mm.hpp 8.9 KB

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  1. #pragma once
  2. #include <set>
  3. #include <vector>
  4. #include <bit>
  5. #include <cstddef>
  6. #include <utility>
  7. #include <kernel/mem.h>
  8. #include <kernel/vfs.hpp>
  9. #include <stdint.h>
  10. #include <types/allocator.hpp>
  11. #include <types/cplusplus.hpp>
  12. #include <types/size.h>
  13. #include <types/status.h>
  14. #include <types/types.h>
  15. #define invalidate_tlb(addr) asm("invlpg (%0)" \
  16. : \
  17. : "r"(addr) \
  18. : "memory")
  19. constexpr size_t THREAD_KERNEL_STACK_SIZE = 2 * PAGE_SIZE;
  20. constexpr uint32_t PAGE_COW = (1 << 0);
  21. constexpr uint32_t PAGE_MMAP = (1 << 1);
  22. #define PAGE_COW PAGE_COW
  23. #define PAGE_MMAP PAGE_MMAP
  24. struct page {
  25. page_t phys_page_id;
  26. size_t* ref_count;
  27. // 0 :11 : pte_index
  28. // 12:31 : pt_page
  29. uint32_t pg_pteidx;
  30. mutable uint32_t attr;
  31. };
  32. // private memory mapping
  33. // changes won't be neither written back to file nor shared between processes
  34. // TODO: shared mapping
  35. // @param len is aligned to 4kb boundary automatically, exceeding part will
  36. // be filled with '0's and not written back to the file
  37. // @param offset MUST be aligned to 4kb
  38. int mmap(
  39. void* hint,
  40. size_t len,
  41. fs::inode* file,
  42. size_t offset,
  43. int write,
  44. int priv);
  45. template <uint32_t base, uint32_t expo>
  46. constexpr uint32_t pow()
  47. {
  48. if constexpr (expo == 0)
  49. return 1;
  50. if constexpr (expo == 1)
  51. return base;
  52. if constexpr (expo % 2 == 0)
  53. return pow<base, expo / 2>() * pow<base, expo / 2>();
  54. else
  55. return pow<base, expo / 2>() * pow<base, expo / 2 + 1>();
  56. }
  57. template <int N>
  58. constexpr uint32_t align_down(uint32_t v)
  59. {
  60. return v & ~(pow<2, N>() - 1);
  61. }
  62. template <int N>
  63. constexpr void* align_down(void* v)
  64. {
  65. return std::bit_cast<void*>(align_down<N>(std::bit_cast<uint32_t>(v)));
  66. }
  67. template <int N>
  68. constexpr uint32_t align_up(uint32_t v)
  69. {
  70. return align_down<N>(v + pow<2, N>() - 1);
  71. }
  72. template <int N>
  73. constexpr void* align_up(void* v)
  74. {
  75. return std::bit_cast<void*>(align_up<N>(std::bit_cast<uint32_t>(v)));
  76. }
  77. constexpr size_t vptrdiff(void* p1, void* p2)
  78. {
  79. auto* _p1 = static_cast<std::byte*>(p1);
  80. auto* _p2 = static_cast<std::byte*>(p2);
  81. return _p1 - _p2;
  82. }
  83. constexpr void* vptradd(void* p, std::size_t off)
  84. {
  85. auto* _p = static_cast<std::byte*>(p);
  86. return _p + off;
  87. }
  88. void dealloc_pd(page_t pd);
  89. // allocate a struct page together with the raw page
  90. page allocate_page(void);
  91. void free_page(page* pg);
  92. // TODO: this is for alloc_kstack()
  93. // CHANGE THIS
  94. page_t __alloc_raw_page(void);
  95. void __free_raw_page(page_t pg);
  96. namespace kernel {
  97. void* pmap(page_t pg);
  98. void pfree(page_t pg);
  99. class paccess : public types::non_copyable {
  100. private:
  101. page_t m_pg;
  102. void* m_ptr;
  103. public:
  104. paccess(void) = delete;
  105. paccess(paccess&&) = delete;
  106. paccess& operator=(paccess&&) = delete;
  107. constexpr explicit paccess(page_t pg)
  108. : m_pg(pg)
  109. {
  110. m_ptr = pmap(pg);
  111. }
  112. constexpr void* ptr(void) const
  113. {
  114. return m_ptr;
  115. }
  116. ~paccess()
  117. {
  118. pfree(m_pg);
  119. }
  120. };
  121. namespace memory {
  122. struct mm {
  123. public:
  124. using pages_vector = std::vector<page,
  125. types::allocator_adapter<page, types::kernel_ident_allocator>>;
  126. public:
  127. void* start {};
  128. struct mm_attr {
  129. uint32_t write : 1;
  130. uint32_t system : 1;
  131. uint32_t mapped : 1;
  132. } attr {};
  133. pages_vector* pgs {};
  134. fs::inode* mapped_file {};
  135. size_t file_offset {};
  136. public:
  137. constexpr void* end() const noexcept
  138. { return vptradd(start, pgs->size() * PAGE_SIZE); }
  139. constexpr bool is_kernel_space() const noexcept
  140. { return start >= std::bit_cast<void*>(0xc0000000); }
  141. constexpr bool is_avail(void* ostart, void* oend) const noexcept
  142. {
  143. void* m_start = start;
  144. void* m_end = end();
  145. return (ostart >= m_end || oend <= m_start);
  146. }
  147. void append_page(pd_t pd, const page& pg, uint32_t attr, bool priv);
  148. };
  149. class mm_list {
  150. private:
  151. struct comparator {
  152. constexpr bool operator()(const mm& lhs, const mm& rhs) const noexcept
  153. { return lhs.start < rhs.start; }
  154. constexpr bool operator()(const mm& lhs, void* rhs) const noexcept
  155. { return lhs.end() <= rhs; }
  156. constexpr bool operator()(void* lhs, const mm& rhs) const noexcept
  157. { return lhs < rhs.start; }
  158. };
  159. public:
  160. using list_type = std::set<mm, comparator,
  161. types::allocator_adapter<mm, types::kernel_ident_allocator>>;
  162. using iterator = list_type::iterator;
  163. using const_iterator = list_type::const_iterator;
  164. public:
  165. static inline mm_list* s_kernel_mms;
  166. private:
  167. list_type m_areas;
  168. page_t m_pd;
  169. public:
  170. // for system initialization only
  171. explicit constexpr mm_list(page_t pd)
  172. : m_pd(pd) { }
  173. // default constructor copies kernel_mms
  174. explicit mm_list();
  175. // copies kernel_mms and mirrors user space
  176. explicit mm_list(const mm_list& other);
  177. constexpr mm_list(mm_list&& v)
  178. : m_areas(std::move(v.m_areas))
  179. , m_pd(std::exchange(v.m_pd, 0)) { }
  180. ~mm_list();
  181. void switch_pd() const;
  182. constexpr mm& addarea(void* start, bool w, bool system)
  183. {
  184. auto [ iter, inserted ] = m_areas.emplace(mm {
  185. .start = start,
  186. .attr {
  187. .write = w,
  188. .system = system,
  189. .mapped = 0,
  190. },
  191. .pgs = types::_new<types::kernel_ident_allocator, mm::pages_vector>(),
  192. });
  193. assert(inserted);
  194. return *iter;
  195. }
  196. mm& add_empty_area(void* start, std::size_t page_count,
  197. uint32_t page_attr, bool w, bool system);
  198. constexpr void clear_user()
  199. {
  200. for (auto iter = m_areas.begin(); iter != m_areas.end(); ) {
  201. if (iter->is_kernel_space()) {
  202. ++iter;
  203. continue;
  204. }
  205. this->unmap(iter);
  206. iter = m_areas.erase(iter);
  207. }
  208. }
  209. inline void unmap(iterator area)
  210. {
  211. int i = 0;
  212. // TODO:
  213. // if there are more than 4 pages, calling invlpg
  214. // should be faster. otherwise, we use movl cr3
  215. // bool should_invlpg = (area->pgs->size() > 4);
  216. for (auto& pg : *area->pgs) {
  217. kernel::paccess pa(pg.pg_pteidx >> 12);
  218. auto pt = (pt_t)pa.ptr();
  219. assert(pt);
  220. auto* pte = *pt + (pg.pg_pteidx & 0xfff);
  221. pte->v = 0;
  222. free_page(&pg);
  223. invalidate_tlb((uint32_t)area->start + (i++) * PAGE_SIZE);
  224. }
  225. types::pdelete<types::kernel_ident_allocator>(area->pgs);
  226. }
  227. constexpr mm* find(void* lp)
  228. {
  229. auto iter = m_areas.find(lp);
  230. if (iter == m_areas.end())
  231. return nullptr;
  232. return &*iter;
  233. }
  234. constexpr const mm* find(void* lp) const
  235. {
  236. auto iter = m_areas.find(lp);
  237. if (iter == m_areas.end())
  238. return nullptr;
  239. return &*iter;
  240. }
  241. constexpr bool is_avail(void* start, size_t len) const noexcept
  242. {
  243. start = align_down<12>(start);
  244. len = vptrdiff(align_up<12>(vptradd(start, len)), start);
  245. for (const auto& area : m_areas) {
  246. if (!area.is_avail(start, vptradd(start, len)))
  247. return false;
  248. }
  249. return true;
  250. }
  251. };
  252. } // namespace memory
  253. } // namespace kernel
  254. // global variables
  255. inline page empty_page;
  256. // --------------------------------
  257. // inline constexpr page* lto_page(mm* mm_area, void* l_ptr)
  258. // {
  259. // size_t offset = vptrdiff(l_ptr, mm_area->start);
  260. // return &mm_area->pgs->at(offset / PAGE_SIZE);
  261. // }
  262. // inline constexpr page_t to_page(pptr_t ptr)
  263. // {
  264. // return ptr >> 12;
  265. // }
  266. // inline constexpr size_t to_pdi(page_t pg)
  267. // {
  268. // return pg >> 10;
  269. // }
  270. // inline constexpr size_t to_pti(page_t pg)
  271. // {
  272. // return pg & (1024 - 1);
  273. // }
  274. // inline constexpr pptr_t to_pp(page_t p)
  275. // {
  276. // return p << 12;
  277. // }
  278. constexpr size_t v_to_pdi(void* addr)
  279. {
  280. return std::bit_cast<uint32_t>(addr) >> 22;
  281. }
  282. constexpr size_t v_to_pti(void* addr)
  283. {
  284. return (std::bit_cast<uint32_t>(addr) >> 12) & 0x3ff;
  285. }
  286. // inline constexpr pte_t* to_pte(pt_t pt, page_t pg)
  287. // {
  288. // return *pt + to_pti(pg);
  289. // }
  290. // inline void* to_vp(page_t pg)
  291. // {
  292. // return ptovp(to_pp(pg));
  293. // }
  294. // inline pd_t to_pd(page_t pg)
  295. // {
  296. // return reinterpret_cast<pd_t>(to_vp(pg));
  297. // }
  298. // inline pt_t to_pt(page_t pg)
  299. // {
  300. // return reinterpret_cast<pt_t>(to_vp(pg));
  301. // }
  302. // inline pt_t to_pt(pde_t* pde)
  303. // {
  304. // return to_pt(pde->in.pt_page);
  305. // }
  306. // inline pde_t* to_pde(pd_t pd, void* addr)
  307. // {
  308. // return *pd + lto_pdi((pptr_t)addr);
  309. // }
  310. // inline pte_t* to_pte(pt_t pt, void* addr)
  311. // {
  312. // return *pt + lto_pti((pptr_t)addr);
  313. // }
  314. // inline pte_t* to_pte(pde_t* pde, void* addr)
  315. // {
  316. // return to_pte(to_pt(pde), addr);
  317. // }
  318. // inline pte_t* to_pte(pd_t pd, void* addr)
  319. // {
  320. // return to_pte(to_pde(pd, addr), addr);
  321. // }
  322. // inline pte_t* to_pte(pde_t* pde, page_t pg)
  323. // {
  324. // return to_pte(to_pt(pde), pg);
  325. // }