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https://github.com/mihakralj/QuanTAlib.git
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73e3420379
semver fix VAR test fix new: COVAR, ZSCORE, CORR, LINREG versioning refactoring
46 lines
1.7 KiB
C#
46 lines
1.7 KiB
C#
namespace QuanTAlib;
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using System;
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using System.Linq;
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/* <summary>
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ZSCORE: number of standard deviations from SMA
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Z-score describes a value's relationship to the mean of a series, as measured in
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terms of standard deviations from the mean. If a Z-score is 0, it indicates that
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the data point's score is identical to the mean score. A Z-score of 1.0 would
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indicate a value that is one standard deviation from the mean. Z-scores may be
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positive or negative, with a positive value indicating the score is above the
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mean and a negative score indicating it is below the mean.
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Sources:
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https://en.wikipedia.org/wiki/Z-score
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https://www.investopedia.com/terms/z/zscore.asp
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Calculation:
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std = std * STDEV(close, length)
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mean = SMA(close, length)
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ZSCORE = (close - mean) / std
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</summary> */
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public class ZSCORE_Series : Single_TSeries_Indicator
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{
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public ZSCORE_Series(TSeries source, int period, bool useNaN = false) : base(source, period, useNaN)
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{
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if (base._data.Count > 0) { base.Add(base._data); }
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}
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private readonly System.Collections.Generic.List<double> _buffer = new();
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public override void Add((System.DateTime t, double v) TValue, bool update)
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{
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Add_Replace_Trim(_buffer, TValue.v, _p, update);
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double _sma = _buffer.Average();
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double _pvar = 0;
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for (int i = 0; i < _buffer.Count; i++) { _pvar += (_buffer[i] - _sma) * (_buffer[i] - _sma); }
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_pvar /= this._buffer.Count;
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double _psdev = Math.Sqrt(_pvar);
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double _zscore = (_psdev == 0) ? double.NaN : (TValue.v - _sma) / _psdev;
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base.Add((TValue.t, _zscore), update, _NaN);
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}
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} |