fat32.c 33 KB

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  1. #include "fat32.h"
  2. #include <common/kprint.h>
  3. #include <driver/disk/ahci/ahci.h>
  4. #include <filesystem/MBR.h>
  5. #include <process/spinlock.h>
  6. #include <mm/slab.h>
  7. #include <common/errno.h>
  8. #include <common/stdio.h>
  9. struct vfs_super_block_operations_t fat32_sb_ops;
  10. struct vfs_dir_entry_operations_t fat32_dEntry_ops;
  11. struct vfs_file_operations_t fat32_file_ops;
  12. struct vfs_inode_operations_t fat32_inode_ops;
  13. /**
  14. * @brief 注册指定磁盘上的指定分区的fat32文件系统
  15. *
  16. * @param ahci_ctrl_num ahci控制器编号
  17. * @param ahci_port_num ahci控制器端口编号
  18. * @param part_num 磁盘分区编号
  19. *
  20. * @return struct vfs_super_block_t * 文件系统的超级块
  21. */
  22. struct vfs_superblock_t *fat32_register_partition(uint8_t ahci_ctrl_num, uint8_t ahci_port_num, uint8_t part_num)
  23. {
  24. struct MBR_disk_partition_table_t *DPT = MBR_read_partition_table(ahci_ctrl_num, ahci_port_num);
  25. // for(i = 0 ;i < 512 ; i++)
  26. // color_printk(PURPLE,WHITE,"%02x",buf[i]);
  27. printk_color(ORANGE, BLACK, "DPTE[0] start_LBA:%#018lx\ttype:%#018lx\n", DPT->DPTE[part_num].starting_LBA, DPT->DPTE[part_num].type);
  28. uint8_t buf[512] = {0};
  29. // 读取文件系统的boot扇区
  30. ahci_operation.transfer(AHCI_CMD_READ_DMA_EXT, DPT->DPTE[part_num].starting_LBA, 1, (uint64_t)&buf, ahci_ctrl_num, ahci_port_num);
  31. // 挂载文件系统到vfs
  32. return vfs_mount_fs("FAT32", (void *)(&DPT->DPTE[part_num]), VFS_DPT_MBR, buf, ahci_ctrl_num, ahci_port_num, part_num);
  33. }
  34. /**
  35. * @brief 读取指定簇的FAT表项
  36. *
  37. * @param fsbi fat32超级块私有信息结构体
  38. * @param cluster 指定簇
  39. * @return uint32_t 下一个簇的簇号
  40. */
  41. uint32_t fat32_read_FAT_entry(fat32_sb_info_t *fsbi, uint32_t cluster)
  42. {
  43. // 计算每个扇区内含有的FAT表项数
  44. // FAT每项4bytes
  45. uint32_t fat_ent_per_sec = (fsbi->bytes_per_sec >> 2); // 该值应为2的n次幂
  46. uint32_t buf[256];
  47. memset(buf, 0, fsbi->bytes_per_sec);
  48. // 读取一个sector的数据,
  49. ahci_operation.transfer(AHCI_CMD_READ_DMA_EXT, fsbi->FAT1_base_sector + (cluster / fat_ent_per_sec), 1,
  50. (uint64_t)&buf, fsbi->ahci_ctrl_num, fsbi->ahci_port_num);
  51. // 返回下一个fat表项的值(也就是下一个cluster)
  52. return buf[cluster & (fat_ent_per_sec - 1)] & 0x0fffffff;
  53. }
  54. /**
  55. * @brief 写入指定簇的FAT表项
  56. *
  57. * @param fsbi fat32超级块私有信息结构体
  58. * @param cluster 指定簇
  59. * @param value 要写入该fat表项的值
  60. * @return uint32_t errcode
  61. */
  62. uint32_t fat32_write_FAT_entry(fat32_sb_info_t *fsbi, uint32_t cluster, uint32_t value)
  63. {
  64. // 计算每个扇区内含有的FAT表项数
  65. // FAT每项4bytes
  66. uint32_t fat_ent_per_sec = (fsbi->bytes_per_sec >> 2); // 该值应为2的n次幂
  67. uint32_t buf[256];
  68. memset(buf, 0, fsbi->bytes_per_sec);
  69. ahci_operation.transfer(AHCI_CMD_READ_DMA_EXT, fsbi->FAT1_base_sector + (cluster / fat_ent_per_sec), 1,
  70. (uint64_t)&buf, fsbi->ahci_ctrl_num, fsbi->ahci_port_num);
  71. buf[cluster & (fat_ent_per_sec - 1)] = (buf[cluster & (fat_ent_per_sec - 1)] & 0xf0000000) | (value & 0x0fffffff);
  72. // 向FAT1和FAT2写入数据
  73. ahci_operation.transfer(AHCI_CMD_WRITE_DMA_EXT, fsbi->FAT1_base_sector + (cluster / fat_ent_per_sec), 1,
  74. (uint64_t)&buf, fsbi->ahci_ctrl_num, fsbi->ahci_port_num);
  75. ahci_operation.transfer(AHCI_CMD_WRITE_DMA_EXT, fsbi->FAT2_base_sector + (cluster / fat_ent_per_sec), 1,
  76. (uint64_t)&buf, fsbi->ahci_ctrl_num, fsbi->ahci_port_num);
  77. return 0;
  78. }
  79. /**
  80. * @brief 在父目录中寻找指定的目录项
  81. *
  82. * @param parent_inode 父目录项的inode
  83. * @param dest_inode 搜索目标目录项的inode
  84. * @return struct vfs_dir_entry_t* 目标目录项
  85. */
  86. struct vfs_dir_entry_t *fat32_lookup(struct vfs_index_node_t *parent_inode, struct vfs_dir_entry_t *dest_dentry)
  87. {
  88. int errcode = 0;
  89. struct fat32_inode_info_t *finode = (struct fat32_inode_info_t *)parent_inode->private_inode_info;
  90. fat32_sb_info_t *fsbi = (fat32_sb_info_t *)parent_inode->sb->private_sb_info;
  91. uint8_t *buf = kmalloc(fsbi->bytes_per_clus, 0);
  92. memset(buf, 0, fsbi->bytes_per_clus);
  93. // 计算父目录项的起始簇号
  94. uint32_t cluster = finode->first_clus;
  95. struct fat32_Directory_t *tmp_dEntry = NULL;
  96. while (true)
  97. {
  98. // 计算父目录项的起始LBA扇区号
  99. uint64_t sector = fsbi->first_data_sector + (cluster - 2) * fsbi->sec_per_clus;
  100. // kdebug("fat32_part_info[part_id].bootsector.BPB_SecPerClus=%d",fat32_part_info[part_id].bootsector.BPB_SecPerClus);
  101. // kdebug("sector=%d",sector);
  102. // 读取父目录项的起始簇数据
  103. ahci_operation.transfer(AHCI_CMD_READ_DMA_EXT, sector, fsbi->sec_per_clus, (uint64_t)buf, fsbi->ahci_ctrl_num, fsbi->ahci_port_num);
  104. // ahci_operation.transfer(AHCI_CMD_READ_DMA_EXT, sector, fat32_part_info[part_id].bootsector.BPB_SecPerClus, (uint64_t)buf, fat32_part_info[part_id].ahci_ctrl_num, fat32_part_info[part_id].ahci_port_num);
  105. tmp_dEntry = (struct fat32_Directory_t *)buf;
  106. // 查找短目录项
  107. for (int i = 0; i < fsbi->bytes_per_clus; i += 32, ++tmp_dEntry)
  108. {
  109. // 跳过长目录项
  110. if (tmp_dEntry->DIR_Attr == ATTR_LONG_NAME)
  111. continue;
  112. // 跳过无效页表项、空闲页表项
  113. if (tmp_dEntry->DIR_Name[0] == 0xe5 || tmp_dEntry->DIR_Name[0] == 0x00 || tmp_dEntry->DIR_Name[0] == 0x05)
  114. continue;
  115. // 找到长目录项,位于短目录项之前
  116. struct fat32_LongDirectory_t *tmp_ldEntry = (struct fat32_LongDirectory_t *)tmp_dEntry - 1;
  117. int js = 0;
  118. // 遍历每个长目录项
  119. while (tmp_ldEntry->LDIR_Attr == ATTR_LONG_NAME && tmp_ldEntry->LDIR_Ord != 0xe5)
  120. {
  121. // 比较name1
  122. for (int x = 0; x < 5; ++x)
  123. {
  124. if (js > dest_dentry->name_length && tmp_ldEntry->LDIR_Name1[x] == 0xffff)
  125. continue;
  126. else if (js > dest_dentry->name_length || tmp_ldEntry->LDIR_Name1[x] != (uint16_t)(dest_dentry->name[js++])) // 文件名不匹配,检索下一个短目录项
  127. goto continue_cmp_fail;
  128. }
  129. // 比较name2
  130. for (int x = 0; x < 6; ++x)
  131. {
  132. if (js > dest_dentry->name_length && tmp_ldEntry->LDIR_Name2[x] == 0xffff)
  133. continue;
  134. else if (js > dest_dentry->name_length || tmp_ldEntry->LDIR_Name2[x] != (uint16_t)(dest_dentry->name[js++])) // 文件名不匹配,检索下一个短目录项
  135. goto continue_cmp_fail;
  136. }
  137. // 比较name3
  138. for (int x = 0; x < 2; ++x)
  139. {
  140. if (js > dest_dentry->name_length && tmp_ldEntry->LDIR_Name3[x] == 0xffff)
  141. continue;
  142. else if (js > dest_dentry->name_length || tmp_ldEntry->LDIR_Name3[x] != (uint16_t)(dest_dentry->name[js++])) // 文件名不匹配,检索下一个短目录项
  143. goto continue_cmp_fail;
  144. }
  145. if (js >= dest_dentry->name_length) // 找到需要的目录项,返回
  146. {
  147. goto find_lookup_success;
  148. }
  149. --tmp_ldEntry; // 检索下一个长目录项
  150. }
  151. // 不存在长目录项,匹配短目录项的基础名
  152. js = 0;
  153. for (int x = 0; x < 8; ++x)
  154. {
  155. switch (tmp_dEntry->DIR_Name[x])
  156. {
  157. case ' ':
  158. if (!(tmp_dEntry->DIR_Attr & ATTR_DIRECTORY)) // 不是文件夹(是文件)
  159. {
  160. if (dest_dentry->name[js] == '.')
  161. continue;
  162. else if (tmp_dEntry->DIR_Name[x] == dest_dentry->name[js])
  163. {
  164. ++js;
  165. break;
  166. }
  167. else
  168. goto continue_cmp_fail;
  169. }
  170. else // 是文件夹
  171. {
  172. if (js < dest_dentry->name_length && tmp_dEntry->DIR_Name[x] == dest_dentry->name[js]) // 当前位正确匹配
  173. {
  174. ++js;
  175. break; // 进行下一位的匹配
  176. }
  177. else if (js == dest_dentry->name_length)
  178. continue;
  179. else
  180. goto continue_cmp_fail;
  181. }
  182. break;
  183. // 当前位是字母
  184. case 'A' ... 'Z':
  185. case 'a' ... 'z':
  186. if (tmp_dEntry->DIR_NTRes & LOWERCASE_BASE) // 为兼容windows系统,检测DIR_NTRes字段
  187. {
  188. if (js < dest_dentry->name_length && (tmp_dEntry->DIR_Name[x] + 32 == dest_dentry->name[js]))
  189. {
  190. ++js;
  191. break;
  192. }
  193. else
  194. goto continue_cmp_fail;
  195. }
  196. else
  197. {
  198. if (js < dest_dentry->name_length && tmp_dEntry->DIR_Name[x] == dest_dentry->name[js])
  199. {
  200. ++js;
  201. break;
  202. }
  203. else
  204. goto continue_cmp_fail;
  205. }
  206. break;
  207. case '0' ... '9':
  208. if (js < dest_dentry->name_length && tmp_dEntry->DIR_Name[x] == dest_dentry->name[js])
  209. {
  210. ++js;
  211. break;
  212. }
  213. else
  214. goto continue_cmp_fail;
  215. break;
  216. default:
  217. ++js;
  218. break;
  219. }
  220. }
  221. // 若短目录项为文件,则匹配扩展名
  222. if (!(tmp_dEntry->DIR_Attr & ATTR_DIRECTORY))
  223. {
  224. ++js;
  225. for (int x = 8; x < 11; ++x)
  226. {
  227. switch (tmp_dEntry->DIR_Name[x])
  228. {
  229. // 当前位是字母
  230. case 'A' ... 'Z':
  231. case 'a' ... 'z':
  232. if (tmp_dEntry->DIR_NTRes & LOWERCASE_EXT) // 为兼容windows系统,检测DIR_NTRes字段
  233. {
  234. if ((tmp_dEntry->DIR_Name[x] + 32 == dest_dentry->name[js]))
  235. {
  236. ++js;
  237. break;
  238. }
  239. else
  240. goto continue_cmp_fail;
  241. }
  242. else
  243. {
  244. if (tmp_dEntry->DIR_Name[x] == dest_dentry->name[js])
  245. {
  246. ++js;
  247. break;
  248. }
  249. else
  250. goto continue_cmp_fail;
  251. }
  252. break;
  253. case '0' ... '9':
  254. case ' ':
  255. if (tmp_dEntry->DIR_Name[x] == dest_dentry->name[js])
  256. {
  257. ++js;
  258. break;
  259. }
  260. else
  261. goto continue_cmp_fail;
  262. break;
  263. default:
  264. goto continue_cmp_fail;
  265. break;
  266. }
  267. }
  268. }
  269. goto find_lookup_success;
  270. continue_cmp_fail:;
  271. }
  272. // 当前簇没有发现目标文件名,寻找下一个簇
  273. cluster = fat32_read_FAT_entry(fsbi, cluster);
  274. if (cluster >= 0x0ffffff7) // 寻找完父目录的所有簇,都没有找到目标文件名
  275. {
  276. kfree(buf);
  277. return NULL;
  278. }
  279. }
  280. find_lookup_success:; // 找到目标dentry
  281. struct vfs_index_node_t *p = (struct vfs_index_node_t *)kmalloc(sizeof(struct vfs_index_node_t), 0);
  282. memset(p, 0, sizeof(struct vfs_index_node_t));
  283. p->file_size = tmp_dEntry->DIR_FileSize;
  284. // 计算文件占用的扇区数, 由于最小存储单位是簇,因此需要按照簇的大小来对齐扇区
  285. p->blocks = (p->file_size + fsbi->bytes_per_clus - 1) / fsbi->bytes_per_sec;
  286. p->attribute = (tmp_dEntry->DIR_Attr & ATTR_DIRECTORY) ? VFS_ATTR_DIR : VFS_ATTR_FILE;
  287. p->sb = parent_inode->sb;
  288. p->file_ops = &fat32_file_ops;
  289. p->inode_ops = &fat32_inode_ops;
  290. // 为inode的与文件系统相关的信息结构体分配空间
  291. p->private_inode_info = (void *)kmalloc(sizeof(fat32_inode_info_t), 0);
  292. memset(p->private_inode_info, 0, sizeof(fat32_inode_info_t));
  293. finode = (fat32_inode_info_t *)p->private_inode_info;
  294. finode->first_clus = ((tmp_dEntry->DIR_FstClusHI << 16) | tmp_dEntry->DIR_FstClusLO) & 0x0fffffff;
  295. finode->dEntry_location_clus = cluster;
  296. finode->dEntry_location_clus_offset = tmp_dEntry - (struct fat32_Directory_t *)buf; //计算dentry的偏移量
  297. kdebug("finode->dEntry_location_clus=%#018lx", finode->dEntry_location_clus);
  298. kdebug("finode->dEntry_location_clus_offset=%#018lx", finode->dEntry_location_clus_offset);
  299. finode->create_date = tmp_dEntry->DIR_CrtDate;
  300. finode->create_time = tmp_dEntry->DIR_CrtTime;
  301. finode->write_date = tmp_dEntry->DIR_WrtDate;
  302. finode->write_time = tmp_dEntry->DIR_WrtTime;
  303. dest_dentry->dir_inode = p;
  304. kfree(buf);
  305. return dest_dentry;
  306. }
  307. /**
  308. * @brief 创建fat32文件系统的超级块
  309. *
  310. * @param DPTE 磁盘分区表entry
  311. * @param DPT_type 磁盘分区表类型
  312. * @param buf fat32文件系统的引导扇区
  313. * @return struct vfs_superblock_t* 创建好的超级块
  314. */
  315. struct vfs_superblock_t *fat32_read_superblock(void *DPTE, uint8_t DPT_type, void *buf, int8_t ahci_ctrl_num, int8_t ahci_port_num, int8_t part_num)
  316. {
  317. if (DPT_type != VFS_DPT_MBR) // 暂时只支持MBR分区表
  318. {
  319. kerror("fat32_read_superblock(): Unsupported DPT!");
  320. return NULL;
  321. }
  322. // 分配超级块的空间
  323. struct vfs_superblock_t *sb_ptr = (struct vfs_superblock_t *)kmalloc(sizeof(struct vfs_superblock_t), 0);
  324. memset(sb_ptr, 0, sizeof(struct vfs_superblock_t));
  325. sb_ptr->sb_ops = &fat32_sb_ops;
  326. sb_ptr->private_sb_info = kmalloc(sizeof(fat32_sb_info_t), 0);
  327. memset(sb_ptr->private_sb_info, 0, sizeof(fat32_sb_info_t));
  328. struct fat32_BootSector_t *fbs = (struct fat32_BootSector_t *)buf;
  329. fat32_sb_info_t *fsbi = (fat32_sb_info_t *)(sb_ptr->private_sb_info);
  330. // MBR分区表entry
  331. struct MBR_disk_partition_table_entry_t *MBR_DPTE = (struct MBR_disk_partition_table_entry_t *)DPTE;
  332. fsbi->ahci_ctrl_num = ahci_ctrl_num;
  333. fsbi->ahci_port_num = ahci_port_num;
  334. fsbi->part_num = part_num;
  335. fsbi->starting_sector = MBR_DPTE->starting_LBA;
  336. fsbi->sector_count = MBR_DPTE->total_sectors;
  337. fsbi->sec_per_clus = fbs->BPB_SecPerClus;
  338. fsbi->bytes_per_clus = fbs->BPB_SecPerClus * fbs->BPB_BytesPerSec;
  339. fsbi->bytes_per_sec = fbs->BPB_BytesPerSec;
  340. fsbi->first_data_sector = MBR_DPTE->starting_LBA + fbs->BPB_RsvdSecCnt + fbs->BPB_FATSz32 * fbs->BPB_NumFATs;
  341. fsbi->FAT1_base_sector = MBR_DPTE->starting_LBA + fbs->BPB_RsvdSecCnt;
  342. fsbi->FAT2_base_sector = fsbi->FAT1_base_sector + fbs->BPB_FATSz32;
  343. fsbi->sec_per_FAT = fbs->BPB_FATSz32;
  344. fsbi->NumFATs = fbs->BPB_NumFATs;
  345. fsbi->fsinfo_sector_addr_infat = fbs->BPB_FSInfo;
  346. fsbi->bootsector_bak_sector_addr_infat = fbs->BPB_BkBootSec;
  347. printk_color(ORANGE, BLACK, "FAT32 Boot Sector\n\tBPB_FSInfo:%#018lx\n\tBPB_BkBootSec:%#018lx\n\tBPB_TotSec32:%#018lx\n", fbs->BPB_FSInfo, fbs->BPB_BkBootSec, fbs->BPB_TotSec32);
  348. // fsinfo扇区的信息
  349. memset(&fsbi->fsinfo, 0, sizeof(struct fat32_FSInfo_t));
  350. ahci_operation.transfer(AHCI_CMD_READ_DMA_EXT, MBR_DPTE->starting_LBA + fbs->BPB_FSInfo, 1, (uint64_t)&fsbi->fsinfo, ahci_ctrl_num, ahci_port_num);
  351. printk_color(BLUE, BLACK, "FAT32 FSInfo\n\tFSI_LeadSig:%#018lx\n\tFSI_StrucSig:%#018lx\n\tFSI_Free_Count:%#018lx\n", fsbi->fsinfo.FSI_LeadSig, fsbi->fsinfo.FSI_StrucSig, fsbi->fsinfo.FSI_Free_Count);
  352. // 初始化超级块的dir entry
  353. sb_ptr->root = (struct vfs_dir_entry_t *)kmalloc(sizeof(struct vfs_dir_entry_t), 0);
  354. memset(sb_ptr->root, 0, sizeof(struct vfs_dir_entry_t));
  355. list_init(&sb_ptr->root->child_node_list);
  356. list_init(&sb_ptr->root->subdirs_list);
  357. sb_ptr->root->parent = sb_ptr->root;
  358. sb_ptr->root->dir_ops = &fat32_dEntry_ops;
  359. // 分配2个字节的name
  360. sb_ptr->root->name = (char *)(kmalloc(2, 0));
  361. sb_ptr->root->name[0] = '/';
  362. sb_ptr->root->name_length = 1;
  363. // 为root目录项分配index node
  364. sb_ptr->root->dir_inode = (struct vfs_index_node_t *)kmalloc(sizeof(struct vfs_index_node_t), 0);
  365. memset(sb_ptr->root->dir_inode, 0, sizeof(struct vfs_index_node_t));
  366. sb_ptr->root->dir_inode->inode_ops = &fat32_inode_ops;
  367. sb_ptr->root->dir_inode->file_ops = &fat32_file_ops;
  368. sb_ptr->root->dir_inode->file_size = 0;
  369. // 计算文件占用的扇区数, 由于最小存储单位是簇,因此需要按照簇的大小来对齐扇区
  370. sb_ptr->root->dir_inode->blocks = (sb_ptr->root->dir_inode->file_size + fsbi->bytes_per_clus - 1) / fsbi->bytes_per_sec;
  371. sb_ptr->root->dir_inode->attribute = VFS_ATTR_DIR;
  372. sb_ptr->root->dir_inode->sb = sb_ptr; // 反向绑定对应的超级块
  373. // 初始化inode信息
  374. sb_ptr->root->dir_inode->private_inode_info = kmalloc(sizeof(struct fat32_inode_info_t), 0);
  375. memset(sb_ptr->root->dir_inode->private_inode_info, 0, sizeof(struct fat32_inode_info_t));
  376. struct fat32_inode_info_t *finode = (struct fat32_inode_info_t *)sb_ptr->root->dir_inode->private_inode_info;
  377. finode->first_clus = fbs->BPB_RootClus;
  378. finode->dEntry_location_clus = 0;
  379. finode->dEntry_location_clus_offset = 0;
  380. finode->create_time = 0;
  381. finode->create_date = 0;
  382. finode->write_date = 0;
  383. finode->write_time;
  384. return sb_ptr;
  385. }
  386. /**
  387. * @brief todo: 写入superblock
  388. *
  389. * @param sb
  390. */
  391. void fat32_write_superblock(struct vfs_superblock_t *sb)
  392. {
  393. }
  394. /**
  395. * @brief 释放superblock的内存空间
  396. *
  397. * @param sb 要被释放的superblock
  398. */
  399. void fat32_put_superblock(struct vfs_superblock_t *sb)
  400. {
  401. kfree(sb->private_sb_info);
  402. kfree(sb->root->dir_inode->private_inode_info);
  403. kfree(sb->root->dir_inode);
  404. kfree(sb->root);
  405. kfree(sb);
  406. }
  407. /**
  408. * @brief 写入inode到硬盘上
  409. *
  410. * @param inode
  411. */
  412. void fat32_write_inode(struct vfs_index_node_t *inode)
  413. {
  414. fat32_inode_info_t *finode = inode->private_inode_info;
  415. if (finode->dEntry_location_clus == 0)
  416. {
  417. kerror("FAT32 error: Attempt to write the root inode");
  418. return;
  419. }
  420. fat32_sb_info_t *fsbi = (fat32_sb_info_t *)inode->sb->private_sb_info;
  421. // 计算目标inode对应数据区的LBA地址
  422. uint64_t fLBA = fsbi->first_data_sector + (finode->dEntry_location_clus - 2) * fsbi->sec_per_clus;
  423. struct fat32_Directory_t *buf = (struct fat32_Directory_t *)kmalloc(fsbi->bytes_per_clus, 0);
  424. memset(buf, 0, fsbi->bytes_per_clus);
  425. ahci_operation.transfer(AHCI_CMD_READ_DMA_EXT, fLBA, fsbi->sec_per_clus, (uint64_t)buf, fsbi->ahci_ctrl_num, fsbi->ahci_port_num);
  426. // 计算目标dEntry所在的位置
  427. struct fat32_Directory_t *fdEntry = buf + finode->dEntry_location_clus_offset;
  428. // 写入fat32文件系统的dir_entry
  429. fdEntry->DIR_FileSize = inode->file_size;
  430. fdEntry->DIR_FstClusLO = finode->first_clus & 0xffff;
  431. fdEntry->DIR_FstClusHI = (finode->first_clus >> 16) | (fdEntry->DIR_FstClusHI & 0xf000);
  432. // 将dir entry写回磁盘
  433. ahci_operation.transfer(AHCI_CMD_WRITE_DMA_EXT, fLBA, fsbi->sec_per_clus, (uint64_t)buf, fsbi->ahci_ctrl_num, fsbi->ahci_port_num);
  434. kfree(buf);
  435. }
  436. struct vfs_super_block_operations_t fat32_sb_ops =
  437. {
  438. .write_superblock = fat32_write_superblock,
  439. .put_superblock = fat32_put_superblock,
  440. .write_inode = fat32_write_inode,
  441. };
  442. // todo: compare
  443. long fat32_compare(struct vfs_dir_entry_t *parent_dEntry, char *source_filename, char *dest_filename)
  444. {
  445. }
  446. // todo: hash
  447. long fat32_hash(struct vfs_dir_entry_t *dEntry, char *filename)
  448. {
  449. }
  450. // todo: release
  451. long fat32_release(struct vfs_dir_entry_t *dEntry)
  452. {
  453. }
  454. // todo: iput
  455. long fat32_iput(struct vfs_dir_entry_t *dEntry, struct vfs_index_node_t *inode)
  456. {
  457. }
  458. /**
  459. * @brief fat32文件系统对于dEntry的操作
  460. *
  461. */
  462. struct vfs_dir_entry_operations_t fat32_dEntry_ops =
  463. {
  464. .compare = fat32_compare,
  465. .hash = fat32_hash,
  466. .release = fat32_release,
  467. .iput = fat32_iput,
  468. };
  469. // todo: open
  470. long fat32_open(struct vfs_index_node_t *inode, struct vfs_file_t *file_ptr)
  471. {
  472. return VFS_SUCCESS;
  473. }
  474. // todo: close
  475. long fat32_close(struct vfs_index_node_t *inode, struct vfs_file_t *file_ptr)
  476. {
  477. return VFS_SUCCESS;
  478. }
  479. /**
  480. * @brief 从fat32文件系统读取数据
  481. *
  482. * @param file_ptr 文件描述符
  483. * @param buf 输出缓冲区
  484. * @param count 要读取的字节数
  485. * @param position 文件指针位置
  486. * @return long 执行成功:传输的字节数量 执行失败:错误码(小于0)
  487. */
  488. long fat32_read(struct vfs_file_t *file_ptr, char *buf, int64_t count, long *position)
  489. {
  490. struct fat32_inode_info_t *finode = (struct fat32_inode_info_t *)(file_ptr->dEntry->dir_inode->private_inode_info);
  491. fat32_sb_info_t *fsbi = (fat32_sb_info_t *)(file_ptr->dEntry->dir_inode->sb->private_sb_info);
  492. // First cluster num of the file
  493. uint64_t cluster = finode->first_clus;
  494. // kdebug("fsbi->bytes_per_clus=%d fsbi->sec_per_clus=%d finode->first_clus=%d cluster=%d", fsbi->bytes_per_clus, fsbi->sec_per_clus, finode->first_clus, cluster);
  495. // kdebug("fsbi->bytes_per_clus=%d", fsbi->bytes_per_clus);
  496. // clus offset in file
  497. uint64_t clus_offset_in_file = (*position) / fsbi->bytes_per_clus;
  498. // bytes offset in clus
  499. uint64_t bytes_offset = (*position) % fsbi->bytes_per_clus;
  500. if (!cluster)
  501. return -EFAULT;
  502. // find the actual cluster on disk of the specified position
  503. for (int i = 0; i < clus_offset_in_file; ++i)
  504. cluster = fat32_read_FAT_entry(fsbi, cluster);
  505. // 如果需要读取的数据边界大于文件大小
  506. if (*position + count > file_ptr->dEntry->dir_inode->file_size)
  507. count = file_ptr->dEntry->dir_inode->file_size - *position;
  508. // 剩余还需要传输的字节数量
  509. int64_t bytes_remain = count;
  510. // alloc buffer memory space for ahci transfer
  511. void *tmp_buffer = kmalloc(fsbi->bytes_per_clus, 0);
  512. int64_t retval = 0;
  513. do
  514. {
  515. memset(tmp_buffer, 0, fsbi->bytes_per_clus);
  516. uint64_t sector = fsbi->first_data_sector + (cluster - 2) * fsbi->sec_per_clus;
  517. // 读取一个簇的数据
  518. int errno = ahci_operation.transfer(AHCI_CMD_READ_DMA_EXT, sector, fsbi->sec_per_clus, (uint64_t)tmp_buffer, fsbi->ahci_ctrl_num, fsbi->ahci_port_num);
  519. if (errno != AHCI_SUCCESS)
  520. {
  521. kerror("FAT32 FS(read) error!");
  522. retval = -EIO;
  523. break;
  524. }
  525. int64_t step_trans_len = 0; // 当前循环传输的字节数
  526. if (bytes_remain > (fsbi->bytes_per_clus - bytes_offset))
  527. step_trans_len = (fsbi->bytes_per_clus - bytes_offset);
  528. else
  529. step_trans_len = bytes_remain;
  530. if (((uint64_t)buf) < USER_MAX_LINEAR_ADDR)
  531. copy_to_user(buf, tmp_buffer + bytes_offset, step_trans_len);
  532. else
  533. memcpy(buf, tmp_buffer + bytes_offset, step_trans_len);
  534. bytes_remain -= step_trans_len;
  535. buf += step_trans_len;
  536. bytes_offset -= bytes_offset;
  537. *position += step_trans_len; // 更新文件指针
  538. cluster = fat32_read_FAT_entry(fsbi, cluster);
  539. } while (bytes_remain && (cluster < 0x0ffffff8) && cluster != 0);
  540. kfree(tmp_buffer);
  541. if (!bytes_remain)
  542. retval = count;
  543. return retval;
  544. }
  545. /**
  546. * @brief 在磁盘中寻找一个空闲的簇
  547. *
  548. * @param fsbi fat32超级块信息结构体
  549. * @return uint64_t 空闲簇号(找不到则返回0)
  550. */
  551. uint64_t fat32_find_available_cluster(fat32_sb_info_t *fsbi)
  552. {
  553. uint64_t sec_per_fat = fsbi->sec_per_FAT;
  554. // 申请1扇区的缓冲区
  555. uint32_t *buf = (uint32_t *)kmalloc(fsbi->bytes_per_sec, 0);
  556. int ent_per_sec = (fsbi->bytes_per_sec >> 2);
  557. for (int i = 0; i < sec_per_fat; ++i)
  558. {
  559. memset(buf, 0, fsbi->bytes_per_sec);
  560. ahci_operation.transfer(AHCI_CMD_READ_DMA_EXT, fsbi->FAT1_base_sector + i, 1, (uint64_t)buf, fsbi->ahci_ctrl_num, fsbi->ahci_port_num);
  561. // 依次检查簇是否空闲
  562. for (int j = 0; j < ent_per_sec; ++j)
  563. {
  564. // 找到空闲簇
  565. if ((buf[j] & 0x0fffffff) == 0)
  566. return i * ent_per_sec + j;
  567. }
  568. }
  569. return 0;
  570. }
  571. /**
  572. * @brief 向fat32文件系统写入数据
  573. *
  574. * @param file_ptr 文件描述符
  575. * @param buf 输入写入的字节数
  576. * @param position 文件指针位置
  577. * @return long 执行成功:传输的字节数量 执行失败:错误码(小于0)
  578. */
  579. long fat32_write(struct vfs_file_t *file_ptr, char *buf, int64_t count, long *position)
  580. {
  581. struct fat32_inode_info_t *finode = (struct fat32_inode_info_t *)file_ptr->dEntry->dir_inode->private_inode_info;
  582. fat32_sb_info_t *fsbi = (fat32_sb_info_t *)(file_ptr->dEntry->dir_inode->sb->private_sb_info);
  583. // First cluster num of the file
  584. uint64_t cluster = finode->first_clus;
  585. int64_t flags = 0;
  586. // kdebug("fsbi->bytes_per_clus=%d fsbi->sec_per_clus=%d finode->first_clus=%d *position=%d", fsbi->bytes_per_clus, fsbi->sec_per_clus, finode->first_clus, *position);
  587. // kdebug("buf=%s", buf);
  588. // clus offset in file
  589. uint64_t clus_offset_in_file = (*position) / fsbi->bytes_per_clus;
  590. // bytes offset in clus
  591. uint64_t bytes_offset = (*position) % fsbi->bytes_per_clus;
  592. if (!cluster) // 起始簇号为0,说明是空文件
  593. {
  594. // 找一个可用的簇
  595. cluster = fat32_find_available_cluster(fsbi);
  596. flags = 1;
  597. }
  598. else
  599. {
  600. // 跳转到position所在的簇
  601. for (uint64_t i = 0; i < clus_offset_in_file; ++i)
  602. cluster = fat32_read_FAT_entry(fsbi, cluster);
  603. }
  604. // kdebug("cluster(start)=%d", cluster);
  605. // 没有可用的磁盘空间
  606. if (!cluster)
  607. return -ENOSPC;
  608. if (flags) // 空文件
  609. {
  610. // kdebug("empty file");
  611. finode->first_clus = cluster;
  612. // 写入目录项
  613. file_ptr->dEntry->dir_inode->sb->sb_ops->write_inode(file_ptr->dEntry->dir_inode);
  614. fat32_write_FAT_entry(fsbi, cluster, 0x0ffffff8); // 写入fat表项
  615. }
  616. int64_t bytes_remain = count;
  617. if (count < 0) // 要写入的字节数小于0
  618. return -EINVAL;
  619. uint64_t sector;
  620. int64_t retval = 0;
  621. void *tmp_buffer = kmalloc(fsbi->bytes_per_clus, 0);
  622. do
  623. {
  624. memset(tmp_buffer, 0, fsbi->bytes_per_clus);
  625. sector = fsbi->first_data_sector + (cluster - 2) * fsbi->sec_per_clus; // 计算对应的扇区
  626. if (!flags) // 当前簇已分配
  627. {
  628. // kdebug("read existed sec=%ld", sector);
  629. // 读取一个簇的数据
  630. int errno = ahci_operation.transfer(AHCI_CMD_READ_DMA_EXT, sector, fsbi->sec_per_clus, (uint64_t)tmp_buffer, fsbi->ahci_ctrl_num, fsbi->ahci_port_num);
  631. if (errno != AHCI_SUCCESS)
  632. {
  633. // kerror("FAT32 FS(write) read disk error!");
  634. retval = -EIO;
  635. break;
  636. }
  637. }
  638. int64_t step_trans_len = 0; // 当前循环传输的字节数
  639. if (bytes_remain > (fsbi->bytes_per_clus - bytes_offset))
  640. step_trans_len = (fsbi->bytes_per_clus - bytes_offset);
  641. else
  642. step_trans_len = bytes_remain;
  643. // kdebug("step_trans_len=%d, bytes_offset=%d", step_trans_len, bytes_offset);
  644. if (((uint64_t)buf) < USER_MAX_LINEAR_ADDR)
  645. copy_from_user(tmp_buffer + bytes_offset, buf, step_trans_len);
  646. else
  647. memcpy(tmp_buffer + bytes_offset, buf, step_trans_len);
  648. // 写入数据到对应的簇
  649. int errno = ahci_operation.transfer(AHCI_CMD_WRITE_DMA_EXT, sector, fsbi->sec_per_clus, (uint64_t)tmp_buffer, fsbi->ahci_ctrl_num, fsbi->ahci_port_num);
  650. if (errno != AHCI_SUCCESS)
  651. {
  652. kerror("FAT32 FS(write) write disk error!");
  653. retval = -EIO;
  654. break;
  655. }
  656. bytes_remain -= step_trans_len;
  657. buf += step_trans_len;
  658. bytes_offset -= bytes_offset;
  659. *position += step_trans_len; // 更新文件指针
  660. // kdebug("step_trans_len=%d", step_trans_len);
  661. int next_clus = 0;
  662. if (bytes_remain)
  663. next_clus = fat32_read_FAT_entry(fsbi, cluster);
  664. else
  665. break;
  666. if (next_clus >= 0x0ffffff8) // 已经到达了最后一个簇,需要分配新簇
  667. {
  668. next_clus = fat32_find_available_cluster(fsbi);
  669. if (!next_clus) // 没有空闲簇
  670. {
  671. kfree(tmp_buffer);
  672. return -ENOSPC;
  673. }
  674. // 将簇加入到文件末尾
  675. fat32_write_FAT_entry(fsbi, cluster, next_clus);
  676. fat32_write_FAT_entry(fsbi, next_clus, 0x0ffffff8);
  677. cluster = next_clus; // 切换当前簇
  678. flags = 1; // 标记当前簇是新分配的簇
  679. }
  680. } while (bytes_remain);
  681. // 文件大小有增长
  682. if (*position > (file_ptr->dEntry->dir_inode->file_size))
  683. {
  684. file_ptr->dEntry->dir_inode->file_size = *position;
  685. file_ptr->dEntry->dir_inode->sb->sb_ops->write_inode(file_ptr->dEntry->dir_inode);
  686. kdebug("new file size=%ld", *position);
  687. }
  688. kfree(tmp_buffer);
  689. if (!bytes_remain)
  690. retval = count;
  691. // kdebug("retval=%lld", retval);
  692. return retval;
  693. }
  694. /**
  695. * @brief 调整文件的当前访问位置
  696. *
  697. * @param file_ptr vfs文件指针
  698. * @param offset 调整的偏移量
  699. * @param whence 调整方法
  700. * @return long 更新后的指针位置
  701. */
  702. long fat32_lseek(struct vfs_file_t *file_ptr, long offset, long whence)
  703. {
  704. struct vfs_index_node_t *inode = file_ptr->dEntry->dir_inode;
  705. long pos = 0;
  706. switch (whence)
  707. {
  708. case SEEK_SET: // 相对于文件头
  709. pos = offset;
  710. break;
  711. case SEEK_CUR: // 相对于当前位置
  712. pos = file_ptr->position + offset;
  713. break;
  714. case SEEK_END: // 相对于文件末尾
  715. pos = file_ptr->dEntry->dir_inode->file_size + offset;
  716. break;
  717. default:
  718. return -EINVAL;
  719. break;
  720. }
  721. if(pos<0||pos>file_ptr->dEntry->dir_inode->file_size)
  722. return -EOVERFLOW;
  723. file_ptr->position = pos;
  724. // kdebug("fat32 lseek -> position=%d", file_ptr->position);
  725. return pos;
  726. }
  727. // todo: ioctl
  728. long fat32_ioctl(struct vfs_index_node_t *inode, struct vfs_file_t *file_ptr, uint64_t cmd, uint64_t arg)
  729. {
  730. }
  731. /**
  732. * @brief fat32文件系统,关于文件的操作
  733. *
  734. */
  735. struct vfs_file_operations_t fat32_file_ops =
  736. {
  737. .open = fat32_open,
  738. .close = fat32_close,
  739. .read = fat32_read,
  740. .write = fat32_write,
  741. .lseek = fat32_lseek,
  742. .ioctl = fat32_ioctl,
  743. };
  744. // todo: create
  745. long fat32_create(struct vfs_index_node_t *inode, struct vfs_dir_entry_t *dentry, int mode)
  746. {
  747. }
  748. // todo: mkdir
  749. int64_t fat32_mkdir(struct vfs_index_node_t *inode, struct vfs_dir_entry_t *dEntry, int mode)
  750. {
  751. }
  752. // todo: rmdir
  753. int64_t fat32_rmdir(struct vfs_index_node_t *inode, struct vfs_dir_entry_t *dEntry)
  754. {
  755. }
  756. // todo: rename
  757. int64_t fat32_rename(struct vfs_index_node_t *old_inode, struct vfs_dir_entry_t *old_dEntry, struct vfs_index_node_t *new_inode, struct vfs_dir_entry_t *new_dEntry)
  758. {
  759. }
  760. // todo: getAttr
  761. int64_t fat32_getAttr(struct vfs_dir_entry_t *dEntry, uint64_t *attr)
  762. {
  763. }
  764. // todo: setAttr
  765. int64_t fat32_setAttr(struct vfs_dir_entry_t *dEntry, uint64_t *attr)
  766. {
  767. }
  768. struct vfs_inode_operations_t fat32_inode_ops =
  769. {
  770. .create = fat32_create,
  771. .mkdir = fat32_mkdir,
  772. .rmdir = fat32_rmdir,
  773. .lookup = fat32_lookup,
  774. .rename = fat32_rename,
  775. .getAttr = fat32_getAttr,
  776. .setAttr = fat32_setAttr,
  777. };
  778. struct vfs_filesystem_type_t fat32_fs_type =
  779. {
  780. .name = "FAT32",
  781. .fs_flags = 0,
  782. .read_superblock = fat32_read_superblock,
  783. .next = NULL,
  784. };
  785. void fat32_init()
  786. {
  787. kinfo("Initializing FAT32...");
  788. // 在VFS中注册fat32文件系统
  789. vfs_register_filesystem(&fat32_fs_type);
  790. // 挂载根文件系统
  791. vfs_root_sb = fat32_register_partition(0, 0, 0);
  792. kinfo("FAT32 initialized.");
  793. }