Fix point 4. - take % validation from procedure to Q3 Calib factor CH1-3 verification
Implement error limit configuration for Q3 calibration factors. - Add default and configurable error limits for Q3 calibration validation. - Introduce `CalculateQ3CalibrationWithErrorLimits` for flexible validation handling. - Overhaul Q3 workflow to respect configured limits, with fallback to defaults. - Extend tests for calibration, including boundary and invalid inputs.
This commit is contained in:
parent
684513ee59
commit
b8f6af7112
@ -1407,11 +1407,22 @@ namespace TBF.Rig.RegisterReaders.GenesisRegReader.communication
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}
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}
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public string WriteQ3Calibration(TestMethodCfg cfg, Test test, WaterMeter wm)
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public string WriteQ3Calibration(TestMethodCfg cfg, Test test, WaterMeter wm)
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{
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return WriteQ3Calibration(cfg, test, wm, test);
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}
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/// <param name="test">The preceding Q3 measurement test whose result receives the factors.</param>
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/// <param name="validationTest">The current Write Q3 Calibration activity; its error limits validate the factors.</param>
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public string WriteQ3Calibration(TestMethodCfg cfg, Test test, WaterMeter wm, Test validationTest)
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{
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{
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if (genesisHead != null && genesisHead.DebugLevel == DebugMode.Simulate)
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if (genesisHead != null && genesisHead.DebugLevel == DebugMode.Simulate)
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{
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{
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if (test == null || wm == null) return "Missing Genesis meter or test";
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if (test == null || wm == null) return "Missing Genesis meter or test";
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if (!genesisHead.CalculateQ3Calibration() || !genesisHead.Q3CalibValid)
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double errorLimitLo;
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double errorLimitHi;
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GenesisSmartReader.TryGetEffectiveQ3CalibrationErrorLimits(validationTest == null ? 0 : validationTest.ErrLimLo,
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validationTest == null ? 0 : validationTest.ErrLimHi, out errorLimitLo, out errorLimitHi);
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if (!genesisHead.CalculateQ3CalibrationWithErrorLimits(errorLimitLo, errorLimitHi) || !genesisHead.Q3CalibValid)
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return "Q3 simulation requires valid measurement data";
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return "Q3 simulation requires valid measurement data";
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var result = ProcessData.BatchRslts.GetTestRslt(test.Name, test.Part);
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var result = ProcessData.BatchRslts.GetTestRslt(test.Name, test.Part);
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StoreCalibrationValuesResults(result, genesisHead, wm);
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StoreCalibrationValuesResults(result, genesisHead, wm);
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@ -1434,7 +1445,7 @@ namespace TBF.Rig.RegisterReaders.GenesisRegReader.communication
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return "Missing Test";
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return "Missing Test";
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}
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}
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return Task.Run(() => WriteQ3Calibration_Async(genesisHead, cfg, test, wm))
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return Task.Run(() => WriteQ3Calibration_Async(genesisHead, cfg, test, wm, validationTest))
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.GetAwaiter()
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.GetAwaiter()
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.GetResult();
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.GetResult();
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}
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}
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@ -1443,7 +1454,7 @@ namespace TBF.Rig.RegisterReaders.GenesisRegReader.communication
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private async Task<string> WriteQ3Calibration_Async(GenesisSmartReader genesisSmartReader,
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private async Task<string> WriteQ3Calibration_Async(GenesisSmartReader genesisSmartReader,
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TestMethodCfg cfg,
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TestMethodCfg cfg,
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Test test, WaterMeter wm)
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Test test, WaterMeter wm, Test validationTest)
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{
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{
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try
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try
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{
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{
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@ -1489,7 +1500,16 @@ namespace TBF.Rig.RegisterReaders.GenesisRegReader.communication
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CancellationToken token = default;
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CancellationToken token = default;
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bool areInitialisedData = genesisSmartReader.CalculateQ3Calibration();
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Test effectiveValidationTest = validationTest ?? test;
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double errorLimitLo;
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double errorLimitHi;
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bool procedureLimitsConfigured = GenesisSmartReader.TryGetEffectiveQ3CalibrationErrorLimits(
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effectiveValidationTest == null ? 0 : effectiveValidationTest.ErrLimLo,
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effectiveValidationTest == null ? 0 : effectiveValidationTest.ErrLimHi,
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out errorLimitLo, out errorLimitHi);
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log.Info($"WriteQ3Calibration_Async( Slot: {genesisSmartReader.GetSlotNr}) - Q3 factor validation limits: {errorLimitLo} .. {errorLimitHi}% ({(procedureLimitsConfigured ? "Write Q3 Calibration activity" : "default")})");
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bool areInitialisedData = genesisSmartReader.CalculateQ3CalibrationWithErrorLimits(errorLimitLo, errorLimitHi);
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if (!areInitialisedData)
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if (!areInitialisedData)
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{
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{
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log.Error("WriteQ3Calibration_Async() - CalculateQ3Calibration Initialised Data not valid");
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log.Error("WriteQ3Calibration_Async() - CalculateQ3Calibration Initialised Data not valid");
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@ -1501,7 +1521,7 @@ namespace TBF.Rig.RegisterReaders.GenesisRegReader.communication
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if (!genesisSmartReader.Q3CalibValid)
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if (!genesisSmartReader.Q3CalibValid)
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{
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{
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log.Error("WriteQ3Calibration_Async() - Q3Channel not valid");
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log.Error("WriteQ3Calibration_Async() - Q3Channel not valid");
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return "Q3Channel not valid";
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return $"Q3Channel not valid ({errorLimitLo} .. {errorLimitHi}%)";
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}
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}
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//Get Activity Status
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//Get Activity Status
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@ -3928,6 +3928,9 @@ namespace TBF.Rig.RegisterReaders.GenesisRegReader.implementations
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}
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}
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#endregion
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#endregion
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/// <summary>Compatibility limit used when the Write Q3 Calibration activity has no error limits configured.</summary>
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public const double DefaultQ3CalibrationFactorErrorLimit = 5.0;
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private double[] q3CalibInitial = {Double.NaN,Double.NaN,Double.NaN};
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private double[] q3CalibInitial = {Double.NaN,Double.NaN,Double.NaN};
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private bool[] isChQ3CalibValid = { false,false,false};
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private bool[] isChQ3CalibValid = { false,false,false};
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private double[] q3CalibCh = {Double.NaN,Double.NaN,Double.NaN};
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private double[] q3CalibCh = {Double.NaN,Double.NaN,Double.NaN};
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@ -3979,6 +3982,17 @@ namespace TBF.Rig.RegisterReaders.GenesisRegReader.implementations
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public bool CalculateQ3Calibration()
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public bool CalculateQ3Calibration()
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{
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return CalculateQ3CalibrationWithErrorLimits(-DefaultQ3CalibrationFactorErrorLimit,
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DefaultQ3CalibrationFactorErrorLimit);
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}
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/// <summary>
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/// Calculates Q3 factors using the limits configured on the procedure activity that writes them.
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/// A pair for which the high limit is not greater than the low limit (the normal unset 0 / 0
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/// value) falls back to the historical +/- 5 % validation.
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/// </summary>
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public bool CalculateQ3CalibrationWithErrorLimits(double errorLimitLo, double errorLimitHi)
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{
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{
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if (Double.IsNaN(refVolume) || Double.IsInfinity(refVolume) || refVolume <= 0 || Double.IsNaN(refTime) || Double.IsInfinity(refTime) || refTime <= 0)
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if (Double.IsNaN(refVolume) || Double.IsInfinity(refVolume) || refVolume <= 0 || Double.IsNaN(refTime) || Double.IsInfinity(refTime) || refTime <= 0)
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{
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{
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@ -3986,13 +4000,24 @@ namespace TBF.Rig.RegisterReaders.GenesisRegReader.implementations
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return false;
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return false;
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}
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}
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CalculateQ3Calibration( refVolume, refTime);
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CalculateQ3Calibration(refVolume, refTime, errorLimitLo, errorLimitHi);
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return true;
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return true;
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}
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}
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public void CalculateQ3Calibration(double refVolume, double refTime)
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public void CalculateQ3Calibration(double refVolume, double refTime)
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{
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{
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GetQ3Calibration(refVolume, refTime, q3CalibInitial, ref isChQ3CalibValid,ref q3DiffPercentageCalibCh, ref q3CalibCh);
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CalculateQ3Calibration(refVolume, refTime, -DefaultQ3CalibrationFactorErrorLimit,
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DefaultQ3CalibrationFactorErrorLimit);
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}
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public void CalculateQ3Calibration(double refVolume, double refTime, double errorLimitLo, double errorLimitHi)
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{
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double effectiveErrorLimitLo;
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double effectiveErrorLimitHi;
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TryGetEffectiveQ3CalibrationErrorLimits(errorLimitLo, errorLimitHi,
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out effectiveErrorLimitLo, out effectiveErrorLimitHi);
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GetQ3Calibration(refVolume, refTime, q3CalibInitial, effectiveErrorLimitLo,
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effectiveErrorLimitHi, ref isChQ3CalibValid, ref q3DiffPercentageCalibCh, ref q3CalibCh);
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}
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}
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public void GetQ3Calibration(double refVolume, double refTime, double[] initCalibFactor, ref bool[] isChQ3CalibValid, ref double[] q3CalibCh)
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public void GetQ3Calibration(double refVolume, double refTime, double[] initCalibFactor, ref bool[] isChQ3CalibValid, ref double[] q3CalibCh)
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@ -4002,6 +4027,36 @@ namespace TBF.Rig.RegisterReaders.GenesisRegReader.implementations
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}
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}
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public void GetQ3Calibration(double refVolume, double refTime, double[] initCalibFactor, ref bool[] isChQ3CalibValid, ref double[] calibDiffPercent, ref double[] q3CalibCh)
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public void GetQ3Calibration(double refVolume, double refTime, double[] initCalibFactor, ref bool[] isChQ3CalibValid, ref double[] calibDiffPercent, ref double[] q3CalibCh)
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{
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GetQ3Calibration(refVolume, refTime, initCalibFactor,
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-DefaultQ3CalibrationFactorErrorLimit, DefaultQ3CalibrationFactorErrorLimit,
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ref isChQ3CalibValid, ref calibDiffPercent, ref q3CalibCh);
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}
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/// <summary>
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/// Resolves the error limits used to validate a calculated Q3 factor. TBF stores an unset
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/// limit pair as equal values (normally 0 / 0), so only an ordered finite pair is considered set.
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/// </summary>
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public static bool TryGetEffectiveQ3CalibrationErrorLimits(double errorLimitLo, double errorLimitHi,
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out double effectiveErrorLimitLo, out double effectiveErrorLimitHi)
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{
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if (!Double.IsNaN(errorLimitLo) && !Double.IsInfinity(errorLimitLo) &&
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!Double.IsNaN(errorLimitHi) && !Double.IsInfinity(errorLimitHi) &&
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errorLimitHi > errorLimitLo)
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{
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effectiveErrorLimitLo = errorLimitLo;
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effectiveErrorLimitHi = errorLimitHi;
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return true;
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}
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effectiveErrorLimitLo = -DefaultQ3CalibrationFactorErrorLimit;
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effectiveErrorLimitHi = DefaultQ3CalibrationFactorErrorLimit;
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return false;
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}
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public void GetQ3Calibration(double refVolume, double refTime, double[] initCalibFactor,
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double errorLimitLo, double errorLimitHi, ref bool[] isChQ3CalibValid,
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ref double[] calibDiffPercent, ref double[] q3CalibCh)
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{
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{
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log.Debug("=== Q3 CALIBRATION START ===");
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log.Debug("=== Q3 CALIBRATION START ===");
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@ -4021,7 +4076,7 @@ namespace TBF.Rig.RegisterReaders.GenesisRegReader.implementations
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}
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}
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}
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}
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log.Debug($"Inputs: refVolume={refVolume}, refTime={refTime}, initCalibFactors={string.Join(",", initCalibFactor)}");
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log.Debug($"Inputs: refVolume={refVolume}, refTime={refTime}, initCalibFactors={string.Join(",", initCalibFactor)}, errorLimits={errorLimitLo}..{errorLimitHi}%");
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if (_rawStartEndByChannel == null)
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if (_rawStartEndByChannel == null)
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{
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{
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@ -4110,10 +4165,16 @@ namespace TBF.Rig.RegisterReaders.GenesisRegReader.implementations
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}
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}
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q3CalibCh[iChannel] = (refVolume / recalculatedDeltaVolume) * initCalibFactor[iChannel];
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q3CalibCh[iChannel] = (refVolume / recalculatedDeltaVolume) * initCalibFactor[iChannel];
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double diffPercent = Math.Abs((initCalibFactor[iChannel] - q3CalibCh[iChannel] ) / initCalibFactor[iChannel]) * 100.0;
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// Procedure error limits are an ordered range, e.g. -2 .. +2, so validation
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isChQ3CalibValid[iChannel] = diffPercent <= 5.0 && !double.IsNaN(q3CalibCh[iChannel]) && !double.IsInfinity(q3CalibCh[iChannel]) && q3CalibCh[iChannel] >= 1 && q3CalibCh[iChannel] <= ushort.MaxValue;
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// must retain the direction of the factor change. Keep the persisted difference
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// absolute for compatibility with the existing calibration-result fields.
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double signedDiffPercent = ((q3CalibCh[iChannel] - initCalibFactor[iChannel]) / initCalibFactor[iChannel]) * 100.0;
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double diffPercent = Math.Abs(signedDiffPercent);
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isChQ3CalibValid[iChannel] = signedDiffPercent >= errorLimitLo && signedDiffPercent <= errorLimitHi &&
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!double.IsNaN(q3CalibCh[iChannel]) && !double.IsInfinity(q3CalibCh[iChannel]) &&
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q3CalibCh[iChannel] >= 1 && q3CalibCh[iChannel] <= ushort.MaxValue;
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calibDiffPercent[iChannel] = diffPercent;
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calibDiffPercent[iChannel] = diffPercent;
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log.Debug($"Calculated Q3Calib Ch[{iChannel}] ={q3CalibCh[iChannel]} DiffPercent={diffPercent}% isValid[{isChQ3CalibValid[iChannel]}] IninitCalibFactor={initCalibFactor}");
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log.Debug($"Calculated Q3Calib Ch[{iChannel}] ={q3CalibCh[iChannel]} SignedDiffPercent={signedDiffPercent}% DiffPercent={diffPercent}% isValid[{isChQ3CalibValid[iChannel]}] IninitCalibFactor={initCalibFactor}");
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}
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}
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log.Debug("=== Q3 CALIBRATION END ===");
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log.Debug("=== Q3 CALIBRATION END ===");
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@ -1088,7 +1088,9 @@ namespace TBF.Rig.TestMethods.GenesisCommunication
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BeforeTest = currentTest;
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BeforeTest = currentTest;
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}
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}
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var gciFullLoginResult = iHead.OptoHeadTest.WriteQ3Calibration(cfg, BeforeTest, wm);
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// Keep the Q3 measurement result on the preceding test, but validate against the
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// limits configured on the current "Write Q3 Calibration Slot" activity.
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var gciFullLoginResult = iHead.OptoHeadTest.WriteQ3Calibration(cfg, BeforeTest, wm, currentTest);
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if (!string.IsNullOrEmpty(gciFullLoginResult) &&
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if (!string.IsNullOrEmpty(gciFullLoginResult) &&
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gciFullLoginResult.Equals(TBF.Rig.RegisterReaders.GenesisRegReader.communication.OptoHeadTest.ResultOk))
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gciFullLoginResult.Equals(TBF.Rig.RegisterReaders.GenesisRegReader.communication.OptoHeadTest.ResultOk))
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{
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{
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@ -0,0 +1,263 @@
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using System;
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using System.Globalization;
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using System.Text;
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using System.Linq;
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using System.Reflection;
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using TBF.Rig.RegisterReaders.GenesisRegReader.implementations;
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using TBF.Rig.RegisterReaders.GenesisRegReader.communication;
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using TBF.Rig.Uni.SharedDialogs.SmartMetersCommunication.common;
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using Microsoft.VisualStudio.TestTools.UnitTesting;
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using TBF.Rig.RegisterReaders.GenesisRegReader.communication.Genesis;
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using TBF.Rig.RegisterReaders.GenesisRegReader.communication.Genesis.Protocols.StreamingProtocol;
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using TBF.Rig.RegisterReaders.GenesisRegReader.common;
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namespace TBFTests.Rig.RegisterReaders.GenesisRegReader
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{
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// Golden frames have CRCs generated independently with Python binascii.crc_hqx.
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// No ports, databases, GCI engine or production-code changes are required.
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[TestClass]
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[TestCategory("GenesisReadRegression")]
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public class GenesisReadDataRegressionTests
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{
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[DataTestMethod]
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[DataRow("@h 1 0 10000000 FFFFFF00 00000400 00100000 00000000 00008000 00400000 00800000 FFFFF000 0C 00018000 8D2C", 1, 1024, 0.001024)]
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[DataRow("@h 1 0 10000000 FFFFFF00 00000400 00100000 00000200 00008000 00400000 00800000 FFFFF000 0C 00018000 7BAC", 1, 512, 0.002048)]
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[DataRow("@h 1 0 10000000 FFFFFF00 00000400 00100000 00000400 00008000 00400000 00800000 FFFFF000 0C 00018000 700D", 1, 1024, 0.001024)]
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[DataRow("@h 1 0 10000000 FFFFFF00 00000400 00100000 00000800 00008000 00400000 00800000 FFFFF000 0C 00018000 674F", 1, 2048, 0.000512)]
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[DataRow("@h 2 0 10000000 FFFFFF00 00000400 00100000 00000000 00008000 00400000 00800000 FFFFF000 0C 00018000 3F43", 2, 1024, 0.001024)]
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[DataRow("@h 2 0 10000000 FFFFFF00 00000400 00100000 00000200 00008000 00400000 00800000 FFFFF000 0C 00018000 C9C3", 2, 512, 0.002048)]
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[DataRow("@h 2 0 10000000 FFFFFF00 00000400 00100000 00000400 00008000 00400000 00800000 FFFFF000 0C 00018000 C262", 2, 1024, 0.001024)]
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[DataRow("@h 2 0 10000000 FFFFFF00 00000400 00100000 00000800 00008000 00400000 00800000 FFFFF000 0C 00018000 D520", 2, 2048, 0.000512)]
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[DataRow("@h 3 0 10000000 FFFFFF00 00000400 00100000 00000000 00008000 00400000 00800000 FFFFF000 0C 00018000 A179", 3, 1024, 0.001024)]
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[DataRow("@h 3 0 10000000 FFFFFF00 00000400 00100000 00000200 00008000 00400000 00800000 FFFFF000 0C 00018000 57F9", 3, 512, 0.002048)]
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[DataRow("@h 3 0 10000000 FFFFFF00 00000400 00100000 00000400 00008000 00400000 00800000 FFFFF000 0C 00018000 5C58", 3, 1024, 0.001024)]
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[DataRow("@h 3 0 10000000 FFFFFF00 00000400 00100000 00000800 00008000 00400000 00800000 FFFFF000 0C 00018000 4B1A", 3, 2048, 0.000512)]
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public void ProtocolH_GoldenFramesPreserveChannelUnitsAndScale(string frame, int channel, int scale, double volume)
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{
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var decoder = new StreamingDecoder();
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Assert.IsTrue(decoder.DecodeMsg(frame));
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var data = decoder.DataCalib;
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Assert.IsNotNull(data);
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Assert.IsTrue(data.IsValid);
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Assert.AreEqual(channel, data.Channel);
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Assert.AreEqual(scale, data.VolumeScaleRawPerMl);
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Assert.AreEqual(volume, data.VolumeCm, 1e-12);
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Assert.AreEqual(1048576d, data.AccuVolumeRaw);
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Assert.AreEqual(1024d, data.DeltaVolumeRaw);
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Assert.AreEqual(volume / 1024, data.DeltaVolumeQm, 1e-15);
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Assert.AreEqual(1.5, data.TimeS, 1e-12);
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Assert.AreEqual(.5, data.SampleIntervalS, 1e-12);
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Assert.AreEqual(.001, data.AmplitudeUpV, 1e-12);
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Assert.AreEqual(.002, data.AmplitudeDownV, 1e-12);
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Assert.AreEqual(-1d, data.TemperatureDegC, 1e-12);
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Assert.AreEqual(65536d, data.OverflowTimeS);
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Assert.IsNull(decoder.DataFlowTest);
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double previousVolume = double.NaN, previousTime = double.NaN;
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var telegram = new OptoTelegramRaw();
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telegram.UpdateFromSmart(data, 17, 2.5f, ref previousVolume, ref previousTime);
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Assert.AreEqual(channel - 1, telegram.iChannel);
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Assert.AreEqual(volume * 1000, telegram.VolumeRawExt, 1e-9);
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|
Assert.AreEqual(1.5, telegram.TimestampExt, 1e-12);
|
||||||
|
Assert.AreEqual(17, telegram.Counter);
|
||||||
|
Assert.AreEqual(2.5f, telegram.RefFlow);
|
||||||
|
}
|
||||||
|
|
||||||
|
[DataTestMethod]
|
||||||
|
[DataRow("@h 1 0 00000000 00000000 00000400 00100000 00000400 00008000 00400000 00800000 00000000 0C 00018000 0A39", 0, 0, 0)]
|
||||||
|
[DataRow("@h 1 0 7FFFFFFF 7FFFFFFF 00000400 00100000 00000400 00008000 00400000 00800000 7FFFFFFF 0C 00018000 89B0", 2147483647, 2147483647, 2147483647)]
|
||||||
|
[DataRow("@h 1 0 80000000 80000000 00000400 00100000 00000400 00008000 00400000 00800000 80000000 0C 00018000 3E06", -2147483648, -2147483648, -2147483648)]
|
||||||
|
[DataRow("@h 1 0 FFFFFFFF FFFFFFFF 00000400 00100000 00000400 00008000 00400000 00800000 FFFFFFFF 0C 00018000 6870", -1, -1, -1)]
|
||||||
|
public void ProtocolH_SignedFieldsPreserveTwosComplement(string frame, int total, int delta, int temperature)
|
||||||
|
{
|
||||||
|
var decoder = new StreamingDecoder();
|
||||||
|
Assert.IsTrue(decoder.DecodeMsg(frame));
|
||||||
|
var data = decoder.DataCalib;
|
||||||
|
Assert.AreEqual(total, data.RawTotalTimeOfFlight);
|
||||||
|
Assert.AreEqual(delta, data.RawDeltaTimeOfFlight);
|
||||||
|
Assert.AreEqual(total / 274877906944d, data.TotalTimeOfFlightS, 1e-15);
|
||||||
|
Assert.AreEqual(delta / 274877906944d, data.DeltaTimeOfFlightS, 1e-15);
|
||||||
|
Assert.AreEqual(temperature / 4096d, data.TemperatureDegC, 1e-10);
|
||||||
|
}
|
||||||
|
|
||||||
|
[DataTestMethod]
|
||||||
|
[DataRow("@f 00000000 00000000 F603", 0.0, 0.0)]
|
||||||
|
[DataRow("@f 7FFFFFFF FFFFFFFF 3996", 2147.483647, 65535.99998474121)]
|
||||||
|
[DataRow("@f FFFFFFFF 00010000 21AD", -1e-06, 1.0)]
|
||||||
|
[DataRow("@f 80000000 00008000 0541", -2147.483648, 0.5)]
|
||||||
|
public void ProtocolF_PreservesSignedVolumeAndUnsignedTime(string frame, double volume, double time)
|
||||||
|
{
|
||||||
|
var decoder = new StreamingDecoder();
|
||||||
|
Assert.IsTrue(decoder.DecodeMsg(frame));
|
||||||
|
Assert.IsNotNull(decoder.DataFlowTest);
|
||||||
|
Assert.IsTrue(decoder.DataFlowTest.IsValid);
|
||||||
|
Assert.AreEqual(volume, decoder.DataFlowTest.VolumeCm, 1e-9);
|
||||||
|
Assert.AreEqual(time, decoder.DataFlowTest.TimeS, 1e-12);
|
||||||
|
Assert.IsNull(decoder.DataCalib);
|
||||||
|
}
|
||||||
|
|
||||||
|
[DataTestMethod]
|
||||||
|
[DataRow(null)]
|
||||||
|
[DataRow("")]
|
||||||
|
[DataRow("garbage")]
|
||||||
|
[DataRow("@h")]
|
||||||
|
[DataRow("@h 1")]
|
||||||
|
[DataRow("@h 1 invalid")]
|
||||||
|
[DataRow("@f 00000001 00010000 ZZZZ")]
|
||||||
|
[DataRow("@h\t1\t0\t10000000\tFFFFFF00\t00000400\t00100000\t00000400\t00008000\t00400000\t00800000\tFFFFF000\t0C\t00018000\t700D")]
|
||||||
|
[DataRow("@h 1 0 10000000 FFFFFF00 00000400 00100000 00000400 00008000 00400000 00800000 FFFFF000 0C 00018000 700D ")]
|
||||||
|
[DataRow("@he 1 0 10000000 FFFFFF00 00000400 00100000 00000400 00008000 00400000 00800000 FFFFF000 0C 00018000 700D")]
|
||||||
|
public void InvalidOrUnsupportedInputProducesNoMeasurement(string frame)
|
||||||
|
{
|
||||||
|
var decoder = new StreamingDecoder();
|
||||||
|
decoder.DecodeMsg(frame);
|
||||||
|
Assert.IsNull(decoder.DataCalib);
|
||||||
|
Assert.IsNull(decoder.DataFlowTest);
|
||||||
|
}
|
||||||
|
|
||||||
|
[DataTestMethod]
|
||||||
|
[DataRow(1)]
|
||||||
|
[DataRow(2)]
|
||||||
|
[DataRow(3)]
|
||||||
|
[DataRow(4)]
|
||||||
|
[DataRow(5)]
|
||||||
|
[DataRow(6)]
|
||||||
|
[DataRow(7)]
|
||||||
|
[DataRow(8)]
|
||||||
|
[DataRow(9)]
|
||||||
|
[DataRow(10)]
|
||||||
|
[DataRow(11)]
|
||||||
|
[DataRow(12)]
|
||||||
|
[DataRow(13)]
|
||||||
|
public void AlteringAnyCalibrationFieldWithoutUpdatingCrcRejectsRecord(int field)
|
||||||
|
{
|
||||||
|
var words = Golden.Split(' ');
|
||||||
|
words[field] = words[field] == "0" ? "1" : "0";
|
||||||
|
var decoder = new StreamingDecoder();
|
||||||
|
Assert.IsFalse(decoder.DecodeMsg(string.Join(" ", words)));
|
||||||
|
Assert.IsNull(decoder.DataCalib);
|
||||||
|
}
|
||||||
|
|
||||||
|
[DataTestMethod]
|
||||||
|
[DataRow("en-US")]
|
||||||
|
[DataRow("sk-SK")]
|
||||||
|
[DataRow("de-DE")]
|
||||||
|
public void HexDecodingIsIndependentOfCulture(string culture)
|
||||||
|
{
|
||||||
|
var previous = System.Threading.Thread.CurrentThread.CurrentCulture;
|
||||||
|
try
|
||||||
|
{
|
||||||
|
System.Threading.Thread.CurrentThread.CurrentCulture = CultureInfo.GetCultureInfo(culture);
|
||||||
|
var decoder = new StreamingDecoder();
|
||||||
|
Assert.IsTrue(decoder.DecodeMsg(Golden));
|
||||||
|
Assert.AreEqual(.001024, decoder.DataCalib.VolumeCm, 1e-12);
|
||||||
|
Assert.AreEqual(-1d, decoder.DataCalib.TemperatureDegC);
|
||||||
|
}
|
||||||
|
finally { System.Threading.Thread.CurrentThread.CurrentCulture = previous; }
|
||||||
|
}
|
||||||
|
|
||||||
|
[TestMethod]
|
||||||
|
public void DiagnosticModeRetainsBadCrcButMarksRecordInvalid()
|
||||||
|
{
|
||||||
|
var corrupted = Golden.Substring(0, Golden.Length - 4) + "0000";
|
||||||
|
var decoder = new StreamingDecoder(false);
|
||||||
|
Assert.IsFalse(decoder.DecodeMsg(corrupted));
|
||||||
|
Assert.IsNotNull(decoder.DataCalib);
|
||||||
|
Assert.IsFalse(decoder.DataCalib.IsValid);
|
||||||
|
Assert.AreEqual(.001024, decoder.DataCalib.VolumeCm, 1e-12);
|
||||||
|
}
|
||||||
|
|
||||||
|
[TestMethod]
|
||||||
|
public void CrcMatchesIndependentCcittFalseCheckVector()
|
||||||
|
{
|
||||||
|
Assert.AreEqual((ushort)0x29B1, Crc16Ccitt.CalculateMsb1021(Encoding.ASCII.GetBytes("123456789")));
|
||||||
|
Assert.AreEqual((ushort)0xFFFF, Crc16Ccitt.CalculateMsb1021(new byte[0]));
|
||||||
|
}
|
||||||
|
private static void InitializeReaderForTest(GenesisSmartReader reader)
|
||||||
|
{
|
||||||
|
const int channelCount = 3;
|
||||||
|
|
||||||
|
SetPrivateField(reader, "volumeRawExtLast", new double[channelCount]);
|
||||||
|
SetPrivateField(reader, "timestampExtLast", new double[channelCount]);
|
||||||
|
|
||||||
|
SetPrivateField(reader, "lastTimestamp", new double[channelCount]);
|
||||||
|
SetPrivateField(reader, "timestampSec", Enumerable.Repeat(double.NaN, channelCount).ToArray());
|
||||||
|
SetPrivateField(reader, "timestampSec0", Enumerable.Repeat(double.NaN, channelCount).ToArray());
|
||||||
|
|
||||||
|
SetPrivateField(reader, "lastVolumeRaw", new double[channelCount]);
|
||||||
|
SetPrivateField(reader, "volumeLtr", Enumerable.Repeat(double.NaN, channelCount).ToArray());
|
||||||
|
SetPrivateField(reader, "volumeLtr0", Enumerable.Repeat(double.NaN, channelCount).ToArray());
|
||||||
|
|
||||||
|
var optoData = new OptoTelegramRaw[GenesisSmartReader.OptoDataBufferSize];
|
||||||
|
for (int i = 0; i < optoData.Length; i++)
|
||||||
|
optoData[i] = new OptoTelegramRaw();
|
||||||
|
|
||||||
|
SetPrivateField(reader, "optoData", optoData);
|
||||||
|
SetPrivateField(reader, "optoDataCount", 0);
|
||||||
|
SetPrivateField(reader, "toBeFlushed", new OptoTelegramRaw());
|
||||||
|
|
||||||
|
SetPrivateField(reader, "flowDirectionDetection", new FlowDirectionDetection());
|
||||||
|
SetPrivateField(reader, "dataStreamState", DataStreamState.ProcessAndSave);
|
||||||
|
SetPrivateField(reader, "synchronized", false);
|
||||||
|
SetPrivateField(reader, "synchronized2", false);
|
||||||
|
SetPrivateField(reader, "partOfTelegram", string.Empty);
|
||||||
|
SetPrivateField(reader, "startDataProcessing", true);
|
||||||
|
|
||||||
|
reader.StopQueueData = false;
|
||||||
|
|
||||||
|
reader.TestStartTelegramIx = 0;
|
||||||
|
reader.TestEndTelegramIx = 0;
|
||||||
|
}
|
||||||
|
|
||||||
|
private static void SetPrivateField(object target, string name, object value)
|
||||||
|
{
|
||||||
|
var field = target.GetType().GetField(name, BindingFlags.Instance | BindingFlags.NonPublic);
|
||||||
|
Assert.IsNotNull(field, name);
|
||||||
|
field.SetValue(target, value);
|
||||||
|
}
|
||||||
|
private static T ReadField<T>(object target, string name)
|
||||||
|
{
|
||||||
|
return (T)target.GetType().GetField(name, BindingFlags.Instance | BindingFlags.NonPublic).GetValue(target);
|
||||||
|
}
|
||||||
|
|
||||||
|
[TestMethod]
|
||||||
|
public void ProcessOptoLinePreservesPayloadAndCounterThroughReaderPipeline()
|
||||||
|
{
|
||||||
|
var reader = new GenesisSmartReader(new TBF.Rig.RegisterReaders.GenesisRegReader.GenesisCfg(new TBF.Rig.RegisterReaders.GenesisRegReader.Factory()));
|
||||||
|
InitializeReaderForTest(reader);
|
||||||
|
bool complete;
|
||||||
|
reader.ProcessOptoLine(Golden, DataStreamState.ProcessAndSave, out complete);
|
||||||
|
Assert.IsFalse(complete);
|
||||||
|
Assert.AreEqual(1, ReadField<int>(reader, "optoDataCount"));
|
||||||
|
var rows = ReadField<OptoTelegramRaw[]>(reader, "optoData");
|
||||||
|
Assert.AreEqual(0, rows[0].iChannel);
|
||||||
|
Assert.AreEqual(1.024, rows[0].VolumeRawExt, 1e-9);
|
||||||
|
Assert.AreEqual(1.5, rows[0].TimestampExt, 1e-12);
|
||||||
|
Assert.AreEqual(0, rows[0].Counter);
|
||||||
|
reader.ProcessOptoLine("invalid telegram", DataStreamState.ProcessAndSave, out complete);
|
||||||
|
Assert.AreEqual(1, ReadField<int>(reader, "optoDataCount"));
|
||||||
|
reader.ProcessOptoLine(Golden, DataStreamState.ProcessAndSave, out complete);
|
||||||
|
Assert.AreEqual(2, ReadField<int>(reader, "optoDataCount"));
|
||||||
|
Assert.AreEqual(1, rows[1].Counter);
|
||||||
|
Assert.AreEqual(rows[0].VolumeRawExt, rows[1].VolumeRawExt, 1e-9);
|
||||||
|
}
|
||||||
|
|
||||||
|
[DataTestMethod]
|
||||||
|
[DataRow("stop")]
|
||||||
|
[DataRow("queue")]
|
||||||
|
[DataRow("processing")]
|
||||||
|
public void ReaderStopGatesPreventMeasurementsFromBeingAppended(string gate)
|
||||||
|
{
|
||||||
|
var reader = new GenesisSmartReader(new TBF.Rig.RegisterReaders.GenesisRegReader.GenesisCfg(new TBF.Rig.RegisterReaders.GenesisRegReader.Factory()));
|
||||||
|
InitializeReaderForTest(reader);
|
||||||
|
if (gate == "stop") SetPrivateField(reader, "_isStopping", true);
|
||||||
|
if (gate == "queue") reader.StopQueueData = true;
|
||||||
|
if (gate == "processing") SetPrivateField(reader, "startDataProcessing", false);
|
||||||
|
bool complete;
|
||||||
|
reader.ProcessOptoLine(Golden, DataStreamState.ProcessAndSave, out complete);
|
||||||
|
Assert.AreEqual(0, ReadField<int>(reader, "optoDataCount"));
|
||||||
|
Assert.IsFalse(complete);
|
||||||
|
}
|
||||||
|
|
||||||
|
private const string Golden = "@h 1 0 10000000 FFFFFF00 00000400 00100000 00000400 00008000 00400000 00800000 FFFFF000 0C 00018000 700D";
|
||||||
|
}
|
||||||
|
}
|
||||||
@ -237,6 +237,40 @@ namespace TBFTests.Rig.RegisterReaders.GenesisRegReader.implementations
|
|||||||
Assert.AreEqual(15625.0, calib[2], 0.001);
|
Assert.AreEqual(15625.0, calib[2], 0.001);
|
||||||
}
|
}
|
||||||
|
|
||||||
|
[TestMethod]
|
||||||
|
public void GetQ3Calibration_ShouldUseWriteActivityLimits_AndFallbackWhenTheyAreUnset()
|
||||||
|
{
|
||||||
|
double limitLo;
|
||||||
|
double limitHi;
|
||||||
|
Assert.IsFalse(GenesisSmartReader.TryGetEffectiveQ3CalibrationErrorLimits(0.0, 0.0, out limitLo, out limitHi));
|
||||||
|
Assert.AreEqual(-5.0, limitLo);
|
||||||
|
Assert.AreEqual(5.0, limitHi);
|
||||||
|
Assert.IsTrue(GenesisSmartReader.TryGetEffectiveQ3CalibrationErrorLimits(-2.0, 2.0, out limitLo, out limitHi));
|
||||||
|
Assert.AreEqual(-2.0, limitLo);
|
||||||
|
Assert.AreEqual(2.0, limitHi);
|
||||||
|
|
||||||
|
var sut = new GenesisSmartReader();
|
||||||
|
// At refTime 120 s, this gives a calculated factor 3 % above the initial factor.
|
||||||
|
var raw = CreateKnownStartEndData(
|
||||||
|
(100.0, 100.0 + (200.0 / 1.03 / 12.0), 10.0, 20.0),
|
||||||
|
(200.0, 200.0 + (200.0 / 1.03 / 12.0), 10.0, 20.0),
|
||||||
|
(300.0, 300.0 + (200.0 / 1.03 / 12.0), 10.0, 20.0));
|
||||||
|
SetPrivateField(sut, "_rawStartEndByChannel", raw);
|
||||||
|
SetPrivateField(sut, "_recalculatedStartEndByChannel", raw);
|
||||||
|
SetPrivateField(sut, "optoDataCount", 2);
|
||||||
|
sut.TestStartTelegramIx = 0;
|
||||||
|
sut.TestEndTelegramIx = 1;
|
||||||
|
|
||||||
|
var valid = new bool[3];
|
||||||
|
var differences = new double[3];
|
||||||
|
var factors = new double[3];
|
||||||
|
sut.GetQ3Calibration(200.0, 120.0, ValidInitFactors, -2.0, 2.0,
|
||||||
|
ref valid, ref differences, ref factors);
|
||||||
|
|
||||||
|
CollectionAssert.AreEqual(new[] { false, false, false }, valid);
|
||||||
|
Assert.IsTrue(differences.All(x => x > 2.9 && x < 3.1));
|
||||||
|
}
|
||||||
|
|
||||||
[TestMethod]
|
[TestMethod]
|
||||||
public void CalculateQ3Calibration_ShouldComputeExpectedChannelValues_FromSimulationData()
|
public void CalculateQ3Calibration_ShouldComputeExpectedChannelValues_FromSimulationData()
|
||||||
{
|
{
|
||||||
|
|||||||
Loading…
Reference in New Issue
Block a user