dfs_elm.c 24 KB

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  1. /*
  2. * Copyright (c) 2006-2021, RT-Thread Development Team
  3. *
  4. * SPDX-License-Identifier: Apache-2.0
  5. *
  6. * Change Logs:
  7. * Date Author Notes
  8. * 2008-02-22 QiuYi The first version.
  9. * 2011-10-08 Bernard fixed the block size in statfs.
  10. * 2011-11-23 Bernard fixed the rename issue.
  11. * 2012-07-26 aozima implement ff_memalloc and ff_memfree.
  12. * 2012-12-19 Bernard fixed the O_APPEND and lseek issue.
  13. * 2013-03-01 aozima fixed the stat(st_mtime) issue.
  14. * 2014-01-26 Bernard Check the sector size before mount.
  15. * 2017-02-13 Hichard Update Fatfs version to 0.12b, support exFAT.
  16. * 2017-04-11 Bernard fix the st_blksize issue.
  17. * 2017-05-26 Urey fix f_mount error when mount more fats
  18. */
  19. #include <rtthread.h>
  20. #include "ffconf.h"
  21. #include "ff.h"
  22. #include <string.h>
  23. #include <sys/time.h>
  24. /* ELM FatFs provide a DIR struct */
  25. #define HAVE_DIR_STRUCTURE
  26. #include <dfs_fs.h>
  27. #include <dfs_file.h>
  28. #undef SS
  29. #if FF_MAX_SS == FF_MIN_SS
  30. #define SS(fs) ((UINT)FF_MAX_SS) /* Fixed sector size */
  31. #else
  32. #define SS(fs) ((fs)->ssize) /* Variable sector size */
  33. #endif
  34. static rt_device_t disk[FF_VOLUMES] = {0};
  35. static int elm_result_to_dfs(FRESULT result)
  36. {
  37. int status = RT_EOK;
  38. switch (result)
  39. {
  40. case FR_OK:
  41. break;
  42. case FR_NO_FILE:
  43. case FR_NO_PATH:
  44. case FR_NO_FILESYSTEM:
  45. status = -ENOENT;
  46. break;
  47. case FR_INVALID_NAME:
  48. status = -EINVAL;
  49. break;
  50. case FR_EXIST:
  51. case FR_INVALID_OBJECT:
  52. status = -EEXIST;
  53. break;
  54. case FR_DISK_ERR:
  55. case FR_NOT_READY:
  56. case FR_INT_ERR:
  57. status = -EIO;
  58. break;
  59. case FR_WRITE_PROTECTED:
  60. case FR_DENIED:
  61. status = -EROFS;
  62. break;
  63. case FR_MKFS_ABORTED:
  64. status = -EINVAL;
  65. break;
  66. default:
  67. status = -1;
  68. break;
  69. }
  70. return status;
  71. }
  72. /* results:
  73. * -1, no space to install fatfs driver
  74. * >= 0, there is an space to install fatfs driver
  75. */
  76. static int get_disk(rt_device_t id)
  77. {
  78. int index;
  79. for (index = 0; index < FF_VOLUMES; index ++)
  80. {
  81. if (disk[index] == id)
  82. return index;
  83. }
  84. return -1;
  85. }
  86. int dfs_elm_mount(struct dfs_filesystem *fs, unsigned long rwflag, const void *data)
  87. {
  88. FATFS *fat;
  89. FRESULT result;
  90. int index;
  91. struct rt_device_blk_geometry geometry;
  92. char logic_nbr[3] = {'0',':', 0};
  93. /* get an empty position */
  94. index = get_disk(RT_NULL);
  95. if (index == -1)
  96. return -ENOENT;
  97. logic_nbr[0] = '0' + index;
  98. /* save device */
  99. disk[index] = fs->dev_id;
  100. /* check sector size */
  101. if (rt_device_control(fs->dev_id, RT_DEVICE_CTRL_BLK_GETGEOME, &geometry) == RT_EOK)
  102. {
  103. if (geometry.bytes_per_sector > FF_MAX_SS)
  104. {
  105. rt_kprintf("The sector size of device is greater than the sector size of FAT.\n");
  106. return -EINVAL;
  107. }
  108. }
  109. fat = (FATFS *)rt_malloc(sizeof(FATFS));
  110. if (fat == RT_NULL)
  111. {
  112. disk[index] = RT_NULL;
  113. return -ENOMEM;
  114. }
  115. /* mount fatfs, always 0 logic driver */
  116. result = f_mount(fat, (const TCHAR *)logic_nbr, 1);
  117. if (result == FR_OK)
  118. {
  119. char drive[8];
  120. DIR *dir;
  121. rt_snprintf(drive, sizeof(drive), "%d:/", index);
  122. dir = (DIR *)rt_malloc(sizeof(DIR));
  123. if (dir == RT_NULL)
  124. {
  125. f_mount(RT_NULL, (const TCHAR *)logic_nbr, 1);
  126. disk[index] = RT_NULL;
  127. rt_free(fat);
  128. return -ENOMEM;
  129. }
  130. /* open the root directory to test whether the fatfs is valid */
  131. result = f_opendir(dir, drive);
  132. if (result != FR_OK)
  133. goto __err;
  134. /* mount succeed! */
  135. fs->data = fat;
  136. rt_free(dir);
  137. return 0;
  138. }
  139. __err:
  140. f_mount(RT_NULL, (const TCHAR *)logic_nbr, 1);
  141. disk[index] = RT_NULL;
  142. rt_free(fat);
  143. return elm_result_to_dfs(result);
  144. }
  145. int dfs_elm_unmount(struct dfs_filesystem *fs)
  146. {
  147. FATFS *fat;
  148. FRESULT result;
  149. int index;
  150. char logic_nbr[3] = {'0',':', 0};
  151. fat = (FATFS *)fs->data;
  152. RT_ASSERT(fat != RT_NULL);
  153. /* find the device index and then umount it */
  154. index = get_disk(fs->dev_id);
  155. if (index == -1) /* not found */
  156. return -ENOENT;
  157. logic_nbr[0] = '0' + index;
  158. result = f_mount(RT_NULL, logic_nbr, (BYTE)0);
  159. if (result != FR_OK)
  160. return elm_result_to_dfs(result);
  161. fs->data = RT_NULL;
  162. disk[index] = RT_NULL;
  163. rt_free(fat);
  164. return RT_EOK;
  165. }
  166. int dfs_elm_mkfs(rt_device_t dev_id, const char *fs_name)
  167. {
  168. #define FSM_STATUS_INIT 0
  169. #define FSM_STATUS_USE_TEMP_DRIVER 1
  170. FATFS *fat = RT_NULL;
  171. BYTE *work;
  172. int flag;
  173. FRESULT result;
  174. int index;
  175. char logic_nbr[3] = {'0',':', 0};
  176. MKFS_PARM opt;
  177. work = rt_malloc(FF_MAX_SS);
  178. if(RT_NULL == work) {
  179. return -ENOMEM;
  180. }
  181. if (dev_id == RT_NULL)
  182. {
  183. rt_free(work); /* release memory */
  184. return -EINVAL;
  185. }
  186. /* if the device is already mounted, then just do mkfs to the drv,
  187. * while if it is not mounted yet, then find an empty drive to do mkfs
  188. */
  189. flag = FSM_STATUS_INIT;
  190. index = get_disk(dev_id);
  191. if (index == -1)
  192. {
  193. /* not found the device id */
  194. index = get_disk(RT_NULL);
  195. if (index == -1)
  196. {
  197. /* no space to store an temp driver */
  198. rt_kprintf("sorry, there is no space to do mkfs! \n");
  199. rt_free(work); /* release memory */
  200. return -ENOSPC;
  201. }
  202. else
  203. {
  204. fat = (FATFS *)rt_malloc(sizeof(FATFS));
  205. if (fat == RT_NULL)
  206. {
  207. rt_free(work); /* release memory */
  208. return -ENOMEM;
  209. }
  210. flag = FSM_STATUS_USE_TEMP_DRIVER;
  211. disk[index] = dev_id;
  212. /* try to open device */
  213. rt_device_open(dev_id, RT_DEVICE_OFLAG_RDWR);
  214. /* just fill the FatFs[vol] in ff.c, or mkfs will failded!
  215. * consider this condition: you just umount the elm fat,
  216. * then the space in FatFs[index] is released, and now do mkfs
  217. * on the disk, you will get a failure. so we need f_mount here,
  218. * just fill the FatFS[index] in elm fatfs to make mkfs work.
  219. */
  220. logic_nbr[0] = '0' + index;
  221. f_mount(fat, logic_nbr, (BYTE)index);
  222. }
  223. }
  224. else
  225. {
  226. logic_nbr[0] = '0' + index;
  227. }
  228. /* [IN] Logical drive number */
  229. /* [IN] Format options */
  230. /* [-] Working buffer */
  231. /* [IN] Size of working buffer */
  232. rt_memset(&opt, 0, sizeof(opt));
  233. opt.fmt = FM_ANY|FM_SFD;
  234. result = f_mkfs(logic_nbr, &opt, work, FF_MAX_SS);
  235. rt_free(work); work = RT_NULL;
  236. /* check flag status, we need clear the temp driver stored in disk[] */
  237. if (flag == FSM_STATUS_USE_TEMP_DRIVER)
  238. {
  239. rt_free(fat);
  240. f_mount(RT_NULL, logic_nbr, (BYTE)index);
  241. disk[index] = RT_NULL;
  242. /* close device */
  243. rt_device_close(dev_id);
  244. }
  245. if (result != FR_OK)
  246. {
  247. rt_kprintf("format error, result=%d\n", result);
  248. return elm_result_to_dfs(result);
  249. }
  250. return RT_EOK;
  251. }
  252. int dfs_elm_statfs(struct dfs_filesystem *fs, struct statfs *buf)
  253. {
  254. FATFS *f;
  255. FRESULT res;
  256. char driver[4];
  257. DWORD fre_clust, fre_sect, tot_sect;
  258. RT_ASSERT(fs != RT_NULL);
  259. RT_ASSERT(buf != RT_NULL);
  260. f = (FATFS *)fs->data;
  261. rt_snprintf(driver, sizeof(driver), "%d:", f->pdrv);
  262. res = f_getfree(driver, &fre_clust, &f);
  263. if (res)
  264. return elm_result_to_dfs(res);
  265. /* Get total sectors and free sectors */
  266. tot_sect = (f->n_fatent - 2) * f->csize;
  267. fre_sect = fre_clust * f->csize;
  268. buf->f_bfree = fre_sect;
  269. buf->f_blocks = tot_sect;
  270. #if FF_MAX_SS != 512
  271. buf->f_bsize = f->ssize;
  272. #else
  273. buf->f_bsize = 512;
  274. #endif
  275. return 0;
  276. }
  277. int dfs_elm_open(struct dfs_file *file)
  278. {
  279. FIL *fd;
  280. BYTE mode;
  281. FRESULT result;
  282. char *drivers_fn;
  283. #if (FF_VOLUMES > 1)
  284. int vol;
  285. struct dfs_filesystem *fs = file->vnode->fs;
  286. extern int elm_get_vol(FATFS * fat);
  287. RT_ASSERT(file->vnode->ref_count > 0);
  288. if (file->vnode->ref_count > 1)
  289. {
  290. if (file->vnode->type == FT_DIRECTORY
  291. && !(file->flags & O_DIRECTORY))
  292. {
  293. return -ENOENT;
  294. }
  295. file->pos = 0;
  296. }
  297. if (fs == NULL)
  298. return -ENOENT;
  299. /* add path for ELM FatFS driver support */
  300. vol = elm_get_vol((FATFS *)fs->data);
  301. if (vol < 0)
  302. return -ENOENT;
  303. drivers_fn = (char *)rt_malloc(256);
  304. if (drivers_fn == RT_NULL)
  305. return -ENOMEM;
  306. rt_snprintf(drivers_fn, 256, "%d:%s", vol, file->vnode->path);
  307. #else
  308. drivers_fn = file->vnode->path;
  309. #endif
  310. if (file->flags & O_DIRECTORY)
  311. {
  312. DIR *dir;
  313. if (file->flags & O_CREAT)
  314. {
  315. result = f_mkdir(drivers_fn);
  316. if (result != FR_OK)
  317. {
  318. #if FF_VOLUMES > 1
  319. rt_free(drivers_fn);
  320. #endif
  321. return elm_result_to_dfs(result);
  322. }
  323. }
  324. /* open directory */
  325. dir = (DIR *)rt_malloc(sizeof(DIR));
  326. if (dir == RT_NULL)
  327. {
  328. #if FF_VOLUMES > 1
  329. rt_free(drivers_fn);
  330. #endif
  331. return -ENOMEM;
  332. }
  333. result = f_opendir(dir, drivers_fn);
  334. #if FF_VOLUMES > 1
  335. rt_free(drivers_fn);
  336. #endif
  337. if (result != FR_OK)
  338. {
  339. rt_free(dir);
  340. return elm_result_to_dfs(result);
  341. }
  342. file->data = dir;
  343. return RT_EOK;
  344. }
  345. else
  346. {
  347. mode = FA_READ;
  348. if (file->flags & O_WRONLY)
  349. mode |= FA_WRITE;
  350. if ((file->flags & O_ACCMODE) & O_RDWR)
  351. mode |= FA_WRITE;
  352. /* Opens the file, if it is existing. If not, a new file is created. */
  353. if (file->flags & O_CREAT)
  354. mode |= FA_OPEN_ALWAYS;
  355. /* Creates a new file. If the file is existing, it is truncated and overwritten. */
  356. if (file->flags & O_TRUNC)
  357. mode |= FA_CREATE_ALWAYS;
  358. /* Creates a new file. The function fails if the file is already existing. */
  359. if (file->flags & O_EXCL)
  360. mode |= FA_CREATE_NEW;
  361. /* allocate a fd */
  362. fd = (FIL *)rt_malloc(sizeof(FIL));
  363. if (fd == RT_NULL)
  364. {
  365. #if FF_VOLUMES > 1
  366. rt_free(drivers_fn);
  367. #endif
  368. return -ENOMEM;
  369. }
  370. result = f_open(fd, drivers_fn, mode);
  371. #if FF_VOLUMES > 1
  372. rt_free(drivers_fn);
  373. #endif
  374. if (result == FR_OK)
  375. {
  376. file->pos = fd->fptr;
  377. file->vnode->size = f_size(fd);
  378. file->vnode->type = FT_REGULAR;
  379. file->data = fd;
  380. if (file->flags & O_APPEND)
  381. {
  382. /* seek to the end of file */
  383. f_lseek(fd, f_size(fd));
  384. file->pos = fd->fptr;
  385. }
  386. }
  387. else
  388. {
  389. /* open failed, return */
  390. rt_free(fd);
  391. return elm_result_to_dfs(result);
  392. }
  393. }
  394. return RT_EOK;
  395. }
  396. int dfs_elm_close(struct dfs_file *file)
  397. {
  398. FRESULT result;
  399. RT_ASSERT(file->vnode->ref_count > 0);
  400. if (file->vnode->ref_count > 1)
  401. {
  402. return 0;
  403. }
  404. result = FR_OK;
  405. if (file->vnode->type == FT_DIRECTORY)
  406. {
  407. DIR *dir = RT_NULL;
  408. dir = (DIR *)(file->data);
  409. RT_ASSERT(dir != RT_NULL);
  410. /* release memory */
  411. rt_free(dir);
  412. }
  413. else if (file->vnode->type == FT_REGULAR)
  414. {
  415. FIL *fd = RT_NULL;
  416. fd = (FIL *)(file->data);
  417. RT_ASSERT(fd != RT_NULL);
  418. result = f_close(fd);
  419. /* release memory */
  420. rt_free(fd);
  421. }
  422. return elm_result_to_dfs(result);
  423. }
  424. int dfs_elm_ioctl(struct dfs_file *file, int cmd, void *args)
  425. {
  426. switch (cmd)
  427. {
  428. case RT_FIOFTRUNCATE:
  429. {
  430. FIL *fd;
  431. FSIZE_t fptr, length;
  432. FRESULT result = FR_OK;
  433. fd = (FIL *)(file->data);
  434. RT_ASSERT(fd != RT_NULL);
  435. /* save file read/write point */
  436. fptr = fd->fptr;
  437. length = *(off_t*)args;
  438. if (length <= fd->obj.objsize)
  439. {
  440. fd->fptr = length;
  441. result = f_truncate(fd);
  442. }
  443. else
  444. {
  445. result = f_lseek(fd, length);
  446. }
  447. /* restore file read/write point */
  448. fd->fptr = fptr;
  449. return elm_result_to_dfs(result);
  450. }
  451. case F_GETLK:
  452. return 0;
  453. case F_SETLK:
  454. return 0;
  455. }
  456. return -ENOSYS;
  457. }
  458. ssize_t dfs_elm_read(struct dfs_file *file, void *buf, size_t len)
  459. {
  460. FIL *fd;
  461. FRESULT result;
  462. UINT byte_read;
  463. if (file->vnode->type == FT_DIRECTORY)
  464. {
  465. return -EISDIR;
  466. }
  467. fd = (FIL *)(file->data);
  468. RT_ASSERT(fd != RT_NULL);
  469. result = f_read(fd, buf, len, &byte_read);
  470. /* update position */
  471. file->pos = fd->fptr;
  472. if (result == FR_OK)
  473. return byte_read;
  474. return elm_result_to_dfs(result);
  475. }
  476. ssize_t dfs_elm_write(struct dfs_file *file, const void *buf, size_t len)
  477. {
  478. FIL *fd;
  479. FRESULT result;
  480. UINT byte_write;
  481. if (file->vnode->type == FT_DIRECTORY)
  482. {
  483. return -EISDIR;
  484. }
  485. fd = (FIL *)(file->data);
  486. RT_ASSERT(fd != RT_NULL);
  487. result = f_write(fd, buf, len, &byte_write);
  488. /* update position and file size */
  489. file->pos = fd->fptr;
  490. file->vnode->size = f_size(fd);
  491. if (result == FR_OK)
  492. return byte_write;
  493. return elm_result_to_dfs(result);
  494. }
  495. int dfs_elm_flush(struct dfs_file *file)
  496. {
  497. FIL *fd;
  498. FRESULT result;
  499. fd = (FIL *)(file->data);
  500. RT_ASSERT(fd != RT_NULL);
  501. result = f_sync(fd);
  502. return elm_result_to_dfs(result);
  503. }
  504. off_t dfs_elm_lseek(struct dfs_file *file, off_t offset)
  505. {
  506. FRESULT result = FR_OK;
  507. if (file->vnode->type == FT_REGULAR)
  508. {
  509. FIL *fd;
  510. /* regular file type */
  511. fd = (FIL *)(file->data);
  512. RT_ASSERT(fd != RT_NULL);
  513. result = f_lseek(fd, offset);
  514. if (result == FR_OK)
  515. {
  516. /* return current position */
  517. file->pos = fd->fptr;
  518. return fd->fptr;
  519. }
  520. }
  521. else if (file->vnode->type == FT_DIRECTORY)
  522. {
  523. /* which is a directory */
  524. DIR *dir = RT_NULL;
  525. dir = (DIR *)(file->data);
  526. RT_ASSERT(dir != RT_NULL);
  527. result = f_seekdir(dir, offset / sizeof(struct dirent));
  528. if (result == FR_OK)
  529. {
  530. /* update file position */
  531. file->pos = offset;
  532. return file->pos;
  533. }
  534. }
  535. return elm_result_to_dfs(result);
  536. }
  537. int dfs_elm_getdents(struct dfs_file *file, struct dirent *dirp, uint32_t count)
  538. {
  539. DIR *dir;
  540. FILINFO fno;
  541. FRESULT result;
  542. rt_uint32_t index;
  543. struct dirent *d;
  544. dir = (DIR *)(file->data);
  545. RT_ASSERT(dir != RT_NULL);
  546. /* make integer count */
  547. count = (count / sizeof(struct dirent)) * sizeof(struct dirent);
  548. if (count == 0)
  549. return -EINVAL;
  550. index = 0;
  551. while (1)
  552. {
  553. char *fn;
  554. d = dirp + index;
  555. result = f_readdir(dir, &fno);
  556. if (result != FR_OK || fno.fname[0] == 0)
  557. break;
  558. #if FF_USE_LFN
  559. fn = *fno.fname ? fno.fname : fno.altname;
  560. #else
  561. fn = fno.fname;
  562. #endif
  563. d->d_type = DT_UNKNOWN;
  564. if (fno.fattrib & AM_DIR)
  565. d->d_type = DT_DIR;
  566. else
  567. d->d_type = DT_REG;
  568. d->d_namlen = (rt_uint8_t)rt_strlen(fn);
  569. d->d_reclen = (rt_uint16_t)sizeof(struct dirent);
  570. rt_strncpy(d->d_name, fn, DIRENT_NAME_MAX);
  571. index ++;
  572. if (index * sizeof(struct dirent) >= count)
  573. break;
  574. }
  575. if (index == 0)
  576. return elm_result_to_dfs(result);
  577. file->pos += index * sizeof(struct dirent);
  578. return index * sizeof(struct dirent);
  579. }
  580. int dfs_elm_unlink(struct dfs_filesystem *fs, const char *path)
  581. {
  582. FRESULT result;
  583. #if FF_VOLUMES > 1
  584. int vol;
  585. char *drivers_fn;
  586. extern int elm_get_vol(FATFS * fat);
  587. /* add path for ELM FatFS driver support */
  588. vol = elm_get_vol((FATFS *)fs->data);
  589. if (vol < 0)
  590. return -ENOENT;
  591. drivers_fn = (char *)rt_malloc(256);
  592. if (drivers_fn == RT_NULL)
  593. return -ENOMEM;
  594. rt_snprintf(drivers_fn, 256, "%d:%s", vol, path);
  595. #else
  596. const char *drivers_fn;
  597. drivers_fn = path;
  598. #endif
  599. result = f_unlink(drivers_fn);
  600. #if FF_VOLUMES > 1
  601. rt_free(drivers_fn);
  602. #endif
  603. return elm_result_to_dfs(result);
  604. }
  605. int dfs_elm_rename(struct dfs_filesystem *fs, const char *oldpath, const char *newpath)
  606. {
  607. FRESULT result;
  608. #if FF_VOLUMES > 1
  609. char *drivers_oldfn;
  610. const char *drivers_newfn;
  611. int vol;
  612. extern int elm_get_vol(FATFS * fat);
  613. /* add path for ELM FatFS driver support */
  614. vol = elm_get_vol((FATFS *)fs->data);
  615. if (vol < 0)
  616. return -ENOENT;
  617. drivers_oldfn = (char *)rt_malloc(256);
  618. if (drivers_oldfn == RT_NULL)
  619. return -ENOMEM;
  620. drivers_newfn = newpath;
  621. rt_snprintf(drivers_oldfn, 256, "%d:%s", vol, oldpath);
  622. #else
  623. const char *drivers_oldfn, *drivers_newfn;
  624. drivers_oldfn = oldpath;
  625. drivers_newfn = newpath;
  626. #endif
  627. result = f_rename(drivers_oldfn, drivers_newfn);
  628. #if FF_VOLUMES > 1
  629. rt_free(drivers_oldfn);
  630. #endif
  631. return elm_result_to_dfs(result);
  632. }
  633. int dfs_elm_stat(struct dfs_filesystem *fs, const char *path, struct stat *st)
  634. {
  635. FATFS *f;
  636. FILINFO file_info;
  637. FRESULT result;
  638. f = (FATFS *)fs->data;
  639. #if FF_VOLUMES > 1
  640. int vol;
  641. char *drivers_fn;
  642. extern int elm_get_vol(FATFS * fat);
  643. /* add path for ELM FatFS driver support */
  644. vol = elm_get_vol((FATFS *)fs->data);
  645. if (vol < 0)
  646. return -ENOENT;
  647. drivers_fn = (char *)rt_malloc(256);
  648. if (drivers_fn == RT_NULL)
  649. return -ENOMEM;
  650. rt_snprintf(drivers_fn, 256, "%d:%s", vol, path);
  651. #else
  652. const char *drivers_fn;
  653. drivers_fn = path;
  654. #endif
  655. result = f_stat(drivers_fn, &file_info);
  656. #if FF_VOLUMES > 1
  657. rt_free(drivers_fn);
  658. #endif
  659. if (result == FR_OK)
  660. {
  661. /* convert to dfs stat structure */
  662. st->st_dev = 0;
  663. st->st_mode = S_IFREG | S_IRUSR | S_IRGRP | S_IROTH |
  664. S_IWUSR | S_IWGRP | S_IWOTH;
  665. if (file_info.fattrib & AM_DIR)
  666. {
  667. st->st_mode &= ~S_IFREG;
  668. st->st_mode |= S_IFDIR | S_IXUSR | S_IXGRP | S_IXOTH;
  669. }
  670. if (file_info.fattrib & AM_RDO)
  671. st->st_mode &= ~(S_IWUSR | S_IWGRP | S_IWOTH);
  672. st->st_size = file_info.fsize;
  673. st->st_blksize = f->csize * SS(f);
  674. if (file_info.fattrib & AM_ARC)
  675. {
  676. st->st_blocks = file_info.fsize ? ((file_info.fsize - 1) / SS(f) / f->csize + 1) : 0;
  677. st->st_blocks *= (st->st_blksize / 512); // man say st_blocks is number of 512B blocks allocated
  678. }
  679. else
  680. {
  681. st->st_blocks = f->csize;
  682. }
  683. /* get st_mtime. */
  684. {
  685. struct tm tm_file;
  686. int year, mon, day, hour, min, sec;
  687. WORD tmp;
  688. tmp = file_info.fdate;
  689. day = tmp & 0x1F; /* bit[4:0] Day(1..31) */
  690. tmp >>= 5;
  691. mon = tmp & 0x0F; /* bit[8:5] Month(1..12) */
  692. tmp >>= 4;
  693. year = (tmp & 0x7F) + 1980; /* bit[15:9] Year origin from 1980(0..127) */
  694. tmp = file_info.ftime;
  695. sec = (tmp & 0x1F) * 2; /* bit[4:0] Second/2(0..29) */
  696. tmp >>= 5;
  697. min = tmp & 0x3F; /* bit[10:5] Minute(0..59) */
  698. tmp >>= 6;
  699. hour = tmp & 0x1F; /* bit[15:11] Hour(0..23) */
  700. rt_memset(&tm_file, 0, sizeof(tm_file));
  701. tm_file.tm_year = year - 1900; /* Years since 1900 */
  702. tm_file.tm_mon = mon - 1; /* Months *since* january: 0-11 */
  703. tm_file.tm_mday = day; /* Day of the month: 1-31 */
  704. tm_file.tm_hour = hour; /* Hours since midnight: 0-23 */
  705. tm_file.tm_min = min; /* Minutes: 0-59 */
  706. tm_file.tm_sec = sec; /* Seconds: 0-59 */
  707. st->st_mtime = timegm(&tm_file);
  708. } /* get st_mtime. */
  709. }
  710. return elm_result_to_dfs(result);
  711. }
  712. static const struct dfs_file_ops dfs_elm_fops =
  713. {
  714. dfs_elm_open,
  715. dfs_elm_close,
  716. dfs_elm_ioctl,
  717. dfs_elm_read,
  718. dfs_elm_write,
  719. dfs_elm_flush,
  720. dfs_elm_lseek,
  721. dfs_elm_getdents,
  722. RT_NULL, /* poll interface */
  723. };
  724. static const struct dfs_filesystem_ops dfs_elm =
  725. {
  726. "elm",
  727. DFS_FS_FLAG_DEFAULT,
  728. &dfs_elm_fops,
  729. dfs_elm_mount,
  730. dfs_elm_unmount,
  731. dfs_elm_mkfs,
  732. dfs_elm_statfs,
  733. dfs_elm_unlink,
  734. dfs_elm_stat,
  735. dfs_elm_rename,
  736. };
  737. int elm_init(void)
  738. {
  739. /* register fatfs file system */
  740. dfs_register(&dfs_elm);
  741. return 0;
  742. }
  743. INIT_COMPONENT_EXPORT(elm_init);
  744. /*
  745. * RT-Thread Device Interface for ELM FatFs
  746. */
  747. #include "diskio.h"
  748. /* Initialize a Drive */
  749. DSTATUS disk_initialize(BYTE drv)
  750. {
  751. return 0;
  752. }
  753. /* Return Disk Status */
  754. DSTATUS disk_status(BYTE drv)
  755. {
  756. return 0;
  757. }
  758. /* Read Sector(s) */
  759. DRESULT disk_read(BYTE drv, BYTE *buff, DWORD sector, UINT count)
  760. {
  761. rt_size_t result;
  762. rt_device_t device = disk[drv];
  763. result = rt_device_read(device, sector, buff, count);
  764. if (result == count)
  765. {
  766. return RES_OK;
  767. }
  768. return RES_ERROR;
  769. }
  770. /* Write Sector(s) */
  771. DRESULT disk_write(BYTE drv, const BYTE *buff, DWORD sector, UINT count)
  772. {
  773. rt_size_t result;
  774. rt_device_t device = disk[drv];
  775. result = rt_device_write(device, sector, buff, count);
  776. if (result == count)
  777. {
  778. return RES_OK;
  779. }
  780. return RES_ERROR;
  781. }
  782. /* Miscellaneous Functions */
  783. DRESULT disk_ioctl(BYTE drv, BYTE ctrl, void *buff)
  784. {
  785. rt_device_t device = disk[drv];
  786. if (device == RT_NULL)
  787. return RES_ERROR;
  788. if (ctrl == GET_SECTOR_COUNT)
  789. {
  790. struct rt_device_blk_geometry geometry;
  791. rt_memset(&geometry, 0, sizeof(geometry));
  792. rt_device_control(device, RT_DEVICE_CTRL_BLK_GETGEOME, &geometry);
  793. *(DWORD *)buff = geometry.sector_count;
  794. if (geometry.sector_count == 0)
  795. return RES_ERROR;
  796. }
  797. else if (ctrl == GET_SECTOR_SIZE)
  798. {
  799. struct rt_device_blk_geometry geometry;
  800. rt_memset(&geometry, 0, sizeof(geometry));
  801. rt_device_control(device, RT_DEVICE_CTRL_BLK_GETGEOME, &geometry);
  802. *(WORD *)buff = (WORD)(geometry.bytes_per_sector);
  803. }
  804. else if (ctrl == GET_BLOCK_SIZE) /* Get erase block size in unit of sectors (DWORD) */
  805. {
  806. struct rt_device_blk_geometry geometry;
  807. rt_memset(&geometry, 0, sizeof(geometry));
  808. rt_device_control(device, RT_DEVICE_CTRL_BLK_GETGEOME, &geometry);
  809. *(DWORD *)buff = geometry.block_size / geometry.bytes_per_sector;
  810. }
  811. else if (ctrl == CTRL_SYNC)
  812. {
  813. rt_device_control(device, RT_DEVICE_CTRL_BLK_SYNC, RT_NULL);
  814. }
  815. else if (ctrl == CTRL_TRIM)
  816. {
  817. rt_device_control(device, RT_DEVICE_CTRL_BLK_ERASE, buff);
  818. }
  819. return RES_OK;
  820. }
  821. DWORD get_fattime(void)
  822. {
  823. DWORD fat_time = 0;
  824. time_t now;
  825. struct tm tm_now;
  826. now = time(RT_NULL);
  827. gmtime_r(&now, &tm_now);
  828. fat_time = (DWORD)(tm_now.tm_year - 80) << 25 |
  829. (DWORD)(tm_now.tm_mon + 1) << 21 |
  830. (DWORD)tm_now.tm_mday << 16 |
  831. (DWORD)tm_now.tm_hour << 11 |
  832. (DWORD)tm_now.tm_min << 5 |
  833. (DWORD)tm_now.tm_sec / 2 ;
  834. return fat_time;
  835. }
  836. #if FF_FS_REENTRANT
  837. int ff_cre_syncobj(BYTE drv, FF_SYNC_t *m)
  838. {
  839. char name[8];
  840. rt_mutex_t mutex;
  841. rt_snprintf(name, sizeof(name), "fat%d", drv);
  842. mutex = rt_mutex_create(name, RT_IPC_FLAG_PRIO);
  843. if (mutex != RT_NULL)
  844. {
  845. *m = mutex;
  846. return RT_TRUE;
  847. }
  848. return RT_FALSE;
  849. }
  850. int ff_del_syncobj(FF_SYNC_t m)
  851. {
  852. if (m != RT_NULL)
  853. rt_mutex_delete(m);
  854. return RT_TRUE;
  855. }
  856. int ff_req_grant(FF_SYNC_t m)
  857. {
  858. if (rt_mutex_take(m, FF_FS_TIMEOUT) == RT_EOK)
  859. return RT_TRUE;
  860. return RT_FALSE;
  861. }
  862. void ff_rel_grant(FF_SYNC_t m)
  863. {
  864. rt_mutex_release(m);
  865. }
  866. #endif
  867. /* Memory functions */
  868. #if FF_USE_LFN == 3
  869. /* Allocate memory block */
  870. void *ff_memalloc(UINT size)
  871. {
  872. return rt_malloc(size);
  873. }
  874. /* Free memory block */
  875. void ff_memfree(void *mem)
  876. {
  877. rt_free(mem);
  878. }
  879. #endif /* FF_USE_LFN == 3 */