drbd_nl.c 86 KB

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  1. /*
  2. drbd_nl.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. drbd is free software; you can redistribute it and/or modify
  8. it under the terms of the GNU General Public License as published by
  9. the Free Software Foundation; either version 2, or (at your option)
  10. any later version.
  11. drbd is distributed in the hope that it will be useful,
  12. but WITHOUT ANY WARRANTY; without even the implied warranty of
  13. MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  14. GNU General Public License for more details.
  15. You should have received a copy of the GNU General Public License
  16. along with drbd; see the file COPYING. If not, write to
  17. the Free Software Foundation, 675 Mass Ave, Cambridge, MA 02139, USA.
  18. */
  19. #include <linux/module.h>
  20. #include <linux/drbd.h>
  21. #include <linux/in.h>
  22. #include <linux/fs.h>
  23. #include <linux/file.h>
  24. #include <linux/slab.h>
  25. #include <linux/blkpg.h>
  26. #include <linux/cpumask.h>
  27. #include "drbd_int.h"
  28. #include "drbd_req.h"
  29. #include "drbd_wrappers.h"
  30. #include <asm/unaligned.h>
  31. #include <linux/drbd_limits.h>
  32. #include <linux/kthread.h>
  33. #include <net/genetlink.h>
  34. /* .doit */
  35. // int drbd_adm_create_resource(struct sk_buff *skb, struct genl_info *info);
  36. // int drbd_adm_delete_resource(struct sk_buff *skb, struct genl_info *info);
  37. int drbd_adm_add_minor(struct sk_buff *skb, struct genl_info *info);
  38. int drbd_adm_delete_minor(struct sk_buff *skb, struct genl_info *info);
  39. int drbd_adm_new_resource(struct sk_buff *skb, struct genl_info *info);
  40. int drbd_adm_del_resource(struct sk_buff *skb, struct genl_info *info);
  41. int drbd_adm_down(struct sk_buff *skb, struct genl_info *info);
  42. int drbd_adm_set_role(struct sk_buff *skb, struct genl_info *info);
  43. int drbd_adm_attach(struct sk_buff *skb, struct genl_info *info);
  44. int drbd_adm_disk_opts(struct sk_buff *skb, struct genl_info *info);
  45. int drbd_adm_detach(struct sk_buff *skb, struct genl_info *info);
  46. int drbd_adm_connect(struct sk_buff *skb, struct genl_info *info);
  47. int drbd_adm_net_opts(struct sk_buff *skb, struct genl_info *info);
  48. int drbd_adm_resize(struct sk_buff *skb, struct genl_info *info);
  49. int drbd_adm_start_ov(struct sk_buff *skb, struct genl_info *info);
  50. int drbd_adm_new_c_uuid(struct sk_buff *skb, struct genl_info *info);
  51. int drbd_adm_disconnect(struct sk_buff *skb, struct genl_info *info);
  52. int drbd_adm_invalidate(struct sk_buff *skb, struct genl_info *info);
  53. int drbd_adm_invalidate_peer(struct sk_buff *skb, struct genl_info *info);
  54. int drbd_adm_pause_sync(struct sk_buff *skb, struct genl_info *info);
  55. int drbd_adm_resume_sync(struct sk_buff *skb, struct genl_info *info);
  56. int drbd_adm_suspend_io(struct sk_buff *skb, struct genl_info *info);
  57. int drbd_adm_resume_io(struct sk_buff *skb, struct genl_info *info);
  58. int drbd_adm_outdate(struct sk_buff *skb, struct genl_info *info);
  59. int drbd_adm_resource_opts(struct sk_buff *skb, struct genl_info *info);
  60. int drbd_adm_get_status(struct sk_buff *skb, struct genl_info *info);
  61. int drbd_adm_get_timeout_type(struct sk_buff *skb, struct genl_info *info);
  62. /* .dumpit */
  63. int drbd_adm_get_status_all(struct sk_buff *skb, struct netlink_callback *cb);
  64. #include <linux/drbd_genl_api.h>
  65. #include "drbd_nla.h"
  66. #include <linux/genl_magic_func.h>
  67. /* used blkdev_get_by_path, to claim our meta data device(s) */
  68. static char *drbd_m_holder = "Hands off! this is DRBD's meta data device.";
  69. /* Configuration is strictly serialized, because generic netlink message
  70. * processing is strictly serialized by the genl_lock().
  71. * Which means we can use one static global drbd_config_context struct.
  72. */
  73. static struct drbd_config_context {
  74. /* assigned from drbd_genlmsghdr */
  75. unsigned int minor;
  76. /* assigned from request attributes, if present */
  77. unsigned int volume;
  78. #define VOLUME_UNSPECIFIED (-1U)
  79. /* pointer into the request skb,
  80. * limited lifetime! */
  81. char *resource_name;
  82. struct nlattr *my_addr;
  83. struct nlattr *peer_addr;
  84. /* reply buffer */
  85. struct sk_buff *reply_skb;
  86. /* pointer into reply buffer */
  87. struct drbd_genlmsghdr *reply_dh;
  88. /* resolved from attributes, if possible */
  89. struct drbd_conf *mdev;
  90. struct drbd_tconn *tconn;
  91. } adm_ctx;
  92. static void drbd_adm_send_reply(struct sk_buff *skb, struct genl_info *info)
  93. {
  94. genlmsg_end(skb, genlmsg_data(nlmsg_data(nlmsg_hdr(skb))));
  95. if (genlmsg_reply(skb, info))
  96. printk(KERN_ERR "drbd: error sending genl reply\n");
  97. }
  98. /* Used on a fresh "drbd_adm_prepare"d reply_skb, this cannot fail: The only
  99. * reason it could fail was no space in skb, and there are 4k available. */
  100. int drbd_msg_put_info(const char *info)
  101. {
  102. struct sk_buff *skb = adm_ctx.reply_skb;
  103. struct nlattr *nla;
  104. int err = -EMSGSIZE;
  105. if (!info || !info[0])
  106. return 0;
  107. nla = nla_nest_start(skb, DRBD_NLA_CFG_REPLY);
  108. if (!nla)
  109. return err;
  110. err = nla_put_string(skb, T_info_text, info);
  111. if (err) {
  112. nla_nest_cancel(skb, nla);
  113. return err;
  114. } else
  115. nla_nest_end(skb, nla);
  116. return 0;
  117. }
  118. /* This would be a good candidate for a "pre_doit" hook,
  119. * and per-family private info->pointers.
  120. * But we need to stay compatible with older kernels.
  121. * If it returns successfully, adm_ctx members are valid.
  122. */
  123. #define DRBD_ADM_NEED_MINOR 1
  124. #define DRBD_ADM_NEED_RESOURCE 2
  125. #define DRBD_ADM_NEED_CONNECTION 4
  126. static int drbd_adm_prepare(struct sk_buff *skb, struct genl_info *info,
  127. unsigned flags)
  128. {
  129. struct drbd_genlmsghdr *d_in = info->userhdr;
  130. const u8 cmd = info->genlhdr->cmd;
  131. int err;
  132. memset(&adm_ctx, 0, sizeof(adm_ctx));
  133. /* genl_rcv_msg only checks for CAP_NET_ADMIN on "GENL_ADMIN_PERM" :( */
  134. if (cmd != DRBD_ADM_GET_STATUS
  135. && security_netlink_recv(skb, CAP_SYS_ADMIN))
  136. return -EPERM;
  137. adm_ctx.reply_skb = genlmsg_new(NLMSG_GOODSIZE, GFP_KERNEL);
  138. if (!adm_ctx.reply_skb) {
  139. err = -ENOMEM;
  140. goto fail;
  141. }
  142. adm_ctx.reply_dh = genlmsg_put_reply(adm_ctx.reply_skb,
  143. info, &drbd_genl_family, 0, cmd);
  144. /* put of a few bytes into a fresh skb of >= 4k will always succeed.
  145. * but anyways */
  146. if (!adm_ctx.reply_dh) {
  147. err = -ENOMEM;
  148. goto fail;
  149. }
  150. adm_ctx.reply_dh->minor = d_in->minor;
  151. adm_ctx.reply_dh->ret_code = NO_ERROR;
  152. adm_ctx.volume = VOLUME_UNSPECIFIED;
  153. if (info->attrs[DRBD_NLA_CFG_CONTEXT]) {
  154. struct nlattr *nla;
  155. /* parse and validate only */
  156. err = drbd_cfg_context_from_attrs(NULL, info);
  157. if (err)
  158. goto fail;
  159. /* It was present, and valid,
  160. * copy it over to the reply skb. */
  161. err = nla_put_nohdr(adm_ctx.reply_skb,
  162. info->attrs[DRBD_NLA_CFG_CONTEXT]->nla_len,
  163. info->attrs[DRBD_NLA_CFG_CONTEXT]);
  164. if (err)
  165. goto fail;
  166. /* and assign stuff to the global adm_ctx */
  167. nla = nested_attr_tb[__nla_type(T_ctx_volume)];
  168. if (nla)
  169. adm_ctx.volume = nla_get_u32(nla);
  170. nla = nested_attr_tb[__nla_type(T_ctx_resource_name)];
  171. if (nla)
  172. adm_ctx.resource_name = nla_data(nla);
  173. adm_ctx.my_addr = nested_attr_tb[__nla_type(T_ctx_my_addr)];
  174. adm_ctx.peer_addr = nested_attr_tb[__nla_type(T_ctx_peer_addr)];
  175. if ((adm_ctx.my_addr &&
  176. nla_len(adm_ctx.my_addr) > sizeof(adm_ctx.tconn->my_addr)) ||
  177. (adm_ctx.peer_addr &&
  178. nla_len(adm_ctx.peer_addr) > sizeof(adm_ctx.tconn->peer_addr))) {
  179. err = -EINVAL;
  180. goto fail;
  181. }
  182. }
  183. adm_ctx.minor = d_in->minor;
  184. adm_ctx.mdev = minor_to_mdev(d_in->minor);
  185. adm_ctx.tconn = conn_get_by_name(adm_ctx.resource_name);
  186. if (!adm_ctx.mdev && (flags & DRBD_ADM_NEED_MINOR)) {
  187. drbd_msg_put_info("unknown minor");
  188. return ERR_MINOR_INVALID;
  189. }
  190. if (!adm_ctx.tconn && (flags & DRBD_ADM_NEED_RESOURCE)) {
  191. drbd_msg_put_info("unknown resource");
  192. return ERR_INVALID_REQUEST;
  193. }
  194. if (flags & DRBD_ADM_NEED_CONNECTION) {
  195. if (adm_ctx.tconn && !(flags & DRBD_ADM_NEED_RESOURCE)) {
  196. drbd_msg_put_info("no resource name expected");
  197. return ERR_INVALID_REQUEST;
  198. }
  199. if (adm_ctx.mdev) {
  200. drbd_msg_put_info("no minor number expected");
  201. return ERR_INVALID_REQUEST;
  202. }
  203. if (adm_ctx.my_addr && adm_ctx.peer_addr)
  204. adm_ctx.tconn = conn_get_by_addrs(nla_data(adm_ctx.my_addr),
  205. nla_len(adm_ctx.my_addr),
  206. nla_data(adm_ctx.peer_addr),
  207. nla_len(adm_ctx.peer_addr));
  208. if (!adm_ctx.tconn) {
  209. drbd_msg_put_info("unknown connection");
  210. return ERR_INVALID_REQUEST;
  211. }
  212. }
  213. /* some more paranoia, if the request was over-determined */
  214. if (adm_ctx.mdev && adm_ctx.tconn &&
  215. adm_ctx.mdev->tconn != adm_ctx.tconn) {
  216. pr_warning("request: minor=%u, resource=%s; but that minor belongs to connection %s\n",
  217. adm_ctx.minor, adm_ctx.resource_name,
  218. adm_ctx.mdev->tconn->name);
  219. drbd_msg_put_info("minor exists in different resource");
  220. return ERR_INVALID_REQUEST;
  221. }
  222. if (adm_ctx.mdev &&
  223. adm_ctx.volume != VOLUME_UNSPECIFIED &&
  224. adm_ctx.volume != adm_ctx.mdev->vnr) {
  225. pr_warning("request: minor=%u, volume=%u; but that minor is volume %u in %s\n",
  226. adm_ctx.minor, adm_ctx.volume,
  227. adm_ctx.mdev->vnr, adm_ctx.mdev->tconn->name);
  228. drbd_msg_put_info("minor exists as different volume");
  229. return ERR_INVALID_REQUEST;
  230. }
  231. return NO_ERROR;
  232. fail:
  233. nlmsg_free(adm_ctx.reply_skb);
  234. adm_ctx.reply_skb = NULL;
  235. return err;
  236. }
  237. static int drbd_adm_finish(struct genl_info *info, int retcode)
  238. {
  239. if (adm_ctx.tconn) {
  240. kref_put(&adm_ctx.tconn->kref, &conn_destroy);
  241. adm_ctx.tconn = NULL;
  242. }
  243. if (!adm_ctx.reply_skb)
  244. return -ENOMEM;
  245. adm_ctx.reply_dh->ret_code = retcode;
  246. drbd_adm_send_reply(adm_ctx.reply_skb, info);
  247. return 0;
  248. }
  249. static void setup_khelper_env(struct drbd_tconn *tconn, char **envp)
  250. {
  251. char *afs;
  252. /* FIXME: A future version will not allow this case. */
  253. if (tconn->my_addr_len == 0 || tconn->peer_addr_len == 0)
  254. return;
  255. switch (((struct sockaddr *)&tconn->peer_addr)->sa_family) {
  256. case AF_INET6:
  257. afs = "ipv6";
  258. snprintf(envp[4], 60, "DRBD_PEER_ADDRESS=%pI6",
  259. &((struct sockaddr_in6 *)&tconn->peer_addr)->sin6_addr);
  260. break;
  261. case AF_INET:
  262. afs = "ipv4";
  263. snprintf(envp[4], 60, "DRBD_PEER_ADDRESS=%pI4",
  264. &((struct sockaddr_in *)&tconn->peer_addr)->sin_addr);
  265. break;
  266. default:
  267. afs = "ssocks";
  268. snprintf(envp[4], 60, "DRBD_PEER_ADDRESS=%pI4",
  269. &((struct sockaddr_in *)&tconn->peer_addr)->sin_addr);
  270. }
  271. snprintf(envp[3], 20, "DRBD_PEER_AF=%s", afs);
  272. }
  273. int drbd_khelper(struct drbd_conf *mdev, char *cmd)
  274. {
  275. char *envp[] = { "HOME=/",
  276. "TERM=linux",
  277. "PATH=/sbin:/usr/sbin:/bin:/usr/bin",
  278. (char[20]) { }, /* address family */
  279. (char[60]) { }, /* address */
  280. NULL };
  281. char mb[12];
  282. char *argv[] = {usermode_helper, cmd, mb, NULL };
  283. struct sib_info sib;
  284. int ret;
  285. snprintf(mb, 12, "minor-%d", mdev_to_minor(mdev));
  286. setup_khelper_env(mdev->tconn, envp);
  287. /* The helper may take some time.
  288. * write out any unsynced meta data changes now */
  289. drbd_md_sync(mdev);
  290. dev_info(DEV, "helper command: %s %s %s\n", usermode_helper, cmd, mb);
  291. sib.sib_reason = SIB_HELPER_PRE;
  292. sib.helper_name = cmd;
  293. drbd_bcast_event(mdev, &sib);
  294. ret = call_usermodehelper(usermode_helper, argv, envp, 1);
  295. if (ret)
  296. dev_warn(DEV, "helper command: %s %s %s exit code %u (0x%x)\n",
  297. usermode_helper, cmd, mb,
  298. (ret >> 8) & 0xff, ret);
  299. else
  300. dev_info(DEV, "helper command: %s %s %s exit code %u (0x%x)\n",
  301. usermode_helper, cmd, mb,
  302. (ret >> 8) & 0xff, ret);
  303. sib.sib_reason = SIB_HELPER_POST;
  304. sib.helper_exit_code = ret;
  305. drbd_bcast_event(mdev, &sib);
  306. if (ret < 0) /* Ignore any ERRNOs we got. */
  307. ret = 0;
  308. return ret;
  309. }
  310. static void conn_md_sync(struct drbd_tconn *tconn)
  311. {
  312. struct drbd_conf *mdev;
  313. int vnr;
  314. rcu_read_lock();
  315. idr_for_each_entry(&tconn->volumes, mdev, vnr) {
  316. kref_get(&mdev->kref);
  317. rcu_read_unlock();
  318. drbd_md_sync(mdev);
  319. kref_put(&mdev->kref, &drbd_minor_destroy);
  320. rcu_read_lock();
  321. }
  322. rcu_read_unlock();
  323. }
  324. int conn_khelper(struct drbd_tconn *tconn, char *cmd)
  325. {
  326. char *envp[] = { "HOME=/",
  327. "TERM=linux",
  328. "PATH=/sbin:/usr/sbin:/bin:/usr/bin",
  329. (char[20]) { }, /* address family */
  330. (char[60]) { }, /* address */
  331. NULL };
  332. char *argv[] = {usermode_helper, cmd, tconn->name, NULL };
  333. int ret;
  334. setup_khelper_env(tconn, envp);
  335. conn_md_sync(tconn);
  336. conn_info(tconn, "helper command: %s %s %s\n", usermode_helper, cmd, tconn->name);
  337. /* TODO: conn_bcast_event() ?? */
  338. ret = call_usermodehelper(usermode_helper, argv, envp, 1);
  339. if (ret)
  340. conn_warn(tconn, "helper command: %s %s %s exit code %u (0x%x)\n",
  341. usermode_helper, cmd, tconn->name,
  342. (ret >> 8) & 0xff, ret);
  343. else
  344. conn_info(tconn, "helper command: %s %s %s exit code %u (0x%x)\n",
  345. usermode_helper, cmd, tconn->name,
  346. (ret >> 8) & 0xff, ret);
  347. /* TODO: conn_bcast_event() ?? */
  348. if (ret < 0) /* Ignore any ERRNOs we got. */
  349. ret = 0;
  350. return ret;
  351. }
  352. static enum drbd_fencing_p highest_fencing_policy(struct drbd_tconn *tconn)
  353. {
  354. enum drbd_fencing_p fp = FP_NOT_AVAIL;
  355. struct drbd_conf *mdev;
  356. int vnr;
  357. rcu_read_lock();
  358. idr_for_each_entry(&tconn->volumes, mdev, vnr) {
  359. if (get_ldev_if_state(mdev, D_CONSISTENT)) {
  360. fp = max_t(enum drbd_fencing_p, fp,
  361. rcu_dereference(mdev->ldev->disk_conf)->fencing);
  362. put_ldev(mdev);
  363. }
  364. }
  365. rcu_read_unlock();
  366. return fp;
  367. }
  368. bool conn_try_outdate_peer(struct drbd_tconn *tconn)
  369. {
  370. union drbd_state mask = { };
  371. union drbd_state val = { };
  372. enum drbd_fencing_p fp;
  373. char *ex_to_string;
  374. int r;
  375. if (tconn->cstate >= C_WF_REPORT_PARAMS) {
  376. conn_err(tconn, "Expected cstate < C_WF_REPORT_PARAMS\n");
  377. return false;
  378. }
  379. fp = highest_fencing_policy(tconn);
  380. switch (fp) {
  381. case FP_NOT_AVAIL:
  382. conn_warn(tconn, "Not fencing peer, I'm not even Consistent myself.\n");
  383. goto out;
  384. case FP_DONT_CARE:
  385. return true;
  386. default: ;
  387. }
  388. r = conn_khelper(tconn, "fence-peer");
  389. switch ((r>>8) & 0xff) {
  390. case 3: /* peer is inconsistent */
  391. ex_to_string = "peer is inconsistent or worse";
  392. mask.pdsk = D_MASK;
  393. val.pdsk = D_INCONSISTENT;
  394. break;
  395. case 4: /* peer got outdated, or was already outdated */
  396. ex_to_string = "peer was fenced";
  397. mask.pdsk = D_MASK;
  398. val.pdsk = D_OUTDATED;
  399. break;
  400. case 5: /* peer was down */
  401. if (conn_highest_disk(tconn) == D_UP_TO_DATE) {
  402. /* we will(have) create(d) a new UUID anyways... */
  403. ex_to_string = "peer is unreachable, assumed to be dead";
  404. mask.pdsk = D_MASK;
  405. val.pdsk = D_OUTDATED;
  406. } else {
  407. ex_to_string = "peer unreachable, doing nothing since disk != UpToDate";
  408. }
  409. break;
  410. case 6: /* Peer is primary, voluntarily outdate myself.
  411. * This is useful when an unconnected R_SECONDARY is asked to
  412. * become R_PRIMARY, but finds the other peer being active. */
  413. ex_to_string = "peer is active";
  414. conn_warn(tconn, "Peer is primary, outdating myself.\n");
  415. mask.disk = D_MASK;
  416. val.disk = D_OUTDATED;
  417. break;
  418. case 7:
  419. if (fp != FP_STONITH)
  420. conn_err(tconn, "fence-peer() = 7 && fencing != Stonith !!!\n");
  421. ex_to_string = "peer was stonithed";
  422. mask.pdsk = D_MASK;
  423. val.pdsk = D_OUTDATED;
  424. break;
  425. default:
  426. /* The script is broken ... */
  427. conn_err(tconn, "fence-peer helper broken, returned %d\n", (r>>8)&0xff);
  428. return false; /* Eventually leave IO frozen */
  429. }
  430. conn_info(tconn, "fence-peer helper returned %d (%s)\n",
  431. (r>>8) & 0xff, ex_to_string);
  432. out:
  433. /* Not using
  434. conn_request_state(tconn, mask, val, CS_VERBOSE);
  435. here, because we might were able to re-establish the connection in the
  436. meantime. */
  437. spin_lock_irq(&tconn->req_lock);
  438. if (tconn->cstate < C_WF_REPORT_PARAMS)
  439. _conn_request_state(tconn, mask, val, CS_VERBOSE);
  440. spin_unlock_irq(&tconn->req_lock);
  441. return conn_highest_pdsk(tconn) <= D_OUTDATED;
  442. }
  443. static int _try_outdate_peer_async(void *data)
  444. {
  445. struct drbd_tconn *tconn = (struct drbd_tconn *)data;
  446. conn_try_outdate_peer(tconn);
  447. kref_put(&tconn->kref, &conn_destroy);
  448. return 0;
  449. }
  450. void conn_try_outdate_peer_async(struct drbd_tconn *tconn)
  451. {
  452. struct task_struct *opa;
  453. kref_get(&tconn->kref);
  454. opa = kthread_run(_try_outdate_peer_async, tconn, "drbd_async_h");
  455. if (IS_ERR(opa)) {
  456. conn_err(tconn, "out of mem, failed to invoke fence-peer helper\n");
  457. kref_put(&tconn->kref, &conn_destroy);
  458. }
  459. }
  460. enum drbd_state_rv
  461. drbd_set_role(struct drbd_conf *mdev, enum drbd_role new_role, int force)
  462. {
  463. const int max_tries = 4;
  464. enum drbd_state_rv rv = SS_UNKNOWN_ERROR;
  465. struct net_conf *nc;
  466. int try = 0;
  467. int forced = 0;
  468. union drbd_state mask, val;
  469. if (new_role == R_PRIMARY)
  470. request_ping(mdev->tconn); /* Detect a dead peer ASAP */
  471. mutex_lock(mdev->state_mutex);
  472. mask.i = 0; mask.role = R_MASK;
  473. val.i = 0; val.role = new_role;
  474. while (try++ < max_tries) {
  475. rv = _drbd_request_state(mdev, mask, val, CS_WAIT_COMPLETE);
  476. /* in case we first succeeded to outdate,
  477. * but now suddenly could establish a connection */
  478. if (rv == SS_CW_FAILED_BY_PEER && mask.pdsk != 0) {
  479. val.pdsk = 0;
  480. mask.pdsk = 0;
  481. continue;
  482. }
  483. if (rv == SS_NO_UP_TO_DATE_DISK && force &&
  484. (mdev->state.disk < D_UP_TO_DATE &&
  485. mdev->state.disk >= D_INCONSISTENT)) {
  486. mask.disk = D_MASK;
  487. val.disk = D_UP_TO_DATE;
  488. forced = 1;
  489. continue;
  490. }
  491. if (rv == SS_NO_UP_TO_DATE_DISK &&
  492. mdev->state.disk == D_CONSISTENT && mask.pdsk == 0) {
  493. D_ASSERT(mdev->state.pdsk == D_UNKNOWN);
  494. if (conn_try_outdate_peer(mdev->tconn)) {
  495. val.disk = D_UP_TO_DATE;
  496. mask.disk = D_MASK;
  497. }
  498. continue;
  499. }
  500. if (rv == SS_NOTHING_TO_DO)
  501. goto out;
  502. if (rv == SS_PRIMARY_NOP && mask.pdsk == 0) {
  503. if (!conn_try_outdate_peer(mdev->tconn) && force) {
  504. dev_warn(DEV, "Forced into split brain situation!\n");
  505. mask.pdsk = D_MASK;
  506. val.pdsk = D_OUTDATED;
  507. }
  508. continue;
  509. }
  510. if (rv == SS_TWO_PRIMARIES) {
  511. /* Maybe the peer is detected as dead very soon...
  512. retry at most once more in this case. */
  513. int timeo;
  514. rcu_read_lock();
  515. nc = rcu_dereference(mdev->tconn->net_conf);
  516. timeo = nc ? (nc->ping_timeo + 1) * HZ / 10 : 1;
  517. rcu_read_unlock();
  518. schedule_timeout_interruptible(timeo);
  519. if (try < max_tries)
  520. try = max_tries - 1;
  521. continue;
  522. }
  523. if (rv < SS_SUCCESS) {
  524. rv = _drbd_request_state(mdev, mask, val,
  525. CS_VERBOSE + CS_WAIT_COMPLETE);
  526. if (rv < SS_SUCCESS)
  527. goto out;
  528. }
  529. break;
  530. }
  531. if (rv < SS_SUCCESS)
  532. goto out;
  533. if (forced)
  534. dev_warn(DEV, "Forced to consider local data as UpToDate!\n");
  535. /* Wait until nothing is on the fly :) */
  536. wait_event(mdev->misc_wait, atomic_read(&mdev->ap_pending_cnt) == 0);
  537. if (new_role == R_SECONDARY) {
  538. set_disk_ro(mdev->vdisk, true);
  539. if (get_ldev(mdev)) {
  540. mdev->ldev->md.uuid[UI_CURRENT] &= ~(u64)1;
  541. put_ldev(mdev);
  542. }
  543. } else {
  544. mutex_lock(&mdev->tconn->conf_update);
  545. nc = mdev->tconn->net_conf;
  546. if (nc)
  547. nc->discard_my_data = 0; /* without copy; single bit op is atomic */
  548. mutex_unlock(&mdev->tconn->conf_update);
  549. set_disk_ro(mdev->vdisk, false);
  550. if (get_ldev(mdev)) {
  551. if (((mdev->state.conn < C_CONNECTED ||
  552. mdev->state.pdsk <= D_FAILED)
  553. && mdev->ldev->md.uuid[UI_BITMAP] == 0) || forced)
  554. drbd_uuid_new_current(mdev);
  555. mdev->ldev->md.uuid[UI_CURRENT] |= (u64)1;
  556. put_ldev(mdev);
  557. }
  558. }
  559. /* writeout of activity log covered areas of the bitmap
  560. * to stable storage done in after state change already */
  561. if (mdev->state.conn >= C_WF_REPORT_PARAMS) {
  562. /* if this was forced, we should consider sync */
  563. if (forced)
  564. drbd_send_uuids(mdev);
  565. drbd_send_state(mdev);
  566. }
  567. drbd_md_sync(mdev);
  568. kobject_uevent(&disk_to_dev(mdev->vdisk)->kobj, KOBJ_CHANGE);
  569. out:
  570. mutex_unlock(mdev->state_mutex);
  571. return rv;
  572. }
  573. static const char *from_attrs_err_to_txt(int err)
  574. {
  575. return err == -ENOMSG ? "required attribute missing" :
  576. err == -EOPNOTSUPP ? "unknown mandatory attribute" :
  577. err == -EEXIST ? "can not change invariant setting" :
  578. "invalid attribute value";
  579. }
  580. int drbd_adm_set_role(struct sk_buff *skb, struct genl_info *info)
  581. {
  582. struct set_role_parms parms;
  583. int err;
  584. enum drbd_ret_code retcode;
  585. retcode = drbd_adm_prepare(skb, info, DRBD_ADM_NEED_MINOR);
  586. if (!adm_ctx.reply_skb)
  587. return retcode;
  588. if (retcode != NO_ERROR)
  589. goto out;
  590. memset(&parms, 0, sizeof(parms));
  591. if (info->attrs[DRBD_NLA_SET_ROLE_PARMS]) {
  592. err = set_role_parms_from_attrs(&parms, info);
  593. if (err) {
  594. retcode = ERR_MANDATORY_TAG;
  595. drbd_msg_put_info(from_attrs_err_to_txt(err));
  596. goto out;
  597. }
  598. }
  599. if (info->genlhdr->cmd == DRBD_ADM_PRIMARY)
  600. retcode = drbd_set_role(adm_ctx.mdev, R_PRIMARY, parms.assume_uptodate);
  601. else
  602. retcode = drbd_set_role(adm_ctx.mdev, R_SECONDARY, 0);
  603. out:
  604. drbd_adm_finish(info, retcode);
  605. return 0;
  606. }
  607. /* initializes the md.*_offset members, so we are able to find
  608. * the on disk meta data */
  609. static void drbd_md_set_sector_offsets(struct drbd_conf *mdev,
  610. struct drbd_backing_dev *bdev)
  611. {
  612. sector_t md_size_sect = 0;
  613. int meta_dev_idx;
  614. rcu_read_lock();
  615. meta_dev_idx = rcu_dereference(bdev->disk_conf)->meta_dev_idx;
  616. switch (meta_dev_idx) {
  617. default:
  618. /* v07 style fixed size indexed meta data */
  619. bdev->md.md_size_sect = MD_RESERVED_SECT;
  620. bdev->md.md_offset = drbd_md_ss__(mdev, bdev);
  621. bdev->md.al_offset = MD_AL_OFFSET;
  622. bdev->md.bm_offset = MD_BM_OFFSET;
  623. break;
  624. case DRBD_MD_INDEX_FLEX_EXT:
  625. /* just occupy the full device; unit: sectors */
  626. bdev->md.md_size_sect = drbd_get_capacity(bdev->md_bdev);
  627. bdev->md.md_offset = 0;
  628. bdev->md.al_offset = MD_AL_OFFSET;
  629. bdev->md.bm_offset = MD_BM_OFFSET;
  630. break;
  631. case DRBD_MD_INDEX_INTERNAL:
  632. case DRBD_MD_INDEX_FLEX_INT:
  633. bdev->md.md_offset = drbd_md_ss__(mdev, bdev);
  634. /* al size is still fixed */
  635. bdev->md.al_offset = -MD_AL_SECTORS;
  636. /* we need (slightly less than) ~ this much bitmap sectors: */
  637. md_size_sect = drbd_get_capacity(bdev->backing_bdev);
  638. md_size_sect = ALIGN(md_size_sect, BM_SECT_PER_EXT);
  639. md_size_sect = BM_SECT_TO_EXT(md_size_sect);
  640. md_size_sect = ALIGN(md_size_sect, 8);
  641. /* plus the "drbd meta data super block",
  642. * and the activity log; */
  643. md_size_sect += MD_BM_OFFSET;
  644. bdev->md.md_size_sect = md_size_sect;
  645. /* bitmap offset is adjusted by 'super' block size */
  646. bdev->md.bm_offset = -md_size_sect + MD_AL_OFFSET;
  647. break;
  648. }
  649. rcu_read_unlock();
  650. }
  651. /* input size is expected to be in KB */
  652. char *ppsize(char *buf, unsigned long long size)
  653. {
  654. /* Needs 9 bytes at max including trailing NUL:
  655. * -1ULL ==> "16384 EB" */
  656. static char units[] = { 'K', 'M', 'G', 'T', 'P', 'E' };
  657. int base = 0;
  658. while (size >= 10000 && base < sizeof(units)-1) {
  659. /* shift + round */
  660. size = (size >> 10) + !!(size & (1<<9));
  661. base++;
  662. }
  663. sprintf(buf, "%u %cB", (unsigned)size, units[base]);
  664. return buf;
  665. }
  666. /* there is still a theoretical deadlock when called from receiver
  667. * on an D_INCONSISTENT R_PRIMARY:
  668. * remote READ does inc_ap_bio, receiver would need to receive answer
  669. * packet from remote to dec_ap_bio again.
  670. * receiver receive_sizes(), comes here,
  671. * waits for ap_bio_cnt == 0. -> deadlock.
  672. * but this cannot happen, actually, because:
  673. * R_PRIMARY D_INCONSISTENT, and peer's disk is unreachable
  674. * (not connected, or bad/no disk on peer):
  675. * see drbd_fail_request_early, ap_bio_cnt is zero.
  676. * R_PRIMARY D_INCONSISTENT, and C_SYNC_TARGET:
  677. * peer may not initiate a resize.
  678. */
  679. /* Note these are not to be confused with
  680. * drbd_adm_suspend_io/drbd_adm_resume_io,
  681. * which are (sub) state changes triggered by admin (drbdsetup),
  682. * and can be long lived.
  683. * This changes an mdev->flag, is triggered by drbd internals,
  684. * and should be short-lived. */
  685. void drbd_suspend_io(struct drbd_conf *mdev)
  686. {
  687. set_bit(SUSPEND_IO, &mdev->flags);
  688. if (drbd_suspended(mdev))
  689. return;
  690. wait_event(mdev->misc_wait, !atomic_read(&mdev->ap_bio_cnt));
  691. }
  692. void drbd_resume_io(struct drbd_conf *mdev)
  693. {
  694. clear_bit(SUSPEND_IO, &mdev->flags);
  695. wake_up(&mdev->misc_wait);
  696. }
  697. /**
  698. * drbd_determine_dev_size() - Sets the right device size obeying all constraints
  699. * @mdev: DRBD device.
  700. *
  701. * Returns 0 on success, negative return values indicate errors.
  702. * You should call drbd_md_sync() after calling this function.
  703. */
  704. enum determine_dev_size drbd_determine_dev_size(struct drbd_conf *mdev, enum dds_flags flags) __must_hold(local)
  705. {
  706. sector_t prev_first_sect, prev_size; /* previous meta location */
  707. sector_t la_size, u_size;
  708. sector_t size;
  709. char ppb[10];
  710. int md_moved, la_size_changed;
  711. enum determine_dev_size rv = unchanged;
  712. /* race:
  713. * application request passes inc_ap_bio,
  714. * but then cannot get an AL-reference.
  715. * this function later may wait on ap_bio_cnt == 0. -> deadlock.
  716. *
  717. * to avoid that:
  718. * Suspend IO right here.
  719. * still lock the act_log to not trigger ASSERTs there.
  720. */
  721. drbd_suspend_io(mdev);
  722. /* no wait necessary anymore, actually we could assert that */
  723. wait_event(mdev->al_wait, lc_try_lock(mdev->act_log));
  724. prev_first_sect = drbd_md_first_sector(mdev->ldev);
  725. prev_size = mdev->ldev->md.md_size_sect;
  726. la_size = mdev->ldev->md.la_size_sect;
  727. /* TODO: should only be some assert here, not (re)init... */
  728. drbd_md_set_sector_offsets(mdev, mdev->ldev);
  729. rcu_read_lock();
  730. u_size = rcu_dereference(mdev->ldev->disk_conf)->disk_size;
  731. rcu_read_unlock();
  732. size = drbd_new_dev_size(mdev, mdev->ldev, u_size, flags & DDSF_FORCED);
  733. if (drbd_get_capacity(mdev->this_bdev) != size ||
  734. drbd_bm_capacity(mdev) != size) {
  735. int err;
  736. err = drbd_bm_resize(mdev, size, !(flags & DDSF_NO_RESYNC));
  737. if (unlikely(err)) {
  738. /* currently there is only one error: ENOMEM! */
  739. size = drbd_bm_capacity(mdev)>>1;
  740. if (size == 0) {
  741. dev_err(DEV, "OUT OF MEMORY! "
  742. "Could not allocate bitmap!\n");
  743. } else {
  744. dev_err(DEV, "BM resizing failed. "
  745. "Leaving size unchanged at size = %lu KB\n",
  746. (unsigned long)size);
  747. }
  748. rv = dev_size_error;
  749. }
  750. /* racy, see comments above. */
  751. drbd_set_my_capacity(mdev, size);
  752. mdev->ldev->md.la_size_sect = size;
  753. dev_info(DEV, "size = %s (%llu KB)\n", ppsize(ppb, size>>1),
  754. (unsigned long long)size>>1);
  755. }
  756. if (rv == dev_size_error)
  757. goto out;
  758. la_size_changed = (la_size != mdev->ldev->md.la_size_sect);
  759. md_moved = prev_first_sect != drbd_md_first_sector(mdev->ldev)
  760. || prev_size != mdev->ldev->md.md_size_sect;
  761. if (la_size_changed || md_moved) {
  762. int err;
  763. drbd_al_shrink(mdev); /* All extents inactive. */
  764. dev_info(DEV, "Writing the whole bitmap, %s\n",
  765. la_size_changed && md_moved ? "size changed and md moved" :
  766. la_size_changed ? "size changed" : "md moved");
  767. /* next line implicitly does drbd_suspend_io()+drbd_resume_io() */
  768. err = drbd_bitmap_io(mdev, &drbd_bm_write,
  769. "size changed", BM_LOCKED_MASK);
  770. if (err) {
  771. rv = dev_size_error;
  772. goto out;
  773. }
  774. drbd_md_mark_dirty(mdev);
  775. }
  776. if (size > la_size)
  777. rv = grew;
  778. if (size < la_size)
  779. rv = shrunk;
  780. out:
  781. lc_unlock(mdev->act_log);
  782. wake_up(&mdev->al_wait);
  783. drbd_resume_io(mdev);
  784. return rv;
  785. }
  786. sector_t
  787. drbd_new_dev_size(struct drbd_conf *mdev, struct drbd_backing_dev *bdev,
  788. sector_t u_size, int assume_peer_has_space)
  789. {
  790. sector_t p_size = mdev->p_size; /* partner's disk size. */
  791. sector_t la_size = bdev->md.la_size_sect; /* last agreed size. */
  792. sector_t m_size; /* my size */
  793. sector_t size = 0;
  794. m_size = drbd_get_max_capacity(bdev);
  795. if (mdev->state.conn < C_CONNECTED && assume_peer_has_space) {
  796. dev_warn(DEV, "Resize while not connected was forced by the user!\n");
  797. p_size = m_size;
  798. }
  799. if (p_size && m_size) {
  800. size = min_t(sector_t, p_size, m_size);
  801. } else {
  802. if (la_size) {
  803. size = la_size;
  804. if (m_size && m_size < size)
  805. size = m_size;
  806. if (p_size && p_size < size)
  807. size = p_size;
  808. } else {
  809. if (m_size)
  810. size = m_size;
  811. if (p_size)
  812. size = p_size;
  813. }
  814. }
  815. if (size == 0)
  816. dev_err(DEV, "Both nodes diskless!\n");
  817. if (u_size) {
  818. if (u_size > size)
  819. dev_err(DEV, "Requested disk size is too big (%lu > %lu)\n",
  820. (unsigned long)u_size>>1, (unsigned long)size>>1);
  821. else
  822. size = u_size;
  823. }
  824. return size;
  825. }
  826. /**
  827. * drbd_check_al_size() - Ensures that the AL is of the right size
  828. * @mdev: DRBD device.
  829. *
  830. * Returns -EBUSY if current al lru is still used, -ENOMEM when allocation
  831. * failed, and 0 on success. You should call drbd_md_sync() after you called
  832. * this function.
  833. */
  834. static int drbd_check_al_size(struct drbd_conf *mdev, struct disk_conf *dc)
  835. {
  836. struct lru_cache *n, *t;
  837. struct lc_element *e;
  838. unsigned int in_use;
  839. int i;
  840. if (mdev->act_log &&
  841. mdev->act_log->nr_elements == dc->al_extents)
  842. return 0;
  843. in_use = 0;
  844. t = mdev->act_log;
  845. n = lc_create("act_log", drbd_al_ext_cache, AL_UPDATES_PER_TRANSACTION,
  846. dc->al_extents, sizeof(struct lc_element), 0);
  847. if (n == NULL) {
  848. dev_err(DEV, "Cannot allocate act_log lru!\n");
  849. return -ENOMEM;
  850. }
  851. spin_lock_irq(&mdev->al_lock);
  852. if (t) {
  853. for (i = 0; i < t->nr_elements; i++) {
  854. e = lc_element_by_index(t, i);
  855. if (e->refcnt)
  856. dev_err(DEV, "refcnt(%d)==%d\n",
  857. e->lc_number, e->refcnt);
  858. in_use += e->refcnt;
  859. }
  860. }
  861. if (!in_use)
  862. mdev->act_log = n;
  863. spin_unlock_irq(&mdev->al_lock);
  864. if (in_use) {
  865. dev_err(DEV, "Activity log still in use!\n");
  866. lc_destroy(n);
  867. return -EBUSY;
  868. } else {
  869. if (t)
  870. lc_destroy(t);
  871. }
  872. drbd_md_mark_dirty(mdev); /* we changed mdev->act_log->nr_elemens */
  873. return 0;
  874. }
  875. static void drbd_setup_queue_param(struct drbd_conf *mdev, unsigned int max_bio_size)
  876. {
  877. struct request_queue * const q = mdev->rq_queue;
  878. int max_hw_sectors = max_bio_size >> 9;
  879. int max_segments = 0;
  880. if (get_ldev_if_state(mdev, D_ATTACHING)) {
  881. struct request_queue * const b = mdev->ldev->backing_bdev->bd_disk->queue;
  882. max_hw_sectors = min(queue_max_hw_sectors(b), max_bio_size >> 9);
  883. rcu_read_lock();
  884. max_segments = rcu_dereference(mdev->ldev->disk_conf)->max_bio_bvecs;
  885. rcu_read_unlock();
  886. put_ldev(mdev);
  887. }
  888. blk_queue_logical_block_size(q, 512);
  889. blk_queue_max_hw_sectors(q, max_hw_sectors);
  890. /* This is the workaround for "bio would need to, but cannot, be split" */
  891. blk_queue_max_segments(q, max_segments ? max_segments : BLK_MAX_SEGMENTS);
  892. blk_queue_segment_boundary(q, PAGE_CACHE_SIZE-1);
  893. if (get_ldev_if_state(mdev, D_ATTACHING)) {
  894. struct request_queue * const b = mdev->ldev->backing_bdev->bd_disk->queue;
  895. blk_queue_stack_limits(q, b);
  896. if (q->backing_dev_info.ra_pages != b->backing_dev_info.ra_pages) {
  897. dev_info(DEV, "Adjusting my ra_pages to backing device's (%lu -> %lu)\n",
  898. q->backing_dev_info.ra_pages,
  899. b->backing_dev_info.ra_pages);
  900. q->backing_dev_info.ra_pages = b->backing_dev_info.ra_pages;
  901. }
  902. put_ldev(mdev);
  903. }
  904. }
  905. void drbd_reconsider_max_bio_size(struct drbd_conf *mdev)
  906. {
  907. int now, new, local, peer;
  908. now = queue_max_hw_sectors(mdev->rq_queue) << 9;
  909. local = mdev->local_max_bio_size; /* Eventually last known value, from volatile memory */
  910. peer = mdev->peer_max_bio_size; /* Eventually last known value, from meta data */
  911. if (get_ldev_if_state(mdev, D_ATTACHING)) {
  912. local = queue_max_hw_sectors(mdev->ldev->backing_bdev->bd_disk->queue) << 9;
  913. mdev->local_max_bio_size = local;
  914. put_ldev(mdev);
  915. }
  916. /* We may ignore peer limits if the peer is modern enough.
  917. Because new from 8.3.8 onwards the peer can use multiple
  918. BIOs for a single peer_request */
  919. if (mdev->state.conn >= C_CONNECTED) {
  920. if (mdev->tconn->agreed_pro_version < 94)
  921. peer = mdev->peer_max_bio_size;
  922. else if (mdev->tconn->agreed_pro_version == 94)
  923. peer = DRBD_MAX_SIZE_H80_PACKET;
  924. else /* drbd 8.3.8 onwards */
  925. peer = DRBD_MAX_BIO_SIZE;
  926. }
  927. new = min_t(int, local, peer);
  928. if (mdev->state.role == R_PRIMARY && new < now)
  929. dev_err(DEV, "ASSERT FAILED new < now; (%d < %d)\n", new, now);
  930. if (new != now)
  931. dev_info(DEV, "max BIO size = %u\n", new);
  932. drbd_setup_queue_param(mdev, new);
  933. }
  934. /* Starts the worker thread */
  935. static void conn_reconfig_start(struct drbd_tconn *tconn)
  936. {
  937. drbd_thread_start(&tconn->worker);
  938. conn_flush_workqueue(tconn);
  939. }
  940. /* if still unconfigured, stops worker again. */
  941. static void conn_reconfig_done(struct drbd_tconn *tconn)
  942. {
  943. bool stop_threads;
  944. spin_lock_irq(&tconn->req_lock);
  945. stop_threads = conn_all_vols_unconf(tconn);
  946. spin_unlock_irq(&tconn->req_lock);
  947. if (stop_threads) {
  948. /* asender is implicitly stopped by receiver
  949. * in conn_disconnect() */
  950. drbd_thread_stop(&tconn->receiver);
  951. drbd_thread_stop(&tconn->worker);
  952. }
  953. }
  954. /* Make sure IO is suspended before calling this function(). */
  955. static void drbd_suspend_al(struct drbd_conf *mdev)
  956. {
  957. int s = 0;
  958. if (!lc_try_lock(mdev->act_log)) {
  959. dev_warn(DEV, "Failed to lock al in drbd_suspend_al()\n");
  960. return;
  961. }
  962. drbd_al_shrink(mdev);
  963. spin_lock_irq(&mdev->tconn->req_lock);
  964. if (mdev->state.conn < C_CONNECTED)
  965. s = !test_and_set_bit(AL_SUSPENDED, &mdev->flags);
  966. spin_unlock_irq(&mdev->tconn->req_lock);
  967. lc_unlock(mdev->act_log);
  968. if (s)
  969. dev_info(DEV, "Suspended AL updates\n");
  970. }
  971. static bool should_set_defaults(struct genl_info *info)
  972. {
  973. unsigned flags = ((struct drbd_genlmsghdr*)info->userhdr)->flags;
  974. return 0 != (flags & DRBD_GENL_F_SET_DEFAULTS);
  975. }
  976. static void enforce_disk_conf_limits(struct disk_conf *dc)
  977. {
  978. if (dc->al_extents < DRBD_AL_EXTENTS_MIN)
  979. dc->al_extents = DRBD_AL_EXTENTS_MIN;
  980. if (dc->al_extents > DRBD_AL_EXTENTS_MAX)
  981. dc->al_extents = DRBD_AL_EXTENTS_MAX;
  982. if (dc->c_plan_ahead > DRBD_C_PLAN_AHEAD_MAX)
  983. dc->c_plan_ahead = DRBD_C_PLAN_AHEAD_MAX;
  984. }
  985. int drbd_adm_disk_opts(struct sk_buff *skb, struct genl_info *info)
  986. {
  987. enum drbd_ret_code retcode;
  988. struct drbd_conf *mdev;
  989. struct disk_conf *new_disk_conf, *old_disk_conf;
  990. struct fifo_buffer *old_plan = NULL, *new_plan = NULL;
  991. int err, fifo_size;
  992. retcode = drbd_adm_prepare(skb, info, DRBD_ADM_NEED_MINOR);
  993. if (!adm_ctx.reply_skb)
  994. return retcode;
  995. if (retcode != NO_ERROR)
  996. goto out;
  997. mdev = adm_ctx.mdev;
  998. /* we also need a disk
  999. * to change the options on */
  1000. if (!get_ldev(mdev)) {
  1001. retcode = ERR_NO_DISK;
  1002. goto out;
  1003. }
  1004. new_disk_conf = kmalloc(sizeof(struct disk_conf), GFP_KERNEL);
  1005. if (!new_disk_conf) {
  1006. retcode = ERR_NOMEM;
  1007. goto fail;
  1008. }
  1009. mutex_lock(&mdev->tconn->conf_update);
  1010. old_disk_conf = mdev->ldev->disk_conf;
  1011. *new_disk_conf = *old_disk_conf;
  1012. if (should_set_defaults(info))
  1013. set_disk_conf_defaults(new_disk_conf);
  1014. err = disk_conf_from_attrs_for_change(new_disk_conf, info);
  1015. if (err && err != -ENOMSG) {
  1016. retcode = ERR_MANDATORY_TAG;
  1017. drbd_msg_put_info(from_attrs_err_to_txt(err));
  1018. }
  1019. if (!expect(new_disk_conf->resync_rate >= 1))
  1020. new_disk_conf->resync_rate = 1;
  1021. enforce_disk_conf_limits(new_disk_conf);
  1022. fifo_size = (new_disk_conf->c_plan_ahead * 10 * SLEEP_TIME) / HZ;
  1023. if (fifo_size != mdev->rs_plan_s->size) {
  1024. new_plan = fifo_alloc(fifo_size);
  1025. if (!new_plan) {
  1026. dev_err(DEV, "kmalloc of fifo_buffer failed");
  1027. retcode = ERR_NOMEM;
  1028. goto fail_unlock;
  1029. }
  1030. }
  1031. wait_event(mdev->al_wait, lc_try_lock(mdev->act_log));
  1032. drbd_al_shrink(mdev);
  1033. err = drbd_check_al_size(mdev, new_disk_conf);
  1034. lc_unlock(mdev->act_log);
  1035. wake_up(&mdev->al_wait);
  1036. if (err) {
  1037. retcode = ERR_NOMEM;
  1038. goto fail_unlock;
  1039. }
  1040. write_lock_irq(&global_state_lock);
  1041. retcode = drbd_resync_after_valid(mdev, new_disk_conf->resync_after);
  1042. if (retcode == NO_ERROR) {
  1043. rcu_assign_pointer(mdev->ldev->disk_conf, new_disk_conf);
  1044. drbd_resync_after_changed(mdev);
  1045. }
  1046. write_unlock_irq(&global_state_lock);
  1047. if (retcode != NO_ERROR)
  1048. goto fail_unlock;
  1049. if (new_plan) {
  1050. old_plan = mdev->rs_plan_s;
  1051. rcu_assign_pointer(mdev->rs_plan_s, new_plan);
  1052. }
  1053. mutex_unlock(&mdev->tconn->conf_update);
  1054. drbd_md_sync(mdev);
  1055. if (mdev->state.conn >= C_CONNECTED)
  1056. drbd_send_sync_param(mdev);
  1057. synchronize_rcu();
  1058. kfree(old_disk_conf);
  1059. kfree(old_plan);
  1060. goto success;
  1061. fail_unlock:
  1062. mutex_unlock(&mdev->tconn->conf_update);
  1063. fail:
  1064. kfree(new_disk_conf);
  1065. kfree(new_plan);
  1066. success:
  1067. put_ldev(mdev);
  1068. out:
  1069. drbd_adm_finish(info, retcode);
  1070. return 0;
  1071. }
  1072. int drbd_adm_attach(struct sk_buff *skb, struct genl_info *info)
  1073. {
  1074. struct drbd_conf *mdev;
  1075. int err;
  1076. enum drbd_ret_code retcode;
  1077. enum determine_dev_size dd;
  1078. sector_t max_possible_sectors;
  1079. sector_t min_md_device_sectors;
  1080. struct drbd_backing_dev *nbc = NULL; /* new_backing_conf */
  1081. struct disk_conf *new_disk_conf = NULL;
  1082. struct block_device *bdev;
  1083. struct lru_cache *resync_lru = NULL;
  1084. struct fifo_buffer *new_plan = NULL;
  1085. union drbd_state ns, os;
  1086. enum drbd_state_rv rv;
  1087. struct net_conf *nc;
  1088. int cp_discovered = 0;
  1089. retcode = drbd_adm_prepare(skb, info, DRBD_ADM_NEED_MINOR);
  1090. if (!adm_ctx.reply_skb)
  1091. return retcode;
  1092. if (retcode != NO_ERROR)
  1093. goto finish;
  1094. mdev = adm_ctx.mdev;
  1095. conn_reconfig_start(mdev->tconn);
  1096. /* if you want to reconfigure, please tear down first */
  1097. if (mdev->state.disk > D_DISKLESS) {
  1098. retcode = ERR_DISK_CONFIGURED;
  1099. goto fail;
  1100. }
  1101. /* It may just now have detached because of IO error. Make sure
  1102. * drbd_ldev_destroy is done already, we may end up here very fast,
  1103. * e.g. if someone calls attach from the on-io-error handler,
  1104. * to realize a "hot spare" feature (not that I'd recommend that) */
  1105. wait_event(mdev->misc_wait, !atomic_read(&mdev->local_cnt));
  1106. /* allocation not in the IO path, drbdsetup context */
  1107. nbc = kzalloc(sizeof(struct drbd_backing_dev), GFP_KERNEL);
  1108. if (!nbc) {
  1109. retcode = ERR_NOMEM;
  1110. goto fail;
  1111. }
  1112. new_disk_conf = kzalloc(sizeof(struct disk_conf), GFP_KERNEL);
  1113. if (!new_disk_conf) {
  1114. retcode = ERR_NOMEM;
  1115. goto fail;
  1116. }
  1117. nbc->disk_conf = new_disk_conf;
  1118. set_disk_conf_defaults(new_disk_conf);
  1119. err = disk_conf_from_attrs(new_disk_conf, info);
  1120. if (err) {
  1121. retcode = ERR_MANDATORY_TAG;
  1122. drbd_msg_put_info(from_attrs_err_to_txt(err));
  1123. goto fail;
  1124. }
  1125. enforce_disk_conf_limits(new_disk_conf);
  1126. new_plan = fifo_alloc((new_disk_conf->c_plan_ahead * 10 * SLEEP_TIME) / HZ);
  1127. if (!new_plan) {
  1128. retcode = ERR_NOMEM;
  1129. goto fail;
  1130. }
  1131. if (new_disk_conf->meta_dev_idx < DRBD_MD_INDEX_FLEX_INT) {
  1132. retcode = ERR_MD_IDX_INVALID;
  1133. goto fail;
  1134. }
  1135. rcu_read_lock();
  1136. nc = rcu_dereference(mdev->tconn->net_conf);
  1137. if (nc) {
  1138. if (new_disk_conf->fencing == FP_STONITH && nc->wire_protocol == DRBD_PROT_A) {
  1139. rcu_read_unlock();
  1140. retcode = ERR_STONITH_AND_PROT_A;
  1141. goto fail;
  1142. }
  1143. }
  1144. rcu_read_unlock();
  1145. bdev = blkdev_get_by_path(new_disk_conf->backing_dev,
  1146. FMODE_READ | FMODE_WRITE | FMODE_EXCL, mdev);
  1147. if (IS_ERR(bdev)) {
  1148. dev_err(DEV, "open(\"%s\") failed with %ld\n", new_disk_conf->backing_dev,
  1149. PTR_ERR(bdev));
  1150. retcode = ERR_OPEN_DISK;
  1151. goto fail;
  1152. }
  1153. nbc->backing_bdev = bdev;
  1154. /*
  1155. * meta_dev_idx >= 0: external fixed size, possibly multiple
  1156. * drbd sharing one meta device. TODO in that case, paranoia
  1157. * check that [md_bdev, meta_dev_idx] is not yet used by some
  1158. * other drbd minor! (if you use drbd.conf + drbdadm, that
  1159. * should check it for you already; but if you don't, or
  1160. * someone fooled it, we need to double check here)
  1161. */
  1162. bdev = blkdev_get_by_path(new_disk_conf->meta_dev,
  1163. FMODE_READ | FMODE_WRITE | FMODE_EXCL,
  1164. (new_disk_conf->meta_dev_idx < 0) ?
  1165. (void *)mdev : (void *)drbd_m_holder);
  1166. if (IS_ERR(bdev)) {
  1167. dev_err(DEV, "open(\"%s\") failed with %ld\n", new_disk_conf->meta_dev,
  1168. PTR_ERR(bdev));
  1169. retcode = ERR_OPEN_MD_DISK;
  1170. goto fail;
  1171. }
  1172. nbc->md_bdev = bdev;
  1173. if ((nbc->backing_bdev == nbc->md_bdev) !=
  1174. (new_disk_conf->meta_dev_idx == DRBD_MD_INDEX_INTERNAL ||
  1175. new_disk_conf->meta_dev_idx == DRBD_MD_INDEX_FLEX_INT)) {
  1176. retcode = ERR_MD_IDX_INVALID;
  1177. goto fail;
  1178. }
  1179. resync_lru = lc_create("resync", drbd_bm_ext_cache,
  1180. 1, 61, sizeof(struct bm_extent),
  1181. offsetof(struct bm_extent, lce));
  1182. if (!resync_lru) {
  1183. retcode = ERR_NOMEM;
  1184. goto fail;
  1185. }
  1186. /* RT - for drbd_get_max_capacity() DRBD_MD_INDEX_FLEX_INT */
  1187. drbd_md_set_sector_offsets(mdev, nbc);
  1188. if (drbd_get_max_capacity(nbc) < new_disk_conf->disk_size) {
  1189. dev_err(DEV, "max capacity %llu smaller than disk size %llu\n",
  1190. (unsigned long long) drbd_get_max_capacity(nbc),
  1191. (unsigned long long) new_disk_conf->disk_size);
  1192. retcode = ERR_DISK_TOO_SMALL;
  1193. goto fail;
  1194. }
  1195. if (new_disk_conf->meta_dev_idx < 0) {
  1196. max_possible_sectors = DRBD_MAX_SECTORS_FLEX;
  1197. /* at least one MB, otherwise it does not make sense */
  1198. min_md_device_sectors = (2<<10);
  1199. } else {
  1200. max_possible_sectors = DRBD_MAX_SECTORS;
  1201. min_md_device_sectors = MD_RESERVED_SECT * (new_disk_conf->meta_dev_idx + 1);
  1202. }
  1203. if (drbd_get_capacity(nbc->md_bdev) < min_md_device_sectors) {
  1204. retcode = ERR_MD_DISK_TOO_SMALL;
  1205. dev_warn(DEV, "refusing attach: md-device too small, "
  1206. "at least %llu sectors needed for this meta-disk type\n",
  1207. (unsigned long long) min_md_device_sectors);
  1208. goto fail;
  1209. }
  1210. /* Make sure the new disk is big enough
  1211. * (we may currently be R_PRIMARY with no local disk...) */
  1212. if (drbd_get_max_capacity(nbc) <
  1213. drbd_get_capacity(mdev->this_bdev)) {
  1214. retcode = ERR_DISK_TOO_SMALL;
  1215. goto fail;
  1216. }
  1217. nbc->known_size = drbd_get_capacity(nbc->backing_bdev);
  1218. if (nbc->known_size > max_possible_sectors) {
  1219. dev_warn(DEV, "==> truncating very big lower level device "
  1220. "to currently maximum possible %llu sectors <==\n",
  1221. (unsigned long long) max_possible_sectors);
  1222. if (new_disk_conf->meta_dev_idx >= 0)
  1223. dev_warn(DEV, "==>> using internal or flexible "
  1224. "meta data may help <<==\n");
  1225. }
  1226. drbd_suspend_io(mdev);
  1227. /* also wait for the last barrier ack. */
  1228. wait_event(mdev->misc_wait, !atomic_read(&mdev->ap_pending_cnt) || drbd_suspended(mdev));
  1229. /* and for any other previously queued work */
  1230. drbd_flush_workqueue(mdev);
  1231. rv = _drbd_request_state(mdev, NS(disk, D_ATTACHING), CS_VERBOSE);
  1232. retcode = rv; /* FIXME: Type mismatch. */
  1233. drbd_resume_io(mdev);
  1234. if (rv < SS_SUCCESS)
  1235. goto fail;
  1236. if (!get_ldev_if_state(mdev, D_ATTACHING))
  1237. goto force_diskless;
  1238. drbd_md_set_sector_offsets(mdev, nbc);
  1239. if (!mdev->bitmap) {
  1240. if (drbd_bm_init(mdev)) {
  1241. retcode = ERR_NOMEM;
  1242. goto force_diskless_dec;
  1243. }
  1244. }
  1245. retcode = drbd_md_read(mdev, nbc);
  1246. if (retcode != NO_ERROR)
  1247. goto force_diskless_dec;
  1248. if (mdev->state.conn < C_CONNECTED &&
  1249. mdev->state.role == R_PRIMARY &&
  1250. (mdev->ed_uuid & ~((u64)1)) != (nbc->md.uuid[UI_CURRENT] & ~((u64)1))) {
  1251. dev_err(DEV, "Can only attach to data with current UUID=%016llX\n",
  1252. (unsigned long long)mdev->ed_uuid);
  1253. retcode = ERR_DATA_NOT_CURRENT;
  1254. goto force_diskless_dec;
  1255. }
  1256. /* Since we are diskless, fix the activity log first... */
  1257. if (drbd_check_al_size(mdev, new_disk_conf)) {
  1258. retcode = ERR_NOMEM;
  1259. goto force_diskless_dec;
  1260. }
  1261. /* Prevent shrinking of consistent devices ! */
  1262. if (drbd_md_test_flag(nbc, MDF_CONSISTENT) &&
  1263. drbd_new_dev_size(mdev, nbc, nbc->disk_conf->disk_size, 0) < nbc->md.la_size_sect) {
  1264. dev_warn(DEV, "refusing to truncate a consistent device\n");
  1265. retcode = ERR_DISK_TOO_SMALL;
  1266. goto force_diskless_dec;
  1267. }
  1268. if (!drbd_al_read_log(mdev, nbc)) {
  1269. retcode = ERR_IO_MD_DISK;
  1270. goto force_diskless_dec;
  1271. }
  1272. /* Reset the "barriers don't work" bits here, then force meta data to
  1273. * be written, to ensure we determine if barriers are supported. */
  1274. if (new_disk_conf->md_flushes)
  1275. clear_bit(MD_NO_FUA, &mdev->flags);
  1276. else
  1277. set_bit(MD_NO_FUA, &mdev->flags);
  1278. /* Point of no return reached.
  1279. * Devices and memory are no longer released by error cleanup below.
  1280. * now mdev takes over responsibility, and the state engine should
  1281. * clean it up somewhere. */
  1282. D_ASSERT(mdev->ldev == NULL);
  1283. mdev->ldev = nbc;
  1284. mdev->resync = resync_lru;
  1285. mdev->rs_plan_s = new_plan;
  1286. nbc = NULL;
  1287. resync_lru = NULL;
  1288. new_disk_conf = NULL;
  1289. new_plan = NULL;
  1290. mdev->write_ordering = WO_bdev_flush;
  1291. drbd_bump_write_ordering(mdev, WO_bdev_flush);
  1292. if (drbd_md_test_flag(mdev->ldev, MDF_CRASHED_PRIMARY))
  1293. set_bit(CRASHED_PRIMARY, &mdev->flags);
  1294. else
  1295. clear_bit(CRASHED_PRIMARY, &mdev->flags);
  1296. if (drbd_md_test_flag(mdev->ldev, MDF_PRIMARY_IND) &&
  1297. !(mdev->state.role == R_PRIMARY && mdev->tconn->susp_nod)) {
  1298. set_bit(CRASHED_PRIMARY, &mdev->flags);
  1299. cp_discovered = 1;
  1300. }
  1301. mdev->send_cnt = 0;
  1302. mdev->recv_cnt = 0;
  1303. mdev->read_cnt = 0;
  1304. mdev->writ_cnt = 0;
  1305. drbd_reconsider_max_bio_size(mdev);
  1306. /* If I am currently not R_PRIMARY,
  1307. * but meta data primary indicator is set,
  1308. * I just now recover from a hard crash,
  1309. * and have been R_PRIMARY before that crash.
  1310. *
  1311. * Now, if I had no connection before that crash
  1312. * (have been degraded R_PRIMARY), chances are that
  1313. * I won't find my peer now either.
  1314. *
  1315. * In that case, and _only_ in that case,
  1316. * we use the degr-wfc-timeout instead of the default,
  1317. * so we can automatically recover from a crash of a
  1318. * degraded but active "cluster" after a certain timeout.
  1319. */
  1320. clear_bit(USE_DEGR_WFC_T, &mdev->flags);
  1321. if (mdev->state.role != R_PRIMARY &&
  1322. drbd_md_test_flag(mdev->ldev, MDF_PRIMARY_IND) &&
  1323. !drbd_md_test_flag(mdev->ldev, MDF_CONNECTED_IND))
  1324. set_bit(USE_DEGR_WFC_T, &mdev->flags);
  1325. dd = drbd_determine_dev_size(mdev, 0);
  1326. if (dd == dev_size_error) {
  1327. retcode = ERR_NOMEM_BITMAP;
  1328. goto force_diskless_dec;
  1329. } else if (dd == grew)
  1330. set_bit(RESYNC_AFTER_NEG, &mdev->flags);
  1331. if (drbd_md_test_flag(mdev->ldev, MDF_FULL_SYNC)) {
  1332. dev_info(DEV, "Assuming that all blocks are out of sync "
  1333. "(aka FullSync)\n");
  1334. if (drbd_bitmap_io(mdev, &drbd_bmio_set_n_write,
  1335. "set_n_write from attaching", BM_LOCKED_MASK)) {
  1336. retcode = ERR_IO_MD_DISK;
  1337. goto force_diskless_dec;
  1338. }
  1339. } else {
  1340. if (drbd_bitmap_io(mdev, &drbd_bm_read,
  1341. "read from attaching", BM_LOCKED_MASK)) {
  1342. retcode = ERR_IO_MD_DISK;
  1343. goto force_diskless_dec;
  1344. }
  1345. }
  1346. if (cp_discovered) {
  1347. drbd_al_apply_to_bm(mdev);
  1348. if (drbd_bitmap_io(mdev, &drbd_bm_write,
  1349. "crashed primary apply AL", BM_LOCKED_MASK)) {
  1350. retcode = ERR_IO_MD_DISK;
  1351. goto force_diskless_dec;
  1352. }
  1353. }
  1354. if (_drbd_bm_total_weight(mdev) == drbd_bm_bits(mdev))
  1355. drbd_suspend_al(mdev); /* IO is still suspended here... */
  1356. spin_lock_irq(&mdev->tconn->req_lock);
  1357. os = drbd_read_state(mdev);
  1358. ns = os;
  1359. /* If MDF_CONSISTENT is not set go into inconsistent state,
  1360. otherwise investigate MDF_WasUpToDate...
  1361. If MDF_WAS_UP_TO_DATE is not set go into D_OUTDATED disk state,
  1362. otherwise into D_CONSISTENT state.
  1363. */
  1364. if (drbd_md_test_flag(mdev->ldev, MDF_CONSISTENT)) {
  1365. if (drbd_md_test_flag(mdev->ldev, MDF_WAS_UP_TO_DATE))
  1366. ns.disk = D_CONSISTENT;
  1367. else
  1368. ns.disk = D_OUTDATED;
  1369. } else {
  1370. ns.disk = D_INCONSISTENT;
  1371. }
  1372. if (drbd_md_test_flag(mdev->ldev, MDF_PEER_OUT_DATED))
  1373. ns.pdsk = D_OUTDATED;
  1374. rcu_read_lock();
  1375. if (ns.disk == D_CONSISTENT &&
  1376. (ns.pdsk == D_OUTDATED || rcu_dereference(mdev->ldev->disk_conf)->fencing == FP_DONT_CARE))
  1377. ns.disk = D_UP_TO_DATE;
  1378. rcu_read_unlock();
  1379. /* All tests on MDF_PRIMARY_IND, MDF_CONNECTED_IND,
  1380. MDF_CONSISTENT and MDF_WAS_UP_TO_DATE must happen before
  1381. this point, because drbd_request_state() modifies these
  1382. flags. */
  1383. /* In case we are C_CONNECTED postpone any decision on the new disk
  1384. state after the negotiation phase. */
  1385. if (mdev->state.conn == C_CONNECTED) {
  1386. mdev->new_state_tmp.i = ns.i;
  1387. ns.i = os.i;
  1388. ns.disk = D_NEGOTIATING;
  1389. /* We expect to receive up-to-date UUIDs soon.
  1390. To avoid a race in receive_state, free p_uuid while
  1391. holding req_lock. I.e. atomic with the state change */
  1392. kfree(mdev->p_uuid);
  1393. mdev->p_uuid = NULL;
  1394. }
  1395. rv = _drbd_set_state(mdev, ns, CS_VERBOSE, NULL);
  1396. spin_unlock_irq(&mdev->tconn->req_lock);
  1397. if (rv < SS_SUCCESS)
  1398. goto force_diskless_dec;
  1399. if (mdev->state.role == R_PRIMARY)
  1400. mdev->ldev->md.uuid[UI_CURRENT] |= (u64)1;
  1401. else
  1402. mdev->ldev->md.uuid[UI_CURRENT] &= ~(u64)1;
  1403. drbd_md_mark_dirty(mdev);
  1404. drbd_md_sync(mdev);
  1405. kobject_uevent(&disk_to_dev(mdev->vdisk)->kobj, KOBJ_CHANGE);
  1406. put_ldev(mdev);
  1407. conn_reconfig_done(mdev->tconn);
  1408. drbd_adm_finish(info, retcode);
  1409. return 0;
  1410. force_diskless_dec:
  1411. put_ldev(mdev);
  1412. force_diskless:
  1413. drbd_force_state(mdev, NS(disk, D_FAILED));
  1414. drbd_md_sync(mdev);
  1415. fail:
  1416. conn_reconfig_done(mdev->tconn);
  1417. if (nbc) {
  1418. if (nbc->backing_bdev)
  1419. blkdev_put(nbc->backing_bdev,
  1420. FMODE_READ | FMODE_WRITE | FMODE_EXCL);
  1421. if (nbc->md_bdev)
  1422. blkdev_put(nbc->md_bdev,
  1423. FMODE_READ | FMODE_WRITE | FMODE_EXCL);
  1424. kfree(nbc);
  1425. }
  1426. kfree(new_disk_conf);
  1427. lc_destroy(resync_lru);
  1428. kfree(new_plan);
  1429. finish:
  1430. drbd_adm_finish(info, retcode);
  1431. return 0;
  1432. }
  1433. static int adm_detach(struct drbd_conf *mdev)
  1434. {
  1435. enum drbd_state_rv retcode;
  1436. int ret;
  1437. drbd_suspend_io(mdev); /* so no-one is stuck in drbd_al_begin_io */
  1438. retcode = drbd_request_state(mdev, NS(disk, D_FAILED));
  1439. /* D_FAILED will transition to DISKLESS. */
  1440. ret = wait_event_interruptible(mdev->misc_wait,
  1441. mdev->state.disk != D_FAILED);
  1442. drbd_resume_io(mdev);
  1443. if ((int)retcode == (int)SS_IS_DISKLESS)
  1444. retcode = SS_NOTHING_TO_DO;
  1445. if (ret)
  1446. retcode = ERR_INTR;
  1447. return retcode;
  1448. }
  1449. /* Detaching the disk is a process in multiple stages. First we need to lock
  1450. * out application IO, in-flight IO, IO stuck in drbd_al_begin_io.
  1451. * Then we transition to D_DISKLESS, and wait for put_ldev() to return all
  1452. * internal references as well.
  1453. * Only then we have finally detached. */
  1454. int drbd_adm_detach(struct sk_buff *skb, struct genl_info *info)
  1455. {
  1456. enum drbd_ret_code retcode;
  1457. retcode = drbd_adm_prepare(skb, info, DRBD_ADM_NEED_MINOR);
  1458. if (!adm_ctx.reply_skb)
  1459. return retcode;
  1460. if (retcode != NO_ERROR)
  1461. goto out;
  1462. retcode = adm_detach(adm_ctx.mdev);
  1463. out:
  1464. drbd_adm_finish(info, retcode);
  1465. return 0;
  1466. }
  1467. static bool conn_resync_running(struct drbd_tconn *tconn)
  1468. {
  1469. struct drbd_conf *mdev;
  1470. bool rv = false;
  1471. int vnr;
  1472. rcu_read_lock();
  1473. idr_for_each_entry(&tconn->volumes, mdev, vnr) {
  1474. if (mdev->state.conn == C_SYNC_SOURCE ||
  1475. mdev->state.conn == C_SYNC_TARGET ||
  1476. mdev->state.conn == C_PAUSED_SYNC_S ||
  1477. mdev->state.conn == C_PAUSED_SYNC_T) {
  1478. rv = true;
  1479. break;
  1480. }
  1481. }
  1482. rcu_read_unlock();
  1483. return rv;
  1484. }
  1485. static bool conn_ov_running(struct drbd_tconn *tconn)
  1486. {
  1487. struct drbd_conf *mdev;
  1488. bool rv = false;
  1489. int vnr;
  1490. rcu_read_lock();
  1491. idr_for_each_entry(&tconn->volumes, mdev, vnr) {
  1492. if (mdev->state.conn == C_VERIFY_S ||
  1493. mdev->state.conn == C_VERIFY_T) {
  1494. rv = true;
  1495. break;
  1496. }
  1497. }
  1498. rcu_read_unlock();
  1499. return rv;
  1500. }
  1501. static enum drbd_ret_code
  1502. _check_net_options(struct drbd_tconn *tconn, struct net_conf *old_conf, struct net_conf *new_conf)
  1503. {
  1504. struct drbd_conf *mdev;
  1505. int i;
  1506. if (old_conf && tconn->cstate == C_WF_REPORT_PARAMS && tconn->agreed_pro_version < 100) {
  1507. if (new_conf->wire_protocol != old_conf->wire_protocol)
  1508. return ERR_NEED_APV_100;
  1509. if (new_conf->two_primaries != old_conf->two_primaries)
  1510. return ERR_NEED_APV_100;
  1511. if (!new_conf->integrity_alg != !old_conf->integrity_alg)
  1512. return ERR_NEED_APV_100;
  1513. if (strcmp(new_conf->integrity_alg, old_conf->integrity_alg))
  1514. return ERR_NEED_APV_100;
  1515. }
  1516. if (!new_conf->two_primaries &&
  1517. conn_highest_role(tconn) == R_PRIMARY &&
  1518. conn_highest_peer(tconn) == R_PRIMARY)
  1519. return ERR_NEED_ALLOW_TWO_PRI;
  1520. if (new_conf->two_primaries &&
  1521. (new_conf->wire_protocol != DRBD_PROT_C))
  1522. return ERR_NOT_PROTO_C;
  1523. idr_for_each_entry(&tconn->volumes, mdev, i) {
  1524. if (get_ldev(mdev)) {
  1525. enum drbd_fencing_p fp = rcu_dereference(mdev->ldev->disk_conf)->fencing;
  1526. put_ldev(mdev);
  1527. if (new_conf->wire_protocol == DRBD_PROT_A && fp == FP_STONITH)
  1528. return ERR_STONITH_AND_PROT_A;
  1529. }
  1530. if (mdev->state.role == R_PRIMARY && new_conf->discard_my_data)
  1531. return ERR_DISCARD;
  1532. }
  1533. if (new_conf->on_congestion != OC_BLOCK && new_conf->wire_protocol != DRBD_PROT_A)
  1534. return ERR_CONG_NOT_PROTO_A;
  1535. return NO_ERROR;
  1536. }
  1537. static enum drbd_ret_code
  1538. check_net_options(struct drbd_tconn *tconn, struct net_conf *new_conf)
  1539. {
  1540. static enum drbd_ret_code rv;
  1541. struct drbd_conf *mdev;
  1542. int i;
  1543. rcu_read_lock();
  1544. rv = _check_net_options(tconn, rcu_dereference(tconn->net_conf), new_conf);
  1545. rcu_read_unlock();
  1546. /* tconn->volumes protected by genl_lock() here */
  1547. idr_for_each_entry(&tconn->volumes, mdev, i) {
  1548. if (!mdev->bitmap) {
  1549. if(drbd_bm_init(mdev))
  1550. return ERR_NOMEM;
  1551. }
  1552. }
  1553. return rv;
  1554. }
  1555. struct crypto {
  1556. struct crypto_hash *verify_tfm;
  1557. struct crypto_hash *csums_tfm;
  1558. struct crypto_hash *cram_hmac_tfm;
  1559. struct crypto_hash *integrity_tfm;
  1560. void *int_dig_in;
  1561. void *int_dig_vv;
  1562. };
  1563. static int
  1564. alloc_hash(struct crypto_hash **tfm, char *tfm_name, int err_alg)
  1565. {
  1566. if (!tfm_name[0])
  1567. return NO_ERROR;
  1568. *tfm = crypto_alloc_hash(tfm_name, 0, CRYPTO_ALG_ASYNC);
  1569. if (IS_ERR(*tfm)) {
  1570. *tfm = NULL;
  1571. return err_alg;
  1572. }
  1573. return NO_ERROR;
  1574. }
  1575. static enum drbd_ret_code
  1576. alloc_crypto(struct crypto *crypto, struct net_conf *new_conf)
  1577. {
  1578. char hmac_name[CRYPTO_MAX_ALG_NAME];
  1579. enum drbd_ret_code rv;
  1580. int hash_size;
  1581. rv = alloc_hash(&crypto->csums_tfm, new_conf->csums_alg,
  1582. ERR_CSUMS_ALG);
  1583. if (rv != NO_ERROR)
  1584. return rv;
  1585. rv = alloc_hash(&crypto->verify_tfm, new_conf->verify_alg,
  1586. ERR_VERIFY_ALG);
  1587. if (rv != NO_ERROR)
  1588. return rv;
  1589. rv = alloc_hash(&crypto->integrity_tfm, new_conf->integrity_alg,
  1590. ERR_INTEGRITY_ALG);
  1591. if (rv != NO_ERROR)
  1592. return rv;
  1593. if (new_conf->cram_hmac_alg[0] != 0) {
  1594. snprintf(hmac_name, CRYPTO_MAX_ALG_NAME, "hmac(%s)",
  1595. new_conf->cram_hmac_alg);
  1596. rv = alloc_hash(&crypto->cram_hmac_tfm, hmac_name,
  1597. ERR_AUTH_ALG);
  1598. }
  1599. if (crypto->integrity_tfm) {
  1600. hash_size = crypto_hash_digestsize(crypto->integrity_tfm);
  1601. crypto->int_dig_in = kmalloc(hash_size, GFP_KERNEL);
  1602. if (!crypto->int_dig_in)
  1603. return ERR_NOMEM;
  1604. crypto->int_dig_vv = kmalloc(hash_size, GFP_KERNEL);
  1605. if (!crypto->int_dig_vv)
  1606. return ERR_NOMEM;
  1607. }
  1608. return rv;
  1609. }
  1610. static void free_crypto(struct crypto *crypto)
  1611. {
  1612. kfree(crypto->int_dig_in);
  1613. kfree(crypto->int_dig_vv);
  1614. crypto_free_hash(crypto->cram_hmac_tfm);
  1615. crypto_free_hash(crypto->integrity_tfm);
  1616. crypto_free_hash(crypto->csums_tfm);
  1617. crypto_free_hash(crypto->verify_tfm);
  1618. }
  1619. int drbd_adm_net_opts(struct sk_buff *skb, struct genl_info *info)
  1620. {
  1621. enum drbd_ret_code retcode;
  1622. struct drbd_tconn *tconn;
  1623. struct net_conf *old_conf, *new_conf = NULL;
  1624. int err;
  1625. int ovr; /* online verify running */
  1626. int rsr; /* re-sync running */
  1627. struct crypto crypto = { };
  1628. retcode = drbd_adm_prepare(skb, info, DRBD_ADM_NEED_CONNECTION);
  1629. if (!adm_ctx.reply_skb)
  1630. return retcode;
  1631. if (retcode != NO_ERROR)
  1632. goto out;
  1633. tconn = adm_ctx.tconn;
  1634. new_conf = kzalloc(sizeof(struct net_conf), GFP_KERNEL);
  1635. if (!new_conf) {
  1636. retcode = ERR_NOMEM;
  1637. goto out;
  1638. }
  1639. conn_reconfig_start(tconn);
  1640. mutex_lock(&tconn->data.mutex);
  1641. mutex_lock(&tconn->conf_update);
  1642. old_conf = tconn->net_conf;
  1643. if (!old_conf) {
  1644. drbd_msg_put_info("net conf missing, try connect");
  1645. retcode = ERR_INVALID_REQUEST;
  1646. goto fail;
  1647. }
  1648. *new_conf = *old_conf;
  1649. if (should_set_defaults(info))
  1650. set_net_conf_defaults(new_conf);
  1651. err = net_conf_from_attrs_for_change(new_conf, info);
  1652. if (err && err != -ENOMSG) {
  1653. retcode = ERR_MANDATORY_TAG;
  1654. drbd_msg_put_info(from_attrs_err_to_txt(err));
  1655. goto fail;
  1656. }
  1657. retcode = check_net_options(tconn, new_conf);
  1658. if (retcode != NO_ERROR)
  1659. goto fail;
  1660. /* re-sync running */
  1661. rsr = conn_resync_running(tconn);
  1662. if (rsr && strcmp(new_conf->csums_alg, old_conf->csums_alg)) {
  1663. retcode = ERR_CSUMS_RESYNC_RUNNING;
  1664. goto fail;
  1665. }
  1666. /* online verify running */
  1667. ovr = conn_ov_running(tconn);
  1668. if (ovr && strcmp(new_conf->verify_alg, old_conf->verify_alg)) {
  1669. retcode = ERR_VERIFY_RUNNING;
  1670. goto fail;
  1671. }
  1672. retcode = alloc_crypto(&crypto, new_conf);
  1673. if (retcode != NO_ERROR)
  1674. goto fail;
  1675. rcu_assign_pointer(tconn->net_conf, new_conf);
  1676. if (!rsr) {
  1677. crypto_free_hash(tconn->csums_tfm);
  1678. tconn->csums_tfm = crypto.csums_tfm;
  1679. crypto.csums_tfm = NULL;
  1680. }
  1681. if (!ovr) {
  1682. crypto_free_hash(tconn->verify_tfm);
  1683. tconn->verify_tfm = crypto.verify_tfm;
  1684. crypto.verify_tfm = NULL;
  1685. }
  1686. kfree(tconn->int_dig_in);
  1687. tconn->int_dig_in = crypto.int_dig_in;
  1688. kfree(tconn->int_dig_vv);
  1689. tconn->int_dig_vv = crypto.int_dig_vv;
  1690. crypto_free_hash(tconn->integrity_tfm);
  1691. tconn->integrity_tfm = crypto.integrity_tfm;
  1692. if (tconn->cstate >= C_WF_REPORT_PARAMS && tconn->agreed_pro_version >= 100)
  1693. /* Do this without trying to take tconn->data.mutex again. */
  1694. __drbd_send_protocol(tconn, P_PROTOCOL_UPDATE);
  1695. crypto_free_hash(tconn->cram_hmac_tfm);
  1696. tconn->cram_hmac_tfm = crypto.cram_hmac_tfm;
  1697. mutex_unlock(&tconn->conf_update);
  1698. mutex_unlock(&tconn->data.mutex);
  1699. synchronize_rcu();
  1700. kfree(old_conf);
  1701. if (tconn->cstate >= C_WF_REPORT_PARAMS)
  1702. drbd_send_sync_param(minor_to_mdev(conn_lowest_minor(tconn)));
  1703. goto done;
  1704. fail:
  1705. mutex_unlock(&tconn->conf_update);
  1706. mutex_unlock(&tconn->data.mutex);
  1707. free_crypto(&crypto);
  1708. kfree(new_conf);
  1709. done:
  1710. conn_reconfig_done(tconn);
  1711. out:
  1712. drbd_adm_finish(info, retcode);
  1713. return 0;
  1714. }
  1715. int drbd_adm_connect(struct sk_buff *skb, struct genl_info *info)
  1716. {
  1717. struct drbd_conf *mdev;
  1718. struct net_conf *old_conf, *new_conf = NULL;
  1719. struct crypto crypto = { };
  1720. struct drbd_tconn *tconn;
  1721. enum drbd_ret_code retcode;
  1722. int i;
  1723. int err;
  1724. retcode = drbd_adm_prepare(skb, info, DRBD_ADM_NEED_RESOURCE);
  1725. if (!adm_ctx.reply_skb)
  1726. return retcode;
  1727. if (retcode != NO_ERROR)
  1728. goto out;
  1729. if (!(adm_ctx.my_addr && adm_ctx.peer_addr)) {
  1730. drbd_msg_put_info("connection endpoint(s) missing");
  1731. retcode = ERR_INVALID_REQUEST;
  1732. goto out;
  1733. }
  1734. /* No need for _rcu here. All reconfiguration is
  1735. * strictly serialized on genl_lock(). We are protected against
  1736. * concurrent reconfiguration/addition/deletion */
  1737. list_for_each_entry(tconn, &drbd_tconns, all_tconn) {
  1738. if (nla_len(adm_ctx.my_addr) == tconn->my_addr_len &&
  1739. !memcmp(nla_data(adm_ctx.my_addr), &tconn->my_addr, tconn->my_addr_len)) {
  1740. retcode = ERR_LOCAL_ADDR;
  1741. goto out;
  1742. }
  1743. if (nla_len(adm_ctx.peer_addr) == tconn->peer_addr_len &&
  1744. !memcmp(nla_data(adm_ctx.peer_addr), &tconn->peer_addr, tconn->peer_addr_len)) {
  1745. retcode = ERR_PEER_ADDR;
  1746. goto out;
  1747. }
  1748. }
  1749. tconn = adm_ctx.tconn;
  1750. conn_reconfig_start(tconn);
  1751. if (tconn->cstate > C_STANDALONE) {
  1752. retcode = ERR_NET_CONFIGURED;
  1753. goto fail;
  1754. }
  1755. /* allocation not in the IO path, cqueue thread context */
  1756. new_conf = kzalloc(sizeof(*new_conf), GFP_KERNEL);
  1757. if (!new_conf) {
  1758. retcode = ERR_NOMEM;
  1759. goto fail;
  1760. }
  1761. set_net_conf_defaults(new_conf);
  1762. err = net_conf_from_attrs(new_conf, info);
  1763. if (err) {
  1764. retcode = ERR_MANDATORY_TAG;
  1765. drbd_msg_put_info(from_attrs_err_to_txt(err));
  1766. goto fail;
  1767. }
  1768. retcode = check_net_options(tconn, new_conf);
  1769. if (retcode != NO_ERROR)
  1770. goto fail;
  1771. retcode = alloc_crypto(&crypto, new_conf);
  1772. if (retcode != NO_ERROR)
  1773. goto fail;
  1774. ((char *)new_conf->shared_secret)[SHARED_SECRET_MAX-1] = 0;
  1775. conn_flush_workqueue(tconn);
  1776. mutex_lock(&tconn->conf_update);
  1777. old_conf = tconn->net_conf;
  1778. if (old_conf) {
  1779. retcode = ERR_NET_CONFIGURED;
  1780. mutex_unlock(&tconn->conf_update);
  1781. goto fail;
  1782. }
  1783. rcu_assign_pointer(tconn->net_conf, new_conf);
  1784. conn_free_crypto(tconn);
  1785. tconn->int_dig_in = crypto.int_dig_in;
  1786. tconn->int_dig_vv = crypto.int_dig_vv;
  1787. tconn->cram_hmac_tfm = crypto.cram_hmac_tfm;
  1788. tconn->integrity_tfm = crypto.integrity_tfm;
  1789. tconn->csums_tfm = crypto.csums_tfm;
  1790. tconn->verify_tfm = crypto.verify_tfm;
  1791. tconn->my_addr_len = nla_len(adm_ctx.my_addr);
  1792. memcpy(&tconn->my_addr, nla_data(adm_ctx.my_addr), tconn->my_addr_len);
  1793. tconn->peer_addr_len = nla_len(adm_ctx.peer_addr);
  1794. memcpy(&tconn->peer_addr, nla_data(adm_ctx.peer_addr), tconn->peer_addr_len);
  1795. mutex_unlock(&tconn->conf_update);
  1796. rcu_read_lock();
  1797. idr_for_each_entry(&tconn->volumes, mdev, i) {
  1798. mdev->send_cnt = 0;
  1799. mdev->recv_cnt = 0;
  1800. }
  1801. rcu_read_unlock();
  1802. retcode = conn_request_state(tconn, NS(conn, C_UNCONNECTED), CS_VERBOSE);
  1803. conn_reconfig_done(tconn);
  1804. drbd_adm_finish(info, retcode);
  1805. return 0;
  1806. fail:
  1807. free_crypto(&crypto);
  1808. kfree(new_conf);
  1809. conn_reconfig_done(tconn);
  1810. out:
  1811. drbd_adm_finish(info, retcode);
  1812. return 0;
  1813. }
  1814. static enum drbd_state_rv conn_try_disconnect(struct drbd_tconn *tconn, bool force)
  1815. {
  1816. enum drbd_state_rv rv;
  1817. rv = conn_request_state(tconn, NS(conn, C_DISCONNECTING),
  1818. force ? CS_HARD : 0);
  1819. switch (rv) {
  1820. case SS_NOTHING_TO_DO:
  1821. break;
  1822. case SS_ALREADY_STANDALONE:
  1823. return SS_SUCCESS;
  1824. case SS_PRIMARY_NOP:
  1825. /* Our state checking code wants to see the peer outdated. */
  1826. rv = conn_request_state(tconn, NS2(conn, C_DISCONNECTING,
  1827. pdsk, D_OUTDATED), CS_VERBOSE);
  1828. break;
  1829. case SS_CW_FAILED_BY_PEER:
  1830. /* The peer probably wants to see us outdated. */
  1831. rv = conn_request_state(tconn, NS2(conn, C_DISCONNECTING,
  1832. disk, D_OUTDATED), 0);
  1833. if (rv == SS_IS_DISKLESS || rv == SS_LOWER_THAN_OUTDATED) {
  1834. rv = conn_request_state(tconn, NS(conn, C_DISCONNECTING),
  1835. CS_HARD);
  1836. }
  1837. break;
  1838. default:;
  1839. /* no special handling necessary */
  1840. }
  1841. if (rv >= SS_SUCCESS) {
  1842. enum drbd_state_rv rv2;
  1843. /* No one else can reconfigure the network while I am here.
  1844. * The state handling only uses drbd_thread_stop_nowait(),
  1845. * we want to really wait here until the receiver is no more.
  1846. */
  1847. drbd_thread_stop(&adm_ctx.tconn->receiver);
  1848. /* Race breaker. This additional state change request may be
  1849. * necessary, if this was a forced disconnect during a receiver
  1850. * restart. We may have "killed" the receiver thread just
  1851. * after drbdd_init() returned. Typically, we should be
  1852. * C_STANDALONE already, now, and this becomes a no-op.
  1853. */
  1854. rv2 = conn_request_state(tconn, NS(conn, C_STANDALONE),
  1855. CS_VERBOSE | CS_HARD);
  1856. if (rv2 < SS_SUCCESS)
  1857. conn_err(tconn,
  1858. "unexpected rv2=%d in conn_try_disconnect()\n",
  1859. rv2);
  1860. }
  1861. return rv;
  1862. }
  1863. int drbd_adm_disconnect(struct sk_buff *skb, struct genl_info *info)
  1864. {
  1865. struct disconnect_parms parms;
  1866. struct drbd_tconn *tconn;
  1867. enum drbd_state_rv rv;
  1868. enum drbd_ret_code retcode;
  1869. int err;
  1870. retcode = drbd_adm_prepare(skb, info, DRBD_ADM_NEED_CONNECTION);
  1871. if (!adm_ctx.reply_skb)
  1872. return retcode;
  1873. if (retcode != NO_ERROR)
  1874. goto fail;
  1875. tconn = adm_ctx.tconn;
  1876. memset(&parms, 0, sizeof(parms));
  1877. if (info->attrs[DRBD_NLA_DISCONNECT_PARMS]) {
  1878. err = disconnect_parms_from_attrs(&parms, info);
  1879. if (err) {
  1880. retcode = ERR_MANDATORY_TAG;
  1881. drbd_msg_put_info(from_attrs_err_to_txt(err));
  1882. goto fail;
  1883. }
  1884. }
  1885. rv = conn_try_disconnect(tconn, parms.force_disconnect);
  1886. if (rv < SS_SUCCESS)
  1887. retcode = rv; /* FIXME: Type mismatch. */
  1888. else
  1889. retcode = NO_ERROR;
  1890. fail:
  1891. drbd_adm_finish(info, retcode);
  1892. return 0;
  1893. }
  1894. void resync_after_online_grow(struct drbd_conf *mdev)
  1895. {
  1896. int iass; /* I am sync source */
  1897. dev_info(DEV, "Resync of new storage after online grow\n");
  1898. if (mdev->state.role != mdev->state.peer)
  1899. iass = (mdev->state.role == R_PRIMARY);
  1900. else
  1901. iass = test_bit(DISCARD_CONCURRENT, &mdev->tconn->flags);
  1902. if (iass)
  1903. drbd_start_resync(mdev, C_SYNC_SOURCE);
  1904. else
  1905. _drbd_request_state(mdev, NS(conn, C_WF_SYNC_UUID), CS_VERBOSE + CS_SERIALIZE);
  1906. }
  1907. int drbd_adm_resize(struct sk_buff *skb, struct genl_info *info)
  1908. {
  1909. struct disk_conf *old_disk_conf, *new_disk_conf = NULL;
  1910. struct resize_parms rs;
  1911. struct drbd_conf *mdev;
  1912. enum drbd_ret_code retcode;
  1913. enum determine_dev_size dd;
  1914. enum dds_flags ddsf;
  1915. sector_t u_size;
  1916. int err;
  1917. retcode = drbd_adm_prepare(skb, info, DRBD_ADM_NEED_MINOR);
  1918. if (!adm_ctx.reply_skb)
  1919. return retcode;
  1920. if (retcode != NO_ERROR)
  1921. goto fail;
  1922. memset(&rs, 0, sizeof(struct resize_parms));
  1923. if (info->attrs[DRBD_NLA_RESIZE_PARMS]) {
  1924. err = resize_parms_from_attrs(&rs, info);
  1925. if (err) {
  1926. retcode = ERR_MANDATORY_TAG;
  1927. drbd_msg_put_info(from_attrs_err_to_txt(err));
  1928. goto fail;
  1929. }
  1930. }
  1931. mdev = adm_ctx.mdev;
  1932. if (mdev->state.conn > C_CONNECTED) {
  1933. retcode = ERR_RESIZE_RESYNC;
  1934. goto fail;
  1935. }
  1936. if (mdev->state.role == R_SECONDARY &&
  1937. mdev->state.peer == R_SECONDARY) {
  1938. retcode = ERR_NO_PRIMARY;
  1939. goto fail;
  1940. }
  1941. if (!get_ldev(mdev)) {
  1942. retcode = ERR_NO_DISK;
  1943. goto fail;
  1944. }
  1945. if (rs.no_resync && mdev->tconn->agreed_pro_version < 93) {
  1946. retcode = ERR_NEED_APV_93;
  1947. goto fail;
  1948. }
  1949. rcu_read_lock();
  1950. u_size = rcu_dereference(mdev->ldev->disk_conf)->disk_size;
  1951. rcu_read_unlock();
  1952. if (u_size != (sector_t)rs.resize_size) {
  1953. new_disk_conf = kmalloc(sizeof(struct disk_conf), GFP_KERNEL);
  1954. if (!new_disk_conf) {
  1955. retcode = ERR_NOMEM;
  1956. goto fail;
  1957. }
  1958. }
  1959. if (mdev->ldev->known_size != drbd_get_capacity(mdev->ldev->backing_bdev))
  1960. mdev->ldev->known_size = drbd_get_capacity(mdev->ldev->backing_bdev);
  1961. if (new_disk_conf) {
  1962. mutex_lock(&mdev->tconn->conf_update);
  1963. old_disk_conf = mdev->ldev->disk_conf;
  1964. *new_disk_conf = *old_disk_conf;
  1965. new_disk_conf->disk_size = (sector_t)rs.resize_size;
  1966. rcu_assign_pointer(mdev->ldev->disk_conf, new_disk_conf);
  1967. mutex_unlock(&mdev->tconn->conf_update);
  1968. synchronize_rcu();
  1969. kfree(old_disk_conf);
  1970. }
  1971. ddsf = (rs.resize_force ? DDSF_FORCED : 0) | (rs.no_resync ? DDSF_NO_RESYNC : 0);
  1972. dd = drbd_determine_dev_size(mdev, ddsf);
  1973. drbd_md_sync(mdev);
  1974. put_ldev(mdev);
  1975. if (dd == dev_size_error) {
  1976. retcode = ERR_NOMEM_BITMAP;
  1977. goto fail;
  1978. }
  1979. if (mdev->state.conn == C_CONNECTED) {
  1980. if (dd == grew)
  1981. set_bit(RESIZE_PENDING, &mdev->flags);
  1982. drbd_send_uuids(mdev);
  1983. drbd_send_sizes(mdev, 1, ddsf);
  1984. }
  1985. fail:
  1986. drbd_adm_finish(info, retcode);
  1987. return 0;
  1988. }
  1989. int drbd_adm_resource_opts(struct sk_buff *skb, struct genl_info *info)
  1990. {
  1991. enum drbd_ret_code retcode;
  1992. struct drbd_tconn *tconn;
  1993. struct res_opts res_opts;
  1994. int err;
  1995. retcode = drbd_adm_prepare(skb, info, DRBD_ADM_NEED_RESOURCE);
  1996. if (!adm_ctx.reply_skb)
  1997. return retcode;
  1998. if (retcode != NO_ERROR)
  1999. goto fail;
  2000. tconn = adm_ctx.tconn;
  2001. res_opts = tconn->res_opts;
  2002. if (should_set_defaults(info))
  2003. set_res_opts_defaults(&res_opts);
  2004. err = res_opts_from_attrs(&res_opts, info);
  2005. if (err && err != -ENOMSG) {
  2006. retcode = ERR_MANDATORY_TAG;
  2007. drbd_msg_put_info(from_attrs_err_to_txt(err));
  2008. goto fail;
  2009. }
  2010. err = set_resource_options(tconn, &res_opts);
  2011. if (err) {
  2012. retcode = ERR_INVALID_REQUEST;
  2013. if (err == -ENOMEM)
  2014. retcode = ERR_NOMEM;
  2015. }
  2016. fail:
  2017. drbd_adm_finish(info, retcode);
  2018. return 0;
  2019. }
  2020. int drbd_adm_invalidate(struct sk_buff *skb, struct genl_info *info)
  2021. {
  2022. struct drbd_conf *mdev;
  2023. int retcode; /* enum drbd_ret_code rsp. enum drbd_state_rv */
  2024. retcode = drbd_adm_prepare(skb, info, DRBD_ADM_NEED_MINOR);
  2025. if (!adm_ctx.reply_skb)
  2026. return retcode;
  2027. if (retcode != NO_ERROR)
  2028. goto out;
  2029. mdev = adm_ctx.mdev;
  2030. /* If there is still bitmap IO pending, probably because of a previous
  2031. * resync just being finished, wait for it before requesting a new resync. */
  2032. wait_event(mdev->misc_wait, !test_bit(BITMAP_IO, &mdev->flags));
  2033. retcode = _drbd_request_state(mdev, NS(conn, C_STARTING_SYNC_T), CS_ORDERED);
  2034. if (retcode < SS_SUCCESS && retcode != SS_NEED_CONNECTION)
  2035. retcode = drbd_request_state(mdev, NS(conn, C_STARTING_SYNC_T));
  2036. while (retcode == SS_NEED_CONNECTION) {
  2037. spin_lock_irq(&mdev->tconn->req_lock);
  2038. if (mdev->state.conn < C_CONNECTED)
  2039. retcode = _drbd_set_state(_NS(mdev, disk, D_INCONSISTENT), CS_VERBOSE, NULL);
  2040. spin_unlock_irq(&mdev->tconn->req_lock);
  2041. if (retcode != SS_NEED_CONNECTION)
  2042. break;
  2043. retcode = drbd_request_state(mdev, NS(conn, C_STARTING_SYNC_T));
  2044. }
  2045. out:
  2046. drbd_adm_finish(info, retcode);
  2047. return 0;
  2048. }
  2049. static int drbd_bmio_set_susp_al(struct drbd_conf *mdev)
  2050. {
  2051. int rv;
  2052. rv = drbd_bmio_set_n_write(mdev);
  2053. drbd_suspend_al(mdev);
  2054. return rv;
  2055. }
  2056. static int drbd_adm_simple_request_state(struct sk_buff *skb, struct genl_info *info,
  2057. union drbd_state mask, union drbd_state val)
  2058. {
  2059. enum drbd_ret_code retcode;
  2060. retcode = drbd_adm_prepare(skb, info, DRBD_ADM_NEED_MINOR);
  2061. if (!adm_ctx.reply_skb)
  2062. return retcode;
  2063. if (retcode != NO_ERROR)
  2064. goto out;
  2065. retcode = drbd_request_state(adm_ctx.mdev, mask, val);
  2066. out:
  2067. drbd_adm_finish(info, retcode);
  2068. return 0;
  2069. }
  2070. int drbd_adm_invalidate_peer(struct sk_buff *skb, struct genl_info *info)
  2071. {
  2072. return drbd_adm_simple_request_state(skb, info, NS(conn, C_STARTING_SYNC_S));
  2073. }
  2074. int drbd_adm_pause_sync(struct sk_buff *skb, struct genl_info *info)
  2075. {
  2076. enum drbd_ret_code retcode;
  2077. retcode = drbd_adm_prepare(skb, info, DRBD_ADM_NEED_MINOR);
  2078. if (!adm_ctx.reply_skb)
  2079. return retcode;
  2080. if (retcode != NO_ERROR)
  2081. goto out;
  2082. if (drbd_request_state(adm_ctx.mdev, NS(user_isp, 1)) == SS_NOTHING_TO_DO)
  2083. retcode = ERR_PAUSE_IS_SET;
  2084. out:
  2085. drbd_adm_finish(info, retcode);
  2086. return 0;
  2087. }
  2088. int drbd_adm_resume_sync(struct sk_buff *skb, struct genl_info *info)
  2089. {
  2090. union drbd_dev_state s;
  2091. enum drbd_ret_code retcode;
  2092. retcode = drbd_adm_prepare(skb, info, DRBD_ADM_NEED_MINOR);
  2093. if (!adm_ctx.reply_skb)
  2094. return retcode;
  2095. if (retcode != NO_ERROR)
  2096. goto out;
  2097. if (drbd_request_state(adm_ctx.mdev, NS(user_isp, 0)) == SS_NOTHING_TO_DO) {
  2098. s = adm_ctx.mdev->state;
  2099. if (s.conn == C_PAUSED_SYNC_S || s.conn == C_PAUSED_SYNC_T) {
  2100. retcode = s.aftr_isp ? ERR_PIC_AFTER_DEP :
  2101. s.peer_isp ? ERR_PIC_PEER_DEP : ERR_PAUSE_IS_CLEAR;
  2102. } else {
  2103. retcode = ERR_PAUSE_IS_CLEAR;
  2104. }
  2105. }
  2106. out:
  2107. drbd_adm_finish(info, retcode);
  2108. return 0;
  2109. }
  2110. int drbd_adm_suspend_io(struct sk_buff *skb, struct genl_info *info)
  2111. {
  2112. return drbd_adm_simple_request_state(skb, info, NS(susp, 1));
  2113. }
  2114. int drbd_adm_resume_io(struct sk_buff *skb, struct genl_info *info)
  2115. {
  2116. struct drbd_conf *mdev;
  2117. int retcode; /* enum drbd_ret_code rsp. enum drbd_state_rv */
  2118. retcode = drbd_adm_prepare(skb, info, DRBD_ADM_NEED_MINOR);
  2119. if (!adm_ctx.reply_skb)
  2120. return retcode;
  2121. if (retcode != NO_ERROR)
  2122. goto out;
  2123. mdev = adm_ctx.mdev;
  2124. if (test_bit(NEW_CUR_UUID, &mdev->flags)) {
  2125. drbd_uuid_new_current(mdev);
  2126. clear_bit(NEW_CUR_UUID, &mdev->flags);
  2127. }
  2128. drbd_suspend_io(mdev);
  2129. retcode = drbd_request_state(mdev, NS3(susp, 0, susp_nod, 0, susp_fen, 0));
  2130. if (retcode == SS_SUCCESS) {
  2131. if (mdev->state.conn < C_CONNECTED)
  2132. tl_clear(mdev->tconn);
  2133. if (mdev->state.disk == D_DISKLESS || mdev->state.disk == D_FAILED)
  2134. tl_restart(mdev->tconn, FAIL_FROZEN_DISK_IO);
  2135. }
  2136. drbd_resume_io(mdev);
  2137. out:
  2138. drbd_adm_finish(info, retcode);
  2139. return 0;
  2140. }
  2141. int drbd_adm_outdate(struct sk_buff *skb, struct genl_info *info)
  2142. {
  2143. return drbd_adm_simple_request_state(skb, info, NS(disk, D_OUTDATED));
  2144. }
  2145. int nla_put_drbd_cfg_context(struct sk_buff *skb, struct drbd_tconn *tconn, unsigned vnr)
  2146. {
  2147. struct nlattr *nla;
  2148. nla = nla_nest_start(skb, DRBD_NLA_CFG_CONTEXT);
  2149. if (!nla)
  2150. goto nla_put_failure;
  2151. if (vnr != VOLUME_UNSPECIFIED)
  2152. NLA_PUT_U32(skb, T_ctx_volume, vnr);
  2153. NLA_PUT_STRING(skb, T_ctx_resource_name, tconn->name);
  2154. if (tconn->my_addr_len)
  2155. NLA_PUT(skb, T_ctx_my_addr, tconn->my_addr_len, &tconn->my_addr);
  2156. if (tconn->peer_addr_len)
  2157. NLA_PUT(skb, T_ctx_peer_addr, tconn->peer_addr_len, &tconn->peer_addr);
  2158. nla_nest_end(skb, nla);
  2159. return 0;
  2160. nla_put_failure:
  2161. if (nla)
  2162. nla_nest_cancel(skb, nla);
  2163. return -EMSGSIZE;
  2164. }
  2165. int nla_put_status_info(struct sk_buff *skb, struct drbd_conf *mdev,
  2166. const struct sib_info *sib)
  2167. {
  2168. struct state_info *si = NULL; /* for sizeof(si->member); */
  2169. struct net_conf *nc;
  2170. struct nlattr *nla;
  2171. int got_ldev;
  2172. int err = 0;
  2173. int exclude_sensitive;
  2174. /* If sib != NULL, this is drbd_bcast_event, which anyone can listen
  2175. * to. So we better exclude_sensitive information.
  2176. *
  2177. * If sib == NULL, this is drbd_adm_get_status, executed synchronously
  2178. * in the context of the requesting user process. Exclude sensitive
  2179. * information, unless current has superuser.
  2180. *
  2181. * NOTE: for drbd_adm_get_status_all(), this is a netlink dump, and
  2182. * relies on the current implementation of netlink_dump(), which
  2183. * executes the dump callback successively from netlink_recvmsg(),
  2184. * always in the context of the receiving process */
  2185. exclude_sensitive = sib || !capable(CAP_SYS_ADMIN);
  2186. got_ldev = get_ldev(mdev);
  2187. /* We need to add connection name and volume number information still.
  2188. * Minor number is in drbd_genlmsghdr. */
  2189. if (nla_put_drbd_cfg_context(skb, mdev->tconn, mdev->vnr))
  2190. goto nla_put_failure;
  2191. if (res_opts_to_skb(skb, &mdev->tconn->res_opts, exclude_sensitive))
  2192. goto nla_put_failure;
  2193. rcu_read_lock();
  2194. if (got_ldev)
  2195. if (disk_conf_to_skb(skb, rcu_dereference(mdev->ldev->disk_conf), exclude_sensitive))
  2196. goto nla_put_failure;
  2197. nc = rcu_dereference(mdev->tconn->net_conf);
  2198. if (nc)
  2199. err = net_conf_to_skb(skb, nc, exclude_sensitive);
  2200. rcu_read_unlock();
  2201. if (err)
  2202. goto nla_put_failure;
  2203. nla = nla_nest_start(skb, DRBD_NLA_STATE_INFO);
  2204. if (!nla)
  2205. goto nla_put_failure;
  2206. NLA_PUT_U32(skb, T_sib_reason, sib ? sib->sib_reason : SIB_GET_STATUS_REPLY);
  2207. NLA_PUT_U32(skb, T_current_state, mdev->state.i);
  2208. NLA_PUT_U64(skb, T_ed_uuid, mdev->ed_uuid);
  2209. NLA_PUT_U64(skb, T_capacity, drbd_get_capacity(mdev->this_bdev));
  2210. if (got_ldev) {
  2211. NLA_PUT_U32(skb, T_disk_flags, mdev->ldev->md.flags);
  2212. NLA_PUT(skb, T_uuids, sizeof(si->uuids), mdev->ldev->md.uuid);
  2213. NLA_PUT_U64(skb, T_bits_total, drbd_bm_bits(mdev));
  2214. NLA_PUT_U64(skb, T_bits_oos, drbd_bm_total_weight(mdev));
  2215. if (C_SYNC_SOURCE <= mdev->state.conn &&
  2216. C_PAUSED_SYNC_T >= mdev->state.conn) {
  2217. NLA_PUT_U64(skb, T_bits_rs_total, mdev->rs_total);
  2218. NLA_PUT_U64(skb, T_bits_rs_failed, mdev->rs_failed);
  2219. }
  2220. }
  2221. if (sib) {
  2222. switch(sib->sib_reason) {
  2223. case SIB_SYNC_PROGRESS:
  2224. case SIB_GET_STATUS_REPLY:
  2225. break;
  2226. case SIB_STATE_CHANGE:
  2227. NLA_PUT_U32(skb, T_prev_state, sib->os.i);
  2228. NLA_PUT_U32(skb, T_new_state, sib->ns.i);
  2229. break;
  2230. case SIB_HELPER_POST:
  2231. NLA_PUT_U32(skb,
  2232. T_helper_exit_code, sib->helper_exit_code);
  2233. /* fall through */
  2234. case SIB_HELPER_PRE:
  2235. NLA_PUT_STRING(skb, T_helper, sib->helper_name);
  2236. break;
  2237. }
  2238. }
  2239. nla_nest_end(skb, nla);
  2240. if (0)
  2241. nla_put_failure:
  2242. err = -EMSGSIZE;
  2243. if (got_ldev)
  2244. put_ldev(mdev);
  2245. return err;
  2246. }
  2247. int drbd_adm_get_status(struct sk_buff *skb, struct genl_info *info)
  2248. {
  2249. enum drbd_ret_code retcode;
  2250. int err;
  2251. retcode = drbd_adm_prepare(skb, info, DRBD_ADM_NEED_MINOR);
  2252. if (!adm_ctx.reply_skb)
  2253. return retcode;
  2254. if (retcode != NO_ERROR)
  2255. goto out;
  2256. err = nla_put_status_info(adm_ctx.reply_skb, adm_ctx.mdev, NULL);
  2257. if (err) {
  2258. nlmsg_free(adm_ctx.reply_skb);
  2259. return err;
  2260. }
  2261. out:
  2262. drbd_adm_finish(info, retcode);
  2263. return 0;
  2264. }
  2265. int get_one_status(struct sk_buff *skb, struct netlink_callback *cb)
  2266. {
  2267. struct drbd_conf *mdev;
  2268. struct drbd_genlmsghdr *dh;
  2269. struct drbd_tconn *pos = (struct drbd_tconn*)cb->args[0];
  2270. struct drbd_tconn *tconn = NULL;
  2271. struct drbd_tconn *tmp;
  2272. unsigned volume = cb->args[1];
  2273. /* Open coded, deferred, iteration:
  2274. * list_for_each_entry_safe(tconn, tmp, &drbd_tconns, all_tconn) {
  2275. * idr_for_each_entry(&tconn->volumes, mdev, i) {
  2276. * ...
  2277. * }
  2278. * }
  2279. * where tconn is cb->args[0];
  2280. * and i is cb->args[1];
  2281. *
  2282. * cb->args[2] indicates if we shall loop over all resources,
  2283. * or just dump all volumes of a single resource.
  2284. *
  2285. * This may miss entries inserted after this dump started,
  2286. * or entries deleted before they are reached.
  2287. *
  2288. * We need to make sure the mdev won't disappear while
  2289. * we are looking at it, and revalidate our iterators
  2290. * on each iteration.
  2291. */
  2292. /* synchronize with conn_create()/conn_destroy() */
  2293. rcu_read_lock();
  2294. /* revalidate iterator position */
  2295. list_for_each_entry_rcu(tmp, &drbd_tconns, all_tconn) {
  2296. if (pos == NULL) {
  2297. /* first iteration */
  2298. pos = tmp;
  2299. tconn = pos;
  2300. break;
  2301. }
  2302. if (tmp == pos) {
  2303. tconn = pos;
  2304. break;
  2305. }
  2306. }
  2307. if (tconn) {
  2308. next_tconn:
  2309. mdev = idr_get_next(&tconn->volumes, &volume);
  2310. if (!mdev) {
  2311. /* No more volumes to dump on this tconn.
  2312. * Advance tconn iterator. */
  2313. pos = list_entry_rcu(tconn->all_tconn.next,
  2314. struct drbd_tconn, all_tconn);
  2315. /* Did we dump any volume on this tconn yet? */
  2316. if (volume != 0) {
  2317. /* If we reached the end of the list,
  2318. * or only a single resource dump was requested,
  2319. * we are done. */
  2320. if (&pos->all_tconn == &drbd_tconns || cb->args[2])
  2321. goto out;
  2322. volume = 0;
  2323. tconn = pos;
  2324. goto next_tconn;
  2325. }
  2326. }
  2327. dh = genlmsg_put(skb, NETLINK_CB(cb->skb).pid,
  2328. cb->nlh->nlmsg_seq, &drbd_genl_family,
  2329. NLM_F_MULTI, DRBD_ADM_GET_STATUS);
  2330. if (!dh)
  2331. goto out;
  2332. if (!mdev) {
  2333. /* this is a tconn without a single volume */
  2334. dh->minor = -1U;
  2335. dh->ret_code = NO_ERROR;
  2336. if (nla_put_drbd_cfg_context(skb, tconn, VOLUME_UNSPECIFIED))
  2337. genlmsg_cancel(skb, dh);
  2338. else
  2339. genlmsg_end(skb, dh);
  2340. goto out;
  2341. }
  2342. D_ASSERT(mdev->vnr == volume);
  2343. D_ASSERT(mdev->tconn == tconn);
  2344. dh->minor = mdev_to_minor(mdev);
  2345. dh->ret_code = NO_ERROR;
  2346. if (nla_put_status_info(skb, mdev, NULL)) {
  2347. genlmsg_cancel(skb, dh);
  2348. goto out;
  2349. }
  2350. genlmsg_end(skb, dh);
  2351. }
  2352. out:
  2353. rcu_read_unlock();
  2354. /* where to start the next iteration */
  2355. cb->args[0] = (long)pos;
  2356. cb->args[1] = (pos == tconn) ? volume + 1 : 0;
  2357. /* No more tconns/volumes/minors found results in an empty skb.
  2358. * Which will terminate the dump. */
  2359. return skb->len;
  2360. }
  2361. /*
  2362. * Request status of all resources, or of all volumes within a single resource.
  2363. *
  2364. * This is a dump, as the answer may not fit in a single reply skb otherwise.
  2365. * Which means we cannot use the family->attrbuf or other such members, because
  2366. * dump is NOT protected by the genl_lock(). During dump, we only have access
  2367. * to the incoming skb, and need to opencode "parsing" of the nlattr payload.
  2368. *
  2369. * Once things are setup properly, we call into get_one_status().
  2370. */
  2371. int drbd_adm_get_status_all(struct sk_buff *skb, struct netlink_callback *cb)
  2372. {
  2373. const unsigned hdrlen = GENL_HDRLEN + GENL_MAGIC_FAMILY_HDRSZ;
  2374. struct nlattr *nla;
  2375. const char *resource_name;
  2376. struct drbd_tconn *tconn;
  2377. int maxtype;
  2378. /* Is this a followup call? */
  2379. if (cb->args[0]) {
  2380. /* ... of a single resource dump,
  2381. * and the resource iterator has been advanced already? */
  2382. if (cb->args[2] && cb->args[2] != cb->args[0])
  2383. return 0; /* DONE. */
  2384. goto dump;
  2385. }
  2386. /* First call (from netlink_dump_start). We need to figure out
  2387. * which resource(s) the user wants us to dump. */
  2388. nla = nla_find(nlmsg_attrdata(cb->nlh, hdrlen),
  2389. nlmsg_attrlen(cb->nlh, hdrlen),
  2390. DRBD_NLA_CFG_CONTEXT);
  2391. /* No explicit context given. Dump all. */
  2392. if (!nla)
  2393. goto dump;
  2394. maxtype = ARRAY_SIZE(drbd_cfg_context_nl_policy) - 1;
  2395. nla = drbd_nla_find_nested(maxtype, nla, __nla_type(T_ctx_resource_name));
  2396. if (IS_ERR(nla))
  2397. return PTR_ERR(nla);
  2398. /* context given, but no name present? */
  2399. if (!nla)
  2400. return -EINVAL;
  2401. resource_name = nla_data(nla);
  2402. tconn = conn_get_by_name(resource_name);
  2403. if (!tconn)
  2404. return -ENODEV;
  2405. kref_put(&tconn->kref, &conn_destroy); /* get_one_status() (re)validates tconn by itself */
  2406. /* prime iterators, and set "filter" mode mark:
  2407. * only dump this tconn. */
  2408. cb->args[0] = (long)tconn;
  2409. /* cb->args[1] = 0; passed in this way. */
  2410. cb->args[2] = (long)tconn;
  2411. dump:
  2412. return get_one_status(skb, cb);
  2413. }
  2414. int drbd_adm_get_timeout_type(struct sk_buff *skb, struct genl_info *info)
  2415. {
  2416. enum drbd_ret_code retcode;
  2417. struct timeout_parms tp;
  2418. int err;
  2419. retcode = drbd_adm_prepare(skb, info, DRBD_ADM_NEED_MINOR);
  2420. if (!adm_ctx.reply_skb)
  2421. return retcode;
  2422. if (retcode != NO_ERROR)
  2423. goto out;
  2424. tp.timeout_type =
  2425. adm_ctx.mdev->state.pdsk == D_OUTDATED ? UT_PEER_OUTDATED :
  2426. test_bit(USE_DEGR_WFC_T, &adm_ctx.mdev->flags) ? UT_DEGRADED :
  2427. UT_DEFAULT;
  2428. err = timeout_parms_to_priv_skb(adm_ctx.reply_skb, &tp);
  2429. if (err) {
  2430. nlmsg_free(adm_ctx.reply_skb);
  2431. return err;
  2432. }
  2433. out:
  2434. drbd_adm_finish(info, retcode);
  2435. return 0;
  2436. }
  2437. int drbd_adm_start_ov(struct sk_buff *skb, struct genl_info *info)
  2438. {
  2439. struct drbd_conf *mdev;
  2440. enum drbd_ret_code retcode;
  2441. retcode = drbd_adm_prepare(skb, info, DRBD_ADM_NEED_MINOR);
  2442. if (!adm_ctx.reply_skb)
  2443. return retcode;
  2444. if (retcode != NO_ERROR)
  2445. goto out;
  2446. mdev = adm_ctx.mdev;
  2447. if (info->attrs[DRBD_NLA_START_OV_PARMS]) {
  2448. /* resume from last known position, if possible */
  2449. struct start_ov_parms parms =
  2450. { .ov_start_sector = mdev->ov_start_sector };
  2451. int err = start_ov_parms_from_attrs(&parms, info);
  2452. if (err) {
  2453. retcode = ERR_MANDATORY_TAG;
  2454. drbd_msg_put_info(from_attrs_err_to_txt(err));
  2455. goto out;
  2456. }
  2457. /* w_make_ov_request expects position to be aligned */
  2458. mdev->ov_start_sector = parms.ov_start_sector & ~BM_SECT_PER_BIT;
  2459. }
  2460. /* If there is still bitmap IO pending, e.g. previous resync or verify
  2461. * just being finished, wait for it before requesting a new resync. */
  2462. wait_event(mdev->misc_wait, !test_bit(BITMAP_IO, &mdev->flags));
  2463. retcode = drbd_request_state(mdev,NS(conn,C_VERIFY_S));
  2464. out:
  2465. drbd_adm_finish(info, retcode);
  2466. return 0;
  2467. }
  2468. int drbd_adm_new_c_uuid(struct sk_buff *skb, struct genl_info *info)
  2469. {
  2470. struct drbd_conf *mdev;
  2471. enum drbd_ret_code retcode;
  2472. int skip_initial_sync = 0;
  2473. int err;
  2474. struct new_c_uuid_parms args;
  2475. retcode = drbd_adm_prepare(skb, info, DRBD_ADM_NEED_MINOR);
  2476. if (!adm_ctx.reply_skb)
  2477. return retcode;
  2478. if (retcode != NO_ERROR)
  2479. goto out_nolock;
  2480. mdev = adm_ctx.mdev;
  2481. memset(&args, 0, sizeof(args));
  2482. if (info->attrs[DRBD_NLA_NEW_C_UUID_PARMS]) {
  2483. err = new_c_uuid_parms_from_attrs(&args, info);
  2484. if (err) {
  2485. retcode = ERR_MANDATORY_TAG;
  2486. drbd_msg_put_info(from_attrs_err_to_txt(err));
  2487. goto out_nolock;
  2488. }
  2489. }
  2490. mutex_lock(mdev->state_mutex); /* Protects us against serialized state changes. */
  2491. if (!get_ldev(mdev)) {
  2492. retcode = ERR_NO_DISK;
  2493. goto out;
  2494. }
  2495. /* this is "skip initial sync", assume to be clean */
  2496. if (mdev->state.conn == C_CONNECTED && mdev->tconn->agreed_pro_version >= 90 &&
  2497. mdev->ldev->md.uuid[UI_CURRENT] == UUID_JUST_CREATED && args.clear_bm) {
  2498. dev_info(DEV, "Preparing to skip initial sync\n");
  2499. skip_initial_sync = 1;
  2500. } else if (mdev->state.conn != C_STANDALONE) {
  2501. retcode = ERR_CONNECTED;
  2502. goto out_dec;
  2503. }
  2504. drbd_uuid_set(mdev, UI_BITMAP, 0); /* Rotate UI_BITMAP to History 1, etc... */
  2505. drbd_uuid_new_current(mdev); /* New current, previous to UI_BITMAP */
  2506. if (args.clear_bm) {
  2507. err = drbd_bitmap_io(mdev, &drbd_bmio_clear_n_write,
  2508. "clear_n_write from new_c_uuid", BM_LOCKED_MASK);
  2509. if (err) {
  2510. dev_err(DEV, "Writing bitmap failed with %d\n",err);
  2511. retcode = ERR_IO_MD_DISK;
  2512. }
  2513. if (skip_initial_sync) {
  2514. drbd_send_uuids_skip_initial_sync(mdev);
  2515. _drbd_uuid_set(mdev, UI_BITMAP, 0);
  2516. drbd_print_uuids(mdev, "cleared bitmap UUID");
  2517. spin_lock_irq(&mdev->tconn->req_lock);
  2518. _drbd_set_state(_NS2(mdev, disk, D_UP_TO_DATE, pdsk, D_UP_TO_DATE),
  2519. CS_VERBOSE, NULL);
  2520. spin_unlock_irq(&mdev->tconn->req_lock);
  2521. }
  2522. }
  2523. drbd_md_sync(mdev);
  2524. out_dec:
  2525. put_ldev(mdev);
  2526. out:
  2527. mutex_unlock(mdev->state_mutex);
  2528. out_nolock:
  2529. drbd_adm_finish(info, retcode);
  2530. return 0;
  2531. }
  2532. static enum drbd_ret_code
  2533. drbd_check_resource_name(const char *name)
  2534. {
  2535. if (!name || !name[0]) {
  2536. drbd_msg_put_info("resource name missing");
  2537. return ERR_MANDATORY_TAG;
  2538. }
  2539. /* if we want to use these in sysfs/configfs/debugfs some day,
  2540. * we must not allow slashes */
  2541. if (strchr(name, '/')) {
  2542. drbd_msg_put_info("invalid resource name");
  2543. return ERR_INVALID_REQUEST;
  2544. }
  2545. return NO_ERROR;
  2546. }
  2547. int drbd_adm_new_resource(struct sk_buff *skb, struct genl_info *info)
  2548. {
  2549. enum drbd_ret_code retcode;
  2550. struct res_opts res_opts;
  2551. int err;
  2552. retcode = drbd_adm_prepare(skb, info, 0);
  2553. if (!adm_ctx.reply_skb)
  2554. return retcode;
  2555. if (retcode != NO_ERROR)
  2556. goto out;
  2557. set_res_opts_defaults(&res_opts);
  2558. err = res_opts_from_attrs(&res_opts, info);
  2559. if (err && err != -ENOMSG) {
  2560. retcode = ERR_MANDATORY_TAG;
  2561. drbd_msg_put_info(from_attrs_err_to_txt(err));
  2562. goto out;
  2563. }
  2564. retcode = drbd_check_resource_name(adm_ctx.resource_name);
  2565. if (retcode != NO_ERROR)
  2566. goto out;
  2567. if (adm_ctx.tconn) {
  2568. if (info->nlhdr->nlmsg_flags & NLM_F_EXCL) {
  2569. retcode = ERR_INVALID_REQUEST;
  2570. drbd_msg_put_info("resource exists");
  2571. }
  2572. /* else: still NO_ERROR */
  2573. goto out;
  2574. }
  2575. if (!conn_create(adm_ctx.resource_name, &res_opts))
  2576. retcode = ERR_NOMEM;
  2577. out:
  2578. drbd_adm_finish(info, retcode);
  2579. return 0;
  2580. }
  2581. int drbd_adm_add_minor(struct sk_buff *skb, struct genl_info *info)
  2582. {
  2583. struct drbd_genlmsghdr *dh = info->userhdr;
  2584. enum drbd_ret_code retcode;
  2585. retcode = drbd_adm_prepare(skb, info, DRBD_ADM_NEED_RESOURCE);
  2586. if (!adm_ctx.reply_skb)
  2587. return retcode;
  2588. if (retcode != NO_ERROR)
  2589. goto out;
  2590. /* FIXME drop minor_count parameter, limit to MINORMASK */
  2591. if (dh->minor >= minor_count) {
  2592. drbd_msg_put_info("requested minor out of range");
  2593. retcode = ERR_INVALID_REQUEST;
  2594. goto out;
  2595. }
  2596. if (adm_ctx.volume > DRBD_VOLUME_MAX) {
  2597. drbd_msg_put_info("requested volume id out of range");
  2598. retcode = ERR_INVALID_REQUEST;
  2599. goto out;
  2600. }
  2601. /* drbd_adm_prepare made sure already
  2602. * that mdev->tconn and mdev->vnr match the request. */
  2603. if (adm_ctx.mdev) {
  2604. if (info->nlhdr->nlmsg_flags & NLM_F_EXCL)
  2605. retcode = ERR_MINOR_EXISTS;
  2606. /* else: still NO_ERROR */
  2607. goto out;
  2608. }
  2609. retcode = conn_new_minor(adm_ctx.tconn, dh->minor, adm_ctx.volume);
  2610. out:
  2611. drbd_adm_finish(info, retcode);
  2612. return 0;
  2613. }
  2614. static enum drbd_ret_code adm_delete_minor(struct drbd_conf *mdev)
  2615. {
  2616. if (mdev->state.disk == D_DISKLESS &&
  2617. /* no need to be mdev->state.conn == C_STANDALONE &&
  2618. * we may want to delete a minor from a live replication group.
  2619. */
  2620. mdev->state.role == R_SECONDARY) {
  2621. idr_remove(&mdev->tconn->volumes, mdev->vnr);
  2622. idr_remove(&minors, mdev_to_minor(mdev));
  2623. del_gendisk(mdev->vdisk);
  2624. synchronize_rcu();
  2625. kref_put(&mdev->kref, &drbd_minor_destroy);
  2626. return NO_ERROR;
  2627. } else
  2628. return ERR_MINOR_CONFIGURED;
  2629. }
  2630. int drbd_adm_delete_minor(struct sk_buff *skb, struct genl_info *info)
  2631. {
  2632. enum drbd_ret_code retcode;
  2633. retcode = drbd_adm_prepare(skb, info, DRBD_ADM_NEED_MINOR);
  2634. if (!adm_ctx.reply_skb)
  2635. return retcode;
  2636. if (retcode != NO_ERROR)
  2637. goto out;
  2638. retcode = adm_delete_minor(adm_ctx.mdev);
  2639. out:
  2640. drbd_adm_finish(info, retcode);
  2641. return 0;
  2642. }
  2643. int drbd_adm_down(struct sk_buff *skb, struct genl_info *info)
  2644. {
  2645. int retcode; /* enum drbd_ret_code rsp. enum drbd_state_rv */
  2646. struct drbd_conf *mdev;
  2647. unsigned i;
  2648. retcode = drbd_adm_prepare(skb, info, 0);
  2649. if (!adm_ctx.reply_skb)
  2650. return retcode;
  2651. if (retcode != NO_ERROR)
  2652. goto out;
  2653. if (!adm_ctx.tconn) {
  2654. retcode = ERR_RES_NOT_KNOWN;
  2655. goto out;
  2656. }
  2657. /* demote */
  2658. idr_for_each_entry(&adm_ctx.tconn->volumes, mdev, i) {
  2659. retcode = drbd_set_role(mdev, R_SECONDARY, 0);
  2660. if (retcode < SS_SUCCESS) {
  2661. drbd_msg_put_info("failed to demote");
  2662. goto out;
  2663. }
  2664. }
  2665. retcode = conn_try_disconnect(adm_ctx.tconn, 0);
  2666. if (retcode < SS_SUCCESS) {
  2667. drbd_msg_put_info("failed to disconnect");
  2668. goto out;
  2669. }
  2670. /* detach */
  2671. idr_for_each_entry(&adm_ctx.tconn->volumes, mdev, i) {
  2672. retcode = adm_detach(mdev);
  2673. if (retcode < SS_SUCCESS) {
  2674. drbd_msg_put_info("failed to detach");
  2675. goto out;
  2676. }
  2677. }
  2678. /* If we reach this, all volumes (of this tconn) are Secondary,
  2679. * Disconnected, Diskless, aka Unconfigured. Make sure all threads have
  2680. * actually stopped, state handling only does drbd_thread_stop_nowait(). */
  2681. drbd_thread_stop(&adm_ctx.tconn->worker);
  2682. /* Now, nothing can fail anymore */
  2683. /* delete volumes */
  2684. idr_for_each_entry(&adm_ctx.tconn->volumes, mdev, i) {
  2685. retcode = adm_delete_minor(mdev);
  2686. if (retcode != NO_ERROR) {
  2687. /* "can not happen" */
  2688. drbd_msg_put_info("failed to delete volume");
  2689. goto out;
  2690. }
  2691. }
  2692. /* delete connection */
  2693. if (conn_lowest_minor(adm_ctx.tconn) < 0) {
  2694. list_del_rcu(&adm_ctx.tconn->all_tconn);
  2695. synchronize_rcu();
  2696. kref_put(&adm_ctx.tconn->kref, &conn_destroy);
  2697. retcode = NO_ERROR;
  2698. } else {
  2699. /* "can not happen" */
  2700. retcode = ERR_RES_IN_USE;
  2701. drbd_msg_put_info("failed to delete connection");
  2702. }
  2703. goto out;
  2704. out:
  2705. drbd_adm_finish(info, retcode);
  2706. return 0;
  2707. }
  2708. int drbd_adm_del_resource(struct sk_buff *skb, struct genl_info *info)
  2709. {
  2710. enum drbd_ret_code retcode;
  2711. retcode = drbd_adm_prepare(skb, info, DRBD_ADM_NEED_RESOURCE);
  2712. if (!adm_ctx.reply_skb)
  2713. return retcode;
  2714. if (retcode != NO_ERROR)
  2715. goto out;
  2716. if (conn_lowest_minor(adm_ctx.tconn) < 0) {
  2717. list_del_rcu(&adm_ctx.tconn->all_tconn);
  2718. synchronize_rcu();
  2719. kref_put(&adm_ctx.tconn->kref, &conn_destroy);
  2720. retcode = NO_ERROR;
  2721. } else {
  2722. retcode = ERR_RES_IN_USE;
  2723. }
  2724. if (retcode == NO_ERROR)
  2725. drbd_thread_stop(&adm_ctx.tconn->worker);
  2726. out:
  2727. drbd_adm_finish(info, retcode);
  2728. return 0;
  2729. }
  2730. void drbd_bcast_event(struct drbd_conf *mdev, const struct sib_info *sib)
  2731. {
  2732. static atomic_t drbd_genl_seq = ATOMIC_INIT(2); /* two. */
  2733. struct sk_buff *msg;
  2734. struct drbd_genlmsghdr *d_out;
  2735. unsigned seq;
  2736. int err = -ENOMEM;
  2737. seq = atomic_inc_return(&drbd_genl_seq);
  2738. msg = genlmsg_new(NLMSG_GOODSIZE, GFP_NOIO);
  2739. if (!msg)
  2740. goto failed;
  2741. err = -EMSGSIZE;
  2742. d_out = genlmsg_put(msg, 0, seq, &drbd_genl_family, 0, DRBD_EVENT);
  2743. if (!d_out) /* cannot happen, but anyways. */
  2744. goto nla_put_failure;
  2745. d_out->minor = mdev_to_minor(mdev);
  2746. d_out->ret_code = NO_ERROR;
  2747. if (nla_put_status_info(msg, mdev, sib))
  2748. goto nla_put_failure;
  2749. genlmsg_end(msg, d_out);
  2750. err = drbd_genl_multicast_events(msg, 0);
  2751. /* msg has been consumed or freed in netlink_broadcast() */
  2752. if (err && err != -ESRCH)
  2753. goto failed;
  2754. return;
  2755. nla_put_failure:
  2756. nlmsg_free(msg);
  2757. failed:
  2758. dev_err(DEV, "Error %d while broadcasting event. "
  2759. "Event seq:%u sib_reason:%u\n",
  2760. err, seq, sib->sib_reason);
  2761. }