hid.cpp 15 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 <atomic>
  6. #include <cmath>
  7. #include <memory>
  8. #include "common/logging/log.h"
  9. #include "core/core_timing.h"
  10. #include "core/frontend/emu_window.h"
  11. #include "core/frontend/input.h"
  12. #include "core/hle/ipc.h"
  13. #include "core/hle/kernel/event.h"
  14. #include "core/hle/kernel/handle_table.h"
  15. #include "core/hle/kernel/shared_memory.h"
  16. #include "core/hle/service/hid/hid.h"
  17. #include "core/hle/service/hid/hid_spvr.h"
  18. #include "core/hle/service/hid/hid_user.h"
  19. #include "core/hle/service/service.h"
  20. #include "video_core/video_core.h"
  21. namespace Service {
  22. namespace HID {
  23. // Handle to shared memory region designated to HID_User service
  24. static Kernel::SharedPtr<Kernel::SharedMemory> shared_mem;
  25. // Event handles
  26. static Kernel::SharedPtr<Kernel::Event> event_pad_or_touch_1;
  27. static Kernel::SharedPtr<Kernel::Event> event_pad_or_touch_2;
  28. static Kernel::SharedPtr<Kernel::Event> event_accelerometer;
  29. static Kernel::SharedPtr<Kernel::Event> event_gyroscope;
  30. static Kernel::SharedPtr<Kernel::Event> event_debug_pad;
  31. static u32 next_pad_index;
  32. static u32 next_touch_index;
  33. static u32 next_accelerometer_index;
  34. static u32 next_gyroscope_index;
  35. static int enable_accelerometer_count; // positive means enabled
  36. static int enable_gyroscope_count; // positive means enabled
  37. static int pad_update_event;
  38. static int accelerometer_update_event;
  39. static int gyroscope_update_event;
  40. // Updating period for each HID device. These empirical values are measured from a 11.2 3DS.
  41. constexpr u64 pad_update_ticks = BASE_CLOCK_RATE_ARM11 / 234;
  42. constexpr u64 accelerometer_update_ticks = BASE_CLOCK_RATE_ARM11 / 104;
  43. constexpr u64 gyroscope_update_ticks = BASE_CLOCK_RATE_ARM11 / 101;
  44. static std::atomic<bool> is_device_reload_pending;
  45. static std::array<std::unique_ptr<Input::ButtonDevice>, Settings::NativeButton::NUM_BUTTONS_HID>
  46. buttons;
  47. static std::unique_ptr<Input::AnalogDevice> circle_pad;
  48. DirectionState GetStickDirectionState(s16 circle_pad_x, s16 circle_pad_y) {
  49. // 30 degree and 60 degree are angular thresholds for directions
  50. constexpr float TAN30 = 0.577350269f;
  51. constexpr float TAN60 = 1 / TAN30;
  52. // a circle pad radius greater than 40 will trigger circle pad direction
  53. constexpr int CIRCLE_PAD_THRESHOLD_SQUARE = 40 * 40;
  54. DirectionState state{false, false, false, false};
  55. if (circle_pad_x * circle_pad_x + circle_pad_y * circle_pad_y > CIRCLE_PAD_THRESHOLD_SQUARE) {
  56. float t = std::abs(static_cast<float>(circle_pad_y) / circle_pad_x);
  57. if (circle_pad_x != 0 && t < TAN60) {
  58. if (circle_pad_x > 0)
  59. state.right = true;
  60. else
  61. state.left = true;
  62. }
  63. if (circle_pad_x == 0 || t > TAN30) {
  64. if (circle_pad_y > 0)
  65. state.up = true;
  66. else
  67. state.down = true;
  68. }
  69. }
  70. return state;
  71. }
  72. static void LoadInputDevices() {
  73. std::transform(Settings::values.buttons.begin() + Settings::NativeButton::BUTTON_HID_BEGIN,
  74. Settings::values.buttons.begin() + Settings::NativeButton::BUTTON_HID_END,
  75. buttons.begin(), Input::CreateDevice<Input::ButtonDevice>);
  76. circle_pad = Input::CreateDevice<Input::AnalogDevice>(
  77. Settings::values.analogs[Settings::NativeAnalog::CirclePad]);
  78. }
  79. static void UnloadInputDevices() {
  80. for (auto& button : buttons) {
  81. button.reset();
  82. }
  83. circle_pad.reset();
  84. }
  85. static void UpdatePadCallback(u64 userdata, int cycles_late) {
  86. SharedMem* mem = reinterpret_cast<SharedMem*>(shared_mem->GetPointer());
  87. if (is_device_reload_pending.exchange(false))
  88. LoadInputDevices();
  89. PadState state;
  90. using namespace Settings::NativeButton;
  91. state.a.Assign(buttons[A - BUTTON_HID_BEGIN]->GetStatus());
  92. state.b.Assign(buttons[B - BUTTON_HID_BEGIN]->GetStatus());
  93. state.x.Assign(buttons[X - BUTTON_HID_BEGIN]->GetStatus());
  94. state.y.Assign(buttons[Y - BUTTON_HID_BEGIN]->GetStatus());
  95. state.right.Assign(buttons[Right - BUTTON_HID_BEGIN]->GetStatus());
  96. state.left.Assign(buttons[Left - BUTTON_HID_BEGIN]->GetStatus());
  97. state.up.Assign(buttons[Up - BUTTON_HID_BEGIN]->GetStatus());
  98. state.down.Assign(buttons[Down - BUTTON_HID_BEGIN]->GetStatus());
  99. state.l.Assign(buttons[L - BUTTON_HID_BEGIN]->GetStatus());
  100. state.r.Assign(buttons[R - BUTTON_HID_BEGIN]->GetStatus());
  101. state.start.Assign(buttons[Start - BUTTON_HID_BEGIN]->GetStatus());
  102. state.select.Assign(buttons[Select - BUTTON_HID_BEGIN]->GetStatus());
  103. // Get current circle pad position and update circle pad direction
  104. float circle_pad_x_f, circle_pad_y_f;
  105. std::tie(circle_pad_x_f, circle_pad_y_f) = circle_pad->GetStatus();
  106. constexpr int MAX_CIRCLEPAD_POS = 0x9C; // Max value for a circle pad position
  107. s16 circle_pad_x = static_cast<s16>(circle_pad_x_f * MAX_CIRCLEPAD_POS);
  108. s16 circle_pad_y = static_cast<s16>(circle_pad_y_f * MAX_CIRCLEPAD_POS);
  109. const DirectionState direction = GetStickDirectionState(circle_pad_x, circle_pad_y);
  110. state.circle_up.Assign(direction.up);
  111. state.circle_down.Assign(direction.down);
  112. state.circle_left.Assign(direction.left);
  113. state.circle_right.Assign(direction.right);
  114. mem->pad.current_state.hex = state.hex;
  115. mem->pad.index = next_pad_index;
  116. next_pad_index = (next_pad_index + 1) % mem->pad.entries.size();
  117. // Get the previous Pad state
  118. u32 last_entry_index = (mem->pad.index - 1) % mem->pad.entries.size();
  119. PadState old_state = mem->pad.entries[last_entry_index].current_state;
  120. // Compute bitmask with 1s for bits different from the old state
  121. PadState changed = {{(state.hex ^ old_state.hex)}};
  122. // Get the current Pad entry
  123. PadDataEntry& pad_entry = mem->pad.entries[mem->pad.index];
  124. // Update entry properties
  125. pad_entry.current_state.hex = state.hex;
  126. pad_entry.delta_additions.hex = changed.hex & state.hex;
  127. pad_entry.delta_removals.hex = changed.hex & old_state.hex;
  128. pad_entry.circle_pad_x = circle_pad_x;
  129. pad_entry.circle_pad_y = circle_pad_y;
  130. // If we just updated index 0, provide a new timestamp
  131. if (mem->pad.index == 0) {
  132. mem->pad.index_reset_ticks_previous = mem->pad.index_reset_ticks;
  133. mem->pad.index_reset_ticks = (s64)CoreTiming::GetTicks();
  134. }
  135. mem->touch.index = next_touch_index;
  136. next_touch_index = (next_touch_index + 1) % mem->touch.entries.size();
  137. // Get the current touch entry
  138. TouchDataEntry& touch_entry = mem->touch.entries[mem->touch.index];
  139. bool pressed = false;
  140. std::tie(touch_entry.x, touch_entry.y, pressed) = VideoCore::g_emu_window->GetTouchState();
  141. touch_entry.valid.Assign(pressed ? 1 : 0);
  142. // TODO(bunnei): We're not doing anything with offset 0xA8 + 0x18 of HID SharedMemory, which
  143. // supposedly is "Touch-screen entry, which contains the raw coordinate data prior to being
  144. // converted to pixel coordinates." (http://3dbrew.org/wiki/HID_Shared_Memory#Offset_0xA8).
  145. // If we just updated index 0, provide a new timestamp
  146. if (mem->touch.index == 0) {
  147. mem->touch.index_reset_ticks_previous = mem->touch.index_reset_ticks;
  148. mem->touch.index_reset_ticks = (s64)CoreTiming::GetTicks();
  149. }
  150. // Signal both handles when there's an update to Pad or touch
  151. event_pad_or_touch_1->Signal();
  152. event_pad_or_touch_2->Signal();
  153. // Reschedule recurrent event
  154. CoreTiming::ScheduleEvent(pad_update_ticks - cycles_late, pad_update_event);
  155. }
  156. static void UpdateAccelerometerCallback(u64 userdata, int cycles_late) {
  157. SharedMem* mem = reinterpret_cast<SharedMem*>(shared_mem->GetPointer());
  158. mem->accelerometer.index = next_accelerometer_index;
  159. next_accelerometer_index = (next_accelerometer_index + 1) % mem->accelerometer.entries.size();
  160. AccelerometerDataEntry& accelerometer_entry =
  161. mem->accelerometer.entries[mem->accelerometer.index];
  162. std::tie(accelerometer_entry.x, accelerometer_entry.y, accelerometer_entry.z) =
  163. VideoCore::g_emu_window->GetAccelerometerState();
  164. // Make up "raw" entry
  165. // TODO(wwylele):
  166. // From hardware testing, the raw_entry values are approximately, but not exactly, as twice as
  167. // corresponding entries (or with a minus sign). It may caused by system calibration to the
  168. // accelerometer. Figure out how it works, or, if no game reads raw_entry, the following three
  169. // lines can be removed and leave raw_entry unimplemented.
  170. mem->accelerometer.raw_entry.x = -2 * accelerometer_entry.x;
  171. mem->accelerometer.raw_entry.z = 2 * accelerometer_entry.y;
  172. mem->accelerometer.raw_entry.y = -2 * accelerometer_entry.z;
  173. // If we just updated index 0, provide a new timestamp
  174. if (mem->accelerometer.index == 0) {
  175. mem->accelerometer.index_reset_ticks_previous = mem->accelerometer.index_reset_ticks;
  176. mem->accelerometer.index_reset_ticks = (s64)CoreTiming::GetTicks();
  177. }
  178. event_accelerometer->Signal();
  179. // Reschedule recurrent event
  180. CoreTiming::ScheduleEvent(accelerometer_update_ticks - cycles_late, accelerometer_update_event);
  181. }
  182. static void UpdateGyroscopeCallback(u64 userdata, int cycles_late) {
  183. SharedMem* mem = reinterpret_cast<SharedMem*>(shared_mem->GetPointer());
  184. mem->gyroscope.index = next_gyroscope_index;
  185. next_gyroscope_index = (next_gyroscope_index + 1) % mem->gyroscope.entries.size();
  186. GyroscopeDataEntry& gyroscope_entry = mem->gyroscope.entries[mem->gyroscope.index];
  187. std::tie(gyroscope_entry.x, gyroscope_entry.y, gyroscope_entry.z) =
  188. VideoCore::g_emu_window->GetGyroscopeState();
  189. // Make up "raw" entry
  190. mem->gyroscope.raw_entry.x = gyroscope_entry.x;
  191. mem->gyroscope.raw_entry.z = -gyroscope_entry.y;
  192. mem->gyroscope.raw_entry.y = gyroscope_entry.z;
  193. // If we just updated index 0, provide a new timestamp
  194. if (mem->gyroscope.index == 0) {
  195. mem->gyroscope.index_reset_ticks_previous = mem->gyroscope.index_reset_ticks;
  196. mem->gyroscope.index_reset_ticks = (s64)CoreTiming::GetTicks();
  197. }
  198. event_gyroscope->Signal();
  199. // Reschedule recurrent event
  200. CoreTiming::ScheduleEvent(gyroscope_update_ticks - cycles_late, gyroscope_update_event);
  201. }
  202. void GetIPCHandles(Service::Interface* self) {
  203. u32* cmd_buff = Kernel::GetCommandBuffer();
  204. cmd_buff[1] = 0; // No error
  205. cmd_buff[2] = 0x14000000; // IPC Command Structure translate-header
  206. // TODO(yuriks): Return error from SendSyncRequest is this fails (part of IPC marshalling)
  207. cmd_buff[3] = Kernel::g_handle_table.Create(Service::HID::shared_mem).MoveFrom();
  208. cmd_buff[4] = Kernel::g_handle_table.Create(Service::HID::event_pad_or_touch_1).MoveFrom();
  209. cmd_buff[5] = Kernel::g_handle_table.Create(Service::HID::event_pad_or_touch_2).MoveFrom();
  210. cmd_buff[6] = Kernel::g_handle_table.Create(Service::HID::event_accelerometer).MoveFrom();
  211. cmd_buff[7] = Kernel::g_handle_table.Create(Service::HID::event_gyroscope).MoveFrom();
  212. cmd_buff[8] = Kernel::g_handle_table.Create(Service::HID::event_debug_pad).MoveFrom();
  213. }
  214. void EnableAccelerometer(Service::Interface* self) {
  215. u32* cmd_buff = Kernel::GetCommandBuffer();
  216. ++enable_accelerometer_count;
  217. // Schedules the accelerometer update event if the accelerometer was just enabled
  218. if (enable_accelerometer_count == 1) {
  219. CoreTiming::ScheduleEvent(accelerometer_update_ticks, accelerometer_update_event);
  220. }
  221. cmd_buff[1] = RESULT_SUCCESS.raw;
  222. LOG_DEBUG(Service_HID, "called");
  223. }
  224. void DisableAccelerometer(Service::Interface* self) {
  225. u32* cmd_buff = Kernel::GetCommandBuffer();
  226. --enable_accelerometer_count;
  227. // Unschedules the accelerometer update event if the accelerometer was just disabled
  228. if (enable_accelerometer_count == 0) {
  229. CoreTiming::UnscheduleEvent(accelerometer_update_event, 0);
  230. }
  231. cmd_buff[1] = RESULT_SUCCESS.raw;
  232. LOG_DEBUG(Service_HID, "called");
  233. }
  234. void EnableGyroscopeLow(Service::Interface* self) {
  235. u32* cmd_buff = Kernel::GetCommandBuffer();
  236. ++enable_gyroscope_count;
  237. // Schedules the gyroscope update event if the gyroscope was just enabled
  238. if (enable_gyroscope_count == 1) {
  239. CoreTiming::ScheduleEvent(gyroscope_update_ticks, gyroscope_update_event);
  240. }
  241. cmd_buff[1] = RESULT_SUCCESS.raw;
  242. LOG_DEBUG(Service_HID, "called");
  243. }
  244. void DisableGyroscopeLow(Service::Interface* self) {
  245. u32* cmd_buff = Kernel::GetCommandBuffer();
  246. --enable_gyroscope_count;
  247. // Unschedules the gyroscope update event if the gyroscope was just disabled
  248. if (enable_gyroscope_count == 0) {
  249. CoreTiming::UnscheduleEvent(gyroscope_update_event, 0);
  250. }
  251. cmd_buff[1] = RESULT_SUCCESS.raw;
  252. LOG_DEBUG(Service_HID, "called");
  253. }
  254. void GetGyroscopeLowRawToDpsCoefficient(Service::Interface* self) {
  255. u32* cmd_buff = Kernel::GetCommandBuffer();
  256. cmd_buff[1] = RESULT_SUCCESS.raw;
  257. f32 coef = VideoCore::g_emu_window->GetGyroscopeRawToDpsCoefficient();
  258. memcpy(&cmd_buff[2], &coef, 4);
  259. }
  260. void GetGyroscopeLowCalibrateParam(Service::Interface* self) {
  261. u32* cmd_buff = Kernel::GetCommandBuffer();
  262. cmd_buff[1] = RESULT_SUCCESS.raw;
  263. const s16 param_unit = 6700; // an approximate value taken from hw
  264. GyroscopeCalibrateParam param = {
  265. {0, param_unit, -param_unit}, {0, param_unit, -param_unit}, {0, param_unit, -param_unit},
  266. };
  267. memcpy(&cmd_buff[2], &param, sizeof(param));
  268. LOG_WARNING(Service_HID, "(STUBBED) called");
  269. }
  270. void GetSoundVolume(Service::Interface* self) {
  271. u32* cmd_buff = Kernel::GetCommandBuffer();
  272. const u8 volume = 0x3F; // TODO(purpasmart): Find out if this is the max value for the volume
  273. cmd_buff[1] = RESULT_SUCCESS.raw;
  274. cmd_buff[2] = volume;
  275. LOG_WARNING(Service_HID, "(STUBBED) called");
  276. }
  277. void Init() {
  278. using namespace Kernel;
  279. AddService(new HID_U_Interface);
  280. AddService(new HID_SPVR_Interface);
  281. is_device_reload_pending.store(true);
  282. using Kernel::MemoryPermission;
  283. shared_mem =
  284. SharedMemory::Create(nullptr, 0x1000, MemoryPermission::ReadWrite, MemoryPermission::Read,
  285. 0, Kernel::MemoryRegion::BASE, "HID:SharedMemory");
  286. next_pad_index = 0;
  287. next_touch_index = 0;
  288. next_accelerometer_index = 0;
  289. next_gyroscope_index = 0;
  290. enable_accelerometer_count = 0;
  291. enable_gyroscope_count = 0;
  292. // Create event handles
  293. event_pad_or_touch_1 = Event::Create(ResetType::OneShot, "HID:EventPadOrTouch1");
  294. event_pad_or_touch_2 = Event::Create(ResetType::OneShot, "HID:EventPadOrTouch2");
  295. event_accelerometer = Event::Create(ResetType::OneShot, "HID:EventAccelerometer");
  296. event_gyroscope = Event::Create(ResetType::OneShot, "HID:EventGyroscope");
  297. event_debug_pad = Event::Create(ResetType::OneShot, "HID:EventDebugPad");
  298. // Register update callbacks
  299. pad_update_event = CoreTiming::RegisterEvent("HID::UpdatePadCallback", UpdatePadCallback);
  300. accelerometer_update_event =
  301. CoreTiming::RegisterEvent("HID::UpdateAccelerometerCallback", UpdateAccelerometerCallback);
  302. gyroscope_update_event =
  303. CoreTiming::RegisterEvent("HID::UpdateGyroscopeCallback", UpdateGyroscopeCallback);
  304. CoreTiming::ScheduleEvent(pad_update_ticks, pad_update_event);
  305. }
  306. void Shutdown() {
  307. shared_mem = nullptr;
  308. event_pad_or_touch_1 = nullptr;
  309. event_pad_or_touch_2 = nullptr;
  310. event_accelerometer = nullptr;
  311. event_gyroscope = nullptr;
  312. event_debug_pad = nullptr;
  313. UnloadInputDevices();
  314. }
  315. void ReloadInputDevices() {
  316. is_device_reload_pending.store(true);
  317. }
  318. } // namespace HID
  319. } // namespace Service