nfs4proc.c 83 KB

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  1. /*
  2. * fs/nfs/nfs4proc.c
  3. *
  4. * Client-side procedure declarations for NFSv4.
  5. *
  6. * Copyright (c) 2002 The Regents of the University of Michigan.
  7. * All rights reserved.
  8. *
  9. * Kendrick Smith <kmsmith@umich.edu>
  10. * Andy Adamson <andros@umich.edu>
  11. *
  12. * Redistribution and use in source and binary forms, with or without
  13. * modification, are permitted provided that the following conditions
  14. * are met:
  15. *
  16. * 1. Redistributions of source code must retain the above copyright
  17. * notice, this list of conditions and the following disclaimer.
  18. * 2. Redistributions in binary form must reproduce the above copyright
  19. * notice, this list of conditions and the following disclaimer in the
  20. * documentation and/or other materials provided with the distribution.
  21. * 3. Neither the name of the University nor the names of its
  22. * contributors may be used to endorse or promote products derived
  23. * from this software without specific prior written permission.
  24. *
  25. * THIS SOFTWARE IS PROVIDED ``AS IS'' AND ANY EXPRESS OR IMPLIED
  26. * WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES OF
  27. * MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE
  28. * DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
  29. * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
  30. * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
  31. * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR
  32. * BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF
  33. * LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING
  34. * NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF THIS
  35. * SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
  36. */
  37. #include <linux/mm.h>
  38. #include <linux/utsname.h>
  39. #include <linux/delay.h>
  40. #include <linux/errno.h>
  41. #include <linux/string.h>
  42. #include <linux/sunrpc/clnt.h>
  43. #include <linux/nfs.h>
  44. #include <linux/nfs4.h>
  45. #include <linux/nfs_fs.h>
  46. #include <linux/nfs_page.h>
  47. #include <linux/smp_lock.h>
  48. #include <linux/namei.h>
  49. #include <linux/mount.h>
  50. #include "nfs4_fs.h"
  51. #include "delegation.h"
  52. #define NFSDBG_FACILITY NFSDBG_PROC
  53. #define NFS4_POLL_RETRY_MIN (1*HZ)
  54. #define NFS4_POLL_RETRY_MAX (15*HZ)
  55. static int _nfs4_proc_open_confirm(struct rpc_clnt *clnt, const struct nfs_fh *fh, struct nfs4_state_owner *sp, nfs4_stateid *stateid, struct nfs_seqid *seqid);
  56. static int nfs4_do_fsinfo(struct nfs_server *, struct nfs_fh *, struct nfs_fsinfo *);
  57. static int nfs4_async_handle_error(struct rpc_task *, const struct nfs_server *);
  58. static int _nfs4_proc_access(struct inode *inode, struct nfs_access_entry *entry);
  59. static int nfs4_handle_exception(const struct nfs_server *server, int errorcode, struct nfs4_exception *exception);
  60. extern u32 *nfs4_decode_dirent(u32 *p, struct nfs_entry *entry, int plus);
  61. extern struct rpc_procinfo nfs4_procedures[];
  62. /* Prevent leaks of NFSv4 errors into userland */
  63. int nfs4_map_errors(int err)
  64. {
  65. if (err < -1000) {
  66. dprintk("%s could not handle NFSv4 error %d\n",
  67. __FUNCTION__, -err);
  68. return -EIO;
  69. }
  70. return err;
  71. }
  72. /*
  73. * This is our standard bitmap for GETATTR requests.
  74. */
  75. const u32 nfs4_fattr_bitmap[2] = {
  76. FATTR4_WORD0_TYPE
  77. | FATTR4_WORD0_CHANGE
  78. | FATTR4_WORD0_SIZE
  79. | FATTR4_WORD0_FSID
  80. | FATTR4_WORD0_FILEID,
  81. FATTR4_WORD1_MODE
  82. | FATTR4_WORD1_NUMLINKS
  83. | FATTR4_WORD1_OWNER
  84. | FATTR4_WORD1_OWNER_GROUP
  85. | FATTR4_WORD1_RAWDEV
  86. | FATTR4_WORD1_SPACE_USED
  87. | FATTR4_WORD1_TIME_ACCESS
  88. | FATTR4_WORD1_TIME_METADATA
  89. | FATTR4_WORD1_TIME_MODIFY
  90. };
  91. const u32 nfs4_statfs_bitmap[2] = {
  92. FATTR4_WORD0_FILES_AVAIL
  93. | FATTR4_WORD0_FILES_FREE
  94. | FATTR4_WORD0_FILES_TOTAL,
  95. FATTR4_WORD1_SPACE_AVAIL
  96. | FATTR4_WORD1_SPACE_FREE
  97. | FATTR4_WORD1_SPACE_TOTAL
  98. };
  99. const u32 nfs4_pathconf_bitmap[2] = {
  100. FATTR4_WORD0_MAXLINK
  101. | FATTR4_WORD0_MAXNAME,
  102. 0
  103. };
  104. const u32 nfs4_fsinfo_bitmap[2] = { FATTR4_WORD0_MAXFILESIZE
  105. | FATTR4_WORD0_MAXREAD
  106. | FATTR4_WORD0_MAXWRITE
  107. | FATTR4_WORD0_LEASE_TIME,
  108. 0
  109. };
  110. static void nfs4_setup_readdir(u64 cookie, u32 *verifier, struct dentry *dentry,
  111. struct nfs4_readdir_arg *readdir)
  112. {
  113. u32 *start, *p;
  114. BUG_ON(readdir->count < 80);
  115. if (cookie > 2) {
  116. readdir->cookie = cookie;
  117. memcpy(&readdir->verifier, verifier, sizeof(readdir->verifier));
  118. return;
  119. }
  120. readdir->cookie = 0;
  121. memset(&readdir->verifier, 0, sizeof(readdir->verifier));
  122. if (cookie == 2)
  123. return;
  124. /*
  125. * NFSv4 servers do not return entries for '.' and '..'
  126. * Therefore, we fake these entries here. We let '.'
  127. * have cookie 0 and '..' have cookie 1. Note that
  128. * when talking to the server, we always send cookie 0
  129. * instead of 1 or 2.
  130. */
  131. start = p = (u32 *)kmap_atomic(*readdir->pages, KM_USER0);
  132. if (cookie == 0) {
  133. *p++ = xdr_one; /* next */
  134. *p++ = xdr_zero; /* cookie, first word */
  135. *p++ = xdr_one; /* cookie, second word */
  136. *p++ = xdr_one; /* entry len */
  137. memcpy(p, ".\0\0\0", 4); /* entry */
  138. p++;
  139. *p++ = xdr_one; /* bitmap length */
  140. *p++ = htonl(FATTR4_WORD0_FILEID); /* bitmap */
  141. *p++ = htonl(8); /* attribute buffer length */
  142. p = xdr_encode_hyper(p, dentry->d_inode->i_ino);
  143. }
  144. *p++ = xdr_one; /* next */
  145. *p++ = xdr_zero; /* cookie, first word */
  146. *p++ = xdr_two; /* cookie, second word */
  147. *p++ = xdr_two; /* entry len */
  148. memcpy(p, "..\0\0", 4); /* entry */
  149. p++;
  150. *p++ = xdr_one; /* bitmap length */
  151. *p++ = htonl(FATTR4_WORD0_FILEID); /* bitmap */
  152. *p++ = htonl(8); /* attribute buffer length */
  153. p = xdr_encode_hyper(p, dentry->d_parent->d_inode->i_ino);
  154. readdir->pgbase = (char *)p - (char *)start;
  155. readdir->count -= readdir->pgbase;
  156. kunmap_atomic(start, KM_USER0);
  157. }
  158. static void
  159. renew_lease(struct nfs_server *server, unsigned long timestamp)
  160. {
  161. struct nfs4_client *clp = server->nfs4_state;
  162. spin_lock(&clp->cl_lock);
  163. if (time_before(clp->cl_last_renewal,timestamp))
  164. clp->cl_last_renewal = timestamp;
  165. spin_unlock(&clp->cl_lock);
  166. }
  167. static void update_changeattr(struct inode *inode, struct nfs4_change_info *cinfo)
  168. {
  169. struct nfs_inode *nfsi = NFS_I(inode);
  170. if (cinfo->before == nfsi->change_attr && cinfo->atomic)
  171. nfsi->change_attr = cinfo->after;
  172. }
  173. /* Helper for asynchronous RPC calls */
  174. static int nfs4_call_async(struct rpc_clnt *clnt, rpc_action tk_begin,
  175. rpc_action tk_exit, void *calldata)
  176. {
  177. struct rpc_task *task;
  178. if (!(task = rpc_new_task(clnt, tk_exit, RPC_TASK_ASYNC)))
  179. return -ENOMEM;
  180. task->tk_calldata = calldata;
  181. task->tk_action = tk_begin;
  182. rpc_execute(task);
  183. return 0;
  184. }
  185. static void update_open_stateid(struct nfs4_state *state, nfs4_stateid *stateid, int open_flags)
  186. {
  187. struct inode *inode = state->inode;
  188. open_flags &= (FMODE_READ|FMODE_WRITE);
  189. /* Protect against nfs4_find_state() */
  190. spin_lock(&inode->i_lock);
  191. state->state |= open_flags;
  192. /* NB! List reordering - see the reclaim code for why. */
  193. if ((open_flags & FMODE_WRITE) && 0 == state->nwriters++)
  194. list_move(&state->open_states, &state->owner->so_states);
  195. if (open_flags & FMODE_READ)
  196. state->nreaders++;
  197. memcpy(&state->stateid, stateid, sizeof(state->stateid));
  198. spin_unlock(&inode->i_lock);
  199. }
  200. /*
  201. * OPEN_RECLAIM:
  202. * reclaim state on the server after a reboot.
  203. */
  204. static int _nfs4_open_reclaim(struct nfs4_state_owner *sp, struct nfs4_state *state)
  205. {
  206. struct inode *inode = state->inode;
  207. struct nfs_server *server = NFS_SERVER(inode);
  208. struct nfs_delegation *delegation = NFS_I(inode)->delegation;
  209. struct nfs_openargs o_arg = {
  210. .fh = NFS_FH(inode),
  211. .id = sp->so_id,
  212. .open_flags = state->state,
  213. .clientid = server->nfs4_state->cl_clientid,
  214. .claim = NFS4_OPEN_CLAIM_PREVIOUS,
  215. .bitmask = server->attr_bitmask,
  216. };
  217. struct nfs_openres o_res = {
  218. .server = server, /* Grrr */
  219. };
  220. struct rpc_message msg = {
  221. .rpc_proc = &nfs4_procedures[NFSPROC4_CLNT_OPEN_NOATTR],
  222. .rpc_argp = &o_arg,
  223. .rpc_resp = &o_res,
  224. .rpc_cred = sp->so_cred,
  225. };
  226. int status;
  227. if (delegation != NULL) {
  228. if (!(delegation->flags & NFS_DELEGATION_NEED_RECLAIM)) {
  229. memcpy(&state->stateid, &delegation->stateid,
  230. sizeof(state->stateid));
  231. set_bit(NFS_DELEGATED_STATE, &state->flags);
  232. return 0;
  233. }
  234. o_arg.u.delegation_type = delegation->type;
  235. }
  236. o_arg.seqid = nfs_alloc_seqid(&sp->so_seqid);
  237. if (o_arg.seqid == NULL)
  238. return -ENOMEM;
  239. status = rpc_call_sync(server->client, &msg, RPC_TASK_NOINTR);
  240. /* Confirm the sequence as being established */
  241. nfs_confirm_seqid(&sp->so_seqid, status);
  242. nfs_increment_open_seqid(status, o_arg.seqid);
  243. if (status == 0) {
  244. memcpy(&state->stateid, &o_res.stateid, sizeof(state->stateid));
  245. if (o_res.delegation_type != 0) {
  246. nfs_inode_reclaim_delegation(inode, sp->so_cred, &o_res);
  247. /* Did the server issue an immediate delegation recall? */
  248. if (o_res.do_recall)
  249. nfs_async_inode_return_delegation(inode, &o_res.stateid);
  250. }
  251. }
  252. nfs_free_seqid(o_arg.seqid);
  253. clear_bit(NFS_DELEGATED_STATE, &state->flags);
  254. /* Ensure we update the inode attributes */
  255. NFS_CACHEINV(inode);
  256. return status;
  257. }
  258. static int nfs4_open_reclaim(struct nfs4_state_owner *sp, struct nfs4_state *state)
  259. {
  260. struct nfs_server *server = NFS_SERVER(state->inode);
  261. struct nfs4_exception exception = { };
  262. int err;
  263. do {
  264. err = _nfs4_open_reclaim(sp, state);
  265. if (err != -NFS4ERR_DELAY)
  266. break;
  267. nfs4_handle_exception(server, err, &exception);
  268. } while (exception.retry);
  269. return err;
  270. }
  271. static int _nfs4_open_delegation_recall(struct dentry *dentry, struct nfs4_state *state)
  272. {
  273. struct nfs4_state_owner *sp = state->owner;
  274. struct inode *inode = dentry->d_inode;
  275. struct nfs_server *server = NFS_SERVER(inode);
  276. struct dentry *parent = dget_parent(dentry);
  277. struct nfs_openargs arg = {
  278. .fh = NFS_FH(parent->d_inode),
  279. .clientid = server->nfs4_state->cl_clientid,
  280. .name = &dentry->d_name,
  281. .id = sp->so_id,
  282. .server = server,
  283. .bitmask = server->attr_bitmask,
  284. .claim = NFS4_OPEN_CLAIM_DELEGATE_CUR,
  285. };
  286. struct nfs_openres res = {
  287. .server = server,
  288. };
  289. struct rpc_message msg = {
  290. .rpc_proc = &nfs4_procedures[NFSPROC4_CLNT_OPEN_NOATTR],
  291. .rpc_argp = &arg,
  292. .rpc_resp = &res,
  293. .rpc_cred = sp->so_cred,
  294. };
  295. int status = 0;
  296. if (!test_bit(NFS_DELEGATED_STATE, &state->flags))
  297. goto out;
  298. if (state->state == 0)
  299. goto out;
  300. arg.seqid = nfs_alloc_seqid(&sp->so_seqid);
  301. status = -ENOMEM;
  302. if (arg.seqid == NULL)
  303. goto out;
  304. arg.open_flags = state->state;
  305. memcpy(arg.u.delegation.data, state->stateid.data, sizeof(arg.u.delegation.data));
  306. status = rpc_call_sync(server->client, &msg, RPC_TASK_NOINTR);
  307. nfs_increment_open_seqid(status, arg.seqid);
  308. if (status != 0)
  309. goto out_free;
  310. if(res.rflags & NFS4_OPEN_RESULT_CONFIRM) {
  311. status = _nfs4_proc_open_confirm(server->client, NFS_FH(inode),
  312. sp, &res.stateid, arg.seqid);
  313. if (status != 0)
  314. goto out_free;
  315. }
  316. nfs_confirm_seqid(&sp->so_seqid, 0);
  317. if (status >= 0) {
  318. memcpy(state->stateid.data, res.stateid.data,
  319. sizeof(state->stateid.data));
  320. clear_bit(NFS_DELEGATED_STATE, &state->flags);
  321. }
  322. out_free:
  323. nfs_free_seqid(arg.seqid);
  324. out:
  325. dput(parent);
  326. return status;
  327. }
  328. int nfs4_open_delegation_recall(struct dentry *dentry, struct nfs4_state *state)
  329. {
  330. struct nfs4_exception exception = { };
  331. struct nfs_server *server = NFS_SERVER(dentry->d_inode);
  332. int err;
  333. do {
  334. err = _nfs4_open_delegation_recall(dentry, state);
  335. switch (err) {
  336. case 0:
  337. return err;
  338. case -NFS4ERR_STALE_CLIENTID:
  339. case -NFS4ERR_STALE_STATEID:
  340. case -NFS4ERR_EXPIRED:
  341. /* Don't recall a delegation if it was lost */
  342. nfs4_schedule_state_recovery(server->nfs4_state);
  343. return err;
  344. }
  345. err = nfs4_handle_exception(server, err, &exception);
  346. } while (exception.retry);
  347. return err;
  348. }
  349. static int _nfs4_proc_open_confirm(struct rpc_clnt *clnt, const struct nfs_fh *fh, struct nfs4_state_owner *sp, nfs4_stateid *stateid, struct nfs_seqid *seqid)
  350. {
  351. struct nfs_open_confirmargs arg = {
  352. .fh = fh,
  353. .seqid = seqid,
  354. .stateid = *stateid,
  355. };
  356. struct nfs_open_confirmres res;
  357. struct rpc_message msg = {
  358. .rpc_proc = &nfs4_procedures[NFSPROC4_CLNT_OPEN_CONFIRM],
  359. .rpc_argp = &arg,
  360. .rpc_resp = &res,
  361. .rpc_cred = sp->so_cred,
  362. };
  363. int status;
  364. status = rpc_call_sync(clnt, &msg, RPC_TASK_NOINTR);
  365. /* Confirm the sequence as being established */
  366. nfs_confirm_seqid(&sp->so_seqid, status);
  367. nfs_increment_open_seqid(status, seqid);
  368. if (status >= 0)
  369. memcpy(stateid, &res.stateid, sizeof(*stateid));
  370. return status;
  371. }
  372. static int _nfs4_proc_open(struct inode *dir, struct nfs4_state_owner *sp, struct nfs_openargs *o_arg, struct nfs_openres *o_res)
  373. {
  374. struct nfs_server *server = NFS_SERVER(dir);
  375. struct rpc_message msg = {
  376. .rpc_proc = &nfs4_procedures[NFSPROC4_CLNT_OPEN],
  377. .rpc_argp = o_arg,
  378. .rpc_resp = o_res,
  379. .rpc_cred = sp->so_cred,
  380. };
  381. int status;
  382. /* Update sequence id. The caller must serialize! */
  383. o_arg->id = sp->so_id;
  384. o_arg->clientid = sp->so_client->cl_clientid;
  385. status = rpc_call_sync(server->client, &msg, RPC_TASK_NOINTR);
  386. if (status == 0) {
  387. /* OPEN on anything except a regular file is disallowed in NFSv4 */
  388. switch (o_res->f_attr->mode & S_IFMT) {
  389. case S_IFREG:
  390. break;
  391. case S_IFLNK:
  392. status = -ELOOP;
  393. break;
  394. case S_IFDIR:
  395. status = -EISDIR;
  396. break;
  397. default:
  398. status = -ENOTDIR;
  399. }
  400. }
  401. nfs_increment_open_seqid(status, o_arg->seqid);
  402. if (status != 0)
  403. goto out;
  404. update_changeattr(dir, &o_res->cinfo);
  405. if(o_res->rflags & NFS4_OPEN_RESULT_CONFIRM) {
  406. status = _nfs4_proc_open_confirm(server->client, &o_res->fh,
  407. sp, &o_res->stateid, o_arg->seqid);
  408. if (status != 0)
  409. goto out;
  410. }
  411. nfs_confirm_seqid(&sp->so_seqid, 0);
  412. if (!(o_res->f_attr->valid & NFS_ATTR_FATTR))
  413. status = server->rpc_ops->getattr(server, &o_res->fh, o_res->f_attr);
  414. out:
  415. return status;
  416. }
  417. static int _nfs4_do_access(struct inode *inode, struct rpc_cred *cred, int openflags)
  418. {
  419. struct nfs_access_entry cache;
  420. int mask = 0;
  421. int status;
  422. if (openflags & FMODE_READ)
  423. mask |= MAY_READ;
  424. if (openflags & FMODE_WRITE)
  425. mask |= MAY_WRITE;
  426. status = nfs_access_get_cached(inode, cred, &cache);
  427. if (status == 0)
  428. goto out;
  429. /* Be clever: ask server to check for all possible rights */
  430. cache.mask = MAY_EXEC | MAY_WRITE | MAY_READ;
  431. cache.cred = cred;
  432. cache.jiffies = jiffies;
  433. status = _nfs4_proc_access(inode, &cache);
  434. if (status != 0)
  435. return status;
  436. nfs_access_add_cache(inode, &cache);
  437. out:
  438. if ((cache.mask & mask) == mask)
  439. return 0;
  440. return -EACCES;
  441. }
  442. /*
  443. * OPEN_EXPIRED:
  444. * reclaim state on the server after a network partition.
  445. * Assumes caller holds the appropriate lock
  446. */
  447. static int _nfs4_open_expired(struct nfs4_state_owner *sp, struct nfs4_state *state, struct dentry *dentry)
  448. {
  449. struct dentry *parent = dget_parent(dentry);
  450. struct inode *dir = parent->d_inode;
  451. struct inode *inode = state->inode;
  452. struct nfs_server *server = NFS_SERVER(dir);
  453. struct nfs_delegation *delegation = NFS_I(inode)->delegation;
  454. struct nfs_fattr f_attr = {
  455. .valid = 0,
  456. };
  457. struct nfs_openargs o_arg = {
  458. .fh = NFS_FH(dir),
  459. .open_flags = state->state,
  460. .name = &dentry->d_name,
  461. .bitmask = server->attr_bitmask,
  462. .claim = NFS4_OPEN_CLAIM_NULL,
  463. };
  464. struct nfs_openres o_res = {
  465. .f_attr = &f_attr,
  466. .server = server,
  467. };
  468. int status = 0;
  469. if (delegation != NULL && !(delegation->flags & NFS_DELEGATION_NEED_RECLAIM)) {
  470. status = _nfs4_do_access(inode, sp->so_cred, state->state);
  471. if (status < 0)
  472. goto out;
  473. memcpy(&state->stateid, &delegation->stateid, sizeof(state->stateid));
  474. set_bit(NFS_DELEGATED_STATE, &state->flags);
  475. goto out;
  476. }
  477. o_arg.seqid = nfs_alloc_seqid(&sp->so_seqid);
  478. status = -ENOMEM;
  479. if (o_arg.seqid == NULL)
  480. goto out;
  481. status = _nfs4_proc_open(dir, sp, &o_arg, &o_res);
  482. if (status != 0)
  483. goto out_nodeleg;
  484. /* Check if files differ */
  485. if ((f_attr.mode & S_IFMT) != (inode->i_mode & S_IFMT))
  486. goto out_stale;
  487. /* Has the file handle changed? */
  488. if (nfs_compare_fh(&o_res.fh, NFS_FH(inode)) != 0) {
  489. /* Verify if the change attributes are the same */
  490. if (f_attr.change_attr != NFS_I(inode)->change_attr)
  491. goto out_stale;
  492. if (nfs_size_to_loff_t(f_attr.size) != inode->i_size)
  493. goto out_stale;
  494. /* Lets just pretend that this is the same file */
  495. nfs_copy_fh(NFS_FH(inode), &o_res.fh);
  496. NFS_I(inode)->fileid = f_attr.fileid;
  497. }
  498. memcpy(&state->stateid, &o_res.stateid, sizeof(state->stateid));
  499. if (o_res.delegation_type != 0) {
  500. if (!(delegation->flags & NFS_DELEGATION_NEED_RECLAIM))
  501. nfs_inode_set_delegation(inode, sp->so_cred, &o_res);
  502. else
  503. nfs_inode_reclaim_delegation(inode, sp->so_cred, &o_res);
  504. }
  505. out_nodeleg:
  506. nfs_free_seqid(o_arg.seqid);
  507. clear_bit(NFS_DELEGATED_STATE, &state->flags);
  508. out:
  509. dput(parent);
  510. return status;
  511. out_stale:
  512. status = -ESTALE;
  513. /* Invalidate the state owner so we don't ever use it again */
  514. nfs4_drop_state_owner(sp);
  515. d_drop(dentry);
  516. /* Should we be trying to close that stateid? */
  517. goto out_nodeleg;
  518. }
  519. static inline int nfs4_do_open_expired(struct nfs4_state_owner *sp, struct nfs4_state *state, struct dentry *dentry)
  520. {
  521. struct nfs_server *server = NFS_SERVER(dentry->d_inode);
  522. struct nfs4_exception exception = { };
  523. int err;
  524. do {
  525. err = _nfs4_open_expired(sp, state, dentry);
  526. if (err == -NFS4ERR_DELAY)
  527. nfs4_handle_exception(server, err, &exception);
  528. } while (exception.retry);
  529. return err;
  530. }
  531. static int nfs4_open_expired(struct nfs4_state_owner *sp, struct nfs4_state *state)
  532. {
  533. struct nfs_inode *nfsi = NFS_I(state->inode);
  534. struct nfs_open_context *ctx;
  535. int status;
  536. spin_lock(&state->inode->i_lock);
  537. list_for_each_entry(ctx, &nfsi->open_files, list) {
  538. if (ctx->state != state)
  539. continue;
  540. get_nfs_open_context(ctx);
  541. spin_unlock(&state->inode->i_lock);
  542. status = nfs4_do_open_expired(sp, state, ctx->dentry);
  543. put_nfs_open_context(ctx);
  544. return status;
  545. }
  546. spin_unlock(&state->inode->i_lock);
  547. return -ENOENT;
  548. }
  549. /*
  550. * Returns an nfs4_state + an extra reference to the inode
  551. */
  552. static int _nfs4_open_delegated(struct inode *inode, int flags, struct rpc_cred *cred, struct nfs4_state **res)
  553. {
  554. struct nfs_delegation *delegation;
  555. struct nfs_server *server = NFS_SERVER(inode);
  556. struct nfs4_client *clp = server->nfs4_state;
  557. struct nfs_inode *nfsi = NFS_I(inode);
  558. struct nfs4_state_owner *sp = NULL;
  559. struct nfs4_state *state = NULL;
  560. int open_flags = flags & (FMODE_READ|FMODE_WRITE);
  561. int err;
  562. /* Protect against reboot recovery - NOTE ORDER! */
  563. down_read(&clp->cl_sem);
  564. /* Protect against delegation recall */
  565. down_read(&nfsi->rwsem);
  566. delegation = NFS_I(inode)->delegation;
  567. err = -ENOENT;
  568. if (delegation == NULL || (delegation->type & open_flags) != open_flags)
  569. goto out_err;
  570. err = -ENOMEM;
  571. if (!(sp = nfs4_get_state_owner(server, cred))) {
  572. dprintk("%s: nfs4_get_state_owner failed!\n", __FUNCTION__);
  573. goto out_err;
  574. }
  575. state = nfs4_get_open_state(inode, sp);
  576. if (state == NULL)
  577. goto out_err;
  578. err = -ENOENT;
  579. if ((state->state & open_flags) == open_flags) {
  580. spin_lock(&inode->i_lock);
  581. if (open_flags & FMODE_READ)
  582. state->nreaders++;
  583. if (open_flags & FMODE_WRITE)
  584. state->nwriters++;
  585. spin_unlock(&inode->i_lock);
  586. goto out_ok;
  587. } else if (state->state != 0)
  588. goto out_err;
  589. lock_kernel();
  590. err = _nfs4_do_access(inode, cred, open_flags);
  591. unlock_kernel();
  592. if (err != 0)
  593. goto out_err;
  594. set_bit(NFS_DELEGATED_STATE, &state->flags);
  595. update_open_stateid(state, &delegation->stateid, open_flags);
  596. out_ok:
  597. nfs4_put_state_owner(sp);
  598. up_read(&nfsi->rwsem);
  599. up_read(&clp->cl_sem);
  600. igrab(inode);
  601. *res = state;
  602. return 0;
  603. out_err:
  604. if (sp != NULL) {
  605. if (state != NULL)
  606. nfs4_put_open_state(state);
  607. nfs4_put_state_owner(sp);
  608. }
  609. up_read(&nfsi->rwsem);
  610. up_read(&clp->cl_sem);
  611. if (err != -EACCES)
  612. nfs_inode_return_delegation(inode);
  613. return err;
  614. }
  615. static struct nfs4_state *nfs4_open_delegated(struct inode *inode, int flags, struct rpc_cred *cred)
  616. {
  617. struct nfs4_exception exception = { };
  618. struct nfs4_state *res;
  619. int err;
  620. do {
  621. err = _nfs4_open_delegated(inode, flags, cred, &res);
  622. if (err == 0)
  623. break;
  624. res = ERR_PTR(nfs4_handle_exception(NFS_SERVER(inode),
  625. err, &exception));
  626. } while (exception.retry);
  627. return res;
  628. }
  629. /*
  630. * Returns an nfs4_state + an referenced inode
  631. */
  632. static int _nfs4_do_open(struct inode *dir, struct dentry *dentry, int flags, struct iattr *sattr, struct rpc_cred *cred, struct nfs4_state **res)
  633. {
  634. struct nfs4_state_owner *sp;
  635. struct nfs4_state *state = NULL;
  636. struct nfs_server *server = NFS_SERVER(dir);
  637. struct nfs4_client *clp = server->nfs4_state;
  638. struct inode *inode = NULL;
  639. int status;
  640. struct nfs_fattr f_attr = {
  641. .valid = 0,
  642. };
  643. struct nfs_openargs o_arg = {
  644. .fh = NFS_FH(dir),
  645. .open_flags = flags,
  646. .name = &dentry->d_name,
  647. .server = server,
  648. .bitmask = server->attr_bitmask,
  649. .claim = NFS4_OPEN_CLAIM_NULL,
  650. };
  651. struct nfs_openres o_res = {
  652. .f_attr = &f_attr,
  653. .server = server,
  654. };
  655. /* Protect against reboot recovery conflicts */
  656. down_read(&clp->cl_sem);
  657. status = -ENOMEM;
  658. if (!(sp = nfs4_get_state_owner(server, cred))) {
  659. dprintk("nfs4_do_open: nfs4_get_state_owner failed!\n");
  660. goto out_err;
  661. }
  662. if (flags & O_EXCL) {
  663. u32 *p = (u32 *) o_arg.u.verifier.data;
  664. p[0] = jiffies;
  665. p[1] = current->pid;
  666. } else
  667. o_arg.u.attrs = sattr;
  668. /* Serialization for the sequence id */
  669. o_arg.seqid = nfs_alloc_seqid(&sp->so_seqid);
  670. if (o_arg.seqid == NULL)
  671. return -ENOMEM;
  672. status = _nfs4_proc_open(dir, sp, &o_arg, &o_res);
  673. if (status != 0)
  674. goto out_err;
  675. status = -ENOMEM;
  676. inode = nfs_fhget(dir->i_sb, &o_res.fh, &f_attr);
  677. if (!inode)
  678. goto out_err;
  679. state = nfs4_get_open_state(inode, sp);
  680. if (!state)
  681. goto out_err;
  682. update_open_stateid(state, &o_res.stateid, flags);
  683. if (o_res.delegation_type != 0)
  684. nfs_inode_set_delegation(inode, cred, &o_res);
  685. nfs_free_seqid(o_arg.seqid);
  686. nfs4_put_state_owner(sp);
  687. up_read(&clp->cl_sem);
  688. *res = state;
  689. return 0;
  690. out_err:
  691. if (sp != NULL) {
  692. if (state != NULL)
  693. nfs4_put_open_state(state);
  694. nfs_free_seqid(o_arg.seqid);
  695. nfs4_put_state_owner(sp);
  696. }
  697. /* Note: clp->cl_sem must be released before nfs4_put_open_state()! */
  698. up_read(&clp->cl_sem);
  699. if (inode != NULL)
  700. iput(inode);
  701. *res = NULL;
  702. return status;
  703. }
  704. static struct nfs4_state *nfs4_do_open(struct inode *dir, struct dentry *dentry, int flags, struct iattr *sattr, struct rpc_cred *cred)
  705. {
  706. struct nfs4_exception exception = { };
  707. struct nfs4_state *res;
  708. int status;
  709. do {
  710. status = _nfs4_do_open(dir, dentry, flags, sattr, cred, &res);
  711. if (status == 0)
  712. break;
  713. /* NOTE: BAD_SEQID means the server and client disagree about the
  714. * book-keeping w.r.t. state-changing operations
  715. * (OPEN/CLOSE/LOCK/LOCKU...)
  716. * It is actually a sign of a bug on the client or on the server.
  717. *
  718. * If we receive a BAD_SEQID error in the particular case of
  719. * doing an OPEN, we assume that nfs_increment_open_seqid() will
  720. * have unhashed the old state_owner for us, and that we can
  721. * therefore safely retry using a new one. We should still warn
  722. * the user though...
  723. */
  724. if (status == -NFS4ERR_BAD_SEQID) {
  725. printk(KERN_WARNING "NFS: v4 server returned a bad sequence-id error!\n");
  726. exception.retry = 1;
  727. continue;
  728. }
  729. /*
  730. * BAD_STATEID on OPEN means that the server cancelled our
  731. * state before it received the OPEN_CONFIRM.
  732. * Recover by retrying the request as per the discussion
  733. * on Page 181 of RFC3530.
  734. */
  735. if (status == -NFS4ERR_BAD_STATEID) {
  736. exception.retry = 1;
  737. continue;
  738. }
  739. res = ERR_PTR(nfs4_handle_exception(NFS_SERVER(dir),
  740. status, &exception));
  741. } while (exception.retry);
  742. return res;
  743. }
  744. static int _nfs4_do_setattr(struct nfs_server *server, struct nfs_fattr *fattr,
  745. struct nfs_fh *fhandle, struct iattr *sattr,
  746. struct nfs4_state *state)
  747. {
  748. struct nfs_setattrargs arg = {
  749. .fh = fhandle,
  750. .iap = sattr,
  751. .server = server,
  752. .bitmask = server->attr_bitmask,
  753. };
  754. struct nfs_setattrres res = {
  755. .fattr = fattr,
  756. .server = server,
  757. };
  758. struct rpc_message msg = {
  759. .rpc_proc = &nfs4_procedures[NFSPROC4_CLNT_SETATTR],
  760. .rpc_argp = &arg,
  761. .rpc_resp = &res,
  762. };
  763. int status;
  764. fattr->valid = 0;
  765. if (state != NULL) {
  766. msg.rpc_cred = state->owner->so_cred;
  767. nfs4_copy_stateid(&arg.stateid, state, current->files);
  768. } else
  769. memcpy(&arg.stateid, &zero_stateid, sizeof(arg.stateid));
  770. status = rpc_call_sync(server->client, &msg, 0);
  771. return status;
  772. }
  773. static int nfs4_do_setattr(struct nfs_server *server, struct nfs_fattr *fattr,
  774. struct nfs_fh *fhandle, struct iattr *sattr,
  775. struct nfs4_state *state)
  776. {
  777. struct nfs4_exception exception = { };
  778. int err;
  779. do {
  780. err = nfs4_handle_exception(server,
  781. _nfs4_do_setattr(server, fattr, fhandle, sattr,
  782. state),
  783. &exception);
  784. } while (exception.retry);
  785. return err;
  786. }
  787. struct nfs4_closedata {
  788. struct inode *inode;
  789. struct nfs4_state *state;
  790. struct nfs_closeargs arg;
  791. struct nfs_closeres res;
  792. };
  793. static void nfs4_free_closedata(struct nfs4_closedata *calldata)
  794. {
  795. struct nfs4_state *state = calldata->state;
  796. struct nfs4_state_owner *sp = state->owner;
  797. nfs4_put_open_state(calldata->state);
  798. nfs_free_seqid(calldata->arg.seqid);
  799. nfs4_put_state_owner(sp);
  800. kfree(calldata);
  801. }
  802. static void nfs4_close_done(struct rpc_task *task)
  803. {
  804. struct nfs4_closedata *calldata = (struct nfs4_closedata *)task->tk_calldata;
  805. struct nfs4_state *state = calldata->state;
  806. struct nfs_server *server = NFS_SERVER(calldata->inode);
  807. /* hmm. we are done with the inode, and in the process of freeing
  808. * the state_owner. we keep this around to process errors
  809. */
  810. nfs_increment_open_seqid(task->tk_status, calldata->arg.seqid);
  811. switch (task->tk_status) {
  812. case 0:
  813. memcpy(&state->stateid, &calldata->res.stateid,
  814. sizeof(state->stateid));
  815. break;
  816. case -NFS4ERR_STALE_STATEID:
  817. case -NFS4ERR_EXPIRED:
  818. state->state = calldata->arg.open_flags;
  819. nfs4_schedule_state_recovery(server->nfs4_state);
  820. break;
  821. default:
  822. if (nfs4_async_handle_error(task, server) == -EAGAIN) {
  823. rpc_restart_call(task);
  824. return;
  825. }
  826. }
  827. state->state = calldata->arg.open_flags;
  828. nfs4_free_closedata(calldata);
  829. }
  830. static void nfs4_close_begin(struct rpc_task *task)
  831. {
  832. struct nfs4_closedata *calldata = (struct nfs4_closedata *)task->tk_calldata;
  833. struct nfs4_state *state = calldata->state;
  834. struct rpc_message msg = {
  835. .rpc_proc = &nfs4_procedures[NFSPROC4_CLNT_CLOSE],
  836. .rpc_argp = &calldata->arg,
  837. .rpc_resp = &calldata->res,
  838. .rpc_cred = state->owner->so_cred,
  839. };
  840. int mode = 0;
  841. int status;
  842. status = nfs_wait_on_sequence(calldata->arg.seqid, task);
  843. if (status != 0)
  844. return;
  845. /* Don't reorder reads */
  846. smp_rmb();
  847. /* Recalculate the new open mode in case someone reopened the file
  848. * while we were waiting in line to be scheduled.
  849. */
  850. if (state->nreaders != 0)
  851. mode |= FMODE_READ;
  852. if (state->nwriters != 0)
  853. mode |= FMODE_WRITE;
  854. if (test_bit(NFS_DELEGATED_STATE, &state->flags))
  855. state->state = mode;
  856. if (mode == state->state) {
  857. nfs4_free_closedata(calldata);
  858. task->tk_exit = NULL;
  859. rpc_exit(task, 0);
  860. return;
  861. }
  862. if (mode != 0)
  863. msg.rpc_proc = &nfs4_procedures[NFSPROC4_CLNT_OPEN_DOWNGRADE];
  864. calldata->arg.open_flags = mode;
  865. rpc_call_setup(task, &msg, 0);
  866. }
  867. /*
  868. * It is possible for data to be read/written from a mem-mapped file
  869. * after the sys_close call (which hits the vfs layer as a flush).
  870. * This means that we can't safely call nfsv4 close on a file until
  871. * the inode is cleared. This in turn means that we are not good
  872. * NFSv4 citizens - we do not indicate to the server to update the file's
  873. * share state even when we are done with one of the three share
  874. * stateid's in the inode.
  875. *
  876. * NOTE: Caller must be holding the sp->so_owner semaphore!
  877. */
  878. int nfs4_do_close(struct inode *inode, struct nfs4_state *state, mode_t mode)
  879. {
  880. struct nfs4_closedata *calldata;
  881. int status = -ENOMEM;
  882. calldata = kmalloc(sizeof(*calldata), GFP_KERNEL);
  883. if (calldata == NULL)
  884. goto out;
  885. calldata->inode = inode;
  886. calldata->state = state;
  887. calldata->arg.fh = NFS_FH(inode);
  888. calldata->arg.stateid = &state->stateid;
  889. /* Serialization for the sequence id */
  890. calldata->arg.seqid = nfs_alloc_seqid(&state->owner->so_seqid);
  891. if (calldata->arg.seqid == NULL)
  892. goto out_free_calldata;
  893. status = nfs4_call_async(NFS_SERVER(inode)->client, nfs4_close_begin,
  894. nfs4_close_done, calldata);
  895. if (status == 0)
  896. goto out;
  897. nfs_free_seqid(calldata->arg.seqid);
  898. out_free_calldata:
  899. kfree(calldata);
  900. out:
  901. return status;
  902. }
  903. static void nfs4_intent_set_file(struct nameidata *nd, struct dentry *dentry, struct nfs4_state *state)
  904. {
  905. struct file *filp;
  906. filp = lookup_instantiate_filp(nd, dentry, NULL);
  907. if (!IS_ERR(filp)) {
  908. struct nfs_open_context *ctx;
  909. ctx = (struct nfs_open_context *)filp->private_data;
  910. ctx->state = state;
  911. } else
  912. nfs4_close_state(state, nd->intent.open.flags);
  913. }
  914. struct dentry *
  915. nfs4_atomic_open(struct inode *dir, struct dentry *dentry, struct nameidata *nd)
  916. {
  917. struct iattr attr;
  918. struct rpc_cred *cred;
  919. struct nfs4_state *state;
  920. struct dentry *res;
  921. if (nd->flags & LOOKUP_CREATE) {
  922. attr.ia_mode = nd->intent.open.create_mode;
  923. attr.ia_valid = ATTR_MODE;
  924. if (!IS_POSIXACL(dir))
  925. attr.ia_mode &= ~current->fs->umask;
  926. } else {
  927. attr.ia_valid = 0;
  928. BUG_ON(nd->intent.open.flags & O_CREAT);
  929. }
  930. cred = rpcauth_lookupcred(NFS_SERVER(dir)->client->cl_auth, 0);
  931. if (IS_ERR(cred))
  932. return (struct dentry *)cred;
  933. state = nfs4_do_open(dir, dentry, nd->intent.open.flags, &attr, cred);
  934. put_rpccred(cred);
  935. if (IS_ERR(state)) {
  936. if (PTR_ERR(state) == -ENOENT)
  937. d_add(dentry, NULL);
  938. return (struct dentry *)state;
  939. }
  940. res = d_add_unique(dentry, state->inode);
  941. if (res != NULL)
  942. dentry = res;
  943. nfs4_intent_set_file(nd, dentry, state);
  944. return res;
  945. }
  946. int
  947. nfs4_open_revalidate(struct inode *dir, struct dentry *dentry, int openflags, struct nameidata *nd)
  948. {
  949. struct rpc_cred *cred;
  950. struct nfs4_state *state;
  951. struct inode *inode;
  952. cred = rpcauth_lookupcred(NFS_SERVER(dir)->client->cl_auth, 0);
  953. if (IS_ERR(cred))
  954. return PTR_ERR(cred);
  955. state = nfs4_open_delegated(dentry->d_inode, openflags, cred);
  956. if (IS_ERR(state))
  957. state = nfs4_do_open(dir, dentry, openflags, NULL, cred);
  958. put_rpccred(cred);
  959. if (IS_ERR(state)) {
  960. switch (PTR_ERR(state)) {
  961. case -EPERM:
  962. case -EACCES:
  963. case -EDQUOT:
  964. case -ENOSPC:
  965. case -EROFS:
  966. lookup_instantiate_filp(nd, (struct dentry *)state, NULL);
  967. return 1;
  968. case -ENOENT:
  969. if (dentry->d_inode == NULL)
  970. return 1;
  971. }
  972. goto out_drop;
  973. }
  974. inode = state->inode;
  975. iput(inode);
  976. if (inode == dentry->d_inode) {
  977. nfs4_intent_set_file(nd, dentry, state);
  978. return 1;
  979. }
  980. nfs4_close_state(state, openflags);
  981. out_drop:
  982. d_drop(dentry);
  983. return 0;
  984. }
  985. static int _nfs4_server_capabilities(struct nfs_server *server, struct nfs_fh *fhandle)
  986. {
  987. struct nfs4_server_caps_res res = {};
  988. struct rpc_message msg = {
  989. .rpc_proc = &nfs4_procedures[NFSPROC4_CLNT_SERVER_CAPS],
  990. .rpc_argp = fhandle,
  991. .rpc_resp = &res,
  992. };
  993. int status;
  994. status = rpc_call_sync(server->client, &msg, 0);
  995. if (status == 0) {
  996. memcpy(server->attr_bitmask, res.attr_bitmask, sizeof(server->attr_bitmask));
  997. if (res.attr_bitmask[0] & FATTR4_WORD0_ACL)
  998. server->caps |= NFS_CAP_ACLS;
  999. if (res.has_links != 0)
  1000. server->caps |= NFS_CAP_HARDLINKS;
  1001. if (res.has_symlinks != 0)
  1002. server->caps |= NFS_CAP_SYMLINKS;
  1003. server->acl_bitmask = res.acl_bitmask;
  1004. }
  1005. return status;
  1006. }
  1007. static int nfs4_server_capabilities(struct nfs_server *server, struct nfs_fh *fhandle)
  1008. {
  1009. struct nfs4_exception exception = { };
  1010. int err;
  1011. do {
  1012. err = nfs4_handle_exception(server,
  1013. _nfs4_server_capabilities(server, fhandle),
  1014. &exception);
  1015. } while (exception.retry);
  1016. return err;
  1017. }
  1018. static int _nfs4_lookup_root(struct nfs_server *server, struct nfs_fh *fhandle,
  1019. struct nfs_fsinfo *info)
  1020. {
  1021. struct nfs_fattr * fattr = info->fattr;
  1022. struct nfs4_lookup_root_arg args = {
  1023. .bitmask = nfs4_fattr_bitmap,
  1024. };
  1025. struct nfs4_lookup_res res = {
  1026. .server = server,
  1027. .fattr = fattr,
  1028. .fh = fhandle,
  1029. };
  1030. struct rpc_message msg = {
  1031. .rpc_proc = &nfs4_procedures[NFSPROC4_CLNT_LOOKUP_ROOT],
  1032. .rpc_argp = &args,
  1033. .rpc_resp = &res,
  1034. };
  1035. fattr->valid = 0;
  1036. return rpc_call_sync(server->client, &msg, 0);
  1037. }
  1038. static int nfs4_lookup_root(struct nfs_server *server, struct nfs_fh *fhandle,
  1039. struct nfs_fsinfo *info)
  1040. {
  1041. struct nfs4_exception exception = { };
  1042. int err;
  1043. do {
  1044. err = nfs4_handle_exception(server,
  1045. _nfs4_lookup_root(server, fhandle, info),
  1046. &exception);
  1047. } while (exception.retry);
  1048. return err;
  1049. }
  1050. static int nfs4_proc_get_root(struct nfs_server *server, struct nfs_fh *fhandle,
  1051. struct nfs_fsinfo *info)
  1052. {
  1053. struct nfs_fattr * fattr = info->fattr;
  1054. unsigned char * p;
  1055. struct qstr q;
  1056. struct nfs4_lookup_arg args = {
  1057. .dir_fh = fhandle,
  1058. .name = &q,
  1059. .bitmask = nfs4_fattr_bitmap,
  1060. };
  1061. struct nfs4_lookup_res res = {
  1062. .server = server,
  1063. .fattr = fattr,
  1064. .fh = fhandle,
  1065. };
  1066. struct rpc_message msg = {
  1067. .rpc_proc = &nfs4_procedures[NFSPROC4_CLNT_LOOKUP],
  1068. .rpc_argp = &args,
  1069. .rpc_resp = &res,
  1070. };
  1071. int status;
  1072. /*
  1073. * Now we do a separate LOOKUP for each component of the mount path.
  1074. * The LOOKUPs are done separately so that we can conveniently
  1075. * catch an ERR_WRONGSEC if it occurs along the way...
  1076. */
  1077. status = nfs4_lookup_root(server, fhandle, info);
  1078. if (status)
  1079. goto out;
  1080. p = server->mnt_path;
  1081. for (;;) {
  1082. struct nfs4_exception exception = { };
  1083. while (*p == '/')
  1084. p++;
  1085. if (!*p)
  1086. break;
  1087. q.name = p;
  1088. while (*p && (*p != '/'))
  1089. p++;
  1090. q.len = p - q.name;
  1091. do {
  1092. fattr->valid = 0;
  1093. status = nfs4_handle_exception(server,
  1094. rpc_call_sync(server->client, &msg, 0),
  1095. &exception);
  1096. } while (exception.retry);
  1097. if (status == 0)
  1098. continue;
  1099. if (status == -ENOENT) {
  1100. printk(KERN_NOTICE "NFS: mount path %s does not exist!\n", server->mnt_path);
  1101. printk(KERN_NOTICE "NFS: suggestion: try mounting '/' instead.\n");
  1102. }
  1103. break;
  1104. }
  1105. if (status == 0)
  1106. status = nfs4_server_capabilities(server, fhandle);
  1107. if (status == 0)
  1108. status = nfs4_do_fsinfo(server, fhandle, info);
  1109. out:
  1110. return status;
  1111. }
  1112. static int _nfs4_proc_getattr(struct nfs_server *server, struct nfs_fh *fhandle, struct nfs_fattr *fattr)
  1113. {
  1114. struct nfs4_getattr_arg args = {
  1115. .fh = fhandle,
  1116. .bitmask = server->attr_bitmask,
  1117. };
  1118. struct nfs4_getattr_res res = {
  1119. .fattr = fattr,
  1120. .server = server,
  1121. };
  1122. struct rpc_message msg = {
  1123. .rpc_proc = &nfs4_procedures[NFSPROC4_CLNT_GETATTR],
  1124. .rpc_argp = &args,
  1125. .rpc_resp = &res,
  1126. };
  1127. fattr->valid = 0;
  1128. return rpc_call_sync(server->client, &msg, 0);
  1129. }
  1130. static int nfs4_proc_getattr(struct nfs_server *server, struct nfs_fh *fhandle, struct nfs_fattr *fattr)
  1131. {
  1132. struct nfs4_exception exception = { };
  1133. int err;
  1134. do {
  1135. err = nfs4_handle_exception(server,
  1136. _nfs4_proc_getattr(server, fhandle, fattr),
  1137. &exception);
  1138. } while (exception.retry);
  1139. return err;
  1140. }
  1141. /*
  1142. * The file is not closed if it is opened due to the a request to change
  1143. * the size of the file. The open call will not be needed once the
  1144. * VFS layer lookup-intents are implemented.
  1145. *
  1146. * Close is called when the inode is destroyed.
  1147. * If we haven't opened the file for O_WRONLY, we
  1148. * need to in the size_change case to obtain a stateid.
  1149. *
  1150. * Got race?
  1151. * Because OPEN is always done by name in nfsv4, it is
  1152. * possible that we opened a different file by the same
  1153. * name. We can recognize this race condition, but we
  1154. * can't do anything about it besides returning an error.
  1155. *
  1156. * This will be fixed with VFS changes (lookup-intent).
  1157. */
  1158. static int
  1159. nfs4_proc_setattr(struct dentry *dentry, struct nfs_fattr *fattr,
  1160. struct iattr *sattr)
  1161. {
  1162. struct rpc_cred *cred;
  1163. struct inode *inode = dentry->d_inode;
  1164. struct nfs4_state *state;
  1165. int status;
  1166. fattr->valid = 0;
  1167. cred = rpcauth_lookupcred(NFS_SERVER(inode)->client->cl_auth, 0);
  1168. if (IS_ERR(cred))
  1169. return PTR_ERR(cred);
  1170. /* Search for an existing WRITE delegation first */
  1171. state = nfs4_open_delegated(inode, FMODE_WRITE, cred);
  1172. if (!IS_ERR(state)) {
  1173. /* NB: nfs4_open_delegated() bumps the inode->i_count */
  1174. iput(inode);
  1175. } else {
  1176. /* Search for an existing open(O_WRITE) stateid */
  1177. state = nfs4_find_state(inode, cred, FMODE_WRITE);
  1178. }
  1179. status = nfs4_do_setattr(NFS_SERVER(inode), fattr,
  1180. NFS_FH(inode), sattr, state);
  1181. if (status == 0)
  1182. nfs_setattr_update_inode(inode, sattr);
  1183. if (state != NULL)
  1184. nfs4_close_state(state, FMODE_WRITE);
  1185. put_rpccred(cred);
  1186. return status;
  1187. }
  1188. static int _nfs4_proc_lookup(struct inode *dir, struct qstr *name,
  1189. struct nfs_fh *fhandle, struct nfs_fattr *fattr)
  1190. {
  1191. int status;
  1192. struct nfs_server *server = NFS_SERVER(dir);
  1193. struct nfs4_lookup_arg args = {
  1194. .bitmask = server->attr_bitmask,
  1195. .dir_fh = NFS_FH(dir),
  1196. .name = name,
  1197. };
  1198. struct nfs4_lookup_res res = {
  1199. .server = server,
  1200. .fattr = fattr,
  1201. .fh = fhandle,
  1202. };
  1203. struct rpc_message msg = {
  1204. .rpc_proc = &nfs4_procedures[NFSPROC4_CLNT_LOOKUP],
  1205. .rpc_argp = &args,
  1206. .rpc_resp = &res,
  1207. };
  1208. fattr->valid = 0;
  1209. dprintk("NFS call lookup %s\n", name->name);
  1210. status = rpc_call_sync(NFS_CLIENT(dir), &msg, 0);
  1211. dprintk("NFS reply lookup: %d\n", status);
  1212. return status;
  1213. }
  1214. static int nfs4_proc_lookup(struct inode *dir, struct qstr *name, struct nfs_fh *fhandle, struct nfs_fattr *fattr)
  1215. {
  1216. struct nfs4_exception exception = { };
  1217. int err;
  1218. do {
  1219. err = nfs4_handle_exception(NFS_SERVER(dir),
  1220. _nfs4_proc_lookup(dir, name, fhandle, fattr),
  1221. &exception);
  1222. } while (exception.retry);
  1223. return err;
  1224. }
  1225. static int _nfs4_proc_access(struct inode *inode, struct nfs_access_entry *entry)
  1226. {
  1227. struct nfs4_accessargs args = {
  1228. .fh = NFS_FH(inode),
  1229. };
  1230. struct nfs4_accessres res = { 0 };
  1231. struct rpc_message msg = {
  1232. .rpc_proc = &nfs4_procedures[NFSPROC4_CLNT_ACCESS],
  1233. .rpc_argp = &args,
  1234. .rpc_resp = &res,
  1235. .rpc_cred = entry->cred,
  1236. };
  1237. int mode = entry->mask;
  1238. int status;
  1239. /*
  1240. * Determine which access bits we want to ask for...
  1241. */
  1242. if (mode & MAY_READ)
  1243. args.access |= NFS4_ACCESS_READ;
  1244. if (S_ISDIR(inode->i_mode)) {
  1245. if (mode & MAY_WRITE)
  1246. args.access |= NFS4_ACCESS_MODIFY | NFS4_ACCESS_EXTEND | NFS4_ACCESS_DELETE;
  1247. if (mode & MAY_EXEC)
  1248. args.access |= NFS4_ACCESS_LOOKUP;
  1249. } else {
  1250. if (mode & MAY_WRITE)
  1251. args.access |= NFS4_ACCESS_MODIFY | NFS4_ACCESS_EXTEND;
  1252. if (mode & MAY_EXEC)
  1253. args.access |= NFS4_ACCESS_EXECUTE;
  1254. }
  1255. status = rpc_call_sync(NFS_CLIENT(inode), &msg, 0);
  1256. if (!status) {
  1257. entry->mask = 0;
  1258. if (res.access & NFS4_ACCESS_READ)
  1259. entry->mask |= MAY_READ;
  1260. if (res.access & (NFS4_ACCESS_MODIFY | NFS4_ACCESS_EXTEND | NFS4_ACCESS_DELETE))
  1261. entry->mask |= MAY_WRITE;
  1262. if (res.access & (NFS4_ACCESS_LOOKUP|NFS4_ACCESS_EXECUTE))
  1263. entry->mask |= MAY_EXEC;
  1264. }
  1265. return status;
  1266. }
  1267. static int nfs4_proc_access(struct inode *inode, struct nfs_access_entry *entry)
  1268. {
  1269. struct nfs4_exception exception = { };
  1270. int err;
  1271. do {
  1272. err = nfs4_handle_exception(NFS_SERVER(inode),
  1273. _nfs4_proc_access(inode, entry),
  1274. &exception);
  1275. } while (exception.retry);
  1276. return err;
  1277. }
  1278. /*
  1279. * TODO: For the time being, we don't try to get any attributes
  1280. * along with any of the zero-copy operations READ, READDIR,
  1281. * READLINK, WRITE.
  1282. *
  1283. * In the case of the first three, we want to put the GETATTR
  1284. * after the read-type operation -- this is because it is hard
  1285. * to predict the length of a GETATTR response in v4, and thus
  1286. * align the READ data correctly. This means that the GETATTR
  1287. * may end up partially falling into the page cache, and we should
  1288. * shift it into the 'tail' of the xdr_buf before processing.
  1289. * To do this efficiently, we need to know the total length
  1290. * of data received, which doesn't seem to be available outside
  1291. * of the RPC layer.
  1292. *
  1293. * In the case of WRITE, we also want to put the GETATTR after
  1294. * the operation -- in this case because we want to make sure
  1295. * we get the post-operation mtime and size. This means that
  1296. * we can't use xdr_encode_pages() as written: we need a variant
  1297. * of it which would leave room in the 'tail' iovec.
  1298. *
  1299. * Both of these changes to the XDR layer would in fact be quite
  1300. * minor, but I decided to leave them for a subsequent patch.
  1301. */
  1302. static int _nfs4_proc_readlink(struct inode *inode, struct page *page,
  1303. unsigned int pgbase, unsigned int pglen)
  1304. {
  1305. struct nfs4_readlink args = {
  1306. .fh = NFS_FH(inode),
  1307. .pgbase = pgbase,
  1308. .pglen = pglen,
  1309. .pages = &page,
  1310. };
  1311. struct rpc_message msg = {
  1312. .rpc_proc = &nfs4_procedures[NFSPROC4_CLNT_READLINK],
  1313. .rpc_argp = &args,
  1314. .rpc_resp = NULL,
  1315. };
  1316. return rpc_call_sync(NFS_CLIENT(inode), &msg, 0);
  1317. }
  1318. static int nfs4_proc_readlink(struct inode *inode, struct page *page,
  1319. unsigned int pgbase, unsigned int pglen)
  1320. {
  1321. struct nfs4_exception exception = { };
  1322. int err;
  1323. do {
  1324. err = nfs4_handle_exception(NFS_SERVER(inode),
  1325. _nfs4_proc_readlink(inode, page, pgbase, pglen),
  1326. &exception);
  1327. } while (exception.retry);
  1328. return err;
  1329. }
  1330. static int _nfs4_proc_read(struct nfs_read_data *rdata)
  1331. {
  1332. int flags = rdata->flags;
  1333. struct inode *inode = rdata->inode;
  1334. struct nfs_fattr *fattr = rdata->res.fattr;
  1335. struct nfs_server *server = NFS_SERVER(inode);
  1336. struct rpc_message msg = {
  1337. .rpc_proc = &nfs4_procedures[NFSPROC4_CLNT_READ],
  1338. .rpc_argp = &rdata->args,
  1339. .rpc_resp = &rdata->res,
  1340. .rpc_cred = rdata->cred,
  1341. };
  1342. unsigned long timestamp = jiffies;
  1343. int status;
  1344. dprintk("NFS call read %d @ %Ld\n", rdata->args.count,
  1345. (long long) rdata->args.offset);
  1346. fattr->valid = 0;
  1347. status = rpc_call_sync(server->client, &msg, flags);
  1348. if (!status)
  1349. renew_lease(server, timestamp);
  1350. dprintk("NFS reply read: %d\n", status);
  1351. return status;
  1352. }
  1353. static int nfs4_proc_read(struct nfs_read_data *rdata)
  1354. {
  1355. struct nfs4_exception exception = { };
  1356. int err;
  1357. do {
  1358. err = nfs4_handle_exception(NFS_SERVER(rdata->inode),
  1359. _nfs4_proc_read(rdata),
  1360. &exception);
  1361. } while (exception.retry);
  1362. return err;
  1363. }
  1364. static int _nfs4_proc_write(struct nfs_write_data *wdata)
  1365. {
  1366. int rpcflags = wdata->flags;
  1367. struct inode *inode = wdata->inode;
  1368. struct nfs_fattr *fattr = wdata->res.fattr;
  1369. struct nfs_server *server = NFS_SERVER(inode);
  1370. struct rpc_message msg = {
  1371. .rpc_proc = &nfs4_procedures[NFSPROC4_CLNT_WRITE],
  1372. .rpc_argp = &wdata->args,
  1373. .rpc_resp = &wdata->res,
  1374. .rpc_cred = wdata->cred,
  1375. };
  1376. int status;
  1377. dprintk("NFS call write %d @ %Ld\n", wdata->args.count,
  1378. (long long) wdata->args.offset);
  1379. fattr->valid = 0;
  1380. status = rpc_call_sync(server->client, &msg, rpcflags);
  1381. dprintk("NFS reply write: %d\n", status);
  1382. return status;
  1383. }
  1384. static int nfs4_proc_write(struct nfs_write_data *wdata)
  1385. {
  1386. struct nfs4_exception exception = { };
  1387. int err;
  1388. do {
  1389. err = nfs4_handle_exception(NFS_SERVER(wdata->inode),
  1390. _nfs4_proc_write(wdata),
  1391. &exception);
  1392. } while (exception.retry);
  1393. return err;
  1394. }
  1395. static int _nfs4_proc_commit(struct nfs_write_data *cdata)
  1396. {
  1397. struct inode *inode = cdata->inode;
  1398. struct nfs_fattr *fattr = cdata->res.fattr;
  1399. struct nfs_server *server = NFS_SERVER(inode);
  1400. struct rpc_message msg = {
  1401. .rpc_proc = &nfs4_procedures[NFSPROC4_CLNT_COMMIT],
  1402. .rpc_argp = &cdata->args,
  1403. .rpc_resp = &cdata->res,
  1404. .rpc_cred = cdata->cred,
  1405. };
  1406. int status;
  1407. dprintk("NFS call commit %d @ %Ld\n", cdata->args.count,
  1408. (long long) cdata->args.offset);
  1409. fattr->valid = 0;
  1410. status = rpc_call_sync(server->client, &msg, 0);
  1411. dprintk("NFS reply commit: %d\n", status);
  1412. return status;
  1413. }
  1414. static int nfs4_proc_commit(struct nfs_write_data *cdata)
  1415. {
  1416. struct nfs4_exception exception = { };
  1417. int err;
  1418. do {
  1419. err = nfs4_handle_exception(NFS_SERVER(cdata->inode),
  1420. _nfs4_proc_commit(cdata),
  1421. &exception);
  1422. } while (exception.retry);
  1423. return err;
  1424. }
  1425. /*
  1426. * Got race?
  1427. * We will need to arrange for the VFS layer to provide an atomic open.
  1428. * Until then, this create/open method is prone to inefficiency and race
  1429. * conditions due to the lookup, create, and open VFS calls from sys_open()
  1430. * placed on the wire.
  1431. *
  1432. * Given the above sorry state of affairs, I'm simply sending an OPEN.
  1433. * The file will be opened again in the subsequent VFS open call
  1434. * (nfs4_proc_file_open).
  1435. *
  1436. * The open for read will just hang around to be used by any process that
  1437. * opens the file O_RDONLY. This will all be resolved with the VFS changes.
  1438. */
  1439. static int
  1440. nfs4_proc_create(struct inode *dir, struct dentry *dentry, struct iattr *sattr,
  1441. int flags, struct nameidata *nd)
  1442. {
  1443. struct nfs4_state *state;
  1444. struct rpc_cred *cred;
  1445. int status = 0;
  1446. cred = rpcauth_lookupcred(NFS_SERVER(dir)->client->cl_auth, 0);
  1447. if (IS_ERR(cred)) {
  1448. status = PTR_ERR(cred);
  1449. goto out;
  1450. }
  1451. state = nfs4_do_open(dir, dentry, flags, sattr, cred);
  1452. put_rpccred(cred);
  1453. if (IS_ERR(state)) {
  1454. status = PTR_ERR(state);
  1455. goto out;
  1456. }
  1457. d_instantiate(dentry, state->inode);
  1458. if (flags & O_EXCL) {
  1459. struct nfs_fattr fattr;
  1460. status = nfs4_do_setattr(NFS_SERVER(dir), &fattr,
  1461. NFS_FH(state->inode), sattr, state);
  1462. if (status == 0)
  1463. nfs_setattr_update_inode(state->inode, sattr);
  1464. }
  1465. if (status == 0 && nd != NULL && (nd->flags & LOOKUP_OPEN))
  1466. nfs4_intent_set_file(nd, dentry, state);
  1467. else
  1468. nfs4_close_state(state, flags);
  1469. out:
  1470. return status;
  1471. }
  1472. static int _nfs4_proc_remove(struct inode *dir, struct qstr *name)
  1473. {
  1474. struct nfs4_remove_arg args = {
  1475. .fh = NFS_FH(dir),
  1476. .name = name,
  1477. };
  1478. struct nfs4_change_info res;
  1479. struct rpc_message msg = {
  1480. .rpc_proc = &nfs4_procedures[NFSPROC4_CLNT_REMOVE],
  1481. .rpc_argp = &args,
  1482. .rpc_resp = &res,
  1483. };
  1484. int status;
  1485. status = rpc_call_sync(NFS_CLIENT(dir), &msg, 0);
  1486. if (status == 0)
  1487. update_changeattr(dir, &res);
  1488. return status;
  1489. }
  1490. static int nfs4_proc_remove(struct inode *dir, struct qstr *name)
  1491. {
  1492. struct nfs4_exception exception = { };
  1493. int err;
  1494. do {
  1495. err = nfs4_handle_exception(NFS_SERVER(dir),
  1496. _nfs4_proc_remove(dir, name),
  1497. &exception);
  1498. } while (exception.retry);
  1499. return err;
  1500. }
  1501. struct unlink_desc {
  1502. struct nfs4_remove_arg args;
  1503. struct nfs4_change_info res;
  1504. };
  1505. static int nfs4_proc_unlink_setup(struct rpc_message *msg, struct dentry *dir,
  1506. struct qstr *name)
  1507. {
  1508. struct unlink_desc *up;
  1509. up = (struct unlink_desc *) kmalloc(sizeof(*up), GFP_KERNEL);
  1510. if (!up)
  1511. return -ENOMEM;
  1512. up->args.fh = NFS_FH(dir->d_inode);
  1513. up->args.name = name;
  1514. msg->rpc_proc = &nfs4_procedures[NFSPROC4_CLNT_REMOVE];
  1515. msg->rpc_argp = &up->args;
  1516. msg->rpc_resp = &up->res;
  1517. return 0;
  1518. }
  1519. static int nfs4_proc_unlink_done(struct dentry *dir, struct rpc_task *task)
  1520. {
  1521. struct rpc_message *msg = &task->tk_msg;
  1522. struct unlink_desc *up;
  1523. if (msg->rpc_resp != NULL) {
  1524. up = container_of(msg->rpc_resp, struct unlink_desc, res);
  1525. update_changeattr(dir->d_inode, &up->res);
  1526. kfree(up);
  1527. msg->rpc_resp = NULL;
  1528. msg->rpc_argp = NULL;
  1529. }
  1530. return 0;
  1531. }
  1532. static int _nfs4_proc_rename(struct inode *old_dir, struct qstr *old_name,
  1533. struct inode *new_dir, struct qstr *new_name)
  1534. {
  1535. struct nfs4_rename_arg arg = {
  1536. .old_dir = NFS_FH(old_dir),
  1537. .new_dir = NFS_FH(new_dir),
  1538. .old_name = old_name,
  1539. .new_name = new_name,
  1540. };
  1541. struct nfs4_rename_res res = { };
  1542. struct rpc_message msg = {
  1543. .rpc_proc = &nfs4_procedures[NFSPROC4_CLNT_RENAME],
  1544. .rpc_argp = &arg,
  1545. .rpc_resp = &res,
  1546. };
  1547. int status;
  1548. status = rpc_call_sync(NFS_CLIENT(old_dir), &msg, 0);
  1549. if (!status) {
  1550. update_changeattr(old_dir, &res.old_cinfo);
  1551. update_changeattr(new_dir, &res.new_cinfo);
  1552. }
  1553. return status;
  1554. }
  1555. static int nfs4_proc_rename(struct inode *old_dir, struct qstr *old_name,
  1556. struct inode *new_dir, struct qstr *new_name)
  1557. {
  1558. struct nfs4_exception exception = { };
  1559. int err;
  1560. do {
  1561. err = nfs4_handle_exception(NFS_SERVER(old_dir),
  1562. _nfs4_proc_rename(old_dir, old_name,
  1563. new_dir, new_name),
  1564. &exception);
  1565. } while (exception.retry);
  1566. return err;
  1567. }
  1568. static int _nfs4_proc_link(struct inode *inode, struct inode *dir, struct qstr *name)
  1569. {
  1570. struct nfs4_link_arg arg = {
  1571. .fh = NFS_FH(inode),
  1572. .dir_fh = NFS_FH(dir),
  1573. .name = name,
  1574. };
  1575. struct nfs4_change_info cinfo = { };
  1576. struct rpc_message msg = {
  1577. .rpc_proc = &nfs4_procedures[NFSPROC4_CLNT_LINK],
  1578. .rpc_argp = &arg,
  1579. .rpc_resp = &cinfo,
  1580. };
  1581. int status;
  1582. status = rpc_call_sync(NFS_CLIENT(inode), &msg, 0);
  1583. if (!status)
  1584. update_changeattr(dir, &cinfo);
  1585. return status;
  1586. }
  1587. static int nfs4_proc_link(struct inode *inode, struct inode *dir, struct qstr *name)
  1588. {
  1589. struct nfs4_exception exception = { };
  1590. int err;
  1591. do {
  1592. err = nfs4_handle_exception(NFS_SERVER(inode),
  1593. _nfs4_proc_link(inode, dir, name),
  1594. &exception);
  1595. } while (exception.retry);
  1596. return err;
  1597. }
  1598. static int _nfs4_proc_symlink(struct inode *dir, struct qstr *name,
  1599. struct qstr *path, struct iattr *sattr, struct nfs_fh *fhandle,
  1600. struct nfs_fattr *fattr)
  1601. {
  1602. struct nfs_server *server = NFS_SERVER(dir);
  1603. struct nfs4_create_arg arg = {
  1604. .dir_fh = NFS_FH(dir),
  1605. .server = server,
  1606. .name = name,
  1607. .attrs = sattr,
  1608. .ftype = NF4LNK,
  1609. .bitmask = server->attr_bitmask,
  1610. };
  1611. struct nfs4_create_res res = {
  1612. .server = server,
  1613. .fh = fhandle,
  1614. .fattr = fattr,
  1615. };
  1616. struct rpc_message msg = {
  1617. .rpc_proc = &nfs4_procedures[NFSPROC4_CLNT_SYMLINK],
  1618. .rpc_argp = &arg,
  1619. .rpc_resp = &res,
  1620. };
  1621. int status;
  1622. if (path->len > NFS4_MAXPATHLEN)
  1623. return -ENAMETOOLONG;
  1624. arg.u.symlink = path;
  1625. fattr->valid = 0;
  1626. status = rpc_call_sync(NFS_CLIENT(dir), &msg, 0);
  1627. if (!status)
  1628. update_changeattr(dir, &res.dir_cinfo);
  1629. return status;
  1630. }
  1631. static int nfs4_proc_symlink(struct inode *dir, struct qstr *name,
  1632. struct qstr *path, struct iattr *sattr, struct nfs_fh *fhandle,
  1633. struct nfs_fattr *fattr)
  1634. {
  1635. struct nfs4_exception exception = { };
  1636. int err;
  1637. do {
  1638. err = nfs4_handle_exception(NFS_SERVER(dir),
  1639. _nfs4_proc_symlink(dir, name, path, sattr,
  1640. fhandle, fattr),
  1641. &exception);
  1642. } while (exception.retry);
  1643. return err;
  1644. }
  1645. static int _nfs4_proc_mkdir(struct inode *dir, struct dentry *dentry,
  1646. struct iattr *sattr)
  1647. {
  1648. struct nfs_server *server = NFS_SERVER(dir);
  1649. struct nfs_fh fhandle;
  1650. struct nfs_fattr fattr;
  1651. struct nfs4_create_arg arg = {
  1652. .dir_fh = NFS_FH(dir),
  1653. .server = server,
  1654. .name = &dentry->d_name,
  1655. .attrs = sattr,
  1656. .ftype = NF4DIR,
  1657. .bitmask = server->attr_bitmask,
  1658. };
  1659. struct nfs4_create_res res = {
  1660. .server = server,
  1661. .fh = &fhandle,
  1662. .fattr = &fattr,
  1663. };
  1664. struct rpc_message msg = {
  1665. .rpc_proc = &nfs4_procedures[NFSPROC4_CLNT_CREATE],
  1666. .rpc_argp = &arg,
  1667. .rpc_resp = &res,
  1668. };
  1669. int status;
  1670. fattr.valid = 0;
  1671. status = rpc_call_sync(NFS_CLIENT(dir), &msg, 0);
  1672. if (!status) {
  1673. update_changeattr(dir, &res.dir_cinfo);
  1674. status = nfs_instantiate(dentry, &fhandle, &fattr);
  1675. }
  1676. return status;
  1677. }
  1678. static int nfs4_proc_mkdir(struct inode *dir, struct dentry *dentry,
  1679. struct iattr *sattr)
  1680. {
  1681. struct nfs4_exception exception = { };
  1682. int err;
  1683. do {
  1684. err = nfs4_handle_exception(NFS_SERVER(dir),
  1685. _nfs4_proc_mkdir(dir, dentry, sattr),
  1686. &exception);
  1687. } while (exception.retry);
  1688. return err;
  1689. }
  1690. static int _nfs4_proc_readdir(struct dentry *dentry, struct rpc_cred *cred,
  1691. u64 cookie, struct page *page, unsigned int count, int plus)
  1692. {
  1693. struct inode *dir = dentry->d_inode;
  1694. struct nfs4_readdir_arg args = {
  1695. .fh = NFS_FH(dir),
  1696. .pages = &page,
  1697. .pgbase = 0,
  1698. .count = count,
  1699. .bitmask = NFS_SERVER(dentry->d_inode)->attr_bitmask,
  1700. };
  1701. struct nfs4_readdir_res res;
  1702. struct rpc_message msg = {
  1703. .rpc_proc = &nfs4_procedures[NFSPROC4_CLNT_READDIR],
  1704. .rpc_argp = &args,
  1705. .rpc_resp = &res,
  1706. .rpc_cred = cred,
  1707. };
  1708. int status;
  1709. dprintk("%s: dentry = %s/%s, cookie = %Lu\n", __FUNCTION__,
  1710. dentry->d_parent->d_name.name,
  1711. dentry->d_name.name,
  1712. (unsigned long long)cookie);
  1713. lock_kernel();
  1714. nfs4_setup_readdir(cookie, NFS_COOKIEVERF(dir), dentry, &args);
  1715. res.pgbase = args.pgbase;
  1716. status = rpc_call_sync(NFS_CLIENT(dir), &msg, 0);
  1717. if (status == 0)
  1718. memcpy(NFS_COOKIEVERF(dir), res.verifier.data, NFS4_VERIFIER_SIZE);
  1719. unlock_kernel();
  1720. dprintk("%s: returns %d\n", __FUNCTION__, status);
  1721. return status;
  1722. }
  1723. static int nfs4_proc_readdir(struct dentry *dentry, struct rpc_cred *cred,
  1724. u64 cookie, struct page *page, unsigned int count, int plus)
  1725. {
  1726. struct nfs4_exception exception = { };
  1727. int err;
  1728. do {
  1729. err = nfs4_handle_exception(NFS_SERVER(dentry->d_inode),
  1730. _nfs4_proc_readdir(dentry, cred, cookie,
  1731. page, count, plus),
  1732. &exception);
  1733. } while (exception.retry);
  1734. return err;
  1735. }
  1736. static int _nfs4_proc_mknod(struct inode *dir, struct dentry *dentry,
  1737. struct iattr *sattr, dev_t rdev)
  1738. {
  1739. struct nfs_server *server = NFS_SERVER(dir);
  1740. struct nfs_fh fh;
  1741. struct nfs_fattr fattr;
  1742. struct nfs4_create_arg arg = {
  1743. .dir_fh = NFS_FH(dir),
  1744. .server = server,
  1745. .name = &dentry->d_name,
  1746. .attrs = sattr,
  1747. .bitmask = server->attr_bitmask,
  1748. };
  1749. struct nfs4_create_res res = {
  1750. .server = server,
  1751. .fh = &fh,
  1752. .fattr = &fattr,
  1753. };
  1754. struct rpc_message msg = {
  1755. .rpc_proc = &nfs4_procedures[NFSPROC4_CLNT_CREATE],
  1756. .rpc_argp = &arg,
  1757. .rpc_resp = &res,
  1758. };
  1759. int status;
  1760. int mode = sattr->ia_mode;
  1761. fattr.valid = 0;
  1762. BUG_ON(!(sattr->ia_valid & ATTR_MODE));
  1763. BUG_ON(!S_ISFIFO(mode) && !S_ISBLK(mode) && !S_ISCHR(mode) && !S_ISSOCK(mode));
  1764. if (S_ISFIFO(mode))
  1765. arg.ftype = NF4FIFO;
  1766. else if (S_ISBLK(mode)) {
  1767. arg.ftype = NF4BLK;
  1768. arg.u.device.specdata1 = MAJOR(rdev);
  1769. arg.u.device.specdata2 = MINOR(rdev);
  1770. }
  1771. else if (S_ISCHR(mode)) {
  1772. arg.ftype = NF4CHR;
  1773. arg.u.device.specdata1 = MAJOR(rdev);
  1774. arg.u.device.specdata2 = MINOR(rdev);
  1775. }
  1776. else
  1777. arg.ftype = NF4SOCK;
  1778. status = rpc_call_sync(NFS_CLIENT(dir), &msg, 0);
  1779. if (status == 0) {
  1780. update_changeattr(dir, &res.dir_cinfo);
  1781. status = nfs_instantiate(dentry, &fh, &fattr);
  1782. }
  1783. return status;
  1784. }
  1785. static int nfs4_proc_mknod(struct inode *dir, struct dentry *dentry,
  1786. struct iattr *sattr, dev_t rdev)
  1787. {
  1788. struct nfs4_exception exception = { };
  1789. int err;
  1790. do {
  1791. err = nfs4_handle_exception(NFS_SERVER(dir),
  1792. _nfs4_proc_mknod(dir, dentry, sattr, rdev),
  1793. &exception);
  1794. } while (exception.retry);
  1795. return err;
  1796. }
  1797. static int _nfs4_proc_statfs(struct nfs_server *server, struct nfs_fh *fhandle,
  1798. struct nfs_fsstat *fsstat)
  1799. {
  1800. struct nfs4_statfs_arg args = {
  1801. .fh = fhandle,
  1802. .bitmask = server->attr_bitmask,
  1803. };
  1804. struct rpc_message msg = {
  1805. .rpc_proc = &nfs4_procedures[NFSPROC4_CLNT_STATFS],
  1806. .rpc_argp = &args,
  1807. .rpc_resp = fsstat,
  1808. };
  1809. fsstat->fattr->valid = 0;
  1810. return rpc_call_sync(server->client, &msg, 0);
  1811. }
  1812. static int nfs4_proc_statfs(struct nfs_server *server, struct nfs_fh *fhandle, struct nfs_fsstat *fsstat)
  1813. {
  1814. struct nfs4_exception exception = { };
  1815. int err;
  1816. do {
  1817. err = nfs4_handle_exception(server,
  1818. _nfs4_proc_statfs(server, fhandle, fsstat),
  1819. &exception);
  1820. } while (exception.retry);
  1821. return err;
  1822. }
  1823. static int _nfs4_do_fsinfo(struct nfs_server *server, struct nfs_fh *fhandle,
  1824. struct nfs_fsinfo *fsinfo)
  1825. {
  1826. struct nfs4_fsinfo_arg args = {
  1827. .fh = fhandle,
  1828. .bitmask = server->attr_bitmask,
  1829. };
  1830. struct rpc_message msg = {
  1831. .rpc_proc = &nfs4_procedures[NFSPROC4_CLNT_FSINFO],
  1832. .rpc_argp = &args,
  1833. .rpc_resp = fsinfo,
  1834. };
  1835. return rpc_call_sync(server->client, &msg, 0);
  1836. }
  1837. static int nfs4_do_fsinfo(struct nfs_server *server, struct nfs_fh *fhandle, struct nfs_fsinfo *fsinfo)
  1838. {
  1839. struct nfs4_exception exception = { };
  1840. int err;
  1841. do {
  1842. err = nfs4_handle_exception(server,
  1843. _nfs4_do_fsinfo(server, fhandle, fsinfo),
  1844. &exception);
  1845. } while (exception.retry);
  1846. return err;
  1847. }
  1848. static int nfs4_proc_fsinfo(struct nfs_server *server, struct nfs_fh *fhandle, struct nfs_fsinfo *fsinfo)
  1849. {
  1850. fsinfo->fattr->valid = 0;
  1851. return nfs4_do_fsinfo(server, fhandle, fsinfo);
  1852. }
  1853. static int _nfs4_proc_pathconf(struct nfs_server *server, struct nfs_fh *fhandle,
  1854. struct nfs_pathconf *pathconf)
  1855. {
  1856. struct nfs4_pathconf_arg args = {
  1857. .fh = fhandle,
  1858. .bitmask = server->attr_bitmask,
  1859. };
  1860. struct rpc_message msg = {
  1861. .rpc_proc = &nfs4_procedures[NFSPROC4_CLNT_PATHCONF],
  1862. .rpc_argp = &args,
  1863. .rpc_resp = pathconf,
  1864. };
  1865. /* None of the pathconf attributes are mandatory to implement */
  1866. if ((args.bitmask[0] & nfs4_pathconf_bitmap[0]) == 0) {
  1867. memset(pathconf, 0, sizeof(*pathconf));
  1868. return 0;
  1869. }
  1870. pathconf->fattr->valid = 0;
  1871. return rpc_call_sync(server->client, &msg, 0);
  1872. }
  1873. static int nfs4_proc_pathconf(struct nfs_server *server, struct nfs_fh *fhandle,
  1874. struct nfs_pathconf *pathconf)
  1875. {
  1876. struct nfs4_exception exception = { };
  1877. int err;
  1878. do {
  1879. err = nfs4_handle_exception(server,
  1880. _nfs4_proc_pathconf(server, fhandle, pathconf),
  1881. &exception);
  1882. } while (exception.retry);
  1883. return err;
  1884. }
  1885. static void
  1886. nfs4_read_done(struct rpc_task *task)
  1887. {
  1888. struct nfs_read_data *data = (struct nfs_read_data *) task->tk_calldata;
  1889. struct inode *inode = data->inode;
  1890. if (nfs4_async_handle_error(task, NFS_SERVER(inode)) == -EAGAIN) {
  1891. rpc_restart_call(task);
  1892. return;
  1893. }
  1894. if (task->tk_status > 0)
  1895. renew_lease(NFS_SERVER(inode), data->timestamp);
  1896. /* Call back common NFS readpage processing */
  1897. nfs_readpage_result(task);
  1898. }
  1899. static void
  1900. nfs4_proc_read_setup(struct nfs_read_data *data)
  1901. {
  1902. struct rpc_task *task = &data->task;
  1903. struct rpc_message msg = {
  1904. .rpc_proc = &nfs4_procedures[NFSPROC4_CLNT_READ],
  1905. .rpc_argp = &data->args,
  1906. .rpc_resp = &data->res,
  1907. .rpc_cred = data->cred,
  1908. };
  1909. struct inode *inode = data->inode;
  1910. int flags;
  1911. data->timestamp = jiffies;
  1912. /* N.B. Do we need to test? Never called for swapfile inode */
  1913. flags = RPC_TASK_ASYNC | (IS_SWAPFILE(inode)? NFS_RPC_SWAPFLAGS : 0);
  1914. /* Finalize the task. */
  1915. rpc_init_task(task, NFS_CLIENT(inode), nfs4_read_done, flags);
  1916. rpc_call_setup(task, &msg, 0);
  1917. }
  1918. static void
  1919. nfs4_write_done(struct rpc_task *task)
  1920. {
  1921. struct nfs_write_data *data = (struct nfs_write_data *) task->tk_calldata;
  1922. struct inode *inode = data->inode;
  1923. if (nfs4_async_handle_error(task, NFS_SERVER(inode)) == -EAGAIN) {
  1924. rpc_restart_call(task);
  1925. return;
  1926. }
  1927. if (task->tk_status >= 0)
  1928. renew_lease(NFS_SERVER(inode), data->timestamp);
  1929. /* Call back common NFS writeback processing */
  1930. nfs_writeback_done(task);
  1931. }
  1932. static void
  1933. nfs4_proc_write_setup(struct nfs_write_data *data, int how)
  1934. {
  1935. struct rpc_task *task = &data->task;
  1936. struct rpc_message msg = {
  1937. .rpc_proc = &nfs4_procedures[NFSPROC4_CLNT_WRITE],
  1938. .rpc_argp = &data->args,
  1939. .rpc_resp = &data->res,
  1940. .rpc_cred = data->cred,
  1941. };
  1942. struct inode *inode = data->inode;
  1943. int stable;
  1944. int flags;
  1945. if (how & FLUSH_STABLE) {
  1946. if (!NFS_I(inode)->ncommit)
  1947. stable = NFS_FILE_SYNC;
  1948. else
  1949. stable = NFS_DATA_SYNC;
  1950. } else
  1951. stable = NFS_UNSTABLE;
  1952. data->args.stable = stable;
  1953. data->timestamp = jiffies;
  1954. /* Set the initial flags for the task. */
  1955. flags = (how & FLUSH_SYNC) ? 0 : RPC_TASK_ASYNC;
  1956. /* Finalize the task. */
  1957. rpc_init_task(task, NFS_CLIENT(inode), nfs4_write_done, flags);
  1958. rpc_call_setup(task, &msg, 0);
  1959. }
  1960. static void
  1961. nfs4_commit_done(struct rpc_task *task)
  1962. {
  1963. struct nfs_write_data *data = (struct nfs_write_data *) task->tk_calldata;
  1964. struct inode *inode = data->inode;
  1965. if (nfs4_async_handle_error(task, NFS_SERVER(inode)) == -EAGAIN) {
  1966. rpc_restart_call(task);
  1967. return;
  1968. }
  1969. /* Call back common NFS writeback processing */
  1970. nfs_commit_done(task);
  1971. }
  1972. static void
  1973. nfs4_proc_commit_setup(struct nfs_write_data *data, int how)
  1974. {
  1975. struct rpc_task *task = &data->task;
  1976. struct rpc_message msg = {
  1977. .rpc_proc = &nfs4_procedures[NFSPROC4_CLNT_COMMIT],
  1978. .rpc_argp = &data->args,
  1979. .rpc_resp = &data->res,
  1980. .rpc_cred = data->cred,
  1981. };
  1982. struct inode *inode = data->inode;
  1983. int flags;
  1984. /* Set the initial flags for the task. */
  1985. flags = (how & FLUSH_SYNC) ? 0 : RPC_TASK_ASYNC;
  1986. /* Finalize the task. */
  1987. rpc_init_task(task, NFS_CLIENT(inode), nfs4_commit_done, flags);
  1988. rpc_call_setup(task, &msg, 0);
  1989. }
  1990. /*
  1991. * nfs4_proc_async_renew(): This is not one of the nfs_rpc_ops; it is a special
  1992. * standalone procedure for queueing an asynchronous RENEW.
  1993. */
  1994. static void
  1995. renew_done(struct rpc_task *task)
  1996. {
  1997. struct nfs4_client *clp = (struct nfs4_client *)task->tk_msg.rpc_argp;
  1998. unsigned long timestamp = (unsigned long)task->tk_calldata;
  1999. if (task->tk_status < 0) {
  2000. switch (task->tk_status) {
  2001. case -NFS4ERR_STALE_CLIENTID:
  2002. case -NFS4ERR_EXPIRED:
  2003. case -NFS4ERR_CB_PATH_DOWN:
  2004. nfs4_schedule_state_recovery(clp);
  2005. }
  2006. return;
  2007. }
  2008. spin_lock(&clp->cl_lock);
  2009. if (time_before(clp->cl_last_renewal,timestamp))
  2010. clp->cl_last_renewal = timestamp;
  2011. spin_unlock(&clp->cl_lock);
  2012. }
  2013. int
  2014. nfs4_proc_async_renew(struct nfs4_client *clp)
  2015. {
  2016. struct rpc_message msg = {
  2017. .rpc_proc = &nfs4_procedures[NFSPROC4_CLNT_RENEW],
  2018. .rpc_argp = clp,
  2019. .rpc_cred = clp->cl_cred,
  2020. };
  2021. return rpc_call_async(clp->cl_rpcclient, &msg, RPC_TASK_SOFT,
  2022. renew_done, (void *)jiffies);
  2023. }
  2024. int
  2025. nfs4_proc_renew(struct nfs4_client *clp)
  2026. {
  2027. struct rpc_message msg = {
  2028. .rpc_proc = &nfs4_procedures[NFSPROC4_CLNT_RENEW],
  2029. .rpc_argp = clp,
  2030. .rpc_cred = clp->cl_cred,
  2031. };
  2032. unsigned long now = jiffies;
  2033. int status;
  2034. status = rpc_call_sync(clp->cl_rpcclient, &msg, 0);
  2035. if (status < 0)
  2036. return status;
  2037. spin_lock(&clp->cl_lock);
  2038. if (time_before(clp->cl_last_renewal,now))
  2039. clp->cl_last_renewal = now;
  2040. spin_unlock(&clp->cl_lock);
  2041. return 0;
  2042. }
  2043. static inline int nfs4_server_supports_acls(struct nfs_server *server)
  2044. {
  2045. return (server->caps & NFS_CAP_ACLS)
  2046. && (server->acl_bitmask & ACL4_SUPPORT_ALLOW_ACL)
  2047. && (server->acl_bitmask & ACL4_SUPPORT_DENY_ACL);
  2048. }
  2049. /* Assuming that XATTR_SIZE_MAX is a multiple of PAGE_CACHE_SIZE, and that
  2050. * it's OK to put sizeof(void) * (XATTR_SIZE_MAX/PAGE_CACHE_SIZE) bytes on
  2051. * the stack.
  2052. */
  2053. #define NFS4ACL_MAXPAGES (XATTR_SIZE_MAX >> PAGE_CACHE_SHIFT)
  2054. static void buf_to_pages(const void *buf, size_t buflen,
  2055. struct page **pages, unsigned int *pgbase)
  2056. {
  2057. const void *p = buf;
  2058. *pgbase = offset_in_page(buf);
  2059. p -= *pgbase;
  2060. while (p < buf + buflen) {
  2061. *(pages++) = virt_to_page(p);
  2062. p += PAGE_CACHE_SIZE;
  2063. }
  2064. }
  2065. struct nfs4_cached_acl {
  2066. int cached;
  2067. size_t len;
  2068. char data[0];
  2069. };
  2070. static void nfs4_set_cached_acl(struct inode *inode, struct nfs4_cached_acl *acl)
  2071. {
  2072. struct nfs_inode *nfsi = NFS_I(inode);
  2073. spin_lock(&inode->i_lock);
  2074. kfree(nfsi->nfs4_acl);
  2075. nfsi->nfs4_acl = acl;
  2076. spin_unlock(&inode->i_lock);
  2077. }
  2078. static void nfs4_zap_acl_attr(struct inode *inode)
  2079. {
  2080. nfs4_set_cached_acl(inode, NULL);
  2081. }
  2082. static inline ssize_t nfs4_read_cached_acl(struct inode *inode, char *buf, size_t buflen)
  2083. {
  2084. struct nfs_inode *nfsi = NFS_I(inode);
  2085. struct nfs4_cached_acl *acl;
  2086. int ret = -ENOENT;
  2087. spin_lock(&inode->i_lock);
  2088. acl = nfsi->nfs4_acl;
  2089. if (acl == NULL)
  2090. goto out;
  2091. if (buf == NULL) /* user is just asking for length */
  2092. goto out_len;
  2093. if (acl->cached == 0)
  2094. goto out;
  2095. ret = -ERANGE; /* see getxattr(2) man page */
  2096. if (acl->len > buflen)
  2097. goto out;
  2098. memcpy(buf, acl->data, acl->len);
  2099. out_len:
  2100. ret = acl->len;
  2101. out:
  2102. spin_unlock(&inode->i_lock);
  2103. return ret;
  2104. }
  2105. static void nfs4_write_cached_acl(struct inode *inode, const char *buf, size_t acl_len)
  2106. {
  2107. struct nfs4_cached_acl *acl;
  2108. if (buf && acl_len <= PAGE_SIZE) {
  2109. acl = kmalloc(sizeof(*acl) + acl_len, GFP_KERNEL);
  2110. if (acl == NULL)
  2111. goto out;
  2112. acl->cached = 1;
  2113. memcpy(acl->data, buf, acl_len);
  2114. } else {
  2115. acl = kmalloc(sizeof(*acl), GFP_KERNEL);
  2116. if (acl == NULL)
  2117. goto out;
  2118. acl->cached = 0;
  2119. }
  2120. acl->len = acl_len;
  2121. out:
  2122. nfs4_set_cached_acl(inode, acl);
  2123. }
  2124. static inline ssize_t nfs4_get_acl_uncached(struct inode *inode, void *buf, size_t buflen)
  2125. {
  2126. struct page *pages[NFS4ACL_MAXPAGES];
  2127. struct nfs_getaclargs args = {
  2128. .fh = NFS_FH(inode),
  2129. .acl_pages = pages,
  2130. .acl_len = buflen,
  2131. };
  2132. size_t resp_len = buflen;
  2133. void *resp_buf;
  2134. struct rpc_message msg = {
  2135. .rpc_proc = &nfs4_procedures[NFSPROC4_CLNT_GETACL],
  2136. .rpc_argp = &args,
  2137. .rpc_resp = &resp_len,
  2138. };
  2139. struct page *localpage = NULL;
  2140. int ret;
  2141. if (buflen < PAGE_SIZE) {
  2142. /* As long as we're doing a round trip to the server anyway,
  2143. * let's be prepared for a page of acl data. */
  2144. localpage = alloc_page(GFP_KERNEL);
  2145. resp_buf = page_address(localpage);
  2146. if (localpage == NULL)
  2147. return -ENOMEM;
  2148. args.acl_pages[0] = localpage;
  2149. args.acl_pgbase = 0;
  2150. args.acl_len = PAGE_SIZE;
  2151. } else {
  2152. resp_buf = buf;
  2153. buf_to_pages(buf, buflen, args.acl_pages, &args.acl_pgbase);
  2154. }
  2155. ret = rpc_call_sync(NFS_CLIENT(inode), &msg, 0);
  2156. if (ret)
  2157. goto out_free;
  2158. if (resp_len > args.acl_len)
  2159. nfs4_write_cached_acl(inode, NULL, resp_len);
  2160. else
  2161. nfs4_write_cached_acl(inode, resp_buf, resp_len);
  2162. if (buf) {
  2163. ret = -ERANGE;
  2164. if (resp_len > buflen)
  2165. goto out_free;
  2166. if (localpage)
  2167. memcpy(buf, resp_buf, resp_len);
  2168. }
  2169. ret = resp_len;
  2170. out_free:
  2171. if (localpage)
  2172. __free_page(localpage);
  2173. return ret;
  2174. }
  2175. static ssize_t nfs4_proc_get_acl(struct inode *inode, void *buf, size_t buflen)
  2176. {
  2177. struct nfs_server *server = NFS_SERVER(inode);
  2178. int ret;
  2179. if (!nfs4_server_supports_acls(server))
  2180. return -EOPNOTSUPP;
  2181. ret = nfs_revalidate_inode(server, inode);
  2182. if (ret < 0)
  2183. return ret;
  2184. ret = nfs4_read_cached_acl(inode, buf, buflen);
  2185. if (ret != -ENOENT)
  2186. return ret;
  2187. return nfs4_get_acl_uncached(inode, buf, buflen);
  2188. }
  2189. static int nfs4_proc_set_acl(struct inode *inode, const void *buf, size_t buflen)
  2190. {
  2191. struct nfs_server *server = NFS_SERVER(inode);
  2192. struct page *pages[NFS4ACL_MAXPAGES];
  2193. struct nfs_setaclargs arg = {
  2194. .fh = NFS_FH(inode),
  2195. .acl_pages = pages,
  2196. .acl_len = buflen,
  2197. };
  2198. struct rpc_message msg = {
  2199. .rpc_proc = &nfs4_procedures[NFSPROC4_CLNT_SETACL],
  2200. .rpc_argp = &arg,
  2201. .rpc_resp = NULL,
  2202. };
  2203. int ret;
  2204. if (!nfs4_server_supports_acls(server))
  2205. return -EOPNOTSUPP;
  2206. nfs_inode_return_delegation(inode);
  2207. buf_to_pages(buf, buflen, arg.acl_pages, &arg.acl_pgbase);
  2208. ret = rpc_call_sync(NFS_SERVER(inode)->client, &msg, 0);
  2209. if (ret == 0)
  2210. nfs4_write_cached_acl(inode, buf, buflen);
  2211. return ret;
  2212. }
  2213. static int
  2214. nfs4_async_handle_error(struct rpc_task *task, const struct nfs_server *server)
  2215. {
  2216. struct nfs4_client *clp = server->nfs4_state;
  2217. if (!clp || task->tk_status >= 0)
  2218. return 0;
  2219. switch(task->tk_status) {
  2220. case -NFS4ERR_STALE_CLIENTID:
  2221. case -NFS4ERR_STALE_STATEID:
  2222. case -NFS4ERR_EXPIRED:
  2223. rpc_sleep_on(&clp->cl_rpcwaitq, task, NULL, NULL);
  2224. nfs4_schedule_state_recovery(clp);
  2225. if (test_bit(NFS4CLNT_OK, &clp->cl_state))
  2226. rpc_wake_up_task(task);
  2227. task->tk_status = 0;
  2228. return -EAGAIN;
  2229. case -NFS4ERR_GRACE:
  2230. case -NFS4ERR_DELAY:
  2231. rpc_delay(task, NFS4_POLL_RETRY_MAX);
  2232. task->tk_status = 0;
  2233. return -EAGAIN;
  2234. case -NFS4ERR_OLD_STATEID:
  2235. task->tk_status = 0;
  2236. return -EAGAIN;
  2237. }
  2238. task->tk_status = nfs4_map_errors(task->tk_status);
  2239. return 0;
  2240. }
  2241. static int nfs4_wait_clnt_recover(struct rpc_clnt *clnt, struct nfs4_client *clp)
  2242. {
  2243. DEFINE_WAIT(wait);
  2244. sigset_t oldset;
  2245. int interruptible, res = 0;
  2246. might_sleep();
  2247. rpc_clnt_sigmask(clnt, &oldset);
  2248. interruptible = TASK_UNINTERRUPTIBLE;
  2249. if (clnt->cl_intr)
  2250. interruptible = TASK_INTERRUPTIBLE;
  2251. prepare_to_wait(&clp->cl_waitq, &wait, interruptible);
  2252. nfs4_schedule_state_recovery(clp);
  2253. if (clnt->cl_intr && signalled())
  2254. res = -ERESTARTSYS;
  2255. else if (!test_bit(NFS4CLNT_OK, &clp->cl_state))
  2256. schedule();
  2257. finish_wait(&clp->cl_waitq, &wait);
  2258. rpc_clnt_sigunmask(clnt, &oldset);
  2259. return res;
  2260. }
  2261. static int nfs4_delay(struct rpc_clnt *clnt, long *timeout)
  2262. {
  2263. sigset_t oldset;
  2264. int res = 0;
  2265. might_sleep();
  2266. if (*timeout <= 0)
  2267. *timeout = NFS4_POLL_RETRY_MIN;
  2268. if (*timeout > NFS4_POLL_RETRY_MAX)
  2269. *timeout = NFS4_POLL_RETRY_MAX;
  2270. rpc_clnt_sigmask(clnt, &oldset);
  2271. if (clnt->cl_intr) {
  2272. schedule_timeout_interruptible(*timeout);
  2273. if (signalled())
  2274. res = -ERESTARTSYS;
  2275. } else
  2276. schedule_timeout_uninterruptible(*timeout);
  2277. rpc_clnt_sigunmask(clnt, &oldset);
  2278. *timeout <<= 1;
  2279. return res;
  2280. }
  2281. /* This is the error handling routine for processes that are allowed
  2282. * to sleep.
  2283. */
  2284. int nfs4_handle_exception(const struct nfs_server *server, int errorcode, struct nfs4_exception *exception)
  2285. {
  2286. struct nfs4_client *clp = server->nfs4_state;
  2287. int ret = errorcode;
  2288. exception->retry = 0;
  2289. switch(errorcode) {
  2290. case 0:
  2291. return 0;
  2292. case -NFS4ERR_STALE_CLIENTID:
  2293. case -NFS4ERR_STALE_STATEID:
  2294. case -NFS4ERR_EXPIRED:
  2295. ret = nfs4_wait_clnt_recover(server->client, clp);
  2296. if (ret == 0)
  2297. exception->retry = 1;
  2298. break;
  2299. case -NFS4ERR_GRACE:
  2300. case -NFS4ERR_DELAY:
  2301. ret = nfs4_delay(server->client, &exception->timeout);
  2302. if (ret == 0)
  2303. exception->retry = 1;
  2304. break;
  2305. case -NFS4ERR_OLD_STATEID:
  2306. if (ret == 0)
  2307. exception->retry = 1;
  2308. }
  2309. /* We failed to handle the error */
  2310. return nfs4_map_errors(ret);
  2311. }
  2312. int nfs4_proc_setclientid(struct nfs4_client *clp, u32 program, unsigned short port)
  2313. {
  2314. nfs4_verifier sc_verifier;
  2315. struct nfs4_setclientid setclientid = {
  2316. .sc_verifier = &sc_verifier,
  2317. .sc_prog = program,
  2318. };
  2319. struct rpc_message msg = {
  2320. .rpc_proc = &nfs4_procedures[NFSPROC4_CLNT_SETCLIENTID],
  2321. .rpc_argp = &setclientid,
  2322. .rpc_resp = clp,
  2323. .rpc_cred = clp->cl_cred,
  2324. };
  2325. u32 *p;
  2326. int loop = 0;
  2327. int status;
  2328. p = (u32*)sc_verifier.data;
  2329. *p++ = htonl((u32)clp->cl_boot_time.tv_sec);
  2330. *p = htonl((u32)clp->cl_boot_time.tv_nsec);
  2331. for(;;) {
  2332. setclientid.sc_name_len = scnprintf(setclientid.sc_name,
  2333. sizeof(setclientid.sc_name), "%s/%u.%u.%u.%u %s %u",
  2334. clp->cl_ipaddr, NIPQUAD(clp->cl_addr.s_addr),
  2335. clp->cl_cred->cr_ops->cr_name,
  2336. clp->cl_id_uniquifier);
  2337. setclientid.sc_netid_len = scnprintf(setclientid.sc_netid,
  2338. sizeof(setclientid.sc_netid), "tcp");
  2339. setclientid.sc_uaddr_len = scnprintf(setclientid.sc_uaddr,
  2340. sizeof(setclientid.sc_uaddr), "%s.%d.%d",
  2341. clp->cl_ipaddr, port >> 8, port & 255);
  2342. status = rpc_call_sync(clp->cl_rpcclient, &msg, 0);
  2343. if (status != -NFS4ERR_CLID_INUSE)
  2344. break;
  2345. if (signalled())
  2346. break;
  2347. if (loop++ & 1)
  2348. ssleep(clp->cl_lease_time + 1);
  2349. else
  2350. if (++clp->cl_id_uniquifier == 0)
  2351. break;
  2352. }
  2353. return status;
  2354. }
  2355. int
  2356. nfs4_proc_setclientid_confirm(struct nfs4_client *clp)
  2357. {
  2358. struct nfs_fsinfo fsinfo;
  2359. struct rpc_message msg = {
  2360. .rpc_proc = &nfs4_procedures[NFSPROC4_CLNT_SETCLIENTID_CONFIRM],
  2361. .rpc_argp = clp,
  2362. .rpc_resp = &fsinfo,
  2363. .rpc_cred = clp->cl_cred,
  2364. };
  2365. unsigned long now;
  2366. int status;
  2367. now = jiffies;
  2368. status = rpc_call_sync(clp->cl_rpcclient, &msg, 0);
  2369. if (status == 0) {
  2370. spin_lock(&clp->cl_lock);
  2371. clp->cl_lease_time = fsinfo.lease_time * HZ;
  2372. clp->cl_last_renewal = now;
  2373. spin_unlock(&clp->cl_lock);
  2374. }
  2375. return status;
  2376. }
  2377. static int _nfs4_proc_delegreturn(struct inode *inode, struct rpc_cred *cred, const nfs4_stateid *stateid)
  2378. {
  2379. struct nfs4_delegreturnargs args = {
  2380. .fhandle = NFS_FH(inode),
  2381. .stateid = stateid,
  2382. };
  2383. struct rpc_message msg = {
  2384. .rpc_proc = &nfs4_procedures[NFSPROC4_CLNT_DELEGRETURN],
  2385. .rpc_argp = &args,
  2386. .rpc_cred = cred,
  2387. };
  2388. return rpc_call_sync(NFS_CLIENT(inode), &msg, 0);
  2389. }
  2390. int nfs4_proc_delegreturn(struct inode *inode, struct rpc_cred *cred, const nfs4_stateid *stateid)
  2391. {
  2392. struct nfs_server *server = NFS_SERVER(inode);
  2393. struct nfs4_exception exception = { };
  2394. int err;
  2395. do {
  2396. err = _nfs4_proc_delegreturn(inode, cred, stateid);
  2397. switch (err) {
  2398. case -NFS4ERR_STALE_STATEID:
  2399. case -NFS4ERR_EXPIRED:
  2400. nfs4_schedule_state_recovery(server->nfs4_state);
  2401. case 0:
  2402. return 0;
  2403. }
  2404. err = nfs4_handle_exception(server, err, &exception);
  2405. } while (exception.retry);
  2406. return err;
  2407. }
  2408. #define NFS4_LOCK_MINTIMEOUT (1 * HZ)
  2409. #define NFS4_LOCK_MAXTIMEOUT (30 * HZ)
  2410. /*
  2411. * sleep, with exponential backoff, and retry the LOCK operation.
  2412. */
  2413. static unsigned long
  2414. nfs4_set_lock_task_retry(unsigned long timeout)
  2415. {
  2416. schedule_timeout_interruptible(timeout);
  2417. timeout <<= 1;
  2418. if (timeout > NFS4_LOCK_MAXTIMEOUT)
  2419. return NFS4_LOCK_MAXTIMEOUT;
  2420. return timeout;
  2421. }
  2422. static inline int
  2423. nfs4_lck_type(int cmd, struct file_lock *request)
  2424. {
  2425. /* set lock type */
  2426. switch (request->fl_type) {
  2427. case F_RDLCK:
  2428. return IS_SETLKW(cmd) ? NFS4_READW_LT : NFS4_READ_LT;
  2429. case F_WRLCK:
  2430. return IS_SETLKW(cmd) ? NFS4_WRITEW_LT : NFS4_WRITE_LT;
  2431. case F_UNLCK:
  2432. return NFS4_WRITE_LT;
  2433. }
  2434. BUG();
  2435. return 0;
  2436. }
  2437. static inline uint64_t
  2438. nfs4_lck_length(struct file_lock *request)
  2439. {
  2440. if (request->fl_end == OFFSET_MAX)
  2441. return ~(uint64_t)0;
  2442. return request->fl_end - request->fl_start + 1;
  2443. }
  2444. static int _nfs4_proc_getlk(struct nfs4_state *state, int cmd, struct file_lock *request)
  2445. {
  2446. struct inode *inode = state->inode;
  2447. struct nfs_server *server = NFS_SERVER(inode);
  2448. struct nfs4_client *clp = server->nfs4_state;
  2449. struct nfs_lockargs arg = {
  2450. .fh = NFS_FH(inode),
  2451. .type = nfs4_lck_type(cmd, request),
  2452. .offset = request->fl_start,
  2453. .length = nfs4_lck_length(request),
  2454. };
  2455. struct nfs_lockres res = {
  2456. .server = server,
  2457. };
  2458. struct rpc_message msg = {
  2459. .rpc_proc = &nfs4_procedures[NFSPROC4_CLNT_LOCKT],
  2460. .rpc_argp = &arg,
  2461. .rpc_resp = &res,
  2462. .rpc_cred = state->owner->so_cred,
  2463. };
  2464. struct nfs_lowner nlo;
  2465. struct nfs4_lock_state *lsp;
  2466. int status;
  2467. down_read(&clp->cl_sem);
  2468. nlo.clientid = clp->cl_clientid;
  2469. status = nfs4_set_lock_state(state, request);
  2470. if (status != 0)
  2471. goto out;
  2472. lsp = request->fl_u.nfs4_fl.owner;
  2473. nlo.id = lsp->ls_id;
  2474. arg.u.lockt = &nlo;
  2475. status = rpc_call_sync(server->client, &msg, 0);
  2476. if (!status) {
  2477. request->fl_type = F_UNLCK;
  2478. } else if (status == -NFS4ERR_DENIED) {
  2479. int64_t len, start, end;
  2480. start = res.u.denied.offset;
  2481. len = res.u.denied.length;
  2482. end = start + len - 1;
  2483. if (end < 0 || len == 0)
  2484. request->fl_end = OFFSET_MAX;
  2485. else
  2486. request->fl_end = (loff_t)end;
  2487. request->fl_start = (loff_t)start;
  2488. request->fl_type = F_WRLCK;
  2489. if (res.u.denied.type & 1)
  2490. request->fl_type = F_RDLCK;
  2491. request->fl_pid = 0;
  2492. status = 0;
  2493. }
  2494. out:
  2495. up_read(&clp->cl_sem);
  2496. return status;
  2497. }
  2498. static int nfs4_proc_getlk(struct nfs4_state *state, int cmd, struct file_lock *request)
  2499. {
  2500. struct nfs4_exception exception = { };
  2501. int err;
  2502. do {
  2503. err = nfs4_handle_exception(NFS_SERVER(state->inode),
  2504. _nfs4_proc_getlk(state, cmd, request),
  2505. &exception);
  2506. } while (exception.retry);
  2507. return err;
  2508. }
  2509. static int do_vfs_lock(struct file *file, struct file_lock *fl)
  2510. {
  2511. int res = 0;
  2512. switch (fl->fl_flags & (FL_POSIX|FL_FLOCK)) {
  2513. case FL_POSIX:
  2514. res = posix_lock_file_wait(file, fl);
  2515. break;
  2516. case FL_FLOCK:
  2517. res = flock_lock_file_wait(file, fl);
  2518. break;
  2519. default:
  2520. BUG();
  2521. }
  2522. if (res < 0)
  2523. printk(KERN_WARNING "%s: VFS is out of sync with lock manager!\n",
  2524. __FUNCTION__);
  2525. return res;
  2526. }
  2527. struct nfs4_unlockdata {
  2528. struct nfs_lockargs arg;
  2529. struct nfs_locku_opargs luargs;
  2530. struct nfs_lockres res;
  2531. struct nfs4_lock_state *lsp;
  2532. struct nfs_open_context *ctx;
  2533. atomic_t refcount;
  2534. struct completion completion;
  2535. };
  2536. static void nfs4_locku_release_calldata(struct nfs4_unlockdata *calldata)
  2537. {
  2538. if (atomic_dec_and_test(&calldata->refcount)) {
  2539. nfs_free_seqid(calldata->luargs.seqid);
  2540. nfs4_put_lock_state(calldata->lsp);
  2541. put_nfs_open_context(calldata->ctx);
  2542. kfree(calldata);
  2543. }
  2544. }
  2545. static void nfs4_locku_complete(struct nfs4_unlockdata *calldata)
  2546. {
  2547. complete(&calldata->completion);
  2548. nfs4_locku_release_calldata(calldata);
  2549. }
  2550. static void nfs4_locku_done(struct rpc_task *task)
  2551. {
  2552. struct nfs4_unlockdata *calldata = (struct nfs4_unlockdata *)task->tk_calldata;
  2553. nfs_increment_lock_seqid(task->tk_status, calldata->luargs.seqid);
  2554. switch (task->tk_status) {
  2555. case 0:
  2556. memcpy(calldata->lsp->ls_stateid.data,
  2557. calldata->res.u.stateid.data,
  2558. sizeof(calldata->lsp->ls_stateid.data));
  2559. break;
  2560. case -NFS4ERR_STALE_STATEID:
  2561. case -NFS4ERR_EXPIRED:
  2562. nfs4_schedule_state_recovery(calldata->res.server->nfs4_state);
  2563. break;
  2564. default:
  2565. if (nfs4_async_handle_error(task, calldata->res.server) == -EAGAIN) {
  2566. rpc_restart_call(task);
  2567. return;
  2568. }
  2569. }
  2570. nfs4_locku_complete(calldata);
  2571. }
  2572. static void nfs4_locku_begin(struct rpc_task *task)
  2573. {
  2574. struct nfs4_unlockdata *calldata = (struct nfs4_unlockdata *)task->tk_calldata;
  2575. struct rpc_message msg = {
  2576. .rpc_proc = &nfs4_procedures[NFSPROC4_CLNT_LOCKU],
  2577. .rpc_argp = &calldata->arg,
  2578. .rpc_resp = &calldata->res,
  2579. .rpc_cred = calldata->lsp->ls_state->owner->so_cred,
  2580. };
  2581. int status;
  2582. status = nfs_wait_on_sequence(calldata->luargs.seqid, task);
  2583. if (status != 0)
  2584. return;
  2585. if ((calldata->lsp->ls_flags & NFS_LOCK_INITIALIZED) == 0) {
  2586. nfs4_locku_complete(calldata);
  2587. task->tk_exit = NULL;
  2588. rpc_exit(task, 0);
  2589. return;
  2590. }
  2591. rpc_call_setup(task, &msg, 0);
  2592. }
  2593. static int nfs4_proc_unlck(struct nfs4_state *state, int cmd, struct file_lock *request)
  2594. {
  2595. struct nfs4_unlockdata *calldata;
  2596. struct inode *inode = state->inode;
  2597. struct nfs_server *server = NFS_SERVER(inode);
  2598. struct nfs4_lock_state *lsp;
  2599. int status;
  2600. status = nfs4_set_lock_state(state, request);
  2601. if (status != 0)
  2602. return status;
  2603. lsp = request->fl_u.nfs4_fl.owner;
  2604. /* We might have lost the locks! */
  2605. if ((lsp->ls_flags & NFS_LOCK_INITIALIZED) == 0)
  2606. return 0;
  2607. calldata = kmalloc(sizeof(*calldata), GFP_KERNEL);
  2608. if (calldata == NULL)
  2609. return -ENOMEM;
  2610. calldata->luargs.seqid = nfs_alloc_seqid(&lsp->ls_seqid);
  2611. if (calldata->luargs.seqid == NULL) {
  2612. kfree(calldata);
  2613. return -ENOMEM;
  2614. }
  2615. calldata->luargs.stateid = &lsp->ls_stateid;
  2616. calldata->arg.fh = NFS_FH(inode);
  2617. calldata->arg.type = nfs4_lck_type(cmd, request);
  2618. calldata->arg.offset = request->fl_start;
  2619. calldata->arg.length = nfs4_lck_length(request);
  2620. calldata->arg.u.locku = &calldata->luargs;
  2621. calldata->res.server = server;
  2622. calldata->lsp = lsp;
  2623. atomic_inc(&lsp->ls_count);
  2624. /* Ensure we don't close file until we're done freeing locks! */
  2625. calldata->ctx = get_nfs_open_context((struct nfs_open_context*)request->fl_file->private_data);
  2626. atomic_set(&calldata->refcount, 2);
  2627. init_completion(&calldata->completion);
  2628. status = nfs4_call_async(NFS_SERVER(inode)->client, nfs4_locku_begin,
  2629. nfs4_locku_done, calldata);
  2630. if (status == 0)
  2631. wait_for_completion_interruptible(&calldata->completion);
  2632. do_vfs_lock(request->fl_file, request);
  2633. nfs4_locku_release_calldata(calldata);
  2634. return status;
  2635. }
  2636. static int _nfs4_do_setlk(struct nfs4_state *state, int cmd, struct file_lock *request, int reclaim)
  2637. {
  2638. struct inode *inode = state->inode;
  2639. struct nfs_server *server = NFS_SERVER(inode);
  2640. struct nfs4_lock_state *lsp = request->fl_u.nfs4_fl.owner;
  2641. struct nfs_lock_opargs largs = {
  2642. .lock_stateid = &lsp->ls_stateid,
  2643. .open_stateid = &state->stateid,
  2644. .lock_owner = {
  2645. .clientid = server->nfs4_state->cl_clientid,
  2646. .id = lsp->ls_id,
  2647. },
  2648. .reclaim = reclaim,
  2649. };
  2650. struct nfs_lockargs arg = {
  2651. .fh = NFS_FH(inode),
  2652. .type = nfs4_lck_type(cmd, request),
  2653. .offset = request->fl_start,
  2654. .length = nfs4_lck_length(request),
  2655. .u = {
  2656. .lock = &largs,
  2657. },
  2658. };
  2659. struct nfs_lockres res = {
  2660. .server = server,
  2661. };
  2662. struct rpc_message msg = {
  2663. .rpc_proc = &nfs4_procedures[NFSPROC4_CLNT_LOCK],
  2664. .rpc_argp = &arg,
  2665. .rpc_resp = &res,
  2666. .rpc_cred = state->owner->so_cred,
  2667. };
  2668. int status = -ENOMEM;
  2669. largs.lock_seqid = nfs_alloc_seqid(&lsp->ls_seqid);
  2670. if (largs.lock_seqid == NULL)
  2671. return -ENOMEM;
  2672. if (!(lsp->ls_seqid.flags & NFS_SEQID_CONFIRMED)) {
  2673. struct nfs4_state_owner *owner = state->owner;
  2674. largs.open_seqid = nfs_alloc_seqid(&owner->so_seqid);
  2675. if (largs.open_seqid == NULL)
  2676. goto out;
  2677. largs.new_lock_owner = 1;
  2678. status = rpc_call_sync(server->client, &msg, RPC_TASK_NOINTR);
  2679. /* increment open seqid on success, and seqid mutating errors */
  2680. if (largs.new_lock_owner != 0) {
  2681. nfs_increment_open_seqid(status, largs.open_seqid);
  2682. if (status == 0)
  2683. nfs_confirm_seqid(&lsp->ls_seqid, 0);
  2684. }
  2685. nfs_free_seqid(largs.open_seqid);
  2686. } else
  2687. status = rpc_call_sync(server->client, &msg, RPC_TASK_NOINTR);
  2688. /* increment lock seqid on success, and seqid mutating errors*/
  2689. nfs_increment_lock_seqid(status, largs.lock_seqid);
  2690. /* save the returned stateid. */
  2691. if (status == 0) {
  2692. memcpy(lsp->ls_stateid.data, res.u.stateid.data,
  2693. sizeof(lsp->ls_stateid.data));
  2694. lsp->ls_flags |= NFS_LOCK_INITIALIZED;
  2695. } else if (status == -NFS4ERR_DENIED)
  2696. status = -EAGAIN;
  2697. out:
  2698. nfs_free_seqid(largs.lock_seqid);
  2699. return status;
  2700. }
  2701. static int nfs4_lock_reclaim(struct nfs4_state *state, struct file_lock *request)
  2702. {
  2703. struct nfs_server *server = NFS_SERVER(state->inode);
  2704. struct nfs4_exception exception = { };
  2705. int err;
  2706. do {
  2707. err = _nfs4_do_setlk(state, F_SETLK, request, 1);
  2708. if (err != -NFS4ERR_DELAY)
  2709. break;
  2710. nfs4_handle_exception(server, err, &exception);
  2711. } while (exception.retry);
  2712. return err;
  2713. }
  2714. static int nfs4_lock_expired(struct nfs4_state *state, struct file_lock *request)
  2715. {
  2716. struct nfs_server *server = NFS_SERVER(state->inode);
  2717. struct nfs4_exception exception = { };
  2718. int err;
  2719. do {
  2720. err = _nfs4_do_setlk(state, F_SETLK, request, 0);
  2721. if (err != -NFS4ERR_DELAY)
  2722. break;
  2723. nfs4_handle_exception(server, err, &exception);
  2724. } while (exception.retry);
  2725. return err;
  2726. }
  2727. static int _nfs4_proc_setlk(struct nfs4_state *state, int cmd, struct file_lock *request)
  2728. {
  2729. struct nfs4_client *clp = state->owner->so_client;
  2730. int status;
  2731. down_read(&clp->cl_sem);
  2732. status = nfs4_set_lock_state(state, request);
  2733. if (status == 0)
  2734. status = _nfs4_do_setlk(state, cmd, request, 0);
  2735. if (status == 0) {
  2736. /* Note: we always want to sleep here! */
  2737. request->fl_flags |= FL_SLEEP;
  2738. if (do_vfs_lock(request->fl_file, request) < 0)
  2739. printk(KERN_WARNING "%s: VFS is out of sync with lock manager!\n", __FUNCTION__);
  2740. }
  2741. up_read(&clp->cl_sem);
  2742. return status;
  2743. }
  2744. static int nfs4_proc_setlk(struct nfs4_state *state, int cmd, struct file_lock *request)
  2745. {
  2746. struct nfs4_exception exception = { };
  2747. int err;
  2748. do {
  2749. err = nfs4_handle_exception(NFS_SERVER(state->inode),
  2750. _nfs4_proc_setlk(state, cmd, request),
  2751. &exception);
  2752. } while (exception.retry);
  2753. return err;
  2754. }
  2755. static int
  2756. nfs4_proc_lock(struct file *filp, int cmd, struct file_lock *request)
  2757. {
  2758. struct nfs_open_context *ctx;
  2759. struct nfs4_state *state;
  2760. unsigned long timeout = NFS4_LOCK_MINTIMEOUT;
  2761. int status;
  2762. /* verify open state */
  2763. ctx = (struct nfs_open_context *)filp->private_data;
  2764. state = ctx->state;
  2765. if (request->fl_start < 0 || request->fl_end < 0)
  2766. return -EINVAL;
  2767. if (IS_GETLK(cmd))
  2768. return nfs4_proc_getlk(state, F_GETLK, request);
  2769. if (!(IS_SETLK(cmd) || IS_SETLKW(cmd)))
  2770. return -EINVAL;
  2771. if (request->fl_type == F_UNLCK)
  2772. return nfs4_proc_unlck(state, cmd, request);
  2773. do {
  2774. status = nfs4_proc_setlk(state, cmd, request);
  2775. if ((status != -EAGAIN) || IS_SETLK(cmd))
  2776. break;
  2777. timeout = nfs4_set_lock_task_retry(timeout);
  2778. status = -ERESTARTSYS;
  2779. if (signalled())
  2780. break;
  2781. } while(status < 0);
  2782. return status;
  2783. }
  2784. #define XATTR_NAME_NFSV4_ACL "system.nfs4_acl"
  2785. int nfs4_setxattr(struct dentry *dentry, const char *key, const void *buf,
  2786. size_t buflen, int flags)
  2787. {
  2788. struct inode *inode = dentry->d_inode;
  2789. if (strcmp(key, XATTR_NAME_NFSV4_ACL) != 0)
  2790. return -EOPNOTSUPP;
  2791. if (!S_ISREG(inode->i_mode) &&
  2792. (!S_ISDIR(inode->i_mode) || inode->i_mode & S_ISVTX))
  2793. return -EPERM;
  2794. return nfs4_proc_set_acl(inode, buf, buflen);
  2795. }
  2796. /* The getxattr man page suggests returning -ENODATA for unknown attributes,
  2797. * and that's what we'll do for e.g. user attributes that haven't been set.
  2798. * But we'll follow ext2/ext3's lead by returning -EOPNOTSUPP for unsupported
  2799. * attributes in kernel-managed attribute namespaces. */
  2800. ssize_t nfs4_getxattr(struct dentry *dentry, const char *key, void *buf,
  2801. size_t buflen)
  2802. {
  2803. struct inode *inode = dentry->d_inode;
  2804. if (strcmp(key, XATTR_NAME_NFSV4_ACL) != 0)
  2805. return -EOPNOTSUPP;
  2806. return nfs4_proc_get_acl(inode, buf, buflen);
  2807. }
  2808. ssize_t nfs4_listxattr(struct dentry *dentry, char *buf, size_t buflen)
  2809. {
  2810. size_t len = strlen(XATTR_NAME_NFSV4_ACL) + 1;
  2811. if (buf && buflen < len)
  2812. return -ERANGE;
  2813. if (buf)
  2814. memcpy(buf, XATTR_NAME_NFSV4_ACL, len);
  2815. return len;
  2816. }
  2817. struct nfs4_state_recovery_ops nfs4_reboot_recovery_ops = {
  2818. .recover_open = nfs4_open_reclaim,
  2819. .recover_lock = nfs4_lock_reclaim,
  2820. };
  2821. struct nfs4_state_recovery_ops nfs4_network_partition_recovery_ops = {
  2822. .recover_open = nfs4_open_expired,
  2823. .recover_lock = nfs4_lock_expired,
  2824. };
  2825. static struct inode_operations nfs4_file_inode_operations = {
  2826. .permission = nfs_permission,
  2827. .getattr = nfs_getattr,
  2828. .setattr = nfs_setattr,
  2829. .getxattr = nfs4_getxattr,
  2830. .setxattr = nfs4_setxattr,
  2831. .listxattr = nfs4_listxattr,
  2832. };
  2833. struct nfs_rpc_ops nfs_v4_clientops = {
  2834. .version = 4, /* protocol version */
  2835. .dentry_ops = &nfs4_dentry_operations,
  2836. .dir_inode_ops = &nfs4_dir_inode_operations,
  2837. .file_inode_ops = &nfs4_file_inode_operations,
  2838. .getroot = nfs4_proc_get_root,
  2839. .getattr = nfs4_proc_getattr,
  2840. .setattr = nfs4_proc_setattr,
  2841. .lookup = nfs4_proc_lookup,
  2842. .access = nfs4_proc_access,
  2843. .readlink = nfs4_proc_readlink,
  2844. .read = nfs4_proc_read,
  2845. .write = nfs4_proc_write,
  2846. .commit = nfs4_proc_commit,
  2847. .create = nfs4_proc_create,
  2848. .remove = nfs4_proc_remove,
  2849. .unlink_setup = nfs4_proc_unlink_setup,
  2850. .unlink_done = nfs4_proc_unlink_done,
  2851. .rename = nfs4_proc_rename,
  2852. .link = nfs4_proc_link,
  2853. .symlink = nfs4_proc_symlink,
  2854. .mkdir = nfs4_proc_mkdir,
  2855. .rmdir = nfs4_proc_remove,
  2856. .readdir = nfs4_proc_readdir,
  2857. .mknod = nfs4_proc_mknod,
  2858. .statfs = nfs4_proc_statfs,
  2859. .fsinfo = nfs4_proc_fsinfo,
  2860. .pathconf = nfs4_proc_pathconf,
  2861. .decode_dirent = nfs4_decode_dirent,
  2862. .read_setup = nfs4_proc_read_setup,
  2863. .write_setup = nfs4_proc_write_setup,
  2864. .commit_setup = nfs4_proc_commit_setup,
  2865. .file_open = nfs_open,
  2866. .file_release = nfs_release,
  2867. .lock = nfs4_proc_lock,
  2868. .clear_acl_cache = nfs4_zap_acl_attr,
  2869. };
  2870. /*
  2871. * Local variables:
  2872. * c-basic-offset: 8
  2873. * End:
  2874. */