143 lines
6.9 KiB
C#
143 lines
6.9 KiB
C#
using System.Globalization;
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using Just.PreciseMath.Tests.ReferenceData;
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namespace Just.PreciseMath.Tests;
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public class PreciseMathRealPowTests
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{
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public static IEnumerable<TheoryDataRow<string, double, double, double, double, bool, string>> ReferenceCases => RealPowReferenceData.Cases();
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[Theory]
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[MemberData(nameof(ReferenceCases))]
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public void FinitePowersMeetIndependentComponentAwareReferenceBound(string label,
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double high, double low, double exponentHigh, double exponentLow, bool scalar, string reference)
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{
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// The stdlib generator constructs exact binary64 sums at 2200 digits,
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// checks Fraction equality, evaluates Decimal ln/exp at 450/650 digits,
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// and requires stable 120-digit references. Scalar rows have independent
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// references formed AFTER discarding exponentLow, not the DD reference.
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DoubleDouble input = DoubleDouble.FromComponents(high, low);
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DoubleDouble exponent = DoubleDouble.FromComponents(exponentHigh, scalar ? 0.0 : exponentLow);
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(Units(input.High) + Units(input.Low)).ShouldBe(Units(high) + Units(low));
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BigInteger exponentUnits = Units(exponentHigh) + Units(scalar ? 0.0 : exponentLow);
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(Units(exponent.High) + Units(exponent.Low)).ShouldBe(exponentUnits);
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DoubleDouble actual = scalar ? DDMath.Pow(input, exponentHigh) : DDMath.Pow(input, exponent);
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string context = $"{label}, scalar={scalar}: ({high:R}, {low:R})^({exponentHigh:R}, {exponentLow:R})";
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AssertReferenceBound(actual, reference, exponentUnits, context);
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}
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[Theory]
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[InlineData(4.0, 0.5, 2.0)]
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[InlineData(16.0, 0.25, 2.0)]
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[InlineData(16.0, -0.25, 0.5)]
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[InlineData(0.0625, -0.5, 4.0)]
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public void ExactBinaryReferencesMeetTheRealPathBound(double input, double exponent, double expected)
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{
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// These references are exact rational identities. The general ln/exp
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// implementation is approximate, so do not require universal bit equality.
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string reference = expected.ToString("e17", CultureInfo.InvariantCulture);
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AssertReferenceBound(DDMath.Pow(new DoubleDouble(input), exponent), reference,
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Units(exponent), "scalar exact binary reference");
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AssertReferenceBound(DDMath.Pow(new DoubleDouble(input), new DoubleDouble(exponent)), reference,
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Units(exponent), "DD exact binary reference");
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}
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[Fact]
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public void FiniteIntegerDispatchPreservesExistingPowerBits()
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{
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// Consistency is distinct from accuracy: ReferenceCases independently
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// check the exponent-dependent bound for int-range dispatch too.
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DoubleDouble[] inputs = [DoubleDouble.FromComponents(1.25, -Math.ScaleB(1.0, -55)),
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DoubleDouble.FromComponents(-1.25, Math.ScaleB(1.0, -55)),
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DoubleDouble.FromComponents(1.0, Math.ScaleB(1.0, -54)),
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DoubleDouble.FromComponents(1.0, -Math.ScaleB(1.0, -54))];
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foreach (DoubleDouble input in inputs)
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{
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foreach (int exponent in new[] { -63, -7, -1, 0, 1, 7, 63 })
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{
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DoubleDouble expected = DDMath.Pow(input, exponent);
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AssertBits(DDMath.Pow(input, (double)exponent), expected);
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AssertBits(DDMath.Pow(input, new DoubleDouble(exponent)), expected);
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}
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}
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foreach (int exponent in new[] { int.MinValue, int.MaxValue })
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{
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DoubleDouble input = DoubleDouble.FromComponents(1.0, Math.ScaleB(1.0, -54));
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DoubleDouble expected = DDMath.Pow(input, exponent);
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AssertBits(DDMath.Pow(input, (double)exponent), expected);
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AssertBits(DDMath.Pow(input, new DoubleDouble(exponent)), expected);
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}
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}
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[Fact]
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public void ExponentOnePreservesSparseFiniteComponentsExactly()
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{
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foreach (double high in new[] { double.MaxValue, -double.MaxValue, 1.0, -1.0 })
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{
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foreach (double low in new[] { double.Epsilon, -double.Epsilon })
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{
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DoubleDouble input = DoubleDouble.FromComponents(high, low);
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AssertBits(DDMath.Pow(input, 1.0), input);
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AssertBits(DDMath.Pow(input, DoubleDouble.One), input);
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}
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}
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}
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private static void AssertReferenceBound(DoubleDouble actual, string reference,
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BigInteger exponentUnits, string context)
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{
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DoubleDouble.IsCanonical(actual).ShouldBeTrue(context);
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DoubleDouble.IsFinite(actual).ShouldBeTrue(context);
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string[] parts = reference.Split('e');
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int point = parts[0].IndexOf('.', StringComparison.Ordinal);
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int decimals = point < 0 ? 0 : parts[0].Length - point - 1;
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BigInteger numerator = BigInteger.Parse(parts[0].Replace(".", "", StringComparison.Ordinal), CultureInfo.InvariantCulture);
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int exponent = int.Parse(parts[1], CultureInfo.InvariantCulture) - decimals;
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BigInteger denominator = BigInteger.One;
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if (exponent >= 0)
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{
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numerator *= BigInteger.Pow(10, exponent);
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}
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else
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{
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denominator = BigInteger.Pow(10, -exponent);
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}
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BigInteger oneUnits = BigInteger.One << 1074;
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BigInteger integralExponent = BigInteger.DivRem(exponentUnits, oneUnits, out BigInteger remainder);
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BigInteger factor = 1024;
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if (remainder.IsZero && integralExponent >= int.MinValue && integralExponent <= int.MaxValue)
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{
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factor = BigInteger.Max(factor, BigInteger.Abs(integralExponent) + 1);
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}
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BigInteger magnitude = BigInteger.Abs(numerator);
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BigInteger actualUnits = Units(actual.High) + Units(actual.Low);
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BigInteger error = BigInteger.Abs((actualUnits * denominator) - (numerator << 1074));
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// max(2^-90, (|n|+1)*2^-100 for int dispatch) plus 2^-1074.
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// Add the independently checked reference uncertainty of 2^-350 relative.
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// All comparisons retain both result components as exact rational units.
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BigInteger bound = (magnitude * factor << 1324) + (denominator << 350) + (magnitude << 1074);
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((error << 350) <= bound).ShouldBeTrue(
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$"Real Pow bound failed for {context}: ({actual.High:R}, {actual.Low:R}), reference={reference}");
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}
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private static BigInteger Units(double value)
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{
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long bits = BitConverter.DoubleToInt64Bits(value);
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int exponent = (int)((bits >> 52) & 0x7ff);
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BigInteger significand = bits & 0xfffffffffffffL;
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if (exponent != 0)
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{
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significand += BigInteger.One << 52;
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significand <<= exponent - 1;
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}
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return bits < 0 ? -significand : significand;
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}
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private static void AssertBits(DoubleDouble actual, DoubleDouble expected)
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{
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DoubleDouble.IsCanonical(actual).ShouldBeTrue();
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BitConverter.DoubleToInt64Bits(actual.High).ShouldBe(BitConverter.DoubleToInt64Bits(expected.High));
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BitConverter.DoubleToInt64Bits(actual.Low).ShouldBe(BitConverter.DoubleToInt64Bits(expected.Low));
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}
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}
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