file.rs 10 KB

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  1. use core::mem::MaybeUninit;
  2. use alloc::{boxed::Box, string::String, sync::Arc, vec::Vec};
  3. use crate::{
  4. arch::asm::current::current_pcb,
  5. filesystem::procfs::ProcfsFilePrivateData,
  6. include::bindings::bindings::{
  7. process_control_block, EINVAL, ENOBUFS, EOVERFLOW, EPERM, ESPIPE,
  8. },
  9. io::SeekFrom,
  10. kerror,
  11. };
  12. use super::{Dirent, FileType, IndexNode, Metadata};
  13. /// 文件私有信息的枚举类型
  14. #[derive(Debug, Clone)]
  15. pub enum FilePrivateData {
  16. // procfs文件私有信息
  17. Procfs(ProcfsFilePrivateData),
  18. // 不需要文件私有信息
  19. Unused,
  20. }
  21. impl Default for FilePrivateData {
  22. fn default() -> Self {
  23. return Self::Unused;
  24. }
  25. }
  26. bitflags! {
  27. /// @brief 文件打开模式
  28. /// 其中,低2bit组合而成的数字的值,用于表示访问权限。其他的bit,才支持通过按位或的方式来表示参数
  29. ///
  30. /// 与Linux 5.19.10的uapi/asm-generic/fcntl.h相同
  31. /// https://opengrok.ringotek.cn/xref/linux-5.19.10/tools/include/uapi/asm-generic/fcntl.h#19
  32. pub struct FileMode: u32{
  33. /* File access modes for `open' and `fcntl'. */
  34. /// Open Read-only
  35. const O_RDONLY = 0;
  36. /// Open Write-only
  37. const O_WRONLY = 1;
  38. /// Open read/write
  39. const O_RDWR = 2;
  40. /// Mask for file access modes
  41. const O_ACCMODE = 00000003;
  42. /* Bits OR'd into the second argument to open. */
  43. /// Create file if it does not exist
  44. const O_CREAT = 00000100;
  45. /// Fail if file already exists
  46. const O_EXCL = 00000200;
  47. /// Do not assign controlling terminal
  48. const O_NOCTTY = 00000400;
  49. /// 文件存在且是普通文件,并以O_RDWR或O_WRONLY打开,则它会被清空
  50. const O_TRUNC = 00001000;
  51. /// 文件指针会被移动到文件末尾
  52. const O_APPEND = 00002000;
  53. /// 非阻塞式IO模式
  54. const O_NONBLOCK = 00004000;
  55. /// used to be O_SYNC, see below
  56. const O_DSYNC = 00010000;
  57. /// fcntl, for BSD compatibility
  58. const FASYNC = 00020000;
  59. /* direct disk access hint */
  60. const O_DIRECT = 00040000;
  61. const O_LARGEFILE = 00100000;
  62. /// 打开的必须是一个目录
  63. const O_DIRECTORY = 00200000;
  64. /// Do not follow symbolic links
  65. const O_NOFOLLOW = 00400000;
  66. const O_NOATIME = 01000000;
  67. /// set close_on_exec
  68. const O_CLOEXEC = 02000000;
  69. }
  70. }
  71. /// @brief 抽象文件结构体
  72. #[derive(Debug, Clone)]
  73. pub struct File {
  74. inode: Arc<dyn IndexNode>,
  75. /// 对于文件,表示字节偏移量;对于文件夹,表示当前操作的子目录项偏移量
  76. offset: usize,
  77. /// 文件的打开模式
  78. mode: FileMode,
  79. /// 文件类型
  80. file_type: FileType,
  81. /// readdir时候用的,暂存的本次循环中,所有子目录项的名字的数组
  82. readdir_subdirs_name: Vec<String>,
  83. pub private_data: FilePrivateData,
  84. }
  85. impl File {
  86. /// @brief 创建一个新的文件对象
  87. ///
  88. /// @param inode 文件对象对应的inode
  89. /// @param mode 文件的打开模式
  90. pub fn new(inode: Arc<dyn IndexNode>, mode: FileMode) -> Result<Self, i32> {
  91. let file_type: FileType = inode.metadata()?.file_type;
  92. let mut f = File {
  93. inode,
  94. offset: 0,
  95. mode,
  96. file_type,
  97. readdir_subdirs_name: Vec::new(),
  98. private_data: FilePrivateData::default(),
  99. };
  100. // kdebug!("inode:{:?}",f.inode);
  101. f.inode.open(&mut f.private_data)?;
  102. return Ok(f);
  103. }
  104. /// @brief 从文件中读取指定的字节数到buffer中
  105. ///
  106. /// @param len 要读取的字节数
  107. /// @param buf 目标buffer
  108. ///
  109. /// @return Ok(usize) 成功读取的字节数
  110. /// @return Err(i32) 错误码
  111. pub fn read(&mut self, len: usize, buf: &mut [u8]) -> Result<usize, i32> {
  112. // 先检查本文件在权限等规则下,是否可读取。
  113. self.readable()?;
  114. if buf.len() < len {
  115. return Err(-(ENOBUFS as i32));
  116. }
  117. let len = self
  118. .inode
  119. .read_at(self.offset, len, buf, &mut self.private_data)?;
  120. self.offset += len;
  121. return Ok(len);
  122. }
  123. /// @brief 从buffer向文件写入指定的字节数的数据
  124. ///
  125. /// @param len 要写入的字节数
  126. /// @param buf 源数据buffer
  127. ///
  128. /// @return Ok(usize) 成功写入的字节数
  129. /// @return Err(i32) 错误码
  130. pub fn write(&mut self, len: usize, buf: &[u8]) -> Result<usize, i32> {
  131. // 先检查本文件在权限等规则下,是否可写入。
  132. self.writeable()?;
  133. if buf.len() < len {
  134. return Err(-(ENOBUFS as i32));
  135. }
  136. let len = self
  137. .inode
  138. .write_at(self.offset, len, buf, &mut FilePrivateData::Unused)?;
  139. self.offset += len;
  140. return Ok(len);
  141. }
  142. /// @brief 获取文件的元数据
  143. pub fn metadata(&self) -> Result<Metadata, i32> {
  144. return self.inode.metadata();
  145. }
  146. /// @brief 根据inode号获取子目录项的名字
  147. pub fn get_entry_name(&self, ino: usize) -> Result<String, i32> {
  148. return self.inode.get_entry_name(ino);
  149. }
  150. /// @brief 调整文件操作指针的位置
  151. ///
  152. /// @param origin 调整的起始位置
  153. pub fn lseek(&mut self, origin: SeekFrom) -> Result<usize, i32> {
  154. if self.inode.metadata().unwrap().file_type == FileType::Pipe {
  155. return Err(-(ESPIPE as i32));
  156. }
  157. let pos: i64;
  158. match origin {
  159. SeekFrom::SeekSet(offset) => {
  160. pos = offset;
  161. }
  162. SeekFrom::SeekCurrent(offset) => {
  163. pos = self.offset as i64 + offset;
  164. }
  165. SeekFrom::SeekEnd(offset) => {
  166. let metadata = self.metadata()?;
  167. pos = metadata.size + offset;
  168. }
  169. SeekFrom::Invalid => {
  170. return Err(-(EINVAL as i32));
  171. }
  172. }
  173. if pos < 0 || pos > self.metadata()?.size {
  174. return Err(-(EOVERFLOW as i32));
  175. }
  176. self.offset = pos as usize;
  177. return Ok(self.offset);
  178. }
  179. /// @brief 判断当前文件是否可读
  180. #[inline]
  181. pub fn readable(&self) -> Result<(), i32> {
  182. // 暂时认为只要不是write only, 就可读
  183. if self.mode == FileMode::O_WRONLY {
  184. return Err(-(EPERM as i32));
  185. }
  186. return Ok(());
  187. }
  188. /// @brief 判断当前文件是否可写
  189. #[inline]
  190. pub fn writeable(&self) -> Result<(), i32> {
  191. // 暂时认为只要不是read only, 就可写
  192. if self.mode == FileMode::O_RDONLY {
  193. return Err(-(EPERM as i32));
  194. }
  195. return Ok(());
  196. }
  197. /// @biref 充填dirent结构体
  198. /// @return 返回dirent结构体的大小
  199. pub fn readdir(&mut self, dirent: &mut Dirent) -> Result<u64, i32> {
  200. let inode: &Arc<dyn IndexNode> = &self.inode;
  201. // 如果偏移量为0
  202. if self.offset == 0 {
  203. self.readdir_subdirs_name = inode.list()?;
  204. self.readdir_subdirs_name.sort();
  205. }
  206. // kdebug!("sub_entries={sub_entries:?}");
  207. if self.readdir_subdirs_name.is_empty() {
  208. self.offset = 0;
  209. return Ok(0);
  210. }
  211. let name: String = self.readdir_subdirs_name.remove(0);
  212. let sub_inode: Arc<dyn IndexNode> = match inode.find(&name) {
  213. Ok(i) => i,
  214. Err(e) => {
  215. kerror!("Readdir error: Failed to find sub inode, file={self:?}");
  216. return Err(e);
  217. }
  218. };
  219. let name_bytes: &[u8] = name.as_bytes();
  220. self.offset += 1;
  221. dirent.d_ino = sub_inode.metadata().unwrap().inode_id as u64;
  222. dirent.d_off = 0;
  223. dirent.d_reclen = 0;
  224. dirent.d_type = sub_inode.metadata().unwrap().file_type.get_file_type_num() as u8;
  225. // 根据posix的规定,dirent中的d_name是一个不定长的数组,因此需要unsafe来拷贝数据
  226. unsafe {
  227. let ptr = &mut dirent.d_name as *mut u8;
  228. let buf: &mut [u8] =
  229. ::core::slice::from_raw_parts_mut::<'static, u8>(ptr, name_bytes.len());
  230. buf.copy_from_slice(name_bytes);
  231. }
  232. // 计算dirent结构体的大小
  233. return Ok((name_bytes.len() + ::core::mem::size_of::<Dirent>()
  234. - ::core::mem::size_of_val(&dirent.d_name)) as u64);
  235. }
  236. pub fn inode(&self) -> Arc<dyn IndexNode> {
  237. return self.inode.clone();
  238. }
  239. }
  240. impl Drop for File {
  241. fn drop(&mut self) {
  242. let r: Result<(), i32> = self.inode.close(&mut self.private_data);
  243. // 打印错误信息
  244. if r.is_err() {
  245. kerror!(
  246. "pid: {} failed to close file: {:?}, errno={}",
  247. current_pcb().pid,
  248. self,
  249. r.unwrap_err()
  250. );
  251. }
  252. }
  253. }
  254. /// @brief pcb里面的文件描述符数组
  255. #[derive(Debug, Clone)]
  256. pub struct FileDescriptorVec {
  257. /// 当前进程打开的文件描述符
  258. pub fds: [Option<Box<File>>; FileDescriptorVec::PROCESS_MAX_FD],
  259. }
  260. impl FileDescriptorVec {
  261. pub const PROCESS_MAX_FD: usize = 32;
  262. pub fn new() -> Box<FileDescriptorVec> {
  263. // 先声明一个未初始化的数组
  264. let mut data: [MaybeUninit<Option<Box<File>>>; FileDescriptorVec::PROCESS_MAX_FD] =
  265. unsafe { MaybeUninit::uninit().assume_init() };
  266. // 逐个把每个元素初始化为None
  267. for i in 0..FileDescriptorVec::PROCESS_MAX_FD {
  268. data[i] = MaybeUninit::new(None);
  269. }
  270. // 由于一切都初始化完毕,因此将未初始化的类型强制转换为已经初始化的类型
  271. let data: [Option<Box<File>>; FileDescriptorVec::PROCESS_MAX_FD] = unsafe {
  272. core::mem::transmute::<_, [Option<Box<File>>; FileDescriptorVec::PROCESS_MAX_FD]>(data)
  273. };
  274. // 初始化文件描述符数组结构体
  275. return Box::new(FileDescriptorVec { fds: data });
  276. }
  277. /// @brief 从pcb的fds字段,获取文件描述符数组的可变引用
  278. #[inline]
  279. pub fn from_pcb(pcb: &'static process_control_block) -> Option<&'static mut FileDescriptorVec> {
  280. return unsafe { (pcb.fds as usize as *mut FileDescriptorVec).as_mut() };
  281. }
  282. /// @brief 判断文件描述符序号是否合法
  283. ///
  284. /// @return true 合法
  285. ///
  286. /// @return false 不合法
  287. #[inline]
  288. pub fn validate_fd(fd: i32) -> bool {
  289. if fd < 0 || fd as usize > FileDescriptorVec::PROCESS_MAX_FD {
  290. return false;
  291. } else {
  292. return true;
  293. }
  294. }
  295. }