caps.c 90 KB

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  1. #include <linux/ceph/ceph_debug.h>
  2. #include <linux/fs.h>
  3. #include <linux/kernel.h>
  4. #include <linux/sched.h>
  5. #include <linux/slab.h>
  6. #include <linux/vmalloc.h>
  7. #include <linux/wait.h>
  8. #include <linux/writeback.h>
  9. #include "super.h"
  10. #include "mds_client.h"
  11. #include "cache.h"
  12. #include <linux/ceph/decode.h>
  13. #include <linux/ceph/messenger.h>
  14. /*
  15. * Capability management
  16. *
  17. * The Ceph metadata servers control client access to inode metadata
  18. * and file data by issuing capabilities, granting clients permission
  19. * to read and/or write both inode field and file data to OSDs
  20. * (storage nodes). Each capability consists of a set of bits
  21. * indicating which operations are allowed.
  22. *
  23. * If the client holds a *_SHARED cap, the client has a coherent value
  24. * that can be safely read from the cached inode.
  25. *
  26. * In the case of a *_EXCL (exclusive) or FILE_WR capabilities, the
  27. * client is allowed to change inode attributes (e.g., file size,
  28. * mtime), note its dirty state in the ceph_cap, and asynchronously
  29. * flush that metadata change to the MDS.
  30. *
  31. * In the event of a conflicting operation (perhaps by another
  32. * client), the MDS will revoke the conflicting client capabilities.
  33. *
  34. * In order for a client to cache an inode, it must hold a capability
  35. * with at least one MDS server. When inodes are released, release
  36. * notifications are batched and periodically sent en masse to the MDS
  37. * cluster to release server state.
  38. */
  39. /*
  40. * Generate readable cap strings for debugging output.
  41. */
  42. #define MAX_CAP_STR 20
  43. static char cap_str[MAX_CAP_STR][40];
  44. static DEFINE_SPINLOCK(cap_str_lock);
  45. static int last_cap_str;
  46. static char *gcap_string(char *s, int c)
  47. {
  48. if (c & CEPH_CAP_GSHARED)
  49. *s++ = 's';
  50. if (c & CEPH_CAP_GEXCL)
  51. *s++ = 'x';
  52. if (c & CEPH_CAP_GCACHE)
  53. *s++ = 'c';
  54. if (c & CEPH_CAP_GRD)
  55. *s++ = 'r';
  56. if (c & CEPH_CAP_GWR)
  57. *s++ = 'w';
  58. if (c & CEPH_CAP_GBUFFER)
  59. *s++ = 'b';
  60. if (c & CEPH_CAP_GLAZYIO)
  61. *s++ = 'l';
  62. return s;
  63. }
  64. const char *ceph_cap_string(int caps)
  65. {
  66. int i;
  67. char *s;
  68. int c;
  69. spin_lock(&cap_str_lock);
  70. i = last_cap_str++;
  71. if (last_cap_str == MAX_CAP_STR)
  72. last_cap_str = 0;
  73. spin_unlock(&cap_str_lock);
  74. s = cap_str[i];
  75. if (caps & CEPH_CAP_PIN)
  76. *s++ = 'p';
  77. c = (caps >> CEPH_CAP_SAUTH) & 3;
  78. if (c) {
  79. *s++ = 'A';
  80. s = gcap_string(s, c);
  81. }
  82. c = (caps >> CEPH_CAP_SLINK) & 3;
  83. if (c) {
  84. *s++ = 'L';
  85. s = gcap_string(s, c);
  86. }
  87. c = (caps >> CEPH_CAP_SXATTR) & 3;
  88. if (c) {
  89. *s++ = 'X';
  90. s = gcap_string(s, c);
  91. }
  92. c = caps >> CEPH_CAP_SFILE;
  93. if (c) {
  94. *s++ = 'F';
  95. s = gcap_string(s, c);
  96. }
  97. if (s == cap_str[i])
  98. *s++ = '-';
  99. *s = 0;
  100. return cap_str[i];
  101. }
  102. void ceph_caps_init(struct ceph_mds_client *mdsc)
  103. {
  104. INIT_LIST_HEAD(&mdsc->caps_list);
  105. spin_lock_init(&mdsc->caps_list_lock);
  106. }
  107. void ceph_caps_finalize(struct ceph_mds_client *mdsc)
  108. {
  109. struct ceph_cap *cap;
  110. spin_lock(&mdsc->caps_list_lock);
  111. while (!list_empty(&mdsc->caps_list)) {
  112. cap = list_first_entry(&mdsc->caps_list,
  113. struct ceph_cap, caps_item);
  114. list_del(&cap->caps_item);
  115. kmem_cache_free(ceph_cap_cachep, cap);
  116. }
  117. mdsc->caps_total_count = 0;
  118. mdsc->caps_avail_count = 0;
  119. mdsc->caps_use_count = 0;
  120. mdsc->caps_reserve_count = 0;
  121. mdsc->caps_min_count = 0;
  122. spin_unlock(&mdsc->caps_list_lock);
  123. }
  124. void ceph_adjust_min_caps(struct ceph_mds_client *mdsc, int delta)
  125. {
  126. spin_lock(&mdsc->caps_list_lock);
  127. mdsc->caps_min_count += delta;
  128. BUG_ON(mdsc->caps_min_count < 0);
  129. spin_unlock(&mdsc->caps_list_lock);
  130. }
  131. void ceph_reserve_caps(struct ceph_mds_client *mdsc,
  132. struct ceph_cap_reservation *ctx, int need)
  133. {
  134. int i;
  135. struct ceph_cap *cap;
  136. int have;
  137. int alloc = 0;
  138. LIST_HEAD(newcaps);
  139. dout("reserve caps ctx=%p need=%d\n", ctx, need);
  140. /* first reserve any caps that are already allocated */
  141. spin_lock(&mdsc->caps_list_lock);
  142. if (mdsc->caps_avail_count >= need)
  143. have = need;
  144. else
  145. have = mdsc->caps_avail_count;
  146. mdsc->caps_avail_count -= have;
  147. mdsc->caps_reserve_count += have;
  148. BUG_ON(mdsc->caps_total_count != mdsc->caps_use_count +
  149. mdsc->caps_reserve_count +
  150. mdsc->caps_avail_count);
  151. spin_unlock(&mdsc->caps_list_lock);
  152. for (i = have; i < need; i++) {
  153. cap = kmem_cache_alloc(ceph_cap_cachep, GFP_NOFS);
  154. if (!cap)
  155. break;
  156. list_add(&cap->caps_item, &newcaps);
  157. alloc++;
  158. }
  159. /* we didn't manage to reserve as much as we needed */
  160. if (have + alloc != need)
  161. pr_warn("reserve caps ctx=%p ENOMEM need=%d got=%d\n",
  162. ctx, need, have + alloc);
  163. spin_lock(&mdsc->caps_list_lock);
  164. mdsc->caps_total_count += alloc;
  165. mdsc->caps_reserve_count += alloc;
  166. list_splice(&newcaps, &mdsc->caps_list);
  167. BUG_ON(mdsc->caps_total_count != mdsc->caps_use_count +
  168. mdsc->caps_reserve_count +
  169. mdsc->caps_avail_count);
  170. spin_unlock(&mdsc->caps_list_lock);
  171. ctx->count = need;
  172. dout("reserve caps ctx=%p %d = %d used + %d resv + %d avail\n",
  173. ctx, mdsc->caps_total_count, mdsc->caps_use_count,
  174. mdsc->caps_reserve_count, mdsc->caps_avail_count);
  175. }
  176. int ceph_unreserve_caps(struct ceph_mds_client *mdsc,
  177. struct ceph_cap_reservation *ctx)
  178. {
  179. dout("unreserve caps ctx=%p count=%d\n", ctx, ctx->count);
  180. if (ctx->count) {
  181. spin_lock(&mdsc->caps_list_lock);
  182. BUG_ON(mdsc->caps_reserve_count < ctx->count);
  183. mdsc->caps_reserve_count -= ctx->count;
  184. mdsc->caps_avail_count += ctx->count;
  185. ctx->count = 0;
  186. dout("unreserve caps %d = %d used + %d resv + %d avail\n",
  187. mdsc->caps_total_count, mdsc->caps_use_count,
  188. mdsc->caps_reserve_count, mdsc->caps_avail_count);
  189. BUG_ON(mdsc->caps_total_count != mdsc->caps_use_count +
  190. mdsc->caps_reserve_count +
  191. mdsc->caps_avail_count);
  192. spin_unlock(&mdsc->caps_list_lock);
  193. }
  194. return 0;
  195. }
  196. static struct ceph_cap *get_cap(struct ceph_mds_client *mdsc,
  197. struct ceph_cap_reservation *ctx)
  198. {
  199. struct ceph_cap *cap = NULL;
  200. /* temporary, until we do something about cap import/export */
  201. if (!ctx) {
  202. cap = kmem_cache_alloc(ceph_cap_cachep, GFP_NOFS);
  203. if (cap) {
  204. spin_lock(&mdsc->caps_list_lock);
  205. mdsc->caps_use_count++;
  206. mdsc->caps_total_count++;
  207. spin_unlock(&mdsc->caps_list_lock);
  208. }
  209. return cap;
  210. }
  211. spin_lock(&mdsc->caps_list_lock);
  212. dout("get_cap ctx=%p (%d) %d = %d used + %d resv + %d avail\n",
  213. ctx, ctx->count, mdsc->caps_total_count, mdsc->caps_use_count,
  214. mdsc->caps_reserve_count, mdsc->caps_avail_count);
  215. BUG_ON(!ctx->count);
  216. BUG_ON(ctx->count > mdsc->caps_reserve_count);
  217. BUG_ON(list_empty(&mdsc->caps_list));
  218. ctx->count--;
  219. mdsc->caps_reserve_count--;
  220. mdsc->caps_use_count++;
  221. cap = list_first_entry(&mdsc->caps_list, struct ceph_cap, caps_item);
  222. list_del(&cap->caps_item);
  223. BUG_ON(mdsc->caps_total_count != mdsc->caps_use_count +
  224. mdsc->caps_reserve_count + mdsc->caps_avail_count);
  225. spin_unlock(&mdsc->caps_list_lock);
  226. return cap;
  227. }
  228. void ceph_put_cap(struct ceph_mds_client *mdsc, struct ceph_cap *cap)
  229. {
  230. spin_lock(&mdsc->caps_list_lock);
  231. dout("put_cap %p %d = %d used + %d resv + %d avail\n",
  232. cap, mdsc->caps_total_count, mdsc->caps_use_count,
  233. mdsc->caps_reserve_count, mdsc->caps_avail_count);
  234. mdsc->caps_use_count--;
  235. /*
  236. * Keep some preallocated caps around (ceph_min_count), to
  237. * avoid lots of free/alloc churn.
  238. */
  239. if (mdsc->caps_avail_count >= mdsc->caps_reserve_count +
  240. mdsc->caps_min_count) {
  241. mdsc->caps_total_count--;
  242. kmem_cache_free(ceph_cap_cachep, cap);
  243. } else {
  244. mdsc->caps_avail_count++;
  245. list_add(&cap->caps_item, &mdsc->caps_list);
  246. }
  247. BUG_ON(mdsc->caps_total_count != mdsc->caps_use_count +
  248. mdsc->caps_reserve_count + mdsc->caps_avail_count);
  249. spin_unlock(&mdsc->caps_list_lock);
  250. }
  251. void ceph_reservation_status(struct ceph_fs_client *fsc,
  252. int *total, int *avail, int *used, int *reserved,
  253. int *min)
  254. {
  255. struct ceph_mds_client *mdsc = fsc->mdsc;
  256. if (total)
  257. *total = mdsc->caps_total_count;
  258. if (avail)
  259. *avail = mdsc->caps_avail_count;
  260. if (used)
  261. *used = mdsc->caps_use_count;
  262. if (reserved)
  263. *reserved = mdsc->caps_reserve_count;
  264. if (min)
  265. *min = mdsc->caps_min_count;
  266. }
  267. /*
  268. * Find ceph_cap for given mds, if any.
  269. *
  270. * Called with i_ceph_lock held.
  271. */
  272. static struct ceph_cap *__get_cap_for_mds(struct ceph_inode_info *ci, int mds)
  273. {
  274. struct ceph_cap *cap;
  275. struct rb_node *n = ci->i_caps.rb_node;
  276. while (n) {
  277. cap = rb_entry(n, struct ceph_cap, ci_node);
  278. if (mds < cap->mds)
  279. n = n->rb_left;
  280. else if (mds > cap->mds)
  281. n = n->rb_right;
  282. else
  283. return cap;
  284. }
  285. return NULL;
  286. }
  287. struct ceph_cap *ceph_get_cap_for_mds(struct ceph_inode_info *ci, int mds)
  288. {
  289. struct ceph_cap *cap;
  290. spin_lock(&ci->i_ceph_lock);
  291. cap = __get_cap_for_mds(ci, mds);
  292. spin_unlock(&ci->i_ceph_lock);
  293. return cap;
  294. }
  295. /*
  296. * Return id of any MDS with a cap, preferably FILE_WR|BUFFER|EXCL, else -1.
  297. */
  298. static int __ceph_get_cap_mds(struct ceph_inode_info *ci)
  299. {
  300. struct ceph_cap *cap;
  301. int mds = -1;
  302. struct rb_node *p;
  303. /* prefer mds with WR|BUFFER|EXCL caps */
  304. for (p = rb_first(&ci->i_caps); p; p = rb_next(p)) {
  305. cap = rb_entry(p, struct ceph_cap, ci_node);
  306. mds = cap->mds;
  307. if (cap->issued & (CEPH_CAP_FILE_WR |
  308. CEPH_CAP_FILE_BUFFER |
  309. CEPH_CAP_FILE_EXCL))
  310. break;
  311. }
  312. return mds;
  313. }
  314. int ceph_get_cap_mds(struct inode *inode)
  315. {
  316. struct ceph_inode_info *ci = ceph_inode(inode);
  317. int mds;
  318. spin_lock(&ci->i_ceph_lock);
  319. mds = __ceph_get_cap_mds(ceph_inode(inode));
  320. spin_unlock(&ci->i_ceph_lock);
  321. return mds;
  322. }
  323. /*
  324. * Called under i_ceph_lock.
  325. */
  326. static void __insert_cap_node(struct ceph_inode_info *ci,
  327. struct ceph_cap *new)
  328. {
  329. struct rb_node **p = &ci->i_caps.rb_node;
  330. struct rb_node *parent = NULL;
  331. struct ceph_cap *cap = NULL;
  332. while (*p) {
  333. parent = *p;
  334. cap = rb_entry(parent, struct ceph_cap, ci_node);
  335. if (new->mds < cap->mds)
  336. p = &(*p)->rb_left;
  337. else if (new->mds > cap->mds)
  338. p = &(*p)->rb_right;
  339. else
  340. BUG();
  341. }
  342. rb_link_node(&new->ci_node, parent, p);
  343. rb_insert_color(&new->ci_node, &ci->i_caps);
  344. }
  345. /*
  346. * (re)set cap hold timeouts, which control the delayed release
  347. * of unused caps back to the MDS. Should be called on cap use.
  348. */
  349. static void __cap_set_timeouts(struct ceph_mds_client *mdsc,
  350. struct ceph_inode_info *ci)
  351. {
  352. struct ceph_mount_options *ma = mdsc->fsc->mount_options;
  353. ci->i_hold_caps_min = round_jiffies(jiffies +
  354. ma->caps_wanted_delay_min * HZ);
  355. ci->i_hold_caps_max = round_jiffies(jiffies +
  356. ma->caps_wanted_delay_max * HZ);
  357. dout("__cap_set_timeouts %p min %lu max %lu\n", &ci->vfs_inode,
  358. ci->i_hold_caps_min - jiffies, ci->i_hold_caps_max - jiffies);
  359. }
  360. /*
  361. * (Re)queue cap at the end of the delayed cap release list.
  362. *
  363. * If I_FLUSH is set, leave the inode at the front of the list.
  364. *
  365. * Caller holds i_ceph_lock
  366. * -> we take mdsc->cap_delay_lock
  367. */
  368. static void __cap_delay_requeue(struct ceph_mds_client *mdsc,
  369. struct ceph_inode_info *ci)
  370. {
  371. __cap_set_timeouts(mdsc, ci);
  372. dout("__cap_delay_requeue %p flags %d at %lu\n", &ci->vfs_inode,
  373. ci->i_ceph_flags, ci->i_hold_caps_max);
  374. if (!mdsc->stopping) {
  375. spin_lock(&mdsc->cap_delay_lock);
  376. if (!list_empty(&ci->i_cap_delay_list)) {
  377. if (ci->i_ceph_flags & CEPH_I_FLUSH)
  378. goto no_change;
  379. list_del_init(&ci->i_cap_delay_list);
  380. }
  381. list_add_tail(&ci->i_cap_delay_list, &mdsc->cap_delay_list);
  382. no_change:
  383. spin_unlock(&mdsc->cap_delay_lock);
  384. }
  385. }
  386. /*
  387. * Queue an inode for immediate writeback. Mark inode with I_FLUSH,
  388. * indicating we should send a cap message to flush dirty metadata
  389. * asap, and move to the front of the delayed cap list.
  390. */
  391. static void __cap_delay_requeue_front(struct ceph_mds_client *mdsc,
  392. struct ceph_inode_info *ci)
  393. {
  394. dout("__cap_delay_requeue_front %p\n", &ci->vfs_inode);
  395. spin_lock(&mdsc->cap_delay_lock);
  396. ci->i_ceph_flags |= CEPH_I_FLUSH;
  397. if (!list_empty(&ci->i_cap_delay_list))
  398. list_del_init(&ci->i_cap_delay_list);
  399. list_add(&ci->i_cap_delay_list, &mdsc->cap_delay_list);
  400. spin_unlock(&mdsc->cap_delay_lock);
  401. }
  402. /*
  403. * Cancel delayed work on cap.
  404. *
  405. * Caller must hold i_ceph_lock.
  406. */
  407. static void __cap_delay_cancel(struct ceph_mds_client *mdsc,
  408. struct ceph_inode_info *ci)
  409. {
  410. dout("__cap_delay_cancel %p\n", &ci->vfs_inode);
  411. if (list_empty(&ci->i_cap_delay_list))
  412. return;
  413. spin_lock(&mdsc->cap_delay_lock);
  414. list_del_init(&ci->i_cap_delay_list);
  415. spin_unlock(&mdsc->cap_delay_lock);
  416. }
  417. /*
  418. * Common issue checks for add_cap, handle_cap_grant.
  419. */
  420. static void __check_cap_issue(struct ceph_inode_info *ci, struct ceph_cap *cap,
  421. unsigned issued)
  422. {
  423. unsigned had = __ceph_caps_issued(ci, NULL);
  424. /*
  425. * Each time we receive FILE_CACHE anew, we increment
  426. * i_rdcache_gen.
  427. */
  428. if ((issued & (CEPH_CAP_FILE_CACHE|CEPH_CAP_FILE_LAZYIO)) &&
  429. (had & (CEPH_CAP_FILE_CACHE|CEPH_CAP_FILE_LAZYIO)) == 0) {
  430. ci->i_rdcache_gen++;
  431. }
  432. /*
  433. * if we are newly issued FILE_SHARED, mark dir not complete; we
  434. * don't know what happened to this directory while we didn't
  435. * have the cap.
  436. */
  437. if ((issued & CEPH_CAP_FILE_SHARED) &&
  438. (had & CEPH_CAP_FILE_SHARED) == 0) {
  439. ci->i_shared_gen++;
  440. if (S_ISDIR(ci->vfs_inode.i_mode)) {
  441. dout(" marking %p NOT complete\n", &ci->vfs_inode);
  442. __ceph_dir_clear_complete(ci);
  443. }
  444. }
  445. }
  446. /*
  447. * Add a capability under the given MDS session.
  448. *
  449. * Caller should hold session snap_rwsem (read) and s_mutex.
  450. *
  451. * @fmode is the open file mode, if we are opening a file, otherwise
  452. * it is < 0. (This is so we can atomically add the cap and add an
  453. * open file reference to it.)
  454. */
  455. int ceph_add_cap(struct inode *inode,
  456. struct ceph_mds_session *session, u64 cap_id,
  457. int fmode, unsigned issued, unsigned wanted,
  458. unsigned seq, unsigned mseq, u64 realmino, int flags,
  459. struct ceph_cap_reservation *caps_reservation)
  460. {
  461. struct ceph_mds_client *mdsc = ceph_inode_to_client(inode)->mdsc;
  462. struct ceph_inode_info *ci = ceph_inode(inode);
  463. struct ceph_cap *new_cap = NULL;
  464. struct ceph_cap *cap;
  465. int mds = session->s_mds;
  466. int actual_wanted;
  467. dout("add_cap %p mds%d cap %llx %s seq %d\n", inode,
  468. session->s_mds, cap_id, ceph_cap_string(issued), seq);
  469. /*
  470. * If we are opening the file, include file mode wanted bits
  471. * in wanted.
  472. */
  473. if (fmode >= 0)
  474. wanted |= ceph_caps_for_mode(fmode);
  475. retry:
  476. spin_lock(&ci->i_ceph_lock);
  477. cap = __get_cap_for_mds(ci, mds);
  478. if (!cap) {
  479. if (new_cap) {
  480. cap = new_cap;
  481. new_cap = NULL;
  482. } else {
  483. spin_unlock(&ci->i_ceph_lock);
  484. new_cap = get_cap(mdsc, caps_reservation);
  485. if (new_cap == NULL)
  486. return -ENOMEM;
  487. goto retry;
  488. }
  489. cap->issued = 0;
  490. cap->implemented = 0;
  491. cap->mds = mds;
  492. cap->mds_wanted = 0;
  493. cap->mseq = 0;
  494. cap->ci = ci;
  495. __insert_cap_node(ci, cap);
  496. /* add to session cap list */
  497. cap->session = session;
  498. spin_lock(&session->s_cap_lock);
  499. list_add_tail(&cap->session_caps, &session->s_caps);
  500. session->s_nr_caps++;
  501. spin_unlock(&session->s_cap_lock);
  502. } else {
  503. if (new_cap)
  504. ceph_put_cap(mdsc, new_cap);
  505. /*
  506. * auth mds of the inode changed. we received the cap export
  507. * message, but still haven't received the cap import message.
  508. * handle_cap_export() updated the new auth MDS' cap.
  509. *
  510. * "ceph_seq_cmp(seq, cap->seq) <= 0" means we are processing
  511. * a message that was send before the cap import message. So
  512. * don't remove caps.
  513. */
  514. if (ceph_seq_cmp(seq, cap->seq) <= 0) {
  515. WARN_ON(cap != ci->i_auth_cap);
  516. WARN_ON(cap->cap_id != cap_id);
  517. seq = cap->seq;
  518. mseq = cap->mseq;
  519. issued |= cap->issued;
  520. flags |= CEPH_CAP_FLAG_AUTH;
  521. }
  522. }
  523. if (!ci->i_snap_realm) {
  524. /*
  525. * add this inode to the appropriate snap realm
  526. */
  527. struct ceph_snap_realm *realm = ceph_lookup_snap_realm(mdsc,
  528. realmino);
  529. if (realm) {
  530. ceph_get_snap_realm(mdsc, realm);
  531. spin_lock(&realm->inodes_with_caps_lock);
  532. ci->i_snap_realm = realm;
  533. list_add(&ci->i_snap_realm_item,
  534. &realm->inodes_with_caps);
  535. spin_unlock(&realm->inodes_with_caps_lock);
  536. } else {
  537. pr_err("ceph_add_cap: couldn't find snap realm %llx\n",
  538. realmino);
  539. WARN_ON(!realm);
  540. }
  541. }
  542. __check_cap_issue(ci, cap, issued);
  543. /*
  544. * If we are issued caps we don't want, or the mds' wanted
  545. * value appears to be off, queue a check so we'll release
  546. * later and/or update the mds wanted value.
  547. */
  548. actual_wanted = __ceph_caps_wanted(ci);
  549. if ((wanted & ~actual_wanted) ||
  550. (issued & ~actual_wanted & CEPH_CAP_ANY_WR)) {
  551. dout(" issued %s, mds wanted %s, actual %s, queueing\n",
  552. ceph_cap_string(issued), ceph_cap_string(wanted),
  553. ceph_cap_string(actual_wanted));
  554. __cap_delay_requeue(mdsc, ci);
  555. }
  556. if (flags & CEPH_CAP_FLAG_AUTH) {
  557. if (ci->i_auth_cap == NULL ||
  558. ceph_seq_cmp(ci->i_auth_cap->mseq, mseq) < 0) {
  559. ci->i_auth_cap = cap;
  560. cap->mds_wanted = wanted;
  561. }
  562. ci->i_cap_exporting_issued = 0;
  563. } else {
  564. WARN_ON(ci->i_auth_cap == cap);
  565. }
  566. dout("add_cap inode %p (%llx.%llx) cap %p %s now %s seq %d mds%d\n",
  567. inode, ceph_vinop(inode), cap, ceph_cap_string(issued),
  568. ceph_cap_string(issued|cap->issued), seq, mds);
  569. cap->cap_id = cap_id;
  570. cap->issued = issued;
  571. cap->implemented |= issued;
  572. if (ceph_seq_cmp(mseq, cap->mseq) > 0)
  573. cap->mds_wanted = wanted;
  574. else
  575. cap->mds_wanted |= wanted;
  576. cap->seq = seq;
  577. cap->issue_seq = seq;
  578. cap->mseq = mseq;
  579. cap->cap_gen = session->s_cap_gen;
  580. if (fmode >= 0)
  581. __ceph_get_fmode(ci, fmode);
  582. spin_unlock(&ci->i_ceph_lock);
  583. wake_up_all(&ci->i_cap_wq);
  584. return 0;
  585. }
  586. /*
  587. * Return true if cap has not timed out and belongs to the current
  588. * generation of the MDS session (i.e. has not gone 'stale' due to
  589. * us losing touch with the mds).
  590. */
  591. static int __cap_is_valid(struct ceph_cap *cap)
  592. {
  593. unsigned long ttl;
  594. u32 gen;
  595. spin_lock(&cap->session->s_gen_ttl_lock);
  596. gen = cap->session->s_cap_gen;
  597. ttl = cap->session->s_cap_ttl;
  598. spin_unlock(&cap->session->s_gen_ttl_lock);
  599. if (cap->cap_gen < gen || time_after_eq(jiffies, ttl)) {
  600. dout("__cap_is_valid %p cap %p issued %s "
  601. "but STALE (gen %u vs %u)\n", &cap->ci->vfs_inode,
  602. cap, ceph_cap_string(cap->issued), cap->cap_gen, gen);
  603. return 0;
  604. }
  605. return 1;
  606. }
  607. /*
  608. * Return set of valid cap bits issued to us. Note that caps time
  609. * out, and may be invalidated in bulk if the client session times out
  610. * and session->s_cap_gen is bumped.
  611. */
  612. int __ceph_caps_issued(struct ceph_inode_info *ci, int *implemented)
  613. {
  614. int have = ci->i_snap_caps | ci->i_cap_exporting_issued;
  615. struct ceph_cap *cap;
  616. struct rb_node *p;
  617. if (implemented)
  618. *implemented = 0;
  619. for (p = rb_first(&ci->i_caps); p; p = rb_next(p)) {
  620. cap = rb_entry(p, struct ceph_cap, ci_node);
  621. if (!__cap_is_valid(cap))
  622. continue;
  623. dout("__ceph_caps_issued %p cap %p issued %s\n",
  624. &ci->vfs_inode, cap, ceph_cap_string(cap->issued));
  625. have |= cap->issued;
  626. if (implemented)
  627. *implemented |= cap->implemented;
  628. }
  629. /*
  630. * exclude caps issued by non-auth MDS, but are been revoking
  631. * by the auth MDS. The non-auth MDS should be revoking/exporting
  632. * these caps, but the message is delayed.
  633. */
  634. if (ci->i_auth_cap) {
  635. cap = ci->i_auth_cap;
  636. have &= ~cap->implemented | cap->issued;
  637. }
  638. return have;
  639. }
  640. /*
  641. * Get cap bits issued by caps other than @ocap
  642. */
  643. int __ceph_caps_issued_other(struct ceph_inode_info *ci, struct ceph_cap *ocap)
  644. {
  645. int have = ci->i_snap_caps;
  646. struct ceph_cap *cap;
  647. struct rb_node *p;
  648. for (p = rb_first(&ci->i_caps); p; p = rb_next(p)) {
  649. cap = rb_entry(p, struct ceph_cap, ci_node);
  650. if (cap == ocap)
  651. continue;
  652. if (!__cap_is_valid(cap))
  653. continue;
  654. have |= cap->issued;
  655. }
  656. return have;
  657. }
  658. /*
  659. * Move a cap to the end of the LRU (oldest caps at list head, newest
  660. * at list tail).
  661. */
  662. static void __touch_cap(struct ceph_cap *cap)
  663. {
  664. struct ceph_mds_session *s = cap->session;
  665. spin_lock(&s->s_cap_lock);
  666. if (s->s_cap_iterator == NULL) {
  667. dout("__touch_cap %p cap %p mds%d\n", &cap->ci->vfs_inode, cap,
  668. s->s_mds);
  669. list_move_tail(&cap->session_caps, &s->s_caps);
  670. } else {
  671. dout("__touch_cap %p cap %p mds%d NOP, iterating over caps\n",
  672. &cap->ci->vfs_inode, cap, s->s_mds);
  673. }
  674. spin_unlock(&s->s_cap_lock);
  675. }
  676. /*
  677. * Check if we hold the given mask. If so, move the cap(s) to the
  678. * front of their respective LRUs. (This is the preferred way for
  679. * callers to check for caps they want.)
  680. */
  681. int __ceph_caps_issued_mask(struct ceph_inode_info *ci, int mask, int touch)
  682. {
  683. struct ceph_cap *cap;
  684. struct rb_node *p;
  685. int have = ci->i_snap_caps;
  686. if ((have & mask) == mask) {
  687. dout("__ceph_caps_issued_mask %p snap issued %s"
  688. " (mask %s)\n", &ci->vfs_inode,
  689. ceph_cap_string(have),
  690. ceph_cap_string(mask));
  691. return 1;
  692. }
  693. for (p = rb_first(&ci->i_caps); p; p = rb_next(p)) {
  694. cap = rb_entry(p, struct ceph_cap, ci_node);
  695. if (!__cap_is_valid(cap))
  696. continue;
  697. if ((cap->issued & mask) == mask) {
  698. dout("__ceph_caps_issued_mask %p cap %p issued %s"
  699. " (mask %s)\n", &ci->vfs_inode, cap,
  700. ceph_cap_string(cap->issued),
  701. ceph_cap_string(mask));
  702. if (touch)
  703. __touch_cap(cap);
  704. return 1;
  705. }
  706. /* does a combination of caps satisfy mask? */
  707. have |= cap->issued;
  708. if ((have & mask) == mask) {
  709. dout("__ceph_caps_issued_mask %p combo issued %s"
  710. " (mask %s)\n", &ci->vfs_inode,
  711. ceph_cap_string(cap->issued),
  712. ceph_cap_string(mask));
  713. if (touch) {
  714. struct rb_node *q;
  715. /* touch this + preceding caps */
  716. __touch_cap(cap);
  717. for (q = rb_first(&ci->i_caps); q != p;
  718. q = rb_next(q)) {
  719. cap = rb_entry(q, struct ceph_cap,
  720. ci_node);
  721. if (!__cap_is_valid(cap))
  722. continue;
  723. __touch_cap(cap);
  724. }
  725. }
  726. return 1;
  727. }
  728. }
  729. return 0;
  730. }
  731. /*
  732. * Return true if mask caps are currently being revoked by an MDS.
  733. */
  734. int __ceph_caps_revoking_other(struct ceph_inode_info *ci,
  735. struct ceph_cap *ocap, int mask)
  736. {
  737. struct ceph_cap *cap;
  738. struct rb_node *p;
  739. for (p = rb_first(&ci->i_caps); p; p = rb_next(p)) {
  740. cap = rb_entry(p, struct ceph_cap, ci_node);
  741. if (cap != ocap &&
  742. (cap->implemented & ~cap->issued & mask))
  743. return 1;
  744. }
  745. return 0;
  746. }
  747. int ceph_caps_revoking(struct ceph_inode_info *ci, int mask)
  748. {
  749. struct inode *inode = &ci->vfs_inode;
  750. int ret;
  751. spin_lock(&ci->i_ceph_lock);
  752. ret = __ceph_caps_revoking_other(ci, NULL, mask);
  753. spin_unlock(&ci->i_ceph_lock);
  754. dout("ceph_caps_revoking %p %s = %d\n", inode,
  755. ceph_cap_string(mask), ret);
  756. return ret;
  757. }
  758. int __ceph_caps_used(struct ceph_inode_info *ci)
  759. {
  760. int used = 0;
  761. if (ci->i_pin_ref)
  762. used |= CEPH_CAP_PIN;
  763. if (ci->i_rd_ref)
  764. used |= CEPH_CAP_FILE_RD;
  765. if (ci->i_rdcache_ref || ci->vfs_inode.i_data.nrpages)
  766. used |= CEPH_CAP_FILE_CACHE;
  767. if (ci->i_wr_ref)
  768. used |= CEPH_CAP_FILE_WR;
  769. if (ci->i_wb_ref || ci->i_wrbuffer_ref)
  770. used |= CEPH_CAP_FILE_BUFFER;
  771. return used;
  772. }
  773. /*
  774. * wanted, by virtue of open file modes
  775. */
  776. int __ceph_caps_file_wanted(struct ceph_inode_info *ci)
  777. {
  778. int want = 0;
  779. int mode;
  780. for (mode = 0; mode < CEPH_FILE_MODE_NUM; mode++)
  781. if (ci->i_nr_by_mode[mode])
  782. want |= ceph_caps_for_mode(mode);
  783. return want;
  784. }
  785. /*
  786. * Return caps we have registered with the MDS(s) as 'wanted'.
  787. */
  788. int __ceph_caps_mds_wanted(struct ceph_inode_info *ci)
  789. {
  790. struct ceph_cap *cap;
  791. struct rb_node *p;
  792. int mds_wanted = 0;
  793. for (p = rb_first(&ci->i_caps); p; p = rb_next(p)) {
  794. cap = rb_entry(p, struct ceph_cap, ci_node);
  795. if (!__cap_is_valid(cap))
  796. continue;
  797. if (cap == ci->i_auth_cap)
  798. mds_wanted |= cap->mds_wanted;
  799. else
  800. mds_wanted |= (cap->mds_wanted & ~CEPH_CAP_ANY_FILE_WR);
  801. }
  802. return mds_wanted;
  803. }
  804. /*
  805. * called under i_ceph_lock
  806. */
  807. static int __ceph_is_any_caps(struct ceph_inode_info *ci)
  808. {
  809. return !RB_EMPTY_ROOT(&ci->i_caps) || ci->i_cap_exporting_issued;
  810. }
  811. int ceph_is_any_caps(struct inode *inode)
  812. {
  813. struct ceph_inode_info *ci = ceph_inode(inode);
  814. int ret;
  815. spin_lock(&ci->i_ceph_lock);
  816. ret = __ceph_is_any_caps(ci);
  817. spin_unlock(&ci->i_ceph_lock);
  818. return ret;
  819. }
  820. /*
  821. * Remove a cap. Take steps to deal with a racing iterate_session_caps.
  822. *
  823. * caller should hold i_ceph_lock.
  824. * caller will not hold session s_mutex if called from destroy_inode.
  825. */
  826. void __ceph_remove_cap(struct ceph_cap *cap, bool queue_release)
  827. {
  828. struct ceph_mds_session *session = cap->session;
  829. struct ceph_inode_info *ci = cap->ci;
  830. struct ceph_mds_client *mdsc =
  831. ceph_sb_to_client(ci->vfs_inode.i_sb)->mdsc;
  832. int removed = 0;
  833. dout("__ceph_remove_cap %p from %p\n", cap, &ci->vfs_inode);
  834. /* remove from session list */
  835. spin_lock(&session->s_cap_lock);
  836. /*
  837. * s_cap_reconnect is protected by s_cap_lock. no one changes
  838. * s_cap_gen while session is in the reconnect state.
  839. */
  840. if (queue_release &&
  841. (!session->s_cap_reconnect ||
  842. cap->cap_gen == session->s_cap_gen))
  843. __queue_cap_release(session, ci->i_vino.ino, cap->cap_id,
  844. cap->mseq, cap->issue_seq);
  845. if (session->s_cap_iterator == cap) {
  846. /* not yet, we are iterating over this very cap */
  847. dout("__ceph_remove_cap delaying %p removal from session %p\n",
  848. cap, cap->session);
  849. } else {
  850. list_del_init(&cap->session_caps);
  851. session->s_nr_caps--;
  852. cap->session = NULL;
  853. removed = 1;
  854. }
  855. /* protect backpointer with s_cap_lock: see iterate_session_caps */
  856. cap->ci = NULL;
  857. spin_unlock(&session->s_cap_lock);
  858. /* remove from inode list */
  859. rb_erase(&cap->ci_node, &ci->i_caps);
  860. if (ci->i_auth_cap == cap)
  861. ci->i_auth_cap = NULL;
  862. if (removed)
  863. ceph_put_cap(mdsc, cap);
  864. if (!__ceph_is_any_caps(ci) && ci->i_snap_realm) {
  865. struct ceph_snap_realm *realm = ci->i_snap_realm;
  866. spin_lock(&realm->inodes_with_caps_lock);
  867. list_del_init(&ci->i_snap_realm_item);
  868. ci->i_snap_realm_counter++;
  869. ci->i_snap_realm = NULL;
  870. spin_unlock(&realm->inodes_with_caps_lock);
  871. ceph_put_snap_realm(mdsc, realm);
  872. }
  873. if (!__ceph_is_any_real_caps(ci))
  874. __cap_delay_cancel(mdsc, ci);
  875. }
  876. /*
  877. * Build and send a cap message to the given MDS.
  878. *
  879. * Caller should be holding s_mutex.
  880. */
  881. static int send_cap_msg(struct ceph_mds_session *session,
  882. u64 ino, u64 cid, int op,
  883. int caps, int wanted, int dirty,
  884. u32 seq, u64 flush_tid, u32 issue_seq, u32 mseq,
  885. u64 size, u64 max_size,
  886. struct timespec *mtime, struct timespec *atime,
  887. u64 time_warp_seq,
  888. kuid_t uid, kgid_t gid, umode_t mode,
  889. u64 xattr_version,
  890. struct ceph_buffer *xattrs_buf,
  891. u64 follows)
  892. {
  893. struct ceph_mds_caps *fc;
  894. struct ceph_msg *msg;
  895. dout("send_cap_msg %s %llx %llx caps %s wanted %s dirty %s"
  896. " seq %u/%u mseq %u follows %lld size %llu/%llu"
  897. " xattr_ver %llu xattr_len %d\n", ceph_cap_op_name(op),
  898. cid, ino, ceph_cap_string(caps), ceph_cap_string(wanted),
  899. ceph_cap_string(dirty),
  900. seq, issue_seq, mseq, follows, size, max_size,
  901. xattr_version, xattrs_buf ? (int)xattrs_buf->vec.iov_len : 0);
  902. msg = ceph_msg_new(CEPH_MSG_CLIENT_CAPS, sizeof(*fc), GFP_NOFS, false);
  903. if (!msg)
  904. return -ENOMEM;
  905. msg->hdr.tid = cpu_to_le64(flush_tid);
  906. fc = msg->front.iov_base;
  907. memset(fc, 0, sizeof(*fc));
  908. fc->cap_id = cpu_to_le64(cid);
  909. fc->op = cpu_to_le32(op);
  910. fc->seq = cpu_to_le32(seq);
  911. fc->issue_seq = cpu_to_le32(issue_seq);
  912. fc->migrate_seq = cpu_to_le32(mseq);
  913. fc->caps = cpu_to_le32(caps);
  914. fc->wanted = cpu_to_le32(wanted);
  915. fc->dirty = cpu_to_le32(dirty);
  916. fc->ino = cpu_to_le64(ino);
  917. fc->snap_follows = cpu_to_le64(follows);
  918. fc->size = cpu_to_le64(size);
  919. fc->max_size = cpu_to_le64(max_size);
  920. if (mtime)
  921. ceph_encode_timespec(&fc->mtime, mtime);
  922. if (atime)
  923. ceph_encode_timespec(&fc->atime, atime);
  924. fc->time_warp_seq = cpu_to_le32(time_warp_seq);
  925. fc->uid = cpu_to_le32(from_kuid(&init_user_ns, uid));
  926. fc->gid = cpu_to_le32(from_kgid(&init_user_ns, gid));
  927. fc->mode = cpu_to_le32(mode);
  928. fc->xattr_version = cpu_to_le64(xattr_version);
  929. if (xattrs_buf) {
  930. msg->middle = ceph_buffer_get(xattrs_buf);
  931. fc->xattr_len = cpu_to_le32(xattrs_buf->vec.iov_len);
  932. msg->hdr.middle_len = cpu_to_le32(xattrs_buf->vec.iov_len);
  933. }
  934. ceph_con_send(&session->s_con, msg);
  935. return 0;
  936. }
  937. void __queue_cap_release(struct ceph_mds_session *session,
  938. u64 ino, u64 cap_id, u32 migrate_seq,
  939. u32 issue_seq)
  940. {
  941. struct ceph_msg *msg;
  942. struct ceph_mds_cap_release *head;
  943. struct ceph_mds_cap_item *item;
  944. BUG_ON(!session->s_num_cap_releases);
  945. msg = list_first_entry(&session->s_cap_releases,
  946. struct ceph_msg, list_head);
  947. dout(" adding %llx release to mds%d msg %p (%d left)\n",
  948. ino, session->s_mds, msg, session->s_num_cap_releases);
  949. BUG_ON(msg->front.iov_len + sizeof(*item) > PAGE_CACHE_SIZE);
  950. head = msg->front.iov_base;
  951. le32_add_cpu(&head->num, 1);
  952. item = msg->front.iov_base + msg->front.iov_len;
  953. item->ino = cpu_to_le64(ino);
  954. item->cap_id = cpu_to_le64(cap_id);
  955. item->migrate_seq = cpu_to_le32(migrate_seq);
  956. item->seq = cpu_to_le32(issue_seq);
  957. session->s_num_cap_releases--;
  958. msg->front.iov_len += sizeof(*item);
  959. if (le32_to_cpu(head->num) == CEPH_CAPS_PER_RELEASE) {
  960. dout(" release msg %p full\n", msg);
  961. list_move_tail(&msg->list_head, &session->s_cap_releases_done);
  962. } else {
  963. dout(" release msg %p at %d/%d (%d)\n", msg,
  964. (int)le32_to_cpu(head->num),
  965. (int)CEPH_CAPS_PER_RELEASE,
  966. (int)msg->front.iov_len);
  967. }
  968. }
  969. /*
  970. * Queue cap releases when an inode is dropped from our cache. Since
  971. * inode is about to be destroyed, there is no need for i_ceph_lock.
  972. */
  973. void ceph_queue_caps_release(struct inode *inode)
  974. {
  975. struct ceph_inode_info *ci = ceph_inode(inode);
  976. struct rb_node *p;
  977. p = rb_first(&ci->i_caps);
  978. while (p) {
  979. struct ceph_cap *cap = rb_entry(p, struct ceph_cap, ci_node);
  980. p = rb_next(p);
  981. __ceph_remove_cap(cap, true);
  982. }
  983. }
  984. /*
  985. * Send a cap msg on the given inode. Update our caps state, then
  986. * drop i_ceph_lock and send the message.
  987. *
  988. * Make note of max_size reported/requested from mds, revoked caps
  989. * that have now been implemented.
  990. *
  991. * Make half-hearted attempt ot to invalidate page cache if we are
  992. * dropping RDCACHE. Note that this will leave behind locked pages
  993. * that we'll then need to deal with elsewhere.
  994. *
  995. * Return non-zero if delayed release, or we experienced an error
  996. * such that the caller should requeue + retry later.
  997. *
  998. * called with i_ceph_lock, then drops it.
  999. * caller should hold snap_rwsem (read), s_mutex.
  1000. */
  1001. static int __send_cap(struct ceph_mds_client *mdsc, struct ceph_cap *cap,
  1002. int op, int used, int want, int retain, int flushing,
  1003. unsigned *pflush_tid)
  1004. __releases(cap->ci->i_ceph_lock)
  1005. {
  1006. struct ceph_inode_info *ci = cap->ci;
  1007. struct inode *inode = &ci->vfs_inode;
  1008. u64 cap_id = cap->cap_id;
  1009. int held, revoking, dropping, keep;
  1010. u64 seq, issue_seq, mseq, time_warp_seq, follows;
  1011. u64 size, max_size;
  1012. struct timespec mtime, atime;
  1013. int wake = 0;
  1014. umode_t mode;
  1015. kuid_t uid;
  1016. kgid_t gid;
  1017. struct ceph_mds_session *session;
  1018. u64 xattr_version = 0;
  1019. struct ceph_buffer *xattr_blob = NULL;
  1020. int delayed = 0;
  1021. u64 flush_tid = 0;
  1022. int i;
  1023. int ret;
  1024. held = cap->issued | cap->implemented;
  1025. revoking = cap->implemented & ~cap->issued;
  1026. retain &= ~revoking;
  1027. dropping = cap->issued & ~retain;
  1028. dout("__send_cap %p cap %p session %p %s -> %s (revoking %s)\n",
  1029. inode, cap, cap->session,
  1030. ceph_cap_string(held), ceph_cap_string(held & retain),
  1031. ceph_cap_string(revoking));
  1032. BUG_ON((retain & CEPH_CAP_PIN) == 0);
  1033. session = cap->session;
  1034. /* don't release wanted unless we've waited a bit. */
  1035. if ((ci->i_ceph_flags & CEPH_I_NODELAY) == 0 &&
  1036. time_before(jiffies, ci->i_hold_caps_min)) {
  1037. dout(" delaying issued %s -> %s, wanted %s -> %s on send\n",
  1038. ceph_cap_string(cap->issued),
  1039. ceph_cap_string(cap->issued & retain),
  1040. ceph_cap_string(cap->mds_wanted),
  1041. ceph_cap_string(want));
  1042. want |= cap->mds_wanted;
  1043. retain |= cap->issued;
  1044. delayed = 1;
  1045. }
  1046. ci->i_ceph_flags &= ~(CEPH_I_NODELAY | CEPH_I_FLUSH);
  1047. cap->issued &= retain; /* drop bits we don't want */
  1048. if (cap->implemented & ~cap->issued) {
  1049. /*
  1050. * Wake up any waiters on wanted -> needed transition.
  1051. * This is due to the weird transition from buffered
  1052. * to sync IO... we need to flush dirty pages _before_
  1053. * allowing sync writes to avoid reordering.
  1054. */
  1055. wake = 1;
  1056. }
  1057. cap->implemented &= cap->issued | used;
  1058. cap->mds_wanted = want;
  1059. if (flushing) {
  1060. /*
  1061. * assign a tid for flush operations so we can avoid
  1062. * flush1 -> dirty1 -> flush2 -> flushack1 -> mark
  1063. * clean type races. track latest tid for every bit
  1064. * so we can handle flush AxFw, flush Fw, and have the
  1065. * first ack clean Ax.
  1066. */
  1067. flush_tid = ++ci->i_cap_flush_last_tid;
  1068. if (pflush_tid)
  1069. *pflush_tid = flush_tid;
  1070. dout(" cap_flush_tid %d\n", (int)flush_tid);
  1071. for (i = 0; i < CEPH_CAP_BITS; i++)
  1072. if (flushing & (1 << i))
  1073. ci->i_cap_flush_tid[i] = flush_tid;
  1074. follows = ci->i_head_snapc->seq;
  1075. } else {
  1076. follows = 0;
  1077. }
  1078. keep = cap->implemented;
  1079. seq = cap->seq;
  1080. issue_seq = cap->issue_seq;
  1081. mseq = cap->mseq;
  1082. size = inode->i_size;
  1083. ci->i_reported_size = size;
  1084. max_size = ci->i_wanted_max_size;
  1085. ci->i_requested_max_size = max_size;
  1086. mtime = inode->i_mtime;
  1087. atime = inode->i_atime;
  1088. time_warp_seq = ci->i_time_warp_seq;
  1089. uid = inode->i_uid;
  1090. gid = inode->i_gid;
  1091. mode = inode->i_mode;
  1092. if (flushing & CEPH_CAP_XATTR_EXCL) {
  1093. __ceph_build_xattrs_blob(ci);
  1094. xattr_blob = ci->i_xattrs.blob;
  1095. xattr_version = ci->i_xattrs.version;
  1096. }
  1097. spin_unlock(&ci->i_ceph_lock);
  1098. ret = send_cap_msg(session, ceph_vino(inode).ino, cap_id,
  1099. op, keep, want, flushing, seq, flush_tid, issue_seq, mseq,
  1100. size, max_size, &mtime, &atime, time_warp_seq,
  1101. uid, gid, mode, xattr_version, xattr_blob,
  1102. follows);
  1103. if (ret < 0) {
  1104. dout("error sending cap msg, must requeue %p\n", inode);
  1105. delayed = 1;
  1106. }
  1107. if (wake)
  1108. wake_up_all(&ci->i_cap_wq);
  1109. return delayed;
  1110. }
  1111. /*
  1112. * When a snapshot is taken, clients accumulate dirty metadata on
  1113. * inodes with capabilities in ceph_cap_snaps to describe the file
  1114. * state at the time the snapshot was taken. This must be flushed
  1115. * asynchronously back to the MDS once sync writes complete and dirty
  1116. * data is written out.
  1117. *
  1118. * Unless @again is true, skip cap_snaps that were already sent to
  1119. * the MDS (i.e., during this session).
  1120. *
  1121. * Called under i_ceph_lock. Takes s_mutex as needed.
  1122. */
  1123. void __ceph_flush_snaps(struct ceph_inode_info *ci,
  1124. struct ceph_mds_session **psession,
  1125. int again)
  1126. __releases(ci->i_ceph_lock)
  1127. __acquires(ci->i_ceph_lock)
  1128. {
  1129. struct inode *inode = &ci->vfs_inode;
  1130. int mds;
  1131. struct ceph_cap_snap *capsnap;
  1132. u32 mseq;
  1133. struct ceph_mds_client *mdsc = ceph_inode_to_client(inode)->mdsc;
  1134. struct ceph_mds_session *session = NULL; /* if session != NULL, we hold
  1135. session->s_mutex */
  1136. u64 next_follows = 0; /* keep track of how far we've gotten through the
  1137. i_cap_snaps list, and skip these entries next time
  1138. around to avoid an infinite loop */
  1139. if (psession)
  1140. session = *psession;
  1141. dout("__flush_snaps %p\n", inode);
  1142. retry:
  1143. list_for_each_entry(capsnap, &ci->i_cap_snaps, ci_item) {
  1144. /* avoid an infiniute loop after retry */
  1145. if (capsnap->follows < next_follows)
  1146. continue;
  1147. /*
  1148. * we need to wait for sync writes to complete and for dirty
  1149. * pages to be written out.
  1150. */
  1151. if (capsnap->dirty_pages || capsnap->writing)
  1152. break;
  1153. /*
  1154. * if cap writeback already occurred, we should have dropped
  1155. * the capsnap in ceph_put_wrbuffer_cap_refs.
  1156. */
  1157. BUG_ON(capsnap->dirty == 0);
  1158. /* pick mds, take s_mutex */
  1159. if (ci->i_auth_cap == NULL) {
  1160. dout("no auth cap (migrating?), doing nothing\n");
  1161. goto out;
  1162. }
  1163. /* only flush each capsnap once */
  1164. if (!again && !list_empty(&capsnap->flushing_item)) {
  1165. dout("already flushed %p, skipping\n", capsnap);
  1166. continue;
  1167. }
  1168. mds = ci->i_auth_cap->session->s_mds;
  1169. mseq = ci->i_auth_cap->mseq;
  1170. if (session && session->s_mds != mds) {
  1171. dout("oops, wrong session %p mutex\n", session);
  1172. mutex_unlock(&session->s_mutex);
  1173. ceph_put_mds_session(session);
  1174. session = NULL;
  1175. }
  1176. if (!session) {
  1177. spin_unlock(&ci->i_ceph_lock);
  1178. mutex_lock(&mdsc->mutex);
  1179. session = __ceph_lookup_mds_session(mdsc, mds);
  1180. mutex_unlock(&mdsc->mutex);
  1181. if (session) {
  1182. dout("inverting session/ino locks on %p\n",
  1183. session);
  1184. mutex_lock(&session->s_mutex);
  1185. }
  1186. /*
  1187. * if session == NULL, we raced against a cap
  1188. * deletion or migration. retry, and we'll
  1189. * get a better @mds value next time.
  1190. */
  1191. spin_lock(&ci->i_ceph_lock);
  1192. goto retry;
  1193. }
  1194. capsnap->flush_tid = ++ci->i_cap_flush_last_tid;
  1195. atomic_inc(&capsnap->nref);
  1196. if (!list_empty(&capsnap->flushing_item))
  1197. list_del_init(&capsnap->flushing_item);
  1198. list_add_tail(&capsnap->flushing_item,
  1199. &session->s_cap_snaps_flushing);
  1200. spin_unlock(&ci->i_ceph_lock);
  1201. dout("flush_snaps %p cap_snap %p follows %lld tid %llu\n",
  1202. inode, capsnap, capsnap->follows, capsnap->flush_tid);
  1203. send_cap_msg(session, ceph_vino(inode).ino, 0,
  1204. CEPH_CAP_OP_FLUSHSNAP, capsnap->issued, 0,
  1205. capsnap->dirty, 0, capsnap->flush_tid, 0, mseq,
  1206. capsnap->size, 0,
  1207. &capsnap->mtime, &capsnap->atime,
  1208. capsnap->time_warp_seq,
  1209. capsnap->uid, capsnap->gid, capsnap->mode,
  1210. capsnap->xattr_version, capsnap->xattr_blob,
  1211. capsnap->follows);
  1212. next_follows = capsnap->follows + 1;
  1213. ceph_put_cap_snap(capsnap);
  1214. spin_lock(&ci->i_ceph_lock);
  1215. goto retry;
  1216. }
  1217. /* we flushed them all; remove this inode from the queue */
  1218. spin_lock(&mdsc->snap_flush_lock);
  1219. list_del_init(&ci->i_snap_flush_item);
  1220. spin_unlock(&mdsc->snap_flush_lock);
  1221. out:
  1222. if (psession)
  1223. *psession = session;
  1224. else if (session) {
  1225. mutex_unlock(&session->s_mutex);
  1226. ceph_put_mds_session(session);
  1227. }
  1228. }
  1229. static void ceph_flush_snaps(struct ceph_inode_info *ci)
  1230. {
  1231. spin_lock(&ci->i_ceph_lock);
  1232. __ceph_flush_snaps(ci, NULL, 0);
  1233. spin_unlock(&ci->i_ceph_lock);
  1234. }
  1235. /*
  1236. * Mark caps dirty. If inode is newly dirty, return the dirty flags.
  1237. * Caller is then responsible for calling __mark_inode_dirty with the
  1238. * returned flags value.
  1239. */
  1240. int __ceph_mark_dirty_caps(struct ceph_inode_info *ci, int mask)
  1241. {
  1242. struct ceph_mds_client *mdsc =
  1243. ceph_sb_to_client(ci->vfs_inode.i_sb)->mdsc;
  1244. struct inode *inode = &ci->vfs_inode;
  1245. int was = ci->i_dirty_caps;
  1246. int dirty = 0;
  1247. dout("__mark_dirty_caps %p %s dirty %s -> %s\n", &ci->vfs_inode,
  1248. ceph_cap_string(mask), ceph_cap_string(was),
  1249. ceph_cap_string(was | mask));
  1250. ci->i_dirty_caps |= mask;
  1251. if (was == 0) {
  1252. if (!ci->i_head_snapc)
  1253. ci->i_head_snapc = ceph_get_snap_context(
  1254. ci->i_snap_realm->cached_context);
  1255. dout(" inode %p now dirty snapc %p auth cap %p\n",
  1256. &ci->vfs_inode, ci->i_head_snapc, ci->i_auth_cap);
  1257. WARN_ON(!ci->i_auth_cap);
  1258. BUG_ON(!list_empty(&ci->i_dirty_item));
  1259. spin_lock(&mdsc->cap_dirty_lock);
  1260. list_add(&ci->i_dirty_item, &mdsc->cap_dirty);
  1261. spin_unlock(&mdsc->cap_dirty_lock);
  1262. if (ci->i_flushing_caps == 0) {
  1263. ihold(inode);
  1264. dirty |= I_DIRTY_SYNC;
  1265. }
  1266. }
  1267. BUG_ON(list_empty(&ci->i_dirty_item));
  1268. if (((was | ci->i_flushing_caps) & CEPH_CAP_FILE_BUFFER) &&
  1269. (mask & CEPH_CAP_FILE_BUFFER))
  1270. dirty |= I_DIRTY_DATASYNC;
  1271. __cap_delay_requeue(mdsc, ci);
  1272. return dirty;
  1273. }
  1274. /*
  1275. * Add dirty inode to the flushing list. Assigned a seq number so we
  1276. * can wait for caps to flush without starving.
  1277. *
  1278. * Called under i_ceph_lock.
  1279. */
  1280. static int __mark_caps_flushing(struct inode *inode,
  1281. struct ceph_mds_session *session)
  1282. {
  1283. struct ceph_mds_client *mdsc = ceph_sb_to_client(inode->i_sb)->mdsc;
  1284. struct ceph_inode_info *ci = ceph_inode(inode);
  1285. int flushing;
  1286. BUG_ON(ci->i_dirty_caps == 0);
  1287. BUG_ON(list_empty(&ci->i_dirty_item));
  1288. flushing = ci->i_dirty_caps;
  1289. dout("__mark_caps_flushing flushing %s, flushing_caps %s -> %s\n",
  1290. ceph_cap_string(flushing),
  1291. ceph_cap_string(ci->i_flushing_caps),
  1292. ceph_cap_string(ci->i_flushing_caps | flushing));
  1293. ci->i_flushing_caps |= flushing;
  1294. ci->i_dirty_caps = 0;
  1295. dout(" inode %p now !dirty\n", inode);
  1296. spin_lock(&mdsc->cap_dirty_lock);
  1297. list_del_init(&ci->i_dirty_item);
  1298. ci->i_cap_flush_seq = ++mdsc->cap_flush_seq;
  1299. if (list_empty(&ci->i_flushing_item)) {
  1300. list_add_tail(&ci->i_flushing_item, &session->s_cap_flushing);
  1301. mdsc->num_cap_flushing++;
  1302. dout(" inode %p now flushing seq %lld\n", inode,
  1303. ci->i_cap_flush_seq);
  1304. } else {
  1305. list_move_tail(&ci->i_flushing_item, &session->s_cap_flushing);
  1306. dout(" inode %p now flushing (more) seq %lld\n", inode,
  1307. ci->i_cap_flush_seq);
  1308. }
  1309. spin_unlock(&mdsc->cap_dirty_lock);
  1310. return flushing;
  1311. }
  1312. /*
  1313. * try to invalidate mapping pages without blocking.
  1314. */
  1315. static int try_nonblocking_invalidate(struct inode *inode)
  1316. {
  1317. struct ceph_inode_info *ci = ceph_inode(inode);
  1318. u32 invalidating_gen = ci->i_rdcache_gen;
  1319. spin_unlock(&ci->i_ceph_lock);
  1320. invalidate_mapping_pages(&inode->i_data, 0, -1);
  1321. spin_lock(&ci->i_ceph_lock);
  1322. if (inode->i_data.nrpages == 0 &&
  1323. invalidating_gen == ci->i_rdcache_gen) {
  1324. /* success. */
  1325. dout("try_nonblocking_invalidate %p success\n", inode);
  1326. /* save any racing async invalidate some trouble */
  1327. ci->i_rdcache_revoking = ci->i_rdcache_gen - 1;
  1328. return 0;
  1329. }
  1330. dout("try_nonblocking_invalidate %p failed\n", inode);
  1331. return -1;
  1332. }
  1333. /*
  1334. * Swiss army knife function to examine currently used and wanted
  1335. * versus held caps. Release, flush, ack revoked caps to mds as
  1336. * appropriate.
  1337. *
  1338. * CHECK_CAPS_NODELAY - caller is delayed work and we should not delay
  1339. * cap release further.
  1340. * CHECK_CAPS_AUTHONLY - we should only check the auth cap
  1341. * CHECK_CAPS_FLUSH - we should flush any dirty caps immediately, without
  1342. * further delay.
  1343. */
  1344. void ceph_check_caps(struct ceph_inode_info *ci, int flags,
  1345. struct ceph_mds_session *session)
  1346. {
  1347. struct ceph_fs_client *fsc = ceph_inode_to_client(&ci->vfs_inode);
  1348. struct ceph_mds_client *mdsc = fsc->mdsc;
  1349. struct inode *inode = &ci->vfs_inode;
  1350. struct ceph_cap *cap;
  1351. int file_wanted, used, cap_used;
  1352. int took_snap_rwsem = 0; /* true if mdsc->snap_rwsem held */
  1353. int issued, implemented, want, retain, revoking, flushing = 0;
  1354. int mds = -1; /* keep track of how far we've gone through i_caps list
  1355. to avoid an infinite loop on retry */
  1356. struct rb_node *p;
  1357. int tried_invalidate = 0;
  1358. int delayed = 0, sent = 0, force_requeue = 0, num;
  1359. int queue_invalidate = 0;
  1360. int is_delayed = flags & CHECK_CAPS_NODELAY;
  1361. /* if we are unmounting, flush any unused caps immediately. */
  1362. if (mdsc->stopping)
  1363. is_delayed = 1;
  1364. spin_lock(&ci->i_ceph_lock);
  1365. if (ci->i_ceph_flags & CEPH_I_FLUSH)
  1366. flags |= CHECK_CAPS_FLUSH;
  1367. /* flush snaps first time around only */
  1368. if (!list_empty(&ci->i_cap_snaps))
  1369. __ceph_flush_snaps(ci, &session, 0);
  1370. goto retry_locked;
  1371. retry:
  1372. spin_lock(&ci->i_ceph_lock);
  1373. retry_locked:
  1374. file_wanted = __ceph_caps_file_wanted(ci);
  1375. used = __ceph_caps_used(ci);
  1376. want = file_wanted | used;
  1377. issued = __ceph_caps_issued(ci, &implemented);
  1378. revoking = implemented & ~issued;
  1379. retain = want | CEPH_CAP_PIN;
  1380. if (!mdsc->stopping && inode->i_nlink > 0) {
  1381. if (want) {
  1382. retain |= CEPH_CAP_ANY; /* be greedy */
  1383. } else {
  1384. retain |= CEPH_CAP_ANY_SHARED;
  1385. /*
  1386. * keep RD only if we didn't have the file open RW,
  1387. * because then the mds would revoke it anyway to
  1388. * journal max_size=0.
  1389. */
  1390. if (ci->i_max_size == 0)
  1391. retain |= CEPH_CAP_ANY_RD;
  1392. }
  1393. }
  1394. dout("check_caps %p file_want %s used %s dirty %s flushing %s"
  1395. " issued %s revoking %s retain %s %s%s%s\n", inode,
  1396. ceph_cap_string(file_wanted),
  1397. ceph_cap_string(used), ceph_cap_string(ci->i_dirty_caps),
  1398. ceph_cap_string(ci->i_flushing_caps),
  1399. ceph_cap_string(issued), ceph_cap_string(revoking),
  1400. ceph_cap_string(retain),
  1401. (flags & CHECK_CAPS_AUTHONLY) ? " AUTHONLY" : "",
  1402. (flags & CHECK_CAPS_NODELAY) ? " NODELAY" : "",
  1403. (flags & CHECK_CAPS_FLUSH) ? " FLUSH" : "");
  1404. /*
  1405. * If we no longer need to hold onto old our caps, and we may
  1406. * have cached pages, but don't want them, then try to invalidate.
  1407. * If we fail, it's because pages are locked.... try again later.
  1408. */
  1409. if ((!is_delayed || mdsc->stopping) &&
  1410. ci->i_wrbuffer_ref == 0 && /* no dirty pages... */
  1411. inode->i_data.nrpages && /* have cached pages */
  1412. (file_wanted == 0 || /* no open files */
  1413. (revoking & (CEPH_CAP_FILE_CACHE|
  1414. CEPH_CAP_FILE_LAZYIO))) && /* or revoking cache */
  1415. !tried_invalidate) {
  1416. dout("check_caps trying to invalidate on %p\n", inode);
  1417. if (try_nonblocking_invalidate(inode) < 0) {
  1418. if (revoking & (CEPH_CAP_FILE_CACHE|
  1419. CEPH_CAP_FILE_LAZYIO)) {
  1420. dout("check_caps queuing invalidate\n");
  1421. queue_invalidate = 1;
  1422. ci->i_rdcache_revoking = ci->i_rdcache_gen;
  1423. } else {
  1424. dout("check_caps failed to invalidate pages\n");
  1425. /* we failed to invalidate pages. check these
  1426. caps again later. */
  1427. force_requeue = 1;
  1428. __cap_set_timeouts(mdsc, ci);
  1429. }
  1430. }
  1431. tried_invalidate = 1;
  1432. goto retry_locked;
  1433. }
  1434. num = 0;
  1435. for (p = rb_first(&ci->i_caps); p; p = rb_next(p)) {
  1436. cap = rb_entry(p, struct ceph_cap, ci_node);
  1437. num++;
  1438. /* avoid looping forever */
  1439. if (mds >= cap->mds ||
  1440. ((flags & CHECK_CAPS_AUTHONLY) && cap != ci->i_auth_cap))
  1441. continue;
  1442. /* NOTE: no side-effects allowed, until we take s_mutex */
  1443. cap_used = used;
  1444. if (ci->i_auth_cap && cap != ci->i_auth_cap)
  1445. cap_used &= ~ci->i_auth_cap->issued;
  1446. revoking = cap->implemented & ~cap->issued;
  1447. dout(" mds%d cap %p used %s issued %s implemented %s revoking %s\n",
  1448. cap->mds, cap, ceph_cap_string(cap->issued),
  1449. ceph_cap_string(cap_used),
  1450. ceph_cap_string(cap->implemented),
  1451. ceph_cap_string(revoking));
  1452. if (cap == ci->i_auth_cap &&
  1453. (cap->issued & CEPH_CAP_FILE_WR)) {
  1454. /* request larger max_size from MDS? */
  1455. if (ci->i_wanted_max_size > ci->i_max_size &&
  1456. ci->i_wanted_max_size > ci->i_requested_max_size) {
  1457. dout("requesting new max_size\n");
  1458. goto ack;
  1459. }
  1460. /* approaching file_max? */
  1461. if ((inode->i_size << 1) >= ci->i_max_size &&
  1462. (ci->i_reported_size << 1) < ci->i_max_size) {
  1463. dout("i_size approaching max_size\n");
  1464. goto ack;
  1465. }
  1466. }
  1467. /* flush anything dirty? */
  1468. if (cap == ci->i_auth_cap && (flags & CHECK_CAPS_FLUSH) &&
  1469. ci->i_dirty_caps) {
  1470. dout("flushing dirty caps\n");
  1471. goto ack;
  1472. }
  1473. /* completed revocation? going down and there are no caps? */
  1474. if (revoking && (revoking & cap_used) == 0) {
  1475. dout("completed revocation of %s\n",
  1476. ceph_cap_string(cap->implemented & ~cap->issued));
  1477. goto ack;
  1478. }
  1479. /* want more caps from mds? */
  1480. if (want & ~(cap->mds_wanted | cap->issued))
  1481. goto ack;
  1482. /* things we might delay */
  1483. if ((cap->issued & ~retain) == 0 &&
  1484. cap->mds_wanted == want)
  1485. continue; /* nope, all good */
  1486. if (is_delayed)
  1487. goto ack;
  1488. /* delay? */
  1489. if ((ci->i_ceph_flags & CEPH_I_NODELAY) == 0 &&
  1490. time_before(jiffies, ci->i_hold_caps_max)) {
  1491. dout(" delaying issued %s -> %s, wanted %s -> %s\n",
  1492. ceph_cap_string(cap->issued),
  1493. ceph_cap_string(cap->issued & retain),
  1494. ceph_cap_string(cap->mds_wanted),
  1495. ceph_cap_string(want));
  1496. delayed++;
  1497. continue;
  1498. }
  1499. ack:
  1500. if (ci->i_ceph_flags & CEPH_I_NOFLUSH) {
  1501. dout(" skipping %p I_NOFLUSH set\n", inode);
  1502. continue;
  1503. }
  1504. if (session && session != cap->session) {
  1505. dout("oops, wrong session %p mutex\n", session);
  1506. mutex_unlock(&session->s_mutex);
  1507. session = NULL;
  1508. }
  1509. if (!session) {
  1510. session = cap->session;
  1511. if (mutex_trylock(&session->s_mutex) == 0) {
  1512. dout("inverting session/ino locks on %p\n",
  1513. session);
  1514. spin_unlock(&ci->i_ceph_lock);
  1515. if (took_snap_rwsem) {
  1516. up_read(&mdsc->snap_rwsem);
  1517. took_snap_rwsem = 0;
  1518. }
  1519. mutex_lock(&session->s_mutex);
  1520. goto retry;
  1521. }
  1522. }
  1523. /* take snap_rwsem after session mutex */
  1524. if (!took_snap_rwsem) {
  1525. if (down_read_trylock(&mdsc->snap_rwsem) == 0) {
  1526. dout("inverting snap/in locks on %p\n",
  1527. inode);
  1528. spin_unlock(&ci->i_ceph_lock);
  1529. down_read(&mdsc->snap_rwsem);
  1530. took_snap_rwsem = 1;
  1531. goto retry;
  1532. }
  1533. took_snap_rwsem = 1;
  1534. }
  1535. if (cap == ci->i_auth_cap && ci->i_dirty_caps)
  1536. flushing = __mark_caps_flushing(inode, session);
  1537. else
  1538. flushing = 0;
  1539. mds = cap->mds; /* remember mds, so we don't repeat */
  1540. sent++;
  1541. /* __send_cap drops i_ceph_lock */
  1542. delayed += __send_cap(mdsc, cap, CEPH_CAP_OP_UPDATE, cap_used,
  1543. want, retain, flushing, NULL);
  1544. goto retry; /* retake i_ceph_lock and restart our cap scan. */
  1545. }
  1546. /*
  1547. * Reschedule delayed caps release if we delayed anything,
  1548. * otherwise cancel.
  1549. */
  1550. if (delayed && is_delayed)
  1551. force_requeue = 1; /* __send_cap delayed release; requeue */
  1552. if (!delayed && !is_delayed)
  1553. __cap_delay_cancel(mdsc, ci);
  1554. else if (!is_delayed || force_requeue)
  1555. __cap_delay_requeue(mdsc, ci);
  1556. spin_unlock(&ci->i_ceph_lock);
  1557. if (queue_invalidate)
  1558. ceph_queue_invalidate(inode);
  1559. if (session)
  1560. mutex_unlock(&session->s_mutex);
  1561. if (took_snap_rwsem)
  1562. up_read(&mdsc->snap_rwsem);
  1563. }
  1564. /*
  1565. * Try to flush dirty caps back to the auth mds.
  1566. */
  1567. static int try_flush_caps(struct inode *inode, unsigned *flush_tid)
  1568. {
  1569. struct ceph_mds_client *mdsc = ceph_sb_to_client(inode->i_sb)->mdsc;
  1570. struct ceph_inode_info *ci = ceph_inode(inode);
  1571. int flushing = 0;
  1572. struct ceph_mds_session *session = NULL;
  1573. retry:
  1574. spin_lock(&ci->i_ceph_lock);
  1575. if (ci->i_ceph_flags & CEPH_I_NOFLUSH) {
  1576. dout("try_flush_caps skipping %p I_NOFLUSH set\n", inode);
  1577. goto out;
  1578. }
  1579. if (ci->i_dirty_caps && ci->i_auth_cap) {
  1580. struct ceph_cap *cap = ci->i_auth_cap;
  1581. int used = __ceph_caps_used(ci);
  1582. int want = __ceph_caps_wanted(ci);
  1583. int delayed;
  1584. if (!session || session != cap->session) {
  1585. spin_unlock(&ci->i_ceph_lock);
  1586. if (session)
  1587. mutex_unlock(&session->s_mutex);
  1588. session = cap->session;
  1589. mutex_lock(&session->s_mutex);
  1590. goto retry;
  1591. }
  1592. if (cap->session->s_state < CEPH_MDS_SESSION_OPEN)
  1593. goto out;
  1594. flushing = __mark_caps_flushing(inode, session);
  1595. /* __send_cap drops i_ceph_lock */
  1596. delayed = __send_cap(mdsc, cap, CEPH_CAP_OP_FLUSH, used, want,
  1597. cap->issued | cap->implemented, flushing,
  1598. flush_tid);
  1599. if (!delayed)
  1600. goto out_unlocked;
  1601. spin_lock(&ci->i_ceph_lock);
  1602. __cap_delay_requeue(mdsc, ci);
  1603. }
  1604. out:
  1605. spin_unlock(&ci->i_ceph_lock);
  1606. out_unlocked:
  1607. if (session)
  1608. mutex_unlock(&session->s_mutex);
  1609. return flushing;
  1610. }
  1611. /*
  1612. * Return true if we've flushed caps through the given flush_tid.
  1613. */
  1614. static int caps_are_flushed(struct inode *inode, unsigned tid)
  1615. {
  1616. struct ceph_inode_info *ci = ceph_inode(inode);
  1617. int i, ret = 1;
  1618. spin_lock(&ci->i_ceph_lock);
  1619. for (i = 0; i < CEPH_CAP_BITS; i++)
  1620. if ((ci->i_flushing_caps & (1 << i)) &&
  1621. ci->i_cap_flush_tid[i] <= tid) {
  1622. /* still flushing this bit */
  1623. ret = 0;
  1624. break;
  1625. }
  1626. spin_unlock(&ci->i_ceph_lock);
  1627. return ret;
  1628. }
  1629. /*
  1630. * Wait on any unsafe replies for the given inode. First wait on the
  1631. * newest request, and make that the upper bound. Then, if there are
  1632. * more requests, keep waiting on the oldest as long as it is still older
  1633. * than the original request.
  1634. */
  1635. static void sync_write_wait(struct inode *inode)
  1636. {
  1637. struct ceph_inode_info *ci = ceph_inode(inode);
  1638. struct list_head *head = &ci->i_unsafe_writes;
  1639. struct ceph_osd_request *req;
  1640. u64 last_tid;
  1641. spin_lock(&ci->i_unsafe_lock);
  1642. if (list_empty(head))
  1643. goto out;
  1644. /* set upper bound as _last_ entry in chain */
  1645. req = list_entry(head->prev, struct ceph_osd_request,
  1646. r_unsafe_item);
  1647. last_tid = req->r_tid;
  1648. do {
  1649. ceph_osdc_get_request(req);
  1650. spin_unlock(&ci->i_unsafe_lock);
  1651. dout("sync_write_wait on tid %llu (until %llu)\n",
  1652. req->r_tid, last_tid);
  1653. wait_for_completion(&req->r_safe_completion);
  1654. spin_lock(&ci->i_unsafe_lock);
  1655. ceph_osdc_put_request(req);
  1656. /*
  1657. * from here on look at first entry in chain, since we
  1658. * only want to wait for anything older than last_tid
  1659. */
  1660. if (list_empty(head))
  1661. break;
  1662. req = list_entry(head->next, struct ceph_osd_request,
  1663. r_unsafe_item);
  1664. } while (req->r_tid < last_tid);
  1665. out:
  1666. spin_unlock(&ci->i_unsafe_lock);
  1667. }
  1668. int ceph_fsync(struct file *file, loff_t start, loff_t end, int datasync)
  1669. {
  1670. struct inode *inode = file->f_mapping->host;
  1671. struct ceph_inode_info *ci = ceph_inode(inode);
  1672. unsigned flush_tid;
  1673. int ret;
  1674. int dirty;
  1675. dout("fsync %p%s\n", inode, datasync ? " datasync" : "");
  1676. sync_write_wait(inode);
  1677. ret = filemap_write_and_wait_range(inode->i_mapping, start, end);
  1678. if (ret < 0)
  1679. return ret;
  1680. mutex_lock(&inode->i_mutex);
  1681. dirty = try_flush_caps(inode, &flush_tid);
  1682. dout("fsync dirty caps are %s\n", ceph_cap_string(dirty));
  1683. /*
  1684. * only wait on non-file metadata writeback (the mds
  1685. * can recover size and mtime, so we don't need to
  1686. * wait for that)
  1687. */
  1688. if (!datasync && (dirty & ~CEPH_CAP_ANY_FILE_WR)) {
  1689. dout("fsync waiting for flush_tid %u\n", flush_tid);
  1690. ret = wait_event_interruptible(ci->i_cap_wq,
  1691. caps_are_flushed(inode, flush_tid));
  1692. }
  1693. dout("fsync %p%s done\n", inode, datasync ? " datasync" : "");
  1694. mutex_unlock(&inode->i_mutex);
  1695. return ret;
  1696. }
  1697. /*
  1698. * Flush any dirty caps back to the mds. If we aren't asked to wait,
  1699. * queue inode for flush but don't do so immediately, because we can
  1700. * get by with fewer MDS messages if we wait for data writeback to
  1701. * complete first.
  1702. */
  1703. int ceph_write_inode(struct inode *inode, struct writeback_control *wbc)
  1704. {
  1705. struct ceph_inode_info *ci = ceph_inode(inode);
  1706. unsigned flush_tid;
  1707. int err = 0;
  1708. int dirty;
  1709. int wait = wbc->sync_mode == WB_SYNC_ALL;
  1710. dout("write_inode %p wait=%d\n", inode, wait);
  1711. if (wait) {
  1712. dirty = try_flush_caps(inode, &flush_tid);
  1713. if (dirty)
  1714. err = wait_event_interruptible(ci->i_cap_wq,
  1715. caps_are_flushed(inode, flush_tid));
  1716. } else {
  1717. struct ceph_mds_client *mdsc =
  1718. ceph_sb_to_client(inode->i_sb)->mdsc;
  1719. spin_lock(&ci->i_ceph_lock);
  1720. if (__ceph_caps_dirty(ci))
  1721. __cap_delay_requeue_front(mdsc, ci);
  1722. spin_unlock(&ci->i_ceph_lock);
  1723. }
  1724. return err;
  1725. }
  1726. /*
  1727. * After a recovering MDS goes active, we need to resend any caps
  1728. * we were flushing.
  1729. *
  1730. * Caller holds session->s_mutex.
  1731. */
  1732. static void kick_flushing_capsnaps(struct ceph_mds_client *mdsc,
  1733. struct ceph_mds_session *session)
  1734. {
  1735. struct ceph_cap_snap *capsnap;
  1736. dout("kick_flushing_capsnaps mds%d\n", session->s_mds);
  1737. list_for_each_entry(capsnap, &session->s_cap_snaps_flushing,
  1738. flushing_item) {
  1739. struct ceph_inode_info *ci = capsnap->ci;
  1740. struct inode *inode = &ci->vfs_inode;
  1741. struct ceph_cap *cap;
  1742. spin_lock(&ci->i_ceph_lock);
  1743. cap = ci->i_auth_cap;
  1744. if (cap && cap->session == session) {
  1745. dout("kick_flushing_caps %p cap %p capsnap %p\n", inode,
  1746. cap, capsnap);
  1747. __ceph_flush_snaps(ci, &session, 1);
  1748. } else {
  1749. pr_err("%p auth cap %p not mds%d ???\n", inode,
  1750. cap, session->s_mds);
  1751. }
  1752. spin_unlock(&ci->i_ceph_lock);
  1753. }
  1754. }
  1755. void ceph_kick_flushing_caps(struct ceph_mds_client *mdsc,
  1756. struct ceph_mds_session *session)
  1757. {
  1758. struct ceph_inode_info *ci;
  1759. kick_flushing_capsnaps(mdsc, session);
  1760. dout("kick_flushing_caps mds%d\n", session->s_mds);
  1761. list_for_each_entry(ci, &session->s_cap_flushing, i_flushing_item) {
  1762. struct inode *inode = &ci->vfs_inode;
  1763. struct ceph_cap *cap;
  1764. int delayed = 0;
  1765. spin_lock(&ci->i_ceph_lock);
  1766. cap = ci->i_auth_cap;
  1767. if (cap && cap->session == session) {
  1768. dout("kick_flushing_caps %p cap %p %s\n", inode,
  1769. cap, ceph_cap_string(ci->i_flushing_caps));
  1770. delayed = __send_cap(mdsc, cap, CEPH_CAP_OP_FLUSH,
  1771. __ceph_caps_used(ci),
  1772. __ceph_caps_wanted(ci),
  1773. cap->issued | cap->implemented,
  1774. ci->i_flushing_caps, NULL);
  1775. if (delayed) {
  1776. spin_lock(&ci->i_ceph_lock);
  1777. __cap_delay_requeue(mdsc, ci);
  1778. spin_unlock(&ci->i_ceph_lock);
  1779. }
  1780. } else {
  1781. pr_err("%p auth cap %p not mds%d ???\n", inode,
  1782. cap, session->s_mds);
  1783. spin_unlock(&ci->i_ceph_lock);
  1784. }
  1785. }
  1786. }
  1787. static void kick_flushing_inode_caps(struct ceph_mds_client *mdsc,
  1788. struct ceph_mds_session *session,
  1789. struct inode *inode)
  1790. {
  1791. struct ceph_inode_info *ci = ceph_inode(inode);
  1792. struct ceph_cap *cap;
  1793. int delayed = 0;
  1794. spin_lock(&ci->i_ceph_lock);
  1795. cap = ci->i_auth_cap;
  1796. dout("kick_flushing_inode_caps %p flushing %s flush_seq %lld\n", inode,
  1797. ceph_cap_string(ci->i_flushing_caps), ci->i_cap_flush_seq);
  1798. __ceph_flush_snaps(ci, &session, 1);
  1799. if (ci->i_flushing_caps) {
  1800. spin_lock(&mdsc->cap_dirty_lock);
  1801. list_move_tail(&ci->i_flushing_item,
  1802. &cap->session->s_cap_flushing);
  1803. spin_unlock(&mdsc->cap_dirty_lock);
  1804. delayed = __send_cap(mdsc, cap, CEPH_CAP_OP_FLUSH,
  1805. __ceph_caps_used(ci),
  1806. __ceph_caps_wanted(ci),
  1807. cap->issued | cap->implemented,
  1808. ci->i_flushing_caps, NULL);
  1809. if (delayed) {
  1810. spin_lock(&ci->i_ceph_lock);
  1811. __cap_delay_requeue(mdsc, ci);
  1812. spin_unlock(&ci->i_ceph_lock);
  1813. }
  1814. } else {
  1815. spin_unlock(&ci->i_ceph_lock);
  1816. }
  1817. }
  1818. /*
  1819. * Take references to capabilities we hold, so that we don't release
  1820. * them to the MDS prematurely.
  1821. *
  1822. * Protected by i_ceph_lock.
  1823. */
  1824. static void __take_cap_refs(struct ceph_inode_info *ci, int got)
  1825. {
  1826. if (got & CEPH_CAP_PIN)
  1827. ci->i_pin_ref++;
  1828. if (got & CEPH_CAP_FILE_RD)
  1829. ci->i_rd_ref++;
  1830. if (got & CEPH_CAP_FILE_CACHE)
  1831. ci->i_rdcache_ref++;
  1832. if (got & CEPH_CAP_FILE_WR)
  1833. ci->i_wr_ref++;
  1834. if (got & CEPH_CAP_FILE_BUFFER) {
  1835. if (ci->i_wb_ref == 0)
  1836. ihold(&ci->vfs_inode);
  1837. ci->i_wb_ref++;
  1838. dout("__take_cap_refs %p wb %d -> %d (?)\n",
  1839. &ci->vfs_inode, ci->i_wb_ref-1, ci->i_wb_ref);
  1840. }
  1841. }
  1842. /*
  1843. * Try to grab cap references. Specify those refs we @want, and the
  1844. * minimal set we @need. Also include the larger offset we are writing
  1845. * to (when applicable), and check against max_size here as well.
  1846. * Note that caller is responsible for ensuring max_size increases are
  1847. * requested from the MDS.
  1848. */
  1849. static int try_get_cap_refs(struct ceph_inode_info *ci, int need, int want,
  1850. int *got, loff_t endoff, int *check_max, int *err)
  1851. {
  1852. struct inode *inode = &ci->vfs_inode;
  1853. int ret = 0;
  1854. int have, implemented;
  1855. int file_wanted;
  1856. dout("get_cap_refs %p need %s want %s\n", inode,
  1857. ceph_cap_string(need), ceph_cap_string(want));
  1858. spin_lock(&ci->i_ceph_lock);
  1859. /* make sure file is actually open */
  1860. file_wanted = __ceph_caps_file_wanted(ci);
  1861. if ((file_wanted & need) == 0) {
  1862. dout("try_get_cap_refs need %s file_wanted %s, EBADF\n",
  1863. ceph_cap_string(need), ceph_cap_string(file_wanted));
  1864. *err = -EBADF;
  1865. ret = 1;
  1866. goto out;
  1867. }
  1868. /* finish pending truncate */
  1869. while (ci->i_truncate_pending) {
  1870. spin_unlock(&ci->i_ceph_lock);
  1871. __ceph_do_pending_vmtruncate(inode);
  1872. spin_lock(&ci->i_ceph_lock);
  1873. }
  1874. have = __ceph_caps_issued(ci, &implemented);
  1875. if (have & need & CEPH_CAP_FILE_WR) {
  1876. if (endoff >= 0 && endoff > (loff_t)ci->i_max_size) {
  1877. dout("get_cap_refs %p endoff %llu > maxsize %llu\n",
  1878. inode, endoff, ci->i_max_size);
  1879. if (endoff > ci->i_requested_max_size) {
  1880. *check_max = 1;
  1881. ret = 1;
  1882. }
  1883. goto out;
  1884. }
  1885. /*
  1886. * If a sync write is in progress, we must wait, so that we
  1887. * can get a final snapshot value for size+mtime.
  1888. */
  1889. if (__ceph_have_pending_cap_snap(ci)) {
  1890. dout("get_cap_refs %p cap_snap_pending\n", inode);
  1891. goto out;
  1892. }
  1893. }
  1894. if ((have & need) == need) {
  1895. /*
  1896. * Look at (implemented & ~have & not) so that we keep waiting
  1897. * on transition from wanted -> needed caps. This is needed
  1898. * for WRBUFFER|WR -> WR to avoid a new WR sync write from
  1899. * going before a prior buffered writeback happens.
  1900. */
  1901. int not = want & ~(have & need);
  1902. int revoking = implemented & ~have;
  1903. dout("get_cap_refs %p have %s but not %s (revoking %s)\n",
  1904. inode, ceph_cap_string(have), ceph_cap_string(not),
  1905. ceph_cap_string(revoking));
  1906. if ((revoking & not) == 0) {
  1907. *got = need | (have & want);
  1908. __take_cap_refs(ci, *got);
  1909. ret = 1;
  1910. }
  1911. } else {
  1912. dout("get_cap_refs %p have %s needed %s\n", inode,
  1913. ceph_cap_string(have), ceph_cap_string(need));
  1914. }
  1915. out:
  1916. spin_unlock(&ci->i_ceph_lock);
  1917. dout("get_cap_refs %p ret %d got %s\n", inode,
  1918. ret, ceph_cap_string(*got));
  1919. return ret;
  1920. }
  1921. /*
  1922. * Check the offset we are writing up to against our current
  1923. * max_size. If necessary, tell the MDS we want to write to
  1924. * a larger offset.
  1925. */
  1926. static void check_max_size(struct inode *inode, loff_t endoff)
  1927. {
  1928. struct ceph_inode_info *ci = ceph_inode(inode);
  1929. int check = 0;
  1930. /* do we need to explicitly request a larger max_size? */
  1931. spin_lock(&ci->i_ceph_lock);
  1932. if (endoff >= ci->i_max_size && endoff > ci->i_wanted_max_size) {
  1933. dout("write %p at large endoff %llu, req max_size\n",
  1934. inode, endoff);
  1935. ci->i_wanted_max_size = endoff;
  1936. }
  1937. /* duplicate ceph_check_caps()'s logic */
  1938. if (ci->i_auth_cap &&
  1939. (ci->i_auth_cap->issued & CEPH_CAP_FILE_WR) &&
  1940. ci->i_wanted_max_size > ci->i_max_size &&
  1941. ci->i_wanted_max_size > ci->i_requested_max_size)
  1942. check = 1;
  1943. spin_unlock(&ci->i_ceph_lock);
  1944. if (check)
  1945. ceph_check_caps(ci, CHECK_CAPS_AUTHONLY, NULL);
  1946. }
  1947. /*
  1948. * Wait for caps, and take cap references. If we can't get a WR cap
  1949. * due to a small max_size, make sure we check_max_size (and possibly
  1950. * ask the mds) so we don't get hung up indefinitely.
  1951. */
  1952. int ceph_get_caps(struct ceph_inode_info *ci, int need, int want, int *got,
  1953. loff_t endoff)
  1954. {
  1955. int check_max, ret, err;
  1956. retry:
  1957. if (endoff > 0)
  1958. check_max_size(&ci->vfs_inode, endoff);
  1959. check_max = 0;
  1960. err = 0;
  1961. ret = wait_event_interruptible(ci->i_cap_wq,
  1962. try_get_cap_refs(ci, need, want,
  1963. got, endoff,
  1964. &check_max, &err));
  1965. if (err)
  1966. ret = err;
  1967. if (check_max)
  1968. goto retry;
  1969. return ret;
  1970. }
  1971. /*
  1972. * Take cap refs. Caller must already know we hold at least one ref
  1973. * on the caps in question or we don't know this is safe.
  1974. */
  1975. void ceph_get_cap_refs(struct ceph_inode_info *ci, int caps)
  1976. {
  1977. spin_lock(&ci->i_ceph_lock);
  1978. __take_cap_refs(ci, caps);
  1979. spin_unlock(&ci->i_ceph_lock);
  1980. }
  1981. /*
  1982. * Release cap refs.
  1983. *
  1984. * If we released the last ref on any given cap, call ceph_check_caps
  1985. * to release (or schedule a release).
  1986. *
  1987. * If we are releasing a WR cap (from a sync write), finalize any affected
  1988. * cap_snap, and wake up any waiters.
  1989. */
  1990. void ceph_put_cap_refs(struct ceph_inode_info *ci, int had)
  1991. {
  1992. struct inode *inode = &ci->vfs_inode;
  1993. int last = 0, put = 0, flushsnaps = 0, wake = 0;
  1994. struct ceph_cap_snap *capsnap;
  1995. spin_lock(&ci->i_ceph_lock);
  1996. if (had & CEPH_CAP_PIN)
  1997. --ci->i_pin_ref;
  1998. if (had & CEPH_CAP_FILE_RD)
  1999. if (--ci->i_rd_ref == 0)
  2000. last++;
  2001. if (had & CEPH_CAP_FILE_CACHE)
  2002. if (--ci->i_rdcache_ref == 0)
  2003. last++;
  2004. if (had & CEPH_CAP_FILE_BUFFER) {
  2005. if (--ci->i_wb_ref == 0) {
  2006. last++;
  2007. put++;
  2008. }
  2009. dout("put_cap_refs %p wb %d -> %d (?)\n",
  2010. inode, ci->i_wb_ref+1, ci->i_wb_ref);
  2011. }
  2012. if (had & CEPH_CAP_FILE_WR)
  2013. if (--ci->i_wr_ref == 0) {
  2014. last++;
  2015. if (!list_empty(&ci->i_cap_snaps)) {
  2016. capsnap = list_first_entry(&ci->i_cap_snaps,
  2017. struct ceph_cap_snap,
  2018. ci_item);
  2019. if (capsnap->writing) {
  2020. capsnap->writing = 0;
  2021. flushsnaps =
  2022. __ceph_finish_cap_snap(ci,
  2023. capsnap);
  2024. wake = 1;
  2025. }
  2026. }
  2027. }
  2028. spin_unlock(&ci->i_ceph_lock);
  2029. dout("put_cap_refs %p had %s%s%s\n", inode, ceph_cap_string(had),
  2030. last ? " last" : "", put ? " put" : "");
  2031. if (last && !flushsnaps)
  2032. ceph_check_caps(ci, 0, NULL);
  2033. else if (flushsnaps)
  2034. ceph_flush_snaps(ci);
  2035. if (wake)
  2036. wake_up_all(&ci->i_cap_wq);
  2037. if (put)
  2038. iput(inode);
  2039. }
  2040. /*
  2041. * Release @nr WRBUFFER refs on dirty pages for the given @snapc snap
  2042. * context. Adjust per-snap dirty page accounting as appropriate.
  2043. * Once all dirty data for a cap_snap is flushed, flush snapped file
  2044. * metadata back to the MDS. If we dropped the last ref, call
  2045. * ceph_check_caps.
  2046. */
  2047. void ceph_put_wrbuffer_cap_refs(struct ceph_inode_info *ci, int nr,
  2048. struct ceph_snap_context *snapc)
  2049. {
  2050. struct inode *inode = &ci->vfs_inode;
  2051. int last = 0;
  2052. int complete_capsnap = 0;
  2053. int drop_capsnap = 0;
  2054. int found = 0;
  2055. struct ceph_cap_snap *capsnap = NULL;
  2056. spin_lock(&ci->i_ceph_lock);
  2057. ci->i_wrbuffer_ref -= nr;
  2058. last = !ci->i_wrbuffer_ref;
  2059. if (ci->i_head_snapc == snapc) {
  2060. ci->i_wrbuffer_ref_head -= nr;
  2061. if (ci->i_wrbuffer_ref_head == 0 &&
  2062. ci->i_dirty_caps == 0 && ci->i_flushing_caps == 0) {
  2063. BUG_ON(!ci->i_head_snapc);
  2064. ceph_put_snap_context(ci->i_head_snapc);
  2065. ci->i_head_snapc = NULL;
  2066. }
  2067. dout("put_wrbuffer_cap_refs on %p head %d/%d -> %d/%d %s\n",
  2068. inode,
  2069. ci->i_wrbuffer_ref+nr, ci->i_wrbuffer_ref_head+nr,
  2070. ci->i_wrbuffer_ref, ci->i_wrbuffer_ref_head,
  2071. last ? " LAST" : "");
  2072. } else {
  2073. list_for_each_entry(capsnap, &ci->i_cap_snaps, ci_item) {
  2074. if (capsnap->context == snapc) {
  2075. found = 1;
  2076. break;
  2077. }
  2078. }
  2079. BUG_ON(!found);
  2080. capsnap->dirty_pages -= nr;
  2081. if (capsnap->dirty_pages == 0) {
  2082. complete_capsnap = 1;
  2083. if (capsnap->dirty == 0)
  2084. /* cap writeback completed before we created
  2085. * the cap_snap; no FLUSHSNAP is needed */
  2086. drop_capsnap = 1;
  2087. }
  2088. dout("put_wrbuffer_cap_refs on %p cap_snap %p "
  2089. " snap %lld %d/%d -> %d/%d %s%s%s\n",
  2090. inode, capsnap, capsnap->context->seq,
  2091. ci->i_wrbuffer_ref+nr, capsnap->dirty_pages + nr,
  2092. ci->i_wrbuffer_ref, capsnap->dirty_pages,
  2093. last ? " (wrbuffer last)" : "",
  2094. complete_capsnap ? " (complete capsnap)" : "",
  2095. drop_capsnap ? " (drop capsnap)" : "");
  2096. if (drop_capsnap) {
  2097. ceph_put_snap_context(capsnap->context);
  2098. list_del(&capsnap->ci_item);
  2099. list_del(&capsnap->flushing_item);
  2100. ceph_put_cap_snap(capsnap);
  2101. }
  2102. }
  2103. spin_unlock(&ci->i_ceph_lock);
  2104. if (last) {
  2105. ceph_check_caps(ci, CHECK_CAPS_AUTHONLY, NULL);
  2106. iput(inode);
  2107. } else if (complete_capsnap) {
  2108. ceph_flush_snaps(ci);
  2109. wake_up_all(&ci->i_cap_wq);
  2110. }
  2111. if (drop_capsnap)
  2112. iput(inode);
  2113. }
  2114. /*
  2115. * Invalidate unlinked inode's aliases, so we can drop the inode ASAP.
  2116. */
  2117. static void invalidate_aliases(struct inode *inode)
  2118. {
  2119. struct dentry *dn, *prev = NULL;
  2120. dout("invalidate_aliases inode %p\n", inode);
  2121. d_prune_aliases(inode);
  2122. /*
  2123. * For non-directory inode, d_find_alias() only returns
  2124. * hashed dentry. After calling d_invalidate(), the
  2125. * dentry becomes unhashed.
  2126. *
  2127. * For directory inode, d_find_alias() can return
  2128. * unhashed dentry. But directory inode should have
  2129. * one alias at most.
  2130. */
  2131. while ((dn = d_find_alias(inode))) {
  2132. if (dn == prev) {
  2133. dput(dn);
  2134. break;
  2135. }
  2136. d_invalidate(dn);
  2137. if (prev)
  2138. dput(prev);
  2139. prev = dn;
  2140. }
  2141. if (prev)
  2142. dput(prev);
  2143. }
  2144. /*
  2145. * Handle a cap GRANT message from the MDS. (Note that a GRANT may
  2146. * actually be a revocation if it specifies a smaller cap set.)
  2147. *
  2148. * caller holds s_mutex and i_ceph_lock, we drop both.
  2149. *
  2150. * return value:
  2151. * 0 - ok
  2152. * 1 - check_caps on auth cap only (writeback)
  2153. * 2 - check_caps (ack revoke)
  2154. */
  2155. static void handle_cap_grant(struct inode *inode, struct ceph_mds_caps *grant,
  2156. struct ceph_mds_session *session,
  2157. struct ceph_cap *cap,
  2158. struct ceph_buffer *xattr_buf)
  2159. __releases(ci->i_ceph_lock)
  2160. {
  2161. struct ceph_inode_info *ci = ceph_inode(inode);
  2162. int mds = session->s_mds;
  2163. int seq = le32_to_cpu(grant->seq);
  2164. int newcaps = le32_to_cpu(grant->caps);
  2165. int issued, implemented, used, wanted, dirty;
  2166. u64 size = le64_to_cpu(grant->size);
  2167. u64 max_size = le64_to_cpu(grant->max_size);
  2168. struct timespec mtime, atime, ctime;
  2169. int check_caps = 0;
  2170. int wake = 0;
  2171. int writeback = 0;
  2172. int queue_invalidate = 0;
  2173. int deleted_inode = 0;
  2174. int queue_revalidate = 0;
  2175. dout("handle_cap_grant inode %p cap %p mds%d seq %d %s\n",
  2176. inode, cap, mds, seq, ceph_cap_string(newcaps));
  2177. dout(" size %llu max_size %llu, i_size %llu\n", size, max_size,
  2178. inode->i_size);
  2179. /*
  2180. * auth mds of the inode changed. we received the cap export message,
  2181. * but still haven't received the cap import message. handle_cap_export
  2182. * updated the new auth MDS' cap.
  2183. *
  2184. * "ceph_seq_cmp(seq, cap->seq) <= 0" means we are processing a message
  2185. * that was sent before the cap import message. So don't remove caps.
  2186. */
  2187. if (ceph_seq_cmp(seq, cap->seq) <= 0) {
  2188. WARN_ON(cap != ci->i_auth_cap);
  2189. WARN_ON(cap->cap_id != le64_to_cpu(grant->cap_id));
  2190. seq = cap->seq;
  2191. newcaps |= cap->issued;
  2192. }
  2193. /*
  2194. * If CACHE is being revoked, and we have no dirty buffers,
  2195. * try to invalidate (once). (If there are dirty buffers, we
  2196. * will invalidate _after_ writeback.)
  2197. */
  2198. if (((cap->issued & ~newcaps) & CEPH_CAP_FILE_CACHE) &&
  2199. (newcaps & CEPH_CAP_FILE_LAZYIO) == 0 &&
  2200. !ci->i_wrbuffer_ref) {
  2201. if (try_nonblocking_invalidate(inode)) {
  2202. /* there were locked pages.. invalidate later
  2203. in a separate thread. */
  2204. if (ci->i_rdcache_revoking != ci->i_rdcache_gen) {
  2205. queue_invalidate = 1;
  2206. ci->i_rdcache_revoking = ci->i_rdcache_gen;
  2207. }
  2208. }
  2209. ceph_fscache_invalidate(inode);
  2210. }
  2211. /* side effects now are allowed */
  2212. issued = __ceph_caps_issued(ci, &implemented);
  2213. issued |= implemented | __ceph_caps_dirty(ci);
  2214. cap->cap_gen = session->s_cap_gen;
  2215. cap->seq = seq;
  2216. __check_cap_issue(ci, cap, newcaps);
  2217. if ((issued & CEPH_CAP_AUTH_EXCL) == 0) {
  2218. inode->i_mode = le32_to_cpu(grant->mode);
  2219. inode->i_uid = make_kuid(&init_user_ns, le32_to_cpu(grant->uid));
  2220. inode->i_gid = make_kgid(&init_user_ns, le32_to_cpu(grant->gid));
  2221. dout("%p mode 0%o uid.gid %d.%d\n", inode, inode->i_mode,
  2222. from_kuid(&init_user_ns, inode->i_uid),
  2223. from_kgid(&init_user_ns, inode->i_gid));
  2224. }
  2225. if ((issued & CEPH_CAP_LINK_EXCL) == 0) {
  2226. set_nlink(inode, le32_to_cpu(grant->nlink));
  2227. if (inode->i_nlink == 0 &&
  2228. (newcaps & (CEPH_CAP_LINK_SHARED | CEPH_CAP_LINK_EXCL)))
  2229. deleted_inode = 1;
  2230. }
  2231. if ((issued & CEPH_CAP_XATTR_EXCL) == 0 && grant->xattr_len) {
  2232. int len = le32_to_cpu(grant->xattr_len);
  2233. u64 version = le64_to_cpu(grant->xattr_version);
  2234. if (version > ci->i_xattrs.version) {
  2235. dout(" got new xattrs v%llu on %p len %d\n",
  2236. version, inode, len);
  2237. if (ci->i_xattrs.blob)
  2238. ceph_buffer_put(ci->i_xattrs.blob);
  2239. ci->i_xattrs.blob = ceph_buffer_get(xattr_buf);
  2240. ci->i_xattrs.version = version;
  2241. ceph_forget_all_cached_acls(inode);
  2242. }
  2243. }
  2244. /* Do we need to revalidate our fscache cookie. Don't bother on the
  2245. * first cache cap as we already validate at cookie creation time. */
  2246. if ((issued & CEPH_CAP_FILE_CACHE) && ci->i_rdcache_gen > 1)
  2247. queue_revalidate = 1;
  2248. /* size/ctime/mtime/atime? */
  2249. ceph_fill_file_size(inode, issued,
  2250. le32_to_cpu(grant->truncate_seq),
  2251. le64_to_cpu(grant->truncate_size), size);
  2252. ceph_decode_timespec(&mtime, &grant->mtime);
  2253. ceph_decode_timespec(&atime, &grant->atime);
  2254. ceph_decode_timespec(&ctime, &grant->ctime);
  2255. ceph_fill_file_time(inode, issued,
  2256. le32_to_cpu(grant->time_warp_seq), &ctime, &mtime,
  2257. &atime);
  2258. /* file layout may have changed */
  2259. ci->i_layout = grant->layout;
  2260. /* max size increase? */
  2261. if (ci->i_auth_cap == cap && max_size != ci->i_max_size) {
  2262. dout("max_size %lld -> %llu\n", ci->i_max_size, max_size);
  2263. ci->i_max_size = max_size;
  2264. if (max_size >= ci->i_wanted_max_size) {
  2265. ci->i_wanted_max_size = 0; /* reset */
  2266. ci->i_requested_max_size = 0;
  2267. }
  2268. wake = 1;
  2269. }
  2270. /* check cap bits */
  2271. wanted = __ceph_caps_wanted(ci);
  2272. used = __ceph_caps_used(ci);
  2273. dirty = __ceph_caps_dirty(ci);
  2274. dout(" my wanted = %s, used = %s, dirty %s\n",
  2275. ceph_cap_string(wanted),
  2276. ceph_cap_string(used),
  2277. ceph_cap_string(dirty));
  2278. if (wanted != le32_to_cpu(grant->wanted)) {
  2279. dout("mds wanted %s -> %s\n",
  2280. ceph_cap_string(le32_to_cpu(grant->wanted)),
  2281. ceph_cap_string(wanted));
  2282. /* imported cap may not have correct mds_wanted */
  2283. if (le32_to_cpu(grant->op) == CEPH_CAP_OP_IMPORT)
  2284. check_caps = 1;
  2285. }
  2286. /* revocation, grant, or no-op? */
  2287. if (cap->issued & ~newcaps) {
  2288. int revoking = cap->issued & ~newcaps;
  2289. dout("revocation: %s -> %s (revoking %s)\n",
  2290. ceph_cap_string(cap->issued),
  2291. ceph_cap_string(newcaps),
  2292. ceph_cap_string(revoking));
  2293. if (revoking & used & CEPH_CAP_FILE_BUFFER)
  2294. writeback = 1; /* initiate writeback; will delay ack */
  2295. else if (revoking == CEPH_CAP_FILE_CACHE &&
  2296. (newcaps & CEPH_CAP_FILE_LAZYIO) == 0 &&
  2297. queue_invalidate)
  2298. ; /* do nothing yet, invalidation will be queued */
  2299. else if (cap == ci->i_auth_cap)
  2300. check_caps = 1; /* check auth cap only */
  2301. else
  2302. check_caps = 2; /* check all caps */
  2303. cap->issued = newcaps;
  2304. cap->implemented |= newcaps;
  2305. } else if (cap->issued == newcaps) {
  2306. dout("caps unchanged: %s -> %s\n",
  2307. ceph_cap_string(cap->issued), ceph_cap_string(newcaps));
  2308. } else {
  2309. dout("grant: %s -> %s\n", ceph_cap_string(cap->issued),
  2310. ceph_cap_string(newcaps));
  2311. /* non-auth MDS is revoking the newly grant caps ? */
  2312. if (cap == ci->i_auth_cap &&
  2313. __ceph_caps_revoking_other(ci, cap, newcaps))
  2314. check_caps = 2;
  2315. cap->issued = newcaps;
  2316. cap->implemented |= newcaps; /* add bits only, to
  2317. * avoid stepping on a
  2318. * pending revocation */
  2319. wake = 1;
  2320. }
  2321. BUG_ON(cap->issued & ~cap->implemented);
  2322. spin_unlock(&ci->i_ceph_lock);
  2323. if (writeback)
  2324. /*
  2325. * queue inode for writeback: we can't actually call
  2326. * filemap_write_and_wait, etc. from message handler
  2327. * context.
  2328. */
  2329. ceph_queue_writeback(inode);
  2330. if (queue_invalidate)
  2331. ceph_queue_invalidate(inode);
  2332. if (deleted_inode)
  2333. invalidate_aliases(inode);
  2334. if (queue_revalidate)
  2335. ceph_queue_revalidate(inode);
  2336. if (wake)
  2337. wake_up_all(&ci->i_cap_wq);
  2338. if (check_caps == 1)
  2339. ceph_check_caps(ci, CHECK_CAPS_NODELAY|CHECK_CAPS_AUTHONLY,
  2340. session);
  2341. else if (check_caps == 2)
  2342. ceph_check_caps(ci, CHECK_CAPS_NODELAY, session);
  2343. else
  2344. mutex_unlock(&session->s_mutex);
  2345. }
  2346. /*
  2347. * Handle FLUSH_ACK from MDS, indicating that metadata we sent to the
  2348. * MDS has been safely committed.
  2349. */
  2350. static void handle_cap_flush_ack(struct inode *inode, u64 flush_tid,
  2351. struct ceph_mds_caps *m,
  2352. struct ceph_mds_session *session,
  2353. struct ceph_cap *cap)
  2354. __releases(ci->i_ceph_lock)
  2355. {
  2356. struct ceph_inode_info *ci = ceph_inode(inode);
  2357. struct ceph_mds_client *mdsc = ceph_sb_to_client(inode->i_sb)->mdsc;
  2358. unsigned seq = le32_to_cpu(m->seq);
  2359. int dirty = le32_to_cpu(m->dirty);
  2360. int cleaned = 0;
  2361. int drop = 0;
  2362. int i;
  2363. for (i = 0; i < CEPH_CAP_BITS; i++)
  2364. if ((dirty & (1 << i)) &&
  2365. flush_tid == ci->i_cap_flush_tid[i])
  2366. cleaned |= 1 << i;
  2367. dout("handle_cap_flush_ack inode %p mds%d seq %d on %s cleaned %s,"
  2368. " flushing %s -> %s\n",
  2369. inode, session->s_mds, seq, ceph_cap_string(dirty),
  2370. ceph_cap_string(cleaned), ceph_cap_string(ci->i_flushing_caps),
  2371. ceph_cap_string(ci->i_flushing_caps & ~cleaned));
  2372. if (ci->i_flushing_caps == (ci->i_flushing_caps & ~cleaned))
  2373. goto out;
  2374. ci->i_flushing_caps &= ~cleaned;
  2375. spin_lock(&mdsc->cap_dirty_lock);
  2376. if (ci->i_flushing_caps == 0) {
  2377. list_del_init(&ci->i_flushing_item);
  2378. if (!list_empty(&session->s_cap_flushing))
  2379. dout(" mds%d still flushing cap on %p\n",
  2380. session->s_mds,
  2381. &list_entry(session->s_cap_flushing.next,
  2382. struct ceph_inode_info,
  2383. i_flushing_item)->vfs_inode);
  2384. mdsc->num_cap_flushing--;
  2385. wake_up_all(&mdsc->cap_flushing_wq);
  2386. dout(" inode %p now !flushing\n", inode);
  2387. if (ci->i_dirty_caps == 0) {
  2388. dout(" inode %p now clean\n", inode);
  2389. BUG_ON(!list_empty(&ci->i_dirty_item));
  2390. drop = 1;
  2391. if (ci->i_wrbuffer_ref_head == 0) {
  2392. BUG_ON(!ci->i_head_snapc);
  2393. ceph_put_snap_context(ci->i_head_snapc);
  2394. ci->i_head_snapc = NULL;
  2395. }
  2396. } else {
  2397. BUG_ON(list_empty(&ci->i_dirty_item));
  2398. }
  2399. }
  2400. spin_unlock(&mdsc->cap_dirty_lock);
  2401. wake_up_all(&ci->i_cap_wq);
  2402. out:
  2403. spin_unlock(&ci->i_ceph_lock);
  2404. if (drop)
  2405. iput(inode);
  2406. }
  2407. /*
  2408. * Handle FLUSHSNAP_ACK. MDS has flushed snap data to disk and we can
  2409. * throw away our cap_snap.
  2410. *
  2411. * Caller hold s_mutex.
  2412. */
  2413. static void handle_cap_flushsnap_ack(struct inode *inode, u64 flush_tid,
  2414. struct ceph_mds_caps *m,
  2415. struct ceph_mds_session *session)
  2416. {
  2417. struct ceph_inode_info *ci = ceph_inode(inode);
  2418. u64 follows = le64_to_cpu(m->snap_follows);
  2419. struct ceph_cap_snap *capsnap;
  2420. int drop = 0;
  2421. dout("handle_cap_flushsnap_ack inode %p ci %p mds%d follows %lld\n",
  2422. inode, ci, session->s_mds, follows);
  2423. spin_lock(&ci->i_ceph_lock);
  2424. list_for_each_entry(capsnap, &ci->i_cap_snaps, ci_item) {
  2425. if (capsnap->follows == follows) {
  2426. if (capsnap->flush_tid != flush_tid) {
  2427. dout(" cap_snap %p follows %lld tid %lld !="
  2428. " %lld\n", capsnap, follows,
  2429. flush_tid, capsnap->flush_tid);
  2430. break;
  2431. }
  2432. WARN_ON(capsnap->dirty_pages || capsnap->writing);
  2433. dout(" removing %p cap_snap %p follows %lld\n",
  2434. inode, capsnap, follows);
  2435. ceph_put_snap_context(capsnap->context);
  2436. list_del(&capsnap->ci_item);
  2437. list_del(&capsnap->flushing_item);
  2438. ceph_put_cap_snap(capsnap);
  2439. drop = 1;
  2440. break;
  2441. } else {
  2442. dout(" skipping cap_snap %p follows %lld\n",
  2443. capsnap, capsnap->follows);
  2444. }
  2445. }
  2446. spin_unlock(&ci->i_ceph_lock);
  2447. if (drop)
  2448. iput(inode);
  2449. }
  2450. /*
  2451. * Handle TRUNC from MDS, indicating file truncation.
  2452. *
  2453. * caller hold s_mutex.
  2454. */
  2455. static void handle_cap_trunc(struct inode *inode,
  2456. struct ceph_mds_caps *trunc,
  2457. struct ceph_mds_session *session)
  2458. __releases(ci->i_ceph_lock)
  2459. {
  2460. struct ceph_inode_info *ci = ceph_inode(inode);
  2461. int mds = session->s_mds;
  2462. int seq = le32_to_cpu(trunc->seq);
  2463. u32 truncate_seq = le32_to_cpu(trunc->truncate_seq);
  2464. u64 truncate_size = le64_to_cpu(trunc->truncate_size);
  2465. u64 size = le64_to_cpu(trunc->size);
  2466. int implemented = 0;
  2467. int dirty = __ceph_caps_dirty(ci);
  2468. int issued = __ceph_caps_issued(ceph_inode(inode), &implemented);
  2469. int queue_trunc = 0;
  2470. issued |= implemented | dirty;
  2471. dout("handle_cap_trunc inode %p mds%d seq %d to %lld seq %d\n",
  2472. inode, mds, seq, truncate_size, truncate_seq);
  2473. queue_trunc = ceph_fill_file_size(inode, issued,
  2474. truncate_seq, truncate_size, size);
  2475. spin_unlock(&ci->i_ceph_lock);
  2476. if (queue_trunc) {
  2477. ceph_queue_vmtruncate(inode);
  2478. ceph_fscache_invalidate(inode);
  2479. }
  2480. }
  2481. /*
  2482. * Handle EXPORT from MDS. Cap is being migrated _from_ this mds to a
  2483. * different one. If we are the most recent migration we've seen (as
  2484. * indicated by mseq), make note of the migrating cap bits for the
  2485. * duration (until we see the corresponding IMPORT).
  2486. *
  2487. * caller holds s_mutex
  2488. */
  2489. static void handle_cap_export(struct inode *inode, struct ceph_mds_caps *ex,
  2490. struct ceph_mds_cap_peer *ph,
  2491. struct ceph_mds_session *session)
  2492. {
  2493. struct ceph_mds_client *mdsc = ceph_inode_to_client(inode)->mdsc;
  2494. struct ceph_mds_session *tsession = NULL;
  2495. struct ceph_cap *cap, *tcap;
  2496. struct ceph_inode_info *ci = ceph_inode(inode);
  2497. u64 t_cap_id;
  2498. unsigned mseq = le32_to_cpu(ex->migrate_seq);
  2499. unsigned t_seq, t_mseq;
  2500. int target, issued;
  2501. int mds = session->s_mds;
  2502. if (ph) {
  2503. t_cap_id = le64_to_cpu(ph->cap_id);
  2504. t_seq = le32_to_cpu(ph->seq);
  2505. t_mseq = le32_to_cpu(ph->mseq);
  2506. target = le32_to_cpu(ph->mds);
  2507. } else {
  2508. t_cap_id = t_seq = t_mseq = 0;
  2509. target = -1;
  2510. }
  2511. dout("handle_cap_export inode %p ci %p mds%d mseq %d target %d\n",
  2512. inode, ci, mds, mseq, target);
  2513. retry:
  2514. spin_lock(&ci->i_ceph_lock);
  2515. cap = __get_cap_for_mds(ci, mds);
  2516. if (!cap)
  2517. goto out_unlock;
  2518. if (target < 0) {
  2519. __ceph_remove_cap(cap, false);
  2520. goto out_unlock;
  2521. }
  2522. /*
  2523. * now we know we haven't received the cap import message yet
  2524. * because the exported cap still exist.
  2525. */
  2526. issued = cap->issued;
  2527. WARN_ON(issued != cap->implemented);
  2528. tcap = __get_cap_for_mds(ci, target);
  2529. if (tcap) {
  2530. /* already have caps from the target */
  2531. if (tcap->cap_id != t_cap_id ||
  2532. ceph_seq_cmp(tcap->seq, t_seq) < 0) {
  2533. dout(" updating import cap %p mds%d\n", tcap, target);
  2534. tcap->cap_id = t_cap_id;
  2535. tcap->seq = t_seq - 1;
  2536. tcap->issue_seq = t_seq - 1;
  2537. tcap->mseq = t_mseq;
  2538. tcap->issued |= issued;
  2539. tcap->implemented |= issued;
  2540. if (cap == ci->i_auth_cap)
  2541. ci->i_auth_cap = tcap;
  2542. if (ci->i_flushing_caps && ci->i_auth_cap == tcap) {
  2543. spin_lock(&mdsc->cap_dirty_lock);
  2544. list_move_tail(&ci->i_flushing_item,
  2545. &tcap->session->s_cap_flushing);
  2546. spin_unlock(&mdsc->cap_dirty_lock);
  2547. }
  2548. }
  2549. __ceph_remove_cap(cap, false);
  2550. goto out_unlock;
  2551. }
  2552. if (tsession) {
  2553. int flag = (cap == ci->i_auth_cap) ? CEPH_CAP_FLAG_AUTH : 0;
  2554. spin_unlock(&ci->i_ceph_lock);
  2555. /* add placeholder for the export tagert */
  2556. ceph_add_cap(inode, tsession, t_cap_id, -1, issued, 0,
  2557. t_seq - 1, t_mseq, (u64)-1, flag, NULL);
  2558. goto retry;
  2559. }
  2560. spin_unlock(&ci->i_ceph_lock);
  2561. mutex_unlock(&session->s_mutex);
  2562. /* open target session */
  2563. tsession = ceph_mdsc_open_export_target_session(mdsc, target);
  2564. if (!IS_ERR(tsession)) {
  2565. if (mds > target) {
  2566. mutex_lock(&session->s_mutex);
  2567. mutex_lock_nested(&tsession->s_mutex,
  2568. SINGLE_DEPTH_NESTING);
  2569. } else {
  2570. mutex_lock(&tsession->s_mutex);
  2571. mutex_lock_nested(&session->s_mutex,
  2572. SINGLE_DEPTH_NESTING);
  2573. }
  2574. ceph_add_cap_releases(mdsc, tsession);
  2575. } else {
  2576. WARN_ON(1);
  2577. tsession = NULL;
  2578. target = -1;
  2579. }
  2580. goto retry;
  2581. out_unlock:
  2582. spin_unlock(&ci->i_ceph_lock);
  2583. mutex_unlock(&session->s_mutex);
  2584. if (tsession) {
  2585. mutex_unlock(&tsession->s_mutex);
  2586. ceph_put_mds_session(tsession);
  2587. }
  2588. }
  2589. /*
  2590. * Handle cap IMPORT. If there are temp bits from an older EXPORT,
  2591. * clean them up.
  2592. *
  2593. * caller holds s_mutex.
  2594. */
  2595. static void handle_cap_import(struct ceph_mds_client *mdsc,
  2596. struct inode *inode, struct ceph_mds_caps *im,
  2597. struct ceph_mds_cap_peer *ph,
  2598. struct ceph_mds_session *session,
  2599. void *snaptrace, int snaptrace_len)
  2600. {
  2601. struct ceph_inode_info *ci = ceph_inode(inode);
  2602. struct ceph_cap *cap;
  2603. int mds = session->s_mds;
  2604. unsigned issued = le32_to_cpu(im->caps);
  2605. unsigned wanted = le32_to_cpu(im->wanted);
  2606. unsigned seq = le32_to_cpu(im->seq);
  2607. unsigned mseq = le32_to_cpu(im->migrate_seq);
  2608. u64 realmino = le64_to_cpu(im->realm);
  2609. u64 cap_id = le64_to_cpu(im->cap_id);
  2610. u64 p_cap_id;
  2611. int peer;
  2612. if (ph) {
  2613. p_cap_id = le64_to_cpu(ph->cap_id);
  2614. peer = le32_to_cpu(ph->mds);
  2615. } else {
  2616. p_cap_id = 0;
  2617. peer = -1;
  2618. }
  2619. dout("handle_cap_import inode %p ci %p mds%d mseq %d peer %d\n",
  2620. inode, ci, mds, mseq, peer);
  2621. spin_lock(&ci->i_ceph_lock);
  2622. cap = peer >= 0 ? __get_cap_for_mds(ci, peer) : NULL;
  2623. if (cap && cap->cap_id == p_cap_id) {
  2624. dout(" remove export cap %p mds%d flags %d\n",
  2625. cap, peer, ph->flags);
  2626. if ((ph->flags & CEPH_CAP_FLAG_AUTH) &&
  2627. (cap->seq != le32_to_cpu(ph->seq) ||
  2628. cap->mseq != le32_to_cpu(ph->mseq))) {
  2629. pr_err("handle_cap_import: mismatched seq/mseq: "
  2630. "ino (%llx.%llx) mds%d seq %d mseq %d "
  2631. "importer mds%d has peer seq %d mseq %d\n",
  2632. ceph_vinop(inode), peer, cap->seq,
  2633. cap->mseq, mds, le32_to_cpu(ph->seq),
  2634. le32_to_cpu(ph->mseq));
  2635. }
  2636. ci->i_cap_exporting_issued = cap->issued;
  2637. __ceph_remove_cap(cap, (ph->flags & CEPH_CAP_FLAG_RELEASE));
  2638. }
  2639. /* make sure we re-request max_size, if necessary */
  2640. ci->i_wanted_max_size = 0;
  2641. ci->i_requested_max_size = 0;
  2642. spin_unlock(&ci->i_ceph_lock);
  2643. down_write(&mdsc->snap_rwsem);
  2644. ceph_update_snap_trace(mdsc, snaptrace, snaptrace+snaptrace_len,
  2645. false);
  2646. downgrade_write(&mdsc->snap_rwsem);
  2647. ceph_add_cap(inode, session, cap_id, -1,
  2648. issued, wanted, seq, mseq, realmino, CEPH_CAP_FLAG_AUTH,
  2649. NULL /* no caps context */);
  2650. kick_flushing_inode_caps(mdsc, session, inode);
  2651. up_read(&mdsc->snap_rwsem);
  2652. }
  2653. /*
  2654. * Handle a caps message from the MDS.
  2655. *
  2656. * Identify the appropriate session, inode, and call the right handler
  2657. * based on the cap op.
  2658. */
  2659. void ceph_handle_caps(struct ceph_mds_session *session,
  2660. struct ceph_msg *msg)
  2661. {
  2662. struct ceph_mds_client *mdsc = session->s_mdsc;
  2663. struct super_block *sb = mdsc->fsc->sb;
  2664. struct inode *inode;
  2665. struct ceph_inode_info *ci;
  2666. struct ceph_cap *cap;
  2667. struct ceph_mds_caps *h;
  2668. struct ceph_mds_cap_peer *peer = NULL;
  2669. int mds = session->s_mds;
  2670. int op;
  2671. u32 seq, mseq;
  2672. struct ceph_vino vino;
  2673. u64 cap_id;
  2674. u64 size, max_size;
  2675. u64 tid;
  2676. void *snaptrace;
  2677. size_t snaptrace_len;
  2678. void *flock;
  2679. void *end;
  2680. u32 flock_len;
  2681. dout("handle_caps from mds%d\n", mds);
  2682. /* decode */
  2683. end = msg->front.iov_base + msg->front.iov_len;
  2684. tid = le64_to_cpu(msg->hdr.tid);
  2685. if (msg->front.iov_len < sizeof(*h))
  2686. goto bad;
  2687. h = msg->front.iov_base;
  2688. op = le32_to_cpu(h->op);
  2689. vino.ino = le64_to_cpu(h->ino);
  2690. vino.snap = CEPH_NOSNAP;
  2691. cap_id = le64_to_cpu(h->cap_id);
  2692. seq = le32_to_cpu(h->seq);
  2693. mseq = le32_to_cpu(h->migrate_seq);
  2694. size = le64_to_cpu(h->size);
  2695. max_size = le64_to_cpu(h->max_size);
  2696. snaptrace = h + 1;
  2697. snaptrace_len = le32_to_cpu(h->snap_trace_len);
  2698. if (le16_to_cpu(msg->hdr.version) >= 2) {
  2699. void *p = snaptrace + snaptrace_len;
  2700. ceph_decode_32_safe(&p, end, flock_len, bad);
  2701. if (p + flock_len > end)
  2702. goto bad;
  2703. flock = p;
  2704. } else {
  2705. flock = NULL;
  2706. flock_len = 0;
  2707. }
  2708. if (le16_to_cpu(msg->hdr.version) >= 3) {
  2709. if (op == CEPH_CAP_OP_IMPORT) {
  2710. void *p = flock + flock_len;
  2711. if (p + sizeof(*peer) > end)
  2712. goto bad;
  2713. peer = p;
  2714. } else if (op == CEPH_CAP_OP_EXPORT) {
  2715. /* recorded in unused fields */
  2716. peer = (void *)&h->size;
  2717. }
  2718. }
  2719. mutex_lock(&session->s_mutex);
  2720. session->s_seq++;
  2721. dout(" mds%d seq %lld cap seq %u\n", session->s_mds, session->s_seq,
  2722. (unsigned)seq);
  2723. if (op == CEPH_CAP_OP_IMPORT)
  2724. ceph_add_cap_releases(mdsc, session);
  2725. /* lookup ino */
  2726. inode = ceph_find_inode(sb, vino);
  2727. ci = ceph_inode(inode);
  2728. dout(" op %s ino %llx.%llx inode %p\n", ceph_cap_op_name(op), vino.ino,
  2729. vino.snap, inode);
  2730. if (!inode) {
  2731. dout(" i don't have ino %llx\n", vino.ino);
  2732. if (op == CEPH_CAP_OP_IMPORT) {
  2733. spin_lock(&session->s_cap_lock);
  2734. __queue_cap_release(session, vino.ino, cap_id,
  2735. mseq, seq);
  2736. spin_unlock(&session->s_cap_lock);
  2737. }
  2738. goto flush_cap_releases;
  2739. }
  2740. /* these will work even if we don't have a cap yet */
  2741. switch (op) {
  2742. case CEPH_CAP_OP_FLUSHSNAP_ACK:
  2743. handle_cap_flushsnap_ack(inode, tid, h, session);
  2744. goto done;
  2745. case CEPH_CAP_OP_EXPORT:
  2746. handle_cap_export(inode, h, peer, session);
  2747. goto done_unlocked;
  2748. case CEPH_CAP_OP_IMPORT:
  2749. handle_cap_import(mdsc, inode, h, peer, session,
  2750. snaptrace, snaptrace_len);
  2751. }
  2752. /* the rest require a cap */
  2753. spin_lock(&ci->i_ceph_lock);
  2754. cap = __get_cap_for_mds(ceph_inode(inode), mds);
  2755. if (!cap) {
  2756. dout(" no cap on %p ino %llx.%llx from mds%d\n",
  2757. inode, ceph_ino(inode), ceph_snap(inode), mds);
  2758. spin_unlock(&ci->i_ceph_lock);
  2759. goto flush_cap_releases;
  2760. }
  2761. /* note that each of these drops i_ceph_lock for us */
  2762. switch (op) {
  2763. case CEPH_CAP_OP_REVOKE:
  2764. case CEPH_CAP_OP_GRANT:
  2765. case CEPH_CAP_OP_IMPORT:
  2766. handle_cap_grant(inode, h, session, cap, msg->middle);
  2767. goto done_unlocked;
  2768. case CEPH_CAP_OP_FLUSH_ACK:
  2769. handle_cap_flush_ack(inode, tid, h, session, cap);
  2770. break;
  2771. case CEPH_CAP_OP_TRUNC:
  2772. handle_cap_trunc(inode, h, session);
  2773. break;
  2774. default:
  2775. spin_unlock(&ci->i_ceph_lock);
  2776. pr_err("ceph_handle_caps: unknown cap op %d %s\n", op,
  2777. ceph_cap_op_name(op));
  2778. }
  2779. goto done;
  2780. flush_cap_releases:
  2781. /*
  2782. * send any full release message to try to move things
  2783. * along for the mds (who clearly thinks we still have this
  2784. * cap).
  2785. */
  2786. ceph_add_cap_releases(mdsc, session);
  2787. ceph_send_cap_releases(mdsc, session);
  2788. done:
  2789. mutex_unlock(&session->s_mutex);
  2790. done_unlocked:
  2791. if (inode)
  2792. iput(inode);
  2793. return;
  2794. bad:
  2795. pr_err("ceph_handle_caps: corrupt message\n");
  2796. ceph_msg_dump(msg);
  2797. return;
  2798. }
  2799. /*
  2800. * Delayed work handler to process end of delayed cap release LRU list.
  2801. */
  2802. void ceph_check_delayed_caps(struct ceph_mds_client *mdsc)
  2803. {
  2804. struct ceph_inode_info *ci;
  2805. int flags = CHECK_CAPS_NODELAY;
  2806. dout("check_delayed_caps\n");
  2807. while (1) {
  2808. spin_lock(&mdsc->cap_delay_lock);
  2809. if (list_empty(&mdsc->cap_delay_list))
  2810. break;
  2811. ci = list_first_entry(&mdsc->cap_delay_list,
  2812. struct ceph_inode_info,
  2813. i_cap_delay_list);
  2814. if ((ci->i_ceph_flags & CEPH_I_FLUSH) == 0 &&
  2815. time_before(jiffies, ci->i_hold_caps_max))
  2816. break;
  2817. list_del_init(&ci->i_cap_delay_list);
  2818. spin_unlock(&mdsc->cap_delay_lock);
  2819. dout("check_delayed_caps on %p\n", &ci->vfs_inode);
  2820. ceph_check_caps(ci, flags, NULL);
  2821. }
  2822. spin_unlock(&mdsc->cap_delay_lock);
  2823. }
  2824. /*
  2825. * Flush all dirty caps to the mds
  2826. */
  2827. void ceph_flush_dirty_caps(struct ceph_mds_client *mdsc)
  2828. {
  2829. struct ceph_inode_info *ci;
  2830. struct inode *inode;
  2831. dout("flush_dirty_caps\n");
  2832. spin_lock(&mdsc->cap_dirty_lock);
  2833. while (!list_empty(&mdsc->cap_dirty)) {
  2834. ci = list_first_entry(&mdsc->cap_dirty, struct ceph_inode_info,
  2835. i_dirty_item);
  2836. inode = &ci->vfs_inode;
  2837. ihold(inode);
  2838. dout("flush_dirty_caps %p\n", inode);
  2839. spin_unlock(&mdsc->cap_dirty_lock);
  2840. ceph_check_caps(ci, CHECK_CAPS_NODELAY|CHECK_CAPS_FLUSH, NULL);
  2841. iput(inode);
  2842. spin_lock(&mdsc->cap_dirty_lock);
  2843. }
  2844. spin_unlock(&mdsc->cap_dirty_lock);
  2845. dout("flush_dirty_caps done\n");
  2846. }
  2847. /*
  2848. * Drop open file reference. If we were the last open file,
  2849. * we may need to release capabilities to the MDS (or schedule
  2850. * their delayed release).
  2851. */
  2852. void ceph_put_fmode(struct ceph_inode_info *ci, int fmode)
  2853. {
  2854. struct inode *inode = &ci->vfs_inode;
  2855. int last = 0;
  2856. spin_lock(&ci->i_ceph_lock);
  2857. dout("put_fmode %p fmode %d %d -> %d\n", inode, fmode,
  2858. ci->i_nr_by_mode[fmode], ci->i_nr_by_mode[fmode]-1);
  2859. BUG_ON(ci->i_nr_by_mode[fmode] == 0);
  2860. if (--ci->i_nr_by_mode[fmode] == 0)
  2861. last++;
  2862. spin_unlock(&ci->i_ceph_lock);
  2863. if (last && ci->i_vino.snap == CEPH_NOSNAP)
  2864. ceph_check_caps(ci, 0, NULL);
  2865. }
  2866. /*
  2867. * Helpers for embedding cap and dentry lease releases into mds
  2868. * requests.
  2869. *
  2870. * @force is used by dentry_release (below) to force inclusion of a
  2871. * record for the directory inode, even when there aren't any caps to
  2872. * drop.
  2873. */
  2874. int ceph_encode_inode_release(void **p, struct inode *inode,
  2875. int mds, int drop, int unless, int force)
  2876. {
  2877. struct ceph_inode_info *ci = ceph_inode(inode);
  2878. struct ceph_cap *cap;
  2879. struct ceph_mds_request_release *rel = *p;
  2880. int used, dirty;
  2881. int ret = 0;
  2882. spin_lock(&ci->i_ceph_lock);
  2883. used = __ceph_caps_used(ci);
  2884. dirty = __ceph_caps_dirty(ci);
  2885. dout("encode_inode_release %p mds%d used|dirty %s drop %s unless %s\n",
  2886. inode, mds, ceph_cap_string(used|dirty), ceph_cap_string(drop),
  2887. ceph_cap_string(unless));
  2888. /* only drop unused, clean caps */
  2889. drop &= ~(used | dirty);
  2890. cap = __get_cap_for_mds(ci, mds);
  2891. if (cap && __cap_is_valid(cap)) {
  2892. if (force ||
  2893. ((cap->issued & drop) &&
  2894. (cap->issued & unless) == 0)) {
  2895. if ((cap->issued & drop) &&
  2896. (cap->issued & unless) == 0) {
  2897. int wanted = __ceph_caps_wanted(ci);
  2898. if ((ci->i_ceph_flags & CEPH_I_NODELAY) == 0)
  2899. wanted |= cap->mds_wanted;
  2900. dout("encode_inode_release %p cap %p "
  2901. "%s -> %s, wanted %s -> %s\n", inode, cap,
  2902. ceph_cap_string(cap->issued),
  2903. ceph_cap_string(cap->issued & ~drop),
  2904. ceph_cap_string(cap->mds_wanted),
  2905. ceph_cap_string(wanted));
  2906. cap->issued &= ~drop;
  2907. cap->implemented &= ~drop;
  2908. cap->mds_wanted = wanted;
  2909. } else {
  2910. dout("encode_inode_release %p cap %p %s"
  2911. " (force)\n", inode, cap,
  2912. ceph_cap_string(cap->issued));
  2913. }
  2914. rel->ino = cpu_to_le64(ceph_ino(inode));
  2915. rel->cap_id = cpu_to_le64(cap->cap_id);
  2916. rel->seq = cpu_to_le32(cap->seq);
  2917. rel->issue_seq = cpu_to_le32(cap->issue_seq),
  2918. rel->mseq = cpu_to_le32(cap->mseq);
  2919. rel->caps = cpu_to_le32(cap->implemented);
  2920. rel->wanted = cpu_to_le32(cap->mds_wanted);
  2921. rel->dname_len = 0;
  2922. rel->dname_seq = 0;
  2923. *p += sizeof(*rel);
  2924. ret = 1;
  2925. } else {
  2926. dout("encode_inode_release %p cap %p %s\n",
  2927. inode, cap, ceph_cap_string(cap->issued));
  2928. }
  2929. }
  2930. spin_unlock(&ci->i_ceph_lock);
  2931. return ret;
  2932. }
  2933. int ceph_encode_dentry_release(void **p, struct dentry *dentry,
  2934. int mds, int drop, int unless)
  2935. {
  2936. struct inode *dir = dentry->d_parent->d_inode;
  2937. struct ceph_mds_request_release *rel = *p;
  2938. struct ceph_dentry_info *di = ceph_dentry(dentry);
  2939. int force = 0;
  2940. int ret;
  2941. /*
  2942. * force an record for the directory caps if we have a dentry lease.
  2943. * this is racy (can't take i_ceph_lock and d_lock together), but it
  2944. * doesn't have to be perfect; the mds will revoke anything we don't
  2945. * release.
  2946. */
  2947. spin_lock(&dentry->d_lock);
  2948. if (di->lease_session && di->lease_session->s_mds == mds)
  2949. force = 1;
  2950. spin_unlock(&dentry->d_lock);
  2951. ret = ceph_encode_inode_release(p, dir, mds, drop, unless, force);
  2952. spin_lock(&dentry->d_lock);
  2953. if (ret && di->lease_session && di->lease_session->s_mds == mds) {
  2954. dout("encode_dentry_release %p mds%d seq %d\n",
  2955. dentry, mds, (int)di->lease_seq);
  2956. rel->dname_len = cpu_to_le32(dentry->d_name.len);
  2957. memcpy(*p, dentry->d_name.name, dentry->d_name.len);
  2958. *p += dentry->d_name.len;
  2959. rel->dname_seq = cpu_to_le32(di->lease_seq);
  2960. __ceph_mdsc_drop_dentry_lease(dentry);
  2961. }
  2962. spin_unlock(&dentry->d_lock);
  2963. return ret;
  2964. }