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/fs/afs/fsclient.c

https://github.com/mstsirkin/linux
C | 1905 lines | 1392 code | 295 blank | 218 comment | 132 complexity | fb443b3426ebdc6bfc852c3f9fcccac4 MD5 | raw file
  1. /* AFS File Server client stubs
  2. *
  3. * Copyright (C) 2002, 2007 Red Hat, Inc. All Rights Reserved.
  4. * Written by David Howells (dhowells@redhat.com)
  5. *
  6. * This program is free software; you can redistribute it and/or
  7. * modify it under the terms of the GNU General Public License
  8. * as published by the Free Software Foundation; either version
  9. * 2 of the License, or (at your option) any later version.
  10. */
  11. #include <linux/init.h>
  12. #include <linux/slab.h>
  13. #include <linux/sched.h>
  14. #include <linux/circ_buf.h>
  15. #include "internal.h"
  16. #include "afs_fs.h"
  17. /*
  18. * decode an AFSFid block
  19. */
  20. static void xdr_decode_AFSFid(const __be32 **_bp, struct afs_fid *fid)
  21. {
  22. const __be32 *bp = *_bp;
  23. fid->vid = ntohl(*bp++);
  24. fid->vnode = ntohl(*bp++);
  25. fid->unique = ntohl(*bp++);
  26. *_bp = bp;
  27. }
  28. /*
  29. * decode an AFSFetchStatus block
  30. */
  31. static void xdr_decode_AFSFetchStatus(const __be32 **_bp,
  32. struct afs_file_status *status,
  33. struct afs_vnode *vnode,
  34. afs_dataversion_t *store_version)
  35. {
  36. afs_dataversion_t expected_version;
  37. const __be32 *bp = *_bp;
  38. umode_t mode;
  39. u64 data_version, size;
  40. u32 changed = 0; /* becomes non-zero if ctime-type changes seen */
  41. #define EXTRACT(DST) \
  42. do { \
  43. u32 x = ntohl(*bp++); \
  44. changed |= DST - x; \
  45. DST = x; \
  46. } while (0)
  47. status->if_version = ntohl(*bp++);
  48. EXTRACT(status->type);
  49. EXTRACT(status->nlink);
  50. size = ntohl(*bp++);
  51. data_version = ntohl(*bp++);
  52. EXTRACT(status->author);
  53. EXTRACT(status->owner);
  54. EXTRACT(status->caller_access); /* call ticket dependent */
  55. EXTRACT(status->anon_access);
  56. EXTRACT(status->mode);
  57. EXTRACT(status->parent.vnode);
  58. EXTRACT(status->parent.unique);
  59. bp++; /* seg size */
  60. status->mtime_client = ntohl(*bp++);
  61. status->mtime_server = ntohl(*bp++);
  62. EXTRACT(status->group);
  63. bp++; /* sync counter */
  64. data_version |= (u64) ntohl(*bp++) << 32;
  65. EXTRACT(status->lock_count);
  66. size |= (u64) ntohl(*bp++) << 32;
  67. bp++; /* spare 4 */
  68. *_bp = bp;
  69. if (size != status->size) {
  70. status->size = size;
  71. changed |= true;
  72. }
  73. status->mode &= S_IALLUGO;
  74. _debug("vnode time %lx, %lx",
  75. status->mtime_client, status->mtime_server);
  76. if (vnode) {
  77. status->parent.vid = vnode->fid.vid;
  78. if (changed && !test_bit(AFS_VNODE_UNSET, &vnode->flags)) {
  79. _debug("vnode changed");
  80. i_size_write(&vnode->vfs_inode, size);
  81. vnode->vfs_inode.i_uid = status->owner;
  82. vnode->vfs_inode.i_gid = status->group;
  83. vnode->vfs_inode.i_generation = vnode->fid.unique;
  84. vnode->vfs_inode.i_nlink = status->nlink;
  85. mode = vnode->vfs_inode.i_mode;
  86. mode &= ~S_IALLUGO;
  87. mode |= status->mode;
  88. barrier();
  89. vnode->vfs_inode.i_mode = mode;
  90. }
  91. vnode->vfs_inode.i_ctime.tv_sec = status->mtime_server;
  92. vnode->vfs_inode.i_mtime = vnode->vfs_inode.i_ctime;
  93. vnode->vfs_inode.i_atime = vnode->vfs_inode.i_ctime;
  94. vnode->vfs_inode.i_version = data_version;
  95. }
  96. expected_version = status->data_version;
  97. if (store_version)
  98. expected_version = *store_version;
  99. if (expected_version != data_version) {
  100. status->data_version = data_version;
  101. if (vnode && !test_bit(AFS_VNODE_UNSET, &vnode->flags)) {
  102. _debug("vnode modified %llx on {%x:%u}",
  103. (unsigned long long) data_version,
  104. vnode->fid.vid, vnode->fid.vnode);
  105. set_bit(AFS_VNODE_MODIFIED, &vnode->flags);
  106. set_bit(AFS_VNODE_ZAP_DATA, &vnode->flags);
  107. }
  108. } else if (store_version) {
  109. status->data_version = data_version;
  110. }
  111. }
  112. /*
  113. * decode an AFSCallBack block
  114. */
  115. static void xdr_decode_AFSCallBack(const __be32 **_bp, struct afs_vnode *vnode)
  116. {
  117. const __be32 *bp = *_bp;
  118. vnode->cb_version = ntohl(*bp++);
  119. vnode->cb_expiry = ntohl(*bp++);
  120. vnode->cb_type = ntohl(*bp++);
  121. vnode->cb_expires = vnode->cb_expiry + get_seconds();
  122. *_bp = bp;
  123. }
  124. static void xdr_decode_AFSCallBack_raw(const __be32 **_bp,
  125. struct afs_callback *cb)
  126. {
  127. const __be32 *bp = *_bp;
  128. cb->version = ntohl(*bp++);
  129. cb->expiry = ntohl(*bp++);
  130. cb->type = ntohl(*bp++);
  131. *_bp = bp;
  132. }
  133. /*
  134. * decode an AFSVolSync block
  135. */
  136. static void xdr_decode_AFSVolSync(const __be32 **_bp,
  137. struct afs_volsync *volsync)
  138. {
  139. const __be32 *bp = *_bp;
  140. volsync->creation = ntohl(*bp++);
  141. bp++; /* spare2 */
  142. bp++; /* spare3 */
  143. bp++; /* spare4 */
  144. bp++; /* spare5 */
  145. bp++; /* spare6 */
  146. *_bp = bp;
  147. }
  148. /*
  149. * encode the requested attributes into an AFSStoreStatus block
  150. */
  151. static void xdr_encode_AFS_StoreStatus(__be32 **_bp, struct iattr *attr)
  152. {
  153. __be32 *bp = *_bp;
  154. u32 mask = 0, mtime = 0, owner = 0, group = 0, mode = 0;
  155. mask = 0;
  156. if (attr->ia_valid & ATTR_MTIME) {
  157. mask |= AFS_SET_MTIME;
  158. mtime = attr->ia_mtime.tv_sec;
  159. }
  160. if (attr->ia_valid & ATTR_UID) {
  161. mask |= AFS_SET_OWNER;
  162. owner = attr->ia_uid;
  163. }
  164. if (attr->ia_valid & ATTR_GID) {
  165. mask |= AFS_SET_GROUP;
  166. group = attr->ia_gid;
  167. }
  168. if (attr->ia_valid & ATTR_MODE) {
  169. mask |= AFS_SET_MODE;
  170. mode = attr->ia_mode & S_IALLUGO;
  171. }
  172. *bp++ = htonl(mask);
  173. *bp++ = htonl(mtime);
  174. *bp++ = htonl(owner);
  175. *bp++ = htonl(group);
  176. *bp++ = htonl(mode);
  177. *bp++ = 0; /* segment size */
  178. *_bp = bp;
  179. }
  180. /*
  181. * decode an AFSFetchVolumeStatus block
  182. */
  183. static void xdr_decode_AFSFetchVolumeStatus(const __be32 **_bp,
  184. struct afs_volume_status *vs)
  185. {
  186. const __be32 *bp = *_bp;
  187. vs->vid = ntohl(*bp++);
  188. vs->parent_id = ntohl(*bp++);
  189. vs->online = ntohl(*bp++);
  190. vs->in_service = ntohl(*bp++);
  191. vs->blessed = ntohl(*bp++);
  192. vs->needs_salvage = ntohl(*bp++);
  193. vs->type = ntohl(*bp++);
  194. vs->min_quota = ntohl(*bp++);
  195. vs->max_quota = ntohl(*bp++);
  196. vs->blocks_in_use = ntohl(*bp++);
  197. vs->part_blocks_avail = ntohl(*bp++);
  198. vs->part_max_blocks = ntohl(*bp++);
  199. *_bp = bp;
  200. }
  201. /*
  202. * deliver reply data to an FS.FetchStatus
  203. */
  204. static int afs_deliver_fs_fetch_status(struct afs_call *call,
  205. struct sk_buff *skb, bool last)
  206. {
  207. struct afs_vnode *vnode = call->reply;
  208. const __be32 *bp;
  209. _enter(",,%u", last);
  210. afs_transfer_reply(call, skb);
  211. if (!last)
  212. return 0;
  213. if (call->reply_size != call->reply_max)
  214. return -EBADMSG;
  215. /* unmarshall the reply once we've received all of it */
  216. bp = call->buffer;
  217. xdr_decode_AFSFetchStatus(&bp, &vnode->status, vnode, NULL);
  218. xdr_decode_AFSCallBack(&bp, vnode);
  219. if (call->reply2)
  220. xdr_decode_AFSVolSync(&bp, call->reply2);
  221. _leave(" = 0 [done]");
  222. return 0;
  223. }
  224. /*
  225. * FS.FetchStatus operation type
  226. */
  227. static const struct afs_call_type afs_RXFSFetchStatus = {
  228. .name = "FS.FetchStatus",
  229. .deliver = afs_deliver_fs_fetch_status,
  230. .abort_to_error = afs_abort_to_error,
  231. .destructor = afs_flat_call_destructor,
  232. };
  233. /*
  234. * fetch the status information for a file
  235. */
  236. int afs_fs_fetch_file_status(struct afs_server *server,
  237. struct key *key,
  238. struct afs_vnode *vnode,
  239. struct afs_volsync *volsync,
  240. const struct afs_wait_mode *wait_mode)
  241. {
  242. struct afs_call *call;
  243. __be32 *bp;
  244. _enter(",%x,{%x:%u},,",
  245. key_serial(key), vnode->fid.vid, vnode->fid.vnode);
  246. call = afs_alloc_flat_call(&afs_RXFSFetchStatus, 16, (21 + 3 + 6) * 4);
  247. if (!call)
  248. return -ENOMEM;
  249. call->key = key;
  250. call->reply = vnode;
  251. call->reply2 = volsync;
  252. call->service_id = FS_SERVICE;
  253. call->port = htons(AFS_FS_PORT);
  254. /* marshall the parameters */
  255. bp = call->request;
  256. bp[0] = htonl(FSFETCHSTATUS);
  257. bp[1] = htonl(vnode->fid.vid);
  258. bp[2] = htonl(vnode->fid.vnode);
  259. bp[3] = htonl(vnode->fid.unique);
  260. return afs_make_call(&server->addr, call, GFP_NOFS, wait_mode);
  261. }
  262. /*
  263. * deliver reply data to an FS.FetchData
  264. */
  265. static int afs_deliver_fs_fetch_data(struct afs_call *call,
  266. struct sk_buff *skb, bool last)
  267. {
  268. struct afs_vnode *vnode = call->reply;
  269. const __be32 *bp;
  270. struct page *page;
  271. void *buffer;
  272. int ret;
  273. _enter("{%u},{%u},%d", call->unmarshall, skb->len, last);
  274. switch (call->unmarshall) {
  275. case 0:
  276. call->offset = 0;
  277. call->unmarshall++;
  278. if (call->operation_ID != FSFETCHDATA64) {
  279. call->unmarshall++;
  280. goto no_msw;
  281. }
  282. /* extract the upper part of the returned data length of an
  283. * FSFETCHDATA64 op (which should always be 0 using this
  284. * client) */
  285. case 1:
  286. _debug("extract data length (MSW)");
  287. ret = afs_extract_data(call, skb, last, &call->tmp, 4);
  288. switch (ret) {
  289. case 0: break;
  290. case -EAGAIN: return 0;
  291. default: return ret;
  292. }
  293. call->count = ntohl(call->tmp);
  294. _debug("DATA length MSW: %u", call->count);
  295. if (call->count > 0)
  296. return -EBADMSG;
  297. call->offset = 0;
  298. call->unmarshall++;
  299. no_msw:
  300. /* extract the returned data length */
  301. case 2:
  302. _debug("extract data length");
  303. ret = afs_extract_data(call, skb, last, &call->tmp, 4);
  304. switch (ret) {
  305. case 0: break;
  306. case -EAGAIN: return 0;
  307. default: return ret;
  308. }
  309. call->count = ntohl(call->tmp);
  310. _debug("DATA length: %u", call->count);
  311. if (call->count > PAGE_SIZE)
  312. return -EBADMSG;
  313. call->offset = 0;
  314. call->unmarshall++;
  315. /* extract the returned data */
  316. case 3:
  317. _debug("extract data");
  318. if (call->count > 0) {
  319. page = call->reply3;
  320. buffer = kmap_atomic(page, KM_USER0);
  321. ret = afs_extract_data(call, skb, last, buffer,
  322. call->count);
  323. kunmap_atomic(buffer, KM_USER0);
  324. switch (ret) {
  325. case 0: break;
  326. case -EAGAIN: return 0;
  327. default: return ret;
  328. }
  329. }
  330. call->offset = 0;
  331. call->unmarshall++;
  332. /* extract the metadata */
  333. case 4:
  334. ret = afs_extract_data(call, skb, last, call->buffer,
  335. (21 + 3 + 6) * 4);
  336. switch (ret) {
  337. case 0: break;
  338. case -EAGAIN: return 0;
  339. default: return ret;
  340. }
  341. bp = call->buffer;
  342. xdr_decode_AFSFetchStatus(&bp, &vnode->status, vnode, NULL);
  343. xdr_decode_AFSCallBack(&bp, vnode);
  344. if (call->reply2)
  345. xdr_decode_AFSVolSync(&bp, call->reply2);
  346. call->offset = 0;
  347. call->unmarshall++;
  348. case 5:
  349. _debug("trailer");
  350. if (skb->len != 0)
  351. return -EBADMSG;
  352. break;
  353. }
  354. if (!last)
  355. return 0;
  356. if (call->count < PAGE_SIZE) {
  357. _debug("clear");
  358. page = call->reply3;
  359. buffer = kmap_atomic(page, KM_USER0);
  360. memset(buffer + call->count, 0, PAGE_SIZE - call->count);
  361. kunmap_atomic(buffer, KM_USER0);
  362. }
  363. _leave(" = 0 [done]");
  364. return 0;
  365. }
  366. /*
  367. * FS.FetchData operation type
  368. */
  369. static const struct afs_call_type afs_RXFSFetchData = {
  370. .name = "FS.FetchData",
  371. .deliver = afs_deliver_fs_fetch_data,
  372. .abort_to_error = afs_abort_to_error,
  373. .destructor = afs_flat_call_destructor,
  374. };
  375. static const struct afs_call_type afs_RXFSFetchData64 = {
  376. .name = "FS.FetchData64",
  377. .deliver = afs_deliver_fs_fetch_data,
  378. .abort_to_error = afs_abort_to_error,
  379. .destructor = afs_flat_call_destructor,
  380. };
  381. /*
  382. * fetch data from a very large file
  383. */
  384. static int afs_fs_fetch_data64(struct afs_server *server,
  385. struct key *key,
  386. struct afs_vnode *vnode,
  387. off_t offset, size_t length,
  388. struct page *buffer,
  389. const struct afs_wait_mode *wait_mode)
  390. {
  391. struct afs_call *call;
  392. __be32 *bp;
  393. _enter("");
  394. ASSERTCMP(length, <, ULONG_MAX);
  395. call = afs_alloc_flat_call(&afs_RXFSFetchData64, 32, (21 + 3 + 6) * 4);
  396. if (!call)
  397. return -ENOMEM;
  398. call->key = key;
  399. call->reply = vnode;
  400. call->reply2 = NULL; /* volsync */
  401. call->reply3 = buffer;
  402. call->service_id = FS_SERVICE;
  403. call->port = htons(AFS_FS_PORT);
  404. call->operation_ID = FSFETCHDATA64;
  405. /* marshall the parameters */
  406. bp = call->request;
  407. bp[0] = htonl(FSFETCHDATA64);
  408. bp[1] = htonl(vnode->fid.vid);
  409. bp[2] = htonl(vnode->fid.vnode);
  410. bp[3] = htonl(vnode->fid.unique);
  411. bp[4] = htonl(upper_32_bits(offset));
  412. bp[5] = htonl((u32) offset);
  413. bp[6] = 0;
  414. bp[7] = htonl((u32) length);
  415. return afs_make_call(&server->addr, call, GFP_NOFS, wait_mode);
  416. }
  417. /*
  418. * fetch data from a file
  419. */
  420. int afs_fs_fetch_data(struct afs_server *server,
  421. struct key *key,
  422. struct afs_vnode *vnode,
  423. off_t offset, size_t length,
  424. struct page *buffer,
  425. const struct afs_wait_mode *wait_mode)
  426. {
  427. struct afs_call *call;
  428. __be32 *bp;
  429. if (upper_32_bits(offset) || upper_32_bits(offset + length))
  430. return afs_fs_fetch_data64(server, key, vnode, offset, length,
  431. buffer, wait_mode);
  432. _enter("");
  433. call = afs_alloc_flat_call(&afs_RXFSFetchData, 24, (21 + 3 + 6) * 4);
  434. if (!call)
  435. return -ENOMEM;
  436. call->key = key;
  437. call->reply = vnode;
  438. call->reply2 = NULL; /* volsync */
  439. call->reply3 = buffer;
  440. call->service_id = FS_SERVICE;
  441. call->port = htons(AFS_FS_PORT);
  442. call->operation_ID = FSFETCHDATA;
  443. /* marshall the parameters */
  444. bp = call->request;
  445. bp[0] = htonl(FSFETCHDATA);
  446. bp[1] = htonl(vnode->fid.vid);
  447. bp[2] = htonl(vnode->fid.vnode);
  448. bp[3] = htonl(vnode->fid.unique);
  449. bp[4] = htonl(offset);
  450. bp[5] = htonl(length);
  451. return afs_make_call(&server->addr, call, GFP_NOFS, wait_mode);
  452. }
  453. /*
  454. * deliver reply data to an FS.GiveUpCallBacks
  455. */
  456. static int afs_deliver_fs_give_up_callbacks(struct afs_call *call,
  457. struct sk_buff *skb, bool last)
  458. {
  459. _enter(",{%u},%d", skb->len, last);
  460. if (skb->len > 0)
  461. return -EBADMSG; /* shouldn't be any reply data */
  462. return 0;
  463. }
  464. /*
  465. * FS.GiveUpCallBacks operation type
  466. */
  467. static const struct afs_call_type afs_RXFSGiveUpCallBacks = {
  468. .name = "FS.GiveUpCallBacks",
  469. .deliver = afs_deliver_fs_give_up_callbacks,
  470. .abort_to_error = afs_abort_to_error,
  471. .destructor = afs_flat_call_destructor,
  472. };
  473. /*
  474. * give up a set of callbacks
  475. * - the callbacks are held in the server->cb_break ring
  476. */
  477. int afs_fs_give_up_callbacks(struct afs_server *server,
  478. const struct afs_wait_mode *wait_mode)
  479. {
  480. struct afs_call *call;
  481. size_t ncallbacks;
  482. __be32 *bp, *tp;
  483. int loop;
  484. ncallbacks = CIRC_CNT(server->cb_break_head, server->cb_break_tail,
  485. ARRAY_SIZE(server->cb_break));
  486. _enter("{%zu},", ncallbacks);
  487. if (ncallbacks == 0)
  488. return 0;
  489. if (ncallbacks > AFSCBMAX)
  490. ncallbacks = AFSCBMAX;
  491. _debug("break %zu callbacks", ncallbacks);
  492. call = afs_alloc_flat_call(&afs_RXFSGiveUpCallBacks,
  493. 12 + ncallbacks * 6 * 4, 0);
  494. if (!call)
  495. return -ENOMEM;
  496. call->service_id = FS_SERVICE;
  497. call->port = htons(AFS_FS_PORT);
  498. /* marshall the parameters */
  499. bp = call->request;
  500. tp = bp + 2 + ncallbacks * 3;
  501. *bp++ = htonl(FSGIVEUPCALLBACKS);
  502. *bp++ = htonl(ncallbacks);
  503. *tp++ = htonl(ncallbacks);
  504. atomic_sub(ncallbacks, &server->cb_break_n);
  505. for (loop = ncallbacks; loop > 0; loop--) {
  506. struct afs_callback *cb =
  507. &server->cb_break[server->cb_break_tail];
  508. *bp++ = htonl(cb->fid.vid);
  509. *bp++ = htonl(cb->fid.vnode);
  510. *bp++ = htonl(cb->fid.unique);
  511. *tp++ = htonl(cb->version);
  512. *tp++ = htonl(cb->expiry);
  513. *tp++ = htonl(cb->type);
  514. smp_mb();
  515. server->cb_break_tail =
  516. (server->cb_break_tail + 1) &
  517. (ARRAY_SIZE(server->cb_break) - 1);
  518. }
  519. ASSERT(ncallbacks > 0);
  520. wake_up_nr(&server->cb_break_waitq, ncallbacks);
  521. return afs_make_call(&server->addr, call, GFP_NOFS, wait_mode);
  522. }
  523. /*
  524. * deliver reply data to an FS.CreateFile or an FS.MakeDir
  525. */
  526. static int afs_deliver_fs_create_vnode(struct afs_call *call,
  527. struct sk_buff *skb, bool last)
  528. {
  529. struct afs_vnode *vnode = call->reply;
  530. const __be32 *bp;
  531. _enter("{%u},{%u},%d", call->unmarshall, skb->len, last);
  532. afs_transfer_reply(call, skb);
  533. if (!last)
  534. return 0;
  535. if (call->reply_size != call->reply_max)
  536. return -EBADMSG;
  537. /* unmarshall the reply once we've received all of it */
  538. bp = call->buffer;
  539. xdr_decode_AFSFid(&bp, call->reply2);
  540. xdr_decode_AFSFetchStatus(&bp, call->reply3, NULL, NULL);
  541. xdr_decode_AFSFetchStatus(&bp, &vnode->status, vnode, NULL);
  542. xdr_decode_AFSCallBack_raw(&bp, call->reply4);
  543. /* xdr_decode_AFSVolSync(&bp, call->replyX); */
  544. _leave(" = 0 [done]");
  545. return 0;
  546. }
  547. /*
  548. * FS.CreateFile and FS.MakeDir operation type
  549. */
  550. static const struct afs_call_type afs_RXFSCreateXXXX = {
  551. .name = "FS.CreateXXXX",
  552. .deliver = afs_deliver_fs_create_vnode,
  553. .abort_to_error = afs_abort_to_error,
  554. .destructor = afs_flat_call_destructor,
  555. };
  556. /*
  557. * create a file or make a directory
  558. */
  559. int afs_fs_create(struct afs_server *server,
  560. struct key *key,
  561. struct afs_vnode *vnode,
  562. const char *name,
  563. umode_t mode,
  564. struct afs_fid *newfid,
  565. struct afs_file_status *newstatus,
  566. struct afs_callback *newcb,
  567. const struct afs_wait_mode *wait_mode)
  568. {
  569. struct afs_call *call;
  570. size_t namesz, reqsz, padsz;
  571. __be32 *bp;
  572. _enter("");
  573. namesz = strlen(name);
  574. padsz = (4 - (namesz & 3)) & 3;
  575. reqsz = (5 * 4) + namesz + padsz + (6 * 4);
  576. call = afs_alloc_flat_call(&afs_RXFSCreateXXXX, reqsz,
  577. (3 + 21 + 21 + 3 + 6) * 4);
  578. if (!call)
  579. return -ENOMEM;
  580. call->key = key;
  581. call->reply = vnode;
  582. call->reply2 = newfid;
  583. call->reply3 = newstatus;
  584. call->reply4 = newcb;
  585. call->service_id = FS_SERVICE;
  586. call->port = htons(AFS_FS_PORT);
  587. /* marshall the parameters */
  588. bp = call->request;
  589. *bp++ = htonl(S_ISDIR(mode) ? FSMAKEDIR : FSCREATEFILE);
  590. *bp++ = htonl(vnode->fid.vid);
  591. *bp++ = htonl(vnode->fid.vnode);
  592. *bp++ = htonl(vnode->fid.unique);
  593. *bp++ = htonl(namesz);
  594. memcpy(bp, name, namesz);
  595. bp = (void *) bp + namesz;
  596. if (padsz > 0) {
  597. memset(bp, 0, padsz);
  598. bp = (void *) bp + padsz;
  599. }
  600. *bp++ = htonl(AFS_SET_MODE);
  601. *bp++ = 0; /* mtime */
  602. *bp++ = 0; /* owner */
  603. *bp++ = 0; /* group */
  604. *bp++ = htonl(mode & S_IALLUGO); /* unix mode */
  605. *bp++ = 0; /* segment size */
  606. return afs_make_call(&server->addr, call, GFP_NOFS, wait_mode);
  607. }
  608. /*
  609. * deliver reply data to an FS.RemoveFile or FS.RemoveDir
  610. */
  611. static int afs_deliver_fs_remove(struct afs_call *call,
  612. struct sk_buff *skb, bool last)
  613. {
  614. struct afs_vnode *vnode = call->reply;
  615. const __be32 *bp;
  616. _enter("{%u},{%u},%d", call->unmarshall, skb->len, last);
  617. afs_transfer_reply(call, skb);
  618. if (!last)
  619. return 0;
  620. if (call->reply_size != call->reply_max)
  621. return -EBADMSG;
  622. /* unmarshall the reply once we've received all of it */
  623. bp = call->buffer;
  624. xdr_decode_AFSFetchStatus(&bp, &vnode->status, vnode, NULL);
  625. /* xdr_decode_AFSVolSync(&bp, call->replyX); */
  626. _leave(" = 0 [done]");
  627. return 0;
  628. }
  629. /*
  630. * FS.RemoveDir/FS.RemoveFile operation type
  631. */
  632. static const struct afs_call_type afs_RXFSRemoveXXXX = {
  633. .name = "FS.RemoveXXXX",
  634. .deliver = afs_deliver_fs_remove,
  635. .abort_to_error = afs_abort_to_error,
  636. .destructor = afs_flat_call_destructor,
  637. };
  638. /*
  639. * remove a file or directory
  640. */
  641. int afs_fs_remove(struct afs_server *server,
  642. struct key *key,
  643. struct afs_vnode *vnode,
  644. const char *name,
  645. bool isdir,
  646. const struct afs_wait_mode *wait_mode)
  647. {
  648. struct afs_call *call;
  649. size_t namesz, reqsz, padsz;
  650. __be32 *bp;
  651. _enter("");
  652. namesz = strlen(name);
  653. padsz = (4 - (namesz & 3)) & 3;
  654. reqsz = (5 * 4) + namesz + padsz;
  655. call = afs_alloc_flat_call(&afs_RXFSRemoveXXXX, reqsz, (21 + 6) * 4);
  656. if (!call)
  657. return -ENOMEM;
  658. call->key = key;
  659. call->reply = vnode;
  660. call->service_id = FS_SERVICE;
  661. call->port = htons(AFS_FS_PORT);
  662. /* marshall the parameters */
  663. bp = call->request;
  664. *bp++ = htonl(isdir ? FSREMOVEDIR : FSREMOVEFILE);
  665. *bp++ = htonl(vnode->fid.vid);
  666. *bp++ = htonl(vnode->fid.vnode);
  667. *bp++ = htonl(vnode->fid.unique);
  668. *bp++ = htonl(namesz);
  669. memcpy(bp, name, namesz);
  670. bp = (void *) bp + namesz;
  671. if (padsz > 0) {
  672. memset(bp, 0, padsz);
  673. bp = (void *) bp + padsz;
  674. }
  675. return afs_make_call(&server->addr, call, GFP_NOFS, wait_mode);
  676. }
  677. /*
  678. * deliver reply data to an FS.Link
  679. */
  680. static int afs_deliver_fs_link(struct afs_call *call,
  681. struct sk_buff *skb, bool last)
  682. {
  683. struct afs_vnode *dvnode = call->reply, *vnode = call->reply2;
  684. const __be32 *bp;
  685. _enter("{%u},{%u},%d", call->unmarshall, skb->len, last);
  686. afs_transfer_reply(call, skb);
  687. if (!last)
  688. return 0;
  689. if (call->reply_size != call->reply_max)
  690. return -EBADMSG;
  691. /* unmarshall the reply once we've received all of it */
  692. bp = call->buffer;
  693. xdr_decode_AFSFetchStatus(&bp, &vnode->status, vnode, NULL);
  694. xdr_decode_AFSFetchStatus(&bp, &dvnode->status, dvnode, NULL);
  695. /* xdr_decode_AFSVolSync(&bp, call->replyX); */
  696. _leave(" = 0 [done]");
  697. return 0;
  698. }
  699. /*
  700. * FS.Link operation type
  701. */
  702. static const struct afs_call_type afs_RXFSLink = {
  703. .name = "FS.Link",
  704. .deliver = afs_deliver_fs_link,
  705. .abort_to_error = afs_abort_to_error,
  706. .destructor = afs_flat_call_destructor,
  707. };
  708. /*
  709. * make a hard link
  710. */
  711. int afs_fs_link(struct afs_server *server,
  712. struct key *key,
  713. struct afs_vnode *dvnode,
  714. struct afs_vnode *vnode,
  715. const char *name,
  716. const struct afs_wait_mode *wait_mode)
  717. {
  718. struct afs_call *call;
  719. size_t namesz, reqsz, padsz;
  720. __be32 *bp;
  721. _enter("");
  722. namesz = strlen(name);
  723. padsz = (4 - (namesz & 3)) & 3;
  724. reqsz = (5 * 4) + namesz + padsz + (3 * 4);
  725. call = afs_alloc_flat_call(&afs_RXFSLink, reqsz, (21 + 21 + 6) * 4);
  726. if (!call)
  727. return -ENOMEM;
  728. call->key = key;
  729. call->reply = dvnode;
  730. call->reply2 = vnode;
  731. call->service_id = FS_SERVICE;
  732. call->port = htons(AFS_FS_PORT);
  733. /* marshall the parameters */
  734. bp = call->request;
  735. *bp++ = htonl(FSLINK);
  736. *bp++ = htonl(dvnode->fid.vid);
  737. *bp++ = htonl(dvnode->fid.vnode);
  738. *bp++ = htonl(dvnode->fid.unique);
  739. *bp++ = htonl(namesz);
  740. memcpy(bp, name, namesz);
  741. bp = (void *) bp + namesz;
  742. if (padsz > 0) {
  743. memset(bp, 0, padsz);
  744. bp = (void *) bp + padsz;
  745. }
  746. *bp++ = htonl(vnode->fid.vid);
  747. *bp++ = htonl(vnode->fid.vnode);
  748. *bp++ = htonl(vnode->fid.unique);
  749. return afs_make_call(&server->addr, call, GFP_NOFS, wait_mode);
  750. }
  751. /*
  752. * deliver reply data to an FS.Symlink
  753. */
  754. static int afs_deliver_fs_symlink(struct afs_call *call,
  755. struct sk_buff *skb, bool last)
  756. {
  757. struct afs_vnode *vnode = call->reply;
  758. const __be32 *bp;
  759. _enter("{%u},{%u},%d", call->unmarshall, skb->len, last);
  760. afs_transfer_reply(call, skb);
  761. if (!last)
  762. return 0;
  763. if (call->reply_size != call->reply_max)
  764. return -EBADMSG;
  765. /* unmarshall the reply once we've received all of it */
  766. bp = call->buffer;
  767. xdr_decode_AFSFid(&bp, call->reply2);
  768. xdr_decode_AFSFetchStatus(&bp, call->reply3, NULL, NULL);
  769. xdr_decode_AFSFetchStatus(&bp, &vnode->status, vnode, NULL);
  770. /* xdr_decode_AFSVolSync(&bp, call->replyX); */
  771. _leave(" = 0 [done]");
  772. return 0;
  773. }
  774. /*
  775. * FS.Symlink operation type
  776. */
  777. static const struct afs_call_type afs_RXFSSymlink = {
  778. .name = "FS.Symlink",
  779. .deliver = afs_deliver_fs_symlink,
  780. .abort_to_error = afs_abort_to_error,
  781. .destructor = afs_flat_call_destructor,
  782. };
  783. /*
  784. * create a symbolic link
  785. */
  786. int afs_fs_symlink(struct afs_server *server,
  787. struct key *key,
  788. struct afs_vnode *vnode,
  789. const char *name,
  790. const char *contents,
  791. struct afs_fid *newfid,
  792. struct afs_file_status *newstatus,
  793. const struct afs_wait_mode *wait_mode)
  794. {
  795. struct afs_call *call;
  796. size_t namesz, reqsz, padsz, c_namesz, c_padsz;
  797. __be32 *bp;
  798. _enter("");
  799. namesz = strlen(name);
  800. padsz = (4 - (namesz & 3)) & 3;
  801. c_namesz = strlen(contents);
  802. c_padsz = (4 - (c_namesz & 3)) & 3;
  803. reqsz = (6 * 4) + namesz + padsz + c_namesz + c_padsz + (6 * 4);
  804. call = afs_alloc_flat_call(&afs_RXFSSymlink, reqsz,
  805. (3 + 21 + 21 + 6) * 4);
  806. if (!call)
  807. return -ENOMEM;
  808. call->key = key;
  809. call->reply = vnode;
  810. call->reply2 = newfid;
  811. call->reply3 = newstatus;
  812. call->service_id = FS_SERVICE;
  813. call->port = htons(AFS_FS_PORT);
  814. /* marshall the parameters */
  815. bp = call->request;
  816. *bp++ = htonl(FSSYMLINK);
  817. *bp++ = htonl(vnode->fid.vid);
  818. *bp++ = htonl(vnode->fid.vnode);
  819. *bp++ = htonl(vnode->fid.unique);
  820. *bp++ = htonl(namesz);
  821. memcpy(bp, name, namesz);
  822. bp = (void *) bp + namesz;
  823. if (padsz > 0) {
  824. memset(bp, 0, padsz);
  825. bp = (void *) bp + padsz;
  826. }
  827. *bp++ = htonl(c_namesz);
  828. memcpy(bp, contents, c_namesz);
  829. bp = (void *) bp + c_namesz;
  830. if (c_padsz > 0) {
  831. memset(bp, 0, c_padsz);
  832. bp = (void *) bp + c_padsz;
  833. }
  834. *bp++ = htonl(AFS_SET_MODE);
  835. *bp++ = 0; /* mtime */
  836. *bp++ = 0; /* owner */
  837. *bp++ = 0; /* group */
  838. *bp++ = htonl(S_IRWXUGO); /* unix mode */
  839. *bp++ = 0; /* segment size */
  840. return afs_make_call(&server->addr, call, GFP_NOFS, wait_mode);
  841. }
  842. /*
  843. * deliver reply data to an FS.Rename
  844. */
  845. static int afs_deliver_fs_rename(struct afs_call *call,
  846. struct sk_buff *skb, bool last)
  847. {
  848. struct afs_vnode *orig_dvnode = call->reply, *new_dvnode = call->reply2;
  849. const __be32 *bp;
  850. _enter("{%u},{%u},%d", call->unmarshall, skb->len, last);
  851. afs_transfer_reply(call, skb);
  852. if (!last)
  853. return 0;
  854. if (call->reply_size != call->reply_max)
  855. return -EBADMSG;
  856. /* unmarshall the reply once we've received all of it */
  857. bp = call->buffer;
  858. xdr_decode_AFSFetchStatus(&bp, &orig_dvnode->status, orig_dvnode, NULL);
  859. if (new_dvnode != orig_dvnode)
  860. xdr_decode_AFSFetchStatus(&bp, &new_dvnode->status, new_dvnode,
  861. NULL);
  862. /* xdr_decode_AFSVolSync(&bp, call->replyX); */
  863. _leave(" = 0 [done]");
  864. return 0;
  865. }
  866. /*
  867. * FS.Rename operation type
  868. */
  869. static const struct afs_call_type afs_RXFSRename = {
  870. .name = "FS.Rename",
  871. .deliver = afs_deliver_fs_rename,
  872. .abort_to_error = afs_abort_to_error,
  873. .destructor = afs_flat_call_destructor,
  874. };
  875. /*
  876. * create a symbolic link
  877. */
  878. int afs_fs_rename(struct afs_server *server,
  879. struct key *key,
  880. struct afs_vnode *orig_dvnode,
  881. const char *orig_name,
  882. struct afs_vnode *new_dvnode,
  883. const char *new_name,
  884. const struct afs_wait_mode *wait_mode)
  885. {
  886. struct afs_call *call;
  887. size_t reqsz, o_namesz, o_padsz, n_namesz, n_padsz;
  888. __be32 *bp;
  889. _enter("");
  890. o_namesz = strlen(orig_name);
  891. o_padsz = (4 - (o_namesz & 3)) & 3;
  892. n_namesz = strlen(new_name);
  893. n_padsz = (4 - (n_namesz & 3)) & 3;
  894. reqsz = (4 * 4) +
  895. 4 + o_namesz + o_padsz +
  896. (3 * 4) +
  897. 4 + n_namesz + n_padsz;
  898. call = afs_alloc_flat_call(&afs_RXFSRename, reqsz, (21 + 21 + 6) * 4);
  899. if (!call)
  900. return -ENOMEM;
  901. call->key = key;
  902. call->reply = orig_dvnode;
  903. call->reply2 = new_dvnode;
  904. call->service_id = FS_SERVICE;
  905. call->port = htons(AFS_FS_PORT);
  906. /* marshall the parameters */
  907. bp = call->request;
  908. *bp++ = htonl(FSRENAME);
  909. *bp++ = htonl(orig_dvnode->fid.vid);
  910. *bp++ = htonl(orig_dvnode->fid.vnode);
  911. *bp++ = htonl(orig_dvnode->fid.unique);
  912. *bp++ = htonl(o_namesz);
  913. memcpy(bp, orig_name, o_namesz);
  914. bp = (void *) bp + o_namesz;
  915. if (o_padsz > 0) {
  916. memset(bp, 0, o_padsz);
  917. bp = (void *) bp + o_padsz;
  918. }
  919. *bp++ = htonl(new_dvnode->fid.vid);
  920. *bp++ = htonl(new_dvnode->fid.vnode);
  921. *bp++ = htonl(new_dvnode->fid.unique);
  922. *bp++ = htonl(n_namesz);
  923. memcpy(bp, new_name, n_namesz);
  924. bp = (void *) bp + n_namesz;
  925. if (n_padsz > 0) {
  926. memset(bp, 0, n_padsz);
  927. bp = (void *) bp + n_padsz;
  928. }
  929. return afs_make_call(&server->addr, call, GFP_NOFS, wait_mode);
  930. }
  931. /*
  932. * deliver reply data to an FS.StoreData
  933. */
  934. static int afs_deliver_fs_store_data(struct afs_call *call,
  935. struct sk_buff *skb, bool last)
  936. {
  937. struct afs_vnode *vnode = call->reply;
  938. const __be32 *bp;
  939. _enter(",,%u", last);
  940. afs_transfer_reply(call, skb);
  941. if (!last) {
  942. _leave(" = 0 [more]");
  943. return 0;
  944. }
  945. if (call->reply_size != call->reply_max) {
  946. _leave(" = -EBADMSG [%u != %u]",
  947. call->reply_size, call->reply_max);
  948. return -EBADMSG;
  949. }
  950. /* unmarshall the reply once we've received all of it */
  951. bp = call->buffer;
  952. xdr_decode_AFSFetchStatus(&bp, &vnode->status, vnode,
  953. &call->store_version);
  954. /* xdr_decode_AFSVolSync(&bp, call->replyX); */
  955. afs_pages_written_back(vnode, call);
  956. _leave(" = 0 [done]");
  957. return 0;
  958. }
  959. /*
  960. * FS.StoreData operation type
  961. */
  962. static const struct afs_call_type afs_RXFSStoreData = {
  963. .name = "FS.StoreData",
  964. .deliver = afs_deliver_fs_store_data,
  965. .abort_to_error = afs_abort_to_error,
  966. .destructor = afs_flat_call_destructor,
  967. };
  968. static const struct afs_call_type afs_RXFSStoreData64 = {
  969. .name = "FS.StoreData64",
  970. .deliver = afs_deliver_fs_store_data,
  971. .abort_to_error = afs_abort_to_error,
  972. .destructor = afs_flat_call_destructor,
  973. };
  974. /*
  975. * store a set of pages to a very large file
  976. */
  977. static int afs_fs_store_data64(struct afs_server *server,
  978. struct afs_writeback *wb,
  979. pgoff_t first, pgoff_t last,
  980. unsigned offset, unsigned to,
  981. loff_t size, loff_t pos, loff_t i_size,
  982. const struct afs_wait_mode *wait_mode)
  983. {
  984. struct afs_vnode *vnode = wb->vnode;
  985. struct afs_call *call;
  986. __be32 *bp;
  987. _enter(",%x,{%x:%u},,",
  988. key_serial(wb->key), vnode->fid.vid, vnode->fid.vnode);
  989. call = afs_alloc_flat_call(&afs_RXFSStoreData64,
  990. (4 + 6 + 3 * 2) * 4,
  991. (21 + 6) * 4);
  992. if (!call)
  993. return -ENOMEM;
  994. call->wb = wb;
  995. call->key = wb->key;
  996. call->reply = vnode;
  997. call->service_id = FS_SERVICE;
  998. call->port = htons(AFS_FS_PORT);
  999. call->mapping = vnode->vfs_inode.i_mapping;
  1000. call->first = first;
  1001. call->last = last;
  1002. call->first_offset = offset;
  1003. call->last_to = to;
  1004. call->send_pages = true;
  1005. call->store_version = vnode->status.data_version + 1;
  1006. /* marshall the parameters */
  1007. bp = call->request;
  1008. *bp++ = htonl(FSSTOREDATA64);
  1009. *bp++ = htonl(vnode->fid.vid);
  1010. *bp++ = htonl(vnode->fid.vnode);
  1011. *bp++ = htonl(vnode->fid.unique);
  1012. *bp++ = 0; /* mask */
  1013. *bp++ = 0; /* mtime */
  1014. *bp++ = 0; /* owner */
  1015. *bp++ = 0; /* group */
  1016. *bp++ = 0; /* unix mode */
  1017. *bp++ = 0; /* segment size */
  1018. *bp++ = htonl(pos >> 32);
  1019. *bp++ = htonl((u32) pos);
  1020. *bp++ = htonl(size >> 32);
  1021. *bp++ = htonl((u32) size);
  1022. *bp++ = htonl(i_size >> 32);
  1023. *bp++ = htonl((u32) i_size);
  1024. return afs_make_call(&server->addr, call, GFP_NOFS, wait_mode);
  1025. }
  1026. /*
  1027. * store a set of pages
  1028. */
  1029. int afs_fs_store_data(struct afs_server *server, struct afs_writeback *wb,
  1030. pgoff_t first, pgoff_t last,
  1031. unsigned offset, unsigned to,
  1032. const struct afs_wait_mode *wait_mode)
  1033. {
  1034. struct afs_vnode *vnode = wb->vnode;
  1035. struct afs_call *call;
  1036. loff_t size, pos, i_size;
  1037. __be32 *bp;
  1038. _enter(",%x,{%x:%u},,",
  1039. key_serial(wb->key), vnode->fid.vid, vnode->fid.vnode);
  1040. size = to - offset;
  1041. if (first != last)
  1042. size += (loff_t)(last - first) << PAGE_SHIFT;
  1043. pos = (loff_t)first << PAGE_SHIFT;
  1044. pos += offset;
  1045. i_size = i_size_read(&vnode->vfs_inode);
  1046. if (pos + size > i_size)
  1047. i_size = size + pos;
  1048. _debug("size %llx, at %llx, i_size %llx",
  1049. (unsigned long long) size, (unsigned long long) pos,
  1050. (unsigned long long) i_size);
  1051. if (pos >> 32 || i_size >> 32 || size >> 32 || (pos + size) >> 32)
  1052. return afs_fs_store_data64(server, wb, first, last, offset, to,
  1053. size, pos, i_size, wait_mode);
  1054. call = afs_alloc_flat_call(&afs_RXFSStoreData,
  1055. (4 + 6 + 3) * 4,
  1056. (21 + 6) * 4);
  1057. if (!call)
  1058. return -ENOMEM;
  1059. call->wb = wb;
  1060. call->key = wb->key;
  1061. call->reply = vnode;
  1062. call->service_id = FS_SERVICE;
  1063. call->port = htons(AFS_FS_PORT);
  1064. call->mapping = vnode->vfs_inode.i_mapping;
  1065. call->first = first;
  1066. call->last = last;
  1067. call->first_offset = offset;
  1068. call->last_to = to;
  1069. call->send_pages = true;
  1070. call->store_version = vnode->status.data_version + 1;
  1071. /* marshall the parameters */
  1072. bp = call->request;
  1073. *bp++ = htonl(FSSTOREDATA);
  1074. *bp++ = htonl(vnode->fid.vid);
  1075. *bp++ = htonl(vnode->fid.vnode);
  1076. *bp++ = htonl(vnode->fid.unique);
  1077. *bp++ = 0; /* mask */
  1078. *bp++ = 0; /* mtime */
  1079. *bp++ = 0; /* owner */
  1080. *bp++ = 0; /* group */
  1081. *bp++ = 0; /* unix mode */
  1082. *bp++ = 0; /* segment size */
  1083. *bp++ = htonl(pos);
  1084. *bp++ = htonl(size);
  1085. *bp++ = htonl(i_size);
  1086. return afs_make_call(&server->addr, call, GFP_NOFS, wait_mode);
  1087. }
  1088. /*
  1089. * deliver reply data to an FS.StoreStatus
  1090. */
  1091. static int afs_deliver_fs_store_status(struct afs_call *call,
  1092. struct sk_buff *skb, bool last)
  1093. {
  1094. afs_dataversion_t *store_version;
  1095. struct afs_vnode *vnode = call->reply;
  1096. const __be32 *bp;
  1097. _enter(",,%u", last);
  1098. afs_transfer_reply(call, skb);
  1099. if (!last) {
  1100. _leave(" = 0 [more]");
  1101. return 0;
  1102. }
  1103. if (call->reply_size != call->reply_max) {
  1104. _leave(" = -EBADMSG [%u != %u]",
  1105. call->reply_size, call->reply_max);
  1106. return -EBADMSG;
  1107. }
  1108. /* unmarshall the reply once we've received all of it */
  1109. store_version = NULL;
  1110. if (call->operation_ID == FSSTOREDATA)
  1111. store_version = &call->store_version;
  1112. bp = call->buffer;
  1113. xdr_decode_AFSFetchStatus(&bp, &vnode->status, vnode, store_version);
  1114. /* xdr_decode_AFSVolSync(&bp, call->replyX); */
  1115. _leave(" = 0 [done]");
  1116. return 0;
  1117. }
  1118. /*
  1119. * FS.StoreStatus operation type
  1120. */
  1121. static const struct afs_call_type afs_RXFSStoreStatus = {
  1122. .name = "FS.StoreStatus",
  1123. .deliver = afs_deliver_fs_store_status,
  1124. .abort_to_error = afs_abort_to_error,
  1125. .destructor = afs_flat_call_destructor,
  1126. };
  1127. static const struct afs_call_type afs_RXFSStoreData_as_Status = {
  1128. .name = "FS.StoreData",
  1129. .deliver = afs_deliver_fs_store_status,
  1130. .abort_to_error = afs_abort_to_error,
  1131. .destructor = afs_flat_call_destructor,
  1132. };
  1133. static const struct afs_call_type afs_RXFSStoreData64_as_Status = {
  1134. .name = "FS.StoreData64",
  1135. .deliver = afs_deliver_fs_store_status,
  1136. .abort_to_error = afs_abort_to_error,
  1137. .destructor = afs_flat_call_destructor,
  1138. };
  1139. /*
  1140. * set the attributes on a very large file, using FS.StoreData rather than
  1141. * FS.StoreStatus so as to alter the file size also
  1142. */
  1143. static int afs_fs_setattr_size64(struct afs_server *server, struct key *key,
  1144. struct afs_vnode *vnode, struct iattr *attr,
  1145. const struct afs_wait_mode *wait_mode)
  1146. {
  1147. struct afs_call *call;
  1148. __be32 *bp;
  1149. _enter(",%x,{%x:%u},,",
  1150. key_serial(key), vnode->fid.vid, vnode->fid.vnode);
  1151. ASSERT(attr->ia_valid & ATTR_SIZE);
  1152. call = afs_alloc_flat_call(&afs_RXFSStoreData64_as_Status,
  1153. (4 + 6 + 3 * 2) * 4,
  1154. (21 + 6) * 4);
  1155. if (!call)
  1156. return -ENOMEM;
  1157. call->key = key;
  1158. call->reply = vnode;
  1159. call->service_id = FS_SERVICE;
  1160. call->port = htons(AFS_FS_PORT);
  1161. call->store_version = vnode->status.data_version + 1;
  1162. call->operation_ID = FSSTOREDATA;
  1163. /* marshall the parameters */
  1164. bp = call->request;
  1165. *bp++ = htonl(FSSTOREDATA64);
  1166. *bp++ = htonl(vnode->fid.vid);
  1167. *bp++ = htonl(vnode->fid.vnode);
  1168. *bp++ = htonl(vnode->fid.unique);
  1169. xdr_encode_AFS_StoreStatus(&bp, attr);
  1170. *bp++ = 0; /* position of start of write */
  1171. *bp++ = 0;
  1172. *bp++ = 0; /* size of write */
  1173. *bp++ = 0;
  1174. *bp++ = htonl(attr->ia_size >> 32); /* new file length */
  1175. *bp++ = htonl((u32) attr->ia_size);
  1176. return afs_make_call(&server->addr, call, GFP_NOFS, wait_mode);
  1177. }
  1178. /*
  1179. * set the attributes on a file, using FS.StoreData rather than FS.StoreStatus
  1180. * so as to alter the file size also
  1181. */
  1182. static int afs_fs_setattr_size(struct afs_server *server, struct key *key,
  1183. struct afs_vnode *vnode, struct iattr *attr,
  1184. const struct afs_wait_mode *wait_mode)
  1185. {
  1186. struct afs_call *call;
  1187. __be32 *bp;
  1188. _enter(",%x,{%x:%u},,",
  1189. key_serial(key), vnode->fid.vid, vnode->fid.vnode);
  1190. ASSERT(attr->ia_valid & ATTR_SIZE);
  1191. if (attr->ia_size >> 32)
  1192. return afs_fs_setattr_size64(server, key, vnode, attr,
  1193. wait_mode);
  1194. call = afs_alloc_flat_call(&afs_RXFSStoreData_as_Status,
  1195. (4 + 6 + 3) * 4,
  1196. (21 + 6) * 4);
  1197. if (!call)
  1198. return -ENOMEM;
  1199. call->key = key;
  1200. call->reply = vnode;
  1201. call->service_id = FS_SERVICE;
  1202. call->port = htons(AFS_FS_PORT);
  1203. call->store_version = vnode->status.data_version + 1;
  1204. call->operation_ID = FSSTOREDATA;
  1205. /* marshall the parameters */
  1206. bp = call->request;
  1207. *bp++ = htonl(FSSTOREDATA);
  1208. *bp++ = htonl(vnode->fid.vid);
  1209. *bp++ = htonl(vnode->fid.vnode);
  1210. *bp++ = htonl(vnode->fid.unique);
  1211. xdr_encode_AFS_StoreStatus(&bp, attr);
  1212. *bp++ = 0; /* position of start of write */
  1213. *bp++ = 0; /* size of write */
  1214. *bp++ = htonl(attr->ia_size); /* new file length */
  1215. return afs_make_call(&server->addr, call, GFP_NOFS, wait_mode);
  1216. }
  1217. /*
  1218. * set the attributes on a file, using FS.StoreData if there's a change in file
  1219. * size, and FS.StoreStatus otherwise
  1220. */
  1221. int afs_fs_setattr(struct afs_server *server, struct key *key,
  1222. struct afs_vnode *vnode, struct iattr *attr,
  1223. const struct afs_wait_mode *wait_mode)
  1224. {
  1225. struct afs_call *call;
  1226. __be32 *bp;
  1227. if (attr->ia_valid & ATTR_SIZE)
  1228. return afs_fs_setattr_size(server, key, vnode, attr,
  1229. wait_mode);
  1230. _enter(",%x,{%x:%u},,",
  1231. key_serial(key), vnode->fid.vid, vnode->fid.vnode);
  1232. call = afs_alloc_flat_call(&afs_RXFSStoreStatus,
  1233. (4 + 6) * 4,
  1234. (21 + 6) * 4);
  1235. if (!call)
  1236. return -ENOMEM;
  1237. call->key = key;
  1238. call->reply = vnode;
  1239. call->service_id = FS_SERVICE;
  1240. call->port = htons(AFS_FS_PORT);
  1241. call->operation_ID = FSSTORESTATUS;
  1242. /* marshall the parameters */
  1243. bp = call->request;
  1244. *bp++ = htonl(FSSTORESTATUS);
  1245. *bp++ = htonl(vnode->fid.vid);
  1246. *bp++ = htonl(vnode->fid.vnode);
  1247. *bp++ = htonl(vnode->fid.unique);
  1248. xdr_encode_AFS_StoreStatus(&bp, attr);
  1249. return afs_make_call(&server->addr, call, GFP_NOFS, wait_mode);
  1250. }
  1251. /*
  1252. * deliver reply data to an FS.GetVolumeStatus
  1253. */
  1254. static int afs_deliver_fs_get_volume_status(struct afs_call *call,
  1255. struct sk_buff *skb, bool last)
  1256. {
  1257. const __be32 *bp;
  1258. char *p;
  1259. int ret;
  1260. _enter("{%u},{%u},%d", call->unmarshall, skb->len, last);
  1261. switch (call->unmarshall) {
  1262. case 0:
  1263. call->offset = 0;
  1264. call->unmarshall++;
  1265. /* extract the returned status record */
  1266. case 1:
  1267. _debug("extract status");
  1268. ret = afs_extract_data(call, skb, last, call->buffer,
  1269. 12 * 4);
  1270. switch (ret) {
  1271. case 0: break;
  1272. case -EAGAIN: return 0;
  1273. default: return ret;
  1274. }
  1275. bp = call->buffer;
  1276. xdr_decode_AFSFetchVolumeStatus(&bp, call->reply2);
  1277. call->offset = 0;
  1278. call->unmarshall++;
  1279. /* extract the volume name length */
  1280. case 2:
  1281. ret = afs_extract_data(call, skb, last, &call->tmp, 4);
  1282. switch (ret) {
  1283. case 0: break;
  1284. case -EAGAIN: return 0;
  1285. default: return ret;
  1286. }
  1287. call->count = ntohl(call->tmp);
  1288. _debug("volname length: %u", call->count);
  1289. if (call->count >= AFSNAMEMAX)
  1290. return -EBADMSG;
  1291. call->offset = 0;
  1292. call->unmarshall++;
  1293. /* extract the volume name */
  1294. case 3:
  1295. _debug("extract volname");
  1296. if (call->count > 0) {
  1297. ret = afs_extract_data(call, skb, last, call->reply3,
  1298. call->count);
  1299. switch (ret) {
  1300. case 0: break;
  1301. case -EAGAIN: return 0;
  1302. default: return ret;
  1303. }
  1304. }
  1305. p = call->reply3;
  1306. p[call->count] = 0;
  1307. _debug("volname '%s'", p);
  1308. call->offset = 0;
  1309. call->unmarshall++;
  1310. /* extract the volume name padding */
  1311. if ((call->count & 3) == 0) {
  1312. call->unmarshall++;
  1313. goto no_volname_padding;
  1314. }
  1315. call->count = 4 - (call->count & 3);
  1316. case 4:
  1317. ret = afs_extract_data(call, skb, last, call->buffer,
  1318. call->count);
  1319. switch (ret) {
  1320. case 0: break;
  1321. case -EAGAIN: return 0;
  1322. default: return ret;
  1323. }
  1324. call->offset = 0;
  1325. call->unmarshall++;
  1326. no_volname_padding:
  1327. /* extract the offline message length */
  1328. case 5:
  1329. ret = afs_extract_data(call, skb, last, &call->tmp, 4);
  1330. switch (ret) {
  1331. case 0: break;
  1332. case -EAGAIN: return 0;
  1333. default: return ret;
  1334. }
  1335. call->count = ntohl(call->tmp);
  1336. _debug("offline msg length: %u", call->count);
  1337. if (call->count >= AFSNAMEMAX)
  1338. return -EBADMSG;
  1339. call->offset = 0;
  1340. call->unmarshall++;
  1341. /* extract the offline message */
  1342. case 6:
  1343. _debug("extract offline");
  1344. if (call->count > 0) {
  1345. ret = afs_extract_data(call, skb, last, call->reply3,
  1346. call->count);
  1347. switch (ret) {
  1348. case 0: break;
  1349. case -EAGAIN: return 0;
  1350. default: return ret;
  1351. }
  1352. }
  1353. p = call->reply3;
  1354. p[call->count] = 0;
  1355. _debug("offline '%s'", p);
  1356. call->offset = 0;
  1357. call->unmarshall++;
  1358. /* extract the offline message padding */
  1359. if ((call->count & 3) == 0) {
  1360. call->unmarshall++;
  1361. goto no_offline_padding;
  1362. }
  1363. call->count = 4 - (call->count & 3);
  1364. case 7:
  1365. ret = afs_extract_data(call, skb, last, call->buffer,
  1366. call->count);
  1367. switch (ret) {
  1368. case 0: break;
  1369. case -EAGAIN: return 0;
  1370. default: return ret;
  1371. }
  1372. call->offset = 0;
  1373. call->unmarshall++;
  1374. no_offline_padding:
  1375. /* extract the message of the day length */
  1376. case 8:
  1377. ret = afs_extract_data(call, skb, last, &call->tmp, 4);
  1378. switch (ret) {
  1379. case 0: break;
  1380. case -EAGAIN: return 0;
  1381. default: return ret;
  1382. }
  1383. call->count = ntohl(call->tmp);
  1384. _debug("motd length: %u", call->count);
  1385. if (call->count >= AFSNAMEMAX)
  1386. return -EBADMSG;
  1387. call->offset = 0;
  1388. call->unmarshall++;
  1389. /* extract the message of the day */
  1390. case 9:
  1391. _debug("extract motd");
  1392. if (call->count > 0) {
  1393. ret = afs_extract_data(call, skb, last, call->reply3,
  1394. call->count);
  1395. switch (ret) {
  1396. case 0: break;
  1397. case -EAGAIN: return 0;
  1398. default: return ret;
  1399. }
  1400. }
  1401. p = call->reply3;
  1402. p[call->count] = 0;
  1403. _debug("motd '%s'", p);
  1404. call->offset = 0;
  1405. call->unmarshall++;
  1406. /* extract the message of the day padding */
  1407. if ((call->count & 3) == 0) {
  1408. call->unmarshall++;
  1409. goto no_motd_padding;
  1410. }
  1411. call->count = 4 - (call->count & 3);
  1412. case 10:
  1413. ret = afs_extract_data(call, skb, last, call->buffer,
  1414. call->count);
  1415. switch (ret) {
  1416. case 0: break;
  1417. case -EAGAIN: return 0;
  1418. default: return ret;
  1419. }
  1420. call->offset = 0;
  1421. call->unmarshall++;
  1422. no_motd_padding:
  1423. case 11:
  1424. _debug("trailer %d", skb->len);
  1425. if (skb->len != 0)
  1426. return -EBADMSG;
  1427. break;
  1428. }
  1429. if (!last)
  1430. return 0;
  1431. _leave(" = 0 [done]");
  1432. return 0;
  1433. }
  1434. /*
  1435. * destroy an FS.GetVolumeStatus call
  1436. */
  1437. static void afs_get_volume_status_call_destructor(struct afs_call *call)
  1438. {
  1439. kfree(call->reply3);
  1440. call->reply3 = NULL;
  1441. afs_flat_call_destructor(call);
  1442. }
  1443. /*
  1444. * FS.GetVolumeStatus operation type
  1445. */
  1446. static const struct afs_call_type afs_RXFSGetVolumeStatus = {
  1447. .name = "FS.GetVolumeStatus",
  1448. .deliver = afs_deliver_fs_get_volume_status,
  1449. .abort_to_error = afs_abort_to_error,
  1450. .destructor = afs_get_volume_status_call_destructor,
  1451. };
  1452. /*
  1453. * fetch the status of a volume
  1454. */
  1455. int afs_fs_get_volume_status(struct afs_server *server,
  1456. struct key *key,
  1457. struct afs_vnode *vnode,
  1458. struct afs_volume_status *vs,
  1459. const struct afs_wait_mode *wait_mode)
  1460. {
  1461. struct afs_call *call;
  1462. __be32 *bp;
  1463. void *tmpbuf;
  1464. _enter("");
  1465. tmpbuf = kmalloc(AFSOPAQUEMAX, GFP_KERNEL);
  1466. if (!tmpbuf)
  1467. return -ENOMEM;
  1468. call = afs_alloc_flat_call(&afs_RXFSGetVolumeStatus, 2 * 4, 12 * 4);
  1469. if (!call) {
  1470. kfree(tmpbuf);
  1471. return -ENOMEM;
  1472. }
  1473. call->key = key;
  1474. call->reply = vnode;
  1475. call->reply2 = vs;
  1476. call->reply3 = tmpbuf;
  1477. call->service_id = FS_SERVICE;
  1478. call->port = htons(AFS_FS_PORT);
  1479. /* marshall the parameters */
  1480. bp = call->request;
  1481. bp[0] = htonl(FSGETVOLUMESTATUS);
  1482. bp[1] = htonl(vnode->fid.vid);
  1483. return afs_make_call(&server->addr, call, GFP_NOFS, wait_mode);
  1484. }
  1485. /*
  1486. * deliver reply data to an FS.SetLock, FS.ExtendLock or FS.ReleaseLock
  1487. */
  1488. static int afs_deliver_fs_xxxx_lock(struct afs_call *call,
  1489. struct sk_buff *skb, bool last)
  1490. {
  1491. const __be32 *bp;
  1492. _enter("{%u},{%u},%d", call->unmarshall, skb->len, last);
  1493. afs_transfer_reply(call, skb);
  1494. if (!last)
  1495. return 0;
  1496. if (call->reply_size != call->reply_max)
  1497. return -EBADMSG;
  1498. /* unmarshall the reply once we've received all of it */
  1499. bp = call->buffer;
  1500. /* xdr_decode_AFSVolSync(&bp, call->replyX); */
  1501. _leave(" = 0 [done]");
  1502. return 0;
  1503. }
  1504. /*
  1505. * FS.SetLock operation type
  1506. */
  1507. static const struct afs_call_type afs_RXFSSetLock = {
  1508. .name = "FS.SetLock",
  1509. .deliver = afs_deliver_fs_xxxx_lock,
  1510. .abort_to_error = afs_abort_to_error,
  1511. .destructor = afs_flat_call_destructor,
  1512. };
  1513. /*
  1514. * FS.ExtendLock operation type
  1515. */
  1516. static const struct afs_call_type afs_RXFSExtendLock = {
  1517. .name = "FS.ExtendLock",
  1518. .deliver = afs_deliver_fs_xxxx_lock,
  1519. .abort_to_error = afs_abort_to_error,
  1520. .destructor = afs_flat_call_destructor,
  1521. };
  1522. /*
  1523. * FS.ReleaseLock operation type
  1524. */
  1525. static const struct afs_call_type afs_RXFSReleaseLock = {
  1526. .name = "FS.ReleaseLock",
  1527. .deliver = afs_deliver_fs_xxxx_lock,
  1528. .abort_to_error = afs_abort_to_error,
  1529. .destructor = afs_flat_call_destructor,
  1530. };
  1531. /*
  1532. * get a lock on a file
  1533. */
  1534. int afs_fs_set_lock(struct afs_server *server,
  1535. struct key *key,
  1536. struct afs_vnode *vnode,
  1537. afs_lock_type_t type,
  1538. const struct afs_wait_mode *wait_mode)
  1539. {
  1540. struct afs_call *call;
  1541. __be32 *bp;
  1542. _enter("");
  1543. call = afs_alloc_flat_call(&afs_RXFSSetLock, 5 * 4, 6 * 4);
  1544. if (!call)
  1545. return -ENOMEM;
  1546. call->key = key;
  1547. call->reply = vnode;
  1548. call->service_id = FS_SERVICE;
  1549. call->port = htons(AFS_FS_PORT);
  1550. /* marshall the parameters */
  1551. bp = call->request;
  1552. *bp++ = htonl(FSSETLOCK);
  1553. *bp++ = htonl(vnode->fid.vid);
  1554. *bp++ = htonl(vnode->fid.vnode);
  1555. *bp++ = htonl(vnode->fid.unique);
  1556. *bp++ = htonl(type);
  1557. return afs_make_call(&server->addr, call, GFP_NOFS, wait_mode);
  1558. }
  1559. /*
  1560. * extend a lock on a file
  1561. */
  1562. int afs_fs_extend_lock(struct afs_server *server,
  1563. struct key *key,
  1564. struct afs_vnode *vnode,
  1565. const struct afs_wait_mode *wait_mode)
  1566. {
  1567. struct afs_call *call;
  1568. __be32 *bp;
  1569. _enter("");
  1570. call = afs_alloc_flat_call(&afs_RXFSExtendLock, 4 * 4, 6 * 4);
  1571. if (!call)
  1572. return -ENOMEM;
  1573. call->key = key;
  1574. call->reply = vnode;
  1575. call->service_id = FS_SERVICE;
  1576. call->port = htons(AFS_FS_PORT);
  1577. /* marshall the parameters */
  1578. bp = call->request;
  1579. *bp++ = htonl(FSEXTENDLOCK);
  1580. *bp++ = htonl(vnode->fid.vid);
  1581. *bp++ = htonl(vnode->fid.vnode);
  1582. *bp++ = htonl(vnode->fid.unique);
  1583. return afs_make_call(&server->addr, call, GFP_NOFS, wait_mode);
  1584. }
  1585. /*
  1586. * release a lock on a file
  1587. */
  1588. int afs_fs_release_lock(struct afs_server *server,
  1589. struct key *key,
  1590. struct afs_vnode *vnode,
  1591. const struct afs_wait_mode *wait_mode)
  1592. {
  1593. struct afs_call *call;
  1594. __be32 *bp;
  1595. _enter("");
  1596. call = afs_alloc_flat_call(&afs_RXFSReleaseLock, 4 * 4, 6 * 4);
  1597. if (!call)
  1598. return -ENOMEM;
  1599. call->key = key;
  1600. call->reply = vnode;
  1601. call->service_id = FS_SERVICE;
  1602. call->port = htons(AFS_FS_PORT);
  1603. /* marshall the parameters */
  1604. bp = call->request;
  1605. *bp++ = htonl(FSRELEASELOCK);
  1606. *bp++ = htonl(vnode->fid.vid);
  1607. *bp++ = htonl(vnode->fid.vnode);
  1608. *bp++ = htonl(vnode->fid.unique);
  1609. return afs_make_call(&server->addr, call, GFP_NOFS, wait_mode);
  1610. }