mtdpart.c 21 KB

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  1. /*
  2. * Simple MTD partitioning layer
  3. *
  4. * Copyright © 2000 Nicolas Pitre <nico@fluxnic.net>
  5. * Copyright © 2002 Thomas Gleixner <gleixner@linutronix.de>
  6. * Copyright © 2000-2010 David Woodhouse <dwmw2@infradead.org>
  7. *
  8. * This program is free software; you can redistribute it and/or modify
  9. * it under the terms of the GNU General Public License as published by
  10. * the Free Software Foundation; either version 2 of the License, or
  11. * (at your option) any later version.
  12. *
  13. * This program is distributed in the hope that it will be useful,
  14. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  15. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  16. * GNU General Public License for more details.
  17. *
  18. * You should have received a copy of the GNU General Public License
  19. * along with this program; if not, write to the Free Software
  20. * Foundation, Inc., 51 Franklin St, Fifth Floor, Boston, MA 02110-1301 USA
  21. *
  22. */
  23. #include <linux/module.h>
  24. #include <linux/types.h>
  25. #include <linux/kernel.h>
  26. #include <linux/slab.h>
  27. #include <linux/list.h>
  28. #include <linux/kmod.h>
  29. #include <linux/mtd/mtd.h>
  30. #include <linux/mtd/partitions.h>
  31. #include <linux/err.h>
  32. #include "mtdcore.h"
  33. /* Our partition linked list */
  34. static LIST_HEAD(mtd_partitions);
  35. static DEFINE_MUTEX(mtd_partitions_mutex);
  36. /* Our partition node structure */
  37. struct mtd_part {
  38. struct mtd_info mtd;
  39. struct mtd_info *master;
  40. uint64_t offset;
  41. struct list_head list;
  42. };
  43. /*
  44. * Given a pointer to the MTD object in the mtd_part structure, we can retrieve
  45. * the pointer to that structure with this macro.
  46. */
  47. #define PART(x) ((struct mtd_part *)(x))
  48. /*
  49. * MTD methods which simply translate the effective address and pass through
  50. * to the _real_ device.
  51. */
  52. static int part_read(struct mtd_info *mtd, loff_t from, size_t len,
  53. size_t *retlen, u_char *buf)
  54. {
  55. struct mtd_part *part = PART(mtd);
  56. struct mtd_ecc_stats stats;
  57. int res;
  58. stats = part->master->ecc_stats;
  59. if (from >= mtd->size)
  60. len = 0;
  61. else if (from + len > mtd->size)
  62. len = mtd->size - from;
  63. res = mtd_read(part->master, from + part->offset, len, retlen, buf);
  64. if (unlikely(res)) {
  65. if (mtd_is_bitflip(res))
  66. mtd->ecc_stats.corrected += part->master->ecc_stats.corrected - stats.corrected;
  67. if (mtd_is_eccerr(res))
  68. mtd->ecc_stats.failed += part->master->ecc_stats.failed - stats.failed;
  69. }
  70. return res;
  71. }
  72. static int part_point(struct mtd_info *mtd, loff_t from, size_t len,
  73. size_t *retlen, void **virt, resource_size_t *phys)
  74. {
  75. struct mtd_part *part = PART(mtd);
  76. if (from >= mtd->size)
  77. len = 0;
  78. else if (from + len > mtd->size)
  79. len = mtd->size - from;
  80. return mtd_point(part->master, from + part->offset, len, retlen,
  81. virt, phys);
  82. }
  83. static void part_unpoint(struct mtd_info *mtd, loff_t from, size_t len)
  84. {
  85. struct mtd_part *part = PART(mtd);
  86. mtd_unpoint(part->master, from + part->offset, len);
  87. }
  88. static unsigned long part_get_unmapped_area(struct mtd_info *mtd,
  89. unsigned long len,
  90. unsigned long offset,
  91. unsigned long flags)
  92. {
  93. struct mtd_part *part = PART(mtd);
  94. offset += part->offset;
  95. return mtd_get_unmapped_area(part->master, len, offset, flags);
  96. }
  97. static int part_read_oob(struct mtd_info *mtd, loff_t from,
  98. struct mtd_oob_ops *ops)
  99. {
  100. struct mtd_part *part = PART(mtd);
  101. int res;
  102. if (from >= mtd->size)
  103. return -EINVAL;
  104. if (ops->datbuf && from + ops->len > mtd->size)
  105. return -EINVAL;
  106. /*
  107. * If OOB is also requested, make sure that we do not read past the end
  108. * of this partition.
  109. */
  110. if (ops->oobbuf) {
  111. size_t len, pages;
  112. if (ops->mode == MTD_OPS_AUTO_OOB)
  113. len = mtd->oobavail;
  114. else
  115. len = mtd->oobsize;
  116. pages = mtd_div_by_ws(mtd->size, mtd);
  117. pages -= mtd_div_by_ws(from, mtd);
  118. if (ops->ooboffs + ops->ooblen > pages * len)
  119. return -EINVAL;
  120. }
  121. res = mtd_read_oob(part->master, from + part->offset, ops);
  122. if (unlikely(res)) {
  123. if (mtd_is_bitflip(res))
  124. mtd->ecc_stats.corrected++;
  125. if (mtd_is_eccerr(res))
  126. mtd->ecc_stats.failed++;
  127. }
  128. return res;
  129. }
  130. static int part_read_user_prot_reg(struct mtd_info *mtd, loff_t from,
  131. size_t len, size_t *retlen, u_char *buf)
  132. {
  133. struct mtd_part *part = PART(mtd);
  134. return mtd_read_user_prot_reg(part->master, from, len, retlen, buf);
  135. }
  136. static int part_get_user_prot_info(struct mtd_info *mtd,
  137. struct otp_info *buf, size_t len)
  138. {
  139. struct mtd_part *part = PART(mtd);
  140. return mtd_get_user_prot_info(part->master, buf, len);
  141. }
  142. static int part_read_fact_prot_reg(struct mtd_info *mtd, loff_t from,
  143. size_t len, size_t *retlen, u_char *buf)
  144. {
  145. struct mtd_part *part = PART(mtd);
  146. return mtd_read_fact_prot_reg(part->master, from, len, retlen, buf);
  147. }
  148. static int part_get_fact_prot_info(struct mtd_info *mtd, struct otp_info *buf,
  149. size_t len)
  150. {
  151. struct mtd_part *part = PART(mtd);
  152. return mtd_get_fact_prot_info(part->master, buf, len);
  153. }
  154. static int part_write(struct mtd_info *mtd, loff_t to, size_t len,
  155. size_t *retlen, const u_char *buf)
  156. {
  157. struct mtd_part *part = PART(mtd);
  158. if (!(mtd->flags & MTD_WRITEABLE))
  159. return -EROFS;
  160. if (to >= mtd->size)
  161. len = 0;
  162. else if (to + len > mtd->size)
  163. len = mtd->size - to;
  164. return mtd_write(part->master, to + part->offset, len, retlen, buf);
  165. }
  166. static int part_panic_write(struct mtd_info *mtd, loff_t to, size_t len,
  167. size_t *retlen, const u_char *buf)
  168. {
  169. struct mtd_part *part = PART(mtd);
  170. if (!(mtd->flags & MTD_WRITEABLE))
  171. return -EROFS;
  172. if (to >= mtd->size)
  173. len = 0;
  174. else if (to + len > mtd->size)
  175. len = mtd->size - to;
  176. return mtd_panic_write(part->master, to + part->offset, len, retlen,
  177. buf);
  178. }
  179. static int part_write_oob(struct mtd_info *mtd, loff_t to,
  180. struct mtd_oob_ops *ops)
  181. {
  182. struct mtd_part *part = PART(mtd);
  183. if (!(mtd->flags & MTD_WRITEABLE))
  184. return -EROFS;
  185. if (to >= mtd->size)
  186. return -EINVAL;
  187. if (ops->datbuf && to + ops->len > mtd->size)
  188. return -EINVAL;
  189. return mtd_write_oob(part->master, to + part->offset, ops);
  190. }
  191. static int part_write_user_prot_reg(struct mtd_info *mtd, loff_t from,
  192. size_t len, size_t *retlen, u_char *buf)
  193. {
  194. struct mtd_part *part = PART(mtd);
  195. return part->master->write_user_prot_reg(part->master, from,
  196. len, retlen, buf);
  197. }
  198. static int part_lock_user_prot_reg(struct mtd_info *mtd, loff_t from,
  199. size_t len)
  200. {
  201. struct mtd_part *part = PART(mtd);
  202. return part->master->lock_user_prot_reg(part->master, from, len);
  203. }
  204. static int part_writev(struct mtd_info *mtd, const struct kvec *vecs,
  205. unsigned long count, loff_t to, size_t *retlen)
  206. {
  207. struct mtd_part *part = PART(mtd);
  208. if (!(mtd->flags & MTD_WRITEABLE))
  209. return -EROFS;
  210. return part->master->writev(part->master, vecs, count,
  211. to + part->offset, retlen);
  212. }
  213. static int part_erase(struct mtd_info *mtd, struct erase_info *instr)
  214. {
  215. struct mtd_part *part = PART(mtd);
  216. int ret;
  217. if (!(mtd->flags & MTD_WRITEABLE))
  218. return -EROFS;
  219. if (instr->addr >= mtd->size)
  220. return -EINVAL;
  221. instr->addr += part->offset;
  222. ret = mtd_erase(part->master, instr);
  223. if (ret) {
  224. if (instr->fail_addr != MTD_FAIL_ADDR_UNKNOWN)
  225. instr->fail_addr -= part->offset;
  226. instr->addr -= part->offset;
  227. }
  228. return ret;
  229. }
  230. void mtd_erase_callback(struct erase_info *instr)
  231. {
  232. if (instr->mtd->erase == part_erase) {
  233. struct mtd_part *part = PART(instr->mtd);
  234. if (instr->fail_addr != MTD_FAIL_ADDR_UNKNOWN)
  235. instr->fail_addr -= part->offset;
  236. instr->addr -= part->offset;
  237. }
  238. if (instr->callback)
  239. instr->callback(instr);
  240. }
  241. EXPORT_SYMBOL_GPL(mtd_erase_callback);
  242. static int part_lock(struct mtd_info *mtd, loff_t ofs, uint64_t len)
  243. {
  244. struct mtd_part *part = PART(mtd);
  245. if ((len + ofs) > mtd->size)
  246. return -EINVAL;
  247. return part->master->lock(part->master, ofs + part->offset, len);
  248. }
  249. static int part_unlock(struct mtd_info *mtd, loff_t ofs, uint64_t len)
  250. {
  251. struct mtd_part *part = PART(mtd);
  252. if ((len + ofs) > mtd->size)
  253. return -EINVAL;
  254. return part->master->unlock(part->master, ofs + part->offset, len);
  255. }
  256. static int part_is_locked(struct mtd_info *mtd, loff_t ofs, uint64_t len)
  257. {
  258. struct mtd_part *part = PART(mtd);
  259. if ((len + ofs) > mtd->size)
  260. return -EINVAL;
  261. return part->master->is_locked(part->master, ofs + part->offset, len);
  262. }
  263. static void part_sync(struct mtd_info *mtd)
  264. {
  265. struct mtd_part *part = PART(mtd);
  266. part->master->sync(part->master);
  267. }
  268. static int part_suspend(struct mtd_info *mtd)
  269. {
  270. struct mtd_part *part = PART(mtd);
  271. return part->master->suspend(part->master);
  272. }
  273. static void part_resume(struct mtd_info *mtd)
  274. {
  275. struct mtd_part *part = PART(mtd);
  276. part->master->resume(part->master);
  277. }
  278. static int part_block_isbad(struct mtd_info *mtd, loff_t ofs)
  279. {
  280. struct mtd_part *part = PART(mtd);
  281. if (ofs >= mtd->size)
  282. return -EINVAL;
  283. ofs += part->offset;
  284. return part->master->block_isbad(part->master, ofs);
  285. }
  286. static int part_block_markbad(struct mtd_info *mtd, loff_t ofs)
  287. {
  288. struct mtd_part *part = PART(mtd);
  289. int res;
  290. if (!(mtd->flags & MTD_WRITEABLE))
  291. return -EROFS;
  292. if (ofs >= mtd->size)
  293. return -EINVAL;
  294. ofs += part->offset;
  295. res = part->master->block_markbad(part->master, ofs);
  296. if (!res)
  297. mtd->ecc_stats.badblocks++;
  298. return res;
  299. }
  300. static inline void free_partition(struct mtd_part *p)
  301. {
  302. kfree(p->mtd.name);
  303. kfree(p);
  304. }
  305. /*
  306. * This function unregisters and destroy all slave MTD objects which are
  307. * attached to the given master MTD object.
  308. */
  309. int del_mtd_partitions(struct mtd_info *master)
  310. {
  311. struct mtd_part *slave, *next;
  312. int ret, err = 0;
  313. mutex_lock(&mtd_partitions_mutex);
  314. list_for_each_entry_safe(slave, next, &mtd_partitions, list)
  315. if (slave->master == master) {
  316. ret = del_mtd_device(&slave->mtd);
  317. if (ret < 0) {
  318. err = ret;
  319. continue;
  320. }
  321. list_del(&slave->list);
  322. free_partition(slave);
  323. }
  324. mutex_unlock(&mtd_partitions_mutex);
  325. return err;
  326. }
  327. static struct mtd_part *allocate_partition(struct mtd_info *master,
  328. const struct mtd_partition *part, int partno,
  329. uint64_t cur_offset)
  330. {
  331. struct mtd_part *slave;
  332. char *name;
  333. /* allocate the partition structure */
  334. slave = kzalloc(sizeof(*slave), GFP_KERNEL);
  335. name = kstrdup(part->name, GFP_KERNEL);
  336. if (!name || !slave) {
  337. printk(KERN_ERR"memory allocation error while creating partitions for \"%s\"\n",
  338. master->name);
  339. kfree(name);
  340. kfree(slave);
  341. return ERR_PTR(-ENOMEM);
  342. }
  343. /* set up the MTD object for this partition */
  344. slave->mtd.type = master->type;
  345. slave->mtd.flags = master->flags & ~part->mask_flags;
  346. slave->mtd.size = part->size;
  347. slave->mtd.writesize = master->writesize;
  348. slave->mtd.writebufsize = master->writebufsize;
  349. slave->mtd.oobsize = master->oobsize;
  350. slave->mtd.oobavail = master->oobavail;
  351. slave->mtd.subpage_sft = master->subpage_sft;
  352. slave->mtd.name = name;
  353. slave->mtd.owner = master->owner;
  354. slave->mtd.backing_dev_info = master->backing_dev_info;
  355. /* NOTE: we don't arrange MTDs as a tree; it'd be error-prone
  356. * to have the same data be in two different partitions.
  357. */
  358. slave->mtd.dev.parent = master->dev.parent;
  359. slave->mtd.read = part_read;
  360. slave->mtd.write = part_write;
  361. if (master->panic_write)
  362. slave->mtd.panic_write = part_panic_write;
  363. if (master->point && master->unpoint) {
  364. slave->mtd.point = part_point;
  365. slave->mtd.unpoint = part_unpoint;
  366. }
  367. if (master->get_unmapped_area)
  368. slave->mtd.get_unmapped_area = part_get_unmapped_area;
  369. if (master->read_oob)
  370. slave->mtd.read_oob = part_read_oob;
  371. if (master->write_oob)
  372. slave->mtd.write_oob = part_write_oob;
  373. if (master->read_user_prot_reg)
  374. slave->mtd.read_user_prot_reg = part_read_user_prot_reg;
  375. if (master->read_fact_prot_reg)
  376. slave->mtd.read_fact_prot_reg = part_read_fact_prot_reg;
  377. if (master->write_user_prot_reg)
  378. slave->mtd.write_user_prot_reg = part_write_user_prot_reg;
  379. if (master->lock_user_prot_reg)
  380. slave->mtd.lock_user_prot_reg = part_lock_user_prot_reg;
  381. if (master->get_user_prot_info)
  382. slave->mtd.get_user_prot_info = part_get_user_prot_info;
  383. if (master->get_fact_prot_info)
  384. slave->mtd.get_fact_prot_info = part_get_fact_prot_info;
  385. if (master->sync)
  386. slave->mtd.sync = part_sync;
  387. if (!partno && !master->dev.class && master->suspend && master->resume) {
  388. slave->mtd.suspend = part_suspend;
  389. slave->mtd.resume = part_resume;
  390. }
  391. if (master->writev)
  392. slave->mtd.writev = part_writev;
  393. if (master->lock)
  394. slave->mtd.lock = part_lock;
  395. if (master->unlock)
  396. slave->mtd.unlock = part_unlock;
  397. if (master->is_locked)
  398. slave->mtd.is_locked = part_is_locked;
  399. if (master->block_isbad)
  400. slave->mtd.block_isbad = part_block_isbad;
  401. if (master->block_markbad)
  402. slave->mtd.block_markbad = part_block_markbad;
  403. slave->mtd.erase = part_erase;
  404. slave->master = master;
  405. slave->offset = part->offset;
  406. if (slave->offset == MTDPART_OFS_APPEND)
  407. slave->offset = cur_offset;
  408. if (slave->offset == MTDPART_OFS_NXTBLK) {
  409. slave->offset = cur_offset;
  410. if (mtd_mod_by_eb(cur_offset, master) != 0) {
  411. /* Round up to next erasesize */
  412. slave->offset = (mtd_div_by_eb(cur_offset, master) + 1) * master->erasesize;
  413. printk(KERN_NOTICE "Moving partition %d: "
  414. "0x%012llx -> 0x%012llx\n", partno,
  415. (unsigned long long)cur_offset, (unsigned long long)slave->offset);
  416. }
  417. }
  418. if (slave->offset == MTDPART_OFS_RETAIN) {
  419. slave->offset = cur_offset;
  420. if (master->size - slave->offset >= slave->mtd.size) {
  421. slave->mtd.size = master->size - slave->offset
  422. - slave->mtd.size;
  423. } else {
  424. printk(KERN_ERR "mtd partition \"%s\" doesn't have enough space: %#llx < %#llx, disabled\n",
  425. part->name, master->size - slave->offset,
  426. slave->mtd.size);
  427. /* register to preserve ordering */
  428. goto out_register;
  429. }
  430. }
  431. if (slave->mtd.size == MTDPART_SIZ_FULL)
  432. slave->mtd.size = master->size - slave->offset;
  433. printk(KERN_NOTICE "0x%012llx-0x%012llx : \"%s\"\n", (unsigned long long)slave->offset,
  434. (unsigned long long)(slave->offset + slave->mtd.size), slave->mtd.name);
  435. /* let's do some sanity checks */
  436. if (slave->offset >= master->size) {
  437. /* let's register it anyway to preserve ordering */
  438. slave->offset = 0;
  439. slave->mtd.size = 0;
  440. printk(KERN_ERR"mtd: partition \"%s\" is out of reach -- disabled\n",
  441. part->name);
  442. goto out_register;
  443. }
  444. if (slave->offset + slave->mtd.size > master->size) {
  445. slave->mtd.size = master->size - slave->offset;
  446. printk(KERN_WARNING"mtd: partition \"%s\" extends beyond the end of device \"%s\" -- size truncated to %#llx\n",
  447. part->name, master->name, (unsigned long long)slave->mtd.size);
  448. }
  449. if (master->numeraseregions > 1) {
  450. /* Deal with variable erase size stuff */
  451. int i, max = master->numeraseregions;
  452. u64 end = slave->offset + slave->mtd.size;
  453. struct mtd_erase_region_info *regions = master->eraseregions;
  454. /* Find the first erase regions which is part of this
  455. * partition. */
  456. for (i = 0; i < max && regions[i].offset <= slave->offset; i++)
  457. ;
  458. /* The loop searched for the region _behind_ the first one */
  459. if (i > 0)
  460. i--;
  461. /* Pick biggest erasesize */
  462. for (; i < max && regions[i].offset < end; i++) {
  463. if (slave->mtd.erasesize < regions[i].erasesize) {
  464. slave->mtd.erasesize = regions[i].erasesize;
  465. }
  466. }
  467. BUG_ON(slave->mtd.erasesize == 0);
  468. } else {
  469. /* Single erase size */
  470. slave->mtd.erasesize = master->erasesize;
  471. }
  472. if ((slave->mtd.flags & MTD_WRITEABLE) &&
  473. mtd_mod_by_eb(slave->offset, &slave->mtd)) {
  474. /* Doesn't start on a boundary of major erase size */
  475. /* FIXME: Let it be writable if it is on a boundary of
  476. * _minor_ erase size though */
  477. slave->mtd.flags &= ~MTD_WRITEABLE;
  478. printk(KERN_WARNING"mtd: partition \"%s\" doesn't start on an erase block boundary -- force read-only\n",
  479. part->name);
  480. }
  481. if ((slave->mtd.flags & MTD_WRITEABLE) &&
  482. mtd_mod_by_eb(slave->mtd.size, &slave->mtd)) {
  483. slave->mtd.flags &= ~MTD_WRITEABLE;
  484. printk(KERN_WARNING"mtd: partition \"%s\" doesn't end on an erase block -- force read-only\n",
  485. part->name);
  486. }
  487. slave->mtd.ecclayout = master->ecclayout;
  488. if (master->block_isbad) {
  489. uint64_t offs = 0;
  490. while (offs < slave->mtd.size) {
  491. if (master->block_isbad(master,
  492. offs + slave->offset))
  493. slave->mtd.ecc_stats.badblocks++;
  494. offs += slave->mtd.erasesize;
  495. }
  496. }
  497. out_register:
  498. return slave;
  499. }
  500. int mtd_add_partition(struct mtd_info *master, char *name,
  501. long long offset, long long length)
  502. {
  503. struct mtd_partition part;
  504. struct mtd_part *p, *new;
  505. uint64_t start, end;
  506. int ret = 0;
  507. /* the direct offset is expected */
  508. if (offset == MTDPART_OFS_APPEND ||
  509. offset == MTDPART_OFS_NXTBLK)
  510. return -EINVAL;
  511. if (length == MTDPART_SIZ_FULL)
  512. length = master->size - offset;
  513. if (length <= 0)
  514. return -EINVAL;
  515. part.name = name;
  516. part.size = length;
  517. part.offset = offset;
  518. part.mask_flags = 0;
  519. part.ecclayout = NULL;
  520. new = allocate_partition(master, &part, -1, offset);
  521. if (IS_ERR(new))
  522. return PTR_ERR(new);
  523. start = offset;
  524. end = offset + length;
  525. mutex_lock(&mtd_partitions_mutex);
  526. list_for_each_entry(p, &mtd_partitions, list)
  527. if (p->master == master) {
  528. if ((start >= p->offset) &&
  529. (start < (p->offset + p->mtd.size)))
  530. goto err_inv;
  531. if ((end >= p->offset) &&
  532. (end < (p->offset + p->mtd.size)))
  533. goto err_inv;
  534. }
  535. list_add(&new->list, &mtd_partitions);
  536. mutex_unlock(&mtd_partitions_mutex);
  537. add_mtd_device(&new->mtd);
  538. return ret;
  539. err_inv:
  540. mutex_unlock(&mtd_partitions_mutex);
  541. free_partition(new);
  542. return -EINVAL;
  543. }
  544. EXPORT_SYMBOL_GPL(mtd_add_partition);
  545. int mtd_del_partition(struct mtd_info *master, int partno)
  546. {
  547. struct mtd_part *slave, *next;
  548. int ret = -EINVAL;
  549. mutex_lock(&mtd_partitions_mutex);
  550. list_for_each_entry_safe(slave, next, &mtd_partitions, list)
  551. if ((slave->master == master) &&
  552. (slave->mtd.index == partno)) {
  553. ret = del_mtd_device(&slave->mtd);
  554. if (ret < 0)
  555. break;
  556. list_del(&slave->list);
  557. free_partition(slave);
  558. break;
  559. }
  560. mutex_unlock(&mtd_partitions_mutex);
  561. return ret;
  562. }
  563. EXPORT_SYMBOL_GPL(mtd_del_partition);
  564. /*
  565. * This function, given a master MTD object and a partition table, creates
  566. * and registers slave MTD objects which are bound to the master according to
  567. * the partition definitions.
  568. *
  569. * We don't register the master, or expect the caller to have done so,
  570. * for reasons of data integrity.
  571. */
  572. int add_mtd_partitions(struct mtd_info *master,
  573. const struct mtd_partition *parts,
  574. int nbparts)
  575. {
  576. struct mtd_part *slave;
  577. uint64_t cur_offset = 0;
  578. int i;
  579. printk(KERN_NOTICE "Creating %d MTD partitions on \"%s\":\n", nbparts, master->name);
  580. for (i = 0; i < nbparts; i++) {
  581. slave = allocate_partition(master, parts + i, i, cur_offset);
  582. if (IS_ERR(slave))
  583. return PTR_ERR(slave);
  584. mutex_lock(&mtd_partitions_mutex);
  585. list_add(&slave->list, &mtd_partitions);
  586. mutex_unlock(&mtd_partitions_mutex);
  587. add_mtd_device(&slave->mtd);
  588. cur_offset = slave->offset + slave->mtd.size;
  589. }
  590. return 0;
  591. }
  592. static DEFINE_SPINLOCK(part_parser_lock);
  593. static LIST_HEAD(part_parsers);
  594. static struct mtd_part_parser *get_partition_parser(const char *name)
  595. {
  596. struct mtd_part_parser *p, *ret = NULL;
  597. spin_lock(&part_parser_lock);
  598. list_for_each_entry(p, &part_parsers, list)
  599. if (!strcmp(p->name, name) && try_module_get(p->owner)) {
  600. ret = p;
  601. break;
  602. }
  603. spin_unlock(&part_parser_lock);
  604. return ret;
  605. }
  606. #define put_partition_parser(p) do { module_put((p)->owner); } while (0)
  607. int register_mtd_parser(struct mtd_part_parser *p)
  608. {
  609. spin_lock(&part_parser_lock);
  610. list_add(&p->list, &part_parsers);
  611. spin_unlock(&part_parser_lock);
  612. return 0;
  613. }
  614. EXPORT_SYMBOL_GPL(register_mtd_parser);
  615. int deregister_mtd_parser(struct mtd_part_parser *p)
  616. {
  617. spin_lock(&part_parser_lock);
  618. list_del(&p->list);
  619. spin_unlock(&part_parser_lock);
  620. return 0;
  621. }
  622. EXPORT_SYMBOL_GPL(deregister_mtd_parser);
  623. /*
  624. * Do not forget to update 'parse_mtd_partitions()' kerneldoc comment if you
  625. * are changing this array!
  626. */
  627. static const char *default_mtd_part_types[] = {
  628. "cmdlinepart",
  629. "ofpart",
  630. NULL
  631. };
  632. /**
  633. * parse_mtd_partitions - parse MTD partitions
  634. * @master: the master partition (describes whole MTD device)
  635. * @types: names of partition parsers to try or %NULL
  636. * @pparts: array of partitions found is returned here
  637. * @data: MTD partition parser-specific data
  638. *
  639. * This function tries to find partition on MTD device @master. It uses MTD
  640. * partition parsers, specified in @types. However, if @types is %NULL, then
  641. * the default list of parsers is used. The default list contains only the
  642. * "cmdlinepart" and "ofpart" parsers ATM.
  643. *
  644. * This function may return:
  645. * o a negative error code in case of failure
  646. * o zero if no partitions were found
  647. * o a positive number of found partitions, in which case on exit @pparts will
  648. * point to an array containing this number of &struct mtd_info objects.
  649. */
  650. int parse_mtd_partitions(struct mtd_info *master, const char **types,
  651. struct mtd_partition **pparts,
  652. struct mtd_part_parser_data *data)
  653. {
  654. struct mtd_part_parser *parser;
  655. int ret = 0;
  656. if (!types)
  657. types = default_mtd_part_types;
  658. for ( ; ret <= 0 && *types; types++) {
  659. parser = get_partition_parser(*types);
  660. if (!parser && !request_module("%s", *types))
  661. parser = get_partition_parser(*types);
  662. if (!parser)
  663. continue;
  664. ret = (*parser->parse_fn)(master, pparts, data);
  665. if (ret > 0) {
  666. printk(KERN_NOTICE "%d %s partitions found on MTD device %s\n",
  667. ret, parser->name, master->name);
  668. }
  669. put_partition_parser(parser);
  670. }
  671. return ret;
  672. }
  673. int mtd_is_partition(struct mtd_info *mtd)
  674. {
  675. struct mtd_part *part;
  676. int ispart = 0;
  677. mutex_lock(&mtd_partitions_mutex);
  678. list_for_each_entry(part, &mtd_partitions, list)
  679. if (&part->mtd == mtd) {
  680. ispart = 1;
  681. break;
  682. }
  683. mutex_unlock(&mtd_partitions_mutex);
  684. return ispart;
  685. }
  686. EXPORT_SYMBOL_GPL(mtd_is_partition);