jffs2_1pass.c 49 KB

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  1. /*
  2. -------------------------------------------------------------------------
  3. * Filename: jffs2.c
  4. * Version: $Id: jffs2_1pass.c,v 1.7 2002/01/25 01:56:47 nyet Exp $
  5. * Copyright: Copyright (C) 2001, Russ Dill
  6. * Author: Russ Dill <Russ.Dill@asu.edu>
  7. * Description: Module to load kernel from jffs2
  8. *-----------------------------------------------------------------------*/
  9. /*
  10. * some portions of this code are taken from jffs2, and as such, the
  11. * following copyright notice is included.
  12. *
  13. * JFFS2 -- Journalling Flash File System, Version 2.
  14. *
  15. * Copyright (C) 2001 Red Hat, Inc.
  16. *
  17. * Created by David Woodhouse <dwmw2@cambridge.redhat.com>
  18. *
  19. * The original JFFS, from which the design for JFFS2 was derived,
  20. * was designed and implemented by Axis Communications AB.
  21. *
  22. * The contents of this file are subject to the Red Hat eCos Public
  23. * License Version 1.1 (the "Licence"); you may not use this file
  24. * except in compliance with the Licence. You may obtain a copy of
  25. * the Licence at http://www.redhat.com/
  26. *
  27. * Software distributed under the Licence is distributed on an "AS IS"
  28. * basis, WITHOUT WARRANTY OF ANY KIND, either express or implied.
  29. * See the Licence for the specific language governing rights and
  30. * limitations under the Licence.
  31. *
  32. * The Original Code is JFFS2 - Journalling Flash File System, version 2
  33. *
  34. * Alternatively, the contents of this file may be used under the
  35. * terms of the GNU General Public License version 2 (the "GPL"), in
  36. * which case the provisions of the GPL are applicable instead of the
  37. * above. If you wish to allow the use of your version of this file
  38. * only under the terms of the GPL and not to allow others to use your
  39. * version of this file under the RHEPL, indicate your decision by
  40. * deleting the provisions above and replace them with the notice and
  41. * other provisions required by the GPL. If you do not delete the
  42. * provisions above, a recipient may use your version of this file
  43. * under either the RHEPL or the GPL.
  44. *
  45. * $Id: jffs2_1pass.c,v 1.7 2002/01/25 01:56:47 nyet Exp $
  46. *
  47. */
  48. /* Ok, so anyone who knows the jffs2 code will probably want to get a papar
  49. * bag to throw up into before reading this code. I looked through the jffs2
  50. * code, the caching scheme is very elegant. I tried to keep the version
  51. * for a bootloader as small and simple as possible. Instead of worring about
  52. * unneccesary data copies, node scans, etc, I just optimized for the known
  53. * common case, a kernel, which looks like:
  54. * (1) most pages are 4096 bytes
  55. * (2) version numbers are somewhat sorted in acsending order
  56. * (3) multiple compressed blocks making up one page is uncommon
  57. *
  58. * So I create a linked list of decending version numbers (insertions at the
  59. * head), and then for each page, walk down the list, until a matching page
  60. * with 4096 bytes is found, and then decompress the watching pages in
  61. * reverse order.
  62. *
  63. */
  64. /*
  65. * Adapted by Nye Liu <nyet@zumanetworks.com> and
  66. * Rex Feany <rfeany@zumanetworks.com>
  67. * on Jan/2002 for U-Boot.
  68. *
  69. * Clipped out all the non-1pass functions, cleaned up warnings,
  70. * wrappers, etc. No major changes to the code.
  71. * Please, he really means it when he said have a paper bag
  72. * handy. We needed it ;).
  73. *
  74. */
  75. /*
  76. * Bugfixing by Kai-Uwe Bloem <kai-uwe.bloem@auerswald.de>, (C) Mar/2003
  77. *
  78. * - overhaul of the memory management. Removed much of the "paper-bagging"
  79. * in that part of the code, fixed several bugs, now frees memory when
  80. * partition is changed.
  81. * It's still ugly :-(
  82. * - fixed a bug in jffs2_1pass_read_inode where the file length calculation
  83. * was incorrect. Removed a bit of the paper-bagging as well.
  84. * - removed double crc calculation for fragment headers in jffs2_private.h
  85. * for speedup.
  86. * - scan_empty rewritten in a more "standard" manner (non-paperbag, that is).
  87. * - spinning wheel now spins depending on how much memory has been scanned
  88. * - lots of small changes all over the place to "improve" readability.
  89. * - implemented fragment sorting to ensure that the newest data is copied
  90. * if there are multiple copies of fragments for a certain file offset.
  91. *
  92. * The fragment sorting feature must be enabled by CONFIG_SYS_JFFS2_SORT_FRAGMENTS.
  93. * Sorting is done while adding fragments to the lists, which is more or less a
  94. * bubble sort. This takes a lot of time, and is most probably not an issue if
  95. * the boot filesystem is always mounted readonly.
  96. *
  97. * You should define it if the boot filesystem is mounted writable, and updates
  98. * to the boot files are done by copying files to that filesystem.
  99. *
  100. *
  101. * There's a big issue left: endianess is completely ignored in this code. Duh!
  102. *
  103. *
  104. * You still should have paper bags at hand :-(. The code lacks more or less
  105. * any comment, and is still arcane and difficult to read in places. As this
  106. * might be incompatible with any new code from the jffs2 maintainers anyway,
  107. * it should probably be dumped and replaced by something like jffs2reader!
  108. */
  109. #include <common.h>
  110. #include <config.h>
  111. #include <malloc.h>
  112. #include <div64.h>
  113. #include <linux/compiler.h>
  114. #include <linux/stat.h>
  115. #include <linux/time.h>
  116. #include <watchdog.h>
  117. #include <jffs2/jffs2.h>
  118. #include <jffs2/jffs2_1pass.h>
  119. #include <linux/compat.h>
  120. #include <linux/errno.h>
  121. #include "jffs2_private.h"
  122. #define NODE_CHUNK 1024 /* size of memory allocation chunk in b_nodes */
  123. #define SPIN_BLKSIZE 18 /* spin after having scanned 1<<BLKSIZE bytes */
  124. /* Debugging switches */
  125. #undef DEBUG_DIRENTS /* print directory entry list after scan */
  126. #undef DEBUG_FRAGMENTS /* print fragment list after scan */
  127. #undef DEBUG /* enable debugging messages */
  128. #ifdef DEBUG
  129. # define DEBUGF(fmt,args...) printf(fmt ,##args)
  130. #else
  131. # define DEBUGF(fmt,args...)
  132. #endif
  133. #include "summary.h"
  134. /* keeps pointer to currentlu processed partition */
  135. static struct part_info *current_part;
  136. #if (defined(CONFIG_JFFS2_NAND) && \
  137. defined(CONFIG_CMD_NAND) )
  138. #include <nand.h>
  139. /*
  140. * Support for jffs2 on top of NAND-flash
  141. *
  142. * NAND memory isn't mapped in processor's address space,
  143. * so data should be fetched from flash before
  144. * being processed. This is exactly what functions declared
  145. * here do.
  146. *
  147. */
  148. #define NAND_PAGE_SIZE 512
  149. #define NAND_PAGE_SHIFT 9
  150. #define NAND_PAGE_MASK (~(NAND_PAGE_SIZE-1))
  151. #ifndef NAND_CACHE_PAGES
  152. #define NAND_CACHE_PAGES 16
  153. #endif
  154. #define NAND_CACHE_SIZE (NAND_CACHE_PAGES*NAND_PAGE_SIZE)
  155. static u8* nand_cache = NULL;
  156. static u32 nand_cache_off = (u32)-1;
  157. static int read_nand_cached(u32 off, u32 size, u_char *buf)
  158. {
  159. struct mtdids *id = current_part->dev->id;
  160. u32 bytes_read = 0;
  161. size_t retlen;
  162. int cpy_bytes;
  163. while (bytes_read < size) {
  164. if ((off + bytes_read < nand_cache_off) ||
  165. (off + bytes_read >= nand_cache_off+NAND_CACHE_SIZE)) {
  166. nand_cache_off = (off + bytes_read) & NAND_PAGE_MASK;
  167. if (!nand_cache) {
  168. /* This memory never gets freed but 'cause
  169. it's a bootloader, nobody cares */
  170. nand_cache = malloc(NAND_CACHE_SIZE);
  171. if (!nand_cache) {
  172. printf("read_nand_cached: can't alloc cache size %d bytes\n",
  173. NAND_CACHE_SIZE);
  174. return -1;
  175. }
  176. }
  177. retlen = NAND_CACHE_SIZE;
  178. if (nand_read(nand_info[id->num], nand_cache_off,
  179. &retlen, nand_cache) != 0 ||
  180. retlen != NAND_CACHE_SIZE) {
  181. printf("read_nand_cached: error reading nand off %#x size %d bytes\n",
  182. nand_cache_off, NAND_CACHE_SIZE);
  183. return -1;
  184. }
  185. }
  186. cpy_bytes = nand_cache_off + NAND_CACHE_SIZE - (off + bytes_read);
  187. if (cpy_bytes > size - bytes_read)
  188. cpy_bytes = size - bytes_read;
  189. memcpy(buf + bytes_read,
  190. nand_cache + off + bytes_read - nand_cache_off,
  191. cpy_bytes);
  192. bytes_read += cpy_bytes;
  193. }
  194. return bytes_read;
  195. }
  196. static void *get_fl_mem_nand(u32 off, u32 size, void *ext_buf)
  197. {
  198. u_char *buf = ext_buf ? (u_char*)ext_buf : (u_char*)malloc(size);
  199. if (NULL == buf) {
  200. printf("get_fl_mem_nand: can't alloc %d bytes\n", size);
  201. return NULL;
  202. }
  203. if (read_nand_cached(off, size, buf) < 0) {
  204. if (!ext_buf)
  205. free(buf);
  206. return NULL;
  207. }
  208. return buf;
  209. }
  210. static void *get_node_mem_nand(u32 off, void *ext_buf)
  211. {
  212. struct jffs2_unknown_node node;
  213. void *ret = NULL;
  214. if (NULL == get_fl_mem_nand(off, sizeof(node), &node))
  215. return NULL;
  216. if (!(ret = get_fl_mem_nand(off, node.magic ==
  217. JFFS2_MAGIC_BITMASK ? node.totlen : sizeof(node),
  218. ext_buf))) {
  219. printf("off = %#x magic %#x type %#x node.totlen = %d\n",
  220. off, node.magic, node.nodetype, node.totlen);
  221. }
  222. return ret;
  223. }
  224. static void put_fl_mem_nand(void *buf)
  225. {
  226. free(buf);
  227. }
  228. #endif
  229. #if defined(CONFIG_CMD_ONENAND)
  230. #include <linux/mtd/mtd.h>
  231. #include <linux/mtd/onenand.h>
  232. #include <onenand_uboot.h>
  233. #define ONENAND_PAGE_SIZE 2048
  234. #define ONENAND_PAGE_SHIFT 11
  235. #define ONENAND_PAGE_MASK (~(ONENAND_PAGE_SIZE-1))
  236. #ifndef ONENAND_CACHE_PAGES
  237. #define ONENAND_CACHE_PAGES 4
  238. #endif
  239. #define ONENAND_CACHE_SIZE (ONENAND_CACHE_PAGES*ONENAND_PAGE_SIZE)
  240. static u8* onenand_cache;
  241. static u32 onenand_cache_off = (u32)-1;
  242. static int read_onenand_cached(u32 off, u32 size, u_char *buf)
  243. {
  244. u32 bytes_read = 0;
  245. size_t retlen;
  246. int cpy_bytes;
  247. while (bytes_read < size) {
  248. if ((off + bytes_read < onenand_cache_off) ||
  249. (off + bytes_read >= onenand_cache_off + ONENAND_CACHE_SIZE)) {
  250. onenand_cache_off = (off + bytes_read) & ONENAND_PAGE_MASK;
  251. if (!onenand_cache) {
  252. /* This memory never gets freed but 'cause
  253. it's a bootloader, nobody cares */
  254. onenand_cache = malloc(ONENAND_CACHE_SIZE);
  255. if (!onenand_cache) {
  256. printf("read_onenand_cached: can't alloc cache size %d bytes\n",
  257. ONENAND_CACHE_SIZE);
  258. return -1;
  259. }
  260. }
  261. retlen = ONENAND_CACHE_SIZE;
  262. if (onenand_read(&onenand_mtd, onenand_cache_off, retlen,
  263. &retlen, onenand_cache) != 0 ||
  264. retlen != ONENAND_CACHE_SIZE) {
  265. printf("read_onenand_cached: error reading nand off %#x size %d bytes\n",
  266. onenand_cache_off, ONENAND_CACHE_SIZE);
  267. return -1;
  268. }
  269. }
  270. cpy_bytes = onenand_cache_off + ONENAND_CACHE_SIZE - (off + bytes_read);
  271. if (cpy_bytes > size - bytes_read)
  272. cpy_bytes = size - bytes_read;
  273. memcpy(buf + bytes_read,
  274. onenand_cache + off + bytes_read - onenand_cache_off,
  275. cpy_bytes);
  276. bytes_read += cpy_bytes;
  277. }
  278. return bytes_read;
  279. }
  280. static void *get_fl_mem_onenand(u32 off, u32 size, void *ext_buf)
  281. {
  282. u_char *buf = ext_buf ? (u_char *)ext_buf : (u_char *)malloc(size);
  283. if (NULL == buf) {
  284. printf("get_fl_mem_onenand: can't alloc %d bytes\n", size);
  285. return NULL;
  286. }
  287. if (read_onenand_cached(off, size, buf) < 0) {
  288. if (!ext_buf)
  289. free(buf);
  290. return NULL;
  291. }
  292. return buf;
  293. }
  294. static void *get_node_mem_onenand(u32 off, void *ext_buf)
  295. {
  296. struct jffs2_unknown_node node;
  297. void *ret = NULL;
  298. if (NULL == get_fl_mem_onenand(off, sizeof(node), &node))
  299. return NULL;
  300. ret = get_fl_mem_onenand(off, node.magic ==
  301. JFFS2_MAGIC_BITMASK ? node.totlen : sizeof(node),
  302. ext_buf);
  303. if (!ret) {
  304. printf("off = %#x magic %#x type %#x node.totlen = %d\n",
  305. off, node.magic, node.nodetype, node.totlen);
  306. }
  307. return ret;
  308. }
  309. static void put_fl_mem_onenand(void *buf)
  310. {
  311. free(buf);
  312. }
  313. #endif
  314. #if defined(CONFIG_CMD_FLASH)
  315. /*
  316. * Support for jffs2 on top of NOR-flash
  317. *
  318. * NOR flash memory is mapped in processor's address space,
  319. * just return address.
  320. */
  321. static inline void *get_fl_mem_nor(u32 off, u32 size, void *ext_buf)
  322. {
  323. u32 addr = off;
  324. struct mtdids *id = current_part->dev->id;
  325. extern flash_info_t flash_info[];
  326. flash_info_t *flash = &flash_info[id->num];
  327. addr += flash->start[0];
  328. if (ext_buf) {
  329. memcpy(ext_buf, (void *)addr, size);
  330. return ext_buf;
  331. }
  332. return (void*)addr;
  333. }
  334. static inline void *get_node_mem_nor(u32 off, void *ext_buf)
  335. {
  336. struct jffs2_unknown_node *pNode;
  337. /* pNode will point directly to flash - don't provide external buffer
  338. and don't care about size */
  339. pNode = get_fl_mem_nor(off, 0, NULL);
  340. return (void *)get_fl_mem_nor(off, pNode->magic == JFFS2_MAGIC_BITMASK ?
  341. pNode->totlen : sizeof(*pNode), ext_buf);
  342. }
  343. #endif
  344. /*
  345. * Generic jffs2 raw memory and node read routines.
  346. *
  347. */
  348. static inline void *get_fl_mem(u32 off, u32 size, void *ext_buf)
  349. {
  350. struct mtdids *id = current_part->dev->id;
  351. switch(id->type) {
  352. #if defined(CONFIG_CMD_FLASH)
  353. case MTD_DEV_TYPE_NOR:
  354. return get_fl_mem_nor(off, size, ext_buf);
  355. break;
  356. #endif
  357. #if defined(CONFIG_JFFS2_NAND) && defined(CONFIG_CMD_NAND)
  358. case MTD_DEV_TYPE_NAND:
  359. return get_fl_mem_nand(off, size, ext_buf);
  360. break;
  361. #endif
  362. #if defined(CONFIG_CMD_ONENAND)
  363. case MTD_DEV_TYPE_ONENAND:
  364. return get_fl_mem_onenand(off, size, ext_buf);
  365. break;
  366. #endif
  367. default:
  368. printf("get_fl_mem: unknown device type, " \
  369. "using raw offset!\n");
  370. }
  371. return (void*)off;
  372. }
  373. static inline void *get_node_mem(u32 off, void *ext_buf)
  374. {
  375. struct mtdids *id = current_part->dev->id;
  376. switch(id->type) {
  377. #if defined(CONFIG_CMD_FLASH)
  378. case MTD_DEV_TYPE_NOR:
  379. return get_node_mem_nor(off, ext_buf);
  380. break;
  381. #endif
  382. #if defined(CONFIG_JFFS2_NAND) && \
  383. defined(CONFIG_CMD_NAND)
  384. case MTD_DEV_TYPE_NAND:
  385. return get_node_mem_nand(off, ext_buf);
  386. break;
  387. #endif
  388. #if defined(CONFIG_CMD_ONENAND)
  389. case MTD_DEV_TYPE_ONENAND:
  390. return get_node_mem_onenand(off, ext_buf);
  391. break;
  392. #endif
  393. default:
  394. printf("get_fl_mem: unknown device type, " \
  395. "using raw offset!\n");
  396. }
  397. return (void*)off;
  398. }
  399. static inline void put_fl_mem(void *buf, void *ext_buf)
  400. {
  401. struct mtdids *id = current_part->dev->id;
  402. /* If buf is the same as ext_buf, it was provided by the caller -
  403. we shouldn't free it then. */
  404. if (buf == ext_buf)
  405. return;
  406. switch (id->type) {
  407. #if defined(CONFIG_JFFS2_NAND) && defined(CONFIG_CMD_NAND)
  408. case MTD_DEV_TYPE_NAND:
  409. return put_fl_mem_nand(buf);
  410. #endif
  411. #if defined(CONFIG_CMD_ONENAND)
  412. case MTD_DEV_TYPE_ONENAND:
  413. return put_fl_mem_onenand(buf);
  414. #endif
  415. }
  416. }
  417. /* Compression names */
  418. static char *compr_names[] = {
  419. "NONE",
  420. "ZERO",
  421. "RTIME",
  422. "RUBINMIPS",
  423. "COPY",
  424. "DYNRUBIN",
  425. "ZLIB",
  426. #if defined(CONFIG_JFFS2_LZO)
  427. "LZO",
  428. #endif
  429. };
  430. /* Memory management */
  431. struct mem_block {
  432. u32 index;
  433. struct mem_block *next;
  434. struct b_node nodes[NODE_CHUNK];
  435. };
  436. static void
  437. free_nodes(struct b_list *list)
  438. {
  439. while (list->listMemBase != NULL) {
  440. struct mem_block *next = list->listMemBase->next;
  441. free( list->listMemBase );
  442. list->listMemBase = next;
  443. }
  444. }
  445. static struct b_node *
  446. add_node(struct b_list *list)
  447. {
  448. u32 index = 0;
  449. struct mem_block *memBase;
  450. struct b_node *b;
  451. memBase = list->listMemBase;
  452. if (memBase != NULL)
  453. index = memBase->index;
  454. #if 0
  455. putLabeledWord("add_node: index = ", index);
  456. putLabeledWord("add_node: memBase = ", list->listMemBase);
  457. #endif
  458. if (memBase == NULL || index >= NODE_CHUNK) {
  459. /* we need more space before we continue */
  460. memBase = mmalloc(sizeof(struct mem_block));
  461. if (memBase == NULL) {
  462. putstr("add_node: malloc failed\n");
  463. return NULL;
  464. }
  465. memBase->next = list->listMemBase;
  466. index = 0;
  467. #if 0
  468. putLabeledWord("add_node: alloced a new membase at ", *memBase);
  469. #endif
  470. }
  471. /* now we have room to add it. */
  472. b = &memBase->nodes[index];
  473. index ++;
  474. memBase->index = index;
  475. list->listMemBase = memBase;
  476. list->listCount++;
  477. return b;
  478. }
  479. static struct b_node *
  480. insert_node(struct b_list *list, u32 offset)
  481. {
  482. struct b_node *new;
  483. if (!(new = add_node(list))) {
  484. putstr("add_node failed!\r\n");
  485. return NULL;
  486. }
  487. new->offset = offset;
  488. new->next = NULL;
  489. if (list->listTail != NULL)
  490. list->listTail->next = new;
  491. else
  492. list->listHead = new;
  493. list->listTail = new;
  494. return new;
  495. }
  496. #ifdef CONFIG_SYS_JFFS2_SORT_FRAGMENTS
  497. /* Sort data entries with the latest version last, so that if there
  498. * is overlapping data the latest version will be used.
  499. */
  500. static int compare_inodes(struct b_node *new, struct b_node *old)
  501. {
  502. /*
  503. * Only read in the version info from flash, not the entire inode.
  504. * This can make a big difference to speed if flash is slow.
  505. */
  506. u32 new_version;
  507. u32 old_version;
  508. get_fl_mem(new->offset + offsetof(struct jffs2_raw_inode, version),
  509. sizeof(new_version), &new_version);
  510. get_fl_mem(old->offset + offsetof(struct jffs2_raw_inode, version),
  511. sizeof(old_version), &old_version);
  512. return new_version > old_version;
  513. }
  514. /* Sort directory entries so all entries in the same directory
  515. * with the same name are grouped together, with the latest version
  516. * last. This makes it easy to eliminate all but the latest version
  517. * by marking the previous version dead by setting the inode to 0.
  518. */
  519. static int compare_dirents(struct b_node *new, struct b_node *old)
  520. {
  521. /*
  522. * Using NULL as the buffer for NOR flash prevents the entire node
  523. * being read. This makes most comparisons much quicker as only one
  524. * or two entries from the node will be used most of the time.
  525. */
  526. struct jffs2_raw_dirent *jNew = get_node_mem(new->offset, NULL);
  527. struct jffs2_raw_dirent *jOld = get_node_mem(old->offset, NULL);
  528. int cmp;
  529. int ret;
  530. if (jNew->pino != jOld->pino) {
  531. /* ascending sort by pino */
  532. ret = jNew->pino > jOld->pino;
  533. } else if (jNew->nsize != jOld->nsize) {
  534. /*
  535. * pino is the same, so use ascending sort by nsize,
  536. * so we don't do strncmp unless we really must.
  537. */
  538. ret = jNew->nsize > jOld->nsize;
  539. } else {
  540. /*
  541. * length is also the same, so use ascending sort by name
  542. */
  543. cmp = strncmp((char *)jNew->name, (char *)jOld->name,
  544. jNew->nsize);
  545. if (cmp != 0) {
  546. ret = cmp > 0;
  547. } else {
  548. /*
  549. * we have duplicate names in this directory,
  550. * so use ascending sort by version
  551. */
  552. ret = jNew->version > jOld->version;
  553. }
  554. }
  555. put_fl_mem(jNew, NULL);
  556. put_fl_mem(jOld, NULL);
  557. return ret;
  558. }
  559. #endif
  560. void
  561. jffs2_free_cache(struct part_info *part)
  562. {
  563. struct b_lists *pL;
  564. if (part->jffs2_priv != NULL) {
  565. pL = (struct b_lists *)part->jffs2_priv;
  566. free_nodes(&pL->frag);
  567. free_nodes(&pL->dir);
  568. free(pL->readbuf);
  569. free(pL);
  570. }
  571. }
  572. static u32
  573. jffs_init_1pass_list(struct part_info *part)
  574. {
  575. struct b_lists *pL;
  576. jffs2_free_cache(part);
  577. if (NULL != (part->jffs2_priv = malloc(sizeof(struct b_lists)))) {
  578. pL = (struct b_lists *)part->jffs2_priv;
  579. memset(pL, 0, sizeof(*pL));
  580. #ifdef CONFIG_SYS_JFFS2_SORT_FRAGMENTS
  581. pL->dir.listCompare = compare_dirents;
  582. pL->frag.listCompare = compare_inodes;
  583. #endif
  584. }
  585. return 0;
  586. }
  587. /* find the inode from the slashless name given a parent */
  588. static long
  589. jffs2_1pass_read_inode(struct b_lists *pL, u32 inode, char *dest)
  590. {
  591. struct b_node *b;
  592. struct jffs2_raw_inode *jNode;
  593. u32 totalSize = 0;
  594. u32 latestVersion = 0;
  595. uchar *lDest;
  596. uchar *src;
  597. int i;
  598. u32 counter = 0;
  599. #ifdef CONFIG_SYS_JFFS2_SORT_FRAGMENTS
  600. /* Find file size before loading any data, so fragments that
  601. * start past the end of file can be ignored. A fragment
  602. * that is partially in the file is loaded, so extra data may
  603. * be loaded up to the next 4K boundary above the file size.
  604. * This shouldn't cause trouble when loading kernel images, so
  605. * we will live with it.
  606. */
  607. for (b = pL->frag.listHead; b != NULL; b = b->next) {
  608. jNode = (struct jffs2_raw_inode *) get_fl_mem(b->offset,
  609. sizeof(struct jffs2_raw_inode), pL->readbuf);
  610. if ((inode == jNode->ino)) {
  611. /* get actual file length from the newest node */
  612. if (jNode->version >= latestVersion) {
  613. totalSize = jNode->isize;
  614. latestVersion = jNode->version;
  615. }
  616. }
  617. put_fl_mem(jNode, pL->readbuf);
  618. }
  619. /*
  620. * If no destination is provided, we are done.
  621. * Just return the total size.
  622. */
  623. if (!dest)
  624. return totalSize;
  625. #endif
  626. for (b = pL->frag.listHead; b != NULL; b = b->next) {
  627. /*
  628. * Copy just the node and not the data at this point,
  629. * since we don't yet know if we need this data.
  630. */
  631. jNode = (struct jffs2_raw_inode *)get_fl_mem(b->offset,
  632. sizeof(struct jffs2_raw_inode),
  633. pL->readbuf);
  634. if (inode == jNode->ino) {
  635. #if 0
  636. putLabeledWord("\r\n\r\nread_inode: totlen = ", jNode->totlen);
  637. putLabeledWord("read_inode: inode = ", jNode->ino);
  638. putLabeledWord("read_inode: version = ", jNode->version);
  639. putLabeledWord("read_inode: isize = ", jNode->isize);
  640. putLabeledWord("read_inode: offset = ", jNode->offset);
  641. putLabeledWord("read_inode: csize = ", jNode->csize);
  642. putLabeledWord("read_inode: dsize = ", jNode->dsize);
  643. putLabeledWord("read_inode: compr = ", jNode->compr);
  644. putLabeledWord("read_inode: usercompr = ", jNode->usercompr);
  645. putLabeledWord("read_inode: flags = ", jNode->flags);
  646. #endif
  647. #ifndef CONFIG_SYS_JFFS2_SORT_FRAGMENTS
  648. /* get actual file length from the newest node */
  649. if (jNode->version >= latestVersion) {
  650. totalSize = jNode->isize;
  651. latestVersion = jNode->version;
  652. }
  653. #endif
  654. if(dest) {
  655. /*
  656. * Now that the inode has been checked,
  657. * read the entire inode, including data.
  658. */
  659. put_fl_mem(jNode, pL->readbuf);
  660. jNode = (struct jffs2_raw_inode *)
  661. get_node_mem(b->offset, pL->readbuf);
  662. src = ((uchar *)jNode) +
  663. sizeof(struct jffs2_raw_inode);
  664. /* ignore data behind latest known EOF */
  665. if (jNode->offset > totalSize) {
  666. put_fl_mem(jNode, pL->readbuf);
  667. continue;
  668. }
  669. if (b->datacrc == CRC_UNKNOWN)
  670. b->datacrc = data_crc(jNode) ?
  671. CRC_OK : CRC_BAD;
  672. if (b->datacrc == CRC_BAD) {
  673. put_fl_mem(jNode, pL->readbuf);
  674. continue;
  675. }
  676. lDest = (uchar *) (dest + jNode->offset);
  677. #if 0
  678. putLabeledWord("read_inode: src = ", src);
  679. putLabeledWord("read_inode: dest = ", lDest);
  680. #endif
  681. switch (jNode->compr) {
  682. case JFFS2_COMPR_NONE:
  683. ldr_memcpy(lDest, src, jNode->dsize);
  684. break;
  685. case JFFS2_COMPR_ZERO:
  686. for (i = 0; i < jNode->dsize; i++)
  687. *(lDest++) = 0;
  688. break;
  689. case JFFS2_COMPR_RTIME:
  690. rtime_decompress(src, lDest, jNode->csize, jNode->dsize);
  691. break;
  692. case JFFS2_COMPR_DYNRUBIN:
  693. /* this is slow but it works */
  694. dynrubin_decompress(src, lDest, jNode->csize, jNode->dsize);
  695. break;
  696. case JFFS2_COMPR_ZLIB:
  697. zlib_decompress(src, lDest, jNode->csize, jNode->dsize);
  698. break;
  699. #if defined(CONFIG_JFFS2_LZO)
  700. case JFFS2_COMPR_LZO:
  701. lzo_decompress(src, lDest, jNode->csize, jNode->dsize);
  702. break;
  703. #endif
  704. default:
  705. /* unknown */
  706. putLabeledWord("UNKNOWN COMPRESSION METHOD = ", jNode->compr);
  707. put_fl_mem(jNode, pL->readbuf);
  708. return -1;
  709. break;
  710. }
  711. }
  712. #if 0
  713. putLabeledWord("read_inode: totalSize = ", totalSize);
  714. #endif
  715. }
  716. counter++;
  717. put_fl_mem(jNode, pL->readbuf);
  718. }
  719. #if 0
  720. putLabeledWord("read_inode: returning = ", totalSize);
  721. #endif
  722. return totalSize;
  723. }
  724. /* find the inode from the slashless name given a parent */
  725. static u32
  726. jffs2_1pass_find_inode(struct b_lists * pL, const char *name, u32 pino)
  727. {
  728. struct b_node *b;
  729. struct jffs2_raw_dirent *jDir;
  730. int len;
  731. u32 counter;
  732. u32 version = 0;
  733. u32 inode = 0;
  734. /* name is assumed slash free */
  735. len = strlen(name);
  736. counter = 0;
  737. /* we need to search all and return the inode with the highest version */
  738. for(b = pL->dir.listHead; b; b = b->next, counter++) {
  739. jDir = (struct jffs2_raw_dirent *) get_node_mem(b->offset,
  740. pL->readbuf);
  741. if ((pino == jDir->pino) && (len == jDir->nsize) &&
  742. (!strncmp((char *)jDir->name, name, len))) { /* a match */
  743. if (jDir->version < version) {
  744. put_fl_mem(jDir, pL->readbuf);
  745. continue;
  746. }
  747. if (jDir->version == version && inode != 0) {
  748. /* I'm pretty sure this isn't legal */
  749. putstr(" ** ERROR ** ");
  750. putnstr(jDir->name, jDir->nsize);
  751. putLabeledWord(" has dup version =", version);
  752. }
  753. inode = jDir->ino;
  754. version = jDir->version;
  755. }
  756. #if 0
  757. putstr("\r\nfind_inode:p&l ->");
  758. putnstr(jDir->name, jDir->nsize);
  759. putstr("\r\n");
  760. putLabeledWord("pino = ", jDir->pino);
  761. putLabeledWord("nsize = ", jDir->nsize);
  762. putLabeledWord("b = ", (u32) b);
  763. putLabeledWord("counter = ", counter);
  764. #endif
  765. put_fl_mem(jDir, pL->readbuf);
  766. }
  767. return inode;
  768. }
  769. char *mkmodestr(unsigned long mode, char *str)
  770. {
  771. static const char *l = "xwr";
  772. int mask = 1, i;
  773. char c;
  774. switch (mode & S_IFMT) {
  775. case S_IFDIR: str[0] = 'd'; break;
  776. case S_IFBLK: str[0] = 'b'; break;
  777. case S_IFCHR: str[0] = 'c'; break;
  778. case S_IFIFO: str[0] = 'f'; break;
  779. case S_IFLNK: str[0] = 'l'; break;
  780. case S_IFSOCK: str[0] = 's'; break;
  781. case S_IFREG: str[0] = '-'; break;
  782. default: str[0] = '?';
  783. }
  784. for(i = 0; i < 9; i++) {
  785. c = l[i%3];
  786. str[9-i] = (mode & mask)?c:'-';
  787. mask = mask<<1;
  788. }
  789. if(mode & S_ISUID) str[3] = (mode & S_IXUSR)?'s':'S';
  790. if(mode & S_ISGID) str[6] = (mode & S_IXGRP)?'s':'S';
  791. if(mode & S_ISVTX) str[9] = (mode & S_IXOTH)?'t':'T';
  792. str[10] = '\0';
  793. return str;
  794. }
  795. static inline void dump_stat(struct stat *st, const char *name)
  796. {
  797. char str[20];
  798. char s[64], *p;
  799. if (st->st_mtime == (time_t)(-1)) /* some ctimes really hate -1 */
  800. st->st_mtime = 1;
  801. ctime_r((time_t *)&st->st_mtime, s/*,64*/); /* newlib ctime doesn't have buflen */
  802. if ((p = strchr(s,'\n')) != NULL) *p = '\0';
  803. if ((p = strchr(s,'\r')) != NULL) *p = '\0';
  804. /*
  805. printf("%6lo %s %8ld %s %s\n", st->st_mode, mkmodestr(st->st_mode, str),
  806. st->st_size, s, name);
  807. */
  808. printf(" %s %8ld %s %s", mkmodestr(st->st_mode,str), st->st_size, s, name);
  809. }
  810. static inline u32 dump_inode(struct b_lists * pL, struct jffs2_raw_dirent *d, struct jffs2_raw_inode *i)
  811. {
  812. char fname[256];
  813. struct stat st;
  814. if(!d || !i) return -1;
  815. strncpy(fname, (char *)d->name, d->nsize);
  816. fname[d->nsize] = '\0';
  817. memset(&st,0,sizeof(st));
  818. st.st_mtime = i->mtime;
  819. st.st_mode = i->mode;
  820. st.st_ino = i->ino;
  821. st.st_size = i->isize;
  822. dump_stat(&st, fname);
  823. if (d->type == DT_LNK) {
  824. unsigned char *src = (unsigned char *) (&i[1]);
  825. putstr(" -> ");
  826. putnstr(src, (int)i->dsize);
  827. }
  828. putstr("\r\n");
  829. return 0;
  830. }
  831. /* list inodes with the given pino */
  832. static u32
  833. jffs2_1pass_list_inodes(struct b_lists * pL, u32 pino)
  834. {
  835. struct b_node *b;
  836. struct jffs2_raw_dirent *jDir;
  837. for (b = pL->dir.listHead; b; b = b->next) {
  838. jDir = (struct jffs2_raw_dirent *) get_node_mem(b->offset,
  839. pL->readbuf);
  840. if (pino == jDir->pino) {
  841. u32 i_version = 0;
  842. struct jffs2_raw_inode *jNode, *i = NULL;
  843. struct b_node *b2;
  844. #ifdef CONFIG_SYS_JFFS2_SORT_FRAGMENTS
  845. /* Check for more recent versions of this file */
  846. int match;
  847. do {
  848. struct b_node *next = b->next;
  849. struct jffs2_raw_dirent *jDirNext;
  850. if (!next)
  851. break;
  852. jDirNext = (struct jffs2_raw_dirent *)
  853. get_node_mem(next->offset, NULL);
  854. match = jDirNext->pino == jDir->pino &&
  855. jDirNext->nsize == jDir->nsize &&
  856. strncmp((char *)jDirNext->name,
  857. (char *)jDir->name,
  858. jDir->nsize) == 0;
  859. if (match) {
  860. /* Use next. It is more recent */
  861. b = next;
  862. /* Update buffer with the new info */
  863. *jDir = *jDirNext;
  864. }
  865. put_fl_mem(jDirNext, NULL);
  866. } while (match);
  867. #endif
  868. if (jDir->ino == 0) {
  869. /* Deleted file */
  870. put_fl_mem(jDir, pL->readbuf);
  871. continue;
  872. }
  873. for (b2 = pL->frag.listHead; b2; b2 = b2->next) {
  874. jNode = (struct jffs2_raw_inode *)
  875. get_fl_mem(b2->offset, sizeof(*jNode),
  876. NULL);
  877. if (jNode->ino == jDir->ino &&
  878. jNode->version >= i_version) {
  879. i_version = jNode->version;
  880. if (i)
  881. put_fl_mem(i, NULL);
  882. if (jDir->type == DT_LNK)
  883. i = get_node_mem(b2->offset,
  884. NULL);
  885. else
  886. i = get_fl_mem(b2->offset,
  887. sizeof(*i),
  888. NULL);
  889. }
  890. put_fl_mem(jNode, NULL);
  891. }
  892. dump_inode(pL, jDir, i);
  893. put_fl_mem(i, NULL);
  894. }
  895. put_fl_mem(jDir, pL->readbuf);
  896. }
  897. return pino;
  898. }
  899. static u32
  900. jffs2_1pass_search_inode(struct b_lists * pL, const char *fname, u32 pino)
  901. {
  902. int i;
  903. char tmp[256];
  904. char working_tmp[256];
  905. char *c;
  906. /* discard any leading slash */
  907. i = 0;
  908. while (fname[i] == '/')
  909. i++;
  910. strcpy(tmp, &fname[i]);
  911. while ((c = (char *) strchr(tmp, '/'))) /* we are still dired searching */
  912. {
  913. strncpy(working_tmp, tmp, c - tmp);
  914. working_tmp[c - tmp] = '\0';
  915. #if 0
  916. putstr("search_inode: tmp = ");
  917. putstr(tmp);
  918. putstr("\r\n");
  919. putstr("search_inode: wtmp = ");
  920. putstr(working_tmp);
  921. putstr("\r\n");
  922. putstr("search_inode: c = ");
  923. putstr(c);
  924. putstr("\r\n");
  925. #endif
  926. for (i = 0; i < strlen(c) - 1; i++)
  927. tmp[i] = c[i + 1];
  928. tmp[i] = '\0';
  929. #if 0
  930. putstr("search_inode: post tmp = ");
  931. putstr(tmp);
  932. putstr("\r\n");
  933. #endif
  934. if (!(pino = jffs2_1pass_find_inode(pL, working_tmp, pino))) {
  935. putstr("find_inode failed for name=");
  936. putstr(working_tmp);
  937. putstr("\r\n");
  938. return 0;
  939. }
  940. }
  941. /* this is for the bare filename, directories have already been mapped */
  942. if (!(pino = jffs2_1pass_find_inode(pL, tmp, pino))) {
  943. putstr("find_inode failed for name=");
  944. putstr(tmp);
  945. putstr("\r\n");
  946. return 0;
  947. }
  948. return pino;
  949. }
  950. static u32
  951. jffs2_1pass_resolve_inode(struct b_lists * pL, u32 ino)
  952. {
  953. struct b_node *b;
  954. struct b_node *b2;
  955. struct jffs2_raw_dirent *jDir;
  956. struct jffs2_raw_inode *jNode;
  957. u8 jDirFoundType = 0;
  958. u32 jDirFoundIno = 0;
  959. u32 jDirFoundPino = 0;
  960. char tmp[256];
  961. u32 version = 0;
  962. u32 pino;
  963. unsigned char *src;
  964. /* we need to search all and return the inode with the highest version */
  965. for(b = pL->dir.listHead; b; b = b->next) {
  966. jDir = (struct jffs2_raw_dirent *) get_node_mem(b->offset,
  967. pL->readbuf);
  968. if (ino == jDir->ino) {
  969. if (jDir->version < version) {
  970. put_fl_mem(jDir, pL->readbuf);
  971. continue;
  972. }
  973. if (jDir->version == version && jDirFoundType) {
  974. /* I'm pretty sure this isn't legal */
  975. putstr(" ** ERROR ** ");
  976. putnstr(jDir->name, jDir->nsize);
  977. putLabeledWord(" has dup version (resolve) = ",
  978. version);
  979. }
  980. jDirFoundType = jDir->type;
  981. jDirFoundIno = jDir->ino;
  982. jDirFoundPino = jDir->pino;
  983. version = jDir->version;
  984. }
  985. put_fl_mem(jDir, pL->readbuf);
  986. }
  987. /* now we found the right entry again. (shoulda returned inode*) */
  988. if (jDirFoundType != DT_LNK)
  989. return jDirFoundIno;
  990. /* it's a soft link so we follow it again. */
  991. b2 = pL->frag.listHead;
  992. while (b2) {
  993. jNode = (struct jffs2_raw_inode *) get_node_mem(b2->offset,
  994. pL->readbuf);
  995. if (jNode->ino == jDirFoundIno) {
  996. src = (unsigned char *)jNode + sizeof(struct jffs2_raw_inode);
  997. #if 0
  998. putLabeledWord("\t\t dsize = ", jNode->dsize);
  999. putstr("\t\t target = ");
  1000. putnstr(src, jNode->dsize);
  1001. putstr("\r\n");
  1002. #endif
  1003. strncpy(tmp, (char *)src, jNode->dsize);
  1004. tmp[jNode->dsize] = '\0';
  1005. put_fl_mem(jNode, pL->readbuf);
  1006. break;
  1007. }
  1008. b2 = b2->next;
  1009. put_fl_mem(jNode, pL->readbuf);
  1010. }
  1011. /* ok so the name of the new file to find is in tmp */
  1012. /* if it starts with a slash it is root based else shared dirs */
  1013. if (tmp[0] == '/')
  1014. pino = 1;
  1015. else
  1016. pino = jDirFoundPino;
  1017. return jffs2_1pass_search_inode(pL, tmp, pino);
  1018. }
  1019. static u32
  1020. jffs2_1pass_search_list_inodes(struct b_lists * pL, const char *fname, u32 pino)
  1021. {
  1022. int i;
  1023. char tmp[256];
  1024. char working_tmp[256];
  1025. char *c;
  1026. /* discard any leading slash */
  1027. i = 0;
  1028. while (fname[i] == '/')
  1029. i++;
  1030. strcpy(tmp, &fname[i]);
  1031. working_tmp[0] = '\0';
  1032. while ((c = (char *) strchr(tmp, '/'))) /* we are still dired searching */
  1033. {
  1034. strncpy(working_tmp, tmp, c - tmp);
  1035. working_tmp[c - tmp] = '\0';
  1036. for (i = 0; i < strlen(c) - 1; i++)
  1037. tmp[i] = c[i + 1];
  1038. tmp[i] = '\0';
  1039. /* only a failure if we arent looking at top level */
  1040. if (!(pino = jffs2_1pass_find_inode(pL, working_tmp, pino)) &&
  1041. (working_tmp[0])) {
  1042. putstr("find_inode failed for name=");
  1043. putstr(working_tmp);
  1044. putstr("\r\n");
  1045. return 0;
  1046. }
  1047. }
  1048. if (tmp[0] && !(pino = jffs2_1pass_find_inode(pL, tmp, pino))) {
  1049. putstr("find_inode failed for name=");
  1050. putstr(tmp);
  1051. putstr("\r\n");
  1052. return 0;
  1053. }
  1054. /* this is for the bare filename, directories have already been mapped */
  1055. if (!(pino = jffs2_1pass_list_inodes(pL, pino))) {
  1056. putstr("find_inode failed for name=");
  1057. putstr(tmp);
  1058. putstr("\r\n");
  1059. return 0;
  1060. }
  1061. return pino;
  1062. }
  1063. unsigned char
  1064. jffs2_1pass_rescan_needed(struct part_info *part)
  1065. {
  1066. struct b_node *b;
  1067. struct jffs2_unknown_node onode;
  1068. struct jffs2_unknown_node *node;
  1069. struct b_lists *pL = (struct b_lists *)part->jffs2_priv;
  1070. if (part->jffs2_priv == 0){
  1071. DEBUGF ("rescan: First time in use\n");
  1072. return 1;
  1073. }
  1074. /* if we have no list, we need to rescan */
  1075. if (pL->frag.listCount == 0) {
  1076. DEBUGF ("rescan: fraglist zero\n");
  1077. return 1;
  1078. }
  1079. /* but suppose someone reflashed a partition at the same offset... */
  1080. b = pL->dir.listHead;
  1081. while (b) {
  1082. node = (struct jffs2_unknown_node *) get_fl_mem(b->offset,
  1083. sizeof(onode), &onode);
  1084. if (node->nodetype != JFFS2_NODETYPE_DIRENT) {
  1085. DEBUGF ("rescan: fs changed beneath me? (%lx)\n",
  1086. (unsigned long) b->offset);
  1087. return 1;
  1088. }
  1089. b = b->next;
  1090. }
  1091. return 0;
  1092. }
  1093. #ifdef CONFIG_JFFS2_SUMMARY
  1094. static u32 sum_get_unaligned32(u32 *ptr)
  1095. {
  1096. u32 val;
  1097. u8 *p = (u8 *)ptr;
  1098. val = *p | (*(p + 1) << 8) | (*(p + 2) << 16) | (*(p + 3) << 24);
  1099. return __le32_to_cpu(val);
  1100. }
  1101. static u16 sum_get_unaligned16(u16 *ptr)
  1102. {
  1103. u16 val;
  1104. u8 *p = (u8 *)ptr;
  1105. val = *p | (*(p + 1) << 8);
  1106. return __le16_to_cpu(val);
  1107. }
  1108. #define dbg_summary(...) do {} while (0);
  1109. /*
  1110. * Process the stored summary information - helper function for
  1111. * jffs2_sum_scan_sumnode()
  1112. */
  1113. static int jffs2_sum_process_sum_data(struct part_info *part, uint32_t offset,
  1114. struct jffs2_raw_summary *summary,
  1115. struct b_lists *pL)
  1116. {
  1117. void *sp;
  1118. int i, pass;
  1119. void *ret;
  1120. for (pass = 0; pass < 2; pass++) {
  1121. sp = summary->sum;
  1122. for (i = 0; i < summary->sum_num; i++) {
  1123. struct jffs2_sum_unknown_flash *spu = sp;
  1124. dbg_summary("processing summary index %d\n", i);
  1125. switch (sum_get_unaligned16(&spu->nodetype)) {
  1126. case JFFS2_NODETYPE_INODE: {
  1127. struct jffs2_sum_inode_flash *spi;
  1128. if (pass) {
  1129. spi = sp;
  1130. ret = insert_node(&pL->frag,
  1131. (u32)part->offset +
  1132. offset +
  1133. sum_get_unaligned32(
  1134. &spi->offset));
  1135. if (ret == NULL)
  1136. return -1;
  1137. }
  1138. sp += JFFS2_SUMMARY_INODE_SIZE;
  1139. break;
  1140. }
  1141. case JFFS2_NODETYPE_DIRENT: {
  1142. struct jffs2_sum_dirent_flash *spd;
  1143. spd = sp;
  1144. if (pass) {
  1145. ret = insert_node(&pL->dir,
  1146. (u32) part->offset +
  1147. offset +
  1148. sum_get_unaligned32(
  1149. &spd->offset));
  1150. if (ret == NULL)
  1151. return -1;
  1152. }
  1153. sp += JFFS2_SUMMARY_DIRENT_SIZE(
  1154. spd->nsize);
  1155. break;
  1156. }
  1157. default : {
  1158. uint16_t nodetype = sum_get_unaligned16(
  1159. &spu->nodetype);
  1160. printf("Unsupported node type %x found"
  1161. " in summary!\n",
  1162. nodetype);
  1163. if ((nodetype & JFFS2_COMPAT_MASK) ==
  1164. JFFS2_FEATURE_INCOMPAT)
  1165. return -EIO;
  1166. return -EBADMSG;
  1167. }
  1168. }
  1169. }
  1170. }
  1171. return 0;
  1172. }
  1173. /* Process the summary node - called from jffs2_scan_eraseblock() */
  1174. int jffs2_sum_scan_sumnode(struct part_info *part, uint32_t offset,
  1175. struct jffs2_raw_summary *summary, uint32_t sumsize,
  1176. struct b_lists *pL)
  1177. {
  1178. struct jffs2_unknown_node crcnode;
  1179. int ret, __maybe_unused ofs;
  1180. uint32_t crc;
  1181. ofs = part->sector_size - sumsize;
  1182. dbg_summary("summary found for 0x%08x at 0x%08x (0x%x bytes)\n",
  1183. offset, offset + ofs, sumsize);
  1184. /* OK, now check for node validity and CRC */
  1185. crcnode.magic = JFFS2_MAGIC_BITMASK;
  1186. crcnode.nodetype = JFFS2_NODETYPE_SUMMARY;
  1187. crcnode.totlen = summary->totlen;
  1188. crc = crc32_no_comp(0, (uchar *)&crcnode, sizeof(crcnode)-4);
  1189. if (summary->hdr_crc != crc) {
  1190. dbg_summary("Summary node header is corrupt (bad CRC or "
  1191. "no summary at all)\n");
  1192. goto crc_err;
  1193. }
  1194. if (summary->totlen != sumsize) {
  1195. dbg_summary("Summary node is corrupt (wrong erasesize?)\n");
  1196. goto crc_err;
  1197. }
  1198. crc = crc32_no_comp(0, (uchar *)summary,
  1199. sizeof(struct jffs2_raw_summary)-8);
  1200. if (summary->node_crc != crc) {
  1201. dbg_summary("Summary node is corrupt (bad CRC)\n");
  1202. goto crc_err;
  1203. }
  1204. crc = crc32_no_comp(0, (uchar *)summary->sum,
  1205. sumsize - sizeof(struct jffs2_raw_summary));
  1206. if (summary->sum_crc != crc) {
  1207. dbg_summary("Summary node data is corrupt (bad CRC)\n");
  1208. goto crc_err;
  1209. }
  1210. if (summary->cln_mkr)
  1211. dbg_summary("Summary : CLEANMARKER node \n");
  1212. ret = jffs2_sum_process_sum_data(part, offset, summary, pL);
  1213. if (ret == -EBADMSG)
  1214. return 0;
  1215. if (ret)
  1216. return ret; /* real error */
  1217. return 1;
  1218. crc_err:
  1219. putstr("Summary node crc error, skipping summary information.\n");
  1220. return 0;
  1221. }
  1222. #endif /* CONFIG_JFFS2_SUMMARY */
  1223. #ifdef DEBUG_FRAGMENTS
  1224. static void
  1225. dump_fragments(struct b_lists *pL)
  1226. {
  1227. struct b_node *b;
  1228. struct jffs2_raw_inode ojNode;
  1229. struct jffs2_raw_inode *jNode;
  1230. putstr("\r\n\r\n******The fragment Entries******\r\n");
  1231. b = pL->frag.listHead;
  1232. while (b) {
  1233. jNode = (struct jffs2_raw_inode *) get_fl_mem(b->offset,
  1234. sizeof(ojNode), &ojNode);
  1235. putLabeledWord("\r\n\tbuild_list: FLASH_OFFSET = ", b->offset);
  1236. putLabeledWord("\tbuild_list: totlen = ", jNode->totlen);
  1237. putLabeledWord("\tbuild_list: inode = ", jNode->ino);
  1238. putLabeledWord("\tbuild_list: version = ", jNode->version);
  1239. putLabeledWord("\tbuild_list: isize = ", jNode->isize);
  1240. putLabeledWord("\tbuild_list: atime = ", jNode->atime);
  1241. putLabeledWord("\tbuild_list: offset = ", jNode->offset);
  1242. putLabeledWord("\tbuild_list: csize = ", jNode->csize);
  1243. putLabeledWord("\tbuild_list: dsize = ", jNode->dsize);
  1244. putLabeledWord("\tbuild_list: compr = ", jNode->compr);
  1245. putLabeledWord("\tbuild_list: usercompr = ", jNode->usercompr);
  1246. putLabeledWord("\tbuild_list: flags = ", jNode->flags);
  1247. putLabeledWord("\tbuild_list: offset = ", b->offset); /* FIXME: ? [RS] */
  1248. b = b->next;
  1249. }
  1250. }
  1251. #endif
  1252. #ifdef DEBUG_DIRENTS
  1253. static void
  1254. dump_dirents(struct b_lists *pL)
  1255. {
  1256. struct b_node *b;
  1257. struct jffs2_raw_dirent *jDir;
  1258. putstr("\r\n\r\n******The directory Entries******\r\n");
  1259. b = pL->dir.listHead;
  1260. while (b) {
  1261. jDir = (struct jffs2_raw_dirent *) get_node_mem(b->offset,
  1262. pL->readbuf);
  1263. putstr("\r\n");
  1264. putnstr(jDir->name, jDir->nsize);
  1265. putLabeledWord("\r\n\tbuild_list: magic = ", jDir->magic);
  1266. putLabeledWord("\tbuild_list: nodetype = ", jDir->nodetype);
  1267. putLabeledWord("\tbuild_list: hdr_crc = ", jDir->hdr_crc);
  1268. putLabeledWord("\tbuild_list: pino = ", jDir->pino);
  1269. putLabeledWord("\tbuild_list: version = ", jDir->version);
  1270. putLabeledWord("\tbuild_list: ino = ", jDir->ino);
  1271. putLabeledWord("\tbuild_list: mctime = ", jDir->mctime);
  1272. putLabeledWord("\tbuild_list: nsize = ", jDir->nsize);
  1273. putLabeledWord("\tbuild_list: type = ", jDir->type);
  1274. putLabeledWord("\tbuild_list: node_crc = ", jDir->node_crc);
  1275. putLabeledWord("\tbuild_list: name_crc = ", jDir->name_crc);
  1276. putLabeledWord("\tbuild_list: offset = ", b->offset); /* FIXME: ? [RS] */
  1277. b = b->next;
  1278. put_fl_mem(jDir, pL->readbuf);
  1279. }
  1280. }
  1281. #endif
  1282. #define DEFAULT_EMPTY_SCAN_SIZE 256
  1283. static inline uint32_t EMPTY_SCAN_SIZE(uint32_t sector_size)
  1284. {
  1285. if (sector_size < DEFAULT_EMPTY_SCAN_SIZE)
  1286. return sector_size;
  1287. else
  1288. return DEFAULT_EMPTY_SCAN_SIZE;
  1289. }
  1290. static u32
  1291. jffs2_1pass_build_lists(struct part_info * part)
  1292. {
  1293. struct b_lists *pL;
  1294. struct jffs2_unknown_node *node;
  1295. u32 nr_sectors;
  1296. u32 i;
  1297. u32 counter4 = 0;
  1298. u32 counterF = 0;
  1299. u32 counterN = 0;
  1300. u32 max_totlen = 0;
  1301. u32 buf_size;
  1302. char *buf;
  1303. nr_sectors = lldiv(part->size, part->sector_size);
  1304. /* turn off the lcd. Refreshing the lcd adds 50% overhead to the */
  1305. /* jffs2 list building enterprise nope. in newer versions the overhead is */
  1306. /* only about 5 %. not enough to inconvenience people for. */
  1307. /* lcd_off(); */
  1308. /* if we are building a list we need to refresh the cache. */
  1309. jffs_init_1pass_list(part);
  1310. pL = (struct b_lists *)part->jffs2_priv;
  1311. buf = malloc(DEFAULT_EMPTY_SCAN_SIZE);
  1312. puts ("Scanning JFFS2 FS: ");
  1313. /* start at the beginning of the partition */
  1314. for (i = 0; i < nr_sectors; i++) {
  1315. uint32_t sector_ofs = i * part->sector_size;
  1316. uint32_t buf_ofs = sector_ofs;
  1317. uint32_t buf_len;
  1318. uint32_t ofs, prevofs;
  1319. #ifdef CONFIG_JFFS2_SUMMARY
  1320. struct jffs2_sum_marker *sm;
  1321. void *sumptr = NULL;
  1322. uint32_t sumlen;
  1323. int ret;
  1324. #endif
  1325. /* Indicates a sector with a CLEANMARKER was found */
  1326. int clean_sector = 0;
  1327. /* Set buf_size to maximum length */
  1328. buf_size = DEFAULT_EMPTY_SCAN_SIZE;
  1329. WATCHDOG_RESET();
  1330. #ifdef CONFIG_JFFS2_SUMMARY
  1331. buf_len = sizeof(*sm);
  1332. /* Read as much as we want into the _end_ of the preallocated
  1333. * buffer
  1334. */
  1335. get_fl_mem(part->offset + sector_ofs + part->sector_size -
  1336. buf_len, buf_len, buf + buf_size - buf_len);
  1337. sm = (void *)buf + buf_size - sizeof(*sm);
  1338. if (sm->magic == JFFS2_SUM_MAGIC) {
  1339. sumlen = part->sector_size - sm->offset;
  1340. sumptr = buf + buf_size - sumlen;
  1341. /* Now, make sure the summary itself is available */
  1342. if (sumlen > buf_size) {
  1343. /* Need to kmalloc for this. */
  1344. sumptr = malloc(sumlen);
  1345. if (!sumptr) {
  1346. putstr("Can't get memory for summary "
  1347. "node!\n");
  1348. free(buf);
  1349. jffs2_free_cache(part);
  1350. return 0;
  1351. }
  1352. memcpy(sumptr + sumlen - buf_len, buf +
  1353. buf_size - buf_len, buf_len);
  1354. }
  1355. if (buf_len < sumlen) {
  1356. /* Need to read more so that the entire summary
  1357. * node is present
  1358. */
  1359. get_fl_mem(part->offset + sector_ofs +
  1360. part->sector_size - sumlen,
  1361. sumlen - buf_len, sumptr);
  1362. }
  1363. }
  1364. if (sumptr) {
  1365. ret = jffs2_sum_scan_sumnode(part, sector_ofs, sumptr,
  1366. sumlen, pL);
  1367. if (buf_size && sumlen > buf_size)
  1368. free(sumptr);
  1369. if (ret < 0) {
  1370. free(buf);
  1371. jffs2_free_cache(part);
  1372. return 0;
  1373. }
  1374. if (ret)
  1375. continue;
  1376. }
  1377. #endif /* CONFIG_JFFS2_SUMMARY */
  1378. buf_len = EMPTY_SCAN_SIZE(part->sector_size);
  1379. get_fl_mem((u32)part->offset + buf_ofs, buf_len, buf);
  1380. /* We temporarily use 'ofs' as a pointer into the buffer/jeb */
  1381. ofs = 0;
  1382. /* Scan only 4KiB of 0xFF before declaring it's empty */
  1383. while (ofs < EMPTY_SCAN_SIZE(part->sector_size) &&
  1384. *(uint32_t *)(&buf[ofs]) == 0xFFFFFFFF)
  1385. ofs += 4;
  1386. if (ofs == EMPTY_SCAN_SIZE(part->sector_size))
  1387. continue;
  1388. ofs += sector_ofs;
  1389. prevofs = ofs - 1;
  1390. /*
  1391. * Set buf_size down to the minimum size required.
  1392. * This prevents reading in chunks of flash data unnecessarily.
  1393. */
  1394. buf_size = sizeof(union jffs2_node_union);
  1395. scan_more:
  1396. while (ofs < sector_ofs + part->sector_size) {
  1397. if (ofs == prevofs) {
  1398. printf("offset %08x already seen, skip\n", ofs);
  1399. ofs += 4;
  1400. counter4++;
  1401. continue;
  1402. }
  1403. prevofs = ofs;
  1404. if (sector_ofs + part->sector_size <
  1405. ofs + sizeof(*node))
  1406. break;
  1407. if (buf_ofs + buf_len < ofs + sizeof(*node)) {
  1408. buf_len = min_t(uint32_t, buf_size, sector_ofs
  1409. + part->sector_size - ofs);
  1410. get_fl_mem((u32)part->offset + ofs, buf_len,
  1411. buf);
  1412. buf_ofs = ofs;
  1413. }
  1414. node = (struct jffs2_unknown_node *)&buf[ofs-buf_ofs];
  1415. if (*(uint32_t *)(&buf[ofs-buf_ofs]) == 0xffffffff) {
  1416. uint32_t inbuf_ofs;
  1417. uint32_t scan_end;
  1418. ofs += 4;
  1419. scan_end = min_t(uint32_t, EMPTY_SCAN_SIZE(
  1420. part->sector_size)/8,
  1421. buf_len);
  1422. more_empty:
  1423. inbuf_ofs = ofs - buf_ofs;
  1424. while (inbuf_ofs < scan_end) {
  1425. if (*(uint32_t *)(&buf[inbuf_ofs]) !=
  1426. 0xffffffff)
  1427. goto scan_more;
  1428. inbuf_ofs += 4;
  1429. ofs += 4;
  1430. }
  1431. /* Ran off end. */
  1432. /*
  1433. * If this sector had a clean marker at the
  1434. * beginning, and immediately following this
  1435. * have been a bunch of FF bytes, treat the
  1436. * entire sector as empty.
  1437. */
  1438. if (clean_sector)
  1439. break;
  1440. /* See how much more there is to read in this
  1441. * eraseblock...
  1442. */
  1443. buf_len = min_t(uint32_t, buf_size,
  1444. sector_ofs +
  1445. part->sector_size - ofs);
  1446. if (!buf_len) {
  1447. /* No more to read. Break out of main
  1448. * loop without marking this range of
  1449. * empty space as dirty (because it's
  1450. * not)
  1451. */
  1452. break;
  1453. }
  1454. scan_end = buf_len;
  1455. get_fl_mem((u32)part->offset + ofs, buf_len,
  1456. buf);
  1457. buf_ofs = ofs;
  1458. goto more_empty;
  1459. }
  1460. /*
  1461. * Found something not erased in the sector, so reset
  1462. * the 'clean_sector' flag.
  1463. */
  1464. clean_sector = 0;
  1465. if (node->magic != JFFS2_MAGIC_BITMASK ||
  1466. !hdr_crc(node)) {
  1467. ofs += 4;
  1468. counter4++;
  1469. continue;
  1470. }
  1471. if (ofs + node->totlen >
  1472. sector_ofs + part->sector_size) {
  1473. ofs += 4;
  1474. counter4++;
  1475. continue;
  1476. }
  1477. /* if its a fragment add it */
  1478. switch (node->nodetype) {
  1479. case JFFS2_NODETYPE_INODE:
  1480. if (buf_ofs + buf_len < ofs + sizeof(struct
  1481. jffs2_raw_inode)) {
  1482. buf_len = min_t(uint32_t,
  1483. sizeof(struct jffs2_raw_inode),
  1484. sector_ofs +
  1485. part->sector_size -
  1486. ofs);
  1487. get_fl_mem((u32)part->offset + ofs,
  1488. buf_len, buf);
  1489. buf_ofs = ofs;
  1490. node = (void *)buf;
  1491. }
  1492. if (!inode_crc((struct jffs2_raw_inode *)node))
  1493. break;
  1494. if (insert_node(&pL->frag, (u32) part->offset +
  1495. ofs) == NULL) {
  1496. free(buf);
  1497. jffs2_free_cache(part);
  1498. return 0;
  1499. }
  1500. if (max_totlen < node->totlen)
  1501. max_totlen = node->totlen;
  1502. break;
  1503. case JFFS2_NODETYPE_DIRENT:
  1504. if (buf_ofs + buf_len < ofs + sizeof(struct
  1505. jffs2_raw_dirent) +
  1506. ((struct
  1507. jffs2_raw_dirent *)
  1508. node)->nsize) {
  1509. buf_len = min_t(uint32_t,
  1510. node->totlen,
  1511. sector_ofs +
  1512. part->sector_size -
  1513. ofs);
  1514. get_fl_mem((u32)part->offset + ofs,
  1515. buf_len, buf);
  1516. buf_ofs = ofs;
  1517. node = (void *)buf;
  1518. }
  1519. if (!dirent_crc((struct jffs2_raw_dirent *)
  1520. node) ||
  1521. !dirent_name_crc(
  1522. (struct
  1523. jffs2_raw_dirent *)
  1524. node))
  1525. break;
  1526. if (! (counterN%100))
  1527. puts ("\b\b. ");
  1528. if (insert_node(&pL->dir, (u32) part->offset +
  1529. ofs) == NULL) {
  1530. free(buf);
  1531. jffs2_free_cache(part);
  1532. return 0;
  1533. }
  1534. if (max_totlen < node->totlen)
  1535. max_totlen = node->totlen;
  1536. counterN++;
  1537. break;
  1538. case JFFS2_NODETYPE_CLEANMARKER:
  1539. if (node->totlen != sizeof(struct jffs2_unknown_node))
  1540. printf("OOPS Cleanmarker has bad size "
  1541. "%d != %zu\n",
  1542. node->totlen,
  1543. sizeof(struct jffs2_unknown_node));
  1544. if ((node->totlen ==
  1545. sizeof(struct jffs2_unknown_node)) &&
  1546. (ofs == sector_ofs)) {
  1547. /*
  1548. * Found a CLEANMARKER at the beginning
  1549. * of the sector. It's in the correct
  1550. * place with correct size and CRC.
  1551. */
  1552. clean_sector = 1;
  1553. }
  1554. break;
  1555. case JFFS2_NODETYPE_PADDING:
  1556. if (node->totlen < sizeof(struct jffs2_unknown_node))
  1557. printf("OOPS Padding has bad size "
  1558. "%d < %zu\n",
  1559. node->totlen,
  1560. sizeof(struct jffs2_unknown_node));
  1561. break;
  1562. case JFFS2_NODETYPE_SUMMARY:
  1563. break;
  1564. default:
  1565. printf("Unknown node type: %x len %d offset 0x%x\n",
  1566. node->nodetype,
  1567. node->totlen, ofs);
  1568. }
  1569. ofs += ((node->totlen + 3) & ~3);
  1570. counterF++;
  1571. }
  1572. }
  1573. free(buf);
  1574. #if defined(CONFIG_SYS_JFFS2_SORT_FRAGMENTS)
  1575. /*
  1576. * Sort the lists.
  1577. */
  1578. sort_list(&pL->frag);
  1579. sort_list(&pL->dir);
  1580. #endif
  1581. putstr("\b\b done.\r\n"); /* close off the dots */
  1582. /* We don't care if malloc failed - then each read operation will
  1583. * allocate its own buffer as necessary (NAND) or will read directly
  1584. * from flash (NOR).
  1585. */
  1586. pL->readbuf = malloc(max_totlen);
  1587. /* turn the lcd back on. */
  1588. /* splash(); */
  1589. #if 0
  1590. putLabeledWord("dir entries = ", pL->dir.listCount);
  1591. putLabeledWord("frag entries = ", pL->frag.listCount);
  1592. putLabeledWord("+4 increments = ", counter4);
  1593. putLabeledWord("+file_offset increments = ", counterF);
  1594. #endif
  1595. #ifdef DEBUG_DIRENTS
  1596. dump_dirents(pL);
  1597. #endif
  1598. #ifdef DEBUG_FRAGMENTS
  1599. dump_fragments(pL);
  1600. #endif
  1601. /* give visual feedback that we are done scanning the flash */
  1602. led_blink(0x0, 0x0, 0x1, 0x1); /* off, forever, on 100ms, off 100ms */
  1603. return 1;
  1604. }
  1605. static u32
  1606. jffs2_1pass_fill_info(struct b_lists * pL, struct b_jffs2_info * piL)
  1607. {
  1608. struct b_node *b;
  1609. struct jffs2_raw_inode ojNode;
  1610. struct jffs2_raw_inode *jNode;
  1611. int i;
  1612. for (i = 0; i < JFFS2_NUM_COMPR; i++) {
  1613. piL->compr_info[i].num_frags = 0;
  1614. piL->compr_info[i].compr_sum = 0;
  1615. piL->compr_info[i].decompr_sum = 0;
  1616. }
  1617. b = pL->frag.listHead;
  1618. while (b) {
  1619. jNode = (struct jffs2_raw_inode *) get_fl_mem(b->offset,
  1620. sizeof(ojNode), &ojNode);
  1621. if (jNode->compr < JFFS2_NUM_COMPR) {
  1622. piL->compr_info[jNode->compr].num_frags++;
  1623. piL->compr_info[jNode->compr].compr_sum += jNode->csize;
  1624. piL->compr_info[jNode->compr].decompr_sum += jNode->dsize;
  1625. }
  1626. b = b->next;
  1627. }
  1628. return 0;
  1629. }
  1630. static struct b_lists *
  1631. jffs2_get_list(struct part_info * part, const char *who)
  1632. {
  1633. /* copy requested part_info struct pointer to global location */
  1634. current_part = part;
  1635. if (jffs2_1pass_rescan_needed(part)) {
  1636. if (!jffs2_1pass_build_lists(part)) {
  1637. printf("%s: Failed to scan JFFSv2 file structure\n", who);
  1638. return NULL;
  1639. }
  1640. }
  1641. return (struct b_lists *)part->jffs2_priv;
  1642. }
  1643. /* Print directory / file contents */
  1644. u32
  1645. jffs2_1pass_ls(struct part_info * part, const char *fname)
  1646. {
  1647. struct b_lists *pl;
  1648. long ret = 1;
  1649. u32 inode;
  1650. if (! (pl = jffs2_get_list(part, "ls")))
  1651. return 0;
  1652. if (! (inode = jffs2_1pass_search_list_inodes(pl, fname, 1))) {
  1653. putstr("ls: Failed to scan jffs2 file structure\r\n");
  1654. return 0;
  1655. }
  1656. #if 0
  1657. putLabeledWord("found file at inode = ", inode);
  1658. putLabeledWord("read_inode returns = ", ret);
  1659. #endif
  1660. return ret;
  1661. }
  1662. /* Load a file from flash into memory. fname can be a full path */
  1663. u32
  1664. jffs2_1pass_load(char *dest, struct part_info * part, const char *fname)
  1665. {
  1666. struct b_lists *pl;
  1667. long ret = 1;
  1668. u32 inode;
  1669. if (! (pl = jffs2_get_list(part, "load")))
  1670. return 0;
  1671. if (! (inode = jffs2_1pass_search_inode(pl, fname, 1))) {
  1672. putstr("load: Failed to find inode\r\n");
  1673. return 0;
  1674. }
  1675. /* Resolve symlinks */
  1676. if (! (inode = jffs2_1pass_resolve_inode(pl, inode))) {
  1677. putstr("load: Failed to resolve inode structure\r\n");
  1678. return 0;
  1679. }
  1680. if ((ret = jffs2_1pass_read_inode(pl, inode, dest)) < 0) {
  1681. putstr("load: Failed to read inode\r\n");
  1682. return 0;
  1683. }
  1684. DEBUGF ("load: loaded '%s' to 0x%lx (%ld bytes)\n", fname,
  1685. (unsigned long) dest, ret);
  1686. return ret;
  1687. }
  1688. /* Return information about the fs on this partition */
  1689. u32
  1690. jffs2_1pass_info(struct part_info * part)
  1691. {
  1692. struct b_jffs2_info info;
  1693. struct b_lists *pl;
  1694. int i;
  1695. if (! (pl = jffs2_get_list(part, "info")))
  1696. return 0;
  1697. jffs2_1pass_fill_info(pl, &info);
  1698. for (i = 0; i < JFFS2_NUM_COMPR; i++) {
  1699. printf ("Compression: %s\n"
  1700. "\tfrag count: %d\n"
  1701. "\tcompressed sum: %d\n"
  1702. "\tuncompressed sum: %d\n",
  1703. compr_names[i],
  1704. info.compr_info[i].num_frags,
  1705. info.compr_info[i].compr_sum,
  1706. info.compr_info[i].decompr_sum);
  1707. }
  1708. return 1;
  1709. }