drbd_main.c 93 KB

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  1. /*
  2. drbd.c
  3. This file is part of DRBD by Philipp Reisner and Lars Ellenberg.
  4. Copyright (C) 2001-2008, LINBIT Information Technologies GmbH.
  5. Copyright (C) 1999-2008, Philipp Reisner <philipp.reisner@linbit.com>.
  6. Copyright (C) 2002-2008, Lars Ellenberg <lars.ellenberg@linbit.com>.
  7. Thanks to Carter Burden, Bart Grantham and Gennadiy Nerubayev
  8. from Logicworks, Inc. for making SDP replication support possible.
  9. drbd is free software; you can redistribute it and/or modify
  10. it under the terms of the GNU General Public License as published by
  11. the Free Software Foundation; either version 2, or (at your option)
  12. any later version.
  13. drbd is distributed in the hope that it will be useful,
  14. but WITHOUT ANY WARRANTY; without even the implied warranty of
  15. MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  16. GNU General Public License for more details.
  17. You should have received a copy of the GNU General Public License
  18. along with drbd; see the file COPYING. If not, write to
  19. the Free Software Foundation, 675 Mass Ave, Cambridge, MA 02139, USA.
  20. */
  21. #include <linux/module.h>
  22. #include <linux/drbd.h>
  23. #include <asm/uaccess.h>
  24. #include <asm/types.h>
  25. #include <net/sock.h>
  26. #include <linux/ctype.h>
  27. #include <linux/mutex.h>
  28. #include <linux/fs.h>
  29. #include <linux/file.h>
  30. #include <linux/proc_fs.h>
  31. #include <linux/init.h>
  32. #include <linux/mm.h>
  33. #include <linux/memcontrol.h>
  34. #include <linux/mm_inline.h>
  35. #include <linux/slab.h>
  36. #include <linux/random.h>
  37. #include <linux/reboot.h>
  38. #include <linux/notifier.h>
  39. #include <linux/kthread.h>
  40. #define __KERNEL_SYSCALLS__
  41. #include <linux/unistd.h>
  42. #include <linux/vmalloc.h>
  43. #include <linux/drbd_limits.h>
  44. #include "drbd_int.h"
  45. #include "drbd_req.h" /* only for _req_mod in tl_release and tl_clear */
  46. #include "drbd_vli.h"
  47. static DEFINE_MUTEX(drbd_main_mutex);
  48. int drbdd_init(struct drbd_thread *);
  49. int drbd_worker(struct drbd_thread *);
  50. int drbd_asender(struct drbd_thread *);
  51. int drbd_init(void);
  52. static int drbd_open(struct block_device *bdev, fmode_t mode);
  53. static int drbd_release(struct gendisk *gd, fmode_t mode);
  54. static int w_md_sync(struct drbd_work *w, int unused);
  55. static void md_sync_timer_fn(unsigned long data);
  56. static int w_bitmap_io(struct drbd_work *w, int unused);
  57. static int w_go_diskless(struct drbd_work *w, int unused);
  58. MODULE_AUTHOR("Philipp Reisner <phil@linbit.com>, "
  59. "Lars Ellenberg <lars@linbit.com>");
  60. MODULE_DESCRIPTION("drbd - Distributed Replicated Block Device v" REL_VERSION);
  61. MODULE_VERSION(REL_VERSION);
  62. MODULE_LICENSE("GPL");
  63. MODULE_PARM_DESC(minor_count, "Approximate number of drbd devices ("
  64. __stringify(DRBD_MINOR_COUNT_MIN) "-" __stringify(DRBD_MINOR_COUNT_MAX) ")");
  65. MODULE_ALIAS_BLOCKDEV_MAJOR(DRBD_MAJOR);
  66. #include <linux/moduleparam.h>
  67. /* allow_open_on_secondary */
  68. MODULE_PARM_DESC(allow_oos, "DONT USE!");
  69. /* thanks to these macros, if compiled into the kernel (not-module),
  70. * this becomes the boot parameter drbd.minor_count */
  71. module_param(minor_count, uint, 0444);
  72. module_param(disable_sendpage, bool, 0644);
  73. module_param(allow_oos, bool, 0);
  74. module_param(proc_details, int, 0644);
  75. #ifdef CONFIG_DRBD_FAULT_INJECTION
  76. int enable_faults;
  77. int fault_rate;
  78. static int fault_count;
  79. int fault_devs;
  80. /* bitmap of enabled faults */
  81. module_param(enable_faults, int, 0664);
  82. /* fault rate % value - applies to all enabled faults */
  83. module_param(fault_rate, int, 0664);
  84. /* count of faults inserted */
  85. module_param(fault_count, int, 0664);
  86. /* bitmap of devices to insert faults on */
  87. module_param(fault_devs, int, 0644);
  88. #endif
  89. /* module parameter, defined */
  90. unsigned int minor_count = DRBD_MINOR_COUNT_DEF;
  91. int disable_sendpage;
  92. int allow_oos;
  93. int proc_details; /* Detail level in proc drbd*/
  94. /* Module parameter for setting the user mode helper program
  95. * to run. Default is /sbin/drbdadm */
  96. char usermode_helper[80] = "/sbin/drbdadm";
  97. module_param_string(usermode_helper, usermode_helper, sizeof(usermode_helper), 0644);
  98. /* in 2.6.x, our device mapping and config info contains our virtual gendisks
  99. * as member "struct gendisk *vdisk;"
  100. */
  101. struct idr minors;
  102. struct list_head drbd_tconns; /* list of struct drbd_tconn */
  103. struct kmem_cache *drbd_request_cache;
  104. struct kmem_cache *drbd_ee_cache; /* peer requests */
  105. struct kmem_cache *drbd_bm_ext_cache; /* bitmap extents */
  106. struct kmem_cache *drbd_al_ext_cache; /* activity log extents */
  107. mempool_t *drbd_request_mempool;
  108. mempool_t *drbd_ee_mempool;
  109. mempool_t *drbd_md_io_page_pool;
  110. struct bio_set *drbd_md_io_bio_set;
  111. /* I do not use a standard mempool, because:
  112. 1) I want to hand out the pre-allocated objects first.
  113. 2) I want to be able to interrupt sleeping allocation with a signal.
  114. Note: This is a single linked list, the next pointer is the private
  115. member of struct page.
  116. */
  117. struct page *drbd_pp_pool;
  118. spinlock_t drbd_pp_lock;
  119. int drbd_pp_vacant;
  120. wait_queue_head_t drbd_pp_wait;
  121. DEFINE_RATELIMIT_STATE(drbd_ratelimit_state, 5 * HZ, 5);
  122. static const struct block_device_operations drbd_ops = {
  123. .owner = THIS_MODULE,
  124. .open = drbd_open,
  125. .release = drbd_release,
  126. };
  127. static void bio_destructor_drbd(struct bio *bio)
  128. {
  129. bio_free(bio, drbd_md_io_bio_set);
  130. }
  131. struct bio *bio_alloc_drbd(gfp_t gfp_mask)
  132. {
  133. struct bio *bio;
  134. if (!drbd_md_io_bio_set)
  135. return bio_alloc(gfp_mask, 1);
  136. bio = bio_alloc_bioset(gfp_mask, 1, drbd_md_io_bio_set);
  137. if (!bio)
  138. return NULL;
  139. bio->bi_destructor = bio_destructor_drbd;
  140. return bio;
  141. }
  142. #ifdef __CHECKER__
  143. /* When checking with sparse, and this is an inline function, sparse will
  144. give tons of false positives. When this is a real functions sparse works.
  145. */
  146. int _get_ldev_if_state(struct drbd_conf *mdev, enum drbd_disk_state mins)
  147. {
  148. int io_allowed;
  149. atomic_inc(&mdev->local_cnt);
  150. io_allowed = (mdev->state.disk >= mins);
  151. if (!io_allowed) {
  152. if (atomic_dec_and_test(&mdev->local_cnt))
  153. wake_up(&mdev->misc_wait);
  154. }
  155. return io_allowed;
  156. }
  157. #endif
  158. /**
  159. * tl_release() - mark as BARRIER_ACKED all requests in the corresponding transfer log epoch
  160. * @tconn: DRBD connection.
  161. * @barrier_nr: Expected identifier of the DRBD write barrier packet.
  162. * @set_size: Expected number of requests before that barrier.
  163. *
  164. * In case the passed barrier_nr or set_size does not match the oldest
  165. * epoch of not yet barrier-acked requests, this function will cause a
  166. * termination of the connection.
  167. */
  168. void tl_release(struct drbd_tconn *tconn, unsigned int barrier_nr,
  169. unsigned int set_size)
  170. {
  171. struct drbd_request *r;
  172. struct drbd_request *req = NULL;
  173. int expect_epoch = 0;
  174. int expect_size = 0;
  175. spin_lock_irq(&tconn->req_lock);
  176. /* find latest not yet barrier-acked write request,
  177. * count writes in its epoch. */
  178. list_for_each_entry(r, &tconn->transfer_log, tl_requests) {
  179. const unsigned long s = r->rq_state;
  180. if (!req) {
  181. if (!(s & RQ_WRITE))
  182. continue;
  183. if (!(s & RQ_NET_MASK))
  184. continue;
  185. if (s & RQ_NET_DONE)
  186. continue;
  187. req = r;
  188. expect_epoch = req->epoch;
  189. expect_size ++;
  190. } else {
  191. if (r->epoch != expect_epoch)
  192. break;
  193. if (!(s & RQ_WRITE))
  194. continue;
  195. /* if (s & RQ_DONE): not expected */
  196. /* if (!(s & RQ_NET_MASK)): not expected */
  197. expect_size++;
  198. }
  199. }
  200. /* first some paranoia code */
  201. if (req == NULL) {
  202. conn_err(tconn, "BAD! BarrierAck #%u received, but no epoch in tl!?\n",
  203. barrier_nr);
  204. goto bail;
  205. }
  206. if (expect_epoch != barrier_nr) {
  207. conn_err(tconn, "BAD! BarrierAck #%u received, expected #%u!\n",
  208. barrier_nr, expect_epoch);
  209. goto bail;
  210. }
  211. if (expect_size != set_size) {
  212. conn_err(tconn, "BAD! BarrierAck #%u received with n_writes=%u, expected n_writes=%u!\n",
  213. barrier_nr, set_size, expect_size);
  214. goto bail;
  215. }
  216. /* Clean up list of requests processed during current epoch */
  217. list_for_each_entry_safe(req, r, &tconn->transfer_log, tl_requests) {
  218. if (req->epoch != expect_epoch)
  219. break;
  220. _req_mod(req, BARRIER_ACKED);
  221. }
  222. spin_unlock_irq(&tconn->req_lock);
  223. return;
  224. bail:
  225. spin_unlock_irq(&tconn->req_lock);
  226. conn_request_state(tconn, NS(conn, C_PROTOCOL_ERROR), CS_HARD);
  227. }
  228. /**
  229. * _tl_restart() - Walks the transfer log, and applies an action to all requests
  230. * @mdev: DRBD device.
  231. * @what: The action/event to perform with all request objects
  232. *
  233. * @what might be one of CONNECTION_LOST_WHILE_PENDING, RESEND, FAIL_FROZEN_DISK_IO,
  234. * RESTART_FROZEN_DISK_IO.
  235. */
  236. /* must hold resource->req_lock */
  237. void _tl_restart(struct drbd_tconn *tconn, enum drbd_req_event what)
  238. {
  239. struct drbd_request *req, *r;
  240. list_for_each_entry_safe(req, r, &tconn->transfer_log, tl_requests)
  241. _req_mod(req, what);
  242. }
  243. void tl_restart(struct drbd_tconn *tconn, enum drbd_req_event what)
  244. {
  245. spin_lock_irq(&tconn->req_lock);
  246. _tl_restart(tconn, what);
  247. spin_unlock_irq(&tconn->req_lock);
  248. }
  249. /**
  250. * tl_clear() - Clears all requests and &struct drbd_tl_epoch objects out of the TL
  251. * @mdev: DRBD device.
  252. *
  253. * This is called after the connection to the peer was lost. The storage covered
  254. * by the requests on the transfer gets marked as our of sync. Called from the
  255. * receiver thread and the worker thread.
  256. */
  257. void tl_clear(struct drbd_tconn *tconn)
  258. {
  259. tl_restart(tconn, CONNECTION_LOST_WHILE_PENDING);
  260. }
  261. /**
  262. * tl_abort_disk_io() - Abort disk I/O for all requests for a certain mdev in the TL
  263. * @mdev: DRBD device.
  264. */
  265. void tl_abort_disk_io(struct drbd_conf *mdev)
  266. {
  267. struct drbd_tconn *tconn = mdev->tconn;
  268. struct drbd_request *req, *r;
  269. spin_lock_irq(&tconn->req_lock);
  270. list_for_each_entry_safe(req, r, &tconn->transfer_log, tl_requests) {
  271. if (!(req->rq_state & RQ_LOCAL_PENDING))
  272. continue;
  273. if (req->w.mdev != mdev)
  274. continue;
  275. _req_mod(req, ABORT_DISK_IO);
  276. }
  277. spin_unlock_irq(&tconn->req_lock);
  278. }
  279. static int drbd_thread_setup(void *arg)
  280. {
  281. struct drbd_thread *thi = (struct drbd_thread *) arg;
  282. struct drbd_tconn *tconn = thi->tconn;
  283. unsigned long flags;
  284. int retval;
  285. snprintf(current->comm, sizeof(current->comm), "drbd_%c_%s",
  286. thi->name[0], thi->tconn->name);
  287. restart:
  288. retval = thi->function(thi);
  289. spin_lock_irqsave(&thi->t_lock, flags);
  290. /* if the receiver has been "EXITING", the last thing it did
  291. * was set the conn state to "StandAlone",
  292. * if now a re-connect request comes in, conn state goes C_UNCONNECTED,
  293. * and receiver thread will be "started".
  294. * drbd_thread_start needs to set "RESTARTING" in that case.
  295. * t_state check and assignment needs to be within the same spinlock,
  296. * so either thread_start sees EXITING, and can remap to RESTARTING,
  297. * or thread_start see NONE, and can proceed as normal.
  298. */
  299. if (thi->t_state == RESTARTING) {
  300. conn_info(tconn, "Restarting %s thread\n", thi->name);
  301. thi->t_state = RUNNING;
  302. spin_unlock_irqrestore(&thi->t_lock, flags);
  303. goto restart;
  304. }
  305. thi->task = NULL;
  306. thi->t_state = NONE;
  307. smp_mb();
  308. complete_all(&thi->stop);
  309. spin_unlock_irqrestore(&thi->t_lock, flags);
  310. conn_info(tconn, "Terminating %s\n", current->comm);
  311. /* Release mod reference taken when thread was started */
  312. kref_put(&tconn->kref, &conn_destroy);
  313. module_put(THIS_MODULE);
  314. return retval;
  315. }
  316. static void drbd_thread_init(struct drbd_tconn *tconn, struct drbd_thread *thi,
  317. int (*func) (struct drbd_thread *), char *name)
  318. {
  319. spin_lock_init(&thi->t_lock);
  320. thi->task = NULL;
  321. thi->t_state = NONE;
  322. thi->function = func;
  323. thi->tconn = tconn;
  324. strncpy(thi->name, name, ARRAY_SIZE(thi->name));
  325. }
  326. int drbd_thread_start(struct drbd_thread *thi)
  327. {
  328. struct drbd_tconn *tconn = thi->tconn;
  329. struct task_struct *nt;
  330. unsigned long flags;
  331. /* is used from state engine doing drbd_thread_stop_nowait,
  332. * while holding the req lock irqsave */
  333. spin_lock_irqsave(&thi->t_lock, flags);
  334. switch (thi->t_state) {
  335. case NONE:
  336. conn_info(tconn, "Starting %s thread (from %s [%d])\n",
  337. thi->name, current->comm, current->pid);
  338. /* Get ref on module for thread - this is released when thread exits */
  339. if (!try_module_get(THIS_MODULE)) {
  340. conn_err(tconn, "Failed to get module reference in drbd_thread_start\n");
  341. spin_unlock_irqrestore(&thi->t_lock, flags);
  342. return false;
  343. }
  344. kref_get(&thi->tconn->kref);
  345. init_completion(&thi->stop);
  346. thi->reset_cpu_mask = 1;
  347. thi->t_state = RUNNING;
  348. spin_unlock_irqrestore(&thi->t_lock, flags);
  349. flush_signals(current); /* otherw. may get -ERESTARTNOINTR */
  350. nt = kthread_create(drbd_thread_setup, (void *) thi,
  351. "drbd_%c_%s", thi->name[0], thi->tconn->name);
  352. if (IS_ERR(nt)) {
  353. conn_err(tconn, "Couldn't start thread\n");
  354. kref_put(&tconn->kref, &conn_destroy);
  355. module_put(THIS_MODULE);
  356. return false;
  357. }
  358. spin_lock_irqsave(&thi->t_lock, flags);
  359. thi->task = nt;
  360. thi->t_state = RUNNING;
  361. spin_unlock_irqrestore(&thi->t_lock, flags);
  362. wake_up_process(nt);
  363. break;
  364. case EXITING:
  365. thi->t_state = RESTARTING;
  366. conn_info(tconn, "Restarting %s thread (from %s [%d])\n",
  367. thi->name, current->comm, current->pid);
  368. /* fall through */
  369. case RUNNING:
  370. case RESTARTING:
  371. default:
  372. spin_unlock_irqrestore(&thi->t_lock, flags);
  373. break;
  374. }
  375. return true;
  376. }
  377. void _drbd_thread_stop(struct drbd_thread *thi, int restart, int wait)
  378. {
  379. unsigned long flags;
  380. enum drbd_thread_state ns = restart ? RESTARTING : EXITING;
  381. /* may be called from state engine, holding the req lock irqsave */
  382. spin_lock_irqsave(&thi->t_lock, flags);
  383. if (thi->t_state == NONE) {
  384. spin_unlock_irqrestore(&thi->t_lock, flags);
  385. if (restart)
  386. drbd_thread_start(thi);
  387. return;
  388. }
  389. if (thi->t_state != ns) {
  390. if (thi->task == NULL) {
  391. spin_unlock_irqrestore(&thi->t_lock, flags);
  392. return;
  393. }
  394. thi->t_state = ns;
  395. smp_mb();
  396. init_completion(&thi->stop);
  397. if (thi->task != current)
  398. force_sig(DRBD_SIGKILL, thi->task);
  399. }
  400. spin_unlock_irqrestore(&thi->t_lock, flags);
  401. if (wait)
  402. wait_for_completion(&thi->stop);
  403. }
  404. static struct drbd_thread *drbd_task_to_thread(struct drbd_tconn *tconn, struct task_struct *task)
  405. {
  406. struct drbd_thread *thi =
  407. task == tconn->receiver.task ? &tconn->receiver :
  408. task == tconn->asender.task ? &tconn->asender :
  409. task == tconn->worker.task ? &tconn->worker : NULL;
  410. return thi;
  411. }
  412. char *drbd_task_to_thread_name(struct drbd_tconn *tconn, struct task_struct *task)
  413. {
  414. struct drbd_thread *thi = drbd_task_to_thread(tconn, task);
  415. return thi ? thi->name : task->comm;
  416. }
  417. int conn_lowest_minor(struct drbd_tconn *tconn)
  418. {
  419. struct drbd_conf *mdev;
  420. int vnr = 0, m;
  421. rcu_read_lock();
  422. mdev = idr_get_next(&tconn->volumes, &vnr);
  423. m = mdev ? mdev_to_minor(mdev) : -1;
  424. rcu_read_unlock();
  425. return m;
  426. }
  427. #ifdef CONFIG_SMP
  428. /**
  429. * drbd_calc_cpu_mask() - Generate CPU masks, spread over all CPUs
  430. * @mdev: DRBD device.
  431. *
  432. * Forces all threads of a device onto the same CPU. This is beneficial for
  433. * DRBD's performance. May be overwritten by user's configuration.
  434. */
  435. void drbd_calc_cpu_mask(struct drbd_tconn *tconn)
  436. {
  437. int ord, cpu;
  438. /* user override. */
  439. if (cpumask_weight(tconn->cpu_mask))
  440. return;
  441. ord = conn_lowest_minor(tconn) % cpumask_weight(cpu_online_mask);
  442. for_each_online_cpu(cpu) {
  443. if (ord-- == 0) {
  444. cpumask_set_cpu(cpu, tconn->cpu_mask);
  445. return;
  446. }
  447. }
  448. /* should not be reached */
  449. cpumask_setall(tconn->cpu_mask);
  450. }
  451. /**
  452. * drbd_thread_current_set_cpu() - modifies the cpu mask of the _current_ thread
  453. * @mdev: DRBD device.
  454. * @thi: drbd_thread object
  455. *
  456. * call in the "main loop" of _all_ threads, no need for any mutex, current won't die
  457. * prematurely.
  458. */
  459. void drbd_thread_current_set_cpu(struct drbd_thread *thi)
  460. {
  461. struct task_struct *p = current;
  462. if (!thi->reset_cpu_mask)
  463. return;
  464. thi->reset_cpu_mask = 0;
  465. set_cpus_allowed_ptr(p, thi->tconn->cpu_mask);
  466. }
  467. #endif
  468. /**
  469. * drbd_header_size - size of a packet header
  470. *
  471. * The header size is a multiple of 8, so any payload following the header is
  472. * word aligned on 64-bit architectures. (The bitmap send and receive code
  473. * relies on this.)
  474. */
  475. unsigned int drbd_header_size(struct drbd_tconn *tconn)
  476. {
  477. if (tconn->agreed_pro_version >= 100) {
  478. BUILD_BUG_ON(!IS_ALIGNED(sizeof(struct p_header100), 8));
  479. return sizeof(struct p_header100);
  480. } else {
  481. BUILD_BUG_ON(sizeof(struct p_header80) !=
  482. sizeof(struct p_header95));
  483. BUILD_BUG_ON(!IS_ALIGNED(sizeof(struct p_header80), 8));
  484. return sizeof(struct p_header80);
  485. }
  486. }
  487. static unsigned int prepare_header80(struct p_header80 *h, enum drbd_packet cmd, int size)
  488. {
  489. h->magic = cpu_to_be32(DRBD_MAGIC);
  490. h->command = cpu_to_be16(cmd);
  491. h->length = cpu_to_be16(size);
  492. return sizeof(struct p_header80);
  493. }
  494. static unsigned int prepare_header95(struct p_header95 *h, enum drbd_packet cmd, int size)
  495. {
  496. h->magic = cpu_to_be16(DRBD_MAGIC_BIG);
  497. h->command = cpu_to_be16(cmd);
  498. h->length = cpu_to_be32(size);
  499. return sizeof(struct p_header95);
  500. }
  501. static unsigned int prepare_header100(struct p_header100 *h, enum drbd_packet cmd,
  502. int size, int vnr)
  503. {
  504. h->magic = cpu_to_be32(DRBD_MAGIC_100);
  505. h->volume = cpu_to_be16(vnr);
  506. h->command = cpu_to_be16(cmd);
  507. h->length = cpu_to_be32(size);
  508. h->pad = 0;
  509. return sizeof(struct p_header100);
  510. }
  511. static unsigned int prepare_header(struct drbd_tconn *tconn, int vnr,
  512. void *buffer, enum drbd_packet cmd, int size)
  513. {
  514. if (tconn->agreed_pro_version >= 100)
  515. return prepare_header100(buffer, cmd, size, vnr);
  516. else if (tconn->agreed_pro_version >= 95 &&
  517. size > DRBD_MAX_SIZE_H80_PACKET)
  518. return prepare_header95(buffer, cmd, size);
  519. else
  520. return prepare_header80(buffer, cmd, size);
  521. }
  522. static void *__conn_prepare_command(struct drbd_tconn *tconn,
  523. struct drbd_socket *sock)
  524. {
  525. if (!sock->socket)
  526. return NULL;
  527. return sock->sbuf + drbd_header_size(tconn);
  528. }
  529. void *conn_prepare_command(struct drbd_tconn *tconn, struct drbd_socket *sock)
  530. {
  531. void *p;
  532. mutex_lock(&sock->mutex);
  533. p = __conn_prepare_command(tconn, sock);
  534. if (!p)
  535. mutex_unlock(&sock->mutex);
  536. return p;
  537. }
  538. void *drbd_prepare_command(struct drbd_conf *mdev, struct drbd_socket *sock)
  539. {
  540. return conn_prepare_command(mdev->tconn, sock);
  541. }
  542. static int __send_command(struct drbd_tconn *tconn, int vnr,
  543. struct drbd_socket *sock, enum drbd_packet cmd,
  544. unsigned int header_size, void *data,
  545. unsigned int size)
  546. {
  547. int msg_flags;
  548. int err;
  549. /*
  550. * Called with @data == NULL and the size of the data blocks in @size
  551. * for commands that send data blocks. For those commands, omit the
  552. * MSG_MORE flag: this will increase the likelihood that data blocks
  553. * which are page aligned on the sender will end up page aligned on the
  554. * receiver.
  555. */
  556. msg_flags = data ? MSG_MORE : 0;
  557. header_size += prepare_header(tconn, vnr, sock->sbuf, cmd,
  558. header_size + size);
  559. err = drbd_send_all(tconn, sock->socket, sock->sbuf, header_size,
  560. msg_flags);
  561. if (data && !err)
  562. err = drbd_send_all(tconn, sock->socket, data, size, 0);
  563. return err;
  564. }
  565. static int __conn_send_command(struct drbd_tconn *tconn, struct drbd_socket *sock,
  566. enum drbd_packet cmd, unsigned int header_size,
  567. void *data, unsigned int size)
  568. {
  569. return __send_command(tconn, 0, sock, cmd, header_size, data, size);
  570. }
  571. int conn_send_command(struct drbd_tconn *tconn, struct drbd_socket *sock,
  572. enum drbd_packet cmd, unsigned int header_size,
  573. void *data, unsigned int size)
  574. {
  575. int err;
  576. err = __conn_send_command(tconn, sock, cmd, header_size, data, size);
  577. mutex_unlock(&sock->mutex);
  578. return err;
  579. }
  580. int drbd_send_command(struct drbd_conf *mdev, struct drbd_socket *sock,
  581. enum drbd_packet cmd, unsigned int header_size,
  582. void *data, unsigned int size)
  583. {
  584. int err;
  585. err = __send_command(mdev->tconn, mdev->vnr, sock, cmd, header_size,
  586. data, size);
  587. mutex_unlock(&sock->mutex);
  588. return err;
  589. }
  590. int drbd_send_ping(struct drbd_tconn *tconn)
  591. {
  592. struct drbd_socket *sock;
  593. sock = &tconn->meta;
  594. if (!conn_prepare_command(tconn, sock))
  595. return -EIO;
  596. return conn_send_command(tconn, sock, P_PING, 0, NULL, 0);
  597. }
  598. int drbd_send_ping_ack(struct drbd_tconn *tconn)
  599. {
  600. struct drbd_socket *sock;
  601. sock = &tconn->meta;
  602. if (!conn_prepare_command(tconn, sock))
  603. return -EIO;
  604. return conn_send_command(tconn, sock, P_PING_ACK, 0, NULL, 0);
  605. }
  606. int drbd_send_sync_param(struct drbd_conf *mdev)
  607. {
  608. struct drbd_socket *sock;
  609. struct p_rs_param_95 *p;
  610. int size;
  611. const int apv = mdev->tconn->agreed_pro_version;
  612. enum drbd_packet cmd;
  613. struct net_conf *nc;
  614. struct disk_conf *dc;
  615. sock = &mdev->tconn->data;
  616. p = drbd_prepare_command(mdev, sock);
  617. if (!p)
  618. return -EIO;
  619. rcu_read_lock();
  620. nc = rcu_dereference(mdev->tconn->net_conf);
  621. size = apv <= 87 ? sizeof(struct p_rs_param)
  622. : apv == 88 ? sizeof(struct p_rs_param)
  623. + strlen(nc->verify_alg) + 1
  624. : apv <= 94 ? sizeof(struct p_rs_param_89)
  625. : /* apv >= 95 */ sizeof(struct p_rs_param_95);
  626. cmd = apv >= 89 ? P_SYNC_PARAM89 : P_SYNC_PARAM;
  627. /* initialize verify_alg and csums_alg */
  628. memset(p->verify_alg, 0, 2 * SHARED_SECRET_MAX);
  629. if (get_ldev(mdev)) {
  630. dc = rcu_dereference(mdev->ldev->disk_conf);
  631. p->resync_rate = cpu_to_be32(dc->resync_rate);
  632. p->c_plan_ahead = cpu_to_be32(dc->c_plan_ahead);
  633. p->c_delay_target = cpu_to_be32(dc->c_delay_target);
  634. p->c_fill_target = cpu_to_be32(dc->c_fill_target);
  635. p->c_max_rate = cpu_to_be32(dc->c_max_rate);
  636. put_ldev(mdev);
  637. } else {
  638. p->resync_rate = cpu_to_be32(DRBD_RESYNC_RATE_DEF);
  639. p->c_plan_ahead = cpu_to_be32(DRBD_C_PLAN_AHEAD_DEF);
  640. p->c_delay_target = cpu_to_be32(DRBD_C_DELAY_TARGET_DEF);
  641. p->c_fill_target = cpu_to_be32(DRBD_C_FILL_TARGET_DEF);
  642. p->c_max_rate = cpu_to_be32(DRBD_C_MAX_RATE_DEF);
  643. }
  644. if (apv >= 88)
  645. strcpy(p->verify_alg, nc->verify_alg);
  646. if (apv >= 89)
  647. strcpy(p->csums_alg, nc->csums_alg);
  648. rcu_read_unlock();
  649. return drbd_send_command(mdev, sock, cmd, size, NULL, 0);
  650. }
  651. int __drbd_send_protocol(struct drbd_tconn *tconn, enum drbd_packet cmd)
  652. {
  653. struct drbd_socket *sock;
  654. struct p_protocol *p;
  655. struct net_conf *nc;
  656. int size, cf;
  657. sock = &tconn->data;
  658. p = __conn_prepare_command(tconn, sock);
  659. if (!p)
  660. return -EIO;
  661. rcu_read_lock();
  662. nc = rcu_dereference(tconn->net_conf);
  663. if (nc->tentative && tconn->agreed_pro_version < 92) {
  664. rcu_read_unlock();
  665. mutex_unlock(&sock->mutex);
  666. conn_err(tconn, "--dry-run is not supported by peer");
  667. return -EOPNOTSUPP;
  668. }
  669. size = sizeof(*p);
  670. if (tconn->agreed_pro_version >= 87)
  671. size += strlen(nc->integrity_alg) + 1;
  672. p->protocol = cpu_to_be32(nc->wire_protocol);
  673. p->after_sb_0p = cpu_to_be32(nc->after_sb_0p);
  674. p->after_sb_1p = cpu_to_be32(nc->after_sb_1p);
  675. p->after_sb_2p = cpu_to_be32(nc->after_sb_2p);
  676. p->two_primaries = cpu_to_be32(nc->two_primaries);
  677. cf = 0;
  678. if (nc->discard_my_data)
  679. cf |= CF_DISCARD_MY_DATA;
  680. if (nc->tentative)
  681. cf |= CF_DRY_RUN;
  682. p->conn_flags = cpu_to_be32(cf);
  683. if (tconn->agreed_pro_version >= 87)
  684. strcpy(p->integrity_alg, nc->integrity_alg);
  685. rcu_read_unlock();
  686. return __conn_send_command(tconn, sock, cmd, size, NULL, 0);
  687. }
  688. int drbd_send_protocol(struct drbd_tconn *tconn)
  689. {
  690. int err;
  691. mutex_lock(&tconn->data.mutex);
  692. err = __drbd_send_protocol(tconn, P_PROTOCOL);
  693. mutex_unlock(&tconn->data.mutex);
  694. return err;
  695. }
  696. int _drbd_send_uuids(struct drbd_conf *mdev, u64 uuid_flags)
  697. {
  698. struct drbd_socket *sock;
  699. struct p_uuids *p;
  700. int i;
  701. if (!get_ldev_if_state(mdev, D_NEGOTIATING))
  702. return 0;
  703. sock = &mdev->tconn->data;
  704. p = drbd_prepare_command(mdev, sock);
  705. if (!p) {
  706. put_ldev(mdev);
  707. return -EIO;
  708. }
  709. for (i = UI_CURRENT; i < UI_SIZE; i++)
  710. p->uuid[i] = mdev->ldev ? cpu_to_be64(mdev->ldev->md.uuid[i]) : 0;
  711. mdev->comm_bm_set = drbd_bm_total_weight(mdev);
  712. p->uuid[UI_SIZE] = cpu_to_be64(mdev->comm_bm_set);
  713. rcu_read_lock();
  714. uuid_flags |= rcu_dereference(mdev->tconn->net_conf)->discard_my_data ? 1 : 0;
  715. rcu_read_unlock();
  716. uuid_flags |= test_bit(CRASHED_PRIMARY, &mdev->flags) ? 2 : 0;
  717. uuid_flags |= mdev->new_state_tmp.disk == D_INCONSISTENT ? 4 : 0;
  718. p->uuid[UI_FLAGS] = cpu_to_be64(uuid_flags);
  719. put_ldev(mdev);
  720. return drbd_send_command(mdev, sock, P_UUIDS, sizeof(*p), NULL, 0);
  721. }
  722. int drbd_send_uuids(struct drbd_conf *mdev)
  723. {
  724. return _drbd_send_uuids(mdev, 0);
  725. }
  726. int drbd_send_uuids_skip_initial_sync(struct drbd_conf *mdev)
  727. {
  728. return _drbd_send_uuids(mdev, 8);
  729. }
  730. void drbd_print_uuids(struct drbd_conf *mdev, const char *text)
  731. {
  732. if (get_ldev_if_state(mdev, D_NEGOTIATING)) {
  733. u64 *uuid = mdev->ldev->md.uuid;
  734. dev_info(DEV, "%s %016llX:%016llX:%016llX:%016llX\n",
  735. text,
  736. (unsigned long long)uuid[UI_CURRENT],
  737. (unsigned long long)uuid[UI_BITMAP],
  738. (unsigned long long)uuid[UI_HISTORY_START],
  739. (unsigned long long)uuid[UI_HISTORY_END]);
  740. put_ldev(mdev);
  741. } else {
  742. dev_info(DEV, "%s effective data uuid: %016llX\n",
  743. text,
  744. (unsigned long long)mdev->ed_uuid);
  745. }
  746. }
  747. void drbd_gen_and_send_sync_uuid(struct drbd_conf *mdev)
  748. {
  749. struct drbd_socket *sock;
  750. struct p_rs_uuid *p;
  751. u64 uuid;
  752. D_ASSERT(mdev->state.disk == D_UP_TO_DATE);
  753. uuid = mdev->ldev->md.uuid[UI_BITMAP];
  754. if (uuid && uuid != UUID_JUST_CREATED)
  755. uuid = uuid + UUID_NEW_BM_OFFSET;
  756. else
  757. get_random_bytes(&uuid, sizeof(u64));
  758. drbd_uuid_set(mdev, UI_BITMAP, uuid);
  759. drbd_print_uuids(mdev, "updated sync UUID");
  760. drbd_md_sync(mdev);
  761. sock = &mdev->tconn->data;
  762. p = drbd_prepare_command(mdev, sock);
  763. if (p) {
  764. p->uuid = cpu_to_be64(uuid);
  765. drbd_send_command(mdev, sock, P_SYNC_UUID, sizeof(*p), NULL, 0);
  766. }
  767. }
  768. int drbd_send_sizes(struct drbd_conf *mdev, int trigger_reply, enum dds_flags flags)
  769. {
  770. struct drbd_socket *sock;
  771. struct p_sizes *p;
  772. sector_t d_size, u_size;
  773. int q_order_type, max_bio_size;
  774. if (get_ldev_if_state(mdev, D_NEGOTIATING)) {
  775. D_ASSERT(mdev->ldev->backing_bdev);
  776. d_size = drbd_get_max_capacity(mdev->ldev);
  777. rcu_read_lock();
  778. u_size = rcu_dereference(mdev->ldev->disk_conf)->disk_size;
  779. rcu_read_unlock();
  780. q_order_type = drbd_queue_order_type(mdev);
  781. max_bio_size = queue_max_hw_sectors(mdev->ldev->backing_bdev->bd_disk->queue) << 9;
  782. max_bio_size = min_t(int, max_bio_size, DRBD_MAX_BIO_SIZE);
  783. put_ldev(mdev);
  784. } else {
  785. d_size = 0;
  786. u_size = 0;
  787. q_order_type = QUEUE_ORDERED_NONE;
  788. max_bio_size = DRBD_MAX_BIO_SIZE; /* ... multiple BIOs per peer_request */
  789. }
  790. sock = &mdev->tconn->data;
  791. p = drbd_prepare_command(mdev, sock);
  792. if (!p)
  793. return -EIO;
  794. if (mdev->tconn->agreed_pro_version <= 94)
  795. max_bio_size = min_t(int, max_bio_size, DRBD_MAX_SIZE_H80_PACKET);
  796. else if (mdev->tconn->agreed_pro_version < 100)
  797. max_bio_size = min_t(int, max_bio_size, DRBD_MAX_BIO_SIZE_P95);
  798. p->d_size = cpu_to_be64(d_size);
  799. p->u_size = cpu_to_be64(u_size);
  800. p->c_size = cpu_to_be64(trigger_reply ? 0 : drbd_get_capacity(mdev->this_bdev));
  801. p->max_bio_size = cpu_to_be32(max_bio_size);
  802. p->queue_order_type = cpu_to_be16(q_order_type);
  803. p->dds_flags = cpu_to_be16(flags);
  804. return drbd_send_command(mdev, sock, P_SIZES, sizeof(*p), NULL, 0);
  805. }
  806. /**
  807. * drbd_send_current_state() - Sends the drbd state to the peer
  808. * @mdev: DRBD device.
  809. */
  810. int drbd_send_current_state(struct drbd_conf *mdev)
  811. {
  812. struct drbd_socket *sock;
  813. struct p_state *p;
  814. sock = &mdev->tconn->data;
  815. p = drbd_prepare_command(mdev, sock);
  816. if (!p)
  817. return -EIO;
  818. p->state = cpu_to_be32(mdev->state.i); /* Within the send mutex */
  819. return drbd_send_command(mdev, sock, P_STATE, sizeof(*p), NULL, 0);
  820. }
  821. /**
  822. * drbd_send_state() - After a state change, sends the new state to the peer
  823. * @mdev: DRBD device.
  824. * @state: the state to send, not necessarily the current state.
  825. *
  826. * Each state change queues an "after_state_ch" work, which will eventually
  827. * send the resulting new state to the peer. If more state changes happen
  828. * between queuing and processing of the after_state_ch work, we still
  829. * want to send each intermediary state in the order it occurred.
  830. */
  831. int drbd_send_state(struct drbd_conf *mdev, union drbd_state state)
  832. {
  833. struct drbd_socket *sock;
  834. struct p_state *p;
  835. sock = &mdev->tconn->data;
  836. p = drbd_prepare_command(mdev, sock);
  837. if (!p)
  838. return -EIO;
  839. p->state = cpu_to_be32(state.i); /* Within the send mutex */
  840. return drbd_send_command(mdev, sock, P_STATE, sizeof(*p), NULL, 0);
  841. }
  842. int drbd_send_state_req(struct drbd_conf *mdev, union drbd_state mask, union drbd_state val)
  843. {
  844. struct drbd_socket *sock;
  845. struct p_req_state *p;
  846. sock = &mdev->tconn->data;
  847. p = drbd_prepare_command(mdev, sock);
  848. if (!p)
  849. return -EIO;
  850. p->mask = cpu_to_be32(mask.i);
  851. p->val = cpu_to_be32(val.i);
  852. return drbd_send_command(mdev, sock, P_STATE_CHG_REQ, sizeof(*p), NULL, 0);
  853. }
  854. int conn_send_state_req(struct drbd_tconn *tconn, union drbd_state mask, union drbd_state val)
  855. {
  856. enum drbd_packet cmd;
  857. struct drbd_socket *sock;
  858. struct p_req_state *p;
  859. cmd = tconn->agreed_pro_version < 100 ? P_STATE_CHG_REQ : P_CONN_ST_CHG_REQ;
  860. sock = &tconn->data;
  861. p = conn_prepare_command(tconn, sock);
  862. if (!p)
  863. return -EIO;
  864. p->mask = cpu_to_be32(mask.i);
  865. p->val = cpu_to_be32(val.i);
  866. return conn_send_command(tconn, sock, cmd, sizeof(*p), NULL, 0);
  867. }
  868. void drbd_send_sr_reply(struct drbd_conf *mdev, enum drbd_state_rv retcode)
  869. {
  870. struct drbd_socket *sock;
  871. struct p_req_state_reply *p;
  872. sock = &mdev->tconn->meta;
  873. p = drbd_prepare_command(mdev, sock);
  874. if (p) {
  875. p->retcode = cpu_to_be32(retcode);
  876. drbd_send_command(mdev, sock, P_STATE_CHG_REPLY, sizeof(*p), NULL, 0);
  877. }
  878. }
  879. void conn_send_sr_reply(struct drbd_tconn *tconn, enum drbd_state_rv retcode)
  880. {
  881. struct drbd_socket *sock;
  882. struct p_req_state_reply *p;
  883. enum drbd_packet cmd = tconn->agreed_pro_version < 100 ? P_STATE_CHG_REPLY : P_CONN_ST_CHG_REPLY;
  884. sock = &tconn->meta;
  885. p = conn_prepare_command(tconn, sock);
  886. if (p) {
  887. p->retcode = cpu_to_be32(retcode);
  888. conn_send_command(tconn, sock, cmd, sizeof(*p), NULL, 0);
  889. }
  890. }
  891. static void dcbp_set_code(struct p_compressed_bm *p, enum drbd_bitmap_code code)
  892. {
  893. BUG_ON(code & ~0xf);
  894. p->encoding = (p->encoding & ~0xf) | code;
  895. }
  896. static void dcbp_set_start(struct p_compressed_bm *p, int set)
  897. {
  898. p->encoding = (p->encoding & ~0x80) | (set ? 0x80 : 0);
  899. }
  900. static void dcbp_set_pad_bits(struct p_compressed_bm *p, int n)
  901. {
  902. BUG_ON(n & ~0x7);
  903. p->encoding = (p->encoding & (~0x7 << 4)) | (n << 4);
  904. }
  905. int fill_bitmap_rle_bits(struct drbd_conf *mdev,
  906. struct p_compressed_bm *p,
  907. unsigned int size,
  908. struct bm_xfer_ctx *c)
  909. {
  910. struct bitstream bs;
  911. unsigned long plain_bits;
  912. unsigned long tmp;
  913. unsigned long rl;
  914. unsigned len;
  915. unsigned toggle;
  916. int bits, use_rle;
  917. /* may we use this feature? */
  918. rcu_read_lock();
  919. use_rle = rcu_dereference(mdev->tconn->net_conf)->use_rle;
  920. rcu_read_unlock();
  921. if (!use_rle || mdev->tconn->agreed_pro_version < 90)
  922. return 0;
  923. if (c->bit_offset >= c->bm_bits)
  924. return 0; /* nothing to do. */
  925. /* use at most thus many bytes */
  926. bitstream_init(&bs, p->code, size, 0);
  927. memset(p->code, 0, size);
  928. /* plain bits covered in this code string */
  929. plain_bits = 0;
  930. /* p->encoding & 0x80 stores whether the first run length is set.
  931. * bit offset is implicit.
  932. * start with toggle == 2 to be able to tell the first iteration */
  933. toggle = 2;
  934. /* see how much plain bits we can stuff into one packet
  935. * using RLE and VLI. */
  936. do {
  937. tmp = (toggle == 0) ? _drbd_bm_find_next_zero(mdev, c->bit_offset)
  938. : _drbd_bm_find_next(mdev, c->bit_offset);
  939. if (tmp == -1UL)
  940. tmp = c->bm_bits;
  941. rl = tmp - c->bit_offset;
  942. if (toggle == 2) { /* first iteration */
  943. if (rl == 0) {
  944. /* the first checked bit was set,
  945. * store start value, */
  946. dcbp_set_start(p, 1);
  947. /* but skip encoding of zero run length */
  948. toggle = !toggle;
  949. continue;
  950. }
  951. dcbp_set_start(p, 0);
  952. }
  953. /* paranoia: catch zero runlength.
  954. * can only happen if bitmap is modified while we scan it. */
  955. if (rl == 0) {
  956. dev_err(DEV, "unexpected zero runlength while encoding bitmap "
  957. "t:%u bo:%lu\n", toggle, c->bit_offset);
  958. return -1;
  959. }
  960. bits = vli_encode_bits(&bs, rl);
  961. if (bits == -ENOBUFS) /* buffer full */
  962. break;
  963. if (bits <= 0) {
  964. dev_err(DEV, "error while encoding bitmap: %d\n", bits);
  965. return 0;
  966. }
  967. toggle = !toggle;
  968. plain_bits += rl;
  969. c->bit_offset = tmp;
  970. } while (c->bit_offset < c->bm_bits);
  971. len = bs.cur.b - p->code + !!bs.cur.bit;
  972. if (plain_bits < (len << 3)) {
  973. /* incompressible with this method.
  974. * we need to rewind both word and bit position. */
  975. c->bit_offset -= plain_bits;
  976. bm_xfer_ctx_bit_to_word_offset(c);
  977. c->bit_offset = c->word_offset * BITS_PER_LONG;
  978. return 0;
  979. }
  980. /* RLE + VLI was able to compress it just fine.
  981. * update c->word_offset. */
  982. bm_xfer_ctx_bit_to_word_offset(c);
  983. /* store pad_bits */
  984. dcbp_set_pad_bits(p, (8 - bs.cur.bit) & 0x7);
  985. return len;
  986. }
  987. /**
  988. * send_bitmap_rle_or_plain
  989. *
  990. * Return 0 when done, 1 when another iteration is needed, and a negative error
  991. * code upon failure.
  992. */
  993. static int
  994. send_bitmap_rle_or_plain(struct drbd_conf *mdev, struct bm_xfer_ctx *c)
  995. {
  996. struct drbd_socket *sock = &mdev->tconn->data;
  997. unsigned int header_size = drbd_header_size(mdev->tconn);
  998. struct p_compressed_bm *p = sock->sbuf + header_size;
  999. int len, err;
  1000. len = fill_bitmap_rle_bits(mdev, p,
  1001. DRBD_SOCKET_BUFFER_SIZE - header_size - sizeof(*p), c);
  1002. if (len < 0)
  1003. return -EIO;
  1004. if (len) {
  1005. dcbp_set_code(p, RLE_VLI_Bits);
  1006. err = __send_command(mdev->tconn, mdev->vnr, sock,
  1007. P_COMPRESSED_BITMAP, sizeof(*p) + len,
  1008. NULL, 0);
  1009. c->packets[0]++;
  1010. c->bytes[0] += header_size + sizeof(*p) + len;
  1011. if (c->bit_offset >= c->bm_bits)
  1012. len = 0; /* DONE */
  1013. } else {
  1014. /* was not compressible.
  1015. * send a buffer full of plain text bits instead. */
  1016. unsigned int data_size;
  1017. unsigned long num_words;
  1018. unsigned long *p = sock->sbuf + header_size;
  1019. data_size = DRBD_SOCKET_BUFFER_SIZE - header_size;
  1020. num_words = min_t(size_t, data_size / sizeof(*p),
  1021. c->bm_words - c->word_offset);
  1022. len = num_words * sizeof(*p);
  1023. if (len)
  1024. drbd_bm_get_lel(mdev, c->word_offset, num_words, p);
  1025. err = __send_command(mdev->tconn, mdev->vnr, sock, P_BITMAP, len, NULL, 0);
  1026. c->word_offset += num_words;
  1027. c->bit_offset = c->word_offset * BITS_PER_LONG;
  1028. c->packets[1]++;
  1029. c->bytes[1] += header_size + len;
  1030. if (c->bit_offset > c->bm_bits)
  1031. c->bit_offset = c->bm_bits;
  1032. }
  1033. if (!err) {
  1034. if (len == 0) {
  1035. INFO_bm_xfer_stats(mdev, "send", c);
  1036. return 0;
  1037. } else
  1038. return 1;
  1039. }
  1040. return -EIO;
  1041. }
  1042. /* See the comment at receive_bitmap() */
  1043. static int _drbd_send_bitmap(struct drbd_conf *mdev)
  1044. {
  1045. struct bm_xfer_ctx c;
  1046. int err;
  1047. if (!expect(mdev->bitmap))
  1048. return false;
  1049. if (get_ldev(mdev)) {
  1050. if (drbd_md_test_flag(mdev->ldev, MDF_FULL_SYNC)) {
  1051. dev_info(DEV, "Writing the whole bitmap, MDF_FullSync was set.\n");
  1052. drbd_bm_set_all(mdev);
  1053. if (drbd_bm_write(mdev)) {
  1054. /* write_bm did fail! Leave full sync flag set in Meta P_DATA
  1055. * but otherwise process as per normal - need to tell other
  1056. * side that a full resync is required! */
  1057. dev_err(DEV, "Failed to write bitmap to disk!\n");
  1058. } else {
  1059. drbd_md_clear_flag(mdev, MDF_FULL_SYNC);
  1060. drbd_md_sync(mdev);
  1061. }
  1062. }
  1063. put_ldev(mdev);
  1064. }
  1065. c = (struct bm_xfer_ctx) {
  1066. .bm_bits = drbd_bm_bits(mdev),
  1067. .bm_words = drbd_bm_words(mdev),
  1068. };
  1069. do {
  1070. err = send_bitmap_rle_or_plain(mdev, &c);
  1071. } while (err > 0);
  1072. return err == 0;
  1073. }
  1074. int drbd_send_bitmap(struct drbd_conf *mdev)
  1075. {
  1076. struct drbd_socket *sock = &mdev->tconn->data;
  1077. int err = -1;
  1078. mutex_lock(&sock->mutex);
  1079. if (sock->socket)
  1080. err = !_drbd_send_bitmap(mdev);
  1081. mutex_unlock(&sock->mutex);
  1082. return err;
  1083. }
  1084. void drbd_send_b_ack(struct drbd_tconn *tconn, u32 barrier_nr, u32 set_size)
  1085. {
  1086. struct drbd_socket *sock;
  1087. struct p_barrier_ack *p;
  1088. if (tconn->cstate < C_WF_REPORT_PARAMS)
  1089. return;
  1090. sock = &tconn->meta;
  1091. p = conn_prepare_command(tconn, sock);
  1092. if (!p)
  1093. return;
  1094. p->barrier = barrier_nr;
  1095. p->set_size = cpu_to_be32(set_size);
  1096. conn_send_command(tconn, sock, P_BARRIER_ACK, sizeof(*p), NULL, 0);
  1097. }
  1098. /**
  1099. * _drbd_send_ack() - Sends an ack packet
  1100. * @mdev: DRBD device.
  1101. * @cmd: Packet command code.
  1102. * @sector: sector, needs to be in big endian byte order
  1103. * @blksize: size in byte, needs to be in big endian byte order
  1104. * @block_id: Id, big endian byte order
  1105. */
  1106. static int _drbd_send_ack(struct drbd_conf *mdev, enum drbd_packet cmd,
  1107. u64 sector, u32 blksize, u64 block_id)
  1108. {
  1109. struct drbd_socket *sock;
  1110. struct p_block_ack *p;
  1111. if (mdev->state.conn < C_CONNECTED)
  1112. return -EIO;
  1113. sock = &mdev->tconn->meta;
  1114. p = drbd_prepare_command(mdev, sock);
  1115. if (!p)
  1116. return -EIO;
  1117. p->sector = sector;
  1118. p->block_id = block_id;
  1119. p->blksize = blksize;
  1120. p->seq_num = cpu_to_be32(atomic_inc_return(&mdev->packet_seq));
  1121. return drbd_send_command(mdev, sock, cmd, sizeof(*p), NULL, 0);
  1122. }
  1123. /* dp->sector and dp->block_id already/still in network byte order,
  1124. * data_size is payload size according to dp->head,
  1125. * and may need to be corrected for digest size. */
  1126. void drbd_send_ack_dp(struct drbd_conf *mdev, enum drbd_packet cmd,
  1127. struct p_data *dp, int data_size)
  1128. {
  1129. if (mdev->tconn->peer_integrity_tfm)
  1130. data_size -= crypto_hash_digestsize(mdev->tconn->peer_integrity_tfm);
  1131. _drbd_send_ack(mdev, cmd, dp->sector, cpu_to_be32(data_size),
  1132. dp->block_id);
  1133. }
  1134. void drbd_send_ack_rp(struct drbd_conf *mdev, enum drbd_packet cmd,
  1135. struct p_block_req *rp)
  1136. {
  1137. _drbd_send_ack(mdev, cmd, rp->sector, rp->blksize, rp->block_id);
  1138. }
  1139. /**
  1140. * drbd_send_ack() - Sends an ack packet
  1141. * @mdev: DRBD device
  1142. * @cmd: packet command code
  1143. * @peer_req: peer request
  1144. */
  1145. int drbd_send_ack(struct drbd_conf *mdev, enum drbd_packet cmd,
  1146. struct drbd_peer_request *peer_req)
  1147. {
  1148. return _drbd_send_ack(mdev, cmd,
  1149. cpu_to_be64(peer_req->i.sector),
  1150. cpu_to_be32(peer_req->i.size),
  1151. peer_req->block_id);
  1152. }
  1153. /* This function misuses the block_id field to signal if the blocks
  1154. * are is sync or not. */
  1155. int drbd_send_ack_ex(struct drbd_conf *mdev, enum drbd_packet cmd,
  1156. sector_t sector, int blksize, u64 block_id)
  1157. {
  1158. return _drbd_send_ack(mdev, cmd,
  1159. cpu_to_be64(sector),
  1160. cpu_to_be32(blksize),
  1161. cpu_to_be64(block_id));
  1162. }
  1163. int drbd_send_drequest(struct drbd_conf *mdev, int cmd,
  1164. sector_t sector, int size, u64 block_id)
  1165. {
  1166. struct drbd_socket *sock;
  1167. struct p_block_req *p;
  1168. sock = &mdev->tconn->data;
  1169. p = drbd_prepare_command(mdev, sock);
  1170. if (!p)
  1171. return -EIO;
  1172. p->sector = cpu_to_be64(sector);
  1173. p->block_id = block_id;
  1174. p->blksize = cpu_to_be32(size);
  1175. return drbd_send_command(mdev, sock, cmd, sizeof(*p), NULL, 0);
  1176. }
  1177. int drbd_send_drequest_csum(struct drbd_conf *mdev, sector_t sector, int size,
  1178. void *digest, int digest_size, enum drbd_packet cmd)
  1179. {
  1180. struct drbd_socket *sock;
  1181. struct p_block_req *p;
  1182. /* FIXME: Put the digest into the preallocated socket buffer. */
  1183. sock = &mdev->tconn->data;
  1184. p = drbd_prepare_command(mdev, sock);
  1185. if (!p)
  1186. return -EIO;
  1187. p->sector = cpu_to_be64(sector);
  1188. p->block_id = ID_SYNCER /* unused */;
  1189. p->blksize = cpu_to_be32(size);
  1190. return drbd_send_command(mdev, sock, cmd, sizeof(*p),
  1191. digest, digest_size);
  1192. }
  1193. int drbd_send_ov_request(struct drbd_conf *mdev, sector_t sector, int size)
  1194. {
  1195. struct drbd_socket *sock;
  1196. struct p_block_req *p;
  1197. sock = &mdev->tconn->data;
  1198. p = drbd_prepare_command(mdev, sock);
  1199. if (!p)
  1200. return -EIO;
  1201. p->sector = cpu_to_be64(sector);
  1202. p->block_id = ID_SYNCER /* unused */;
  1203. p->blksize = cpu_to_be32(size);
  1204. return drbd_send_command(mdev, sock, P_OV_REQUEST, sizeof(*p), NULL, 0);
  1205. }
  1206. /* called on sndtimeo
  1207. * returns false if we should retry,
  1208. * true if we think connection is dead
  1209. */
  1210. static int we_should_drop_the_connection(struct drbd_tconn *tconn, struct socket *sock)
  1211. {
  1212. int drop_it;
  1213. /* long elapsed = (long)(jiffies - mdev->last_received); */
  1214. drop_it = tconn->meta.socket == sock
  1215. || !tconn->asender.task
  1216. || get_t_state(&tconn->asender) != RUNNING
  1217. || tconn->cstate < C_WF_REPORT_PARAMS;
  1218. if (drop_it)
  1219. return true;
  1220. drop_it = !--tconn->ko_count;
  1221. if (!drop_it) {
  1222. conn_err(tconn, "[%s/%d] sock_sendmsg time expired, ko = %u\n",
  1223. current->comm, current->pid, tconn->ko_count);
  1224. request_ping(tconn);
  1225. }
  1226. return drop_it; /* && (mdev->state == R_PRIMARY) */;
  1227. }
  1228. static void drbd_update_congested(struct drbd_tconn *tconn)
  1229. {
  1230. struct sock *sk = tconn->data.socket->sk;
  1231. if (sk->sk_wmem_queued > sk->sk_sndbuf * 4 / 5)
  1232. set_bit(NET_CONGESTED, &tconn->flags);
  1233. }
  1234. /* The idea of sendpage seems to be to put some kind of reference
  1235. * to the page into the skb, and to hand it over to the NIC. In
  1236. * this process get_page() gets called.
  1237. *
  1238. * As soon as the page was really sent over the network put_page()
  1239. * gets called by some part of the network layer. [ NIC driver? ]
  1240. *
  1241. * [ get_page() / put_page() increment/decrement the count. If count
  1242. * reaches 0 the page will be freed. ]
  1243. *
  1244. * This works nicely with pages from FSs.
  1245. * But this means that in protocol A we might signal IO completion too early!
  1246. *
  1247. * In order not to corrupt data during a resync we must make sure
  1248. * that we do not reuse our own buffer pages (EEs) to early, therefore
  1249. * we have the net_ee list.
  1250. *
  1251. * XFS seems to have problems, still, it submits pages with page_count == 0!
  1252. * As a workaround, we disable sendpage on pages
  1253. * with page_count == 0 or PageSlab.
  1254. */
  1255. static int _drbd_no_send_page(struct drbd_conf *mdev, struct page *page,
  1256. int offset, size_t size, unsigned msg_flags)
  1257. {
  1258. struct socket *socket;
  1259. void *addr;
  1260. int err;
  1261. socket = mdev->tconn->data.socket;
  1262. addr = kmap(page) + offset;
  1263. err = drbd_send_all(mdev->tconn, socket, addr, size, msg_flags);
  1264. kunmap(page);
  1265. if (!err)
  1266. mdev->send_cnt += size >> 9;
  1267. return err;
  1268. }
  1269. static int _drbd_send_page(struct drbd_conf *mdev, struct page *page,
  1270. int offset, size_t size, unsigned msg_flags)
  1271. {
  1272. struct socket *socket = mdev->tconn->data.socket;
  1273. mm_segment_t oldfs = get_fs();
  1274. int len = size;
  1275. int err = -EIO;
  1276. /* e.g. XFS meta- & log-data is in slab pages, which have a
  1277. * page_count of 0 and/or have PageSlab() set.
  1278. * we cannot use send_page for those, as that does get_page();
  1279. * put_page(); and would cause either a VM_BUG directly, or
  1280. * __page_cache_release a page that would actually still be referenced
  1281. * by someone, leading to some obscure delayed Oops somewhere else. */
  1282. if (disable_sendpage || (page_count(page) < 1) || PageSlab(page))
  1283. return _drbd_no_send_page(mdev, page, offset, size, msg_flags);
  1284. msg_flags |= MSG_NOSIGNAL;
  1285. drbd_update_congested(mdev->tconn);
  1286. set_fs(KERNEL_DS);
  1287. do {
  1288. int sent;
  1289. sent = socket->ops->sendpage(socket, page, offset, len, msg_flags);
  1290. if (sent <= 0) {
  1291. if (sent == -EAGAIN) {
  1292. if (we_should_drop_the_connection(mdev->tconn, socket))
  1293. break;
  1294. continue;
  1295. }
  1296. dev_warn(DEV, "%s: size=%d len=%d sent=%d\n",
  1297. __func__, (int)size, len, sent);
  1298. if (sent < 0)
  1299. err = sent;
  1300. break;
  1301. }
  1302. len -= sent;
  1303. offset += sent;
  1304. } while (len > 0 /* THINK && mdev->cstate >= C_CONNECTED*/);
  1305. set_fs(oldfs);
  1306. clear_bit(NET_CONGESTED, &mdev->tconn->flags);
  1307. if (len == 0) {
  1308. err = 0;
  1309. mdev->send_cnt += size >> 9;
  1310. }
  1311. return err;
  1312. }
  1313. static int _drbd_send_bio(struct drbd_conf *mdev, struct bio *bio)
  1314. {
  1315. struct bio_vec *bvec;
  1316. int i;
  1317. /* hint all but last page with MSG_MORE */
  1318. bio_for_each_segment(bvec, bio, i) {
  1319. int err;
  1320. err = _drbd_no_send_page(mdev, bvec->bv_page,
  1321. bvec->bv_offset, bvec->bv_len,
  1322. i == bio->bi_vcnt - 1 ? 0 : MSG_MORE);
  1323. if (err)
  1324. return err;
  1325. }
  1326. return 0;
  1327. }
  1328. static int _drbd_send_zc_bio(struct drbd_conf *mdev, struct bio *bio)
  1329. {
  1330. struct bio_vec *bvec;
  1331. int i;
  1332. /* hint all but last page with MSG_MORE */
  1333. bio_for_each_segment(bvec, bio, i) {
  1334. int err;
  1335. err = _drbd_send_page(mdev, bvec->bv_page,
  1336. bvec->bv_offset, bvec->bv_len,
  1337. i == bio->bi_vcnt - 1 ? 0 : MSG_MORE);
  1338. if (err)
  1339. return err;
  1340. }
  1341. return 0;
  1342. }
  1343. static int _drbd_send_zc_ee(struct drbd_conf *mdev,
  1344. struct drbd_peer_request *peer_req)
  1345. {
  1346. struct page *page = peer_req->pages;
  1347. unsigned len = peer_req->i.size;
  1348. int err;
  1349. /* hint all but last page with MSG_MORE */
  1350. page_chain_for_each(page) {
  1351. unsigned l = min_t(unsigned, len, PAGE_SIZE);
  1352. err = _drbd_send_page(mdev, page, 0, l,
  1353. page_chain_next(page) ? MSG_MORE : 0);
  1354. if (err)
  1355. return err;
  1356. len -= l;
  1357. }
  1358. return 0;
  1359. }
  1360. static u32 bio_flags_to_wire(struct drbd_conf *mdev, unsigned long bi_rw)
  1361. {
  1362. if (mdev->tconn->agreed_pro_version >= 95)
  1363. return (bi_rw & REQ_SYNC ? DP_RW_SYNC : 0) |
  1364. (bi_rw & REQ_FUA ? DP_FUA : 0) |
  1365. (bi_rw & REQ_FLUSH ? DP_FLUSH : 0) |
  1366. (bi_rw & REQ_DISCARD ? DP_DISCARD : 0);
  1367. else
  1368. return bi_rw & REQ_SYNC ? DP_RW_SYNC : 0;
  1369. }
  1370. /* Used to send write requests
  1371. * R_PRIMARY -> Peer (P_DATA)
  1372. */
  1373. int drbd_send_dblock(struct drbd_conf *mdev, struct drbd_request *req)
  1374. {
  1375. struct drbd_socket *sock;
  1376. struct p_data *p;
  1377. unsigned int dp_flags = 0;
  1378. int dgs;
  1379. int err;
  1380. sock = &mdev->tconn->data;
  1381. p = drbd_prepare_command(mdev, sock);
  1382. dgs = mdev->tconn->integrity_tfm ? crypto_hash_digestsize(mdev->tconn->integrity_tfm) : 0;
  1383. if (!p)
  1384. return -EIO;
  1385. p->sector = cpu_to_be64(req->i.sector);
  1386. p->block_id = (unsigned long)req;
  1387. p->seq_num = cpu_to_be32(atomic_inc_return(&mdev->packet_seq));
  1388. dp_flags = bio_flags_to_wire(mdev, req->master_bio->bi_rw);
  1389. if (mdev->state.conn >= C_SYNC_SOURCE &&
  1390. mdev->state.conn <= C_PAUSED_SYNC_T)
  1391. dp_flags |= DP_MAY_SET_IN_SYNC;
  1392. if (mdev->tconn->agreed_pro_version >= 100) {
  1393. if (req->rq_state & RQ_EXP_RECEIVE_ACK)
  1394. dp_flags |= DP_SEND_RECEIVE_ACK;
  1395. if (req->rq_state & RQ_EXP_WRITE_ACK)
  1396. dp_flags |= DP_SEND_WRITE_ACK;
  1397. }
  1398. p->dp_flags = cpu_to_be32(dp_flags);
  1399. if (dgs)
  1400. drbd_csum_bio(mdev, mdev->tconn->integrity_tfm, req->master_bio, p + 1);
  1401. err = __send_command(mdev->tconn, mdev->vnr, sock, P_DATA, sizeof(*p) + dgs, NULL, req->i.size);
  1402. if (!err) {
  1403. /* For protocol A, we have to memcpy the payload into
  1404. * socket buffers, as we may complete right away
  1405. * as soon as we handed it over to tcp, at which point the data
  1406. * pages may become invalid.
  1407. *
  1408. * For data-integrity enabled, we copy it as well, so we can be
  1409. * sure that even if the bio pages may still be modified, it
  1410. * won't change the data on the wire, thus if the digest checks
  1411. * out ok after sending on this side, but does not fit on the
  1412. * receiving side, we sure have detected corruption elsewhere.
  1413. */
  1414. if (!(req->rq_state & (RQ_EXP_RECEIVE_ACK | RQ_EXP_WRITE_ACK)) || dgs)
  1415. err = _drbd_send_bio(mdev, req->master_bio);
  1416. else
  1417. err = _drbd_send_zc_bio(mdev, req->master_bio);
  1418. /* double check digest, sometimes buffers have been modified in flight. */
  1419. if (dgs > 0 && dgs <= 64) {
  1420. /* 64 byte, 512 bit, is the largest digest size
  1421. * currently supported in kernel crypto. */
  1422. unsigned char digest[64];
  1423. drbd_csum_bio(mdev, mdev->tconn->integrity_tfm, req->master_bio, digest);
  1424. if (memcmp(p + 1, digest, dgs)) {
  1425. dev_warn(DEV,
  1426. "Digest mismatch, buffer modified by upper layers during write: %llus +%u\n",
  1427. (unsigned long long)req->i.sector, req->i.size);
  1428. }
  1429. } /* else if (dgs > 64) {
  1430. ... Be noisy about digest too large ...
  1431. } */
  1432. }
  1433. mutex_unlock(&sock->mutex); /* locked by drbd_prepare_command() */
  1434. return err;
  1435. }
  1436. /* answer packet, used to send data back for read requests:
  1437. * Peer -> (diskless) R_PRIMARY (P_DATA_REPLY)
  1438. * C_SYNC_SOURCE -> C_SYNC_TARGET (P_RS_DATA_REPLY)
  1439. */
  1440. int drbd_send_block(struct drbd_conf *mdev, enum drbd_packet cmd,
  1441. struct drbd_peer_request *peer_req)
  1442. {
  1443. struct drbd_socket *sock;
  1444. struct p_data *p;
  1445. int err;
  1446. int dgs;
  1447. sock = &mdev->tconn->data;
  1448. p = drbd_prepare_command(mdev, sock);
  1449. dgs = mdev->tconn->integrity_tfm ? crypto_hash_digestsize(mdev->tconn->integrity_tfm) : 0;
  1450. if (!p)
  1451. return -EIO;
  1452. p->sector = cpu_to_be64(peer_req->i.sector);
  1453. p->block_id = peer_req->block_id;
  1454. p->seq_num = 0; /* unused */
  1455. p->dp_flags = 0;
  1456. if (dgs)
  1457. drbd_csum_ee(mdev, mdev->tconn->integrity_tfm, peer_req, p + 1);
  1458. err = __send_command(mdev->tconn, mdev->vnr, sock, cmd, sizeof(*p) + dgs, NULL, peer_req->i.size);
  1459. if (!err)
  1460. err = _drbd_send_zc_ee(mdev, peer_req);
  1461. mutex_unlock(&sock->mutex); /* locked by drbd_prepare_command() */
  1462. return err;
  1463. }
  1464. int drbd_send_out_of_sync(struct drbd_conf *mdev, struct drbd_request *req)
  1465. {
  1466. struct drbd_socket *sock;
  1467. struct p_block_desc *p;
  1468. sock = &mdev->tconn->data;
  1469. p = drbd_prepare_command(mdev, sock);
  1470. if (!p)
  1471. return -EIO;
  1472. p->sector = cpu_to_be64(req->i.sector);
  1473. p->blksize = cpu_to_be32(req->i.size);
  1474. return drbd_send_command(mdev, sock, P_OUT_OF_SYNC, sizeof(*p), NULL, 0);
  1475. }
  1476. /*
  1477. drbd_send distinguishes two cases:
  1478. Packets sent via the data socket "sock"
  1479. and packets sent via the meta data socket "msock"
  1480. sock msock
  1481. -----------------+-------------------------+------------------------------
  1482. timeout conf.timeout / 2 conf.timeout / 2
  1483. timeout action send a ping via msock Abort communication
  1484. and close all sockets
  1485. */
  1486. /*
  1487. * you must have down()ed the appropriate [m]sock_mutex elsewhere!
  1488. */
  1489. int drbd_send(struct drbd_tconn *tconn, struct socket *sock,
  1490. void *buf, size_t size, unsigned msg_flags)
  1491. {
  1492. struct kvec iov;
  1493. struct msghdr msg;
  1494. int rv, sent = 0;
  1495. if (!sock)
  1496. return -EBADR;
  1497. /* THINK if (signal_pending) return ... ? */
  1498. iov.iov_base = buf;
  1499. iov.iov_len = size;
  1500. msg.msg_name = NULL;
  1501. msg.msg_namelen = 0;
  1502. msg.msg_control = NULL;
  1503. msg.msg_controllen = 0;
  1504. msg.msg_flags = msg_flags | MSG_NOSIGNAL;
  1505. if (sock == tconn->data.socket) {
  1506. rcu_read_lock();
  1507. tconn->ko_count = rcu_dereference(tconn->net_conf)->ko_count;
  1508. rcu_read_unlock();
  1509. drbd_update_congested(tconn);
  1510. }
  1511. do {
  1512. /* STRANGE
  1513. * tcp_sendmsg does _not_ use its size parameter at all ?
  1514. *
  1515. * -EAGAIN on timeout, -EINTR on signal.
  1516. */
  1517. /* THINK
  1518. * do we need to block DRBD_SIG if sock == &meta.socket ??
  1519. * otherwise wake_asender() might interrupt some send_*Ack !
  1520. */
  1521. rv = kernel_sendmsg(sock, &msg, &iov, 1, size);
  1522. if (rv == -EAGAIN) {
  1523. if (we_should_drop_the_connection(tconn, sock))
  1524. break;
  1525. else
  1526. continue;
  1527. }
  1528. if (rv == -EINTR) {
  1529. flush_signals(current);
  1530. rv = 0;
  1531. }
  1532. if (rv < 0)
  1533. break;
  1534. sent += rv;
  1535. iov.iov_base += rv;
  1536. iov.iov_len -= rv;
  1537. } while (sent < size);
  1538. if (sock == tconn->data.socket)
  1539. clear_bit(NET_CONGESTED, &tconn->flags);
  1540. if (rv <= 0) {
  1541. if (rv != -EAGAIN) {
  1542. conn_err(tconn, "%s_sendmsg returned %d\n",
  1543. sock == tconn->meta.socket ? "msock" : "sock",
  1544. rv);
  1545. conn_request_state(tconn, NS(conn, C_BROKEN_PIPE), CS_HARD);
  1546. } else
  1547. conn_request_state(tconn, NS(conn, C_TIMEOUT), CS_HARD);
  1548. }
  1549. return sent;
  1550. }
  1551. /**
  1552. * drbd_send_all - Send an entire buffer
  1553. *
  1554. * Returns 0 upon success and a negative error value otherwise.
  1555. */
  1556. int drbd_send_all(struct drbd_tconn *tconn, struct socket *sock, void *buffer,
  1557. size_t size, unsigned msg_flags)
  1558. {
  1559. int err;
  1560. err = drbd_send(tconn, sock, buffer, size, msg_flags);
  1561. if (err < 0)
  1562. return err;
  1563. if (err != size)
  1564. return -EIO;
  1565. return 0;
  1566. }
  1567. static int drbd_open(struct block_device *bdev, fmode_t mode)
  1568. {
  1569. struct drbd_conf *mdev = bdev->bd_disk->private_data;
  1570. unsigned long flags;
  1571. int rv = 0;
  1572. mutex_lock(&drbd_main_mutex);
  1573. spin_lock_irqsave(&mdev->tconn->req_lock, flags);
  1574. /* to have a stable mdev->state.role
  1575. * and no race with updating open_cnt */
  1576. if (mdev->state.role != R_PRIMARY) {
  1577. if (mode & FMODE_WRITE)
  1578. rv = -EROFS;
  1579. else if (!allow_oos)
  1580. rv = -EMEDIUMTYPE;
  1581. }
  1582. if (!rv)
  1583. mdev->open_cnt++;
  1584. spin_unlock_irqrestore(&mdev->tconn->req_lock, flags);
  1585. mutex_unlock(&drbd_main_mutex);
  1586. return rv;
  1587. }
  1588. static int drbd_release(struct gendisk *gd, fmode_t mode)
  1589. {
  1590. struct drbd_conf *mdev = gd->private_data;
  1591. mutex_lock(&drbd_main_mutex);
  1592. mdev->open_cnt--;
  1593. mutex_unlock(&drbd_main_mutex);
  1594. return 0;
  1595. }
  1596. static void drbd_set_defaults(struct drbd_conf *mdev)
  1597. {
  1598. /* Beware! The actual layout differs
  1599. * between big endian and little endian */
  1600. mdev->state = (union drbd_dev_state) {
  1601. { .role = R_SECONDARY,
  1602. .peer = R_UNKNOWN,
  1603. .conn = C_STANDALONE,
  1604. .disk = D_DISKLESS,
  1605. .pdsk = D_UNKNOWN,
  1606. } };
  1607. }
  1608. void drbd_init_set_defaults(struct drbd_conf *mdev)
  1609. {
  1610. /* the memset(,0,) did most of this.
  1611. * note: only assignments, no allocation in here */
  1612. drbd_set_defaults(mdev);
  1613. atomic_set(&mdev->ap_bio_cnt, 0);
  1614. atomic_set(&mdev->ap_pending_cnt, 0);
  1615. atomic_set(&mdev->rs_pending_cnt, 0);
  1616. atomic_set(&mdev->unacked_cnt, 0);
  1617. atomic_set(&mdev->local_cnt, 0);
  1618. atomic_set(&mdev->pp_in_use_by_net, 0);
  1619. atomic_set(&mdev->rs_sect_in, 0);
  1620. atomic_set(&mdev->rs_sect_ev, 0);
  1621. atomic_set(&mdev->ap_in_flight, 0);
  1622. atomic_set(&mdev->md_io_in_use, 0);
  1623. mutex_init(&mdev->own_state_mutex);
  1624. mdev->state_mutex = &mdev->own_state_mutex;
  1625. spin_lock_init(&mdev->al_lock);
  1626. spin_lock_init(&mdev->peer_seq_lock);
  1627. INIT_LIST_HEAD(&mdev->active_ee);
  1628. INIT_LIST_HEAD(&mdev->sync_ee);
  1629. INIT_LIST_HEAD(&mdev->done_ee);
  1630. INIT_LIST_HEAD(&mdev->read_ee);
  1631. INIT_LIST_HEAD(&mdev->net_ee);
  1632. INIT_LIST_HEAD(&mdev->resync_reads);
  1633. INIT_LIST_HEAD(&mdev->resync_work.list);
  1634. INIT_LIST_HEAD(&mdev->unplug_work.list);
  1635. INIT_LIST_HEAD(&mdev->go_diskless.list);
  1636. INIT_LIST_HEAD(&mdev->md_sync_work.list);
  1637. INIT_LIST_HEAD(&mdev->start_resync_work.list);
  1638. INIT_LIST_HEAD(&mdev->bm_io_work.w.list);
  1639. mdev->resync_work.cb = w_resync_timer;
  1640. mdev->unplug_work.cb = w_send_write_hint;
  1641. mdev->go_diskless.cb = w_go_diskless;
  1642. mdev->md_sync_work.cb = w_md_sync;
  1643. mdev->bm_io_work.w.cb = w_bitmap_io;
  1644. mdev->start_resync_work.cb = w_start_resync;
  1645. mdev->resync_work.mdev = mdev;
  1646. mdev->unplug_work.mdev = mdev;
  1647. mdev->go_diskless.mdev = mdev;
  1648. mdev->md_sync_work.mdev = mdev;
  1649. mdev->bm_io_work.w.mdev = mdev;
  1650. mdev->start_resync_work.mdev = mdev;
  1651. init_timer(&mdev->resync_timer);
  1652. init_timer(&mdev->md_sync_timer);
  1653. init_timer(&mdev->start_resync_timer);
  1654. init_timer(&mdev->request_timer);
  1655. mdev->resync_timer.function = resync_timer_fn;
  1656. mdev->resync_timer.data = (unsigned long) mdev;
  1657. mdev->md_sync_timer.function = md_sync_timer_fn;
  1658. mdev->md_sync_timer.data = (unsigned long) mdev;
  1659. mdev->start_resync_timer.function = start_resync_timer_fn;
  1660. mdev->start_resync_timer.data = (unsigned long) mdev;
  1661. mdev->request_timer.function = request_timer_fn;
  1662. mdev->request_timer.data = (unsigned long) mdev;
  1663. init_waitqueue_head(&mdev->misc_wait);
  1664. init_waitqueue_head(&mdev->state_wait);
  1665. init_waitqueue_head(&mdev->ee_wait);
  1666. init_waitqueue_head(&mdev->al_wait);
  1667. init_waitqueue_head(&mdev->seq_wait);
  1668. mdev->resync_wenr = LC_FREE;
  1669. mdev->peer_max_bio_size = DRBD_MAX_BIO_SIZE_SAFE;
  1670. mdev->local_max_bio_size = DRBD_MAX_BIO_SIZE_SAFE;
  1671. }
  1672. void drbd_mdev_cleanup(struct drbd_conf *mdev)
  1673. {
  1674. int i;
  1675. if (mdev->tconn->receiver.t_state != NONE)
  1676. dev_err(DEV, "ASSERT FAILED: receiver t_state == %d expected 0.\n",
  1677. mdev->tconn->receiver.t_state);
  1678. mdev->al_writ_cnt =
  1679. mdev->bm_writ_cnt =
  1680. mdev->read_cnt =
  1681. mdev->recv_cnt =
  1682. mdev->send_cnt =
  1683. mdev->writ_cnt =
  1684. mdev->p_size =
  1685. mdev->rs_start =
  1686. mdev->rs_total =
  1687. mdev->rs_failed = 0;
  1688. mdev->rs_last_events = 0;
  1689. mdev->rs_last_sect_ev = 0;
  1690. for (i = 0; i < DRBD_SYNC_MARKS; i++) {
  1691. mdev->rs_mark_left[i] = 0;
  1692. mdev->rs_mark_time[i] = 0;
  1693. }
  1694. D_ASSERT(mdev->tconn->net_conf == NULL);
  1695. drbd_set_my_capacity(mdev, 0);
  1696. if (mdev->bitmap) {
  1697. /* maybe never allocated. */
  1698. drbd_bm_resize(mdev, 0, 1);
  1699. drbd_bm_cleanup(mdev);
  1700. }
  1701. drbd_free_bc(mdev->ldev);
  1702. mdev->ldev = NULL;
  1703. clear_bit(AL_SUSPENDED, &mdev->flags);
  1704. D_ASSERT(list_empty(&mdev->active_ee));
  1705. D_ASSERT(list_empty(&mdev->sync_ee));
  1706. D_ASSERT(list_empty(&mdev->done_ee));
  1707. D_ASSERT(list_empty(&mdev->read_ee));
  1708. D_ASSERT(list_empty(&mdev->net_ee));
  1709. D_ASSERT(list_empty(&mdev->resync_reads));
  1710. D_ASSERT(list_empty(&mdev->tconn->sender_work.q));
  1711. D_ASSERT(list_empty(&mdev->resync_work.list));
  1712. D_ASSERT(list_empty(&mdev->unplug_work.list));
  1713. D_ASSERT(list_empty(&mdev->go_diskless.list));
  1714. drbd_set_defaults(mdev);
  1715. }
  1716. static void drbd_destroy_mempools(void)
  1717. {
  1718. struct page *page;
  1719. while (drbd_pp_pool) {
  1720. page = drbd_pp_pool;
  1721. drbd_pp_pool = (struct page *)page_private(page);
  1722. __free_page(page);
  1723. drbd_pp_vacant--;
  1724. }
  1725. /* D_ASSERT(atomic_read(&drbd_pp_vacant)==0); */
  1726. if (drbd_md_io_bio_set)
  1727. bioset_free(drbd_md_io_bio_set);
  1728. if (drbd_md_io_page_pool)
  1729. mempool_destroy(drbd_md_io_page_pool);
  1730. if (drbd_ee_mempool)
  1731. mempool_destroy(drbd_ee_mempool);
  1732. if (drbd_request_mempool)
  1733. mempool_destroy(drbd_request_mempool);
  1734. if (drbd_ee_cache)
  1735. kmem_cache_destroy(drbd_ee_cache);
  1736. if (drbd_request_cache)
  1737. kmem_cache_destroy(drbd_request_cache);
  1738. if (drbd_bm_ext_cache)
  1739. kmem_cache_destroy(drbd_bm_ext_cache);
  1740. if (drbd_al_ext_cache)
  1741. kmem_cache_destroy(drbd_al_ext_cache);
  1742. drbd_md_io_bio_set = NULL;
  1743. drbd_md_io_page_pool = NULL;
  1744. drbd_ee_mempool = NULL;
  1745. drbd_request_mempool = NULL;
  1746. drbd_ee_cache = NULL;
  1747. drbd_request_cache = NULL;
  1748. drbd_bm_ext_cache = NULL;
  1749. drbd_al_ext_cache = NULL;
  1750. return;
  1751. }
  1752. static int drbd_create_mempools(void)
  1753. {
  1754. struct page *page;
  1755. const int number = (DRBD_MAX_BIO_SIZE/PAGE_SIZE) * minor_count;
  1756. int i;
  1757. /* prepare our caches and mempools */
  1758. drbd_request_mempool = NULL;
  1759. drbd_ee_cache = NULL;
  1760. drbd_request_cache = NULL;
  1761. drbd_bm_ext_cache = NULL;
  1762. drbd_al_ext_cache = NULL;
  1763. drbd_pp_pool = NULL;
  1764. drbd_md_io_page_pool = NULL;
  1765. drbd_md_io_bio_set = NULL;
  1766. /* caches */
  1767. drbd_request_cache = kmem_cache_create(
  1768. "drbd_req", sizeof(struct drbd_request), 0, 0, NULL);
  1769. if (drbd_request_cache == NULL)
  1770. goto Enomem;
  1771. drbd_ee_cache = kmem_cache_create(
  1772. "drbd_ee", sizeof(struct drbd_peer_request), 0, 0, NULL);
  1773. if (drbd_ee_cache == NULL)
  1774. goto Enomem;
  1775. drbd_bm_ext_cache = kmem_cache_create(
  1776. "drbd_bm", sizeof(struct bm_extent), 0, 0, NULL);
  1777. if (drbd_bm_ext_cache == NULL)
  1778. goto Enomem;
  1779. drbd_al_ext_cache = kmem_cache_create(
  1780. "drbd_al", sizeof(struct lc_element), 0, 0, NULL);
  1781. if (drbd_al_ext_cache == NULL)
  1782. goto Enomem;
  1783. /* mempools */
  1784. drbd_md_io_bio_set = bioset_create(DRBD_MIN_POOL_PAGES, 0);
  1785. if (drbd_md_io_bio_set == NULL)
  1786. goto Enomem;
  1787. drbd_md_io_page_pool = mempool_create_page_pool(DRBD_MIN_POOL_PAGES, 0);
  1788. if (drbd_md_io_page_pool == NULL)
  1789. goto Enomem;
  1790. drbd_request_mempool = mempool_create(number,
  1791. mempool_alloc_slab, mempool_free_slab, drbd_request_cache);
  1792. if (drbd_request_mempool == NULL)
  1793. goto Enomem;
  1794. drbd_ee_mempool = mempool_create(number,
  1795. mempool_alloc_slab, mempool_free_slab, drbd_ee_cache);
  1796. if (drbd_ee_mempool == NULL)
  1797. goto Enomem;
  1798. /* drbd's page pool */
  1799. spin_lock_init(&drbd_pp_lock);
  1800. for (i = 0; i < number; i++) {
  1801. page = alloc_page(GFP_HIGHUSER);
  1802. if (!page)
  1803. goto Enomem;
  1804. set_page_private(page, (unsigned long)drbd_pp_pool);
  1805. drbd_pp_pool = page;
  1806. }
  1807. drbd_pp_vacant = number;
  1808. return 0;
  1809. Enomem:
  1810. drbd_destroy_mempools(); /* in case we allocated some */
  1811. return -ENOMEM;
  1812. }
  1813. static int drbd_notify_sys(struct notifier_block *this, unsigned long code,
  1814. void *unused)
  1815. {
  1816. /* just so we have it. you never know what interesting things we
  1817. * might want to do here some day...
  1818. */
  1819. return NOTIFY_DONE;
  1820. }
  1821. static struct notifier_block drbd_notifier = {
  1822. .notifier_call = drbd_notify_sys,
  1823. };
  1824. static void drbd_release_all_peer_reqs(struct drbd_conf *mdev)
  1825. {
  1826. int rr;
  1827. rr = drbd_free_peer_reqs(mdev, &mdev->active_ee);
  1828. if (rr)
  1829. dev_err(DEV, "%d EEs in active list found!\n", rr);
  1830. rr = drbd_free_peer_reqs(mdev, &mdev->sync_ee);
  1831. if (rr)
  1832. dev_err(DEV, "%d EEs in sync list found!\n", rr);
  1833. rr = drbd_free_peer_reqs(mdev, &mdev->read_ee);
  1834. if (rr)
  1835. dev_err(DEV, "%d EEs in read list found!\n", rr);
  1836. rr = drbd_free_peer_reqs(mdev, &mdev->done_ee);
  1837. if (rr)
  1838. dev_err(DEV, "%d EEs in done list found!\n", rr);
  1839. rr = drbd_free_peer_reqs(mdev, &mdev->net_ee);
  1840. if (rr)
  1841. dev_err(DEV, "%d EEs in net list found!\n", rr);
  1842. }
  1843. /* caution. no locking. */
  1844. void drbd_minor_destroy(struct kref *kref)
  1845. {
  1846. struct drbd_conf *mdev = container_of(kref, struct drbd_conf, kref);
  1847. struct drbd_tconn *tconn = mdev->tconn;
  1848. del_timer_sync(&mdev->request_timer);
  1849. /* paranoia asserts */
  1850. D_ASSERT(mdev->open_cnt == 0);
  1851. /* end paranoia asserts */
  1852. /* cleanup stuff that may have been allocated during
  1853. * device (re-)configuration or state changes */
  1854. if (mdev->this_bdev)
  1855. bdput(mdev->this_bdev);
  1856. drbd_free_bc(mdev->ldev);
  1857. mdev->ldev = NULL;
  1858. drbd_release_all_peer_reqs(mdev);
  1859. lc_destroy(mdev->act_log);
  1860. lc_destroy(mdev->resync);
  1861. kfree(mdev->p_uuid);
  1862. /* mdev->p_uuid = NULL; */
  1863. if (mdev->bitmap) /* should no longer be there. */
  1864. drbd_bm_cleanup(mdev);
  1865. __free_page(mdev->md_io_page);
  1866. put_disk(mdev->vdisk);
  1867. blk_cleanup_queue(mdev->rq_queue);
  1868. kfree(mdev->rs_plan_s);
  1869. kfree(mdev);
  1870. kref_put(&tconn->kref, &conn_destroy);
  1871. }
  1872. /* One global retry thread, if we need to push back some bio and have it
  1873. * reinserted through our make request function.
  1874. */
  1875. static struct retry_worker {
  1876. struct workqueue_struct *wq;
  1877. struct work_struct worker;
  1878. spinlock_t lock;
  1879. struct list_head writes;
  1880. } retry;
  1881. static void do_retry(struct work_struct *ws)
  1882. {
  1883. struct retry_worker *retry = container_of(ws, struct retry_worker, worker);
  1884. LIST_HEAD(writes);
  1885. struct drbd_request *req, *tmp;
  1886. spin_lock_irq(&retry->lock);
  1887. list_splice_init(&retry->writes, &writes);
  1888. spin_unlock_irq(&retry->lock);
  1889. list_for_each_entry_safe(req, tmp, &writes, tl_requests) {
  1890. struct drbd_conf *mdev = req->w.mdev;
  1891. struct bio *bio = req->master_bio;
  1892. unsigned long start_time = req->start_time;
  1893. /* We have exclusive access to this request object.
  1894. * If it had not been RQ_POSTPONED, the code path which queued
  1895. * it here would have completed and freed it already.
  1896. */
  1897. mempool_free(req, drbd_request_mempool);
  1898. /* A single suspended or otherwise blocking device may stall
  1899. * all others as well. Fortunately, this code path is to
  1900. * recover from a situation that "should not happen":
  1901. * concurrent writes in multi-primary setup.
  1902. * In a "normal" lifecycle, this workqueue is supposed to be
  1903. * destroyed without ever doing anything.
  1904. * If it turns out to be an issue anyways, we can do per
  1905. * resource (replication group) or per device (minor) retry
  1906. * workqueues instead.
  1907. */
  1908. /* We are not just doing generic_make_request(),
  1909. * as we want to keep the start_time information. */
  1910. inc_ap_bio(mdev);
  1911. __drbd_make_request(mdev, bio, start_time);
  1912. }
  1913. }
  1914. void drbd_restart_request(struct drbd_request *req)
  1915. {
  1916. unsigned long flags;
  1917. spin_lock_irqsave(&retry.lock, flags);
  1918. list_move_tail(&req->tl_requests, &retry.writes);
  1919. spin_unlock_irqrestore(&retry.lock, flags);
  1920. /* Drop the extra reference that would otherwise
  1921. * have been dropped by complete_master_bio.
  1922. * do_retry() needs to grab a new one. */
  1923. dec_ap_bio(req->w.mdev);
  1924. queue_work(retry.wq, &retry.worker);
  1925. }
  1926. static void drbd_cleanup(void)
  1927. {
  1928. unsigned int i;
  1929. struct drbd_conf *mdev;
  1930. struct drbd_tconn *tconn, *tmp;
  1931. unregister_reboot_notifier(&drbd_notifier);
  1932. /* first remove proc,
  1933. * drbdsetup uses it's presence to detect
  1934. * whether DRBD is loaded.
  1935. * If we would get stuck in proc removal,
  1936. * but have netlink already deregistered,
  1937. * some drbdsetup commands may wait forever
  1938. * for an answer.
  1939. */
  1940. if (drbd_proc)
  1941. remove_proc_entry("drbd", NULL);
  1942. if (retry.wq)
  1943. destroy_workqueue(retry.wq);
  1944. drbd_genl_unregister();
  1945. idr_for_each_entry(&minors, mdev, i) {
  1946. idr_remove(&minors, mdev_to_minor(mdev));
  1947. idr_remove(&mdev->tconn->volumes, mdev->vnr);
  1948. del_gendisk(mdev->vdisk);
  1949. /* synchronize_rcu(); No other threads running at this point */
  1950. kref_put(&mdev->kref, &drbd_minor_destroy);
  1951. }
  1952. /* not _rcu since, no other updater anymore. Genl already unregistered */
  1953. list_for_each_entry_safe(tconn, tmp, &drbd_tconns, all_tconn) {
  1954. list_del(&tconn->all_tconn); /* not _rcu no proc, not other threads */
  1955. /* synchronize_rcu(); */
  1956. kref_put(&tconn->kref, &conn_destroy);
  1957. }
  1958. drbd_destroy_mempools();
  1959. unregister_blkdev(DRBD_MAJOR, "drbd");
  1960. idr_destroy(&minors);
  1961. printk(KERN_INFO "drbd: module cleanup done.\n");
  1962. }
  1963. /**
  1964. * drbd_congested() - Callback for pdflush
  1965. * @congested_data: User data
  1966. * @bdi_bits: Bits pdflush is currently interested in
  1967. *
  1968. * Returns 1<<BDI_async_congested and/or 1<<BDI_sync_congested if we are congested.
  1969. */
  1970. static int drbd_congested(void *congested_data, int bdi_bits)
  1971. {
  1972. struct drbd_conf *mdev = congested_data;
  1973. struct request_queue *q;
  1974. char reason = '-';
  1975. int r = 0;
  1976. if (!may_inc_ap_bio(mdev)) {
  1977. /* DRBD has frozen IO */
  1978. r = bdi_bits;
  1979. reason = 'd';
  1980. goto out;
  1981. }
  1982. if (get_ldev(mdev)) {
  1983. q = bdev_get_queue(mdev->ldev->backing_bdev);
  1984. r = bdi_congested(&q->backing_dev_info, bdi_bits);
  1985. put_ldev(mdev);
  1986. if (r)
  1987. reason = 'b';
  1988. }
  1989. if (bdi_bits & (1 << BDI_async_congested) && test_bit(NET_CONGESTED, &mdev->tconn->flags)) {
  1990. r |= (1 << BDI_async_congested);
  1991. reason = reason == 'b' ? 'a' : 'n';
  1992. }
  1993. out:
  1994. mdev->congestion_reason = reason;
  1995. return r;
  1996. }
  1997. static void drbd_init_workqueue(struct drbd_work_queue* wq)
  1998. {
  1999. spin_lock_init(&wq->q_lock);
  2000. INIT_LIST_HEAD(&wq->q);
  2001. init_waitqueue_head(&wq->q_wait);
  2002. }
  2003. struct drbd_tconn *conn_get_by_name(const char *name)
  2004. {
  2005. struct drbd_tconn *tconn;
  2006. if (!name || !name[0])
  2007. return NULL;
  2008. rcu_read_lock();
  2009. list_for_each_entry_rcu(tconn, &drbd_tconns, all_tconn) {
  2010. if (!strcmp(tconn->name, name)) {
  2011. kref_get(&tconn->kref);
  2012. goto found;
  2013. }
  2014. }
  2015. tconn = NULL;
  2016. found:
  2017. rcu_read_unlock();
  2018. return tconn;
  2019. }
  2020. struct drbd_tconn *conn_get_by_addrs(void *my_addr, int my_addr_len,
  2021. void *peer_addr, int peer_addr_len)
  2022. {
  2023. struct drbd_tconn *tconn;
  2024. rcu_read_lock();
  2025. list_for_each_entry_rcu(tconn, &drbd_tconns, all_tconn) {
  2026. if (tconn->my_addr_len == my_addr_len &&
  2027. tconn->peer_addr_len == peer_addr_len &&
  2028. !memcmp(&tconn->my_addr, my_addr, my_addr_len) &&
  2029. !memcmp(&tconn->peer_addr, peer_addr, peer_addr_len)) {
  2030. kref_get(&tconn->kref);
  2031. goto found;
  2032. }
  2033. }
  2034. tconn = NULL;
  2035. found:
  2036. rcu_read_unlock();
  2037. return tconn;
  2038. }
  2039. static int drbd_alloc_socket(struct drbd_socket *socket)
  2040. {
  2041. socket->rbuf = (void *) __get_free_page(GFP_KERNEL);
  2042. if (!socket->rbuf)
  2043. return -ENOMEM;
  2044. socket->sbuf = (void *) __get_free_page(GFP_KERNEL);
  2045. if (!socket->sbuf)
  2046. return -ENOMEM;
  2047. return 0;
  2048. }
  2049. static void drbd_free_socket(struct drbd_socket *socket)
  2050. {
  2051. free_page((unsigned long) socket->sbuf);
  2052. free_page((unsigned long) socket->rbuf);
  2053. }
  2054. void conn_free_crypto(struct drbd_tconn *tconn)
  2055. {
  2056. drbd_free_sock(tconn);
  2057. crypto_free_hash(tconn->csums_tfm);
  2058. crypto_free_hash(tconn->verify_tfm);
  2059. crypto_free_hash(tconn->cram_hmac_tfm);
  2060. crypto_free_hash(tconn->integrity_tfm);
  2061. crypto_free_hash(tconn->peer_integrity_tfm);
  2062. kfree(tconn->int_dig_in);
  2063. kfree(tconn->int_dig_vv);
  2064. tconn->csums_tfm = NULL;
  2065. tconn->verify_tfm = NULL;
  2066. tconn->cram_hmac_tfm = NULL;
  2067. tconn->integrity_tfm = NULL;
  2068. tconn->peer_integrity_tfm = NULL;
  2069. tconn->int_dig_in = NULL;
  2070. tconn->int_dig_vv = NULL;
  2071. }
  2072. int set_resource_options(struct drbd_tconn *tconn, struct res_opts *res_opts)
  2073. {
  2074. cpumask_var_t new_cpu_mask;
  2075. int err;
  2076. if (!zalloc_cpumask_var(&new_cpu_mask, GFP_KERNEL))
  2077. return -ENOMEM;
  2078. /*
  2079. retcode = ERR_NOMEM;
  2080. drbd_msg_put_info("unable to allocate cpumask");
  2081. */
  2082. /* silently ignore cpu mask on UP kernel */
  2083. if (nr_cpu_ids > 1 && res_opts->cpu_mask[0] != 0) {
  2084. /* FIXME: Get rid of constant 32 here */
  2085. err = bitmap_parse(res_opts->cpu_mask, 32,
  2086. cpumask_bits(new_cpu_mask), nr_cpu_ids);
  2087. if (err) {
  2088. conn_warn(tconn, "bitmap_parse() failed with %d\n", err);
  2089. /* retcode = ERR_CPU_MASK_PARSE; */
  2090. goto fail;
  2091. }
  2092. }
  2093. tconn->res_opts = *res_opts;
  2094. if (!cpumask_equal(tconn->cpu_mask, new_cpu_mask)) {
  2095. cpumask_copy(tconn->cpu_mask, new_cpu_mask);
  2096. drbd_calc_cpu_mask(tconn);
  2097. tconn->receiver.reset_cpu_mask = 1;
  2098. tconn->asender.reset_cpu_mask = 1;
  2099. tconn->worker.reset_cpu_mask = 1;
  2100. }
  2101. err = 0;
  2102. fail:
  2103. free_cpumask_var(new_cpu_mask);
  2104. return err;
  2105. }
  2106. /* caller must be under genl_lock() */
  2107. struct drbd_tconn *conn_create(const char *name, struct res_opts *res_opts)
  2108. {
  2109. struct drbd_tconn *tconn;
  2110. tconn = kzalloc(sizeof(struct drbd_tconn), GFP_KERNEL);
  2111. if (!tconn)
  2112. return NULL;
  2113. tconn->name = kstrdup(name, GFP_KERNEL);
  2114. if (!tconn->name)
  2115. goto fail;
  2116. if (drbd_alloc_socket(&tconn->data))
  2117. goto fail;
  2118. if (drbd_alloc_socket(&tconn->meta))
  2119. goto fail;
  2120. if (!zalloc_cpumask_var(&tconn->cpu_mask, GFP_KERNEL))
  2121. goto fail;
  2122. if (set_resource_options(tconn, res_opts))
  2123. goto fail;
  2124. tconn->current_epoch = kzalloc(sizeof(struct drbd_epoch), GFP_KERNEL);
  2125. if (!tconn->current_epoch)
  2126. goto fail;
  2127. INIT_LIST_HEAD(&tconn->transfer_log);
  2128. INIT_LIST_HEAD(&tconn->current_epoch->list);
  2129. tconn->epochs = 1;
  2130. spin_lock_init(&tconn->epoch_lock);
  2131. tconn->write_ordering = WO_bdev_flush;
  2132. tconn->send.seen_any_write_yet = false;
  2133. tconn->send.current_epoch_nr = 0;
  2134. tconn->send.current_epoch_writes = 0;
  2135. tconn->cstate = C_STANDALONE;
  2136. mutex_init(&tconn->cstate_mutex);
  2137. spin_lock_init(&tconn->req_lock);
  2138. mutex_init(&tconn->conf_update);
  2139. init_waitqueue_head(&tconn->ping_wait);
  2140. idr_init(&tconn->volumes);
  2141. drbd_init_workqueue(&tconn->sender_work);
  2142. mutex_init(&tconn->data.mutex);
  2143. mutex_init(&tconn->meta.mutex);
  2144. drbd_thread_init(tconn, &tconn->receiver, drbdd_init, "receiver");
  2145. drbd_thread_init(tconn, &tconn->worker, drbd_worker, "worker");
  2146. drbd_thread_init(tconn, &tconn->asender, drbd_asender, "asender");
  2147. kref_init(&tconn->kref);
  2148. list_add_tail_rcu(&tconn->all_tconn, &drbd_tconns);
  2149. return tconn;
  2150. fail:
  2151. kfree(tconn->current_epoch);
  2152. free_cpumask_var(tconn->cpu_mask);
  2153. drbd_free_socket(&tconn->meta);
  2154. drbd_free_socket(&tconn->data);
  2155. kfree(tconn->name);
  2156. kfree(tconn);
  2157. return NULL;
  2158. }
  2159. void conn_destroy(struct kref *kref)
  2160. {
  2161. struct drbd_tconn *tconn = container_of(kref, struct drbd_tconn, kref);
  2162. if (atomic_read(&tconn->current_epoch->epoch_size) != 0)
  2163. conn_err(tconn, "epoch_size:%d\n", atomic_read(&tconn->current_epoch->epoch_size));
  2164. kfree(tconn->current_epoch);
  2165. idr_destroy(&tconn->volumes);
  2166. free_cpumask_var(tconn->cpu_mask);
  2167. drbd_free_socket(&tconn->meta);
  2168. drbd_free_socket(&tconn->data);
  2169. kfree(tconn->name);
  2170. kfree(tconn->int_dig_in);
  2171. kfree(tconn->int_dig_vv);
  2172. kfree(tconn);
  2173. }
  2174. enum drbd_ret_code conn_new_minor(struct drbd_tconn *tconn, unsigned int minor, int vnr)
  2175. {
  2176. struct drbd_conf *mdev;
  2177. struct gendisk *disk;
  2178. struct request_queue *q;
  2179. int vnr_got = vnr;
  2180. int minor_got = minor;
  2181. enum drbd_ret_code err = ERR_NOMEM;
  2182. mdev = minor_to_mdev(minor);
  2183. if (mdev)
  2184. return ERR_MINOR_EXISTS;
  2185. /* GFP_KERNEL, we are outside of all write-out paths */
  2186. mdev = kzalloc(sizeof(struct drbd_conf), GFP_KERNEL);
  2187. if (!mdev)
  2188. return ERR_NOMEM;
  2189. kref_get(&tconn->kref);
  2190. mdev->tconn = tconn;
  2191. mdev->minor = minor;
  2192. mdev->vnr = vnr;
  2193. drbd_init_set_defaults(mdev);
  2194. q = blk_alloc_queue(GFP_KERNEL);
  2195. if (!q)
  2196. goto out_no_q;
  2197. mdev->rq_queue = q;
  2198. q->queuedata = mdev;
  2199. disk = alloc_disk(1);
  2200. if (!disk)
  2201. goto out_no_disk;
  2202. mdev->vdisk = disk;
  2203. set_disk_ro(disk, true);
  2204. disk->queue = q;
  2205. disk->major = DRBD_MAJOR;
  2206. disk->first_minor = minor;
  2207. disk->fops = &drbd_ops;
  2208. sprintf(disk->disk_name, "drbd%d", minor);
  2209. disk->private_data = mdev;
  2210. mdev->this_bdev = bdget(MKDEV(DRBD_MAJOR, minor));
  2211. /* we have no partitions. we contain only ourselves. */
  2212. mdev->this_bdev->bd_contains = mdev->this_bdev;
  2213. q->backing_dev_info.congested_fn = drbd_congested;
  2214. q->backing_dev_info.congested_data = mdev;
  2215. blk_queue_make_request(q, drbd_make_request);
  2216. /* Setting the max_hw_sectors to an odd value of 8kibyte here
  2217. This triggers a max_bio_size message upon first attach or connect */
  2218. blk_queue_max_hw_sectors(q, DRBD_MAX_BIO_SIZE_SAFE >> 8);
  2219. blk_queue_bounce_limit(q, BLK_BOUNCE_ANY);
  2220. blk_queue_merge_bvec(q, drbd_merge_bvec);
  2221. q->queue_lock = &mdev->tconn->req_lock; /* needed since we use */
  2222. mdev->md_io_page = alloc_page(GFP_KERNEL);
  2223. if (!mdev->md_io_page)
  2224. goto out_no_io_page;
  2225. if (drbd_bm_init(mdev))
  2226. goto out_no_bitmap;
  2227. mdev->read_requests = RB_ROOT;
  2228. mdev->write_requests = RB_ROOT;
  2229. if (!idr_pre_get(&minors, GFP_KERNEL))
  2230. goto out_no_minor_idr;
  2231. if (idr_get_new_above(&minors, mdev, minor, &minor_got))
  2232. goto out_no_minor_idr;
  2233. if (minor_got != minor) {
  2234. err = ERR_MINOR_EXISTS;
  2235. drbd_msg_put_info("requested minor exists already");
  2236. goto out_idr_remove_minor;
  2237. }
  2238. if (!idr_pre_get(&tconn->volumes, GFP_KERNEL))
  2239. goto out_idr_remove_minor;
  2240. if (idr_get_new_above(&tconn->volumes, mdev, vnr, &vnr_got))
  2241. goto out_idr_remove_minor;
  2242. if (vnr_got != vnr) {
  2243. err = ERR_INVALID_REQUEST;
  2244. drbd_msg_put_info("requested volume exists already");
  2245. goto out_idr_remove_vol;
  2246. }
  2247. add_disk(disk);
  2248. kref_init(&mdev->kref); /* one ref for both idrs and the the add_disk */
  2249. /* inherit the connection state */
  2250. mdev->state.conn = tconn->cstate;
  2251. if (mdev->state.conn == C_WF_REPORT_PARAMS)
  2252. drbd_connected(mdev);
  2253. return NO_ERROR;
  2254. out_idr_remove_vol:
  2255. idr_remove(&tconn->volumes, vnr_got);
  2256. out_idr_remove_minor:
  2257. idr_remove(&minors, minor_got);
  2258. synchronize_rcu();
  2259. out_no_minor_idr:
  2260. drbd_bm_cleanup(mdev);
  2261. out_no_bitmap:
  2262. __free_page(mdev->md_io_page);
  2263. out_no_io_page:
  2264. put_disk(disk);
  2265. out_no_disk:
  2266. blk_cleanup_queue(q);
  2267. out_no_q:
  2268. kfree(mdev);
  2269. kref_put(&tconn->kref, &conn_destroy);
  2270. return err;
  2271. }
  2272. int __init drbd_init(void)
  2273. {
  2274. int err;
  2275. if (minor_count < DRBD_MINOR_COUNT_MIN || minor_count > DRBD_MINOR_COUNT_MAX) {
  2276. printk(KERN_ERR
  2277. "drbd: invalid minor_count (%d)\n", minor_count);
  2278. #ifdef MODULE
  2279. return -EINVAL;
  2280. #else
  2281. minor_count = DRBD_MINOR_COUNT_DEF;
  2282. #endif
  2283. }
  2284. err = register_blkdev(DRBD_MAJOR, "drbd");
  2285. if (err) {
  2286. printk(KERN_ERR
  2287. "drbd: unable to register block device major %d\n",
  2288. DRBD_MAJOR);
  2289. return err;
  2290. }
  2291. err = drbd_genl_register();
  2292. if (err) {
  2293. printk(KERN_ERR "drbd: unable to register generic netlink family\n");
  2294. goto fail;
  2295. }
  2296. register_reboot_notifier(&drbd_notifier);
  2297. /*
  2298. * allocate all necessary structs
  2299. */
  2300. err = -ENOMEM;
  2301. init_waitqueue_head(&drbd_pp_wait);
  2302. drbd_proc = NULL; /* play safe for drbd_cleanup */
  2303. idr_init(&minors);
  2304. err = drbd_create_mempools();
  2305. if (err)
  2306. goto fail;
  2307. drbd_proc = proc_create_data("drbd", S_IFREG | S_IRUGO , NULL, &drbd_proc_fops, NULL);
  2308. if (!drbd_proc) {
  2309. printk(KERN_ERR "drbd: unable to register proc file\n");
  2310. goto fail;
  2311. }
  2312. rwlock_init(&global_state_lock);
  2313. INIT_LIST_HEAD(&drbd_tconns);
  2314. retry.wq = create_singlethread_workqueue("drbd-reissue");
  2315. if (!retry.wq) {
  2316. printk(KERN_ERR "drbd: unable to create retry workqueue\n");
  2317. goto fail;
  2318. }
  2319. INIT_WORK(&retry.worker, do_retry);
  2320. spin_lock_init(&retry.lock);
  2321. INIT_LIST_HEAD(&retry.writes);
  2322. printk(KERN_INFO "drbd: initialized. "
  2323. "Version: " REL_VERSION " (api:%d/proto:%d-%d)\n",
  2324. API_VERSION, PRO_VERSION_MIN, PRO_VERSION_MAX);
  2325. printk(KERN_INFO "drbd: %s\n", drbd_buildtag());
  2326. printk(KERN_INFO "drbd: registered as block device major %d\n",
  2327. DRBD_MAJOR);
  2328. return 0; /* Success! */
  2329. fail:
  2330. drbd_cleanup();
  2331. if (err == -ENOMEM)
  2332. /* currently always the case */
  2333. printk(KERN_ERR "drbd: ran out of memory\n");
  2334. else
  2335. printk(KERN_ERR "drbd: initialization failure\n");
  2336. return err;
  2337. }
  2338. void drbd_free_bc(struct drbd_backing_dev *ldev)
  2339. {
  2340. if (ldev == NULL)
  2341. return;
  2342. blkdev_put(ldev->backing_bdev, FMODE_READ | FMODE_WRITE | FMODE_EXCL);
  2343. blkdev_put(ldev->md_bdev, FMODE_READ | FMODE_WRITE | FMODE_EXCL);
  2344. kfree(ldev);
  2345. }
  2346. void drbd_free_sock(struct drbd_tconn *tconn)
  2347. {
  2348. if (tconn->data.socket) {
  2349. mutex_lock(&tconn->data.mutex);
  2350. kernel_sock_shutdown(tconn->data.socket, SHUT_RDWR);
  2351. sock_release(tconn->data.socket);
  2352. tconn->data.socket = NULL;
  2353. mutex_unlock(&tconn->data.mutex);
  2354. }
  2355. if (tconn->meta.socket) {
  2356. mutex_lock(&tconn->meta.mutex);
  2357. kernel_sock_shutdown(tconn->meta.socket, SHUT_RDWR);
  2358. sock_release(tconn->meta.socket);
  2359. tconn->meta.socket = NULL;
  2360. mutex_unlock(&tconn->meta.mutex);
  2361. }
  2362. }
  2363. /* meta data management */
  2364. struct meta_data_on_disk {
  2365. u64 la_size; /* last agreed size. */
  2366. u64 uuid[UI_SIZE]; /* UUIDs. */
  2367. u64 device_uuid;
  2368. u64 reserved_u64_1;
  2369. u32 flags; /* MDF */
  2370. u32 magic;
  2371. u32 md_size_sect;
  2372. u32 al_offset; /* offset to this block */
  2373. u32 al_nr_extents; /* important for restoring the AL */
  2374. /* `-- act_log->nr_elements <-- ldev->dc.al_extents */
  2375. u32 bm_offset; /* offset to the bitmap, from here */
  2376. u32 bm_bytes_per_bit; /* BM_BLOCK_SIZE */
  2377. u32 la_peer_max_bio_size; /* last peer max_bio_size */
  2378. u32 reserved_u32[3];
  2379. } __packed;
  2380. /**
  2381. * drbd_md_sync() - Writes the meta data super block if the MD_DIRTY flag bit is set
  2382. * @mdev: DRBD device.
  2383. */
  2384. void drbd_md_sync(struct drbd_conf *mdev)
  2385. {
  2386. struct meta_data_on_disk *buffer;
  2387. sector_t sector;
  2388. int i;
  2389. del_timer(&mdev->md_sync_timer);
  2390. /* timer may be rearmed by drbd_md_mark_dirty() now. */
  2391. if (!test_and_clear_bit(MD_DIRTY, &mdev->flags))
  2392. return;
  2393. /* We use here D_FAILED and not D_ATTACHING because we try to write
  2394. * metadata even if we detach due to a disk failure! */
  2395. if (!get_ldev_if_state(mdev, D_FAILED))
  2396. return;
  2397. buffer = drbd_md_get_buffer(mdev);
  2398. if (!buffer)
  2399. goto out;
  2400. memset(buffer, 0, 512);
  2401. buffer->la_size = cpu_to_be64(drbd_get_capacity(mdev->this_bdev));
  2402. for (i = UI_CURRENT; i < UI_SIZE; i++)
  2403. buffer->uuid[i] = cpu_to_be64(mdev->ldev->md.uuid[i]);
  2404. buffer->flags = cpu_to_be32(mdev->ldev->md.flags);
  2405. buffer->magic = cpu_to_be32(DRBD_MD_MAGIC_84_UNCLEAN);
  2406. buffer->md_size_sect = cpu_to_be32(mdev->ldev->md.md_size_sect);
  2407. buffer->al_offset = cpu_to_be32(mdev->ldev->md.al_offset);
  2408. buffer->al_nr_extents = cpu_to_be32(mdev->act_log->nr_elements);
  2409. buffer->bm_bytes_per_bit = cpu_to_be32(BM_BLOCK_SIZE);
  2410. buffer->device_uuid = cpu_to_be64(mdev->ldev->md.device_uuid);
  2411. buffer->bm_offset = cpu_to_be32(mdev->ldev->md.bm_offset);
  2412. buffer->la_peer_max_bio_size = cpu_to_be32(mdev->peer_max_bio_size);
  2413. D_ASSERT(drbd_md_ss__(mdev, mdev->ldev) == mdev->ldev->md.md_offset);
  2414. sector = mdev->ldev->md.md_offset;
  2415. if (drbd_md_sync_page_io(mdev, mdev->ldev, sector, WRITE)) {
  2416. /* this was a try anyways ... */
  2417. dev_err(DEV, "meta data update failed!\n");
  2418. drbd_chk_io_error(mdev, 1, true);
  2419. }
  2420. /* Update mdev->ldev->md.la_size_sect,
  2421. * since we updated it on metadata. */
  2422. mdev->ldev->md.la_size_sect = drbd_get_capacity(mdev->this_bdev);
  2423. drbd_md_put_buffer(mdev);
  2424. out:
  2425. put_ldev(mdev);
  2426. }
  2427. /**
  2428. * drbd_md_read() - Reads in the meta data super block
  2429. * @mdev: DRBD device.
  2430. * @bdev: Device from which the meta data should be read in.
  2431. *
  2432. * Return 0 (NO_ERROR) on success, and an enum drbd_ret_code in case
  2433. * something goes wrong.
  2434. */
  2435. int drbd_md_read(struct drbd_conf *mdev, struct drbd_backing_dev *bdev)
  2436. {
  2437. struct meta_data_on_disk *buffer;
  2438. u32 magic, flags;
  2439. int i, rv = NO_ERROR;
  2440. if (!get_ldev_if_state(mdev, D_ATTACHING))
  2441. return ERR_IO_MD_DISK;
  2442. buffer = drbd_md_get_buffer(mdev);
  2443. if (!buffer)
  2444. goto out;
  2445. if (drbd_md_sync_page_io(mdev, bdev, bdev->md.md_offset, READ)) {
  2446. /* NOTE: can't do normal error processing here as this is
  2447. called BEFORE disk is attached */
  2448. dev_err(DEV, "Error while reading metadata.\n");
  2449. rv = ERR_IO_MD_DISK;
  2450. goto err;
  2451. }
  2452. magic = be32_to_cpu(buffer->magic);
  2453. flags = be32_to_cpu(buffer->flags);
  2454. if (magic == DRBD_MD_MAGIC_84_UNCLEAN ||
  2455. (magic == DRBD_MD_MAGIC_08 && !(flags & MDF_AL_CLEAN))) {
  2456. /* btw: that's Activity Log clean, not "all" clean. */
  2457. dev_err(DEV, "Found unclean meta data. Did you \"drbdadm apply-al\"?\n");
  2458. rv = ERR_MD_UNCLEAN;
  2459. goto err;
  2460. }
  2461. if (magic != DRBD_MD_MAGIC_08) {
  2462. if (magic == DRBD_MD_MAGIC_07)
  2463. dev_err(DEV, "Found old (0.7) meta data magic. Did you \"drbdadm create-md\"?\n");
  2464. else
  2465. dev_err(DEV, "Meta data magic not found. Did you \"drbdadm create-md\"?\n");
  2466. rv = ERR_MD_INVALID;
  2467. goto err;
  2468. }
  2469. if (be32_to_cpu(buffer->al_offset) != bdev->md.al_offset) {
  2470. dev_err(DEV, "unexpected al_offset: %d (expected %d)\n",
  2471. be32_to_cpu(buffer->al_offset), bdev->md.al_offset);
  2472. rv = ERR_MD_INVALID;
  2473. goto err;
  2474. }
  2475. if (be32_to_cpu(buffer->bm_offset) != bdev->md.bm_offset) {
  2476. dev_err(DEV, "unexpected bm_offset: %d (expected %d)\n",
  2477. be32_to_cpu(buffer->bm_offset), bdev->md.bm_offset);
  2478. rv = ERR_MD_INVALID;
  2479. goto err;
  2480. }
  2481. if (be32_to_cpu(buffer->md_size_sect) != bdev->md.md_size_sect) {
  2482. dev_err(DEV, "unexpected md_size: %u (expected %u)\n",
  2483. be32_to_cpu(buffer->md_size_sect), bdev->md.md_size_sect);
  2484. rv = ERR_MD_INVALID;
  2485. goto err;
  2486. }
  2487. if (be32_to_cpu(buffer->bm_bytes_per_bit) != BM_BLOCK_SIZE) {
  2488. dev_err(DEV, "unexpected bm_bytes_per_bit: %u (expected %u)\n",
  2489. be32_to_cpu(buffer->bm_bytes_per_bit), BM_BLOCK_SIZE);
  2490. rv = ERR_MD_INVALID;
  2491. goto err;
  2492. }
  2493. bdev->md.la_size_sect = be64_to_cpu(buffer->la_size);
  2494. for (i = UI_CURRENT; i < UI_SIZE; i++)
  2495. bdev->md.uuid[i] = be64_to_cpu(buffer->uuid[i]);
  2496. bdev->md.flags = be32_to_cpu(buffer->flags);
  2497. bdev->md.device_uuid = be64_to_cpu(buffer->device_uuid);
  2498. spin_lock_irq(&mdev->tconn->req_lock);
  2499. if (mdev->state.conn < C_CONNECTED) {
  2500. int peer;
  2501. peer = be32_to_cpu(buffer->la_peer_max_bio_size);
  2502. peer = max_t(int, peer, DRBD_MAX_BIO_SIZE_SAFE);
  2503. mdev->peer_max_bio_size = peer;
  2504. }
  2505. spin_unlock_irq(&mdev->tconn->req_lock);
  2506. err:
  2507. drbd_md_put_buffer(mdev);
  2508. out:
  2509. put_ldev(mdev);
  2510. return rv;
  2511. }
  2512. /**
  2513. * drbd_md_mark_dirty() - Mark meta data super block as dirty
  2514. * @mdev: DRBD device.
  2515. *
  2516. * Call this function if you change anything that should be written to
  2517. * the meta-data super block. This function sets MD_DIRTY, and starts a
  2518. * timer that ensures that within five seconds you have to call drbd_md_sync().
  2519. */
  2520. #ifdef DEBUG
  2521. void drbd_md_mark_dirty_(struct drbd_conf *mdev, unsigned int line, const char *func)
  2522. {
  2523. if (!test_and_set_bit(MD_DIRTY, &mdev->flags)) {
  2524. mod_timer(&mdev->md_sync_timer, jiffies + HZ);
  2525. mdev->last_md_mark_dirty.line = line;
  2526. mdev->last_md_mark_dirty.func = func;
  2527. }
  2528. }
  2529. #else
  2530. void drbd_md_mark_dirty(struct drbd_conf *mdev)
  2531. {
  2532. if (!test_and_set_bit(MD_DIRTY, &mdev->flags))
  2533. mod_timer(&mdev->md_sync_timer, jiffies + 5*HZ);
  2534. }
  2535. #endif
  2536. static void drbd_uuid_move_history(struct drbd_conf *mdev) __must_hold(local)
  2537. {
  2538. int i;
  2539. for (i = UI_HISTORY_START; i < UI_HISTORY_END; i++)
  2540. mdev->ldev->md.uuid[i+1] = mdev->ldev->md.uuid[i];
  2541. }
  2542. void _drbd_uuid_set(struct drbd_conf *mdev, int idx, u64 val) __must_hold(local)
  2543. {
  2544. if (idx == UI_CURRENT) {
  2545. if (mdev->state.role == R_PRIMARY)
  2546. val |= 1;
  2547. else
  2548. val &= ~((u64)1);
  2549. drbd_set_ed_uuid(mdev, val);
  2550. }
  2551. mdev->ldev->md.uuid[idx] = val;
  2552. drbd_md_mark_dirty(mdev);
  2553. }
  2554. void drbd_uuid_set(struct drbd_conf *mdev, int idx, u64 val) __must_hold(local)
  2555. {
  2556. if (mdev->ldev->md.uuid[idx]) {
  2557. drbd_uuid_move_history(mdev);
  2558. mdev->ldev->md.uuid[UI_HISTORY_START] = mdev->ldev->md.uuid[idx];
  2559. }
  2560. _drbd_uuid_set(mdev, idx, val);
  2561. }
  2562. /**
  2563. * drbd_uuid_new_current() - Creates a new current UUID
  2564. * @mdev: DRBD device.
  2565. *
  2566. * Creates a new current UUID, and rotates the old current UUID into
  2567. * the bitmap slot. Causes an incremental resync upon next connect.
  2568. */
  2569. void drbd_uuid_new_current(struct drbd_conf *mdev) __must_hold(local)
  2570. {
  2571. u64 val;
  2572. unsigned long long bm_uuid = mdev->ldev->md.uuid[UI_BITMAP];
  2573. if (bm_uuid)
  2574. dev_warn(DEV, "bm UUID was already set: %llX\n", bm_uuid);
  2575. mdev->ldev->md.uuid[UI_BITMAP] = mdev->ldev->md.uuid[UI_CURRENT];
  2576. get_random_bytes(&val, sizeof(u64));
  2577. _drbd_uuid_set(mdev, UI_CURRENT, val);
  2578. drbd_print_uuids(mdev, "new current UUID");
  2579. /* get it to stable storage _now_ */
  2580. drbd_md_sync(mdev);
  2581. }
  2582. void drbd_uuid_set_bm(struct drbd_conf *mdev, u64 val) __must_hold(local)
  2583. {
  2584. if (mdev->ldev->md.uuid[UI_BITMAP] == 0 && val == 0)
  2585. return;
  2586. if (val == 0) {
  2587. drbd_uuid_move_history(mdev);
  2588. mdev->ldev->md.uuid[UI_HISTORY_START] = mdev->ldev->md.uuid[UI_BITMAP];
  2589. mdev->ldev->md.uuid[UI_BITMAP] = 0;
  2590. } else {
  2591. unsigned long long bm_uuid = mdev->ldev->md.uuid[UI_BITMAP];
  2592. if (bm_uuid)
  2593. dev_warn(DEV, "bm UUID was already set: %llX\n", bm_uuid);
  2594. mdev->ldev->md.uuid[UI_BITMAP] = val & ~((u64)1);
  2595. }
  2596. drbd_md_mark_dirty(mdev);
  2597. }
  2598. /**
  2599. * drbd_bmio_set_n_write() - io_fn for drbd_queue_bitmap_io() or drbd_bitmap_io()
  2600. * @mdev: DRBD device.
  2601. *
  2602. * Sets all bits in the bitmap and writes the whole bitmap to stable storage.
  2603. */
  2604. int drbd_bmio_set_n_write(struct drbd_conf *mdev)
  2605. {
  2606. int rv = -EIO;
  2607. if (get_ldev_if_state(mdev, D_ATTACHING)) {
  2608. drbd_md_set_flag(mdev, MDF_FULL_SYNC);
  2609. drbd_md_sync(mdev);
  2610. drbd_bm_set_all(mdev);
  2611. rv = drbd_bm_write(mdev);
  2612. if (!rv) {
  2613. drbd_md_clear_flag(mdev, MDF_FULL_SYNC);
  2614. drbd_md_sync(mdev);
  2615. }
  2616. put_ldev(mdev);
  2617. }
  2618. return rv;
  2619. }
  2620. /**
  2621. * drbd_bmio_clear_n_write() - io_fn for drbd_queue_bitmap_io() or drbd_bitmap_io()
  2622. * @mdev: DRBD device.
  2623. *
  2624. * Clears all bits in the bitmap and writes the whole bitmap to stable storage.
  2625. */
  2626. int drbd_bmio_clear_n_write(struct drbd_conf *mdev)
  2627. {
  2628. int rv = -EIO;
  2629. drbd_resume_al(mdev);
  2630. if (get_ldev_if_state(mdev, D_ATTACHING)) {
  2631. drbd_bm_clear_all(mdev);
  2632. rv = drbd_bm_write(mdev);
  2633. put_ldev(mdev);
  2634. }
  2635. return rv;
  2636. }
  2637. static int w_bitmap_io(struct drbd_work *w, int unused)
  2638. {
  2639. struct bm_io_work *work = container_of(w, struct bm_io_work, w);
  2640. struct drbd_conf *mdev = w->mdev;
  2641. int rv = -EIO;
  2642. D_ASSERT(atomic_read(&mdev->ap_bio_cnt) == 0);
  2643. if (get_ldev(mdev)) {
  2644. drbd_bm_lock(mdev, work->why, work->flags);
  2645. rv = work->io_fn(mdev);
  2646. drbd_bm_unlock(mdev);
  2647. put_ldev(mdev);
  2648. }
  2649. clear_bit_unlock(BITMAP_IO, &mdev->flags);
  2650. wake_up(&mdev->misc_wait);
  2651. if (work->done)
  2652. work->done(mdev, rv);
  2653. clear_bit(BITMAP_IO_QUEUED, &mdev->flags);
  2654. work->why = NULL;
  2655. work->flags = 0;
  2656. return 0;
  2657. }
  2658. void drbd_ldev_destroy(struct drbd_conf *mdev)
  2659. {
  2660. lc_destroy(mdev->resync);
  2661. mdev->resync = NULL;
  2662. lc_destroy(mdev->act_log);
  2663. mdev->act_log = NULL;
  2664. __no_warn(local,
  2665. drbd_free_bc(mdev->ldev);
  2666. mdev->ldev = NULL;);
  2667. clear_bit(GO_DISKLESS, &mdev->flags);
  2668. }
  2669. static int w_go_diskless(struct drbd_work *w, int unused)
  2670. {
  2671. struct drbd_conf *mdev = w->mdev;
  2672. D_ASSERT(mdev->state.disk == D_FAILED);
  2673. /* we cannot assert local_cnt == 0 here, as get_ldev_if_state will
  2674. * inc/dec it frequently. Once we are D_DISKLESS, no one will touch
  2675. * the protected members anymore, though, so once put_ldev reaches zero
  2676. * again, it will be safe to free them. */
  2677. drbd_force_state(mdev, NS(disk, D_DISKLESS));
  2678. return 0;
  2679. }
  2680. void drbd_go_diskless(struct drbd_conf *mdev)
  2681. {
  2682. D_ASSERT(mdev->state.disk == D_FAILED);
  2683. if (!test_and_set_bit(GO_DISKLESS, &mdev->flags))
  2684. drbd_queue_work(&mdev->tconn->sender_work, &mdev->go_diskless);
  2685. }
  2686. /**
  2687. * drbd_queue_bitmap_io() - Queues an IO operation on the whole bitmap
  2688. * @mdev: DRBD device.
  2689. * @io_fn: IO callback to be called when bitmap IO is possible
  2690. * @done: callback to be called after the bitmap IO was performed
  2691. * @why: Descriptive text of the reason for doing the IO
  2692. *
  2693. * While IO on the bitmap happens we freeze application IO thus we ensure
  2694. * that drbd_set_out_of_sync() can not be called. This function MAY ONLY be
  2695. * called from worker context. It MUST NOT be used while a previous such
  2696. * work is still pending!
  2697. */
  2698. void drbd_queue_bitmap_io(struct drbd_conf *mdev,
  2699. int (*io_fn)(struct drbd_conf *),
  2700. void (*done)(struct drbd_conf *, int),
  2701. char *why, enum bm_flag flags)
  2702. {
  2703. D_ASSERT(current == mdev->tconn->worker.task);
  2704. D_ASSERT(!test_bit(BITMAP_IO_QUEUED, &mdev->flags));
  2705. D_ASSERT(!test_bit(BITMAP_IO, &mdev->flags));
  2706. D_ASSERT(list_empty(&mdev->bm_io_work.w.list));
  2707. if (mdev->bm_io_work.why)
  2708. dev_err(DEV, "FIXME going to queue '%s' but '%s' still pending?\n",
  2709. why, mdev->bm_io_work.why);
  2710. mdev->bm_io_work.io_fn = io_fn;
  2711. mdev->bm_io_work.done = done;
  2712. mdev->bm_io_work.why = why;
  2713. mdev->bm_io_work.flags = flags;
  2714. spin_lock_irq(&mdev->tconn->req_lock);
  2715. set_bit(BITMAP_IO, &mdev->flags);
  2716. if (atomic_read(&mdev->ap_bio_cnt) == 0) {
  2717. if (!test_and_set_bit(BITMAP_IO_QUEUED, &mdev->flags))
  2718. drbd_queue_work(&mdev->tconn->sender_work, &mdev->bm_io_work.w);
  2719. }
  2720. spin_unlock_irq(&mdev->tconn->req_lock);
  2721. }
  2722. /**
  2723. * drbd_bitmap_io() - Does an IO operation on the whole bitmap
  2724. * @mdev: DRBD device.
  2725. * @io_fn: IO callback to be called when bitmap IO is possible
  2726. * @why: Descriptive text of the reason for doing the IO
  2727. *
  2728. * freezes application IO while that the actual IO operations runs. This
  2729. * functions MAY NOT be called from worker context.
  2730. */
  2731. int drbd_bitmap_io(struct drbd_conf *mdev, int (*io_fn)(struct drbd_conf *),
  2732. char *why, enum bm_flag flags)
  2733. {
  2734. int rv;
  2735. D_ASSERT(current != mdev->tconn->worker.task);
  2736. if ((flags & BM_LOCKED_SET_ALLOWED) == 0)
  2737. drbd_suspend_io(mdev);
  2738. drbd_bm_lock(mdev, why, flags);
  2739. rv = io_fn(mdev);
  2740. drbd_bm_unlock(mdev);
  2741. if ((flags & BM_LOCKED_SET_ALLOWED) == 0)
  2742. drbd_resume_io(mdev);
  2743. return rv;
  2744. }
  2745. void drbd_md_set_flag(struct drbd_conf *mdev, int flag) __must_hold(local)
  2746. {
  2747. if ((mdev->ldev->md.flags & flag) != flag) {
  2748. drbd_md_mark_dirty(mdev);
  2749. mdev->ldev->md.flags |= flag;
  2750. }
  2751. }
  2752. void drbd_md_clear_flag(struct drbd_conf *mdev, int flag) __must_hold(local)
  2753. {
  2754. if ((mdev->ldev->md.flags & flag) != 0) {
  2755. drbd_md_mark_dirty(mdev);
  2756. mdev->ldev->md.flags &= ~flag;
  2757. }
  2758. }
  2759. int drbd_md_test_flag(struct drbd_backing_dev *bdev, int flag)
  2760. {
  2761. return (bdev->md.flags & flag) != 0;
  2762. }
  2763. static void md_sync_timer_fn(unsigned long data)
  2764. {
  2765. struct drbd_conf *mdev = (struct drbd_conf *) data;
  2766. drbd_queue_work_front(&mdev->tconn->sender_work, &mdev->md_sync_work);
  2767. }
  2768. static int w_md_sync(struct drbd_work *w, int unused)
  2769. {
  2770. struct drbd_conf *mdev = w->mdev;
  2771. dev_warn(DEV, "md_sync_timer expired! Worker calls drbd_md_sync().\n");
  2772. #ifdef DEBUG
  2773. dev_warn(DEV, "last md_mark_dirty: %s:%u\n",
  2774. mdev->last_md_mark_dirty.func, mdev->last_md_mark_dirty.line);
  2775. #endif
  2776. drbd_md_sync(mdev);
  2777. return 0;
  2778. }
  2779. const char *cmdname(enum drbd_packet cmd)
  2780. {
  2781. /* THINK may need to become several global tables
  2782. * when we want to support more than
  2783. * one PRO_VERSION */
  2784. static const char *cmdnames[] = {
  2785. [P_DATA] = "Data",
  2786. [P_DATA_REPLY] = "DataReply",
  2787. [P_RS_DATA_REPLY] = "RSDataReply",
  2788. [P_BARRIER] = "Barrier",
  2789. [P_BITMAP] = "ReportBitMap",
  2790. [P_BECOME_SYNC_TARGET] = "BecomeSyncTarget",
  2791. [P_BECOME_SYNC_SOURCE] = "BecomeSyncSource",
  2792. [P_UNPLUG_REMOTE] = "UnplugRemote",
  2793. [P_DATA_REQUEST] = "DataRequest",
  2794. [P_RS_DATA_REQUEST] = "RSDataRequest",
  2795. [P_SYNC_PARAM] = "SyncParam",
  2796. [P_SYNC_PARAM89] = "SyncParam89",
  2797. [P_PROTOCOL] = "ReportProtocol",
  2798. [P_UUIDS] = "ReportUUIDs",
  2799. [P_SIZES] = "ReportSizes",
  2800. [P_STATE] = "ReportState",
  2801. [P_SYNC_UUID] = "ReportSyncUUID",
  2802. [P_AUTH_CHALLENGE] = "AuthChallenge",
  2803. [P_AUTH_RESPONSE] = "AuthResponse",
  2804. [P_PING] = "Ping",
  2805. [P_PING_ACK] = "PingAck",
  2806. [P_RECV_ACK] = "RecvAck",
  2807. [P_WRITE_ACK] = "WriteAck",
  2808. [P_RS_WRITE_ACK] = "RSWriteAck",
  2809. [P_DISCARD_WRITE] = "DiscardWrite",
  2810. [P_NEG_ACK] = "NegAck",
  2811. [P_NEG_DREPLY] = "NegDReply",
  2812. [P_NEG_RS_DREPLY] = "NegRSDReply",
  2813. [P_BARRIER_ACK] = "BarrierAck",
  2814. [P_STATE_CHG_REQ] = "StateChgRequest",
  2815. [P_STATE_CHG_REPLY] = "StateChgReply",
  2816. [P_OV_REQUEST] = "OVRequest",
  2817. [P_OV_REPLY] = "OVReply",
  2818. [P_OV_RESULT] = "OVResult",
  2819. [P_CSUM_RS_REQUEST] = "CsumRSRequest",
  2820. [P_RS_IS_IN_SYNC] = "CsumRSIsInSync",
  2821. [P_COMPRESSED_BITMAP] = "CBitmap",
  2822. [P_DELAY_PROBE] = "DelayProbe",
  2823. [P_OUT_OF_SYNC] = "OutOfSync",
  2824. [P_RETRY_WRITE] = "RetryWrite",
  2825. [P_RS_CANCEL] = "RSCancel",
  2826. [P_CONN_ST_CHG_REQ] = "conn_st_chg_req",
  2827. [P_CONN_ST_CHG_REPLY] = "conn_st_chg_reply",
  2828. [P_RETRY_WRITE] = "retry_write",
  2829. [P_PROTOCOL_UPDATE] = "protocol_update",
  2830. /* enum drbd_packet, but not commands - obsoleted flags:
  2831. * P_MAY_IGNORE
  2832. * P_MAX_OPT_CMD
  2833. */
  2834. };
  2835. /* too big for the array: 0xfffX */
  2836. if (cmd == P_INITIAL_META)
  2837. return "InitialMeta";
  2838. if (cmd == P_INITIAL_DATA)
  2839. return "InitialData";
  2840. if (cmd == P_CONNECTION_FEATURES)
  2841. return "ConnectionFeatures";
  2842. if (cmd >= ARRAY_SIZE(cmdnames))
  2843. return "Unknown";
  2844. return cmdnames[cmd];
  2845. }
  2846. /**
  2847. * drbd_wait_misc - wait for a request to make progress
  2848. * @mdev: device associated with the request
  2849. * @i: the struct drbd_interval embedded in struct drbd_request or
  2850. * struct drbd_peer_request
  2851. */
  2852. int drbd_wait_misc(struct drbd_conf *mdev, struct drbd_interval *i)
  2853. {
  2854. struct net_conf *nc;
  2855. DEFINE_WAIT(wait);
  2856. long timeout;
  2857. rcu_read_lock();
  2858. nc = rcu_dereference(mdev->tconn->net_conf);
  2859. if (!nc) {
  2860. rcu_read_unlock();
  2861. return -ETIMEDOUT;
  2862. }
  2863. timeout = nc->ko_count ? nc->timeout * HZ / 10 * nc->ko_count : MAX_SCHEDULE_TIMEOUT;
  2864. rcu_read_unlock();
  2865. /* Indicate to wake up mdev->misc_wait on progress. */
  2866. i->waiting = true;
  2867. prepare_to_wait(&mdev->misc_wait, &wait, TASK_INTERRUPTIBLE);
  2868. spin_unlock_irq(&mdev->tconn->req_lock);
  2869. timeout = schedule_timeout(timeout);
  2870. finish_wait(&mdev->misc_wait, &wait);
  2871. spin_lock_irq(&mdev->tconn->req_lock);
  2872. if (!timeout || mdev->state.conn < C_CONNECTED)
  2873. return -ETIMEDOUT;
  2874. if (signal_pending(current))
  2875. return -ERESTARTSYS;
  2876. return 0;
  2877. }
  2878. #ifdef CONFIG_DRBD_FAULT_INJECTION
  2879. /* Fault insertion support including random number generator shamelessly
  2880. * stolen from kernel/rcutorture.c */
  2881. struct fault_random_state {
  2882. unsigned long state;
  2883. unsigned long count;
  2884. };
  2885. #define FAULT_RANDOM_MULT 39916801 /* prime */
  2886. #define FAULT_RANDOM_ADD 479001701 /* prime */
  2887. #define FAULT_RANDOM_REFRESH 10000
  2888. /*
  2889. * Crude but fast random-number generator. Uses a linear congruential
  2890. * generator, with occasional help from get_random_bytes().
  2891. */
  2892. static unsigned long
  2893. _drbd_fault_random(struct fault_random_state *rsp)
  2894. {
  2895. long refresh;
  2896. if (!rsp->count--) {
  2897. get_random_bytes(&refresh, sizeof(refresh));
  2898. rsp->state += refresh;
  2899. rsp->count = FAULT_RANDOM_REFRESH;
  2900. }
  2901. rsp->state = rsp->state * FAULT_RANDOM_MULT + FAULT_RANDOM_ADD;
  2902. return swahw32(rsp->state);
  2903. }
  2904. static char *
  2905. _drbd_fault_str(unsigned int type) {
  2906. static char *_faults[] = {
  2907. [DRBD_FAULT_MD_WR] = "Meta-data write",
  2908. [DRBD_FAULT_MD_RD] = "Meta-data read",
  2909. [DRBD_FAULT_RS_WR] = "Resync write",
  2910. [DRBD_FAULT_RS_RD] = "Resync read",
  2911. [DRBD_FAULT_DT_WR] = "Data write",
  2912. [DRBD_FAULT_DT_RD] = "Data read",
  2913. [DRBD_FAULT_DT_RA] = "Data read ahead",
  2914. [DRBD_FAULT_BM_ALLOC] = "BM allocation",
  2915. [DRBD_FAULT_AL_EE] = "EE allocation",
  2916. [DRBD_FAULT_RECEIVE] = "receive data corruption",
  2917. };
  2918. return (type < DRBD_FAULT_MAX) ? _faults[type] : "**Unknown**";
  2919. }
  2920. unsigned int
  2921. _drbd_insert_fault(struct drbd_conf *mdev, unsigned int type)
  2922. {
  2923. static struct fault_random_state rrs = {0, 0};
  2924. unsigned int ret = (
  2925. (fault_devs == 0 ||
  2926. ((1 << mdev_to_minor(mdev)) & fault_devs) != 0) &&
  2927. (((_drbd_fault_random(&rrs) % 100) + 1) <= fault_rate));
  2928. if (ret) {
  2929. fault_count++;
  2930. if (__ratelimit(&drbd_ratelimit_state))
  2931. dev_warn(DEV, "***Simulating %s failure\n",
  2932. _drbd_fault_str(type));
  2933. }
  2934. return ret;
  2935. }
  2936. #endif
  2937. const char *drbd_buildtag(void)
  2938. {
  2939. /* DRBD built from external sources has here a reference to the
  2940. git hash of the source code. */
  2941. static char buildtag[38] = "\0uilt-in";
  2942. if (buildtag[0] == 0) {
  2943. #ifdef CONFIG_MODULES
  2944. if (THIS_MODULE != NULL)
  2945. sprintf(buildtag, "srcversion: %-24s", THIS_MODULE->srcversion);
  2946. else
  2947. #endif
  2948. buildtag[0] = 'b';
  2949. }
  2950. return buildtag;
  2951. }
  2952. module_init(drbd_init)
  2953. module_exit(drbd_cleanup)
  2954. EXPORT_SYMBOL(drbd_conn_str);
  2955. EXPORT_SYMBOL(drbd_role_str);
  2956. EXPORT_SYMBOL(drbd_disk_str);
  2957. EXPORT_SYMBOL(drbd_set_st_err_str);