// Copyright (C) Stichting Deltares 2017. All rights reserved. // // This file is part of Ringtoets. // // Ringtoets is free software: you can redistribute it and/or modify // it under the terms of the GNU General Public License as published by // the Free Software Foundation, either version 3 of the License, or // (at your option) any later version. // // This program is distributed in the hope that it will be useful, // but WITHOUT ANY WARRANTY; without even the implied warranty of // MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the // GNU General Public License for more details. // // You should have received a copy of the GNU General Public License // along with this program. If not, see . // // All names, logos, and references to "Deltares" are registered trademarks of // Stichting Deltares and remain full property of Stichting Deltares at all times. // All rights reserved. using System; using Core.Common.TestUtil; using NUnit.Framework; using Ringtoets.Common.Data.TestUtil; namespace Ringtoets.MacroStabilityInwards.Data.Test { [TestFixture] public class PipingSemiProbabilisticOutputTest { [Test] public void Constructor_DefaultPropertiesSet() { // Setup var random = new Random(21); double upliftFactorOfSafety = random.NextDouble(); double upliftReliability = random.NextDouble(); double upliftProbability = random.NextDouble(); double heaveFactorOfSafety = random.NextDouble(); double heaveReliability = random.NextDouble(); double heaveProbability = random.NextDouble(); double sellmeijerFactorOfSafety = random.NextDouble(); double sellmeijerReliability = random.NextDouble(); double sellmeijerProbability = random.NextDouble(); double requiredProbability = random.NextDouble(); double requiredReliability = random.NextDouble(); double pipingProbability = random.NextDouble(); double pipingReliability = random.NextDouble(); double pipingFactorOfSafety = random.NextDouble(); // Call var output = new PipingSemiProbabilisticOutput( upliftFactorOfSafety, upliftReliability, upliftProbability, heaveFactorOfSafety, heaveReliability, heaveProbability, sellmeijerFactorOfSafety, sellmeijerReliability, sellmeijerProbability, requiredProbability, requiredReliability, pipingProbability, pipingReliability, pipingFactorOfSafety); // Assert Assert.AreEqual(3, output.HeaveFactorOfSafety.NumberOfDecimalPlaces); Assert.AreEqual(upliftFactorOfSafety, output.UpliftFactorOfSafety, output.UpliftFactorOfSafety.GetAccuracy()); Assert.AreEqual(5, output.UpliftReliability.NumberOfDecimalPlaces); Assert.AreEqual(upliftReliability, output.UpliftReliability, output.UpliftReliability.GetAccuracy()); Assert.AreEqual(upliftProbability, output.UpliftProbability); Assert.AreEqual(3, output.HeaveFactorOfSafety.NumberOfDecimalPlaces); Assert.AreEqual(heaveFactorOfSafety, output.HeaveFactorOfSafety, output.HeaveFactorOfSafety.GetAccuracy()); Assert.AreEqual(5, output.HeaveReliability.NumberOfDecimalPlaces); Assert.AreEqual(heaveReliability, output.HeaveReliability, output.HeaveReliability.GetAccuracy()); Assert.AreEqual(heaveProbability, output.HeaveProbability); Assert.AreEqual(3, output.SellmeijerFactorOfSafety.NumberOfDecimalPlaces); Assert.AreEqual(sellmeijerFactorOfSafety, output.SellmeijerFactorOfSafety, output.SellmeijerFactorOfSafety.GetAccuracy()); Assert.AreEqual(5, output.SellmeijerReliability.NumberOfDecimalPlaces); Assert.AreEqual(sellmeijerReliability, output.SellmeijerReliability, output.SellmeijerReliability.GetAccuracy()); Assert.AreEqual(sellmeijerProbability, output.SellmeijerProbability); Assert.AreEqual(requiredProbability, output.RequiredProbability); Assert.AreEqual(5, output.RequiredReliability.NumberOfDecimalPlaces); Assert.AreEqual(requiredReliability, output.RequiredReliability, output.RequiredReliability.GetAccuracy()); Assert.AreEqual(pipingProbability, output.PipingProbability); Assert.AreEqual(5, output.PipingReliability.NumberOfDecimalPlaces); Assert.AreEqual(pipingReliability, output.PipingReliability, output.PipingReliability.GetAccuracy()); Assert.AreEqual(3, output.PipingFactorOfSafety.NumberOfDecimalPlaces); Assert.AreEqual(pipingFactorOfSafety, output.PipingFactorOfSafety, output.PipingFactorOfSafety.GetAccuracy()); } [Test] [TestCase(double.NaN)] [TestCase(0.0)] [TestCase(0.123456789)] [TestCase(1.0)] public void RequiredProbability_SetValidValues_ReturnNewlySetValue(double requiredProbability) { // Setup var random = new Random(21); double upliftFactorOfSafety = random.NextDouble(); double upliftReliability = random.NextDouble(); double upliftProbability = random.NextDouble(); double heaveFactorOfSafety = random.NextDouble(); double heaveReliability = random.NextDouble(); double heaveProbability = random.NextDouble(); double sellmeijerFactorOfSafety = random.NextDouble(); double sellmeijerReliability = random.NextDouble(); double sellmeijerProbability = random.NextDouble(); double requiredReliability = random.NextDouble(); double pipingProbability = random.NextDouble(); double pipingReliability = random.NextDouble(); double pipingFactorOfSafety = random.NextDouble(); // Call var output = new PipingSemiProbabilisticOutput( upliftFactorOfSafety, upliftReliability, upliftProbability, heaveFactorOfSafety, heaveReliability, heaveProbability, sellmeijerFactorOfSafety, sellmeijerReliability, sellmeijerProbability, requiredProbability, requiredReliability, pipingProbability, pipingReliability, pipingFactorOfSafety); // Assert Assert.AreEqual(requiredProbability, output.RequiredProbability); } [Test] [SetCulture("nl-NL")] [TestCase(double.PositiveInfinity)] [TestCase(double.NegativeInfinity)] [TestCase(0.0 - 1e-6)] [TestCase(-346587.456)] [TestCase(1.0 + 1e-6)] [TestCase(346587.456)] public void RequiredProbability_SetInvalidValues_ThrowArgumentOutOfRangeException(double requiredProbability) { // Setup var random = new Random(21); double upliftFactorOfSafety = random.NextDouble(); double upliftReliability = random.NextDouble(); double upliftProbability = random.NextDouble(); double heaveFactorOfSafety = random.NextDouble(); double heaveReliability = random.NextDouble(); double heaveProbability = random.NextDouble(); double sellmeijerFactorOfSafety = random.NextDouble(); double sellmeijerReliability = random.NextDouble(); double sellmeijerProbability = random.NextDouble(); double requiredReliability = random.NextDouble(); double pipingProbability = random.NextDouble(); double pipingReliability = random.NextDouble(); double pipingFactorOfSafety = random.NextDouble(); // Call TestDelegate call = () => new PipingSemiProbabilisticOutput( upliftFactorOfSafety, upliftReliability, upliftProbability, heaveFactorOfSafety, heaveReliability, heaveProbability, sellmeijerFactorOfSafety, sellmeijerReliability, sellmeijerProbability, requiredProbability, requiredReliability, pipingProbability, pipingReliability, pipingFactorOfSafety); // Assert const string expectedMessage = "Kans moet in het bereik [0,0, 1,0] liggen."; TestHelper.AssertThrowsArgumentExceptionAndTestMessage(call, expectedMessage); } [Test] [TestCase(double.NaN)] [TestCase(0.0)] [TestCase(0.123456789)] [TestCase(1.0)] public void SellmeijerProbability_SetValidValues_ReturnNewlySetValue(double sellmeijerProbability) { // Setup var random = new Random(21); double upliftFactorOfSafety = random.NextDouble(); double upliftReliability = random.NextDouble(); double upliftProbability = random.NextDouble(); double heaveFactorOfSafety = random.NextDouble(); double heaveReliability = random.NextDouble(); double heaveProbability = random.NextDouble(); double sellmeijerFactorOfSafety = random.NextDouble(); double sellmeijerReliability = random.NextDouble(); double requiredProbability = random.NextDouble(); double requiredReliability = random.NextDouble(); double pipingProbability = random.NextDouble(); double pipingReliability = random.NextDouble(); double pipingFactorOfSafety = random.NextDouble(); // Call var output = new PipingSemiProbabilisticOutput( upliftFactorOfSafety, upliftReliability, upliftProbability, heaveFactorOfSafety, heaveReliability, heaveProbability, sellmeijerFactorOfSafety, sellmeijerReliability, sellmeijerProbability, requiredProbability, requiredReliability, pipingProbability, pipingReliability, pipingFactorOfSafety); // Assert Assert.AreEqual(sellmeijerProbability, output.SellmeijerProbability); } [Test] [SetCulture("nl-NL")] [TestCase(double.PositiveInfinity)] [TestCase(double.NegativeInfinity)] [TestCase(0.0 - 1e-6)] [TestCase(-346587.456)] [TestCase(1.0 + 1e-6)] [TestCase(346587.456)] public void SellmeijerProbability_SetInvalidValues_ThrowArgumentOutOfRangeException(double sellmeijerProbability) { // Setup var random = new Random(21); double upliftFactorOfSafety = random.NextDouble(); double upliftReliability = random.NextDouble(); double upliftProbability = random.NextDouble(); double heaveFactorOfSafety = random.NextDouble(); double heaveReliability = random.NextDouble(); double heaveProbability = random.NextDouble(); double sellmeijerFactorOfSafety = random.NextDouble(); double sellmeijerReliability = random.NextDouble(); double requiredProbability = random.NextDouble(); double requiredReliability = random.NextDouble(); double pipingProbability = random.NextDouble(); double pipingReliability = random.NextDouble(); double pipingFactorOfSafety = random.NextDouble(); // Call TestDelegate call = () => new PipingSemiProbabilisticOutput( upliftFactorOfSafety, upliftReliability, upliftProbability, heaveFactorOfSafety, heaveReliability, heaveProbability, sellmeijerFactorOfSafety, sellmeijerReliability, sellmeijerProbability, requiredProbability, requiredReliability, pipingProbability, pipingReliability, pipingFactorOfSafety); // Assert const string expectedMessage = "Kans moet in het bereik [0,0, 1,0] liggen."; TestHelper.AssertThrowsArgumentExceptionAndTestMessage(call, expectedMessage); } [Test] [TestCase(double.NaN)] [TestCase(0.0)] [TestCase(0.123456789)] [TestCase(1.0)] public void HeaveProbability_SetValidValues_ReturnNewlySetValue(double heaveProbability) { // Setup var random = new Random(21); double upliftFactorOfSafety = random.NextDouble(); double upliftReliability = random.NextDouble(); double upliftProbability = random.NextDouble(); double heaveFactorOfSafety = random.NextDouble(); double heaveReliability = random.NextDouble(); double sellmeijerFactorOfSafety = random.NextDouble(); double sellmeijerReliability = random.NextDouble(); double sellmeijerProbability = random.NextDouble(); double requiredProbability = random.NextDouble(); double requiredReliability = random.NextDouble(); double pipingProbability = random.NextDouble(); double pipingReliability = random.NextDouble(); double pipingFactorOfSafety = random.NextDouble(); // Call var output = new PipingSemiProbabilisticOutput( upliftFactorOfSafety, upliftReliability, upliftProbability, heaveFactorOfSafety, heaveReliability, heaveProbability, sellmeijerFactorOfSafety, sellmeijerReliability, sellmeijerProbability, requiredProbability, requiredReliability, pipingProbability, pipingReliability, pipingFactorOfSafety); // Assert Assert.AreEqual(heaveProbability, output.HeaveProbability); } [Test] [SetCulture("nl-NL")] [TestCase(double.PositiveInfinity)] [TestCase(double.NegativeInfinity)] [TestCase(0.0 - 1e-2)] [TestCase(-346587.456)] [TestCase(1.0 + 1e-2)] [TestCase(346587.456)] public void HeaveProbability_SetInvalidValues_ThrowArgumentOutOfRangeException(double heaveProbability) { // Setup var random = new Random(21); double upliftFactorOfSafety = random.NextDouble(); double upliftReliability = random.NextDouble(); double upliftProbability = random.NextDouble(); double heaveFactorOfSafety = random.NextDouble(); double heaveReliability = random.NextDouble(); double sellmeijerFactorOfSafety = random.NextDouble(); double sellmeijerReliability = random.NextDouble(); double sellmeijerProbability = random.NextDouble(); double requiredProbability = random.NextDouble(); double requiredReliability = random.NextDouble(); double pipingProbability = random.NextDouble(); double pipingReliability = random.NextDouble(); double pipingFactorOfSafety = random.NextDouble(); // Call TestDelegate call = () => new PipingSemiProbabilisticOutput( upliftFactorOfSafety, upliftReliability, upliftProbability, heaveFactorOfSafety, heaveReliability, heaveProbability, sellmeijerFactorOfSafety, sellmeijerReliability, sellmeijerProbability, requiredProbability, requiredReliability, pipingProbability, pipingReliability, pipingFactorOfSafety); // Assert const string expectedMessage = "Kans moet in het bereik [0,0, 1,0] liggen."; TestHelper.AssertThrowsArgumentExceptionAndTestMessage(call, expectedMessage); } [Test] [TestCase(double.NaN)] [TestCase(0.0)] [TestCase(0.123456789)] [TestCase(1.0)] public void UpliftProbability_SetValidValues_ReturnNewlySetValue(double upliftProbability) { // Setup var random = new Random(21); double upliftFactorOfSafety = random.NextDouble(); double upliftReliability = random.NextDouble(); double heaveFactorOfSafety = random.NextDouble(); double heaveReliability = random.NextDouble(); double heaveProbability = random.NextDouble(); double sellmeijerFactorOfSafety = random.NextDouble(); double sellmeijerReliability = random.NextDouble(); double sellmeijerProbability = random.NextDouble(); double requiredProbability = random.NextDouble(); double requiredReliability = random.NextDouble(); double pipingProbability = random.NextDouble(); double pipingReliability = random.NextDouble(); double pipingFactorOfSafety = random.NextDouble(); // Call var output = new PipingSemiProbabilisticOutput( upliftFactorOfSafety, upliftReliability, upliftProbability, heaveFactorOfSafety, heaveReliability, heaveProbability, sellmeijerFactorOfSafety, sellmeijerReliability, sellmeijerProbability, requiredProbability, requiredReliability, pipingProbability, pipingReliability, pipingFactorOfSafety); // Assert Assert.AreEqual(upliftProbability, output.UpliftProbability); } [Test] [SetCulture("nl-NL")] [TestCase(double.PositiveInfinity)] [TestCase(double.NegativeInfinity)] [TestCase(0.0 - 1e-6)] [TestCase(-346587.456)] [TestCase(1.0 + 1e-6)] [TestCase(346587.456)] public void UpliftProbability_SetInvalidValues_ThrowArgumentOutOfRangeException(double upliftProbability) { // Setup var random = new Random(21); double upliftFactorOfSafety = random.NextDouble(); double upliftReliability = random.NextDouble(); double heaveFactorOfSafety = random.NextDouble(); double heaveReliability = random.NextDouble(); double heaveProbability = random.NextDouble(); double sellmeijerFactorOfSafety = random.NextDouble(); double sellmeijerReliability = random.NextDouble(); double sellmeijerProbability = random.NextDouble(); double requiredProbability = random.NextDouble(); double requiredReliability = random.NextDouble(); double pipingProbability = random.NextDouble(); double pipingReliability = random.NextDouble(); double pipingFactorOfSafety = random.NextDouble(); // Call TestDelegate call = () => new PipingSemiProbabilisticOutput( upliftFactorOfSafety, upliftReliability, upliftProbability, heaveFactorOfSafety, heaveReliability, heaveProbability, sellmeijerFactorOfSafety, sellmeijerReliability, sellmeijerProbability, requiredProbability, requiredReliability, pipingProbability, pipingReliability, pipingFactorOfSafety); // Assert const string expectedMessage = "Kans moet in het bereik [0,0, 1,0] liggen."; TestHelper.AssertThrowsArgumentExceptionAndTestMessage(call, expectedMessage); } [Test] [TestCase(double.NaN)] [TestCase(0.0)] [TestCase(0.123456789)] [TestCase(1.0)] public void PipingProbability_SetValidValues_ReturnNewlySetValue(double pipingProbability) { // Setup var random = new Random(21); double upliftFactorOfSafety = random.NextDouble(); double upliftReliability = random.NextDouble(); double upliftProbability = random.NextDouble(); double heaveFactorOfSafety = random.NextDouble(); double heaveReliability = random.NextDouble(); double heaveProbability = random.NextDouble(); double sellmeijerFactorOfSafety = random.NextDouble(); double sellmeijerReliability = random.NextDouble(); double sellmeijerProbability = random.NextDouble(); double requiredProbability = random.NextDouble(); double requiredReliability = random.NextDouble(); double pipingReliability = random.NextDouble(); double pipingFactorOfSafety = random.NextDouble(); // Call var output = new PipingSemiProbabilisticOutput( upliftFactorOfSafety, upliftReliability, upliftProbability, heaveFactorOfSafety, heaveReliability, heaveProbability, sellmeijerFactorOfSafety, sellmeijerReliability, sellmeijerProbability, requiredProbability, requiredReliability, pipingProbability, pipingReliability, pipingFactorOfSafety); // Assert Assert.AreEqual(pipingProbability, output.PipingProbability); } [Test] [SetCulture("nl-NL")] [TestCase(double.PositiveInfinity)] [TestCase(double.NegativeInfinity)] [TestCase(0.0 - 1e-2)] [TestCase(-346587.456)] [TestCase(1.0 + 1e-2)] [TestCase(346587.456)] public void PipingProbability_SetInvalidValues_ThrowArgumentOutOfRangeException(double pipingProbability) { // Setup var random = new Random(21); double upliftFactorOfSafety = random.NextDouble(); double upliftReliability = random.NextDouble(); double upliftProbability = random.NextDouble(); double heaveFactorOfSafety = random.NextDouble(); double heaveReliability = random.NextDouble(); double heaveProbability = random.NextDouble(); double sellmeijerFactorOfSafety = random.NextDouble(); double sellmeijerReliability = random.NextDouble(); double sellmeijerProbability = random.NextDouble(); double requiredProbability = random.NextDouble(); double requiredReliability = random.NextDouble(); double pipingReliability = random.NextDouble(); double pipingFactorOfSafety = random.NextDouble(); // Call TestDelegate call = () => new PipingSemiProbabilisticOutput( upliftFactorOfSafety, upliftReliability, upliftProbability, heaveFactorOfSafety, heaveReliability, heaveProbability, sellmeijerFactorOfSafety, sellmeijerReliability, sellmeijerProbability, requiredProbability, requiredReliability, pipingProbability, pipingReliability, pipingFactorOfSafety); // Assert const string expectedMessage = "Kans moet in het bereik [0,0, 1,0] liggen."; TestHelper.AssertThrowsArgumentExceptionAndTestMessage(call, expectedMessage); } } }