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ufs_truncate_blocks(): fix the case when size is in the last direct block
[karo-tx-linux.git] / drivers / nvme / target / core.c
1 /*
2  * Common code for the NVMe target.
3  * Copyright (c) 2015-2016 HGST, a Western Digital Company.
4  *
5  * This program is free software; you can redistribute it and/or modify it
6  * under the terms and conditions of the GNU General Public License,
7  * version 2, as published by the Free Software Foundation.
8  *
9  * This program is distributed in the hope it will be useful, but WITHOUT
10  * ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
11  * FITNESS FOR A PARTICULAR PURPOSE.  See the GNU General Public License for
12  * more details.
13  */
14 #define pr_fmt(fmt) KBUILD_MODNAME ": " fmt
15 #include <linux/module.h>
16 #include <linux/random.h>
17 #include <linux/rculist.h>
18
19 #include "nvmet.h"
20
21 static struct nvmet_fabrics_ops *nvmet_transports[NVMF_TRTYPE_MAX];
22 static DEFINE_IDA(cntlid_ida);
23
24 /*
25  * This read/write semaphore is used to synchronize access to configuration
26  * information on a target system that will result in discovery log page
27  * information change for at least one host.
28  * The full list of resources to protected by this semaphore is:
29  *
30  *  - subsystems list
31  *  - per-subsystem allowed hosts list
32  *  - allow_any_host subsystem attribute
33  *  - nvmet_genctr
34  *  - the nvmet_transports array
35  *
36  * When updating any of those lists/structures write lock should be obtained,
37  * while when reading (popolating discovery log page or checking host-subsystem
38  * link) read lock is obtained to allow concurrent reads.
39  */
40 DECLARE_RWSEM(nvmet_config_sem);
41
42 static struct nvmet_subsys *nvmet_find_get_subsys(struct nvmet_port *port,
43                 const char *subsysnqn);
44
45 u16 nvmet_copy_to_sgl(struct nvmet_req *req, off_t off, const void *buf,
46                 size_t len)
47 {
48         if (sg_pcopy_from_buffer(req->sg, req->sg_cnt, buf, len, off) != len)
49                 return NVME_SC_SGL_INVALID_DATA | NVME_SC_DNR;
50         return 0;
51 }
52
53 u16 nvmet_copy_from_sgl(struct nvmet_req *req, off_t off, void *buf, size_t len)
54 {
55         if (sg_pcopy_to_buffer(req->sg, req->sg_cnt, buf, len, off) != len)
56                 return NVME_SC_SGL_INVALID_DATA | NVME_SC_DNR;
57         return 0;
58 }
59
60 static u32 nvmet_async_event_result(struct nvmet_async_event *aen)
61 {
62         return aen->event_type | (aen->event_info << 8) | (aen->log_page << 16);
63 }
64
65 static void nvmet_async_events_free(struct nvmet_ctrl *ctrl)
66 {
67         struct nvmet_req *req;
68
69         while (1) {
70                 mutex_lock(&ctrl->lock);
71                 if (!ctrl->nr_async_event_cmds) {
72                         mutex_unlock(&ctrl->lock);
73                         return;
74                 }
75
76                 req = ctrl->async_event_cmds[--ctrl->nr_async_event_cmds];
77                 mutex_unlock(&ctrl->lock);
78                 nvmet_req_complete(req, NVME_SC_INTERNAL | NVME_SC_DNR);
79         }
80 }
81
82 static void nvmet_async_event_work(struct work_struct *work)
83 {
84         struct nvmet_ctrl *ctrl =
85                 container_of(work, struct nvmet_ctrl, async_event_work);
86         struct nvmet_async_event *aen;
87         struct nvmet_req *req;
88
89         while (1) {
90                 mutex_lock(&ctrl->lock);
91                 aen = list_first_entry_or_null(&ctrl->async_events,
92                                 struct nvmet_async_event, entry);
93                 if (!aen || !ctrl->nr_async_event_cmds) {
94                         mutex_unlock(&ctrl->lock);
95                         return;
96                 }
97
98                 req = ctrl->async_event_cmds[--ctrl->nr_async_event_cmds];
99                 nvmet_set_result(req, nvmet_async_event_result(aen));
100
101                 list_del(&aen->entry);
102                 kfree(aen);
103
104                 mutex_unlock(&ctrl->lock);
105                 nvmet_req_complete(req, 0);
106         }
107 }
108
109 static void nvmet_add_async_event(struct nvmet_ctrl *ctrl, u8 event_type,
110                 u8 event_info, u8 log_page)
111 {
112         struct nvmet_async_event *aen;
113
114         aen = kmalloc(sizeof(*aen), GFP_KERNEL);
115         if (!aen)
116                 return;
117
118         aen->event_type = event_type;
119         aen->event_info = event_info;
120         aen->log_page = log_page;
121
122         mutex_lock(&ctrl->lock);
123         list_add_tail(&aen->entry, &ctrl->async_events);
124         mutex_unlock(&ctrl->lock);
125
126         schedule_work(&ctrl->async_event_work);
127 }
128
129 int nvmet_register_transport(struct nvmet_fabrics_ops *ops)
130 {
131         int ret = 0;
132
133         down_write(&nvmet_config_sem);
134         if (nvmet_transports[ops->type])
135                 ret = -EINVAL;
136         else
137                 nvmet_transports[ops->type] = ops;
138         up_write(&nvmet_config_sem);
139
140         return ret;
141 }
142 EXPORT_SYMBOL_GPL(nvmet_register_transport);
143
144 void nvmet_unregister_transport(struct nvmet_fabrics_ops *ops)
145 {
146         down_write(&nvmet_config_sem);
147         nvmet_transports[ops->type] = NULL;
148         up_write(&nvmet_config_sem);
149 }
150 EXPORT_SYMBOL_GPL(nvmet_unregister_transport);
151
152 int nvmet_enable_port(struct nvmet_port *port)
153 {
154         struct nvmet_fabrics_ops *ops;
155         int ret;
156
157         lockdep_assert_held(&nvmet_config_sem);
158
159         ops = nvmet_transports[port->disc_addr.trtype];
160         if (!ops) {
161                 up_write(&nvmet_config_sem);
162                 request_module("nvmet-transport-%d", port->disc_addr.trtype);
163                 down_write(&nvmet_config_sem);
164                 ops = nvmet_transports[port->disc_addr.trtype];
165                 if (!ops) {
166                         pr_err("transport type %d not supported\n",
167                                 port->disc_addr.trtype);
168                         return -EINVAL;
169                 }
170         }
171
172         if (!try_module_get(ops->owner))
173                 return -EINVAL;
174
175         ret = ops->add_port(port);
176         if (ret) {
177                 module_put(ops->owner);
178                 return ret;
179         }
180
181         port->enabled = true;
182         return 0;
183 }
184
185 void nvmet_disable_port(struct nvmet_port *port)
186 {
187         struct nvmet_fabrics_ops *ops;
188
189         lockdep_assert_held(&nvmet_config_sem);
190
191         port->enabled = false;
192
193         ops = nvmet_transports[port->disc_addr.trtype];
194         ops->remove_port(port);
195         module_put(ops->owner);
196 }
197
198 static void nvmet_keep_alive_timer(struct work_struct *work)
199 {
200         struct nvmet_ctrl *ctrl = container_of(to_delayed_work(work),
201                         struct nvmet_ctrl, ka_work);
202
203         pr_err("ctrl %d keep-alive timer (%d seconds) expired!\n",
204                 ctrl->cntlid, ctrl->kato);
205
206         nvmet_ctrl_fatal_error(ctrl);
207 }
208
209 static void nvmet_start_keep_alive_timer(struct nvmet_ctrl *ctrl)
210 {
211         pr_debug("ctrl %d start keep-alive timer for %d secs\n",
212                 ctrl->cntlid, ctrl->kato);
213
214         INIT_DELAYED_WORK(&ctrl->ka_work, nvmet_keep_alive_timer);
215         schedule_delayed_work(&ctrl->ka_work, ctrl->kato * HZ);
216 }
217
218 static void nvmet_stop_keep_alive_timer(struct nvmet_ctrl *ctrl)
219 {
220         pr_debug("ctrl %d stop keep-alive\n", ctrl->cntlid);
221
222         cancel_delayed_work_sync(&ctrl->ka_work);
223 }
224
225 static struct nvmet_ns *__nvmet_find_namespace(struct nvmet_ctrl *ctrl,
226                 __le32 nsid)
227 {
228         struct nvmet_ns *ns;
229
230         list_for_each_entry_rcu(ns, &ctrl->subsys->namespaces, dev_link) {
231                 if (ns->nsid == le32_to_cpu(nsid))
232                         return ns;
233         }
234
235         return NULL;
236 }
237
238 struct nvmet_ns *nvmet_find_namespace(struct nvmet_ctrl *ctrl, __le32 nsid)
239 {
240         struct nvmet_ns *ns;
241
242         rcu_read_lock();
243         ns = __nvmet_find_namespace(ctrl, nsid);
244         if (ns)
245                 percpu_ref_get(&ns->ref);
246         rcu_read_unlock();
247
248         return ns;
249 }
250
251 static void nvmet_destroy_namespace(struct percpu_ref *ref)
252 {
253         struct nvmet_ns *ns = container_of(ref, struct nvmet_ns, ref);
254
255         complete(&ns->disable_done);
256 }
257
258 void nvmet_put_namespace(struct nvmet_ns *ns)
259 {
260         percpu_ref_put(&ns->ref);
261 }
262
263 int nvmet_ns_enable(struct nvmet_ns *ns)
264 {
265         struct nvmet_subsys *subsys = ns->subsys;
266         struct nvmet_ctrl *ctrl;
267         int ret = 0;
268
269         mutex_lock(&subsys->lock);
270         if (ns->enabled)
271                 goto out_unlock;
272
273         ns->bdev = blkdev_get_by_path(ns->device_path, FMODE_READ | FMODE_WRITE,
274                         NULL);
275         if (IS_ERR(ns->bdev)) {
276                 pr_err("failed to open block device %s: (%ld)\n",
277                        ns->device_path, PTR_ERR(ns->bdev));
278                 ret = PTR_ERR(ns->bdev);
279                 ns->bdev = NULL;
280                 goto out_unlock;
281         }
282
283         ns->size = i_size_read(ns->bdev->bd_inode);
284         ns->blksize_shift = blksize_bits(bdev_logical_block_size(ns->bdev));
285
286         ret = percpu_ref_init(&ns->ref, nvmet_destroy_namespace,
287                                 0, GFP_KERNEL);
288         if (ret)
289                 goto out_blkdev_put;
290
291         if (ns->nsid > subsys->max_nsid)
292                 subsys->max_nsid = ns->nsid;
293
294         /*
295          * The namespaces list needs to be sorted to simplify the implementation
296          * of the Identify Namepace List subcommand.
297          */
298         if (list_empty(&subsys->namespaces)) {
299                 list_add_tail_rcu(&ns->dev_link, &subsys->namespaces);
300         } else {
301                 struct nvmet_ns *old;
302
303                 list_for_each_entry_rcu(old, &subsys->namespaces, dev_link) {
304                         BUG_ON(ns->nsid == old->nsid);
305                         if (ns->nsid < old->nsid)
306                                 break;
307                 }
308
309                 list_add_tail_rcu(&ns->dev_link, &old->dev_link);
310         }
311
312         list_for_each_entry(ctrl, &subsys->ctrls, subsys_entry)
313                 nvmet_add_async_event(ctrl, NVME_AER_TYPE_NOTICE, 0, 0);
314
315         ns->enabled = true;
316         ret = 0;
317 out_unlock:
318         mutex_unlock(&subsys->lock);
319         return ret;
320 out_blkdev_put:
321         blkdev_put(ns->bdev, FMODE_WRITE|FMODE_READ);
322         ns->bdev = NULL;
323         goto out_unlock;
324 }
325
326 void nvmet_ns_disable(struct nvmet_ns *ns)
327 {
328         struct nvmet_subsys *subsys = ns->subsys;
329         struct nvmet_ctrl *ctrl;
330
331         mutex_lock(&subsys->lock);
332         if (!ns->enabled)
333                 goto out_unlock;
334
335         ns->enabled = false;
336         list_del_rcu(&ns->dev_link);
337         mutex_unlock(&subsys->lock);
338
339         /*
340          * Now that we removed the namespaces from the lookup list, we
341          * can kill the per_cpu ref and wait for any remaining references
342          * to be dropped, as well as a RCU grace period for anyone only
343          * using the namepace under rcu_read_lock().  Note that we can't
344          * use call_rcu here as we need to ensure the namespaces have
345          * been fully destroyed before unloading the module.
346          */
347         percpu_ref_kill(&ns->ref);
348         synchronize_rcu();
349         wait_for_completion(&ns->disable_done);
350         percpu_ref_exit(&ns->ref);
351
352         mutex_lock(&subsys->lock);
353         list_for_each_entry(ctrl, &subsys->ctrls, subsys_entry)
354                 nvmet_add_async_event(ctrl, NVME_AER_TYPE_NOTICE, 0, 0);
355
356         if (ns->bdev)
357                 blkdev_put(ns->bdev, FMODE_WRITE|FMODE_READ);
358 out_unlock:
359         mutex_unlock(&subsys->lock);
360 }
361
362 void nvmet_ns_free(struct nvmet_ns *ns)
363 {
364         nvmet_ns_disable(ns);
365
366         kfree(ns->device_path);
367         kfree(ns);
368 }
369
370 struct nvmet_ns *nvmet_ns_alloc(struct nvmet_subsys *subsys, u32 nsid)
371 {
372         struct nvmet_ns *ns;
373
374         ns = kzalloc(sizeof(*ns), GFP_KERNEL);
375         if (!ns)
376                 return NULL;
377
378         INIT_LIST_HEAD(&ns->dev_link);
379         init_completion(&ns->disable_done);
380
381         ns->nsid = nsid;
382         ns->subsys = subsys;
383
384         return ns;
385 }
386
387 static void __nvmet_req_complete(struct nvmet_req *req, u16 status)
388 {
389         if (status)
390                 nvmet_set_status(req, status);
391
392         /* XXX: need to fill in something useful for sq_head */
393         req->rsp->sq_head = 0;
394         if (likely(req->sq)) /* may happen during early failure */
395                 req->rsp->sq_id = cpu_to_le16(req->sq->qid);
396         req->rsp->command_id = req->cmd->common.command_id;
397
398         if (req->ns)
399                 nvmet_put_namespace(req->ns);
400         req->ops->queue_response(req);
401 }
402
403 void nvmet_req_complete(struct nvmet_req *req, u16 status)
404 {
405         __nvmet_req_complete(req, status);
406         percpu_ref_put(&req->sq->ref);
407 }
408 EXPORT_SYMBOL_GPL(nvmet_req_complete);
409
410 void nvmet_cq_setup(struct nvmet_ctrl *ctrl, struct nvmet_cq *cq,
411                 u16 qid, u16 size)
412 {
413         cq->qid = qid;
414         cq->size = size;
415
416         ctrl->cqs[qid] = cq;
417 }
418
419 void nvmet_sq_setup(struct nvmet_ctrl *ctrl, struct nvmet_sq *sq,
420                 u16 qid, u16 size)
421 {
422         sq->qid = qid;
423         sq->size = size;
424
425         ctrl->sqs[qid] = sq;
426 }
427
428 static void nvmet_confirm_sq(struct percpu_ref *ref)
429 {
430         struct nvmet_sq *sq = container_of(ref, struct nvmet_sq, ref);
431
432         complete(&sq->confirm_done);
433 }
434
435 void nvmet_sq_destroy(struct nvmet_sq *sq)
436 {
437         /*
438          * If this is the admin queue, complete all AERs so that our
439          * queue doesn't have outstanding requests on it.
440          */
441         if (sq->ctrl && sq->ctrl->sqs && sq->ctrl->sqs[0] == sq)
442                 nvmet_async_events_free(sq->ctrl);
443         percpu_ref_kill_and_confirm(&sq->ref, nvmet_confirm_sq);
444         wait_for_completion(&sq->confirm_done);
445         wait_for_completion(&sq->free_done);
446         percpu_ref_exit(&sq->ref);
447
448         if (sq->ctrl) {
449                 nvmet_ctrl_put(sq->ctrl);
450                 sq->ctrl = NULL; /* allows reusing the queue later */
451         }
452 }
453 EXPORT_SYMBOL_GPL(nvmet_sq_destroy);
454
455 static void nvmet_sq_free(struct percpu_ref *ref)
456 {
457         struct nvmet_sq *sq = container_of(ref, struct nvmet_sq, ref);
458
459         complete(&sq->free_done);
460 }
461
462 int nvmet_sq_init(struct nvmet_sq *sq)
463 {
464         int ret;
465
466         ret = percpu_ref_init(&sq->ref, nvmet_sq_free, 0, GFP_KERNEL);
467         if (ret) {
468                 pr_err("percpu_ref init failed!\n");
469                 return ret;
470         }
471         init_completion(&sq->free_done);
472         init_completion(&sq->confirm_done);
473
474         return 0;
475 }
476 EXPORT_SYMBOL_GPL(nvmet_sq_init);
477
478 bool nvmet_req_init(struct nvmet_req *req, struct nvmet_cq *cq,
479                 struct nvmet_sq *sq, struct nvmet_fabrics_ops *ops)
480 {
481         u8 flags = req->cmd->common.flags;
482         u16 status;
483
484         req->cq = cq;
485         req->sq = sq;
486         req->ops = ops;
487         req->sg = NULL;
488         req->sg_cnt = 0;
489         req->rsp->status = 0;
490
491         /* no support for fused commands yet */
492         if (unlikely(flags & (NVME_CMD_FUSE_FIRST | NVME_CMD_FUSE_SECOND))) {
493                 status = NVME_SC_INVALID_FIELD | NVME_SC_DNR;
494                 goto fail;
495         }
496
497         /* either variant of SGLs is fine, as we don't support metadata */
498         if (unlikely((flags & NVME_CMD_SGL_ALL) != NVME_CMD_SGL_METABUF &&
499                      (flags & NVME_CMD_SGL_ALL) != NVME_CMD_SGL_METASEG)) {
500                 status = NVME_SC_INVALID_FIELD | NVME_SC_DNR;
501                 goto fail;
502         }
503
504         if (unlikely(!req->sq->ctrl))
505                 /* will return an error for any Non-connect command: */
506                 status = nvmet_parse_connect_cmd(req);
507         else if (likely(req->sq->qid != 0))
508                 status = nvmet_parse_io_cmd(req);
509         else if (req->cmd->common.opcode == nvme_fabrics_command)
510                 status = nvmet_parse_fabrics_cmd(req);
511         else if (req->sq->ctrl->subsys->type == NVME_NQN_DISC)
512                 status = nvmet_parse_discovery_cmd(req);
513         else
514                 status = nvmet_parse_admin_cmd(req);
515
516         if (status)
517                 goto fail;
518
519         if (unlikely(!percpu_ref_tryget_live(&sq->ref))) {
520                 status = NVME_SC_INVALID_FIELD | NVME_SC_DNR;
521                 goto fail;
522         }
523
524         return true;
525
526 fail:
527         __nvmet_req_complete(req, status);
528         return false;
529 }
530 EXPORT_SYMBOL_GPL(nvmet_req_init);
531
532 static inline bool nvmet_cc_en(u32 cc)
533 {
534         return cc & 0x1;
535 }
536
537 static inline u8 nvmet_cc_css(u32 cc)
538 {
539         return (cc >> 4) & 0x7;
540 }
541
542 static inline u8 nvmet_cc_mps(u32 cc)
543 {
544         return (cc >> 7) & 0xf;
545 }
546
547 static inline u8 nvmet_cc_ams(u32 cc)
548 {
549         return (cc >> 11) & 0x7;
550 }
551
552 static inline u8 nvmet_cc_shn(u32 cc)
553 {
554         return (cc >> 14) & 0x3;
555 }
556
557 static inline u8 nvmet_cc_iosqes(u32 cc)
558 {
559         return (cc >> 16) & 0xf;
560 }
561
562 static inline u8 nvmet_cc_iocqes(u32 cc)
563 {
564         return (cc >> 20) & 0xf;
565 }
566
567 static void nvmet_start_ctrl(struct nvmet_ctrl *ctrl)
568 {
569         lockdep_assert_held(&ctrl->lock);
570
571         if (nvmet_cc_iosqes(ctrl->cc) != NVME_NVM_IOSQES ||
572             nvmet_cc_iocqes(ctrl->cc) != NVME_NVM_IOCQES ||
573             nvmet_cc_mps(ctrl->cc) != 0 ||
574             nvmet_cc_ams(ctrl->cc) != 0 ||
575             nvmet_cc_css(ctrl->cc) != 0) {
576                 ctrl->csts = NVME_CSTS_CFS;
577                 return;
578         }
579
580         ctrl->csts = NVME_CSTS_RDY;
581 }
582
583 static void nvmet_clear_ctrl(struct nvmet_ctrl *ctrl)
584 {
585         lockdep_assert_held(&ctrl->lock);
586
587         /* XXX: tear down queues? */
588         ctrl->csts &= ~NVME_CSTS_RDY;
589         ctrl->cc = 0;
590 }
591
592 void nvmet_update_cc(struct nvmet_ctrl *ctrl, u32 new)
593 {
594         u32 old;
595
596         mutex_lock(&ctrl->lock);
597         old = ctrl->cc;
598         ctrl->cc = new;
599
600         if (nvmet_cc_en(new) && !nvmet_cc_en(old))
601                 nvmet_start_ctrl(ctrl);
602         if (!nvmet_cc_en(new) && nvmet_cc_en(old))
603                 nvmet_clear_ctrl(ctrl);
604         if (nvmet_cc_shn(new) && !nvmet_cc_shn(old)) {
605                 nvmet_clear_ctrl(ctrl);
606                 ctrl->csts |= NVME_CSTS_SHST_CMPLT;
607         }
608         if (!nvmet_cc_shn(new) && nvmet_cc_shn(old))
609                 ctrl->csts &= ~NVME_CSTS_SHST_CMPLT;
610         mutex_unlock(&ctrl->lock);
611 }
612
613 static void nvmet_init_cap(struct nvmet_ctrl *ctrl)
614 {
615         /* command sets supported: NVMe command set: */
616         ctrl->cap = (1ULL << 37);
617         /* CC.EN timeout in 500msec units: */
618         ctrl->cap |= (15ULL << 24);
619         /* maximum queue entries supported: */
620         ctrl->cap |= NVMET_QUEUE_SIZE - 1;
621 }
622
623 u16 nvmet_ctrl_find_get(const char *subsysnqn, const char *hostnqn, u16 cntlid,
624                 struct nvmet_req *req, struct nvmet_ctrl **ret)
625 {
626         struct nvmet_subsys *subsys;
627         struct nvmet_ctrl *ctrl;
628         u16 status = 0;
629
630         subsys = nvmet_find_get_subsys(req->port, subsysnqn);
631         if (!subsys) {
632                 pr_warn("connect request for invalid subsystem %s!\n",
633                         subsysnqn);
634                 req->rsp->result.u32 = IPO_IATTR_CONNECT_DATA(subsysnqn);
635                 return NVME_SC_CONNECT_INVALID_PARAM | NVME_SC_DNR;
636         }
637
638         mutex_lock(&subsys->lock);
639         list_for_each_entry(ctrl, &subsys->ctrls, subsys_entry) {
640                 if (ctrl->cntlid == cntlid) {
641                         if (strncmp(hostnqn, ctrl->hostnqn, NVMF_NQN_SIZE)) {
642                                 pr_warn("hostnqn mismatch.\n");
643                                 continue;
644                         }
645                         if (!kref_get_unless_zero(&ctrl->ref))
646                                 continue;
647
648                         *ret = ctrl;
649                         goto out;
650                 }
651         }
652
653         pr_warn("could not find controller %d for subsys %s / host %s\n",
654                 cntlid, subsysnqn, hostnqn);
655         req->rsp->result.u32 = IPO_IATTR_CONNECT_DATA(cntlid);
656         status = NVME_SC_CONNECT_INVALID_PARAM | NVME_SC_DNR;
657
658 out:
659         mutex_unlock(&subsys->lock);
660         nvmet_subsys_put(subsys);
661         return status;
662 }
663
664 u16 nvmet_check_ctrl_status(struct nvmet_req *req, struct nvme_command *cmd)
665 {
666         if (unlikely(!(req->sq->ctrl->cc & NVME_CC_ENABLE))) {
667                 pr_err("got io cmd %d while CC.EN == 0 on qid = %d\n",
668                        cmd->common.opcode, req->sq->qid);
669                 return NVME_SC_CMD_SEQ_ERROR | NVME_SC_DNR;
670         }
671
672         if (unlikely(!(req->sq->ctrl->csts & NVME_CSTS_RDY))) {
673                 pr_err("got io cmd %d while CSTS.RDY == 0 on qid = %d\n",
674                        cmd->common.opcode, req->sq->qid);
675                 req->ns = NULL;
676                 return NVME_SC_CMD_SEQ_ERROR | NVME_SC_DNR;
677         }
678         return 0;
679 }
680
681 static bool __nvmet_host_allowed(struct nvmet_subsys *subsys,
682                 const char *hostnqn)
683 {
684         struct nvmet_host_link *p;
685
686         if (subsys->allow_any_host)
687                 return true;
688
689         list_for_each_entry(p, &subsys->hosts, entry) {
690                 if (!strcmp(nvmet_host_name(p->host), hostnqn))
691                         return true;
692         }
693
694         return false;
695 }
696
697 static bool nvmet_host_discovery_allowed(struct nvmet_req *req,
698                 const char *hostnqn)
699 {
700         struct nvmet_subsys_link *s;
701
702         list_for_each_entry(s, &req->port->subsystems, entry) {
703                 if (__nvmet_host_allowed(s->subsys, hostnqn))
704                         return true;
705         }
706
707         return false;
708 }
709
710 bool nvmet_host_allowed(struct nvmet_req *req, struct nvmet_subsys *subsys,
711                 const char *hostnqn)
712 {
713         lockdep_assert_held(&nvmet_config_sem);
714
715         if (subsys->type == NVME_NQN_DISC)
716                 return nvmet_host_discovery_allowed(req, hostnqn);
717         else
718                 return __nvmet_host_allowed(subsys, hostnqn);
719 }
720
721 u16 nvmet_alloc_ctrl(const char *subsysnqn, const char *hostnqn,
722                 struct nvmet_req *req, u32 kato, struct nvmet_ctrl **ctrlp)
723 {
724         struct nvmet_subsys *subsys;
725         struct nvmet_ctrl *ctrl;
726         int ret;
727         u16 status;
728
729         status = NVME_SC_CONNECT_INVALID_PARAM | NVME_SC_DNR;
730         subsys = nvmet_find_get_subsys(req->port, subsysnqn);
731         if (!subsys) {
732                 pr_warn("connect request for invalid subsystem %s!\n",
733                         subsysnqn);
734                 req->rsp->result.u32 = IPO_IATTR_CONNECT_DATA(subsysnqn);
735                 goto out;
736         }
737
738         status = NVME_SC_CONNECT_INVALID_PARAM | NVME_SC_DNR;
739         down_read(&nvmet_config_sem);
740         if (!nvmet_host_allowed(req, subsys, hostnqn)) {
741                 pr_info("connect by host %s for subsystem %s not allowed\n",
742                         hostnqn, subsysnqn);
743                 req->rsp->result.u32 = IPO_IATTR_CONNECT_DATA(hostnqn);
744                 up_read(&nvmet_config_sem);
745                 goto out_put_subsystem;
746         }
747         up_read(&nvmet_config_sem);
748
749         status = NVME_SC_INTERNAL;
750         ctrl = kzalloc(sizeof(*ctrl), GFP_KERNEL);
751         if (!ctrl)
752                 goto out_put_subsystem;
753         mutex_init(&ctrl->lock);
754
755         nvmet_init_cap(ctrl);
756
757         INIT_WORK(&ctrl->async_event_work, nvmet_async_event_work);
758         INIT_LIST_HEAD(&ctrl->async_events);
759
760         memcpy(ctrl->subsysnqn, subsysnqn, NVMF_NQN_SIZE);
761         memcpy(ctrl->hostnqn, hostnqn, NVMF_NQN_SIZE);
762
763         /* generate a random serial number as our controllers are ephemeral: */
764         get_random_bytes(&ctrl->serial, sizeof(ctrl->serial));
765
766         kref_init(&ctrl->ref);
767         ctrl->subsys = subsys;
768
769         ctrl->cqs = kcalloc(subsys->max_qid + 1,
770                         sizeof(struct nvmet_cq *),
771                         GFP_KERNEL);
772         if (!ctrl->cqs)
773                 goto out_free_ctrl;
774
775         ctrl->sqs = kcalloc(subsys->max_qid + 1,
776                         sizeof(struct nvmet_sq *),
777                         GFP_KERNEL);
778         if (!ctrl->sqs)
779                 goto out_free_cqs;
780
781         ret = ida_simple_get(&cntlid_ida,
782                              NVME_CNTLID_MIN, NVME_CNTLID_MAX,
783                              GFP_KERNEL);
784         if (ret < 0) {
785                 status = NVME_SC_CONNECT_CTRL_BUSY | NVME_SC_DNR;
786                 goto out_free_sqs;
787         }
788         ctrl->cntlid = ret;
789
790         ctrl->ops = req->ops;
791         if (ctrl->subsys->type == NVME_NQN_DISC) {
792                 /* Don't accept keep-alive timeout for discovery controllers */
793                 if (kato) {
794                         status = NVME_SC_INVALID_FIELD | NVME_SC_DNR;
795                         goto out_free_sqs;
796                 }
797
798                 /*
799                  * Discovery controllers use some arbitrary high value in order
800                  * to cleanup stale discovery sessions
801                  *
802                  * From the latest base diff RC:
803                  * "The Keep Alive command is not supported by
804                  * Discovery controllers. A transport may specify a
805                  * fixed Discovery controller activity timeout value
806                  * (e.g., 2 minutes).  If no commands are received
807                  * by a Discovery controller within that time
808                  * period, the controller may perform the
809                  * actions for Keep Alive Timer expiration".
810                  */
811                 ctrl->kato = NVMET_DISC_KATO;
812         } else {
813                 /* keep-alive timeout in seconds */
814                 ctrl->kato = DIV_ROUND_UP(kato, 1000);
815         }
816         nvmet_start_keep_alive_timer(ctrl);
817
818         mutex_lock(&subsys->lock);
819         list_add_tail(&ctrl->subsys_entry, &subsys->ctrls);
820         mutex_unlock(&subsys->lock);
821
822         *ctrlp = ctrl;
823         return 0;
824
825 out_free_sqs:
826         kfree(ctrl->sqs);
827 out_free_cqs:
828         kfree(ctrl->cqs);
829 out_free_ctrl:
830         kfree(ctrl);
831 out_put_subsystem:
832         nvmet_subsys_put(subsys);
833 out:
834         return status;
835 }
836
837 static void nvmet_ctrl_free(struct kref *ref)
838 {
839         struct nvmet_ctrl *ctrl = container_of(ref, struct nvmet_ctrl, ref);
840         struct nvmet_subsys *subsys = ctrl->subsys;
841
842         nvmet_stop_keep_alive_timer(ctrl);
843
844         mutex_lock(&subsys->lock);
845         list_del(&ctrl->subsys_entry);
846         mutex_unlock(&subsys->lock);
847
848         flush_work(&ctrl->async_event_work);
849         cancel_work_sync(&ctrl->fatal_err_work);
850
851         ida_simple_remove(&cntlid_ida, ctrl->cntlid);
852         nvmet_subsys_put(subsys);
853
854         kfree(ctrl->sqs);
855         kfree(ctrl->cqs);
856         kfree(ctrl);
857 }
858
859 void nvmet_ctrl_put(struct nvmet_ctrl *ctrl)
860 {
861         kref_put(&ctrl->ref, nvmet_ctrl_free);
862 }
863
864 static void nvmet_fatal_error_handler(struct work_struct *work)
865 {
866         struct nvmet_ctrl *ctrl =
867                         container_of(work, struct nvmet_ctrl, fatal_err_work);
868
869         pr_err("ctrl %d fatal error occurred!\n", ctrl->cntlid);
870         ctrl->ops->delete_ctrl(ctrl);
871 }
872
873 void nvmet_ctrl_fatal_error(struct nvmet_ctrl *ctrl)
874 {
875         mutex_lock(&ctrl->lock);
876         if (!(ctrl->csts & NVME_CSTS_CFS)) {
877                 ctrl->csts |= NVME_CSTS_CFS;
878                 INIT_WORK(&ctrl->fatal_err_work, nvmet_fatal_error_handler);
879                 schedule_work(&ctrl->fatal_err_work);
880         }
881         mutex_unlock(&ctrl->lock);
882 }
883 EXPORT_SYMBOL_GPL(nvmet_ctrl_fatal_error);
884
885 static struct nvmet_subsys *nvmet_find_get_subsys(struct nvmet_port *port,
886                 const char *subsysnqn)
887 {
888         struct nvmet_subsys_link *p;
889
890         if (!port)
891                 return NULL;
892
893         if (!strncmp(NVME_DISC_SUBSYS_NAME, subsysnqn,
894                         NVMF_NQN_SIZE)) {
895                 if (!kref_get_unless_zero(&nvmet_disc_subsys->ref))
896                         return NULL;
897                 return nvmet_disc_subsys;
898         }
899
900         down_read(&nvmet_config_sem);
901         list_for_each_entry(p, &port->subsystems, entry) {
902                 if (!strncmp(p->subsys->subsysnqn, subsysnqn,
903                                 NVMF_NQN_SIZE)) {
904                         if (!kref_get_unless_zero(&p->subsys->ref))
905                                 break;
906                         up_read(&nvmet_config_sem);
907                         return p->subsys;
908                 }
909         }
910         up_read(&nvmet_config_sem);
911         return NULL;
912 }
913
914 struct nvmet_subsys *nvmet_subsys_alloc(const char *subsysnqn,
915                 enum nvme_subsys_type type)
916 {
917         struct nvmet_subsys *subsys;
918
919         subsys = kzalloc(sizeof(*subsys), GFP_KERNEL);
920         if (!subsys)
921                 return NULL;
922
923         subsys->ver = NVME_VS(1, 2, 1); /* NVMe 1.2.1 */
924
925         switch (type) {
926         case NVME_NQN_NVME:
927                 subsys->max_qid = NVMET_NR_QUEUES;
928                 break;
929         case NVME_NQN_DISC:
930                 subsys->max_qid = 0;
931                 break;
932         default:
933                 pr_err("%s: Unknown Subsystem type - %d\n", __func__, type);
934                 kfree(subsys);
935                 return NULL;
936         }
937         subsys->type = type;
938         subsys->subsysnqn = kstrndup(subsysnqn, NVMF_NQN_SIZE,
939                         GFP_KERNEL);
940         if (!subsys->subsysnqn) {
941                 kfree(subsys);
942                 return NULL;
943         }
944
945         kref_init(&subsys->ref);
946
947         mutex_init(&subsys->lock);
948         INIT_LIST_HEAD(&subsys->namespaces);
949         INIT_LIST_HEAD(&subsys->ctrls);
950         INIT_LIST_HEAD(&subsys->hosts);
951
952         return subsys;
953 }
954
955 static void nvmet_subsys_free(struct kref *ref)
956 {
957         struct nvmet_subsys *subsys =
958                 container_of(ref, struct nvmet_subsys, ref);
959
960         WARN_ON_ONCE(!list_empty(&subsys->namespaces));
961
962         kfree(subsys->subsysnqn);
963         kfree(subsys);
964 }
965
966 void nvmet_subsys_del_ctrls(struct nvmet_subsys *subsys)
967 {
968         struct nvmet_ctrl *ctrl;
969
970         mutex_lock(&subsys->lock);
971         list_for_each_entry(ctrl, &subsys->ctrls, subsys_entry)
972                 ctrl->ops->delete_ctrl(ctrl);
973         mutex_unlock(&subsys->lock);
974 }
975
976 void nvmet_subsys_put(struct nvmet_subsys *subsys)
977 {
978         kref_put(&subsys->ref, nvmet_subsys_free);
979 }
980
981 static int __init nvmet_init(void)
982 {
983         int error;
984
985         error = nvmet_init_discovery();
986         if (error)
987                 goto out;
988
989         error = nvmet_init_configfs();
990         if (error)
991                 goto out_exit_discovery;
992         return 0;
993
994 out_exit_discovery:
995         nvmet_exit_discovery();
996 out:
997         return error;
998 }
999
1000 static void __exit nvmet_exit(void)
1001 {
1002         nvmet_exit_configfs();
1003         nvmet_exit_discovery();
1004         ida_destroy(&cntlid_ida);
1005
1006         BUILD_BUG_ON(sizeof(struct nvmf_disc_rsp_page_entry) != 1024);
1007         BUILD_BUG_ON(sizeof(struct nvmf_disc_rsp_page_hdr) != 1024);
1008 }
1009
1010 module_init(nvmet_init);
1011 module_exit(nvmet_exit);
1012
1013 MODULE_LICENSE("GPL v2");