elf.rs 32 KB

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  1. use core::{
  2. cmp::{max, min},
  3. fmt::Debug,
  4. intrinsics::{likely, unlikely},
  5. ops::Range,
  6. };
  7. use alloc::vec::Vec;
  8. use elf::{
  9. abi::{PT_GNU_PROPERTY, PT_INTERP},
  10. endian::AnyEndian,
  11. file::FileHeader,
  12. segment::ProgramHeader,
  13. };
  14. use system_error::SystemError;
  15. use crate::{
  16. arch::{CurrentElfArch, MMArch},
  17. driver::base::block::SeekFrom,
  18. filesystem::vfs::file::File,
  19. kerror,
  20. libs::align::page_align_up,
  21. mm::{
  22. allocator::page_frame::{PageFrameCount, VirtPageFrame},
  23. syscall::{MapFlags, ProtFlags},
  24. ucontext::InnerAddressSpace,
  25. MemoryManagementArch, VirtAddr,
  26. },
  27. process::{
  28. abi::AtType,
  29. exec::{BinaryLoader, BinaryLoaderResult, ExecError, ExecLoadMode, ExecParam},
  30. ProcessFlags, ProcessManager,
  31. },
  32. syscall::user_access::{clear_user, copy_to_user},
  33. };
  34. use super::rwlock::RwLockWriteGuard;
  35. // 存放跟架构相关的Elf属性,
  36. pub trait ElfArch: Clone + Copy + Debug {
  37. const ELF_ET_DYN_BASE: usize;
  38. const ELF_PAGE_SIZE: usize;
  39. }
  40. #[derive(Debug)]
  41. pub struct ElfLoader;
  42. pub const ELF_LOADER: ElfLoader = ElfLoader::new();
  43. impl ElfLoader {
  44. /// 读取文件的缓冲区大小
  45. pub const FILE_READ_BUF_SIZE: usize = 512 * 1024;
  46. pub const fn new() -> Self {
  47. Self
  48. }
  49. fn inner_probe_common(
  50. &self,
  51. param: &ExecParam,
  52. ehdr: &FileHeader<AnyEndian>,
  53. ) -> Result<(), ExecError> {
  54. // 只支持 64 位的 ELF 文件
  55. if ehdr.class != elf::file::Class::ELF64 {
  56. return Err(ExecError::WrongArchitecture);
  57. }
  58. // 判断是否以可执行文件的形式加载
  59. if param.load_mode() == ExecLoadMode::Exec {
  60. // 检查文件类型是否为可执行文件
  61. if ElfType::from(ehdr.e_type) != ElfType::Executable
  62. && ElfType::from(ehdr.e_type) != ElfType::DSO
  63. {
  64. return Err(ExecError::NotExecutable);
  65. }
  66. } else {
  67. return Err(ExecError::NotSupported);
  68. }
  69. return Ok(());
  70. }
  71. #[cfg(target_arch = "x86_64")]
  72. pub fn probe_x86_64(
  73. &self,
  74. param: &ExecParam,
  75. ehdr: &FileHeader<AnyEndian>,
  76. ) -> Result<(), ExecError> {
  77. // 判断架构是否匹配
  78. if ElfMachine::from(ehdr.e_machine) != ElfMachine::X86_64 {
  79. return Err(ExecError::WrongArchitecture);
  80. }
  81. return self.inner_probe_common(param, ehdr);
  82. }
  83. #[cfg(target_arch = "riscv64")]
  84. pub fn probe_riscv(
  85. &self,
  86. param: &ExecParam,
  87. ehdr: &FileHeader<AnyEndian>,
  88. ) -> Result<(), ExecError> {
  89. // 判断架构是否匹配
  90. if ElfMachine::from(ehdr.e_machine) != ElfMachine::RiscV {
  91. return Err(ExecError::WrongArchitecture);
  92. }
  93. return self.inner_probe_common(param, ehdr);
  94. }
  95. /// 设置用户堆空间,映射[start, end)区间的虚拟地址,并把brk指针指向end
  96. ///
  97. /// ## 参数
  98. ///
  99. /// - `user_vm_guard` - 用户虚拟地址空间
  100. /// - `start` - 本次映射的起始地址
  101. /// - `end` - 本次映射的结束地址(不包含)
  102. /// - `prot_flags` - 本次映射的权限
  103. fn set_elf_brk(
  104. &self,
  105. user_vm_guard: &mut RwLockWriteGuard<'_, InnerAddressSpace>,
  106. start: VirtAddr,
  107. end: VirtAddr,
  108. prot_flags: ProtFlags,
  109. ) -> Result<(), ExecError> {
  110. let start = self.elf_page_start(start);
  111. let end = self.elf_page_align_up(end);
  112. if end > start {
  113. let r = user_vm_guard.map_anonymous(
  114. start,
  115. end - start,
  116. prot_flags,
  117. MapFlags::MAP_ANONYMOUS | MapFlags::MAP_FIXED_NOREPLACE,
  118. false,
  119. );
  120. if r.is_err() {
  121. kerror!("set_elf_brk: map_anonymous failed, err={:?}", r);
  122. return Err(ExecError::OutOfMemory);
  123. }
  124. }
  125. user_vm_guard.elf_brk_start = end;
  126. user_vm_guard.elf_brk = end;
  127. return Ok(());
  128. }
  129. /// 计算addr在ELF PAGE内的偏移
  130. fn elf_page_offset(&self, addr: VirtAddr) -> usize {
  131. addr.data() & (CurrentElfArch::ELF_PAGE_SIZE - 1)
  132. }
  133. fn elf_page_start(&self, addr: VirtAddr) -> VirtAddr {
  134. VirtAddr::new(addr.data() & (!(CurrentElfArch::ELF_PAGE_SIZE - 1)))
  135. }
  136. fn elf_page_align_up(&self, addr: VirtAddr) -> VirtAddr {
  137. VirtAddr::new(
  138. (addr.data() + CurrentElfArch::ELF_PAGE_SIZE - 1)
  139. & (!(CurrentElfArch::ELF_PAGE_SIZE - 1)),
  140. )
  141. }
  142. /// 根据ELF的p_flags生成对应的ProtFlags
  143. fn make_prot(&self, p_flags: u32, _has_interpreter: bool, _is_interpreter: bool) -> ProtFlags {
  144. let mut prot = ProtFlags::empty();
  145. if p_flags & elf::abi::PF_R != 0 {
  146. prot |= ProtFlags::PROT_READ;
  147. }
  148. if p_flags & elf::abi::PF_W != 0 {
  149. prot |= ProtFlags::PROT_WRITE;
  150. }
  151. if p_flags & elf::abi::PF_X != 0 {
  152. prot |= ProtFlags::PROT_EXEC;
  153. }
  154. // todo: 增加与架构相关的处理
  155. // ref: https://code.dragonos.org.cn/xref/linux-5.19.10/fs/binfmt_elf.c?r=&mo=22652&fi=824#572
  156. return prot;
  157. }
  158. /// 加载ELF文件到用户空间
  159. ///
  160. /// 参考Linux的elf_map函数
  161. /// https://code.dragonos.org.cn/xref/linux-5.19.10/fs/binfmt_elf.c?r=&mo=22652&fi=824#365
  162. /// ## 参数
  163. ///
  164. /// - `user_vm_guard`:用户空间地址空间
  165. /// - `param`:执行参数
  166. /// - `phent`:ELF文件的ProgramHeader
  167. /// - `addr_to_map`:当前段应该被加载到的内存地址
  168. /// - `prot`:保护标志
  169. /// - `map_flags`:映射标志
  170. /// - `total_size`:ELF文件的总大小
  171. ///
  172. /// ## 返回值
  173. ///
  174. /// - `Ok((VirtAddr, bool))`:如果成功加载,则bool值为true,否则为false. VirtAddr为加载的地址
  175. fn load_elf_segment(
  176. &self,
  177. user_vm_guard: &mut RwLockWriteGuard<'_, InnerAddressSpace>,
  178. param: &mut ExecParam,
  179. phent: &ProgramHeader,
  180. mut addr_to_map: VirtAddr,
  181. prot: &ProtFlags,
  182. map_flags: &MapFlags,
  183. total_size: usize,
  184. ) -> Result<(VirtAddr, bool), SystemError> {
  185. // kdebug!("load_elf_segment: addr_to_map={:?}", addr_to_map);
  186. // 映射位置的偏移量(页内偏移)
  187. let beginning_page_offset = self.elf_page_offset(addr_to_map);
  188. addr_to_map = self.elf_page_start(addr_to_map);
  189. // 计算要映射的内存的大小
  190. let map_size = phent.p_filesz as usize + beginning_page_offset;
  191. let map_size = self.elf_page_align_up(VirtAddr::new(map_size)).data();
  192. // 当前段在文件中的大小
  193. let seg_in_file_size = phent.p_filesz as usize;
  194. // 当前段在文件中的偏移量
  195. let file_offset = phent.p_offset as usize;
  196. // 如果当前段的大小为0,则直接返回.
  197. // 段在文件中的大小为0,是合法的,但是段在内存中的大小不能为0
  198. if map_size == 0 {
  199. return Ok((addr_to_map, true));
  200. }
  201. let map_err_handler = |err: SystemError| {
  202. if err == SystemError::EEXIST {
  203. kerror!(
  204. "Pid: {:?}, elf segment at {:p} overlaps with existing mapping",
  205. ProcessManager::current_pcb().pid(),
  206. addr_to_map.as_ptr::<u8>()
  207. );
  208. }
  209. err
  210. };
  211. // 由于后面需要把ELF文件的内容加载到内存,因此暂时把当前段的权限设置为可写
  212. let tmp_prot = if !prot.contains(ProtFlags::PROT_WRITE) {
  213. *prot | ProtFlags::PROT_WRITE
  214. } else {
  215. *prot
  216. };
  217. // 映射到的虚拟地址。请注意,这个虚拟地址是user_vm_guard这个地址空间的虚拟地址。不一定是当前进程地址空间的
  218. let map_addr: VirtAddr;
  219. // total_size is the size of the ELF (interpreter) image.
  220. // The _first_ mmap needs to know the full size, otherwise
  221. // randomization might put this image into an overlapping
  222. // position with the ELF binary image. (since size < total_size)
  223. // So we first map the 'big' image - and unmap the remainder at
  224. // the end. (which unmap is needed for ELF images with holes.)
  225. if total_size != 0 {
  226. let total_size = self.elf_page_align_up(VirtAddr::new(total_size)).data();
  227. // kdebug!("total_size={}", total_size);
  228. map_addr = user_vm_guard
  229. .map_anonymous(addr_to_map, total_size, tmp_prot, *map_flags, false)
  230. .map_err(map_err_handler)?
  231. .virt_address();
  232. // kdebug!("map ok: addr_to_map={:?}", addr_to_map);
  233. let to_unmap = map_addr + map_size;
  234. let to_unmap_size = total_size - map_size;
  235. // kdebug!("to_unmap={:?}, to_unmap_size={}", to_unmap, to_unmap_size);
  236. user_vm_guard.munmap(
  237. VirtPageFrame::new(to_unmap),
  238. PageFrameCount::from_bytes(to_unmap_size).unwrap(),
  239. )?;
  240. // 加载文件到内存
  241. self.do_load_file(
  242. map_addr + beginning_page_offset,
  243. seg_in_file_size,
  244. file_offset,
  245. param,
  246. )?;
  247. if tmp_prot != *prot {
  248. user_vm_guard.mprotect(
  249. VirtPageFrame::new(map_addr),
  250. PageFrameCount::from_bytes(page_align_up(map_size)).unwrap(),
  251. *prot,
  252. )?;
  253. }
  254. } else {
  255. // kdebug!("total size = 0");
  256. map_addr = user_vm_guard
  257. .map_anonymous(addr_to_map, map_size, tmp_prot, *map_flags, false)?
  258. .virt_address();
  259. // kdebug!(
  260. // "map ok: addr_to_map={:?}, map_addr={map_addr:?},beginning_page_offset={beginning_page_offset:?}",
  261. // addr_to_map
  262. // );
  263. // 加载文件到内存
  264. self.do_load_file(
  265. map_addr + beginning_page_offset,
  266. seg_in_file_size,
  267. file_offset,
  268. param,
  269. )?;
  270. if tmp_prot != *prot {
  271. user_vm_guard.mprotect(
  272. VirtPageFrame::new(map_addr),
  273. PageFrameCount::from_bytes(page_align_up(map_size)).unwrap(),
  274. *prot,
  275. )?;
  276. }
  277. }
  278. // kdebug!("load_elf_segment OK: map_addr={:?}", map_addr);
  279. return Ok((map_addr, true));
  280. }
  281. /// 加载ELF文件到用户空间
  282. ///
  283. /// ## 参数
  284. ///
  285. /// - `vaddr`:要加载到的虚拟地址
  286. /// - `size`:要加载的大小
  287. /// - `offset_in_file`:在文件内的偏移量
  288. /// - `param`:执行参数
  289. fn do_load_file(
  290. &self,
  291. mut vaddr: VirtAddr,
  292. size: usize,
  293. offset_in_file: usize,
  294. param: &mut ExecParam,
  295. ) -> Result<(), SystemError> {
  296. let file = param.file_mut();
  297. if (file.metadata()?.size as usize) < offset_in_file + size {
  298. return Err(SystemError::ENOEXEC);
  299. }
  300. let buf_size = min(size, Self::FILE_READ_BUF_SIZE);
  301. let mut buf = vec![0u8; buf_size];
  302. let mut remain = size;
  303. file.lseek(SeekFrom::SeekSet(offset_in_file as i64))?;
  304. while remain > 0 {
  305. let read_size = min(remain, buf_size);
  306. file.read(read_size, &mut buf[..read_size])?;
  307. // kdebug!("copy_to_user: vaddr={:?}, read_size = {read_size}", vaddr);
  308. unsafe {
  309. copy_to_user(vaddr, &buf[..read_size]).map_err(|_| SystemError::EFAULT)?;
  310. }
  311. vaddr += read_size;
  312. remain -= read_size;
  313. }
  314. return Ok(());
  315. }
  316. /// 我们需要显式的把数据段之后剩余的内存页都清零。
  317. fn pad_zero(&self, elf_bss: VirtAddr) -> Result<(), SystemError> {
  318. let nbyte = self.elf_page_offset(elf_bss);
  319. if nbyte > 0 {
  320. let nbyte = CurrentElfArch::ELF_PAGE_SIZE - nbyte;
  321. unsafe { clear_user(elf_bss, nbyte).map_err(|_| SystemError::EFAULT) }?;
  322. }
  323. return Ok(());
  324. }
  325. /// 创建auxv
  326. ///
  327. /// ## 参数
  328. ///
  329. /// - `param`:执行参数
  330. /// - `entrypoint_vaddr`:程序入口地址
  331. /// - `phdr_vaddr`:程序头表地址
  332. /// - `elf_header`:ELF文件头
  333. fn create_auxv(
  334. &self,
  335. param: &mut ExecParam,
  336. entrypoint_vaddr: VirtAddr,
  337. phdr_vaddr: Option<VirtAddr>,
  338. ehdr: &elf::file::FileHeader<AnyEndian>,
  339. ) -> Result<(), ExecError> {
  340. let phdr_vaddr = phdr_vaddr.unwrap_or(VirtAddr::new(0));
  341. let init_info = param.init_info_mut();
  342. init_info
  343. .auxv
  344. .insert(AtType::PhEnt as u8, ehdr.e_phentsize as usize);
  345. init_info
  346. .auxv
  347. .insert(AtType::PageSize as u8, MMArch::PAGE_SIZE);
  348. init_info.auxv.insert(AtType::Phdr as u8, phdr_vaddr.data());
  349. init_info
  350. .auxv
  351. .insert(AtType::PhNum as u8, ehdr.e_phnum as usize);
  352. init_info
  353. .auxv
  354. .insert(AtType::Entry as u8, entrypoint_vaddr.data());
  355. return Ok(());
  356. }
  357. /// 解析文件的ehdr
  358. fn parse_ehdr(data: &[u8]) -> Result<FileHeader<AnyEndian>, elf::ParseError> {
  359. let ident_buf = data.get_bytes(0..elf::abi::EI_NIDENT)?;
  360. let ident = elf::file::parse_ident::<AnyEndian>(ident_buf)?;
  361. let tail_start = elf::abi::EI_NIDENT;
  362. let tail_end = match ident.1 {
  363. elf::file::Class::ELF32 => tail_start + elf::file::ELF32_EHDR_TAILSIZE,
  364. elf::file::Class::ELF64 => tail_start + elf::file::ELF64_EHDR_TAILSIZE,
  365. };
  366. let tail_buf = data.get_bytes(tail_start..tail_end)?;
  367. let ehdr: FileHeader<_> = FileHeader::parse_tail(ident, tail_buf)?;
  368. return Ok(ehdr);
  369. }
  370. /// 解析文件的program header table
  371. ///
  372. /// ## 参数
  373. ///
  374. /// - `param`:执行参数
  375. /// - `ehdr`:文件头
  376. /// - `data_buf`:用于缓存SegmentTable的Vec。
  377. /// 这是因为SegmentTable的生命周期与data_buf一致。初始化这个Vec的大小为0即可。
  378. ///
  379. /// ## 说明
  380. ///
  381. /// 这个函数由elf库的`elf::elf_bytes::find_phdrs`修改而来。
  382. fn parse_segments<'a>(
  383. param: &mut ExecParam,
  384. ehdr: &FileHeader<AnyEndian>,
  385. data_buf: &'a mut Vec<u8>,
  386. ) -> Result<Option<elf::segment::SegmentTable<'a, AnyEndian>>, elf::ParseError> {
  387. // It's Ok to have no program headers
  388. if ehdr.e_phoff == 0 {
  389. return Ok(None);
  390. }
  391. let file = param.file_mut();
  392. // If the number of segments is greater than or equal to PN_XNUM (0xffff),
  393. // e_phnum is set to PN_XNUM, and the actual number of program header table
  394. // entries is contained in the sh_info field of the section header at index 0.
  395. let mut phnum = ehdr.e_phnum as usize;
  396. if phnum == elf::abi::PN_XNUM as usize {
  397. let shoff: usize = ehdr.e_shoff.try_into()?;
  398. // 从磁盘读取shdr的前2个entry
  399. file.lseek(SeekFrom::SeekSet(shoff as i64))
  400. .map_err(|_| elf::ParseError::BadOffset(shoff as u64))?;
  401. let shdr_buf_size = ehdr.e_shentsize * 2;
  402. let mut shdr_buf = vec![0u8; shdr_buf_size as usize];
  403. file.read(shdr_buf_size as usize, &mut shdr_buf)
  404. .map_err(|_| elf::ParseError::BadOffset(shoff as u64))?;
  405. let mut offset = 0;
  406. let shdr0 = <elf::section::SectionHeader as elf::parse::ParseAt>::parse_at(
  407. ehdr.endianness,
  408. ehdr.class,
  409. &mut offset,
  410. &shdr_buf,
  411. )?;
  412. phnum = shdr0.sh_info.try_into()?;
  413. }
  414. // Validate phentsize before trying to read the table so that we can error early for corrupted files
  415. let entsize = <ProgramHeader as elf::parse::ParseAt>::validate_entsize(
  416. ehdr.class,
  417. ehdr.e_phentsize as usize,
  418. )?;
  419. let phoff: usize = ehdr.e_phoff.try_into()?;
  420. let size = entsize
  421. .checked_mul(phnum)
  422. .ok_or(elf::ParseError::IntegerOverflow)?;
  423. phoff
  424. .checked_add(size)
  425. .ok_or(elf::ParseError::IntegerOverflow)?;
  426. // 读取program header table
  427. file.lseek(SeekFrom::SeekSet(phoff as i64))
  428. .map_err(|_| elf::ParseError::BadOffset(phoff as u64))?;
  429. data_buf.clear();
  430. data_buf.resize(size, 0);
  431. file.read(size, data_buf)
  432. .expect("read program header table failed");
  433. let buf = data_buf.get_bytes(0..size)?;
  434. return Ok(Some(elf::segment::SegmentTable::new(
  435. ehdr.endianness,
  436. ehdr.class,
  437. buf,
  438. )));
  439. }
  440. // 解析 PT_GNU_PROPERTY 类型的段
  441. // 参照 https://code.dragonos.org.cn/xref/linux-6.1.9/fs/binfmt_elf.c#767
  442. fn parse_gnu_property() -> Result<(), ExecError> {
  443. return Ok(());
  444. }
  445. }
  446. impl BinaryLoader for ElfLoader {
  447. fn probe(self: &'static Self, param: &ExecParam, buf: &[u8]) -> Result<(), ExecError> {
  448. // let elf_bytes =
  449. // ElfBytes::<AnyEndian>::minimal_parse(buf).map_err(|_| ExecError::NotExecutable)?;
  450. let ehdr = Self::parse_ehdr(buf).map_err(|_| ExecError::NotExecutable)?;
  451. #[cfg(target_arch = "x86_64")]
  452. return self.probe_x86_64(param, &ehdr);
  453. #[cfg(target_arch = "riscv64")]
  454. return self.probe_riscv(param, &ehdr);
  455. #[cfg(not(any(target_arch = "x86_64", target_arch = "riscv64")))]
  456. compile_error!("BinaryLoader: Unsupported architecture");
  457. }
  458. fn load(
  459. self: &'static Self,
  460. param: &mut ExecParam,
  461. head_buf: &[u8],
  462. ) -> Result<BinaryLoaderResult, ExecError> {
  463. // 解析elf文件头
  464. let ehdr = Self::parse_ehdr(head_buf).map_err(|_| ExecError::NotExecutable)?;
  465. // 参考linux-5.19的load_elf_binary函数
  466. // https://code.dragonos.org.cn/xref/linux-5.19.10/fs/binfmt_elf.c?r=&mo=22652&fi=824#1034
  467. let elf_type = ElfType::from(ehdr.e_type);
  468. // kdebug!("ehdr = {:?}", ehdr);
  469. let binding = param.vm().clone();
  470. let mut user_vm = binding.write();
  471. // todo: 增加对user stack上的内存是否具有可执行权限的处理(方法:寻找phdr里面的PT_GNU_STACK段)
  472. // kdebug!("to parse segments");
  473. // 加载ELF文件并映射到用户空间
  474. let mut phdr_buf = Vec::new();
  475. let phdr_table = Self::parse_segments(param, &ehdr, &mut phdr_buf)
  476. .map_err(|_| ExecError::ParseError)?
  477. .ok_or(ExecError::ParseError)?;
  478. let mut _gnu_property_data: Option<ProgramHeader> = None;
  479. let interpreter: Option<File> = None;
  480. for seg in phdr_table {
  481. if seg.p_type == PT_GNU_PROPERTY {
  482. _gnu_property_data = Some(seg.clone());
  483. continue;
  484. }
  485. if seg.p_type != PT_INTERP {
  486. continue;
  487. }
  488. // 接下来处理这个 .interpreter 段以及动态链接器
  489. // 参考 https://code.dragonos.org.cn/xref/linux-6.1.9/fs/binfmt_elf.c#881
  490. if seg.p_filesz > 4096 || seg.p_filesz < 2 {
  491. return Err(ExecError::NotExecutable);
  492. }
  493. let interpreter_ptr = unsafe {
  494. core::slice::from_raw_parts(
  495. seg.p_offset as *const u8,
  496. seg.p_filesz.try_into().unwrap(),
  497. )
  498. };
  499. let _interpreter_path = core::str::from_utf8(interpreter_ptr).map_err(|e| {
  500. ExecError::Other(format!(
  501. "Failed to parse the path of dynamic linker with error {}",
  502. e
  503. ))
  504. })?;
  505. //TODO 加入对动态链接器的加载,参照 https://code.dragonos.org.cn/xref/linux-6.1.9/fs/binfmt_elf.c#890
  506. }
  507. if interpreter.is_some() {
  508. /* Some simple consistency checks for the interpreter */
  509. // 参考 https://code.dragonos.org.cn/xref/linux-6.1.9/fs/binfmt_elf.c#950
  510. }
  511. Self::parse_gnu_property()?;
  512. // kdebug!("loadable_sections = {:?}", loadable_sections);
  513. let mut elf_brk = VirtAddr::new(0);
  514. let mut elf_bss = VirtAddr::new(0);
  515. let mut start_code: Option<VirtAddr> = None;
  516. let mut end_code: Option<VirtAddr> = None;
  517. let mut start_data: Option<VirtAddr> = None;
  518. let mut end_data: Option<VirtAddr> = None;
  519. // 加载的时候的偏移量(这个偏移量在加载动态链接段的时候产生)
  520. let mut load_bias = 0usize;
  521. let mut bss_prot_flags = ProtFlags::empty();
  522. // 是否是第一个加载的段
  523. let mut first_pt_load = true;
  524. // program header的虚拟地址
  525. let mut phdr_vaddr: Option<VirtAddr> = None;
  526. let mut _reloc_func_desc = 0usize;
  527. // 参考https://code.dragonos.org.cn/xref/linux-6.1.9/fs/binfmt_elf.c#1158,获取要加载的total_size
  528. let mut has_load = false;
  529. let mut min_address = VirtAddr::new(usize::MAX);
  530. let mut max_address = VirtAddr::new(0usize);
  531. let loadable_sections = phdr_table
  532. .into_iter()
  533. .filter(|seg| seg.p_type == elf::abi::PT_LOAD);
  534. for seg_to_load in loadable_sections {
  535. min_address = min(
  536. min_address,
  537. self.elf_page_start(VirtAddr::new(seg_to_load.p_vaddr.try_into().unwrap())),
  538. );
  539. max_address = max(
  540. max_address,
  541. VirtAddr::new(
  542. (seg_to_load.p_vaddr + seg_to_load.p_memsz)
  543. .try_into()
  544. .unwrap(),
  545. ),
  546. );
  547. has_load = true;
  548. }
  549. let total_size = if has_load {
  550. max_address - min_address
  551. } else {
  552. 0
  553. };
  554. let loadable_sections = phdr_table
  555. .into_iter()
  556. .filter(|seg| seg.p_type == elf::abi::PT_LOAD);
  557. for seg_to_load in loadable_sections {
  558. // kdebug!("seg_to_load = {:?}", seg_to_load);
  559. if unlikely(elf_brk > elf_bss) {
  560. // kdebug!(
  561. // "to set brk, elf_brk = {:?}, elf_bss = {:?}",
  562. // elf_brk,
  563. // elf_bss
  564. // );
  565. self.set_elf_brk(
  566. &mut user_vm,
  567. elf_bss + load_bias,
  568. elf_brk + load_bias,
  569. bss_prot_flags,
  570. )?;
  571. let nbyte = self.elf_page_offset(elf_bss);
  572. if nbyte > 0 {
  573. let nbyte = min(CurrentElfArch::ELF_PAGE_SIZE - nbyte, elf_brk - elf_bss);
  574. unsafe {
  575. // This bss-zeroing can fail if the ELF file specifies odd protections.
  576. // So we don't check the return value.
  577. clear_user(elf_bss + load_bias, nbyte).ok();
  578. }
  579. }
  580. }
  581. // 生成ProtFlags.
  582. let elf_prot_flags = self.make_prot(seg_to_load.p_flags, interpreter.is_some(), false);
  583. let mut elf_map_flags = MapFlags::MAP_PRIVATE;
  584. let vaddr = VirtAddr::new(seg_to_load.p_vaddr.try_into().unwrap());
  585. if !first_pt_load {
  586. elf_map_flags.insert(MapFlags::MAP_FIXED_NOREPLACE);
  587. } else if elf_type == ElfType::Executable {
  588. /*
  589. * This logic is run once for the first LOAD Program
  590. * Header for ET_EXEC binaries. No special handling
  591. * is needed.
  592. */
  593. elf_map_flags.insert(MapFlags::MAP_FIXED_NOREPLACE);
  594. } else if elf_type == ElfType::DSO {
  595. // TODO: 支持动态链接
  596. if interpreter.is_some() {
  597. load_bias = CurrentElfArch::ELF_ET_DYN_BASE;
  598. if ProcessManager::current_pcb()
  599. .flags()
  600. .contains(ProcessFlags::RANDOMIZE)
  601. {
  602. //这里x86下需要一个随机加载的方法,但是很多架构,比如Risc-V都是0,就暂时不写了
  603. } else {
  604. load_bias = 0;
  605. }
  606. }
  607. load_bias = self
  608. .elf_page_start(VirtAddr::new(
  609. load_bias - TryInto::<usize>::try_into(seg_to_load.p_vaddr).unwrap(),
  610. ))
  611. .data();
  612. if total_size == 0 {
  613. return Err(ExecError::InvalidParemeter);
  614. }
  615. }
  616. // 加载这个段到用户空间
  617. let e = self
  618. .load_elf_segment(
  619. &mut user_vm,
  620. param,
  621. &seg_to_load,
  622. vaddr + load_bias,
  623. &elf_prot_flags,
  624. &elf_map_flags,
  625. total_size,
  626. )
  627. .map_err(|e| match e {
  628. SystemError::EFAULT => ExecError::BadAddress(None),
  629. SystemError::ENOMEM => ExecError::OutOfMemory,
  630. _ => ExecError::Other(format!("load_elf_segment failed: {:?}", e)),
  631. })?;
  632. // 如果地址不对,那么就报错
  633. if !e.1 {
  634. return Err(ExecError::BadAddress(Some(e.0)));
  635. }
  636. if first_pt_load {
  637. first_pt_load = false;
  638. if elf_type == ElfType::DSO {
  639. // todo: 在这里增加对load_bias和reloc_func_desc的更新代码
  640. load_bias += e.0.data()
  641. - self
  642. .elf_page_start(VirtAddr::new(
  643. load_bias
  644. + TryInto::<usize>::try_into(seg_to_load.p_vaddr).unwrap(),
  645. ))
  646. .data();
  647. _reloc_func_desc = load_bias;
  648. }
  649. }
  650. // kdebug!("seg_to_load.p_offset={}", seg_to_load.p_offset);
  651. // kdebug!("e_phoff={}", ehdr.e_phoff);
  652. // kdebug!("seg_to_load.p_filesz={}", seg_to_load.p_filesz);
  653. // Figure out which segment in the file contains the Program Header Table,
  654. // and map to the associated virtual address.
  655. if (seg_to_load.p_offset <= ehdr.e_phoff)
  656. && (ehdr.e_phoff < (seg_to_load.p_offset + seg_to_load.p_filesz))
  657. {
  658. phdr_vaddr = Some(VirtAddr::new(
  659. (ehdr.e_phoff - seg_to_load.p_offset + seg_to_load.p_vaddr) as usize,
  660. ));
  661. }
  662. let p_vaddr = VirtAddr::new(seg_to_load.p_vaddr as usize);
  663. if (seg_to_load.p_flags & elf::abi::PF_X) != 0 {
  664. if start_code.is_none() || start_code.as_ref().unwrap() > &p_vaddr {
  665. start_code = Some(p_vaddr);
  666. }
  667. }
  668. if start_data.is_none()
  669. || (start_data.is_some() && start_data.as_ref().unwrap() > &p_vaddr)
  670. {
  671. start_data = Some(p_vaddr);
  672. }
  673. // 如果程序段要加载的目标地址不在用户空间内,或者是其他不合法的情况,那么就报错
  674. if !p_vaddr.check_user()
  675. || seg_to_load.p_filesz > seg_to_load.p_memsz
  676. || self.elf_page_align_up(p_vaddr + seg_to_load.p_memsz as usize)
  677. >= MMArch::USER_END_VADDR
  678. {
  679. // kdebug!("ERR: p_vaddr={p_vaddr:?}");
  680. return Err(ExecError::InvalidParemeter);
  681. }
  682. // end vaddr of this segment(code+data+bss)
  683. let seg_end_vaddr_f = self.elf_page_align_up(VirtAddr::new(
  684. (seg_to_load.p_vaddr + seg_to_load.p_filesz) as usize,
  685. ));
  686. if seg_end_vaddr_f > elf_bss {
  687. elf_bss = seg_end_vaddr_f;
  688. }
  689. if ((seg_to_load.p_flags & elf::abi::PF_X) != 0)
  690. && (end_code.is_none()
  691. || (end_code.is_some() && end_code.as_ref().unwrap() < &seg_end_vaddr_f))
  692. {
  693. end_code = Some(seg_end_vaddr_f);
  694. }
  695. if end_data.is_none()
  696. || (end_data.is_some() && end_data.as_ref().unwrap() < &seg_end_vaddr_f)
  697. {
  698. end_data = Some(seg_end_vaddr_f);
  699. }
  700. let seg_end_vaddr = VirtAddr::new((seg_to_load.p_vaddr + seg_to_load.p_memsz) as usize);
  701. if seg_end_vaddr > elf_brk {
  702. bss_prot_flags = elf_prot_flags;
  703. elf_brk = seg_end_vaddr;
  704. }
  705. }
  706. // kdebug!("elf load: phdr_vaddr={phdr_vaddr:?}");
  707. let program_entrypoint = VirtAddr::new(ehdr.e_entry as usize + load_bias);
  708. let phdr_vaddr = if phdr_vaddr.is_some() {
  709. Some(phdr_vaddr.unwrap() + load_bias)
  710. } else {
  711. None
  712. };
  713. elf_bss += load_bias;
  714. elf_brk += load_bias;
  715. start_code = start_code.map(|v| v + load_bias);
  716. end_code = end_code.map(|v| v + load_bias);
  717. start_data = start_data.map(|v| v + load_bias);
  718. end_data = end_data.map(|v| v + load_bias);
  719. // kdebug!(
  720. // "to set brk: elf_bss: {:?}, elf_brk: {:?}, bss_prot_flags: {:?}",
  721. // elf_bss,
  722. // elf_brk,
  723. // bss_prot_flags
  724. // );
  725. self.set_elf_brk(&mut user_vm, elf_bss, elf_brk, bss_prot_flags)?;
  726. if likely(elf_bss != elf_brk) && unlikely(self.pad_zero(elf_bss).is_err()) {
  727. // kdebug!("elf_bss = {elf_bss:?}, elf_brk = {elf_brk:?}");
  728. return Err(ExecError::BadAddress(Some(elf_bss)));
  729. }
  730. if interpreter.is_some() {
  731. // TODO 添加对动态加载器的处理
  732. // 参考 https://code.dragonos.org.cn/xref/linux-6.1.9/fs/binfmt_elf.c#1249
  733. }
  734. // kdebug!("to create auxv");
  735. self.create_auxv(param, program_entrypoint, phdr_vaddr, &ehdr)?;
  736. // kdebug!("auxv create ok");
  737. user_vm.start_code = start_code.unwrap_or(VirtAddr::new(0));
  738. user_vm.end_code = end_code.unwrap_or(VirtAddr::new(0));
  739. user_vm.start_data = start_data.unwrap_or(VirtAddr::new(0));
  740. user_vm.end_data = end_data.unwrap_or(VirtAddr::new(0));
  741. let result = BinaryLoaderResult::new(program_entrypoint);
  742. // kdebug!("elf load OK!!!");
  743. return Ok(result);
  744. }
  745. }
  746. /// Elf机器架构,对应于e_machine字段。在ABI中,以EM_开头的常量是e_machine字段的值。
  747. #[derive(Debug, Eq, PartialEq)]
  748. pub enum ElfMachine {
  749. I386,
  750. AArch32,
  751. AArch64,
  752. X86_64,
  753. RiscV,
  754. /// 龙芯架构
  755. LoongArch,
  756. /// 未知架构
  757. Unknown,
  758. }
  759. impl From<u16> for ElfMachine {
  760. fn from(machine: u16) -> Self {
  761. match machine {
  762. 0x03 => Self::I386,
  763. 0x28 => Self::AArch32,
  764. 0xb7 => Self::AArch64,
  765. 0x3e => Self::X86_64,
  766. 0xf3 => Self::RiscV,
  767. 0x102 => Self::LoongArch,
  768. // 未知架构
  769. _ => Self::Unknown,
  770. }
  771. }
  772. }
  773. /// Elf文件类型,对应于e_type字段。在ABI中,以ET_开头的常量是e_type字段的值。
  774. #[derive(Debug, Eq, PartialEq)]
  775. pub enum ElfType {
  776. /// 可重定位文件
  777. Relocatable,
  778. /// 可执行文件
  779. Executable,
  780. /// 动态链接库
  781. DSO,
  782. /// 核心转储文件
  783. Core,
  784. /// 未知类型
  785. Unknown,
  786. }
  787. impl From<u16> for ElfType {
  788. fn from(elf_type: u16) -> Self {
  789. match elf_type {
  790. 0x01 => Self::Relocatable,
  791. 0x02 => Self::Executable,
  792. 0x03 => Self::DSO,
  793. 0x04 => Self::Core,
  794. _ => Self::Unknown,
  795. }
  796. }
  797. }
  798. // Simple convenience extension trait to wrap get() with .ok_or(SliceReadError)
  799. trait ReadBytesExt<'data> {
  800. fn get_bytes(self, range: Range<usize>) -> Result<&'data [u8], elf::ParseError>;
  801. }
  802. impl<'data> ReadBytesExt<'data> for &'data [u8] {
  803. fn get_bytes(self, range: Range<usize>) -> Result<&'data [u8], elf::ParseError> {
  804. let start = range.start;
  805. let end = range.end;
  806. self.get(range)
  807. .ok_or(elf::ParseError::SliceReadError((start, end)))
  808. }
  809. }