memory.cpp 33 KB

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  1. // SPDX-FileCopyrightText: 2015 Citra Emulator Project
  2. // SPDX-License-Identifier: GPL-2.0-or-later
  3. #include <algorithm>
  4. #include <cstring>
  5. #include "common/assert.h"
  6. #include "common/atomic_ops.h"
  7. #include "common/common_types.h"
  8. #include "common/logging/log.h"
  9. #include "common/page_table.h"
  10. #include "common/settings.h"
  11. #include "common/swap.h"
  12. #include "core/core.h"
  13. #include "core/device_memory.h"
  14. #include "core/hle/kernel/k_page_table.h"
  15. #include "core/hle/kernel/k_process.h"
  16. #include "core/memory.h"
  17. #include "video_core/gpu.h"
  18. namespace Core::Memory {
  19. // Implementation class used to keep the specifics of the memory subsystem hidden
  20. // from outside classes. This also allows modification to the internals of the memory
  21. // subsystem without needing to rebuild all files that make use of the memory interface.
  22. struct Memory::Impl {
  23. explicit Impl(Core::System& system_) : system{system_} {}
  24. void SetCurrentPageTable(Kernel::KProcess& process, u32 core_id) {
  25. current_page_table = &process.PageTable().PageTableImpl();
  26. current_page_table->fastmem_arena = system.DeviceMemory().buffer.VirtualBasePointer();
  27. const std::size_t address_space_width = process.PageTable().GetAddressSpaceWidth();
  28. system.ArmInterface(core_id).PageTableChanged(*current_page_table, address_space_width);
  29. }
  30. void MapMemoryRegion(Common::PageTable& page_table, VAddr base, u64 size, PAddr target) {
  31. ASSERT_MSG((size & YUZU_PAGEMASK) == 0, "non-page aligned size: {:016X}", size);
  32. ASSERT_MSG((base & YUZU_PAGEMASK) == 0, "non-page aligned base: {:016X}", base);
  33. ASSERT_MSG(target >= DramMemoryMap::Base, "Out of bounds target: {:016X}", target);
  34. MapPages(page_table, base / YUZU_PAGESIZE, size / YUZU_PAGESIZE, target,
  35. Common::PageType::Memory);
  36. if (Settings::IsFastmemEnabled()) {
  37. system.DeviceMemory().buffer.Map(base, target - DramMemoryMap::Base, size);
  38. }
  39. }
  40. void UnmapRegion(Common::PageTable& page_table, VAddr base, u64 size) {
  41. ASSERT_MSG((size & YUZU_PAGEMASK) == 0, "non-page aligned size: {:016X}", size);
  42. ASSERT_MSG((base & YUZU_PAGEMASK) == 0, "non-page aligned base: {:016X}", base);
  43. MapPages(page_table, base / YUZU_PAGESIZE, size / YUZU_PAGESIZE, 0,
  44. Common::PageType::Unmapped);
  45. if (Settings::IsFastmemEnabled()) {
  46. system.DeviceMemory().buffer.Unmap(base, size);
  47. }
  48. }
  49. [[nodiscard]] u8* GetPointerFromRasterizerCachedMemory(VAddr vaddr) const {
  50. const PAddr paddr{current_page_table->backing_addr[vaddr >> YUZU_PAGEBITS]};
  51. if (!paddr) {
  52. return {};
  53. }
  54. return system.DeviceMemory().GetPointer<u8>(paddr) + vaddr;
  55. }
  56. [[nodiscard]] u8* GetPointerFromDebugMemory(VAddr vaddr) const {
  57. const PAddr paddr{current_page_table->backing_addr[vaddr >> YUZU_PAGEBITS]};
  58. if (paddr == 0) {
  59. return {};
  60. }
  61. return system.DeviceMemory().GetPointer<u8>(paddr) + vaddr;
  62. }
  63. u8 Read8(const VAddr addr) {
  64. return Read<u8>(addr);
  65. }
  66. u16 Read16(const VAddr addr) {
  67. if ((addr & 1) == 0) {
  68. return Read<u16_le>(addr);
  69. } else {
  70. const u32 a{Read<u8>(addr)};
  71. const u32 b{Read<u8>(addr + sizeof(u8))};
  72. return static_cast<u16>((b << 8) | a);
  73. }
  74. }
  75. u32 Read32(const VAddr addr) {
  76. if ((addr & 3) == 0) {
  77. return Read<u32_le>(addr);
  78. } else {
  79. const u32 a{Read16(addr)};
  80. const u32 b{Read16(addr + sizeof(u16))};
  81. return (b << 16) | a;
  82. }
  83. }
  84. u64 Read64(const VAddr addr) {
  85. if ((addr & 7) == 0) {
  86. return Read<u64_le>(addr);
  87. } else {
  88. const u32 a{Read32(addr)};
  89. const u32 b{Read32(addr + sizeof(u32))};
  90. return (static_cast<u64>(b) << 32) | a;
  91. }
  92. }
  93. void Write8(const VAddr addr, const u8 data) {
  94. Write<u8>(addr, data);
  95. }
  96. void Write16(const VAddr addr, const u16 data) {
  97. if ((addr & 1) == 0) {
  98. Write<u16_le>(addr, data);
  99. } else {
  100. Write<u8>(addr, static_cast<u8>(data));
  101. Write<u8>(addr + sizeof(u8), static_cast<u8>(data >> 8));
  102. }
  103. }
  104. void Write32(const VAddr addr, const u32 data) {
  105. if ((addr & 3) == 0) {
  106. Write<u32_le>(addr, data);
  107. } else {
  108. Write16(addr, static_cast<u16>(data));
  109. Write16(addr + sizeof(u16), static_cast<u16>(data >> 16));
  110. }
  111. }
  112. void Write64(const VAddr addr, const u64 data) {
  113. if ((addr & 7) == 0) {
  114. Write<u64_le>(addr, data);
  115. } else {
  116. Write32(addr, static_cast<u32>(data));
  117. Write32(addr + sizeof(u32), static_cast<u32>(data >> 32));
  118. }
  119. }
  120. bool WriteExclusive8(const VAddr addr, const u8 data, const u8 expected) {
  121. return WriteExclusive<u8>(addr, data, expected);
  122. }
  123. bool WriteExclusive16(const VAddr addr, const u16 data, const u16 expected) {
  124. return WriteExclusive<u16_le>(addr, data, expected);
  125. }
  126. bool WriteExclusive32(const VAddr addr, const u32 data, const u32 expected) {
  127. return WriteExclusive<u32_le>(addr, data, expected);
  128. }
  129. bool WriteExclusive64(const VAddr addr, const u64 data, const u64 expected) {
  130. return WriteExclusive<u64_le>(addr, data, expected);
  131. }
  132. std::string ReadCString(VAddr vaddr, std::size_t max_length) {
  133. std::string string;
  134. string.reserve(max_length);
  135. for (std::size_t i = 0; i < max_length; ++i) {
  136. const char c = Read<s8>(vaddr);
  137. if (c == '\0') {
  138. break;
  139. }
  140. string.push_back(c);
  141. ++vaddr;
  142. }
  143. string.shrink_to_fit();
  144. return string;
  145. }
  146. void WalkBlock(const Kernel::KProcess& process, const VAddr addr, const std::size_t size,
  147. auto on_unmapped, auto on_memory, auto on_rasterizer, auto increment) {
  148. const auto& page_table = process.PageTable().PageTableImpl();
  149. std::size_t remaining_size = size;
  150. std::size_t page_index = addr >> YUZU_PAGEBITS;
  151. std::size_t page_offset = addr & YUZU_PAGEMASK;
  152. while (remaining_size) {
  153. const std::size_t copy_amount =
  154. std::min(static_cast<std::size_t>(YUZU_PAGESIZE) - page_offset, remaining_size);
  155. const auto current_vaddr =
  156. static_cast<VAddr>((page_index << YUZU_PAGEBITS) + page_offset);
  157. const auto [pointer, type] = page_table.pointers[page_index].PointerType();
  158. switch (type) {
  159. case Common::PageType::Unmapped: {
  160. on_unmapped(copy_amount, current_vaddr);
  161. break;
  162. }
  163. case Common::PageType::Memory: {
  164. u8* mem_ptr = pointer + page_offset + (page_index << YUZU_PAGEBITS);
  165. on_memory(copy_amount, mem_ptr);
  166. break;
  167. }
  168. case Common::PageType::DebugMemory: {
  169. u8* const mem_ptr{GetPointerFromDebugMemory(current_vaddr)};
  170. on_memory(copy_amount, mem_ptr);
  171. break;
  172. }
  173. case Common::PageType::RasterizerCachedMemory: {
  174. u8* const host_ptr{GetPointerFromRasterizerCachedMemory(current_vaddr)};
  175. on_rasterizer(current_vaddr, copy_amount, host_ptr);
  176. break;
  177. }
  178. default:
  179. UNREACHABLE();
  180. }
  181. page_index++;
  182. page_offset = 0;
  183. increment(copy_amount);
  184. remaining_size -= copy_amount;
  185. }
  186. }
  187. template <bool UNSAFE>
  188. void ReadBlockImpl(const Kernel::KProcess& process, const VAddr src_addr, void* dest_buffer,
  189. const std::size_t size) {
  190. WalkBlock(
  191. process, src_addr, size,
  192. [src_addr, size, &dest_buffer](const std::size_t copy_amount,
  193. const VAddr current_vaddr) {
  194. LOG_ERROR(HW_Memory,
  195. "Unmapped ReadBlock @ 0x{:016X} (start address = 0x{:016X}, size = {})",
  196. current_vaddr, src_addr, size);
  197. std::memset(dest_buffer, 0, copy_amount);
  198. },
  199. [&](const std::size_t copy_amount, const u8* const src_ptr) {
  200. std::memcpy(dest_buffer, src_ptr, copy_amount);
  201. },
  202. [&](const VAddr current_vaddr, const std::size_t copy_amount,
  203. const u8* const host_ptr) {
  204. if constexpr (!UNSAFE) {
  205. system.GPU().FlushRegion(current_vaddr, copy_amount);
  206. }
  207. std::memcpy(dest_buffer, host_ptr, copy_amount);
  208. },
  209. [&](const std::size_t copy_amount) {
  210. dest_buffer = static_cast<u8*>(dest_buffer) + copy_amount;
  211. });
  212. }
  213. void ReadBlock(const VAddr src_addr, void* dest_buffer, const std::size_t size) {
  214. ReadBlockImpl<false>(*system.CurrentProcess(), src_addr, dest_buffer, size);
  215. }
  216. void ReadBlockUnsafe(const VAddr src_addr, void* dest_buffer, const std::size_t size) {
  217. ReadBlockImpl<true>(*system.CurrentProcess(), src_addr, dest_buffer, size);
  218. }
  219. template <bool UNSAFE>
  220. void WriteBlockImpl(const Kernel::KProcess& process, const VAddr dest_addr,
  221. const void* src_buffer, const std::size_t size) {
  222. WalkBlock(
  223. process, dest_addr, size,
  224. [dest_addr, size](const std::size_t copy_amount, const VAddr current_vaddr) {
  225. LOG_ERROR(HW_Memory,
  226. "Unmapped WriteBlock @ 0x{:016X} (start address = 0x{:016X}, size = {})",
  227. current_vaddr, dest_addr, size);
  228. },
  229. [&](const std::size_t copy_amount, u8* const dest_ptr) {
  230. std::memcpy(dest_ptr, src_buffer, copy_amount);
  231. },
  232. [&](const VAddr current_vaddr, const std::size_t copy_amount, u8* const host_ptr) {
  233. if constexpr (!UNSAFE) {
  234. system.GPU().InvalidateRegion(current_vaddr, copy_amount);
  235. }
  236. std::memcpy(host_ptr, src_buffer, copy_amount);
  237. },
  238. [&](const std::size_t copy_amount) {
  239. src_buffer = static_cast<const u8*>(src_buffer) + copy_amount;
  240. });
  241. }
  242. void WriteBlock(const VAddr dest_addr, const void* src_buffer, const std::size_t size) {
  243. WriteBlockImpl<false>(*system.CurrentProcess(), dest_addr, src_buffer, size);
  244. }
  245. void WriteBlockUnsafe(const VAddr dest_addr, const void* src_buffer, const std::size_t size) {
  246. WriteBlockImpl<true>(*system.CurrentProcess(), dest_addr, src_buffer, size);
  247. }
  248. void ZeroBlock(const Kernel::KProcess& process, const VAddr dest_addr, const std::size_t size) {
  249. WalkBlock(
  250. process, dest_addr, size,
  251. [dest_addr, size](const std::size_t copy_amount, const VAddr current_vaddr) {
  252. LOG_ERROR(HW_Memory,
  253. "Unmapped ZeroBlock @ 0x{:016X} (start address = 0x{:016X}, size = {})",
  254. current_vaddr, dest_addr, size);
  255. },
  256. [](const std::size_t copy_amount, u8* const dest_ptr) {
  257. std::memset(dest_ptr, 0, copy_amount);
  258. },
  259. [&](const VAddr current_vaddr, const std::size_t copy_amount, u8* const host_ptr) {
  260. system.GPU().InvalidateRegion(current_vaddr, copy_amount);
  261. std::memset(host_ptr, 0, copy_amount);
  262. },
  263. [](const std::size_t copy_amount) {});
  264. }
  265. void CopyBlock(const Kernel::KProcess& process, VAddr dest_addr, VAddr src_addr,
  266. const std::size_t size) {
  267. WalkBlock(
  268. process, dest_addr, size,
  269. [&](const std::size_t copy_amount, const VAddr current_vaddr) {
  270. LOG_ERROR(HW_Memory,
  271. "Unmapped CopyBlock @ 0x{:016X} (start address = 0x{:016X}, size = {})",
  272. current_vaddr, src_addr, size);
  273. ZeroBlock(process, dest_addr, copy_amount);
  274. },
  275. [&](const std::size_t copy_amount, const u8* const src_ptr) {
  276. WriteBlockImpl<false>(process, dest_addr, src_ptr, copy_amount);
  277. },
  278. [&](const VAddr current_vaddr, const std::size_t copy_amount, u8* const host_ptr) {
  279. system.GPU().FlushRegion(current_vaddr, copy_amount);
  280. WriteBlockImpl<false>(process, dest_addr, host_ptr, copy_amount);
  281. },
  282. [&](const std::size_t copy_amount) {
  283. dest_addr += static_cast<VAddr>(copy_amount);
  284. src_addr += static_cast<VAddr>(copy_amount);
  285. });
  286. }
  287. template <typename Callback>
  288. Result PerformCacheOperation(const Kernel::KProcess& process, VAddr dest_addr, std::size_t size,
  289. Callback&& cb) {
  290. class InvalidMemoryException : public std::exception {};
  291. try {
  292. WalkBlock(
  293. process, dest_addr, size,
  294. [&](const std::size_t block_size, const VAddr current_vaddr) {
  295. LOG_ERROR(HW_Memory, "Unmapped cache maintenance @ {:#018X}", current_vaddr);
  296. throw InvalidMemoryException();
  297. },
  298. [&](const std::size_t block_size, u8* const host_ptr) {},
  299. [&](const VAddr current_vaddr, const std::size_t block_size, u8* const host_ptr) {
  300. cb(current_vaddr, block_size);
  301. },
  302. [](const std::size_t block_size) {});
  303. } catch (InvalidMemoryException&) {
  304. return Kernel::ResultInvalidCurrentMemory;
  305. }
  306. return ResultSuccess;
  307. }
  308. Result InvalidateDataCache(const Kernel::KProcess& process, VAddr dest_addr, std::size_t size) {
  309. auto on_rasterizer = [&](const VAddr current_vaddr, const std::size_t block_size) {
  310. // dc ivac: Invalidate to point of coherency
  311. // GPU flush -> CPU invalidate
  312. system.GPU().FlushRegion(current_vaddr, block_size);
  313. };
  314. return PerformCacheOperation(process, dest_addr, size, on_rasterizer);
  315. }
  316. Result StoreDataCache(const Kernel::KProcess& process, VAddr dest_addr, std::size_t size) {
  317. auto on_rasterizer = [&](const VAddr current_vaddr, const std::size_t block_size) {
  318. // dc cvac: Store to point of coherency
  319. // CPU flush -> GPU invalidate
  320. system.GPU().InvalidateRegion(current_vaddr, block_size);
  321. };
  322. return PerformCacheOperation(process, dest_addr, size, on_rasterizer);
  323. }
  324. Result FlushDataCache(const Kernel::KProcess& process, VAddr dest_addr, std::size_t size) {
  325. auto on_rasterizer = [&](const VAddr current_vaddr, const std::size_t block_size) {
  326. // dc civac: Store to point of coherency, and invalidate from cache
  327. // CPU flush -> GPU invalidate
  328. system.GPU().InvalidateRegion(current_vaddr, block_size);
  329. };
  330. return PerformCacheOperation(process, dest_addr, size, on_rasterizer);
  331. }
  332. void MarkRegionDebug(VAddr vaddr, u64 size, bool debug) {
  333. if (vaddr == 0) {
  334. return;
  335. }
  336. if (Settings::IsFastmemEnabled()) {
  337. system.DeviceMemory().buffer.Protect(vaddr, size, !debug, !debug);
  338. }
  339. // Iterate over a contiguous CPU address space, marking/unmarking the region.
  340. // The region is at a granularity of CPU pages.
  341. const u64 num_pages = ((vaddr + size - 1) >> YUZU_PAGEBITS) - (vaddr >> YUZU_PAGEBITS) + 1;
  342. for (u64 i = 0; i < num_pages; ++i, vaddr += YUZU_PAGESIZE) {
  343. const Common::PageType page_type{
  344. current_page_table->pointers[vaddr >> YUZU_PAGEBITS].Type()};
  345. if (debug) {
  346. // Switch page type to debug if now debug
  347. switch (page_type) {
  348. case Common::PageType::Unmapped:
  349. ASSERT_MSG(false, "Attempted to mark unmapped pages as debug");
  350. break;
  351. case Common::PageType::RasterizerCachedMemory:
  352. case Common::PageType::DebugMemory:
  353. // Page is already marked.
  354. break;
  355. case Common::PageType::Memory:
  356. current_page_table->pointers[vaddr >> YUZU_PAGEBITS].Store(
  357. nullptr, Common::PageType::DebugMemory);
  358. break;
  359. default:
  360. UNREACHABLE();
  361. }
  362. } else {
  363. // Switch page type to non-debug if now non-debug
  364. switch (page_type) {
  365. case Common::PageType::Unmapped:
  366. ASSERT_MSG(false, "Attempted to mark unmapped pages as non-debug");
  367. break;
  368. case Common::PageType::RasterizerCachedMemory:
  369. case Common::PageType::Memory:
  370. // Don't mess with already non-debug or rasterizer memory.
  371. break;
  372. case Common::PageType::DebugMemory: {
  373. u8* const pointer{GetPointerFromDebugMemory(vaddr & ~YUZU_PAGEMASK)};
  374. current_page_table->pointers[vaddr >> YUZU_PAGEBITS].Store(
  375. pointer - (vaddr & ~YUZU_PAGEMASK), Common::PageType::Memory);
  376. break;
  377. }
  378. default:
  379. UNREACHABLE();
  380. }
  381. }
  382. }
  383. }
  384. void RasterizerMarkRegionCached(VAddr vaddr, u64 size, bool cached) {
  385. if (vaddr == 0) {
  386. return;
  387. }
  388. if (Settings::IsFastmemEnabled()) {
  389. const bool is_read_enable = !Settings::IsGPULevelExtreme() || !cached;
  390. system.DeviceMemory().buffer.Protect(vaddr, size, is_read_enable, !cached);
  391. }
  392. // Iterate over a contiguous CPU address space, which corresponds to the specified GPU
  393. // address space, marking the region as un/cached. The region is marked un/cached at a
  394. // granularity of CPU pages, hence why we iterate on a CPU page basis (note: GPU page size
  395. // is different). This assumes the specified GPU address region is contiguous as well.
  396. const u64 num_pages = ((vaddr + size - 1) >> YUZU_PAGEBITS) - (vaddr >> YUZU_PAGEBITS) + 1;
  397. for (u64 i = 0; i < num_pages; ++i, vaddr += YUZU_PAGESIZE) {
  398. const Common::PageType page_type{
  399. current_page_table->pointers[vaddr >> YUZU_PAGEBITS].Type()};
  400. if (cached) {
  401. // Switch page type to cached if now cached
  402. switch (page_type) {
  403. case Common::PageType::Unmapped:
  404. // It is not necessary for a process to have this region mapped into its address
  405. // space, for example, a system module need not have a VRAM mapping.
  406. break;
  407. case Common::PageType::DebugMemory:
  408. case Common::PageType::Memory:
  409. current_page_table->pointers[vaddr >> YUZU_PAGEBITS].Store(
  410. nullptr, Common::PageType::RasterizerCachedMemory);
  411. break;
  412. case Common::PageType::RasterizerCachedMemory:
  413. // There can be more than one GPU region mapped per CPU region, so it's common
  414. // that this area is already marked as cached.
  415. break;
  416. default:
  417. UNREACHABLE();
  418. }
  419. } else {
  420. // Switch page type to uncached if now uncached
  421. switch (page_type) {
  422. case Common::PageType::Unmapped: // NOLINT(bugprone-branch-clone)
  423. // It is not necessary for a process to have this region mapped into its address
  424. // space, for example, a system module need not have a VRAM mapping.
  425. break;
  426. case Common::PageType::DebugMemory:
  427. case Common::PageType::Memory:
  428. // There can be more than one GPU region mapped per CPU region, so it's common
  429. // that this area is already unmarked as cached.
  430. break;
  431. case Common::PageType::RasterizerCachedMemory: {
  432. u8* const pointer{GetPointerFromRasterizerCachedMemory(vaddr & ~YUZU_PAGEMASK)};
  433. if (pointer == nullptr) {
  434. // It's possible that this function has been called while updating the
  435. // pagetable after unmapping a VMA. In that case the underlying VMA will no
  436. // longer exist, and we should just leave the pagetable entry blank.
  437. current_page_table->pointers[vaddr >> YUZU_PAGEBITS].Store(
  438. nullptr, Common::PageType::Unmapped);
  439. } else {
  440. current_page_table->pointers[vaddr >> YUZU_PAGEBITS].Store(
  441. pointer - (vaddr & ~YUZU_PAGEMASK), Common::PageType::Memory);
  442. }
  443. break;
  444. }
  445. default:
  446. UNREACHABLE();
  447. }
  448. }
  449. }
  450. }
  451. /**
  452. * Maps a region of pages as a specific type.
  453. *
  454. * @param page_table The page table to use to perform the mapping.
  455. * @param base The base address to begin mapping at.
  456. * @param size The total size of the range in bytes.
  457. * @param target The target address to begin mapping from.
  458. * @param type The page type to map the memory as.
  459. */
  460. void MapPages(Common::PageTable& page_table, VAddr base, u64 size, PAddr target,
  461. Common::PageType type) {
  462. LOG_DEBUG(HW_Memory, "Mapping {:016X} onto {:016X}-{:016X}", target, base * YUZU_PAGESIZE,
  463. (base + size) * YUZU_PAGESIZE);
  464. // During boot, current_page_table might not be set yet, in which case we need not flush
  465. if (system.IsPoweredOn()) {
  466. auto& gpu = system.GPU();
  467. for (u64 i = 0; i < size; i++) {
  468. const auto page = base + i;
  469. if (page_table.pointers[page].Type() == Common::PageType::RasterizerCachedMemory) {
  470. gpu.FlushAndInvalidateRegion(page << YUZU_PAGEBITS, YUZU_PAGESIZE);
  471. }
  472. }
  473. }
  474. const VAddr end = base + size;
  475. ASSERT_MSG(end <= page_table.pointers.size(), "out of range mapping at {:016X}",
  476. base + page_table.pointers.size());
  477. if (!target) {
  478. ASSERT_MSG(type != Common::PageType::Memory,
  479. "Mapping memory page without a pointer @ {:016x}", base * YUZU_PAGESIZE);
  480. while (base != end) {
  481. page_table.pointers[base].Store(nullptr, type);
  482. page_table.backing_addr[base] = 0;
  483. base += 1;
  484. }
  485. } else {
  486. while (base != end) {
  487. page_table.pointers[base].Store(
  488. system.DeviceMemory().GetPointer<u8>(target) - (base << YUZU_PAGEBITS), type);
  489. page_table.backing_addr[base] = target - (base << YUZU_PAGEBITS);
  490. ASSERT_MSG(page_table.pointers[base].Pointer(),
  491. "memory mapping base yield a nullptr within the table");
  492. base += 1;
  493. target += YUZU_PAGESIZE;
  494. }
  495. }
  496. }
  497. [[nodiscard]] u8* GetPointerImpl(VAddr vaddr, auto on_unmapped, auto on_rasterizer) const {
  498. // AARCH64 masks the upper 16 bit of all memory accesses
  499. vaddr &= 0xffffffffffffULL;
  500. if (vaddr >= 1uLL << current_page_table->GetAddressSpaceBits()) {
  501. on_unmapped();
  502. return nullptr;
  503. }
  504. // Avoid adding any extra logic to this fast-path block
  505. const uintptr_t raw_pointer = current_page_table->pointers[vaddr >> YUZU_PAGEBITS].Raw();
  506. if (u8* const pointer = Common::PageTable::PageInfo::ExtractPointer(raw_pointer)) {
  507. return &pointer[vaddr];
  508. }
  509. switch (Common::PageTable::PageInfo::ExtractType(raw_pointer)) {
  510. case Common::PageType::Unmapped:
  511. on_unmapped();
  512. return nullptr;
  513. case Common::PageType::Memory:
  514. ASSERT_MSG(false, "Mapped memory page without a pointer @ 0x{:016X}", vaddr);
  515. return nullptr;
  516. case Common::PageType::DebugMemory:
  517. return GetPointerFromDebugMemory(vaddr);
  518. case Common::PageType::RasterizerCachedMemory: {
  519. u8* const host_ptr{GetPointerFromRasterizerCachedMemory(vaddr)};
  520. on_rasterizer();
  521. return host_ptr;
  522. }
  523. default:
  524. UNREACHABLE();
  525. }
  526. return nullptr;
  527. }
  528. [[nodiscard]] u8* GetPointer(const VAddr vaddr) const {
  529. return GetPointerImpl(
  530. vaddr, [vaddr]() { LOG_ERROR(HW_Memory, "Unmapped GetPointer @ 0x{:016X}", vaddr); },
  531. []() {});
  532. }
  533. [[nodiscard]] u8* GetPointerSilent(const VAddr vaddr) const {
  534. return GetPointerImpl(
  535. vaddr, []() {}, []() {});
  536. }
  537. /**
  538. * Reads a particular data type out of memory at the given virtual address.
  539. *
  540. * @param vaddr The virtual address to read the data type from.
  541. *
  542. * @tparam T The data type to read out of memory. This type *must* be
  543. * trivially copyable, otherwise the behavior of this function
  544. * is undefined.
  545. *
  546. * @returns The instance of T read from the specified virtual address.
  547. */
  548. template <typename T>
  549. T Read(VAddr vaddr) {
  550. T result = 0;
  551. const u8* const ptr = GetPointerImpl(
  552. vaddr,
  553. [vaddr]() {
  554. LOG_ERROR(HW_Memory, "Unmapped Read{} @ 0x{:016X}", sizeof(T) * 8, vaddr);
  555. },
  556. [&]() { system.GPU().FlushRegion(vaddr, sizeof(T)); });
  557. if (ptr) {
  558. std::memcpy(&result, ptr, sizeof(T));
  559. }
  560. return result;
  561. }
  562. /**
  563. * Writes a particular data type to memory at the given virtual address.
  564. *
  565. * @param vaddr The virtual address to write the data type to.
  566. *
  567. * @tparam T The data type to write to memory. This type *must* be
  568. * trivially copyable, otherwise the behavior of this function
  569. * is undefined.
  570. */
  571. template <typename T>
  572. void Write(VAddr vaddr, const T data) {
  573. u8* const ptr = GetPointerImpl(
  574. vaddr,
  575. [vaddr, data]() {
  576. LOG_ERROR(HW_Memory, "Unmapped Write{} @ 0x{:016X} = 0x{:016X}", sizeof(T) * 8,
  577. vaddr, static_cast<u64>(data));
  578. },
  579. [&]() { system.GPU().InvalidateRegion(vaddr, sizeof(T)); });
  580. if (ptr) {
  581. std::memcpy(ptr, &data, sizeof(T));
  582. }
  583. }
  584. template <typename T>
  585. bool WriteExclusive(VAddr vaddr, const T data, const T expected) {
  586. u8* const ptr = GetPointerImpl(
  587. vaddr,
  588. [vaddr, data]() {
  589. LOG_ERROR(HW_Memory, "Unmapped WriteExclusive{} @ 0x{:016X} = 0x{:016X}",
  590. sizeof(T) * 8, vaddr, static_cast<u64>(data));
  591. },
  592. [&]() { system.GPU().InvalidateRegion(vaddr, sizeof(T)); });
  593. if (ptr) {
  594. const auto volatile_pointer = reinterpret_cast<volatile T*>(ptr);
  595. return Common::AtomicCompareAndSwap(volatile_pointer, data, expected);
  596. }
  597. return true;
  598. }
  599. bool WriteExclusive128(VAddr vaddr, const u128 data, const u128 expected) {
  600. u8* const ptr = GetPointerImpl(
  601. vaddr,
  602. [vaddr, data]() {
  603. LOG_ERROR(HW_Memory, "Unmapped WriteExclusive128 @ 0x{:016X} = 0x{:016X}{:016X}",
  604. vaddr, static_cast<u64>(data[1]), static_cast<u64>(data[0]));
  605. },
  606. [&]() { system.GPU().InvalidateRegion(vaddr, sizeof(u128)); });
  607. if (ptr) {
  608. const auto volatile_pointer = reinterpret_cast<volatile u64*>(ptr);
  609. return Common::AtomicCompareAndSwap(volatile_pointer, data, expected);
  610. }
  611. return true;
  612. }
  613. Common::PageTable* current_page_table = nullptr;
  614. Core::System& system;
  615. };
  616. Memory::Memory(Core::System& system_) : system{system_} {
  617. Reset();
  618. }
  619. Memory::~Memory() = default;
  620. void Memory::Reset() {
  621. impl = std::make_unique<Impl>(system);
  622. }
  623. void Memory::SetCurrentPageTable(Kernel::KProcess& process, u32 core_id) {
  624. impl->SetCurrentPageTable(process, core_id);
  625. }
  626. void Memory::MapMemoryRegion(Common::PageTable& page_table, VAddr base, u64 size, PAddr target) {
  627. impl->MapMemoryRegion(page_table, base, size, target);
  628. }
  629. void Memory::UnmapRegion(Common::PageTable& page_table, VAddr base, u64 size) {
  630. impl->UnmapRegion(page_table, base, size);
  631. }
  632. bool Memory::IsValidVirtualAddress(const VAddr vaddr) const {
  633. const Kernel::KProcess& process = *system.CurrentProcess();
  634. const auto& page_table = process.PageTable().PageTableImpl();
  635. const size_t page = vaddr >> YUZU_PAGEBITS;
  636. if (page >= page_table.pointers.size()) {
  637. return false;
  638. }
  639. const auto [pointer, type] = page_table.pointers[page].PointerType();
  640. return pointer != nullptr || type == Common::PageType::RasterizerCachedMemory ||
  641. type == Common::PageType::DebugMemory;
  642. }
  643. bool Memory::IsValidVirtualAddressRange(VAddr base, u64 size) const {
  644. VAddr end = base + size;
  645. VAddr page = Common::AlignDown(base, YUZU_PAGESIZE);
  646. for (; page < end; page += YUZU_PAGESIZE) {
  647. if (!IsValidVirtualAddress(page)) {
  648. return false;
  649. }
  650. }
  651. return true;
  652. }
  653. u8* Memory::GetPointer(VAddr vaddr) {
  654. return impl->GetPointer(vaddr);
  655. }
  656. u8* Memory::GetPointerSilent(VAddr vaddr) {
  657. return impl->GetPointerSilent(vaddr);
  658. }
  659. const u8* Memory::GetPointer(VAddr vaddr) const {
  660. return impl->GetPointer(vaddr);
  661. }
  662. u8 Memory::Read8(const VAddr addr) {
  663. return impl->Read8(addr);
  664. }
  665. u16 Memory::Read16(const VAddr addr) {
  666. return impl->Read16(addr);
  667. }
  668. u32 Memory::Read32(const VAddr addr) {
  669. return impl->Read32(addr);
  670. }
  671. u64 Memory::Read64(const VAddr addr) {
  672. return impl->Read64(addr);
  673. }
  674. void Memory::Write8(VAddr addr, u8 data) {
  675. impl->Write8(addr, data);
  676. }
  677. void Memory::Write16(VAddr addr, u16 data) {
  678. impl->Write16(addr, data);
  679. }
  680. void Memory::Write32(VAddr addr, u32 data) {
  681. impl->Write32(addr, data);
  682. }
  683. void Memory::Write64(VAddr addr, u64 data) {
  684. impl->Write64(addr, data);
  685. }
  686. bool Memory::WriteExclusive8(VAddr addr, u8 data, u8 expected) {
  687. return impl->WriteExclusive8(addr, data, expected);
  688. }
  689. bool Memory::WriteExclusive16(VAddr addr, u16 data, u16 expected) {
  690. return impl->WriteExclusive16(addr, data, expected);
  691. }
  692. bool Memory::WriteExclusive32(VAddr addr, u32 data, u32 expected) {
  693. return impl->WriteExclusive32(addr, data, expected);
  694. }
  695. bool Memory::WriteExclusive64(VAddr addr, u64 data, u64 expected) {
  696. return impl->WriteExclusive64(addr, data, expected);
  697. }
  698. bool Memory::WriteExclusive128(VAddr addr, u128 data, u128 expected) {
  699. return impl->WriteExclusive128(addr, data, expected);
  700. }
  701. std::string Memory::ReadCString(VAddr vaddr, std::size_t max_length) {
  702. return impl->ReadCString(vaddr, max_length);
  703. }
  704. void Memory::ReadBlock(const Kernel::KProcess& process, const VAddr src_addr, void* dest_buffer,
  705. const std::size_t size) {
  706. impl->ReadBlockImpl<false>(process, src_addr, dest_buffer, size);
  707. }
  708. void Memory::ReadBlock(const VAddr src_addr, void* dest_buffer, const std::size_t size) {
  709. impl->ReadBlock(src_addr, dest_buffer, size);
  710. }
  711. void Memory::ReadBlockUnsafe(const VAddr src_addr, void* dest_buffer, const std::size_t size) {
  712. impl->ReadBlockUnsafe(src_addr, dest_buffer, size);
  713. }
  714. void Memory::WriteBlock(const Kernel::KProcess& process, VAddr dest_addr, const void* src_buffer,
  715. std::size_t size) {
  716. impl->WriteBlockImpl<false>(process, dest_addr, src_buffer, size);
  717. }
  718. void Memory::WriteBlock(const VAddr dest_addr, const void* src_buffer, const std::size_t size) {
  719. impl->WriteBlock(dest_addr, src_buffer, size);
  720. }
  721. void Memory::WriteBlockUnsafe(const VAddr dest_addr, const void* src_buffer,
  722. const std::size_t size) {
  723. impl->WriteBlockUnsafe(dest_addr, src_buffer, size);
  724. }
  725. void Memory::CopyBlock(const Kernel::KProcess& process, VAddr dest_addr, VAddr src_addr,
  726. const std::size_t size) {
  727. impl->CopyBlock(process, dest_addr, src_addr, size);
  728. }
  729. void Memory::ZeroBlock(const Kernel::KProcess& process, VAddr dest_addr, const std::size_t size) {
  730. impl->ZeroBlock(process, dest_addr, size);
  731. }
  732. Result Memory::InvalidateDataCache(const Kernel::KProcess& process, VAddr dest_addr,
  733. const std::size_t size) {
  734. return impl->InvalidateDataCache(process, dest_addr, size);
  735. }
  736. Result Memory::StoreDataCache(const Kernel::KProcess& process, VAddr dest_addr,
  737. const std::size_t size) {
  738. return impl->StoreDataCache(process, dest_addr, size);
  739. }
  740. Result Memory::FlushDataCache(const Kernel::KProcess& process, VAddr dest_addr,
  741. const std::size_t size) {
  742. return impl->FlushDataCache(process, dest_addr, size);
  743. }
  744. void Memory::RasterizerMarkRegionCached(VAddr vaddr, u64 size, bool cached) {
  745. impl->RasterizerMarkRegionCached(vaddr, size, cached);
  746. }
  747. void Memory::MarkRegionDebug(VAddr vaddr, u64 size, bool debug) {
  748. impl->MarkRegionDebug(vaddr, size, debug);
  749. }
  750. } // namespace Core::Memory