summary.c 23 KB

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  1. /*
  2. * JFFS2 -- Journalling Flash File System, Version 2.
  3. *
  4. * Copyright (C) 2004 Ferenc Havasi <havasi@inf.u-szeged.hu>,
  5. * Zoltan Sogor <weth@inf.u-szeged.hu>,
  6. * Patrik Kluba <pajko@halom.u-szeged.hu>,
  7. * University of Szeged, Hungary
  8. * 2006 KaiGai Kohei <kaigai@ak.jp.nec.com>
  9. *
  10. * For licensing information, see the file 'LICENCE' in this directory.
  11. *
  12. * $Id: summary.c,v 1.4 2005/09/26 11:37:21 havasi Exp $
  13. *
  14. */
  15. #include <linux/kernel.h>
  16. #include <linux/sched.h>
  17. #include <linux/slab.h>
  18. #include <linux/mtd/mtd.h>
  19. #include <linux/pagemap.h>
  20. #include <linux/crc32.h>
  21. #include <linux/compiler.h>
  22. #include <linux/vmalloc.h>
  23. #include "nodelist.h"
  24. #include "debug.h"
  25. int jffs2_sum_init(struct jffs2_sb_info *c)
  26. {
  27. c->summary = kmalloc(sizeof(struct jffs2_summary), GFP_KERNEL);
  28. if (!c->summary) {
  29. JFFS2_WARNING("Can't allocate memory for summary information!\n");
  30. return -ENOMEM;
  31. }
  32. memset(c->summary, 0, sizeof(struct jffs2_summary));
  33. c->summary->sum_buf = vmalloc(c->sector_size);
  34. if (!c->summary->sum_buf) {
  35. JFFS2_WARNING("Can't allocate buffer for writing out summary information!\n");
  36. kfree(c->summary);
  37. return -ENOMEM;
  38. }
  39. dbg_summary("returned successfully\n");
  40. return 0;
  41. }
  42. void jffs2_sum_exit(struct jffs2_sb_info *c)
  43. {
  44. dbg_summary("called\n");
  45. jffs2_sum_disable_collecting(c->summary);
  46. vfree(c->summary->sum_buf);
  47. c->summary->sum_buf = NULL;
  48. kfree(c->summary);
  49. c->summary = NULL;
  50. }
  51. static int jffs2_sum_add_mem(struct jffs2_summary *s, union jffs2_sum_mem *item)
  52. {
  53. if (!s->sum_list_head)
  54. s->sum_list_head = (union jffs2_sum_mem *) item;
  55. if (s->sum_list_tail)
  56. s->sum_list_tail->u.next = (union jffs2_sum_mem *) item;
  57. s->sum_list_tail = (union jffs2_sum_mem *) item;
  58. switch (je16_to_cpu(item->u.nodetype)) {
  59. case JFFS2_NODETYPE_INODE:
  60. s->sum_size += JFFS2_SUMMARY_INODE_SIZE;
  61. s->sum_num++;
  62. dbg_summary("inode (%u) added to summary\n",
  63. je32_to_cpu(item->i.inode));
  64. break;
  65. case JFFS2_NODETYPE_DIRENT:
  66. s->sum_size += JFFS2_SUMMARY_DIRENT_SIZE(item->d.nsize);
  67. s->sum_num++;
  68. dbg_summary("dirent (%u) added to summary\n",
  69. je32_to_cpu(item->d.ino));
  70. break;
  71. #ifdef CONFIG_JFFS2_FS_XATTR
  72. case JFFS2_NODETYPE_XATTR:
  73. s->sum_size += JFFS2_SUMMARY_XATTR_SIZE;
  74. s->sum_num++;
  75. dbg_summary("xattr (xid=%u, version=%u) added to summary\n",
  76. je32_to_cpu(item->x.xid), je32_to_cpu(item->x.version));
  77. break;
  78. case JFFS2_NODETYPE_XREF:
  79. s->sum_size += JFFS2_SUMMARY_XREF_SIZE;
  80. s->sum_num++;
  81. dbg_summary("xref added to summary\n");
  82. break;
  83. #endif
  84. default:
  85. JFFS2_WARNING("UNKNOWN node type %u\n",
  86. je16_to_cpu(item->u.nodetype));
  87. return 1;
  88. }
  89. return 0;
  90. }
  91. /* The following 3 functions are called from scan.c to collect summary info for not closed jeb */
  92. int jffs2_sum_add_padding_mem(struct jffs2_summary *s, uint32_t size)
  93. {
  94. dbg_summary("called with %u\n", size);
  95. s->sum_padded += size;
  96. return 0;
  97. }
  98. int jffs2_sum_add_inode_mem(struct jffs2_summary *s, struct jffs2_raw_inode *ri,
  99. uint32_t ofs)
  100. {
  101. struct jffs2_sum_inode_mem *temp = kmalloc(sizeof(struct jffs2_sum_inode_mem), GFP_KERNEL);
  102. if (!temp)
  103. return -ENOMEM;
  104. temp->nodetype = ri->nodetype;
  105. temp->inode = ri->ino;
  106. temp->version = ri->version;
  107. temp->offset = cpu_to_je32(ofs); /* relative offset from the begining of the jeb */
  108. temp->totlen = ri->totlen;
  109. temp->next = NULL;
  110. return jffs2_sum_add_mem(s, (union jffs2_sum_mem *)temp);
  111. }
  112. int jffs2_sum_add_dirent_mem(struct jffs2_summary *s, struct jffs2_raw_dirent *rd,
  113. uint32_t ofs)
  114. {
  115. struct jffs2_sum_dirent_mem *temp =
  116. kmalloc(sizeof(struct jffs2_sum_dirent_mem) + rd->nsize, GFP_KERNEL);
  117. if (!temp)
  118. return -ENOMEM;
  119. temp->nodetype = rd->nodetype;
  120. temp->totlen = rd->totlen;
  121. temp->offset = cpu_to_je32(ofs); /* relative from the begining of the jeb */
  122. temp->pino = rd->pino;
  123. temp->version = rd->version;
  124. temp->ino = rd->ino;
  125. temp->nsize = rd->nsize;
  126. temp->type = rd->type;
  127. temp->next = NULL;
  128. memcpy(temp->name, rd->name, rd->nsize);
  129. return jffs2_sum_add_mem(s, (union jffs2_sum_mem *)temp);
  130. }
  131. #ifdef CONFIG_JFFS2_FS_XATTR
  132. int jffs2_sum_add_xattr_mem(struct jffs2_summary *s, struct jffs2_raw_xattr *rx, uint32_t ofs)
  133. {
  134. struct jffs2_sum_xattr_mem *temp;
  135. temp = kmalloc(sizeof(struct jffs2_sum_xattr_mem), GFP_KERNEL);
  136. if (!temp)
  137. return -ENOMEM;
  138. temp->nodetype = rx->nodetype;
  139. temp->xid = rx->xid;
  140. temp->version = rx->version;
  141. temp->offset = cpu_to_je32(ofs);
  142. temp->totlen = rx->totlen;
  143. temp->next = NULL;
  144. return jffs2_sum_add_mem(s, (union jffs2_sum_mem *)temp);
  145. }
  146. int jffs2_sum_add_xref_mem(struct jffs2_summary *s, struct jffs2_raw_xref *rr, uint32_t ofs)
  147. {
  148. struct jffs2_sum_xref_mem *temp;
  149. temp = kmalloc(sizeof(struct jffs2_sum_xref_mem), GFP_KERNEL);
  150. if (!temp)
  151. return -ENOMEM;
  152. temp->nodetype = rr->nodetype;
  153. temp->offset = cpu_to_je32(ofs);
  154. temp->next = NULL;
  155. return jffs2_sum_add_mem(s, (union jffs2_sum_mem *)temp);
  156. }
  157. #endif
  158. /* Cleanup every collected summary information */
  159. static void jffs2_sum_clean_collected(struct jffs2_summary *s)
  160. {
  161. union jffs2_sum_mem *temp;
  162. if (!s->sum_list_head) {
  163. dbg_summary("already empty\n");
  164. }
  165. while (s->sum_list_head) {
  166. temp = s->sum_list_head;
  167. s->sum_list_head = s->sum_list_head->u.next;
  168. kfree(temp);
  169. }
  170. s->sum_list_tail = NULL;
  171. s->sum_padded = 0;
  172. s->sum_num = 0;
  173. }
  174. void jffs2_sum_reset_collected(struct jffs2_summary *s)
  175. {
  176. dbg_summary("called\n");
  177. jffs2_sum_clean_collected(s);
  178. s->sum_size = 0;
  179. }
  180. void jffs2_sum_disable_collecting(struct jffs2_summary *s)
  181. {
  182. dbg_summary("called\n");
  183. jffs2_sum_clean_collected(s);
  184. s->sum_size = JFFS2_SUMMARY_NOSUM_SIZE;
  185. }
  186. int jffs2_sum_is_disabled(struct jffs2_summary *s)
  187. {
  188. return (s->sum_size == JFFS2_SUMMARY_NOSUM_SIZE);
  189. }
  190. /* Move the collected summary information into sb (called from scan.c) */
  191. void jffs2_sum_move_collected(struct jffs2_sb_info *c, struct jffs2_summary *s)
  192. {
  193. dbg_summary("oldsize=0x%x oldnum=%u => newsize=0x%x newnum=%u\n",
  194. c->summary->sum_size, c->summary->sum_num,
  195. s->sum_size, s->sum_num);
  196. c->summary->sum_size = s->sum_size;
  197. c->summary->sum_num = s->sum_num;
  198. c->summary->sum_padded = s->sum_padded;
  199. c->summary->sum_list_head = s->sum_list_head;
  200. c->summary->sum_list_tail = s->sum_list_tail;
  201. s->sum_list_head = s->sum_list_tail = NULL;
  202. }
  203. /* Called from wbuf.c to collect writed node info */
  204. int jffs2_sum_add_kvec(struct jffs2_sb_info *c, const struct kvec *invecs,
  205. unsigned long count, uint32_t ofs)
  206. {
  207. union jffs2_node_union *node;
  208. struct jffs2_eraseblock *jeb;
  209. if (c->summary->sum_size == JFFS2_SUMMARY_NOSUM_SIZE) {
  210. dbg_summary("Summary is disabled for this jeb! Skipping summary info!\n");
  211. return 0;
  212. }
  213. node = invecs[0].iov_base;
  214. jeb = &c->blocks[ofs / c->sector_size];
  215. ofs -= jeb->offset;
  216. switch (je16_to_cpu(node->u.nodetype)) {
  217. case JFFS2_NODETYPE_INODE: {
  218. struct jffs2_sum_inode_mem *temp =
  219. kmalloc(sizeof(struct jffs2_sum_inode_mem), GFP_KERNEL);
  220. if (!temp)
  221. goto no_mem;
  222. temp->nodetype = node->i.nodetype;
  223. temp->inode = node->i.ino;
  224. temp->version = node->i.version;
  225. temp->offset = cpu_to_je32(ofs);
  226. temp->totlen = node->i.totlen;
  227. temp->next = NULL;
  228. return jffs2_sum_add_mem(c->summary, (union jffs2_sum_mem *)temp);
  229. }
  230. case JFFS2_NODETYPE_DIRENT: {
  231. struct jffs2_sum_dirent_mem *temp =
  232. kmalloc(sizeof(struct jffs2_sum_dirent_mem) + node->d.nsize, GFP_KERNEL);
  233. if (!temp)
  234. goto no_mem;
  235. temp->nodetype = node->d.nodetype;
  236. temp->totlen = node->d.totlen;
  237. temp->offset = cpu_to_je32(ofs);
  238. temp->pino = node->d.pino;
  239. temp->version = node->d.version;
  240. temp->ino = node->d.ino;
  241. temp->nsize = node->d.nsize;
  242. temp->type = node->d.type;
  243. temp->next = NULL;
  244. switch (count) {
  245. case 1:
  246. memcpy(temp->name,node->d.name,node->d.nsize);
  247. break;
  248. case 2:
  249. memcpy(temp->name,invecs[1].iov_base,node->d.nsize);
  250. break;
  251. default:
  252. BUG(); /* impossible count value */
  253. break;
  254. }
  255. return jffs2_sum_add_mem(c->summary, (union jffs2_sum_mem *)temp);
  256. }
  257. #ifdef CONFIG_JFFS2_FS_XATTR
  258. case JFFS2_NODETYPE_XATTR: {
  259. struct jffs2_sum_xattr_mem *temp;
  260. temp = kmalloc(sizeof(struct jffs2_sum_xattr_mem), GFP_KERNEL);
  261. if (!temp)
  262. goto no_mem;
  263. temp->nodetype = node->x.nodetype;
  264. temp->xid = node->x.xid;
  265. temp->version = node->x.version;
  266. temp->totlen = node->x.totlen;
  267. temp->offset = cpu_to_je32(ofs);
  268. temp->next = NULL;
  269. return jffs2_sum_add_mem(c->summary, (union jffs2_sum_mem *)temp);
  270. }
  271. case JFFS2_NODETYPE_XREF: {
  272. struct jffs2_sum_xref_mem *temp;
  273. temp = kmalloc(sizeof(struct jffs2_sum_xref_mem), GFP_KERNEL);
  274. if (!temp)
  275. goto no_mem;
  276. temp->nodetype = node->r.nodetype;
  277. temp->offset = cpu_to_je32(ofs);
  278. temp->next = NULL;
  279. return jffs2_sum_add_mem(c->summary, (union jffs2_sum_mem *)temp);
  280. }
  281. #endif
  282. case JFFS2_NODETYPE_PADDING:
  283. dbg_summary("node PADDING\n");
  284. c->summary->sum_padded += je32_to_cpu(node->u.totlen);
  285. break;
  286. case JFFS2_NODETYPE_CLEANMARKER:
  287. dbg_summary("node CLEANMARKER\n");
  288. break;
  289. case JFFS2_NODETYPE_SUMMARY:
  290. dbg_summary("node SUMMARY\n");
  291. break;
  292. default:
  293. /* If you implement a new node type you should also implement
  294. summary support for it or disable summary.
  295. */
  296. BUG();
  297. break;
  298. }
  299. return 0;
  300. no_mem:
  301. JFFS2_WARNING("MEMORY ALLOCATION ERROR!");
  302. return -ENOMEM;
  303. }
  304. static struct jffs2_raw_node_ref *sum_link_node_ref(struct jffs2_sb_info *c,
  305. struct jffs2_eraseblock *jeb,
  306. uint32_t ofs, uint32_t len,
  307. struct jffs2_inode_cache *ic)
  308. {
  309. /* If there was a gap, mark it dirty */
  310. if ((ofs & ~3) > c->sector_size - jeb->free_size) {
  311. /* Ew. Summary doesn't actually tell us explicitly about dirty space */
  312. jffs2_scan_dirty_space(c, jeb, (ofs & ~3) - (c->sector_size - jeb->free_size));
  313. }
  314. return jffs2_link_node_ref(c, jeb, jeb->offset + ofs, len, ic);
  315. }
  316. /* Process the stored summary information - helper function for jffs2_sum_scan_sumnode() */
  317. static int jffs2_sum_process_sum_data(struct jffs2_sb_info *c, struct jffs2_eraseblock *jeb,
  318. struct jffs2_raw_summary *summary, uint32_t *pseudo_random)
  319. {
  320. struct jffs2_inode_cache *ic;
  321. struct jffs2_full_dirent *fd;
  322. void *sp;
  323. int i, ino;
  324. int err;
  325. sp = summary->sum;
  326. for (i=0; i<je32_to_cpu(summary->sum_num); i++) {
  327. dbg_summary("processing summary index %d\n", i);
  328. /* Make sure there's a spare ref for dirty space */
  329. err = jffs2_prealloc_raw_node_refs(c, jeb, 2);
  330. if (err)
  331. return err;
  332. switch (je16_to_cpu(((struct jffs2_sum_unknown_flash *)sp)->nodetype)) {
  333. case JFFS2_NODETYPE_INODE: {
  334. struct jffs2_sum_inode_flash *spi;
  335. spi = sp;
  336. ino = je32_to_cpu(spi->inode);
  337. dbg_summary("Inode at 0x%08x-0x%08x\n",
  338. jeb->offset + je32_to_cpu(spi->offset),
  339. jeb->offset + je32_to_cpu(spi->offset) + je32_to_cpu(spi->totlen));
  340. ic = jffs2_scan_make_ino_cache(c, ino);
  341. if (!ic) {
  342. JFFS2_NOTICE("scan_make_ino_cache failed\n");
  343. return -ENOMEM;
  344. }
  345. sum_link_node_ref(c, jeb, je32_to_cpu(spi->offset) | REF_UNCHECKED,
  346. PAD(je32_to_cpu(spi->totlen)), ic);
  347. *pseudo_random += je32_to_cpu(spi->version);
  348. sp += JFFS2_SUMMARY_INODE_SIZE;
  349. break;
  350. }
  351. case JFFS2_NODETYPE_DIRENT: {
  352. struct jffs2_sum_dirent_flash *spd;
  353. spd = sp;
  354. dbg_summary("Dirent at 0x%08x-0x%08x\n",
  355. jeb->offset + je32_to_cpu(spd->offset),
  356. jeb->offset + je32_to_cpu(spd->offset) + je32_to_cpu(spd->totlen));
  357. fd = jffs2_alloc_full_dirent(spd->nsize+1);
  358. if (!fd)
  359. return -ENOMEM;
  360. memcpy(&fd->name, spd->name, spd->nsize);
  361. fd->name[spd->nsize] = 0;
  362. ic = jffs2_scan_make_ino_cache(c, je32_to_cpu(spd->pino));
  363. if (!ic) {
  364. jffs2_free_full_dirent(fd);
  365. return -ENOMEM;
  366. }
  367. fd->raw = sum_link_node_ref(c, jeb, je32_to_cpu(spd->offset) | REF_UNCHECKED,
  368. PAD(je32_to_cpu(spd->totlen)), ic);
  369. fd->next = NULL;
  370. fd->version = je32_to_cpu(spd->version);
  371. fd->ino = je32_to_cpu(spd->ino);
  372. fd->nhash = full_name_hash(fd->name, spd->nsize);
  373. fd->type = spd->type;
  374. jffs2_add_fd_to_list(c, fd, &ic->scan_dents);
  375. *pseudo_random += je32_to_cpu(spd->version);
  376. sp += JFFS2_SUMMARY_DIRENT_SIZE(spd->nsize);
  377. break;
  378. }
  379. #ifdef CONFIG_JFFS2_FS_XATTR
  380. case JFFS2_NODETYPE_XATTR: {
  381. struct jffs2_xattr_datum *xd;
  382. struct jffs2_sum_xattr_flash *spx;
  383. spx = (struct jffs2_sum_xattr_flash *)sp;
  384. dbg_summary("xattr at %#08x-%#08x (xid=%u, version=%u)\n",
  385. jeb->offset + je32_to_cpu(spx->offset),
  386. jeb->offset + je32_to_cpu(spx->offset) + je32_to_cpu(spx->totlen),
  387. je32_to_cpu(spx->xid), je32_to_cpu(spx->version));
  388. xd = jffs2_setup_xattr_datum(c, je32_to_cpu(spx->xid),
  389. je32_to_cpu(spx->version));
  390. if (IS_ERR(xd))
  391. return PTR_ERR(xd);
  392. if (xd->version > je32_to_cpu(spx->version)) {
  393. /* node is not the newest one */
  394. struct jffs2_raw_node_ref *raw
  395. = sum_link_node_ref(c, jeb, je32_to_cpu(spx->offset) | REF_UNCHECKED,
  396. PAD(je32_to_cpu(spx->totlen)), NULL);
  397. raw->next_in_ino = xd->node->next_in_ino;
  398. xd->node->next_in_ino = raw;
  399. } else {
  400. xd->version = je32_to_cpu(spx->version);
  401. sum_link_node_ref(c, jeb, je32_to_cpu(spx->offset) | REF_UNCHECKED,
  402. PAD(je32_to_cpu(spx->totlen)), (void *)xd);
  403. }
  404. *pseudo_random += je32_to_cpu(spx->xid);
  405. sp += JFFS2_SUMMARY_XATTR_SIZE;
  406. break;
  407. }
  408. case JFFS2_NODETYPE_XREF: {
  409. struct jffs2_xattr_ref *ref;
  410. struct jffs2_sum_xref_flash *spr;
  411. spr = (struct jffs2_sum_xref_flash *)sp;
  412. dbg_summary("xref at %#08x-%#08x\n",
  413. jeb->offset + je32_to_cpu(spr->offset),
  414. jeb->offset + je32_to_cpu(spr->offset) +
  415. (uint32_t)PAD(sizeof(struct jffs2_raw_xref)));
  416. ref = jffs2_alloc_xattr_ref();
  417. if (!ref) {
  418. JFFS2_NOTICE("allocation of xattr_datum failed\n");
  419. return -ENOMEM;
  420. }
  421. ref->next = c->xref_temp;
  422. c->xref_temp = ref;
  423. sum_link_node_ref(c, jeb, je32_to_cpu(spr->offset) | REF_UNCHECKED,
  424. PAD(sizeof(struct jffs2_raw_xref)), (void *)ref);
  425. *pseudo_random += ref->node->flash_offset;
  426. sp += JFFS2_SUMMARY_XREF_SIZE;
  427. break;
  428. }
  429. #endif
  430. default : {
  431. uint16_t nodetype = je16_to_cpu(((struct jffs2_sum_unknown_flash *)sp)->nodetype);
  432. JFFS2_WARNING("Unsupported node type %x found in summary! Exiting...\n", nodetype);
  433. if ((nodetype & JFFS2_COMPAT_MASK) == JFFS2_FEATURE_INCOMPAT)
  434. return -EIO;
  435. /* For compatible node types, just fall back to the full scan */
  436. c->wasted_size -= jeb->wasted_size;
  437. c->free_size += c->sector_size - jeb->free_size;
  438. c->used_size -= jeb->used_size;
  439. c->dirty_size -= jeb->dirty_size;
  440. jeb->wasted_size = jeb->used_size = jeb->dirty_size = 0;
  441. jeb->free_size = c->sector_size;
  442. jffs2_free_jeb_node_refs(c, jeb);
  443. return -ENOTRECOVERABLE;
  444. }
  445. }
  446. }
  447. return 0;
  448. }
  449. /* Process the summary node - called from jffs2_scan_eraseblock() */
  450. int jffs2_sum_scan_sumnode(struct jffs2_sb_info *c, struct jffs2_eraseblock *jeb,
  451. struct jffs2_raw_summary *summary, uint32_t sumsize,
  452. uint32_t *pseudo_random)
  453. {
  454. struct jffs2_unknown_node crcnode;
  455. int ret, ofs;
  456. uint32_t crc;
  457. ofs = c->sector_size - sumsize;
  458. dbg_summary("summary found for 0x%08x at 0x%08x (0x%x bytes)\n",
  459. jeb->offset, jeb->offset + ofs, sumsize);
  460. /* OK, now check for node validity and CRC */
  461. crcnode.magic = cpu_to_je16(JFFS2_MAGIC_BITMASK);
  462. crcnode.nodetype = cpu_to_je16(JFFS2_NODETYPE_SUMMARY);
  463. crcnode.totlen = summary->totlen;
  464. crc = crc32(0, &crcnode, sizeof(crcnode)-4);
  465. if (je32_to_cpu(summary->hdr_crc) != crc) {
  466. dbg_summary("Summary node header is corrupt (bad CRC or "
  467. "no summary at all)\n");
  468. goto crc_err;
  469. }
  470. if (je32_to_cpu(summary->totlen) != sumsize) {
  471. dbg_summary("Summary node is corrupt (wrong erasesize?)\n");
  472. goto crc_err;
  473. }
  474. crc = crc32(0, summary, sizeof(struct jffs2_raw_summary)-8);
  475. if (je32_to_cpu(summary->node_crc) != crc) {
  476. dbg_summary("Summary node is corrupt (bad CRC)\n");
  477. goto crc_err;
  478. }
  479. crc = crc32(0, summary->sum, sumsize - sizeof(struct jffs2_raw_summary));
  480. if (je32_to_cpu(summary->sum_crc) != crc) {
  481. dbg_summary("Summary node data is corrupt (bad CRC)\n");
  482. goto crc_err;
  483. }
  484. if ( je32_to_cpu(summary->cln_mkr) ) {
  485. dbg_summary("Summary : CLEANMARKER node \n");
  486. ret = jffs2_prealloc_raw_node_refs(c, jeb, 1);
  487. if (ret)
  488. return ret;
  489. if (je32_to_cpu(summary->cln_mkr) != c->cleanmarker_size) {
  490. dbg_summary("CLEANMARKER node has totlen 0x%x != normal 0x%x\n",
  491. je32_to_cpu(summary->cln_mkr), c->cleanmarker_size);
  492. if ((ret = jffs2_scan_dirty_space(c, jeb, PAD(je32_to_cpu(summary->cln_mkr)))))
  493. return ret;
  494. } else if (jeb->first_node) {
  495. dbg_summary("CLEANMARKER node not first node in block "
  496. "(0x%08x)\n", jeb->offset);
  497. if ((ret = jffs2_scan_dirty_space(c, jeb, PAD(je32_to_cpu(summary->cln_mkr)))))
  498. return ret;
  499. } else {
  500. jffs2_link_node_ref(c, jeb, jeb->offset | REF_NORMAL,
  501. je32_to_cpu(summary->cln_mkr), NULL);
  502. }
  503. }
  504. ret = jffs2_sum_process_sum_data(c, jeb, summary, pseudo_random);
  505. /* -ENOTRECOVERABLE isn't a fatal error -- it means we should do a full
  506. scan of this eraseblock. So return zero */
  507. if (ret == -ENOTRECOVERABLE)
  508. return 0;
  509. if (ret)
  510. return ret; /* real error */
  511. /* for PARANOIA_CHECK */
  512. ret = jffs2_prealloc_raw_node_refs(c, jeb, 2);
  513. if (ret)
  514. return ret;
  515. sum_link_node_ref(c, jeb, ofs | REF_NORMAL, sumsize, NULL);
  516. if (unlikely(jeb->free_size)) {
  517. JFFS2_WARNING("Free size 0x%x bytes in eraseblock @0x%08x with summary?\n",
  518. jeb->free_size, jeb->offset);
  519. jeb->wasted_size += jeb->free_size;
  520. c->wasted_size += jeb->free_size;
  521. c->free_size -= jeb->free_size;
  522. jeb->free_size = 0;
  523. }
  524. return jffs2_scan_classify_jeb(c, jeb);
  525. crc_err:
  526. JFFS2_WARNING("Summary node crc error, skipping summary information.\n");
  527. return 0;
  528. }
  529. /* Write summary data to flash - helper function for jffs2_sum_write_sumnode() */
  530. static int jffs2_sum_write_data(struct jffs2_sb_info *c, struct jffs2_eraseblock *jeb,
  531. uint32_t infosize, uint32_t datasize, int padsize)
  532. {
  533. struct jffs2_raw_summary isum;
  534. union jffs2_sum_mem *temp;
  535. struct jffs2_sum_marker *sm;
  536. struct kvec vecs[2];
  537. uint32_t sum_ofs;
  538. void *wpage;
  539. int ret;
  540. size_t retlen;
  541. memset(c->summary->sum_buf, 0xff, datasize);
  542. memset(&isum, 0, sizeof(isum));
  543. isum.magic = cpu_to_je16(JFFS2_MAGIC_BITMASK);
  544. isum.nodetype = cpu_to_je16(JFFS2_NODETYPE_SUMMARY);
  545. isum.totlen = cpu_to_je32(infosize);
  546. isum.hdr_crc = cpu_to_je32(crc32(0, &isum, sizeof(struct jffs2_unknown_node) - 4));
  547. isum.padded = cpu_to_je32(c->summary->sum_padded);
  548. isum.cln_mkr = cpu_to_je32(c->cleanmarker_size);
  549. isum.sum_num = cpu_to_je32(c->summary->sum_num);
  550. wpage = c->summary->sum_buf;
  551. while (c->summary->sum_num) {
  552. temp = c->summary->sum_list_head;
  553. switch (je16_to_cpu(temp->u.nodetype)) {
  554. case JFFS2_NODETYPE_INODE: {
  555. struct jffs2_sum_inode_flash *sino_ptr = wpage;
  556. sino_ptr->nodetype = temp->i.nodetype;
  557. sino_ptr->inode = temp->i.inode;
  558. sino_ptr->version = temp->i.version;
  559. sino_ptr->offset = temp->i.offset;
  560. sino_ptr->totlen = temp->i.totlen;
  561. wpage += JFFS2_SUMMARY_INODE_SIZE;
  562. break;
  563. }
  564. case JFFS2_NODETYPE_DIRENT: {
  565. struct jffs2_sum_dirent_flash *sdrnt_ptr = wpage;
  566. sdrnt_ptr->nodetype = temp->d.nodetype;
  567. sdrnt_ptr->totlen = temp->d.totlen;
  568. sdrnt_ptr->offset = temp->d.offset;
  569. sdrnt_ptr->pino = temp->d.pino;
  570. sdrnt_ptr->version = temp->d.version;
  571. sdrnt_ptr->ino = temp->d.ino;
  572. sdrnt_ptr->nsize = temp->d.nsize;
  573. sdrnt_ptr->type = temp->d.type;
  574. memcpy(sdrnt_ptr->name, temp->d.name,
  575. temp->d.nsize);
  576. wpage += JFFS2_SUMMARY_DIRENT_SIZE(temp->d.nsize);
  577. break;
  578. }
  579. #ifdef CONFIG_JFFS2_FS_XATTR
  580. case JFFS2_NODETYPE_XATTR: {
  581. struct jffs2_sum_xattr_flash *sxattr_ptr = wpage;
  582. temp = c->summary->sum_list_head;
  583. sxattr_ptr->nodetype = temp->x.nodetype;
  584. sxattr_ptr->xid = temp->x.xid;
  585. sxattr_ptr->version = temp->x.version;
  586. sxattr_ptr->offset = temp->x.offset;
  587. sxattr_ptr->totlen = temp->x.totlen;
  588. wpage += JFFS2_SUMMARY_XATTR_SIZE;
  589. break;
  590. }
  591. case JFFS2_NODETYPE_XREF: {
  592. struct jffs2_sum_xref_flash *sxref_ptr = wpage;
  593. temp = c->summary->sum_list_head;
  594. sxref_ptr->nodetype = temp->r.nodetype;
  595. sxref_ptr->offset = temp->r.offset;
  596. wpage += JFFS2_SUMMARY_XREF_SIZE;
  597. break;
  598. }
  599. #endif
  600. default : {
  601. if ((je16_to_cpu(temp->u.nodetype) & JFFS2_COMPAT_MASK)
  602. == JFFS2_FEATURE_RWCOMPAT_COPY) {
  603. dbg_summary("Writing unknown RWCOMPAT_COPY node type %x\n",
  604. je16_to_cpu(temp->u.nodetype));
  605. jffs2_sum_disable_collecting(c->summary);
  606. } else {
  607. BUG(); /* unknown node in summary information */
  608. }
  609. }
  610. }
  611. c->summary->sum_list_head = temp->u.next;
  612. kfree(temp);
  613. c->summary->sum_num--;
  614. }
  615. jffs2_sum_reset_collected(c->summary);
  616. wpage += padsize;
  617. sm = wpage;
  618. sm->offset = cpu_to_je32(c->sector_size - jeb->free_size);
  619. sm->magic = cpu_to_je32(JFFS2_SUM_MAGIC);
  620. isum.sum_crc = cpu_to_je32(crc32(0, c->summary->sum_buf, datasize));
  621. isum.node_crc = cpu_to_je32(crc32(0, &isum, sizeof(isum) - 8));
  622. vecs[0].iov_base = &isum;
  623. vecs[0].iov_len = sizeof(isum);
  624. vecs[1].iov_base = c->summary->sum_buf;
  625. vecs[1].iov_len = datasize;
  626. sum_ofs = jeb->offset + c->sector_size - jeb->free_size;
  627. dbg_summary("JFFS2: writing out data to flash to pos : 0x%08x\n",
  628. sum_ofs);
  629. ret = jffs2_flash_writev(c, vecs, 2, sum_ofs, &retlen, 0);
  630. if (ret || (retlen != infosize)) {
  631. JFFS2_WARNING("Write of %u bytes at 0x%08x failed. returned %d, retlen %zd\n",
  632. infosize, sum_ofs, ret, retlen);
  633. if (retlen) {
  634. /* Waste remaining space */
  635. spin_lock(&c->erase_completion_lock);
  636. jffs2_link_node_ref(c, jeb, sum_ofs | REF_OBSOLETE, infosize, NULL);
  637. spin_unlock(&c->erase_completion_lock);
  638. }
  639. c->summary->sum_size = JFFS2_SUMMARY_NOSUM_SIZE;
  640. return 0;
  641. }
  642. spin_lock(&c->erase_completion_lock);
  643. jffs2_link_node_ref(c, jeb, sum_ofs | REF_NORMAL, infosize, NULL);
  644. spin_unlock(&c->erase_completion_lock);
  645. return 0;
  646. }
  647. /* Write out summary information - called from jffs2_do_reserve_space */
  648. int jffs2_sum_write_sumnode(struct jffs2_sb_info *c)
  649. {
  650. int datasize, infosize, padsize;
  651. struct jffs2_eraseblock *jeb;
  652. int ret;
  653. dbg_summary("called\n");
  654. spin_unlock(&c->erase_completion_lock);
  655. jeb = c->nextblock;
  656. jffs2_prealloc_raw_node_refs(c, jeb, 1);
  657. if (!c->summary->sum_num || !c->summary->sum_list_head) {
  658. JFFS2_WARNING("Empty summary info!!!\n");
  659. BUG();
  660. }
  661. datasize = c->summary->sum_size + sizeof(struct jffs2_sum_marker);
  662. infosize = sizeof(struct jffs2_raw_summary) + datasize;
  663. padsize = jeb->free_size - infosize;
  664. infosize += padsize;
  665. datasize += padsize;
  666. /* Is there enough space for summary? */
  667. if (padsize < 0) {
  668. /* don't try to write out summary for this jeb */
  669. jffs2_sum_disable_collecting(c->summary);
  670. JFFS2_WARNING("Not enough space for summary, padsize = %d\n", padsize);
  671. spin_lock(&c->erase_completion_lock);
  672. return 0;
  673. }
  674. ret = jffs2_sum_write_data(c, jeb, infosize, datasize, padsize);
  675. spin_lock(&c->erase_completion_lock);
  676. return ret;
  677. }