Files
QuanTAlib/lib/trends/ssf/Ssf.cs
T
Miha Kralj d7dbd7078a Refactor event handling and improve argument validation across indicators
- Updated event handler signatures to use TValueEventArgs for consistency in Mama, Mgdi, Pwma, Rma, Sma, Ssf, Super, T3, Tema, Trima, Usf, Vidya, Wma, and Atr classes.
- Enhanced argument validation by specifying parameter names in exceptions for clarity.
- Adjusted tests to align with new event handler signatures.
- Improved code readability and maintainability by using structured records and lambda expressions.
2025-12-27 15:46:28 -08:00

300 lines
8.7 KiB
C#

using System.Runtime.CompilerServices;
using System.Runtime.InteropServices;
namespace QuanTAlib;
/// <summary>
/// SSF: Ehlers Super Smooth Filter
/// </summary>
/// <remarks>
/// SSF is a 2-pole Butterworth filter that offers superior noise reduction with minimal lag.
///
/// Formula:
/// arg = 1.414 * 3.14159 / period
/// c2 = 2 * exp(-arg) * cos(arg)
/// c3 = -exp(-2 * arg)
/// c1 = 1 - c2 - c3
/// SSF = c1 * (src + src[1]) / 2 + c2 * SSF[1] + c3 * SSF[2]
/// </remarks>
[SkipLocalsInit]
public sealed class Ssf : AbstractBase
{
[StructLayout(LayoutKind.Auto)]
private record struct State(double Ssf1, double Ssf2, double PrevInput, double LastValidValue, int Count, bool IsHot)
{
public static State New() => new() { Ssf1 = 0, Ssf2 = 0, PrevInput = 0, LastValidValue = 0, Count = 0, IsHot = false };
}
private readonly double _c1, _c2, _c3;
private readonly TValuePublishedHandler _handler;
private State _state = State.New();
private State _p_state = State.New();
/// <summary>
/// Creates SSF with specified period.
/// </summary>
/// <param name="period">Period for SSF calculation (must be > 0)</param>
public Ssf(int period)
{
if (period <= 0)
throw new ArgumentException("Period must be greater than 0", nameof(period));
// Use high precision constants
// Note: Some implementations (like Ooples/PineScript) use 1.414 * 3.14159 which causes divergence
double sqrt2_pi = Math.Sqrt(2) * Math.PI;
double arg = sqrt2_pi / period;
double exp_arg = Math.Exp(-arg);
// arg is in radians for Math.Cos (EasyLanguage Cosine takes degrees, but 1.414*180/Period is radians in degrees)
// 1.414 * 180 / Period (degrees) = 1.414 * PI / Period (radians)
// So arg calculated above is correct for Math.Cos (which takes radians)
_c2 = 2.0 * exp_arg * Math.Cos(arg);
_c3 = -exp_arg * exp_arg;
_c1 = 1.0 - _c2 - _c3;
Name = $"Ssf({period})";
WarmupPeriod = period;
_handler = Handle;
}
/// <summary>
/// Creates SSF with specified source and period.
/// </summary>
/// <param name="source">Source to subscribe to</param>
/// <param name="period">Period for SSF calculation</param>
public Ssf(ITValuePublisher source, int period) : this(period)
{
source.Pub += _handler;
}
public Ssf(TSeries source, int period) : this(period)
{
Prime(source.Values);
if (source.Count > 0)
{
Last = new TValue(source.LastTime, Last.Value);
}
source.Pub += _handler;
}
private void Handle(object? sender, TValueEventArgs e) => Update(e.Value, e.IsNew);
public override bool IsHot => _state.IsHot;
public override void Prime(ReadOnlySpan<double> source)
{
if (source.Length == 0) return;
Reset();
int len = source.Length;
int i = 0;
// Find first valid value
for (int k = 0; k < len; k++)
{
if (double.IsFinite(source[k]))
{
_state.LastValidValue = source[k];
_state.Ssf1 = _state.LastValidValue;
_state.Ssf2 = _state.LastValidValue;
_state.PrevInput = _state.LastValidValue;
_state.Count = 1;
i = k + 1;
break;
}
}
for (; i < len; i++)
{
double val = source[i];
if (double.IsFinite(val))
_state.LastValidValue = val;
else
val = _state.LastValidValue;
double ssf = (_state.Count < 4)
? val
: (_c1 * (val + _state.PrevInput) * 0.5) + (_c2 * _state.Ssf1) + (_c3 * _state.Ssf2);
_state.Ssf2 = _state.Ssf1;
_state.Ssf1 = ssf;
_state.PrevInput = val;
_state.Count++;
}
if (_state.Count >= WarmupPeriod)
_state.IsHot = true;
Last = new TValue(DateTime.MinValue, _state.Ssf1);
_p_state = _state;
}
[MethodImpl(MethodImplOptions.AggressiveInlining)]
private double GetValidValue(double input)
{
if (double.IsFinite(input))
{
_state.LastValidValue = input;
return input;
}
return _state.LastValidValue;
}
[MethodImpl(MethodImplOptions.AggressiveInlining)]
public override TValue Update(TValue input, bool isNew = true)
{
if (isNew)
{
_p_state = _state;
}
else
{
_state = _p_state;
}
double val = GetValidValue(input.Value);
if (_state.Count == 0)
{
_state.Ssf1 = val;
_state.Ssf2 = val;
_state.PrevInput = val;
}
double ssf = (_state.Count < 4)
? val
: (_c1 * (val + _state.PrevInput) * 0.5) + (_c2 * _state.Ssf1) + (_c3 * _state.Ssf2);
_state.Ssf2 = _state.Ssf1;
_state.Ssf1 = ssf;
_state.PrevInput = val;
if (isNew) _state.Count++;
if (!_state.IsHot && _state.Count >= WarmupPeriod)
_state.IsHot = true;
Last = new TValue(input.Time, ssf);
PubEvent(Last, isNew);
return Last;
}
public override TSeries Update(TSeries source)
{
if (source.Count == 0) return [];
int len = source.Count;
var t = new List<long>(len);
var v = new List<double>(len);
CollectionsMarshal.SetCount(t, len);
CollectionsMarshal.SetCount(v, len);
var tSpan = CollectionsMarshal.AsSpan(t);
var vSpan = CollectionsMarshal.AsSpan(v);
var sourceValues = source.Values;
var sourceTimes = source.Times;
State state = _state;
CalculateCore(sourceValues, vSpan, _c1, _c2, _c3, WarmupPeriod, ref state);
_state = state;
sourceTimes.CopyTo(tSpan);
_p_state = _state;
Last = new TValue(tSpan[len - 1], vSpan[len - 1]);
return new TSeries(t, v);
}
[MethodImpl(MethodImplOptions.AggressiveInlining)]
private static void CalculateCore(ReadOnlySpan<double> source, Span<double> output, double c1, double c2, double c3, int warmupPeriod, ref State state)
{
int len = source.Length;
int i = 0;
// If starting from scratch (count == 0), find first valid value
if (state.Count == 0)
{
for (; i < len; i++)
{
if (double.IsFinite(source[i]))
{
state.LastValidValue = source[i];
state.Ssf1 = state.LastValidValue;
state.Ssf2 = state.LastValidValue;
state.PrevInput = state.LastValidValue;
output[i] = state.LastValidValue;
state.Count = 1;
i++;
break;
}
output[i] = double.NaN;
}
}
for (; i < len; i++)
{
double val = source[i];
if (double.IsFinite(val))
state.LastValidValue = val;
else
val = state.LastValidValue;
double ssf = (state.Count < 4)
? val
: (c1 * (val + state.PrevInput) * 0.5) + (c2 * state.Ssf1) + (c3 * state.Ssf2);
state.Ssf2 = state.Ssf1;
state.Ssf1 = ssf;
state.PrevInput = val;
output[i] = ssf;
state.Count++;
}
if (!state.IsHot && state.Count >= warmupPeriod)
state.IsHot = true;
}
public static (TSeries Results, Ssf Indicator) Calculate(TSeries source, int period)
{
var ssf = new Ssf(period);
TSeries results = ssf.Update(source);
return (results, ssf);
}
[MethodImpl(MethodImplOptions.AggressiveInlining)]
public static void Calculate(ReadOnlySpan<double> source, Span<double> output, int period)
{
if (period <= 0)
throw new ArgumentException("Period must be greater than 0", nameof(period));
double sqrt2_pi = Math.Sqrt(2) * Math.PI;
double arg = sqrt2_pi / period;
double exp_arg = Math.Exp(-arg);
double c2 = 2.0 * exp_arg * Math.Cos(arg);
double c3 = -exp_arg * exp_arg;
double c1 = 1.0 - c2 - c3;
if (source.Length != output.Length)
throw new ArgumentException("Source and output must have the same length", nameof(output));
if (source.Length == 0) return;
var state = State.New();
CalculateCore(source, output, c1, c2, c3, period, ref state);
}
public override void Reset()
{
_state = State.New();
_p_state = _state;
Last = default;
}
}