mod.rs 29 KB

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  1. pub mod barrier;
  2. pub mod bump;
  3. pub mod fault;
  4. pub mod pkru;
  5. use alloc::sync::Arc;
  6. use alloc::vec::Vec;
  7. use hashbrown::HashSet;
  8. use log::{debug, info, warn};
  9. use x86::time::rdtsc;
  10. use x86_64::registers::model_specific::EferFlags;
  11. use crate::driver::serial::serial8250::send_to_default_serial8250_port;
  12. use crate::include::bindings::bindings::{
  13. multiboot2_get_load_base, multiboot2_get_memory, multiboot2_iter, multiboot_mmap_entry_t,
  14. multiboot_tag_load_base_addr_t,
  15. };
  16. use crate::libs::align::page_align_up;
  17. use crate::libs::lib_ui::screen_manager::scm_disable_put_to_window;
  18. use crate::libs::spinlock::SpinLock;
  19. use crate::mm::allocator::page_frame::{FrameAllocator, PageFrameCount, PageFrameUsage};
  20. use crate::mm::memblock::mem_block_manager;
  21. use crate::mm::ucontext::LockedVMA;
  22. use crate::{
  23. arch::MMArch,
  24. mm::allocator::{buddy::BuddyAllocator, bump::BumpAllocator},
  25. };
  26. use crate::mm::kernel_mapper::KernelMapper;
  27. use crate::mm::page::{EntryFlags, PageEntry, PAGE_1G_SHIFT};
  28. use crate::mm::{MemoryManagementArch, PageTableKind, PhysAddr, VirtAddr, VmFlags};
  29. use system_error::SystemError;
  30. use core::arch::asm;
  31. use core::ffi::c_void;
  32. use core::fmt::Debug;
  33. use core::mem::{self};
  34. use core::sync::atomic::{compiler_fence, AtomicBool, Ordering};
  35. use super::kvm::vmx::vmcs::VmcsFields;
  36. use super::kvm::vmx::vmx_asm_wrapper::vmx_vmread;
  37. pub type PageMapper =
  38. crate::mm::page::PageMapper<crate::arch::x86_64::mm::X86_64MMArch, LockedFrameAllocator>;
  39. /// 初始的CR3寄存器的值,用于内存管理初始化时,创建的第一个内核页表的位置
  40. static mut INITIAL_CR3_VALUE: PhysAddr = PhysAddr::new(0);
  41. static INNER_ALLOCATOR: SpinLock<Option<BuddyAllocator<MMArch>>> = SpinLock::new(None);
  42. #[derive(Clone, Copy, Debug)]
  43. pub struct X86_64MMBootstrapInfo {
  44. kernel_load_base_paddr: usize,
  45. kernel_code_start: usize,
  46. kernel_code_end: usize,
  47. kernel_data_end: usize,
  48. kernel_rodata_end: usize,
  49. start_brk: usize,
  50. }
  51. pub(super) static mut BOOTSTRAP_MM_INFO: Option<X86_64MMBootstrapInfo> = None;
  52. /// @brief X86_64的内存管理架构结构体
  53. #[derive(Debug, Clone, Copy, Hash)]
  54. pub struct X86_64MMArch;
  55. /// XD标志位是否被保留
  56. static XD_RESERVED: AtomicBool = AtomicBool::new(false);
  57. impl MemoryManagementArch for X86_64MMArch {
  58. /// X86目前支持缺页中断
  59. const PAGE_FAULT_ENABLED: bool = true;
  60. /// 4K页
  61. const PAGE_SHIFT: usize = 12;
  62. /// 每个页表项占8字节,总共有512个页表项
  63. const PAGE_ENTRY_SHIFT: usize = 9;
  64. /// 四级页表(PML4T、PDPT、PDT、PT)
  65. const PAGE_LEVELS: usize = 4;
  66. /// 页表项的有效位的index。在x86_64中,页表项的第[0, 47]位表示地址和flag,
  67. /// 第[48, 51]位表示保留。因此,有效位的index为52。
  68. /// 请注意,第63位是XD位,表示是否允许执行。
  69. const ENTRY_ADDRESS_SHIFT: usize = 52;
  70. const ENTRY_FLAG_DEFAULT_PAGE: usize = Self::ENTRY_FLAG_PRESENT;
  71. const ENTRY_FLAG_DEFAULT_TABLE: usize = Self::ENTRY_FLAG_PRESENT;
  72. const ENTRY_FLAG_PRESENT: usize = 1 << 0;
  73. const ENTRY_FLAG_READONLY: usize = 0;
  74. const ENTRY_FLAG_WRITEABLE: usize = 1 << 1;
  75. const ENTRY_FLAG_READWRITE: usize = 1 << 1;
  76. const ENTRY_FLAG_USER: usize = 1 << 2;
  77. const ENTRY_FLAG_WRITE_THROUGH: usize = 1 << 3;
  78. const ENTRY_FLAG_CACHE_DISABLE: usize = 1 << 4;
  79. const ENTRY_FLAG_NO_EXEC: usize = 1 << 63;
  80. /// x86_64不存在EXEC标志位,只有NO_EXEC(XD)标志位
  81. const ENTRY_FLAG_EXEC: usize = 0;
  82. const ENTRY_FLAG_ACCESSED: usize = 1 << 5;
  83. const ENTRY_FLAG_DIRTY: usize = 1 << 6;
  84. const ENTRY_FLAG_HUGE_PAGE: usize = 1 << 7;
  85. const ENTRY_FLAG_GLOBAL: usize = 1 << 8;
  86. /// 物理地址与虚拟地址的偏移量
  87. /// 0xffff_8000_0000_0000
  88. const PHYS_OFFSET: usize = Self::PAGE_NEGATIVE_MASK + (Self::PAGE_ADDRESS_SIZE >> 1);
  89. const KERNEL_LINK_OFFSET: usize = 0x100000;
  90. // 参考 https://code.dragonos.org.cn/xref/linux-6.1.9/arch/x86/include/asm/page_64_types.h#75
  91. const USER_END_VADDR: VirtAddr =
  92. VirtAddr::new((Self::PAGE_ADDRESS_SIZE >> 1) - Self::PAGE_SIZE);
  93. const USER_BRK_START: VirtAddr = VirtAddr::new(0x700000000000);
  94. const USER_STACK_START: VirtAddr = VirtAddr::new(0x6ffff0a00000);
  95. const FIXMAP_START_VADDR: VirtAddr = VirtAddr::new(0xffffb00000000000);
  96. /// 设置FIXMAP区域大小为1M
  97. const FIXMAP_SIZE: usize = 256 * 4096;
  98. const MMIO_BASE: VirtAddr = VirtAddr::new(0xffffa10000000000);
  99. const MMIO_SIZE: usize = 1 << PAGE_1G_SHIFT;
  100. /// @brief 获取物理内存区域
  101. unsafe fn init() {
  102. extern "C" {
  103. fn _text();
  104. fn _etext();
  105. fn _edata();
  106. fn _erodata();
  107. fn _end();
  108. }
  109. Self::init_xd_rsvd();
  110. let load_base_paddr = Self::get_load_base_paddr();
  111. let bootstrap_info = X86_64MMBootstrapInfo {
  112. kernel_load_base_paddr: load_base_paddr.data(),
  113. kernel_code_start: _text as usize,
  114. kernel_code_end: _etext as usize,
  115. kernel_data_end: _edata as usize,
  116. kernel_rodata_end: _erodata as usize,
  117. start_brk: _end as usize,
  118. };
  119. unsafe {
  120. BOOTSTRAP_MM_INFO = Some(bootstrap_info);
  121. }
  122. // 初始化物理内存区域(从multiboot2中获取)
  123. Self::init_memory_area_from_multiboot2().expect("init memory area failed");
  124. debug!("bootstrap info: {:?}", unsafe { BOOTSTRAP_MM_INFO });
  125. debug!("phys[0]=virt[0x{:x}]", unsafe {
  126. MMArch::phys_2_virt(PhysAddr::new(0)).unwrap().data()
  127. });
  128. // 初始化内存管理器
  129. unsafe { allocator_init() };
  130. send_to_default_serial8250_port("x86 64 init done\n\0".as_bytes());
  131. }
  132. /// @brief 刷新TLB中,关于指定虚拟地址的条目
  133. unsafe fn invalidate_page(address: VirtAddr) {
  134. compiler_fence(Ordering::SeqCst);
  135. asm!("invlpg [{0}]", in(reg) address.data(), options(nostack, preserves_flags));
  136. compiler_fence(Ordering::SeqCst);
  137. }
  138. /// @brief 刷新TLB中,所有的条目
  139. unsafe fn invalidate_all() {
  140. compiler_fence(Ordering::SeqCst);
  141. // 通过设置cr3寄存器,来刷新整个TLB
  142. Self::set_table(PageTableKind::User, Self::table(PageTableKind::User));
  143. compiler_fence(Ordering::SeqCst);
  144. }
  145. /// @brief 获取顶级页表的物理地址
  146. unsafe fn table(table_kind: PageTableKind) -> PhysAddr {
  147. match table_kind {
  148. PageTableKind::Kernel | PageTableKind::User => {
  149. compiler_fence(Ordering::SeqCst);
  150. let cr3 = x86::controlregs::cr3() as usize;
  151. compiler_fence(Ordering::SeqCst);
  152. return PhysAddr::new(cr3);
  153. }
  154. PageTableKind::EPT => {
  155. let eptp =
  156. vmx_vmread(VmcsFields::CTRL_EPTP_PTR as u32).expect("Failed to read eptp");
  157. return PhysAddr::new(eptp as usize);
  158. }
  159. }
  160. }
  161. /// @brief 设置顶级页表的物理地址到处理器中
  162. unsafe fn set_table(_table_kind: PageTableKind, table: PhysAddr) {
  163. compiler_fence(Ordering::SeqCst);
  164. asm!("mov cr3, {}", in(reg) table.data(), options(nostack, preserves_flags));
  165. compiler_fence(Ordering::SeqCst);
  166. }
  167. /// @brief 判断虚拟地址是否合法
  168. fn virt_is_valid(virt: VirtAddr) -> bool {
  169. return virt.is_canonical();
  170. }
  171. /// 获取内存管理初始化时,创建的第一个内核页表的地址
  172. fn initial_page_table() -> PhysAddr {
  173. unsafe {
  174. return INITIAL_CR3_VALUE;
  175. }
  176. }
  177. /// @brief 创建新的顶层页表
  178. ///
  179. /// 该函数会创建页表并复制内核的映射到新的页表中
  180. ///
  181. /// @return 新的页表
  182. fn setup_new_usermapper() -> Result<crate::mm::ucontext::UserMapper, SystemError> {
  183. let new_umapper: crate::mm::page::PageMapper<X86_64MMArch, LockedFrameAllocator> = unsafe {
  184. PageMapper::create(PageTableKind::User, LockedFrameAllocator)
  185. .ok_or(SystemError::ENOMEM)?
  186. };
  187. let current_ktable: KernelMapper = KernelMapper::lock();
  188. let copy_mapping = |pml4_entry_no| unsafe {
  189. let entry: PageEntry<X86_64MMArch> = current_ktable
  190. .table()
  191. .entry(pml4_entry_no)
  192. .unwrap_or_else(|| panic!("entry {} not found", pml4_entry_no));
  193. new_umapper.table().set_entry(pml4_entry_no, entry)
  194. };
  195. // 复制内核的映射
  196. for pml4_entry_no in MMArch::PAGE_KERNEL_INDEX..MMArch::PAGE_ENTRY_NUM {
  197. copy_mapping(pml4_entry_no);
  198. }
  199. return Ok(crate::mm::ucontext::UserMapper::new(new_umapper));
  200. }
  201. const PAGE_SIZE: usize = 1 << Self::PAGE_SHIFT;
  202. const PAGE_OFFSET_MASK: usize = Self::PAGE_SIZE - 1;
  203. const PAGE_MASK: usize = !(Self::PAGE_OFFSET_MASK);
  204. const PAGE_ADDRESS_SHIFT: usize = Self::PAGE_LEVELS * Self::PAGE_ENTRY_SHIFT + Self::PAGE_SHIFT;
  205. const PAGE_ADDRESS_SIZE: usize = 1 << Self::PAGE_ADDRESS_SHIFT;
  206. const PAGE_ADDRESS_MASK: usize = Self::PAGE_ADDRESS_SIZE - Self::PAGE_SIZE;
  207. const PAGE_ENTRY_SIZE: usize = 1 << (Self::PAGE_SHIFT - Self::PAGE_ENTRY_SHIFT);
  208. const PAGE_ENTRY_NUM: usize = 1 << Self::PAGE_ENTRY_SHIFT;
  209. const PAGE_ENTRY_MASK: usize = Self::PAGE_ENTRY_NUM - 1;
  210. const PAGE_KERNEL_INDEX: usize = (Self::PHYS_OFFSET & Self::PAGE_ADDRESS_MASK)
  211. >> (Self::PAGE_ADDRESS_SHIFT - Self::PAGE_ENTRY_SHIFT);
  212. const PAGE_NEGATIVE_MASK: usize = !((Self::PAGE_ADDRESS_SIZE) - 1);
  213. const ENTRY_ADDRESS_SIZE: usize = 1 << Self::ENTRY_ADDRESS_SHIFT;
  214. const ENTRY_ADDRESS_MASK: usize = Self::ENTRY_ADDRESS_SIZE - Self::PAGE_SIZE;
  215. const ENTRY_FLAGS_MASK: usize = !Self::ENTRY_ADDRESS_MASK;
  216. unsafe fn read<T>(address: VirtAddr) -> T {
  217. return core::ptr::read(address.data() as *const T);
  218. }
  219. unsafe fn write<T>(address: VirtAddr, value: T) {
  220. core::ptr::write(address.data() as *mut T, value);
  221. }
  222. unsafe fn write_bytes(address: VirtAddr, value: u8, count: usize) {
  223. core::ptr::write_bytes(address.data() as *mut u8, value, count);
  224. }
  225. unsafe fn phys_2_virt(phys: PhysAddr) -> Option<VirtAddr> {
  226. if let Some(vaddr) = phys.data().checked_add(Self::PHYS_OFFSET) {
  227. return Some(VirtAddr::new(vaddr));
  228. } else {
  229. return None;
  230. }
  231. }
  232. unsafe fn virt_2_phys(virt: VirtAddr) -> Option<PhysAddr> {
  233. if let Some(paddr) = virt.data().checked_sub(Self::PHYS_OFFSET) {
  234. return Some(PhysAddr::new(paddr));
  235. } else {
  236. return None;
  237. }
  238. }
  239. #[inline(always)]
  240. fn make_entry(paddr: PhysAddr, page_flags: usize) -> usize {
  241. return paddr.data() | page_flags;
  242. }
  243. fn vma_access_permitted(
  244. vma: Arc<LockedVMA>,
  245. write: bool,
  246. execute: bool,
  247. foreign: bool,
  248. ) -> bool {
  249. if execute {
  250. return true;
  251. }
  252. if foreign | vma.is_foreign() {
  253. return true;
  254. }
  255. pkru::pkru_allows_pkey(pkru::vma_pkey(vma), write)
  256. }
  257. const PROTECTION_MAP: [EntryFlags<MMArch>; 16] = protection_map();
  258. const PAGE_NONE: usize =
  259. Self::ENTRY_FLAG_PRESENT | Self::ENTRY_FLAG_ACCESSED | Self::ENTRY_FLAG_GLOBAL;
  260. const PAGE_SHARED: usize = Self::ENTRY_FLAG_PRESENT
  261. | Self::ENTRY_FLAG_READWRITE
  262. | Self::ENTRY_FLAG_USER
  263. | Self::ENTRY_FLAG_ACCESSED
  264. | Self::ENTRY_FLAG_NO_EXEC;
  265. const PAGE_SHARED_EXEC: usize = Self::ENTRY_FLAG_PRESENT
  266. | Self::ENTRY_FLAG_READWRITE
  267. | Self::ENTRY_FLAG_USER
  268. | Self::ENTRY_FLAG_ACCESSED;
  269. const PAGE_COPY_NOEXEC: usize = Self::ENTRY_FLAG_PRESENT
  270. | Self::ENTRY_FLAG_USER
  271. | Self::ENTRY_FLAG_ACCESSED
  272. | Self::ENTRY_FLAG_NO_EXEC;
  273. const PAGE_COPY_EXEC: usize =
  274. Self::ENTRY_FLAG_PRESENT | Self::ENTRY_FLAG_USER | Self::ENTRY_FLAG_ACCESSED;
  275. const PAGE_COPY: usize = Self::ENTRY_FLAG_PRESENT
  276. | Self::ENTRY_FLAG_USER
  277. | Self::ENTRY_FLAG_ACCESSED
  278. | Self::ENTRY_FLAG_NO_EXEC;
  279. const PAGE_READONLY: usize = Self::ENTRY_FLAG_PRESENT
  280. | Self::ENTRY_FLAG_USER
  281. | Self::ENTRY_FLAG_ACCESSED
  282. | Self::ENTRY_FLAG_NO_EXEC;
  283. const PAGE_READONLY_EXEC: usize =
  284. Self::ENTRY_FLAG_PRESENT | Self::ENTRY_FLAG_USER | Self::ENTRY_FLAG_ACCESSED;
  285. const PAGE_READ: usize = 0;
  286. const PAGE_READ_EXEC: usize = 0;
  287. const PAGE_WRITE: usize = 0;
  288. const PAGE_WRITE_EXEC: usize = 0;
  289. const PAGE_EXEC: usize = 0;
  290. }
  291. /// 获取保护标志的映射表
  292. ///
  293. ///
  294. /// ## 返回值
  295. /// - `[usize; 16]`: 长度为16的映射表
  296. const fn protection_map() -> [EntryFlags<MMArch>; 16] {
  297. let mut map = [unsafe { EntryFlags::from_data(0) }; 16];
  298. unsafe {
  299. map[VmFlags::VM_NONE.bits()] = EntryFlags::from_data(MMArch::PAGE_NONE);
  300. map[VmFlags::VM_READ.bits()] = EntryFlags::from_data(MMArch::PAGE_READONLY);
  301. map[VmFlags::VM_WRITE.bits()] = EntryFlags::from_data(MMArch::PAGE_COPY);
  302. map[VmFlags::VM_WRITE.bits() | VmFlags::VM_READ.bits()] =
  303. EntryFlags::from_data(MMArch::PAGE_COPY);
  304. map[VmFlags::VM_EXEC.bits()] = EntryFlags::from_data(MMArch::PAGE_READONLY_EXEC);
  305. map[VmFlags::VM_EXEC.bits() | VmFlags::VM_READ.bits()] =
  306. EntryFlags::from_data(MMArch::PAGE_READONLY_EXEC);
  307. map[VmFlags::VM_EXEC.bits() | VmFlags::VM_WRITE.bits()] =
  308. EntryFlags::from_data(MMArch::PAGE_COPY_EXEC);
  309. map[VmFlags::VM_EXEC.bits() | VmFlags::VM_WRITE.bits() | VmFlags::VM_READ.bits()] =
  310. EntryFlags::from_data(MMArch::PAGE_COPY_EXEC);
  311. map[VmFlags::VM_SHARED.bits()] = EntryFlags::from_data(MMArch::PAGE_NONE);
  312. map[VmFlags::VM_SHARED.bits() | VmFlags::VM_READ.bits()] =
  313. EntryFlags::from_data(MMArch::PAGE_READONLY);
  314. map[VmFlags::VM_SHARED.bits() | VmFlags::VM_WRITE.bits()] =
  315. EntryFlags::from_data(MMArch::PAGE_SHARED);
  316. map[VmFlags::VM_SHARED.bits() | VmFlags::VM_WRITE.bits() | VmFlags::VM_READ.bits()] =
  317. EntryFlags::from_data(MMArch::PAGE_SHARED);
  318. map[VmFlags::VM_SHARED.bits() | VmFlags::VM_EXEC.bits()] =
  319. EntryFlags::from_data(MMArch::PAGE_READONLY_EXEC);
  320. map[VmFlags::VM_SHARED.bits() | VmFlags::VM_EXEC.bits() | VmFlags::VM_READ.bits()] =
  321. EntryFlags::from_data(MMArch::PAGE_READONLY_EXEC);
  322. map[VmFlags::VM_SHARED.bits() | VmFlags::VM_EXEC.bits() | VmFlags::VM_WRITE.bits()] =
  323. EntryFlags::from_data(MMArch::PAGE_SHARED_EXEC);
  324. map[VmFlags::VM_SHARED.bits()
  325. | VmFlags::VM_EXEC.bits()
  326. | VmFlags::VM_WRITE.bits()
  327. | VmFlags::VM_READ.bits()] = EntryFlags::from_data(MMArch::PAGE_SHARED_EXEC);
  328. }
  329. // if X86_64MMArch::is_xd_reserved() {
  330. // map.iter_mut().for_each(|x| *x &= !Self::ENTRY_FLAG_NO_EXEC)
  331. // }
  332. map
  333. }
  334. impl X86_64MMArch {
  335. unsafe fn get_load_base_paddr() -> PhysAddr {
  336. let mut mb2_lb_info: [multiboot_tag_load_base_addr_t; 512] = mem::zeroed();
  337. send_to_default_serial8250_port("get_load_base_paddr begin\n\0".as_bytes());
  338. let mut mb2_count: u32 = 0;
  339. multiboot2_iter(
  340. Some(multiboot2_get_load_base),
  341. &mut mb2_lb_info as *mut [multiboot_tag_load_base_addr_t; 512] as usize as *mut c_void,
  342. &mut mb2_count,
  343. );
  344. if mb2_count == 0 {
  345. send_to_default_serial8250_port(
  346. "get_load_base_paddr mb2_count == 0, default to 1MB\n\0".as_bytes(),
  347. );
  348. return PhysAddr::new(0x100000);
  349. }
  350. let phys = mb2_lb_info[0].load_base_addr as usize;
  351. return PhysAddr::new(phys);
  352. }
  353. unsafe fn init_memory_area_from_multiboot2() -> Result<usize, SystemError> {
  354. // 这个数组用来存放内存区域的信息(从C获取)
  355. let mut mb2_mem_info: [multiboot_mmap_entry_t; 512] = mem::zeroed();
  356. send_to_default_serial8250_port("init_memory_area_from_multiboot2 begin\n\0".as_bytes());
  357. let mut mb2_count: u32 = 0;
  358. multiboot2_iter(
  359. Some(multiboot2_get_memory),
  360. &mut mb2_mem_info as *mut [multiboot_mmap_entry_t; 512] as usize as *mut c_void,
  361. &mut mb2_count,
  362. );
  363. send_to_default_serial8250_port("init_memory_area_from_multiboot2 2\n\0".as_bytes());
  364. let mb2_count = mb2_count as usize;
  365. let mut areas_count = 0usize;
  366. let mut total_mem_size = 0usize;
  367. for info_entry in mb2_mem_info.iter().take(mb2_count) {
  368. // Only use the memory area if its type is 1 (RAM)
  369. if info_entry.type_ == 1 {
  370. // Skip the memory area if its len is 0
  371. if info_entry.len == 0 {
  372. continue;
  373. }
  374. total_mem_size += info_entry.len as usize;
  375. mem_block_manager()
  376. .add_block(
  377. PhysAddr::new(info_entry.addr as usize),
  378. info_entry.len as usize,
  379. )
  380. .unwrap_or_else(|e| {
  381. warn!(
  382. "Failed to add memory block: base={:#x}, size={:#x}, error={:?}",
  383. info_entry.addr, info_entry.len, e
  384. );
  385. });
  386. areas_count += 1;
  387. }
  388. }
  389. send_to_default_serial8250_port("init_memory_area_from_multiboot2 end\n\0".as_bytes());
  390. info!("Total memory size: {} MB, total areas from multiboot2: {mb2_count}, valid areas: {areas_count}", total_mem_size / 1024 / 1024);
  391. return Ok(areas_count);
  392. }
  393. fn init_xd_rsvd() {
  394. // 读取ia32-EFER寄存器的值
  395. let efer: EferFlags = x86_64::registers::model_specific::Efer::read();
  396. if !efer.contains(EferFlags::NO_EXECUTE_ENABLE) {
  397. // NO_EXECUTE_ENABLE是false,那么就设置xd_reserved为true
  398. debug!("NO_EXECUTE_ENABLE is false, set XD_RESERVED to true");
  399. XD_RESERVED.store(true, Ordering::Relaxed);
  400. }
  401. compiler_fence(Ordering::SeqCst);
  402. }
  403. /// 判断XD标志位是否被保留
  404. pub fn is_xd_reserved() -> bool {
  405. // return XD_RESERVED.load(Ordering::Relaxed);
  406. // 由于暂时不支持execute disable,因此直接返回true
  407. // 不支持的原因是,目前好像没有能正确的设置page-level的xd位,会触发page fault
  408. return true;
  409. }
  410. }
  411. impl VirtAddr {
  412. /// @brief 判断虚拟地址是否合法
  413. #[inline(always)]
  414. pub fn is_canonical(self) -> bool {
  415. let x = self.data() & X86_64MMArch::PHYS_OFFSET;
  416. // 如果x为0,说明虚拟地址的高位为0,是合法的用户地址
  417. // 如果x为PHYS_OFFSET,说明虚拟地址的高位全为1,是合法的内核地址
  418. return x == 0 || x == X86_64MMArch::PHYS_OFFSET;
  419. }
  420. }
  421. unsafe fn allocator_init() {
  422. let virt_offset = VirtAddr::new(page_align_up(BOOTSTRAP_MM_INFO.unwrap().start_brk));
  423. let phy_offset = unsafe { MMArch::virt_2_phys(virt_offset) }.unwrap();
  424. mem_block_manager()
  425. .reserve_block(PhysAddr::new(0), phy_offset.data())
  426. .expect("Failed to reserve block");
  427. let mut bump_allocator = BumpAllocator::<X86_64MMArch>::new(phy_offset.data());
  428. debug!(
  429. "BumpAllocator created, offset={:?}",
  430. bump_allocator.offset()
  431. );
  432. // 暂存初始在head.S中指定的页表的地址,后面再考虑是否需要把它加到buddy的可用空间里面!
  433. // 现在不加的原因是,我担心会有安全漏洞问题:这些初始的页表,位于内核的数据段。如果归还到buddy,
  434. // 可能会产生一定的安全风险(有的代码可能根据虚拟地址来进行安全校验)
  435. let _old_page_table = MMArch::table(PageTableKind::Kernel);
  436. let new_page_table: PhysAddr;
  437. // 使用bump分配器,把所有的内存页都映射到页表
  438. {
  439. // 用bump allocator创建新的页表
  440. let mut mapper: crate::mm::page::PageMapper<MMArch, &mut BumpAllocator<MMArch>> =
  441. crate::mm::page::PageMapper::<MMArch, _>::create(
  442. PageTableKind::Kernel,
  443. &mut bump_allocator,
  444. )
  445. .expect("Failed to create page mapper");
  446. new_page_table = mapper.table().phys();
  447. debug!("PageMapper created");
  448. // 取消最开始时候,在head.S中指定的映射(暂时不刷新TLB)
  449. {
  450. let table = mapper.table();
  451. let empty_entry = PageEntry::<MMArch>::from_usize(0);
  452. for i in 0..MMArch::PAGE_ENTRY_NUM {
  453. table
  454. .set_entry(i, empty_entry)
  455. .expect("Failed to empty page table entry");
  456. }
  457. }
  458. debug!("Successfully emptied page table");
  459. let total_num = mem_block_manager().total_initial_memory_regions();
  460. for i in 0..total_num {
  461. let area = mem_block_manager().get_initial_memory_region(i).unwrap();
  462. // debug!("area: base={:?}, size={:#x}, end={:?}", area.base, area.size, area.base + area.size);
  463. for i in 0..((area.size + MMArch::PAGE_SIZE - 1) / MMArch::PAGE_SIZE) {
  464. let paddr = area.base.add(i * MMArch::PAGE_SIZE);
  465. let vaddr = unsafe { MMArch::phys_2_virt(paddr) }.unwrap();
  466. let flags = kernel_page_flags::<MMArch>(vaddr);
  467. let flusher = mapper
  468. .map_phys(vaddr, paddr, flags)
  469. .expect("Failed to map frame");
  470. // 暂时不刷新TLB
  471. flusher.ignore();
  472. }
  473. }
  474. }
  475. unsafe {
  476. INITIAL_CR3_VALUE = new_page_table;
  477. }
  478. debug!(
  479. "After mapping all physical memory, DragonOS used: {} KB",
  480. bump_allocator.offset() / 1024
  481. );
  482. // 初始化buddy_allocator
  483. let buddy_allocator = unsafe { BuddyAllocator::<X86_64MMArch>::new(bump_allocator).unwrap() };
  484. // 设置全局的页帧分配器
  485. unsafe { set_inner_allocator(buddy_allocator) };
  486. info!("Successfully initialized buddy allocator");
  487. // 关闭显示输出
  488. scm_disable_put_to_window();
  489. // make the new page table current
  490. {
  491. let mut binding = INNER_ALLOCATOR.lock();
  492. let mut allocator_guard = binding.as_mut().unwrap();
  493. debug!("To enable new page table.");
  494. compiler_fence(Ordering::SeqCst);
  495. let mapper = crate::mm::page::PageMapper::<MMArch, _>::new(
  496. PageTableKind::Kernel,
  497. new_page_table,
  498. &mut allocator_guard,
  499. );
  500. compiler_fence(Ordering::SeqCst);
  501. mapper.make_current();
  502. compiler_fence(Ordering::SeqCst);
  503. debug!("New page table enabled");
  504. }
  505. debug!("Successfully enabled new page table");
  506. }
  507. #[no_mangle]
  508. pub extern "C" fn rs_test_buddy() {
  509. test_buddy();
  510. }
  511. pub fn test_buddy() {
  512. // 申请内存然后写入数据然后free掉
  513. // 总共申请200MB内存
  514. const TOTAL_SIZE: usize = 200 * 1024 * 1024;
  515. for i in 0..10 {
  516. debug!("Test buddy, round: {i}");
  517. // 存放申请的内存块
  518. let mut v: Vec<(PhysAddr, PageFrameCount)> = Vec::with_capacity(60 * 1024);
  519. // 存放已经申请的内存块的地址(用于检查重复)
  520. let mut addr_set: HashSet<PhysAddr> = HashSet::new();
  521. let mut allocated = 0usize;
  522. let mut free_count = 0usize;
  523. while allocated < TOTAL_SIZE {
  524. let mut random_size = 0u64;
  525. unsafe { x86::random::rdrand64(&mut random_size) };
  526. // 一次最多申请4M
  527. random_size %= 1024 * 4096;
  528. if random_size == 0 {
  529. continue;
  530. }
  531. let random_size =
  532. core::cmp::min(page_align_up(random_size as usize), TOTAL_SIZE - allocated);
  533. let random_size = PageFrameCount::from_bytes(random_size.next_power_of_two()).unwrap();
  534. // 获取帧
  535. let (paddr, allocated_frame_count) =
  536. unsafe { LockedFrameAllocator.allocate(random_size).unwrap() };
  537. assert!(allocated_frame_count.data().is_power_of_two());
  538. assert!(paddr.data() % MMArch::PAGE_SIZE == 0);
  539. unsafe {
  540. assert!(MMArch::phys_2_virt(paddr)
  541. .as_ref()
  542. .unwrap()
  543. .check_aligned(allocated_frame_count.data() * MMArch::PAGE_SIZE));
  544. }
  545. allocated += allocated_frame_count.data() * MMArch::PAGE_SIZE;
  546. v.push((paddr, allocated_frame_count));
  547. assert!(addr_set.insert(paddr), "duplicate address: {:?}", paddr);
  548. // 写入数据
  549. let vaddr = unsafe { MMArch::phys_2_virt(paddr).unwrap() };
  550. let slice = unsafe {
  551. core::slice::from_raw_parts_mut(
  552. vaddr.data() as *mut u8,
  553. allocated_frame_count.data() * MMArch::PAGE_SIZE,
  554. )
  555. };
  556. for (i, item) in slice.iter_mut().enumerate() {
  557. *item = ((i + unsafe { rdtsc() } as usize) % 256) as u8;
  558. }
  559. // 随机释放一个内存块
  560. if !v.is_empty() {
  561. let mut random_index = 0u64;
  562. unsafe { x86::random::rdrand64(&mut random_index) };
  563. // 70%概率释放
  564. if random_index % 10 > 7 {
  565. continue;
  566. }
  567. random_index %= v.len() as u64;
  568. let random_index = random_index as usize;
  569. let (paddr, allocated_frame_count) = v.remove(random_index);
  570. assert!(addr_set.remove(&paddr));
  571. unsafe { LockedFrameAllocator.free(paddr, allocated_frame_count) };
  572. free_count += allocated_frame_count.data() * MMArch::PAGE_SIZE;
  573. }
  574. }
  575. debug!(
  576. "Allocated {} MB memory, release: {} MB, no release: {} bytes",
  577. allocated / 1024 / 1024,
  578. free_count / 1024 / 1024,
  579. (allocated - free_count)
  580. );
  581. debug!("Now, to release buddy memory");
  582. // 释放所有的内存
  583. for (paddr, allocated_frame_count) in v {
  584. unsafe { LockedFrameAllocator.free(paddr, allocated_frame_count) };
  585. assert!(addr_set.remove(&paddr));
  586. free_count += allocated_frame_count.data() * MMArch::PAGE_SIZE;
  587. }
  588. debug!("release done!, allocated: {allocated}, free_count: {free_count}");
  589. }
  590. }
  591. /// 全局的页帧分配器
  592. #[derive(Debug, Clone, Copy, Hash)]
  593. pub struct LockedFrameAllocator;
  594. impl FrameAllocator for LockedFrameAllocator {
  595. unsafe fn allocate(&mut self, mut count: PageFrameCount) -> Option<(PhysAddr, PageFrameCount)> {
  596. count = count.next_power_of_two();
  597. if let Some(ref mut allocator) = *INNER_ALLOCATOR.lock_irqsave() {
  598. return allocator.allocate(count);
  599. } else {
  600. return None;
  601. }
  602. }
  603. unsafe fn free(&mut self, address: crate::mm::PhysAddr, count: PageFrameCount) {
  604. assert!(count.data().is_power_of_two());
  605. if let Some(ref mut allocator) = *INNER_ALLOCATOR.lock_irqsave() {
  606. return allocator.free(address, count);
  607. }
  608. }
  609. unsafe fn usage(&self) -> PageFrameUsage {
  610. if let Some(ref mut allocator) = *INNER_ALLOCATOR.lock_irqsave() {
  611. return allocator.usage();
  612. } else {
  613. panic!("usage error");
  614. }
  615. }
  616. }
  617. /// 获取内核地址默认的页面标志
  618. pub unsafe fn kernel_page_flags<A: MemoryManagementArch>(virt: VirtAddr) -> EntryFlags<A> {
  619. let info: X86_64MMBootstrapInfo = BOOTSTRAP_MM_INFO.unwrap();
  620. if virt.data() >= info.kernel_code_start && virt.data() < info.kernel_code_end {
  621. // Remap kernel code execute
  622. return EntryFlags::new().set_execute(true).set_write(true);
  623. } else if virt.data() >= info.kernel_data_end && virt.data() < info.kernel_rodata_end {
  624. // Remap kernel rodata read only
  625. return EntryFlags::new().set_execute(true);
  626. } else {
  627. return EntryFlags::new().set_write(true).set_execute(true);
  628. }
  629. }
  630. unsafe fn set_inner_allocator(allocator: BuddyAllocator<MMArch>) {
  631. static FLAG: AtomicBool = AtomicBool::new(false);
  632. if FLAG
  633. .compare_exchange(false, true, Ordering::SeqCst, Ordering::SeqCst)
  634. .is_err()
  635. {
  636. panic!("Cannot set inner allocator twice!");
  637. }
  638. *INNER_ALLOCATOR.lock() = Some(allocator);
  639. }
  640. /// 低地址重映射的管理器
  641. ///
  642. /// 低地址重映射的管理器,在smp初始化完成之前,需要使用低地址的映射,因此需要在smp初始化完成之后,取消这一段映射
  643. pub struct LowAddressRemapping;
  644. impl LowAddressRemapping {
  645. // 映射64M
  646. const REMAP_SIZE: usize = 64 * 1024 * 1024;
  647. pub unsafe fn remap_at_low_address(mapper: &mut PageMapper) {
  648. for i in 0..(Self::REMAP_SIZE / MMArch::PAGE_SIZE) {
  649. let paddr = PhysAddr::new(i * MMArch::PAGE_SIZE);
  650. let vaddr = VirtAddr::new(i * MMArch::PAGE_SIZE);
  651. let flags = kernel_page_flags::<MMArch>(vaddr);
  652. let flusher = mapper
  653. .map_phys(vaddr, paddr, flags)
  654. .expect("Failed to map frame");
  655. // 暂时不刷新TLB
  656. flusher.ignore();
  657. }
  658. }
  659. /// 取消低地址的映射
  660. pub unsafe fn unmap_at_low_address(mapper: &mut PageMapper, flush: bool) {
  661. for i in 0..(Self::REMAP_SIZE / MMArch::PAGE_SIZE) {
  662. let vaddr = VirtAddr::new(i * MMArch::PAGE_SIZE);
  663. let (_, _, flusher) = mapper
  664. .unmap_phys(vaddr, true)
  665. .expect("Failed to unmap frame");
  666. if !flush {
  667. flusher.ignore();
  668. }
  669. }
  670. }
  671. }