ncplib_kernel.c 32 KB

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  1. /*
  2. * ncplib_kernel.c
  3. *
  4. * Copyright (C) 1995, 1996 by Volker Lendecke
  5. * Modified for big endian by J.F. Chadima and David S. Miller
  6. * Modified 1997 Peter Waltenberg, Bill Hawes, David Woodhouse for 2.1 dcache
  7. * Modified 1999 Wolfram Pienkoss for NLS
  8. * Modified 2000 Ben Harris, University of Cambridge for NFS NS meta-info
  9. *
  10. */
  11. #include <linux/config.h>
  12. #include "ncplib_kernel.h"
  13. static inline void assert_server_locked(struct ncp_server *server)
  14. {
  15. if (server->lock == 0) {
  16. DPRINTK("ncpfs: server not locked!\n");
  17. }
  18. }
  19. static void ncp_add_byte(struct ncp_server *server, __u8 x)
  20. {
  21. assert_server_locked(server);
  22. *(__u8 *) (&(server->packet[server->current_size])) = x;
  23. server->current_size += 1;
  24. return;
  25. }
  26. static void ncp_add_word(struct ncp_server *server, __le16 x)
  27. {
  28. assert_server_locked(server);
  29. put_unaligned(x, (__le16 *) (&(server->packet[server->current_size])));
  30. server->current_size += 2;
  31. return;
  32. }
  33. static void ncp_add_be16(struct ncp_server *server, __u16 x)
  34. {
  35. assert_server_locked(server);
  36. put_unaligned(cpu_to_be16(x), (__be16 *) (&(server->packet[server->current_size])));
  37. server->current_size += 2;
  38. }
  39. static void ncp_add_dword(struct ncp_server *server, __le32 x)
  40. {
  41. assert_server_locked(server);
  42. put_unaligned(x, (__le32 *) (&(server->packet[server->current_size])));
  43. server->current_size += 4;
  44. return;
  45. }
  46. static void ncp_add_be32(struct ncp_server *server, __u32 x)
  47. {
  48. assert_server_locked(server);
  49. put_unaligned(cpu_to_be32(x), (__be32 *)(&(server->packet[server->current_size])));
  50. server->current_size += 4;
  51. }
  52. static inline void ncp_add_dword_lh(struct ncp_server *server, __u32 x) {
  53. ncp_add_dword(server, cpu_to_le32(x));
  54. }
  55. static void ncp_add_mem(struct ncp_server *server, const void *source, int size)
  56. {
  57. assert_server_locked(server);
  58. memcpy(&(server->packet[server->current_size]), source, size);
  59. server->current_size += size;
  60. return;
  61. }
  62. static void ncp_add_pstring(struct ncp_server *server, const char *s)
  63. {
  64. int len = strlen(s);
  65. assert_server_locked(server);
  66. if (len > 255) {
  67. DPRINTK("ncpfs: string too long: %s\n", s);
  68. len = 255;
  69. }
  70. ncp_add_byte(server, len);
  71. ncp_add_mem(server, s, len);
  72. return;
  73. }
  74. static inline void ncp_init_request(struct ncp_server *server)
  75. {
  76. ncp_lock_server(server);
  77. server->current_size = sizeof(struct ncp_request_header);
  78. server->has_subfunction = 0;
  79. }
  80. static inline void ncp_init_request_s(struct ncp_server *server, int subfunction)
  81. {
  82. ncp_lock_server(server);
  83. server->current_size = sizeof(struct ncp_request_header) + 2;
  84. ncp_add_byte(server, subfunction);
  85. server->has_subfunction = 1;
  86. }
  87. static inline char *
  88. ncp_reply_data(struct ncp_server *server, int offset)
  89. {
  90. return &(server->packet[sizeof(struct ncp_reply_header) + offset]);
  91. }
  92. static inline __u8 BVAL(void* data)
  93. {
  94. return get_unaligned((__u8*)data);
  95. }
  96. static __u8
  97. ncp_reply_byte(struct ncp_server *server, int offset)
  98. {
  99. return get_unaligned((__u8 *) ncp_reply_data(server, offset));
  100. }
  101. static inline __u16 WVAL_LH(void* data)
  102. {
  103. return le16_to_cpu(get_unaligned((__le16*)data));
  104. }
  105. static __u16
  106. ncp_reply_le16(struct ncp_server *server, int offset)
  107. {
  108. return le16_to_cpu(get_unaligned((__le16 *) ncp_reply_data(server, offset)));
  109. }
  110. static __u16
  111. ncp_reply_be16(struct ncp_server *server, int offset)
  112. {
  113. return be16_to_cpu(get_unaligned((__be16 *) ncp_reply_data(server, offset)));
  114. }
  115. static inline __u32 DVAL_LH(void* data)
  116. {
  117. return le32_to_cpu(get_unaligned((__le32*)data));
  118. }
  119. static __le32
  120. ncp_reply_dword(struct ncp_server *server, int offset)
  121. {
  122. return get_unaligned((__le32 *) ncp_reply_data(server, offset));
  123. }
  124. static inline __u32 ncp_reply_dword_lh(struct ncp_server* server, int offset) {
  125. return le32_to_cpu(ncp_reply_dword(server, offset));
  126. }
  127. int
  128. ncp_negotiate_buffersize(struct ncp_server *server, int size, int *target)
  129. {
  130. int result;
  131. ncp_init_request(server);
  132. ncp_add_be16(server, size);
  133. if ((result = ncp_request(server, 33)) != 0) {
  134. ncp_unlock_server(server);
  135. return result;
  136. }
  137. *target = min_t(unsigned int, ncp_reply_be16(server, 0), size);
  138. ncp_unlock_server(server);
  139. return 0;
  140. }
  141. /* options:
  142. * bit 0 ipx checksum
  143. * bit 1 packet signing
  144. */
  145. int
  146. ncp_negotiate_size_and_options(struct ncp_server *server,
  147. int size, int options, int *ret_size, int *ret_options) {
  148. int result;
  149. /* there is minimum */
  150. if (size < NCP_BLOCK_SIZE) size = NCP_BLOCK_SIZE;
  151. ncp_init_request(server);
  152. ncp_add_be16(server, size);
  153. ncp_add_byte(server, options);
  154. if ((result = ncp_request(server, 0x61)) != 0)
  155. {
  156. ncp_unlock_server(server);
  157. return result;
  158. }
  159. /* NCP over UDP returns 0 (!!!) */
  160. result = ncp_reply_be16(server, 0);
  161. if (result >= NCP_BLOCK_SIZE)
  162. size = min(result, size);
  163. *ret_size = size;
  164. *ret_options = ncp_reply_byte(server, 4);
  165. ncp_unlock_server(server);
  166. return 0;
  167. }
  168. int ncp_get_volume_info_with_number(struct ncp_server* server,
  169. int n, struct ncp_volume_info* target) {
  170. int result;
  171. int len;
  172. ncp_init_request_s(server, 44);
  173. ncp_add_byte(server, n);
  174. if ((result = ncp_request(server, 22)) != 0) {
  175. goto out;
  176. }
  177. target->total_blocks = ncp_reply_dword_lh(server, 0);
  178. target->free_blocks = ncp_reply_dword_lh(server, 4);
  179. target->purgeable_blocks = ncp_reply_dword_lh(server, 8);
  180. target->not_yet_purgeable_blocks = ncp_reply_dword_lh(server, 12);
  181. target->total_dir_entries = ncp_reply_dword_lh(server, 16);
  182. target->available_dir_entries = ncp_reply_dword_lh(server, 20);
  183. target->sectors_per_block = ncp_reply_byte(server, 28);
  184. memset(&(target->volume_name), 0, sizeof(target->volume_name));
  185. result = -EIO;
  186. len = ncp_reply_byte(server, 29);
  187. if (len > NCP_VOLNAME_LEN) {
  188. DPRINTK("ncpfs: volume name too long: %d\n", len);
  189. goto out;
  190. }
  191. memcpy(&(target->volume_name), ncp_reply_data(server, 30), len);
  192. result = 0;
  193. out:
  194. ncp_unlock_server(server);
  195. return result;
  196. }
  197. int ncp_get_directory_info(struct ncp_server* server, __u8 n,
  198. struct ncp_volume_info* target) {
  199. int result;
  200. int len;
  201. ncp_init_request_s(server, 45);
  202. ncp_add_byte(server, n);
  203. if ((result = ncp_request(server, 22)) != 0) {
  204. goto out;
  205. }
  206. target->total_blocks = ncp_reply_dword_lh(server, 0);
  207. target->free_blocks = ncp_reply_dword_lh(server, 4);
  208. target->purgeable_blocks = 0;
  209. target->not_yet_purgeable_blocks = 0;
  210. target->total_dir_entries = ncp_reply_dword_lh(server, 8);
  211. target->available_dir_entries = ncp_reply_dword_lh(server, 12);
  212. target->sectors_per_block = ncp_reply_byte(server, 20);
  213. memset(&(target->volume_name), 0, sizeof(target->volume_name));
  214. result = -EIO;
  215. len = ncp_reply_byte(server, 21);
  216. if (len > NCP_VOLNAME_LEN) {
  217. DPRINTK("ncpfs: volume name too long: %d\n", len);
  218. goto out;
  219. }
  220. memcpy(&(target->volume_name), ncp_reply_data(server, 22), len);
  221. result = 0;
  222. out:
  223. ncp_unlock_server(server);
  224. return result;
  225. }
  226. int
  227. ncp_close_file(struct ncp_server *server, const char *file_id)
  228. {
  229. int result;
  230. ncp_init_request(server);
  231. ncp_add_byte(server, 0);
  232. ncp_add_mem(server, file_id, 6);
  233. result = ncp_request(server, 66);
  234. ncp_unlock_server(server);
  235. return result;
  236. }
  237. int
  238. ncp_make_closed(struct inode *inode)
  239. {
  240. int err;
  241. err = 0;
  242. mutex_lock(&NCP_FINFO(inode)->open_mutex);
  243. if (atomic_read(&NCP_FINFO(inode)->opened) == 1) {
  244. atomic_set(&NCP_FINFO(inode)->opened, 0);
  245. err = ncp_close_file(NCP_SERVER(inode), NCP_FINFO(inode)->file_handle);
  246. if (!err)
  247. PPRINTK("ncp_make_closed: volnum=%d, dirent=%u, error=%d\n",
  248. NCP_FINFO(inode)->volNumber,
  249. NCP_FINFO(inode)->dirEntNum, err);
  250. }
  251. mutex_unlock(&NCP_FINFO(inode)->open_mutex);
  252. return err;
  253. }
  254. static void ncp_add_handle_path(struct ncp_server *server, __u8 vol_num,
  255. __le32 dir_base, int have_dir_base,
  256. const char *path)
  257. {
  258. ncp_add_byte(server, vol_num);
  259. ncp_add_dword(server, dir_base);
  260. if (have_dir_base != 0) {
  261. ncp_add_byte(server, 1); /* dir_base */
  262. } else {
  263. ncp_add_byte(server, 0xff); /* no handle */
  264. }
  265. if (path != NULL) {
  266. ncp_add_byte(server, 1); /* 1 component */
  267. ncp_add_pstring(server, path);
  268. } else {
  269. ncp_add_byte(server, 0);
  270. }
  271. }
  272. int ncp_dirhandle_alloc(struct ncp_server* server, __u8 volnum, __le32 dirent,
  273. __u8* dirhandle) {
  274. int result;
  275. ncp_init_request(server);
  276. ncp_add_byte(server, 12); /* subfunction */
  277. ncp_add_byte(server, NW_NS_DOS);
  278. ncp_add_byte(server, 0);
  279. ncp_add_word(server, 0);
  280. ncp_add_handle_path(server, volnum, dirent, 1, NULL);
  281. if ((result = ncp_request(server, 87)) == 0) {
  282. *dirhandle = ncp_reply_byte(server, 0);
  283. }
  284. ncp_unlock_server(server);
  285. return result;
  286. }
  287. int ncp_dirhandle_free(struct ncp_server* server, __u8 dirhandle) {
  288. int result;
  289. ncp_init_request_s(server, 20);
  290. ncp_add_byte(server, dirhandle);
  291. result = ncp_request(server, 22);
  292. ncp_unlock_server(server);
  293. return result;
  294. }
  295. void ncp_extract_file_info(void *structure, struct nw_info_struct *target)
  296. {
  297. __u8 *name_len;
  298. const int info_struct_size = offsetof(struct nw_info_struct, nameLen);
  299. memcpy(target, structure, info_struct_size);
  300. name_len = structure + info_struct_size;
  301. target->nameLen = *name_len;
  302. memcpy(target->entryName, name_len + 1, *name_len);
  303. target->entryName[*name_len] = '\0';
  304. target->volNumber = le32_to_cpu(target->volNumber);
  305. return;
  306. }
  307. #ifdef CONFIG_NCPFS_NFS_NS
  308. static inline void ncp_extract_nfs_info(unsigned char *structure,
  309. struct nw_nfs_info *target)
  310. {
  311. target->mode = DVAL_LH(structure);
  312. target->rdev = DVAL_LH(structure + 8);
  313. }
  314. #endif
  315. int ncp_obtain_nfs_info(struct ncp_server *server,
  316. struct nw_info_struct *target)
  317. {
  318. int result = 0;
  319. #ifdef CONFIG_NCPFS_NFS_NS
  320. __u32 volnum = target->volNumber;
  321. if (ncp_is_nfs_extras(server, volnum)) {
  322. ncp_init_request(server);
  323. ncp_add_byte(server, 19); /* subfunction */
  324. ncp_add_byte(server, server->name_space[volnum]);
  325. ncp_add_byte(server, NW_NS_NFS);
  326. ncp_add_byte(server, 0);
  327. ncp_add_byte(server, volnum);
  328. ncp_add_dword(server, target->dirEntNum);
  329. /* We must retrieve both nlinks and rdev, otherwise some server versions
  330. report zeroes instead of valid data */
  331. ncp_add_dword_lh(server, NSIBM_NFS_MODE | NSIBM_NFS_NLINKS | NSIBM_NFS_RDEV);
  332. if ((result = ncp_request(server, 87)) == 0) {
  333. ncp_extract_nfs_info(ncp_reply_data(server, 0), &target->nfs);
  334. DPRINTK(KERN_DEBUG
  335. "ncp_obtain_nfs_info: (%s) mode=0%o, rdev=0x%x\n",
  336. target->entryName, target->nfs.mode,
  337. target->nfs.rdev);
  338. } else {
  339. target->nfs.mode = 0;
  340. target->nfs.rdev = 0;
  341. }
  342. ncp_unlock_server(server);
  343. } else
  344. #endif
  345. {
  346. target->nfs.mode = 0;
  347. target->nfs.rdev = 0;
  348. }
  349. return result;
  350. }
  351. /*
  352. * Returns information for a (one-component) name relative to
  353. * the specified directory.
  354. */
  355. int ncp_obtain_info(struct ncp_server *server, struct inode *dir, char *path,
  356. struct nw_info_struct *target)
  357. {
  358. __u8 volnum = NCP_FINFO(dir)->volNumber;
  359. __le32 dirent = NCP_FINFO(dir)->dirEntNum;
  360. int result;
  361. if (target == NULL) {
  362. printk(KERN_ERR "ncp_obtain_info: invalid call\n");
  363. return -EINVAL;
  364. }
  365. ncp_init_request(server);
  366. ncp_add_byte(server, 6); /* subfunction */
  367. ncp_add_byte(server, server->name_space[volnum]);
  368. ncp_add_byte(server, server->name_space[volnum]); /* N.B. twice ?? */
  369. ncp_add_word(server, cpu_to_le16(0x8006)); /* get all */
  370. ncp_add_dword(server, RIM_ALL);
  371. ncp_add_handle_path(server, volnum, dirent, 1, path);
  372. if ((result = ncp_request(server, 87)) != 0)
  373. goto out;
  374. ncp_extract_file_info(ncp_reply_data(server, 0), target);
  375. ncp_unlock_server(server);
  376. result = ncp_obtain_nfs_info(server, target);
  377. return result;
  378. out:
  379. ncp_unlock_server(server);
  380. return result;
  381. }
  382. #ifdef CONFIG_NCPFS_NFS_NS
  383. static int
  384. ncp_obtain_DOS_dir_base(struct ncp_server *server,
  385. __u8 volnum, __le32 dirent,
  386. char *path, /* At most 1 component */
  387. __le32 *DOS_dir_base)
  388. {
  389. int result;
  390. ncp_init_request(server);
  391. ncp_add_byte(server, 6); /* subfunction */
  392. ncp_add_byte(server, server->name_space[volnum]);
  393. ncp_add_byte(server, server->name_space[volnum]);
  394. ncp_add_word(server, cpu_to_le16(0x8006)); /* get all */
  395. ncp_add_dword(server, RIM_DIRECTORY);
  396. ncp_add_handle_path(server, volnum, dirent, 1, path);
  397. if ((result = ncp_request(server, 87)) == 0)
  398. {
  399. if (DOS_dir_base) *DOS_dir_base=ncp_reply_dword(server, 0x34);
  400. }
  401. ncp_unlock_server(server);
  402. return result;
  403. }
  404. #endif /* CONFIG_NCPFS_NFS_NS */
  405. static inline int
  406. ncp_get_known_namespace(struct ncp_server *server, __u8 volume)
  407. {
  408. #if defined(CONFIG_NCPFS_OS2_NS) || defined(CONFIG_NCPFS_NFS_NS)
  409. int result;
  410. __u8 *namespace;
  411. __u16 no_namespaces;
  412. ncp_init_request(server);
  413. ncp_add_byte(server, 24); /* Subfunction: Get Name Spaces Loaded */
  414. ncp_add_word(server, 0);
  415. ncp_add_byte(server, volume);
  416. if ((result = ncp_request(server, 87)) != 0) {
  417. ncp_unlock_server(server);
  418. return NW_NS_DOS; /* not result ?? */
  419. }
  420. result = NW_NS_DOS;
  421. no_namespaces = ncp_reply_le16(server, 0);
  422. namespace = ncp_reply_data(server, 2);
  423. while (no_namespaces > 0) {
  424. DPRINTK("get_namespaces: found %d on %d\n", *namespace, volume);
  425. #ifdef CONFIG_NCPFS_NFS_NS
  426. if ((*namespace == NW_NS_NFS) && !(server->m.flags&NCP_MOUNT_NO_NFS))
  427. {
  428. result = NW_NS_NFS;
  429. break;
  430. }
  431. #endif /* CONFIG_NCPFS_NFS_NS */
  432. #ifdef CONFIG_NCPFS_OS2_NS
  433. if ((*namespace == NW_NS_OS2) && !(server->m.flags&NCP_MOUNT_NO_OS2))
  434. {
  435. result = NW_NS_OS2;
  436. }
  437. #endif /* CONFIG_NCPFS_OS2_NS */
  438. namespace += 1;
  439. no_namespaces -= 1;
  440. }
  441. ncp_unlock_server(server);
  442. return result;
  443. #else /* neither OS2 nor NFS - only DOS */
  444. return NW_NS_DOS;
  445. #endif /* defined(CONFIG_NCPFS_OS2_NS) || defined(CONFIG_NCPFS_NFS_NS) */
  446. }
  447. static int
  448. ncp_ObtainSpecificDirBase(struct ncp_server *server,
  449. __u8 nsSrc, __u8 nsDst, __u8 vol_num, __le32 dir_base,
  450. char *path, /* At most 1 component */
  451. __le32 *dirEntNum, __le32 *DosDirNum)
  452. {
  453. int result;
  454. ncp_init_request(server);
  455. ncp_add_byte(server, 6); /* subfunction */
  456. ncp_add_byte(server, nsSrc);
  457. ncp_add_byte(server, nsDst);
  458. ncp_add_word(server, cpu_to_le16(0x8006)); /* get all */
  459. ncp_add_dword(server, RIM_ALL);
  460. ncp_add_handle_path(server, vol_num, dir_base, 1, path);
  461. if ((result = ncp_request(server, 87)) != 0)
  462. {
  463. ncp_unlock_server(server);
  464. return result;
  465. }
  466. if (dirEntNum)
  467. *dirEntNum = ncp_reply_dword(server, 0x30);
  468. if (DosDirNum)
  469. *DosDirNum = ncp_reply_dword(server, 0x34);
  470. ncp_unlock_server(server);
  471. return 0;
  472. }
  473. int
  474. ncp_mount_subdir(struct ncp_server *server,
  475. __u8 volNumber, __u8 srcNS, __le32 dirEntNum,
  476. __u32* volume, __le32* newDirEnt, __le32* newDosEnt)
  477. {
  478. int dstNS;
  479. int result;
  480. dstNS = ncp_get_known_namespace(server, volNumber);
  481. if ((result = ncp_ObtainSpecificDirBase(server, srcNS, dstNS, volNumber,
  482. dirEntNum, NULL, newDirEnt, newDosEnt)) != 0)
  483. {
  484. return result;
  485. }
  486. server->name_space[volNumber] = dstNS;
  487. *volume = volNumber;
  488. server->m.mounted_vol[1] = 0;
  489. server->m.mounted_vol[0] = 'X';
  490. return 0;
  491. }
  492. int
  493. ncp_get_volume_root(struct ncp_server *server, const char *volname,
  494. __u32* volume, __le32* dirent, __le32* dosdirent)
  495. {
  496. int result;
  497. __u8 volnum;
  498. DPRINTK("ncp_get_volume_root: looking up vol %s\n", volname);
  499. ncp_init_request(server);
  500. ncp_add_byte(server, 22); /* Subfunction: Generate dir handle */
  501. ncp_add_byte(server, 0); /* DOS namespace */
  502. ncp_add_byte(server, 0); /* reserved */
  503. ncp_add_byte(server, 0); /* reserved */
  504. ncp_add_byte(server, 0); /* reserved */
  505. ncp_add_byte(server, 0); /* faked volume number */
  506. ncp_add_dword(server, 0); /* faked dir_base */
  507. ncp_add_byte(server, 0xff); /* Don't have a dir_base */
  508. ncp_add_byte(server, 1); /* 1 path component */
  509. ncp_add_pstring(server, volname);
  510. if ((result = ncp_request(server, 87)) != 0) {
  511. ncp_unlock_server(server);
  512. return result;
  513. }
  514. *dirent = *dosdirent = ncp_reply_dword(server, 4);
  515. volnum = ncp_reply_byte(server, 8);
  516. ncp_unlock_server(server);
  517. *volume = volnum;
  518. server->name_space[volnum] = ncp_get_known_namespace(server, volnum);
  519. DPRINTK("lookup_vol: namespace[%d] = %d\n",
  520. volnum, server->name_space[volnum]);
  521. return 0;
  522. }
  523. int
  524. ncp_lookup_volume(struct ncp_server *server, const char *volname,
  525. struct nw_info_struct *target)
  526. {
  527. int result;
  528. memset(target, 0, sizeof(*target));
  529. result = ncp_get_volume_root(server, volname,
  530. &target->volNumber, &target->dirEntNum, &target->DosDirNum);
  531. if (result) {
  532. return result;
  533. }
  534. target->nameLen = strlen(volname);
  535. memcpy(target->entryName, volname, target->nameLen+1);
  536. target->attributes = aDIR;
  537. /* set dates to Jan 1, 1986 00:00 */
  538. target->creationTime = target->modifyTime = cpu_to_le16(0x0000);
  539. target->creationDate = target->modifyDate = target->lastAccessDate = cpu_to_le16(0x0C21);
  540. target->nfs.mode = 0;
  541. return 0;
  542. }
  543. int ncp_modify_file_or_subdir_dos_info_path(struct ncp_server *server,
  544. struct inode *dir,
  545. const char *path,
  546. __le32 info_mask,
  547. const struct nw_modify_dos_info *info)
  548. {
  549. __u8 volnum = NCP_FINFO(dir)->volNumber;
  550. __le32 dirent = NCP_FINFO(dir)->dirEntNum;
  551. int result;
  552. ncp_init_request(server);
  553. ncp_add_byte(server, 7); /* subfunction */
  554. ncp_add_byte(server, server->name_space[volnum]);
  555. ncp_add_byte(server, 0); /* reserved */
  556. ncp_add_word(server, cpu_to_le16(0x8006)); /* search attribs: all */
  557. ncp_add_dword(server, info_mask);
  558. ncp_add_mem(server, info, sizeof(*info));
  559. ncp_add_handle_path(server, volnum, dirent, 1, path);
  560. result = ncp_request(server, 87);
  561. ncp_unlock_server(server);
  562. return result;
  563. }
  564. int ncp_modify_file_or_subdir_dos_info(struct ncp_server *server,
  565. struct inode *dir,
  566. __le32 info_mask,
  567. const struct nw_modify_dos_info *info)
  568. {
  569. return ncp_modify_file_or_subdir_dos_info_path(server, dir, NULL,
  570. info_mask, info);
  571. }
  572. #ifdef CONFIG_NCPFS_NFS_NS
  573. int ncp_modify_nfs_info(struct ncp_server *server, __u8 volnum, __le32 dirent,
  574. __u32 mode, __u32 rdev)
  575. {
  576. int result = 0;
  577. if (server->name_space[volnum] == NW_NS_NFS) {
  578. ncp_init_request(server);
  579. ncp_add_byte(server, 25); /* subfunction */
  580. ncp_add_byte(server, server->name_space[volnum]);
  581. ncp_add_byte(server, NW_NS_NFS);
  582. ncp_add_byte(server, volnum);
  583. ncp_add_dword(server, dirent);
  584. /* we must always operate on both nlinks and rdev, otherwise
  585. rdev is not set */
  586. ncp_add_dword_lh(server, NSIBM_NFS_MODE | NSIBM_NFS_NLINKS | NSIBM_NFS_RDEV);
  587. ncp_add_dword_lh(server, mode);
  588. ncp_add_dword_lh(server, 1); /* nlinks */
  589. ncp_add_dword_lh(server, rdev);
  590. result = ncp_request(server, 87);
  591. ncp_unlock_server(server);
  592. }
  593. return result;
  594. }
  595. #endif
  596. static int
  597. ncp_DeleteNSEntry(struct ncp_server *server,
  598. __u8 have_dir_base, __u8 volnum, __le32 dirent,
  599. char* name, __u8 ns, __le16 attr)
  600. {
  601. int result;
  602. ncp_init_request(server);
  603. ncp_add_byte(server, 8); /* subfunction */
  604. ncp_add_byte(server, ns);
  605. ncp_add_byte(server, 0); /* reserved */
  606. ncp_add_word(server, attr); /* search attribs: all */
  607. ncp_add_handle_path(server, volnum, dirent, have_dir_base, name);
  608. result = ncp_request(server, 87);
  609. ncp_unlock_server(server);
  610. return result;
  611. }
  612. int
  613. ncp_del_file_or_subdir2(struct ncp_server *server,
  614. struct dentry *dentry)
  615. {
  616. struct inode *inode = dentry->d_inode;
  617. __u8 volnum;
  618. __le32 dirent;
  619. if (!inode) {
  620. #ifdef CONFIG_NCPFS_DEBUGDENTRY
  621. PRINTK("ncpfs: ncpdel2: dentry->d_inode == NULL\n");
  622. #endif
  623. return 0xFF; /* Any error */
  624. }
  625. volnum = NCP_FINFO(inode)->volNumber;
  626. dirent = NCP_FINFO(inode)->DosDirNum;
  627. return ncp_DeleteNSEntry(server, 1, volnum, dirent, NULL, NW_NS_DOS, cpu_to_le16(0x8006));
  628. }
  629. int
  630. ncp_del_file_or_subdir(struct ncp_server *server,
  631. struct inode *dir, char *name)
  632. {
  633. __u8 volnum = NCP_FINFO(dir)->volNumber;
  634. __le32 dirent = NCP_FINFO(dir)->dirEntNum;
  635. #ifdef CONFIG_NCPFS_NFS_NS
  636. if (server->name_space[volnum]==NW_NS_NFS)
  637. {
  638. int result;
  639. result=ncp_obtain_DOS_dir_base(server, volnum, dirent, name, &dirent);
  640. if (result) return result;
  641. return ncp_DeleteNSEntry(server, 1, volnum, dirent, NULL, NW_NS_DOS, cpu_to_le16(0x8006));
  642. }
  643. else
  644. #endif /* CONFIG_NCPFS_NFS_NS */
  645. return ncp_DeleteNSEntry(server, 1, volnum, dirent, name, server->name_space[volnum], cpu_to_le16(0x8006));
  646. }
  647. static inline void ConvertToNWfromDWORD(__u16 v0, __u16 v1, __u8 ret[6])
  648. {
  649. __le16 *dest = (__le16 *) ret;
  650. dest[1] = cpu_to_le16(v0);
  651. dest[2] = cpu_to_le16(v1);
  652. dest[0] = cpu_to_le16(v0 + 1);
  653. return;
  654. }
  655. /* If both dir and name are NULL, then in target there's already a
  656. looked-up entry that wants to be opened. */
  657. int ncp_open_create_file_or_subdir(struct ncp_server *server,
  658. struct inode *dir, char *name,
  659. int open_create_mode,
  660. __le32 create_attributes,
  661. __le16 desired_acc_rights,
  662. struct ncp_entry_info *target)
  663. {
  664. __le16 search_attribs = cpu_to_le16(0x0006);
  665. __u8 volnum;
  666. __le32 dirent;
  667. int result;
  668. volnum = NCP_FINFO(dir)->volNumber;
  669. dirent = NCP_FINFO(dir)->dirEntNum;
  670. if ((create_attributes & aDIR) != 0) {
  671. search_attribs |= cpu_to_le16(0x8000);
  672. }
  673. ncp_init_request(server);
  674. ncp_add_byte(server, 1); /* subfunction */
  675. ncp_add_byte(server, server->name_space[volnum]);
  676. ncp_add_byte(server, open_create_mode);
  677. ncp_add_word(server, search_attribs);
  678. ncp_add_dword(server, RIM_ALL);
  679. ncp_add_dword(server, create_attributes);
  680. /* The desired acc rights seem to be the inherited rights mask
  681. for directories */
  682. ncp_add_word(server, desired_acc_rights);
  683. ncp_add_handle_path(server, volnum, dirent, 1, name);
  684. if ((result = ncp_request(server, 87)) != 0)
  685. goto out;
  686. if (!(create_attributes & aDIR))
  687. target->opened = 1;
  688. /* in target there's a new finfo to fill */
  689. ncp_extract_file_info(ncp_reply_data(server, 6), &(target->i));
  690. target->volume = target->i.volNumber;
  691. ConvertToNWfromDWORD(ncp_reply_le16(server, 0),
  692. ncp_reply_le16(server, 2),
  693. target->file_handle);
  694. ncp_unlock_server(server);
  695. (void)ncp_obtain_nfs_info(server, &(target->i));
  696. return 0;
  697. out:
  698. ncp_unlock_server(server);
  699. return result;
  700. }
  701. int
  702. ncp_initialize_search(struct ncp_server *server, struct inode *dir,
  703. struct nw_search_sequence *target)
  704. {
  705. __u8 volnum = NCP_FINFO(dir)->volNumber;
  706. __le32 dirent = NCP_FINFO(dir)->dirEntNum;
  707. int result;
  708. ncp_init_request(server);
  709. ncp_add_byte(server, 2); /* subfunction */
  710. ncp_add_byte(server, server->name_space[volnum]);
  711. ncp_add_byte(server, 0); /* reserved */
  712. ncp_add_handle_path(server, volnum, dirent, 1, NULL);
  713. result = ncp_request(server, 87);
  714. if (result)
  715. goto out;
  716. memcpy(target, ncp_reply_data(server, 0), sizeof(*target));
  717. out:
  718. ncp_unlock_server(server);
  719. return result;
  720. }
  721. int ncp_search_for_fileset(struct ncp_server *server,
  722. struct nw_search_sequence *seq,
  723. int* more,
  724. int* cnt,
  725. char* buffer,
  726. size_t bufsize,
  727. char** rbuf,
  728. size_t* rsize)
  729. {
  730. int result;
  731. ncp_init_request(server);
  732. ncp_add_byte(server, 20);
  733. ncp_add_byte(server, server->name_space[seq->volNumber]);
  734. ncp_add_byte(server, 0); /* datastream */
  735. ncp_add_word(server, cpu_to_le16(0x8006));
  736. ncp_add_dword(server, RIM_ALL);
  737. ncp_add_word(server, cpu_to_le16(32767)); /* max returned items */
  738. ncp_add_mem(server, seq, 9);
  739. #ifdef CONFIG_NCPFS_NFS_NS
  740. if (server->name_space[seq->volNumber] == NW_NS_NFS) {
  741. ncp_add_byte(server, 0); /* 0 byte pattern */
  742. } else
  743. #endif
  744. {
  745. ncp_add_byte(server, 2); /* 2 byte pattern */
  746. ncp_add_byte(server, 0xff); /* following is a wildcard */
  747. ncp_add_byte(server, '*');
  748. }
  749. result = ncp_request2(server, 87, buffer, bufsize);
  750. if (result) {
  751. ncp_unlock_server(server);
  752. return result;
  753. }
  754. if (server->ncp_reply_size < 12) {
  755. ncp_unlock_server(server);
  756. return 0xFF;
  757. }
  758. *rsize = server->ncp_reply_size - 12;
  759. ncp_unlock_server(server);
  760. buffer = buffer + sizeof(struct ncp_reply_header);
  761. *rbuf = buffer + 12;
  762. *cnt = WVAL_LH(buffer + 10);
  763. *more = BVAL(buffer + 9);
  764. memcpy(seq, buffer, 9);
  765. return 0;
  766. }
  767. static int
  768. ncp_RenameNSEntry(struct ncp_server *server,
  769. struct inode *old_dir, char *old_name, __le16 old_type,
  770. struct inode *new_dir, char *new_name)
  771. {
  772. int result = -EINVAL;
  773. if ((old_dir == NULL) || (old_name == NULL) ||
  774. (new_dir == NULL) || (new_name == NULL))
  775. goto out;
  776. ncp_init_request(server);
  777. ncp_add_byte(server, 4); /* subfunction */
  778. ncp_add_byte(server, server->name_space[NCP_FINFO(old_dir)->volNumber]);
  779. ncp_add_byte(server, 1); /* rename flag */
  780. ncp_add_word(server, old_type); /* search attributes */
  781. /* source Handle Path */
  782. ncp_add_byte(server, NCP_FINFO(old_dir)->volNumber);
  783. ncp_add_dword(server, NCP_FINFO(old_dir)->dirEntNum);
  784. ncp_add_byte(server, 1);
  785. ncp_add_byte(server, 1); /* 1 source component */
  786. /* dest Handle Path */
  787. ncp_add_byte(server, NCP_FINFO(new_dir)->volNumber);
  788. ncp_add_dword(server, NCP_FINFO(new_dir)->dirEntNum);
  789. ncp_add_byte(server, 1);
  790. ncp_add_byte(server, 1); /* 1 destination component */
  791. /* source path string */
  792. ncp_add_pstring(server, old_name);
  793. /* dest path string */
  794. ncp_add_pstring(server, new_name);
  795. result = ncp_request(server, 87);
  796. ncp_unlock_server(server);
  797. out:
  798. return result;
  799. }
  800. int ncp_ren_or_mov_file_or_subdir(struct ncp_server *server,
  801. struct inode *old_dir, char *old_name,
  802. struct inode *new_dir, char *new_name)
  803. {
  804. int result;
  805. __le16 old_type = cpu_to_le16(0x06);
  806. /* If somebody can do it atomic, call me... vandrove@vc.cvut.cz */
  807. result = ncp_RenameNSEntry(server, old_dir, old_name, old_type,
  808. new_dir, new_name);
  809. if (result == 0xFF) /* File Not Found, try directory */
  810. {
  811. old_type = cpu_to_le16(0x16);
  812. result = ncp_RenameNSEntry(server, old_dir, old_name, old_type,
  813. new_dir, new_name);
  814. }
  815. if (result != 0x92) return result; /* All except NO_FILES_RENAMED */
  816. result = ncp_del_file_or_subdir(server, new_dir, new_name);
  817. if (result != 0) return -EACCES;
  818. result = ncp_RenameNSEntry(server, old_dir, old_name, old_type,
  819. new_dir, new_name);
  820. return result;
  821. }
  822. /* We have to transfer to/from user space */
  823. int
  824. ncp_read_kernel(struct ncp_server *server, const char *file_id,
  825. __u32 offset, __u16 to_read, char *target, int *bytes_read)
  826. {
  827. char *source;
  828. int result;
  829. ncp_init_request(server);
  830. ncp_add_byte(server, 0);
  831. ncp_add_mem(server, file_id, 6);
  832. ncp_add_be32(server, offset);
  833. ncp_add_be16(server, to_read);
  834. if ((result = ncp_request(server, 72)) != 0) {
  835. goto out;
  836. }
  837. *bytes_read = ncp_reply_be16(server, 0);
  838. source = ncp_reply_data(server, 2 + (offset & 1));
  839. memcpy(target, source, *bytes_read);
  840. out:
  841. ncp_unlock_server(server);
  842. return result;
  843. }
  844. /* There is a problem... egrep and some other silly tools do:
  845. x = mmap(NULL, MAP_PRIVATE, PROT_READ|PROT_WRITE, <ncpfs fd>, 32768);
  846. read(<ncpfs fd>, x, 32768);
  847. Now copying read result by copy_to_user causes pagefault. This pagefault
  848. could not be handled because of server was locked due to read. So we have
  849. to use temporary buffer. So ncp_unlock_server must be done before
  850. copy_to_user (and for write, copy_from_user must be done before
  851. ncp_init_request... same applies for send raw packet ioctl). Because of
  852. file is normally read in bigger chunks, caller provides kmalloced
  853. (vmalloced) chunk of memory with size >= to_read...
  854. */
  855. int
  856. ncp_read_bounce(struct ncp_server *server, const char *file_id,
  857. __u32 offset, __u16 to_read, char __user *target, int *bytes_read,
  858. void* bounce, __u32 bufsize)
  859. {
  860. int result;
  861. ncp_init_request(server);
  862. ncp_add_byte(server, 0);
  863. ncp_add_mem(server, file_id, 6);
  864. ncp_add_be32(server, offset);
  865. ncp_add_be16(server, to_read);
  866. result = ncp_request2(server, 72, bounce, bufsize);
  867. ncp_unlock_server(server);
  868. if (!result) {
  869. int len = be16_to_cpu(get_unaligned((__be16*)((char*)bounce +
  870. sizeof(struct ncp_reply_header))));
  871. result = -EIO;
  872. if (len <= to_read) {
  873. char* source;
  874. source = (char*)bounce +
  875. sizeof(struct ncp_reply_header) + 2 +
  876. (offset & 1);
  877. *bytes_read = len;
  878. result = 0;
  879. if (copy_to_user(target, source, len))
  880. result = -EFAULT;
  881. }
  882. }
  883. return result;
  884. }
  885. int
  886. ncp_write_kernel(struct ncp_server *server, const char *file_id,
  887. __u32 offset, __u16 to_write,
  888. const char *source, int *bytes_written)
  889. {
  890. int result;
  891. ncp_init_request(server);
  892. ncp_add_byte(server, 0);
  893. ncp_add_mem(server, file_id, 6);
  894. ncp_add_be32(server, offset);
  895. ncp_add_be16(server, to_write);
  896. ncp_add_mem(server, source, to_write);
  897. if ((result = ncp_request(server, 73)) == 0)
  898. *bytes_written = to_write;
  899. ncp_unlock_server(server);
  900. return result;
  901. }
  902. #ifdef CONFIG_NCPFS_IOCTL_LOCKING
  903. int
  904. ncp_LogPhysicalRecord(struct ncp_server *server, const char *file_id,
  905. __u8 locktype, __u32 offset, __u32 length, __u16 timeout)
  906. {
  907. int result;
  908. ncp_init_request(server);
  909. ncp_add_byte(server, locktype);
  910. ncp_add_mem(server, file_id, 6);
  911. ncp_add_be32(server, offset);
  912. ncp_add_be32(server, length);
  913. ncp_add_be16(server, timeout);
  914. if ((result = ncp_request(server, 0x1A)) != 0)
  915. {
  916. ncp_unlock_server(server);
  917. return result;
  918. }
  919. ncp_unlock_server(server);
  920. return 0;
  921. }
  922. int
  923. ncp_ClearPhysicalRecord(struct ncp_server *server, const char *file_id,
  924. __u32 offset, __u32 length)
  925. {
  926. int result;
  927. ncp_init_request(server);
  928. ncp_add_byte(server, 0); /* who knows... lanalyzer says that */
  929. ncp_add_mem(server, file_id, 6);
  930. ncp_add_be32(server, offset);
  931. ncp_add_be32(server, length);
  932. if ((result = ncp_request(server, 0x1E)) != 0)
  933. {
  934. ncp_unlock_server(server);
  935. return result;
  936. }
  937. ncp_unlock_server(server);
  938. return 0;
  939. }
  940. #endif /* CONFIG_NCPFS_IOCTL_LOCKING */
  941. #ifdef CONFIG_NCPFS_NLS
  942. /* This are the NLS conversion routines with inspirations and code parts
  943. * from the vfat file system and hints from Petr Vandrovec.
  944. */
  945. int
  946. ncp__io2vol(struct ncp_server *server, unsigned char *vname, unsigned int *vlen,
  947. const unsigned char *iname, unsigned int ilen, int cc)
  948. {
  949. struct nls_table *in = server->nls_io;
  950. struct nls_table *out = server->nls_vol;
  951. unsigned char *vname_start;
  952. unsigned char *vname_end;
  953. const unsigned char *iname_end;
  954. iname_end = iname + ilen;
  955. vname_start = vname;
  956. vname_end = vname + *vlen - 1;
  957. while (iname < iname_end) {
  958. int chl;
  959. wchar_t ec;
  960. if (NCP_IS_FLAG(server, NCP_FLAG_UTF8)) {
  961. int k;
  962. k = utf8_mbtowc(&ec, iname, iname_end - iname);
  963. if (k < 0)
  964. return -EINVAL;
  965. iname += k;
  966. } else {
  967. if (*iname == NCP_ESC) {
  968. int k;
  969. if (iname_end - iname < 5)
  970. goto nospec;
  971. ec = 0;
  972. for (k = 1; k < 5; k++) {
  973. unsigned char nc;
  974. nc = iname[k] - '0';
  975. if (nc >= 10) {
  976. nc -= 'A' - '0' - 10;
  977. if ((nc < 10) || (nc > 15)) {
  978. goto nospec;
  979. }
  980. }
  981. ec = (ec << 4) | nc;
  982. }
  983. iname += 5;
  984. } else {
  985. nospec:;
  986. if ( (chl = in->char2uni(iname, iname_end - iname, &ec)) < 0)
  987. return chl;
  988. iname += chl;
  989. }
  990. }
  991. /* unitoupper should be here! */
  992. chl = out->uni2char(ec, vname, vname_end - vname);
  993. if (chl < 0)
  994. return chl;
  995. /* this is wrong... */
  996. if (cc) {
  997. int chi;
  998. for (chi = 0; chi < chl; chi++){
  999. vname[chi] = ncp_toupper(out, vname[chi]);
  1000. }
  1001. }
  1002. vname += chl;
  1003. }
  1004. *vname = 0;
  1005. *vlen = vname - vname_start;
  1006. return 0;
  1007. }
  1008. int
  1009. ncp__vol2io(struct ncp_server *server, unsigned char *iname, unsigned int *ilen,
  1010. const unsigned char *vname, unsigned int vlen, int cc)
  1011. {
  1012. struct nls_table *in = server->nls_vol;
  1013. struct nls_table *out = server->nls_io;
  1014. const unsigned char *vname_end;
  1015. unsigned char *iname_start;
  1016. unsigned char *iname_end;
  1017. unsigned char *vname_cc;
  1018. int err;
  1019. vname_cc = NULL;
  1020. if (cc) {
  1021. int i;
  1022. /* this is wrong! */
  1023. vname_cc = kmalloc(vlen, GFP_KERNEL);
  1024. if (!vname_cc)
  1025. return -ENOMEM;
  1026. for (i = 0; i < vlen; i++)
  1027. vname_cc[i] = ncp_tolower(in, vname[i]);
  1028. vname = vname_cc;
  1029. }
  1030. iname_start = iname;
  1031. iname_end = iname + *ilen - 1;
  1032. vname_end = vname + vlen;
  1033. while (vname < vname_end) {
  1034. wchar_t ec;
  1035. int chl;
  1036. if ( (chl = in->char2uni(vname, vname_end - vname, &ec)) < 0) {
  1037. err = chl;
  1038. goto quit;
  1039. }
  1040. vname += chl;
  1041. /* unitolower should be here! */
  1042. if (NCP_IS_FLAG(server, NCP_FLAG_UTF8)) {
  1043. int k;
  1044. k = utf8_wctomb(iname, ec, iname_end - iname);
  1045. if (k < 0) {
  1046. err = -ENAMETOOLONG;
  1047. goto quit;
  1048. }
  1049. iname += k;
  1050. } else {
  1051. if ( (chl = out->uni2char(ec, iname, iname_end - iname)) >= 0) {
  1052. iname += chl;
  1053. } else {
  1054. int k;
  1055. if (iname_end - iname < 5) {
  1056. err = -ENAMETOOLONG;
  1057. goto quit;
  1058. }
  1059. *iname = NCP_ESC;
  1060. for (k = 4; k > 0; k--) {
  1061. unsigned char v;
  1062. v = (ec & 0xF) + '0';
  1063. if (v > '9') {
  1064. v += 'A' - '9' - 1;
  1065. }
  1066. iname[k] = v;
  1067. ec >>= 4;
  1068. }
  1069. iname += 5;
  1070. }
  1071. }
  1072. }
  1073. *iname = 0;
  1074. *ilen = iname - iname_start;
  1075. err = 0;
  1076. quit:;
  1077. if (cc)
  1078. kfree(vname_cc);
  1079. return err;
  1080. }
  1081. #else
  1082. int
  1083. ncp__io2vol(unsigned char *vname, unsigned int *vlen,
  1084. const unsigned char *iname, unsigned int ilen, int cc)
  1085. {
  1086. int i;
  1087. if (*vlen <= ilen)
  1088. return -ENAMETOOLONG;
  1089. if (cc)
  1090. for (i = 0; i < ilen; i++) {
  1091. *vname = toupper(*iname);
  1092. vname++;
  1093. iname++;
  1094. }
  1095. else {
  1096. memmove(vname, iname, ilen);
  1097. vname += ilen;
  1098. }
  1099. *vlen = ilen;
  1100. *vname = 0;
  1101. return 0;
  1102. }
  1103. int
  1104. ncp__vol2io(unsigned char *iname, unsigned int *ilen,
  1105. const unsigned char *vname, unsigned int vlen, int cc)
  1106. {
  1107. int i;
  1108. if (*ilen <= vlen)
  1109. return -ENAMETOOLONG;
  1110. if (cc)
  1111. for (i = 0; i < vlen; i++) {
  1112. *iname = tolower(*vname);
  1113. iname++;
  1114. vname++;
  1115. }
  1116. else {
  1117. memmove(iname, vname, vlen);
  1118. iname += vlen;
  1119. }
  1120. *ilen = vlen;
  1121. *iname = 0;
  1122. return 0;
  1123. }
  1124. #endif