buffer_cache.h 22 KB

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  1. // Copyright 2019 yuzu Emulator Project
  2. // Licensed under GPLv2 or any later version
  3. // Refer to the license.txt file included.
  4. #pragma once
  5. #include <list>
  6. #include <memory>
  7. #include <mutex>
  8. #include <unordered_map>
  9. #include <unordered_set>
  10. #include <utility>
  11. #include <vector>
  12. #include <boost/icl/interval_map.hpp>
  13. #include <boost/icl/interval_set.hpp>
  14. #include <boost/range/iterator_range.hpp>
  15. #include "common/alignment.h"
  16. #include "common/common_types.h"
  17. #include "common/logging/log.h"
  18. #include "core/core.h"
  19. #include "core/memory.h"
  20. #include "core/settings.h"
  21. #include "video_core/buffer_cache/buffer_block.h"
  22. #include "video_core/buffer_cache/map_interval.h"
  23. #include "video_core/memory_manager.h"
  24. #include "video_core/rasterizer_interface.h"
  25. namespace VideoCommon {
  26. using MapInterval = std::shared_ptr<MapIntervalBase>;
  27. template <typename OwnerBuffer, typename BufferType, typename StreamBuffer>
  28. class BufferCache {
  29. public:
  30. using BufferInfo = std::pair<BufferType, u64>;
  31. BufferInfo UploadMemory(GPUVAddr gpu_addr, std::size_t size, std::size_t alignment = 4,
  32. bool is_written = false, bool use_fast_cbuf = false) {
  33. std::lock_guard lock{mutex};
  34. const std::optional<VAddr> cpu_addr_opt =
  35. system.GPU().MemoryManager().GpuToCpuAddress(gpu_addr);
  36. if (!cpu_addr_opt) {
  37. return {GetEmptyBuffer(size), 0};
  38. }
  39. VAddr cpu_addr = *cpu_addr_opt;
  40. // Cache management is a big overhead, so only cache entries with a given size.
  41. // TODO: Figure out which size is the best for given games.
  42. constexpr std::size_t max_stream_size = 0x800;
  43. if (use_fast_cbuf || size < max_stream_size) {
  44. if (!is_written && !IsRegionWritten(cpu_addr, cpu_addr + size - 1)) {
  45. auto& memory_manager = system.GPU().MemoryManager();
  46. if (use_fast_cbuf) {
  47. if (memory_manager.IsGranularRange(gpu_addr, size)) {
  48. const auto host_ptr = memory_manager.GetPointer(gpu_addr);
  49. return ConstBufferUpload(host_ptr, size);
  50. } else {
  51. staging_buffer.resize(size);
  52. memory_manager.ReadBlockUnsafe(gpu_addr, staging_buffer.data(), size);
  53. return ConstBufferUpload(staging_buffer.data(), size);
  54. }
  55. } else {
  56. if (memory_manager.IsGranularRange(gpu_addr, size)) {
  57. const auto host_ptr = memory_manager.GetPointer(gpu_addr);
  58. return StreamBufferUpload(host_ptr, size, alignment);
  59. } else {
  60. staging_buffer.resize(size);
  61. memory_manager.ReadBlockUnsafe(gpu_addr, staging_buffer.data(), size);
  62. return StreamBufferUpload(staging_buffer.data(), size, alignment);
  63. }
  64. }
  65. }
  66. }
  67. auto block = GetBlock(cpu_addr, size);
  68. auto map = MapAddress(block, gpu_addr, cpu_addr, size);
  69. if (is_written) {
  70. map->MarkAsModified(true, GetModifiedTicks());
  71. if (Settings::IsGPULevelHigh() && Settings::values.use_asynchronous_gpu_emulation) {
  72. MarkForAsyncFlush(map);
  73. }
  74. if (!map->IsWritten()) {
  75. map->MarkAsWritten(true);
  76. MarkRegionAsWritten(map->GetStart(), map->GetEnd() - 1);
  77. }
  78. } else {
  79. if (map->IsWritten()) {
  80. WriteBarrier();
  81. }
  82. }
  83. return {ToHandle(block), static_cast<u64>(block->GetOffset(cpu_addr))};
  84. }
  85. /// Uploads from a host memory. Returns the OpenGL buffer where it's located and its offset.
  86. BufferInfo UploadHostMemory(const void* raw_pointer, std::size_t size,
  87. std::size_t alignment = 4) {
  88. std::lock_guard lock{mutex};
  89. return StreamBufferUpload(raw_pointer, size, alignment);
  90. }
  91. void Map(std::size_t max_size) {
  92. std::lock_guard lock{mutex};
  93. std::tie(buffer_ptr, buffer_offset_base, invalidated) = stream_buffer->Map(max_size, 4);
  94. buffer_offset = buffer_offset_base;
  95. }
  96. /// Finishes the upload stream, returns true on bindings invalidation.
  97. bool Unmap() {
  98. std::lock_guard lock{mutex};
  99. stream_buffer->Unmap(buffer_offset - buffer_offset_base);
  100. return std::exchange(invalidated, false);
  101. }
  102. void TickFrame() {
  103. ++epoch;
  104. while (!pending_destruction.empty()) {
  105. // Delay at least 4 frames before destruction.
  106. // This is due to triple buffering happening on some drivers.
  107. static constexpr u64 epochs_to_destroy = 5;
  108. if (pending_destruction.front()->GetEpoch() + epochs_to_destroy > epoch) {
  109. break;
  110. }
  111. pending_destruction.pop_front();
  112. }
  113. }
  114. /// Write any cached resources overlapping the specified region back to memory
  115. void FlushRegion(VAddr addr, std::size_t size) {
  116. std::lock_guard lock{mutex};
  117. std::vector<MapInterval> objects = GetMapsInRange(addr, size);
  118. std::sort(objects.begin(), objects.end(), [](const MapInterval& a, const MapInterval& b) {
  119. return a->GetModificationTick() < b->GetModificationTick();
  120. });
  121. for (auto& object : objects) {
  122. if (object->IsModified() && object->IsRegistered()) {
  123. mutex.unlock();
  124. FlushMap(object);
  125. mutex.lock();
  126. }
  127. }
  128. }
  129. bool MustFlushRegion(VAddr addr, std::size_t size) {
  130. std::lock_guard lock{mutex};
  131. const std::vector<MapInterval> objects = GetMapsInRange(addr, size);
  132. return std::any_of(objects.cbegin(), objects.cend(), [](const MapInterval& map) {
  133. return map->IsModified() && map->IsRegistered();
  134. });
  135. }
  136. /// Mark the specified region as being invalidated
  137. void InvalidateRegion(VAddr addr, u64 size) {
  138. std::lock_guard lock{mutex};
  139. std::vector<MapInterval> objects = GetMapsInRange(addr, size);
  140. for (auto& object : objects) {
  141. if (object->IsRegistered()) {
  142. Unregister(object);
  143. }
  144. }
  145. }
  146. void OnCPUWrite(VAddr addr, std::size_t size) {
  147. std::lock_guard lock{mutex};
  148. for (const auto& object : GetMapsInRange(addr, size)) {
  149. if (object->IsMemoryMarked() && object->IsRegistered()) {
  150. UnmarkMemory(object);
  151. object->SetSyncPending(true);
  152. marked_for_unregister.emplace_back(object);
  153. }
  154. }
  155. }
  156. void SyncGuestHost() {
  157. std::lock_guard lock{mutex};
  158. for (const auto& object : marked_for_unregister) {
  159. if (object->IsRegistered()) {
  160. object->SetSyncPending(false);
  161. Unregister(object);
  162. }
  163. }
  164. marked_for_unregister.clear();
  165. }
  166. void CommitAsyncFlushes() {
  167. if (uncommitted_flushes) {
  168. auto commit_list = std::make_shared<std::list<MapInterval>>();
  169. for (auto& map : *uncommitted_flushes) {
  170. if (map->IsRegistered() && map->IsModified()) {
  171. // TODO(Blinkhawk): Implement backend asynchronous flushing
  172. // AsyncFlushMap(map)
  173. commit_list->push_back(map);
  174. }
  175. }
  176. if (!commit_list->empty()) {
  177. committed_flushes.push_back(commit_list);
  178. } else {
  179. committed_flushes.emplace_back();
  180. }
  181. } else {
  182. committed_flushes.emplace_back();
  183. }
  184. uncommitted_flushes.reset();
  185. }
  186. bool ShouldWaitAsyncFlushes() const {
  187. return !committed_flushes.empty() && committed_flushes.front() != nullptr;
  188. }
  189. bool HasUncommittedFlushes() const {
  190. return uncommitted_flushes != nullptr;
  191. }
  192. void PopAsyncFlushes() {
  193. if (committed_flushes.empty()) {
  194. return;
  195. }
  196. auto& flush_list = committed_flushes.front();
  197. if (!flush_list) {
  198. committed_flushes.pop_front();
  199. return;
  200. }
  201. for (MapInterval& map : *flush_list) {
  202. if (map->IsRegistered()) {
  203. // TODO(Blinkhawk): Replace this for reading the asynchronous flush
  204. FlushMap(map);
  205. }
  206. }
  207. committed_flushes.pop_front();
  208. }
  209. virtual BufferType GetEmptyBuffer(std::size_t size) = 0;
  210. protected:
  211. explicit BufferCache(VideoCore::RasterizerInterface& rasterizer, Core::System& system,
  212. std::unique_ptr<StreamBuffer> stream_buffer)
  213. : rasterizer{rasterizer}, system{system}, stream_buffer{std::move(stream_buffer)},
  214. stream_buffer_handle{this->stream_buffer->GetHandle()} {}
  215. ~BufferCache() = default;
  216. virtual BufferType ToHandle(const OwnerBuffer& storage) = 0;
  217. virtual void WriteBarrier() = 0;
  218. virtual OwnerBuffer CreateBlock(VAddr cpu_addr, std::size_t size) = 0;
  219. virtual void UploadBlockData(const OwnerBuffer& buffer, std::size_t offset, std::size_t size,
  220. const u8* data) = 0;
  221. virtual void DownloadBlockData(const OwnerBuffer& buffer, std::size_t offset, std::size_t size,
  222. u8* data) = 0;
  223. virtual void CopyBlock(const OwnerBuffer& src, const OwnerBuffer& dst, std::size_t src_offset,
  224. std::size_t dst_offset, std::size_t size) = 0;
  225. virtual BufferInfo ConstBufferUpload(const void* raw_pointer, std::size_t size) {
  226. return {};
  227. }
  228. /// Register an object into the cache
  229. void Register(const MapInterval& new_map, bool inherit_written = false) {
  230. const VAddr cpu_addr = new_map->GetStart();
  231. if (!cpu_addr) {
  232. LOG_CRITICAL(HW_GPU, "Failed to register buffer with unmapped gpu_address 0x{:016x}",
  233. new_map->GetGpuAddress());
  234. return;
  235. }
  236. const std::size_t size = new_map->GetEnd() - new_map->GetStart();
  237. new_map->MarkAsRegistered(true);
  238. const IntervalType interval{new_map->GetStart(), new_map->GetEnd()};
  239. mapped_addresses.insert({interval, new_map});
  240. rasterizer.UpdatePagesCachedCount(cpu_addr, size, 1);
  241. new_map->SetMemoryMarked(true);
  242. if (inherit_written) {
  243. MarkRegionAsWritten(new_map->GetStart(), new_map->GetEnd() - 1);
  244. new_map->MarkAsWritten(true);
  245. }
  246. }
  247. void UnmarkMemory(const MapInterval& map) {
  248. if (!map->IsMemoryMarked()) {
  249. return;
  250. }
  251. const std::size_t size = map->GetEnd() - map->GetStart();
  252. rasterizer.UpdatePagesCachedCount(map->GetStart(), size, -1);
  253. map->SetMemoryMarked(false);
  254. }
  255. /// Unregisters an object from the cache
  256. void Unregister(const MapInterval& map) {
  257. UnmarkMemory(map);
  258. map->MarkAsRegistered(false);
  259. if (map->IsSyncPending()) {
  260. marked_for_unregister.remove(map);
  261. map->SetSyncPending(false);
  262. }
  263. if (map->IsWritten()) {
  264. UnmarkRegionAsWritten(map->GetStart(), map->GetEnd() - 1);
  265. }
  266. const IntervalType delete_interval{map->GetStart(), map->GetEnd()};
  267. mapped_addresses.erase(delete_interval);
  268. }
  269. private:
  270. MapInterval CreateMap(const VAddr start, const VAddr end, const GPUVAddr gpu_addr) {
  271. return std::make_shared<MapIntervalBase>(start, end, gpu_addr);
  272. }
  273. MapInterval MapAddress(const OwnerBuffer& block, const GPUVAddr gpu_addr, const VAddr cpu_addr,
  274. const std::size_t size) {
  275. std::vector<MapInterval> overlaps = GetMapsInRange(cpu_addr, size);
  276. if (overlaps.empty()) {
  277. auto& memory_manager = system.GPU().MemoryManager();
  278. const VAddr cpu_addr_end = cpu_addr + size;
  279. MapInterval new_map = CreateMap(cpu_addr, cpu_addr_end, gpu_addr);
  280. if (memory_manager.IsGranularRange(gpu_addr, size)) {
  281. u8* host_ptr = memory_manager.GetPointer(gpu_addr);
  282. UploadBlockData(block, block->GetOffset(cpu_addr), size, host_ptr);
  283. } else {
  284. staging_buffer.resize(size);
  285. memory_manager.ReadBlockUnsafe(gpu_addr, staging_buffer.data(), size);
  286. UploadBlockData(block, block->GetOffset(cpu_addr), size, staging_buffer.data());
  287. }
  288. Register(new_map);
  289. return new_map;
  290. }
  291. const VAddr cpu_addr_end = cpu_addr + size;
  292. if (overlaps.size() == 1) {
  293. MapInterval& current_map = overlaps[0];
  294. if (current_map->IsInside(cpu_addr, cpu_addr_end)) {
  295. return current_map;
  296. }
  297. }
  298. VAddr new_start = cpu_addr;
  299. VAddr new_end = cpu_addr_end;
  300. bool write_inheritance = false;
  301. bool modified_inheritance = false;
  302. // Calculate new buffer parameters
  303. for (auto& overlap : overlaps) {
  304. new_start = std::min(overlap->GetStart(), new_start);
  305. new_end = std::max(overlap->GetEnd(), new_end);
  306. write_inheritance |= overlap->IsWritten();
  307. modified_inheritance |= overlap->IsModified();
  308. }
  309. GPUVAddr new_gpu_addr = gpu_addr + new_start - cpu_addr;
  310. for (auto& overlap : overlaps) {
  311. Unregister(overlap);
  312. }
  313. UpdateBlock(block, new_start, new_end, overlaps);
  314. MapInterval new_map = CreateMap(new_start, new_end, new_gpu_addr);
  315. if (modified_inheritance) {
  316. new_map->MarkAsModified(true, GetModifiedTicks());
  317. if (Settings::IsGPULevelHigh() && Settings::values.use_asynchronous_gpu_emulation) {
  318. MarkForAsyncFlush(new_map);
  319. }
  320. }
  321. Register(new_map, write_inheritance);
  322. return new_map;
  323. }
  324. void UpdateBlock(const OwnerBuffer& block, VAddr start, VAddr end,
  325. std::vector<MapInterval>& overlaps) {
  326. const IntervalType base_interval{start, end};
  327. IntervalSet interval_set{};
  328. interval_set.add(base_interval);
  329. for (auto& overlap : overlaps) {
  330. const IntervalType subtract{overlap->GetStart(), overlap->GetEnd()};
  331. interval_set.subtract(subtract);
  332. }
  333. for (auto& interval : interval_set) {
  334. std::size_t size = interval.upper() - interval.lower();
  335. if (size > 0) {
  336. staging_buffer.resize(size);
  337. system.Memory().ReadBlockUnsafe(interval.lower(), staging_buffer.data(), size);
  338. UploadBlockData(block, block->GetOffset(interval.lower()), size,
  339. staging_buffer.data());
  340. }
  341. }
  342. }
  343. std::vector<MapInterval> GetMapsInRange(VAddr addr, std::size_t size) {
  344. if (size == 0) {
  345. return {};
  346. }
  347. std::vector<MapInterval> objects{};
  348. const IntervalType interval{addr, addr + size};
  349. for (auto& pair : boost::make_iterator_range(mapped_addresses.equal_range(interval))) {
  350. objects.push_back(pair.second);
  351. }
  352. return objects;
  353. }
  354. /// Returns a ticks counter used for tracking when cached objects were last modified
  355. u64 GetModifiedTicks() {
  356. return ++modified_ticks;
  357. }
  358. void FlushMap(MapInterval map) {
  359. std::size_t size = map->GetEnd() - map->GetStart();
  360. OwnerBuffer block = blocks[map->GetStart() >> block_page_bits];
  361. staging_buffer.resize(size);
  362. DownloadBlockData(block, block->GetOffset(map->GetStart()), size, staging_buffer.data());
  363. system.Memory().WriteBlockUnsafe(map->GetStart(), staging_buffer.data(), size);
  364. map->MarkAsModified(false, 0);
  365. }
  366. BufferInfo StreamBufferUpload(const void* raw_pointer, std::size_t size,
  367. std::size_t alignment) {
  368. AlignBuffer(alignment);
  369. const std::size_t uploaded_offset = buffer_offset;
  370. std::memcpy(buffer_ptr, raw_pointer, size);
  371. buffer_ptr += size;
  372. buffer_offset += size;
  373. return {stream_buffer_handle, uploaded_offset};
  374. }
  375. void AlignBuffer(std::size_t alignment) {
  376. // Align the offset, not the mapped pointer
  377. const std::size_t offset_aligned = Common::AlignUp(buffer_offset, alignment);
  378. buffer_ptr += offset_aligned - buffer_offset;
  379. buffer_offset = offset_aligned;
  380. }
  381. OwnerBuffer EnlargeBlock(OwnerBuffer buffer) {
  382. const std::size_t old_size = buffer->GetSize();
  383. const std::size_t new_size = old_size + block_page_size;
  384. const VAddr cpu_addr = buffer->GetCpuAddr();
  385. OwnerBuffer new_buffer = CreateBlock(cpu_addr, new_size);
  386. CopyBlock(buffer, new_buffer, 0, 0, old_size);
  387. buffer->SetEpoch(epoch);
  388. pending_destruction.push_back(buffer);
  389. const VAddr cpu_addr_end = cpu_addr + new_size - 1;
  390. u64 page_start = cpu_addr >> block_page_bits;
  391. const u64 page_end = cpu_addr_end >> block_page_bits;
  392. while (page_start <= page_end) {
  393. blocks[page_start] = new_buffer;
  394. ++page_start;
  395. }
  396. return new_buffer;
  397. }
  398. OwnerBuffer MergeBlocks(OwnerBuffer first, OwnerBuffer second) {
  399. const std::size_t size_1 = first->GetSize();
  400. const std::size_t size_2 = second->GetSize();
  401. const VAddr first_addr = first->GetCpuAddr();
  402. const VAddr second_addr = second->GetCpuAddr();
  403. const VAddr new_addr = std::min(first_addr, second_addr);
  404. const std::size_t new_size = size_1 + size_2;
  405. OwnerBuffer new_buffer = CreateBlock(new_addr, new_size);
  406. CopyBlock(first, new_buffer, 0, new_buffer->GetOffset(first_addr), size_1);
  407. CopyBlock(second, new_buffer, 0, new_buffer->GetOffset(second_addr), size_2);
  408. first->SetEpoch(epoch);
  409. second->SetEpoch(epoch);
  410. pending_destruction.push_back(first);
  411. pending_destruction.push_back(second);
  412. const VAddr cpu_addr_end = new_addr + new_size - 1;
  413. u64 page_start = new_addr >> block_page_bits;
  414. const u64 page_end = cpu_addr_end >> block_page_bits;
  415. while (page_start <= page_end) {
  416. blocks[page_start] = new_buffer;
  417. ++page_start;
  418. }
  419. return new_buffer;
  420. }
  421. OwnerBuffer GetBlock(const VAddr cpu_addr, const std::size_t size) {
  422. OwnerBuffer found;
  423. const VAddr cpu_addr_end = cpu_addr + size - 1;
  424. u64 page_start = cpu_addr >> block_page_bits;
  425. const u64 page_end = cpu_addr_end >> block_page_bits;
  426. while (page_start <= page_end) {
  427. auto it = blocks.find(page_start);
  428. if (it == blocks.end()) {
  429. if (found) {
  430. found = EnlargeBlock(found);
  431. } else {
  432. const VAddr start_addr = (page_start << block_page_bits);
  433. found = CreateBlock(start_addr, block_page_size);
  434. blocks[page_start] = found;
  435. }
  436. } else {
  437. if (found) {
  438. if (found == it->second) {
  439. ++page_start;
  440. continue;
  441. }
  442. found = MergeBlocks(found, it->second);
  443. } else {
  444. found = it->second;
  445. }
  446. }
  447. ++page_start;
  448. }
  449. return found;
  450. }
  451. void MarkRegionAsWritten(const VAddr start, const VAddr end) {
  452. u64 page_start = start >> write_page_bit;
  453. const u64 page_end = end >> write_page_bit;
  454. while (page_start <= page_end) {
  455. auto it = written_pages.find(page_start);
  456. if (it != written_pages.end()) {
  457. it->second = it->second + 1;
  458. } else {
  459. written_pages[page_start] = 1;
  460. }
  461. page_start++;
  462. }
  463. }
  464. void UnmarkRegionAsWritten(const VAddr start, const VAddr end) {
  465. u64 page_start = start >> write_page_bit;
  466. const u64 page_end = end >> write_page_bit;
  467. while (page_start <= page_end) {
  468. auto it = written_pages.find(page_start);
  469. if (it != written_pages.end()) {
  470. if (it->second > 1) {
  471. it->second = it->second - 1;
  472. } else {
  473. written_pages.erase(it);
  474. }
  475. }
  476. page_start++;
  477. }
  478. }
  479. bool IsRegionWritten(const VAddr start, const VAddr end) const {
  480. u64 page_start = start >> write_page_bit;
  481. const u64 page_end = end >> write_page_bit;
  482. while (page_start <= page_end) {
  483. if (written_pages.count(page_start) > 0) {
  484. return true;
  485. }
  486. page_start++;
  487. }
  488. return false;
  489. }
  490. void MarkForAsyncFlush(MapInterval& map) {
  491. if (!uncommitted_flushes) {
  492. uncommitted_flushes = std::make_shared<std::unordered_set<MapInterval>>();
  493. }
  494. uncommitted_flushes->insert(map);
  495. }
  496. VideoCore::RasterizerInterface& rasterizer;
  497. Core::System& system;
  498. std::unique_ptr<StreamBuffer> stream_buffer;
  499. BufferType stream_buffer_handle{};
  500. bool invalidated = false;
  501. u8* buffer_ptr = nullptr;
  502. u64 buffer_offset = 0;
  503. u64 buffer_offset_base = 0;
  504. using IntervalSet = boost::icl::interval_set<VAddr>;
  505. using IntervalCache = boost::icl::interval_map<VAddr, MapInterval>;
  506. using IntervalType = typename IntervalCache::interval_type;
  507. IntervalCache mapped_addresses;
  508. static constexpr u64 write_page_bit = 11;
  509. std::unordered_map<u64, u32> written_pages;
  510. static constexpr u64 block_page_bits = 21;
  511. static constexpr u64 block_page_size = 1ULL << block_page_bits;
  512. std::unordered_map<u64, OwnerBuffer> blocks;
  513. std::list<OwnerBuffer> pending_destruction;
  514. u64 epoch = 0;
  515. u64 modified_ticks = 0;
  516. std::vector<u8> staging_buffer;
  517. std::list<MapInterval> marked_for_unregister;
  518. std::shared_ptr<std::unordered_set<MapInterval>> uncommitted_flushes{};
  519. std::list<std::shared_ptr<std::list<MapInterval>>> committed_flushes;
  520. std::recursive_mutex mutex;
  521. };
  522. } // namespace VideoCommon