k_page_table.cpp 54 KB

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  1. // Copyright 2020 yuzu Emulator Project
  2. // Licensed under GPLv2 or any later version
  3. // Refer to the license.txt file included.
  4. #include "common/alignment.h"
  5. #include "common/assert.h"
  6. #include "common/literals.h"
  7. #include "common/scope_exit.h"
  8. #include "core/core.h"
  9. #include "core/hle/kernel/k_address_space_info.h"
  10. #include "core/hle/kernel/k_memory_block.h"
  11. #include "core/hle/kernel/k_memory_block_manager.h"
  12. #include "core/hle/kernel/k_page_linked_list.h"
  13. #include "core/hle/kernel/k_page_table.h"
  14. #include "core/hle/kernel/k_process.h"
  15. #include "core/hle/kernel/k_resource_limit.h"
  16. #include "core/hle/kernel/k_scoped_resource_reservation.h"
  17. #include "core/hle/kernel/k_system_control.h"
  18. #include "core/hle/kernel/kernel.h"
  19. #include "core/hle/kernel/svc_results.h"
  20. #include "core/memory.h"
  21. namespace Kernel {
  22. namespace {
  23. using namespace Common::Literals;
  24. constexpr std::size_t GetAddressSpaceWidthFromType(FileSys::ProgramAddressSpaceType as_type) {
  25. switch (as_type) {
  26. case FileSys::ProgramAddressSpaceType::Is32Bit:
  27. case FileSys::ProgramAddressSpaceType::Is32BitNoMap:
  28. return 32;
  29. case FileSys::ProgramAddressSpaceType::Is36Bit:
  30. return 36;
  31. case FileSys::ProgramAddressSpaceType::Is39Bit:
  32. return 39;
  33. default:
  34. UNREACHABLE();
  35. return {};
  36. }
  37. }
  38. constexpr u64 GetAddressInRange(const KMemoryInfo& info, VAddr addr) {
  39. if (info.GetAddress() < addr) {
  40. return addr;
  41. }
  42. return info.GetAddress();
  43. }
  44. constexpr std::size_t GetSizeInRange(const KMemoryInfo& info, VAddr start, VAddr end) {
  45. std::size_t size{info.GetSize()};
  46. if (info.GetAddress() < start) {
  47. size -= start - info.GetAddress();
  48. }
  49. if (info.GetEndAddress() > end) {
  50. size -= info.GetEndAddress() - end;
  51. }
  52. return size;
  53. }
  54. } // namespace
  55. KPageTable::KPageTable(Core::System& system_) : system{system_} {}
  56. ResultCode KPageTable::InitializeForProcess(FileSys::ProgramAddressSpaceType as_type,
  57. bool enable_aslr, VAddr code_addr,
  58. std::size_t code_size, KMemoryManager::Pool pool) {
  59. const auto GetSpaceStart = [this](KAddressSpaceInfo::Type type) {
  60. return KAddressSpaceInfo::GetAddressSpaceStart(address_space_width, type);
  61. };
  62. const auto GetSpaceSize = [this](KAddressSpaceInfo::Type type) {
  63. return KAddressSpaceInfo::GetAddressSpaceSize(address_space_width, type);
  64. };
  65. // Set our width and heap/alias sizes
  66. address_space_width = GetAddressSpaceWidthFromType(as_type);
  67. const VAddr start = 0;
  68. const VAddr end{1ULL << address_space_width};
  69. std::size_t alias_region_size{GetSpaceSize(KAddressSpaceInfo::Type::Alias)};
  70. std::size_t heap_region_size{GetSpaceSize(KAddressSpaceInfo::Type::Heap)};
  71. ASSERT(start <= code_addr);
  72. ASSERT(code_addr < code_addr + code_size);
  73. ASSERT(code_addr + code_size - 1 <= end - 1);
  74. // Adjust heap/alias size if we don't have an alias region
  75. if (as_type == FileSys::ProgramAddressSpaceType::Is32BitNoMap) {
  76. heap_region_size += alias_region_size;
  77. alias_region_size = 0;
  78. }
  79. // Set code regions and determine remaining
  80. constexpr std::size_t RegionAlignment{2_MiB};
  81. VAddr process_code_start{};
  82. VAddr process_code_end{};
  83. std::size_t stack_region_size{};
  84. std::size_t kernel_map_region_size{};
  85. if (address_space_width == 39) {
  86. alias_region_size = GetSpaceSize(KAddressSpaceInfo::Type::Alias);
  87. heap_region_size = GetSpaceSize(KAddressSpaceInfo::Type::Heap);
  88. stack_region_size = GetSpaceSize(KAddressSpaceInfo::Type::Stack);
  89. kernel_map_region_size = GetSpaceSize(KAddressSpaceInfo::Type::MapSmall);
  90. code_region_start = GetSpaceStart(KAddressSpaceInfo::Type::Map39Bit);
  91. code_region_end = code_region_start + GetSpaceSize(KAddressSpaceInfo::Type::Map39Bit);
  92. alias_code_region_start = code_region_start;
  93. alias_code_region_end = code_region_end;
  94. process_code_start = Common::AlignDown(code_addr, RegionAlignment);
  95. process_code_end = Common::AlignUp(code_addr + code_size, RegionAlignment);
  96. } else {
  97. stack_region_size = 0;
  98. kernel_map_region_size = 0;
  99. code_region_start = GetSpaceStart(KAddressSpaceInfo::Type::MapSmall);
  100. code_region_end = code_region_start + GetSpaceSize(KAddressSpaceInfo::Type::MapSmall);
  101. stack_region_start = code_region_start;
  102. alias_code_region_start = code_region_start;
  103. alias_code_region_end = GetSpaceStart(KAddressSpaceInfo::Type::MapLarge) +
  104. GetSpaceSize(KAddressSpaceInfo::Type::MapLarge);
  105. stack_region_end = code_region_end;
  106. kernel_map_region_start = code_region_start;
  107. kernel_map_region_end = code_region_end;
  108. process_code_start = code_region_start;
  109. process_code_end = code_region_end;
  110. }
  111. // Set other basic fields
  112. is_aslr_enabled = enable_aslr;
  113. address_space_start = start;
  114. address_space_end = end;
  115. is_kernel = false;
  116. // Determine the region we can place our undetermineds in
  117. VAddr alloc_start{};
  118. std::size_t alloc_size{};
  119. if ((process_code_start - code_region_start) >= (end - process_code_end)) {
  120. alloc_start = code_region_start;
  121. alloc_size = process_code_start - code_region_start;
  122. } else {
  123. alloc_start = process_code_end;
  124. alloc_size = end - process_code_end;
  125. }
  126. const std::size_t needed_size{
  127. (alias_region_size + heap_region_size + stack_region_size + kernel_map_region_size)};
  128. if (alloc_size < needed_size) {
  129. UNREACHABLE();
  130. return ResultOutOfMemory;
  131. }
  132. const std::size_t remaining_size{alloc_size - needed_size};
  133. // Determine random placements for each region
  134. std::size_t alias_rnd{}, heap_rnd{}, stack_rnd{}, kmap_rnd{};
  135. if (enable_aslr) {
  136. alias_rnd = KSystemControl::GenerateRandomRange(0, remaining_size / RegionAlignment) *
  137. RegionAlignment;
  138. heap_rnd = KSystemControl::GenerateRandomRange(0, remaining_size / RegionAlignment) *
  139. RegionAlignment;
  140. stack_rnd = KSystemControl::GenerateRandomRange(0, remaining_size / RegionAlignment) *
  141. RegionAlignment;
  142. kmap_rnd = KSystemControl::GenerateRandomRange(0, remaining_size / RegionAlignment) *
  143. RegionAlignment;
  144. }
  145. // Setup heap and alias regions
  146. alias_region_start = alloc_start + alias_rnd;
  147. alias_region_end = alias_region_start + alias_region_size;
  148. heap_region_start = alloc_start + heap_rnd;
  149. heap_region_end = heap_region_start + heap_region_size;
  150. if (alias_rnd <= heap_rnd) {
  151. heap_region_start += alias_region_size;
  152. heap_region_end += alias_region_size;
  153. } else {
  154. alias_region_start += heap_region_size;
  155. alias_region_end += heap_region_size;
  156. }
  157. // Setup stack region
  158. if (stack_region_size) {
  159. stack_region_start = alloc_start + stack_rnd;
  160. stack_region_end = stack_region_start + stack_region_size;
  161. if (alias_rnd < stack_rnd) {
  162. stack_region_start += alias_region_size;
  163. stack_region_end += alias_region_size;
  164. } else {
  165. alias_region_start += stack_region_size;
  166. alias_region_end += stack_region_size;
  167. }
  168. if (heap_rnd < stack_rnd) {
  169. stack_region_start += heap_region_size;
  170. stack_region_end += heap_region_size;
  171. } else {
  172. heap_region_start += stack_region_size;
  173. heap_region_end += stack_region_size;
  174. }
  175. }
  176. // Setup kernel map region
  177. if (kernel_map_region_size) {
  178. kernel_map_region_start = alloc_start + kmap_rnd;
  179. kernel_map_region_end = kernel_map_region_start + kernel_map_region_size;
  180. if (alias_rnd < kmap_rnd) {
  181. kernel_map_region_start += alias_region_size;
  182. kernel_map_region_end += alias_region_size;
  183. } else {
  184. alias_region_start += kernel_map_region_size;
  185. alias_region_end += kernel_map_region_size;
  186. }
  187. if (heap_rnd < kmap_rnd) {
  188. kernel_map_region_start += heap_region_size;
  189. kernel_map_region_end += heap_region_size;
  190. } else {
  191. heap_region_start += kernel_map_region_size;
  192. heap_region_end += kernel_map_region_size;
  193. }
  194. if (stack_region_size) {
  195. if (stack_rnd < kmap_rnd) {
  196. kernel_map_region_start += stack_region_size;
  197. kernel_map_region_end += stack_region_size;
  198. } else {
  199. stack_region_start += kernel_map_region_size;
  200. stack_region_end += kernel_map_region_size;
  201. }
  202. }
  203. }
  204. // Set heap members
  205. current_heap_end = heap_region_start;
  206. max_heap_size = 0;
  207. max_physical_memory_size = 0;
  208. // Ensure that we regions inside our address space
  209. auto IsInAddressSpace = [&](VAddr addr) {
  210. return address_space_start <= addr && addr <= address_space_end;
  211. };
  212. ASSERT(IsInAddressSpace(alias_region_start));
  213. ASSERT(IsInAddressSpace(alias_region_end));
  214. ASSERT(IsInAddressSpace(heap_region_start));
  215. ASSERT(IsInAddressSpace(heap_region_end));
  216. ASSERT(IsInAddressSpace(stack_region_start));
  217. ASSERT(IsInAddressSpace(stack_region_end));
  218. ASSERT(IsInAddressSpace(kernel_map_region_start));
  219. ASSERT(IsInAddressSpace(kernel_map_region_end));
  220. // Ensure that we selected regions that don't overlap
  221. const VAddr alias_start{alias_region_start};
  222. const VAddr alias_last{alias_region_end - 1};
  223. const VAddr heap_start{heap_region_start};
  224. const VAddr heap_last{heap_region_end - 1};
  225. const VAddr stack_start{stack_region_start};
  226. const VAddr stack_last{stack_region_end - 1};
  227. const VAddr kmap_start{kernel_map_region_start};
  228. const VAddr kmap_last{kernel_map_region_end - 1};
  229. ASSERT(alias_last < heap_start || heap_last < alias_start);
  230. ASSERT(alias_last < stack_start || stack_last < alias_start);
  231. ASSERT(alias_last < kmap_start || kmap_last < alias_start);
  232. ASSERT(heap_last < stack_start || stack_last < heap_start);
  233. ASSERT(heap_last < kmap_start || kmap_last < heap_start);
  234. current_heap_end = heap_region_start;
  235. max_heap_size = 0;
  236. mapped_physical_memory_size = 0;
  237. memory_pool = pool;
  238. page_table_impl.Resize(address_space_width, PageBits);
  239. return InitializeMemoryLayout(start, end);
  240. }
  241. ResultCode KPageTable::MapProcessCode(VAddr addr, std::size_t num_pages, KMemoryState state,
  242. KMemoryPermission perm) {
  243. std::lock_guard lock{page_table_lock};
  244. const u64 size{num_pages * PageSize};
  245. if (!CanContain(addr, size, state)) {
  246. return ResultInvalidCurrentMemory;
  247. }
  248. if (IsRegionMapped(addr, size)) {
  249. return ResultInvalidCurrentMemory;
  250. }
  251. KPageLinkedList page_linked_list;
  252. CASCADE_CODE(
  253. system.Kernel().MemoryManager().Allocate(page_linked_list, num_pages, memory_pool));
  254. CASCADE_CODE(Operate(addr, num_pages, page_linked_list, OperationType::MapGroup));
  255. block_manager->Update(addr, num_pages, state, perm);
  256. return ResultSuccess;
  257. }
  258. ResultCode KPageTable::MapProcessCodeMemory(VAddr dst_addr, VAddr src_addr, std::size_t size) {
  259. std::lock_guard lock{page_table_lock};
  260. const std::size_t num_pages{size / PageSize};
  261. KMemoryState state{};
  262. KMemoryPermission perm{};
  263. CASCADE_CODE(CheckMemoryState(&state, &perm, nullptr, nullptr, src_addr, size,
  264. KMemoryState::All, KMemoryState::Normal, KMemoryPermission::All,
  265. KMemoryPermission::ReadAndWrite, KMemoryAttribute::Mask,
  266. KMemoryAttribute::None, KMemoryAttribute::IpcAndDeviceMapped));
  267. if (IsRegionMapped(dst_addr, size)) {
  268. return ResultInvalidCurrentMemory;
  269. }
  270. KPageLinkedList page_linked_list;
  271. AddRegionToPages(src_addr, num_pages, page_linked_list);
  272. {
  273. auto block_guard = detail::ScopeExit(
  274. [&] { Operate(src_addr, num_pages, perm, OperationType::ChangePermissions); });
  275. CASCADE_CODE(Operate(src_addr, num_pages, KMemoryPermission::None,
  276. OperationType::ChangePermissions));
  277. CASCADE_CODE(MapPages(dst_addr, page_linked_list, KMemoryPermission::None));
  278. block_guard.Cancel();
  279. }
  280. block_manager->Update(src_addr, num_pages, state, KMemoryPermission::None,
  281. KMemoryAttribute::Locked);
  282. block_manager->Update(dst_addr, num_pages, KMemoryState::AliasCode);
  283. return ResultSuccess;
  284. }
  285. ResultCode KPageTable::UnmapProcessCodeMemory(VAddr dst_addr, VAddr src_addr, std::size_t size) {
  286. std::lock_guard lock{page_table_lock};
  287. if (!size) {
  288. return ResultSuccess;
  289. }
  290. const std::size_t num_pages{size / PageSize};
  291. CASCADE_CODE(CheckMemoryState(nullptr, nullptr, nullptr, nullptr, src_addr, size,
  292. KMemoryState::All, KMemoryState::Normal, KMemoryPermission::None,
  293. KMemoryPermission::None, KMemoryAttribute::Mask,
  294. KMemoryAttribute::Locked, KMemoryAttribute::IpcAndDeviceMapped));
  295. KMemoryState state{};
  296. CASCADE_CODE(CheckMemoryState(
  297. &state, nullptr, nullptr, nullptr, dst_addr, PageSize, KMemoryState::FlagCanCodeAlias,
  298. KMemoryState::FlagCanCodeAlias, KMemoryPermission::None, KMemoryPermission::None,
  299. KMemoryAttribute::Mask, KMemoryAttribute::None, KMemoryAttribute::IpcAndDeviceMapped));
  300. CASCADE_CODE(CheckMemoryState(dst_addr, size, KMemoryState::All, state, KMemoryPermission::None,
  301. KMemoryPermission::None, KMemoryAttribute::Mask,
  302. KMemoryAttribute::None));
  303. CASCADE_CODE(Operate(dst_addr, num_pages, KMemoryPermission::None, OperationType::Unmap));
  304. block_manager->Update(dst_addr, num_pages, KMemoryState::Free);
  305. block_manager->Update(src_addr, num_pages, KMemoryState::Normal,
  306. KMemoryPermission::ReadAndWrite);
  307. system.InvalidateCpuInstructionCacheRange(dst_addr, size);
  308. return ResultSuccess;
  309. }
  310. ResultCode KPageTable::UnmapProcessMemory(VAddr dst_addr, std::size_t size,
  311. KPageTable& src_page_table, VAddr src_addr) {
  312. std::lock_guard lock{page_table_lock};
  313. const std::size_t num_pages{size / PageSize};
  314. // Check that the memory is mapped in the destination process.
  315. size_t num_allocator_blocks;
  316. R_TRY(CheckMemoryState(&num_allocator_blocks, dst_addr, size, KMemoryState::All,
  317. KMemoryState::SharedCode, KMemoryPermission::UserReadWrite,
  318. KMemoryPermission::UserReadWrite, KMemoryAttribute::All,
  319. KMemoryAttribute::None));
  320. // Check that the memory is mapped in the source process.
  321. R_TRY(src_page_table.CheckMemoryState(src_addr, size, KMemoryState::FlagCanMapProcess,
  322. KMemoryState::FlagCanMapProcess, KMemoryPermission::None,
  323. KMemoryPermission::None, KMemoryAttribute::All,
  324. KMemoryAttribute::None));
  325. CASCADE_CODE(Operate(dst_addr, num_pages, KMemoryPermission::None, OperationType::Unmap));
  326. // Apply the memory block update.
  327. block_manager->Update(dst_addr, num_pages, KMemoryState::Free, KMemoryPermission::None,
  328. KMemoryAttribute::None);
  329. return ResultSuccess;
  330. }
  331. void KPageTable::MapPhysicalMemory(KPageLinkedList& page_linked_list, VAddr start, VAddr end) {
  332. auto node{page_linked_list.Nodes().begin()};
  333. PAddr map_addr{node->GetAddress()};
  334. std::size_t src_num_pages{node->GetNumPages()};
  335. block_manager->IterateForRange(start, end, [&](const KMemoryInfo& info) {
  336. if (info.state != KMemoryState::Free) {
  337. return;
  338. }
  339. std::size_t dst_num_pages{GetSizeInRange(info, start, end) / PageSize};
  340. VAddr dst_addr{GetAddressInRange(info, start)};
  341. while (dst_num_pages) {
  342. if (!src_num_pages) {
  343. node = std::next(node);
  344. map_addr = node->GetAddress();
  345. src_num_pages = node->GetNumPages();
  346. }
  347. const std::size_t num_pages{std::min(src_num_pages, dst_num_pages)};
  348. Operate(dst_addr, num_pages, KMemoryPermission::ReadAndWrite, OperationType::Map,
  349. map_addr);
  350. dst_addr += num_pages * PageSize;
  351. map_addr += num_pages * PageSize;
  352. src_num_pages -= num_pages;
  353. dst_num_pages -= num_pages;
  354. }
  355. });
  356. }
  357. ResultCode KPageTable::MapPhysicalMemory(VAddr addr, std::size_t size) {
  358. std::lock_guard lock{page_table_lock};
  359. std::size_t mapped_size{};
  360. const VAddr end_addr{addr + size};
  361. block_manager->IterateForRange(addr, end_addr, [&](const KMemoryInfo& info) {
  362. if (info.state != KMemoryState::Free) {
  363. mapped_size += GetSizeInRange(info, addr, end_addr);
  364. }
  365. });
  366. if (mapped_size == size) {
  367. return ResultSuccess;
  368. }
  369. const std::size_t remaining_size{size - mapped_size};
  370. const std::size_t remaining_pages{remaining_size / PageSize};
  371. // Reserve the memory from the process resource limit.
  372. KScopedResourceReservation memory_reservation(
  373. system.Kernel().CurrentProcess()->GetResourceLimit(), LimitableResource::PhysicalMemory,
  374. remaining_size);
  375. if (!memory_reservation.Succeeded()) {
  376. LOG_ERROR(Kernel, "Could not reserve remaining {:X} bytes", remaining_size);
  377. return ResultLimitReached;
  378. }
  379. KPageLinkedList page_linked_list;
  380. CASCADE_CODE(
  381. system.Kernel().MemoryManager().Allocate(page_linked_list, remaining_pages, memory_pool));
  382. // We succeeded, so commit the memory reservation.
  383. memory_reservation.Commit();
  384. MapPhysicalMemory(page_linked_list, addr, end_addr);
  385. mapped_physical_memory_size += remaining_size;
  386. const std::size_t num_pages{size / PageSize};
  387. block_manager->Update(addr, num_pages, KMemoryState::Free, KMemoryPermission::None,
  388. KMemoryAttribute::None, KMemoryState::Normal,
  389. KMemoryPermission::ReadAndWrite, KMemoryAttribute::None);
  390. return ResultSuccess;
  391. }
  392. ResultCode KPageTable::UnmapPhysicalMemory(VAddr addr, std::size_t size) {
  393. std::lock_guard lock{page_table_lock};
  394. const VAddr end_addr{addr + size};
  395. ResultCode result{ResultSuccess};
  396. std::size_t mapped_size{};
  397. // Verify that the region can be unmapped
  398. block_manager->IterateForRange(addr, end_addr, [&](const KMemoryInfo& info) {
  399. if (info.state == KMemoryState::Normal) {
  400. if (info.attribute != KMemoryAttribute::None) {
  401. result = ResultInvalidCurrentMemory;
  402. return;
  403. }
  404. mapped_size += GetSizeInRange(info, addr, end_addr);
  405. } else if (info.state != KMemoryState::Free) {
  406. result = ResultInvalidCurrentMemory;
  407. }
  408. });
  409. if (result.IsError()) {
  410. return result;
  411. }
  412. if (!mapped_size) {
  413. return ResultSuccess;
  414. }
  415. CASCADE_CODE(UnmapMemory(addr, size));
  416. auto process{system.Kernel().CurrentProcess()};
  417. process->GetResourceLimit()->Release(LimitableResource::PhysicalMemory, mapped_size);
  418. mapped_physical_memory_size -= mapped_size;
  419. return ResultSuccess;
  420. }
  421. ResultCode KPageTable::UnmapMemory(VAddr addr, std::size_t size) {
  422. std::lock_guard lock{page_table_lock};
  423. const VAddr end_addr{addr + size};
  424. ResultCode result{ResultSuccess};
  425. KPageLinkedList page_linked_list;
  426. // Unmap each region within the range
  427. block_manager->IterateForRange(addr, end_addr, [&](const KMemoryInfo& info) {
  428. if (info.state == KMemoryState::Normal) {
  429. const std::size_t block_size{GetSizeInRange(info, addr, end_addr)};
  430. const std::size_t block_num_pages{block_size / PageSize};
  431. const VAddr block_addr{GetAddressInRange(info, addr)};
  432. AddRegionToPages(block_addr, block_size / PageSize, page_linked_list);
  433. if (result = Operate(block_addr, block_num_pages, KMemoryPermission::None,
  434. OperationType::Unmap);
  435. result.IsError()) {
  436. return;
  437. }
  438. }
  439. });
  440. if (result.IsError()) {
  441. return result;
  442. }
  443. const std::size_t num_pages{size / PageSize};
  444. system.Kernel().MemoryManager().Free(page_linked_list, num_pages, memory_pool);
  445. block_manager->Update(addr, num_pages, KMemoryState::Free);
  446. return ResultSuccess;
  447. }
  448. ResultCode KPageTable::Map(VAddr dst_addr, VAddr src_addr, std::size_t size) {
  449. std::lock_guard lock{page_table_lock};
  450. KMemoryState src_state{};
  451. CASCADE_CODE(CheckMemoryState(
  452. &src_state, nullptr, nullptr, nullptr, src_addr, size, KMemoryState::FlagCanAlias,
  453. KMemoryState::FlagCanAlias, KMemoryPermission::All, KMemoryPermission::ReadAndWrite,
  454. KMemoryAttribute::Mask, KMemoryAttribute::None, KMemoryAttribute::IpcAndDeviceMapped));
  455. if (IsRegionMapped(dst_addr, size)) {
  456. return ResultInvalidCurrentMemory;
  457. }
  458. KPageLinkedList page_linked_list;
  459. const std::size_t num_pages{size / PageSize};
  460. AddRegionToPages(src_addr, num_pages, page_linked_list);
  461. {
  462. auto block_guard = detail::ScopeExit([&] {
  463. Operate(src_addr, num_pages, KMemoryPermission::ReadAndWrite,
  464. OperationType::ChangePermissions);
  465. });
  466. CASCADE_CODE(Operate(src_addr, num_pages, KMemoryPermission::None,
  467. OperationType::ChangePermissions));
  468. CASCADE_CODE(MapPages(dst_addr, page_linked_list, KMemoryPermission::ReadAndWrite));
  469. block_guard.Cancel();
  470. }
  471. block_manager->Update(src_addr, num_pages, src_state, KMemoryPermission::None,
  472. KMemoryAttribute::Locked);
  473. block_manager->Update(dst_addr, num_pages, KMemoryState::Stack,
  474. KMemoryPermission::ReadAndWrite);
  475. return ResultSuccess;
  476. }
  477. ResultCode KPageTable::Unmap(VAddr dst_addr, VAddr src_addr, std::size_t size) {
  478. std::lock_guard lock{page_table_lock};
  479. KMemoryState src_state{};
  480. CASCADE_CODE(CheckMemoryState(
  481. &src_state, nullptr, nullptr, nullptr, src_addr, size, KMemoryState::FlagCanAlias,
  482. KMemoryState::FlagCanAlias, KMemoryPermission::All, KMemoryPermission::None,
  483. KMemoryAttribute::Mask, KMemoryAttribute::Locked, KMemoryAttribute::IpcAndDeviceMapped));
  484. KMemoryPermission dst_perm{};
  485. CASCADE_CODE(CheckMemoryState(nullptr, &dst_perm, nullptr, nullptr, dst_addr, size,
  486. KMemoryState::All, KMemoryState::Stack, KMemoryPermission::None,
  487. KMemoryPermission::None, KMemoryAttribute::Mask,
  488. KMemoryAttribute::None, KMemoryAttribute::IpcAndDeviceMapped));
  489. KPageLinkedList src_pages;
  490. KPageLinkedList dst_pages;
  491. const std::size_t num_pages{size / PageSize};
  492. AddRegionToPages(src_addr, num_pages, src_pages);
  493. AddRegionToPages(dst_addr, num_pages, dst_pages);
  494. if (!dst_pages.IsEqual(src_pages)) {
  495. return ResultInvalidMemoryRegion;
  496. }
  497. {
  498. auto block_guard = detail::ScopeExit([&] { MapPages(dst_addr, dst_pages, dst_perm); });
  499. CASCADE_CODE(Operate(dst_addr, num_pages, KMemoryPermission::None, OperationType::Unmap));
  500. CASCADE_CODE(Operate(src_addr, num_pages, KMemoryPermission::ReadAndWrite,
  501. OperationType::ChangePermissions));
  502. block_guard.Cancel();
  503. }
  504. block_manager->Update(src_addr, num_pages, src_state, KMemoryPermission::ReadAndWrite);
  505. block_manager->Update(dst_addr, num_pages, KMemoryState::Free);
  506. return ResultSuccess;
  507. }
  508. ResultCode KPageTable::MapPages(VAddr addr, const KPageLinkedList& page_linked_list,
  509. KMemoryPermission perm) {
  510. VAddr cur_addr{addr};
  511. for (const auto& node : page_linked_list.Nodes()) {
  512. if (const auto result{
  513. Operate(cur_addr, node.GetNumPages(), perm, OperationType::Map, node.GetAddress())};
  514. result.IsError()) {
  515. const std::size_t num_pages{(addr - cur_addr) / PageSize};
  516. ASSERT(Operate(addr, num_pages, KMemoryPermission::None, OperationType::Unmap)
  517. .IsSuccess());
  518. return result;
  519. }
  520. cur_addr += node.GetNumPages() * PageSize;
  521. }
  522. return ResultSuccess;
  523. }
  524. ResultCode KPageTable::MapPages(VAddr addr, KPageLinkedList& page_linked_list, KMemoryState state,
  525. KMemoryPermission perm) {
  526. std::lock_guard lock{page_table_lock};
  527. const std::size_t num_pages{page_linked_list.GetNumPages()};
  528. const std::size_t size{num_pages * PageSize};
  529. if (!CanContain(addr, size, state)) {
  530. return ResultInvalidCurrentMemory;
  531. }
  532. if (IsRegionMapped(addr, num_pages * PageSize)) {
  533. return ResultInvalidCurrentMemory;
  534. }
  535. CASCADE_CODE(MapPages(addr, page_linked_list, perm));
  536. block_manager->Update(addr, num_pages, state, perm);
  537. return ResultSuccess;
  538. }
  539. ResultCode KPageTable::UnmapPages(VAddr addr, const KPageLinkedList& page_linked_list) {
  540. VAddr cur_addr{addr};
  541. for (const auto& node : page_linked_list.Nodes()) {
  542. const std::size_t num_pages{(addr - cur_addr) / PageSize};
  543. if (const auto result{
  544. Operate(addr, num_pages, KMemoryPermission::None, OperationType::Unmap)};
  545. result.IsError()) {
  546. return result;
  547. }
  548. cur_addr += node.GetNumPages() * PageSize;
  549. }
  550. return ResultSuccess;
  551. }
  552. ResultCode KPageTable::UnmapPages(VAddr addr, KPageLinkedList& page_linked_list,
  553. KMemoryState state) {
  554. std::lock_guard lock{page_table_lock};
  555. const std::size_t num_pages{page_linked_list.GetNumPages()};
  556. const std::size_t size{num_pages * PageSize};
  557. if (!CanContain(addr, size, state)) {
  558. return ResultInvalidCurrentMemory;
  559. }
  560. if (IsRegionMapped(addr, num_pages * PageSize)) {
  561. return ResultInvalidCurrentMemory;
  562. }
  563. CASCADE_CODE(UnmapPages(addr, page_linked_list));
  564. block_manager->Update(addr, num_pages, state, KMemoryPermission::None);
  565. return ResultSuccess;
  566. }
  567. ResultCode KPageTable::SetProcessMemoryPermission(VAddr addr, std::size_t size,
  568. KMemoryPermission perm) {
  569. std::lock_guard lock{page_table_lock};
  570. KMemoryState prev_state{};
  571. KMemoryPermission prev_perm{};
  572. CASCADE_CODE(CheckMemoryState(
  573. &prev_state, &prev_perm, nullptr, nullptr, addr, size, KMemoryState::FlagCode,
  574. KMemoryState::FlagCode, KMemoryPermission::None, KMemoryPermission::None,
  575. KMemoryAttribute::Mask, KMemoryAttribute::None, KMemoryAttribute::IpcAndDeviceMapped));
  576. KMemoryState state{prev_state};
  577. // Ensure state is mutable if permission allows write
  578. if ((perm & KMemoryPermission::Write) != KMemoryPermission::None) {
  579. if (prev_state == KMemoryState::Code) {
  580. state = KMemoryState::CodeData;
  581. } else if (prev_state == KMemoryState::AliasCode) {
  582. state = KMemoryState::AliasCodeData;
  583. } else {
  584. UNREACHABLE();
  585. }
  586. }
  587. // Return early if there is nothing to change
  588. if (state == prev_state && perm == prev_perm) {
  589. return ResultSuccess;
  590. }
  591. if ((prev_perm & KMemoryPermission::Execute) != (perm & KMemoryPermission::Execute)) {
  592. // Memory execution state is changing, invalidate CPU cache range
  593. system.InvalidateCpuInstructionCacheRange(addr, size);
  594. }
  595. const std::size_t num_pages{size / PageSize};
  596. const OperationType operation{(perm & KMemoryPermission::Execute) != KMemoryPermission::None
  597. ? OperationType::ChangePermissionsAndRefresh
  598. : OperationType::ChangePermissions};
  599. CASCADE_CODE(Operate(addr, num_pages, perm, operation));
  600. block_manager->Update(addr, num_pages, state, perm);
  601. return ResultSuccess;
  602. }
  603. KMemoryInfo KPageTable::QueryInfoImpl(VAddr addr) {
  604. std::lock_guard lock{page_table_lock};
  605. return block_manager->FindBlock(addr).GetMemoryInfo();
  606. }
  607. KMemoryInfo KPageTable::QueryInfo(VAddr addr) {
  608. if (!Contains(addr, 1)) {
  609. return {address_space_end, 0 - address_space_end, KMemoryState::Inaccessible,
  610. KMemoryPermission::None, KMemoryAttribute::None, KMemoryPermission::None};
  611. }
  612. return QueryInfoImpl(addr);
  613. }
  614. ResultCode KPageTable::ReserveTransferMemory(VAddr addr, std::size_t size, KMemoryPermission perm) {
  615. std::lock_guard lock{page_table_lock};
  616. KMemoryState state{};
  617. KMemoryAttribute attribute{};
  618. CASCADE_CODE(CheckMemoryState(
  619. &state, nullptr, &attribute, nullptr, addr, size,
  620. KMemoryState::FlagCanTransfer | KMemoryState::FlagReferenceCounted,
  621. KMemoryState::FlagCanTransfer | KMemoryState::FlagReferenceCounted, KMemoryPermission::All,
  622. KMemoryPermission::ReadAndWrite, KMemoryAttribute::Mask, KMemoryAttribute::None,
  623. KMemoryAttribute::IpcAndDeviceMapped));
  624. block_manager->Update(addr, size / PageSize, state, perm, attribute | KMemoryAttribute::Locked);
  625. return ResultSuccess;
  626. }
  627. ResultCode KPageTable::ResetTransferMemory(VAddr addr, std::size_t size) {
  628. std::lock_guard lock{page_table_lock};
  629. KMemoryState state{};
  630. CASCADE_CODE(
  631. CheckMemoryState(&state, nullptr, nullptr, nullptr, addr, size,
  632. KMemoryState::FlagCanTransfer | KMemoryState::FlagReferenceCounted,
  633. KMemoryState::FlagCanTransfer | KMemoryState::FlagReferenceCounted,
  634. KMemoryPermission::None, KMemoryPermission::None, KMemoryAttribute::Mask,
  635. KMemoryAttribute::Locked, KMemoryAttribute::IpcAndDeviceMapped));
  636. block_manager->Update(addr, size / PageSize, state, KMemoryPermission::ReadAndWrite);
  637. return ResultSuccess;
  638. }
  639. ResultCode KPageTable::SetMemoryPermission(VAddr addr, std::size_t size,
  640. Svc::MemoryPermission svc_perm) {
  641. const size_t num_pages = size / PageSize;
  642. // Lock the table.
  643. std::lock_guard lock{page_table_lock};
  644. // Verify we can change the memory permission.
  645. KMemoryState old_state;
  646. KMemoryPermission old_perm;
  647. R_TRY(this->CheckMemoryState(
  648. std::addressof(old_state), std::addressof(old_perm), nullptr, nullptr, addr, size,
  649. KMemoryState::FlagCanReprotect, KMemoryState::FlagCanReprotect, KMemoryPermission::None,
  650. KMemoryPermission::None, KMemoryAttribute::All, KMemoryAttribute::None));
  651. // Determine new perm.
  652. const KMemoryPermission new_perm = ConvertToKMemoryPermission(svc_perm);
  653. R_SUCCEED_IF(old_perm == new_perm);
  654. // Perform mapping operation.
  655. R_TRY(Operate(addr, num_pages, new_perm, OperationType::ChangePermissions));
  656. // Update the blocks.
  657. block_manager->Update(addr, num_pages, old_state, new_perm, KMemoryAttribute::None);
  658. return ResultSuccess;
  659. }
  660. ResultCode KPageTable::SetMemoryAttribute(VAddr addr, std::size_t size, u32 mask, u32 attr) {
  661. const size_t num_pages = size / PageSize;
  662. ASSERT((static_cast<KMemoryAttribute>(mask) | KMemoryAttribute::SetMask) ==
  663. KMemoryAttribute::SetMask);
  664. // Lock the table.
  665. std::lock_guard lock{page_table_lock};
  666. // Verify we can change the memory attribute.
  667. KMemoryState old_state;
  668. KMemoryPermission old_perm;
  669. KMemoryAttribute old_attr;
  670. size_t num_allocator_blocks;
  671. constexpr auto AttributeTestMask =
  672. ~(KMemoryAttribute::SetMask | KMemoryAttribute::DeviceShared);
  673. R_TRY(this->CheckMemoryState(
  674. std::addressof(old_state), std::addressof(old_perm), std::addressof(old_attr),
  675. std::addressof(num_allocator_blocks), addr, size, KMemoryState::FlagCanChangeAttribute,
  676. KMemoryState::FlagCanChangeAttribute, KMemoryPermission::None, KMemoryPermission::None,
  677. AttributeTestMask, KMemoryAttribute::None, ~AttributeTestMask));
  678. // Determine the new attribute.
  679. const auto new_attr = ((old_attr & static_cast<KMemoryAttribute>(~mask)) |
  680. static_cast<KMemoryAttribute>(attr & mask));
  681. // Perform operation.
  682. this->Operate(addr, num_pages, old_perm, OperationType::ChangePermissionsAndRefresh);
  683. // Update the blocks.
  684. block_manager->Update(addr, num_pages, old_state, old_perm, new_attr);
  685. return ResultSuccess;
  686. }
  687. ResultCode KPageTable::SetMaxHeapSize(std::size_t size) {
  688. // Lock the table.
  689. std::lock_guard lock{page_table_lock};
  690. // Only process page tables are allowed to set heap size.
  691. ASSERT(!this->IsKernel());
  692. max_heap_size = size;
  693. return ResultSuccess;
  694. }
  695. ResultCode KPageTable::SetHeapSize(VAddr* out, std::size_t size) {
  696. // Try to perform a reduction in heap, instead of an extension.
  697. VAddr cur_address{};
  698. std::size_t allocation_size{};
  699. {
  700. // Lock the table.
  701. std::lock_guard lk(page_table_lock);
  702. // Validate that setting heap size is possible at all.
  703. R_UNLESS(!is_kernel, ResultOutOfMemory);
  704. R_UNLESS(size <= static_cast<std::size_t>(heap_region_end - heap_region_start),
  705. ResultOutOfMemory);
  706. R_UNLESS(size <= max_heap_size, ResultOutOfMemory);
  707. if (size < GetHeapSize()) {
  708. // The size being requested is less than the current size, so we need to free the end of
  709. // the heap.
  710. // Validate memory state.
  711. std::size_t num_allocator_blocks;
  712. R_TRY(this->CheckMemoryState(std::addressof(num_allocator_blocks),
  713. heap_region_start + size, GetHeapSize() - size,
  714. KMemoryState::All, KMemoryState::Normal,
  715. KMemoryPermission::All, KMemoryPermission::ReadAndWrite,
  716. KMemoryAttribute::All, KMemoryAttribute::None));
  717. // Unmap the end of the heap.
  718. const auto num_pages = (GetHeapSize() - size) / PageSize;
  719. R_TRY(Operate(heap_region_start + size, num_pages, KMemoryPermission::None,
  720. OperationType::Unmap));
  721. // Release the memory from the resource limit.
  722. system.Kernel().CurrentProcess()->GetResourceLimit()->Release(
  723. LimitableResource::PhysicalMemory, num_pages * PageSize);
  724. // Apply the memory block update.
  725. block_manager->Update(heap_region_start + size, num_pages, KMemoryState::Free,
  726. KMemoryPermission::None, KMemoryAttribute::None);
  727. // Update the current heap end.
  728. current_heap_end = heap_region_start + size;
  729. // Set the output.
  730. *out = heap_region_start;
  731. return ResultSuccess;
  732. } else if (size == GetHeapSize()) {
  733. // The size requested is exactly the current size.
  734. *out = heap_region_start;
  735. return ResultSuccess;
  736. } else {
  737. // We have to allocate memory. Determine how much to allocate and where while the table
  738. // is locked.
  739. cur_address = current_heap_end;
  740. allocation_size = size - GetHeapSize();
  741. }
  742. }
  743. // Reserve memory for the heap extension.
  744. KScopedResourceReservation memory_reservation(
  745. system.Kernel().CurrentProcess()->GetResourceLimit(), LimitableResource::PhysicalMemory,
  746. allocation_size);
  747. R_UNLESS(memory_reservation.Succeeded(), ResultLimitReached);
  748. // Allocate pages for the heap extension.
  749. KPageLinkedList page_linked_list;
  750. R_TRY(system.Kernel().MemoryManager().Allocate(page_linked_list, allocation_size / PageSize,
  751. memory_pool));
  752. // Map the pages.
  753. {
  754. // Lock the table.
  755. std::lock_guard lk(page_table_lock);
  756. // Ensure that the heap hasn't changed since we began executing.
  757. ASSERT(cur_address == current_heap_end);
  758. // Check the memory state.
  759. std::size_t num_allocator_blocks{};
  760. R_TRY(this->CheckMemoryState(std::addressof(num_allocator_blocks), current_heap_end,
  761. allocation_size, KMemoryState::All, KMemoryState::Free,
  762. KMemoryPermission::None, KMemoryPermission::None,
  763. KMemoryAttribute::None, KMemoryAttribute::None));
  764. // Map the pages.
  765. const auto num_pages = allocation_size / PageSize;
  766. R_TRY(Operate(current_heap_end, num_pages, page_linked_list, OperationType::MapGroup));
  767. // Clear all the newly allocated pages.
  768. for (std::size_t cur_page = 0; cur_page < num_pages; ++cur_page) {
  769. std::memset(system.Memory().GetPointer(current_heap_end + (cur_page * PageSize)), 0,
  770. PageSize);
  771. }
  772. // We succeeded, so commit our memory reservation.
  773. memory_reservation.Commit();
  774. // Apply the memory block update.
  775. block_manager->Update(current_heap_end, num_pages, KMemoryState::Normal,
  776. KMemoryPermission::ReadAndWrite, KMemoryAttribute::None);
  777. // Update the current heap end.
  778. current_heap_end = heap_region_start + size;
  779. // Set the output.
  780. *out = heap_region_start;
  781. return ResultSuccess;
  782. }
  783. }
  784. ResultVal<VAddr> KPageTable::AllocateAndMapMemory(std::size_t needed_num_pages, std::size_t align,
  785. bool is_map_only, VAddr region_start,
  786. std::size_t region_num_pages, KMemoryState state,
  787. KMemoryPermission perm, PAddr map_addr) {
  788. std::lock_guard lock{page_table_lock};
  789. if (!CanContain(region_start, region_num_pages * PageSize, state)) {
  790. return ResultInvalidCurrentMemory;
  791. }
  792. if (region_num_pages <= needed_num_pages) {
  793. return ResultOutOfMemory;
  794. }
  795. const VAddr addr{
  796. AllocateVirtualMemory(region_start, region_num_pages, needed_num_pages, align)};
  797. if (!addr) {
  798. return ResultOutOfMemory;
  799. }
  800. if (is_map_only) {
  801. CASCADE_CODE(Operate(addr, needed_num_pages, perm, OperationType::Map, map_addr));
  802. } else {
  803. KPageLinkedList page_group;
  804. CASCADE_CODE(
  805. system.Kernel().MemoryManager().Allocate(page_group, needed_num_pages, memory_pool));
  806. CASCADE_CODE(Operate(addr, needed_num_pages, page_group, OperationType::MapGroup));
  807. }
  808. block_manager->Update(addr, needed_num_pages, state, perm);
  809. return addr;
  810. }
  811. ResultCode KPageTable::LockForDeviceAddressSpace(VAddr addr, std::size_t size) {
  812. std::lock_guard lock{page_table_lock};
  813. KMemoryPermission perm{};
  814. if (const ResultCode result{CheckMemoryState(
  815. nullptr, &perm, nullptr, nullptr, addr, size, KMemoryState::FlagCanChangeAttribute,
  816. KMemoryState::FlagCanChangeAttribute, KMemoryPermission::None, KMemoryPermission::None,
  817. KMemoryAttribute::LockedAndIpcLocked, KMemoryAttribute::None,
  818. KMemoryAttribute::DeviceSharedAndUncached)};
  819. result.IsError()) {
  820. return result;
  821. }
  822. block_manager->UpdateLock(
  823. addr, size / PageSize,
  824. [](KMemoryBlockManager::iterator block, KMemoryPermission permission) {
  825. block->ShareToDevice(permission);
  826. },
  827. perm);
  828. return ResultSuccess;
  829. }
  830. ResultCode KPageTable::UnlockForDeviceAddressSpace(VAddr addr, std::size_t size) {
  831. std::lock_guard lock{page_table_lock};
  832. KMemoryPermission perm{};
  833. if (const ResultCode result{CheckMemoryState(
  834. nullptr, &perm, nullptr, nullptr, addr, size, KMemoryState::FlagCanChangeAttribute,
  835. KMemoryState::FlagCanChangeAttribute, KMemoryPermission::None, KMemoryPermission::None,
  836. KMemoryAttribute::LockedAndIpcLocked, KMemoryAttribute::None,
  837. KMemoryAttribute::DeviceSharedAndUncached)};
  838. result.IsError()) {
  839. return result;
  840. }
  841. block_manager->UpdateLock(
  842. addr, size / PageSize,
  843. [](KMemoryBlockManager::iterator block, KMemoryPermission permission) {
  844. block->UnshareToDevice(permission);
  845. },
  846. perm);
  847. return ResultSuccess;
  848. }
  849. ResultCode KPageTable::LockForCodeMemory(VAddr addr, std::size_t size) {
  850. std::lock_guard lock{page_table_lock};
  851. KMemoryPermission new_perm = KMemoryPermission::NotMapped | KMemoryPermission::KernelReadWrite;
  852. KMemoryPermission old_perm{};
  853. if (const ResultCode result{CheckMemoryState(
  854. nullptr, &old_perm, nullptr, nullptr, addr, size, KMemoryState::FlagCanCodeMemory,
  855. KMemoryState::FlagCanCodeMemory, KMemoryPermission::All,
  856. KMemoryPermission::UserReadWrite, KMemoryAttribute::All, KMemoryAttribute::None)};
  857. result.IsError()) {
  858. return result;
  859. }
  860. new_perm = (new_perm != KMemoryPermission::None) ? new_perm : old_perm;
  861. block_manager->UpdateLock(
  862. addr, size / PageSize,
  863. [](KMemoryBlockManager::iterator block, KMemoryPermission permission) {
  864. block->ShareToDevice(permission);
  865. },
  866. new_perm);
  867. return ResultSuccess;
  868. }
  869. ResultCode KPageTable::UnlockForCodeMemory(VAddr addr, std::size_t size) {
  870. std::lock_guard lock{page_table_lock};
  871. KMemoryPermission new_perm = KMemoryPermission::UserReadWrite;
  872. KMemoryPermission old_perm{};
  873. if (const ResultCode result{CheckMemoryState(
  874. nullptr, &old_perm, nullptr, nullptr, addr, size, KMemoryState::FlagCanCodeMemory,
  875. KMemoryState::FlagCanCodeMemory, KMemoryPermission::None, KMemoryPermission::None,
  876. KMemoryAttribute::All, KMemoryAttribute::Locked)};
  877. result.IsError()) {
  878. return result;
  879. }
  880. new_perm = (new_perm != KMemoryPermission::None) ? new_perm : old_perm;
  881. block_manager->UpdateLock(
  882. addr, size / PageSize,
  883. [](KMemoryBlockManager::iterator block, KMemoryPermission permission) {
  884. block->UnshareToDevice(permission);
  885. },
  886. new_perm);
  887. return ResultSuccess;
  888. }
  889. ResultCode KPageTable::InitializeMemoryLayout(VAddr start, VAddr end) {
  890. block_manager = std::make_unique<KMemoryBlockManager>(start, end);
  891. return ResultSuccess;
  892. }
  893. bool KPageTable::IsRegionMapped(VAddr address, u64 size) {
  894. return CheckMemoryState(address, size, KMemoryState::All, KMemoryState::Free,
  895. KMemoryPermission::All, KMemoryPermission::None, KMemoryAttribute::Mask,
  896. KMemoryAttribute::None, KMemoryAttribute::IpcAndDeviceMapped)
  897. .IsError();
  898. }
  899. bool KPageTable::IsRegionContiguous(VAddr addr, u64 size) const {
  900. auto start_ptr = system.Memory().GetPointer(addr);
  901. for (u64 offset{}; offset < size; offset += PageSize) {
  902. if (start_ptr != system.Memory().GetPointer(addr + offset)) {
  903. return false;
  904. }
  905. start_ptr += PageSize;
  906. }
  907. return true;
  908. }
  909. void KPageTable::AddRegionToPages(VAddr start, std::size_t num_pages,
  910. KPageLinkedList& page_linked_list) {
  911. VAddr addr{start};
  912. while (addr < start + (num_pages * PageSize)) {
  913. const PAddr paddr{GetPhysicalAddr(addr)};
  914. if (!paddr) {
  915. UNREACHABLE();
  916. }
  917. page_linked_list.AddBlock(paddr, 1);
  918. addr += PageSize;
  919. }
  920. }
  921. VAddr KPageTable::AllocateVirtualMemory(VAddr start, std::size_t region_num_pages,
  922. u64 needed_num_pages, std::size_t align) {
  923. if (is_aslr_enabled) {
  924. UNIMPLEMENTED();
  925. }
  926. return block_manager->FindFreeArea(start, region_num_pages, needed_num_pages, align, 0,
  927. IsKernel() ? 1 : 4);
  928. }
  929. ResultCode KPageTable::Operate(VAddr addr, std::size_t num_pages, const KPageLinkedList& page_group,
  930. OperationType operation) {
  931. std::lock_guard lock{page_table_lock};
  932. ASSERT(Common::IsAligned(addr, PageSize));
  933. ASSERT(num_pages > 0);
  934. ASSERT(num_pages == page_group.GetNumPages());
  935. for (const auto& node : page_group.Nodes()) {
  936. const std::size_t size{node.GetNumPages() * PageSize};
  937. switch (operation) {
  938. case OperationType::MapGroup:
  939. system.Memory().MapMemoryRegion(page_table_impl, addr, size, node.GetAddress());
  940. break;
  941. default:
  942. UNREACHABLE();
  943. }
  944. addr += size;
  945. }
  946. return ResultSuccess;
  947. }
  948. ResultCode KPageTable::Operate(VAddr addr, std::size_t num_pages, KMemoryPermission perm,
  949. OperationType operation, PAddr map_addr) {
  950. std::lock_guard lock{page_table_lock};
  951. ASSERT(num_pages > 0);
  952. ASSERT(Common::IsAligned(addr, PageSize));
  953. ASSERT(ContainsPages(addr, num_pages));
  954. switch (operation) {
  955. case OperationType::Unmap:
  956. system.Memory().UnmapRegion(page_table_impl, addr, num_pages * PageSize);
  957. break;
  958. case OperationType::Map: {
  959. ASSERT(map_addr);
  960. ASSERT(Common::IsAligned(map_addr, PageSize));
  961. system.Memory().MapMemoryRegion(page_table_impl, addr, num_pages * PageSize, map_addr);
  962. break;
  963. }
  964. case OperationType::ChangePermissions:
  965. case OperationType::ChangePermissionsAndRefresh:
  966. break;
  967. default:
  968. UNREACHABLE();
  969. }
  970. return ResultSuccess;
  971. }
  972. constexpr VAddr KPageTable::GetRegionAddress(KMemoryState state) const {
  973. switch (state) {
  974. case KMemoryState::Free:
  975. case KMemoryState::Kernel:
  976. return address_space_start;
  977. case KMemoryState::Normal:
  978. return heap_region_start;
  979. case KMemoryState::Ipc:
  980. case KMemoryState::NonSecureIpc:
  981. case KMemoryState::NonDeviceIpc:
  982. return alias_region_start;
  983. case KMemoryState::Stack:
  984. return stack_region_start;
  985. case KMemoryState::Static:
  986. case KMemoryState::ThreadLocal:
  987. return kernel_map_region_start;
  988. case KMemoryState::Io:
  989. case KMemoryState::Shared:
  990. case KMemoryState::AliasCode:
  991. case KMemoryState::AliasCodeData:
  992. case KMemoryState::Transfered:
  993. case KMemoryState::SharedTransfered:
  994. case KMemoryState::SharedCode:
  995. case KMemoryState::GeneratedCode:
  996. case KMemoryState::CodeOut:
  997. case KMemoryState::Coverage:
  998. return alias_code_region_start;
  999. case KMemoryState::Code:
  1000. case KMemoryState::CodeData:
  1001. return code_region_start;
  1002. default:
  1003. UNREACHABLE();
  1004. return {};
  1005. }
  1006. }
  1007. constexpr std::size_t KPageTable::GetRegionSize(KMemoryState state) const {
  1008. switch (state) {
  1009. case KMemoryState::Free:
  1010. case KMemoryState::Kernel:
  1011. return address_space_end - address_space_start;
  1012. case KMemoryState::Normal:
  1013. return heap_region_end - heap_region_start;
  1014. case KMemoryState::Ipc:
  1015. case KMemoryState::NonSecureIpc:
  1016. case KMemoryState::NonDeviceIpc:
  1017. return alias_region_end - alias_region_start;
  1018. case KMemoryState::Stack:
  1019. return stack_region_end - stack_region_start;
  1020. case KMemoryState::Static:
  1021. case KMemoryState::ThreadLocal:
  1022. return kernel_map_region_end - kernel_map_region_start;
  1023. case KMemoryState::Io:
  1024. case KMemoryState::Shared:
  1025. case KMemoryState::AliasCode:
  1026. case KMemoryState::AliasCodeData:
  1027. case KMemoryState::Transfered:
  1028. case KMemoryState::SharedTransfered:
  1029. case KMemoryState::SharedCode:
  1030. case KMemoryState::GeneratedCode:
  1031. case KMemoryState::CodeOut:
  1032. case KMemoryState::Coverage:
  1033. return alias_code_region_end - alias_code_region_start;
  1034. case KMemoryState::Code:
  1035. case KMemoryState::CodeData:
  1036. return code_region_end - code_region_start;
  1037. default:
  1038. UNREACHABLE();
  1039. return {};
  1040. }
  1041. }
  1042. bool KPageTable::CanContain(VAddr addr, std::size_t size, KMemoryState state) const {
  1043. const VAddr end = addr + size;
  1044. const VAddr last = end - 1;
  1045. const VAddr region_start = this->GetRegionAddress(state);
  1046. const size_t region_size = this->GetRegionSize(state);
  1047. const bool is_in_region =
  1048. region_start <= addr && addr < end && last <= region_start + region_size - 1;
  1049. const bool is_in_heap = !(end <= heap_region_start || heap_region_end <= addr ||
  1050. heap_region_start == heap_region_end);
  1051. const bool is_in_alias = !(end <= alias_region_start || alias_region_end <= addr ||
  1052. alias_region_start == alias_region_end);
  1053. switch (state) {
  1054. case KMemoryState::Free:
  1055. case KMemoryState::Kernel:
  1056. return is_in_region;
  1057. case KMemoryState::Io:
  1058. case KMemoryState::Static:
  1059. case KMemoryState::Code:
  1060. case KMemoryState::CodeData:
  1061. case KMemoryState::Shared:
  1062. case KMemoryState::AliasCode:
  1063. case KMemoryState::AliasCodeData:
  1064. case KMemoryState::Stack:
  1065. case KMemoryState::ThreadLocal:
  1066. case KMemoryState::Transfered:
  1067. case KMemoryState::SharedTransfered:
  1068. case KMemoryState::SharedCode:
  1069. case KMemoryState::GeneratedCode:
  1070. case KMemoryState::CodeOut:
  1071. case KMemoryState::Coverage:
  1072. return is_in_region && !is_in_heap && !is_in_alias;
  1073. case KMemoryState::Normal:
  1074. ASSERT(is_in_heap);
  1075. return is_in_region && !is_in_alias;
  1076. case KMemoryState::Ipc:
  1077. case KMemoryState::NonSecureIpc:
  1078. case KMemoryState::NonDeviceIpc:
  1079. ASSERT(is_in_alias);
  1080. return is_in_region && !is_in_heap;
  1081. default:
  1082. return false;
  1083. }
  1084. }
  1085. ResultCode KPageTable::CheckMemoryState(const KMemoryInfo& info, KMemoryState state_mask,
  1086. KMemoryState state, KMemoryPermission perm_mask,
  1087. KMemoryPermission perm, KMemoryAttribute attr_mask,
  1088. KMemoryAttribute attr) const {
  1089. // Validate the states match expectation.
  1090. R_UNLESS((info.state & state_mask) == state, ResultInvalidCurrentMemory);
  1091. R_UNLESS((info.perm & perm_mask) == perm, ResultInvalidCurrentMemory);
  1092. R_UNLESS((info.attribute & attr_mask) == attr, ResultInvalidCurrentMemory);
  1093. return ResultSuccess;
  1094. }
  1095. ResultCode KPageTable::CheckMemoryStateContiguous(std::size_t* out_blocks_needed, VAddr addr,
  1096. std::size_t size, KMemoryState state_mask,
  1097. KMemoryState state, KMemoryPermission perm_mask,
  1098. KMemoryPermission perm,
  1099. KMemoryAttribute attr_mask,
  1100. KMemoryAttribute attr) const {
  1101. ASSERT(this->IsLockedByCurrentThread());
  1102. // Get information about the first block.
  1103. const VAddr last_addr = addr + size - 1;
  1104. KMemoryBlockManager::const_iterator it = block_manager->FindIterator(addr);
  1105. KMemoryInfo info = it->GetMemoryInfo();
  1106. // If the start address isn't aligned, we need a block.
  1107. const size_t blocks_for_start_align =
  1108. (Common::AlignDown(addr, PageSize) != info.GetAddress()) ? 1 : 0;
  1109. while (true) {
  1110. // Validate against the provided masks.
  1111. R_TRY(this->CheckMemoryState(info, state_mask, state, perm_mask, perm, attr_mask, attr));
  1112. // Break once we're done.
  1113. if (last_addr <= info.GetLastAddress()) {
  1114. break;
  1115. }
  1116. // Advance our iterator.
  1117. it++;
  1118. ASSERT(it != block_manager->cend());
  1119. info = it->GetMemoryInfo();
  1120. }
  1121. // If the end address isn't aligned, we need a block.
  1122. const size_t blocks_for_end_align =
  1123. (Common::AlignUp(addr + size, PageSize) != info.GetEndAddress()) ? 1 : 0;
  1124. if (out_blocks_needed != nullptr) {
  1125. *out_blocks_needed = blocks_for_start_align + blocks_for_end_align;
  1126. }
  1127. return ResultSuccess;
  1128. }
  1129. ResultCode KPageTable::CheckMemoryState(KMemoryState* out_state, KMemoryPermission* out_perm,
  1130. KMemoryAttribute* out_attr, std::size_t* out_blocks_needed,
  1131. VAddr addr, std::size_t size, KMemoryState state_mask,
  1132. KMemoryState state, KMemoryPermission perm_mask,
  1133. KMemoryPermission perm, KMemoryAttribute attr_mask,
  1134. KMemoryAttribute attr, KMemoryAttribute ignore_attr) const {
  1135. ASSERT(this->IsLockedByCurrentThread());
  1136. // Get information about the first block.
  1137. const VAddr last_addr = addr + size - 1;
  1138. KMemoryBlockManager::const_iterator it = block_manager->FindIterator(addr);
  1139. KMemoryInfo info = it->GetMemoryInfo();
  1140. // If the start address isn't aligned, we need a block.
  1141. const size_t blocks_for_start_align =
  1142. (Common::AlignDown(addr, PageSize) != info.GetAddress()) ? 1 : 0;
  1143. // Validate all blocks in the range have correct state.
  1144. const KMemoryState first_state = info.state;
  1145. const KMemoryPermission first_perm = info.perm;
  1146. const KMemoryAttribute first_attr = info.attribute;
  1147. while (true) {
  1148. // Validate the current block.
  1149. R_UNLESS(info.state == first_state, ResultInvalidCurrentMemory);
  1150. R_UNLESS(info.perm == first_perm, ResultInvalidCurrentMemory);
  1151. R_UNLESS((info.attribute | ignore_attr) == (first_attr | ignore_attr),
  1152. ResultInvalidCurrentMemory);
  1153. // Validate against the provided masks.
  1154. R_TRY(this->CheckMemoryState(info, state_mask, state, perm_mask, perm, attr_mask, attr));
  1155. // Break once we're done.
  1156. if (last_addr <= info.GetLastAddress()) {
  1157. break;
  1158. }
  1159. // Advance our iterator.
  1160. it++;
  1161. ASSERT(it != block_manager->cend());
  1162. info = it->GetMemoryInfo();
  1163. }
  1164. // If the end address isn't aligned, we need a block.
  1165. const size_t blocks_for_end_align =
  1166. (Common::AlignUp(addr + size, PageSize) != info.GetEndAddress()) ? 1 : 0;
  1167. // Write output state.
  1168. if (out_state != nullptr) {
  1169. *out_state = first_state;
  1170. }
  1171. if (out_perm != nullptr) {
  1172. *out_perm = first_perm;
  1173. }
  1174. if (out_attr != nullptr) {
  1175. *out_attr = static_cast<KMemoryAttribute>(first_attr & ~ignore_attr);
  1176. }
  1177. if (out_blocks_needed != nullptr) {
  1178. *out_blocks_needed = blocks_for_start_align + blocks_for_end_align;
  1179. }
  1180. return ResultSuccess;
  1181. }
  1182. } // namespace Kernel