xref: /linux/drivers/block/null_blk/main.c (revision 570f7e331f5febb30f1384817463c7e42b65ca7d)
1 // SPDX-License-Identifier: GPL-2.0-only
2 /*
3  * Add configfs and memory store: Kyungchan Koh <kkc6196@fb.com> and
4  * Shaohua Li <shli@fb.com>
5  */
6 #include <linux/module.h>
7 
8 #include <linux/moduleparam.h>
9 #include <linux/sched.h>
10 #include <linux/fs.h>
11 #include <linux/init.h>
12 #include "null_blk.h"
13 
14 #undef pr_fmt
15 #define pr_fmt(fmt)	"null_blk: " fmt
16 
17 #define FREE_BATCH		16
18 
19 #define TICKS_PER_SEC		50ULL
20 #define TIMER_INTERVAL		(NSEC_PER_SEC / TICKS_PER_SEC)
21 
22 #ifdef CONFIG_BLK_DEV_NULL_BLK_FAULT_INJECTION
23 static DECLARE_FAULT_ATTR(null_timeout_attr);
24 static DECLARE_FAULT_ATTR(null_requeue_attr);
25 static DECLARE_FAULT_ATTR(null_init_hctx_attr);
26 #endif
27 
28 static inline u64 mb_per_tick(int mbps)
29 {
30 	return (1 << 20) / TICKS_PER_SEC * ((u64) mbps);
31 }
32 
33 /*
34  * Status flags for nullb_device.
35  *
36  * CONFIGURED:	Device has been configured and turned on. Cannot reconfigure.
37  * UP:		Device is currently on and visible in userspace.
38  * THROTTLED:	Device is being throttled.
39  * CACHE:	Device is using a write-back cache.
40  */
41 enum nullb_device_flags {
42 	NULLB_DEV_FL_CONFIGURED	= 0,
43 	NULLB_DEV_FL_UP		= 1,
44 	NULLB_DEV_FL_THROTTLED	= 2,
45 	NULLB_DEV_FL_CACHE	= 3,
46 };
47 
48 #define MAP_SZ		((PAGE_SIZE >> SECTOR_SHIFT) + 2)
49 /*
50  * nullb_page is a page in memory for nullb devices.
51  *
52  * @page:	The page holding the data.
53  * @bitmap:	The bitmap represents which sector in the page has data.
54  *		Each bit represents one block size. For example, sector 8
55  *		will use the 7th bit
56  * The highest 2 bits of bitmap are for special purpose. LOCK means the cache
57  * page is being flushing to storage. FREE means the cache page is freed and
58  * should be skipped from flushing to storage. Please see
59  * null_make_cache_space
60  */
61 struct nullb_page {
62 	struct page *page;
63 	DECLARE_BITMAP(bitmap, MAP_SZ);
64 };
65 #define NULLB_PAGE_LOCK (MAP_SZ - 1)
66 #define NULLB_PAGE_FREE (MAP_SZ - 2)
67 
68 static LIST_HEAD(nullb_list);
69 static DEFINE_MUTEX(lock);
70 static int null_major;
71 static DEFINE_IDA(nullb_indexes);
72 static struct blk_mq_tag_set tag_set;
73 
74 enum {
75 	NULL_IRQ_NONE		= 0,
76 	NULL_IRQ_SOFTIRQ	= 1,
77 	NULL_IRQ_TIMER		= 2,
78 };
79 
80 static bool g_virt_boundary;
81 module_param_named(virt_boundary, g_virt_boundary, bool, 0444);
82 MODULE_PARM_DESC(virt_boundary, "Require a virtual boundary for the device. Default: False");
83 
84 static int g_no_sched;
85 module_param_named(no_sched, g_no_sched, int, 0444);
86 MODULE_PARM_DESC(no_sched, "No io scheduler");
87 
88 static int g_submit_queues = 1;
89 module_param_named(submit_queues, g_submit_queues, int, 0444);
90 MODULE_PARM_DESC(submit_queues, "Number of submission queues");
91 
92 static int g_poll_queues = 1;
93 module_param_named(poll_queues, g_poll_queues, int, 0444);
94 MODULE_PARM_DESC(poll_queues, "Number of IOPOLL submission queues");
95 
96 static int g_home_node = NUMA_NO_NODE;
97 module_param_named(home_node, g_home_node, int, 0444);
98 MODULE_PARM_DESC(home_node, "Home node for the device");
99 
100 #ifdef CONFIG_BLK_DEV_NULL_BLK_FAULT_INJECTION
101 /*
102  * For more details about fault injection, please refer to
103  * Documentation/fault-injection/fault-injection.rst.
104  */
105 static char g_timeout_str[80];
106 module_param_string(timeout, g_timeout_str, sizeof(g_timeout_str), 0444);
107 MODULE_PARM_DESC(timeout, "Fault injection. timeout=<interval>,<probability>,<space>,<times>");
108 
109 static char g_requeue_str[80];
110 module_param_string(requeue, g_requeue_str, sizeof(g_requeue_str), 0444);
111 MODULE_PARM_DESC(requeue, "Fault injection. requeue=<interval>,<probability>,<space>,<times>");
112 
113 static char g_init_hctx_str[80];
114 module_param_string(init_hctx, g_init_hctx_str, sizeof(g_init_hctx_str), 0444);
115 MODULE_PARM_DESC(init_hctx, "Fault injection to fail hctx init. init_hctx=<interval>,<probability>,<space>,<times>");
116 #endif
117 
118 /*
119  * Historic queue modes.
120  *
121  * These days nothing but NULL_Q_MQ is actually supported, but we keep it the
122  * enum for error reporting.
123  */
124 enum {
125 	NULL_Q_BIO	= 0,
126 	NULL_Q_RQ	= 1,
127 	NULL_Q_MQ	= 2,
128 };
129 
130 static int g_queue_mode = NULL_Q_MQ;
131 
132 static int null_param_store_val(const char *str, int *val, int min, int max)
133 {
134 	int ret, new_val;
135 
136 	ret = kstrtoint(str, 10, &new_val);
137 	if (ret)
138 		return -EINVAL;
139 
140 	if (new_val < min || new_val > max)
141 		return -EINVAL;
142 
143 	*val = new_val;
144 	return 0;
145 }
146 
147 static int null_set_queue_mode(const char *str, const struct kernel_param *kp)
148 {
149 	return null_param_store_val(str, &g_queue_mode, NULL_Q_BIO, NULL_Q_MQ);
150 }
151 
152 static const struct kernel_param_ops null_queue_mode_param_ops = {
153 	.set	= null_set_queue_mode,
154 	.get	= param_get_int,
155 };
156 
157 device_param_cb(queue_mode, &null_queue_mode_param_ops, &g_queue_mode, 0444);
158 MODULE_PARM_DESC(queue_mode, "Block interface to use (0=bio,1=rq,2=multiqueue)");
159 
160 static int g_gb = 250;
161 module_param_named(gb, g_gb, int, 0444);
162 MODULE_PARM_DESC(gb, "Size in GB");
163 
164 static int g_bs = 512;
165 module_param_named(bs, g_bs, int, 0444);
166 MODULE_PARM_DESC(bs, "Block size (in bytes)");
167 
168 static int g_max_sectors;
169 module_param_named(max_sectors, g_max_sectors, int, 0444);
170 MODULE_PARM_DESC(max_sectors, "Maximum size of a command (in 512B sectors)");
171 
172 static unsigned int nr_devices = 1;
173 module_param(nr_devices, uint, 0444);
174 MODULE_PARM_DESC(nr_devices, "Number of devices to register");
175 
176 static bool g_blocking;
177 module_param_named(blocking, g_blocking, bool, 0444);
178 MODULE_PARM_DESC(blocking, "Register as a blocking blk-mq driver device");
179 
180 static bool g_shared_tags;
181 module_param_named(shared_tags, g_shared_tags, bool, 0444);
182 MODULE_PARM_DESC(shared_tags, "Share tag set between devices for blk-mq");
183 
184 static bool g_shared_tag_bitmap;
185 module_param_named(shared_tag_bitmap, g_shared_tag_bitmap, bool, 0444);
186 MODULE_PARM_DESC(shared_tag_bitmap, "Use shared tag bitmap for all submission queues for blk-mq");
187 
188 static int g_irqmode = NULL_IRQ_SOFTIRQ;
189 
190 static int null_set_irqmode(const char *str, const struct kernel_param *kp)
191 {
192 	return null_param_store_val(str, &g_irqmode, NULL_IRQ_NONE,
193 					NULL_IRQ_TIMER);
194 }
195 
196 static const struct kernel_param_ops null_irqmode_param_ops = {
197 	.set	= null_set_irqmode,
198 	.get	= param_get_int,
199 };
200 
201 device_param_cb(irqmode, &null_irqmode_param_ops, &g_irqmode, 0444);
202 MODULE_PARM_DESC(irqmode, "IRQ completion handler. 0-none, 1-softirq, 2-timer");
203 
204 static unsigned long g_completion_nsec = 10000;
205 module_param_named(completion_nsec, g_completion_nsec, ulong, 0444);
206 MODULE_PARM_DESC(completion_nsec, "Time in ns to complete a request in hardware. Default: 10,000ns");
207 
208 static int g_hw_queue_depth = 64;
209 module_param_named(hw_queue_depth, g_hw_queue_depth, int, 0444);
210 MODULE_PARM_DESC(hw_queue_depth, "Queue depth for each hardware queue. Default: 64");
211 
212 static bool g_use_per_node_hctx;
213 module_param_named(use_per_node_hctx, g_use_per_node_hctx, bool, 0444);
214 MODULE_PARM_DESC(use_per_node_hctx, "Use per-node allocation for hardware context queues. Default: false");
215 
216 static bool g_memory_backed;
217 module_param_named(memory_backed, g_memory_backed, bool, 0444);
218 MODULE_PARM_DESC(memory_backed, "Create a memory-backed block device. Default: false");
219 
220 static bool g_discard;
221 module_param_named(discard, g_discard, bool, 0444);
222 MODULE_PARM_DESC(discard, "Support discard operations (requires memory-backed null_blk device). Default: false");
223 
224 static unsigned long g_cache_size;
225 module_param_named(cache_size, g_cache_size, ulong, 0444);
226 MODULE_PARM_DESC(cache_size, "Cache size in MiB for memory-backed device. Default: 0 (none)");
227 
228 static bool g_fua = true;
229 module_param_named(fua, g_fua, bool, 0444);
230 MODULE_PARM_DESC(fua, "Enable/disable FUA support when cache_size is used. Default: true");
231 
232 static unsigned int g_mbps;
233 module_param_named(mbps, g_mbps, uint, 0444);
234 MODULE_PARM_DESC(mbps, "Limit maximum bandwidth (in MiB/s). Default: 0 (no limit)");
235 
236 static bool g_zoned;
237 module_param_named(zoned, g_zoned, bool, S_IRUGO);
238 MODULE_PARM_DESC(zoned, "Make device as a host-managed zoned block device. Default: false");
239 
240 static unsigned long g_zone_size = 256;
241 module_param_named(zone_size, g_zone_size, ulong, S_IRUGO);
242 MODULE_PARM_DESC(zone_size, "Zone size in MB when block device is zoned. Must be power-of-two: Default: 256");
243 
244 static unsigned long g_zone_capacity;
245 module_param_named(zone_capacity, g_zone_capacity, ulong, 0444);
246 MODULE_PARM_DESC(zone_capacity, "Zone capacity in MB when block device is zoned. Can be less than or equal to zone size. Default: Zone size");
247 
248 static unsigned int g_zone_nr_conv;
249 module_param_named(zone_nr_conv, g_zone_nr_conv, uint, 0444);
250 MODULE_PARM_DESC(zone_nr_conv, "Number of conventional zones when block device is zoned. Default: 0");
251 
252 static unsigned int g_zone_max_open;
253 module_param_named(zone_max_open, g_zone_max_open, uint, 0444);
254 MODULE_PARM_DESC(zone_max_open, "Maximum number of open zones when block device is zoned. Default: 0 (no limit)");
255 
256 static unsigned int g_zone_max_active;
257 module_param_named(zone_max_active, g_zone_max_active, uint, 0444);
258 MODULE_PARM_DESC(zone_max_active, "Maximum number of active zones when block device is zoned. Default: 0 (no limit)");
259 
260 static int g_zone_append_max_sectors = INT_MAX;
261 module_param_named(zone_append_max_sectors, g_zone_append_max_sectors, int, 0444);
262 MODULE_PARM_DESC(zone_append_max_sectors,
263 		 "Maximum size of a zone append command (in 512B sectors). Specify 0 for zone append emulation");
264 
265 static bool g_zone_full;
266 module_param_named(zone_full, g_zone_full, bool, S_IRUGO);
267 MODULE_PARM_DESC(zone_full, "Initialize the sequential write required zones of a zoned device to be full. Default: false");
268 
269 static bool g_rotational;
270 module_param_named(rotational, g_rotational, bool, S_IRUGO);
271 MODULE_PARM_DESC(rotational, "Set the rotational feature for the device. Default: false");
272 
273 static struct nullb_device *null_alloc_dev(void);
274 static void null_free_dev(struct nullb_device *dev);
275 static void null_del_dev(struct nullb *nullb);
276 static int null_add_dev(struct nullb_device *dev);
277 static struct nullb *null_find_dev_by_name(const char *name);
278 static void null_free_device_storage(struct nullb_device *dev, bool is_cache);
279 
280 static inline struct nullb_device *to_nullb_device(struct config_item *item)
281 {
282 	return item ? container_of(to_config_group(item), struct nullb_device, group) : NULL;
283 }
284 
285 static inline ssize_t nullb_device_uint_attr_show(unsigned int val, char *page)
286 {
287 	return snprintf(page, PAGE_SIZE, "%u\n", val);
288 }
289 
290 static inline ssize_t nullb_device_ulong_attr_show(unsigned long val,
291 	char *page)
292 {
293 	return snprintf(page, PAGE_SIZE, "%lu\n", val);
294 }
295 
296 static inline ssize_t nullb_device_bool_attr_show(bool val, char *page)
297 {
298 	return snprintf(page, PAGE_SIZE, "%u\n", val);
299 }
300 
301 static ssize_t nullb_device_uint_attr_store(unsigned int *val,
302 	const char *page, size_t count)
303 {
304 	unsigned int tmp;
305 	int result;
306 
307 	result = kstrtouint(page, 0, &tmp);
308 	if (result < 0)
309 		return result;
310 
311 	*val = tmp;
312 	return count;
313 }
314 
315 static ssize_t nullb_device_ulong_attr_store(unsigned long *val,
316 	const char *page, size_t count)
317 {
318 	int result;
319 	unsigned long tmp;
320 
321 	result = kstrtoul(page, 0, &tmp);
322 	if (result < 0)
323 		return result;
324 
325 	*val = tmp;
326 	return count;
327 }
328 
329 static ssize_t nullb_device_bool_attr_store(bool *val, const char *page,
330 	size_t count)
331 {
332 	bool tmp;
333 	int result;
334 
335 	result = kstrtobool(page,  &tmp);
336 	if (result < 0)
337 		return result;
338 
339 	*val = tmp;
340 	return count;
341 }
342 
343 /*
344  * The following macro should only be used with TYPE = {uint, ulong, bool}.
345  *
346  * The device configuration is modified under the global lock to serialize
347  * attribute changes against null_add_dev() and null_del_dev(): without this,
348  * an attribute could be changed while null_add_dev() is running, that is,
349  * before NULLB_DEV_FL_CONFIGURED is set, which would let null_add_dev()
350  * observe inconsistent values for the device configuration.
351  */
352 #define NULLB_DEVICE_ATTR(NAME, TYPE, APPLY)				\
353 static ssize_t								\
354 nullb_device_##NAME##_show(struct config_item *item, char *page)	\
355 {									\
356 	guard(mutex)(&lock);						\
357 	return nullb_device_##TYPE##_attr_show(				\
358 				to_nullb_device(item)->NAME, page);	\
359 }									\
360 static ssize_t								\
361 nullb_device_##NAME##_store(struct config_item *item, const char *page,	\
362 			    size_t count)				\
363 {									\
364 	int (*apply_fn)(struct nullb_device *dev, TYPE new_value) = APPLY;\
365 	struct nullb_device *dev = to_nullb_device(item);		\
366 	TYPE new_value = 0;						\
367 	int ret;							\
368 									\
369 	ret = nullb_device_##TYPE##_attr_store(&new_value, page, count);\
370 	if (ret < 0)							\
371 		return ret;						\
372 	guard(mutex)(&lock);						\
373 	if (apply_fn)							\
374 		ret = apply_fn(dev, new_value);				\
375 	else if (test_bit(NULLB_DEV_FL_CONFIGURED, &dev->flags)) 	\
376 		ret = -EBUSY;						\
377 	if (ret < 0)							\
378 		return ret;						\
379 	dev->NAME = new_value;						\
380 	return count;							\
381 }									\
382 CONFIGFS_ATTR(nullb_device_, NAME);
383 
384 static int nullb_update_nr_hw_queues(struct nullb_device *dev,
385 				     unsigned int submit_queues,
386 				     unsigned int poll_queues)
387 
388 {
389 	struct blk_mq_tag_set *set;
390 	int ret, nr_hw_queues;
391 
392 	lockdep_assert_held(&lock);
393 
394 	if (!dev->nullb)
395 		return 0;
396 
397 	/*
398 	 * A shared tag_set is mapped via the module-wide queue counts, so a
399 	 * per-device resize is meaningless. On shrink it would also leave
400 	 * mq_map[] pointing at NULLed hctx slots, causing a NULL deref in
401 	 * blk_mq_map_swqueue(). Reject it.
402 	 */
403 	if (dev->shared_tags)
404 		return -EINVAL;
405 
406 	/*
407 	 * Make sure at least one submit queue exists.
408 	 */
409 	if (!submit_queues)
410 		return -EINVAL;
411 
412 	/*
413 	 * Make sure that null_init_hctx() does not access nullb->queues[] past
414 	 * the end of that array.
415 	 */
416 	if (submit_queues > nr_cpu_ids || poll_queues > g_poll_queues)
417 		return -EINVAL;
418 
419 	/*
420 	 * Keep previous and new queue numbers in nullb_device for reference in
421 	 * the call back function null_map_queues().
422 	 */
423 	dev->prev_submit_queues = dev->submit_queues;
424 	dev->prev_poll_queues = dev->poll_queues;
425 	dev->submit_queues = submit_queues;
426 	dev->poll_queues = poll_queues;
427 
428 	set = dev->nullb->tag_set;
429 	nr_hw_queues = submit_queues + poll_queues;
430 	blk_mq_update_nr_hw_queues(set, nr_hw_queues);
431 	ret = set->nr_hw_queues == nr_hw_queues ? 0 : -ENOMEM;
432 
433 	if (ret) {
434 		/* on error, revert the queue numbers */
435 		dev->submit_queues = dev->prev_submit_queues;
436 		dev->poll_queues = dev->prev_poll_queues;
437 	}
438 
439 	return ret;
440 }
441 
442 static int nullb_apply_submit_queues(struct nullb_device *dev,
443 				     unsigned int submit_queues)
444 {
445 	return nullb_update_nr_hw_queues(dev, submit_queues, dev->poll_queues);
446 }
447 
448 static int nullb_apply_poll_queues(struct nullb_device *dev,
449 				   unsigned int poll_queues)
450 {
451 	return nullb_update_nr_hw_queues(dev, dev->submit_queues, poll_queues);
452 }
453 
454 NULLB_DEVICE_ATTR(size, ulong, NULL);
455 NULLB_DEVICE_ATTR(completion_nsec, ulong, NULL);
456 NULLB_DEVICE_ATTR(submit_queues, uint, nullb_apply_submit_queues);
457 NULLB_DEVICE_ATTR(poll_queues, uint, nullb_apply_poll_queues);
458 NULLB_DEVICE_ATTR(home_node, uint, NULL);
459 NULLB_DEVICE_ATTR(queue_mode, uint, NULL);
460 NULLB_DEVICE_ATTR(blocksize, uint, NULL);
461 NULLB_DEVICE_ATTR(max_sectors, uint, NULL);
462 NULLB_DEVICE_ATTR(irqmode, uint, NULL);
463 NULLB_DEVICE_ATTR(hw_queue_depth, uint, NULL);
464 NULLB_DEVICE_ATTR(index, uint, NULL);
465 NULLB_DEVICE_ATTR(blocking, bool, NULL);
466 NULLB_DEVICE_ATTR(use_per_node_hctx, bool, NULL);
467 NULLB_DEVICE_ATTR(memory_backed, bool, NULL);
468 NULLB_DEVICE_ATTR(discard, bool, NULL);
469 NULLB_DEVICE_ATTR(mbps, uint, NULL);
470 NULLB_DEVICE_ATTR(cache_size, ulong, NULL);
471 NULLB_DEVICE_ATTR(zoned, bool, NULL);
472 NULLB_DEVICE_ATTR(zone_size, ulong, NULL);
473 NULLB_DEVICE_ATTR(zone_capacity, ulong, NULL);
474 NULLB_DEVICE_ATTR(zone_nr_conv, uint, NULL);
475 NULLB_DEVICE_ATTR(zone_max_open, uint, NULL);
476 NULLB_DEVICE_ATTR(zone_max_active, uint, NULL);
477 NULLB_DEVICE_ATTR(zone_append_max_sectors, uint, NULL);
478 NULLB_DEVICE_ATTR(zone_full, bool, NULL);
479 NULLB_DEVICE_ATTR(virt_boundary, bool, NULL);
480 NULLB_DEVICE_ATTR(no_sched, bool, NULL);
481 NULLB_DEVICE_ATTR(shared_tags, bool, NULL);
482 NULLB_DEVICE_ATTR(shared_tag_bitmap, bool, NULL);
483 NULLB_DEVICE_ATTR(fua, bool, NULL);
484 NULLB_DEVICE_ATTR(rotational, bool, NULL);
485 NULLB_DEVICE_ATTR(badblocks_once, bool, NULL);
486 NULLB_DEVICE_ATTR(badblocks_partial_io, bool, NULL);
487 
488 static ssize_t nullb_device_power_show(struct config_item *item, char *page)
489 {
490 	guard(mutex)(&lock);
491 	return nullb_device_bool_attr_show(to_nullb_device(item)->power, page);
492 }
493 
494 static ssize_t nullb_device_power_store(struct config_item *item,
495 				     const char *page, size_t count)
496 {
497 	struct nullb_device *dev = to_nullb_device(item);
498 	bool newp = false;
499 	ssize_t ret;
500 
501 	ret = nullb_device_bool_attr_store(&newp, page, count);
502 	if (ret < 0)
503 		return ret;
504 
505 	ret = count;
506 	guard(mutex)(&lock);
507 	if (!dev->power && newp) {
508 		if (test_and_set_bit(NULLB_DEV_FL_UP, &dev->flags))
509 			return ret;
510 
511 		ret = null_add_dev(dev);
512 		if (ret) {
513 			clear_bit(NULLB_DEV_FL_UP, &dev->flags);
514 			return ret;
515 		}
516 
517 		set_bit(NULLB_DEV_FL_CONFIGURED, &dev->flags);
518 		dev->power = newp;
519 		ret = count;
520 	} else if (dev->power && !newp) {
521 		if (test_and_clear_bit(NULLB_DEV_FL_UP, &dev->flags)) {
522 			dev->power = newp;
523 			null_del_dev(dev->nullb);
524 		}
525 		clear_bit(NULLB_DEV_FL_CONFIGURED, &dev->flags);
526 	}
527 
528 	return ret;
529 }
530 
531 CONFIGFS_ATTR(nullb_device_, power);
532 
533 static ssize_t nullb_device_badblocks_show(struct config_item *item, char *page)
534 {
535 	struct nullb_device *t_dev = to_nullb_device(item);
536 
537 	return badblocks_show(&t_dev->badblocks, page, 0);
538 }
539 
540 static ssize_t nullb_device_badblocks_store(struct config_item *item,
541 				     const char *page, size_t count)
542 {
543 	struct nullb_device *t_dev = to_nullb_device(item);
544 	char *orig, *buf, *tmp;
545 	u64 start, end;
546 	int ret;
547 
548 	orig = kstrndup(page, count, GFP_KERNEL);
549 	if (!orig)
550 		return -ENOMEM;
551 
552 	buf = strstrip(orig);
553 
554 	ret = -EINVAL;
555 	if (buf[0] != '+' && buf[0] != '-')
556 		goto out;
557 	tmp = strchr(&buf[1], '-');
558 	if (!tmp)
559 		goto out;
560 	*tmp = '\0';
561 	ret = kstrtoull(buf + 1, 0, &start);
562 	if (ret)
563 		goto out;
564 	ret = kstrtoull(tmp + 1, 0, &end);
565 	if (ret)
566 		goto out;
567 	ret = -EINVAL;
568 	if (start > end)
569 		goto out;
570 	/* enable badblocks */
571 	cmpxchg(&t_dev->badblocks.shift, -1, 0);
572 	if (buf[0] == '+') {
573 		if (badblocks_set(&t_dev->badblocks, start,
574 				  end - start + 1, 1))
575 			ret = count;
576 	} else if (badblocks_clear(&t_dev->badblocks, start,
577 				   end - start + 1)) {
578 		ret = count;
579 	}
580 out:
581 	kfree(orig);
582 	return ret;
583 }
584 CONFIGFS_ATTR(nullb_device_, badblocks);
585 
586 static ssize_t nullb_device_zone_readonly_store(struct config_item *item,
587 						const char *page, size_t count)
588 {
589 	struct nullb_device *dev = to_nullb_device(item);
590 
591 	guard(mutex)(&lock);
592 	return zone_cond_store(dev, page, count, BLK_ZONE_COND_READONLY);
593 }
594 CONFIGFS_ATTR_WO(nullb_device_, zone_readonly);
595 
596 static ssize_t nullb_device_zone_offline_store(struct config_item *item,
597 					       const char *page, size_t count)
598 {
599 	struct nullb_device *dev = to_nullb_device(item);
600 
601 	guard(mutex)(&lock);
602 	return zone_cond_store(dev, page, count, BLK_ZONE_COND_OFFLINE);
603 }
604 CONFIGFS_ATTR_WO(nullb_device_, zone_offline);
605 
606 static struct configfs_attribute *nullb_device_attrs[] = {
607 	&nullb_device_attr_badblocks,
608 	&nullb_device_attr_badblocks_once,
609 	&nullb_device_attr_badblocks_partial_io,
610 	&nullb_device_attr_blocking,
611 	&nullb_device_attr_blocksize,
612 	&nullb_device_attr_cache_size,
613 	&nullb_device_attr_completion_nsec,
614 	&nullb_device_attr_discard,
615 	&nullb_device_attr_fua,
616 	&nullb_device_attr_home_node,
617 	&nullb_device_attr_hw_queue_depth,
618 	&nullb_device_attr_index,
619 	&nullb_device_attr_irqmode,
620 	&nullb_device_attr_max_sectors,
621 	&nullb_device_attr_mbps,
622 	&nullb_device_attr_memory_backed,
623 	&nullb_device_attr_no_sched,
624 	&nullb_device_attr_poll_queues,
625 	&nullb_device_attr_power,
626 	&nullb_device_attr_queue_mode,
627 	&nullb_device_attr_rotational,
628 	&nullb_device_attr_shared_tag_bitmap,
629 	&nullb_device_attr_shared_tags,
630 	&nullb_device_attr_size,
631 	&nullb_device_attr_submit_queues,
632 	&nullb_device_attr_use_per_node_hctx,
633 	&nullb_device_attr_virt_boundary,
634 	&nullb_device_attr_zone_append_max_sectors,
635 	&nullb_device_attr_zone_capacity,
636 	&nullb_device_attr_zone_full,
637 	&nullb_device_attr_zone_max_active,
638 	&nullb_device_attr_zone_max_open,
639 	&nullb_device_attr_zone_nr_conv,
640 	&nullb_device_attr_zone_offline,
641 	&nullb_device_attr_zone_readonly,
642 	&nullb_device_attr_zone_size,
643 	&nullb_device_attr_zoned,
644 	NULL,
645 };
646 
647 static void nullb_device_release(struct config_item *item)
648 {
649 	struct nullb_device *dev = to_nullb_device(item);
650 
651 	null_free_device_storage(dev, false);
652 	null_free_dev(dev);
653 }
654 
655 static const struct configfs_item_operations nullb_device_ops = {
656 	.release	= nullb_device_release,
657 };
658 
659 static const struct config_item_type nullb_device_type = {
660 	.ct_item_ops	= &nullb_device_ops,
661 	.ct_attrs	= nullb_device_attrs,
662 	.ct_owner	= THIS_MODULE,
663 };
664 
665 #ifdef CONFIG_BLK_DEV_NULL_BLK_FAULT_INJECTION
666 
667 static void nullb_add_fault_config(struct nullb_device *dev)
668 {
669 	fault_config_init(&dev->timeout_config, "timeout_inject");
670 	fault_config_init(&dev->requeue_config, "requeue_inject");
671 	fault_config_init(&dev->init_hctx_fault_config, "init_hctx_fault_inject");
672 
673 	configfs_add_default_group(&dev->timeout_config.group, &dev->group);
674 	configfs_add_default_group(&dev->requeue_config.group, &dev->group);
675 	configfs_add_default_group(&dev->init_hctx_fault_config.group, &dev->group);
676 }
677 
678 static void nullb_del_fault_config(struct nullb_device *dev)
679 {
680 	config_item_put(&dev->init_hctx_fault_config.group.cg_item);
681 	config_item_put(&dev->requeue_config.group.cg_item);
682 	config_item_put(&dev->timeout_config.group.cg_item);
683 }
684 
685 #else
686 
687 static void nullb_add_fault_config(struct nullb_device *dev)
688 {
689 }
690 
691 static void nullb_del_fault_config(struct nullb_device *dev)
692 {
693 }
694 #endif
695 
696 static struct
697 config_group *nullb_group_make_group(struct config_group *group, const char *name)
698 {
699 	struct nullb_device *dev;
700 
701 	if (null_find_dev_by_name(name))
702 		return ERR_PTR(-EEXIST);
703 
704 	dev = null_alloc_dev();
705 	if (!dev)
706 		return ERR_PTR(-ENOMEM);
707 
708 	config_group_init_type_name(&dev->group, name, &nullb_device_type);
709 	nullb_add_fault_config(dev);
710 
711 	return &dev->group;
712 }
713 
714 static void
715 nullb_group_drop_item(struct config_group *group, struct config_item *item)
716 {
717 	struct nullb_device *dev = to_nullb_device(item);
718 
719 	if (test_and_clear_bit(NULLB_DEV_FL_UP, &dev->flags)) {
720 		guard(mutex)(&lock);
721 		dev->power = false;
722 		null_del_dev(dev->nullb);
723 	}
724 	nullb_del_fault_config(dev);
725 	config_item_put(item);
726 }
727 
728 static ssize_t memb_group_features_show(struct config_item *item, char *page)
729 {
730 
731 	struct configfs_attribute **entry;
732 	char delimiter = ',';
733 	size_t left = PAGE_SIZE;
734 	size_t written = 0;
735 	int ret;
736 
737 	for (entry = &nullb_device_attrs[0]; *entry && left > 0; entry++) {
738 		if (!*(entry + 1))
739 			delimiter = '\n';
740 		ret = snprintf(page + written, left, "%s%c", (*entry)->ca_name,
741 			       delimiter);
742 		if (ret >= left) {
743 			WARN_ONCE(1, "Too many null_blk features to print\n");
744 			memzero_explicit(page, PAGE_SIZE);
745 			return -ENOBUFS;
746 		}
747 		left -= ret;
748 		written += ret;
749 	}
750 
751 	return written;
752 }
753 
754 CONFIGFS_ATTR_RO(memb_group_, features);
755 
756 static struct configfs_attribute *nullb_group_attrs[] = {
757 	&memb_group_attr_features,
758 	NULL,
759 };
760 
761 static const struct configfs_group_operations nullb_group_ops = {
762 	.make_group	= nullb_group_make_group,
763 	.drop_item	= nullb_group_drop_item,
764 };
765 
766 static const struct config_item_type nullb_group_type = {
767 	.ct_group_ops	= &nullb_group_ops,
768 	.ct_attrs	= nullb_group_attrs,
769 	.ct_owner	= THIS_MODULE,
770 };
771 
772 static struct configfs_subsystem nullb_subsys = {
773 	.su_group = {
774 		.cg_item = {
775 			.ci_namebuf = "nullb",
776 			.ci_type = &nullb_group_type,
777 		},
778 	},
779 };
780 
781 static inline int null_cache_active(struct nullb *nullb)
782 {
783 	return test_bit(NULLB_DEV_FL_CACHE, &nullb->dev->flags);
784 }
785 
786 static struct nullb_device *null_alloc_dev(void)
787 {
788 	struct nullb_device *dev;
789 
790 	dev = kzalloc_obj(*dev);
791 	if (!dev)
792 		return NULL;
793 
794 #ifdef CONFIG_BLK_DEV_NULL_BLK_FAULT_INJECTION
795 	dev->timeout_config.attr = null_timeout_attr;
796 	dev->requeue_config.attr = null_requeue_attr;
797 	dev->init_hctx_fault_config.attr = null_init_hctx_attr;
798 #endif
799 
800 	INIT_RADIX_TREE(&dev->data, GFP_ATOMIC);
801 	INIT_RADIX_TREE(&dev->cache, GFP_ATOMIC);
802 	if (badblocks_init(&dev->badblocks, 0)) {
803 		kfree(dev);
804 		return NULL;
805 	}
806 
807 	dev->size = g_gb * 1024;
808 	dev->completion_nsec = g_completion_nsec;
809 	dev->submit_queues = g_submit_queues;
810 	dev->prev_submit_queues = g_submit_queues;
811 	dev->poll_queues = g_poll_queues;
812 	dev->prev_poll_queues = g_poll_queues;
813 	dev->home_node = g_home_node;
814 	dev->queue_mode = g_queue_mode;
815 	dev->blocksize = g_bs;
816 	dev->max_sectors = g_max_sectors;
817 	dev->irqmode = g_irqmode;
818 	dev->hw_queue_depth = g_hw_queue_depth;
819 	dev->blocking = g_blocking;
820 	dev->memory_backed = g_memory_backed;
821 	dev->discard = g_discard;
822 	dev->cache_size = g_cache_size;
823 	dev->mbps = g_mbps;
824 	dev->use_per_node_hctx = g_use_per_node_hctx;
825 	dev->zoned = g_zoned;
826 	dev->zone_size = g_zone_size;
827 	dev->zone_capacity = g_zone_capacity;
828 	dev->zone_nr_conv = g_zone_nr_conv;
829 	dev->zone_max_open = g_zone_max_open;
830 	dev->zone_max_active = g_zone_max_active;
831 	dev->zone_append_max_sectors = g_zone_append_max_sectors;
832 	dev->zone_full = g_zone_full;
833 	dev->virt_boundary = g_virt_boundary;
834 	dev->no_sched = g_no_sched;
835 	dev->shared_tags = g_shared_tags;
836 	dev->shared_tag_bitmap = g_shared_tag_bitmap;
837 	dev->fua = g_fua;
838 	dev->rotational = g_rotational;
839 
840 	return dev;
841 }
842 
843 static void null_free_dev(struct nullb_device *dev)
844 {
845 	if (!dev)
846 		return;
847 
848 	badblocks_exit(&dev->badblocks);
849 	kfree(dev);
850 }
851 
852 static enum hrtimer_restart null_cmd_timer_expired(struct hrtimer *timer)
853 {
854 	struct nullb_cmd *cmd = container_of(timer, struct nullb_cmd, timer);
855 
856 	blk_mq_end_request(blk_mq_rq_from_pdu(cmd), cmd->error);
857 	return HRTIMER_NORESTART;
858 }
859 
860 static void null_cmd_end_timer(struct nullb_cmd *cmd)
861 {
862 	ktime_t kt = cmd->nq->dev->completion_nsec;
863 
864 	hrtimer_start(&cmd->timer, kt, HRTIMER_MODE_REL);
865 }
866 
867 static void null_complete_rq(struct request *rq)
868 {
869 	struct nullb_cmd *cmd = blk_mq_rq_to_pdu(rq);
870 
871 	blk_mq_end_request(rq, cmd->error);
872 }
873 
874 static struct nullb_page *null_alloc_page(void)
875 {
876 	struct nullb_page *t_page;
877 
878 	t_page = kmalloc_obj(struct nullb_page, GFP_NOIO);
879 	if (!t_page)
880 		return NULL;
881 
882 	t_page->page = alloc_pages(GFP_NOIO, 0);
883 	if (!t_page->page) {
884 		kfree(t_page);
885 		return NULL;
886 	}
887 
888 	memset(t_page->bitmap, 0, sizeof(t_page->bitmap));
889 	return t_page;
890 }
891 
892 static void null_free_page(struct nullb_page *t_page)
893 {
894 	__set_bit(NULLB_PAGE_FREE, t_page->bitmap);
895 	if (test_bit(NULLB_PAGE_LOCK, t_page->bitmap))
896 		return;
897 	__free_page(t_page->page);
898 	kfree(t_page);
899 }
900 
901 static bool null_page_empty(struct nullb_page *page)
902 {
903 	int size = MAP_SZ - 2;
904 
905 	return find_first_bit(page->bitmap, size) == size;
906 }
907 
908 static void null_free_sector(struct nullb *nullb, sector_t sector,
909 	bool is_cache)
910 {
911 	unsigned int sector_bit;
912 	u64 idx;
913 	struct nullb_page *t_page, *ret;
914 	struct radix_tree_root *root;
915 
916 	root = is_cache ? &nullb->dev->cache : &nullb->dev->data;
917 	idx = sector >> PAGE_SECTORS_SHIFT;
918 	sector_bit = (sector & SECTOR_MASK);
919 
920 	t_page = radix_tree_lookup(root, idx);
921 	if (t_page) {
922 		__clear_bit(sector_bit, t_page->bitmap);
923 
924 		if (null_page_empty(t_page)) {
925 			ret = radix_tree_delete_item(root, idx, t_page);
926 			WARN_ON(ret != t_page);
927 			null_free_page(ret);
928 			if (is_cache)
929 				nullb->dev->curr_cache -= PAGE_SIZE;
930 		}
931 	}
932 }
933 
934 static struct nullb_page *null_radix_tree_insert(struct nullb *nullb, u64 idx,
935 	struct nullb_page *t_page, bool is_cache)
936 {
937 	struct radix_tree_root *root;
938 
939 	root = is_cache ? &nullb->dev->cache : &nullb->dev->data;
940 
941 	if (radix_tree_insert(root, idx, t_page)) {
942 		null_free_page(t_page);
943 		t_page = radix_tree_lookup(root, idx);
944 		WARN_ON(!t_page || t_page->page->private != idx);
945 	} else if (is_cache)
946 		nullb->dev->curr_cache += PAGE_SIZE;
947 
948 	return t_page;
949 }
950 
951 static void null_free_device_storage(struct nullb_device *dev, bool is_cache)
952 {
953 	unsigned long pos = 0;
954 	int nr_pages;
955 	struct nullb_page *ret, *t_pages[FREE_BATCH];
956 	struct radix_tree_root *root;
957 
958 	root = is_cache ? &dev->cache : &dev->data;
959 
960 	do {
961 		int i;
962 
963 		nr_pages = radix_tree_gang_lookup(root,
964 				(void **)t_pages, pos, FREE_BATCH);
965 
966 		for (i = 0; i < nr_pages; i++) {
967 			pos = t_pages[i]->page->private;
968 			ret = radix_tree_delete_item(root, pos, t_pages[i]);
969 			WARN_ON(ret != t_pages[i]);
970 			null_free_page(ret);
971 		}
972 
973 		pos++;
974 	} while (nr_pages == FREE_BATCH);
975 
976 	if (is_cache)
977 		dev->curr_cache = 0;
978 }
979 
980 static struct nullb_page *__null_lookup_page(struct nullb *nullb,
981 	sector_t sector, bool for_write, bool is_cache)
982 {
983 	unsigned int sector_bit;
984 	u64 idx;
985 	struct nullb_page *t_page;
986 	struct radix_tree_root *root;
987 
988 	idx = sector >> PAGE_SECTORS_SHIFT;
989 	sector_bit = (sector & SECTOR_MASK);
990 
991 	root = is_cache ? &nullb->dev->cache : &nullb->dev->data;
992 	t_page = radix_tree_lookup(root, idx);
993 	WARN_ON(t_page && t_page->page->private != idx);
994 
995 	if (t_page && (for_write || test_bit(sector_bit, t_page->bitmap)))
996 		return t_page;
997 
998 	return NULL;
999 }
1000 
1001 static struct nullb_page *null_lookup_page(struct nullb *nullb,
1002 	sector_t sector, bool for_write, bool ignore_cache)
1003 {
1004 	struct nullb_page *page = NULL;
1005 
1006 	if (!ignore_cache)
1007 		page = __null_lookup_page(nullb, sector, for_write, true);
1008 	if (page)
1009 		return page;
1010 	return __null_lookup_page(nullb, sector, for_write, false);
1011 }
1012 
1013 static struct nullb_page *null_insert_page(struct nullb *nullb,
1014 					   sector_t sector, bool ignore_cache)
1015 	__releases(&nullb->lock)
1016 	__acquires(&nullb->lock)
1017 {
1018 	u64 idx;
1019 	struct nullb_page *t_page;
1020 
1021 	t_page = null_lookup_page(nullb, sector, true, ignore_cache);
1022 	if (t_page)
1023 		return t_page;
1024 
1025 	spin_unlock_irq(&nullb->lock);
1026 
1027 	t_page = null_alloc_page();
1028 	if (!t_page)
1029 		goto out_lock;
1030 
1031 	if (radix_tree_preload(GFP_NOIO))
1032 		goto out_freepage;
1033 
1034 	spin_lock_irq(&nullb->lock);
1035 	idx = sector >> PAGE_SECTORS_SHIFT;
1036 	t_page->page->private = idx;
1037 	t_page = null_radix_tree_insert(nullb, idx, t_page, !ignore_cache);
1038 	radix_tree_preload_end();
1039 
1040 	return t_page;
1041 out_freepage:
1042 	null_free_page(t_page);
1043 out_lock:
1044 	spin_lock_irq(&nullb->lock);
1045 	return null_lookup_page(nullb, sector, true, ignore_cache);
1046 }
1047 
1048 static int null_flush_cache_page(struct nullb *nullb, struct nullb_page *c_page)
1049 {
1050 	int i;
1051 	unsigned int offset;
1052 	u64 idx;
1053 	struct nullb_page *t_page, *ret;
1054 	void *dst, *src;
1055 
1056 	idx = c_page->page->private;
1057 
1058 	t_page = null_insert_page(nullb, idx << PAGE_SECTORS_SHIFT, true);
1059 
1060 	__clear_bit(NULLB_PAGE_LOCK, c_page->bitmap);
1061 	if (test_bit(NULLB_PAGE_FREE, c_page->bitmap)) {
1062 		null_free_page(c_page);
1063 		if (t_page && null_page_empty(t_page)) {
1064 			ret = radix_tree_delete_item(&nullb->dev->data,
1065 				idx, t_page);
1066 			null_free_page(t_page);
1067 		}
1068 		return 0;
1069 	}
1070 
1071 	if (!t_page)
1072 		return -ENOMEM;
1073 
1074 	src = kmap_local_page(c_page->page);
1075 	dst = kmap_local_page(t_page->page);
1076 
1077 	for (i = 0; i < PAGE_SECTORS;
1078 			i += (nullb->dev->blocksize >> SECTOR_SHIFT)) {
1079 		if (test_bit(i, c_page->bitmap)) {
1080 			offset = (i << SECTOR_SHIFT);
1081 			memcpy(dst + offset, src + offset,
1082 				nullb->dev->blocksize);
1083 			__set_bit(i, t_page->bitmap);
1084 		}
1085 	}
1086 
1087 	kunmap_local(dst);
1088 	kunmap_local(src);
1089 
1090 	ret = radix_tree_delete_item(&nullb->dev->cache, idx, c_page);
1091 	null_free_page(ret);
1092 	nullb->dev->curr_cache -= PAGE_SIZE;
1093 
1094 	return 0;
1095 }
1096 
1097 static int null_make_cache_space(struct nullb *nullb, unsigned long n)
1098 {
1099 	int i, err, nr_pages;
1100 	struct nullb_page *c_pages[FREE_BATCH];
1101 	unsigned long flushed = 0, one_round;
1102 
1103 again:
1104 	if ((nullb->dev->cache_size * 1024 * 1024) >
1105 	     nullb->dev->curr_cache + n || nullb->dev->curr_cache == 0)
1106 		return 0;
1107 
1108 	nr_pages = radix_tree_gang_lookup(&nullb->dev->cache,
1109 			(void **)c_pages, nullb->cache_flush_pos, FREE_BATCH);
1110 	/*
1111 	 * nullb_flush_cache_page could unlock before using the c_pages. To
1112 	 * avoid race, we don't allow page free
1113 	 */
1114 	for (i = 0; i < nr_pages; i++) {
1115 		nullb->cache_flush_pos = c_pages[i]->page->private;
1116 		/*
1117 		 * We found the page which is being flushed to disk by other
1118 		 * threads
1119 		 */
1120 		if (test_bit(NULLB_PAGE_LOCK, c_pages[i]->bitmap))
1121 			c_pages[i] = NULL;
1122 		else
1123 			__set_bit(NULLB_PAGE_LOCK, c_pages[i]->bitmap);
1124 	}
1125 
1126 	one_round = 0;
1127 	for (i = 0; i < nr_pages; i++) {
1128 		if (c_pages[i] == NULL)
1129 			continue;
1130 		err = null_flush_cache_page(nullb, c_pages[i]);
1131 		if (err)
1132 			return err;
1133 		one_round++;
1134 	}
1135 	flushed += one_round << PAGE_SHIFT;
1136 
1137 	if (n > flushed) {
1138 		if (nr_pages == 0)
1139 			nullb->cache_flush_pos = 0;
1140 		if (one_round == 0) {
1141 			/* give other threads a chance */
1142 			spin_unlock_irq(&nullb->lock);
1143 			spin_lock_irq(&nullb->lock);
1144 		}
1145 		goto again;
1146 	}
1147 	return 0;
1148 }
1149 
1150 static blk_status_t copy_to_nullb(struct nullb *nullb, void *source,
1151 				  loff_t pos, size_t n, bool is_fua)
1152 {
1153 	size_t temp, count = 0;
1154 	struct nullb_page *t_page;
1155 	sector_t sector;
1156 
1157 	while (count < n) {
1158 		temp = min3(nullb->dev->blocksize, n - count,
1159 			    PAGE_SIZE - offset_in_page(pos));
1160 		sector = pos >> SECTOR_SHIFT;
1161 
1162 		if (null_cache_active(nullb) && !is_fua)
1163 			null_make_cache_space(nullb, PAGE_SIZE);
1164 
1165 		t_page = null_insert_page(nullb, sector,
1166 			!null_cache_active(nullb) || is_fua);
1167 		if (!t_page)
1168 			return BLK_STS_NOSPC;
1169 
1170 		memcpy_to_page(t_page->page, offset_in_page(pos),
1171 			       source + count, temp);
1172 
1173 		__set_bit(sector & SECTOR_MASK, t_page->bitmap);
1174 
1175 		if (is_fua)
1176 			null_free_sector(nullb, sector, true);
1177 
1178 		count += temp;
1179 		pos += temp;
1180 	}
1181 	return BLK_STS_OK;
1182 }
1183 
1184 static void copy_from_nullb(struct nullb *nullb, void *dest, loff_t pos,
1185 			    size_t n)
1186 {
1187 	size_t temp, count = 0;
1188 	struct nullb_page *t_page;
1189 	sector_t sector;
1190 
1191 	while (count < n) {
1192 		temp = min3(nullb->dev->blocksize, n - count,
1193 			    PAGE_SIZE - offset_in_page(pos));
1194 		sector = pos >> SECTOR_SHIFT;
1195 
1196 		t_page = null_lookup_page(nullb, sector, false,
1197 			!null_cache_active(nullb));
1198 		if (t_page)
1199 			memcpy_from_page(dest + count, t_page->page,
1200 					 offset_in_page(pos), temp);
1201 		else
1202 			memset(dest + count, 0, temp);
1203 
1204 		count += temp;
1205 		pos += temp;
1206 	}
1207 }
1208 
1209 blk_status_t null_handle_discard(struct nullb_device *dev,
1210 				 sector_t sector, sector_t nr_sectors)
1211 {
1212 	struct nullb *nullb = dev->nullb;
1213 	size_t n = nr_sectors << SECTOR_SHIFT;
1214 	size_t temp;
1215 
1216 	spin_lock_irq(&nullb->lock);
1217 	while (n > 0) {
1218 		temp = min_t(size_t, n, dev->blocksize);
1219 		null_free_sector(nullb, sector, false);
1220 		if (null_cache_active(nullb))
1221 			null_free_sector(nullb, sector, true);
1222 		sector += temp >> SECTOR_SHIFT;
1223 		n -= temp;
1224 	}
1225 	spin_unlock_irq(&nullb->lock);
1226 
1227 	return BLK_STS_OK;
1228 }
1229 
1230 static blk_status_t null_handle_flush(struct nullb *nullb)
1231 {
1232 	int err;
1233 
1234 	if (!null_cache_active(nullb))
1235 		return 0;
1236 
1237 	spin_lock_irq(&nullb->lock);
1238 	while (true) {
1239 		err = null_make_cache_space(nullb,
1240 			nullb->dev->cache_size * 1024 * 1024);
1241 		if (err || nullb->dev->curr_cache == 0)
1242 			break;
1243 	}
1244 
1245 	WARN_ON(!radix_tree_empty(&nullb->dev->cache));
1246 	spin_unlock_irq(&nullb->lock);
1247 	return errno_to_blk_status(err);
1248 }
1249 
1250 static blk_status_t null_transfer(struct nullb *nullb, struct page *page,
1251 	unsigned int len, unsigned int off, bool is_write, loff_t pos,
1252 	bool is_fua)
1253 {
1254 	struct nullb_device *dev = nullb->dev;
1255 	blk_status_t err = BLK_STS_OK;
1256 	unsigned int valid_len = len;
1257 	void *p;
1258 
1259 	p = kmap_local_page(page) + off;
1260 	if (!is_write) {
1261 		if (dev->zoned) {
1262 			valid_len = null_zone_valid_read_len(nullb,
1263 				pos >> SECTOR_SHIFT, len);
1264 			if (valid_len && valid_len != len)
1265 				valid_len -= pos & (SECTOR_SIZE - 1);
1266 		}
1267 
1268 		if (valid_len) {
1269 			copy_from_nullb(nullb, p, pos, valid_len);
1270 			off += valid_len;
1271 			len -= valid_len;
1272 		}
1273 
1274 		if (len)
1275 			memset(p + valid_len, 0xff, len);
1276 		flush_dcache_page(page);
1277 	} else {
1278 		flush_dcache_page(page);
1279 		err = copy_to_nullb(nullb, p, pos, len, is_fua);
1280 	}
1281 
1282 	kunmap_local(p);
1283 	return err;
1284 }
1285 
1286 /*
1287  * Transfer data for the given request. The transfer size is capped with the
1288  * nr_sectors argument.
1289  */
1290 static blk_status_t null_handle_data_transfer(struct nullb_cmd *cmd,
1291 					      sector_t nr_sectors)
1292 {
1293 	struct request *rq = blk_mq_rq_from_pdu(cmd);
1294 	struct nullb *nullb = cmd->nq->dev->nullb;
1295 	blk_status_t err = BLK_STS_OK;
1296 	unsigned int len;
1297 	loff_t pos = blk_rq_pos(rq) << SECTOR_SHIFT;
1298 	unsigned int max_bytes = nr_sectors << SECTOR_SHIFT;
1299 	unsigned int transferred_bytes = 0;
1300 	struct req_iterator iter;
1301 	struct bio_vec bvec;
1302 
1303 	spin_lock_irq(&nullb->lock);
1304 	rq_for_each_segment(bvec, rq, iter) {
1305 		len = bvec.bv_len;
1306 		if (transferred_bytes + len > max_bytes)
1307 			len = max_bytes - transferred_bytes;
1308 		err = null_transfer(nullb, bvec.bv_page, len, bvec.bv_offset,
1309 				     op_is_write(req_op(rq)), pos,
1310 				     rq->cmd_flags & REQ_FUA);
1311 		if (err)
1312 			break;
1313 		pos += len;
1314 		transferred_bytes += len;
1315 		if (transferred_bytes >= max_bytes)
1316 			break;
1317 	}
1318 	spin_unlock_irq(&nullb->lock);
1319 
1320 	return err;
1321 }
1322 
1323 static inline blk_status_t null_handle_throttled(struct nullb_cmd *cmd)
1324 {
1325 	struct nullb_device *dev = cmd->nq->dev;
1326 	struct nullb *nullb = dev->nullb;
1327 	blk_status_t sts = BLK_STS_OK;
1328 	struct request *rq = blk_mq_rq_from_pdu(cmd);
1329 
1330 	if (!hrtimer_active(&nullb->bw_timer))
1331 		hrtimer_restart(&nullb->bw_timer);
1332 
1333 	if (atomic_long_sub_return(blk_rq_bytes(rq), &nullb->cur_bytes) < 0) {
1334 		blk_mq_stop_hw_queues(nullb->q);
1335 		/* race with timer */
1336 		if (atomic_long_read(&nullb->cur_bytes) > 0)
1337 			blk_mq_start_stopped_hw_queues(nullb->q, true);
1338 		/* requeue request */
1339 		sts = BLK_STS_DEV_RESOURCE;
1340 	}
1341 	return sts;
1342 }
1343 
1344 /*
1345  * Check if the command should fail for the badblocks. If so, return
1346  * BLK_STS_IOERR and return number of partial I/O sectors to be written or read,
1347  * which may be less than the requested number of sectors.
1348  *
1349  * @cmd:        The command to handle.
1350  * @sector:     The start sector for I/O.
1351  * @nr_sectors: Specifies number of sectors to write or read, and returns the
1352  *              number of sectors to be written or read.
1353  */
1354 blk_status_t null_handle_badblocks(struct nullb_cmd *cmd, sector_t sector,
1355 				   unsigned int *nr_sectors)
1356 {
1357 	struct badblocks *bb = &cmd->nq->dev->badblocks;
1358 	struct nullb_device *dev = cmd->nq->dev;
1359 	unsigned int block_sectors = dev->blocksize >> SECTOR_SHIFT;
1360 	sector_t first_bad, bad_sectors;
1361 	unsigned int partial_io_sectors = 0;
1362 
1363 	if (!badblocks_check(bb, sector, *nr_sectors, &first_bad, &bad_sectors))
1364 		return BLK_STS_OK;
1365 
1366 	if (cmd->nq->dev->badblocks_once)
1367 		badblocks_clear(bb, first_bad, bad_sectors);
1368 
1369 	if (cmd->nq->dev->badblocks_partial_io) {
1370 		if (!IS_ALIGNED(first_bad, block_sectors))
1371 			first_bad = ALIGN_DOWN(first_bad, block_sectors);
1372 		if (sector < first_bad)
1373 			partial_io_sectors = first_bad - sector;
1374 	}
1375 	*nr_sectors = partial_io_sectors;
1376 
1377 	return BLK_STS_IOERR;
1378 }
1379 
1380 blk_status_t null_handle_memory_backed(struct nullb_cmd *cmd, enum req_op op,
1381 				       sector_t sector, sector_t nr_sectors)
1382 {
1383 	struct nullb_device *dev = cmd->nq->dev;
1384 
1385 	if (op == REQ_OP_DISCARD)
1386 		return null_handle_discard(dev, sector, nr_sectors);
1387 
1388 	return null_handle_data_transfer(cmd, nr_sectors);
1389 }
1390 
1391 static void nullb_zero_read_cmd_buffer(struct nullb_cmd *cmd)
1392 {
1393 	struct request *rq = blk_mq_rq_from_pdu(cmd);
1394 	struct nullb_device *dev = cmd->nq->dev;
1395 	struct bio *bio;
1396 
1397 	if (!dev->memory_backed && req_op(rq) == REQ_OP_READ) {
1398 		__rq_for_each_bio(bio, rq)
1399 			zero_fill_bio(bio);
1400 	}
1401 }
1402 
1403 static inline void nullb_complete_cmd(struct nullb_cmd *cmd)
1404 {
1405 	struct request *rq = blk_mq_rq_from_pdu(cmd);
1406 
1407 	/*
1408 	 * Since root privileges are required to configure the null_blk
1409 	 * driver, it is fine that this driver does not initialize the
1410 	 * data buffers of read commands. Zero-initialize these buffers
1411 	 * anyway if KMSAN is enabled to prevent that KMSAN complains
1412 	 * about null_blk not initializing read data buffers.
1413 	 */
1414 	if (IS_ENABLED(CONFIG_KMSAN))
1415 		nullb_zero_read_cmd_buffer(cmd);
1416 
1417 	/* Complete IO by inline, softirq or timer */
1418 	switch (cmd->nq->dev->irqmode) {
1419 	case NULL_IRQ_SOFTIRQ:
1420 		blk_mq_complete_request(rq);
1421 		break;
1422 	case NULL_IRQ_NONE:
1423 		blk_mq_end_request(rq, cmd->error);
1424 		break;
1425 	case NULL_IRQ_TIMER:
1426 		null_cmd_end_timer(cmd);
1427 		break;
1428 	}
1429 }
1430 
1431 blk_status_t null_process_cmd(struct nullb_cmd *cmd, enum req_op op,
1432 			      sector_t sector, unsigned int nr_sectors)
1433 {
1434 	struct nullb_device *dev = cmd->nq->dev;
1435 	blk_status_t badblocks_ret = BLK_STS_OK;
1436 	blk_status_t ret;
1437 
1438 	if (dev->badblocks.shift != -1)
1439 		badblocks_ret = null_handle_badblocks(cmd, sector, &nr_sectors);
1440 
1441 	if (dev->memory_backed && nr_sectors) {
1442 		ret = null_handle_memory_backed(cmd, op, sector, nr_sectors);
1443 		if (ret != BLK_STS_OK)
1444 			return ret;
1445 	}
1446 
1447 	return badblocks_ret;
1448 }
1449 
1450 static void null_handle_cmd(struct nullb_cmd *cmd, sector_t sector,
1451 			    sector_t nr_sectors, enum req_op op)
1452 {
1453 	struct nullb_device *dev = cmd->nq->dev;
1454 	struct nullb *nullb = dev->nullb;
1455 	blk_status_t sts;
1456 
1457 	if (op == REQ_OP_FLUSH) {
1458 		cmd->error = null_handle_flush(nullb);
1459 		goto out;
1460 	}
1461 
1462 	if (dev->zoned)
1463 		sts = null_process_zoned_cmd(cmd, op, sector, nr_sectors);
1464 	else
1465 		sts = null_process_cmd(cmd, op, sector, nr_sectors);
1466 
1467 	/* Do not overwrite errors (e.g. timeout errors) */
1468 	if (cmd->error == BLK_STS_OK)
1469 		cmd->error = sts;
1470 
1471 out:
1472 	nullb_complete_cmd(cmd);
1473 }
1474 
1475 static enum hrtimer_restart nullb_bwtimer_fn(struct hrtimer *timer)
1476 {
1477 	struct nullb *nullb = container_of(timer, struct nullb, bw_timer);
1478 	ktime_t timer_interval = ktime_set(0, TIMER_INTERVAL);
1479 	unsigned int mbps = nullb->dev->mbps;
1480 
1481 	if (atomic_long_read(&nullb->cur_bytes) == mb_per_tick(mbps))
1482 		return HRTIMER_NORESTART;
1483 
1484 	atomic_long_set(&nullb->cur_bytes, mb_per_tick(mbps));
1485 	blk_mq_start_stopped_hw_queues(nullb->q, true);
1486 
1487 	hrtimer_forward_now(&nullb->bw_timer, timer_interval);
1488 
1489 	return HRTIMER_RESTART;
1490 }
1491 
1492 static void nullb_setup_bwtimer(struct nullb *nullb)
1493 {
1494 	ktime_t timer_interval = ktime_set(0, TIMER_INTERVAL);
1495 
1496 	hrtimer_setup(&nullb->bw_timer, nullb_bwtimer_fn, CLOCK_MONOTONIC, HRTIMER_MODE_REL);
1497 	atomic_long_set(&nullb->cur_bytes, mb_per_tick(nullb->dev->mbps));
1498 	hrtimer_start(&nullb->bw_timer, timer_interval, HRTIMER_MODE_REL);
1499 }
1500 
1501 #ifdef CONFIG_BLK_DEV_NULL_BLK_FAULT_INJECTION
1502 
1503 static bool should_timeout_request(struct request *rq)
1504 {
1505 	struct nullb_cmd *cmd = blk_mq_rq_to_pdu(rq);
1506 	struct nullb_device *dev = cmd->nq->dev;
1507 
1508 	return should_fail(&dev->timeout_config.attr, 1);
1509 }
1510 
1511 static bool should_requeue_request(struct request *rq)
1512 {
1513 	struct nullb_cmd *cmd = blk_mq_rq_to_pdu(rq);
1514 	struct nullb_device *dev = cmd->nq->dev;
1515 
1516 	return should_fail(&dev->requeue_config.attr, 1);
1517 }
1518 
1519 static bool should_init_hctx_fail(struct nullb_device *dev)
1520 {
1521 	return should_fail(&dev->init_hctx_fault_config.attr, 1);
1522 }
1523 
1524 #else
1525 
1526 static bool should_timeout_request(struct request *rq)
1527 {
1528 	return false;
1529 }
1530 
1531 static bool should_requeue_request(struct request *rq)
1532 {
1533 	return false;
1534 }
1535 
1536 static bool should_init_hctx_fail(struct nullb_device *dev)
1537 {
1538 	return false;
1539 }
1540 
1541 #endif
1542 
1543 static void null_map_queues(struct blk_mq_tag_set *set)
1544 {
1545 	struct nullb *nullb = set->driver_data;
1546 	int i, qoff;
1547 	unsigned int submit_queues = g_submit_queues;
1548 	unsigned int poll_queues = g_poll_queues;
1549 
1550 	if (nullb) {
1551 		struct nullb_device *dev = nullb->dev;
1552 
1553 		/*
1554 		 * Refer nr_hw_queues of the tag set to check if the expected
1555 		 * number of hardware queues are prepared. If block layer failed
1556 		 * to prepare them, use previous numbers of submit queues and
1557 		 * poll queues to map queues.
1558 		 */
1559 		if (set->nr_hw_queues ==
1560 		    dev->submit_queues + dev->poll_queues) {
1561 			submit_queues = dev->submit_queues;
1562 			poll_queues = dev->poll_queues;
1563 		} else if (set->nr_hw_queues ==
1564 			   dev->prev_submit_queues + dev->prev_poll_queues) {
1565 			submit_queues = dev->prev_submit_queues;
1566 			poll_queues = dev->prev_poll_queues;
1567 		} else {
1568 			pr_warn("tag set has unexpected nr_hw_queues: %d\n",
1569 				set->nr_hw_queues);
1570 			WARN_ON_ONCE(true);
1571 			submit_queues = 1;
1572 			poll_queues = 0;
1573 		}
1574 	}
1575 
1576 	for (i = 0, qoff = 0; i < set->nr_maps; i++) {
1577 		struct blk_mq_queue_map *map = &set->map[i];
1578 
1579 		switch (i) {
1580 		case HCTX_TYPE_DEFAULT:
1581 			map->nr_queues = submit_queues;
1582 			break;
1583 		case HCTX_TYPE_READ:
1584 			map->nr_queues = 0;
1585 			continue;
1586 		case HCTX_TYPE_POLL:
1587 			map->nr_queues = poll_queues;
1588 			break;
1589 		}
1590 		map->queue_offset = qoff;
1591 		qoff += map->nr_queues;
1592 		blk_mq_map_queues(map);
1593 	}
1594 }
1595 
1596 static int null_poll(struct blk_mq_hw_ctx *hctx, struct io_comp_batch *iob)
1597 {
1598 	struct nullb_queue *nq = hctx->driver_data;
1599 	LIST_HEAD(list);
1600 	int nr = 0;
1601 	struct request *rq;
1602 
1603 	spin_lock(&nq->poll_lock);
1604 	list_splice_init(&nq->poll_list, &list);
1605 	list_for_each_entry(rq, &list, queuelist)
1606 		blk_mq_set_request_complete(rq);
1607 	spin_unlock(&nq->poll_lock);
1608 
1609 	while (!list_empty(&list)) {
1610 		struct nullb_cmd *cmd;
1611 		struct request *req;
1612 
1613 		req = list_first_entry(&list, struct request, queuelist);
1614 		list_del_init(&req->queuelist);
1615 		cmd = blk_mq_rq_to_pdu(req);
1616 		cmd->error = null_process_cmd(cmd, req_op(req), blk_rq_pos(req),
1617 						blk_rq_sectors(req));
1618 		if (!blk_mq_add_to_batch(req, iob, cmd->error != BLK_STS_OK,
1619 					 blk_mq_end_request_batch))
1620 			blk_mq_end_request(req, cmd->error);
1621 		nr++;
1622 	}
1623 
1624 	return nr;
1625 }
1626 
1627 static enum blk_eh_timer_return null_timeout_rq(struct request *rq)
1628 {
1629 	struct blk_mq_hw_ctx *hctx = rq->mq_hctx;
1630 	struct nullb_cmd *cmd = blk_mq_rq_to_pdu(rq);
1631 
1632 	if (hctx->type == HCTX_TYPE_POLL) {
1633 		struct nullb_queue *nq = hctx->driver_data;
1634 
1635 		spin_lock(&nq->poll_lock);
1636 		/* The request may have completed meanwhile. */
1637 		if (blk_mq_request_completed(rq)) {
1638 			spin_unlock(&nq->poll_lock);
1639 			return BLK_EH_DONE;
1640 		}
1641 		list_del_init(&rq->queuelist);
1642 		spin_unlock(&nq->poll_lock);
1643 	}
1644 
1645 	pr_info("rq %p timed out\n", rq);
1646 
1647 	/*
1648 	 * If the device is marked as blocking (i.e. memory backed or zoned
1649 	 * device), the submission path may be blocked waiting for resources
1650 	 * and cause real timeouts. For these real timeouts, the submission
1651 	 * path will complete the request using blk_mq_complete_request().
1652 	 * Only fake timeouts need to execute blk_mq_complete_request() here.
1653 	 */
1654 	cmd->error = BLK_STS_TIMEOUT;
1655 	if (cmd->fake_timeout || hctx->type == HCTX_TYPE_POLL)
1656 		blk_mq_complete_request(rq);
1657 	return BLK_EH_DONE;
1658 }
1659 
1660 static blk_status_t null_queue_rq(struct blk_mq_hw_ctx *hctx,
1661 				  const struct blk_mq_queue_data *bd)
1662 {
1663 	struct request *rq = bd->rq;
1664 	struct nullb_cmd *cmd = blk_mq_rq_to_pdu(rq);
1665 	struct nullb_queue *nq = hctx->driver_data;
1666 	sector_t nr_sectors = blk_rq_sectors(rq);
1667 	sector_t sector = blk_rq_pos(rq);
1668 	const bool is_poll = hctx->type == HCTX_TYPE_POLL;
1669 
1670 	might_sleep_if(hctx->flags & BLK_MQ_F_BLOCKING);
1671 
1672 	if (!is_poll && nq->dev->irqmode == NULL_IRQ_TIMER) {
1673 		hrtimer_setup(&cmd->timer, null_cmd_timer_expired, CLOCK_MONOTONIC,
1674 			      HRTIMER_MODE_REL);
1675 	}
1676 	cmd->error = BLK_STS_OK;
1677 	cmd->nq = nq;
1678 	cmd->fake_timeout = should_timeout_request(rq) ||
1679 		blk_should_fake_timeout(rq->q);
1680 
1681 	if (should_requeue_request(rq)) {
1682 		/*
1683 		 * Alternate between hitting the core BUSY path, and the
1684 		 * driver driven requeue path
1685 		 */
1686 		nq->requeue_selection++;
1687 		if (nq->requeue_selection & 1)
1688 			return BLK_STS_RESOURCE;
1689 		blk_mq_requeue_request(rq, true);
1690 		return BLK_STS_OK;
1691 	}
1692 
1693 	if (test_bit(NULLB_DEV_FL_THROTTLED, &nq->dev->flags)) {
1694 		blk_status_t sts = null_handle_throttled(cmd);
1695 
1696 		if (sts != BLK_STS_OK)
1697 			return sts;
1698 	}
1699 
1700 	blk_mq_start_request(rq);
1701 
1702 	if (is_poll) {
1703 		spin_lock(&nq->poll_lock);
1704 		list_add_tail(&rq->queuelist, &nq->poll_list);
1705 		spin_unlock(&nq->poll_lock);
1706 		return BLK_STS_OK;
1707 	}
1708 	if (cmd->fake_timeout)
1709 		return BLK_STS_OK;
1710 
1711 	null_handle_cmd(cmd, sector, nr_sectors, req_op(rq));
1712 	return BLK_STS_OK;
1713 }
1714 
1715 static void null_queue_rqs(struct rq_list *rqlist)
1716 {
1717 	struct rq_list requeue_list = {};
1718 	struct blk_mq_queue_data bd = { };
1719 	blk_status_t ret;
1720 
1721 	do {
1722 		struct request *rq = rq_list_pop(rqlist);
1723 
1724 		bd.rq = rq;
1725 		ret = null_queue_rq(rq->mq_hctx, &bd);
1726 		if (ret != BLK_STS_OK)
1727 			rq_list_add_tail(&requeue_list, rq);
1728 	} while (!rq_list_empty(rqlist));
1729 
1730 	*rqlist = requeue_list;
1731 }
1732 
1733 static void null_init_queue(struct nullb *nullb, struct nullb_queue *nq)
1734 {
1735 	nq->dev = nullb->dev;
1736 	INIT_LIST_HEAD(&nq->poll_list);
1737 	spin_lock_init(&nq->poll_lock);
1738 }
1739 
1740 static int null_init_hctx(struct blk_mq_hw_ctx *hctx, void *driver_data,
1741 			  unsigned int hctx_idx)
1742 {
1743 	struct nullb *nullb = hctx->queue->queuedata;
1744 	struct nullb_queue *nq;
1745 
1746 	if (should_init_hctx_fail(nullb->dev))
1747 		return -EFAULT;
1748 
1749 	nq = &nullb->queues[hctx_idx];
1750 	hctx->driver_data = nq;
1751 	null_init_queue(nullb, nq);
1752 
1753 	return 0;
1754 }
1755 
1756 static const struct blk_mq_ops null_mq_ops = {
1757 	.queue_rq       = null_queue_rq,
1758 	.queue_rqs	= null_queue_rqs,
1759 	.complete	= null_complete_rq,
1760 	.timeout	= null_timeout_rq,
1761 	.poll		= null_poll,
1762 	.map_queues	= null_map_queues,
1763 	.init_hctx	= null_init_hctx,
1764 };
1765 
1766 static void null_del_dev(struct nullb *nullb)
1767 {
1768 	struct nullb_device *dev;
1769 
1770 	if (!nullb)
1771 		return;
1772 
1773 	dev = nullb->dev;
1774 
1775 	ida_free(&nullb_indexes, nullb->index);
1776 
1777 	list_del_init(&nullb->list);
1778 
1779 	del_gendisk(nullb->disk);
1780 
1781 	if (test_bit(NULLB_DEV_FL_THROTTLED, &dev->flags)) {
1782 		hrtimer_cancel(&nullb->bw_timer);
1783 		atomic_long_set(&nullb->cur_bytes, LONG_MAX);
1784 		blk_mq_start_stopped_hw_queues(nullb->q, true);
1785 	}
1786 
1787 	put_disk(nullb->disk);
1788 	null_free_zoned_dev(dev);
1789 	if (nullb->tag_set == &nullb->__tag_set)
1790 		blk_mq_free_tag_set(nullb->tag_set);
1791 	kfree(nullb->queues);
1792 	if (null_cache_active(nullb))
1793 		null_free_device_storage(dev, true);
1794 	kfree(nullb);
1795 	dev->nullb = NULL;
1796 }
1797 
1798 static void null_config_discard(struct nullb *nullb, struct queue_limits *lim)
1799 {
1800 	if (nullb->dev->discard == false)
1801 		return;
1802 
1803 	if (!nullb->dev->memory_backed) {
1804 		nullb->dev->discard = false;
1805 		pr_info("discard option is ignored without memory backing\n");
1806 		return;
1807 	}
1808 
1809 	if (nullb->dev->zoned) {
1810 		nullb->dev->discard = false;
1811 		pr_info("discard option is ignored in zoned mode\n");
1812 		return;
1813 	}
1814 
1815 	lim->max_hw_discard_sectors = UINT_MAX >> 9;
1816 }
1817 
1818 static const struct block_device_operations null_ops = {
1819 	.owner		= THIS_MODULE,
1820 	.report_zones	= null_report_zones,
1821 };
1822 
1823 static int setup_queues(struct nullb *nullb)
1824 {
1825 	int nqueues = nr_cpu_ids;
1826 
1827 	if (g_poll_queues)
1828 		nqueues += g_poll_queues;
1829 
1830 	nullb->queues = kzalloc_objs(struct nullb_queue, nqueues);
1831 	if (!nullb->queues)
1832 		return -ENOMEM;
1833 
1834 	return 0;
1835 }
1836 
1837 static int null_init_tag_set(struct blk_mq_tag_set *set, int poll_queues)
1838 {
1839 	set->ops = &null_mq_ops;
1840 	set->cmd_size = sizeof(struct nullb_cmd);
1841 	set->timeout = 5 * HZ;
1842 	set->nr_maps = 1;
1843 	if (poll_queues) {
1844 		set->nr_hw_queues += poll_queues;
1845 		set->nr_maps += 2;
1846 	}
1847 	return blk_mq_alloc_tag_set(set);
1848 }
1849 
1850 static int null_init_global_tag_set(void)
1851 {
1852 	int error;
1853 
1854 	if (tag_set.ops)
1855 		return 0;
1856 
1857 	tag_set.nr_hw_queues = g_submit_queues;
1858 	tag_set.queue_depth = g_hw_queue_depth;
1859 	tag_set.numa_node = g_home_node;
1860 	if (g_no_sched)
1861 		tag_set.flags |= BLK_MQ_F_NO_SCHED_BY_DEFAULT;
1862 	if (g_shared_tag_bitmap)
1863 		tag_set.flags |= BLK_MQ_F_TAG_HCTX_SHARED;
1864 	if (g_blocking)
1865 		tag_set.flags |= BLK_MQ_F_BLOCKING;
1866 
1867 	error = null_init_tag_set(&tag_set, g_poll_queues);
1868 	if (error)
1869 		tag_set.ops = NULL;
1870 	return error;
1871 }
1872 
1873 static int null_setup_tagset(struct nullb *nullb)
1874 {
1875 	if (nullb->dev->shared_tags) {
1876 		nullb->tag_set = &tag_set;
1877 		return null_init_global_tag_set();
1878 	}
1879 
1880 	nullb->tag_set = &nullb->__tag_set;
1881 	nullb->tag_set->driver_data = nullb;
1882 	nullb->tag_set->nr_hw_queues = nullb->dev->submit_queues;
1883 	nullb->tag_set->queue_depth = nullb->dev->hw_queue_depth;
1884 	nullb->tag_set->numa_node = nullb->dev->home_node;
1885 	if (nullb->dev->no_sched)
1886 		nullb->tag_set->flags |= BLK_MQ_F_NO_SCHED_BY_DEFAULT;
1887 	if (nullb->dev->shared_tag_bitmap)
1888 		nullb->tag_set->flags |= BLK_MQ_F_TAG_HCTX_SHARED;
1889 	if (nullb->dev->blocking)
1890 		nullb->tag_set->flags |= BLK_MQ_F_BLOCKING;
1891 	return null_init_tag_set(nullb->tag_set, nullb->dev->poll_queues);
1892 }
1893 
1894 static int null_validate_conf(struct nullb_device *dev)
1895 {
1896 	if (dev->queue_mode == NULL_Q_RQ) {
1897 		pr_err("legacy IO path is no longer available\n");
1898 		return -EINVAL;
1899 	}
1900 	if (dev->queue_mode == NULL_Q_BIO) {
1901 		pr_err("BIO-based IO path is no longer available, using blk-mq instead.\n");
1902 		dev->queue_mode = NULL_Q_MQ;
1903 	}
1904 
1905 	if (dev->use_per_node_hctx) {
1906 		if (dev->submit_queues != nr_online_nodes)
1907 			dev->submit_queues = nr_online_nodes;
1908 	} else if (dev->submit_queues > nr_cpu_ids)
1909 		dev->submit_queues = nr_cpu_ids;
1910 	else if (dev->submit_queues == 0)
1911 		dev->submit_queues = 1;
1912 	dev->prev_submit_queues = dev->submit_queues;
1913 
1914 	if (dev->poll_queues > g_poll_queues)
1915 		dev->poll_queues = g_poll_queues;
1916 	dev->prev_poll_queues = dev->poll_queues;
1917 	dev->irqmode = min_t(unsigned int, dev->irqmode, NULL_IRQ_TIMER);
1918 
1919 	/* Do memory allocation, so set blocking */
1920 	if (dev->memory_backed)
1921 		dev->blocking = true;
1922 	else /* cache is meaningless */
1923 		dev->cache_size = 0;
1924 	dev->cache_size = min_t(unsigned long, ULONG_MAX / 1024 / 1024,
1925 						dev->cache_size);
1926 	dev->mbps = min_t(unsigned int, 1024 * 40, dev->mbps);
1927 
1928 	if (dev->zoned &&
1929 	    (!dev->zone_size || !is_power_of_2(dev->zone_size))) {
1930 		pr_err("zone_size must be power-of-two\n");
1931 		return -EINVAL;
1932 	}
1933 
1934 	return 0;
1935 }
1936 
1937 #ifdef CONFIG_BLK_DEV_NULL_BLK_FAULT_INJECTION
1938 static bool __null_setup_fault(struct fault_attr *attr, char *str)
1939 {
1940 	if (!str[0])
1941 		return true;
1942 
1943 	if (!setup_fault_attr(attr, str))
1944 		return false;
1945 
1946 	attr->verbose = 0;
1947 	return true;
1948 }
1949 #endif
1950 
1951 static bool null_setup_fault(void)
1952 {
1953 #ifdef CONFIG_BLK_DEV_NULL_BLK_FAULT_INJECTION
1954 	if (!__null_setup_fault(&null_timeout_attr, g_timeout_str))
1955 		return false;
1956 	if (!__null_setup_fault(&null_requeue_attr, g_requeue_str))
1957 		return false;
1958 	if (!__null_setup_fault(&null_init_hctx_attr, g_init_hctx_str))
1959 		return false;
1960 #endif
1961 	return true;
1962 }
1963 
1964 static int null_add_dev(struct nullb_device *dev)
1965 {
1966 	struct queue_limits lim = {
1967 		.logical_block_size	= dev->blocksize,
1968 		.physical_block_size	= dev->blocksize,
1969 		.max_hw_sectors		= dev->max_sectors,
1970 		.dma_alignment		= 1,
1971 	};
1972 
1973 	struct nullb *nullb;
1974 	int rv;
1975 
1976 	rv = null_validate_conf(dev);
1977 	if (rv)
1978 		return rv;
1979 
1980 	nullb = kzalloc_node(sizeof(*nullb), GFP_KERNEL, dev->home_node);
1981 	if (!nullb) {
1982 		rv = -ENOMEM;
1983 		goto out;
1984 	}
1985 	nullb->dev = dev;
1986 	dev->nullb = nullb;
1987 
1988 	spin_lock_init(&nullb->lock);
1989 
1990 	rv = setup_queues(nullb);
1991 	if (rv)
1992 		goto out_free_nullb;
1993 
1994 	rv = null_setup_tagset(nullb);
1995 	if (rv)
1996 		goto out_cleanup_queues;
1997 
1998 	if (dev->virt_boundary)
1999 		lim.virt_boundary_mask = PAGE_SIZE - 1;
2000 	null_config_discard(nullb, &lim);
2001 	if (dev->zoned) {
2002 		rv = null_init_zoned_dev(dev, &lim);
2003 		if (rv)
2004 			goto out_cleanup_tags;
2005 	}
2006 
2007 	if (dev->cache_size > 0) {
2008 		set_bit(NULLB_DEV_FL_CACHE, &nullb->dev->flags);
2009 		lim.features |= BLK_FEAT_WRITE_CACHE;
2010 		if (dev->fua)
2011 			lim.features |= BLK_FEAT_FUA;
2012 	}
2013 
2014 	if (dev->rotational)
2015 		lim.features |= BLK_FEAT_ROTATIONAL;
2016 
2017 	nullb->disk = blk_mq_alloc_disk(nullb->tag_set, &lim, nullb);
2018 	if (IS_ERR(nullb->disk)) {
2019 		rv = PTR_ERR(nullb->disk);
2020 		goto out_cleanup_zone;
2021 	}
2022 	nullb->q = nullb->disk->queue;
2023 
2024 	if (dev->mbps) {
2025 		set_bit(NULLB_DEV_FL_THROTTLED, &dev->flags);
2026 		nullb_setup_bwtimer(nullb);
2027 	}
2028 
2029 	nullb->q->queuedata = nullb;
2030 
2031 	rv = ida_alloc(&nullb_indexes, GFP_KERNEL);
2032 	if (rv < 0)
2033 		goto out_cleanup_disk;
2034 
2035 	nullb->index = rv;
2036 	dev->index = rv;
2037 
2038 	if (config_item_name(&dev->group.cg_item)) {
2039 		/* Use configfs dir name as the device name */
2040 		snprintf(nullb->disk_name, sizeof(nullb->disk_name),
2041 			 "%s", config_item_name(&dev->group.cg_item));
2042 	} else {
2043 		sprintf(nullb->disk_name, "nullb%d", nullb->index);
2044 	}
2045 
2046 	set_capacity(nullb->disk,
2047 		((sector_t)nullb->dev->size * SZ_1M) >> SECTOR_SHIFT);
2048 	nullb->disk->major = null_major;
2049 	nullb->disk->first_minor = nullb->index;
2050 	nullb->disk->minors = 1;
2051 	nullb->disk->fops = &null_ops;
2052 	nullb->disk->private_data = nullb;
2053 	strscpy(nullb->disk->disk_name, nullb->disk_name);
2054 
2055 	if (nullb->dev->zoned) {
2056 		rv = null_register_zoned_dev(nullb);
2057 		if (rv)
2058 			goto out_ida_free;
2059 	}
2060 
2061 	rv = add_disk(nullb->disk);
2062 	if (rv)
2063 		goto out_ida_free;
2064 
2065 	list_add_tail(&nullb->list, &nullb_list);
2066 
2067 	pr_info("disk %s created\n", nullb->disk_name);
2068 
2069 	return 0;
2070 
2071 out_ida_free:
2072 	ida_free(&nullb_indexes, nullb->index);
2073 out_cleanup_disk:
2074 	put_disk(nullb->disk);
2075 out_cleanup_zone:
2076 	null_free_zoned_dev(dev);
2077 out_cleanup_tags:
2078 	if (nullb->tag_set == &nullb->__tag_set)
2079 		blk_mq_free_tag_set(nullb->tag_set);
2080 out_cleanup_queues:
2081 	kfree(nullb->queues);
2082 out_free_nullb:
2083 	kfree(nullb);
2084 	dev->nullb = NULL;
2085 out:
2086 	return rv;
2087 }
2088 
2089 static struct nullb *null_find_dev_by_name(const char *name)
2090 {
2091 	struct nullb *nullb = NULL, *nb;
2092 
2093 	guard(mutex)(&lock);
2094 	list_for_each_entry(nb, &nullb_list, list) {
2095 		if (strcmp(nb->disk_name, name) == 0) {
2096 			nullb = nb;
2097 			break;
2098 		}
2099 	}
2100 
2101 	return nullb;
2102 }
2103 
2104 static int null_create_dev(void)
2105 {
2106 	struct nullb_device *dev;
2107 	int ret;
2108 
2109 	dev = null_alloc_dev();
2110 	if (!dev)
2111 		return -ENOMEM;
2112 
2113 	scoped_guard(mutex, &lock) {
2114 		ret = null_add_dev(dev);
2115 	}
2116 	if (ret) {
2117 		null_free_dev(dev);
2118 		return ret;
2119 	}
2120 
2121 	return 0;
2122 }
2123 
2124 static void null_destroy_dev(struct nullb *nullb)
2125 {
2126 	struct nullb_device *dev = nullb->dev;
2127 
2128 	null_del_dev(nullb);
2129 	null_free_device_storage(dev, false);
2130 	null_free_dev(dev);
2131 }
2132 
2133 static int __init null_init(void)
2134 {
2135 	int ret = 0;
2136 	unsigned int i;
2137 	struct nullb *nullb;
2138 
2139 	if (g_bs > PAGE_SIZE) {
2140 		pr_warn("invalid block size\n");
2141 		pr_warn("defaults block size to %lu\n", PAGE_SIZE);
2142 		g_bs = PAGE_SIZE;
2143 	}
2144 
2145 	if (g_home_node != NUMA_NO_NODE && g_home_node >= nr_online_nodes) {
2146 		pr_err("invalid home_node value\n");
2147 		g_home_node = NUMA_NO_NODE;
2148 	}
2149 
2150 	if (!null_setup_fault())
2151 		return -EINVAL;
2152 
2153 	if (g_queue_mode == NULL_Q_RQ) {
2154 		pr_err("legacy IO path is no longer available\n");
2155 		return -EINVAL;
2156 	}
2157 
2158 	if (g_use_per_node_hctx) {
2159 		if (g_submit_queues != nr_online_nodes) {
2160 			pr_warn("submit_queues param is set to %u.\n",
2161 				nr_online_nodes);
2162 			g_submit_queues = nr_online_nodes;
2163 		}
2164 	} else if (g_submit_queues > nr_cpu_ids) {
2165 		g_submit_queues = nr_cpu_ids;
2166 	} else if (g_submit_queues <= 0) {
2167 		g_submit_queues = 1;
2168 	}
2169 
2170 	config_group_init(&nullb_subsys.su_group);
2171 	mutex_init(&nullb_subsys.su_mutex);
2172 
2173 	null_major = register_blkdev(0, "nullb");
2174 	if (null_major < 0)
2175 		return null_major;
2176 
2177 	for (i = 0; i < nr_devices; i++) {
2178 		ret = null_create_dev();
2179 		if (ret)
2180 			goto err_dev;
2181 	}
2182 
2183 	ret = configfs_register_subsystem(&nullb_subsys);
2184 	if (ret)
2185 		goto err_dev;
2186 
2187 	pr_info("module loaded\n");
2188 	return 0;
2189 
2190 err_dev:
2191 	while (!list_empty(&nullb_list)) {
2192 		nullb = list_entry(nullb_list.next, struct nullb, list);
2193 		null_destroy_dev(nullb);
2194 	}
2195 	unregister_blkdev(null_major, "nullb");
2196 	if (tag_set.ops)
2197 		blk_mq_free_tag_set(&tag_set);
2198 	return ret;
2199 }
2200 
2201 static void __exit null_exit(void)
2202 {
2203 	struct nullb *nullb;
2204 
2205 	configfs_unregister_subsystem(&nullb_subsys);
2206 
2207 	scoped_guard(mutex, &lock) {
2208 		while (!list_empty(&nullb_list)) {
2209 			nullb = list_entry(nullb_list.next, struct nullb, list);
2210 			null_destroy_dev(nullb);
2211 		}
2212 	}
2213 
2214 	unregister_blkdev(null_major, "nullb");
2215 
2216 	if (tag_set.ops)
2217 		blk_mq_free_tag_set(&tag_set);
2218 }
2219 
2220 module_init(null_init);
2221 module_exit(null_exit);
2222 
2223 MODULE_AUTHOR("Jens Axboe <axboe@kernel.dk>");
2224 MODULE_DESCRIPTION("multi queue aware block test driver");
2225 MODULE_LICENSE("GPL");
2226