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1 /* SPDX-License-Identifier: GPL-2.0 */
2 /*
3  * Copyright (c) 2011-2014, Intel Corporation.
4  */
5 
6 #ifndef _NVME_H
7 #define _NVME_H
8 
9 #include <linux/nvme.h>
10 #include <linux/cdev.h>
11 #include <linux/pci.h>
12 #include <linux/kref.h>
13 #include <linux/blk-mq.h>
14 #include <linux/sed-opal.h>
15 #include <linux/fault-inject.h>
16 #include <linux/rcupdate.h>
17 #include <linux/wait.h>
18 #include <linux/t10-pi.h>
19 
20 #include <trace/events/block.h>
21 
22 extern unsigned int nvme_io_timeout;
23 #define NVME_IO_TIMEOUT	(nvme_io_timeout * HZ)
24 
25 extern unsigned int admin_timeout;
26 #define NVME_ADMIN_TIMEOUT	(admin_timeout * HZ)
27 
28 #define NVME_DEFAULT_KATO	5
29 
30 #ifdef CONFIG_ARCH_NO_SG_CHAIN
31 #define  NVME_INLINE_SG_CNT  0
32 #define  NVME_INLINE_METADATA_SG_CNT  0
33 #else
34 #define  NVME_INLINE_SG_CNT  2
35 #define  NVME_INLINE_METADATA_SG_CNT  1
36 #endif
37 
38 /*
39  * Default to a 4K page size, with the intention to update this
40  * path in the future to accommodate architectures with differing
41  * kernel and IO page sizes.
42  */
43 #define NVME_CTRL_PAGE_SHIFT	12
44 #define NVME_CTRL_PAGE_SIZE	(1 << NVME_CTRL_PAGE_SHIFT)
45 
46 extern struct workqueue_struct *nvme_wq;
47 extern struct workqueue_struct *nvme_reset_wq;
48 extern struct workqueue_struct *nvme_delete_wq;
49 
50 /*
51  * List of workarounds for devices that required behavior not specified in
52  * the standard.
53  */
54 enum nvme_quirks {
55 	/*
56 	 * Prefers I/O aligned to a stripe size specified in a vendor
57 	 * specific Identify field.
58 	 */
59 	NVME_QUIRK_STRIPE_SIZE			= (1 << 0),
60 
61 	/*
62 	 * The controller doesn't handle Identify value others than 0 or 1
63 	 * correctly.
64 	 */
65 	NVME_QUIRK_IDENTIFY_CNS			= (1 << 1),
66 
67 	/*
68 	 * The controller deterministically returns O's on reads to
69 	 * logical blocks that deallocate was called on.
70 	 */
71 	NVME_QUIRK_DEALLOCATE_ZEROES		= (1 << 2),
72 
73 	/*
74 	 * The controller needs a delay before starts checking the device
75 	 * readiness, which is done by reading the NVME_CSTS_RDY bit.
76 	 */
77 	NVME_QUIRK_DELAY_BEFORE_CHK_RDY		= (1 << 3),
78 
79 	/*
80 	 * APST should not be used.
81 	 */
82 	NVME_QUIRK_NO_APST			= (1 << 4),
83 
84 	/*
85 	 * The deepest sleep state should not be used.
86 	 */
87 	NVME_QUIRK_NO_DEEPEST_PS		= (1 << 5),
88 
89 	/*
90 	 * Set MEDIUM priority on SQ creation
91 	 */
92 	NVME_QUIRK_MEDIUM_PRIO_SQ		= (1 << 7),
93 
94 	/*
95 	 * Ignore device provided subnqn.
96 	 */
97 	NVME_QUIRK_IGNORE_DEV_SUBNQN		= (1 << 8),
98 
99 	/*
100 	 * Broken Write Zeroes.
101 	 */
102 	NVME_QUIRK_DISABLE_WRITE_ZEROES		= (1 << 9),
103 
104 	/*
105 	 * Force simple suspend/resume path.
106 	 */
107 	NVME_QUIRK_SIMPLE_SUSPEND		= (1 << 10),
108 
109 	/*
110 	 * Use only one interrupt vector for all queues
111 	 */
112 	NVME_QUIRK_SINGLE_VECTOR		= (1 << 11),
113 
114 	/*
115 	 * Use non-standard 128 bytes SQEs.
116 	 */
117 	NVME_QUIRK_128_BYTES_SQES		= (1 << 12),
118 
119 	/*
120 	 * Prevent tag overlap between queues
121 	 */
122 	NVME_QUIRK_SHARED_TAGS                  = (1 << 13),
123 
124 	/*
125 	 * Don't change the value of the temperature threshold feature
126 	 */
127 	NVME_QUIRK_NO_TEMP_THRESH_CHANGE	= (1 << 14),
128 
129 	/*
130 	 * The controller doesn't handle the Identify Namespace
131 	 * Identification Descriptor list subcommand despite claiming
132 	 * NVMe 1.3 compliance.
133 	 */
134 	NVME_QUIRK_NO_NS_DESC_LIST		= (1 << 15),
135 
136 	/*
137 	 * The controller does not properly handle DMA addresses over
138 	 * 48 bits.
139 	 */
140 	NVME_QUIRK_DMA_ADDRESS_BITS_48		= (1 << 16),
141 
142 	/*
143 	 * The controller requires the command_id value be be limited, so skip
144 	 * encoding the generation sequence number.
145 	 */
146 	NVME_QUIRK_SKIP_CID_GEN			= (1 << 17),
147 
148 	/*
149 	 * Reports garbage in the namespace identifiers (eui64, nguid, uuid).
150 	 */
151 	NVME_QUIRK_BOGUS_NID			= (1 << 18),
152 
153 	/*
154 	 * No temperature thresholds for channels other than 0 (Composite).
155 	 */
156 	NVME_QUIRK_NO_SECONDARY_TEMP_THRESH	= (1 << 19),
157 
158 	/*
159 	 * Disables simple suspend/resume path.
160 	 */
161 	NVME_QUIRK_FORCE_NO_SIMPLE_SUSPEND	= (1 << 20),
162 };
163 
164 /*
165  * Common request structure for NVMe passthrough.  All drivers must have
166  * this structure as the first member of their request-private data.
167  */
168 struct nvme_request {
169 	struct nvme_command	*cmd;
170 	union nvme_result	result;
171 	u8			genctr;
172 	u8			retries;
173 	u8			flags;
174 	u16			status;
175 	struct nvme_ctrl	*ctrl;
176 };
177 
178 /*
179  * Mark a bio as coming in through the mpath node.
180  */
181 #define REQ_NVME_MPATH		REQ_DRV
182 
183 enum {
184 	NVME_REQ_CANCELLED		= (1 << 0),
185 	NVME_REQ_USERCMD		= (1 << 1),
186 };
187 
nvme_req(struct request * req)188 static inline struct nvme_request *nvme_req(struct request *req)
189 {
190 	return blk_mq_rq_to_pdu(req);
191 }
192 
nvme_req_qid(struct request * req)193 static inline u16 nvme_req_qid(struct request *req)
194 {
195 	if (!req->q->queuedata)
196 		return 0;
197 
198 	return req->mq_hctx->queue_num + 1;
199 }
200 
201 /* The below value is the specific amount of delay needed before checking
202  * readiness in case of the PCI_DEVICE(0x1c58, 0x0003), which needs the
203  * NVME_QUIRK_DELAY_BEFORE_CHK_RDY quirk enabled. The value (in ms) was
204  * found empirically.
205  */
206 #define NVME_QUIRK_DELAY_AMOUNT		2300
207 
208 /*
209  * enum nvme_ctrl_state: Controller state
210  *
211  * @NVME_CTRL_NEW:		New controller just allocated, initial state
212  * @NVME_CTRL_LIVE:		Controller is connected and I/O capable
213  * @NVME_CTRL_RESETTING:	Controller is resetting (or scheduled reset)
214  * @NVME_CTRL_CONNECTING:	Controller is disconnected, now connecting the
215  *				transport
216  * @NVME_CTRL_DELETING:		Controller is deleting (or scheduled deletion)
217  * @NVME_CTRL_DELETING_NOIO:	Controller is deleting and I/O is not
218  *				disabled/failed immediately. This state comes
219  * 				after all async event processing took place and
220  * 				before ns removal and the controller deletion
221  * 				progress
222  * @NVME_CTRL_DEAD:		Controller is non-present/unresponsive during
223  *				shutdown or removal. In this case we forcibly
224  *				kill all inflight I/O as they have no chance to
225  *				complete
226  */
227 enum nvme_ctrl_state {
228 	NVME_CTRL_NEW,
229 	NVME_CTRL_LIVE,
230 	NVME_CTRL_RESETTING,
231 	NVME_CTRL_CONNECTING,
232 	NVME_CTRL_DELETING,
233 	NVME_CTRL_DELETING_NOIO,
234 	NVME_CTRL_DEAD,
235 };
236 
237 struct nvme_fault_inject {
238 #ifdef CONFIG_FAULT_INJECTION_DEBUG_FS
239 	struct fault_attr attr;
240 	struct dentry *parent;
241 	bool dont_retry;	/* DNR, do not retry */
242 	u16 status;		/* status code */
243 #endif
244 };
245 
246 struct nvme_ctrl {
247 	bool comp_seen;
248 	enum nvme_ctrl_state state;
249 	bool identified;
250 	spinlock_t lock;
251 	struct mutex scan_lock;
252 	const struct nvme_ctrl_ops *ops;
253 	struct request_queue *admin_q;
254 	struct request_queue *connect_q;
255 	struct request_queue *fabrics_q;
256 	struct device *dev;
257 	int instance;
258 	int numa_node;
259 	struct blk_mq_tag_set *tagset;
260 	struct blk_mq_tag_set *admin_tagset;
261 	struct list_head namespaces;
262 	struct rw_semaphore namespaces_rwsem;
263 	struct device ctrl_device;
264 	struct device *device;	/* char device */
265 #ifdef CONFIG_NVME_HWMON
266 	struct device *hwmon_device;
267 #endif
268 	struct cdev cdev;
269 	struct work_struct reset_work;
270 	struct work_struct delete_work;
271 	wait_queue_head_t state_wq;
272 
273 	struct nvme_subsystem *subsys;
274 	struct list_head subsys_entry;
275 
276 	struct opal_dev *opal_dev;
277 
278 	char name[12];
279 	u16 cntlid;
280 
281 	u32 ctrl_config;
282 	u16 mtfa;
283 	u32 queue_count;
284 
285 	u64 cap;
286 	u32 max_hw_sectors;
287 	u32 max_segments;
288 	u32 max_integrity_segments;
289 	u32 max_discard_sectors;
290 	u32 max_discard_segments;
291 	u32 max_zeroes_sectors;
292 #ifdef CONFIG_BLK_DEV_ZONED
293 	u32 max_zone_append;
294 #endif
295 	u16 crdt[3];
296 	u16 oncs;
297 	u16 oacs;
298 	u16 nssa;
299 	u16 nr_streams;
300 	u16 sqsize;
301 	u32 max_namespaces;
302 	atomic_t abort_limit;
303 	u8 vwc;
304 	u32 vs;
305 	u32 sgls;
306 	u16 kas;
307 	u8 npss;
308 	u8 apsta;
309 	u16 wctemp;
310 	u16 cctemp;
311 	u32 oaes;
312 	u32 aen_result;
313 	u32 ctratt;
314 	unsigned int shutdown_timeout;
315 	unsigned int kato;
316 	bool subsystem;
317 	unsigned long quirks;
318 	struct nvme_id_power_state psd[32];
319 	struct nvme_effects_log *effects;
320 	struct xarray cels;
321 	struct work_struct scan_work;
322 	struct work_struct async_event_work;
323 	struct delayed_work ka_work;
324 	struct delayed_work failfast_work;
325 	struct nvme_command ka_cmd;
326 	struct work_struct fw_act_work;
327 	unsigned long events;
328 
329 #ifdef CONFIG_NVME_MULTIPATH
330 	/* asymmetric namespace access: */
331 	u8 anacap;
332 	u8 anatt;
333 	u32 anagrpmax;
334 	u32 nanagrpid;
335 	struct mutex ana_lock;
336 	struct nvme_ana_rsp_hdr *ana_log_buf;
337 	size_t ana_log_size;
338 	struct timer_list anatt_timer;
339 	struct work_struct ana_work;
340 #endif
341 
342 	/* Power saving configuration */
343 	u64 ps_max_latency_us;
344 	bool apst_enabled;
345 
346 	/* PCIe only: */
347 	u32 hmpre;
348 	u32 hmmin;
349 	u32 hmminds;
350 	u16 hmmaxd;
351 
352 	/* Fabrics only */
353 	u32 ioccsz;
354 	u32 iorcsz;
355 	u16 icdoff;
356 	u16 maxcmd;
357 	int nr_reconnects;
358 	unsigned long flags;
359 #define NVME_CTRL_FAILFAST_EXPIRED	0
360 	struct nvmf_ctrl_options *opts;
361 
362 	struct page *discard_page;
363 	unsigned long discard_page_busy;
364 
365 	struct nvme_fault_inject fault_inject;
366 };
367 
nvme_ctrl_state(struct nvme_ctrl * ctrl)368 static inline enum nvme_ctrl_state nvme_ctrl_state(struct nvme_ctrl *ctrl)
369 {
370 	return READ_ONCE(ctrl->state);
371 }
372 
373 enum nvme_iopolicy {
374 	NVME_IOPOLICY_NUMA,
375 	NVME_IOPOLICY_RR,
376 };
377 
378 struct nvme_subsystem {
379 	int			instance;
380 	struct device		dev;
381 	/*
382 	 * Because we unregister the device on the last put we need
383 	 * a separate refcount.
384 	 */
385 	struct kref		ref;
386 	struct list_head	entry;
387 	struct mutex		lock;
388 	struct list_head	ctrls;
389 	struct list_head	nsheads;
390 	char			subnqn[NVMF_NQN_SIZE];
391 	char			serial[20];
392 	char			model[40];
393 	char			firmware_rev[8];
394 	u8			cmic;
395 	u16			vendor_id;
396 	u16			awupf;	/* 0's based awupf value. */
397 	struct ida		ns_ida;
398 #ifdef CONFIG_NVME_MULTIPATH
399 	enum nvme_iopolicy	iopolicy;
400 #endif
401 };
402 
403 /*
404  * Container structure for uniqueue namespace identifiers.
405  */
406 struct nvme_ns_ids {
407 	u8	eui64[8];
408 	u8	nguid[16];
409 	uuid_t	uuid;
410 	u8	csi;
411 };
412 
413 /*
414  * Anchor structure for namespaces.  There is one for each namespace in a
415  * NVMe subsystem that any of our controllers can see, and the namespace
416  * structure for each controller is chained of it.  For private namespaces
417  * there is a 1:1 relation to our namespace structures, that is ->list
418  * only ever has a single entry for private namespaces.
419  */
420 struct nvme_ns_head {
421 	struct list_head	list;
422 	struct srcu_struct      srcu;
423 	struct nvme_subsystem	*subsys;
424 	unsigned		ns_id;
425 	struct nvme_ns_ids	ids;
426 	struct list_head	entry;
427 	struct kref		ref;
428 	bool			shared;
429 	int			instance;
430 	struct nvme_effects_log *effects;
431 
432 	struct cdev		cdev;
433 	struct device		cdev_device;
434 
435 	struct gendisk		*disk;
436 #ifdef CONFIG_NVME_MULTIPATH
437 	struct bio_list		requeue_list;
438 	spinlock_t		requeue_lock;
439 	struct work_struct	requeue_work;
440 	struct mutex		lock;
441 	unsigned long		flags;
442 #define NVME_NSHEAD_DISK_LIVE	0
443 	struct nvme_ns __rcu	*current_path[];
444 #endif
445 };
446 
nvme_ns_head_multipath(struct nvme_ns_head * head)447 static inline bool nvme_ns_head_multipath(struct nvme_ns_head *head)
448 {
449 	return IS_ENABLED(CONFIG_NVME_MULTIPATH) && head->disk;
450 }
451 
452 enum nvme_ns_features {
453 	NVME_NS_EXT_LBAS = 1 << 0, /* support extended LBA format */
454 	NVME_NS_METADATA_SUPPORTED = 1 << 1, /* support getting generated md */
455 };
456 
457 struct nvme_ns {
458 	struct list_head list;
459 
460 	struct nvme_ctrl *ctrl;
461 	struct request_queue *queue;
462 	struct gendisk *disk;
463 #ifdef CONFIG_NVME_MULTIPATH
464 	enum nvme_ana_state ana_state;
465 	u32 ana_grpid;
466 #endif
467 	struct list_head siblings;
468 	struct kref kref;
469 	struct nvme_ns_head *head;
470 
471 	int lba_shift;
472 	u16 ms;
473 	u16 sgs;
474 	u32 sws;
475 	u8 pi_type;
476 #ifdef CONFIG_BLK_DEV_ZONED
477 	u64 zsze;
478 #endif
479 	unsigned long features;
480 	unsigned long flags;
481 #define NVME_NS_REMOVING	0
482 #define NVME_NS_DEAD     	1
483 #define NVME_NS_ANA_PENDING	2
484 #define NVME_NS_FORCE_RO	3
485 #define NVME_NS_READY		4
486 
487 	struct cdev		cdev;
488 	struct device		cdev_device;
489 
490 	struct nvme_fault_inject fault_inject;
491 
492 };
493 
494 /* NVMe ns supports metadata actions by the controller (generate/strip) */
nvme_ns_has_pi(struct nvme_ns * ns)495 static inline bool nvme_ns_has_pi(struct nvme_ns *ns)
496 {
497 	return ns->pi_type && ns->ms == sizeof(struct t10_pi_tuple);
498 }
499 
500 struct nvme_ctrl_ops {
501 	const char *name;
502 	struct module *module;
503 	unsigned int flags;
504 #define NVME_F_FABRICS			(1 << 0)
505 #define NVME_F_METADATA_SUPPORTED	(1 << 1)
506 #define NVME_F_PCI_P2PDMA		(1 << 2)
507 	int (*reg_read32)(struct nvme_ctrl *ctrl, u32 off, u32 *val);
508 	int (*reg_write32)(struct nvme_ctrl *ctrl, u32 off, u32 val);
509 	int (*reg_read64)(struct nvme_ctrl *ctrl, u32 off, u64 *val);
510 	void (*free_ctrl)(struct nvme_ctrl *ctrl);
511 	void (*submit_async_event)(struct nvme_ctrl *ctrl);
512 	void (*delete_ctrl)(struct nvme_ctrl *ctrl);
513 	void (*stop_ctrl)(struct nvme_ctrl *ctrl);
514 	int (*get_address)(struct nvme_ctrl *ctrl, char *buf, int size);
515 };
516 
517 /*
518  * nvme command_id is constructed as such:
519  * | xxxx | xxxxxxxxxxxx |
520  *   gen    request tag
521  */
522 #define nvme_genctr_mask(gen)			(gen & 0xf)
523 #define nvme_cid_install_genctr(gen)		(nvme_genctr_mask(gen) << 12)
524 #define nvme_genctr_from_cid(cid)		((cid & 0xf000) >> 12)
525 #define nvme_tag_from_cid(cid)			(cid & 0xfff)
526 
nvme_cid(struct request * rq)527 static inline u16 nvme_cid(struct request *rq)
528 {
529 	return nvme_cid_install_genctr(nvme_req(rq)->genctr) | rq->tag;
530 }
531 
nvme_find_rq(struct blk_mq_tags * tags,u16 command_id)532 static inline struct request *nvme_find_rq(struct blk_mq_tags *tags,
533 		u16 command_id)
534 {
535 	u8 genctr = nvme_genctr_from_cid(command_id);
536 	u16 tag = nvme_tag_from_cid(command_id);
537 	struct request *rq;
538 
539 	rq = blk_mq_tag_to_rq(tags, tag);
540 	if (unlikely(!rq)) {
541 		pr_err("could not locate request for tag %#x\n",
542 			tag);
543 		return NULL;
544 	}
545 	if (unlikely(nvme_genctr_mask(nvme_req(rq)->genctr) != genctr)) {
546 		dev_err(nvme_req(rq)->ctrl->device,
547 			"request %#x genctr mismatch (got %#x expected %#x)\n",
548 			tag, genctr, nvme_genctr_mask(nvme_req(rq)->genctr));
549 		return NULL;
550 	}
551 	return rq;
552 }
553 
nvme_cid_to_rq(struct blk_mq_tags * tags,u16 command_id)554 static inline struct request *nvme_cid_to_rq(struct blk_mq_tags *tags,
555                 u16 command_id)
556 {
557 	return blk_mq_tag_to_rq(tags, nvme_tag_from_cid(command_id));
558 }
559 
560 #ifdef CONFIG_FAULT_INJECTION_DEBUG_FS
561 void nvme_fault_inject_init(struct nvme_fault_inject *fault_inj,
562 			    const char *dev_name);
563 void nvme_fault_inject_fini(struct nvme_fault_inject *fault_inject);
564 void nvme_should_fail(struct request *req);
565 #else
nvme_fault_inject_init(struct nvme_fault_inject * fault_inj,const char * dev_name)566 static inline void nvme_fault_inject_init(struct nvme_fault_inject *fault_inj,
567 					  const char *dev_name)
568 {
569 }
nvme_fault_inject_fini(struct nvme_fault_inject * fault_inj)570 static inline void nvme_fault_inject_fini(struct nvme_fault_inject *fault_inj)
571 {
572 }
nvme_should_fail(struct request * req)573 static inline void nvme_should_fail(struct request *req) {}
574 #endif
575 
576 bool nvme_wait_reset(struct nvme_ctrl *ctrl);
577 int nvme_try_sched_reset(struct nvme_ctrl *ctrl);
578 
nvme_reset_subsystem(struct nvme_ctrl * ctrl)579 static inline int nvme_reset_subsystem(struct nvme_ctrl *ctrl)
580 {
581 	int ret;
582 
583 	if (!ctrl->subsystem)
584 		return -ENOTTY;
585 	if (!nvme_wait_reset(ctrl))
586 		return -EBUSY;
587 
588 	ret = ctrl->ops->reg_write32(ctrl, NVME_REG_NSSR, 0x4E564D65);
589 	if (ret)
590 		return ret;
591 
592 	return nvme_try_sched_reset(ctrl);
593 }
594 
595 /*
596  * Convert a 512B sector number to a device logical block number.
597  */
nvme_sect_to_lba(struct nvme_ns * ns,sector_t sector)598 static inline u64 nvme_sect_to_lba(struct nvme_ns *ns, sector_t sector)
599 {
600 	return sector >> (ns->lba_shift - SECTOR_SHIFT);
601 }
602 
603 /*
604  * Convert a device logical block number to a 512B sector number.
605  */
nvme_lba_to_sect(struct nvme_ns * ns,u64 lba)606 static inline sector_t nvme_lba_to_sect(struct nvme_ns *ns, u64 lba)
607 {
608 	return lba << (ns->lba_shift - SECTOR_SHIFT);
609 }
610 
611 /*
612  * Convert byte length to nvme's 0-based num dwords
613  */
nvme_bytes_to_numd(size_t len)614 static inline u32 nvme_bytes_to_numd(size_t len)
615 {
616 	return (len >> 2) - 1;
617 }
618 
nvme_is_ana_error(u16 status)619 static inline bool nvme_is_ana_error(u16 status)
620 {
621 	switch (status & 0x7ff) {
622 	case NVME_SC_ANA_TRANSITION:
623 	case NVME_SC_ANA_INACCESSIBLE:
624 	case NVME_SC_ANA_PERSISTENT_LOSS:
625 		return true;
626 	default:
627 		return false;
628 	}
629 }
630 
nvme_is_path_error(u16 status)631 static inline bool nvme_is_path_error(u16 status)
632 {
633 	/* check for a status code type of 'path related status' */
634 	return (status & 0x700) == 0x300;
635 }
636 
637 /*
638  * Fill in the status and result information from the CQE, and then figure out
639  * if blk-mq will need to use IPI magic to complete the request, and if yes do
640  * so.  If not let the caller complete the request without an indirect function
641  * call.
642  */
nvme_try_complete_req(struct request * req,__le16 status,union nvme_result result)643 static inline bool nvme_try_complete_req(struct request *req, __le16 status,
644 		union nvme_result result)
645 {
646 	struct nvme_request *rq = nvme_req(req);
647 
648 	rq->status = le16_to_cpu(status) >> 1;
649 	rq->result = result;
650 	/* inject error when permitted by fault injection framework */
651 	nvme_should_fail(req);
652 	if (unlikely(blk_should_fake_timeout(req->q)))
653 		return true;
654 	return blk_mq_complete_request_remote(req);
655 }
656 
nvme_get_ctrl(struct nvme_ctrl * ctrl)657 static inline void nvme_get_ctrl(struct nvme_ctrl *ctrl)
658 {
659 	get_device(ctrl->device);
660 }
661 
nvme_put_ctrl(struct nvme_ctrl * ctrl)662 static inline void nvme_put_ctrl(struct nvme_ctrl *ctrl)
663 {
664 	put_device(ctrl->device);
665 }
666 
nvme_is_aen_req(u16 qid,__u16 command_id)667 static inline bool nvme_is_aen_req(u16 qid, __u16 command_id)
668 {
669 	return !qid &&
670 		nvme_tag_from_cid(command_id) >= NVME_AQ_BLK_MQ_DEPTH;
671 }
672 
673 void nvme_complete_rq(struct request *req);
674 blk_status_t nvme_host_path_error(struct request *req);
675 bool nvme_cancel_request(struct request *req, void *data, bool reserved);
676 void nvme_cancel_tagset(struct nvme_ctrl *ctrl);
677 void nvme_cancel_admin_tagset(struct nvme_ctrl *ctrl);
678 bool nvme_change_ctrl_state(struct nvme_ctrl *ctrl,
679 		enum nvme_ctrl_state new_state);
680 int nvme_disable_ctrl(struct nvme_ctrl *ctrl);
681 int nvme_enable_ctrl(struct nvme_ctrl *ctrl);
682 int nvme_shutdown_ctrl(struct nvme_ctrl *ctrl);
683 int nvme_init_ctrl(struct nvme_ctrl *ctrl, struct device *dev,
684 		const struct nvme_ctrl_ops *ops, unsigned long quirks);
685 void nvme_uninit_ctrl(struct nvme_ctrl *ctrl);
686 void nvme_start_ctrl(struct nvme_ctrl *ctrl);
687 void nvme_stop_ctrl(struct nvme_ctrl *ctrl);
688 int nvme_init_ctrl_finish(struct nvme_ctrl *ctrl);
689 
690 void nvme_remove_namespaces(struct nvme_ctrl *ctrl);
691 
692 int nvme_sec_submit(void *data, u16 spsp, u8 secp, void *buffer, size_t len,
693 		bool send);
694 
695 void nvme_complete_async_event(struct nvme_ctrl *ctrl, __le16 status,
696 		volatile union nvme_result *res);
697 
698 void nvme_stop_queues(struct nvme_ctrl *ctrl);
699 void nvme_start_queues(struct nvme_ctrl *ctrl);
700 void nvme_kill_queues(struct nvme_ctrl *ctrl);
701 void nvme_sync_queues(struct nvme_ctrl *ctrl);
702 void nvme_sync_io_queues(struct nvme_ctrl *ctrl);
703 void nvme_unfreeze(struct nvme_ctrl *ctrl);
704 void nvme_wait_freeze(struct nvme_ctrl *ctrl);
705 int nvme_wait_freeze_timeout(struct nvme_ctrl *ctrl, long timeout);
706 void nvme_start_freeze(struct nvme_ctrl *ctrl);
707 
708 #define NVME_QID_ANY -1
709 struct request *nvme_alloc_request(struct request_queue *q,
710 		struct nvme_command *cmd, blk_mq_req_flags_t flags);
711 void nvme_cleanup_cmd(struct request *req);
712 blk_status_t nvme_setup_cmd(struct nvme_ns *ns, struct request *req);
713 blk_status_t nvme_fail_nonready_command(struct nvme_ctrl *ctrl,
714 		struct request *req);
715 bool __nvme_check_ready(struct nvme_ctrl *ctrl, struct request *rq,
716 		bool queue_live);
717 
nvme_check_ready(struct nvme_ctrl * ctrl,struct request * rq,bool queue_live)718 static inline bool nvme_check_ready(struct nvme_ctrl *ctrl, struct request *rq,
719 		bool queue_live)
720 {
721 	if (likely(ctrl->state == NVME_CTRL_LIVE))
722 		return true;
723 	if (ctrl->ops->flags & NVME_F_FABRICS &&
724 	    ctrl->state == NVME_CTRL_DELETING)
725 		return true;
726 	return __nvme_check_ready(ctrl, rq, queue_live);
727 }
728 
729 /*
730  * NSID shall be unique for all shared namespaces, or if at least one of the
731  * following conditions is met:
732  *   1. Namespace Management is supported by the controller
733  *   2. ANA is supported by the controller
734  *   3. NVM Set are supported by the controller
735  *
736  * In other case, private namespace are not required to report a unique NSID.
737  */
nvme_is_unique_nsid(struct nvme_ctrl * ctrl,struct nvme_ns_head * head)738 static inline bool nvme_is_unique_nsid(struct nvme_ctrl *ctrl,
739 		struct nvme_ns_head *head)
740 {
741 	return head->shared ||
742 		(ctrl->oacs & NVME_CTRL_OACS_NS_MNGT_SUPP) ||
743 		(ctrl->subsys->cmic & NVME_CTRL_CMIC_ANA) ||
744 		(ctrl->ctratt & NVME_CTRL_CTRATT_NVM_SETS);
745 }
746 
747 int nvme_submit_sync_cmd(struct request_queue *q, struct nvme_command *cmd,
748 		void *buf, unsigned bufflen);
749 int __nvme_submit_sync_cmd(struct request_queue *q, struct nvme_command *cmd,
750 		union nvme_result *result, void *buffer, unsigned bufflen,
751 		unsigned timeout, int qid, int at_head,
752 		blk_mq_req_flags_t flags);
753 int nvme_set_features(struct nvme_ctrl *dev, unsigned int fid,
754 		      unsigned int dword11, void *buffer, size_t buflen,
755 		      u32 *result);
756 int nvme_get_features(struct nvme_ctrl *dev, unsigned int fid,
757 		      unsigned int dword11, void *buffer, size_t buflen,
758 		      u32 *result);
759 int nvme_set_queue_count(struct nvme_ctrl *ctrl, int *count);
760 void nvme_stop_keep_alive(struct nvme_ctrl *ctrl);
761 int nvme_reset_ctrl(struct nvme_ctrl *ctrl);
762 int nvme_reset_ctrl_sync(struct nvme_ctrl *ctrl);
763 int nvme_delete_ctrl(struct nvme_ctrl *ctrl);
764 void nvme_queue_scan(struct nvme_ctrl *ctrl);
765 int nvme_get_log(struct nvme_ctrl *ctrl, u32 nsid, u8 log_page, u8 lsp, u8 csi,
766 		void *log, size_t size, u64 offset);
767 bool nvme_tryget_ns_head(struct nvme_ns_head *head);
768 void nvme_put_ns_head(struct nvme_ns_head *head);
769 int nvme_cdev_add(struct cdev *cdev, struct device *cdev_device,
770 		const struct file_operations *fops, struct module *owner);
771 void nvme_cdev_del(struct cdev *cdev, struct device *cdev_device);
772 int nvme_ioctl(struct block_device *bdev, fmode_t mode,
773 		unsigned int cmd, unsigned long arg);
774 long nvme_ns_chr_ioctl(struct file *file, unsigned int cmd, unsigned long arg);
775 int nvme_ns_head_ioctl(struct block_device *bdev, fmode_t mode,
776 		unsigned int cmd, unsigned long arg);
777 long nvme_ns_head_chr_ioctl(struct file *file, unsigned int cmd,
778 		unsigned long arg);
779 long nvme_dev_ioctl(struct file *file, unsigned int cmd,
780 		unsigned long arg);
781 int nvme_getgeo(struct block_device *bdev, struct hd_geometry *geo);
782 
783 extern const struct attribute_group *nvme_ns_id_attr_groups[];
784 extern const struct pr_ops nvme_pr_ops;
785 extern const struct block_device_operations nvme_ns_head_ops;
786 
787 struct nvme_ns *nvme_find_path(struct nvme_ns_head *head);
788 #ifdef CONFIG_NVME_MULTIPATH
nvme_ctrl_use_ana(struct nvme_ctrl * ctrl)789 static inline bool nvme_ctrl_use_ana(struct nvme_ctrl *ctrl)
790 {
791 	return ctrl->ana_log_buf != NULL;
792 }
793 
794 void nvme_mpath_unfreeze(struct nvme_subsystem *subsys);
795 void nvme_mpath_wait_freeze(struct nvme_subsystem *subsys);
796 void nvme_mpath_start_freeze(struct nvme_subsystem *subsys);
797 bool nvme_mpath_set_disk_name(struct nvme_ns *ns, char *disk_name, int *flags);
798 void nvme_failover_req(struct request *req);
799 void nvme_kick_requeue_lists(struct nvme_ctrl *ctrl);
800 int nvme_mpath_alloc_disk(struct nvme_ctrl *ctrl,struct nvme_ns_head *head);
801 void nvme_mpath_add_disk(struct nvme_ns *ns, struct nvme_id_ns *id);
802 void nvme_mpath_remove_disk(struct nvme_ns_head *head);
803 int nvme_mpath_init_identify(struct nvme_ctrl *ctrl, struct nvme_id_ctrl *id);
804 void nvme_mpath_init_ctrl(struct nvme_ctrl *ctrl);
805 void nvme_mpath_update(struct nvme_ctrl *ctrl);
806 void nvme_mpath_uninit(struct nvme_ctrl *ctrl);
807 void nvme_mpath_stop(struct nvme_ctrl *ctrl);
808 bool nvme_mpath_clear_current_path(struct nvme_ns *ns);
809 void nvme_mpath_revalidate_paths(struct nvme_ns *ns);
810 void nvme_mpath_clear_ctrl_paths(struct nvme_ctrl *ctrl);
811 void nvme_mpath_shutdown_disk(struct nvme_ns_head *head);
812 
nvme_trace_bio_complete(struct request * req)813 static inline void nvme_trace_bio_complete(struct request *req)
814 {
815 	struct nvme_ns *ns = req->q->queuedata;
816 
817 	if ((req->cmd_flags & REQ_NVME_MPATH) && req->bio)
818 		trace_block_bio_complete(ns->head->disk->queue, req->bio);
819 }
820 
821 extern struct device_attribute dev_attr_ana_grpid;
822 extern struct device_attribute dev_attr_ana_state;
823 extern struct device_attribute subsys_attr_iopolicy;
824 
825 #else
nvme_ctrl_use_ana(struct nvme_ctrl * ctrl)826 static inline bool nvme_ctrl_use_ana(struct nvme_ctrl *ctrl)
827 {
828 	return false;
829 }
nvme_mpath_set_disk_name(struct nvme_ns * ns,char * disk_name,int * flags)830 static inline bool nvme_mpath_set_disk_name(struct nvme_ns *ns, char *disk_name,
831 		int *flags)
832 {
833 	return false;
834 }
nvme_failover_req(struct request * req)835 static inline void nvme_failover_req(struct request *req)
836 {
837 }
nvme_kick_requeue_lists(struct nvme_ctrl * ctrl)838 static inline void nvme_kick_requeue_lists(struct nvme_ctrl *ctrl)
839 {
840 }
nvme_mpath_alloc_disk(struct nvme_ctrl * ctrl,struct nvme_ns_head * head)841 static inline int nvme_mpath_alloc_disk(struct nvme_ctrl *ctrl,
842 		struct nvme_ns_head *head)
843 {
844 	return 0;
845 }
nvme_mpath_add_disk(struct nvme_ns * ns,struct nvme_id_ns * id)846 static inline void nvme_mpath_add_disk(struct nvme_ns *ns,
847 		struct nvme_id_ns *id)
848 {
849 }
nvme_mpath_remove_disk(struct nvme_ns_head * head)850 static inline void nvme_mpath_remove_disk(struct nvme_ns_head *head)
851 {
852 }
nvme_mpath_clear_current_path(struct nvme_ns * ns)853 static inline bool nvme_mpath_clear_current_path(struct nvme_ns *ns)
854 {
855 	return false;
856 }
nvme_mpath_revalidate_paths(struct nvme_ns * ns)857 static inline void nvme_mpath_revalidate_paths(struct nvme_ns *ns)
858 {
859 }
nvme_mpath_clear_ctrl_paths(struct nvme_ctrl * ctrl)860 static inline void nvme_mpath_clear_ctrl_paths(struct nvme_ctrl *ctrl)
861 {
862 }
nvme_mpath_shutdown_disk(struct nvme_ns_head * head)863 static inline void nvme_mpath_shutdown_disk(struct nvme_ns_head *head)
864 {
865 }
nvme_trace_bio_complete(struct request * req)866 static inline void nvme_trace_bio_complete(struct request *req)
867 {
868 }
nvme_mpath_init_ctrl(struct nvme_ctrl * ctrl)869 static inline void nvme_mpath_init_ctrl(struct nvme_ctrl *ctrl)
870 {
871 }
nvme_mpath_init_identify(struct nvme_ctrl * ctrl,struct nvme_id_ctrl * id)872 static inline int nvme_mpath_init_identify(struct nvme_ctrl *ctrl,
873 		struct nvme_id_ctrl *id)
874 {
875 	if (ctrl->subsys->cmic & NVME_CTRL_CMIC_ANA)
876 		dev_warn(ctrl->device,
877 "Please enable CONFIG_NVME_MULTIPATH for full support of multi-port devices.\n");
878 	return 0;
879 }
nvme_mpath_update(struct nvme_ctrl * ctrl)880 static inline void nvme_mpath_update(struct nvme_ctrl *ctrl)
881 {
882 }
nvme_mpath_uninit(struct nvme_ctrl * ctrl)883 static inline void nvme_mpath_uninit(struct nvme_ctrl *ctrl)
884 {
885 }
nvme_mpath_stop(struct nvme_ctrl * ctrl)886 static inline void nvme_mpath_stop(struct nvme_ctrl *ctrl)
887 {
888 }
nvme_mpath_unfreeze(struct nvme_subsystem * subsys)889 static inline void nvme_mpath_unfreeze(struct nvme_subsystem *subsys)
890 {
891 }
nvme_mpath_wait_freeze(struct nvme_subsystem * subsys)892 static inline void nvme_mpath_wait_freeze(struct nvme_subsystem *subsys)
893 {
894 }
nvme_mpath_start_freeze(struct nvme_subsystem * subsys)895 static inline void nvme_mpath_start_freeze(struct nvme_subsystem *subsys)
896 {
897 }
898 #endif /* CONFIG_NVME_MULTIPATH */
899 
900 int nvme_revalidate_zones(struct nvme_ns *ns);
901 int nvme_ns_report_zones(struct nvme_ns *ns, sector_t sector,
902 		unsigned int nr_zones, report_zones_cb cb, void *data);
903 #ifdef CONFIG_BLK_DEV_ZONED
904 int nvme_update_zone_info(struct nvme_ns *ns, unsigned lbaf);
905 blk_status_t nvme_setup_zone_mgmt_send(struct nvme_ns *ns, struct request *req,
906 				       struct nvme_command *cmnd,
907 				       enum nvme_zone_mgmt_action action);
908 #else
nvme_setup_zone_mgmt_send(struct nvme_ns * ns,struct request * req,struct nvme_command * cmnd,enum nvme_zone_mgmt_action action)909 static inline blk_status_t nvme_setup_zone_mgmt_send(struct nvme_ns *ns,
910 		struct request *req, struct nvme_command *cmnd,
911 		enum nvme_zone_mgmt_action action)
912 {
913 	return BLK_STS_NOTSUPP;
914 }
915 
nvme_update_zone_info(struct nvme_ns * ns,unsigned lbaf)916 static inline int nvme_update_zone_info(struct nvme_ns *ns, unsigned lbaf)
917 {
918 	dev_warn(ns->ctrl->device,
919 		 "Please enable CONFIG_BLK_DEV_ZONED to support ZNS devices\n");
920 	return -EPROTONOSUPPORT;
921 }
922 #endif
923 
nvme_get_ns_from_dev(struct device * dev)924 static inline struct nvme_ns *nvme_get_ns_from_dev(struct device *dev)
925 {
926 	return dev_to_disk(dev)->private_data;
927 }
928 
929 #ifdef CONFIG_NVME_HWMON
930 int nvme_hwmon_init(struct nvme_ctrl *ctrl);
931 void nvme_hwmon_exit(struct nvme_ctrl *ctrl);
932 #else
nvme_hwmon_init(struct nvme_ctrl * ctrl)933 static inline int nvme_hwmon_init(struct nvme_ctrl *ctrl)
934 {
935 	return 0;
936 }
937 
nvme_hwmon_exit(struct nvme_ctrl * ctrl)938 static inline void nvme_hwmon_exit(struct nvme_ctrl *ctrl)
939 {
940 }
941 #endif
942 
nvme_ctrl_sgl_supported(struct nvme_ctrl * ctrl)943 static inline bool nvme_ctrl_sgl_supported(struct nvme_ctrl *ctrl)
944 {
945 	return ctrl->sgls & ((1 << 0) | (1 << 1));
946 }
947 
948 u32 nvme_command_effects(struct nvme_ctrl *ctrl, struct nvme_ns *ns,
949 			 u8 opcode);
950 int nvme_execute_passthru_rq(struct request *rq);
951 struct nvme_ctrl *nvme_ctrl_from_file(struct file *file);
952 struct nvme_ns *nvme_find_get_ns(struct nvme_ctrl *ctrl, unsigned nsid);
953 void nvme_put_ns(struct nvme_ns *ns);
954 
nvme_multi_css(struct nvme_ctrl * ctrl)955 static inline bool nvme_multi_css(struct nvme_ctrl *ctrl)
956 {
957 	return (ctrl->ctrl_config & NVME_CC_CSS_MASK) == NVME_CC_CSS_CSI;
958 }
959 
960 #endif /* _NVME_H */
961