vm_manager.cpp 27 KB

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  1. // Copyright 2015 Citra Emulator Project
  2. // Licensed under GPLv2 or any later version
  3. // Refer to the license.txt file included.
  4. #include <algorithm>
  5. #include <iterator>
  6. #include <utility>
  7. #include "common/assert.h"
  8. #include "common/logging/log.h"
  9. #include "core/arm/arm_interface.h"
  10. #include "core/core.h"
  11. #include "core/file_sys/program_metadata.h"
  12. #include "core/hle/kernel/errors.h"
  13. #include "core/hle/kernel/vm_manager.h"
  14. #include "core/memory.h"
  15. #include "core/memory_hook.h"
  16. #include "core/memory_setup.h"
  17. namespace Kernel {
  18. static const char* GetMemoryStateName(MemoryState state) {
  19. static constexpr const char* names[] = {
  20. "Unmapped", "Io",
  21. "Normal", "CodeStatic",
  22. "CodeMutable", "Heap",
  23. "Shared", "Unknown1",
  24. "ModuleCodeStatic", "ModuleCodeMutable",
  25. "IpcBuffer0", "Stack",
  26. "ThreadLocal", "TransferMemoryIsolated",
  27. "TransferMemory", "ProcessMemory",
  28. "Inaccessible", "IpcBuffer1",
  29. "IpcBuffer3", "KernelStack",
  30. };
  31. return names[ToSvcMemoryState(state)];
  32. }
  33. bool VirtualMemoryArea::CanBeMergedWith(const VirtualMemoryArea& next) const {
  34. ASSERT(base + size == next.base);
  35. if (permissions != next.permissions || state != next.state || attribute != next.attribute ||
  36. type != next.type) {
  37. return false;
  38. }
  39. if (type == VMAType::AllocatedMemoryBlock &&
  40. (backing_block != next.backing_block || offset + size != next.offset)) {
  41. return false;
  42. }
  43. if (type == VMAType::BackingMemory && backing_memory + size != next.backing_memory) {
  44. return false;
  45. }
  46. if (type == VMAType::MMIO && paddr + size != next.paddr) {
  47. return false;
  48. }
  49. return true;
  50. }
  51. VMManager::VMManager() {
  52. // Default to assuming a 39-bit address space. This way we have a sane
  53. // starting point with executables that don't provide metadata.
  54. Reset(FileSys::ProgramAddressSpaceType::Is39Bit);
  55. }
  56. VMManager::~VMManager() {
  57. Reset(FileSys::ProgramAddressSpaceType::Is39Bit);
  58. }
  59. void VMManager::Reset(FileSys::ProgramAddressSpaceType type) {
  60. Clear();
  61. InitializeMemoryRegionRanges(type);
  62. page_table.Resize(address_space_width);
  63. // Initialize the map with a single free region covering the entire managed space.
  64. VirtualMemoryArea initial_vma;
  65. initial_vma.size = address_space_end;
  66. vma_map.emplace(initial_vma.base, initial_vma);
  67. UpdatePageTableForVMA(initial_vma);
  68. }
  69. VMManager::VMAHandle VMManager::FindVMA(VAddr target) const {
  70. if (target >= address_space_end) {
  71. return vma_map.end();
  72. } else {
  73. return std::prev(vma_map.upper_bound(target));
  74. }
  75. }
  76. bool VMManager::IsValidHandle(VMAHandle handle) const {
  77. return handle != vma_map.cend();
  78. }
  79. ResultVal<VMManager::VMAHandle> VMManager::MapMemoryBlock(VAddr target,
  80. std::shared_ptr<std::vector<u8>> block,
  81. std::size_t offset, u64 size,
  82. MemoryState state) {
  83. ASSERT(block != nullptr);
  84. ASSERT(offset + size <= block->size());
  85. // This is the appropriately sized VMA that will turn into our allocation.
  86. CASCADE_RESULT(VMAIter vma_handle, CarveVMA(target, size));
  87. VirtualMemoryArea& final_vma = vma_handle->second;
  88. ASSERT(final_vma.size == size);
  89. auto& system = Core::System::GetInstance();
  90. system.ArmInterface(0).MapBackingMemory(target, size, block->data() + offset,
  91. VMAPermission::ReadWriteExecute);
  92. system.ArmInterface(1).MapBackingMemory(target, size, block->data() + offset,
  93. VMAPermission::ReadWriteExecute);
  94. system.ArmInterface(2).MapBackingMemory(target, size, block->data() + offset,
  95. VMAPermission::ReadWriteExecute);
  96. system.ArmInterface(3).MapBackingMemory(target, size, block->data() + offset,
  97. VMAPermission::ReadWriteExecute);
  98. final_vma.type = VMAType::AllocatedMemoryBlock;
  99. final_vma.permissions = VMAPermission::ReadWrite;
  100. final_vma.state = state;
  101. final_vma.backing_block = std::move(block);
  102. final_vma.offset = offset;
  103. UpdatePageTableForVMA(final_vma);
  104. return MakeResult<VMAHandle>(MergeAdjacent(vma_handle));
  105. }
  106. ResultVal<VMManager::VMAHandle> VMManager::MapBackingMemory(VAddr target, u8* memory, u64 size,
  107. MemoryState state) {
  108. ASSERT(memory != nullptr);
  109. // This is the appropriately sized VMA that will turn into our allocation.
  110. CASCADE_RESULT(VMAIter vma_handle, CarveVMA(target, size));
  111. VirtualMemoryArea& final_vma = vma_handle->second;
  112. ASSERT(final_vma.size == size);
  113. auto& system = Core::System::GetInstance();
  114. system.ArmInterface(0).MapBackingMemory(target, size, memory, VMAPermission::ReadWriteExecute);
  115. system.ArmInterface(1).MapBackingMemory(target, size, memory, VMAPermission::ReadWriteExecute);
  116. system.ArmInterface(2).MapBackingMemory(target, size, memory, VMAPermission::ReadWriteExecute);
  117. system.ArmInterface(3).MapBackingMemory(target, size, memory, VMAPermission::ReadWriteExecute);
  118. final_vma.type = VMAType::BackingMemory;
  119. final_vma.permissions = VMAPermission::ReadWrite;
  120. final_vma.state = state;
  121. final_vma.backing_memory = memory;
  122. UpdatePageTableForVMA(final_vma);
  123. return MakeResult<VMAHandle>(MergeAdjacent(vma_handle));
  124. }
  125. ResultVal<VAddr> VMManager::FindFreeRegion(u64 size) const {
  126. // Find the first Free VMA.
  127. const VAddr base = GetASLRRegionBaseAddress();
  128. const VMAHandle vma_handle = std::find_if(vma_map.begin(), vma_map.end(), [&](const auto& vma) {
  129. if (vma.second.type != VMAType::Free)
  130. return false;
  131. const VAddr vma_end = vma.second.base + vma.second.size;
  132. return vma_end > base && vma_end >= base + size;
  133. });
  134. if (vma_handle == vma_map.end()) {
  135. // TODO(Subv): Find the correct error code here.
  136. return ResultCode(-1);
  137. }
  138. const VAddr target = std::max(base, vma_handle->second.base);
  139. return MakeResult<VAddr>(target);
  140. }
  141. ResultVal<VMManager::VMAHandle> VMManager::MapMMIO(VAddr target, PAddr paddr, u64 size,
  142. MemoryState state,
  143. Memory::MemoryHookPointer mmio_handler) {
  144. // This is the appropriately sized VMA that will turn into our allocation.
  145. CASCADE_RESULT(VMAIter vma_handle, CarveVMA(target, size));
  146. VirtualMemoryArea& final_vma = vma_handle->second;
  147. ASSERT(final_vma.size == size);
  148. final_vma.type = VMAType::MMIO;
  149. final_vma.permissions = VMAPermission::ReadWrite;
  150. final_vma.state = state;
  151. final_vma.paddr = paddr;
  152. final_vma.mmio_handler = std::move(mmio_handler);
  153. UpdatePageTableForVMA(final_vma);
  154. return MakeResult<VMAHandle>(MergeAdjacent(vma_handle));
  155. }
  156. VMManager::VMAIter VMManager::Unmap(VMAIter vma_handle) {
  157. VirtualMemoryArea& vma = vma_handle->second;
  158. vma.type = VMAType::Free;
  159. vma.permissions = VMAPermission::None;
  160. vma.state = MemoryState::Unmapped;
  161. vma.backing_block = nullptr;
  162. vma.offset = 0;
  163. vma.backing_memory = nullptr;
  164. vma.paddr = 0;
  165. UpdatePageTableForVMA(vma);
  166. return MergeAdjacent(vma_handle);
  167. }
  168. ResultCode VMManager::UnmapRange(VAddr target, u64 size) {
  169. CASCADE_RESULT(VMAIter vma, CarveVMARange(target, size));
  170. const VAddr target_end = target + size;
  171. const VMAIter end = vma_map.end();
  172. // The comparison against the end of the range must be done using addresses since VMAs can be
  173. // merged during this process, causing invalidation of the iterators.
  174. while (vma != end && vma->second.base < target_end) {
  175. vma = std::next(Unmap(vma));
  176. }
  177. ASSERT(FindVMA(target)->second.size >= size);
  178. auto& system = Core::System::GetInstance();
  179. system.ArmInterface(0).UnmapMemory(target, size);
  180. system.ArmInterface(1).UnmapMemory(target, size);
  181. system.ArmInterface(2).UnmapMemory(target, size);
  182. system.ArmInterface(3).UnmapMemory(target, size);
  183. return RESULT_SUCCESS;
  184. }
  185. VMManager::VMAHandle VMManager::Reprotect(VMAHandle vma_handle, VMAPermission new_perms) {
  186. VMAIter iter = StripIterConstness(vma_handle);
  187. VirtualMemoryArea& vma = iter->second;
  188. vma.permissions = new_perms;
  189. UpdatePageTableForVMA(vma);
  190. return MergeAdjacent(iter);
  191. }
  192. ResultCode VMManager::ReprotectRange(VAddr target, u64 size, VMAPermission new_perms) {
  193. CASCADE_RESULT(VMAIter vma, CarveVMARange(target, size));
  194. const VAddr target_end = target + size;
  195. const VMAIter end = vma_map.end();
  196. // The comparison against the end of the range must be done using addresses since VMAs can be
  197. // merged during this process, causing invalidation of the iterators.
  198. while (vma != end && vma->second.base < target_end) {
  199. vma = std::next(StripIterConstness(Reprotect(vma, new_perms)));
  200. }
  201. return RESULT_SUCCESS;
  202. }
  203. ResultVal<VAddr> VMManager::HeapAllocate(VAddr target, u64 size, VMAPermission perms) {
  204. if (target < GetHeapRegionBaseAddress() || target + size > GetHeapRegionEndAddress() ||
  205. target + size < target) {
  206. return ERR_INVALID_ADDRESS;
  207. }
  208. if (heap_memory == nullptr) {
  209. // Initialize heap
  210. heap_memory = std::make_shared<std::vector<u8>>();
  211. heap_start = heap_end = target;
  212. } else {
  213. UnmapRange(heap_start, heap_end - heap_start);
  214. }
  215. // If necessary, expand backing vector to cover new heap extents.
  216. if (target < heap_start) {
  217. heap_memory->insert(begin(*heap_memory), heap_start - target, 0);
  218. heap_start = target;
  219. RefreshMemoryBlockMappings(heap_memory.get());
  220. }
  221. if (target + size > heap_end) {
  222. heap_memory->insert(end(*heap_memory), (target + size) - heap_end, 0);
  223. heap_end = target + size;
  224. RefreshMemoryBlockMappings(heap_memory.get());
  225. }
  226. ASSERT(heap_end - heap_start == heap_memory->size());
  227. CASCADE_RESULT(auto vma, MapMemoryBlock(target, heap_memory, target - heap_start, size,
  228. MemoryState::Heap));
  229. Reprotect(vma, perms);
  230. heap_used = size;
  231. return MakeResult<VAddr>(heap_end - size);
  232. }
  233. ResultCode VMManager::HeapFree(VAddr target, u64 size) {
  234. if (target < GetHeapRegionBaseAddress() || target + size > GetHeapRegionEndAddress() ||
  235. target + size < target) {
  236. return ERR_INVALID_ADDRESS;
  237. }
  238. if (size == 0) {
  239. return RESULT_SUCCESS;
  240. }
  241. const ResultCode result = UnmapRange(target, size);
  242. if (result.IsError()) {
  243. return result;
  244. }
  245. heap_used -= size;
  246. return RESULT_SUCCESS;
  247. }
  248. MemoryInfo VMManager::QueryMemory(VAddr address) const {
  249. const auto vma = FindVMA(address);
  250. MemoryInfo memory_info{};
  251. if (IsValidHandle(vma)) {
  252. memory_info.base_address = vma->second.base;
  253. memory_info.attributes = ToSvcMemoryAttribute(vma->second.attribute);
  254. memory_info.permission = static_cast<u32>(vma->second.permissions);
  255. memory_info.size = vma->second.size;
  256. memory_info.state = ToSvcMemoryState(vma->second.state);
  257. } else {
  258. memory_info.base_address = address_space_end;
  259. memory_info.permission = static_cast<u32>(VMAPermission::None);
  260. memory_info.size = 0 - address_space_end;
  261. memory_info.state = static_cast<u32>(MemoryState::Inaccessible);
  262. }
  263. return memory_info;
  264. }
  265. ResultCode VMManager::SetMemoryAttribute(VAddr address, u64 size, MemoryAttribute mask,
  266. MemoryAttribute attribute) {
  267. constexpr auto ignore_mask = MemoryAttribute::Uncached | MemoryAttribute::DeviceMapped;
  268. constexpr auto attribute_mask = ~ignore_mask;
  269. const auto result = CheckRangeState(
  270. address, size, MemoryState::FlagUncached, MemoryState::FlagUncached, VMAPermission::None,
  271. VMAPermission::None, attribute_mask, MemoryAttribute::None, ignore_mask);
  272. if (result.Failed()) {
  273. return result.Code();
  274. }
  275. const auto [prev_state, prev_permissions, prev_attributes] = *result;
  276. const auto new_attribute = (prev_attributes & ~mask) | (mask & attribute);
  277. const auto carve_result = CarveVMARange(address, size);
  278. if (carve_result.Failed()) {
  279. return carve_result.Code();
  280. }
  281. auto vma_iter = *carve_result;
  282. vma_iter->second.attribute = new_attribute;
  283. MergeAdjacent(vma_iter);
  284. return RESULT_SUCCESS;
  285. }
  286. ResultCode VMManager::MirrorMemory(VAddr dst_addr, VAddr src_addr, u64 size, MemoryState state) {
  287. const auto vma = FindVMA(src_addr);
  288. ASSERT_MSG(vma != vma_map.end(), "Invalid memory address");
  289. ASSERT_MSG(vma->second.backing_block, "Backing block doesn't exist for address");
  290. // The returned VMA might be a bigger one encompassing the desired address.
  291. const auto vma_offset = src_addr - vma->first;
  292. ASSERT_MSG(vma_offset + size <= vma->second.size,
  293. "Shared memory exceeds bounds of mapped block");
  294. const std::shared_ptr<std::vector<u8>>& backing_block = vma->second.backing_block;
  295. const std::size_t backing_block_offset = vma->second.offset + vma_offset;
  296. CASCADE_RESULT(auto new_vma,
  297. MapMemoryBlock(dst_addr, backing_block, backing_block_offset, size, state));
  298. // Protect mirror with permissions from old region
  299. Reprotect(new_vma, vma->second.permissions);
  300. // Remove permissions from old region
  301. Reprotect(vma, VMAPermission::None);
  302. return RESULT_SUCCESS;
  303. }
  304. void VMManager::RefreshMemoryBlockMappings(const std::vector<u8>* block) {
  305. // If this ever proves to have a noticeable performance impact, allow users of the function to
  306. // specify a specific range of addresses to limit the scan to.
  307. for (const auto& p : vma_map) {
  308. const VirtualMemoryArea& vma = p.second;
  309. if (block == vma.backing_block.get()) {
  310. UpdatePageTableForVMA(vma);
  311. }
  312. }
  313. }
  314. void VMManager::LogLayout() const {
  315. for (const auto& p : vma_map) {
  316. const VirtualMemoryArea& vma = p.second;
  317. LOG_DEBUG(Kernel, "{:016X} - {:016X} size: {:016X} {}{}{} {}", vma.base,
  318. vma.base + vma.size, vma.size,
  319. (u8)vma.permissions & (u8)VMAPermission::Read ? 'R' : '-',
  320. (u8)vma.permissions & (u8)VMAPermission::Write ? 'W' : '-',
  321. (u8)vma.permissions & (u8)VMAPermission::Execute ? 'X' : '-',
  322. GetMemoryStateName(vma.state));
  323. }
  324. }
  325. VMManager::VMAIter VMManager::StripIterConstness(const VMAHandle& iter) {
  326. // This uses a neat C++ trick to convert a const_iterator to a regular iterator, given
  327. // non-const access to its container.
  328. return vma_map.erase(iter, iter); // Erases an empty range of elements
  329. }
  330. ResultVal<VMManager::VMAIter> VMManager::CarveVMA(VAddr base, u64 size) {
  331. ASSERT_MSG((size & Memory::PAGE_MASK) == 0, "non-page aligned size: 0x{:016X}", size);
  332. ASSERT_MSG((base & Memory::PAGE_MASK) == 0, "non-page aligned base: 0x{:016X}", base);
  333. VMAIter vma_handle = StripIterConstness(FindVMA(base));
  334. if (vma_handle == vma_map.end()) {
  335. // Target address is outside the range managed by the kernel
  336. return ERR_INVALID_ADDRESS;
  337. }
  338. const VirtualMemoryArea& vma = vma_handle->second;
  339. if (vma.type != VMAType::Free) {
  340. // Region is already allocated
  341. return ERR_INVALID_ADDRESS_STATE;
  342. }
  343. const VAddr start_in_vma = base - vma.base;
  344. const VAddr end_in_vma = start_in_vma + size;
  345. if (end_in_vma > vma.size) {
  346. // Requested allocation doesn't fit inside VMA
  347. return ERR_INVALID_ADDRESS_STATE;
  348. }
  349. if (end_in_vma != vma.size) {
  350. // Split VMA at the end of the allocated region
  351. SplitVMA(vma_handle, end_in_vma);
  352. }
  353. if (start_in_vma != 0) {
  354. // Split VMA at the start of the allocated region
  355. vma_handle = SplitVMA(vma_handle, start_in_vma);
  356. }
  357. return MakeResult<VMAIter>(vma_handle);
  358. }
  359. ResultVal<VMManager::VMAIter> VMManager::CarveVMARange(VAddr target, u64 size) {
  360. ASSERT_MSG((size & Memory::PAGE_MASK) == 0, "non-page aligned size: 0x{:016X}", size);
  361. ASSERT_MSG((target & Memory::PAGE_MASK) == 0, "non-page aligned base: 0x{:016X}", target);
  362. const VAddr target_end = target + size;
  363. ASSERT(target_end >= target);
  364. ASSERT(target_end <= address_space_end);
  365. ASSERT(size > 0);
  366. VMAIter begin_vma = StripIterConstness(FindVMA(target));
  367. const VMAIter i_end = vma_map.lower_bound(target_end);
  368. if (std::any_of(begin_vma, i_end,
  369. [](const auto& entry) { return entry.second.type == VMAType::Free; })) {
  370. return ERR_INVALID_ADDRESS_STATE;
  371. }
  372. if (target != begin_vma->second.base) {
  373. begin_vma = SplitVMA(begin_vma, target - begin_vma->second.base);
  374. }
  375. VMAIter end_vma = StripIterConstness(FindVMA(target_end));
  376. if (end_vma != vma_map.end() && target_end != end_vma->second.base) {
  377. end_vma = SplitVMA(end_vma, target_end - end_vma->second.base);
  378. }
  379. return MakeResult<VMAIter>(begin_vma);
  380. }
  381. VMManager::VMAIter VMManager::SplitVMA(VMAIter vma_handle, u64 offset_in_vma) {
  382. VirtualMemoryArea& old_vma = vma_handle->second;
  383. VirtualMemoryArea new_vma = old_vma; // Make a copy of the VMA
  384. // For now, don't allow no-op VMA splits (trying to split at a boundary) because it's probably
  385. // a bug. This restriction might be removed later.
  386. ASSERT(offset_in_vma < old_vma.size);
  387. ASSERT(offset_in_vma > 0);
  388. old_vma.size = offset_in_vma;
  389. new_vma.base += offset_in_vma;
  390. new_vma.size -= offset_in_vma;
  391. switch (new_vma.type) {
  392. case VMAType::Free:
  393. break;
  394. case VMAType::AllocatedMemoryBlock:
  395. new_vma.offset += offset_in_vma;
  396. break;
  397. case VMAType::BackingMemory:
  398. new_vma.backing_memory += offset_in_vma;
  399. break;
  400. case VMAType::MMIO:
  401. new_vma.paddr += offset_in_vma;
  402. break;
  403. }
  404. ASSERT(old_vma.CanBeMergedWith(new_vma));
  405. return vma_map.emplace_hint(std::next(vma_handle), new_vma.base, new_vma);
  406. }
  407. VMManager::VMAIter VMManager::MergeAdjacent(VMAIter iter) {
  408. const VMAIter next_vma = std::next(iter);
  409. if (next_vma != vma_map.end() && iter->second.CanBeMergedWith(next_vma->second)) {
  410. iter->second.size += next_vma->second.size;
  411. vma_map.erase(next_vma);
  412. }
  413. if (iter != vma_map.begin()) {
  414. VMAIter prev_vma = std::prev(iter);
  415. if (prev_vma->second.CanBeMergedWith(iter->second)) {
  416. prev_vma->second.size += iter->second.size;
  417. vma_map.erase(iter);
  418. iter = prev_vma;
  419. }
  420. }
  421. return iter;
  422. }
  423. void VMManager::UpdatePageTableForVMA(const VirtualMemoryArea& vma) {
  424. switch (vma.type) {
  425. case VMAType::Free:
  426. Memory::UnmapRegion(page_table, vma.base, vma.size);
  427. break;
  428. case VMAType::AllocatedMemoryBlock:
  429. Memory::MapMemoryRegion(page_table, vma.base, vma.size,
  430. vma.backing_block->data() + vma.offset);
  431. break;
  432. case VMAType::BackingMemory:
  433. Memory::MapMemoryRegion(page_table, vma.base, vma.size, vma.backing_memory);
  434. break;
  435. case VMAType::MMIO:
  436. Memory::MapIoRegion(page_table, vma.base, vma.size, vma.mmio_handler);
  437. break;
  438. }
  439. }
  440. void VMManager::InitializeMemoryRegionRanges(FileSys::ProgramAddressSpaceType type) {
  441. u64 map_region_size = 0;
  442. u64 heap_region_size = 0;
  443. u64 new_map_region_size = 0;
  444. u64 tls_io_region_size = 0;
  445. switch (type) {
  446. case FileSys::ProgramAddressSpaceType::Is32Bit:
  447. case FileSys::ProgramAddressSpaceType::Is32BitNoMap:
  448. address_space_width = 32;
  449. code_region_base = 0x200000;
  450. code_region_end = code_region_base + 0x3FE00000;
  451. aslr_region_base = 0x200000;
  452. aslr_region_end = aslr_region_base + 0xFFE00000;
  453. if (type == FileSys::ProgramAddressSpaceType::Is32Bit) {
  454. map_region_size = 0x40000000;
  455. heap_region_size = 0x40000000;
  456. } else {
  457. map_region_size = 0;
  458. heap_region_size = 0x80000000;
  459. }
  460. break;
  461. case FileSys::ProgramAddressSpaceType::Is36Bit:
  462. address_space_width = 36;
  463. code_region_base = 0x8000000;
  464. code_region_end = code_region_base + 0x78000000;
  465. aslr_region_base = 0x8000000;
  466. aslr_region_end = aslr_region_base + 0xFF8000000;
  467. map_region_size = 0x180000000;
  468. heap_region_size = 0x180000000;
  469. break;
  470. case FileSys::ProgramAddressSpaceType::Is39Bit:
  471. address_space_width = 39;
  472. code_region_base = 0x8000000;
  473. code_region_end = code_region_base + 0x80000000;
  474. aslr_region_base = 0x8000000;
  475. aslr_region_end = aslr_region_base + 0x7FF8000000;
  476. map_region_size = 0x1000000000;
  477. heap_region_size = 0x180000000;
  478. new_map_region_size = 0x80000000;
  479. tls_io_region_size = 0x1000000000;
  480. break;
  481. default:
  482. UNREACHABLE_MSG("Invalid address space type specified: {}", static_cast<u32>(type));
  483. return;
  484. }
  485. address_space_base = 0;
  486. address_space_end = 1ULL << address_space_width;
  487. map_region_base = code_region_end;
  488. map_region_end = map_region_base + map_region_size;
  489. heap_region_base = map_region_end;
  490. heap_region_end = heap_region_base + heap_region_size;
  491. new_map_region_base = heap_region_end;
  492. new_map_region_end = new_map_region_base + new_map_region_size;
  493. tls_io_region_base = new_map_region_end;
  494. tls_io_region_end = tls_io_region_base + tls_io_region_size;
  495. if (new_map_region_size == 0) {
  496. new_map_region_base = address_space_base;
  497. new_map_region_end = address_space_end;
  498. }
  499. }
  500. void VMManager::Clear() {
  501. ClearVMAMap();
  502. ClearPageTable();
  503. }
  504. void VMManager::ClearVMAMap() {
  505. vma_map.clear();
  506. }
  507. void VMManager::ClearPageTable() {
  508. std::fill(page_table.pointers.begin(), page_table.pointers.end(), nullptr);
  509. page_table.special_regions.clear();
  510. std::fill(page_table.attributes.begin(), page_table.attributes.end(),
  511. Memory::PageType::Unmapped);
  512. }
  513. VMManager::CheckResults VMManager::CheckRangeState(VAddr address, u64 size, MemoryState state_mask,
  514. MemoryState state, VMAPermission permission_mask,
  515. VMAPermission permissions,
  516. MemoryAttribute attribute_mask,
  517. MemoryAttribute attribute,
  518. MemoryAttribute ignore_mask) const {
  519. auto iter = FindVMA(address);
  520. // If we don't have a valid VMA handle at this point, then it means this is
  521. // being called with an address outside of the address space, which is definitely
  522. // indicative of a bug, as this function only operates on mapped memory regions.
  523. DEBUG_ASSERT(IsValidHandle(iter));
  524. const VAddr end_address = address + size - 1;
  525. const MemoryAttribute initial_attributes = iter->second.attribute;
  526. const VMAPermission initial_permissions = iter->second.permissions;
  527. const MemoryState initial_state = iter->second.state;
  528. while (true) {
  529. // The iterator should be valid throughout the traversal. Hitting the end of
  530. // the mapped VMA regions is unquestionably indicative of a bug.
  531. DEBUG_ASSERT(IsValidHandle(iter));
  532. const auto& vma = iter->second;
  533. if (vma.state != initial_state) {
  534. return ERR_INVALID_ADDRESS_STATE;
  535. }
  536. if ((vma.state & state_mask) != state) {
  537. return ERR_INVALID_ADDRESS_STATE;
  538. }
  539. if (vma.permissions != initial_permissions) {
  540. return ERR_INVALID_ADDRESS_STATE;
  541. }
  542. if ((vma.permissions & permission_mask) != permissions) {
  543. return ERR_INVALID_ADDRESS_STATE;
  544. }
  545. if ((vma.attribute | ignore_mask) != (initial_attributes | ignore_mask)) {
  546. return ERR_INVALID_ADDRESS_STATE;
  547. }
  548. if ((vma.attribute & attribute_mask) != attribute) {
  549. return ERR_INVALID_ADDRESS_STATE;
  550. }
  551. if (end_address <= vma.EndAddress()) {
  552. break;
  553. }
  554. ++iter;
  555. }
  556. return MakeResult(
  557. std::make_tuple(initial_state, initial_permissions, initial_attributes & ~ignore_mask));
  558. }
  559. u64 VMManager::GetTotalMemoryUsage() const {
  560. LOG_WARNING(Kernel, "(STUBBED) called");
  561. return 0xF8000000;
  562. }
  563. u64 VMManager::GetTotalHeapUsage() const {
  564. return heap_used;
  565. }
  566. VAddr VMManager::GetAddressSpaceBaseAddress() const {
  567. return address_space_base;
  568. }
  569. VAddr VMManager::GetAddressSpaceEndAddress() const {
  570. return address_space_end;
  571. }
  572. u64 VMManager::GetAddressSpaceSize() const {
  573. return address_space_end - address_space_base;
  574. }
  575. u64 VMManager::GetAddressSpaceWidth() const {
  576. return address_space_width;
  577. }
  578. VAddr VMManager::GetASLRRegionBaseAddress() const {
  579. return aslr_region_base;
  580. }
  581. VAddr VMManager::GetASLRRegionEndAddress() const {
  582. return aslr_region_end;
  583. }
  584. u64 VMManager::GetASLRRegionSize() const {
  585. return aslr_region_end - aslr_region_base;
  586. }
  587. bool VMManager::IsWithinASLRRegion(VAddr begin, u64 size) const {
  588. const VAddr range_end = begin + size;
  589. const VAddr aslr_start = GetASLRRegionBaseAddress();
  590. const VAddr aslr_end = GetASLRRegionEndAddress();
  591. if (aslr_start > begin || begin > range_end || range_end - 1 > aslr_end - 1) {
  592. return false;
  593. }
  594. if (range_end > heap_region_base && heap_region_end > begin) {
  595. return false;
  596. }
  597. if (range_end > map_region_base && map_region_end > begin) {
  598. return false;
  599. }
  600. return true;
  601. }
  602. VAddr VMManager::GetCodeRegionBaseAddress() const {
  603. return code_region_base;
  604. }
  605. VAddr VMManager::GetCodeRegionEndAddress() const {
  606. return code_region_end;
  607. }
  608. u64 VMManager::GetCodeRegionSize() const {
  609. return code_region_end - code_region_base;
  610. }
  611. VAddr VMManager::GetHeapRegionBaseAddress() const {
  612. return heap_region_base;
  613. }
  614. VAddr VMManager::GetHeapRegionEndAddress() const {
  615. return heap_region_end;
  616. }
  617. u64 VMManager::GetHeapRegionSize() const {
  618. return heap_region_end - heap_region_base;
  619. }
  620. VAddr VMManager::GetMapRegionBaseAddress() const {
  621. return map_region_base;
  622. }
  623. VAddr VMManager::GetMapRegionEndAddress() const {
  624. return map_region_end;
  625. }
  626. u64 VMManager::GetMapRegionSize() const {
  627. return map_region_end - map_region_base;
  628. }
  629. VAddr VMManager::GetNewMapRegionBaseAddress() const {
  630. return new_map_region_base;
  631. }
  632. VAddr VMManager::GetNewMapRegionEndAddress() const {
  633. return new_map_region_end;
  634. }
  635. u64 VMManager::GetNewMapRegionSize() const {
  636. return new_map_region_end - new_map_region_base;
  637. }
  638. VAddr VMManager::GetTLSIORegionBaseAddress() const {
  639. return tls_io_region_base;
  640. }
  641. VAddr VMManager::GetTLSIORegionEndAddress() const {
  642. return tls_io_region_end;
  643. }
  644. u64 VMManager::GetTLSIORegionSize() const {
  645. return tls_io_region_end - tls_io_region_base;
  646. }
  647. } // namespace Kernel