1460 nvme_fc_disconnect_assoc_done);
1461 if (ret)
1462 kfree(lsop);
e399441d
JS
1463
1464 /* only meaningful part to terminating the association */
1465 ctrl->association_id = 0;
1466}
1467
1468
1469/* *********************** NVME Ctrl Routines **************************** */
1470
f874d5d0 1471static void nvme_fc_error_recovery(struct nvme_fc_ctrl *ctrl, char *errmsg);
e399441d
JS
1472
1473static int
1474nvme_fc_reinit_request(void *data, struct request *rq)
1475{
1476 struct nvme_fc_fcp_op *op = blk_mq_rq_to_pdu(rq);
1477 struct nvme_fc_cmd_iu *cmdiu = &op->cmd_iu;
1478
1479 memset(cmdiu, 0, sizeof(*cmdiu));
1480 cmdiu->scsi_id = NVME_CMD_SCSI_ID;
1481 cmdiu->fc_id = NVME_CMD_FC_ID;
1482 cmdiu->iu_len = cpu_to_be16(sizeof(*cmdiu) / sizeof(u32));
1483 memset(&op->rsp_iu, 0, sizeof(op->rsp_iu));
1484
1485 return 0;
1486}
1487
1488static void
1489__nvme_fc_exit_request(struct nvme_fc_ctrl *ctrl,
1490 struct nvme_fc_fcp_op *op)
1491{
1492 fc_dma_unmap_single(ctrl->lport->dev, op->fcp_req.rspdma,
1493 sizeof(op->rsp_iu), DMA_FROM_DEVICE);
1494 fc_dma_unmap_single(ctrl->lport->dev, op->fcp_req.cmddma,
1495 sizeof(op->cmd_iu), DMA_TO_DEVICE);
1496
1497 atomic_set(&op->state, FCPOP_STATE_UNINIT);
1498}
1499
1500static void
d6296d39
CH
1501nvme_fc_exit_request(struct blk_mq_tag_set *set, struct request *rq,
1502 unsigned int hctx_idx)
e399441d
JS
1503{
1504 struct nvme_fc_fcp_op *op = blk_mq_rq_to_pdu(rq);
1505
d6296d39 1506 return __nvme_fc_exit_request(set->driver_data, op);
e399441d
JS
1507}
1508
78a7ac26
JS
1509static int
1510__nvme_fc_abort_op(struct nvme_fc_ctrl *ctrl, struct nvme_fc_fcp_op *op)
1511{
3efd6e8e
JS
1512 unsigned long flags;
1513 int opstate;
1514
1515 spin_lock_irqsave(&ctrl->lock, flags);
1516 opstate = atomic_xchg(&op->state, FCPOP_STATE_ABORTED);
1517 if (opstate != FCPOP_STATE_ACTIVE)
1518 atomic_set(&op->state, opstate);
1519 else if (ctrl->flags & FCCTRL_TERMIO)
1520 ctrl->iocnt++;
1521 spin_unlock_irqrestore(&ctrl->lock, flags);
78a7ac26 1522
3efd6e8e 1523 if (opstate != FCPOP_STATE_ACTIVE)
78a7ac26 1524 return -ECANCELED;
78a7ac26
JS
1525
1526 ctrl->lport->ops->fcp_abort(&ctrl->lport->localport,
1527 &ctrl->rport->remoteport,
1528 op->queue->lldd_handle,
1529 &op->fcp_req);
1530
1531 return 0;
1532}
1533
e399441d 1534static void
78a7ac26 1535nvme_fc_abort_aen_ops(struct nvme_fc_ctrl *ctrl)
e399441d
JS
1536{
1537 struct nvme_fc_fcp_op *aen_op = ctrl->aen_ops;
3efd6e8e 1538 int i;
78a7ac26 1539
3efd6e8e
JS
1540 for (i = 0; i < NVME_NR_AEN_COMMANDS; i++, aen_op++)
1541 __nvme_fc_abort_op(ctrl, aen_op);
e399441d
JS
1542}
1543
c3aedd22 1544static inline void
78a7ac26 1545__nvme_fc_fcpop_chk_teardowns(struct nvme_fc_ctrl *ctrl,
3efd6e8e 1546 struct nvme_fc_fcp_op *op, int opstate)
78a7ac26
JS
1547{
1548 unsigned long flags;
78a7ac26 1549
c3aedd22
JS
1550 if (opstate == FCPOP_STATE_ABORTED) {
1551 spin_lock_irqsave(&ctrl->lock, flags);
1552 if (ctrl->flags & FCCTRL_TERMIO) {
1553 if (!--ctrl->iocnt)
1554 wake_up(&ctrl->ioabort_wait);
1555 }
1556 spin_unlock_irqrestore(&ctrl->lock, flags);
61bff8ef 1557 }
78a7ac26
JS
1558}
1559
baee29ac 1560static void
e399441d
JS
1561nvme_fc_fcpio_done(struct nvmefc_fcp_req *req)
1562{
1563 struct nvme_fc_fcp_op *op = fcp_req_to_fcp_op(req);
1564 struct request *rq = op->rq;
1565 struct nvmefc_fcp_req *freq = &op->fcp_req;
1566 struct nvme_fc_ctrl *ctrl = op->ctrl;
1567 struct nvme_fc_queue *queue = op->queue;
1568 struct nvme_completion *cqe = &op->rsp_iu.cqe;
458f280d 1569 struct nvme_command *sqe = &op->cmd_iu.sqe;
d663b69f 1570 __le16 status = cpu_to_le16(NVME_SC_SUCCESS << 1);
27fa9bc5 1571 union nvme_result result;
0a02e39f 1572 bool terminate_assoc = true;
3efd6e8e 1573 int opstate;
e399441d
JS
1574
1575 /*
1576 * WARNING:
1577 * The current linux implementation of a nvme controller
1578 * allocates a single tag set for all io queues and sizes
1579 * the io queues to fully hold all possible tags. Thus, the
1580 * implementation does not reference or care about the sqhd
1581 * value as it never needs to use the sqhd/sqtail pointers
1582 * for submission pacing.
1583 *
1584 * This affects the FC-NVME implementation in two ways:
1585 * 1) As the value doesn't matter, we don't need to waste
1586 * cycles extracting it from ERSPs and stamping it in the
1587 * cases where the transport fabricates CQEs on successful
1588 * completions.
1589 * 2) The FC-NVME implementation requires that delivery of
1590 * ERSP completions are to go back to the nvme layer in order
1591 * relative to the rsn, such that the sqhd value will always
1592 * be "in order" for the nvme layer. As the nvme layer in
1593 * linux doesn't care about sqhd, there's no need to return
1594 * them in order.
1595 *
1596 * Additionally:
1597 * As the core nvme layer in linux currently does not look at
1598 * every field in the cqe - in cases where the FC transport must
1599 * fabricate a CQE, the following fields will not be set as they
1600 * are not referenced:
1601 * cqe.sqid, cqe.sqhd, cqe.command_id
f874d5d0
JS
1602 *
1603 * Failure or error of an individual i/o, in a transport
1604 * detected fashion unrelated to the nvme completion status,
1605 * potentially cause the initiator and target sides to get out
1606 * of sync on SQ head/tail (aka outstanding io count allowed).
1607 * Per FC-NVME spec, failure of an individual command requires
1608 * the connection to be terminated, which in turn requires the
1609 * association to be terminated.
e399441d
JS
1610 */
1611
3efd6e8e
JS
1612 opstate = atomic_xchg(&op->state, FCPOP_STATE_COMPLETE);
1613
e399441d
JS
1614 fc_dma_sync_single_for_cpu(ctrl->lport->dev, op->fcp_req.rspdma,
1615 sizeof(op->rsp_iu), DMA_FROM_DEVICE);
1616
3efd6e8e 1617 if (opstate == FCPOP_STATE_ABORTED)
0a02e39f 1618 status = cpu_to_le16(NVME_SC_ABORT_REQ << 1);
62eeacb0 1619 else if (freq->status)
56b7103a 1620 status = cpu_to_le16(NVME_SC_INTERNAL << 1);
e399441d
JS
1621
1622 /*
1623 * For the linux implementation, if we have an unsuccesful
1624 * status, they blk-mq layer can typically be called with the
1625 * non-zero status and the content of the cqe isn't important.
1626 */
1627 if (status)
1628 goto done;
1629
1630 /*
1631 * command completed successfully relative to the wire
1632 * protocol. However, validate anything received and
1633 * extract the status and result from the cqe (create it
1634 * where necessary).
1635 */
1636
1637 switch (freq->rcv_rsplen) {
1638
1639 case 0:
1640 case NVME_FC_SIZEOF_ZEROS_RSP:
1641 /*
1642 * No response payload or 12 bytes of payload (which
1643 * should all be zeros) are considered successful and
1644 * no payload in the CQE by the transport.
1645 */
1646 if (freq->transferred_length !=
1647 be32_to_cpu(op->cmd_iu.data_len)) {
56b7103a 1648 status = cpu_to_le16(NVME_SC_INTERNAL << 1);
e399441d
JS
1649 goto done;
1650 }
27fa9bc5 1651 result.u64 = 0;
e399441d
JS
1652 break;
1653
1654 case sizeof(struct nvme_fc_ersp_iu):
1655 /*
1656 * The ERSP IU contains a full completion with CQE.
1657 * Validate ERSP IU and look at cqe.
1658 */
1659 if (unlikely(be16_to_cpu(op->rsp_iu.iu_len) !=
1660 (freq->rcv_rsplen / 4) ||
1661 be32_to_cpu(op->rsp_iu.xfrd_len) !=
1662 freq->transferred_length ||
726a1080 1663 op->rsp_iu.status_code ||
458f280d 1664 sqe->common.command_id != cqe->command_id)) {
56b7103a 1665 status = cpu_to_le16(NVME_SC_INTERNAL << 1);
e399441d
JS
1666 goto done;
1667 }
27fa9bc5 1668 result = cqe->result;
d663b69f 1669 status = cqe->status;
e399441d
JS
1670 break;
1671
1672 default:
56b7103a 1673 status = cpu_to_le16(NVME_SC_INTERNAL << 1);
e399441d
JS
1674 goto done;
1675 }
1676
f874d5d0
JS
1677 terminate_assoc = false;
1678
e399441d 1679done:
78a7ac26 1680 if (op->flags & FCOP_FLAGS_AEN) {
27fa9bc5 1681 nvme_complete_async_event(&queue->ctrl->ctrl, status, &result);
3efd6e8e 1682 __nvme_fc_fcpop_chk_teardowns(ctrl, op, opstate);
78a7ac26
JS
1683 atomic_set(&op->state, FCPOP_STATE_IDLE);
1684 op->flags = FCOP_FLAGS_AEN; /* clear other flags */
e399441d 1685 nvme_fc_ctrl_put(ctrl);
f874d5d0 1686 goto check_error;
e399441d
JS
1687 }
1688
c3aedd22
JS
1689 __nvme_fc_fcpop_chk_teardowns(ctrl, op, opstate);
1690 nvme_end_request(rq, status, result);
f874d5d0
JS
1691
1692check_error:
1693 if (terminate_assoc)
1694 nvme_fc_error_recovery(ctrl, "transport detected io error");
e399441d
JS
1695}
1696
1697static int
1698__nvme_fc_init_request(struct nvme_fc_ctrl *ctrl,
1699 struct nvme_fc_queue *queue, struct nvme_fc_fcp_op *op,
1700 struct request *rq, u32 rqno)
1701{
1702 struct nvme_fc_cmd_iu *cmdiu = &op->cmd_iu;
1703 int ret = 0;
1704
1705 memset(op, 0, sizeof(*op));
1706 op->fcp_req.cmdaddr = &op->cmd_iu;
1707 op->fcp_req.cmdlen = sizeof(op->cmd_iu);
1708 op->fcp_req.rspaddr = &op->rsp_iu;
1709 op->fcp_req.rsplen = sizeof(op->rsp_iu);
1710 op->fcp_req.done = nvme_fc_fcpio_done;
1711 op->fcp_req.first_sgl = (struct scatterlist *)&op[1];
1712 op->fcp_req.private = &op->fcp_req.first_sgl[SG_CHUNK_SIZE];
1713 op->ctrl = ctrl;
1714 op->queue = queue;
1715 op->rq = rq;
1716 op->rqno = rqno;
1717
1718 cmdiu->scsi_id = NVME_CMD_SCSI_ID;
1719 cmdiu->fc_id = NVME_CMD_FC_ID;
1720 cmdiu->iu_len = cpu_to_be16(sizeof(*cmdiu) / sizeof(u32));
1721
1722 op->fcp_req.cmddma = fc_dma_map_single(ctrl->lport->dev,
1723 &op->cmd_iu, sizeof(op->cmd_iu), DMA_TO_DEVICE);
1724 if (fc_dma_mapping_error(ctrl->lport->dev, op->fcp_req.cmddma)) {
1725 dev_err(ctrl->dev,
1726 "FCP Op failed - cmdiu dma mapping failed.\n");
1727 ret = EFAULT;
1728 goto out_on_error;
1729 }
1730
1731 op->fcp_req.rspdma = fc_dma_map_single(ctrl->lport->dev,
1732 &op->rsp_iu, sizeof(op->rsp_iu),
1733 DMA_FROM_DEVICE);
1734 if (fc_dma_mapping_error(ctrl->lport->dev, op->fcp_req.rspdma)) {
1735 dev_err(ctrl->dev,
1736 "FCP Op failed - rspiu dma mapping failed.\n");
1737 ret = EFAULT;
1738 }
1739
1740 atomic_set(&op->state, FCPOP_STATE_IDLE);
1741out_on_error:
1742 return ret;
1743}
1744
1745static int
d6296d39
CH
1746nvme_fc_init_request(struct blk_mq_tag_set *set, struct request *rq,
1747 unsigned int hctx_idx, unsigned int numa_node)
e399441d 1748{
d6296d39 1749 struct nvme_fc_ctrl *ctrl = set->driver_data;
e399441d 1750 struct nvme_fc_fcp_op *op = blk_mq_rq_to_pdu(rq);
76f983cb
CH
1751 int queue_idx = (set == &ctrl->tag_set) ? hctx_idx + 1 : 0;
1752 struct nvme_fc_queue *queue = &ctrl->queues[queue_idx];
e399441d
JS
1753
1754 return __nvme_fc_init_request(ctrl, queue, op, rq, queue->rqcnt++);
1755}
1756
1757static int
1758nvme_fc_init_aen_ops(struct nvme_fc_ctrl *ctrl)
1759{
1760 struct nvme_fc_fcp_op *aen_op;
1761 struct nvme_fc_cmd_iu *cmdiu;
1762 struct nvme_command *sqe;
61bff8ef 1763 void *private;
e399441d
JS
1764 int i, ret;
1765
1766 aen_op = ctrl->aen_ops;
38dabe21 1767 for (i = 0; i < NVME_NR_AEN_COMMANDS; i++, aen_op++) {
61bff8ef
JS
1768 private = kzalloc(ctrl->lport->ops->fcprqst_priv_sz,
1769 GFP_KERNEL);
1770 if (!private)
1771 return -ENOMEM;
1772
e399441d
JS
1773 cmdiu = &aen_op->cmd_iu;
1774 sqe = &cmdiu->sqe;
1775 ret = __nvme_fc_init_request(ctrl, &ctrl->queues[0],
1776 aen_op, (struct request *)NULL,
38dabe21 1777 (NVME_AQ_BLK_MQ_DEPTH + i));
61bff8ef
JS
1778 if (ret) {
1779 kfree(private);
e399441d 1780 return ret;
61bff8ef 1781 }
e399441d 1782
78a7ac26 1783 aen_op->flags = FCOP_FLAGS_AEN;
61bff8ef
JS
1784 aen_op->fcp_req.first_sgl = NULL; /* no sg list */
1785 aen_op->fcp_req.private = private;
78a7ac26 1786
e399441d
JS
1787 memset(sqe, 0, sizeof(*sqe));
1788 sqe->common.opcode = nvme_admin_async_event;
78a7ac26 1789 /* Note: core layer may overwrite the sqe.command_id value */
38dabe21 1790 sqe->common.command_id = NVME_AQ_BLK_MQ_DEPTH + i;
e399441d
JS
1791 }
1792 return 0;
1793}
1794
61bff8ef
JS
1795static void
1796nvme_fc_term_aen_ops(struct nvme_fc_ctrl *ctrl)
1797{
1798 struct nvme_fc_fcp_op *aen_op;
1799 int i;
1800
1801 aen_op = ctrl->aen_ops;
38dabe21 1802 for (i = 0; i < NVME_NR_AEN_COMMANDS; i++, aen_op++) {
61bff8ef
JS
1803 if (!aen_op->fcp_req.private)
1804 continue;
1805
1806 __nvme_fc_exit_request(ctrl, aen_op);
1807
1808 kfree(aen_op->fcp_req.private);
1809 aen_op->fcp_req.private = NULL;
1810 }
1811}
e399441d
JS
1812
1813static inline void
1814__nvme_fc_init_hctx(struct blk_mq_hw_ctx *hctx, struct nvme_fc_ctrl *ctrl,
1815 unsigned int qidx)
1816{
1817 struct nvme_fc_queue *queue = &ctrl->queues[qidx];
1818
1819 hctx->driver_data = queue;
1820 queue->hctx = hctx;
1821}
1822
1823static int
1824nvme_fc_init_hctx(struct blk_mq_hw_ctx *hctx, void *data,
1825 unsigned int hctx_idx)
1826{
1827 struct nvme_fc_ctrl *ctrl = data;
1828
1829 __nvme_fc_init_hctx(hctx, ctrl, hctx_idx + 1);
1830
1831 return 0;
1832}
1833
1834static int
1835nvme_fc_init_admin_hctx(struct blk_mq_hw_ctx *hctx, void *data,
1836 unsigned int hctx_idx)
1837{
1838 struct nvme_fc_ctrl *ctrl = data;
1839
1840 __nvme_fc_init_hctx(hctx, ctrl, hctx_idx);
1841
1842 return 0;
1843}
1844
1845static void
08e15075 1846nvme_fc_init_queue(struct nvme_fc_ctrl *ctrl, int idx)
e399441d
JS
1847{
1848 struct nvme_fc_queue *queue;
1849
1850 queue = &ctrl->queues[idx];
1851 memset(queue, 0, sizeof(*queue));
1852 queue->ctrl = ctrl;
1853 queue->qnum = idx;
1854 atomic_set(&queue->csn, 1);
1855 queue->dev = ctrl->dev;
1856
1857 if (idx > 0)
1858 queue->cmnd_capsule_len = ctrl->ctrl.ioccsz * 16;
1859 else
1860 queue->cmnd_capsule_len = sizeof(struct nvme_command);
1861
e399441d
JS
1862 /*
1863 * Considered whether we should allocate buffers for all SQEs
1864 * and CQEs and dma map them - mapping their respective entries
1865 * into the request structures (kernel vm addr and dma address)
1866 * thus the driver could use the buffers/mappings directly.
1867 * It only makes sense if the LLDD would use them for its
1868 * messaging api. It's very unlikely most adapter api's would use
1869 * a native NVME sqe/cqe. More reasonable if FC-NVME IU payload
1870 * structures were used instead.
1871 */
1872}
1873
1874/*
1875 * This routine terminates a queue at the transport level.
1876 * The transport has already ensured that all outstanding ios on
1877 * the queue have been terminated.
1878 * The transport will send a Disconnect LS request to terminate
1879 * the queue's connection. Termination of the admin queue will also
1880 * terminate the association at the target.
1881 */
1882static void
1883nvme_fc_free_queue(struct nvme_fc_queue *queue)
1884{
1885 if (!test_and_clear_bit(NVME_FC_Q_CONNECTED, &queue->flags))
1886 return;
1887
9e0ed16a 1888 clear_bit(NVME_FC_Q_LIVE, &queue->flags);
e399441d
JS
1889 /*
1890 * Current implementation never disconnects a single queue.
1891 * It always terminates a whole association. So there is never
1892 * a disconnect(queue) LS sent to the target.
1893 */
1894
1895 queue->connection_id = 0;
e399441d
JS
1896}
1897
1898static void
1899__nvme_fc_delete_hw_queue(struct nvme_fc_ctrl *ctrl,
1900 struct nvme_fc_queue *queue, unsigned int qidx)
1901{
1902 if (ctrl->lport->ops->delete_queue)
1903 ctrl->lport->ops->delete_queue(&ctrl->lport->localport, qidx,
1904 queue->lldd_handle);
1905 queue->lldd_handle = NULL;
1906}
1907
e399441d
JS
1908static void
1909nvme_fc_free_io_queues(struct nvme_fc_ctrl *ctrl)
1910{
1911 int i;
1912
d858e5f0 1913 for (i = 1; i < ctrl->ctrl.queue_count; i++)
e399441d
JS
1914 nvme_fc_free_queue(&ctrl->queues[i]);
1915}
1916
1917static int
1918__nvme_fc_create_hw_queue(struct nvme_fc_ctrl *ctrl,
1919 struct nvme_fc_queue *queue, unsigned int qidx, u16 qsize)
1920{
1921 int ret = 0;
1922
1923 queue->lldd_handle = NULL;
1924 if (ctrl->lport->ops->create_queue)
1925 ret = ctrl->lport->ops->create_queue(&ctrl->lport->localport,
1926 qidx, qsize, &queue->lldd_handle);
1927
1928 return ret;
1929}
1930
1931static void
1932nvme_fc_delete_hw_io_queues(struct nvme_fc_ctrl *ctrl)
1933{
d858e5f0 1934 struct nvme_fc_queue *queue = &ctrl->queues[ctrl->ctrl.queue_count - 1];
e399441d
JS
1935 int i;
1936
d858e5f0 1937 for (i = ctrl->ctrl.queue_count - 1; i >= 1; i--, queue--)
e399441d
JS
1938 __nvme_fc_delete_hw_queue(ctrl, queue, i);
1939}
1940
1941static int
1942nvme_fc_create_hw_io_queues(struct nvme_fc_ctrl *ctrl, u16 qsize)
1943{
1944 struct nvme_fc_queue *queue = &ctrl->queues[1];
17a1ec08 1945 int i, ret;
e399441d 1946
d858e5f0 1947 for (i = 1; i < ctrl->ctrl.queue_count; i++, queue++) {
e399441d 1948 ret = __nvme_fc_create_hw_queue(ctrl, queue, i, qsize);
17a1ec08
JT
1949 if (ret)
1950 goto delete_queues;
e399441d
JS
1951 }
1952
1953 return 0;
17a1ec08
JT
1954
1955delete_queues:
1956 for (; i >= 0; i--)
1957 __nvme_fc_delete_hw_queue(ctrl, &ctrl->queues[i], i);
1958 return ret;
e399441d
JS
1959}
1960
1961static int
1962nvme_fc_connect_io_queues(struct nvme_fc_ctrl *ctrl, u16 qsize)
1963{
1964 int i, ret = 0;
1965
d858e5f0 1966 for (i = 1; i < ctrl->ctrl.queue_count; i++) {
e399441d
JS
1967 ret = nvme_fc_connect_queue(ctrl, &ctrl->queues[i], qsize,
1968 (qsize / 5));
1969 if (ret)
1970 break;
1971 ret = nvmf_connect_io_queue(&ctrl->ctrl, i);
1972 if (ret)
1973 break;
9e0ed16a
SG
1974
1975 set_bit(NVME_FC_Q_LIVE, &ctrl->queues[i].flags);
e399441d
JS
1976 }
1977
1978 return ret;
1979}
1980
1981static void
1982nvme_fc_init_io_queues(struct nvme_fc_ctrl *ctrl)
1983{
1984 int i;
1985
d858e5f0 1986 for (i = 1; i < ctrl->ctrl.queue_count; i++)
08e15075 1987 nvme_fc_init_queue(ctrl, i);
e399441d
JS
1988}
1989
1990static void
1991nvme_fc_ctrl_free(struct kref *ref)
1992{
1993 struct nvme_fc_ctrl *ctrl =
1994 container_of(ref, struct nvme_fc_ctrl, ref);
1995 unsigned long flags;
1996
61bff8ef
JS
1997 if (ctrl->ctrl.tagset) {
1998 blk_cleanup_queue(ctrl->ctrl.connect_q);
1999 blk_mq_free_tag_set(&ctrl->tag_set);
e399441d
JS
2000 }
2001
61bff8ef
JS
2002 /* remove from rport list */
2003 spin_lock_irqsave(&ctrl->rport->lock, flags);
2004 list_del(&ctrl->ctrl_list);
2005 spin_unlock_irqrestore(&ctrl->rport->lock, flags);
2006
f9c5af5f 2007 blk_mq_unquiesce_queue(ctrl->ctrl.admin_q);
61bff8ef
JS
2008 blk_cleanup_queue(ctrl->ctrl.admin_q);
2009 blk_mq_free_tag_set(&ctrl->admin_tag_set);
2010
2011 kfree(ctrl->queues);
2012
e399441d
JS
2013 put_device(ctrl->dev);
2014 nvme_fc_rport_put(ctrl->rport);
2015
e399441d 2016 ida_simple_remove(&nvme_fc_ctrl_cnt, ctrl->cnum);
de41447a
EM
2017 if (ctrl->ctrl.opts)
2018 nvmf_free_options(ctrl->ctrl.opts);
e399441d
JS
2019 kfree(ctrl);
2020}
2021
2022static void
2023nvme_fc_ctrl_put(struct nvme_fc_ctrl *ctrl)
2024{
2025 kref_put(&ctrl->ref, nvme_fc_ctrl_free);
2026}
2027
2028static int
2029nvme_fc_ctrl_get(struct nvme_fc_ctrl *ctrl)
2030{
2031 return kref_get_unless_zero(&ctrl->ref);
2032}
2033
2034/*
2035 * All accesses from nvme core layer done - can now free the
2036 * controller. Called after last nvme_put_ctrl() call
2037 */
2038static void
61bff8ef 2039nvme_fc_nvme_ctrl_freed(struct nvme_ctrl *nctrl)
e399441d
JS
2040{
2041 struct nvme_fc_ctrl *ctrl = to_fc_ctrl(nctrl);
2042
2043 WARN_ON(nctrl != &ctrl->ctrl);
2044
61bff8ef
JS
2045 nvme_fc_ctrl_put(ctrl);
2046}
e399441d 2047
61bff8ef
JS
2048static void
2049nvme_fc_error_recovery(struct nvme_fc_ctrl *ctrl, char *errmsg)
2050{
69fa9646
JS
2051 /* only proceed if in LIVE state - e.g. on first error */
2052 if (ctrl->ctrl.state != NVME_CTRL_LIVE)
2053 return;
2054
61bff8ef
JS
2055 dev_warn(ctrl->ctrl.device,
2056 "NVME-FC{%d}: transport association error detected: %s\n",
2057 ctrl->cnum, errmsg);
589ff775 2058 dev_warn(ctrl->ctrl.device,
61bff8ef 2059 "NVME-FC{%d}: resetting controller\n", ctrl->cnum);
e399441d 2060
d86c4d8e 2061 nvme_reset_ctrl(&ctrl->ctrl);
e399441d
JS
2062}
2063
baee29ac 2064static enum blk_eh_timer_return
e399441d
JS
2065nvme_fc_timeout(struct request *rq, bool reserved)
2066{
2067 struct nvme_fc_fcp_op *op = blk_mq_rq_to_pdu(rq);
2068 struct nvme_fc_ctrl *ctrl = op->ctrl;
e399441d
JS
2069
2070 /*
61bff8ef 2071 * we can't individually ABTS an io without affecting the queue,
041018c6 2072 * thus killing the queue, and thus the association.
61bff8ef
JS
2073 * So resolve by performing a controller reset, which will stop
2074 * the host/io stack, terminate the association on the link,
2075 * and recreate an association on the link.
e399441d 2076 */
61bff8ef 2077 nvme_fc_error_recovery(ctrl, "io timeout error");
e399441d 2078
134aedc9
JS
2079 /*
2080 * the io abort has been initiated. Have the reset timer
2081 * restarted and the abort completion will complete the io
2082 * shortly. Avoids a synchronous wait while the abort finishes.
2083 */
2084 return BLK_EH_RESET_TIMER;
e399441d
JS
2085}
2086
2087static int
2088nvme_fc_map_data(struct nvme_fc_ctrl *ctrl, struct request *rq,
2089 struct nvme_fc_fcp_op *op)
2090{
2091 struct nvmefc_fcp_req *freq = &op->fcp_req;
e399441d
JS
2092 enum dma_data_direction dir;
2093 int ret;
2094
2095 freq->sg_cnt = 0;
2096
b131c61d 2097 if (!blk_rq_payload_bytes(rq))
e399441d
JS
2098 return 0;
2099
2100 freq->sg_table.sgl = freq->first_sgl;
19e420bb
CH
2101 ret = sg_alloc_table_chained(&freq->sg_table,
2102 blk_rq_nr_phys_segments(rq), freq->sg_table.sgl);
e399441d
JS
2103 if (ret)
2104 return -ENOMEM;
2105
2106 op->nents = blk_rq_map_sg(rq->q, rq, freq->sg_table.sgl);
19e420bb 2107 WARN_ON(op->nents > blk_rq_nr_phys_segments(rq));
e399441d
JS
2108 dir = (rq_data_dir(rq) == WRITE) ? DMA_TO_DEVICE : DMA_FROM_DEVICE;
2109 freq->sg_cnt = fc_dma_map_sg(ctrl->lport->dev, freq->sg_table.sgl,
2110 op->nents, dir);
2111 if (unlikely(freq->sg_cnt <= 0)) {
2112 sg_free_table_chained(&freq->sg_table, true);
2113 freq->sg_cnt = 0;
2114 return -EFAULT;
2115 }
2116
2117 /*
2118 * TODO: blk_integrity_rq(rq) for DIF
2119 */
2120 return 0;
2121}
2122
2123static void
2124nvme_fc_unmap_data(struct nvme_fc_ctrl *ctrl, struct request *rq,
2125 struct nvme_fc_fcp_op *op)
2126{
2127 struct nvmefc_fcp_req *freq = &op->fcp_req;
2128
2129 if (!freq->sg_cnt)
2130 return;
2131
2132 fc_dma_unmap_sg(ctrl->lport->dev, freq->sg_table.sgl, op->nents,
2133 ((rq_data_dir(rq) == WRITE) ?
2134 DMA_TO_DEVICE : DMA_FROM_DEVICE));
2135
2136 nvme_cleanup_cmd(rq);
2137
2138 sg_free_table_chained(&freq->sg_table, true);
2139
2140 freq->sg_cnt = 0;
2141}
2142
2143/*
2144 * In FC, the queue is a logical thing. At transport connect, the target
2145 * creates its "queue" and returns a handle that is to be given to the
2146 * target whenever it posts something to the corresponding SQ. When an
2147 * SQE is sent on a SQ, FC effectively considers the SQE, or rather the
2148 * command contained within the SQE, an io, and assigns a FC exchange
2149 * to it. The SQE and the associated SQ handle are sent in the initial
2150 * CMD IU sents on the exchange. All transfers relative to the io occur
2151 * as part of the exchange. The CQE is the last thing for the io,
2152 * which is transferred (explicitly or implicitly) with the RSP IU
2153 * sent on the exchange. After the CQE is received, the FC exchange is
2154 * terminaed and the Exchange may be used on a different io.
2155 *
2156 * The transport to LLDD api has the transport making a request for a
2157 * new fcp io request to the LLDD. The LLDD then allocates a FC exchange
2158 * resource and transfers the command. The LLDD will then process all
2159 * steps to complete the io. Upon completion, the transport done routine
2160 * is called.
2161 *
2162 * So - while the operation is outstanding to the LLDD, there is a link
2163 * level FC exchange resource that is also outstanding. This must be
2164 * considered in all cleanup operations.
2165 */
fc17b653 2166static blk_status_t
e399441d
JS
2167nvme_fc_start_fcp_op(struct nvme_fc_ctrl *ctrl, struct nvme_fc_queue *queue,
2168 struct nvme_fc_fcp_op *op, u32 data_len,
2169 enum nvmefc_fcp_datadir io_dir)
2170{
2171 struct nvme_fc_cmd_iu *cmdiu = &op->cmd_iu;
2172 struct nvme_command *sqe = &cmdiu->sqe;
2173 u32 csn;
b12740d3 2174 int ret, opstate;
e399441d 2175
61bff8ef
JS
2176 /*
2177 * before attempting to send the io, check to see if we believe
2178 * the target device is present
2179 */
2180 if (ctrl->rport->remoteport.port_state != FC_OBJSTATE_ONLINE)
86ff7c2a 2181 return BLK_STS_RESOURCE;
61bff8ef 2182
e399441d 2183 if (!nvme_fc_ctrl_get(ctrl))
fc17b653 2184 return BLK_STS_IOERR;
e399441d
JS
2185
2186 /* format the FC-NVME CMD IU and fcp_req */
2187 cmdiu->connection_id = cpu_to_be64(queue->connection_id);
2188 csn = atomic_inc_return(&queue->csn);
2189 cmdiu->csn = cpu_to_be32(csn);
2190 cmdiu->data_len = cpu_to_be32(data_len);
2191 switch (io_dir) {
2192 case NVMEFC_FCP_WRITE:
2193 cmdiu->flags = FCNVME_CMD_FLAGS_WRITE;
2194 break;
2195 case NVMEFC_FCP_READ:
2196 cmdiu->flags = FCNVME_CMD_FLAGS_READ;
2197 break;
2198 case NVMEFC_FCP_NODATA:
2199 cmdiu->flags = 0;
2200 break;
2201 }
2202 op->fcp_req.payload_length = data_len;
2203 op->fcp_req.io_dir = io_dir;
2204 op->fcp_req.transferred_length = 0;
2205 op->fcp_req.rcv_rsplen = 0;
62eeacb0 2206 op->fcp_req.status = NVME_SC_SUCCESS;
e399441d
JS
2207 op->fcp_req.sqid = cpu_to_le16(queue->qnum);
2208
2209 /*
2210 * validate per fabric rules, set fields mandated by fabric spec
2211 * as well as those by FC-NVME spec.
2212 */
2213 WARN_ON_ONCE(sqe->common.metadata);
e399441d
JS
2214 sqe->common.flags |= NVME_CMD_SGL_METABUF;
2215
2216 /*
d9d34c0b
JS
2217 * format SQE DPTR field per FC-NVME rules:
2218 * type=0x5 Transport SGL Data Block Descriptor
2219 * subtype=0xA Transport-specific value
2220 * address=0
2221 * length=length of the data series
e399441d 2222 */
d9d34c0b
JS
2223 sqe->rw.dptr.sgl.type = (NVME_TRANSPORT_SGL_DATA_DESC << 4) |
2224 NVME_SGL_FMT_TRANSPORT_A;
e399441d
JS
2225 sqe->rw.dptr.sgl.length = cpu_to_le32(data_len);
2226 sqe->rw.dptr.sgl.addr = 0;
2227
78a7ac26 2228 if (!(op->flags & FCOP_FLAGS_AEN)) {
e399441d
JS
2229 ret = nvme_fc_map_data(ctrl, op->rq, op);
2230 if (ret < 0) {
e399441d
JS
2231 nvme_cleanup_cmd(op->rq);
2232 nvme_fc_ctrl_put(ctrl);
fc17b653
CH
2233 if (ret == -ENOMEM || ret == -EAGAIN)
2234 return BLK_STS_RESOURCE;
2235 return BLK_STS_IOERR;
e399441d
JS
2236 }
2237 }
2238
2239 fc_dma_sync_single_for_device(ctrl->lport->dev, op->fcp_req.cmddma,
2240 sizeof(op->cmd_iu), DMA_TO_DEVICE);
2241
2242 atomic_set(&op->state, FCPOP_STATE_ACTIVE);
2243
78a7ac26 2244 if (!(op->flags & FCOP_FLAGS_AEN))
e399441d
JS
2245 blk_mq_start_request(op->rq);
2246
2247 ret = ctrl->lport->ops->fcp_io(&ctrl->lport->localport,
2248 &ctrl->rport->remoteport,
2249 queue->lldd_handle, &op->fcp_req);
2250
2251 if (ret) {
b12740d3
JS
2252 opstate = atomic_xchg(&op->state, FCPOP_STATE_COMPLETE);
2253 __nvme_fc_fcpop_chk_teardowns(ctrl, op, opstate);
2254
8b25f351 2255 if (!(op->flags & FCOP_FLAGS_AEN))
e399441d 2256 nvme_fc_unmap_data(ctrl, op->rq, op);
e399441d
JS
2257
2258 nvme_fc_ctrl_put(ctrl);
2259
8b25f351
JS
2260 if (ctrl->rport->remoteport.port_state == FC_OBJSTATE_ONLINE &&
2261 ret != -EBUSY)
fc17b653 2262 return BLK_STS_IOERR;
e399441d 2263
86ff7c2a 2264 return BLK_STS_RESOURCE;
e399441d
JS
2265 }
2266
fc17b653 2267 return BLK_STS_OK;
e399441d
JS
2268}
2269
fc17b653 2270static blk_status_t
e399441d
JS
2271nvme_fc_queue_rq(struct blk_mq_hw_ctx *hctx,
2272 const struct blk_mq_queue_data *bd)
2273{
2274 struct nvme_ns *ns = hctx->queue->queuedata;
2275 struct nvme_fc_queue *queue = hctx->driver_data;
2276 struct nvme_fc_ctrl *ctrl = queue->ctrl;
2277 struct request *rq = bd->rq;
2278 struct nvme_fc_fcp_op *op = blk_mq_rq_to_pdu(rq);
2279 struct nvme_fc_cmd_iu *cmdiu = &op->cmd_iu;
2280 struct nvme_command *sqe = &cmdiu->sqe;
2281 enum nvmefc_fcp_datadir io_dir;
2282 u32 data_len;
fc17b653 2283 blk_status_t ret;
e399441d 2284
bb06ec31
JS
2285 ret = nvmf_check_if_ready(&queue->ctrl->ctrl, rq,
2286 test_bit(NVME_FC_Q_LIVE, &queue->flags),
2287 ctrl->rport->remoteport.port_state == FC_OBJSTATE_ONLINE);
9e0ed16a
SG
2288 if (unlikely(ret))
2289 return ret;
2290
e399441d
JS
2291 ret = nvme_setup_cmd(ns, rq, sqe);
2292 if (ret)
2293 return ret;
2294
b131c61d 2295 data_len = blk_rq_payload_bytes(rq);
e399441d
JS
2296 if (data_len)
2297 io_dir = ((rq_data_dir(rq) == WRITE) ?
2298 NVMEFC_FCP_WRITE : NVMEFC_FCP_READ);
2299 else
2300 io_dir = NVMEFC_FCP_NODATA;
2301
2302 return nvme_fc_start_fcp_op(ctrl, queue, op, data_len, io_dir);
2303}
2304
2305static struct blk_mq_tags *
2306nvme_fc_tagset(struct nvme_fc_queue *queue)
2307{
2308 if (queue->qnum == 0)
2309 return queue->ctrl->admin_tag_set.tags[queue->qnum];
2310
2311 return queue->ctrl->tag_set.tags[queue->qnum - 1];
2312}
2313
2314static int
2315nvme_fc_poll(struct blk_mq_hw_ctx *hctx, unsigned int tag)
2316
2317{
2318 struct nvme_fc_queue *queue = hctx->driver_data;
2319 struct nvme_fc_ctrl *ctrl = queue->ctrl;
2320 struct request *req;
2321 struct nvme_fc_fcp_op *op;
2322
2323 req = blk_mq_tag_to_rq(nvme_fc_tagset(queue), tag);
61bff8ef 2324 if (!req)
e399441d 2325 return 0;
e399441d
JS
2326
2327 op = blk_mq_rq_to_pdu(req);
2328
2329 if ((atomic_read(&op->state) == FCPOP_STATE_ACTIVE) &&
2330 (ctrl->lport->ops->poll_queue))
2331 ctrl->lport->ops->poll_queue(&ctrl->lport->localport,
2332 queue->lldd_handle);
2333
2334 return ((atomic_read(&op->state) != FCPOP_STATE_ACTIVE));
2335}
2336
2337static void
ad22c355 2338nvme_fc_submit_async_event(struct nvme_ctrl *arg)
e399441d
JS
2339{
2340 struct nvme_fc_ctrl *ctrl = to_fc_ctrl(arg);
2341 struct nvme_fc_fcp_op *aen_op;
61bff8ef
JS
2342 unsigned long flags;
2343 bool terminating = false;
fc17b653 2344 blk_status_t ret;
e399441d 2345
61bff8ef
JS
2346 spin_lock_irqsave(&ctrl->lock, flags);
2347 if (ctrl->flags & FCCTRL_TERMIO)
2348 terminating = true;
2349 spin_unlock_irqrestore(&ctrl->lock, flags);
2350
2351 if (terminating)
2352 return;
2353
ad22c355 2354 aen_op = &ctrl->aen_ops[0];
e399441d
JS
2355
2356 ret = nvme_fc_start_fcp_op(ctrl, aen_op->queue, aen_op, 0,
2357 NVMEFC_FCP_NODATA);
2358 if (ret)
2359 dev_err(ctrl->ctrl.device,
ad22c355 2360 "failed async event work\n");
e399441d
JS
2361}
2362
2363static void
c3aedd22 2364nvme_fc_complete_rq(struct request *rq)
e399441d
JS
2365{
2366 struct nvme_fc_fcp_op *op = blk_mq_rq_to_pdu(rq);
2367 struct nvme_fc_ctrl *ctrl = op->ctrl;
e399441d 2368
78a7ac26 2369 atomic_set(&op->state, FCPOP_STATE_IDLE);
e399441d 2370
e399441d 2371 nvme_fc_unmap_data(ctrl, rq, op);
77f02a7a 2372 nvme_complete_rq(rq);
e399441d 2373 nvme_fc_ctrl_put(ctrl);
78a7ac26
JS
2374}
2375
e399441d
JS
2376/*
2377 * This routine is used by the transport when it needs to find active
2378 * io on a queue that is to be terminated. The transport uses
2379 * blk_mq_tagset_busy_itr() to find the busy requests, which then invoke
2380 * this routine to kill them on a 1 by 1 basis.
2381 *
2382 * As FC allocates FC exchange for each io, the transport must contact
2383 * the LLDD to terminate the exchange, thus releasing the FC exchange.
2384 * After terminating the exchange the LLDD will call the transport's
2385 * normal io done path for the request, but it will have an aborted
2386 * status. The done path will return the io request back to the block
2387 * layer with an error status.
2388 */
2389static void
2390nvme_fc_terminate_exchange(struct request *req, void *data, bool reserved)
2391{
2392 struct nvme_ctrl *nctrl = data;
2393 struct nvme_fc_ctrl *ctrl = to_fc_ctrl(nctrl);
2394 struct nvme_fc_fcp_op *op = blk_mq_rq_to_pdu(req);
e399441d 2395
3efd6e8e 2396 __nvme_fc_abort_op(ctrl, op);
e399441d
JS
2397}
2398
78a7ac26 2399
61bff8ef
JS
2400static const struct blk_mq_ops nvme_fc_mq_ops = {
2401 .queue_rq = nvme_fc_queue_rq,
2402 .complete = nvme_fc_complete_rq,
2403 .init_request = nvme_fc_init_request,
2404 .exit_request = nvme_fc_exit_request,
61bff8ef
JS
2405 .init_hctx = nvme_fc_init_hctx,
2406 .poll = nvme_fc_poll,
2407 .timeout = nvme_fc_timeout,
2408};
e399441d 2409
61bff8ef
JS
2410static int
2411nvme_fc_create_io_queues(struct nvme_fc_ctrl *ctrl)
e399441d 2412{
61bff8ef 2413 struct nvmf_ctrl_options *opts = ctrl->ctrl.opts;
7314183d 2414 unsigned int nr_io_queues;
61bff8ef 2415 int ret;
e399441d 2416
7314183d
SG
2417 nr_io_queues = min(min(opts->nr_io_queues, num_online_cpus()),
2418 ctrl->lport->ops->max_hw_queues);
2419 ret = nvme_set_queue_count(&ctrl->ctrl, &nr_io_queues);
61bff8ef
JS
2420 if (ret) {
2421 dev_info(ctrl->ctrl.device,
2422 "set_queue_count failed: %d\n", ret);
2423 return ret;
2424 }
e399441d 2425
7314183d
SG
2426 ctrl->ctrl.queue_count = nr_io_queues + 1;
2427 if (!nr_io_queues)
61bff8ef 2428 return 0;
e399441d 2429
61bff8ef 2430 nvme_fc_init_io_queues(ctrl);
e399441d 2431
61bff8ef
JS
2432 memset(&ctrl->tag_set, 0, sizeof(ctrl->tag_set));
2433 ctrl->tag_set.ops = &nvme_fc_mq_ops;
2434 ctrl->tag_set.queue_depth = ctrl->ctrl.opts->queue_size;
2435 ctrl->tag_set.reserved_tags = 1; /* fabric connect */
2436 ctrl->tag_set.numa_node = NUMA_NO_NODE;
2437 ctrl->tag_set.flags = BLK_MQ_F_SHOULD_MERGE;
2438 ctrl->tag_set.cmd_size = sizeof(struct nvme_fc_fcp_op) +
2439 (SG_CHUNK_SIZE *
2440 sizeof(struct scatterlist)) +
2441 ctrl->lport->ops->fcprqst_priv_sz;
2442 ctrl->tag_set.driver_data = ctrl;
d858e5f0 2443 ctrl->tag_set.nr_hw_queues = ctrl->ctrl.queue_count - 1;
61bff8ef 2444 ctrl->tag_set.timeout = NVME_IO_TIMEOUT;
e399441d 2445
61bff8ef
JS
2446 ret = blk_mq_alloc_tag_set(&ctrl->tag_set);
2447 if (ret)
2448 return ret;
e399441d 2449
61bff8ef 2450 ctrl->ctrl.tagset = &ctrl->tag_set;
e399441d 2451
61bff8ef
JS
2452 ctrl->ctrl.connect_q = blk_mq_init_queue(&ctrl->tag_set);
2453 if (IS_ERR(ctrl->ctrl.connect_q)) {
2454 ret = PTR_ERR(ctrl->ctrl.connect_q);
2455 goto out_free_tag_set;
2456 }
e399441d 2457
d157e534 2458 ret = nvme_fc_create_hw_io_queues(ctrl, ctrl->ctrl.sqsize + 1);
e399441d 2459 if (ret)
61bff8ef 2460 goto out_cleanup_blk_queue;
e399441d 2461
d157e534 2462 ret = nvme_fc_connect_io_queues(ctrl, ctrl->ctrl.sqsize + 1);
61bff8ef
JS
2463 if (ret)
2464 goto out_delete_hw_queues;
e399441d
JS
2465
2466 return 0;
e399441d 2467
61bff8ef
JS
2468out_delete_hw_queues:
2469 nvme_fc_delete_hw_io_queues(ctrl);
2470out_cleanup_blk_queue:
61bff8ef
JS
2471 blk_cleanup_queue(ctrl->ctrl.connect_q);
2472out_free_tag_set:
2473 blk_mq_free_tag_set(&ctrl->tag_set);
2474 nvme_fc_free_io_queues(ctrl);
e399441d 2475
61bff8ef
JS
2476 /* force put free routine to ignore io queues */
2477 ctrl->ctrl.tagset = NULL;
2478
2479 return ret;
2480}
e399441d
JS
2481
2482static int
61bff8ef 2483nvme_fc_reinit_io_queues(struct nvme_fc_ctrl *ctrl)
e399441d
JS
2484{
2485 struct nvmf_ctrl_options *opts = ctrl->ctrl.opts;
7314183d 2486 unsigned int nr_io_queues;
e399441d
JS
2487 int ret;
2488
7314183d
SG
2489 nr_io_queues = min(min(opts->nr_io_queues, num_online_cpus()),
2490 ctrl->lport->ops->max_hw_queues);
2491 ret = nvme_set_queue_count(&ctrl->ctrl, &nr_io_queues);
e399441d
JS
2492 if (ret) {
2493 dev_info(ctrl->ctrl.device,
2494 "set_queue_count failed: %d\n", ret);
2495 return ret;
2496 }
2497
7314183d 2498 ctrl->ctrl.queue_count = nr_io_queues + 1;
61bff8ef 2499 /* check for io queues existing */
d858e5f0 2500 if (ctrl->ctrl.queue_count == 1)
e399441d
JS
2501 return 0;
2502
e399441d
JS
2503 nvme_fc_init_io_queues(ctrl);
2504
31b84460 2505 ret = nvme_reinit_tagset(&ctrl->ctrl, ctrl->ctrl.tagset);
e399441d 2506 if (ret)
61bff8ef 2507 goto out_free_io_queues;
e399441d 2508
d157e534 2509 ret = nvme_fc_create_hw_io_queues(ctrl, ctrl->ctrl.sqsize + 1);
e399441d 2510 if (ret)
61bff8ef 2511 goto out_free_io_queues;
e399441d 2512
d157e534 2513 ret = nvme_fc_connect_io_queues(ctrl, ctrl->ctrl.sqsize + 1);
e399441d
JS
2514 if (ret)
2515 goto out_delete_hw_queues;
2516
cda5fd1a
SG
2517 blk_mq_update_nr_hw_queues(&ctrl->tag_set, nr_io_queues);
2518
e399441d
JS
2519 return 0;
2520
2521out_delete_hw_queues:
2522 nvme_fc_delete_hw_io_queues(ctrl);
61bff8ef 2523out_free_io_queues:
e399441d 2524 nvme_fc_free_io_queues(ctrl);
61bff8ef
JS
2525 return ret;
2526}
e399441d 2527
158bfb88
JS
2528static void
2529nvme_fc_rport_active_on_lport(struct nvme_fc_rport *rport)
2530{
2531 struct nvme_fc_lport *lport = rport->lport;
2532
2533 atomic_inc(&lport->act_rport_cnt);
2534}
2535
2536static void
2537nvme_fc_rport_inactive_on_lport(struct nvme_fc_rport *rport)
2538{
2539 struct nvme_fc_lport *lport = rport->lport;
2540 u32 cnt;
2541
2542 cnt = atomic_dec_return(&lport->act_rport_cnt);
2543 if (cnt == 0 && lport->localport.port_state == FC_OBJSTATE_DELETED)
2544 lport->ops->localport_delete(&lport->localport);
2545}
2546
2547static int
2548nvme_fc_ctlr_active_on_rport(struct nvme_fc_ctrl *ctrl)
2549{
2550 struct nvme_fc_rport *rport = ctrl->rport;
2551 u32 cnt;
2552
2553 if (ctrl->assoc_active)
2554 return 1;
2555
2556 ctrl->assoc_active = true;
2557 cnt = atomic_inc_return(&rport->act_ctrl_cnt);
2558 if (cnt == 1)
2559 nvme_fc_rport_active_on_lport(rport);
2560
2561 return 0;
2562}
2563
2564static int
2565nvme_fc_ctlr_inactive_on_rport(struct nvme_fc_ctrl *ctrl)
2566{
2567 struct nvme_fc_rport *rport = ctrl->rport;
2568 struct nvme_fc_lport *lport = rport->lport;
2569 u32 cnt;
2570
2571 /* ctrl->assoc_active=false will be set independently */
2572
2573 cnt = atomic_dec_return(&rport->act_ctrl_cnt);
2574 if (cnt == 0) {
2575 if (rport->remoteport.port_state == FC_OBJSTATE_DELETED)
2576 lport->ops->remoteport_delete(&rport->remoteport);
2577 nvme_fc_rport_inactive_on_lport(rport);
2578 }
2579
2580 return 0;
2581}
2582
61bff8ef
JS
2583/*
2584 * This routine restarts the controller on the host side, and
2585 * on the link side, recreates the controller association.
2586 */
2587static int
2588nvme_fc_create_association(struct nvme_fc_ctrl *ctrl)
2589{
2590 struct nvmf_ctrl_options *opts = ctrl->ctrl.opts;
61bff8ef
JS
2591 int ret;
2592 bool changed;
2593
fdf9dfa8 2594 ++ctrl->ctrl.nr_reconnects;
61bff8ef 2595
96e24801
JS
2596 if (ctrl->rport->remoteport.port_state != FC_OBJSTATE_ONLINE)
2597 return -ENODEV;
2598
158bfb88
JS
2599 if (nvme_fc_ctlr_active_on_rport(ctrl))
2600 return -ENOTUNIQ;
2601
61bff8ef
JS
2602 /*
2603 * Create the admin queue
2604 */
2605
08e15075 2606 nvme_fc_init_queue(ctrl, 0);
61bff8ef
JS
2607
2608 ret = __nvme_fc_create_hw_queue(ctrl, &ctrl->queues[0], 0,
d157e534 2609 NVME_AQ_DEPTH);
61bff8ef
JS
2610 if (ret)
2611 goto out_free_queue;
2612
2613 ret = nvme_fc_connect_admin_queue(ctrl, &ctrl->queues[0],
d157e534 2614 NVME_AQ_DEPTH, (NVME_AQ_DEPTH / 4));
61bff8ef
JS
2615 if (ret)
2616 goto out_delete_hw_queue;
2617
2618 if (ctrl->ctrl.state != NVME_CTRL_NEW)
f9c5af5f 2619 blk_mq_unquiesce_queue(ctrl->ctrl.admin_q);
61bff8ef
JS
2620
2621 ret = nvmf_connect_admin_queue(&ctrl->ctrl);
2622 if (ret)
2623 goto out_disconnect_admin_queue;
2624
9e0ed16a
SG
2625 set_bit(NVME_FC_Q_LIVE, &ctrl->queues[0].flags);
2626
61bff8ef
JS
2627 /*
2628 * Check controller capabilities
2629 *
2630 * todo:- add code to check if ctrl attributes changed from
2631 * prior connection values
2632 */
2633
20d0dfe6 2634 ret = nvmf_reg_read64(&ctrl->ctrl, NVME_REG_CAP, &ctrl->ctrl.cap);
61bff8ef
JS
2635 if (ret) {
2636 dev_err(ctrl->ctrl.device,
2637 "prop_get NVME_REG_CAP failed\n");
2638 goto out_disconnect_admin_queue;
2639 }
2640
2641 ctrl->ctrl.sqsize =
d157e534 2642 min_t(int, NVME_CAP_MQES(ctrl->ctrl.cap), ctrl->ctrl.sqsize);
61bff8ef 2643
20d0dfe6 2644 ret = nvme_enable_ctrl(&ctrl->ctrl, ctrl->ctrl.cap);
61bff8ef
JS
2645 if (ret)
2646 goto out_disconnect_admin_queue;
2647
ecad0d2c
JS
2648 ctrl->ctrl.max_hw_sectors =
2649 (ctrl->lport->ops->max_sgl_segments - 1) << (PAGE_SHIFT - 9);
61bff8ef
JS
2650
2651 ret = nvme_init_identify(&ctrl->ctrl);
2652 if (ret)
2653 goto out_disconnect_admin_queue;
2654
2655 /* sanity checks */
2656
2657 /* FC-NVME does not have other data in the capsule */
2658 if (ctrl->ctrl.icdoff) {
2659 dev_err(ctrl->ctrl.device, "icdoff %d is not supported!\n",
2660 ctrl->ctrl.icdoff);
2661 goto out_disconnect_admin_queue;
2662 }
2663
61bff8ef
JS
2664 /* FC-NVME supports normal SGL Data Block Descriptors */
2665
2666 if (opts->queue_size > ctrl->ctrl.maxcmd) {
2667 /* warn if maxcmd is lower than queue_size */
2668 dev_warn(ctrl->ctrl.device,
2669 "queue_size %zu > ctrl maxcmd %u, reducing "
2670 "to queue_size\n",
2671 opts->queue_size, ctrl->ctrl.maxcmd);
2672 opts->queue_size = ctrl->ctrl.maxcmd;
2673 }
2674
d157e534
JS
2675 if (opts->queue_size > ctrl->ctrl.sqsize + 1) {
2676 /* warn if sqsize is lower than queue_size */
2677 dev_warn(ctrl->ctrl.device,
2678 "queue_size %zu > ctrl sqsize %u, clamping down\n",
2679 opts->queue_size, ctrl->ctrl.sqsize + 1);
2680 opts->queue_size = ctrl->ctrl.sqsize + 1;
2681 }
2682
61bff8ef
JS
2683 ret = nvme_fc_init_aen_ops(ctrl);
2684 if (ret)
2685 goto out_term_aen_ops;
2686
2687 /*
2688 * Create the io queues
2689 */
2690
d858e5f0 2691 if (ctrl->ctrl.queue_count > 1) {
61bff8ef
JS
2692 if (ctrl->ctrl.state == NVME_CTRL_NEW)
2693 ret = nvme_fc_create_io_queues(ctrl);
2694 else
2695 ret = nvme_fc_reinit_io_queues(ctrl);
2696 if (ret)
2697 goto out_term_aen_ops;
2698 }
2699
2700 changed = nvme_change_ctrl_state(&ctrl->ctrl, NVME_CTRL_LIVE);
61bff8ef 2701
fdf9dfa8 2702 ctrl->ctrl.nr_reconnects = 0;
61bff8ef 2703
44c6ec77
JS
2704 if (changed)
2705 nvme_start_ctrl(&ctrl->ctrl);
61bff8ef
JS
2706
2707 return 0; /* Success */
2708
2709out_term_aen_ops:
2710 nvme_fc_term_aen_ops(ctrl);
61bff8ef
JS
2711out_disconnect_admin_queue:
2712 /* send a Disconnect(association) LS to fc-nvme target */
2713 nvme_fc_xmt_disconnect_assoc(ctrl);
2714out_delete_hw_queue:
2715 __nvme_fc_delete_hw_queue(ctrl, &ctrl->queues[0], 0);
2716out_free_queue:
2717 nvme_fc_free_queue(&ctrl->queues[0]);
158bfb88
JS
2718 ctrl->assoc_active = false;
2719 nvme_fc_ctlr_inactive_on_rport(ctrl);
e399441d
JS
2720
2721 return ret;
2722}
2723
61bff8ef
JS
2724/*
2725 * This routine stops operation of the controller on the host side.
2726 * On the host os stack side: Admin and IO queues are stopped,
2727 * outstanding ios on them terminated via FC ABTS.
2728 * On the link side: the association is terminated.
2729 */
2730static void
2731nvme_fc_delete_association(struct nvme_fc_ctrl *ctrl)
2732{
2733 unsigned long flags;
2734
158bfb88
JS
2735 if (!ctrl->assoc_active)
2736 return;
2737 ctrl->assoc_active = false;
2738
61bff8ef
JS
2739 spin_lock_irqsave(&ctrl->lock, flags);
2740 ctrl->flags |= FCCTRL_TERMIO;
2741 ctrl->iocnt = 0;
2742 spin_unlock_irqrestore(&ctrl->lock, flags);
2743
2744 /*
2745 * If io queues are present, stop them and terminate all outstanding
2746 * ios on them. As FC allocates FC exchange for each io, the
2747 * transport must contact the LLDD to terminate the exchange,
2748 * thus releasing the FC exchange. We use blk_mq_tagset_busy_itr()
2749 * to tell us what io's are busy and invoke a transport routine
2750 * to kill them with the LLDD. After terminating the exchange
2751 * the LLDD will call the transport's normal io done path, but it
2752 * will have an aborted status. The done path will return the
2753 * io requests back to the block layer as part of normal completions
2754 * (but with error status).
2755 */
d858e5f0 2756 if (ctrl->ctrl.queue_count > 1) {
61bff8ef
JS
2757 nvme_stop_queues(&ctrl->ctrl);
2758 blk_mq_tagset_busy_iter(&ctrl->tag_set,
2759 nvme_fc_terminate_exchange, &ctrl->ctrl);
2760 }
2761
2762 /*
2763 * Other transports, which don't have link-level contexts bound
2764 * to sqe's, would try to gracefully shutdown the controller by
2765 * writing the registers for shutdown and polling (call
2766 * nvme_shutdown_ctrl()). Given a bunch of i/o was potentially
2767 * just aborted and we will wait on those contexts, and given
2768 * there was no indication of how live the controlelr is on the
2769 * link, don't send more io to create more contexts for the
2770 * shutdown. Let the controller fail via keepalive failure if
2771 * its still present.
2772 */
2773
2774 /*
2775 * clean up the admin queue. Same thing as above.
2776 * use blk_mq_tagset_busy_itr() and the transport routine to
2777 * terminate the exchanges.
2778 */
44c6ec77
JS
2779 if (ctrl->ctrl.state != NVME_CTRL_NEW)
2780 blk_mq_quiesce_queue(ctrl->ctrl.admin_q);
61bff8ef
JS
2781 blk_mq_tagset_busy_iter(&ctrl->admin_tag_set,
2782 nvme_fc_terminate_exchange, &ctrl->ctrl);
2783
2784 /* kill the aens as they are a separate path */
2785 nvme_fc_abort_aen_ops(ctrl);
2786
2787 /* wait for all io that had to be aborted */
8a82dbf1 2788 spin_lock_irq(&ctrl->lock);
36715cf4 2789 wait_event_lock_irq(ctrl->ioabort_wait, ctrl->iocnt == 0, ctrl->lock);
61bff8ef 2790 ctrl->flags &= ~FCCTRL_TERMIO;
8a82dbf1 2791 spin_unlock_irq(&ctrl->lock);
61bff8ef
JS
2792
2793 nvme_fc_term_aen_ops(ctrl);
2794
2795 /*
2796 * send a Disconnect(association) LS to fc-nvme target
2797 * Note: could have been sent at top of process, but
2798 * cleaner on link traffic if after the aborts complete.
2799 * Note: if association doesn't exist, association_id will be 0
2800 */
2801 if (ctrl->association_id)
2802 nvme_fc_xmt_disconnect_assoc(ctrl);
2803
2804 if (ctrl->ctrl.tagset) {
2805 nvme_fc_delete_hw_io_queues(ctrl);
2806 nvme_fc_free_io_queues(ctrl);
2807 }
2808
2809 __nvme_fc_delete_hw_queue(ctrl, &ctrl->queues[0], 0);
2810 nvme_fc_free_queue(&ctrl->queues[0]);
158bfb88 2811
d625d05e
JS
2812 /* re-enable the admin_q so anything new can fast fail */
2813 blk_mq_unquiesce_queue(ctrl->ctrl.admin_q);
2814
158bfb88 2815 nvme_fc_ctlr_inactive_on_rport(ctrl);
61bff8ef
JS
2816}
2817
2818static void
c5017e85 2819nvme_fc_delete_ctrl(struct nvme_ctrl *nctrl)
61bff8ef 2820{
c5017e85 2821 struct nvme_fc_ctrl *ctrl = to_fc_ctrl(nctrl);
61bff8ef 2822
61bff8ef 2823 cancel_delayed_work_sync(&ctrl->connect_work);
61bff8ef
JS
2824 /*
2825 * kill the association on the link side. this will block
2826 * waiting for io to terminate
2827 */
2828 nvme_fc_delete_association(ctrl);
0fd997d3
JS
2829
2830 /* resume the io queues so that things will fast fail */
2831 nvme_start_queues(nctrl);
61bff8ef
JS
2832}
2833
5bbecdbc
JS
2834static void
2835nvme_fc_reconnect_or_delete(struct nvme_fc_ctrl *ctrl, int status)
2836{
2b632970
JS
2837 struct nvme_fc_rport *rport = ctrl->rport;
2838 struct nvme_fc_remote_port *portptr = &rport->remoteport;
2839 unsigned long recon_delay = ctrl->ctrl.opts->reconnect_delay * HZ;
2840 bool recon = true;
5bbecdbc 2841
ad6a0a52 2842 if (ctrl->ctrl.state != NVME_CTRL_CONNECTING)
5bbecdbc 2843 return;
5bbecdbc 2844
2b632970 2845 if (portptr->port_state == FC_OBJSTATE_ONLINE)
5bbecdbc 2846 dev_info(ctrl->ctrl.device,
2b632970
JS
2847 "NVME-FC{%d}: reset: Reconnect attempt failed (%d)\n",
2848 ctrl->cnum, status);
2849 else if (time_after_eq(jiffies, rport->dev_loss_end))
2850 recon = false;
5bbecdbc 2851
2b632970
JS
2852 if (recon && nvmf_should_reconnect(&ctrl->ctrl)) {
2853 if (portptr->port_state == FC_OBJSTATE_ONLINE)
2854 dev_info(ctrl->ctrl.device,
2855 "NVME-FC{%d}: Reconnect attempt in %ld "
2856 "seconds\n",
2857 ctrl->cnum, recon_delay / HZ);
2858 else if (time_after(jiffies + recon_delay, rport->dev_loss_end))
2859 recon_delay = rport->dev_loss_end - jiffies;
96e24801 2860
2b632970 2861 queue_delayed_work(nvme_wq, &ctrl->connect_work, recon_delay);
5bbecdbc 2862 } else {
2b632970
JS
2863 if (portptr->port_state == FC_OBJSTATE_ONLINE)
2864 dev_warn(ctrl->ctrl.device,
5bbecdbc 2865 "NVME-FC{%d}: Max reconnect attempts (%d) "
77d0612d 2866 "reached.\n",
fdf9dfa8 2867 ctrl->cnum, ctrl->ctrl.nr_reconnects);
2b632970
JS
2868 else
2869 dev_warn(ctrl->ctrl.device,
2870 "NVME-FC{%d}: dev_loss_tmo (%d) expired "
77d0612d
MG
2871 "while waiting for remoteport connectivity.\n",
2872 ctrl->cnum, portptr->dev_loss_tmo);
c5017e85 2873 WARN_ON(nvme_delete_ctrl(&ctrl->ctrl));
5bbecdbc
JS
2874 }
2875}
2876
61bff8ef
JS
2877static void
2878nvme_fc_reset_ctrl_work(struct work_struct *work)
2879{
2880 struct nvme_fc_ctrl *ctrl =
d86c4d8e 2881 container_of(work, struct nvme_fc_ctrl, ctrl.reset_work);
61bff8ef
JS
2882 int ret;
2883
d09f2b45 2884 nvme_stop_ctrl(&ctrl->ctrl);
44c6ec77 2885
61bff8ef
JS
2886 /* will block will waiting for io to terminate */
2887 nvme_fc_delete_association(ctrl);
2888
ad6a0a52 2889 if (!nvme_change_ctrl_state(&ctrl->ctrl, NVME_CTRL_CONNECTING)) {
44c6ec77
JS
2890 dev_err(ctrl->ctrl.device,
2891 "NVME-FC{%d}: error_recovery: Couldn't change state "
ad6a0a52 2892 "to CONNECTING\n", ctrl->cnum);
44c6ec77
JS
2893 return;
2894 }
2895
2b632970 2896 if (ctrl->rport->remoteport.port_state == FC_OBJSTATE_ONLINE)
96e24801 2897 ret = nvme_fc_create_association(ctrl);
2b632970
JS
2898 else
2899 ret = -ENOTCONN;
2900
5bbecdbc
JS
2901 if (ret)
2902 nvme_fc_reconnect_or_delete(ctrl, ret);
2903 else
61bff8ef 2904 dev_info(ctrl->ctrl.device,
2b632970
JS
2905 "NVME-FC{%d}: controller reset complete\n",
2906 ctrl->cnum);
61bff8ef
JS
2907}
2908
61bff8ef
JS
2909static const struct nvme_ctrl_ops nvme_fc_ctrl_ops = {
2910 .name = "fc",
2911 .module = THIS_MODULE,
d3d5b87d 2912 .flags = NVME_F_FABRICS,
61bff8ef
JS
2913 .reg_read32 = nvmf_reg_read32,
2914 .reg_read64 = nvmf_reg_read64,
2915 .reg_write32 = nvmf_reg_write32,
61bff8ef
JS
2916 .free_ctrl = nvme_fc_nvme_ctrl_freed,
2917 .submit_async_event = nvme_fc_submit_async_event,
c5017e85 2918 .delete_ctrl = nvme_fc_delete_ctrl,
61bff8ef 2919 .get_address = nvmf_get_address,
31b84460 2920 .reinit_request = nvme_fc_reinit_request,
61bff8ef
JS
2921};
2922
2923static void
2924nvme_fc_connect_ctrl_work(struct work_struct *work)
2925{
2926 int ret;
2927
2928 struct nvme_fc_ctrl *ctrl =
2929 container_of(to_delayed_work(work),
2930 struct nvme_fc_ctrl, connect_work);
2931
2932 ret = nvme_fc_create_association(ctrl);
5bbecdbc
JS
2933 if (ret)
2934 nvme_fc_reconnect_or_delete(ctrl, ret);
2935 else
61bff8ef
JS
2936 dev_info(ctrl->ctrl.device,
2937 "NVME-FC{%d}: controller reconnect complete\n",
2938 ctrl->cnum);
2939}
2940
2941
2942static const struct blk_mq_ops nvme_fc_admin_mq_ops = {
2943 .queue_rq = nvme_fc_queue_rq,
2944 .complete = nvme_fc_complete_rq,
76f983cb 2945 .init_request = nvme_fc_init_request,
61bff8ef 2946 .exit_request = nvme_fc_exit_request,
61bff8ef
JS
2947 .init_hctx = nvme_fc_init_admin_hctx,
2948 .timeout = nvme_fc_timeout,
2949};
2950
e399441d 2951
56d5f4f1
JS
2952/*
2953 * Fails a controller request if it matches an existing controller
2954 * (association) with the same tuple:
2955 * <Host NQN, Host ID, local FC port, remote FC port, SUBSYS NQN>
2956 *
2957 * The ports don't need to be compared as they are intrinsically
2958 * already matched by the port pointers supplied.
2959 */
2960static bool
2961nvme_fc_existing_controller(struct nvme_fc_rport *rport,
2962 struct nvmf_ctrl_options *opts)
2963{
2964 struct nvme_fc_ctrl *ctrl;
2965 unsigned long flags;
2966 bool found = false;
2967
2968 spin_lock_irqsave(&rport->lock, flags);
2969 list_for_each_entry(ctrl, &rport->ctrl_list, ctrl_list) {
2970 found = nvmf_ctlr_matches_baseopts(&ctrl->ctrl, opts);
2971 if (found)
2972 break;
2973 }
2974 spin_unlock_irqrestore(&rport->lock, flags);
2975
2976 return found;
2977}
2978
e399441d 2979static struct nvme_ctrl *
61bff8ef 2980nvme_fc_init_ctrl(struct device *dev, struct nvmf_ctrl_options *opts,
e399441d
JS
2981 struct nvme_fc_lport *lport, struct nvme_fc_rport *rport)
2982{
2983 struct nvme_fc_ctrl *ctrl;
2984 unsigned long flags;
17c4dc6e 2985 int ret, idx, retry;
e399441d 2986
85e6a6ad
JS
2987 if (!(rport->remoteport.port_role &
2988 (FC_PORT_ROLE_NVME_DISCOVERY | FC_PORT_ROLE_NVME_TARGET))) {
2989 ret = -EBADR;
2990 goto out_fail;
2991 }
2992
56d5f4f1
JS
2993 if (!opts->duplicate_connect &&
2994 nvme_fc_existing_controller(rport, opts)) {
2995 ret = -EALREADY;
2996 goto out_fail;
2997 }
2998
e399441d
JS
2999 ctrl = kzalloc(sizeof(*ctrl), GFP_KERNEL);
3000 if (!ctrl) {
3001 ret = -ENOMEM;
3002 goto out_fail;
3003 }
3004
3005 idx = ida_simple_get(&nvme_fc_ctrl_cnt, 0, 0, GFP_KERNEL);
3006 if (idx < 0) {
3007 ret = -ENOSPC;
3008 goto out_free_ctrl;
3009 }
3010
3011 ctrl->ctrl.opts = opts;
3012 INIT_LIST_HEAD(&ctrl->ctrl_list);
e399441d
JS
3013 ctrl->lport = lport;
3014 ctrl->rport = rport;
3015 ctrl->dev = lport->dev;
e399441d 3016 ctrl->cnum = idx;
158bfb88 3017 ctrl->assoc_active = false;
8a82dbf1 3018 init_waitqueue_head(&ctrl->ioabort_wait);
e399441d 3019
e399441d
JS
3020 get_device(ctrl->dev);
3021 kref_init(&ctrl->ref);
3022
d86c4d8e 3023 INIT_WORK(&ctrl->ctrl.reset_work, nvme_fc_reset_ctrl_work);
61bff8ef 3024 INIT_DELAYED_WORK(&ctrl->connect_work, nvme_fc_connect_ctrl_work);
e399441d
JS
3025 spin_lock_init(&ctrl->lock);
3026
3027 /* io queue count */
d858e5f0 3028 ctrl->ctrl.queue_count = min_t(unsigned int,
e399441d
JS
3029 opts->nr_io_queues,
3030 lport->ops->max_hw_queues);
d858e5f0 3031 ctrl->ctrl.queue_count++; /* +1 for admin queue */
e399441d
JS
3032
3033 ctrl->ctrl.sqsize = opts->queue_size - 1;
3034 ctrl->ctrl.kato = opts->kato;
3035
3036 ret = -ENOMEM;
d858e5f0
SG
3037 ctrl->queues = kcalloc(ctrl->ctrl.queue_count,
3038 sizeof(struct nvme_fc_queue), GFP_KERNEL);
e399441d 3039 if (!ctrl->queues)
61bff8ef 3040 goto out_free_ida;
e399441d 3041
61bff8ef
JS
3042 memset(&ctrl->admin_tag_set, 0, sizeof(ctrl->admin_tag_set));
3043 ctrl->admin_tag_set.ops = &nvme_fc_admin_mq_ops;
38dabe21 3044 ctrl->admin_tag_set.queue_depth = NVME_AQ_MQ_TAG_DEPTH;
61bff8ef
JS
3045 ctrl->admin_tag_set.reserved_tags = 2; /* fabric connect + Keep-Alive */
3046 ctrl->admin_tag_set.numa_node = NUMA_NO_NODE;
3047 ctrl->admin_tag_set.cmd_size = sizeof(struct nvme_fc_fcp_op) +
3048 (SG_CHUNK_SIZE *
3049 sizeof(struct scatterlist)) +
3050 ctrl->lport->ops->fcprqst_priv_sz;
3051 ctrl->admin_tag_set.driver_data = ctrl;
3052 ctrl->admin_tag_set.nr_hw_queues = 1;
3053 ctrl->admin_tag_set.timeout = ADMIN_TIMEOUT;
5a22e2bf 3054 ctrl->admin_tag_set.flags = BLK_MQ_F_NO_SCHED;
e399441d 3055
61bff8ef 3056 ret = blk_mq_alloc_tag_set(&ctrl->admin_tag_set);
e399441d 3057 if (ret)
61bff8ef 3058 goto out_free_queues;
34b6c231 3059 ctrl->ctrl.admin_tagset = &ctrl->admin_tag_set;
e399441d 3060
61bff8ef
JS
3061 ctrl->ctrl.admin_q = blk_mq_init_queue(&ctrl->admin_tag_set);
3062 if (IS_ERR(ctrl->ctrl.admin_q)) {
3063 ret = PTR_ERR(ctrl->ctrl.admin_q);
3064 goto out_free_admin_tag_set;
e399441d
JS
3065 }
3066
61bff8ef
JS
3067 /*
3068 * Would have been nice to init io queues tag set as well.
3069 * However, we require interaction from the controller
3070 * for max io queue count before we can do so.
3071 * Defer this to the connect path.
3072 */
e399441d 3073
61bff8ef
JS
3074 ret = nvme_init_ctrl(&ctrl->ctrl, dev, &nvme_fc_ctrl_ops, 0);
3075 if (ret)
3076 goto out_cleanup_admin_q;
e399441d 3077
61bff8ef 3078 /* at this point, teardown path changes to ref counting on nvme ctrl */
e399441d
JS
3079
3080 spin_lock_irqsave(&rport->lock, flags);
3081 list_add_tail(&ctrl->ctrl_list, &rport->ctrl_list);
3082 spin_unlock_irqrestore(&rport->lock, flags);
3083
17c4dc6e
JS
3084 /*
3085 * It's possible that transactions used to create the association
3086 * may fail. Examples: CreateAssociation LS or CreateIOConnection
3087 * LS gets dropped/corrupted/fails; or a frame gets dropped or a
3088 * command times out for one of the actions to init the controller
3089 * (Connect, Get/Set_Property, Set_Features, etc). Many of these
3090 * transport errors (frame drop, LS failure) inherently must kill
3091 * the association. The transport is coded so that any command used
3092 * to create the association (prior to a LIVE state transition
ad6a0a52 3093 * while NEW or CONNECTING) will fail if it completes in error or
17c4dc6e
JS
3094 * times out.
3095 *
3096 * As such: as the connect request was mostly likely due to a
3097 * udev event that discovered the remote port, meaning there is
3098 * not an admin or script there to restart if the connect
3099 * request fails, retry the initial connection creation up to
3100 * three times before giving up and declaring failure.
3101 */
3102 for (retry = 0; retry < 3; retry++) {
3103 ret = nvme_fc_create_association(ctrl);
3104 if (!ret)
3105 break;
3106 }
3107
61bff8ef 3108 if (ret) {
cf25809b
JS
3109 nvme_change_ctrl_state(&ctrl->ctrl, NVME_CTRL_DELETING);
3110 cancel_work_sync(&ctrl->ctrl.reset_work);
3111 cancel_delayed_work_sync(&ctrl->connect_work);
3112
17c4dc6e
JS
3113 /* couldn't schedule retry - fail out */
3114 dev_err(ctrl->ctrl.device,
3115 "NVME-FC{%d}: Connect retry failed\n", ctrl->cnum);
3116
de41447a 3117 ctrl->ctrl.opts = NULL;
17c4dc6e 3118
61bff8ef
JS
3119 /* initiate nvme ctrl ref counting teardown */
3120 nvme_uninit_ctrl(&ctrl->ctrl);
61bff8ef 3121
0b5a7669
JS
3122 /* Remove core ctrl ref. */
3123 nvme_put_ctrl(&ctrl->ctrl);
3124
61bff8ef
JS
3125 /* as we're past the point where we transition to the ref
3126 * counting teardown path, if we return a bad pointer here,
3127 * the calling routine, thinking it's prior to the
3128 * transition, will do an rport put. Since the teardown
3129 * path also does a rport put, we do an extra get here to
3130 * so proper order/teardown happens.
3131 */
3132 nvme_fc_rport_get(rport);
3133
3134 if (ret > 0)
3135 ret = -EIO;
3136 return ERR_PTR(ret);
e399441d
JS
3137 }
3138
d22524a4 3139 nvme_get_ctrl(&ctrl->ctrl);
2cb657bc 3140
61bff8ef
JS
3141 dev_info(ctrl->ctrl.device,
3142 "NVME-FC{%d}: new ctrl: NQN \"%s\"\n",
3143 ctrl->cnum, ctrl->ctrl.opts->subsysnqn);
e399441d 3144
61bff8ef 3145 return &ctrl->ctrl;
e399441d 3146
61bff8ef
JS
3147out_cleanup_admin_q:
3148 blk_cleanup_queue(ctrl->ctrl.admin_q);
3149out_free_admin_tag_set:
3150 blk_mq_free_tag_set(&ctrl->admin_tag_set);
3151out_free_queues:
3152 kfree(ctrl->queues);
e399441d 3153out_free_ida:
61bff8ef 3154 put_device(ctrl->dev);
e399441d
JS
3155 ida_simple_remove(&nvme_fc_ctrl_cnt, ctrl->cnum);
3156out_free_ctrl:
3157 kfree(ctrl);
3158out_fail:
e399441d
JS
3159 /* exit via here doesn't follow ctlr ref points */
3160 return ERR_PTR(ret);
3161}
3162
e399441d
JS
3163
3164struct nvmet_fc_traddr {
3165 u64 nn;
3166 u64 pn;
3167};
3168
e399441d 3169static int
9c5358e1 3170__nvme_fc_parse_u64(substring_t *sstr, u64 *val)
e399441d 3171{
e399441d
JS
3172 u64 token64;
3173
9c5358e1
JS
3174 if (match_u64(sstr, &token64))
3175 return -EINVAL;
3176 *val = token64;
e399441d 3177
9c5358e1
JS
3178 return 0;
3179}
e399441d 3180
9c5358e1
JS
3181/*
3182 * This routine validates and extracts the WWN's from the TRADDR string.
3183 * As kernel parsers need the 0x to determine number base, universally
3184 * build string to parse with 0x prefix before parsing name strings.
3185 */
3186static int
3187nvme_fc_parse_traddr(struct nvmet_fc_traddr *traddr, char *buf, size_t blen)
3188{
3189 char name[2 + NVME_FC_TRADDR_HEXNAMELEN + 1];
3190 substring_t wwn = { name, &name[sizeof(name)-1] };
3191 int nnoffset, pnoffset;
3192
3193 /* validate it string one of the 2 allowed formats */
3194 if (strnlen(buf, blen) == NVME_FC_TRADDR_MAXLENGTH &&
3195 !strncmp(buf, "nn-0x", NVME_FC_TRADDR_OXNNLEN) &&
3196 !strncmp(&buf[NVME_FC_TRADDR_MAX_PN_OFFSET],
3197 "pn-0x", NVME_FC_TRADDR_OXNNLEN)) {
3198 nnoffset = NVME_FC_TRADDR_OXNNLEN;
3199 pnoffset = NVME_FC_TRADDR_MAX_PN_OFFSET +
3200 NVME_FC_TRADDR_OXNNLEN;
3201 } else if ((strnlen(buf, blen) == NVME_FC_TRADDR_MINLENGTH &&
3202 !strncmp(buf, "nn-", NVME_FC_TRADDR_NNLEN) &&
3203 !strncmp(&buf[NVME_FC_TRADDR_MIN_PN_OFFSET],
3204 "pn-", NVME_FC_TRADDR_NNLEN))) {
3205 nnoffset = NVME_FC_TRADDR_NNLEN;
3206 pnoffset = NVME_FC_TRADDR_MIN_PN_OFFSET + NVME_FC_TRADDR_NNLEN;
3207 } else
3208 goto out_einval;
e399441d 3209
9c5358e1
JS
3210 name[0] = '0';
3211 name[1] = 'x';
3212 name[2 + NVME_FC_TRADDR_HEXNAMELEN] = 0;
3213
3214 memcpy(&name[2], &buf[nnoffset], NVME_FC_TRADDR_HEXNAMELEN);
3215 if (__nvme_fc_parse_u64(&wwn, &traddr->nn))
3216 goto out_einval;
3217
3218 memcpy(&name[2], &buf[pnoffset], NVME_FC_TRADDR_HEXNAMELEN);
3219 if (__nvme_fc_parse_u64(&wwn, &traddr->pn))
3220 goto out_einval;
3221
3222 return 0;
3223
3224out_einval:
3225 pr_warn("%s: bad traddr string\n", __func__);
3226 return -EINVAL;
e399441d
JS
3227}
3228
3229static struct nvme_ctrl *
3230nvme_fc_create_ctrl(struct device *dev, struct nvmf_ctrl_options *opts)
3231{
3232 struct nvme_fc_lport *lport;
3233 struct nvme_fc_rport *rport;
61bff8ef 3234 struct nvme_ctrl *ctrl;
e399441d
JS
3235 struct nvmet_fc_traddr laddr = { 0L, 0L };
3236 struct nvmet_fc_traddr raddr = { 0L, 0L };
3237 unsigned long flags;
3238 int ret;
3239
9c5358e1 3240 ret = nvme_fc_parse_traddr(&raddr, opts->traddr, NVMF_TRADDR_SIZE);
e399441d
JS
3241 if (ret || !raddr.nn || !raddr.pn)
3242 return ERR_PTR(-EINVAL);
3243
9c5358e1 3244 ret = nvme_fc_parse_traddr(&laddr, opts->host_traddr, NVMF_TRADDR_SIZE);
e399441d
JS
3245 if (ret || !laddr.nn || !laddr.pn)
3246 return ERR_PTR(-EINVAL);
3247
3248 /* find the host and remote ports to connect together */
3249 spin_lock_irqsave(&nvme_fc_lock, flags);
3250 list_for_each_entry(lport, &nvme_fc_lport_list, port_list) {
3251 if (lport->localport.node_name != laddr.nn ||
3252 lport->localport.port_name != laddr.pn)
3253 continue;
3254
3255 list_for_each_entry(rport, &lport->endp_list, endp_list) {
3256 if (rport->remoteport.node_name != raddr.nn ||
3257 rport->remoteport.port_name != raddr.pn)
3258 continue;
3259
3260 /* if fail to get reference fall through. Will error */
3261 if (!nvme_fc_rport_get(rport))
3262 break;
3263
3264 spin_unlock_irqrestore(&nvme_fc_lock, flags);
3265
61bff8ef
JS
3266 ctrl = nvme_fc_init_ctrl(dev, opts, lport, rport);
3267 if (IS_ERR(ctrl))
3268 nvme_fc_rport_put(rport);
3269 return ctrl;
e399441d
JS
3270 }
3271 }
3272 spin_unlock_irqrestore(&nvme_fc_lock, flags);
3273
4fb135ad
JT
3274 pr_warn("%s: %s - %s combination not found\n",
3275 __func__, opts->traddr, opts->host_traddr);
e399441d
JS
3276 return ERR_PTR(-ENOENT);
3277}
3278
3279
3280static struct nvmf_transport_ops nvme_fc_transport = {
3281 .name = "fc",
0de5cd36 3282 .module = THIS_MODULE,
e399441d 3283 .required_opts = NVMF_OPT_TRADDR | NVMF_OPT_HOST_TRADDR,
5bbecdbc 3284 .allowed_opts = NVMF_OPT_RECONNECT_DELAY | NVMF_OPT_CTRL_LOSS_TMO,
e399441d
JS
3285 .create_ctrl = nvme_fc_create_ctrl,
3286};
3287
3288static int __init nvme_fc_init_module(void)
3289{
5f568556
JS
3290 int ret;
3291
3292 /*
3293 * NOTE:
3294 * It is expected that in the future the kernel will combine
3295 * the FC-isms that are currently under scsi and now being
3296 * added to by NVME into a new standalone FC class. The SCSI
3297 * and NVME protocols and their devices would be under this
3298 * new FC class.
3299 *
3300 * As we need something to post FC-specific udev events to,
3301 * specifically for nvme probe events, start by creating the
3302 * new device class. When the new standalone FC class is
3303 * put in place, this code will move to a more generic
3304 * location for the class.
3305 */
3306 fc_class = class_create(THIS_MODULE, "fc");
3307 if (IS_ERR(fc_class)) {
3308 pr_err("couldn't register class fc\n");
3309 return PTR_ERR(fc_class);
3310 }
3311
3312 /*
3313 * Create a device for the FC-centric udev events
3314 */
3315 fc_udev_device = device_create(fc_class, NULL, MKDEV(0, 0), NULL,
3316 "fc_udev_device");
3317 if (IS_ERR(fc_udev_device)) {
3318 pr_err("couldn't create fc_udev device!\n");
3319 ret = PTR_ERR(fc_udev_device);
3320 goto out_destroy_class;
3321 }
3322
3323 ret = nvmf_register_transport(&nvme_fc_transport);
3324 if (ret)
3325 goto out_destroy_device;
3326
3327 return 0;
3328
3329out_destroy_device:
3330 device_destroy(fc_class, MKDEV(0, 0));
3331out_destroy_class:
3332 class_destroy(fc_class);
3333 return ret;
e399441d
JS
3334}
3335
3336static void __exit nvme_fc_exit_module(void)
3337{
3338 /* sanity check - all lports should be removed */
3339 if (!list_empty(&nvme_fc_lport_list))
3340 pr_warn("%s: localport list not empty\n", __func__);
3341
3342 nvmf_unregister_transport(&nvme_fc_transport);
3343
e399441d
JS
3344 ida_destroy(&nvme_fc_local_port_cnt);
3345 ida_destroy(&nvme_fc_ctrl_cnt);
5f568556
JS
3346
3347 device_destroy(fc_class, MKDEV(0, 0));
3348 class_destroy(fc_class);
e399441d
JS
3349}
3350
3351module_init(nvme_fc_init_module);
3352module_exit(nvme_fc_exit_module);
3353
3354MODULE_LICENSE("GPL v2");