MemoryManager.cpp 30 KB

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  1. #include "MemoryManager.h"
  2. #include <AK/Assertions.h>
  3. #include <AK/kstdio.h>
  4. #include <AK/kmalloc.h>
  5. #include "i386.h"
  6. #include "StdLib.h"
  7. #include "Process.h"
  8. #include <LibC/errno_numbers.h>
  9. #include "CMOS.h"
  10. //#define MM_DEBUG
  11. //#define PAGE_FAULT_DEBUG
  12. static MemoryManager* s_the;
  13. MemoryManager& MM
  14. {
  15. return *s_the;
  16. }
  17. MemoryManager::MemoryManager()
  18. {
  19. // FIXME: This is not the best way to do memory map detection.
  20. // Rewrite to use BIOS int 15,e820 once we have VM86 support.
  21. word base_memory = (CMOS::read(0x16) << 8) | CMOS::read(0x15);
  22. word ext_memory = (CMOS::read(0x18) << 8) | CMOS::read(0x17);
  23. kprintf("%u kB base memory\n", base_memory);
  24. kprintf("%u kB extended memory\n", ext_memory);
  25. m_ram_size = ext_memory * 1024;
  26. m_kernel_page_directory = PageDirectory::create_at_fixed_address(PhysicalAddress(0x4000));
  27. m_page_table_zero = (dword*)0x6000;
  28. initialize_paging();
  29. }
  30. MemoryManager::~MemoryManager()
  31. {
  32. }
  33. PageDirectory::PageDirectory(PhysicalAddress paddr)
  34. {
  35. m_directory_page = adopt(*new PhysicalPage(paddr, true));
  36. }
  37. PageDirectory::PageDirectory()
  38. {
  39. MM.populate_page_directory(*this);
  40. }
  41. void MemoryManager::populate_page_directory(PageDirectory& page_directory)
  42. {
  43. page_directory.m_directory_page = allocate_supervisor_physical_page();
  44. page_directory.entries()[0] = kernel_page_directory().entries()[0];
  45. }
  46. void MemoryManager::initialize_paging()
  47. {
  48. static_assert(sizeof(MemoryManager::PageDirectoryEntry) == 4);
  49. static_assert(sizeof(MemoryManager::PageTableEntry) == 4);
  50. memset(m_page_table_zero, 0, PAGE_SIZE);
  51. #ifdef MM_DEBUG
  52. dbgprintf("MM: Kernel page directory @ %p\n", kernel_page_directory().cr3());
  53. #endif
  54. #ifdef MM_DEBUG
  55. dbgprintf("MM: Protect against null dereferences\n");
  56. #endif
  57. // Make null dereferences crash.
  58. map_protected(LinearAddress(0), PAGE_SIZE);
  59. #ifdef MM_DEBUG
  60. dbgprintf("MM: Identity map bottom 4MB\n");
  61. #endif
  62. // The bottom 4 MB (except for the null page) are identity mapped & supervisor only.
  63. // Every process shares these mappings.
  64. create_identity_mapping(kernel_page_directory(), LinearAddress(PAGE_SIZE), (4 * MB) - PAGE_SIZE);
  65. // Basic memory map:
  66. // 0 -> 512 kB Kernel code. Root page directory & PDE 0.
  67. // (last page before 1MB) Used by quickmap_page().
  68. // 1 MB -> 2 MB kmalloc_eternal() space.
  69. // 2 MB -> 3 MB kmalloc() space.
  70. // 3 MB -> 4 MB Supervisor physical pages (available for allocation!)
  71. // 4 MB -> (max) MB Userspace physical pages (available for allocation!)
  72. for (size_t i = (2 * MB); i < (4 * MB); i += PAGE_SIZE)
  73. m_free_supervisor_physical_pages.append(adopt(*new PhysicalPage(PhysicalAddress(i), true)));
  74. dbgprintf("MM: 4MB-%uMB available for allocation\n", m_ram_size / 1048576);
  75. for (size_t i = (4 * MB); i < m_ram_size; i += PAGE_SIZE)
  76. m_free_physical_pages.append(adopt(*new PhysicalPage(PhysicalAddress(i), false)));
  77. m_quickmap_addr = LinearAddress((1 * MB) - PAGE_SIZE);
  78. #ifdef MM_DEBUG
  79. dbgprintf("MM: Quickmap will use P%x\n", m_quickmap_addr.get());
  80. dbgprintf("MM: Installing page directory\n");
  81. #endif
  82. asm volatile("movl %%eax, %%cr3"::"a"(kernel_page_directory().cr3()));
  83. asm volatile(
  84. "movl %%cr0, %%eax\n"
  85. "orl $0x80000001, %%eax\n"
  86. "movl %%eax, %%cr0\n"
  87. :::"%eax", "memory");
  88. }
  89. RetainPtr<PhysicalPage> MemoryManager::allocate_page_table(PageDirectory& page_directory, unsigned index)
  90. {
  91. ASSERT(!page_directory.m_physical_pages.contains(index));
  92. auto physical_page = allocate_supervisor_physical_page();
  93. if (!physical_page)
  94. return nullptr;
  95. page_directory.m_physical_pages.set(index, physical_page.copy_ref());
  96. return physical_page;
  97. }
  98. void MemoryManager::remove_identity_mapping(PageDirectory& page_directory, LinearAddress laddr, size_t size)
  99. {
  100. InterruptDisabler disabler;
  101. // FIXME: ASSERT(laddr is 4KB aligned);
  102. for (dword offset = 0; offset < size; offset += PAGE_SIZE) {
  103. auto pte_address = laddr.offset(offset);
  104. auto pte = ensure_pte(page_directory, pte_address);
  105. pte.set_physical_page_base(0);
  106. pte.set_user_allowed(false);
  107. pte.set_present(true);
  108. pte.set_writable(true);
  109. flush_tlb(pte_address);
  110. }
  111. }
  112. auto MemoryManager::ensure_pte(PageDirectory& page_directory, LinearAddress laddr) -> PageTableEntry
  113. {
  114. ASSERT_INTERRUPTS_DISABLED();
  115. dword page_directory_index = (laddr.get() >> 22) & 0x3ff;
  116. dword page_table_index = (laddr.get() >> 12) & 0x3ff;
  117. PageDirectoryEntry pde = PageDirectoryEntry(&page_directory.entries()[page_directory_index]);
  118. if (!pde.is_present()) {
  119. #ifdef MM_DEBUG
  120. dbgprintf("MM: PDE %u not present (requested for L%x), allocating\n", page_directory_index, laddr.get());
  121. #endif
  122. if (page_directory_index == 0) {
  123. ASSERT(&page_directory == m_kernel_page_directory.ptr());
  124. pde.set_page_table_base((dword)m_page_table_zero);
  125. pde.set_user_allowed(false);
  126. pde.set_present(true);
  127. pde.set_writable(true);
  128. } else {
  129. ASSERT(&page_directory != m_kernel_page_directory.ptr());
  130. auto page_table = allocate_page_table(page_directory, page_directory_index);
  131. #ifdef MM_DEBUG
  132. dbgprintf("MM: PD K%x (%s) at P%x allocated page table #%u (for L%x) at P%x\n",
  133. &page_directory,
  134. &page_directory == m_kernel_page_directory.ptr() ? "Kernel" : "User",
  135. page_directory.cr3(),
  136. page_directory_index,
  137. laddr.get(),
  138. page_table->paddr().get());
  139. #endif
  140. pde.set_page_table_base(page_table->paddr().get());
  141. pde.set_user_allowed(true);
  142. pde.set_present(true);
  143. pde.set_writable(true);
  144. page_directory.m_physical_pages.set(page_directory_index, move(page_table));
  145. }
  146. }
  147. return PageTableEntry(&pde.page_table_base()[page_table_index]);
  148. }
  149. void MemoryManager::map_protected(LinearAddress laddr, size_t length)
  150. {
  151. InterruptDisabler disabler;
  152. // FIXME: ASSERT(linearAddress is 4KB aligned);
  153. for (dword offset = 0; offset < length; offset += PAGE_SIZE) {
  154. auto pte_address = laddr.offset(offset);
  155. auto pte = ensure_pte(kernel_page_directory(), pte_address);
  156. pte.set_physical_page_base(pte_address.get());
  157. pte.set_user_allowed(false);
  158. pte.set_present(false);
  159. pte.set_writable(false);
  160. flush_tlb(pte_address);
  161. }
  162. }
  163. void MemoryManager::create_identity_mapping(PageDirectory& page_directory, LinearAddress laddr, size_t size)
  164. {
  165. InterruptDisabler disabler;
  166. ASSERT((laddr.get() & ~PAGE_MASK) == 0);
  167. for (dword offset = 0; offset < size; offset += PAGE_SIZE) {
  168. auto pte_address = laddr.offset(offset);
  169. auto pte = ensure_pte(page_directory, pte_address);
  170. pte.set_physical_page_base(pte_address.get());
  171. pte.set_user_allowed(false);
  172. pte.set_present(true);
  173. pte.set_writable(true);
  174. page_directory.flush(pte_address);
  175. }
  176. }
  177. void MemoryManager::initialize()
  178. {
  179. s_the = new MemoryManager;
  180. }
  181. Region* MemoryManager::region_from_laddr(Process& process, LinearAddress laddr)
  182. {
  183. ASSERT_INTERRUPTS_DISABLED();
  184. // FIXME: Use a binary search tree (maybe red/black?) or some other more appropriate data structure!
  185. for (auto& region : process.m_regions) {
  186. if (region->contains(laddr))
  187. return region.ptr();
  188. }
  189. dbgprintf("%s(%u) Couldn't find region for L%x (CR3=%x)\n", process.name().characters(), process.pid(), laddr.get(), process.page_directory().cr3());
  190. return nullptr;
  191. }
  192. const Region* MemoryManager::region_from_laddr(const Process& process, LinearAddress laddr)
  193. {
  194. // FIXME: Use a binary search tree (maybe red/black?) or some other more appropriate data structure!
  195. for (auto& region : process.m_regions) {
  196. if (region->contains(laddr))
  197. return region.ptr();
  198. }
  199. dbgprintf("%s(%u) Couldn't find region for L%x (CR3=%x)\n", process.name().characters(), process.pid(), laddr.get(), process.page_directory().cr3());
  200. return nullptr;
  201. }
  202. bool MemoryManager::zero_page(Region& region, unsigned page_index_in_region)
  203. {
  204. ASSERT_INTERRUPTS_DISABLED();
  205. auto& vmo = region.vmo();
  206. auto physical_page = allocate_physical_page(ShouldZeroFill::Yes);
  207. #ifdef PAGE_FAULT_DEBUG
  208. dbgprintf(" >> ZERO P%x\n", physical_page->paddr().get());
  209. #endif
  210. region.m_cow_map.set(page_index_in_region, false);
  211. vmo.physical_pages()[page_index_in_region] = move(physical_page);
  212. remap_region_page(region, page_index_in_region, true);
  213. return true;
  214. }
  215. bool MemoryManager::copy_on_write(Region& region, unsigned page_index_in_region)
  216. {
  217. ASSERT_INTERRUPTS_DISABLED();
  218. auto& vmo = region.vmo();
  219. if (vmo.physical_pages()[page_index_in_region]->retain_count() == 1) {
  220. #ifdef PAGE_FAULT_DEBUG
  221. dbgprintf(" >> It's a COW page but nobody is sharing it anymore. Remap r/w\n");
  222. #endif
  223. region.m_cow_map.set(page_index_in_region, false);
  224. remap_region_page(region, page_index_in_region, true);
  225. return true;
  226. }
  227. #ifdef PAGE_FAULT_DEBUG
  228. dbgprintf(" >> It's a COW page and it's time to COW!\n");
  229. #endif
  230. auto physical_page_to_copy = move(vmo.physical_pages()[page_index_in_region]);
  231. auto physical_page = allocate_physical_page(ShouldZeroFill::No);
  232. byte* dest_ptr = quickmap_page(*physical_page);
  233. const byte* src_ptr = region.laddr().offset(page_index_in_region * PAGE_SIZE).as_ptr();
  234. #ifdef PAGE_FAULT_DEBUG
  235. dbgprintf(" >> COW P%x <- P%x\n", physical_page->paddr().get(), physical_page_to_copy->paddr().get());
  236. #endif
  237. memcpy(dest_ptr, src_ptr, PAGE_SIZE);
  238. vmo.physical_pages()[page_index_in_region] = move(physical_page);
  239. unquickmap_page();
  240. region.m_cow_map.set(page_index_in_region, false);
  241. remap_region_page(region, page_index_in_region, true);
  242. return true;
  243. }
  244. bool Region::page_in()
  245. {
  246. ASSERT(m_page_directory);
  247. ASSERT(!vmo().is_anonymous());
  248. ASSERT(vmo().inode());
  249. #ifdef MM_DEBUG
  250. dbgprintf("MM: page_in %u pages\n", page_count());
  251. #endif
  252. for (size_t i = 0; i < page_count(); ++i) {
  253. auto& vmo_page = vmo().physical_pages()[first_page_index() + i];
  254. if (vmo_page.is_null()) {
  255. bool success = MM.page_in_from_inode(*this, i);
  256. if (!success)
  257. return false;
  258. }
  259. MM.remap_region_page(*this, i, true);
  260. }
  261. return true;
  262. }
  263. bool MemoryManager::page_in_from_inode(Region& region, unsigned page_index_in_region)
  264. {
  265. ASSERT(region.page_directory());
  266. auto& vmo = region.vmo();
  267. ASSERT(!vmo.is_anonymous());
  268. ASSERT(vmo.inode());
  269. auto& vmo_page = vmo.physical_pages()[region.first_page_index() + page_index_in_region];
  270. InterruptFlagSaver saver;
  271. sti();
  272. LOCKER(vmo.m_paging_lock);
  273. cli();
  274. if (!vmo_page.is_null()) {
  275. dbgprintf("MM: page_in_from_inode() but page already present. Fine with me!\n");
  276. remap_region_page(region, page_index_in_region, true);
  277. return true;
  278. }
  279. #ifdef MM_DEBUG
  280. dbgprintf("MM: page_in_from_inode ready to read from inode\n");
  281. #endif
  282. sti();
  283. byte page_buffer[PAGE_SIZE];
  284. auto& inode = *vmo.inode();
  285. auto nread = inode.read_bytes(vmo.inode_offset() + ((region.first_page_index() + page_index_in_region) * PAGE_SIZE), PAGE_SIZE, page_buffer, nullptr);
  286. if (nread < 0) {
  287. kprintf("MM: page_in_from_inode had error (%d) while reading!\n", nread);
  288. return false;
  289. }
  290. if (nread < PAGE_SIZE) {
  291. // If we read less than a page, zero out the rest to avoid leaking uninitialized data.
  292. memset(page_buffer + nread, 0, PAGE_SIZE - nread);
  293. }
  294. cli();
  295. vmo_page = allocate_physical_page(ShouldZeroFill::No);
  296. if (vmo_page.is_null()) {
  297. kprintf("MM: page_in_from_inode was unable to allocate a physical page\n");
  298. return false;
  299. }
  300. remap_region_page(region, page_index_in_region, true);
  301. byte* dest_ptr = region.laddr().offset(page_index_in_region * PAGE_SIZE).as_ptr();
  302. memcpy(dest_ptr, page_buffer, PAGE_SIZE);
  303. return true;
  304. }
  305. PageFaultResponse MemoryManager::handle_page_fault(const PageFault& fault)
  306. {
  307. ASSERT_INTERRUPTS_DISABLED();
  308. #ifdef PAGE_FAULT_DEBUG
  309. dbgprintf("MM: handle_page_fault(%w) at L%x\n", fault.code(), fault.laddr().get());
  310. #endif
  311. ASSERT(fault.laddr() != m_quickmap_addr);
  312. auto* region = region_from_laddr(*current, fault.laddr());
  313. if (!region) {
  314. kprintf("NP(error) fault at invalid address L%x\n", fault.laddr().get());
  315. return PageFaultResponse::ShouldCrash;
  316. }
  317. auto page_index_in_region = region->page_index_from_address(fault.laddr());
  318. if (fault.is_not_present()) {
  319. if (region->vmo().inode()) {
  320. dbgprintf("NP(inode) fault in Region{%p}[%u]\n", region, page_index_in_region);
  321. page_in_from_inode(*region, page_index_in_region);
  322. return PageFaultResponse::Continue;
  323. } else {
  324. dbgprintf("NP(zero) fault in Region{%p}[%u]\n", region, page_index_in_region);
  325. zero_page(*region, page_index_in_region);
  326. return PageFaultResponse::Continue;
  327. }
  328. } else if (fault.is_protection_violation()) {
  329. if (region->m_cow_map.get(page_index_in_region)) {
  330. dbgprintf("PV(cow) fault in Region{%p}[%u]\n", region, page_index_in_region);
  331. bool success = copy_on_write(*region, page_index_in_region);
  332. ASSERT(success);
  333. return PageFaultResponse::Continue;
  334. }
  335. kprintf("PV(error) fault in Region{%p}[%u]\n", region, page_index_in_region);
  336. } else {
  337. ASSERT_NOT_REACHED();
  338. }
  339. return PageFaultResponse::ShouldCrash;
  340. }
  341. RetainPtr<PhysicalPage> MemoryManager::allocate_physical_page(ShouldZeroFill should_zero_fill)
  342. {
  343. InterruptDisabler disabler;
  344. if (1 > m_free_physical_pages.size())
  345. return { };
  346. #ifdef MM_DEBUG
  347. dbgprintf("MM: allocate_physical_page vending P%x (%u remaining)\n", m_free_physical_pages.last()->paddr().get(), m_free_physical_pages.size());
  348. #endif
  349. auto physical_page = m_free_physical_pages.take_last();
  350. if (should_zero_fill == ShouldZeroFill::Yes) {
  351. auto* ptr = (dword*)quickmap_page(*physical_page);
  352. fast_dword_fill(ptr, 0, PAGE_SIZE / sizeof(dword));
  353. unquickmap_page();
  354. }
  355. return physical_page;
  356. }
  357. RetainPtr<PhysicalPage> MemoryManager::allocate_supervisor_physical_page()
  358. {
  359. InterruptDisabler disabler;
  360. if (1 > m_free_supervisor_physical_pages.size())
  361. return { };
  362. #ifdef MM_DEBUG
  363. dbgprintf("MM: allocate_supervisor_physical_page vending P%x (%u remaining)\n", m_free_supervisor_physical_pages.last()->paddr().get(), m_free_supervisor_physical_pages.size());
  364. #endif
  365. auto physical_page = m_free_supervisor_physical_pages.take_last();
  366. fast_dword_fill((dword*)physical_page->paddr().as_ptr(), 0, PAGE_SIZE / sizeof(dword));
  367. return physical_page;
  368. }
  369. void MemoryManager::enter_process_paging_scope(Process& process)
  370. {
  371. InterruptDisabler disabler;
  372. current->m_tss.cr3 = process.page_directory().cr3();
  373. asm volatile("movl %%eax, %%cr3"::"a"(process.page_directory().cr3()):"memory");
  374. }
  375. void MemoryManager::flush_entire_tlb()
  376. {
  377. asm volatile(
  378. "mov %%cr3, %%eax\n"
  379. "mov %%eax, %%cr3\n"
  380. ::: "%eax", "memory"
  381. );
  382. }
  383. void MemoryManager::flush_tlb(LinearAddress laddr)
  384. {
  385. asm volatile("invlpg %0": :"m" (*(char*)laddr.get()) : "memory");
  386. }
  387. byte* MemoryManager::quickmap_page(PhysicalPage& physical_page)
  388. {
  389. ASSERT_INTERRUPTS_DISABLED();
  390. ASSERT(!m_quickmap_in_use);
  391. m_quickmap_in_use = true;
  392. auto page_laddr = m_quickmap_addr;
  393. auto pte = ensure_pte(kernel_page_directory(), page_laddr);
  394. pte.set_physical_page_base(physical_page.paddr().get());
  395. pte.set_present(true);
  396. pte.set_writable(true);
  397. pte.set_user_allowed(false);
  398. flush_tlb(page_laddr);
  399. ASSERT((dword)pte.physical_page_base() == physical_page.paddr().get());
  400. #ifdef MM_DEBUG
  401. dbgprintf("MM: >> quickmap_page L%x => P%x @ PTE=%p\n", page_laddr, physical_page.paddr().get(), pte.ptr());
  402. #endif
  403. return page_laddr.as_ptr();
  404. }
  405. void MemoryManager::unquickmap_page()
  406. {
  407. ASSERT_INTERRUPTS_DISABLED();
  408. ASSERT(m_quickmap_in_use);
  409. auto page_laddr = m_quickmap_addr;
  410. auto pte = ensure_pte(kernel_page_directory(), page_laddr);
  411. #ifdef MM_DEBUG
  412. auto old_physical_address = pte.physical_page_base();
  413. #endif
  414. pte.set_physical_page_base(0);
  415. pte.set_present(false);
  416. pte.set_writable(false);
  417. flush_tlb(page_laddr);
  418. #ifdef MM_DEBUG
  419. dbgprintf("MM: >> unquickmap_page L%x =/> P%x\n", page_laddr, old_physical_address);
  420. #endif
  421. m_quickmap_in_use = false;
  422. }
  423. void MemoryManager::remap_region_page(Region& region, unsigned page_index_in_region, bool user_allowed)
  424. {
  425. ASSERT(region.page_directory());
  426. InterruptDisabler disabler;
  427. auto page_laddr = region.laddr().offset(page_index_in_region * PAGE_SIZE);
  428. auto pte = ensure_pte(*region.page_directory(), page_laddr);
  429. auto& physical_page = region.vmo().physical_pages()[page_index_in_region];
  430. ASSERT(physical_page);
  431. pte.set_physical_page_base(physical_page->paddr().get());
  432. pte.set_present(true); // FIXME: Maybe we should use the is_readable flag here?
  433. if (region.m_cow_map.get(page_index_in_region))
  434. pte.set_writable(false);
  435. else
  436. pte.set_writable(region.is_writable());
  437. pte.set_user_allowed(user_allowed);
  438. region.page_directory()->flush(page_laddr);
  439. #ifdef MM_DEBUG
  440. dbgprintf("MM: >> remap_region_page (PD=%x, PTE=P%x) '%s' L%x => P%x (@%p)\n", region.page_directory()->cr3(), pte.ptr(), region.name().characters(), page_laddr.get(), physical_page->paddr().get(), physical_page.ptr());
  441. #endif
  442. }
  443. void MemoryManager::remap_region(PageDirectory& page_directory, Region& region)
  444. {
  445. InterruptDisabler disabler;
  446. ASSERT(region.page_directory() == &page_directory);
  447. map_region_at_address(page_directory, region, region.laddr(), true);
  448. }
  449. void MemoryManager::map_region_at_address(PageDirectory& page_directory, Region& region, LinearAddress laddr, bool user_allowed)
  450. {
  451. InterruptDisabler disabler;
  452. region.set_page_directory(page_directory);
  453. auto& vmo = region.vmo();
  454. #ifdef MM_DEBUG
  455. dbgprintf("MM: map_region_at_address will map VMO pages %u - %u (VMO page count: %u)\n", region.first_page_index(), region.last_page_index(), vmo.page_count());
  456. #endif
  457. for (size_t i = 0; i < region.page_count(); ++i) {
  458. auto page_laddr = laddr.offset(i * PAGE_SIZE);
  459. auto pte = ensure_pte(page_directory, page_laddr);
  460. auto& physical_page = vmo.physical_pages()[region.first_page_index() + i];
  461. if (physical_page) {
  462. pte.set_physical_page_base(physical_page->paddr().get());
  463. pte.set_present(true); // FIXME: Maybe we should use the is_readable flag here?
  464. // FIXME: It seems wrong that the *region* cow map is essentially using *VMO* relative indices.
  465. if (region.m_cow_map.get(region.first_page_index() + i))
  466. pte.set_writable(false);
  467. else
  468. pte.set_writable(region.is_writable());
  469. } else {
  470. pte.set_physical_page_base(0);
  471. pte.set_present(false);
  472. pte.set_writable(region.is_writable());
  473. }
  474. pte.set_user_allowed(user_allowed);
  475. page_directory.flush(page_laddr);
  476. #ifdef MM_DEBUG
  477. dbgprintf("MM: >> map_region_at_address (PD=%x) '%s' L%x => P%x (@%p)\n", &page_directory, region.name().characters(), page_laddr, physical_page ? physical_page->paddr().get() : 0, physical_page.ptr());
  478. #endif
  479. }
  480. }
  481. bool MemoryManager::unmap_region(Region& region)
  482. {
  483. ASSERT(region.page_directory());
  484. InterruptDisabler disabler;
  485. for (size_t i = 0; i < region.page_count(); ++i) {
  486. auto laddr = region.laddr().offset(i * PAGE_SIZE);
  487. auto pte = ensure_pte(*region.page_directory(), laddr);
  488. pte.set_physical_page_base(0);
  489. pte.set_present(false);
  490. pte.set_writable(false);
  491. pte.set_user_allowed(false);
  492. region.page_directory()->flush(laddr);
  493. #ifdef MM_DEBUG
  494. auto& physical_page = region.vmo().physical_pages()[region.first_page_index() + i];
  495. dbgprintf("MM: >> Unmapped L%x => P%x <<\n", laddr, physical_page ? physical_page->paddr().get() : 0);
  496. #endif
  497. }
  498. region.release_page_directory();
  499. return true;
  500. }
  501. bool MemoryManager::map_region(Process& process, Region& region)
  502. {
  503. map_region_at_address(process.page_directory(), region, region.laddr(), true);
  504. return true;
  505. }
  506. bool MemoryManager::validate_user_read(const Process& process, LinearAddress laddr) const
  507. {
  508. auto* region = region_from_laddr(process, laddr);
  509. return region && region->is_readable();
  510. }
  511. bool MemoryManager::validate_user_write(const Process& process, LinearAddress laddr) const
  512. {
  513. auto* region = region_from_laddr(process, laddr);
  514. return region && region->is_writable();
  515. }
  516. RetainPtr<Region> Region::clone()
  517. {
  518. InterruptDisabler disabler;
  519. if (m_shared || (m_readable && !m_writable)) {
  520. // Create a new region backed by the same VMObject.
  521. return adopt(*new Region(laddr(), size(), m_vmo.copy_ref(), m_offset_in_vmo, String(m_name), m_readable, m_writable));
  522. }
  523. dbgprintf("%s<%u> Region::clone(): cowing %s (L%x)\n",
  524. current->name().characters(),
  525. current->pid(),
  526. m_name.characters(),
  527. laddr().get());
  528. // Set up a COW region. The parent (this) region becomes COW as well!
  529. for (size_t i = 0; i < page_count(); ++i)
  530. m_cow_map.set(i, true);
  531. MM.remap_region(current->page_directory(), *this);
  532. return adopt(*new Region(laddr(), size(), m_vmo->clone(), m_offset_in_vmo, String(m_name), m_readable, m_writable, true));
  533. }
  534. Region::Region(LinearAddress a, size_t s, String&& n, bool r, bool w, bool cow)
  535. : m_laddr(a)
  536. , m_size(s)
  537. , m_vmo(VMObject::create_anonymous(s))
  538. , m_name(move(n))
  539. , m_readable(r)
  540. , m_writable(w)
  541. , m_cow_map(Bitmap::create(m_vmo->page_count(), cow))
  542. {
  543. m_vmo->set_name(m_name);
  544. MM.register_region(*this);
  545. }
  546. Region::Region(LinearAddress a, size_t s, RetainPtr<Inode>&& inode, String&& n, bool r, bool w)
  547. : m_laddr(a)
  548. , m_size(s)
  549. , m_vmo(VMObject::create_file_backed(move(inode)))
  550. , m_name(move(n))
  551. , m_readable(r)
  552. , m_writable(w)
  553. , m_cow_map(Bitmap::create(m_vmo->page_count()))
  554. {
  555. MM.register_region(*this);
  556. }
  557. Region::Region(LinearAddress a, size_t s, RetainPtr<VMObject>&& vmo, size_t offset_in_vmo, String&& n, bool r, bool w, bool cow)
  558. : m_laddr(a)
  559. , m_size(s)
  560. , m_offset_in_vmo(offset_in_vmo)
  561. , m_vmo(move(vmo))
  562. , m_name(move(n))
  563. , m_readable(r)
  564. , m_writable(w)
  565. , m_cow_map(Bitmap::create(m_vmo->page_count(), cow))
  566. {
  567. MM.register_region(*this);
  568. }
  569. Region::~Region()
  570. {
  571. if (m_page_directory) {
  572. MM.unmap_region(*this);
  573. ASSERT(!m_page_directory);
  574. }
  575. MM.unregister_region(*this);
  576. }
  577. PhysicalPage::PhysicalPage(PhysicalAddress paddr, bool supervisor)
  578. : m_supervisor(supervisor)
  579. , m_paddr(paddr)
  580. {
  581. }
  582. void PhysicalPage::return_to_freelist()
  583. {
  584. ASSERT((paddr().get() & ~PAGE_MASK) == 0);
  585. InterruptDisabler disabler;
  586. m_retain_count = 1;
  587. if (m_supervisor)
  588. MM.m_free_supervisor_physical_pages.append(adopt(*this));
  589. else
  590. MM.m_free_physical_pages.append(adopt(*this));
  591. #ifdef MM_DEBUG
  592. dbgprintf("MM: P%x released to freelist\n", m_paddr.get());
  593. #endif
  594. }
  595. RetainPtr<VMObject> VMObject::create_file_backed(RetainPtr<Inode>&& inode)
  596. {
  597. InterruptDisabler disabler;
  598. if (inode->vmo())
  599. return static_cast<VMObject*>(inode->vmo());
  600. auto vmo = adopt(*new VMObject(move(inode)));
  601. vmo->inode()->set_vmo(vmo.ptr());
  602. return vmo;
  603. }
  604. RetainPtr<VMObject> VMObject::create_anonymous(size_t size)
  605. {
  606. size = ceil_div(size, PAGE_SIZE) * PAGE_SIZE;
  607. return adopt(*new VMObject(size));
  608. }
  609. RetainPtr<VMObject> VMObject::create_framebuffer_wrapper(PhysicalAddress paddr, size_t size)
  610. {
  611. size = ceil_div(size, PAGE_SIZE) * PAGE_SIZE;
  612. return adopt(*new VMObject(paddr, size));
  613. }
  614. RetainPtr<VMObject> VMObject::clone()
  615. {
  616. return adopt(*new VMObject(*this));
  617. }
  618. VMObject::VMObject(VMObject& other)
  619. : m_name(other.m_name)
  620. , m_anonymous(other.m_anonymous)
  621. , m_inode_offset(other.m_inode_offset)
  622. , m_size(other.m_size)
  623. , m_inode(other.m_inode)
  624. , m_physical_pages(other.m_physical_pages)
  625. {
  626. MM.register_vmo(*this);
  627. }
  628. VMObject::VMObject(size_t size)
  629. : m_anonymous(true)
  630. , m_size(size)
  631. {
  632. MM.register_vmo(*this);
  633. m_physical_pages.resize(page_count());
  634. }
  635. VMObject::VMObject(PhysicalAddress paddr, size_t size)
  636. : m_anonymous(true)
  637. , m_size(size)
  638. {
  639. MM.register_vmo(*this);
  640. for (size_t i = 0; i < size; i += PAGE_SIZE) {
  641. m_physical_pages.append(adopt(*new PhysicalPage(paddr.offset(i), false)));
  642. }
  643. ASSERT(m_physical_pages.size() == page_count());
  644. }
  645. VMObject::VMObject(RetainPtr<Inode>&& inode)
  646. : m_inode(move(inode))
  647. {
  648. ASSERT(m_inode);
  649. m_size = ceil_div(m_inode->size(), PAGE_SIZE) * PAGE_SIZE;
  650. m_physical_pages.resize(page_count());
  651. MM.register_vmo(*this);
  652. }
  653. VMObject::~VMObject()
  654. {
  655. if (m_inode) {
  656. ASSERT(m_inode->vmo() == this);
  657. m_inode->set_vmo(nullptr);
  658. }
  659. MM.unregister_vmo(*this);
  660. }
  661. template<typename Callback>
  662. void VMObject::for_each_region(Callback callback)
  663. {
  664. // FIXME: Figure out a better data structure so we don't have to walk every single region every time an inode changes.
  665. // Perhaps VMObject could have a Vector<Region*> with all of his mappers?
  666. for (auto* region : MM.m_regions) {
  667. if (&region->vmo() == this)
  668. callback(*region);
  669. }
  670. }
  671. void VMObject::inode_size_changed(Badge<Inode>, size_t old_size, size_t new_size)
  672. {
  673. InterruptDisabler disabler;
  674. size_t old_page_count = page_count();
  675. m_size = new_size;
  676. if (page_count() > old_page_count) {
  677. // Add null pages and let the fault handler page these in when that day comes.
  678. for (size_t i = old_page_count; i < page_count(); ++i)
  679. m_physical_pages.append(nullptr);
  680. } else {
  681. // Prune the no-longer valid pages. I'm not sure this is actually correct behavior.
  682. for (size_t i = page_count(); i < old_page_count; ++i)
  683. m_physical_pages.take_last();
  684. }
  685. // FIXME: Consolidate with inode_contents_changed() so we only do a single walk.
  686. for_each_region([] (Region& region) {
  687. ASSERT(region.page_directory());
  688. MM.remap_region(*region.page_directory(), region);
  689. });
  690. }
  691. void VMObject::inode_contents_changed(Badge<Inode>, off_t offset, size_t size, const byte* data)
  692. {
  693. InterruptDisabler disabler;
  694. ASSERT(offset >= 0);
  695. // FIXME: Only invalidate the parts that actually changed.
  696. for (auto& physical_page : m_physical_pages)
  697. physical_page = nullptr;
  698. #if 0
  699. size_t current_offset = offset;
  700. size_t remaining_bytes = size;
  701. const byte* data_ptr = data;
  702. auto to_page_index = [] (size_t offset) -> size_t {
  703. return offset / PAGE_SIZE;
  704. };
  705. if (current_offset & PAGE_MASK) {
  706. size_t page_index = to_page_index(current_offset);
  707. size_t bytes_to_copy = min(size, PAGE_SIZE - (current_offset & PAGE_MASK));
  708. if (m_physical_pages[page_index]) {
  709. auto* ptr = MM.quickmap_page(*m_physical_pages[page_index]);
  710. memcpy(ptr, data_ptr, bytes_to_copy);
  711. MM.unquickmap_page();
  712. }
  713. current_offset += bytes_to_copy;
  714. data += bytes_to_copy;
  715. remaining_bytes -= bytes_to_copy;
  716. }
  717. for (size_t page_index = to_page_index(current_offset); page_index < m_physical_pages.size(); ++page_index) {
  718. size_t bytes_to_copy = PAGE_SIZE - (current_offset & PAGE_MASK);
  719. if (m_physical_pages[page_index]) {
  720. auto* ptr = MM.quickmap_page(*m_physical_pages[page_index]);
  721. memcpy(ptr, data_ptr, bytes_to_copy);
  722. MM.unquickmap_page();
  723. }
  724. current_offset += bytes_to_copy;
  725. data += bytes_to_copy;
  726. }
  727. #endif
  728. // FIXME: Consolidate with inode_size_changed() so we only do a single walk.
  729. for_each_region([] (Region& region) {
  730. ASSERT(region.page_directory());
  731. MM.remap_region(*region.page_directory(), region);
  732. });
  733. }
  734. int Region::commit()
  735. {
  736. InterruptDisabler disabler;
  737. #ifdef MM_DEBUG
  738. dbgprintf("MM: commit %u pages in Region %p (VMO=%p) at L%x\n", vmo().page_count(), this, &vmo(), laddr().get());
  739. #endif
  740. for (size_t i = first_page_index(); i <= last_page_index(); ++i) {
  741. if (!vmo().physical_pages()[i].is_null())
  742. continue;
  743. auto physical_page = MM.allocate_physical_page(MemoryManager::ShouldZeroFill::Yes);
  744. if (!physical_page) {
  745. kprintf("MM: commit was unable to allocate a physical page\n");
  746. return -ENOMEM;
  747. }
  748. vmo().physical_pages()[i] = move(physical_page);
  749. MM.remap_region_page(*this, i, true);
  750. }
  751. return 0;
  752. }
  753. void MemoryManager::register_vmo(VMObject& vmo)
  754. {
  755. InterruptDisabler disabler;
  756. m_vmos.set(&vmo);
  757. }
  758. void MemoryManager::unregister_vmo(VMObject& vmo)
  759. {
  760. InterruptDisabler disabler;
  761. m_vmos.remove(&vmo);
  762. }
  763. void MemoryManager::register_region(Region& region)
  764. {
  765. InterruptDisabler disabler;
  766. m_regions.set(&region);
  767. }
  768. void MemoryManager::unregister_region(Region& region)
  769. {
  770. InterruptDisabler disabler;
  771. m_regions.remove(&region);
  772. }
  773. size_t Region::amount_resident() const
  774. {
  775. size_t bytes = 0;
  776. for (size_t i = 0; i < page_count(); ++i) {
  777. if (m_vmo->physical_pages()[first_page_index() + i])
  778. bytes += PAGE_SIZE;
  779. }
  780. return bytes;
  781. }
  782. size_t Region::amount_shared() const
  783. {
  784. size_t bytes = 0;
  785. for (size_t i = 0; i < page_count(); ++i) {
  786. auto& physical_page = m_vmo->physical_pages()[first_page_index() + i];
  787. if (physical_page && physical_page->retain_count() > 1)
  788. bytes += PAGE_SIZE;
  789. }
  790. return bytes;
  791. }
  792. PageDirectory::~PageDirectory()
  793. {
  794. #ifdef MM_DEBUG
  795. dbgprintf("MM: ~PageDirectory K%x\n", this);
  796. #endif
  797. }
  798. void PageDirectory::flush(LinearAddress laddr)
  799. {
  800. if (&current->page_directory() == this)
  801. MM.flush_tlb(laddr);
  802. }