psvita 归档

This commit is contained in:
sin365 2024-12-08 21:50:52 +08:00
parent a40052ade3
commit 2094bda9db
556 changed files with 64714 additions and 0 deletions

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using UnityEngine;
using System.Collections.Generic;
using System;
using UnityEngine.Profiling;
public class Debugger : MonoBehaviour
{
/// <summary>
/// 是否允许调试
/// </summary>
public bool AllowDebugging = true;
private DebugType _debugType = DebugType.Console;
private List<LogData> _logInformations = new List<LogData>();
private int _currentLogIndex = -1;
private int _infoLogCount = 0;
private int _warningLogCount = 0;
private int _errorLogCount = 0;
private int _fatalLogCount = 0;
private bool _showInfoLog = true;
private bool _showWarningLog = true;
private bool _showErrorLog = true;
private bool _showFatalLog = true;
private Vector2 _scrollLogView = Vector2.zero;
private Vector2 _scrollCurrentLogView = Vector2.zero;
private Vector2 _scrollSystemView = Vector2.zero;
private bool _expansion = false;
private Rect _windowRect = new Rect(0, 0, 100, 60);
private int _fps = 0;
private Color _fpsColor = Color.white;
private int _frameNumber = 0;
private float _lastShowFPSTime = 0f;
private void Start()
{
DontDestroyOnLoad(this.gameObject);
if (AllowDebugging)
{
Application.logMessageReceived += LogHandler;
}
}
private void Update()
{
if (AllowDebugging)
{
_frameNumber += 1;
float time = Time.realtimeSinceStartup - _lastShowFPSTime;
if (time >= 1)
{
_fps = (int)(_frameNumber / time);
_frameNumber = 0;
_lastShowFPSTime = Time.realtimeSinceStartup;
}
}
}
private void OnDestory()
{
if (AllowDebugging)
{
Application.logMessageReceived -= LogHandler;
}
}
bool bUnityWaterFrist = false;
private void LogHandler(string condition, string stackTrace, LogType type)
{
if (condition.Contains("UnityWater") || stackTrace.Contains("UnityWater"))
{
if(bUnityWaterFrist)
return;
bUnityWaterFrist = true;
}
LogData log = new LogData();
log.time = DateTime.Now.ToString("HH:mm:ss");
log.message = condition;
log.stackTrace = stackTrace;
if (type == LogType.Assert)
{
log.type = "Fatal";
_fatalLogCount += 1;
}
else if (type == LogType.Exception || type == LogType.Error)
{
log.type = "Error";
_errorLogCount += 1;
}
else if (type == LogType.Warning)
{
log.type = "Warning";
_warningLogCount += 1;
}
else if (type == LogType.Log)
{
log.type = "Info";
_infoLogCount += 1;
}
_logInformations.Add(log);
if (_warningLogCount > 0)
{
_fpsColor = Color.yellow;
}
if (_errorLogCount > 0)
{
_fpsColor = Color.red;
}
}
private void OnGUI()
{
if (AllowDebugging)
{
if (_expansion)
{
_windowRect = GUI.Window(0, _windowRect, ExpansionGUIWindow, "DEBUGGER");
}
else
{
_windowRect = GUI.Window(0, _windowRect, ShrinkGUIWindow, "DEBUGGER");
}
}
}
private void ExpansionGUIWindow(int windowId)
{
GUI.DragWindow(new Rect(0, 0, 10000, 20));
#region title
GUILayout.BeginHorizontal();
GUI.contentColor = _fpsColor;
if (GUILayout.Button("FPS:" + _fps, GUILayout.Height(30)))
{
_expansion = false;
_windowRect.width = 100;
_windowRect.height = 60;
}
GUI.contentColor = (_debugType == DebugType.Console ? Color.white : Color.gray);
if (GUILayout.Button("Console", GUILayout.Height(30)))
{
_debugType = DebugType.Console;
}
GUI.contentColor = (_debugType == DebugType.Memory ? Color.white : Color.gray);
if (GUILayout.Button("Memory", GUILayout.Height(30)))
{
_debugType = DebugType.Memory;
}
GUI.contentColor = (_debugType == DebugType.System ? Color.white : Color.gray);
if (GUILayout.Button("System", GUILayout.Height(30)))
{
_debugType = DebugType.System;
}
GUI.contentColor = (_debugType == DebugType.Screen ? Color.white : Color.gray);
if (GUILayout.Button("Screen", GUILayout.Height(30)))
{
_debugType = DebugType.Screen;
}
GUI.contentColor = (_debugType == DebugType.Quality ? Color.white : Color.gray);
if (GUILayout.Button("Quality", GUILayout.Height(30)))
{
_debugType = DebugType.Quality;
}
GUI.contentColor = (_debugType == DebugType.Environment ? Color.white : Color.gray);
if (GUILayout.Button("Environment", GUILayout.Height(30)))
{
_debugType = DebugType.Environment;
}
GUI.contentColor = Color.white;
GUILayout.EndHorizontal();
#endregion
#region console
if (_debugType == DebugType.Console)
{
GUILayout.BeginHorizontal();
if (GUILayout.Button("Clear"))
{
_logInformations.Clear();
_fatalLogCount = 0;
_warningLogCount = 0;
_errorLogCount = 0;
_infoLogCount = 0;
_currentLogIndex = -1;
_fpsColor = Color.white;
}
GUI.contentColor = (_showInfoLog ? Color.white : Color.gray);
_showInfoLog = GUILayout.Toggle(_showInfoLog, "Info [" + _infoLogCount + "]");
GUI.contentColor = (_showWarningLog ? Color.white : Color.gray);
_showWarningLog = GUILayout.Toggle(_showWarningLog, "Warning [" + _warningLogCount + "]");
GUI.contentColor = (_showErrorLog ? Color.white : Color.gray);
_showErrorLog = GUILayout.Toggle(_showErrorLog, "Error [" + _errorLogCount + "]");
GUI.contentColor = (_showFatalLog ? Color.white : Color.gray);
_showFatalLog = GUILayout.Toggle(_showFatalLog, "Fatal [" + _fatalLogCount + "]");
GUI.contentColor = Color.white;
GUILayout.EndHorizontal();
_scrollLogView = GUILayout.BeginScrollView(_scrollLogView, "Box", GUILayout.Height(165));
for (int i = 0; i < _logInformations.Count; i++)
{
bool show = false;
Color color = Color.white;
switch (_logInformations[i].type)
{
case "Fatal":
show = _showFatalLog;
color = Color.red;
break;
case "Error":
show = _showErrorLog;
color = Color.red;
break;
case "Info":
show = _showInfoLog;
color = Color.white;
break;
case "Warning":
show = _showWarningLog;
color = Color.yellow;
break;
default:
break;
}
if (show)
{
GUILayout.BeginHorizontal();
if (GUILayout.Toggle(_currentLogIndex == i, ""))
{
_currentLogIndex = i;
}
GUI.contentColor = color;
GUILayout.Label("[" + _logInformations[i].type + "] ");
GUILayout.Label("[" + _logInformations[i].time + "] ");
GUILayout.Label(_logInformations[i].message);
GUILayout.FlexibleSpace();
GUI.contentColor = Color.white;
GUILayout.EndHorizontal();
}
}
GUILayout.EndScrollView();
_scrollCurrentLogView = GUILayout.BeginScrollView(_scrollCurrentLogView, "Box", GUILayout.Height(100));
if (_currentLogIndex != -1)
{
GUILayout.Label(_logInformations[_currentLogIndex].message + "\r\n\r\n" + _logInformations[_currentLogIndex].stackTrace);
}
GUILayout.EndScrollView();
}
#endregion
#region memory
else if (_debugType == DebugType.Memory)
{
GUILayout.BeginHorizontal();
GUILayout.Label("Memory Information");
GUILayout.EndHorizontal();
GUILayout.BeginVertical("Box");
#if UNITY_5
GUILayout.Label("总内存:" + Profiler.GetTotalReservedMemory() / 1000000 + "MB");
GUILayout.Label("已占用内存:" + Profiler.GetTotalAllocatedMemory() / 1000000 + "MB");
GUILayout.Label("空闲中内存:" + Profiler.GetTotalUnusedReservedMemory() / 1000000 + "MB");
GUILayout.Label("总Mono堆内存" + Profiler.GetMonoHeapSize() / 1000000 + "MB");
GUILayout.Label("已占用Mono堆内存" + Profiler.GetMonoUsedSize() / 1000000 + "MB");
#endif
#if UNITY_7
GUILayout.Label("总内存:" + Profiler.GetTotalReservedMemoryLong() / 1000000 + "MB");
GUILayout.Label("已占用内存:" + Profiler.GetTotalAllocatedMemoryLong() / 1000000 + "MB");
GUILayout.Label("空闲中内存:" + Profiler.GetTotalUnusedReservedMemoryLong() / 1000000 + "MB");
GUILayout.Label("总Mono堆内存" + Profiler.GetMonoHeapSizeLong() / 1000000 + "MB");
GUILayout.Label("已占用Mono堆内存" + Profiler.GetMonoUsedSizeLong() / 1000000 + "MB");
#endif
GUILayout.EndVertical();
GUILayout.BeginHorizontal();
if (GUILayout.Button("卸载未使用的资源"))
{
Resources.UnloadUnusedAssets();
}
GUILayout.EndHorizontal();
GUILayout.BeginHorizontal();
if (GUILayout.Button("使用GC垃圾回收"))
{
GC.Collect();
}
GUILayout.EndHorizontal();
}
#endregion
#region system
else if (_debugType == DebugType.System)
{
GUILayout.BeginHorizontal();
GUILayout.Label("System Information");
GUILayout.EndHorizontal();
_scrollSystemView = GUILayout.BeginScrollView(_scrollSystemView, "Box");
GUILayout.Label("操作系统:" + SystemInfo.operatingSystem);
GUILayout.Label("系统内存:" + SystemInfo.systemMemorySize + "MB");
GUILayout.Label("处理器:" + SystemInfo.processorType);
GUILayout.Label("处理器数量:" + SystemInfo.processorCount);
GUILayout.Label("显卡:" + SystemInfo.graphicsDeviceName);
GUILayout.Label("显卡类型:" + SystemInfo.graphicsDeviceType);
GUILayout.Label("显存:" + SystemInfo.graphicsMemorySize + "MB");
GUILayout.Label("显卡标识:" + SystemInfo.graphicsDeviceID);
GUILayout.Label("显卡供应商:" + SystemInfo.graphicsDeviceVendor);
GUILayout.Label("显卡供应商标识码:" + SystemInfo.graphicsDeviceVendorID);
GUILayout.Label("设备模式:" + SystemInfo.deviceModel);
GUILayout.Label("设备名称:" + SystemInfo.deviceName);
GUILayout.Label("设备类型:" + SystemInfo.deviceType);
GUILayout.Label("设备标识:" + SystemInfo.deviceUniqueIdentifier);
GUILayout.EndScrollView();
}
#endregion
#region screen
else if (_debugType == DebugType.Screen)
{
GUILayout.BeginHorizontal();
GUILayout.Label("Screen Information");
GUILayout.EndHorizontal();
GUILayout.BeginVertical("Box");
GUILayout.Label("DPI" + Screen.dpi);
GUILayout.Label("分辨率:" + Screen.currentResolution.ToString());
GUILayout.EndVertical();
GUILayout.BeginHorizontal();
if (GUILayout.Button("全屏"))
{
Screen.SetResolution(Screen.currentResolution.width, Screen.currentResolution.height, !Screen.fullScreen);
}
GUILayout.EndHorizontal();
}
#endregion
#region Quality
else if (_debugType == DebugType.Quality)
{
GUILayout.BeginHorizontal();
GUILayout.Label("Quality Information");
GUILayout.EndHorizontal();
GUILayout.BeginVertical("Box");
string value = "";
if (QualitySettings.GetQualityLevel() == 0)
{
value = " [最低]";
}
else if (QualitySettings.GetQualityLevel() == QualitySettings.names.Length - 1)
{
value = " [最高]";
}
GUILayout.Label("图形质量:" + QualitySettings.names[QualitySettings.GetQualityLevel()] + value);
GUILayout.EndVertical();
GUILayout.BeginHorizontal();
if (GUILayout.Button("降低一级图形质量"))
{
QualitySettings.DecreaseLevel();
}
GUILayout.EndHorizontal();
GUILayout.BeginHorizontal();
if (GUILayout.Button("提升一级图形质量"))
{
QualitySettings.IncreaseLevel();
}
GUILayout.EndHorizontal();
}
#endregion
#region Environment
else if (_debugType == DebugType.Environment)
{
GUILayout.BeginHorizontal();
GUILayout.Label("Environment Information");
GUILayout.EndHorizontal();
GUILayout.BeginVertical("Box");
GUILayout.Label("项目名称:" + Application.productName);
#if UNITY_5
GUILayout.Label("项目ID" + Application.bundleIdentifier);
#endif
#if UNITY_7
GUILayout.Label("项目ID" + Application.identifier);
#endif
GUILayout.Label("项目版本:" + Application.version);
GUILayout.Label("Unity版本" + Application.unityVersion);
GUILayout.Label("公司名称:" + Application.companyName);
GUILayout.EndVertical();
GUILayout.BeginHorizontal();
if (GUILayout.Button("退出程序"))
{
Application.Quit();
}
GUILayout.EndHorizontal();
}
#endregion
}
private void ShrinkGUIWindow(int windowId)
{
GUI.DragWindow(new Rect(0, 0, 10000, 20));
GUI.contentColor = _fpsColor;
if (GUILayout.Button("FPS:" + _fps, GUILayout.Width(80), GUILayout.Height(30)))
{
_expansion = true;
_windowRect.width = 600;
_windowRect.height = 360;
}
GUI.contentColor = Color.white;
}
}
public struct LogData
{
public string time;
public string type;
public string message;
public string stackTrace;
}
public enum DebugType
{
Console,
Memory,
System,
Screen,
Quality,
Environment
}

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#pragma vertex vert
#pragma fragment frag
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#pragma multi_compile_local _ UNITY_UI_ALPHACLIP
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clip (color.a - 0.001);
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{
"name": "AxibugEmuOnline.Client",
"references": [
"VirtualNes.Core"
],
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"allowUnsafeCode": false
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using UnityEngine;
public static class CorePath
{
#if UNITY_EDITOR
public static string DataPath => Application.persistentDataPath;
#elif UNITY_PSP2
public static string DataPath => Application.dataPath;
#else
public static string DataPath => Application.persistentDataPath;
#endif
}

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using UnityEngine;
using VirtualNes.Core;
namespace AxibugEmuOnline.Client
{
public class AudioProvider : MonoBehaviour
{
public NesEmulator NesEmu { get; set; }
[SerializeField]
private AudioSource m_as;
private SoundBuffer _buffer = new SoundBuffer(4096);
public void Start()
{
var dummy = AudioClip.Create("dummy", 1, 1, AudioSettings.outputSampleRate, false);
dummy.SetData(new float[] { 1 }, 0);
m_as.clip = dummy; //just to let unity play the audiosource
m_as.loop = true;
m_as.spatialBlend = 1;
m_as.Play();
}
void OnAudioFilterRead(float[] data, int channels)
{
int step = channels;
if (NesEmu == null || NesEmu.NesCore == null) return;
ProcessSound(NesEmu.NesCore, (uint)(data.Length / channels));
for (int i = 0; i < data.Length; i += step)
{
float rawFloat = 0;
byte rawData;
if (_buffer.TryRead(out rawData))
rawFloat = rawData / 255f;
data[i] = rawFloat;
for (int fill = 1; fill < step; fill++)
data[i + fill] = rawFloat;
}
}
void ProcessSound(NES nes, uint feedCount)
{
nes.apu.Process(_buffer, feedCount);
}
}
}

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using System.Collections;
using System.Collections.Generic;
using UnityEngine;
using VirtualNes.Core.Debug;
namespace AxibugEmuOnline.Client
{
public class CoreDebuger : IDebugerImpl
{
public void Log(string message)
{
Debug.Log(message);
}
public void LogError(string message)
{
Debug.LogError(message);
}
}
}

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using AxibugEmuOnline.Client.ClientCore;
using System;
using System.IO;
using System.Linq;
using System.Xml.Linq;
using UnityEngine;
using VirtualNes.Core;
namespace AxibugEmuOnline.Client
{
public class CoreSupporter : ISupporterImpl
{
private static string RomDirectoryPath
{
get
{
#if UNITY_EDITOR
return "Assets/StreamingAssets/NES/Roms";
#elif UNITY_PSP2
return $"{Application.dataPath}/StreamingAssets/NES/Roms";
#else
return $"{Application.streamingAssetsPath}/NES/Roms";
#endif
}
}
public Stream OpenRom(string fname)
{
Debug.Log($" OpenRom -> {RomDirectoryPath}/{fname}");
try
{
var stream = File.Open($"{RomDirectoryPath}/{fname}", FileMode.Open,FileAccess.Read);
Debug.Log($" OpenRom -> OK!");
return stream;
}
catch (Exception ex)
{
Debug.Log($" OpenRom -> Err!");
Debug.LogError(ex);
return null;
}
}
public void GetRomPathInfo(string fname, out string fullPath, out string directPath)
{
directPath = RomDirectoryPath;
fullPath = $"{directPath}/{fname}";
}
public Stream OpenFile_DISKSYS()
{
return new MemoryStream(Resources.Load<TextAsset>("NES/Disksys.rom").bytes);
}
public void SaveSRAMToFile(byte[] sramContent, string romName)
{
string sramDirectoryPath = $"{CorePath.DataPath}/sav";
Directory.CreateDirectory(sramDirectoryPath);
romName = Path.GetFileNameWithoutExtension(romName);
File.WriteAllBytes($"{sramDirectoryPath}/{romName}.sav", sramContent);
}
public void SaveDISKToFile(byte[] diskFileContent, string romName)
{
string diskFileDirectoryPath = $"{CorePath.DataPath}/dsv";
Directory.CreateDirectory(diskFileDirectoryPath);
romName = Path.GetFileNameWithoutExtension(romName);
File.WriteAllBytes($"{diskFileDirectoryPath}/{romName}.dsv", diskFileContent);
}
public EmulatorConfig Config { get; private set; } = new EmulatorConfig();
public void PrepareDirectory(string directPath)
{
Directory.CreateDirectory($"{CorePath.DataPath}/{directPath}");
}
public void SaveFile(byte[] fileData, string directPath, string fileName)
{
PrepareDirectory(directPath);
var fileFullpath = $"{CorePath.DataPath}/{directPath}/{fileName}";
File.WriteAllBytes(fileFullpath, fileData);
}
public Stream OpenFile(string directPath, string fileName)
{
try
{
var data = File.ReadAllBytes($"{CorePath.DataPath}/{directPath}/{fileName}");
if (data == null) return null;
return new MemoryStream(data);
}
catch
{
return null;
}
}
public bool TryGetMapperNo(ROM rom, out int mapperNo)
{
var db = Resources.Load<RomDB>("NES/ROMDB");
return db.GetMapperNo(rom.GetPROM_CRC(), out mapperNo);
}
public ControllerState GetControllerState()
{
var mapper = NesControllerMapper.Get();
return mapper.CreateState();
}
}
}

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using System;
using System.IO;
using UnityEngine;
using VirtualNes.Core;
namespace AxibugEmuOnline.Client
{
public class NesControllerMapper
{
private static readonly string ConfigFilePath = $"{CorePath.DataPath}/NES/ControllerMapper.json";
public MapperSetter Player1 = new MapperSetter();
public MapperSetter Player2 = new MapperSetter();
public MapperSetter Player3 = new MapperSetter();
public MapperSetter Player4 = new MapperSetter();
public NesControllerMapper()
{
Player1.UP.keyCode = KeyCode.JoystickButton8;
Player1.DOWN.keyCode = KeyCode.JoystickButton10;
Player1.LEFT.keyCode = KeyCode.JoystickButton11;
Player1.RIGHT.keyCode = KeyCode.JoystickButton9;
Player1.B.keyCode = KeyCode.JoystickButton0;
Player1.A.keyCode = KeyCode.JoystickButton1;
Player1.SELECT.keyCode = KeyCode.JoystickButton6;
Player1.START.keyCode = KeyCode.JoystickButton7;
//dictKeyCfgs.Add(KeyCode.JoystickButton7, MotionKey.P1_GAMESTART);
//dictKeyCfgs.Add(KeyCode.JoystickButton6, MotionKey.P1_INSERT_COIN);
//dictKeyCfgs.Add(KeyCode.JoystickButton8, MotionKey.P1_UP);
//dictKeyCfgs.Add(KeyCode.JoystickButton10, MotionKey.P1_DOWN);
//dictKeyCfgs.Add(KeyCode.JoystickButton11, MotionKey.P1_LEFT);
//dictKeyCfgs.Add(KeyCode.JoystickButton9, MotionKey.P1_RIGHT);
//dictKeyCfgs.Add(KeyCode.JoystickButton2, MotionKey.P1_BTN_1);
//dictKeyCfgs.Add(KeyCode.JoystickButton0, MotionKey.P1_BTN_2);
//dictKeyCfgs.Add(KeyCode.JoystickButton1, MotionKey.P1_BTN_3);
//dictKeyCfgs.Add(KeyCode.JoystickButton3, MotionKey.P1_BTN_4);
}
public void Save()
{
var jsonStr = JsonUtility.ToJson(this);
File.WriteAllText(ConfigFilePath, jsonStr);
}
public ControllerState CreateState()
{
var state1 = Player1.GetButtons();
var state2 = Player2.GetButtons();
var state3 = Player3.GetButtons();
var state4 = Player4.GetButtons();
return new ControllerState(state1, state2, state3, state4);
}
private static NesControllerMapper s_setting;
public static NesControllerMapper Get()
{
if (s_setting == null)
{
try
{
var json = File.ReadAllText($"{CorePath.DataPath}/Nes/ControllerMapper.json");
s_setting = JsonUtility.FromJson<NesControllerMapper>(json);
}
catch
{
s_setting = new NesControllerMapper();
}
}
return s_setting;
}
[Serializable]
public class Mapper
{
public EnumButtonType buttonType;
public KeyCode keyCode;
public Mapper(EnumButtonType buttonType)
{
this.buttonType = buttonType;
}
}
[Serializable]
public class MapperSetter
{
public Mapper UP = new Mapper(EnumButtonType.UP);
public Mapper DOWN = new Mapper(EnumButtonType.DOWN);
public Mapper LEFT = new Mapper(EnumButtonType.LEFT);
public Mapper RIGHT = new Mapper(EnumButtonType.RIGHT);
public Mapper A = new Mapper(EnumButtonType.A);
public Mapper B = new Mapper(EnumButtonType.B);
public Mapper SELECT = new Mapper(EnumButtonType.SELECT);
public Mapper START = new Mapper(EnumButtonType.START);
public Mapper MIC = new Mapper(EnumButtonType.MIC);
public EnumButtonType GetButtons()
{
EnumButtonType res = 0;
if (Input.GetKey(UP.keyCode))
res |= EnumButtonType.UP;
if (Input.GetKey(DOWN.keyCode))
res |= EnumButtonType.DOWN;
if (Input.GetKey(LEFT.keyCode))
res |= EnumButtonType.LEFT;
if (Input.GetKey(RIGHT.keyCode))
res |= EnumButtonType.RIGHT;
if (Input.GetKey(A.keyCode))
res |= EnumButtonType.A;
if (Input.GetKey(B.keyCode))
res |= EnumButtonType.B;
if (Input.GetKey(SELECT.keyCode))
res |= EnumButtonType.SELECT;
if (Input.GetKey(START.keyCode))
res |= EnumButtonType.START;
if (Input.GetKey(MIC.keyCode))
res |= EnumButtonType.MIC;
return res;
}
}
}
}

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using AxibugEmuOnline.Client.ClientCore;
using System;
using System.Diagnostics;
using System.IO;
using System.Xml.Linq;
using UnityEngine;
using UnityEngine.EventSystems;
using UnityEngine.UI;
using VirtualNes.Core;
using VirtualNes.Core.Debug;
namespace AxibugEmuOnline.Client
{
public class NesEmulator : MonoBehaviour
{
public NES NesCore { get; private set; }
public VideoProvider VideoProvider;
public AudioProvider AudioProvider;
public Button btnStart;
#if UNITY_EDITOR || UNITY_PSP2
public string RomName;
#endif
private void Start()
{
Application.targetFrameRate = 60;
VideoProvider.NesEmu = this;
AudioProvider.NesEmu = this;
#if UNITY_EDITOR || UNITY_PSP2
//StartGame(RomName);
#endif
btnStart.onClick.AddListener(()
=>
{
StartGame(RomName);
//失去焦点
EventSystem.current.SetSelectedGameObject(null);
});
}
public void StartGame(string romName)
{
StopGame();
Supporter.Setup(new CoreSupporter());
Debuger.Setup(new CoreDebuger());
try
{
NesCore = new NES(romName);
}
catch (Exception ex)
{
NesCore = null;
UnityEngine.Debug.LogError(ex);
}
}
public void StopGame()
{
NesCore?.Dispose();
NesCore = null;
}
private void Update()
{
if (NesCore != null)
{
var controlState = Supporter.GetControllerState();
NesCore.pad.Sync(controlState);
Stopwatch stopwatch = new Stopwatch();
stopwatch.Reset();
stopwatch.Start();
NesCore.EmulateFrame(true);
stopwatch.Stop();
// 获取计时器的总时间
TimeSpan ts = stopwatch.Elapsed;
UnityEngine.Debug.Log($"-> {(ts.Ticks / 10)}μs");
var screenBuffer = NesCore.ppu.GetScreenPtr();
var lineColorMode = NesCore.ppu.GetLineColorMode();
VideoProvider.SetDrawData(screenBuffer, lineColorMode, 256, 240);
}
}
#if UNITY_EDITOR
[ContextMenu("IMPORT")]
public void TTTA()
{
var db = Resources.Load<RomDB>("NES/ROMDB");
db.Clear();
var xmlStr = File.ReadAllText("nes20db.xml");
var xml = XDocument.Parse(xmlStr);
var games = xml.Element("nes20db").Elements("game");
foreach (var game in games)
{
var crcStr = game.Element("rom").Attribute("crc32").Value;
var crc = uint.Parse($"{crcStr}", System.Globalization.NumberStyles.HexNumber);
var mapper = int.Parse($"{game.Element("pcb").Attribute("mapper").Value}");
if (mapper > 255) continue;
db.AddInfo(new RomDB.RomInfo { CRC = crc, Mapper = mapper });
}
UnityEditor.EditorUtility.SetDirty(db);
UnityEditor.AssetDatabase.SaveAssets();
}
#endif
}
}

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using VirtualNes.Core;
namespace AxibugEmuOnline.Client
{
public static class PaletteDefine
{
public struct RGBQUAD
{
public byte rgbBlue;
public byte rgbGreen;
public byte rgbRed;
public byte rgbReserved;
}
public class PALBUF
{
public byte r;
public byte g;
public byte b;
public PALBUF(byte r, byte g, byte b)
{
this.r = r;
this.g = g;
this.b = b;
}
}
// スキャンラインカラー
private static int m_nScanlineColor => Supporter.Config.graphics.nScanlineColor;
public static float[][] PalConvTbl = new float[8][]
{
new float[3]{1.00f, 1.00f, 1.00f},
new float[3]{1.00f, 0.80f, 0.73f},
new float[3]{0.73f, 1.00f, 0.70f},
new float[3]{0.76f, 0.78f, 0.58f},
new float[3]{0.86f, 0.80f, 1.00f},
new float[3]{0.83f, 0.68f, 0.85f},
new float[3]{0.67f, 0.77f, 0.83f},
new float[3]{0.68f, 0.68f, 0.68f},
};
public static PALBUF[] m_PaletteBuf = new PALBUF[64]
{
new PALBUF(0x7F, 0x7F, 0x7F),
new PALBUF(0x20, 0x00, 0xB0),
new PALBUF(0x28, 0x00, 0xB8),
new PALBUF(0x60, 0x10, 0xA0),
new PALBUF(0x98, 0x20, 0x78),
new PALBUF(0xB0, 0x10, 0x30),
new PALBUF(0xA0, 0x30, 0x00),
new PALBUF(0x78, 0x40, 0x00),
new PALBUF(0x48, 0x58, 0x00),
new PALBUF(0x38, 0x68, 0x00),
new PALBUF(0x38, 0x6C, 0x00),
new PALBUF(0x30, 0x60, 0x40),
new PALBUF(0x30, 0x50, 0x80),
new PALBUF(0x00, 0x00, 0x00),
new PALBUF(0x00, 0x00, 0x00),
new PALBUF(0x00, 0x00, 0x00),
new PALBUF(0xBC, 0xBC, 0xBC),
new PALBUF(0x40, 0x60, 0xF8),
new PALBUF(0x40, 0x40, 0xFF),
new PALBUF(0x90, 0x40, 0xF0),
new PALBUF(0xD8, 0x40, 0xC0),
new PALBUF(0xD8, 0x40, 0x60),
new PALBUF(0xE0, 0x50, 0x00),
new PALBUF(0xC0, 0x70, 0x00),
new PALBUF(0x88, 0x88, 0x00),
new PALBUF(0x50, 0xA0, 0x00),
new PALBUF(0x48, 0xA8, 0x10),
new PALBUF(0x48, 0xA0, 0x68),
new PALBUF(0x40, 0x90, 0xC0),
new PALBUF(0x00, 0x00, 0x00),
new PALBUF(0x00, 0x00, 0x00),
new PALBUF(0x00, 0x00, 0x00),
new PALBUF(0xFF, 0xFF, 0xFF),
new PALBUF(0x60, 0xA0, 0xFF),
new PALBUF(0x50, 0x80, 0xFF),
new PALBUF(0xA0, 0x70, 0xFF),
new PALBUF(0xF0, 0x60, 0xFF),
new PALBUF(0xFF, 0x60, 0xB0),
new PALBUF(0xFF, 0x78, 0x30),
new PALBUF(0xFF, 0xA0, 0x00),
new PALBUF(0xE8, 0xD0, 0x20),
new PALBUF(0x98, 0xE8, 0x00),
new PALBUF(0x70, 0xF0, 0x40),
new PALBUF(0x70, 0xE0, 0x90),
new PALBUF(0x60, 0xD0, 0xE0),
new PALBUF(0x60, 0x60, 0x60),
new PALBUF(0x00, 0x00, 0x00),
new PALBUF(0x00, 0x00, 0x00),
new PALBUF(0xFF, 0xFF, 0xFF),
new PALBUF(0x90, 0xD0, 0xFF),
new PALBUF(0xA0, 0xB8, 0xFF),
new PALBUF(0xC0, 0xB0, 0xFF),
new PALBUF(0xE0, 0xB0, 0xFF),
new PALBUF(0xFF, 0xB8, 0xE8),
new PALBUF(0xFF, 0xC8, 0xB8),
new PALBUF(0xFF, 0xD8, 0xA0),
new PALBUF(0xFF, 0xF0, 0x90),
new PALBUF(0xC8, 0xF0, 0x80),
new PALBUF(0xA0, 0xF0, 0xA0),
new PALBUF(0xA0, 0xFF, 0xC8),
new PALBUF(0xA0, 0xFF, 0xF0),
new PALBUF(0xA0, 0xA0, 0xA0),
new PALBUF(0x00, 0x00, 0x00),
new PALBUF(0x00, 0x00, 0x00),
};
#region 256
// Color
public static RGBQUAD[][] m_cpPalette = new RGBQUAD[8][]
{
new RGBQUAD[64*2],
new RGBQUAD[64*2],
new RGBQUAD[64*2],
new RGBQUAD[64*2],
new RGBQUAD[64*2],
new RGBQUAD[64*2],
new RGBQUAD[64*2],
new RGBQUAD[64*2],
};
// Monochrome
public static RGBQUAD[][] m_mpPalette = new RGBQUAD[8][]
{
new RGBQUAD[64*2],
new RGBQUAD[64*2],
new RGBQUAD[64*2],
new RGBQUAD[64*2],
new RGBQUAD[64*2],
new RGBQUAD[64*2],
new RGBQUAD[64*2],
new RGBQUAD[64*2],
};
#endregion
#region
// Color
public static uint[][] m_cnPalette = new uint[8][]
{
new uint[256],
new uint[256],
new uint[256],
new uint[256],
new uint[256],
new uint[256],
new uint[256],
new uint[256],
};
// Color/Scanline
public static uint[][] m_csPalette = new uint[8][]
{
new uint[256],
new uint[256],
new uint[256],
new uint[256],
new uint[256],
new uint[256],
new uint[256],
new uint[256],
};
// Monochrome
public static uint[][] m_mnPalette = new uint[8][]
{
new uint[256],
new uint[256],
new uint[256],
new uint[256],
new uint[256],
new uint[256],
new uint[256],
new uint[256],
};
// Monochrome/Scanline
public static uint[][] m_msPalette = new uint[8][]
{
new uint[256],
new uint[256],
new uint[256],
new uint[256],
new uint[256],
new uint[256],
new uint[256],
new uint[256],
};
#endregion
public static RGBQUAD[] GetPaletteData()
{
RGBQUAD[] rgb = new RGBQUAD[256];
for (int i = 0; i < 64; i++)
{
rgb[i] = m_cpPalette[0][i];
rgb[i + 0x40] = m_mpPalette[0][i];
}
return rgb;
}
static PaletteDefine()
{
int Rbit = 0, Gbit = 0, Bbit = 0;
int Rsft = 0, Gsft = 0, Bsft = 0;
GetBitMask(0xFF0000, ref Rsft, ref Rbit);
GetBitMask(0x00FF00, ref Gsft, ref Gbit);
GetBitMask(0x0000FF, ref Bsft, ref Bbit);
for (int j = 0; j < 8; j++)
{
for (int i = 0; i < 64; i++)
{
uint Rn, Gn, Bn;
uint Rs, Gs, Bs;
// Normal
Rn = (uint)(PalConvTbl[j][0] * m_PaletteBuf[i].r);
Gn = (uint)(PalConvTbl[j][1] * m_PaletteBuf[i].g);
Bn = (uint)(PalConvTbl[j][2] * m_PaletteBuf[i].b);
// Scanline
Rs = (uint)(PalConvTbl[j][0] * m_PaletteBuf[i].r * m_nScanlineColor / 100.0f);
Gs = (uint)(PalConvTbl[j][1] * m_PaletteBuf[i].g * m_nScanlineColor / 100.0f);
Bs = (uint)(PalConvTbl[j][2] * m_PaletteBuf[i].b * m_nScanlineColor / 100.0f);
m_cpPalette[j][i + 0x00].rgbRed = (byte)Rn;
m_cpPalette[j][i + 0x00].rgbGreen = (byte)Gn;
m_cpPalette[j][i + 0x00].rgbBlue = (byte)Bn;
m_cpPalette[j][i + 0x40].rgbRed = (byte)Rs;
m_cpPalette[j][i + 0x40].rgbGreen = (byte)Gs;
m_cpPalette[j][i + 0x40].rgbBlue = (byte)Bs;
m_cnPalette[j][i] = ((Rn >> (8 - Rbit)) << Rsft) | ((Gn >> (8 - Gbit)) << Gsft) | ((Bn >> (8 - Bbit)) << Bsft);
m_csPalette[j][i] = ((Rs >> (8 - Rbit)) << Rsft) | ((Gs >> (8 - Gbit)) << Gsft) | ((Bs >> (8 - Bbit)) << Bsft);
// Monochrome
Rn = (uint)(m_PaletteBuf[i & 0x30].r);
Gn = (uint)(m_PaletteBuf[i & 0x30].g);
Bn = (uint)(m_PaletteBuf[i & 0x30].b);
Rn =
Gn =
Bn = (uint)(0.299f * Rn + 0.587f * Gn + 0.114f * Bn);
Rn = (uint)(PalConvTbl[j][0] * Rn);
Gn = (uint)(PalConvTbl[j][1] * Gn);
Bn = (uint)(PalConvTbl[j][2] * Bn);
if (Rn > 0xFF) Rs = 0xFF;
if (Gn > 0xFF) Gs = 0xFF;
if (Bn > 0xFF) Bs = 0xFF;
// Scanline
Rs = (uint)(m_PaletteBuf[i & 0x30].r * m_nScanlineColor / 100.0f);
Gs = (uint)(m_PaletteBuf[i & 0x30].g * m_nScanlineColor / 100.0f);
Bs = (uint)(m_PaletteBuf[i & 0x30].b * m_nScanlineColor / 100.0f);
Rs =
Gs =
Bs = (uint)(0.299f * Rs + 0.587f * Gs + 0.114f * Bs);
Rs = (uint)(PalConvTbl[j][0] * Rs);
Gs = (uint)(PalConvTbl[j][1] * Gs);
Bs = (uint)(PalConvTbl[j][2] * Bs);
if (Rs > 0xFF) Rs = 0xFF;
if (Gs > 0xFF) Gs = 0xFF;
if (Bs > 0xFF) Bs = 0xFF;
m_mpPalette[j][i + 0x00].rgbRed = (byte)Rn;
m_mpPalette[j][i + 0x00].rgbGreen = (byte)Gn;
m_mpPalette[j][i + 0x00].rgbBlue = (byte)Bn;
m_mpPalette[j][i + 0x40].rgbRed = (byte)Rs;
m_mpPalette[j][i + 0x40].rgbGreen = (byte)Gs;
m_mpPalette[j][i + 0x40].rgbBlue = (byte)Bs;
m_mnPalette[j][i] = ((Rn >> (8 - Rbit)) << Rsft) | ((Gn >> (8 - Gbit)) << Gsft) | ((Bn >> (8 - Bbit)) << Bsft);
m_msPalette[j][i] = ((Rs >> (8 - Rbit)) << Rsft) | ((Gs >> (8 - Gbit)) << Gsft) | ((Bs >> (8 - Bbit)) << Bsft);
}
}
}
// ビット位置の取得
static void GetBitMask(uint val, ref int shift, ref int bits)
{
shift = 0;
while (((val & (1 << shift)) == 0) && (shift < 32))
{
shift++;
}
bits = 32;
while (((val & (1 << (bits - 1))) == 0) && (bits > 0))
{
bits--;
}
bits = bits - shift;
}
}
}

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using System.Collections.Generic;
using UnityEngine;
using UnityEngine.UI;
using VirtualNes;
using static AxibugEmuOnline.Client.PaletteDefine;
namespace AxibugEmuOnline.Client
{
public class PatternViewer : MonoBehaviour
{
public RawImage img;
private Color32[] m_lpPattern = new Color32[128 * 256];
private Texture2D m_texture;
private Dictionary<byte, RGBQUAD> colors = new Dictionary<byte, RGBQUAD>();
private void Awake()
{
m_texture = new Texture2D(128, 256);
}
private void Update()
{
Paint();
}
private void OnEnable()
{
img.gameObject.SetActive(true);
}
private void OnDisable()
{
img.gameObject.SetActive(false);
}
public void Paint()
{
img.texture = m_texture;
var pal = MMU.SPPAL;
var palette = PaletteDefine.GetPaletteData();
colors[0] = palette[pal[0]];
colors[1] = palette[pal[1]];
colors[2] = palette[pal[2]];
colors[3] = palette[pal[3]];
for (int i = 0; i < 8; i++)
{
var Ptn = MMU.PPU_MEM_BANK[i];
int lpPtn = 0;
for (int p = 0; p < 64; p++)
{
int lpScn = i * 32 * 128 + (p & 15) * 8 + (p / 16) * 8 * 128;
for (int y = 0; y < 8; y++)
{
byte chr_l = Ptn[lpPtn + y];
byte chr_h = Ptn[lpPtn + y + 8];
m_lpPattern[lpScn + 0] = ToColor32(colors, (((chr_h >> 6) & 2) | ((chr_l >> 7) & 1)));
m_lpPattern[lpScn + 4] = ToColor32(colors, (((chr_h >> 2) & 2) | ((chr_l >> 3) & 1)));
m_lpPattern[lpScn + 1] = ToColor32(colors, (((chr_h >> 5) & 2) | ((chr_l >> 6) & 1)));
m_lpPattern[lpScn + 5] = ToColor32(colors, (((chr_h >> 1) & 2) | ((chr_l >> 2) & 1)));
m_lpPattern[lpScn + 2] = ToColor32(colors, (((chr_h >> 4) & 2) | ((chr_l >> 5) & 1)));
m_lpPattern[lpScn + 6] = ToColor32(colors, (((chr_h >> 0) & 2) | ((chr_l >> 1) & 1)));
m_lpPattern[lpScn + 3] = ToColor32(colors, (((chr_h >> 3) & 2) | ((chr_l >> 4) & 1)));
m_lpPattern[lpScn + 7] = ToColor32(colors, (((chr_h << 1) & 2) | ((chr_l >> 0) & 1)));
// Next line
lpScn += 128;
}
// Next pattern
lpPtn += 16;
}
}
m_texture.SetPixels32(m_lpPattern);
m_texture.Apply();
}
private Color32 ToColor32(Dictionary<byte, RGBQUAD> map, int v)
{
var raw = map[(byte)v];
return new Color32(raw.rgbRed, raw.rgbGreen, raw.rgbBlue, 255);
}
}
}

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using System;
using System.Collections.Generic;
using UnityEngine;
namespace AxibugEmuOnline.Client.ClientCore
{
public class RomDB : ScriptableObject
{
[SerializeField]
private List<RomInfo> romInfos = new List<RomInfo>();
private Dictionary<uint, RomInfo> crc_Info_mapper;
public void AddInfo(RomInfo romInfo)
{
romInfos.Add(romInfo);
}
public void Clear()
{
romInfos.Clear();
}
public bool GetMapperNo(uint crc, out int mapperNo)
{
if (crc_Info_mapper == null)
{
crc_Info_mapper = new Dictionary<uint, RomInfo>();
foreach (var info in romInfos)
{
crc_Info_mapper[info.CRC] = info;
}
}
RomInfo romInfo;
if (crc_Info_mapper.TryGetValue(crc, out romInfo))
{
mapperNo = romInfo.Mapper;
return true;
}
else
{
mapperNo = -1;
return false;
}
}
[Serializable]
public class RomInfo
{
public uint CRC;
public int Mapper;
}
}
}

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using System;
using System.Runtime.InteropServices;
using UnityEngine;
using UnityEngine.UI;
namespace AxibugEmuOnline.Client
{
public class VideoProvider : MonoBehaviour
{
public NesEmulator NesEmu;
public RawImage Image;
public Text fpstext;
private UInt32[] wrapTexBuffer;
private IntPtr wrapTexBufferPointer;
private Texture2D wrapTex;
private int TexBufferSize;
private Texture2D pPal;
float lasttime;
public float detalTime;
public void SetDrawData(uint[] screenData, byte[] lineColorMode, int screenWidth, int screenHeight)
{
if (wrapTex == null)
{
//wrapTex = new Texture2D(272, 240, TextureFormat.BGRA32, false);
wrapTex = new Texture2D(272, 240, TextureFormat.RGBA32, false);
wrapTex.filterMode = FilterMode.Point;
wrapTexBuffer = screenData;
// 固定数组,防止垃圾回收器移动它
GCHandle handle = GCHandle.Alloc(wrapTexBuffer, GCHandleType.Pinned);
// 获取数组的指针
wrapTexBufferPointer = handle.AddrOfPinnedObject();
Image.texture = wrapTex;
Image.material.SetTexture("_MainTex", wrapTex);
TexBufferSize = wrapTexBuffer.Length * 4;
var palRaw = PaletteDefine.m_cnPalette[0];
//pPal = new Texture2D(palRaw.Length, 1, TextureFormat.BGRA32, 1, true);
pPal = new Texture2D(palRaw.Length, 1, TextureFormat.RGBA32, true);
pPal.filterMode = FilterMode.Point;
for (int i = 0; i < palRaw.Length; i++)
{
uint colorRaw = palRaw[i];
var argbColor = BitConverter.GetBytes(colorRaw);
Color temp = Color.white;
temp.r = argbColor[2] / 255f;
temp.g = argbColor[1] / 255f;
temp.b = argbColor[0] / 255f;
temp.a = 1;
pPal.SetPixel(i, 0, temp);
}
pPal.Apply();
Image.material.SetTexture("_PalTex", pPal);
}
wrapTex.LoadRawTextureData(wrapTexBufferPointer, TexBufferSize);
wrapTex.Apply();
detalTime = Time.time - lasttime;
lasttime = Time.time;
fpstext.text = (1f / detalTime).ToString();
}
}
}

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using System.Threading;
public class RingBuffer<T>
{
private readonly T[] buffer;
private readonly int capacity;
private int writePos;
private int readPos;
private int count;
public RingBuffer(int capacity)
{
this.capacity = capacity;
this.buffer = new T[capacity];
this.writePos = 0;
this.readPos = 0;
this.count = 0;
}
public void Write(T item)
{
int localWritePos;
int localReadPos;
do
{
localWritePos = Volatile.Read(ref writePos);
localReadPos = Volatile.Read(ref readPos);
int nextWritePos = (localWritePos + 1) % capacity;
if (nextWritePos == localReadPos)
{
// 缓冲区已满,覆盖最旧的未读数据
Interlocked.CompareExchange(ref readPos, (localReadPos + 1) % capacity, localReadPos);
}
}
while (Interlocked.CompareExchange(ref writePos, (localWritePos + 1) % capacity, localWritePos) != localWritePos);
buffer[localWritePos] = item;
Interlocked.Increment(ref count);
}
public bool TryRead(out T item)
{
item = default(T);
int localReadPos;
int localWritePos;
do
{
localReadPos = Volatile.Read(ref readPos);
localWritePos = Volatile.Read(ref writePos);
if (localReadPos == localWritePos)
{
return false; // 缓冲区为空
}
}
while (Interlocked.CompareExchange(ref readPos, (localReadPos + 1) % capacity, localReadPos) != localReadPos);
item = buffer[localReadPos];
Interlocked.Decrement(ref count);
return true;
}
public int Available()
{
return Volatile.Read(ref count);
}
}

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using VirtualNes.Core;
public class SoundBuffer : RingBuffer<byte>, ISoundDataBuffer
{
public SoundBuffer(int capacity) : base(capacity) { }
public void WriteByte(byte value)
{
Write(value);
}
}

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//using Codice.CM.Client.Differences;
using System;
using System.IO;
using System.Security.Principal;
using UnityEngine;
using VirtualNes.Core;
using VirtualNes.Core.Debug;
namespace VirtualNes.Core
{
public class APU
{
public const uint QUEUE_LENGTH = 8192;
// Volume adjust
// Internal sounds
public const uint RECTANGLE_VOL = 0x0F0;
public const uint TRIANGLE_VOL = 0x130;
public const uint NOISE_VOL = 0x0C0;
public const uint DPCM_VOL = 0x0F0;
// Extra sounds
public const uint VRC6_VOL = 0x0F0;
public const uint VRC7_VOL = 0x130;
public const uint FDS_VOL = 0x0F0;
public const uint MMC5_VOL = 0x0F0;
public const uint N106_VOL = 0x088;
public const uint FME7_VOL = 0x130;
private NES nes;
private byte exsound_select;
private APU_INTERNAL @internal = new APU_INTERNAL();
private APU_VRC6 vrc6 = new APU_VRC6();
private APU_VRC7 vrc7 = new APU_VRC7();
private APU_MMC5 mmc5 = new APU_MMC5();
private APU_FDS fds = new APU_FDS();
private APU_N106 n106 = new APU_N106();
private APU_FME7 fme7 = new APU_FME7();
private int last_data;
private int last_diff;
protected short[] m_SoundBuffer = new short[256];
protected int[] lowpass_filter = new int[4];
protected QUEUE queue = new QUEUE();
protected QUEUE exqueue = new QUEUE();
protected bool[] m_bMute = new bool[16];
protected double elapsed_time;
public APU(NES parent)
{
exsound_select = 0;
nes = parent;
@internal.SetParent(parent);
last_data = last_diff = 0;
Array.Clear(m_SoundBuffer, 0, m_SoundBuffer.Length);
Array.Clear(lowpass_filter, 0, lowpass_filter.Length);
for (int i = 0; i < m_bMute.Length; i++)
m_bMute[i] = true;
}
public void Dispose()
{
@internal.Dispose();
vrc6.Dispose();
vrc7.Dispose();
mmc5.Dispose();
fds.Dispose();
n106.Dispose();
fme7.Dispose();
}
private int[] vol = new int[24];
static double cutofftemp = (2.0 * 3.141592653579 * 40.0);
static double tmp = 0.0;
public void Process(ISoundDataBuffer lpBuffer, uint dwSize)
{
int nBits = Supporter.Config.sound.nBits;
uint dwLength = (uint)(dwSize / (nBits / 8));
int output;
QUEUEDATA q = new QUEUEDATA();
uint writetime;
var pSoundBuf = m_SoundBuffer;
int nCcount = 0;
int nFilterType = Supporter.Config.sound.nFilterType;
if (!Supporter.Config.sound.bEnable)
{
byte empty = (byte)(Supporter.Config.sound.nRate == 8 ? 128 : 0);
for (int i = 0; i < dwSize; i++)
lpBuffer.WriteByte(empty);
return;
}
// Volume setup
// 0:Master
// 1:Rectangle 1
// 2:Rectangle 2
// 3:Triangle
// 4:Noise
// 5:DPCM
// 6:VRC6
// 7:VRC7
// 8:FDS
// 9:MMC5
// 10:N106
// 11:FME7
MemoryUtility.ZEROMEMORY(vol, vol.Length);
var bMute = m_bMute;
var nVolume = Supporter.Config.sound.nVolume;
int nMasterVolume = bMute[0] ? nVolume[0] : 0;
// Internal
vol[0] = (int)(bMute[1] ? (RECTANGLE_VOL * nVolume[1] * nMasterVolume) / (100 * 100) : 0);
vol[1] = (int)(bMute[2] ? (RECTANGLE_VOL * nVolume[2] * nMasterVolume) / (100 * 100) : 0);
vol[2] = (int)(bMute[3] ? (TRIANGLE_VOL * nVolume[3] * nMasterVolume) / (100 * 100) : 0);
vol[3] = (int)(bMute[4] ? (NOISE_VOL * nVolume[4] * nMasterVolume) / (100 * 100) : 0);
vol[4] = (int)(bMute[5] ? (DPCM_VOL * nVolume[5] * nMasterVolume) / (100 * 100) : 0);
// VRC6
vol[5] = (int)(bMute[6] ? (VRC6_VOL * nVolume[6] * nMasterVolume) / (100 * 100) : 0);
vol[6] = (int)(bMute[7] ? (VRC6_VOL * nVolume[6] * nMasterVolume) / (100 * 100) : 0);
vol[7] = (int)(bMute[8] ? (VRC6_VOL * nVolume[6] * nMasterVolume) / (100 * 100) : 0);
// VRC7
vol[8] = (int)(bMute[6] ? (VRC7_VOL * nVolume[7] * nMasterVolume) / (100 * 100) : 0);
// FDS
vol[9] = (int)(bMute[6] ? (FDS_VOL * nVolume[8] * nMasterVolume) / (100 * 100) : 0);
// MMC5
vol[10] = (int)(bMute[6] ? (MMC5_VOL * nVolume[9] * nMasterVolume) / (100 * 100) : 0);
vol[11] = (int)(bMute[7] ? (MMC5_VOL * nVolume[9] * nMasterVolume) / (100 * 100) : 0);
vol[12] = (int)(bMute[8] ? (MMC5_VOL * nVolume[9] * nMasterVolume) / (100 * 100) : 0);
// N106
vol[13] = (int)(bMute[6] ? (N106_VOL * nVolume[10] * nMasterVolume) / (100 * 100) : 0);
vol[14] = (int)(bMute[7] ? (N106_VOL * nVolume[10] * nMasterVolume) / (100 * 100) : 0);
vol[15] = (int)(bMute[8] ? (N106_VOL * nVolume[10] * nMasterVolume) / (100 * 100) : 0);
vol[16] = (int)(bMute[9] ? (N106_VOL * nVolume[10] * nMasterVolume) / (100 * 100) : 0);
vol[17] = (int)(bMute[10] ? (N106_VOL * nVolume[10] * nMasterVolume) / (100 * 100) : 0);
vol[18] = (int)(bMute[11] ? (N106_VOL * nVolume[10] * nMasterVolume) / (100 * 100) : 0);
vol[19] = (int)(bMute[12] ? (N106_VOL * nVolume[10] * nMasterVolume) / (100 * 100) : 0);
vol[20] = (int)(bMute[13] ? (N106_VOL * nVolume[10] * nMasterVolume) / (100 * 100) : 0);
// FME7
vol[21] = (int)(bMute[6] ? (FME7_VOL * nVolume[11] * nMasterVolume) / (100 * 100) : 0);
vol[22] = (int)(bMute[7] ? (FME7_VOL * nVolume[11] * nMasterVolume) / (100 * 100) : 0);
vol[23] = (int)(bMute[8] ? (FME7_VOL * nVolume[11] * nMasterVolume) / (100 * 100) : 0);
// double cycle_rate = ((double)FRAME_CYCLES*60.0/12.0)/(double)Config.sound.nRate;
double cycle_rate = (nes.nescfg.FrameCycles * 60.0 / 12.0) / Supporter.Config.sound.nRate;
// CPUサイクル数がループしてしまった時の対策処理
if (elapsed_time > nes.cpu.GetTotalCycles())
{
QueueFlush();
}
while ((dwLength--) != 0)
{
writetime = (uint)elapsed_time;
while (GetQueue((int)writetime, ref q))
{
WriteProcess(q.addr, q.data);
}
while (GetExQueue((int)writetime, ref q))
{
WriteExProcess(q.addr, q.data);
}
// 0-4:internal 5-7:VRC6 8:VRC7 9:FDS 10-12:MMC5 13-20:N106 21-23:FME7
output = 0;
output += @internal.Process(0) * vol[0];
output += @internal.Process(1) * vol[1];
output += @internal.Process(2) * vol[2];
output += @internal.Process(3) * vol[3];
output += @internal.Process(4) * vol[4];
if ((exsound_select & 0x01) != 0)
{
output += vrc6.Process(0) * vol[5];
output += vrc6.Process(1) * vol[6];
output += vrc6.Process(2) * vol[7];
}
if ((exsound_select & 0x02) != 0)
{
output += vrc7.Process(0) * vol[8];
}
if ((exsound_select & 0x04) != 0)
{
output += fds.Process(0) * vol[9];
}
if ((exsound_select & 0x08) != 0)
{
output += mmc5.Process(0) * vol[10];
output += mmc5.Process(1) * vol[11];
output += mmc5.Process(2) * vol[12];
}
if ((exsound_select & 0x10) != 0)
{
output += n106.Process(0) * vol[13];
output += n106.Process(1) * vol[14];
output += n106.Process(2) * vol[15];
output += n106.Process(3) * vol[16];
output += n106.Process(4) * vol[17];
output += n106.Process(5) * vol[18];
output += n106.Process(6) * vol[19];
output += n106.Process(7) * vol[20];
}
if ((exsound_select & 0x20) != 0)
{
fme7.Process(3); // Envelope & Noise
output += fme7.Process(0) * vol[21];
output += fme7.Process(1) * vol[22];
output += fme7.Process(2) * vol[23];
}
output >>= 8;
if (nFilterType == 1)
{
//ローパスフィルターTYPE 1(Simple)
output = (lowpass_filter[0] + output) / 2;
lowpass_filter[0] = output;
}
else if (nFilterType == 2)
{
//ローパスフィルターTYPE 2(Weighted type 1)
output = (lowpass_filter[1] + lowpass_filter[0] + output) / 3;
lowpass_filter[1] = lowpass_filter[0];
lowpass_filter[0] = output;
}
else if (nFilterType == 3)
{
//ローパスフィルターTYPE 3(Weighted type 2)
output = (lowpass_filter[2] + lowpass_filter[1] + lowpass_filter[0] + output) / 4;
lowpass_filter[2] = lowpass_filter[1];
lowpass_filter[1] = lowpass_filter[0];
lowpass_filter[0] = output;
}
else if (nFilterType == 4)
{
//ローパスフィルターTYPE 4(Weighted type 3)
output = (lowpass_filter[1] + lowpass_filter[0] * 2 + output) / 4;
lowpass_filter[1] = lowpass_filter[0];
lowpass_filter[0] = output;
}
// DC成分のカット(HPF TEST)
{
// static double cutoff = (2.0*3.141592653579*40.0/44100.0);
double cutoff = cutofftemp / Supporter.Config.sound.nRate;
double @in, @out;
@in = output;
@out = (@in - tmp);
tmp = tmp + cutoff * @out;
output = (int)@out;
}
// Limit
if (output > 0x7FFF)
{
output = 0x7FFF;
}
else if (output < -0x8000)
{
output = -0x8000;
}
if (nBits != 8)
{
byte highByte = (byte)(output >> 8); // 获取高8位
byte lowByte = (byte)(output & 0xFF); // 获取低8位
lpBuffer.WriteByte(highByte);
lpBuffer.WriteByte(lowByte);
}
else
{
lpBuffer.WriteByte((byte)((output >> 8) ^ 0x80));
}
if (nCcount < 0x0100)
pSoundBuf[nCcount++] = (short)output;
// elapsedtime += cycle_rate;
elapsed_time += cycle_rate;
}
if (elapsed_time > ((nes.nescfg.FrameCycles / 24) + nes.cpu.GetTotalCycles()))
{
elapsed_time = nes.cpu.GetTotalCycles();
}
if ((elapsed_time + (nes.nescfg.FrameCycles / 6)) < nes.cpu.GetTotalCycles())
{
elapsed_time = nes.cpu.GetTotalCycles();
}
}
private bool GetExQueue(int writetime, ref QUEUEDATA ret)
{
if (exqueue.wrptr == exqueue.rdptr)
{
return false;
}
if (exqueue.data[exqueue.rdptr].time <= writetime)
{
ret = exqueue.data[exqueue.rdptr];
exqueue.rdptr++;
exqueue.rdptr = (int)(exqueue.rdptr & (QUEUE_LENGTH - 1));
return true;
}
return false;
}
private void QueueFlush()
{
while (queue.wrptr != queue.rdptr)
{
WriteProcess(queue.data[queue.rdptr].addr, queue.data[queue.rdptr].data);
queue.rdptr++;
queue.rdptr = (int)(queue.rdptr & (QUEUE_LENGTH - 1));
}
while (exqueue.wrptr != exqueue.rdptr)
{
WriteExProcess(exqueue.data[exqueue.rdptr].addr, exqueue.data[exqueue.rdptr].data);
exqueue.rdptr++;
exqueue.rdptr = (int)(exqueue.rdptr & (QUEUE_LENGTH - 1));
}
}
private void WriteExProcess(ushort addr, byte data)
{
if ((exsound_select & 0x01) != 0)
{
vrc6.Write(addr, data);
}
if ((exsound_select & 0x02) != 0)
{
vrc7.Write(addr, data);
}
if ((exsound_select & 0x04) != 0)
{
fds.Write(addr, data);
}
if ((exsound_select & 0x08) != 0)
{
mmc5.Write(addr, data);
}
if ((exsound_select & 0x10) != 0)
{
if (addr == 0x0000)
{
byte dummy = n106.Read(addr);
}
else
{
n106.Write(addr, data);
}
}
if ((exsound_select & 0x20) != 0)
{
fme7.Write(addr, data);
}
}
private void WriteProcess(ushort addr, byte data)
{
// $4018はVirtuaNES固有ポート
if (addr >= 0x4000 && addr <= 0x401F)
{
@internal.Write(addr, data);
}
}
internal void SyncDPCM(int cycles)
{
@internal.Sync(cycles);
}
internal byte Read(ushort addr)
{
return @internal.SyncRead(addr);
}
internal void Write(ushort addr, byte data)
{
// $4018偼VirtuaNES屌桳億乕僩
if (addr >= 0x4000 && addr <= 0x401F)
{
@internal.SyncWrite(addr, data);
SetQueue(nes.cpu.GetTotalCycles(), addr, data);
}
}
private void SetQueue(int writetime, ushort addr, byte data)
{
queue.data[queue.wrptr].time = writetime;
queue.data[queue.wrptr].addr = addr;
queue.data[queue.wrptr].data = data;
queue.wrptr++;
var newwrptr = (int)(queue.wrptr & (QUEUE_LENGTH - 1));
queue.wrptr = newwrptr;
if (queue.wrptr == queue.rdptr)
{
Debuger.LogError("queue overflow.");
}
}
private bool GetQueue(int writetime, ref QUEUEDATA ret)
{
if (queue.wrptr == queue.rdptr)
{
return false;
}
if (queue.data[queue.rdptr].time <= writetime)
{
ret = queue.data[queue.rdptr];
queue.rdptr++;
var newrdptr = (int)(queue.rdptr & (QUEUE_LENGTH - 1));
queue.rdptr = newrdptr;
return true;
}
return false;
}
public void SoundSetup()
{
float fClock = nes.nescfg.CpuClock;
int nRate = Supporter.Config.sound.nRate;
@internal.Setup(fClock, nRate);
vrc6.Setup(fClock, nRate);
vrc7.Setup(fClock, nRate);
mmc5.Setup(fClock, nRate);
fds.Setup(fClock, nRate);
n106.Setup(fClock, nRate);
fme7.Setup(fClock, nRate);
}
internal void SelectExSound(byte data)
{
exsound_select = data;
}
internal void Reset()
{
queue = new QUEUE();
exqueue = new QUEUE();
elapsed_time = 0;
float fClock = nes.nescfg.CpuClock;
int nRate = Supporter.Config.sound.nRate;
@internal.Reset(fClock, nRate);
vrc6.Reset(fClock, nRate);
vrc7.Reset(fClock, nRate);
mmc5.Reset(fClock, nRate);
fds.Reset(fClock, nRate);
n106.Reset(fClock, nRate);
fme7.Reset(fClock, nRate);
SoundSetup();
}
internal void ExWrite(ushort addr, byte data)
{
SetExQueue(nes.cpu.GetTotalCycles(), addr, data);
if ((exsound_select & 0x04) != 0)
{
if (addr >= 0x4040 && addr < 0x4100)
{
fds.SyncWrite(addr, data);
}
}
if ((exsound_select & 0x08) != 0)
{
if (addr >= 0x5000 && addr <= 0x5015)
{
mmc5.SyncWrite(addr, data);
}
}
}
private void SetExQueue(int writetime, ushort addr, byte data)
{
exqueue.data[exqueue.wrptr].time = writetime;
exqueue.data[exqueue.wrptr].addr = addr;
exqueue.data[exqueue.wrptr].data = data;
exqueue.wrptr++;
var temp = QUEUE_LENGTH - 1;
exqueue.wrptr = (int)(exqueue.wrptr & temp);
if (exqueue.wrptr == exqueue.rdptr)
{
Debuger.LogError("exqueue overflow.");
}
}
internal byte ExRead(ushort addr)
{
byte data = 0;
if ((exsound_select & 0x10) != 0)
{
if (addr == 0x4800)
{
SetExQueue(nes.cpu.GetTotalCycles(), 0, 0);
}
}
if ((exsound_select & 0x04) != 0)
{
if (addr >= 0x4040 && addr < 0x4100)
{
data = fds.SyncRead(addr);
}
}
if ((exsound_select & 0x08) != 0)
{
if (addr >= 0x5000 && addr <= 0x5015)
{
data = mmc5.SyncRead(addr);
}
}
return data;
}
}
public struct QUEUEDATA
{
public int time;
public ushort addr;
public byte data;
public byte reserved;
}
public class QUEUE
{
public int rdptr;
public int wrptr;
public QUEUEDATA[] data = new QUEUEDATA[8192];
}
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using System;
namespace VirtualNes.Core
{
public class APU_FDS : APU_INTERFACE
{
FDSSOUND fds = new FDSSOUND();
FDSSOUND fds_sync = new FDSSOUND();
int[] output_buf = new int[8];
int sampling_rate;
public APU_FDS()
{
fds.ZeroMemory();
fds_sync.ZeroMemory();
Array.Clear(output_buf, 0, output_buf.Length);
sampling_rate = 22050;
}
public override void Reset(float fClock, int nRate)
{
fds.ZeroMemory();
fds_sync.ZeroMemory();
sampling_rate = 22050;
}
public override void Setup(float fClock, int nRate)
{
sampling_rate = nRate;
}
int[] tbl_writesub = { 30, 20, 15, 12 };
private void WriteSub(ushort addr, byte data, FDSSOUND ch, double rate)
{
if (addr < 0x4040 || addr > 0x40BF)
return;
ch.reg[addr - 0x4040] = data;
if (addr >= 0x4040 && addr <= 0x407F)
{
if (ch.wave_setup != 0)
{
ch.main_wavetable[addr - 0x4040] = 0x20 - (data & 0x3F);
}
}
else
{
switch (addr)
{
case 0x4080: // Volume Envelope
ch.volenv_mode = (byte)(data >> 6);
if ((data & 0x80) != 0)
{
ch.volenv_gain = (byte)(data & 0x3F);
// 即時反映
if (ch.main_addr == 0)
{
ch.now_volume = (ch.volenv_gain < 0x21) ? ch.volenv_gain : 0x20;
}
}
// エンベロープ1段階の演算
ch.volenv_decay = (byte)(data & 0x3F);
ch.volenv_phaseacc = (double)ch.envelope_speed * (double)(ch.volenv_decay + 1) * rate / (232.0 * 960.0);
break;
case 0x4082: // Main Frequency(Low)
ch.main_frequency = (ch.main_frequency & ~0x00FF) | data;
break;
case 0x4083: // Main Frequency(High)
ch.main_enable = (byte)((~data) & (1 << 7));
ch.envelope_enable = (byte)((~data) & (1 << 6));
if (ch.main_enable == 0)
{
ch.main_addr = 0;
ch.now_volume = (ch.volenv_gain < 0x21) ? ch.volenv_gain : 0x20;
}
// ch.main_frequency = (ch.main_frequency&0x00FF)|(((INT)data&0x3F)<<8);
ch.main_frequency = (ch.main_frequency & 0x00FF) | ((data & 0x0F) << 8);
break;
case 0x4084: // Sweep Envelope
ch.swpenv_mode = (byte)(data >> 6);
if ((data & 0x80) != 0)
{
ch.swpenv_gain = (byte)(data & 0x3F);
}
// エンベロープ1段階の演算
ch.swpenv_decay = (byte)(data & 0x3F);
ch.swpenv_phaseacc = (double)ch.envelope_speed * (double)(ch.swpenv_decay + 1) * rate / (232.0 * 960.0);
break;
case 0x4085: // Sweep Bias
if ((data & 0x40) != 0) ch.sweep_bias = (data & 0x3f) - 0x40;
else ch.sweep_bias = data & 0x3f;
ch.lfo_addr = 0;
break;
case 0x4086: // Effector(LFO) Frequency(Low)
ch.lfo_frequency = (ch.lfo_frequency & (~0x00FF)) | data;
break;
case 0x4087: // Effector(LFO) Frequency(High)
ch.lfo_enable = (byte)((~data & 0x80));
ch.lfo_frequency = (ch.lfo_frequency & 0x00FF) | ((data & 0x0F) << 8);
break;
case 0x4088: // Effector(LFO) wavetable
if (ch.lfo_enable == 0)
{
// FIFO?
for (byte i = 0; i < 31; i++)
{
ch.lfo_wavetable[i * 2 + 0] = ch.lfo_wavetable[(i + 1) * 2 + 0];
ch.lfo_wavetable[i * 2 + 1] = ch.lfo_wavetable[(i + 1) * 2 + 1];
}
ch.lfo_wavetable[31 * 2 + 0] = (byte)(data & 0x07);
ch.lfo_wavetable[31 * 2 + 1] = (byte)(data & 0x07);
}
break;
case 0x4089: // Sound control
{
ch.master_volume = tbl_writesub[data & 3];
ch.wave_setup = (byte)(data & 0x80);
}
break;
case 0x408A: // Sound control 2
ch.envelope_speed = data;
break;
default:
break;
}
}
}
public override void Write(ushort addr, byte data)
{
WriteSub(addr, data, fds, sampling_rate);
}
public override byte Read(ushort addr)
{
byte data = (byte)(addr >> 8);
if (addr >= 0x4040 && addr <= 0x407F)
{
data = (byte)(fds.main_wavetable[addr & 0x3F] | 0x40);
}
else
if (addr == 0x4090)
{
data = (byte)((fds.volenv_gain & 0x3F) | 0x40);
}
else
if (addr == 0x4092)
{
data = (byte)((fds.swpenv_gain & 0x3F) | 0x40);
}
return data;
}
int[] tbl_process = { 0, 1, 2, 4, 0, -4, -2, -1 };
public override int Process(int channel)
{
// Envelope unit
if (fds.envelope_enable != 0 && fds.envelope_speed != 0)
{
// Volume envelope
if (fds.volenv_mode < 2)
{
double decay = ((double)fds.envelope_speed * (double)(fds.volenv_decay + 1) * (double)sampling_rate) / (232.0 * 960.0);
fds.volenv_phaseacc -= 1.0;
while (fds.volenv_phaseacc < 0.0)
{
fds.volenv_phaseacc += decay;
if (fds.volenv_mode == 0)
{
// 減少モード
if (fds.volenv_gain != 0)
fds.volenv_gain--;
}
else
if (fds.volenv_mode == 1)
{
if (fds.volenv_gain < 0x20)
fds.volenv_gain++;
}
}
}
// Sweep envelope
if (fds.swpenv_mode < 2)
{
double decay = ((double)fds.envelope_speed * (double)(fds.swpenv_decay + 1) * (double)sampling_rate) / (232.0 * 960.0);
fds.swpenv_phaseacc -= 1.0;
while (fds.swpenv_phaseacc < 0.0)
{
fds.swpenv_phaseacc += decay;
if (fds.swpenv_mode == 0)
{
// 減少モード
if (fds.swpenv_gain != 0)
fds.swpenv_gain--;
}
else
if (fds.swpenv_mode == 1)
{
if (fds.swpenv_gain < 0x20)
fds.swpenv_gain++;
}
}
}
}
// Effector(LFO) unit
int sub_freq = 0;
// if( fds.lfo_enable && fds.envelope_speed && fds.lfo_frequency ) {
if (fds.lfo_enable != 0)
{
if (fds.lfo_frequency != 0)
{
fds.lfo_phaseacc -= (1789772.5 * (double)fds.lfo_frequency) / 65536.0;
while (fds.lfo_phaseacc < 0.0)
{
fds.lfo_phaseacc += (double)sampling_rate;
if (fds.lfo_wavetable[fds.lfo_addr] == 4)
fds.sweep_bias = 0;
else
fds.sweep_bias += tbl_process[fds.lfo_wavetable[fds.lfo_addr]];
fds.lfo_addr = (fds.lfo_addr + 1) & 63;
}
}
if (fds.sweep_bias > 63)
fds.sweep_bias -= 128;
else if (fds.sweep_bias < -64)
fds.sweep_bias += 128;
int sub_multi = fds.sweep_bias * fds.swpenv_gain;
if ((sub_multi & 0x0F) != 0)
{
// 16で割り切れない場合
sub_multi = (sub_multi / 16);
if (fds.sweep_bias >= 0)
sub_multi += 2; // 正の場合
else
sub_multi -= 1; // 負の場合
}
else
{
// 16で割り切れる場合
sub_multi = (sub_multi / 16);
}
// 193を超えると-258する(-64へラップ)
if (sub_multi > 193)
sub_multi -= 258;
// -64を下回ると+256する(192へラップ)
if (sub_multi < -64)
sub_multi += 256;
sub_freq = (fds.main_frequency) * sub_multi / 64;
}
// Main unit
int output = 0;
if (fds.main_enable != 0 && fds.main_frequency != 0 && fds.wave_setup == 0)
{
int freq;
int main_addr_old = fds.main_addr;
freq = (int)((fds.main_frequency + sub_freq) * 1789772.5 / 65536.0);
fds.main_addr = (fds.main_addr + freq + 64 * sampling_rate) % (64 * sampling_rate);
// 1周期を超えたらボリューム更新
if (main_addr_old > fds.main_addr)
fds.now_volume = (fds.volenv_gain < 0x21) ? fds.volenv_gain : 0x20;
output = fds.main_wavetable[(fds.main_addr / sampling_rate) & 0x3f] * 8 * fds.now_volume * fds.master_volume / 30;
if (fds.now_volume != 0)
fds.now_freq = freq * 4;
else
fds.now_freq = 0;
}
else
{
fds.now_freq = 0;
output = 0;
}
// LPF
output = (output_buf[0] * 2 + output) / 3;
output_buf[0] = output;
fds.output = output;
return fds.output;
}
internal void SyncWrite(ushort addr, byte data)
{
WriteSub(addr, data, fds_sync, 1789772.5d);
}
internal byte SyncRead(ushort addr)
{
byte data = (byte)(addr >> 8);
if (addr >= 0x4040 && addr <= 0x407F)
{
data = (byte)(fds_sync.main_wavetable[addr & 0x3F] | 0x40);
}
else
if (addr == 0x4090)
{
data = (byte)((fds_sync.volenv_gain & 0x3F) | 0x40);
}
else
if (addr == 0x4092)
{
data = (byte)((fds_sync.swpenv_gain & 0x3F) | 0x40);
}
return data;
}
public override bool Sync(int cycles)
{
// Envelope unit
if (fds_sync.envelope_enable != 0 && fds_sync.envelope_speed != 0)
{
// Volume envelope
double decay;
if (fds_sync.volenv_mode < 2)
{
decay = ((double)fds_sync.envelope_speed * (double)(fds_sync.volenv_decay + 1) * 1789772.5) / (232.0 * 960.0);
fds_sync.volenv_phaseacc -= (double)cycles;
while (fds_sync.volenv_phaseacc < 0.0)
{
fds_sync.volenv_phaseacc += decay;
if (fds_sync.volenv_mode == 0)
{
// 減少モード
if (fds_sync.volenv_gain != 0)
fds_sync.volenv_gain--;
}
else
if (fds_sync.volenv_mode == 1)
{
// 増加モード
if (fds_sync.volenv_gain < 0x20)
fds_sync.volenv_gain++;
}
}
}
// Sweep envelope
if (fds_sync.swpenv_mode < 2)
{
decay = ((double)fds_sync.envelope_speed * (double)(fds_sync.swpenv_decay + 1) * 1789772.5) / (232.0 * 960.0);
fds_sync.swpenv_phaseacc -= (double)cycles;
while (fds_sync.swpenv_phaseacc < 0.0)
{
fds_sync.swpenv_phaseacc += decay;
if (fds_sync.swpenv_mode == 0)
{
// 減少モード
if (fds_sync.swpenv_gain != 0)
fds_sync.swpenv_gain--;
}
else
if (fds_sync.swpenv_mode == 1)
{
// 増加モード
if (fds_sync.swpenv_gain < 0x20)
fds_sync.swpenv_gain++;
}
}
}
}
return false;
}
public override int GetFreq(int channel)
{
return fds.now_freq;
}
private class FDSSOUND
{
public byte[] reg = new byte[0x80];
public byte volenv_mode; // Volume Envelope
public byte volenv_gain;
public byte volenv_decay;
public double volenv_phaseacc;
public byte swpenv_mode; // Sweep Envelope
public byte swpenv_gain;
public byte swpenv_decay;
public double swpenv_phaseacc;
// For envelope unit
public byte envelope_enable; // $4083 bit6
public byte envelope_speed; // $408A
// For $4089
public byte wave_setup; // bit7
public int master_volume; // bit1-0
// For Main unit
public int[] main_wavetable = new int[64];
public byte main_enable;
public int main_frequency;
public int main_addr;
// For Effector(LFO) unit
public byte[] lfo_wavetable = new byte[64];
public byte lfo_enable; // 0:Enable 1:Wavetable setup
public int lfo_frequency;
public int lfo_addr;
public double lfo_phaseacc;
// For Sweep unit
public int sweep_bias;
// Misc
public int now_volume;
public int now_freq;
public int output;
public void ZeroMemory()
{
Array.Clear(reg, 0, reg.Length);
volenv_mode = 0;
volenv_gain = 0;
volenv_decay = 0;
volenv_phaseacc = 0.0;
swpenv_mode = 0;
swpenv_gain = 0;
swpenv_decay = 0;
swpenv_phaseacc = 0.0;
envelope_enable = 0;
envelope_speed = 0;
wave_setup = 0;
master_volume = 0;
Array.Clear(main_wavetable, 0, main_wavetable.Length);
main_enable = 0;
main_frequency = 0;
main_addr = 0;
Array.Clear(lfo_wavetable, 0, lfo_wavetable.Length);
lfo_enable = 0;
lfo_frequency = 0;
lfo_addr = 0;
lfo_phaseacc = 0.0;
sweep_bias = 0;
now_volume = 0;
now_freq = 0;
output = 0;
}
}
}
}

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using System;
namespace VirtualNes.Core
{
public class APU_FME7 : APU_INTERFACE
{
public override void Reset(float fClock, int nRate)
{
//todo : 实现
}
public override void Setup(float fClock, int nRate)
{
//todo : 实现
}
public override void Write(ushort addr, byte data)
{
//todo : 实现
}
public override int Process(int channel)
{
//todo : 实现
return 0;
}
}
}

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namespace VirtualNes.Core
{
public abstract class APU_INTERFACE
{
public const float APU_CLOCK = 1789772.5f;
public virtual void Dispose() { }
public abstract void Reset(float fClock, int nRate);
public abstract void Setup(float fClock, int nRate);
public abstract void Write(ushort addr, byte data);
public abstract int Process(int channel);
public virtual byte Read(ushort addr)
{
return (byte)(addr >> 8);
}
public virtual void WriteSync(ushort addr, byte data) { }
public virtual byte ReadSync(ushort addr) { return 0; }
public virtual void VSync() { }
public virtual bool Sync(int cycles) { return false; }
public virtual int GetFreq(int channel) { return 0; }
public virtual int GetStateSize() { return 0; }
public virtual void SaveState(byte[] p) { }
public virtual void LoadState(byte[] p) { }
public static int INT2FIX(int x)
{
return x << 16;
}
public static int FIX2INT(int x)
{
return x >> 16;
}
}
}

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//using Codice.CM.Client.Differences;
using System;
namespace VirtualNes.Core
{
public class APU_MMC5 : APU_INTERFACE
{
public const int RECTANGLE_VOL_SHIFT = 8;
public const int DAOUT_VOL_SHIFT = 6;
SYNCRECTANGLE sch0 = new SYNCRECTANGLE();
SYNCRECTANGLE sch1 = new SYNCRECTANGLE();
RECTANGLE ch0 = new RECTANGLE();
RECTANGLE ch1 = new RECTANGLE();
byte reg5010;
byte reg5011;
byte reg5015;
byte sync_reg5015;
int FrameCycle;
float cpu_clock;
int cycle_rate;
// Tables
static int[] vbl_length = new int[32];
static int[] duty_lut = new int[4];
static int[] decay_lut = new int[16];
static int[] vbl_lut = new int[32];
public APU_MMC5()
{
// 仮設定
Reset(APU_INTERFACE.APU_CLOCK, 22050);
}
public override void Reset(float fClock, int nRate)
{
sch0.ZeroMemory();
sch1.ZeroMemory();
reg5010 = reg5011 = reg5015 = 0;
sync_reg5015 = 0;
FrameCycle = 0;
Setup(fClock, nRate);
for (ushort addr = 0x5000; addr <= 0x5015; addr++)
{
Write(addr, 0);
}
}
public override void Setup(float fClock, int nRate)
{
cpu_clock = fClock;
cycle_rate = (int)(fClock * 65536.0f / nRate);
// Create Tables
int i;
int samples = (int)(nRate / 60.0f);
for (i = 0; i < 16; i++)
decay_lut[i] = (i + 1) * samples * 5;
for (i = 0; i < 32; i++)
vbl_lut[i] = vbl_length[i] * samples * 5;
}
public override void Write(ushort addr, byte data)
{
switch (addr)
{
// MMC5 CH0 rectangle
case 0x5000:
ch0.reg[0] = data;
ch0.volume = (byte)(data & 0x0F);
ch0.holdnote = (byte)(data & 0x20);
ch0.fixed_envelope = (byte)(data & 0x10);
ch0.env_decay = decay_lut[data & 0x0F];
ch0.duty_flip = duty_lut[data >> 6];
break;
case 0x5001:
ch0.reg[1] = data;
break;
case 0x5002:
ch0.reg[2] = data;
ch0.freq = INT2FIX(((ch0.reg[3] & 0x07) << 8) + data + 1);
break;
case 0x5003:
ch0.reg[3] = data;
ch0.vbl_length = vbl_lut[data >> 3];
ch0.env_vol = 0;
ch0.freq = INT2FIX(((data & 0x07) << 8) + ch0.reg[2] + 1);
if ((reg5015 & 0x01) != 0)
ch0.enable = 0xFF;
break;
// MMC5 CH1 rectangle
case 0x5004:
ch1.reg[0] = data;
ch1.volume = (byte)(data & 0x0F);
ch1.holdnote = (byte)(data & 0x20);
ch1.fixed_envelope = (byte)(data & 0x10);
ch1.env_decay = decay_lut[data & 0x0F];
ch1.duty_flip = duty_lut[data >> 6];
break;
case 0x5005:
ch1.reg[1] = data;
break;
case 0x5006:
ch1.reg[2] = data;
ch1.freq = INT2FIX(((ch1.reg[3] & 0x07) << 8) + data + 1);
break;
case 0x5007:
ch1.reg[3] = data;
ch1.vbl_length = vbl_lut[data >> 3];
ch1.env_vol = 0;
ch1.freq = INT2FIX(((data & 0x07) << 8) + ch1.reg[2] + 1);
if ((reg5015 & 0x02) != 0)
ch1.enable = 0xFF;
break;
case 0x5010:
reg5010 = data;
break;
case 0x5011:
reg5011 = data;
break;
case 0x5012:
case 0x5013:
case 0x5014:
break;
case 0x5015:
reg5015 = data;
if ((reg5015 & 0x01) != 0)
{
ch0.enable = 0xFF;
}
else
{
ch0.enable = 0;
ch0.vbl_length = 0;
}
if ((reg5015 & 0x02) != 0)
{
ch1.enable = 0xFF;
}
else
{
ch1.enable = 0;
ch1.vbl_length = 0;
}
break;
}
}
internal void SyncWrite(ushort addr, byte data)
{
switch (addr)
{
// MMC5 CH0 rectangle
case 0x5000:
sch0.reg[0] = data;
sch0.holdnote = (byte)(data & 0x20);
break;
case 0x5001:
case 0x5002:
sch0.reg[addr & 3] = data;
break;
case 0x5003:
sch0.reg[3] = data;
sch0.vbl_length = vbl_length[data >> 3];
if ((sync_reg5015 & 0x01) != 0)
sch0.enable = 0xFF;
break;
// MMC5 CH1 rectangle
case 0x5004:
sch1.reg[0] = data;
sch1.holdnote = (byte)(data & 0x20);
break;
case 0x5005:
case 0x5006:
sch1.reg[addr & 3] = data;
break;
case 0x5007:
sch1.reg[3] = data;
sch1.vbl_length = vbl_length[data >> 3];
if ((sync_reg5015 & 0x02) != 0)
sch1.enable = 0xFF;
break;
case 0x5010:
case 0x5011:
case 0x5012:
case 0x5013:
case 0x5014:
break;
case 0x5015:
sync_reg5015 = data;
if ((sync_reg5015 & 0x01) != 0)
{
sch0.enable = 0xFF;
}
else
{
sch0.enable = 0;
sch0.vbl_length = 0;
}
if ((sync_reg5015 & 0x02) != 0)
{
sch1.enable = 0xFF;
}
else
{
sch1.enable = 0;
sch1.vbl_length = 0;
}
break;
}
}
internal byte SyncRead(ushort addr)
{
byte data = 0;
if (addr == 0x5015)
{
if ((sch0.enable != 0) && sch0.vbl_length > 0) data |= (1 << 0);
if ((sch1.enable != 0) && sch1.vbl_length > 0) data |= (1 << 1);
}
return data;
}
public override bool Sync(int cycles)
{
FrameCycle += cycles;
if (FrameCycle >= 7457 * 5 / 2)
{
FrameCycle -= 7457 * 5 / 2;
if (sch0.enable != 0 && sch0.holdnote == 0)
{
if ((sch0.vbl_length) != 0)
{
sch0.vbl_length--;
}
}
if (sch1.enable != 0 && sch1.holdnote == 0)
{
if ((sch1.vbl_length) != 0)
{
sch1.vbl_length--;
}
}
}
return false;
}
public override int Process(int channel)
{
switch (channel)
{
case 0:
return RectangleRender(ch0);
case 1:
return RectangleRender(ch1);
case 2:
return reg5011 << DAOUT_VOL_SHIFT;
}
return 0;
}
public override int GetFreq(int channel)
{
if (channel == 0 || channel == 1)
{
RECTANGLE ch = null;
if (channel == 0) ch = ch0;
else ch = ch1;
if (ch.enable == 0 || ch.vbl_length <= 0)
return 0;
if (ch.freq < INT2FIX(8))
return 0;
if (ch.fixed_envelope != 0)
{
if (ch.volume == 0)
return 0;
}
else
{
if ((0x0F - ch.env_vol) == 0)
return 0;
}
return (int)(256.0f * cpu_clock / (FIX2INT(ch.freq) * 16.0f));
}
return 0;
}
private int RectangleRender(RECTANGLE ch)
{
if (ch.enable == 0 || ch.vbl_length <= 0)
return 0;
// vbl length counter
if (ch.holdnote == 0)
ch.vbl_length -= 5;
// envelope unit
ch.env_phase -= 5 * 4;
while (ch.env_phase < 0)
{
ch.env_phase += ch.env_decay;
if ((ch.holdnote) != 0)
ch.env_vol = (byte)((ch.env_vol + 1) & 0x0F);
else if (ch.env_vol < 0x0F)
ch.env_vol++;
}
if (ch.freq < INT2FIX(8))
return 0;
int volume;
if ((ch.fixed_envelope) != 0)
volume = ch.volume;
else
volume = (0x0F - ch.env_vol);
int output = volume << RECTANGLE_VOL_SHIFT;
ch.phaseacc -= cycle_rate;
if (ch.phaseacc >= 0)
{
if (ch.adder < ch.duty_flip)
ch.output_vol = output;
else
ch.output_vol = -output;
return ch.output_vol;
}
if (ch.freq > cycle_rate)
{
ch.phaseacc += ch.freq;
ch.adder = (ch.adder + 1) & 0x0F;
if (ch.adder < ch.duty_flip)
ch.output_vol = output;
else
ch.output_vol = -output;
}
else
{
// 加重平均
int num_times, total;
num_times = total = 0;
while (ch.phaseacc < 0)
{
ch.phaseacc += ch.freq;
ch.adder = (ch.adder + 1) & 0x0F;
if (ch.adder < ch.duty_flip)
total += output;
else
total -= output;
num_times++;
}
ch.output_vol = total / num_times;
}
return ch.output_vol;
}
public class SYNCRECTANGLE
{
// For sync
public byte[] reg = new byte[4];
public byte enable;
public byte holdnote;
public byte[] dummy = new byte[2];
public int vbl_length;
public void ZeroMemory()
{
Array.Clear(reg, 0, reg.Length);
enable = 0;
holdnote = 0;
Array.Clear(dummy, 0, dummy.Length);
vbl_length = 0;
}
}
public class RECTANGLE
{
public byte[] reg = new byte[4];
public byte enable;
public int vbl_length;
public int phaseacc;
public int freq;
public int output_vol;
public byte fixed_envelope;
public byte holdnote;
public byte volume;
public byte env_vol;
public int env_phase;
public int env_decay;
public int adder;
public int duty_flip;
}
}
}

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using RECTANGLE = VirtualNes.Core.APU_VRC6.RECTANGLE;
using SAWTOOTH = VirtualNes.Core.APU_VRC6.SAWTOOTH;
namespace VirtualNes.Core
{
public class APU_N106 : APU_INTERFACE
{
RECTANGLE ch0 = new RECTANGLE();
RECTANGLE ch1 = new RECTANGLE();
SAWTOOTH ch2 = new SAWTOOTH();
float cpu_clock;
int cycle_rate;
public APU_N106()
{
Reset(APU_CLOCK, 22050);
}
public override void Reset(float fClock, int nRate)
{
ch0.ZeroMemory();
ch1.ZeroMemory();
ch2.ZeroMemory();
Setup(fClock, nRate);
}
public override void Setup(float fClock, int nRate)
{
cpu_clock = fClock;
cycle_rate = (int)(fClock * 65536.0f / nRate);
}
public override void Write(ushort addr, byte data)
{
switch (addr)
{
// VRC6 CH0 rectangle
case 0x9000:
ch0.reg[0] = data;
ch0.gate = (byte)(data & 0x80);
ch0.volume = (byte)(data & 0x0F);
ch0.duty_pos = (byte)((data >> 4) & 0x07);
break;
case 0x9001:
ch0.reg[1] = data;
ch0.freq = INT2FIX((((ch0.reg[2] & 0x0F) << 8) | data) + 1);
break;
case 0x9002:
ch0.reg[2] = data;
ch0.enable = (byte)(data & 0x80);
ch0.freq = INT2FIX((((data & 0x0F) << 8) | ch0.reg[1]) + 1);
break;
// VRC6 CH1 rectangle
case 0xA000:
ch1.reg[0] = data;
ch1.gate = (byte)(data & 0x80);
ch1.volume = (byte)(data & 0x0F);
ch1.duty_pos = (byte)((data >> 4) & 0x07);
break;
case 0xA001:
ch1.reg[1] = data;
ch1.freq = INT2FIX((((ch1.reg[2] & 0x0F) << 8) | data) + 1);
break;
case 0xA002:
ch1.reg[2] = data;
ch1.enable = (byte)(data & 0x80);
ch1.freq = INT2FIX((((data & 0x0F) << 8) | ch1.reg[1]) + 1);
break;
// VRC6 CH2 sawtooth
case 0xB000:
ch2.reg[1] = data;
ch2.phaseaccum = (byte)(data & 0x3F);
break;
case 0xB001:
ch2.reg[1] = data;
ch2.freq = INT2FIX((((ch2.reg[2] & 0x0F) << 8) | data) + 1);
break;
case 0xB002:
ch2.reg[2] = data;
ch2.enable = (byte)(data & 0x80);
ch2.freq = INT2FIX((((data & 0x0F) << 8) | ch2.reg[1]) + 1);
// ch2.adder = 0; // クリアするとノイズの原因になる
// ch2.accum = 0; // クリアするとノイズの原因になる
break;
}
}
public override int Process(int channel)
{
switch (channel)
{
case 0:
return RectangleRender(ch0);
case 1:
return RectangleRender(ch1);
case 2:
return SawtoothRender(ch2);
}
return 0;
}
public override int GetFreq(int channel)
{
if (channel == 0 || channel == 1)
{
RECTANGLE ch;
if (channel == 0) ch = ch0;
else ch = ch1;
if (ch.enable == 0 || ch.gate != 0 || ch.volume == 0)
return 0;
if (ch.freq < INT2FIX(8))
return 0;
return (int)((256.0f * cpu_clock / (FIX2INT(ch.freq) * 16.0f)));
}
if (channel == 2)
{
SAWTOOTH ch = ch2;
if (ch.enable == 0 || ch.phaseaccum == 0)
return 0;
if (ch.freq < INT2FIX(8))
return 0;
return (int)(256.0f * cpu_clock / (FIX2INT(ch.freq) * 14.0f));
}
return 0;
}
int RectangleRender(RECTANGLE ch)
{
// Enable?
if (ch.enable == 0)
{
ch.output_vol = 0;
ch.adder = 0;
return ch.output_vol;
}
// Digitized output
if (ch.gate != 0)
{
ch.output_vol = ch.volume << APU_VRC6.RECTANGLE_VOL_SHIFT;
return ch.output_vol;
}
// 一定以上の周波数は処理しない(無駄)
if (ch.freq < INT2FIX(8))
{
ch.output_vol = 0;
return ch.output_vol;
}
ch.phaseacc -= cycle_rate;
if (ch.phaseacc >= 0)
return ch.output_vol;
int output = ch.volume << APU_VRC6.RECTANGLE_VOL_SHIFT;
if (ch.freq > cycle_rate)
{
// add 1 step
ch.phaseacc += ch.freq;
ch.adder = (byte)((ch.adder + 1) & 0x0F);
if (ch.adder <= ch.duty_pos)
ch.output_vol = output;
else
ch.output_vol = -output;
}
else
{
// average calculate
int num_times, total;
num_times = total = 0;
while (ch.phaseacc < 0)
{
ch.phaseacc += ch.freq;
ch.adder = (byte)((ch.adder + 1) & 0x0F);
if (ch.adder <= ch.duty_pos)
total += output;
else
total += -output;
num_times++;
}
ch.output_vol = total / num_times;
}
return ch.output_vol;
}
int SawtoothRender(SAWTOOTH ch)
{
// Digitized output
if (ch.enable == 0)
{
ch.output_vol = 0;
return ch.output_vol;
}
// 一定以上の周波数は処理しない(無駄)
if (ch.freq < INT2FIX(9))
{
return ch.output_vol;
}
ch.phaseacc -= cycle_rate / 2;
if (ch.phaseacc >= 0)
return ch.output_vol;
if (ch.freq > cycle_rate / 2)
{
// add 1 step
ch.phaseacc += ch.freq;
if (++ch.adder >= 7)
{
ch.adder = 0;
ch.accum = 0;
}
ch.accum += ch.phaseaccum;
ch.output_vol = ch.accum << APU_VRC6.SAWTOOTH_VOL_SHIFT;
}
else
{
// average calculate
int num_times, total;
num_times = total = 0;
while (ch.phaseacc < 0)
{
ch.phaseacc += ch.freq;
if (++ch.adder >= 7)
{
ch.adder = 0;
ch.accum = 0;
}
ch.accum += ch.phaseaccum;
total += ch.accum << APU_VRC6.SAWTOOTH_VOL_SHIFT;
num_times++;
}
ch.output_vol = (total / num_times);
}
return ch.output_vol;
}
}
}

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using System;
namespace VirtualNes.Core
{
public class APU_VRC6 : APU_INTERFACE
{
public const int RECTANGLE_VOL_SHIFT = 8;
public const int SAWTOOTH_VOL_SHIFT = 6;
private RECTANGLE ch0 = new RECTANGLE();
private RECTANGLE ch1 = new RECTANGLE();
private SAWTOOTH ch2 = new SAWTOOTH();
private int cycle_rate;
private float cpu_clock;
public APU_VRC6()
{
Reset(APU_CLOCK, 22050);
}
public override void Reset(float fClock, int nRate)
{
ch0.ZeroMemory();
ch1.ZeroMemory();
ch2.ZeroMemory();
Setup(fClock, nRate);
}
public override void Setup(float fClock, int nRate)
{
cpu_clock = fClock;
cycle_rate = (int)(fClock * 65536.0f / nRate);
}
public override void Write(ushort addr, byte data)
{
switch (addr)
{
// VRC6 CH0 rectangle
case 0x9000:
ch0.reg[0] = data;
ch0.gate = (byte)(data & 0x80);
ch0.volume = (byte)(data & 0x0F);
ch0.duty_pos = (byte)((data >> 4) & 0x07);
break;
case 0x9001:
ch0.reg[1] = data;
ch0.freq = INT2FIX((((ch0.reg[2] & 0x0F) << 8) | data) + 1);
break;
case 0x9002:
ch0.reg[2] = data;
ch0.enable = (byte)(data & 0x80);
ch0.freq = INT2FIX((((data & 0x0F) << 8) | ch0.reg[1]) + 1);
break;
// VRC6 CH1 rectangle
case 0xA000:
ch1.reg[0] = data;
ch1.gate = (byte)(data & 0x80);
ch1.volume = (byte)(data & 0x0F);
ch1.duty_pos = (byte)((data >> 4) & 0x07);
break;
case 0xA001:
ch1.reg[1] = data;
ch1.freq = INT2FIX((((ch1.reg[2] & 0x0F) << 8) | data) + 1);
break;
case 0xA002:
ch1.reg[2] = data;
ch1.enable = (byte)(data & 0x80);
ch1.freq = INT2FIX((((data & 0x0F) << 8) | ch1.reg[1]) + 1);
break;
// VRC6 CH2 sawtooth
case 0xB000:
ch2.reg[1] = data;
ch2.phaseaccum = (byte)(data & 0x3F);
break;
case 0xB001:
ch2.reg[1] = data;
ch2.freq = INT2FIX((((ch2.reg[2] & 0x0F) << 8) | data) + 1);
break;
case 0xB002:
ch2.reg[2] = data;
ch2.enable = (byte)(data & 0x80);
ch2.freq = INT2FIX((((data & 0x0F) << 8) | ch2.reg[1]) + 1);
// ch2.adder = 0; // 僋儕傾偡傞偲僲僀僘偺尨場偵側傞
// ch2.accum = 0; // 僋儕傾偡傞偲僲僀僘偺尨場偵側傞
break;
}
}
public override int Process(int channel)
{
switch (channel)
{
case 0:
return RectangleRender(ch0);
case 1:
return RectangleRender(ch1);
case 2:
return SawtoothRender(ch2);
}
return 0;
}
public override int GetFreq(int channel)
{
if (channel == 0 || channel == 1)
{
RECTANGLE ch = null;
if (channel == 0) ch = ch0;
else ch = ch1;
if (ch.enable == 0 || ch.gate != 0 || ch.volume == 0)
return 0;
if (ch.freq < INT2FIX(8))
return 0;
return (int)(256.0f * cpu_clock / (FIX2INT(ch.freq) * 16.0f));
}
if (channel == 2)
{
SAWTOOTH ch = ch2;
if (ch.enable == 0 || ch.phaseaccum == 0)
return 0;
if (ch.freq < INT2FIX(8))
return 0;
return (int)(256.0f * cpu_clock / (FIX2INT(ch.freq) * 14.0f));
}
return 0;
}
private int RectangleRender(RECTANGLE ch)
{
// Enable?
if (ch.enable == 0)
{
ch.output_vol = 0;
ch.adder = 0;
return ch.output_vol;
}
// Digitized output
if (ch.gate != 0)
{
ch.output_vol = ch.volume << RECTANGLE_VOL_SHIFT;
return ch.output_vol;
}
// 堦掕埲忋偺廃攇悢偼張棟偟側偄(柍懯)
if (ch.freq < INT2FIX(8))
{
ch.output_vol = 0;
return ch.output_vol;
}
ch.phaseacc -= cycle_rate;
if (ch.phaseacc >= 0)
return ch.output_vol;
int output = ch.volume << RECTANGLE_VOL_SHIFT;
if (ch.freq > cycle_rate)
{
// add 1 step
ch.phaseacc += ch.freq;
ch.adder = (byte)((ch.adder + 1) & 0x0F);
if (ch.adder <= ch.duty_pos)
ch.output_vol = output;
else
ch.output_vol = -output;
}
else
{
// average calculate
int num_times, total;
num_times = total = 0;
while (ch.phaseacc < 0)
{
ch.phaseacc += ch.freq;
ch.adder = (byte)((ch.adder + 1) & 0x0F);
if (ch.adder <= ch.duty_pos)
total += output;
else
total += -output;
num_times++;
}
ch.output_vol = total / num_times;
}
return ch.output_vol;
}
private int SawtoothRender(SAWTOOTH ch)
{
// Digitized output
if (ch.enable == 0)
{
ch.output_vol = 0;
return ch.output_vol;
}
// 堦掕埲忋偺廃攇悢偼張棟偟側偄(柍懯)
if (ch.freq < INT2FIX(9))
{
return ch.output_vol;
}
ch.phaseacc -= cycle_rate / 2;
if (ch.phaseacc >= 0)
return ch.output_vol;
if (ch.freq > cycle_rate / 2)
{
// add 1 step
ch.phaseacc += ch.freq;
if (++ch.adder >= 7)
{
ch.adder = 0;
ch.accum = 0;
}
ch.accum += ch.phaseaccum;
ch.output_vol = ch.accum << SAWTOOTH_VOL_SHIFT;
}
else
{
// average calculate
int num_times, total;
num_times = total = 0;
while (ch.phaseacc < 0)
{
ch.phaseacc += ch.freq;
if (++ch.adder >= 7)
{
ch.adder = 0;
ch.accum = 0;
}
ch.accum += ch.phaseaccum;
total += ch.accum << SAWTOOTH_VOL_SHIFT;
num_times++;
}
ch.output_vol = (total / num_times);
}
return ch.output_vol;
}
public class RECTANGLE
{
public byte[] reg = new byte[3];
public byte enable;
public byte gate;
public byte volume;
public int phaseacc;
public int freq;
public int output_vol;
public byte adder;
public byte duty_pos;
public void ZeroMemory()
{
Array.Clear(reg, 0, reg.Length);
enable = 0;
gate = 0;
volume = 0;
phaseacc = 0;
freq = 0;
output_vol = 0;
adder = 0;
duty_pos = 0;
}
}
public class SAWTOOTH
{
public byte[] reg = new byte[3];
public byte enable;
public byte volume;
public int phaseacc;
public int freq;
public int output_vol;
public byte adder;
public byte accum;
public byte phaseaccum;
public void ZeroMemory()
{
Array.Clear(reg, 0, reg.Length);
enable = 0;
volume = 0;
phaseacc = 0;
freq = 0;
output_vol = 0;
adder = 0;
accum = 0;
phaseaccum = 0;
}
}
}
}

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