xref: /linux/drivers/nvme/target/core.c (revision 3fdd281e0a049a804b2512c4cb3d685e5358aee8)
1 // SPDX-License-Identifier: GPL-2.0
2 /*
3  * Common code for the NVMe target.
4  * Copyright (c) 2015-2016 HGST, a Western Digital Company.
5  */
6 #define pr_fmt(fmt) KBUILD_MODNAME ": " fmt
7 #include <linux/hex.h>
8 #include <linux/module.h>
9 #include <linux/random.h>
10 #include <linux/rculist.h>
11 #include <linux/pci-p2pdma.h>
12 #include <linux/scatterlist.h>
13 
14 #include <generated/utsrelease.h>
15 
16 #define CREATE_TRACE_POINTS
17 #include "trace.h"
18 
19 #include "nvmet.h"
20 #include "debugfs.h"
21 
22 struct kmem_cache *nvmet_bvec_cache;
23 struct workqueue_struct *buffered_io_wq;
24 struct workqueue_struct *zbd_wq;
25 static const struct nvmet_fabrics_ops *nvmet_transports[NVMF_TRTYPE_MAX];
26 static DEFINE_IDA(cntlid_ida);
27 
28 struct workqueue_struct *nvmet_wq;
29 EXPORT_SYMBOL_GPL(nvmet_wq);
30 struct workqueue_struct *nvmet_aen_wq;
31 EXPORT_SYMBOL_GPL(nvmet_aen_wq);
32 
33 /*
34  * This read/write semaphore is used to synchronize access to configuration
35  * information on a target system that will result in discovery log page
36  * information change for at least one host.
37  * The full list of resources to protected by this semaphore is:
38  *
39  *  - subsystems list
40  *  - per-subsystem allowed hosts list
41  *  - allow_any_host subsystem attribute
42  *  - nvmet_genctr
43  *  - the nvmet_transports array
44  *
45  * When updating any of those lists/structures write lock should be obtained,
46  * while when reading (populating discovery log page or checking host-subsystem
47  * link) read lock is obtained to allow concurrent reads.
48  */
49 DECLARE_RWSEM(nvmet_config_sem);
50 
51 u32 nvmet_ana_group_enabled[NVMET_MAX_ANAGRPS + 1];
52 u64 nvmet_ana_chgcnt;
53 DECLARE_RWSEM(nvmet_ana_sem);
54 
55 inline u16 errno_to_nvme_status(struct nvmet_req *req, int errno)
56 {
57 	switch (errno) {
58 	case 0:
59 		return NVME_SC_SUCCESS;
60 	case -ENOSPC:
61 		req->error_loc = offsetof(struct nvme_rw_command, length);
62 		return NVME_SC_CAP_EXCEEDED | NVME_STATUS_DNR;
63 	case -EREMOTEIO:
64 		req->error_loc = offsetof(struct nvme_rw_command, slba);
65 		return  NVME_SC_LBA_RANGE | NVME_STATUS_DNR;
66 	case -EOPNOTSUPP:
67 		req->error_loc = offsetof(struct nvme_common_command, opcode);
68 		return NVME_SC_INVALID_OPCODE | NVME_STATUS_DNR;
69 	case -ENODATA:
70 		req->error_loc = offsetof(struct nvme_rw_command, nsid);
71 		return NVME_SC_ACCESS_DENIED;
72 	case -EIO:
73 		fallthrough;
74 	default:
75 		req->error_loc = offsetof(struct nvme_common_command, opcode);
76 		return NVME_SC_INTERNAL | NVME_STATUS_DNR;
77 	}
78 }
79 
80 u16 nvmet_report_invalid_opcode(struct nvmet_req *req)
81 {
82 	pr_debug("unhandled cmd %d on qid %d\n", req->cmd->common.opcode,
83 		 req->sq->qid);
84 
85 	req->error_loc = offsetof(struct nvme_common_command, opcode);
86 	return NVME_SC_INVALID_OPCODE | NVME_STATUS_DNR;
87 }
88 
89 static struct nvmet_subsys *nvmet_find_get_subsys(struct nvmet_port *port,
90 		const char *subsysnqn);
91 
92 u16 nvmet_copy_to_sgl(struct nvmet_req *req, off_t off, const void *buf,
93 		size_t len)
94 {
95 	if (sg_pcopy_from_buffer(req->sg, req->sg_cnt, buf, len, off) != len) {
96 		req->error_loc = offsetof(struct nvme_common_command, dptr);
97 		return NVME_SC_SGL_INVALID_DATA | NVME_STATUS_DNR;
98 	}
99 	return 0;
100 }
101 
102 u16 nvmet_copy_from_sgl(struct nvmet_req *req, off_t off, void *buf, size_t len)
103 {
104 	if (sg_pcopy_to_buffer(req->sg, req->sg_cnt, buf, len, off) != len) {
105 		req->error_loc = offsetof(struct nvme_common_command, dptr);
106 		return NVME_SC_SGL_INVALID_DATA | NVME_STATUS_DNR;
107 	}
108 	return 0;
109 }
110 
111 u16 nvmet_zero_sgl(struct nvmet_req *req, off_t off, size_t len)
112 {
113 	if (sg_zero_buffer(req->sg, req->sg_cnt, len, off) != len) {
114 		req->error_loc = offsetof(struct nvme_common_command, dptr);
115 		return NVME_SC_SGL_INVALID_DATA | NVME_STATUS_DNR;
116 	}
117 	return 0;
118 }
119 
120 static u32 nvmet_max_nsid(struct nvmet_subsys *subsys)
121 {
122 	struct nvmet_ns *cur;
123 	unsigned long idx;
124 	u32 nsid = 0;
125 
126 	nvmet_for_each_enabled_ns(&subsys->namespaces, idx, cur)
127 		nsid = cur->nsid;
128 
129 	return nsid;
130 }
131 
132 static u32 nvmet_async_event_result(struct nvmet_async_event *aen)
133 {
134 	return aen->event_type | (aen->event_info << 8) | (aen->log_page << 16);
135 }
136 
137 static void nvmet_async_events_failall(struct nvmet_ctrl *ctrl)
138 {
139 	struct nvmet_req *req;
140 
141 	mutex_lock(&ctrl->lock);
142 	while (ctrl->nr_async_event_cmds) {
143 		req = ctrl->async_event_cmds[--ctrl->nr_async_event_cmds];
144 		mutex_unlock(&ctrl->lock);
145 		nvmet_req_complete(req, NVME_SC_INTERNAL | NVME_STATUS_DNR);
146 		mutex_lock(&ctrl->lock);
147 	}
148 	mutex_unlock(&ctrl->lock);
149 }
150 
151 static void nvmet_async_events_process(struct nvmet_ctrl *ctrl)
152 {
153 	struct nvmet_async_event *aen;
154 	struct nvmet_req *req;
155 
156 	mutex_lock(&ctrl->lock);
157 	while (ctrl->nr_async_event_cmds && !list_empty(&ctrl->async_events)) {
158 		aen = list_first_entry(&ctrl->async_events,
159 				       struct nvmet_async_event, entry);
160 		req = ctrl->async_event_cmds[--ctrl->nr_async_event_cmds];
161 		nvmet_set_result(req, nvmet_async_event_result(aen));
162 
163 		list_del(&aen->entry);
164 		kfree(aen);
165 
166 		mutex_unlock(&ctrl->lock);
167 		trace_nvmet_async_event(ctrl, req->cqe->result.u32);
168 		nvmet_req_complete(req, 0);
169 		mutex_lock(&ctrl->lock);
170 	}
171 	mutex_unlock(&ctrl->lock);
172 }
173 
174 static void nvmet_async_events_free(struct nvmet_ctrl *ctrl)
175 {
176 	struct nvmet_async_event *aen, *tmp;
177 
178 	mutex_lock(&ctrl->lock);
179 	list_for_each_entry_safe(aen, tmp, &ctrl->async_events, entry) {
180 		list_del(&aen->entry);
181 		kfree(aen);
182 	}
183 	mutex_unlock(&ctrl->lock);
184 }
185 
186 static void nvmet_async_event_work(struct work_struct *work)
187 {
188 	struct nvmet_ctrl *ctrl =
189 		container_of(work, struct nvmet_ctrl, async_event_work);
190 
191 	nvmet_async_events_process(ctrl);
192 }
193 
194 void nvmet_add_async_event(struct nvmet_ctrl *ctrl, u8 event_type,
195 		u8 event_info, u8 log_page)
196 {
197 	struct nvmet_async_event *aen;
198 
199 	aen = kmalloc_obj(*aen);
200 	if (!aen)
201 		return;
202 
203 	aen->event_type = event_type;
204 	aen->event_info = event_info;
205 	aen->log_page = log_page;
206 
207 	mutex_lock(&ctrl->lock);
208 	list_add_tail(&aen->entry, &ctrl->async_events);
209 	mutex_unlock(&ctrl->lock);
210 
211 	queue_work(nvmet_aen_wq, &ctrl->async_event_work);
212 }
213 
214 static void nvmet_add_to_changed_ns_log(struct nvmet_ctrl *ctrl, __le32 nsid)
215 {
216 	u32 i;
217 
218 	mutex_lock(&ctrl->lock);
219 	if (ctrl->nr_changed_ns > NVME_MAX_CHANGED_NAMESPACES)
220 		goto out_unlock;
221 
222 	for (i = 0; i < ctrl->nr_changed_ns; i++) {
223 		if (ctrl->changed_ns_list[i] == nsid)
224 			goto out_unlock;
225 	}
226 
227 	if (ctrl->nr_changed_ns == NVME_MAX_CHANGED_NAMESPACES) {
228 		ctrl->changed_ns_list[0] = cpu_to_le32(0xffffffff);
229 		ctrl->nr_changed_ns = U32_MAX;
230 		goto out_unlock;
231 	}
232 
233 	ctrl->changed_ns_list[ctrl->nr_changed_ns++] = nsid;
234 out_unlock:
235 	mutex_unlock(&ctrl->lock);
236 }
237 
238 void nvmet_ns_changed(struct nvmet_subsys *subsys, u32 nsid)
239 {
240 	struct nvmet_ctrl *ctrl;
241 
242 	lockdep_assert_held(&subsys->lock);
243 
244 	list_for_each_entry(ctrl, &subsys->ctrls, subsys_entry) {
245 		nvmet_add_to_changed_ns_log(ctrl, cpu_to_le32(nsid));
246 		if (nvmet_aen_bit_disabled(ctrl, NVME_AEN_BIT_NS_ATTR))
247 			continue;
248 		nvmet_add_async_event(ctrl, NVME_AER_NOTICE,
249 				NVME_AER_NOTICE_NS_CHANGED,
250 				NVME_LOG_CHANGED_NS);
251 	}
252 }
253 
254 void nvmet_send_ana_event(struct nvmet_subsys *subsys,
255 		struct nvmet_port *port)
256 {
257 	struct nvmet_ctrl *ctrl;
258 
259 	mutex_lock(&subsys->lock);
260 	list_for_each_entry(ctrl, &subsys->ctrls, subsys_entry) {
261 		if (port && ctrl->port != port)
262 			continue;
263 		if (nvmet_aen_bit_disabled(ctrl, NVME_AEN_BIT_ANA_CHANGE))
264 			continue;
265 		nvmet_add_async_event(ctrl, NVME_AER_NOTICE,
266 				NVME_AER_NOTICE_ANA, NVME_LOG_ANA);
267 	}
268 	mutex_unlock(&subsys->lock);
269 }
270 
271 void nvmet_port_send_ana_event(struct nvmet_port *port)
272 {
273 	struct nvmet_subsys_link *p;
274 
275 	down_read(&nvmet_config_sem);
276 	list_for_each_entry(p, &port->subsystems, entry)
277 		nvmet_send_ana_event(p->subsys, port);
278 	up_read(&nvmet_config_sem);
279 }
280 
281 int nvmet_register_transport(const struct nvmet_fabrics_ops *ops)
282 {
283 	int ret = 0;
284 
285 	down_write(&nvmet_config_sem);
286 	if (nvmet_transports[ops->type])
287 		ret = -EINVAL;
288 	else
289 		nvmet_transports[ops->type] = ops;
290 	up_write(&nvmet_config_sem);
291 
292 	return ret;
293 }
294 EXPORT_SYMBOL_GPL(nvmet_register_transport);
295 
296 void nvmet_unregister_transport(const struct nvmet_fabrics_ops *ops)
297 {
298 	down_write(&nvmet_config_sem);
299 	nvmet_transports[ops->type] = NULL;
300 	up_write(&nvmet_config_sem);
301 }
302 EXPORT_SYMBOL_GPL(nvmet_unregister_transport);
303 
304 void nvmet_port_del_ctrls(struct nvmet_port *port, struct nvmet_subsys *subsys)
305 {
306 	struct nvmet_ctrl *ctrl;
307 
308 	mutex_lock(&subsys->lock);
309 	list_for_each_entry(ctrl, &subsys->ctrls, subsys_entry) {
310 		if (ctrl->port == port)
311 			ctrl->ops->delete_ctrl(ctrl);
312 	}
313 	mutex_unlock(&subsys->lock);
314 }
315 
316 int nvmet_enable_port(struct nvmet_port *port)
317 {
318 	const struct nvmet_fabrics_ops *ops;
319 	int ret;
320 
321 	lockdep_assert_held(&nvmet_config_sem);
322 
323 	if (port->disc_addr.trtype == NVMF_TRTYPE_MAX)
324 		return -EINVAL;
325 
326 	ops = nvmet_transports[port->disc_addr.trtype];
327 	if (!ops) {
328 		up_write(&nvmet_config_sem);
329 		request_module("nvmet-transport-%d", port->disc_addr.trtype);
330 		down_write(&nvmet_config_sem);
331 		ops = nvmet_transports[port->disc_addr.trtype];
332 		if (!ops) {
333 			pr_err("transport type %d not supported\n",
334 				port->disc_addr.trtype);
335 			return -EINVAL;
336 		}
337 	}
338 
339 	if (!try_module_get(ops->owner))
340 		return -EINVAL;
341 
342 	/*
343 	 * If the user requested PI support and the transport isn't pi capable,
344 	 * don't enable the port.
345 	 */
346 	if (port->pi_enable && !(ops->flags & NVMF_METADATA_SUPPORTED)) {
347 		pr_err("T10-PI is not supported by transport type %d\n",
348 		       port->disc_addr.trtype);
349 		ret = -EINVAL;
350 		goto out_put;
351 	}
352 
353 	ret = ops->add_port(port);
354 	if (ret)
355 		goto out_put;
356 
357 	/* If the transport didn't set inline_data_size, then disable it. */
358 	if (port->inline_data_size < 0)
359 		port->inline_data_size = 0;
360 
361 	/*
362 	 * If the transport didn't set the max_queue_size properly, then clamp
363 	 * it to the target limits. Also set default values in case the
364 	 * transport didn't set it at all.
365 	 */
366 	if (port->max_queue_size < 0)
367 		port->max_queue_size = NVMET_MAX_QUEUE_SIZE;
368 	else
369 		port->max_queue_size = clamp_t(int, port->max_queue_size,
370 					       NVMET_MIN_QUEUE_SIZE,
371 					       NVMET_MAX_QUEUE_SIZE);
372 
373 	/*
374 	 * If the transport didn't set the mdts properly, then clamp it to the
375 	 * target limits. Also set default values in case the transport didn't
376 	 * set it at all.
377 	 */
378 	if (port->mdts < 0 || port->mdts > NVMET_MAX_MDTS)
379 		port->mdts = 0;
380 
381 	port->enabled = true;
382 	port->tr_ops = ops;
383 	return 0;
384 
385 out_put:
386 	module_put(ops->owner);
387 	return ret;
388 }
389 
390 void nvmet_disable_port(struct nvmet_port *port)
391 {
392 	const struct nvmet_fabrics_ops *ops;
393 
394 	lockdep_assert_held(&nvmet_config_sem);
395 
396 	port->enabled = false;
397 	port->tr_ops = NULL;
398 
399 	ops = nvmet_transports[port->disc_addr.trtype];
400 	ops->remove_port(port);
401 	module_put(ops->owner);
402 }
403 
404 static void nvmet_keep_alive_timer(struct work_struct *work)
405 {
406 	struct nvmet_ctrl *ctrl = container_of(to_delayed_work(work),
407 			struct nvmet_ctrl, ka_work);
408 	bool reset_tbkas = ctrl->reset_tbkas;
409 
410 	ctrl->reset_tbkas = false;
411 	if (reset_tbkas) {
412 		pr_debug("ctrl %d reschedule traffic based keep-alive timer\n",
413 			ctrl->cntlid);
414 		queue_delayed_work(nvmet_wq, &ctrl->ka_work, ctrl->kato * HZ);
415 		return;
416 	}
417 
418 	pr_err("ctrl %d keep-alive timer (%d seconds) expired!\n",
419 		ctrl->cntlid, ctrl->kato);
420 
421 	nvmet_ctrl_fatal_error(ctrl);
422 }
423 
424 void nvmet_start_keep_alive_timer(struct nvmet_ctrl *ctrl)
425 {
426 	if (unlikely(ctrl->kato == 0))
427 		return;
428 
429 	pr_debug("ctrl %d start keep-alive timer for %d secs\n",
430 		ctrl->cntlid, ctrl->kato);
431 
432 	queue_delayed_work(nvmet_wq, &ctrl->ka_work, ctrl->kato * HZ);
433 }
434 
435 void nvmet_stop_keep_alive_timer(struct nvmet_ctrl *ctrl)
436 {
437 	if (unlikely(ctrl->kato == 0))
438 		return;
439 
440 	pr_debug("ctrl %d stop keep-alive\n", ctrl->cntlid);
441 
442 	cancel_delayed_work_sync(&ctrl->ka_work);
443 }
444 
445 u16 nvmet_req_find_ns(struct nvmet_req *req)
446 {
447 	u32 nsid = le32_to_cpu(req->cmd->common.nsid);
448 	struct nvmet_subsys *subsys = nvmet_req_subsys(req);
449 	u16 status = NVME_SC_SUCCESS;
450 
451 	rcu_read_lock();
452 	req->ns = xa_load(&subsys->namespaces, nsid);
453 	if (unlikely(!req->ns) ||
454 	    !test_bit(NVMET_NS_IO_LIVE, &req->ns->flags) ||
455 	    !percpu_ref_tryget_live_rcu(&req->ns->ref)) {
456 		req->error_loc = offsetof(struct nvme_common_command, nsid);
457 		if (!req->ns) { /* ns doesn't exist! */
458 			status = NVME_SC_INVALID_NS | NVME_STATUS_DNR;
459 			goto unlock;
460 		}
461 
462 		/* ns exists but it's disabled */
463 		req->ns = NULL;
464 		status = NVME_SC_INTERNAL_PATH_ERROR;
465 	}
466 unlock:
467 	rcu_read_unlock();
468 
469 	return status;
470 }
471 
472 static void nvmet_destroy_namespace(struct percpu_ref *ref)
473 {
474 	struct nvmet_ns *ns = container_of(ref, struct nvmet_ns, ref);
475 
476 	complete(&ns->disable_done);
477 }
478 
479 void nvmet_put_namespace(struct nvmet_ns *ns)
480 {
481 	percpu_ref_put(&ns->ref);
482 }
483 
484 static void nvmet_ns_dev_disable(struct nvmet_ns *ns)
485 {
486 	nvmet_bdev_ns_disable(ns);
487 	nvmet_file_ns_disable(ns);
488 }
489 
490 static int nvmet_p2pmem_ns_enable(struct nvmet_ns *ns)
491 {
492 	int ret;
493 	struct pci_dev *p2p_dev;
494 
495 	if (!ns->use_p2pmem)
496 		return 0;
497 
498 	if (!ns->bdev) {
499 		pr_err("peer-to-peer DMA is not supported by non-block device namespaces\n");
500 		return -EINVAL;
501 	}
502 
503 	if (!blk_queue_pci_p2pdma(ns->bdev->bd_disk->queue)) {
504 		pr_err("peer-to-peer DMA is not supported by the driver of %s\n",
505 		       ns->device_path);
506 		return -EINVAL;
507 	}
508 
509 	if (ns->p2p_dev) {
510 		ret = pci_p2pdma_distance(ns->p2p_dev, nvmet_ns_dev(ns), true);
511 		if (ret < 0)
512 			return -EINVAL;
513 	} else {
514 		/*
515 		 * Right now we just check that there is p2pmem available so
516 		 * we can report an error to the user right away if there
517 		 * is not. We'll find the actual device to use once we
518 		 * setup the controller when the port's device is available.
519 		 */
520 
521 		p2p_dev = pci_p2pmem_find(nvmet_ns_dev(ns));
522 		if (!p2p_dev) {
523 			pr_err("no peer-to-peer memory is available for %s\n",
524 			       ns->device_path);
525 			return -EINVAL;
526 		}
527 
528 		pci_dev_put(p2p_dev);
529 	}
530 
531 	return 0;
532 }
533 
534 static void nvmet_p2pmem_ns_add_p2p(struct nvmet_ctrl *ctrl,
535 				    struct nvmet_ns *ns)
536 {
537 	struct device *clients[2];
538 	struct pci_dev *p2p_dev;
539 	int ret;
540 
541 	lockdep_assert_held(&ctrl->subsys->lock);
542 
543 	if (!ctrl->p2p_client || !ns->use_p2pmem)
544 		return;
545 
546 	if (ns->p2p_dev) {
547 		ret = pci_p2pdma_distance(ns->p2p_dev, ctrl->p2p_client, true);
548 		if (ret < 0)
549 			return;
550 
551 		p2p_dev = pci_dev_get(ns->p2p_dev);
552 	} else {
553 		clients[0] = ctrl->p2p_client;
554 		clients[1] = nvmet_ns_dev(ns);
555 
556 		p2p_dev = pci_p2pmem_find_many(clients, ARRAY_SIZE(clients));
557 		if (!p2p_dev) {
558 			pr_err("no peer-to-peer memory is available that's supported by %s and %s\n",
559 			       dev_name(ctrl->p2p_client), ns->device_path);
560 			return;
561 		}
562 	}
563 
564 	ret = radix_tree_insert(&ctrl->p2p_ns_map, ns->nsid, p2p_dev);
565 	if (ret < 0)
566 		pci_dev_put(p2p_dev);
567 
568 	pr_info("using p2pmem on %s for nsid %u\n", pci_name(p2p_dev),
569 		ns->nsid);
570 }
571 
572 bool nvmet_ns_revalidate(struct nvmet_ns *ns)
573 {
574 	loff_t oldsize = ns->size;
575 
576 	if (ns->bdev)
577 		nvmet_bdev_ns_revalidate(ns);
578 	else
579 		nvmet_file_ns_revalidate(ns);
580 
581 	return oldsize != ns->size;
582 }
583 
584 int nvmet_ns_enable(struct nvmet_ns *ns)
585 {
586 	struct nvmet_subsys *subsys = ns->subsys;
587 	struct nvmet_ctrl *ctrl;
588 	int ret;
589 
590 	mutex_lock(&subsys->lock);
591 	ret = 0;
592 
593 	if (nvmet_is_passthru_subsys(subsys)) {
594 		pr_info("cannot enable both passthru and regular namespaces for a single subsystem");
595 		goto out_unlock;
596 	}
597 
598 	if (ns->enabled)
599 		goto out_unlock;
600 
601 	if (!ns->device_path) {
602 		ret = -EINVAL;
603 		goto out_unlock;
604 	}
605 
606 	ret = nvmet_bdev_ns_enable(ns);
607 	if (ret == -ENOTBLK)
608 		ret = nvmet_file_ns_enable(ns);
609 	if (ret)
610 		goto out_unlock;
611 
612 	ret = nvmet_p2pmem_ns_enable(ns);
613 	if (ret)
614 		goto out_dev_disable;
615 
616 	list_for_each_entry(ctrl, &subsys->ctrls, subsys_entry)
617 		nvmet_p2pmem_ns_add_p2p(ctrl, ns);
618 
619 	if (ns->pr.enable) {
620 		ret = nvmet_pr_init_ns(ns);
621 		if (ret)
622 			goto out_dev_put;
623 	}
624 
625 	ret = percpu_ref_init(&ns->ref, nvmet_destroy_namespace, 0, GFP_KERNEL);
626 	if (ret)
627 		goto out_pr_exit;
628 
629 	nvmet_ns_changed(subsys, ns->nsid);
630 	ns->enabled = true;
631 	xa_set_mark(&subsys->namespaces, ns->nsid, NVMET_NS_ENABLED);
632 	nvmet_debugfs_ns_setup(ns);
633 	set_bit(NVMET_NS_IO_LIVE, &ns->flags);
634 	ret = 0;
635 out_unlock:
636 	mutex_unlock(&subsys->lock);
637 	return ret;
638 out_pr_exit:
639 	if (ns->pr.enable)
640 		nvmet_pr_exit_ns(ns);
641 out_dev_put:
642 	list_for_each_entry(ctrl, &subsys->ctrls, subsys_entry)
643 		pci_dev_put(radix_tree_delete(&ctrl->p2p_ns_map, ns->nsid));
644 out_dev_disable:
645 	nvmet_ns_dev_disable(ns);
646 	goto out_unlock;
647 }
648 
649 void nvmet_ns_disable(struct nvmet_ns *ns)
650 {
651 	struct nvmet_subsys *subsys = ns->subsys;
652 	struct nvmet_ctrl *ctrl;
653 
654 	if (!test_and_clear_bit(NVMET_NS_IO_LIVE, &ns->flags))
655 		return;
656 
657 	mutex_lock(&subsys->lock);
658 
659 	xa_clear_mark(&subsys->namespaces, ns->nsid, NVMET_NS_ENABLED);
660 	nvmet_debugfs_ns_free(ns);
661 
662 	list_for_each_entry(ctrl, &subsys->ctrls, subsys_entry)
663 		pci_dev_put(radix_tree_delete(&ctrl->p2p_ns_map, ns->nsid));
664 
665 	mutex_unlock(&subsys->lock);
666 
667 	/*
668 	 * Now that we removed the namespaces from the lookup list, we
669 	 * can kill the per_cpu ref and wait for any remaining references
670 	 * to be dropped, as well as a RCU grace period for anyone only
671 	 * using the namespace under rcu_read_lock().  Note that we can't
672 	 * use call_rcu here as we need to ensure the namespaces have
673 	 * been fully destroyed before unloading the module.
674 	 */
675 	percpu_ref_kill(&ns->ref);
676 	synchronize_rcu();
677 	wait_for_completion(&ns->disable_done);
678 	percpu_ref_exit(&ns->ref);
679 
680 	if (ns->pr.enable)
681 		nvmet_pr_exit_ns(ns);
682 
683 	mutex_lock(&subsys->lock);
684 	nvmet_ns_changed(subsys, ns->nsid);
685 	nvmet_ns_dev_disable(ns);
686 	ns->enabled = false;
687 	mutex_unlock(&subsys->lock);
688 }
689 
690 void nvmet_ns_free(struct nvmet_ns *ns)
691 {
692 	struct nvmet_subsys *subsys = ns->subsys;
693 
694 	nvmet_ns_disable(ns);
695 
696 	mutex_lock(&subsys->lock);
697 
698 	xa_erase(&subsys->namespaces, ns->nsid);
699 	if (ns->nsid == subsys->max_nsid)
700 		subsys->max_nsid = nvmet_max_nsid(subsys);
701 
702 	subsys->nr_namespaces--;
703 	mutex_unlock(&subsys->lock);
704 
705 	down_write(&nvmet_ana_sem);
706 	nvmet_ana_group_enabled[ns->anagrpid]--;
707 	up_write(&nvmet_ana_sem);
708 
709 	kfree(ns->device_path);
710 	kfree(ns);
711 }
712 
713 struct nvmet_ns *nvmet_ns_alloc(struct nvmet_subsys *subsys, u32 nsid)
714 {
715 	struct nvmet_ns *ns;
716 
717 	mutex_lock(&subsys->lock);
718 
719 	if (subsys->nr_namespaces == NVMET_MAX_NAMESPACES)
720 		goto out_unlock;
721 
722 	ns = kzalloc_obj(*ns);
723 	if (!ns)
724 		goto out_unlock;
725 
726 	init_completion(&ns->disable_done);
727 
728 	ns->nsid = nsid;
729 	ns->subsys = subsys;
730 
731 	if (ns->nsid > subsys->max_nsid)
732 		subsys->max_nsid = nsid;
733 
734 	if (xa_insert(&subsys->namespaces, ns->nsid, ns, GFP_KERNEL))
735 		goto out_exit;
736 
737 	subsys->nr_namespaces++;
738 
739 	mutex_unlock(&subsys->lock);
740 
741 	down_write(&nvmet_ana_sem);
742 	ns->anagrpid = NVMET_DEFAULT_ANA_GRPID;
743 	nvmet_ana_group_enabled[ns->anagrpid]++;
744 	up_write(&nvmet_ana_sem);
745 
746 	uuid_gen(&ns->uuid);
747 	ns->buffered_io = false;
748 	ns->csi = NVME_CSI_NVM;
749 
750 	return ns;
751 out_exit:
752 	subsys->max_nsid = nvmet_max_nsid(subsys);
753 	kfree(ns);
754 out_unlock:
755 	mutex_unlock(&subsys->lock);
756 	return NULL;
757 }
758 
759 static void nvmet_update_sq_head(struct nvmet_req *req)
760 {
761 	if (req->sq->size) {
762 		u32 old_sqhd, new_sqhd;
763 
764 		old_sqhd = READ_ONCE(req->sq->sqhd);
765 		do {
766 			new_sqhd = (old_sqhd + 1) % req->sq->size;
767 		} while (!try_cmpxchg(&req->sq->sqhd, &old_sqhd, new_sqhd));
768 	}
769 	req->cqe->sq_head = cpu_to_le16(req->sq->sqhd & 0x0000FFFF);
770 }
771 
772 static void nvmet_set_error(struct nvmet_req *req, u16 status)
773 {
774 	struct nvmet_ctrl *ctrl = req->sq->ctrl;
775 	struct nvme_error_slot *new_error_slot;
776 	unsigned long flags;
777 
778 	req->cqe->status = cpu_to_le16(status << 1);
779 
780 	if (!ctrl || req->error_loc == NVMET_NO_ERROR_LOC)
781 		return;
782 
783 	spin_lock_irqsave(&ctrl->error_lock, flags);
784 	ctrl->err_counter++;
785 	new_error_slot =
786 		&ctrl->slots[ctrl->err_counter % NVMET_ERROR_LOG_SLOTS];
787 
788 	new_error_slot->error_count = cpu_to_le64(ctrl->err_counter);
789 	new_error_slot->sqid = cpu_to_le16(req->sq->qid);
790 	new_error_slot->cmdid = cpu_to_le16(req->cmd->common.command_id);
791 	new_error_slot->status_field = cpu_to_le16(status << 1);
792 	new_error_slot->param_error_location = cpu_to_le16(req->error_loc);
793 	new_error_slot->lba = cpu_to_le64(req->error_slba);
794 	new_error_slot->nsid = req->cmd->common.nsid;
795 	spin_unlock_irqrestore(&ctrl->error_lock, flags);
796 
797 	/* set the more bit for this request */
798 	req->cqe->status |= cpu_to_le16(1 << 14);
799 }
800 
801 static void __nvmet_req_complete(struct nvmet_req *req, u16 status)
802 {
803 	struct nvmet_ns *ns = req->ns;
804 	struct nvmet_pr_per_ctrl_ref *pc_ref = req->pc_ref;
805 
806 	if (!req->sq->sqhd_disabled)
807 		nvmet_update_sq_head(req);
808 	req->cqe->sq_id = cpu_to_le16(req->sq->qid);
809 	req->cqe->command_id = req->cmd->common.command_id;
810 
811 	if (unlikely(status))
812 		nvmet_set_error(req, status);
813 
814 	trace_nvmet_req_complete(req);
815 
816 	req->ops->queue_response(req);
817 
818 	if (pc_ref)
819 		nvmet_pr_put_ns_pc_ref(pc_ref);
820 	if (ns)
821 		nvmet_put_namespace(ns);
822 }
823 
824 void nvmet_req_complete(struct nvmet_req *req, u16 status)
825 {
826 	struct nvmet_sq *sq = req->sq;
827 
828 	__nvmet_req_complete(req, status);
829 	percpu_ref_put(&sq->ref);
830 }
831 EXPORT_SYMBOL_GPL(nvmet_req_complete);
832 
833 void nvmet_cq_init(struct nvmet_cq *cq)
834 {
835 	refcount_set(&cq->ref, 1);
836 }
837 EXPORT_SYMBOL_GPL(nvmet_cq_init);
838 
839 bool nvmet_cq_get(struct nvmet_cq *cq)
840 {
841 	return refcount_inc_not_zero(&cq->ref);
842 }
843 EXPORT_SYMBOL_GPL(nvmet_cq_get);
844 
845 void nvmet_cq_put(struct nvmet_cq *cq)
846 {
847 	if (refcount_dec_and_test(&cq->ref))
848 		nvmet_cq_destroy(cq);
849 }
850 EXPORT_SYMBOL_GPL(nvmet_cq_put);
851 
852 void nvmet_cq_setup(struct nvmet_ctrl *ctrl, struct nvmet_cq *cq,
853 		u16 qid, u16 size)
854 {
855 	cq->qid = qid;
856 	cq->size = size;
857 
858 	ctrl->cqs[qid] = cq;
859 }
860 
861 void nvmet_cq_destroy(struct nvmet_cq *cq)
862 {
863 	struct nvmet_ctrl *ctrl = cq->ctrl;
864 
865 	if (ctrl) {
866 		ctrl->cqs[cq->qid] = NULL;
867 		nvmet_ctrl_put(cq->ctrl);
868 		cq->ctrl = NULL;
869 	}
870 }
871 
872 void nvmet_sq_setup(struct nvmet_ctrl *ctrl, struct nvmet_sq *sq,
873 		u16 qid, u16 size)
874 {
875 	sq->sqhd = 0;
876 	sq->qid = qid;
877 	sq->size = size;
878 
879 	ctrl->sqs[qid] = sq;
880 }
881 
882 static void nvmet_confirm_sq(struct percpu_ref *ref)
883 {
884 	struct nvmet_sq *sq = container_of(ref, struct nvmet_sq, ref);
885 
886 	complete(&sq->confirm_done);
887 }
888 
889 u16 nvmet_check_cqid(struct nvmet_ctrl *ctrl, u16 cqid, bool create)
890 {
891 	if (!ctrl->cqs)
892 		return NVME_SC_INTERNAL | NVME_STATUS_DNR;
893 
894 	if (cqid > ctrl->max_qid)
895 		return NVME_SC_QID_INVALID | NVME_STATUS_DNR;
896 
897 	if ((create && ctrl->cqs[cqid]) || (!create && !ctrl->cqs[cqid]))
898 		return NVME_SC_QID_INVALID | NVME_STATUS_DNR;
899 
900 	return NVME_SC_SUCCESS;
901 }
902 
903 u16 nvmet_check_io_cqid(struct nvmet_ctrl *ctrl, u16 cqid, bool create)
904 {
905 	if (!cqid)
906 		return NVME_SC_QID_INVALID | NVME_STATUS_DNR;
907 	return nvmet_check_cqid(ctrl, cqid, create);
908 }
909 
910 bool nvmet_cq_in_use(struct nvmet_cq *cq)
911 {
912 	return refcount_read(&cq->ref) > 1;
913 }
914 EXPORT_SYMBOL_GPL(nvmet_cq_in_use);
915 
916 u16 nvmet_cq_create(struct nvmet_ctrl *ctrl, struct nvmet_cq *cq,
917 		    u16 qid, u16 size)
918 {
919 	u16 status;
920 
921 	status = nvmet_check_cqid(ctrl, qid, true);
922 	if (status != NVME_SC_SUCCESS)
923 		return status;
924 
925 	if (!kref_get_unless_zero(&ctrl->ref))
926 		return NVME_SC_INTERNAL | NVME_STATUS_DNR;
927 	cq->ctrl = ctrl;
928 
929 	nvmet_cq_init(cq);
930 	nvmet_cq_setup(ctrl, cq, qid, size);
931 
932 	return NVME_SC_SUCCESS;
933 }
934 EXPORT_SYMBOL_GPL(nvmet_cq_create);
935 
936 u16 nvmet_check_sqid(struct nvmet_ctrl *ctrl, u16 sqid,
937 		     bool create)
938 {
939 	if (!ctrl->sqs)
940 		return NVME_SC_INTERNAL | NVME_STATUS_DNR;
941 
942 	if (sqid > ctrl->max_qid)
943 		return NVME_SC_QID_INVALID | NVME_STATUS_DNR;
944 
945 	if ((create && ctrl->sqs[sqid]) ||
946 	    (!create && !ctrl->sqs[sqid]))
947 		return NVME_SC_QID_INVALID | NVME_STATUS_DNR;
948 
949 	return NVME_SC_SUCCESS;
950 }
951 
952 u16 nvmet_sq_create(struct nvmet_ctrl *ctrl, struct nvmet_sq *sq,
953 		    struct nvmet_cq *cq, u16 sqid, u16 size)
954 {
955 	u16 status;
956 	int ret;
957 
958 	if (!kref_get_unless_zero(&ctrl->ref))
959 		return NVME_SC_INTERNAL | NVME_STATUS_DNR;
960 
961 	status = nvmet_check_sqid(ctrl, sqid, true);
962 	if (status != NVME_SC_SUCCESS)
963 		goto ctrl_put;
964 
965 	ret = nvmet_sq_init(sq, cq);
966 	if (ret) {
967 		status = NVME_SC_INTERNAL | NVME_STATUS_DNR;
968 		goto ctrl_put;
969 	}
970 
971 	nvmet_sq_setup(ctrl, sq, sqid, size);
972 	sq->ctrl = ctrl;
973 
974 	return NVME_SC_SUCCESS;
975 
976 ctrl_put:
977 	nvmet_ctrl_put(ctrl);
978 	return status;
979 }
980 EXPORT_SYMBOL_GPL(nvmet_sq_create);
981 
982 void nvmet_sq_destroy(struct nvmet_sq *sq)
983 {
984 	struct nvmet_ctrl *ctrl = sq->ctrl;
985 
986 	/*
987 	 * If this is the admin queue, complete all AERs so that our
988 	 * queue doesn't have outstanding requests on it.
989 	 */
990 	if (ctrl && ctrl->sqs && ctrl->sqs[0] == sq)
991 		nvmet_async_events_failall(ctrl);
992 	percpu_ref_kill_and_confirm(&sq->ref, nvmet_confirm_sq);
993 	wait_for_completion(&sq->confirm_done);
994 	wait_for_completion(&sq->free_done);
995 	percpu_ref_exit(&sq->ref);
996 	nvmet_auth_sq_destroy(sq);
997 	nvmet_cq_put(sq->cq);
998 
999 	/*
1000 	 * we must reference the ctrl again after waiting for inflight IO
1001 	 * to complete. Because admin connect may have sneaked in after we
1002 	 * store sq->ctrl locally, but before we killed the percpu_ref. the
1003 	 * admin connect allocates and assigns sq->ctrl, which now needs a
1004 	 * final ref put, as this ctrl is going away.
1005 	 */
1006 	ctrl = sq->ctrl;
1007 
1008 	if (ctrl) {
1009 		/*
1010 		 * The teardown flow may take some time, and the host may not
1011 		 * send us keep-alive during this period, hence reset the
1012 		 * traffic based keep-alive timer so we don't trigger a
1013 		 * controller teardown as a result of a keep-alive expiration.
1014 		 */
1015 		ctrl->reset_tbkas = true;
1016 		sq->ctrl->sqs[sq->qid] = NULL;
1017 		nvmet_ctrl_put(ctrl);
1018 		sq->ctrl = NULL; /* allows reusing the queue later */
1019 	}
1020 }
1021 EXPORT_SYMBOL_GPL(nvmet_sq_destroy);
1022 
1023 static void nvmet_sq_free(struct percpu_ref *ref)
1024 {
1025 	struct nvmet_sq *sq = container_of(ref, struct nvmet_sq, ref);
1026 
1027 	complete(&sq->free_done);
1028 }
1029 
1030 int nvmet_sq_init(struct nvmet_sq *sq, struct nvmet_cq *cq)
1031 {
1032 	int ret;
1033 
1034 	if (!nvmet_cq_get(cq))
1035 		return -EINVAL;
1036 
1037 	ret = percpu_ref_init(&sq->ref, nvmet_sq_free, 0, GFP_KERNEL);
1038 	if (ret) {
1039 		pr_err("percpu_ref init failed!\n");
1040 		nvmet_cq_put(cq);
1041 		return ret;
1042 	}
1043 	init_completion(&sq->free_done);
1044 	init_completion(&sq->confirm_done);
1045 	nvmet_auth_sq_init(sq);
1046 	sq->cq = cq;
1047 
1048 	return 0;
1049 }
1050 EXPORT_SYMBOL_GPL(nvmet_sq_init);
1051 
1052 static inline u16 nvmet_check_ana_state(struct nvmet_port *port,
1053 		struct nvmet_ns *ns)
1054 {
1055 	enum nvme_ana_state state = port->ana_state[ns->anagrpid];
1056 
1057 	if (unlikely(state == NVME_ANA_INACCESSIBLE))
1058 		return NVME_SC_ANA_INACCESSIBLE;
1059 	if (unlikely(state == NVME_ANA_PERSISTENT_LOSS))
1060 		return NVME_SC_ANA_PERSISTENT_LOSS;
1061 	if (unlikely(state == NVME_ANA_CHANGE))
1062 		return NVME_SC_ANA_TRANSITION;
1063 	return 0;
1064 }
1065 
1066 static inline u16 nvmet_io_cmd_check_access(struct nvmet_req *req)
1067 {
1068 	if (unlikely(req->ns->readonly)) {
1069 		switch (req->cmd->common.opcode) {
1070 		case nvme_cmd_read:
1071 		case nvme_cmd_flush:
1072 			break;
1073 		default:
1074 			return NVME_SC_NS_WRITE_PROTECTED;
1075 		}
1076 	}
1077 
1078 	return 0;
1079 }
1080 
1081 static u32 nvmet_io_cmd_transfer_len(struct nvmet_req *req)
1082 {
1083 	struct nvme_command *cmd = req->cmd;
1084 	u32 metadata_len = 0;
1085 
1086 	if (nvme_is_fabrics(cmd))
1087 		return nvmet_fabrics_io_cmd_data_len(req);
1088 
1089 	if (!req->ns)
1090 		return 0;
1091 
1092 	switch (req->cmd->common.opcode) {
1093 	case nvme_cmd_read:
1094 	case nvme_cmd_write:
1095 	case nvme_cmd_zone_append:
1096 		if (req->sq->ctrl->pi_support && nvmet_ns_has_pi(req->ns))
1097 			metadata_len = nvmet_rw_metadata_len(req);
1098 		return nvmet_rw_data_len(req) + metadata_len;
1099 	case nvme_cmd_dsm:
1100 		return nvmet_dsm_len(req);
1101 	case nvme_cmd_zone_mgmt_recv:
1102 		return (le32_to_cpu(req->cmd->zmr.numd) + 1) << 2;
1103 	default:
1104 		return 0;
1105 	}
1106 }
1107 
1108 static u16 nvmet_parse_io_cmd(struct nvmet_req *req)
1109 {
1110 	struct nvme_command *cmd = req->cmd;
1111 	u16 ret;
1112 
1113 	if (nvme_is_fabrics(cmd))
1114 		return nvmet_parse_fabrics_io_cmd(req);
1115 
1116 	if (unlikely(!nvmet_check_auth_status(req)))
1117 		return NVME_SC_AUTH_REQUIRED | NVME_STATUS_DNR;
1118 
1119 	ret = nvmet_check_ctrl_status(req);
1120 	if (unlikely(ret))
1121 		return ret;
1122 
1123 	if (nvmet_is_passthru_req(req))
1124 		return nvmet_parse_passthru_io_cmd(req);
1125 
1126 	ret = nvmet_req_find_ns(req);
1127 	if (unlikely(ret))
1128 		return ret;
1129 
1130 	ret = nvmet_check_ana_state(req->port, req->ns);
1131 	if (unlikely(ret)) {
1132 		req->error_loc = offsetof(struct nvme_common_command, nsid);
1133 		return ret;
1134 	}
1135 	ret = nvmet_io_cmd_check_access(req);
1136 	if (unlikely(ret)) {
1137 		req->error_loc = offsetof(struct nvme_common_command, nsid);
1138 		return ret;
1139 	}
1140 
1141 	if (req->ns->pr.enable) {
1142 		ret = nvmet_parse_pr_cmd(req);
1143 		if (!ret)
1144 			return ret;
1145 	}
1146 
1147 	switch (req->ns->csi) {
1148 	case NVME_CSI_NVM:
1149 		if (req->ns->file)
1150 			ret = nvmet_file_parse_io_cmd(req);
1151 		else
1152 			ret = nvmet_bdev_parse_io_cmd(req);
1153 		break;
1154 	case NVME_CSI_ZNS:
1155 		if (IS_ENABLED(CONFIG_BLK_DEV_ZONED))
1156 			ret = nvmet_bdev_zns_parse_io_cmd(req);
1157 		else
1158 			ret = NVME_SC_INVALID_IO_CMD_SET;
1159 		break;
1160 	default:
1161 		ret = NVME_SC_INVALID_IO_CMD_SET;
1162 	}
1163 	if (ret)
1164 		return ret;
1165 
1166 	if (req->ns->pr.enable) {
1167 		ret = nvmet_pr_check_cmd_access(req);
1168 		if (ret)
1169 			return ret;
1170 
1171 		ret = nvmet_pr_get_ns_pc_ref(req);
1172 	}
1173 	return ret;
1174 }
1175 
1176 bool nvmet_req_init(struct nvmet_req *req, struct nvmet_sq *sq,
1177 		const struct nvmet_fabrics_ops *ops)
1178 {
1179 	u8 flags = req->cmd->common.flags;
1180 	u16 status;
1181 
1182 	req->cq = sq->cq;
1183 	req->sq = sq;
1184 	req->ops = ops;
1185 	req->sg = NULL;
1186 	req->metadata_sg = NULL;
1187 	req->sg_cnt = 0;
1188 	req->metadata_sg_cnt = 0;
1189 	req->transfer_len = 0;
1190 	req->metadata_len = 0;
1191 	req->cqe->result.u64 = 0;
1192 	req->cqe->status = 0;
1193 	req->cqe->sq_head = 0;
1194 	req->ns = NULL;
1195 	req->error_loc = NVMET_NO_ERROR_LOC;
1196 	req->error_slba = 0;
1197 	req->pc_ref = NULL;
1198 
1199 	/* no support for fused commands yet */
1200 	if (unlikely(flags & (NVME_CMD_FUSE_FIRST | NVME_CMD_FUSE_SECOND))) {
1201 		req->error_loc = offsetof(struct nvme_common_command, flags);
1202 		status = NVME_SC_INVALID_FIELD | NVME_STATUS_DNR;
1203 		goto fail;
1204 	}
1205 
1206 	/*
1207 	 * For fabrics, PSDT field shall describe metadata pointer (MPTR) that
1208 	 * contains an address of a single contiguous physical buffer that is
1209 	 * byte aligned. For PCI controllers, this is optional so not enforced.
1210 	 */
1211 	if (unlikely((flags & NVME_CMD_SGL_ALL) != NVME_CMD_SGL_METABUF)) {
1212 		if (!req->sq->ctrl || !nvmet_is_pci_ctrl(req->sq->ctrl)) {
1213 			req->error_loc =
1214 				offsetof(struct nvme_common_command, flags);
1215 			status = NVME_SC_INVALID_FIELD | NVME_STATUS_DNR;
1216 			goto fail;
1217 		}
1218 	}
1219 
1220 	if (unlikely(!req->sq->ctrl))
1221 		/* will return an error for any non-connect command: */
1222 		status = nvmet_parse_connect_cmd(req);
1223 	else if (likely(req->sq->qid != 0))
1224 		status = nvmet_parse_io_cmd(req);
1225 	else
1226 		status = nvmet_parse_admin_cmd(req);
1227 
1228 	if (status)
1229 		goto fail;
1230 
1231 	trace_nvmet_req_init(req, req->cmd);
1232 
1233 	if (unlikely(!percpu_ref_tryget_live(&sq->ref))) {
1234 		status = NVME_SC_INVALID_FIELD | NVME_STATUS_DNR;
1235 		goto fail;
1236 	}
1237 
1238 	if (sq->ctrl)
1239 		sq->ctrl->reset_tbkas = true;
1240 
1241 	return true;
1242 
1243 fail:
1244 	__nvmet_req_complete(req, status);
1245 	return false;
1246 }
1247 EXPORT_SYMBOL_GPL(nvmet_req_init);
1248 
1249 void nvmet_req_uninit(struct nvmet_req *req)
1250 {
1251 	percpu_ref_put(&req->sq->ref);
1252 	if (req->pc_ref)
1253 		nvmet_pr_put_ns_pc_ref(req->pc_ref);
1254 	if (req->ns)
1255 		nvmet_put_namespace(req->ns);
1256 }
1257 EXPORT_SYMBOL_GPL(nvmet_req_uninit);
1258 
1259 size_t nvmet_req_transfer_len(struct nvmet_req *req)
1260 {
1261 	if (likely(req->sq->qid != 0))
1262 		return nvmet_io_cmd_transfer_len(req);
1263 	if (unlikely(!req->sq->ctrl))
1264 		return nvmet_connect_cmd_data_len(req);
1265 	return nvmet_admin_cmd_data_len(req);
1266 }
1267 EXPORT_SYMBOL_GPL(nvmet_req_transfer_len);
1268 
1269 bool nvmet_check_transfer_len(struct nvmet_req *req, size_t len)
1270 {
1271 	if (unlikely(len != req->transfer_len)) {
1272 		u16 status;
1273 
1274 		req->error_loc = offsetof(struct nvme_common_command, dptr);
1275 		if (req->cmd->common.flags & NVME_CMD_SGL_ALL)
1276 			status = NVME_SC_SGL_INVALID_DATA;
1277 		else
1278 			status = NVME_SC_INVALID_FIELD;
1279 		nvmet_req_complete(req, status | NVME_STATUS_DNR);
1280 		return false;
1281 	}
1282 
1283 	return true;
1284 }
1285 EXPORT_SYMBOL_GPL(nvmet_check_transfer_len);
1286 
1287 bool nvmet_check_data_len_lte(struct nvmet_req *req, size_t data_len)
1288 {
1289 	if (unlikely(data_len > req->transfer_len)) {
1290 		u16 status;
1291 
1292 		req->error_loc = offsetof(struct nvme_common_command, dptr);
1293 		if (req->cmd->common.flags & NVME_CMD_SGL_ALL)
1294 			status = NVME_SC_SGL_INVALID_DATA;
1295 		else
1296 			status = NVME_SC_INVALID_FIELD;
1297 		nvmet_req_complete(req, status | NVME_STATUS_DNR);
1298 		return false;
1299 	}
1300 
1301 	return true;
1302 }
1303 
1304 static unsigned int nvmet_data_transfer_len(struct nvmet_req *req)
1305 {
1306 	return req->transfer_len - req->metadata_len;
1307 }
1308 
1309 static int nvmet_req_alloc_p2pmem_sgls(struct pci_dev *p2p_dev,
1310 		struct nvmet_req *req)
1311 {
1312 	req->sg = pci_p2pmem_alloc_sgl(p2p_dev, &req->sg_cnt,
1313 			nvmet_data_transfer_len(req));
1314 	if (!req->sg)
1315 		goto out_err;
1316 
1317 	if (req->metadata_len) {
1318 		req->metadata_sg = pci_p2pmem_alloc_sgl(p2p_dev,
1319 				&req->metadata_sg_cnt, req->metadata_len);
1320 		if (!req->metadata_sg)
1321 			goto out_free_sg;
1322 	}
1323 
1324 	req->p2p_dev = p2p_dev;
1325 
1326 	return 0;
1327 out_free_sg:
1328 	pci_p2pmem_free_sgl(req->p2p_dev, req->sg);
1329 out_err:
1330 	return -ENOMEM;
1331 }
1332 
1333 static struct pci_dev *nvmet_req_find_p2p_dev(struct nvmet_req *req)
1334 {
1335 	if (!IS_ENABLED(CONFIG_PCI_P2PDMA) ||
1336 	    !req->sq->ctrl || !req->sq->qid || !req->ns)
1337 		return NULL;
1338 	return radix_tree_lookup(&req->sq->ctrl->p2p_ns_map, req->ns->nsid);
1339 }
1340 
1341 int nvmet_req_alloc_sgls(struct nvmet_req *req)
1342 {
1343 	struct pci_dev *p2p_dev = nvmet_req_find_p2p_dev(req);
1344 
1345 	if (p2p_dev && !nvmet_req_alloc_p2pmem_sgls(p2p_dev, req))
1346 		return 0;
1347 
1348 	req->sg = sgl_alloc(nvmet_data_transfer_len(req), GFP_KERNEL,
1349 			    &req->sg_cnt);
1350 	if (unlikely(!req->sg))
1351 		goto out;
1352 
1353 	if (req->metadata_len) {
1354 		req->metadata_sg = sgl_alloc(req->metadata_len, GFP_KERNEL,
1355 					     &req->metadata_sg_cnt);
1356 		if (unlikely(!req->metadata_sg))
1357 			goto out_free;
1358 	}
1359 
1360 	return 0;
1361 out_free:
1362 	sgl_free(req->sg);
1363 out:
1364 	return -ENOMEM;
1365 }
1366 EXPORT_SYMBOL_GPL(nvmet_req_alloc_sgls);
1367 
1368 void nvmet_req_free_sgls(struct nvmet_req *req)
1369 {
1370 	if (req->p2p_dev) {
1371 		pci_p2pmem_free_sgl(req->p2p_dev, req->sg);
1372 		if (req->metadata_sg)
1373 			pci_p2pmem_free_sgl(req->p2p_dev, req->metadata_sg);
1374 		req->p2p_dev = NULL;
1375 	} else {
1376 		sgl_free(req->sg);
1377 		if (req->metadata_sg)
1378 			sgl_free(req->metadata_sg);
1379 	}
1380 
1381 	req->sg = NULL;
1382 	req->metadata_sg = NULL;
1383 	req->sg_cnt = 0;
1384 	req->metadata_sg_cnt = 0;
1385 }
1386 EXPORT_SYMBOL_GPL(nvmet_req_free_sgls);
1387 
1388 static inline bool nvmet_css_supported(u8 cc_css)
1389 {
1390 	switch (cc_css << NVME_CC_CSS_SHIFT) {
1391 	case NVME_CC_CSS_NVM:
1392 	case NVME_CC_CSS_CSI:
1393 		return true;
1394 	default:
1395 		return false;
1396 	}
1397 }
1398 
1399 static void nvmet_start_ctrl(struct nvmet_ctrl *ctrl)
1400 {
1401 	lockdep_assert_held(&ctrl->lock);
1402 
1403 	/*
1404 	 * Only I/O controllers should verify iosqes,iocqes.
1405 	 * Strictly speaking, the spec says a discovery controller
1406 	 * should verify iosqes,iocqes are zeroed, however that
1407 	 * would break backwards compatibility, so don't enforce it.
1408 	 */
1409 	if (!nvmet_is_disc_subsys(ctrl->subsys) &&
1410 	    (nvmet_cc_iosqes(ctrl->cc) != NVME_NVM_IOSQES ||
1411 	     nvmet_cc_iocqes(ctrl->cc) != NVME_NVM_IOCQES)) {
1412 		ctrl->csts = NVME_CSTS_CFS;
1413 		return;
1414 	}
1415 
1416 	if (nvmet_cc_mps(ctrl->cc) != 0 ||
1417 	    nvmet_cc_ams(ctrl->cc) != 0 ||
1418 	    !nvmet_css_supported(nvmet_cc_css(ctrl->cc))) {
1419 		ctrl->csts = NVME_CSTS_CFS;
1420 		return;
1421 	}
1422 
1423 	ctrl->csts = NVME_CSTS_RDY;
1424 
1425 	/*
1426 	 * Controllers that are not yet enabled should not really enforce the
1427 	 * keep alive timeout, but we still want to track a timeout and cleanup
1428 	 * in case a host died before it enabled the controller.  Hence, simply
1429 	 * reset the keep alive timer when the controller is enabled.
1430 	 */
1431 	if (ctrl->kato)
1432 		mod_delayed_work(nvmet_wq, &ctrl->ka_work, ctrl->kato * HZ);
1433 }
1434 
1435 static void nvmet_clear_ctrl(struct nvmet_ctrl *ctrl)
1436 {
1437 	lockdep_assert_held(&ctrl->lock);
1438 
1439 	/* XXX: tear down queues? */
1440 	ctrl->csts &= ~NVME_CSTS_RDY;
1441 	ctrl->cc = 0;
1442 }
1443 
1444 void nvmet_update_cc(struct nvmet_ctrl *ctrl, u32 new)
1445 {
1446 	u32 old;
1447 
1448 	mutex_lock(&ctrl->lock);
1449 	old = ctrl->cc;
1450 	ctrl->cc = new;
1451 
1452 	if (nvmet_cc_en(new) && !nvmet_cc_en(old))
1453 		nvmet_start_ctrl(ctrl);
1454 	if (!nvmet_cc_en(new) && nvmet_cc_en(old))
1455 		nvmet_clear_ctrl(ctrl);
1456 	if (nvmet_cc_shn(new) && !nvmet_cc_shn(old)) {
1457 		nvmet_clear_ctrl(ctrl);
1458 		ctrl->csts |= NVME_CSTS_SHST_CMPLT;
1459 	}
1460 	if (!nvmet_cc_shn(new) && nvmet_cc_shn(old))
1461 		ctrl->csts &= ~NVME_CSTS_SHST_CMPLT;
1462 	mutex_unlock(&ctrl->lock);
1463 }
1464 EXPORT_SYMBOL_GPL(nvmet_update_cc);
1465 
1466 static void nvmet_init_cap(struct nvmet_ctrl *ctrl)
1467 {
1468 	/* command sets supported: NVMe command set: */
1469 	ctrl->cap = (1ULL << 37);
1470 	/* Controller supports one or more I/O Command Sets */
1471 	ctrl->cap |= (1ULL << 43);
1472 	/* CC.EN timeout in 500msec units: */
1473 	ctrl->cap |= (15ULL << 24);
1474 	/* maximum queue entries supported: */
1475 	if (ctrl->ops->get_max_queue_size)
1476 		ctrl->cap |= min_t(u16, ctrl->ops->get_max_queue_size(ctrl),
1477 				   ctrl->port->max_queue_size) - 1;
1478 	else
1479 		ctrl->cap |= ctrl->port->max_queue_size - 1;
1480 
1481 	if (nvmet_is_passthru_subsys(ctrl->subsys))
1482 		nvmet_passthrough_override_cap(ctrl);
1483 }
1484 
1485 struct nvmet_ctrl *nvmet_ctrl_find_get(const char *subsysnqn,
1486 				       const char *hostnqn, u16 cntlid,
1487 				       struct nvmet_req *req)
1488 {
1489 	struct nvmet_ctrl *ctrl = NULL;
1490 	struct nvmet_subsys *subsys;
1491 
1492 	subsys = nvmet_find_get_subsys(req->port, subsysnqn);
1493 	if (!subsys) {
1494 		pr_warn("connect request for invalid subsystem %s!\n",
1495 			subsysnqn);
1496 		req->cqe->result.u32 = IPO_IATTR_CONNECT_DATA(subsysnqn);
1497 		goto out;
1498 	}
1499 
1500 	mutex_lock(&subsys->lock);
1501 	list_for_each_entry(ctrl, &subsys->ctrls, subsys_entry) {
1502 		if (ctrl->cntlid == cntlid) {
1503 			if (strncmp(hostnqn, ctrl->hostnqn, NVMF_NQN_SIZE)) {
1504 				pr_warn("hostnqn mismatch.\n");
1505 				continue;
1506 			}
1507 			if (!kref_get_unless_zero(&ctrl->ref))
1508 				continue;
1509 
1510 			/* ctrl found */
1511 			goto found;
1512 		}
1513 	}
1514 
1515 	ctrl = NULL; /* ctrl not found */
1516 	pr_warn("could not find controller %d for subsys %s / host %s\n",
1517 		cntlid, subsysnqn, hostnqn);
1518 	req->cqe->result.u32 = IPO_IATTR_CONNECT_DATA(cntlid);
1519 
1520 found:
1521 	mutex_unlock(&subsys->lock);
1522 	nvmet_subsys_put(subsys);
1523 out:
1524 	return ctrl;
1525 }
1526 
1527 u16 nvmet_check_ctrl_status(struct nvmet_req *req)
1528 {
1529 	if (unlikely(!(req->sq->ctrl->cc & NVME_CC_ENABLE))) {
1530 		pr_err("got cmd %d while CC.EN == 0 on qid = %d\n",
1531 		       req->cmd->common.opcode, req->sq->qid);
1532 		return NVME_SC_CMD_SEQ_ERROR | NVME_STATUS_DNR;
1533 	}
1534 
1535 	if (unlikely(!(req->sq->ctrl->csts & NVME_CSTS_RDY))) {
1536 		pr_err("got cmd %d while CSTS.RDY == 0 on qid = %d\n",
1537 		       req->cmd->common.opcode, req->sq->qid);
1538 		return NVME_SC_CMD_SEQ_ERROR | NVME_STATUS_DNR;
1539 	}
1540 
1541 	if (unlikely(!nvmet_check_auth_status(req))) {
1542 		pr_warn("qid %d not authenticated\n", req->sq->qid);
1543 		return NVME_SC_AUTH_REQUIRED | NVME_STATUS_DNR;
1544 	}
1545 	return 0;
1546 }
1547 
1548 bool nvmet_host_allowed(struct nvmet_subsys *subsys, const char *hostnqn)
1549 {
1550 	struct nvmet_host_link *p;
1551 
1552 	lockdep_assert_held(&nvmet_config_sem);
1553 
1554 	if (subsys->allow_any_host)
1555 		return true;
1556 
1557 	if (nvmet_is_disc_subsys(subsys)) /* allow all access to disc subsys */
1558 		return true;
1559 
1560 	list_for_each_entry(p, &subsys->hosts, entry) {
1561 		if (!strcmp(nvmet_host_name(p->host), hostnqn))
1562 			return true;
1563 	}
1564 
1565 	return false;
1566 }
1567 
1568 static void nvmet_setup_p2p_ns_map(struct nvmet_ctrl *ctrl,
1569 		struct device *p2p_client)
1570 {
1571 	struct nvmet_ns *ns;
1572 	unsigned long idx;
1573 
1574 	lockdep_assert_held(&ctrl->subsys->lock);
1575 
1576 	if (!p2p_client)
1577 		return;
1578 
1579 	ctrl->p2p_client = get_device(p2p_client);
1580 
1581 	nvmet_for_each_enabled_ns(&ctrl->subsys->namespaces, idx, ns)
1582 		nvmet_p2pmem_ns_add_p2p(ctrl, ns);
1583 }
1584 
1585 static void nvmet_release_p2p_ns_map(struct nvmet_ctrl *ctrl)
1586 {
1587 	struct radix_tree_iter iter;
1588 	void __rcu **slot;
1589 
1590 	lockdep_assert_held(&ctrl->subsys->lock);
1591 
1592 	radix_tree_for_each_slot(slot, &ctrl->p2p_ns_map, &iter, 0)
1593 		pci_dev_put(radix_tree_deref_slot(slot));
1594 
1595 	put_device(ctrl->p2p_client);
1596 }
1597 
1598 static void nvmet_fatal_error_handler(struct work_struct *work)
1599 {
1600 	struct nvmet_ctrl *ctrl =
1601 			container_of(work, struct nvmet_ctrl, fatal_err_work);
1602 
1603 	pr_err("ctrl %d fatal error occurred!\n", ctrl->cntlid);
1604 	ctrl->ops->delete_ctrl(ctrl);
1605 }
1606 
1607 struct nvmet_ctrl *nvmet_alloc_ctrl(struct nvmet_alloc_ctrl_args *args)
1608 {
1609 	struct nvmet_subsys *subsys;
1610 	struct nvmet_ctrl *ctrl;
1611 	u32 kato = args->kato;
1612 	u8 dhchap_status;
1613 	int ret;
1614 
1615 	args->status = NVME_SC_CONNECT_INVALID_PARAM | NVME_STATUS_DNR;
1616 	subsys = nvmet_find_get_subsys(args->port, args->subsysnqn);
1617 	if (!subsys) {
1618 		pr_warn("connect request for invalid subsystem %s!\n",
1619 			args->subsysnqn);
1620 		args->result = IPO_IATTR_CONNECT_DATA(subsysnqn);
1621 		args->error_loc = offsetof(struct nvme_common_command, dptr);
1622 		return NULL;
1623 	}
1624 
1625 	down_read(&nvmet_config_sem);
1626 	if (!nvmet_host_allowed(subsys, args->hostnqn)) {
1627 		pr_info("connect by host %s for subsystem %s not allowed\n",
1628 			args->hostnqn, args->subsysnqn);
1629 		args->result = IPO_IATTR_CONNECT_DATA(hostnqn);
1630 		up_read(&nvmet_config_sem);
1631 		args->status = NVME_SC_CONNECT_INVALID_HOST | NVME_STATUS_DNR;
1632 		args->error_loc = offsetof(struct nvme_common_command, dptr);
1633 		goto out_put_subsystem;
1634 	}
1635 	up_read(&nvmet_config_sem);
1636 
1637 	args->status = NVME_SC_INTERNAL;
1638 	ctrl = kzalloc_obj(*ctrl);
1639 	if (!ctrl)
1640 		goto out_put_subsystem;
1641 	mutex_init(&ctrl->lock);
1642 
1643 	ctrl->port = args->port;
1644 	ctrl->ops = args->ops;
1645 
1646 #ifdef CONFIG_NVME_TARGET_PASSTHRU
1647 	/* By default, set loop targets to clear IDS by default */
1648 	if (ctrl->port->disc_addr.trtype == NVMF_TRTYPE_LOOP)
1649 		subsys->clear_ids = 1;
1650 #endif
1651 
1652 	INIT_WORK(&ctrl->async_event_work, nvmet_async_event_work);
1653 	INIT_LIST_HEAD(&ctrl->async_events);
1654 	INIT_RADIX_TREE(&ctrl->p2p_ns_map, GFP_KERNEL);
1655 	INIT_WORK(&ctrl->fatal_err_work, nvmet_fatal_error_handler);
1656 	INIT_DELAYED_WORK(&ctrl->ka_work, nvmet_keep_alive_timer);
1657 
1658 	memcpy(ctrl->hostnqn, args->hostnqn, NVMF_NQN_SIZE);
1659 	if (args->hostid)
1660 		uuid_copy(&ctrl->hostid, args->hostid);
1661 
1662 	kref_init(&ctrl->ref);
1663 	ctrl->subsys = subsys;
1664 	ctrl->pi_support = ctrl->port->pi_enable && ctrl->subsys->pi_support;
1665 	nvmet_init_cap(ctrl);
1666 	WRITE_ONCE(ctrl->aen_enabled, NVMET_AEN_CFG_OPTIONAL);
1667 
1668 	ctrl->changed_ns_list = kmalloc_array(NVME_MAX_CHANGED_NAMESPACES,
1669 			sizeof(__le32), GFP_KERNEL);
1670 	if (!ctrl->changed_ns_list)
1671 		goto out_free_ctrl;
1672 
1673 	/*
1674 	 * Discovery controllers may use some arbitrary high value
1675 	 * in order to cleanup stale discovery sessions
1676 	 */
1677 	if (nvmet_is_disc_subsys(ctrl->subsys) && !kato)
1678 		kato = NVMET_DISC_KATO_MS;
1679 
1680 	/* keep-alive timeout in seconds */
1681 	ctrl->kato = DIV_ROUND_UP(kato, 1000);
1682 
1683 	ctrl->err_counter = 0;
1684 	spin_lock_init(&ctrl->error_lock);
1685 
1686 	down_read(&nvmet_config_sem);
1687 	mutex_lock(&subsys->lock);
1688 
1689 	ctrl->max_qid = subsys->max_qid;
1690 
1691 	ctrl->sqs = kzalloc_objs(struct nvmet_sq *, ctrl->max_qid + 1);
1692 	if (!ctrl->sqs)
1693 		goto out_free_changed_ns_list;
1694 
1695 	ctrl->cqs = kzalloc_objs(struct nvmet_cq *, ctrl->max_qid + 1);
1696 	if (!ctrl->cqs)
1697 		goto out_free_sqs;
1698 
1699 	ret = ida_alloc_range(&cntlid_ida,
1700 			     subsys->cntlid_min, subsys->cntlid_max,
1701 			     GFP_KERNEL);
1702 	if (ret < 0) {
1703 		args->status = NVME_SC_CONNECT_CTRL_BUSY | NVME_STATUS_DNR;
1704 		goto out_free_cqs;
1705 	}
1706 	ctrl->cntlid = ret;
1707 
1708 	ret = nvmet_ctrl_init_pr(ctrl);
1709 	if (ret)
1710 		goto init_pr_fail;
1711 	list_add_tail(&ctrl->subsys_entry, &subsys->ctrls);
1712 	nvmet_setup_p2p_ns_map(ctrl, args->p2p_client);
1713 	nvmet_debugfs_ctrl_setup(ctrl);
1714 	mutex_unlock(&subsys->lock);
1715 	up_read(&nvmet_config_sem);
1716 
1717 	nvmet_start_keep_alive_timer(ctrl);
1718 
1719 	dhchap_status = nvmet_setup_auth(ctrl, args->sq, false);
1720 	if (dhchap_status) {
1721 		pr_err("Failed to setup authentication, dhchap status %u\n",
1722 		       dhchap_status);
1723 		nvmet_ctrl_put(ctrl);
1724 		if (dhchap_status == NVME_AUTH_DHCHAP_FAILURE_FAILED)
1725 			args->status =
1726 				NVME_SC_CONNECT_INVALID_HOST | NVME_STATUS_DNR;
1727 		else
1728 			args->status = NVME_SC_INTERNAL;
1729 		return NULL;
1730 	}
1731 
1732 	args->status = NVME_SC_SUCCESS;
1733 
1734 	pr_info("Created %s controller %d for subsystem %s for NQN %s%s%s%s.\n",
1735 		nvmet_is_disc_subsys(ctrl->subsys) ? "discovery" : "nvm",
1736 		ctrl->cntlid, ctrl->subsys->subsysnqn, ctrl->hostnqn,
1737 		ctrl->pi_support ? " T10-PI is enabled" : "",
1738 		nvmet_has_auth(ctrl, args->sq) ? " with DH-HMAC-CHAP" : "",
1739 		nvmet_queue_tls_keyid(args->sq) ? ", TLS" : "");
1740 
1741 	return ctrl;
1742 
1743 init_pr_fail:
1744 	ida_free(&cntlid_ida, ctrl->cntlid);
1745 out_free_cqs:
1746 	kfree(ctrl->cqs);
1747 out_free_sqs:
1748 	kfree(ctrl->sqs);
1749 out_free_changed_ns_list:
1750 	mutex_unlock(&subsys->lock);
1751 	up_read(&nvmet_config_sem);
1752 	kfree(ctrl->changed_ns_list);
1753 out_free_ctrl:
1754 	kfree(ctrl);
1755 out_put_subsystem:
1756 	nvmet_subsys_put(subsys);
1757 	return NULL;
1758 }
1759 EXPORT_SYMBOL_GPL(nvmet_alloc_ctrl);
1760 
1761 static void nvmet_ctrl_free(struct kref *ref)
1762 {
1763 	struct nvmet_ctrl *ctrl = container_of(ref, struct nvmet_ctrl, ref);
1764 	struct nvmet_subsys *subsys = ctrl->subsys;
1765 
1766 	mutex_lock(&subsys->lock);
1767 	nvmet_ctrl_destroy_pr(ctrl);
1768 	nvmet_release_p2p_ns_map(ctrl);
1769 	list_del(&ctrl->subsys_entry);
1770 	mutex_unlock(&subsys->lock);
1771 
1772 	nvmet_stop_keep_alive_timer(ctrl);
1773 
1774 	cancel_work_sync(&ctrl->async_event_work);
1775 	cancel_work_sync(&ctrl->fatal_err_work);
1776 
1777 	nvmet_destroy_auth(ctrl);
1778 
1779 	nvmet_debugfs_ctrl_free(ctrl);
1780 
1781 	ida_free(&cntlid_ida, ctrl->cntlid);
1782 
1783 	nvmet_async_events_free(ctrl);
1784 	kfree(ctrl->sqs);
1785 	kfree(ctrl->cqs);
1786 	kfree(ctrl->changed_ns_list);
1787 	kfree(ctrl);
1788 
1789 	nvmet_subsys_put(subsys);
1790 }
1791 
1792 void nvmet_ctrl_put(struct nvmet_ctrl *ctrl)
1793 {
1794 	kref_put(&ctrl->ref, nvmet_ctrl_free);
1795 }
1796 EXPORT_SYMBOL_GPL(nvmet_ctrl_put);
1797 
1798 void nvmet_ctrl_fatal_error(struct nvmet_ctrl *ctrl)
1799 {
1800 	mutex_lock(&ctrl->lock);
1801 	if (!(ctrl->csts & NVME_CSTS_CFS)) {
1802 		ctrl->csts |= NVME_CSTS_CFS;
1803 		queue_work(nvmet_wq, &ctrl->fatal_err_work);
1804 	}
1805 	mutex_unlock(&ctrl->lock);
1806 }
1807 EXPORT_SYMBOL_GPL(nvmet_ctrl_fatal_error);
1808 
1809 ssize_t nvmet_ctrl_host_traddr(struct nvmet_ctrl *ctrl,
1810 		char *traddr, size_t traddr_len)
1811 {
1812 	if (!ctrl->ops->host_traddr)
1813 		return -EOPNOTSUPP;
1814 	return ctrl->ops->host_traddr(ctrl, traddr, traddr_len);
1815 }
1816 
1817 static struct nvmet_subsys *nvmet_find_get_subsys(struct nvmet_port *port,
1818 		const char *subsysnqn)
1819 {
1820 	struct nvmet_subsys_link *p;
1821 
1822 	if (!port)
1823 		return NULL;
1824 
1825 	if (!strcmp(NVME_DISC_SUBSYS_NAME, subsysnqn)) {
1826 		if (!kref_get_unless_zero(&nvmet_disc_subsys->ref))
1827 			return NULL;
1828 		return nvmet_disc_subsys;
1829 	}
1830 
1831 	down_read(&nvmet_config_sem);
1832 	if (!strncmp(nvmet_disc_subsys->subsysnqn, subsysnqn,
1833 				NVMF_NQN_SIZE)) {
1834 		if (kref_get_unless_zero(&nvmet_disc_subsys->ref)) {
1835 			up_read(&nvmet_config_sem);
1836 			return nvmet_disc_subsys;
1837 		}
1838 	}
1839 	list_for_each_entry(p, &port->subsystems, entry) {
1840 		if (!strncmp(p->subsys->subsysnqn, subsysnqn,
1841 				NVMF_NQN_SIZE)) {
1842 			if (!kref_get_unless_zero(&p->subsys->ref))
1843 				break;
1844 			up_read(&nvmet_config_sem);
1845 			return p->subsys;
1846 		}
1847 	}
1848 	up_read(&nvmet_config_sem);
1849 	return NULL;
1850 }
1851 
1852 struct nvmet_subsys *nvmet_subsys_alloc(const char *subsysnqn,
1853 		enum nvme_subsys_type type)
1854 {
1855 	struct nvmet_subsys *subsys;
1856 	char serial[NVMET_SN_MAX_SIZE / 2];
1857 	int ret;
1858 
1859 	subsys = kzalloc_obj(*subsys);
1860 	if (!subsys)
1861 		return ERR_PTR(-ENOMEM);
1862 
1863 	subsys->ver = NVMET_DEFAULT_VS;
1864 	/* generate a random serial number as our controllers are ephemeral: */
1865 	get_random_bytes(&serial, sizeof(serial));
1866 	bin2hex(subsys->serial, &serial, sizeof(serial));
1867 
1868 	subsys->model_number = kstrdup(NVMET_DEFAULT_CTRL_MODEL, GFP_KERNEL);
1869 	if (!subsys->model_number) {
1870 		ret = -ENOMEM;
1871 		goto free_subsys;
1872 	}
1873 
1874 	subsys->ieee_oui = 0;
1875 
1876 	subsys->firmware_rev = kstrndup(UTS_RELEASE, NVMET_FR_MAX_SIZE, GFP_KERNEL);
1877 	if (!subsys->firmware_rev) {
1878 		ret = -ENOMEM;
1879 		goto free_mn;
1880 	}
1881 
1882 	switch (type) {
1883 	case NVME_NQN_NVME:
1884 		subsys->max_qid = NVMET_NR_QUEUES;
1885 		break;
1886 	case NVME_NQN_DISC:
1887 	case NVME_NQN_CURR:
1888 		subsys->max_qid = 0;
1889 		break;
1890 	default:
1891 		pr_err("%s: Unknown Subsystem type - %d\n", __func__, type);
1892 		ret = -EINVAL;
1893 		goto free_fr;
1894 	}
1895 	subsys->type = type;
1896 	subsys->subsysnqn = kstrndup(subsysnqn, NVMF_NQN_SIZE,
1897 			GFP_KERNEL);
1898 	if (!subsys->subsysnqn) {
1899 		ret = -ENOMEM;
1900 		goto free_fr;
1901 	}
1902 	subsys->cntlid_min = NVME_CNTLID_MIN;
1903 	subsys->cntlid_max = NVME_CNTLID_MAX;
1904 	kref_init(&subsys->ref);
1905 
1906 	mutex_init(&subsys->lock);
1907 	xa_init(&subsys->namespaces);
1908 	INIT_LIST_HEAD(&subsys->ctrls);
1909 	INIT_LIST_HEAD(&subsys->hosts);
1910 
1911 	ret = nvmet_debugfs_subsys_setup(subsys);
1912 	if (ret)
1913 		goto free_subsysnqn;
1914 
1915 	return subsys;
1916 
1917 free_subsysnqn:
1918 	kfree(subsys->subsysnqn);
1919 free_fr:
1920 	kfree(subsys->firmware_rev);
1921 free_mn:
1922 	kfree(subsys->model_number);
1923 free_subsys:
1924 	kfree(subsys);
1925 	return ERR_PTR(ret);
1926 }
1927 
1928 static void nvmet_subsys_free(struct kref *ref)
1929 {
1930 	struct nvmet_subsys *subsys =
1931 		container_of(ref, struct nvmet_subsys, ref);
1932 
1933 	WARN_ON_ONCE(!list_empty(&subsys->ctrls));
1934 	WARN_ON_ONCE(!list_empty(&subsys->hosts));
1935 	WARN_ON_ONCE(!xa_empty(&subsys->namespaces));
1936 
1937 	nvmet_debugfs_subsys_free(subsys);
1938 
1939 	xa_destroy(&subsys->namespaces);
1940 	nvmet_passthru_subsys_free(subsys);
1941 
1942 	kfree(subsys->subsysnqn);
1943 	kfree(subsys->model_number);
1944 	kfree(subsys->firmware_rev);
1945 	kfree(subsys);
1946 }
1947 
1948 void nvmet_subsys_del_ctrls(struct nvmet_subsys *subsys)
1949 {
1950 	struct nvmet_ctrl *ctrl;
1951 
1952 	mutex_lock(&subsys->lock);
1953 	list_for_each_entry(ctrl, &subsys->ctrls, subsys_entry)
1954 		ctrl->ops->delete_ctrl(ctrl);
1955 	mutex_unlock(&subsys->lock);
1956 }
1957 
1958 void nvmet_subsys_put(struct nvmet_subsys *subsys)
1959 {
1960 	kref_put(&subsys->ref, nvmet_subsys_free);
1961 }
1962 
1963 static int __init nvmet_init(void)
1964 {
1965 	int error = -ENOMEM;
1966 
1967 	nvmet_ana_group_enabled[NVMET_DEFAULT_ANA_GRPID] = 1;
1968 
1969 	nvmet_bvec_cache = kmem_cache_create("nvmet-bvec",
1970 			NVMET_MAX_MPOOL_BVEC * sizeof(struct bio_vec), 0,
1971 			SLAB_HWCACHE_ALIGN, NULL);
1972 	if (!nvmet_bvec_cache)
1973 		return -ENOMEM;
1974 
1975 	zbd_wq = alloc_workqueue("nvmet-zbd-wq", WQ_MEM_RECLAIM | WQ_PERCPU,
1976 				 0);
1977 	if (!zbd_wq)
1978 		goto out_destroy_bvec_cache;
1979 
1980 	buffered_io_wq = alloc_workqueue("nvmet-buffered-io-wq",
1981 			WQ_MEM_RECLAIM | WQ_PERCPU, 0);
1982 	if (!buffered_io_wq)
1983 		goto out_free_zbd_work_queue;
1984 
1985 	nvmet_wq = alloc_workqueue("nvmet-wq",
1986 			WQ_MEM_RECLAIM | WQ_UNBOUND | WQ_SYSFS, 0);
1987 	if (!nvmet_wq)
1988 		goto out_free_buffered_work_queue;
1989 
1990 	nvmet_aen_wq = alloc_workqueue("nvmet-aen-wq",
1991 			WQ_MEM_RECLAIM | WQ_UNBOUND, 0);
1992 	if (!nvmet_aen_wq)
1993 		goto out_free_nvmet_work_queue;
1994 
1995 	error = nvmet_init_debugfs();
1996 	if (error)
1997 		goto out_free_nvmet_aen_work_queue;
1998 
1999 	error = nvmet_init_discovery();
2000 	if (error)
2001 		goto out_exit_debugfs;
2002 
2003 	error = nvmet_init_configfs();
2004 	if (error)
2005 		goto out_exit_discovery;
2006 
2007 	return 0;
2008 
2009 out_exit_discovery:
2010 	nvmet_exit_discovery();
2011 out_exit_debugfs:
2012 	nvmet_exit_debugfs();
2013 out_free_nvmet_aen_work_queue:
2014 	destroy_workqueue(nvmet_aen_wq);
2015 out_free_nvmet_work_queue:
2016 	destroy_workqueue(nvmet_wq);
2017 out_free_buffered_work_queue:
2018 	destroy_workqueue(buffered_io_wq);
2019 out_free_zbd_work_queue:
2020 	destroy_workqueue(zbd_wq);
2021 out_destroy_bvec_cache:
2022 	kmem_cache_destroy(nvmet_bvec_cache);
2023 	return error;
2024 }
2025 
2026 static void __exit nvmet_exit(void)
2027 {
2028 	nvmet_exit_configfs();
2029 	nvmet_exit_discovery();
2030 	nvmet_exit_debugfs();
2031 	ida_destroy(&cntlid_ida);
2032 	destroy_workqueue(nvmet_aen_wq);
2033 	destroy_workqueue(nvmet_wq);
2034 	destroy_workqueue(buffered_io_wq);
2035 	destroy_workqueue(zbd_wq);
2036 	kmem_cache_destroy(nvmet_bvec_cache);
2037 
2038 	BUILD_BUG_ON(sizeof(struct nvmf_disc_rsp_page_entry) != 1024);
2039 	BUILD_BUG_ON(sizeof(struct nvmf_disc_rsp_page_hdr) != 1024);
2040 }
2041 
2042 module_init(nvmet_init);
2043 module_exit(nvmet_exit);
2044 
2045 MODULE_DESCRIPTION("NVMe target core framework");
2046 MODULE_LICENSE("GPL v2");
2047