super.c 39 KB

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  1. /*
  2. * linux/fs/ufs/super.c
  3. *
  4. * Copyright (C) 1998
  5. * Daniel Pirkl <daniel.pirkl@email.cz>
  6. * Charles University, Faculty of Mathematics and Physics
  7. */
  8. /* Derived from
  9. *
  10. * linux/fs/ext2/super.c
  11. *
  12. * Copyright (C) 1992, 1993, 1994, 1995
  13. * Remy Card (card@masi.ibp.fr)
  14. * Laboratoire MASI - Institut Blaise Pascal
  15. * Universite Pierre et Marie Curie (Paris VI)
  16. *
  17. * from
  18. *
  19. * linux/fs/minix/inode.c
  20. *
  21. * Copyright (C) 1991, 1992 Linus Torvalds
  22. *
  23. * Big-endian to little-endian byte-swapping/bitmaps by
  24. * David S. Miller (davem@caip.rutgers.edu), 1995
  25. */
  26. /*
  27. * Inspired by
  28. *
  29. * linux/fs/ufs/super.c
  30. *
  31. * Copyright (C) 1996
  32. * Adrian Rodriguez (adrian@franklins-tower.rutgers.edu)
  33. * Laboratory for Computer Science Research Computing Facility
  34. * Rutgers, The State University of New Jersey
  35. *
  36. * Copyright (C) 1996 Eddie C. Dost (ecd@skynet.be)
  37. *
  38. * Kernel module support added on 96/04/26 by
  39. * Stefan Reinauer <stepan@home.culture.mipt.ru>
  40. *
  41. * Module usage counts added on 96/04/29 by
  42. * Gertjan van Wingerde <gertjan@cs.vu.nl>
  43. *
  44. * Clean swab support on 19970406 by
  45. * Francois-Rene Rideau <fare@tunes.org>
  46. *
  47. * 4.4BSD (FreeBSD) support added on February 1st 1998 by
  48. * Niels Kristian Bech Jensen <nkbj@image.dk> partially based
  49. * on code by Martin von Loewis <martin@mira.isdn.cs.tu-berlin.de>.
  50. *
  51. * NeXTstep support added on February 5th 1998 by
  52. * Niels Kristian Bech Jensen <nkbj@image.dk>.
  53. *
  54. * write support Daniel Pirkl <daniel.pirkl@email.cz> 1998
  55. *
  56. * HP/UX hfs filesystem support added by
  57. * Martin K. Petersen <mkp@mkp.net>, August 1999
  58. *
  59. * UFS2 (of FreeBSD 5.x) support added by
  60. * Niraj Kumar <niraj17@iitbombay.org>, Jan 2004
  61. *
  62. */
  63. #include <linux/config.h>
  64. #include <linux/module.h>
  65. #include <linux/bitops.h>
  66. #include <stdarg.h>
  67. #include <asm/uaccess.h>
  68. #include <asm/system.h>
  69. #include <linux/errno.h>
  70. #include <linux/fs.h>
  71. #include <linux/ufs_fs.h>
  72. #include <linux/slab.h>
  73. #include <linux/time.h>
  74. #include <linux/stat.h>
  75. #include <linux/string.h>
  76. #include <linux/blkdev.h>
  77. #include <linux/init.h>
  78. #include <linux/parser.h>
  79. #include <linux/smp_lock.h>
  80. #include <linux/buffer_head.h>
  81. #include <linux/vfs.h>
  82. #include "swab.h"
  83. #include "util.h"
  84. #undef UFS_SUPER_DEBUG
  85. #undef UFS_SUPER_DEBUG_MORE
  86. #undef UFS_SUPER_DEBUG_MORE
  87. #ifdef UFS_SUPER_DEBUG
  88. #define UFSD(x) printk("(%s, %d), %s: ", __FILE__, __LINE__, __FUNCTION__); printk x;
  89. #else
  90. #define UFSD(x)
  91. #endif
  92. #ifdef UFS_SUPER_DEBUG_MORE
  93. /*
  94. * Print contents of ufs_super_block, useful for debugging
  95. */
  96. void ufs_print_super_stuff(struct super_block *sb,
  97. struct ufs_super_block_first * usb1,
  98. struct ufs_super_block_second * usb2,
  99. struct ufs_super_block_third * usb3)
  100. {
  101. printk("ufs_print_super_stuff\n");
  102. printk("size of usb: %u\n", sizeof(struct ufs_super_block));
  103. printk(" magic: 0x%x\n", fs32_to_cpu(sb, usb3->fs_magic));
  104. printk(" sblkno: %u\n", fs32_to_cpu(sb, usb1->fs_sblkno));
  105. printk(" cblkno: %u\n", fs32_to_cpu(sb, usb1->fs_cblkno));
  106. printk(" iblkno: %u\n", fs32_to_cpu(sb, usb1->fs_iblkno));
  107. printk(" dblkno: %u\n", fs32_to_cpu(sb, usb1->fs_dblkno));
  108. printk(" cgoffset: %u\n", fs32_to_cpu(sb, usb1->fs_cgoffset));
  109. printk(" ~cgmask: 0x%x\n", ~fs32_to_cpu(sb, usb1->fs_cgmask));
  110. printk(" size: %u\n", fs32_to_cpu(sb, usb1->fs_size));
  111. printk(" dsize: %u\n", fs32_to_cpu(sb, usb1->fs_dsize));
  112. printk(" ncg: %u\n", fs32_to_cpu(sb, usb1->fs_ncg));
  113. printk(" bsize: %u\n", fs32_to_cpu(sb, usb1->fs_bsize));
  114. printk(" fsize: %u\n", fs32_to_cpu(sb, usb1->fs_fsize));
  115. printk(" frag: %u\n", fs32_to_cpu(sb, usb1->fs_frag));
  116. printk(" fragshift: %u\n", fs32_to_cpu(sb, usb1->fs_fragshift));
  117. printk(" ~fmask: %u\n", ~fs32_to_cpu(sb, usb1->fs_fmask));
  118. printk(" fshift: %u\n", fs32_to_cpu(sb, usb1->fs_fshift));
  119. printk(" sbsize: %u\n", fs32_to_cpu(sb, usb1->fs_sbsize));
  120. printk(" spc: %u\n", fs32_to_cpu(sb, usb1->fs_spc));
  121. printk(" cpg: %u\n", fs32_to_cpu(sb, usb1->fs_cpg));
  122. printk(" ipg: %u\n", fs32_to_cpu(sb, usb1->fs_ipg));
  123. printk(" fpg: %u\n", fs32_to_cpu(sb, usb1->fs_fpg));
  124. printk(" csaddr: %u\n", fs32_to_cpu(sb, usb1->fs_csaddr));
  125. printk(" cssize: %u\n", fs32_to_cpu(sb, usb1->fs_cssize));
  126. printk(" cgsize: %u\n", fs32_to_cpu(sb, usb1->fs_cgsize));
  127. printk(" fstodb: %u\n", fs32_to_cpu(sb, usb1->fs_fsbtodb));
  128. printk(" contigsumsize: %d\n", fs32_to_cpu(sb, usb3->fs_u2.fs_44.fs_contigsumsize));
  129. printk(" postblformat: %u\n", fs32_to_cpu(sb, usb3->fs_postblformat));
  130. printk(" nrpos: %u\n", fs32_to_cpu(sb, usb3->fs_nrpos));
  131. printk(" ndir %u\n", fs32_to_cpu(sb, usb1->fs_cstotal.cs_ndir));
  132. printk(" nifree %u\n", fs32_to_cpu(sb, usb1->fs_cstotal.cs_nifree));
  133. printk(" nbfree %u\n", fs32_to_cpu(sb, usb1->fs_cstotal.cs_nbfree));
  134. printk(" nffree %u\n", fs32_to_cpu(sb, usb1->fs_cstotal.cs_nffree));
  135. printk("\n");
  136. }
  137. /*
  138. * Print contents of ufs2 ufs_super_block, useful for debugging
  139. */
  140. void ufs2_print_super_stuff(
  141. struct super_block *sb,
  142. struct ufs_super_block *usb)
  143. {
  144. printk("ufs_print_super_stuff\n");
  145. printk("size of usb: %u\n", sizeof(struct ufs_super_block));
  146. printk(" magic: 0x%x\n", fs32_to_cpu(sb, usb->fs_magic));
  147. printk(" fs_size: %u\n",fs64_to_cpu(sb, usb->fs_u11.fs_u2.fs_size));
  148. printk(" fs_dsize: %u\n",fs64_to_cpu(sb, usb->fs_u11.fs_u2.fs_dsize));
  149. printk(" bsize: %u\n", fs32_to_cpu(usb, usb->fs_bsize));
  150. printk(" fsize: %u\n", fs32_to_cpu(usb, usb->fs_fsize));
  151. printk(" fs_volname: %s\n", usb->fs_u11.fs_u2.fs_volname);
  152. printk(" fs_fsmnt: %s\n", usb->fs_u11.fs_u2.fs_fsmnt);
  153. printk(" fs_sblockloc: %u\n",fs64_to_cpu(sb,
  154. usb->fs_u11.fs_u2.fs_sblockloc));
  155. printk(" cs_ndir(No of dirs): %u\n",fs64_to_cpu(sb,
  156. usb->fs_u11.fs_u2.fs_cstotal.cs_ndir));
  157. printk(" cs_nbfree(No of free blocks): %u\n",fs64_to_cpu(sb,
  158. usb->fs_u11.fs_u2.fs_cstotal.cs_nbfree));
  159. printk("\n");
  160. }
  161. /*
  162. * Print contents of ufs_cylinder_group, useful for debugging
  163. */
  164. void ufs_print_cylinder_stuff(struct super_block *sb, struct ufs_cylinder_group *cg)
  165. {
  166. printk("\nufs_print_cylinder_stuff\n");
  167. printk("size of ucg: %u\n", sizeof(struct ufs_cylinder_group));
  168. printk(" magic: %x\n", fs32_to_cpu(sb, cg->cg_magic));
  169. printk(" time: %u\n", fs32_to_cpu(sb, cg->cg_time));
  170. printk(" cgx: %u\n", fs32_to_cpu(sb, cg->cg_cgx));
  171. printk(" ncyl: %u\n", fs16_to_cpu(sb, cg->cg_ncyl));
  172. printk(" niblk: %u\n", fs16_to_cpu(sb, cg->cg_niblk));
  173. printk(" ndblk: %u\n", fs32_to_cpu(sb, cg->cg_ndblk));
  174. printk(" cs_ndir: %u\n", fs32_to_cpu(sb, cg->cg_cs.cs_ndir));
  175. printk(" cs_nbfree: %u\n", fs32_to_cpu(sb, cg->cg_cs.cs_nbfree));
  176. printk(" cs_nifree: %u\n", fs32_to_cpu(sb, cg->cg_cs.cs_nifree));
  177. printk(" cs_nffree: %u\n", fs32_to_cpu(sb, cg->cg_cs.cs_nffree));
  178. printk(" rotor: %u\n", fs32_to_cpu(sb, cg->cg_rotor));
  179. printk(" frotor: %u\n", fs32_to_cpu(sb, cg->cg_frotor));
  180. printk(" irotor: %u\n", fs32_to_cpu(sb, cg->cg_irotor));
  181. printk(" frsum: %u, %u, %u, %u, %u, %u, %u, %u\n",
  182. fs32_to_cpu(sb, cg->cg_frsum[0]), fs32_to_cpu(sb, cg->cg_frsum[1]),
  183. fs32_to_cpu(sb, cg->cg_frsum[2]), fs32_to_cpu(sb, cg->cg_frsum[3]),
  184. fs32_to_cpu(sb, cg->cg_frsum[4]), fs32_to_cpu(sb, cg->cg_frsum[5]),
  185. fs32_to_cpu(sb, cg->cg_frsum[6]), fs32_to_cpu(sb, cg->cg_frsum[7]));
  186. printk(" btotoff: %u\n", fs32_to_cpu(sb, cg->cg_btotoff));
  187. printk(" boff: %u\n", fs32_to_cpu(sb, cg->cg_boff));
  188. printk(" iuseoff: %u\n", fs32_to_cpu(sb, cg->cg_iusedoff));
  189. printk(" freeoff: %u\n", fs32_to_cpu(sb, cg->cg_freeoff));
  190. printk(" nextfreeoff: %u\n", fs32_to_cpu(sb, cg->cg_nextfreeoff));
  191. printk(" clustersumoff %u\n", fs32_to_cpu(sb, cg->cg_u.cg_44.cg_clustersumoff));
  192. printk(" clusteroff %u\n", fs32_to_cpu(sb, cg->cg_u.cg_44.cg_clusteroff));
  193. printk(" nclusterblks %u\n", fs32_to_cpu(sb, cg->cg_u.cg_44.cg_nclusterblks));
  194. printk("\n");
  195. }
  196. #endif /* UFS_SUPER_DEBUG_MORE */
  197. static struct super_operations ufs_super_ops;
  198. static char error_buf[1024];
  199. void ufs_error (struct super_block * sb, const char * function,
  200. const char * fmt, ...)
  201. {
  202. struct ufs_sb_private_info * uspi;
  203. struct ufs_super_block_first * usb1;
  204. va_list args;
  205. uspi = UFS_SB(sb)->s_uspi;
  206. usb1 = ubh_get_usb_first(USPI_UBH);
  207. if (!(sb->s_flags & MS_RDONLY)) {
  208. usb1->fs_clean = UFS_FSBAD;
  209. ubh_mark_buffer_dirty(USPI_UBH);
  210. sb->s_dirt = 1;
  211. sb->s_flags |= MS_RDONLY;
  212. }
  213. va_start (args, fmt);
  214. vsprintf (error_buf, fmt, args);
  215. va_end (args);
  216. switch (UFS_SB(sb)->s_mount_opt & UFS_MOUNT_ONERROR) {
  217. case UFS_MOUNT_ONERROR_PANIC:
  218. panic ("UFS-fs panic (device %s): %s: %s\n",
  219. sb->s_id, function, error_buf);
  220. case UFS_MOUNT_ONERROR_LOCK:
  221. case UFS_MOUNT_ONERROR_UMOUNT:
  222. case UFS_MOUNT_ONERROR_REPAIR:
  223. printk (KERN_CRIT "UFS-fs error (device %s): %s: %s\n",
  224. sb->s_id, function, error_buf);
  225. }
  226. }
  227. void ufs_panic (struct super_block * sb, const char * function,
  228. const char * fmt, ...)
  229. {
  230. struct ufs_sb_private_info * uspi;
  231. struct ufs_super_block_first * usb1;
  232. va_list args;
  233. uspi = UFS_SB(sb)->s_uspi;
  234. usb1 = ubh_get_usb_first(USPI_UBH);
  235. if (!(sb->s_flags & MS_RDONLY)) {
  236. usb1->fs_clean = UFS_FSBAD;
  237. ubh_mark_buffer_dirty(USPI_UBH);
  238. sb->s_dirt = 1;
  239. }
  240. va_start (args, fmt);
  241. vsprintf (error_buf, fmt, args);
  242. va_end (args);
  243. sb->s_flags |= MS_RDONLY;
  244. printk (KERN_CRIT "UFS-fs panic (device %s): %s: %s\n",
  245. sb->s_id, function, error_buf);
  246. }
  247. void ufs_warning (struct super_block * sb, const char * function,
  248. const char * fmt, ...)
  249. {
  250. va_list args;
  251. va_start (args, fmt);
  252. vsprintf (error_buf, fmt, args);
  253. va_end (args);
  254. printk (KERN_WARNING "UFS-fs warning (device %s): %s: %s\n",
  255. sb->s_id, function, error_buf);
  256. }
  257. enum {
  258. Opt_type_old, Opt_type_sunx86, Opt_type_sun, Opt_type_44bsd,
  259. Opt_type_ufs2, Opt_type_hp, Opt_type_nextstepcd, Opt_type_nextstep,
  260. Opt_type_openstep, Opt_onerror_panic, Opt_onerror_lock,
  261. Opt_onerror_umount, Opt_onerror_repair, Opt_err
  262. };
  263. static match_table_t tokens = {
  264. {Opt_type_old, "ufstype=old"},
  265. {Opt_type_sunx86, "ufstype=sunx86"},
  266. {Opt_type_sun, "ufstype=sun"},
  267. {Opt_type_44bsd, "ufstype=44bsd"},
  268. {Opt_type_ufs2, "ufstype=ufs2"},
  269. {Opt_type_ufs2, "ufstype=5xbsd"},
  270. {Opt_type_hp, "ufstype=hp"},
  271. {Opt_type_nextstepcd, "ufstype=nextstep-cd"},
  272. {Opt_type_nextstep, "ufstype=nextstep"},
  273. {Opt_type_openstep, "ufstype=openstep"},
  274. {Opt_onerror_panic, "onerror=panic"},
  275. {Opt_onerror_lock, "onerror=lock"},
  276. {Opt_onerror_umount, "onerror=umount"},
  277. {Opt_onerror_repair, "onerror=repair"},
  278. {Opt_err, NULL}
  279. };
  280. static int ufs_parse_options (char * options, unsigned * mount_options)
  281. {
  282. char * p;
  283. UFSD(("ENTER\n"))
  284. if (!options)
  285. return 1;
  286. while ((p = strsep(&options, ",")) != NULL) {
  287. substring_t args[MAX_OPT_ARGS];
  288. int token;
  289. if (!*p)
  290. continue;
  291. token = match_token(p, tokens, args);
  292. switch (token) {
  293. case Opt_type_old:
  294. ufs_clear_opt (*mount_options, UFSTYPE);
  295. ufs_set_opt (*mount_options, UFSTYPE_OLD);
  296. break;
  297. case Opt_type_sunx86:
  298. ufs_clear_opt (*mount_options, UFSTYPE);
  299. ufs_set_opt (*mount_options, UFSTYPE_SUNx86);
  300. break;
  301. case Opt_type_sun:
  302. ufs_clear_opt (*mount_options, UFSTYPE);
  303. ufs_set_opt (*mount_options, UFSTYPE_SUN);
  304. break;
  305. case Opt_type_44bsd:
  306. ufs_clear_opt (*mount_options, UFSTYPE);
  307. ufs_set_opt (*mount_options, UFSTYPE_44BSD);
  308. break;
  309. case Opt_type_ufs2:
  310. ufs_clear_opt(*mount_options, UFSTYPE);
  311. ufs_set_opt(*mount_options, UFSTYPE_UFS2);
  312. break;
  313. case Opt_type_hp:
  314. ufs_clear_opt (*mount_options, UFSTYPE);
  315. ufs_set_opt (*mount_options, UFSTYPE_HP);
  316. break;
  317. case Opt_type_nextstepcd:
  318. ufs_clear_opt (*mount_options, UFSTYPE);
  319. ufs_set_opt (*mount_options, UFSTYPE_NEXTSTEP_CD);
  320. break;
  321. case Opt_type_nextstep:
  322. ufs_clear_opt (*mount_options, UFSTYPE);
  323. ufs_set_opt (*mount_options, UFSTYPE_NEXTSTEP);
  324. break;
  325. case Opt_type_openstep:
  326. ufs_clear_opt (*mount_options, UFSTYPE);
  327. ufs_set_opt (*mount_options, UFSTYPE_OPENSTEP);
  328. break;
  329. case Opt_onerror_panic:
  330. ufs_clear_opt (*mount_options, ONERROR);
  331. ufs_set_opt (*mount_options, ONERROR_PANIC);
  332. break;
  333. case Opt_onerror_lock:
  334. ufs_clear_opt (*mount_options, ONERROR);
  335. ufs_set_opt (*mount_options, ONERROR_LOCK);
  336. break;
  337. case Opt_onerror_umount:
  338. ufs_clear_opt (*mount_options, ONERROR);
  339. ufs_set_opt (*mount_options, ONERROR_UMOUNT);
  340. break;
  341. case Opt_onerror_repair:
  342. printk("UFS-fs: Unable to do repair on error, "
  343. "will lock lock instead\n");
  344. ufs_clear_opt (*mount_options, ONERROR);
  345. ufs_set_opt (*mount_options, ONERROR_REPAIR);
  346. break;
  347. default:
  348. printk("UFS-fs: Invalid option: \"%s\" "
  349. "or missing value\n", p);
  350. return 0;
  351. }
  352. }
  353. return 1;
  354. }
  355. /*
  356. * Read on-disk structures associated with cylinder groups
  357. */
  358. static int ufs_read_cylinder_structures (struct super_block *sb) {
  359. struct ufs_sb_info * sbi = UFS_SB(sb);
  360. struct ufs_sb_private_info * uspi;
  361. struct ufs_super_block *usb;
  362. struct ufs_buffer_head * ubh;
  363. unsigned char * base, * space;
  364. unsigned size, blks, i;
  365. unsigned flags = 0;
  366. UFSD(("ENTER\n"))
  367. uspi = sbi->s_uspi;
  368. usb = (struct ufs_super_block *)
  369. ((struct ufs_buffer_head *)uspi)->bh[0]->b_data;
  370. flags = UFS_SB(sb)->s_flags;
  371. /*
  372. * Read cs structures from (usually) first data block
  373. * on the device.
  374. */
  375. size = uspi->s_cssize;
  376. blks = (size + uspi->s_fsize - 1) >> uspi->s_fshift;
  377. base = space = kmalloc(size, GFP_KERNEL);
  378. if (!base)
  379. goto failed;
  380. for (i = 0; i < blks; i += uspi->s_fpb) {
  381. size = uspi->s_bsize;
  382. if (i + uspi->s_fpb > blks)
  383. size = (blks - i) * uspi->s_fsize;
  384. if ((flags & UFS_TYPE_MASK) == UFS_TYPE_UFS2) {
  385. ubh = ubh_bread(sb,
  386. fs64_to_cpu(sb, usb->fs_u11.fs_u2.fs_csaddr) + i, size);
  387. if (!ubh)
  388. goto failed;
  389. ubh_ubhcpymem (space, ubh, size);
  390. sbi->s_csp[ufs_fragstoblks(i)]=(struct ufs_csum *)space;
  391. }
  392. else {
  393. ubh = ubh_bread(sb, uspi->s_csaddr + i, size);
  394. if (!ubh)
  395. goto failed;
  396. ubh_ubhcpymem(space, ubh, size);
  397. sbi->s_csp[ufs_fragstoblks(i)]=(struct ufs_csum *)space;
  398. }
  399. space += size;
  400. ubh_brelse (ubh);
  401. ubh = NULL;
  402. }
  403. /*
  404. * Read cylinder group (we read only first fragment from block
  405. * at this time) and prepare internal data structures for cg caching.
  406. */
  407. if (!(sbi->s_ucg = kmalloc (sizeof(struct buffer_head *) * uspi->s_ncg, GFP_KERNEL)))
  408. goto failed;
  409. for (i = 0; i < uspi->s_ncg; i++)
  410. sbi->s_ucg[i] = NULL;
  411. for (i = 0; i < UFS_MAX_GROUP_LOADED; i++) {
  412. sbi->s_ucpi[i] = NULL;
  413. sbi->s_cgno[i] = UFS_CGNO_EMPTY;
  414. }
  415. for (i = 0; i < uspi->s_ncg; i++) {
  416. UFSD(("read cg %u\n", i))
  417. if (!(sbi->s_ucg[i] = sb_bread(sb, ufs_cgcmin(i))))
  418. goto failed;
  419. if (!ufs_cg_chkmagic (sb, (struct ufs_cylinder_group *) sbi->s_ucg[i]->b_data))
  420. goto failed;
  421. #ifdef UFS_SUPER_DEBUG_MORE
  422. ufs_print_cylinder_stuff(sb, (struct ufs_cylinder_group *) sbi->s_ucg[i]->b_data);
  423. #endif
  424. }
  425. for (i = 0; i < UFS_MAX_GROUP_LOADED; i++) {
  426. if (!(sbi->s_ucpi[i] = kmalloc (sizeof(struct ufs_cg_private_info), GFP_KERNEL)))
  427. goto failed;
  428. sbi->s_cgno[i] = UFS_CGNO_EMPTY;
  429. }
  430. sbi->s_cg_loaded = 0;
  431. UFSD(("EXIT\n"))
  432. return 1;
  433. failed:
  434. kfree (base);
  435. if (sbi->s_ucg) {
  436. for (i = 0; i < uspi->s_ncg; i++)
  437. if (sbi->s_ucg[i])
  438. brelse (sbi->s_ucg[i]);
  439. kfree (sbi->s_ucg);
  440. for (i = 0; i < UFS_MAX_GROUP_LOADED; i++)
  441. kfree (sbi->s_ucpi[i]);
  442. }
  443. UFSD(("EXIT (FAILED)\n"))
  444. return 0;
  445. }
  446. /*
  447. * Put on-disk structures associated with cylinder groups and
  448. * write them back to disk
  449. */
  450. static void ufs_put_cylinder_structures (struct super_block *sb) {
  451. struct ufs_sb_info * sbi = UFS_SB(sb);
  452. struct ufs_sb_private_info * uspi;
  453. struct ufs_buffer_head * ubh;
  454. unsigned char * base, * space;
  455. unsigned blks, size, i;
  456. UFSD(("ENTER\n"))
  457. uspi = sbi->s_uspi;
  458. size = uspi->s_cssize;
  459. blks = (size + uspi->s_fsize - 1) >> uspi->s_fshift;
  460. base = space = (char*) sbi->s_csp[0];
  461. for (i = 0; i < blks; i += uspi->s_fpb) {
  462. size = uspi->s_bsize;
  463. if (i + uspi->s_fpb > blks)
  464. size = (blks - i) * uspi->s_fsize;
  465. ubh = ubh_bread(sb, uspi->s_csaddr + i, size);
  466. ubh_memcpyubh (ubh, space, size);
  467. space += size;
  468. ubh_mark_buffer_uptodate (ubh, 1);
  469. ubh_mark_buffer_dirty (ubh);
  470. ubh_brelse (ubh);
  471. }
  472. for (i = 0; i < sbi->s_cg_loaded; i++) {
  473. ufs_put_cylinder (sb, i);
  474. kfree (sbi->s_ucpi[i]);
  475. }
  476. for (; i < UFS_MAX_GROUP_LOADED; i++)
  477. kfree (sbi->s_ucpi[i]);
  478. for (i = 0; i < uspi->s_ncg; i++)
  479. brelse (sbi->s_ucg[i]);
  480. kfree (sbi->s_ucg);
  481. kfree (base);
  482. UFSD(("EXIT\n"))
  483. }
  484. static int ufs_fill_super(struct super_block *sb, void *data, int silent)
  485. {
  486. struct ufs_sb_info * sbi;
  487. struct ufs_sb_private_info * uspi;
  488. struct ufs_super_block_first * usb1;
  489. struct ufs_super_block_second * usb2;
  490. struct ufs_super_block_third * usb3;
  491. struct ufs_super_block *usb;
  492. struct ufs_buffer_head * ubh;
  493. struct inode *inode;
  494. unsigned block_size, super_block_size;
  495. unsigned flags;
  496. uspi = NULL;
  497. ubh = NULL;
  498. flags = 0;
  499. UFSD(("ENTER\n"))
  500. sbi = kmalloc(sizeof(struct ufs_sb_info), GFP_KERNEL);
  501. if (!sbi)
  502. goto failed_nomem;
  503. sb->s_fs_info = sbi;
  504. memset(sbi, 0, sizeof(struct ufs_sb_info));
  505. UFSD(("flag %u\n", (int)(sb->s_flags & MS_RDONLY)))
  506. #ifndef CONFIG_UFS_FS_WRITE
  507. if (!(sb->s_flags & MS_RDONLY)) {
  508. printk("ufs was compiled with read-only support, "
  509. "can't be mounted as read-write\n");
  510. goto failed;
  511. }
  512. #endif
  513. /*
  514. * Set default mount options
  515. * Parse mount options
  516. */
  517. sbi->s_mount_opt = 0;
  518. ufs_set_opt (sbi->s_mount_opt, ONERROR_LOCK);
  519. if (!ufs_parse_options ((char *) data, &sbi->s_mount_opt)) {
  520. printk("wrong mount options\n");
  521. goto failed;
  522. }
  523. if (!(sbi->s_mount_opt & UFS_MOUNT_UFSTYPE)) {
  524. if (!silent)
  525. printk("You didn't specify the type of your ufs filesystem\n\n"
  526. "mount -t ufs -o ufstype="
  527. "sun|sunx86|44bsd|ufs2|5xbsd|old|hp|nextstep|netxstep-cd|openstep ...\n\n"
  528. ">>>WARNING<<< Wrong ufstype may corrupt your filesystem, "
  529. "default is ufstype=old\n");
  530. ufs_set_opt (sbi->s_mount_opt, UFSTYPE_OLD);
  531. }
  532. sbi->s_uspi = uspi =
  533. kmalloc (sizeof(struct ufs_sb_private_info), GFP_KERNEL);
  534. if (!uspi)
  535. goto failed;
  536. /* Keep 2Gig file limit. Some UFS variants need to override
  537. this but as I don't know which I'll let those in the know loosen
  538. the rules */
  539. switch (sbi->s_mount_opt & UFS_MOUNT_UFSTYPE) {
  540. case UFS_MOUNT_UFSTYPE_44BSD:
  541. UFSD(("ufstype=44bsd\n"))
  542. uspi->s_fsize = block_size = 512;
  543. uspi->s_fmask = ~(512 - 1);
  544. uspi->s_fshift = 9;
  545. uspi->s_sbsize = super_block_size = 1536;
  546. uspi->s_sbbase = 0;
  547. flags |= UFS_DE_44BSD | UFS_UID_44BSD | UFS_ST_44BSD | UFS_CG_44BSD;
  548. break;
  549. case UFS_MOUNT_UFSTYPE_UFS2:
  550. UFSD(("ufstype=ufs2\n"))
  551. uspi->s_fsize = block_size = 512;
  552. uspi->s_fmask = ~(512 - 1);
  553. uspi->s_fshift = 9;
  554. uspi->s_sbsize = super_block_size = 1536;
  555. uspi->s_sbbase = 0;
  556. flags |= UFS_TYPE_UFS2 | UFS_DE_44BSD | UFS_UID_44BSD | UFS_ST_44BSD | UFS_CG_44BSD;
  557. if (!(sb->s_flags & MS_RDONLY)) {
  558. printk(KERN_INFO "ufstype=ufs2 is supported read-only\n");
  559. sb->s_flags |= MS_RDONLY;
  560. }
  561. break;
  562. case UFS_MOUNT_UFSTYPE_SUN:
  563. UFSD(("ufstype=sun\n"))
  564. uspi->s_fsize = block_size = 1024;
  565. uspi->s_fmask = ~(1024 - 1);
  566. uspi->s_fshift = 10;
  567. uspi->s_sbsize = super_block_size = 2048;
  568. uspi->s_sbbase = 0;
  569. uspi->s_maxsymlinklen = 56;
  570. flags |= UFS_DE_OLD | UFS_UID_EFT | UFS_ST_SUN | UFS_CG_SUN;
  571. break;
  572. case UFS_MOUNT_UFSTYPE_SUNx86:
  573. UFSD(("ufstype=sunx86\n"))
  574. uspi->s_fsize = block_size = 1024;
  575. uspi->s_fmask = ~(1024 - 1);
  576. uspi->s_fshift = 10;
  577. uspi->s_sbsize = super_block_size = 2048;
  578. uspi->s_sbbase = 0;
  579. uspi->s_maxsymlinklen = 56;
  580. flags |= UFS_DE_OLD | UFS_UID_EFT | UFS_ST_SUNx86 | UFS_CG_SUN;
  581. break;
  582. case UFS_MOUNT_UFSTYPE_OLD:
  583. UFSD(("ufstype=old\n"))
  584. uspi->s_fsize = block_size = 1024;
  585. uspi->s_fmask = ~(1024 - 1);
  586. uspi->s_fshift = 10;
  587. uspi->s_sbsize = super_block_size = 2048;
  588. uspi->s_sbbase = 0;
  589. flags |= UFS_DE_OLD | UFS_UID_OLD | UFS_ST_OLD | UFS_CG_OLD;
  590. if (!(sb->s_flags & MS_RDONLY)) {
  591. if (!silent)
  592. printk(KERN_INFO "ufstype=old is supported read-only\n");
  593. sb->s_flags |= MS_RDONLY;
  594. }
  595. break;
  596. case UFS_MOUNT_UFSTYPE_NEXTSTEP:
  597. UFSD(("ufstype=nextstep\n"))
  598. uspi->s_fsize = block_size = 1024;
  599. uspi->s_fmask = ~(1024 - 1);
  600. uspi->s_fshift = 10;
  601. uspi->s_sbsize = super_block_size = 2048;
  602. uspi->s_sbbase = 0;
  603. flags |= UFS_DE_OLD | UFS_UID_OLD | UFS_ST_OLD | UFS_CG_OLD;
  604. if (!(sb->s_flags & MS_RDONLY)) {
  605. if (!silent)
  606. printk(KERN_INFO "ufstype=nextstep is supported read-only\n");
  607. sb->s_flags |= MS_RDONLY;
  608. }
  609. break;
  610. case UFS_MOUNT_UFSTYPE_NEXTSTEP_CD:
  611. UFSD(("ufstype=nextstep-cd\n"))
  612. uspi->s_fsize = block_size = 2048;
  613. uspi->s_fmask = ~(2048 - 1);
  614. uspi->s_fshift = 11;
  615. uspi->s_sbsize = super_block_size = 2048;
  616. uspi->s_sbbase = 0;
  617. flags |= UFS_DE_OLD | UFS_UID_OLD | UFS_ST_OLD | UFS_CG_OLD;
  618. if (!(sb->s_flags & MS_RDONLY)) {
  619. if (!silent)
  620. printk(KERN_INFO "ufstype=nextstep-cd is supported read-only\n");
  621. sb->s_flags |= MS_RDONLY;
  622. }
  623. break;
  624. case UFS_MOUNT_UFSTYPE_OPENSTEP:
  625. UFSD(("ufstype=openstep\n"))
  626. uspi->s_fsize = block_size = 1024;
  627. uspi->s_fmask = ~(1024 - 1);
  628. uspi->s_fshift = 10;
  629. uspi->s_sbsize = super_block_size = 2048;
  630. uspi->s_sbbase = 0;
  631. flags |= UFS_DE_44BSD | UFS_UID_44BSD | UFS_ST_44BSD | UFS_CG_44BSD;
  632. if (!(sb->s_flags & MS_RDONLY)) {
  633. if (!silent)
  634. printk(KERN_INFO "ufstype=openstep is supported read-only\n");
  635. sb->s_flags |= MS_RDONLY;
  636. }
  637. break;
  638. case UFS_MOUNT_UFSTYPE_HP:
  639. UFSD(("ufstype=hp\n"))
  640. uspi->s_fsize = block_size = 1024;
  641. uspi->s_fmask = ~(1024 - 1);
  642. uspi->s_fshift = 10;
  643. uspi->s_sbsize = super_block_size = 2048;
  644. uspi->s_sbbase = 0;
  645. flags |= UFS_DE_OLD | UFS_UID_OLD | UFS_ST_OLD | UFS_CG_OLD;
  646. if (!(sb->s_flags & MS_RDONLY)) {
  647. if (!silent)
  648. printk(KERN_INFO "ufstype=hp is supported read-only\n");
  649. sb->s_flags |= MS_RDONLY;
  650. }
  651. break;
  652. default:
  653. if (!silent)
  654. printk("unknown ufstype\n");
  655. goto failed;
  656. }
  657. again:
  658. if (!sb_set_blocksize(sb, block_size)) {
  659. printk(KERN_ERR "UFS: failed to set blocksize\n");
  660. goto failed;
  661. }
  662. /*
  663. * read ufs super block from device
  664. */
  665. if ( (flags & UFS_TYPE_MASK) == UFS_TYPE_UFS2) {
  666. ubh = ubh_bread_uspi(uspi, sb, uspi->s_sbbase + SBLOCK_UFS2/block_size, super_block_size);
  667. }
  668. else {
  669. ubh = ubh_bread_uspi(uspi, sb, uspi->s_sbbase + UFS_SBLOCK/block_size, super_block_size);
  670. }
  671. if (!ubh)
  672. goto failed;
  673. usb1 = ubh_get_usb_first(USPI_UBH);
  674. usb2 = ubh_get_usb_second(USPI_UBH);
  675. usb3 = ubh_get_usb_third(USPI_UBH);
  676. usb = (struct ufs_super_block *)
  677. ((struct ufs_buffer_head *)uspi)->bh[0]->b_data ;
  678. /*
  679. * Check ufs magic number
  680. */
  681. sbi->s_bytesex = BYTESEX_LE;
  682. switch ((uspi->fs_magic = fs32_to_cpu(sb, usb3->fs_magic))) {
  683. case UFS_MAGIC:
  684. case UFS2_MAGIC:
  685. case UFS_MAGIC_LFN:
  686. case UFS_MAGIC_FEA:
  687. case UFS_MAGIC_4GB:
  688. goto magic_found;
  689. }
  690. sbi->s_bytesex = BYTESEX_BE;
  691. switch ((uspi->fs_magic = fs32_to_cpu(sb, usb3->fs_magic))) {
  692. case UFS_MAGIC:
  693. case UFS2_MAGIC:
  694. case UFS_MAGIC_LFN:
  695. case UFS_MAGIC_FEA:
  696. case UFS_MAGIC_4GB:
  697. goto magic_found;
  698. }
  699. if ((((sbi->s_mount_opt & UFS_MOUNT_UFSTYPE) == UFS_MOUNT_UFSTYPE_NEXTSTEP)
  700. || ((sbi->s_mount_opt & UFS_MOUNT_UFSTYPE) == UFS_MOUNT_UFSTYPE_NEXTSTEP_CD)
  701. || ((sbi->s_mount_opt & UFS_MOUNT_UFSTYPE) == UFS_MOUNT_UFSTYPE_OPENSTEP))
  702. && uspi->s_sbbase < 256) {
  703. ubh_brelse_uspi(uspi);
  704. ubh = NULL;
  705. uspi->s_sbbase += 8;
  706. goto again;
  707. }
  708. if (!silent)
  709. printk("ufs_read_super: bad magic number\n");
  710. goto failed;
  711. magic_found:
  712. /*
  713. * Check block and fragment sizes
  714. */
  715. uspi->s_bsize = fs32_to_cpu(sb, usb1->fs_bsize);
  716. uspi->s_fsize = fs32_to_cpu(sb, usb1->fs_fsize);
  717. uspi->s_sbsize = fs32_to_cpu(sb, usb1->fs_sbsize);
  718. uspi->s_fmask = fs32_to_cpu(sb, usb1->fs_fmask);
  719. uspi->s_fshift = fs32_to_cpu(sb, usb1->fs_fshift);
  720. if (uspi->s_fsize & (uspi->s_fsize - 1)) {
  721. printk(KERN_ERR "ufs_read_super: fragment size %u is not a power of 2\n",
  722. uspi->s_fsize);
  723. goto failed;
  724. }
  725. if (uspi->s_fsize < 512) {
  726. printk(KERN_ERR "ufs_read_super: fragment size %u is too small\n",
  727. uspi->s_fsize);
  728. goto failed;
  729. }
  730. if (uspi->s_fsize > 4096) {
  731. printk(KERN_ERR "ufs_read_super: fragment size %u is too large\n",
  732. uspi->s_fsize);
  733. goto failed;
  734. }
  735. if (uspi->s_bsize & (uspi->s_bsize - 1)) {
  736. printk(KERN_ERR "ufs_read_super: block size %u is not a power of 2\n",
  737. uspi->s_bsize);
  738. goto failed;
  739. }
  740. if (uspi->s_bsize < 4096) {
  741. printk(KERN_ERR "ufs_read_super: block size %u is too small\n",
  742. uspi->s_bsize);
  743. goto failed;
  744. }
  745. if (uspi->s_bsize / uspi->s_fsize > 8) {
  746. printk(KERN_ERR "ufs_read_super: too many fragments per block (%u)\n",
  747. uspi->s_bsize / uspi->s_fsize);
  748. goto failed;
  749. }
  750. if (uspi->s_fsize != block_size || uspi->s_sbsize != super_block_size) {
  751. ubh_brelse_uspi(uspi);
  752. ubh = NULL;
  753. block_size = uspi->s_fsize;
  754. super_block_size = uspi->s_sbsize;
  755. UFSD(("another value of block_size or super_block_size %u, %u\n", block_size, super_block_size))
  756. goto again;
  757. }
  758. #ifdef UFS_SUPER_DEBUG_MORE
  759. if ((flags & UFS_TYPE_MASK) == UFS_TYPE_UFS2)
  760. ufs2_print_super_stuff(sb,usb);
  761. else
  762. ufs_print_super_stuff(sb, usb1, usb2, usb3);
  763. #endif
  764. /*
  765. * Check, if file system was correctly unmounted.
  766. * If not, make it read only.
  767. */
  768. if (((flags & UFS_ST_MASK) == UFS_ST_44BSD) ||
  769. ((flags & UFS_ST_MASK) == UFS_ST_OLD) ||
  770. (((flags & UFS_ST_MASK) == UFS_ST_SUN ||
  771. (flags & UFS_ST_MASK) == UFS_ST_SUNx86) &&
  772. (ufs_get_fs_state(sb, usb1, usb3) == (UFS_FSOK - fs32_to_cpu(sb, usb1->fs_time))))) {
  773. switch(usb1->fs_clean) {
  774. case UFS_FSCLEAN:
  775. UFSD(("fs is clean\n"))
  776. break;
  777. case UFS_FSSTABLE:
  778. UFSD(("fs is stable\n"))
  779. break;
  780. case UFS_FSOSF1:
  781. UFSD(("fs is DEC OSF/1\n"))
  782. break;
  783. case UFS_FSACTIVE:
  784. printk("ufs_read_super: fs is active\n");
  785. sb->s_flags |= MS_RDONLY;
  786. break;
  787. case UFS_FSBAD:
  788. printk("ufs_read_super: fs is bad\n");
  789. sb->s_flags |= MS_RDONLY;
  790. break;
  791. default:
  792. printk("ufs_read_super: can't grok fs_clean 0x%x\n", usb1->fs_clean);
  793. sb->s_flags |= MS_RDONLY;
  794. break;
  795. }
  796. }
  797. else {
  798. printk("ufs_read_super: fs needs fsck\n");
  799. sb->s_flags |= MS_RDONLY;
  800. }
  801. /*
  802. * Read ufs_super_block into internal data structures
  803. */
  804. sb->s_op = &ufs_super_ops;
  805. sb->dq_op = NULL; /***/
  806. sb->s_magic = fs32_to_cpu(sb, usb3->fs_magic);
  807. uspi->s_sblkno = fs32_to_cpu(sb, usb1->fs_sblkno);
  808. uspi->s_cblkno = fs32_to_cpu(sb, usb1->fs_cblkno);
  809. uspi->s_iblkno = fs32_to_cpu(sb, usb1->fs_iblkno);
  810. uspi->s_dblkno = fs32_to_cpu(sb, usb1->fs_dblkno);
  811. uspi->s_cgoffset = fs32_to_cpu(sb, usb1->fs_cgoffset);
  812. uspi->s_cgmask = fs32_to_cpu(sb, usb1->fs_cgmask);
  813. if ((flags & UFS_TYPE_MASK) == UFS_TYPE_UFS2) {
  814. uspi->s_u2_size = fs64_to_cpu(sb, usb->fs_u11.fs_u2.fs_size);
  815. uspi->s_u2_dsize = fs64_to_cpu(sb, usb->fs_u11.fs_u2.fs_dsize);
  816. }
  817. else {
  818. uspi->s_size = fs32_to_cpu(sb, usb1->fs_size);
  819. uspi->s_dsize = fs32_to_cpu(sb, usb1->fs_dsize);
  820. }
  821. uspi->s_ncg = fs32_to_cpu(sb, usb1->fs_ncg);
  822. /* s_bsize already set */
  823. /* s_fsize already set */
  824. uspi->s_fpb = fs32_to_cpu(sb, usb1->fs_frag);
  825. uspi->s_minfree = fs32_to_cpu(sb, usb1->fs_minfree);
  826. uspi->s_bmask = fs32_to_cpu(sb, usb1->fs_bmask);
  827. uspi->s_fmask = fs32_to_cpu(sb, usb1->fs_fmask);
  828. uspi->s_bshift = fs32_to_cpu(sb, usb1->fs_bshift);
  829. uspi->s_fshift = fs32_to_cpu(sb, usb1->fs_fshift);
  830. UFSD(("uspi->s_bshift = %d,uspi->s_fshift = %d", uspi->s_bshift,
  831. uspi->s_fshift));
  832. uspi->s_fpbshift = fs32_to_cpu(sb, usb1->fs_fragshift);
  833. uspi->s_fsbtodb = fs32_to_cpu(sb, usb1->fs_fsbtodb);
  834. /* s_sbsize already set */
  835. uspi->s_csmask = fs32_to_cpu(sb, usb1->fs_csmask);
  836. uspi->s_csshift = fs32_to_cpu(sb, usb1->fs_csshift);
  837. uspi->s_nindir = fs32_to_cpu(sb, usb1->fs_nindir);
  838. uspi->s_inopb = fs32_to_cpu(sb, usb1->fs_inopb);
  839. uspi->s_nspf = fs32_to_cpu(sb, usb1->fs_nspf);
  840. uspi->s_npsect = ufs_get_fs_npsect(sb, usb1, usb3);
  841. uspi->s_interleave = fs32_to_cpu(sb, usb1->fs_interleave);
  842. uspi->s_trackskew = fs32_to_cpu(sb, usb1->fs_trackskew);
  843. uspi->s_csaddr = fs32_to_cpu(sb, usb1->fs_csaddr);
  844. uspi->s_cssize = fs32_to_cpu(sb, usb1->fs_cssize);
  845. uspi->s_cgsize = fs32_to_cpu(sb, usb1->fs_cgsize);
  846. uspi->s_ntrak = fs32_to_cpu(sb, usb1->fs_ntrak);
  847. uspi->s_nsect = fs32_to_cpu(sb, usb1->fs_nsect);
  848. uspi->s_spc = fs32_to_cpu(sb, usb1->fs_spc);
  849. uspi->s_ipg = fs32_to_cpu(sb, usb1->fs_ipg);
  850. uspi->s_fpg = fs32_to_cpu(sb, usb1->fs_fpg);
  851. uspi->s_cpc = fs32_to_cpu(sb, usb2->fs_cpc);
  852. uspi->s_contigsumsize = fs32_to_cpu(sb, usb3->fs_u2.fs_44.fs_contigsumsize);
  853. uspi->s_qbmask = ufs_get_fs_qbmask(sb, usb3);
  854. uspi->s_qfmask = ufs_get_fs_qfmask(sb, usb3);
  855. uspi->s_postblformat = fs32_to_cpu(sb, usb3->fs_postblformat);
  856. uspi->s_nrpos = fs32_to_cpu(sb, usb3->fs_nrpos);
  857. uspi->s_postbloff = fs32_to_cpu(sb, usb3->fs_postbloff);
  858. uspi->s_rotbloff = fs32_to_cpu(sb, usb3->fs_rotbloff);
  859. /*
  860. * Compute another frequently used values
  861. */
  862. uspi->s_fpbmask = uspi->s_fpb - 1;
  863. if ((flags & UFS_TYPE_MASK) == UFS_TYPE_UFS2) {
  864. uspi->s_apbshift = uspi->s_bshift - 3;
  865. }
  866. else {
  867. uspi->s_apbshift = uspi->s_bshift - 2;
  868. }
  869. uspi->s_2apbshift = uspi->s_apbshift * 2;
  870. uspi->s_3apbshift = uspi->s_apbshift * 3;
  871. uspi->s_apb = 1 << uspi->s_apbshift;
  872. uspi->s_2apb = 1 << uspi->s_2apbshift;
  873. uspi->s_3apb = 1 << uspi->s_3apbshift;
  874. uspi->s_apbmask = uspi->s_apb - 1;
  875. uspi->s_nspfshift = uspi->s_fshift - UFS_SECTOR_BITS;
  876. uspi->s_nspb = uspi->s_nspf << uspi->s_fpbshift;
  877. uspi->s_inopf = uspi->s_inopb >> uspi->s_fpbshift;
  878. uspi->s_bpf = uspi->s_fsize << 3;
  879. uspi->s_bpfshift = uspi->s_fshift + 3;
  880. uspi->s_bpfmask = uspi->s_bpf - 1;
  881. if ((sbi->s_mount_opt & UFS_MOUNT_UFSTYPE) ==
  882. UFS_MOUNT_UFSTYPE_44BSD)
  883. uspi->s_maxsymlinklen =
  884. fs32_to_cpu(sb, usb3->fs_u2.fs_44.fs_maxsymlinklen);
  885. sbi->s_flags = flags;
  886. inode = iget(sb, UFS_ROOTINO);
  887. if (!inode || is_bad_inode(inode))
  888. goto failed;
  889. sb->s_root = d_alloc_root(inode);
  890. if (!sb->s_root)
  891. goto dalloc_failed;
  892. /*
  893. * Read cylinder group structures
  894. */
  895. if (!(sb->s_flags & MS_RDONLY))
  896. if (!ufs_read_cylinder_structures(sb))
  897. goto failed;
  898. UFSD(("EXIT\n"))
  899. return 0;
  900. dalloc_failed:
  901. iput(inode);
  902. failed:
  903. if (ubh)
  904. ubh_brelse_uspi (uspi);
  905. kfree (uspi);
  906. kfree(sbi);
  907. sb->s_fs_info = NULL;
  908. UFSD(("EXIT (FAILED)\n"))
  909. return -EINVAL;
  910. failed_nomem:
  911. UFSD(("EXIT (NOMEM)\n"))
  912. return -ENOMEM;
  913. }
  914. static void ufs_write_super (struct super_block *sb) {
  915. struct ufs_sb_private_info * uspi;
  916. struct ufs_super_block_first * usb1;
  917. struct ufs_super_block_third * usb3;
  918. unsigned flags;
  919. lock_kernel();
  920. UFSD(("ENTER\n"))
  921. flags = UFS_SB(sb)->s_flags;
  922. uspi = UFS_SB(sb)->s_uspi;
  923. usb1 = ubh_get_usb_first(USPI_UBH);
  924. usb3 = ubh_get_usb_third(USPI_UBH);
  925. if (!(sb->s_flags & MS_RDONLY)) {
  926. usb1->fs_time = cpu_to_fs32(sb, get_seconds());
  927. if ((flags & UFS_ST_MASK) == UFS_ST_SUN
  928. || (flags & UFS_ST_MASK) == UFS_ST_SUNx86)
  929. ufs_set_fs_state(sb, usb1, usb3,
  930. UFS_FSOK - fs32_to_cpu(sb, usb1->fs_time));
  931. ubh_mark_buffer_dirty (USPI_UBH);
  932. }
  933. sb->s_dirt = 0;
  934. UFSD(("EXIT\n"))
  935. unlock_kernel();
  936. }
  937. static void ufs_put_super (struct super_block *sb)
  938. {
  939. struct ufs_sb_info * sbi = UFS_SB(sb);
  940. UFSD(("ENTER\n"))
  941. if (!(sb->s_flags & MS_RDONLY))
  942. ufs_put_cylinder_structures (sb);
  943. ubh_brelse_uspi (sbi->s_uspi);
  944. kfree (sbi->s_uspi);
  945. kfree (sbi);
  946. sb->s_fs_info = NULL;
  947. return;
  948. }
  949. static int ufs_remount (struct super_block *sb, int *mount_flags, char *data)
  950. {
  951. struct ufs_sb_private_info * uspi;
  952. struct ufs_super_block_first * usb1;
  953. struct ufs_super_block_third * usb3;
  954. unsigned new_mount_opt, ufstype;
  955. unsigned flags;
  956. uspi = UFS_SB(sb)->s_uspi;
  957. flags = UFS_SB(sb)->s_flags;
  958. usb1 = ubh_get_usb_first(USPI_UBH);
  959. usb3 = ubh_get_usb_third(USPI_UBH);
  960. /*
  961. * Allow the "check" option to be passed as a remount option.
  962. * It is not possible to change ufstype option during remount
  963. */
  964. ufstype = UFS_SB(sb)->s_mount_opt & UFS_MOUNT_UFSTYPE;
  965. new_mount_opt = 0;
  966. ufs_set_opt (new_mount_opt, ONERROR_LOCK);
  967. if (!ufs_parse_options (data, &new_mount_opt))
  968. return -EINVAL;
  969. if (!(new_mount_opt & UFS_MOUNT_UFSTYPE)) {
  970. new_mount_opt |= ufstype;
  971. }
  972. else if ((new_mount_opt & UFS_MOUNT_UFSTYPE) != ufstype) {
  973. printk("ufstype can't be changed during remount\n");
  974. return -EINVAL;
  975. }
  976. if ((*mount_flags & MS_RDONLY) == (sb->s_flags & MS_RDONLY)) {
  977. UFS_SB(sb)->s_mount_opt = new_mount_opt;
  978. return 0;
  979. }
  980. /*
  981. * fs was mouted as rw, remounting ro
  982. */
  983. if (*mount_flags & MS_RDONLY) {
  984. ufs_put_cylinder_structures(sb);
  985. usb1->fs_time = cpu_to_fs32(sb, get_seconds());
  986. if ((flags & UFS_ST_MASK) == UFS_ST_SUN
  987. || (flags & UFS_ST_MASK) == UFS_ST_SUNx86)
  988. ufs_set_fs_state(sb, usb1, usb3,
  989. UFS_FSOK - fs32_to_cpu(sb, usb1->fs_time));
  990. ubh_mark_buffer_dirty (USPI_UBH);
  991. sb->s_dirt = 0;
  992. sb->s_flags |= MS_RDONLY;
  993. }
  994. /*
  995. * fs was mounted as ro, remounting rw
  996. */
  997. else {
  998. #ifndef CONFIG_UFS_FS_WRITE
  999. printk("ufs was compiled with read-only support, "
  1000. "can't be mounted as read-write\n");
  1001. return -EINVAL;
  1002. #else
  1003. if (ufstype != UFS_MOUNT_UFSTYPE_SUN &&
  1004. ufstype != UFS_MOUNT_UFSTYPE_44BSD &&
  1005. ufstype != UFS_MOUNT_UFSTYPE_SUNx86) {
  1006. printk("this ufstype is read-only supported\n");
  1007. return -EINVAL;
  1008. }
  1009. if (!ufs_read_cylinder_structures (sb)) {
  1010. printk("failed during remounting\n");
  1011. return -EPERM;
  1012. }
  1013. sb->s_flags &= ~MS_RDONLY;
  1014. #endif
  1015. }
  1016. UFS_SB(sb)->s_mount_opt = new_mount_opt;
  1017. return 0;
  1018. }
  1019. static int ufs_statfs (struct super_block *sb, struct kstatfs *buf)
  1020. {
  1021. struct ufs_sb_private_info * uspi;
  1022. struct ufs_super_block_first * usb1;
  1023. struct ufs_super_block * usb;
  1024. unsigned flags = 0;
  1025. lock_kernel();
  1026. uspi = UFS_SB(sb)->s_uspi;
  1027. usb1 = ubh_get_usb_first (USPI_UBH);
  1028. usb = (struct ufs_super_block *)
  1029. ((struct ufs_buffer_head *)uspi)->bh[0]->b_data ;
  1030. flags = UFS_SB(sb)->s_flags;
  1031. if ((flags & UFS_TYPE_MASK) == UFS_TYPE_UFS2) {
  1032. buf->f_type = UFS2_MAGIC;
  1033. buf->f_blocks = fs64_to_cpu(sb, usb->fs_u11.fs_u2.fs_dsize);
  1034. buf->f_bfree = ufs_blkstofrags(fs64_to_cpu(sb, usb->fs_u11.fs_u2.fs_cstotal.cs_nbfree)) +
  1035. fs64_to_cpu(sb, usb->fs_u11.fs_u2.fs_cstotal.cs_nffree);
  1036. buf->f_ffree = fs64_to_cpu(sb,
  1037. usb->fs_u11.fs_u2.fs_cstotal.cs_nifree);
  1038. }
  1039. else {
  1040. buf->f_type = UFS_MAGIC;
  1041. buf->f_blocks = uspi->s_dsize;
  1042. buf->f_bfree = ufs_blkstofrags(fs32_to_cpu(sb, usb1->fs_cstotal.cs_nbfree)) +
  1043. fs32_to_cpu(sb, usb1->fs_cstotal.cs_nffree);
  1044. buf->f_ffree = fs32_to_cpu(sb, usb1->fs_cstotal.cs_nifree);
  1045. }
  1046. buf->f_bsize = sb->s_blocksize;
  1047. buf->f_bavail = (buf->f_bfree > (((long)buf->f_blocks / 100) * uspi->s_minfree))
  1048. ? (buf->f_bfree - (((long)buf->f_blocks / 100) * uspi->s_minfree)) : 0;
  1049. buf->f_files = uspi->s_ncg * uspi->s_ipg;
  1050. buf->f_namelen = UFS_MAXNAMLEN;
  1051. unlock_kernel();
  1052. return 0;
  1053. }
  1054. static kmem_cache_t * ufs_inode_cachep;
  1055. static struct inode *ufs_alloc_inode(struct super_block *sb)
  1056. {
  1057. struct ufs_inode_info *ei;
  1058. ei = (struct ufs_inode_info *)kmem_cache_alloc(ufs_inode_cachep, SLAB_KERNEL);
  1059. if (!ei)
  1060. return NULL;
  1061. ei->vfs_inode.i_version = 1;
  1062. return &ei->vfs_inode;
  1063. }
  1064. static void ufs_destroy_inode(struct inode *inode)
  1065. {
  1066. kmem_cache_free(ufs_inode_cachep, UFS_I(inode));
  1067. }
  1068. static void init_once(void * foo, kmem_cache_t * cachep, unsigned long flags)
  1069. {
  1070. struct ufs_inode_info *ei = (struct ufs_inode_info *) foo;
  1071. if ((flags & (SLAB_CTOR_VERIFY|SLAB_CTOR_CONSTRUCTOR)) ==
  1072. SLAB_CTOR_CONSTRUCTOR)
  1073. inode_init_once(&ei->vfs_inode);
  1074. }
  1075. static int init_inodecache(void)
  1076. {
  1077. ufs_inode_cachep = kmem_cache_create("ufs_inode_cache",
  1078. sizeof(struct ufs_inode_info),
  1079. 0, SLAB_RECLAIM_ACCOUNT,
  1080. init_once, NULL);
  1081. if (ufs_inode_cachep == NULL)
  1082. return -ENOMEM;
  1083. return 0;
  1084. }
  1085. static void destroy_inodecache(void)
  1086. {
  1087. if (kmem_cache_destroy(ufs_inode_cachep))
  1088. printk(KERN_INFO "ufs_inode_cache: not all structures were freed\n");
  1089. }
  1090. #ifdef CONFIG_QUOTA
  1091. static ssize_t ufs_quota_read(struct super_block *, int, char *,size_t, loff_t);
  1092. static ssize_t ufs_quota_write(struct super_block *, int, const char *, size_t, loff_t);
  1093. #endif
  1094. static struct super_operations ufs_super_ops = {
  1095. .alloc_inode = ufs_alloc_inode,
  1096. .destroy_inode = ufs_destroy_inode,
  1097. .read_inode = ufs_read_inode,
  1098. .write_inode = ufs_write_inode,
  1099. .delete_inode = ufs_delete_inode,
  1100. .put_super = ufs_put_super,
  1101. .write_super = ufs_write_super,
  1102. .statfs = ufs_statfs,
  1103. .remount_fs = ufs_remount,
  1104. #ifdef CONFIG_QUOTA
  1105. .quota_read = ufs_quota_read,
  1106. .quota_write = ufs_quota_write,
  1107. #endif
  1108. };
  1109. #ifdef CONFIG_QUOTA
  1110. /* Read data from quotafile - avoid pagecache and such because we cannot afford
  1111. * acquiring the locks... As quota files are never truncated and quota code
  1112. * itself serializes the operations (and noone else should touch the files)
  1113. * we don't have to be afraid of races */
  1114. static ssize_t ufs_quota_read(struct super_block *sb, int type, char *data,
  1115. size_t len, loff_t off)
  1116. {
  1117. struct inode *inode = sb_dqopt(sb)->files[type];
  1118. sector_t blk = off >> sb->s_blocksize_bits;
  1119. int err = 0;
  1120. int offset = off & (sb->s_blocksize - 1);
  1121. int tocopy;
  1122. size_t toread;
  1123. struct buffer_head *bh;
  1124. loff_t i_size = i_size_read(inode);
  1125. if (off > i_size)
  1126. return 0;
  1127. if (off+len > i_size)
  1128. len = i_size-off;
  1129. toread = len;
  1130. while (toread > 0) {
  1131. tocopy = sb->s_blocksize - offset < toread ?
  1132. sb->s_blocksize - offset : toread;
  1133. bh = ufs_bread(inode, blk, 0, &err);
  1134. if (err)
  1135. return err;
  1136. if (!bh) /* A hole? */
  1137. memset(data, 0, tocopy);
  1138. else {
  1139. memcpy(data, bh->b_data+offset, tocopy);
  1140. brelse(bh);
  1141. }
  1142. offset = 0;
  1143. toread -= tocopy;
  1144. data += tocopy;
  1145. blk++;
  1146. }
  1147. return len;
  1148. }
  1149. /* Write to quotafile */
  1150. static ssize_t ufs_quota_write(struct super_block *sb, int type,
  1151. const char *data, size_t len, loff_t off)
  1152. {
  1153. struct inode *inode = sb_dqopt(sb)->files[type];
  1154. sector_t blk = off >> sb->s_blocksize_bits;
  1155. int err = 0;
  1156. int offset = off & (sb->s_blocksize - 1);
  1157. int tocopy;
  1158. size_t towrite = len;
  1159. struct buffer_head *bh;
  1160. down(&inode->i_sem);
  1161. while (towrite > 0) {
  1162. tocopy = sb->s_blocksize - offset < towrite ?
  1163. sb->s_blocksize - offset : towrite;
  1164. bh = ufs_bread(inode, blk, 1, &err);
  1165. if (!bh)
  1166. goto out;
  1167. lock_buffer(bh);
  1168. memcpy(bh->b_data+offset, data, tocopy);
  1169. flush_dcache_page(bh->b_page);
  1170. set_buffer_uptodate(bh);
  1171. mark_buffer_dirty(bh);
  1172. unlock_buffer(bh);
  1173. brelse(bh);
  1174. offset = 0;
  1175. towrite -= tocopy;
  1176. data += tocopy;
  1177. blk++;
  1178. }
  1179. out:
  1180. if (len == towrite)
  1181. return err;
  1182. if (inode->i_size < off+len-towrite)
  1183. i_size_write(inode, off+len-towrite);
  1184. inode->i_version++;
  1185. inode->i_mtime = inode->i_ctime = CURRENT_TIME_SEC;
  1186. mark_inode_dirty(inode);
  1187. up(&inode->i_sem);
  1188. return len - towrite;
  1189. }
  1190. #endif
  1191. static struct super_block *ufs_get_sb(struct file_system_type *fs_type,
  1192. int flags, const char *dev_name, void *data)
  1193. {
  1194. return get_sb_bdev(fs_type, flags, dev_name, data, ufs_fill_super);
  1195. }
  1196. static struct file_system_type ufs_fs_type = {
  1197. .owner = THIS_MODULE,
  1198. .name = "ufs",
  1199. .get_sb = ufs_get_sb,
  1200. .kill_sb = kill_block_super,
  1201. .fs_flags = FS_REQUIRES_DEV,
  1202. };
  1203. static int __init init_ufs_fs(void)
  1204. {
  1205. int err = init_inodecache();
  1206. if (err)
  1207. goto out1;
  1208. err = register_filesystem(&ufs_fs_type);
  1209. if (err)
  1210. goto out;
  1211. return 0;
  1212. out:
  1213. destroy_inodecache();
  1214. out1:
  1215. return err;
  1216. }
  1217. static void __exit exit_ufs_fs(void)
  1218. {
  1219. unregister_filesystem(&ufs_fs_type);
  1220. destroy_inodecache();
  1221. }
  1222. module_init(init_ufs_fs)
  1223. module_exit(exit_ufs_fs)
  1224. MODULE_LICENSE("GPL");