null_blk_main.c 43 KB

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  1. /*
  2. * Add configfs and memory store: Kyungchan Koh <kkc6196@fb.com> and
  3. * Shaohua Li <shli@fb.com>
  4. */
  5. #include <linux/module.h>
  6. #include <linux/moduleparam.h>
  7. #include <linux/sched.h>
  8. #include <linux/fs.h>
  9. #include <linux/init.h>
  10. #include "null_blk.h"
  11. #define PAGE_SECTORS_SHIFT (PAGE_SHIFT - SECTOR_SHIFT)
  12. #define PAGE_SECTORS (1 << PAGE_SECTORS_SHIFT)
  13. #define SECTOR_MASK (PAGE_SECTORS - 1)
  14. #define FREE_BATCH 16
  15. #define TICKS_PER_SEC 50ULL
  16. #define TIMER_INTERVAL (NSEC_PER_SEC / TICKS_PER_SEC)
  17. #ifdef CONFIG_BLK_DEV_NULL_BLK_FAULT_INJECTION
  18. static DECLARE_FAULT_ATTR(null_timeout_attr);
  19. static DECLARE_FAULT_ATTR(null_requeue_attr);
  20. #endif
  21. static inline u64 mb_per_tick(int mbps)
  22. {
  23. return (1 << 20) / TICKS_PER_SEC * ((u64) mbps);
  24. }
  25. /*
  26. * Status flags for nullb_device.
  27. *
  28. * CONFIGURED: Device has been configured and turned on. Cannot reconfigure.
  29. * UP: Device is currently on and visible in userspace.
  30. * THROTTLED: Device is being throttled.
  31. * CACHE: Device is using a write-back cache.
  32. */
  33. enum nullb_device_flags {
  34. NULLB_DEV_FL_CONFIGURED = 0,
  35. NULLB_DEV_FL_UP = 1,
  36. NULLB_DEV_FL_THROTTLED = 2,
  37. NULLB_DEV_FL_CACHE = 3,
  38. };
  39. #define MAP_SZ ((PAGE_SIZE >> SECTOR_SHIFT) + 2)
  40. /*
  41. * nullb_page is a page in memory for nullb devices.
  42. *
  43. * @page: The page holding the data.
  44. * @bitmap: The bitmap represents which sector in the page has data.
  45. * Each bit represents one block size. For example, sector 8
  46. * will use the 7th bit
  47. * The highest 2 bits of bitmap are for special purpose. LOCK means the cache
  48. * page is being flushing to storage. FREE means the cache page is freed and
  49. * should be skipped from flushing to storage. Please see
  50. * null_make_cache_space
  51. */
  52. struct nullb_page {
  53. struct page *page;
  54. DECLARE_BITMAP(bitmap, MAP_SZ);
  55. };
  56. #define NULLB_PAGE_LOCK (MAP_SZ - 1)
  57. #define NULLB_PAGE_FREE (MAP_SZ - 2)
  58. static LIST_HEAD(nullb_list);
  59. static struct mutex lock;
  60. static int null_major;
  61. static DEFINE_IDA(nullb_indexes);
  62. static struct blk_mq_tag_set tag_set;
  63. enum {
  64. NULL_IRQ_NONE = 0,
  65. NULL_IRQ_SOFTIRQ = 1,
  66. NULL_IRQ_TIMER = 2,
  67. };
  68. enum {
  69. NULL_Q_BIO = 0,
  70. NULL_Q_RQ = 1,
  71. NULL_Q_MQ = 2,
  72. };
  73. static int g_no_sched;
  74. module_param_named(no_sched, g_no_sched, int, 0444);
  75. MODULE_PARM_DESC(no_sched, "No io scheduler");
  76. static int g_submit_queues = 1;
  77. module_param_named(submit_queues, g_submit_queues, int, 0444);
  78. MODULE_PARM_DESC(submit_queues, "Number of submission queues");
  79. static int g_home_node = NUMA_NO_NODE;
  80. module_param_named(home_node, g_home_node, int, 0444);
  81. MODULE_PARM_DESC(home_node, "Home node for the device");
  82. #ifdef CONFIG_BLK_DEV_NULL_BLK_FAULT_INJECTION
  83. static char g_timeout_str[80];
  84. module_param_string(timeout, g_timeout_str, sizeof(g_timeout_str), 0444);
  85. static char g_requeue_str[80];
  86. module_param_string(requeue, g_requeue_str, sizeof(g_requeue_str), 0444);
  87. #endif
  88. static int g_queue_mode = NULL_Q_MQ;
  89. static int null_param_store_val(const char *str, int *val, int min, int max)
  90. {
  91. int ret, new_val;
  92. ret = kstrtoint(str, 10, &new_val);
  93. if (ret)
  94. return -EINVAL;
  95. if (new_val < min || new_val > max)
  96. return -EINVAL;
  97. *val = new_val;
  98. return 0;
  99. }
  100. static int null_set_queue_mode(const char *str, const struct kernel_param *kp)
  101. {
  102. return null_param_store_val(str, &g_queue_mode, NULL_Q_BIO, NULL_Q_MQ);
  103. }
  104. static const struct kernel_param_ops null_queue_mode_param_ops = {
  105. .set = null_set_queue_mode,
  106. .get = param_get_int,
  107. };
  108. device_param_cb(queue_mode, &null_queue_mode_param_ops, &g_queue_mode, 0444);
  109. MODULE_PARM_DESC(queue_mode, "Block interface to use (0=bio,1=rq,2=multiqueue)");
  110. static int g_gb = 250;
  111. module_param_named(gb, g_gb, int, 0444);
  112. MODULE_PARM_DESC(gb, "Size in GB");
  113. static int g_bs = 512;
  114. module_param_named(bs, g_bs, int, 0444);
  115. MODULE_PARM_DESC(bs, "Block size (in bytes)");
  116. static int nr_devices = 1;
  117. module_param(nr_devices, int, 0444);
  118. MODULE_PARM_DESC(nr_devices, "Number of devices to register");
  119. static bool g_blocking;
  120. module_param_named(blocking, g_blocking, bool, 0444);
  121. MODULE_PARM_DESC(blocking, "Register as a blocking blk-mq driver device");
  122. static bool shared_tags;
  123. module_param(shared_tags, bool, 0444);
  124. MODULE_PARM_DESC(shared_tags, "Share tag set between devices for blk-mq");
  125. static int g_irqmode = NULL_IRQ_SOFTIRQ;
  126. static int null_set_irqmode(const char *str, const struct kernel_param *kp)
  127. {
  128. return null_param_store_val(str, &g_irqmode, NULL_IRQ_NONE,
  129. NULL_IRQ_TIMER);
  130. }
  131. static const struct kernel_param_ops null_irqmode_param_ops = {
  132. .set = null_set_irqmode,
  133. .get = param_get_int,
  134. };
  135. device_param_cb(irqmode, &null_irqmode_param_ops, &g_irqmode, 0444);
  136. MODULE_PARM_DESC(irqmode, "IRQ completion handler. 0-none, 1-softirq, 2-timer");
  137. static unsigned long g_completion_nsec = 10000;
  138. module_param_named(completion_nsec, g_completion_nsec, ulong, 0444);
  139. MODULE_PARM_DESC(completion_nsec, "Time in ns to complete a request in hardware. Default: 10,000ns");
  140. static int g_hw_queue_depth = 64;
  141. module_param_named(hw_queue_depth, g_hw_queue_depth, int, 0444);
  142. MODULE_PARM_DESC(hw_queue_depth, "Queue depth for each hardware queue. Default: 64");
  143. static bool g_use_per_node_hctx;
  144. module_param_named(use_per_node_hctx, g_use_per_node_hctx, bool, 0444);
  145. MODULE_PARM_DESC(use_per_node_hctx, "Use per-node allocation for hardware context queues. Default: false");
  146. static bool g_zoned;
  147. module_param_named(zoned, g_zoned, bool, S_IRUGO);
  148. MODULE_PARM_DESC(zoned, "Make device as a host-managed zoned block device. Default: false");
  149. static unsigned long g_zone_size = 256;
  150. module_param_named(zone_size, g_zone_size, ulong, S_IRUGO);
  151. MODULE_PARM_DESC(zone_size, "Zone size in MB when block device is zoned. Must be power-of-two: Default: 256");
  152. static struct nullb_device *null_alloc_dev(void);
  153. static void null_free_dev(struct nullb_device *dev);
  154. static void null_del_dev(struct nullb *nullb);
  155. static int null_add_dev(struct nullb_device *dev);
  156. static void null_free_device_storage(struct nullb_device *dev, bool is_cache);
  157. static inline struct nullb_device *to_nullb_device(struct config_item *item)
  158. {
  159. return item ? container_of(item, struct nullb_device, item) : NULL;
  160. }
  161. static inline ssize_t nullb_device_uint_attr_show(unsigned int val, char *page)
  162. {
  163. return snprintf(page, PAGE_SIZE, "%u\n", val);
  164. }
  165. static inline ssize_t nullb_device_ulong_attr_show(unsigned long val,
  166. char *page)
  167. {
  168. return snprintf(page, PAGE_SIZE, "%lu\n", val);
  169. }
  170. static inline ssize_t nullb_device_bool_attr_show(bool val, char *page)
  171. {
  172. return snprintf(page, PAGE_SIZE, "%u\n", val);
  173. }
  174. static ssize_t nullb_device_uint_attr_store(unsigned int *val,
  175. const char *page, size_t count)
  176. {
  177. unsigned int tmp;
  178. int result;
  179. result = kstrtouint(page, 0, &tmp);
  180. if (result)
  181. return result;
  182. *val = tmp;
  183. return count;
  184. }
  185. static ssize_t nullb_device_ulong_attr_store(unsigned long *val,
  186. const char *page, size_t count)
  187. {
  188. int result;
  189. unsigned long tmp;
  190. result = kstrtoul(page, 0, &tmp);
  191. if (result)
  192. return result;
  193. *val = tmp;
  194. return count;
  195. }
  196. static ssize_t nullb_device_bool_attr_store(bool *val, const char *page,
  197. size_t count)
  198. {
  199. bool tmp;
  200. int result;
  201. result = kstrtobool(page, &tmp);
  202. if (result)
  203. return result;
  204. *val = tmp;
  205. return count;
  206. }
  207. /* The following macro should only be used with TYPE = {uint, ulong, bool}. */
  208. #define NULLB_DEVICE_ATTR(NAME, TYPE) \
  209. static ssize_t \
  210. nullb_device_##NAME##_show(struct config_item *item, char *page) \
  211. { \
  212. return nullb_device_##TYPE##_attr_show( \
  213. to_nullb_device(item)->NAME, page); \
  214. } \
  215. static ssize_t \
  216. nullb_device_##NAME##_store(struct config_item *item, const char *page, \
  217. size_t count) \
  218. { \
  219. if (test_bit(NULLB_DEV_FL_CONFIGURED, &to_nullb_device(item)->flags)) \
  220. return -EBUSY; \
  221. return nullb_device_##TYPE##_attr_store( \
  222. &to_nullb_device(item)->NAME, page, count); \
  223. } \
  224. CONFIGFS_ATTR(nullb_device_, NAME);
  225. NULLB_DEVICE_ATTR(size, ulong);
  226. NULLB_DEVICE_ATTR(completion_nsec, ulong);
  227. NULLB_DEVICE_ATTR(submit_queues, uint);
  228. NULLB_DEVICE_ATTR(home_node, uint);
  229. NULLB_DEVICE_ATTR(queue_mode, uint);
  230. NULLB_DEVICE_ATTR(blocksize, uint);
  231. NULLB_DEVICE_ATTR(irqmode, uint);
  232. NULLB_DEVICE_ATTR(hw_queue_depth, uint);
  233. NULLB_DEVICE_ATTR(index, uint);
  234. NULLB_DEVICE_ATTR(blocking, bool);
  235. NULLB_DEVICE_ATTR(use_per_node_hctx, bool);
  236. NULLB_DEVICE_ATTR(memory_backed, bool);
  237. NULLB_DEVICE_ATTR(discard, bool);
  238. NULLB_DEVICE_ATTR(mbps, uint);
  239. NULLB_DEVICE_ATTR(cache_size, ulong);
  240. NULLB_DEVICE_ATTR(zoned, bool);
  241. NULLB_DEVICE_ATTR(zone_size, ulong);
  242. static ssize_t nullb_device_power_show(struct config_item *item, char *page)
  243. {
  244. return nullb_device_bool_attr_show(to_nullb_device(item)->power, page);
  245. }
  246. static ssize_t nullb_device_power_store(struct config_item *item,
  247. const char *page, size_t count)
  248. {
  249. struct nullb_device *dev = to_nullb_device(item);
  250. bool newp = false;
  251. ssize_t ret;
  252. ret = nullb_device_bool_attr_store(&newp, page, count);
  253. if (ret < 0)
  254. return ret;
  255. if (!dev->power && newp) {
  256. if (test_and_set_bit(NULLB_DEV_FL_UP, &dev->flags))
  257. return count;
  258. if (null_add_dev(dev)) {
  259. clear_bit(NULLB_DEV_FL_UP, &dev->flags);
  260. return -ENOMEM;
  261. }
  262. set_bit(NULLB_DEV_FL_CONFIGURED, &dev->flags);
  263. dev->power = newp;
  264. } else if (dev->power && !newp) {
  265. mutex_lock(&lock);
  266. dev->power = newp;
  267. null_del_dev(dev->nullb);
  268. mutex_unlock(&lock);
  269. clear_bit(NULLB_DEV_FL_UP, &dev->flags);
  270. clear_bit(NULLB_DEV_FL_CONFIGURED, &dev->flags);
  271. }
  272. return count;
  273. }
  274. CONFIGFS_ATTR(nullb_device_, power);
  275. static ssize_t nullb_device_badblocks_show(struct config_item *item, char *page)
  276. {
  277. struct nullb_device *t_dev = to_nullb_device(item);
  278. return badblocks_show(&t_dev->badblocks, page, 0);
  279. }
  280. static ssize_t nullb_device_badblocks_store(struct config_item *item,
  281. const char *page, size_t count)
  282. {
  283. struct nullb_device *t_dev = to_nullb_device(item);
  284. char *orig, *buf, *tmp;
  285. u64 start, end;
  286. int ret;
  287. orig = kstrndup(page, count, GFP_KERNEL);
  288. if (!orig)
  289. return -ENOMEM;
  290. buf = strstrip(orig);
  291. ret = -EINVAL;
  292. if (buf[0] != '+' && buf[0] != '-')
  293. goto out;
  294. tmp = strchr(&buf[1], '-');
  295. if (!tmp)
  296. goto out;
  297. *tmp = '\0';
  298. ret = kstrtoull(buf + 1, 0, &start);
  299. if (ret)
  300. goto out;
  301. ret = kstrtoull(tmp + 1, 0, &end);
  302. if (ret)
  303. goto out;
  304. ret = -EINVAL;
  305. if (start > end)
  306. goto out;
  307. /* enable badblocks */
  308. cmpxchg(&t_dev->badblocks.shift, -1, 0);
  309. if (buf[0] == '+')
  310. ret = badblocks_set(&t_dev->badblocks, start,
  311. end - start + 1, 1);
  312. else
  313. ret = badblocks_clear(&t_dev->badblocks, start,
  314. end - start + 1);
  315. if (ret == 0)
  316. ret = count;
  317. out:
  318. kfree(orig);
  319. return ret;
  320. }
  321. CONFIGFS_ATTR(nullb_device_, badblocks);
  322. static struct configfs_attribute *nullb_device_attrs[] = {
  323. &nullb_device_attr_size,
  324. &nullb_device_attr_completion_nsec,
  325. &nullb_device_attr_submit_queues,
  326. &nullb_device_attr_home_node,
  327. &nullb_device_attr_queue_mode,
  328. &nullb_device_attr_blocksize,
  329. &nullb_device_attr_irqmode,
  330. &nullb_device_attr_hw_queue_depth,
  331. &nullb_device_attr_index,
  332. &nullb_device_attr_blocking,
  333. &nullb_device_attr_use_per_node_hctx,
  334. &nullb_device_attr_power,
  335. &nullb_device_attr_memory_backed,
  336. &nullb_device_attr_discard,
  337. &nullb_device_attr_mbps,
  338. &nullb_device_attr_cache_size,
  339. &nullb_device_attr_badblocks,
  340. &nullb_device_attr_zoned,
  341. &nullb_device_attr_zone_size,
  342. NULL,
  343. };
  344. static void nullb_device_release(struct config_item *item)
  345. {
  346. struct nullb_device *dev = to_nullb_device(item);
  347. null_free_device_storage(dev, false);
  348. null_free_dev(dev);
  349. }
  350. static struct configfs_item_operations nullb_device_ops = {
  351. .release = nullb_device_release,
  352. };
  353. static const struct config_item_type nullb_device_type = {
  354. .ct_item_ops = &nullb_device_ops,
  355. .ct_attrs = nullb_device_attrs,
  356. .ct_owner = THIS_MODULE,
  357. };
  358. static struct
  359. config_item *nullb_group_make_item(struct config_group *group, const char *name)
  360. {
  361. struct nullb_device *dev;
  362. dev = null_alloc_dev();
  363. if (!dev)
  364. return ERR_PTR(-ENOMEM);
  365. config_item_init_type_name(&dev->item, name, &nullb_device_type);
  366. return &dev->item;
  367. }
  368. static void
  369. nullb_group_drop_item(struct config_group *group, struct config_item *item)
  370. {
  371. struct nullb_device *dev = to_nullb_device(item);
  372. if (test_and_clear_bit(NULLB_DEV_FL_UP, &dev->flags)) {
  373. mutex_lock(&lock);
  374. dev->power = false;
  375. null_del_dev(dev->nullb);
  376. mutex_unlock(&lock);
  377. }
  378. config_item_put(item);
  379. }
  380. static ssize_t memb_group_features_show(struct config_item *item, char *page)
  381. {
  382. return snprintf(page, PAGE_SIZE, "memory_backed,discard,bandwidth,cache,badblocks,zoned,zone_size\n");
  383. }
  384. CONFIGFS_ATTR_RO(memb_group_, features);
  385. static struct configfs_attribute *nullb_group_attrs[] = {
  386. &memb_group_attr_features,
  387. NULL,
  388. };
  389. static struct configfs_group_operations nullb_group_ops = {
  390. .make_item = nullb_group_make_item,
  391. .drop_item = nullb_group_drop_item,
  392. };
  393. static const struct config_item_type nullb_group_type = {
  394. .ct_group_ops = &nullb_group_ops,
  395. .ct_attrs = nullb_group_attrs,
  396. .ct_owner = THIS_MODULE,
  397. };
  398. static struct configfs_subsystem nullb_subsys = {
  399. .su_group = {
  400. .cg_item = {
  401. .ci_namebuf = "nullb",
  402. .ci_type = &nullb_group_type,
  403. },
  404. },
  405. };
  406. static inline int null_cache_active(struct nullb *nullb)
  407. {
  408. return test_bit(NULLB_DEV_FL_CACHE, &nullb->dev->flags);
  409. }
  410. static struct nullb_device *null_alloc_dev(void)
  411. {
  412. struct nullb_device *dev;
  413. dev = kzalloc(sizeof(*dev), GFP_KERNEL);
  414. if (!dev)
  415. return NULL;
  416. INIT_RADIX_TREE(&dev->data, GFP_ATOMIC);
  417. INIT_RADIX_TREE(&dev->cache, GFP_ATOMIC);
  418. if (badblocks_init(&dev->badblocks, 0)) {
  419. kfree(dev);
  420. return NULL;
  421. }
  422. dev->size = g_gb * 1024;
  423. dev->completion_nsec = g_completion_nsec;
  424. dev->submit_queues = g_submit_queues;
  425. dev->home_node = g_home_node;
  426. dev->queue_mode = g_queue_mode;
  427. dev->blocksize = g_bs;
  428. dev->irqmode = g_irqmode;
  429. dev->hw_queue_depth = g_hw_queue_depth;
  430. dev->blocking = g_blocking;
  431. dev->use_per_node_hctx = g_use_per_node_hctx;
  432. dev->zoned = g_zoned;
  433. dev->zone_size = g_zone_size;
  434. return dev;
  435. }
  436. static void null_free_dev(struct nullb_device *dev)
  437. {
  438. if (!dev)
  439. return;
  440. null_zone_exit(dev);
  441. badblocks_exit(&dev->badblocks);
  442. kfree(dev);
  443. }
  444. static void put_tag(struct nullb_queue *nq, unsigned int tag)
  445. {
  446. clear_bit_unlock(tag, nq->tag_map);
  447. if (waitqueue_active(&nq->wait))
  448. wake_up(&nq->wait);
  449. }
  450. static unsigned int get_tag(struct nullb_queue *nq)
  451. {
  452. unsigned int tag;
  453. do {
  454. tag = find_first_zero_bit(nq->tag_map, nq->queue_depth);
  455. if (tag >= nq->queue_depth)
  456. return -1U;
  457. } while (test_and_set_bit_lock(tag, nq->tag_map));
  458. return tag;
  459. }
  460. static void free_cmd(struct nullb_cmd *cmd)
  461. {
  462. put_tag(cmd->nq, cmd->tag);
  463. }
  464. static enum hrtimer_restart null_cmd_timer_expired(struct hrtimer *timer);
  465. static struct nullb_cmd *__alloc_cmd(struct nullb_queue *nq)
  466. {
  467. struct nullb_cmd *cmd;
  468. unsigned int tag;
  469. tag = get_tag(nq);
  470. if (tag != -1U) {
  471. cmd = &nq->cmds[tag];
  472. cmd->tag = tag;
  473. cmd->nq = nq;
  474. if (nq->dev->irqmode == NULL_IRQ_TIMER) {
  475. hrtimer_init(&cmd->timer, CLOCK_MONOTONIC,
  476. HRTIMER_MODE_REL);
  477. cmd->timer.function = null_cmd_timer_expired;
  478. }
  479. return cmd;
  480. }
  481. return NULL;
  482. }
  483. static struct nullb_cmd *alloc_cmd(struct nullb_queue *nq, int can_wait)
  484. {
  485. struct nullb_cmd *cmd;
  486. DEFINE_WAIT(wait);
  487. cmd = __alloc_cmd(nq);
  488. if (cmd || !can_wait)
  489. return cmd;
  490. do {
  491. prepare_to_wait(&nq->wait, &wait, TASK_UNINTERRUPTIBLE);
  492. cmd = __alloc_cmd(nq);
  493. if (cmd)
  494. break;
  495. io_schedule();
  496. } while (1);
  497. finish_wait(&nq->wait, &wait);
  498. return cmd;
  499. }
  500. static void end_cmd(struct nullb_cmd *cmd)
  501. {
  502. int queue_mode = cmd->nq->dev->queue_mode;
  503. switch (queue_mode) {
  504. case NULL_Q_MQ:
  505. blk_mq_end_request(cmd->rq, cmd->error);
  506. return;
  507. case NULL_Q_BIO:
  508. cmd->bio->bi_status = cmd->error;
  509. bio_endio(cmd->bio);
  510. break;
  511. }
  512. free_cmd(cmd);
  513. }
  514. static enum hrtimer_restart null_cmd_timer_expired(struct hrtimer *timer)
  515. {
  516. end_cmd(container_of(timer, struct nullb_cmd, timer));
  517. return HRTIMER_NORESTART;
  518. }
  519. static void null_cmd_end_timer(struct nullb_cmd *cmd)
  520. {
  521. ktime_t kt = cmd->nq->dev->completion_nsec;
  522. hrtimer_start(&cmd->timer, kt, HRTIMER_MODE_REL);
  523. }
  524. static void null_softirq_done_fn(struct request *rq)
  525. {
  526. struct nullb *nullb = rq->q->queuedata;
  527. if (nullb->dev->queue_mode == NULL_Q_MQ)
  528. end_cmd(blk_mq_rq_to_pdu(rq));
  529. else
  530. end_cmd(rq->special);
  531. }
  532. static struct nullb_page *null_alloc_page(gfp_t gfp_flags)
  533. {
  534. struct nullb_page *t_page;
  535. t_page = kmalloc(sizeof(struct nullb_page), gfp_flags);
  536. if (!t_page)
  537. goto out;
  538. t_page->page = alloc_pages(gfp_flags, 0);
  539. if (!t_page->page)
  540. goto out_freepage;
  541. memset(t_page->bitmap, 0, sizeof(t_page->bitmap));
  542. return t_page;
  543. out_freepage:
  544. kfree(t_page);
  545. out:
  546. return NULL;
  547. }
  548. static void null_free_page(struct nullb_page *t_page)
  549. {
  550. __set_bit(NULLB_PAGE_FREE, t_page->bitmap);
  551. if (test_bit(NULLB_PAGE_LOCK, t_page->bitmap))
  552. return;
  553. __free_page(t_page->page);
  554. kfree(t_page);
  555. }
  556. static bool null_page_empty(struct nullb_page *page)
  557. {
  558. int size = MAP_SZ - 2;
  559. return find_first_bit(page->bitmap, size) == size;
  560. }
  561. static void null_free_sector(struct nullb *nullb, sector_t sector,
  562. bool is_cache)
  563. {
  564. unsigned int sector_bit;
  565. u64 idx;
  566. struct nullb_page *t_page, *ret;
  567. struct radix_tree_root *root;
  568. root = is_cache ? &nullb->dev->cache : &nullb->dev->data;
  569. idx = sector >> PAGE_SECTORS_SHIFT;
  570. sector_bit = (sector & SECTOR_MASK);
  571. t_page = radix_tree_lookup(root, idx);
  572. if (t_page) {
  573. __clear_bit(sector_bit, t_page->bitmap);
  574. if (null_page_empty(t_page)) {
  575. ret = radix_tree_delete_item(root, idx, t_page);
  576. WARN_ON(ret != t_page);
  577. null_free_page(ret);
  578. if (is_cache)
  579. nullb->dev->curr_cache -= PAGE_SIZE;
  580. }
  581. }
  582. }
  583. static struct nullb_page *null_radix_tree_insert(struct nullb *nullb, u64 idx,
  584. struct nullb_page *t_page, bool is_cache)
  585. {
  586. struct radix_tree_root *root;
  587. root = is_cache ? &nullb->dev->cache : &nullb->dev->data;
  588. if (radix_tree_insert(root, idx, t_page)) {
  589. null_free_page(t_page);
  590. t_page = radix_tree_lookup(root, idx);
  591. WARN_ON(!t_page || t_page->page->index != idx);
  592. } else if (is_cache)
  593. nullb->dev->curr_cache += PAGE_SIZE;
  594. return t_page;
  595. }
  596. static void null_free_device_storage(struct nullb_device *dev, bool is_cache)
  597. {
  598. unsigned long pos = 0;
  599. int nr_pages;
  600. struct nullb_page *ret, *t_pages[FREE_BATCH];
  601. struct radix_tree_root *root;
  602. root = is_cache ? &dev->cache : &dev->data;
  603. do {
  604. int i;
  605. nr_pages = radix_tree_gang_lookup(root,
  606. (void **)t_pages, pos, FREE_BATCH);
  607. for (i = 0; i < nr_pages; i++) {
  608. pos = t_pages[i]->page->index;
  609. ret = radix_tree_delete_item(root, pos, t_pages[i]);
  610. WARN_ON(ret != t_pages[i]);
  611. null_free_page(ret);
  612. }
  613. pos++;
  614. } while (nr_pages == FREE_BATCH);
  615. if (is_cache)
  616. dev->curr_cache = 0;
  617. }
  618. static struct nullb_page *__null_lookup_page(struct nullb *nullb,
  619. sector_t sector, bool for_write, bool is_cache)
  620. {
  621. unsigned int sector_bit;
  622. u64 idx;
  623. struct nullb_page *t_page;
  624. struct radix_tree_root *root;
  625. idx = sector >> PAGE_SECTORS_SHIFT;
  626. sector_bit = (sector & SECTOR_MASK);
  627. root = is_cache ? &nullb->dev->cache : &nullb->dev->data;
  628. t_page = radix_tree_lookup(root, idx);
  629. WARN_ON(t_page && t_page->page->index != idx);
  630. if (t_page && (for_write || test_bit(sector_bit, t_page->bitmap)))
  631. return t_page;
  632. return NULL;
  633. }
  634. static struct nullb_page *null_lookup_page(struct nullb *nullb,
  635. sector_t sector, bool for_write, bool ignore_cache)
  636. {
  637. struct nullb_page *page = NULL;
  638. if (!ignore_cache)
  639. page = __null_lookup_page(nullb, sector, for_write, true);
  640. if (page)
  641. return page;
  642. return __null_lookup_page(nullb, sector, for_write, false);
  643. }
  644. static struct nullb_page *null_insert_page(struct nullb *nullb,
  645. sector_t sector, bool ignore_cache)
  646. __releases(&nullb->lock)
  647. __acquires(&nullb->lock)
  648. {
  649. u64 idx;
  650. struct nullb_page *t_page;
  651. t_page = null_lookup_page(nullb, sector, true, ignore_cache);
  652. if (t_page)
  653. return t_page;
  654. spin_unlock_irq(&nullb->lock);
  655. t_page = null_alloc_page(GFP_NOIO);
  656. if (!t_page)
  657. goto out_lock;
  658. if (radix_tree_preload(GFP_NOIO))
  659. goto out_freepage;
  660. spin_lock_irq(&nullb->lock);
  661. idx = sector >> PAGE_SECTORS_SHIFT;
  662. t_page->page->index = idx;
  663. t_page = null_radix_tree_insert(nullb, idx, t_page, !ignore_cache);
  664. radix_tree_preload_end();
  665. return t_page;
  666. out_freepage:
  667. null_free_page(t_page);
  668. out_lock:
  669. spin_lock_irq(&nullb->lock);
  670. return null_lookup_page(nullb, sector, true, ignore_cache);
  671. }
  672. static int null_flush_cache_page(struct nullb *nullb, struct nullb_page *c_page)
  673. {
  674. int i;
  675. unsigned int offset;
  676. u64 idx;
  677. struct nullb_page *t_page, *ret;
  678. void *dst, *src;
  679. idx = c_page->page->index;
  680. t_page = null_insert_page(nullb, idx << PAGE_SECTORS_SHIFT, true);
  681. __clear_bit(NULLB_PAGE_LOCK, c_page->bitmap);
  682. if (test_bit(NULLB_PAGE_FREE, c_page->bitmap)) {
  683. null_free_page(c_page);
  684. if (t_page && null_page_empty(t_page)) {
  685. ret = radix_tree_delete_item(&nullb->dev->data,
  686. idx, t_page);
  687. null_free_page(t_page);
  688. }
  689. return 0;
  690. }
  691. if (!t_page)
  692. return -ENOMEM;
  693. src = kmap_atomic(c_page->page);
  694. dst = kmap_atomic(t_page->page);
  695. for (i = 0; i < PAGE_SECTORS;
  696. i += (nullb->dev->blocksize >> SECTOR_SHIFT)) {
  697. if (test_bit(i, c_page->bitmap)) {
  698. offset = (i << SECTOR_SHIFT);
  699. memcpy(dst + offset, src + offset,
  700. nullb->dev->blocksize);
  701. __set_bit(i, t_page->bitmap);
  702. }
  703. }
  704. kunmap_atomic(dst);
  705. kunmap_atomic(src);
  706. ret = radix_tree_delete_item(&nullb->dev->cache, idx, c_page);
  707. null_free_page(ret);
  708. nullb->dev->curr_cache -= PAGE_SIZE;
  709. return 0;
  710. }
  711. static int null_make_cache_space(struct nullb *nullb, unsigned long n)
  712. {
  713. int i, err, nr_pages;
  714. struct nullb_page *c_pages[FREE_BATCH];
  715. unsigned long flushed = 0, one_round;
  716. again:
  717. if ((nullb->dev->cache_size * 1024 * 1024) >
  718. nullb->dev->curr_cache + n || nullb->dev->curr_cache == 0)
  719. return 0;
  720. nr_pages = radix_tree_gang_lookup(&nullb->dev->cache,
  721. (void **)c_pages, nullb->cache_flush_pos, FREE_BATCH);
  722. /*
  723. * nullb_flush_cache_page could unlock before using the c_pages. To
  724. * avoid race, we don't allow page free
  725. */
  726. for (i = 0; i < nr_pages; i++) {
  727. nullb->cache_flush_pos = c_pages[i]->page->index;
  728. /*
  729. * We found the page which is being flushed to disk by other
  730. * threads
  731. */
  732. if (test_bit(NULLB_PAGE_LOCK, c_pages[i]->bitmap))
  733. c_pages[i] = NULL;
  734. else
  735. __set_bit(NULLB_PAGE_LOCK, c_pages[i]->bitmap);
  736. }
  737. one_round = 0;
  738. for (i = 0; i < nr_pages; i++) {
  739. if (c_pages[i] == NULL)
  740. continue;
  741. err = null_flush_cache_page(nullb, c_pages[i]);
  742. if (err)
  743. return err;
  744. one_round++;
  745. }
  746. flushed += one_round << PAGE_SHIFT;
  747. if (n > flushed) {
  748. if (nr_pages == 0)
  749. nullb->cache_flush_pos = 0;
  750. if (one_round == 0) {
  751. /* give other threads a chance */
  752. spin_unlock_irq(&nullb->lock);
  753. spin_lock_irq(&nullb->lock);
  754. }
  755. goto again;
  756. }
  757. return 0;
  758. }
  759. static int copy_to_nullb(struct nullb *nullb, struct page *source,
  760. unsigned int off, sector_t sector, size_t n, bool is_fua)
  761. {
  762. size_t temp, count = 0;
  763. unsigned int offset;
  764. struct nullb_page *t_page;
  765. void *dst, *src;
  766. while (count < n) {
  767. temp = min_t(size_t, nullb->dev->blocksize, n - count);
  768. if (null_cache_active(nullb) && !is_fua)
  769. null_make_cache_space(nullb, PAGE_SIZE);
  770. offset = (sector & SECTOR_MASK) << SECTOR_SHIFT;
  771. t_page = null_insert_page(nullb, sector,
  772. !null_cache_active(nullb) || is_fua);
  773. if (!t_page)
  774. return -ENOSPC;
  775. src = kmap_atomic(source);
  776. dst = kmap_atomic(t_page->page);
  777. memcpy(dst + offset, src + off + count, temp);
  778. kunmap_atomic(dst);
  779. kunmap_atomic(src);
  780. __set_bit(sector & SECTOR_MASK, t_page->bitmap);
  781. if (is_fua)
  782. null_free_sector(nullb, sector, true);
  783. count += temp;
  784. sector += temp >> SECTOR_SHIFT;
  785. }
  786. return 0;
  787. }
  788. static int copy_from_nullb(struct nullb *nullb, struct page *dest,
  789. unsigned int off, sector_t sector, size_t n)
  790. {
  791. size_t temp, count = 0;
  792. unsigned int offset;
  793. struct nullb_page *t_page;
  794. void *dst, *src;
  795. while (count < n) {
  796. temp = min_t(size_t, nullb->dev->blocksize, n - count);
  797. offset = (sector & SECTOR_MASK) << SECTOR_SHIFT;
  798. t_page = null_lookup_page(nullb, sector, false,
  799. !null_cache_active(nullb));
  800. dst = kmap_atomic(dest);
  801. if (!t_page) {
  802. memset(dst + off + count, 0, temp);
  803. goto next;
  804. }
  805. src = kmap_atomic(t_page->page);
  806. memcpy(dst + off + count, src + offset, temp);
  807. kunmap_atomic(src);
  808. next:
  809. kunmap_atomic(dst);
  810. count += temp;
  811. sector += temp >> SECTOR_SHIFT;
  812. }
  813. return 0;
  814. }
  815. static void null_handle_discard(struct nullb *nullb, sector_t sector, size_t n)
  816. {
  817. size_t temp;
  818. spin_lock_irq(&nullb->lock);
  819. while (n > 0) {
  820. temp = min_t(size_t, n, nullb->dev->blocksize);
  821. null_free_sector(nullb, sector, false);
  822. if (null_cache_active(nullb))
  823. null_free_sector(nullb, sector, true);
  824. sector += temp >> SECTOR_SHIFT;
  825. n -= temp;
  826. }
  827. spin_unlock_irq(&nullb->lock);
  828. }
  829. static int null_handle_flush(struct nullb *nullb)
  830. {
  831. int err;
  832. if (!null_cache_active(nullb))
  833. return 0;
  834. spin_lock_irq(&nullb->lock);
  835. while (true) {
  836. err = null_make_cache_space(nullb,
  837. nullb->dev->cache_size * 1024 * 1024);
  838. if (err || nullb->dev->curr_cache == 0)
  839. break;
  840. }
  841. WARN_ON(!radix_tree_empty(&nullb->dev->cache));
  842. spin_unlock_irq(&nullb->lock);
  843. return err;
  844. }
  845. static int null_transfer(struct nullb *nullb, struct page *page,
  846. unsigned int len, unsigned int off, bool is_write, sector_t sector,
  847. bool is_fua)
  848. {
  849. int err = 0;
  850. if (!is_write) {
  851. err = copy_from_nullb(nullb, page, off, sector, len);
  852. flush_dcache_page(page);
  853. } else {
  854. flush_dcache_page(page);
  855. err = copy_to_nullb(nullb, page, off, sector, len, is_fua);
  856. }
  857. return err;
  858. }
  859. static int null_handle_rq(struct nullb_cmd *cmd)
  860. {
  861. struct request *rq = cmd->rq;
  862. struct nullb *nullb = cmd->nq->dev->nullb;
  863. int err;
  864. unsigned int len;
  865. sector_t sector;
  866. struct req_iterator iter;
  867. struct bio_vec bvec;
  868. sector = blk_rq_pos(rq);
  869. if (req_op(rq) == REQ_OP_DISCARD) {
  870. null_handle_discard(nullb, sector, blk_rq_bytes(rq));
  871. return 0;
  872. }
  873. spin_lock_irq(&nullb->lock);
  874. rq_for_each_segment(bvec, rq, iter) {
  875. len = bvec.bv_len;
  876. err = null_transfer(nullb, bvec.bv_page, len, bvec.bv_offset,
  877. op_is_write(req_op(rq)), sector,
  878. req_op(rq) & REQ_FUA);
  879. if (err) {
  880. spin_unlock_irq(&nullb->lock);
  881. return err;
  882. }
  883. sector += len >> SECTOR_SHIFT;
  884. }
  885. spin_unlock_irq(&nullb->lock);
  886. return 0;
  887. }
  888. static int null_handle_bio(struct nullb_cmd *cmd)
  889. {
  890. struct bio *bio = cmd->bio;
  891. struct nullb *nullb = cmd->nq->dev->nullb;
  892. int err;
  893. unsigned int len;
  894. sector_t sector;
  895. struct bio_vec bvec;
  896. struct bvec_iter iter;
  897. sector = bio->bi_iter.bi_sector;
  898. if (bio_op(bio) == REQ_OP_DISCARD) {
  899. null_handle_discard(nullb, sector,
  900. bio_sectors(bio) << SECTOR_SHIFT);
  901. return 0;
  902. }
  903. spin_lock_irq(&nullb->lock);
  904. bio_for_each_segment(bvec, bio, iter) {
  905. len = bvec.bv_len;
  906. err = null_transfer(nullb, bvec.bv_page, len, bvec.bv_offset,
  907. op_is_write(bio_op(bio)), sector,
  908. bio_op(bio) & REQ_FUA);
  909. if (err) {
  910. spin_unlock_irq(&nullb->lock);
  911. return err;
  912. }
  913. sector += len >> SECTOR_SHIFT;
  914. }
  915. spin_unlock_irq(&nullb->lock);
  916. return 0;
  917. }
  918. static void null_stop_queue(struct nullb *nullb)
  919. {
  920. struct request_queue *q = nullb->q;
  921. if (nullb->dev->queue_mode == NULL_Q_MQ)
  922. blk_mq_stop_hw_queues(q);
  923. }
  924. static void null_restart_queue_async(struct nullb *nullb)
  925. {
  926. struct request_queue *q = nullb->q;
  927. if (nullb->dev->queue_mode == NULL_Q_MQ)
  928. blk_mq_start_stopped_hw_queues(q, true);
  929. }
  930. static blk_status_t null_handle_cmd(struct nullb_cmd *cmd)
  931. {
  932. struct nullb_device *dev = cmd->nq->dev;
  933. struct nullb *nullb = dev->nullb;
  934. int err = 0;
  935. if (test_bit(NULLB_DEV_FL_THROTTLED, &dev->flags)) {
  936. struct request *rq = cmd->rq;
  937. if (!hrtimer_active(&nullb->bw_timer))
  938. hrtimer_restart(&nullb->bw_timer);
  939. if (atomic_long_sub_return(blk_rq_bytes(rq),
  940. &nullb->cur_bytes) < 0) {
  941. null_stop_queue(nullb);
  942. /* race with timer */
  943. if (atomic_long_read(&nullb->cur_bytes) > 0)
  944. null_restart_queue_async(nullb);
  945. /* requeue request */
  946. return BLK_STS_DEV_RESOURCE;
  947. }
  948. }
  949. if (nullb->dev->badblocks.shift != -1) {
  950. int bad_sectors;
  951. sector_t sector, size, first_bad;
  952. bool is_flush = true;
  953. if (dev->queue_mode == NULL_Q_BIO &&
  954. bio_op(cmd->bio) != REQ_OP_FLUSH) {
  955. is_flush = false;
  956. sector = cmd->bio->bi_iter.bi_sector;
  957. size = bio_sectors(cmd->bio);
  958. }
  959. if (dev->queue_mode != NULL_Q_BIO &&
  960. req_op(cmd->rq) != REQ_OP_FLUSH) {
  961. is_flush = false;
  962. sector = blk_rq_pos(cmd->rq);
  963. size = blk_rq_sectors(cmd->rq);
  964. }
  965. if (!is_flush && badblocks_check(&nullb->dev->badblocks, sector,
  966. size, &first_bad, &bad_sectors)) {
  967. cmd->error = BLK_STS_IOERR;
  968. goto out;
  969. }
  970. }
  971. if (dev->memory_backed) {
  972. if (dev->queue_mode == NULL_Q_BIO) {
  973. if (bio_op(cmd->bio) == REQ_OP_FLUSH)
  974. err = null_handle_flush(nullb);
  975. else
  976. err = null_handle_bio(cmd);
  977. } else {
  978. if (req_op(cmd->rq) == REQ_OP_FLUSH)
  979. err = null_handle_flush(nullb);
  980. else
  981. err = null_handle_rq(cmd);
  982. }
  983. }
  984. cmd->error = errno_to_blk_status(err);
  985. if (!cmd->error && dev->zoned) {
  986. sector_t sector;
  987. unsigned int nr_sectors;
  988. int op;
  989. if (dev->queue_mode == NULL_Q_BIO) {
  990. op = bio_op(cmd->bio);
  991. sector = cmd->bio->bi_iter.bi_sector;
  992. nr_sectors = cmd->bio->bi_iter.bi_size >> 9;
  993. } else {
  994. op = req_op(cmd->rq);
  995. sector = blk_rq_pos(cmd->rq);
  996. nr_sectors = blk_rq_sectors(cmd->rq);
  997. }
  998. if (op == REQ_OP_WRITE)
  999. null_zone_write(cmd, sector, nr_sectors);
  1000. else if (op == REQ_OP_ZONE_RESET)
  1001. null_zone_reset(cmd, sector);
  1002. }
  1003. out:
  1004. /* Complete IO by inline, softirq or timer */
  1005. switch (dev->irqmode) {
  1006. case NULL_IRQ_SOFTIRQ:
  1007. switch (dev->queue_mode) {
  1008. case NULL_Q_MQ:
  1009. blk_mq_complete_request(cmd->rq);
  1010. break;
  1011. case NULL_Q_BIO:
  1012. /*
  1013. * XXX: no proper submitting cpu information available.
  1014. */
  1015. end_cmd(cmd);
  1016. break;
  1017. }
  1018. break;
  1019. case NULL_IRQ_NONE:
  1020. end_cmd(cmd);
  1021. break;
  1022. case NULL_IRQ_TIMER:
  1023. null_cmd_end_timer(cmd);
  1024. break;
  1025. }
  1026. return BLK_STS_OK;
  1027. }
  1028. static enum hrtimer_restart nullb_bwtimer_fn(struct hrtimer *timer)
  1029. {
  1030. struct nullb *nullb = container_of(timer, struct nullb, bw_timer);
  1031. ktime_t timer_interval = ktime_set(0, TIMER_INTERVAL);
  1032. unsigned int mbps = nullb->dev->mbps;
  1033. if (atomic_long_read(&nullb->cur_bytes) == mb_per_tick(mbps))
  1034. return HRTIMER_NORESTART;
  1035. atomic_long_set(&nullb->cur_bytes, mb_per_tick(mbps));
  1036. null_restart_queue_async(nullb);
  1037. hrtimer_forward_now(&nullb->bw_timer, timer_interval);
  1038. return HRTIMER_RESTART;
  1039. }
  1040. static void nullb_setup_bwtimer(struct nullb *nullb)
  1041. {
  1042. ktime_t timer_interval = ktime_set(0, TIMER_INTERVAL);
  1043. hrtimer_init(&nullb->bw_timer, CLOCK_MONOTONIC, HRTIMER_MODE_REL);
  1044. nullb->bw_timer.function = nullb_bwtimer_fn;
  1045. atomic_long_set(&nullb->cur_bytes, mb_per_tick(nullb->dev->mbps));
  1046. hrtimer_start(&nullb->bw_timer, timer_interval, HRTIMER_MODE_REL);
  1047. }
  1048. static struct nullb_queue *nullb_to_queue(struct nullb *nullb)
  1049. {
  1050. int index = 0;
  1051. if (nullb->nr_queues != 1)
  1052. index = raw_smp_processor_id() / ((nr_cpu_ids + nullb->nr_queues - 1) / nullb->nr_queues);
  1053. return &nullb->queues[index];
  1054. }
  1055. static blk_qc_t null_queue_bio(struct request_queue *q, struct bio *bio)
  1056. {
  1057. struct nullb *nullb = q->queuedata;
  1058. struct nullb_queue *nq = nullb_to_queue(nullb);
  1059. struct nullb_cmd *cmd;
  1060. cmd = alloc_cmd(nq, 1);
  1061. cmd->bio = bio;
  1062. null_handle_cmd(cmd);
  1063. return BLK_QC_T_NONE;
  1064. }
  1065. static bool should_timeout_request(struct request *rq)
  1066. {
  1067. #ifdef CONFIG_BLK_DEV_NULL_BLK_FAULT_INJECTION
  1068. if (g_timeout_str[0])
  1069. return should_fail(&null_timeout_attr, 1);
  1070. #endif
  1071. return false;
  1072. }
  1073. static bool should_requeue_request(struct request *rq)
  1074. {
  1075. #ifdef CONFIG_BLK_DEV_NULL_BLK_FAULT_INJECTION
  1076. if (g_requeue_str[0])
  1077. return should_fail(&null_requeue_attr, 1);
  1078. #endif
  1079. return false;
  1080. }
  1081. static enum blk_eh_timer_return null_timeout_rq(struct request *rq, bool res)
  1082. {
  1083. pr_info("null: rq %p timed out\n", rq);
  1084. blk_mq_complete_request(rq);
  1085. return BLK_EH_DONE;
  1086. }
  1087. static blk_status_t null_queue_rq(struct blk_mq_hw_ctx *hctx,
  1088. const struct blk_mq_queue_data *bd)
  1089. {
  1090. struct nullb_cmd *cmd = blk_mq_rq_to_pdu(bd->rq);
  1091. struct nullb_queue *nq = hctx->driver_data;
  1092. might_sleep_if(hctx->flags & BLK_MQ_F_BLOCKING);
  1093. if (nq->dev->irqmode == NULL_IRQ_TIMER) {
  1094. hrtimer_init(&cmd->timer, CLOCK_MONOTONIC, HRTIMER_MODE_REL);
  1095. cmd->timer.function = null_cmd_timer_expired;
  1096. }
  1097. cmd->rq = bd->rq;
  1098. cmd->nq = nq;
  1099. blk_mq_start_request(bd->rq);
  1100. if (should_requeue_request(bd->rq)) {
  1101. /*
  1102. * Alternate between hitting the core BUSY path, and the
  1103. * driver driven requeue path
  1104. */
  1105. nq->requeue_selection++;
  1106. if (nq->requeue_selection & 1)
  1107. return BLK_STS_RESOURCE;
  1108. else {
  1109. blk_mq_requeue_request(bd->rq, true);
  1110. return BLK_STS_OK;
  1111. }
  1112. }
  1113. if (should_timeout_request(bd->rq))
  1114. return BLK_STS_OK;
  1115. return null_handle_cmd(cmd);
  1116. }
  1117. static const struct blk_mq_ops null_mq_ops = {
  1118. .queue_rq = null_queue_rq,
  1119. .complete = null_softirq_done_fn,
  1120. .timeout = null_timeout_rq,
  1121. };
  1122. static void cleanup_queue(struct nullb_queue *nq)
  1123. {
  1124. kfree(nq->tag_map);
  1125. kfree(nq->cmds);
  1126. }
  1127. static void cleanup_queues(struct nullb *nullb)
  1128. {
  1129. int i;
  1130. for (i = 0; i < nullb->nr_queues; i++)
  1131. cleanup_queue(&nullb->queues[i]);
  1132. kfree(nullb->queues);
  1133. }
  1134. static void null_del_dev(struct nullb *nullb)
  1135. {
  1136. struct nullb_device *dev = nullb->dev;
  1137. ida_simple_remove(&nullb_indexes, nullb->index);
  1138. list_del_init(&nullb->list);
  1139. del_gendisk(nullb->disk);
  1140. if (test_bit(NULLB_DEV_FL_THROTTLED, &nullb->dev->flags)) {
  1141. hrtimer_cancel(&nullb->bw_timer);
  1142. atomic_long_set(&nullb->cur_bytes, LONG_MAX);
  1143. null_restart_queue_async(nullb);
  1144. }
  1145. blk_cleanup_queue(nullb->q);
  1146. if (dev->queue_mode == NULL_Q_MQ &&
  1147. nullb->tag_set == &nullb->__tag_set)
  1148. blk_mq_free_tag_set(nullb->tag_set);
  1149. put_disk(nullb->disk);
  1150. cleanup_queues(nullb);
  1151. if (null_cache_active(nullb))
  1152. null_free_device_storage(nullb->dev, true);
  1153. kfree(nullb);
  1154. dev->nullb = NULL;
  1155. }
  1156. static void null_config_discard(struct nullb *nullb)
  1157. {
  1158. if (nullb->dev->discard == false)
  1159. return;
  1160. nullb->q->limits.discard_granularity = nullb->dev->blocksize;
  1161. nullb->q->limits.discard_alignment = nullb->dev->blocksize;
  1162. blk_queue_max_discard_sectors(nullb->q, UINT_MAX >> 9);
  1163. blk_queue_flag_set(QUEUE_FLAG_DISCARD, nullb->q);
  1164. }
  1165. static int null_open(struct block_device *bdev, fmode_t mode)
  1166. {
  1167. return 0;
  1168. }
  1169. static void null_release(struct gendisk *disk, fmode_t mode)
  1170. {
  1171. }
  1172. static const struct block_device_operations null_fops = {
  1173. .owner = THIS_MODULE,
  1174. .open = null_open,
  1175. .release = null_release,
  1176. .report_zones = null_zone_report,
  1177. };
  1178. static void null_init_queue(struct nullb *nullb, struct nullb_queue *nq)
  1179. {
  1180. BUG_ON(!nullb);
  1181. BUG_ON(!nq);
  1182. init_waitqueue_head(&nq->wait);
  1183. nq->queue_depth = nullb->queue_depth;
  1184. nq->dev = nullb->dev;
  1185. }
  1186. static void null_init_queues(struct nullb *nullb)
  1187. {
  1188. struct request_queue *q = nullb->q;
  1189. struct blk_mq_hw_ctx *hctx;
  1190. struct nullb_queue *nq;
  1191. int i;
  1192. queue_for_each_hw_ctx(q, hctx, i) {
  1193. if (!hctx->nr_ctx || !hctx->tags)
  1194. continue;
  1195. nq = &nullb->queues[i];
  1196. hctx->driver_data = nq;
  1197. null_init_queue(nullb, nq);
  1198. nullb->nr_queues++;
  1199. }
  1200. }
  1201. static int setup_commands(struct nullb_queue *nq)
  1202. {
  1203. struct nullb_cmd *cmd;
  1204. int i, tag_size;
  1205. nq->cmds = kcalloc(nq->queue_depth, sizeof(*cmd), GFP_KERNEL);
  1206. if (!nq->cmds)
  1207. return -ENOMEM;
  1208. tag_size = ALIGN(nq->queue_depth, BITS_PER_LONG) / BITS_PER_LONG;
  1209. nq->tag_map = kcalloc(tag_size, sizeof(unsigned long), GFP_KERNEL);
  1210. if (!nq->tag_map) {
  1211. kfree(nq->cmds);
  1212. return -ENOMEM;
  1213. }
  1214. for (i = 0; i < nq->queue_depth; i++) {
  1215. cmd = &nq->cmds[i];
  1216. INIT_LIST_HEAD(&cmd->list);
  1217. cmd->ll_list.next = NULL;
  1218. cmd->tag = -1U;
  1219. }
  1220. return 0;
  1221. }
  1222. static int setup_queues(struct nullb *nullb)
  1223. {
  1224. nullb->queues = kcalloc(nullb->dev->submit_queues,
  1225. sizeof(struct nullb_queue),
  1226. GFP_KERNEL);
  1227. if (!nullb->queues)
  1228. return -ENOMEM;
  1229. nullb->nr_queues = 0;
  1230. nullb->queue_depth = nullb->dev->hw_queue_depth;
  1231. return 0;
  1232. }
  1233. static int init_driver_queues(struct nullb *nullb)
  1234. {
  1235. struct nullb_queue *nq;
  1236. int i, ret = 0;
  1237. for (i = 0; i < nullb->dev->submit_queues; i++) {
  1238. nq = &nullb->queues[i];
  1239. null_init_queue(nullb, nq);
  1240. ret = setup_commands(nq);
  1241. if (ret)
  1242. return ret;
  1243. nullb->nr_queues++;
  1244. }
  1245. return 0;
  1246. }
  1247. static int null_gendisk_register(struct nullb *nullb)
  1248. {
  1249. struct gendisk *disk;
  1250. sector_t size;
  1251. disk = nullb->disk = alloc_disk_node(1, nullb->dev->home_node);
  1252. if (!disk)
  1253. return -ENOMEM;
  1254. size = (sector_t)nullb->dev->size * 1024 * 1024ULL;
  1255. set_capacity(disk, size >> 9);
  1256. disk->flags |= GENHD_FL_EXT_DEVT | GENHD_FL_SUPPRESS_PARTITION_INFO;
  1257. disk->major = null_major;
  1258. disk->first_minor = nullb->index;
  1259. disk->fops = &null_fops;
  1260. disk->private_data = nullb;
  1261. disk->queue = nullb->q;
  1262. strncpy(disk->disk_name, nullb->disk_name, DISK_NAME_LEN);
  1263. if (nullb->dev->zoned) {
  1264. int ret = blk_revalidate_disk_zones(disk);
  1265. if (ret != 0)
  1266. return ret;
  1267. }
  1268. add_disk(disk);
  1269. return 0;
  1270. }
  1271. static int null_init_tag_set(struct nullb *nullb, struct blk_mq_tag_set *set)
  1272. {
  1273. set->ops = &null_mq_ops;
  1274. set->nr_hw_queues = nullb ? nullb->dev->submit_queues :
  1275. g_submit_queues;
  1276. set->queue_depth = nullb ? nullb->dev->hw_queue_depth :
  1277. g_hw_queue_depth;
  1278. set->numa_node = nullb ? nullb->dev->home_node : g_home_node;
  1279. set->cmd_size = sizeof(struct nullb_cmd);
  1280. set->flags = BLK_MQ_F_SHOULD_MERGE;
  1281. if (g_no_sched)
  1282. set->flags |= BLK_MQ_F_NO_SCHED;
  1283. set->driver_data = NULL;
  1284. if ((nullb && nullb->dev->blocking) || g_blocking)
  1285. set->flags |= BLK_MQ_F_BLOCKING;
  1286. return blk_mq_alloc_tag_set(set);
  1287. }
  1288. static void null_validate_conf(struct nullb_device *dev)
  1289. {
  1290. dev->blocksize = round_down(dev->blocksize, 512);
  1291. dev->blocksize = clamp_t(unsigned int, dev->blocksize, 512, 4096);
  1292. if (dev->queue_mode == NULL_Q_MQ && dev->use_per_node_hctx) {
  1293. if (dev->submit_queues != nr_online_nodes)
  1294. dev->submit_queues = nr_online_nodes;
  1295. } else if (dev->submit_queues > nr_cpu_ids)
  1296. dev->submit_queues = nr_cpu_ids;
  1297. else if (dev->submit_queues == 0)
  1298. dev->submit_queues = 1;
  1299. dev->queue_mode = min_t(unsigned int, dev->queue_mode, NULL_Q_MQ);
  1300. dev->irqmode = min_t(unsigned int, dev->irqmode, NULL_IRQ_TIMER);
  1301. /* Do memory allocation, so set blocking */
  1302. if (dev->memory_backed)
  1303. dev->blocking = true;
  1304. else /* cache is meaningless */
  1305. dev->cache_size = 0;
  1306. dev->cache_size = min_t(unsigned long, ULONG_MAX / 1024 / 1024,
  1307. dev->cache_size);
  1308. dev->mbps = min_t(unsigned int, 1024 * 40, dev->mbps);
  1309. /* can not stop a queue */
  1310. if (dev->queue_mode == NULL_Q_BIO)
  1311. dev->mbps = 0;
  1312. }
  1313. #ifdef CONFIG_BLK_DEV_NULL_BLK_FAULT_INJECTION
  1314. static bool __null_setup_fault(struct fault_attr *attr, char *str)
  1315. {
  1316. if (!str[0])
  1317. return true;
  1318. if (!setup_fault_attr(attr, str))
  1319. return false;
  1320. attr->verbose = 0;
  1321. return true;
  1322. }
  1323. #endif
  1324. static bool null_setup_fault(void)
  1325. {
  1326. #ifdef CONFIG_BLK_DEV_NULL_BLK_FAULT_INJECTION
  1327. if (!__null_setup_fault(&null_timeout_attr, g_timeout_str))
  1328. return false;
  1329. if (!__null_setup_fault(&null_requeue_attr, g_requeue_str))
  1330. return false;
  1331. #endif
  1332. return true;
  1333. }
  1334. static int null_add_dev(struct nullb_device *dev)
  1335. {
  1336. struct nullb *nullb;
  1337. int rv;
  1338. null_validate_conf(dev);
  1339. nullb = kzalloc_node(sizeof(*nullb), GFP_KERNEL, dev->home_node);
  1340. if (!nullb) {
  1341. rv = -ENOMEM;
  1342. goto out;
  1343. }
  1344. nullb->dev = dev;
  1345. dev->nullb = nullb;
  1346. spin_lock_init(&nullb->lock);
  1347. rv = setup_queues(nullb);
  1348. if (rv)
  1349. goto out_free_nullb;
  1350. if (dev->queue_mode == NULL_Q_MQ) {
  1351. if (shared_tags) {
  1352. nullb->tag_set = &tag_set;
  1353. rv = 0;
  1354. } else {
  1355. nullb->tag_set = &nullb->__tag_set;
  1356. rv = null_init_tag_set(nullb, nullb->tag_set);
  1357. }
  1358. if (rv)
  1359. goto out_cleanup_queues;
  1360. if (!null_setup_fault())
  1361. goto out_cleanup_queues;
  1362. nullb->tag_set->timeout = 5 * HZ;
  1363. nullb->q = blk_mq_init_queue(nullb->tag_set);
  1364. if (IS_ERR(nullb->q)) {
  1365. rv = -ENOMEM;
  1366. goto out_cleanup_tags;
  1367. }
  1368. null_init_queues(nullb);
  1369. } else if (dev->queue_mode == NULL_Q_BIO) {
  1370. nullb->q = blk_alloc_queue_node(GFP_KERNEL, dev->home_node,
  1371. NULL);
  1372. if (!nullb->q) {
  1373. rv = -ENOMEM;
  1374. goto out_cleanup_queues;
  1375. }
  1376. blk_queue_make_request(nullb->q, null_queue_bio);
  1377. rv = init_driver_queues(nullb);
  1378. if (rv)
  1379. goto out_cleanup_blk_queue;
  1380. }
  1381. if (dev->mbps) {
  1382. set_bit(NULLB_DEV_FL_THROTTLED, &dev->flags);
  1383. nullb_setup_bwtimer(nullb);
  1384. }
  1385. if (dev->cache_size > 0) {
  1386. set_bit(NULLB_DEV_FL_CACHE, &nullb->dev->flags);
  1387. blk_queue_write_cache(nullb->q, true, true);
  1388. blk_queue_flush_queueable(nullb->q, true);
  1389. }
  1390. if (dev->zoned) {
  1391. rv = null_zone_init(dev);
  1392. if (rv)
  1393. goto out_cleanup_blk_queue;
  1394. blk_queue_chunk_sectors(nullb->q, dev->zone_size_sects);
  1395. nullb->q->limits.zoned = BLK_ZONED_HM;
  1396. }
  1397. nullb->q->queuedata = nullb;
  1398. blk_queue_flag_set(QUEUE_FLAG_NONROT, nullb->q);
  1399. blk_queue_flag_clear(QUEUE_FLAG_ADD_RANDOM, nullb->q);
  1400. mutex_lock(&lock);
  1401. nullb->index = ida_simple_get(&nullb_indexes, 0, 0, GFP_KERNEL);
  1402. dev->index = nullb->index;
  1403. mutex_unlock(&lock);
  1404. blk_queue_logical_block_size(nullb->q, dev->blocksize);
  1405. blk_queue_physical_block_size(nullb->q, dev->blocksize);
  1406. null_config_discard(nullb);
  1407. sprintf(nullb->disk_name, "nullb%d", nullb->index);
  1408. rv = null_gendisk_register(nullb);
  1409. if (rv)
  1410. goto out_cleanup_zone;
  1411. mutex_lock(&lock);
  1412. list_add_tail(&nullb->list, &nullb_list);
  1413. mutex_unlock(&lock);
  1414. return 0;
  1415. out_cleanup_zone:
  1416. if (dev->zoned)
  1417. null_zone_exit(dev);
  1418. out_cleanup_blk_queue:
  1419. blk_cleanup_queue(nullb->q);
  1420. out_cleanup_tags:
  1421. if (dev->queue_mode == NULL_Q_MQ && nullb->tag_set == &nullb->__tag_set)
  1422. blk_mq_free_tag_set(nullb->tag_set);
  1423. out_cleanup_queues:
  1424. cleanup_queues(nullb);
  1425. out_free_nullb:
  1426. kfree(nullb);
  1427. out:
  1428. return rv;
  1429. }
  1430. static int __init null_init(void)
  1431. {
  1432. int ret = 0;
  1433. unsigned int i;
  1434. struct nullb *nullb;
  1435. struct nullb_device *dev;
  1436. if (g_bs > PAGE_SIZE) {
  1437. pr_warn("null_blk: invalid block size\n");
  1438. pr_warn("null_blk: defaults block size to %lu\n", PAGE_SIZE);
  1439. g_bs = PAGE_SIZE;
  1440. }
  1441. if (!is_power_of_2(g_zone_size)) {
  1442. pr_err("null_blk: zone_size must be power-of-two\n");
  1443. return -EINVAL;
  1444. }
  1445. if (g_queue_mode == NULL_Q_RQ) {
  1446. pr_err("null_blk: legacy IO path no longer available\n");
  1447. return -EINVAL;
  1448. }
  1449. if (g_queue_mode == NULL_Q_MQ && g_use_per_node_hctx) {
  1450. if (g_submit_queues != nr_online_nodes) {
  1451. pr_warn("null_blk: submit_queues param is set to %u.\n",
  1452. nr_online_nodes);
  1453. g_submit_queues = nr_online_nodes;
  1454. }
  1455. } else if (g_submit_queues > nr_cpu_ids)
  1456. g_submit_queues = nr_cpu_ids;
  1457. else if (g_submit_queues <= 0)
  1458. g_submit_queues = 1;
  1459. if (g_queue_mode == NULL_Q_MQ && shared_tags) {
  1460. ret = null_init_tag_set(NULL, &tag_set);
  1461. if (ret)
  1462. return ret;
  1463. }
  1464. config_group_init(&nullb_subsys.su_group);
  1465. mutex_init(&nullb_subsys.su_mutex);
  1466. ret = configfs_register_subsystem(&nullb_subsys);
  1467. if (ret)
  1468. goto err_tagset;
  1469. mutex_init(&lock);
  1470. null_major = register_blkdev(0, "nullb");
  1471. if (null_major < 0) {
  1472. ret = null_major;
  1473. goto err_conf;
  1474. }
  1475. for (i = 0; i < nr_devices; i++) {
  1476. dev = null_alloc_dev();
  1477. if (!dev) {
  1478. ret = -ENOMEM;
  1479. goto err_dev;
  1480. }
  1481. ret = null_add_dev(dev);
  1482. if (ret) {
  1483. null_free_dev(dev);
  1484. goto err_dev;
  1485. }
  1486. }
  1487. pr_info("null: module loaded\n");
  1488. return 0;
  1489. err_dev:
  1490. while (!list_empty(&nullb_list)) {
  1491. nullb = list_entry(nullb_list.next, struct nullb, list);
  1492. dev = nullb->dev;
  1493. null_del_dev(nullb);
  1494. null_free_dev(dev);
  1495. }
  1496. unregister_blkdev(null_major, "nullb");
  1497. err_conf:
  1498. configfs_unregister_subsystem(&nullb_subsys);
  1499. err_tagset:
  1500. if (g_queue_mode == NULL_Q_MQ && shared_tags)
  1501. blk_mq_free_tag_set(&tag_set);
  1502. return ret;
  1503. }
  1504. static void __exit null_exit(void)
  1505. {
  1506. struct nullb *nullb;
  1507. configfs_unregister_subsystem(&nullb_subsys);
  1508. unregister_blkdev(null_major, "nullb");
  1509. mutex_lock(&lock);
  1510. while (!list_empty(&nullb_list)) {
  1511. struct nullb_device *dev;
  1512. nullb = list_entry(nullb_list.next, struct nullb, list);
  1513. dev = nullb->dev;
  1514. null_del_dev(nullb);
  1515. null_free_dev(dev);
  1516. }
  1517. mutex_unlock(&lock);
  1518. if (g_queue_mode == NULL_Q_MQ && shared_tags)
  1519. blk_mq_free_tag_set(&tag_set);
  1520. }
  1521. module_init(null_init);
  1522. module_exit(null_exit);
  1523. MODULE_AUTHOR("Jens Axboe <axboe@kernel.dk>");
  1524. MODULE_LICENSE("GPL");