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https://github.com/mihakralj/QuanTAlib.git
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ALMA
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@@ -41,7 +41,7 @@
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| **Moving Averages** |||||
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| **Moving Averages** |||||
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| AFIRMA - Autoregressive Finite Impulse Response Moving Average |||||
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| AFIRMA - Autoregressive Finite Impulse Response Moving Average |||||
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| ALMA - Arnaud Legoux Moving Average |||✔️|✔️|
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| ALMA - Arnaud Legoux Moving Average |✔️||✔️|✔️|
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| ARIMA - Autoregressive Integrated Moving Average |||||
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| ARIMA - Autoregressive Integrated Moving Average |||||
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| ATR - Average True Range |✔️|✔️|✔️|✔️|
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| ATR - Average True Range |✔️|✔️|✔️|✔️|
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| ATRP - Average True Range Percent |✔️||✔️||
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| ATRP - Average True Range Percent |✔️||✔️||
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@@ -141,7 +141,7 @@ public abstract class Single_TBars_Indicator : TSeries
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this._p = period;
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this._p = period;
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this._bars = source;
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this._bars = source;
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this._NaN = useNaN;
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this._NaN = useNaN;
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this._bars.Close.Pub += this.Sub;
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this._bars.Pub += this.Sub;
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}
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}
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// overridable Add() method to add/update a single item at the end of the list
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// overridable Add() method to add/update a single item at the end of the list
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@@ -108,5 +108,22 @@ public class TBars : System.Collections.Generic.List<(DateTime t, double o, doub
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_ohlc4.Add((t, (o + h + l + c) * 0.25));
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_ohlc4.Add((t, (o + h + l + c) * 0.25));
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_hlcc4.Add((t, (h + l + c + c) * 0.25));
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_hlcc4.Add((t, (h + l + c + c) * 0.25));
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}
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}
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this.OnEvent(update);
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}
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}
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// delegate used by event handler + event handler (Pub == publisher)
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public delegate
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void NewDataEventHandler(object source, TSeriesEventArgs args);
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public event NewDataEventHandler Pub;
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// Broadcast handler - only to valid targets
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protected virtual void OnEvent(bool update = false)
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{
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if (Pub != null && Pub.Target != this)
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{
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Pub(this, new TSeriesEventArgs { update = update });
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}
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}
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}
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}
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@@ -0,0 +1,66 @@
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namespace QuanTAlib;
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using System;
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/* <summary>
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ALMA: Arnaud Legoux Moving Average
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The ALMA moving average uses the curve of the Normal (Gauss) distribution, which
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can be shifted from 0 to 1. This allows regulating the smoothness and high
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sensitivity of the indicator. Sigma is another parameter that is responsible for
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the shape of the curve coefficients. This moving average reduces lag of the data
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in conjunction with smoothing to reduce noise.
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Sources:
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https://phemex.com/academy/what-is-arnaud-legoux-moving-averages
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https://www.prorealcode.com/prorealtime-indicators/alma-arnaud-legoux-moving-average/
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</summary> */
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public class ALMA_Series : Single_TSeries_Indicator
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{
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private readonly System.Collections.Generic.List<double> _buffer = new();
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private readonly double[] _weight;
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private double _norm;
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private readonly double _offset, _sigma;
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public ALMA_Series(TSeries source, int period, double offset = 0.85, double sigma = 6.0, bool useNaN = false)
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: base(source, period, useNaN)
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{
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_offset = offset;
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_sigma = sigma;
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_weight = new double[period];
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if (this._data.Count > 0) { base.Add(this._data); }
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}
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public override void Add((System.DateTime t, double v) TValue, bool update)
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{
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if (update) { this._buffer[this._buffer.Count - 1] = TValue.v; }
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else { this._buffer.Add(TValue.v); }
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if (this._buffer.Count > this._p) { this._buffer.RemoveAt(0); }
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if (this._buffer.Count <= _p) { calc_weights(); }
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double _weightedSum = 0;
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for (int i = 0; i < this._buffer.Count; i++) { _weightedSum += _weight[i] * _buffer[i]; }
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double _alma = _weightedSum / _norm;
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var ret = (TValue.t, this.Count < this._p - 1 && this._NaN ? double.NaN : _alma);
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base.Add(ret, update);
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}
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private void calc_weights()
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{
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int _len = this._buffer.Count;
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_norm = 0;
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double _m = _offset * (_len - 1);
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double _s = _len / _sigma;
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for (int i = 0; i < _len; i++)
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{
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double _wt = Math.Exp(-((i - _m) * (i - _m)) / (2 * _s * _s));
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_weight[i] = _wt;
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_norm += _wt;
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}
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}
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}
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@@ -0,0 +1,33 @@
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using Xunit;
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using System;
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using QuanTAlib;
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namespace MovingAvg;
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public class ALMA_Test
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{
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[Fact]
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public void Add_Test()
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{
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TSeries a = new() { 0, 1, 2, 3, 4, 5 };
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ALMA_Series c = new(a, 4);
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Assert.Equal(6, c.Count);
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a.Add(5);
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Assert.Equal(a.Count, c.Count);
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a.Add(10, update: true);
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Assert.Equal(a.Count, c.Count);
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}
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[Fact]
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public void Edge_Test()
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{
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TSeries a = new() { double.NaN, double.Epsilon, double.PositiveInfinity, double.MaxValue };
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ALMA_Series c = new(a, 3);
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Assert.Equal(a.Count, c.Count);
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a.Add(double.NaN);
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Assert.Equal(a.Count, c.Count);
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a.Add(double.PositiveInfinity);
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Assert.Equal(a.Count, c.Count);
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}
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}
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@@ -152,4 +152,13 @@ public class Skender_Stock
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Assert.Equal(Math.Round((double)SK.Last().Rsi!, 8), Math.Round(QL.Last().v, 8));
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Assert.Equal(Math.Round((double)SK.Last().Rsi!, 8), Math.Round(QL.Last().v, 8));
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}
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}
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[Fact]
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public void ALMA()
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{
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ALMA_Series QL = new(this.bars.Close, this.period, useNaN: false);
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var SK = this.quotes.GetAlma(this.period);
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Assert.Equal(Math.Round((double)SK.Last().Alma!, 8), Math.Round(QL.Last().v, 8));
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}
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}
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}
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