dm-delay.c 8.4 KB

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  1. /*
  2. * Copyright (C) 2005-2007 Red Hat GmbH
  3. *
  4. * A target that delays reads and/or writes and can send
  5. * them to different devices.
  6. *
  7. * This file is released under the GPL.
  8. */
  9. #include <linux/module.h>
  10. #include <linux/init.h>
  11. #include <linux/blkdev.h>
  12. #include <linux/bio.h>
  13. #include <linux/slab.h>
  14. #include <linux/device-mapper.h>
  15. #define DM_MSG_PREFIX "delay"
  16. struct delay_c {
  17. struct timer_list delay_timer;
  18. struct mutex timer_lock;
  19. struct work_struct flush_expired_bios;
  20. struct list_head delayed_bios;
  21. atomic_t may_delay;
  22. mempool_t *delayed_pool;
  23. struct dm_dev *dev_read;
  24. sector_t start_read;
  25. unsigned read_delay;
  26. unsigned reads;
  27. struct dm_dev *dev_write;
  28. sector_t start_write;
  29. unsigned write_delay;
  30. unsigned writes;
  31. };
  32. struct dm_delay_info {
  33. struct delay_c *context;
  34. struct list_head list;
  35. struct bio *bio;
  36. unsigned long expires;
  37. };
  38. static DEFINE_MUTEX(delayed_bios_lock);
  39. static struct workqueue_struct *kdelayd_wq;
  40. static struct kmem_cache *delayed_cache;
  41. static void handle_delayed_timer(unsigned long data)
  42. {
  43. struct delay_c *dc = (struct delay_c *)data;
  44. queue_work(kdelayd_wq, &dc->flush_expired_bios);
  45. }
  46. static void queue_timeout(struct delay_c *dc, unsigned long expires)
  47. {
  48. mutex_lock(&dc->timer_lock);
  49. if (!timer_pending(&dc->delay_timer) || expires < dc->delay_timer.expires)
  50. mod_timer(&dc->delay_timer, expires);
  51. mutex_unlock(&dc->timer_lock);
  52. }
  53. static void flush_bios(struct bio *bio)
  54. {
  55. struct bio *n;
  56. while (bio) {
  57. n = bio->bi_next;
  58. bio->bi_next = NULL;
  59. generic_make_request(bio);
  60. bio = n;
  61. }
  62. }
  63. static struct bio *flush_delayed_bios(struct delay_c *dc, int flush_all)
  64. {
  65. struct dm_delay_info *delayed, *next;
  66. unsigned long next_expires = 0;
  67. int start_timer = 0;
  68. struct bio_list flush_bios = { };
  69. mutex_lock(&delayed_bios_lock);
  70. list_for_each_entry_safe(delayed, next, &dc->delayed_bios, list) {
  71. if (flush_all || time_after_eq(jiffies, delayed->expires)) {
  72. list_del(&delayed->list);
  73. bio_list_add(&flush_bios, delayed->bio);
  74. if ((bio_data_dir(delayed->bio) == WRITE))
  75. delayed->context->writes--;
  76. else
  77. delayed->context->reads--;
  78. mempool_free(delayed, dc->delayed_pool);
  79. continue;
  80. }
  81. if (!start_timer) {
  82. start_timer = 1;
  83. next_expires = delayed->expires;
  84. } else
  85. next_expires = min(next_expires, delayed->expires);
  86. }
  87. mutex_unlock(&delayed_bios_lock);
  88. if (start_timer)
  89. queue_timeout(dc, next_expires);
  90. return bio_list_get(&flush_bios);
  91. }
  92. static void flush_expired_bios(struct work_struct *work)
  93. {
  94. struct delay_c *dc;
  95. dc = container_of(work, struct delay_c, flush_expired_bios);
  96. flush_bios(flush_delayed_bios(dc, 0));
  97. }
  98. /*
  99. * Mapping parameters:
  100. * <device> <offset> <delay> [<write_device> <write_offset> <write_delay>]
  101. *
  102. * With separate write parameters, the first set is only used for reads.
  103. * Delays are specified in milliseconds.
  104. */
  105. static int delay_ctr(struct dm_target *ti, unsigned int argc, char **argv)
  106. {
  107. struct delay_c *dc;
  108. unsigned long long tmpll;
  109. if (argc != 3 && argc != 6) {
  110. ti->error = "requires exactly 3 or 6 arguments";
  111. return -EINVAL;
  112. }
  113. dc = kmalloc(sizeof(*dc), GFP_KERNEL);
  114. if (!dc) {
  115. ti->error = "Cannot allocate context";
  116. return -ENOMEM;
  117. }
  118. dc->reads = dc->writes = 0;
  119. if (sscanf(argv[1], "%llu", &tmpll) != 1) {
  120. ti->error = "Invalid device sector";
  121. goto bad;
  122. }
  123. dc->start_read = tmpll;
  124. if (sscanf(argv[2], "%u", &dc->read_delay) != 1) {
  125. ti->error = "Invalid delay";
  126. goto bad;
  127. }
  128. if (dm_get_device(ti, argv[0], dc->start_read, ti->len,
  129. dm_table_get_mode(ti->table), &dc->dev_read)) {
  130. ti->error = "Device lookup failed";
  131. goto bad;
  132. }
  133. dc->dev_write = NULL;
  134. if (argc == 3)
  135. goto out;
  136. if (sscanf(argv[4], "%llu", &tmpll) != 1) {
  137. ti->error = "Invalid write device sector";
  138. goto bad_dev_read;
  139. }
  140. dc->start_write = tmpll;
  141. if (sscanf(argv[5], "%u", &dc->write_delay) != 1) {
  142. ti->error = "Invalid write delay";
  143. goto bad_dev_read;
  144. }
  145. if (dm_get_device(ti, argv[3], dc->start_write, ti->len,
  146. dm_table_get_mode(ti->table), &dc->dev_write)) {
  147. ti->error = "Write device lookup failed";
  148. goto bad_dev_read;
  149. }
  150. out:
  151. dc->delayed_pool = mempool_create_slab_pool(128, delayed_cache);
  152. if (!dc->delayed_pool) {
  153. DMERR("Couldn't create delayed bio pool.");
  154. goto bad_dev_write;
  155. }
  156. setup_timer(&dc->delay_timer, handle_delayed_timer, (unsigned long)dc);
  157. INIT_WORK(&dc->flush_expired_bios, flush_expired_bios);
  158. INIT_LIST_HEAD(&dc->delayed_bios);
  159. mutex_init(&dc->timer_lock);
  160. atomic_set(&dc->may_delay, 1);
  161. ti->num_flush_requests = 1;
  162. ti->private = dc;
  163. return 0;
  164. bad_dev_write:
  165. if (dc->dev_write)
  166. dm_put_device(ti, dc->dev_write);
  167. bad_dev_read:
  168. dm_put_device(ti, dc->dev_read);
  169. bad:
  170. kfree(dc);
  171. return -EINVAL;
  172. }
  173. static void delay_dtr(struct dm_target *ti)
  174. {
  175. struct delay_c *dc = ti->private;
  176. flush_workqueue(kdelayd_wq);
  177. dm_put_device(ti, dc->dev_read);
  178. if (dc->dev_write)
  179. dm_put_device(ti, dc->dev_write);
  180. mempool_destroy(dc->delayed_pool);
  181. kfree(dc);
  182. }
  183. static int delay_bio(struct delay_c *dc, int delay, struct bio *bio)
  184. {
  185. struct dm_delay_info *delayed;
  186. unsigned long expires = 0;
  187. if (!delay || !atomic_read(&dc->may_delay))
  188. return 1;
  189. delayed = mempool_alloc(dc->delayed_pool, GFP_NOIO);
  190. delayed->context = dc;
  191. delayed->bio = bio;
  192. delayed->expires = expires = jiffies + (delay * HZ / 1000);
  193. mutex_lock(&delayed_bios_lock);
  194. if (bio_data_dir(bio) == WRITE)
  195. dc->writes++;
  196. else
  197. dc->reads++;
  198. list_add_tail(&delayed->list, &dc->delayed_bios);
  199. mutex_unlock(&delayed_bios_lock);
  200. queue_timeout(dc, expires);
  201. return 0;
  202. }
  203. static void delay_presuspend(struct dm_target *ti)
  204. {
  205. struct delay_c *dc = ti->private;
  206. atomic_set(&dc->may_delay, 0);
  207. del_timer_sync(&dc->delay_timer);
  208. flush_bios(flush_delayed_bios(dc, 1));
  209. }
  210. static void delay_resume(struct dm_target *ti)
  211. {
  212. struct delay_c *dc = ti->private;
  213. atomic_set(&dc->may_delay, 1);
  214. }
  215. static int delay_map(struct dm_target *ti, struct bio *bio,
  216. union map_info *map_context)
  217. {
  218. struct delay_c *dc = ti->private;
  219. if ((bio_data_dir(bio) == WRITE) && (dc->dev_write)) {
  220. bio->bi_bdev = dc->dev_write->bdev;
  221. if (bio_sectors(bio))
  222. bio->bi_sector = dc->start_write +
  223. (bio->bi_sector - ti->begin);
  224. return delay_bio(dc, dc->write_delay, bio);
  225. }
  226. bio->bi_bdev = dc->dev_read->bdev;
  227. bio->bi_sector = dc->start_read +
  228. (bio->bi_sector - ti->begin);
  229. return delay_bio(dc, dc->read_delay, bio);
  230. }
  231. static int delay_status(struct dm_target *ti, status_type_t type,
  232. char *result, unsigned maxlen)
  233. {
  234. struct delay_c *dc = ti->private;
  235. int sz = 0;
  236. switch (type) {
  237. case STATUSTYPE_INFO:
  238. DMEMIT("%u %u", dc->reads, dc->writes);
  239. break;
  240. case STATUSTYPE_TABLE:
  241. DMEMIT("%s %llu %u", dc->dev_read->name,
  242. (unsigned long long) dc->start_read,
  243. dc->read_delay);
  244. if (dc->dev_write)
  245. DMEMIT(" %s %llu %u", dc->dev_write->name,
  246. (unsigned long long) dc->start_write,
  247. dc->write_delay);
  248. break;
  249. }
  250. return 0;
  251. }
  252. static int delay_iterate_devices(struct dm_target *ti,
  253. iterate_devices_callout_fn fn, void *data)
  254. {
  255. struct delay_c *dc = ti->private;
  256. int ret = 0;
  257. ret = fn(ti, dc->dev_read, dc->start_read, data);
  258. if (ret)
  259. goto out;
  260. if (dc->dev_write)
  261. ret = fn(ti, dc->dev_write, dc->start_write, data);
  262. out:
  263. return ret;
  264. }
  265. static struct target_type delay_target = {
  266. .name = "delay",
  267. .version = {1, 1, 0},
  268. .module = THIS_MODULE,
  269. .ctr = delay_ctr,
  270. .dtr = delay_dtr,
  271. .map = delay_map,
  272. .presuspend = delay_presuspend,
  273. .resume = delay_resume,
  274. .status = delay_status,
  275. .iterate_devices = delay_iterate_devices,
  276. };
  277. static int __init dm_delay_init(void)
  278. {
  279. int r = -ENOMEM;
  280. kdelayd_wq = create_workqueue("kdelayd");
  281. if (!kdelayd_wq) {
  282. DMERR("Couldn't start kdelayd");
  283. goto bad_queue;
  284. }
  285. delayed_cache = KMEM_CACHE(dm_delay_info, 0);
  286. if (!delayed_cache) {
  287. DMERR("Couldn't create delayed bio cache.");
  288. goto bad_memcache;
  289. }
  290. r = dm_register_target(&delay_target);
  291. if (r < 0) {
  292. DMERR("register failed %d", r);
  293. goto bad_register;
  294. }
  295. return 0;
  296. bad_register:
  297. kmem_cache_destroy(delayed_cache);
  298. bad_memcache:
  299. destroy_workqueue(kdelayd_wq);
  300. bad_queue:
  301. return r;
  302. }
  303. static void __exit dm_delay_exit(void)
  304. {
  305. dm_unregister_target(&delay_target);
  306. kmem_cache_destroy(delayed_cache);
  307. destroy_workqueue(kdelayd_wq);
  308. }
  309. /* Module hooks */
  310. module_init(dm_delay_init);
  311. module_exit(dm_delay_exit);
  312. MODULE_DESCRIPTION(DM_NAME " delay target");
  313. MODULE_AUTHOR("Heinz Mauelshagen <mauelshagen@redhat.com>");
  314. MODULE_LICENSE("GPL");