Region.cpp 15 KB

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  1. #include <Kernel/FileSystem/Inode.h>
  2. #include <Kernel/Process.h>
  3. #include <Kernel/Thread.h>
  4. #include <Kernel/VM/AnonymousVMObject.h>
  5. #include <Kernel/VM/InodeVMObject.h>
  6. #include <Kernel/VM/MemoryManager.h>
  7. #include <Kernel/VM/Region.h>
  8. //#define MM_DEBUG
  9. //#define PAGE_FAULT_DEBUG
  10. Region::Region(const Range& range, const String& name, u8 access)
  11. : m_range(range)
  12. , m_vmobject(AnonymousVMObject::create_with_size(size()))
  13. , m_name(name)
  14. , m_access(access)
  15. {
  16. MM.register_region(*this);
  17. }
  18. Region::Region(const Range& range, NonnullRefPtr<Inode> inode, const String& name, u8 access)
  19. : m_range(range)
  20. , m_vmobject(InodeVMObject::create_with_inode(*inode))
  21. , m_name(name)
  22. , m_access(access)
  23. {
  24. MM.register_region(*this);
  25. }
  26. Region::Region(const Range& range, NonnullRefPtr<VMObject> vmobject, size_t offset_in_vmobject, const String& name, u8 access)
  27. : m_range(range)
  28. , m_offset_in_vmobject(offset_in_vmobject)
  29. , m_vmobject(move(vmobject))
  30. , m_name(name)
  31. , m_access(access)
  32. {
  33. MM.register_region(*this);
  34. }
  35. Region::~Region()
  36. {
  37. // Make sure we disable interrupts so we don't get interrupted between unmapping and unregistering.
  38. // Unmapping the region will give the VM back to the RangeAllocator, so an interrupt handler would
  39. // find the address<->region mappings in an invalid state there.
  40. InterruptDisabler disabler;
  41. if (m_page_directory) {
  42. unmap(ShouldDeallocateVirtualMemoryRange::Yes);
  43. ASSERT(!m_page_directory);
  44. }
  45. MM.unregister_region(*this);
  46. }
  47. NonnullOwnPtr<Region> Region::clone()
  48. {
  49. ASSERT(current);
  50. // FIXME: What should we do for privately mapped InodeVMObjects?
  51. if (m_shared || vmobject().is_inode()) {
  52. ASSERT(!m_stack);
  53. #ifdef MM_DEBUG
  54. dbgprintf("%s<%u> Region::clone(): sharing %s (V%p)\n",
  55. current->process().name().characters(),
  56. current->pid(),
  57. m_name.characters(),
  58. vaddr().get());
  59. #endif
  60. // Create a new region backed by the same VMObject.
  61. return Region::create_user_accessible(m_range, m_vmobject, m_offset_in_vmobject, m_name, m_access);
  62. }
  63. #ifdef MM_DEBUG
  64. dbgprintf("%s<%u> Region::clone(): cowing %s (V%p)\n",
  65. current->process().name().characters(),
  66. current->pid(),
  67. m_name.characters(),
  68. vaddr().get());
  69. #endif
  70. // Set up a COW region. The parent (this) region becomes COW as well!
  71. ensure_cow_map().fill(true);
  72. remap();
  73. auto clone_region = Region::create_user_accessible(m_range, m_vmobject->clone(), m_offset_in_vmobject, m_name, m_access);
  74. clone_region->ensure_cow_map();
  75. if (m_stack) {
  76. ASSERT(is_readable());
  77. ASSERT(is_writable());
  78. ASSERT(!is_shared());
  79. ASSERT(vmobject().is_anonymous());
  80. clone_region->set_stack(true);
  81. }
  82. return clone_region;
  83. }
  84. bool Region::commit()
  85. {
  86. InterruptDisabler disabler;
  87. #ifdef MM_DEBUG
  88. dbgprintf("MM: commit %u pages in Region %p (VMO=%p) at V%p\n", vmobject().page_count(), this, &vmobject(), vaddr().get());
  89. #endif
  90. for (size_t i = 0; i < page_count(); ++i) {
  91. if (!commit(i))
  92. return false;
  93. }
  94. return true;
  95. }
  96. bool Region::commit(size_t page_index)
  97. {
  98. ASSERT(vmobject().is_anonymous() || vmobject().is_purgeable());
  99. InterruptDisabler disabler;
  100. #ifdef MM_DEBUG
  101. dbgprintf("MM: commit single page (%zu) in Region %p (VMO=%p) at V%p\n", page_index, vmobject().page_count(), this, &vmobject(), vaddr().get());
  102. #endif
  103. auto& vmobject_physical_page_entry = vmobject().physical_pages()[first_page_index() + page_index];
  104. if (!vmobject_physical_page_entry.is_null())
  105. return true;
  106. auto physical_page = MM.allocate_user_physical_page(MemoryManager::ShouldZeroFill::Yes);
  107. if (!physical_page) {
  108. kprintf("MM: commit was unable to allocate a physical page\n");
  109. return false;
  110. }
  111. vmobject_physical_page_entry = move(physical_page);
  112. remap_page(page_index);
  113. return true;
  114. }
  115. u32 Region::cow_pages() const
  116. {
  117. if (!m_cow_map)
  118. return 0;
  119. u32 count = 0;
  120. for (int i = 0; i < m_cow_map->size(); ++i)
  121. count += m_cow_map->get(i);
  122. return count;
  123. }
  124. size_t Region::amount_dirty() const
  125. {
  126. if (!vmobject().is_inode())
  127. return amount_resident();
  128. return static_cast<const InodeVMObject&>(vmobject()).amount_dirty();
  129. }
  130. size_t Region::amount_resident() const
  131. {
  132. size_t bytes = 0;
  133. for (size_t i = 0; i < page_count(); ++i) {
  134. if (m_vmobject->physical_pages()[first_page_index() + i])
  135. bytes += PAGE_SIZE;
  136. }
  137. return bytes;
  138. }
  139. size_t Region::amount_shared() const
  140. {
  141. size_t bytes = 0;
  142. for (size_t i = 0; i < page_count(); ++i) {
  143. auto& physical_page = m_vmobject->physical_pages()[first_page_index() + i];
  144. if (physical_page && physical_page->ref_count() > 1)
  145. bytes += PAGE_SIZE;
  146. }
  147. return bytes;
  148. }
  149. NonnullOwnPtr<Region> Region::create_user_accessible(const Range& range, const StringView& name, u8 access)
  150. {
  151. auto region = make<Region>(range, name, access);
  152. region->m_user_accessible = true;
  153. return region;
  154. }
  155. NonnullOwnPtr<Region> Region::create_user_accessible(const Range& range, NonnullRefPtr<VMObject> vmobject, size_t offset_in_vmobject, const StringView& name, u8 access)
  156. {
  157. auto region = make<Region>(range, move(vmobject), offset_in_vmobject, name, access);
  158. region->m_user_accessible = true;
  159. return region;
  160. }
  161. NonnullOwnPtr<Region> Region::create_user_accessible(const Range& range, NonnullRefPtr<Inode> inode, const StringView& name, u8 access)
  162. {
  163. auto region = make<Region>(range, move(inode), name, access);
  164. region->m_user_accessible = true;
  165. return region;
  166. }
  167. NonnullOwnPtr<Region> Region::create_kernel_only(const Range& range, const StringView& name, u8 access)
  168. {
  169. auto region = make<Region>(range, name, access);
  170. region->m_user_accessible = false;
  171. return region;
  172. }
  173. bool Region::should_cow(size_t page_index) const
  174. {
  175. if (m_shared)
  176. return false;
  177. return m_cow_map && m_cow_map->get(page_index);
  178. }
  179. void Region::set_should_cow(size_t page_index, bool cow)
  180. {
  181. ASSERT(!m_shared);
  182. ensure_cow_map().set(page_index, cow);
  183. }
  184. Bitmap& Region::ensure_cow_map() const
  185. {
  186. if (!m_cow_map)
  187. m_cow_map = make<Bitmap>(page_count(), true);
  188. return *m_cow_map;
  189. }
  190. void Region::remap_page(size_t index)
  191. {
  192. ASSERT(m_page_directory);
  193. InterruptDisabler disabler;
  194. auto page_vaddr = vaddr().offset(index * PAGE_SIZE);
  195. auto& pte = MM.ensure_pte(*m_page_directory, page_vaddr);
  196. auto& physical_page = vmobject().physical_pages()[first_page_index() + index];
  197. ASSERT(physical_page);
  198. pte.set_physical_page_base(physical_page->paddr().get());
  199. pte.set_present(is_readable());
  200. if (should_cow(index))
  201. pte.set_writable(false);
  202. else
  203. pte.set_writable(is_writable());
  204. if (MM.has_nx_support())
  205. pte.set_execute_disabled(!is_executable());
  206. pte.set_user_allowed(is_user_accessible());
  207. m_page_directory->flush(page_vaddr);
  208. #ifdef MM_DEBUG
  209. dbg() << "MM: >> region.remap_page (PD=" << m_page_directory->cr3() << ", PTE=" << (void*)pte.raw() << "{" << &pte << "}) " << name() << " " << page_vaddr << " => " << physical_page->paddr() << " (@" << physical_page.ptr() << ")";
  210. #endif
  211. }
  212. void Region::unmap(ShouldDeallocateVirtualMemoryRange deallocate_range)
  213. {
  214. InterruptDisabler disabler;
  215. ASSERT(m_page_directory);
  216. for (size_t i = 0; i < page_count(); ++i) {
  217. auto vaddr = this->vaddr().offset(i * PAGE_SIZE);
  218. auto& pte = MM.ensure_pte(*m_page_directory, vaddr);
  219. pte.set_physical_page_base(0);
  220. pte.set_present(false);
  221. pte.set_writable(false);
  222. pte.set_user_allowed(false);
  223. m_page_directory->flush(vaddr);
  224. #ifdef MM_DEBUG
  225. auto& physical_page = vmobject().physical_pages()[first_page_index() + i];
  226. dbgprintf("MM: >> Unmapped V%p => P%p <<\n", vaddr.get(), physical_page ? physical_page->paddr().get() : 0);
  227. #endif
  228. }
  229. if (deallocate_range == ShouldDeallocateVirtualMemoryRange::Yes)
  230. m_page_directory->range_allocator().deallocate(range());
  231. m_page_directory = nullptr;
  232. }
  233. void Region::map(PageDirectory& page_directory)
  234. {
  235. ASSERT(!m_page_directory || m_page_directory == &page_directory);
  236. InterruptDisabler disabler;
  237. m_page_directory = page_directory;
  238. #ifdef MM_DEBUG
  239. dbgprintf("MM: map_region_at_address will map VMO pages %u - %u (VMO page count: %u)\n", first_page_index(), last_page_index(), vmobject().page_count());
  240. #endif
  241. for (size_t i = 0; i < page_count(); ++i) {
  242. auto page_vaddr = vaddr().offset(i * PAGE_SIZE);
  243. auto& pte = MM.ensure_pte(page_directory, page_vaddr);
  244. auto& physical_page = vmobject().physical_pages()[first_page_index() + i];
  245. if (physical_page) {
  246. pte.set_physical_page_base(physical_page->paddr().get());
  247. pte.set_present(is_readable());
  248. if (should_cow(i))
  249. pte.set_writable(false);
  250. else
  251. pte.set_writable(is_writable());
  252. if (MM.has_nx_support())
  253. pte.set_execute_disabled(!is_executable());
  254. } else {
  255. pte.set_physical_page_base(0);
  256. pte.set_present(false);
  257. pte.set_writable(is_writable());
  258. }
  259. pte.set_user_allowed(is_user_accessible());
  260. page_directory.flush(page_vaddr);
  261. #ifdef MM_DEBUG
  262. dbgprintf("MM: >> map_region_at_address (PD=%p) '%s' V%p => P%p (@%p)\n", &page_directory, name().characters(), page_vaddr.get(), physical_page ? physical_page->paddr().get() : 0, physical_page.ptr());
  263. #endif
  264. }
  265. }
  266. void Region::remap()
  267. {
  268. ASSERT(m_page_directory);
  269. map(*m_page_directory);
  270. }
  271. PageFaultResponse Region::handle_fault(const PageFault& fault)
  272. {
  273. auto page_index_in_region = page_index_from_address(fault.vaddr());
  274. if (fault.type() == PageFault::Type::PageNotPresent) {
  275. if (!is_readable()) {
  276. dbgprintf("NP(non-readable) fault in Region{%p}[%u]\n", this, page_index_in_region);
  277. return PageFaultResponse::ShouldCrash;
  278. }
  279. if (vmobject().is_inode()) {
  280. #ifdef PAGE_FAULT_DEBUG
  281. dbgprintf("NP(inode) fault in Region{%p}[%u]\n", this, page_index_in_region);
  282. #endif
  283. return handle_inode_fault(page_index_in_region);
  284. }
  285. #ifdef PAGE_FAULT_DEBUG
  286. dbgprintf("NP(zero) fault in Region{%p}[%u]\n", this, page_index_in_region);
  287. #endif
  288. return handle_zero_fault(page_index_in_region);
  289. }
  290. ASSERT(fault.type() == PageFault::Type::ProtectionViolation);
  291. if (fault.access() == PageFault::Access::Write && is_writable() && should_cow(page_index_in_region)) {
  292. #ifdef PAGE_FAULT_DEBUG
  293. dbgprintf("PV(cow) fault in Region{%p}[%u]\n", this, page_index_in_region);
  294. #endif
  295. return handle_cow_fault(page_index_in_region);
  296. }
  297. kprintf("PV(error) fault in Region{%p}[%u] at V%p\n", this, page_index_in_region, fault.vaddr().get());
  298. return PageFaultResponse::ShouldCrash;
  299. }
  300. PageFaultResponse Region::handle_zero_fault(size_t page_index_in_region)
  301. {
  302. ASSERT_INTERRUPTS_DISABLED();
  303. ASSERT(vmobject().is_anonymous());
  304. sti();
  305. LOCKER(vmobject().m_paging_lock);
  306. cli();
  307. auto& vmobject_physical_page_entry = vmobject().physical_pages()[first_page_index() + page_index_in_region];
  308. if (!vmobject_physical_page_entry.is_null()) {
  309. #ifdef PAGE_FAULT_DEBUG
  310. dbgprintf("MM: zero_page() but page already present. Fine with me!\n");
  311. #endif
  312. remap_page(page_index_in_region);
  313. return PageFaultResponse::Continue;
  314. }
  315. if (current)
  316. current->did_zero_fault();
  317. auto physical_page = MM.allocate_user_physical_page(MemoryManager::ShouldZeroFill::Yes);
  318. if (physical_page.is_null()) {
  319. kprintf("MM: handle_zero_fault was unable to allocate a physical page\n");
  320. return PageFaultResponse::ShouldCrash;
  321. }
  322. #ifdef PAGE_FAULT_DEBUG
  323. dbgprintf(" >> ZERO P%p\n", physical_page->paddr().get());
  324. #endif
  325. vmobject_physical_page_entry = move(physical_page);
  326. remap_page(page_index_in_region);
  327. return PageFaultResponse::Continue;
  328. }
  329. PageFaultResponse Region::handle_cow_fault(size_t page_index_in_region)
  330. {
  331. ASSERT_INTERRUPTS_DISABLED();
  332. auto& vmobject_physical_page_entry = vmobject().physical_pages()[first_page_index() + page_index_in_region];
  333. if (vmobject_physical_page_entry->ref_count() == 1) {
  334. #ifdef PAGE_FAULT_DEBUG
  335. dbgprintf(" >> It's a COW page but nobody is sharing it anymore. Remap r/w\n");
  336. #endif
  337. set_should_cow(page_index_in_region, false);
  338. remap_page(page_index_in_region);
  339. return PageFaultResponse::Continue;
  340. }
  341. if (current)
  342. current->did_cow_fault();
  343. #ifdef PAGE_FAULT_DEBUG
  344. dbgprintf(" >> It's a COW page and it's time to COW!\n");
  345. #endif
  346. auto physical_page_to_copy = move(vmobject_physical_page_entry);
  347. auto physical_page = MM.allocate_user_physical_page(MemoryManager::ShouldZeroFill::No);
  348. if (physical_page.is_null()) {
  349. kprintf("MM: handle_cow_fault was unable to allocate a physical page\n");
  350. return PageFaultResponse::ShouldCrash;
  351. }
  352. u8* dest_ptr = MM.quickmap_page(*physical_page);
  353. const u8* src_ptr = vaddr().offset(page_index_in_region * PAGE_SIZE).as_ptr();
  354. #ifdef PAGE_FAULT_DEBUG
  355. dbgprintf(" >> COW P%p <- P%p\n", physical_page->paddr().get(), physical_page_to_copy->paddr().get());
  356. #endif
  357. memcpy(dest_ptr, src_ptr, PAGE_SIZE);
  358. vmobject_physical_page_entry = move(physical_page);
  359. MM.unquickmap_page();
  360. set_should_cow(page_index_in_region, false);
  361. remap_page(page_index_in_region);
  362. return PageFaultResponse::Continue;
  363. }
  364. PageFaultResponse Region::handle_inode_fault(size_t page_index_in_region)
  365. {
  366. ASSERT_INTERRUPTS_DISABLED();
  367. ASSERT(vmobject().is_inode());
  368. auto& inode_vmobject = static_cast<InodeVMObject&>(vmobject());
  369. auto& vmobject_physical_page_entry = inode_vmobject.physical_pages()[first_page_index() + page_index_in_region];
  370. sti();
  371. LOCKER(vmobject().m_paging_lock);
  372. cli();
  373. #ifdef PAGE_FAULT_DEBUG
  374. dbg() << *current << " inode fault in " << name() << " page index: " << page_index_in_region;
  375. #endif
  376. if (!vmobject_physical_page_entry.is_null()) {
  377. #ifdef PAGE_FAULT_DEBUG
  378. dbgprintf("MM: page_in_from_inode() but page already present. Fine with me!\n");
  379. #endif
  380. remap_page(page_index_in_region);
  381. return PageFaultResponse::Continue;
  382. }
  383. if (current)
  384. current->did_inode_fault();
  385. #ifdef MM_DEBUG
  386. dbgprintf("MM: page_in_from_inode ready to read from inode\n");
  387. #endif
  388. sti();
  389. u8 page_buffer[PAGE_SIZE];
  390. auto& inode = inode_vmobject.inode();
  391. auto nread = inode.read_bytes((first_page_index() + page_index_in_region) * PAGE_SIZE, PAGE_SIZE, page_buffer, nullptr);
  392. if (nread < 0) {
  393. kprintf("MM: handle_inode_fault had error (%d) while reading!\n", nread);
  394. return PageFaultResponse::ShouldCrash;
  395. }
  396. if (nread < PAGE_SIZE) {
  397. // If we read less than a page, zero out the rest to avoid leaking uninitialized data.
  398. memset(page_buffer + nread, 0, PAGE_SIZE - nread);
  399. }
  400. cli();
  401. vmobject_physical_page_entry = MM.allocate_user_physical_page(MemoryManager::ShouldZeroFill::No);
  402. if (vmobject_physical_page_entry.is_null()) {
  403. kprintf("MM: handle_inode_fault was unable to allocate a physical page\n");
  404. return PageFaultResponse::ShouldCrash;
  405. }
  406. u8* dest_ptr = MM.quickmap_page(*vmobject_physical_page_entry);
  407. memcpy(dest_ptr, page_buffer, PAGE_SIZE);
  408. MM.unquickmap_page();
  409. remap_page(page_index_in_region);
  410. return PageFaultResponse::Continue;
  411. }