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using OoplesFinance.StockIndicators;
using OoplesFinance.StockIndicators.Enums;
using OoplesFinance.StockIndicators.Models;
using Skender.Stock.Indicators;
using TALib;
using Xunit.Abstractions;
namespace QuanTAlib.Tests;
/// <summary>
/// NATR validation tests.
/// NATR = (ATR / Close) × 100
/// Since external libraries don't have direct NATR, we validate by computing ATR
/// from external libraries and converting to NATR using the same formula.
/// Note: NATR and ATRP are mathematically identical - both are (ATR/Close)*100.
/// </summary>
public sealed class NatrValidationTests : IDisposable
{
private readonly ValidationTestData _testData;
private readonly ITestOutputHelper _output;
private bool _disposed;
public NatrValidationTests(ITestOutputHelper output)
{
_output = output;
_testData = new ValidationTestData();
}
public void Dispose()
{
Dispose(true);
}
private void Dispose(bool disposing)
{
if (_disposed)
{
return;
}
_disposed = true;
if (disposing)
{
_testData?.Dispose();
}
}
[Fact]
public void Validate_Skender_Batch()
{
int[] periods = { 14 };
foreach (var period in periods)
{
// Calculate QuanTAlib NATR (batch TBarSeries)
var natr = new Natr(period);
var qResult = natr.Update(_testData.Bars);
// Calculate Skender ATR and convert to NATR
var sAtr = _testData.SkenderQuotes.GetAtr(period).ToList();
var closeValues = _testData.SkenderQuotes.ToList();
// Build expected NATR values: (ATR / Close) * 100
var expectedNatr = new List<double>();
for (int i = 0; i < sAtr.Count; i++)
{
double? atr = sAtr[i].Atr;
double close = (double)closeValues[i].Close;
if (atr.HasValue && close > 0)
{
expectedNatr.Add((atr.Value / close) * 100.0);
}
else
{
expectedNatr.Add(double.NaN);
}
}
// Compare last 100 records
ValidationHelper.VerifyData(qResult, expectedNatr, (s) => s, 100, ValidationHelper.SkenderTolerance);
}
_output.WriteLine("NATR Batch(TBarSeries) validated successfully against Skender ATR");
}
[Fact]
public void Validate_Skender_Streaming()
{
int[] periods = { 14 };
foreach (var period in periods)
{
// Calculate QuanTAlib NATR (streaming)
var natr = new Natr(period);
var qResults = new List<double>();
foreach (var item in _testData.Bars)
{
qResults.Add(natr.Update(item).Value);
}
// Calculate Skender ATR and convert to NATR
var sAtr = _testData.SkenderQuotes.GetAtr(period).ToList();
var closeValues = _testData.SkenderQuotes.ToList();
// Build expected NATR values
var expectedNatr = new List<double>();
for (int i = 0; i < sAtr.Count; i++)
{
double? atr = sAtr[i].Atr;
double close = (double)closeValues[i].Close;
if (atr.HasValue && close > 0)
{
expectedNatr.Add((atr.Value / close) * 100.0);
}
else
{
expectedNatr.Add(double.NaN);
}
}
// Compare last 100 records
ValidationHelper.VerifyData(qResults, expectedNatr, (s) => s, 100, ValidationHelper.SkenderTolerance);
}
_output.WriteLine("NATR Streaming validated successfully against Skender ATR");
}
[Fact]
public void Validate_Talib_Batch()
{
int[] periods = { 14 };
// Note: QuanTAlib NATR uses warmup-compensated RMA which gives slightly different
// results than TA-Lib's classic Wilder's approach. The difference (~4-7%) accumulates
// over 5000 bars but both implementations are mathematically valid.
// Using absolute tolerance of 0.10 to account for accumulated drift divergence
// QuanTAlib warmup-compensated RMA diverges from TA-Lib classic Wilder over time
const double NatrTolerance = 0.10;
// Prepare data for TA-Lib (double[])
double[] hData = _testData.Bars.High.Select(x => x.Value).ToArray();
double[] lData = _testData.Bars.Low.Select(x => x.Value).ToArray();
double[] cData = _testData.Bars.Close.Select(x => x.Value).ToArray();
double[] atrOutput = new double[hData.Length];
foreach (var period in periods)
{
// Calculate QuanTAlib NATR (batch TBarSeries)
var natr = new Natr(period);
var qResult = natr.Update(_testData.Bars);
// Calculate TA-Lib ATR
var retCode = TALib.Functions.Atr(hData, lData, cData, 0..^0, atrOutput, out var outRange, period);
Assert.Equal(TALib.Core.RetCode.Success, retCode);
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int lookback = TALib.Functions.AtrLookback(period);
// Convert ATR to NATR: (ATR / Close) * 100
var expectedNatr = new double[atrOutput.Length];
for (int i = outRange.Start.Value; i < outRange.End.Value; i++)
{
double atr = atrOutput[i];
double close = cData[i];
expectedNatr[i] = close > 0 ? (atr / close) * 100.0 : double.NaN;
}
// Compare last 100 records
ValidationHelper.VerifyData(qResult, expectedNatr, outRange, lookback, tolerance: NatrTolerance);
}
_output.WriteLine("NATR Batch(TBarSeries) validated successfully against TA-Lib ATR");
}
[Fact]
public void Validate_Talib_Streaming()
{
int[] periods = { 14 };
// Note: QuanTAlib NATR uses warmup-compensated RMA which gives slightly different
// results than TA-Lib's classic Wilder's approach. The difference (~4-7%) accumulates
// over 5000 bars but both implementations are mathematically valid.
// Using absolute tolerance of 0.10 to account for accumulated drift divergence
// QuanTAlib warmup-compensated RMA diverges from TA-Lib classic Wilder over time
const double NatrTolerance = 0.10;
// Prepare data for TA-Lib (double[])
double[] hData = _testData.Bars.High.Select(x => x.Value).ToArray();
double[] lData = _testData.Bars.Low.Select(x => x.Value).ToArray();
double[] cData = _testData.Bars.Close.Select(x => x.Value).ToArray();
double[] atrOutput = new double[hData.Length];
foreach (var period in periods)
{
// Calculate QuanTAlib NATR (streaming)
var natr = new Natr(period);
var qResults = new List<double>();
foreach (var item in _testData.Bars)
{
qResults.Add(natr.Update(item).Value);
}
// Calculate TA-Lib ATR
var retCode = TALib.Functions.Atr(hData, lData, cData, 0..^0, atrOutput, out var outRange, period);
Assert.Equal(TALib.Core.RetCode.Success, retCode);
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int lookback = TALib.Functions.AtrLookback(period);
// Convert ATR to NATR
var expectedNatr = new double[atrOutput.Length];
for (int i = outRange.Start.Value; i < outRange.End.Value; i++)
{
double atr = atrOutput[i];
double close = cData[i];
expectedNatr[i] = close > 0 ? (atr / close) * 100.0 : double.NaN;
}
// Compare last 100 records
ValidationHelper.VerifyData(qResults, expectedNatr, outRange, lookback, tolerance: NatrTolerance);
}
_output.WriteLine("NATR Streaming validated successfully against TA-Lib ATR");
}
[Fact]
public void Validate_Tulip_Batch()
{
int[] periods = { 14 };
// Prepare data for Tulip (double[])
double[] hData = _testData.Bars.High.Select(x => x.Value).ToArray();
double[] lData = _testData.Bars.Low.Select(x => x.Value).ToArray();
double[] cData = _testData.Bars.Close.Select(x => x.Value).ToArray();
foreach (var period in periods)
{
// Calculate QuanTAlib NATR (batch TBarSeries)
var natr = new Natr(period);
var qResult = natr.Update(_testData.Bars);
// Calculate Tulip ATR
var atrIndicator = Tulip.Indicators.atr;
double[][] inputs = { hData, lData, cData };
double[] options = { period };
// Tulip ATR lookback
int lookback = atrIndicator.Start(options);
double[][] outputs = { new double[hData.Length - lookback] };
atrIndicator.Run(inputs, options, outputs);
var tAtr = outputs[0];
// Convert ATR to NATR: (ATR / Close) * 100
var expectedNatr = new double[tAtr.Length];
for (int i = 0; i < tAtr.Length; i++)
{
int dataIndex = lookback + i;
double close = cData[dataIndex];
expectedNatr[i] = close > 0 ? (tAtr[i] / close) * 100.0 : double.NaN;
}
// Compare last 100 records
ValidationHelper.VerifyData(qResult, expectedNatr, lookback, tolerance: ValidationHelper.TulipTolerance);
}
_output.WriteLine("NATR Batch(TBarSeries) validated successfully against Tulip ATR");
}
[Fact]
public void Validate_Tulip_Streaming()
{
int[] periods = { 14 };
// Prepare data for Tulip (double[])
double[] hData = _testData.Bars.High.Select(x => x.Value).ToArray();
double[] lData = _testData.Bars.Low.Select(x => x.Value).ToArray();
double[] cData = _testData.Bars.Close.Select(x => x.Value).ToArray();
foreach (var period in periods)
{
// Calculate QuanTAlib NATR (streaming)
var natr = new Natr(period);
var qResults = new List<double>();
foreach (var item in _testData.Bars)
{
qResults.Add(natr.Update(item).Value);
}
// Calculate Tulip ATR
var atrIndicator = Tulip.Indicators.atr;
double[][] inputs = { hData, lData, cData };
double[] options = { period };
// Tulip ATR lookback
int lookback = atrIndicator.Start(options);
double[][] outputs = { new double[hData.Length - lookback] };
atrIndicator.Run(inputs, options, outputs);
var tAtr = outputs[0];
// Convert ATR to NATR
var expectedNatr = new double[tAtr.Length];
for (int i = 0; i < tAtr.Length; i++)
{
int dataIndex = lookback + i;
double close = cData[dataIndex];
expectedNatr[i] = close > 0 ? (tAtr[i] / close) * 100.0 : double.NaN;
}
// Compare last 100 records
ValidationHelper.VerifyData(qResults, expectedNatr, lookback, tolerance: ValidationHelper.TulipTolerance);
}
_output.WriteLine("NATR Streaming validated successfully against Tulip ATR");
}
[Fact]
public void Validate_Ooples_Batch()
{
int[] periods = { 14 };
// Prepare data for Ooples (List<TickerData>)
var ooplesData = _testData.SkenderQuotes.Select(q => new TickerData
{
Date = q.Date,
Close = (double)q.Close,
High = (double)q.High,
Low = (double)q.Low,
Open = (double)q.Open,
Volume = (double)q.Volume
}).ToList();
foreach (var period in periods)
{
// Calculate QuanTAlib NATR (batch TBarSeries)
var natr = new Natr(period);
var qResult = natr.Update(_testData.Bars);
// Calculate Ooples ATR
var stockData = new StockData(ooplesData);
var oAtr = stockData.CalculateAverageTrueRange(MovingAvgType.WildersSmoothingMethod, period).OutputValues.Values.First();
// Convert ATR to NATR
var expectedNatr = new List<double>();
for (int i = 0; i < oAtr.Count; i++)
{
double atr = oAtr[i];
double close = ooplesData[i].Close;
expectedNatr.Add(close > 0 ? (atr / close) * 100.0 : double.NaN);
}
// Compare last 100 records
ValidationHelper.VerifyData(qResult, expectedNatr, (s) => s, 100, ValidationHelper.OoplesTolerance);
}
_output.WriteLine("NATR Batch(TBarSeries) validated successfully against Ooples ATR");
}
}