2026-06-11 15:22:29 +02:00
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using System.Globalization;
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using System.Runtime.CompilerServices;
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using Wickra;
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using Xunit;
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namespace Wickra.Tests;
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/// <summary>
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/// Golden-fixture parity: replay the shared <c>testdata/golden</c> input series
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/// through the C# FFI and assert every value matches the Rust reference output.
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/// Where the archetype tests only check finiteness, this pins exact values, so a
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/// wiring bug (swapped parameter, wrong multi-output field) is caught.
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/// Fixtures are generated by <c>cargo run -p wickra-examples --bin gen_golden</c>.
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/// </summary>
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public class GoldenTests
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{
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private const double Tol = 1e-6;
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private static string GoldenDir([CallerFilePath] string file = "") =>
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Path.GetFullPath(Path.Combine(Path.GetDirectoryName(file)!, "..", "..", "..", "testdata", "golden"));
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private static List<string[]> ReadCsv(string name)
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{
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var path = Path.Combine(GoldenDir(), name + ".csv");
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return File.ReadAllLines(path)
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.Skip(1) // header
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.Where(l => l.Length > 0)
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.Select(l => l.Split(','))
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.ToList();
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}
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private static double[][] Input()
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{
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return ReadCsv("input")
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.Select(r => r.Select(c => double.Parse(c, CultureInfo.InvariantCulture)).ToArray())
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.ToArray();
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}
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private static double Cell(string s) =>
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s == "nan" ? double.NaN : double.Parse(s, CultureInfo.InvariantCulture);
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private static void AssertClose(double got, double want, int row, string field)
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{
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if (double.IsNaN(want))
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{
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Assert.True(double.IsNaN(got), $"row {row} {field}: expected warmup/NaN, got {got}");
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return;
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}
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var tol = Tol * Math.Max(1.0, Math.Abs(want));
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Assert.True(Math.Abs(got - want) <= tol, $"row {row} {field}: got {got}, want {want}");
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}
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// --- scalar (close-driven) ------------------------------------------------
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[Theory]
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[InlineData("sma")]
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[InlineData("ema")]
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[InlineData("rsi")]
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public void Scalar_MatchesGolden(string name)
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{
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var input = Input();
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var expected = ReadCsv(name);
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using var ind = (IDisposable)(name switch
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{
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"sma" => new Sma(14),
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"ema" => new Ema(14),
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"rsi" => new Rsi(14),
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_ => throw new ArgumentOutOfRangeException(nameof(name)),
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});
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for (var i = 0; i < input.Length; i++)
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{
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var close = input[i][3];
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double got = ind switch
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{
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Sma s => s.Update(close),
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Ema e => e.Update(close),
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Rsi r => r.Update(close),
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_ => double.NaN,
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};
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AssertClose(got, Cell(expected[i][0]), i, name);
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}
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}
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// --- candle, single output ------------------------------------------------
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[Fact]
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public void Candle_Atr_MatchesGolden()
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{
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var input = Input();
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var expected = ReadCsv("atr");
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using var atr = new Atr(14);
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for (var i = 0; i < input.Length; i++)
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{
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var (o, h, l, c, v) = (input[i][0], input[i][1], input[i][2], input[i][3], input[i][4]);
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AssertClose(atr.Update(o, h, l, c, v, i), Cell(expected[i][0]), i, "atr");
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}
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}
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// --- pairwise -------------------------------------------------------------
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[Fact]
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public void Pairwise_Beta_MatchesGolden()
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{
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var input = Input();
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var expected = ReadCsv("beta");
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using var beta = new Beta(20);
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for (var i = 0; i < input.Length; i++)
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{
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// generator fed (close, open)
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AssertClose(beta.Update(input[i][3], input[i][0]), Cell(expected[i][0]), i, "beta");
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}
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}
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// --- scalar multi-output: MACD -------------------------------------------
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[Fact]
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public void MultiOutput_Macd_MatchesGolden()
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{
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var input = Input();
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var expected = ReadCsv("macd");
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using var macd = new MacdIndicator(12, 26, 9);
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for (var i = 0; i < input.Length; i++)
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{
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MacdOutput? got = macd.Update(input[i][3]);
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var e = expected[i];
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if (e[0] == "nan")
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{
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Assert.Null(got);
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continue;
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}
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Assert.NotNull(got);
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AssertClose(got!.Value.Macd, Cell(e[0]), i, "macd.macd");
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AssertClose(got.Value.Signal, Cell(e[1]), i, "macd.signal");
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AssertClose(got.Value.Histogram, Cell(e[2]), i, "macd.histogram");
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}
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}
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// --- candle multi-output: ADX --------------------------------------------
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[Fact]
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public void MultiOutput_Adx_MatchesGolden()
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{
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var input = Input();
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var expected = ReadCsv("adx");
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using var adx = new Adx(14);
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for (var i = 0; i < input.Length; i++)
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{
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var (o, h, l, c, v) = (input[i][0], input[i][1], input[i][2], input[i][3], input[i][4]);
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AdxOutput? got = adx.Update(o, h, l, c, v, i);
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var e = expected[i];
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if (e[0] == "nan")
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{
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Assert.Null(got);
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continue;
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}
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Assert.NotNull(got);
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AssertClose(got!.Value.PlusDi, Cell(e[0]), i, "adx.plus_di");
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AssertClose(got.Value.MinusDi, Cell(e[1]), i, "adx.minus_di");
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AssertClose(got.Value.Adx, Cell(e[2]), i, "adx.adx");
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}
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}
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2026-06-15 04:48:51 +02:00
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// --- the four de-duplicated indicators ------------------------------------
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[Fact]
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public void Candle_AdOscillator_MatchesGolden()
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{
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var input = Input();
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var expected = ReadCsv("ad_oscillator");
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using var ad = new AdOscillator();
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for (var i = 0; i < input.Length; i++)
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{
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var (o, h, l, c, v) = (input[i][0], input[i][1], input[i][2], input[i][3], input[i][4]);
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AssertClose(ad.Update(o, h, l, c, v, i), Cell(expected[i][0]), i, "ad_oscillator");
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}
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}
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[Fact]
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public void Candle_IntradayIntensity_MatchesGolden()
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{
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var input = Input();
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var expected = ReadCsv("intraday_intensity");
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using var ii = new IntradayIntensity();
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for (var i = 0; i < input.Length; i++)
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{
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var (o, h, l, c, v) = (input[i][0], input[i][1], input[i][2], input[i][3], input[i][4]);
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AssertClose(ii.Update(o, h, l, c, v, i), Cell(expected[i][0]), i, "intraday_intensity");
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}
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}
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[Fact]
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public void Candle_AwesomeOscillatorHistogram_MatchesGolden()
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{
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var input = Input();
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var expected = ReadCsv("awesome_oscillator_histogram");
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using var aoh = new AwesomeOscillatorHistogram(5, 34, 1);
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for (var i = 0; i < input.Length; i++)
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{
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var (o, h, l, c, v) = (input[i][0], input[i][1], input[i][2], input[i][3], input[i][4]);
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AssertClose(aoh.Update(o, h, l, c, v, i), Cell(expected[i][0]), i, "awesome_oscillator_histogram");
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}
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}
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[Fact]
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public void Scalar_AverageDrawdown_MatchesGolden()
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{
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var input = Input();
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var expected = ReadCsv("average_drawdown");
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using var avg = new AverageDrawdown(20);
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for (var i = 0; i < input.Length; i++)
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{
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// generator fed the close column as the equity-curve sample.
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AssertClose(avg.Update(input[i][3]), Cell(expected[i][0]), i, "average_drawdown");
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}
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}
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2026-06-11 15:22:29 +02:00
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}
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